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2 Commits

Author SHA1 Message Date
ringabout
f76fa20ea7 Merge branch 'devel' into pr_union_cast 2024-07-31 22:13:54 +08:00
ringabout
a2fbf13e2d fixes #18540; union casts for float conv 2024-07-31 20:29:03 +08:00
797 changed files with 5013 additions and 19295 deletions

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@@ -7,16 +7,17 @@ body:
- type: markdown
attributes:
value: |
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.
- **Please provide a minimal code example that reproduces the Bug!** :bug:
Reports with a reproducible example and descriptive detailed information will likely receive fixes faster.
- type: textarea
id: description
attributes:
label: Description
description: |
Describe the problem. Code example can be given here.
placeholder: Bug reports with reproducible code or detailed information will be fixed faster.
Use DETAILED DESCRIPTIVE information about the problem.
Here, you go into more details about your Bug report. This section can be a few paragraphs long.
placeholder: Bug reports with reproducible code and detailed information will be fixed faster.
validations:
required: true
@@ -24,9 +25,7 @@ body:
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.
description: Copy and paste the output of `nim -v` on the command line. For development versions, make sure to include the commit hash.
validations:
required: true
@@ -35,7 +34,7 @@ body:
attributes:
label: Current Output
description: Please copy and paste any relevant log output. This will be automatically formatted into code, so no need for backticks.
placeholder: Bug reports with reproducible code or detailed information will be fixed faster.
placeholder: Bug reports with reproducible code and detailed information will be fixed faster.
render: text
- type: textarea
@@ -43,14 +42,14 @@ body:
attributes:
label: Expected Output
description: Please copy and paste any relevant log output. This will be automatically formatted into code, so no need for backticks.
placeholder: Bug reports with reproducible code or detailed information will be fixed faster.
placeholder: Bug reports with reproducible code and detailed information will be fixed faster.
render: text
- type: textarea
id: known-workarounds
id: possible-solution
attributes:
label: Known Workarounds
description: Provide any known workarounds.
label: Possible Solution
description: Propose a possible solution.
validations:
required: false
@@ -65,9 +64,13 @@ body:
- type: markdown
attributes:
value: |
- Please check whether the problem still exists in the devel branch, which can be installed via [choosenim](https://github.com/nim-lang/choosenim/), [nightlies](https://github.com/nim-lang/nightlies/), or by [creating a temporary build of the compiler](https://nim-lang.github.io/Nim/intern.html#debugging-the-compiler-building-an-instrumented-compiler).
- Thanks for your contributions!, your Bug report will receive feedback from the community soon...
- Please check whether the problem still exists in the devel branch, see [rebuilding the compiler](https://nim-lang.github.io/Nim/intern.html#rebuilding-the-compiler).
- Consider writing a PR targetting devel branch after filing this, see [contributing](https://nim-lang.github.io/Nim/contributing.html).
- If it's a pre-existing compiler bug, see [debugging the compiler](https://nim-lang.github.io/Nim/intern.html#debugging-the-compiler) which should give more context on a compiler crash.
- If it's a regression, you can help us by identifying which version introduced the bug by [bisecting](https://nim-lang.github.io/Nim/intern.html#bisecting-for-regressions) or at least trying known past releases (e.g. `choosenim 2.0.0`).
The Nim repo also supports bisecting in issue comments by adding `!nim c`, `!nim js` etc. before a code block, see [nimrun-action](https://github.com/juancarlospaco/nimrun-action).
- If it's a pre-existing compiler bug, see [Debugging the compiler](https://nim-lang.github.io/Nim/intern.html#debugging-the-compiler)
which should give more context on a compiler crash.
- If it's a regression, you can help us by identifying which version introduced the bug,
see [Bisecting for regressions](https://nim-lang.github.io/Nim/intern.html#bisecting-for-regressions),
or at least try known past releases (e.g. `choosenim 2.0.0`). The Nim repo also supports online bisecting
via making a comment, which contains a code block starting by `!nim c`, `!nim js` etc. , see [nimrun-action](https://github.com/juancarlospaco/nimrun-action).
- [Please, consider a Donation for the Nim project.](https://nim-lang.org/donate.html)

View File

@@ -41,11 +41,11 @@ jobs:
target: [linux, windows, osx]
include:
- target: linux
os: ubuntu-22.04
os: ubuntu-20.04
- target: windows
os: windows-2019
- target: osx
os: macos-13
os: macos-12
name: ${{ matrix.target }}
runs-on: ${{ matrix.os }}

View File

@@ -4,7 +4,6 @@ on:
push:
branches:
- 'devel'
- 'version-2-2'
- 'version-2-0'
- 'version-1-6'
- 'version-1-2'
@@ -18,7 +17,7 @@ jobs:
strategy:
fail-fast: false
matrix:
os: [ubuntu-22.04, macos-13]
os: [ubuntu-20.04, macos-12]
cpu: [amd64]
batch: ["allowed_failures", "0_3", "1_3", "2_3"] # list of `index_num`
name: '${{ matrix.os }} (batch: ${{ matrix.batch }})'
@@ -49,7 +48,6 @@ jobs:
- name: 'Install dependencies (macOS)'
if: runner.os == 'macOS'
run: brew install boehmgc make sfml gtk+3
# XXX can't find boehm and gtk on macos 13
- name: 'Install dependencies (Windows)'
if: runner.os == 'Windows'
shell: bash

View File

@@ -11,7 +11,7 @@ jobs:
strategy:
fail-fast: false
matrix:
os: [ubuntu-22.04]
os: [ubuntu-20.04]
cpu: [amd64]
name: '${{ matrix.os }}'
runs-on: ${{ matrix.os }}
@@ -21,10 +21,10 @@ jobs:
with:
fetch-depth: 2
- name: 'Install node.js'
- name: 'Install node.js 20.x'
uses: actions/setup-node@v4
with:
node-version: ''
node-version: '20.x'
- name: 'Install dependencies (Linux amd64)'
if: runner.os == 'Linux' && matrix.cpu == 'amd64'
@@ -34,6 +34,17 @@ jobs:
sudo apt-fast install --no-install-recommends -yq \
libcurl4-openssl-dev libgc-dev libsdl1.2-dev libsfml-dev \
valgrind libc6-dbg libblas-dev xorg-dev
- name: 'Install dependencies (macOS)'
if: runner.os == 'macOS'
run: brew install boehmgc make sfml gtk+3
- name: 'Install dependencies (Windows)'
if: runner.os == 'Windows'
shell: bash
run: |
set -e
. ci/funs.sh
nimInternalInstallDepsWindows
echo_run echo "${{ github.workspace }}/dist/mingw64/bin" >> "${GITHUB_PATH}"
- name: 'Add build binaries to PATH'
shell: bash

View File

@@ -20,7 +20,7 @@ jobs:
strategy:
matrix:
Linux_amd64:
vmImage: 'ubuntu-24.04'
vmImage: 'ubuntu-20.04'
CPU: amd64
# regularly breaks, refs bug #17325
# Linux_i386:
@@ -29,23 +29,23 @@ jobs:
# vmImage: 'ubuntu-18.04'
# CPU: i386
OSX_amd64:
vmImage: 'macOS-13'
vmImage: 'macOS-12'
CPU: amd64
OSX_amd64_cpp:
vmImage: 'macOS-13'
vmImage: 'macOS-12'
CPU: amd64
NIM_COMPILE_TO_CPP: true
Windows_amd64_batch0_3:
vmImage: 'windows-2025'
vmImage: 'windows-2019'
CPU: amd64
# see also: `NIM_TEST_PACKAGES`
NIM_TESTAMENT_BATCH: "0_3"
Windows_amd64_batch1_3:
vmImage: 'windows-2025'
vmImage: 'windows-2019'
CPU: amd64
NIM_TESTAMENT_BATCH: "1_3"
Windows_amd64_batch2_3:
vmImage: 'windows-2025'
vmImage: 'windows-2019'
CPU: amd64
NIM_TESTAMENT_BATCH: "2_3"
@@ -80,12 +80,10 @@ jobs:
- bash: |
set -e
. ci/funs.sh
echo_run sudo add-apt-repository universe
echo_run sudo apt-get update -qq
echo_run sudo apt-fast update -qq
DEBIAN_FRONTEND='noninteractive' \
echo_run sudo apt-get install --no-install-recommends -yq \
gcc-14 g++-14 libpcre3 liblapack-dev libpcre3 liblapack-dev libcurl4-openssl-dev libgc-dev libsdl1.2-dev libsfml-dev valgrind libc6-dbg
echo_run sudo update-alternatives --install /usr/bin/gcc gcc /usr/bin/gcc-14 60 --slave /usr/bin/g++ g++ /usr/bin/g++-14
echo_run sudo apt-fast install --no-install-recommends -yq \
libcurl4-openssl-dev libgc-dev libsdl1.2-dev libsfml-dev valgrind libc6-dbg
displayName: 'Install dependencies (amd64 Linux)'
condition: and(succeeded(), eq(variables['skipci'], 'false'), eq(variables['Agent.OS'], 'Linux'), eq(variables['CPU'], 'amd64'))
@@ -102,16 +100,15 @@ jobs:
Pin-Priority: 1001
EOF
# echo_run sudo apt-get update -qq
echo_run sudo apt-get update -qq || echo "failed, see bug #17343"
# echo_run sudo apt-fast update -qq
echo_run sudo apt-fast update -qq || echo "failed, see bug #17343"
# `:i386` (e.g. in `libffi-dev:i386`) is needed otherwise you may get:
# `could not load: libffi.so` during dynamic loading.
DEBIAN_FRONTEND='noninteractive' \
echo_run sudo apt-get install --no-install-recommends --allow-downgrades -yq \
echo_run sudo apt-fast install --no-install-recommends --allow-downgrades -yq \
g++-multilib gcc-multilib libcurl4-openssl-dev:i386 libgc-dev:i386 \
libsdl1.2-dev:i386 libsfml-dev:i386 libglib2.0-dev:i386 libffi-dev:i386
cat << EOF > bin/gcc
#!/bin/bash
@@ -133,7 +130,6 @@ jobs:
- bash: brew install boehmgc make sfml
displayName: 'Install dependencies (OSX)'
condition: and(succeeded(), eq(variables['skipci'], 'false'), eq(variables['Agent.OS'], 'Darwin'))
# XXX can't find boehm on macos 13
- bash: |
set -e

View File

@@ -24,6 +24,6 @@ if not exist %nim_csources% (
cd ..
copy /y bin\nim.exe %nim_csources%
)
bin\nim.exe c --noNimblePath --skipUserCfg --skipParentCfg --hints:off koch
koch boot -d:release --skipUserCfg --skipParentCfg --hints:off
koch tools --skipUserCfg --skipParentCfg --hints:off
bin\nim.exe c --noNimblePath --skipUserCfg --skipParentCfg --hints:off koch
koch boot -d:release --skipUserCfg --skipParentCfg --hints:off
koch tools --skipUserCfg --skipParentCfg --hints:off

View File

@@ -1,83 +1,120 @@
# v2.x.x - yyyy-mm-dd
# v2.2.0 - yyyy-mm-dd
## Changes affecting backward compatibility
- `-d:nimPreviewFloatRoundtrip` becomes the default. `system.addFloat` and `system.$` now can produce string representations of
floating point numbers that are minimal in size and possess round-trip and correct
rounding guarantees (via the
[Dragonbox](https://raw.githubusercontent.com/jk-jeon/dragonbox/master/other_files/Dragonbox.pdf) algorithm). Use `-d:nimLegacySprintf` to emulate old behaviors.
- `-d:nimStrictDelete` becomes the default. An index error is produced when the index passed to `system.delete` was out of bounds. Use `-d:nimAuditDelete` to mimic the old behavior for backwards compatibility.
- The default user-agent in `std/httpclient` has been changed to `Nim-httpclient/<version>` instead of `Nim httpclient/<version>` which was incorrect according to the HTTP spec.
- Methods now support implementations based on a VTable by using `--experimental:vtables`. Methods are then confined to be in the same module where their type has been defined.
- With `-d:nimPreviewNonVarDestructor`, non-var destructors become the default.
- A bug where tuple unpacking assignment with a longer tuple on the RHS than the LHS was allowed has been fixed, i.e. code like:
```nim
var a, b: int
(a, b) = (1, 2, 3, 4)
```
will no longer compile.
- `internalNew` is removed from system, use `new` instead.
- The `default` parameter of `tables.getOrDefault` has been renamed to `def` to
avoid conflicts with `system.default`, so named argument usage for this
parameter like `getOrDefault(..., default = ...)` will have to be changed.
- `bindMethod` in `std/jsffi` is deprecated, don't use it with closures.
- With `-d:nimPreviewCheckedClose`, the `close` function in the `std/syncio` module now raises an IO exception in case of an error.
- JS backend now supports lambda lifting for closures. Use `--legacy:jsNoLambdaLifting` to emulate old behavior.
- Unknown warnings and hints now gives warnings `warnUnknownNotes` instead of
errors.
- With `-d:nimPreviewAsmSemSymbol`, backticked symbols are type checked in the `asm/emit` statements.
- The bare `except:` now panics on `Defect`. Use `except Exception:` or `except Defect:` to catch `Defect`. `--legacy:noPanicOnExcept` is provided for a transition period.
- `owner` in `std/macros` is deprecated.
## Standard library additions and changes
[//]: # "Additions:"
- `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.
[//]: # "Changes:"
- `std/math` The `^` symbol now supports floating-point as exponent in addition to the Natural type.
- Changed `std/osfiles.copyFile` to allow to specify `bufferSize` instead of a hardcoded one.
- Changed `std/osfiles.copyFile` to use `POSIX_FADV_SEQUENTIAL` hints for kernel-level aggressive sequential read-aheads.
- `std/htmlparser` has been moved to a nimble package, use `nimble` or `atlas` to install it.
[//]: # "Additions:"
- Added `newStringUninit` to system, which creates a new string of length `len` like `newString` but with uninitialized content.
- Added `setLenUninit` to system, which doesn't initialize
slots when enlarging a sequence.
- Added `hasDefaultValue` to `std/typetraits` to check if a type has a valid default value.
- Added Viewport API for the JavaScript targets in the `dom` module.
- Added `toSinglyLinkedRing` and `toDoublyLinkedRing` to `std/lists` to convert from `openArray`s.
- ORC: To be enabled via `nimOrcStats` there is a new API called `GC_orcStats` that can be used to query how many
objects the cyclic collector did free. If the number is zero that is a strong indicator that you can use `--mm:arc`
instead of `--mm:orc`.
- A `$` template is provided for `Path` in `std/paths`.
- `std/hashes.hash(x:string)` changed to produce a 64-bit string `Hash` (based
on Google's Farm Hash) which is also often faster than the present one. Define
`nimStringHash2` to get the old values back. `--jsbigint=off` mode always only
produces the old values. This may impact your automated tests if they depend
on hash order in some obvious or indirect way. Using `sorted` or `OrderedTable`
is often an easy workaround.
[//]: # "Deprecations:"
- Deprecates `system.newSeqUninitialized`, which is replaced by `newSeqUninit`.
[//]: # "Removals:"
- `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`.
## Language changes
- An experimental option `--experimental:typeBoundOps` has been added that
implements the RFC https://github.com/nim-lang/RFCs/issues/380.
This makes the behavior of interfaces like `hash`, `$`, `==` etc. more
reliable for nominal types across indirect/restricted imports.
- `noInit` can be used in types and fields to disable member initializers in the C++ backend.
- C++ custom constructors initializers see https://nim-lang.org/docs/manual_experimental.htm#constructor-initializer
- `member` can be used to attach a procedure to a C++ type.
- C++ `constructor` now reuses `result` instead creating `this`.
- Tuple unpacking changes:
- Tuple unpacking assignment now supports using underscores to discard values.
```nim
var a, c: int
(a, _, c) = (1, 2, 3)
```
- Tuple unpacking variable declarations now support type annotations, but
only for the entire tuple.
```nim
let (a, b): (int, int) = (1, 2)
let (a, (b, c)): (byte, (float, cstring)) = (1, (2, "abc"))
```
- An experimental option `genericsOpenSym` has been added to allow captured
symbols in generic routine bodies to be replaced by symbols injected locally
by templates/macros at instantiation time. `bind` may be used to keep the
captured symbols over the injected ones regardless of enabling the option.
Since this change may affect runtime behavior, the experimental switch
`genericsOpenSym` needs to be enabled, and a warning is given in the case
where an injected symbol would replace a captured symbol not bound by `bind`
and the experimental switch isn't enabled.
```nim
# objs.nim
import std/hashes
const value = "captured"
template foo(x: int, body: untyped) =
let value {.inject.} = "injected"
body
type
Obj* = object
x*, y*: int
z*: string # to be ignored for equality
proc old[T](): string =
foo(123):
return value # warning: a new `value` has been injected, use `bind` or turn on `experimental:genericsOpenSym`
echo old[int]() # "captured"
proc `==`*(a, b: Obj): bool =
a.x == b.x and a.y == b.y
{.experimental: "genericsOpenSym".}
proc hash*(a: Obj): Hash =
$!(hash(a.x) &! hash(a.y))
proc bar[T](): string =
foo(123):
return value
assert bar[int]() == "injected" # previously it would be "captured"
proc baz[T](): string =
bind value
foo(123):
return value
assert baz[int]() == "captured"
```
```nim
# main.nim
{.experimental: "typeBoundOps".}
from objs import Obj # objs.hash, objs.`==` not imported
import std/tables
var t: Table[Obj, int]
t[Obj(x: 3, y: 4, z: "debug")] = 34
echo t[Obj(x: 3, y: 4, z: "ignored")] # 34
```
See the [experimental manual](https://nim-lang.github.io/Nim/manual_experimental.html#typeminusbound-overloads)
for more information.
## Compiler changes
- `--nimcache` using a relative path as the argument in a config file is now relative to the config file instead of the current directory.
## Tool changes
- Added `--stdinfile` flag to name of the file used when running program from stdin (defaults to `stdinfile.nim`)
- koch now allows bootstrapping with `-d:nimHasLibFFI`, replacing the older option of building the compiler directly w/ the `libffi` nimble package in tow.

View File

@@ -53,7 +53,7 @@
- [``joyent_http_parser``](https://github.com/nim-lang/joyent_http_parser)
- Proc [toCountTable](https://nim-lang.org/docs/tables.html#toCountTable,openArray[A])
now produces a `CountTable` with values corresponding to the number of occurrences
now produces a `CountTable` with values correspoding to the number of occurrences
of the key in the input. It used to produce a table with all values set to `1`.
Counting occurrences in a sequence used to be:
@@ -339,7 +339,7 @@ for i in a..b:
- Fixed "ReraiseError when using try/except within finally block"
([#5871](https://github.com/nim-lang/Nim/issues/5871))
- Fixed "Range type inference leads to counter-intuitive behaviour"
- Fixed "Range type inference leads to counter-intuitive behvaiour"
([#5854](https://github.com/nim-lang/Nim/issues/5854))
- Fixed "JSON % operator can fail in extern procs with dynamic types"
([#6385](https://github.com/nim-lang/Nim/issues/6385))
@@ -403,7 +403,7 @@ for i in a..b:
([#6589](https://github.com/nim-lang/Nim/issues/6589))
- Fixed "Generated c code calls function twice"
([#6292](https://github.com/nim-lang/Nim/issues/6292))
- Fixed "Range type inference leads to counter-intuitive behaviour"
- Fixed "Range type inference leads to counter-intuitive behvaiour"
([#5854](https://github.com/nim-lang/Nim/issues/5854))
- Fixed "New backward indexing is too limited"
([#6631](https://github.com/nim-lang/Nim/issues/6631))

View File

@@ -22,7 +22,7 @@
- We removed `unicode.Rune16` without any deprecation period as the name
was wrong (see the [RFC](https://github.com/nim-lang/RFCs/issues/151) for details)
and we didn't find any usage of it in the wild. If you still need it, add this
and we didn't find any usages of it in the wild. If you still need it, add this
piece of code to your project:
```nim
type

View File

@@ -11,7 +11,7 @@
* Fixed "Assertion error when running `nim check` on compiler/nim.nim" [#12281](https://github.com/nim-lang/Nim/issues/12281)
* Fixed "Compiler crash with empty array and generic instantiation with int as parameter" [#12264](https://github.com/nim-lang/Nim/issues/12264)
* Fixed "Regression in JS backend codegen "Error: request to generate code for .compileTime proc"" [#12240](https://github.com/nim-lang/Nim/issues/12240)
* Fix how `relativePath` handles case sensitivity
* Fix how `relativePath` handle case sensitiviy
* Fixed "SIGSEGV in compiler when using generic types and seqs" [#12336](https://github.com/nim-lang/Nim/issues/12336)
* Fixed "[1.0.0] weird interaction between `import os` and casting integer to char on macosx trigger bad codegen" [#12291](https://github.com/nim-lang/Nim/issues/12291)
* VM: no special casing for big endian machines
@@ -43,7 +43,7 @@
* threadpool: fix link in docs (#12258)
* Fix spellings (#12277)
* fix #12278, don't expose internal PCRE documentation
* Fixed "Documentation of quitprocs is wrong" [#12279](https://github.com/nim-lang/Nim/issues/12279)
* Fixed "Documentation of quitprocs is wrong" [#12279(https://github.com/nim-lang/Nim/issues/12279)
* Fix typo in docs
* Fix reference to parseSpec proc in readme
* [doc/tut1] removed discard discussion in comments

View File

@@ -169,7 +169,7 @@ echo f
- The Nim compiler now supports a new pragma called ``.localPassc`` to
pass specific compiler options to the C(++) backend for the C(++) file
that was produced from the current Nim module.
- The compiler now infers "sink parameters". To disable this for a specific routine,
- The compiler now inferes "sink parameters". To disable this for a specific routine,
annotate it with `.nosinks`. To disable it for a section of code, use
`{.push sinkInference: off.}`...`{.pop.}`.
- The compiler now supports a new switch `--panics:on` that turns runtime
@@ -261,7 +261,7 @@ echo f
([#12812](https://github.com/nim-lang/Nim/issues/12812))
- Fixed "Produce static/const initializations for variables when possible"
([#12216](https://github.com/nim-lang/Nim/issues/12216))
- Fixed "Assigning discriminator field leads to internal assert with --gc:destructors"
- Fixed "Assigning descriminator field leads to internal assert with --gc:destructors"
([#12821](https://github.com/nim-lang/Nim/issues/12821))
- Fixed "nimsuggest `use` command does not return all instances of symbol"
([#12832](https://github.com/nim-lang/Nim/issues/12832))

View File

@@ -283,7 +283,7 @@ The definition of `"strictFuncs"` was changed.
The old definition was roughly: "A store to a ref/ptr deref is forbidden unless it's coming from a `var T` parameter".
The new definition is: "A store to a ref/ptr deref is forbidden."
This new definition is much easier to understand, the price is some expressiveness. The following code used to be
This new definition is much easier to understand, the price is some expressitivity. The following code used to be
accepted:
```nim

View File

@@ -1,248 +1,12 @@
# v2.2.0 - 2024-10-02
# v2.2.0 - 2023-mm-dd
## Changes affecting backward compatibility
- `-d:nimStrictDelete` becomes the default. An index error is produced when the index passed to `system.delete` is out of bounds. Use `-d:nimAuditDelete` to mimic the old behavior for backward compatibility.
- The default user-agent in `std/httpclient` has been changed to `Nim-httpclient/<version>` instead of `Nim httpclient/<version>` which was incorrect according to the HTTP spec.
- Methods now support implementations based on a VTable by using `--experimental:vtables`. Methods are then confined to the same module where their type has been defined.
- With `-d:nimPreviewNonVarDestructor`, non-var destructors become the default.
- A bug where tuple unpacking assignment with a longer tuple on the RHS than the LHS was allowed has been fixed, i.e. code like:
```nim
var a, b: int
(a, b) = (1, 2, 3, 4)
```
will no longer compile.
- `internalNew` is removed from the `system` module, use `new` instead.
- `bindMethod` in `std/jsffi` is deprecated, don't use it with closures.
- The JS backend now supports lambda lifting for closures. Use `--legacy:jsNoLambdaLifting` to emulate old behaviors.
- The JS backend now supports closure iterators.
- `owner` in `std/macros` is deprecated.
- Ambiguous type symbols in generic procs and templates now generate symchoice nodes.
Previously; in templates they would error immediately at the template definition,
and in generic procs a type symbol would arbitrarily be captured, losing the
information of the other symbols. This means that generic code can now give
errors for ambiguous type symbols, and macros operating on generic proc AST
may encounter symchoice nodes instead of the arbitrarily resolved type symbol nodes.
- Partial generic instantiation of routines is no longer allowed. Previously
it compiled in niche situations due to bugs in the compiler.
```nim
proc foo[T, U](x: T, y: U) = echo (x, y)
proc foo[T, U](x: var T, y: U) = echo "var ", (x, y)
proc bar[T]() =
foo[float](1, "abc")
bar[int]() # before: (1.0, "abc"), now: type mismatch, missing generic parameter
```
- `const` values now open a new scope for each constant, meaning symbols
declared in them can no longer be used outside or in the value of
other constants.
```nim
const foo = (var a = 1; a)
const bar = a # error
let baz = a # error
```
- The following POSIX wrappers have had their types changed from signed to
unsigned types on OSX and FreeBSD/OpenBSD to correct codegen errors:
- `Gid` (was `int32`, is now `uint32`)
- `Uid` (was `int32`, is now `uint32`)
- `Dev` (was `int32`, is now `uint32` on FreeBSD)
- `Nlink` (was `int16`, is now `uint32` on OpenBSD and `uint16` on OSX/other BSD)
- `sin6_flowinfo` and `sin6_scope_id` fields of `Sockaddr_in6`
(were `int32`, are now `uint32`)
- `n_net` field of `Tnetent` (was `int32`, is now `uint32`)
- The `Atomic[T]` type on C++ now uses C11 primitives by default instead of
`std::atomic`. To use `std::atomic` instead, `-d:nimUseCppAtomics` can be defined.
## Standard library additions and changes
[//]: # "Changes:"
- Changed `std/osfiles.copyFile` to allow specifying `bufferSize` instead of a hard-coded one.
- Changed `std/osfiles.copyFile` to use `POSIX_FADV_SEQUENTIAL` hints for kernel-level aggressive sequential read-aheads.
- `std/htmlparser` has been moved to a nimble package, use `nimble` or `atlas` to install it.
- Changed `std/os.copyDir` and `copyDirWithPermissions` to allow skipping special "file" objects like FIFOs, device files, etc on Unix by specifying a `skipSpecial` parameter.
[//]: # "Additions:"
- Added `newStringUninit` to the `system` module, which creates a new string of length `len` like `newString` but with uninitialized content.
- Added `setLenUninit` to the `system` module, which doesn't initialize
slots when enlarging a sequence.
- Added `hasDefaultValue` to `std/typetraits` to check if a type has a valid default value.
- Added `rangeBase` to `std/typetraits` to obtain the base type of a range type or
convert a value with a range type to its base type.
- Added Viewport API for the JavaScript targets in the `dom` module.
- Added `toSinglyLinkedRing` and `toDoublyLinkedRing` to `std/lists` to convert from `openArray`s.
- ORC: To be enabled via `nimOrcStats` there is a new API called `GC_orcStats` that can be used to query how many
objects the cyclic collector did free. If the number is zero that is a strong indicator that you can use `--mm:arc`
instead of `--mm:orc`.
- A `$` template is provided for `Path` in `std/paths`.
- `std/hashes.hash(x:string)` changed to produce a 64-bit string `Hash` (based
on Google's Farm Hash) which is also often faster than the present one. Define
`nimStringHash2` to get the old values back. `--jsbigint=off` mode always only
produces the old values. This may impact your automated tests if they depend
on hash order in some obvious or indirect way. Using `sorted` or `OrderedTable`
is often an easy workaround.
[//]: # "Deprecations:"
- Deprecates `system.newSeqUninitialized`, which is replaced by `newSeqUninit`.
[//]: # "Removals:"
## Language changes
- `noInit` can be used in types and fields to disable member initializers in the C++ backend.
- C++ custom constructors initializers see https://nim-lang.org/docs/manual_experimental.html#constructor-initializer
- `member` can be used to attach a procedure to a C++ type.
- Inside a C++ constructor, `result` can be used to access the created object rather than `this`.
- Tuple unpacking changes:
- Tuple unpacking assignment now supports using underscores to discard values.
```nim
var a, c: int
(a, _, c) = (1, 2, 3)
```
- Tuple unpacking variable declarations now support type annotations, but
only for the entire tuple.
```nim
let (a, b): (int, int) = (1, 2)
let (a, (b, c)): (byte, (float, cstring)) = (1, (2, "abc"))
```
- The experimental option `--experimental:openSym` has been added to allow
captured symbols in generic routine and template bodies respectively to be
replaced by symbols injected locally by templates/macros at instantiation
time. `bind` may be used to keep the captured symbols over the injected ones
regardless of enabling the option, but other methods like renaming the
captured symbols should be used instead so that the code is not affected by
context changes.
Since this change may affect runtime behavior, the experimental switch
`openSym` needs to be enabled; and a warning is given in the case where an
injected symbol would replace a captured symbol not bound by `bind` and
the experimental switch isn't enabled.
```nim
const value = "captured"
template foo(x: int, body: untyped): untyped =
let value {.inject.} = "injected"
body
proc old[T](): string =
foo(123):
return value # warning: a new `value` has been injected, use `bind` or turn on `experimental:openSym`
echo old[int]() # "captured"
template oldTempl(): string =
block:
foo(123):
value # warning: a new `value` has been injected, use `bind` or turn on `experimental:openSym`
echo oldTempl() # "captured"
{.experimental: "openSym".}
proc bar[T](): string =
foo(123):
return value
assert bar[int]() == "injected" # previously it would be "captured"
proc baz[T](): string =
bind value
foo(123):
return value
assert baz[int]() == "captured"
template barTempl(): string =
block:
foo(123):
value
assert barTempl() == "injected" # previously it would be "captured"
template bazTempl(): string =
bind value
block:
foo(123):
value
assert bazTempl() == "captured"
```
This option also generates a new node kind `nnkOpenSym` which contains
exactly 1 `nnkSym` node. In the future this might be merged with a slightly
modified `nnkOpenSymChoice` node but macros that want to support the
experimental feature should still handle `nnkOpenSym`, as the node kind would
simply not be generated as opposed to being removed.
Another experimental switch `genericsOpenSym` exists that enables this behavior
at instantiation time, meaning templates etc can enable it specifically when
they are being called. However this does not generate `nnkOpenSym` nodes
(unless the other switch is enabled) and so doesn't reflect the regular
behavior of the switch.
```nim
const value = "captured"
template foo(x: int, body: untyped): untyped =
let value {.inject.} = "injected"
{.push experimental: "genericsOpenSym".}
body
{.pop.}
proc bar[T](): string =
foo(123):
return value
echo bar[int]() # "injected"
template barTempl(): string =
block:
var res: string
foo(123):
res = value
res
assert barTempl() == "injected"
```
## Compiler changes
- `--nimcache` using a relative path as the argument in a config file is now relative to the config file instead of the current directory.
## Tool changes
- koch now allows bootstrapping with `-d:nimHasLibFFI`, replacing the older option of building the compiler directly w/ the `libffi` nimble package.

View File

@@ -1,4 +1,4 @@
# v2.xx.x - yyyy-mm-dd
# v1.xx.x - yyyy-mm-dd
This is an example file.
The changes should go to changelog.md!

View File

@@ -214,8 +214,7 @@ type
tyUncheckedArray
# An array with boundaries [0,+∞]
tyError # used as erroneous type (for idetools)
# as an erroneous node should match everything
tyProxy # used as errornous type (for idetools)
tyBuiltInTypeClass
# Type such as the catch-all object, tuple, seq, etc
@@ -277,9 +276,13 @@ static:
const
tyPureObject* = tyTuple
GcTypeKinds* = {tyRef, tySequence, tyString}
tyError* = tyProxy # as an errornous node should match everything
tyUnknown* = tyFromExpr
tyUnknownTypes* = {tyError, tyFromExpr}
tyTypeClasses* = {tyBuiltInTypeClass, tyCompositeTypeClass,
tyUserTypeClass, tyUserTypeClassInst, tyConcept,
tyUserTypeClass, tyUserTypeClassInst,
tyAnd, tyOr, tyNot, tyAnything}
tyMetaTypes* = {tyGenericParam, tyTypeDesc, tyUntyped} + tyTypeClasses
@@ -322,9 +325,9 @@ type
nfFirstWrite # this node is a first write
nfHasComment # node has a comment
nfSkipFieldChecking # node skips field visable checking
nfDisabledOpenSym # temporary: node should be nkOpenSym but cannot
# because openSym experimental switch is disabled
# gives warning instead
nfOpenSym # node is a captured sym but can be overriden by local symbols
# ideally a unary node containing nkSym/nkOpenSymChoice or an
# extension over nkOpenSymChoice
TNodeFlags* = set[TNodeFlag]
TTypeFlag* = enum # keep below 32 for efficiency reasons (now: 47)
@@ -445,10 +448,6 @@ const
tfGcSafe* = tfThread
tfObjHasKids* = tfEnumHasHoles
tfReturnsNew* = tfInheritable
tfNonConstExpr* = tfExplicitCallConv
## tyFromExpr where the expression shouldn't be evaluated as a static value
tfGenericHasDestructor* = tfExplicitCallConv
## tyGenericBody where an instance has a generated destructor
skError* = skUnknown
var
@@ -493,7 +492,7 @@ type
mAnd, mOr,
mImplies, mIff, mExists, mForall, mOld,
mEqStr, mLeStr, mLtStr,
mEqSet, mLeSet, mLtSet, mMulSet, mPlusSet, mMinusSet, mXorSet,
mEqSet, mLeSet, mLtSet, mMulSet, mPlusSet, mMinusSet,
mConStrStr, mSlice,
mDotDot, # this one is only necessary to give nice compile time warnings
mFields, mFieldPairs, mOmpParFor,
@@ -561,7 +560,7 @@ const
mStrToStr, mEnumToStr,
mAnd, mOr,
mEqStr, mLeStr, mLtStr,
mEqSet, mLeSet, mLtSet, mMulSet, mPlusSet, mMinusSet, mXorSet,
mEqSet, mLeSet, mLtSet, mMulSet, mPlusSet, mMinusSet,
mConStrStr, mAppendStrCh, mAppendStrStr, mAppendSeqElem,
mInSet, mRepr, mOpenArrayToSeq}
@@ -593,7 +592,7 @@ type
TNode*{.final, acyclic.} = object # on a 32bit machine, this takes 32 bytes
when defined(useNodeIds):
id*: int
typField: PType
typ*: PType
info*: TLineInfo
flags*: TNodeFlags
case kind*: TNodeKind
@@ -708,7 +707,7 @@ type
when defined(nimsuggest):
endInfo*: TLineInfo
hasUserSpecifiedType*: bool # used for determining whether to display inlay type hints
ownerField: PSym
owner*: PSym
flags*: TSymFlags
ast*: PNode # syntax tree of proc, iterator, etc.:
# the whole proc including header; this is used
@@ -777,7 +776,7 @@ type
# formal param list
# for concepts, the concept body
# else: unused
ownerField: PSym # the 'owner' of the type
owner*: PSym # the 'owner' of the type
sym*: PSym # types have the sym associated with them
# it is used for converting types to strings
size*: BiggestInt # the size of the type in bytes
@@ -816,15 +815,6 @@ type
template nodeId(n: PNode): int = cast[int](n)
template typ*(n: PNode): PType =
n.typField
proc owner*(s: PSym|PType): PSym {.inline.} =
result = s.ownerField
proc setOwner*(s: PSym|PType, owner: PSym) {.inline.} =
s.ownerField = owner
type Gconfig = object
# we put comments in a side channel to avoid increasing `sizeof(TNode)`, which
# reduces memory usage given that `PNode` is the most allocated type by far.
@@ -892,7 +882,7 @@ const
nfFromTemplate, nfDefaultRefsParam,
nfExecuteOnReload, nfLastRead,
nfFirstWrite, nfSkipFieldChecking,
nfDisabledOpenSym}
nfOpenSym}
namePos* = 0
patternPos* = 1 # empty except for term rewriting macros
genericParamsPos* = 2
@@ -906,7 +896,7 @@ const
nfAllFieldsSet* = nfBase2
nkIdentKinds* = {nkIdent, nkSym, nkAccQuoted, nkOpenSymChoice,
nkClosedSymChoice, nkOpenSym}
nkClosedSymChoice}
nkPragmaCallKinds* = {nkExprColonExpr, nkCall, nkCallStrLit}
nkLiterals* = {nkCharLit..nkTripleStrLit}
@@ -933,7 +923,7 @@ proc getPIdent*(a: PNode): PIdent {.inline.} =
case a.kind
of nkSym: a.sym.name
of nkIdent: a.ident
of nkOpenSymChoice, nkClosedSymChoice, nkOpenSym: a.sons[0].sym.name
of nkOpenSymChoice, nkClosedSymChoice: a.sons[0].sym.name
else: nil
const
@@ -1067,11 +1057,8 @@ proc getDeclPragma*(n: PNode): PNode =
proc extractPragma*(s: PSym): PNode =
## gets the pragma node of routine/type/var/let/const symbol `s`
if s.kind in routineKinds: # bug #24167
if s.ast[pragmasPos] != nil and s.ast[pragmasPos].kind != nkEmpty:
result = s.ast[pragmasPos]
else:
result = nil
if s.kind in routineKinds:
result = s.ast[pragmasPos]
elif s.kind in {skType, skVar, skLet, skConst}:
if s.ast != nil and s.ast.len > 0:
if s.ast[0].kind == nkPragmaExpr and s.ast[0].len > 1:
@@ -1142,7 +1129,7 @@ proc newNodeIT*(kind: TNodeKind, info: TLineInfo, typ: PType): PNode =
## new node with line info, type, and no children
result = newNode(kind)
result.info = info
result.typ() = typ
result.typ = typ
proc newNode*(kind: TNodeKind, info: TLineInfo): PNode =
## new node with line info, no type, and no children
@@ -1207,7 +1194,7 @@ proc newSym*(symKind: TSymKind, name: PIdent, idgen: IdGenerator; owner: PSym,
assert not name.isNil
let id = nextSymId idgen
result = PSym(name: name, kind: symKind, flags: {}, info: info, itemId: id,
options: options, ownerField: owner, offset: defaultOffset,
options: options, owner: owner, offset: defaultOffset,
disamb: getOrDefault(idgen.disambTable, name).int32)
idgen.disambTable.inc name
when false:
@@ -1288,18 +1275,15 @@ proc newIdentNode*(ident: PIdent, info: TLineInfo): PNode =
proc newSymNode*(sym: PSym): PNode =
result = newNode(nkSym)
result.sym = sym
result.typ() = sym.typ
result.typ = sym.typ
result.info = sym.info
proc newSymNode*(sym: PSym, info: TLineInfo): PNode =
result = newNode(nkSym)
result.sym = sym
result.typ() = sym.typ
result.typ = sym.typ
result.info = info
proc newOpenSym*(n: PNode): PNode {.inline.} =
result = newTreeI(nkOpenSym, n.info, n)
proc newIntNode*(kind: TNodeKind, intVal: BiggestInt): PNode =
result = newNode(kind)
result.intVal = intVal
@@ -1374,7 +1358,7 @@ proc newIntTypeNode*(intVal: BiggestInt, typ: PType): PNode =
result = newNode(nkIntLit)
else: raiseAssert $kind
result.intVal = intVal
result.typ() = typ
result.typ = typ
proc newIntTypeNode*(intVal: Int128, typ: PType): PNode =
# XXX: introduce range check
@@ -1513,7 +1497,7 @@ iterator signature*(t: PType): PType =
proc newType*(kind: TTypeKind; idgen: IdGenerator; owner: PSym; son: sink PType = nil): PType =
let id = nextTypeId idgen
result = PType(kind: kind, ownerField: owner, size: defaultSize,
result = PType(kind: kind, owner: owner, size: defaultSize,
align: defaultAlignment, itemId: id,
uniqueId: id, sons: @[])
if son != nil: result.sons.add son
@@ -1524,7 +1508,6 @@ proc newType*(kind: TTypeKind; idgen: IdGenerator; owner: PSym; son: sink PType
proc setSons*(dest: PType; sons: sink seq[PType]) {.inline.} = dest.sons = sons
proc setSon*(dest: PType; son: sink PType) {.inline.} = dest.sons = @[son]
proc setSonsLen*(dest: PType; len: int) {.inline.} = setLen(dest.sons, len)
proc mergeLoc(a: var TLoc, b: TLoc) =
if a.k == low(typeof(a.k)): a.k = b.k
@@ -1568,7 +1551,7 @@ proc copyType*(t: PType, idgen: IdGenerator, owner: PSym): PType =
result.sym = t.sym # backend-info should not be copied
proc exactReplica*(t: PType): PType =
result = PType(kind: t.kind, ownerField: t.owner, size: defaultSize,
result = PType(kind: t.kind, owner: t.owner, size: defaultSize,
align: defaultAlignment, itemId: t.itemId,
uniqueId: t.uniqueId)
assignType(result, t)
@@ -1646,7 +1629,7 @@ proc propagateToOwner*(owner, elem: PType; propagateHasAsgn = true) =
if mask != {} and propagateHasAsgn:
let o2 = owner.skipTypes({tyGenericInst, tyAlias, tySink})
if o2.kind in {tyTuple, tyObject, tyArray,
tySequence, tyString, tySet, tyDistinct}:
tySequence, tySet, tyDistinct}:
o2.flags.incl mask
owner.flags.incl mask
@@ -1676,7 +1659,7 @@ proc copyNode*(src: PNode): PNode =
return nil
result = newNode(src.kind)
result.info = src.info
result.typ() = src.typ
result.typ = src.typ
result.flags = src.flags * PersistentNodeFlags
result.comment = src.comment
when defined(useNodeIds):
@@ -1694,7 +1677,7 @@ proc copyNode*(src: PNode): PNode =
template transitionNodeKindCommon(k: TNodeKind) =
let obj {.inject.} = n[]
n[] = TNode(kind: k, typField: n.typ, info: obj.info, flags: obj.flags)
n[] = TNode(kind: k, typ: obj.typ, info: obj.info, flags: obj.flags)
# n.comment = obj.comment # shouldn't be needed, the address doesnt' change
when defined(useNodeIds):
n.id = obj.id
@@ -1717,7 +1700,7 @@ proc transitionNoneToSym*(n: PNode) =
template transitionSymKindCommon*(k: TSymKind) =
let obj {.inject.} = s[]
s[] = TSym(kind: k, itemId: obj.itemId, magic: obj.magic, typ: obj.typ, name: obj.name,
info: obj.info, ownerField: obj.ownerField, flags: obj.flags, ast: obj.ast,
info: obj.info, owner: obj.owner, flags: obj.flags, ast: obj.ast,
options: obj.options, position: obj.position, offset: obj.offset,
loc: obj.loc, annex: obj.annex, constraint: obj.constraint)
when hasFFI:
@@ -1745,7 +1728,7 @@ template copyNodeImpl(dst, src, processSonsStmt) =
dst.info = src.info
when defined(nimsuggest):
result.endInfo = src.endInfo
dst.typ() = src.typ
dst.typ = src.typ
dst.flags = src.flags * PersistentNodeFlags
dst.comment = src.comment
when defined(useNodeIds):
@@ -2088,16 +2071,14 @@ proc canRaise*(fn: PNode): bool =
result = false
elif fn.kind == nkSym and fn.sym.magic == mEcho:
result = true
elif fn.typ != nil and fn.typ.kind == tyProc and fn.typ.n != nil:
else:
# TODO check for n having sons? or just return false for now if not
if fn.typ.n[0].kind == nkSym:
if fn.typ != nil and fn.typ.n != nil and fn.typ.n[0].kind == nkSym:
result = false
else:
result = ((fn.typ.n[0].len < effectListLen) or
result = fn.typ != nil and fn.typ.n != nil and ((fn.typ.n[0].len < effectListLen) or
(fn.typ.n[0][exceptionEffects] != nil and
fn.typ.n[0][exceptionEffects].safeLen > 0))
else:
result = false
proc toHumanStrImpl[T](kind: T, num: static int): string =
result = $kind

View File

@@ -0,0 +1,25 @@
import pragmas, options, ast, trees
proc pushBackendOption(optionsStack: var seq[TOptions], options: var TOptions) =
optionsStack.add options
proc popBackendOption(optionsStack: var seq[TOptions], options: var TOptions) =
options = optionsStack[^1]
optionsStack.setLen(optionsStack.len-1)
proc processPushBackendOption*(optionsStack: var seq[TOptions], options: var TOptions,
n: PNode, start: int) =
pushBackendOption(optionsStack, options)
for i in start..<n.len:
let it = n[i]
if it.kind in nkPragmaCallKinds and it.len == 2 and it[1].kind == nkIntLit:
let sw = whichPragma(it[0])
let opts = pragmaToOptions(sw)
if opts != {}:
if it[1].intVal != 0:
options.incl opts
else:
options.excl opts
template processPopBackendOption*(optionsStack: var seq[TOptions], options: var TOptions) =
popBackendOption(optionsStack, options)

View File

@@ -1,121 +0,0 @@
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

@@ -135,7 +135,7 @@ proc fixupCall(p: BProc, le, ri: PNode, d: var TLoc,
d.snippet = pl
excl d.flags, lfSingleUse
else:
if d.k == locNone and p.splitDecls == 0 and p.config.exc != excGoto:
if d.k == locNone and p.splitDecls == 0:
d = getTempCpp(p, typ.returnType, pl)
else:
if d.k == locNone: d = getTemp(p, typ.returnType)
@@ -307,7 +307,7 @@ proc withTmpIfNeeded(p: BProc, a: TLoc, needsTmp: bool): TLoc =
else:
result = a
proc expressionsNeedsTmp(p: BProc, a: TLoc): TLoc =
proc literalsNeedsTmp(p: BProc, a: TLoc): TLoc =
result = getTemp(p, a.lode.typ, needsInit=false)
genAssignment(p, result, a, {})
@@ -326,7 +326,7 @@ proc genArg(p: BProc, n: PNode, param: PSym; call: PNode; result: var Rope; need
(optByRef notin param.options or not p.module.compileToCpp):
a = initLocExpr(p, n)
if n.kind in {nkCharLit..nkNilLit}:
addAddrLoc(p.config, expressionsNeedsTmp(p, a), result)
addAddrLoc(p.config, literalsNeedsTmp(p, a), result)
else:
addAddrLoc(p.config, withTmpIfNeeded(p, a, needsTmp), result)
elif p.module.compileToCpp and param.typ.kind in {tyVar} and
@@ -336,7 +336,7 @@ proc genArg(p: BProc, n: PNode, param: PSym; call: PNode; result: var Rope; need
# variable. Thus, we create a temporary pointer variable instead.
let needsIndirect = mapType(p.config, n[0].typ, mapTypeChooser(n[0]) == skParam) != ctArray
if needsIndirect:
n.typ() = n.typ.exactReplica
n.typ = n.typ.exactReplica
n.typ.flags.incl tfVarIsPtr
a = initLocExprSingleUse(p, n)
a = withTmpIfNeeded(p, a, needsTmp)
@@ -353,9 +353,9 @@ proc genArg(p: BProc, n: PNode, param: PSym; call: PNode; result: var Rope; need
addRdLoc(a, result)
else:
a = initLocExprSingleUse(p, n)
if param.typ.kind in {tyVar, tyPtr, tyRef, tySink}:
if param.typ.kind in abstractPtrs:
let typ = skipTypes(param.typ, abstractPtrs)
if not sameBackendTypePickyAliases(typ, n.typ.skipTypes(abstractPtrs)):
if typ.sym != nil and sfImportc in typ.sym.flags:
a.snippet = "(($1) ($2))" %
[getTypeDesc(p.module, param.typ), rdCharLoc(a)]
addRdLoc(withTmpIfNeeded(p, a, needsTmp), result)

View File

@@ -758,10 +758,7 @@ proc genDeref(p: BProc, e: PNode, d: var TLoc) =
if typ.kind in {tyUserTypeClass, tyUserTypeClassInst} and typ.isResolvedUserTypeClass:
typ = typ.last
typ = typ.skipTypes(abstractInstOwned)
if typ.kind in {tyVar} and tfVarIsPtr notin typ.flags and
p.module.compileToCpp and e[0].kind == nkHiddenAddr and
# don't override existing location:
d.k == locNone:
if typ.kind in {tyVar} and tfVarIsPtr notin typ.flags and p.module.compileToCpp and e[0].kind == nkHiddenAddr:
d = initLocExprSingleUse(p, e[0][0])
return
else:
@@ -808,11 +805,6 @@ proc cowBracket(p: BProc; n: PNode) =
proc cow(p: BProc; n: PNode) {.inline.} =
if n.kind == nkHiddenAddr: cowBracket(p, n[0])
template ignoreConv(e: PNode): bool =
let destType = e.typ.skipTypes({tyVar, tyLent, tyGenericInst, tyAlias, tySink})
let srcType = e[1].typ.skipTypes({tyVar, tyLent, tyGenericInst, tyAlias, tySink})
sameBackendTypePickyAliases(destType, srcType)
proc genAddr(p: BProc, e: PNode, d: var TLoc) =
# careful 'addr(myptrToArray)' needs to get the ampersand:
if e[0].typ.skipTypes(abstractInstOwned).kind in {tyRef, tyPtr}:
@@ -825,11 +817,7 @@ proc genAddr(p: BProc, e: PNode, d: var TLoc) =
d.lode = e
else:
var a: TLoc = initLocExpr(p, e[0])
if e[0].kind in {nkHiddenStdConv, nkHiddenSubConv, nkConv} and not ignoreConv(e[0]):
# addr (conv x) introduces a temp because `conv x` is not a rvalue
putIntoDest(p, d, e, addrLoc(p.config, expressionsNeedsTmp(p, a)), a.storage)
else:
putIntoDest(p, d, e, addrLoc(p.config, a), a.storage)
putIntoDest(p, d, e, addrLoc(p.config, a), a.storage)
template inheritLocation(d: var TLoc, a: TLoc) =
if d.k == locNone: d.storage = a.storage
@@ -1581,10 +1569,6 @@ proc genObjConstr(p: BProc, e: PNode, d: var TLoc) =
discard getTypeDesc(p.module, t)
let ty = getUniqueType(t)
for i in 1..<e.len:
if nfPreventCg in e[i].flags:
# this is an object constructor node generated by the VM and
# this field is in an inactive case branch, don't generate assignment
continue
var check: PNode = nil
if e[i].len == 3 and optFieldCheck in p.options:
check = e[i][2]
@@ -1639,7 +1623,7 @@ proc genSeqConstr(p: BProc, n: PNode, d: var TLoc) =
proc genArrToSeq(p: BProc, n: PNode, d: var TLoc) =
var elem, arr: TLoc
if n[1].kind == nkBracket:
n[1].typ() = n.typ
n[1].typ = n.typ
genSeqConstr(p, n[1], d)
return
if d.k == locNone:
@@ -2057,7 +2041,7 @@ proc genInOp(p: BProc, e: PNode, d: var TLoc) =
proc genSetOp(p: BProc, e: PNode, d: var TLoc, op: TMagic) =
const
lookupOpr: array[mLeSet..mXorSet, string] = [
lookupOpr: array[mLeSet..mMinusSet, string] = [
"for ($1 = 0; $1 < $2; $1++) { $n" &
" $3 = (($4[$1] & ~ $5[$1]) == 0);$n" &
" if (!$3) break;}$n",
@@ -2067,8 +2051,7 @@ proc genSetOp(p: BProc, e: PNode, d: var TLoc, op: TMagic) =
"if ($3) $3 = (#nimCmpMem($4, $5, $2) != 0);$n",
"&",
"|",
"& ~",
"^"]
"& ~"]
var a, b: TLoc
var i: TLoc
var setType = skipTypes(e[1].typ, abstractVar)
@@ -2099,7 +2082,6 @@ proc genSetOp(p: BProc, e: PNode, d: var TLoc, op: TMagic) =
of mMulSet: binaryExpr(p, e, d, "($1 & $2)")
of mPlusSet: binaryExpr(p, e, d, "($1 | $2)")
of mMinusSet: binaryExpr(p, e, d, "($1 & ~ $2)")
of mXorSet: binaryExpr(p, e, d, "($1 ^ $2)")
of mInSet:
genInOp(p, e, d)
else: internalError(p.config, e.info, "genSetOp()")
@@ -2127,7 +2109,7 @@ proc genSetOp(p: BProc, e: PNode, d: var TLoc, op: TMagic) =
var a = initLocExpr(p, e[1])
var b = initLocExpr(p, e[2])
putIntoDest(p, d, e, ropecg(p.module, "(#nimCmpMem($1, $2, $3)==0)", [a.rdCharLoc, b.rdCharLoc, size]))
of mMulSet, mPlusSet, mMinusSet, mXorSet:
of mMulSet, mPlusSet, mMinusSet:
# we inline the simple for loop for better code generation:
i = getTemp(p, getSysType(p.module.g.graph, unknownLineInfo, tyInt)) # our counter
a = initLocExpr(p, e[1])
@@ -2168,8 +2150,6 @@ proc genSomeCast(p: BProc, e: PNode, d: var TLoc) =
[getTypeDesc(p.module, e.typ), rdCharLoc(a)], a.storage)
elif etyp.kind == tyBool and srcTyp.kind in IntegralTypes:
putIntoDest(p, d, e, "(($1) != 0)" % [rdCharLoc(a)], a.storage)
elif etyp.kind == tyProc and srcTyp.kind == tyProc and sameBackendType(etyp, srcTyp):
expr(p, e[1], d)
else:
if etyp.kind == tyPtr:
# generates the definition of structs for casts like cast[ptr object](addr x)[]
@@ -2179,32 +2159,38 @@ proc genSomeCast(p: BProc, e: PNode, d: var TLoc) =
putIntoDest(p, d, e, "(($1) ($2))" %
[getTypeDesc(p.module, e.typ), rdCharLoc(a)], a.storage)
proc genUnionCast(p: BProc, e: PNode, d: var TLoc) =
# 'cast' and some float type involved? --> use a union.
let
destt = skipTypes(e.typ, abstractRange)
srct = skipTypes(e[1].typ, abstractRange)
inc(p.labels)
var lbl = p.labels.rope
var tmp: TLoc = default(TLoc)
tmp.snippet = "LOC$1.source" % [lbl]
let destsize = getSize(p.config, destt)
let srcsize = getSize(p.config, srct)
if destsize > srcsize:
linefmt(p, cpsLocals, "union { $1 dest; $2 source; } LOC$3;$n #nimZeroMem(&LOC$3, sizeof(LOC$3));$n",
[getTypeDesc(p.module, e.typ), getTypeDesc(p.module, e[1].typ), lbl])
else:
linefmt(p, cpsLocals, "union { $1 source; $2 dest; } LOC$3;$n",
[getTypeDesc(p.module, e[1].typ), getTypeDesc(p.module, e.typ), lbl])
tmp.k = locExpr
tmp.lode = lodeTyp srct
tmp.storage = OnStack
tmp.flags = {}
expr(p, e[1], tmp)
putIntoDest(p, d, e, "LOC$#.dest" % [lbl], tmp.storage)
proc genCast(p: BProc, e: PNode, d: var TLoc) =
const ValueTypes = {tyFloat..tyFloat128, tyTuple, tyObject, tyArray}
let
destt = skipTypes(e.typ, abstractRange)
srct = skipTypes(e[1].typ, abstractRange)
if destt.kind in ValueTypes or srct.kind in ValueTypes:
# 'cast' and some float type involved? --> use a union.
inc(p.labels)
var lbl = p.labels.rope
var tmp: TLoc = default(TLoc)
tmp.snippet = "LOC$1.source" % [lbl]
let destsize = getSize(p.config, destt)
let srcsize = getSize(p.config, srct)
if destsize > srcsize:
linefmt(p, cpsLocals, "union { $1 dest; $2 source; } LOC$3;$n #nimZeroMem(&LOC$3, sizeof(LOC$3));$n",
[getTypeDesc(p.module, e.typ), getTypeDesc(p.module, e[1].typ), lbl])
else:
linefmt(p, cpsLocals, "union { $1 source; $2 dest; } LOC$3;$n",
[getTypeDesc(p.module, e[1].typ), getTypeDesc(p.module, e.typ), lbl])
tmp.k = locExpr
tmp.lode = lodeTyp srct
tmp.storage = OnStack
tmp.flags = {}
expr(p, e[1], tmp)
putIntoDest(p, d, e, "LOC$#.dest" % [lbl], tmp.storage)
genUnionCast(p, e, d)
else:
# I prefer the shorter cast version for pointer types -> generate less
# C code; plus it's the right thing to do for closures:
@@ -2254,16 +2240,18 @@ proc genRangeChck(p: BProc, n: PNode, d: var TLoc) =
raiseInstr(p, p.s(cpsStmts))
linefmt p, cpsStmts, "}$n", []
if sameBackendTypeIgnoreRange(dest, n[0].typ):
# don't cast so an address can be taken for `var` conversions
putIntoDest(p, d, n, "($1)" % [rdCharLoc(a)], a.storage)
else:
putIntoDest(p, d, n, "(($1) ($2))" %
putIntoDest(p, d, n, "(($1) ($2))" %
[getTypeDesc(p.module, dest), rdCharLoc(a)], a.storage)
proc genConv(p: BProc, e: PNode, d: var TLoc) =
if ignoreConv(e):
const FloatTypes = {tyFloat..tyFloat128}
let destType = e.typ.skipTypes({tyVar, tyLent, tyGenericInst, tyAlias, tySink})
if sameBackendType(destType, e[1].typ):
expr(p, e[1], d)
elif destType.kind in FloatTypes or
skipTypes(e[1].typ, abstractRange).kind in FloatTypes:
# 'conv' and some float type involved? --> use a union.
genUnionCast(p, e, d)
else:
genSomeCast(p, e, d)
@@ -2337,7 +2325,7 @@ proc genWasMoved(p: BProc; n: PNode) =
# [addrLoc(p.config, a), getTypeDesc(p.module, a.t)])
proc genMove(p: BProc; n: PNode; d: var TLoc) =
var a: TLoc = initLocExpr(p, n[1].skipAddr, {lfEnforceDeref})
var a: TLoc = initLocExpr(p, n[1].skipAddr)
if n.len == 4:
# generated by liftdestructors:
var src: TLoc = initLocExpr(p, n[2])
@@ -2564,7 +2552,7 @@ proc genMagicExpr(p: BProc, e: PNode, d: var TLoc, op: TMagic) =
of mSetLengthStr: genSetLengthStr(p, e, d)
of mSetLengthSeq: genSetLengthSeq(p, e, d)
of mIncl, mExcl, mCard, mLtSet, mLeSet, mEqSet, mMulSet, mPlusSet, mMinusSet,
mInSet, mXorSet:
mInSet:
genSetOp(p, e, d, op)
of mNewString, mNewStringOfCap, mExit, mParseBiggestFloat:
var opr = e[0].sym
@@ -3088,7 +3076,16 @@ proc expr(p: BProc, n: PNode, d: var TLoc) =
of nkObjConstr: genObjConstr(p, n, d)
of nkCast: genCast(p, n, d)
of nkHiddenStdConv, nkHiddenSubConv, nkConv: genConv(p, n, d)
of nkAddr, nkHiddenAddr: genAddr(p, n, d)
of nkHiddenAddr:
if n[0].kind == nkDerefExpr:
# addr ( deref ( x )) --> x
var x = n[0][0]
if n.typ.skipTypes(abstractVar).kind != tyOpenArray:
x.typ = n.typ
expr(p, x, d)
return
genAddr(p, n, d)
of nkAddr: genAddr(p, n, d)
of nkBracketExpr: genBracketExpr(p, n, d)
of nkDerefExpr, nkHiddenDeref: genDeref(p, n, d)
of nkDotExpr: genRecordField(p, n, d)
@@ -3119,12 +3116,6 @@ proc expr(p: BProc, n: PNode, d: var TLoc) =
of nkConstSection:
if useAliveDataFromDce in p.module.flags:
genConstStmt(p, n)
else: # enforce addressable consts for exportc
let m = p.module
for it in n:
let symNode = skipPragmaExpr(it[0])
if symNode.kind == nkSym and sfExportc in symNode.sym.flags:
requestConstImpl(p, symNode.sym)
# else: consts generated lazily on use
of nkForStmt: internalError(p.config, n.info, "for statement not eliminated")
of nkCaseStmt: genCase(p, n, d)

