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Author SHA1 Message Date
narimiran
f7145dd26e Revert "leave type section symbols unchanged on resem, fix overly general double semcheck for forward types (#24888)"
This reverts commit cfe89097e7.
2025-04-21 23:07:52 +02:00
narimiran
1db543e8b2 bump NimVersion to 2.2.4 2025-04-21 19:10:12 +02:00
metagn
238a4db3d9 update proc type recursion errors after merge (#24897)
refs #24893, refs #24888

(cherry picked from commit dc100c5caa)
2025-04-21 19:09:52 +02:00
metagn
a19d06e1f7 generally disallow recursive structural types, check proc param types (#24893)
fixes #5631, fixes #8938, fixes #18855, fixes #19271, fixes #23885,
fixes #24877

`isTupleRecursive`, previously only called to give an error for illegal
recursions for:

* tuple fields
* types declared in type sections
* explicitly instantiated generic types

did not check for recursions in proc types. It now does, meaning proc
types now need a nominal type layer to recurse over themselves. It is
renamed to `isRecursiveStructuralType` to better reflect what it does,
it is different from a recursive type that cannot exist due to a lack of
pointer indirection which is possible for nominal types.

It is now also called to check the param/return types of procs, similar
to how tuple field types are checked. Pointer indirection checks are not
needed since procs are pointers.

I wondered if this would lead to a slowdown in the compiler but since it
only skips structural types it shouldn't take too many iterations, not
to mention only proc types are newly considered and aren't that common.
But maybe something in the implementation could be inefficient, like the
cycle detector using an IntSet.

Note: The name `isRecursiveStructuralType` is not exactly correct
because it still checks for `distinct` types. If it didn't, then the
compiler would accept this:

```nim
type
  A = distinct B
  B = ref A
```

But this breaks when attempting to write `var x: A`. However this is not
the case for:

```nim
type
  A = object
    x: B
  B = ref A
```

So a better description would be "types that are structural on the
backend".

A future step to deal with #14015 and #23224 might be to check the
arguments of `tyGenericInst` as well but I don't know if this makes
perfect sense.

(cherry picked from commit 7f0e07492f)
2025-04-21 19:09:45 +02:00
metagn
beb54a5a75 consider proc return type as weak reference in codegen (#24894)
fixes #7706

(cherry picked from commit 9c2593444a)
2025-04-21 17:34:17 +02:00
metagn
cfe89097e7 leave type section symbols unchanged on resem, fix overly general double semcheck for forward types (#24888)
fixes #24887 (really just this [1 line
commit](632c7b3397)
would have been enough to fix the issue but it would ignore the general
problem)

When a type definition is encountered where the symbol already has a
type (not a forward type), the type is left alone (not reset to
`tyForward`) and the RHS is handled differently: The RHS is still
semchecked, but the type of the symbol is not updated, and nominal type
nodes are ignored entirely (specifically if they are the same kind as
the symbol's existing type but this restriction is not really needed).
If the existing type of the symbol is an enum and and the RHS has a
nominal enum type node, the enum fields of the existing type are added
to scope rather than creating a new type from the RHS and adding its
symbols instead.

The goal is to prevent any incompatible nominal types from being
generated during resem as in #24887. But it also restricts what macros
can do if they generate type section AST, for example if we have:

```nim
type Foo = int
```

and a macro modifies the type section while keeping the symbol node for
`Foo` like:

```nim
type Foo = float
```

Then the type of `Foo` will still remain `int`, while it previously
became `float`. While we could maybe allow this and make it so only
nominal types cannot be changed, it gets even more complex when
considering generic params and whether or not they get updated. So to
keep it as simple as possible the rule is that the symbol type does not
change, but maybe this behavior was useful for macros.

Only nominal type nodes are ignored for semchecking on the RHS, so that
cases like this do not cause a regression:

```nim
template foo(): untyped =
  proc bar() {.inject.} = discard
  int

type Foo = foo()
bar() # normally works
```

However this specific code exposed a problem with forward type handling:

---

In specific cases, when the type section is undergoing the final pass,
if the type fits some overly general criteria (it is not an object,
enum, alias or a sink type and its node is not a nominal type node), the
entire RHS is semchecked for a 2nd time as a standalone type (with `nil`
prev) and *maybe* reassigned to the new semchecked type, depending on
its type kind. (for some reason including nominal types when we excluded
them before?) This causes a redefinition error if the RHS defines a
symbol.

This code goes all the way back to the first commit and I could not find
the reason why it was there, but removing it showed a failure in
`thard_tyforward`: If a generic forward type is invoked, it is left as
an unresolved `tyGenericInvocation` on the first run. Semchecking it
again at the end turns it into a `tyGenericInst`. So my understanding is
that it exists to handle these loose forward types, but it is way too
general and there is a similar mechanism `c.skipTypes` which is supposed
to do the same thing but doesn't.

So this is no longer done, and `c.skipTypes` is revamped (and renamed):
It is now a list of types and the nodes that are supposed to evaluate to
them, such that types needing to be updated later due to containing
forward types are added to it along with their nodes. When finishing the
type section, these types are reassigned to the semchecked value of
their nodes so that the forward types in them are fully resolved. The
"reassigning" here works due to updating the data inside the type
pointer directly, and is how forward types work by themselves normally
(`tyForward` types are modified in place as `s.typ`).

For example, as mentioned before, generic invocations of forward types
are first created as `tyGenericInvocation` and need to become
`tyGenericInst` later. So they are now added to this list along with
their node. Object types with forward types as their base types also
need to be updated later to check that the base type is correct/inherit
fields from it: For this the entire object type and its node are added
to the list. Similarly, any case where whether a component type is
`tyGenericInst` or `tyGenericInvocation` matters also needs to cascade
this (`set` does presumably to check the instantiated type).

This is not complete: Generic invocations with forward types only check
that their base type is a forward type, but not any of their arguments,
which causes #16754 and #24133. The generated invocations also need to
cascade properly: `Foo[Bar[ForwardType]]` for example would see that
`Bar[ForwardType]` is a generic invocation and stay as a generic
invocation itself, but it might not queue itself to be updated later.
Even if it did, only the entire type `Foo[Bar[ForwardType]]` needs to be
queued, updating `Bar[ForwardType]` by itself would be redundant or it
would not change anything at all. But these can be done later.

(cherry picked from commit 525d64fe88)
2025-04-21 17:28:11 +02:00
lit
b5ee86b43f fix(docgen): export for imported symbols missing; closes #24890 (#24891)
(cherry picked from commit 8bc8d40778)
2025-04-21 17:27:59 +02:00
metagn
1227799b84 implement parser for new case objects (#24885)
refs https://github.com/nim-lang/RFCs/issues/559

Parses as an `nkIdentDefs` with an `nkEmpty` name. Pragma is allowed,
can remove this if necessary.

Fine to close and postpone for later

(cherry picked from commit 032da90ed1)
2025-04-18 12:50:19 +02:00
metagn
545058a4ea account for invalid data in enum $ on arc/orc (#24886)
closes #24875

Refc gives `0 (invalid data!)`, but since enum `$` procs on arc are
generated during enum declarations we might not have access to string
concatenation and integer `$`, so it generates a static string. Just
chose an empty string for this.

(cherry picked from commit 5aaba213d4)
2025-04-18 12:50:05 +02:00
ringabout
403b24faeb fixes #24881; build_all.sh koch tools fails to build atlas (#24884)
fixes #24881

To test: `nim c koch.nim` + delete the `dist` directory

(cherry picked from commit af9219ada7)
2025-04-17 19:09:22 +02:00
metagn
aa8715afde fix stmtlist expression indent regression (#24883)
follows up #24855

Before #24855, the test would work because the indentation of the `;`
token would be passed to `semiStmtList` and so its indentation of `-1`
would be used. Now the `;` token is skipped and the indentation of the
first `discard` is used which is > -1. However the second discard has an
indentation of -1 because it's on the same line: this fails the
`sameInd(p) or realInd(p)` check since -1 is never >= the indent of the
first discard.

For compatibility with the parser up to this point this indent check is
entirely removed, meaning the indent is ignored. Because the `;` is
basically never on a separate line, this was already the case for
basically every use. `semiStmtList` is wrapped in a `withInd` anyway
which resets the indent after it's done, since the entire statement list
is wrapped in a `()`. To disallow dedents, the above check could be
fixed to use `sameOrNoInd` instead of `sameInd`, which is done in the
commented version of this check.

(cherry picked from commit 3d14381473)
2025-04-17 17:33:04 +02:00
ringabout
397eb361e9 fixes #24879; Data getting wiped on copy with iterators and =copy on refc (#24880)
fixes #24879

(cherry picked from commit 9f359e8d6d)
2025-04-17 17:32:57 +02:00
ringabout
ea4df85f34 fixes nimsugget with Checksums deps (#24882)
ref https://github.com/nim-lang/Nim/issues/24881

(cherry picked from commit 3f9c269013)
2025-04-17 17:32:48 +02:00
Miran
e3a2af00ea update the tooling versions (#24878)
(cherry picked from commit 11e4bd668c)
2025-04-17 17:32:16 +02:00
Juan M Gómez
349ee54838 Fixes a nimsuggest crash (#24873)
(cherry picked from commit e7f73bfebe)
2025-04-17 17:32:01 +02:00
metagn
a8d87c041c don't traverse inner procs to lift locals in closure iters (#24876)
fixes #24863, refs #23787 and #24316

Working off the minimized example, my understanding of the issue is: `n`
captures `r` as `:envP.r1` where `:envP` is the environment of `b`, then
`proc () = n()` does the lambda lifting of `n` again (which isn't done
if the `proc ()` is marked `{.closure.}`, hence the workaround) which
then captures the `:envP` as another field inside the `:envP`, so it
generates `:envP.:envP_2.r1` but the `.:envP_2` field is `nil`, so it
causes a segfault.

The problem is that the capture of `r` in `n` is done inside
`detectCapturedVars` for the surrounding closure iterator: inner procs
are not special cased and traversed as regular nodes, so it thinks it's
inside the iterator and generates a field access of `:envP` freely. The
lambda lifting version of `detectCapturedVars` ignores inner procs and
works off of symbol uses (anonymous iterator and lambda declarations
pretend their symbol is used).

As a naive solution, closure iterators now also ignore inner proc
declarations same as `lambdalifting.detectCapturedVars`, but unlike it
they also don't do anything for the inner proc symbols. Lambdalifting
seems to properly handle the lifted variables but in the worst case we
can also make sure `closureiters.detectCapturedVars` traverses inner
procs by marking every local of the closure iter used in them as needing
lifting (but not doing the lifting). This does not seem necessary for
now so it's not done (was done and reverted in [this
commit](9bb39a9259)),
but regressions are still possible

(cherry picked from commit c06bb6cc03)
2025-04-16 09:09:08 +02:00
narimiran
e7244c0d28 remove wrong import 2025-04-14 11:27:15 +02:00
metagn
0c8cefcbef fix field setter fallback that never worked (#24871)
refs https://forum.nim-lang.org/t/12785, refs #4711

The code was already there that when `propertyWriteAccess` returns `nil`
(i.e. cannot find a setter), `semAsgn` turns the [LHS into a call and
semchecks
it](1ef9a656d2/compiler/semexprs.nim (L1941-L1948)),
meaning if a setter cannot be found a getter will be assigned to
instead. However `propertyWriteAccess` never returned nil, because
`semOverloadedCallAnalyseEffects` was not called with `efNoUndeclared`
and so produced an error directly. So `efNoUndeclared` is passed to this
call so this code works as intended.

This fixes the issue described in #4711 which was closed because
subscripts do not have the same behavior implemented. However we can
implement this for subscripts as well (I have an implementation ready),
it just changes the error message from the failed overloads of `[]=` to
the failed overloads of `[]` for the LHS, which might be misleading but
is consistent with the error messages for any other assignment. I can do
this in this PR or another one.

(cherry picked from commit 4d9e5e8b6d)
2025-04-14 10:53:07 +02:00
metagn
94497c790b allow setting arbitrary size for importc types (#24868)
split from #24204, closes #7674

The `{.size.}` pragma no longer restricts the given size to 1, 2, 4 or 8
if it is used for an imported type. This is not tested very thoroughly
but there's no obvious reason to disallow it.

(cherry picked from commit 1ef9a656d2)
2025-04-14 10:53:01 +02:00
metagn
74f4042f89 isolate and rematch generic converters to get bindings (#24867)
fixes #4554, fixes #10900, fixes #13843, fixes #19471, fixes #19517

Instead of matching generic converters to their arguments using the full
call match bindings, a new match is created for them (from which the
bindings are used to instantiate the converter return type). Then when
instantiating generic converters, they are matched to their argument
again to get their bindings again instead of using the call bindings.
This prevents generic converters which match more than once from
interfering with each other's bindings.

(cherry picked from commit 334f96c05a)
2025-04-14 10:52:56 +02:00
Jake Leahy
ec1d68fc64 Allow specifiying path to use for stdin error messages (#24595)
Implements #24569

Adds `--stdinfile` flag for specifying the file to use in place of
`stdinfile.nim` in error messages. Will enable easier integration of
tooling with nim check

(cherry picked from commit 0cba752c8a)
2025-04-14 10:52:50 +02:00
metagn
20ff258a08 clean up opensym encounters in compiler (#24866)
To protect against crashes when this stops being experimental, in most
places handled the exact same as normal symchoices (not encountered in
typed ast)

(cherry picked from commit 4d075dc301)
2025-04-14 10:52:41 +02:00
metagn
c7dc4ae86d add bit type overloads of $ and repr (#24865)
fixes #24864

(cherry picked from commit 97d819a251)
2025-04-14 10:52:35 +02:00
握猫猫
2d872329ae Update winlean.nim, import AddrInfo from ws2tcpip.h (#24828)
[ADDRINFOA](https://learn.microsoft.com/en-us/windows/win32/api/ws2def/ns-ws2def-addrinfoa#remarks).

(cherry picked from commit b961ee69aa)
2025-04-14 10:52:23 +02:00
ringabout
96f5b693ba fixes #24764; cross-module sink analysis broken (#24862)
fixes  #24764

It now consumes the `conv(x)` arg for the explicit sinking. So the
explicit sinking is kept as it is.

Follows up https://github.com/nim-lang/Nim/pull/20585

Related issues: https://github.com/nim-lang/Nim/issues/20572

Probably the same needs to be applied to explicit `copy` to prevent a
copy turning into a sink

(cherry picked from commit 42df731a2d)
2025-04-14 10:52:13 +02:00
Ryan McConnell
3c8be5b63f split nativesockets bindAddr into two procs (#24860)
#24858

(cherry picked from commit 520bbaf384)
2025-04-14 10:51:58 +02:00
metagn
380697d3ff ignore typeof in closure iterators (#24861)
fixes #24859

(cherry picked from commit f58cd51fc4)
2025-04-14 10:51:51 +02:00
metagn
0cd5307633 fix array/set/tuple literals with generic expression elements (#24497)
fixes #24484, fixes #24672

When an array, set or tuple constructor has an element that resolves to
`tyFromExpr`, the type of the entire literal is now set to `tyFromExpr`
and the subsequent elements are not matched to any type.

The remaining expressions are still typed (a version of the PR before
this called `semGenericStmt` on them instead), however elements with int
literal types have their types set to `nil`, since generic instantiation
removes int literal types and the int literal type is required for
implicitly converting the int literal element to the set type. Tuples
should not really need this but it is done for them anyway in case it
messes up some type inference

---------

Co-authored-by: Andreas Rumpf <rumpf_a@web.de>
(cherry picked from commit 897126a711)
2025-04-14 10:51:41 +02:00
Ryan McConnell
ee44fe197b new-style concept bugfix (#24858)
Combining two small PRs in one here. The test case explains what was
wrong with the concepts and for naitivesockets, it's typical to adjust
`ai_flags` so I opened that up.

(cherry picked from commit d4098e6ca0)
2025-04-14 10:51:31 +02:00
metagn
72190536cb skip semicolon in stmtlist expr parsing (#24855)
Previously it would try to parse the semicolon as its own statement and
produce an `nkEmpty` node

Also more than 1 semicolon in an expression list i.e. `(a;; b)` gives an
"expression expected" error in `semiStmtList` when multiple semicolons
are allowed in normal statements, this could be fixed by changing the
`if tok.kind == tokSemicolon` check to a `while` but it does not match
the grammar so not done here.

(cherry picked from commit 918f972369)
2025-04-14 10:51:23 +02:00
ringabout
7842428261 fixes =copy is transformed into nkFastAsgn and unify mAsgn handling (#24857)
`=copy` should be treated like `=` instead of `shallowCopy`, i.e.,
`nkFastAsgn` by default. `mAsgn` is treated similar in sempass2 too

(cherry picked from commit 51166ab382)
2025-04-14 10:51:15 +02:00
ringabout
0dd198278e overhaul hook injections (#24841)
ref https://github.com/nim-lang/Nim/issues/24764

To keep destructors injected consistently, we need to transform `mAsgn`
properly into `nkSinkAsgn` and `nkAsgn`. This PR is the first step
towards overhauling hook injections.

In this PR, hooks (except mAsgn) are treated consistently whether it is
resolved in matching or instantiated by sempass2. It also fixes a
spelling `=wasMoved` to its normalized version, which caused no
replacing generic hook calls with lifted hook calls.

(cherry picked from commit 40a1ec21d7)
2025-04-14 10:51:08 +02:00
ringabout
c452d706ae fixes #24850; macro-generated if/else and when/else statements have m… (#24852)
…ismatched indentation with repr

fixes #24850

(cherry picked from commit 29a2e25d1e)
2025-04-09 07:54:44 +02:00
metagn
741411e0dc make fillObjectFields recur over base type (#24854)
fixes #24847

Object constructors call `fillObjectFields` when a field inside the
constructor does not have a location, however when the field is from a
base type this does not process it. Now `fillObjectFields` also calls
itself for the base type to fix this but not sure if this is a good
solution as `fillObjectFields` is used in other places too.

(cherry picked from commit a625fab098)
2025-04-09 07:54:34 +02:00
ringabout
706011a21c bump to windows 2025 (#24853)
(cherry picked from commit 052ceca3c1)
2025-04-09 07:54:01 +02:00
Miran
018e63b46c test stint more thoroughly (#24832)
(cherry picked from commit 10c9ebad93)
2025-04-04 10:09:00 +02:00
ringabout
093f5a1de5 Makes except: panics on Defect (#24821)
implements https://github.com/nim-lang/RFCs/issues/557

It inserts defect handing into a bare except branch

```nim
try:
  raiseAssert "test"
except:
  echo "nope"
```

=>

```nim
try:
  raiseAssert "test"
except:
  # New behaviov, now well-defined: **never** catches the assert, regardless of panic mode
  raiseDefect()
  echo "nope"
```

In this way, `except` still catches foreign exceptions, but panics on
`Defect`. Probably when Nim has `except {.foreign.}`, we can extend
`raiseDefect` to foreign exceptions as well. That's supposed to be a
small use case anyway.

 `--legacy:noPanicOnExcept` is provided for a transition period.

(cherry picked from commit 26b86c8f4d)
2025-04-04 10:08:49 +02:00
la.panon.
975e8576ec Make loadConfig available from NimScript (#24840)
fixes #24837

I really wanted to name the variable just `stream` and leave `defer:
...` and `result =...` out, but the compiler says the variable is
redefined, so this is the form.

(cherry picked from commit 2ed45eb848)
2025-04-04 10:08:41 +02:00
ringabout
2de409cd0c fixes #24806; don't elide wasMoved when syms are used in blocks (#24831)
fixes #24806

Blocks don't merge symbols that are used before destruction to the
parent scope, which causes `wasMoved; destroy` to elide incorrectly

(cherry picked from commit 73aeac81d1)
2025-04-04 10:08:30 +02:00
metagn
23ca21a9c4 fix infinite recursion with pushed user pragmas (#24839)
fixes #24838

(cherry picked from commit 5bcd9a329a)
2025-04-04 10:08:19 +02:00
ringabout
31effe8c75 fixes #24801; Invalid C codegen generated when destroying distinct seq types (#24835)
fixes #24801

Because distinct `seq` types match `proc `=destroy`*[T](x: var T)
{.inline, magic: "Destroy".}`. But the Nim compiler generates lifted seq
types for corresponding distinct types. So we skip the address for
distinct types.

Related to https://github.com/nim-lang/Nim/pull/22207 I had a hard time
finding the other place where generic destructors get replaced by
attachedDestructors

(cherry picked from commit 4352fa2ef0)
2025-04-04 10:08:06 +02:00
ringabout
a2a6565e23 fixes lastRead uses the when nimvm branch (#24834)
```nim
proc foo =
  var x = "1234"
  var y = x
  when nimvm:
    discard
  else:
    var s = x
    doAssert s == "1234"
  doAssert y == "1234"

static: foo()
foo()
```
`dfa` chooses the `nimvm` branch, `x` is misread as a last read and
`wasMoved`.

`injectDestructor` is used for codegen and is not used for vmgen. It's
reasonable to choose the codegen path instead of the `nimvm` path so the
code works for codegen. Though the problem is often hidden by
`cursorinference` or `optimizer`.

found in https://github.com/nim-lang/Nim/pull/24831

(cherry picked from commit 3617d2e077)
2025-04-02 09:43:12 +02:00
ringabout
01389b5eb9 conv needs to be picky about aliases and introduces a temp for addr conv (#24818)
ref https://github.com/nim-lang/Nim/pull/24817
ref https://github.com/nim-lang/Nim/pull/24815
ref https://github.com/status-im/nim-eth/pull/784

```nim
{.emit:"""
void foo(unsigned long long* x)
{
}
""".}

proc foo(x: var culonglong) {.importc: "foo", nodecl.}

proc main(x: var uint64) =
  # var s: culonglong = u # TODO:
  var m = uint64(12)
  # var s = culonglong(m)
  foo(culonglong m)

var u = uint64(12)
main(u)
```
Notes that this code gives incompatible errors in 2.0.0, 2.2.0 and the
devel branch. With this PR, `conv` is kept, but it seems to go back to
https://github.com/nim-lang/Nim/pull/24807

(cherry picked from commit f9c8775783)
2025-04-02 09:42:57 +02:00
James
210f747596 Add withValue for immutable tables (#24825)
This change adds `withValue` templates for the `Table` type that are
able to operate on immutable table values -- the existing implementation
requires a `var`.

This is needed for situations where performance is sensitive. There are
two goals with my implementation:

1. Don't create a copy of the value in the table. That's why I need the
`cursor` pragma. Otherwise, it would copy the value
2. Don't double calculate the hash. That's kind of intrinsic with this
implementation. But the only way to achieve this without this PR is to
first check `if key in table` then to read `table[key]`

I brought this up in the discord and a few folks tried to come up with
options that were as fast as this, but nothing quite matched the
performance here. Thread starts here:
https://discord.com/channels/371759389889003530/371759389889003532/1355206546966974584

(cherry picked from commit 0f5732bc8c)
2025-03-31 14:00:48 +02:00
Jake Leahy
65a0ec3964 Fix nim-gdb.py script (#24824)
Script wasn't working on my machine with GDB 16.2
Main issues
 - `gdb.types` wasn't imported, leading to import error on initial load
 - dollar function didn't work with the new mangling scheme

Fixes them, also updates the test script to work with some new mangling
changes.

Test evidence

![image](https://github.com/user-attachments/assets/450b020f-1665-4ed2-9073-d02537150914)

(cherry picked from commit e0a4876981)
2025-03-31 14:00:39 +02:00
Zoom
1d0e1679a8 Mark system.newStringUninit sideeffect-free (#24813)
- Allows using with `--experimental:strictFuncs`
- `{.cast(noSideEffect).}:` inside the proc was required to mutate
`s.len`, same as used in `newSeqImpl`.
- Removed now unnecessary `noSideEffect` casts in `system.nim`
-
Closes #24811

Co-authored-by: ringabout <43030857+ringabout@users.noreply.github.com>
(cherry picked from commit ecdcffed4b)
2025-03-31 14:00:32 +02:00
ringabout
2c7577745b fixes implicitConv discarding flags (#24817)
follow up https://github.com/nim-lang/Nim/pull/24809
ref https://github.com/nim-lang/Nim/pull/24815

(cherry picked from commit 58b1f28177)
2025-03-31 14:00:10 +02:00
narimiran
6864337dc2 Revert "fixes #24800; Invalid C code generation with a method, case object in refc (#24809)"
This reverts commit 3a8b7d987b.
2025-03-26 17:06:41 +01:00
Zoom
ce67056f80 stdlib: substr uses copymem if available, improve docs (#24792)
- `system.substr` now uses `copymem` when available, introducing a small
template for nimvm detection (#12517 #12518)
- Docs are updated to clarify behaviour on out-of-bounds input
- Runnable examples cover more edge cases and do not repeat between
overloads
- Docs now explain the difference between overloads

What bothers me is that the `substr*(a: openArray[char]): string =`
which was added by @beef331 is practically an implementation of #14810,
which is just a conversion from `openArray` to `string` but somehow it
ended up being a `substr` overload, even though its behaviour is totally
different, _the "substringing" is performed by a previous step_
(conversion to openArray) and the bounds are not checked. I'm not sure
it's that great for overloads to differ in subtle ways so much.

What are the cases that `substr` covers now, that prohibit renaming it
to `toString` (or something like that)?

(cherry picked from commit b82d7e8ba1)
2025-03-26 07:48:22 +01:00
ringabout
3a8b7d987b fixes #24800; Invalid C code generation with a method, case object in refc (#24809)
fixes #24800

This PR avoids a conversion from `sink T` to `T`

I will add a test case

(cherry picked from commit ddd83f8d8a)
2025-03-26 07:48:10 +01:00
握猫猫
f8ab76ba61 Update nativesockets.nim, namelen should be the len of name (#24810)
In other places where `getsockname` is called, the size of the 'name' is
used.

d573578b28/lib/pure/nativesockets.nim (L347-L351)

d573578b28/lib/pure/nativesockets.nim (L585-L595)

d573578b28/lib/pure/nativesockets.nim (L622-L624)

d573578b28/lib/pure/nativesockets.nim (L347-L350)

I have checked the [Windows
documentation](https://learn.microsoft.com/en-us/windows/win32/api/winsock2/nf-winsock2-getsockname#remarks),
and it describes it like this: "On call, the namelen parameter contains
the size of the name buffer, in bytes. On return, the namelen parameter
contains the actual size in bytes of the name parameter."

[https://www.man7.org/linux/man-pages/man2/getsockname.2.html](https://www.man7.org/linux/man-pages/man2/getsockname.2.html)
say:
The addrlen argument should be initialized to indicate the amount of
space (in bytes) pointed to by addr.

(cherry picked from commit 8e36fb0fec)
2025-03-26 07:47:56 +01:00
narimiran
5c9aea9c69 Revert "fixes #24721; Table add missing sink (#24724)"
This reverts commit 20362cc0d2.
2025-03-25 13:09:02 +01:00
lit
3a9920d8fd repl: support eof, define object with fields (#24784)
For `nim secret`:

- **fix(repl): eof(ctrl-D/Z) and ctrl-C were ignored**
- **feat(repl): continueLine  figures section, constr, bool ops**

---------

Co-authored-by: ringabout <43030857+ringabout@users.noreply.github.com>
(cherry picked from commit d573578b28)
2025-03-25 09:44:55 +01:00
Zoom
81eabe3b9e [feature] stdlib: strutils.multiReplace for character sets (#24805)
Multiple replacements based on character sets in a single pass. Useful
for string sanitation. Follows existing `multiReplace` semantics.

Note: initially copied the substring version logic with a `while` and a
named block break, but Godbolt showed it had produced slightly larger
assembly using higher registers than the final version.

- [x] Tests
- [x] changelog.md

(cherry picked from commit 909f3b8b79)
2025-03-25 09:44:49 +01:00
ringabout
e68a91c8df fixes usenimrtl with useMalloc (#24804)
Follow up https://github.com/nim-lang/Nim/pull/19512

ref https://github.com/nim-lang/Nim/issues/24794

Otherwise, `/Users/blue/Desktop/Nim/lib/system/mm/malloc.nim(4, 1)
Error: redefinition of 'allocImpl'; previous declaration here:
/Users/blue/Desktop/Nim/lib/system/memalloc.nim(51, 8)`

In `proc allocImpl*(size: Natural): pointer {.noconv, rtl, tags: [],
benign, raises: [].}`, `rtl` means it is an `importc` function instead
of a proc forward decl.

(cherry picked from commit d15705e05b)
2025-03-25 09:43:51 +01:00
ringabout
346b989b5d disable implicit sinkinference for stdlibs (#24803)
ref https://github.com/nim-lang/Nim/issues/24794

(cherry picked from commit 0b9ed84d32)
2025-03-25 09:43:44 +01:00
metagn
8dcb6ddc89 disable "dest register is set" for vm statements (#24797)
closes #24780

This proc `genStmt` is only called to run the VM in `vm.evalStmt`,
otherwise it's not used in vmgen. Now it acts the same as `proc
gen(PCtx, PNode)`, used by `discard` statements, which just calls
`freeTemp` on the dest if it was set rather than erroring.

(cherry picked from commit fcba14707a)
2025-03-25 09:42:08 +01:00
ringabout
20362cc0d2 fixes #24721; Table add missing sink (#24724)
fixes #24721

(cherry picked from commit 482662d198)
2025-03-25 09:41:55 +01:00
Esteban C Borsani
e799d2fca0 Fix SIGSEGV when closing SSL async socket while sending/receiving (#24795)
Async SSL socket SIGSEGV's sometimes when calling socket.close() while
send/recv. The issue was found here
https://github.com/nitely/nim-hyperx/pull/59.

Possibly related: #24024

This can occur when closing the socket while sending or receiving,
because `socket.sslHandle` is freed. The sigsegv can also occur on calls
that require `socket.bioIn` or `socket.bioOut` because those use
`socket.sslHandle` internally. This PR checks sslHandle is set before
doing any operation that requires it.

(cherry picked from commit 9ace1f97ac)
2025-03-25 09:41:50 +01:00
Angus Gibson
4d41384f09 Allow parsing year "00" with "yy" pattern (#24785)
The "yy" pattern is relative to the current century, so year "00" should
be valid.

(cherry picked from commit 1d32607575)
2025-03-25 09:41:41 +01:00
ringabout
6032a14f26 fixes #10625; setjmp on linux mangles ebp leading to early collection (#24787)
fixes #10625

(cherry picked from commit 7c5d005510)
2025-03-25 09:41:23 +01:00
narimiran
bfd25121f9 Revert "fixes move for getPotentialWrites (#24753)"
This reverts commit ed57499427.
2025-03-18 15:17:49 +01:00
narimiran
faa4042e26 Revert "implements internal sink copy (#24747)"
This reverts commit 6651c40ba0.
2025-03-18 08:49:45 +01:00
narimiran
2aa2ac354f Revert "remove special treatments of sinking const sequences (#24763)"
This reverts commit 1c7ffece0a.
2025-03-18 08:48:57 +01:00
Ryan McConnell
9c64374599 new-style concepts - small bugfix (#24778)
(cherry picked from commit 2b699bca53)
2025-03-17 20:29:47 +01:00
metagn
44c1b2a6df fix compound inheritance penalty (#24775)
fixes #24773

`c.inheritancePenalty` is supposed to be used for the entire match, but
in these places the inheritance penalty of a single argument overrides
the entire match penalty. The `+ ord(c.inheritancePenalty < 0)` is
copied from other places that use the same idiom, the intent is that the
existing penalty changes from -1 to 0 first to mark that it participates
in inheritance before adding the inheritance depth.

---------

Co-authored-by: Andreas Rumpf <araq4k@proton.me>
(cherry picked from commit fb93295344)
2025-03-13 12:28:15 +01:00
ringabout
903ce6db28 fixes generic types sink T cannot be inferred for passed arguments (#24761)
Otherwise, `sink T` is kept as it is. This PR treats sink types as its
base types for the arguments. So the concept would match both cases

Required by https://github.com/nim-lang/Nim/pull/24724

(cherry picked from commit 9ebfa7973a)
2025-03-13 12:28:10 +01:00
lit
56bde37add fixes #24772: system.NaN was negative when C (#24774)
fixes #24772

The old implementation was said to copied  from Windows SDK,

but you can find the newer SDK's definition is updated and the sign is
reversed compared to the old.

Also, `__builtin_nanf("")` is used if available,
which is more efficient than previous (In x86_64 gcc, latter produces
32B code but former just 8B).

(cherry picked from commit 4f32624641)
2025-03-13 12:28:01 +01:00
ringabout
9f4fe7fd7a fixes #24770; Thread local not registed as GC root when =destroy exists (#24776)
fixes #24770

e.g. `seq[(ObjectWithDestructors, string)]`/ For refc, a seq with
elements that have destructors will have `hasAsgn` flags. The flag is
the criteria whether a seq is thought as `containsGarbageCollectedRef`.
i.e. whether to `registerTraverseProc` for the type.
The culprit seems to be that `searchTypeForAux` doesn't consider the
element type of sequence, even it contains a string that should belong
to `GarbageCollectedRef`.

With this PR:

It now generates

```
nimRegisterThreadLocalMarker(TM__mSF73dT1lSI7DG58StKHLQ_5);
```

in refc

(cherry picked from commit dfa482e292)
2025-03-13 12:27:51 +01:00
metagn
ee1ecbd51e give hint for forward declarations with unknown raises effects (#24767)
refs #24766

Detect when we track a call to a forward declaration without explicit
`raises` effects, then when the `raises` check fails for the proc, give
a hint that this forward declaration was tracked as potentially raising
any exception.

(cherry picked from commit 82891e6850)
2025-03-13 12:27:44 +01:00
Ryan McConnell
05beb32d07 folding const expressions with branching logic (#24689)
motivating example:
```nim
iterator p(a: openArray[char]): int =
  if a.len != 0:
    if a[0] != '/':
      discard
for t in p(""): discard
```
The compiler wants to evaluate `a[0]` at compile time even though it is
protected by the if statement above it. Similarly expressions like
`a.len != 0 and a[0] == '/'` have problems. It seems like the logic in
semfold needs to be more aware of branches to positively identify when
it is okay to fail compilation in these scenarios. It's a bit tough
though because it may be the case that non-constant expressions in
branching logic can properly protect some constant expressions.

(cherry picked from commit 850f327713)
2025-03-13 12:27:37 +01:00
metagn
6af8b33485 fix tuple nodes from VM inserting hidden conv to keep old type (#24756)
fixes #24755, refs #24710

Instead of using the node from `indexTypesMatch` which inserts a hidden
conv node, just change the type of the node back to the old type
directly

(cherry picked from commit 38ad336c69)
2025-03-13 12:27:31 +01:00
ringabout
8f563f2cc9 fixes #24754; {.gcsafe.} block breaks move analysis (#24757)
fixes #24754

(cherry picked from commit a7711d452d)
2025-03-13 12:27:15 +01:00
metagn
ae8ae8fa95 fix canRaise for non-proc calls (#24752)
fixes #24751

`typeof` leaves the object constructor as a call node for some reason,
in this case it tries to access the first child of the type node but the
object has no fields so the type field is empty. Alternatively the
optimizer can stop looking into `typeof`

(cherry picked from commit e2e7790779)
2025-03-13 12:26:23 +01:00
Michael Lee
1d8fed5f6b Add linking options for tinycc backend (#24750)
### Issue

When using `tcc` as backend to compile a trivial program

```
nim c  --cc:tcc  --skipCfg a.nim
```

, errors reported:

```
tcc: error: undefined symbol 'fabs'
```

### Solution

`fabs` belongs to libm. With these two options added, one can compile
with an additional clib option:

```
nim c  --cc:tcc  --skipCfg --clib:m a.nim
```

(cherry picked from commit dfd2987118)
2025-03-13 12:26:13 +01:00
ringabout
ed57499427 fixes move for getPotentialWrites (#24753)
`move` would modify parameters as well

(cherry picked from commit e2d4791229)
2025-03-13 12:26:06 +01:00
ringabout
1c7ffece0a remove special treatments of sinking const sequences (#24763)
(cherry picked from commit ccb40024c6)
2025-03-13 12:26:00 +01:00
Laylie
cd9c47140e Fix scanTuple undeclared identifier 'scanf' (#24759)
Without this fix, trying to use `scanTuple` in a generic proc imported
from a different module fails to compile (`undeclared identifier:
'scanf'`):

```nim
# module.nim
import std/strscans

proc scan*[T](s: string): (bool, string) =
  s.scanTuple("$+")
```

```nim
# main.nim
import ./module

echo scan[int]("foo")
```

Workaround is to `export scanf` in `module.nim` or `import std/strscans`
in `main.nim`.

(cherry picked from commit f8294ce06e)
2025-03-13 12:25:54 +01:00
ringabout
6651c40ba0 implements internal sink copy (#24747)
TODO:

- [x] other value types (arrays, strings, seqs, objects)
- [x] replaces https://github.com/nim-lang/Nim/pull/24731
- [x] improve code shape
- [ ] revert https://github.com/nim-lang/Nim/issues/24175
- [x] if possible, revert https://github.com/nim-lang/Nim/pull/23685
- [ ] if possible, revert https://github.com/nim-lang/Nim/pull/22229 and
https://github.com/nim-lang/Nim/pull/23764
- [ ] if possible, remove `if n.containsConstSeq:`
- [ ] if possible, always pass value (arrays, strings, seqs, tuples, or
even objects without custom hooks (?)) sinks by ref because this PR
should ensure these value types are not modified without a copy
- [x] fixes `say a, (b = move a; a)` for potential writes
https://github.com/nim-lang/Nim/pull/24753

(cherry picked from commit b8302cdd97)
2025-03-13 12:25:46 +01:00
narimiran
9cf0d07b9e Revert "fixes #12340; enable refc with move analyzer (#23782)"
This reverts commit 8038ad4e58.
2025-03-10 10:55:14 +01:00
Ryan McConnell
82974d91ce new-style concepts adjusments (#24697)
Yet another one of these. Multiple changes piled up in this one. I've
only minimally cleaned it for now (debug code is still here etc). Just
want to start putting this up so I might get feedback. I know this is a
lot and you all are busy with bigger things. As per my last PR, this
might just contain changes that are not ready.

### concept instantiation uniqueness
It has already been said that concepts like `ArrayLike[int]` is not
unique for each matching type of that concept. Likewise the compiler
needs to instantiate a new proc for each unique *bound* type not each
unique invocation of `ArrayLike`

### generic parameter bindings
Couple of things here. The code in sigmatch has to give it's bindings to
the code in concepts, else the information is lost in that step. The
code that prepares the generic variables bound in concepts was also
changed slightly. Net effect is that it works better.
I did choose to use the `LayedIdTable` instead of the `seq`s in
`concepts.nim`. This was mostly to avoid confusing myself. It also
avoids some unnecessary movings around. I wouldn't doubt this is
slightly less performant, but not much in the grand scheme of things and
I would prefer to keep things as easy to understand as possible for as
long as possible because this stuff can get confusing.

### various fixes in the matching logic
Certain forms of modifiers like `var` and generic types like
`tyGenericInst` and `tyGenericInvocation` have logic adjustments based
on my testing and usage

### signature matching method adjustment
This is the weird one, like my last PR. I thought a lot about the
feedback from my last attempt and this is what I came up with. Perhaps
unfortunately I am preoccupied with a slight grey area. consider the
follwing:
```nim
type
  C1 = concept
    proc p[T](s: Self; x: T)
  C2[T] = concept
    proc p(s: Self; x: T)
```
It would be temping to say that these are the same, but I don't think
they are. `C2` makes each invocation distinct, and this has important
implications in the type system. eg `C2[int]` is not the same type as
`C2[string]` and this means that signatures are meant to accept a type
that only matches `p` for a single type per unique binding. For `C1` all
are the same and the binding `p` accepts multiple types. There are
multiple variations of this type classes, `tyAnything` and the like.

The make things more complicated, an implementation might match:
```nim
type
  A = object
  C3 = concept
    proc p(s: Self; x:  A)
```
if the implementation defines:
```nim
proc p(x: Impl; y: object)
```

while a concept that fits `C2` may be satisfied by something like:
```nim
proc p(x: Impl; y: int)
proc spring[T](x: C2[T])
```
it just depends. None of this is really a problem, it just seems to
provoke some more logic in `concepts.nim` that makes all of this (appear
to?) work. The logic checks for both kinds of matches with a couple of
caveats. The fist is that some unbind-able arrangements may be matched
during overload resolution. I don't think this is avoidable and I
actually think this is a good way to get a failed compilation. So, first
note imo is that failing during binding is preferred to forcing the
programming to write annoying stub procs and putting insane gymnastics
in the compiler. Second thing is: I think this logic is way to accepting
for some parts of overload resolutions. Particularly in `checkGeneric`
when disambiguation is happening. Things get hard to understand for me
here. ~~I made it so the implicit bindings to not count during
disambiguation~~. I still need to test this more, but the thought is
that it would help curb excessive ambiguity errors.

Again, I'm sorry for this being so many changes. It's probably
inconvenient.

---------

Co-authored-by: Andreas Rumpf <rumpf_a@web.de>
(cherry picked from commit dfab30734b)
2025-03-10 09:51:05 +01:00
metagn
937801e3aa generate tyFromExpr for typeof static param with generic base type (#24745)
fixes #24743, refs #24718

We cannot do this in general for any expression with generic type
because the `typeof` logic is called for things like `type Foo` in:

```nim
type Foo[T] = object

proc init(_: type Foo) = discard
```

We also cannot use `containsUnresolvedType` to work around this specific
case because the base type of `static[auto]` is not unresolved, it is a
typeclass that isn't lifted to a parameter. The behavior of generating
`tyFromExpr` is also consistent with pre-2.0, so we do this in this
special case of `static`.

(cherry picked from commit 569d02e212)
2025-03-10 09:50:51 +01:00
narimiran
58f1e22db3 Revert "sink tuples by values (#24731)"
This reverts commit b9d3348dab.
2025-03-03 20:32:56 +01:00
metagn
6bc07c7e3f handle ranges in annotateType for set constructors (#24737)
fixes #24736

The VM can produce integer nodes with no types as set elements, which
are later reannotated in `semmacrosanity.annotateType`. However the case
of ranges was not handled properly. Not sure why this is a regression,
probably unrelated but will have to see the bisect result to make sure.

Note. Originally tried to fix this in `opcInclRange`, generated for and
only for range expressions in set constructors, this seems to add the
range node directly to the set node without checking if it has overlap
with the existing elements by calling `nimsets` so an expression like
`{cctNone, cctNone..cctHeader}` can produce `{0, 0..5}`. Doesn't seem to
cause problems but `opcIncl` for single elements does check for overlap.

Something else to note is that integer nodes produced by `nimsets` have
proper types, so another option instead of relying on semmacrosanity to
fix this would be to make `opcIncl` and `opcInclRange` call `nimsets` to
add to the set node, but this might lose performance.

(cherry picked from commit e39d152b89)
2025-03-03 14:11:32 +01:00
ringabout
b9d3348dab sink tuples by values (#24731)
A reduced case
```nim
type AnObject = tuple
  a: string
  b: int
  c: int

proc mutate(a: sink AnObject) =
  `=wasMoved`(a)
  echo 1

# echo "Value is: ", obj.value
proc bar =
  mutate(("1.2", 0, 0))

bar()
```

(cherry picked from commit 7e8a650729)
2025-03-03 14:11:23 +01:00
ringabout
66e2352bf9 fixes #24339; underscores used with fields and fieldPairs (#24341)
fixes #24339

(cherry picked from commit 7ecb35115b)
2025-03-03 14:10:49 +01:00
ringabout
f20e6ef901 fixes #24705; encode static parameters into function names for debugging (#24707)
fixes #24705

```nim
proc xxx(v: static int) =
  echo v
xxx(10)
xxx(20)
```

They are mangled as `_ZN14titaniummangle7xxx_s10E` and
`_ZN14titaniummangle7xxx_s20E` with `--debugger:native`. Static
parameters are prefixed with `_s` to distinguish simple cases like
`xxx(10, 15)` and `xxx(101, 5)` if `xxx` supports two `static[int]`
parameters

(cherry picked from commit c452275e29)
2025-03-03 14:07:29 +01:00
metagn
dac77cc97e don't try to infer array range to unresolved range (#24709)
fixes #24708

(cherry picked from commit a18dcca744)
2025-03-03 14:07:15 +01:00
metagn
4143bb32f7 convert tuple constructors from VM back to original types (#24710)
fixes #24698

The same aim as #24224 but for tuple constructors. The difference here
is that the type of a tuple constructor is always going to be valid
unlike array constructors which can have `seq` etc types, so we can just
generate a conversion again. If the conversion fails, it is ignored
similar to #24611, this is to protect against modified typed nodes in
macros.

Also #24611 was only adapted to `semTupleFieldsConstr` and not
`semTuplePositionsConstr`, this is now fixed.

(cherry picked from commit 49dfc3a0d4)
2025-03-03 14:07:07 +01:00
Michael Lee
34de654aa7 Improve bash completion support (#24692)
Following https://github.com/nim-lang/nimble/pull/1347, this patch adds
bash completion support for `nim`, `nimgrep`, `nimpretty`, `nimsuggest`.

(cherry picked from commit 16280d4e49)
2025-03-03 14:07:00 +01:00
ringabout
8038ad4e58 fixes #12340; enable refc with move analyzer (#23782)
fixes https://github.com/nim-lang/Nim/issues/12340

(cherry picked from commit a7a8e364ea)
2025-03-03 14:06:51 +01:00
Ryan McConnell
3a9c88239b Make koch friendlier to offline environments (#24713)
(cherry picked from commit d94e535145)
2025-03-03 14:06:42 +01:00
metagn
fc587256c3 always skip static types for result of typeof (#24718)
fixes #24715

In generic typechecking, unresolved static param symbols (i.e.
`skGenericParam`) have [the static type
itself](1f8da3835f/compiler/semexprs.nim (L1483-L1485))
as their type when used in an expression. This is not the case when the
static param is resolved (the type is wrapped in static when necessary),
but semchecking of types and generic typechecking expects the type of
the value to be wrapped in `static` (at least `array[N, int]` breaks).
So for now, to solve the issue, `typeof` just skips static types.

(cherry picked from commit 514a25c9a2)
2025-03-03 14:06:33 +01:00
ringabout
7f902217a1 fixes #24725; Invalid =sink generated for pure inheritable object (#24726)
fixes #24725

`lacksMTypeField` doesn't take the base types into consideration. And
for ` {.inheritable, pure.}`, it shouldn't generate a `m_type` field.

(cherry picked from commit e449813c61)
2025-03-03 14:06:19 +01:00
ringabout
881d1dfdb6 undeprecates var T destructors (#24716)
Both cases are now valid. Though, it could be problematic to mix two
cases together as built-in types have non var T destructors

(cherry picked from commit 93fb219f10)
2025-03-03 14:06:13 +01:00
metagn
d3780bb7bd keep param pragmas in typed proc AST (#24711)
fixes #24702

(cherry picked from commit 1f8da3835f)
2025-03-03 14:06:03 +01:00
ringabout
51edd9bd60 always mangle local variables (#24681)
ref #24677

(cherry picked from commit 1af88a2d20)
2025-03-03 14:05:46 +01:00
lit
c8a030a902 fix(dollar): $NaN -> "NaN", $Inf -> "Infinity" only when js (#24695)
ref nimpylib/pylib#44

---------

Co-authored-by: ringabout <43030857+ringabout@users.noreply.github.com>
(cherry picked from commit 91e8e605d0)
2025-03-03 14:03:49 +01:00
ringabout
1380084f57 fixes ORC memory leaks; marks hooks with optQuirky (#24701)
closes https://github.com/nim-lang/Nim/pull/24686
closes #24693

```nim
# v.nim
import std/[json]

var test: seq[string]
var testData: JsonNode
try:
  ## Fails
  testData = parseJson("""[{"id": 1"}, {"id": "2"}]""")

  ## Works
  # testdata = parseJson("""[{"id": "1"}, {"id": "2"}]""")

  ## Fails
  # let stream = newStringStream("""[{"id": 1"}, {"id": "2"}]""")
  # testData = parseJson(stream, "input", false, false)
  # stream.close()

except:
  testData = %* []
for t in testData:
  test.add(t["id"].getStr())
echo $test
```

With this PR:

```
==66425== LEAK SUMMARY:
==66425==    definitely lost: 0 bytes in 0 blocks
==66425==    indirectly lost: 0 bytes in 0 blocks
==66425==      possibly lost: 0 bytes in 0 blocks
==66425==    still reachable: 16,512 bytes in 2 blocks
==66425==         suppressed: 0 bytes in 0 blocks
==66425== Reachable blocks (those to which a pointer was found) are not shown.
==66425== To see them, rerun with: --leak-check=full --show-leak-kinds=all
==66425==
==66425== For lists of detected and suppressed errors, rerun with: -s
==66425== ERROR SUMMARY: 0 errors from 0 contexts (suppressed: 0 from 0)
```

(cherry picked from commit f0b5bf359e)
2025-03-03 14:03:27 +01:00
ringabout
5584885226 fixes #24664; always sets the \0 terminator in appendString (#24703)
fixes #24664

```nim
proc main() =
    for i in 0..1:
        var s = "12345"
        s.add s
        echo s

main()
```
In the given example, `add` contains two steps: `prepareAdd` and
`appendString`. In the first step, a new buffer is created in order to
store the final doubled string. But it doesn't copy the null terminator,
neither zeromem the left unused spaces. It causes a problem because
`appendString` will copy itself which doesn't end with `\0` properly so
contaminated memory is copied instead.

```
var s = 12345\0

prepareAdd:

var s = 12345xxxxx\0

appendString:

var s = 1234512345x
```

(cherry picked from commit 1f07fdd2dc)
2025-03-03 14:03:17 +01:00
metagn
26d3b4c3ab adapt generic matches to inheritance penalty of final objects (#24691)
Applies #24144 to the equivalent matches of generic types, and adds the
behavior to matches of generic invocations to generic invocations. Not
encountered in many cases so it's hard to come up with tests but an
example is the test code in #24688, the match to the generic body never
sets the inheritance penalty leaving it at -1, but the match to the
generic invocation sets it to 0 which matches worse, when it should set
it to -1 because the object does not participate in inheritance.

(cherry picked from commit ebeef1067f)
2025-03-03 14:03:09 +01:00
ringabout
130e7182c4 implements quirky for functions (#24700)
ref https://github.com/nim-lang/Nim/pull/24686

With this PR

```nim
import std/streams

proc foo() =
  var name = newStringStream("2r2")
  raise newException(ValueError, "sh")

try:
  foo()
except:
 discard

echo 123
```
this example no longer leaks

---------

Co-authored-by: Andreas Rumpf <rumpf_a@web.de>
(cherry picked from commit 510ac84518)
2025-03-03 14:02:48 +01:00
Ryan McConnell
f5026570c2 Add terminal colors back to unittest under nimPreviewSlimSystem (#24694)
(cherry picked from commit b7d8896d00)
2025-03-03 14:02:20 +01:00
metagn
bcecce885f track introduced locals in vmgen for eval check (#24674)
fixes #8758, fixes #10828, fixes #12172, fixes #21610, fixes #23803,
fixes #24633, fixes #24634, succeeds #24085

We simply track the symbol ID of every traversed `var`/`let` definition
in `vmgen`, then these symbols are always considered evaluable in the
current `vmgen` context. The set of symbols is reset before every
generation, but both tests worked properly without doing this including
the nested `const`, so maybe it's already done in some way I'm not
seeing.

(cherry picked from commit a5cc33c1d3)
2025-03-03 14:02:03 +01:00
ringabout
b740e8cca8 fixes #24673; divmod errors for ranges (#24679)
fixes #24673

The problem is that there is no way to distinguish `cint`, `cint`, etc
ctypes with Nim types. So `when T is cint | clong | clonglong:` is true
for types derived from `int`, `int32` and `int64`. In this PR, it fixes
the branch to avoid erros for `Natural`

(cherry picked from commit b211ada273)
2025-03-03 14:01:55 +01:00
Mads Hougesen
1bae14aa25 feat(nimpretty): support formatting code from stdin (#24676)
This pr adds support for running `nimpretty` on stdin as described in
#24622.

I tested `:%!nimpretty -` and `:%!nimpretty --stdin` in neovim and both
seems to work without issues.

(cherry picked from commit 1a7bc6d878)
2025-03-03 14:01:49 +01:00
ringabout
ce8d3e02f5 fixes bugs on the Nim manual (#24669)
ref https://en.cppreference.com/w/cpp/error/exception/what

> Pointer to a null-terminated string with explanatory information. The
pointer is guaranteed to be valid at least until the exception object
from which it is obtained is destroyed, or until a non-const member
function on the exception object is called.

The pointer is only valid before `CStdException as e` is destroyed

Old examples are broken on macOS arm64

```
/Users/blue/Desktop/nimony/test4.nim(38) test4
/Users/blue/Desktop/nimony/test4.nim(26) fn
/Users/blue/.choosenim/toolchains/nim-#devel/lib/std/assertions.nim(41) failedAssertImpl
/Users/blue/.choosenim/toolchains/nim-#devel/lib/std/assertions.nim(36) raiseAssert
/Users/blue/.choosenim/toolchains/nim-#devel/lib/system/fatal.nim(53) sysFatal
Error: unhandled exception: /Users/blue/Desktop/nimony/test4.nim(26, 3) `$b == "foo2"`  [AssertionDefect]
```

(cherry picked from commit e6f6c369ff)
2025-03-03 14:01:41 +01:00
narimiran
a5e595d8ad bump NimVersion to 2.2.3 2025-03-03 13:59:39 +01:00
ringabout
6c34f62785 fixes #24666; Compilation error when formatting a complex number (#24667)
fixes #24666

ref https://github.com/nim-lang/Nim/pull/22924

(cherry picked from commit 485b414fce)
2025-02-05 21:04:43 +01:00
narimiran
46e1322d29 bump NimVersion to 2.2.2 2025-02-04 20:03:53 +01:00
ringabout
27b54fdc76 fixes #24658; cpp compilation failure on Nim 2.2.x (#24663)
fixes #24658

(cherry picked from commit 7695d51fc4)
2025-02-04 20:03:39 +01:00
lit
d594e70d57 doc(tempfiles): update link of getTempDir (#24661)
- tempfiles: update `getTempDir` link... from os.html to appdirs.html
<https://nim-lang.org/docs/appdirs.html#getTempDir>

- ~~nims.md: rm three `std/`, which are out of place~~ (ref
https://github.com/nim-lang/Nim/pull/24661#discussion_r1937293833)

(cherry picked from commit e2bed72b72)
2025-02-04 20:03:30 +01:00
metagn
6bf9265d24 add ambiguous identifier message to generic instantiations (#24646)
fixes #24644

Another option is to include the symbol names and owners in the type
listing as in #24645 but this is a bit verbose.

(cherry picked from commit 0861dabfa7)
2025-01-31 09:37:46 +01:00
metagn
a627c9ba9c don't mark captured field sym in template as fully used (#24660)
fixes #24657

(cherry picked from commit 647c6687f1)
2025-01-31 09:37:31 +01:00
lit
7cec03eb1b fix doc format: testament.md (#24654)
- **doc(format): testament: fix `Commands` not regarded as table**

![image](https://github.com/user-attachments/assets/85238dd5-e199-41ca-a8cb-05849415097a)

- **doc(format): testament: row `--target` not splited as columns**

![image](https://github.com/user-attachments/assets/230ec693-c459-4fee-bc57-f3ab6c34a9b6)

(cherry picked from commit af5fd3fea3)
2025-01-31 09:37:26 +01:00
Peter Munch-Ellingsen
123a7ff29f Fix check for Nintendo Switch target (#24652)
This should fix ringabouts comment here:
https://github.com/nim-lang/Nim/pull/24639#issuecomment-2615107496

I wasn't aware that `nintendoswitch` and `posix` would be active at the
same time, so I falsely inverted a check.

(cherry picked from commit cab3342a2d)
2025-01-27 16:58:20 +01:00
Leon Lysak
c0d50ddc26 Update dom.nim (removeEventListener function) (#24650)
Essentially just an update for the `removeEventListener` function as per
https://developer.mozilla.org/en-US/docs/Web/API/EventTarget/removeEventListener

(cherry picked from commit 8c3e62e6de)
2025-01-27 08:50:13 +01:00
Tomohiro
2193c3fb70 Fix parseBiggestUInt to detect overflow (#24649)
With some inputs larger than `BiggestUInt.high`, `parseBiggestUInt` proc
in `parseutils.nim` fails to detect overflow and returns random value.
This is because `rawParseUInt` try to detects overflow with `if prev >
res:` but it doesn't detects the overflow from multiplication.
It is possible that `x *= 10` causes overflow and resulting value is
larger than original value.
Here is example values larger than `BiggestUInt.high` but
`parseBiggestUInt` returns without detecting overflow:
```
22751622367522324480000000
41404969074137497600000000
20701551093035827200000000000000000
22546225502460313600000000000000000
204963831854661632000000000000000000
```

Following code search for values larger than `BiggestUInt.high` and
`parseBiggestUInt` cannot detect overflow:
```nim
import std/[strutils]

const
  # Increase this to extend search range
  NBits = 34'u
  NBitsMax1 = 1'u shl NBits
  NBitsMax = NBitsMax1 - 1'u

  # Increase this when there are too many results and want to see only larger result.
  MinMultiply10 = 14

var nfound = 0
for i in (NBitsMax div 10'u + 1'u) .. NBitsMax:
  var
    x = i
    n10 = 0
  for j in 0 ..< NBits:
    let px = x
    x = (x * 10'u) and NBitsMax
    if x < px:
      break
    inc n10
  if n10 >= MinMultiply10:
    echo "i =   ", i
    echo "uint: ", (i shl (64'u - NBits)), '0'.repeat n10
    inc nfound
    if nfound > 15:
      break

echo "found: ", nfound
```

(cherry picked from commit 95b1dda1db)
2025-01-27 08:50:04 +01:00
Peter Munch-Ellingsen
c2b825713c Enable macros to use certain things from the OS module when the target OS is not supported (#24639)
Essentially this PR removes the `{.error.}` pragmas littered around in
the OS module and submodules which prevents them from being imported if
the target OS is not supported. This made it impossible to use certain
supported features of the OS module in macros from a supported host OS.
Instead of the `{.error.}` pragmas the `oscommon` module now has a
constant `supportedSystem` which is false in the cases where the
`{.error.}` pragmas where generated. All procedures which can't be run
by macros is also not declared when `supportedSystem` is false.

It would be possible to create dummy versions of the omitted functions
with an `{.error.}` pragma that would trigger upon their use, but this
is currently not done.

This properly fixes #19414

(cherry picked from commit 1f9cac1f5c)
2025-01-27 08:49:58 +01:00
ringabout
ae011eaeea fixes #21923; nimsuggest "outline" output does not list templates (#24643)
fixes #21923

---------

Co-authored-by: Louis Berube <louis.p.berube@gmail.com>
(cherry picked from commit 67f9bc2f4b)
2025-01-27 08:49:33 +01:00
ringabout
8fe518ed47 fixes #24623; fixes #23692; size pragma only allowed for imported types and enum types (#24640)
fixes #24623
fixes #23692

ref
https://nim-lang.org/docs/manual.html#implementation-specific-pragmas-size-pragma

confines `size` pragma to `enums` and imported `objects` for now

The `typeDefLeftSidePass` carries out the check for pragmas, but the
type is not complete yet. So the `size` pragma checking is postponed at
the final pass.

(cherry picked from commit d6d28a9c79)
2025-01-24 05:10:42 +01:00
metagn
64927c6ae7 don't try to transform objconstr/cast type nodes (#24636)
fixes #24631

[Object
constructors](793baf34ff/compiler/semobjconstr.nim (L462)),
[casts](793baf34ff/compiler/semexprs.nim (L494))
and [type
conversions](793baf34ff/compiler/semexprs.nim (L419))
copy their type nodes verbatim instead of producing semchecked type
nodes. This causes a crash in transf when an untyped expression in the
type node has `nil` type. To deal with this, don't try to transform the
type node in these expressions at all. I couldn't reproduce the problem
with type conversion nodes though so those are unchanged in transf.

(cherry picked from commit 6d59680217)
2025-01-24 05:10:36 +01:00
ringabout
21c0564573 fixes #24630; static openArray backed by seq cannot be passed to another function (#24638)
fixes #24630

(cherry picked from commit 2f402fcb82)
2025-01-24 05:10:28 +01:00
metagn
12347eae74 generate destructor in nodestroy proc for explicit destructor call (#24627)
fixes #24626

`createTypeboundOps` in sempass2 is called when generating destructors
for types including for explicit destructor calls, however it blocks
destructors from getting generated in a `nodestroy` proc. This causes
issues when a destructor is explicitly called in a `nodestroy` proc. To
fix this, allow destructors to get generated only for explicit
destructor calls in nodestroy procs.

(cherry picked from commit 793baf34ff)
2025-01-20 18:46:41 +01:00
Antonis Geralis
52cadfc3d7 Optimize storing into uninit locations for arrays and seqs. (#24619)
(cherry picked from commit 6481482e0e)
2025-01-20 12:48:37 +01:00
ringabout
528e2b2271 fixes compile crashes with one parameter (#24618)
`{.compile("foo.c").}` makes Nim compiler crash

(cherry picked from commit 70d057fcc6)
2025-01-20 12:48:17 +01:00
metagn
0c0df28619 ignore match errors to expected types of tuple constructor elements (#24611)
fixes #24609

A tuple may have an incompatible expected type if there is a converter
match to it. So the compiler should not error when trying to match the
individual elements in the constructor to the elements of the expected
tuple type, this will be checked when the tuple is entirely constructed
anyway.

(cherry picked from commit 8d0e853e0a)
2025-01-20 12:48:10 +01:00
ringabout
a2a1c2b7f1 ci: update to ubuntu 22.04 (#24608)
(cherry picked from commit 41c447b5f4)
2025-01-15 15:31:59 +01:00
Bilog WEB3
41c4ed8dca Update changelog_1_2_0.md (#24607)
(cherry picked from commit 26ed469996)
2025-01-15 15:31:45 +01:00
Loïc Bartoletti
f6167cb0c8 math: Add cumprod and cumproded (#23416)
This pull request adds the `cumproded` function along with its in-place
equivalent, `cumprod`, to the math library. These functions provide
functionality similar to `cumsum` and `cumsummed`, allowing users to
calculate the cumulative sum of elements.

The `cumprod` function computes the cumulative product of elements
in-place, while `cumproded` additionally returns the prod seq.

(cherry picked from commit 4aff12408c)
2025-01-15 15:31:25 +01:00
planetBoy
72ce16990b docs fix spelling issues (#24597)
Hey !
I fixed several spelling issues.Glad I could help .
Br, Guayaba221.

(cherry picked from commit 8ed0a63973)
2025-01-15 15:31:20 +01:00
ringabout
ea3a4203fa fixes #24599; misleading error message with large array bounds (#24601)
fixes #24599

(cherry picked from commit aeeccee50a)
2025-01-15 15:31:13 +01:00
Jacek Sieka
24b24c17b1 fix c_memchr, c_strstr definitions (#24587)
One correct definition is enough

(cherry picked from commit e8bf6af0da)
2025-01-15 15:31:04 +01:00
Jacek Sieka
e80884665d varints: no need for emit (#24585)
(cherry picked from commit 78835562b1)
2025-01-15 15:30:58 +01:00
ringabout
f4009f0957 Update copyright year 2025 (#24593)
(cherry picked from commit 3dda60a8ce)
2025-01-15 10:22:25 +01:00
Skylar Ray
728a99d5cd chore: docs fix spelling issues (#24581)
**handle - handles**
**sensitiviy - sensitivity**

(cherry picked from commit dcc4e07e54)
2025-01-15 10:22:18 +01:00
futreall
019a3180f8 chore: correct typos docs (#24580)
(cherry picked from commit 0df351bf50)
2025-01-15 10:22:07 +01:00
Antonis Geralis
fb13e3608b Consider iterator types (#24577)
According to the macros doc nnkIteratorTy trees use the same structure
as nnkProcTy

(cherry picked from commit d3b6dba616)
2025-01-15 10:21:53 +01:00
Antonis Geralis
f5804a36b9 Support tuple parameter types (#24576)
(cherry picked from commit e1be29942e)
2025-01-15 10:21:37 +01:00
chloefeal
a83c535ed4 docs: fix typos (#24573)
Signed-off-by: chloefeal <188809157+chloefeal@users.noreply.github.com>
(cherry picked from commit cd220fe3e1)
2025-01-15 10:21:20 +01:00
Jake Leahy
3c71429eca Doc search improvements (#24567)
- `/` is now a hotkey to jump to the search
- Search results now are in line with the page (previously on small
screens it would be off centre)
- Jumping to a search result inside the page or via TOC will now hide
the search results (previously the results got in the way)

Example site here: https://tranquil-scone-c159b6.netlify.app/main.html

(cherry picked from commit 86d6f71f5a)
2025-01-15 10:21:11 +01:00
Jake Leahy
9e1b199e78 Minor std/strscans improvements (#24566)
#### Removes UnInit warnings when using `scanTuple`

e.g. this would emit a warning
```nim
import std/strscans

proc main() =
  let (ok, number) = "123".scanTuple()
```

![image](https://github.com/user-attachments/assets/68170ac6-402d-48b0-b8b6-69e71f4b70ae)

#### Error for wrong type now points to the passed in variable

```nim
import std/strscans

var str: string
discard "123".scanf("$i", str)
```

it gave this warning before

![image](https://github.com/user-attachments/assets/096e56d2-0eb5-4c67-9725-25caa97afebd)
now it returns

![image](https://github.com/user-attachments/assets/736a4292-2f56-4cf3-a27a-677045377171)

(cherry picked from commit 5b9ff963c5)
2025-01-15 10:21:00 +01:00
ringabout
b2f2b34fe5 adds a test case (#24565)
closes #19531

(cherry picked from commit 65b26401bc)
2025-01-15 10:20:50 +01:00
Esteban C Borsani
7be1bb572e Improve async stacktraces (#24563)
This makes await point to the caller line instead of asyncmacro. It also
reworks the "Async traceback:" section of the traceback. Follow up PR
#21091 (issue #19931) so it works if there is asynchronous work done.

(cherry picked from commit 2f127bf99f)
2025-01-15 10:20:29 +01:00
ringabout
40476fa24f fixes #23114; Nim v2 regression emit / asm var param dereference inconsistency (#24547)
fixes #23114

As in https://github.com/nim-lang/Nim/pull/22074, expressions in
bracketed emit are strictly typechecked, this PR applies the same check
for symbols in asm statements in order to keep them consistent.

(cherry picked from commit 3c4246dd24)
2025-01-15 10:20:18 +01:00
Tomohiro
3054cbe422 Add inline assembler tests for i386, arm, arm64, riscv32 and riscv64 (#24564)
This fixes one error in https://github.com/nim-lang/Nim/issues/24544 .
I tested this on Raspberry Pi Pico (arm) and Raspberry Pi 3(arm64).
It is not tested on i386, riscv32 and riscv64 CPU.

(cherry picked from commit fc806710cb)
2025-01-15 10:20:08 +01:00
ringabout
b31aed01f1 adds a test case (#24561)
closes #18616

(cherry picked from commit e2a306355c)
2025-01-15 10:19:57 +01:00
metagn
9c7f04dacb fix jsonutils with generic sandwiches, don't use strformat (#24560)
fixes #24559

The strformat macros have the problem that they don't capture symbols,
so don't use them in the generic `fromJson` proc here. Also `fromJson`
refers to `jsonTo` before it is declared which doesn't capture it, so
it's now forward declared.

(cherry picked from commit 5c71fbab30)
2025-01-15 10:19:51 +01:00
Jake Leahy
c5ee216c42 Make 'field is not accessible' and 'field initialized twice' errors point to the field inside the obj construction (#24557)
Fixes two line infos to make the error's clearer inside editors

- 'field is not accessible' would point to the whole object construction
instead of just the field inside the construction
- 'field initialized twice' would point to the colon instead of the
field

(cherry picked from commit 6bc52737b3)
2025-01-15 10:19:40 +01:00
Esteban C Borsani
ede6540c55 fixes #23212; Asyncdispatch leaks under --mm:arc (#24556)
Fixes #23212

Inspired by [this chronos
PR](https://github.com/status-im/nim-chronos/pull/243)

(cherry picked from commit f29234b40f)
2025-01-15 10:19:26 +01:00
ringabout
0c14372a8c remove zippy data from tarballs (#24551)
fixes https://github.com/nim-lang/nightlies/issues/95

(cherry picked from commit 63c884038d)
2025-01-15 10:19:04 +01:00
metagn
6deb3a90ae check if unused import warning is enabled before adding import to stack (#24554)
fixes #24552

Could also implement `{.used.}` for imports but this wouldn't be
backwards compatible. The same problem as #24552 also exists for
`{.hint[XDeclaredButNotUsed].}` but this isn't as much of a problem
since `{.used.}`/`{.push used.}` exist.

(cherry picked from commit 986ca7dcd4)
2025-01-15 10:18:58 +01:00
Daniel Stuart
e0e1061562 Use long int builtins for risc-v 32-bit targets (#24553)
Solves compilation using riscv32-unknown-elf-gcc, compiler defines
int32_t as long int.

(cherry picked from commit 50ed43df42)
2025-01-15 10:18:00 +01:00
ringabout
d96c5b2396 fixes strictdefs warnings (#24550)
(cherry picked from commit ce4304ce97)
2025-01-15 10:17:51 +01:00
Jake Leahy
09835a1d9e Make expandMacro show private fields (#24522)
Was debugging with `--expandMacro` and noticed that private fields
weren't exported.
Passes extra flags to the renderer to make them be shown

(cherry picked from commit f80ce139d5)
2025-01-15 10:17:43 +01:00
ringabout
0823b9d177 fixes #17681; enforce codegen for exportc consts (#24546)
fixes #17681

(cherry picked from commit d5c7abe3d2)
2025-01-15 10:17:37 +01:00
Juan M Gómez
b5068f427a Adds skipParentCfg back. Bump nimble to a commit where it doesnt rely in the parent config (#24545)
(cherry picked from commit 8ce58fab26)
2025-01-15 10:17:27 +01:00
ringabout
1cee3c7f18 fixes #24536; fixes nightlies regression caused by nimble update (#24542)
follow up #24537

Because `nimble` is a bundled repo so it is bundled in the tarballs

i.e.
82421fd705/.github/workflows/nightlies.yml (L264)
has bundled `dist/nimble`, but it only copies the data without `.git`.
So in this PR, we ignore bundled nimble repo.

(cherry picked from commit 70b3232d3a)
2025-01-15 10:17:17 +01:00
ringabout
844ba2168b fixes #20908; Unknown warnings and hints now give a warning (#24543)
fixes #20908

This PR unifies the treatment of unknown warnings and hints, which now
gives an `warnUnknownNotes` instead of an error.

(cherry picked from commit 81d8c0fc17)
2025-01-15 10:17:07 +01:00
ringabout
d5437b7a4a fixes #24538 (#24541)
fixes #24538

(cherry picked from commit 91d1933ea2)
2025-01-15 10:16:20 +01:00
metagn
faa9ae08b0 proper error for const defines with unsupported types (#24540)
fixes #24539

(cherry picked from commit b9c593404c)
2025-01-15 10:16:12 +01:00
Juan M Gómez
7b596b4e1f #Fixes #24536 building nimble 0.16.4 fails when running build_all.sh (#24537)
(cherry picked from commit 556f217b4c)
2025-01-14 13:24:21 +01:00
ringabout
cd06f0769f more strictdef fixes for stdlibs (#24535)
(cherry picked from commit d31cce557b)
2025-01-14 13:23:44 +01:00
Juan M Gómez
0cce145dac Bumps nimble v0.16.4 (#24437)
(cherry picked from commit be4d19e562)
2025-01-14 13:23:38 +01:00
Ryan McConnell
43f7e160ba couple cases of valid concept bindings (#24513)
see tests

---------

Co-authored-by: Andreas Rumpf <rumpf_a@web.de>
(cherry picked from commit e0197a8380)
2025-01-14 13:23:26 +01:00
ringabout
5a71c36d25 fixes strictdefs warnings continue (#24520)
(cherry picked from commit d2d810585c)
2025-01-14 13:23:18 +01:00
ringabout
1299dd4651 adds a test case (#24534)
closes #16845

(cherry picked from commit 80af252025)
2025-01-14 13:23:12 +01:00
bptato
51a0f3de6e Fix exitnow signature, mark as .noreturn (#24533)
Like quit, this function never returns.

Also, "code" was marked as "int", even though POSIX _exit takes a C int.

(cherry picked from commit f485973459)
2025-01-14 13:23:06 +01:00
ringabout
e2b6021630 fixes #22101; std/pegs with nim cpp --mm:orc --exceptions:goto creates invalid C++ (#24531)
fixes #22101

The old implementation generates

`auto T = value;` for the cpp backend which causes problems for goto
exceptions. This PR puts the declaration of `T` to the cpsLocals parts
and makes it compatible with goto exceptions.

(cherry picked from commit f7a461a30c)
2025-01-14 13:22:32 +01:00
ringabout
428b64251f adds a test case (#24532)
closes #18070

(cherry picked from commit f796c01e3c)
2025-01-14 13:20:04 +01:00
ringabout
5b0b90fb49 fixes #22153; UB calling allocCStringArray([""]) with --mm:refc (#24529)
fixes #22153

It's a problem for refc because you cannot index a nil string: i.e.
`[""]` is `{((NimStringDesc*) NIM_NIL)}` which cannot be indexed

(cherry picked from commit 9bb7e53e7f)
2025-01-14 13:19:56 +01:00
Jake Leahy
2f5481ce88 Make error appear in user code with invalid format string in strformat (#24528)
With this example
```nim
import std/strformat

echo fmt"{invalid, code}"
```

We get the error message
```
stack trace: (most recent call last)
/home/jake/.choosenim/toolchains/nim-hashdevel/lib/pure/strformat.nim(750, 16) fmt
/home/jake/.choosenim/toolchains/nim-hashdevel/lib/pure/strformat.nim(714, 16) strformatImpl
/home/jake/Documents/projects/Nim/temp.nim(3, 9) template/generic instantiation of `fmt` from here
/home/jake/.choosenim/toolchains/nim-hashdevel/lib/pure/strformat.nim(714, 16) Error: could not parse `invalid, code` in `{invalid, code}`.
(1, 8) Error: invalid indentation
```
After PR it now shortens it to just appear in user code
```
/home/jake/Documents/projects/Nim/lib/pure/strformat.nim(750, 16) fmt
/home/jake/Documents/projects/Nim/lib/pure/strformat.nim(714, 16) strformatImpl
/home/jake/Documents/projects/Nim/temp.nim(3, 9) Error: could not parse `invalid, code` in `{invalid, code}`.
(1, 8) Error: invalid indentation
```

(cherry picked from commit da9f7f671b)
2025-01-14 13:19:50 +01:00
Jake Leahy
9aeb5c254c Fix line info for import (#24523)
Refs #24158

Fixes the line info of the module symbol (cases like `import as` and
grouped imports had wrong line info). Since that symbol's line info is
now used for the warnings, there isn't a separate line info stored for
`unusedImports`

Examples of fixed cases
```nim
import strutils as test #[
                ^ before
                   ^ after ]#

# This case was fixed by #24158, but only for unused imports
import std/[strutils, strutils] #[
        ^ before
                      ^ after ]#

from strutils import split #[
^ before
     ^ after ]#
```

(cherry picked from commit 69e0cdb6c0)
2025-01-14 13:17:34 +01:00
metagn
4e1bc4216a fix nil node in sym ast of exported ref objects [backport:2.2] (#24527)
fixes #24526, follows up #23101

The `shallowCopy` calls do not keep the original node's children, they
just make a new seq with the same length, so the `Ident "*"` node from
the original postfix nodes was not carried over, making it `nil` and
causing the segfault.

(cherry picked from commit b529f69518)
2025-01-14 13:17:24 +01:00
metagn
316141162b test case haul to prevent pileup (#24525)
closes #6013, closes #7009, closes #9190, closes #12487, closes #12831,
closes #13184, closes #13252, closes #14860, closes #14877, closes
#14894, closes #14917, closes #16153, closes #16439, closes #17779,
closes #18074, closes #18202, closes #18314, closes #18648, closes
#19063, closes #19446, closes #20065, closes #20367, closes #22126,
closes #22820, closes #22888, closes #23020, closes #23287, closes
#23510

(cherry picked from commit aeb3fe9505)
2025-01-14 13:17:11 +01:00
ringabout
8d8a90e079 fixes nightlies regression (#24519)
follows up https://github.com/nim-lang/Nim/pull/24507

(cherry picked from commit d408b94063)
2025-01-14 13:17:04 +01:00
ringabout
105e134c3f adds a test case (#24518)
closes #19698

(cherry picked from commit 801733f286)
2025-01-14 13:16:38 +01:00
metagn
85c8b5b304 track call depth separately from loop count in VM (#24512)
refs #24503

Infinite recursions currently are not tracked separately from infinite
loops, because they also increase the loop counter. However the max
infinite loop count is very high by default (10 million) and does not
reliably catch infinite recursions before consuming a lot of memory. So
to protect against infinite recursions, we separately track call depth,
and add a separate option for the maximum call depth, much lower than
the maximum iteration count by default (2000, the same as
`nimCallDepthLimit`).

---------

Co-authored-by: Andreas Rumpf <rumpf_a@web.de>
(cherry picked from commit 6f4106bf5d)
2025-01-14 13:16:21 +01:00
ringabout
2d470c9afd fixes strictdefs warnings for stdlibs [part two] (#24514)
After some cleanups for stdlibs, then we should enable warningaserror
for all tests

(cherry picked from commit c0861142f8)
2025-01-14 13:15:55 +01:00
ringabout
94a6b85538 fixes #24504; fixes ensureMove for refs (#24505)
fixes #24504

(cherry picked from commit d0288d3b57)
2025-01-14 13:15:46 +01:00
ringabout
90c5dfc32c adds a test case (#24515)
closes #17733

(cherry picked from commit 02fb0476ce)
2025-01-14 13:15:39 +01:00
ringabout
a7b671dad5 don't track result initialization if it is marked noinit (#24499)
We don't track `noinit` for variables introduced in
https://github.com/nim-lang/Nim/pull/10566. It should be applied to
`result` if the function is marked `noinit`

(cherry picked from commit 2e9e7f13ee)
2025-01-14 13:15:25 +01:00
Tomohiro
fb11c4404e fixes #24506; calculate timeout correctly (#24507)
`curTimeout` is calculated incorrectly. So this PR fixes it.
This PR also replaces `now()` with `getMonoTime()`.

(cherry picked from commit bbf6a62c90)
2025-01-14 13:13:35 +01:00
ringabout
1adcab885b remove unnecessary await (#24501)
There is already a when condition, so `await` is not needed to split the
function

(cherry picked from commit 6bbf9c3117)
2025-01-14 13:13:10 +01:00
ringabout
5ddbf2372e fixes some strictdefs warnings (#24502)
(cherry picked from commit 8f4bfda5f4)
2025-01-14 13:12:39 +01:00
ringabout
8f668c2373 adds a test case (#24500)
closes #24040

(cherry picked from commit c3120b6121)
2025-01-14 13:12:29 +01:00
metagn
3daf7dd2ac remove inserted derefs for ref object fields when transforming to dot call (#24498)
fixes #24492

Kind of a goofy way of doing this, but we count how many derefs were
used for the first parameter before calling `builtinFieldAccess`, then
count after, and if there are more now than before, we remove the added
derefs. I thought maybe getting rid of #18298 would simplify it but
maybe this would still be the best way.

For better encapsulation we could make `dotTransformation` take an
`nOrig` param instead but this would be less efficient since it would
need a copy, though `semAsgn` already makes one.

(cherry picked from commit 2529f33760)
2025-01-14 13:12:22 +01:00
ringabout
4b4b97018b prefix NimDestroyGlobals with nimMainPrefix (#24493)
ref https://github.com/nim-lang/Nim/issues/24471

---------

Co-authored-by: metagn <metagngn@gmail.com>
(cherry picked from commit 3bee04d9f3)
2025-01-14 13:11:55 +01:00
metagn
aa5fc4af58 install older version of nimcuda for arraymancer (#24496)
Attempt to fix CI failure, refs
https://github.com/nim-lang/Nim/pull/24495#issuecomment-2511299112,
alternative is to use a commit version like
bc65375ff5

(cherry picked from commit 33dc2367e7)
2025-01-14 13:11:44 +01:00
ringabout
062e77bce0 adds a test case (#24486)
closes #23680

(cherry picked from commit ddf5a9f6c5)
2025-01-14 13:11:16 +01:00
metagn
d04f9c426e fix crash with undeclared proc type pragma macro in generics (#24490)
fixes #24489

(cherry picked from commit 05bba15623)
2025-01-14 12:24:22 +01:00
ringabout
52809cd3dd fixes #24476; remove proc type cast if they are same types for backends (#24480)
fixes #24476

closes https://github.com/nim-lang/Nim/pull/24479

(cherry picked from commit 5340005869)
2025-01-14 12:24:00 +01:00
Andreas Rumpf
05a8b65eea stdlib: minor refactorings and updates (#24482)
(cherry picked from commit 8881017c80)
2025-01-14 12:16:21 +01:00
ringabout
b1a555dd52 Add support for parsing parameterised sql types (#24483)
Co-authored-by: Cletus Igwe <me@cletusigwe.com>
(cherry picked from commit dcd0793f2b)
2025-01-14 12:16:07 +01:00
Ryan McConnell
f5453e453e Fixes 3 small issues with concepts (#24481)
issue 1 - statics in the type:
This probably only handles simple cases. It's probably too accepting
only comparing the base, but that should only affect candidate selection
I think.
issue 2 - `tyArray` of length 3:
This is just a work around since I couldn't get the fix right in
previous PR
issue 3 - shadowing:
The part in `concepts.nim` that iterates candidates does not consider
imported idents if at least once module level ident matches. It does not
have to match in any other way then name.

EDIT: 2 more
issue 4 - composite typeclasses:
when declared in both the concept and the `proc` can cause problems
issue 5 - recursion:
simple recursion and scenarios where more than one concepts recurse
together (only tested two)

(cherry picked from commit e479151473)
2025-01-14 12:15:59 +01:00
ringabout
7d425e712e fixes #24472; let symbol created by template is reused in nimvm branch (#24473)
fixes #24472

Excluding variables which are initialized in the nimvm branch so that
they won't interfere the other branch

(cherry picked from commit e7f48cdd5c)
2025-01-14 12:15:51 +01:00
ringabout
e6f5e49184 minor fix for the command line helper (#24475)
(cherry picked from commit 1a901bd94e)
2025-01-14 12:15:21 +01:00
Judd
cd370e4725 Fix highlite.nim (#24457)
When parsing `a = 1` with `langPython`, Eof is reported unexpectedly.

Fix: allow other languages to fallback to "Identifier" when it is not a
keyword.

This patch is useful as this is a highlighter. `Eof` as annoying.

(cherry picked from commit 6112c51e78)
2025-01-14 12:15:09 +01:00
ringabout
42184227aa fix #19600; No error checking on fclose (#24468)
fix #19600

(cherry picked from commit 555191a3f0)
2025-01-14 12:11:57 +01:00
metagn
14ce1a91ce fix crash with tyBuiltInTypeClass matching itself (#24462)
fixes #24449

The standalone `seq` type is a `tyBuiltInTypeClass` with a single child
of kind `tySequence`, which itself has no children. This is also the
case for most other `tyBuiltInTypeClass` kinds. However this can cause a
crash in sigmatch when calling `isEmptyContainer` on this child type,
which expects the sequence type to have children. This check was added
in #5557 to prevent empty collections like `@[]` from matching their
respective typeclass, but it's not useful when matching against another
typeclass (which is done here to resolve an ambiguity). So to avoid the
crash, this empty container check is disabled when matching against
another typeclass.

(cherry picked from commit 96043bdbb7)
2025-01-14 09:11:14 +01:00
ringabout
ff7b83f266 adds a test case (#24469)
closes #13945

(cherry picked from commit af3181e75b)
2025-01-14 09:11:07 +01:00
metagn
522b184d5a retry thttpclient_ssl twice (#24467)
Flaky on linux_amd64

(cherry picked from commit 652edb229a)
2025-01-14 09:11:01 +01:00
Ryan McConnell
d339c58628 fixes #24451; concept matching generic body (#24458)
I think this might not be a comprehensive solution to dealing with
`tyGenericBody` but we take a step forward
#24451

(cherry picked from commit 08c2a1741d)
2025-01-14 09:10:45 +01:00
metagn
01b6c5d0d1 fix unix stdlib install location after #21328 (#24460)
closes #22369, closes #23197, closes #24385, refs #21328

According to #21328 the standard library on Unix should be installed in
`/usr/lib/nim/lib`, however the installer was not updated for this
change, hence the problem as described in
https://github.com/nim-lang/Nim/issues/23197#issuecomment-2031386896.

Have not tested if this fixes the problem but the comment heavily
implies it does. The problem is also in 2.0 so it could be backported
but I can't say for sure that it works and doesn't break anything.

(cherry picked from commit 33e455c986)
2025-01-14 09:10:40 +01:00
ringabout
1bc501f8ce adds a test case (#24466)
closes https://github.com/nim-lang/Nim/issues/23770 ref
https://github.com/nim-lang/Nim/pull/24442

(cherry picked from commit 9fcc3b0599)
2025-01-14 09:08:50 +01:00
ringabout
aa8d62f89c remove unnecessary imports (#24465)
ref https://github.com/nim-lang/Nim/issues/24272

(cherry picked from commit a788bae318)
2025-01-14 09:08:40 +01:00
ringabout
60a8eaaaa5 adds a test case (#24464)
closes #7784

(cherry picked from commit 3eddb64909)
2025-01-14 09:08:32 +01:00
metagn
f3da96d880 include new concepts in typeclasses, makes containsGenericType work (#24453)
fixes #24450

The new concepts were previously not included in
[containsGenericType][1] which prevents them from being instantiated.
Here they are included by being added to `tyTypeClasses` though this
doesn't have to be done, they can also be added manually to
`containsGenericTypeIter`, but this might be too specific.

[1]:
a2031ec6cf/compiler/types.nim (L1507-L1517)

(cherry picked from commit e28d2f42e9)
2025-01-14 09:08:13 +01:00
metagn
87c306061b disable weird type inference for object constructors (#24455)
closes #24372, refs #20091

This was added in #20091 for some reason but doesn't actually work and
only makes error messages more obscure. So for now, it's disabled.

Can also be backported to 2.0 if necessary.

(cherry picked from commit a610f23060)
2025-01-14 09:08:06 +01:00
metagn
2b1885a0fa remove structural equality check for objects and distinct types (#24448)
follows up #24425, fixes #18861, fixes #22445

Since #24425 generic object and distinct types now accurately link back
to their generic instantiations. To work around this issue previously,
type matching checked if generic objects/distinct types were
*structurally* equal, which caused false positives with types that
didn't use generic parameters in their structures. This structural check
is now removed, in cases where generic objects/distinct types require a
nontrivial equality check, the generic parameters of the `typeInst`
fields are checked for equality instead.

The check is copied from `tyGenericInst`, but the check in
`tyGenericInst` is not always sufficient as this type can be skipped or
unreachable in the case of `ref object`s.

(cherry picked from commit a2031ec6cf)
2025-01-14 09:07:30 +01:00
metagn
9c87f2cb4b always reinstantiate nominal values of generic instantiations (#24425)
fixes #22479, fixes #24374, depends on #24429 and #24430

When instantiating generic types which directly have nominal types
(object, distinct, ref/ptr object but not enums[^1]) as their values,
the nominal type is now copied (in the case of ref objects, its child as
well) so that it receives a fresh ID and `typeInst` field. Previously
this only happened if it contained any generic types in its structure,
as is the case for all other types.

This solves #22479 and #24374 by virtue of the IDs being unique, which
is what destructors check for. Technically types containing generic
param fields work for the same reason. There is also the benefit that
the `typeInst` field is correct. However issues like #22445 aren't
solved because the compiler still uses structural object equality checks
for inheritance etc. which could be removed in a later PR.

Also fixes a pre-existing issue where destructors bound to object types
with generic fields would not error when attempting to define a user
destructor after the fact, but the error message doesn't show where the
implicit destructor was created now since it was only created for
another instance. To do this, a type flag is used that marks the generic
type symbol when a generic instance has a destructor created. Reusing
`tfCheckedForDestructor` for this doesn't work.

Maybe there is a nicer design that isn't an overreliance on the ID
mechanism, but the shortcomings of `tyGenericInst` are too ingrained in
the compiler to use for this. I thought about maybe adding something
like `tyNominalGenericInst`, but it's really much easier if the nominal
type itself directly contains the information of its generic parameters,
or at least its "symbol", which the design is heading towards.

[^1]: See [this
test](21420d8b09/lib/std/enumutils.nim (L102))
in enumutils. The field symbols `b0`/`b1` always have the uninstantiated
type `B` because enum fields don't expect to be generic, so no generic
instance of `B` matches its own symbols. Wouldn't expect anyone to use
generic enums but maybe someone does.

(cherry picked from commit 05c74d6844)
2025-01-14 09:07:03 +01:00
metagn
03b6999499 prevent codegen of inactive case fields in VM object constructor nodes (#24442)
fixes #17571

Objects in the VM are represented as object constructor nodes that
contain every single field, including ones in different case branches.
This is so that every field has a unique invariant index in the object
constructor that can be written to and read from. However when
converting this node back into semantic code, fields from inactive case
branches can remain in the constructor which causes bad codegen,
generating assignments to fields from other case branches.

To fix this, fields from inactive branches are now detected in
`semmacrosanity.annotateType` (called in `fixupTypeAfterEval`) and
marked to prevent the codegen of their assignments. In #24441 these
fields were excluded from the resulting node, but this causes issues
when the node is directly supposed to go back into the VM, for example
as `const` values. I don't know if this is the only case where this
happens, so I wasn't sure about how to keep that implementation working.

(cherry picked from commit 75b512bc6a)
2025-01-14 09:06:58 +01:00
metagn
2690ab01c0 fix wrong error for iterators with no body and pragma macro (#24440)
fixes #16413

`semIterator` checks if the original iterator passed to it has no body,
but it should check the processed node created by `semProcAux`.

(cherry picked from commit e239968b80)
2025-01-14 09:06:49 +01:00
ringabout
c79fb859f1 adds some test cases (#24436)
closes #24043
closes #24045

(cherry picked from commit cc696f18c0)
2025-01-14 09:05:48 +01:00
ringabout
2d658e8de5 fixes #24402; Memory leak under Arc/Orc on inline iterators with nested seq (#24419)
fixes #24402

```nim
iterator myPairsInline*[T](twoDarray: seq[seq[T]]): (int, seq[T]) {.inline.} =
  for indexValuePair in twoDarray.pairs:
    yield indexValuePair

proc innerTestTotalMem() =
  var my2dArray: seq[seq[int32]] = @[]

  # fill with some data...
  for i in 0'i32..100:
    var z = @[i, i+1]
    my2dArray.add z

  for oneDindex, innerArray in myPairsInline(my2dArray):
    discard

innerTestTotalMem()
```

In `for oneDindex, innerArray in myPairsInline(my2dArray)`, `oneDindex`
and `innerArray` becomes `cursors` because they satisfy the criterion of
`isSimpleIteratorVar`. On the one hand, it is not correct to have them
point to the temporary generated by tuple unpacking, which left the
memory of the temporary uncleaned up. On the other hand, we don't need
to generate a temporary for a symbol node when unpacking the tuple.