View File

@@ -96,7 +96,7 @@ proc specializeResetT(p: BProc, accessor: Rope, typ: PType) =
raiseAssert "unexpected set type kind"
of tyNone, tyEmpty, tyNil, tyUntyped, tyTyped, tyGenericInvocation,
tyGenericParam, tyOrdinal, tyOpenArray, tyForward, tyVarargs,
tyUncheckedArray, tyError, tyBuiltInTypeClass, tyUserTypeClass,
tyUncheckedArray, tyProxy, tyBuiltInTypeClass, tyUserTypeClass,
tyUserTypeClassInst, tyCompositeTypeClass, tyAnd, tyOr, tyNot,
tyAnything, tyStatic, tyFromExpr, tyConcept, tyVoid, tyIterable:
discard

View File

@@ -18,7 +18,7 @@ proc registerTraverseProc(p: BProc, v: PSym) =
var traverseProc = ""
if p.config.selectedGC in {gcMarkAndSweep, gcHooks, gcRefc} and
optOwnedRefs notin p.config.globalOptions and
containsManagedMemory(v.loc.t):
containsGarbageCollectedRef(v.loc.t):
# we register a specialized marked proc here; this has the advantage
# that it works out of the box for thread local storage then :-)
traverseProc = genTraverseProcForGlobal(p.module, v, v.info)
@@ -1627,9 +1627,9 @@ proc genPragma(p: BProc, n: PNode) =
case whichPragma(it)
of wEmit: genEmit(p, it)
of wPush:
processPushBackendOption(p.config, p.optionsStack, p.options, n, i+1)
processPushBackendOption(p.optionsStack, p.options, n, i+1)
of wPop:
processPopBackendOption(p.config, p.optionsStack, p.options)
processPopBackendOption(p.optionsStack, p.options)
else: discard

View File

@@ -57,15 +57,11 @@ proc mangleField(m: BModule; name: PIdent): string =
proc mangleProc(m: BModule; s: PSym; makeUnique: bool): string =
result = "_Z" # Common prefix in Itanium ABI
var params = ""
var staticLists = ""
result.add encodeSym(m, s, makeUnique)
if s.typ.len > 1: #we dont care about the return param
for i in 1..<s.typ.len:
if s.typ[i].isNil: continue
params.add encodeType(m, s.typ[i], staticLists)
result.add encodeSym(m, s, makeUnique, staticLists)
result.add params
result.add encodeType(m, s.typ[i])
if result in m.g.mangledPrcs:
result = mangleProc(m, s, true)
@@ -85,6 +81,7 @@ proc fillBackendName(m: BModule; s: PSym) =
result.add '_'
result.add(idOrSig(s, m.module.name.s.mangle, m.sigConflicts, m.config))
s.loc.snippet = result
writeMangledName(m.ndi, s, m.config)
proc fillParamName(m: BModule; s: PSym) =
if s.loc.snippet == "":
@@ -108,6 +105,7 @@ proc fillParamName(m: BModule; s: PSym) =
# That would lead to either needing to reload `proxy` or to overwrite the
# executable file for the main module, which is running (or both!) -> error.
s.loc.snippet = res.rope
writeMangledName(m.ndi, s, m.config)
proc fillLocalName(p: BProc; s: PSym) =
assert s.kind in skLocalVars+{skTemp}
@@ -119,10 +117,11 @@ proc fillLocalName(p: BProc; s: PSym) =
if s.kind == skTemp:
# speed up conflict search for temps (these are quite common):
if counter != 0: result.add "_" & rope(counter+1)
elif s.kind != skResult:
elif counter != 0 or isKeyword(s.name) or p.module.g.config.cppDefines.contains(key):
result.add "_" & rope(counter+1)
p.sigConflicts.inc(key)
s.loc.snippet = result
if s.kind != skTemp: writeMangledName(p.module.ndi, s, p.config)
proc scopeMangledParam(p: BProc; param: PSym) =
## parameter generation only takes BModule, not a BProc, so we have to
@@ -251,6 +250,10 @@ proc hasNoInit(t: PType): bool =
proc getTypeDescAux(m: BModule; origTyp: PType, check: var IntSet; kind: TypeDescKind): Rope
proc isObjLackingTypeField(typ: PType): bool {.inline.} =
result = (typ.kind == tyObject) and ((tfFinal in typ.flags) and
(typ.baseClass == nil) or isPureObject(typ))
proc isInvalidReturnType(conf: ConfigRef; typ: PType, isProc = true): bool =
# Arrays and sets cannot be returned by a C procedure, because C is
# such a poor programming language.
@@ -346,12 +349,7 @@ proc getSimpleTypeDesc(m: BModule; typ: PType): Rope =
of tyNil: result = typeNameOrLiteral(m, typ, "void*")
of tyInt..tyUInt64:
result = typeNameOrLiteral(m, typ, NumericalTypeToStr[typ.kind])
of tyRange, tyOrdinal: result = getSimpleTypeDesc(m, typ.skipModifier)
of tyDistinct:
result = getSimpleTypeDesc(m, typ.skipModifier)
if isImportedType(typ) and result != "":
useHeader(m, typ.sym)
result = typ.sym.loc.snippet
of tyDistinct, tyRange, tyOrdinal: result = getSimpleTypeDesc(m, typ.skipModifier)
of tyStatic:
if typ.n != nil: result = getSimpleTypeDesc(m, skipModifier typ)
else:
@@ -378,6 +376,11 @@ proc getTypePre(m: BModule; typ: PType; sig: SigHash): Rope =
result = getSimpleTypeDesc(m, typ)
if result == "": result = cacheGetType(m.typeCache, sig)
proc structOrUnion(t: PType): Rope =
let t = t.skipTypes({tyAlias, tySink})
if tfUnion in t.flags: "union"
else: "struct"
proc addForwardStructFormat(m: BModule; structOrUnion: Rope, typename: Rope) =
if m.compileToCpp:
m.s[cfsForwardTypes].addf "$1 $2;$n", [structOrUnion, typename]
@@ -597,7 +600,7 @@ proc genProcParams(m: BModule; t: PType, rettype, params: var Rope,
if t.returnType == nil or isInvalidReturnType(m.config, t):
rettype = "void"
else:
rettype = getTypeDescWeak(m, t.returnType, check, dkResult)
rettype = getTypeDescAux(m, t.returnType, check, dkResult)
for i in 1..<t.n.len:
if t.n[i].kind != nkSym: internalError(m.config, t.n.info, "genProcParams")
var param = t.n[i].sym
@@ -695,7 +698,7 @@ proc genCppInitializer(m: BModule, prc: BProc; typ: PType; didGenTemp: var bool)
proc genRecordFieldsAux(m: BModule; n: PNode,
rectype: PType,
check: var IntSet; result: var Builder; unionPrefix = "") =
check: var IntSet; result: var Rope; unionPrefix = "") =
case n.kind
of nkRecList:
for i in 0..<n.len:
@@ -712,51 +715,64 @@ proc genRecordFieldsAux(m: BModule; n: PNode,
let k = lastSon(n[i])
if k.kind != nkSym:
let structName = "_" & mangleRecFieldName(m, n[0].sym) & "_" & $i
var a = newBuilder("")
var a = newRopeAppender()
genRecordFieldsAux(m, k, rectype, check, a, unionPrefix & $structName & ".")
if a.len != 0:
unionBody.addFieldWithStructType(m, rectype, structName):
unionBody.add(a)
if a != "":
if tfPacked notin rectype.flags:
unionBody.add("struct {")
else:
if hasAttribute in CC[m.config.cCompiler].props:
unionBody.add("struct __attribute__((__packed__)){")
else:
unionBody.addf("#pragma pack(push, 1)$nstruct{", [])
unionBody.add(a)
unionBody.addf("} $1;$n", [structName])
if tfPacked in rectype.flags and hasAttribute notin CC[m.config.cCompiler].props:
unionBody.addf("#pragma pack(pop)$n", [])
else:
genRecordFieldsAux(m, k, rectype, check, unionBody, unionPrefix)
else: internalError(m.config, "genRecordFieldsAux(record case branch)")
if unionBody.len != 0:
result.addAnonUnion:
result.add(unionBody)
if unionBody != "":
result.addf("union{\n$1};$n", [unionBody])
of nkSym:
let field = n.sym
if field.typ.kind == tyVoid: return
#assert(field.ast == nil)
let sname = mangleRecFieldName(m, field)
fillLoc(field.loc, locField, n, unionPrefix & sname, OnUnknown)
if field.alignment > 0:
result.addf "NIM_ALIGN($1) ", [rope(field.alignment)]
# for importcpp'ed objects, we only need to set field.loc, but don't
# have to recurse via 'getTypeDescAux'. And not doing so prevents problems
# with heavily templatized C++ code:
if not isImportedCppType(rectype):
let noAlias = if sfNoalias in field.flags: " NIM_NOALIAS" else: ""
let fieldType = field.loc.lode.typ.skipTypes(abstractInst)
var typ: Rope = ""
var isFlexArray = false
var initializer = ""
if fieldType.kind == tyUncheckedArray:
typ = getTypeDescAux(m, fieldType.elemType, check, dkField)
isFlexArray = true
result.addf("\t$1 $2[SEQ_DECL_SIZE];$n",
[getTypeDescAux(m, fieldType.elemType, check, dkField), sname])
elif fieldType.kind == tySequence:
# we need to use a weak dependency here for trecursive_table.
typ = getTypeDescWeak(m, field.loc.t, check, dkField)
result.addf("\t$1$3 $2;$n", [getTypeDescWeak(m, field.loc.t, check, dkField), sname, noAlias])
elif field.bitsize != 0:
result.addf("\t$1$4 $2:$3;$n", [getTypeDescAux(m, field.loc.t, check, dkField), sname, rope($field.bitsize), noAlias])
else:
typ = getTypeDescAux(m, field.loc.t, check, dkField)
# don't use fieldType here because we need the
# tyGenericInst for C++ template support
let noInit = sfNoInit in field.flags or (field.typ.sym != nil and sfNoInit in field.typ.sym.flags)
if not noInit and (fieldType.isOrHasImportedCppType() or hasCppCtor(m, field.owner.typ)):
var didGenTemp = false
initializer = genCppInitializer(m, nil, fieldType, didGenTemp)
result.addField(field, sname, typ, isFlexArray, initializer)
var initializer = genCppInitializer(m, nil, fieldType, didGenTemp)
result.addf("\t$1$3 $2$4;$n", [getTypeDescAux(m, field.loc.t, check, dkField), sname, noAlias, initializer])
else:
result.addf("\t$1$3 $2;$n", [getTypeDescAux(m, field.loc.t, check, dkField), sname, noAlias])
else: internalError(m.config, n.info, "genRecordFieldsAux()")
proc genMemberProcHeader(m: BModule; prc: PSym; result: var Rope; asPtr: bool = false, isFwdDecl:bool = false)
proc addRecordFields(result: var Builder; m: BModule; typ: PType, check: var IntSet) =
proc getRecordFields(m: BModule; typ: PType, check: var IntSet): Rope =
result = newRopeAppender()
genRecordFieldsAux(m, typ.n, typ, check, result)
if typ.itemId in m.g.graph.memberProcsPerType:
let procs = m.g.graph.memberProcsPerType[typ.itemId]
@@ -778,36 +794,88 @@ proc fillObjectFields*(m: BModule; typ: PType) =
# sometimes generic objects are not consistently merged. We patch over
# this fact here.
var check = initIntSet()
var ignored = newBuilder("")
addRecordFields(ignored, m, typ, check)
if typ.baseClass != nil:
fillObjectFields(m, typ.baseClass.skipTypes(skipPtrs))
discard getRecordFields(m, typ, check)
proc mangleDynLibProc(sym: PSym): Rope
proc getRecordDescAux(m: BModule; typ: PType, name, baseType: Rope,
check: var IntSet, hasField:var bool): Rope =
result = ""
if typ.kind == tyObject:
if typ.baseClass == nil:
if lacksMTypeField(typ):
appcg(m, result, " {$n", [])
else:
if optTinyRtti in m.config.globalOptions:
appcg(m, result, " {$n#TNimTypeV2* m_type;$n", [])
else:
appcg(m, result, " {$n#TNimType* m_type;$n", [])
hasField = true
elif m.compileToCpp:
appcg(m, result, " : public $1 {$n", [baseType])
if typ.isException and m.config.exc == excCpp:
when false:
appcg(m, result, "virtual void raise() { throw *this; }$n", []) # required for polymorphic exceptions
if typ.sym.magic == mException:
# Add cleanup destructor to Exception base class
appcg(m, result, "~$1();$n", [name])
# define it out of the class body and into the procs section so we don't have to
# artificially forward-declare popCurrentExceptionEx (very VERY troublesome for HCR)
appcg(m, cfsProcs, "inline $1::~$1() {if(this->raiseId) #popCurrentExceptionEx(this->raiseId);}$n", [name])
hasField = true
else:
appcg(m, result, " {$n $1 Sup;$n", [baseType])
hasField = true
else:
result.addf(" {$n", [name])
proc getRecordDesc(m: BModule; typ: PType, name: Rope,
check: var IntSet): Rope =
# declare the record:
var hasField = false
var structOrUnion: string
if tfPacked in typ.flags:
if hasAttribute in CC[m.config.cCompiler].props:
structOrUnion = structOrUnion(typ) & " __attribute__((__packed__))"
else:
structOrUnion = "#pragma pack(push, 1)\L" & structOrUnion(typ)
else:
structOrUnion = structOrUnion(typ)
var baseType: string = ""
if typ.baseClass != nil:
baseType = getTypeDescAux(m, typ.baseClass.skipTypes(skipPtrs), check, dkField)
if typ.sym == nil or sfCodegenDecl notin typ.sym.flags:
result = newBuilder("")
result.addStruct(m, typ, name, baseType):
result.addRecordFields(m, typ, check)
result = structOrUnion & " " & name
result.add(getRecordDescAux(m, typ, name, baseType, check, hasField))
let desc = getRecordFields(m, typ, check)
if not hasField and typ.itemId notin m.g.graph.memberProcsPerType:
if desc == "":
result.add("\tchar dummy;\n")
elif typ.n.len == 1 and typ.n[0].kind == nkSym:
let field = typ.n[0].sym
let fieldType = field.typ.skipTypes(abstractInst)
if fieldType.kind == tyUncheckedArray:
result.add("\tchar dummy;\n")
result.add(desc)
else:
result.add(desc)
result.add("};\L")
else:
var desc = newBuilder("")
desc.addRecordFields(m, typ, check)
let desc = getRecordFields(m, typ, check)
result = runtimeFormat(typ.sym.cgDeclFrmt, [name, desc, baseType])
if tfPacked in typ.flags and hasAttribute notin CC[m.config.cCompiler].props:
result.add "#pragma pack(pop)\L"
proc getTupleDesc(m: BModule; typ: PType, name: Rope,
check: var IntSet): Rope =
result = newBuilder("")
result.addStruct(m, typ, name, ""):
for i, a in typ.ikids:
result.addField(
name = "Field" & $i,
typ = getTypeDescAux(m, a, check, dkField))
result = "$1 $2 {$n" % [structOrUnion(typ), name]
var desc: Rope = ""
for i, a in typ.ikids:
desc.addf("$1 Field$2;$n",
[getTypeDescAux(m, a, check, dkField), rope(i)])
if desc == "": result.add("char dummy;\L")
else: result.add(desc)
result.add("};\L")
proc scanCppGenericSlot(pat: string, cursor, outIdx, outStars: var int): bool =
# A helper proc for handling cppimport patterns, involving numeric
@@ -864,12 +932,12 @@ proc getTypeDescAux(m: BModule; origTyp: PType, check: var IntSet; kind: TypeDes
if t != origTyp and origTyp.sym != nil: useHeader(m, origTyp.sym)
let sig = hashType(origTyp, m.config)
# tyDistinct matters if it is an importc type
result = getTypePre(m, origTyp.skipTypes(irrelevantForBackend-{tyOwned, tyDistinct}), sig)
result = "" # todo move `result = getTypePre(m, t, sig)` here ?
defer: # defer is the simplest in this case
if isImportedType(t) and not m.typeABICache.containsOrIncl(sig):
addAbiCheck(m, t, result)
result = getTypePre(m, t, sig)
if result != "" and t.kind != tyOpenArray:
excl(check, t.id)
if kind == dkRefParam or kind == dkRefGenericParam and origTyp.kind == tyGenericInst:

View File

@@ -11,7 +11,7 @@
import
ast, types, msgs, wordrecg,
platform, trees, options, cgendata, mangleutils, renderer
platform, trees, options, cgendata, mangleutils
import std/[hashes, strutils, formatfloat]
@@ -120,14 +120,14 @@ proc makeUnique(m: BModule; s: PSym, name: string = ""): string =
result.add "_u"
result.add $s.itemId.item
proc encodeSym*(m: BModule; s: PSym; makeUnique: bool = false; extra: string = ""): string =
proc encodeSym*(m: BModule; s: PSym; makeUnique: bool = false): string =
#Module::Type
var name = s.name.s & extra
var name = s.name.s
if makeUnique:
name = makeUnique(m, s, name)
"N" & encodeName(s.skipGenericOwner.name.s) & encodeName(name) & "E"
proc encodeType*(m: BModule; t: PType; staticLists: var string): string =
proc encodeType*(m: BModule; t: PType): string =
result = ""
var kindName = ($t.kind)[2..^1]
kindName[0] = toLower($kindName[0])[0]
@@ -138,10 +138,10 @@ proc encodeType*(m: BModule; t: PType; staticLists: var string): string =
result = encodeName(t[0].sym.name.s)
result.add "I"
for i in 1..<t.len - 1:
result.add encodeType(m, t[i], staticLists)
result.add encodeType(m, t[i])
result.add "E"
of tySequence, tyOpenArray, tyArray, tyVarargs, tyTuple, tyProc, tySet, tyTypeDesc,
tyPtr, tyRef, tyVar, tyLent, tySink, tyUncheckedArray, tyOr, tyAnd, tyBuiltInTypeClass:
tyPtr, tyRef, tyVar, tyLent, tySink, tyStatic, tyUncheckedArray, tyOr, tyAnd, tyBuiltInTypeClass:
result =
case t.kind:
of tySequence: encodeName("seq")
@@ -150,13 +150,8 @@ proc encodeType*(m: BModule; t: PType; staticLists: var string): string =
for i in 0..<t.len:
let s = t[i]
if s.isNil: continue
result.add encodeType(m, s, staticLists)
result.add encodeType(m, s)
result.add "E"
of tyStatic:
if t.n != nil:
staticLists.add "_s" & renderTree(t.n)
else:
raiseAssert "unreachable"
of tyRange:
var val = "range_"
if t.n[0].typ.kind in {tyFloat..tyFloat128}:
@@ -169,7 +164,7 @@ proc encodeType*(m: BModule; t: PType; staticLists: var string): string =
of tyString..tyUInt64, tyPointer, tyBool, tyChar, tyVoid, tyAnything, tyNil, tyEmpty:
result = encodeName(kindName)
of tyAlias, tyInferred, tyOwned:
result = encodeType(m, t.elementType, staticLists)
result = encodeType(m, t.elementType)
else:
assert false, "encodeType " & $t.kind

View File

@@ -14,8 +14,8 @@ import
nversion, nimsets, msgs, bitsets, idents, types,
ccgutils, ropes, wordrecg, treetab, cgmeth,
rodutils, renderer, cgendata, aliases,
lowerings, lineinfos, pathutils, transf,
injectdestructors, astmsgs, modulepaths, pushpoppragmas,
lowerings, ndi, lineinfos, pathutils, transf,
injectdestructors, astmsgs, modulepaths, backendpragmas,
mangleutils
from expanddefaults import caseObjDefaultBranch
@@ -97,7 +97,7 @@ proc t(a: TLoc): PType {.inline.} =
proc lodeTyp(t: PType): PNode =
result = newNode(nkEmpty)
result.typ() = t
result.typ = t
proc isSimpleConst(typ: PType): bool =
let t = skipTypes(typ, abstractVar)
@@ -373,7 +373,6 @@ proc dataField(p: BProc): Rope =
proc genProcPrototype(m: BModule, sym: PSym)
include cbuilder
include ccgliterals
include ccgtypes
@@ -483,10 +482,7 @@ include ccgreset
proc resetLoc(p: BProc, loc: var TLoc) =
let containsGcRef = optSeqDestructors notin p.config.globalOptions and containsGarbageCollectedRef(loc.t)
let typ = skipTypes(loc.t, abstractVarRange)
if isImportedCppType(typ):
var didGenTemp = false
linefmt(p, cpsStmts, "$1 = $2;$n", [rdLoc(loc), genCppInitializer(p.module, p, typ, didGenTemp)])
return
if isImportedCppType(typ): return
if optSeqDestructors in p.config.globalOptions and typ.kind in {tyString, tySequence}:
assert loc.snippet != ""
@@ -784,11 +780,15 @@ $1define nimfr_(proc, file) \
TFrame FR_; \
FR_.procname = proc; FR_.filename = file; FR_.line = 0; FR_.len = 0; #nimFrame(&FR_);
$1define nimln_(n) \
FR_.line = n;
$1define nimfrs_(proc, file, slots, length) \
struct {TFrame* prev;NCSTRING procname;NI line;NCSTRING filename;NI len;VarSlot s[slots];} FR_; \
FR_.procname = proc; FR_.filename = file; FR_.line = 0; FR_.len = length; #nimFrame((TFrame*)&FR_);
$1define nimlf_(n, file) \
FR_.line = n; FR_.filename = file;
$1define nimln_(n) \
FR_.line = n;
$1define nimlf_(n, file) \
FR_.line = n; FR_.filename = file;
"""
if p.module.s[cfsFrameDefines].len == 0:
@@ -1937,6 +1937,9 @@ proc genInitCode(m: BModule) =
if optStackTrace in m.initProc.options and preventStackTrace notin m.flags:
prc.add(deinitFrame(m.initProc))
elif m.config.exc == excGoto:
if getCompilerProc(m.g.graph, "nimTestErrorFlag") != nil:
m.appcg(prc, "\t#nimTestErrorFlag();$n", [])
prc.addf("}$N", [])
@@ -2085,6 +2088,9 @@ proc rawNewModule(g: BModuleList; module: PSym, filename: AbsoluteFile): BModule
if sfSystemModule in module.flags:
incl result.flags, preventStackTrace
excl(result.preInitProc.options, optStackTrace)
let ndiName = if optCDebug in g.config.globalOptions: changeFileExt(completeCfilePath(g.config, filename), "ndi")
else: AbsoluteFile""
open(result.ndi, ndiName, g.config)
proc rawNewModule(g: BModuleList; module: PSym; conf: ConfigRef): BModule =
result = rawNewModule(g, module, AbsoluteFile toFullPath(conf, module.position.FileIndex))
@@ -2214,6 +2220,7 @@ proc shouldRecompile(m: BModule; code: Rope, cfile: Cfile): bool =
# it would generate multiple 'main' procs, for instance.
proc writeModule(m: BModule, pending: bool) =
template onExit() = close(m.ndi, m.config)
let cfile = getCFile(m)
if moduleHasChanged(m.g.graph, m.module):
genInitCode(m)
@@ -2231,10 +2238,12 @@ proc writeModule(m: BModule, pending: bool) =
when hasTinyCBackend:
if m.config.cmd == cmdTcc:
tccgen.compileCCode($code, m.config)
onExit()
return
if not shouldRecompile(m, code, cf): cf.flags = {CfileFlag.Cached}
addFileToCompile(m.config, cf)
onExit()
proc updateCachedModule(m: BModule) =
let cfile = getCFile(m)
@@ -2246,13 +2255,12 @@ proc updateCachedModule(m: BModule) =
addFileToCompile(m.config, cf)
proc generateLibraryDestroyGlobals(graph: ModuleGraph; m: BModule; body: PNode; isDynlib: bool): PSym =
let prefixedName = m.config.nimMainPrefix & "NimDestroyGlobals"
let procname = getIdent(graph.cache, prefixedName)
let procname = getIdent(graph.cache, "NimDestroyGlobals")
result = newSym(skProc, procname, m.idgen, m.module.owner, m.module.info)
result.typ = newProcType(m.module.info, m.idgen, m.module.owner)
result.typ.callConv = ccCDecl
incl result.flags, sfExportc
result.loc.snippet = prefixedName
result.loc.snippet = "NimDestroyGlobals"
if isDynlib:
incl(result.loc.flags, lfExportLib)

View File

@@ -11,7 +11,7 @@
import
ast, ropes, options,
lineinfos, pathutils, modulegraphs
ndi, lineinfos, pathutils, modulegraphs
import std/[intsets, tables, sets]
@@ -88,7 +88,7 @@ type
options*: TOptions # options that should be used for code
# generation; this is the same as prc.options
# unless prc == nil
optionsStack*: seq[(TOptions, TNoteKinds)]
optionsStack*: seq[TOptions]
module*: BModule # used to prevent excessive parameter passing
withinLoop*: int # > 0 if we are within a loop
splitDecls*: int # > 0 if we are in some context for C++ that
@@ -172,6 +172,7 @@ type
# OpenGL wrapper
sigConflicts*: CountTable[SigHash]
g*: BModuleList
ndi*: NdiFile
template config*(m: BModule): ConfigRef = m.g.config
template config*(p: BProc): ConfigRef = p.module.g.config

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:

View File

@@ -164,7 +164,7 @@ type
const
nkSkip = {nkEmpty..nkNilLit, nkTemplateDef, nkTypeSection, nkStaticStmt,
nkCommentStmt, nkMixinStmt, nkBindStmt, nkTypeOfExpr} + procDefs
nkCommentStmt, nkMixinStmt, nkBindStmt} + procDefs
emptyStateLabel = -1
localNotSeen = -1
localRequiresLifting = -2
@@ -311,12 +311,12 @@ proc newNullifyCurExc(ctx: var Ctx, info: TLineInfo): PNode =
let curExc = ctx.newCurExcAccess()
curExc.info = info
let nilnode = newNode(nkNilLit)
nilnode.typ() = curExc.typ
nilnode.typ = curExc.typ
result = newTree(nkAsgn, curExc, nilnode)
proc newOr(g: ModuleGraph, a, b: PNode): PNode {.inline.} =
result = newTree(nkCall, newSymNode(g.getSysMagic(a.info, "or", mOr)), a, b)
result.typ() = g.getSysType(a.info, tyBool)
result.typ = g.getSysType(a.info, tyBool)
result.info = a.info
proc collectExceptState(ctx: var Ctx, n: PNode): PNode {.inline.} =
@@ -334,7 +334,7 @@ proc collectExceptState(ctx: var Ctx, n: PNode): PNode {.inline.} =
newSymNode(g.getSysMagic(c.info, "of", mOf)),
g.callCodegenProc("getCurrentException"),
c[i])
nextCond.typ() = ctx.g.getSysType(c.info, tyBool)
nextCond.typ = ctx.g.getSysType(c.info, tyBool)
nextCond.info = c.info
if cond.isNil:
@@ -444,11 +444,11 @@ proc convertExprBodyToAsgn(ctx: Ctx, exprBody: PNode, res: PSym): PNode =
proc newNotCall(g: ModuleGraph; e: PNode): PNode =
result = newTree(nkCall, newSymNode(g.getSysMagic(e.info, "not", mNot), e.info), e)
result.typ() = g.getSysType(e.info, tyBool)
result.typ = g.getSysType(e.info, tyBool)
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 captureVar(c: var Ctx, s: PSym) =
if c.varStates.getOrDefault(s.itemId) != localRequiresLifting:
@@ -486,7 +486,7 @@ proc lowerStmtListExprs(ctx: var Ctx, n: PNode, needsSplit: var bool): PNode =
result = newNodeI(nkStmtListExpr, n.info)
if n.typ.isNil: internalError(ctx.g.config, "lowerStmtListExprs: constr typ.isNil")
result.typ() = n.typ
result.typ = n.typ
for i in 0..<n.len:
case n[i].kind
@@ -513,7 +513,7 @@ proc lowerStmtListExprs(ctx: var Ctx, n: PNode, needsSplit: var bool): PNode =
let isExpr = not isEmptyType(n.typ)
if isExpr:
result = newNodeI(nkStmtListExpr, n.info)
result.typ() = n.typ
result.typ = n.typ
tmp = ctx.newTempVar(n.typ, result)
else:
result = newNodeI(nkStmtList, n.info)
@@ -578,7 +578,7 @@ proc lowerStmtListExprs(ctx: var Ctx, n: PNode, needsSplit: var bool): PNode =
if isExpr:
result = newNodeI(nkStmtListExpr, n.info)
result.typ() = n.typ
result.typ = n.typ
let tmp = ctx.newTempVar(n.typ, result)
n[0] = ctx.convertExprBodyToAsgn(n[0], tmp)
@@ -609,7 +609,7 @@ proc lowerStmtListExprs(ctx: var Ctx, n: PNode, needsSplit: var bool): PNode =
if isExpr:
result = newNodeI(nkStmtListExpr, n.info)
result.typ() = n.typ
result.typ = n.typ
let tmp = ctx.newTempVar(n.typ, result)
if n[0].kind == nkStmtListExpr:
@@ -646,7 +646,7 @@ proc lowerStmtListExprs(ctx: var Ctx, n: PNode, needsSplit: var bool): PNode =
if isExpr:
result = newNodeI(nkStmtListExpr, n.info)
result.typ() = n.typ
result.typ = n.typ
else:
result = newNodeI(nkStmtList, n.info)
@@ -732,7 +732,7 @@ proc lowerStmtListExprs(ctx: var Ctx, n: PNode, needsSplit: var bool): PNode =
if ns:
needsSplit = true
result = newNodeI(nkStmtListExpr, n.info)
result.typ() = n.typ
result.typ = n.typ
let (st, ex) = exprToStmtList(n[^1])
result.add(st)
n[^1] = ex
@@ -802,7 +802,7 @@ proc lowerStmtListExprs(ctx: var Ctx, n: PNode, needsSplit: var bool): PNode =
if ns:
needsSplit = true
result = newNodeI(nkStmtListExpr, n.info)
result.typ() = n.typ
result.typ = n.typ
let (st, ex) = exprToStmtList(n[0])
result.add(st)
n[0] = ex
@@ -814,10 +814,10 @@ proc lowerStmtListExprs(ctx: var Ctx, n: PNode, needsSplit: var bool): PNode =
if ns:
needsSplit = true
result = newNodeI(nkStmtListExpr, n.info)
result.typ() = n.typ
result.typ = n.typ
let (st, ex) = exprToStmtList(n[1])
n.transitionSonsKind(nkBlockStmt)
n.typ() = nil
n.typ = nil
n[1] = st
result.add(n)
result.add(ex)
@@ -838,9 +838,9 @@ proc newEndFinallyNode(ctx: var Ctx, info: TLineInfo): PNode =
# raise
let curExc = ctx.newCurExcAccess()
let nilnode = newNode(nkNilLit)
nilnode.typ() = curExc.typ
nilnode.typ = curExc.typ
let cmp = newTree(nkCall, newSymNode(ctx.g.getSysMagic(info, "==", mEqRef), info), curExc, nilnode)
cmp.typ() = ctx.g.getSysType(info, tyBool)
cmp.typ = ctx.g.getSysType(info, tyBool)
let retStmt =
if ctx.nearestFinally == 0:
@@ -1185,11 +1185,11 @@ proc newArrayType(g: ModuleGraph; n: int, t: PType; idgen: IdGenerator; owner: P
proc createExceptionTable(ctx: var Ctx): PNode {.inline.} =
result = newNodeI(nkBracket, ctx.fn.info)
result.typ() = ctx.g.newArrayType(ctx.exceptionTable.len, ctx.g.getSysType(ctx.fn.info, tyInt16), ctx.idgen, ctx.fn)
result.typ = ctx.g.newArrayType(ctx.exceptionTable.len, ctx.g.getSysType(ctx.fn.info, tyInt16), ctx.idgen, ctx.fn)
for i in ctx.exceptionTable:
let elem = newIntNode(nkIntLit, i)
elem.typ() = ctx.g.getSysType(ctx.fn.info, tyInt16)
elem.typ = ctx.g.getSysType(ctx.fn.info, tyInt16)
result.add(elem)
proc newCatchBody(ctx: var Ctx, info: TLineInfo): PNode {.inline.} =
@@ -1212,7 +1212,7 @@ proc newCatchBody(ctx: var Ctx, info: TLineInfo): PNode {.inline.} =
let getNextState = newTree(nkBracketExpr,
ctx.createExceptionTable(),
ctx.newStateAccess())
getNextState.typ() = intTyp
getNextState.typ = intTyp
# :state = exceptionTable[:state]
result.add(ctx.newStateAssgn(getNextState))
@@ -1223,7 +1223,7 @@ proc newCatchBody(ctx: var Ctx, info: TLineInfo): PNode {.inline.} =
ctx.g.getSysMagic(info, "==", mEqI).newSymNode(),
ctx.newStateAccess(),
newIntTypeNode(0, intTyp))
cond.typ() = boolTyp
cond.typ = boolTyp
let raiseStmt = newTree(nkRaiseStmt, ctx.g.emptyNode)
let ifBranch = newTree(nkElifBranch, cond, raiseStmt)
@@ -1236,7 +1236,7 @@ proc newCatchBody(ctx: var Ctx, info: TLineInfo): PNode {.inline.} =
ctx.g.getSysMagic(info, "<", mLtI).newSymNode,
newIntTypeNode(0, intTyp),
ctx.newStateAccess())
cond.typ() = boolTyp
cond.typ = boolTyp
let asgn = newTree(nkAsgn, ctx.newUnrollFinallyAccess(info), cond)
result.add(asgn)
@@ -1247,12 +1247,12 @@ proc newCatchBody(ctx: var Ctx, info: TLineInfo): PNode {.inline.} =
ctx.g.getSysMagic(info, "<", mLtI).newSymNode,
ctx.newStateAccess(),
newIntTypeNode(0, intTyp))
cond.typ() = boolTyp
cond.typ = boolTyp
let negateState = newTree(nkCall,
ctx.g.getSysMagic(info, "-", mUnaryMinusI).newSymNode,
ctx.newStateAccess())
negateState.typ() = intTyp
negateState.typ = intTyp
let ifBranch = newTree(nkElifBranch, cond, ctx.newStateAssgn(negateState))
let ifStmt = newTree(nkIfStmt, ifBranch)
@@ -1451,14 +1451,6 @@ proc detectCapturedVars(c: var Ctx, n: PNode, stateIdx: int) =
detectCapturedVars(c, n[0][1], stateIdx)
else:
detectCapturedVars(c, n[0], stateIdx)
of nkEmpty..pred(nkSym), succ(nkSym)..nkNilLit,
nkTemplateDef, nkTypeSection, nkProcDef, nkMethodDef,
nkConverterDef, nkMacroDef, nkFuncDef, nkCommentStmt,
nkTypeOfExpr, nkMixinStmt, nkBindStmt:
discard
of nkLambdaKinds, nkIteratorDef:
if n.typ != nil:
detectCapturedVars(c, n[namePos], stateIdx)
else:
for i in 0 ..< n.safeLen:
detectCapturedVars(c, n[i], stateIdx)
@@ -1489,12 +1481,6 @@ proc liftLocals(c: var Ctx, n: PNode): PNode =
n[0][1] = liftLocals(c, n[0][1])
else:
n[0] = liftLocals(c, n[0])
of nkEmpty..pred(nkSym), succ(nkSym)..nkNilLit,
nkTemplateDef, nkTypeSection, nkProcDef, nkMethodDef,
nkConverterDef, nkMacroDef, nkFuncDef, nkCommentStmt,
nkTypeOfExpr, nkMixinStmt, nkBindStmt,
nkLambdaKinds, nkIteratorDef:
discard
else:
for i in 0 ..< n.safeLen:
n[i] = liftLocals(c, n[i])

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, os, strutils, parseutils, parseopt, sequtils, strtabs, enumutils]
import std/[setutils, os, strutils, parseutils, parseopt, sequtils, strtabs]
import
msgs, options, nversion, condsyms, extccomp, platform,
wordrecg, nimblecmd, lineinfos, pathutils
@@ -203,14 +203,13 @@ proc processSpecificNote*(arg: string, state: TSpecialWord, pass: TCmdLinePass,
else: invalidCmdLineOption(conf, pass, orig, info)
let isSomeHint = state in {wHint, wHintAsError}
let isSomeWarning = state in {wWarning, wWarningAsError}
template findNote(noteMin, noteMax, name) =
# unfortunately, hintUser and warningUser clash, otherwise implementation would simplify a bit
let x = findStr(noteMin, noteMax, id, errUnknown)
if x != errUnknown: notes = {TNoteKind(x)}
else:
if isSomeHint or isSomeWarning:
message(conf, info, warnUnknownNotes, "unknown $#: $#" % [name, id])
if isSomeHint:
message(conf, info, hintUnknownHint, id)
else:
localError(conf, info, "unknown $#: $#" % [name, id])
case id.normalize
@@ -249,7 +248,6 @@ const
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 '$1' found"
template warningOptionNoop(switch: string) =
warningDeprecated(conf, info, "'$#' is deprecated, now a noop" % switch)
@@ -305,12 +303,6 @@ proc testCompileOptionArg*(conf: ConfigRef; switch, arg: string, info: TLineInfo
else:
result = false
localError(conf, info, errInvalidExceptionSystem % arg)
of "experimental":
try:
result = conf.features.contains parseEnum[Feature](arg)
except ValueError:
result = false
localError(conf, info, errInvalidFeatureButXFound % arg)
else:
result = false
invalidCmdLineOption(conf, passCmd1, switch, info)
@@ -459,7 +451,7 @@ template handleStdinOrCmdInput =
conf.outDir = getNimcacheDir(conf)
proc handleStdinInput*(conf: ConfigRef) =
conf.projectName = conf.stdinFile.string
conf.projectName = "stdinfile"
conf.projectIsStdin = true
handleStdinOrCmdInput()
@@ -920,12 +912,6 @@ proc processSwitch*(switch, arg: string, pass: TCmdLinePass, info: TLineInfo;
discard parseSaturatedNatural(arg, value)
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)
var value: int = 2_000
discard parseSaturatedNatural(arg, value)
if value <= 0: localError(conf, info, "maxCallDepthVM must be a positive integer greater than zero")
conf.maxCallDepthVM = value
of "errormax":
expectArg(conf, switch, arg, pass, info)
# Note: `nim check` (etc) can overwrite this.
@@ -935,10 +921,6 @@ proc processSwitch*(switch, arg: string, pass: TCmdLinePass, info: TLineInfo;
var value: int = 0
discard parseSaturatedNatural(arg, value)
conf.errorMax = if value == 0: high(int) else: value
of "stdinfile":
expectArg(conf, switch, arg, pass, info)
conf.stdinFile = if os.isAbsolute(arg): AbsoluteFile(arg)
else: AbsoluteFile(getCurrentDir() / arg)
of "verbosity":
expectArg(conf, switch, arg, pass, info)
let verbosity = parseInt(arg)

View File

@@ -11,7 +11,7 @@
## for details. Note this is a first implementation and only the "Concept matching"
## section has been implemented.
import ast, astalgo, semdata, lookups, lineinfos, idents, msgs, renderer, types, layeredtable
import ast, astalgo, semdata, lookups, lineinfos, idents, msgs, renderer, types
import std/intsets
@@ -19,7 +19,7 @@ when defined(nimPreviewSlimSystem):
import std/assertions
const
logBindings = when defined(debugConcepts): true else: false
logBindings = false
## Code dealing with Concept declarations
## --------------------------------------
@@ -70,244 +70,88 @@ proc semConceptDeclaration*(c: PContext; n: PNode): PNode =
## ----------------
type
MatchFlags* = enum
mfDontBind # Do not bind generic parameters
mfCheckGeneric # formal <- formal comparison as opposed to formal <- operand
MatchCon = object ## Context we pass around during concept matching.
bindings: LayeredIdTable
inferred: seq[(PType, PType)] ## we need a seq here so that we can easily undo inferences \
## that turned out to be wrong.
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
const
asymmetricConceptParamMods = {tyVar, tySink, tyLent, tyOwned, tyAlias, tyInferred} # param modifiers that to not have to match implementation -> concept
bindableTypes = {tyGenericParam, tyOr, tyTypeDesc}
proc conceptMatchNode(c: PContext; n: PNode; m: var MatchCon): bool
proc matchType(c: PContext; fo, ao: PType; m: var MatchCon): bool
proc matchReturnType(c: PContext; f, a: PType; m: var MatchCon): bool
proc processConcept(c: PContext; concpt, invocation: PType, bindings: var LayeredIdTable; m: var MatchCon): bool
proc existingBinding(m: MatchCon; key: PType): PType =
## checks if we bound the type variable 'key' already to some
## concrete type.
result = m.bindings.lookup(key)
if result == nil:
result = key
for i in 0..<m.inferred.len:
if m.inferred[i][0] == key: return m.inferred[i][1]
return nil
const
ignorableForArgType = {tyVar, tySink, tyLent, tyOwned, tyAlias, tyInferred}
proc conceptMatchNode(c: PContext; n: PNode; m: var MatchCon): bool
proc unrollGenericParam(param: PType): PType =
result = param.skipTypes(ignorableForArgType)
while result.kind in {tyGenericParam, tyTypeDesc} and result.hasElementType and result.elementType.kind != tyNone:
result = result.elementType
proc bindParam(c: PContext, m: var MatchCon; key, v: PType): bool {. discardable .} =
if v.kind == tyTypeDesc:
return false
var value = unrollGenericParam(v)
if value.kind == tyGenericParam:
value = existingBinding(m, value)
if value.kind == tyGenericParam:
if value.hasElementType:
value = value.elementType
else:
return true
if value.kind == tyStatic:
return false
if m.magic in {mArrPut, mArrGet} and value.kind in arrPutGetMagicApplies:
value = value.last
let old = existingBinding(m, key)
if old != key:
# check previously bound value
if not matchType(c, old, value, m):
return false
elif key.hasElementType and key.elementType.kind != tyNone:
# check constaint
if matchType(c, unrollGenericParam(key), value, m) == false:
return false
when logBindings: echo "bind table adding '", key, "', ", value
assert value != nil
assert value.kind != tyVoid
m.bindings.put(key, value)
return true
proc defSignatureType(n: PNode): PType = n[0].sym.typ
proc conceptBody*(n: PType): PNode = n.n.lastSon
proc acceptsAllTypes(t: PType): bool=
result = false
if t.kind == tyAnything:
result = true
elif t.kind == tyGenericParam:
if tfImplicitTypeParam in t.flags:
result = true
if not t.hasElementType or t.elementType.kind == tyNone:
result = true
proc procDefSignature(s: PSym): PNode {. deprecated .} =
var nc = s.ast.copyNode()
for i in 0 .. 5:
nc.add s.ast[i]
nc
proc matchKids(c: PContext; f, a: PType; m: var MatchCon, start=0): bool=
result = true
for i in start ..< f.kidsLen - ord(f.kind in {tyGenericInst, tyGenericInvocation}):
if not matchType(c, f[i], a[i], m): return false
iterator traverseTyOr(t: PType): PType {. closure .}=
for i in t.kids:
case i.kind:
of tyGenericParam:
if i.hasElementType:
for s in traverseTyOr(i.elementType):
yield s
else:
yield i
else:
yield i
proc matchConceptToImpl(c: PContext, f, potentialImpl: PType; m: var MatchCon): bool =
assert not(potentialImpl.reduceToBase.kind == tyConcept)
let concpt = f.reduceToBase
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
var efPot = potentialImpl
if potentialImpl.isSelf:
if m.concpt.n == concpt.n:
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
proc cmpConceptDefs(c: PContext, fn, an: PNode, m: var MatchCon): bool=
if fn.kind != an.kind:
return false
if fn[namePos].sym.name != an[namePos].sym.name:
return false
let
ft = fn.defSignatureType
at = an.defSignatureType
if ft.len != at.len:
return false
for i in 1 ..< ft.n.len:
m.bindings = m.bindings.newTypeMapLayer()
let aType = at.n[i].typ
let fType = ft.n[i].typ
if aType.isSelf and fType.isSelf:
continue
if not matchType(c, fType, aType, m):
m.bindings.setToPreviousLayer()
return false
result = true
if not matchReturnType(c, ft.returnType, at.returnType, m):
m.bindings.setToPreviousLayer()
result = false
proc conceptsMatch(c: PContext, fc, ac: PType; m: var MatchCon): MatchKind =
# XXX: In the future this may need extra parameters to carry info for container types
if fc.n == ac.n:
# This will have to take generic parameters into account at some point
return mkSame
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:
break
if not match:
return mkNoMatch
return mkSubset
proc matchType(c: PContext; fo, ao: PType; m: var MatchCon): bool =
proc matchType(c: PContext; f, a: 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
## of a routine that might match.
var
a = ao
f = fo
if a.kind in bindableTypes:
a = existingBinding(m, ao)
if a == ao and a.kind == tyGenericParam and a.hasElementType and a.elementType.kind != tyNone:
a = a.elementType
if f.isConcept:
if a.acceptsAllTypes:
return false
if a.skipTypes(ignorableForArgType).isConcept:
# if f is a subset of a then any match to a will also match f. Not the other way around
return conceptsMatch(c, a.reduceToBase, f.reduceToBase, m) >= mkSubset
else:
return matchConceptToImpl(c, f, a, m)
result = false
const
ignorableForArgType = {tyVar, tySink, tyLent, tyOwned, tyGenericInst, tyAlias, tyInferred}
case f.kind
of tyAlias:
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)
#let oldLen = m.inferred.len
result = matchType(c, a, m.potentialImplementation, m)
#echo "self is? ", result, " ", a.kind, " ", a, " ", m.potentialImplementation, " ", m.potentialImplementation.kind
#m.inferred.setLen oldLen
#echo "A for ", result, " to ", typeToString(a), " to ", typeToString(m.potentialImplementation)
else:
if a.kind == tyTypeDesc:
if not(a.hasElementType) or a.elementType.kind == tyNone:
result = true
elif f.hasElementType:
if a.kind == tyTypeDesc and f.hasElementType == a.hasElementType:
if f.hasElementType:
result = matchType(c, f.elementType, a.elementType, m)
else:
result = true # both lack it
else:
result = false
of tyGenericInvocation:
result = false
if a.kind == tyGenericInst and a.genericHead.kind == tyGenericBody:
if sameType(f.genericHead, a.genericHead) and f.kidsLen == a.kidsLen-1:
for i in FirstGenericParamAt ..< f.kidsLen:
if not matchType(c, f[i], a[i], m): return false
return true
of tyGenericParam:
let ak = a.skipTypes({tyVar, tySink, tyLent, tyOwned})
if ak.kind in {tyTypeDesc, tyStatic} and not isSelf(ak):
result = false
else:
let old = existingBinding(m, f)
if old == nil:
if f.hasElementType and f.elementType.kind != tyNone:
# also check the generic's constraints:
let oldLen = m.inferred.len
result = matchType(c, f.elementType, a, m)
m.inferred.setLen oldLen
if result:
when logBindings: echo "A adding ", f, " ", ak
m.inferred.add((f, ak))
elif m.magic == mArrGet and ak.kind in {tyArray, tyOpenArray, tySequence, tyVarargs, tyCstring, tyString}:
when logBindings: echo "B adding ", f, " ", lastSon ak
m.inferred.add((f, last ak))
result = true
else:
when logBindings: echo "C adding ", f, " ", ak
m.inferred.add((f, ak))
#echo "binding ", typeToString(ak), " to ", typeToString(f)
result = true
elif not m.marker.containsOrIncl(old.id):
result = matchType(c, old, ak, m)
if m.magic == mArrPut and ak.kind == tyGenericParam:
result = true
else:
result = false
#echo "B for ", result, " to ", typeToString(a), " to ", typeToString(m.potentialImplementation)
of tyVar, tySink, tyLent, tyOwned:
# modifiers in the concept must be there in the actual implementation
# too but not vice versa.
@@ -315,119 +159,70 @@ proc matchType(c: PContext; fo, ao: PType; m: var MatchCon): bool =
result = matchType(c, f.elementType, a.elementType, m)
elif m.magic == mArrPut:
result = matchType(c, f.elementType, a, m)
of tyEnum, tyObject, tyDistinct:
if a.kind in ignorableForArgType:
result = matchType(c, f, a.skipTypes(ignorableForArgType), m)
else:
if a.kind == tyGenericInst:
# tyOr does this to generic typeclasses
result = a.base.sym == f.sym
else:
result = sameType(f, a)
result = false
of tyEnum, tyObject, tyDistinct:
result = sameType(f, a)
of tyEmpty, tyString, tyCstring, tyPointer, tyNil, tyUntyped, tyTyped, tyVoid:
result = a.skipTypes(ignorableForArgType).kind == f.kind
of tyBool, tyChar, tyInt..tyUInt64:
let ak = a.skipTypes(ignorableForArgType)
result = ak.kind == f.kind or ak.kind == tyOrdinal or
(ak.kind == tyGenericParam and ak.hasElementType and ak.elementType.kind == tyOrdinal)
of tyArray, tyTuple, tyVarargs, tyOpenArray, tyRange, tySequence, tyRef, tyPtr:
if f.kind == tyArray and f.kidsLen == 3 and a.kind == tyArray:
# XXX: this is a work-around!
# system.nim creates these for the magic array typeclass
result = true
else:
let ak = a.skipTypes(ignorableForArgType - {f.kind})
if ak.kind == f.kind and f.kidsLen == ak.kidsLen:
result = matchKids(c, f, ak, m)
of tyGenericInvocation, tyGenericInst:
(ak.kind == tyGenericParam and ak.hasElementType and ak.elementType.kind == tyOrdinal)
of tyConcept:
let oldLen = m.inferred.len
let oldPotentialImplementation = m.potentialImplementation
m.potentialImplementation = a
result = conceptMatchNode(c, f.n.lastSon, m)
m.potentialImplementation = oldPotentialImplementation
if not result:
m.inferred.setLen oldLen
of tyArray, tyTuple, tyVarargs, tyOpenArray, tyRange, tySequence, tyRef, tyPtr,
tyGenericInst:
# ^ XXX Rewrite this logic, it's more complex than it needs to be.
result = false
let ea = a.skipTypes(ignorableForArgType)
if ea.kind in {tyGenericInst, tyGenericInvocation}:
var
k1 = f.kidsLen - ord(f.kind == tyGenericInst)
k2 = ea.kidsLen - ord(ea.kind == tyGenericInst)
if sameType(f.genericHead, ea.genericHead) and k1 == k2:
result = true
for i in 1 ..< k2:
if not matchType(c, f[i], ea[i], m):
result = false
break
of tyOrdinal:
result = isOrdinalType(a, allowEnumWithHoles = false) or a.kind == tyGenericParam
of tyStatic:
var scomp = f.base
if scomp.kind == tyGenericParam:
if f.base.kidsLen > 0:
scomp = scomp.base
if a.kind == tyStatic:
result = matchType(c, scomp, a.base, m)
else:
result = matchType(c, scomp, a, m)
of tyGenericParam:
if a.acceptsAllTypes:
discard bindParam(c, m, f, a)
result = f.acceptsAllTypes
else:
result = bindParam(c, m, f, a)
of tyAnything:
result = true
of tyNot:
if a.kind == tyNot:
result = matchType(c, f.elementType, a.elementType, m)
else:
m.bindings = m.bindings.newTypeMapLayer()
result = not matchType(c, f.elementType, a, m)
m.bindings.setToPreviousLayer()
of tyAnd:
m.bindings = m.bindings.newTypeMapLayer()
result = true
for ff in traverseTyOr(f):
let r = matchType(c, ff, a, m)
if not r:
m.bindings.setToPreviousLayer()
result = false
break
of tyGenericBody:
var ak = a
if a.kind == tyGenericBody:
ak = last(a)
result = matchType(c, last(f), ak, m)
of tyCompositeTypeClass:
if a.kind == tyCompositeTypeClass:
result = matchKids(c, f, a, m)
else:
result = matchType(c, last(f), a, m)
of tyBuiltInTypeClass:
let target = f.genericHead.kind
result = a.skipTypes(ignorableForArgType).reduceToBase.kind == target
let ak = a.skipTypes(ignorableForArgType - {f.kind})
if ak.kind == f.kind and f.kidsLen == ak.kidsLen:
for i in 0..<ak.kidsLen:
if not matchType(c, f[i], ak[i], m): return false
return true
of tyOr:
let oldLen = m.inferred.len
if a.kind == tyOr:
# say the concept requires 'int|float|string' if the potentialImplementation
# says 'int|string' that is good enough.
var covered = 0
for ff in traverseTyOr(f):
for aa in traverseTyOr(a):
m.bindings = m.bindings.newTypeMapLayer()
for ff in f.kids:
for aa in a.kids:
let oldLenB = m.inferred.len
let r = matchType(c, ff, aa, m)
if r:
inc covered
break
m.bindings.setToPreviousLayer()
m.inferred.setLen oldLenB
result = covered >= a.kidsLen
if not result:
m.inferred.setLen oldLen
else:
result = false
for ff in f.kids:
m.bindings = m.bindings.newTypeMapLayer()
result = matchType(c, ff, a, m)
if result: break # and remember the binding!
m.bindings.setToPreviousLayer()
m.inferred.setLen oldLen
of tyNot:
if a.kind == tyNot:
result = matchType(c, f.elementType, a.elementType, m)
else:
let oldLen = m.inferred.len
result = not matchType(c, f.elementType, a, m)
m.inferred.setLen oldLen
of tyAnything:
result = true
of tyOrdinal:
result = isOrdinalType(a, allowEnumWithHoles = false) or a.kind == tyGenericParam
else:
result = false
if result and ao.kind == tyGenericParam:
let bf = if f.isSelf: m.potentialImplementation else: f
if bindParam(c, m, ao, bf):
when logBindings: echo " ^ reverse binding"
proc checkConstraint(c: PContext; f, a: PType; m: var MatchCon): bool =
result = matchType(c, f, a, m) or matchType(c, a, f, m)
proc matchReturnType(c: PContext; f, a: PType; m: var MatchCon): bool =
## Like 'matchType' but with extra logic dealing with proc return types
@@ -437,38 +232,30 @@ proc matchReturnType(c: PContext; f, a: PType; m: var MatchCon): bool =
elif a == nil:
result = false
else:
result = checkConstraint(c, f, a, m)
result = matchType(c, f, a, m)
proc matchSym(c: PContext; candidate: PSym, n: PNode; m: var MatchCon): bool =
## Checks if 'candidate' matches 'n' from the concept body. 'n' is a nkProcDef
## or similar.
# watch out: only add bindings after a completely successful match.
m.bindings = m.bindings.newTypeMapLayer()
let oldLen = m.inferred.len
let can = candidate.typ.n
let con = defSignatureType(n).n
let con = n[0].sym.typ.n
if can.len < con.len:
# too few arguments, cannot be a match:
return false
if can.len > con.len:
# too many arguments (not optional)
for i in con.len ..< can.len:
if can[i].sym.ast == nil:
return false
when defined(debugConcepts):
echo "considering: ", renderTree(candidate.procDefSignature), " ", candidate.magic
let common = min(can.len, con.len)
for i in 1 ..< common:
if not checkConstraint(c, con[i].typ, can[i].typ, m):
m.bindings.setToPreviousLayer()
if not matchType(c, con[i].typ, can[i].typ, m):
m.inferred.setLen oldLen
return false
if not matchReturnType(c, n.defSignatureType.returnType, candidate.typ.returnType, m):
m.bindings.setToPreviousLayer()
if not matchReturnType(c, n[0].sym.typ.returnType, candidate.typ.returnType, m):
m.inferred.setLen oldLen
return false
# all other parameters have to be optional parameters:
@@ -476,7 +263,7 @@ proc matchSym(c: PContext; candidate: PSym, n: PNode; m: var MatchCon): bool =
assert can[i].kind == nkSym
if can[i].sym.ast == nil:
# has too many arguments one of which is not optional:
m.bindings.setToPreviousLayer()
m.inferred.setLen oldLen
return false
return true
@@ -484,14 +271,12 @@ proc matchSym(c: PContext; candidate: PSym, n: PNode; m: var MatchCon): bool =
proc matchSyms(c: PContext, n: PNode; kinds: set[TSymKind]; m: var MatchCon): bool =
## Walk the current scope, extract candidates which the same name as 'n[namePos]',
## 'n' is the nkProcDef or similar from the concept that we try to match.
result = false
var candidates = searchScopes(c, n[namePos].sym.name, kinds)
searchImportsAll(c, n[namePos].sym.name, kinds, candidates)
let candidates = searchInScopesAllCandidatesFilterBy(c, n[namePos].sym.name, kinds)
for candidate in candidates:
#echo "considering ", typeToString(candidate.typ), " ", candidate.magic
m.magic = candidate.magic
if matchSym(c, candidate, n, m):
result = true
break
if matchSym(c, candidate, n, m): return true
result = false
proc conceptMatchNode(c: PContext; n: PNode; m: var MatchCon): bool =
## Traverse the concept's AST ('n') and see if every declaration inside 'n'
@@ -524,48 +309,7 @@ proc conceptMatchNode(c: PContext; n: PNode; m: var MatchCon): bool =
# error was reported earlier.
result = false
proc fixBindings(bindings: var LayeredIdTable; concpt: PType; invocation: PType; m: var MatchCon) =
# invocation != nil means we have a non-atomic concept:
if invocation != nil and invocation.kind == tyGenericInvocation:
assert concpt.sym.typ.kind == tyGenericBody
for i in 0 .. concpt.sym.typ.len - 1:
let thisSym = concpt.sym.typ[i]
if lookup(bindings, thisSym) != nil:
# dont trust the bindings over existing ones
continue
let found = m.bindings.lookup(thisSym)
if found != nil:
when logBindings: echo "Invocation bind: ", thisSym, " ", found
bindings.put(thisSym, found)
# bind even more generic parameters
let genBody = invocation.base
assert genBody.kind == tyGenericBody
for i in FirstGenericParamAt ..< invocation.kidsLen:
let bpram = genBody[i - 1]
if lookup(bindings, invocation[i]) != nil:
# dont trust the bindings over existing ones
continue
let boundV = lookup(bindings, bpram)
when logBindings: echo "generic body bind: '", invocation[i], "' '", boundV, "'"
if boundV != nil:
bindings.put(invocation[i], boundV)
bindings.put(concpt, m.potentialImplementation)
proc processConcept(c: PContext; concpt, invocation: PType, bindings: var LayeredIdTable; m: var MatchCon): bool =
m.bindings = m.bindings.newTypeMapLayer()
if invocation != nil and invocation.kind == tyGenericInst:
let genericBody = invocation.base
for i in 1..<invocation.kidsLen-1:
# instGenericContainer can bind `tyVoid`
if invocation[i].kind != tyVoid:
bindParam(c, m, genericBody[i-1], invocation[i])
result = conceptMatchNode(c, concpt.conceptBody, m)
if result and mfDontBind notin m.flags:
fixBindings(bindings, concpt, invocation, m)
proc conceptMatch*(c: PContext; concpt, arg: PType; bindings: var LayeredIdTable; invocation: PType, flags: set[MatchFlags] = {}): bool =
proc conceptMatch*(c: PContext; concpt, arg: PType; bindings: var TypeMapping; invocation: PType): bool =
## Entry point from sigmatch. 'concpt' is the concept we try to match (here still a PType but
## we extract its AST via 'concpt.n.lastSon'). 'arg' is the type that might fulfill the
## concept's requirements. If so, we return true and fill the 'bindings' with pairs of
@@ -574,16 +318,26 @@ 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)
if arg.isConcept:
result = conceptsMatch(c, concpt.reduceToBase, arg.reduceToBase, m) >= mkSubset
elif arg.acceptsAllTypes:
# XXX: I think this is wrong, or at least partially wrong. Can still test ambiguous types
result = false
elif mfCheckGeneric in m.flags:
# prioritize concepts the least. Specifically if the arg is not a catch all as per above
result = true
else:
result = processConcept(c, concpt, invocation, bindings, m)
var m = MatchCon(inferred: @[], potentialImplementation: arg)
result = conceptMatchNode(c, concpt.n.lastSon, m)
if result:
for (a, b) in m.inferred:
if b.kind == tyGenericParam:
var dest = b
while true:
dest = existingBinding(m, dest)
if dest == nil or dest.kind != tyGenericParam: break
if dest != nil:
bindings.idTablePut(a, dest)
when logBindings: echo "A bind ", a, " ", dest
else:
bindings.idTablePut(a, b)
when logBindings: echo "B bind ", a, " ", b
# we have a match, so bind 'arg' itself to 'concpt':
bindings.idTablePut(concpt, arg)
# invocation != nil means we have a non-atomic concept:
if invocation != nil and arg.kind == tyGenericInst and invocation.kidsLen == arg.kidsLen-1:
# bind even more generic parameters
assert invocation.kind == tyGenericInvocation
for i in FirstGenericParamAt ..< invocation.kidsLen:
bindings.idTablePut(invocation[i], arg[i])

View File

@@ -166,8 +166,4 @@ proc initDefines*(symbols: StringTableRef) =
defineSymbol("nimHasWarnStdPrefix")
defineSymbol("nimHasVtables")
defineSymbol("nimHasGenericsOpenSym2")
defineSymbol("nimHasGenericsOpenSym3")
defineSymbol("nimHasJsNoLambdaLifting")
defineSymbol("nimHasDefaultFloatRoundtrip")
defineSymbol("nimHasXorSet")

View File

@@ -439,8 +439,8 @@ proc gen(c: var Con; n: PNode) =
genUse(c, n)
of nkIfStmt, nkIfExpr: genIf(c, n)
of nkWhenStmt:
# This is "when nimvm" node. Chose the second branch.
gen(c, n[1][0])
# This is "when nimvm" node. Chose the first branch.
gen(c, n[0][1])
of nkCaseStmt: genCase(c, n)
of nkWhileStmt: genWhile(c, n)
of nkBlockExpr, nkBlockStmt: genBlock(c, n)

View File

@@ -115,7 +115,7 @@ proc add(dest: var ItemPre, str: string) = dest.add ItemFragment(isRst: false, s
proc addRstFileIndex(d: PDoc, fileIndex: lineinfos.FileIndex): rstast.FileIndex =
let invalid = rstast.FileIndex(-1)
result = d.nimToRstFid.getOrDefault(fileIndex, invalid)
result = d.nimToRstFid.getOrDefault(fileIndex, default = invalid)
if result == invalid:
let fname = toFullPath(d.conf, fileIndex)
result = addFilename(d.sharedState, fname)
@@ -830,8 +830,8 @@ proc getName(n: PNode): string =
of nkAccQuoted:
result = "`"
for i in 0..<n.len: result.add(getName(n[i]))
result.add('`')
of nkOpenSymChoice, nkClosedSymChoice, nkOpenSym:
result = "`"
of nkOpenSymChoice, nkClosedSymChoice:
result = getName(n[0])
else:
result = ""
@@ -849,7 +849,7 @@ proc getNameIdent(cache: IdentCache; n: PNode): PIdent =
var r = ""
for i in 0..<n.len: r.add(getNameIdent(cache, n[i]).s)
result = getIdent(cache, r)
of nkOpenSymChoice, nkClosedSymChoice, nkOpenSym:
of nkOpenSymChoice, nkClosedSymChoice:
result = getNameIdent(cache, n[0])
else:
result = nil
@@ -863,7 +863,7 @@ proc getRstName(n: PNode): PRstNode =
of nkAccQuoted:
result = getRstName(n[0])
for i in 1..<n.len: result.text.add(getRstName(n[i]).text)
of nkOpenSymChoice, nkClosedSymChoice, nkOpenSym:
of nkOpenSymChoice, nkClosedSymChoice:
result = getRstName(n[0])
else:
result = nil
@@ -1206,7 +1206,7 @@ proc genJsonItem(d: PDoc, n, nameNode: PNode, k: TSymKind, nonExports = false):
var param = %{"name": %($genericParam)}
if genericParam.sym.typ.len > 0:
param["types"] = newJArray()
param["types"] = %($genericParam.sym.typ.elementType)
param["types"].add %($genericParam.sym.typ.elementType)
result.json["signature"]["genericParams"].add param
if optGenIndex in d.conf.globalOptions:
genItem(d, n, nameNode, k, kForceExport)
@@ -1320,7 +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)
@@ -1406,14 +1406,11 @@ proc generateDoc*(d: PDoc, n, orig: PNode, config: ConfigRef, docFlags: DocFlags
for it in n: traceDeps(d, it)
of nkExportStmt:
for it in n:
if it.kind == nkSym:
if d.module != nil and d.module == it.sym.owner: # in current module
# bug #23051; don't generate documentation for exported symbols again
if sfExported notin it.sym.flags:
generateDoc(d, it.sym.ast, orig, config, kForceExport)
# else it's to be handled in `of XxxSection` branch
# bug #23051; don't generate documentation for exported symbols again
if it.kind == nkSym and sfExported notin it.sym.flags:
if d.module != nil and d.module == it.sym.owner:
generateDoc(d, it.sym.ast, orig, config, kForceExport)
elif it.sym.ast != nil:
# only export symbols in imported modules, not in current module
exportSym(d, it.sym)
of nkExportExceptStmt: discard "transformed into nkExportStmt by semExportExcept"
of nkFromStmt, nkImportExceptStmt: traceDeps(d, n[0])

View File

@@ -33,10 +33,6 @@ proc genEnumToStrProc*(t: PType; info: TLineInfo; g: ModuleGraph; idgen: IdGener
caseStmt.add newTree(nkOfBranch, newIntTypeNode(field.position, t),
newTree(nkStmtList, newTree(nkFastAsgn, newSymNode(res), newStrNode(val, info))))
#newIntTypeNode(nkIntLit, field.position, t)
# safety branch for invalid data:
caseStmt.add newTree(nkElse,
newTree(nkStmtList, newTree(nkFastAsgn, newSymNode(res),
newStrNode("", info))))
body.add(caseStmt)

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

@@ -33,19 +33,6 @@ proc evalTemplateAux(templ, actual: PNode, c: var TemplCtx, result: PNode) =
let x = param
if x.kind == nkArgList:
for y in items(x): result.add(y)
elif nfDefaultRefsParam in x.flags:
# value of default param needs to be evaluated like template body
# if it contains other template params
var res: PNode
if isAtom(x):
res = newNodeI(nkPar, x.info)
evalTemplateAux(x, actual, c, res)
if res.len == 1: res = res[0]
else:
res = copyNode(x)
for i in 0..<x.safeLen:
evalTemplateAux(x[i], actual, c, res)
result.add res
else:
result.add copyTree(x)
@@ -64,7 +51,7 @@ proc evalTemplateAux(templ, actual: PNode, c: var TemplCtx, result: PNode) =
if x == nil:
x = copySym(s, c.idgen)
# sem'check needs to set the owner properly later, see bug #9476
setOwner(x, nil) # c.genSymOwner
x.owner = nil # c.genSymOwner
#if x.kind == skParam and x.owner.kind == skModule:
# internalAssert c.config, false
idTablePut(c.mapping, s, x)
@@ -182,7 +169,7 @@ 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

@@ -125,7 +125,7 @@ proc expandDefault(t: PType; info: TLineInfo): PNode =
of tyString:
result = newZero(t, info, nkStrLit)
of tyNone, tyEmpty, tyUntyped, tyTyped, tyTypeDesc,
tyNil, tyGenericInvocation, tyError, tyBuiltInTypeClass,
tyNil, tyGenericInvocation, tyProxy, tyBuiltInTypeClass,
tyUserTypeClass, tyUserTypeClassInst, tyCompositeTypeClass,
tyAnd, tyOr, tyNot, tyAnything, tyConcept, tyIterable, tyForward:
result = newZero(t, info, nkEmpty) # bug indicator

View File

@@ -63,7 +63,7 @@ type
# Configuration settings for various compilers.
# When adding new compilers, the cmake sources could be a good reference:
# https://cmake.org/gitweb?p=cmake.git;a=tree;f=Modules/Platform;
# http://cmake.org/gitweb?p=cmake.git;a=tree;f=Modules/Platform;
template compiler(name, settings: untyped): untyped =
proc name: TInfoCC {.compileTime.} = settings
@@ -162,11 +162,7 @@ compiler vcc:
linkerExe: "cl",
linkTmpl: "$builddll$vccplatform /Fe$exefile $objfiles $buildgui /nologo $options",
includeCmd: " /I",
# HACK: we call `cl` so we have to pass `/link` for linker options,
# but users may still want to pass arguments to `cl` (see #14221)
# to deal with this, we add `/link` before each `/LIBPATH`,
# the linker ignores extra `/link`s since it's an unrecognized argument
linkDirCmd: " /link /LIBPATH:",
linkDirCmd: " /LIBPATH:",
linkLibCmd: " $1.lib",
debug: " /RTC1 /Z7 ",
pic: "",
@@ -257,8 +253,8 @@ compiler tcc:
linkerExe: "tcc",
linkTmpl: "-o $exefile $options $buildgui $builddll $objfiles",
includeCmd: " -I",
linkDirCmd: " -L",
linkLibCmd: " -l$1",
linkDirCmd: "", # XXX: not supported yet
linkLibCmd: "", # XXX: not supported yet
debug: " -g ",
pic: "",
asmStmtFrmt: "asm($1);$n",
@@ -474,11 +470,6 @@ proc noAbsolutePaths(conf: ConfigRef): bool {.inline.} =
proc cFileSpecificOptions(conf: ConfigRef; nimname, fullNimFile: string): string =
result = conf.compileOptions
if (conf.cCompiler == ccGcc or conf.cCompiler == ccCLang) and
conf.selectedGC == gcRefc:
# bug #10625
addOpt(result, "-fno-omit-frame-pointer")
for option in conf.compileOptionsCmd:
if strutils.find(result, option, 0) < 0:
addOpt(result, option)
@@ -786,7 +777,7 @@ proc getLinkCmd(conf: ConfigRef; output: AbsoluteFile,
# https://blog.molecular-matters.com/2017/05/09/deleting-pdb-files-locked-by-visual-studio/
# and a bit about the .pdb format in case that is ever needed:
# https://github.com/crosire/blink
# https://www.debuginfo.com/articles/debuginfomatch.html#pdbfiles
# http://www.debuginfo.com/articles/debuginfomatch.html#pdbfiles
if conf.hcrOn and isVSCompatible(conf):
let t = now()
let pdb = output.string & "." & format(t, "MMMM-yyyy-HH-mm-") & $t.nanosecond & ".pdb"
@@ -1009,11 +1000,10 @@ proc jsonBuildInstructionsFile*(conf: ConfigRef): AbsoluteFile =
# works out of the box with `hashMainCompilationParams`.
result = getNimcacheDir(conf) / conf.outFile.changeFileExt("json")
const cacheVersion = "D20240927T193831" # update when `BuildCache` spec changes
const cacheVersion = "D20210525T193831" # update when `BuildCache` spec changes
type BuildCache = object
cacheVersion: string
outputFile: string
outputLastModificationTime: string
compile: seq[(string, string)]
link: seq[string]
linkcmd: string
@@ -1057,8 +1047,6 @@ proc writeJsonBuildInstructions*(conf: ConfigRef; deps: StringTableRef) =
bcache.depfiles.add (path, $secureHashFile(path))
bcache.nimexe = hashNimExe()
if fileExists(bcache.outputFile):
bcache.outputLastModificationTime = $getLastModificationTime(bcache.outputFile)
conf.jsonBuildFile = conf.jsonBuildInstructionsFile
conf.jsonBuildFile.string.writeFile(bcache.toJson.pretty)
@@ -1079,8 +1067,6 @@ proc changeDetectedViaJsonBuildInstructions*(conf: ConfigRef; jsonFile: Absolute
# xxx optimize by returning false if stdin input was the same
for (file, hash) in bcache.depfiles:
if $secureHashFile(file) != hash: return true
if bcache.outputLastModificationTime != $getLastModificationTime(bcache.outputFile):
return true
proc runJsonBuildInstructions*(conf: ConfigRef; jsonFile: AbsoluteFile) =
var bcache: BuildCache = default(BuildCache)
@@ -1097,7 +1083,7 @@ proc runJsonBuildInstructions*(conf: ConfigRef; jsonFile: AbsoluteFile) =
"jsonscript command outputFile '$1' must match '$2' which was specified during --compileOnly, see \"outputFile\" entry in '$3' " %
[outputCurrent, output, jsonFile.string])
var cmds: TStringSeq = default(TStringSeq)
var prettyCmds: TStringSeq = default(TStringSeq)
var prettyCmds: TStringSeq= default(TStringSeq)
let prettyCb = proc (idx: int) = writePrettyCmdsStderr(prettyCmds[idx])
for (name, cmd) in bcache.compile:
cmds.add cmd

View File

@@ -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)
@@ -1165,12 +1165,8 @@ proc buildProperFieldCheck(access, check: PNode; o: Operators): PNode =
if check[1].kind == nkCurly:
result = copyTree(check)
if access.kind == nkDotExpr:
# change the access to the discriminator field access
var a = copyTree(access)
# set field name to discriminator field name
a[1] = check[2]
# set discriminator field type: important for `neg`
a.typ() = check[2].typ
result[2] = a
# 'access.kind != nkDotExpr' can happen for object constructors
# which we don't check yet

View File

@@ -837,8 +837,8 @@ proc loadNodes*(c: var PackedDecoder; g: var PackedModuleGraph; thisModule: int;
result.ident = getIdent(c.cache, g[thisModule].fromDisk.strings[n.litId])
of nkSym:
result.sym = loadSym(c, g, thisModule, PackedItemId(module: LitId(0), item: tree[n].soperand))
if result.typ == nil:
result.typ() = result.sym.typ
if result.typ == nil and nfOpenSym notin result.flags:
result.typ = result.sym.typ
of externIntLit:
result.intVal = g[thisModule].fromDisk.numbers[n.litId]
of nkStrLit..nkTripleStrLit:
@@ -851,8 +851,8 @@ proc loadNodes*(c: var PackedDecoder; g: var PackedModuleGraph; thisModule: int;
assert n2.kind == nkNone
transitionNoneToSym(result)
result.sym = loadSym(c, g, thisModule, PackedItemId(module: n1.litId, item: tree[n2].soperand))
if result.typ == nil:
result.typ() = result.sym.typ
if result.typ == nil and nfOpenSym notin result.flags:
result.typ = result.sym.typ
else:
for n0 in sonsReadonly(tree, n):
result.addAllowNil loadNodes(c, g, thisModule, tree, n0)
@@ -942,7 +942,7 @@ proc symBodyFromPacked(c: var PackedDecoder; g: var PackedModuleGraph;
result.guard = loadSym(c, g, si, s.guard)
result.bitsize = s.bitsize
result.alignment = s.alignment
setOwner(result, loadSym(c, g, si, s.owner))
result.owner = loadSym(c, g, si, s.owner)
let externalName = g[si].fromDisk.strings[s.externalName]
if externalName != "":
result.loc.snippet = externalName
@@ -998,7 +998,7 @@ proc typeHeaderFromPacked(c: var PackedDecoder; g: var PackedModuleGraph;
proc typeBodyFromPacked(c: var PackedDecoder; g: var PackedModuleGraph;
t: PackedType; si, item: int32; result: PType) =
result.sym = loadSym(c, g, si, t.sym)
setOwner(result, loadSym(c, g, si, t.owner))
result.owner = loadSym(c, g, si, t.owner)
when false:
for op, item in pairs t.attachedOps:
result.attachedOps[op] = loadSym(c, g, si, item)
@@ -1062,7 +1062,7 @@ proc setupLookupTables(g: var PackedModuleGraph; conf: ConfigRef; cache: IdentCa
name: getIdent(cache, splitFile(filename).name),
info: newLineInfo(fileIdx, 1, 1),
position: int(fileIdx))
setOwner(m.module, getPackage(conf, cache, fileIdx))
m.module.owner = getPackage(conf, cache, fileIdx)
m.module.flags = m.fromDisk.moduleFlags
proc loadToReplayNodes(g: var PackedModuleGraph; conf: ConfigRef; cache: IdentCache;

View File

@@ -231,7 +231,7 @@ proc importForwarded(c: PContext, n: PNode, exceptSet: IntSet; fromMod: PSym; im
for i in 0..n.safeLen-1:
importForwarded(c, n[i], exceptSet, fromMod, importSet)
proc importModuleAs(c: PContext; n: PNode, realModule: PSym, importHidden, trackUnusedImport: bool): PSym =
proc importModuleAs(c: PContext; n: PNode, realModule: PSym, importHidden: bool): PSym =
result = realModule
template createModuleAliasImpl(ident): untyped =
createModuleAlias(realModule, c.idgen, ident, n.info, c.config.options)
@@ -246,10 +246,7 @@ proc importModuleAs(c: PContext; n: PNode, realModule: PSym, importHidden, track
result = createModuleAliasImpl(realModule.name)
if importHidden:
result.options.incl optImportHidden
let moduleIdent = if n.kind in {nkInfix, nkImportAs}: n[^1] else: n
result.info = moduleIdent.info
if trackUnusedImport:
c.unusedImports.add((result, result.info))
c.unusedImports.add((result, n.info))
c.importModuleMap[result.id] = realModule.id
c.importModuleLookup.mgetOrPut(result.name.id, @[]).addUnique realModule.id
@@ -290,11 +287,10 @@ proc myImportModule(c: PContext, n: var PNode, importStmtResult: PNode): PSym =
toFullPath(c.config, c.graph.importStack[i+1])
c.recursiveDep = err
let trackUnusedImport = warnUnusedImportX in c.config.notes
var realModule: PSym
discard pushOptionEntry(c)
realModule = c.graph.importModuleCallback(c.graph, c.module, f)
result = importModuleAs(c, n, realModule, transf.importHidden, trackUnusedImport)
result = importModuleAs(c, n, realModule, transf.importHidden)
popOptionEntry(c)
#echo "set back to ", L
@@ -338,7 +334,7 @@ proc impMod(c: PContext; it: PNode; importStmtResult: PNode) =
let m = myImportModule(c, it, importStmtResult)
if m != nil:
# ``addDecl`` needs to be done before ``importAllSymbols``!
addDecl(c, m) # add symbol to symbol table of module
addDecl(c, m, it.info) # add symbol to symbol table of module
importAllSymbols(c, m)
#importForwarded(c, m.ast, emptySet, m)
afterImport(c, m)
@@ -375,7 +371,7 @@ proc evalFrom*(c: PContext, n: PNode): PNode =
var m = myImportModule(c, n[0], result)
if m != nil:
n[0] = newSymNode(m)
addDecl(c, m) # add symbol to symbol table of module
addDecl(c, m, n.info) # add symbol to symbol table of module
var im = ImportedModule(m: m, mode: importSet, imported: initIntSet())
for i in 1..<n.len:
@@ -390,7 +386,7 @@ proc evalImportExcept*(c: PContext, n: PNode): PNode =
var m = myImportModule(c, n[0], result)
if m != nil:
n[0] = newSymNode(m)
addDecl(c, m) # add symbol to symbol table of module
addDecl(c, m, n.info) # add symbol to symbol table of module
importAllSymbolsExcept(c, m, readExceptSet(c, n))
#importForwarded(c, m.ast, exceptSet, m)
afterImport(c, m)

View File

@@ -317,9 +317,8 @@ 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 == gcOrc and IsExplicitSink notin flags:
# add cyclic flag, but not to sink calls, which IsExplicitSink generates
proc finishCopy(c: var Con; result, dest: PNode; isFromSink: bool) =
if c.graph.config.selectedGC == gcOrc:
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))
@@ -332,7 +331,7 @@ proc genMarkCyclic(c: var Con; result, dest: PNode) =
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 =
@@ -400,7 +399,7 @@ proc genWasMoved(c: var Con, n: PNode): PNode =
result = genOp(c, op, n)
else:
result = newNodeI(nkCall, n.info)
result.add(newSymNode(createMagic(c.graph, c.idgen, "wasMoved", mWasMoved)))
result.add(newSymNode(createMagic(c.graph, c.idgen, "`=wasMoved`", mWasMoved)))
result.add copyTree(n) #mWasMoved does not take the address
#if n.kind != nkSym:
# message(c.graph.config, n.info, warnUser, "wasMoved(" & $n & ")")
@@ -408,7 +407,7 @@ 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)
@@ -465,7 +464,7 @@ proc passCopyToSink(n: PNode; c: var Con; s: var Scope): PNode =
var newCall = newTreeIT(nkCall, src.info, src.typ,
newSymNode(op),
src)
c.finishCopy(newCall, n, {}, isFromSink = true)
c.finishCopy(newCall, n, isFromSink = true)
result.add newTreeI(nkFastAsgn,
src.info, tmp,
newCall
@@ -474,7 +473,7 @@ proc passCopyToSink(n: PNode; c: var Con; s: var Scope): PNode =
result.add c.genWasMoved(tmp)
var m = c.genCopy(tmp, n, {})
m.add p(n, c, s, normal)
c.finishCopy(m, n, {}, isFromSink = true)
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,
@@ -502,7 +501,7 @@ proc containsConstSeq(n: PNode): bool =
return true
result = false
case n.kind
of nkExprEqExpr, nkExprColonExpr, nkHiddenStdConv, nkHiddenSubConv, nkCast:
of nkExprEqExpr, nkExprColonExpr, nkHiddenStdConv, nkHiddenSubConv:
result = containsConstSeq(n[1])
of nkObjConstr, nkClosure:
for i in 1..<n.len:
@@ -762,7 +761,7 @@ proc pRaiseStmt(n: PNode, c: var Con; s: var Scope): PNode =
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)
c.finishCopy(m, n[0], isFromSink = false)
result = newTree(nkStmtList, c.genWasMoved(tmp), m)
var toDisarm = n[0]
if toDisarm.kind == nkStmtListExpr: toDisarm = toDisarm.lastSon
@@ -802,7 +801,15 @@ proc p(n: PNode; c: var Con; s: var Scope; mode: ProcessMode; tmpFlags = {sfSing
result = passCopyToSink(n, c, s)
elif n.kind in {nkBracket, nkObjConstr, nkTupleConstr, nkClosure, nkNilLit} +
nkCallKinds + nkLiterals:
result = p(n, c, s, consumed)
if n.kind in nkCallKinds and n[0].kind == nkSym:
if n[0].sym.magic == mEnsureMove:
inc c.inEnsureMove
result = p(n[1], c, s, sinkArg)
dec c.inEnsureMove
else:
result = p(n, c, s, consumed)
else:
result = p(n, c, s, consumed)
elif ((n.kind == nkSym and isSinkParam(n.sym)) or isAnalysableFieldAccess(n, c.owner)) and
isLastRead(n, c, s) and not (n.kind == nkSym and isCursor(n)):
# Sinked params can be consumed only once. We need to reset the memory
@@ -814,17 +821,14 @@ 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}:
result = copyTree(n)
result[0] = p(n[0], c, s, sinkArg)
elif n.kind == nkCast and n.typ.skipTypes(abstractInst).kind in {tyString, tySequence}:
result = copyTree(n)
result[1] = p(n[1], c, s, sinkArg)
elif n.typ == nil:
# 'raise X' can be part of a 'case' expression. Deal with it here:
result = p(n, c, s, normal)
@@ -878,14 +882,19 @@ proc p(n: PNode; c: var Con; s: var Scope; mode: ProcessMode; tmpFlags = {sfSing
if mode == normal and (isRefConstr or hasCustomDestructor(c, t)):
result = ensureDestruction(result, n, c, s)
of nkCallKinds:
if n[0].kind == nkSym and n[0].sym.magic == mEnsureMove:
inc c.inEnsureMove
result = p(n[1], c, s, sinkArg)
dec c.inEnsureMove
return
let inSpawn = c.inSpawn
if n[0].kind == nkSym and n[0].sym.magic == mSpawn:
c.inSpawn.inc
elif c.inSpawn > 0:
c.inSpawn.dec
# bug #23907; skips tyGenericInst for generic callbacks
let parameters = if n[0].typ != nil: n[0].typ.skipTypes(abstractInst) else: n[0].typ
let parameters = n[0].typ
let L = if parameters != nil: parameters.signatureLen else: 0
when false:
@@ -895,19 +904,13 @@ proc p(n: PNode; c: var Con; s: var Scope; mode: ProcessMode; tmpFlags = {sfSing
isDangerous = true
result = shallowCopy(n)
if n[0].kind == nkSym and n[0].sym.magic == mEnsureMove:
inc c.inEnsureMove
result[1] = p(n[1], c, s, sinkArg)
dec c.inEnsureMove
else:
for i in 1..<n.len:
if i < L and isCompileTimeOnly(parameters[i]):
result[i] = n[i]
elif i < L and (isSinkTypeForParam(parameters[i]) or inSpawn > 0):
result[i] = p(n[i], c, s, sinkArg)
else:
result[i] = p(n[i], c, s, normal)
for i in 1..<n.len:
if i < L and isCompileTimeOnly(parameters[i]):
result[i] = n[i]
elif i < L and (isSinkTypeForParam(parameters[i]) or inSpawn > 0):
result[i] = p(n[i], c, s, sinkArg)
else:
result[i] = p(n[i], c, s, normal)
when false:
if isDangerous:
@@ -1014,9 +1017,9 @@ 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)
@@ -1166,7 +1169,7 @@ proc moveOrCopy(dest, ri: PNode; c: var Con; s: var Scope, flags: set[MoveOrCopy
result = c.genCopy(dest, ri, flags)
dec c.inEnsureMove, isEnsureMove
result.add p(ri, c, s, consumed)
c.finishCopy(result, dest, flags, isFromSink = false)
c.finishCopy(result, dest, isFromSink = false)
of nkBracket:
# array constructor
if ri.len > 0 and isDangerousSeq(ri.typ):
@@ -1174,7 +1177,7 @@ proc moveOrCopy(dest, ri: PNode; c: var Con; s: var Scope, flags: set[MoveOrCopy
result = c.genCopy(dest, ri, flags)
dec c.inEnsureMove, isEnsureMove
result.add p(ri, c, s, consumed)
c.finishCopy(result, dest, flags, isFromSink = false)
c.finishCopy(result, dest, isFromSink = false)
else:
result = c.genSink(s, dest, p(ri, c, s, consumed), flags)
of nkObjConstr, nkTupleConstr, nkClosure, nkCharLit..nkNilLit:
@@ -1195,13 +1198,10 @@ proc moveOrCopy(dest, ri: PNode; c: var Con; s: var Scope, flags: set[MoveOrCopy
result = c.genCopy(dest, ri, flags)
dec c.inEnsureMove, isEnsureMove
result.add p(ri, c, s, consumed)
c.finishCopy(result, dest, flags, isFromSink = false)
c.finishCopy(result, dest, isFromSink = false)
of nkHiddenSubConv, nkHiddenStdConv, nkConv, nkObjDownConv, nkObjUpConv, nkCast:
if IsExplicitSink in flags:
result = c.genSink(s, dest, p(ri, c, s, consumed), flags)
else:
result = c.genSink(s, dest, p(ri, c, s, sinkArg), flags)
of nkStmtListExpr, nkBlockExpr, nkIfExpr, nkCaseStmt, nkTryStmt, nkPragmaBlock:
result = c.genSink(s, dest, p(ri, c, s, sinkArg), flags)
of nkStmtListExpr, nkBlockExpr, nkIfExpr, nkCaseStmt, nkTryStmt:
template process(child, s): untyped = moveOrCopy(dest, child, c, s, flags)
# We know the result will be a stmt so we use that fact to optimize
handleNestedTempl(ri, process, willProduceStmt = true)
@@ -1218,7 +1218,7 @@ proc moveOrCopy(dest, ri: PNode; c: var Con; s: var Scope, flags: set[MoveOrCopy
result = c.genCopy(dest, ri, flags)
dec c.inEnsureMove, isEnsureMove
result.add p(ri, c, s, consumed)
c.finishCopy(result, dest, flags, isFromSink = false)
c.finishCopy(result, dest, isFromSink = false)
when false:
proc computeUninit(c: var Con) =

View File

@@ -166,7 +166,7 @@ proc containsVariable(n: PNode): bool =
proc checkIsolate*(n: PNode): bool =
if types.containsTyRef(n.typ):
# XXX Maybe require that 'n.typ' is acyclic. This is not much
# worse than the already existing inheritance and closure restrictions.
# worse than the already exisiting inheritance and closure restrictions.
case n.kind
of nkCharLit..nkNilLit:
result = true

View File

@@ -33,7 +33,7 @@ import
nversion, msgs, idents, types,
ropes, wordrecg, renderer,
cgmeth, lowerings, sighashes, modulegraphs, lineinfos,
transf, injectdestructors, sourcemap, astmsgs, pushpoppragmas,
transf, injectdestructors, sourcemap, astmsgs, backendpragmas,
mangleutils
import pipelineutils
@@ -103,7 +103,7 @@ type
prc: PSym
globals, locals, body: Rope
options: TOptions
optionsStack: seq[(TOptions, TNoteKinds)]
optionsStack: seq[TOptions]
module: BModule
g: PGlobals
beforeRetNeeded: bool
@@ -195,7 +195,7 @@ proc mapType(typ: PType): TJSTypeKind =
of tyPointer:
# treat a tyPointer like a typed pointer to an array of bytes
result = etyBaseIndex
of tyRange, tyDistinct, tyOrdinal, tyError, tyLent:
of tyRange, tyDistinct, tyOrdinal, tyProxy, tyLent:
# tyLent is no-op as JS has pass-by-reference semantics
result = mapType(skipModifier t)
of tyInt..tyInt64, tyUInt..tyUInt64, tyEnum, tyChar: result = etyInt
@@ -611,17 +611,6 @@ template unaryExpr(p: PProc, n: PNode, r: var TCompRes, magic, frmt: string) =
r.res = frmt % [a, tmp]
r.kind = resExpr
proc genBreakState(p: PProc, n: PNode, r: var TCompRes) =
var a: TCompRes = default(TCompRes)
# mangle `:state` properly somehow
if n.kind == nkClosure:
gen(p, n[1], a)
r.res = "(($1).HEX3Astate < 0)" % [rdLoc(a)]
else:
gen(p, n, a)
r.res = "((($1.ClE_0).HEX3Astate) < 0)" % [rdLoc(a)]
r.kind = resExpr
proc arithAux(p: PProc, n: PNode, r: var TCompRes, op: TMagic) =
var
x, y: TCompRes = default(TCompRes)
@@ -1109,19 +1098,14 @@ proc genCaseJS(p: PProc, n: PNode, r: var TCompRes) =
lineF(p, "break;$n", [])
of nkElse:
if transferRange:
if n.len == 2: # a dangling else for a case statement
transferRange = false
lineF(p, "switch ($1) {$n", [cond.rdLoc])
lineF(p, "default: $n", [])
else:
lineF(p, "else{$n", [])
lineF(p, "else{$n", [])
else:
lineF(p, "default: $n", [])
p.nested:
gen(p, it[0], stmt)
moveInto(p, stmt, r)
if transferRange:
lineF(p, "}$n", [])
lineF(p, "}$n", [])
else:
lineF(p, "break;$n", [])
else: internalError(p.config, it.info, "jsgen.genCaseStmt")
@@ -1585,8 +1569,15 @@ proc genAddr(p: PProc, n: PNode, r: var TCompRes) =
else: internalError(p.config, n[0].info, "expr(nkBracketExpr, " & $kindOfIndexedExpr & ')')
of nkObjDownConv:
gen(p, n[0], r)
of nkHiddenDeref, nkDerefExpr:
of nkHiddenDeref:
gen(p, n[0], r)
of nkDerefExpr:
var x = n[0]
if n.kind == nkHiddenAddr:
x = n[0][0]
if n.typ.skipTypes(abstractVar).kind != tyOpenArray:
x.typ = n.typ
gen(p, x, r)
of nkHiddenAddr:
gen(p, n[0], r)
of nkConv:
@@ -2451,7 +2442,6 @@ proc genMagic(p: PProc, n: PNode, r: var TCompRes) =
of mMulSet: binaryExpr(p, n, r, "SetMul", "SetMul($1, $2)")
of mPlusSet: binaryExpr(p, n, r, "SetPlus", "SetPlus($1, $2)")
of mMinusSet: binaryExpr(p, n, r, "SetMinus", "SetMinus($1, $2)")
of mXorSet: binaryExpr(p, n, r, "SetXor", "SetXor($1, $2)")
of mIncl: binaryExpr(p, n, r, "", "$1[$2] = true")
of mExcl: binaryExpr(p, n, r, "", "delete $1[$2]")
of mInSet:
@@ -2642,13 +2632,7 @@ proc genRangeChck(p: PProc, n: PNode, r: var TCompRes, magic: string) =
let src = skipTypes(n[0].typ, abstractVarRange)
let dest = skipTypes(n.typ, abstractVarRange)
if optRangeCheck notin p.options:
if optJsBigInt64 in p.config.globalOptions and
dest.kind in {tyUInt..tyUInt32, tyInt..tyInt32} and
src.kind in {tyInt64, tyUInt64}:
# conversions to Number are kept
r.res = "Number($1)" % [r.res]
else:
discard
return
elif dest.kind in {tyUInt..tyUInt64} and checkUnsignedConversions notin p.config.legacyFeatures:
if src.kind in {tyInt64, tyUInt64} and optJsBigInt64 in p.config.globalOptions:
r.res = "BigInt.asUintN($1, $2)" % [$(dest.size * 8), r.res]
@@ -2829,9 +2813,9 @@ proc genPragma(p: PProc, n: PNode) =
case whichPragma(it)
of wEmit: genAsmOrEmitStmt(p, it[1])
of wPush:
processPushBackendOption(p.config, p.optionsStack, p.options, n, i+1)
processPushBackendOption(p.optionsStack, p.options, n, i+1)
of wPop:
processPopBackendOption(p.config, p.optionsStack, p.options)
processPopBackendOption(p.optionsStack, p.options)
else: discard
proc genCast(p: PProc, n: PNode, r: var TCompRes) =
@@ -3059,7 +3043,16 @@ proc gen(p: PProc, n: PNode, r: var TCompRes) =
of nkGotoState, nkState:
globalError(p.config, n.info, "not implemented")
of nkBreakState:
genBreakState(p, n[0], r)
var a: TCompRes = default(TCompRes)
if n[0].kind == nkClosure:
gen(p, n[0][1], a)
let sym = n[0][1].typ[0].n[0].sym
r.res = "(($1).$2 < 0)" % [rdLoc(a), mangleName(p.module, sym)]
else:
gen(p, n[0], a)
let sym = n[0].typ[0].n[0].sym
r.res = "((($1.ClE_0).$2) < 0)" % [rdLoc(a), mangleName(p.module, sym)]
r.kind = resExpr
of nkPragmaBlock: gen(p, n.lastSon, r)
of nkComesFrom:
discard "XXX to implement for better stack traces"

View File

@@ -175,7 +175,6 @@ proc addHiddenParam(routine: PSym, param: PSym) =
#echo "produced environment: ", param.id, " for ", routine.id
proc getEnvParam*(routine: PSym): PSym =
if routine.ast.isNil: 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:
@@ -199,7 +198,7 @@ proc interestingVar(s: PSym): bool {.inline.} =
proc illegalCapture(s: PSym): bool {.inline.} =
result = classifyViewType(s.typ) != noView or s.kind == skResult
proc isInnerProc*(s: PSym): bool =
proc isInnerProc(s: PSym): bool =
if s.kind in {skProc, skFunc, skMethod, skConverter, skIterator} and s.magic == mNone:
result = s.skipGenericOwner.kind in routineKinds
else:
@@ -284,8 +283,8 @@ proc markAsClosure(g: ModuleGraph; owner: PSym; n: PNode) =
localError(g.config, n.info,
("'$1' is of type <$2> which cannot be captured as it would violate memory" &
" safety, declared here: $3; using '-d:nimNoLentIterators' helps in some cases." &
" Consider using a <ref T> which can be captured.") %
[s.name.s, typeToString(s.typ.skipTypes({tyVar})), g.config$s.info])
" Consider using a <ref $2> which can be captured.") %
[s.name.s, typeToString(s.typ), g.config$s.info])
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])
@@ -420,12 +419,6 @@ proc addClosureParam(c: var DetectionPass; fn: PSym; info: TLineInfo) =
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 =
let cp = getEnvParam(iter)
doAssert(cp != nil, "Env param not present in iter")
let upField = lookupInRecord(cp.typ.skipTypes({tyOwned, tyRef, tyPtr}).n, getIdent(g.cache, upName))
upField != nil
proc detectCapturedVars(n: PNode; owner: PSym; c: var DetectionPass) =
case n.kind
of nkSym:
@@ -444,7 +437,7 @@ proc detectCapturedVars(n: PNode; owner: PSym; c: var DetectionPass) =
let body = transformBody(c.graph, c.idgen, s, {useCache})
detectCapturedVars(body, s, c)
let ow = s.skipGenericOwner
let innerClosure = innerProc and s.typ.callConv == ccClosure and (not s.isIterator or iterEnvHasUpField(c.graph, s))
let innerClosure = innerProc and s.typ.callConv == ccClosure and not s.isIterator
let interested = interestingVar(s)
if ow == owner:
if owner.isIterator:
@@ -609,7 +602,7 @@ 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)
@@ -649,27 +642,16 @@ proc finishClosureCreation(owner: PSym; d: var DetectionPass; c: LiftingPass;
res.add newAsgnStmt(unowned, nilLit, info)
createTypeBoundOpsLL(d.graph, unowned.typ, info, d.idgen, owner)
proc getUpForIter(g: ModuleGraph; owner, iterOwner: PSym, expectedUpTyp: PType): PNode =
var p = getHiddenParam(g, owner)
var res = p.newSymNode
while res.typ.skipTypes({tyOwned, tyRef, tyPtr}) != expectedUpTyp:
let upField = lookupInRecord(p.typ.skipTypes({tyOwned, tyRef, tyPtr}).n, getIdent(g.cache, upName))
if upField == nil:
return nil
p = upField
res = rawIndirectAccess(res, upField, p.info)
res
proc closureCreationForIter(owner: PSym, iter: PNode;
proc closureCreationForIter(iter: PNode;
d: var DetectionPass; c: var LiftingPass): 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)
let owner = iter.sym.skipGenericOwner
var v = newSym(skVar, getIdent(d.graph.cache, envName), d.idgen, owner, iter.info)
incl(v.flags, sfShadowed)
v.typ = asOwnedRef(d, getHiddenParam(d.graph, iter.sym).typ)
var vnode: PNode
if iterOwner.isIterator:
let it = getHiddenParam(d.graph, iterOwner)
if owner.isIterator:
let it = getHiddenParam(d.graph, owner)
addUniqueField(it.typ.skipTypes({tyOwned, tyRef, tyPtr}), v, d.graph.cache, d.idgen)
vnode = indirectAccess(newSymNode(it), v, v.info)
else:
@@ -678,14 +660,12 @@ proc closureCreationForIter(owner: PSym, iter: PNode;
addVar(vs, vnode)
result.add(vs)
result.add genCreateEnv(vnode)
createTypeBoundOpsLL(d.graph, vnode.typ, iter.info, d.idgen, iterOwner)
createTypeBoundOpsLL(d.graph, vnode.typ, iter.info, d.idgen, owner)
let upField = lookupInRecord(v.typ.skipTypes({tyOwned, tyRef, tyPtr}).n, getIdent(d.graph.cache, upName))
if upField != nil:
let expectedUpTyp = upField.typ.skipTypes({tyOwned, tyRef, tyPtr})
let u = if iterOwner == owner: setupEnvVar(iterOwner, d, c, iter.info)
else: getUpForIter(d.graph, owner, iterOwner, expectedUpTyp)
if u != nil and u.typ.skipTypes({tyOwned, tyRef, tyPtr}) == expectedUpTyp:
let u = setupEnvVar(owner, d, c, iter.info)
if u.typ.skipTypes({tyOwned, tyRef, tyPtr}) == upField.typ.skipTypes({tyOwned, tyRef, tyPtr}):
result.add(newAsgnStmt(rawIndirectAccess(vnode, upField, iter.info),
u, iter.info))
else:
@@ -719,7 +699,7 @@ proc symToClosure(n: PNode; owner: PSym; d: var DetectionPass;
let available = getHiddenParam(d.graph, owner)
result = makeClosure(d.graph, d.idgen, s, available.newSymNode, n.info)
elif s.isIterator:
result = closureCreationForIter(owner, n, d, c)
result = closureCreationForIter(n, d, c)
elif s.skipGenericOwner == owner:
# direct dependency, so use the outer's env variable:
result = makeClosure(d.graph, d.idgen, s, setupEnvVar(owner, d, c, n.info), n.info)
@@ -786,7 +766,7 @@ 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:

View File

@@ -1,91 +0,0 @@
import std/[tables]
import ast
type
LayeredIdTableObj* {.acyclic.} = object
## stack of type binding contexts implemented as a linked list
topLayer*: TypeMapping
## the mappings on the current layer
nextLayer*: ref LayeredIdTableObj
## the parent type binding context, possibly `nil`
previousLen*: int
## total length of the bindings up to the parent layer,
## used to track if new bindings were added
const useRef = not defined(gcDestructors)
# implementation detail, only arc/orc doesn't cause issues when
# using LayeredIdTable as an object and not a ref
when useRef:
type LayeredIdTable* = ref LayeredIdTableObj
else:
type LayeredIdTable* = LayeredIdTableObj
proc initLayeredTypeMap*(pt: sink TypeMapping = initTypeMapping()): LayeredIdTable =
result = LayeredIdTable(topLayer: pt, nextLayer: nil)
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)
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.len
proc newTypeMapLayer*(pt: LayeredIdTable): LayeredIdTable =
result = LayeredIdTable(topLayer: initTable[ItemId, PType](), previousLen: pt.currentLen)
when useRef:
result.nextLayer = pt
else:
new(result.nextLayer)
result.nextLayer[] = pt
proc setToPreviousLayer*(pt: var LayeredIdTable) {.inline.} =
when useRef:
pt = pt.nextLayer
else:
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 pairs(tm.topLayer):
yield (k, v)
if tm.nextLayer == nil:
break
tm.setToPreviousLayer
proc lookup(typeMap: ref LayeredIdTableObj, key: ItemId): PType =
result = nil
var tm = typeMap
while tm != nil:
result = getOrDefault(tm.topLayer, key)
if result != nil: return
tm = tm.nextLayer
template lookup*(typeMap: ref LayeredIdTableObj, key: PType): PType =
## recursively looks up binding of `key` in all parent layers
lookup(typeMap, key.itemId)
when not useRef:
proc lookup(typeMap: LayeredIdTableObj, key: ItemId): PType {.inline.} =
result = getOrDefault(typeMap.topLayer, key)
if result == nil and typeMap.nextLayer != nil:
result = lookup(typeMap.nextLayer, key)
template lookup*(typeMap: LayeredIdTableObj, key: PType): PType =
lookup(typeMap, key.itemId)
proc put(typeMap: var LayeredIdTable, key: ItemId, value: PType) {.inline.} =
typeMap.topLayer[key] = value
template put*(typeMap: var LayeredIdTable, key, value: PType) =
## binds `key` to `value` only in current layer
put(typeMap, key.itemId, value)