(cherry picked from commit 21420d8b09)
2025-01-14 09:05:36 +01:00
metagn
0036bb976b fix subtype match of generic object types (#24430)
split from #24425

Matching `tyGenericBody` performs a match on the last child of the
generic body, in this case the uninstantied `tyObject` type. If the
object contains no generic fields, this ends up being the same type as
all instantiated ones, but if it does, a new type is created. This fails
the `sameObjectTypes` check that subtype matching for object types uses.
To fix this, also consider that the pattern type could be the generic
uninstantiated object type of the matched type in subtype matching.

(cherry picked from commit 511ab72342)
2025-01-14 09:05:28 +01:00
metagn
b0f3d1e874 fix jsonutils macro with generic case object (#24429)
split from #24425

The added test did not work previously. The result of `getTypeImpl` is
the uninstantiated AST of the original type symbol, and the macro
attempts to use this type for the result. To fix the issue, the provided
`typedesc` argument is used instead.

(cherry picked from commit 45e21ce8f1)
2025-01-14 09:05:24 +01:00
metagn
9f03b98de5 stricter skip for conversions in array indices in transf (#24424)
fixes #17958

In `transf`, conversions in subscript expressions are skipped (with
`skipConv`'s rules). This is because array indexing can produce
conversions to the range type that is the array's index type, which
causes a `RangeDefect` rather than an `IndexDefect` (and also
`--rangeChecks` and `--indexChecks` are both considered). However this
causes problems when explicit conversions are used, between types of
different bitsizes, because those also get skipped.

To fix this, we only skip the conversion if:

* it's a hidden (implicit) conversion
* it's a range check conversion (produces `nkChckRange`)
* the subscript is on an array type and the result type of the
conversion has the same bounds as the array index type

And `skipConv` rules also still apply (int/float classification).

Another idea would be to prevent the implicit conversion to the array
index type from being generated. But there is no good way to do this:
matching to the base type instead prevents types like `uint32` from
implicitly converting (i.e. it can convert to `range[0..3]` but not
`int`), and analyzing whether this is an array bound check is easier in
`transf`, since `sigmatch` just produces a type conversion.

The rules for skipping the conversion could also receive some other
tweaks: We could add a rule that changing bitsizes also doesn't skip the
conversion, but this breaks the `uint32` case. We could simplify it to
only removing implicit skips to specifically fix #17958, but this is
wrong in general.

We could also add something like `nkChckIndex` that generates index
errors instead but this is weird when it doesn't have access to the
collection type and it might be overkill.

(cherry picked from commit 76c5f16ac5)
2025-01-14 09:05:18 +01:00
Sam
0b7e22635e Fixes #24369 (#24370)
Hope this fixes #24369, happy for any feedback on the PR.

(cherry picked from commit 1fddb61b3b)
2025-01-14 09:05:07 +01:00
metagn
3642f4d375 gensym anonymous proc symbols (#24422)
fixes #14067, fixes #15004, fixes #19019

Anonymous procs are [added to
scope](8091d76306/compiler/semstmts.nim (L2466))
with the name `:anonymous`. This means that if they have the same
signature in a scope, they can consider each other as redefinitions. To
prevent this, mark their symbols as `sfGenSym` so they do not get added
to scope or cause any name conflicts. The commented out `and not isAnon`
check wouldn't work because `isAnon` would not be true if the proc is
being resemmed, in which case the name field in the proc AST would have
the symbol of the anonymous proc rather than being empty.

There is a separate problem of default values in generic/normal procs
not opening new scopes which is partially responsible for #19019.

(cherry picked from commit 3e47725c08)
2025-01-14 09:05:01 +01:00
metagn
f292393816 skip tyAlias in generic alias checks [backport:2.0] (#24417)
fixes #24415

Since #23978 (which is in 2.0), all generic types that alias to another
type now insert a `tyAlias` layer in their value. However the
`skipGenericAlias` etc code which `sigmatch` uses is not updated for
this, so `tyAlias` is now skipped in these.

The relevant code in sigmatch is:
67ad1ae159/compiler/sigmatch.nim (L1668-L1673)

This behavior is also suspicious IMO, not skipping a structural
`tyGenericInst` alias can be useful for code like #10220, but this is
currently arbitrarily decided based on "depth" and whether the alias is
to another `tyGenericInst` type or not. Maybe in the future we could
enforce the use of a nominal type.

(cherry picked from commit 45b8434c7d)
2025-01-14 09:04:54 +01:00
metagn
6ec663f7bc fix standalone explicit generic procs with unresolved arguments (#24404)
fixes issue described in https://forum.nim-lang.org/t/12579

In #24065 explicit generic parameter matching was made to fail matches
on arguments with unresolved types in generic contexts (the sigmatch
diff, following #24010), similar to what is done for regular calls since
#22029. However unlike regular calls, a failed match in a generic
context for a standalone explicit generic instantiation did not convert
the expression into one with `tyFromExpr` type, which means it would
error immediately given any unresolved parameter. This is now done to
fix the issue.

For explicit generic instantiations on single non-overloaded symbols, a
successful match is still instantiated. For multiple overloads (i.e.
symchoice), if any of the overloads fail the match, the entire
expression is considered untyped and any instantiations are not used, so
as to not void overloads that would match later. This means even
symchoices without unresolved arguments aren't instantiated, which may
be too restrictive, but it could also be too lenient and we might need
to make symchoice instantiations always untyped. The behavior for
symchoice is not sound anyway given it causes #9997 so this is something
to consider for a redesign.

Diff follows #24276.

(cherry picked from commit 67ad1ae159)
2025-01-14 09:04:44 +01:00
ringabout
6d02ac1ba0 fixes strictdefs with when nimvm (#24409)
ref https://github.com/nim-lang/Nim/pull/24225
related https://github.com/nim-lang/Nim/pull/24306

> Code in branches must not affect semantics of the code that follows
the
`when nimvm` statement. E.g. it must not define symbols that are used in
  the following code.

The test shouldn't have passed when
https://github.com/nim-lang/Nim/pull/24306
would be implemented somehow. Some third packages have already misused
`when nimvm` by defining symbols in the other branch of `when nimvm`.

e.g. in https://github.com/status-im/nim-unittest2/pull/34

```nim
when nimvm:
  discard
else:
  let suiteName {.inject.} = nameParam

use(suiteName)
```

(cherry picked from commit c71de10608)
2025-01-14 09:04:35 +01:00
metagn
ce1fa86095 disable sfml test on osx (#24615)
Tried installing sfml 2 in #24614 but didn't work

(cherry picked from commit d83ff81695)
2025-01-14 08:40:02 +01:00
metagn
4900550e9c disable all badssl tests indefinitely (#24403)
Flaky not just due to recent ubuntu 24/GCC 14 upgrades, windows fails as
well, assuming the issue is with badssl or it's just not worth testing
here.

(cherry picked from commit 5f056f87b2)
2025-01-14 07:53:56 +01:00
Phil Krylov
9fe2356e74 std/parsesql: Fix JOIN parsing (#22890)
This commit fixes/adds tests for and fixes several issues with `JOIN`
operator parsing:

- For OUTER joins, LEFT | RIGHT | FULL specifier is not optional
```nim
doAssertRaises(SqlParseError): discard parseSql("""
SELECT id FROM a
OUTER JOIN b
ON a.id = b.id
""")
```

- For NATURAL JOIN and CROSS JOIN, ON and USING clauses are forbidden
```nim
doAssertRaises(SqlParseError): discard parseSql("""
SELECT id FROM a
CROSS JOIN b
ON a.id = b.id
""")
```

- JOIN should parse as part of FROM, not after WHERE
```nim
doAssertRaises(SqlParseError): discard parseSql("""
SELECT id FROM a
WHERE a.id IS NOT NULL
INNER JOIN b
ON a.id = b.id
""")
```

- LEFT JOIN should parse
```nim
doAssert $parseSql("""
SELECT id FROM a
LEFT JOIN b
ON a.id = b.id
""") == "select id from a left join b on a.id = b.id;"
```

- NATURAL JOIN should parse
```nim
doAssert $parseSql("""
SELECT id FROM a
NATURAL JOIN b
""") == "select id from a natural join b;"
```

- USING should parse
```nim
doAssert $parseSql("""
SELECT id FROM a
JOIN b
USING (id)
""") == "select id from a join b using (id );"
```

- Multiple JOINs should parse
```nim
doAssert $parseSql("""
SELECT id FROM a
JOIN b
ON a.id = b.id
LEFT JOIN c
USING (id)
""") == "select id from a join b on a.id = b.id left join c using (id );"
```

(cherry picked from commit 46bb47a444)
2025-01-14 07:53:44 +01:00
ringabout
37ab27bd99 improve httpclient docuementation (#24398)
ref https://github.com/nim-lang/Nim/issues/24394

(cherry picked from commit 08b82c90f5)
2025-01-14 07:53:36 +01:00
ringabout
5e22d8bc3c fixes #24395; remove ndi (#24396)
fixes  #24395

(cherry picked from commit 8b88b5fdd8)
2025-01-14 07:53:29 +01:00
ringabout
6b102d5c13 azure-pipelines update to ubuntu 24.04 gcc 14 (#24386)
(cherry picked from commit 7b47987341)
2025-01-14 07:53:23 +01:00
ringabout
51f8649e36 trigger package CI for version-2-2 (#24393)
(cherry picked from commit d55cd40642)
2025-01-14 07:53:11 +01:00
ringabout
df27b427af fixes #24378; supportsCopyMem can fail from macro context with tuples (#24383)
fixes #24378

```nim
type Win = typeof(`body`)
doAssert not supportsCopyMem((int, Win))
```

`semAfterMacroCall` doesn't skip the children aliases types in the tuple
typedesc construction while the normal program seem to skip the aliases
types somewhere

`(int, Win)` is kept as `(int, alias string)` instead of expected `(int,
string)`

(cherry picked from commit 5e56f0a356)
2025-01-14 07:52:42 +01:00
ringabout
e57f755b78 fixes #24371; incorrect importc wrapper incompatible with gcc 14 on Windows (#24388)
fixes #24371

(cherry picked from commit 74df699ff1)
2025-01-14 07:52:35 +01:00
ringabout
d78c7aa697 disable Test on aarch64 (#24389)
ref https://github.com/nim-lang/Nim/issues/24287

(cherry picked from commit 1576563775)
2025-01-14 07:52:28 +01:00
metagn
435a152c66 implement generic default values for object fields (#24384)
fixes #21941, fixes #23594

(cherry picked from commit 4091576ab7)
2025-01-14 07:52:18 +01:00
ringabout
6c2de9b294 fixes #24379; better error messages for ill-formed type symbols from macros (#24380)
fixes #24379

(cherry picked from commit d61897459d)
2025-01-14 07:52:09 +01:00
ringabout
babc7d8c16 fixes #23545; C compiler error when default initializing an object field function (#24375)
fixes #23545

(cherry picked from commit 815bbf0e73)
2025-01-14 07:52:02 +01:00
ringabout
022bd12e82 improve passes.nim (#24376)
(cherry picked from commit 3fc87259bd)
2025-01-14 07:51:55 +01:00
ringabout
3c528c987c fixes #24359; VM problem: dest register is not set with const-bound proc (#24364)
fixes #24359

follow up https://github.com/nim-lang/Nim/pull/11076

It should not try to evaluate the const proc if the proc doesn't have a
return value.

(cherry picked from commit 031ad957ba)
2025-01-14 07:51:44 +01:00
metagn
52d94c1c86 include static types in type bound ops (#24366)
refs https://github.com/nim-lang/Nim/pull/24315#discussion_r1816332587

(cherry picked from commit 40fc2d0e76)
2025-01-14 07:51:38 +01:00
metagn
87de7f9193 don't cascade vmgen errors in nim check without error outputs (#24365)
refs #23625, refs #24289

Encountered in #24360 but could not reproduce minimally: overloading on
static parameters can work with the normal compile commands but crash
`nim check`. Static overloading relies on `tryConstExpr` which recovers
from things like `globalError` and fails softly, in this case this can
happen when a variable etc. is not available to evaluate in the VM. But
with `nim check`, the compiler does not throw an exception in this case,
and instead tries to keep generating the entire expression in the VM,
which can cause crashes.

To fix this, when the compiler has no error outputs even on `nim check`,
we raise a global error so that the VM code generation stops early. This
fixes both `tryConstExpr` and speeds up `nim check`, because no error
outputs means we don't need cascading errors.

(cherry picked from commit efd603eb28)
2025-01-14 07:51:32 +01:00
Jake Leahy
520b16b81e Fix links for succ/pred/inc/dec in system docs (#24363)
Links for succ/pred/inc/dec were incorrect since they link to a symbol
with `int` as their second type.
Uses local referencing instead so that it links to the correct symbol.

Doesn't change the other links since they worked and doing the same
local referencing for `high`/`low` would've make them link to the group
of procs instead of the specific ones for ordinals

(cherry picked from commit 79ce3fe6b7)
2025-01-14 07:51:26 +01:00
ringabout
98403a06e7 fixes #18081; fixes #18079; fixes #18080; nested ref/deref'd types (#24335)
fixes #18081;
fixes https://github.com/nim-lang/Nim/issues/18080
fixes #18079

reverts https://github.com/nim-lang/Nim/pull/20738

It is probably more reasonable to use the type node from `nkObjConstr`
since it is barely changed unlike the external type, which is
susceptible to code transformation e.g. `addr(deref objconstr)`.

(cherry picked from commit aa90d00caf)
2025-01-14 07:50:41 +01:00
ringabout
4bdeddcac5 deprecate NewFinalize with the ref T finalizer (#24354)
pre-existing issues:

```nim
block:
  type
    FooObj = object
      data: int
    Foo = ref ref FooObj

  proc delete(self: Foo) =
    echo self.data

  var s: Foo
  new(s, delete)
```
it crashed with arc/orc in 1.6.x and 2.x.x

```nim
block:
  type
    Foo = ref int

  proc delete(self: Foo) =
    echo self[]

  var s: Foo
  new(s, delete)
```

The simple fix is to add a type restriction for the type `T` for arc/orc
versions
```nim
  proc new*[T: object](a: var ref T, finalizer: proc (x: T) {.nimcall.})
```

(cherry picked from commit 2af602a5c8)
2025-01-14 07:50:33 +01:00
metagn
9be3559ed2 consider calls as complex openarray assignment to iterator params (#24333)
fixes #13417, fixes #19703

When passing an expression to an `openarray` iterator parameter: If the
expression is a statement list (considered "complex"), it's assigned in
a non-deep-copying way to a temporary variable first, then this variable
is used as a parameter. If it's not a statement list, i.e. a call or a
symbol, the parameter is substituted directly with the given expression.
In the case of calls, this results in the call potentially being
executed more than once, or can cause redefined variables in the
codegen.

To fix this, calls are also considered as "complex" assignments to
openarrays, as long as the return type of the call is not `openarray` as
the generated assignment in that case has issues/is unimplemented
(caused a segfault [here in
datamancer](47ba4d81bf/src/datamancer/dataframe.nim (L1580))).

As for why creating a temporary isn't the default only with exceptions
for things like `nkSym`, the "non-deep-copying" way of assignment
apparently still causes arrays to be copied according to a comment in
the code. I'm not sure to what extent this is true: if it still happens
on ARC/ORC, if it happens for every array length, or if we can fix it by
passing arrays by reference. Otherwise, a more general way to assign to
openarrays might be needed, but I'm not sure if the compiler can easily
do this.

(cherry picked from commit d303c289fa)
2025-01-14 07:50:24 +01:00
ringabout
f2a9765014 fixes #23952; Size/Signedness issues with unordered enums (#24356)
fixes #23952

It reorders `type Foo = enum A, B = -1` to `type Foo = enum B = -1, A`
so that `firstOrd` etc. continue to work.

(cherry picked from commit 294b1566e7)
2025-01-14 07:50:17 +01:00
metagn
ac8c44e08d implement type bound operation RFC (#24315)
closes https://github.com/nim-lang/RFCs/issues/380, fixes #4773, fixes
#14729, fixes #16755, fixes #18150, fixes #22984, refs #11167 (only some
comments fixed), refs #12620 (needs tiny workaround)

The compiler gains a concept of root "nominal" types (i.e. objects,
enums, distincts, direct `Foo = ref object`s, generic versions of all of
these). Exported top-level routines in the same module as the nominal
types that their parameter types derive from (i.e. with
`var`/`sink`/`typedesc`/generic constraints) are considered attached to
the respective type, as the RFC states. This happens for every argument
regardless of placement.

When a call is overloaded and overload matching starts, for all
arguments in the call that already have a type, we add any operation
with the same name in the scope of the root nominal type of each
argument (if it exists) to the overload match. This also happens as
arguments gradually get typed after every overload match. This restricts
the considered overloads to ones attached to the given arguments, as
well as preventing `untyped` arguments from being forcefully typed due
to unrelated overloads. There are some caveats:

* If no overloads with a name are in scope, type bound ops are not
triggered, i.e. if `foo` is not declared, `foo(x)` will not consider a
type bound op for `x`.
* If overloads in scope do not have enough parameters up to the argument
which needs its type bound op considered, then type bound ops are also
not added. For example, if only `foo()` is in scope, `foo(x)` will not
consider a type bound op for `x`.

In the cases of "generic interfaces" like `hash`, `$`, `items` etc. this
is not really a problem since any code using it will have at least one
typed overload imported. For arbitrary versions of these though, as in
the test case for #12620, a workaround is to declare a temporary
"template" overload that never matches:

```nim
# neither have to be exported, just needed for any use of `foo`:
type Placeholder = object
proc foo(_: Placeholder) = discard
```

I don't know what a "proper" version of this could be, maybe something
to do with the new concepts.

Possible directions:

A limitation with the proposal is that parameters like `a: ref Foo` are
not attached to any type, even if `Foo` is nominal. Fixing this for just
`ptr`/`ref` would be a special case, parameters like `seq[Foo]` would
still not be attached to `Foo`. We could also skip any *structural* type
but this could produce more than one nominal type, i.e. `(Foo, Bar)`
(not that this is hard to implement, it just might be unexpected).

Converters do not use type bound ops, they still need to be in scope to
implicitly convert. But maybe they could also participate in the nominal
type consideration: if `Generic[T] = distinct T` has a converter to `T`,
both `Generic` and `T` can be considered as nominal roots.

The other restriction in the proposal, being in the same scope as the
nominal type, could maybe be worked around by explicitly attaching to
the type, i.e.: `proc foo(x: T) {.attach: T.}`, similar to class
extensions in newer OOP languages. The given type `T` needs to be
obtainable from the type of the given argument `x` however, i.e.
something like `proc foo(x: ref T) {.attach: T.}` doesn't work to fix
the `ref` issue since the compiler never obtains `T` from a given `ref
T` argument. Edit: Since the module is queried now, this is likely not
possible.

---------

Co-authored-by: Andreas Rumpf <rumpf_a@web.de>
(cherry picked from commit 2864830941)
2025-01-14 07:50:04 +01:00
metagn
850132d37c define flexible array without size for tcc & all C99 (#24355)
fixes #24236

Locally tested to generate a 100 KB file for TCC. Empty flexible array
size is standard in C99 but maybe some compilers still don't support it.
At the very least an array size of 1000000 should be rare.

(cherry picked from commit dd3a4b2aba)
2025-01-14 07:49:52 +01:00
ringabout
a1ee2ee566 adds noise to important_packages (#24352)
ref https://github.com/jangko/nim-noise

(cherry picked from commit b534f34e95)
2025-01-14 07:49:45 +01:00
ringabout
9306b5e917 std/nre now uses destructors instead of finializer (#24353)
Similar to changes in
bafb4f119c

(cherry picked from commit 3aaaed1acf)
2025-01-14 07:49:23 +01:00
ringabout
67a636bec8 closes #19984; adds a test case (#24349)
closes #19984

(cherry picked from commit baf3695c76)
2025-01-14 07:48:09 +01:00
metagn
9a6230ee5a wrap fields iterations in if true scope [backport] (#24343)
fixes #24338

When unrolling each iteration of a `fields` iterator, the compiler only
opens a new scope for semchecking, but doesn't generate a node that
signals to the codegen that a new scope should be created. This causes
issues for reused template instantiations that reuse variable symbols
between each iteration, which causes the codegen to generate multiple
declarations for them in the same scope (regardless of `inject` or
`gensym`). To fix this, we wrap the unrolled iterations in an `if true:
body` node, which both opens a new scope and doesn't interfere with
`break`.

(cherry picked from commit ca5df9ab25)
2025-01-14 07:48:01 +01:00
bptato
7e840e0164 Fix broken poll and nfds_t bindings (#24331)
This fixes several cases of the Nim binding of nfds_t being inconsistent
with the target platform signedness and/or size.

Additionally, it fixes poll's third argument (timeout) being set to Nim
"int" when it should have been "cint".

The former is the same issue that #23045 had attempted to fix, but
failed because it only considered Linux. (Also, it was only applied to
version 2.0, so the two branches now have incompatible versions of the
same bug.)

Notes:

* SVR4's original "unsigned long" definition is cloned by Linux and
Haiku. Nim got this right for Haiku and Linux-amd64, but it was wrong on
non-amd64 Linux.
* Zephyr does not have nfds_t, but simply uses (signed) "int". This was
already correctly reflected by Nim.
* OpenBSD poll.h uses "unsigned int", and other BSD derivatives follow
suit. This being the most commonly copied definition, the fallback case
now returns cuint. (This also seems to be correct for the OS X headers I
could find on the web.)
* This changes Nintendo Switch nfds_t to cuint from culong. It is
purportedly a FreeBSD derivative, so I *think* this is correct, but I
can't tell because I don't have access to the Nintendo Switch headers.

I have also moved the platform-specific Tnfds to posix.nim so that we
can reuse the fallback logic on all platforms. (e.g. specifying the size
in posix_linux_amd64 only to then use when defined(linux) in posix_other
seems redundant.)

(cherry picked from commit 67442471ae)
2025-01-14 07:47:40 +01:00
metagn
cd760b00c2 clean up stdlib with --jsbigint64 (#24255)
refs #6978, refs #6752, refs #21613, refs #24234

The `jsNoInt64`, `whenHasBigInt64`, `whenJsNoBigInt64` templates are
replaced with bool constants to use with `when`. Weird that I didn't do
this in the first place.

The `whenJsNoBigInt64` template was also slightly misleading. The first
branch was compiled for both no bigint64 on JS as well as on C/C++. It
seems only `trandom` depended on this by mistake.

The workaround for #6752 added in #6978 to `times` is also removed with
`--jsbigint64:on`, but #24233 was also encountered with this, so this PR
depends on #24234.

(cherry picked from commit 041098e882)
2025-01-14 07:47:30 +01:00
Jake Leahy
0cce80071b Fix quoted idents in ctags (#24317)
Running `ctags` on files with quoted symbols (e.g. `$`) would list \`
instead of the full ident. Issue was the result getting reassigned at
the end to a \` instead of appending

(cherry picked from commit 93c24fe1c5)
2025-01-14 07:47:19 +01:00
metagn
5aeabdac8f symmetric difference operation for sets via xor (#24286)
closes https://github.com/nim-lang/RFCs/issues/554

Adds a symmetric difference operation to the language bitset type. This
maps to a simple `xor` operation on the backend and thus is likely
faster than the current alternatives, namely `(a - b) + (b - a)` or `a +
b - a * b`. The compiler VM implementation of bitsets already
implemented this via `symdiffSets` but it was never used.

The standalone binary operation is added to `setutils`, named
`symmetricDifference` in line with [hash
sets](https://nim-lang.org/docs/sets.html#symmetricDifference%2CHashSet%5BA%5D%2CHashSet%5BA%5D).
An operator version `-+-` and an in-place version like `toggle` as
described in the RFC are also added, implemented as trivial sugar.

(cherry picked from commit ae9287c4f3)
2025-01-14 07:47:13 +01:00
metagn
2d678fa45c better errors for standalone explicit generic instantiations (#24276)
refs #8064, refs #24010

Error messages for standalone explicit generic instantiations are
revamped. Failing standalone explicit generic instantiations now only
error after overloading has finished and resolved to the default `[]`
magic (this means `[]` can now be overloaded for procs but this isn't
necessarily intentional, in #24010 it was documented that it isn't
possible). The error messages for failed instantiations are also no
longer a simple `cannot instantiate: foo` message, instead they now give
the same type mismatch error message as overloads with mismatching
explicit generic parameters.

This is now possible due to the changes in #24010 that delegate all
explicit generic proc instantiations to overload resolution. Old code
that worked around this is now removed. `maybeInstantiateGeneric` could
maybe also be removed in favor of just `explicitGenericSym`, the `result
== n` case is due to `explicitGenericInstError` which is only for niche
cases.

Also, to cause "ambiguous identifier" error messages when the explicit
instantiation is a symchoice and the expression context doesn't allow
symchoices, we semcheck the sym/symchoice created by
`explicitGenericSym` with the given expression flags.

#8064 isn't entirely fixed because the error message is still misleading
for the original case which does `values[1]`, as a consequence of
#12664.

(cherry picked from commit 0a058a6b8f)
2025-01-14 07:47:08 +01:00
ringabout
ee1c4de48a build documentation for repr_v2 (#24325)
(cherry picked from commit 0806fb0b6f)
2025-01-14 07:47:01 +01:00
ringabout
b3e02ef0c3 make PNode.typ a private field (#24326)
(cherry picked from commit 68b2e9eb6a)
2025-01-14 07:46:40 +01:00
Yuriy Glukhov
893c638485 Fixes #3824, fixes #19154, and hopefully #24094. Re-applies #23787. (#24316)
The first commit reverts the revert of #23787.
The second fixes lambdalifting in convolutedly nested
closures/closureiters. This is considered to be the reason of #24094,
though I can't tell for sure, as I was not able to reproduce #24094 for
complicated but irrelevant reasons. Therefore I ask @jmgomez, @metagn or
anyone who could reproduce it to try it again with this PR.

I would suggest this PR to not be squashed if possible, as the history
is already messy enough.

Some theory behind the lambdalifting fix:
- A closureiter that captures anything outside its body will always have
`:up` in its env. This property is now used as a trigger to lift any
proc that captures such a closureiter.
- Instantiating a closureiter involves filling out its `:up`, which was
previously done incorrectly. The fixed algorithm is to use "current" env
if it is the owner of the iter declaration, or traverse through `:up`s
of env param until the common ancestor is found.

---------

Co-authored-by: Andreas Rumpf <rumpf_a@web.de>
(cherry picked from commit 5fa96ef270)
2025-01-14 07:46:30 +01:00
Tomohiro
9f51b52f5f Document about noinline calling convention and exportcpp pragma in Nim manual (#24323)
It seems exportcpp was implemented in v1.0 but there is no documentation
about it excepts changelog.
`noinline` is used in many procedures in Nim code but there is also no
documentation about it.

---------

Co-authored-by: Andreas Rumpf <rumpf_a@web.de>
(cherry picked from commit b8f6088ac0)
2025-01-14 07:46:21 +01:00
metagn
bcfb30a8be shallow fold prevention for addr, nkHiddenAddr (#24322)
fixes #24305, refs #23807

Since #23014 `nkHiddenAddr` is produced to fast assign array elements in
iterators. However the array access inside this `nkHiddenAddr` can get
folded at compile time, generating invalid code. In #23807, compile time
folding of regular `addr` expressions was changed to be prevented in
`transf` but `nkHiddenAddr` was not updated alongside it.

The method for preventing folding in `addr` in #23807 was also faulty,
it should only trigger on the immediate child node of the address rather
than all nodes nested inside it. This caused a regression as outlined in
[this
comment](https://github.com/nim-lang/Nim/pull/24322#issuecomment-2419560182).

To fix both issues, `addr` and `nkHiddenAddr` now both shallowly prevent
constant folding for their immediate children.

(cherry picked from commit 52cf7dfde0)
2025-01-14 07:46:13 +01:00
ringabout
7948e2f2c2 fixes #24319; move doesn't work well with (deref (var array)) (#24321)
fixes #24319

`byRefLoc` (`mapType`) requires the Loc `a` to have the right type.
Without `lfEnforceDeref`, it produces the wrong type for `deref (var
array)`, which may come from `mitems`.

(cherry picked from commit 0347536ff2)
2025-01-14 07:46:07 +01:00
ringabout
6b31400ade adds a getter/setter for owner (#24318)
(cherry picked from commit d0b6b9346e)
2025-01-14 07:45:59 +01:00
ringabout
a713aee682 fixes #18896; fixes #20886; importc types alias doesn't work with distinct (#24313)
fixes #18896
fixes #20886

```nim
type
  PFile {.importc: "FILE*", header: "<stdio.h>".} = distinct pointer
    # import C's FILE* type; Nim will treat it as a new pointer type
```
This is an excerpt from the Nim manual. In the old Nim versions, it
produces a void pointer type instead of the `FILE*` type that should
have been generated. Because these C types tend to be opaque and adapt
to changes on different platforms. It might affect the portability of
Nim on various OS, i.e. `csource_v2` cannot build on the apline platform
because of `Time` relies on Nim types instead of the `time_t` type.

ref https://github.com/nim-lang/Nim/pull/18851

(cherry picked from commit 8be82c36c9)
2025-01-14 07:45:50 +01:00
ringabout
aa7e7f5f63 make owner a private field of PType (#24314)
follow up https://github.com/nim-lang/Nim/pull/24311

(cherry picked from commit a3aea224c9)
2025-01-14 07:45:39 +01:00
ringabout
8d7b3baf9f make owner a private field of PSym (#24311)
(cherry picked from commit 53460f312c)
2025-01-14 07:45:34 +01:00
ringabout
274cdba334 closes #19585; adds a test case for #21648 (#24310)
closes #19585
follow up #21648

(cherry picked from commit 922f7dfd71)
2025-01-14 07:45:25 +01:00
ringabout
a04dada93d fixes ci_generate produces unnecessary spaces on Windows (#24309)
follow up https://github.com/nim-lang/Nim/pull/17899

(cherry picked from commit 3e8f44b232)
2025-01-14 07:45:19 +01:00
ringabout
4d170ac586 fixes #24258; compiler crash on len of varargs[untyped] (#24307)
fixes #24258

It uses conditionals to guard against ill formed AST to produce better
error messages, rather than crashing

(cherry picked from commit 8b39b2df7d)
2025-01-14 07:39:32 +01:00
ringabout
e3a8d98626 define -d:nimHasDefaultFloatRoundtrip and enable datamancer (#24300)
ref https://github.com/SciNim/Datamancer/pull/73
ref https://github.com/SciNim/Datamancer/issues/72

(cherry picked from commit d4b9c147ab)
2025-01-14 07:37:18 +01:00
ringabout
41145210a8 templates/macros use no expected types when return types are specified (#24298)
fixes #24296
fixes #24295

Templates use `expectedType` for type inference. It's justified that
when templates don't have an actual return type, i.e., `untyped` etc.

When the return type of templates is specified, we should not infer the
type

```nim
template g(): string = ""

let c: cstring = g()
```
In this example, it is not reasonable to annotate the templates
expression with the `cstring` type before the `fitNode` check with its
specified return type.

(cherry picked from commit 80e6b35721)
2025-01-14 07:36:48 +01:00
Aryo
3c2b32aebe Expand enum example tut1.md (#24268)
I couldn't understand why there is "x" declaration. Comparison make it
easier to understand to people not familiar to enums.

(cherry picked from commit 1dbf614858)
2025-01-14 07:36:05 +01:00
metagn
613f1e94ae clean up testament retries, add some comments (#24294)
follows up #24279

`discard finishTest` was wrong if the test still had a `retries` option:
it would just ignore the result of the test. This is an unlikely mistake
but we safeguard against it by splitting `finishTest` into two, one that
completely ignores the retries option and `finishTestRetryable` which
has to be checked for a retry. This also makes the code look slightly
better.

(cherry picked from commit 2f7586c066)
2025-01-14 07:35:59 +01:00
metagn
660a9cecf0 add retries to testament, use it for GC tests (#24279)
Testament now retries a test by a specified amount if it fails in any
way other than an invalid spec. This is to deal with the flaky GC tests
on Windows CI that fail in many different ways, from the linker randomly
erroring, segfaults, etc.

Unfortunately I couldn't do this cleanly in testament's current code.
The proc `addResult`, which is the "final" proc called in a test run's
lifetime, is now wrapped in a proc `finishTest` that returns a bool
`true` if the test failed and has to be retried. This result is
propagated up from `cmpMsgs` and `compilerOutputTests` until it reaches
`testSpecHelper`, which handles these results by recursing if the test
has to be retried. Since calling `testSpecHelper` means "run this test
with one given configuration", this means every single matrix
option/target etc. receive an equal amount of retries each.

The result of `finishTest` is ignored in cases where it's known that it
won't be retried due to passing, being skipped, having an invalid spec
etc. It's also ignored in `testNimblePackages` because it's not
necessary for those specific tests yet and similar retry behavior is
already implemented for part of it.

This was a last resort for the flaky GC tests but they've been a problem
for years at this point, they give us more work to do and turn off
contributors. Ideally GC tests failing should mark as "needs review" in
the CI rather than "failed" but I don't know if Github supports
something like this.

(cherry picked from commit 720d0aee5c)
2025-01-14 07:35:50 +01:00
metagn
bffd2e0330 don't evaluate "cannot eval" errors with nim check (#24289)
fixes #24288, refs #23625

Since #23625 "cannot evaluate" errors during VM code generation are
"soft" errors with `nim check`, i.e. the code generation isn't halted
(except for the current proc which `return`s which can cause wrong
codegen) and the expression is still attempted to be evaluated. Now,
these errors signal to the VM that the current generated VM code cannot
be evaluated, and so instead of evaluating, an error node is returned.
This keeps the benefit of the "soft" errors without potentially crashing
the compiler on improperly generated VM code. Although maybe the
compiler might not be able to handle the generated error node in some
cases.

This fixes the chame example in #24288 but this is not tested in CI.
Presumably it or the compiler was doing something like `compiles()` on
code that can't run in the VM.

I would accept nicer ways of tracking non-evaluability than
`c.cannotEval = true` but I tried to keep it as harmless as possible.

(cherry picked from commit def1fea43a)
2025-01-14 07:35:43 +01:00
Andreas Rumpf
d357a2e9a5 modulegraphs: added a flag useful for gear2 (#24293)
(cherry picked from commit 25c068c070)
2025-01-14 07:35:36 +01:00
metagn
fca3504105 fix type of reconstructed kind field node in field checking analysis [backport] (#24290)
fixes #24021

The field checking for case object branches at some point generates a
negated set `contains` check for the object discriminator. For enum
types, this tries to generate a complement set and convert to a
`contains` check in that instead. It obtains this type from the type of
the element node in the `contains` check.

`buildProperFieldCheck` creates the element node by changing a field
access expression like `foo.z` into `foo.kind`. In order to do this, it
copies the node `foo.z` and sets the field name in the node to the
symbol `kind`. But when copying the node, the type of the original
`foo.z` is retained. This means that the complement is performed on the
type of the accessed field rather than the type of the discriminator,
which causes problems when the accessed field is also an enum.

To fix this, we properly set the type of the copied node to the type of
the kind field. An alternative is just to make a new node instead.

A lot of text for a single line change, I know, but this part of the
codebase could use more explanation.

(cherry picked from commit 1bebc236bd)
2025-01-14 07:35:24 +01:00
metagn
bf45efb1ea use /link before each library linker option on MSVC (#24291)
fixes #24087, refs https://forum.nim-lang.org/t/341, refs #14222, refs
#14221

The Nim compiler calls `cl` for linking as well as compilation. This
means that options to the linker have to be passed after a `/link`
argument. But the Nim compiler doesn't include this option normally,
because users may still want to pass non-linker options to `cl` at link
time.

To deal with this, a workaround is used: every single library link
option adds `/link` before it. The linker simply ignores extraneous
`/link` arguments and gives a warning instead, since it's an
unrecognized option to the linker. This is really hacky but otherwise we
need to separate linker arguments into arguments passed either to the
compiler or to the linker at link time, and this behavior wouldn't be
meaningful outside of MSVC.

I can't really test this manually but I did test that the linker ignores
`/link`. I also can't really do more than this, I don't really use MSVC
so I wouldn't know how to navigate it, or how people use it. Ideally
someone who knows more about/uses MSVC can give their input or take
over.

(cherry picked from commit 449106a5a4)
2025-01-14 07:35:19 +01:00
metagn
517a2fc275 add tables.getOrDefault param name change to changelog (#24271)
refs
https://github.com/nim-lang/Nim/issues/23587#issuecomment-2404406187

(cherry picked from commit bb0006598d)
2025-01-14 07:35:11 +01:00
Miran
4c56f9d675 make package testing faster (#24284)
There's no need to run benchmarks for cow- and sso-strings: they take 15
minutes each to run.

(cherry picked from commit f5cb39289b)
2025-01-14 07:34:56 +01:00
Juan M Gómez
de93f82d6e Bumps nimble to v0.16.2 (#24283)
(cherry picked from commit af23bc2941)
2025-01-14 07:34:39 +01:00
metagn
fa1819eb2d make linter use lineinfo to check originating package (#24270)
fixes #24269, refs #20095

Instead of checking the package of the *used sym* to determine whether a
stylecheck should trigger, we check the package of the lineinfo instead.
Before #20095 this checked for the current compilation context module
instead which caused issues with generic procs, but the lineinfo should
more closely match the AST.

I figured this might cause issues with includes etc but the foreign
package test specifically tests for an include and passes, so maybe the
package determining logic accounts for this already. This still might
not be the correct logic, I'm not too familiar with the package handling
in the compiler.

Package PRs, both merged:

- json_rpc: https://github.com/status-im/nim-json-rpc/pull/226
- json_serialization:
https://github.com/status-im/nim-json-serialization/pull/99

(cherry picked from commit aaf6c408c6)
2025-01-14 07:34:32 +01:00
metagn
0fde5a0cc2 use case instead of set of int in osproc (#24277)
As said in the warning after #21659, a set of ints defaults to
`set[range[0..65535]]` which is very large. So in osproc, a `case`
statement is used instead of an int set to check for an int being one of
2 values.

Also tested all of CI with the warning from #21659 as an error, this
seems to be the only remaining case in CI.

(cherry picked from commit 706985997e)
2025-01-14 07:34:23 +01:00
metagn
090139eb6f fix deref/addr pair deleting assignment location in C++ (#24280)
fixes #24274

The code in the `if` branch replaces the current destination `d` with a
new one. But the location `d` can be an assignment location, in which
case the provided expression isn't generated. To fix this, don't trigger
this code for when the location already exists. An alternative would be
to call `putIntoDest` in this case as is done below.

(cherry picked from commit 9c85f4fd07)
2025-01-14 07:34:03 +01:00
Miran
ee4bf757ea test more Status' packages, refs #24266 (#24275)
This adds several new Status packages to the CIs:

- confutils
- eth
- metrics
- nat_traversal
- toml_serialization

Other packages mentioned in https://github.com/nim-lang/Nim/issues/24266
are currently not ready to test with `devel` for various reasons.

----

This also enables `criterion`, and removes other packages that had been
in the `allowFailure` category — even without them we have plenty of
packages (145) that we test, there's no point in spending CI time on
them just to see them fail every time.
If/when the authors of those packages make them work with Nim devel, we
can re-introduce them then.

(cherry picked from commit 274762638f)
2025-01-14 07:33:52 +01:00
dlesnoff
b0b4b498c8 std/math: Add ^ overload for float32 and float64 (#20898)
I have added a new overload of `^` for float exponents.
Is two overloads for `float32` and `float64` better than just one
overload with `SomeFloat` type ?
I guess this would not work with `SomeFloat`, as `pow` is not defined
for `float`.

Another remark. Maybe we should catch exponents with 0.5 and call `sqrt`
instead ?

---------

Co-authored-by: Clay Sweetser <Varriount@users.noreply.github.com>
Co-authored-by: metagn <metagngn@gmail.com>
(cherry picked from commit e9a4d096ab)
2025-01-14 07:33:42 +01:00
metagn
d102571d78 don't allow instantiations resolving to generic body types (#24273)
fixes #24091, refs #24092

Any instantiations resolving to a generic body type now gives an error.
Due to #24092, this does not error in cases like matching against `type
M` in generics because generic body type symbols are just not
instantiated. But this prevents parameters with type `type M` from being
used, although there doesn't seem to be any code which does this. Just
in case such code exists, we still allow `typedesc` types resolving to
generic body types.

(cherry picked from commit 2f904535d0)
2025-01-14 07:33:27 +01:00
metagn
1f418de2cc fix workaround for protobuf not installing combparser fork in CI (#24267)
fixes CI after #24265, the CI passed in the original PR somehow

(cherry picked from commit 96d6eee9bc)
2025-01-14 07:33:20 +01:00
metagn
21bdc8ff0f remove conflicting default call in tables.getOrDefault (#24265)
fixes #23587

As explained in the issue, `getOrDefault` has a parameter named
`default` that can be a proc after generic instantiation. But the
parameter having a proc type [overrides all other
overloads](f73e03b132/compiler/semexprs.nim (L1203))
including the magic `system.default` overload and causes a compile error
if the proc doesn't match the normal use of `default`. To fix this, the
`result = default(B)` initializer call is removed because it's not
needed, `result` is always set in `getOrDefaultImpl` when a default
value is provided.

This is still a suspicious behavior of the compiler but `tables` working
has a higher priority.

(cherry picked from commit 67ea754b7f)
2025-01-14 07:33:10 +01:00
ringabout
9f7b664836 documentation and comments use HTTPS when possible (#24264)
(cherry picked from commit 95a7695810)
2025-01-14 07:33:01 +01:00
ringabout
b24f58183d fixes obsolete documentations about the JS backend (#24263)
ref https://github.com/nim-lang/Nim/pull/21849
ref https://github.com/nim-lang/Nim/pull/21613

(cherry picked from commit f73e03b132)
2025-01-14 07:32:55 +01:00
metagn
b8efee444c process non-language pragma nodes in generics (#24254)
fixes #18649, refs #24183

Same as in #24183 for templates, we now process pragma nodes in generics
so that macro symbols are captured and the pragma arguments are checked,
but ignoring language pragma keywords.

A difference is that we cannot process call nodes as is, we have to
process their children individually so that the early untyped
macro/template instantiation in generics does not kick in.

(cherry picked from commit d72b848d17)
2025-01-14 07:32:47 +01:00
Tomohiro
336549c49d Change how to multiply 1.5 to ints to reduce overflow (#24257)
(cherry picked from commit d6633ae1da)
2025-01-14 07:32:40 +01:00
ringabout
2d4e1f981e improves the 2.2.0 changelog (#24256)
(cherry picked from commit 30e552e3d3)
2025-01-14 07:32:27 +01:00
metagn
13110fc5d3 give int literals matched type on generic match (#24234)
fixes #24233

Integer literals with type `int` can match `int64` with a generic match.
Normally this would generate an conversion via `isFromIntLit`, but when
it matches with a generic match (`isGeneric`) the node is left alone and
continues to have type `int` (related to #4858, but separate; since
`isFromIntLit > isGeneric` it doesn't propagate). This did not cause
problems on the C backend up to this point because either the compiler
generated a cast when generating the C code or it was implicitly casted
in the C code itself. On the JS backend however, we need to generate
`int64` and `int` values differently, so we copy the integer literal and
give it the matched type now instead.

This is somewhat risky even if CI passes but it's required to make the
times module work without [this
workaround](7dfadb8b4e/lib/pure/times.nim (L219-L238))
on `--jsbigint64:on` (the default).

CI exposed an issue: When matching an int literal to a generic parameter
in a generic instantiation, the literal is only treated like a value if
it has `int literal` type, but if it has the type `int`, it gets
transformed into literally the type `int` (#12664, #13906), which breaks
the tests t14193 and t12938. To deal with this, we don't give it the
type `int` if we are in a generic instantiation and preserve the `int
literal` type.

(cherry picked from commit c73eedfe6e)
2025-01-14 07:32:18 +01:00
metagn
700ca2eb60 process non-language pragma nodes in templates (#24183)
fixes #24186

When encountering pragma nodes in templates, if it's a language pragma,
we don't process the name, and only any values if they exist. If it's
not a language pragma, we process the full node. Previously only the
values of colon expressions were processed.

To make this simpler, `whichPragma` is patched to consider bracketed
hint/warning etc pragmas like `{.hint[HintName]: off.}` as being a
pragma of kind `wHint` rather than an invalid pragma which would have to
be checked separately. From looking at the uses of `whichPragma` this
doesn't seem like it would cause problems.

Generics have [the same
problem](a27542195c/compiler/semgnrc.nim (L619))
(causing #18649), but to make it work we need to make sure the
templates/macros don't get evaluated or get evaluated correctly (i.e.
passing the proc node as the final argument), either with #23094 or by
completely disabling template/macro evaluation when processing the
pragma node, which would also cover `{.pragma.}` templates.

(cherry picked from commit 911cef1621)
2025-01-14 07:32:12 +01:00
metagn
5945ad41a1 reset inTypeofContext in generic instantiations (#24229)
fixes #24228, refs #22022

As described in
https://github.com/nim-lang/Nim/issues/24228#issuecomment-2392462221,
instantiating generic routines inside `typeof` causes all code inside to
be treated as being in a typeof context, and thus preventing compile
time proc folding, causing issues when code is generated for the
instantiated routine. Now, instantiated generic procs are treated as
never being inside a `typeof` context.

This is probably an arbitrary special case and more issues with the
`typeof` behavior from #22022 are likely. Ideally this behavior would be
removed but it's necessary to accomodate the current [proc `declval` in
the package `stew`](https://github.com/status-im/nim-stew/pull/190), at
least without changes to `compileTime` that would either break other
code (making it not eagerly fold by default) or still require a change
in stew (adding an option to disable the eager folding).

Alternatively we could also make the eager folding opt-in only for
generic compileTime procs so that #22022 breaks nothing whatsoever, but
a universal solution would be better. Edit: Done in #24230 via
experimental switch

(cherry picked from commit ea9811a4d2)
2025-01-14 07:31:57 +01:00
Andreas Rumpf
7f113dc875 exports more helpers that are needed by nif-gear2 (#24247)
(cherry picked from commit 7f2e6a1359)
2025-01-14 07:31:51 +01:00
ringabout
e13f86a596 enable nimExperimentalLinenoiseExtra (#24227)
follow up https://github.com/nim-lang/Nim/pull/16977

it was added in 1.6.0

(cherry picked from commit a65501325c)
2025-01-14 07:31:40 +01:00
metagn
6c96892d5e refactor to make sigmatch use LayeredIdTable for bindings (#24216)
split from #24198

This is a required refactor for the only good solution I've been able to
think of for #4858 etc. Explanation:

---

`sigmatch` currently [disables
bindings](d6a71a1067/compiler/sigmatch.nim (L1956))
(except for binding to other generic parameters) when matching against
constraints of generic parameters. This is so when the constraint is a
general metatype like `seq`, the type matching will not treat all
following uses of `seq` as the type matched against that generic
parameter.

However to solve #4858 etc we need to bind `or` types with a conversion
match to the type they are supposed to be converted to (i.e. matching
`int literal(123)` against `int8 | int16` should bind `int8`[^1], not
`int`). The generic parameter constraint binding needs some way to keep
track of this so that matching `int literal(123)` against `T: int8 |
int16` also binds `T` to `int8`[^1].

The only good way to do this IMO is to generate a new "binding context"
when matching against constraints, then binding the generic param to
what the constraint was bound to in that context (in #24198 this is
restricted to just `or` types & concrete types with convertible matches,
it doesn't work in general).

---

`semtypinst` already does something similar for bindings of generic
invocations using `LayeredIdTable`, so `LayeredIdTable` is now split
into its own module and used in `sigmatch` for type bindings as well,
rather than a single-layer `TypeMapping`. Other modules which act on
`sigmatch`'s binding map are also updated to use this type instead.

The type is also made into an `object` type rather than a `ref object`
to reduce the pointer indirection when embedding it inside
`TCandidate`/`TReplTypeVars`, but only on arc/orc since there are some
weird aliasing bugs on refc/markAndSweep that cause a segfault when
setting a layer to its previous layer. If we want we can also just
remove the conditional compilation altogether and always use `ref
object` at the cost of some performance.

[^1]: `int8` binding here and not `int16` might seem weird, since they
match equally well. But we need to resolve the ambiguity here, in #24012
I tested disallowing ambiguities like this and it broke many packages
that tries to match int literals to things like `int16 | uint16` or
`int8 | int16`. Instead of making these packages stop working I think
it's better we resolve the ambiguity with a rule like "the earliest `or`
branch with the best match, matches". This is the rule used in #24198.

(cherry picked from commit cad8726907)
2025-01-14 07:31:33 +01:00
ringabout
dd0cc389bb -d:nimPreviewFloatRoundtrip becomes the default (#24217)
(cherry picked from commit aa605da92a)
2025-01-14 07:31:27 +01:00
metagn
75e50f804a delay markUsed for converters until call is resolved (#24243)
fixes #24241

(cherry picked from commit 09043f409f)
2025-01-14 07:31:22 +01:00
metagn
599f1ad6b3 make new concepts match themselves (#24244)
fixes #22839

(cherry picked from commit 9e30b39412)
2025-01-14 07:31:14 +01:00
metagn
d991600a00 update CI to macos 13 (#24157)
Followup to #24154, packages aren't ready for macos 14 (M1/ARM CPU) yet
and it seems to be preview on azure, so upgrade to macos 13 for now.

Macos 12 gives a warning:

```
You are using macOS 12.
We (and Apple) do not provide support for this old version.
It is expected behaviour that some formulae will fail to build in this old version.
It is expected behaviour that Homebrew will be buggy and slow.
Do not create any issues about this on Homebrew's GitHub repositories.
Do not create any issues even if you think this message is unrelated.
Any opened issues will be immediately closed without response.
Do not ask for help from Homebrew or its maintainers on social media.
You may ask for help in Homebrew's discussions but are unlikely to receive a response.
Try to figure out the problem yourself and submit a fix as a pull request.
We will review it but may or may not accept it.
```

(cherry picked from commit 4a63186cda)
2025-01-14 07:30:58 +01:00
tersec
b873eaedf5 update minimum recommended gcc version and fix manual typos (#24240)
ref https://github.com/nim-lang/Nim/issues/24235

(cherry picked from commit 782b75cc08)
2025-01-14 07:30:43 +01:00
Alex
39a6106e8b Update sequtils.nim authors (#24238)
Hello, I am the original developer credited in this file.

I no longer wish to be credited for the it so I've updated it to say
"Nim Contributors".

This is a quick edit from the GitHub Web UI so let me know if I need to
make any changes to get this merged.

Thank you.

---------

Co-authored-by: ringabout <43030857+ringabout@users.noreply.github.com>
(cherry picked from commit f420a5a273)
2025-01-14 07:30:33 +01:00
metagn
e262d9506d stricter set type match, implicit conversion for literals (#24176)
fixes #18396, fixes #20142

Set types with base types matching less than a generic match (so
subrange matches, conversion matches, int conversion matches) are now
considered mismatching, as their representation is different on the
backends (except VM and JS), causing codegen issues. An exception is
granted for set literal types, which now implicitly convert each element
to the matched base type, so things like `s == {'a', 'b'}` are still
possible where `s` is `set[range['a'..'z']]`. Also every conversion
match in this case is unified under the normal "conversion" match, so a
literal doesn't match one set type better than the other, unless it's
equal.

However `{'a', 'b'} == s` or `{'a', 'b'} - s` etc is now not possible.
when it used to work in the VM. So this is somewhat breaking, and needs
a changelog entry.

(cherry picked from commit 7dfadb8b4e)
2025-01-14 07:30:25 +01:00
metagn
ddc7f35e05 don't typecheck untyped + allow void typed template param default values (#24219)
Previously, the compiler never differentiated between `untyped`/`typed`
argument default values and other types, it considered any parameter
with a type as typed and called `semExprWithType`, which both
typechecked it and disallowed `void` expressions. Now, we perform no
typechecking at all on `untyped` template param default values, and call
`semExpr` instead for `typed` params, which allows expressions with
`void` type.

(cherry picked from commit 4eed341ba5)
2025-01-14 07:30:19 +01:00
metagn
f70a17f885 don't construct array type for already typed nkBracket node (#24224)
fixes #23010, split from #24195

When resemming bracket nodes, the compiler currently unconditionally
makes a new node with an array type based on the node. However the VM
can generate bracket nodes with `seq` types, which this erases. To fix
this, if a bracket node already has a type, we still resem the bracket
node, but don't construct a new type for it, instead using the type of
the original node.

A version of this was rejected that didn't resem the node at all if it
was typed, but I can't find it. The difference with this one is that the
individual elements are still resemmed.

This should fix the break caused by #24184 so we could redo it after
this PR but it might still have issues, not to mention the related
pre-existing issues like #22793, #12559 etc.

(cherry picked from commit d98ef312f0)
2025-01-14 07:30:06 +01:00
Miran
7a79f465fa bump NimVersion to 2.2.1 (#24215)
(cherry picked from commit d6a71a1067)
2025-01-14 07:28:14 +01:00
ringabout
b6450a98ea improve error messages for illegalCapture (#24214)
ref https://forum.nim-lang.org/t/12536

Use a general recommendation to avoid some weird error messages like
`<ref ref var Test>` etc.

(cherry picked from commit f7cb0322c2)
2025-01-14 07:28:10 +01:00
755 changed files with 14279 additions and 52007 deletions

View File

@@ -10,16 +10,6 @@ body:
Please provide a minimal code example that reproduces the bug if possible.
Reports with a reproducible example or detailed information will likely receive fixes faster.
- type: textarea
id: nim-version
attributes:
label: Nim Version
description: |
Can be obtained from `nim -v` on the command line along with the OS/architecture.
For development versions, including the commit hash may help.
validations:
required: true
- type: textarea
id: description
attributes:
@@ -29,6 +19,16 @@ body:
placeholder: Bug reports with reproducible code or detailed information will be fixed faster.
validations:
required: true
- type: textarea
id: nim-version
attributes:
label: Nim Version
description: |
Can be obtained from `nim -v` on the command line along with the OS/architecture.
For development versions, make sure to include the commit hash.
validations:
required: true
- type: textarea
id: current-logs

View File

@@ -1,11 +0,0 @@
# To get started with Dependabot version updates, you'll need to specify which
# package ecosystems to update and where the package manifests are located.
# Please see the documentation for all configuration options:
# https://docs.github.com/github/administering-a-repository/configuration-options-for-dependency-updates
version: 2
updates:
- package-ecosystem: "github-actions" # See documentation for possible values
directory: "/" # Location of package manifests
schedule:
interval: "weekly"

View File

@@ -15,16 +15,9 @@ jobs:
name: ${{ matrix.platform }}-bisects
runs-on: ${{ matrix.platform }}
steps:
- uses: actions/checkout@v7
- uses: actions/checkout@v4
- name: Install OpenSSL (Windows)
if: |
runner.os == 'Windows'
run: choco install openssl.light --version=1.1.1.0 # OpenSSL 3.x removed SSL_library_init
shell: 'powershell'
# v2 wont work here, because uses "hardcoded" nim versions, action "dynamically" finds version with bug.
- uses: jiro4989/setup-nim-action@v1
- uses: jiro4989/setup-nim-action@v1
with:
nim-version: 'devel'

View File

@@ -43,9 +43,9 @@ jobs:
- target: linux
os: ubuntu-22.04
- target: windows
os: windows-latest
os: windows-2019
- target: osx
os: macos-15
os: macos-13
name: ${{ matrix.target }}
runs-on: ${{ matrix.os }}
@@ -53,7 +53,7 @@ jobs:
steps:
- name: 'Checkout'
uses: actions/checkout@v7
uses: actions/checkout@v4
with:
fetch-depth: 2
@@ -109,7 +109,7 @@ jobs:
if: |
github.event_name == 'push' && github.ref == 'refs/heads/devel' &&
matrix.target == 'linux'
uses: crazy-max/ghaction-github-pages@v5
uses: crazy-max/ghaction-github-pages@v4
with:
build_dir: doc/html
env:

View File

@@ -18,13 +18,9 @@ jobs:
strategy:
fail-fast: false
matrix:
os: [ubuntu-latest, macos-latest]
batch: ["0_3", "1_3", "2_3"] # list of `index_num`
include:
- os: ubuntu-latest
cpu: amd64
- os: macos-latest
cpu: arm64
os: [ubuntu-22.04, macos-13]
cpu: [amd64]
batch: ["allowed_failures", "0_3", "1_3", "2_3"] # list of `index_num`
name: '${{ matrix.os }} (batch: ${{ matrix.batch }})'
runs-on: ${{ matrix.os }}
timeout-minutes: 60 # refs bug #18178
@@ -33,23 +29,23 @@ jobs:
NIM_TESTAMENT_BATCH: ${{ matrix.batch }}
steps:
- name: 'Checkout'
uses: actions/checkout@v7
uses: actions/checkout@v4
with:
fetch-depth: 2
- name: 'Install node.js'
uses: actions/setup-node@v7
- name: 'Install node.js 20.x'
uses: actions/setup-node@v4
with:
node-version: 24
node-version: '20.x'
- name: 'Install dependencies (Linux amd64)'
if: runner.os == 'Linux' && matrix.cpu == 'amd64'
run: |
sudo apt-get update -qq
sudo apt-fast update -qq
DEBIAN_FRONTEND='noninteractive' \
sudo apt-get install --no-install-recommends -yq \
sudo apt-fast install --no-install-recommends -yq \
libcurl4-openssl-dev libgc-dev libsdl1.2-dev libsfml-dev \
valgrind libc6-dbg libblas-dev liblapack-dev libpcre3 xorg-dev
valgrind libc6-dbg libblas-dev xorg-dev
- name: 'Install dependencies (macOS)'
if: runner.os == 'macOS'
run: brew install boehmgc make sfml gtk+3

View File

@@ -17,14 +17,14 @@ jobs:
runs-on: ${{ matrix.os }}
steps:
- name: 'Checkout'
uses: actions/checkout@v7
uses: actions/checkout@v4
with:
fetch-depth: 2
- name: 'Install node.js'
uses: actions/setup-node@v7
uses: actions/setup-node@v4
with:
node-version: 24
node-version: ''
- name: 'Install dependencies (Linux amd64)'
if: runner.os == 'Linux' && matrix.cpu == 'amd64'
@@ -60,7 +60,7 @@ jobs:
run: nim c -r -d:release ci/action.nim
- name: 'Comment'
uses: actions/github-script@v9
uses: actions/github-script@v7
with:
script: |
const fs = require('fs');

View File

@@ -9,7 +9,7 @@ jobs:
stale:
runs-on: ubuntu-latest
steps:
- uses: actions/stale@v11
- uses: actions/stale@v9
with:
days-before-pr-stale: 365
days-before-pr-close: 30

2
.gitignore vendored
View File

@@ -68,7 +68,6 @@ testament.db
/csources
/csources_v1
/csources_v2
/csources_v3
/dist/
# /lib/fusion # fusion is now unbundled; `git status` should reveal if it's there so users can act on it
@@ -87,7 +86,6 @@ tweeter_test.db
/tests/megatest.nim
/tests/ic/*_temp.nim
/tests/ic/*_mm/
/tests/navigator/*_temp.nim

View File

@@ -28,12 +28,12 @@ jobs:
# # g++-multilib : Depends: gcc-multilib (>= 4:5.3.1-1ubuntu1) but it is not going to be installed
# vmImage: 'ubuntu-18.04'
# CPU: i386
OSX_arm64:
vmImage: 'macos-15'
CPU: arm64
OSX_arm64_cpp:
vmImage: 'macos-15'
CPU: arm64
OSX_amd64:
vmImage: 'macOS-13'
CPU: amd64
OSX_amd64_cpp:
vmImage: 'macOS-13'
CPU: amd64
NIM_COMPILE_TO_CPP: true
Windows_amd64_batch0_3:
vmImage: 'windows-2025'

View File

@@ -21,84 +21,22 @@ errors.
- The bare `except:` now panics on `Defect`. Use `except Exception:` or `except Defect:` to catch `Defect`. `--legacy:noPanicOnExcept` is provided for a transition period.
- With `-d:nimPreviewCStringComparisons`, comparsions (`<`, `>`, `<=`, `>=`) between cstrings switch from reference semantics to value semantics like `==` and `!=`.
- `std/parsesql` has been moved to a nimble package, use `nimble` or `atlas` to install it.
- With `-d:nimPreviewDuplicateModuleError`, importing two modules that share the same name becomes a compile-time error. This includes importing the same module more than once. Use `import foo as foo1` (or other aliases) to avoid collisions.
- Adds the switch `--mangle:nim|cpp`, which selects `nim` or `cpp` style name mangling when used with `debuginfo` on, defaults to `cpp`.
- The second parameter of `succ`, `pred`, `inc`, and `dec` in `system` now accepts `SomeInteger` (previously `Ordinal`).
- Bitshift operators (`shl`, `shr`, `ashr`) now apply bitmasking to the right operand in the C/C++/VM/JS backends.
- Adds a new warning `--warning:ImplicitRangeConversion` that detects downsizing implicit conversions to range types (e.g., `int -> range[0..255]` or `range[1..256] -> range[0..255]`) that could cause runtime panics. Safe conversions like `range[0..255] -> range[0..65535]` and explicit casts do not trigger warnings. `int` to `Natural` and `Positive` conversions do not trigger warnings, which can be enabled with `--warning:systemRangeConversion`.
- Procedure compatibility also checks the backend representation of the
parameter and result types, not just their source-level shape. Use
`--legacy:procParamTypeBackendAliases` to restore the older behavior.
## Standard library additions and changes
[//]: # "Additions:"
- Added `system.readRawDataStable`, a companion to `readRawData` that returns a
raw `ptr UncheckedArray[char]` into a string's character data which stays valid
across moves and copies of the string value. It is available under every string
implementation (refc, ARC/ORC and `--strings:sso`) with the same signature, so
code can pin an interior buffer pointer today and be ready for `--strings:sso`
without `when declared` guards. Under `--strings:sso` it promotes a small inline
string to its heap representation first; under the other implementations the data
is already heap-resident, so it is equivalent to `readRawData`.
- `setutils.symmetricDifference` along with its operator version
`` setutils.`-+-` `` and in-place version `setutils.toggle` have been added
to more efficiently calculate the symmetric difference of bitsets.
- `strutils.multiReplace` overload for character set replacements in a single pass.
Useful for string sanitation. Follows existing multiReplace semantics.
- `std/files` adds:
- Exports `CopyFlag` enum and `FilePermission` type for fine-grained control of file operations
- New file operation procs with `Path` support:
- `getFilePermissions`, `setFilePermissions` for managing permissions
- `tryRemoveFile` for file deletion
- `copyFile` with configurable buffer size and symlink handling
- `copyFileWithPermissions` to preserve file attributes
- `copyFileToDir` for copying files into directories
- `std/dirs` adds:
- New directory operation procs with `Path` support:
- `copyDir` with special file handling options
- `copyDirWithPermissions` to recursively preserve attributes
- `system.setLenUninit` now supports refc, JS and VM backends.
- `system.setLenUninit` for the `string` type. Allows setting length without initializing new memory on growth.
- `std/parseopt` now supports multiple parser modes via a `CliMode` enum.
Modes include `Nim` (default, fully compatible) and two new experimental modes:
`Lax` and `Gnu` for different option parsing behaviors.
- `std/symlinks.expandSymlink` now supports Windows symlinks and junctions with
POSIX-like single-hop `readlink` semantics.
- `std/nre2` is added to replace deprecated NRE.
- `system.typeof` adds a new parameter `modifierMode` to specify how type modifiers are handled.
[//]: # "Changes:"
- `std/math` The `^` symbol now supports floating-point as exponent in addition to the Natural type.
- `min`, `max`, and `sequtils`' `minIndex`, `maxIndex` and `minmax` for `openArray`s now accept a comparison function.
- `system.substr` implementation now uses `copymem` (wrapped C `memcpy`) for copying data, if available at compilation.
- `system.newStringUninit` is now considered free of side-effects allowing it to be used with `--experimental:strictFuncs`.
- `std/re` and `std/nre` are deprecated as PCRE library is obsolete.
Use https://github.com/nitely/nim-regex or `std/nre2`.
See: https://github.com/nim-lang/Nim/issues/23668.
- `std/pegs` now correctly lexes UTF-8 bytes inside bare identifier-style
terminals, so case-insensitive matching of non-ASCII terms (e.g. ``\i café``)
works without single-quoting.
- `std/uri`: The `?` operator now appends query parameters to an existing query
string instead of replacing it. Fixes [#19782](https://github.com/nim-lang/Nim/issues/19782).
## Language changes
@@ -137,24 +75,9 @@ parameter and result types, not just their source-level shape. Use
See the [experimental manual](https://nim-lang.github.io/Nim/manual_experimental.html#typeminusbound-overloads)
for more information.
- Seven more Unicode characters are now parsed as operators, implementing the RFC
https://github.com/nim-lang/RFCs/issues/571: `⟑ ⟇ ⩓ ⩔ ■ □ ☆`. They all have the
same priority as `*` (multiplication). As with the other Unicode operators, Nim
only lexes them; their meaning is up to user code.
## Compiler changes
- Fixed a bug where `sizeof(T)` inside a `typedesc` template called from a generic type's
`when` clause would error with "'sizeof' requires '.importc' types to be '.completeStruct'".
The issue was that `hasValuelessStatics` in `semtypinst.nim` didn't recognize
`tyTypeDesc(tyGenericParam)` as an unresolved generic parameter.
## Tool changes
- Added `--raw` flag when generating JSON docs to not render markup.
- Added `--stdinfile` flag to name of the file used when running program from stdin (defaults to `stdinfile.nim`)
- Added `--styleCheck:warning` flag to treat style check violations as warnings.
## Documentation changes
- Added documentation for the `completeStruct` pragma in the manual.

View File

@@ -21,49 +21,6 @@ type
TAnalysisResult* = enum
arNo, arMaybe, arYes
PartFlag* = enum
pfStructural ## use structural prefix-chain detection and tree-walk
pfBidirectional ## also check reverse direction per field in nkObjConstr
proc isCompileTimeOnlyNode(n: PNode): bool {.inline.} =
## `typeof` and typedesc/static values describe types at compile time; they
## do not read the runtime location that alias analysis is protecting.
n.kind == nkTypeOfExpr or (n.typ != nil and n.typ.isCompileTimeOnly)
func sameLocation(a, b: PNode): bool =
template sameConstIndex(a, b: PNode): bool =
a.kind in nkLiterals and b.kind in nkLiterals and a.intVal == b.intVal
var a = a
var b = b
while a.kind in {nkHiddenStdConv, nkHiddenSubConv, nkConv}: a = a[1]
while b.kind in {nkHiddenStdConv, nkHiddenSubConv, nkConv}: b = b[1]
if a.kind != b.kind: return false
case a.kind
of nkSym: result = a.sym.id == b.sym.id
of nkDotExpr, nkCheckedFieldExpr:
result = a[1].kind == nkSym and b[1].kind == nkSym and
sameLocation(a[0], b[0]) and a[1].sym.id == b[1].sym.id
of nkBracketExpr:
result = sameLocation(a[0], b[0]) and sameConstIndex(a[1], b[1])
of nkObjUpConv, nkObjDownConv, nkDerefExpr, nkHiddenDeref:
result = sameLocation(a[0], b[0])
else: result = false
proc isAccessorPrefixOf(a, b: PNode): bool =
var cur = b
while cur.kind in {nkDotExpr, nkBracketExpr, nkCheckedFieldExpr, nkObjUpConv,
nkObjDownConv, nkHiddenDeref, nkDerefExpr,
nkHiddenStdConv, nkHiddenSubConv, nkConv}:
if sameLocation(cur, a): return true
case cur.kind
of nkDotExpr, nkBracketExpr, nkCheckedFieldExpr, nkObjUpConv, nkObjDownConv,
nkHiddenDeref, nkDerefExpr:
cur = cur[0]
of nkHiddenStdConv, nkHiddenSubConv, nkConv:
cur = cur[1]
else: discard
result = sameLocation(cur, a)
proc isPartOfAux(a, b: PType, marker: var IntSet): TAnalysisResult
proc isPartOfAux(n: PNode, b: PType, marker: var IntSet): TAnalysisResult =
@@ -113,28 +70,14 @@ proc isPartOf(a, b: PType): TAnalysisResult =
# watch out: parameters reversed because I'm too lazy to change the code...
result = isPartOfAux(b, a, marker)
proc isPartOf*(a, b: PNode; flags: set[PartFlag] = {}): TAnalysisResult =
## Checks if location `a` can be part of location `b`: i.e. whether writing to
## `b` could affect what `a` reads. We treat seqs and strings as pointers
## because the code gen often just passes them as such.
proc isPartOf*(a, b: PNode): TAnalysisResult =
## checks if location `a` can be part of location `b`. We treat seqs and
## strings as pointers because the code gen often just passes them as such.
##
## Note: `a` can only be part of `b`, if `a`'s type can be part of `b`'s
## type. Since however type analysis is more expensive, we perform it only
## if necessary.
##
## When `pfStructural` is set additional aliasing is detected:
## * a structural prefix of an accessor chain is considered part of it
## (e.g. `x.f <| x.f.g`). Normally `x.f !<| x.f.g` because the
## same-kind `nkDotExpr` comparison treats the differing field names as
## siblings, but `pfStructural` walks the chain to recognise the
## relationship.
## * Unrecognised node kinds are traversed recursively.
##
## When `pfBidirectional` is set:
## * In `nkObjConstr` the reverse direction `isPartOf(value, a)` is also
## checked per field value so that reads hidden behind calls/closures
## are detected.
##
## cases:
##
## YES-cases:
@@ -143,14 +86,13 @@ proc isPartOf*(a, b: PNode; flags: set[PartFlag] = {}): TAnalysisResult =
## x[] <| x
## x[i] <| x
## x.f <| x
## x.f <| x.f.g # when pfStructural (prefix chain)
## ```
##
## NO-cases:
## ```
## x !<| y # depending on type and symbol kind
## x[constA] !<| x[constB]
## x.f !<| x.g # sibling fields at same level
## x.f !<| x.g
## x.f !<| y.f iff x !<= y
## ```
##
@@ -162,13 +104,10 @@ proc isPartOf*(a, b: PNode; flags: set[PartFlag] = {}): TAnalysisResult =
##
## x[] ?<| y depending on type
## ```
if a.isCompileTimeOnlyNode or b.isCompileTimeOnlyNode:
return arNo
if a.kind == b.kind:
case a.kind
of nkSym:
const varKinds = {skVar, skTemp, skResult, skProc, skFunc}
const varKinds = {skVar, skTemp, skProc, skFunc}
# same symbol: aliasing:
if a.sym.id == b.sym.id: result = arYes
elif a.sym.kind in varKinds or b.sym.kind in varKinds:
@@ -182,7 +121,7 @@ proc isPartOf*(a, b: PNode; flags: set[PartFlag] = {}): TAnalysisResult =
else:
result = arNo
of nkBracketExpr:
result = isPartOf(a[0], b[0], flags)
result = isPartOf(a[0], b[0])
if a.len >= 2 and b.len >= 2:
# array accesses:
if result == arYes and isDeepConstExpr(a[1]) and isDeepConstExpr(b[1]):
@@ -192,11 +131,7 @@ proc isPartOf*(a, b: PNode; flags: set[PartFlag] = {}): TAnalysisResult =
var y = if b[1].kind == nkHiddenStdConv: b[1][1] else: b[1]
if sameValue(x, y): result = arYes
elif pfStructural in flags and isAccessorPrefixOf(a, b):
result = arYes
else: result = arNo
elif pfStructural in flags and isAccessorPrefixOf(a, b):
result = arYes
# else: maybe and no are accurate
else:
# pointer derefs:
@@ -204,25 +139,22 @@ proc isPartOf*(a, b: PNode; flags: set[PartFlag] = {}): TAnalysisResult =
if isPartOf(a.typ, b.typ) != arNo: result = arMaybe
of nkDotExpr:
result = isPartOf(a[0], b[0], flags)
result = isPartOf(a[0], b[0])
if result != arNo:
# if the fields are different, it's not the same location
if a[1].sym.id != b[1].sym.id:
if pfStructural in flags and isAccessorPrefixOf(a, b):
result = arYes
else:
result = arNo
result = arNo
of nkHiddenDeref, nkDerefExpr:
result = isPartOf(a[0], b[0], flags)
result = isPartOf(a[0], b[0])
# weaken because of indirection:
if result != arYes:
if isPartOf(a.typ, b.typ) != arNo: result = arMaybe
of nkHiddenStdConv, nkHiddenSubConv, nkConv:
result = isPartOf(a[1], b[1], flags)
result = isPartOf(a[1], b[1])
of nkObjUpConv, nkObjDownConv, nkCheckedFieldExpr:
result = isPartOf(a[0], b[0], flags)
result = isPartOf(a[0], b[0])
else: result = arNo
# Calls return a new location, so a default of ``arNo`` is fine.
else:
@@ -235,31 +167,31 @@ proc isPartOf*(a, b: PNode; flags: set[PartFlag] = {}): TAnalysisResult =
case b.kind
of Ix0Kinds:
# a* !<| b.f iff a* !<| b
result = isPartOf(a, b[0], flags)
result = isPartOf(a, b[0])
of DerefKinds:
# a* !<| b[] iff
result = arNo
if isPartOf(a.typ, b.typ) != arNo:
result = isPartOf(a, b[0], flags)
result = isPartOf(a, b[0])
if result == arNo: result = arMaybe
of Ix1Kinds:
# a* !<| T(b) iff a* !<| b
result = isPartOf(a, b[1], flags)
result = isPartOf(a, b[1])
of nkSym:
# b is an atom, so we have to check a:
case a.kind
of Ix0Kinds:
# a.f !<| b* iff a.f !<| b*
result = isPartOf(a[0], b, flags)
result = isPartOf(a[0], b)
of Ix1Kinds:
result = isPartOf(a[1], b, flags)
result = isPartOf(a[1], b)
of DerefKinds:
if isPartOf(a.typ, b.typ) != arNo:
result = isPartOf(a[0], b, flags)
result = isPartOf(a[0], b)
if result == arNo: result = arMaybe
else:
result = arNo
@@ -267,34 +199,20 @@ proc isPartOf*(a, b: PNode; flags: set[PartFlag] = {}): TAnalysisResult =
of nkObjConstr:
result = arNo
for i in 1..<b.len:
let res = isPartOf(a, b[i][1], flags)
let res = isPartOf(a, b[i][1])
if res != arNo:
result = res
if res == arYes: break
if pfBidirectional in flags:
let res2 = isPartOf(b[i][1], a, {pfStructural})
if res2 != arNo:
result = res2
if res2 == arYes: break
of nkCallKinds:
result = arNo
for i in 1..<b.len:
# A call such as `fill(typeof(result.f))` has a compile-time-only
# argument. It must not make the object constructor look aliased with
# `result.f`; runtime arguments remain subject to the normal analysis.
if b[i].isCompileTimeOnlyNode:
continue
let res = isPartOf(a, b[i], flags)
let res = isPartOf(a, b[i])
if res != arNo:
result = res
if res == arYes: break
of nkBracket:
if b.len > 0:
result = isPartOf(a, b[0], flags)
result = isPartOf(a, b[0])
else:
result = arNo
else:
if pfStructural in flags:
for i in 0..<b.safeLen:
if isPartOf(a, b[i], flags) != arNo: return arMaybe
result = arNo
else: result = arNo

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@@ -68,6 +68,8 @@ template mdbg*: bool {.deprecated.} =
# ---------------------------------------------------------------------------
proc lookupInRecord*(n: PNode, field: PIdent): PSym
proc mustRehash*(length, counter: int): bool
proc nextTry*(h, maxHash: Hash): Hash {.inline.}
# ------------- table[int, int] ---------------------------------------------
const
@@ -214,6 +216,10 @@ proc getNamedParamFromList*(list: PNode, ident: PIdent): PSym =
proc hashNode(p: RootRef): Hash =
result = hash(cast[pointer](p))
proc mustRehash(length, counter: int): bool =
assert(length > counter)
result = (length * 2 < counter * 3) or (length - counter < 4)
import std/tables
const backrefStyle = "\e[90m"
@@ -478,6 +484,12 @@ proc debug(n: PNode; conf: ConfigRef) =
this.value(n)
echo($this.res)
proc nextTry(h, maxHash: Hash): Hash {.inline.} =
result = ((5 * h) + 1) and maxHash
# For any initial h in range(maxHash), repeating that maxHash times
# generates each int in range(maxHash) exactly once (see any text on
# random-number generation for proof).
proc objectSetContains*(t: TObjectSet, obj: RootRef): bool =
# returns true whether n is in t
var h: Hash = hashNode(obj) and high(t.data) # start with real hash value
@@ -525,15 +537,101 @@ proc objectSetContainsOrIncl*(t: var TObjectSet, obj: RootRef): bool =
inc(t.counter)
result = false
proc strTableContains*(t: TStrTable, n: PSym): bool =
var h: Hash = n.name.h and high(t.data) # start with real hash value
while t.data[h] != nil:
if (t.data[h] == n):
return true
h = nextTry(h, high(t.data))
result = false
proc strTableRawInsert(data: var seq[PSym], n: PSym) =
var h: Hash = n.name.h and high(data)
while data[h] != nil:
if data[h] == n:
# allowed for 'export' feature:
#InternalError(n.info, "StrTableRawInsert: " & n.name.s)
return
h = nextTry(h, high(data))
assert(data[h] == nil)
data[h] = n
proc symTabReplaceRaw(data: var seq[PSym], prevSym: PSym, newSym: PSym) =
assert prevSym.name.h == newSym.name.h
var h: Hash = prevSym.name.h and high(data)
while data[h] != nil:
if data[h] == prevSym:
data[h] = newSym
return
h = nextTry(h, high(data))
assert false
proc symTabReplace*(t: var TStrTable, prevSym: PSym, newSym: PSym) =
symTabReplaceRaw(t.data, prevSym, newSym)
proc strTableEnlarge(t: var TStrTable) =
var n: seq[PSym]
newSeq(n, t.data.len * GrowthFactor)
for i in 0..high(t.data):
if t.data[i] != nil: strTableRawInsert(n, t.data[i])
swap(t.data, n)
proc strTableAdd*(t: var TStrTable, n: PSym) =
if mustRehash(t.data.len, t.counter): strTableEnlarge(t)
strTableRawInsert(t.data, n)
inc(t.counter)
proc strTableInclReportConflict*(t: var TStrTable, n: PSym;
onConflictKeepOld = false): PSym =
# if `t` has a conflicting symbol (same identifier as `n`), return it
# otherwise return `nil`. Incl `n` to `t` unless `onConflictKeepOld = true`
# and a conflict was found.
assert n.name != nil
var h: Hash = n.name.h and high(t.data)
var replaceSlot = -1
while true:
var it = t.data[h]
if it == nil: break
# Semantic checking can happen multiple times thanks to templates
# and overloading: (var x=@[]; x).mapIt(it).
# So it is possible the very same sym is added multiple
# times to the symbol table which we allow here with the 'it == n' check.
if it.name.id == n.name.id:
if it == n: return nil
replaceSlot = h
h = nextTry(h, high(t.data))
if replaceSlot >= 0:
result = t.data[replaceSlot] # found it
if not onConflictKeepOld:
t.data[replaceSlot] = n # overwrite it with newer definition!
return result # but return the old one
elif mustRehash(t.data.len, t.counter):
strTableEnlarge(t)
strTableRawInsert(t.data, n)
else:
assert(t.data[h] == nil)
t.data[h] = n
inc(t.counter)
result = nil
proc strTableIncl*(t: var TStrTable, n: PSym;
onConflictKeepOld = false): bool {.discardable.} =
result = strTableInclReportConflict(t, n, onConflictKeepOld) != nil
proc strTableGet*(t: TStrTable, name: PIdent): PSym =
var h: Hash = name.h and high(t.data)
while true:
result = t.data[h]
if result == nil: break
if result.name.id == name.id: break
h = nextTry(h, high(t.data))
type
TIdentIter* = object # iterator over all syms with same identifier
h*: Hash # current hash
name* {.cursor.}: PIdent
name*: PIdent
# String tables are always initialized with non-empty, power-of-two storage,
# and every probe is masked by `high(tab.data)`.
{.push boundChecks: off.}
proc nextIdentIter*(ti: var TIdentIter, tab: TStrTable): PSym =
# hot spots
var h = ti.h and high(tab.data)
@@ -551,7 +649,6 @@ proc nextIdentIter*(ti: var TIdentIter, tab: TStrTable): PSym =
else:
result = nil
ti.h = nextTry(h, high(tab.data))
{.pop.}
proc initIdentIter*(ti: var TIdentIter, tab: TStrTable, s: PIdent): PSym =
ti.h = s.h
@@ -616,70 +713,6 @@ iterator items*(tab: TStrTable): PSym =
yield s
s = nextIter(it, tab)
proc isNil(x: ItemId): bool {.inline.} =
x.module == 0 and x.item == 0
proc hasEmptySlot[T](data: TIdPairSeq[T]): bool =
for h in 0..high(data):
if isNil(data[h].key):
return true
result = false
proc idTableRawGet[T](t: TIdTable[T], key: int): int =
var h: Hash
h = key and high(t.data) # start with real hash value
while not isNil(t.data[h].key):
if toId(t.data[h].key) == key:
return h
h = nextTry(h, high(t.data))
result = - 1
proc getOrDefault*[T](t: TIdTable[T], key: ItemId): T =
var index = idTableRawGet(t, toId(key))
if index >= 0: result = t.data[index].val
else: result = default(T)
template idTableGet*[T](t: TIdTable[T], key: PType | PSym): T =
getOrDefault(t, key.itemId)
proc idTableRawInsert[T](data: var TIdPairSeq[T], key: ItemId, val: T) =
var h: Hash
let keyId = toId(key)
h = keyId and high(data)
while not isNil(data[h].key):
assert(toId(data[h].key) != keyId)
h = nextTry(h, high(data))
assert(isNil(data[h].key))
data[h].key = key
data[h].val = val
proc `[]=`*[T](t: var TIdTable[T], key: ItemId, val: T) =
var
index: int
n: TIdPairSeq[T]
index = idTableRawGet(t, toId(key))
if index >= 0:
assert(not isNil(t.data[index].key))
t.data[index].val = val
else:
if mustRehash(t.data.len, t.counter):
newSeq(n, t.data.len * GrowthFactor)
for i in 0..high(t.data):
if not isNil(t.data[i].key):
idTableRawInsert(n, t.data[i].key, t.data[i].val)
assert(hasEmptySlot(n))
swap(t.data, n)
idTableRawInsert(t.data, key, val)
inc(t.counter)
template idTablePut*[T](t: var TIdTable[T], key: PType | PSym, val: T) =
t[key.itemId] = val
iterator idTablePairs*[T](t: TIdTable[T]): tuple[key: ItemId, val: T] =
for i in 0..high(t.data):
if not isNil(t.data[i].key):
yield (t.data[i].key, t.data[i].val)
proc initIITable(x: var TIITable) =
x.counter = 0
newSeq(x.data, StartSize)

File diff suppressed because it is too large Load Diff

View File

@@ -43,13 +43,13 @@ proc flagsToStr[T](flags: set[T]): string =
proc lineInfoToStr*(conf: ConfigRef; info: TLineInfo): string =
result = "["
result.addYamlString(toFilename(conf, info))
result.addf ", $1, $2]", toLinenumber(info), toColumn(info)
result.addf ", $1, $2]", [toLinenumber(info), toColumn(info)]
proc treeToYamlAux(res: var string; conf: ConfigRef; n: PNode; marker: var IntSet; nl: bool, indent, maxRecDepth: int)
proc symToYamlAux(res: var string; conf: ConfigRef; n: PSym; marker: var IntSet; nl: bool, indent, maxRecDepth: int)
proc typeToYamlAux(res: var string; conf: ConfigRef; n: PType; marker: var IntSet; nl: bool, indent, maxRecDepth: int)
proc treeToYamlAux(res: var string; conf: ConfigRef; n: PNode; marker: var IntSet; indent, maxRecDepth: int)
proc symToYamlAux(res: var string; conf: ConfigRef; n: PSym; marker: var IntSet; indent, maxRecDepth: int)
proc typeToYamlAux(res: var string; conf: ConfigRef; n: PType; marker: var IntSet; indent, maxRecDepth: int)
proc symToYamlAux(res: var string; conf: ConfigRef; n: PSym; marker: var IntSet; nl: bool, indent: int; maxRecDepth: int) =
proc symToYamlAux(res: var string; conf: ConfigRef; n: PSym; marker: var IntSet; indent: int; maxRecDepth: int) =
if n == nil:
res.add("null")
elif containsOrIncl(marker, n.id):
@@ -57,12 +57,10 @@ proc symToYamlAux(res: var string; conf: ConfigRef; n: PSym; marker: var IntSet;
else:
let istr = spaces(indent * 4)
if nl:
res.addf("\n$1", istr)
res.addf("kind: $1", [makeYamlString($n.kind)])
res.addf("\n$1name: $2", [istr, makeYamlString(n.name.s)])
res.addf("\n$1typ: ", [istr])
res.typeToYamlAux(conf, n.typ, marker, true, indent + 1, maxRecDepth - 1)
res.typeToYamlAux(conf, n.typ, marker, indent + 1, maxRecDepth - 1)
if conf != nil:
# if we don't pass the config, we probably don't care about the line info
res.addf("\n$1info: $2", [istr, lineInfoToStr(conf, n.info)])
@@ -70,7 +68,7 @@ proc symToYamlAux(res: var string; conf: ConfigRef; n: PSym; marker: var IntSet;
res.addf("\n$1flags: $2", [istr, flagsToStr(n.flags)])
res.addf("\n$1magic: $2", [istr, makeYamlString($n.magic)])
res.addf("\n$1ast: ", [istr])
res.treeToYamlAux(conf, n.ast, marker, true, indent + 1, maxRecDepth - 1)
res.treeToYamlAux(conf, n.ast, marker, indent + 1, maxRecDepth - 1)
res.addf("\n$1options: $2", [istr, flagsToStr(n.options)])
res.addf("\n$1position: $2", [istr, $n.position])
res.addf("\n$1k: $2", [istr, makeYamlString($n.loc.k)])
@@ -78,57 +76,53 @@ proc symToYamlAux(res: var string; conf: ConfigRef; n: PSym; marker: var IntSet;
if card(n.loc.flags) > 0:
res.addf("\n$1flags: $2", [istr, makeYamlString($n.loc.flags)])
res.addf("\n$1snippet: $2", [istr, n.loc.snippet])
res.addf("\n$1lode: ", [istr])
res.treeToYamlAux(conf, n.loc.lode, marker, true, indent + 1, maxRecDepth - 1)
res.addf("\n$1lode: $2", [istr])
res.treeToYamlAux(conf, n.loc.lode, marker, indent + 1, maxRecDepth - 1)
proc typeToYamlAux(res: var string; conf: ConfigRef; n: PType; marker: var IntSet; nl: bool, indent: int; maxRecDepth: int) =
proc typeToYamlAux(res: var string; conf: ConfigRef; n: PType; marker: var IntSet; indent: int; maxRecDepth: int) =
if n == nil:
res.add("null")
elif containsOrIncl(marker, n.id):
res.addf "\"$1 @$2\"" % [$n.kind, strutils.toHex(cast[uint](n), sizeof(n) * 2)]
else:
let istr = spaces(indent * 4)
if nl:
res.addf("\n$1", istr)
res.addf("kind: $2", [istr, makeYamlString($n.kind)])
res.addf("\n$1sym: ", istr)
res.symToYamlAux(conf, n.sym, marker, true, indent + 1, maxRecDepth - 1)
res.addf("\n$1n: ", istr)
res.treeToYamlAux(conf, n.n, marker, true, indent + 1, maxRecDepth - 1)
res.addf("\n$1sym: ")
res.symToYamlAux(conf, n.sym, marker, indent + 1, maxRecDepth - 1)
res.addf("\n$1n: ")
res.treeToYamlAux(conf, n.n, marker, indent + 1, maxRecDepth - 1)
if card(n.flags) > 0:
res.addf("\n$1flags: $2", [istr, flagsToStr(n.flags)])
res.addf("\n$1callconv: $2", [istr, makeYamlString($n.callConv)])
res.addf("\n$1size: $2", [istr, $(n.size)])
res.addf("\n$1align: $2", [istr, $(n.align)])
if n.hasElementType:
res.addf("\n$1sons:", istr)
res.addf("\n$1sons:")
for a in n.kids:
res.addf("\n$1 - ", istr)
res.typeToYamlAux(conf, a, marker, false, indent + 1, maxRecDepth - 1)
res.addf("\n - ")
res.typeToYamlAux(conf, a, marker, indent + 1, maxRecDepth - 1)
proc treeToYamlAux(res: var string; conf: ConfigRef; n: PNode; marker: var IntSet; nl: bool, indent: int;
proc treeToYamlAux(res: var string; conf: ConfigRef; n: PNode; marker: var IntSet; indent: int;
maxRecDepth: int) =
if n == nil:
res.add("null")
else:
var istr = spaces(indent * 4)
if nl:
res.addf("\n$1", istr)
res.addf("kind: $1" % [makeYamlString($n.kind)])
if maxRecDepth != 0:
if conf != nil:
res.addf("\n$1info: $2", [istr, lineInfoToStr(conf, n.info)])
case n.kind
of nkCharLit .. nkUInt64Lit:
of nkCharLit .. nkInt64Lit:
res.addf("\n$1intVal: $2", [istr, $(n.intVal)])
of nkFloatLit .. nkFloat128Lit:
of nkFloatLit, nkFloat32Lit, nkFloat64Lit:
res.addf("\n$1floatVal: $2", [istr, n.floatVal.toStrMaxPrecision])
of nkStrLit .. nkTripleStrLit:
res.addf("\n$1strVal: $2", [istr, makeYamlString(n.strVal)])
of nkSym:
res.addf("\n$1sym: ", [istr])
res.symToYamlAux(conf, n.sym, marker, true, indent + 1, maxRecDepth)
res.symToYamlAux(conf, n.sym, marker, indent + 1, maxRecDepth)
of nkIdent:
if n.ident != nil:
res.addf("\n$1ident: $2", [istr, makeYamlString(n.ident.s)])
@@ -139,22 +133,22 @@ proc treeToYamlAux(res: var string; conf: ConfigRef; n: PNode; marker: var IntSe
res.addf("\n$1sons: ", [istr])
for i in 0 ..< n.len:
res.addf("\n$1 - ", [istr])
res.treeToYamlAux(conf, n[i], marker, false, indent + 1, maxRecDepth - 1)
res.treeToYamlAux(conf, n[i], marker, indent + 1, maxRecDepth - 1)
if n.typ != nil:
res.addf("\n$1typ: ", [istr])
res.typeToYamlAux(conf, n.typ, marker, true, indent + 1, maxRecDepth)
res.typeToYamlAux(conf, n.typ, marker, indent + 1, maxRecDepth)
proc treeToYaml*(conf: ConfigRef; n: PNode; indent: int = 0; maxRecDepth: int = -1): string =
var marker = initIntSet()
result = newStringOfCap(1024)
result.treeToYamlAux(conf, n, marker, false, indent, maxRecDepth)
result.treeToYamlAux(conf, n, marker, indent, maxRecDepth)
proc typeToYaml*(conf: ConfigRef; n: PType; indent: int = 0; maxRecDepth: int = -1): string =
var marker = initIntSet()
result = newStringOfCap(1024)
result.typeToYamlAux(conf, n, marker, false, indent, maxRecDepth)
result.typeToYamlAux(conf, n, marker, indent, maxRecDepth)
proc symToYaml*(conf: ConfigRef; n: PSym; indent: int = 0; maxRecDepth: int = -1): string =
var marker = initIntSet()
result = newStringOfCap(1024)
result.symToYamlAux(conf, n, marker, false, indent, maxRecDepth)
result.symToYamlAux(conf, n, marker, indent, maxRecDepth)