View File

@@ -40,7 +40,7 @@ template asink*(t: PType): PSym = getAttachedOp(c.g, t, attachedSink)
proc fillBody(c: var TLiftCtx; t: PType; body, x, y: PNode)
proc produceSym(g: ModuleGraph; c: PContext; typ: PType; kind: TTypeAttachedOp;
info: TLineInfo; idgen: IdGenerator): PSym
info: TLineInfo; idgen: IdGenerator; isDistinct = false): PSym
proc createTypeBoundOps*(g: ModuleGraph; c: PContext; orig: PType; info: TLineInfo;
idgen: IdGenerator)
@@ -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)
@@ -88,10 +88,10 @@ 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)
body.add genBuiltin(c, mWasMoved, "`=wasMoved`", x)
proc genAddr(c: var TLiftCtx; x: PNode): PNode =
if x.kind == nkHiddenDeref:
@@ -105,7 +105,7 @@ 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)
@@ -127,10 +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)
@@ -148,7 +148,7 @@ proc destructorCall(c: var TLiftCtx; op: PSym; x: PNode): PNode =
if sfNeverRaises notin op.flags:
c.canRaise = true
if c.addMemReset:
result = newTree(nkStmtList, destroy, genBuiltin(c, mWasMoved, "wasMoved", x))
result = newTree(nkStmtList, destroy, genBuiltin(c, mWasMoved, "`=wasMoved`", x))
else:
result = destroy
@@ -168,7 +168,7 @@ proc fillBodyObj(c: var TLiftCtx; n, body, x, y: PNode; enforceDefaultOp: bool,
defaultOp(c, f.typ, body, x.dotField(f), b)
else:
if enforceWasMoved:
body.add genBuiltin(c, mWasMoved, "wasMoved", x.dotField(f))
body.add genBuiltin(c, mWasMoved, "`=wasMoved`", x.dotField(f))
fillBody(c, f.typ, body, x.dotField(f), b)
of nkNilLit: discard
of nkRecCase:
@@ -224,16 +224,10 @@ proc fillBodyObj(c: var TLiftCtx; n, body, x, y: PNode; enforceDefaultOp: bool,
proc fillBodyObjTImpl(c: var TLiftCtx; t: PType, body, x, y: PNode) =
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)
let obj = newNodeIT(nkHiddenSubConv, c.info, t.baseClass)
obj.add newNodeI(nkEmpty, c.info)
obj.add x
fillBody(c, skipTypes(t.baseClass, abstractPtrs), body, obj, y)
fillBodyObj(c, t.n, body, x, y, enforceDefaultOp = false)
proc fillBodyObjT(c: var TLiftCtx; t: PType, body, x, y: PNode) =
@@ -265,7 +259,7 @@ 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
@@ -277,8 +271,7 @@ proc fillBodyObjT(c: var TLiftCtx; t: PType, body, x, y: PNode) =
#body.add newAsgnStmt(blob, x)
var wasMovedCall = newNodeI(nkCall, c.info)
wasMovedCall.add(newSymNode(createMagic(c.g, c.idgen, "wasMoved", mWasMoved)))
wasMovedCall.add(newSymNode(createMagic(c.g, c.idgen, "`=wasMoved`", mWasMoved)))
wasMovedCall.add x # mWasMoved does not take the address
body.add wasMovedCall
@@ -297,7 +290,7 @@ 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}
@@ -546,18 +539,18 @@ 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 setLenStrCall(c: var TLiftCtx; x, y: PNode): PNode =
let lenCall = genBuiltin(c, mLengthStr, "len", y)
lenCall.typ() = getSysType(c.g, x.info, tyInt)
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)
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)
@@ -580,7 +573,7 @@ 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 fillSeqOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
@@ -613,7 +606,7 @@ proc fillSeqOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
if canFormAcycle(c.g, t.elemType):
# follow all elements:
forallElements(c, t, body, x, y)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "wasMoved", x)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "`=wasMoved`", x)
proc useSeqOrStrOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
createTypeBoundOps(c.g, c.c, t, body.info, c.idgen)
@@ -651,7 +644,7 @@ proc useSeqOrStrOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
if op == nil:
return # protect from recursion
body.add newHookCall(c, op, x, y)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "wasMoved", x)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "`=wasMoved`", x)
of attachedDup:
# XXX: replace these with assertions.
let op = getAttachedOp(c.g, t, c.kind)
@@ -673,7 +666,7 @@ proc fillStrOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
body.add genBuiltin(c, mDestroy, "destroy", x)
of attachedTrace:
discard "strings are atomic and have no inner elements that are to trace"
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "wasMoved", x)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "`=wasMoved`", x)
proc cyclicType*(g: ModuleGraph, t: PType): bool =
case t.kind
@@ -721,7 +714,7 @@ proc atomicRefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
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))
@@ -731,7 +724,7 @@ proc atomicRefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
if isCyclic:
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)
@@ -739,7 +732,7 @@ 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:
@@ -766,13 +759,13 @@ proc atomicRefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
if isCyclic:
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
body.add callCodegenProc(c.g, "nimTraceRefDyn", c.info, genAddrOf(x, c.idgen), y)
#echo "can follow ", elemType, " static ", isFinal(elemType)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "wasMoved", x)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "`=wasMoved`", x)
of attachedDup:
if isCyclic:
body.add newAsgnStmt(x, y)
@@ -787,7 +780,7 @@ 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)
let isCyclic = c.g.config.selectedGC == gcOrc
let tmp =
@@ -803,7 +796,7 @@ 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:
@@ -815,7 +808,7 @@ 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)
@@ -827,7 +820,7 @@ proc atomicClosureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
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)))
@@ -839,7 +832,7 @@ proc atomicClosureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
of attachedDeepCopy: assert(false, "cannot happen")
of attachedTrace:
body.add callCodegenProc(c.g, "nimTraceRefDyn", c.info, genAddrOf(xenv, c.idgen), y)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "wasMoved", x)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "`=wasMoved`", x)
proc weakrefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
case c.kind
@@ -867,7 +860,7 @@ proc weakrefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
body.sons.insert(des, 0)
of attachedDeepCopy: assert(false, "cannot happen")
of attachedTrace: discard
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "wasMoved", x)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "`=wasMoved`", x)
proc ownedRefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
var actions = newNodeI(nkStmtList, c.info)
@@ -879,7 +872,7 @@ 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))
@@ -895,21 +888,21 @@ proc ownedRefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
body.add genIf(c, x, actions)
of attachedDeepCopy: assert(false, "cannot happen")
of attachedTrace: discard
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "wasMoved", x)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "`=wasMoved`", x)
proc closureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
if c.kind == attachedDeepCopy:
# 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}:
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
@@ -918,13 +911,13 @@ 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:
@@ -935,11 +928,11 @@ proc closureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
body.sons.insert(des, 0)
of attachedDeepCopy: assert(false, "cannot happen")
of attachedTrace: discard
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "wasMoved", x)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "`=wasMoved`", x)
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)
@@ -953,7 +946,7 @@ proc ownedClosureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
body.add genIf(c, xx, actions)
of attachedDeepCopy: assert(false, "cannot happen")
of attachedTrace: discard
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "wasMoved", x)
of attachedWasMoved: body.add genBuiltin(c, mWasMoved, "`=wasMoved`", x)
proc fillBody(c: var TLiftCtx; t: PType; body, x, y: PNode) =
case t.kind
@@ -1003,13 +996,9 @@ proc fillBody(c: var TLiftCtx; t: PType; body, x, y: PNode) =
# 'selectedGC' here to determine if we have the new runtime.
discard considerUserDefinedOp(c, t, body, x, y)
elif tfHasAsgn in t.flags:
# seqs with elements using custom hooks in refc
if c.kind in {attachedAsgn, attachedSink, attachedDeepCopy}:
body.add newSeqCall(c, x, y)
if c.kind == attachedWasMoved:
body.add genBuiltin(c, mWasMoved, "wasMoved", x)
else:
forallElements(c, t, body, x, y)
forallElements(c, t, body, x, y)
else:
defaultOp(c, t, body, x, y)
of tyString:
@@ -1026,7 +1015,7 @@ proc fillBody(c: var TLiftCtx; t: PType; body, x, y: PNode) =
of {attachedAsgn, attachedSink, attachedDup}:
body.add newAsgnStmt(x, y)
of attachedWasMoved:
body.add genBuiltin(c, mWasMoved, "wasMoved", x)
body.add genBuiltin(c, mWasMoved, "`=wasMoved`", x)
else:
fillBodyObjT(c, t, body, x, y)
else:
@@ -1051,7 +1040,7 @@ proc fillBody(c: var TLiftCtx; t: PType; body, x, y: PNode) =
else:
discard "cannot copy openArray"
of tyFromExpr, tyError, tyBuiltInTypeClass, tyUserTypeClass,
of tyFromExpr, tyProxy, tyBuiltInTypeClass, tyUserTypeClass,
tyUserTypeClassInst, tyCompositeTypeClass, tyAnd, tyOr, tyNot, tyAnything,
tyGenericParam, tyGenericBody, tyNil, tyUntyped, tyTyped,
tyTypeDesc, tyGenericInvocation, tyForward, tyStatic:
@@ -1068,7 +1057,9 @@ proc produceSymDistinctType(g: ModuleGraph; c: PContext; typ: PType;
assert typ.kind == tyDistinct
let baseType = typ.elementType
if getAttachedOp(g, baseType, kind) == nil:
discard produceSym(g, c, baseType, kind, info, idgen)
# TODO: fixme `isDistinct` is a fix for #23552; remove it after
# `-d:nimPreviewNonVarDestructor` becomes the default
discard produceSym(g, c, baseType, kind, info, idgen, isDistinct = true)
result = getAttachedOp(g, baseType, kind)
setAttachedOp(g, idgen.module, typ, kind, result)
@@ -1107,7 +1098,7 @@ proc symDupPrototype(g: ModuleGraph; typ: PType; owner: PSym; kind: TTypeAttache
incl result.flags, sfGeneratedOp
proc symPrototype(g: ModuleGraph; typ: PType; owner: PSym; kind: TTypeAttachedOp;
info: TLineInfo; idgen: IdGenerator; isDiscriminant = false): PSym =
info: TLineInfo; idgen: IdGenerator; isDiscriminant = false; isDistinct = false): PSym =
if kind == attachedDup:
return symDupPrototype(g, typ, owner, kind, info, idgen)
@@ -1118,7 +1109,7 @@ proc symPrototype(g: ModuleGraph; typ: PType; owner: PSym; kind: TTypeAttachedOp
idgen, result, info)
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})):
((g.config.isDefined("nimPreviewNonVarDestructor") and not isDiscriminant) or (typ.kind in {tyRef, tyString, tySequence} and not isDistinct)):
dest.typ = typ
else:
dest.typ = makeVarType(typ.owner, typ, idgen)
@@ -1155,18 +1146,18 @@ proc symPrototype(g: ModuleGraph; typ: PType; owner: PSym; kind: TTypeAttachedOp
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 =
info: TLineInfo; idgen: IdGenerator; isDistinct = false): PSym =
if typ.kind == tyDistinct:
return produceSymDistinctType(g, c, typ, kind, info, idgen)
result = getAttachedOp(g, typ, kind)
if result == nil:
result = symPrototype(g, typ, typ.owner, kind, info, idgen)
result = symPrototype(g, typ, typ.owner, kind, info, idgen, isDistinct = isDistinct)
var a = TLiftCtx(info: info, g: g, kind: kind, c: c, asgnForType: typ, idgen: idgen,
fn: result)
@@ -1200,7 +1191,7 @@ proc produceSym(g: ModuleGraph; c: PContext; typ: PType; kind: TTypeAttachedOp;
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(typ):
if tk == tyObject and a.kind in {attachedAsgn, attachedSink, attachedDeepCopy, attachedDup} and not lacksMTypeField(typ):
# bug #19205: Do not forget to also copy the hidden type field:
genTypeFieldCopy(a, typ, result.ast[bodyPos], d, src)
@@ -1210,8 +1201,6 @@ proc produceSym(g: ModuleGraph; c: PContext; typ: PType; kind: TTypeAttachedOp;
result.ast[pragmasPos].add newTree(nkExprColonExpr,
newIdentNode(g.cache.getIdent("raises"), info), newNodeI(nkBracket, info))
if kind == attachedDestructor:
incl result.options, optQuirky
completePartialOp(g, idgen.module, typ, kind, result)
@@ -1281,10 +1270,6 @@ proc createTypeBoundOps(g: ModuleGraph; c: PContext; orig: PType; info: TLineInf
## The later 'injectdestructors' pass depends on it.
if orig == nil or {tfCheckedForDestructor, tfHasMeta} * orig.flags != {}: return
incl orig.flags, tfCheckedForDestructor
# for user defined generic destructors:
let origRoot = genericRoot(orig)
if origRoot != nil:
incl origRoot.flags, tfGenericHasDestructor
let skipped = orig.skipTypes({tyGenericInst, tyAlias, tySink})
if isEmptyContainer(skipped) or skipped.kind == tyStatic: return

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

@@ -92,9 +92,8 @@ type
warnStmtListLambda = "StmtListLambda",
warnBareExcept = "BareExcept",
warnImplicitDefaultValue = "ImplicitDefaultValue",
warnIgnoredSymbolInjection = "IgnoredSymbolInjection",
warnGenericsIgnoredInjection = "GenericsIgnoredInjection",
warnStdPrefix = "StdPrefix"
warnUnknownNotes = "UnknownNotes"
warnUser = "User",
warnGlobalVarConstructorTemporary = "GlobalVarConstructorTemporary",
# hints
@@ -110,9 +109,9 @@ type
hintSource = "Source", hintPerformance = "Performance", hintStackTrace = "StackTrace",
hintGCStats = "GCStats", hintGlobalVar = "GlobalVar", hintExpandMacro = "ExpandMacro",
hintUser = "User", hintUserRaw = "UserRaw", hintExtendedContext = "ExtendedContext",
hintUnknownRaises = "UnknownRaises",
hintMsgOrigin = "MsgOrigin", # since 1.3.5
hintDeclaredLoc = "DeclaredLoc", # since 1.5.1
hintUnknownHint = "UnknownHint"
const
MsgKindToStr*: array[TMsgKind, string] = [
@@ -199,9 +198,8 @@ const
warnStmtListLambda: "statement list expression assumed to be anonymous proc; this is deprecated, use `do (): ...` or `proc () = ...` instead",
warnBareExcept: "$1",
warnImplicitDefaultValue: "$1",
warnIgnoredSymbolInjection: "$1",
warnGenericsIgnoredInjection: "$1",
warnStdPrefix: "$1 needs the 'std' prefix",
warnUnknownNotes: "$1",
warnUser: "$1",
warnGlobalVarConstructorTemporary: "global variable '$1' initialization requires a temporary variable",
hintSuccess: "operation successful: $#",
@@ -237,9 +235,9 @@ const
hintUser: "$1",
hintUserRaw: "$1",
hintExtendedContext: "$1",
hintUnknownRaises: "$1 is a forward declaration without explicit .raises, assuming it can raise anything",
hintMsgOrigin: "$1",
hintDeclaredLoc: "$1"
hintDeclaredLoc: "$1",
hintUnknownHint: "unknown hint: $1"
]
const
@@ -270,7 +268,6 @@ const
NotesVerbosity* = computeNotesVerbosity()
errXMustBeCompileTime* = "'$1' can only be used in compile-time context"
errArgsNeedRunOption* = "arguments can only be given if the '--run' option is selected"
errFloatToString* = "cannot convert '$1' to '$2'"
type
TFileInfo* = object

View File

@@ -12,7 +12,7 @@
import std/strutils
from std/sugar import dup
import options, ast, msgs, idents, lineinfos, wordrecg, astmsgs, semdata, packages, modulegraphs
import options, ast, msgs, idents, lineinfos, wordrecg, astmsgs, semdata, packages
export packages
const
@@ -97,7 +97,7 @@ template styleCheckDef*(ctx: PContext; info: TLineInfo; sym: PSym; k: TSymKind)
if optStyleCheck in ctx.config.options and # ignore if styleChecks are off
{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
ctx.config.belongsToProjectPackage(sym) and # ignore foreign packages
optStyleUsages notin ctx.config.globalOptions and # ignore if requested to only check name usage
sym.kind != skResult and # ignore `result`
sym.kind != skTemp and # ignore temporary variables created by the compiler
@@ -138,7 +138,7 @@ template styleCheckUse*(ctx: PContext; info: TLineInfo; sym: PSym) =
## Check symbol uses match their definition's style.
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
ctx.config.belongsToProjectPackage(sym) and # ignore foreign packages
sym.kind != skTemp and # ignore temporary variables created by the compiler
sym.name.s[0] in Letters and # ignore operators TODO: what about unicode symbols???
sfAnon notin sym.flags: # ignore temporary variables created by the compiler
@@ -154,5 +154,5 @@ template checkPragmaUse*(ctx: PContext; info: TLineInfo; w: TSpecialWord; pragma
## Note: This only applies to builtin pragmas, not user pragmas.
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
(sym != nil and ctx.config.belongsToProjectPackage(sym)): # ignore foreign packages
checkPragmaUseImpl(ctx.config, info, w, pragmaName)

View File

@@ -11,7 +11,7 @@
import
pathutils
import std/strutils
when defined(nimPreviewSlimSystem):
import std/syncio
@@ -86,47 +86,6 @@ const
LineContinuationOprs = {'+', '-', '*', '/', '\\', '<', '>', '!', '?', '^',
'|', '%', '&', '$', '@', '~', ','}
AdditionalLineContinuationOprs = {'#', ':', '='}
LineContinuationTokens = [
"let", "var", "const", "type", # section
"object", "tuple",
# from ./layouter.oprSet
"div", "mod", "shl", "shr", "in", "notin", "is",
"isnot", "not", "of", "as", "from", "..", "and", "or", "xor",
] # must be all `nimIdentNormalized`-ed
proc eqIdent(a, bNormalized: string): bool =
a.nimIdentNormalize == bNormalized
proc endsWithIdent(s, subs: string): bool =
let le = subs.len
if le > s.len: return false
s[^le .. ^1].eqIdent subs
proc continuesWithIdent(s, subs: string, start: int): bool =
s.substr(start, start+subs.high).eqIdent subs
proc endsWithIdent(s, subs: string, endIdx: var int): bool =
endIdx.dec subs.len
result = s.continuesWithIdent(subs, endIdx+1)
proc containsObjectOf(x: string): bool =
const sep = ' '
var idx = x.rfind(sep)
if idx == -1: return
template eatWord(word) =
while x[idx] == sep: idx.dec
result = x.endsWithIdent(word, idx)
if not result: return
eatWord "of"
eatWord "object"
result = true
proc endsWithLineContinuationToken(x: string): bool =
result = false
for tok in LineContinuationTokens:
if x.endsWithIdent(tok):
return true
result = x.containsObjectOf
proc endsWithOpr*(x: string): bool =
result = x.endsWith(LineContinuationOprs)
@@ -134,9 +93,7 @@ proc endsWithOpr*(x: string): bool =
proc continueLine(line: string, inTripleString: bool): bool {.inline.} =
result = inTripleString or line.len > 0 and (
line[0] == ' ' or
line.endsWith(LineContinuationOprs+AdditionalLineContinuationOprs) or
line.endsWithLineContinuationToken()
)
line.endsWith(LineContinuationOprs+AdditionalLineContinuationOprs))
proc countTriples(s: string): int =
result = 0
@@ -152,10 +109,7 @@ proc llReadFromStdin(s: PLLStream, buf: pointer, bufLen: int): int =
s.rd = 0
var line = newStringOfCap(120)
var triples = 0
while true:
if not readLineFromStdin(if s.s.len == 0: ">>> " else: "... ", line):
# now readLineFromStdin meets EOF (ctrl-D/Z) or ctrl-C
quit()
while readLineFromStdin(if s.s.len == 0: ">>> " else: "... ", line):
s.s.add(line)
s.s.add("\n")
inc triples, countTriples(line)

View File

@@ -50,7 +50,7 @@ proc considerQuotedIdent*(c: PContext; n: PNode, origin: PNode = nil): PIdent =
case x.kind
of nkIdent: id.add(x.ident.s)
of nkSym: id.add(x.sym.name.s)
of nkSymChoices, nkOpenSym:
of nkSymChoices:
if x[0].kind == nkSym:
id.add(x[0].sym.name.s)
else:
@@ -58,7 +58,7 @@ proc considerQuotedIdent*(c: PContext; n: PNode, origin: PNode = nil): PIdent =
of nkLiterals - nkFloatLiterals: id.add(x.renderTree)
else: handleError(n, origin)
result = getIdent(c.cache, id)
of nkOpenSymChoice, nkClosedSymChoice, nkOpenSym:
of nkOpenSymChoice, nkClosedSymChoice:
if n[0].kind == nkSym:
result = n[0].sym.name
else:
@@ -219,14 +219,7 @@ proc debugScopes*(c: PContext; limit=0, max = int.high) {.deprecated.} =
if i == limit: return
inc i
proc searchImportsAll*(c: PContext, s: PIdent, filter: TSymKinds, holding: var seq[PSym]) =
var marked = initIntSet()
for im in c.imports.mitems:
for s in symbols(im, marked, s, c.graph):
if s.kind in filter:
holding.add s
proc searchScopes*(c: PContext, s: PIdent, filter: TSymKinds): seq[PSym] =
proc searchInScopesAllCandidatesFilterBy*(c: PContext, s: PIdent, filter: TSymKinds): seq[PSym] =
result = @[]
for scope in allScopes(c.currentScope):
var ti: TIdentIter = default(TIdentIter)
@@ -236,12 +229,14 @@ proc searchScopes*(c: PContext, s: PIdent, filter: TSymKinds): seq[PSym] =
result.add candidate
candidate = nextIdentIter(ti, scope.symbols)
proc searchScopesAll*(c: PContext, s: PIdent, filter: TSymKinds): seq[PSym] =
result = searchScopes(c,s,filter)
if result.len == 0:
searchImportsAll(c, s, filter, result)
var marked = initIntSet()
for im in c.imports.mitems:
for s in symbols(im, marked, s, c.graph):
if s.kind in filter:
result.add s
proc selectFromScopesElseAll*(c: PContext, s: PIdent, filter: TSymKinds): seq[PSym] =
proc searchInScopesFilterBy*(c: PContext, s: PIdent, filter: TSymKinds): seq[PSym] =
result = @[]
block outer:
for scope in allScopes(c.currentScope):
@@ -255,7 +250,11 @@ proc selectFromScopesElseAll*(c: PContext, s: PIdent, filter: TSymKinds): seq[PS
candidate = nextIdentIter(ti, scope.symbols)
if result.len == 0:
searchImportsAll(c, s, filter, result)
var marked = initIntSet()
for im in c.imports.mitems:
for s in symbols(im, marked, s, c.graph):
if s.kind in filter:
result.add s
proc cmpScopes*(ctx: PContext, s: PSym): int =
# Do not return a negative number
@@ -562,33 +561,23 @@ proc errorUseQualifier*(c: PContext; info: TLineInfo; s: PSym) =
var amb: bool = false
discard errorUseQualifier(c, info, s, amb)
proc ambiguousIdentifierMsg*(candidates: seq[PSym], prefix = "use one of", indent = 0): string =
result = ""
for i in 0 ..< indent:
result.add(' ')
result.add "ambiguous identifier: '" & candidates[0].name.s & "'"
proc errorUseQualifier*(c: PContext; info: TLineInfo; candidates: seq[PSym]; prefix = "use one of") =
var err = "ambiguous identifier: '" & candidates[0].name.s & "'"
var i = 0
for candidate in candidates:
if i == 0: result.add " -- $1 the following:\n" % prefix
else: result.add "\n"
for i in 0 ..< indent:
result.add(' ')
result.add " " & candidate.owner.name.s & "." & candidate.name.s
result.add ": " & typeToString(candidate.typ)
if i == 0: err.add " -- $1 the following:\n" % prefix
else: err.add "\n"
err.add " " & candidate.owner.name.s & "." & candidate.name.s
err.add ": " & typeToString(candidate.typ)
inc i
localError(c.config, info, errGenerated, err)
proc errorUseQualifier*(c: PContext; info: TLineInfo; candidates: seq[PSym]) =
localError(c.config, info, errGenerated, ambiguousIdentifierMsg(candidates))
proc ambiguousIdentifierMsg*(choices: PNode, indent = 0): string =
proc errorUseQualifier*(c: PContext; info:TLineInfo; choices: PNode) =
var candidates = newSeq[PSym](choices.len)
let prefix = if choices[0].typ.kind != tyProc: "use one of" else: "you need a helper proc to disambiguate"
for i, n in choices:
candidates[i] = n.sym
result = ambiguousIdentifierMsg(candidates, prefix, indent)
proc errorUseQualifier*(c: PContext; info:TLineInfo; choices: PNode) =
localError(c.config, info, errGenerated, ambiguousIdentifierMsg(choices))
errorUseQualifier(c, info, candidates, prefix)
proc errorUndeclaredIdentifier*(c: PContext; info: TLineInfo; name: string, extra = "") =
var err: string
@@ -641,10 +630,9 @@ type
const allExceptModule = {low(TSymKind)..high(TSymKind)} - {skModule, skPackage}
proc lookUpCandidates*(c: PContext, ident: PIdent, filter: set[TSymKind],
includePureEnum = false): seq[PSym] =
result = selectFromScopesElseAll(c, ident, filter)
if skEnumField in filter and (result.len == 0 or includePureEnum):
proc lookUpCandidates*(c: PContext, ident: PIdent, filter: set[TSymKind]): seq[PSym] =
result = searchInScopesFilterBy(c, ident, filter)
if result.len == 0:
result.add allPureEnumFields(c, ident)
proc qualifiedLookUp*(c: PContext, n: PNode, flags: set[TLookupFlag]): PSym =
@@ -677,33 +665,24 @@ proc qualifiedLookUp*(c: PContext, n: PNode, flags: set[TLookupFlag]): PSym =
c.isAmbiguous = amb
of nkSym:
result = n.sym
of nkOpenSym:
result = qualifiedLookUp(c, n[0], flags)
of nkDotExpr:
result = nil
var m = qualifiedLookUp(c, n[0], (flags * {checkUndeclared}) + {checkModule})
if m != nil and m.kind == skModule:
var ident: PIdent = nil
if n[1].kind == nkAccQuoted:
if n[1].kind == nkIdent:
ident = n[1].ident
elif n[1].kind == nkAccQuoted:
ident = considerQuotedIdent(c, n[1])
else:
# this includes sym and symchoice nodes, but since we are looking in
# a module, it shouldn't matter what was captured
ident = n[1].getPIdent
if ident != nil:
if m == c.module:
var ti: TIdentIter = default(TIdentIter)
result = initIdentIter(ti, c.topLevelScope.symbols, ident)
if result != nil and nextIdentIter(ti, c.topLevelScope.symbols) != nil:
# another symbol exists with same name
c.isAmbiguous = true
result = strTableGet(c.topLevelScope.symbols, ident)
else:
var amb: bool = false
if c.importModuleLookup.getOrDefault(m.name.id).len > 1:
var amb: bool = false
result = errorUseQualifier(c, n.info, m, amb)
else:
result = someSymAmb(c.graph, m, ident, amb)
if amb: c.isAmbiguous = true
result = someSym(c.graph, m, ident)
if result == nil and checkUndeclared in flags:
result = errorUndeclaredIdentifierHint(c, ident, n[1].info)
elif n[1].kind == nkSym:
@@ -722,10 +701,6 @@ proc qualifiedLookUp*(c: PContext, n: PNode, flags: set[TLookupFlag]): PSym =
if result != nil and result.kind == skStub: loadStub(result)
proc initOverloadIter*(o: var TOverloadIter, c: PContext, n: PNode): PSym =
if n.kind == nkOpenSym:
# maybe the logic in semexprs should be mirrored here instead
# for now it only seems this is called for `pickSym` in `getTypeIdent`
return initOverloadIter(o, c, n[0])
o.importIdx = -1
o.marked = initIntSet()
case n.kind

View File

@@ -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
@@ -250,12 +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:
@@ -273,12 +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)
@@ -297,7 +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
@@ -320,7 +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 =
@@ -344,18 +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
@@ -364,7 +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

@@ -166,4 +166,4 @@ proc makeAddr*(n: PNode; idgen: IdGenerator): PNode =
result = n
else:
result = newTree(nkHiddenAddr, n)
result.typ() = makePtrType(n.typ, idgen)
result.typ = makePtrType(n.typ, idgen)

View File

@@ -11,7 +11,7 @@
## represents a complete Nim project. Single modules can either be kept in RAM
## or stored in a rod-file.
import std/[intsets, tables, hashes, strtabs, algorithm, os, strutils, parseutils]
import std/[intsets, tables, hashes, strtabs, algorithm]
import ../dist/checksums/src/checksums/md5
import ast, astalgo, options, lineinfos,idents, btrees, ropes, msgs, pathutils, packages, suggestsymdb
import ic / [packed_ast, ic]
@@ -88,7 +88,6 @@ type
suggestMode*: bool # whether we are in nimsuggest mode or not.
invalidTransitiveClosure: bool
interactive*: bool
withinSystem*: bool # in system.nim or a module imported by system.nim
inclToMod*: Table[FileIndex, FileIndex] # mapping of include file to the
# first module that included it
importStack*: seq[FileIndex] # The current import stack. Used for detecting recursive
@@ -275,25 +274,6 @@ proc someSym*(g: ModuleGraph; m: PSym; name: PIdent): PSym =
else:
result = strTableGet(g.ifaces[m.position].interfSelect(importHidden), name)
proc someSymAmb*(g: ModuleGraph; m: PSym; name: PIdent; amb: var bool): PSym =
let importHidden = optImportHidden in m.options
if isCachedModule(g, m):
result = nil
for s in interfaceSymbols(g.config, g.cache, g.packed, FileIndex(m.position), name, importHidden):
if result == nil:
# set result to the first symbol
result = s
else:
# another symbol found
amb = true
break
else:
var ti: TIdentIter = default(TIdentIter)
result = initIdentIter(ti, g.ifaces[m.position].interfSelect(importHidden), name)
if result != nil and nextIdentIter(ti, g.ifaces[m.position].interfSelect(importHidden)) != nil:
# another symbol exists with same name
amb = true
proc systemModuleSym*(g: ModuleGraph; name: PIdent): PSym =
result = someSym(g, g.systemModule, name)
@@ -472,49 +452,6 @@ proc createMagic*(g: ModuleGraph; idgen: IdGenerator; name: string, m: TMagic):
proc createMagic(g: ModuleGraph; name: string, m: TMagic): PSym =
result = createMagic(g, g.idgen, name, m)
proc uniqueModuleName*(conf: ConfigRef; m: PSym): string =
## The unique module name is guaranteed to only contain {'A'..'Z', 'a'..'z', '0'..'9', '_'}
## so that it is useful as a C identifier snippet.
let fid = FileIndex(m.position)
let path = AbsoluteFile toFullPath(conf, fid)
var isLib = false
var rel = ""
if path.string.startsWith(conf.libpath.string):
isLib = true
rel = relativeTo(path, conf.libpath).string
else:
rel = relativeTo(path, conf.projectPath).string
if not isLib and not belongsToProjectPackage(conf, m):
# special handlings for nimble packages
when DirSep == '\\':
let rel2 = replace(rel, '\\', '/')
else:
let rel2 = rel
const pkgs2 = "pkgs2/"
var start = rel2.find(pkgs2)
if start >= 0:
start += pkgs2.len
start += skipUntil(rel2, {'/'}, start)
if start+1 < rel2.len:
rel = "pkg/" & rel2[start+1..<rel.len] # strips paths
let trunc = if rel.endsWith(".nim"): rel.len - len(".nim") else: rel.len
result = newStringOfCap(trunc)
for i in 0..<trunc:
let c = rel[i]
case c
of 'a'..'z', '0'..'9':
result.add c
of {os.DirSep, os.AltSep}:
result.add 'Z' # because it looks a bit like '/'
of '.':
result.add 'O' # a circle
else:
# We mangle upper letters too so that there cannot
# be clashes with our special meanings of 'Z' and 'O'
result.addInt ord(c)
proc registerModule*(g: ModuleGraph; m: PSym) =
assert m != nil
assert m.kind == skModule
@@ -526,7 +463,7 @@ proc registerModule*(g: ModuleGraph; m: PSym) =
setLen(g.packed.pm, m.position + 1)
g.ifaces[m.position] = Iface(module: m, converters: @[], patterns: @[],
uniqueName: rope(uniqueModuleName(g.config, m)))
uniqueName: rope(uniqueModuleName(g.config, FileIndex(m.position))))
initStrTables(g, m)
proc registerModuleById*(g: ModuleGraph; m: FileIndex) =
@@ -740,6 +677,8 @@ proc moduleFromRodFile*(g: ModuleGraph; fileIdx: FileIndex;
proc configComplete*(g: ModuleGraph) =
rememberStartupConfig(g.startupPackedConfig, g.config)
from std/strutils import repeat, `%`
proc onProcessing*(graph: ModuleGraph, fileIdx: FileIndex, moduleStatus: string, fromModule: PSym, ) =
let conf = graph.config
let isNimscript = conf.isDefined("nimscript")

View File

@@ -25,7 +25,7 @@ template getModuleIdent(graph: ModuleGraph, filename: AbsoluteFile): PIdent =
proc partialInitModule*(result: PSym; graph: ModuleGraph; fileIdx: FileIndex; filename: AbsoluteFile) =
let packSym = getPackage(graph, fileIdx)
setOwner(result, packSym)
result.owner = packSym
result.position = int fileIdx
proc newModule*(graph: ModuleGraph; fileIdx: FileIndex): PSym =

View File

@@ -629,7 +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.cmd in {cmdIdeTools, cmdCheck} and conf.structuredErrorHook.isNil: return
if conf.cmd == cmdIdeTools and conf.structuredErrorHook.isNil: return
writeContext(conf, info)
liMessage(conf, info, errInternal, errMsg, doAbort, info2)
@@ -669,6 +669,31 @@ template listMsg(title, r) =
proc listWarnings*(conf: ConfigRef) = listMsg("Warnings:", warnMin..warnMax)
proc listHints*(conf: ConfigRef) = listMsg("Hints:", hintMin..hintMax)
proc uniqueModuleName*(conf: ConfigRef; fid: FileIndex): string =
## The unique module name is guaranteed to only contain {'A'..'Z', 'a'..'z', '0'..'9', '_'}
## so that it is useful as a C identifier snippet.
let path = AbsoluteFile toFullPath(conf, fid)
let rel =
if path.string.startsWith(conf.libpath.string):
relativeTo(path, conf.libpath).string
else:
relativeTo(path, conf.projectPath).string
let trunc = if rel.endsWith(".nim"): rel.len - len(".nim") else: rel.len
result = newStringOfCap(trunc)
for i in 0..<trunc:
let c = rel[i]
case c
of 'a'..'z', '0'..'9':
result.add c
of {os.DirSep, os.AltSep}:
result.add 'Z' # because it looks a bit like '/'
of '.':
result.add 'O' # a circle
else:
# We mangle upper letters too so that there cannot
# be clashes with our special meanings of 'Z' and 'O'
result.addInt ord(c)
proc genSuccessX*(conf: ConfigRef) =
let mem =
when declared(system.getMaxMem): formatSize(getMaxMem()) & " peakmem"

52
compiler/ndi.nim Normal file
View File

@@ -0,0 +1,52 @@
#
#
# The Nim Compiler
# (c) Copyright 2017 Andreas Rumpf
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## This module implements the generation of ``.ndi`` files for better debugging
## support of Nim code. "ndi" stands for "Nim debug info".
import ast, msgs, ropes, options, pathutils
when defined(nimPreviewSlimSystem):
import std/[syncio, assertions]
type
NdiFile* = object
enabled: bool
f: File
buf: string
filename: AbsoluteFile
syms: seq[PSym]
proc doWrite(f: var NdiFile; s: PSym; conf: ConfigRef) =
f.buf.setLen 0
f.buf.addInt s.info.line.int
f.buf.add "\t"
f.buf.addInt s.info.col.int
f.f.write(s.name.s, "\t")
f.f.writeRope(s.loc.snippet)
f.f.writeLine("\t", toFullPath(conf, s.info), "\t", f.buf)
template writeMangledName*(f: NdiFile; s: PSym; conf: ConfigRef) =
if f.enabled: f.syms.add s
proc open*(f: var NdiFile; filename: AbsoluteFile; conf: ConfigRef) =
f.enabled = not filename.isEmpty
if f.enabled:
f.filename = filename
f.buf = newStringOfCap(20)
proc close*(f: var NdiFile, conf: ConfigRef) =
if f.enabled:
f.f = open(f.filename.string, fmWrite, 8000)
doAssert f.f != nil, f.filename.string
for s in f.syms:
doWrite(f, s, conf)
close(f.f)
f.syms.reset
f.filename.reset

View File

@@ -919,7 +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()
@@ -929,7 +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

@@ -4,13 +4,12 @@ hint[XDeclaredButNotUsed]:off
define:booting
define:nimcore
define:nimPreviewFloatRoundtrip
define:nimPreviewSlimSystem
define:nimPreviewCstringConversion
define:nimPreviewProcConversion
define:nimPreviewRangeDefault
define:nimPreviewNonVarDestructor
define:nimPreviewCheckedClose
define:nimPreviewAsmSemSymbol
threads:off
#import:"$projectpath/testability"

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

View File

@@ -204,7 +204,6 @@ type
nkModuleRef # for .rod file support: A (moduleId, itemId) pair
nkReplayAction # for .rod file support: A replay action
nkNilRodNode # for .rod file support: a 'nil' PNode
nkOpenSym # container for captured sym that can be overriden by local symbols
const
nkCallKinds* = {nkCall, nkInfix, nkPrefix, nkPostfix,

View File

@@ -28,14 +28,11 @@ type
hasReturn, hasBreak: bool
label: PSym # can be nil
parent: ptr BasicBlock
symToDel: seq[PNode]
Con = object
somethingTodo: bool
inFinally: int
proc invalidateWasMoved(c: var BasicBlock; x: PNode)
proc nestedBlock(parent: var BasicBlock; kind: TNodeKind): BasicBlock =
BasicBlock(wasMovedLocs: @[], kind: kind, hasReturn: false, hasBreak: false,
label: nil, parent: addr(parent))
@@ -65,10 +62,6 @@ proc mergeBasicBlockInfo(parent: var BasicBlock; this: BasicBlock) {.inline.} =
if this.hasReturn:
parent.wasMovedLocs.setLen 0
parent.hasReturn = true
elif this.symToDel.len > 0:
parent.symToDel = this.symToDel
for i in this.symToDel:
invalidateWasMoved(parent, i)
proc wasMovedTarget(matches: var IntSet; branch: seq[PNode]; moveTarget: PNode): bool =
result = false
@@ -156,7 +149,6 @@ proc analyse(c: var Con; b: var BasicBlock; n: PNode) =
# any usage of the location before destruction implies we
# cannot elide the 'wasMoved(x)':
b.invalidateWasMoved n
b.symToDel.add n
of nkNone..pred(nkSym), succ(nkSym)..nkNilLit, nkTypeSection, nkProcDef, nkConverterDef,
nkMethodDef, nkIteratorDef, nkMacroDef, nkTemplateDef, nkLambda, nkDo,

View File

@@ -25,7 +25,7 @@ const
useEffectSystem* = true
useWriteTracking* = false
hasFFI* = defined(nimHasLibFFI)
copyrightYear* = "2025"
copyrightYear* = "2024"
nimEnableCovariance* = defined(nimEnableCovariance)
@@ -179,6 +179,7 @@ const
cmdCtags, cmdBuildindex}
type
NimVer* = tuple[major: int, minor: int, patch: int]
TStringSeq* = seq[string]
TGCMode* = enum # the selected GC
gcUnselected = "unselected"
@@ -225,11 +226,8 @@ type
strictDefs,
strictCaseObjects,
inferGenericTypes,
openSym, # remove nfDisabledOpenSym when this is default
# alternative to above:
genericsOpenSym
genericsOpenSym,
vtables
typeBoundOps
LegacyFeature* = enum
allowSemcheckedAstModification,
@@ -248,8 +246,6 @@ type
## Useful for libraries that rely on local passC
jsNoLambdaLifting
## Old transformation for closures in JS backend
noPanicOnExcept
## don't panic on bare except
SymbolFilesOption* = enum
disabledSf, writeOnlySf, readOnlySf, v2Sf, stressTest
@@ -385,7 +381,6 @@ type
warnCounter*: int
errorMax*: int
maxLoopIterationsVM*: int ## VM: max iterations of all loops
maxCallDepthVM*: int ## VM: max call depth
isVmTrace*: bool
configVars*: StringTableRef
symbols*: StringTableRef ## We need to use a StringTableRef here as defined
@@ -399,12 +394,12 @@ type
outDir*: AbsoluteDir
jsonBuildFile*: AbsoluteFile
prefixDir*, libpath*, nimcacheDir*: AbsoluteDir
dllOverrides*, moduleOverrides*, cfileSpecificOptions*: StringTableRef
nimStdlibVersion*: NimVer
dllOverrides, moduleOverrides*, cfileSpecificOptions*: StringTableRef
projectName*: string # holds a name like 'nim'
projectPath*: AbsoluteDir # holds a path like /home/alice/projects/nim/compiler/
projectFull*: AbsoluteFile # projectPath/projectName
projectIsStdin*: bool # whether we're compiling from stdin
stdinFile*: AbsoluteFile # Filename to use in messages for stdin
lastMsgWasDot*: set[StdOrrKind] # the last compiler message was a single '.'
projectMainIdx*: FileIndex # the canonical path id of the main module
projectMainIdx2*: FileIndex # consider merging with projectMainIdx
@@ -412,6 +407,7 @@ type
commandArgs*: seq[string] # any arguments after the main command
commandLine*: string
extraCmds*: seq[string] # for writeJsonBuildInstructions
keepComments*: bool # whether the parser needs to keep comments
implicitImports*: seq[string] # modules that are to be implicitly imported
implicitIncludes*: seq[string] # modules that are to be implicitly included
docSeeSrcUrl*: string # if empty, no seeSrc will be generated. \
@@ -452,6 +448,16 @@ type
clientProcessId*: int
proc parseNimVersion*(a: string): NimVer =
# could be moved somewhere reusable
result = default(NimVer)
if a.len > 0:
let b = a.split(".")
assert b.len == 3, a
template fn(i) = result[i] = b[i].parseInt # could be optimized if needed
fn(0)
fn(1)
fn(2)
proc assignIfDefault*[T](result: var T, val: T, def = default(T)) =
## if `result` was already assigned to a value (that wasn't `def`), this is a noop.
@@ -581,11 +587,11 @@ proc newConfigRef*(): ConfigRef =
projectPath: AbsoluteDir"", # holds a path like /home/alice/projects/nim/compiler/
projectFull: AbsoluteFile"", # projectPath/projectName
projectIsStdin: false, # whether we're compiling from stdin
stdinFile: AbsoluteFile"stdinfile",
projectMainIdx: FileIndex(0'i32), # the canonical path id of the main module
command: "", # the main command (e.g. cc, check, scan, etc)
commandArgs: @[], # any arguments after the main command
commandLine: "",
keepComments: true, # whether the parser needs to keep comments
implicitImports: @[], # modules that are to be implicitly imported
implicitIncludes: @[], # modules that are to be implicitly included
docSeeSrcUrl: "",
@@ -603,7 +609,6 @@ proc newConfigRef*(): ConfigRef =
arguments: "",
suggestMaxResults: 10_000,
maxLoopIterationsVM: 10_000_000,
maxCallDepthVM: 2_000,
vmProfileData: newProfileData(),
spellSuggestMax: spellSuggestSecretSauce,
currentConfigDir: ""
@@ -627,6 +632,12 @@ proc newPartialConfigRef*(): ConfigRef =
proc cppDefine*(c: ConfigRef; define: string) =
c.cppDefines.incl define
proc getStdlibVersion*(conf: ConfigRef): NimVer =
if conf.nimStdlibVersion == (0,0,0):
let s = conf.symbols.getOrDefault("nimVersion", "")
conf.nimStdlibVersion = s.parseNimVersion
result = conf.nimStdlibVersion
proc isDefined*(conf: ConfigRef; symbol: string): bool =
if conf.symbols.hasKey(symbol):
result = true

View File

@@ -51,11 +51,3 @@ func belongsToProjectPackage*(conf: ConfigRef, sym: PSym): bool =
## See Also:
## * `modulegraphs.belongsToStdlib`
conf.mainPackageId == sym.getPackageId
func belongsToProjectPackageMaybeNil*(conf: ConfigRef, sym: PSym): bool =
## Return whether the symbol belongs to the project's package.
## Returns `false` if `sym` is nil.
##
## See Also:
## * `modulegraphs.belongsToStdlib`
sym != nil and conf.mainPackageId == sym.getPackageId

View File

@@ -266,7 +266,7 @@ proc isAssignable*(owner: PSym, n: PNode): TAssignableResult =
if skipTypes(n.typ, abstractPtrs-{tyTypeDesc}).kind in
{tyOpenArray, tyTuple, tyObject}:
result = isAssignable(owner, n[1])
elif compareTypes(n.typ, n[1].typ, dcEqIgnoreDistinct, {IgnoreRangeShallow}):
elif compareTypes(n.typ, n[1].typ, dcEqIgnoreDistinct):
# types that are equal modulo distinction preserve l-value:
result = isAssignable(owner, n[1])
of nkHiddenDeref:

View File

@@ -638,9 +638,8 @@ proc semiStmtList(p: var Parser, result: PNode) =
getTok(p)
if p.tok.tokType == tkParRi:
break
# ignore indent:
#elif not (sameOrNoInd(p) or realInd(p)):
# parMessage(p, errInvalidIndentation)
elif not (sameInd(p) or realInd(p)):
parMessage(p, errInvalidIndentation)
let a = complexOrSimpleStmt(p)
if a.kind == nkEmpty:
parMessage(p, errExprExpected, p.tok)
@@ -700,12 +699,10 @@ proc parsePar(p: var Parser): PNode =
asgn.add b
result.add(asgn)
if p.tok.tokType == tkSemiColon:
getTok(p)
semiStmtList(p, result)
elif p.tok.tokType == tkSemiColon:
# stmt context:
result.add(a)
getTok(p)
semiStmtList(p, result)
else:
a = colonOrEquals(p, a)
@@ -1404,7 +1401,7 @@ proc primary(p: var Parser, mode: PrimaryMode): PNode =
result = primarySuffix(p, result, baseInd, mode)
proc binaryNot(p: var Parser; a: PNode): PNode =
if p.tok.tokType == tkNot and p.tok.indent < 0:
if p.tok.tokType == tkNot:
let notOpr = newIdentNodeP(p.tok.ident, p)
getTok(p)
optInd(p, notOpr)
@@ -2110,28 +2107,12 @@ proc parseObjectCase(p: var Parser): PNode =
#| objectBranches = objectBranch (IND{=} objectBranch)*
#| (IND{=} 'elif' expr colcom objectPart)*
#| (IND{=} 'else' colcom objectPart)?
#| objectCase = 'case' (declColonEquals / pragma)? ':'? COMMENT?
#| objectCase = 'case' declColonEquals ':'? COMMENT?
#| (IND{>} objectBranches DED
#| | IND{=} objectBranches)
result = newNodeP(nkRecCase, p)
getTok(p)
if p.tok.tokType != tkOf:
# of case will be handled later
if p.tok.indent >= 0: parMessage(p, errInvalidIndentation)
var a: PNode
if p.tok.tokType in {tkSymbol, tkAccent}:
a = parseIdentColonEquals(p, {withPragma})
else:
a = newNodeP(nkIdentDefs, p)
if p.tok.tokType == tkCurlyDotLe:
var prag = newNodeP(nkPragmaExpr, p)
prag.add(p.emptyNode)
prag.add(parsePragma(p))
a.add(prag)
else:
a.add(p.emptyNode)
a.add(p.emptyNode)
a.add(p.emptyNode)
getTokNoInd(p)
var a = parseIdentColonEquals(p, {withPragma})
result.add(a)
if p.tok.tokType == tkColon: getTok(p)
flexComment(p, result)

View File

@@ -42,7 +42,10 @@ proc makePass*(open: TPassOpen = nil,
process: TPassProcess = nil,
close: TPassClose = nil,
isFrontend = false): TPass =
result = (open, process, close, isFrontend)
result.open = open
result.close = close
result.process = process
result.isFrontend = isFrontend
const
maxPasses = 10
@@ -97,8 +100,8 @@ proc processModule*(graph: ModuleGraph; module: PSym; idgen: IdGenerator;
stream: PLLStream): bool {.discardable.} =
if graph.stopCompile(): return true
var
p: Parser = default(Parser)
a: TPassContextArray = default(TPassContextArray)
p: Parser
a: TPassContextArray
s: PLLStream
fileIdx = module.fileIdx
prepareConfigNotes(graph, module)

View File

@@ -77,7 +77,7 @@ proc inSymChoice(sc, x: PNode): bool =
result = false
for i in 0..<sc.len:
if sc[i].sym == x.sym: return true
elif sc.kind in {nkOpenSymChoice, nkOpenSym}:
elif sc.kind == nkOpenSymChoice:
# same name suffices for open sym choices!
result = sc[0].sym.name.id == x.sym.name.id
else:

View File

@@ -47,8 +47,9 @@ proc processPipeline(graph: ModuleGraph; semNode: PNode; bModule: PPassContext):
of NonePass:
raiseAssert "use setPipeLinePass to set a proper PipelinePass"
proc processImplicitImports*(graph: ModuleGraph; implicits: seq[string], nodeKind: TNodeKind,
m: PSym, ctx: PContext, bModule: PPassContext, idgen: IdGenerator) =
proc processImplicitImports(graph: ModuleGraph; implicits: seq[string], nodeKind: TNodeKind,
m: PSym, ctx: PContext, bModule: PPassContext, idgen: IdGenerator,
) =
# XXX fixme this should actually be relative to the config file!
let relativeTo = toFullPath(graph.config, m.info)
for module in items(implicits):
@@ -63,7 +64,7 @@ proc processImplicitImports*(graph: ModuleGraph; implicits: seq[string], nodeKin
if semNode == nil or processPipeline(graph, semNode, bModule) == nil:
break
proc prePass*(c: PContext; n: PNode) =
proc prePass(c: PContext; n: PNode) =
for son in n:
if son.kind == nkPragma:
for s in son:
@@ -234,8 +235,7 @@ proc compilePipelineModule*(graph: ModuleGraph; fileIdx: FileIndex; flags: TSymF
result = moduleFromRodFile(graph, fileIdx, cachedModules)
let path = toFullPath(graph.config, fileIdx)
let filename = AbsoluteFile path
# it could be a stdinfile/cmdfile
if fileExists(filename) and not graph.config.projectIsStdin:
if fileExists(filename): # it could be a stdinfile
graph.cachedFiles[path] = $secureHashFile(path)
if result == nil:
result = newModule(graph, fileIdx)

View File

@@ -107,7 +107,7 @@ proc getPragmaVal*(procAst: PNode; name: TSpecialWord): PNode =
return it[1]
proc pragma*(c: PContext, sym: PSym, n: PNode, validPragmas: TSpecialWords;
isStatement: bool = false; comesFromPush = false)
isStatement: bool = false)
proc recordPragma(c: PContext; n: PNode; args: varargs[string]) =
var recorded = newNodeI(nkReplayAction, n.info)
@@ -370,7 +370,7 @@ proc processDynLib(c: PContext, n: PNode, sym: PSym) =
proc processNote(c: PContext, n: PNode) =
template handleNote(enumVals, notes) =
let x = findStr(enumVals.a, enumVals.b, n[0][1].ident.s, errUnknown)
if x != errUnknown:
if x != errUnknown:
nk = TNoteKind(x)
let x = c.semConstBoolExpr(c, n[1])
n[1] = x
@@ -590,7 +590,7 @@ proc processCompile(c: PContext, n: PNode) =
var customArgs = ""
if n.kind in nkCallKinds:
s = getStrLit(c, n, 1)
if n.len == 3:
if n.len <= 3:
customArgs = getStrLit(c, n, 2)
else:
localError(c.config, n.info, "'.compile' pragma takes up 2 arguments")
@@ -637,10 +637,7 @@ proc semAsmOrEmit*(con: PContext, n: PNode, marker: char): PNode =
# XXX what to do here if 'amb' is true?
if e != nil:
incl(e.flags, sfUsed)
if isDefined(con.config, "nimPreviewAsmSemSymbol"):
result.add con.semExprWithType(con, newSymNode(e), {efTypeAllowed})
else:
result.add newSymNode(e)
result.add newSymNode(e)
else:
result.add newStrNode(nkStrLit, sub)
else:
@@ -725,12 +722,12 @@ proc processPragma(c: PContext, n: PNode, i: int) =
proc pragmaRaisesOrTags(c: PContext, n: PNode) =
proc processExc(c: PContext, x: PNode) =
if c.hasUnresolvedArgs(c, x):
x.typ() = makeTypeFromExpr(c, x)
x.typ = makeTypeFromExpr(c, x)
else:
var t = skipTypes(c.semTypeNode(c, x, nil), skipPtrs)
if t.kind notin {tyObject, tyOr}:
localError(c.config, x.info, errGenerated, "invalid type for raises/tags list")
x.typ() = t
x.typ = t
if n.kind in nkPragmaCallKinds and n.len == 2:
let it = n[1]
@@ -803,14 +800,13 @@ proc pragmaGuard(c: PContext; it: PNode; kind: TSymKind): PSym =
proc semCustomPragma(c: PContext, n: PNode, sym: PSym): PNode =
var callNode: PNode
case n.kind
of nkIdentKinds:
if n.kind in {nkIdent, nkSym}:
# pragma -> pragma()
callNode = newTree(nkCall, n)
of nkExprColonExpr:
elif n.kind == nkExprColonExpr:
# pragma: arg -> pragma(arg)
callNode = newTree(nkCall, n[0], n[1])
of nkPragmaCallKinds - {nkExprColonExpr}:
elif n.kind in nkPragmaCallKinds:
callNode = n
else:
invalidPragma(c, n)
@@ -893,7 +889,7 @@ proc singlePragma(c: PContext, sym: PSym, n: PNode, i: var int,
if keyDeep:
localError(c.config, it.info, "user pragma cannot have arguments")
pragma(c, sym, userPragma.ast, validPragmas, isStatement, comesFromPush)
pragma(c, sym, userPragma.ast, validPragmas, isStatement)
n.sons[i..i] = userPragma.ast.sons # expand user pragma with its content
i.inc(userPragma.ast.len - 1) # inc by -1 is ok, user pragmas was empty
else:
@@ -947,19 +943,15 @@ proc singlePragma(c: PContext, sym: PSym, n: PNode, i: var int,
of wSize:
if sym.typ == nil: invalidPragma(c, it)
var size = expectIntLit(c, it)
if sfImportc in sym.flags:
# no restrictions on size for imported types
setImportedTypeSize(c.config, sym.typ, size)
case size
of 1, 2, 4:
sym.typ.size = size
sym.typ.align = int16 size
of 8:
sym.typ.size = 8
sym.typ.align = floatInt64Align(c.config)
else:
case size
of 1, 2, 4:
sym.typ.size = size
sym.typ.align = int16 size
of 8:
sym.typ.size = 8
sym.typ.align = floatInt64Align(c.config)
else:
localError(c.config, it.info, "size may only be 1, 2, 4 or 8")
localError(c.config, it.info, "size may only be 1, 2, 4 or 8")
of wAlign:
let alignment = expectIntLit(c, it)
if isPowerOfTwo(alignment) and alignment > 0:
@@ -1322,12 +1314,8 @@ proc singlePragma(c: PContext, sym: PSym, n: PNode, i: var int,
pragmaProposition(c, it)
of wEnsures:
pragmaEnsures(c, it)
of wEnforceNoRaises:
of wEnforceNoRaises, wQuirky:
sym.flags.incl sfNeverRaises
of wQuirky:
sym.flags.incl sfNeverRaises
if sym.kind in {skProc, skMethod, skConverter, skFunc, skIterator}:
sym.options.incl optQuirky
of wSystemRaisesDefect:
sym.flags.incl sfSystemRaisesDefect
of wVirtual:
@@ -1355,16 +1343,6 @@ proc mergePragmas(n, pragmas: PNode) =
else:
for p in pragmas: n[pragmasPos].add p
proc mergeValidPragmas(n, pragmas: PNode, validPragmas: TSpecialWords) =
if n[pragmasPos].kind == nkEmpty:
n[pragmasPos] = newNodeI(nkPragma, n.info)
for p in pragmas:
let prag = whichPragma(p)
if prag in validPragmas:
let copy = copyTree(p)
overwriteLineInfo copy, n.info
n[pragmasPos].add copy
proc implicitPragmas*(c: PContext, sym: PSym, info: TLineInfo,
validPragmas: TSpecialWords) =
if sym != nil and sym.kind != skModule:
@@ -1378,8 +1356,7 @@ proc implicitPragmas*(c: PContext, sym: PSym, info: TLineInfo,
internalError(c.config, info, "implicitPragmas")
inc i
popInfoContext(c.config)
if sym.kind in routineKinds and sym.ast != nil:
mergeValidPragmas(sym.ast, o, validPragmas)
if sym.kind in routineKinds and sym.ast != nil: mergePragmas(sym.ast, o)
if lfExportLib in sym.loc.flags and sfExportc notin sym.flags:
localError(c.config, info, ".dynlib requires .exportc")
@@ -1409,12 +1386,11 @@ proc pragmaRec(c: PContext, sym: PSym, n: PNode, validPragmas: TSpecialWords;
inc i
proc pragma(c: PContext, sym: PSym, n: PNode, validPragmas: TSpecialWords;
isStatement: bool; comesFromPush = false) =
isStatement: bool) =
if n == nil: return
pragmaRec(c, sym, n, validPragmas, isStatement)
# XXX: in the case of a callable def, this should use its info
if not comesFromPush:
implicitPragmas(c, sym, n.info, validPragmas)
implicitPragmas(c, sym, n.info, validPragmas)
proc pragmaCallable*(c: PContext, sym: PSym, n: PNode, validPragmas: TSpecialWords,
isStatement: bool = false) =

View File

@@ -1,54 +0,0 @@
import pragmas, options, ast, trees, lineinfos, idents, wordrecg
import std/assertions
import renderer
proc processNote(config: ConfigRef, n: PNode) =
template handleNote(enumVals, notes) =
let x = findStr(enumVals.a, enumVals.b, n[0][1].ident.s, errUnknown)
assert x != errUnknown
assert n[1].kind == nkIntLit
nk = TNoteKind(x)
if n[1].intVal != 0: incl(notes, nk)
else: excl(notes, nk)
var nk: TNoteKind
case whichKeyword(n[0][0].ident)
of wHint: handleNote(hintMin .. hintMax, config.notes)
of wWarning: handleNote(warnMin .. warnMax, config.notes)
of wWarningAsError: handleNote(warnMin .. warnMax, config.warningAsErrors)
of wHintAsError: handleNote(hintMin .. hintMax, config.warningAsErrors)
else: discard
proc pushBackendOption(optionsStack: var seq[(TOptions, TNoteKinds)], options: TOptions, notes: TNoteKinds) =
optionsStack.add (options, notes)
proc popBackendOption(config: ConfigRef, optionsStack: var seq[(TOptions, TNoteKinds)], options: var TOptions) =
let entry = optionsStack[^1]
options = entry[0]
config.notes = entry[1]
optionsStack.setLen(optionsStack.len-1)
proc processPushBackendOption*(config: ConfigRef, optionsStack: var seq[(TOptions, TNoteKinds)], options: var TOptions,
n: PNode, start: int) =
pushBackendOption(optionsStack, options, config.notes)
for i in start..<n.len:
let it = n[i]
if it.kind in nkPragmaCallKinds and it.len == 2:
if it[0].kind == nkBracketExpr and
it[0].len == 2 and
it[0][1].kind == nkIdent and it[0][0].kind == nkIdent:
processNote(config, it)
elif it[1].kind == nkIntLit:
let sw = whichPragma(it[0])
let opts = pragmaToOptions(sw)
if opts != {}:
if it[1].intVal != 0:
options.incl opts
else:
options.excl opts
template processPopBackendOption*(config: ConfigRef, optionsStack: var seq[(TOptions, TNoteKinds)], options: var TOptions) =
popBackendOption(config, optionsStack, options)