View File

@@ -69,7 +69,7 @@ proc copyHalf[Key, Val](h, result: Node[Key, Val]) =
result.links[j] = h.links[Mhalf + j]
else:
for j in 0..<Mhalf:
when defined(gcArc) or defined(gcOrc) or defined(gcAtomicArc) or defined(gcYrc):
when defined(gcArc) or defined(gcOrc) or defined(gcAtomicArc):
result.vals[j] = move h.vals[Mhalf + j]
else:
shallowCopy(result.vals[j], h.vals[Mhalf + j])
@@ -92,7 +92,7 @@ proc insert[Key, Val](h: Node[Key, Val], key: Key, val: Val): Node[Key, Val] =
if less(key, h.keys[j]): break
inc j
for i in countdown(h.entries, j+1):
when defined(gcArc) or defined(gcOrc) or defined(gcAtomicArc) or defined(gcYrc):
when defined(gcArc) or defined(gcOrc) or defined(gcAtomicArc):
h.vals[i] = move h.vals[i-1]
else:
shallowCopy(h.vals[i], h.vals[i-1])

121
compiler/cbuilder.nim Normal file
View File

@@ -0,0 +1,121 @@
type
Snippet = string
Builder = string
template newBuilder(s: string): Builder =
s
proc addField(obj: var Builder; name, typ: Snippet) =
obj.add('\t')
obj.add(typ)
obj.add(" ")
obj.add(name)
obj.add(";\n")
proc addField(obj: var Builder; field: PSym; name, typ: Snippet; isFlexArray: bool; initializer: Snippet) =
obj.add('\t')
if field.alignment > 0:
obj.add("NIM_ALIGN(")
obj.addInt(field.alignment)
obj.add(") ")
obj.add(typ)
if sfNoalias in field.flags:
obj.add(" NIM_NOALIAS")
obj.add(" ")
obj.add(name)
if isFlexArray:
obj.add("[SEQ_DECL_SIZE]")
if field.bitsize != 0:
obj.add(":")
obj.addInt(field.bitsize)
if initializer.len != 0:
obj.add(initializer)
obj.add(";\n")
proc structOrUnion(t: PType): Snippet =
let t = t.skipTypes({tyAlias, tySink})
if tfUnion in t.flags: "union"
else: "struct"
proc ptrType(t: Snippet): Snippet =
t & "*"
template addStruct(obj: var Builder; m: BModule; typ: PType; name: string; baseType: string; body: typed) =
if tfPacked in typ.flags:
if hasAttribute in CC[m.config.cCompiler].props:
obj.add(structOrUnion(typ))
obj.add(" __attribute__((__packed__))")
else:
obj.add("#pragma pack(push, 1)\n")
obj.add(structOrUnion(typ))
else:
obj.add(structOrUnion(typ))
obj.add(" ")
obj.add(name)
type BaseClassKind = enum
bcNone, bcCppInherit, bcSupField, bcNoneRtti, bcNoneTinyRtti
var baseKind = bcNone
if typ.kind == tyObject:
if typ.baseClass == nil:
if lacksMTypeField(typ):
baseKind = bcNone
elif optTinyRtti in m.config.globalOptions:
baseKind = bcNoneTinyRtti
else:
baseKind = bcNoneRtti
elif m.compileToCpp:
baseKind = bcCppInherit
else:
baseKind = bcSupField
if baseKind == bcCppInherit:
obj.add(" : public ")
obj.add(baseType)
obj.add(" ")
obj.add("{\n")
let currLen = obj.len
case baseKind
of bcNone:
# rest of the options add a field or don't need it due to inheritance,
# we need to add the dummy field for uncheckedarray ahead of time
# so that it remains trailing
if typ.itemId notin m.g.graph.memberProcsPerType and
typ.n != nil and typ.n.len == 1 and typ.n[0].kind == nkSym and
typ.n[0].sym.typ.skipTypes(abstractInst).kind == tyUncheckedArray:
# only consists of flexible array field, add *initial* dummy field
obj.addField(name = "dummy", typ = "char")
of bcCppInherit: discard
of bcNoneRtti:
obj.addField(name = "m_type", typ = ptrType(cgsymValue(m, "TNimType")))
of bcNoneTinyRtti:
obj.addField(name = "m_type", typ = ptrType(cgsymValue(m, "TNimTypeV2")))
of bcSupField:
obj.addField(name = "Sup", typ = baseType)
body
if baseKind == bcNone and currLen == obj.len and typ.itemId notin m.g.graph.memberProcsPerType:
# no fields were added, add dummy field
obj.addField(name = "dummy", typ = "char")
obj.add("};\n")
if tfPacked in typ.flags and hasAttribute notin CC[m.config.cCompiler].props:
result.add("#pragma pack(pop)\n")
template addFieldWithStructType(obj: var Builder; m: BModule; parentTyp: PType; fieldName: string, body: typed) =
## adds a field with a `struct { ... }` type, building it according to `body`
obj.add('\t')
if tfPacked in parentTyp.flags:
if hasAttribute in CC[m.config.cCompiler].props:
obj.add("struct __attribute__((__packed__)) {\n")
else:
obj.add("#pragma pack(push, 1)\nstruct {")
else:
obj.add("struct {\n")
body
obj.add("} ")
obj.add(fieldName)
obj.add(";\n")
if tfPacked in parentTyp.flags and hasAttribute notin CC[m.config.cCompiler].props:
result.add("#pragma pack(pop)\n")
template addAnonUnion(obj: var Builder; body: typed) =
obj.add "union{\n"
body
obj.add("};\n")

View File

@@ -1,164 +0,0 @@
import ropes, int128
type
Snippet* = string
Builder* = object
buf*: string
indents*: int
template newBuilder*(s: string): Builder =
Builder(buf: s)
proc extract*(builder: Builder): Snippet =
builder.buf
proc add*(builder: var Builder, s: string) =
builder.buf.add(s)
proc add*(builder: var Builder, s: char) =
builder.buf.add(s)
proc addNewline*(builder: var Builder) =
builder.add('\n')
for i in 0 ..< builder.indents:
builder.add('\t')
proc addLineEnd*(builder: var Builder, s: string) =
builder.add(s)
builder.addNewline()
proc addLineEndIndent*(builder: var Builder, s: string) =
inc builder.indents
builder.add(s)
builder.addNewline()
proc addDedent*(builder: var Builder, s: string) =
if builder.buf.len > 0 and builder.buf[^1] == '\t':
builder.buf.setLen(builder.buf.len - 1)
builder.add(s)
dec builder.indents
proc addLineEndDedent*(builder: var Builder, s: string) =
builder.addDedent(s)
builder.addNewline()
proc addLineComment*(builder: var Builder, comment: string) =
# probably no-op on nifc
builder.add("// ")
builder.add(comment)
builder.addNewline()
proc addIntValue*(builder: var Builder, val: int) =
builder.buf.addInt(val)
proc addIntValue*(builder: var Builder, val: int64) =
builder.buf.addInt(val)
proc addIntValue*(builder: var Builder, val: uint64) =
builder.buf.addInt(val)
proc addIntValue*(builder: var Builder, val: Int128) =
builder.buf.addInt128(val)
template cIntValue*(val: int): Snippet = $val
template cIntValue*(val: int64): Snippet = $val
template cIntValue*(val: uint64): Snippet = $val
template cIntValue*(val: Int128): Snippet = $val
template cUintValue*(val: uint): Snippet = $val & "U"
import std/formatfloat
proc addFloatValue*(builder: var Builder, val: float) =
builder.buf.addFloat(val)
template cFloatValue*(val: float): Snippet = $val
proc addInt64Literal*(result: var Builder; i: BiggestInt) =
if i > low(int64):
result.add "IL64($1)" % [rope(i)]
else:
result.add "(IL64(-9223372036854775807) - IL64(1))"
proc addUint64Literal*(result: var Builder; i: uint64) =
result.add rope($i & "ULL")
proc addIntLiteral*(result: var Builder; i: BiggestInt) =
if i > low(int32) and i <= high(int32):
result.addIntValue(i)
elif i == low(int32):
# Nim has the same bug for the same reasons :-)
result.add "(-2147483647 -1)"
elif i > low(int64):
result.add "IL64($1)" % [rope(i)]
else:
result.add "(IL64(-9223372036854775807) - IL64(1))"
proc addIntLiteral*(result: var Builder; i: Int128) =
addIntLiteral(result, toInt64(i))
proc cInt64Literal*(i: BiggestInt): Snippet =
if i > low(int64):
result = "IL64($1)" % [rope(i)]
else:
result = "(IL64(-9223372036854775807) - IL64(1))"
proc cUint64Literal*(i: uint64): Snippet =
result = $i & "ULL"
proc cIntLiteral*(i: BiggestInt): Snippet =
if i > low(int32) and i <= high(int32):
result = rope(i)
elif i == low(int32):
# Nim has the same bug for the same reasons :-)
result = "(-2147483647 -1)"
elif i > low(int64):
result = "IL64($1)" % [rope(i)]
else:
result = "(IL64(-9223372036854775807) - IL64(1))"
proc cIntLiteral*(i: Int128): Snippet =
result = cIntLiteral(toInt64(i))
const
NimInt* = "NI"
NimInt8* = "NI8"
NimInt16* = "NI16"
NimInt32* = "NI32"
NimInt64* = "NI64"
CInt* = "int"
NimUint* = "NU"
NimUint8* = "NU8"
NimUint16* = "NU16"
NimUint32* = "NU32"
NimUint64* = "NU64"
NimFloat* = "NF"
NimFloat32* = "NF32"
NimFloat64* = "NF64"
NimFloat128* = "NF128" # not actually defined
NimNan* = "NAN"
NimInf* = "INF"
NimBool* = "NIM_BOOL"
NimTrue* = "NIM_TRUE"
NimFalse* = "NIM_FALSE"
NimChar* = "NIM_CHAR"
CChar* = "char"
NimCstring* = "NCSTRING"
NimNil* = "NIM_NIL"
CNil* = "NULL"
NimStrlitFlag* = "NIM_STRLIT_FLAG"
CVoid* = "void"
CPointer* = "void*"
CConstPointer* = "NIM_CONST void*"
proc cIntType*(bits: BiggestInt): Snippet =
"NI" & $bits
proc cUintType*(bits: BiggestInt): Snippet =
"NU" & $bits
type
IfBuilderState* = enum
WaitingIf, WaitingElseIf, InBlock
IfBuilder* = object
state*: IfBuilderState

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@@ -1,668 +0,0 @@
type VarKind = enum
Local
Global
Threadvar
Const
AlwaysConst ## const even on C++
proc addVarHeader(builder: var Builder, kind: VarKind) =
## adds modifiers for given var kind:
## Local has no modifier
## Global has `static` modifier
## Const has `static NIM_CONST` modifier
## AlwaysConst has `static const` modifier (NIM_CONST is no-op on C++)
## Threadvar is unimplemented
case kind
of Local: discard
of Global:
builder.add("static ")
of Const:
builder.add("static NIM_CONST ")
of AlwaysConst:
builder.add("static const ")
of Threadvar:
doAssert false, "unimplemented"
proc addVar(builder: var Builder, kind: VarKind = Local, name: string, typ: Snippet, initializer: Snippet = "") =
## adds a variable declaration to the builder
builder.addVarHeader(kind)
builder.add(typ)
builder.add(" ")
builder.add(name)
if initializer.len != 0:
builder.add(" = ")
builder.add(initializer)
builder.addLineEnd(";")
template addVarWithType(builder: var Builder, kind: VarKind = Local, name: string, body: typed) =
## adds a variable declaration to the builder, with the `body` building the type
builder.addVarHeader(kind)
body
builder.add(" ")
builder.add(name)
builder.addLineEnd(";")
template addVarWithInitializer(builder: var Builder, kind: VarKind = Local, name: string,
typ: Snippet, initializerBody: typed) =
## adds a variable declaration to the builder, with
## `initializerBody` building the initializer. initializer must be provided
builder.addVarHeader(kind)
builder.add(typ)
builder.add(" ")
builder.add(name)
builder.add(" = ")
initializerBody
builder.addLineEnd(";")
template addVarWithTypeAndInitializer(builder: var Builder, kind: VarKind = Local, name: string,
typeBody, initializerBody: typed) =
## adds a variable declaration to the builder, with `typeBody` building the type, and
## `initializerBody` building the initializer. initializer must be provided
builder.addVarHeader(kind)
typeBody
builder.add(" ")
builder.add(name)
builder.add(" = ")
initializerBody
builder.addLineEnd(";")
proc addArrayVar(builder: var Builder, kind: VarKind = Local, name: string, elementType: Snippet, len: int, initializer: Snippet = "") =
## adds an array variable declaration to the builder
builder.addVarHeader(kind)
builder.add(elementType)
builder.add(" ")
builder.add(name)
builder.add("[")
builder.addIntValue(len)
builder.add("]")
if initializer.len != 0:
builder.add(" = ")
builder.add(initializer)
builder.addLineEnd(";")
template addArrayVarWithInitializer(builder: var Builder, kind: VarKind = Local, name: string, elementType: Snippet, len: int, body: typed) =
## adds an array variable declaration to the builder with the initializer built according to `body`
builder.addVarHeader(kind)
builder.add(elementType)
builder.add(" ")
builder.add(name)
builder.add("[")
builder.addIntValue(len)
builder.add("] = ")
body
builder.addLineEnd(";")
template addTypedef(builder: var Builder, name: string, typeBody: typed) =
## adds a typedef declaration to the builder with name `name` and type as
## built in `typeBody`
builder.add("typedef ")
typeBody
builder.add(" ")
builder.add(name)
builder.addLineEnd(";")
proc addProcTypedef(builder: var Builder, callConv: TCallingConvention, name: string, rettype, params: Snippet) =
builder.add("typedef ")
builder.add(CallingConvToStr[callConv])
builder.add("_PTR(")
builder.add(rettype)
builder.add(", ")
builder.add(name)
builder.add(")")
builder.add(params)
builder.addLineEnd(";")
template addArrayTypedef(builder: var Builder, name: string, len: BiggestInt, typeBody: typed) =
## adds an array typedef declaration to the builder with name `name`,
## length `len`, and element type as built in `typeBody`
builder.add("typedef ")
typeBody
builder.add(" ")
builder.add(name)
builder.add("[")
builder.addIntValue(len)
builder.addLineEnd("];")
type
StructInitializerKind = enum
siOrderedStruct ## struct constructor, but without named fields on C
siNamedStruct ## struct constructor, with named fields i.e. C99 designated initializer
siArray ## array constructor
siWrapper ## wrapper for a single field, generates it verbatim
StructInitializer = object
## context for building struct initializers, i.e. `{ field1, field2 }`
kind: StructInitializerKind
## if true, fields will not be named, instead values are placed in order
needsComma: bool
proc initStructInitializer(builder: var Builder, kind: StructInitializerKind): StructInitializer =
## starts building a struct initializer, i.e. braced initializer list
result = StructInitializer(kind: kind, needsComma: false)
if kind != siWrapper:
builder.add("{")
template addField(builder: var Builder, constr: var StructInitializer, name: string, valueBody: typed) =
## adds a field to a struct initializer, with the value built in `valueBody`
if constr.needsComma:
assert constr.kind != siWrapper, "wrapper constructor cannot have multiple fields"
builder.add(", ")
else:
constr.needsComma = true
case constr.kind
of siArray, siWrapper:
# no name, can just add value
valueBody
of siOrderedStruct:
# positional init - name not used in output (empty allowed for anonymous unions)
valueBody
of siNamedStruct:
# designated init - empty name for anonymous unions (skips .name = prefix)
if name.len != 0:
builder.add(".")
builder.add(name)
builder.add(" = ")
valueBody
proc finishStructInitializer(builder: var Builder, constr: StructInitializer) =
## finishes building a struct initializer
if constr.kind != siWrapper:
builder.add("}")
template addStructInitializer(builder: var Builder, constr: out StructInitializer, kind: StructInitializerKind, body: typed) =
## builds a struct initializer, i.e. `{ field1, field2 }`
## a `var StructInitializer` must be declared and passed as a parameter so
## that it can be used with `addField`
constr = builder.initStructInitializer(kind)
body
builder.finishStructInitializer(constr)
proc addField(obj: var Builder; name, typ: Snippet; isFlexArray: bool = false; initializer: Snippet = "") =
## adds a field inside a struct/union type
obj.add('\t')
obj.add(typ)
obj.add(" ")
obj.add(name)
if isFlexArray:
obj.add("[SEQ_DECL_SIZE]")
if initializer.len != 0:
obj.add(initializer)
obj.add(";\n")
proc addArrayField(obj: var Builder; name, elementType: Snippet; len: int; initializer: Snippet = "") =
## adds an array field inside a struct/union type
obj.add('\t')
obj.add(elementType)
obj.add(" ")
obj.add(name)
obj.add("[")
obj.addIntValue(len)
obj.add("]")
if initializer.len != 0:
obj.add(initializer)
obj.add(";\n")
proc addField(obj: var Builder; field: PSym; name, typ: Snippet; isFlexArray: bool = false; initializer: Snippet = "") =
## adds an field inside a struct/union type, based on an `skField` symbol
obj.add('\t')
if field.alignment > 0:
obj.add("NIM_ALIGN(")
obj.addIntValue(field.alignment)
obj.add(") ")
obj.add(typ)
if sfNoalias in field.flags:
obj.add(" NIM_NOALIAS")
obj.add(" ")
obj.add(name)
if isFlexArray:
obj.add("[SEQ_DECL_SIZE]")
if field.bitsize != 0:
obj.add(":")
obj.addIntValue(field.bitsize)
if initializer.len != 0:
obj.add(initializer)
obj.add(";\n")
proc addProcField(obj: var Builder, callConv: TCallingConvention, name: string, rettype, params: Snippet) =
obj.add(CallingConvToStr[callConv])
obj.add("_PTR(")
obj.add(rettype)
obj.add(", ")
obj.add(name)
obj.add(")")
obj.add(params)
obj.add(";\n")
type
BaseClassKind = enum
## denotes how and whether or not the base class/RTTI should be stored
bcNone, bcCppInherit, bcSupField, bcNoneRtti, bcNoneTinyRtti
StructBuilderInfo = object
## context for building `struct` types
baseKind: BaseClassKind
named: bool
preFieldsLen: int
proc structOrUnion(t: PType): Snippet =
let t = t.skipTypes({tyAlias, tySink})
if tfUnion in t.flags: "union"
else: "struct"
proc startSimpleStruct(obj: var Builder; m: BModule; name: string; baseType: Snippet): StructBuilderInfo =
result = StructBuilderInfo(baseKind: bcNone, named: name.len != 0)
obj.add("struct")
if result.named:
obj.add(" ")
obj.add(name)
if baseType.len != 0:
if m.compileToCpp:
result.baseKind = bcCppInherit
else:
result.baseKind = bcSupField
if result.baseKind == bcCppInherit:
obj.add(" : public ")
obj.add(baseType)
obj.add(" ")
obj.add("{\n")
result.preFieldsLen = obj.buf.len
if result.baseKind == bcSupField:
obj.addField(name = "Sup", typ = baseType)
proc finishSimpleStruct(obj: var Builder; m: BModule; info: StructBuilderInfo) =
if info.baseKind == bcNone and info.preFieldsLen == obj.buf.len:
# no fields were added, add dummy field
obj.addField(name = "dummy", typ = CChar)
if info.named:
obj.add("};\n")
else:
obj.add("}")
template addSimpleStruct(obj: var Builder; m: BModule; name: string; baseType: Snippet; body: typed) =
## builds a struct type not based on a Nim type with fields according to `body`,
## `name` can be empty to build as a type expression and not a statement
let info = startSimpleStruct(obj, m, name, baseType)
body
finishSimpleStruct(obj, m, info)
proc startStruct(obj: var Builder; m: BModule; t: PType; name: string; baseType: Snippet): StructBuilderInfo =
result = StructBuilderInfo(baseKind: bcNone, named: name.len != 0)
if tfPacked in t.flags:
if hasAttribute in CC[m.config.cCompiler].props:
obj.add(structOrUnion(t))
obj.add(" __attribute__((__packed__))")
else:
obj.add("#pragma pack(push, 1)\n")
obj.add(structOrUnion(t))
else:
obj.add(structOrUnion(t))
if result.named:
obj.add(" ")
obj.add(name)
if t.kind == tyObject:
if t.baseClass == nil:
if lacksMTypeField(t):
result.baseKind = bcNone
elif optTinyRtti in m.config.globalOptions:
result.baseKind = bcNoneTinyRtti
else:
result.baseKind = bcNoneRtti
elif m.compileToCpp:
result.baseKind = bcCppInherit
else:
result.baseKind = bcSupField
elif baseType.len != 0:
if m.compileToCpp:
result.baseKind = bcCppInherit
else:
result.baseKind = bcSupField
if result.baseKind == bcCppInherit:
obj.add(" : public ")
obj.add(baseType)
obj.add(" ")
obj.add("{\n")
result.preFieldsLen = obj.buf.len
case result.baseKind
of bcNone:
# rest of the options add a field or don't need it due to inheritance,
# we need to add the dummy field for uncheckedarray ahead of time
# so that it remains trailing
if t.itemId notin m.g.graph.memberProcsPerType and
t.n != nil and t.n.len == 1 and t.n[0].kind == nkSym and
t.n[0].sym.typ.skipTypes(abstractInst).kind == tyUncheckedArray:
# only consists of flexible array field, add *initial* dummy field
obj.addField(name = "dummy", typ = CChar)
of bcCppInherit: discard
of bcNoneRtti:
obj.addField(name = "m_type", typ = ptrType(cgsymValue(m, "TNimType")))
of bcNoneTinyRtti:
obj.addField(name = "m_type", typ = ptrType(cgsymValue(m, "TNimTypeV2")))
of bcSupField:
obj.addField(name = "Sup", typ = baseType)
proc finishStruct(obj: var Builder; m: BModule; t: PType; info: StructBuilderInfo) =
if info.baseKind == bcNone and info.preFieldsLen == obj.buf.len and
t.itemId notin m.g.graph.memberProcsPerType:
# no fields were added, add dummy field
obj.addField(name = "dummy", typ = CChar)
if info.named:
obj.add("};\n")
else:
obj.add("}")
if tfPacked in t.flags and hasAttribute notin CC[m.config.cCompiler].props:
obj.add("#pragma pack(pop)\n")
template addStruct(obj: var Builder; m: BModule; typ: PType; name: string; baseType: Snippet; body: typed) =
## builds a struct type directly based on `typ` with fields according to `body`,
## `name` can be empty to build as a type expression and not a statement
let info = startStruct(obj, m, typ, name, baseType)
body
finishStruct(obj, m, typ, info)
template addFieldWithStructType(obj: var Builder; m: BModule; parentTyp: PType; fieldName: string, body: typed) =
## adds a field with a `struct { ... }` type, building the fields according to `body`
obj.add('\t')
if tfPacked in parentTyp.flags:
if hasAttribute in CC[m.config.cCompiler].props:
obj.add("struct __attribute__((__packed__)) {\n")
else:
obj.add("#pragma pack(push, 1)\nstruct {")
else:
obj.add("struct {\n")
body
obj.add("} ")
obj.add(fieldName)
obj.add(";\n")
if tfPacked in parentTyp.flags and hasAttribute notin CC[m.config.cCompiler].props:
obj.add("#pragma pack(pop)\n")
template addAnonUnion(obj: var Builder; body: typed) =
## adds an anonymous union i.e. `union { ... };` with fields according to `body`
obj.add "union{\n"
body
obj.add("};\n")
template addUnionType(obj: var Builder; body: typed) =
## adds a union type i.e. `union { ... }` with fields according to `body`
obj.add "union{\n"
body
obj.add("}")
type DeclVisibility = enum
None
Extern
ExternC
ImportLib
ExportLib
ExportLibVar
Private
StaticProc
proc addVisibilityPrefix(builder: var Builder, visibility: DeclVisibility) =
# internal proc
case visibility
of None: discard
of Extern:
builder.add("extern ")
of ExternC:
builder.add("NIM_EXTERNC ")
of ImportLib:
builder.add("N_LIB_IMPORT ")
of ExportLib:
builder.add("N_LIB_EXPORT ")
of ExportLibVar:
builder.add("N_LIB_EXPORT_VAR ")
of Private:
builder.add("N_LIB_PRIVATE ")
of StaticProc:
builder.add("static ")
template addDeclWithVisibility(builder: var Builder, visibility: DeclVisibility, declBody: typed) =
## adds a declaration as in `declBody` with the given visibility
builder.addVisibilityPrefix(visibility)
declBody
type ProcParamBuilder = object
needsComma: bool
proc initProcParamBuilder(builder: var Builder): ProcParamBuilder =
result = ProcParamBuilder(needsComma: false)
builder.add("(")
proc finishProcParamBuilder(builder: var Builder, params: ProcParamBuilder) =
if params.needsComma:
builder.add(")")
else:
builder.add("void)")
template cgDeclFrmt*(s: PSym): string =
s.constraint.strVal
proc addParam(builder: var Builder, params: var ProcParamBuilder, name: string, typ: Snippet) =
if params.needsComma:
builder.add(", ")
else:
params.needsComma = true
builder.add(typ)
builder.add(" ")
builder.add(name)
proc addParam(builder: var Builder, params: var ProcParamBuilder, param: PSym, typ: Snippet) =
if params.needsComma:
builder.add(", ")
else:
params.needsComma = true
var modifiedTyp = typ
if sfNoalias in param.flags:
modifiedTyp.add(" NIM_NOALIAS")
if sfCodegenDecl notin param.flags:
builder.add(modifiedTyp)
builder.add(" ")
builder.add(param.loc.snippet)
else:
builder.add runtimeFormat(param.cgDeclFrmt, [modifiedTyp, param.loc.snippet])
proc addUnnamedParam(builder: var Builder, params: var ProcParamBuilder, typ: Snippet) =
if params.needsComma:
builder.add(", ")
else:
params.needsComma = true
builder.add(typ)
proc addProcTypedParam(builder: var Builder, paramBuilder: var ProcParamBuilder, callConv: TCallingConvention, name: string, rettype, params: Snippet) =
if paramBuilder.needsComma:
builder.add(", ")
else:
paramBuilder.needsComma = true
builder.add(CallingConvToStr[callConv])
builder.add("_PTR(")
builder.add(rettype)
builder.add(", ")
builder.add(name)
builder.add(")")
builder.add(params)
proc addVarargsParam(builder: var Builder, params: var ProcParamBuilder) =
# does not exist in NIFC, needs to be proc pragma
if params.needsComma:
builder.add(", ")
else:
params.needsComma = true
builder.add("...")
template addProcParams(builder: var Builder, params: out ProcParamBuilder, body: typed) =
params = initProcParamBuilder(builder)
body
finishProcParamBuilder(builder, params)
type SimpleProcParam = tuple
name, typ: string
proc cProcParams(params: varargs[SimpleProcParam]): Snippet =
if params.len == 0: return "(void)"
result = "("
for i in 0 ..< params.len:
if i != 0: result.add(", ")
result.add(params[i].typ)
if params[i].name.len != 0:
result.add(" ")
result.add(params[i].name)
result.add(")")
template addProcHeaderWithParams(builder: var Builder, callConv: TCallingConvention,
name: string, rettype: Snippet, paramBuilder: typed) =
# on nifc should build something like (proc name params type pragmas
# with no body given
# or enforce this with secondary builder object
builder.add(CallingConvToStr[callConv])
builder.add("(")
builder.add(rettype)
builder.add(", ")
builder.add(name)
builder.add(")")
paramBuilder
proc addProcHeader(builder: var Builder, callConv: TCallingConvention,
name: string, rettype, params: Snippet) =
# on nifc should build something like (proc name params type pragmas
# with no body given
# or enforce this with secondary builder object
addProcHeaderWithParams(builder, callConv, name, rettype):
builder.add(params)
proc addProcHeader(builder: var Builder, name: string, rettype, params: Snippet, isConstructor = false) =
# no callconv
builder.add(rettype)
builder.add(" ")
if isConstructor:
builder.add("__attribute__((constructor)) ")
builder.add(name)
builder.add(params)
proc addProcHeader(builder: var Builder, m: BModule, prc: PSym, name: string, params, rettype: Snippet, addAttributes: bool) =
# on nifc should build something like (proc name params type pragmas
# with no body given
# or enforce this with secondary builder object
let noreturn = isNoReturn(m, prc)
if sfPure in prc.flags and hasDeclspec in extccomp.CC[m.config.cCompiler].props:
builder.add("__declspec(naked) ")
if noreturn and hasDeclspec in extccomp.CC[m.config.cCompiler].props:
builder.add("__declspec(noreturn) ")
builder.add(CallingConvToStr[prc.typ.callConv])
builder.add("(")
builder.add(rettype)
builder.add(", ")
builder.add(name)
builder.add(")")
builder.add(params)
if addAttributes:
if sfPure in prc.flags and hasAttribute in extccomp.CC[m.config.cCompiler].props:
builder.add(" __attribute__((naked))")
if noreturn and hasAttribute in extccomp.CC[m.config.cCompiler].props:
builder.add(" __attribute__((noreturn))")
proc finishProcHeaderAsProto(builder: var Builder) =
builder.addLineEnd(";")
template finishProcHeaderWithBody(builder: var Builder, body: typed) =
builder.addLineEndIndent(" {")
body
builder.addLineEndDedent("}")
builder.addNewline
proc addProcVar(builder: var Builder, m: BModule, prc: PSym, name: string, params, rettype: Snippet,
isStatic = false, ignoreAttributes = false) =
# on nifc, builds full variable
if isStatic:
builder.add("static ")
let noreturn = isNoReturn(m, prc)
if not ignoreAttributes:
if sfPure in prc.flags and hasDeclspec in extccomp.CC[m.config.cCompiler].props:
builder.add("__declspec(naked) ")
if noreturn and hasDeclspec in extccomp.CC[m.config.cCompiler].props:
builder.add("__declspec(noreturn) ")
builder.add(CallingConvToStr[prc.typ.callConv])
builder.add("_PTR(")
builder.add(rettype)
builder.add(", ")
builder.add(name)
builder.add(")")
builder.add(params)
if not ignoreAttributes:
if sfPure in prc.flags and hasAttribute in extccomp.CC[m.config.cCompiler].props:
builder.add(" __attribute__((naked))")
if noreturn and hasAttribute in extccomp.CC[m.config.cCompiler].props:
builder.add(" __attribute__((noreturn))")
# ensure we are just adding a variable:
builder.addLineEnd(";")
proc addProcVar(builder: var Builder, callConv: TCallingConvention,
name: string, params, rettype: Snippet,
isStatic = false, isVolatile = false) =
# on nifc, builds full variable
if isStatic:
builder.add("static ")
builder.add(CallingConvToStr[callConv])
builder.add("_PTR(")
builder.add(rettype)
builder.add(", ")
if isVolatile:
builder.add("volatile ")
builder.add(name)
builder.add(")")
builder.add(params)
# ensure we are just adding a variable:
builder.addLineEnd(";")
proc addProcVar(builder: var Builder,
name: string, params, rettype: Snippet,
isStatic = false, isVolatile = false) =
# no callconv
if isStatic:
builder.add("static ")
builder.add(rettype)
builder.add(" (*")
if isVolatile:
builder.add("volatile ")
builder.add(name)
builder.add(")")
builder.add(params)
# ensure we are just adding a variable:
builder.addLineEnd(";")
type VarInitializerKind = enum
Assignment, CppConstructor
proc addVar(builder: var Builder, m: BModule, s: PSym, name: string, typ: Snippet, kind = Local, visibility: DeclVisibility = None, initializer: Snippet = "", initializerKind: VarInitializerKind = Assignment) =
if sfCodegenDecl in s.flags:
builder.add(runtimeFormat(s.cgDeclFrmt, [typ, name]))
if initializer.len != 0:
if initializerKind == Assignment:
builder.add(" = ")
builder.add(initializer)
builder.addLineEnd(";")
return
if s.kind in {skLet, skVar, skField, skForVar} and s.alignment > 0:
builder.add("NIM_ALIGN(" & $s.alignment & ") ")
builder.addVisibilityPrefix(visibility)
if kind == Threadvar:
if optThreads in m.config.globalOptions:
let sym = s.typ.sym
if sym != nil and sfCppNonPod in sym.flags:
builder.add("NIM_THREAD_LOCAL ")
else: builder.add("NIM_THREADVAR ")
else:
builder.addVarHeader(kind)
builder.add(typ)
if sfRegister in s.flags: builder.add(" register")
if sfVolatile in s.flags: builder.add(" volatile")
if sfNoalias in s.flags: builder.add(" NIM_NOALIAS")
builder.add(" ")
builder.add(name)
if initializer.len != 0:
if initializerKind == Assignment:
builder.add(" = ")
builder.add(initializer)
builder.addLineEnd(";")
proc addInclude(builder: var Builder, value: Snippet) =
builder.addLineEnd("#include " & value)

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@@ -1,259 +0,0 @@
proc constType(t: Snippet): Snippet =
# needs manipulation of `t` in nifc
"NIM_CONST " & t
proc constPtrType(t: Snippet): Snippet =
t & "* NIM_CONST"
proc ptrConstType(t: Snippet): Snippet =
"NIM_CONST " & t & "*"
proc ptrType(t: Snippet): Snippet =
t & "*"
proc cppRefType(t: Snippet): Snippet =
t & "&"
const
CallingConvToStr: array[TCallingConvention, string] = ["N_NIMCALL",
"N_STDCALL", "N_CDECL", "N_SAFECALL",
"N_SYSCALL", # this is probably not correct for all platforms,
# but one can #define it to what one wants
"N_INLINE", "N_NOINLINE", "N_FASTCALL", "N_THISCALL", "N_CLOSURE", "N_NOCONV",
"N_NOCONV" #ccMember is N_NOCONV
]
proc procPtrTypeUnnamed(rettype, params: Snippet): Snippet =
rettype & "(*)" & params
proc procPtrTypeUnnamedNimCall(rettype, params: Snippet): Snippet =
rettype & "(N_RAW_NIMCALL*)" & params
proc procPtrTypeUnnamed(callConv: TCallingConvention, rettype, params: Snippet): Snippet =
CallingConvToStr[callConv] & "_PTR(" & rettype & ", )" & params
type CppCaptureKind = enum None, ByReference, ByCopy
template addCppLambda(builder: var Builder, captures: CppCaptureKind, params: Snippet, body: typed) =
builder.add("[")
case captures
of None: discard
of ByReference: builder.add("&")
of ByCopy: builder.add("=")
builder.add("] ")
builder.add(params)
builder.addLineEndIndent(" {")
body
builder.addLineEndDedent("}")
proc cCast(typ, value: Snippet): Snippet =
"((" & typ & ") " & value & ")"
proc wrapPar(value: Snippet): Snippet =
# used for expression group, no-op on sexp
"(" & value & ")"
proc removeSinglePar(value: Snippet): Snippet =
# removes a single paren layer expected to exist, to silence Wparentheses-equality
assert value[0] == '(' and value[^1] == ')'
value[1..^2]
template addCast(builder: var Builder, typ: Snippet, valueBody: typed) =
## adds a cast to `typ` with value built by `valueBody`
builder.add "(("
builder.add typ
builder.add ") "
valueBody
builder.add ")"
proc cAddr(value: Snippet): Snippet =
"(&" & value & ")"
proc cLabelAddr(value: TLabel): Snippet =
"&&" & value
proc cDeref(value: Snippet): Snippet =
"(*" & value & ")"
proc subscript(a, b: Snippet): Snippet =
a & "[" & b & "]"
proc dotField(a, b: Snippet): Snippet =
a & "." & b
proc derefField(a, b: Snippet): Snippet =
a & "->" & b
type CallBuilder = object
needsComma: bool
proc initCallBuilder(builder: var Builder, callee: Snippet): CallBuilder =
result = CallBuilder(needsComma: false)
builder.add(callee)
builder.add("(")
const cArgumentSeparator = ", "
proc addArgumentSeparator(builder: var Builder) =
# no-op on NIFC
# used by "single argument" builders
builder.add(cArgumentSeparator)
template addArgument(builder: var Builder, call: var CallBuilder, valueBody: typed) =
if call.needsComma:
builder.addArgumentSeparator()
else:
call.needsComma = true
valueBody
proc finishCallBuilder(builder: var Builder, call: CallBuilder) =
builder.add(")")
template addCall(builder: var Builder, call: out CallBuilder, callee: Snippet, body: typed) =
call = initCallBuilder(builder, callee)
body
finishCallBuilder(builder, call)
proc addCall(builder: var Builder, callee: Snippet, args: varargs[Snippet]) =
builder.add(callee)
builder.add("(")
if args.len != 0:
builder.add(args[0])
for i in 1 ..< args.len:
builder.add(", ")
builder.add(args[i])
builder.add(")")
proc cCall(callee: Snippet, args: varargs[Snippet]): Snippet =
result = callee
result.add("(")
if args.len != 0:
result.add(args[0])
for i in 1 ..< args.len:
result.add(", ")
result.add(args[i])
result.add(")")
proc addSizeof(builder: var Builder, val: Snippet) =
builder.add("sizeof(")
builder.add(val)
builder.add(")")
proc addAlignof(builder: var Builder, val: Snippet) =
builder.add("NIM_ALIGNOF(")
builder.add(val)
builder.add(")")
proc addOffsetof(builder: var Builder, val, member: Snippet) =
builder.add("offsetof(")
builder.add(val)
builder.add(", ")
builder.add(member)
builder.add(")")
template cSizeof(val: Snippet): Snippet =
"sizeof(" & val & ")"
template cAlignof(val: Snippet): Snippet =
"NIM_ALIGNOF(" & val & ")"
template cOffsetof(val, member: Snippet): Snippet =
"offsetof(" & val & ", " & member & ")"
type TypedBinaryOp = enum
Add, Sub, Mul, Div, Mod
Shr, Shl, BitAnd, BitOr, BitXor
const typedBinaryOperators: array[TypedBinaryOp, string] = [
Add: "+",
Sub: "-",
Mul: "*",
Div: "/",
Mod: "%",
Shr: ">>",
Shl: "<<",
BitAnd: "&",
BitOr: "|",
BitXor: "^"
]
type TypedUnaryOp = enum
Neg, BitNot
const typedUnaryOperators: array[TypedUnaryOp, string] = [
Neg: "-",
BitNot: "~",
]
type UntypedBinaryOp = enum
LessEqual, LessThan, GreaterEqual, GreaterThan, Equal, NotEqual
And, Or
const untypedBinaryOperators: array[UntypedBinaryOp, string] = [
LessEqual: "<=",
LessThan: "<",
GreaterEqual: ">=",
GreaterThan: ">",
Equal: "==",
NotEqual: "!=",
And: "&&",
Or: "||"
]
type UntypedUnaryOp = enum
Not
const untypedUnaryOperators: array[UntypedUnaryOp, string] = [
Not: "!"
]
proc addOp(builder: var Builder, binOp: TypedBinaryOp, t: Snippet, a, b: Snippet) =
builder.add('(')
builder.add(a)
builder.add(' ')
builder.add(typedBinaryOperators[binOp])
builder.add(' ')
builder.add(b)
builder.add(')')
proc addOp(builder: var Builder, unOp: TypedUnaryOp, t: Snippet, a: Snippet) =
builder.add('(')
builder.add(typedUnaryOperators[unOp])
builder.add('(')
builder.add(a)
builder.add("))")
proc addOp(builder: var Builder, binOp: UntypedBinaryOp, a, b: Snippet) =
builder.add('(')
builder.add(a)
builder.add(' ')
builder.add(untypedBinaryOperators[binOp])
builder.add(' ')
builder.add(b)
builder.add(')')
proc addOp(builder: var Builder, unOp: UntypedUnaryOp, a: Snippet) =
builder.add('(')
builder.add(untypedUnaryOperators[unOp])
builder.add('(')
builder.add(a)
builder.add("))")
template cOp(binOp: TypedBinaryOp, t: Snippet, a, b: Snippet): Snippet =
'(' & a & ' ' & typedBinaryOperators[binOp] & ' ' & b & ')'
template cOp(binOp: TypedUnaryOp, t: Snippet, a: Snippet): Snippet =
'(' & typedUnaryOperators[binOp] & '(' & a & "))"
template cOp(binOp: UntypedBinaryOp, a, b: Snippet): Snippet =
'(' & a & ' ' & untypedBinaryOperators[binOp] & ' ' & b & ')'
template cOp(binOp: UntypedUnaryOp, a: Snippet): Snippet =
'(' & untypedUnaryOperators[binOp] & '(' & a & "))"
template cIfExpr(cond, a, b: Snippet): Snippet =
# XXX used for `min` and `max`, maybe add nifc primitives for these
"(" & cond & " ? " & a & " : " & b & ")"
template cUnlikely(val: Snippet): Snippet =
"NIM_UNLIKELY(" & val & ")"

View File

@@ -1,329 +0,0 @@
template addAssignmentWithValue(builder: var Builder, lhs: Snippet, valueBody: typed) =
builder.add(lhs)
builder.add(" = ")
valueBody
builder.addLineEnd(";")
template addFieldAssignmentWithValue(builder: var Builder, lhs: Snippet, name: string, valueBody: typed) =
builder.add(lhs)
builder.add("." & name & " = ")
valueBody
builder.addLineEnd(";")
template addAssignment(builder: var Builder, lhs, rhs: Snippet) =
builder.addAssignmentWithValue(lhs):
builder.add(rhs)
template addFieldAssignment(builder: var Builder, lhs: Snippet, name: string, rhs: Snippet) =
builder.addFieldAssignmentWithValue(lhs, name):
builder.add(rhs)
template addMutualFieldAssignment(builder: var Builder, lhs, rhs: Snippet, name: string) =
builder.addFieldAssignmentWithValue(lhs, name):
builder.add(rhs)
builder.add("." & name)
template addAssignment(builder: var Builder, lhs: Snippet, rhs: int | int64 | uint64 | Int128) =
builder.addAssignmentWithValue(lhs):
builder.addIntValue(rhs)
template addFieldAssignment(builder: var Builder, lhs: Snippet, name: string, rhs: int | int64 | uint64 | Int128) =
builder.addFieldAssignmentWithValue(lhs, name):
builder.addIntValue(rhs)
template addDerefFieldAssignment(builder: var Builder, lhs: Snippet, name: string, rhs: Snippet) =
builder.add(lhs)
builder.add("->" & name & " = ")
builder.add(rhs)
builder.addLineEnd(";")
template addSubscriptAssignment(builder: var Builder, lhs: Snippet, index: Snippet, rhs: Snippet) =
builder.add(lhs)
builder.add("[" & index & "] = ")
builder.add(rhs)
builder.addLineEnd(";")
template addStmt(builder: var Builder, stmtBody: typed) =
## makes an expression built by `stmtBody` into a statement
stmtBody
builder.addLineEnd(";")
proc addCallStmt(builder: var Builder, callee: Snippet, args: varargs[Snippet]) =
builder.addStmt():
builder.addCall(callee, args)
# XXX blocks need indent tracker in `Builder` object
template addSingleIfStmt(builder: var Builder, cond: Snippet, body: typed) =
builder.add("if (")
builder.add(cond)
builder.addLineEndIndent(") {")
body
builder.addLineEndDedent("}")
template addSingleIfStmtWithCond(builder: var Builder, condBody: typed, body: typed) =
builder.add("if (")
condBody
builder.addLineEndIndent(") {")
body
builder.addLineEndDedent("}")
proc initIfStmt(builder: var Builder): IfBuilder =
IfBuilder(state: WaitingIf)
proc finishIfStmt(builder: var Builder, stmt: IfBuilder) =
assert stmt.state != InBlock
builder.addNewline()
template addIfStmt(builder: var Builder, stmt: out IfBuilder, body: typed) =
stmt = initIfStmt(builder)
body
finishIfStmt(builder, stmt)
proc initElifBranch(builder: var Builder, stmt: var IfBuilder, cond: Snippet) =
case stmt.state
of WaitingIf:
builder.add("if (")
of WaitingElseIf:
builder.add(" else if (")
else: assert false, $stmt.state
builder.add(cond)
builder.addLineEndIndent(") {")
stmt.state = InBlock
proc initElseBranch(builder: var Builder, stmt: var IfBuilder) =
assert stmt.state == WaitingElseIf, $stmt.state
builder.addLineEndIndent(" else {")
stmt.state = InBlock
proc finishBranch(builder: var Builder, stmt: var IfBuilder) =
builder.addDedent("}")
stmt.state = WaitingElseIf
template addElifBranch(builder: var Builder, stmt: var IfBuilder, cond: Snippet, body: typed) =
initElifBranch(builder, stmt, cond)
body
finishBranch(builder, stmt)
template addElseBranch(builder: var Builder, stmt: var IfBuilder, body: typed) =
initElseBranch(builder, stmt)
body
finishBranch(builder, stmt)
proc initForRange(builder: var Builder, i, start, bound: Snippet, inclusive: bool = false) =
builder.add("for (")
builder.add(i)
builder.add(" = ")
builder.add(start)
builder.add("; ")
builder.add(i)
if inclusive:
builder.add(" <= ")
else:
builder.add(" < ")
builder.add(bound)
builder.add("; ")
builder.add(i)
builder.addLineEndIndent("++) {")
proc initForStep(builder: var Builder, i, start, bound, step: Snippet, inclusive: bool = false) =
builder.add("for (")
builder.add(i)
builder.add(" = ")
builder.add(start)
builder.add("; ")
builder.add(i)
if inclusive:
builder.add(" <= ")
else:
builder.add(" < ")
builder.add(bound)
builder.add("; ")
builder.add(i)
builder.add(" += ")
builder.add(step)
builder.addLineEndIndent(") {")
proc finishFor(builder: var Builder) {.inline.} =
builder.addLineEndDedent("}")
template addForRangeExclusive(builder: var Builder, i, start, bound: Snippet, body: typed) =
initForRange(builder, i, start, bound, false)
body
finishFor(builder)
template addForRangeInclusive(builder: var Builder, i, start, bound: Snippet, body: typed) =
initForRange(builder, i, start, bound, true)
body
finishFor(builder)
template addSwitchStmt(builder: var Builder, val: Snippet, body: typed) =
builder.add("switch (")
builder.add(val)
builder.addLineEnd(") {") # no indent
body
builder.addLineEnd("}")
template addSingleSwitchCase(builder: var Builder, val: Snippet, body: typed) =
builder.add("case ")
builder.add(val)
builder.addLineEndIndent(":")
body
builder.addLineEndDedent("")
type
SwitchCaseState = enum
None, Of, Else, Finished
SwitchCaseBuilder = object
state: SwitchCaseState
proc addCase(builder: var Builder, info: var SwitchCaseBuilder, val: Snippet) =
if info.state != Of:
assert info.state == None
info.state = Of
builder.add("case ")
builder.add(val)
builder.addLineEndIndent(":")
proc addCaseRange(builder: var Builder, info: var SwitchCaseBuilder, first, last: Snippet) =
if info.state != Of:
assert info.state == None
info.state = Of
builder.add("case ")
builder.add(first)
builder.add(" ... ")
builder.add(last)
builder.addLineEndIndent(":")
proc addCaseElse(builder: var Builder, info: var SwitchCaseBuilder) =
assert info.state == None
info.state = Else
builder.addLineEndIndent("default:")
template addSwitchCase(builder: var Builder, info: out SwitchCaseBuilder, caseBody, body: typed) =
info = SwitchCaseBuilder(state: None)
caseBody
info.state = Finished
body
builder.addLineEndDedent("")
template addSwitchElse(builder: var Builder, body: typed) =
builder.addLineEndIndent("default:")
body
builder.addLineEndDedent("")
proc addBreak(builder: var Builder) =
builder.addLineEnd("break;")
type ScopeBuilder = object
inside: bool
proc initScope(builder: var Builder): ScopeBuilder =
builder.addLineEndIndent("{")
result = ScopeBuilder(inside: true)
proc finishScope(builder: var Builder, scope: var ScopeBuilder) =
assert scope.inside, "scope not inited"
builder.addLineEndDedent("}")
scope.inside = false
template addScope(builder: var Builder, body: typed) =
builder.addLineEndIndent("{")
body
builder.addLineEndDedent("}")
type WhileBuilder = object
inside: bool
proc initWhileStmt(builder: var Builder, cond: Snippet): WhileBuilder =
builder.add("while (")
builder.add(cond)
builder.addLineEndIndent(") {")
result = WhileBuilder(inside: true)
proc finishWhileStmt(builder: var Builder, stmt: var WhileBuilder) =
assert stmt.inside, "while stmt not inited"
builder.addLineEndDedent("}")
stmt.inside = false
template addWhileStmt(builder: var Builder, cond: Snippet, body: typed) =
builder.add("while (")
builder.add(cond)
builder.addLineEndIndent(") {")
body
builder.addLineEndDedent("}")
proc addLabel(builder: var Builder, name: TLabel) =
builder.add(name)
builder.addLineEnd(": ;")
proc addReturn(builder: var Builder) =
builder.addLineEnd("return;")
proc addReturn(builder: var Builder, value: Snippet) =
builder.add("return ")
builder.add(value)
builder.addLineEnd(";")
proc addGoto(builder: var Builder, label: TLabel) =
builder.add("goto ")
builder.add(label)
builder.addLineEnd(";")
proc addComputedGoto(builder: var Builder, value: Snippet) =
builder.add("goto *")
builder.add(value)
builder.addLineEnd(";")
proc addIncr(builder: var Builder, val: Snippet) =
builder.add(val)
builder.addLineEnd("++;")
proc addDecr(builder: var Builder, val: Snippet) =
builder.add(val)
builder.addLineEnd("--;")
proc addInPlaceOp(builder: var Builder, binOp: TypedBinaryOp, t: Snippet, a, b: Snippet) =
builder.add(a)
builder.add(' ')
builder.add(typedBinaryOperators[binOp])
builder.add("= ")
builder.add(b)
builder.addLineEnd(";")
proc addInPlaceOp(builder: var Builder, binOp: UntypedBinaryOp, a, b: Snippet) =
builder.add(a)
builder.add(' ')
builder.add(untypedBinaryOperators[binOp])
builder.add("= ")
builder.add(b)
builder.addLineEnd(";")
proc cInPlaceOp(binOp: TypedBinaryOp, t: Snippet, a, b: Snippet): Snippet =
result = ""
result.add(a)
result.add(' ')
result.add(typedBinaryOperators[binOp])
result.add("= ")
result.add(b)
result.add(";\n")
proc cInPlaceOp(binOp: UntypedBinaryOp, a, b: Snippet): Snippet =
result = ""
result.add(a)
result.add(' ')
result.add(untypedBinaryOperators[binOp])
result.add("= ")
result.add(b)
result.add(";\n")
template addCPragma(builder: var Builder, val: Snippet) =
builder.addNewline()
builder.add("#pragma ")
builder.add(val)
builder.addNewline()
proc addDiscard(builder: var Builder, val: Snippet) =
builder.add("(void)")
builder.add(val)
builder.addLineEnd(";")

View File

@@ -40,7 +40,7 @@ proc preventNrvo(p: BProc; dest, le, ri: PNode): bool =
return false
of nkDotExpr, nkBracketExpr, nkObjUpConv, nkObjDownConv,
nkCheckedFieldExpr:
n = n.firstSon
n = n[0]
of nkHiddenStdConv, nkHiddenSubConv, nkConv:
n = n[1]
else:
@@ -51,20 +51,20 @@ proc preventNrvo(p: BProc; dest, le, ri: PNode): bool =
if le != nil:
for i in 1..<ri.len:
let r = ri[i]
if isPartOf(le, r, {pfStructural}) != arNo: return true
if isPartOf(le, r) != arNo: return true
# we use the weaker 'canRaise' here in order to prevent too many
# annoying warnings, see #14514
if canRaise(ri.firstSon) and
if canRaise(ri[0]) and
locationEscapes(p, le, p.nestedTryStmts.len > 0):
message(p.config, le.info, warnObservableStores, $le)
# bug #19613 prevent dangerous aliasing too:
if dest != nil and dest != le:
for i in 1..<ri.len:
let r = ri[i]
if isPartOf(dest, r, {pfStructural}) != arNo: return true
if isPartOf(dest, r) != arNo: return true
proc hasNoInit(call: PNode): bool {.inline.} =
result = call.firstSon.kind == nkSym and sfNoInit in call.firstSon.sym.flags
result = call[0].kind == nkSym and sfNoInit in call[0].sym.flags
proc isHarmlessStore(p: BProc; canRaise: bool; d: TLoc): bool =
if d.k in {locTemp, locNone} or not canRaise:
@@ -84,29 +84,29 @@ proc cleanupTemp(p: BProc; returnType: PType, tmp: TLoc): bool =
let dtor = getAttachedOp(p.module.g.graph, returnType, attachedDestructor)
var op = initLocExpr(p, newSymNode(dtor))
var callee = rdLoc(op)
let destroyArg =
if dtor.typ.firstParamType.kind == tyVar:
cAddr(rdLoc(tmp))
let destroy = if dtor.typ.firstParamType.kind == tyVar:
callee & "(&" & rdLoc(tmp) & ")"
else:
rdLoc(tmp)
let destroy = cCall(callee, destroyArg)
callee & "(" & rdLoc(tmp) & ")"
raiseExitCleanup(p, destroy)
result = true
else:
result = false
proc fixupCall(p: BProc, le, ri: PNode, d: var TLoc,
result: var Builder, call: var CallBuilder) =
let canRaise = p.config.exc == excGoto and canRaiseDisp(p, ri.firstSon)
callee, params: Rope) =
let canRaise = p.config.exc == excGoto and canRaiseDisp(p, ri[0])
genLineDir(p, ri)
var pl = callee & "(" & params
# getUniqueType() is too expensive here:
var typ = skipTypes(ri.firstSon.typ, abstractInst)
var typ = skipTypes(ri[0].typ, abstractInst)
if typ.returnType != nil:
var flags: TAssignmentFlags = {}
if typ.returnType.kind in {tyOpenArray, tyVarargs}:
# perhaps generate no temp if the call doesn't have side effects
flags.incl needTempForOpenArray
if isInvalidReturnType(p.config, typ):
if params.len != 0: pl.add(", ")
# beware of 'result = p(result)'. We may need to allocate a temporary:
if d.k in {locTemp, locNone} or not preventNrvo(p, d.lode, le, ri):
# Great, we can use 'd':
@@ -114,39 +114,33 @@ proc fixupCall(p: BProc, le, ri: PNode, d: var TLoc,
elif d.k notin {locTemp} and not hasNoInit(ri):
# reset before pass as 'result' var:
discard "resetLoc(p, d)"
let rad = addrLoc(p.config, d)
result.addArgument(call):
result.add(rad)
result.finishCallBuilder(call)
p.s(cpsStmts).addStmt():
p.s(cpsStmts).add(extract(result))
pl.add(addrLoc(p.config, d))
pl.add(");\n")
line(p, cpsStmts, pl)
else:
var tmp: TLoc = getTemp(p, typ.returnType, needsInit=true)
let ratmp = addrLoc(p.config, tmp)
result.addArgument(call):
result.add(ratmp)
result.finishCallBuilder(call)
p.s(cpsStmts).addStmt():
p.s(cpsStmts).add(extract(result))
pl.add(addrLoc(p.config, tmp))
pl.add(");\n")
line(p, cpsStmts, pl)
genAssignment(p, d, tmp, {}) # no need for deep copying
if canRaise: raiseExit(p)
else:
result.finishCallBuilder(call)
pl.add(")")
if p.module.compileToCpp:
if lfSingleUse in d.flags:
# do not generate spurious temporaries for C++! For C we're better off
# with them to prevent undefined behaviour and because the codegen
# is free to emit expressions multiple times!
d.k = locCall
d.snippet = extract(result)
d.snippet = pl
excl d.flags, lfSingleUse
else:
if d.k == locNone and p.splitDecls == 0 and p.config.exc != excGoto:
d = getTempCpp(p, typ.returnType, extract(result))
d = getTempCpp(p, typ.returnType, pl)
else:
if d.k == locNone: d = getTemp(p, typ.returnType)
var list = initLoc(locCall, d.lode, OnUnknown)
list.snippet = extract(result)
list.snippet = pl
genAssignment(p, d, list, {needAssignCall}) # no need for deep copying
if canRaise: raiseExit(p)
@@ -157,7 +151,7 @@ proc fixupCall(p: BProc, le, ri: PNode, d: var TLoc,
d = getTemp(p, typ.returnType)
assert(d.t != nil) # generate an assignment to d:
var list = initLoc(locCall, d.lode, OnUnknown)
list.snippet = extract(result)
list.snippet = pl
genAssignment(p, d, list, flags+{needAssignCall}) # no need for deep copying
if canRaise:
if not (useTemp and cleanupTemp(p, typ.returnType, d)):
@@ -165,16 +159,15 @@ proc fixupCall(p: BProc, le, ri: PNode, d: var TLoc,
else:
var tmp: TLoc = getTemp(p, typ.returnType, needsInit=true)
var list = initLoc(locCall, d.lode, OnUnknown)
list.snippet = extract(result)
list.snippet = pl
genAssignment(p, tmp, list, flags+{needAssignCall}) # no need for deep copying
if canRaise:
if not cleanupTemp(p, typ.returnType, tmp):
raiseExit(p)
genAssignment(p, d, tmp, {})
else:
finishCallBuilder(result, call)
p.s(cpsStmts).addStmt():
p.s(cpsStmts).add(extract(result))
pl.add(");\n")
line(p, cpsStmts, pl)
if canRaise: raiseExit(p)
proc genBoundsCheck(p: BProc; arr, a, b: TLoc; arrTyp: PType)
@@ -184,7 +177,7 @@ proc reifiedOpenArray(n: PNode): bool {.inline.} =
while true:
case x.kind
of {nkAddr, nkHiddenAddr, nkHiddenDeref}:
x = x.firstSon
x = x[0]
of nkHiddenStdConv:
x = x[1]
else:
@@ -206,58 +199,49 @@ proc genOpenArraySlice(p: BProc; q: PNode; formalType, destType: PType; prepareF
if optBoundsCheck in p.options:
genBoundsCheck(p, a, b, c, ty)
if prepareForMutation:
let bra = byRefLoc(p, a)
p.s(cpsStmts).addCallStmt(cgsymValue(p.module, "nimPrepareStrMutationV2"),
bra)
linefmt(p, cpsStmts, "#nimPrepareStrMutationV2($1);$n", [byRefLoc(p, a)])
let dest = getTypeDesc(p.module, destType)
let ra = rdLoc(a)
let rb = rdLoc(b)
let rc = rdLoc(c)
let lengthExpr = cOp(Add, NimInt, cOp(Sub, NimInt, rc, rb), cIntValue(1))
let lengthExpr = "($1)-($2)+1" % [rdLoc(c), rdLoc(b)]
case ty.kind
of tyArray:
let first = toInt64(firstOrd(p.config, ty))
if first == 0:
result = (cCast(ptrType(dest), cOp(Add, NimInt, ra, rb)), lengthExpr)
result = ("($3*)(($1)+($2))" % [rdLoc(a), rdLoc(b), dest],
lengthExpr)
else:
let lit = cIntLiteral(first)
result = (cCast(ptrType(dest), cOp(Add, NimInt, ra, cOp(Sub, NimInt, rb, lit))), lengthExpr)
var lit = newRopeAppender()
intLiteral(first, lit)
result = ("($4*)($1)+(($2)-($3))" %
[rdLoc(a), rdLoc(b), lit, dest],
lengthExpr)
of tyOpenArray, tyVarargs:
let data = if reifiedOpenArray(q[1]): dotField(ra, "Field0") else: ra
result = (cCast(ptrType(dest), cOp(Add, NimInt, data, rb)), lengthExpr)
if reifiedOpenArray(q[1]):
result = ("($3*)($1.Field0)+($2)" % [rdLoc(a), rdLoc(b), dest],
lengthExpr)
else:
result = ("($3*)($1)+($2)" % [rdLoc(a), rdLoc(b), dest],
lengthExpr)
of tyUncheckedArray, tyCstring:
result = (cCast(ptrType(dest), cOp(Add, NimInt, ra, rb)), lengthExpr)
result = ("($3*)($1)+($2)" % [rdLoc(a), rdLoc(b), dest],
lengthExpr)
of tyString, tySequence:
let atyp = skipTypes(a.t, abstractInst)
if formalType.skipTypes(abstractInst).kind in {tyVar} and atyp.kind == tyString and
optSeqDestructors in p.config.globalOptions and not p.config.usesSso():
let bra = byRefLoc(p, a)
p.s(cpsStmts).addCallStmt(cgsymValue(p.module, "nimPrepareStrMutationV2"),
bra)
if p.config.usesSso() and
skipTypes(a.t, abstractVar + abstractInst).kind == tyString:
let strPtr = if atyp.kind in {tyVar} and not compileToCpp(p.module): ra
else: addrLoc(p.config, a)
result = (
cCast(ptrType(dest), cOp(Add, NimInt,
cCall(cgsymValue(p.module, "nimStrData"), strPtr), rb)),
lengthExpr)
optSeqDestructors in p.config.globalOptions:
linefmt(p, cpsStmts, "#nimPrepareStrMutationV2($1);$n", [byRefLoc(p, a)])
if atyp.kind in {tyVar} and not compileToCpp(p.module):
result = ("(($5) ? (($4*)(*$1)$3+($2)) : NIM_NIL)" %
[rdLoc(a), rdLoc(b), dataField(p), dest, dataFieldAccessor(p, "*" & rdLoc(a))],
lengthExpr)
else:
var val: Snippet
if atyp.kind in {tyVar} and not compileToCpp(p.module):
val = cDeref(ra)
else:
val = ra
result = (
cIfExpr(dataFieldAccessor(p, val),
cCast(ptrType(dest), cOp(Add, NimInt, dataField(p, val), rb)),
NimNil),
lengthExpr)
result = ("(($5) ? (($4*)$1$3+($2)) : NIM_NIL)" %
[rdLoc(a), rdLoc(b), dataField(p), dest, dataFieldAccessor(p, rdLoc(a))],
lengthExpr)
else:
result = ("", "")
internalError(p.config, "openArrayLoc: " & typeToString(a.t))
proc openArrayLoc(p: BProc, formalType: PType, n: PNode; result: var Builder) =
proc openArrayLoc(p: BProc, formalType: PType, n: PNode; result: var Rope) =
var q = skipConv(n)
var skipped = false
while q.kind == nkStmtListExpr and q.len > 0:
@@ -272,82 +256,42 @@ proc openArrayLoc(p: BProc, formalType: PType, n: PNode; result: var Builder) =
genStmts(p, q[i])
q = q.lastSon
let (x, y) = genOpenArraySlice(p, q, formalType, n.typ.elementType)
result.add(x)
result.addArgumentSeparator()
result.add(y)
result.add x & ", " & y
else:
var a = initLocExpr(p, if n.kind == nkHiddenStdConv: n[1] else: n)
case skipTypes(a.t, abstractVar+{tyStatic}).kind
of tyOpenArray, tyVarargs:
let ra = rdLoc(a)
if reifiedOpenArray(n):
if a.t.kind in {tyVar, tyLent}:
result.add(derefField(ra, "Field0"))
result.addArgumentSeparator()
result.add(derefField(ra, "Field1"))
result.add "$1->Field0, $1->Field1" % [rdLoc(a)]
else:
result.add(dotField(ra, "Field0"))
result.addArgumentSeparator()
result.add(dotField(ra, "Field1"))
result.add "$1.Field0, $1.Field1" % [rdLoc(a)]
else:
result.add(ra)
result.addArgumentSeparator()
result.add(ra & "Len_0")
result.add "$1, $1Len_0" % [rdLoc(a)]
of tyString, tySequence:
let ntyp = skipTypes(n.typ, abstractInst)
if formalType.skipTypes(abstractInst).kind in {tyVar} and ntyp.kind == tyString and
optSeqDestructors in p.config.globalOptions and not p.config.usesSso():
let bra = byRefLoc(p, a)
p.s(cpsStmts).addCallStmt(cgsymValue(p.module, "nimPrepareStrMutationV2"),
bra)
if p.config.usesSso() and
skipTypes(n.typ, abstractVar + abstractInst).kind == tyString:
if ntyp.kind in {tyVar} and not compileToCpp(p.module):
let ra = a.rdLoc
result.add(cCall(cgsymValue(p.module, "nimStrData"), ra))
result.addArgumentSeparator()
result.add(cCall(cgsymValue(p.module, "nimStrLen"), cDeref(ra)))
else:
result.add(cCall(cgsymValue(p.module, "nimStrData"), addrLoc(p.config, a)))
result.addArgumentSeparator()
result.add(lenExpr(p, a))
elif ntyp.kind in {tyVar} and not compileToCpp(p.module):
let ra = a.rdLoc
var t = TLoc(snippet: cDeref(ra))
let lt = lenExpr(p, t)
result.add(cIfExpr(dataFieldAccessor(p, t.snippet), dataField(p, t.snippet), NimNil))
result.addArgumentSeparator()
result.add(lt)
optSeqDestructors in p.config.globalOptions:
linefmt(p, cpsStmts, "#nimPrepareStrMutationV2($1);$n", [byRefLoc(p, a)])
if ntyp.kind in {tyVar} and not compileToCpp(p.module):
var t = TLoc(snippet: "(*$1)" % [a.rdLoc])
result.add "($4) ? ((*$1)$3) : NIM_NIL, $2" %
[a.rdLoc, lenExpr(p, t), dataField(p),
dataFieldAccessor(p, "*" & a.rdLoc)]
else:
let ra = a.rdLoc
let la = lenExpr(p, a)
result.add(cIfExpr(dataFieldAccessor(p, ra), dataField(p, ra), NimNil))
result.addArgumentSeparator()
result.add(la)
result.add "($4) ? ($1$3) : NIM_NIL, $2" %
[a.rdLoc, lenExpr(p, a), dataField(p), dataFieldAccessor(p, a.rdLoc)]
of tyArray:
let ra = rdLoc(a)
result.add(ra)
result.addArgumentSeparator()
result.addIntValue(lengthOrd(p.config, a.t))
result.add "$1, $2" % [rdLoc(a), rope(lengthOrd(p.config, a.t))]
of tyPtr, tyRef:
case elementType(a.t).kind
of tyString, tySequence:
let ra = a.rdLoc
var t = TLoc(snippet: cDeref(ra))
let lt = lenExpr(p, t)
if p.config.usesSso():
result.add(cCall(cgsymValue(p.module, "nimStrData"), ra))
result.addArgumentSeparator()
result.add(cCall(cgsymValue(p.module, "nimStrLen"), t.snippet))
else:
result.add(cIfExpr(dataFieldAccessor(p, t.snippet), dataField(p, t.snippet), NimNil))
result.addArgumentSeparator()
result.add(lt)
var t = TLoc(snippet: "(*$1)" % [a.rdLoc])
result.add "($4) ? ((*$1)$3) : NIM_NIL, $2" %
[a.rdLoc, lenExpr(p, t), dataField(p),
dataFieldAccessor(p, "*" & a.rdLoc)]
of tyArray:
let ra = rdLoc(a)
result.add(ra)
result.addArgumentSeparator()
result.addIntValue(lengthOrd(p.config, elementType(a.t)))
result.add "$1, $2" % [rdLoc(a), rope(lengthOrd(p.config, elementType(a.t)))]
else:
internalError(p.config, "openArrayLoc: " & typeToString(a.t))
else: internalError(p.config, "openArrayLoc: " & typeToString(a.t))
@@ -356,7 +300,7 @@ proc withTmpIfNeeded(p: BProc, a: TLoc, needsTmp: bool): TLoc =
# Bug https://github.com/status-im/nimbus-eth2/issues/1549
# Aliasing is preferred over stack overflows.
# Also don't regress for non ARC-builds, too risky.
if needsTmp and a.lode.typ != nil and p.config.selectedGC in {gcArc, gcAtomicArc, gcOrc, gcYrc} and
if needsTmp and a.lode.typ != nil and p.config.selectedGC in {gcArc, gcAtomicArc, gcOrc} and
getSize(p.config, a.lode.typ) < 1024:
result = getTemp(p, a.lode.typ, needsInit=false)
genAssignment(p, result, a, {})
@@ -367,20 +311,18 @@ proc expressionsNeedsTmp(p: BProc, a: TLoc): TLoc =
result = getTemp(p, a.lode.typ, needsInit=false)
genAssignment(p, result, a, {})
proc genArgStringToCString(p: BProc, n: PNode; result: var Builder; needsTmp: bool) {.inline.} =
var a = initLocExpr(p, n.firstSon)
let tmp = withTmpIfNeeded(p, a, needsTmp)
let ra = if p.config.usesSso(): byRefLoc(p, tmp) else: tmp.rdLoc
result.addCall(cgsymValue(p.module, "nimToCStringConv"), ra)
proc genArgStringToCString(p: BProc, n: PNode; result: var Rope; needsTmp: bool) {.inline.} =
var a = initLocExpr(p, n[0])
appcg(p.module, result, "#nimToCStringConv($1)", [withTmpIfNeeded(p, a, needsTmp).rdLoc])
proc genArg(p: BProc, n: PNode, param: PSym; call: PNode; result: var Builder; needsTmp = false) =
proc genArg(p: BProc, n: PNode, param: PSym; call: PNode; result: var Rope; needsTmp = false) =
var a: TLoc
if n.kind == nkStringToCString:
genArgStringToCString(p, n, result, needsTmp)
elif skipTypes(param.typ, abstractVar).kind in {tyOpenArray, tyVarargs}:
var n = if n.kind != nkHiddenAddr: n else: n.firstSon
var n = if n.kind != nkHiddenAddr: n else: n[0]
openArrayLoc(p, param.typ, n, result)
elif ccgIntroducedPtr(p.config, param, call.firstSon.typ.returnType) and
elif ccgIntroducedPtr(p.config, param, call[0].typ.returnType) and
(optByRef notin param.options or not p.module.compileToCpp):
a = initLocExpr(p, n)
if n.kind in {nkCharLit..nkNilLit}:
@@ -392,16 +334,16 @@ proc genArg(p: BProc, n: PNode, param: PSym; call: PNode; result: var Builder; n
# bug #23748: we need to introduce a temporary here. The expression type
# will be a reference in C++ and we cannot create a temporary reference
# variable. Thus, we create a temporary pointer variable instead.
let needsIndirect = mapType(p.config, n.firstSon.typ, mapTypeChooser(n.firstSon) == skParam) != ctArray
let needsIndirect = mapType(p.config, n[0].typ, mapTypeChooser(n[0]) == skParam) != ctArray
if needsIndirect:
n.typ = n.typ.exactReplica(p.module.idgen)
n.typ.incl tfVarIsPtr
n.typ() = n.typ.exactReplica
n.typ.flags.incl tfVarIsPtr
a = initLocExprSingleUse(p, n)
a = withTmpIfNeeded(p, a, needsTmp)
if needsIndirect: a.flags.incl lfIndirect
# if the proc is 'importc'ed but not 'importcpp'ed then 'var T' still
# means '*T'. See posix.nim for lots of examples that do that in the wild.
let callee = call.firstSon
let callee = call[0]
if callee.kind == nkSym and
{sfImportc, sfInfixCall, sfCompilerProc} * callee.sym.flags == {sfImportc} and
{lfHeader, lfNoDecl} * callee.sym.loc.flags != {} and
@@ -414,11 +356,12 @@ proc genArg(p: BProc, n: PNode, param: PSym; call: PNode; result: var Builder; n
if param.typ.kind in {tyVar, tyPtr, tyRef, tySink}:
let typ = skipTypes(param.typ, abstractPtrs)
if not sameBackendTypePickyAliases(typ, n.typ.skipTypes(abstractPtrs)):
a.snippet = cCast(getTypeDesc(p.module, param.typ), rdCharLoc(a))
a.snippet = "(($1) ($2))" %
[getTypeDesc(p.module, param.typ), rdCharLoc(a)]
addRdLoc(withTmpIfNeeded(p, a, needsTmp), result)
#assert result != nil
proc genArgNoParam(p: BProc, n: PNode; result: var Builder; needsTmp = false) =
proc genArgNoParam(p: BProc, n: PNode; result: var Rope; needsTmp = false) =
var a: TLoc
if n.kind == nkStringToCString:
genArgStringToCString(p, n, result, needsTmp)
@@ -439,11 +382,40 @@ proc skipTrivialIndirections(n: PNode): PNode =
while true:
case result.kind
of nkDerefExpr, nkHiddenDeref, nkAddr, nkHiddenAddr, nkObjDownConv, nkObjUpConv:
result = result.firstSon
result = result[0]
of nkHiddenStdConv, nkHiddenSubConv:
result = result[1]
else: break
proc getPotentialWrites(n: PNode; mutate: bool; result: var seq[PNode]) =
case n.kind:
of nkLiterals, nkIdent, nkFormalParams: discard
of nkSym:
if mutate: result.add n
of nkAsgn, nkFastAsgn, nkSinkAsgn:
getPotentialWrites(n[0], true, result)
getPotentialWrites(n[1], mutate, result)
of nkAddr, nkHiddenAddr:
getPotentialWrites(n[0], true, result)
of nkBracketExpr, nkDotExpr, nkCheckedFieldExpr:
getPotentialWrites(n[0], mutate, result)
of nkCallKinds:
case n.getMagic:
of mIncl, mExcl, mInc, mDec, mAppendStrCh, mAppendStrStr, mAppendSeqElem,
mAddr, mNew, mNewFinalize, mWasMoved, mDestroy:
getPotentialWrites(n[1], true, result)
for i in 2..<n.len:
getPotentialWrites(n[i], mutate, result)
of mSwap:
for i in 1..<n.len:
getPotentialWrites(n[i], true, result)
else:
for i in 1..<n.len:
getPotentialWrites(n[i], mutate, result)
else:
for s in n:
getPotentialWrites(s, mutate, result)
proc getPotentialReads(n: PNode; result: var seq[PNode]) =
case n.kind:
of nkLiterals, nkIdent, nkFormalParams: discard
@@ -452,7 +424,7 @@ proc getPotentialReads(n: PNode; result: var seq[PNode]) =
for s in n:
getPotentialReads(s, result)
proc genParams(p: BProc, ri: PNode, typ: PType; result: var Builder, argBuilder: var CallBuilder) =
proc genParams(p: BProc, ri: PNode, typ: PType; result: var Rope) =
# We must generate temporaries in cases like #14396
# to keep the strict Left-To-Right evaluation
var needTmp = newSeq[bool](ri.len - 1)
@@ -474,22 +446,21 @@ proc genParams(p: BProc, ri: PNode, typ: PType; result: var Builder, argBuilder:
# Optimization: don't use a temp, if we would only take the address anyway
needTmp[i - 1] = false
var oldLen = result.len
for i in 1..<ri.len:
if i < typ.n.len:
assert(typ.n[i].kind == nkSym)
let paramType = typ.n[i]
if not paramType.typ.isCompileTimeOnly:
var arg = newBuilder("")
genArg(p, ri[i], paramType.sym, ri, arg, needTmp[i-1])
if arg.buf.len != 0:
result.addArgument(argBuilder):
result.add(extract(arg))
if oldLen != result.len:
result.add(", ")
oldLen = result.len
genArg(p, ri[i], paramType.sym, ri, result, needTmp[i-1])
else:
var arg = newBuilder("")
genArgNoParam(p, ri[i], arg, needTmp[i-1])
if arg.buf.len != 0:
result.addArgument(argBuilder):
result.add(extract(arg))
if oldLen != result.len:
result.add(", ")
oldLen = result.len
genArgNoParam(p, ri[i], result, needTmp[i-1])
proc addActualSuffixForHCR(res: var Rope, module: PSym, sym: PSym) =
if sym.flags * {sfImportc, sfNonReloadable} == {} and sym.loc.k == locProc and
@@ -498,68 +469,47 @@ proc addActualSuffixForHCR(res: var Rope, module: PSym, sym: PSym) =
proc genPrefixCall(p: BProc, le, ri: PNode, d: var TLoc) =
# this is a hotspot in the compiler
var op = initLocExpr(p, ri.firstSon)
var op = initLocExpr(p, ri[0])
# getUniqueType() is too expensive here:
var typ = skipTypes(ri.firstSon.typ, abstractInstOwned)
var typ = skipTypes(ri[0].typ, abstractInstOwned)
assert(typ.kind == tyProc)
var callee = rdLoc(op)
if p.hcrOn and ri.firstSon.kind == nkSym:
callee.addActualSuffixForHCR(p.module.module, ri.firstSon.sym)
var params = newRopeAppender()
genParams(p, ri, typ, params)
var res = newBuilder("")
var call = initCallBuilder(res, callee)
genParams(p, ri, typ, res, call)
fixupCall(p, le, ri, d, res, call)
var callee = rdLoc(op)
if p.hcrOn and ri[0].kind == nkSym:
callee.addActualSuffixForHCR(p.module.module, ri[0].sym)
fixupCall(p, le, ri, d, callee, params)
proc genClosureCall(p: BProc, le, ri: PNode, d: var TLoc) =
template callProc(rp, params, pTyp: Snippet): Snippet =
let e = dotField(rp, "ClE_0")
let p = dotField(rp, "ClP_0")
let eCall =
# note `params` here is actually multiple params
if params.len == 0:
cCall(p, e)
else:
cCall(p, params, e)
cIfExpr(e,
eCall,
cCall(cCast(pTyp, p), params))
proc addComma(r: Rope): Rope =
if r.len == 0: r else: r & ", "
template callIter(rp, params: Snippet): Snippet =
# we know the env exists
let e = dotField(rp, "ClE_0")
let p = dotField(rp, "ClP_0")
# note `params` here is actually multiple params
if params.len == 0:
cCall(p, e)
else:
cCall(p, params, e)
const PatProc = "$1.ClE_0? $1.ClP_0($3$1.ClE_0):(($4)($1.ClP_0))($2)"
const PatIter = "$1.ClP_0($3$1.ClE_0)" # we know the env exists
var op = initLocExpr(p, ri.firstSon)
var op = initLocExpr(p, ri[0])
# getUniqueType() is too expensive here:
var typ = skipTypes(ri.firstSon.typ, abstractInstOwned)
var typ = skipTypes(ri[0].typ, abstractInstOwned)
assert(typ.kind == tyProc)
var params = newBuilder("")
var argBuilder = default(CallBuilder) # not initCallBuilder, we just want the params
genParams(p, ri, typ, params, argBuilder)
var pl = newRopeAppender()
genParams(p, ri, typ, pl)
template genCallPattern {.dirty.} =
let rp = rdLoc(op)
let pars = extract(params)
p.s(cpsStmts).addStmt():
if tfIterator in typ.flags:
p.s(cpsStmts).add(callIter(rp, pars))
else:
p.s(cpsStmts).add(callProc(rp, pars, rawProc))
if tfIterator in typ.flags:
lineF(p, cpsStmts, PatIter & ";$n", [rdLoc(op), pl, pl.addComma, rawProc])
else:
lineF(p, cpsStmts, PatProc & ";$n", [rdLoc(op), pl, pl.addComma, rawProc])
let rawProc = getClosureType(p.module, typ, clHalf)
let canRaise = p.config.exc == excGoto and canRaiseDisp(p, ri.firstSon)
let canRaise = p.config.exc == excGoto and canRaiseDisp(p, ri[0])
if typ.returnType != nil:
if isInvalidReturnType(p.config, typ):
if ri.len > 1: pl.add(", ")
# beware of 'result = p(result)'. We may need to allocate a temporary:
if d.k in {locTemp, locNone} or not preventNrvo(p, d.lode, le, ri):
# Great, we can use 'd':
@@ -568,14 +518,12 @@ proc genClosureCall(p: BProc, le, ri: PNode, d: var TLoc) =
elif d.k notin {locTemp} and not hasNoInit(ri):
# reset before pass as 'result' var:
discard "resetLoc(p, d)"
params.addArgument(argBuilder):
params.add(addrLoc(p.config, d))
pl.add(addrLoc(p.config, d))
genCallPattern()
if canRaise: raiseExit(p)
else:
var tmp: TLoc = getTemp(p, typ.returnType, needsInit=true)
params.addArgument(argBuilder):
params.add(addrLoc(p.config, tmp))
pl.add(addrLoc(p.config, tmp))
genCallPattern()
if canRaise: raiseExit(p)
genAssignment(p, d, tmp, {}) # no need for deep copying
@@ -583,24 +531,20 @@ proc genClosureCall(p: BProc, le, ri: PNode, d: var TLoc) =
if d.k == locNone: d = getTemp(p, typ.returnType)
assert(d.t != nil) # generate an assignment to d:
var list: TLoc = initLoc(locCall, d.lode, OnUnknown)
let rp = rdLoc(op)
let pars = extract(params)
if tfIterator in typ.flags:
list.snippet = callIter(rp, pars)
list.snippet = PatIter % [rdLoc(op), pl, pl.addComma, rawProc]
else:
list.snippet = callProc(rp, pars, rawProc)
list.snippet = PatProc % [rdLoc(op), pl, pl.addComma, rawProc]
genAssignment(p, d, list, {}) # no need for deep copying
if canRaise: raiseExit(p)
else:
var tmp: TLoc = getTemp(p, typ.returnType)
assert(d.t != nil) # generate an assignment to d:
var list: TLoc = initLoc(locCall, d.lode, OnUnknown)
let rp = rdLoc(op)
let pars = extract(params)
if tfIterator in typ.flags:
list.snippet = callIter(rp, pars)
list.snippet = PatIter % [rdLoc(op), pl, pl.addComma, rawProc]
else:
list.snippet = callProc(rp, pars, rawProc)
list.snippet = PatProc % [rdLoc(op), pl, pl.addComma, rawProc]
genAssignment(p, tmp, list, {})
if canRaise: raiseExit(p)
genAssignment(p, d, tmp, {})
@@ -608,8 +552,8 @@ proc genClosureCall(p: BProc, le, ri: PNode, d: var TLoc) =
genCallPattern()
if canRaise: raiseExit(p)
proc genOtherArg(p: BProc; ri: PNode; i: int; typ: PType; result: var Builder;
argBuilder: var CallBuilder) =
proc genOtherArg(p: BProc; ri: PNode; i: int; typ: PType; result: var Rope;
argsCounter: var int) =
if i < typ.n.len:
# 'var T' is 'T&' in C++. This means we ignore the request of
# any nkHiddenAddr when it's a 'var T'.
@@ -618,17 +562,20 @@ proc genOtherArg(p: BProc; ri: PNode; i: int; typ: PType; result: var Builder;
if paramType.typ.isCompileTimeOnly:
discard
elif paramType.typ.kind in {tyVar} and ri[i].kind == nkHiddenAddr:
result.addArgument(argBuilder):
genArgNoParam(p, ri[i].firstSon, result)
if argsCounter > 0: result.add ", "
genArgNoParam(p, ri[i][0], result)
inc argsCounter
else:
result.addArgument(argBuilder):
genArgNoParam(p, ri[i], result) #, typ.n[i].sym)
if argsCounter > 0: result.add ", "
genArgNoParam(p, ri[i], result) #, typ.n[i].sym)
inc argsCounter
else:
if tfVarargs notin typ.flags:
localError(p.config, ri.info, "wrong argument count")
else:
result.addArgument(argBuilder):
genArgNoParam(p, ri[i], result)
if argsCounter > 0: result.add ", "
genArgNoParam(p, ri[i], result)
inc argsCounter
discard """
Dot call syntax in C++
@@ -672,20 +619,20 @@ proc skipAddrDeref(node: PNode): PNode =
var isAddr = false
case n.kind
of nkAddr, nkHiddenAddr:
n = n.firstSon
n = n[0]
isAddr = true
of nkDerefExpr, nkHiddenDeref:
n = n.firstSon
n = n[0]
else: return n
if n.kind == nkObjDownConv: n = n.firstSon
if n.kind == nkObjDownConv: n = n[0]
if isAddr and n.kind in {nkDerefExpr, nkHiddenDeref}:
result = n.firstSon
result = n[0]
elif n.kind in {nkAddr, nkHiddenAddr}:
result = n.firstSon
result = n[0]
else:
result = node
proc genThisArg(p: BProc; ri: PNode; i: int; typ: PType; result: var Builder) =
proc genThisArg(p: BProc; ri: PNode; i: int; typ: PType; result: var Rope) =
# for better or worse c2nim translates the 'this' argument to a 'var T'.
# However manual wrappers may also use 'ptr T'. In any case we support both
# for convenience.
@@ -694,55 +641,55 @@ proc genThisArg(p: BProc; ri: PNode; i: int; typ: PType; result: var Builder) =
# if the parameter is lying (tyVar) and thus we required an additional deref,
# skip the deref:
var ri = ri[i]
while ri.kind == nkObjDownConv: ri = ri.firstSon
while ri.kind == nkObjDownConv: ri = ri[0]
let t = typ[i].skipTypes({tyGenericInst, tyAlias, tySink})
if t.kind in {tyVar}:
let x = if ri.kind == nkHiddenAddr: ri.firstSon else: ri
let x = if ri.kind == nkHiddenAddr: ri[0] else: ri
if x.typ.kind == tyPtr:
genArgNoParam(p, x, result)
result.add("->")
elif x.kind in {nkHiddenDeref, nkDerefExpr} and x.firstSon.typ.kind == tyPtr:
genArgNoParam(p, x.firstSon, result)
elif x.kind in {nkHiddenDeref, nkDerefExpr} and x[0].typ.kind == tyPtr:
genArgNoParam(p, x[0], result)
result.add("->")
else:
genArgNoParam(p, x, result)
result.add(".")
elif t.kind == tyPtr:
if ri.kind in {nkAddr, nkHiddenAddr}:
genArgNoParam(p, ri.firstSon, result)
genArgNoParam(p, ri[0], result)
result.add(".")
else:
genArgNoParam(p, ri, result)
result.add("->")
else:
ri = skipAddrDeref(ri)
if ri.kind in {nkAddr, nkHiddenAddr}: ri = ri.firstSon
if ri.kind in {nkAddr, nkHiddenAddr}: ri = ri[0]
genArgNoParam(p, ri, result) #, typ.n[i].sym)
result.add(".")
proc genPatternCall(p: BProc; ri: PNode; pat: string; typ: PType; result: var Builder) =
proc genPatternCall(p: BProc; ri: PNode; pat: string; typ: PType; result: var Rope) =
var i = 0
var j = 1
while i < pat.len:
case pat[i]
of '@':
var callBuilder = default(CallBuilder) # not init call builder
var argsCounter = 0
for k in j..<ri.len:
genOtherArg(p, ri, k, typ, result, callBuilder)
genOtherArg(p, ri, k, typ, result, argsCounter)
inc i
of '#':
if i+1 < pat.len and pat[i+1] in {'+', '@'}:
let ri = ri[j]
if ri.kind in nkCallKinds:
let typ = skipTypes(ri.firstSon.typ, abstractInst)
if pat[i+1] == '+': genArgNoParam(p, ri.firstSon, result)
let typ = skipTypes(ri[0].typ, abstractInst)
if pat[i+1] == '+': genArgNoParam(p, ri[0], result)
result.add("(")
if 1 < ri.len:
var callBuilder: CallBuilder = default(CallBuilder)
genOtherArg(p, ri, 1, typ, result, callBuilder)
var argsCounterB = 0
genOtherArg(p, ri, 1, typ, result, argsCounterB)
for k in j+1..<ri.len:
var callBuilder: CallBuilder = default(CallBuilder)
genOtherArg(p, ri, k, typ, result, callBuilder)
var argsCounterB = 0
genOtherArg(p, ri, k, typ, result, argsCounterB)
result.add(")")
else:
localError(p.config, ri.info, "call expression expected for C++ pattern")
@@ -752,19 +699,19 @@ proc genPatternCall(p: BProc; ri: PNode; pat: string; typ: PType; result: var Bu
inc i
elif i+1 < pat.len and pat[i+1] == '[':
var arg = ri[j].skipAddrDeref
while arg.kind in {nkAddr, nkHiddenAddr, nkObjDownConv}: arg = arg.firstSon
while arg.kind in {nkAddr, nkHiddenAddr, nkObjDownConv}: arg = arg[0]
genArgNoParam(p, arg, result)
#result.add debugTree(arg, 0, 10)
else:
var callBuilder = default(CallBuilder) # not init call builder
genOtherArg(p, ri, j, typ, result, callBuilder)
var argsCounter = 0
genOtherArg(p, ri, j, typ, result, argsCounter)
inc j
inc i
of '\'':
var idx, stars: int = 0
if scanCppGenericSlot(pat, i, idx, stars):
var t = resolveStarsInCppType(typ, idx, stars)
if t == nil: result.add(CVoid)
if t == nil: result.add("void")
else: result.add(getTypeDesc(p.module, t))
else:
let start = i
@@ -775,56 +722,56 @@ proc genPatternCall(p: BProc; ri: PNode; pat: string; typ: PType; result: var Bu
result.add(substr(pat, start, i - 1))
proc genInfixCall(p: BProc, le, ri: PNode, d: var TLoc) =
var op = initLocExpr(p, ri.firstSon)
var op = initLocExpr(p, ri[0])
# getUniqueType() is too expensive here:
var typ = skipTypes(ri.firstSon.typ, abstractInst)
var typ = skipTypes(ri[0].typ, abstractInst)
assert(typ.kind == tyProc)
# don't call '$' here for efficiency:
let pat = $ri.firstSon.sym.loc.snippet
let pat = $ri[0].sym.loc.snippet
internalAssert p.config, pat.len > 0
if pat.contains({'#', '(', '@', '\''}):
var pl = newBuilder("")
var pl = newRopeAppender()
genPatternCall(p, ri, pat, typ, pl)
# simpler version of 'fixupCall' that works with the pl+params combination:
var typ = skipTypes(ri.firstSon.typ, abstractInst)
var typ = skipTypes(ri[0].typ, abstractInst)
if typ.returnType != nil:
if p.module.compileToCpp and lfSingleUse in d.flags:
# do not generate spurious temporaries for C++! For C we're better off
# with them to prevent undefined behaviour and because the codegen
# is free to emit expressions multiple times!
d.k = locCall
d.snippet = extract(pl)
d.snippet = pl
excl d.flags, lfSingleUse
else:
if d.k == locNone: d = getTemp(p, typ.returnType)
assert(d.t != nil) # generate an assignment to d:
var list: TLoc = initLoc(locCall, d.lode, OnUnknown)
list.snippet = extract(pl)
list.snippet = pl
genAssignment(p, d, list, {}) # no need for deep copying
else:
p.s(cpsStmts).addStmt():
p.s(cpsStmts).add(extract(pl))
pl.add(";\n")
line(p, cpsStmts, pl)
else:
var pl = newBuilder("")
var pl = newRopeAppender()
var argsCounter = 0
if 1 < ri.len:
genThisArg(p, ri, 1, typ, pl)
pl.add(op.snippet)
var res = newBuilder("")
var call = initCallBuilder(res, extract(pl))
var params = newRopeAppender()
for i in 2..<ri.len:
genOtherArg(p, ri, i, typ, res, call)
fixupCall(p, le, ri, d, res, call)
genOtherArg(p, ri, i, typ, params, argsCounter)
fixupCall(p, le, ri, d, pl, params)
proc genNamedParamCall(p: BProc, ri: PNode, d: var TLoc) =
# generates a crappy ObjC call
var op = initLocExpr(p, ri.firstSon)
var pl = newBuilder("[")
var op = initLocExpr(p, ri[0])
var pl = "["
# getUniqueType() is too expensive here:
var typ = skipTypes(ri.firstSon.typ, abstractInst)
var typ = skipTypes(ri[0].typ, abstractInst)
assert(typ.kind == tyProc)
# don't call '$' here for efficiency:
let pat = $ri.firstSon.sym.loc.snippet
let pat = $ri[0].sym.loc.snippet
internalAssert p.config, pat.len > 0
var start = 3
if ' ' in pat:
@@ -860,27 +807,24 @@ proc genNamedParamCall(p: BProc, ri: PNode, d: var TLoc) =
if d.k == locNone: d = getTemp(p, typ.returnType, needsInit=true)
pl.add("Result: ")
pl.add(addrLoc(p.config, d))
pl.add("]")
p.s(cpsStmts).addStmt():
p.s(cpsStmts).add(extract(pl))
pl.add("];\n")
line(p, cpsStmts, pl)
else:
var tmp: TLoc = getTemp(p, typ.returnType, needsInit=true)
pl.add(addrLoc(p.config, tmp))
pl.add("]")
p.s(cpsStmts).addStmt():
p.s(cpsStmts).add(extract(pl))
pl.add("];\n")
line(p, cpsStmts, pl)
genAssignment(p, d, tmp, {}) # no need for deep copying
else:
pl.add("]")
if d.k == locNone: d = getTemp(p, typ.returnType)
assert(d.t != nil) # generate an assignment to d:
var list: TLoc = initLoc(locCall, ri, OnUnknown)
list.snippet = extract(pl)
list.snippet = pl
genAssignment(p, d, list, {}) # no need for deep copying
else:
pl.add("]")
p.s(cpsStmts).addStmt():
p.s(cpsStmts).add(extract(pl))
pl.add("];\n")
line(p, cpsStmts, pl)
proc notYetAlive(n: PNode): bool {.inline.} =
let r = getRoot(n)
@@ -903,27 +847,17 @@ proc isInactiveDestructorCall(p: BProc, e: PNode): bool =
We want to return early but the 'finally' section is traversed before
the 'let args = ...' statement. We exploit this to generate better
code for 'return'. ]#
result = e.len == 2 and e.firstSon.kind == nkSym and
e.firstSon.sym.name.s == "=destroy" and notYetAlive(e[1].skipAddr)
result = e.len == 2 and e[0].kind == nkSym and
e[0].sym.name.s == "=destroy" and notYetAlive(e[1].skipAddr)
proc genAsgnCall(p: BProc, le, ri: PNode, d: var TLoc) =
if p.withinBlockLeaveActions > 0 and isInactiveDestructorCall(p, ri):
return
when defined(icDbgHash):
if ri.firstSon.typ == nil:
echo "NILCALLEE kind=", ri.firstSon.kind,
" sym=", (if ri.firstSon.kind == nkSym: ri.firstSon.sym.name.s else: "-"),
" symKind=", (if ri.firstSon.kind == nkSym: $ri.firstSon.sym.kind else: "-"),
" flags=", (if ri.firstSon.kind == nkSym: $ri.firstSon.sym.flags else: "-"),
" lazy=", nfLazyType in ri.firstSon.flags,
" inProc=", (if p.prc != nil: p.prc.name.s else: "NIL"),
" module=", p.module.module.name.s
raiseAssert "nil callee type, see NILCALLEE above"
if ri.firstSon.typ.skipTypes({tyGenericInst, tyAlias, tySink, tyOwned}).callConv == ccClosure:
if ri[0].typ.skipTypes({tyGenericInst, tyAlias, tySink, tyOwned}).callConv == ccClosure:
genClosureCall(p, le, ri, d)
elif ri.firstSon.kind == nkSym and sfInfixCall in ri.firstSon.sym.flags:
elif ri[0].kind == nkSym and sfInfixCall in ri[0].sym.flags:
genInfixCall(p, le, ri, d)
elif ri.firstSon.kind == nkSym and sfNamedParamCall in ri.firstSon.sym.flags:
elif ri[0].kind == nkSym and sfNamedParamCall in ri[0].sym.flags:
genNamedParamCall(p, ri, d)
else:
genPrefixCall(p, le, ri, d)

File diff suppressed because it is too large Load Diff

View File

@@ -16,17 +16,19 @@
## implementation.
template detectVersion(field, corename) =
if m.g.config.selectedGC in {gcArc, gcOrc, gcYrc, gcAtomicArc, gcHooks}:
result = 2
else:
result = 1
if m.g.field == 0:
let core = getCompilerProc(m.g.graph, corename)
if core == nil or core.kind != skConst:
m.g.field = 1
else:
m.g.field = toInt(ast.getInt(core.astdef))
result = m.g.field
proc detectStrVersion(m: BModule): int =
if m.g.config.usesSso() and
m.g.config.selectedGC in {gcArc, gcOrc, gcYrc, gcAtomicArc, gcHooks}:
result = 3
else:
detectVersion(strVersion, "nimStrVersion")
detectVersion(strVersion, "nimStrVersion")
proc detectSeqVersion(m: BModule): int =
detectVersion(seqVersion, "nimSeqVersion")
# ----- Version 1: GC'ed strings and seqs --------------------------------
@@ -34,84 +36,52 @@ proc genStringLiteralDataOnlyV1(m: BModule, s: string; result: var Rope) =
cgsym(m, "TGenericSeq")
let tmp = getTempName(m)
result.add tmp
var res = newBuilder("")
res.addVarWithTypeAndInitializer(AlwaysConst, name = tmp):
res.addSimpleStruct(m, name = "", baseType = ""):
res.addField(name = "Sup", typ = "TGenericSeq")
res.addArrayField(name = "data", elementType = NimChar, len = s.len + 1)
do:
var strInit: StructInitializer
res.addStructInitializer(strInit, kind = siOrderedStruct):
res.addField(strInit, name = "Sup"):
var seqInit: StructInitializer
res.addStructInitializer(seqInit, kind = siOrderedStruct):
res.addField(seqInit, name = "len"):
res.addIntValue(s.len)
res.addField(seqInit, name = "reserved"):
res.add(cCast(NimInt, cOp(BitOr, NimUint, cCast(NimUint, cIntValue(s.len)), NimStrlitFlag)))
res.addField(strInit, name = "data"):
res.add(makeCString(s))
m.s[cfsStrData].add(extract(res))
m.s[cfsStrData].addf("STRING_LITERAL($1, $2, $3);$n",
[tmp, makeCString(s), rope(s.len)])
proc genStringLiteralV1(m: BModule; n: PNode; result: var Builder) =
proc genStringLiteralV1(m: BModule; n: PNode; result: var Rope) =
if s.isNil:
result.add(cCast(ptrType(cgsymValue(m, "NimStringDesc")), NimNil))
appcg(m, result, "((#NimStringDesc*) NIM_NIL)", [])
else:
let id = nodeTableTestOrSet(m.dataCache, n, m.labels)
var name: string = ""
if id == m.labels:
# string literal not found in the cache:
genStringLiteralDataOnlyV1(m, n.strVal, name)
appcg(m, result, "((#NimStringDesc*) &", [])
genStringLiteralDataOnlyV1(m, n.strVal, result)
result.add ")"
else:
name = m.tmpBase & $id
result.add(cCast(ptrType(cgsymValue(m, "NimStringDesc")), cAddr(name)))
appcg(m, result, "((#NimStringDesc*) &$1$2)",
[m.tmpBase, id])
# ------ Version 2: destructor based strings and seqs -----------------------
proc genStringLiteralDataOnlyV2(m: BModule, s: string; result: Rope; isConst: bool) =
var res = newBuilder("")
res.addVarWithTypeAndInitializer(
if isConst: AlwaysConst else: Global,
name = result):
res.addSimpleStruct(m, name = "", baseType = ""):
res.addField(name = "cap", typ = NimInt)
res.addArrayField(name = "data", elementType = NimChar, len = s.len + 1)
do:
var structInit: StructInitializer
res.addStructInitializer(structInit, kind = siOrderedStruct):
res.addField(structInit, name = "cap"):
res.add(cOp(BitOr, NimInt, cIntValue(s.len), NimStrlitFlag))
res.addField(structInit, name = "data"):
res.add(makeCString(s))
m.s[cfsStrData].add(extract(res))
m.s[cfsStrData].addf("static $4 struct {$n" &
" NI cap; NIM_CHAR data[$2+1];$n" &
"} $1 = { $2 | NIM_STRLIT_FLAG, $3 };$n",
[result, rope(s.len), makeCString(s),
rope(if isConst: "const" else: "")])
proc genStringLiteralV2(m: BModule; n: PNode; isConst: bool; result: var Builder) =
proc genStringLiteralV2(m: BModule; n: PNode; isConst: bool; result: var Rope) =
let id = nodeTableTestOrSet(m.dataCache, n, m.labels)
var litName: string
if id == m.labels:
let pureLit = getTempName(m)
genStringLiteralDataOnlyV2(m, n.strVal, pureLit, isConst)
let tmp = getTempName(m)
result.add tmp
cgsym(m, "NimStrPayload")
cgsym(m, "NimStringV2")
# string literal not found in the cache:
litName = getTempName(m)
genStringLiteralDataOnlyV2(m, n.strVal, litName, isConst)
m.s[cfsStrData].addf("static $4 NimStringV2 $1 = {$2, (NimStrPayload*)&$3};$n",
[tmp, rope(n.strVal.len), pureLit, rope(if isConst: "const" else: "")])
else:
litName = m.tmpBase & $id
let tmp = getTempName(m)
result.add tmp
var res = newBuilder("")
res.addVarWithInitializer(
if isConst: AlwaysConst else: Global,
name = tmp,
typ = "NimStringV2"):
var strInit: StructInitializer
res.addStructInitializer(strInit, kind = siOrderedStruct):
res.addField(strInit, name = "len"):
res.addIntValue(n.strVal.len)
res.addField(strInit, name = "p"):
res.add(cCast(ptrType("NimStrPayload"), cAddr(litName)))
m.s[cfsStrData].add(extract(res))
let tmp = getTempName(m)
result.add tmp
m.s[cfsStrData].addf("static $4 NimStringV2 $1 = {$2, (NimStrPayload*)&$3};$n",
[tmp, rope(n.strVal.len), m.tmpBase & rope(id),
rope(if isConst: "const" else: "")])
proc genStringLiteralV2Const(m: BModule; n: PNode; isConst: bool; result: var Builder) =
proc genStringLiteralV2Const(m: BModule; n: PNode; isConst: bool; result: var Rope) =
let id = nodeTableTestOrSet(m.dataCache, n, m.labels)
var pureLit: Rope
if id == m.labels:
@@ -122,189 +92,27 @@ proc genStringLiteralV2Const(m: BModule; n: PNode; isConst: bool; result: var Bu
genStringLiteralDataOnlyV2(m, n.strVal, pureLit, isConst)
else:
pureLit = m.tmpBase & rope(id)
var strInit: StructInitializer
result.addStructInitializer(strInit, kind = siOrderedStruct):
result.addField(strInit, name = "len"):
result.addIntValue(n.strVal.len)
result.addField(strInit, name = "p"):
result.add(cCast(ptrType("NimStrPayload"), cAddr(pureLit)))
proc ssoBytesLit(m: BModule; s: string; slen: int): string =
## Compute the `bytes` field value for the new SmallString layout.
## byte 0 = slen, bytes 1-7 = inline chars 0-6 (zero-padded).
## On LE: slen in bits 0-7, char[i] in bits (i+1)*8..(i+1)*8+7.
## On BE: slen in bits 56-63, char[i] in bits (6-i)*8..(6-i)*8+7.
const AlwaysAvail = 7
var val: uint64
if CPU[m.g.config.target.targetCPU].endian == littleEndian:
val = uint64(slen)
for i in 0..<min(s.len, AlwaysAvail):
val = val or (uint64(s[i]) shl (uint(i + 1) * 8))
else:
val = uint64(slen) shl 56
for i in 0..<min(s.len, AlwaysAvail):
val = val or (uint64(s[i]) shl (uint(AlwaysAvail - 1 - i) * 8))
# Cast to NU (C name for Nim's uint, = NU64 on 64-bit). NU64 = uint64_t.
result = cCast("NU", $val & "ULL")
proc ssoMoreLit(m: BModule; s: string): string =
## For medium string literals (AlwaysAvail < len <= PayloadSize), encode
## chars[AlwaysAvail..ptrSize-1] in the 'more' pointer field bit-pattern.
## The last pointer byte is always '\0' (null terminator), guaranteed by
## PayloadSize = AlwaysAvail + ptrSize - 1. slen <= PayloadSize guards
## prevent any code from dereferencing this as an actual pointer.
const AlwaysAvail = 7
let ptrSize = m.g.config.target.ptrSize
var val: uint64 = 0
for i in 0..<ptrSize:
let ch: uint64 = if AlwaysAvail + i < s.len: uint64(s[AlwaysAvail + i]) else: 0
if CPU[m.g.config.target.targetCPU].endian == littleEndian:
val = val or (ch shl (uint(i) * 8))
else:
val = val or (ch shl (uint(ptrSize - 1 - i) * 8))
result = cCast(ptrType("LongString"), "(uintptr_t)" & $val)
proc genStringLiteralV3Const(m: BModule; n: PNode; isConst: bool; result: var Builder) =
# Inline SmallString struct initializer for use inside const aggregate types.
# Layout: {bytes: NimUint, more: ptr LongString}
# bytes = slen (low byte) | char[0]<<8 | char[1]<<16 | ... | char[6]<<56
const AlwaysAvail = 7
let s = n.strVal
cgsym(m, "SmallString")
cgsym(m, "LongString")
let payloadSize = AlwaysAvail + m.g.config.target.ptrSize - 1
var si: StructInitializer
result.addStructInitializer(si, kind = siOrderedStruct):
if s.len <= AlwaysAvail:
result.addField(si, name = "bytes"):
result.add(ssoBytesLit(m, s, s.len))
result.addField(si, name = "more"):
result.add(NimNil)
elif s.len <= payloadSize:
# Medium string: bytes holds slen + chars 0-6; more holds chars 7..PayloadSize-1.
result.addField(si, name = "bytes"):
result.add(ssoBytesLit(m, s, s.len))
result.addField(si, name = "more"):
result.add(ssoMoreLit(m, s))
else:
# Emit the LongString block into cfsStrData and reference it inline.
let dataName = getTempName(m)
var res = newBuilder("")
res.addVarWithTypeAndInitializer(
if isConst: AlwaysConst else: Global,
name = dataName):
res.addSimpleStruct(m, name = "", baseType = ""):
res.addField(name = "rc", typ = NimInt)
res.addField(name = "fullLen", typ = NimInt)
res.addField(name = "capImpl", typ = NimInt)
res.addArrayField(name = "data", elementType = NimChar, len = s.len + 1)
do:
var di: StructInitializer
res.addStructInitializer(di, kind = siOrderedStruct):
res.addField(di, name = "fullLen"):
res.addIntValue(s.len)
res.addField(di, name = "rc"):
res.addIntValue(1)
res.addField(di, name = "capImpl"):
res.addIntValue(0) # static, never freed
res.addField(di, name = "data"):
res.add(makeCString(s))
m.s[cfsStrData].add(extract(res))
# slen = StaticSlen (254): marks this as a static (never-freed) long string.
result.addField(si, name = "bytes"):
result.add(ssoBytesLit(m, s, 254))
result.addField(si, name = "more"):
result.add(cCast(ptrType("LongString"), cAddr(dataName)))
# ------ Version 3: SmallString (SSO) strings --------------------------------
proc genStringLiteralV3(m: BModule; n: PNode; isConst: bool; result: var Builder) =
# SmallString literal. Always generate a fresh SmallString variable (like v2
# always generates a fresh outer NimStringV2). For long strings, cache the
# LongString payload to avoid duplicates within a module.
const AlwaysAvail = 7 # must match strs_v3.nim
let s = n.strVal
let tmp = getTempName(m)
result.add tmp
cgsym(m, "SmallString")
cgsym(m, "LongString")
let payloadSize = AlwaysAvail + m.g.config.target.ptrSize - 1
var res = newBuilder("")
if s.len <= AlwaysAvail:
# Short: bytes holds slen + all chars (zero-padded), more = NULL.
res.addVarWithInitializer(
if isConst: AlwaysConst else: Global,
name = tmp, typ = "SmallString"):
var si: StructInitializer
res.addStructInitializer(si, kind = siOrderedStruct):
res.addField(si, name = "bytes"):
res.add(ssoBytesLit(m, s, s.len))
res.addField(si, name = "more"):
res.add(NimNil)
elif s.len <= payloadSize:
# Medium: bytes holds slen + chars 0-6; more holds chars 7..PayloadSize-1 as raw bits.
res.addVarWithInitializer(
if isConst: AlwaysConst else: Global,
name = tmp, typ = "SmallString"):
var si: StructInitializer
res.addStructInitializer(si, kind = siOrderedStruct):
res.addField(si, name = "bytes"):
res.add(ssoBytesLit(m, s, s.len))
res.addField(si, name = "more"):
res.add(ssoMoreLit(m, s))
else:
# Long: cache the LongString block to emit it only once per module per string.
# Always generate a fresh SmallString pointing at the (possibly cached) block.
let id = nodeTableTestOrSet(m.dataCache, n, m.labels)
var dataName: string
if id == m.labels:
dataName = getTempName(m)
res.addVarWithTypeAndInitializer(
if isConst: AlwaysConst else: Global,
name = dataName):
res.addSimpleStruct(m, name = "", baseType = ""):
res.addField(name = "rc", typ = NimInt)
res.addField(name = "fullLen", typ = NimInt)
res.addField(name = "capImpl", typ = NimInt)
res.addArrayField(name = "data", elementType = NimChar, len = s.len + 1)
do:
var di: StructInitializer
res.addStructInitializer(di, kind = siOrderedStruct):
res.addField(di, name = "fullLen"):
res.addIntValue(s.len)
res.addField(di, name = "rc"):
res.addIntValue(1)
res.addField(di, name = "capImpl"):
res.addIntValue(0) # bit 0 = 0: static, never freed
res.addField(di, name = "data"):
res.add(makeCString(s))
else:
dataName = m.tmpBase & $id
# slen = StaticSlen (254): marks this as a static (never-freed) long string.
res.addVarWithInitializer(
if isConst: AlwaysConst else: Global,
name = tmp, typ = "SmallString"):
var si: StructInitializer
res.addStructInitializer(si, kind = siOrderedStruct):
res.addField(si, name = "bytes"):
res.add(ssoBytesLit(m, s, 254))
res.addField(si, name = "more"):
res.add(cCast(ptrType("LongString"), cAddr(dataName)))
m.s[cfsStrData].add(extract(res))
result.addf "{$1, (NimStrPayload*)&$2}", [rope(n.strVal.len), pureLit]
# ------ Version selector ---------------------------------------------------
proc genNilStringLiteral(m: BModule; info: TLineInfo; result: var Builder) =
result.add(cCast(ptrType(cgsymValue(m, "NimStringDesc")), NimNil))
proc genStringLiteralDataOnly(m: BModule; s: string; info: TLineInfo;
isConst: bool; result: var Rope) =
case detectStrVersion(m)
of 0, 1: genStringLiteralDataOnlyV1(m, s, result)
of 2:
let tmp = getTempName(m)
genStringLiteralDataOnlyV2(m, s, tmp, isConst)
result.add tmp
else:
localError(m.config, info, "cannot determine how to produce code for string literal")
proc genStringLiteral(m: BModule; n: PNode; result: var Builder) =
proc genNilStringLiteral(m: BModule; info: TLineInfo; result: var Rope) =
appcg(m, result, "((#NimStringDesc*) NIM_NIL)", [])
proc genStringLiteral(m: BModule; n: PNode; result: var Rope) =
case detectStrVersion(m)
of 0, 1: genStringLiteralV1(m, n, result)
of 2: genStringLiteralV2(m, n, isConst = true, result)
of 3: genStringLiteralV3(m, n, isConst = true, result)
else:
localError(m.config, n.info, "cannot determine how to produce code for string literal")

View File

@@ -27,28 +27,25 @@ proc specializeResetN(p: BProc, accessor: Rope, n: PNode;
if disc.loc.snippet == "": fillObjectFields(p.module, typ)
if disc.loc.t == nil:
internalError(p.config, n.info, "specializeResetN()")
let discField = dotField(accessor, disc.loc.snippet)
p.s(cpsStmts).addSwitchStmt(discField):
for i in 1..<n.len:
let branch = n[i]
assert branch.kind in {nkOfBranch, nkElse}
var caseBuilder: SwitchCaseBuilder
p.s(cpsStmts).addSwitchCase(caseBuilder):
if branch.kind == nkOfBranch:
genCaseRange(p, branch, caseBuilder)
else:
p.s(cpsStmts).addCaseElse(caseBuilder)
do:
specializeResetN(p, accessor, lastSon(branch), typ)
p.s(cpsStmts).addBreak()
specializeResetT(p, discField, disc.loc.t)
lineF(p, cpsStmts, "switch ($1.$2) {$n", [accessor, disc.loc.snippet])
for i in 1..<n.len:
let branch = n[i]
assert branch.kind in {nkOfBranch, nkElse}
if branch.kind == nkOfBranch:
genCaseRange(p, branch)
else:
lineF(p, cpsStmts, "default:$n", [])
specializeResetN(p, accessor, lastSon(branch), typ)
lineF(p, cpsStmts, "break;$n", [])
lineF(p, cpsStmts, "} $n", [])
specializeResetT(p, "$1.$2" % [accessor, disc.loc.snippet], disc.loc.t)
of nkSym:
let field = n.sym
if field.typ.kind == tyVoid: return
if field.loc.snippet == "": fillObjectFields(p.module, typ)
if field.loc.t == nil:
internalError(p.config, n.info, "specializeResetN()")
specializeResetT(p, dotField(accessor, field.loc.snippet), field.loc.t)
specializeResetT(p, "$1.$2" % [accessor, field.loc.snippet], field.loc.t)
else: internalError(p.config, n.info, "specializeResetN()")
proc specializeResetT(p: BProc, accessor: Rope, typ: PType) =
@@ -61,68 +58,40 @@ proc specializeResetT(p: BProc, accessor: Rope, typ: PType) =
of tyArray:
let arraySize = lengthOrd(p.config, typ.indexType)
var i: TLoc = getTemp(p, getSysType(p.module.g.graph, unknownLineInfo, tyInt))
p.s(cpsStmts).addForRangeExclusive(i.snippet, cIntValue(0), cIntValue(arraySize)):
specializeResetT(p, subscript(accessor, i.snippet), typ.elementType)
linefmt(p, cpsStmts, "for ($1 = 0; $1 < $2; $1++) {$n",
[i.snippet, arraySize])
specializeResetT(p, ropecg(p.module, "$1[$2]", [accessor, i.snippet]), typ.elementType)
lineF(p, cpsStmts, "}$n", [])
of tyObject:
var x = typ.baseClass
if x != nil: x = x.skipTypes(skipPtrs)
specializeResetT(p, accessor.parentObj(p.module), x)
if typ.n != nil:
if typ.sym != nil and sfImportc in typ.sym.flags:
# imported C struct, nimZeroMem
p.s(cpsStmts).addCallStmt(cgsymValue(p.module, "nimZeroMem"),
cCast(ptrType(CPointer), cAddr(accessor)),
cSizeof(getTypeDesc(p.module, typ)))
else:
specializeResetN(p, accessor, typ.n, typ)
if isCaseObj(typ.n):
# The active branch was released above. Clear the complete object so
# stale bytes from overlapping branches cannot be traced by the GC.
# type
# Foo = object
# case kind: bool
# of true:
# a: ref Bar # 8 bytes (pointer)
# of false:
# b: int # 4 bytes
# specializeResetT for b emits accessor.b = 0 — writes 4 bytes
# But the union is 8 bytes wide (sized by the largest branch)
# The remaining 4 bytes where a used to live are untouched
# Those stale bytes could contain a heap pointer the GC traces → crash
p.s(cpsStmts).addCallStmt(cgsymValue(p.module, "nimZeroMem"),
cCast(CPointer, cAddr(accessor)),
cSizeof(getTypeDesc(p.module, typ)))
if typ.n != nil: specializeResetN(p, accessor, typ.n, typ)
of tyTuple:
let typ = getUniqueType(typ)
for i, a in typ.ikids:
specializeResetT(p, dotField(accessor, "Field" & $i), a)
specializeResetT(p, ropecg(p.module, "$1.Field$2", [accessor, i]), a)
of tyString, tyRef, tySequence:
p.s(cpsStmts).addCallStmt(cgsymValue(p.module, "unsureAsgnRef"),
cCast(ptrType(CPointer), cAddr(accessor)),
NimNil)
lineCg(p, cpsStmts, "#unsureAsgnRef((void**)&$1, NIM_NIL);$n", [accessor])
of tyProc:
if typ.callConv == ccClosure:
p.s(cpsStmts).addCallStmt(cgsymValue(p.module, "unsureAsgnRef"),
cCast(ptrType(CPointer), cAddr(dotField(accessor, "ClE_0"))),
NimNil)
p.s(cpsStmts).addFieldAssignment(accessor, "ClP_0", NimNil)
lineCg(p, cpsStmts, "#unsureAsgnRef((void**)&$1.ClE_0, NIM_NIL);$n", [accessor])
lineCg(p, cpsStmts, "$1.ClP_0 = NIM_NIL;$n", [accessor])
else:
p.s(cpsStmts).addAssignment(accessor, NimNil)
lineCg(p, cpsStmts, "$1 = NIM_NIL;$n", [accessor])
of tyChar, tyBool, tyEnum, tyRange, tyInt..tyUInt64:
p.s(cpsStmts).addAssignment(accessor, cIntValue(0))
lineCg(p, cpsStmts, "$1 = 0;$n", [accessor])
of tyCstring, tyPointer, tyPtr, tyVar, tyLent:
p.s(cpsStmts).addAssignment(accessor, NimNil)
lineCg(p, cpsStmts, "$1 = NIM_NIL;$n", [accessor])
of tySet:
case mapSetType(p.config, typ)
of ctArray:
let t = getTypeDesc(p.module, typ)
p.s(cpsStmts).addCallStmt(cgsymValue(p.module, "nimZeroMem"),
accessor,
cSizeof(t))
lineCg(p, cpsStmts, "#nimZeroMem($1, sizeof($2));$n",
[accessor, getTypeDesc(p.module, typ)])
of ctInt8, ctInt16, ctInt32, ctInt64:
p.s(cpsStmts).addAssignment(accessor, cIntValue(0))
lineCg(p, cpsStmts, "$1 = 0;$n", [accessor])
else:
raiseAssert "unexpected set type kind"
of tyNone, tyEmpty, tyNil, tyUntyped, tyTyped, tyGenericInvocation,

File diff suppressed because it is too large Load Diff

View File

@@ -19,12 +19,9 @@ proc accessThreadLocalVar(p: BProc, s: PSym) =
if emulatedThreadVars(p.config) and threadVarAccessed notin p.flags:
p.flags.incl threadVarAccessed
incl p.module.flags, usesThreadVars
p.procSec(cpsLocals).addVar(kind = Local,
name = "NimTV_",
typ = ptrType("NimThreadVars"))
p.procSec(cpsInit).addAssignment("NimTV_",
cCast(ptrType("NimThreadVars"),
cCall(cgsymValue(p.module, "GetThreadLocalVars"))))
p.procSec(cpsLocals).addf("\tNimThreadVars* NimTV_;$n", [])
p.procSec(cpsInit).add(
ropecg(p.module, "\tNimTV_ = (NimThreadVars*) #GetThreadLocalVars();$n", []))
proc declareThreadVar(m: BModule, s: PSym, isExtern: bool) =
if emulatedThreadVars(m.config):
@@ -33,51 +30,30 @@ proc declareThreadVar(m: BModule, s: PSym, isExtern: bool) =
# allocator for it :-(
if not containsOrIncl(m.g.nimtvDeclared, s.id):
m.g.nimtvDeps.add(s.loc.t)
m.g.nimtv.addField(name = s.loc.snippet, typ = getTypeDesc(m, s.loc.t))
m.g.nimtv.addf("$1 $2;$n", [getTypeDesc(m, s.loc.t), s.loc.snippet])
else:
let vis =
if isExtern: Extern
elif lfExportLib in s.loc.flags: ExportLibVar
else: Private
if m.config.cmd == cmdNifC and vis == Private and not isExtern:
# A `{.threadvar.}`/`{.global.}` thread-local declared inside a routine is
# emitted by every module that emit-everywhere's its enclosing routine
# (e.g. libp2p's `var keys {.global.}: HashSet`), so its content-addressed
# name collides at link. Same fix as a plain global (genGlobalVarDecl):
# `extern` declaration + a droppable `'d'` definition unit the merge stage
# assigns one owner. The thread-local storage class rides on both.
let cname = stripCnifMarks(s.loc.snippet)
let td = getTypeDesc(m, s.loc.t)
# `extern` declaration via the full `addVar` overload — it knows the
# thread-local storage class (`NIM_THREADVAR`); the simple `addVar`'s
# `addVarHeader` does not implement `Threadvar`.
m.s[cfsVars].addVar(m, s, name = s.loc.snippet, typ = td,
kind = Threadvar, visibility = Extern)
m.s[cfsVars].add(cnifDefDirective(cname, "d", icNifName(m, s)))
m.s[cfsVars].addVar(m, s,
name = s.loc.snippet, typ = td, kind = Threadvar, visibility = vis)
m.s[cfsVars].add(cnifEndDefs())
else:
m.s[cfsVars].addVar(m, s,
name = s.loc.snippet,
typ = getTypeDesc(m, s.loc.t),
kind = Threadvar,
visibility = vis)
if isExtern: m.s[cfsVars].add("extern ")
elif lfExportLib in s.loc.flags: m.s[cfsVars].add("N_LIB_EXPORT_VAR ")
else: m.s[cfsVars].add("N_LIB_PRIVATE ")
if optThreads in m.config.globalOptions:
let sym = s.typ.sym
if sym != nil and sfCppNonPod in sym.flags:
m.s[cfsVars].add("NIM_THREAD_LOCAL ")
else: m.s[cfsVars].add("NIM_THREADVAR ")
m.s[cfsVars].add(getTypeDesc(m, s.loc.t))
m.s[cfsVars].addf(" $1;$n", [s.loc.snippet])
proc generateThreadLocalStorage(m: BModule) =
if m.g.nimtv.buf.len != 0 and (usesThreadVars in m.flags or sfMainModule in m.module.flags):
if m.g.nimtv != "" and (usesThreadVars in m.flags or sfMainModule in m.module.flags):
for t in items(m.g.nimtvDeps): discard getTypeDesc(m, t)
finishTypeDescriptions(m)
m.s[cfsSeqTypes].addTypedef(name = "NimThreadVars"):
m.s[cfsSeqTypes].addSimpleStruct(m, name = "", baseType = ""):
m.s[cfsSeqTypes].add(extract(m.g.nimtv))
m.s[cfsSeqTypes].addf("typedef struct {$1} NimThreadVars;$n", [m.g.nimtv])
proc generateThreadVarsSize(m: BModule) =
if m.g.nimtv.buf.len != 0:
if m.g.nimtv != "":
let externc = if m.config.backend == backendCpp or
sfCompileToCpp in m.module.flags: ExternC
else: None
m.s[cfsProcs].addDeclWithVisibility(externc):
m.s[cfsProcs].addProcHeader("NimThreadVarsSize", NimInt, cProcParams())
m.s[cfsProcs].finishProcHeaderWithBody():
m.s[cfsProcs].addReturn(cCast(NimInt, cSizeof("NimThreadVars")))
sfCompileToCpp in m.module.flags: "extern \"C\" "
else: ""
m.s[cfsProcs].addf(
"$#NI NimThreadVarsSize(){return (NI)sizeof(NimThreadVars);}$n",
[externc.rope])

View File

@@ -16,16 +16,13 @@ type
p: BProc
visitorFrmt: string
const
visitorFrmt = "#nimGCvisit((void*)$1, $2);$n"
proc genTraverseProc(c: TTraversalClosure, accessor: Rope, typ: PType)
proc genCaseRange(p: BProc, branch: PNode, info: var SwitchCaseBuilder)
proc genCaseRange(p: BProc, branch: PNode)
proc getTemp(p: BProc, t: PType, needsInit=false): TLoc
proc visit(p: BProc, data, visitor: Snippet) =
p.s(cpsStmts).addCallStmt(cgsymValue(p.module, "nimGCvisit"),
cCast(CPointer, data),
visitor)
proc genTraverseProc(c: TTraversalClosure, accessor: Rope, n: PNode;
typ: PType) =
if n == nil: return
@@ -40,32 +37,29 @@ proc genTraverseProc(c: TTraversalClosure, accessor: Rope, n: PNode;
if disc.loc.snippet == "": fillObjectFields(c.p.module, typ)
if disc.loc.t == nil:
internalError(c.p.config, n.info, "genTraverseProc()")
let discField = dotField(accessor, disc.loc.snippet)
p.s(cpsStmts).addSwitchStmt(discField):
for i in 1..<n.len:
let branch = n[i]
assert branch.kind in {nkOfBranch, nkElse}
var caseBuilder: SwitchCaseBuilder
p.s(cpsStmts).addSwitchCase(caseBuilder):
if branch.kind == nkOfBranch:
genCaseRange(c.p, branch, caseBuilder)
else:
p.s(cpsStmts).addCaseElse(caseBuilder)
do:
genTraverseProc(c, accessor, lastSon(branch), typ)
p.s(cpsStmts).addBreak()
lineF(p, cpsStmts, "switch ($1.$2) {$n", [accessor, disc.loc.snippet])
for i in 1..<n.len:
let branch = n[i]
assert branch.kind in {nkOfBranch, nkElse}
if branch.kind == nkOfBranch:
genCaseRange(c.p, branch)
else:
lineF(p, cpsStmts, "default:$n", [])
genTraverseProc(c, accessor, lastSon(branch), typ)
lineF(p, cpsStmts, "break;$n", [])
lineF(p, cpsStmts, "} $n", [])
of nkSym:
let field = n.sym
if field.typ.kind == tyVoid: return
if field.loc.snippet == "": fillObjectFields(c.p.module, typ)
if field.loc.t == nil:
internalError(c.p.config, n.info, "genTraverseProc()")
genTraverseProc(c, dotField(accessor, field.loc.snippet), field.loc.t)
genTraverseProc(c, "$1.$2" % [accessor, field.loc.snippet], field.loc.t)
else: internalError(c.p.config, n.info, "genTraverseProc()")
proc parentObj(accessor: Rope; m: BModule): Rope {.inline.} =
if not m.compileToCpp:
result = dotField(accessor, "Sup")
result = "$1.Sup" % [accessor]
else:
result = accessor
@@ -82,14 +76,16 @@ proc genTraverseProc(c: TTraversalClosure, accessor: Rope, typ: PType) =
let arraySize = lengthOrd(c.p.config, typ.indexType)
var i: TLoc = getTemp(p, getSysType(c.p.module.g.graph, unknownLineInfo, tyInt))
var oldCode = p.s(cpsStmts)
var oldLen, newLen: int
p.s(cpsStmts).addForRangeExclusive(i.snippet, cIntValue(0), cIntValue(arraySize)):
oldLen = p.s(cpsStmts).buf.len
genTraverseProc(c, subscript(accessor, i.snippet), typ.elementType)
newLen = p.s(cpsStmts).buf.len
if oldLen == newLen:
freeze oldCode
linefmt(p, cpsStmts, "for ($1 = 0; $1 < $2; $1++) {$n",
[i.snippet, arraySize])
let oldLen = p.s(cpsStmts).len
genTraverseProc(c, ropecg(c.p.module, "$1[$2]", [accessor, i.snippet]), typ.elementType)
if p.s(cpsStmts).len == oldLen:
# do not emit dummy long loops for faster debug builds:
p.s(cpsStmts) = oldCode
else:
lineF(p, cpsStmts, "}$n", [])
of tyObject:
var x = typ.baseClass
if x != nil: x = x.skipTypes(skipPtrs)
@@ -98,25 +94,23 @@ proc genTraverseProc(c: TTraversalClosure, accessor: Rope, typ: PType) =
of tyTuple:
let typ = getUniqueType(typ)
for i, a in typ.ikids:
genTraverseProc(c, dotField(accessor, "Field" & $i), a)
genTraverseProc(c, ropecg(c.p.module, "$1.Field$2", [accessor, i]), a)
of tyRef:
visit(p, accessor, c.visitorFrmt)
lineCg(p, cpsStmts, visitorFrmt, [accessor, c.visitorFrmt])
of tySequence:
if optSeqDestructors notin c.p.module.config.globalOptions:
visit(p, accessor, c.visitorFrmt)
lineCg(p, cpsStmts, visitorFrmt, [accessor, c.visitorFrmt])
elif containsGarbageCollectedRef(typ.elementType):
# destructor based seqs are themselves not traced but their data is, if
# they contain a GC'ed type:
p.s(cpsStmts).addCallStmt(cgsymValue(p.module, "nimGCvisitSeq"),
cCast(CPointer, accessor),
c.visitorFrmt)
lineCg(p, cpsStmts, "#nimGCvisitSeq((void*)$1, $2);$n", [accessor, c.visitorFrmt])
#genTraverseProcSeq(c, accessor, typ)
of tyString:
if tfHasAsgn notin typ.flags:
visit(p, accessor, c.visitorFrmt)
lineCg(p, cpsStmts, visitorFrmt, [accessor, c.visitorFrmt])
of tyProc:
if typ.callConv == ccClosure:
visit(p, dotField(accessor, "ClE_0"), c.visitorFrmt)
lineCg(p, cpsStmts, visitorFrmt, [ropecg(c.p.module, "$1.ClE_0", [accessor]), c.visitorFrmt])
else:
discard
@@ -125,17 +119,18 @@ proc genTraverseProcSeq(c: TTraversalClosure, accessor: Rope, typ: PType) =
assert typ.kind == tySequence
var i = getTemp(p, getSysType(c.p.module.g.graph, unknownLineInfo, tyInt))
var oldCode = p.s(cpsStmts)
var oldLen, newLen: int
freeze oldCode
var a = TLoc(snippet: accessor)
let le = lenExpr(c.p, a)
p.s(cpsStmts).addForRangeExclusive(i.snippet, cIntValue(0), le):
oldLen = p.s(cpsStmts).buf.len
genTraverseProc(c, subscript(dataField(c.p, accessor), i.snippet), typ.elementType)
newLen = p.s(cpsStmts).buf.len
if newLen == oldLen:
lineF(p, cpsStmts, "for ($1 = 0; $1 < $2; $1++) {$n",
[i.snippet, lenExpr(c.p, a)])
let oldLen = p.s(cpsStmts).len
genTraverseProc(c, "$1$3[$2]" % [accessor, i.snippet, dataField(c.p)], typ.elementType)
if p.s(cpsStmts).len == oldLen:
# do not emit dummy long loops for faster debug builds:
p.s(cpsStmts) = oldCode
else:
lineF(p, cpsStmts, "}$n", [])
proc genTraverseProc(m: BModule, origTyp: PType; sig: SigHash): Rope =
var p = newProc(nil, m)
@@ -144,10 +139,11 @@ proc genTraverseProc(m: BModule, origTyp: PType; sig: SigHash): Rope =
hcrOn = m.hcrOn
typ = origTyp.skipTypes(abstractInstOwned)
markerName = if hcrOn: result & "_actual" else: result
header = "static N_NIMCALL(void, $1)(void* p, NI op)" % [markerName]
t = getTypeDesc(m, typ)
p.s(cpsLocals).addVar(kind = Local, name = "a", typ = t)
p.s(cpsInit).addAssignment("a", cCast(t, "p"))
lineF(p, cpsLocals, "$1 a;$n", [t])
lineF(p, cpsInit, "a = ($1)p;$n", [t])
var c = TTraversalClosure(p: p,
visitorFrmt: "op" # "#nimGCvisit((void*)$1, op);$n"
@@ -161,40 +157,18 @@ proc genTraverseProc(m: BModule, origTyp: PType; sig: SigHash): Rope =
# C's arrays are broken beyond repair:
genTraverseProc(c, "a".rope, typ.elementType)
else:
genTraverseProc(c, cDeref("a"), typ.elementType)
genTraverseProc(c, "(*a)".rope, typ.elementType)
var headerBuilder = newBuilder("")
headerBuilder.addProcHeaderWithParams(ccNimCall, markerName, CVoid):
var paramBuilder: ProcParamBuilder
headerBuilder.addProcParams(paramBuilder):
headerBuilder.addParam(paramBuilder, name = "p", typ = CPointer)
headerBuilder.addParam(paramBuilder, name = "op", typ = NimInt)
let header = extract(headerBuilder)
let generatedProc = "$1 {$n$2$3$4}\n" %
[header, p.s(cpsLocals), p.s(cpsInit), p.s(cpsStmts)]
m.s[cfsProcHeaders].addDeclWithVisibility(StaticProc):
m.s[cfsProcHeaders].add(header)
m.s[cfsProcHeaders].finishProcHeaderAsProto()
m.s[cfsProcs].addDeclWithVisibility(StaticProc):
m.s[cfsProcs].add(header)
m.s[cfsProcs].finishProcHeaderWithBody():
m.s[cfsProcs].add(extract(p.s(cpsLocals)))
m.s[cfsProcs].add(extract(p.s(cpsInit)))
m.s[cfsProcs].add(extract(p.s(cpsStmts)))
m.s[cfsProcHeaders].addf("$1;\n", [header])
m.s[cfsProcs].add(generatedProc)
if hcrOn:
var desc = newBuilder("")
var unnamedParamBuilder: ProcParamBuilder
desc.addProcParams(unnamedParamBuilder):
desc.addUnnamedParam(unnamedParamBuilder, CPointer)
desc.addUnnamedParam(unnamedParamBuilder, NimInt)
let unnamedParams = extract(desc)
m.s[cfsProcHeaders].addProcVar(ccNimCall, result, unnamedParams, CVoid)
m.s[cfsDynLibInit].addAssignmentWithValue(result):
m.s[cfsDynLibInit].addCast(procPtrTypeUnnamed(ccNimCall, CVoid, unnamedParams)):
m.s[cfsDynLibInit].addCall("hcrRegisterProc",
getModuleDllPath(m),
'"' & result & '"',
cCast(CPointer, markerName))
m.s[cfsProcHeaders].addf("N_NIMCALL_PTR(void, $1)(void*, NI);\n", [result])
m.s[cfsDynLibInit].addf("\t$1 = (N_NIMCALL_PTR(void, )(void*, NI)) hcrRegisterProc($3, \"$1\", (void*)$2);\n",
[result, markerName, getModuleDllPath(m)])
proc genTraverseProcForGlobal(m: BModule, s: PSym; info: TLineInfo): Rope =
discard genTypeInfoV1(m, s.loc.t, info)
@@ -205,28 +179,17 @@ proc genTraverseProcForGlobal(m: BModule, s: PSym; info: TLineInfo): Rope =
if sfThread in s.flags and emulatedThreadVars(m.config):
accessThreadLocalVar(p, s)
sLoc = derefField("NimTV_", sLoc)
sLoc = "NimTV_->" & sLoc
var c = TTraversalClosure(p: p,
visitorFrmt: cIntValue(0) # "#nimGCvisit((void*)$1, 0);$n"
visitorFrmt: "0" # "#nimGCvisit((void*)$1, 0);$n"
)
let header = "static N_NIMCALL(void, $1)(void)" % [result]
genTraverseProc(c, sLoc, s.loc.t)
var headerBuilder = newBuilder("")
headerBuilder.addProcHeaderWithParams(ccNimCall, result, CVoid):
var paramBuilder: ProcParamBuilder
headerBuilder.addProcParams(paramBuilder):
# (void)
discard
let header = extract(headerBuilder)
let generatedProc = "$1 {$n$2$3$4}$n" %
[header, p.s(cpsLocals), p.s(cpsInit), p.s(cpsStmts)]
m.s[cfsProcHeaders].addDeclWithVisibility(StaticProc):
m.s[cfsProcHeaders].add(header)
m.s[cfsProcHeaders].finishProcHeaderAsProto()
m.s[cfsProcs].addDeclWithVisibility(StaticProc):
m.s[cfsProcs].add(header)
m.s[cfsProcs].finishProcHeaderWithBody():
m.s[cfsProcs].add(extract(p.s(cpsLocals)))
m.s[cfsProcs].add(extract(p.s(cpsInit)))
m.s[cfsProcs].add(extract(p.s(cpsStmts)))
m.s[cfsProcHeaders].addf("$1;$n", [header])
m.s[cfsProcs].add(generatedProc)

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@@ -11,7 +11,7 @@
import
ast, types, msgs, wordrecg,
platform, trees, options, cgendata, mangleutils, renderer, modulegraphs
platform, trees, options, cgendata, mangleutils, renderer
import std/[hashes, strutils, formatfloat]
@@ -90,6 +90,9 @@ proc ccgIntroducedPtr*(conf: ConfigRef; s: PSym, retType: PType): bool =
if s.typ.sym != nil and sfForward in s.typ.sym.flags:
# forwarded objects are *always* passed by pointers for consistency!
result = true
elif s.typ.kind == tySink and conf.selectedGC notin {gcArc, gcAtomicArc, gcOrc, gcHooks}:
# bug #23354:
result = false
elif (optByRef in s.options) or (getSize(conf, pt) > conf.target.floatSize * 3):
result = true # requested anyway
elif (tfFinal in pt.flags) and (pt[0] == nil):
@@ -112,34 +115,10 @@ proc encodeName*(name: string): string =
proc makeUnique(m: BModule; s: PSym, name: string = ""): string =
result = if name == "": s.name.s else: name
# keep backend-minted ids out of the `_u` namespace; their item counter
# restarts at 0 and would collide with loaded symbols' ids
if s.itemId.isBackendMinted:
result.add "_c"
if (s.disamb and HookDisambBit) != 0'i32:
# A backend-minted sym whose `disamb` is content-derived (setHookDisamb gave
# it HookDisambBit) — e.g. the `rttiDestroy` wrapper. Its `itemId.item` is a
# PER-PROCESS backend counter, so using it makes the C name diverge across
# the emit-everywhere processes: the type's RTTI table (emit-everywhere,
# merge-deduped) ends up referencing one process's `_c<item>` while the
# wrapper is defined with another's -> undefined at link (`rttiDestroy_c23`).
# The content-derived disamb is stable across processes, so use it.
result.add $s.disamb
else:
result.add $s.itemId.item
else:
result.add "_u"
# Mirror `mangleProcNameExt`: use the per-(module,name) `disamb`, NOT
# `itemId.item`. Under the per-module IC backend the same symbol is loaded
# from a NIF in many processes and `itemId.item` is a fresh, load-order
# dependent counter — so a method base would mangle to `_u1` in one module,
# `_u3` in another and clean at its owner, none of which link. `disamb` is
# assigned deterministically per (module, name) and is serialized, so every
# process that touches the symbol derives the identical C name.
result.add $s.disamb
# module suffix LAST (a strippable trailing token; see `mangleProcNameExt`)
result.add "__"
result.add m.g.graph.ifaces[s.itemId.module].uniqueName
result.add "_u"
result.add $s.itemId.item
proc encodeSym*(m: BModule; s: PSym; makeUnique: bool = false; extra: string = ""): string =
#Module::Type

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@@ -11,7 +11,7 @@
import
ast, ropes, options,
lineinfos, pathutils, modulegraphs, cbuilderbase
lineinfos, pathutils, modulegraphs
import std/[intsets, tables, sets]
@@ -43,12 +43,12 @@ type
ctUInt, ctUInt8, ctUInt16, ctUInt32, ctUInt64,
ctArray, ctPtrToArray, ctStruct, ctPtr, ctNimStr, ctNimSeq, ctProc,
ctCString
TCFileSections* = array[TCFileSection, Builder] # represents a generated C file
TCFileSections* = array[TCFileSection, Rope] # represents a generated C file
TCProcSection* = enum # the sections a generated C proc consists of
cpsLocals, # section of local variables for C proc
cpsInit, # section for init of variables for C proc
cpsStmts # section of local statements for C proc
TCProcSections* = array[TCProcSection, Builder] # represents a generated C proc
TCProcSections* = array[TCProcSection, Rope] # represents a generated C proc
BModule* = ref TCGen
BProc* = ref TCProc
TBlock* = object
@@ -75,13 +75,10 @@ type
flags*: set[TCProcFlag]
lastLineInfo*: TLineInfo # to avoid generating excessive 'nimln' statements
currLineInfo*: TLineInfo # AST codegen will make this superfluous
nestedTryStmts*: seq[tuple[fin: PNode, inExcept: bool, isHidden: bool, label: Natural]]
nestedTryStmts*: seq[tuple[fin: PNode, inExcept: bool, label: Natural]]
# in how many nested try statements we are
# (the vars must be volatile then)
# `inExcept` is true when we are in the except part of a try block.
# `isHidden` is true for compiler-injected `nkHiddenTryStmt` wrappers
# (e.g. ARC's destructor try/finally around `except T as e:` bodies);
# finallyActions walks past such wrappers to reach the user's try.
# bool is true when are in the except part of a try block
finallySafePoints*: seq[Rope] # For correctly cleaning up exceptions when
# using return in finally statements
labels*: Natural # for generating unique labels in the C proc
@@ -118,11 +115,11 @@ type
# computing alive data on our own.
BModuleList* = ref object of RootObj
mainModProcs*, mainModInit*, otherModsInit*, mainDatInit*: Builder
mainModProcs*, mainModInit*, otherModsInit*, mainDatInit*: Rope
mapping*: Rope # the generated mapping file (if requested)
mods*: seq[BModule] # list of all compiled modules
modules*: seq[BModule] # list of all compiled modules
modulesClosed*: seq[BModule] # list of the same compiled modules, but in the order they were closed
forwardedProcs*: seq[PSym] # procs that did not yet have a body
forwardedProcs*: seq[PSym] # proc:s that did not yet have a body
generatedHeader*: BModule
typeInfoMarker*: TypeCacheWithOwner
typeInfoMarkerV2*: TypeCacheWithOwner
@@ -130,7 +127,7 @@ type
graph*: ModuleGraph
strVersion*, seqVersion*: int # version of the string/seq implementation to use
nimtv*: Builder # Nim thread vars; the struct body
nimtv*: Rope # Nim thread vars; the struct body
nimtvDeps*: seq[PType] # type deps: every module needs whole struct
nimtvDeclared*: IntSet # so that every var/field exists only once
# in the struct
@@ -158,66 +155,44 @@ type
forwTypeCache*: TypeCache # cache for forward declarations of types
declaredThings*: IntSet # things we have declared in this .c file
declaredProtos*: IntSet # prototypes we have declared in this .c file
emittedContentDefs*: HashSet[string]
# cmdNifC per-module backend: content-addressed C names (generic
# instances and synthesized hooks) whose body this TU already emitted.
# Distinct symbols (minted in different source modules) can share one
# `_i<disamb>` name; `declaredThings` keys on symbol id and lets the
# second one through, so we dedup the body by name here instead.
queue*: seq[PSym] # queue of procs to generate
alive*: IntSet # symbol IDs of alive data as computed by `dce.nim`
headerFiles*: seq[string] # needed headers to include
typeInfoMarker*: TypeCache # needed for generating type information
typeInfoMarkerV2*: TypeCache
initProc*: BProc # code for init procedure
preInitProc*: BProc # code executed before the init proc
hcrCreateTypeInfosProc*: Builder # type info globals are in here when HCR=on
hcrCreateTypeInfosProc*: Rope # type info globals are in here when HCR=on
inHcrInitGuard*: bool # We are currently within a HCR reloading guard.
hcrInitGuard*: IfBuilder
typeStack*: TTypeSeq # used for type generation
dataCache*: TNodeTable
typeNodes*, nimTypes*: int # used for type info generation
typeNodesName*, nimTypesName*: Rope # used for type info generation
labels*: Natural # for generating unique module-scope names
extensionLoaders*: array['0'..'9', Builder] # special procs for the
extensionLoaders*: array['0'..'9', Rope] # special procs for the
# OpenGL wrapper
sigConflicts*: CountTable[SigHash]
icImplMods*: IntSet # module ids whose routine BODIES this TU
# embeds (redirected defs, shared instances,
# hooks); recorded as the artifact's cdeps so
# the reuse gate can check their impl cookies
icDataDefs*: seq[tuple[cname, nifname: string]]
# C names of data definitions (consts, globals,
# RTTI) this TU embeds plus their NIF symbol
# names (empty for RTTI, which has no symbol);
# recorded in the cnif artifact so a later run
# can reuse the TU and re-demand definitions
# that cached TUs still reference
g*: BModuleList
template config*(m: BModule): ConfigRef = m.g.config
template config*(p: BProc): ConfigRef = p.module.g.config
template vccAndC*(p: BProc): bool = p.module.config.cCompiler == ccVcc and p.module.config.backend == backendC
proc delayedCodegen*(m: BModule): bool {.inline.} =
useAliveDataFromDce in m.flags or m.config.globalOptions.contains(optCompress)
proc includeHeader*(this: BModule; header: string) =
if not this.headerFiles.contains header:
this.headerFiles.add header
proc s*(p: BProc, s: TCProcSection): var Builder {.inline.} =
proc s*(p: BProc, s: TCProcSection): var Rope {.inline.} =
# section in the current block
result = p.blocks[^1].sections[s]
proc procSec*(p: BProc, s: TCProcSection): var Builder {.inline.} =
proc procSec*(p: BProc, s: TCProcSection): var Rope {.inline.} =
# top level proc sections
result = p.blocks[0].sections[s]
proc initBlock*(): TBlock =
result = TBlock()
for i in low(result.sections)..high(result.sections):
result.sections[i] = newBuilder("")
result.sections[i] = newRopeAppender()
proc newProc*(prc: PSym, module: BModule): BProc =
result = BProc(

View File

@@ -55,7 +55,7 @@ proc methodCall*(n: PNode; conf: ConfigRef): PNode =
# replace ordinary method by dispatcher method:
let disp = getDispatcher(result[0].sym)
if disp != nil:
result[0].typ = disp.typ
result[0].typ() = disp.typ
result[0].sym = disp
# change the arguments to up/downcasts to fit the dispatcher's parameters:
for i in 1..<result.len:
@@ -123,8 +123,8 @@ proc attachDispatcher(s: PSym, dispatcher: PNode) =
proc createDispatcher(s: PSym; g: ModuleGraph; idgen: IdGenerator): PSym =
var disp = copySym(s, idgen)
incl(disp, sfDispatcher)
excl(disp, sfExported)
incl(disp.flags, sfDispatcher)
excl(disp.flags, sfExported)
let old = disp.typ
disp.typ = copyType(disp.typ, idgen, disp.typ.owner)
copyTypeProps(g, idgen.module, disp.typ, old)
@@ -133,7 +133,7 @@ proc createDispatcher(s: PSym; g: ModuleGraph; idgen: IdGenerator): PSym =
if disp.typ.callConv == ccInline: disp.typ.callConv = ccNimCall
disp.ast = copyTree(s.ast)
disp.ast[bodyPos] = newNodeI(nkEmpty, s.info)
disp.locImpl.snippet = ""
disp.loc.snippet = ""
if s.typ.returnType != nil:
if disp.ast.len > resultPos:
disp.ast[resultPos].sym = copySym(s.ast[resultPos].sym, idgen)
@@ -160,17 +160,7 @@ proc fixupDispatcher(meth, disp: PSym; conf: ConfigRef) =
proc methodDef*(g: ModuleGraph; idgen: IdGenerator; s: PSym) =
var witness: PSym = nil
if s.typ.firstParamType.owner.getModule != s.getModule and vtables in g.config.features and not
g.config.isDefined("nimInternalNonVtablesTesting") and sfFromGeneric notin s.flags:
# `sfFromGeneric` excepted: this is the same-module restriction for vtable
# slot placement, and it must be judged on the GENERIC method, not on an
# instance. The generic `method skip[T](x: Input[T])` never reaches here
# (`semMethodPrototype` registers generic methods via `addMethodToGeneric`,
# bypassing `methodDef`); only its instance `skip[string]` does, and that
# instance's first-param type `Input[string]` is owned by whichever module
# first instantiated it (`tparsecombnum`, which `import parsecomb`s and uses
# it), NOT by `Input[T]`'s defining module — so the comparison spuriously
# fails for a method that is perfectly legal at the generic level. (Concrete
# methods, `sfFromGeneric notin flags`, are still checked.)
g.config.isDefined("nimInternalNonVtablesTesting"):
localError(g.config, s.info, errGenerated, "method `" & s.name.s &
"` can be defined only in the same module with its type (" & s.typ.firstParamType.typeToString() & ")")
if sfImportc in s.flags:
@@ -190,7 +180,6 @@ proc methodDef*(g: ModuleGraph; idgen: IdGenerator; s: PSym) =
g.methods[i].methods[0] != s:
# already exists due to forwarding definition?
localError(g.config, s.info, "method is not a base")
logMethodDef(g, s)
return
of No: discard
of Invalid:
@@ -202,7 +191,6 @@ proc methodDef*(g: ModuleGraph; idgen: IdGenerator; s: PSym) =
else:
g.bucketTable.inc(s.typ.firstParamType.skipTypes(skipPtrs).itemId)
g.methods.add((methods: @[s], dispatcher: createDispatcher(s, g, idgen)))
logMethodDef(g, s)
#echo "adding ", s.info
if witness != nil:
localError(g.config, s.info, "invalid declaration order; cannot attach '" & s.name.s &

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@@ -53,8 +53,7 @@ proc processCmdLineAndProjectPath*(self: NimProg, conf: ConfigRef) =
proc loadConfigsAndProcessCmdLine*(self: NimProg, cache: IdentCache; conf: ConfigRef;
graph: ModuleGraph): bool =
if self.suggestMode:
conf.setCmd cmdCheck
conf.ideActive = true
conf.setCmd cmdIdeTools
if conf.cmd == cmdNimscript:
incl(conf.globalOptions, optWasNimscript)
loadConfigs(DefaultConfig, cache, conf, graph.idgen) # load all config files

View File

@@ -1,726 +0,0 @@
#
#
# The Nim Compiler
# (c) Copyright 2026 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## The "cnif" artifact: the C code generator's output as a NIF file.
##
## This is deliberately *not* NIFC: the C text is kept verbatim (Nim's
## C-level machinery — exception handling in particular — is more refined
## than what NIFC models today; the gap can be closed incrementally later).
## The only structure the artifact adds is the part dead code elimination
## and generic-instance merging need:
##
## - raw C text as string literals
## - every *global* entity's C name as a `Symbol` token
## - every emitted proc definition as a `(cdef SymbolDef flags ...)` group
##
## The C generator marks names with control characters at the single place
## a global's C name is minted (`fillBackendName`) and emits a definition
## directive at the single place finished procs are appended; the marks then
## ride through all of the snippet composition untouched. This module turns
## the final marked module text into the `.c.nif` artifact and strips the
## marks for the actual `.c` output. Rendering C from the artifact is a
## plain token walk: string literals verbatim, symbols by name — which is
## also where a later merge step redirects losing generic instances.
##
## Marker scheme (cannot collide: C string literals escape control chars,
## and `\1`/`\31`/`\23` of cgen's postprocess directives are distinct):
## \2 name \3 a global's C name
## \4 name \31 flags \31 nif \5 start of the definition of `name`;
## `nif` is the defining symbol's NIF name
## (empty for backend-minted symbols) so a
## later run can re-demand the definition
## \4 \5 end of the definitions section
import std / [tables, sets, os, assertions, syncio, algorithm]
import "../dist/nimony/src/lib" / [nifbuilder, nifcoreparse]
const
CnifSymStart* = '\2'
CnifSymEnd* = '\3'
CnifDefStart* = '\4'
CnifDefSep* = '\31' # same separator char as cgen's postprocess directives
CnifDefEnd* = '\5'
proc markCName*(name: string): string {.inline.} =
CnifSymStart & name & CnifSymEnd
proc hasCnifMarks*(s: string): bool =
for c in s:
if c in {CnifSymStart, CnifSymEnd, CnifDefStart}: return true
false
proc stripCnifMarks*(s: string): string =
## Removes the symbol marks (keeping the names) and the definition
## directives (entirely) so the result is plain C.
if not hasCnifMarks(s): return s
result = newStringOfCap(s.len)
var i = 0
while i < s.len:
case s[i]
of CnifSymStart, CnifSymEnd:
inc i
of CnifDefStart:
while i < s.len and s[i] != CnifDefEnd: inc i
inc i # skip CnifDefEnd
else:
result.add s[i]
inc i
const
CnifVersion* = "4"
## Artifact format version, stored in the meta head. Artifacts written
## by an older compiler lack the NIF names and the cref group the
## def-retention check needs (v2), the cdeps group the fine-grained
## reuse gate needs (v3), or the type NIF names and cnif-marked extern
## RTTI references the typeinfo flavor of the def-retention check
## needs (v4); `readCnifHeads` reports them as invalid so their TUs
## simply regenerate once.
proc cnifDefDirective*(name, flags, nifName: string): string =
CnifDefStart & name & CnifDefSep & flags & CnifDefSep & nifName & CnifDefEnd
proc cnifEndDefs*(): string =
CnifDefStart & CnifDefEnd
proc writeCnifArtifact*(code: string; outfile: string;
initRequired = false; datInitRequired = false;
dataDefs: openArray[tuple[cname, nifname: string]] = [];
semmedNif = ""; moduleBase = "";
implDeps: openArray[string] = []) =
## Splits the marked module text into the `.c.nif` artifact.
## The artifact starts with a `(meta <flags> "semmedNif" "moduleBase"
## "version")` head — whether the module has an init/datInit proc
## ('i'/'d'), which semmed NIF it was generated from and the module's
## mangled base name (what `registerModuleToMain` and the reuse decision
## need when the TU is reused in a later run, possibly without the module
## ever being loaded again) — a `(cdata (SymbolDef StrLit)*)` group naming
## the data definitions (consts, globals, RTTI) the TU embeds together
## with their NIF names, a `(cref Ident*)` group naming every C name
## the TU references but does not define itself (what the def-retention
## check consults when some *other* TU regenerates), and a
## `(cdeps Ident*)` group naming the modules whose routine *bodies* this
## TU embeds (redirected defs, shared instances, hooks): the fine-grained
## reuse gate checks their `.impl.nif` cookies on top of the direct
## imports' `.iface.nif` cookies.
# pre-pass: every marked name is a use, every definition directive (and
# every data def) is a definition; external references = uses - defs
var uses = initHashSet[string]()
var defs = initHashSet[string]()
block prePass:
var i = 0
while i < code.len:
case code[i]
of CnifSymStart:
inc i
var name = ""
while i < code.len and code[i] != CnifSymEnd:
name.add code[i]
inc i
inc i
uses.incl name
of CnifDefStart:
inc i
var payload = ""
while i < code.len and code[i] != CnifDefEnd:
payload.add code[i]
inc i
inc i
let sep = find(payload, CnifDefSep)
if sep > 0: defs.incl payload[0..<sep]
elif payload.len > 0: defs.incl payload
else:
inc i
for d in dataDefs: defs.incl d.cname
var crefs: seq[string] = @[]
for u in uses:
if u notin defs: crefs.add u
sort crefs
var b = nifbuilder.open(outfile)
b.withTree "stmts":
b.withTree "meta":
var metaFlags = ""
if initRequired: metaFlags.add 'i'
if datInitRequired: metaFlags.add 'd'
if metaFlags.len > 0: b.addIdent metaFlags
else: b.addEmpty
b.addStrLit semmedNif
b.addStrLit moduleBase
b.addStrLit CnifVersion
b.withTree "cdata":
for d in dataDefs:
b.addSymbolDef d.cname
b.addStrLit d.nifname
b.withTree "cref":
for r in crefs:
b.addIdent r
b.withTree "cdeps":
for s in implDeps:
b.addIdent s
var raw = ""
var inDef = false
template flushRaw() =
if raw.len > 0:
b.addStrLit raw
raw.setLen 0
var i = 0
while i < code.len:
case code[i]
of CnifSymStart:
flushRaw()
inc i
var name = ""
while i < code.len and code[i] != CnifSymEnd:
name.add code[i]
inc i
inc i # skip CnifSymEnd
b.addSymbol name, ""
of CnifDefStart:
flushRaw()
inc i
var payload = ""
while i < code.len and code[i] != CnifDefEnd:
payload.add code[i]
inc i
inc i # skip CnifDefEnd
if inDef:
b.endTree()
inDef = false
if payload.len > 0:
let sep = find(payload, CnifDefSep)
let name = if sep >= 0: payload[0..<sep] else: payload
var flags = if sep >= 0: payload[sep+1..^1] else: ""
var nifName = ""
let sep2 = find(flags, CnifDefSep)
if sep2 >= 0:
nifName = flags[sep2+1..^1]
flags = flags[0..<sep2]
b.addTree "cdef"
b.addSymbolDef name
if flags.len > 0: b.addIdent flags
else: b.addEmpty
b.addStrLit nifName
inDef = true
else:
raw.add code[i]
inc i
flushRaw()
if inDef:
b.endTree()
b.close()
proc renderMarkedC*(code: string; live: HashSet[string]; dropped: var int): string =
## Renders the final C text from the marked module text: symbol marks are
## removed (keeping the names — a later merge step substitutes them here),
## and definitions whose name is not in `live` are dropped entirely. Each
## definition is self-delimiting (genProcAux emits an end directive right
## after the proc's text), so text written by other emitters is never part
## of a definition's span and survives unconditionally.
result = newStringOfCap(code.len)
var i = 0
while i < code.len:
case code[i]
of CnifSymStart, CnifSymEnd:
inc i
of CnifDefStart:
var payload = ""
inc i
while i < code.len and code[i] != CnifDefEnd:
payload.add code[i]
inc i
inc i # skip CnifDefEnd
if payload.len > 0:
let sep = find(payload, CnifDefSep)
let name = if sep >= 0: payload[0..<sep] else: payload
if name notin live:
inc dropped
# drop the definition's text: everything up to its end directive
while i < code.len and code[i] != CnifDefStart: inc i
else:
result.add code[i]
inc i
# ---- Liveness over the artifact -------------------------------------------
proc symOrIdentName(c: Cursor): string {.inline.} =
if c.kind == Ident: strVal(c) else: symName(c)
type
CnifHeads* = object
## The cheap-to-parse part of an artifact that a later run needs in
## order to reuse the TU without regenerating it.
valid*: bool ## file parsed, carries the meta head and has
## the current format version
initRequired*: bool
datInitRequired*: bool
semmedNif*: string ## the semmed NIF this TU was generated from
moduleBase*: string ## the module's mangled base name
cdefs*: seq[tuple[cname, nifname: string]] ## the proc definitions
cdata*: seq[tuple[cname, nifname: string]] ## the data definitions
crefs*: seq[string] ## C names referenced but not defined here
cdeps*: seq[string] ## module suffixes whose routine bodies this
## TU embeds (impl-cookie gated on reuse)
proc readCnifHeads*(f: string): CnifHeads =
## Reads `(meta ...)`, `(cdata ...)`, `(cref ...)` and the `(cdef ...)`
## head names from an artifact. Artifacts written by an older compiler
## (no meta head or a different format version) report `valid=false`.
result = CnifHeads()
if not fileExists(f): return
var pool = newPool()
var tags = newTagPool()
let stmtsTag = tags.registerTag("stmts")
let cdefTag = tags.registerTag("cdef")
let cdataTag = tags.registerTag("cdata")
let crefTag = tags.registerTag("cref")
let cdepsTag = tags.registerTag("cdeps")
let metaTag = tags.registerTag("meta")
var buf = parseFromFile(f, 1000, pool, tags)
var c = beginRead(buf)
if c.kind != TagLit or c.cursorTagId != stmtsTag:
endRead(c)
return
var version = ""
var sawMeta = false
c.loopInto:
if c.kind == TagLit:
if c.cursorTagId == metaTag:
sawMeta = true
var strIdx = 0
c.loopInto:
if c.kind == Ident:
for ch in strVal(c):
if ch == 'i': result.initRequired = true
elif ch == 'd': result.datInitRequired = true
inc c
elif c.kind == StrLit:
if strIdx == 0: result.semmedNif = strVal(c)
elif strIdx == 1: result.moduleBase = strVal(c)
elif strIdx == 2: version = strVal(c)
inc strIdx
inc c
else:
skip c
elif c.cursorTagId == cdataTag:
c.loopInto:
if c.kind == SymbolDef:
result.cdata.add (symName(c), "")
inc c
elif c.kind == StrLit:
if result.cdata.len > 0:
result.cdata[^1].nifname = strVal(c)
inc c
else:
skip c
elif c.cursorTagId == crefTag:
c.loopInto:
if c.kind in {Ident, Symbol, SymbolDef}:
result.crefs.add symOrIdentName(c)
inc c
else:
skip c
elif c.cursorTagId == cdepsTag:
c.loopInto:
if c.kind in {Ident, Symbol, SymbolDef}:
result.cdeps.add symOrIdentName(c)
inc c
else:
skip c
elif c.cursorTagId == cdefTag:
# fixed head: SymbolDef, flags (Ident or empty), NIF name StrLit;
# everything after that is the definition's body text
var state = 0
c.loopInto:
if c.kind == SymbolDef:
result.cdefs.add (symName(c), "")
state = 1
inc c
elif state == 1: # the flags field
state = 2
skip c
elif state == 2: # the NIF name
if c.kind == StrLit and result.cdefs.len > 0:
result.cdefs[^1].nifname = strVal(c)
state = 3
skip c
else:
skip c
else:
skip c
else:
skip c
endRead(c)
result.valid = sawMeta and version == CnifVersion
type
CnifLiveness* = object
defs*: int ## proc definitions emitted across all modules
liveDefs*: int ## of those, reachable from the roots
live*: HashSet[string] ## live C names
broken*: bool
proc computeLiveFromCArtifacts*(files: openArray[string]): CnifLiveness =
## dce1-style mark&sweep over the C-shaped artifacts: a `(cdef ...)`
## group is a definition (flags 'x'/'c'/'m' — exportc, compilerproc,
## method/dispatcher — make it a root), names at the top level (data,
## globals, init code) are roots, names inside a group are its uses.
## Because the artifact is *fully lowered* output, no conservative
## modelling is needed: every call the C code contains is a token here.
##
## NB: mangled C names contain no dots, so NIF's text reader classifies
## them as `Ident` rather than `Symbol`; the dialect therefore treats
## Ident tokens as name uses. Inside a `(cdef ...)` the flags ident is
## the one immediately following the SymbolDef; everything after is a use.
result = CnifLiveness(live: initHashSet[string]())
var pool = newPool()
var tags = newTagPool()
let stmtsTag = tags.registerTag("stmts")
let cdefTag = tags.registerTag("cdef")
let cdataTag = tags.registerTag("cdata")
let crefTag = tags.registerTag("cref")
let cdepsTag = tags.registerTag("cdeps")
let metaTag = tags.registerTag("meta")
var uses = initTable[string, HashSet[string]]()
var roots = initHashSet[string]()
var defs = initHashSet[string]()
for f in files:
if not fileExists(f):
result.broken = true
return
var buf = parseFromFile(f, 1000, pool, tags)
var c = beginRead(buf)
if c.kind != TagLit or c.cursorTagId != stmtsTag:
result.broken = true
endRead(c)
return
c.loopInto:
case c.kind
of Symbol, Ident:
roots.incl symOrIdentName(c)
inc c
of TagLit:
if c.cursorTagId == metaTag or c.cursorTagId == cdataTag or
c.cursorTagId == crefTag or c.cursorTagId == cdepsTag:
# bookkeeping for TU reuse, irrelevant for liveness
skip c
elif c.cursorTagId == cdefTag:
var owner = ""
var flagsSeen = false
c.loopInto:
case c.kind
of SymbolDef:
owner = symName(c)
defs.incl owner
flagsSeen = false
inc c
of Symbol, Ident:
let name = symOrIdentName(c)
if not flagsSeen:
# the flags field right after the SymbolDef
flagsSeen = true
for ch in name:
# 'd' marks a data definition (const/RTTI): never DCE'd, so it
# is a root whose body keeps its referenced procs live
if ch in {'x', 'c', 'm', 'd'}:
roots.incl owner
break
else:
uses.mgetOrPut(owner, initHashSet[string]()).incl name
inc c
of DotToken:
flagsSeen = true # empty flags field
inc c
else:
skip c
else:
c.loopInto:
if c.kind in {Symbol, Ident}:
roots.incl symOrIdentName(c)
inc c
else:
skip c
else:
skip c
endRead(c)
# mark & sweep
var work = newSeqOfCap[string](roots.len)
for r in roots: work.add r
while work.len > 0:
let s = work.pop()
if not result.live.containsOrIncl(s):
if uses.hasKey(s):
for dep in uses[s]:
if dep notin result.live:
work.add dep
result.defs = defs.len
for d in defs:
if d in result.live: inc result.liveDefs
# ---- The merge stage: liveness + owner assignment -------------------------
type
MergeDecision* = object
## What the per-module backend's `merge` stage computes from every
## module's `.c.nif` and what its `emit` stage consumes to render the
## final `.c` of one module.
live*: HashSet[string] ## globally reachable C names (dead cdefs
## are dropped from every module)
owners*: Table[string, string] ## for each `'u'`-flagged (unique,
## externally-linked) definition, the single
## artifact base name allowed to embed its
## body; every other module prototypes it
broken*: bool ## an artifact was missing or unparsable —
## the caller should fall back / regenerate
defs*, liveDefs*: int
proc computeMergeDecision*(files: openArray[string]): MergeDecision =
## One pass over every `.c.nif`: the same mark&sweep as
## `computeLiveFromCArtifacts` plus, per definition, owner assignment.
##
## Each `cg` process emits the body of every definition it demands
## (emit-everywhere), so the same externally-linked definition appears in
## several artifacts. A `'u'` flag on the `(cdef ...)` marks those that need
## exactly one owner, assigned here across processes: the owner is the
## lexicographically smallest artifact that emits it — a pure function of the
## claimant set, hence stable across rebuilds. Definitions without `'u'`
## (inline procs, dispatchers) are `static`/main-only and emitted into every
## using TU, so they get no owner entry and are never deduplicated.
result = MergeDecision(live: initHashSet[string](),
owners: initTable[string, string]())
var pool = newPool()
var tags = newTagPool()
let stmtsTag = tags.registerTag("stmts")
let cdefTag = tags.registerTag("cdef")
let cdataTag = tags.registerTag("cdata")
let crefTag = tags.registerTag("cref")
let cdepsTag = tags.registerTag("cdeps")
let metaTag = tags.registerTag("meta")
var uses = initTable[string, HashSet[string]]()
var roots = initHashSet[string]()
var defs = initHashSet[string]()
for f in files:
if not fileExists(f):
result.broken = true
return
let owner = extractFilename(f)
var buf = parseFromFile(f, 1000, pool, tags)
var c = beginRead(buf)
if c.kind != TagLit or c.cursorTagId != stmtsTag:
result.broken = true
endRead(c)
return
c.loopInto:
case c.kind
of Symbol, Ident:
roots.incl symOrIdentName(c)
inc c
of TagLit:
if c.cursorTagId == metaTag or c.cursorTagId == cdataTag or
c.cursorTagId == crefTag or c.cursorTagId == cdepsTag:
skip c
elif c.cursorTagId == cdefTag:
var ownerName = ""
var flagsSeen = false
var needsOwner = false
c.loopInto:
case c.kind
of SymbolDef:
ownerName = symName(c)
defs.incl ownerName
flagsSeen = false
inc c
of Symbol, Ident:
let name = symOrIdentName(c)
if not flagsSeen:
flagsSeen = true
for ch in name:
if ch in {'x', 'c', 'm'}: roots.incl ownerName
# 'u' = unique proc (DCE'd), 'd' = data (never DCE'd, hence a
# root); both need a single owner across the emit-everywhere
# processes
elif ch == 'u': needsOwner = true
elif ch == 'd':
needsOwner = true
roots.incl ownerName
else:
uses.mgetOrPut(ownerName, initHashSet[string]()).incl name
inc c
of DotToken:
flagsSeen = true # empty flags field
inc c
else:
skip c
if needsOwner and ownerName.len > 0:
# smallest claimant wins; ties impossible (one entry per name)
let prev = result.owners.getOrDefault(ownerName, "")
if prev.len == 0 or owner < prev:
result.owners[ownerName] = owner
else:
c.loopInto:
if c.kind in {Symbol, Ident}:
roots.incl symOrIdentName(c)
inc c
else:
skip c
else:
skip c
endRead(c)
var work = newSeqOfCap[string](roots.len)
for r in roots: work.add r
while work.len > 0:
let s = work.pop()
if not result.live.containsOrIncl(s):
if uses.hasKey(s):
for dep in uses[s]:
if dep notin result.live:
work.add dep
result.defs = defs.len
for d in defs:
if d in result.live: inc result.liveDefs
const MergeDecisionFile* = "ic.backend.merge.nif"
## Fixed name of the merge stage's output in the nimcache, read by `emit`.
proc writeMergeDecision*(outfile: string; d: MergeDecision) =
## Serializes the merge decision: `(merge (live Symbol*) (owners (own
## Symbol StrLit)*))`. C names are mangled (no dots) so they serialize as
## symbols; owner artifact base names go in string literals.
var live: seq[string] = @[]
for n in d.live: live.add n
sort live
var keys: seq[string] = @[]
for k in d.owners.keys: keys.add k
sort keys
var b = nifbuilder.open(outfile)
b.withTree "merge":
b.withTree "live":
for n in live: b.addSymbol n, ""
b.withTree "owners":
for k in keys:
b.withTree "own":
b.addSymbol k, ""
b.addStrLit d.owners[k]
b.close()
proc readMergeDecision*(f: string): MergeDecision =
## Reads back a `writeMergeDecision` file; `broken=true` if absent/unparsable.
result = MergeDecision(live: initHashSet[string](),
owners: initTable[string, string]())
if not fileExists(f):
result.broken = true
return
var pool = newPool()
var tags = newTagPool()
let mergeTag = tags.registerTag("merge")
let liveTag = tags.registerTag("live")
let ownersTag = tags.registerTag("owners")
let ownTag = tags.registerTag("own")
var buf = parseFromFile(f, 1000, pool, tags)
var c = beginRead(buf)
if c.kind != TagLit or c.cursorTagId != mergeTag:
result.broken = true
endRead(c)
return
c.loopInto:
if c.kind == TagLit and c.cursorTagId == liveTag:
c.loopInto:
if c.kind in {Symbol, Ident}:
result.live.incl symOrIdentName(c)
inc c
else:
skip c
elif c.kind == TagLit and c.cursorTagId == ownersTag:
c.loopInto:
if c.kind == TagLit and c.cursorTagId == ownTag:
var key = ""
c.loopInto:
if c.kind in {Symbol, Ident}:
key = symOrIdentName(c)
inc c
elif c.kind == StrLit:
if key.len > 0: result.owners[key] = strVal(c)
inc c
else:
skip c
else:
skip c
else:
skip c
endRead(c)
proc renderCFromArtifact*(artifact: string; d: MergeDecision; ownerId: string;
dropped: var int): string =
## The per-module backend's `emit` stage: render one module's final `.c` from
## its `.c.nif` and the merge decision. String literals are emitted verbatim,
## symbols by name; a `(cdef ...)` body is dropped when the name is dead, or
## when it is a `'u'` unique definition this module does not own. The body's
## prototype lives in the surrounding raw text (cgen emits a forward
## declaration for every *used* proc, independent of where the body lands), so
## a dropped body still leaves a valid declaration — no synthesis needed. The
## head groups (meta/cdata/cref/cdeps) carry no C text.
result = ""
if not fileExists(artifact): return
var pool = newPool()
var tags = newTagPool()
let stmtsTag = tags.registerTag("stmts")
let cdefTag = tags.registerTag("cdef")
var buf = parseFromFile(artifact, 1000, pool, tags)
var c = beginRead(buf)
if c.kind != TagLit or c.cursorTagId != stmtsTag:
endRead(c)
return
c.loopInto:
case c.kind
of StrLit:
result.add strVal(c)
inc c
of Symbol, Ident:
result.add symOrIdentName(c)
inc c
of TagLit:
if c.cursorTagId == cdefTag:
# fixed head: SymbolDef, flags (Ident or empty), nifname StrLit; the
# rest is the definition's body text. `state` counts past the head.
var name = ""
var isUnique = false
var isData = false
var keep = true
var state = 0
c.loopInto:
if state == 0 and c.kind == SymbolDef:
name = symName(c)
state = 1
inc c
elif state == 1: # the flags field (one token: Ident/Symbol or empty)
if c.kind in {Ident, Symbol}:
for ch in symOrIdentName(c):
if ch == 'u': isUnique = true
elif ch == 'd': isData = true
state = 2
inc c
elif state == 2: # the NIF name (one StrLit) — decide keep here
let owned = d.owners.getOrDefault(name, ownerId) == ownerId
keep =
if isData: owned # data: kept by its owner only
elif isUnique: (name in d.live) and owned
else: name in d.live # inline/dispatcher: per-TU
if not keep: inc dropped
state = 3
inc c
else: # body tokens
if keep:
if c.kind == StrLit: result.add strVal(c)
elif c.kind in {Symbol, Ident}: result.add symOrIdentName(c)
inc c
else:
# head groups (meta/cdata/cref/cdeps) carry no C text
skip c
else:
inc c
endRead(c)

View File

@@ -24,7 +24,7 @@ bootSwitch(usedMarkAndSweep, defined(gcmarkandsweep), "--gc:markAndSweep")
bootSwitch(usedGoGC, defined(gogc), "--gc:go")
bootSwitch(usedNoGC, defined(nogc), "--gc:none")
import std/[setutils, sets, os, strutils, parseutils, parseopt, sequtils, strtabs, enumutils]
import std/[setutils, os, strutils, parseutils, parseopt, sequtils, strtabs, enumutils]
import
msgs, options, nversion, condsyms, extccomp, platform,
wordrecg, nimblecmd, lineinfos, pathutils
@@ -118,7 +118,7 @@ const
errInvalidCmdLineOption = "invalid command line option: '$1'"
errOnOrOffExpectedButXFound = "'on' or 'off' expected, but '$1' found"
errOnOffOrListExpectedButXFound = "'on', 'off' or 'list' expected, but '$1' found"
errOffHintsError = "'off', 'hint', 'warning', 'error' or 'usages' expected, but '$1' found"
errOffHintsError = "'off', 'hint', 'error' or 'usages' expected, but '$1' found"
proc invalidCmdLineOption(conf: ConfigRef; pass: TCmdLinePass, switch: string, info: TLineInfo) =
if switch == " ": localError(conf, info, errInvalidCmdLineOption % "-")
@@ -245,12 +245,11 @@ proc processCompile(conf: ConfigRef; filename: string) =
extccomp.addExternalFileToCompile(conf, found)
const
errNoneBoehmRefcExpectedButXFound = "'arc', 'orc', 'yrc', 'atomicArc', 'markAndSweep', 'boehm', 'go', 'none', 'regions', or 'refc' expected, but '$1' found"
errNoneBoehmRefcExpectedButXFound = "'arc', 'orc', 'atomicArc', 'markAndSweep', 'boehm', 'go', 'none', 'regions', or 'refc' expected, but '$1' found"
errNoneSpeedOrSizeExpectedButXFound = "'none', 'speed' or 'size' expected, but '$1' found"
errGuiConsoleOrLibExpectedButXFound = "'gui', 'console', 'lib' or 'staticlib' expected, but '$1' found"
errInvalidExceptionSystem = "'goto', 'setjmp', 'cpp' or 'quirky' expected, but '$1' found"
errInvalidFeatureButXFound = Feature.toSeq.map(proc(val:Feature): string = "'$1'" % $val).join(", ") & " expected, but '$1' found"
errDefaultOrSsoExpectedButXFound = "'default' or 'sso' expected, but '$1' found"
template warningOptionNoop(switch: string) =
warningDeprecated(conf, info, "'$#' is deprecated, now a noop" % switch)
@@ -267,7 +266,6 @@ proc testCompileOptionArg*(conf: ConfigRef; switch, arg: string, info: TLineInfo
of "markandsweep": result = conf.selectedGC == gcMarkAndSweep
of "destructors", "arc": result = conf.selectedGC == gcArc
of "orc": result = conf.selectedGC == gcOrc
of "yrc": result = conf.selectedGC == gcYrc
of "hooks": result = conf.selectedGC == gcHooks
of "go": result = conf.selectedGC == gcGo
of "none": result = conf.selectedGC == gcNone
@@ -307,13 +305,6 @@ proc testCompileOptionArg*(conf: ConfigRef; switch, arg: string, info: TLineInfo
else:
result = false
localError(conf, info, errInvalidExceptionSystem % arg)
of "strings":
case arg.normalize
of "default": result = conf.selectedStrings == stringDefault
of "sso": result = conf.selectedStrings == stringSso
else:
result = false
localError(conf, info, errDefaultOrSsoExpectedButXFound % arg)
of "experimental":
try:
result = conf.features.contains parseEnum[Feature](arg)
@@ -373,7 +364,6 @@ proc testCompileOption*(conf: ConfigRef; switch: string, info: TLineInfo): bool
result = false
of "panics": result = contains(conf.globalOptions, optPanics)
of "jsbigint64": result = contains(conf.globalOptions, optJsBigInt64)
of "mangle": result = contains(conf.globalOptions, optItaniumMangle)
else:
result = false
invalidCmdLineOption(conf, passCmd1, switch, info)
@@ -483,7 +473,6 @@ proc parseCommand*(command: string): Command =
of "cpp", "compiletocpp": cmdCompileToCpp
of "objc", "compiletooc": cmdCompileToOC
of "js", "compiletojs": cmdCompileToJS
of "nif": cmdCompileToNif
of "r": cmdCrun
of "m": cmdM
of "run": cmdTcc
@@ -503,13 +492,10 @@ proc parseCommand*(command: string): Command =
of "gendepend": cmdGendepend
of "dump": cmdDump
of "parse": cmdParse
of "rod": cmdRod
of "secret": cmdInteractive
of "nop", "help": cmdNop
of "jsonscript": cmdJsonscript
of "nifc": cmdNifC # generate C from NIF files
of "ic": cmdIc # generate .build.nif for nifmake
of "icconfig": cmdIcConfig # produce the precompiled config artifact
of "track": cmdTrack # IDE goto-def / find-usages over `nim ic`'s NIF output
else: cmdUnknown
proc setCmd*(conf: ConfigRef, cmd: Command) =
@@ -521,12 +507,6 @@ proc setCmd*(conf: ConfigRef, cmd: Command) =
of cmdCompileToCpp: conf.backend = backendCpp
of cmdCompileToOC: conf.backend = backendObjc
of cmdCompileToJS: conf.backend = backendJs
of cmdCompileToNif: conf.backend = backendNif
of cmdNifC:
conf.backend = backendC # NIF to C compilation
of cmdM:
# cmdM requires optCompress for proper IC handling (include files, etc.)
conf.globalOptions.incl optCompress
else: discard
proc setCommandEarly*(conf: ConfigRef, command: string) =
@@ -581,7 +561,6 @@ proc unregisterArcOrc*(conf: ConfigRef) =
undefSymbol(conf.symbols, "gcdestructors")
undefSymbol(conf.symbols, "gcarc")
undefSymbol(conf.symbols, "gcorc")
undefSymbol(conf.symbols, "gcyrc")
undefSymbol(conf.symbols, "gcatomicarc")
undefSymbol(conf.symbols, "nimSeqsV2")
undefSymbol(conf.symbols, "nimV2")
@@ -615,10 +594,6 @@ proc processMemoryManagementOption(switch, arg: string, pass: TCmdLinePass,
conf.selectedGC = gcOrc
defineSymbol(conf.symbols, "gcorc")
registerArcOrc(pass, conf)
of "yrc":
conf.selectedGC = gcYrc
defineSymbol(conf.symbols, "gcyrc")
registerArcOrc(pass, conf)
of "atomicarc":
conf.selectedGC = gcAtomicArc
defineSymbol(conf.symbols, "gcatomicarc")
@@ -655,18 +630,6 @@ proc processSwitch*(switch, arg: string, pass: TCmdLinePass, info: TLineInfo;
conf: ConfigRef) =
var key = ""
var val = ""
# Record config-file switches so the `nim ic` driver can serialise them into a
# precompiled-config artifact and have its per-module child processes replay
# them instead of re-parsing the `nim.cfg` chain (and re-running `config.nims`
# in the VM) on every invocation. Only `passPP` (config-file) switches are
# captured; command-line switches are forwarded by the build graph as usual.
# Path-search switches are skipped: their net effect already lives in the
# resolved `searchPaths` the driver forwards as `--path`, and replaying their
# raw (often relative-to-config-dir) arguments here would misresolve.
if pass == passPP and switch.normalize notin
["path", "p", "nimblepath", "lazypath", "excludepath",
"nonimblepath", "clearnimblepath", "nimcache"]:
conf.icConfigSwitches.add (switch, arg)
case switch.normalize
of "eval":
expectArg(conf, switch, arg, pass, info)
@@ -719,14 +682,6 @@ proc processSwitch*(switch, arg: string, pass: TCmdLinePass, info: TLineInfo;
conf.outDir = processPath(conf, arg, info, notRelativeToProj=true)
of "usenimcache":
processOnOffSwitchG(conf, {optUseNimcache}, arg, pass, info)
of "ideimports":
# nimsuggest: where the import closure comes from. IC is opt-in.
# nif|on load unchanged imports from precompiled NIF (cmdM)
# source|off (default) recompile the whole closure from source (cmdCheck)
case arg.normalize
of "nif", "on", "": conf.ideImportsFromNif = true
of "source", "off": conf.ideImportsFromNif = false
else: localError(conf, info, "'--ideImports' expects 'nif' or 'source', got: '$1'" % arg)
of "docseesrcurl":
expectArg(conf, switch, arg, pass, info)
conf.docSeeSrcUrl = arg
@@ -780,17 +735,6 @@ proc processSwitch*(switch, arg: string, pass: TCmdLinePass, info: TLineInfo;
processMemoryManagementOption(switch, arg, pass, info, conf)
of "mm":
processMemoryManagementOption(switch, arg, pass, info, conf)
of "strings":
expectArg(conf, switch, arg, pass, info)
if pass in {passCmd2, passPP}:
case arg.normalize
of "default":
conf.selectedStrings = stringDefault
of "sso":
conf.selectedStrings = stringSso
defineSymbol(conf.symbols, "nimsso")
else:
localError(conf, info, errDefaultOrSsoExpectedButXFound % arg)
of "warnings", "w":
if processOnOffSwitchOrList(conf, {optWarns}, arg, pass, info): listWarnings(conf)
of "warning": processSpecificNote(arg, wWarning, pass, info, switch, conf)
@@ -816,18 +760,6 @@ proc processSwitch*(switch, arg: string, pass: TCmdLinePass, info: TLineInfo;
conf.globalOptions.excl optCDebug
else:
localError(conf, info, "expected native|gdb|on|off but found " & arg)
of "mangle":
case arg.normalize
of "nim":
conf.globalOptions.excl optItaniumMangle
of "cpp":
conf.globalOptions.incl optItaniumMangle
else:
localError(conf, info, "expected nim|cpp but found " & arg)
of "compress":
conf.globalOptions.incl optCompress
of "genbif":
processOnOffSwitchG(conf, {optGenBif}, arg, pass, info)
of "g": # alias for --debugger:native
conf.globalOptions.incl optCDebug
conf.options.incl optLineDir
@@ -843,7 +775,6 @@ proc processSwitch*(switch, arg: string, pass: TCmdLinePass, info: TLineInfo;
of "hotcodereloading":
processOnOffSwitchG(conf, {optHotCodeReloading}, arg, pass, info)
if conf.hcrOn:
warningDeprecated(conf, info, "hotCodeReloading is deprecated, see https://github.com/nim-lang/RFCs/issues/573 for further information")
defineSymbol(conf.symbols, "hotcodereloading")
defineSymbol(conf.symbols, "useNimRtl")
# hardcoded linking with dynamic runtime for MSVC for smaller binaries
@@ -948,65 +879,14 @@ proc processSwitch*(switch, arg: string, pass: TCmdLinePass, info: TLineInfo;
else: localError(conf, info, errOnOrOffExpectedButXFound % arg)
of "noimportdoc":
processOnOffSwitchG(conf, {optNoImportdoc}, arg, pass, info)
of "ismainmodule":
# `nim m` (IC) only: marks the single module being checked as the program's
# real entry point so that `isMainModule` and `when isMainModule:` resolve
# correctly even though every module is compiled with `sfMainModule` set.
conf.isMainModule = switchOn(arg)
of "icgroup":
# `nim m` only: register a module that belongs to the current strongly-
# connected import group, so it is compiled from source (not loaded from a
# precompiled NIF) and gets its own NIF written. `deps.nim` emits one
# `--icGroup:<path>` per member of a dependency cycle. The argument is an
# absolute .nim path produced by the dependency scanner.
expectArg(conf, switch, arg, pass, info)
if pass in {passCmd2, passPP}:
conf.icGroup.incl(canonicalizePath(conf, AbsoluteFile arg).string)
of "icproject":
# `nim m`/`nim nifc` only: the ORIGINAL project file (see options.icProject)
expectArg(conf, switch, arg, pass, info)
if pass in {passCmd2, passPP}:
conf.icProject = canonicalizePath(conf, AbsoluteFile arg).string
of "icpreparsedconfig":
# `nim m`/`nim nifc` only: path of the precompiled-config artifact (see
# options.icPreparsedConfig). Read in `passCmd1`, before `loadConfigs`, so
# config loading can replay it instead of re-parsing the `nim.cfg` chain.
expectArg(conf, switch, arg, pass, info)
conf.icPreparsedConfig = arg
of "icconfigout":
# `nim icconfig` only: where to write the precompiled config artifact (see
# options.icConfigOut). The `nim ic` driver spawns the producer with this.
expectArg(conf, switch, arg, pass, info)
conf.icConfigOut = arg
of "icbackendstage":
# `nim nifc` only: per-module backend stage, one of cg|merge|emit (see
# options.icBackendStage). Empty (switch unused) keeps the whole-program
# backend. Emitted by `deps.nim`'s backend build file.
expectArg(conf, switch, arg, pass, info)
if pass in {passCmd2, passPP}:
conf.icBackendStage = arg
of "icbackendmodule":
# `nim nifc` only: the NIF module suffix the cg/emit stage operates on (see
# options.icBackendModule).
expectArg(conf, switch, arg, pass, info)
if pass in {passCmd2, passPP}:
conf.icBackendModule = arg
of "import":
expectArg(conf, switch, arg, pass, info)
if pass in {passCmd2, passPP}:
let m = findModule(conf, arg, toFullPath(conf, info)).string
if m.len == 0:
localError(conf, info, "Cannot resolve filename: " & arg)
else:
conf.implicitImports.add(if arg.startsWith(stdPrefix): arg else: m)
conf.implicitImports.add findModule(conf, arg, toFullPath(conf, info)).string
of "include":
expectArg(conf, switch, arg, pass, info)
if pass in {passCmd2, passPP}:
let m = findModule(conf, arg, toFullPath(conf, info)).string
if m.len == 0:
localError(conf, info, "Cannot resolve filename: " & arg)
else:
conf.implicitIncludes.add m
conf.implicitIncludes.add findModule(conf, arg, toFullPath(conf, info)).string
of "listcmd":
processOnOffSwitchG(conf, {optListCmd}, arg, pass, info)
of "asm":
@@ -1038,7 +918,7 @@ proc processSwitch*(switch, arg: string, pass: TCmdLinePass, info: TLineInfo;
expectArg(conf, switch, arg, pass, info)
var value: int = 10_000_000
discard parseSaturatedNatural(arg, value)
if value <= 0: localError(conf, info, "maxLoopIterationsVM must be a positive integer greater than zero")
if not value > 0: localError(conf, info, "maxLoopIterationsVM must be a positive integer greater than zero")
conf.maxLoopIterationsVM = value
of "maxcalldepthvm":
expectArg(conf, switch, arg, pass, info)
@@ -1092,8 +972,7 @@ proc processSwitch*(switch, arg: string, pass: TCmdLinePass, info: TLineInfo;
# xxx maybe also ic, since not in help?
if pass in {passCmd2, passPP}:
case arg.normalize
of "on": conf.ic = true
of "legacy": conf.symbolFiles = v2Sf
of "on": conf.symbolFiles = v2Sf
of "off": conf.symbolFiles = disabledSf
of "writeonly": conf.symbolFiles = writeOnlySf
of "readonly": conf.symbolFiles = readOnlySf
@@ -1201,9 +1080,6 @@ proc processSwitch*(switch, arg: string, pass: TCmdLinePass, info: TLineInfo;
of "shownonexports":
expectNoArg(conf, switch, arg, pass, info)
showNonExportedFields(conf)
of "raw":
expectNoArg(conf, switch, arg, pass, info)
docRawOutput(conf)
of "exceptions":
case arg.normalize
of "cpp": conf.exc = excCpp
@@ -1235,10 +1111,9 @@ proc processSwitch*(switch, arg: string, pass: TCmdLinePass, info: TLineInfo;
defineSymbol(conf.symbols, "nimSeqsV2")
of "stylecheck":
case arg.normalize
of "off": conf.globalOptions = conf.globalOptions - {optStyleHint, optStyleError, optStyleWarning}
of "hint": conf.globalOptions = conf.globalOptions + {optStyleHint} - {optStyleError, optStyleWarning}
of "warning": conf.globalOptions = conf.globalOptions + {optStyleWarning} - {optStyleHint, optStyleError}
of "error": conf.globalOptions = conf.globalOptions + {optStyleError} - {optStyleHint, optStyleWarning}
of "off": conf.globalOptions = conf.globalOptions - {optStyleHint, optStyleError}
of "hint": conf.globalOptions = conf.globalOptions + {optStyleHint} - {optStyleError}
of "error": conf.globalOptions = conf.globalOptions + {optStyleError}
of "usages": conf.globalOptions.incl optStyleUsages
else: localError(conf, info, errOffHintsError % arg)
of "showallmismatches":
@@ -1328,16 +1203,8 @@ proc processArgument*(pass: TCmdLinePass; p: OptParser;
# support UNIX style filenames everywhere for portable build scripts:
if config.projectName.len == 0:
config.projectName = unixToNativePath(p.key)
if config.cmd == cmdTrack:
# `nim track PROJ --def:...`: unlike a normal command (where everything
# after the project file is passed to the compiled program), `track`
# accepts its IDE-query switches AFTER the project — the natural,
# nimsuggest-like invocation form. So don't swallow the rest of the line
# into `arguments`; keep parsing the remaining tokens as switches.
result = false
else:
config.arguments = cmdLineRest(p)
result = true
config.arguments = cmdLineRest(p)
result = true
else:
result = false
inc argsCount