View File

@@ -410,7 +410,7 @@ proc atom(g: TSrcGen; n: PNode): string =
of nkEmpty: result = ""
of nkIdent: result = n.ident.s
of nkSym: result = n.sym.name.s
of nkClosedSymChoice, nkOpenSymChoice, nkOpenSym: result = n[0].sym.name.s
of nkClosedSymChoice, nkOpenSymChoice: result = n[0].sym.name.s
of nkStrLit: result = ""; result.addQuoted(n.strVal)
of nkRStrLit: result = "r\"" & replace(n.strVal, "\"", "\"\"") & '\"'
of nkTripleStrLit: result = "\"\"\"" & n.strVal & "\"\"\""
@@ -442,11 +442,6 @@ proc atom(g: TSrcGen; n: PNode): string =
result = $n.floatVal & "\'f64"
else:
result = litAux(g, n, (cast[ptr int64](addr(n.floatVal)))[], 8) & "\'f64"
of nkFloat128Lit:
if n.flags * {nfBase2, nfBase8, nfBase16} == {}:
result = $n.floatVal & "\'f128"
else:
result = litAux(g, n, (cast[ptr int64](addr(n.floatVal)))[], 8) & "\'f128"
of nkNilLit: result = "nil"
of nkType:
if (n.typ != nil) and (n.typ.sym != nil): result = n.typ.sym.name.s
@@ -519,7 +514,6 @@ proc lsub(g: TSrcGen; n: PNode): int =
result = if n.len > 0: lcomma(g, n) + 2 else: len("{:}")
of nkClosedSymChoice, nkOpenSymChoice:
if n.len > 0: result += lsub(g, n[0])
of nkOpenSym: result = lsub(g, n[0])
of nkTupleTy: result = lcomma(g, n) + len("tuple[]")
of nkTupleClassTy: result = len("tuple")
of nkDotExpr: result = lsons(g, n) + 1
@@ -565,16 +559,8 @@ proc lsub(g: TSrcGen; n: PNode): int =
of nkIfExpr:
result = lsub(g, n[0][0]) + lsub(g, n[0][1]) + lsons(g, n, 1) +
len("if_:_")
of nkElifExpr, nkElifBranch:
if isEmptyType(n[1].typ):
result = lsons(g, n) + len("elif_:_")
else:
result = lsons(g, n) + len("_elif_:_")
of nkElseExpr, nkElse:
if isEmptyType(n[0].typ):
result = lsub(g, n[0]) + len("else:_")
else:
result = lsub(g, n[0]) + len("_else:_") # type descriptions
of nkElifExpr: result = lsons(g, n) + len("_elif_:_")
of nkElseExpr: result = lsub(g, n[0]) + len("_else:_") # type descriptions
of nkTypeOfExpr: result = (if n.len > 0: lsub(g, n[0]) else: 0)+len("typeof()")
of nkRefTy: result = (if n.len > 0: lsub(g, n[0])+1 else: 0) + len("ref")
of nkPtrTy: result = (if n.len > 0: lsub(g, n[0])+1 else: 0) + len("ptr")
@@ -617,6 +603,8 @@ proc lsub(g: TSrcGen; n: PNode): int =
of nkCommentStmt: result = n.comment.len
of nkOfBranch: result = lcomma(g, n, 0, - 2) + lsub(g, lastSon(n)) + len("of_:_")
of nkImportAs: result = lsub(g, n[0]) + len("_as_") + lsub(g, n[1])
of nkElifBranch: result = lsons(g, n) + len("elif_:_")
of nkElse: result = lsub(g, n[0]) + len("else:_")
of nkFinally: result = lsub(g, n[0]) + len("finally:_")
of nkGenericParams: result = lcomma(g, n) + 2
of nkFormalParams:
@@ -1008,7 +996,7 @@ type
proc bracketKind*(g: TSrcGen, n: PNode): BracketKind =
if renderIds notin g.flags:
case n.kind
of nkClosedSymChoice, nkOpenSymChoice, nkOpenSym:
of nkClosedSymChoice, nkOpenSymChoice:
if n.len > 0: result = bracketKind(g, n[0])
else: result = bkNone
of nkSym:
@@ -1025,7 +1013,7 @@ proc bracketKind*(g: TSrcGen, n: PNode): BracketKind =
proc skipHiddenNodes(n: PNode): PNode =
result = n
while result != nil:
if result.kind in {nkHiddenStdConv, nkHiddenSubConv, nkHiddenCallConv, nkOpenSym} and result.len > 1:
if result.kind in {nkHiddenStdConv, nkHiddenSubConv, nkHiddenCallConv} and result.len > 1:
result = result[1]
elif result.kind in {nkCheckedFieldExpr, nkHiddenAddr, nkHiddenDeref, nkStringToCString, nkCStringToString} and
result.len > 0:
@@ -1287,7 +1275,6 @@ proc gsub(g: var TSrcGen, n: PNode, c: TContext, fromStmtList = false) =
put(g, tkParRi, if n.kind == nkOpenSymChoice: "|...)" else: ")")
else:
gsub(g, n, 0)
of nkOpenSym: gsub(g, n, 0)
of nkPar, nkClosure:
put(g, tkParLe, "(")
gcomma(g, n, c)
@@ -1317,11 +1304,10 @@ proc gsub(g: var TSrcGen, n: PNode, c: TContext, fromStmtList = false) =
put(g, tkCustomLit, n[0].strVal)
gsub(g, n, 1)
else:
for i in 0..<n.len-1:
gsub(g, n, i)
gsub(g, n, 0)
put(g, tkDot, ".")
if n.len > 1:
accentedName(g, n[^1])
assert n.len == 2, $n.len
accentedName(g, n[1])
of nkBind:
putWithSpace(g, tkBind, "bind")
gsub(g, n, 0)
@@ -1421,7 +1407,10 @@ proc gsub(g: var TSrcGen, n: PNode, c: TContext, fromStmtList = false) =
of nkPrefix:
gsub(g, n, 0)
if n.len > 1:
let opr = getPIdent(n[0])
let opr = if n[0].kind == nkIdent: n[0].ident
elif n[0].kind == nkSym: n[0].sym.name
elif n[0].kind in {nkOpenSymChoice, nkClosedSymChoice}: n[0][0].sym.name
else: nil
let nNext = skipHiddenNodes(n[1])
if nNext.kind == nkPrefix or (opr != nil and renderer.isKeyword(opr)):
put(g, tkSpaces, Space)
@@ -1472,30 +1461,15 @@ proc gsub(g: var TSrcGen, n: PNode, c: TContext, fromStmtList = false) =
putWithSpace(g, tkColon, ":")
if n.len > 0: gsub(g, n[0], 1)
gsons(g, n, emptyContext, 1)
of nkElifExpr, nkElifBranch:
if isEmptyType(n[1].typ):
optNL(g)
putWithSpace(g, tkElif, "elif")
gsub(g, n, 0)
putWithSpace(g, tkColon, ":")
gcoms(g)
gstmts(g, n[1], c)
else:
putWithSpace(g, tkElif, " elif")
gcond(g, n[0])
putWithSpace(g, tkColon, ":")
gsub(g, n, 1)
of nkElseExpr, nkElse:
if isEmptyType(n[0].typ):
optNL(g)
put(g, tkElse, "else")
putWithSpace(g, tkColon, ":")
gcoms(g)
gstmts(g, n[0], c)
else:
put(g, tkElse, " else")
putWithSpace(g, tkColon, ":")
gsub(g, n, 0)
of nkElifExpr:
putWithSpace(g, tkElif, " elif")
gcond(g, n[0])
putWithSpace(g, tkColon, ":")
gsub(g, n, 1)
of nkElseExpr:
put(g, tkElse, " else")
putWithSpace(g, tkColon, ":")
gsub(g, n, 0)
of nkTypeOfExpr:
put(g, tkType, "typeof")
put(g, tkParLe, "(")
@@ -1757,6 +1731,19 @@ proc gsub(g: var TSrcGen, n: PNode, c: TContext, fromStmtList = false) =
of nkMixinStmt:
putWithSpace(g, tkMixin, "mixin")
gcomma(g, n, c)
of nkElifBranch:
optNL(g)
putWithSpace(g, tkElif, "elif")
gsub(g, n, 0)
putWithSpace(g, tkColon, ":")
gcoms(g)
gstmts(g, n[1], c)
of nkElse:
optNL(g)
put(g, tkElse, "else")
putWithSpace(g, tkColon, ":")
gcoms(g)
gstmts(g, n[0], c)
of nkFinally, nkDefer:
optNL(g)
if n.kind == nkFinally:

View File

@@ -93,7 +93,7 @@ proc computeDeps(cache: IdentCache; n: PNode, declares, uses: var IntSet; topLev
of nkIdent: uses.incl n.ident.id
of nkSym: uses.incl n.sym.name.id
of nkAccQuoted: uses.incl accQuoted(cache, n).id
of nkOpenSymChoice, nkClosedSymChoice, nkOpenSym:
of nkOpenSymChoice, nkClosedSymChoice:
uses.incl n[0].sym.name.id
of nkStmtList, nkStmtListExpr, nkWhenStmt, nkElifBranch, nkElse, nkStaticStmt:
for i in 0..<n.len: computeDeps(cache, n[i], declares, uses, topLevel)
@@ -322,14 +322,6 @@ proc intersects(s1, s2: IntSet): bool =
if s2.contains(a):
return true
proc hasPushOrPopPragma(n: DepN): bool =
# Checks if the tree node has some pragmas that do not
# play well with reordering, like the push/pop pragma
# no crossing for push/pop barrier
let a = n.pnode
result = a.kind == nkPragma and a[0].kind == nkIdent and
(a[0].ident.s == "push" or a[0].ident.s == "pop")
proc buildGraph(n: PNode, deps: seq[(IntSet, IntSet)]): DepG =
# Build a dependency graph
result = newSeqOfCap[DepN](deps.len)
@@ -371,13 +363,6 @@ proc buildGraph(n: PNode, deps: seq[(IntSet, IntSet)]): DepG =
for dep in deps[i][0]:
if dep in declares:
ni.expls.add "one declares \"" & idNames[dep] & "\" and the other defines it"
elif hasPushOrPopPragma(nj):
# Every node that comes after a push/pop pragma must
# depend on it; vice versa
if j < i:
ni.kids.add nj
else:
nj.kids.add ni
else:
for d in declares:
if uses.contains(d):
@@ -418,7 +403,18 @@ proc getStrongComponents(g: var DepG): seq[seq[DepN]] =
if v.idx < 0:
strongConnect(v, idx, s, result)
proc hasForbiddenPragma(n: PNode): bool =
# Checks if the tree node has some pragmas that do not
# play well with reordering, like the push/pop pragma
result = false
for a in n:
if a.kind == nkPragma and a[0].kind == nkIdent and
a[0].ident.s == "push":
return true
proc reorder*(graph: ModuleGraph, n: PNode, module: PSym): PNode =
if n.hasForbiddenPragma:
return n
var includedFiles = initIntSet()
let mpath = toFullPath(graph.config, module.fileIdx)
let n = expandIncludes(graph, module, n, mpath,

View File

@@ -18,7 +18,7 @@ import
evaltempl, patterns, parampatterns, sempass2, linter, semmacrosanity,
lowerings, plugins/active, lineinfos, int128,
isolation_check, typeallowed, modulegraphs, enumtostr, concepts, astmsgs,
extccomp, layeredtable
extccomp
import vtables
import std/[strtabs, math, tables, intsets, strutils, packedsets]
@@ -89,11 +89,6 @@ proc fitNodePostMatch(c: PContext, formal: PType, arg: PNode): PNode =
changeType(c, x, formal, check=true)
result = arg
result = skipHiddenSubConv(result, c.graph, c.idgen)
# mark inserted converter as used:
var a = result
if a.kind == nkHiddenDeref: a = a[0]
if a.kind == nkHiddenCallConv and a[0].kind == nkSym:
markUsed(c, a.info, a[0].sym)
proc fitNode(c: PContext, formal: PType, arg: PNode; info: TLineInfo): PNode =
@@ -102,13 +97,13 @@ proc fitNode(c: PContext, formal: PType, arg: PNode; info: TLineInfo): PNode =
renderTree(arg, {renderNoComments}))
# error correction:
result = copyTree(arg)
result.typ() = formal
result.typ = formal
elif arg.kind in nkSymChoices and formal.skipTypes(abstractInst).kind == tyEnum:
# Pick the right 'sym' from the sym choice by looking at 'formal' type:
result = nil
for ch in arg:
if sameType(ch.typ, formal):
return ch
return getConstExpr(c.module, ch, c.idgen, c.graph)
typeMismatch(c.config, info, formal, arg.typ, arg)
else:
result = indexTypesMatch(c, formal, arg.typ, arg)
@@ -116,7 +111,7 @@ proc fitNode(c: PContext, formal: PType, arg: PNode; info: TLineInfo): PNode =
typeMismatch(c.config, info, formal, arg.typ, arg)
# error correction:
result = copyTree(arg)
result.typ() = formal
result.typ = formal
else:
result = fitNodePostMatch(c, formal, result)
@@ -256,7 +251,7 @@ proc newSymG*(kind: TSymKind, n: PNode, c: PContext): PSym =
# when there is a nested proc inside a template, semtmpl
# will assign a wrong owner during the first pass over the
# template; we must fix it here: see #909
setOwner(result, getCurrOwner(c))
result.owner = getCurrOwner(c)
else:
result = newSym(kind, considerQuotedIdent(c, n), c.idgen, getCurrOwner(c), n.info)
if find(result.name.s, '`') >= 0:
@@ -470,7 +465,7 @@ proc semAfterMacroCall(c: PContext, call, macroResult: PNode,
renderTree(result, {renderNoComments}))
result = newSymNode(errorSym(c, result))
else:
result.typ() = makeTypeDesc(c, typ)
result.typ = makeTypeDesc(c, typ)
#result = symNodeFromType(c, typ, n.info)
else:
if s.ast[genericParamsPos] != nil and retType.isMetaType:
@@ -478,7 +473,7 @@ proc semAfterMacroCall(c: PContext, call, macroResult: PNode,
# e.g. template foo(T: typedesc): seq[T]
# We will instantiate the return type here, because
# we now know the supplied arguments
var paramTypes = initLayeredTypeMap()
var paramTypes = initTypeMapping()
for param, value in genericParamsInMacroCall(s, call):
var givenType = value.typ
# the sym nodes used for the supplied generic arguments for
@@ -486,7 +481,7 @@ proc semAfterMacroCall(c: PContext, call, macroResult: PNode,
# in this case, get the type directly from the sym
if givenType == nil and value.kind == nkSym and value.sym.typ != nil:
givenType = value.sym.typ
put(paramTypes, param.typ, givenType)
idTablePut(paramTypes, param.typ, givenType)
retType = generateTypeInstance(c, paramTypes,
macroResult.info, retType)
@@ -494,29 +489,15 @@ proc semAfterMacroCall(c: PContext, call, macroResult: PNode,
if retType.kind == tyVoid:
result = semStmt(c, result, flags)
else:
result = semExpr(c, result, flags)
result = semExpr(c, result, flags, expectedType)
result = fitNode(c, retType, result, result.info)
#globalError(s.info, errInvalidParamKindX, typeToString(s.typ.returnType))
dec(c.config.evalTemplateCounter)
discard c.friendModules.pop()
proc getLineInfo(n: PNode): TLineInfo =
case n.kind
of nkPostfix:
if len(n) > 1:
result = getLineInfo(n[1])
else:
result = n.info
of nkAccQuoted, nkPragmaExpr:
if len(n) > 0:
result = getLineInfo(n[0])
else:
result = n.info
else:
result = n.info
const
errMissingGenericParamsForTemplate = "'$1' has unspecified generic parameters"
errFloatToString = "cannot convert '$1' to '$2'"
proc semMacroExpr(c: PContext, n, nOrig: PNode, sym: PSym,
flags: TExprFlags = {}; expectedType: PType = nil): PNode =
@@ -541,9 +522,7 @@ proc semMacroExpr(c: PContext, n, nOrig: PNode, sym: PSym,
if efNoSemCheck notin flags:
result = semAfterMacroCall(c, n, result, sym, flags, expectedType)
if c.config.macrosToExpand.hasKey(sym.name.s):
message(c.config, nOrig.info, hintExpandMacro, renderTree(result, {
renderNonExportedFields, renderDocComments, renderNoComments
}))
message(c.config, nOrig.info, hintExpandMacro, renderTree(result))
result = wrapInComesFrom(nOrig.info, sym, result)
popInfoContext(c.config)
@@ -629,7 +608,7 @@ proc defaultFieldsForTuple(c: PContext, recNode: PNode, hasDefault: var bool, ch
newNodeIT(nkType, recNode.info, asgnType)
)
asgnExpr.flags.incl nfSkipFieldChecking
asgnExpr.typ() = recNode.typ
asgnExpr.typ = recNode.typ
result.add newTree(nkExprColonExpr, recNode, asgnExpr)
else:
raiseAssert "unreachable"
@@ -651,7 +630,7 @@ proc defaultFieldsForTheUninitialized(c: PContext, recNode: PNode, checkDefault:
if checkDefault: # don't add defaults when checking whether a case branch has default fields
return
defaultValue = newIntNode(nkIntLit#[c.graph]#, 0)
defaultValue.typ() = discriminator.typ
defaultValue.typ = discriminator.typ
selectedBranch = recNode.pickCaseBranchIndex defaultValue
defaultValue.flags.incl nfSkipFieldChecking
result.add newTree(nkExprColonExpr, discriminator, defaultValue)
@@ -664,7 +643,7 @@ proc defaultFieldsForTheUninitialized(c: PContext, recNode: PNode, checkDefault:
elif recType.kind in {tyObject, tyArray, tyTuple}:
let asgnExpr = defaultNodeField(c, recNode, recNode.typ, checkDefault)
if asgnExpr != nil:
asgnExpr.typ() = recNode.typ
asgnExpr.typ = recNode.typ
asgnExpr.flags.incl nfSkipFieldChecking
result.add newTree(nkExprColonExpr, recNode, asgnExpr)
else:
@@ -672,48 +651,41 @@ proc defaultFieldsForTheUninitialized(c: PContext, recNode: PNode, checkDefault:
proc defaultNodeField(c: PContext, a: PNode, aTyp: PType, checkDefault: bool): PNode =
let aTypSkip = aTyp.skipTypes(defaultFieldsSkipTypes)
case aTypSkip.kind
of tyObject:
if aTypSkip.kind == tyObject:
let child = defaultFieldsForTheUninitialized(c, aTypSkip.n, checkDefault)
if child.len > 0:
var asgnExpr = newTree(nkObjConstr, newNodeIT(nkType, a.info, aTyp))
asgnExpr.typ() = aTyp
asgnExpr.typ = aTyp
asgnExpr.sons.add child
result = semExpr(c, asgnExpr)
else:
result = nil
of tyArray:
elif aTypSkip.kind == tyArray:
let child = defaultNodeField(c, a, aTypSkip[1], checkDefault)
if child != nil:
let node = newNode(nkIntLit)
node.intVal = toInt64(lengthOrd(c.graph.config, aTypSkip))
let typeNode = newNode(nkType)
typeNode.typ() = makeTypeDesc(c, aTypSkip[1])
result = semExpr(c, newTree(nkCall, newTree(nkBracketExpr, newSymNode(getSysSym(c.graph, a.info, "arrayWithDefault"), a.info), typeNode),
result = semExpr(c, newTree(nkCall, newSymNode(getSysSym(c.graph, a.info, "arrayWith"), a.info),
semExprWithType(c, child),
node
))
result.typ() = aTyp
result.typ = aTyp
else:
result = nil
of tyTuple:
elif aTypSkip.kind == tyTuple:
var hasDefault = false
if aTypSkip.n != nil:
let children = defaultFieldsForTuple(c, aTypSkip.n, hasDefault, checkDefault)
if hasDefault and children.len > 0:
result = newNodeI(nkTupleConstr, a.info)
result.typ() = aTyp
result.typ = aTyp
result.sons.add children
result = semExpr(c, result)
else:
result = nil
else:
result = nil
of tyRange:
if c.graph.config.isDefined("nimPreviewRangeDefault"):
result = firstRange(c.config, aTypSkip)
else:
result = nil
else:
result = nil
@@ -750,12 +722,9 @@ proc preparePContext*(graph: ModuleGraph; module: PSym; idgen: IdGenerator): PCo
result.semOverloadedCall = semOverloadedCall
result.semInferredLambda = semInferredLambda
result.semGenerateInstance = generateInstance
result.instantiateOnlyProcType = instantiateOnlyProcType
result.fitDefaultNode = fitDefaultNode
result.semTypeNode = semTypeNode
result.instTypeBoundOp = sigmatch.instTypeBoundOp
result.hasUnresolvedArgs = hasUnresolvedArgs
result.semAsgnOpr = semAsgnOpr
result.templInstCounter = new int
pushProcCon(result, module)
@@ -873,9 +842,9 @@ proc semWithPContext*(c: PContext, n: PNode): PNode =
proc reportUnusedModules(c: PContext) =
if c.config.cmd == cmdM: return
for (s, info) in c.unusedImports:
if sfUsed notin s.flags:
message(c.config, info, warnUnusedImportX, s.name.s)
for i in 0..high(c.unusedImports):
if sfUsed notin c.unusedImports[i][0].flags:
message(c.config, c.unusedImports[i][1], warnUnusedImportX, c.unusedImports[i][0].name.s)
proc closePContext*(graph: ModuleGraph; c: PContext, n: PNode): PNode =
if c.config.cmd == cmdIdeTools and not c.suggestionsMade:

View File

@@ -56,7 +56,7 @@ proc initCandidateSymbols(c: PContext, headSymbol: PNode,
proc name[T: static proc()]() = T()
name[proc() = echo"hello"]()
]#
for paramSym in searchScopesAll(c, symx.name, {skConst}):
for paramSym in searchInScopesAllCandidatesFilterBy(c, symx.name, {skConst}):
let paramTyp = paramSym.typ
if paramTyp.n.kind == nkSym and paramTyp.n.sym.kind in filter:
result.add((paramTyp.n.sym, o.lastOverloadScope))
@@ -69,39 +69,6 @@ proc initCandidateSymbols(c: PContext, headSymbol: PNode,
result[0].scope, diagnostics)
best.state = csNoMatch
proc isAttachableRoutineTo(prc: PSym, arg: PType): bool =
result = false
if arg.owner != prc.owner: return false
for i in 1 ..< prc.typ.len:
if prc.typ.n[i].kind == nkSym and prc.typ.n[i].sym.ast != nil:
# has default value, parameter is not considered in type attachment
continue
let t = nominalRoot(prc.typ[i])
if t != nil and t.itemId == arg.itemId:
# parameter `i` is a nominal type in this module
# attachable if the nominal root `t` has the same id as `arg`
return true
proc addTypeBoundSymbols(graph: ModuleGraph, arg: PType, name: PIdent,
filter: TSymKinds, marker: var IntSet,
syms: var seq[tuple[s: PSym, scope: int]]) =
# add type bound ops for `name` based on the argument type `arg`
if arg != nil:
# argument must be typed first, meaning arguments always
# matching `untyped` are ignored
let t = nominalRoot(arg)
if t != nil and t.owner.kind == skModule:
# search module for routines attachable to `t`
let module = t.owner
var iter = default(ModuleIter)
var s = initModuleIter(iter, graph, module, name)
while s != nil:
if s.kind in filter and s.isAttachableRoutineTo(t) and
not containsOrIncl(marker, s.id):
# least priority scope, less than explicit imports:
syms.add((s, -2))
s = nextModuleIter(iter, graph)
proc pickBestCandidate(c: PContext, headSymbol: PNode,
n, orig: PNode,
initialBinding: PNode,
@@ -121,29 +88,17 @@ proc pickBestCandidate(c: PContext, headSymbol: PNode,
best, alt, o, diagnosticsFlag)
if len(syms) == 0:
return
let allowTypeBoundOps = typeBoundOps in c.features and
# qualified or bound symbols cannot refer to type bound ops
headSymbol.kind in {nkIdent, nkAccQuoted, nkOpenSymChoice, nkOpenSym}
var symMarker = initIntSet()
for s in syms:
symMarker.incl(s.s.id)
# current overload being considered
var sym = syms[0].s
let name = sym.name
var scope = syms[0].scope
if allowTypeBoundOps:
for a in 1 ..< n.len:
# for every already typed argument, add type bound ops
let arg = n[a]
addTypeBoundSymbols(c.graph, arg.typ, name, filter, symMarker, syms)
# starts at 1 because 0 is already done with setup, only needs checking
var nextSymIndex = 1
var z: TCandidate # current candidate
while true:
determineType(c, sym)
z = initCandidate(c, sym, initialBinding, scope, diagnosticsFlag)
# this is kinda backwards as without a check here the described
# problems in recalc would not happen, but instead it 100%
# does check forever in some cases
@@ -151,14 +106,6 @@ proc pickBestCandidate(c: PContext, headSymbol: PNode,
# may introduce new symbols with caveats described in recalc branch
matches(c, n, orig, z)
if allowTypeBoundOps:
# this match may have given some arguments new types,
# in which case add their type bound ops as well
# type bound ops of arguments always matching `untyped` are not considered
for x in z.newlyTypedOperands:
let arg = n[x]
addTypeBoundSymbols(c.graph, arg.typ, name, filter, symMarker, syms)
if z.state == csMatch:
# little hack so that iterators are preferred over everything else:
if sym.kind == skIterator:
@@ -183,20 +130,13 @@ proc pickBestCandidate(c: PContext, headSymbol: PNode,
# 1) new symbols are discovered but the loop ends before we recalc
# 2) new symbols are discovered and resemmed forever
# not 100% sure if these are possible though as they would rely
# on somehow introducing a new overload during overload resolution
# on somehow introducing a new overload during overload resolution
# Symbol table has been modified. Restart and pre-calculate all syms
# before any further candidate init and compare. SLOW, but rare case.
syms = initCandidateSymbols(c, headSymbol, initialBinding, filter,
best, alt, o, diagnosticsFlag)
symMarker = initIntSet()
for s in syms:
symMarker.incl(s.s.id)
if allowTypeBoundOps:
for a in 1 ..< n.len:
# for every already typed argument, add type bound ops
let arg = n[a]
addTypeBoundSymbols(c.graph, arg.typ, name, filter, symMarker, syms)
# reset counter because syms may be in a new order
symCount = c.currentScope.symbols.counter
nextSymIndex = 0
@@ -244,6 +184,14 @@ proc effectProblem(f, a: PType; result: var string; c: PContext) =
if not c.graph.compatibleProps(c.graph, f, a):
result.add "\n The `.requires` or `.ensures` properties are incompatible."
proc renderNotLValue(n: PNode): string =
result = $n
let n = if n.kind == nkHiddenDeref: n[0] else: n
if n.kind == nkHiddenCallConv and n.len > 1:
result = $n[0] & "(" & result & ")"
elif n.kind in {nkHiddenStdConv, nkHiddenSubConv} and n.len == 2:
result = typeToString(n.typ.skipTypes(abstractVar)) & "(" & result & ")"
proc presentFailedCandidates(c: PContext, n: PNode, errors: CandidateErrors):
(TPreferedDesc, string) =
var prefer = preferName
@@ -298,16 +246,7 @@ proc presentFailedCandidates(c: PContext, n: PNode, errors: CandidateErrors):
candidates.add(getProcHeader(c.config, err.sym, prefer))
candidates.addDeclaredLocMaybe(c.config, err.sym)
candidates.add("\n")
const genericParamMismatches = {kGenericParamTypeMismatch, kExtraGenericParam, kMissingGenericParam}
let isGenericMismatch = err.firstMismatch.kind in genericParamMismatches
var argList = n
if isGenericMismatch and n[0].kind == nkBracketExpr:
argList = n[0]
let nArg =
if err.firstMismatch.arg < argList.len:
argList[err.firstMismatch.arg]
else:
nil
let nArg = if err.firstMismatch.arg < n.len: n[err.firstMismatch.arg] else: nil
let nameParam = if err.firstMismatch.formal != nil: err.firstMismatch.formal.name.s else: ""
if n.len > 1:
if verboseTypeMismatch notin c.config.legacyFeatures:
@@ -330,12 +269,6 @@ proc presentFailedCandidates(c: PContext, n: PNode, errors: CandidateErrors):
of kMissingParam:
candidates.add(" missing parameter: " & nameParam)
candidates.add "\n"
of kExtraGenericParam:
candidates.add(" extra generic param given")
candidates.add "\n"
of kMissingGenericParam:
candidates.add(" missing generic parameter: " & nameParam)
candidates.add "\n"
of kVarNeeded:
doAssert nArg != nil
doAssert err.firstMismatch.formal != nil
@@ -345,8 +278,6 @@ proc presentFailedCandidates(c: PContext, n: PNode, errors: CandidateErrors):
candidates.add "\n"
of kTypeMismatch:
doAssert nArg != nil
if nArg.kind in nkSymChoices:
candidates.add ambiguousIdentifierMsg(nArg, indent = 2)
let wanted = err.firstMismatch.formal.typ
doAssert err.firstMismatch.formal != nil
doAssert wanted != nil
@@ -361,39 +292,9 @@ proc presentFailedCandidates(c: PContext, n: PNode, errors: CandidateErrors):
candidates.addPragmaAndCallConvMismatch(wanted, got, c.config)
effectProblem(wanted, got, candidates, c)
candidates.add "\n"
of kGenericParamTypeMismatch:
let pos = err.firstMismatch.arg
doAssert n[0].kind == nkBracketExpr and pos < n[0].len
let arg = n[0][pos]
doAssert arg != nil
var wanted = err.firstMismatch.formal.typ
if wanted.kind == tyGenericParam and wanted.genericParamHasConstraints:
wanted = wanted.genericConstraint
let got = arg.typ.skipTypes({tyTypeDesc})
doAssert err.firstMismatch.formal != nil
doAssert wanted != nil
doAssert got != nil
candidates.add " generic parameter mismatch, expected "
candidates.addTypeDeclVerboseMaybe(c.config, wanted)
candidates.add " but got '"
candidates.add renderTree(arg)
candidates.add "' of type: "
candidates.addTypeDeclVerboseMaybe(c.config, got)
if nArg.kind in nkSymChoices:
candidates.add "\n"
candidates.add ambiguousIdentifierMsg(nArg, indent = 2)
if got != nil and got.kind == tyProc and wanted.kind == tyProc:
# These are proc mismatches so,
# add the extra explict detail of the mismatch
candidates.addPragmaAndCallConvMismatch(wanted, got, c.config)
if got != nil:
effectProblem(wanted, got, candidates, c)
candidates.add "\n"
of kUnknown: discard "do not break 'nim check'"
else:
candidates.add(" first type mismatch at position: " & $err.firstMismatch.arg)
if err.firstMismatch.kind in genericParamMismatches:
candidates.add(" in generic parameters")
# candidates.add "\n reason: " & $err.firstMismatch.kind # for debugging
case err.firstMismatch.kind
of kUnknownNamedParam:
@@ -405,16 +306,9 @@ proc presentFailedCandidates(c: PContext, n: PNode, errors: CandidateErrors):
of kPositionalAlreadyGiven: candidates.add("\n positional param was already given as named param")
of kExtraArg: candidates.add("\n extra argument given")
of kMissingParam: candidates.add("\n missing parameter: " & nameParam)
of kExtraGenericParam:
candidates.add("\n extra generic param given")
of kMissingGenericParam:
candidates.add("\n missing generic parameter: " & nameParam)
of kTypeMismatch, kGenericParamTypeMismatch, kVarNeeded:
of kTypeMismatch, kVarNeeded:
doAssert nArg != nil
var wanted = err.firstMismatch.formal.typ
if isGenericMismatch and wanted.kind == tyGenericParam and
wanted.genericParamHasConstraints:
wanted = wanted.genericConstraint
let wanted = err.firstMismatch.formal.typ
doAssert err.firstMismatch.formal != nil
candidates.add("\n required type for " & nameParam & ": ")
candidates.addTypeDeclVerboseMaybe(c.config, wanted)
@@ -425,12 +319,8 @@ proc presentFailedCandidates(c: PContext, n: PNode, errors: CandidateErrors):
else:
candidates.add renderTree(nArg)
candidates.add "' is of type: "
var got = nArg.typ
if isGenericMismatch: got = got.skipTypes({tyTypeDesc})
let got = nArg.typ
candidates.addTypeDeclVerboseMaybe(c.config, got)
if nArg.kind in nkSymChoices:
candidates.add "\n"
candidates.add ambiguousIdentifierMsg(nArg, indent = 2)
doAssert wanted != nil
if got != nil:
if got.kind == tyProc and wanted.kind == tyProc:
@@ -441,8 +331,8 @@ proc presentFailedCandidates(c: PContext, n: PNode, errors: CandidateErrors):
of kUnknown: discard "do not break 'nim check'"
candidates.add "\n"
if err.firstMismatch.arg == 1 and nArg != nil and
nArg.kind == nkTupleConstr and n.kind == nkCommand:
if err.firstMismatch.arg == 1 and nArg.kind == nkTupleConstr and
n.kind == nkCommand:
maybeWrongSpace = true
for diag in err.diagnostics:
candidates.add(diag & "\n")
@@ -519,6 +409,23 @@ proc notFoundError*(c: PContext, n: PNode, errors: CandidateErrors) =
result.add("\n" & errExpectedPosition & "\n" & candidates)
localError(c.config, n.info, result)
proc bracketNotFoundError(c: PContext; n: PNode) =
var errors: CandidateErrors = @[]
var o: TOverloadIter = default(TOverloadIter)
let headSymbol = n[0]
var symx = initOverloadIter(o, c, headSymbol)
while symx != nil:
if symx.kind in routineKinds:
errors.add(CandidateError(sym: symx,
firstMismatch: MismatchInfo(),
diagnostics: @[],
enabled: false))
symx = nextOverloadIter(o, c, headSymbol)
if errors.len == 0:
localError(c.config, n.info, "could not resolve: " & $n)
else:
notFoundError(c, n, errors)
proc getMsgDiagnostic(c: PContext, flags: TExprFlags, n, f: PNode): string =
result = ""
if c.compilesContextId > 0:
@@ -611,8 +518,7 @@ proc resolveOverloads(c: PContext, n, orig: PNode,
if overloadsState == csEmpty and result.state == csEmpty:
if efNoUndeclared notin flags: # for tests/pragmas/tcustom_pragma.nim
result.state = csNoMatch
if c.inGenericContext > 0 and nfExprCall in n.flags:
# untyped expression calls end up here, see #24099
if efNoDiagnostics in flags:
return
# xxx adapt/use errorUndeclaredIdentifierHint(c, n, f.ident)
localError(c.config, n.info, getMsgDiagnostic(c, flags, n, f))
@@ -648,52 +554,14 @@ proc resolveOverloads(c: PContext, n, orig: PNode,
getProcHeader(c.config, alt.calleeSym),
args])
proc bracketNotFoundError(c: PContext; n: PNode; flags: TExprFlags) =
var errors: CandidateErrors = @[]
let headSymbol = n[0]
block:
# we build a closed symchoice of all `[]` overloads for their errors,
# except add a custom error for the magics which always match
var choice = newNodeIT(nkClosedSymChoice, headSymbol.info, newTypeS(tyNone, c))
var o: TOverloadIter = default(TOverloadIter)
var symx = initOverloadIter(o, c, headSymbol)
while symx != nil:
if symx.kind in routineKinds:
if symx.magic in {mArrGet, mArrPut}:
errors.add(CandidateError(sym: symx,
firstMismatch: MismatchInfo(),
diagnostics: @[],
enabled: false))
else:
choice.add newSymNode(symx, headSymbol.info)
symx = nextOverloadIter(o, c, headSymbol)
n[0] = choice
# copied from semOverloadedCallAnalyzeEffects, might be overkill:
const baseFilter = {skProc, skFunc, skMethod, skConverter, skMacro, skTemplate}
let filter =
if flags*{efInTypeof, efWantIterator, efWantIterable} != {}:
baseFilter + {skIterator}
else: baseFilter
# this will add the errors:
var r = resolveOverloads(c, n, n, filter, flags, errors, true)
if errors.len == 0:
localError(c.config, n.info, "could not resolve: " & $n)
else:
notFoundError(c, n, errors)
proc instGenericConvertersArg*(c: PContext, a: PNode, x: TCandidate) =
let a = if a.kind == nkHiddenDeref: a[0] else: a
if a.kind == nkHiddenCallConv and a[0].kind == nkSym:
let s = a[0].sym
if s.isGenericRoutineStrict:
var src = s.typ.firstParamType
var convMatch = newCandidate(c, src)
let srca = typeRel(convMatch, src, a[1].typ)
if srca notin {isEqual, isGeneric, isSubtype}:
internalError(c.config, a.info, "generic converter failed rematch")
let finalCallee = generateInstance(c, s, convMatch.bindings, a.info)
let finalCallee = generateInstance(c, s, x.bindings, a.info)
a[0].sym = finalCallee
a[0].typ() = finalCallee.typ
a[0].typ = finalCallee.typ
#a.typ = finalCallee.typ.returnType
proc instGenericConvertersSons*(c: PContext, n: PNode, x: TCandidate) =
@@ -702,15 +570,6 @@ proc instGenericConvertersSons*(c: PContext, n: PNode, x: TCandidate) =
for i in 1..<n.len:
instGenericConvertersArg(c, n[i], x)
proc markConvertersUsed*(c: PContext, n: PNode) =
assert n.kind in nkCallKinds
for i in 1..<n.len:
var a = n[i]
if a == nil: continue
if a.kind == nkHiddenDeref: a = a[0]
if a.kind == nkHiddenCallConv and a[0].kind == nkSym:
markUsed(c, a.info, a[0].sym)
proc indexTypesMatch(c: PContext, f, a: PType, arg: PNode): PNode =
var m = newCandidate(c, f)
result = paramTypesMatch(m, f, a, arg, nil)
@@ -728,15 +587,15 @@ proc inferWithMetatype(c: PContext, formal: PType,
# This almost exactly replicates the steps taken by the compiler during
# param matching. It performs an embarrassing amount of back-and-forth
# type jugling, but it's the price to pay for consistency and correctness
result.typ() = generateTypeInstance(c, m.bindings, arg.info,
result.typ = generateTypeInstance(c, m.bindings, arg.info,
formal.skipTypes({tyCompositeTypeClass}))
else:
typeMismatch(c.config, arg.info, formal, arg.typ, arg)
# error correction:
result = copyTree(arg)
result.typ() = formal
result.typ = formal
proc updateDefaultParams(c: PContext, call: PNode) =
proc updateDefaultParams(call: PNode) =
# In generic procs, the default parameter may be unique for each
# instantiation (see tlateboundgenericparams).
# After a call is resolved, we need to re-assign any default value
@@ -746,18 +605,8 @@ proc updateDefaultParams(c: PContext, call: PNode) =
let calleeParams = call[0].sym.typ.n
for i in 1..<call.len:
if nfDefaultParam in call[i].flags:
let formal = calleeParams[i].sym
let def = formal.ast
let def = calleeParams[i].sym.ast
if nfDefaultRefsParam in def.flags: call.flags.incl nfDefaultRefsParam
# mirrored with sigmatch:
if def.kind == nkEmpty:
# The default param value is set to empty in `instantiateProcType`
# when the type of the default expression doesn't match the type
# of the instantiated proc param:
pushInfoContext(c.config, call.info, call[0].sym.detailedInfo)
typeMismatch(c.config, def.info, formal.typ, def.typ, formal.ast)
popInfoContext(c.config)
def.typ() = errorType(c)
call[i] = def
proc getCallLineInfo(n: PNode): TLineInfo =
@@ -814,7 +663,7 @@ proc inheritBindings(c: PContext, x: var TCandidate, expectedType: PType) =
if t[i] == nil or u[i] == nil: return
stackPut(t[i], u[i])
of tyGenericParam:
let prebound = x.bindings.lookup(t)
let prebound = x.bindings.idTableGet(t)
if prebound != nil:
continue # Skip param, already bound
@@ -826,7 +675,7 @@ proc inheritBindings(c: PContext, x: var TCandidate, expectedType: PType) =
discard
# update bindings
for i in 0 ..< flatUnbound.len():
x.bindings.put(flatUnbound[i], flatBound[i])
x.bindings.idTablePut(flatUnbound[i], flatBound[i])
proc semResolvedCall(c: PContext, x: var TCandidate,
n: PNode, flags: TExprFlags;
@@ -837,12 +686,12 @@ proc semResolvedCall(c: PContext, x: var TCandidate,
markUsed(c, info, finalCallee)
onUse(info, finalCallee)
assert finalCallee.ast != nil
if x.matchedErrorType:
if x.hasFauxMatch:
result = x.call
result[0] = newSymNode(finalCallee, getCallLineInfo(result[0]))
if containsGenericType(result.typ):
result.typ() = newTypeS(tyError, c)
incl result.typ.flags, tfCheckedForDestructor
if containsGenericType(result.typ) or x.fauxMatch == tyUnknown:
result.typ = newTypeS(x.fauxMatch, c)
if result.typ.kind == tyError: incl result.typ.flags, tfCheckedForDestructor
return
let gp = finalCallee.ast[genericParamsPos]
if gp.isGenericParams:
@@ -868,18 +717,16 @@ proc semResolvedCall(c: PContext, x: var TCandidate,
# this node will be used in template substitution,
# pretend this is an untyped node and let regular sem handle the type
# to prevent problems where a generic parameter is treated as a value
tn.typ() = nil
tn.typ = nil
x.call.add tn
else:
internalAssert c.config, false
result = x.call
instGenericConvertersSons(c, result, x)
markConvertersUsed(c, result)
result[0] = newSymNode(finalCallee, getCallLineInfo(result[0]))
if finalCallee.magic notin {mArrGet, mArrPut}:
result.typ() = finalCallee.typ.returnType
updateDefaultParams(c, result)
result.typ = finalCallee.typ.returnType
updateDefaultParams(result)
proc canDeref(n: PNode): bool {.inline.} =
result = n.len >= 2 and (let t = n[1].typ;
@@ -887,7 +734,7 @@ proc canDeref(n: PNode): bool {.inline.} =
proc tryDeref(n: PNode): PNode =
result = newNodeI(nkHiddenDeref, n.info)
result.typ() = n.typ.skipTypes(abstractInst)[0]
result.typ = n.typ.skipTypes(abstractInst)[0]
result.add n
proc semOverloadedCall(c: PContext, n, nOrig: PNode,
@@ -904,9 +751,9 @@ proc semOverloadedCall(c: PContext, n, nOrig: PNode,
candidates)
result = semResolvedCall(c, r, n, flags, expectedType)
else:
if c.inGenericContext > 0 and c.matchedConcept == nil:
if efDetermineType in flags and c.inGenericContext > 0 and c.matchedConcept == nil:
result = semGenericStmt(c, n)
result.typ() = makeTypeFromExpr(c, result.copyTree)
result.typ = makeTypeFromExpr(c, result.copyTree)
elif efExplain notin flags:
# repeat the overload resolution,
# this time enabling all the diagnostic output (this should fail again)
@@ -921,22 +768,22 @@ proc explicitGenericInstError(c: PContext; n: PNode): PNode =
localError(c.config, getCallLineInfo(n), errCannotInstantiateX % renderTree(n))
result = n
proc explicitGenericSym(c: PContext, n: PNode, s: PSym, errors: var CandidateErrors, doError: bool): PNode =
if s.kind in {skTemplate, skMacro}:
internalError c.config, n.info, "cannot get explicitly instantiated symbol of " &
(if s.kind == skTemplate: "template" else: "macro")
proc explicitGenericSym(c: PContext, n: PNode, s: PSym): PNode =
# binding has to stay 'nil' for this to work!
var m = newCandidate(c, s, nil)
matchGenericParams(m, n, s)
if m.state != csMatch:
# state is csMatch only if *all* generic params were matched,
# including implicit parameters
if doError:
errors.add(CandidateError(
sym: s,
firstMismatch: m.firstMismatch,
diagnostics: m.diagnostics))
return nil
for i in 1..<n.len:
let formal = s.ast[genericParamsPos][i-1].typ
var arg = n[i].typ
# try transforming the argument into a static one before feeding it into
# typeRel
if formal.kind == tyStatic and arg.kind != tyStatic:
let evaluated = c.semTryConstExpr(c, n[i], n[i].typ)
if evaluated != nil:
arg = newTypeS(tyStatic, c, son = evaluated.typ)
arg.n = evaluated
let tm = typeRel(m, formal, arg)
if tm in {isNone, isConvertible}: return nil
var newInst = generateInstance(c, s, m.bindings, n.info)
newInst.typ.flags.excl tfUnresolved
let info = getCallLineInfo(n)
@@ -955,57 +802,46 @@ proc setGenericParams(c: PContext, n, expectedParams: PNode) =
nil
e = semExprWithType(c, n[i], expectedType = constraint)
if e.typ == nil:
n[i].typ() = errorType(c)
n[i].typ = errorType(c)
else:
n[i].typ() = e.typ.skipTypes({tyTypeDesc})
n[i].typ = e.typ.skipTypes({tyTypeDesc})
proc explicitGenericInstantiation(c: PContext, n: PNode, s: PSym, doError: bool): PNode =
proc explicitGenericInstantiation(c: PContext, n: PNode, s: PSym): PNode =
assert n.kind == nkBracketExpr
setGenericParams(c, n, s.ast[genericParamsPos])
var s = s
var a = n[0]
var errors: CandidateErrors = @[]
if a.kind == nkSym:
# common case; check the only candidate has the right
# number of generic type parameters:
result = explicitGenericSym(c, n, s, errors, doError)
if result == nil:
if c.inGenericContext > 0:
# same as in semOverloadedCall, make expression untyped,
# may have failed match due to unresolved types
result = semGenericStmt(c, n)
result.typ() = makeTypeFromExpr(c, result.copyTree)
elif doError:
notFoundError(c, n, errors)
if s.ast[genericParamsPos].safeLen != n.len-1:
let expected = s.ast[genericParamsPos].safeLen
localError(c.config, getCallLineInfo(n), errGenerated, "cannot instantiate: '" & renderTree(n) &
"'; got " & $(n.len-1) & " typeof(s) but expected " & $expected)
return n
result = explicitGenericSym(c, n, s)
if result == nil: result = explicitGenericInstError(c, n)
elif a.kind in {nkClosedSymChoice, nkOpenSymChoice}:
# choose the generic proc with the proper number of type parameters.
# XXX I think this could be improved by reusing sigmatch.paramTypesMatch.
# It's good enough for now.
result = newNodeI(a.kind, getCallLineInfo(n))
for i in 0..<a.len:
var candidate = a[i].sym
if candidate.kind in {skProc, skMethod, skConverter,
skFunc, skIterator}:
let x = explicitGenericSym(c, n, candidate, errors, doError)
if x != nil: result.add(x)
elif c.inGenericContext > 0:
# same as in semOverloadedCall, make expression untyped,
# may have failed match due to unresolved types
# any failing match stops building the symchoice for correctness,
# can also make it untyped from the start
result = semGenericStmt(c, n)
result.typ() = makeTypeFromExpr(c, result.copyTree)
return
# it suffices that the candidate has the proper number of generic
# type parameters:
if candidate.ast[genericParamsPos].safeLen == n.len-1:
let x = explicitGenericSym(c, n, candidate)
if x != nil: result.add(x)
# get rid of nkClosedSymChoice if not ambiguous:
if result.len == 0:
result = nil
if doError:
notFoundError(c, n, errors)
if result.len == 1 and a.kind == nkClosedSymChoice:
result = result[0]
elif result.len == 0: result = explicitGenericInstError(c, n)
# candidateCount != 1: return explicitGenericInstError(c, n)
else:
# probably unreachable: we are trying to instantiate `a` which is not
# a sym/symchoice
if doError:
result = explicitGenericInstError(c, n)
else:
result = nil
result = explicitGenericInstError(c, n)
proc searchForBorrowProc(c: PContext, startScope: PScope, fn: PSym): tuple[s: PSym, state: TBorrowState] =
# Searches for the fn in the symbol table. If the parameter lists are suitable

View File

@@ -9,15 +9,14 @@
## This module contains the data structures for the semantic checking phase.
import std/[tables, intsets, sets, strutils]
import std/[tables, intsets, sets]
when defined(nimPreviewSlimSystem):
import std/assertions
import
options, ast, msgs, idents, renderer,
magicsys, vmdef, modulegraphs, lineinfos, pathutils, layeredtable,
types, lowerings, trees, parampatterns
options, ast, astalgo, msgs, idents, renderer,
magicsys, vmdef, modulegraphs, lineinfos, pathutils
import ic / ic
@@ -74,9 +73,9 @@ type
efNoUndeclared, efIsDotCall, efCannotBeDotCall,
# Use this if undeclared identifiers should not raise an error during
# overload resolution.
efNoDiagnostics,
efTypeAllowed # typeAllowed will be called after
efWantNoDefaults
efIgnoreDefaults # var statements without initialization
efAllowSymChoice # symchoice node should not be resolved
TExprFlags* = set[TExprFlag]
@@ -137,13 +136,9 @@ type
semOverloadedCall*: proc (c: PContext, n, nOrig: PNode,
filter: TSymKinds, flags: TExprFlags, expectedType: PType = nil): PNode {.nimcall.}
semTypeNode*: proc(c: PContext, n: PNode, prev: PType): PType {.nimcall.}
semInferredLambda*: proc(c: PContext, pt: LayeredIdTable, n: PNode): PNode
semGenerateInstance*: proc (c: PContext, fn: PSym, pt: LayeredIdTable,
semInferredLambda*: proc(c: PContext, pt: Table[ItemId, PType], n: PNode): PNode
semGenerateInstance*: proc (c: PContext, fn: PSym, pt: Table[ItemId, PType],
info: TLineInfo): PSym
instantiateOnlyProcType*: proc (c: PContext, pt: LayeredIdTable,
prc: PSym, info: TLineInfo): PType
# used by sigmatch for explicit generic instantiations
fitDefaultNode*: proc (c: PContext, n: var PNode, expectedType: PType)
includedFiles*: IntSet # used to detect recursive include files
pureEnumFields*: TStrTable # pure enum fields that can be used unambiguously
userPragmas*: TStrTable
@@ -173,10 +168,6 @@ type
inUncheckedAssignSection*: int
importModuleLookup*: Table[int, seq[int]] # (module.ident.id, [module.id])
skipTypes*: seq[PNode] # used to skip types between passes in type section. So far only used for inheritance, sets and generic bodies.
inTypeofContext*: int
semAsgnOpr*: proc (c: PContext; n: PNode; k: TNodeKind): PNode {.nimcall.}
TBorrowState* = enum
bsNone, bsReturnNotMatch, bsNoDistinct, bsGeneric, bsNotSupported, bsMatch
@@ -200,29 +191,29 @@ proc getIntLitType*(c: PContext; literal: PNode): PType =
proc setIntLitType*(c: PContext; result: PNode) =
let i = result.intVal
case c.config.target.intSize
of 8: result.typ() = getIntLitType(c, result)
of 8: result.typ = getIntLitType(c, result)
of 4:
if i >= low(int32) and i <= high(int32):
result.typ() = getIntLitType(c, result)
result.typ = getIntLitType(c, result)
else:
result.typ() = getSysType(c.graph, result.info, tyInt64)
result.typ = getSysType(c.graph, result.info, tyInt64)
of 2:
if i >= low(int16) and i <= high(int16):
result.typ() = getIntLitType(c, result)
result.typ = getIntLitType(c, result)
elif i >= low(int32) and i <= high(int32):
result.typ() = getSysType(c.graph, result.info, tyInt32)
result.typ = getSysType(c.graph, result.info, tyInt32)
else:
result.typ() = getSysType(c.graph, result.info, tyInt64)
result.typ = getSysType(c.graph, result.info, tyInt64)
of 1:
# 8 bit CPUs are insane ...
if i >= low(int8) and i <= high(int8):
result.typ() = getIntLitType(c, result)
result.typ = getIntLitType(c, result)
elif i >= low(int16) and i <= high(int16):
result.typ() = getSysType(c.graph, result.info, tyInt16)
result.typ = getSysType(c.graph, result.info, tyInt16)
elif i >= low(int32) and i <= high(int32):
result.typ() = getSysType(c.graph, result.info, tyInt32)
result.typ = getSysType(c.graph, result.info, tyInt32)
else:
result.typ() = getSysType(c.graph, result.info, tyInt64)
result.typ = getSysType(c.graph, result.info, tyInt64)
else:
internalError(c.config, result.info, "invalid int size")
@@ -454,7 +445,7 @@ when false:
proc makeStaticExpr*(c: PContext, n: PNode): PNode =
result = newNodeI(nkStaticExpr, n.info)
result.sons = @[n]
result.typ() = if n.typ != nil and n.typ.kind == tyStatic: n.typ
result.typ = if n.typ != nil and n.typ.kind == tyStatic: n.typ
else: newTypeS(tyStatic, c, n.typ)
proc makeAndType*(c: PContext, t1, t2: PType): PType =
@@ -513,7 +504,7 @@ proc errorType*(c: PContext): PType =
proc errorNode*(c: PContext, n: PNode): PNode =
result = newNodeI(nkEmpty, n.info)
result.typ() = errorType(c)
result.typ = errorType(c)
# These mimic localError
template localErrorNode*(c: PContext, n: PNode, info: TLineInfo, msg: TMsgKind, arg: string): PNode =
@@ -534,11 +525,10 @@ template localErrorNode*(c: PContext, n: PNode, arg: string): PNode =
liMessage(c.config, n2.info, errGenerated, arg, doNothing, instLoc())
errorNode(c, n2)
when false:
proc fillTypeS*(dest: PType, kind: TTypeKind, c: PContext) =
dest.kind = kind
dest.owner = getCurrOwner(c)
dest.size = - 1
proc fillTypeS*(dest: PType, kind: TTypeKind, c: PContext) =
dest.kind = kind
dest.owner = getCurrOwner(c)
dest.size = - 1
proc makeRangeType*(c: PContext; first, last: BiggestInt;
info: TLineInfo; intType: PType = nil): PType =
@@ -569,7 +559,7 @@ proc symFromType*(c: PContext; t: PType, info: TLineInfo): PSym =
proc symNodeFromType*(c: PContext, t: PType, info: TLineInfo): PNode =
result = newSymNode(symFromType(c, t, info), info)
result.typ() = makeTypeDesc(c, t)
result.typ = makeTypeDesc(c, t)
proc markIndirect*(c: PContext, s: PSym) {.inline.} =
if s.kind in {skProc, skFunc, skConverter, skMethod, skIterator}:
@@ -639,166 +629,3 @@ proc rememberExpansion*(c: PContext; info: TLineInfo; expandedSym: PSym) =
## delegated to the "rod" file mechanism.
if c.config.symbolFiles != disabledSf:
storeExpansion(c.encoder, c.packedRepr, info, expandedSym)
const
errVarForOutParamNeededX = "for a 'var' type a variable needs to be passed; but '$1' is immutable"
errXStackEscape = "address of '$1' may not escape its stack frame"
proc renderNotLValue*(n: PNode): string =
result = $n
let n = if n.kind == nkHiddenDeref: n[0] else: n
if n.kind == nkHiddenCallConv and n.len > 1:
result = $n[0] & "(" & result & ")"
elif n.kind in {nkHiddenStdConv, nkHiddenSubConv} and n.len == 2:
result = typeToString(n.typ.skipTypes(abstractVar)) & "(" & result & ")"
proc isAssignable(c: PContext, n: PNode): TAssignableResult =
result = parampatterns.isAssignable(c.p.owner, n)
proc newHiddenAddrTaken(c: PContext, n: PNode, isOutParam: bool): PNode =
if n.kind == nkHiddenDeref and not (c.config.backend == backendCpp or
sfCompileToCpp in c.module.flags):
checkSonsLen(n, 1, c.config)
result = n[0]
else:
result = newNodeIT(nkHiddenAddr, n.info, makeVarType(c, n.typ))
result.add n
let aa = isAssignable(c, n)
let sym = getRoot(n)
if aa notin {arLValue, arLocalLValue}:
if aa == arDiscriminant and c.inUncheckedAssignSection > 0:
discard "allow access within a cast(unsafeAssign) section"
elif strictDefs in c.features and aa == arAddressableConst and
sym != nil and sym.kind == skLet and isOutParam:
discard "allow let varaibles to be passed to out parameters"
else:
localError(c.config, n.info, errVarForOutParamNeededX % renderNotLValue(n))
proc analyseIfAddressTaken(c: PContext, n: PNode, isOutParam: bool): PNode =
result = n
case n.kind
of nkSym:
# n.sym.typ can be nil in 'check' mode ...
if n.sym.typ != nil and
skipTypes(n.sym.typ, abstractInst-{tyTypeDesc}).kind notin {tyVar, tyLent}:
incl(n.sym.flags, sfAddrTaken)
result = newHiddenAddrTaken(c, n, isOutParam)
of nkDotExpr:
checkSonsLen(n, 2, c.config)
if n[1].kind != nkSym:
internalError(c.config, n.info, "analyseIfAddressTaken")
return
if skipTypes(n[1].sym.typ, abstractInst-{tyTypeDesc}).kind notin {tyVar, tyLent}:
incl(n[1].sym.flags, sfAddrTaken)
result = newHiddenAddrTaken(c, n, isOutParam)
of nkBracketExpr:
checkMinSonsLen(n, 1, c.config)
if skipTypes(n[0].typ, abstractInst-{tyTypeDesc}).kind notin {tyVar, tyLent}:
if n[0].kind == nkSym: incl(n[0].sym.flags, sfAddrTaken)
result = newHiddenAddrTaken(c, n, isOutParam)
else:
result = newHiddenAddrTaken(c, n, isOutParam)
proc analyseIfAddressTakenInCall*(c: PContext, n: PNode, isConverter = false) =
checkMinSonsLen(n, 1, c.config)
if n[0].typ == nil:
# n[0] might be erroring node in nimsuggest
return
const
FakeVarParams = {mNew, mNewFinalize, mInc, ast.mDec, mIncl, mExcl,
mSetLengthStr, mSetLengthSeq, mAppendStrCh, mAppendStrStr, mSwap,
mAppendSeqElem, mNewSeq, mShallowCopy, mDeepCopy, mMove, mWasMoved}
template checkIfConverterCalled(c: PContext, n: PNode) =
## Checks if there is a converter call which wouldn't be checked otherwise
# Call can sometimes be wrapped in a deref
let node = if n.kind == nkHiddenDeref: n[0] else: n
if node.kind == nkHiddenCallConv:
analyseIfAddressTakenInCall(c, node, true)
# get the real type of the callee
# it may be a proc var with a generic alias type, so we skip over them
var t = n[0].typ.skipTypes({tyGenericInst, tyAlias, tySink})
if n[0].kind == nkSym and n[0].sym.magic in FakeVarParams:
# BUGFIX: check for L-Value still needs to be done for the arguments!
# note sometimes this is eval'ed twice so we check for nkHiddenAddr here:
for i in 1..<n.len:
if i < t.len and t[i] != nil and
skipTypes(t[i], abstractInst-{tyTypeDesc}).kind in {tyVar}:
let it = n[i]
let aa = isAssignable(c, it)
if aa notin {arLValue, arLocalLValue}:
if it.kind != nkHiddenAddr:
if aa == arDiscriminant and c.inUncheckedAssignSection > 0:
discard "allow access within a cast(unsafeAssign) section"
else:
localError(c.config, it.info, errVarForOutParamNeededX % $it)
# Make sure to still check arguments for converters
c.checkIfConverterCalled(n[i])
# bug #5113: disallow newSeq(result) where result is a 'var T':
if n[0].sym.magic in {mNew, mNewFinalize, mNewSeq}:
var arg = n[1] #.skipAddr
if arg.kind == nkHiddenDeref: arg = arg[0]
if arg.kind == nkSym and arg.sym.kind == skResult and
arg.typ.skipTypes(abstractInst).kind in {tyVar, tyLent}:
localError(c.config, n.info, errXStackEscape % renderTree(n[1], {renderNoComments}))
return
for i in 1..<n.len:
let n = if n.kind == nkHiddenDeref: n[0] else: n
c.checkIfConverterCalled(n[i])
if i < t.len and
skipTypes(t[i], abstractInst-{tyTypeDesc}).kind in {tyVar}:
# Converters wrap var parameters in nkHiddenAddr but they haven't been analysed yet.
# So we need to make sure we are checking them still when in a converter call
if n[i].kind != nkHiddenAddr or isConverter:
n[i] = analyseIfAddressTaken(c, n[i].skipAddr(), isOutParam(skipTypes(t[i], abstractInst-{tyTypeDesc})))
proc replaceHookMagic*(c: PContext, n: PNode, kind: TTypeAttachedOp): PNode =
## Replaces builtin generic hooks with lifted hooks.
case kind
of attachedDestructor:
result = n
let t = n[1].typ.skipTypes(abstractVar)
let op = getAttachedOp(c.graph, t, attachedDestructor)
if op != nil:
result[0] = newSymNode(op)
if op.typ != nil and op.typ.len == 2 and op.typ.firstParamType.kind != tyVar:
if n[1].kind == nkSym and n[1].sym.kind == skParam and
n[1].typ.kind == tyVar:
result[1] = genDeref(n[1])
else:
result[1] = skipAddr(n[1])
of attachedTrace:
result = n
let t = n[1].typ.skipTypes(abstractVar)
let op = getAttachedOp(c.graph, t, attachedTrace)
if op != nil:
result[0] = newSymNode(op)
of attachedDup:
result = n
let t = n[1].typ.skipTypes(abstractVar)
let op = getAttachedOp(c.graph, t, attachedDup)
if op != nil:
result[0] = newSymNode(op)
if op.typ.len == 3:
let boolLit = newIntLit(c.graph, n.info, 1)
boolLit.typ() = getSysType(c.graph, n.info, tyBool)
result.add boolLit
of attachedWasMoved:
result = n
let t = n[1].typ.skipTypes(abstractVar)
let op = getAttachedOp(c.graph, t, attachedWasMoved)
if op != nil:
result[0] = newSymNode(op)
analyseIfAddressTakenInCall(c, result, false)
of attachedSink:
result = c.semAsgnOpr(c, n, nkSinkAsgn)
of attachedAsgn:
result = c.semAsgnOpr(c, n, nkAsgn)
of attachedDeepCopy:
result = n
let t = n[1].typ.skipTypes(abstractVar)
let op = getAttachedOp(c.graph, t, kind)
if op != nil:
result[0] = newSymNode(op)