View File

@@ -11,9 +11,9 @@
## for details. Note this is a first implementation and only the "Concept matching"
## section has been implemented.
import ast, semdata, lookups, lineinfos, idents, msgs, renderer, types, layeredtable
import ast, astalgo, semdata, lookups, lineinfos, idents, msgs, renderer, types, layeredtable
import std/sets
import std/intsets
when defined(nimPreviewSlimSystem):
import std/assertions
@@ -29,7 +29,7 @@ proc declareSelf(c: PContext; info: TLineInfo) =
let ow = getCurrOwner(c)
let s = newSym(skType, getIdent(c.cache, "Self"), c.idgen, ow, info)
s.typ = newType(tyTypeDesc, c.idgen, ow)
s.typ.incl {tfUnresolved, tfPacked}
s.typ.flags.incl {tfUnresolved, tfPacked}
s.typ.add newType(tyEmpty, c.idgen, ow)
addDecl(c, s, info)
@@ -73,20 +73,18 @@ type
MatchFlags* = enum
mfDontBind # Do not bind generic parameters
mfCheckGeneric # formal <- formal comparison as opposed to formal <- operand
ConceptTypePair = tuple[conceptId, typeId: ItemId]
## Pair of (concept type id, implementation type id) used for cycle detection
MatchCon = object ## Context we pass around during concept matching.
bindings: LayeredIdTable
marker: HashSet[ConceptTypePair] ## Tracks (concept, type) pairs being checked to detect cycles.
marker: IntSet ## Some protection against wild runaway recursions.
potentialImplementation: PType ## the concrete type that might match the concept we try to match.
magic: TMagic ## mArrGet and mArrPut is wrong in system.nim and
## cannot be fixed that easily.
## Thus we special case it here.
concpt: PType ## current concept being evaluated
depthCount = 0
flags: set[MatchFlags]
MatchKind = enum
mkNoMatch, mkSubset, mkSame
@@ -139,7 +137,7 @@ proc bindParam(c: PContext, m: var MatchCon; key, v: PType): bool {. discardable
# check previously bound value
if not matchType(c, old, value, m):
return false
elif key.hasElementType and not key.elementType.isNil and key.elementType.kind != tyNone:
elif key.hasElementType and key.elementType.kind != tyNone:
# check constaint
if matchType(c, unrollGenericParam(key), value, m) == false:
return false
@@ -190,48 +188,32 @@ iterator traverseTyOr(t: PType): PType {. closure .}=
proc matchConceptToImpl(c: PContext, f, potentialImpl: PType; m: var MatchCon): bool =
assert not(potentialImpl.reduceToBase.kind == tyConcept)
let concpt = f.reduceToBase
# Handle self-referential concepts: when a concept references itself in its body
# (e.g., `A = concept; proc test(x: Self, y: A)`), the inner type A has n=nil.
# We detect this by checking if the concept has the same symbol name as the
# one we're currently matching and has no body (n=nil).
if concpt.n.isNil:
if concpt.sym != nil and m.concpt.sym != nil and
concpt.sym == m.concpt.sym:
# Self-reference: check if potentialImpl matches what we're already checking
return potentialImpl.id == m.potentialImplementation.id
# Concept without body that's not a self-reference - cannot match
return false
# Cycle detection: track (concept, type) pairs to prevent infinite recursion.
# Returns true on cycle (coinductive semantics) to support co-dependent concepts.
let pair: ConceptTypePair = (concpt.itemId, potentialImpl.itemId)
if pair in m.marker:
if m.depthCount > 0:
# concepts that are more then 2 levels deep are treated like
# tyAnything to stop dependencies from getting out of control
return true
m.marker.incl pair
var efPot = potentialImpl
if potentialImpl.isSelf:
if m.concpt.n == concpt.n:
m.marker.excl pair
return true
efPot = m.potentialImplementation
var oldBindings = m.bindings
m.bindings = newTypeMapLayer(m.bindings)
let oldPotentialImplementation = m.potentialImplementation
m.potentialImplementation = efPot
let oldConcept = m.concpt
m.concpt = concpt
var invocation: PType = nil
if f.kind in {tyGenericInvocation, tyGenericInst}:
invocation = f
inc m.depthCount
result = processConcept(c, concpt, invocation, oldBindings, m)
dec m.depthCount
m.potentialImplementation = oldPotentialImplementation
m.concpt = oldConcept
m.bindings = oldBindings
m.marker.excl pair
proc cmpConceptDefs(c: PContext, fn, an: PNode, m: var MatchCon): bool=
if fn.kind != an.kind:
@@ -269,8 +251,10 @@ proc conceptsMatch(c: PContext, fc, ac: PType; m: var MatchCon): MatchKind =
let
fn = fc.conceptBody
an = ac.conceptBody
sameLen = fc.len == ac.len
var match = false
for fdef in fn:
var cmpResult = false
for ia, ndef in an:
match = cmpConceptDefs(c, fdef, ndef, m)
if match:
@@ -279,22 +263,6 @@ proc conceptsMatch(c: PContext, fc, ac: PType; m: var MatchCon): MatchKind =
return mkNoMatch
return mkSubset
proc isObjectSubtype(f, a: PType): bool =
var t = a
result = false
while t != nil:
t = t.baseClass
if t == nil:
break
t = t.skipTypes({tyPtr,tyRef})
if t == nil:
break
if t.kind != tyObject:
break
if sameObjectTypes(f, t):
result = true
break
proc matchType(c: PContext; fo, ao: PType; m: var MatchCon): bool =
## The heart of the concept matching process. 'f' is the formal parameter of some
## routine inside the concept that we're looking for. 'a' is the formal parameter
@@ -303,10 +271,7 @@ proc matchType(c: PContext; fo, ao: PType; m: var MatchCon): bool =
var
a = ao
f = fo
if a.isSelf:
if m.magic in {mArrPut, mArrGet}:
return false
a = m.potentialImplementation
if a.kind in bindableTypes:
a = existingBinding(m, ao)
if a == ao and a.kind == tyGenericParam and a.hasElementType and a.elementType.kind != tyNone:
@@ -328,10 +293,13 @@ proc matchType(c: PContext; fo, ao: PType; m: var MatchCon): bool =
result = matchType(c, f.skipModifier, a, m)
of tyTypeDesc:
if isSelf(f):
let ua = a.skipTypes(asymmetricConceptParamMods)
if m.magic in {mArrPut, mArrGet}:
if m.potentialImplementation.reduceToBase.kind in arrPutGetMagicApplies:
bindParam(c, m, a, last m.potentialImplementation)
result = true
#elif ua.isConcept:
# result = matchType(c, m.concpt, ua, m)
else:
result = matchType(c, a.skipTypes(ignorableForArgType), m.potentialImplementation, m)
else:
@@ -356,8 +324,6 @@ proc matchType(c: PContext; fo, ao: PType; m: var MatchCon): bool =
result = a.base.sym == f.sym
else:
result = sameType(f, a)
if not result and f.kind == tyObject and a.kind == tyObject:
result = isObjectSubtype(f, a)
of tyEmpty, tyString, tyCstring, tyPointer, tyNil, tyUntyped, tyTyped, tyVoid:
result = a.skipTypes(ignorableForArgType).kind == f.kind
of tyBool, tyChar, tyInt..tyUInt64:
@@ -371,11 +337,8 @@ proc matchType(c: PContext; fo, ao: PType; m: var MatchCon): bool =
result = true
else:
let ak = a.skipTypes(ignorableForArgType - {f.kind})
if ak.kind == f.kind:
if f.base.kind == tyNone:
result = true
elif f.kidsLen == ak.kidsLen:
result = matchKids(c, f, ak, m)
if ak.kind == f.kind and f.kidsLen == ak.kidsLen:
result = matchKids(c, f, ak, m)
of tyGenericInvocation, tyGenericInst:
result = false
let ea = a.skipTypes(ignorableForArgType)
@@ -389,14 +352,6 @@ proc matchType(c: PContext; fo, ao: PType; m: var MatchCon): bool =
if not matchType(c, f[i], ea[i], m):
result = false
break
elif f.kind == tyGenericInvocation:
# bind potential generic constraints into body
let body = f.base
for i in 1 ..< len(f):
bindParam(c,m,body[i-1], f[i])
result = matchType(c, body, a, m)
else: # tyGenericInst
result = matchType(c, f.last, a, m)
of tyOrdinal:
result = isOrdinalType(a, allowEnumWithHoles = false) or a.kind == tyGenericParam
of tyStatic:
@@ -464,10 +419,6 @@ proc matchType(c: PContext; fo, ao: PType; m: var MatchCon): bool =
result = matchType(c, ff, a, m)
if result: break # and remember the binding!
m.bindings.setToPreviousLayer()
of tySet:
result = false
if a.kind == tySet:
result = matchType(c, f.elementType, a.elementType, m)
else:
result = false
if result and ao.kind == tyGenericParam:
@@ -623,7 +574,7 @@ proc conceptMatch*(c: PContext; concpt, arg: PType; bindings: var LayeredIdTable
## `C[S, T]` parent type that we look for. We need this because we need to store bindings
## for 'S' and 'T' inside 'bindings' on a successful match. It is very important that
## we do not add any bindings at all on an unsuccessful match!
var m = MatchCon(bindings: bindings, potentialImplementation: arg, concpt: concpt, flags: flags, marker: initHashSet[ConceptTypePair]())
var m = MatchCon(bindings: bindings, potentialImplementation: arg, concpt: concpt, flags: flags)
if arg.isConcept:
result = conceptsMatch(c, concpt.reduceToBase, arg.reduceToBase, m) >= mkSubset
elif arg.acceptsAllTypes:

View File

@@ -159,7 +159,7 @@ proc initDefines*(symbols: StringTableRef) =
defineSymbol("nimHasEnsureMove")
defineSymbol("nimHasNoReturnError")
defineSymbol("nimUseStrictDefs") # deadcode
defineSymbol("nimUseStrictDefs")
defineSymbol("nimHasNolineTooLong")
defineSymbol("nimHasCastExtendedVm")
@@ -171,9 +171,3 @@ proc initDefines*(symbols: StringTableRef) =
defineSymbol("nimHasJsNoLambdaLifting")
defineSymbol("nimHasDefaultFloatRoundtrip")
defineSymbol("nimHasXorSet")
defineSymbol("nimHasSetLengthSeqUninitMagic")
defineSymbol("nimHasPreviewDuplicateModuleError")
defineSymbol("nimHasImplicitRangeConversion")

File diff suppressed because it is too large Load Diff

View File

@@ -483,7 +483,7 @@ proc constructCfg*(s: PSym; body: PNode; root: PSym): ControlFlowGraph =
gen(c, body)
if root.kind == skResult:
genImplicitReturn(c)
when defined(gcArc) or defined(gcOrc) or defined(gcAtomicArc) or defined(gcYrc):
when defined(gcArc) or defined(gcOrc) or defined(gcAtomicArc):
result = c.code # will move
else:
shallowCopy(result, c.code)

View File

@@ -19,7 +19,7 @@ import
wordrecg, syntaxes, renderer, lexer,
packages/docutils/[rst, rstidx, rstgen, dochelpers],
trees, types,
typesrenderer, lineinfos,
typesrenderer, astalgo, lineinfos,
pathutils, nimpaths, renderverbatim, packages
import packages/docutils/rstast except FileIndex, TLineInfo
@@ -148,7 +148,7 @@ proc cmpDecimalsIgnoreCase(a, b: string): int =
limitB = iB
while limitA < aLen and isDigit(a[limitA]): inc limitA
while limitB < bLen and isDigit(b[limitB]): inc limitB
var pos = max(limitA-iA, limitB-iB)
var pos = max(limitA-iA, limitB-iA)
while pos > 0:
if limitA-pos < iA: # digit in `a` is 0 effectively
result = ord('0') - ord(b[limitB-pos])
@@ -425,11 +425,14 @@ template dispA(conf: ConfigRef; dest: var string, xml, tex: string,
if not conf.isLatexCmd: dest.addf(xml, args)
else: dest.addf(tex, args)
proc getVarIdx(varnames: openArray[string], id: string): int =
for i in 0..high(varnames):
if cmpIgnoreStyle(varnames[i], id) == 0:
return i
result = -1
proc genComment(d: PDoc, n: PNode): PRstNode =
if n.comment.len > 0:
if optDocRaw in d.conf.globalOptions:
return newRstLeaf(n.comment)
d.sharedState.currFileIdx = addRstFileIndex(d, n.info)
try:
result = parseRst(n.comment,
@@ -534,11 +537,10 @@ proc nodeToHighlightedHtml(d: PDoc; n: PNode; result: var string;
elif s != nil and s.kind in {skType, skVar, skLet, skConst} and
sfExported in s.flags and s.owner != nil and
belongsToProjectPackage(d.conf, s.owner) and d.target == outHtml:
let href = (if d.module == s.owner: ""
else: externalDep(d, s.owner).changeFileExt("html")
) & "#" & literal
result.addf "<a href=\"$1\"><span class=\"Identifier\">$2</span></a>",
[href, escLit]
let external = externalDep(d, s.owner)
result.addf "<a href=\"$1#$2\"><span class=\"Identifier\">$3</span></a>",
[changeFileExt(external, "html"), literal,
escLit]
else:
dispA(d.conf, result, "<span class=\"Identifier\">$1</span>",
"\\spanIdentifier{$1}", [escLit])
@@ -1174,12 +1176,8 @@ proc genJsonItem(d: PDoc, n, nameNode: PNode, k: TSymKind, nonExports = false):
"col": %n.info.col}
)
if comm != nil:
if optDocRaw in d.conf.globalOptions:
result.json["description"] = %comm.text
else:
result.rst = comm
result.rstField = "description"
result.rst = comm
result.rstField = "description"
if r.buf.len > 0:
result.json["code"] = %r.buf
if k in routineKinds:
@@ -1322,7 +1320,7 @@ proc documentEffect(cache: IdentCache; n, x: PNode, effectType: TSpecialWord, id
if t.startsWith("ref "): t = substr(t, 4)
effects[i] = newIdentNode(getIdent(cache, t), n.info)
# set the type so that the following analysis doesn't screw up:
effects[i].typ = real[i].typ
effects[i].typ() = real[i].typ
result = newTreeI(nkExprColonExpr, n.info,
newIdentNode(getIdent(cache, $effectType), n.info), effects)
@@ -1420,7 +1418,7 @@ proc generateDoc*(d: PDoc, n, orig: PNode, config: ConfigRef, docFlags: DocFlags
of nkExportExceptStmt: discard "transformed into nkExportStmt by semExportExcept"
of nkFromStmt, nkImportExceptStmt: traceDeps(d, n[0])
of nkCallKinds:
var comm = default(ItemPre)
var comm: ItemPre = default(ItemPre)
getAllRunnableExamples(d, n, comm)
if comm.len != 0: d.modDescPre.add(comm)
else: discard
@@ -1894,9 +1892,6 @@ proc commandJson*(cache: IdentCache, conf: ConfigRef) =
else:
#echo getOutFile(gProjectFull, JsonExt)
let filename = getOutFile(conf, RelativeFile conf.projectName, JsonExt)
conf.outFile = filename.relativeTo(conf.outDir)
let dir = filename.splitFile.dir
createDir(dir)
try:
writeFile(filename, content)
except IOError:
@@ -1917,10 +1912,8 @@ proc commandTags*(cache: IdentCache, conf: ConfigRef) =
if optStdout in d.conf.globalOptions:
write(stdout, content)
else:
#echo getOutFile(gProjectFull, TagsExt)
let filename = getOutFile(conf, RelativeFile conf.projectName, TagsExt)
conf.outFile = filename.relativeTo(conf.outDir)
let dir = filename.splitFile.dir
createDir(dir)
try:
writeFile(filename, content)
except IOError:

View File

@@ -29,6 +29,7 @@ proc shouldProcess(g: PGen): bool =
template closeImpl(body: untyped) {.dirty.} =
var g = PGen(p)
let useWarning = sfMainModule notin g.module.flags
let groupedToc = true
if shouldProcess(g):
finishGenerateDoc(g.doc)
body
@@ -40,7 +41,7 @@ template closeImpl(body: untyped) {.dirty.} =
proc closeDoc*(graph: ModuleGraph; p: PPassContext, n: PNode): PNode =
result = nil
closeImpl:
writeOutput(g.doc, useWarning, true)
writeOutput(g.doc, useWarning, groupedToc)
proc closeJson*(graph: ModuleGraph; p: PPassContext, n: PNode): PNode =
result = nil

View File

@@ -47,5 +47,68 @@ proc genEnumToStrProc*(t: PType; info: TLineInfo; g: ModuleGraph; idgen: IdGener
n[bodyPos] = body
n[resultPos] = newSymNode(res)
result.ast = n
incl result.flagsImpl, {sfFromGeneric, sfNeverRaises}
setHookDisamb(g, result, "$enumtostr", t)
incl result.flags, sfFromGeneric
incl result.flags, sfNeverRaises
proc searchObjCaseImpl(obj: PNode; field: PSym): PNode =
case obj.kind
of nkSym:
result = nil
of nkElse, nkOfBranch:
result = searchObjCaseImpl(obj.lastSon, field)
else:
if obj.kind == nkRecCase and obj[0].kind == nkSym and obj[0].sym == field:
result = obj
else:
result = nil
for x in obj:
result = searchObjCaseImpl(x, field)
if result != nil: break
proc searchObjCase(t: PType; field: PSym): PNode =
result = searchObjCaseImpl(t.n, field)
if result == nil and t.baseClass != nil:
result = searchObjCase(t.baseClass.skipTypes({tyAlias, tyGenericInst, tyRef, tyPtr}), field)
doAssert result != nil
proc genCaseObjDiscMapping*(t: PType; field: PSym; info: TLineInfo; g: ModuleGraph; idgen: IdGenerator): PSym =
result = newSym(skProc, getIdent(g.cache, "objDiscMapping"), idgen, t.owner, info)
let dest = newSym(skParam, getIdent(g.cache, "e"), idgen, result, info)
dest.typ = field.typ
let res = newSym(skResult, getIdent(g.cache, "result"), idgen, result, info)
res.typ = getSysType(g, info, tyUInt8)
result.typ = newType(tyProc, idgen, t.owner)
result.typ.n = newNodeI(nkFormalParams, info)
rawAddSon(result.typ, res.typ)
result.typ.n.add newNodeI(nkEffectList, info)
result.typ.addParam dest
var body = newNodeI(nkStmtList, info)
var caseStmt = newNodeI(nkCaseStmt, info)
caseStmt.add(newSymNode dest)
let subObj = searchObjCase(t, field)
for i in 1..<subObj.len:
let ofBranch = subObj[i]
var newBranch = newNodeI(ofBranch.kind, ofBranch.info)
for j in 0..<ofBranch.len-1:
newBranch.add ofBranch[j]
newBranch.add newTree(nkStmtList, newTree(nkFastAsgn, newSymNode(res), newIntNode(nkInt8Lit, i)))
caseStmt.add newBranch
body.add(caseStmt)
var n = newNodeI(nkProcDef, info, bodyPos+2)
for i in 0..<n.len: n[i] = newNodeI(nkEmpty, info)
n[namePos] = newSymNode(result)
n[paramsPos] = result.typ.n
n[bodyPos] = body
n[resultPos] = newSymNode(res)
result.ast = n
incl result.flags, sfFromGeneric
incl result.flags, sfNeverRaises

View File

@@ -275,7 +275,7 @@ proc unpackObject(conf: ConfigRef, x: pointer, typ: PType, n: PNode): PNode =
# the nkPar node:
if n.isNil:
result = newNode(nkTupleConstr)
result.typ = typ
result.typ() = typ
if typ.n.isNil:
internalError(conf, "cannot unpack unnamed tuple")
unpackObjectAdd(conf, x, typ.n, result)
@@ -298,7 +298,7 @@ proc unpackObject(conf: ConfigRef, x: pointer, typ: PType, n: PNode): PNode =
proc unpackArray(conf: ConfigRef, x: pointer, typ: PType, n: PNode): PNode =
if n.isNil:
result = newNode(nkBracket)
result.typ = typ
result.typ() = typ
newSeq(result.sons, lengthOrd(conf, typ).toInt)
else:
result = n
@@ -319,7 +319,7 @@ proc unpack(conf: ConfigRef, x: pointer, typ: PType, n: PNode): PNode =
template aw(k, v, field: untyped): untyped =
if n.isNil:
result = newNode(k)
result.typ = typ
result.typ() = typ
else:
# check we have the right field:
result = n
@@ -333,12 +333,12 @@ proc unpack(conf: ConfigRef, x: pointer, typ: PType, n: PNode): PNode =
template setNil() =
if n.isNil:
result = newNode(nkNilLit)
result.typ = typ
result.typ() = typ
else:
reset n[]
result = n
result[] = TNode(kind: nkNilLit)
result.typ = typ
result.typ() = typ
template awi(kind, v: untyped): untyped = aw(kind, v, intVal)
template awf(kind, v: untyped): untyped = aw(kind, v, floatVal)
@@ -427,7 +427,7 @@ proc fficast*(conf: ConfigRef, x: PNode, destTyp: PType): PNode =
# cast through a pointer needs a new inner object:
let y = if x.kind == nkRefTy: newNodeI(nkRefTy, x.info, 1)
else: x.copyTree
y.typ = x.typ
y.typ() = x.typ
result = unpack(conf, a, destTyp, y)
dealloc a
@@ -481,7 +481,7 @@ proc callForeignFunction*(conf: ConfigRef, fn: PNode, fntyp: PType,
if aTyp.isNil:
internalAssert conf, i+1 < fntyp.len
aTyp = fntyp[i+1]
args[i+start].typ = aTyp
args[i+start].typ() = aTyp
sig[i] = mapType(conf, aTyp)
if sig[i].isNil: globalError(conf, info, "cannot map FFI type")

View File

@@ -182,7 +182,7 @@ proc wrapInComesFrom*(info: TLineInfo; sym: PSym; res: PNode): PNode =
d.add newSymNode(sym, info)
result.add d
result.add res
result.typ = res.typ
result.typ() = res.typ
proc evalTemplate*(n: PNode, tmpl, genSymOwner: PSym;
conf: ConfigRef;

View File

@@ -341,7 +341,7 @@ proc getConfigVar(conf: ConfigRef; c: TSystemCC, suffix: string): string =
var fullSuffix = suffix
case conf.backend
of backendCpp, backendJs, backendObjc: fullSuffix = "." & $conf.backend & suffix
of backendC, backendNif: discard
of backendC: discard
of backendInvalid:
# during parsing of cfg files; we don't know the backend yet, no point in
# guessing wrong thing
@@ -810,59 +810,6 @@ template tryExceptOSErrorMessage(conf: ConfigRef; errorPrefix: string = "", body
(ose.msg & " " & $ose.errorCode))
raise
proc createMacAppBundle(conf: ConfigRef; exefile: AbsoluteFile) =
let (dir, name, _) = splitFile(exefile.string)
let appBundleName = name & ".app"
let appBundlePath = dir / appBundleName
let contentsPath = appBundlePath / "Contents"
let macosPath = contentsPath / "MacOS"
createDir(macosPath)
let bundleExePath = macosPath / name
copyFileWithPermissions(exefile.string, bundleExePath)
let infoPlistPath = contentsPath / "Info.plist"
proc xmlEscape(s: string): string =
result = newStringOfCap(s.len)
for c in items(s):
case c:
of '<': result.add("&lt;")
of '>': result.add("&gt;")
of '&': result.add("&amp;")
of '"': result.add("&quot;")
of '\'': result.add("&apos;")
else:
if ord(c) < 32:
result.add("&#" & $ord(c) & ';')
else:
result.add(c)
let escapedName = xmlEscape(name)
let infoPlistContent = """<?xml version="1.0" encoding="UTF-8"?>
<!DOCTYPE plist PUBLIC "-//Apple//DTD PLIST 1.0//EN" "http://www.apple.com/DTDs/PropertyList-1.0.dtd">
<plist version="1.0">
<dict>
<key>CFBundleExecutable</key>
<string>$1</string>
<key>CFBundleIdentifier</key>
<string>com.nim.$1</string>
<key>CFBundleName</key>
<string>$1</string>
<key>CFBundlePackageType</key>
<string>APPL</string>
<key>LSUIElement</key>
<string>1</string>
</dict>
</plist>""" % [escapedName]
writeFile(infoPlistPath, infoPlistContent)
removeFile(exefile.string)
rawMessage(conf, hintUserRaw, "Created Mac app bundle: " & appBundlePath)
proc getExtraCmds(conf: ConfigRef; output: AbsoluteFile): seq[string] =
result = @[]
when defined(macosx):
@@ -1047,10 +994,6 @@ proc callCCompiler*(conf: ConfigRef) =
preventLinkCmdMaxCmdLen(conf, linkCmd)
for cmd in extraCmds:
execExternalProgram(conf, cmd, hintExecuting)
# create Mac app bundle for GUI apps on macOS
when defined(macosx):
if conf.globalOptions * {optGenGuiApp, optGenDynLib, optGenStaticLib} == {optGenGuiApp}:
createMacAppBundle(conf, mainOutput)
else:
linkCmd = ""
if optGenScript in conf.globalOptions:

View File

@@ -46,7 +46,7 @@ proc isLocation(n: PNode): bool = not n.isValue
proc isLet(n: PNode): bool =
if n.kind == nkSym:
if n.sym.kind in {skLet, skConst, skTemp, skForVar}: # guard immutable variables
if n.sym.kind in {skLet, skTemp, skForVar}:
result = true
elif n.sym.kind == skParam and skipTypes(n.sym.typ,
abstractInst).kind notin {tyVar}:
@@ -1104,7 +1104,7 @@ proc settype(n: PNode): PType =
proc buildOf(it, loc: PNode; o: Operators): PNode =
var s = newNodeI(nkCurly, it.info, it.len-1)
s.typ = settype(loc)
s.typ() = settype(loc)
for i in 0..<it.len-1: s[i] = it[i]
result = newNodeI(nkCall, it.info, 3)
result[0] = newSymNode(o.opContains)
@@ -1170,7 +1170,7 @@ proc buildProperFieldCheck(access, check: PNode; o: Operators): PNode =
# set field name to discriminator field name
a[1] = check[2]
# set discriminator field type: important for `neg`
a.typ = check[2].typ
a.typ() = check[2].typ
result[2] = a
# 'access.kind != nkDotExpr' can happen for object constructors
# which we don't check yet

View File

@@ -10,7 +10,7 @@
# This include implements the high level optimization pass.
# included from sem.nim
proc hlo(c: PContext, n: PNode, loopDetector: int): PNode
proc hlo(c: PContext, n: PNode): PNode
proc evalPattern(c: PContext, n, orig: PNode): PNode =
internalAssert c.config, n.kind == nkCall and n[0].kind == nkSym
@@ -61,11 +61,10 @@ proc applyPatterns(c: PContext, n: PNode): PNode =
# activate this pattern again:
c.patterns[i] = pattern
proc hlo(c: PContext, n: PNode, loopDetector: int): PNode =
proc hlo(c: PContext, n: PNode): PNode =
inc(c.hloLoopDetector)
# simply stop and do not perform any further transformations:
if loopDetector > 300:
message(c.config, n.info, warnUser, "term rewrite macro instantiation too nested")
return n
if c.hloLoopDetector > 300: return n
case n.kind
of nkMacroDef, nkTemplateDef, procDefs:
# already processed (special cases in semstmts.nim)
@@ -81,7 +80,7 @@ proc hlo(c: PContext, n: PNode, loopDetector: int): PNode =
# no optimization applied, try subtrees:
for i in 0..<result.safeLen:
let a = result[i]
let h = hlo(c, a, loopDetector)
let h = hlo(c, a)
if h != a: result[i] = h
else:
# perform type checking, so that the replacement still fits:
@@ -91,15 +90,17 @@ proc hlo(c: PContext, n: PNode, loopDetector: int): PNode =
result = fitNode(c, n.typ, result, n.info)
# optimization has been applied so check again:
result = commonOptimizations(c.graph, c.idgen, c.module, result)
result = hlo(c, result, loopDetector + 1)
result = hlo(c, result)
result = commonOptimizations(c.graph, c.idgen, c.module, result)
proc hloBody(c: PContext, n: PNode): PNode =
# fast exit:
if c.patterns.len == 0 or optTrMacros notin c.config.options: return n
result = hlo(c, n, 0)
c.hloLoopDetector = 0
result = hlo(c, n)
proc hloStmt(c: PContext, n: PNode): PNode =
# fast exit:
if c.patterns.len == 0 or optTrMacros notin c.config.options: return n
result = hlo(c, n, 0)
c.hloLoopDetector = 0
result = hlo(c, n)

178
compiler/ic/bitabs.nim Normal file
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@@ -0,0 +1,178 @@
## A BiTable is a table that can be seen as an optimized pair
## of `(Table[LitId, Val], Table[Val, LitId])`.
import std/hashes
import rodfiles
when defined(nimPreviewSlimSystem):
import std/assertions
type
LitId* = distinct uint32
BiTable*[T] = object
vals: seq[T] # indexed by LitId
keys: seq[LitId] # indexed by hash(val)
proc initBiTable*[T](): BiTable[T] = BiTable[T](vals: @[], keys: @[])
proc nextTry(h, maxHash: Hash): Hash {.inline.} =
result = (h + 1) and maxHash
template maxHash(t): untyped = high(t.keys)
template isFilled(x: LitId): bool = x.uint32 > 0'u32
proc `$`*(x: LitId): string {.borrow.}
proc `<`*(x, y: LitId): bool {.borrow.}
proc `<=`*(x, y: LitId): bool {.borrow.}
proc `==`*(x, y: LitId): bool {.borrow.}
proc hash*(x: LitId): Hash {.borrow.}
proc len*[T](t: BiTable[T]): int = t.vals.len
proc mustRehash(length, counter: int): bool {.inline.} =
assert(length > counter)
result = (length * 2 < counter * 3) or (length - counter < 4)
const
idStart = 1
template idToIdx(x: LitId): int = x.int - idStart
proc hasLitId*[T](t: BiTable[T]; x: LitId): bool =
let idx = idToIdx(x)
result = idx >= 0 and idx < t.vals.len
proc enlarge[T](t: var BiTable[T]) =
var n: seq[LitId]
newSeq(n, len(t.keys) * 2)
swap(t.keys, n)
for i in 0..high(n):
let eh = n[i]
if isFilled(eh):
var j = hash(t.vals[idToIdx eh]) and maxHash(t)
while isFilled(t.keys[j]):
j = nextTry(j, maxHash(t))
t.keys[j] = move n[i]
proc getKeyId*[T](t: BiTable[T]; v: T): LitId =
let origH = hash(v)
var h = origH and maxHash(t)
if t.keys.len != 0:
while true:
let litId = t.keys[h]
if not isFilled(litId): break
if t.vals[idToIdx t.keys[h]] == v: return litId
h = nextTry(h, maxHash(t))
return LitId(0)
proc getOrIncl*[T](t: var BiTable[T]; v: T): LitId =
let origH = hash(v)
var h = origH and maxHash(t)
if t.keys.len != 0:
while true:
let litId = t.keys[h]
if not isFilled(litId): break
if t.vals[idToIdx t.keys[h]] == v: return litId
h = nextTry(h, maxHash(t))
# not found, we need to insert it:
if mustRehash(t.keys.len, t.vals.len):
enlarge(t)
# recompute where to insert:
h = origH and maxHash(t)
while true:
let litId = t.keys[h]
if not isFilled(litId): break
h = nextTry(h, maxHash(t))
else:
setLen(t.keys, 16)
h = origH and maxHash(t)
result = LitId(t.vals.len + idStart)
t.keys[h] = result
t.vals.add v
proc `[]`*[T](t: var BiTable[T]; litId: LitId): var T {.inline.} =
let idx = idToIdx litId
assert idx < t.vals.len
result = t.vals[idx]
proc `[]`*[T](t: BiTable[T]; litId: LitId): lent T {.inline.} =
let idx = idToIdx litId
assert idx < t.vals.len
result = t.vals[idx]
proc hash*[T](t: BiTable[T]): Hash =
## as the keys are hashes of the values, we simply use them instead
var h: Hash = 0
for i, n in pairs t.keys:
h = h !& hash((i, n))
result = !$h
proc store*[T](f: var RodFile; t: BiTable[T]) =
storeSeq(f, t.vals)
storeSeq(f, t.keys)
proc load*[T](f: var RodFile; t: var BiTable[T]) =
loadSeq(f, t.vals)
loadSeq(f, t.keys)
proc sizeOnDisc*(t: BiTable[string]): int =
result = 4
for x in t.vals:
result += x.len + 4
result += t.keys.len * sizeof(LitId)
when isMainModule:
var t: BiTable[string]
echo getOrIncl(t, "hello")
echo getOrIncl(t, "hello")
echo getOrIncl(t, "hello3")
echo getOrIncl(t, "hello4")
echo getOrIncl(t, "helloasfasdfdsa")
echo getOrIncl(t, "hello")
echo getKeyId(t, "hello")
echo getKeyId(t, "none")
for i in 0 ..< 100_000:
discard t.getOrIncl($i & "___" & $i)
for i in 0 ..< 100_000:
assert t.getOrIncl($i & "___" & $i).idToIdx == i + 4
echo "begin"
echo t.vals.len
echo t.vals[0]
echo t.vals[1004]
echo "middle"
var tf: BiTable[float]
discard tf.getOrIncl(0.4)
discard tf.getOrIncl(16.4)
discard tf.getOrIncl(32.4)
echo getKeyId(tf, 32.4)
var f2 = open("testblah.bin", fmWrite)
echo store(f2, tf)
f2.close
var f1 = open("testblah.bin", fmRead)
var t2: BiTable[float]
echo f1.load(t2)
echo t2.vals.len
echo getKeyId(t2, 32.4)
echo "end"
f1.close

180
compiler/ic/cbackend.nim Normal file
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@@ -0,0 +1,180 @@
#
#
# The Nim Compiler
# (c) Copyright 2021 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## New entry point into our C/C++ code generator. Ideally
## somebody would rewrite the old backend (which is 8000 lines of crufty Nim code)
## to work on packed trees directly and produce the C code as an AST which can
## then be rendered to text in a very simple manner. Unfortunately nobody wrote
## this code. So instead we wrap the existing cgen.nim and its friends so that
## we call directly into the existing code generation logic but avoiding the
## naive, outdated `passes` design. Thus you will see some
## `useAliveDataFromDce in flags` checks in the old code -- the old code is
## also doing cross-module dependency tracking and DCE that we don't need
## anymore. DCE is now done as prepass over the entire packed module graph.
import std/[packedsets, algorithm, tables]
when defined(nimPreviewSlimSystem):
import std/assertions
import ".."/[ast, options, lineinfos, modulegraphs, cgendata, cgen,
pathutils, extccomp, msgs, modulepaths]
import packed_ast, ic, dce, rodfiles
proc unpackTree(g: ModuleGraph; thisModule: int;
tree: PackedTree; n: NodePos): PNode =
var decoder = initPackedDecoder(g.config, g.cache)
result = loadNodes(decoder, g.packed, thisModule, tree, n)
proc setupBackendModule(g: ModuleGraph; m: var LoadedModule) =
if g.backend == nil:
g.backend = cgendata.newModuleList(g)
assert g.backend != nil
var bmod = cgen.newModule(BModuleList(g.backend), m.module, g.config)
bmod.idgen = idgenFromLoadedModule(m)
proc generateCodeForModule(g: ModuleGraph; m: var LoadedModule; alive: var AliveSyms) =
var bmod = BModuleList(g.backend).modules[m.module.position]
assert bmod != nil
bmod.flags.incl useAliveDataFromDce
bmod.alive = move alive[m.module.position]
for p in allNodes(m.fromDisk.topLevel):
let n = unpackTree(g, m.module.position, m.fromDisk.topLevel, p)
cgen.genTopLevelStmt(bmod, n)
finalCodegenActions(g, bmod, newNodeI(nkStmtList, m.module.info))
for disp in getDispatchers(g):
genProcAux(bmod, disp)
m.fromDisk.backendFlags = cgen.whichInitProcs(bmod)
proc replayTypeInfo(g: ModuleGraph; m: var LoadedModule; origin: FileIndex) =
for x in mitems(m.fromDisk.emittedTypeInfo):
#echo "found type ", x, " for file ", int(origin)
g.emittedTypeInfo[x] = origin
proc addFileToLink(config: ConfigRef; m: PSym) =
let filename = AbsoluteFile toFullPath(config, m.position.FileIndex)
let ext =
if config.backend == backendCpp: ".nim.cpp"
elif config.backend == backendObjc: ".nim.m"
else: ".nim.c"
let cfile = changeFileExt(completeCfilePath(config,
mangleModuleName(config, filename).AbsoluteFile), ext)
let objFile = completeCfilePath(config, toObjFile(config, cfile))
if fileExists(objFile):
var cf = Cfile(nimname: m.name.s, cname: cfile,
obj: objFile,
flags: {CfileFlag.Cached})
addFileToCompile(config, cf)
when defined(debugDce):
import os, std/packedsets
proc storeAliveSymsImpl(asymFile: AbsoluteFile; s: seq[int32]) =
var f = rodfiles.create(asymFile.string)
f.storeHeader()
f.storeSection aliveSymsSection
f.storeSeq(s)
close f
template prepare {.dirty.} =
let asymFile = toRodFile(config, AbsoluteFile toFullPath(config, position.FileIndex), ".alivesyms")
var s = newSeqOfCap[int32](alive[position].len)
for a in items(alive[position]): s.add int32(a)
sort(s)
proc storeAliveSyms(config: ConfigRef; position: int; alive: AliveSyms) =
prepare()
storeAliveSymsImpl(asymFile, s)
proc aliveSymsChanged(config: ConfigRef; position: int; alive: AliveSyms): bool =
prepare()
var f2 = rodfiles.open(asymFile.string)
f2.loadHeader()
f2.loadSection aliveSymsSection
var oldData: seq[int32] = @[]
f2.loadSeq(oldData)
f2.close
if f2.err == ok and oldData == s:
result = false
else:
when defined(debugDce):
let oldAsSet = toPackedSet[int32](oldData)
let newAsSet = toPackedSet[int32](s)
echo "set of live symbols changed ", asymFile.changeFileExt("rod"), " ", position, " ", f2.err
echo "in old but not in new ", oldAsSet.difference(newAsSet), " number of entries in old ", oldAsSet.len
echo "in new but not in old ", newAsSet.difference(oldAsSet), " number of entries in new ", newAsSet.len
#if execShellCmd(getAppFilename() & " rod " & quoteShell(asymFile.changeFileExt("rod"))) != 0:
# echo "command failed"
result = true
storeAliveSymsImpl(asymFile, s)
proc genPackedModule(g: ModuleGraph, i: int; alive: var AliveSyms) =
# case statement here to enforce exhaustive checks.
case g.packed[i].status
of undefined:
discard "nothing to do"
of loading, stored:
assert false
of storing, outdated:
storeAliveSyms(g.config, g.packed[i].module.position, alive)
generateCodeForModule(g, g.packed[i], alive)
closeRodFile(g, g.packed[i].module)
of loaded:
if g.packed[i].loadedButAliveSetChanged:
generateCodeForModule(g, g.packed[i], alive)
else:
addFileToLink(g.config, g.packed[i].module)
replayTypeInfo(g, g.packed[i], FileIndex(i))
if g.backend == nil:
g.backend = cgendata.newModuleList(g)
registerInitProcs(BModuleList(g.backend), g.packed[i].module, g.packed[i].fromDisk.backendFlags)
proc generateCode*(g: ModuleGraph) =
## The single entry point, generate C(++) code for the entire
## Nim program aka `ModuleGraph`.
resetForBackend(g)
var alive = computeAliveSyms(g.packed, g.config)
when false:
for i in 0..<len(g.packed):
echo i, " is of status ", g.packed[i].status, " ", toFullPath(g.config, FileIndex(i))
# First pass: Setup all the backend modules for all the modules that have
# changed:
for i in 0..<len(g.packed):
# case statement here to enforce exhaustive checks.
case g.packed[i].status
of undefined:
discard "nothing to do"
of loading, stored:
assert false
of storing, outdated:
setupBackendModule(g, g.packed[i])
of loaded:
# Even though this module didn't change, DCE might trigger a change.
# Consider this case: Module A uses symbol S from B and B does not use
# S itself. A is then edited not to use S either. Thus we have to
# recompile B in order to remove S from the final result.
if aliveSymsChanged(g.config, g.packed[i].module.position, alive):
g.packed[i].loadedButAliveSetChanged = true
setupBackendModule(g, g.packed[i])
# Second pass: Code generation.
let mainModuleIdx = g.config.projectMainIdx2.int
# We need to generate the main module last, because only then
# all init procs have been registered:
for i in 0..<len(g.packed):
if i != mainModuleIdx:
genPackedModule(g, i, alive)
if mainModuleIdx >= 0:
genPackedModule(g, mainModuleIdx, alive)

169
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@@ -0,0 +1,169 @@
#
#
# The Nim Compiler
# (c) Copyright 2021 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## Dead code elimination (=DCE) for IC.
import std/[intsets, tables]
when defined(nimPreviewSlimSystem):
import std/assertions
import ".." / [ast, options, lineinfos, types]
import packed_ast, ic, bitabs
type
AliveSyms* = seq[IntSet]
AliveContext* = object ## Purpose is to fill the 'alive' field.
stack: seq[(int, TOptions, NodePos)] ## A stack for marking symbols as alive.
decoder: PackedDecoder ## We need a PackedDecoder for module ID address translations.
thisModule: int ## The module we're currently analysing for DCE.
alive: AliveSyms ## The final result of our computation.
options: TOptions
compilerProcs: Table[string, (int, int32)]
proc isExportedToC(c: var AliveContext; g: PackedModuleGraph; symId: int32): bool =
## "Exported to C" procs are special (these are marked with '.exportc') because these
## must not be optimized away!
let symPtr = unsafeAddr g[c.thisModule].fromDisk.syms[symId]
let flags = symPtr.flags
# due to a bug/limitation in the lambda lifting, unused inner procs
# are not transformed correctly; issue (#411). However, the whole purpose here
# is to eliminate unused procs. So there is no special logic required for this case.
if sfCompileTime notin flags:
if ({sfExportc, sfCompilerProc} * flags != {}) or
(symPtr.kind == skMethod):
result = true
else:
result = false
# XXX: This used to be a condition to:
# (sfExportc in prc.flags and lfExportLib in prc.loc.flags) or
if sfCompilerProc in flags:
c.compilerProcs[g[c.thisModule].fromDisk.strings[symPtr.name]] = (c.thisModule, symId)
else:
result = false
template isNotGeneric(n: NodePos): bool = ithSon(tree, n, genericParamsPos).kind == nkEmpty
proc followLater(c: var AliveContext; g: PackedModuleGraph; module: int; item: int32) =
## Marks a symbol 'item' as used and later in 'followNow' the symbol's body will
## be analysed.
if not c.alive[module].containsOrIncl(item):
var body = g[module].fromDisk.syms[item].ast
if body != emptyNodeId:
let opt = g[module].fromDisk.syms[item].options
if g[module].fromDisk.syms[item].kind in routineKinds:
body = NodeId ithSon(g[module].fromDisk.bodies, NodePos body, bodyPos)
c.stack.add((module, opt, NodePos(body)))
when false:
let nid = g[module].fromDisk.syms[item].name
if nid != LitId(0):
let name = g[module].fromDisk.strings[nid]
if name in ["nimFrame", "callDepthLimitReached"]:
echo "I was called! ", name, " body exists: ", body != emptyNodeId, " ", module, " ", item
proc requestCompilerProc(c: var AliveContext; g: PackedModuleGraph; name: string) =
let (module, item) = c.compilerProcs[name]
followLater(c, g, module, item)
proc loadTypeKind(t: PackedItemId; c: AliveContext; g: PackedModuleGraph; toSkip: set[TTypeKind]): TTypeKind =
template kind(t: ItemId): TTypeKind = g[t.module].fromDisk.types[t.item].kind
var t2 = translateId(t, g, c.thisModule, c.decoder.config)
result = t2.kind
while result in toSkip:
t2 = translateId(g[t2.module].fromDisk.types[t2.item].types[^1], g, t2.module, c.decoder.config)
result = t2.kind
proc rangeCheckAnalysis(c: var AliveContext; g: PackedModuleGraph; tree: PackedTree; n: NodePos) =
## Replicates the logic of `ccgexprs.genRangeChck`.
## XXX Refactor so that the duplicated logic is avoided. However, for now it's not clear
## the approach has enough merit.
var dest = loadTypeKind(n.typ, c, g, abstractVar)
if optRangeCheck notin c.options or dest in {tyUInt..tyUInt64}:
discard "no need to generate a check because it was disabled"
else:
let n0t = loadTypeKind(n.firstSon.typ, c, g, {})
if n0t in {tyUInt, tyUInt64}:
c.requestCompilerProc(g, "raiseRangeErrorNoArgs")
else:
let raiser =
case loadTypeKind(n.typ, c, g, abstractVarRange)
of tyUInt..tyUInt64, tyChar: "raiseRangeErrorU"
of tyFloat..tyFloat128: "raiseRangeErrorF"
else: "raiseRangeErrorI"
c.requestCompilerProc(g, raiser)
proc aliveCode(c: var AliveContext; g: PackedModuleGraph; tree: PackedTree; n: NodePos) =
## Marks the symbols we encounter when we traverse the AST at `tree[n]` as alive, unless
## it is purely in a declarative context (type section etc.).
case n.kind
of nkNone..pred(nkSym), succ(nkSym)..nkNilLit:
discard "ignore non-sym atoms"
of nkSym:
# This symbol is alive and everything its body references.
followLater(c, g, c.thisModule, tree[n].soperand)
of nkModuleRef:
let (n1, n2) = sons2(tree, n)
assert n1.kind == nkNone
assert n2.kind == nkNone
let m = n1.litId
let item = tree[n2].soperand
let otherModule = toFileIndexCached(c.decoder, g, c.thisModule, m).int
followLater(c, g, otherModule, item)
of nkMacroDef, nkTemplateDef, nkTypeSection, nkTypeOfExpr,
nkCommentStmt, nkIncludeStmt,
nkImportStmt, nkImportExceptStmt, nkExportStmt, nkExportExceptStmt,
nkFromStmt, nkStaticStmt:
discard
of nkVarSection, nkLetSection, nkConstSection:
# XXX ignore the defining local variable name?
for son in sonsReadonly(tree, n):
aliveCode(c, g, tree, son)
of nkChckRangeF, nkChckRange64, nkChckRange:
rangeCheckAnalysis(c, g, tree, n)
of nkProcDef, nkConverterDef, nkMethodDef, nkFuncDef, nkIteratorDef:
if n.firstSon.kind == nkSym and isNotGeneric(n):
let item = tree[n.firstSon].soperand
if isExportedToC(c, g, item):
# This symbol is alive and everything its body references.
followLater(c, g, c.thisModule, item)
else:
for son in sonsReadonly(tree, n):
aliveCode(c, g, tree, son)
proc followNow(c: var AliveContext; g: PackedModuleGraph) =
## Mark all entries in the stack. Marking can add more entries
## to the stack but eventually we have looked at every alive symbol.
while c.stack.len > 0:
let (modId, opt, ast) = c.stack.pop()
c.thisModule = modId
c.options = opt
aliveCode(c, g, g[modId].fromDisk.bodies, ast)
proc computeAliveSyms*(g: PackedModuleGraph; conf: ConfigRef): AliveSyms =
## Entry point for our DCE algorithm.
var c = AliveContext(stack: @[], decoder: PackedDecoder(config: conf),
thisModule: -1, alive: newSeq[IntSet](g.len),
options: conf.options)
for i in countdown(len(g)-1, 0):
if g[i].status != undefined:
c.thisModule = i
for p in allNodes(g[i].fromDisk.topLevel):
aliveCode(c, g, g[i].fromDisk.topLevel, p)
followNow(c, g)
result = move(c.alive)
proc isAlive*(a: AliveSyms; module: int, item: int32): bool =
## Backends use this to query if a symbol is `alive` which means
## we need to produce (C/C++/etc) code for it.
result = a[module].contains(item)

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====================================
Incremental Recompilations
====================================
We split the Nim compiler into a frontend and a backend.
The frontend produces a set of `.rod` files. Every `.nim` module
produces its own `.rod` file.
- The IR must be a faithful representation of the AST in memory.
- The backend can do its own caching but doesn't have to. In the
current implementation the backend also caches its results.
Advantage of the "set of files" vs the previous global database:
- By construction, we either read from the `.rod` file or from the
`.nim` file, there can be no inconsistency. There can also be no
partial updates.
- No dependency to external packages (SQLite). SQLite simply is too
slow and the old way of serialization was too slow too. We use a
format designed for Nim and expect to base further tools on this
file format.
References to external modules must be (moduleId, symId) pairs.
The symbol IDs are module specific. This way no global ID increment
mechanism needs to be implemented that we could get wrong. ModuleIds
are rod-file specific too.
Global state
------------
There is no global state.
Rod File Format
---------------
It's a simple binary file format. `rodfiles.nim` contains some details.
Backend
-------
Nim programmers have to come to enjoy whole-program dead code elimination,
by default. Since this is a "whole program" optimization, it does break
modularity. However, thanks to the packed AST representation we can perform
this global analysis without having to unpack anything. This is basically
a mark&sweep GC algorithm:
- Start with the top level statements. Every symbol that is referenced
from a top level statement is not "dead" and needs to be compiled by
the backend.
- Every symbol referenced from a referenced symbol also has to be
compiled.
Caching logic: Only if the set of alive symbols is different from the
last run, the module has to be regenerated.

File diff suppressed because it is too large Load Diff

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#
#
# The Nim Compiler
# (c) Copyright 2024 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
# For the line information we use 32 bits. They are used as follows:
# Bit 0 (AsideBit): If we have inline line information or not. If not, the
# remaining 31 bits are used as an index into a seq[(LitId, int, int)].
#
# We use 10 bits for the "file ID", this means a program can consist of as much
# as 1024 different files. (If it uses more files than that, the overflow bit
# would be set.)
# This means we have 21 bits left to encode the (line, col) pair. We use 7 bits for the column
# so 128 is the limit and 14 bits for the line number.
# The packed representation supports files with up to 16384 lines.
# Keep in mind that whenever any limit is reached the AsideBit is set and the real line
# information is kept in a side channel.
import std / assertions
const
AsideBit = 1
FileBits = 10
LineBits = 14
ColBits = 7
FileMax = (1 shl FileBits) - 1
LineMax = (1 shl LineBits) - 1
ColMax = (1 shl ColBits) - 1
static:
assert AsideBit + FileBits + LineBits + ColBits == 32
import .. / ic / [bitabs, rodfiles] # for LitId
type
PackedLineInfo* = distinct uint32
LineInfoManager* = object
aside: seq[(LitId, int32, int32)]
const
NoLineInfo* = PackedLineInfo(0'u32)
proc pack*(m: var LineInfoManager; file: LitId; line, col: int32): PackedLineInfo =
if file.uint32 <= FileMax.uint32 and line <= LineMax and col <= ColMax:
let col = if col < 0'i32: 0'u32 else: col.uint32
let line = if line < 0'i32: 0'u32 else: line.uint32
# use inline representation:
result = PackedLineInfo((file.uint32 shl 1'u32) or (line shl uint32(AsideBit + FileBits)) or
(col shl uint32(AsideBit + FileBits + LineBits)))
else:
result = PackedLineInfo((m.aside.len shl 1) or AsideBit)
m.aside.add (file, line, col)
proc unpack*(m: LineInfoManager; i: PackedLineInfo): (LitId, int32, int32) =
let i = i.uint32
if (i and 1'u32) == 0'u32:
# inline representation:
result = (LitId((i shr 1'u32) and FileMax.uint32),
int32((i shr uint32(AsideBit + FileBits)) and LineMax.uint32),
int32((i shr uint32(AsideBit + FileBits + LineBits)) and ColMax.uint32))
else:
result = m.aside[int(i shr 1'u32)]
proc getFileId*(m: LineInfoManager; i: PackedLineInfo): LitId =
result = unpack(m, i)[0]
proc store*(r: var RodFile; m: LineInfoManager) = storeSeq(r, m.aside)
proc load*(r: var RodFile; m: var LineInfoManager) = loadSeq(r, m.aside)
when isMainModule:
var m = LineInfoManager(aside: @[])
for i in 0'i32..<16388'i32:
for col in 0'i32..<100'i32:
let packed = pack(m, LitId(1023), i, col)
let u = unpack(m, packed)
assert u[0] == LitId(1023)
assert u[1] == i
assert u[2] == col
echo m.aside.len

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#
#
# The Nim Compiler
# (c) Copyright 2021 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## Integrity checking for a set of .rod files.
## The set must cover a complete Nim project.
import std/[sets, tables]
when defined(nimPreviewSlimSystem):
import std/assertions
import ".." / [ast, modulegraphs]
import packed_ast, bitabs, ic
type
CheckedContext = object
g: ModuleGraph
thisModule: int32
checkedSyms: HashSet[ItemId]
checkedTypes: HashSet[ItemId]
proc checkType(c: var CheckedContext; typeId: PackedItemId)
proc checkForeignSym(c: var CheckedContext; symId: PackedItemId)
proc checkNode(c: var CheckedContext; tree: PackedTree; n: NodePos)
proc checkTypeObj(c: var CheckedContext; typ: PackedType) =
for child in typ.types:
checkType(c, child)
if typ.n != emptyNodeId:
checkNode(c, c.g.packed[c.thisModule].fromDisk.bodies, NodePos typ.n)
if typ.sym != nilItemId:
checkForeignSym(c, typ.sym)
if typ.owner != nilItemId:
checkForeignSym(c, typ.owner)
checkType(c, typ.typeInst)
proc checkType(c: var CheckedContext; typeId: PackedItemId) =
if typeId == nilItemId: return
let itemId = translateId(typeId, c.g.packed, c.thisModule, c.g.config)
if not c.checkedTypes.containsOrIncl(itemId):
let oldThisModule = c.thisModule
c.thisModule = itemId.module
checkTypeObj c, c.g.packed[itemId.module].fromDisk.types[itemId.item]
c.thisModule = oldThisModule
proc checkSym(c: var CheckedContext; s: PackedSym) =
if s.name != LitId(0):
assert c.g.packed[c.thisModule].fromDisk.strings.hasLitId s.name
checkType c, s.typ
if s.ast != emptyNodeId:
checkNode(c, c.g.packed[c.thisModule].fromDisk.bodies, NodePos s.ast)
if s.owner != nilItemId:
checkForeignSym(c, s.owner)
proc checkLocalSym(c: var CheckedContext; item: int32) =
let itemId = ItemId(module: c.thisModule, item: item)
if not c.checkedSyms.containsOrIncl(itemId):
checkSym c, c.g.packed[c.thisModule].fromDisk.syms[item]
proc checkForeignSym(c: var CheckedContext; symId: PackedItemId) =
let itemId = translateId(symId, c.g.packed, c.thisModule, c.g.config)
if not c.checkedSyms.containsOrIncl(itemId):
let oldThisModule = c.thisModule
c.thisModule = itemId.module
checkSym c, c.g.packed[itemId.module].fromDisk.syms[itemId.item]
c.thisModule = oldThisModule
proc checkNode(c: var CheckedContext; tree: PackedTree; n: NodePos) =
let t = findType(tree, n)
if t != nilItemId:
checkType(c, t)
case n.kind
of nkEmpty, nkNilLit, nkType, nkNilRodNode:
discard
of nkIdent:
assert c.g.packed[c.thisModule].fromDisk.strings.hasLitId n.litId
of nkSym:
checkLocalSym(c, tree[n].soperand)
of directIntLit:
discard
of externIntLit, nkFloatLit..nkFloat128Lit:
assert c.g.packed[c.thisModule].fromDisk.numbers.hasLitId n.litId
of nkStrLit..nkTripleStrLit:
assert c.g.packed[c.thisModule].fromDisk.strings.hasLitId n.litId
of nkModuleRef:
let (n1, n2) = sons2(tree, n)
assert n1.kind == nkNone
assert n2.kind == nkNone
checkForeignSym(c, PackedItemId(module: n1.litId, item: tree[n2].soperand))
else:
for n0 in sonsReadonly(tree, n):
checkNode(c, tree, n0)
proc checkTree(c: var CheckedContext; t: PackedTree) =
for p in allNodes(t): checkNode(c, t, p)
proc checkLocalSymIds(c: var CheckedContext; m: PackedModule; symIds: seq[int32]) =
for symId in symIds:
assert symId >= 0 and symId < m.syms.len, $symId & " " & $m.syms.len
proc checkModule(c: var CheckedContext; m: PackedModule) =
# We check that:
# - Every symbol references existing types and symbols.
# - Every tree node references existing types and symbols.
for _, v in pairs(m.syms):
checkLocalSym c, v.id
checkTree c, m.toReplay
checkTree c, m.topLevel
for e in m.exports:
#assert e[1] >= 0 and e[1] < m.syms.len
assert e[0] == m.syms[e[1]].name
for e in m.compilerProcs:
#assert e[1] >= 0 and e[1] < m.syms.len
assert e[0] == m.syms[e[1]].name
checkLocalSymIds c, m, m.converters
checkLocalSymIds c, m, m.methods
checkLocalSymIds c, m, m.trmacros
checkLocalSymIds c, m, m.pureEnums
#[
To do: Check all these fields:
reexports*: seq[(LitId, PackedItemId)]
macroUsages*: seq[(PackedItemId, PackedLineInfo)]
typeInstCache*: seq[(PackedItemId, PackedItemId)]
procInstCache*: seq[PackedInstantiation]
attachedOps*: seq[(TTypeAttachedOp, PackedItemId, PackedItemId)]
methodsPerGenericType*: seq[(PackedItemId, int, PackedItemId)]
enumToStringProcs*: seq[(PackedItemId, PackedItemId)]
methodsPerType*: seq[(PackedItemId, PackedItemId)]
dispatchers*: seq[PackedItemId]
]#
proc checkIntegrity*(g: ModuleGraph) =
var c = CheckedContext(g: g)
for i in 0..<len(g.packed):
# case statement here to enforce exhaustive checks.
case g.packed[i].status
of undefined:
discard "nothing to do"
of loading:
assert false, "cannot check integrity: Module still loading"
of stored, storing, outdated, loaded:
c.thisModule = int32 i
checkModule(c, g.packed[i].fromDisk)

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#
#
# The Nim Compiler
# (c) Copyright 2021 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## Supports the "nim check --ic:on --defusages:FILE,LINE,COL"
## IDE-like features. It uses the set of .rod files to accomplish
## its task. The set must cover a complete Nim project.
import std/[sets, tables]
from std/os import nil
from std/private/miscdollars import toLocation
when defined(nimPreviewSlimSystem):
import std/assertions
import ".." / [ast, modulegraphs, msgs, options]
import iclineinfos
import packed_ast, bitabs, ic
type
UnpackedLineInfo = object
file: LitId
line, col: int
NavContext = object
g: ModuleGraph
thisModule: int32
trackPos: UnpackedLineInfo
alreadyEmitted: HashSet[string]
outputSep: char # for easier testing, use short filenames and spaces instead of tabs.
proc isTracked(man: LineInfoManager; current: PackedLineInfo, trackPos: UnpackedLineInfo, tokenLen: int): bool =
let (currentFile, currentLine, currentCol) = man.unpack(current)
if currentFile == trackPos.file and currentLine == trackPos.line:
let col = trackPos.col
if col >= currentCol and col < currentCol+tokenLen:
result = true
else:
result = false
else:
result = false
proc searchLocalSym(c: var NavContext; s: PackedSym; info: PackedLineInfo): bool =
result = s.name != LitId(0) and
isTracked(c.g.packed[c.thisModule].fromDisk.man, info, c.trackPos, c.g.packed[c.thisModule].fromDisk.strings[s.name].len)
proc searchForeignSym(c: var NavContext; s: ItemId; info: PackedLineInfo): bool =
let name = c.g.packed[s.module].fromDisk.syms[s.item].name
result = name != LitId(0) and
isTracked(c.g.packed[c.thisModule].fromDisk.man, info, c.trackPos, c.g.packed[s.module].fromDisk.strings[name].len)
const
EmptyItemId = ItemId(module: -1'i32, item: -1'i32)
proc search(c: var NavContext; tree: PackedTree): ItemId =
# We use the linear representation here directly:
for i in 0..<len(tree):
let i = NodePos(i)
case tree[i].kind
of nkSym:
let item = tree[i].soperand
if searchLocalSym(c, c.g.packed[c.thisModule].fromDisk.syms[item], tree[i].info):
return ItemId(module: c.thisModule, item: item)
of nkModuleRef:
let (currentFile, currentLine, currentCol) = c.g.packed[c.thisModule].fromDisk.man.unpack(tree[i].info)
if currentLine == c.trackPos.line and currentFile == c.trackPos.file:
let (n1, n2) = sons2(tree, i)
assert n1.kind == nkInt32Lit
assert n2.kind == nkInt32Lit
let pId = PackedItemId(module: n1.litId, item: tree[n2].soperand)
let itemId = translateId(pId, c.g.packed, c.thisModule, c.g.config)
if searchForeignSym(c, itemId, tree[i].info):
return itemId
else: discard
return EmptyItemId
proc isDecl(tree: PackedTree; n: NodePos): bool =
# XXX This is not correct yet.
const declarativeNodes = procDefs + {nkMacroDef, nkTemplateDef,
nkLetSection, nkVarSection, nkUsingStmt, nkConstSection, nkTypeSection,
nkIdentDefs, nkEnumTy, nkVarTuple}
result = n.int >= 0 and tree[n].kind in declarativeNodes
proc usage(c: var NavContext; info: PackedLineInfo; isDecl: bool) =
let (fileId, line, col) = unpack(c.g.packed[c.thisModule].fromDisk.man, info)
var m = ""
var file = c.g.packed[c.thisModule].fromDisk.strings[fileId]
if c.outputSep == ' ':
file = os.extractFilename file
toLocation(m, file, line, col + ColOffset)
if not c.alreadyEmitted.containsOrIncl(m):
msgWriteln c.g.config, (if isDecl: "def" else: "usage") & c.outputSep & m
proc list(c: var NavContext; tree: PackedTree; sym: ItemId) =
for i in 0..<len(tree):
let i = NodePos(i)
case tree[i].kind
of nkSym:
let item = tree[i].soperand
if sym.item == item and sym.module == c.thisModule:
usage(c, tree[i].info, isDecl(tree, parent(i)))
of nkModuleRef:
let (n1, n2) = sons2(tree, i)
assert n1.kind == nkNone
assert n2.kind == nkNone
let pId = PackedItemId(module: n1.litId, item: tree[n2].soperand)
let itemId = translateId(pId, c.g.packed, c.thisModule, c.g.config)
if itemId.item == sym.item and sym.module == itemId.module:
usage(c, tree[i].info, isDecl(tree, parent(i)))
else: discard
proc searchForIncludeFile(g: ModuleGraph; fullPath: string): int =
for i in 0..<len(g.packed):
for k in 1..high(g.packed[i].fromDisk.includes):
# we start from 1 because the first "include" file is
# the module's filename.
if os.cmpPaths(g.packed[i].fromDisk.strings[g.packed[i].fromDisk.includes[k][0]], fullPath) == 0:
return i
return -1
proc nav(g: ModuleGraph) =
# translate the track position to a packed position:
let unpacked = g.config.m.trackPos
var mid = unpacked.fileIndex.int
let fullPath = toFullPath(g.config, unpacked.fileIndex)
if g.packed[mid].status == undefined:
# check if 'mid' is an include file of some other module:
mid = searchForIncludeFile(g, fullPath)
if mid < 0:
localError(g.config, unpacked, "unknown file name: " & fullPath)
return
let fileId = g.packed[mid].fromDisk.strings.getKeyId(fullPath)
if fileId == LitId(0):
internalError(g.config, unpacked, "cannot find a valid file ID")
return
var c = NavContext(
g: g,
thisModule: int32 mid,
trackPos: UnpackedLineInfo(line: unpacked.line.int, col: unpacked.col.int, file: fileId),
outputSep: if isDefined(g.config, "nimIcNavigatorTests"): ' ' else: '\t'
)
var symId = search(c, g.packed[mid].fromDisk.topLevel)
if symId == EmptyItemId:
symId = search(c, g.packed[mid].fromDisk.bodies)
if symId == EmptyItemId:
localError(g.config, unpacked, "no symbol at this position")
return
for i in 0..<len(g.packed):
# case statement here to enforce exhaustive checks.
case g.packed[i].status
of undefined:
discard "nothing to do"
of loading:
assert false, "cannot check integrity: Module still loading"
of stored, storing, outdated, loaded:
c.thisModule = int32 i
list(c, g.packed[i].fromDisk.topLevel, symId)
list(c, g.packed[i].fromDisk.bodies, symId)
proc navDefinition*(g: ModuleGraph) = nav(g)
proc navUsages*(g: ModuleGraph) = nav(g)
proc navDefusages*(g: ModuleGraph) = nav(g)
proc writeRodFiles*(g: ModuleGraph) =
for i in 0..<len(g.packed):
case g.packed[i].status
of undefined, loading, stored, loaded:
discard "nothing to do"
of storing, outdated:
closeRodFile(g, g.packed[i].module)

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#
#
# The Nim Compiler
# (c) Copyright 2020 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## Packed AST representation, mostly based on a seq of nodes.
## For IC support. Far future: Rewrite the compiler passes to
## use this representation directly in all the transformations,
## it is superior.
import std/[hashes, tables, strtabs]
import bitabs, rodfiles
import ".." / [ast, options]
import iclineinfos
when defined(nimPreviewSlimSystem):
import std/assertions
type
SymId* = distinct int32
ModuleId* = distinct int32
NodePos* = distinct int
NodeId* = distinct int32
PackedItemId* = object
module*: LitId # 0 if it's this module
item*: int32 # same as the in-memory representation
const
nilItemId* = PackedItemId(module: LitId(0), item: 0.int32)
const
emptyNodeId* = NodeId(-1)
type
PackedLib* = object
kind*: TLibKind
generated*: bool
isOverridden*: bool
name*: LitId
path*: NodeId
PackedSym* = object
id*: int32
kind*: TSymKind
name*: LitId
typ*: PackedItemId
flags*: TSymFlags
magic*: TMagic
info*: PackedLineInfo
ast*: NodeId
owner*: PackedItemId
guard*: PackedItemId
bitsize*: int
alignment*: int # for alignment
options*: TOptions
position*: int
offset*: int32
disamb*: int32
externalName*: LitId # instead of TLoc
locFlags*: TLocFlags
annex*: PackedLib
when hasFFI:
cname*: LitId
constraint*: NodeId
instantiatedFrom*: PackedItemId
PackedType* = object
id*: int32
kind*: TTypeKind
callConv*: TCallingConvention
#nodekind*: TNodeKind
flags*: TTypeFlags
types*: seq[PackedItemId]
n*: NodeId
#nodeflags*: TNodeFlags
sym*: PackedItemId
owner*: PackedItemId
size*: BiggestInt
align*: int16
paddingAtEnd*: int16
# not serialized: loc*: TLoc because it is backend-specific
typeInst*: PackedItemId
nonUniqueId*: int32
PackedNode* = object # 8 bytes
x: uint32
info*: PackedLineInfo
PackedTree* = object ## usually represents a full Nim module
nodes: seq[PackedNode]
withFlags: seq[(int32, TNodeFlags)]
withTypes: seq[(int32, PackedItemId)]
PackedInstantiation* = object
key*, sym*: PackedItemId
concreteTypes*: seq[PackedItemId]
const
NodeKindBits = 8'u32
NodeKindMask = (1'u32 shl NodeKindBits) - 1'u32
template kind*(n: PackedNode): TNodeKind = TNodeKind(n.x and NodeKindMask)
template uoperand*(n: PackedNode): uint32 = (n.x shr NodeKindBits)
template soperand*(n: PackedNode): int32 = int32(uoperand(n))
template toX(k: TNodeKind; operand: uint32): uint32 =
uint32(k) or (operand shl NodeKindBits)
template toX(k: TNodeKind; operand: LitId): uint32 =
uint32(k) or (operand.uint32 shl NodeKindBits)
template typeId*(n: PackedNode): PackedItemId = n.typ
proc `==`*(a, b: SymId): bool {.borrow.}
proc hash*(a: SymId): Hash {.borrow.}
proc `==`*(a, b: NodePos): bool {.borrow.}
#proc `==`*(a, b: PackedItemId): bool {.borrow.}
proc `==`*(a, b: NodeId): bool {.borrow.}
proc newTreeFrom*(old: PackedTree): PackedTree =
result = PackedTree(nodes: @[])
when false: result.sh = old.sh
proc addIdent*(tree: var PackedTree; s: LitId; info: PackedLineInfo) =
tree.nodes.add PackedNode(x: toX(nkIdent, uint32(s)), info: info)
proc addSym*(tree: var PackedTree; s: int32; info: PackedLineInfo) =
tree.nodes.add PackedNode(x: toX(nkSym, cast[uint32](s)), info: info)
proc addSymDef*(tree: var PackedTree; s: SymId; info: PackedLineInfo) =
tree.nodes.add PackedNode(x: toX(nkSym, cast[uint32](s)), info: info)
proc isAtom*(tree: PackedTree; pos: int): bool {.inline.} = tree.nodes[pos].kind <= nkNilLit
type
PatchPos = distinct int
proc addNode*(t: var PackedTree; kind: TNodeKind; operand: int32;
typeId: PackedItemId = nilItemId; info: PackedLineInfo;
flags: TNodeFlags = {}) =
t.nodes.add PackedNode(x: toX(kind, cast[uint32](operand)), info: info)
if flags != {}:
t.withFlags.add (t.nodes.len.int32 - 1, flags)
if typeId != nilItemId:
t.withTypes.add (t.nodes.len.int32 - 1, typeId)
proc prepare*(tree: var PackedTree; kind: TNodeKind; flags: TNodeFlags; typeId: PackedItemId; info: PackedLineInfo): PatchPos =
result = PatchPos tree.nodes.len
tree.addNode(kind = kind, flags = flags, operand = 0, info = info, typeId = typeId)
proc prepare*(dest: var PackedTree; source: PackedTree; sourcePos: NodePos): PatchPos =
result = PatchPos dest.nodes.len
dest.nodes.add source.nodes[sourcePos.int]
proc patch*(tree: var PackedTree; pos: PatchPos) =
let pos = pos.int
let k = tree.nodes[pos].kind
assert k > nkNilLit
let distance = int32(tree.nodes.len - pos)
assert distance > 0
tree.nodes[pos].x = toX(k, cast[uint32](distance))
proc len*(tree: PackedTree): int {.inline.} = tree.nodes.len
proc `[]`*(tree: PackedTree; i: NodePos): lent PackedNode {.inline.} =
tree.nodes[i.int]
template rawSpan(n: PackedNode): int = int(uoperand(n))
proc nextChild(tree: PackedTree; pos: var int) {.inline.} =
if tree.nodes[pos].kind > nkNilLit:
assert tree.nodes[pos].uoperand > 0
inc pos, tree.nodes[pos].rawSpan
else:
inc pos
iterator sonsReadonly*(tree: PackedTree; n: NodePos): NodePos =
var pos = n.int
assert tree.nodes[pos].kind > nkNilLit
let last = pos + tree.nodes[pos].rawSpan
inc pos
while pos < last:
yield NodePos pos
nextChild tree, pos
iterator sons*(dest: var PackedTree; tree: PackedTree; n: NodePos): NodePos =
let patchPos = prepare(dest, tree, n)
for x in sonsReadonly(tree, n): yield x
patch dest, patchPos
iterator isons*(dest: var PackedTree; tree: PackedTree;
n: NodePos): (int, NodePos) =
var i = 0
for ch0 in sons(dest, tree, n):
yield (i, ch0)
inc i
iterator sonsFrom1*(tree: PackedTree; n: NodePos): NodePos =
var pos = n.int
assert tree.nodes[pos].kind > nkNilLit
let last = pos + tree.nodes[pos].rawSpan
inc pos
if pos < last:
nextChild tree, pos
while pos < last:
yield NodePos pos
nextChild tree, pos
iterator sonsWithoutLast2*(tree: PackedTree; n: NodePos): NodePos =
var count = 0
for child in sonsReadonly(tree, n):
inc count
var pos = n.int
assert tree.nodes[pos].kind > nkNilLit
let last = pos + tree.nodes[pos].rawSpan
inc pos
while pos < last and count > 2:
yield NodePos pos
dec count
nextChild tree, pos
proc parentImpl(tree: PackedTree; n: NodePos): NodePos =
# finding the parent of a node is rather easy:
var pos = n.int - 1
while pos >= 0 and (isAtom(tree, pos) or (pos + tree.nodes[pos].rawSpan - 1 < n.int)):
dec pos
#assert pos >= 0, "node has no parent"
result = NodePos(pos)
template parent*(n: NodePos): NodePos = parentImpl(tree, n)
proc hasXsons*(tree: PackedTree; n: NodePos; x: int): bool =
var count = 0
if tree.nodes[n.int].kind > nkNilLit:
for child in sonsReadonly(tree, n): inc count
result = count == x
proc hasAtLeastXsons*(tree: PackedTree; n: NodePos; x: int): bool =
if tree.nodes[n.int].kind > nkNilLit:
var count = 0
for child in sonsReadonly(tree, n):
inc count
if count >= x: return true
return false
proc firstSon*(tree: PackedTree; n: NodePos): NodePos {.inline.} =
NodePos(n.int+1)
proc kind*(tree: PackedTree; n: NodePos): TNodeKind {.inline.} =
tree.nodes[n.int].kind
proc litId*(tree: PackedTree; n: NodePos): LitId {.inline.} =
LitId tree.nodes[n.int].uoperand
proc info*(tree: PackedTree; n: NodePos): PackedLineInfo {.inline.} =
tree.nodes[n.int].info
proc findType*(tree: PackedTree; n: NodePos): PackedItemId =
for x in tree.withTypes:
if x[0] == int32(n): return x[1]
if x[0] > int32(n): return nilItemId
return nilItemId
proc findFlags*(tree: PackedTree; n: NodePos): TNodeFlags =
for x in tree.withFlags:
if x[0] == int32(n): return x[1]
if x[0] > int32(n): return {}
return {}
template typ*(n: NodePos): PackedItemId =
tree.findType(n)
template flags*(n: NodePos): TNodeFlags =
tree.findFlags(n)
template uoperand*(n: NodePos): uint32 =
tree.nodes[n.int].uoperand
proc span*(tree: PackedTree; pos: int): int {.inline.} =
if isAtom(tree, pos): 1 else: tree.nodes[pos].rawSpan
proc sons2*(tree: PackedTree; n: NodePos): (NodePos, NodePos) =
assert(not isAtom(tree, n.int))
let a = n.int+1
let b = a + span(tree, a)
result = (NodePos a, NodePos b)
proc sons3*(tree: PackedTree; n: NodePos): (NodePos, NodePos, NodePos) =
assert(not isAtom(tree, n.int))
let a = n.int+1
let b = a + span(tree, a)
let c = b + span(tree, b)
result = (NodePos a, NodePos b, NodePos c)
proc ithSon*(tree: PackedTree; n: NodePos; i: int): NodePos =
result = default(NodePos)
if tree.nodes[n.int].kind > nkNilLit:
var count = 0
for child in sonsReadonly(tree, n):
if count == i: return child
inc count
assert false, "node has no i-th child"
when false:
proc `@`*(tree: PackedTree; lit: LitId): lent string {.inline.} =
tree.sh.strings[lit]
template kind*(n: NodePos): TNodeKind = tree.nodes[n.int].kind
template info*(n: NodePos): PackedLineInfo = tree.nodes[n.int].info
template litId*(n: NodePos): LitId = LitId tree.nodes[n.int].uoperand
template symId*(n: NodePos): SymId = SymId tree.nodes[n.int].soperand
proc firstSon*(n: NodePos): NodePos {.inline.} = NodePos(n.int+1)
const
externIntLit* = {nkCharLit,
nkIntLit,
nkInt8Lit,
nkInt16Lit,
nkInt32Lit,
nkInt64Lit,
nkUIntLit,
nkUInt8Lit,
nkUInt16Lit,
nkUInt32Lit,
nkUInt64Lit}
externSIntLit* = {nkIntLit, nkInt8Lit, nkInt16Lit, nkInt32Lit, nkInt64Lit}
externUIntLit* = {nkUIntLit, nkUInt8Lit, nkUInt16Lit, nkUInt32Lit, nkUInt64Lit}
directIntLit* = nkNone
template copyInto*(dest, n, body) =
let patchPos = prepare(dest, tree, n)
body
patch dest, patchPos
template copyIntoKind*(dest, kind, info, body) =
let patchPos = prepare(dest, kind, info)
body
patch dest, patchPos
proc getNodeId*(tree: PackedTree): NodeId {.inline.} = NodeId tree.nodes.len
iterator allNodes*(tree: PackedTree): NodePos =
var p = 0
while p < tree.len:
yield NodePos(p)
let s = span(tree, p)
inc p, s
proc toPackedItemId*(item: int32): PackedItemId {.inline.} =
PackedItemId(module: LitId(0), item: item)
proc load*(f: var RodFile; t: var PackedTree) =
loadSeq f, t.nodes
loadSeq f, t.withFlags
loadSeq f, t.withTypes
proc store*(f: var RodFile; t: PackedTree) =
storeSeq f, t.nodes
storeSeq f, t.withFlags
storeSeq f, t.withTypes

View File

@@ -19,11 +19,10 @@ import std/tables
when defined(nimPreviewSlimSystem):
import std/assertions
proc replayStateChanges*(module: PSym; g: ModuleGraph; list: PNode) =
## `list` is an `nkStmtList` of `nkReplayAction` nodes (macro-cache puts/incs/
## adds/incls and a few pragmas) recorded for `module`. Under the NIF backend a
## loaded module's `ast` is never reconstructed, so the caller passes the replay
## actions it parsed out of the module's NIF directly.
import packed_ast, ic, bitabs
proc replayStateChanges*(module: PSym; g: ModuleGraph) =
let list = module.ast
assert list != nil
assert list.kind == nkStmtList
for n in list:
@@ -67,9 +66,8 @@ proc replayStateChanges*(module: PSym; g: ModuleGraph; list: PNode) =
g.cacheTables[destKey] = initBTree[string, PNode]()
if not contains(g.cacheTables[destKey], key):
g.cacheTables[destKey].add(key, val)
# else: the same key was already replayed. Under IC the import closure is
# replayed (direct module + transitive deps), so the same registration can
# legitimately be reached twice; re-applying it is a no-op, not an error.
else:
internalError(g.config, n.info, "key already exists: " & key)
of "incl":
let destKey = n[1].strVal
let val = n[2]
@@ -91,36 +89,83 @@ proc replayStateChanges*(module: PSym; g: ModuleGraph; list: PNode) =
else:
internalAssert g.config, false
proc replayBackendActions*(g: ModuleGraph; module: PSym; list: PNode) =
## Applies the backend-relevant replay actions (C compile/link directives)
## found in a NIF-loaded module's top-level statement list. The `nifc`
## backend loads modules without going through sem's `replayStateChanges`,
## so e.g. math's `{.passL: "-lm".}` was lost and the final link failed
## with undefined references. VM cache actions are deliberately NOT
## replayed here — codegen does not run macros.
if list == nil: return
for n in list:
if n.kind == nkReplayAction and n.len >= 2 and
n[0].kind == nkStrLit and n[1].kind == nkStrLit:
case n[0].strVal
of "compile":
if n.len == 4 and n[2].kind == nkStrLit:
let cname = AbsoluteFile n[1].strVal
var cf = Cfile(nimname: splitFile(cname).name, cname: cname,
obj: AbsoluteFile n[2].strVal,
flags: {CfileFlag.External},
customArgs: n[3].strVal)
extccomp.addExternalFileToCompile(g.config, cf)
of "link":
extccomp.addExternalFileToLink(g.config, AbsoluteFile n[1].strVal)
of "passl":
extccomp.addLinkOption(g.config, n[1].strVal)
of "passc":
extccomp.addCompileOption(g.config, n[1].strVal)
of "localpassc":
extccomp.addLocalCompileOption(g.config, n[1].strVal,
toFullPathConsiderDirty(g.config, module.info.fileIndex))
of "cppdefine":
options.cppDefine(g.config, n[1].strVal)
else:
discard
proc replayBackendProcs*(g: ModuleGraph; module: int) =
for it in mitems(g.packed[module].fromDisk.attachedOps):
let key = translateId(it[0], g.packed, module, g.config)
let op = it[1]
let tmp = translateId(it[2], g.packed, module, g.config)
let symId = FullId(module: tmp.module, packed: it[2])
g.attachedOps[op][key] = LazySym(id: symId, sym: nil)
for it in mitems(g.packed[module].fromDisk.enumToStringProcs):
let key = translateId(it[0], g.packed, module, g.config)
let tmp = translateId(it[1], g.packed, module, g.config)
let symId = FullId(module: tmp.module, packed: it[1])
g.enumToStringProcs[key] = LazySym(id: symId, sym: nil)
for it in mitems(g.packed[module].fromDisk.methodsPerType):
let key = translateId(it[0], g.packed, module, g.config)
let tmp = translateId(it[1], g.packed, module, g.config)
let symId = FullId(module: tmp.module, packed: it[1])
g.methodsPerType.mgetOrPut(key, @[]).add LazySym(id: symId, sym: nil)
for it in mitems(g.packed[module].fromDisk.dispatchers):
let tmp = translateId(it, g.packed, module, g.config)
let symId = FullId(module: tmp.module, packed: it)
g.dispatchers.add LazySym(id: symId, sym: nil)
proc replayGenericCacheInformation*(g: ModuleGraph; module: int) =
## We remember the generic instantiations a module performed
## in order to to avoid the code bloat that generic code tends
## to imply. This is cheaper than deduplication of identical
## generic instantiations. However, deduplication is more
## powerful and general and I hope to implement it soon too
## (famous last words).
assert g.packed[module].status == loaded
for it in g.packed[module].fromDisk.typeInstCache:
let key = translateId(it[0], g.packed, module, g.config)
g.typeInstCache.mgetOrPut(key, @[]).add LazyType(id: FullId(module: module, packed: it[1]), typ: nil)
for it in mitems(g.packed[module].fromDisk.procInstCache):
let key = translateId(it.key, g.packed, module, g.config)
let sym = translateId(it.sym, g.packed, module, g.config)
var concreteTypes = newSeq[FullId](it.concreteTypes.len)
for i in 0..high(it.concreteTypes):
let tmp = translateId(it.concreteTypes[i], g.packed, module, g.config)
concreteTypes[i] = FullId(module: tmp.module, packed: it.concreteTypes[i])
g.procInstCache.mgetOrPut(key, @[]).add LazyInstantiation(
module: module, sym: FullId(module: sym.module, packed: it.sym),
concreteTypes: concreteTypes, inst: nil)
for it in mitems(g.packed[module].fromDisk.methodsPerGenericType):
let key = translateId(it[0], g.packed, module, g.config)
let col = it[1]
let tmp = translateId(it[2], g.packed, module, g.config)
let symId = FullId(module: tmp.module, packed: it[2])
g.methodsPerGenericType.mgetOrPut(key, @[]).add (col, LazySym(id: symId, sym: nil))
replayBackendProcs(g, module)
for it in mitems(g.packed[module].fromDisk.methods):
let sym = loadSymFromId(g.config, g.cache, g.packed, module,
PackedItemId(module: LitId(0), item: it))
methodDef(g, g.idgen, sym)
when false:
# not used anymore:
for it in mitems(g.packed[module].fromDisk.compilerProcs):
let symId = FullId(module: module, packed: PackedItemId(module: LitId(0), item: it[1]))
g.lazyCompilerprocs[g.packed[module].fromDisk.sh.strings[it[0]]] = symId
for it in mitems(g.packed[module].fromDisk.converters):
let symId = FullId(module: module, packed: PackedItemId(module: LitId(0), item: it))
g.ifaces[module].converters.add LazySym(id: symId, sym: nil)
for it in mitems(g.packed[module].fromDisk.trmacros):
let symId = FullId(module: module, packed: PackedItemId(module: LitId(0), item: it))
g.ifaces[module].patterns.add LazySym(id: symId, sym: nil)
for it in mitems(g.packed[module].fromDisk.pureEnums):
let symId = FullId(module: module, packed: PackedItemId(module: LitId(0), item: it))
g.ifaces[module].pureEnums.add LazySym(id: symId, sym: nil)