File diff suppressed because it is too large Load Diff

View File

@@ -18,15 +18,6 @@ type
replaceByFieldName: bool
c: PContext
proc wrapNewScope(c: PContext, n: PNode): PNode {.inline.} =
# use `if true` to not interfere with `break`
# just opening scope via `openScope(c)` isn't enough,
# a scope has to be opened in the codegen as well for reused
# template instantiations
let trueLit = newIntLit(c.graph, n.info, 1)
trueLit.typ() = getSysType(c.graph, n.info, tyBool)
result = newTreeI(nkIfStmt, n.info, newTreeI(nkElifBranch, n.info, trueLit, n))
proc instFieldLoopBody(c: TFieldInstCtx, n: PNode, forLoop: PNode): PNode =
if c.field != nil and isEmptyType(c.field.typ):
result = newNode(nkEmpty)
@@ -36,8 +27,7 @@ proc instFieldLoopBody(c: TFieldInstCtx, n: PNode, forLoop: PNode): PNode =
of nkIdent, nkSym:
result = n
let ident = considerQuotedIdent(c.c, n)
if c.replaceByFieldName and
ident.id != ord(wUnderscore):
if c.replaceByFieldName:
if ident.id == considerQuotedIdent(c.c, forLoop[0]).id:
let fieldName = if c.tupleType.isNil: c.field.name.s
elif c.tupleType.n.isNil: "Field" & $c.tupleIndex
@@ -46,8 +36,7 @@ proc instFieldLoopBody(c: TFieldInstCtx, n: PNode, forLoop: PNode): PNode =
return
# other fields:
for i in ord(c.replaceByFieldName)..<forLoop.len-2:
if ident.id == considerQuotedIdent(c.c, forLoop[i]).id and
ident.id != ord(wUnderscore):
if ident.id == considerQuotedIdent(c.c, forLoop[i]).id:
var call = forLoop[^2]
var tupl = call[i+1-ord(c.replaceByFieldName)]
if c.field.isNil:
@@ -83,9 +72,7 @@ proc semForObjectFields(c: TFieldsCtx, typ, forLoop, father: PNode) =
)
openScope(c.c)
inc c.c.inUnrolledContext
var body = instFieldLoopBody(fc, lastSon(forLoop), forLoop)
# new scope for each field that codegen should know about:
body = wrapNewScope(c.c, body)
let body = instFieldLoopBody(fc, lastSon(forLoop), forLoop)
father.add(semStmt(c.c, body, {}))
dec c.c.inUnrolledContext
closeScope(c.c)
@@ -161,8 +148,6 @@ proc semForFields(c: PContext, n: PNode, m: TMagic): PNode =
replaceByFieldName: m == mFieldPairs
)
var body = instFieldLoopBody(fc, loopBody, n)
# new scope for each field that codegen should know about:
body = wrapNewScope(c, body)
inc c.inUnrolledContext
stmts.add(semStmt(c, body, {}))
dec c.inUnrolledContext

View File

@@ -38,7 +38,7 @@ proc newIntNodeT*(intVal: Int128, n: PNode; idgen: IdGenerator; g: ModuleGraph):
# original type was 'int', not a distinct int etc.
if n.typ.kind == tyInt:
# access cache for the int lit type
result.typ() = getIntLitTypeG(g, result, idgen)
result.typ = getIntLitTypeG(g, result, idgen)
result.info = n.info
proc newFloatNodeT*(floatVal: BiggestFloat, n: PNode; g: ModuleGraph): PNode =
@@ -46,12 +46,12 @@ proc newFloatNodeT*(floatVal: BiggestFloat, n: PNode; g: ModuleGraph): PNode =
result = newFloatNode(nkFloat32Lit, floatVal)
else:
result = newFloatNode(nkFloatLit, floatVal)
result.typ() = n.typ
result.typ = n.typ
result.info = n.info
proc newStrNodeT*(strVal: string, n: PNode; g: ModuleGraph): PNode =
result = newStrNode(nkStrLit, strVal)
result.typ() = n.typ
result.typ = n.typ
result.info = n.info
proc getConstExpr*(m: PSym, n: PNode; idgen: IdGenerator; g: ModuleGraph): PNode
@@ -302,9 +302,6 @@ proc evalOp(m: TMagic, n, a, b, c: PNode; idgen: IdGenerator; g: ModuleGraph): P
of mMinusSet:
result = nimsets.diffSets(g.config, a, b)
result.info = n.info
of mXorSet:
result = nimsets.symdiffSets(g.config, a, b)
result.info = n.info
of mConStrStr: result = newStrNodeT(getStrOrChar(a) & getStrOrChar(b), n, g)
of mInSet: result = newIntNodeT(toInt128(ord(inSet(a, b))), n, idgen, g)
of mRepr:
@@ -319,7 +316,7 @@ proc evalOp(m: TMagic, n, a, b, c: PNode; idgen: IdGenerator; g: ModuleGraph): P
of mEnumToStr: result = newStrNodeT(ordinalValToString(a, g), n, g)
of mArrToSeq:
result = copyTree(a)
result.typ() = n.typ
result.typ = n.typ
of mCompileOption:
result = newIntNodeT(toInt128(ord(commands.testCompileOption(g.config, a.getStr, n.info))), n, idgen, g)
of mCompileOptionArg:
@@ -414,7 +411,7 @@ proc foldConv(n, a: PNode; idgen: IdGenerator; g: ModuleGraph; check = false): P
result = newIntNodeT(toInt128(a.getOrdValue != 0), n, idgen, g)
of tyBool, tyEnum: # xxx shouldn't we disallow `tyEnum`?
result = a
result.typ() = n.typ
result.typ = n.typ
else:
raiseAssert $srcTyp.kind
of tyInt..tyInt64, tyUInt..tyUInt64:
@@ -423,17 +420,14 @@ proc foldConv(n, a: PNode; idgen: IdGenerator; g: ModuleGraph; check = false): P
result = newIntNodeT(toInt128(getFloat(a)), n, idgen, g)
of tyChar, tyUInt..tyUInt64, tyInt..tyInt64:
var val = a.getOrdValue
if check: rangeCheck(n, val, g)
result = newIntNodeT(val, n, idgen, g)
if dstTyp.kind in {tyUInt..tyUInt64}:
result = newIntNodeT(maskBytes(val, int getSize(g.config, dstTyp)), n, idgen, g)
result.transitionIntKind(nkUIntLit)
else:
if check: rangeCheck(n, val, g)
result = newIntNodeT(val, n, idgen, g)
else:
result = a
result.typ() = n.typ
if check and result.kind in {nkCharLit..nkUInt64Lit} and
dstTyp.kind notin {tyUInt..tyUInt64}:
result.typ = n.typ
if check and result.kind in {nkCharLit..nkUInt64Lit}:
rangeCheck(n, getInt(result), g)
of tyFloat..tyFloat64:
case srcTyp.kind
@@ -441,12 +435,12 @@ proc foldConv(n, a: PNode; idgen: IdGenerator; g: ModuleGraph; check = false): P
result = newFloatNodeT(toFloat64(getOrdValue(a)), n, g)
else:
result = a
result.typ() = n.typ
result.typ = n.typ
of tyOpenArray, tyVarargs, tyProc, tyPointer:
result = nil
else:
result = a
result.typ() = n.typ
result.typ = n.typ
proc getArrayConstr(m: PSym, n: PNode; idgen: IdGenerator; g: ModuleGraph): PNode =
if n.kind == nkBracket:
@@ -471,20 +465,19 @@ proc foldArrayAccess(m: PSym, n: PNode; idgen: IdGenerator; g: ModuleGraph): PNo
if result.kind == nkExprColonExpr: result = result[1]
else:
result = nil
#localError(g.config, n.info, formatErrorIndexBound(idx, x.len-1) & $n)
localError(g.config, n.info, formatErrorIndexBound(idx, x.len-1) & $n)
of nkBracket:
idx -= toInt64(firstOrd(g.config, x.typ))
if idx >= 0 and idx < x.len: result = x[int(idx)]
else:
result = nil
#localError(g.config, n.info, formatErrorIndexBound(idx, x.len-1) & $n)
localError(g.config, n.info, formatErrorIndexBound(idx, x.len-1) & $n)
of nkStrLit..nkTripleStrLit:
result = newNodeIT(nkCharLit, x.info, n.typ)
if idx >= 0 and idx < x.strVal.len:
result.intVal = ord(x.strVal[int(idx)])
else:
result = nil
#localError(g.config, n.info, formatErrorIndexBound(idx, x.strVal.len-1) & $n)
localError(g.config, n.info, formatErrorIndexBound(idx, x.strVal.len-1) & $n)
else: result = nil
proc foldFieldAccess(m: PSym, n: PNode; idgen: IdGenerator; g: ModuleGraph): PNode =
@@ -518,10 +511,10 @@ proc foldConStrStr(m: PSym, n: PNode; idgen: IdGenerator; g: ModuleGraph): PNode
proc newSymNodeTypeDesc*(s: PSym; idgen: IdGenerator; info: TLineInfo): PNode =
result = newSymNode(s, info)
if s.typ.kind != tyTypeDesc:
result.typ() = newType(tyTypeDesc, idgen, s.owner)
result.typ = newType(tyTypeDesc, idgen, s.owner)
result.typ.addSonSkipIntLit(s.typ, idgen)
else:
result.typ() = s.typ
result.typ = s.typ
proc foldDefine(m, s: PSym, n: PNode; idgen: IdGenerator; g: ModuleGraph): PNode =
result = nil
@@ -590,7 +583,7 @@ proc foldDefine(m, s: PSym, n: PNode; idgen: IdGenerator; g: ModuleGraph): PNode
raise newException(ValueError, "invalid enum value: " & str)
else:
localError(g.config, s.info, "unsupported type $1 for define '$2'" %
[typeToString(rawTyp), name])
[name, typeToString(rawTyp)])
except ValueError as e:
localError(g.config, s.info,
"could not process define '$1' of type $2; $3" %
@@ -640,7 +633,7 @@ proc getConstExpr(m: PSym, n: PNode; idgen: IdGenerator; g: ModuleGraph): PNode
if s.typ.kind == tyStatic:
if s.typ.n != nil and tfUnresolved notin s.typ.flags:
result = s.typ.n
result.typ() = s.typ.base
result.typ = s.typ.base
elif s.typ.isIntLit:
result = s.typ.n
else:
@@ -753,9 +746,7 @@ proc getConstExpr(m: PSym, n: PNode; idgen: IdGenerator; g: ModuleGraph): PNode
if a == nil: return
if leValueConv(n[1], a) and leValueConv(a, n[2]):
result = a # a <= x and x <= b
result.typ() = n.typ
elif n.typ.kind in {tyUInt..tyUInt64}:
discard "don't check uints"
result.typ = n.typ
else:
localError(g.config, n.info,
"conversion from $1 to $2 is invalid" %
@@ -764,7 +755,7 @@ proc getConstExpr(m: PSym, n: PNode; idgen: IdGenerator; g: ModuleGraph): PNode
var a = getConstExpr(m, n[0], idgen, g)
if a == nil: return
result = a
result.typ() = n.typ
result.typ = n.typ
of nkHiddenStdConv, nkHiddenSubConv, nkConv:
var a = getConstExpr(m, n[1], idgen, g)
if a == nil: return
@@ -781,7 +772,7 @@ proc getConstExpr(m: PSym, n: PNode; idgen: IdGenerator; g: ModuleGraph): PNode
not (n.typ.kind == tyProc and a.typ.kind == tyProc):
# we allow compile-time 'cast' for pointer types:
result = a
result.typ() = n.typ
result.typ = n.typ
of nkBracketExpr: result = foldArrayAccess(m, n, idgen, g)
of nkDotExpr: result = foldFieldAccess(m, n, idgen, g)
of nkCheckedFieldExpr:

View File

@@ -61,7 +61,6 @@ template canOpenSym(s): bool =
proc semGenericStmtSymbol(c: PContext, n: PNode, s: PSym,
ctx: var GenericCtx; flags: TSemGenericFlags,
isAmbiguous: bool,
fromDotExpr=false): PNode =
result = nil
semIdeForTemplateOrGenericCheck(c.config, n, ctx.cursorInBody)
@@ -74,14 +73,8 @@ proc semGenericStmtSymbol(c: PContext, n: PNode, s: PSym,
else:
result = symChoice(c, n, s, scOpen)
if canOpenSym(s):
if openSym in c.features:
if result.kind == nkSym:
result = newOpenSym(result)
else:
result.typ() = nil
else:
result.flags.incl nfDisabledOpenSym
result.typ() = nil
result.flags.incl nfOpenSym
if result.kind == nkSym: result.typ = nil
case s.kind
of skUnknown:
# Introduced in this pass! Leave it as an identifier.
@@ -105,28 +98,13 @@ proc semGenericStmtSymbol(c: PContext, n: PNode, s: PSym,
if s.typ != nil and s.typ.kind == tyStatic:
if s.typ.n != nil:
result = s.typ.n
elif c.inGenericContext > 0 and withinConcept notin flags:
# don't leave generic param as identifier node in generic type,
# sigmatch will try to instantiate generic type AST without all params
# fine to give a symbol node a generic type here since
# we are in a generic context and `prepareNode` will be called
result = newSymNodeTypeDesc(s, c.idgen, n.info)
if canOpenSym(result.sym):
if openSym in c.features:
result = newOpenSym(result)
else:
result.flags.incl nfDisabledOpenSym
result.typ() = nil
else:
result = n
else:
result = newSymNodeTypeDesc(s, c.idgen, n.info)
if canOpenSym(result.sym):
if openSym in c.features:
result = newOpenSym(result)
else:
result.flags.incl nfDisabledOpenSym
result.typ() = nil
result.flags.incl nfOpenSym
result.typ = nil
onUse(n.info, s)
of skParam:
result = n
@@ -134,41 +112,18 @@ proc semGenericStmtSymbol(c: PContext, n: PNode, s: PSym,
of skType:
if (s.typ != nil) and
(s.typ.flags * {tfGenericTypeParam, tfImplicitTypeParam} == {}):
if isAmbiguous:
# ambiguous types should be symchoices since lookup behaves
# differently for them in regular expressions
maybeDotChoice(c, n, s, fromDotExpr)
return
result = newSymNodeTypeDesc(s, c.idgen, n.info)
if canOpenSym(result.sym):
if openSym in c.features:
result = newOpenSym(result)
else:
result.flags.incl nfDisabledOpenSym
result.typ() = nil
elif c.inGenericContext > 0 and withinConcept notin flags:
# don't leave generic param as identifier node in generic type,
# sigmatch will try to instantiate generic type AST without all params
# fine to give a symbol node a generic type here since
# we are in a generic context and `prepareNode` will be called
result = newSymNodeTypeDesc(s, c.idgen, n.info)
if canOpenSym(result.sym):
if openSym in c.features:
result = newOpenSym(result)
else:
result.flags.incl nfDisabledOpenSym
result.typ() = nil
result.flags.incl nfOpenSym
result.typ = nil
else:
result = n
onUse(n.info, s)
else:
result = newSymNode(s, n.info)
if canOpenSym(result.sym):
if openSym in c.features:
result = newOpenSym(result)
else:
result.flags.incl nfDisabledOpenSym
result.typ() = nil
result.flags.incl nfOpenSym
result.typ = nil
onUse(n.info, s)
proc lookup(c: PContext, n: PNode, flags: TSemGenericFlags,
@@ -190,7 +145,7 @@ proc lookup(c: PContext, n: PNode, flags: TSemGenericFlags,
elif s.isMixedIn:
result = symChoice(c, n, s, scForceOpen)
else:
result = semGenericStmtSymbol(c, n, s, ctx, flags, amb)
result = semGenericStmtSymbol(c, n, s, ctx, flags)
# else: leave as nkIdent
proc newDot(n, b: PNode): PNode =
@@ -206,11 +161,10 @@ proc fuzzyLookup(c: PContext, n: PNode, flags: TSemGenericFlags,
let luf = if withinMixin notin flags: {checkUndeclared, checkModule} else: {checkModule}
c.isAmbiguous = false
var s = qualifiedLookUp(c, n, luf)
if s != nil:
isMacro = s.kind in {skTemplate, skMacro}
result = semGenericStmtSymbol(c, n, s, ctx, flags, c.isAmbiguous)
result = semGenericStmtSymbol(c, n, s, ctx, flags)
else:
n[0] = semGenericStmt(c, n[0], flags, ctx)
result = n
@@ -218,27 +172,30 @@ proc fuzzyLookup(c: PContext, n: PNode, flags: TSemGenericFlags,
let ident = considerQuotedIdent(c, n)
# could be type conversion if like a.T and not a.T()
let symKinds = if inCall: routineKinds else: routineKinds+{skType}
var candidates = selectFromScopesElseAll(c, ident, symKinds)
var candidates = searchInScopesFilterBy(c, ident, symKinds)
if candidates.len > 0:
let s = candidates[0] # XXX take into account the other candidates!
isMacro = s.kind in {skTemplate, skMacro}
if withinBind in flags or s.id in ctx.toBind:
if s.kind == skType: # don't put types in sym choice
var ambig = false
if candidates.len > 1:
let s2 = searchInScopes(c, ident, ambig)
result = newDot(result, semGenericStmtSymbol(c, n, s, ctx, flags,
isAmbiguous = ambig, fromDotExpr = true))
result = newDot(result, semGenericStmtSymbol(c, n, s, ctx, flags, fromDotExpr=true))
else:
result = newDot(result, symChoice(c, n, s, scClosed))
elif s.isMixedIn:
result = newDot(result, symChoice(c, n, s, scForceOpen))
else:
var ambig = false
if s.kind == skType and candidates.len > 1:
discard searchInScopes(c, ident, ambig)
let syms = semGenericStmtSymbol(c, n, s, ctx, flags,
isAmbiguous = ambig, fromDotExpr = true)
var ambig = false
let s2 = searchInScopes(c, ident, ambig)
if ambig:
# this is a type conversion like a.T where T is ambiguous with
# other types or routines
# in regular code, this never considers a type conversion and
# skips to routine overloading
# so symchoices are used which behave similarly with type symbols
result = newDot(result, symChoice(c, n, s, scForceOpen))
return
let syms = semGenericStmtSymbol(c, n, s, ctx, flags, fromDotExpr=true)
result = newDot(result, syms)
proc addTempDecl(c: PContext; n: PNode; kind: TSymKind) =
@@ -305,9 +262,7 @@ proc semGenericStmt(c: PContext, n: PNode,
# check if it is an expression macro:
checkMinSonsLen(n, 1, c.config)
let fn = n[0]
c.isAmbiguous = false
var s = qualifiedLookUp(c, fn, {})
let ambig = c.isAmbiguous
if s == nil and
{withinMixin, withinConcept}*flags == {} and
fn.kind in {nkIdent, nkAccQuoted} and
@@ -360,12 +315,7 @@ proc semGenericStmt(c: PContext, n: PNode,
of skType:
# bad hack for generics:
if (s.typ != nil) and (s.typ.kind != tyGenericParam):
if ambig:
# ambiguous types should be symchoices since lookup behaves
# differently for them in regular expressions
result[0] = sc
else:
result[0] = newSymNodeTypeDesc(s, c.idgen, fn.info)
result[0] = newSymNodeTypeDesc(s, c.idgen, fn.info)
onUse(fn.info, s)
first = 1
else:
@@ -613,27 +563,9 @@ proc semGenericStmt(c: PContext, n: PNode,
else:
body = getBody(c.graph, s)
else: body = n[bodyPos]
let bodyFlags = if n.kind == nkTemplateDef: flags + {withinMixin} else: flags
n[bodyPos] = semGenericStmtScope(c, body, bodyFlags, ctx)
n[bodyPos] = semGenericStmtScope(c, body, flags, ctx)
closeScope(c)
of nkPragmaExpr:
result[1] = semGenericStmt(c, n[1], flags, ctx)
of nkPragma:
for i in 0 ..< n.len:
let x = n[i]
let prag = whichPragma(x)
if x.kind in nkPragmaCallKinds:
# process each child individually to prevent untyped macros/templates
# from instantiating
# if pragma is language-level pragma, skip name node:
let start = ord(prag != wInvalid)
for j in start ..< x.len:
# treat as mixin context for user pragmas & macro args
x[j] = semGenericStmt(c, x[j], flags+{withinMixin}, ctx)
elif prag == wInvalid:
# only sem if not a language-level pragma
# treat as mixin context for user pragmas & macro args
result[i] = semGenericStmt(c, x, flags+{withinMixin}, ctx)
of nkPragma, nkPragmaExpr: discard
of nkExprColonExpr, nkExprEqExpr:
checkMinSonsLen(n, 2, c.config)
result[1] = semGenericStmt(c, n[1], flags, ctx)

View File

@@ -34,7 +34,7 @@ proc pushProcCon*(c: PContext; owner: PSym) =
const
errCannotInstantiateX = "cannot instantiate: '$1'"
iterator instantiateGenericParamList(c: PContext, n: PNode, pt: LayeredIdTable): PSym =
iterator instantiateGenericParamList(c: PContext, n: PNode, pt: TypeMapping): PSym =
internalAssert c.config, n.kind == nkGenericParams
for a in n.items:
internalAssert c.config, a.kind == nkSym
@@ -43,7 +43,7 @@ iterator instantiateGenericParamList(c: PContext, n: PNode, pt: LayeredIdTable):
let symKind = if q.typ.kind == tyStatic: skConst else: skType
var s = newSym(symKind, q.name, c.idgen, getCurrOwner(c), q.info)
s.flags.incl {sfUsed, sfFromGeneric}
var t = lookup(pt, q.typ)
var t = idTableGet(pt, q.typ)
if t == nil:
if tfRetType in q.typ.flags:
# keep the generic type and allow the return type to be bound
@@ -53,9 +53,7 @@ iterator instantiateGenericParamList(c: PContext, n: PNode, pt: LayeredIdTable):
if q.typ.kind != tyCompositeTypeClass:
localError(c.config, a.info, errCannotInstantiateX % s.name.s)
t = errorType(c)
elif t.kind in {tyGenericParam, tyConcept, tyFromExpr} or
# generic body types are accepted as typedesc arguments
(t.kind == tyGenericBody and q.typ.kind != tyTypeDesc):
elif t.kind in {tyGenericParam, tyConcept}:
localError(c.config, a.info, errCannotInstantiateX % q.name.s)
t = errorType(c)
elif isUnresolvedStatic(t) and (q.typ.kind == tyStatic or
@@ -111,7 +109,7 @@ proc freshGenSyms(c: PContext; n: PNode, owner, orig: PSym, symMap: var SymMappi
elif s.owner == nil or s.owner.kind == skPackage:
#echo "copied this ", s.name.s
x = copySym(s, c.idgen)
setOwner(x, owner)
x.owner = owner
idTablePut(symMap, s, x)
n.sym = x
else:
@@ -222,7 +220,7 @@ proc referencesAnotherParam(n: PNode, p: PSym): bool =
if referencesAnotherParam(n[i], p): return true
return false
proc instantiateProcType(c: PContext, pt: LayeredIdTable,
proc instantiateProcType(c: PContext, pt: TypeMapping,
prc: PSym, info: TLineInfo) =
# XXX: Instantiates a generic proc signature, while at the same
# time adding the instantiated proc params into the current scope.
@@ -239,7 +237,7 @@ proc instantiateProcType(c: PContext, pt: LayeredIdTable,
# will need to use openScope, addDecl, etc.
#addDecl(c, prc)
pushInfoContext(c.config, info)
var typeMap = shallowCopy(pt) # use previous bindings without writing to them
var typeMap = initLayeredTypeMap(pt)
var cl = initTypeVars(c, typeMap, info, nil)
var result = instCopyType(cl, prc.typ)
let originalParams = result.n
@@ -255,15 +253,9 @@ proc instantiateProcType(c: PContext, pt: LayeredIdTable,
var typeToFit = resulti
let needsStaticSkipping = resulti.kind == tyFromExpr
let needsTypeDescSkipping = resulti.kind == tyTypeDesc and tfUnresolved in resulti.flags
if resulti.kind == tyFromExpr:
resulti.flags.incl tfNonConstExpr
result[i] = replaceTypeVarsT(cl, resulti)
if needsStaticSkipping:
result[i] = result[i].skipTypes({tyStatic})
if needsTypeDescSkipping:
result[i] = result[i].skipTypes({tyTypeDesc})
typeToFit = result[i]
# ...otherwise, we use the instantiated type in `fitNode`
if (typeToFit.kind != tyTypeDesc or typeToFit.base.kind != tyNone) and
@@ -273,7 +265,7 @@ proc instantiateProcType(c: PContext, pt: LayeredIdTable,
internalAssert c.config, originalParams[i].kind == nkSym
let oldParam = originalParams[i].sym
let param = copySym(oldParam, c.idgen)
setOwner(param, prc)
param.owner = prc
param.typ = result[i]
# The default value is instantiated and fitted against the final
@@ -281,10 +273,9 @@ proc instantiateProcType(c: PContext, pt: LayeredIdTable,
# call head symbol, because this leads to infinite recursion.
if oldParam.ast != nil:
var def = oldParam.ast.copyTree
if def.typ.kind == tyFromExpr:
def.typ.flags.incl tfNonConstExpr
if not isIntLit(def.typ):
def = prepareNode(cl, def)
if def.kind in nkCallKinds:
for i in 1..<def.len:
def[i] = replaceTypeVarsN(cl, def[i], 1)
# allow symchoice since node will be fit later
# although expectedType should cover it
@@ -301,15 +292,11 @@ proc instantiateProcType(c: PContext, pt: LayeredIdTable,
# the user calls an explicit instantiation of the proc (this is
# the only way the default value might be inserted).
param.ast = errorNode(c, def)
# we know the node is empty, we need the actual type for error message
param.ast.typ() = def.typ
else:
param.ast = fitNodePostMatch(c, typeToFit, converted)
param.typ = result[i]
result.n[i] = newSymNode(param)
if isRecursiveStructuralType(result[i]):
localError(c.config, originalParams[i].sym.info, "illegal recursion in type '" & typeToString(result[i]) & "'")
propagateToOwner(result, result[i])
addDecl(c, param)
@@ -320,8 +307,6 @@ proc instantiateProcType(c: PContext, pt: LayeredIdTable,
cl.isReturnType = false
result.n[0] = originalParams[0].copyTree
if result[0] != nil:
if isRecursiveStructuralType(result[0]):
localError(c.config, originalParams[0].info, "illegal recursion in type '" & typeToString(result[0]) & "'")
propagateToOwner(result, result[0])
eraseVoidParams(result)
@@ -330,22 +315,6 @@ proc instantiateProcType(c: PContext, pt: LayeredIdTable,
prc.typ = result
popInfoContext(c.config)
proc instantiateOnlyProcType(c: PContext, pt: LayeredIdTable, prc: PSym, info: TLineInfo): PType =
# instantiates only the type of a given proc symbol
# used by sigmatch for explicit generics
# wouldn't be needed if sigmatch could handle complex cases,
# examples are in texplicitgenerics
# might be buggy, see rest of generateInstance if problems occur
let fakeSym = copySym(prc, c.idgen)
incl(fakeSym.flags, sfFromGeneric)
fakeSym.instantiatedFrom = prc
openScope(c)
for s in instantiateGenericParamList(c, prc.ast[genericParamsPos], pt):
addDecl(c, s)
instantiateProcType(c, pt, fakeSym, info)
closeScope(c)
result = fakeSym.typ
proc fillMixinScope(c: PContext) =
var p = c.p
while p != nil:
@@ -366,7 +335,7 @@ proc getLocalPassC(c: PContext, s: PSym): string =
for p in n:
extractPassc(p)
proc generateInstance(c: PContext, fn: PSym, pt: LayeredIdTable,
proc generateInstance(c: PContext, fn: PSym, pt: TypeMapping,
info: TLineInfo): PSym =
## Generates a new instance of a generic procedure.
## The `pt` parameter is a type-unsafe mapping table used to link generic
@@ -377,11 +346,7 @@ proc generateInstance(c: PContext, fn: PSym, pt: LayeredIdTable,
if c.instCounter > 50:
globalError(c.config, info, "generic instantiation too nested")
inc c.instCounter
let currentTypeofContext = c.inTypeofContext
c.inTypeofContext = 0
defer:
dec c.instCounter
c.inTypeofContext = currentTypeofContext
defer: dec c.instCounter
# careful! we copy the whole AST including the possibly nil body!
var n = copyTree(fn.ast)
# NOTE: for access of private fields within generics from a different module
@@ -399,9 +364,9 @@ proc generateInstance(c: PContext, fn: PSym, pt: LayeredIdTable,
let passc = getLocalPassC(c, producer)
if passc != "": #pass the local compiler options to the consumer module too
extccomp.addLocalCompileOption(c.config, passc, toFullPathConsiderDirty(c.config, c.module.info.fileIndex))
setOwner(result, c.module)
result.owner = c.module
else:
setOwner(result, fn)
result.owner = fn
result.ast = n
pushOwner(c, result)

View File

@@ -10,28 +10,9 @@
## Implements type sanity checking for ASTs resulting from macros. Lots of
## room for improvement here.
import ast, msgs, types, options, trees, nimsets
import ast, msgs, types, options
type
FieldTracker = object
index: int
remaining: int
constr: PNode
delete: bool # to delete fields from inactive case branches
FieldInfo = ref object
sym: PSym
delete: bool
proc caseBranchMatchesExpr(branch, matched: PNode): bool =
# copied from sem
result = false
for i in 0 ..< branch.len-1:
if branch[i].kind == nkRange:
if overlap(branch[i], matched): return true
elif exprStructuralEquivalent(branch[i], matched):
return true
proc ithField(n: PNode, field: var FieldTracker): FieldInfo =
proc ithField(n: PNode, field: var int): PSym =
result = nil
case n.kind
of nkRecList:
@@ -42,42 +23,18 @@ proc ithField(n: PNode, field: var FieldTracker): FieldInfo =
if n[0].kind != nkSym: return
result = ithField(n[0], field)
if result != nil: return
# value of the discriminator field, from (index - remaining - 1 + 1):
# - 1 because the `ithField` call above decreased it by 1,
# + 1 because the constructor node has an initial type child
let val = field.constr[field.index - field.remaining][1]
var branchFound = false
for i in 1..<n.len:
let previousDelete = field.delete
case n[i].kind
of nkOfBranch:
if branchFound or previousDelete or
not caseBranchMatchesExpr(n[i], val):
# if this is not the active case branch,
# mark all fields inside as deleted
field.delete = true
else:
branchFound = true
of nkOfBranch, nkElse:
result = ithField(lastSon(n[i]), field)
if result != nil: return
field.delete = previousDelete
of nkElse:
if branchFound:
# if this is not the active case branch,
# mark all fields inside as deleted
field.delete = true
result = ithField(lastSon(n[i]), field)
if result != nil: return
field.delete = previousDelete
else: discard
of nkSym:
if field.remaining == 0:
result = FieldInfo(sym: n.sym, delete: field.delete)
else:
dec(field.remaining)
if field == 0: result = n.sym
else: dec(field)
else: discard
proc ithField(t: PType, field: var FieldTracker): FieldInfo =
proc ithField(t: PType, field: var int): PSym =
var base = t.baseClass
while base != nil:
let b = skipTypes(base, skipPtrs)
@@ -93,27 +50,24 @@ proc annotateType*(n: PNode, t: PType; conf: ConfigRef) =
case n.kind
of nkObjConstr:
let x = t.skipTypes(abstractPtrs)
n.typ() = t
n[0].typ() = t
n.typ = t
n[0].typ = t
for i in 1..<n.len:
var tracker = FieldTracker(index: i-1, remaining: i-1, constr: n, delete: false)
let field = x.ithField(tracker)
var j = i-1
let field = x.ithField(j)
if field.isNil:
globalError conf, n.info, "invalid field at index " & $i
else:
internalAssert(conf, n[i].kind == nkExprColonExpr)
annotateType(n[i][1], field.sym.typ, conf)
if field.delete:
# only codegen fields from active case branches
incl(n[i].flags, nfPreventCg)
annotateType(n[i][1], field.typ, conf)
of nkPar, nkTupleConstr:
if x.kind == tyTuple:
n.typ() = t
n.typ = t
for i in 0..<n.len:
if i >= x.kidsLen: globalError conf, n.info, "invalid field at index " & $i
else: annotateType(n[i], x[i], conf)
elif x.kind == tyProc and x.callConv == ccClosure:
n.typ() = t
n.typ = t
elif x.kind == tyOpenArray: # `opcSlice` transforms slices into tuples
if n.kind == nkTupleConstr:
let
@@ -134,44 +88,39 @@ proc annotateType*(n: PNode, t: PType; conf: ConfigRef) =
globalError(conf, n.info, "Incorrectly generated tuple constr")
n[] = bracketExpr[]
n.typ() = t
n.typ = t
else:
globalError(conf, n.info, "() must have a tuple type")
of nkBracket:
if x.kind in {tyArray, tySequence, tyOpenArray}:
n.typ() = t
n.typ = t
for m in n: annotateType(m, x.elemType, conf)
else:
globalError(conf, n.info, "[] must have some form of array type")
of nkCurly:
if x.kind in {tySet}:
n.typ() = t
for m in n:
if m.kind == nkRange:
annotateType(m[0], x.elemType, conf)
annotateType(m[1], x.elemType, conf)
else:
annotateType(m, x.elemType, conf)
n.typ = t
for m in n: annotateType(m, x.elemType, conf)
else:
globalError(conf, n.info, "{} must have the set type")
of nkFloatLit..nkFloat128Lit:
if x.kind in {tyFloat..tyFloat128}:
n.typ() = t
n.typ = t
else:
globalError(conf, n.info, "float literal must have some float type")
of nkCharLit..nkUInt64Lit:
if x.kind in {tyInt..tyUInt64, tyBool, tyChar, tyEnum}:
n.typ() = t
n.typ = t
else:
globalError(conf, n.info, "integer literal must have some int type")
of nkStrLit..nkTripleStrLit:
if x.kind in {tyString, tyCstring}:
n.typ() = t
n.typ = t
else:
globalError(conf, n.info, "string literal must be of some string type")
of nkNilLit:
if x.kind in NilableTypes+{tyString, tySequence}:
n.typ() = t
n.typ = t
else:
globalError(conf, n.info, "nil literal must be of some pointer type")
else: discard

View File

@@ -18,7 +18,7 @@ proc addDefaultFieldForNew(c: PContext, n: PNode): PNode =
let typ = result[1].typ # new(x)
if typ.skipTypes({tyGenericInst, tyAlias, tySink}).kind == tyRef and typ.skipTypes({tyGenericInst, tyAlias, tySink})[0].kind == tyObject:
var asgnExpr = newTree(nkObjConstr, newNodeIT(nkType, result[1].info, typ))
asgnExpr.typ() = typ
asgnExpr.typ = typ
var t = typ.skipTypes({tyGenericInst, tyAlias, tySink})[0]
while true:
asgnExpr.sons.add defaultFieldsForTheUninitialized(c, t.n, false)
@@ -38,7 +38,7 @@ proc semAddr(c: PContext; n: PNode): PNode =
if isAssignable(c, x) notin {arLValue, arLocalLValue, arAddressableConst, arLentValue}:
localError(c.config, n.info, errExprHasNoAddress)
result.add x
result.typ() = makePtrType(c, x.typ)
result.typ = makePtrType(c, x.typ)
proc semTypeOf(c: PContext; n: PNode): PNode =
var m = BiggestInt 1 # typeOfIter
@@ -49,58 +49,26 @@ proc semTypeOf(c: PContext; n: PNode): PNode =
else:
m = mode.intVal
result = newNodeI(nkTypeOfExpr, n.info)
inc c.inTypeofContext
defer: dec c.inTypeofContext # compiles can raise an exception
let typExpr = semExprWithType(c, n[1], if m == 1: {efInTypeof} else: {})
result.add typExpr
if typExpr.typ.kind == tyFromExpr:
typExpr.typ.flags.incl tfNonConstExpr
var t = typExpr.typ
if t.kind == tyStatic:
let base = t.skipTypes({tyStatic})
if c.inGenericContext > 0 and base.containsGenericType:
t = makeTypeFromExpr(c, copyTree(typExpr))
t.flags.incl tfNonConstExpr
else:
t = base
result.typ() = makeTypeDesc(c, t)
result.typ = makeTypeDesc(c, typExpr.typ)
type
SemAsgnMode = enum asgnNormal, noOverloadedSubscript, noOverloadedAsgn
proc semAsgn(c: PContext, n: PNode; mode=asgnNormal): PNode
proc semSubscript(c: PContext, n: PNode, flags: TExprFlags, afterOverloading = false): PNode
proc semSubscript(c: PContext, n: PNode, flags: TExprFlags): PNode
proc semArrGet(c: PContext; n: PNode; flags: TExprFlags): PNode =
result = newNodeI(nkBracketExpr, n.info)
for i in 1..<n.len: result.add(n[i])
result = semSubscript(c, result, flags, afterOverloading = true)
result = semSubscript(c, result, flags)
if result.isNil:
let x = copyTree(n)
x[0] = newIdentNode(getIdent(c.cache, "[]"), n.info)
if c.inGenericContext > 0:
for i in 0..<n.len:
let a = n[i]
if a.typ != nil and a.typ.kind in {tyGenericParam, tyFromExpr}:
# expression is compiled early in a generic body
result = semGenericStmt(c, x)
result.typ() = makeTypeFromExpr(c, copyTree(result))
result.typ.flags.incl tfNonConstExpr
return
let s = # extract sym from first arg
if n.len > 1:
if n[1].kind == nkSym: n[1].sym
elif n[1].kind in nkSymChoices + {nkOpenSym} and n[1].len != 0:
n[1][0].sym
else: nil
else: nil
if s != nil and s.kind in routineKinds:
# this is a failed generic instantiation
# semSubscript should already error but this is better for cascading errors
result = explicitGenericInstError(c, n)
else:
bracketNotFoundError(c, x, flags)
result = errorNode(c, n)
bracketNotFoundError(c, x)
#localError(c.config, n.info, "could not resolve: " & $n)
result = errorNode(c, n)
proc semArrPut(c: PContext; n: PNode; flags: TExprFlags): PNode =
# rewrite `[]=`(a, i, x) back to ``a[i] = x``.
@@ -208,15 +176,15 @@ proc evalTypeTrait(c: PContext; traitCall: PNode, operand: PType, context: PSym)
let preferStr = traitCall[2].strVal
prefer = parseEnum[TPreferedDesc](preferStr)
result = newStrNode(nkStrLit, operand.typeToString(prefer))
result.typ() = getSysType(c.graph, traitCall[1].info, tyString)
result.typ = getSysType(c.graph, traitCall[1].info, tyString)
result.info = traitCall.info
of "name", "$":
result = newStrNode(nkStrLit, operand.typeToString(preferTypeName))
result.typ() = getSysType(c.graph, traitCall[1].info, tyString)
result.typ = getSysType(c.graph, traitCall[1].info, tyString)
result.info = traitCall.info
of "arity":
result = newIntNode(nkIntLit, operand.len - ord(operand.kind==tyProc))
result.typ() = newType(tyInt, c.idgen, context)
result.typ = newType(tyInt, c.idgen, context)
result.info = traitCall.info
of "genericHead":
var arg = operand
@@ -256,9 +224,8 @@ proc evalTypeTrait(c: PContext; traitCall: PNode, operand: PType, context: PSym)
of "rangeBase":
# return the base type of a range type
var arg = operand.skipTypes({tyGenericInst})
if arg.kind == tyRange:
arg = arg.base
result = getTypeDescNode(c, arg, operand.owner, traitCall.info)
assert arg.kind == tyRange
result = getTypeDescNode(c, arg.base, operand.owner, traitCall.info)
of "isCyclic":
var operand = operand.skipTypes({tyGenericInst})
let isCyclic = canFormAcycle(c.graph, operand)
@@ -286,7 +253,7 @@ proc semOrd(c: PContext, n: PNode): PNode =
discard
else:
localError(c.config, n.info, errOrdinalTypeExpected % typeToString(parType, preferDesc))
result.typ() = errorType(c)
result.typ = errorType(c)
proc semBindSym(c: PContext, n: PNode): PNode =
result = copyNode(n)
@@ -402,7 +369,7 @@ proc semOf(c: PContext, n: PNode): PNode =
message(c.config, n.info, hintConditionAlwaysTrue, renderTree(n))
result = newIntNode(nkIntLit, 1)
result.info = n.info
result.typ() = getSysType(c.graph, n.info, tyBool)
result.typ = getSysType(c.graph, n.info, tyBool)
return result
elif diff == high(int):
if commonSuperclass(a, b) == nil:
@@ -411,10 +378,10 @@ proc semOf(c: PContext, n: PNode): PNode =
message(c.config, n.info, hintConditionAlwaysFalse, renderTree(n))
result = newIntNode(nkIntLit, 0)
result.info = n.info
result.typ() = getSysType(c.graph, n.info, tyBool)
result.typ = getSysType(c.graph, n.info, tyBool)
else:
localError(c.config, n.info, "'of' takes 2 arguments")
n.typ() = getSysType(c.graph, n.info, tyBool)
n.typ = getSysType(c.graph, n.info, tyBool)
result = n
proc semUnown(c: PContext; n: PNode): PNode =
@@ -449,9 +416,9 @@ proc semUnown(c: PContext; n: PNode): PNode =
result = t
result = copyTree(n[1])
result.typ() = unownedType(c, result.typ)
result.typ = unownedType(c, result.typ)
# little hack for injectdestructors.nim (see bug #11350):
#result[0].typ() = nil
#result[0].typ = nil
proc turnFinalizerIntoDestructor(c: PContext; orig: PSym; info: TLineInfo): PSym =
# We need to do 2 things: Replace n.typ which is a 'ref T' by a 'var T' type.
@@ -461,7 +428,7 @@ proc turnFinalizerIntoDestructor(c: PContext; orig: PSym; info: TLineInfo): PSym
proc transform(c: PContext; n: PNode; old, fresh: PType; oldParam, newParam: PSym): PNode =
result = shallowCopy(n)
if sameTypeOrNil(n.typ, old):
result.typ() = fresh
result.typ = fresh
if n.kind == nkSym and n.sym == oldParam:
result.sym = newParam
for i in 0 ..< safeLen(n):
@@ -472,7 +439,7 @@ proc turnFinalizerIntoDestructor(c: PContext; orig: PSym; info: TLineInfo): PSym
result = copySym(orig, c.idgen)
result.info = info
result.flags.incl sfFromGeneric
setOwner(result, orig)
result.owner = orig
let origParamType = orig.typ.firstParamType
let newParamType = makeVarType(result, origParamType.skipTypes(abstractPtrs), c.idgen)
let oldParam = orig.typ.n[1].sym
@@ -543,34 +510,32 @@ proc semNewFinalize(c: PContext; n: PNode): PNode =
discard "already turned this one into a finalizer"
else:
if fin.instantiatedFrom != nil and fin.instantiatedFrom != fin.owner: #undo move
setOwner(fin, fin.instantiatedFrom)
fin.owner = fin.instantiatedFrom
let wrapperSym = newSym(skProc, getIdent(c.graph.cache, fin.name.s & "FinalizerWrapper"), c.idgen, fin.owner, fin.info)
let selfSymNode = newSymNode(copySym(fin.ast[paramsPos][1][0].sym, c.idgen))
selfSymNode.typ = fin.typ.firstParamType
wrapperSym.flags.incl sfUsed
if fin.typ[1].skipTypes(abstractInst).kind != tyRef:
bindTypeHook(c, fin, n, attachedDestructor)
else:
let wrapperSym = newSym(skProc, getIdent(c.graph.cache, fin.name.s & "FinalizerWrapper"), c.idgen, fin.owner, fin.info)
let selfSymNode = newSymNode(copySym(fin.ast[paramsPos][1][0].sym, c.idgen))
selfSymNode.typ() = fin.typ.firstParamType
wrapperSym.flags.incl sfUsed
let wrapper = c.semExpr(c, newProcNode(nkProcDef, fin.info, body = newTree(nkCall, newSymNode(fin), selfSymNode),
params = nkFormalParams.newTree(c.graph.emptyNode,
newTree(nkIdentDefs, selfSymNode, newNodeIT(nkType,
fin.ast[paramsPos][1][1].info, fin.typ.firstParamType), c.graph.emptyNode)
),
name = newSymNode(wrapperSym), pattern = fin.ast[patternPos],
genericParams = fin.ast[genericParamsPos], pragmas = fin.ast[pragmasPos], exceptions = fin.ast[miscPos]), {})
let wrapper = c.semExpr(c, newProcNode(nkProcDef, fin.info, body = newTree(nkCall, newSymNode(fin), selfSymNode),
params = nkFormalParams.newTree(c.graph.emptyNode,
newTree(nkIdentDefs, selfSymNode, newNodeIT(nkType,
fin.ast[paramsPos][1][1].info, fin.typ.firstParamType), c.graph.emptyNode)
),
name = newSymNode(wrapperSym), pattern = fin.ast[patternPos],
genericParams = fin.ast[genericParamsPos], pragmas = fin.ast[pragmasPos], exceptions = fin.ast[miscPos]), {})
var transFormedSym = turnFinalizerIntoDestructor(c, wrapperSym, wrapper.info)
setOwner(transFormedSym, fin)
if c.config.backend == backendCpp or sfCompileToCpp in c.module.flags:
let origParamType = transFormedSym.ast[bodyPos][1].typ
let selfSymbolType = makePtrType(c, origParamType.skipTypes(abstractPtrs))
let selfPtr = newNodeI(nkHiddenAddr, transFormedSym.ast[bodyPos][1].info)
selfPtr.add transFormedSym.ast[bodyPos][1]
selfPtr.typ() = selfSymbolType
transFormedSym.ast[bodyPos][1] = c.semExpr(c, selfPtr)
bindTypeHook(c, transFormedSym, n, attachedDestructor)
var transFormedSym = turnFinalizerIntoDestructor(c, wrapperSym, wrapper.info)
transFormedSym.owner = fin
if c.config.backend == backendCpp or sfCompileToCpp in c.module.flags:
let origParamType = transFormedSym.ast[bodyPos][1].typ
let selfSymbolType = makePtrType(c, origParamType.skipTypes(abstractPtrs))
let selfPtr = newNodeI(nkHiddenAddr, transFormedSym.ast[bodyPos][1].info)
selfPtr.add transFormedSym.ast[bodyPos][1]
selfPtr.typ = selfSymbolType
transFormedSym.ast[bodyPos][1] = c.semExpr(c, selfPtr)
# TODO: suppress var destructor warnings; if newFinalizer is not
# TODO: deprecated, try to implement plain T destructor
bindTypeHook(c, transFormedSym, n, attachedDestructor, suppressVarDestructorWarning = true)
result = addDefaultFieldForNew(c, n)
proc semPrivateAccess(c: PContext, n: PNode): PNode =
@@ -612,10 +577,9 @@ proc magicsAfterOverloadResolution(c: PContext, n: PNode,
of mArrPut:
result = semArrPut(c, n, flags)
of mAsgn:
case n[0].sym.name.s
of "=", "=copy":
if n[0].sym.name.s == "=":
result = semAsgnOpr(c, n, nkAsgn)
of "=sink":
elif n[0].sym.name.s == "=sink":
result = semAsgnOpr(c, n, nkSinkAsgn)
else:
result = semShallowCopy(c, n, flags)
@@ -623,7 +587,7 @@ proc magicsAfterOverloadResolution(c: PContext, n: PNode,
of mTypeTrait: result = semTypeTraits(c, n)
of mAstToStr:
result = newStrNodeT(renderTree(n[1], {renderNoComments}), n, c.graph)
result.typ() = getSysType(c.graph, n.info, tyString)
result.typ = getSysType(c.graph, n.info, tyString)
of mInstantiationInfo: result = semInstantiationInfo(c, n)
of mOrd: result = semOrd(c, n)
of mOf: result = semOf(c, n)
@@ -636,7 +600,7 @@ proc magicsAfterOverloadResolution(c: PContext, n: PNode,
result = semDynamicBindSym(c, n)
of mProcCall:
result = n
result.typ() = n[1].typ
result.typ = n[1].typ
of mDotDot:
result = n
of mPlugin:
@@ -654,13 +618,42 @@ proc magicsAfterOverloadResolution(c: PContext, n: PNode,
of mNewFinalize:
result = semNewFinalize(c, n)
of mDestroy:
result = replaceHookMagic(c, n, attachedDestructor)
result = n
let t = n[1].typ.skipTypes(abstractVar)
let op = getAttachedOp(c.graph, t, attachedDestructor)
if op != nil:
result[0] = newSymNode(op)
if op.typ != nil and op.typ.len == 2 and op.typ.firstParamType.kind != tyVar:
if n[1].kind == nkSym and n[1].sym.kind == skParam and
n[1].typ.kind == tyVar:
result[1] = genDeref(n[1])
else:
result[1] = skipAddr(n[1])
of mTrace:
result = replaceHookMagic(c, n, attachedTrace)
result = n
let t = n[1].typ.skipTypes(abstractVar)
let op = getAttachedOp(c.graph, t, attachedTrace)
if op != nil:
result[0] = newSymNode(op)
of mDup:
result = replaceHookMagic(c, n, attachedDup)
result = n
let t = n[1].typ.skipTypes(abstractVar)
let op = getAttachedOp(c.graph, t, attachedDup)
if op != nil:
result[0] = newSymNode(op)
if op.typ.len == 3:
let boolLit = newIntLit(c.graph, n.info, 1)
boolLit.typ = getSysType(c.graph, n.info, tyBool)
result.add boolLit
of mWasMoved:
result = replaceHookMagic(c, n, attachedWasMoved)
result = n
let t = n[1].typ.skipTypes(abstractVar)
let op = getAttachedOp(c.graph, t, attachedWasMoved)
if op != nil:
result[0] = newSymNode(op)
let addrExp = newNodeIT(nkHiddenAddr, result[1].info, makePtrType(c, t))
addrExp.add result[1]
result[1] = addrExp
of mUnown:
result = semUnown(c, n)
of mExists, mForall:
@@ -692,7 +685,7 @@ proc magicsAfterOverloadResolution(c: PContext, n: PNode,
result = n
if result.typ != nil and expectedType != nil and result.typ.kind == tySequence and
expectedType.kind == tySequence and result.typ.elementType.kind == tyEmpty:
result.typ() = expectedType # type inference for empty sequence # bug #21377
result.typ = expectedType # type inference for empty sequence # bug #21377
of mEnsureMove:
result = n
if n[1].kind in {nkStmtListExpr, nkBlockExpr,