283
compiler/ic/rodfiles.nim Normal file
View File

@@ -0,0 +1,283 @@
#
#
# The Nim Compiler
# (c) Copyright 2020 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## Low level binary format used by the compiler to store and load various AST
## and related data.
##
## NB: this is incredibly low level and if you're interested in how the
## compiler works and less a storage format, you're probably looking for
## the `ic` or `packed_ast` modules to understand the logical format.
from std/typetraits import supportsCopyMem
when defined(nimPreviewSlimSystem):
import std/[syncio, assertions]
import std / tables
## Overview
## ========
## `RodFile` represents a Rod File (versioned binary format), and the
## associated data for common interactions such as IO and error tracking
## (`RodFileError`). The file format broken up into sections (`RodSection`)
## and preceded by a header (see: `cookie`). The precise layout, section
## ordering and data following the section are determined by the user. See
## `ic.loadRodFile`.
##
## A basic but "wrong" example of the lifecycle:
## ---------------------------------------------
## 1. `create` or `open` - create a new one or open an existing
## 2. `storeHeader` - header info
## 3. `storePrim` or `storeSeq` - save your stuff
## 4. `close` - and we're done
##
## Now read the bits below to understand what's missing.
##
## ### Issues with the Example
## Missing Sections:
## This is a low level API, so headers and sections need to be stored and
## loaded by the user, see `storeHeader` & `loadHeader` and `storeSection` &
## `loadSection`, respectively.
##
## No Error Handling:
## The API is centered around IO and prone to error, each operation checks or
## sets the `RodFile.err` field. A user of this API needs to handle these
## appropriately.
##
## API Notes
## =========
##
## Valid inputs for Rod files
## --------------------------
## ASTs, hopes, dreams, and anything as long as it and any children it may have
## support `copyMem`. This means anything that is not a pointer and that does not contain a pointer. At a glance these are:
## * string
## * objects & tuples (fields are recursed)
## * sequences AKA `seq[T]`
##
## Note on error handling style
## ----------------------------
## A flag based approach is used where operations no-op in case of a
## preexisting error and set the flag if they encounter one.
##
## Misc
## ----
## * 'Prim' is short for 'primitive', as in a non-sequence type
type
RodSection* = enum
versionSection
configSection
stringsSection
checkSumsSection
depsSection
numbersSection
exportsSection
hiddenSection
reexportsSection
compilerProcsSection
trmacrosSection
convertersSection
methodsSection
pureEnumsSection
toReplaySection
topLevelSection
bodiesSection
symsSection
typesSection
typeInstCacheSection
procInstCacheSection
attachedOpsSection
methodsPerGenericTypeSection
enumToStringProcsSection
methodsPerTypeSection
dispatchersSection
typeInfoSection # required by the backend
backendFlagsSection
aliveSymsSection # beware, this is stored in a `.alivesyms` file.
sideChannelSection
namespaceSection
symnamesSection
RodFileError* = enum
ok, tooBig, cannotOpen, ioFailure, wrongHeader, wrongSection, configMismatch,
includeFileChanged
RodFile* = object
f*: File
currentSection*: RodSection # for error checking
err*: RodFileError # little experiment to see if this works
# better than exceptions.
const
RodVersion = 2
defaultCookie = [byte(0), byte('R'), byte('O'), byte('D'),
byte(sizeof(int)*8), byte(system.cpuEndian), byte(0), byte(RodVersion)]
proc setError(f: var RodFile; err: RodFileError) {.inline.} =
f.err = err
#raise newException(IOError, "IO error")
proc storePrim*(f: var RodFile; s: string) =
## Stores a string.
## The len is prefixed to allow for later retreival.
if f.err != ok: return
if s.len >= high(int32):
setError f, tooBig
return
var lenPrefix = int32(s.len)
if writeBuffer(f.f, addr lenPrefix, sizeof(lenPrefix)) != sizeof(lenPrefix):
setError f, ioFailure
else:
if s.len != 0:
if writeBuffer(f.f, unsafeAddr(s[0]), s.len) != s.len:
setError f, ioFailure
proc storePrim*[T](f: var RodFile; x: T) =
## Stores a non-sequence/string `T`.
## If `T` doesn't support `copyMem` and is an object or tuple then the fields
## are written -- the user from context will need to know which `T` to load.
if f.err != ok: return
when supportsCopyMem(T):
if writeBuffer(f.f, unsafeAddr(x), sizeof(x)) != sizeof(x):
setError f, ioFailure
elif T is tuple:
for y in fields(x):
storePrim(f, y)
elif T is object:
for y in fields(x):
when y is seq:
storeSeq(f, y)
else:
storePrim(f, y)
else:
{.error: "unsupported type for 'storePrim'".}
proc storeSeq*[T](f: var RodFile; s: seq[T]) =
## Stores a sequence of `T`s, with the len as a prefix for later retrieval.
if f.err != ok: return
if s.len >= high(int32):
setError f, tooBig
return
var lenPrefix = int32(s.len)
if writeBuffer(f.f, addr lenPrefix, sizeof(lenPrefix)) != sizeof(lenPrefix):
setError f, ioFailure
else:
for i in 0..<s.len:
storePrim(f, s[i])
proc storeOrderedTable*[K, T](f: var RodFile; s: OrderedTable[K, T]) =
if f.err != ok: return
if s.len >= high(int32):
setError f, tooBig
return
var lenPrefix = int32(s.len)
if writeBuffer(f.f, addr lenPrefix, sizeof(lenPrefix)) != sizeof(lenPrefix):
setError f, ioFailure
else:
for _, v in s:
storePrim(f, v)
proc loadPrim*(f: var RodFile; s: var string) =
## Read a string, the length was stored as a prefix
if f.err != ok: return
var lenPrefix = int32(0)
if readBuffer(f.f, addr lenPrefix, sizeof(lenPrefix)) != sizeof(lenPrefix):
setError f, ioFailure
else:
s = newString(lenPrefix)
if lenPrefix > 0:
if readBuffer(f.f, unsafeAddr(s[0]), s.len) != s.len:
setError f, ioFailure
proc loadPrim*[T](f: var RodFile; x: var T) =
## Load a non-sequence/string `T`.
if f.err != ok: return
when supportsCopyMem(T):
if readBuffer(f.f, unsafeAddr(x), sizeof(x)) != sizeof(x):
setError f, ioFailure
elif T is tuple:
for y in fields(x):
loadPrim(f, y)
elif T is object:
for y in fields(x):
when y is seq:
loadSeq(f, y)
else:
loadPrim(f, y)
else:
{.error: "unsupported type for 'loadPrim'".}
proc loadSeq*[T](f: var RodFile; s: var seq[T]) =
## `T` must be compatible with `copyMem`, see `loadPrim`
if f.err != ok: return
var lenPrefix = int32(0)
if readBuffer(f.f, addr lenPrefix, sizeof(lenPrefix)) != sizeof(lenPrefix):
setError f, ioFailure
else:
s = newSeq[T](lenPrefix)
for i in 0..<lenPrefix:
loadPrim(f, s[i])
proc loadOrderedTable*[K, T](f: var RodFile; s: var OrderedTable[K, T]) =
## `T` must be compatible with `copyMem`, see `loadPrim`
if f.err != ok: return
var lenPrefix = int32(0)
if readBuffer(f.f, addr lenPrefix, sizeof(lenPrefix)) != sizeof(lenPrefix):
setError f, ioFailure
else:
s = initOrderedTable[K, T](lenPrefix)
for i in 0..<lenPrefix:
var x = default T
loadPrim(f, x)
s[x.id] = x
proc storeHeader*(f: var RodFile; cookie = defaultCookie) =
## stores the header which is described by `cookie`.
if f.err != ok: return
if f.f.writeBytes(cookie, 0, cookie.len) != cookie.len:
setError f, ioFailure
proc loadHeader*(f: var RodFile; cookie = defaultCookie) =
## Loads the header which is described by `cookie`.
if f.err != ok: return
var thisCookie: array[cookie.len, byte] = default(array[cookie.len, byte])
if f.f.readBytes(thisCookie, 0, thisCookie.len) != thisCookie.len:
setError f, ioFailure
elif thisCookie != cookie:
setError f, wrongHeader
proc storeSection*(f: var RodFile; s: RodSection) =
## update `currentSection` and writes the bytes value of s.
if f.err != ok: return
assert f.currentSection < s
f.currentSection = s
storePrim(f, s)
proc loadSection*(f: var RodFile; expected: RodSection) =
## read the bytes value of s, sets and error if the section is incorrect.
if f.err != ok: return
var s: RodSection = default(RodSection)
loadPrim(f, s)
if expected != s and f.err == ok:
setError f, wrongSection
proc create*(filename: string): RodFile =
## create the file and open it for writing
result = default(RodFile)
if not open(result.f, filename, fmWrite):
setError result, cannotOpen
proc close*(f: var RodFile) = close(f.f)
proc open*(filename: string): RodFile =
## open the file for reading
result = default(RodFile)
if not open(result.f, filename, fmRead):
setError result, cannotOpen

View File

@@ -1,292 +0,0 @@
#
#
# The Nim Compiler
# (c) Copyright 2026 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## Precompiled config for the incremental compiler (`nim ic`).
##
## `nim ic` builds the program by spawning one `nim m` child per module (or
## strongly-connected import group) plus a final `nim nifc`. Each child is a
## full Nim process, so each would normally re-read the whole `nim.cfg` chain
## *and* re-run `config.nims` through the VM — work that is identical for every
## child and, because of the VM run, far from free. With ~85 modules in the
## compiler itself that config work is paid ~85 times during `koch bootic`.
##
## The fix mirrors Nimony's `.cfg.nif`: the driver parses config once, records
## the net effect, and the children replay it. Every config-file switch funnels
## through `processSwitch(..., passPP, ...)` (`nimconf.parseAssignment` and the
## `switch()` callback in `scriptconfig`), so the recorded sequence of those
## switches, replayed in order, reproduces an identical `ConfigRef` without any
## file read or VM run. The one config side effect that does not go through
## `processSwitch` is `cppDefine` (it mutates `conf.cppDefines` directly), so the
## resolved set is serialised alongside.
##
## Path-search switches are deliberately excluded from the recording (see
## `commands.processSwitch`): their resolved result already lives in
## `conf.searchPaths`, which the driver forwards to every child as absolute
## `--path` arguments; replaying their raw, config-dir-relative arguments here
## would misresolve.
import options, commands, lineinfos, pathutils, msgs
import std/[algorithm, os, sets, osproc, times, streams, syncio]
import "../dist/nimony/src/lib" / [nifbuilder, nifcoreparse]
const
IcConfigVersion* = "2"
## Artifact format version. Bump on any layout change here so a child built
## by an older compiler rejects a stale artifact and falls back to normal
## config loading instead of replaying a format it cannot parse.
proc writeIcConfig*(conf: ConfigRef; outfile: string) =
## Serialise the resolved config (the config-file switches recorded during
## `loadConfigs`, the resolved `cppDefines`/`searchPaths`, the nimcache dir, and
## the list of config *source* files for staleness detection) into `outfile`.
## `OnlyIfChanged`: when the content is byte-identical to what is already on
## disk the file is left untouched so its mtime does not advance — otherwise
## every `nim ic` run would re-fire the whole nifmake graph (see `nifler`'s
## `produceConfig`, whose model this mirrors).
var b = nifbuilder.open(outfile, writeMode = OnlyIfChanged)
b.withTree "stmts":
b.withTree "meta":
b.addStrLit IcConfigVersion
b.withTree "sources":
# Every config file read while loading (nim.cfg chain + config.nims), so a
# later run can decide via mtimes whether this artifact is still current
# (see `sourcesChanged`).
for f in conf.configFiles:
b.addStrLit f.string
b.withTree "nimcache":
# Resolved build nimcache. Recorded (unlike the path-search switches) so the
# driver, which replays this artifact instead of parsing `nim.cfg`, still
# learns a `--nimcache:` set inside `nim.cfg` and builds in the right place.
b.addStrLit conf.nimcacheDir.string
b.withTree "cppdefines":
# HashSet iteration order is unspecified; sort so the artifact is
# byte-stable across runs (nifmake keys rebuilds off content changes).
var defs: seq[string] = @[]
for d in conf.cppDefines: defs.add d
sort defs
for d in defs: b.addStrLit d
b.withTree "searchpaths":
# The resolved (absolute) search paths. Path-search *switches* are skipped
# below because their raw arguments are config-dir-relative; the net effect
# lives here instead, so a replayer with no `--path` command-line arguments
# (the `nim ic` driver itself) still resolves imports. `nim m`/`nim nifc`
# children also receive these as forwarded `--path` args; the dedup on
# replay makes the overlap harmless.
for p in conf.searchPaths:
b.addStrLit p.string
b.withTree "switches":
for sw in conf.icConfigSwitches:
b.addTree "sw"
b.addStrLit sw.switch
b.addStrLit sw.arg
b.endTree()
b.close()
proc applyIcConfig*(conf: ConfigRef; infile: string): bool =
## Replay the precompiled config into `conf`. Returns false (and applies
## nothing meaningful) when the artifact is missing or written by a compiler
## with an incompatible format version, so the caller can fall back to reading
## the config files normally.
if not fileExists(infile): return false
var pool = newPool()
var tags = newTagPool()
let
stmtsTag = tags.registerTag("stmts")
metaTag = tags.registerTag("meta")
sourcesTag = tags.registerTag("sources")
nimcacheTag = tags.registerTag("nimcache")
cppTag = tags.registerTag("cppdefines")
pathsTag = tags.registerTag("searchpaths")
switchesTag = tags.registerTag("switches")
swTag = tags.registerTag("sw")
var buf = parseFromFile(infile, 1000, pool, tags)
var c = beginRead(buf)
if c.kind != TagLit or c.cursorTagId != stmtsTag:
endRead(c)
return false
var version = ""
var sawMeta = false
let info = unknownLineInfo
c.loopInto:
if c.kind == TagLit:
if c.cursorTagId == metaTag:
sawMeta = true
c.loopInto:
if c.kind == StrLit:
version = strVal(c)
inc c
else:
skip c
elif c.cursorTagId == nimcacheTag:
c.loopInto:
if c.kind == StrLit:
let nc = strVal(c)
# Only when nimcache was not already pinned on the command line: a
# `--nimcache:` argument the driver/child was launched with must win
# over whatever `nim.cfg` recorded into the artifact.
if nc.len > 0 and conf.nimcacheDir.isEmpty:
conf.nimcacheDir = AbsoluteDir(nc)
inc c
else:
skip c
elif c.cursorTagId == sourcesTag:
# Replay does not need the source list; it exists only for
# `sourcesChanged`. Skip the whole section.
skip c
elif c.cursorTagId == cppTag:
c.loopInto:
if c.kind == StrLit:
cppDefine(conf, strVal(c))
inc c
else:
skip c
elif c.cursorTagId == pathsTag:
c.loopInto:
if c.kind == StrLit:
# Append preserving the serialised order (which already reflects the
# driver's addPath insert-at-front sequence), deduping against any
# path a child already received via a forwarded `--path` argument.
let d = AbsoluteDir(strVal(c))
if not conf.searchPaths.contains(d): conf.searchPaths.add d
inc c
else:
skip c
elif c.cursorTagId == switchesTag:
c.loopInto:
if c.kind == TagLit and c.cursorTagId == swTag:
var sw = ""
var arg = ""
var idx = 0
c.loopInto:
if c.kind == StrLit:
if idx == 0: sw = strVal(c)
else: arg = strVal(c)
inc idx
inc c
else:
skip c
processSwitch(sw, arg, passPP, info, conf)
else:
skip c
else:
skip c
else:
skip c
endRead(c)
result = sawMeta and version == IcConfigVersion
proc sourcesChanged*(configFile: string): bool =
## True when the precompiled config at `configFile` is missing, malformed,
## written by an incompatible version, or any recorded config *source* file is
## newer than it (or has vanished) — i.e. the artifact must be regenerated.
## Mirrors nifler's `sourcesChanged`: the source list lives inside the artifact
## so this needs no out-of-band knowledge of which `nim.cfg`s were read.
if not fileExists(configFile): return true
let modtime = getLastModificationTime(configFile)
var pool = newPool()
var tags = newTagPool()
let
stmtsTag = tags.registerTag("stmts")
metaTag = tags.registerTag("meta")
sourcesTag = tags.registerTag("sources")
var buf = parseFromFile(configFile, 1000, pool, tags)
var c = beginRead(buf)
if c.kind != TagLit or c.cursorTagId != stmtsTag:
endRead(c)
return true
var version = ""
var depsChanged = false
c.loopInto:
if c.kind == TagLit and c.cursorTagId == metaTag:
c.loopInto:
if c.kind == StrLit:
version = strVal(c)
inc c
else:
skip c
elif c.kind == TagLit and c.cursorTagId == sourcesTag:
c.loopInto:
if c.kind == StrLit:
let dep = strVal(c)
if not fileExists(dep) or getLastModificationTime(dep) >= modtime:
depsChanged = true
inc c
else:
skip c
else:
skip c
endRead(c)
result = depsChanged or version != IcConfigVersion
proc produceIcConfig*(conf: ConfigRef) =
## The `cmdIcConfig` command. By the time it runs, the normal pipeline has
## already fully parsed the `nim.cfg` chain and run `config.nims`, so the
## resolved config is sitting in `conf`; just serialise it to `--o`.
let outPath = conf.icConfigOut
if outPath.len == 0:
rawMessage(conf, errGenerated, "icconfig: missing output path (--icConfigOut)")
return
createDir(parentDir(outPath))
writeIcConfig(conf, outPath)
proc ensureIcConfig*(conf: ConfigRef) =
## Driver-side (`cmdIc`). Make sure an up-to-date precompiled config exists,
## (re)producing it in a *separate* process when missing or stale, then point
## `conf.icPreparsedConfig` at it so the driver replays the very same config its
## `nim m`/`nim nifc` children will — perfect speed (config parsed at most once,
## skipped entirely when nothing changed) and consistency (one producer, every
## process replays its output). The artifact lives in the nimcache derived from
## the command line (pre-config-parse), which is the one the children are told;
## a `--nimcache:` set inside `nim.cfg` is recovered from the artifact itself.
let cacheDir = getNimcacheDir(conf).string
# Start from a clean cache when the on-disk NIF format stamp is absent or stale
# (see `icFormatVersion`). This must happen HERE, before the config artifact is
# produced — `commandIc` performs the same check later, but by then the artifact
# would already live in the cache and the wipe would delete it.
createDir(cacheDir)
let versionFile = cacheDir / "ic.version"
let stamp = if fileExists(versionFile): readFile(versionFile) else: ""
if stamp != icFormatVersion:
removeDir(cacheDir)
createDir(cacheDir)
writeFile(versionFile, icFormatVersion)
let outPath = cacheDir / "ic_config.cfg.nif"
if not fileExists(outPath) or sourcesChanged(outPath):
createDir(cacheDir)
# Re-invoke ourselves as the config producer: reuse this process's command
# line, dropping the command argument (`ic`/`track`) in favour of `icconfig`
# and the explicit output path. Every switch must land BEFORE the project
# file, because anything after the project is swallowed into
# `config.arguments` by `cmdLineRest` (and a non-empty `arguments` without
# `--run` is a hard error). Callers may legitimately put switches after the
# project — `nim track PROJ --def:...` — so we re-order rather than replay
# verbatim: all `-`-prefixed switches first (in encounter order), then the
# non-switch project token(s). The producer re-reads `nim.cfg` itself.
var pargs = @["icconfig", "--icConfigOut:" & outPath]
var rest: seq[string] = @[]
var droppedCmd = false
for a in commandLineParams():
if a.len == 0: continue
if a[0] == '-':
pargs.add a
elif not droppedCmd:
droppedCmd = true # drop the original command token (`ic`/`track`)
else:
rest.add a # project file (and any further non-switch tokens) go last
for a in rest: pargs.add a
let p = startProcess(getAppFilename(), args = pargs,
options = {poStdErrToStdOut})
let outp = p.outputStream.readAll()
let code = p.waitForExit()
p.close()
if code != 0 or not fileExists(outPath):
rawMessage(conf, errGenerated,
"failed to produce precompiled config (exit code " & $code & "):\n" & outp)
return
conf.icPreparsedConfig = outPath

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@@ -1,55 +0,0 @@
#
#
# The Nim Compiler
# (c) Copyright 2026 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## Nim's OWN module-suffix, replacing nimony's `gear2/modnames.moduleSuffix`.
##
## nimony's version hashes a path made RELATIVE to `getCurrentDir()` (or the
## shortest search-path-relative form), so the produced suffix depends on the
## current working directory AND the searchPath set. Under `nim ic` the
## DISCOVERY pass (`deps.nim`, in the driver process) and the COMPILE pass
## (`nifgen`/`typekeys`, in a child `nim m` process) can run with different CWDs
## or `--path` sets, so the SAME file hashes to two different suffixes: e.g.
## `std/staticos` became `sta5rk8sn1` at discovery but `sta4c0qxk` at compile, so
## every importer waited forever for a `.s.bif` that was actually written under
## the other name — a cold `nim ic` build (of anything pulling in `std/os`, whose
## `oscommon` does `from std/staticos import PathComponent`) never converged.
##
## Hashing the CANONICAL ABSOLUTE path makes the suffix a pure function of the
## file, identical across every process and call site. The base-name prefix +
## base-36 `uhash` layout is kept byte-for-byte compatible with the old scheme so
## nothing but the hashed string changes.
import std/os
import "../dist/nimony/src/lib" / tinyhashes
const
PrefixLen = 3 # keep it short: the suffix ends up in every mangled C name
Base36 = "0123456789abcdefghijklmnopqrstuvwxyz"
proc moduleSuffix*(path: string; searchPaths: openArray[string]): string =
## `searchPaths` is accepted for signature-compatibility with the replaced
## `modnames.moduleSuffix` but is deliberately IGNORED — the suffix must not
## depend on the search-path set or the CWD (see the module doc).
# Absolute inputs (the norm at every call site: `toFullPath`/`projectFull`)
# pass straight through `normalizedPath` with no `getCurrentDir` involvement;
# a stray relative path is made absolute against the CWD only as a fallback.
var f = path
if not isAbsolute(f):
try: f = absolutePath(f)
except CatchableError: discard
f = normalizedPath(f)
let m = splitFile(f).name
var id = uhash(f)
result = newStringOfCap(10)
for i in 0 ..< min(m.len, PrefixLen):
result.add m[i]
# base-36 of the hash, low digit first (order is irrelevant for identity).
while id > 0'u32:
result.add Base36[int(id mod 36'u32)]
id = id div 36'u32

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@@ -1,252 +0,0 @@
#
#
# The Nim Compiler
# (c) Copyright 2026 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## nifcore-based IC serialization helpers — Stage 1 of porting the IC backend
## from the old `nifstreams`/`nifcursors` NIF stack to `nifcore` (see
## `doc/ic_nifcore_port.md`).
##
## It hosts:
## * the process-wide shared `Pool`/`TagPool` that stands in for the old global
## `nifstreams.pool`,
## * `writeFileStable`, the content-stable file writer mirroring
## `nifcursors.writeFile(..., OnlyIfChanged)`,
## * the first ported writer (`writeSemDeps`), used as the migration spike.
##
## No `nifstreams`/`nifcursors` types cross this module's boundary: callers pass
## plain Nim values (config, ids, string lists), so it can coexist with the
## still-old-API `ast2nif.nim` during the migration.
import std / [syncio, algorithm]
from std / os import removeFile, moveFile
import options, pathutils, typekeys
import "../dist/nimony/src/lib" / [nifcore, nifcoreparse, nifreader, bif]
# One shared literals pool + tag pool for the whole process — the nifcore
# analogue of the old global `nifstreams.pool`. A single shared pool keeps
# string/symbol/file ids stable across every TokenBuf the IC backend builds,
# preserving the old global-pool semantics during the migration. (Stage 6 may
# move to fresh per-file pools for bif's fast path; see doc/ic_nifcore_port.md.)
let icPool* = newPool()
let icTags* = newTagPool()
proc createIcBuf*(cap = 16): TokenBuf {.inline.} =
## A `TokenBuf` bound to the shared IC pools.
createTokenBuf(cap, icPool, icTags)
proc tagId*(s: string): TagId {.inline.} =
## Intern a tag name in the shared tag pool.
icTags.registerTag(s)
type
IcBuilder* = object
## A thin nifcore `TokenBuf` builder whose surface is *primitive types only*
## (strings/ints/floats). It lets the still-old-API `ast2nif.nim` drive a
## nifcore buffer without any nifcore type crossing the module boundary —
## the bridge that routes IC output onto the nifcore serializer (Stage 2).
buf*: TokenBuf
proc newIcBuilder*(cap = 16): IcBuilder = IcBuilder(buf: createIcBuf(cap))
proc openTag*(b: var IcBuilder; tag: string) {.inline.} = b.buf.openTag(tagId(tag))
proc closeTag*(b: var IcBuilder) {.inline.} = b.buf.closeTag()
proc addSymUse*(b: var IcBuilder; s: string) {.inline.} = b.buf.addSymUse(s)
proc addSymDef*(b: var IcBuilder; s: string) {.inline.} = b.buf.addSymDef(s)
proc addIdent*(b: var IcBuilder; s: string) {.inline.} = b.buf.addIdent(s)
proc addStrLit*(b: var IcBuilder; s: string) {.inline.} = b.buf.addStrLit(s)
proc addIntLit*(b: var IcBuilder; v: int64) {.inline.} = b.buf.addIntLit(v)
proc addUIntLit*(b: var IcBuilder; v: uint64) {.inline.} = b.buf.addUIntLit(v)
proc addFloatLit*(b: var IcBuilder; v: float64) {.inline.} = b.buf.addFloatLit(v)
proc addCharLit*(b: var IcBuilder; c: char) {.inline.} = b.buf.addCharLit(c)
proc addDotToken*(b: var IcBuilder) {.inline.} = b.buf.addDotToken()
proc lineInfo*(b: var IcBuilder; file: string; line, col: int32; comment = "") =
## Attach line info (+ optional `#comment#`) to the head just emitted. No-op
## when `file` is empty (matches the old "emit only when info is valid").
## Strings are interned in the shared pools; the file/comment ids reproduce
## the old `pool.files`/`pool.strings` entries by string value.
if file.len == 0: return
let fid = icPool.filenames.getOrIncl(file)
let cid = if comment.len > 0: icPool.strings.getOrIncl(comment) else: StrId(0)
b.buf.appendLineInfo(fid, line, col, cid)
proc writeFileStable*(b: var TokenBuf; path: string; onlyIfChanged = false) =
## Serialize `b` to canonical module NIF text and write it. Mirrors
## `nifcursors.writeFile`: the module suffix is derived from `path`
## (`"." & extractModuleSuffix`), and `onlyIfChanged` skips the write when the
## on-disk bytes already match — the content-stability nifmake's incremental
## rebuild depends on.
let content = toModuleString(b, "." & extractModuleSuffix(path))
if onlyIfChanged:
let existing =
try: readFile(path)
except CatchableError: ""
if existing == content: return
writeFile(path, content)
proc writeStable*(b: var IcBuilder; path: string; onlyIfChanged = false) {.inline.} =
writeFileStable(b.buf, path, onlyIfChanged)
proc cursorPool*(c: Cursor): Pool {.inline.} = nifcore.pool(c)
## The literals pool the cursor's buffer was built against. `ast2nif.nim`
## imports `nifcore` with `except pool` (to keep nifstreams' global `pool`
## var the writer uses), so the reader reaches a cursor's pool through here —
## needed once `bif`-loaded buffers carry their OWN fresh pool rather than the
## shared `icPool`.
proc freshModuleCopy(b: var IcBuilder): TokenBuf =
## Re-home `b.buf` into a PRIVATE, module-local pool via `addSubtree` (which
## re-interns only the literals/tags this buffer actually uses). `b.buf` is bound
## to the process-wide shared `icPool`/`icTags`; storing it directly would embed
## the WHOLE shared pool (correct but huge — see `bif.storeToFile`). The copy's
## fresh-pool reload reproduces ids verbatim (the bif fresh-pool INVARIANT).
result = createTokenBuf(b.buf.len, newPool(), newTagPool())
var c = b.buf.beginRead()
while c.hasMore:
addSubtree(result, c)
skip c
proc storeBif*(b: var IcBuilder; path: string; dottedSuffix: string) =
## Persist the buffer as a compact, self-contained binary NIF (`.bif`).
var fresh = freshModuleCopy(b)
bif.store(fresh, path, dottedSuffix)
proc storeBifStable*(b: var IcBuilder; path: string; dottedSuffix: string) =
## Content-stable `bif` write — the binary analogue of `writeFileStable`'s
## `onlyIfChanged`: only replace `path` when the encoded bytes differ, so an
## unchanged sidecar keeps its mtime and nifmake prunes the dependent rebuild
## cascade. Used for the iface/impl cookies + dep sidecars whose byte-stability
## gates incremental builds. (bif encoding is deterministic for a given buffer
## under fresh pools, so equal content ⇒ equal bytes.)
var fresh = freshModuleCopy(b)
let tmp = path & ".tmp"
bif.store(fresh, tmp, dottedSuffix)
let newBytes = readFile(tmp)
let oldBytes =
try: readFile(path)
except CatchableError: ""
if newBytes == oldBytes:
removeFile(tmp)
else:
moveFile(tmp, path)
# --- subtree splicing (shared pool, so a raw subtree copy is exact) ----------
proc addAll*(dest: var IcBuilder; src: var IcBuilder) =
## Append every top-level subtree of `src` into `dest` — the nifcore analogue
## of the old `dest.add wholeBuffer` splice.
var c = src.buf.beginRead()
while c.hasMore:
addSubtree(dest.buf, c)
skip c
proc addStmtsBody*(dest: var IcBuilder; src: var IcBuilder) =
## Append the BODY of a `(stmts . . <body> )` builder into `dest`, dropping the
## wrapper tag and its two leading dot slots (flags/type) — the nifcore
## analogue of the old `for i in 3 ..< content.len-1: dest.add content[i]`.
var c = src.buf.beginRead() # at (stmts
c.into:
skip c # flags dot
skip c # type dot
while c.hasMore:
addSubtree(dest.buf, c)
skip c
# --- cookie input: a line-info-free logical token list of the module ---------
# The cookie hashers (ast2nif) need a flat, ParRi-bearing, index-addressable
# view of the serialized module. nifcore has no ParRi kind and variable-width
# tokens, so we flatten the buffer here (in the clean nifcore world) into a
# neutral `CookieTok` list — no nifcore type crosses into ast2nif.
type
CookieKind* = enum
ckParLe, ckParRi, ckSym, ckSymDef, ckIdent, ckStr, ckInt, ckUInt, ckFloat, ckChar, ckDot
CookieTok* = object
kind*: CookieKind
tag*: string # ckParLe
name*: string # ckSym / ckSymDef
sym*: uint32 # ckSym / ckSymDef id (identity key)
str*: string # ckIdent / ckStr
ival*: int64
uval*: uint64
fval*: float64
cval*: uint32
proc flattenGo(c: var Cursor; b: TokenBuf; acc: var seq[CookieTok]) =
while c.hasMore:
case c.kind
of TagLit:
acc.add CookieTok(kind: ckParLe, tag: b.tags.tagName(c.cursorTagId))
c.into:
flattenGo(c, b, acc)
acc.add CookieTok(kind: ckParRi)
of Symbol:
acc.add CookieTok(kind: ckSym, name: symName(c, b.pool), sym: uint32(symId(c, b.pool)))
skip c
of SymbolDef:
acc.add CookieTok(kind: ckSymDef, name: symName(c, b.pool), sym: uint32(symId(c, b.pool)))
skip c
of Ident:
acc.add CookieTok(kind: ckIdent, str: strVal(c, b.pool)); skip c
of StrLit:
acc.add CookieTok(kind: ckStr, str: strVal(c, b.pool)); skip c
of IntLit:
acc.add CookieTok(kind: ckInt, ival: intVal(c)); skip c
of UIntLit:
acc.add CookieTok(kind: ckUInt, uval: uintVal(c)); skip c
of FloatLit:
acc.add CookieTok(kind: ckFloat, fval: floatVal(c)); skip c
of CharLit:
acc.add CookieTok(kind: ckChar, cval: uint32(ord(charLit(c)))); skip c
of DotToken:
acc.add CookieTok(kind: ckDot); skip c
else:
skip c # LineInfoLit / ExtendedSuffix ride on heads, never standalone
proc flattenForCookie*(b: var IcBuilder): seq[CookieTok] =
## Flatten the nifcore module buffer to the cookie hashers' flat token list.
result = newSeqOfCap[CookieTok](b.buf.len)
var cur = b.buf.beginRead()
flattenGo(cur, b.buf, result)
proc collectBifStrLits*(path: string): seq[string] =
## Read a small `(tag "s" "s" …)` bif sidecar (`semdeps`/`edges`) and return every
## string literal it holds, in order — the binary analogue of the old nifstreams
## scan that collected `StrLit`s. Keeps nifcore types out of `deps.nim`, which
## only needs the recorded string list.
##
## Uses `loadFromFile` (a full read into owned memory) rather than the mmap-backed
## `bif.load`, then CLOSES the handle. `bif.load` intentionally leaves the mapping
## resident for the process lifetime; for the `nim ic` driver that reads these
## sidecars while `nim m` children rewrite them, a lingering read mapping is a
## Windows sharing violation: the child's `open(path, fmWrite)` fails with
## `IOError: cannot open`. These sidecars are tiny, so the zero-copy mmap buys
## nothing here anyway.
result = @[]
var f = open(path, fmRead)
var m = bif.loadFromFile(f)
close(f)
var c = m.buf.beginRead()
while c.hasMore:
if c.kind == StrLit: result.add strVal(c)
inc c
proc writeSemDeps*(config: ConfigRef; thisModule: int32; importPaths: seq[string]) =
## Stage 1 spike: the nifcore port of `ast2nif.writeSemDeps`. Serializes the
## module's resolved direct imports as `(semdeps "path" ...)`. Byte-identical
## to the old writer (verified), so `nim ic` build graphs are unaffected.
let selfSuffix = modname(thisModule, config)
var paths = importPaths
sort paths
var dest = newIcBuilder(4 + 2*paths.len)
dest.openTag "semdeps"
for p in paths:
dest.addStrLit p
dest.closeTag()
let path = toGeneratedFile(config, AbsoluteFile(selfSuffix), ".s.deps.bif").string
storeBifStable(dest, path, "." & extractModuleSuffix(path))

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@@ -1,279 +0,0 @@
#
#
# The Nim Compiler
# (c) Copyright 2026 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## NIF-based goto-definition / find-all-usages for `nim track`.
##
## This is the mainline-Nim port of nimony's `idetools.nim`. It answers a
## `--def:FILE,LINE,COL` / `--usages:FILE,LINE,COL` query by *scanning the
## `.s.bif` files* (binary NIF, see `dist/nimony/src/lib/bif.nim`) that the
## preceding `nim ic` frontend (`nim track`) emitted into the nimcache directory
## — NOT by re-running sem. NIF distinguishes a definition (`SymbolDef` token) from a use
## (`Symbol` token) syntactically, so goto-def / find-uses become plain token
## scans over type-checked NIF, which is more reliable than the classic PSym
## engine because generics and macros are type-checked in the NIF too.
##
## Two passes (mirroring nimony's `usages`):
## 1. Load the queried module's `.s.bif` and find the `Symbol`/`SymbolDef`
## token whose line info + identifier length contains `conf.m.trackPos`.
## That yields the mangled symbol NAME and whether it is global (>= 2 dots).
## 2. `--usages`: emit every `Symbol` (use) token; `--def`: every `SymbolDef`.
## A global symbol is scanned across every module `.s.bif`; a local one only
## within the queried module.
##
## IMPORTANT porting note: `bif.load` mints FRESH per-file pools, so a `SymId`
## from module A's buffer is meaningless in module B's. The cross-module match is
## therefore by the mangled NAME string, never by `SymId` (nimony can compare ids
## because it parses every text NIF into one shared global pool; we cannot).
import std / [os, strutils, sets]
import options, msgs, pathutils
import lineinfos as astli
import ast2nif # toNifFilename
from deps import includerSbifs # deps-guided include-file lookup
import "../dist/nimony/src/lib/nifcore"
from "../dist/nimony/src/lib" / bif import load, BifModule, containsSym
proc identLen(name: string): int =
## Length of the displayed identifier: the run before the first `.` of a
## mangled NIF name (`ident.disamb[.moduleSuffix]`). Bounds the column match.
let d = name.find('.')
result = if d < 0: name.len else: d
proc isGlobalName(name: string): bool =
## A global symbol carries `ident.disamb.moduleSuffix` (>= 2 dots); a local at
## most `ident.disamb` (<= 1 dot). `moduleSuffix` is a dot-free hash, so a raw
## dot count is equivalent to nifbuilder's suffix-compressed test for our use.
var dots = 0
for i in 1 ..< name.len:
if name[i] == '.': inc dots
result = dots >= 2
proc posMatch(c: Cursor; conf: ConfigRef; target: TLineInfo; tokenLen: int): bool =
## True when `target` (the queried position) falls within the identifier span
## of the Symbol/SymbolDef token at `c`. Mirrors nimony's `lineInfoMatch`; the
## filename is resolved through the loaded buffer's own pool (fresh per file),
## then mapped to a `FileIndex` exactly like `ast2nif.oldLineInfo`.
let li = rawLineInfo(c)
if not li.isValid: return false
if li.line.int != target.line.int: return false
let f = fileInfoIdx(conf, AbsoluteFile lineInfoFile(c))
if f != target.fileIndex: return false
if target.col.int < li.col.int: return false
if target.col.int > li.col.int + tokenLen: return false
result = true
const sep = '\t'
proc formatSuggest(s: Suggest): string =
## Reproduce `suggest.$Suggest` for the `ideDef`/`ideUse` sections without
## importing `suggest` (which would create an import cycle). Layout:
## `section⭾symkind⭾qualifiedPath⭾forth⭾filePath⭾line⭾column⭾⭾quality`.
## symkind is always `skUnknown` here — the raw NIF scan has no PSym to give a
## real kind (like nimony's `foundSymbol`, which leaves it empty).
result = $s.section
result.add sep
result.add "skUnknown"
result.add sep
if s.qualifiedPath.len != 0:
result.add s.qualifiedPath.join(".")
result.add sep
result.add s.forth
result.add sep
result.add s.filePath
result.add sep
result.add $s.line
result.add sep
result.add $s.column
result.add sep # empty doc field (docgen is off outside nimsuggest)
if s.version == 0 or s.version == 3:
result.add sep
result.add $s.quality
proc emit(conf: ConfigRef; c: Cursor; section: IdeCmd; name: string;
seen: var HashSet[string]) =
## Report one hit as a nimsuggest-compatible result (routed through the
## structured-output hook / `--stdout`). We only have the mangled name + line
## info from the raw NIF, so symkind/type are left empty — like nimony's
## `foundSymbol`. `seen` deduplicates: the same source location can back
## several NIF `Symbol` tokens (e.g. a call argument re-emitted in a lowered
## form), which must surface as one hit.
let li = rawLineInfo(c)
if not li.isValid: return
let key = $section.int & ":" & lineInfoFile(c) & ":" & $li.line.int & ":" & $li.col.int
if seen.containsOrIncl(key):
return # already reported this location for this section
let s = Suggest(section: section,
qualifiedPath: @[name[0 ..< identLen(name)]],
filePath: lineInfoFile(c),
line: li.line.int,
column: li.col.int,
tokenLen: identLen(name),
forth: "",
symkind: 0'u8,
quality: 100,
version: conf.suggestVersion)
if conf.suggestionResultHook != nil:
conf.suggestionResultHook(s)
else:
conf.suggestWriteln(formatSuggest(s))
proc tokenSymId(c: Cursor): SymId {.inline.} =
## SymId (in the cursor's own per-file pool) of a `Symbol`/`SymbolDef` token,
## or `SymId(0)` for an inline-encoded one — which is never our search target:
## a mangled name (`ident.disamb.suffix`) is always longer than
## `StrInlineMaxLen`, so every occurrence of the symbol we look for is stored by
## pool id, decoded here with a shift and no string materialization.
if isInlineLit(c): SymId(0) else: SymId(combinedPayload(c) shr 1)
template symMatches(c: Cursor): bool =
## True when the token at `c` is the searched symbol. The fast path is a pure
## integer compare against `targetSym` (the symbol's id in THIS module's pool,
## resolved once per file by the caller). `targetSym == 0` means the name is not
## representable as a pool id (a rare <=3-byte local): fall back to a string
## compare, correct for both inline and pooled encodings.
(if targetSym != SymId(0): tokenSymId(c) == targetSym else: symName(c) == targetName)
proc scanUses(conf: ConfigRef; m: var BifModule; targetSym: SymId; targetName: string;
seen: var HashSet[string]) =
## `--usages`: report every `Symbol` (use) occurrence with valid line info.
if m.buf.len == 0: return
var c = m.buf.beginRead()
while c.hasMore:
if c.kind == Symbol and symMatches(c) and rawLineInfo(c).isValid:
emit(conf, c, ideUse, targetName, seen)
inc c
c.endRead()
proc scanDef(conf: ConfigRef; m: var BifModule; targetSym: SymId; targetName: string;
seen: var HashSet[string]) =
## `--def`: report the declaration of the target symbol if this module owns it
## (has its `SymbolDef`). The `SymbolDef` token itself carries no line info; the
## declaration location lives on the *enclosing tag* (e.g. `(sd @file:line:col`,
## like `bif.buildIndex`'s `mostRecentTagPos`). When that tag has no line info
## either, fall back to the declaration-site `Symbol` occurrence — but only in
## the owning module, so a plain user of the symbol is never reported as a def.
if m.buf.len == 0: return
var c = m.buf.beginRead()
var mostRecentTagPos = 0
var sawDef = false
var emitted = false
var fallbackPos = -1
while c.hasMore:
case c.kind
of TagLit:
mostRecentTagPos = cursorToPosition(m.buf, c)
inc c
of SymbolDef:
if symMatches(c):
sawDef = true
var tc = cursorAt(m.buf, mostRecentTagPos)
if rawLineInfo(tc).isValid:
emit(conf, tc, ideDef, targetName, seen)
emitted = true
tc.endRead()
inc c
of Symbol:
if fallbackPos < 0 and symMatches(c) and rawLineInfo(c).isValid:
fallbackPos = cursorToPosition(m.buf, c)
inc c
else:
inc c
c.endRead()
if sawDef and not emitted and fallbackPos >= 0:
var fc = cursorAt(m.buf, fallbackPos)
emit(conf, fc, ideDef, targetName, seen)
fc.endRead()
proc scanBuf(conf: ConfigRef; m: var BifModule; section: IdeCmd;
targetSym: SymId; targetName: string; seen: var HashSet[string]) =
## Emit hits for the target symbol in `m` per the query kind. `ideDus`
## (`--defusages`) reports both the definition and every usage.
if section in {ideDef, ideDus}:
scanDef(conf, m, targetSym, targetName, seen)
if section in {ideUse, ideDus}:
scanUses(conf, m, targetSym, targetName, seen)
proc findPos(conf: ConfigRef; m: var BifModule; target: TLineInfo;
foundName: var string): bool =
## Scan `m` for the `Symbol`/`SymbolDef` token covering the queried position
## `target` and set `foundName` to its mangled name. Returns true on a hit.
if m.buf.len == 0: return false
var c = m.buf.beginRead()
result = false
while c.hasMore:
let k = c.kind
if k == Symbol or k == SymbolDef:
let nm = symName(c)
if posMatch(c, conf, target, identLen(nm)):
foundName = nm
result = true
break
inc c
c.endRead()
proc runIdeQuery*(conf: ConfigRef) =
## Entry point: called from `main.nim` after `commandCheck` when a
## `--def`/`--usages` query is active. Assumes the check just emitted the
## project's `.s.bif` files into `getNimcacheDir(conf)`.
let section = conf.ideCmd
if section notin {ideDef, ideUse, ideDus}: return
let target = conf.m.trackPos
if target.fileIndex.int32 < 0: return
# Pass 1: position -> symbol. Try the queried file's own module bif first (the
# fast path when the position is inside a real module). An include file has no
# module bif of its own — its tokens live in the *including* module's bif with
# include-file line info — so when the direct lookup misses, consult the
# `.deps.nif` preludes (`includerSbifs`) to load only the module(s) that
# include the queried file (directly or transitively), never every bif in the
# nimcache. `ownerFile` is the bif that owns the hit.
let modFile = toNifFilename(conf, target.fileIndex)
var foundName = ""
var ownerFile = ""
if fileExists(modFile):
var qm = load(modFile)
if findPos(conf, qm, target, foundName):
ownerFile = modFile
if foundName.len == 0:
for cand in includerSbifs(conf, toFullPath(conf, target.fileIndex).AbsoluteFile):
if cand == modFile: continue
var m = load(cand)
if findPos(conf, m, target, foundName):
ownerFile = cand
break
if foundName.len == 0: return
# Pass 2: emit definition / usages. `seen` spans every module so a location is
# reported once even when scanned across the whole nimcache.
#
# Cross-file matching is by SymId, not by decoding every token's name. Two
# filters keep it cheap:
# 1. `bif.containsSym` — a sym-table-only probe that reads just the small
# trailing pools, NOT the token block or any `BiTable`. A module that never
# references the symbol is rejected here without a full `load` (no pools
# built, no token block mapped) — so a query whose symbol lives in a few
# modules no longer pays to load the whole nimcache.
# 2. For a module that does contain it, `bif.load` mints a fresh per-file pool,
# so the name is resolved to THIS file's SymId once via `getKeyId`; the scan
# then compares integer ids per token instead of materializing a string for
# each (see `symMatches`).
var seen = initHashSet[string]()
if isGlobalName(foundName):
for f in walkFiles((getNimcacheDir(conf).string) / "*.s.bif"):
if not containsSym(f, foundName): continue
var m = load(f)
let tid = m.buf.pool.syms.getKeyId(foundName)
if tid != SymId(0):
scanBuf(conf, m, section, tid, foundName, seen)
else:
# Local symbol: its mangled name is not unique across modules, so restrict
# the scan to the module it lives in (the one that owns the queried position).
var qm = load(ownerFile)
let tid = qm.buf.pool.syms.getKeyId(foundName)
scanBuf(conf, qm, section, tid, foundName, seen)

View File

@@ -10,10 +10,10 @@
## This module implements the symbol importing mechanism.
import
ast, msgs, options, idents, lookups,
ast, astalgo, msgs, options, idents, lookups,
semdata, modulepaths, sigmatch, lineinfos,
modulegraphs, wordrecg
from std/strutils import `%`, startsWith, replace
from std/strutils import `%`, startsWith
from std/sequtils import addUnique
import std/[sets, tables, intsets]
@@ -108,8 +108,8 @@ proc rawImportSymbol(c: PContext, s, origin: PSym; importSet: var IntSet) =
else:
importPureEnumField(c, e)
else:
if s.kind == skConverter: addConverter(c, s)
if hasPattern(s): addPattern(c, s)
if s.kind == skConverter: addConverter(c, LazySym(sym: s))
if hasPattern(s): addPattern(c, LazySym(sym: s))
if s.owner != origin:
c.exportIndirections.incl((origin.id, s.id))
@@ -190,19 +190,22 @@ proc addImport(c: PContext; im: sink ImportedModule) =
template addUnnamedIt(c: PContext, fromMod: PSym; filter: untyped) {.dirty.} =
for it in mitems c.graph.ifaces[fromMod.position].converters:
if filter:
if sfExported in it.flags:
loadPackedSym(c.graph, it)
if sfExported in it.sym.flags:
addConverter(c, it)
for it in mitems c.graph.ifaces[fromMod.position].patterns:
if filter:
if sfExported in it.flags:
loadPackedSym(c.graph, it)
if sfExported in it.sym.flags:
addPattern(c, it)
for it in mitems c.graph.ifaces[fromMod.position].pureEnums:
if filter:
importPureEnumFields(c, it, it.typ)
loadPackedSym(c.graph, it)
importPureEnumFields(c, it.sym, it.sym.typ)
proc importAllSymbolsExcept(c: PContext, fromMod: PSym, exceptSet: IntSet) =
c.addImport ImportedModule(m: fromMod, mode: importExcept, exceptSet: exceptSet)
addUnnamedIt(c, fromMod, it.name.id notin exceptSet)
addUnnamedIt(c, fromMod, it.sym.name.id notin exceptSet)
proc importAllSymbols*(c: PContext, fromMod: PSym) =
c.addImport ImportedModule(m: fromMod, mode: importAll)
@@ -242,8 +245,7 @@ proc importModuleAs(c: PContext; n: PNode, realModule: PSym, importHidden, track
# avoids modifying `realModule`, see D20201209T194412 for `import {.all.}`
result = createModuleAliasImpl(realModule.name)
if importHidden:
ensureMutable result
result.optionsImpl.incl optImportHidden
result.options.incl optImportHidden
let moduleIdent = if n.kind in {nkInfix, nkImportAs}: n[^1] else: n
result.info = moduleIdent.info
if trackUnusedImport:
@@ -289,8 +291,9 @@ proc myImportModule(c: PContext, n: var PNode, importStmtResult: PNode): PSym =
c.recursiveDep = err
let trackUnusedImport = warnUnusedImportX in c.config.notes
var realModule: PSym
discard pushOptionEntry(c)
let realModule = c.graph.importModuleCallback(c.graph, c.module, f)
realModule = c.graph.importModuleCallback(c.graph, c.module, f)
result = importModuleAs(c, n, realModule, transf.importHidden, trackUnusedImport)
popOptionEntry(c)
@@ -304,9 +307,9 @@ proc myImportModule(c: PContext, n: var PNode, importStmtResult: PNode): PSym =
var prefix = ""
if realModule.constraint != nil: prefix = realModule.constraint.strVal & "; "
message(c.config, n.info, warnDeprecated, prefix & realModule.name.s & " is deprecated")
let moduleNameNorm = getModuleName(c.config, n).replace("\\", "/")
if belongsToStdlib(c.graph, result) and not startsWith(moduleNameNorm, stdPrefix) and
not startsWith(moduleNameNorm, "system/") and not startsWith(moduleNameNorm, "packages/"):
let moduleName = getModuleName(c.config, n)
if belongsToStdlib(c.graph, result) and not startsWith(moduleName, stdPrefix) and
not startsWith(moduleName, "system/") and not startsWith(moduleName, "packages/"):
message(c.config, n.info, warnStdPrefix, realModule.name.s)
proc suggestMod(n: PNode; s: PSym) =

View File

@@ -24,7 +24,7 @@ import std/[strtabs, tables, strutils, intsets]
when defined(nimPreviewSlimSystem):
import std/assertions
from trees import exprStructuralEquivalent, getRoot, isCursor, whichPragma, getPotentialWrites
from trees import exprStructuralEquivalent, getRoot, whichPragma
type
Con = object
@@ -69,14 +69,12 @@ proc hasDestructor(c: Con; t: PType): bool {.inline.} =
result = ast.hasDestructor(t)
when toDebug.len > 0:
# for more effective debugging
if not result and c.graph.config.selectedGC in {gcArc, gcOrc, gcYrc, gcAtomicArc}:
if not result and c.graph.config.selectedGC in {gcArc, gcOrc, gcAtomicArc}:
assert(not containsGarbageCollectedRef(t))
proc getTemp(c: var Con; s: var Scope; typ: PType; info: TLineInfo; needsInit: bool): PNode =
proc getTemp(c: var Con; s: var Scope; typ: PType; info: TLineInfo): PNode =
let sym = newSym(skTemp, getIdent(c.graph.cache, ":tmpD"), c.idgen, c.owner, info)
sym.typ = typ
if not needsInit:
sym.incl sfNoInit
s.vars.add(sym)
result = newSymNode(sym)
@@ -102,7 +100,6 @@ when false:
proc isLastReadImpl(n: PNode; c: var Con; scope: var Scope): bool =
let root = parampatterns.exprRoot(n, allowCalls=false)
if root == nil: return false
elif sfSingleUsedTemp in root.flags: return true
var s = addr(scope)
while s != nil:
@@ -165,25 +162,33 @@ proc isLastReadImpl(n: PNode; c: var Con; scope: var Scope): bool =
else:
result = false
template hasDestructorOrAsgn(c: var Con, typ: PType): bool =
# bug #23354; an object type could have a non-trivial assignements when it is passed to a sink parameter
hasDestructor(c, typ) or (c.graph.config.selectedGC in {gcArc, gcOrc, gcYrc, gcAtomicArc} and
typ.kind == tyObject and not isTrivial(getAttachedOp(c.graph, typ, attachedAsgn)))
proc isLastRead(n: PNode; c: var Con; s: var Scope): bool =
if not hasDestructorOrAsgn(c, n.typ): return true
# bug #23354; an object type could have a non-trival assignements when it is passed to a sink parameter
if not hasDestructor(c, n.typ) and (n.typ.kind != tyObject or isTrival(getAttachedOp(c.graph, n.typ, attachedAsgn))): return true
result = isLastReadImpl(n, c, s)
let m = skipConvDfa(n)
result = (m.kind == nkSym and sfSingleUsedTemp in m.sym.flags) or
isLastReadImpl(n, c, s)
proc isFirstWrite(n: PNode; c: var Con): bool =
let m = skipConvDfa(n)
result = nfFirstWrite in m.flags
template isFullyUnpackedTuple(n: PNode): bool =
proc isCursor(n: PNode): bool =
case n.kind
of nkSym:
sfCursor in n.sym.flags
of nkDotExpr:
isCursor(n[1])
of nkCheckedFieldExpr:
isCursor(n[0])
else:
false
template isUnpackedTuple(n: PNode): bool =
## we move out all elements of unpacked tuples,
## hence unpacked tuples themselves don't need to be destroyed
## except it's already a cursor
## restricted to `skTemp`, tuple temps where not every field is unpacked should not use `skTemp`
(n.kind == nkSym and n.sym.kind == skTemp and
n.sym.typ.kind == tyTuple and sfCursor notin n.sym.flags)
@@ -192,8 +197,7 @@ proc checkForErrorPragma(c: Con; t: PType; ri: PNode; opname: string; inferredFr
if inferredFromCopy:
m.add ", which is inferred from unavailable '=copy'"
if (opname == "=" or opname == "=copy" or opname == "=dup") and
ri != nil:
if (opname == "=" or opname == "=copy" or opname == "=dup") and ri != nil:
m.add "; requires a copy because it's not the last read of '"
m.add renderTree(ri)
m.add '\''
@@ -233,18 +237,6 @@ proc genOp(c: var Con; t: PType; kind: TTypeAttachedOp; dest, ri: PNode): PNode
let canon = c.graph.canonTypes.getOrDefault(h)
if canon != nil:
op = getAttachedOp(c.graph, canon, kind)
if op == nil or op.ast.isGenericRoutine:
# IC: injectDestructorCalls is demand-driven and runs HERE (cg), not in the
# `lower` stage, so a structural, env-agnostic op the lower stage never had
# reason to serialize — most often a closure PROC type's `=destroy`/`=sink`
# (which act on the `(ClP_0, ClE_0)` tuple, NOT the concrete env) — must be
# lifted on demand, exactly as the lazy path's cg does. This is safe now:
# closure-env identity resolves via `attachedOps[itemId]`/env-erased typeKey,
# env objects load complete, and atomicRefOp's type-erased path covers any
# still-incomplete env (so the lift never walks a nil field).
excl t.flagsImpl, tfCheckedForDestructor
createTypeBoundOps(c.graph, nil, t, dest.info, c.idgen)
op = getAttachedOp(c.graph, t, kind)
if op == nil:
#echo dest.typ.id
globalError(c.graph.config, dest.info, "internal error: '" & AttachedOpToStr[kind] &
@@ -255,12 +247,7 @@ proc genOp(c: var Con; t: PType; kind: TTypeAttachedOp; dest, ri: PNode): PNode
dbg:
if kind == attachedDestructor:
echo "destructor is ", op.id, " ", op.ast
if sfError in op.flags:
if ri != nil:
checkForErrorPragma(c, t, ri, AttachedOpToStr[kind])
else:
# uses the lineinfos of `dest` is `ri` is not available
checkForErrorPragma(c, t, dest, AttachedOpToStr[kind])
if sfError in op.flags: checkForErrorPragma(c, t, ri, AttachedOpToStr[kind])
c.genOp(op, dest)
proc genDestroy(c: var Con; dest: PNode): PNode =
@@ -288,7 +275,7 @@ proc deepAliases(dest, ri: PNode): bool =
return aliases(dest, ri) != no
proc genSink(c: var Con; s: var Scope; dest, ri: PNode; flags: set[MoveOrCopyFlag] = {}): PNode =
if (c.inLoopCond == 0 and (isFullyUnpackedTuple(dest) or IsDecl in flags or
if (c.inLoopCond == 0 and (isUnpackedTuple(dest) or IsDecl in flags or
(isAnalysableFieldAccess(dest, c.owner) and isFirstWrite(dest, c)))) or
isNoInit(dest) or IsReturn in flags:
# optimize sink call into a bitwise memcopy
@@ -304,7 +291,7 @@ proc genSink(c: var Con; s: var Scope; dest, ri: PNode; flags: set[MoveOrCopyFla
if deepAliases(dest, ri):
# consider: x = x + y, it is wrong to destroy the destination first!
# tmp to support self assignments
let tmp = c.getTemp(s, dest.typ, dest.info, needsInit = false)
let tmp = c.getTemp(s, dest.typ, dest.info)
result = newTree(nkStmtList, newTree(nkFastAsgn, tmp, dest), newTree(nkFastAsgn, dest, ri),
c.genDestroy(tmp))
else:
@@ -331,21 +318,21 @@ proc isCriticalLink(dest: PNode): bool {.inline.} =
result = dest.kind != nkSym
proc finishCopy(c: var Con; result, dest: PNode; flags: set[MoveOrCopyFlag]; isFromSink: bool) =
if c.graph.config.selectedGC in {gcOrc, gcYrc} and IsExplicitSink notin flags:
if c.graph.config.selectedGC == gcOrc and IsExplicitSink notin flags:
# add cyclic flag, but not to sink calls, which IsExplicitSink generates
let t = dest.typ.skipTypes(tyUserTypeClasses + {tyGenericInst, tyAlias, tySink, tyDistinct})
if cyclicType(c.graph, t):
result.add boolLit(c.graph, result.info, isFromSink or isCriticalLink(dest))
proc genMarkCyclic(c: var Con; result, dest: PNode) =
if c.graph.config.selectedGC in {gcOrc, gcYrc}:
if c.graph.config.selectedGC == gcOrc:
let t = dest.typ.skipTypes({tyGenericInst, tyAlias, tySink, tyDistinct})
if cyclicType(c.graph, t):
if t.kind == tyRef:
result.add callCodegenProc(c.graph, "nimMarkCyclic", dest.info, dest)
else:
let xenv = genBuiltin(c.graph, c.idgen, mAccessEnv, "accessEnv", dest)
xenv.typ = getSysType(c.graph, dest.info, tyPointer)
xenv.typ() = getSysType(c.graph, dest.info, tyPointer)
result.add callCodegenProc(c.graph, "nimMarkCyclic", dest.info, xenv)
proc genCopyNoCheck(c: var Con; dest, ri: PNode; a: TTypeAttachedOp): PNode =
@@ -373,7 +360,7 @@ proc genDiscriminantAsgn(c: var Con; s: var Scope; n: PNode): PNode =
# but fields within active case branch might need destruction
# tmp to support self assignments
let tmp = c.getTemp(s, n[1].typ, n.info, needsInit = false)
let tmp = c.getTemp(s, n[1].typ, n.info)
result = newTree(nkStmtList)
result.add newTree(nkFastAsgn, tmp, p(n[1], c, s, consumed))
@@ -421,7 +408,7 @@ proc genWasMoved(c: var Con, n: PNode): PNode =
proc genDefaultCall(t: PType; c: Con; info: TLineInfo): PNode =
result = newNodeI(nkCall, info)
result.add(newSymNode(createMagic(c.graph, c.idgen, "default", mDefault)))
result.typ = t
result.typ() = t
proc destructiveMoveVar(n: PNode; c: var Con; s: var Scope): PNode =
# generate: (let tmp = v; reset(v); tmp)
@@ -459,50 +446,49 @@ proc isCapturedVar(n: PNode): bool =
else: result = false
proc passCopyToSink(n: PNode; c: var Con; s: var Scope): PNode =
result = newNodeIT(nkStmtListExpr, n.info, n.typ)
let nTyp = n.typ.skipTypes(tyUserTypeClasses)
if not hasDestructorOrAsgn(c, nTyp):
# Non-managed (plain-old-data) type: no ownership transfer is needed.
# Return the expression directly — no temp required.
if c.graph.config.selectedGC in {gcArc, gcOrc, gcYrc, gcAtomicArc}:
let tmp = c.getTemp(s, nTyp, n.info)
if hasDestructor(c, nTyp):
let typ = nTyp.skipTypes({tyGenericInst, tyAlias, tySink})
let op = getAttachedOp(c.graph, typ, attachedDup)
if op != nil and tfHasOwned notin typ.flags:
if sfError in op.flags:
c.checkForErrorPragma(nTyp, n, "=dup")
else:
let copyOp = getAttachedOp(c.graph, typ, attachedAsgn)
if copyOp != nil and sfError in copyOp.flags and
sfOverridden notin op.flags:
c.checkForErrorPragma(nTyp, n, "=dup", inferredFromCopy = true)
let src = p(n, c, s, normal)
var newCall = newTreeIT(nkCall, src.info, src.typ,
newSymNode(op),
src)
c.finishCopy(newCall, n, {}, isFromSink = true)
result.add newTreeI(nkFastAsgn,
src.info, tmp,
newCall
)
else:
result.add c.genWasMoved(tmp)
var m = c.genCopy(tmp, n, {})
m.add p(n, c, s, normal)
c.finishCopy(m, n, {}, isFromSink = true)
result.add m
if isLValue(n) and not isCapturedVar(n) and nTyp.skipTypes(abstractInst).kind != tyRef and c.inSpawn == 0:
message(c.graph.config, n.info, hintPerformance,
("passing '$1' to a sink parameter introduces an implicit copy; " &
"if possible, rearrange your program's control flow to prevent it") % $n)
if c.inEnsureMove > 0:
localError(c.graph.config, n.info, errFailedMove,
("cannot move '$1', passing '$1' to a sink parameter introduces an implicit copy") % $n)
else:
if c.graph.config.selectedGC in {gcArc, gcOrc, gcAtomicArc}:
assert(not containsManagedMemory(nTyp))
if nTyp.skipTypes(abstractInst).kind in {tyOpenArray, tyVarargs}:
localError(c.graph.config, n.info, "cannot create an implicit openArray copy to be passed to a sink parameter")
return p(n, c, s, normal)
result = newNodeIT(nkStmtListExpr, n.info, n.typ)
let tmp = c.getTemp(s, nTyp, n.info, needsInit = false)
let typ = nTyp.skipTypes({tyGenericInst, tyAlias, tySink})
let op = getAttachedOp(c.graph, typ, attachedDup)
if op != nil and tfHasOwned notin typ.flags:
if sfError in op.flags:
c.checkForErrorPragma(nTyp, n, "=dup")
else:
let copyOp = getAttachedOp(c.graph, typ, attachedAsgn)
if copyOp != nil and sfError in copyOp.flags and
sfOverridden notin op.flags:
c.checkForErrorPragma(nTyp, n, "=dup", inferredFromCopy = true)
let src = p(n, c, s, normal)
var newCall = newTreeIT(nkCall, src.info, src.typ,
newSymNode(op),
src)
c.finishCopy(newCall, n, {}, isFromSink = true)
result.add newTreeI(nkFastAsgn,
src.info, tmp,
newCall
)
else:
result.add c.genWasMoved(tmp)
var m = c.genCopy(tmp, n, {})
m.add p(n, c, s, normal)
c.finishCopy(m, n, {}, isFromSink = true)
result.add m
if isLValue(n) and not isCapturedVar(n) and nTyp.skipTypes(abstractInst).kind != tyRef and c.inSpawn == 0:
message(c.graph.config, n.info, hintPerformance,
("passing '$1' to a sink parameter introduces an implicit copy; " &
"if possible, rearrange your program's control flow to prevent it") % $n)
if c.inEnsureMove > 0:
localError(c.graph.config, n.info, errFailedMove,
("cannot move '$1', passing '$1' to a sink parameter introduces an implicit copy") % $n)
result.add newTree(nkAsgn, tmp, p(n, c, s, normal))
# Since we know somebody will take over the produced copy, there is
# no need to destroy it.
result.add tmp
@@ -533,7 +519,7 @@ proc ensureDestruction(arg, orig: PNode; c: var Con; s: var Scope): PNode =
# produce temp creation for (fn, env). But we need to move 'env'?
# This was already done in the sink parameter handling logic.
result = newNodeIT(nkStmtListExpr, arg.info, arg.typ)
let tmp = c.getTemp(s, arg.typ, arg.info, true)
let tmp = c.getTemp(s, arg.typ, arg.info)
result.add c.genSink(s, tmp, arg, {IsDecl})
result.add tmp
s.final.add c.genDestroy(tmp)
@@ -573,7 +559,7 @@ proc cycleCheck(n: PNode; c: var Con) =
proc pVarTopLevel(v: PNode; c: var Con; s: var Scope; res: PNode) =
# move the variable declaration to the top of the frame:
s.vars.add v.sym
if isFullyUnpackedTuple(v):
if isUnpackedTuple(v):
if c.inLoop > 0:
# unpacked tuple needs reset at every loop iteration
res.add newTree(nkFastAsgn, v, genDefaultCall(v.typ, c, v.info))
@@ -612,7 +598,7 @@ template processScopeExpr(c: var Con; s: var Scope; ret: PNode, processCall: unt
# There is a possibility to do this check: s.wasMoved.len > 0 or s.final.len > 0
# later and use it to eliminate the temporary when theres no need for it, but its
# tricky because you would have to intercept moveOrCopy at a certain point
let tmp = c.getTemp(s.parent[], ret.typ, ret.info, needsInit = true)
let tmp = c.getTemp(s.parent[], ret.typ, ret.info)
tmp.sym.flags = tmpFlags
let cpy = if hasDestructor(c, ret.typ) and
ret.typ.kind notin {tyOpenArray, tyVarargs}:
@@ -773,7 +759,7 @@ proc pRaiseStmt(n: PNode, c: var Con; s: var Scope): PNode =
result = copyNode(n)
result.add call
else:
let tmp = c.getTemp(s, n[0].typ, n.info, needsInit = true)
let tmp = c.getTemp(s, n[0].typ, n.info)
var m = c.genCopyNoCheck(tmp, n[0], attachedAsgn)
m.add p(n[0], c, s, normal)
c.finishCopy(m, n[0], {}, isFromSink = false)
@@ -803,23 +789,6 @@ proc hasCustomDestructor(c: Con, t: PType): bool =
obj = skipTypes(obj.baseClass, abstractPtrs)
result = result or isCustomDestructor(c, obj)
const
exprBranchKinds = {nkStmtListExpr, nkBlockExpr, nkIfExpr, nkCaseStmt,
nkTryStmt, nkPragmaBlock}
proc distributeAsgn(asgnKind: TNodeKind; dest, ri: PNode; c: var Con; s: var Scope): PNode =
## Distributes an assignment ``dest = ri`` into the leaf expressions of
## ``ri`` when ``ri`` is an expression-based control flow construct. This
## avoids creating pointless intermediate temporaries (bug #25850). The
## descent is recursive so that nestings like ``block: ...; if c: a else: b``
## assign directly to ``dest`` instead of going through a temp per branch.
if ri.kind in exprBranchKinds:
template process(child, s): untyped =
distributeAsgn(asgnKind, dest, child, c, s)
handleNestedTempl(ri, process, willProduceStmt = true)
else:
result = newTree(asgnKind, dest, p(ri, c, s, consumed))
proc p(n: PNode; c: var Con; s: var Scope; mode: ProcessMode; tmpFlags = {sfSingleUsedTemp}; inReturn = false): PNode =
if n.kind in {nkStmtList, nkStmtListExpr, nkBlockStmt, nkBlockExpr, nkIfStmt,
nkIfExpr, nkCaseStmt, nkWhen, nkWhileStmt, nkParForStmt, nkTryStmt, nkPragmaBlock}:
@@ -845,9 +814,9 @@ proc p(n: PNode; c: var Con; s: var Scope; mode: ProcessMode; tmpFlags = {sfSing
n[1].typ.skipTypes(abstractInst-{tyOwned}).kind == tyOwned:
# allow conversions from owned to unowned via this little hack:
let nTyp = n[1].typ
n[1].typ = n.typ
n[1].typ() = n.typ
result[1] = p(n[1], c, s, sinkArg)
result[1].typ = nTyp
result[1].typ() = nTyp
else:
result[1] = p(n[1], c, s, sinkArg)
elif n.kind in {nkObjDownConv, nkObjUpConv}:
@@ -946,7 +915,7 @@ proc p(n: PNode; c: var Con; s: var Scope; mode: ProcessMode; tmpFlags = {sfSing
if n[0].kind == nkSym and n[0].sym.magic in {mNew, mNewFinalize}:
result[0] = copyTree(n[0])
if c.graph.config.selectedGC in {gcHooks, gcArc, gcAtomicArc, gcOrc, gcYrc}:
if c.graph.config.selectedGC in {gcHooks, gcArc, gcAtomicArc, gcOrc}:
let destroyOld = c.genDestroy(result[1])
result = newTree(nkStmtList, destroyOld, result)
else:
@@ -966,9 +935,6 @@ proc p(n: PNode; c: var Con; s: var Scope; mode: ProcessMode; tmpFlags = {sfSing
of nkVarSection, nkLetSection:
# transform; var x = y to var x; x op y where op is a move or copy
result = newNodeI(nkStmtList, n.info)
let isInProc = c.owner.kind in {skProc, skFunc, skMethod, skIterator, skConverter}
for it in n:
var ri = it[^1]
if it.kind == nkVarTuple and hasDestructor(c, ri.typ):
@@ -984,15 +950,7 @@ proc p(n: PNode; c: var Con; s: var Scope; mode: ProcessMode; tmpFlags = {sfSing
s.locals.add v.sym
pVarTopLevel(v, c, s, result)
if ri.kind != nkEmpty:
let isGlobalPragma = v.kind == nkSym and
{sfPure, sfGlobal} <= v.sym.flags and
isInProc
if isGlobalPragma:
c.graph.procGlobals.add newTree(nkFastAsgn, v, ri)
else:
let value = moveOrCopy(v, ri, c, s, if v.kind == nkSym: {IsDecl} else: {})
result.add value
result.add moveOrCopy(v, ri, c, s, if v.kind == nkSym: {IsDecl} else: {})
elif ri.kind == nkEmpty and c.inLoop > 0:
let skipInit = v.kind == nkDotExpr and # Closure var
sfNoInit in v[1].sym.flags
@@ -1021,11 +979,6 @@ proc p(n: PNode; c: var Con; s: var Scope; mode: ProcessMode; tmpFlags = {sfSing
result = moveOrCopy(p(n[0], c, s, mode), n[1], c, s, flags)
elif isDiscriminantField(n[0]):
result = c.genDiscriminantAsgn(s, n)
elif n[1].kind in exprBranchKinds:
# Distribute the assignment into each branch to avoid
# creating pointless temporaries for expression-based control flow.
let dest = p(n[0], c, s, mode)
result = distributeAsgn(n.kind, dest, n[1], c, s)
else:
result = copyNode(n)
result.add p(n[0], c, s, mode)
@@ -1061,9 +1014,9 @@ proc p(n: PNode; c: var Con; s: var Scope; mode: ProcessMode; tmpFlags = {sfSing
n[1].typ.skipTypes(abstractInst-{tyOwned}).kind == tyOwned:
# allow conversions from owned to unowned via this little hack:
let nTyp = n[1].typ
n[1].typ = n.typ
n[1].typ() = n.typ
result[1] = p(n[1], c, s, mode)
result[1].typ = nTyp
result[1].typ() = nTyp
else:
result[1] = p(n[1], c, s, mode)
@@ -1169,25 +1122,6 @@ proc genFieldAccessSideEffects(c: var Con; s: var Scope; dest, ri: PNode; flags:
var snk = c.genSink(s, dest, newAccess, flags)
result = newTree(nkStmtList, v, snk, c.genWasMoved(newAccess))
proc ownsData(c: var Con; s: var Scope; orig: PNode; flags: set[MoveOrCopyFlag]): PNode =
var n = orig
while true:
case n.kind
of nkDotExpr, nkCheckedFieldExpr, nkBracketExpr:
n = n[0]
else:
break
if n.kind in nkCallKinds and n.typ != nil and hasDestructor(c, n.typ):
result = newNodeIT(nkStmtListExpr, orig.info, orig.typ)
let tmp = c.getTemp(s, n.typ, n.info, needsInit = true)
tmp.sym.flagsImpl.incl sfSingleUsedTemp
result.add newTree(nkFastAsgn, tmp, copyTree(n))
s.final.add c.genDestroy(tmp)
n[] = tmp[]
result.add copyTree(orig)
else:
result = nil
proc moveOrCopy(dest, ri: PNode; c: var Con; s: var Scope, flags: set[MoveOrCopyFlag] = {}): PNode =
var ri = ri
var isEnsureMove = 0
@@ -1214,7 +1148,7 @@ proc moveOrCopy(dest, ri: PNode; c: var Con; s: var Scope, flags: set[MoveOrCopy
of nkCallKinds:
result = c.genSink(s, dest, p(ri, c, s, consumed), flags)
of nkBracketExpr:
if isFullyUnpackedTuple(ri[0]):
if isUnpackedTuple(ri[0]):
# unpacking of tuple: take over the elements
result = c.genSink(s, dest, p(ri, c, s, consumed), flags)
elif isAnalysableFieldAccess(ri, c.owner) and isLastRead(ri, c, s):
@@ -1274,11 +1208,7 @@ proc moveOrCopy(dest, ri: PNode; c: var Con; s: var Scope, flags: set[MoveOrCopy
of nkRaiseStmt:
result = pRaiseStmt(ri, c, s)
else:
let isOwnsData = ownsData(c, s, ri2, flags)
if isOwnsData != nil:
result = moveOrCopy(dest, isOwnsData, c, s, flags)
elif isAnalysableFieldAccess(ri, c.owner) and isLastRead(ri, c, s) and
if isAnalysableFieldAccess(ri, c.owner) and isLastRead(ri, c, s) and
canBeMoved(c, dest.typ):
# Rule 3: `=sink`(x, z); wasMoved(z)
let snk = c.genSink(s, dest, ri, flags)
@@ -1317,55 +1247,6 @@ when false:
for i in 0..<n.safeLen:
injectDefaultCalls(n[i], c)
proc replaceSinkParam(n: PNode, mapping: Table[int, PSym]): PNode =
case n.kind
of nkSym:
if n.sym.id in mapping:
result = newSymNode(mapping[n.sym.id])
else:
result = n
of nkVarSection, nkLetSection:
result = copyNode(n)
newSons(result, n.len)
for i in 0..<n.len:
result[i] = copyNode(n[i])
for j in 0..<n[i].len-1:
result[i].add n[i][j]
result[i].add replaceSinkParam(n[i][^1], mapping)
of {nkNone..nkNilLit}-{nkSym}, nkTypeSection, nkProcDef, nkConverterDef,
nkMethodDef, nkIteratorDef, nkMacroDef, nkTemplateDef, nkLambda, nkDo,
nkFuncDef, nkConstSection, nkConstDef, nkIncludeStmt, nkImportStmt,
nkExportStmt, nkPragma, nkCommentStmt, nkBreakState,
nkTypeOfExpr, nkMixinStmt, nkBindStmt:
result = n
else:
result = copyNode(n)
for i in 0..<n.len:
result.add replaceSinkParam(n[i], mapping)
proc addSinkCopy(c: var Con; s: var Scope; sinkParams: seq[PSym]; n: PNode): PNode =
result = newNodeI(nkStmtList, n.info)
var mapping = initTable[int, PSym]()
var mutated = newSeq[PNode]()
getPotentialWrites(n, false, mutated)
var mutatedSet = initIntSet()
for m in mutated:
mutatedSet.incl m.sym.id
for param in sinkParams:
if param.id in mutatedSet:
let newSym = newSym(skTemp, getIdent(c.graph.cache, "sinkCopy"), c.idgen, param.owner, n.info)
newSym.flagsImpl.incl sfFromGeneric
newSym.typ = param.typ.elementType
mapping[param.id] = newSym
let v = newNodeI(nkVarSection, n.info)
v.addVar(newSymNode(newSym), newSymNode(param))
result.add v
if mapping.len > 0:
result.add replaceSinkParam(n, mapping)
else:
result = n
proc injectDestructorCalls*(g: ModuleGraph; idgen: IdGenerator; owner: PSym; n: PNode): PNode =
when toDebug.len > 0:
shouldDebug = toDebug == owner.name.s or toDebug == "always"
@@ -1379,24 +1260,15 @@ proc injectDestructorCalls*(g: ModuleGraph; idgen: IdGenerator; owner: PSym; n:
var scope = Scope(body: n)
let body = p(n, c, scope, normal)
var sinkParams = newSeq[PSym]()
if owner.kind in {skProc, skFunc, skMethod, skIterator, skConverter}:
let params = owner.typ.n
for i in 1..<params.len:
let t = params[i].sym.typ
if isSinkTypeForParam(t):
let baseType = t.skipTypes({tySink})
if baseType.kind in {tyString, tySequence, tyArray, tyTuple, tyObject}:
sinkParams.add params[i].sym
if hasDestructor(c, baseType):
scope.final.add c.genDestroy(params[i])
if isSinkTypeForParam(t) and hasDestructor(c, t.skipTypes({tySink})):
scope.final.add c.genDestroy(params[i])
#if optNimV2 in c.graph.config.globalOptions:
# injectDefaultCalls(n, c)
result = optimize processScope(c, scope, body)
if sinkParams.len > 0:
result = addSinkCopy(c, scope, sinkParams, result)
dbg:
echo ">---------transformed-to--------->"
echo renderTree(result, {renderIds})

View File

@@ -1,122 +0,0 @@
proc copySymdef(n: PNode; locals: var Table[int, PSym]; idgen: IdGenerator; owner: PSym): PNode =
case n.kind
of nkEmpty..pred(nkSym), succ(nkSym)..nkNilLit:
result = n
of nkSym:
let oldSym = n.sym
let newSym = copySym(oldSym, idgen)
setOwner(newSym, owner)
locals[oldSym.id] = newSym
result = newSymNode(newSym, oldSym.info)
else:
result = shallowCopy(n)
for i in 0..<n.len:
result[i] = copySymdef(n[i], locals, idgen, owner)
proc copyInlineProcBody(n: PNode; locals: var Table[int, PSym]; idgen: IdGenerator; owner: PSym): PNode =
case n.kind
of nkEmpty..pred(nkSym), succ(nkSym)..nkNilLit:
result = n
of nkSym:
let sym = locals.getOrDefault(n.sym.id)
if sym != nil:
result = newSymNode(sym, n.info)
else:
result = n
of nkLetSection, nkVarSection:
result = shallowCopy(n)
for i in 0..<n.len:
let it = n[i]
if it.kind == nkCommentStmt:
result[i] = it
elif it.kind in {nkIdentDefs, nkConstDef}:
result[i] = shallowCopy(it)
for j in 0..<it.len-2:
result[i][j] = copySymdef(it[j], locals, idgen, owner)
for j in it.len-2..<it.len:
result[i][j] = copyInlineProcBody(it[j], locals, idgen, owner)
else:
assert it.kind == nkVarTuple
result[i] = shallowCopy(it)
for j in 0..<it.len-2:
assert it[j].kind == nkSym
let oldSym = it[j].sym
let newSym = copySym(oldSym, idgen)
setOwner(newSym, owner)
locals[oldSym.id] = newSym
result[i][j] = newSymNode(newSym, oldSym.info)
for j in it.len-2..<it.len:
result[i][j] = copyInlineProcBody(it[j], locals, idgen, owner)
of nkForStmt, nkParForStmt:
result = shallowCopy(n)
for i in 0..<n.len-2:
assert n[i].kind == nkSym
let oldSym = n[i].sym
let newSym = copySym(oldSym, idgen)
setOwner(newSym, owner)
locals[oldSym.id] = newSym
result[i] = newSymNode(newSym, oldSym.info)
result[n.len-2] = copyInlineProcBody(n[n.len-2], locals, idgen, owner)
result[n.len-1] = copyInlineProcBody(n[n.len-1], locals, idgen, owner)
of routineDefs, nkTypeSection, nkTypeOfExpr, nkMixinStmt, nkBindStmt, nkConstSection:
result = n
else:
result = shallowCopy(n)
for i in 0..<n.len:
result[i] = copyInlineProcBody(n[i], locals, idgen, owner)
proc copyParams(n: PNode; locals: var Table[int, PSym]; idgen: IdGenerator; owner: PSym): PNode =
result = shallowCopy(n)
result[0] = n[0] # return type
for i in 1..<n.len:
let it = n[i]
assert it.kind == nkIdentDefs
result[i] = shallowCopy(it)
for j in 0..<it.len-2:
assert it[j].kind == nkSym
let oldSym = it[j].sym
let newSym = copySym(oldSym, idgen)
setOwner(newSym, owner)
locals[oldSym.id] = newSym
result[i][j] = newSymNode(newSym, oldSym.info)
owner.typ.addParam newSym
for j in it.len-2..<it.len:
result[i][j] = copyInlineProcBody(it[j], locals, idgen, owner)
proc copyInlineProc(prc: PSym; idgen: IdGenerator): PSym =
result = copySym(prc, idgen)
var locals = initTable[int, PSym]()
var a = shallowCopy(prc.ast)
if resultPos < prc.ast.len and prc.ast[resultPos].kind == nkSym:
let oldRes = prc.ast[resultPos].sym
let newRes = copySym(oldRes, idgen)
setOwner(newRes, result)
locals[oldRes.id] = newRes
a[resultPos] = newSymNode(newRes, oldRes.info)
result.typ = copyType(prc.typ, idgen, result)
result.typ.n = newNodeI(prc.typ.n.kind, prc.typ.n.info)
if prc.typ.n.len > 0:
result.typ.n.add copyNode(prc.typ.n[0])
for i in 1..<prc.typ.n.len:
let it = prc.typ.n[i]
assert it.kind == nkSym
let oldSym = it.sym
let newSym = copySym(oldSym, idgen)
setOwner(newSym, result)
locals[oldSym.id] = newSym
result.typ.addParam newSym
for i in 0..<prc.ast.len:
if i == paramsPos:
a[i] = copyTree(prc.ast[i])
elif i == resultPos and prc.ast[i].kind == nkSym:
discard "handled above"
else:
a[i] = copyInlineProcBody(prc.ast[i], locals, idgen, result)
result.ast = a
#echo "Produced: ", renderTree(result.ast, {renderIds})

View File

@@ -6,7 +6,7 @@ Name: "Nim"
Version: "$version"
Platforms: """
windows: i386;amd64
linux: i386;hppa;ia64;alpha;amd64;powerpc64;arm;sparc;sparc64;s390x;m68k;mips;mipsel;mips64;mips64el;powerpc;powerpc64el;arm64;riscv32;riscv64;loongarch64
linux: i386;hppa;ia64;alpha;amd64;powerpc64;arm;sparc;sparc64;m68k;mips;mipsel;mips64;mips64el;powerpc;powerpc64el;arm64;riscv32;riscv64;loongarch64
macosx: i386;amd64;powerpc64;arm64
solaris: i386;amd64;sparc;sparc64
freebsd: i386;amd64;powerpc64;arm;arm64;riscv64;sparc64;mips;mipsel;mips64;mips64el;powerpc;powerpc64el
@@ -80,7 +80,6 @@ Files: "lib"
Files: "examples"
Files: "dist/nimble"
Files: "dist/checksums"
Files: "dist/nimony"
Files: "tests"

View File

@@ -340,6 +340,9 @@ proc `*`*(a: Int128, b: int32): Int128 =
if b < 0:
result = -result
proc `*=`(a: var Int128, b: int32) =
a = a * b
proc makeInt128(high, low: uint64): Int128 =
result = Zero
result.udata[0] = cast[uint32](low)
@@ -457,9 +460,7 @@ proc addInt128*(result: var string; value: Int128) =
var i = initialSize
var j = high(result)
while i < j:
let tmp = result[i]
result[i] = result[j]
result[j] = tmp
swap(result[i], result[j])
i += 1
j -= 1

View File

@@ -1,98 +0,0 @@
#
#
# The Nim Compiler
# (c) Copyright 2026 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## `ItemId` is the identity of a symbol or type: a `(module, item)` pair.
##
## The fields are private on purpose: the module half reserves bit 30 as the
## "backend minted" marker, so all construction and inspection has to go
## through this module's API and the marker bit can never leak into module
## indexing or arithmetic.
##
## Three id spaces coexist per module:
## - Semantic-phase and NIF-loader ids: `itemId(module, item)` with `item > 0`.
## - Backend-minted ids (IC codegen, `nim nifc`: transf labels and temps,
## lifted hooks): `backendItemId` sets `BackendModuleBit`, so these can
## never compare equal to a loader id even though both counters mint the
## same small `item` range in one process. They never cross a process
## boundary and must never be written to a NIF file.
## - Derived env/tuple-field ids (`lowerings.addField`): the source local's
## id with `item` negated. `derivedFieldId` preserves the backend marker,
## keeping the derivation collision-free for both id spaces above.
import std/hashes
when defined(nimPreviewSlimSystem):
import std/assertions
const
BackendModuleBit = 0x4000_0000'i32
# Bit 30 of the module field. Bit 31 stays clear so marked module values
# remain non-negative and cannot be mistaken for the special negative
# module ids like `PackageModuleId`.
PackageModuleId* = -3'i32
type
ItemId* = object
moduleBits: int32
itemBits: int32
proc itemId*(module, item: int32): ItemId {.inline.} =
assert module < 0 or (module and BackendModuleBit) == 0
ItemId(moduleBits: module, itemBits: item)
proc backendItemId*(module, item: int32): ItemId {.inline.} =
## An id minted during IC codegen; distinct from every `itemId` of the
## same module so that the loader's stub counter and the backend's counter
## cannot collide in id-keyed tables.
assert module >= 0 and (module and BackendModuleBit) == 0
ItemId(moduleBits: module or BackendModuleBit, itemBits: item)
proc module*(x: ItemId): int32 {.inline.} =
if x.moduleBits >= 0: x.moduleBits and not BackendModuleBit
else: x.moduleBits
proc item*(x: ItemId): int32 {.inline.} = x.itemBits
proc isBackendMinted*(x: ItemId): bool {.inline.} =
x.moduleBits >= 0 and (x.moduleBits and BackendModuleBit) != 0
proc derivedFieldId*(source: ItemId): ItemId {.inline.} =
## The id of the env/tuple field that `lowerings.addField` derives for a
## captured local: `item` negated, module bits (including the backend
## marker) preserved.
ItemId(moduleBits: source.moduleBits, itemBits: -abs(source.itemBits))
proc matchesDerivedFieldId*(field, source: ItemId): bool {.inline.} =
## Does `field` carry the id `derivedFieldId` would derive for `source`?
## `source` may itself already be the derived field id.
field.moduleBits == source.moduleBits and
field.itemBits == -abs(source.itemBits)
proc `==`*(a, b: ItemId): bool {.inline.} =
# raw bit comparison: a backend-minted id never equals a loader id
a.itemBits == b.itemBits and a.moduleBits == b.moduleBits
proc hash*(x: ItemId): Hash =
var h: Hash = hash(x.moduleBits)
h = h !& hash(x.itemBits)
result = !$h
proc `$`*(x: ItemId): string =
result = "(module: " & $x.module & ", item: " & $x.itemBits
if x.isBackendMinted: result.add ", backend"
result.add ")"
const
moduleShift = when defined(cpu32): 20 else: 24
proc toId*(a: ItemId): int {.inline.} =
## Packs an ItemId into a single int. Uses the raw module bits so the
## backend marker keeps the two id spaces disjoint (bit 30 shifts to
## bit 54; like the module/item split itself this needs a 64-bit int).
(a.moduleBits.int shl moduleShift) + a.itemBits.int

View File

@@ -34,7 +34,7 @@ import
ropes, wordrecg, renderer,
cgmeth, lowerings, sighashes, modulegraphs, lineinfos,
transf, injectdestructors, sourcemap, astmsgs, pushpoppragmas,
mangleutils, varpartitions
mangleutils
import pipelineutils
@@ -148,6 +148,11 @@ proc newGlobals(): PGlobals =
typeInfoGenerated: initIntSet()
)
proc initCompRes(): TCompRes =
result = TCompRes(address: "", res: "",
tmpLoc: "", typ: etyNone, kind: resNone
)
proc rdLoc(a: TCompRes): Rope {.inline.} =
if a.typ != etyBaseIndex:
result = a.res
@@ -272,8 +277,7 @@ proc mangleName(m: BModule, s: PSym): Rope =
else:
result.add("_")
result.add(rope(s.id))
ensureMutable s
s.locImpl.snippet = result
s.loc.snippet = result
proc escapeJSString(s: string): string =
result = newStringOfCap(s.len + s.len shr 2)
@@ -589,6 +593,15 @@ proc binaryUintExpr(p: PProc, n: PNode, r: var TCompRes, op: string,
r.res = "(($1 $2 $3) $4)" % [x.rdLoc, rope op, y.rdLoc, trimmer]
r.kind = resExpr
template ternaryExpr(p: PProc, n: PNode, r: var TCompRes, magic, frmt: string) =
var x, y, z: TCompRes
useMagic(p, magic)
gen(p, n[1], x)
gen(p, n[2], y)
gen(p, n[3], z)
r.res = frmt % [x.rdLoc, y.rdLoc, z.rdLoc]
r.kind = resExpr
template unaryExpr(p: PProc, n: PNode, r: var TCompRes, magic, frmt: string) =
# $1 binds to n[1], if $2 is present it will be substituted to a tmp of $1
useMagic(p, magic)
@@ -715,47 +728,44 @@ proc arithAux(p: PProc, n: PNode, r: var TCompRes, op: TMagic) =
of mShrI:
let typ = n[1].typ.skipTypes(abstractVarRange)
if typ.kind == tyInt64 and optJsBigInt64 in p.config.globalOptions:
applyFormat("BigInt.asIntN(64, BigInt.asUintN(64, $1) >> (BigInt($2) & 63n))")
applyFormat("BigInt.asIntN(64, BigInt.asUintN(64, $1) >> BigInt($2))")
elif typ.kind == tyUInt64 and optJsBigInt64 in p.config.globalOptions:
applyFormat("($1 >> (BigInt($2) & 63n))")
applyFormat("($1 >> BigInt($2))")
else:
let bitmask = typ.size * 8 - 1
if typ.kind in {tyInt..tyInt32}:
let trimmerU = unsignedTrimmer(typ.size)
let trimmerS = signedTrimmer(typ.size)
r.res = "((($1 $2) >>> ($3 & $5)) $4)" % [xLoc, trimmerU, yLoc, trimmerS, $bitmask]
r.res = "((($1 $2) >>> $3) $4)" % [xLoc, trimmerU, yLoc, trimmerS]
else:
r.res = "($1 >>> ($2 & $3))" % [xLoc, yLoc, $bitmask]
applyFormat("($1 >>> $2)")
of mShlI:
let typ = n[1].typ.skipTypes(abstractVarRange)
if typ.size == 8:
if typ.kind == tyInt64 and optJsBigInt64 in p.config.globalOptions:
applyFormat("BigInt.asIntN(64, $1 << (BigInt($2) & 63n))")
applyFormat("BigInt.asIntN(64, $1 << BigInt($2))")
elif typ.kind == tyUInt64 and optJsBigInt64 in p.config.globalOptions:
applyFormat("BigInt.asUintN(64, $1 << (BigInt($2) & 63n))")
applyFormat("BigInt.asUintN(64, $1 << BigInt($2))")
else:
applyFormat("($1 * Math.pow(2, ($2 & 63)))")
applyFormat("($1 * Math.pow(2, $2))")
else:
let bitmask = typ.size * 8 - 1
if typ.kind in {tyUInt..tyUInt32}:
let trimmer = unsignedTrimmer(typ.size)
r.res = "(($1 << ($2 & $4)) $3)" % [xLoc, yLoc, trimmer, $bitmask]
r.res = "(($1 << $2) $3)" % [xLoc, yLoc, trimmer]
else:
let trimmer = signedTrimmer(typ.size)
r.res = "(($1 << ($2 & $4)) $3)" % [xLoc, yLoc, trimmer, $bitmask]
r.res = "(($1 << $2) $3)" % [xLoc, yLoc, trimmer]
of mAshrI:
let typ = n[1].typ.skipTypes(abstractVarRange)
if typ.size == 8:
if optJsBigInt64 in p.config.globalOptions:
applyFormat("($1 >> (BigInt($2) & 63n))")
applyFormat("($1 >> BigInt($2))")
else:
applyFormat("Math.floor($1 / Math.pow(2, ($2 & 63)))")
applyFormat("Math.floor($1 / Math.pow(2, $2))")
else:
let bitmask = typ.size * 8 - 1
if typ.kind in {tyUInt..tyUInt32}:
r.res = "($1 >>> ($2 & $3)))" % [xLoc, yLoc, $bitmask]
applyFormat("($1 >>> $2)")
else:
r.res = "($1 >> ($2 & $3))" % [xLoc, yLoc, $bitmask]
applyFormat("($1 >> $2)")
of mBitandI: bitwiseExpr("&")
of mBitorI: bitwiseExpr("|")
of mBitxorI: bitwiseExpr("^")
@@ -992,8 +1002,7 @@ proc genTry(p: PProc, n: PNode, r: var TCompRes) =
# If some branch requires a local alias introduce it here. This is needed
# since JS cannot do ``catch x as y``.
if excAlias != nil:
ensureMutable excAlias.sym
excAlias.sym.locImpl.snippet = mangleName(p.module, excAlias.sym)
excAlias.sym.loc.snippet = mangleName(p.module, excAlias.sym)
lineF(p, "var $1 = lastJSError;$n", excAlias.sym.loc.snippet)
gen(p, n[i][^1], a)
moveInto(p, a, r)
@@ -1126,8 +1135,7 @@ proc genBlock(p: PProc, n: PNode, r: var TCompRes) =
# named block?
if (n[0].kind != nkSym): internalError(p.config, n.info, "genBlock")
var sym = n[0].sym
ensureMutable sym
sym.locImpl.k = locOther
sym.loc.k = locOther
sym.position = idx+1
let labl = p.unique
lineF(p, "Label$1: {$n", [labl.rope])
@@ -1168,6 +1176,7 @@ proc genAsmOrEmitStmt(p: PProc, n: PNode; isAsmStmt = false) =
of nkStrLit..nkTripleStrLit:
p.body.add(it.strVal)
of nkSym:
let v = it.sym
# for backwards compatibility we don't deref syms here :-(
if false:
discard
@@ -1225,8 +1234,7 @@ proc generateHeader(p: PProc, prc: PSym): Rope =
# to keep it simple
let env = prc.ast[paramsPos].lastSon
assert env.kind == nkSym, "env is missing"
ensureMutable env.sym
env.sym.locImpl.snippet = "this"
env.sym.loc.snippet = "this"
for i in 1..<typ.n.len:
assert(typ.n[i].kind == nkSym)
@@ -1240,6 +1248,17 @@ proc generateHeader(p: PProc, prc: PSym): Rope =
result.add(name)
result.add("_Idx")
proc countJsParams(typ: PType): int =
result = 0
for i in 1..<typ.n.len:
assert(typ.n[i].kind == nkSym)
var param = typ.n[i].sym
if isCompileTimeOnly(param.typ): continue
if mapType(param.typ) == etyBaseIndex:
inc result, 2
else:
inc result
const
nodeKindsNeedNoCopy = {nkCharLit..nkInt64Lit, nkStrLit..nkTripleStrLit,
nkFloatLit..nkFloat64Lit, nkPar, nkStringToCString,
@@ -1272,16 +1291,14 @@ proc genAsgnAux(p: PProc, x, y: PNode, noCopyNeeded: bool) =
xtyp = etySeq
case xtyp
of etySeq:
if x.typ.kind in {tyVar, tyLent} or (needsNoCopy(p, y) and needsNoCopy(p, x)) or noCopyNeeded or
(x.kind == nkSym and sfCursor in x.sym.flags):
if x.typ.kind in {tyVar, tyLent} or (needsNoCopy(p, y) and needsNoCopy(p, x)) or noCopyNeeded:
lineF(p, "$1 = $2;$n", [a.rdLoc, b.rdLoc])
else:
useMagic(p, "nimCopy")
lineF(p, "$1 = nimCopy(null, $2, $3);$n",
[a.rdLoc, b.res, genTypeInfo(p, y.typ)])
of etyObject:
if x.typ.kind in {tyVar, tyLent, tyOpenArray, tyVarargs} or (needsNoCopy(p, y) and needsNoCopy(p, x)) or noCopyNeeded or
(x.kind == nkSym and sfCursor in x.sym.flags):
if x.typ.kind in {tyVar, tyLent, tyOpenArray, tyVarargs} or (needsNoCopy(p, y) and needsNoCopy(p, x)) or noCopyNeeded:
lineF(p, "$1 = $2;$n", [a.rdLoc, b.rdLoc])
else:
useMagic(p, "nimCopy")
@@ -1354,15 +1371,12 @@ proc genFieldAddr(p: PProc, n: PNode, r: var TCompRes) =
r.typ = etyBaseIndex
let b = if n.kind == nkHiddenAddr: n[0] else: n
gen(p, b[0], a)
if skipTypes(b[0].typ, abstractVarRange + tyTypeClasses).kind == tyTuple:
# ref #25227 about `+ tyTypeClasses`
if skipTypes(b[0].typ, abstractVarRange).kind == tyTuple:
r.res = makeJSString("Field" & $getFieldPosition(p, b[1]))
else:
if b[1].kind != nkSym: internalError(p.config, b[1].info, "genFieldAddr")
var f = b[1].sym
if f.loc.snippet == "":
ensureMutable f
f.locImpl.snippet = mangleName(p.module, f)
if f.loc.snippet == "": f.loc.snippet = mangleName(p.module, f)
r.res = makeJSString($f.loc.snippet)
internalAssert p.config, a.typ != etyBaseIndex
r.address = a.res
@@ -1390,9 +1404,7 @@ proc genFieldAccess(p: PProc, n: PNode, r: var TCompRes) =
else:
if n[1].kind != nkSym: internalError(p.config, n[1].info, "genFieldAccess")
var f = n[1].sym
if f.loc.snippet == "":
ensureMutable f
f.locImpl.snippet = mangleName(p.module, f)
if f.loc.snippet == "": f.loc.snippet = mangleName(p.module, f)
r.res = "$1.$2" % [r.res, f.loc.snippet]
mkTemp(1)
r.kind = resExpr
@@ -1413,15 +1425,11 @@ proc genCheckedFieldOp(p: PProc, n: PNode, addrTyp: PType, r: var TCompRes) =
# Field symbol
var field = accessExpr[1].sym
internalAssert p.config, field.kind == skField
if field.loc.snippet == "":
ensureMutable field
field.locImpl.snippet = mangleName(p.module, field)
if field.loc.snippet == "": field.loc.snippet = mangleName(p.module, field)
# Discriminant symbol
let disc = checkExpr[2].sym
internalAssert p.config, disc.kind == skField
if disc.loc.snippet == "":
ensureMutable disc
disc.locImpl.snippet = mangleName(p.module, disc)
if disc.loc.snippet == "": disc.loc.snippet = mangleName(p.module, disc)
var setx: TCompRes = default(TCompRes)
gen(p, checkExpr[1], setx)
@@ -1520,7 +1528,7 @@ proc genSymAddr(p: PProc, n: PNode, typ: PType, r: var TCompRes) =
r.res = s.loc.snippet
r.address = ""
r.typ = etyNone
of skVar, skLet, skResult, skTemp, skForVar:
of skVar, skLet, skResult:
r.kind = resExpr
let jsType = mapType(p):
if typ.isNil:
@@ -1578,11 +1586,7 @@ proc genAddr(p: PProc, n: PNode, r: var TCompRes) =
of nkObjDownConv:
gen(p, n[0], r)
of nkHiddenDeref, nkDerefExpr:
if n.kind in {nkAddr, nkHiddenAddr}:
# addr ( deref ( x )) --> x
gen(p, n[0][0], r)
else:
gen(p, n[0], r)
gen(p, n[0], r)
of nkHiddenAddr:
gen(p, n[0], r)
of nkConv:
@@ -1771,6 +1775,12 @@ proc genArgs(p: PProc, n: PNode, r: var TCompRes; start=1) =
inc emitted
hasArgs = true
r.res.add(")")
when false:
# XXX look into this:
let jsp = countJsParams(typ)
if emitted != jsp and tfVarargs notin typ.flags:
localError(p.config, n.info, "wrong number of parameters emitted; expected: " & $jsp &
" but got: " & $emitted)
r.kind = resExpr
proc genOtherArg(p: PProc; n: PNode; i: int; typ: PType;
@@ -1827,9 +1837,7 @@ proc genPatternCall(p: PProc; n: PNode; pat: string; typ: PType;
proc genInfixCall(p: PProc, n: PNode, r: var TCompRes) =
# don't call '$' here for efficiency:
let f = n[0].sym
if f.loc.snippet == "":
ensureMutable f
f.locImpl.snippet = mangleName(p.module, f)
if f.loc.snippet == "": f.loc.snippet = mangleName(p.module, f)
if sfInfixCall in f.flags:
let pat = $n[0].sym.loc.snippet
internalAssert p.config, pat.len > 0
@@ -1988,12 +1996,8 @@ proc createVar(p: PProc, typ: PType, indirect: bool): Rope =
if indirect: result = "[$1]" % [result]
of tyTuple:
result = rope("{")
var first = true
for i in 0..<t.len:
# Do not produce code for void types
if isEmptyType(t[i]): continue
if not first: result.add(", ")
first = false
if i > 0: result.add(", ")
result.addf("Field$1: $2", [i.rope,
createVar(p, t[i], false)])
result.add("}")
@@ -2062,8 +2066,7 @@ proc genVarInit(p: PProc, v: PSym, n: PNode) =
gen(p, n, a)
case mapType(p, v.typ)
of etyObject, etySeq:
if v.typ.kind in {tyOpenArray, tyVarargs} or needsNoCopy(p, n) or
sfCursor in v.flags:
if v.typ.kind in {tyOpenArray, tyVarargs} or needsNoCopy(p, n):
s = a.res
else:
useMagic(p, "nimCopy")
@@ -2303,6 +2306,9 @@ proc genJSArrayConstr(p: PProc, n: PNode, r: var TCompRes) =
r.res.add("]")
proc genMagic(p: PProc, n: PNode, r: var TCompRes) =
var
a: TCompRes
line, filen: Rope
var op = n[0].sym.magic
case op
of mOr: genOr(p, n[1], n[2], r)
@@ -2323,8 +2329,8 @@ proc genMagic(p: PProc, n: PNode, r: var TCompRes) =
r.res = "if (null != $1) { if (null == $2) $2 = $3; else $2 += $3; }" %
[b, lhs.rdLoc, tmp]
else:
useMagic(p, "nimAddStrStr")
r.res = "nimAddStrStr($1, $2);" % [lhs.rdLoc, rhs.rdLoc]
let (a, tmp) = maybeMakeTemp(p, n[1], lhs)
r.res = "$1.push.apply($3, $2);" % [a, rhs.rdLoc, tmp]
r.kind = resExpr
of mAppendSeqElem:
var x, y: TCompRes = default(TCompRes)
@@ -2428,7 +2434,7 @@ proc genMagic(p: PProc, n: PNode, r: var TCompRes) =
binaryExpr(p, n, r, "mnewString",
"""if ($1.length < $2) { for (var i = $3.length; i < $4; ++i) $3.push(0); }
else {$3.length = $4; }""")
of mSetLengthSeq, mSetLengthSeqUninit:
of mSetLengthSeq:
var x, y: TCompRes = default(TCompRes)
gen(p, n[1], x)
gen(p, n[2], y)
@@ -2559,6 +2565,7 @@ proc genObjConstr(p: PProc, n: PNode, r: var TCompRes) =
r.kind = resExpr
var initList : Rope = ""
var fieldIDs = initIntSet()
let nTyp = n.typ.skipTypes(abstractInst)
for i in 1..<n.len:
if i > 1: initList.add(", ")
var it = n[i]
@@ -2566,9 +2573,7 @@ proc genObjConstr(p: PProc, n: PNode, r: var TCompRes) =
let val = it[1]
gen(p, val, a)
var f = it[0].sym
if f.loc.snippet == "":
ensureMutable f
f.locImpl.snippet = mangleName(p.module, f)
if f.loc.snippet == "": f.loc.snippet = mangleName(p.module, f)
fieldIDs.incl(lookupFieldAgain(n.typ.skipTypes({tyDistinct}), f).id)
let typ = val.typ.skipTypes(abstractInst)
@@ -2765,11 +2770,6 @@ proc genProc(oldProc: PProc, prc: PSym): Rope =
var transformedBody = transformBody(p.module.graph, p.module.idgen, prc, {})
if sfInjectDestructors in prc.flags:
transformedBody = injectDestructorCalls(p.module.graph, p.module.idgen, prc, transformedBody)
else:
# JS has a GC, so the destructor pass is off; but the cursor (alias) analysis
# is independent of ownership and always memory-safe on a traced target.
# Running it lets last-use `var b = a` aliases skip the deep `nimCopy`.
computeCursors(prc, transformedBody, p.module.graph)
p.nested: genStmt(p, transformedBody)
@@ -2875,8 +2875,6 @@ proc genCast(p: PProc, n: PNode, r: var TCompRes) =
elif dest.kind in tyFloat..tyFloat64:
if src.kind in {tyInt64, tyUInt64} and optJsBigInt64 in p.config.globalOptions:
r.res = "Number($1)" % [r.res]
elif dest.kind == tyChar and (fromInt or fromUint):
r.res = "($1 & 255)" % [r.res]
elif (src.kind == tyPtr and mapType(p, src) == etyObject) and dest.kind == tyPointer:
r.address = r.res
r.res = "null"

View File

@@ -122,7 +122,7 @@ proc genEnumInfo(p: PProc, typ: PType, name: Rope) =
[name, genTypeInfo(p, typ.baseClass)])
proc genTypeInfo(p: PProc, typ: PType): Rope =
let t = typ.skipTypes({tyGenericInst, tyDistinct, tyAlias, tySink, tyOwned} + tyUserTypeClasses)
let t = typ.skipTypes({tyGenericInst, tyDistinct, tyAlias, tySink, tyOwned})
result = "NTI$1" % [rope(t.id)]
if containsOrIncl(p.g.typeInfoGenerated, t.id): return
case t.kind

View File

@@ -126,6 +126,11 @@ const
paramName* = ":envP"
envName* = ":env"
proc newCall(a: PSym, b: PNode): PNode =
result = newNodeI(nkCall, a.info)
result.add newSymNode(a)
result.add b
proc createClosureIterStateType*(g: ModuleGraph; iter: PSym; idgen: IdGenerator): PType =
var n = newNodeI(nkRange, iter.info)
n.add newIntNode(nkIntLit, -1)
@@ -145,7 +150,6 @@ template isIterator*(owner: PSym): bool =
proc createEnvObj(g: ModuleGraph; idgen: IdGenerator; owner: PSym; info: TLineInfo): PType =
result = createObj(g, idgen, owner, info, final=false)
result.incl tfFinal
if owner.isIterator:
rawAddField(result, createStateField(g, owner, idgen))
@@ -156,24 +160,12 @@ proc getClosureIterResult*(g: ModuleGraph; iter: PSym; idgen: IdGenerator): PSym
# XXX a bit hacky:
result = newSym(skResult, getIdent(g.cache, ":result"), idgen, iter, iter.info, {})
result.typ = iter.typ.returnType
incl(result.flagsImpl, sfUsed)
incl(result.flags, sfUsed)
iter.ast.add newSymNode(result)
proc closureParams(routine: PSym): PNode =
## The formal parameters node lambda lifting reads and extends. In a
## from-source compilation `routine.ast[paramsPos]` and `routine.typ.n` are the
## very same node (see the `typ.n.len` based position math below). Under IC the
## loaded proc AST omits the parameters (they are kept only in `typ.n`), so
## restore the shared node here.
result = routine.ast[paramsPos]
if (result == nil or result.kind == nkEmpty) and routine.typ != nil and
routine.typ.n != nil and routine.ast.len > paramsPos:
result = routine.typ.n
routine.ast[paramsPos] = result
proc addHiddenParam*(routine: PSym, param: PSym) =
proc addHiddenParam(routine: PSym, param: PSym) =
assert param.kind == skParam
var params = closureParams(routine)
var params = routine.ast[paramsPos]
# -1 is correct here as param.position is 0 based but we have at position 0
# some nkEffect node:
param.position = routine.typ.n.len-1
@@ -184,8 +176,7 @@ proc addHiddenParam*(routine: PSym, param: PSym) =
proc getEnvParam*(routine: PSym): PSym =
if routine.ast.isNil: return nil
let params = closureParams(routine)
if params == nil or params.len == 0: return nil
let params = routine.ast[paramsPos]
let hidden = lastSon(params)
if hidden.kind == nkSym and hidden.sym.kind == skParam and hidden.sym.name.s == paramName:
result = hidden.sym
@@ -224,10 +215,6 @@ proc newAsgnStmt(le, ri: PNode, info: TLineInfo): PNode =
result[0] = le
result[1] = ri
proc markInjectDestructors(s: PSym) {.inline.} =
backendEnsureMutable s
s.flagsImpl.incl sfInjectDestructors
proc makeClosure*(g: ModuleGraph; idgen: IdGenerator; prc: PSym; env: PNode; info: TLineInfo): PNode =
result = newNodeIT(nkClosure, info, prc.typ)
result.add(newSymNode(prc))
@@ -240,7 +227,7 @@ proc makeClosure*(g: ModuleGraph; idgen: IdGenerator; prc: PSym; env: PNode; inf
#if isClosureIterator(result.typ):
createTypeBoundOps(g, nil, result.typ, info, idgen)
if tfHasAsgn in result.typ.flags or optSeqDestructors in g.config.globalOptions:
markInjectDestructors(prc)
prc.flags.incl sfInjectDestructors
template liftingHarmful(conf: ConfigRef; owner: PSym): bool =
## lambda lifting can be harmful for JS-like code generators.
@@ -252,7 +239,7 @@ proc createTypeBoundOpsLL(g: ModuleGraph; refType: PType; info: TLineInfo; idgen
createTypeBoundOps(g, nil, refType.elementType, info, idgen)
createTypeBoundOps(g, nil, refType, info, idgen)
if tfHasAsgn in refType.flags or optSeqDestructors in g.config.globalOptions:
markInjectDestructors(owner)
owner.flags.incl sfInjectDestructors
proc genCreateEnv(env: PNode): PNode =
var c = newNodeIT(nkObjConstr, env.info, env.typ)
@@ -283,6 +270,7 @@ proc liftIterSym*(g: ModuleGraph; n: PNode; idgen: IdGenerator; owner: PSym): PN
addVar(v, env)
result.add(v)
# add 'new' statement:
#result.add newCall(getSysSym(g, n.info, "internalNew"), env)
result.add genCreateEnv(env)
createTypeBoundOpsLL(g, env.typ, n.info, idgen, owner)
result.add makeClosure(g, idgen, iter, env, n.info)
@@ -301,27 +289,7 @@ proc markAsClosure(g: ModuleGraph; owner: PSym; n: PNode) =
elif not (owner.typ.isClosure or owner.isNimcall and not owner.isExplicitCallConv or isEnv):
localError(g.config, n.info, "illegal capture '$1' because '$2' has the calling convention: <$3>" %
[s.name.s, owner.name.s, $owner.typ.callConv])
unsealForTransform(owner.typ)
incl(owner.typ, tfCapturesEnv)
# A closure proc type that captures an env owns a REF to it: copying the closure
# value must incref the env and destroying it must decref. That is exactly what
# `tfHasAsgn` signals to `injectDestructorCalls` (so a closure assignment becomes
# `=copy`, not a raw field store).
#
# Set it HERE (closure-type creation) so the flag is DETERMINISTIC and serializes
# with the type — but ONLY under `nim ic`. The per-module `lower` stage is a
# separate process that lowers routines in index order; if a consumer (e.g.
# `workNimAsyncContinue`) was lowered before the closure type's ops were lifted,
# its env store emitted a RAW assign with no incref → freed env → async
# "yielded `nil`". A normal single-process `nim c` build does NOT need this —
# `createTypeBoundOps` sets the flag lazily, in lift order, before it matters
# (the old `liftdestructors ~1498` "XXX Breaks IC!" side effect) — and setting it
# eagerly there REGRESSES codegen: a `=destroy` hook gets generated against the
# bare `void(*)(void)` proc representation but is then called with closure structs
# (`eqdestroy__u2__stdZtypedthreads` type mismatch — broke megatest). So gate on
# `cmdNifC`; normal builds keep the lazy (devel) behavior.
if g.config.cmd == cmdNifC:
incl(owner.typ, tfHasAsgn)
incl(owner.typ.flags, tfCapturesEnv)
if not isEnv:
owner.typ.callConv = ccClosure
@@ -367,7 +335,7 @@ proc asOwnedRef(c: var DetectionPass; t: PType): PType =
if optOwnedRefs in c.graph.config.globalOptions:
assert t.kind == tyRef
result = newType(tyOwned, c.idgen, t.owner)
result.incl tfHasOwned
result.flags.incl tfHasOwned
result.rawAddSon t
else:
result = t
@@ -439,29 +407,17 @@ Consider:
proc isTypeOf(n: PNode): bool =
n.kind == nkSym and n.sym.magic in {mTypeOf, mType}
proc isEnvTypeForRoutine(envTyp: PType; routine: PSym): bool =
## True if `envTyp` is (maybe wrapped) env object type owned by `routine`, as
## created by `getEnvTypeForOwner` / `createEnvObj`.
let obj = envTyp.skipTypes({tyOwned, tyRef, tyPtr})
result = obj.kind == tyObject and obj.owner.id == routine.id
proc addClosureParam(c: var DetectionPass; fn: PSym; info: TLineInfo) =
var cp = getEnvParam(fn)
let owner = if fn.kind == skIterator: fn else: fn.skipGenericOwner
let t = c.getEnvTypeForOwner(owner, info)
if cp == nil:
cp = newSym(skParam, getIdent(c.graph.cache, paramName), c.idgen, fn, fn.info)
incl(cp.flagsImpl, sfFromGeneric)
incl(cp.flags, sfFromGeneric)
cp.typ = t
addHiddenParam(fn, cp)
elif cp.typ != t and fn.kind != skIterator:
# Nested `liftLambdas` uses a fresh `DetectionPass`, so `getEnvTypeForOwner`
# can allocate another PType for the same logical env; the hidden param from
# the inner pass is authoritative (bug #21242).
if isEnvTypeForRoutine(cp.typ, owner) and isEnvTypeForRoutine(t, owner):
c.ownerToType[owner.id] = cp.typ
else:
localError(c.graph.config, fn.info, "internal error: inconsistent environment type")
localError(c.graph.config, fn.info, "internal error: inconsistent environment type")
#echo "adding closure to ", fn.name.s
proc iterEnvHasUpField(g: ModuleGraph, iter: PSym): bool =
@@ -653,7 +609,7 @@ proc rawClosureCreation(owner: PSym;
let unowned = c.unownedEnvVars[owner.id]
assert unowned != nil
let env2 = copyTree(env)
env2.typ = unowned.typ
env2.typ() = unowned.typ
result.add newAsgnStmt(unowned, env2, env.info)
createTypeBoundOpsLL(d.graph, unowned.typ, env.info, d.idgen, owner)
@@ -667,7 +623,7 @@ proc rawClosureCreation(owner: PSym;
if owner.kind != skMacro:
createTypeBoundOps(d.graph, nil, fieldAccess.typ, env.info, d.idgen)
if tfHasAsgn in fieldAccess.typ.flags or optSeqDestructors in d.graph.config.globalOptions:
markInjectDestructors(owner)
owner.flags.incl sfInjectDestructors
let upField = lookupInRecord(env.typ.skipTypes({tyOwned, tyRef, tyPtr}).n, getIdent(d.graph.cache, upName))
if upField != nil:
@@ -709,7 +665,7 @@ proc closureCreationForIter(owner: PSym, iter: PNode;
result = newNodeIT(nkStmtListExpr, iter.info, iter.sym.typ)
let iterOwner = iter.sym.skipGenericOwner
var v = newSym(skVar, getIdent(d.graph.cache, envName), d.idgen, iterOwner, iter.info)
incl(v.flagsImpl, sfShadowed)
incl(v.flags, sfShadowed)
v.typ = asOwnedRef(d, getHiddenParam(d.graph, iter.sym).typ)
var vnode: PNode
if iterOwner.isIterator:
@@ -830,7 +786,7 @@ proc liftCapturedVars(n: PNode; owner: PSym; d: var DetectionPass;
let oldInContainer = c.inContainer
c.inContainer = 0
let m = newSymNode(n[namePos].sym)
m.typ = n.typ
m.typ() = n.typ
result = liftCapturedVars(m, owner, d, c)
c.inContainer = oldInContainer
of nkHiddenStdConv:
@@ -1018,20 +974,6 @@ proc liftForLoop*(g: ModuleGraph; body: PNode; idgen: IdGenerator; owner: PSym):
for i in 0..<op.len-1:
result.add op[i]
elif op.kind != nkSym: # might have side effects
# bug #25046
# create a temp for the closure
# var :closureTemp
# :closureTemp = ...
let tempSym = newSym(skLet, getIdent(g.cache, ":closureTemp"), idgen, owner, body.info)
tempSym.typ = call[0].typ
let temp = newSymNode(tempSym)
var v = newNodeI(nkVarSection, body.info)
addVar(v, temp)
result.add(v)
result.add newAsgnStmt(temp, call[0], body.info)
call[0] = temp
var loopBody = newNodeI(nkStmtList, body.info, 3)
var whileLoop = newNodeI(nkWhileStmt, body.info, 2)
whileLoop[0] = newIntTypeNode(1, getSysType(g, body.info, tyBool))

View File

@@ -1,4 +1,5 @@
import ast, astalgo
import std/[tables]
import ast
type
LayeredIdTableObj* {.acyclic.} = object
@@ -27,15 +28,14 @@ proc shallowCopy*(pt: LayeredIdTable): LayeredIdTable {.inline.} =
## copies only the type bindings of the current layer, but not any parent layers,
## useful for write-only bindings
result = LayeredIdTable(topLayer: pt.topLayer, nextLayer: pt.nextLayer, previousLen: pt.previousLen)
#copyIdTable(result.topLayer, pt.topLayer)
proc currentLen*(pt: LayeredIdTable): int =
## the sum of the cached total binding count of the parents and
## the current binding count, just used to track if bindings were added
pt.previousLen + pt.topLayer.counter
pt.previousLen + pt.topLayer.len
proc newTypeMapLayer*(pt: LayeredIdTable): LayeredIdTable =
result = LayeredIdTable(topLayer: initTypeMapping(), previousLen: pt.currentLen)
result = LayeredIdTable(topLayer: initTable[ItemId, PType](), previousLen: pt.currentLen)
when useRef:
result.nextLayer = pt
else:
@@ -46,32 +46,22 @@ proc setToPreviousLayer*(pt: var LayeredIdTable) {.inline.} =
when useRef:
pt = pt.nextLayer
else:
# Must read nextLayer into a temp before destroying pt:
# `pt = pt.nextLayer[]` would call eqcopy(&pt, &(*pt.nextLayer)) which
# decrements pt.nextLayer's rc (freeing it) before reading pt.nextLayer.nextLayer.
let tmp = pt.nextLayer[]
pt = tmp
when defined(gcDestructors):
pt = pt.nextLayer[]
else:
# workaround refc
let tmp = pt.nextLayer[]
pt = tmp
iterator pairs*(pt: LayeredIdTable): (ItemId, PType) =
var tm = pt
while true:
for (k, v) in idTablePairs(tm.topLayer):
for (k, v) in pairs(tm.topLayer):
yield (k, v)
if tm.nextLayer == nil:
break
tm.setToPreviousLayer
proc lookupById*(typeMap: LayeredIdTable, key: ItemId): PType =
## Looks up an ItemId directly, observing the same layer shadowing rules as
## `lookup`. This form is useful when a binding key was previously captured.
result = nil
var tm = typeMap
while true:
result = getOrDefault(tm.topLayer, key)
if result != nil or tm.nextLayer == nil:
return
tm.setToPreviousLayer
proc lookup(typeMap: ref LayeredIdTableObj, key: ItemId): PType =
result = nil
var tm = typeMap

View File

@@ -451,13 +451,7 @@ proc emitTok*(em: var Emitter; L: Lexer; tok: Token) =
elif tok.indent >= 0:
var newlineKind = ltCrucialNewline
if em.keepIndents > 0:
# Apply the requested --indent width to "don't touch" regions (if/block
# expressions) too: keep the relative offset from the enclosing block
# baseline, but rebase it onto indWidth. Otherwise a non-default
# --indent would leave these lines at the original column and inject
# invalid indentation (see #20078).
em.indentLevel = em.indentStack.high * em.indWidth +
(tok.indent - em.indentStack[^1])
em.indentLevel = tok.indent
elif (em.lastTok in (splitters + oprSet) and
tok.tokType notin (closedPars - {tkBracketDotRi})):
if tok.tokType in openPars and tok.indent > em.indentStack[^1]:

View File

@@ -316,28 +316,6 @@ proc getNumber(L: var Lexer, result: var Token) =
L.bufpos = msgPos
lexMessage(L, msgKind, msg % t.literal)
proc checkBitWidth(L: var Lexer, base: NumericalBase, tokType: TokType,
numDigits: int, startpos: int) =
# Check bit width for non-base-10 literals
# Warn if the digit count exceeds what can fit in the target type
let bitsPerDigit = case base
of base2: 1
of base8: 3
of base16: 4
else: raiseAssert "unreachable"
let bitWidth = case tokType
of tkInt8Lit, tkUInt8Lit: 8
of tkInt16Lit, tkUInt16Lit: 16
of tkInt32Lit, tkUInt32Lit: 32
of tkInt64Lit, tkUIntLit, tkIntLit, tkUInt64Lit: 64
else: raiseAssert "unreachable"
# Maximum digits = ceil(bitWidth / bitsPerDigit) = (bitWidth + bitsPerDigit - 1) div bitsPerDigit
let maxDigits = (bitWidth + bitsPerDigit - 1) div bitsPerDigit
if numDigits > maxDigits:
lexMessageLitNum(L,
"number has " & $numDigits & " digits but type only supports " &
$maxDigits & " digits: '$1'", startpos, warnLongLiterals)
var
xi: BiggestInt
isBase10 = true
@@ -513,11 +491,6 @@ proc getNumber(L: var Lexer, result: var Token) =
setNumber result.fNumber, (cast[ptr float64](addr(xi)))[]
else: internalError(L.config, getLineInfo(L), "getNumber")
# Check bit width for non-base-10 literals
# Warn if the digit count exceeds what can fit in the target type
if result.base != base10 and result.tokType in {tkIntLit..tkUInt64Lit} and numDigits > 0:
checkBitWidth(L, result.base, result.tokType, numDigits, startpos)
# Bounds checks. Non decimal literals are allowed to overflow the range of
# the datatype as long as their pattern don't overflow _bitwise_, hence
# below checks of signed sizes against uint*.high is deliberate:
@@ -735,11 +708,17 @@ proc getEscapedChar(L: var Lexer, tok: var Token) =
else: lexMessage(L, errGenerated, "invalid character constant")
proc handleCRLF(L: var Lexer, pos: int): int =
result =
case L.buf[pos]
of CR: nimlexbase.handleCR(L, pos)
of LF: nimlexbase.handleLF(L, pos)
else: pos
template registerLine =
let col = L.getColNumber(pos)
case L.buf[pos]
of CR:
registerLine()
result = nimlexbase.handleCR(L, pos)
of LF:
registerLine()
result = nimlexbase.handleLF(L, pos)
else: result = pos
type
StringMode = enum
@@ -839,8 +818,8 @@ proc getCharacter(L: var Lexer; tok: var Token) =
const
UnicodeOperatorStartChars = {'\226', '\194', '\195'}
# the allowed unicode characters ("∙ ∘ × ⊗ ⊘ ⊙ ⊛ ⊠ ⊡ ∩ ∧ ⊓ ⟑ ⟇ ⩓ ⩔ ■ □
# ± ⊕ ⊖ ⊞ ⊟ ⊔") all start with one of these.
# the allowed unicode characters ("∙ ∘ × ★ ⊗ ⊘ ⊙ ⊛ ⊠ ⊡ ∩ ∧ ⊓ ± ⊕ ⊖ ⊞ ⊟ ⊔")
# all start with one of these.
type
UnicodeOprPred = enum
@@ -872,18 +851,7 @@ proc unicodeOprLen(buf: cstring; pos: int): (int8, UnicodeOprPred) =
elif buf[pos+2] == '\159': result = 3.a # ⊟
elif buf[pos+2] == '\160': result = 3.m # ⊠
elif buf[pos+2] == '\161': result = 3.m # ⊡
elif buf[pos+1] == '\150':
if buf[pos+2] == '\160': result = 3.m # ■
elif buf[pos+2] == '\161': result = 3.m # □
elif buf[pos+1] == '\152':
if buf[pos+2] == '\133': result = 3.m # ★
elif buf[pos+2] == '\134': result = 3.m # ☆
elif buf[pos+1] == '\159':
if buf[pos+2] == '\135': result = 3.m # ⟇
elif buf[pos+2] == '\145': result = 3.m # ⟑
elif buf[pos+1] == '\169':
if buf[pos+2] == '\147': result = 3.m # ⩓
elif buf[pos+2] == '\148': result = 3.m # ⩔
elif buf[pos+1] == '\152' and buf[pos+2] == '\133': result = 3.m # ★
of '\194':
if buf[pos+1] == '\177': result = 2.a # ±
of '\195':
@@ -928,7 +896,7 @@ proc getSymbol(L: var Lexer, tok: var Token) =
tok.tokType = tkSymbol
else:
tok.tokType = TokType(tok.ident.id + ord(tkSymbol))
if suspicious and {optStyleHint, optStyleError, optStyleWarning} * L.config.globalOptions != {}:
if suspicious and {optStyleHint, optStyleError} * L.config.globalOptions != {}:
lintReport(L.config, getLineInfo(L), tok.ident.s.normalize, tok.ident.s)
L.bufpos = pos
@@ -1354,7 +1322,7 @@ proc rawGetTok*(L: var Lexer, tok: var Token) =
lexMessage(L, errGenerated, "invalid token: no whitespace between number and identifier")
of '-':
if L.buf[L.bufpos+1] in {'0'..'9'} and
(L.bufpos == 0 or L.buf[L.bufpos-1] in UnaryMinusWhitelist):
(L.bufpos-1 == 0 or L.buf[L.bufpos-1] in UnaryMinusWhitelist):
# x)-23 # binary minus
# ,-23 # unary minus
# \n-78 # unary minus? Yes.

View File

@@ -49,7 +49,7 @@ proc at(a, i: PNode, elemType: PType): PNode =
result = newNodeI(nkBracketExpr, a.info, 2)
result[0] = a
result[1] = i
result.typ = elemType
result.typ() = elemType
proc destructorOverridden(g: ModuleGraph; t: PType): bool =
let op = getAttachedOp(g, t, attachedDestructor)
@@ -68,7 +68,7 @@ proc dotField(x: PNode, f: PSym): PNode =
else:
result[0] = x
result[1] = newSymNode(f, x.info)
result.typ = f.typ
result.typ() = f.typ
proc newAsgnStmt(le, ri: PNode): PNode =
result = newNodeI(nkAsgn, le.info, 2)
@@ -88,34 +88,24 @@ proc defaultOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
body.add newAsgnStmt(x, y)
elif c.kind == attachedDestructor and c.addMemReset:
let call = genBuiltin(c, mDefault, "default", x)
call.typ = t
call.typ() = t
body.add newAsgnStmt(x, call)
elif c.kind == attachedWasMoved:
body.add genBuiltin(c, mWasMoved, "wasMoved", x)
proc genAddr(c: var TLiftCtx; x: PNode): PNode =
# These synthesized addresses are always passed to codegen procs that expect a
# genuine pointer (nimAsgnYrc, nimSinkYrc, destructors, ...). `addr(deref x)`
# collapses to `x` only when `x` is a real pointer; on the C++ backend a `var`
# parameter is a C++ reference, so we must keep the `nkHiddenAddr` to actually
# take its address (`&dest`) instead of passing the reference's value. Likewise
# `tfVarIsPtr` keeps the C++ backend from lowering the synthesized address back
# to a reference and dropping the `&` (e.g. a closure's `tyPointer` env). See
# #26026 CI (yrc + cpp).
if x.kind == nkHiddenDeref and c.g.config.backend != backendCpp:
if x.kind == nkHiddenDeref:
checkSonsLen(x, 1, c.g.config)
result = x[0]
else:
let addrTyp = makeVarType(x.typ.owner, x.typ, c.idgen)
addrTyp.incl tfVarIsPtr
result = newNodeIT(nkHiddenAddr, x.info, addrTyp)
result = newNodeIT(nkHiddenAddr, x.info, makeVarType(x.typ.owner, x.typ, c.idgen))
result.add x
proc genWhileLoop(c: var TLiftCtx; i, dest: PNode): PNode =
result = newNodeI(nkWhileStmt, c.info, 2)
let cmp = genBuiltin(c, mLtI, "<", i)
cmp.add genLen(c.g, dest)
cmp.typ = getSysType(c.g, c.info, tyBool)
cmp.typ() = getSysType(c.g, c.info, tyBool)
result[0] = cmp
result[1] = newNodeI(nkStmtList, c.info)
@@ -137,10 +127,10 @@ proc genContainerOf(c: var TLiftCtx; objType: PType, field, x: PSym): PNode =
dotExpr.add newSymNode(field)
let offsetOf = genBuiltin(c, mOffsetOf, "offsetof", dotExpr)
offsetOf.typ = intType
offsetOf.typ() = intType
let minusExpr = genBuiltin(c, mSubI, "-", castExpr1)
minusExpr.typ = intType
minusExpr.typ() = intType
minusExpr.add offsetOf
let objPtr = makePtrType(objType.owner, objType, c.idgen)
@@ -173,7 +163,7 @@ proc fillBodyObj(c: var TLiftCtx; n, body, x, y: PNode; enforceDefaultOp: bool,
if c.filterDiscriminator != nil: return
let f = n.sym
let b = if c.kind == attachedTrace: y else: y.dotField(f)
if (sfCursor in f.flags and c.g.config.selectedGC in {gcArc, gcAtomicArc, gcOrc, gcYrc, gcHooks}) or
if (sfCursor in f.flags and c.g.config.selectedGC in {gcArc, gcAtomicArc, gcOrc, gcHooks}) or
enforceDefaultOp:
defaultOp(c, f.typ, body, x.dotField(f), b)
else:
@@ -228,38 +218,23 @@ proc fillBodyObj(c: var TLiftCtx; n, body, x, y: PNode; enforceDefaultOp: bool,
fillBodyObj(c, n[0], body, x, y, enforceDefaultOp = false)
c.filterDiscriminator = oldfilterDiscriminator
of nkRecList:
# destroys in reverse order #24719
if c.kind == attachedDestructor:
for i in countdown(n.len-1, 0):
fillBodyObj(c, n[i], body, x, y, enforceDefaultOp, enforceWasMoved)
else:
for t in items(n): fillBodyObj(c, t, body, x, y, enforceDefaultOp, enforceWasMoved)
for t in items(n): fillBodyObj(c, t, body, x, y, enforceDefaultOp, enforceWasMoved)
else:
illFormedAstLocal(n, c.g.config)
proc fillBodyObjTImpl(c: var TLiftCtx; t: PType, body, x, y: PNode) =
template fillBase =
if t.baseClass != nil:
let dest = newNodeIT(nkHiddenSubConv, c.info, t.baseClass)
dest.add newNodeI(nkEmpty, c.info)
dest.add x
var src = y
if c.kind in {attachedAsgn, attachedDeepCopy, attachedSink}:
src = newNodeIT(nkHiddenSubConv, c.info, t.baseClass)
src.add newNodeI(nkEmpty, c.info)
src.add y
if t.baseClass != nil:
let dest = newNodeIT(nkHiddenSubConv, c.info, t.baseClass)
dest.add newNodeI(nkEmpty, c.info)
dest.add x
var src = y
if c.kind in {attachedAsgn, attachedDeepCopy, attachedSink}:
src = newNodeIT(nkHiddenSubConv, c.info, t.baseClass)
src.add newNodeI(nkEmpty, c.info)
src.add y
fillBody(c, skipTypes(t.baseClass, abstractPtrs), body, dest, src)
template fillFields =
fillBodyObj(c, t.n, body, x, y, enforceDefaultOp = false)
if c.kind == attachedDestructor:
# destroys in reverse order #24719
fillFields()
fillBase()
else:
fillBase()
fillFields()
fillBody(c, skipTypes(t.baseClass, abstractPtrs), body, dest, src)
fillBodyObj(c, t.n, body, x, y, enforceDefaultOp = false)
proc fillBodyObjT(c: var TLiftCtx; t: PType, body, x, y: PNode) =
var hasCase = isCaseObj(t.n)
@@ -290,11 +265,11 @@ proc fillBodyObjT(c: var TLiftCtx; t: PType, body, x, y: PNode) =
# because the wasMoved(dest) call would zero out src, if dest aliases src.
var cond = newTree(nkCall, newSymNode(c.g.getSysMagic(c.info, "==", mEqRef)),
newTreeIT(nkAddr, c.info, makePtrType(c.fn, x.typ, c.idgen), x), newTreeIT(nkAddr, c.info, makePtrType(c.fn, y.typ, c.idgen), y))
cond.typ = getSysType(c.g, x.info, tyBool)
cond.typ() = getSysType(c.g, x.info, tyBool)
body.add genIf(c, cond, newTreeI(nkReturnStmt, c.info, newNodeI(nkEmpty, c.info)))
var temp = newSym(skTemp, getIdent(c.g.cache, lowerings.genPrefix), c.idgen, c.fn, c.info)
temp.typ = x.typ
incl(temp, sfFromGeneric)
incl(temp.flags, sfFromGeneric)
var v = newNodeI(nkVarSection, c.info)
let blob = newSymNode(temp)
v.addVar(blob, x)
@@ -322,7 +297,7 @@ proc fillBodyObjT(c: var TLiftCtx; t: PType, body, x, y: PNode) =
proc boolLit*(g: ModuleGraph; info: TLineInfo; value: bool): PNode =
result = newIntLit(g, info, ord value)
result.typ = getSysType(g, info, tyBool)
result.typ() = getSysType(g, info, tyBool)
proc getCycleParam(c: TLiftCtx): PNode =
assert c.kind in {attachedAsgn, attachedDup}
@@ -390,10 +365,6 @@ proc requiresDestructor(c: TLiftCtx; t: PType): bool {.inline.} =
proc instantiateGeneric(c: var TLiftCtx; op: PSym; t, typeInst: PType): PSym =
if c.c != nil and typeInst != nil:
result = c.c.instTypeBoundOp(c.c, op, typeInst, c.info, attachedAsgn, 1)
elif typeInst != nil and getAttachedOp(c.g, typeInst, c.kind) != nil:
# c.c == nil in lambdalifting
# hooks are already insted
result = getAttachedOp(c.g, typeInst, c.kind)
else:
localError(c.g.config, c.info,
"cannot generate destructor for generic type: " & typeToString(t))
@@ -407,8 +378,7 @@ proc considerAsgnOrSink(c: var TLiftCtx; t: PType; body, x, y: PNode;
if op != nil and op != c.fn and
(sfOverridden in op.flags or destructorOverridden):
if sfError in op.flags:
ensureMutable c.fn
incl c.fn.flagsImpl, sfError
incl c.fn.flags, sfError
#else:
# markUsed(c.g.config, c.info, op, c.g.usageSym)
onUse(c.info, op)
@@ -434,8 +404,7 @@ proc considerAsgnOrSink(c: var TLiftCtx; t: PType; body, x, y: PNode;
if op == nil:
op = produceSym(c.g, c.c, t, c.kind, c.info, c.idgen)
if sfError in op.flags:
ensureMutable c.fn
incl c.fn.flagsImpl, sfError
incl c.fn.flags, sfError
#else:
# markUsed(c.g.config, c.info, op, c.g.usageSym)
onUse(c.info, op)
@@ -551,7 +520,7 @@ proc considerUserDefinedOp(c: var TLiftCtx; t: PType; body, x, y: PNode): bool =
proc declareCounter(c: var TLiftCtx; body: PNode; first: BiggestInt): PNode =
var temp = newSym(skTemp, getIdent(c.g.cache, lowerings.genPrefix), c.idgen, c.fn, c.info)
temp.typ = getSysType(c.g, body.info, tyInt)
incl(temp.flagsImpl, sfFromGeneric)
incl(temp.flags, sfFromGeneric)
var v = newNodeI(nkVarSection, c.info)
result = newSymNode(temp)
@@ -561,29 +530,13 @@ proc declareCounter(c: var TLiftCtx; body: PNode; first: BiggestInt): PNode =
proc declareTempOf(c: var TLiftCtx; body: PNode; value: PNode): PNode =
var temp = newSym(skTemp, getIdent(c.g.cache, lowerings.genPrefix), c.idgen, c.fn, c.info)
temp.typ = value.typ
incl(temp.flagsImpl, sfFromGeneric)
incl(temp.flags, sfFromGeneric)
var v = newNodeI(nkVarSection, c.info)
result = newSymNode(temp)
v.addVar(result, value)
body.add v
proc considerInferDupFromCopy(c: var TLiftCtx; t: PType; body, x, y: PNode): bool =
## For `=dup`, if no explicit hook exists, try to infer from `=copy` hook
## to maintain backward compatibility. Returns true if inference was applied.
if c.kind == attachedDup:
var op2 = getAttachedOp(c.g, t, attachedAsgn)
if op2 != nil and sfOverridden in op2.flags:
#markUsed(c.g.config, c.info, op, c.g.usageSym)
onUse(c.info, op2)
body.add genBuiltin(c, mWasMoved, "wasMoved", x)
body.add newHookCall(c, op2, x, y)
result = true
else:
result = false
else:
result = false
proc addIncStmt(c: var TLiftCtx; body, i: PNode) =
let incCall = genBuiltin(c, mInc, "inc", i)
incCall.add lowerings.newIntLit(c.g, c.info, 1)
@@ -593,15 +546,19 @@ proc newSeqCall(c: var TLiftCtx; x, y: PNode): PNode =
# don't call genAddr(c, x) here:
result = genBuiltin(c, mNewSeq, "newSeq", x)
let lenCall = genBuiltin(c, mLengthSeq, "len", y)
lenCall.typ = getSysType(c.g, x.info, tyInt)
lenCall.typ() = getSysType(c.g, x.info, tyInt)
result.add lenCall
proc setLenSeqCall(c: var TLiftCtx; t: PType; x, y: PNode; noinit = false): PNode =
proc setLenStrCall(c: var TLiftCtx; x, y: PNode): PNode =
let lenCall = genBuiltin(c, mLengthStr, "len", y)
lenCall.typ() = getSysType(c.g, x.info, tyInt)
result = genBuiltin(c, mSetLengthStr, "setLen", x) # genAddr(g, x))
result.add lenCall
proc setLenSeqCall(c: var TLiftCtx; t: PType; x, y: PNode): PNode =
let lenCall = genBuiltin(c, mLengthSeq, "len", y)
lenCall.typ = getSysType(c.g, x.info, tyInt)
let name = if noinit: "setLenUninit" else: "setLen"
let magic = if noinit: mSetLengthSeqUninit else: mSetLengthSeq
var op = getSysMagic(c.g, x.info, name, magic)
lenCall.typ() = getSysType(c.g, x.info, tyInt)
var op = getSysMagic(c.g, x.info, "setLen", mSetLengthSeq)
op = instantiateGeneric(c, op, t, t)
result = newTree(nkCall, newSymNode(op, x.info), x, lenCall)
@@ -623,38 +580,14 @@ proc checkSelfAssignment(c: var TLiftCtx; t: PType; body, x, y: PNode) =
newTreeIT(nkAddr, c.info, makePtrType(c.fn, x.typ, c.idgen), x),
newTreeIT(nkAddr, c.info, makePtrType(c.fn, y.typ, c.idgen), y)
)
cond.typ = getSysType(c.g, c.info, tyBool)
cond.typ() = getSysType(c.g, c.info, tyBool)
body.add genIf(c, cond, newTreeI(nkReturnStmt, c.info, newNodeI(nkEmpty, c.info)))
proc genBulkCopySeq(c: var TLiftCtx; t: PType; body, x, y: PNode) =
## Generates a call to nimCopySeqPayload for bulk memcpy of seq data.
let elemType = t.elementType
let sym = magicsys.getCompilerProc(c.g, "nimCopySeqPayload")
if sym == nil:
localError(c.g.config, c.info, "system module needs: nimCopySeqPayload")
return
var sizeOf = genBuiltin(c, mSizeOf, "sizeof", newNodeIT(nkType, c.info, elemType))
sizeOf.typ = getSysType(c.g, c.info, tyInt)
var alignOf = genBuiltin(c, mAlignOf, "alignof", newNodeIT(nkType, c.info, elemType))
alignOf.typ = getSysType(c.g, c.info, tyInt)
let call = newNodeI(nkCall, c.info)
call.add newSymNode(sym)
call.add newTreeIT(nkAddr, c.info, makePtrType(c.fn, x.typ, c.idgen), x)
call.add newTreeIT(nkAddr, c.info, makePtrType(c.fn, y.typ, c.idgen), y)
call.add sizeOf
call.add alignOf
call.typ = sym.typ.returnType
body.add call
proc fillSeqOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
case c.kind
of attachedDup:
let bulkCopy = supportsCopyMem(t.elementType)
body.add setLenSeqCall(c, t, x, y, noinit = bulkCopy)
if bulkCopy:
genBulkCopySeq(c, t, body, x, y)
else:
forallElements(c, t, body, x, y)
body.add setLenSeqCall(c, t, x, y)
forallElements(c, t, body, x, y)
of attachedAsgn, attachedDeepCopy:
# we generate:
# if x.p == y.p:
@@ -663,14 +596,9 @@ proc fillSeqOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
# var i = 0
# while i < y.len: dest[i] = y[i]; inc(i)
# This is usually more efficient than a destroy/create pair.
# For trivially copyable types, use bulk copyMem instead of element loop.
checkSelfAssignment(c, t, body, x, y)
let bulkCopy = supportsCopyMem(t.elementType)
body.add setLenSeqCall(c, t, x, y, noinit = bulkCopy)
if bulkCopy:
genBulkCopySeq(c, t, body, x, y)
else:
forallElements(c, t, body, x, y)
body.add setLenSeqCall(c, t, x, y)
forallElements(c, t, body, x, y)
of attachedSink:
let moveCall = genBuiltin(c, mMove, "move", x)
moveCall.add y
@@ -715,11 +643,6 @@ proc useSeqOrStrOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
doAssert t.asink != nil
body.add newHookCall(c, t.asink, x, y)
of attachedDestructor:
when defined(icDbg):
if t.destructor == nil:
echo "MISSING destructor: ", typeToString(t), " kind=", t.kind,
" itemId=", t.itemId, " uniqueId=", t.uniqueId, " state=", t.state,
" owner=", (if t.owner != nil: t.owner.name.s else: "nil")
doAssert t.destructor != nil
body.add destructorCall(c, t.destructor, x)
of attachedTrace:
@@ -741,18 +664,11 @@ proc fillStrOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
of attachedAsgn, attachedDeepCopy, attachedDup:
body.add callCodegenProc(c.g, "nimAsgnStrV2", c.info, genAddr(c, x), y)
of attachedSink:
if c.g.config.usesSso():
# SmallString: destroy old dst, then bit-copy src (no rc increment — this is a move).
# No .p aliasing check needed; rc-based destroy handles COW sharing correctly.
doAssert t.destructor != nil
body.add destructorCall(c, t.destructor, x)
body.add newAsgnStmt(x, y)
else:
let moveCall = genBuiltin(c, mMove, "move", x)
moveCall.add y
doAssert t.destructor != nil
moveCall.add destructorCall(c, t.destructor, x)
body.add moveCall
let moveCall = genBuiltin(c, mMove, "move", x)
moveCall.add y
doAssert t.destructor != nil
moveCall.add destructorCall(c, t.destructor, x)
body.add moveCall
of attachedDestructor:
body.add genBuiltin(c, mDestroy, "destroy", x)
of attachedTrace:
@@ -784,73 +700,28 @@ proc atomicRefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
dest[] = source
decRef tmp
For YRC the write barrier is more complicated still and must be:
let tmp = dest
# assignment must come first so that the collector sees the most-recent graph:
atomic: dest[] = source
# Then teach the cycle collector about the changes edge (these use locks, see yrc.nim):
incRef source
decRef tmp
This is implemented as a single runtime call (nimAsgnYrc / nimSinkYrc).
]#
var actions = newNodeI(nkStmtList, c.info)
let elemType = t.elementType
createTypeBoundOps(c.g, c.c, elemType, c.info, c.idgen)
let isCyclic = c.g.config.selectedGC == gcOrc and types.canFormAcycle(c.g, elemType)
# YRC uses dedicated runtime procs for the entire write barrier -- but ONLY
# for refs that can actually form cycles. Routing an acyclic ref through
# `nimAsgnYrc` defeats the entire purpose of `.acyclic`: the barrier defers
# the dec into a stripe queue, `drainStripe` then hands the cell to
# `registerLocal`, and it enters the collector as a capture ROOT -- so a
# type annotated precisely to stay out of the cycle collector gets traced
# by it anyway. (The collector never reaches such a cell by TRAVERSAL: the
# attachedTrace hook below only emits `nimTraceRef` when `isCyclic`. The
# queued dec was the only way in.)
#
# Falling through instead gives acyclic refs the same prompt arc-style
# reclamation they get under --mm:arc/orc, which is also what lets a thread
# that avoids cycles at compile time avoid the collector entirely at run
# time. `canFormAcycle` is the same predicate ccgtypes.nim:1903 uses to set
# the descriptor's acyclic flag, so codegen and runtime cannot disagree.
if c.g.config.selectedGC == gcYrc and types.canFormAcycle(c.g, elemType):
let desc =
if isFinal(elemType):
let ti = genBuiltin(c, mGetTypeInfoV2, "getTypeInfoV2", newNodeIT(nkType, x.info, elemType))
ti.typ = getSysType(c.g, c.info, tyPointer)
ti
else:
newNodeIT(nkNilLit, c.info, getSysType(c.g, c.info, tyPointer))
case c.kind
of attachedAsgn, attachedDup:
body.add callCodegenProc(c.g, "nimAsgnYrc", c.info, genAddr(c, x), y, desc)
return
of attachedSink:
body.add callCodegenProc(c.g, "nimSinkYrc", c.info, genAddr(c, x), y, desc)
return
else: discard # fall through for destructor, trace, wasMoved
let isCyclic = c.g.config.selectedGC in {gcOrc, gcYrc} and types.canFormAcycle(c.g, elemType)
let isInheritableAcyclicRef = c.g.config.selectedGC in {gcOrc, gcYrc} and
let isInheritableAcyclicRef = c.g.config.selectedGC == gcOrc and
(not isPureObject(elemType)) and
tfAcyclic in skipTypes(elemType, abstractInst+{tyOwned}-{tyTypeDesc}).flags
# dynamic Acyclic refs need to use dyn decRef
let useStatic = isFinal(elemType)
let tmp =
if isCyclic and c.kind in {attachedAsgn, attachedSink, attachedDup}:
declareTempOf(c, body, x)
else:
x
if useStatic:
if isFinal(elemType):
addDestructorCall(c, elemType, actions, genDeref(tmp, nkDerefExpr))
var alignOf = genBuiltin(c, mAlignOf, "alignof", newNodeIT(nkType, c.info, elemType))
alignOf.typ = getSysType(c.g, c.info, tyInt)
alignOf.typ() = getSysType(c.g, c.info, tyInt)
actions.add callCodegenProc(c.g, "nimRawDispose", c.info, tmp, alignOf)
else:
addDestructorCall(c, elemType, newNodeI(nkStmtList, c.info), genDeref(tmp, nkDerefExpr))
@@ -858,9 +729,9 @@ proc atomicRefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
var cond: PNode
if isCyclic:
if useStatic:
if isFinal(elemType):
let typInfo = genBuiltin(c, mGetTypeInfoV2, "getTypeInfoV2", newNodeIT(nkType, x.info, elemType))
typInfo.typ = getSysType(c.g, c.info, tyPointer)
typInfo.typ() = getSysType(c.g, c.info, tyPointer)
cond = callCodegenProc(c.g, "nimDecRefIsLastCyclicStatic", c.info, tmp, typInfo)
else:
cond = callCodegenProc(c.g, "nimDecRefIsLastCyclicDyn", c.info, tmp)
@@ -868,7 +739,7 @@ proc atomicRefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
cond = callCodegenProc(c.g, "nimDecRefIsLastDyn", c.info, x)
else:
cond = callCodegenProc(c.g, "nimDecRefIsLast", c.info, x)
cond.typ = getSysType(c.g, x.info, tyBool)
cond.typ() = getSysType(c.g, x.info, tyBool)
case c.kind
of attachedSink:
@@ -893,9 +764,9 @@ proc atomicRefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
of attachedDeepCopy: assert(false, "cannot happen")
of attachedTrace:
if isCyclic:
if useStatic:
if isFinal(elemType):
let typInfo = genBuiltin(c, mGetTypeInfoV2, "getTypeInfoV2", newNodeIT(nkType, x.info, elemType))
typInfo.typ = getSysType(c.g, c.info, tyPointer)
typInfo.typ() = getSysType(c.g, c.info, tyPointer)
body.add callCodegenProc(c.g, "nimTraceRef", c.info, genAddrOf(x, c.idgen), typInfo, y)
else:
# If the ref is polymorphic we have to account for this
@@ -916,28 +787,9 @@ proc atomicClosureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
## Closures are really like refs except they always use a virtual destructor
## and we need to do the refcounting only on the ref field which we call 'xenv':
let xenv = genBuiltin(c, mAccessEnv, "accessEnv", x)
xenv.typ = getSysType(c.g, c.info, tyPointer)
xenv.typ() = getSysType(c.g, c.info, tyPointer)
# Closures are (fnPtr, env) pairs. nimAsgnYrc/nimSinkYrc handle the env pointer
# (atomic store + buffered inc/dec). We also need newAsgnStmt to copy the fnPtr.
if c.g.config.selectedGC == gcYrc:
let nilDesc = newNodeIT(nkNilLit, c.info, getSysType(c.g, c.info, tyPointer))
let yenv = genBuiltin(c, mAccessEnv, "accessEnv", y)
yenv.typ = getSysType(c.g, c.info, tyPointer)
case c.kind
of attachedAsgn, attachedDup:
# nimAsgnYrc: save old env, atomic store new env, inc new env, dec old env
body.add callCodegenProc(c.g, "nimAsgnYrc", c.info, genAddr(c, xenv), yenv, nilDesc)
# Raw struct copy to also update the function pointer (env write is redundant but benign)
body.add newAsgnStmt(x, y)
return
of attachedSink:
body.add callCodegenProc(c.g, "nimSinkYrc", c.info, genAddr(c, xenv), yenv, nilDesc)
body.add newAsgnStmt(x, y)
return
else: discard # fall through for destructor, trace, wasMoved
let isCyclic = c.g.config.selectedGC in {gcOrc, gcYrc}
let isCyclic = c.g.config.selectedGC == gcOrc
let tmp =
if isCyclic and c.kind in {attachedAsgn, attachedSink, attachedDup}:
declareTempOf(c, body, xenv)
@@ -951,7 +803,7 @@ proc atomicClosureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
if isCyclic: "nimDecRefIsLastCyclicDyn"
else: "nimDecRefIsLast"
let cond = callCodegenProc(c.g, decRefProc, c.info, tmp)
cond.typ = getSysType(c.g, x.info, tyBool)
cond.typ() = getSysType(c.g, x.info, tyBool)
case c.kind
of attachedSink:
@@ -963,18 +815,19 @@ proc atomicClosureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
body.add newAsgnStmt(x, y)
of attachedAsgn:
let yenv = genBuiltin(c, mAccessEnv, "accessEnv", y)
yenv.typ = getSysType(c.g, c.info, tyPointer)
yenv.typ() = getSysType(c.g, c.info, tyPointer)
if isCyclic:
body.add genIf(c, yenv, callCodegenProc(c.g, "nimIncRefCyclic", c.info, yenv, getCycleParam(c)))
body.add newAsgnStmt(x, y)
body.add genIf(c, cond, actions)
else:
body.add genIf(c, yenv, callCodegenProc(c.g, "nimIncRef", c.info, yenv))
body.add genIf(c, cond, actions)
body.add newAsgnStmt(x, y)
of attachedDup:
let yenv = genBuiltin(c, mAccessEnv, "accessEnv", y)
yenv.typ = getSysType(c.g, c.info, tyPointer)
yenv.typ() = getSysType(c.g, c.info, tyPointer)
if isCyclic:
body.add newAsgnStmt(x, y)
body.add genIf(c, yenv, callCodegenProc(c.g, "nimIncRefCyclic", c.info, yenv, getCycleParam(c)))
@@ -1026,7 +879,7 @@ proc ownedRefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
if isFinal(elemType):
addDestructorCall(c, elemType, actions, genDeref(x, nkDerefExpr))
var alignOf = genBuiltin(c, mAlignOf, "alignof", newNodeIT(nkType, c.info, elemType))
alignOf.typ = getSysType(c.g, c.info, tyInt)
alignOf.typ() = getSysType(c.g, c.info, tyInt)
actions.add callCodegenProc(c.g, "nimRawDispose", c.info, x, alignOf)
else:
addDestructorCall(c, elemType, newNodeI(nkStmtList, c.info), genDeref(x, nkDerefExpr))
@@ -1049,14 +902,14 @@ proc closureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
# a big problem is that we don't know the environment's type here, so we
# have to go through some indirection; we delegate this to the codegen:
let call = newNodeI(nkCall, c.info, 2)
call.typ = t
call.typ() = t
call[0] = newSymNode(createMagic(c.g, c.idgen, "deepCopy", mDeepCopy))
call[1] = y
body.add newAsgnStmt(x, call)
elif (optOwnedRefs in c.g.config.globalOptions and
optRefCheck in c.g.config.options) or c.g.config.selectedGC in {gcArc, gcAtomicArc, gcOrc, gcYrc}:
optRefCheck in c.g.config.options) or c.g.config.selectedGC in {gcArc, gcAtomicArc, gcOrc}:
let xx = genBuiltin(c, mAccessEnv, "accessEnv", x)
xx.typ = getSysType(c.g, c.info, tyPointer)
xx.typ() = getSysType(c.g, c.info, tyPointer)
case c.kind
of attachedSink:
# we 'nil' y out afterwards so we *need* to take over its reference
@@ -1065,13 +918,13 @@ proc closureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
body.add newAsgnStmt(x, y)
of attachedAsgn:
let yy = genBuiltin(c, mAccessEnv, "accessEnv", y)
yy.typ = getSysType(c.g, c.info, tyPointer)
yy.typ() = getSysType(c.g, c.info, tyPointer)
body.add genIf(c, yy, callCodegenProc(c.g, "nimIncRef", c.info, yy))
body.add genIf(c, xx, callCodegenProc(c.g, "nimDecWeakRef", c.info, xx))
body.add newAsgnStmt(x, y)
of attachedDup:
let yy = genBuiltin(c, mAccessEnv, "accessEnv", y)
yy.typ = getSysType(c.g, c.info, tyPointer)
yy.typ() = getSysType(c.g, c.info, tyPointer)
body.add newAsgnStmt(x, y)
body.add genIf(c, yy, callCodegenProc(c.g, "nimIncRef", c.info, yy))
of attachedDestructor:
@@ -1086,7 +939,7 @@ proc closureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
proc ownedClosureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
let xx = genBuiltin(c, mAccessEnv, "accessEnv", x)
xx.typ = getSysType(c.g, c.info, tyPointer)
xx.typ() = getSysType(c.g, c.info, tyPointer)
var actions = newNodeI(nkStmtList, c.info)
#discard addDestructorCall(c, elemType, newNodeI(nkStmtList, c.info), genDeref(xx))
actions.add callCodegenProc(c.g, "nimDestroyAndDispose", c.info, xx)
@@ -1105,20 +958,11 @@ proc ownedClosureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
proc fillBody(c: var TLiftCtx; t: PType; body, x, y: PNode) =
case t.kind
of tyNone, tyEmpty, tyVoid: discard
of tyUncheckedArray:
# An UncheckedArray has no known length, so it cannot be copied, moved or
# destroyed as a value: it only ever lives behind a pointer and its bytes
# are managed manually (element ops for seqs/strings go through the
# seq/string hooks, which know the length). Emitting `x = y` for it (as the
# pointer-like group below does) produces an assignment of an unsized array,
# which the C backend cannot lower (genAssignment: tyUncheckedArray). So all
# value hooks for it are no-ops.
discard
of tyPointer, tySet, tyBool, tyChar, tyEnum, tyInt..tyUInt64, tyCstring,
tyPtr, tyVar, tyLent:
tyPtr, tyUncheckedArray, tyVar, tyLent:
defaultOp(c, t, body, x, y)
of tyRef:
if c.g.config.selectedGC in {gcArc, gcOrc, gcYrc, gcAtomicArc}:
if c.g.config.selectedGC in {gcArc, gcOrc, gcAtomicArc}:
atomicRefOp(c, t, body, x, y)
elif (optOwnedRefs in c.g.config.globalOptions and
optRefCheck in c.g.config.options):
@@ -1127,7 +971,7 @@ proc fillBody(c: var TLiftCtx; t: PType; body, x, y: PNode) =
defaultOp(c, t, body, x, y)
of tyProc:
if t.callConv == ccClosure:
if c.g.config.selectedGC in {gcArc, gcOrc, gcYrc, gcAtomicArc}:
if c.g.config.selectedGC in {gcArc, gcOrc, gcAtomicArc}:
atomicClosureOp(c, t, body, x, y)
else:
closureOp(c, t, body, x, y)
@@ -1185,15 +1029,20 @@ proc fillBody(c: var TLiftCtx; t: PType; body, x, y: PNode) =
body.add genBuiltin(c, mWasMoved, "wasMoved", x)
else:
fillBodyObjT(c, t, body, x, y)
elif tfUnion in t.flags: # bug #25236
defaultOp(c, t, body, x, y)
else:
if not considerInferDupFromCopy(c, t, body, x, y):
if c.kind == attachedDup:
var op2 = getAttachedOp(c.g, t, attachedAsgn)
if op2 != nil and sfOverridden in op2.flags:
#markUsed(c.g.config, c.info, op, c.g.usageSym)
onUse(c.info, op2)
body.add newHookCall(c, t.assignment, x, y)
else:
fillBodyObjT(c, t, body, x, y)
else:
fillBodyObjT(c, t, body, x, y)
of tyDistinct:
if not considerUserDefinedOp(c, t, body, x, y):
if not considerInferDupFromCopy(c, t, body, x, y):
fillBody(c, t.elementType, body, x, y)
fillBody(c, t.elementType, body, x, y)
of tyTuple:
fillBodyTup(c, t, body, x, y)
of tyVarargs, tyOpenArray:
@@ -1240,7 +1089,7 @@ proc symDupPrototype(g: ModuleGraph; typ: PType; owner: PSym; kind: TTypeAttache
result.typ.addParam src
if g.config.selectedGC in {gcOrc, gcYrc} and
if g.config.selectedGC == gcOrc and
cyclicType(g, typ.skipTypes(abstractInst)):
let cycleParam = newSym(skParam, getIdent(g.cache, "cyclic"),
idgen, result, info)
@@ -1254,8 +1103,8 @@ proc symDupPrototype(g: ModuleGraph; typ: PType; owner: PSym; kind: TTypeAttache
n[bodyPos] = newNodeI(nkStmtList, info)
n[resultPos] = newSymNode(res)
result.ast = n
incl result.flagsImpl, {sfFromGeneric, sfGeneratedOp}
setHookDisamb(g, result, AttachedOpToStr[kind], typ)
incl result.flags, sfFromGeneric
incl result.flags, sfGeneratedOp
proc symPrototype(g: ModuleGraph; typ: PType; owner: PSym; kind: TTypeAttachedOp;
info: TLineInfo; idgen: IdGenerator; isDiscriminant = false): PSym =
@@ -1268,7 +1117,7 @@ proc symPrototype(g: ModuleGraph; typ: PType; owner: PSym; kind: TTypeAttachedOp
let src = newSym(skParam, getIdent(g.cache, if kind == attachedTrace: "env" else: "src"),
idgen, result, info)
if kind == attachedDestructor and g.config.selectedGC in {gcArc, gcOrc, gcYrc, gcAtomicArc} and
if kind == attachedDestructor and g.config.selectedGC in {gcArc, gcOrc, gcAtomicArc} and
((g.config.isDefined("nimPreviewNonVarDestructor") and not isDiscriminant) or (typ.kind in {tyRef, tyString, tySequence})):
dest.typ = typ
else:
@@ -1284,7 +1133,7 @@ proc symPrototype(g: ModuleGraph; typ: PType; owner: PSym; kind: TTypeAttachedOp
if kind notin {attachedDestructor, attachedWasMoved}:
result.typ.addParam src
if kind == attachedAsgn and g.config.selectedGC in {gcOrc, gcYrc} and
if kind == attachedAsgn and g.config.selectedGC == gcOrc and
cyclicType(g, typ.skipTypes(abstractInst)):
let cycleParam = newSym(skParam, getIdent(g.cache, "cyclic"),
idgen, result, info)
@@ -1297,37 +1146,23 @@ proc symPrototype(g: ModuleGraph; typ: PType; owner: PSym; kind: TTypeAttachedOp
n[paramsPos] = result.typ.n
n[bodyPos] = newNodeI(nkStmtList, info)
result.ast = n
incl result.flagsImpl, sfFromGeneric
incl result.flagsImpl, sfGeneratedOp
incl result.flags, sfFromGeneric
incl result.flags, sfGeneratedOp
if kind == attachedWasMoved:
incl result.flagsImpl, sfNoSideEffect
incl result.typ, tfNoSideEffect
if not isDiscriminant:
# discriminant destructors derive their body from the enclosing object
# AND the selected field; their key is set at the call site
setHookDisamb(g, result, AttachedOpToStr[kind], typ)
incl result.flags, sfNoSideEffect
incl result.typ.flags, tfNoSideEffect
proc genTypeFieldCopy(c: var TLiftCtx; t: PType; body, x, y: PNode) =
let xx = genBuiltin(c, mAccessTypeField, "accessTypeField", x)
let yy = genBuiltin(c, mAccessTypeField, "accessTypeField", y)
xx.typ = getSysType(c.g, c.info, tyPointer)
yy.typ = xx.typ
xx.typ() = getSysType(c.g, c.info, tyPointer)
yy.typ() = xx.typ
body.add newAsgnStmt(xx, yy)
proc produceSym(g: ModuleGraph; c: PContext; typ: PType; kind: TTypeAttachedOp;
info: TLineInfo; idgen: IdGenerator): PSym =
if typ.kind == tyDistinct:
# For =dup, if the distinct type has a user-defined =copy, don't delegate
# to the base type. Instead fall through to the normal produceSym logic
# so that fillBody -> considerInferDupFromCopy can synthesize =dup from =copy.
if kind == attachedDup:
let copyOp = getAttachedOp(g, typ, attachedAsgn)
if copyOp != nil and sfOverridden in copyOp.flags:
discard "fall through to normal produceSym logic"
else:
return produceSymDistinctType(g, c, typ, kind, info, idgen)
else:
return produceSymDistinctType(g, c, typ, kind, info, idgen)
return produceSymDistinctType(g, c, typ, kind, info, idgen)
result = getAttachedOp(g, typ, kind)
if result == nil:
@@ -1348,48 +1183,35 @@ proc produceSym(g: ModuleGraph; c: PContext; typ: PType; kind: TTypeAttachedOp;
if kind == attachedSink and destructorOverridden(g, typ):
## compiler can use a combination of `=destroy` and memCopy for sink op
ensureMutable dest
dest.flagsImpl.incl sfCursor
dest.flags.incl sfCursor
let op = getAttachedOp(g, typ, attachedDestructor)
result.ast[bodyPos].add newOpCall(a, op, if op.typ.firstParamType.kind == tyVar: d[0] else: d)
result.ast[bodyPos].add newAsgnStmt(d, src)
else:
var tk: TTypeKind
var skipped: PType = nil
if g.config.selectedGC in {gcArc, gcOrc, gcYrc, gcHooks, gcAtomicArc}:
skipped = skipTypes(typ, {tyOrdinal, tyRange, tyInferred, tyGenericInst, tyStatic, tyAlias, tySink})
tk = skipped.kind
if g.config.selectedGC in {gcArc, gcOrc, gcHooks, gcAtomicArc}:
tk = skipTypes(typ, {tyOrdinal, tyRange, tyInferred, tyGenericInst, tyStatic, tyAlias, tySink}).kind
else:
tk = tyNone # no special casing for strings and seqs
case tk
of tySequence:
let needsYrcLock = g.config.selectedGC == gcYrc and
kind in {attachedDestructor, attachedSink, attachedAsgn, attachedDeepCopy, attachedDup} and
types.canFormAcycle(g, skipped.elementType)
# YRC: topology-changing seq ops must hold the mutator (read) lock
if needsYrcLock:
result.ast[bodyPos].add callCodegenProc(g, "acquireMutatorLock", info)
fillSeqOp(a, typ, result.ast[bodyPos], d, src)
if needsYrcLock:
result.ast[bodyPos].add callCodegenProc(g, "releaseMutatorLock", info)
of tyString:
fillStrOp(a, typ, result.ast[bodyPos], d, src)
else:
fillBody(a, typ, result.ast[bodyPos], d, src)
if tk == tyObject and a.kind in {attachedAsgn, attachedSink, attachedDeepCopy, attachedDup} and not isObjLackingTypeField(skipped):
if tk == tyObject and a.kind in {attachedAsgn, attachedSink, attachedDeepCopy, attachedDup} and not isObjLackingTypeField(typ):
# bug #19205: Do not forget to also copy the hidden type field:
genTypeFieldCopy(a, typ, result.ast[bodyPos], d, src)
if not a.canRaise:
ensureMutable result
incl result.flagsImpl, sfNeverRaises
incl result.flags, sfNeverRaises
result.ast[pragmasPos] = newNodeI(nkPragma, info)
result.ast[pragmasPos].add newTree(nkExprColonExpr,
newIdentNode(g.cache.getIdent("raises"), info), newNodeI(nkBracket, info))
if kind == attachedDestructor:
ensureMutable result
incl result.optionsImpl, optQuirky
incl result.options, optQuirky
completePartialOp(g, idgen.module, typ, kind, result)
@@ -1398,7 +1220,6 @@ proc produceDestructorForDiscriminator*(g: ModuleGraph; typ: PType; field: PSym,
assert(typ.skipTypes({tyAlias, tyGenericInst}).kind == tyObject)
# discrimantor assignments needs pointers to destroy fields; alas, we cannot use non-var destructor here
result = symPrototype(g, field.typ, typ.owner, attachedDestructor, info, idgen, isDiscriminant = true)
setHookDisamb(g, result, "=destroy¦" & field.name.s & "¦" & $field.position, typ)
var a = TLiftCtx(info: info, g: g, kind: attachedDestructor, asgnForType: typ, idgen: idgen,
fn: result)
a.asgnForType = typ
@@ -1415,9 +1236,7 @@ proc produceDestructorForDiscriminator*(g: ModuleGraph; typ: PType; field: PSym,
result.ast[bodyPos].add v
let placeHolder = newNodeIT(nkSym, info, getSysType(g, info, tyPointer))
fillBody(a, typ, result.ast[bodyPos], d, placeHolder)
if not a.canRaise:
ensureMutable result
incl result.flagsImpl, sfNeverRaises
if not a.canRaise: incl result.flags, sfNeverRaises
template liftTypeBoundOps*(c: PContext; typ: PType; info: TLineInfo) =
@@ -1452,7 +1271,7 @@ proc inst(g: ModuleGraph; c: PContext; t: PType; kind: TTypeAttachedOp; idgen: I
else:
localError(g.config, info, "unresolved generic parameter")
proc isTrivial*(s: PSym): bool {.inline.} =
proc isTrival*(s: PSym): bool {.inline.} =
s == nil or (s.ast != nil and s.ast[bodyPos].len == 0)
proc createTypeBoundOps(g: ModuleGraph; c: PContext; orig: PType; info: TLineInfo;
@@ -1461,13 +1280,11 @@ proc createTypeBoundOps(g: ModuleGraph; c: PContext; orig: PType; info: TLineInf
## to ensure we lift assignment, destructors and moves properly.
## The later 'injectdestructors' pass depends on it.
if orig == nil or {tfCheckedForDestructor, tfHasMeta} * orig.flags != {}: return
# IC: review this solution again later
incl orig.flagsImpl, tfCheckedForDestructor
incl orig.flags, tfCheckedForDestructor
# for user defined generic destructors:
let origRoot = genericRoot(orig)
if origRoot != nil:
# IC: review this solution again later
incl origRoot.flagsImpl, tfGenericHasDestructor
incl origRoot.flags, tfGenericHasDestructor
let skipped = orig.skipTypes({tyGenericInst, tyAlias, tySink})
if isEmptyContainer(skipped) or skipped.kind == tyStatic: return
@@ -1487,13 +1304,13 @@ proc createTypeBoundOps(g: ModuleGraph; c: PContext; orig: PType; info: TLineInf
# we do not generate '=trace' procs if we
# have the cycle detection disabled, saves code size.
let lastAttached = if g.config.selectedGC in {gcOrc, gcYrc}: attachedTrace
let lastAttached = if g.config.selectedGC == gcOrc: attachedTrace
else: attachedSink
# bug #15122: We need to produce all prototypes before entering the
# mind boggling recursion. Hacks like these imply we should rewrite
# this module.
var generics = default(array[attachedWasMoved..attachedTrace, bool])
var generics: array[attachedWasMoved..attachedTrace, bool] = default(array[attachedWasMoved..attachedTrace, bool])
for k in attachedWasMoved..lastAttached:
generics[k] = getAttachedOp(g, canon, k) != nil
if not generics[k]:
@@ -1509,9 +1326,8 @@ proc createTypeBoundOps(g: ModuleGraph; c: PContext; orig: PType; info: TLineInf
if canon != orig:
setAttachedOp(g, idgen.module, orig, k, getAttachedOp(g, canon, k))
if not isTrivial(getAttachedOp(g, orig, attachedDestructor)):
#or not isTrivial(orig.assignment) or
# not isTrivial(orig.sink):
# IC: review this solution again later
orig.flagsImpl.incl tfHasAsgn
if not isTrival(getAttachedOp(g, orig, attachedDestructor)):
#or not isTrival(orig.assignment) or
# not isTrival(orig.sink):
orig.flags.incl tfHasAsgn
# ^ XXX Breaks IC!