View File

@@ -79,7 +79,7 @@ proc semConstrField(c: PContext, flags: TExprFlags,
if nfSkipFieldChecking in assignment[1].flags:
discard
elif not fieldVisible(c, field):
localError(c.config, assignment[0].info,
localError(c.config, initExpr.info,
"the field '$1' is not accessible." % [field.name.s])
return
@@ -188,7 +188,7 @@ proc collectOrAddMissingCaseFields(c: PContext, branchNode: PNode,
newNodeIT(nkType, constrCtx.initExpr.info, asgnType)
)
asgnExpr.flags.incl nfSkipFieldChecking
asgnExpr.typ() = recTyp
asgnExpr.typ = recTyp
defaults.add newTree(nkExprColonExpr, newSymNode(sym), asgnExpr)
proc collectBranchFields(c: PContext, n: PNode, discriminatorVal: PNode,
@@ -387,13 +387,10 @@ proc semConstructFields(c: PContext, n: PNode, constrCtx: var ObjConstrContext,
if e != nil:
result.status = initFull
elif field.ast != nil:
if efIgnoreDefaults notin flags:
result.status = initUnknown
result.defaults.add newTree(nkExprColonExpr, n, field.ast)
else:
result.status = initNone
result.status = initUnknown
result.defaults.add newTree(nkExprColonExpr, n, field.ast)
else:
if {efWantNoDefaults, efIgnoreDefaults} * flags == {}: # cannot compute defaults at the typeRightPass
if efWantNoDefaults notin flags: # cannot compute defaults at the typeRightPass
let defaultExpr = defaultNodeField(c, n, constrCtx.checkDefault)
if defaultExpr != nil:
result.status = initUnknown
@@ -446,7 +443,7 @@ proc defaultConstructionError(c: PContext, t: PType, info: TLineInfo) =
assert objType != nil
if objType.kind == tyObject:
var constrCtx = initConstrContext(objType, newNodeI(nkObjConstr, info))
let initResult = semConstructTypeAux(c, constrCtx, {efIgnoreDefaults})
let initResult = semConstructTypeAux(c, constrCtx, {efWantNoDefaults})
if constrCtx.missingFields.len > 0:
localError(c.config, info,
"The $1 type doesn't have a default value. The following fields must be initialized: $2." % [typeToString(t), listSymbolNames(constrCtx.missingFields)])
@@ -465,20 +462,17 @@ proc semObjConstr(c: PContext, n: PNode, flags: TExprFlags; expectedType: PType
if t == nil:
return localErrorNode(c, result, "object constructor needs an object type")
when false:
# attempted type inference for generic object types,
# doesn't work since n[0] isn't set and seems underspecified
if t.skipTypes({tyGenericInst,
tyAlias, tySink, tyOwned, tyRef}).kind != tyObject and
expectedType != nil and expectedType.skipTypes({tyGenericInst,
tyAlias, tySink, tyOwned, tyRef}).kind == tyObject:
t = expectedType
if t.skipTypes({tyGenericInst,
tyAlias, tySink, tyOwned, tyRef}).kind != tyObject and
expectedType != nil and expectedType.skipTypes({tyGenericInst,
tyAlias, tySink, tyOwned, tyRef}).kind == tyObject:
t = expectedType
t = skipTypes(t, {tyGenericInst, tyAlias, tySink, tyOwned})
if t.kind == tyRef:
t = skipTypes(t.elementType, {tyGenericInst, tyAlias, tySink, tyOwned})
if optOwnedRefs in c.config.globalOptions:
result.typ() = makeVarType(c, result.typ, tyOwned)
result.typ = makeVarType(c, result.typ, tyOwned)
# we have to watch out, there are also 'owned proc' types that can be used
# multiple times as long as they don't have closures.
result.typ.flags.incl tfHasOwned
@@ -521,7 +515,7 @@ proc semObjConstr(c: PContext, n: PNode, flags: TExprFlags; expectedType: PType
for j in 1..<i:
let prevId = considerQuotedIdent(c, result[j][0])
if prevId.id == id.id:
localError(c.config, field[0].info, errFieldInitTwice % id.s)
localError(c.config, field.info, errFieldInitTwice % id.s)
hasError = true
break
# 2) No such field exists in the constructed type

View File

@@ -407,9 +407,9 @@ proc transformSlices(g: ModuleGraph; idgen: IdGenerator; n: PNode): PNode =
result = copyNode(n)
var typ = newType(tyOpenArray, idgen, result.typ.owner)
typ.add result.typ.elementType
result.typ() = typ
result.typ = typ
let opSlice = newSymNode(createMagic(g, idgen, "slice", mSlice))
opSlice.typ() = getSysType(g, n.info, tyInt)
opSlice.typ = getSysType(g, n.info, tyInt)
result.add opSlice
result.add n[1]
let slice = n[2].skipStmtList

View File

@@ -11,7 +11,7 @@ import
ast, astalgo, msgs, renderer, magicsys, types, idents, trees,
wordrecg, options, guards, lineinfos, semfold, semdata,
modulegraphs, varpartitions, typeallowed, nilcheck, errorhandling,
semstrictfuncs, suggestsymdb, pushpoppragmas, lowerings
semstrictfuncs, suggestsymdb
import std/[tables, intsets, strutils, sequtils]
@@ -84,9 +84,7 @@ type
gcUnsafe, isRecursive, isTopLevel, hasSideEffect, inEnforcedGcSafe: bool
isInnerProc: bool
inEnforcedNoSideEffects: bool
unknownRaises: seq[(PSym, TLineInfo)]
currOptions: TOptions
optionsStack: seq[(TOptions, TNoteKinds)]
config: ConfigRef
graph: ModuleGraph
c: PContext
@@ -125,11 +123,10 @@ proc collectObjectTree(graph: ModuleGraph, n: PNode) =
else:
graph.objectTree[root].add (depthLevel, typ)
proc createTypeBoundOps(tracked: PEffects, typ: PType; info: TLineInfo; explicit = false) =
if typ == nil or (sfGeneratedOp in tracked.owner.flags and not explicit):
proc createTypeBoundOps(tracked: PEffects, typ: PType; info: TLineInfo) =
if typ == nil or sfGeneratedOp in tracked.owner.flags:
# don't create type bound ops for anything in a function with a `nodestroy` pragma
# bug #21987
# unless this is an explicit call, bug #24626
return
when false:
let realType = typ.skipTypes(abstractInst)
@@ -195,7 +192,7 @@ proc guardDotAccess(a: PEffects; n: PNode) =
let dot = newNodeI(nkDotExpr, n.info, 2)
dot[0] = n[0]
dot[1] = newSymNode(g)
dot.typ() = g.typ
dot.typ = g.typ
for L in a.locked:
#if a.guards.sameSubexprs(dot, L): return
if guards.sameTree(dot, L): return
@@ -214,7 +211,6 @@ proc varDecl(a: PEffects; n: PNode) {.inline.} =
proc skipHiddenDeref(n: PNode): PNode {.inline.} =
result = if n.kind == nkHiddenDeref: n[0] else: n
proc initVar(a: PEffects, n: PNode; volatileCheck: bool) =
let n = skipHiddenDeref(n)
if n.kind != nkSym: return
@@ -414,7 +410,7 @@ proc throws(tracked, n, orig: PNode) =
if n.typ == nil or n.typ.kind != tyError:
if orig != nil:
let x = copyTree(orig)
x.typ() = n.typ
x.typ = n.typ
tracked.add x
else:
tracked.add n
@@ -429,12 +425,12 @@ proc excType(g: ModuleGraph; n: PNode): PType =
proc createRaise(g: ModuleGraph; n: PNode): PNode =
result = newNode(nkType)
result.typ() = getEbase(g, n.info)
result.typ = getEbase(g, n.info)
if not n.isNil: result.info = n.info
proc createTag(g: ModuleGraph; n: PNode): PNode =
result = newNode(nkType)
result.typ() = g.sysTypeFromName(n.info, "RootEffect")
result.typ = g.sysTypeFromName(n.info, "RootEffect")
if not n.isNil: result.info = n.info
proc addRaiseEffect(a: PEffects, e, comesFrom: PNode) =
@@ -619,16 +615,9 @@ proc trackPragmaStmt(tracked: PEffects, n: PNode) =
for i in 0..<n.len:
var it = n[i]
let pragma = whichPragma(it)
case pragma
of wEffects:
if pragma == wEffects:
# list the computed effects up to here:
listEffects(tracked)
of wPush:
processPushBackendOption(tracked.c.config, tracked.optionsStack, tracked.currOptions, n, i+1)
of wPop:
processPopBackendOption(tracked.c.config, tracked.optionsStack, tracked.currOptions)
else:
discard
template notGcSafe(t): untyped = {tfGcSafe, tfNoSideEffect} * t.flags == {}
@@ -639,8 +628,6 @@ proc importedFromC(n: PNode): bool =
proc propagateEffects(tracked: PEffects, n: PNode, s: PSym) =
let pragma = s.ast[pragmasPos]
let spec = effectSpec(pragma, wRaises)
if spec.isNil and sfForward in s.flags:
tracked.unknownRaises.add (s, n.info)
mergeRaises(tracked, spec, n)
let tagSpec = effectSpec(pragma, wTags)
@@ -980,25 +967,6 @@ proc markCaughtExceptions(tracked: PEffects; g: ModuleGraph; info: TLineInfo; s:
if optIdeExceptionInlayHints in tracked.config.globalOptions:
internalMarkCaughtExceptions(tracked, g.suggestSymbols.mgetOrPut(info.fileIndex, newSuggestFileSymbolDatabase(info.fileIndex, true)), info)
proc findHookKind(name: string): (bool, TTypeAttachedOp) =
case name.normalize
of "=wasmoved":
result = (true, attachedWasMoved)
of "=destroy":
result = (true, attachedDestructor)
of "=copy", "=":
result = (true, attachedAsgn)
of "=dup":
result = (true, attachedDup)
of "=sink":
result = (true, attachedSink)
of "=trace":
result = (true, attachedTrace)
of "=deepcopy":
result = (true, attachedDeepCopy)
else:
result = (false, attachedWasMoved)
proc trackCall(tracked: PEffects; n: PNode) =
template gcsafeAndSideeffectCheck() =
if notGcSafe(op) and not importedFromC(a):
@@ -1087,17 +1055,18 @@ proc trackCall(tracked: PEffects; n: PNode) =
checkBounds(tracked, n[1], n[2])
var n = n
if a.kind == nkSym and a.sym.name.s.len > 0 and a.sym.name.s[0] == '=' and
tracked.owner.kind != skMacro:
var (isHook, opKind) = findHookKind(a.sym.name.s)
if isHook:
var opKind = find(AttachedOpToStr, a.sym.name.s.normalize)
if a.sym.name.s == "=": opKind = attachedAsgn.int
if opKind != -1:
# rebind type bounds operations after createTypeBoundOps call
let t = n[1].typ.skipTypes({tyAlias, tyVar})
if a.sym != getAttachedOp(tracked.graph, t, opKind):
createTypeBoundOps(tracked, t, n.info, explicit = true)
# replace builtin hooks with lifted ones
n = replaceHookMagic(tracked.c, n, opKind)
if a.sym != getAttachedOp(tracked.graph, t, TTypeAttachedOp(opKind)):
createTypeBoundOps(tracked, t, n.info)
let op = getAttachedOp(tracked.graph, t, TTypeAttachedOp(opKind))
if op != nil:
n[0].sym = op
if op != nil and op.kind == tyProc:
for i in 1..<min(n.safeLen, op.signatureLen):
@@ -1233,7 +1202,7 @@ proc track(tracked: PEffects, n: PNode) =
if n.sym.typ != nil and tfHasAsgn in n.sym.typ.flags:
tracked.owner.flags.incl sfInjectDestructors
# bug #15038: ensure consistency
if n.typ == nil or (not hasDestructor(n.typ) and sameType(n.typ, n.sym.typ)): n.typ() = n.sym.typ
if not hasDestructor(n.typ) and sameType(n.typ, n.sym.typ): n.typ = n.sym.typ
of nkHiddenAddr, nkAddr:
if n[0].kind == nkSym and isLocalSym(tracked, n[0].sym) and
n.typ.kind notin {tyVar, tyLent}:
@@ -1324,12 +1293,7 @@ proc track(tracked: PEffects, n: PNode) =
let last = lastSon(child)
track(tracked, last)
of nkCaseStmt: trackCase(tracked, n)
of nkWhen: # This should be a "when nimvm" node.
let oldState = tracked.init.len
track(tracked, n[0][1])
tracked.init.setLen(oldState)
track(tracked, n[1][0])
of nkIfStmt, nkIfExpr: trackIf(tracked, n)
of nkWhen, nkIfStmt, nkIfExpr: trackIf(tracked, n)
of nkBlockStmt, nkBlockExpr: trackBlock(tracked, n[1])
of nkWhileStmt:
# 'while true' loop?
@@ -1526,7 +1490,7 @@ proc subtypeRelation(g: ModuleGraph; spec, real: PNode): bool =
proc checkRaisesSpec(g: ModuleGraph; emitWarnings: bool; spec, real: PNode, msg: string, hints: bool;
effectPredicate: proc (g: ModuleGraph; a, b: PNode): bool {.nimcall.};
hintsArg: PNode = nil; isForbids: bool = false; unknownRaises: seq[(PSym, TLineInfo)] = @[]) =
hintsArg: PNode = nil; isForbids: bool = false) =
# check that any real exception is listed in 'spec'; mark those as used;
# report any unused exception
var used = initIntSet()
@@ -1543,8 +1507,6 @@ proc checkRaisesSpec(g: ModuleGraph; emitWarnings: bool; spec, real: PNode, msg:
pushInfoContext(g.config, spec.info)
var rr = if r.kind == nkRaiseStmt: r[0] else: r
while rr.kind in {nkStmtList, nkStmtListExpr} and rr.len > 0: rr = rr.lastSon
for (s, info) in unknownRaises.items:
message(g.config, info, hintUnknownRaises, s.name.s)
message(g.config, r.info, if emitWarnings: warnEffect else: errGenerated,
renderTree(rr) & " " & msg & typeToString(r.typ))
popInfoContext(g.config)
@@ -1632,7 +1594,7 @@ proc initEffects(g: ModuleGraph; effects: PNode; s: PSym; c: PContext): TEffects
result = TEffects(exc: effects[exceptionEffects], tags: effects[tagEffects],
forbids: effects[forbiddenEffects], owner: s, ownerModule: s.getModule,
init: @[], locked: @[], graph: g, config: g.config, c: c,
currentBlock: 1, optionsStack: @[(g.config.options, g.config.notes)]
currentBlock: 1
)
result.guards.s = @[]
result.guards.g = g
@@ -1668,9 +1630,6 @@ proc trackProc*(c: PContext; s: PSym, body: PNode) =
s.kind in {skProc, skFunc, skConverter, skMethod}:
var res = s.ast[resultPos].sym # get result symbol
t.scopes[res.id] = t.currentBlock
if sfNoInit in s.flags:
# marks result "noinit"
incl res.flags, sfNoInit
track(t, body)
@@ -1683,14 +1642,13 @@ proc trackProc*(c: PContext; s: PSym, body: PNode) =
(t.config.selectedGC in {gcArc, gcOrc, gcAtomicArc} and
(isClosure(typ.skipTypes(abstractInst)) or param.id in t.escapingParams)):
createTypeBoundOps(t, typ, param.info)
if isOutParam(typ) and param.id notin t.init and s.magic == mNone:
if isOutParam(typ) and param.id notin t.init:
message(g.config, param.info, warnProveInit, param.name.s)
if not isEmptyType(s.typ.returnType) and
(s.typ.returnType.requiresInit or s.typ.returnType.skipTypes(abstractInst).kind == tyVar or
strictDefs in c.features) and
s.kind in {skProc, skFunc, skConverter, skMethod} and s.magic == mNone and
sfNoInit notin s.flags:
s.kind in {skProc, skFunc, skConverter, skMethod} and s.magic == mNone:
var res = s.ast[resultPos].sym # get result symbol
if res.id notin t.init and breaksBlock(body) != bsNoReturn:
if tfRequiresInit in s.typ.returnType.flags:
@@ -1702,7 +1660,7 @@ proc trackProc*(c: PContext; s: PSym, body: PNode) =
if not isNil(raisesSpec):
let useWarning = s.name.s == "=destroy"
checkRaisesSpec(g, useWarning, raisesSpec, t.exc, "can raise an unlisted exception: ",
hints=on, subtypeRelation, hintsArg=s.ast[0], unknownRaises = t.unknownRaises)
hints=on, subtypeRelation, hintsArg=s.ast[0])
# after the check, use the formal spec:
effects[exceptionEffects] = raisesSpec
else:

View File

@@ -112,11 +112,11 @@ proc semWhile(c: PContext, n: PNode; flags: TExprFlags): PNode =
dec(c.p.nestedLoopCounter)
closeScope(c)
if n[1].typ == c.enforceVoidContext:
result.typ() = c.enforceVoidContext
result.typ = c.enforceVoidContext
elif efInTypeof in flags:
result.typ() = n[1].typ
result.typ = n[1].typ
elif implicitlyDiscardable(n[1]):
result[1].typ() = c.enforceVoidContext
result[1].typ = c.enforceVoidContext
proc semProc(c: PContext, n: PNode): PNode
@@ -275,7 +275,7 @@ proc fixNilType(c: PContext; n: PNode) =
elif n.kind in {nkStmtList, nkStmtListExpr}:
n.transitionSonsKind(nkStmtList)
for it in n: fixNilType(c, it)
n.typ() = nil
n.typ = nil
proc discardCheck(c: PContext, result: PNode, flags: TExprFlags) =
if c.matchedConcept != nil or efInTypeof in flags: return
@@ -331,14 +331,14 @@ proc semIf(c: PContext, n: PNode; flags: TExprFlags; expectedType: PType = nil):
for it in n: discardCheck(c, it.lastSon, flags)
result.transitionSonsKind(nkIfStmt)
# propagate any enforced VoidContext:
if typ == c.enforceVoidContext: result.typ() = c.enforceVoidContext
if typ == c.enforceVoidContext: result.typ = c.enforceVoidContext
else:
for it in n:
let j = it.len-1
if not endsInNoReturn(it[j]):
it[j] = fitNode(c, typ, it[j], it[j].info)
result.transitionSonsKind(nkIfExpr)
result.typ() = typ
result.typ = typ
proc semTry(c: PContext, n: PNode; flags: TExprFlags; expectedType: PType = nil): PNode =
var check = initIntSet()
@@ -438,7 +438,7 @@ proc semTry(c: PContext, n: PNode; flags: TExprFlags; expectedType: PType = nil)
discardCheck(c, n[0], flags)
for i in 1..<n.len: discardCheck(c, n[i].lastSon, flags)
if typ == c.enforceVoidContext:
result.typ() = c.enforceVoidContext
result.typ = c.enforceVoidContext
else:
if n.lastSon.kind == nkFinally: discardCheck(c, n.lastSon.lastSon, flags)
if not endsInNoReturn(n[0]):
@@ -448,7 +448,7 @@ proc semTry(c: PContext, n: PNode; flags: TExprFlags; expectedType: PType = nil)
let j = it.len-1
if not endsInNoReturn(it[j]):
it[j] = fitNode(c, typ, it[j], it[j].info)
result.typ() = typ
result.typ = typ
proc fitRemoveHiddenConv(c: PContext, typ: PType, n: PNode): PNode =
result = fitNode(c, typ, n, n.info)
@@ -457,7 +457,7 @@ proc fitRemoveHiddenConv(c: PContext, typ: PType, n: PNode): PNode =
if r1.kind in {nkCharLit..nkUInt64Lit} and typ.skipTypes(abstractRange).kind in {tyFloat..tyFloat128}:
result = newFloatNode(nkFloatLit, BiggestFloat r1.intVal)
result.info = n.info
result.typ() = typ
result.typ = typ
if not floatRangeCheck(result.floatVal, typ):
localError(c.config, n.info, errFloatToString % [$result.floatVal, typeToString(typ)])
elif r1.kind == nkSym and typ.skipTypes(abstractRange).kind == tyCstring:
@@ -492,8 +492,19 @@ proc semIdentDef(c: PContext, n: PNode, kind: TSymKind, reportToNimsuggest = tru
incl(result.flags, sfGlobal)
result.options = c.config.options
proc getLineInfo(n: PNode): TLineInfo =
case n.kind
of nkPostfix:
if len(n) > 1:
return getLineInfo(n[1])
of nkAccQuoted, nkPragmaExpr:
if len(n) > 0:
return getLineInfo(n[0])
else:
discard
result = n.info
let info = getLineInfo(n)
if reportToNimsuggest:
let info = getLineInfo(n)
suggestSym(c.graph, info, result, c.graph.usageSym)
proc checkNilable(c: PContext; v: PSym) =
@@ -594,59 +605,32 @@ proc fillPartialObject(c: PContext; n: PNode; typ: PType) =
obj.n.add newSymNode(field)
n[0] = makeDeref x
n[1] = newSymNode(field)
n.typ() = field.typ
n.typ = field.typ
else:
localError(c.config, n.info, "implicit object field construction " &
"requires a .partial object, but got " & typeToString(obj))
else:
localError(c.config, n.info, "nkDotNode requires 2 children")
proc checkDefineType(c: PContext; v: PSym; t: PType) =
# see semfold.foldDefine for acceptable types
let typeKinds =
case v.magic
of mStrDefine: {tyString, tyCstring}
# this used to be not typechecked, so anything that accepts int nodes for compatbility:
of mIntDefine: {tyInt..tyInt64, tyUInt..tyUInt64, tyBool, tyChar, tyEnum}
of mBoolDefine: {tyBool}
of mGenericDefine: {tyString, tyCstring, tyInt..tyInt64, tyUInt..tyUInt64, tyBool, tyEnum}
else: raiseAssert("unreachable")
var skipped = abstractVarRange
if v.magic == mGenericDefine:
# no distinct types for generic define
skipped.excl tyDistinct
if t.skipTypes(skipped).kind notin typeKinds:
let name =
case v.magic
of mStrDefine: "strdefine"
of mIntDefine: "intdefine"
of mBoolDefine: "booldefine"
of mGenericDefine: "define"
else: raiseAssert("unreachable")
localError(c.config, v.info, "unsupported type for constant '" & v.name.s &
"' with ." & name & " pragma: " & typeToString(t))
proc setVarType(c: PContext; v: PSym, typ: PType) =
if v.typ != nil and not sameTypeOrNil(v.typ, typ):
localError(c.config, v.info, "inconsistent typing for reintroduced symbol '" &
v.name.s & "': previous type was: " & typeToString(v.typ, preferDesc) &
"; new type is: " & typeToString(typ, preferDesc))
if v.kind == skConst and v.magic in {mGenericDefine, mIntDefine, mStrDefine, mBoolDefine}:
checkDefineType(c, v, typ)
v.typ = typ
proc isPossibleMacroPragma(c: PContext, it: PNode, key: PNode): bool =
# make sure it's not a normal pragma, and calls an identifier
# considerQuotedIdent below will fail on non-identifiers
result = whichPragma(it) == wInvalid and key.kind in nkIdentKinds+{nkDotExpr}
result = whichPragma(it) == wInvalid and key.kind in nkIdentKinds
if result:
# make sure it's not a user pragma
if key.kind != nkDotExpr:
let ident = considerQuotedIdent(c, key)
result = strTableGet(c.userPragmas, ident) == nil
let ident = considerQuotedIdent(c, key)
result = strTableGet(c.userPragmas, ident) == nil
if result:
# make sure it's not a custom pragma
let sym = qualifiedLookUp(c, key, {})
var amb = false
let sym = searchInScopes(c, ident, amb)
result = sym == nil or sfCustomPragma notin sym.flags
proc copyExcept(n: PNode, i: int): PNode =
@@ -845,11 +829,6 @@ proc semVarOrLet(c: PContext, n: PNode, symkind: TSymKind): PNode =
var typFlags: TTypeAllowedFlags = {}
var def: PNode = c.graph.emptyNode
if typ != nil and typ.kind == tyRange and
c.graph.config.isDefined("nimPreviewRangeDefault") and
a[^1].kind == nkEmpty:
a[^1] = firstRange(c.config, typ)
if a[^1].kind != nkEmpty:
def = semExprWithType(c, a[^1], {efTypeAllowed}, typ)
@@ -924,7 +903,7 @@ proc semVarOrLet(c: PContext, n: PNode, symkind: TSymKind): PNode =
if sfGenSym notin v.flags:
if not isDiscardUnderscore(v): addInterfaceDecl(c, v)
else:
if v.owner == nil: setOwner(v, c.p.owner)
if v.owner == nil: v.owner = c.p.owner
when oKeepVariableNames:
if c.inUnrolledContext > 0: v.flags.incl(sfShadowed)
else:
@@ -1001,7 +980,6 @@ proc semConst(c: PContext, n: PNode): PNode =
var typFlags: TTypeAllowedFlags = {}
# don't evaluate here since the type compatibility check below may add a converter
openScope(c)
var def = semExprWithType(c, a[^1], {efTypeAllowed}, typ)
if def.kind == nkSym and def.sym.kind in {skTemplate, skMacro}:
@@ -1028,7 +1006,6 @@ proc semConst(c: PContext, n: PNode): PNode =
if c.matchedConcept != nil:
typFlags.incl taConcept
typeAllowedCheck(c, a.info, typ, skConst, typFlags)
closeScope(c)
if a.kind == nkVarTuple:
# generate new section from tuple unpacking and embed it into this one
@@ -1042,7 +1019,7 @@ proc semConst(c: PContext, n: PNode): PNode =
when defined(nimsuggest):
v.hasUserSpecifiedType = hasUserSpecifiedType
if sfGenSym notin v.flags: addInterfaceDecl(c, v)
elif v.owner == nil: setOwner(v, getCurrOwner(c))
elif v.owner == nil: v.owner = getCurrOwner(c)
styleCheckDef(c, v)
onDef(a[j].info, v)
@@ -1113,7 +1090,7 @@ proc semForVars(c: PContext, n: PNode; flags: TExprFlags): PNode =
v.typ = iter[i]
n[0][i] = newSymNode(v)
if sfGenSym notin v.flags and not isDiscardUnderscore(v): addDecl(c, v)
elif v.owner == nil: setOwner(v, getCurrOwner(c))
elif v.owner == nil: v.owner = getCurrOwner(c)
else:
var v = symForVar(c, n[0])
if getCurrOwner(c).kind == skModule: incl(v.flags, sfGlobal)
@@ -1123,7 +1100,7 @@ proc semForVars(c: PContext, n: PNode; flags: TExprFlags): PNode =
v.typ = iterBase
n[0] = newSymNode(v)
if sfGenSym notin v.flags and not isDiscardUnderscore(v): addDecl(c, v)
elif v.owner == nil: setOwner(v, getCurrOwner(c))
elif v.owner == nil: v.owner = getCurrOwner(c)
else:
localError(c.config, n.info, errWrongNumberOfVariables)
elif n.len-2 != iterAfterVarLent.len:
@@ -1157,7 +1134,7 @@ proc semForVars(c: PContext, n: PNode; flags: TExprFlags): PNode =
v.typ = iter[i][j]
n[i][j] = newSymNode(v)
if not isDiscardUnderscore(v): addDecl(c, v)
elif v.owner == nil: setOwner(v, getCurrOwner(c))
elif v.owner == nil: v.owner = getCurrOwner(c)
else:
var v = symForVar(c, n[i])
if getCurrOwner(c).kind == skModule: incl(v.flags, sfGlobal)
@@ -1172,7 +1149,7 @@ proc semForVars(c: PContext, n: PNode; flags: TExprFlags): PNode =
n[i] = newSymNode(v)
if sfGenSym notin v.flags:
if not isDiscardUnderscore(v): addDecl(c, v)
elif v.owner == nil: setOwner(v, getCurrOwner(c))
elif v.owner == nil: v.owner = getCurrOwner(c)
inc(c.p.nestedLoopCounter)
let oldBreakInLoop = c.p.breakInLoop
c.p.breakInLoop = true
@@ -1247,7 +1224,7 @@ proc handleCaseStmtMacro(c: PContext; n: PNode; flags: TExprFlags): PNode =
toResolve.add n[0]
var errors: CandidateErrors = @[]
var r = resolveOverloads(c, toResolve, toResolve, {skTemplate, skMacro}, {efNoUndeclared},
var r = resolveOverloads(c, toResolve, toResolve, {skTemplate, skMacro}, {efNoDiagnostics},
errors, false)
if r.state == csMatch:
var match = r.calleeSym
@@ -1261,6 +1238,8 @@ proc handleCaseStmtMacro(c: PContext; n: PNode; flags: TExprFlags): PNode =
of skMacro: result = semMacroExpr(c, toExpand, toExpand, match, flags)
of skTemplate: result = semTemplateExpr(c, toExpand, match, flags)
else: result = errorNode(c, n[0])
elif r.state == csNoMatch:
result = errorNode(c, n[0])
else:
result = errorNode(c, n[0])
if result.kind == nkEmpty:
@@ -1307,9 +1286,9 @@ proc semFor(c: PContext, n: PNode; flags: TExprFlags): PNode =
result = semForVars(c, n, flags)
# propagate any enforced VoidContext:
if n[^1].typ == c.enforceVoidContext:
result.typ() = c.enforceVoidContext
result.typ = c.enforceVoidContext
elif efInTypeof in flags:
result.typ() = result.lastSon.typ
result.typ = result.lastSon.typ
closeScope(c)
proc semCase(c: PContext, n: PNode; flags: TExprFlags; expectedType: PType = nil): PNode =
@@ -1389,14 +1368,14 @@ proc semCase(c: PContext, n: PNode; flags: TExprFlags; expectedType: PType = nil
for i in 1..<n.len: discardCheck(c, n[i].lastSon, flags)
# propagate any enforced VoidContext:
if typ == c.enforceVoidContext:
result.typ() = c.enforceVoidContext
result.typ = c.enforceVoidContext
else:
for i in 1..<n.len:
var it = n[i]
let j = it.len-1
if not endsInNoReturn(it[j]):
it[j] = fitNode(c, typ, it[j], it[j].info)
result.typ() = typ
result.typ = typ
proc semRaise(c: PContext, n: PNode): PNode =
result = n
@@ -1491,7 +1470,7 @@ proc typeDefLeftSidePass(c: PContext, typeSection: PNode, i: int) =
s = typsym
# add it here, so that recursive types are possible:
if sfGenSym notin s.flags: addInterfaceDecl(c, s)
elif s.owner == nil: setOwner(s, getCurrOwner(c))
elif s.owner == nil: s.owner = getCurrOwner(c)
if name.kind == nkPragmaExpr:
if name[0].kind == nkPostfix:
@@ -1714,14 +1693,12 @@ proc typeSectionRightSidePass(c: PContext, n: PNode) =
obj.ast[0] = a[0].shallowCopy
if a[0][0].kind == nkPostfix:
obj.ast[0][0] = a[0][0].shallowCopy
obj.ast[0][0][0] = a[0][0][0] # ident "*"
obj.ast[0][0][1] = symNode
else:
obj.ast[0][0] = symNode
obj.ast[0][1] = a[0][1]
of nkPostfix:
obj.ast[0] = a[0].shallowCopy
obj.ast[0][0] = a[0][0] # ident "*"
obj.ast[0][1] = symNode
else: assert(false)
obj.ast[1] = a[1]
@@ -1776,17 +1753,6 @@ proc typeSectionFinalPass(c: PContext, n: PNode) =
# check the style here after the pragmas have been processed:
styleCheckDef(c, s)
# compute the type's size and check for illegal recursions:
if a[0].kind == nkPragmaExpr:
let pragmas = a[0][1]
for i in 0 ..< pragmas.len:
if pragmas[i].kind == nkExprColonExpr and
pragmas[i][0].kind == nkIdent and
whichKeyword(pragmas[i][0].ident) == wSize:
if s.typ.kind != tyEnum and sfImportc notin s.flags:
# EventType* {.size: sizeof(uint32).} = enum
# AtomicFlag* {.importc: "atomic_flag", header: "<stdatomic.h>", size: 1.} = object
localError(c.config, pragmas[i].info, "size pragma only allowed for enum types and imported types")
if a[1].kind == nkEmpty:
var x = a[2]
if x.kind in nkCallKinds and nfSem in x.flags:
@@ -1819,6 +1785,10 @@ proc typeSectionFinalPass(c: PContext, n: PNode) =
checkForMetaFields(c, baseType.n, hasError)
if not hasError:
checkConstructedType(c.config, s.info, s.typ)
# fix bug #5170, bug #17162, bug #15526: ensure locally scoped types get a unique name:
if s.typ.kind in {tyEnum, tyRef, tyObject} and not isTopLevel(c):
incl(s.flags, sfGenSym)
#instAllTypeBoundOp(c, n.info)
@@ -1998,13 +1968,13 @@ proc semProcAnnotation(c: PContext, prc: PNode;
return result
proc semInferredLambda(c: PContext, pt: LayeredIdTable, n: PNode): PNode =
proc semInferredLambda(c: PContext, pt: TypeMapping, n: PNode): PNode =
## used for resolving 'auto' in lambdas based on their callsite
var n = n
let original = n[namePos].sym
let s = original #copySym(original, false)
#incl(s.flags, sfFromGeneric)
#s.owner() = original
#s.owner = original
n = replaceTypesInBody(c, pt, n, original)
result = n
@@ -2019,7 +1989,7 @@ proc semInferredLambda(c: PContext, pt: LayeredIdTable, n: PNode): PNode =
tyFromExpr}+tyTypeClasses:
localError(c.config, params[i].info, "cannot infer type of parameter: " &
params[i].sym.name.s)
#params[i].sym.owner() = s
#params[i].sym.owner = s
openScope(c)
pushOwner(c, s)
addParams(c, params, skProc)
@@ -2031,7 +2001,7 @@ proc semInferredLambda(c: PContext, pt: LayeredIdTable, n: PNode): PNode =
popOwner(c)
closeScope(c)
if optOwnedRefs in c.config.globalOptions and result.typ != nil:
result.typ() = makeVarType(c, result.typ, tyOwned)
result.typ = makeVarType(c, result.typ, tyOwned)
# alternative variant (not quite working):
# var prc = arg[0].sym
# let inferred = c.semGenerateInstance(c, prc, m.bindings, arg.info)
@@ -2064,27 +2034,14 @@ proc canonType(c: PContext, t: PType): PType =
else:
result = t
proc prevDestructor(c: PContext; op: TTypeAttachedOp; prevOp: PSym; obj: PType; info: TLineInfo) =
var msg = "cannot bind another '" & AttachedOpToStr[op] & "' to: " & typeToString(obj)
if prevOp == nil:
# happens if the destructor was implicitly constructed for a specific instance,
# not the entire generic type
msg.add "; previous declaration was constructed implicitly"
elif sfOverridden notin prevOp.flags:
proc prevDestructor(c: PContext; prevOp: PSym; obj: PType; info: TLineInfo) =
var msg = "cannot bind another '" & prevOp.name.s & "' to: " & typeToString(obj)
if sfOverridden notin prevOp.flags:
msg.add "; previous declaration was constructed here implicitly: " & (c.config $ prevOp.info)
else:
msg.add "; previous declaration was here: " & (c.config $ prevOp.info)
localError(c.config, info, errGenerated, msg)
proc checkedForDestructor(t: PType): bool =
if tfCheckedForDestructor in t.flags:
return true
# maybe another instance was instantiated, marking the generic root:
let root = genericRoot(t)
if root != nil and tfGenericHasDestructor in root.flags:
return true
result = false
proc whereToBindTypeHook(c: PContext; t: PType): PType =
result = t
while true:
@@ -2118,10 +2075,10 @@ proc bindDupHook(c: PContext; s: PSym; n: PNode; op: TTypeAttachedOp) =
let ao = getAttachedOp(c.graph, obj, op)
if ao == s:
discard "forward declared destructor"
elif ao.isNil and not checkedForDestructor(obj):
elif ao.isNil and tfCheckedForDestructor notin obj.flags:
setAttachedOp(c.graph, c.module.position, obj, op, s)
else:
prevDestructor(c, op, ao, obj, n.info)
prevDestructor(c, ao, obj, n.info)
noError = true
if obj.owner.getModule != s.getModule:
localError(c.config, n.info, errGenerated,
@@ -2134,7 +2091,7 @@ proc bindDupHook(c: PContext; s: PSym; n: PNode; op: TTypeAttachedOp) =
incl(s.flags, sfUsed)
incl(s.flags, sfOverridden)
proc bindTypeHook(c: PContext; s: PSym; n: PNode; op: TTypeAttachedOp) =
proc bindTypeHook(c: PContext; s: PSym; n: PNode; op: TTypeAttachedOp; suppressVarDestructorWarning = false) =
let t = s.typ
var noError = false
let cond = case op
@@ -2158,14 +2115,17 @@ proc bindTypeHook(c: PContext; s: PSym; n: PNode; op: TTypeAttachedOp) =
elif obj.kind == tyGenericInvocation: obj = obj.genericHead
else: break
if obj.kind in {tyObject, tyDistinct, tySequence, tyString}:
if (not suppressVarDestructorWarning) and op == attachedDestructor and t.firstParamType.kind == tyVar and
c.config.selectedGC in {gcArc, gcAtomicArc, gcOrc}:
message(c.config, n.info, warnDeprecated, "A custom '=destroy' hook which takes a 'var T' parameter is deprecated; it should take a 'T' parameter")
obj = canonType(c, obj)
let ao = getAttachedOp(c.graph, obj, op)
if ao == s:
discard "forward declared destructor"
elif ao.isNil and not checkedForDestructor(obj):
elif ao.isNil and tfCheckedForDestructor notin obj.flags:
setAttachedOp(c.graph, c.module.position, obj, op, s)
else:
prevDestructor(c, op, ao, obj, n.info)
prevDestructor(c, ao, obj, n.info)
noError = true
if obj.owner.getModule != s.getModule:
localError(c.config, n.info, errGenerated,
@@ -2256,10 +2216,10 @@ proc semOverride(c: PContext, s: PSym, n: PNode) =
let ao = getAttachedOp(c.graph, obj, k)
if ao == s:
discard "forward declared op"
elif ao.isNil and not checkedForDestructor(obj):
elif ao.isNil and tfCheckedForDestructor notin obj.flags:
setAttachedOp(c.graph, c.module.position, obj, k, s)
else:
prevDestructor(c, k, ao, obj, n.info)
prevDestructor(c, ao, obj, n.info)
if obj.owner.getModule != s.getModule:
localError(c.config, n.info, errGenerated,
"type bound operation `" & name & "` can be defined only in the same module with its type (" & obj.typeToString() & ")")
@@ -2348,7 +2308,7 @@ proc semCppMember(c: PContext; s: PSym; n: PNode) =
isInitializer = false
break
var j = 0
while p[j].kind == nkSym and p[j].sym.kind == skParam:
while p[j].sym.kind == skParam:
initializerCall.add val
inc j
if isInitializer:
@@ -2398,11 +2358,10 @@ proc semProcAux(c: PContext, n: PNode, kind: TSymKind,
of nkEmpty:
s = newSym(kind, c.cache.idAnon, c.idgen, c.getCurrOwner, n.info)
s.flags.incl sfUsed
s.flags.incl sfGenSym
n[namePos] = newSymNode(s)
of nkSym:
s = n[namePos].sym
setOwner(s, c.getCurrOwner)
s.owner = c.getCurrOwner
else:
# Highlighting needs to be done early so the position for
# name isn't changed (see taccent_highlight). We don't want to check if this is the
@@ -2648,9 +2607,9 @@ proc semProcAux(c: PContext, n: PNode, kind: TSymKind,
c.patterns.add(s)
if isAnon:
n.transitionSonsKind(nkLambda)
result.typ() = s.typ
result.typ = s.typ
if optOwnedRefs in c.config.globalOptions:
result.typ() = makeVarType(c, result.typ, tyOwned)
result.typ = makeVarType(c, result.typ, tyOwned)
elif isTopLevel(c) and s.kind != skIterator and s.typ.callConv == ccClosure:
localError(c.config, s.info, "'.closure' calling convention for top level routines is invalid")
@@ -2669,7 +2628,7 @@ proc semIterator(c: PContext, n: PNode): PNode =
# gensym'ed iterator?
if n[namePos].kind == nkSym:
# gensym'ed iterators might need to become closure iterators:
setOwner(n[namePos].sym, getCurrOwner(c))
n[namePos].sym.owner = getCurrOwner(c)
n[namePos].sym.transitionRoutineSymKind(skIterator)
result = semProcAux(c, n, skIterator, iteratorPragmas)
# bug #7093: if after a macro transformation we don't have an
@@ -2687,10 +2646,10 @@ proc semIterator(c: PContext, n: PNode): PNode =
incl(s.typ.flags, tfCapturesEnv)
else:
s.typ.callConv = ccInline
if result[bodyPos].kind == nkEmpty and s.magic == mNone and c.inConceptDecl == 0:
if n[bodyPos].kind == nkEmpty and s.magic == mNone and c.inConceptDecl == 0:
localError(c.config, n.info, errImplOfXexpected % s.name.s)
if optOwnedRefs in c.config.globalOptions and result.typ != nil:
result.typ() = makeVarType(c, result.typ, tyOwned)
result.typ = makeVarType(c, result.typ, tyOwned)
result.typ.callConv = ccClosure
proc semProc(c: PContext, n: PNode): PNode =
@@ -2775,23 +2734,20 @@ proc incMod(c: PContext, n: PNode, it: PNode, includeStmtResult: PNode) =
proc evalInclude(c: PContext, n: PNode): PNode =
result = newNodeI(nkStmtList, n.info)
result.add n
template checkAs(it: PNode) =
if it.kind == nkInfix and it.len == 3:
let op = it[0].getPIdent
if op != nil and op.id == ord(wAs):
localError(c.config, it.info, "Cannot use '" & it[0].renderTree & "' in 'include'.")
for i in 0..<n.len:
var imp: PNode
let it = n[i]
checkAs(it)
if it.kind in {nkInfix, nkPrefix} and it[^1].kind == nkBracket:
let lastPos = it.len - 1
var imp = copyNode(it)
newSons(imp, it.len)
for i in 0 ..< lastPos: imp[i] = it[i]
imp[lastPos] = imp[0] # dummy entry, replaced in the loop
for x in it[lastPos]:
checkAs(x)
imp[lastPos] = x
if it.kind == nkInfix and it.len == 3 and it[0].ident.s != "/":
localError(c.config, it.info, "Cannot use '" & it[0].ident.s & "' in 'include'.")
if it.kind == nkInfix and it.len == 3 and it[2].kind == nkBracket:
let sep = it[0]
let dir = it[1]
imp = newNodeI(nkInfix, it.info)
imp.add sep
imp.add dir
imp.add sep # dummy entry, replaced in the loop
for x in it[2]:
imp[2] = x
incMod(c, n, imp, result)
else:
incMod(c, n, it, result)
@@ -2821,7 +2777,7 @@ proc semPragmaBlock(c: PContext, n: PNode; expectedType: PType = nil): PNode =
n[1] = semExpr(c, n[1], expectedType = expectedType)
dec c.inUncheckedAssignSection, inUncheckedAssignSection
result = n
result.typ() = n[1].typ
result.typ = n[1].typ
for i in 0..<pragmaList.len:
case whichPragma(pragmaList[i])
of wLine: setInfoRecursive(result, pragmaList[i].info)
@@ -2902,18 +2858,18 @@ proc semStmtList(c: PContext, n: PNode, flags: TExprFlags, expectedType: PType =
let verdict = semConstExpr(c, n[i])
if verdict == nil or verdict.kind != nkIntLit or verdict.intVal == 0:
localError(c.config, result.info, "concept predicate failed")
of tyFromExpr: continue
of tyUnknown: continue
else: discard
if n[i].typ == c.enforceVoidContext: #or usesResult(n[i]):
voidContext = true
n.typ() = c.enforceVoidContext
n.typ = c.enforceVoidContext
if i == last and (n.len == 1 or ({efWantValue, efInTypeof} * flags != {})):
n.typ() = n[i].typ
n.typ = n[i].typ
if not isEmptyType(n.typ): n.transitionSonsKind(nkStmtListExpr)
elif i != last or voidContext:
discardCheck(c, n[i], flags)
else:
n.typ() = n[i].typ
n.typ = n[i].typ
if not isEmptyType(n.typ): n.transitionSonsKind(nkStmtListExpr)
var m = n[i]
while m.kind in {nkStmtListExpr, nkStmtList} and m.len > 0: # from templates

View File

@@ -67,12 +67,7 @@ proc symChoice(c: PContext, n: PNode, s: PSym, r: TSymChoiceRule;
# for instance 'nextTry' is both in tables.nim and astalgo.nim ...
if not isField or sfGenSym notin s.flags:
result = newSymNode(s, info)
if isField:
# possibly not final field sym
incl(s.flags, sfUsed)
markOwnerModuleAsUsed(c, s)
else:
markUsed(c, info, s)
markUsed(c, info, s)
onUse(info, s)
else:
result = n
@@ -223,76 +218,43 @@ proc addLocalDecl(c: var TemplCtx, n: var PNode, k: TSymKind) =
if k == skParam and c.inTemplateHeader > 0:
local.flags.incl sfTemplateParam
proc semTemplSymbol(c: var TemplCtx, n: PNode, s: PSym; isField, isAmbiguous: bool): PNode =
proc semTemplSymbol(c: PContext, n: PNode, s: PSym; isField: bool): PNode =
incl(s.flags, sfUsed)
# bug #12885; ideally sem'checking is performed again afterwards marking
# the symbol as used properly, but the nfSem mechanism currently prevents
# that from happening, so we mark the module as used here already:
markOwnerModuleAsUsed(c.c, s)
markOwnerModuleAsUsed(c, s)
# we do not call onUse here, as the identifier is not really
# resolved here. We will fixup the used identifiers later.
case s.kind
of skUnknown:
# Introduced in this pass! Leave it as an identifier.
result = n
of OverloadableSyms:
result = symChoice(c.c, n, s, scOpen, isField)
if not isField and result.kind in {nkSym, nkOpenSymChoice}:
if openSym in c.c.features:
if result.kind == nkSym:
result = newOpenSym(result)
else:
result.typ() = nil
else:
result.flags.incl nfDisabledOpenSym
result.typ() = nil
of OverloadableSyms-{skTemplate,skMacro}:
result = symChoice(c, n, s, scOpen, isField)
of skTemplate, skMacro:
result = symChoice(c, n, s, scOpen, isField)
if result.kind == nkSym:
# template/macro symbols might need to be semchecked again
# prepareOperand etc don't do this without setting the type to nil
result.typ = nil
of skGenericParam:
if isField and sfGenSym in s.flags: result = n
else:
result = newSymNodeTypeDesc(s, c.c.idgen, n.info)
if not isField and s.owner != c.owner:
if openSym in c.c.features:
result = newOpenSym(result)
else:
result.flags.incl nfDisabledOpenSym
result.typ() = nil
else: result = newSymNodeTypeDesc(s, c.idgen, n.info)
of skParam:
result = n
of skType:
if isField and sfGenSym in s.flags: result = n
else:
if isAmbiguous:
# ambiguous types should be symchoices since lookup behaves
# differently for them in regular expressions
result = symChoice(c.c, n, s, scOpen, isField)
else: result = newSymNodeTypeDesc(s, c.c.idgen, n.info)
if not isField and not (s.owner == c.owner and
s.typ != nil and s.typ.kind == tyGenericParam) and
result.kind in {nkSym, nkOpenSymChoice}:
if openSym in c.c.features:
if result.kind == nkSym:
result = newOpenSym(result)
else:
result.typ() = nil
else:
result.flags.incl nfDisabledOpenSym
result.typ() = nil
else: result = newSymNodeTypeDesc(s, c.idgen, n.info)
else:
if isField and sfGenSym in s.flags: result = n
else:
result = newSymNode(s, n.info)
if not isField:
if openSym in c.c.features:
result = newOpenSym(result)
else:
result.flags.incl nfDisabledOpenSym
result.typ() = nil
else: result = newSymNode(s, n.info)
# Issue #12832
when defined(nimsuggest):
suggestSym(c.c.graph, n.info, s, c.c.graph.usageSym, false)
suggestSym(c.graph, n.info, s, c.graph.usageSym, false)
# field access (dot expr) will be handled by builtinFieldAccess
if not isField:
styleCheckUse(c.c, n.info, s)
styleCheckUse(c, n.info, s)
proc semRoutineInTemplName(c: var TemplCtx, n: PNode, explicitInject: bool): PNode =
result = n
@@ -383,7 +345,6 @@ proc semTemplBody(c: var TemplCtx, n: PNode): PNode =
case n.kind
of nkIdent:
if n.ident.id in c.toInject: return n
c.c.isAmbiguous = false
let s = qualifiedLookUp(c.c, n, {})
if s != nil:
if s.owner == c.owner and s.kind == skParam and sfTemplateParam in s.flags:
@@ -401,9 +362,9 @@ proc semTemplBody(c: var TemplCtx, n: PNode): PNode =
result = newSymNode(s, n.info)
onUse(n.info, s)
else:
if s.kind in {skVar, skLet, skConst}:
if s.kind in {skType, skVar, skLet, skConst}:
discard qualifiedLookUp(c.c, n, {checkAmbiguity, checkModule})
result = semTemplSymbol(c, n, s, c.noGenSym > 0, c.c.isAmbiguous)
result = semTemplSymbol(c.c, n, s, c.noGenSym > 0)
of nkBind:
result = semTemplBody(c, n[0])
of nkBindStmt:
@@ -540,20 +501,13 @@ proc semTemplBody(c: var TemplCtx, n: PNode): PNode =
of nkConverterDef:
result = semRoutineInTemplBody(c, n, skConverter)
of nkPragmaExpr:
result = semTemplBodySons(c, n)
result[0] = semTemplBody(c, n[0])
of nkPostfix:
result[1] = semTemplBody(c, n[1])
of nkPragma:
for i in 0 ..< n.len:
let x = n[i]
let prag = whichPragma(x)
if prag == wInvalid:
# only sem if not a language-level pragma
result[i] = semTemplBody(c, x)
elif x.kind in nkPragmaCallKinds:
# is pragma, but value still needs to be checked
for j in 1 ..< x.len:
x[j] = semTemplBody(c, x[j])
for x in n:
if x.kind == nkExprColonExpr:
x[1] = semTemplBody(c, x[1])
of nkBracketExpr:
if n.typ == nil:
# if a[b] is nested inside a typed expression, don't convert it
@@ -604,7 +558,6 @@ proc semTemplBody(c: var TemplCtx, n: PNode): PNode =
of nkDotExpr, nkAccQuoted:
# dotExpr is ambiguous: note that we explicitly allow 'x.TemplateParam',
# so we use the generic code for nkDotExpr too
c.c.isAmbiguous = false
let s = qualifiedLookUp(c.c, n, {})
if s != nil:
# mirror the nkIdent case
@@ -619,9 +572,9 @@ proc semTemplBody(c: var TemplCtx, n: PNode): PNode =
elif contains(c.toMixin, s.name.id):
return symChoice(c.c, n, s, scForceOpen, c.noGenSym > 0)
else:
if s.kind in {skVar, skLet, skConst}:
if s.kind in {skType, skVar, skLet, skConst}:
discard qualifiedLookUp(c.c, n, {checkAmbiguity, checkModule})
return semTemplSymbol(c, n, s, c.noGenSym > 0, c.c.isAmbiguous)
return semTemplSymbol(c.c, n, s, c.noGenSym > 0)
if n.kind == nkDotExpr:
result = n
result[0] = semTemplBody(c, n[0])
@@ -696,9 +649,6 @@ proc semTemplateDef(c: PContext, n: PNode): PNode =
s = semIdentVis(c, skTemplate, n[namePos], {})
assert s.kind == skTemplate
let info = getLineInfo(n[namePos])
suggestSym(c.graph, info, s, c.graph.usageSym)
styleCheckDef(c, s)
onDef(n[namePos].info, s)
# check parameter list:
@@ -708,7 +658,6 @@ proc semTemplateDef(c: PContext, n: PNode): PNode =
pushOwner(c, s)
openScope(c)
n[namePos] = newSymNode(s)
s.ast = n # for implicitPragmas to use
pragmaCallable(c, s, n, templatePragmas)
implicitPragmas(c, s, n.info, templatePragmas)
@@ -759,17 +708,6 @@ proc semTemplateDef(c: PContext, n: PNode): PNode =
c: c,
owner: s
)
# handle default params:
for i in 1..<s.typ.n.len:
let param = s.typ.n[i].sym
if param.ast != nil:
# param default values need to be treated like template body:
if sfDirty in s.flags:
param.ast = semTemplBodyDirty(ctx, param.ast)
else:
param.ast = semTemplBody(ctx, param.ast)
if param.ast.referencesAnotherParam(s):
param.ast.flags.incl nfDefaultRefsParam
if sfDirty in s.flags:
n[bodyPos] = semTemplBodyDirty(ctx, n[bodyPos])
else:
@@ -779,6 +717,11 @@ proc semTemplateDef(c: PContext, n: PNode): PNode =
closeScope(c)
popOwner(c)
# set the symbol AST after pragmas, at least. This stops pragma that have
# been pushed (implicit) to be explicitly added to the template definition
# and misapplied to the body. see #18113
s.ast = n
if sfCustomPragma in s.flags:
if n[bodyPos].kind != nkEmpty:
localError(c.config, n[bodyPos].info, errImplOfXNotAllowed % s.name.s)