View File

@@ -32,12 +32,12 @@ proc interestingVar(s: PSym): bool {.inline.} =
proc lookupOrAdd(c: var Ctx; s: PSym; info: TLineInfo): PNode =
let field = addUniqueField(c.objType, s, c.cache, c.idgen)
var deref = newNodeI(nkHiddenDeref, info)
deref.typ = c.objType
deref.typ() = c.objType
deref.add(newSymNode(c.partialParam, info))
result = newNodeI(nkDotExpr, info)
result.add(deref)
result.add(newSymNode(field))
result.typ = field.typ
result.typ() = field.typ
proc liftLocals(n: PNode; i: int; c: var Ctx) =
let it = n[i]

View File

@@ -93,14 +93,10 @@ type
warnBareExcept = "BareExcept",
warnImplicitDefaultValue = "ImplicitDefaultValue",
warnIgnoredSymbolInjection = "IgnoredSymbolInjection",
warnStdPrefix = "StdPrefix",
warnUnknownNotes = "UnknownNotes",
warnLongLiterals = "LongLiterals",
warnStdPrefix = "StdPrefix"
warnUnknownNotes = "UnknownNotes"
warnUser = "User",
warnGlobalVarConstructorTemporary = "GlobalVarConstructorTemporary",
warnImplicitRangeConversion = "ImplicitRangeConversion",
warnSystemRangeConversion = "SystemRangeConversion",
warnInvalidCmpOp = "InvalidCmpOp",
# hints
hintSuccess = "Success", hintSuccessX = "SuccessX",
hintCC = "CC",
@@ -206,12 +202,8 @@ const
warnIgnoredSymbolInjection: "$1",
warnStdPrefix: "$1 needs the 'std' prefix",
warnUnknownNotes: "$1",
warnLongLiterals: "$1",
warnUser: "$1",
warnGlobalVarConstructorTemporary: "global variable '$1' initialization requires a temporary variable",
warnImplicitRangeConversion: "implicit range conversion $1",
warnSystemRangeConversion: "implicit range conversion $1",
warnInvalidCmpOp: "$1",
hintSuccess: "operation successful: $#",
# keep in sync with `testament.isSuccess`
hintSuccessX: "$build\n$loc lines; ${sec}s; $mem; proj: $project; out: $output",
@@ -266,9 +258,9 @@ type
proc computeNotesVerbosity(): array[0..3, TNoteKinds] =
result = default(array[0..3, TNoteKinds])
result[3] = {low(TNoteKind)..high(TNoteKind)} - {warnObservableStores, warnResultUsed, warnAnyEnumConv, warnBareExcept, warnStdPrefix, warnSystemRangeConversion}
result[3] = {low(TNoteKind)..high(TNoteKind)} - {warnObservableStores, warnResultUsed, warnAnyEnumConv, warnBareExcept, warnStdPrefix}
result[2] = result[3] - {hintStackTrace, hintExtendedContext, hintDeclaredLoc, hintProcessingStmt}
result[1] = result[2] - {warnImplicitRangeConversion, warnProveField, warnProveIndex,
result[1] = result[2] - {warnProveField, warnProveIndex,
warnGcUnsafe, hintPath, hintDependency, hintCodeBegin, hintCodeEnd,
hintSource, hintGlobalVar, hintGCStats, hintMsgOrigin, hintPerformance}
result[0] = result[1] - {hintSuccessX, hintSuccess, hintConf,
@@ -281,10 +273,6 @@ const
errFloatToString* = "cannot convert '$1' to '$2'"
type
FileInfoKind* = enum
fikSource, ## A real source file path
fikNifModule ## A NIF module suffix (not a real path)
TFileInfo* = object
fullPath*: AbsoluteFile # This is a canonical full filesystem path
projPath*: RelativeFile # This is relative to the project's root
@@ -303,7 +291,6 @@ type
# for 'nimsuggest'
hash*: string # the checksum of the file
dirty*: bool # for 'nimpretty' like tooling
kind*: FileInfoKind # distinguishes real files from NIF suffixes
when defined(nimpretty):
fullContent*: string
FileIndex* = distinct int32

View File

@@ -95,7 +95,7 @@ proc nep1CheckDefImpl(conf: ConfigRef; info: TLineInfo; s: PSym; k: TSymKind) =
template styleCheckDef*(ctx: PContext; info: TLineInfo; sym: PSym; k: TSymKind) =
## Check symbol definitions adhere to NEP1 style rules.
if optStyleCheck in ctx.config.options and # ignore if styleChecks are off
{optStyleHint, optStyleError, optStyleWarning} * ctx.config.globalOptions != {} and # check only if hint/error/warning is enabled
{optStyleHint, optStyleError} * ctx.config.globalOptions != {} and # check only if hint/error is enabled
hintName in ctx.config.notes and # ignore if name checks are not requested
ctx.config.belongsToProjectPackageMaybeNil(getModule(ctx.graph, info.fileIndex)) and # ignore foreign packages
optStyleUsages notin ctx.config.globalOptions and # ignore if requested to only check name usage
@@ -136,7 +136,7 @@ proc styleCheckUseImpl(conf: ConfigRef; info: TLineInfo; s: PSym) =
template styleCheckUse*(ctx: PContext; info: TLineInfo; sym: PSym) =
## Check symbol uses match their definition's style.
if {optStyleHint, optStyleError, optStyleWarning} * ctx.config.globalOptions != {} and # ignore if styleChecks are off
if {optStyleHint, optStyleError} * ctx.config.globalOptions != {} and # ignore if styleChecks are off
hintName in ctx.config.notes and # ignore if name checks are not requested
ctx.config.belongsToProjectPackageMaybeNil(getModule(ctx.graph, info.fileIndex)) and # ignore foreign packages
sym.kind != skTemp and # ignore temporary variables created by the compiler
@@ -152,7 +152,7 @@ proc checkPragmaUseImpl(conf: ConfigRef; info: TLineInfo; w: TSpecialWord; pragm
template checkPragmaUse*(ctx: PContext; info: TLineInfo; w: TSpecialWord; pragmaName: string, sym: PSym) =
## Check builtin pragma uses match their definition's style.
## Note: This only applies to builtin pragmas, not user pragmas.
if {optStyleHint, optStyleError, optStyleWarning} * ctx.config.globalOptions != {} and # ignore if styleChecks are off
if {optStyleHint, optStyleError} * ctx.config.globalOptions != {} and # ignore if styleChecks are off
hintName in ctx.config.notes and # ignore if name checks are not requested
ctx.config.belongsToProjectPackageMaybeNil(getModule(ctx.graph, info.fileIndex)): # ignore foreign packages
checkPragmaUseImpl(ctx.config, info, w, pragmaName)

View File

@@ -163,7 +163,7 @@ proc llReadFromStdin(s: PLLStream, buf: pointer, bufLen: int): int =
inc(s.lineOffset)
result = min(bufLen, s.s.len - s.rd)
if result > 0:
copyMem(buf, readRawData(s.s, s.rd), result)
copyMem(buf, addr(s.s[s.rd]), result)
inc(s.rd, result)
proc llStreamRead*(s: PLLStream, buf: pointer, bufLen: int): int =
@@ -173,7 +173,7 @@ proc llStreamRead*(s: PLLStream, buf: pointer, bufLen: int): int =
of llsString:
result = min(bufLen, s.s.len - s.rd)
if result > 0:
copyMem(buf, readRawData(s.s, s.rd), result)
copyMem(buf, addr(s.s[0 + s.rd]), result)
inc(s.rd, result)
of llsFile:
result = readBuffer(s.f, buf, bufLen)

View File

@@ -75,13 +75,10 @@ proc addUniqueSym*(scope: PScope, s: PSym): PSym =
proc openScope*(c: PContext): PScope {.discardable.} =
result = PScope(parent: c.currentScope,
symbols: initStrTable(),
depthLevel: c.scopeDepth + 1,
optionStackLen: c.optionStack.len)
depthLevel: c.scopeDepth + 1)
c.currentScope = result
proc rawCloseScope*(c: PContext) =
if c.currentScope.optionStackLen >= 1:
c.optionStack.setLen(c.currentScope.optionStackLen)
c.currentScope = c.currentScope.parent
proc closeScope*(c: PContext) =
@@ -311,7 +308,7 @@ proc errorSym*(c: PContext, ident: PIdent, info: TLineInfo): PSym =
## creates an error symbol to avoid cascading errors (for IDE support)
result = newSym(skError, ident, c.idgen, getCurrOwner(c), info, {})
result.typ = errorType(c)
incl(result.flagsImpl, sfDiscardable)
incl(result.flags, sfDiscardable)
# pretend it's from the top level scope to prevent cascading errors:
if c.config.cmd != cmdInteractive and c.compilesContextId == 0:
c.moduleScope.addSym(result)
@@ -378,9 +375,6 @@ proc wrongRedefinition*(c: PContext; info: TLineInfo, s: string;
conflictsWith: TLineInfo, note = errGenerated) =
## Emit a redefinition error if in non-interactive mode
if c.config.cmd != cmdInteractive:
when defined(icDbgRefc):
echo "[icRedef] ", s
echo getStackTrace()
localError(c.config, info, note,
"redefinition of '$1'; previous declaration here: $2" %
[s, c.config $ conflictsWith])
@@ -391,7 +385,7 @@ proc addDeclAt*(c: PContext; scope: PScope, sym: PSym, info: TLineInfo) =
if sym.name.id == ord(wUnderscore): return
let conflict = scope.addUniqueSym(sym)
if conflict != nil:
if sym.kind == skModule and conflict.kind == skModule and not c.config.isDefined("nimPreviewDuplicateModuleError"):
if sym.kind == skModule and conflict.kind == skModule:
# e.g.: import foo; import foo
# xxx we could refine this by issuing a different hint for the case
# where a duplicate import happens inside an include.
@@ -415,6 +409,8 @@ proc addDecl*(c: PContext, sym: PSym) {.inline.} =
proc addPrelimDecl*(c: PContext, sym: PSym) =
discard c.currentScope.addUniqueSym(sym)
from ic / ic import addHidden
proc addInterfaceDeclAux(c: PContext, sym: PSym) =
## adds symbol to the module for either private or public access.
if sfExported in sym.flags:
@@ -423,6 +419,8 @@ proc addInterfaceDeclAux(c: PContext, sym: PSym) =
else: internalError(c.config, sym.info, "addInterfaceDeclAux")
elif sym.kind in ExportableSymKinds and c.module != nil and isTopLevelInsideDeclaration(c, sym):
strTableAdd(semtabAll(c.graph, c.module), sym)
if c.config.symbolFiles != disabledSf:
addHidden(c.encoder, c.packedRepr, sym)
proc addInterfaceDeclAt*(c: PContext, scope: PScope, sym: PSym) =
## adds a symbol on the scope and the interface if appropriate
@@ -462,15 +460,6 @@ proc openShadowScope*(c: PContext) =
symbols: initStrTable(),
depthLevel: c.scopeDepth)
proc rememberShadowDefs*(c: PContext) =
## bug #25693: a template/macro operand's local definitions are sem-checked in
## a shadow scope that is then discarded. Record those definitions so that a
## later re-emission (e.g. a captured `typed` fragment expanded more than once)
## can be detected as a redefinition rather than silently miscompiled.
for s in c.currentScope.symbols:
if s.kind in {skVar, skLet, skForVar} and {sfGenSym, sfWasGenSym} * s.flags == {}:
c.shadowDiscardedDefs.incl s.id
proc closeShadowScope*(c: PContext) =
## closes the shadow scope, but doesn't merge any of the symbols
## Does not check for unused symbols or missing forward decls since a macro

View File

@@ -82,7 +82,7 @@ proc lowerTupleUnpacking*(g: ModuleGraph; n: PNode; idgen: IdGenerator; owner: P
var temp = newSym(skTemp, getIdent(g.cache, genPrefix), idgen,
owner, value.info, g.config.options)
temp.typ = skipTypes(value.typ, abstractInst)
incl(temp.flagsImpl, sfFromGeneric)
incl(temp.flags, sfFromGeneric)
tempAsNode = newSymNode(temp)
var v = newNodeI(nkVarSection, value.info)
@@ -103,7 +103,7 @@ proc evalOnce*(g: ModuleGraph; value: PNode; idgen: IdGenerator; owner: PSym): P
var temp = newSym(skTemp, getIdent(g.cache, genPrefix), idgen,
owner, value.info, g.config.options)
temp.typ = skipTypes(value.typ, abstractInst)
incl(temp.flagsImpl, sfFromGeneric)
incl(temp.flags, sfFromGeneric)
var v = newNodeI(nkLetSection, value.info)
let tempAsNode = newSymNode(temp)
@@ -127,8 +127,8 @@ proc lowerSwap*(g: ModuleGraph; n: PNode; idgen: IdGenerator; owner: PSym): PNod
# note: cannot use 'skTemp' here cause we really need the copy for the VM :-(
var temp = newSym(skVar, getIdent(g.cache, genPrefix), idgen, owner, n.info, owner.options)
temp.typ = n[1].typ
incl(temp.flagsImpl, sfFromGeneric)
incl(temp.flagsImpl, sfGenSym)
incl(temp.flags, sfFromGeneric)
incl(temp.flags, sfGenSym)
var v = newNodeI(nkVarSection, n.info)
let tempAsNode = newSymNode(temp)
@@ -147,13 +147,13 @@ proc createObj*(g: ModuleGraph; idgen: IdGenerator; owner: PSym, info: TLineInfo
result = newType(tyObject, idgen, owner)
if final:
rawAddSon(result, nil)
incl result, tfFinal
incl result.flags, tfFinal
else:
rawAddSon(result, getCompilerProc(g, "RootObj").typ)
result.n = newNodeI(nkRecList, info)
let s = newSym(skType, getIdent(g.cache, "Env_" & toFilename(g.config, info) & "_" & $owner.name.s),
idgen, owner, info, owner.options)
incl s.flagsImpl, sfAnon
incl s.flags, sfAnon
s.typ = result
result.sym = s
@@ -174,12 +174,12 @@ proc rawIndirectAccess*(a: PNode; field: PSym; info: TLineInfo): PNode =
# returns a[].field as a node
assert field.kind == skField
var deref = newNodeI(nkHiddenDeref, info)
deref.typ = a.typ.skipTypes(abstractInst)[0]
deref.typ() = a.typ.skipTypes(abstractInst)[0]
deref.add a
result = newNodeI(nkDotExpr, info)
result.add deref
result.add newSymNode(field)
result.typ = field.typ
result.typ() = field.typ
proc rawDirectAccess*(obj, field: PSym): PNode =
# returns a.field as a node
@@ -187,7 +187,7 @@ proc rawDirectAccess*(obj, field: PSym): PNode =
result = newNodeI(nkDotExpr, field.info)
result.add newSymNode(obj)
result.add newSymNode(field)
result.typ = field.typ
result.typ() = field.typ
proc lookupInRecord(n: PNode, id: ItemId): PSym =
result = nil
@@ -207,70 +207,15 @@ proc lookupInRecord(n: PNode, id: ItemId): PSym =
if result != nil: return
else: discard
of nkSym:
if matchesDerivedFieldId(n.sym.itemId, id): result = n.sym
else: discard
proc lookupCapturedField(n: PNode, s: PSym): PSym =
## Find an env field that `addField` would have produced for the captured
## local `s`. Used as a fallback when the derived-itemId match fails because
## `s` is a macro-generated gensym whose process-local id diverges from the
## loaded env field's (see `addField`). `addField` always names a field
## `s.name & $field.position`, so that pair uniquely identifies the field for a
## local of this name without relying on the (unstable) item id.
result = nil
case n.kind
of nkRecList:
for i in 0..<n.len:
result = lookupCapturedField(n[i], s)
if result != nil: return
of nkRecCase:
if n[0].kind != nkSym: return
result = lookupCapturedField(n[0], s)
if result != nil: return
for i in 1..<n.len:
case n[i].kind
of nkOfBranch, nkElse:
result = lookupCapturedField(lastSon(n[i]), s)
if result != nil: return
else: discard
of nkSym:
if n.sym.kind == skField and n.sym.name.s == s.name.s & $n.sym.position:
result = n.sym
if n.sym.itemId.module == id.module and n.sym.itemId.item == -abs(id.item): result = n.sym
else: discard
proc addField*(obj: PType; s: PSym; cache: IdentCache; idgen: IdGenerator): PSym =
# Idempotent w.r.t. the captured symbol (mirrors `addUniqueField`): re-lifting
# a LOADED routine re-derives its transformed body (never serialized under IC)
# and re-captures the same locals, but the env object loaded from the NIF
# already carries their fields. Re-adding would duplicate the field and, worse,
# mutate a Sealed loaded type via `propagateToOwner` (the `t.state != Sealed`
# crash). Return the existing field instead.
let existing = lookupInRecord(obj.n, s.itemId)
if existing != nil:
return existing
# Re-lifting a LOADED routine during a VM transform (its transformed body is
# re-derived per process, never serialized) re-captures the same locals, but
# for a macro-generated gensym (e.g. libp2p `p2pProtocolBackendImpl`'s
# `msgVar`) its process-local id diverges from the one baked into the loaded
# env field, so the id match above misses. Reuse the existing same-named field
# rather than appending a divergent duplicate, which keeps the re-derived
# closure consistent (else a stale `:env` access reaches `cannotEval`).
# Confined to a loaded (Sealed) env: in a freshly built env ids are consistent,
# and two distinct same-named captures legitimately get distinct fields there.
if obj.state == Sealed:
let byName = lookupCapturedField(obj.n, s)
if byName != nil:
return byName
# Genuinely new field. Under IC the env may be a loaded Sealed type whose
# transform-time mutation is process-local (the body is discarded after the
# macro runs), so downgrade it to mutable instead of crashing on
# `t.state != Sealed` (mirrors `markAsClosure`).
unsealForTransform(obj)
# because of 'gensym' support, we have to mangle the name with its ID.
# This is hacky but the clean solution is much more complex than it looks.
var field = newSym(skField, getIdent(cache, s.name.s & $obj.n.len),
idgen, s.owner, s.info, s.options)
field.itemId = derivedFieldId(s.itemId)
field.itemId = ItemId(module: s.itemId.module, item: -s.itemId.item)
let t = skipIntLit(s.typ, idgen)
field.typ = t
if s.kind in {skLet, skVar, skField, skForVar}:
@@ -290,7 +235,7 @@ proc addUniqueField*(obj: PType; s: PSym; cache: IdentCache; idgen: IdGenerator)
if result == nil:
var field = newSym(skField, getIdent(cache, s.name.s & $obj.n.len), idgen,
s.owner, s.info, s.options)
field.itemId = derivedFieldId(s.itemId)
field.itemId = ItemId(module: s.itemId.module, item: -s.itemId.item)
let t = skipIntLit(s.typ, idgen)
field.typ = t
assert t.kind != tyTyped
@@ -305,12 +250,12 @@ proc newDotExpr*(obj, b: PSym): PNode =
assert field != nil, b.name.s
result.add newSymNode(obj)
result.add newSymNode(field)
result.typ = field.typ
result.typ() = field.typ
proc indirectAccess*(a: PNode, b: ItemId, info: TLineInfo): PNode =
# returns a[].b as a node
var deref = newNodeI(nkHiddenDeref, info)
deref.typ = a.typ.skipTypes(abstractInst).elementType
deref.typ() = a.typ.skipTypes(abstractInst).elementType
var t = deref.typ.skipTypes(abstractInst)
var field: PSym
while true:
@@ -328,12 +273,12 @@ proc indirectAccess*(a: PNode, b: ItemId, info: TLineInfo): PNode =
result = newNodeI(nkDotExpr, info)
result.add deref
result.add newSymNode(field)
result.typ = field.typ
result.typ() = field.typ
proc indirectAccess*(a: PNode, b: string, info: TLineInfo; cache: IdentCache): PNode =
# returns a[].b as a node
var deref = newNodeI(nkHiddenDeref, info)
deref.typ = a.typ.skipTypes(abstractInst).elementType
deref.typ() = a.typ.skipTypes(abstractInst).elementType
var t = deref.typ.skipTypes(abstractInst)
var field: PSym
let bb = getIdent(cache, b)
@@ -352,7 +297,7 @@ proc indirectAccess*(a: PNode, b: string, info: TLineInfo; cache: IdentCache): P
result = newNodeI(nkDotExpr, info)
result.add deref
result.add newSymNode(field)
result.typ = field.typ
result.typ() = field.typ
proc getFieldFromObj*(t: PType; v: PSym): PSym =
assert v.kind != skField
@@ -361,16 +306,6 @@ proc getFieldFromObj*(t: PType; v: PSym): PSym =
assert t.kind == tyObject
result = lookupInRecord(t.n, v.itemId)
if result != nil: break
# A LOADED (Sealed) env object carries fields baked by the producer process;
# re-lifting a NIF-loaded routine in a consumer (e.g. a macro VM-evaluating an
# imported `p2pProtocolBackendImpl`) re-captures the same local under a
# divergent process-local id, so the derived-itemId match misses. Fall back to
# the name+position identity `addField` uses — SYMMETRIC with `addField`'s
# Sealed by-name reuse — so the access resolves the field `addField` produced
# instead of failing with `not part of closure object type`.
if t.state == Sealed:
result = lookupCapturedField(t.n, v)
if result != nil: break
t = t.baseClass
if t == nil: break
t = t.skipTypes(skipPtrs)
@@ -385,7 +320,7 @@ proc indirectAccess*(a, b: PSym, info: TLineInfo): PNode =
proc genAddrOf*(n: PNode; idgen: IdGenerator; typeKind = tyPtr): PNode =
result = newNodeI(nkAddr, n.info, 1)
result[0] = n
result.typ = newType(typeKind, idgen, n.typ.owner)
result.typ() = newType(typeKind, idgen, n.typ.owner)
result.typ.rawAddSon(n.typ)
proc genDeref*(n: PNode; k = nkHiddenDeref): PNode =
@@ -409,18 +344,18 @@ proc callCodegenProc*(g: ModuleGraph; name: string;
if optionalArgs != nil:
for i in 1..<optionalArgs.len-2:
result.add optionalArgs[i]
result.typ = sym.typ.returnType
result.typ() = sym.typ.returnType
proc newIntLit*(g: ModuleGraph; info: TLineInfo; value: BiggestInt): PNode =
result = nkIntLit.newIntNode(value)
result.typ = getSysType(g, info, tyInt)
result.typ() = getSysType(g, info, tyInt)
proc genHigh*(g: ModuleGraph; n: PNode): PNode =
if skipTypes(n.typ, abstractVar).kind == tyArray:
result = newIntLit(g, n.info, toInt64(lastOrd(g.config, skipTypes(n.typ, abstractVar))))
else:
result = newNodeI(nkCall, n.info, 2)
result.typ = getSysType(g, n.info, tyInt)
result.typ() = getSysType(g, n.info, tyInt)
result[0] = newSymNode(getSysMagic(g, n.info, "high", mHigh))
result[1] = n
@@ -429,7 +364,7 @@ proc genLen*(g: ModuleGraph; n: PNode): PNode =
result = newIntLit(g, n.info, toInt64(lastOrd(g.config, skipTypes(n.typ, abstractVar)) + 1))
else:
result = newNodeI(nkCall, n.info, 2)
result.typ = getSysType(g, n.info, tyInt)
result.typ() = getSysType(g, n.info, tyInt)
result[0] = newSymNode(getSysMagic(g, n.info, "len", mLengthSeq))
result[1] = n

View File

@@ -10,8 +10,8 @@
# Built-in types and compilerprocs are registered here.
import
ast, msgs, platform, idents,
modulegraphs, lineinfos, types
ast, astalgo, msgs, platform, idents,
modulegraphs, lineinfos
export createMagic
@@ -134,7 +134,7 @@ proc getNimScriptSymbol*(g: ModuleGraph; name: string): PSym =
proc resetNimScriptSymbols*(g: ModuleGraph) = g.exposed = initStrTable()
proc getMagicEqSymForType*(g: ModuleGraph; t: PType; info: TLineInfo): PSym =
case t.skipTypes(abstractRange).kind
case t.kind
of tyInt, tyInt8, tyInt16, tyInt32, tyInt64,
tyUInt, tyUInt8, tyUInt16, tyUInt32, tyUInt64:
result = getSysMagic(g, info, "==", mEqI)
@@ -166,4 +166,4 @@ proc makeAddr*(n: PNode; idgen: IdGenerator): PNode =
result = n
else:
result = newTree(nkHiddenAddr, n)
result.typ = makePtrType(n.typ.skipTypes({tySink}), idgen)
result.typ() = makePtrType(n.typ, idgen)

View File

@@ -26,15 +26,11 @@ import
when defined(nimPreviewSlimSystem):
import std/[syncio, assertions]
import ic / [cbackend, integrity, navigator, ic]
import ../dist/checksums/src/checksums/sha1
import pipelines
from icconfig import produceIcConfig
when not defined(nimKochBootstrap):
import nifbackend
import deps
import idetools
when not defined(leanCompiler):
import docgen
@@ -99,6 +95,14 @@ proc commandCheck(graph: ModuleGraph) =
setPipeLinePass(graph, SemPass)
compilePipelineProject(graph)
if conf.symbolFiles != disabledSf:
case conf.ideCmd
of ideDef: navDefinition(graph)
of ideUse: navUsages(graph)
of ideDus: navDefusages(graph)
else: discard
writeRodFiles(graph)
when not defined(leanCompiler):
proc commandDoc2(graph: ModuleGraph; ext: string) =
handleDocOutputOptions graph.config
@@ -113,38 +117,6 @@ when not defined(leanCompiler):
else: raiseAssert $ext
compilePipelineProject(graph)
proc commandCompileToNif(graph: ModuleGraph) =
let conf = graph.config
extccomp.initVars(conf)
if conf.symbolFiles == disabledSf:
if {optRun, optForceFullMake} * conf.globalOptions == {optRun} or isDefined(conf, "nimBetterRun"):
if not changeDetectedViaJsonBuildInstructions(conf, conf.jsonBuildInstructionsFile):
# nothing changed
graph.config.notes = graph.config.mainPackageNotes
return
if not extccomp.ccHasSaneOverflow(conf):
conf.symbols.defineSymbol("nimEmulateOverflowChecks")
setPipeLinePass(graph, NifgenPass)
compilePipelineProject(graph)
proc commandNifC(graph: ModuleGraph) =
## Generate C code from precompiled NIF files.
## This is the new IC approach: compile modules to NIF first with `nim m`,
## then generate C code from the entry.nif file with whole-program DCE.
when not defined(nimKochBootstrap):
let conf = graph.config
extccomp.initVars(conf)
if not extccomp.ccHasSaneOverflow(conf):
conf.symbols.defineSymbol("nimEmulateOverflowChecks")
# Use the NIF backend to generate C code
nifbackend.generateCode(graph, conf.projectMainIdx)
else:
rawMessage(graph.config, errGenerated, "NIF backend not available during bootstrap build")
proc commandCompileToC(graph: ModuleGraph) =
let conf = graph.config
extccomp.initVars(conf)
@@ -165,7 +137,15 @@ proc commandCompileToC(graph: ModuleGraph) =
compilePipelineProject(graph)
if graph.config.errorCounter > 0:
return # issue #9933
cgenWriteModules(graph.backend, conf)
if conf.symbolFiles == disabledSf:
cgenWriteModules(graph.backend, conf)
else:
if isDefined(conf, "nimIcIntegrityChecks"):
checkIntegrity(graph)
generateCode(graph)
# graph.backend can be nil under IC when nothing changed at all:
if graph.backend != nil:
cgenWriteModules(graph.backend, conf)
if conf.cmd != cmdTcc and graph.backend != nil:
extccomp.callCCompiler(conf)
# for now we do not support writing out a .json file with the build instructions when HCR is on
@@ -204,11 +184,31 @@ proc commandInteractive(graph: ModuleGraph) =
discard graph.compilePipelineModule(fileInfoIdx(graph.config, graph.config.projectFull), {})
else:
var m = graph.makeStdinModule()
incl(m, sfMainModule)
incl(m.flags, sfMainModule)
var idgen = IdGenerator(module: m.itemId.module, symId: m.itemId.item, typeId: 0)
let s = llStreamOpenStdIn(onPrompt = proc() = flushDot(graph.config))
discard processPipelineModule(graph, m, idgen, s)
proc commandScan(cache: IdentCache, config: ConfigRef) =
var f = addFileExt(AbsoluteFile mainCommandArg(config), NimExt)
var stream = llStreamOpen(f, fmRead)
if stream != nil:
var
L: Lexer = default(Lexer)
tok: Token = default(Token)
openLexer(L, f, stream, cache, config)
while true:
rawGetTok(L, tok)
printTok(config, tok)
if tok.tokType == tkEof: break
closeLexer(L)
else:
rawMessage(config, errGenerated, "cannot open file: " & f.string)
proc commandView(graph: ModuleGraph) =
let f = toAbsolute(mainCommandArg(graph.config), AbsoluteDir getCurrentDir()).addFileExt(RodExt)
rodViewer(f, graph.config, graph.cache)
const
PrintRopeCacheStats = false
@@ -257,7 +257,7 @@ proc mainCommand*(graph: ModuleGraph) =
if conf.exc == excNone: conf.exc = excSetjmp
of backendCpp:
if conf.exc == excNone: conf.exc = excCpp
of backendObjc, backendNif: discard
of backendObjc: discard
of backendJs:
if conf.hcrOn:
# XXX: At the moment, system.nim cannot be compiled in JS mode
@@ -275,7 +275,6 @@ proc mainCommand*(graph: ModuleGraph) =
of backendCpp: commandCompileToC(graph)
of backendObjc: commandCompileToC(graph)
of backendJs: commandCompileToJS(graph)
of backendNif: commandCompileToNif(graph)
of backendInvalid: raiseAssert "unreachable"
template docLikeCmd(body) =
@@ -306,6 +305,8 @@ proc mainCommand*(graph: ModuleGraph) =
case conf.cmd
of cmdBackends:
compileToBackend()
when BenchIC:
echoTimes graph.packed
of cmdTcc:
when hasTinyCBackend:
extccomp.setCC(conf, "tcc", unknownLineInfo)
@@ -401,55 +402,17 @@ proc mainCommand*(graph: ModuleGraph) =
for it in conf.searchPaths: msgWriteln(conf, it.string)
of cmdCheck:
commandCheck(graph)
of cmdTrack:
# `nim track --def:/--usages:/--track:` — IDE goto-definition / find-usages.
# Runs `nim ic`'s incremental frontend (nifler + per-module `nim m`, so only
# changed modules recompile and each writes a faithful, VM-executed `.s.bif`
# — covering stdlib too), then scans those NIF files (idetools.runIdeQuery).
# Shares the `nim ic` nimcache dir, so a prior `nim ic` build is reused.
setUseIc(true)
wantMainModule(conf)
setOutFile(conf)
when not defined(nimKochBootstrap):
commandIc(conf, frontendOnly = true)
runIdeQuery(conf)
else:
rawMessage(conf, errGenerated, "nim track not available in bootstrap build")
of cmdM:
# cmdM uses NIF files, not ROD files
graph.config.symbolFiles = disabledSf
setUseIc(true)
# vtable dispatch needs a whole-program vtable layout, which the
# per-module compilation model cannot provide (yet); methods dispatch
# through the classic if-chain dispatchers instead
excl conf.features, Feature.vtables
graph.config.symbolFiles = v2Sf
setUseIc(graph.config.symbolFiles != disabledSf)
commandCheck(graph)
of cmdNifC:
setUseIc(true)
excl conf.features, Feature.vtables
# Generate C code from NIF files
wantMainModule(conf)
setOutFile(conf)
commandNifC(graph)
of cmdIc:
# Generate .build.nif for nifmake
setUseIc(true)
wantMainModule(conf)
# Resolve the output binary path (honoring `--out`) up front, like cmdNifC:
# the backend build file derives the link target from `conf.absOutFile`.
setOutFile(conf)
when not defined(nimKochBootstrap):
commandIc(conf)
else:
rawMessage(conf, errGenerated, "nim deps not available in bootstrap build")
of cmdIcConfig:
# Produce the precompiled config artifact for `nim ic` (config already
# parsed by the normal pipeline); a separate process spawned by the driver.
wantMainModule(conf)
produceIcConfig(conf)
of cmdParse:
wantMainModule(conf)
discard parseFile(conf.projectMainIdx, cache, conf)
of cmdRod:
wantMainModule(conf)
commandView(graph)
#msgWriteln(conf, "Beware: Indentation tokens depend on the parser's state!")
of cmdInteractive: commandInteractive(graph)
of cmdNimscript:
if conf.projectIsCmd or conf.projectIsStdin: discard
@@ -460,17 +423,10 @@ proc mainCommand*(graph: ModuleGraph) =
of cmdJsonscript:
setOutFile(graph.config)
commandJsonScript(graph)
of cmdUnknown, cmdNone:
of cmdUnknown, cmdNone, cmdIdeTools:
rawMessage(conf, errGenerated, "invalid command: " & conf.command)
if conf.errorCounter == 0 and conf.cmd notin {cmdTcc, cmdDump, cmdNop, cmdM} and
not (conf.cmd == cmdNifC and conf.icBackendStage.len > 0):
# The IC build runs hundreds of internal per-module child processes — the
# frontend `nim m` (cmdM) and the per-module backend stages (cg/emit/merge/
# link). Each would print a `[SuccessX]` summary that is pure noise (and
# misleading: `out: unknownOutput`, or `out: <the whole compiler>` for a
# step that only wrote one `.c.nif`/`.c`). The driving `nim ic` (and koch)
# reports the real result.
if conf.errorCounter == 0 and conf.cmd notin {cmdTcc, cmdDump, cmdNop}:
if optProfileVM in conf.globalOptions:
echo conf.dump(conf.vmProfileData)
genSuccessX(conf)

View File

@@ -53,39 +53,7 @@ proc mangleParamExt*(s: PSym): string =
result.addInt s.position
proc mangleProcNameExt*(graph: ModuleGraph, s: PSym): string =
# The disambiguator comes first and the module suffix LAST, so the suffix is
# a strippable trailing token: content-addressed cross-module merging chops
# everything from the final `__` to recover a mint-site-independent name.
if s.itemId.isBackendMinted:
# A symbol minted during IC codegen (`idGeneratorForBackend`): its idgen
# starts with an EMPTY per-name disamb table, so its `disamb` restarts at 0
# and collides with same-named sem-time symbols loaded from NIFs (two
# `=destroy` hooks both mangling to `_u2` → "conflicting types for ..." in
# the generated C). Most such symbols never cross a process boundary (nifc
# lifts, emits and compiles them in one run), so the per-module-unique
# item id is a safe and deterministic discriminator; the `_c` marker keeps
# the namespace disjoint from `_u<disamb>`.
result = "_c"
if (s.disamb and HookDisambBit) != 0'i32:
# EXCEPTION: a backend-minted sym whose `disamb` is content-derived
# (setHookDisamb gave it HookDisambBit) — e.g. the `rttiDestroy` wrapper —
# DOES cross process boundaries: its C name is baked into the type's RTTI
# table, which is emit-everywhere and merge-deduped, so one process's
# `_c<item>` (a per-process backend counter) ends up referenced while the
# wrapper is defined with another's → undefined at link (`rttiDestroy_c23`).
# The content-derived disamb is stable across processes; use it.
result.addInt s.disamb
else:
result.addInt s.itemId.item
else:
result = "_u"
# Use `disamb` rather than `itemId.item`: under incremental compilation a
# symbol loaded from a NIF file gets a fresh, load-order-dependent `itemId.item`
# (from the per-module symbol counter), which is neither stable across the
# processes that compile vs. use a module nor guaranteed distinct from another
# loaded symbol's. `disamb` is assigned deterministically per (module, name)
# and, together with the already-prepended mangled name, yields a unique and
# stable C identifier.
result.addInt s.disamb
result.add "__"
result = "__"
result.add graph.ifaces[s.itemId.module].uniqueName
result.add "_u"
result.addInt s.itemId.item # s.disamb #

File diff suppressed because it is too large Load Diff

View File

@@ -79,10 +79,6 @@ proc checkModuleName*(conf: ConfigRef; n: PNode; doLocalError=true): FileIndex =
else:
result = fileInfoIdx(conf, fullPath)
type
SelectedBase = enum
FromProject, FromSearchPath, FromNimblePath
proc mangleModuleName*(conf: ConfigRef; path: AbsoluteFile): string =
## Mangle a relative module path to avoid path and symbol collisions.
##
@@ -91,29 +87,9 @@ proc mangleModuleName*(conf: ConfigRef; path: AbsoluteFile): string =
##
## Example:
## `foo-#head/../bar` becomes `@foo-@hhead@s..@sbar`
var best = relativeTo(path, conf.projectPath).string
var selectedBase = FromProject
for x in conf.searchPaths:
let other = relativeTo(path, x).string
if other.len < best.len:
best = other
selectedBase = FromSearchPath
for x in conf.nimblePaths:
let other = relativeTo(path, x).string
if other.len < best.len:
best = other
selectedBase = FromNimblePath
let prefix =
case selectedBase
of FromProject: "@m"
of FromSearchPath: "@p"
of FromNimblePath: "@n"
# Note: We encode ".." specially as "@d" to avoid issues with changeFileExt
# which would misinterpret ".." as "name.ext" and strip the second part.
prefix & best.multiReplace(
{"..": "@d", $os.DirSep: "@s", $os.AltSep: "@s", "#": "@h", "@": "@@", ":": "@c"})
"@m" & relativeTo(path, conf.projectPath).string.multiReplace(
{$os.DirSep: "@s", $os.AltSep: "@s", "#": "@h", "@": "@@", ":": "@c"})
proc demangleModuleName*(path: string): string =
## Demangle a relative module path.
result = path.multiReplace({"@@": "@", "@d": "..", "@h": "#", "@s": "/", "@m": "", "@p": "", "@n": "", "@c": ":"})
result = path.multiReplace({"@@": "@", "@h": "#", "@s": "/", "@m": "", "@c": ":"})

View File

@@ -32,9 +32,9 @@ proc newModule*(graph: ModuleGraph; fileIdx: FileIndex): PSym =
let filename = AbsoluteFile toFullPath(graph.config, fileIdx)
# We cannot call ``newSym`` here, because we have to circumvent the ID
# mechanism, which we do in order to assign each module a persistent ID.
result = PSym(kindImpl: skModule, itemId: itemId(int32(fileIdx), 0'i32),
result = PSym(kind: skModule, itemId: ItemId(module: int32(fileIdx), item: 0'i32),
name: getModuleIdent(graph, filename),
infoImpl: newLineInfo(fileIdx, 1, 1))
info: newLineInfo(fileIdx, 1, 1))
if not isNimIdentifier(result.name.s):
rawMessage(graph.config, errGenerated, "invalid module name: '" & result.name.s &
"'; a module name must be a valid Nim identifier.")

View File

@@ -24,8 +24,13 @@ template instLoc*(): InstantiationInfo = instantiationInfo(-2, fullPaths = true)
template toStdOrrKind(stdOrr): untyped =
if stdOrr == stdout: stdOrrStdout else: stdOrrStderr
proc toLowerAscii(a: var string) {.inline.} =
for c in mitems(a):
if isUpperAscii(c): c = char(uint8(c) xor 0b0010_0000'u8)
proc flushDot*(conf: ConfigRef) =
## safe to call multiple times
# xxx one edge case not yet handled is when `printf` is called at CT with `compiletimeFFI`.
let stdOrr = if optStdout in conf.globalOptions: stdout else: stderr
let stdOrrKind = toStdOrrKind(stdOrr)
if stdOrrKind in conf.lastMsgWasDot:
@@ -47,7 +52,7 @@ proc makeCString*(s: string): Rope =
result = newStringOfCap(int(s.len.toFloat * 1.1) + 1)
result.add("\"")
for i in 0..<s.len:
# line wrapping of string literals in cgen'd code was a bad idea, e.g. causes: bug #16265
# line wrapping of string litterals in cgen'd code was a bad idea, e.g. causes: bug #16265
# It also makes reading c sources or grepping harder, for zero benefit.
# const MaxLineLength = 64
# if (i + 1) mod MaxLineLength == 0:
@@ -55,12 +60,12 @@ proc makeCString*(s: string): Rope =
toCChar(s[i], result)
result.add('\"')
proc newFileInfo(fullPath: AbsoluteFile, projPath: RelativeFile; kind = fikSource): TFileInfo =
proc newFileInfo(fullPath: AbsoluteFile, projPath: RelativeFile): TFileInfo =
result = TFileInfo(fullPath: fullPath, projPath: projPath,
shortName: fullPath.extractFilename,
quotedFullName: fullPath.string.makeCString,
lines: @[],
kind: kind)
lines: @[]
)
result.quotedName = result.shortName.makeCString
when defined(nimpretty):
if not result.fullPath.isEmpty:
@@ -79,8 +84,7 @@ proc canonicalCase(path: var string) {.inline.} =
## the idea is to only use this for checking whether a path is already in
## the table but otherwise keep the original case
when FileSystemCaseSensitive: discard
else:
for c in mitems(path): c = toLowerAscii(c)
else: toLowerAscii(path)
proc fileInfoKnown*(conf: ConfigRef; filename: AbsoluteFile): bool =
var
@@ -122,42 +126,12 @@ proc fileInfoIdx*(conf: ConfigRef; filename: AbsoluteFile): FileIndex =
var dummy: bool = false
result = fileInfoIdx(conf, filename, dummy)
proc expandOrPseudo(filename: string): AbsoluteFile =
# `expandFilename` raises OSError when the path does not exist on disk. That is
# fine for a real source path, but a macro can legitimately set a node's
# line-info file to a name that has no file behind it — e.g. the `???` sentinel
# produced by `toFilename` for a NIF-loaded node whose `fileIndex` is unknown
# (FileIndex(-1)). Falling back to the raw name lets the `AbsoluteFile` overload
# register it as a pseudo-path (like `command line`/`stdin`) instead of crashing
# the whole `nim m` child with an unhandled OSError.
try:
result = AbsoluteFile expandFilename(filename)
except OSError:
result = AbsoluteFile filename
proc fileInfoIdx*(conf: ConfigRef; filename: RelativeFile; isKnownFile: var bool): FileIndex =
fileInfoIdx(conf, expandOrPseudo(filename.string), isKnownFile)
fileInfoIdx(conf, AbsoluteFile expandFilename(filename.string), isKnownFile)
proc fileInfoIdx*(conf: ConfigRef; filename: RelativeFile): FileIndex =
var dummy: bool = false
fileInfoIdx(conf, expandOrPseudo(filename.string), dummy)
proc registerNifSuffix*(conf: ConfigRef; suffix: string; isKnownFile: var bool): FileIndex =
result = conf.m.filenameToIndexTbl.getOrDefault(suffix, InvalidFileIdx)
if result == InvalidFileIdx:
isKnownFile = false
result = conf.m.fileInfos.len.FileIndex
conf.m.fileInfos.add(newFileInfo(AbsoluteFile suffix, RelativeFile suffix, fikNifModule))
conf.m.filenameToIndexTbl[suffix] = result
else:
isKnownFile = true
proc fileInfoKind*(conf: ConfigRef; fileIdx: FileIndex): FileInfoKind =
## Returns the kind of a FileIndex (source file or NIF module suffix).
if fileIdx.int >= 0 and fileIdx.int < conf.m.fileInfos.len:
result = conf.m.fileInfos[fileIdx.int].kind
else:
result = fikSource # Default to source for unknown indices
fileInfoIdx(conf, AbsoluteFile expandFilename(filename.string), dummy)
proc newLineInfo*(fileInfoIdx: FileIndex, line, col: int): TLineInfo =
result = TLineInfo(fileIndex: fileInfoIdx)
@@ -250,7 +224,7 @@ proc setDirtyFile*(conf: ConfigRef; fileIdx: FileIndex; filename: AbsoluteFile)
proc setHash*(conf: ConfigRef; fileIdx: FileIndex; hash: string) =
assert fileIdx.int32 >= 0
when defined(gcArc) or defined(gcOrc) or defined(gcAtomicArc) or defined(gcYrc):
when defined(gcArc) or defined(gcOrc) or defined(gcAtomicArc):
conf.m.fileInfos[fileIdx.int32].hash = hash
else:
shallowCopy(conf.m.fileInfos[fileIdx.int32].hash, hash)
@@ -258,7 +232,7 @@ proc setHash*(conf: ConfigRef; fileIdx: FileIndex; hash: string) =
proc getHash*(conf: ConfigRef; fileIdx: FileIndex): string =
assert fileIdx.int32 >= 0
when defined(gcArc) or defined(gcOrc) or defined(gcAtomicArc) or defined(gcYrc):
when defined(gcArc) or defined(gcOrc) or defined(gcAtomicArc):
result = conf.m.fileInfos[fileIdx.int32].hash
else:
shallowCopy(result, conf.m.fileInfos[fileIdx.int32].hash)
@@ -348,7 +322,7 @@ proc msgWriteln*(conf: ConfigRef; s: string, flags: MsgFlags = {}) =
## This is used for 'nim dump' etc. where we don't have nimsuggest
## support.
#if conf.ideActive and optCDebug notin gGlobalOptions: return
#if conf.cmd == cmdIdeTools and optCDebug notin gGlobalOptions: return
let sep = if msgNoUnitSep notin flags: conf.unitSep else: ""
if not isNil(conf.writelnHook) and msgSkipHook notin flags:
conf.writelnHook(s & sep)
@@ -454,8 +428,8 @@ To create a stacktrace, rerun compilation with './koch temp $1 <file>', see $2 f
proc handleError(conf: ConfigRef; msg: TMsgKind, eh: TErrorHandling, s: string, ignoreMsg: bool) =
if msg in fatalMsgs:
if conf.ideActive: log(s)
if not conf.ideActive or msg != errFatal:
if conf.cmd == cmdIdeTools: log(s)
if conf.cmd != cmdIdeTools or msg != errFatal:
quit(conf, msg)
if msg >= errMin and msg <= errMax or
(msg in warnMin..hintMax and msg in conf.warningAsErrors and not ignoreMsg):
@@ -469,7 +443,7 @@ proc handleError(conf: ConfigRef; msg: TMsgKind, eh: TErrorHandling, s: string,
raiseRecoverableError(s)
else:
quit(conf, msg)
elif eh == doAbort and not conf.ideActive:
elif eh == doAbort and conf.cmd != cmdIdeTools:
quit(conf, msg)
elif eh == doRaise:
raiseRecoverableError(s)
@@ -500,7 +474,7 @@ proc writeContext(conf: ConfigRef; lastinfo: TLineInfo) =
info = context.info
proc ignoreMsgBecauseOfIdeTools(conf: ConfigRef; msg: TMsgKind): bool =
msg >= errGenerated and conf.ideActive and optIdeDebug notin conf.globalOptions
msg >= errGenerated and conf.cmd == cmdIdeTools and optIdeDebug notin conf.globalOptions
proc addSourceLine(conf: ConfigRef; fileIdx: FileIndex, line: string) =
conf.m.fileInfos[fileIdx.int32].lines.add line
@@ -521,9 +495,6 @@ proc sourceLine*(conf: ConfigRef; i: TLineInfo): string =
## 1-based index (matches editor line numbers); 1st line is for i.line = 1
## last valid line is `numLines` inclusive
if i.fileIndex.int32 < 0: return ""
# line 0 means "unknown": nodes synthesized from an IC-loaded template or
# macro body carry no source position.
if i.line.int < 1: return ""
let num = numLines(conf, i.fileIndex)
# can happen if the error points to EOF:
if i.line.int > num: return ""
@@ -658,7 +629,7 @@ proc warningDeprecated*(conf: ConfigRef, info: TLineInfo = gCmdLineInfo, msg = "
message(conf, info, warnDeprecated, msg)
proc internalErrorImpl(conf: ConfigRef; info: TLineInfo, errMsg: string, info2: InstantiationInfo) =
if (conf.ideActive or conf.cmd == cmdCheck) and conf.structuredErrorHook.isNil: return
if conf.cmd in {cmdIdeTools, cmdCheck} and conf.structuredErrorHook.isNil: return
writeContext(conf, info)
liMessage(conf, info, errInternal, errMsg, doAbort, info2)
@@ -677,9 +648,7 @@ template internalAssert*(conf: ConfigRef, e: bool) =
template lintReport*(conf: ConfigRef; info: TLineInfo, beau, got: string, extraMsg = "") =
let m = "'$1' should be: '$2'$3" % [got, beau, extraMsg]
let msg = if optStyleError in conf.globalOptions: errGenerated
elif optStyleWarning in conf.globalOptions: warnUser
else: hintName
let msg = if optStyleError in conf.globalOptions: errGenerated else: hintName
liMessage(conf, info, msg, m, doNothing, instLoc())
proc quotedFilename*(conf: ConfigRef; fi: FileIndex): Rope =

View File

@@ -1,884 +0,0 @@
#
#
# The Nim Compiler
# (c) Copyright 2025 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## NIF-based C/C++ code generator backend.
##
## This module implements C code generation from precompiled NIF files.
## It traverses the module dependency graph starting from the main module
## and generates C code for all reachable modules.
##
## Usage:
## 1. Compile modules to NIF: nim m mymodule.nim
## 2. Generate C from NIF: nim nifc myproject.nim
import std/[intsets, tables, sets, os, algorithm, syncio, times, strutils]
when defined(nimPreviewSlimSystem):
import std/assertions
import ast, options, lineinfos, modulegraphs, cgendata, cgen,
pathutils, extccomp, msgs, modulepaths, idents, types, ast2nif, typekeys,
cnif, icmodnames
from cgmeth import generateIfMethodDispatchers
from transf import transformBody
from injectdestructors import injectDestructorCalls
import ic / replayer
proc systemNifSuffix(conf: ConfigRef): string =
## The system module's NIF suffix, derived from `system.nim`'s path EXACTLY as
## the frontend derives it (deps.nim's `toPair` on `libpath/system.nim`), so the
## backend loads the very `.s.bif` the frontend wrote. It must NOT be a constant:
## `moduleSuffix` (icmodnames) now hashes the absolute path, so the system suffix
## is install-dependent (was hardcoded `sysma2dyk`, valid only for the old
## relative-path scheme where `system.nim` always relativized to `system.nim`).
moduleSuffix((conf.libpath / RelativeFile"system.nim").string,
cast[seq[string]](conf.searchPaths))
proc loadModuleDependencies(g: ModuleGraph; mainFileIdx: FileIndex;
nifFiles: var seq[string];
depFlags: set[LoadFlag] = {LoadFullAst}): seq[PrecompiledModule] =
## Traverse the module dependency graph using a stack.
## Returns all modules that need code generation, in dependency order.
##
## The main module is always loaded with its full AST (it is the codegen
## target). `depFlags` governs the rest: the whole-program backend needs every
## module's full AST (it generates code for all of them), but a per-module
## stage codegens only one target, so it loads the others interface-only
## (`depFlags = {}`) — the interface, hooks, methods and the `(replay ...)`
## directives are loaded regardless of `LoadFullAst`, and demanded bodies are
## fetched lazily from the kept-open stream, so the per-module proc-body ASTs
## (the bulk of the memory) are never materialized for non-targets.
# The main module is loaded by its SOURCE FileIndex, but its serialized
# symbols carry the module's NIF suffix. Pre-alias the suffix to the source
# index so that `registerNifSuffix` does not allocate a second FileIndex for
# the same module, which would split its codegen across two C translation
# units (top-level globals in one, procs in the other → undeclared symbols).
g.config.m.filenameToIndexTbl[cachedModuleSuffix(g.config, mainFileIdx)] = mainFileIdx
let mainModule = moduleFromNifFile(g, mainFileIdx, {LoadFullAst})
nifFiles.add toNifFilename(g.config, mainFileIdx)
var stack: seq[ModuleSuffix] = @[]
result = @[]
if mainModule.module != nil:
incl mainModule.module.flagsImpl, sfMainModule
for dep in mainModule.deps:
stack.add dep
var visited = initHashSet[string]()
while stack.len > 0:
let suffix = stack.pop()
if not visited.containsOrIncl(suffix.string):
var isKnownFile = false
let fileIdx = g.config.registerNifSuffix(suffix.string, isKnownFile)
let precomp = moduleFromNifFile(g, fileIdx, depFlags)
if precomp.module != nil:
result.add precomp
nifFiles.add toNifFilename(g.config, fileIdx)
for dep in precomp.deps:
if not visited.contains(dep.string):
stack.add dep
else:
assert false, "Recompiling module is not implemented."
if mainModule.module != nil:
result.add mainModule
proc setupNifBackendModule(g: ModuleGraph; module: PSym): BModule =
## Set up a BModule for code generation from a NIF module.
if g.backend == nil:
g.backend = cgendata.newModuleList(g)
result = cgen.newModule(BModuleList(g.backend), module, g.config, idGeneratorForBackend(module))
proc isMetaIter(t: PType, closure: RootRef): bool =
# openArray/varargs hooks are sem bookkeeping: no real flow ever demands
# them, and generating one pollutes the TU's type cache with a struct
# descriptor for what must remain a (ptr, len) parameter expansion
t.kind in tyMetaTypes + {tyTyped, tyUntyped, tyNone, tyVarargs, tyOpenArray}
proc finishModule(g: ModuleGraph; bmod: BModule) =
# Finalize the module (this adds it to modulesClosed)
# Create an empty stmt list as the init body - genInitCode in writeModule will set it up properly
let initStmt = newNode(nkStmtList)
finalCodegenActions(g, bmod, initStmt)
# NB: the method dispatchers are emitted in `emitMethodDispatchers`,
# between the module loop and this finish loop: their bodies demand the
# method definitions, which can in turn demand definitions from modules
# the backend never loaded — and a TU demand-created during the LAST
# finishModule call would miss `modulesClosed` and never be written.
proc emitMethodDispatchers(g: ModuleGraph) =
## Synthesizes the method dispatcher bodies from the replayed dispatch
## buckets (`registerLoadedMethod`) and emits their definitions into the
## main TU. Main is regenerated on every run, so a dispatcher — whose
## body enumerates the whole program's method set — can never go stale
## inside a cached TU; cross-TU callers prototype it (see genProcLvl3).
let bl = BModuleList(g.backend)
var mainMod: BModule = nil
for m in bl.mods:
if m != nil and m.module != nil and sfMainModule in m.module.flags:
mainMod = m
break
if mainMod == nil: return
generateIfMethodDispatchers(g, mainMod.idgen)
for disp in getDispatchers(g):
if not containsOrIncl(mainMod.declaredThings, disp.id):
genProcLvl3(mainMod, disp)
proc signatureHasMetaType(t: PType; depth: int = 0): bool =
## Whether a routine signature mentions a compile-time/meta element type
## (`typed`/`untyped` — e.g. `echo`'s `varargs[typed]` — typedesc, static,
## generic param). Such routines are expanded at their call sites and never
## emitted standalone, so the per-module owned-routine seeding must skip them
## (`getTypeDescAux(tyTyped)` otherwise). `tfHasMeta` alone misses the varargs
## element case, hence the explicit scan.
result = false
if t == nil or depth > 8: return false
if t.kind == tyGenericBody:
# The uninstantiated template carried as a `tyGenericInst`'s first child
# always mentions its `tyGenericParam` placeholders, but the instance
# itself is fully concrete (e.g. `var CountTable[SigHash]`). Descending
# here would wrongly flag every routine with a generic-instance parameter
# as meta and drop it from the owned-routine seeding -> undefined symbols
# at link (its only definer never emits it).
return false
if t.kind == tyStatic:
# A RESOLVED static value (the `256` in `MDigest[256]`, the `N` in
# `HashList[T, N]`, …) is carried as a `tyStatic` node inside the otherwise
# fully-concrete `tyGenericInst`, but it is NOT meta: the routine is a normal
# runtime routine the owner must emit. Only an UNRESOLVED `static T` parameter
# (no bound value, `t.n == nil`) is meta. Without this, every routine whose
# signature touches a `static`-parameterized generic instance (the bulk of
# the SSZ/`MDigest` API) is dropped from the owned-routine seeding and ends up
# an undefined reference at link (mirrors the tyGenericBody case above).
return t.n == nil
if t.kind in {tyTyped, tyUntyped, tyTypeDesc, tyGenericParam,
tyAnything, tyFromExpr, tyError}:
return true
for k in t.kids:
if signatureHasMetaType(k, depth + 1): return true
proc ownsRuntimeRoutine(s: PSym; modPos: int): bool =
## A concrete, non-generic, runtime routine with a real body, OWNED by the
## module at `modPos`. Shared by the `cg` stage's owned-routine seeding (so a
## routine called only from other modules is still emitted by somebody) and
## the `lower` stage's owned-routine enumeration, so both stages see exactly
## the same set. The exclusions:
## - nested/closure procs (owner is a proc, not a module): emitted via their
## enclosing routine's lambda-lifting, never standalone;
## - generic instances (`sfFromGeneric`): emitted by demand, deduped by merge;
## - `importc`/`compileTime`/`error`/forward sentinels and meta signatures:
## not real codegen targets.
## - method DISPATCHERS (`sfDispatcher`): their bodies are (re)synthesized into
## the main TU by `emitMethodDispatchers`/`generateIfMethodDispatchers`, never
## per module. A dispatcher is a `copySym` clone of the method that shares the
## method's body sub-tree (incl. its closure iterator); transforming it here
## would lambda-lift that SHARED iterator a SECOND time under a different owner
## identity, baking a conflicting `up` field → "up references do not agree"
## (the divergence is impossible in non-IC, where the dispatcher body is empty
## at lift time). So a dispatcher is never an owned runtime routine.
## A `{.closure.}` iterator IS a standalone runtime routine (unlike an inline
## iterator, which is expanded at each call site) and must be emitted by its
## owner — else a cross-module `for` over it links to nothing.
##
## Generic INSTANCES (`sfFromGeneric`) are NEVER an owned runtime routine — not
## in `cg` and not in the `lower` stage. They are demanded by the backend's
## emit-everywhere path and deduped by `merge` (content C name); the frontend
## materialises them through the `(offer)` mechanism. The `lower` stage must
## not transform an instance: a not-fully-concrete instance (a closure factory
## over a `static` param, or a `$`/`=` op instance whose body resolves only at
## its further-specialised use sites) still carries unresolved overload choices
## and crashes `transformBody` (empty-`namePos` lambda, nil-typed const-fold).
s.itemId.module == modPos and
(s.kind in {skProc, skFunc, skConverter, skMethod} or
(s.kind == skIterator and s.typ != nil and s.typ.callConv == ccClosure)) and
s.skipGenericOwner != nil and s.skipGenericOwner.kind == skModule and
s.magic == mNone and
sfFromGeneric notin s.flags and
sfDispatcher notin s.flags and
{sfForward, sfImportc, sfCompileTime, sfError} * s.flags == {} and
s.typ != nil and not signatureHasMetaType(s.typ) and
s.ast != nil and s.ast.safeLen > bodyPos and
s.ast[genericParamsPos].kind == nkEmpty
# NOTE: an `nkEmpty` body is NOT a disqualifier. A concrete, owned, non-
# forward/-importc/-magic routine whose body folds to nothing is still a real
# definition the owner must emit (`void f(void){}`), exactly as whole-program
# cgen does — else a cross-module caller links to nothing. This bites e.g.
# Nimbus' `extras.incInternalErrors`, a plain `proc` whose sole statement is a
# metrics-counter `.inc()` that the `metrics` library expands to a no-op when
# the importing tool (ncli) builds with `-u:metrics`; the body is then a bare
# `nkEmpty`, but `state_transition_epoch` still calls it. Forward declarations
# (the other empty-body case) carry `sfForward` and are excluded above.
proc generateCodeForModule(g: ModuleGraph; precomp: PrecompiledModule) =
## Generate C code for a single module.
let moduleId = precomp.module.position
var bmod = BModuleList(g.backend).mods[moduleId]
if bmod == nil:
bmod = setupNifBackendModule(g, precomp.module)
# Apply the module's recorded C compile/link directives (passl/passc/...)
# before generating code: the link step needs them (e.g. math's -lm).
replayBackendActions(g, precomp.module, precomp.topLevel)
# Generate code for the module's top-level statements
if precomp.topLevel != nil:
cgen.genTopLevelStmt(bmod, precomp.topLevel)
# Per-module backend: emit the bodies of the routines this module OWNS, not
# only the ones its top-level happens to demand. Procs are serialized as lazy
# `(sd ...)` defs (never as `nkProcDef` statements), so `genTopLevelStmt` never
# reaches them; a routine called only from *other* modules would otherwise be
# emitted by nobody, because every module now merely prototypes its foreign
# callees instead of funnelling their bodies (see `cgen.emitsBodyInThisModule`).
# The merge stage's DCE drops whatever turns out globally dead.
if g.config.cmd == cmdNifC and g.config.icBackendStage == "cg":
let modPos = precomp.module.position
for s in moduleSymbolStubs(ast.program, FileIndex modPos):
if ownsRuntimeRoutine(s, modPos):
requestProcDef(bmod, s)
proc loadBackendModules(g: ModuleGraph; mainFileIdx: FileIndex):
tuple[modules: seq[PrecompiledModule], precompSys: PrecompiledModule,
nifFiles: seq[string]] =
## Shared by the per-module `cg` and `emit` stages: load system + the main
## module's whole import closure and set up a `BModule` for each, so every
## type/symbol resolves and `getCFile` yields the same path both stages use.
## The main module is loaded by its source index (its NIF suffix is aliased to
## it in `loadModuleDependencies`), so it gets exactly one `BModule`.
##
## Only the main module — the codegen target of the stages that use this — is
## loaded with its full AST; every other module is loaded interface-only so
## the whole program's proc bodies are not materialized into this process (that
## was ~1.8 GB for the compiler's main `cg`). The `link` stage codegens nothing
## and only needs each module's `(replay ...)` directives, which load anyway.
resetForBackend(g)
var isKnownFile = false
let systemFileIdx = registerNifSuffix(g.config, systemNifSuffix(g.config), isKnownFile)
g.config.m.systemFileIdx = systemFileIdx
var precompSys = moduleFromNifFile(g, systemFileIdx, {AlwaysLoadInterface})
g.systemModule = precompSys.module
if precompSys.module != nil:
# The precompiled-load path does not restore `sfSystemModule` (mirror of the
# `sfMainModule` re-add above). `registerReusedModuleToMain` keys on it to put
# the system module's init right after its datInit AND to emit
# `initStackBottomWith` into `mainDatInit` — so that the main thread's stack
# bottom is set before any module's init runs. Without the flag the system
# init is mis-routed into the regular `otherModsInit` bucket and
# `initStackBottomWith` is never registered, so a GC cycle during a module's
# init (under refc) scans the stack with a nil bottom and crashes.
incl precompSys.module.flagsImpl, sfSystemModule
var nifFiles: seq[string] = @[toNifFilename(g.config, systemFileIdx)]
var modules = loadModuleDependencies(g, mainFileIdx, nifFiles, depFlags = {})
# loadModuleDependencies traverses the project's import closure and stops at
# system. The whole-program backend then demand-loads system's own closure
# (locks, allocators, threads, …) during codegen; the per-module backend
# instead makes every one of those a first-class cg/emit target, so load that
# closure here too — otherwise `findTargetModule` cannot resolve their suffix.
block:
var visited = initHashSet[string]()
visited.incl systemNifSuffix(g.config)
for m in modules:
visited.incl cachedModuleSuffix(g.config, FileIndex m.module.position)
var stack: seq[ModuleSuffix] = @[]
if precompSys.module != nil:
for dep in precompSys.deps: stack.add dep
while stack.len > 0:
let suffix = stack.pop()
if not visited.containsOrIncl(suffix.string):
var isKnown = false
let fileIdx = registerNifSuffix(g.config, suffix.string, isKnown)
let precomp = moduleFromNifFile(g, fileIdx, {})
if precomp.module != nil:
modules.add precomp
nifFiles.add toNifFilename(g.config, fileIdx)
for dep in precomp.deps: stack.add dep
flushMethodReplays(g)
for m in modules:
discard setupNifBackendModule(g, m.module)
if precompSys.module != nil:
discard setupNifBackendModule(g, precompSys.module)
result = (modules, precompSys, nifFiles)
proc loadDepClosure(g: ModuleGraph; targetSuffix: string):
tuple[modules: seq[PrecompiledModule], precompSys: PrecompiledModule,
target: PrecompiledModule] =
## Per-module `cg`/`emit` for a NON-main target: load system + the target
## module + the target's transitive import closure ONLY — not the whole
## program. This is the "process the one file it is passed" model (à la
## Nimony's `hexer c file.nif`): the foreign symbols the target's codegen
## demands are loaded lazily by `ast2nif.moduleId`, which opens any referenced
## module's NIF index on first touch, so a body in a not-loaded module still
## resolves. The closure is loaded as full `BModule`s only so that the
## incidental `g.mods[pos]` accesses during codegen resolve; system's own
## internal closure (allocators, locks, …) is included because a target's
## emit-everywhere codegen can demand those without importing them directly.
##
## The whole program is no longer loaded in this process, which is what bounds
## per-process memory under nifmake's parallel fan-out (the main module's `cg`,
## which still loads everything for NimMain's init list and the method
## dispatchers, runs essentially alone since every other `.c.nif` precedes it).
resetForBackend(g)
var isKnownFile = false
let systemFileIdx = registerNifSuffix(g.config, systemNifSuffix(g.config), isKnownFile)
g.config.m.systemFileIdx = systemFileIdx
let precompSys = moduleFromNifFile(g, systemFileIdx, {AlwaysLoadInterface})
g.systemModule = precompSys.module
var modules: seq[PrecompiledModule] = @[]
var visited = initHashSet[string]()
visited.incl systemNifSuffix(g.config)
# Only the target is codegen'd, so only it needs its full AST; the closure is
# loaded interface-only (demanded bodies come lazily from the kept-open
# streams), which is what keeps a per-module process light under parallel fan-out.
var isKnown = false
let targetIdx = registerNifSuffix(g.config, targetSuffix, isKnown)
let target = moduleFromNifFile(g, targetIdx, {LoadFullAst})
visited.incl targetSuffix
var stack: seq[ModuleSuffix] = @[]
if target.module != nil:
modules.add target
for dep in target.deps: stack.add dep
if precompSys.module != nil:
for dep in precompSys.deps: stack.add dep
while stack.len > 0:
let suffix = stack.pop()
if not visited.containsOrIncl(suffix.string):
var isKnown2 = false
let fileIdx = registerNifSuffix(g.config, suffix.string, isKnown2)
let precomp = moduleFromNifFile(g, fileIdx, {})
if precomp.module != nil:
modules.add precomp
for dep in precomp.deps: stack.add dep
flushMethodReplays(g)
for m in modules:
discard setupNifBackendModule(g, m.module)
if precompSys.module != nil:
discard setupNifBackendModule(g, precompSys.module)
result = (modules, precompSys, target)
proc findTargetModule(g: ModuleGraph; modules: seq[PrecompiledModule];
precompSys: PrecompiledModule; suffix: string): PrecompiledModule =
## The loaded module whose NIF suffix is `suffix` (the `--icBackendModule`
## value), or a nil module if none matches.
result = PrecompiledModule(module: nil)
for m in modules:
if cachedModuleSuffix(g.config, FileIndex m.module.position) == suffix:
return m
if precompSys.module != nil and
cachedModuleSuffix(g.config, FileIndex precompSys.module.position) == suffix:
return precompSys
proc setNestedClosureBodies(g: ModuleGraph; idgen: IdGenerator; n: PNode;
owner: PSym; seen: var IntSet) =
## A closure routine nested in `owner` (the `:anonymous` proc lambda-lifting
## minted, plus any deeper nesting) gets its captured-var→env rewrite produced
## as part of the OWNER's `transformBody`. The nested proc is a module-indexed
## sym whose `.s.nif` sdef carries its PRE-lift body, so without help the whole
## module re-serializer would write that pre-lift body and cg would lose the
## capture mapping (it accesses `x` directly instead of `ClE_0->x0`). Walk the
## owner's transformed body and cache each nested closure's transformed body on
## its sym so `writeSymDef` serializes the lifted body into the routine's
## 2-way-body slot.
if n == nil: return
if n.kind == nkSym:
let s = n.sym
if s != nil and s.kind in routineKinds and s != owner and
s.skipGenericOwner != nil and s.skipGenericOwner.kind != skModule and
not seen.containsOrIncl(s.id):
# Covers ALL nested routines, not only ccClosure ones. A NIMCALL nested proc
# the async transform mints (e.g. workNimAsyncContinue) already has its
# lifted body set by the OWNER's transformBody, but it is NOT in the owned
# loop (owner is a proc, not the module). Without injecting it HERE it is
# serialized transform-only; cg loads it (wasLoaded) and skips injection, so
# a closure-env store stays a raw field assign with no incref -> the env is
# freed before the async callback runs -> "yielded nil". `seen` (shared
# across the owned loop) injects each routine exactly once.
if s.ast != nil and getBody(g, s).kind != nkEmpty:
# Only ccClosure routines are safe to `transformBody` standalone here; a
# nimcall nested proc already has its lifted body from the owner's lift,
# and transforming an arbitrary nested routine with no cached body crashes
# (not in a standalone-transformable state).
let weTransformed = s.transformedBody == nil and
s.typ != nil and s.typ.callConv == ccClosure
if weTransformed:
s.transformedBody = transformBody(g, idgen, s, {})
if s.transformedBody != nil:
# Inject destructors so cg loads a fully-lowered body and never rebuilds
# (mirrors non-IC, which injects every nested proc separately). The
# importer `n2` skField collision this used to trigger is fixed at the
# NIF-naming layer (toNifSymName gives derived env fields a unique
# disamb), so injecting ccClosure nested procs here is safe.
if sfInjectDestructors in s.flags:
s.transformedBody = injectDestructorCalls(g, idgen, s, s.transformedBody)
setNestedClosureBodies(g, idgen, s.transformedBody, s, seen)
else:
for i in 0 ..< n.safeLen:
setNestedClosureBodies(g, idgen, n[i], owner, seen)
proc reownFromTwin(n: PNode; twin, s: PSym) =
## Re-own to `s` every entity the frontend attributed to `s`'s forward-decl
## `twin` (found via the result's owner). lambda-lifting compares owners by
## reference, so a twin-owned `result` is rejected as `illegalCapture`
## ("'result' ... cannot be captured") and, once that is fixed, twin-owned
## locals go missing from `s`'s env ("environment misses: ..."). Both are
## pervasive on chronos `{.async.}` methods. Re-owning to `s` matches the
## single-sym non-IC case. `twin` is ONE specific sym, so only THIS routine's
## result-twin-owned entities match — re-owning entities of OTHER same-name
## twins proved too blunt (it disrupts env construction and reintroduces the
## very capture errors it should fix). `n.sym != s` guards self-ownership.
if n == nil: return
if n.kind == nkSym and n.sym != nil and n.sym != s and n.sym.owner == twin:
setOwner(n.sym, s)
for i in 0 ..< n.safeLen:
reownFromTwin(n[i], twin, s)
proc generateLowerStage(g: ModuleGraph; mainFileIdx: FileIndex) =
## Per-module backend lowering (`--icBackendStage:lower --icBackendModule:<suffix>`):
## enumerate the routines this module OWNS and write them to `<module>.t.nif`.
## Eventually this transforms each owned routine once, in the owner's id space,
## so `cg` reads the result instead of re-deriving it (re-derivation per
## parallel `cg` process is the root of the closure-`:env` identity drift).
## Runs per module in parallel on the shallow backend dep-graph — NOT folded
## into the dense, mostly-serial sem stage.
##
## gate `newSymNode`'s lazy-type marking to the backend (see astdef) — the
## transform builds sym nodes off not-yet-typed stubs, exactly as the `cg`
## stage does.
nifcBackendActive = true
let mainSuffix = cachedModuleSuffix(g.config, mainFileIdx)
let targetIsMain = g.config.icBackendModule.len == 0 or
g.config.icBackendModule == mainSuffix
var modules: seq[PrecompiledModule]
var precompSys: PrecompiledModule
var target: PrecompiledModule
if targetIsMain:
var nifFiles: seq[string]
(modules, precompSys, nifFiles) = loadBackendModules(g, mainFileIdx)
if modules.len == 0:
rawMessage(g.config, errGenerated,
"Cannot load NIF file for main module: " & toFullPath(g.config, mainFileIdx))
return
target = findTargetModule(g, modules, precompSys, g.config.icBackendModule)
else:
(modules, precompSys, target) = loadDepClosure(g, g.config.icBackendModule)
if target.module == nil:
rawMessage(g.config, errGenerated,
"per-module lowering: module not found for suffix: " & g.config.icBackendModule)
return
let modPos = target.module.position
let tb = BModuleList(g.backend).mods[modPos]
if tb == nil:
rawMessage(g.config, errGenerated,
"per-module lowering: no backend module for suffix: " & g.config.icBackendModule)
return
# Transform every owned routine ONCE in this single process's id space and
# re-serialize the ENTIRE module as a proper indexed NIF (`writeLoweredModule`)
# with the transformed bodies baked into the routine `(sd)` entries. `cg` loads
# it through the normal module loader, so nested procs (incl. async state
# machines) arrive as real defs with their lifted bodies — no re-derivation.
# This single-writer-per-owner is what keeps closure-`:env` identity stable
# across the parallel `cg` processes (re-derivation per process was the root of
# the `:env` identity drift). `transformBody` with flags {} mirrors the cg call
# (cgen.nim); `injectDestructorCalls` is NOT run here — it stays in `cg` on the
# loaded body.
#
# `transformBody`/lambda-lifting LIFTS the closure env's type-bound ops
# (`=destroy` etc.) into `g.opsLog`; snapshot its length so we serialize exactly
# the ops THIS stage created (not those loaded from `.s.nif`).
let opsLogStart = g.opsLog.len
# Shared across the owned loop so a nested routine reachable from more than one
# owner is transformed + destructor-injected EXACTLY once (double injection
# would emit two `=destroy`/`=copy` runs).
var seenNested = initIntSet()
for s in moduleSymbolStubs(ast.program, FileIndex modPos):
if ownsRuntimeRoutine(s, modPos):
# REUSE path (`icReuseSemLowering` ON): a routine already transformed during
# sem (CT eval / macro / VM transform) carries its lowered body in the
# `.s.nif` slot (loaded into `transformedBody`) — don't re-transform it.
# Default OFF: the slot is never loaded (see loadSymFromCursor), so
# `transformedBody` is nil here and we always re-derive below. See
# doc/ic_backend_simplify.md §6a/§6b.
if icReuseSemLowering(g.config) and s.transformedBody != nil: continue
# A routine serialized as a forward-decl + impl pair (writeSymDef's
# "separate forward declaration and implementation") loads as TWO syms; the
# impl `s` we transform here can carry body entities (`result`, locals,
# nested routines) owned by its fwd-decl TWIN, not by `s`. lambda-lifting
# compares owners by reference → `illegalCapture` rejects a twin-owned
# `result` and the lifting pass can't find twin-owned locals in `s`'s env.
# Pervasive on chronos `{.async.}` methods. Re-own them to `s`, matching the
# single-sym non-IC case. Backend-only, so frontend effect/exception
# inference is untouched.
if s.ast != nil and s.ast.len > resultPos and
s.ast[resultPos].kind == nkSym and s.ast[resultPos].sym.owner != s:
reownFromTwin(s.ast, s.ast[resultPos].sym.owner, s)
# Retain the transformed body on the sym so `writeSymDef` serializes it in
# the routine's `(sd)` 2-way-body slot.
s.transformedBody = transformBody(g, tb.idgen, s, {})
# Run the destructor injection HERE so the `.t.bif` body is FULLY lowered:
# `injectDestructorCalls` is demand-driven (it decides where destructors go
# by move analysis) and LIFTS the type-bound ops it needs (e.g. a nested
# closure env's `=destroy`) into `g.opsLog` — which the `hooks` collection
# below then serializes. Done in `cg` instead, those ops were lifted per-cg
# process, owned by nobody, and emitted as a prototype-only → undefined at
# link (the `eqdestroy__c<n>` gap). cg must NOT re-inject a loaded body
# (see genProcLvl3's `wasLoaded` gate) so this stays the single injection.
if sfInjectDestructors in s.flags:
s.transformedBody = injectDestructorCalls(g, tb.idgen, s, s.transformedBody)
# Cache the lifted+injected body on nested ccClosure routines too, so a
# module-indexed nested closure serializes its lifted (capture-rewritten,
# destructor-injected) body.
setNestedClosureBodies(g, tb.idgen, s.transformedBody, s, seenNested)
# Collect the hooks this stage lifted, and transform each hook ROUTINE's body
# too (it is itself lowered into NIFC). The hooks' `(sd)` + transformed body go
# into the `.t.nif`; `cg` re-attaches them so `injectDestructorCalls` resolves
# the loaded env's `=destroy`. Iterate to a fixpoint: a hook body can lift
# further hooks (a field's `=destroy`).
var hooks: seq[LogEntry] = @[]
var i = opsLogStart
while i < g.opsLog.len:
let e = g.opsLog[i]
if e.kind == HookEntry and e.sym != nil and e.sym.kind in routineKinds and
e.sym.transformedBody == nil:
hooks.add e
# Transform the hook routine's body and cache it on the sym so `writeSymDef`
# serializes it in the hook's `(sd)` transformed-body slot (`transformBody
# {}` returns the body but does not cache it). Inject the hook's own
# destructors here too (it can destroy fields/temporaries) so cg loads a
# fully-lowered hook and never re-injects.
e.sym.transformedBody = transformBody(g, tb.idgen, e.sym, {})
if sfInjectDestructors in e.sym.flags:
e.sym.transformedBody = injectDestructorCalls(g, tb.idgen, e.sym, e.sym.transformedBody)
inc i
# Re-serialize the whole module to its suffix-based `.t.nif` (the path
# `toNifFilename` resolves for the cg/emit stages). `writeLoweredModule` seals
# routines itself.
let suffix = cachedModuleSuffix(g.config, FileIndex modPos)
let wholeArtifact = toGeneratedFile(g.config, AbsoluteFile(suffix), ".t.bif").string
writeLoweredModule(ast.program, g.config, target, hooks, wholeArtifact)
if isDefined(g.config, "icDceCheck"):
stderr.writeLine "[icLower] " & extractFilename(wholeArtifact) & " " &
$hooks.len & " hooks"
proc visitDep(suffix: string;
suffixToMod: Table[string, PrecompiledModule];
visited: var HashSet[string]; bl: BModuleList;
ordered: var seq[BModule]) =
## Post-order DFS over a module's import closure used to reconstruct the
## dependency (init) order: a dependency's init must be registered before its
## importer's. Appends each reachable non-main module's `BModule` to `ordered`.
if visited.containsOrIncl(suffix): return
let pm = suffixToMod.getOrDefault(suffix)
if pm.module == nil: return
for dep in pm.deps: # dependencies first (post-order)
visitDep(dep.string, suffixToMod, visited, bl, ordered)
if sfMainModule notin pm.module.flags:
let bm = bl.mods[pm.module.position]
if bm != nil: ordered.add bm
proc generateCgStage(g: ModuleGraph; mainFileIdx: FileIndex) =
## Per-module backend codegen (`--icBackendStage:cg --icBackendModule:<suffix>`):
## generate C for the single module named by `icBackendModule` and write only
## its `.c.nif` artifact (no merge, no `.c` render, no cc/link — those are
## separate nifmake rules).
##
## `findPendingModule` routes every demand into the target (emit-everywhere).
##
## A NON-main target loads only its own import closure (`loadDepClosure`); the
## whole program is no longer pulled into every parallel `cg` process. The main
## module still loads everything (`loadBackendModules`) because NimMain's init
## list and the method dispatchers are whole-program; its `cg` runs essentially
## alone (every other `.c.nif` precedes it), so it does not contend for memory.
# gate `newSymNode`'s lazy-type marking to this stage only (see astdef)
nifcBackendActive = true
let mainSuffix = cachedModuleSuffix(g.config, mainFileIdx)
let targetIsMain = g.config.icBackendModule.len == 0 or
g.config.icBackendModule == mainSuffix
var modules: seq[PrecompiledModule]
var precompSys: PrecompiledModule
var target: PrecompiledModule
if targetIsMain:
var nifFiles: seq[string]
(modules, precompSys, nifFiles) = loadBackendModules(g, mainFileIdx)
if modules.len == 0:
rawMessage(g.config, errGenerated,
"Cannot load NIF file for main module: " & toFullPath(g.config, mainFileIdx))
return
# No whole-program DCE here: each module emits the routines it owns and the
# MERGE stage recomputes the one program-wide live set across all `.c.nif`s.
# Running a whole-program liveness pass over all ~260 NIFs in the main `cg`
# would cost ~900 MB for a result the merge stage throws away.
target = findTargetModule(g, modules, precompSys, g.config.icBackendModule)
else:
# No whole-program load, hence no whole-program DCE: the target emits its
# full demanded closure and the merge stage drops what is globally dead.
(modules, precompSys, target) = loadDepClosure(g, g.config.icBackendModule)
if target.module == nil:
rawMessage(g.config, errGenerated,
"per-module codegen: module not found for suffix: " & g.config.icBackendModule)
return
# The `lower` stage already wrote each module's transformed bodies + lifted
# hooks into its `.t.nif`, which the loaders above read directly (toNifFilename
# resolves the `.t.nif`); transformed bodies arrive via loadSymFromCursor and
# lifted hooks via moduleFromNifFile's registerLoadedHooks. Nothing to apply.
generateCodeForModule(g, target)
let bl = BModuleList(g.backend)
# The main module also owns the whole-program method dispatchers + NimMain.
if sfMainModule in target.module.flags:
emitMethodDispatchers(g)
# NimMain (generated when the main module is finished) must call every other
# module's init/datInit. Those translation units are produced by their own
# `cg` processes, so the calls are registered here from each `.c.nif` meta
# head — which is why the main module's `cg` runs last, after every other
# `.c.nif` exists. Modules without init code (no `.c.nif`) register nothing.
#
# The registration order IS the runtime init order, and it must be the
# DEPENDENCY (post-order) order: an imported module's init has to run before
# its importer's. The whole-program backend gets this for free — it iterates
# `modulesClosed`, built in module-FINISH order (a post-order DFS over
# imports). Iterating `bl.mods` by position is WRONG: an importer gets a
# LOWER position than the modules it imports (its file is registered before
# its `import` statements are processed), so position order runs importers
# before their dependencies. That left chronicles' `topics_registry` — whose
# init sets `mainThreadId` — running AFTER a module that calls `registerTopic`
# from its own init, tripping the `getThreadId() == mainThreadId` assert at
# startup. So reconstruct the post-order DFS over the import closure here.
#
# NOTE: this is deliberately a SEPARATE traversal rather than reusing the
# module LOAD order — the per-module backend's C emit is sensitive to load
# order (it determines the main TU's header composition), so the loader must
# keep its existing order and the init order is derived independently here.
var suffixToMod = initTable[string, PrecompiledModule]()
for pm in modules:
if pm.module != nil:
suffixToMod[cachedModuleSuffix(g.config, FileIndex pm.module.position)] = pm
if precompSys.module != nil:
suffixToMod[cachedModuleSuffix(g.config, FileIndex precompSys.module.position)] = precompSys
var visited = initHashSet[string]()
var ordered: seq[BModule] = @[]
# System (and its include/import closure) must initialize FIRST: its init
# runs `initGC()` (top-level code in `threadimpl`, included into system),
# and every other module's init may allocate — an allocation before the GC
# heap is set up triggers a collection over an uninitialized region and
# crashes (e.g. nim-metrics' `newRegistry` in its init). System is the
# IMPLICIT universal import and appears in no module's explicit `deps`, so a
# DFS rooted at main never reaches it; seed the traversal from system first.
if precompSys.module != nil:
visitDep(cachedModuleSuffix(g.config, FileIndex precompSys.module.position),
suffixToMod, visited, bl, ordered)
# Then order the whole import closure rooted at the main module; main itself
# is excluded above (its init body becomes NimMain).
for pm in modules:
if pm.module != nil and sfMainModule in pm.module.flags:
visitDep(cachedModuleSuffix(g.config, FileIndex pm.module.position),
suffixToMod, visited, bl, ordered)
# Defensive: any loaded module not reachable from main's import closure
# (demand-loaded system internals) keeps its init registered, appended last
# — nothing imports it, so its relative order does not matter.
for m in bl.mods:
if m != nil and sfMainModule notin m.module.flags:
let suffix = cachedModuleSuffix(g.config, FileIndex m.module.position)
if not visited.containsOrIncl(suffix):
ordered.add m
for m in ordered:
let heads = readCnifHeads(getCFile(m).string & ".nif")
registerReusedModuleToMain(bl, m, heads.initRequired, heads.datInitRequired)
let tb = bl.mods[target.module.position]
if tb != nil:
finishModule(g, tb)
# Writes only the target's `.c.nif` (every other loaded module's TU is empty,
# so `cgenWriteModules` emits no artifact for it). cc/link are NOT run here.
cgenWriteModules(g.backend, g.config)
# Always leave a `.c.nif` for the target, even when the module has no code
# (a leaf library whose procs all emit into their users): the per-module
# nifmake graph declares one `.c.nif` output per `cg` rule, so a missing one
# would re-fire the rule forever. An empty artifact renders to an empty `.c`.
if tb != nil:
let artifact = getCFile(tb).string & ".nif"
if not fileExists(artifact):
writeCnifArtifact("", artifact,
semmedNif = toNifFilename(g.config, FileIndex target.module.position),
moduleBase = $getSomeNameForModule(tb))
proc generateMergeStage(g: ModuleGraph) =
## Per-module backend merge (`--icBackendStage:merge`): a pure artifact
## operation, no module graph loaded. Reads every `.c.nif` the `cg` stages
## wrote, computes the global live set and — for each `'u'`-flagged unique
## definition that several `cg` processes emitted (emit-everywhere) — the one
## artifact allowed to embed its body, and writes the decision the `emit`
## stages consume — the cross-process replacement for what used to be
## in-process first-claimant/DCE coordination.
let nimcache = getNimcacheDir(g.config).string
var files: seq[string] = @[]
for artifact in walkFiles(nimcache / "*.c.nif"):
files.add artifact
sort files
let decision = computeMergeDecision(files)
if decision.broken:
rawMessage(g.config, errGenerated,
"per-module backend merge: a .c.nif artifact is missing or unparsable")
return
writeMergeDecision(nimcache / MergeDecisionFile, decision)
if isDefined(g.config, "icDceCheck"):
stderr.writeLine "[icMerge] artifacts: " & $files.len &
" live: " & $decision.live.len & " defs: " & $decision.defs &
" liveDefs: " & $decision.liveDefs & " owned: " & $decision.owners.len
proc generateEmitStage(g: ModuleGraph; mainFileIdx: FileIndex) =
## Per-module backend emit (`--icBackendStage:emit --icBackendModule:<suffix>`):
## render the target module's final `.c` from its `.c.nif` and the merge
## decision. Loads the target the same way `cg` does so `getCFile` returns the
## identical path `cg` wrote to (the main module's source-vs-suffix aliasing in
## particular); no codegen runs. A non-main target loads only its own closure
## (`loadDepClosure`) so emit, like `cg`, stays bounded under parallel fan-out.
let mainSuffix = cachedModuleSuffix(g.config, mainFileIdx)
let targetIsMain = g.config.icBackendModule.len == 0 or
g.config.icBackendModule == mainSuffix
# emit renders a module's final `.c` PURELY from its own `.c.nif` and the merge
# decision (see `renderCFromArtifact` — text filtering, no AST is touched). It
# used to load the target's whole transitive import closure as BModules solely
# to reach `getCFile(bmod)` for the output path. Under the fire-all-every-edit
# merge barrier (every `emit` re-fires whenever `merge` bumps the decision's
# mtime — deliberate insurance so a decision change re-renders all `.c`
# consistently) that per-process `loadDepClosure` was the bulk of a warm
# rebuild's cost: 240 processes each re-parsing a module closure only to filter
# a handful of `.c.nif`s whose bytes are usually unchanged. Derive the `.c`
# path directly instead — the SAME pure computation `deps.nim.backendCFile`
# uses to DECLARE this stage's output (`getCFile` == that formula) — so an emit
# process loads nothing and the fire-all costs process-startup, not a graph load.
let cfilename =
if targetIsMain: AbsoluteFile toFullPath(g.config, mainFileIdx)
else: AbsoluteFile g.config.icBackendModule
let cfile = changeFileExt(completeCfilePath(g.config,
mangleModuleName(g.config, cfilename).AbsoluteFile), ".nim.c").string
let artifact = cfile & ".nif"
if not fileExists(artifact):
rawMessage(g.config, errGenerated,
"per-module emit: missing .c.nif artifact for suffix: " & g.config.icBackendModule)
return
let decision = readMergeDecision(getNimcacheDir(g.config).string / MergeDecisionFile)
if decision.broken:
rawMessage(g.config, errGenerated,
"per-module emit: missing or unparsable merge decision " & MergeDecisionFile)
return
var dropped = 0
let code = renderCFromArtifact(artifact, decision, extractFilename(artifact), dropped)
# Write the `.c` content-stably. `merge` re-runs on any edit and bumps the
# decision file's mtime, so nifmake re-fires every `emit` (the filter is cheap);
# but the FILTERED output is usually byte-identical for modules unaffected by
# the edit. Rewriting it unconditionally would bump every `.c`'s mtime and make
# `callCCompiler` recompile every `.o`. Writing only on a real change preserves
# the mtime, so the C compiler recompiles exactly the modules whose `.c` changed
# — the same DCE model as Nimony's. Safe here (unlike a content-stable merge
# decision): a `.c` is a per-module LEAF consumed only by the C compiler's own
# up-to-date check, not a shared prerequisite in nifmake's mtime ordering.
if not fileExists(cfile) or readFile(cfile) != code:
writeFile(cfile, code)
if isDefined(g.config, "icDceCheck"):
stderr.writeLine "[icEmit] " & extractFilename(cfile) & " dropped " &
$dropped & " bodies (" & $code.len & " bytes)"
proc generateLinkStage(g: ModuleGraph; mainFileIdx: FileIndex) =
## Per-module backend link (`--icBackendStage:link`): the `emit` stages have
## written every module's `.c`; register them and run the C compiler + linker
## once via `extccomp.callCCompiler` (which parallelizes the per-file cc and
## skips up-to-date objects itself). No codegen runs — the graph is loaded only
## so `getCFile` yields each module's emitted `.c` path.
let (modules, precompSys, _) = loadBackendModules(g, mainFileIdx)
if modules.len == 0:
rawMessage(g.config, errGenerated,
"Cannot load NIF file for main module: " & toFullPath(g.config, mainFileIdx))
return
# The per-module `cg` processes each collect their module's C compile/link
# directives (`{.passL: "-lm".}` etc.) via `replayBackendActions`, but those
# live in the cg process and never reach this separate link process. Re-collect
# every loaded module's directives here so the final `callCCompiler` sees them
# (without this, math's `-lm` is lost → undefined `floor`/`pow`/… at link).
for m in modules:
replayBackendActions(g, m.module, m.topLevel)
if precompSys.module != nil:
replayBackendActions(g, precompSys.module, precompSys.topLevel)
let bl = BModuleList(g.backend)
var addedCFiles = initHashSet[string]()
for m in bl.mods:
if m != nil:
let cfile = getCFile(m)
# Only modules that are their own cg/emit target produced a `.c`; the rest
# (extra members of system's closure that no build rule targets) had their
# code emit-everywhere'd into the targets, so they have no file to compile.
if not fileExists(cfile.string): continue
addedCFiles.incl extractFilename(cfile.string)
var cf = Cfile(nimname: m.module.name.s, cname: cfile,
obj: completeCfilePath(g.config, toObjFile(g.config, cfile)),
flags: {})
# `addExternalFileToCompile` (not `addFileToCompile`) gates each `.c` on its
# SHA1 footprint: an unchanged `.c` keeps its `.o` and is flagged Cached, so
# `callCCompiler` skips its compile but still links the existing object. This
# is what makes a localized edit recompile only the handful of `.c`s the
# `emit` stage actually rewrote, instead of every object every time — the
# final piece of per-module backend incrementality after the merge barrier.
addExternalFileToCompile(g.config, cf)
# deps.nim's static scanner can keep a CONDITIONALLY-imported module as a build
# node (e.g. `net`'s `when defineSsl: import openssl`, or a `when defined(os)`
# import) that the NIF-`deps` walk above never reaches because the condition is
# off. Such a node still emitted a `.c`, and it can OWN a live generic instance
# that a REACHABLE module reuses (openssl owns `toHex[uint8]`, reused by
# `strutils.escape`) — so its body must be at link or that reference is
# undefined. Link every emitted `.c` the merge decision says OWNS a LIVE symbol;
# a node that owns nothing live (a Windows-only winsock node on Linux) is
# correctly skipped.
block:
let nimcache = getNimcacheDir(g.config).string
let decision = readMergeDecision(nimcache / MergeDecisionFile)
if not decision.broken:
var liveOwners = initHashSet[string]()
for cname, owner in decision.owners:
if owner.endsWith(".c.nif") and cname in decision.live:
liveOwners.incl owner
for owner in liveOwners:
let cbase = owner[0 ..< owner.len - ".nif".len] # "@m….nim.c.nif" -> ".c"
if addedCFiles.containsOrIncl(cbase): continue
let cfile = AbsoluteFile(nimcache / cbase)
if not fileExists(cfile.string): continue
var cf = Cfile(nimname: cbase, cname: cfile,
obj: completeCfilePath(g.config, toObjFile(g.config, cfile)),
flags: {})
addExternalFileToCompile(g.config, cf)
if g.config.cmd != cmdTcc:
extccomp.callCCompiler(g.config)
proc generateCode*(g: ModuleGraph; mainFileIdx: FileIndex) =
## Main entry point for NIF-based C code generation.
## Traverses the module dependency graph and generates C code.
if g.config.icBackendStage == "lower":
generateLowerStage(g, mainFileIdx)
return
elif g.config.icBackendStage == "cg":
generateCgStage(g, mainFileIdx)
return
elif g.config.icBackendStage == "merge":
generateMergeStage(g)
return
elif g.config.icBackendStage == "emit":
generateEmitStage(g, mainFileIdx)
return
elif g.config.icBackendStage == "link":
generateLinkStage(g, mainFileIdx)
return
else:
rawMessage(g.config, errGenerated,
"the per-module NIF backend requires --icBackendStage:lower|cg|merge|emit|link")

File diff suppressed because it is too large Load Diff

View File

@@ -183,6 +183,12 @@ func `<`*(a: ExprIndex, b: ExprIndex): bool =
func `<=`*(a: ExprIndex, b: ExprIndex): bool =
a.int16 <= b.int16
func `>`*(a: ExprIndex, b: ExprIndex): bool =
a.int16 > b.int16
func `>=`*(a: ExprIndex, b: ExprIndex): bool =
a.int16 >= b.int16
func `==`*(a: ExprIndex, b: ExprIndex): bool =
a.int16 == b.int16
@@ -913,7 +919,7 @@ proc infix(ctx: NilCheckerContext, l: PNode, r: PNode, magic: TMagic): PNode =
newSymNode(op, r.info),
l,
r)
result.typ = newType(tyBool, ctx.idgen, nil)
result.typ() = newType(tyBool, ctx.idgen, nil)
proc prefixNot(ctx: NilCheckerContext, node: PNode): PNode =
var cache = newIdentCache()
@@ -923,7 +929,7 @@ proc prefixNot(ctx: NilCheckerContext, node: PNode): PNode =
result = nkPrefix.newTree(
newSymNode(op, node.info),
node)
result.typ = newType(tyBool, ctx.idgen, nil)
result.typ() = newType(tyBool, ctx.idgen, nil)
proc infixEq(ctx: NilCheckerContext, l: PNode, r: PNode): PNode =
infix(ctx, l, r, mEqRef)

View File

@@ -11,14 +11,6 @@ define:nimPreviewRangeDefault
define:nimPreviewNonVarDestructor
define:nimPreviewCheckedClose
define:nimPreviewAsmSemSymbol
define:nimPreviewCStringComparisons
#define:nimPreviewDuplicateModuleError
# Incompatible with Nimony's compat2.nim for now
# NOTE: `-d:virtualParRi` (jump-encoded ParLe + elided ParRi) is NOT yet enabled:
# the IC writer assembles buffers by raw token splicing (`dest.add content[i]`),
# which does not seal scopes the way `addParRi` does, so sealed `(stmts)` get
# jump=0 and serialize empty. Enabling it needs writer buffer-sealing work first.
threads:off
#import:"$projectpath/testability"
@@ -70,7 +62,3 @@ define:useStdoutAsStdmsg
@if nimHasVtables:
experimental:vtables
@end
@if nimHasImplicitRangeConversion:
warning[ImplicitRangeConversion]:off
@end

View File

@@ -28,13 +28,10 @@ import
commands, options, msgs, extccomp, main, idents, lineinfos, cmdlinehelper,
pathutils, modulegraphs
from ast2nif import registerNifAstTags
from icconfig import ensureIcConfig
from std/browsers import openDefaultBrowser
from nodejs import findNodeJs
when defined(tinyc): # == hasTinyCBackend; spelled out for the IC dep scanner
when hasTinyCBackend:
import tccgen
when defined(profiler) or defined(memProfiler):
@@ -99,11 +96,6 @@ proc getNimRunExe(conf: ConfigRef): string =
result = ""
proc handleCmdLine(cache: IdentCache; conf: ConfigRef) =
# NIF tag registration must not depend on module init order — the IC-built
# compiler orders module init calls differently and the top-level
# `registerTag` initializers then ran against a not-yet-initialized pool,
# corrupting every written NIF (see registerNifAstTags).
registerNifAstTags()
let self = NimProg(
supportsStdinFile: true,
processCmdLine: processCmdLine
@@ -115,14 +107,6 @@ proc handleCmdLine(cache: IdentCache; conf: ConfigRef) =
self.processCmdLineAndProjectPath(conf)
# `nim ic` driver: ensure the precompiled config exists (produced by a separate
# `nim icconfig` process, skipped when nothing changed) BEFORE config loading,
# so `loadConfigs` replays it instead of re-parsing the `nim.cfg` chain — the
# driver runs on the exact same config its children will. See icconfig.nim.
when not defined(nimKochBootstrap):
if conf.cmd in {cmdIc, cmdTrack}:
ensureIcConfig(conf)
var graph = newModuleGraph(cache, conf)
if not self.loadConfigsAndProcessCmdLine(cache, conf, graph):
return
@@ -134,14 +118,9 @@ proc handleCmdLine(cache: IdentCache; conf: ConfigRef) =
if conf.selectedGC == gcUnselected:
if conf.backend in {backendC, backendCpp, backendObjc} or
(conf.cmd in cmdDocLike and conf.backend != backendJs) or
conf.cmd in {cmdGendepend, cmdNifC, cmdIc, cmdM, cmdTrack}:
conf.cmd == cmdGendepend:
initOrcDefines(conf)
if conf.selectedStrings == stringSso and
conf.selectedGC notin {gcArc, gcOrc, gcYrc, gcAtomicArc}:
rawMessage(conf, errGenerated,
"--strings:sso requires --mm:arc, --mm:orc, --mm:yrc, or --mm:atomicArc")
mainCommand(graph)
if conf.hasHint(hintGCStats): echo(GC_getStatistics())
#echo(GC_getStatistics())

View File

@@ -11,7 +11,7 @@
import
llstream, commands, msgs, lexer, ast,
options, idents, wordrecg, lineinfos, pathutils, scriptconfig, icconfig
options, idents, wordrecg, lineinfos, pathutils, scriptconfig
import std/[os, strutils, strtabs]
@@ -207,6 +207,7 @@ proc parseAssignment(L: var Lexer, tok: var Token;
checkSymbol(L, tok)
val.add($tok)
confTok(L, tok, config, condStack)
config.currentConfigDir = parentDir(filename.string)
if percent:
processSwitch(s, strtabs.`%`(val, config.configVars,
{useEnvironment, useEmpty}), passPP, info, config)
@@ -246,20 +247,8 @@ proc getSystemConfigPath*(conf: ConfigRef; filename: RelativeFile): AbsoluteFile
proc loadConfigs*(cfg: RelativeFile; cache: IdentCache; conf: ConfigRef; idgen: IdGenerator) =
setDefaultLibpath(conf)
# The `nim ic` driver and its `nim m`/`nim nifc` children replay the precompiled
# config (produced once by a separate `nim icconfig` process — see
# `icconfig.ensureIcConfig`, which sets `icPreparsedConfig` for the driver
# before this runs; the children get it as a forwarded `--icPreparsedConfig`
# argument) instead of re-reading the `nim.cfg` chain and re-running
# `config.nims` in the VM. A missing/format-incompatible artifact returns false:
# fall through to a normal parse (this is also the path the `nim icconfig`
# producer itself takes, since it runs with no `icPreparsedConfig`).
if conf.icPreparsedConfig.len > 0 and applyIcConfig(conf, conf.icPreparsedConfig):
return
template readConfigFile(path) =
let configPath = path
conf.currentConfigDir = configPath.splitFile.dir.string
setConfigVar(conf, "selfDir", conf.currentConfigDir)
if readConfigFile(configPath, cache, conf):
conf.configFiles.add(configPath)
@@ -316,7 +305,7 @@ proc loadConfigs*(cfg: RelativeFile; cache: IdentCache; conf: ConfigRef; idgen:
if conf.cmd == cmdNimscript:
showHintConf()
conf.configFiles.setLen 0
if not conf.ideActive and conf.cmd notin {cmdCheck, cmdDump}:
if conf.cmd notin {cmdIdeTools, cmdCheck, cmdDump}:
if conf.cmd == cmdNimscript:
runNimScriptIfExists(conf.projectFull, isMain = true)
else:

View File

@@ -128,7 +128,7 @@ proc createInterpreter*(scriptName: string;
if conf.libpath.isEmpty: conf.libpath = AbsoluteDir p
var m = graph.makeModule(scriptName)
incl(m, sfMainModule)
incl(m.flags, sfMainModule)
var idgen = idGeneratorFromModule(m)
var vm = newCtx(m, cache, graph, idgen)
vm.mode = emRepl
@@ -168,7 +168,7 @@ proc runRepl*(r: TLLRepl;
if supportNimscript: defineSymbol(conf.symbols, "nimconfig")
when hasFFI: defineSymbol(graph.config.symbols, "nimffi")
var m = graph.makeStdinModule()
incl(m, sfMainModule)
incl(m.flags, sfMainModule)
var idgen = idGeneratorFromModule(m)
if supportNimscript: graph.vm = setupVM(m, cache, "stdin", graph, idgen)

View File

@@ -84,7 +84,7 @@ proc toTreeSet*(conf: ConfigRef; s: TBitSet, settype: PType, info: TLineInfo): P
elemType = settype[0]
first = firstOrd(conf, elemType).toInt64
result = newNodeI(nkCurly, info)
result.typ = settype
result.typ() = settype
result.info = info
e = 0
while e < s.len * ElemSize:
@@ -101,7 +101,7 @@ proc toTreeSet*(conf: ConfigRef; s: TBitSet, settype: PType, info: TLineInfo): P
result.add aa
else:
n = newNodeI(nkRange, info)
n.typ = elemType
n.typ() = elemType
n.add aa
let bb = newIntTypeNode(b + first, elemType)
bb.info = info

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