View File

@@ -84,7 +84,6 @@ proc semEnum(c: PContext, n: PNode, prev: PType): PType =
let isPure = result.sym != nil and sfPure in result.sym.flags
var symbols: TStrTable = initStrTable()
var hasNull = false
var needsReorder = false
for i in 1..<n.len:
if n[i].kind == nkEmpty: continue
var useAutoCounter = false
@@ -123,9 +122,7 @@ proc semEnum(c: PContext, n: PNode, prev: PType): PType =
else:
localError(c.config, v.info, errOrdinalTypeExpected % typeToString(v.typ, preferDesc))
if i != 1:
if x != counter:
needsReorder = true
incl(result.flags, tfEnumHasHoles)
if x != counter: incl(result.flags, tfEnumHasHoles)
e.ast = strVal # might be nil
counter = x
of nkSym:
@@ -176,13 +173,6 @@ proc semEnum(c: PContext, n: PNode, prev: PType): PType =
localError(c.config, n[i].info, errOverflowInEnumX % [e.name.s, $high(typeof(counter))])
else:
inc(counter)
if needsReorder:
result.n.sons.sort(
proc (x, y: PNode): int =
result = cmp(x.sym.position, y.sym.position)
)
if isPure and sfExported in result.sym.flags:
addPureEnum(c, LazySym(sym: result.sym))
if tfNotNil in e.typ.flags and not hasNull:
@@ -257,39 +247,27 @@ proc isRecursiveType(t: PType, cycleDetector: var IntSet): bool =
else:
return false
proc annotateClosureConv(n: PNode) =
case n.kind
of {nkNone..nkNilLit}:
discard
of nkTupleConstr:
if n.typ.kind == tyProc and n.typ.callConv == ccClosure and
n[0].typ.kind == tyProc and n[0].typ.callConv != ccClosure:
# restores `transf.generateThunk`
n[0] = newTreeIT(nkHiddenSubConv, n[0].info, n.typ,
newNodeI(nkEmpty, n[0].info), n[0])
n.transitionSonsKind(nkClosure)
n.flags.incl nfTransf
else:
for i in 0..<n.len:
annotateClosureConv(n[i])
proc fitDefaultNode(c: PContext, n: var PNode, expectedType: PType) =
proc fitDefaultNode(c: PContext, n: PNode): PType =
inc c.inStaticContext
n = semConstExpr(c, n, expectedType = expectedType)
let oldType = n.typ
n.flags.incl nfSem
if expectedType != nil and oldType != expectedType:
n = fitNodeConsiderViewType(c, expectedType, n, n.info)
changeType(c, n, expectedType, true) # infer types for default fields value
# bug #22926; be cautious that it uses `semConstExpr` to
# evaulate the default fields; it's only natural to use
# `changeType` to infer types for constant values
# that's also the reason why we don't use `semExpr` to check
# the type since two overlapping error messages might be produced
annotateClosureConv(n)
let expectedType = if n[^2].kind != nkEmpty: semTypeNode(c, n[^2], nil) else: nil
n[^1] = semConstExpr(c, n[^1], expectedType = expectedType)
let oldType = n[^1].typ
n[^1].flags.incl nfSem
if n[^2].kind != nkEmpty:
if expectedType != nil and oldType != expectedType:
n[^1] = fitNodeConsiderViewType(c, expectedType, n[^1], n[^1].info)
changeType(c, n[^1], expectedType, true) # infer types for default fields value
# bug #22926; be cautious that it uses `semConstExpr` to
# evaulate the default fields; it's only natural to use
# `changeType` to infer types for constant values
# that's also the reason why we don't use `semExpr` to check
# the type since two overlapping error messages might be produced
result = n[^1].typ
else:
result = n[^1].typ
# xxx any troubles related to defaults fields, consult `semConst` for a potential answer
if n.kind != nkNilLit:
typeAllowedCheck(c, n.info, n.typ, skConst, {taProcContextIsNotMacro, taIsDefaultField})
if n[^1].kind != nkNilLit:
typeAllowedCheck(c, n.info, result, skConst, {taProcContextIsNotMacro, taIsDefaultField})
dec c.inStaticContext
proc isRecursiveType*(t: PType): bool =
@@ -409,12 +387,8 @@ proc semArrayIndex(c: PContext, n: PNode): PType =
result = makeRangeWithStaticExpr(c, e.typ.n)
elif e.kind in {nkIntLit..nkUInt64Lit}:
if e.intVal < 0:
if e.kind in {nkIntLit..nkInt64Lit}:
localError(c.config, n.info,
"Array length can't be negative, but was " & $e.intVal)
else:
localError(c.config, n.info,
"Array length can't exceed its maximum value (9223372036854775807), but was " & $cast[BiggestUInt](e.intVal))
localError(c.config, n.info,
"Array length can't be negative, but was " & $e.intVal)
result = makeRangeType(c, 0, e.intVal-1, n.info, e.typ)
elif e.kind == nkSym and (e.typ.kind == tyStatic or e.typ.kind == tyTypeDesc):
if e.typ.kind == tyStatic:
@@ -501,13 +475,6 @@ proc semAnonTuple(c: PContext, n: PNode, prev: PType): PType =
let t = semTypeNode(c, it, nil)
addSonSkipIntLitChecked(c, result, t, it, c.idgen)
proc firstRange(config: ConfigRef, t: PType): PNode =
if t.skipModifier().kind in tyFloat..tyFloat64:
result = newFloatNode(nkFloatLit, firstFloat(t))
else:
result = newIntNode(nkIntLit, firstOrd(config, t))
result.typ() = t
proc semTuple(c: PContext, n: PNode, prev: PType): PType =
var typ: PType
result = newOrPrevType(tyTuple, prev, c)
@@ -520,18 +487,12 @@ proc semTuple(c: PContext, n: PNode, prev: PType): PType =
checkMinSonsLen(a, 3, c.config)
var hasDefaultField = a[^1].kind != nkEmpty
if hasDefaultField:
typ = if a[^2].kind != nkEmpty: semTypeNode(c, a[^2], nil) else: nil
if c.inGenericContext > 0:
a[^1] = semExprWithType(c, a[^1], {efDetermineType, efAllowSymChoice}, typ)
if typ == nil:
typ = a[^1].typ
else:
fitDefaultNode(c, a[^1], typ)
typ = a[^1].typ
typ = fitDefaultNode(c, a)
elif a[^2].kind != nkEmpty:
typ = semTypeNode(c, a[^2], nil)
if c.graph.config.isDefined("nimPreviewRangeDefault") and typ.skipTypes(abstractInst).kind == tyRange:
a[^1] = firstRange(c.config, typ)
a[^1] = newIntNode(nkIntLit, firstOrd(c.config, typ))
a[^1].typ = typ
hasDefaultField = true
else:
localError(c.config, a.info, errTypeExpected)
@@ -553,7 +514,7 @@ proc semTuple(c: PContext, n: PNode, prev: PType): PType =
styleCheckDef(c, a[j].info, field)
onDef(field.info, field)
if result.n.len == 0: result.n = nil
if isRecursiveStructuralType(result):
if isTupleRecursive(result):
localError(c.config, n.info, errIllegalRecursionInTypeX % typeToString(result))
proc semIdentVis(c: PContext, kind: TSymKind, n: PNode,
@@ -619,14 +580,9 @@ proc semBranchRange(c: PContext, n, a, b: PNode, covered: var Int128): PNode =
let bc = semConstExpr(c, b)
if ac.kind in {nkStrLit..nkTripleStrLit} or bc.kind in {nkStrLit..nkTripleStrLit}:
localError(c.config, b.info, "range of string is invalid")
var at = fitNode(c, n[0].typ, ac, ac.info).skipConvTakeType
var bt = fitNode(c, n[0].typ, bc, bc.info).skipConvTakeType
# the calls to fitNode may introduce calls to converters
# mirrored with semCaseBranch for single elements
if at.kind in {nkHiddenCallConv, nkHiddenStdConv, nkHiddenSubConv}:
at = semConstExpr(c, at)
if bt.kind in {nkHiddenCallConv, nkHiddenStdConv, nkHiddenSubConv}:
bt = semConstExpr(c, bt)
let at = fitNode(c, n[0].typ, ac, ac.info).skipConvTakeType
let bt = fitNode(c, n[0].typ, bc, bc.info).skipConvTakeType
result = newNodeI(nkRange, a.info)
result.add(at)
result.add(bt)
@@ -657,8 +613,6 @@ proc semCaseBranch(c: PContext, n, branch: PNode, branchIndex: int,
var b = branch[i]
if b.kind == nkRange:
branch[i] = b
# same check as in semBranchRange for exhaustiveness
covered = covered + getOrdValue(b[1]) + 1 - getOrdValue(b[0])
elif isRange(b):
branch[i] = semCaseBranchRange(c, n, b, covered)
else:
@@ -674,8 +628,8 @@ proc semCaseBranch(c: PContext, n, branch: PNode, branchIndex: int,
checkMinSonsLen(n, 1, c.config)
var tmp = fitNode(c, n[0].typ, r, r.info)
# the call to fitNode may introduce a call to a converter
# mirrored with semBranchRange
if tmp.kind in {nkHiddenCallConv, nkHiddenStdConv, nkHiddenSubConv}:
if tmp.kind == nkHiddenCallConv or
(tmp.kind == nkHiddenStdConv and n[0].typ.kind == tyCstring):
tmp = semConstExpr(c, tmp)
branch[i] = skipConv(tmp)
inc(covered)
@@ -829,7 +783,6 @@ proc semRecordNodeAux(c: PContext, n: PNode, check: var IntSet, pos: var int,
of nkRecWhen:
var a = copyTree(n)
var branch: PNode = nil # the branch to take
var cannotResolve = false # no branch should be taken
for i in 0..<a.len:
var it = a[i]
if it == nil: illFormedAst(n, c.config)
@@ -847,30 +800,24 @@ proc semRecordNodeAux(c: PContext, n: PNode, check: var IntSet, pos: var int,
let e = semExprWithType(c, it[0], {efDetermineType})
if e.typ.kind == tyFromExpr:
it[0] = makeStaticExpr(c, e)
cannotResolve = true
else:
it[0] = forceBool(c, e)
let val = getConstExpr(c.module, it[0], c.idgen, c.graph)
if val == nil or val.kind != nkIntLit:
cannotResolve = true
elif not cannotResolve and val.intVal != 0 and branch == nil:
branch = it[1]
of nkElse:
checkSonsLen(it, 1, c.config)
if branch == nil and not cannotResolve: branch = it[0]
if branch == nil: branch = it[0]
idx = 0
else: illFormedAst(n, c.config)
if c.inGenericContext > 0 and cannotResolve:
if c.inGenericContext > 0:
# use a new check intset here for each branch:
var newCheck: IntSet = check
var newPos = pos
var newf = newNodeI(nkRecList, n.info)
semRecordNodeAux(c, it[idx], newCheck, newPos, newf, rectype, hasCaseFields)
it[idx] = if newf.len == 1: newf[0] else: newf
if branch != nil:
semRecordNodeAux(c, branch, check, pos, father, rectype, hasCaseFields)
elif cannotResolve:
if c.inGenericContext > 0:
father.add a
elif branch != nil:
semRecordNodeAux(c, branch, check, pos, father, rectype, hasCaseFields)
elif father.kind in {nkElse, nkOfBranch}:
father.add newNodeI(nkRecList, n.info)
of nkRecCase:
@@ -891,22 +838,16 @@ proc semRecordNodeAux(c: PContext, n: PNode, check: var IntSet, pos: var int,
var typ: PType
var hasDefaultField = n[^1].kind != nkEmpty
if hasDefaultField:
typ = if n[^2].kind != nkEmpty: semTypeNode(c, n[^2], nil) else: nil
if c.inGenericContext > 0:
n[^1] = semExprWithType(c, n[^1], {efDetermineType, efAllowSymChoice}, typ)
if typ == nil:
typ = n[^1].typ
else:
fitDefaultNode(c, n[^1], typ)
typ = n[^1].typ
propagateToOwner(rectype, typ)
typ = fitDefaultNode(c, n)
propagateToOwner(rectype, typ)
elif n[^2].kind == nkEmpty:
localError(c.config, n.info, errTypeExpected)
typ = errorType(c)
else:
typ = semTypeNode(c, n[^2], nil)
if c.graph.config.isDefined("nimPreviewRangeDefault") and typ.skipTypes(abstractInst).kind == tyRange:
n[^1] = firstRange(c.config, typ)
n[^1] = newIntNode(nkIntLit, firstOrd(c.config, typ))
n[^1].typ = typ
hasDefaultField = true
propagateToOwner(rectype, typ)
var fieldOwner = if c.inGenericContext > 0: c.getCurrOwner
@@ -1136,7 +1077,7 @@ proc addParamOrResult(c: PContext, param: PSym, kind: TSymKind) =
if sfGenSym in param.flags:
# bug #XXX, fix the gensym'ed parameters owner:
if param.owner == nil:
setOwner(param, getCurrOwner(c))
param.owner = getCurrOwner(c)
else: addDecl(c, param)
template shouldHaveMeta(t) =
@@ -1289,14 +1230,12 @@ proc liftParamType(c: PContext, procKind: TSymKind, genericParams: PNode,
paramType[i] = lifted
result = paramType
result.last.shouldHaveMeta
if paramType.isConcept:
return addImplicitGeneric(c, paramType, paramTypId, info, genericParams, paramName)
else:
let liftBody = recurse(paramType.skipModifier, true)
if liftBody != nil:
result = liftBody
result.flags.incl tfHasMeta
#result.shouldHaveMeta
let liftBody = recurse(paramType.skipModifier, true)
if liftBody != nil:
result = liftBody
result.flags.incl tfHasMeta
#result.shouldHaveMeta
of tyGenericInvocation:
result = nil
@@ -1310,6 +1249,7 @@ proc liftParamType(c: PContext, procKind: TSymKind, genericParams: PNode,
# this may happen for proc type appearing in a type section
# before one of its param types
return
if body.last.kind == tyUserTypeClass:
let expanded = instGenericContainer(c, info, paramType,
allowMetaTypes = true)
@@ -1337,7 +1277,7 @@ proc semParamType(c: PContext, n: PNode, constraint: var PNode): PType =
result = semTypeNode(c, n[0], nil)
constraint = semNodeKindConstraints(n, c.config, 1)
elif n.kind == nkCall and
n[0].kind in {nkIdent, nkSym, nkOpenSymChoice, nkClosedSymChoice, nkOpenSym} and
n[0].kind in {nkIdent, nkSym, nkOpenSymChoice, nkClosedSymChoice} and
considerQuotedIdent(c, n[0]).s == "{}":
result = semTypeNode(c, n[1], nil)
constraint = semNodeKindConstraints(n, c.config, 2)
@@ -1367,9 +1307,6 @@ proc semProcTypeNode(c: PContext, n, genericParams: PNode,
result = newProcType(c, n.info, prev)
var check = initIntSet()
var counter = 0
template isCurrentlyGeneric: bool =
# genericParams might update as implicit generic params are added
genericParams != nil and genericParams.len > 0
for i in 1..<n.len:
var a = n[i]
@@ -1390,10 +1327,7 @@ proc semProcTypeNode(c: PContext, n, genericParams: PNode,
hasDefault = a[^1].kind != nkEmpty
if hasType:
let isGeneric = isCurrentlyGeneric()
inc c.inGenericContext, ord(isGeneric)
typ = semParamType(c, a[^2], constraint)
dec c.inGenericContext, ord(isGeneric)
# TODO: Disallow typed/untyped in procs in the compiler/stdlib
if kind in {skProc, skFunc} and (typ.kind == tyTyped or typ.kind == tyUntyped):
if not isMagic(getCurrOwner(c)):
@@ -1413,26 +1347,15 @@ proc semProcTypeNode(c: PContext, n, genericParams: PNode,
"either use ';' (semicolon) or explicitly write each default value")
message(c.config, a.info, warnImplicitDefaultValue, msg)
block determineType:
var canBeVoid = false
if kind == skTemplate:
if typ != nil and typ.kind == tyUntyped:
# don't do any typechecking or assign a type for
# `untyped` parameter default value
var defTyp = typ
if genericParams != nil and genericParams.len > 0:
defTyp = nil
def = semGenericStmt(c, def)
if hasUnresolvedArgs(c, def):
def.typ = makeTypeFromExpr(c, def.copyTree)
break determineType
elif hasUnresolvedArgs(c, def):
# template default value depends on other parameter
# don't do any typechecking
def.typ() = makeTypeFromExpr(c, def.copyTree)
break determineType
elif typ != nil and typ.kind == tyTyped:
canBeVoid = true
let isGeneric = isCurrentlyGeneric()
inc c.inGenericContext, ord(isGeneric)
if canBeVoid:
def = semExpr(c, def, {efDetermineType, efAllowSymChoice}, typ)
else:
def = semExprWithType(c, def, {efDetermineType, efAllowSymChoice}, typ)
dec c.inGenericContext, ord(isGeneric)
def = semExprWithType(c, def, {efDetermineType, efAllowSymChoice}, defTyp)
if def.referencesAnotherParam(getCurrOwner(c)):
def.flags.incl nfDefaultRefsParam
@@ -1451,7 +1374,7 @@ proc semProcTypeNode(c: PContext, n, genericParams: PNode,
typ = newTypeS(tyTypeDesc, c, newTypeS(tyNone, c))
typ.flags.incl tfCheckedForDestructor
elif def.typ != nil and def.typ.kind != tyFromExpr: # def.typ can be void
else:
# if def.typ != nil and def.typ.kind != tyNone:
# example code that triggers it:
# proc sort[T](cmp: proc(a, b: T): int = cmp)
@@ -1466,8 +1389,6 @@ proc semProcTypeNode(c: PContext, n, genericParams: PNode,
if isType: localError(c.config, a.info, "':' expected")
if kind in {skTemplate, skMacro}:
typ = newTypeS(tyUntyped, c)
elif isRecursiveStructuralType(typ):
localError(c.config, a[^2].info, errIllegalRecursionInTypeX % typeToString(typ))
elif skipTypes(typ, {tyGenericInst, tyAlias, tySink}).kind == tyVoid:
continue
@@ -1504,17 +1425,13 @@ proc semProcTypeNode(c: PContext, n, genericParams: PNode,
addParamOrResult(c, arg, kind)
styleCheckDef(c, a[j].info, arg)
onDef(a[j].info, arg)
if a[j].kind == nkPragmaExpr:
a[j][0] = newSymNode(arg)
else:
a[j] = newSymNode(arg)
a[j] = newSymNode(arg)
var r: PType = nil
if n[0].kind != nkEmpty:
let isGeneric = isCurrentlyGeneric()
inc c.inGenericContext, ord(isGeneric)
r = semTypeNode(c, n[0], nil)
dec c.inGenericContext, ord(isGeneric)
var r: PType =
if n[0].kind != nkEmpty:
semTypeNode(c, n[0], nil)
else:
nil
if r != nil and kind in {skMacro, skTemplate} and r.kind == tyTyped:
# XXX: To implement the proposed change in the warning, just
@@ -1531,9 +1448,7 @@ proc semProcTypeNode(c: PContext, n, genericParams: PNode,
if r != nil:
# turn explicit 'void' return type into 'nil' because the rest of the
# compiler only checks for 'nil':
if isRecursiveStructuralType(r):
localError(c.config, n.info, errIllegalRecursionInTypeX % typeToString(r))
elif skipTypes(r, {tyGenericInst, tyAlias, tySink}).kind != tyVoid:
if skipTypes(r, {tyGenericInst, tyAlias, tySink}).kind != tyVoid:
if kind notin {skMacro, skTemplate} and r.kind in {tyTyped, tyUntyped}:
localError(c.config, n[0].info, "return type '" & typeToString(r) &
"' is only valid for macros and templates")
@@ -1567,9 +1482,9 @@ proc semProcTypeNode(c: PContext, n, genericParams: PNode,
# XXX This rather hacky way keeps 'tflatmap' compiling:
if tfHasMeta notin oldFlags:
result.flags.excl tfHasMeta
result.n.typ() = r
result.n.typ = r
if isCurrentlyGeneric():
if genericParams != nil and genericParams.len > 0:
for n in genericParams:
if {sfUsed, sfAnon} * n.sym.flags == {}:
result.flags.incl tfUnresolved
@@ -1584,8 +1499,8 @@ proc semStmtListType(c: PContext, n: PNode, prev: PType): PType =
n[i] = semStmt(c, n[i], {})
if n.len > 0:
result = semTypeNode(c, n[^1], prev)
n.typ() = result
n[^1].typ() = result
n.typ = result
n[^1].typ = result
else:
result = nil
@@ -1598,15 +1513,15 @@ proc semBlockType(c: PContext, n: PNode, prev: PType): PType =
if n[0].kind notin {nkEmpty, nkSym}:
addDecl(c, newSymS(skLabel, n[0], c))
result = semStmtListType(c, n[1], prev)
n[1].typ() = result
n.typ() = result
n[1].typ = result
n.typ = result
closeScope(c)
c.p.breakInLoop = oldBreakInLoop
dec(c.p.nestedBlockCounter)
proc semGenericParamInInvocation(c: PContext, n: PNode): PType =
result = semTypeNode(c, n, nil)
n.typ() = makeTypeDesc(c, result)
n.typ = makeTypeDesc(c, result)
proc trySemObjectTypeForInheritedGenericInst(c: PContext, n: PNode, t: PType): bool =
var
@@ -1679,11 +1594,6 @@ proc semGeneric(c: PContext, n: PNode, s: PSym, prev: PType): PType =
var err = "cannot instantiate "
err.addTypeHeader(c.config, t)
err.add "\ngot: <$1>\nbut expected: <$2>" % [describeArgs(c, n), describeArgs(c, t.n, 0)]
if m.firstMismatch.kind == kTypeMismatch and m.firstMismatch.arg < n.len:
let nArg = n[m.firstMismatch.arg]
if nArg.kind in nkSymChoices:
err.add "\n"
err.add ambiguousIdentifierMsg(nArg)
localError(c.config, n.info, errGenerated, err)
return newOrPrevType(tyError, prev, c)
@@ -1720,7 +1630,7 @@ proc semGeneric(c: PContext, n: PNode, s: PSym, prev: PType): PType =
# special check for generic object with
# generic/partial specialized parent
let tx = result.skipTypes(abstractPtrs, 50)
if tx.isNil or isRecursiveStructuralType(tx):
if tx.isNil or isTupleRecursive(tx):
localError(c.config, n.info, "illegal recursion in type '$1'" % typeToString(result[0]))
return errorType(c)
if tx != result and tx.kind == tyObject:
@@ -1731,8 +1641,7 @@ proc semGeneric(c: PContext, n: PNode, s: PSym, prev: PType): PType =
recomputeFieldPositions(tx, tx.n, position)
proc maybeAliasType(c: PContext; typeExpr, prev: PType): PType =
if prev != nil and (prev.kind == tyGenericBody or
typeExpr.kind in {tyObject, tyEnum, tyDistinct, tyForward, tyGenericBody}):
if typeExpr.kind in {tyObject, tyEnum, tyDistinct, tyForward, tyGenericBody} and prev != nil:
result = newTypeS(tyAlias, c)
result.rawAddSon typeExpr
result.sym = prev.sym
@@ -1741,10 +1650,10 @@ proc maybeAliasType(c: PContext; typeExpr, prev: PType): PType =
else:
result = nil
proc fixupTypeOf(c: PContext, prev: PType, typ: PType) =
proc fixupTypeOf(c: PContext, prev: PType, typExpr: PNode) =
if prev != nil:
let result = newTypeS(tyAlias, c)
result.rawAddSon typ
result.rawAddSon typExpr.typ
result.sym = prev.sym
if prev.kind != tyGenericBody:
assignType(prev, result)
@@ -1770,10 +1679,6 @@ proc semTypeExpr(c: PContext, n: PNode; prev: PType): PType =
# unnecessary new type creation
let alias = maybeAliasType(c, result, prev)
if alias != nil: result = alias
elif n.typ.kind == tyFromExpr and c.inGenericContext > 0:
# sometimes not possible to distinguish type from value in generic body,
# for example `T.Foo`, so both are handled under `tyFromExpr`
result = n.typ
else:
localError(c.config, n.info, "expected type, but got: " & n.renderTree)
result = errorType(c)
@@ -1859,15 +1764,12 @@ proc applyTypeSectionPragmas(c: PContext; pragmas, operand: PNode): PNode =
discard "builtin pragma"
else:
trySuggestPragmas(c, key)
let ident =
if key.kind in nkIdentKinds:
considerQuotedIdent(c, key)
else:
nil
if ident != nil and strTableGet(c.userPragmas, ident) != nil:
let ident = considerQuotedIdent(c, key)
if strTableGet(c.userPragmas, ident) != nil:
discard "User-defined pragma"
else:
let sym = qualifiedLookUp(c, key, {})
var amb = false
let sym = searchInScopes(c, ident, amb)
# XXX: What to do here if amb is true?
if sym != nil and sfCustomPragma in sym.flags:
discard "Custom user pragma"
@@ -1884,7 +1786,7 @@ proc applyTypeSectionPragmas(c: PContext; pragmas, operand: PNode): PNode =
x.add(operand.copyTreeWithoutNode(p))
# recursion assures that this works for multiple macro annotations too:
var r = semOverloadedCall(c, x, x, {skMacro, skTemplate}, {efNoUndeclared})
if r != nil and (r.typ == nil or r.typ.kind != tyFromExpr):
if r != nil:
doAssert r[0].kind == nkSym
let m = r[0].sym
case m.kind
@@ -1934,21 +1836,10 @@ proc semStaticType(c: PContext, childNode: PNode, prev: PType): PType =
proc semTypeOf(c: PContext; n: PNode; prev: PType): PType =
openScope(c)
inc c.inTypeofContext
defer: dec c.inTypeofContext # compiles can raise an exception
let ex = semExprWithType(c, n, {efInTypeof})
let t = semExprWithType(c, n, {efInTypeof})
closeScope(c)
result = ex.typ
if result.kind == tyFromExpr:
result.flags.incl tfNonConstExpr
elif result.kind == tyStatic:
let base = result.skipTypes({tyStatic})
if c.inGenericContext > 0 and base.containsGenericType:
result = makeTypeFromExpr(c, copyTree(ex))
result.flags.incl tfNonConstExpr
else:
result = base
fixupTypeOf(c, prev, result)
fixupTypeOf(c, prev, t)
result = t.typ
proc semTypeOf2(c: PContext; n: PNode; prev: PType): PType =
openScope(c)
@@ -1959,21 +1850,10 @@ proc semTypeOf2(c: PContext; n: PNode; prev: PType): PType =
localError(c.config, n.info, "typeof: cannot evaluate 'mode' parameter at compile-time")
else:
m = mode.intVal
inc c.inTypeofContext
defer: dec c.inTypeofContext # compiles can raise an exception
let ex = semExprWithType(c, n[1], if m == 1: {efInTypeof} else: {})
let t = semExprWithType(c, n[1], if m == 1: {efInTypeof} else: {})
closeScope(c)
result = ex.typ
if result.kind == tyFromExpr:
result.flags.incl tfNonConstExpr
elif result.kind == tyStatic:
let base = result.skipTypes({tyStatic})
if c.inGenericContext > 0 and base.containsGenericType:
result = makeTypeFromExpr(c, copyTree(ex))
result.flags.incl tfNonConstExpr
else:
result = base
fixupTypeOf(c, prev, result)
fixupTypeOf(c, prev, t)
result = t.typ
proc semTypeIdent(c: PContext, n: PNode): PSym =
if n.kind == nkSym:
@@ -2037,7 +1917,7 @@ proc semTypeIdent(c: PContext, n: PNode): PSym =
n.transitionNoneToSym()
n.sym = result
n.info = oldInfo
n.typ() = result.typ
n.typ = result.typ
else:
localError(c.config, n.info, "identifier expected")
result = errorSym(c, n)
@@ -2061,7 +1941,11 @@ proc semTypeNode(c: PContext, n: PNode, prev: PType): PType =
of nkTupleConstr: result = semAnonTuple(c, n, prev)
of nkCallKinds:
let x = n[0]
let ident = x.getPIdent
let ident = case x.kind
of nkIdent: x.ident
of nkSym: x.sym.name
of nkClosedSymChoice, nkOpenSymChoice: x[0].sym.name
else: nil
if ident != nil and ident.s == "[]":
let b = newNodeI(nkBracketExpr, n.info)
for i in 1..<n.len: b.add(n[i])
@@ -2151,21 +2035,20 @@ proc semTypeNode(c: PContext, n: PNode, prev: PType): PType =
elif op.id == ord(wType):
checkSonsLen(n, 2, c.config)
result = semTypeOf(c, n[1], prev)
elif op.s == "typeof" and (
(n[0].kind == nkSym and n[0].sym.magic == mTypeOf) or
(n[0].kind == nkOpenSym and n[0][0].sym.magic == mTypeOf)):
elif op.s == "typeof" and n[0].kind == nkSym and n[0].sym.magic == mTypeOf:
result = semTypeOf2(c, n, prev)
elif op.s == "owned" and optOwnedRefs notin c.config.globalOptions and n.len == 2:
result = semTypeExpr(c, n[1], prev)
else:
result = semTypeExpr(c, n, prev)
if c.inGenericContext > 0 and n.kind == nkCall:
let n = semGenericStmt(c, n)
result = makeTypeFromExpr(c, n.copyTree)
else:
result = semTypeExpr(c, n, prev)
of nkWhenStmt:
var whenResult = semWhen(c, n, false)
if whenResult.kind == nkStmtList: whenResult.transitionSonsKind(nkStmtListType)
if whenResult.kind == nkWhenStmt:
result = whenResult.typ
else:
result = semTypeNode(c, whenResult, prev)
result = semTypeNode(c, whenResult, prev)
of nkBracketExpr:
checkMinSonsLen(n, 2, c.config)
var head = n[0]
@@ -2210,12 +2093,6 @@ proc semTypeNode(c: PContext, n: PNode, prev: PType): PType =
of mRef: result = semAnyRef(c, n, tyRef, prev)
of mPtr: result = semAnyRef(c, n, tyPtr, prev)
of mTuple: result = semTuple(c, n, prev)
of mBuiltinType:
case s.name.s
of "lent": result = semAnyRef(c, n, tyLent, prev)
of "sink": result = semAnyRef(c, n, tySink, prev)
of "owned": result = semAnyRef(c, n, tyOwned, prev)
else: result = semGeneric(c, n, s, prev)
else: result = semGeneric(c, n, s, prev)
of nkDotExpr:
let typeExpr = semExpr(c, n)
@@ -2245,7 +2122,7 @@ proc semTypeNode(c: PContext, n: PNode, prev: PType): PType =
if s.kind != skError: localError(c.config, n.info, errTypeExpected)
result = newOrPrevType(tyError, prev, c)
elif s.kind == skParam and s.typ.kind == tyTypeDesc:
internalAssert c.config, s.typ.base.kind != tyNone
internalAssert c.config, s.typ.base.kind != tyNone and prev == nil
result = s.typ.base
elif prev == nil:
result = s.typ
@@ -2269,7 +2146,7 @@ proc semTypeNode(c: PContext, n: PNode, prev: PType): PType =
if s.kind == skType:
s.typ
else:
internalAssert c.config, s.typ.base.kind != tyNone
internalAssert c.config, s.typ.base.kind != tyNone and prev == nil
s.typ.base
let alias = maybeAliasType(c, t, prev)
if alias != nil:
@@ -2330,13 +2207,12 @@ proc semTypeNode(c: PContext, n: PNode, prev: PType): PType =
of nkType: result = n.typ
of nkStmtListType: result = semStmtListType(c, n, prev)
of nkBlockType: result = semBlockType(c, n, prev)
of nkOpenSym: result = semTypeNode(c, n[0], prev)
else:
result = semTypeExpr(c, n, prev)
when false:
localError(c.config, n.info, "type expected, but got: " & renderTree(n))
result = newOrPrevType(tyError, prev, c)
n.typ() = result
n.typ = result
dec c.inTypeContext
proc setMagicType(conf: ConfigRef; m: PSym, kind: TTypeKind, size: int) =
@@ -2483,7 +2359,7 @@ proc semGenericParamList(c: PContext, n: PNode, father: PType = nil): PNode =
else:
# the following line fixes ``TV2*[T:SomeNumber=TR] = array[0..1, T]``
# from manyloc/named_argument_bug/triengine:
def.typ() = def.typ.skipTypes({tyTypeDesc})
def.typ = def.typ.skipTypes({tyTypeDesc})
if not containsGenericType(def.typ):
def = fitNode(c, typ, def, def.info)

View File

@@ -12,7 +12,7 @@
import std / tables
import ast, astalgo, msgs, types, magicsys, semdata, renderer, options,
lineinfos, modulegraphs, layeredtable
lineinfos, modulegraphs
when defined(nimPreviewSlimSystem):
import std/assertions
@@ -28,7 +28,7 @@ proc checkConstructedType*(conf: ConfigRef; info: TLineInfo, typ: PType) =
if t.kind in tyTypeClasses: discard
elif t.kind in {tyVar, tyLent} and t.elementType.kind in {tyVar, tyLent}:
localError(conf, info, "type 'var var' is not allowed")
elif computeSize(conf, t) == szIllegalRecursion or isRecursiveStructuralType(t):
elif computeSize(conf, t) == szIllegalRecursion or isTupleRecursive(t):
localError(conf, info, "illegal recursion in type '" & typeToString(t) & "'")
proc searchInstTypes*(g: ModuleGraph; key: PType): PType =
@@ -65,6 +65,10 @@ proc cacheTypeInst(c: PContext; inst: PType) =
addToGenericCache(c, gt.sym, inst)
type
LayeredIdTable* {.acyclic.} = ref object
topLayer*: TypeMapping
nextLayer*: LayeredIdTable
TReplTypeVars* = object
c*: PContext
typeMap*: LayeredIdTable # map PType to PType
@@ -80,12 +84,27 @@ type
owner*: PSym # where this instantiation comes from
recursionLimit: int
proc replaceTypeVarsTAux(cl: var TReplTypeVars, t: PType, isInstValue = false): PType
proc replaceTypeVarsTAux(cl: var TReplTypeVars, t: PType): PType
proc replaceTypeVarsS(cl: var TReplTypeVars, s: PSym, t: PType): PSym
proc replaceTypeVarsN*(cl: var TReplTypeVars, n: PNode; start=0; expectedType: PType = nil): PNode
proc initLayeredTypeMap*(pt: sink TypeMapping): LayeredIdTable =
result = LayeredIdTable()
result.topLayer = pt
proc newTypeMapLayer*(cl: var TReplTypeVars): LayeredIdTable =
result = newTypeMapLayer(cl.typeMap)
result = LayeredIdTable(nextLayer: cl.typeMap, topLayer: initTable[ItemId, PType]())
proc lookup(typeMap: LayeredIdTable, key: PType): PType =
result = nil
var tm = typeMap
while tm != nil:
result = getOrDefault(tm.topLayer, key.itemId)
if result != nil: return
tm = tm.nextLayer
template put(typeMap: LayeredIdTable, key, value: PType) =
typeMap.topLayer[key.itemId] = value
template checkMetaInvariants(cl: TReplTypeVars, t: PType) = # noop code
when false:
@@ -95,90 +114,32 @@ template checkMetaInvariants(cl: TReplTypeVars, t: PType) = # noop code
debug t
writeStackTrace()
proc replaceTypeVarsT*(cl: var TReplTypeVars, t: PType, isInstValue = false): PType =
result = replaceTypeVarsTAux(cl, t, isInstValue)
proc replaceTypeVarsT*(cl: var TReplTypeVars, t: PType): PType =
result = replaceTypeVarsTAux(cl, t)
checkMetaInvariants(cl, result)
proc prepareNode*(cl: var TReplTypeVars, n: PNode): PNode =
## instantiates a given generic expression, not a type node
if n.kind == nkSym and n.sym.kind == skType and
n.sym.typ != nil and n.sym.typ.kind == tyGenericBody:
# generic body types are allowed as user expressions, see #24090
return n
proc prepareNode(cl: var TReplTypeVars, n: PNode): PNode =
let t = replaceTypeVarsT(cl, n.typ)
if t != nil and t.kind == tyStatic and t.n != nil:
return if tfUnresolved in t.flags: prepareNode(cl, t.n)
else: t.n
result = copyNode(n)
result.typ() = t
result.typ = t
if result.kind == nkSym:
result.sym =
if n.typ != nil and n.typ == n.sym.typ:
replaceTypeVarsS(cl, n.sym, result.typ)
else:
replaceTypeVarsS(cl, n.sym, replaceTypeVarsT(cl, n.sym.typ))
# we need to avoid trying to instantiate nodes that can have uninstantiated
# types, like generic proc symbols or raw generic type symbols
case n.kind
of nkSymChoices:
# don't try to instantiate symchoice symbols, they can be
# generic procs which the compiler will think are uninstantiated
# because their type will contain uninstantiated params
for i in 0..<n.len:
result.add(n[i])
of nkCallKinds:
# don't try to instantiate call names since they may be generic proc syms
# also bracket expressions can turn into calls with symchoice [] and
# we need to not instantiate the Generic in Generic[int]
# exception exists for the call name being a dot expression since
# dot expressions need their LHS instantiated
assert n.len != 0
# avoid instantiating generic proc symbols, refine condition if needed:
let ignoreFirst = n[0].kind notin {nkDotExpr, nkBracketExpr} + nkCallKinds
let name = n[0].getPIdent
let ignoreSecond = name != nil and name.s == "[]" and n.len > 1 and
# generic type instantiation:
((n[1].typ != nil and n[1].typ.kind == tyTypeDesc) or
# generic proc instantiation:
(n[1].kind == nkSym and n[1].sym.isGenericRoutineStrict))
if ignoreFirst:
result.add(n[0])
else:
result.add(prepareNode(cl, n[0]))
if n.len > 1:
if ignoreSecond:
result.add(n[1])
else:
result.add(prepareNode(cl, n[1]))
for i in 2..<n.len:
result.add(prepareNode(cl, n[i]))
of nkBracketExpr:
# don't instantiate Generic body type in expression like Generic[T]
# exception exists for the call name being a dot expression since
# dot expressions need their LHS instantiated
assert n.len != 0
let ignoreFirst = n[0].kind != nkDotExpr and
# generic type instantiation:
((n[0].typ != nil and n[0].typ.kind == tyTypeDesc) or
# generic proc instantiation:
(n[0].kind == nkSym and n[0].sym.isGenericRoutineStrict))
if ignoreFirst:
result.add(n[0])
else:
result.add(prepareNode(cl, n[0]))
for i in 1..<n.len:
result.add(prepareNode(cl, n[i]))
of nkDotExpr:
# don't try to instantiate RHS of dot expression, it can outright be
# undeclared, but definitely instantiate LHS
assert n.len >= 2
result.add(prepareNode(cl, n[0]))
result.add(n[1])
for i in 2..<n.len:
result.add(prepareNode(cl, n[i]))
else:
for i in 0..<n.safeLen:
result.add(prepareNode(cl, n[i]))
let isCall = result.kind in nkCallKinds
# don't try to instantiate symchoice symbols, they can be
# generic procs which the compiler will think are uninstantiated
# because their type will contain uninstantiated params
let isSymChoice = result.kind in nkSymChoices
for i in 0..<n.safeLen:
# XXX HACK: ``f(a, b)``, avoid to instantiate `f`
if isSymChoice or (isCall and i == 0): result.add(n[i])
else: result.add(prepareNode(cl, n[i]))
proc isTypeParam(n: PNode): bool =
# XXX: generic params should use skGenericParam instead of skType
@@ -261,10 +222,7 @@ proc replaceTypeVarsN(cl: var TReplTypeVars, n: PNode; start=0; expectedType: PT
if n == nil: return
result = copyNode(n)
if n.typ != nil:
if n.typ.kind == tyFromExpr:
# type of node should not be evaluated as a static value
n.typ.flags.incl tfNonConstExpr
result.typ() = replaceTypeVarsT(cl, n.typ)
result.typ = replaceTypeVarsT(cl, n.typ)
checkMetaInvariants(cl, result.typ)
case n.kind
of nkNone..pred(nkSym), succ(nkSym)..nkNilLit:
@@ -276,13 +234,7 @@ proc replaceTypeVarsN(cl: var TReplTypeVars, n: PNode; start=0; expectedType: PT
replaceTypeVarsS(cl, n.sym, result.typ)
else:
replaceTypeVarsS(cl, n.sym, replaceTypeVarsT(cl, n.sym.typ))
if result.sym.kind == skField and result.sym.ast != nil and
(cl.owner == nil or result.sym.owner == cl.owner):
# instantiate default value of object/tuple field
cl.c.fitDefaultNode(cl.c, result.sym.ast, result.sym.typ)
result.sym.typ = result.sym.ast.typ
# sym type can be nil if was gensym created by macro, see #24048
if result.sym.typ != nil and result.sym.typ.kind == tyVoid:
if result.sym.typ.kind == tyVoid:
# don't add the 'void' field
result = newNodeI(nkRecList, n.info)
of nkRecWhen:
@@ -344,7 +296,7 @@ proc replaceTypeVarsS(cl: var TReplTypeVars, s: PSym, t: PType): PSym =
#[
We cannot naively check for symbol recursions, because otherwise
object types A, B would share their fields!
object types A, B whould share their fields!
import tables
@@ -363,7 +315,7 @@ proc replaceTypeVarsS(cl: var TReplTypeVars, s: PSym, t: PType): PSym =
result = copySym(s, cl.c.idgen)
incl(result.flags, sfFromGeneric)
#idTablePut(cl.symMap, s, result)
setOwner(result, s.owner)
result.owner = s.owner
result.typ = t
if result.kind != skType:
result.ast = replaceTypeVarsN(cl, s.ast)
@@ -481,12 +433,12 @@ proc handleGenericInvocation(cl: var TReplTypeVars, t: PType): PType =
return
let bbody = last body
var newbody = replaceTypeVarsT(cl, bbody, isInstValue = true)
var newbody = replaceTypeVarsT(cl, bbody)
cl.skipTypedesc = oldSkipTypedesc
newbody.flags = newbody.flags + (t.flags + body.flags - tfInstClearedFlags)
result.flags = result.flags + newbody.flags - tfInstClearedFlags
setToPreviousLayer(cl.typeMap)
cl.typeMap = cl.typeMap.nextLayer
# This is actually wrong: tgeneric_closure fails with this line:
#newbody.callConv = body.callConv
@@ -578,7 +530,7 @@ proc propagateFieldFlags(t: PType, n: PNode) =
propagateFieldFlags(t, son)
else: discard
proc replaceTypeVarsTAux(cl: var TReplTypeVars, t: PType, isInstValue = false): PType =
proc replaceTypeVarsTAux(cl: var TReplTypeVars, t: PType): PType =
template bailout =
if (t.sym == nil) or (t.sym != nil and sfGeneratedType in t.sym.flags):
# In the first case 't.sym' can be 'nil' if the type is a ref/ptr, see
@@ -608,13 +560,10 @@ proc replaceTypeVarsTAux(cl: var TReplTypeVars, t: PType, isInstValue = false):
result = t
if t == nil: return
var et = t
if t.isConcept:
et = t.reduceToBase
const lookupMetas = {tyStatic, tyGenericParam, tyConcept} + tyTypeClasses - {tyAnything}
if et.kind in lookupMetas or
(et.kind == tyAnything and tfRetType notin et.flags):
let lookup = cl.typeMap.lookup(et)
if t.kind in lookupMetas or
(t.kind == tyAnything and tfRetType notin t.flags):
let lookup = cl.typeMap.lookup(t)
if lookup != nil: return lookup
case t.kind
@@ -624,7 +573,6 @@ proc replaceTypeVarsTAux(cl: var TReplTypeVars, t: PType, isInstValue = false):
result.kind = tyUserTypeClassInst
of tyGenericBody:
if cl.allowMetaTypes: return
localError(
cl.c.config,
cl.info,
@@ -643,18 +591,13 @@ proc replaceTypeVarsTAux(cl: var TReplTypeVars, t: PType, isInstValue = false):
assert t.n.typ != t
var n = prepareNode(cl, t.n)
if n.kind != nkEmpty:
if tfNonConstExpr in t.flags:
n = cl.c.semExprWithType(cl.c, n, flags = {efInTypeof})
else:
n = cl.c.semConstExpr(cl.c, n)
n = cl.c.semConstExpr(cl.c, n)
if n.typ.kind == tyTypeDesc:
# XXX: sometimes, chained typedescs enter here.
# It may be worth investigating why this is happening,
# because it may cause other bugs elsewhere.
result = n.typ.skipTypes({tyTypeDesc})
# result = n.typ.base
elif tfNonConstExpr in t.flags:
result = n.typ
else:
if n.typ.kind != tyStatic and n.kind != nkType:
# XXX: In the future, semConstExpr should
@@ -680,31 +623,8 @@ proc replaceTypeVarsTAux(cl: var TReplTypeVars, t: PType, isInstValue = false):
elif t.elementType.kind != tyNone:
result = makeTypeDesc(cl.c, replaceTypeVarsT(cl, t.elementType))
of tyUserTypeClass:
of tyUserTypeClass, tyStatic:
result = t
of tyStatic:
if cl.c.matchedConcept != nil:
# allow concepts to not instantiate statics for now
# they can't always infer them
return
if not containsGenericType(t) and (t.n == nil or t.n.kind in nkLiterals):
# no need to instantiate
return
bailout()
result = instCopyType(cl, t)
cl.localCache[t.itemId] = result
for i in FirstGenericParamAt..<result.kidsLen:
var r = result[i]
if r != nil:
r = replaceTypeVarsT(cl, r)
result[i] = r
propagateToOwner(result, r)
result.n = replaceTypeVarsN(cl, result.n)
if not cl.allowMetaTypes and result.n != nil and
result.base.kind != tyNone:
result.n = cl.c.semConstExpr(cl.c, result.n)
result.n.typ() = result.base
of tyGenericInst, tyUserTypeClassInst:
bailout()
@@ -715,27 +635,23 @@ proc replaceTypeVarsTAux(cl: var TReplTypeVars, t: PType, isInstValue = false):
propagateToOwner(result, result.last)
else:
if containsGenericType(t) or
# nominal types as direct generic instantiation values
# are re-instantiated even if they don't contain generic fields
(isInstValue and (t.kind in {tyDistinct, tyObject} or isRefPtrObject(t))):
if containsGenericType(t):
#if not cl.allowMetaTypes:
bailout()
result = instCopyType(cl, t)
result.size = -1 # needs to be recomputed
#if not cl.allowMetaTypes:
cl.localCache[t.itemId] = result
let propagateInstValue = isInstValue and isRefPtrObject(t)
for i, resulti in result.ikids:
if resulti != nil:
if resulti.kind == tyGenericBody and not cl.allowMetaTypes:
if resulti.kind == tyGenericBody:
localError(cl.c.config, if t.sym != nil: t.sym.info else: cl.info,
"cannot instantiate '" &
typeToString(result[i], preferDesc) &
"' inside of type definition: '" &
t.owner.name.s & "'; Maybe generic arguments are missing?")
var r = replaceTypeVarsT(cl, resulti, isInstValue = propagateInstValue)
var r = replaceTypeVarsT(cl, resulti)
if result.kind == tyObject:
# carefully coded to not skip the precious tyGenericInst:
let r2 = r.skipTypes({tyAlias, tySink, tyOwned})
@@ -784,24 +700,16 @@ proc initTypeVars*(p: PContext, typeMap: LayeredIdTable, info: TLineInfo;
localCache: initTypeMapping(), typeMap: typeMap,
info: info, c: p, owner: owner)
proc replaceTypesInBody*(p: PContext, pt: LayeredIdTable, n: PNode;
proc replaceTypesInBody*(p: PContext, pt: TypeMapping, n: PNode;
owner: PSym, allowMetaTypes = false,
fromStaticExpr = false, expectedType: PType = nil): PNode =
var typeMap = shallowCopy(pt) # use previous bindings without writing to them
var typeMap = initLayeredTypeMap(pt)
var cl = initTypeVars(p, typeMap, n.info, owner)
cl.allowMetaTypes = allowMetaTypes
pushInfoContext(p.config, n.info)
result = replaceTypeVarsN(cl, n, expectedType = expectedType)
popInfoContext(p.config)
proc prepareTypesInBody*(p: PContext, pt: LayeredIdTable, n: PNode;
owner: PSym = nil): PNode =
var typeMap = shallowCopy(pt) # use previous bindings without writing to them
var cl = initTypeVars(p, typeMap, n.info, owner)
pushInfoContext(p.config, n.info)
result = prepareNode(cl, n)
popInfoContext(p.config)
when false:
# deadcode
proc replaceTypesForLambda*(p: PContext, pt: TIdTable, n: PNode;
@@ -829,13 +737,13 @@ proc recomputeFieldPositions*(t: PType; obj: PNode; currPosition: var int) =
inc currPosition
else: discard "cannot happen"
proc generateTypeInstance*(p: PContext, pt: LayeredIdTable, info: TLineInfo,
proc generateTypeInstance*(p: PContext, pt: TypeMapping, info: TLineInfo,
t: PType): PType =
# Given `t` like Foo[T]
# pt: Table with type mappings: T -> int
# Desired result: Foo[int]
# proc (x: T = 0); T -> int ----> proc (x: int = 0)
var typeMap = shallowCopy(pt) # use previous bindings without writing to them
var typeMap = initLayeredTypeMap(pt)
var cl = initTypeVars(p, typeMap, info, nil)
pushInfoContext(p.config, info)
result = replaceTypeVarsT(cl, t)
@@ -845,15 +753,15 @@ proc generateTypeInstance*(p: PContext, pt: LayeredIdTable, info: TLineInfo,
var position = 0
recomputeFieldPositions(objType, objType.n, position)
proc prepareMetatypeForSigmatch*(p: PContext, pt: LayeredIdTable, info: TLineInfo,
proc prepareMetatypeForSigmatch*(p: PContext, pt: TypeMapping, info: TLineInfo,
t: PType): PType =
var typeMap = shallowCopy(pt) # use previous bindings without writing to them
var typeMap = initLayeredTypeMap(pt)
var cl = initTypeVars(p, typeMap, info, nil)
cl.allowMetaTypes = true
pushInfoContext(p.config, info)
result = replaceTypeVarsT(cl, t)
popInfoContext(p.config)
template generateTypeInstance*(p: PContext, pt: LayeredIdTable, arg: PNode,
template generateTypeInstance*(p: PContext, pt: TypeMapping, arg: PNode,
t: PType): untyped =
generateTypeInstance(p, pt, arg.info, t)

View File

@@ -55,8 +55,6 @@ proc hashSym(c: var MD5Context, s: PSym) =
c &= it.name.s
c &= "."
it = it.owner
c &= "#"
c &= s.disamb
proc hashTypeSym(c: var MD5Context, s: PSym; conf: ConfigRef) =
if sfAnon in s.flags or s.kind == skGenericParam:
@@ -71,8 +69,6 @@ proc hashTypeSym(c: var MD5Context, s: PSym; conf: ConfigRef) =
c &= it.name.s
c &= "."
it = it.owner
c &= "#"
c &= s.disamb
proc hashTree(c: var MD5Context, n: PNode; flags: set[ConsiderFlag]; conf: ConfigRef) =
if n == nil:

File diff suppressed because it is too large Load Diff

View File

@@ -385,13 +385,6 @@ proc computeSizeAlign(conf: ConfigRef; typ: PType) =
accum.maxAlign = 1
computeObjectOffsetsFoldFunction(conf, typ.n, true, accum)
else:
if typ.baseClass == nil and lacksMTypeField(typ) and typ.n.len == 1 and
typ.n[0].kind == nkSym and
typ.n[0].sym.typ.skipTypes(abstractInst).kind == tyUncheckedArray:
# a dummy field is generated for an object with a single field
# with an UncheckedArray type
assert accum.offset == 0
accum.offset = 1
computeObjectOffsetsFoldFunction(conf, typ.n, false, accum)
let paddingAtEnd = int16(accum.finish())
if typ.sym != nil and
@@ -477,7 +470,7 @@ template foldSizeOf*(conf: ConfigRef; n: PNode; fallback: PNode): PNode =
if size >= 0:
let res = newIntNode(nkIntLit, size)
res.info = node.info
res.typ() = node.typ
res.typ = node.typ
res
else:
fallback
@@ -491,7 +484,7 @@ template foldAlignOf*(conf: ConfigRef; n: PNode; fallback: PNode): PNode =
if align >= 0:
let res = newIntNode(nkIntLit, align)
res.info = node.info
res.typ() = node.typ
res.typ = node.typ
res
else:
fallback
@@ -519,7 +512,7 @@ template foldOffsetOf*(conf: ConfigRef; n: PNode; fallback: PNode): PNode =
if offset >= 0:
let tmp = newIntNode(nkIntLit, offset)
tmp.info = node.info
tmp.typ() = node.typ
tmp.typ = node.typ
tmp
else:
fallback

View File

@@ -16,7 +16,7 @@ from trees import getMagic, getRoot
proc callProc(a: PNode): PNode =
result = newNodeI(nkCall, a.info)
result.add a
result.typ() = a.typ.returnType
result.typ = a.typ.returnType
# we have 4 cases to consider:
# - a void proc --> nothing to do
@@ -117,7 +117,7 @@ proc castToVoidPointer(g: ModuleGraph, n: PNode, fvField: PNode): PNode =
result = newNodeI(nkCast, fvField.info)
result.add newNodeI(nkEmpty, fvField.info)
result.add fvField
result.typ() = ptrType
result.typ = ptrType
proc createWrapperProc(g: ModuleGraph; f: PNode; threadParam, argsParam: PSym;
varSection, varInit, call, barrier, fv: PNode;
@@ -200,7 +200,7 @@ proc createCastExpr(argsParam: PSym; objType: PType; idgen: IdGenerator): PNode
result = newNodeI(nkCast, argsParam.info)
result.add newNodeI(nkEmpty, argsParam.info)
result.add newSymNode(argsParam)
result.typ() = newType(tyPtr, idgen, objType.owner)
result.typ = newType(tyPtr, idgen, objType.owner)
result.typ.rawAddSon(objType)
template checkMagicProcs(g: ModuleGraph, n: PNode, formal: PNode) =
@@ -266,9 +266,9 @@ proc setupArgsForParallelism(g: ModuleGraph; n: PNode; objType: PType;
if argType.kind in {tyVarargs, tyOpenArray}:
# important special case: we always create a zero-copy slice:
let slice = newNodeI(nkCall, n.info, 4)
slice.typ() = n.typ
slice.typ = n.typ
slice[0] = newSymNode(createMagic(g, idgen, "slice", mSlice))
slice[0].typ() = getSysType(g, n.info, tyInt) # fake type
slice[0].typ = getSysType(g, n.info, tyInt) # fake type
var fieldB = newSym(skField, tmpName, idgen, objType.owner, n.info, g.config.options)
fieldB.typ = getSysType(g, n.info, tyInt)
discard objType.addField(fieldB, g.cache, idgen)

View File

@@ -56,6 +56,7 @@ type
contSyms, breakSyms: seq[PSym] # to transform 'continue' and 'break'
deferDetected, tooEarly: bool
isIntroducingNewLocalVars: bool # true if we are in `introducingNewLocalVars` (don't transform yields)
inAddr: bool
flags: TransformFlags
graph: ModuleGraph
idgen: IdGenerator
@@ -99,19 +100,12 @@ proc newTemp(c: PTransf, typ: PType, info: TLineInfo): PNode =
let owner = getCurrOwner(c)
result = newSymNode(r)
proc transform(c: PTransf, n: PNode, noConstFold = false): PNode
proc transform(c: PTransf, n: PNode): PNode
proc transformSons(c: PTransf, n: PNode, noConstFold = false): PNode =
proc transformSons(c: PTransf, n: PNode): PNode =
result = newTransNode(n)
for i in 0..<n.len:
result[i] = transform(c, n[i], noConstFold)
proc transformSonsAfterType(c: PTransf, n: PNode, noConstFold = false): PNode =
result = newTransNode(n)
assert n.len != 0
result[0] = copyTree(n[0])
for i in 1..<n.len:
result[i] = transform(c, n[i], noConstFold)
result[i] = transform(c, n[i])
proc newAsgnStmt(c: PTransf, kind: TNodeKind, le: PNode, ri: PNode; isFirstWrite: bool): PNode =
result = newTransNode(kind, ri.info, 2)
@@ -182,7 +176,7 @@ proc freshVar(c: PTransf; v: PSym): PNode =
let owner = getCurrOwner(c)
var newVar = copySym(v, c.idgen)
incl(newVar.flags, sfFromGeneric)
setOwner(newVar, owner)
newVar.owner = owner
result = newSymNode(newVar)
proc transformVarSection(c: PTransf, v: PNode): PNode =
@@ -363,7 +357,7 @@ proc transformAsgn(c: PTransf, n: PNode): PNode =
# given tuple type
newTupleConstr[i] = def[0]
newTupleConstr.typ() = rhs.typ
newTupleConstr.typ = rhs.typ
let asgnNode = newTransNode(nkAsgn, n.info, 2)
asgnNode[0] = transform(c, n[0])
@@ -373,19 +367,6 @@ proc transformAsgn(c: PTransf, n: PNode): PNode =
result[0] = letSection
result[1] = asgnNode
template assignTupleUnpacking(c: PTransf, e: PNode) =
for i in 0..<c.transCon.forStmt.len - 2:
if c.transCon.forStmt[i].kind == nkVarTuple:
for j in 0..<c.transCon.forStmt[i].len-1:
let lhs = c.transCon.forStmt[i][j]
let rhs = transform(c, newTupleAccess(c.graph, newTupleAccess(c.graph, e, i), j))
result.add(asgnTo(lhs, rhs))
else:
let lhs = c.transCon.forStmt[i]
let rhs = transform(c, newTupleAccess(c.graph, e, i))
result.add(asgnTo(lhs, rhs))
proc transformYield(c: PTransf, n: PNode): PNode =
proc asgnTo(lhs: PNode, rhs: PNode): PNode =
# Choose the right assignment instruction according to the given ``lhs``
@@ -420,8 +401,7 @@ proc transformYield(c: PTransf, n: PNode): PNode =
let lhs = c.transCon.forStmt[i]
let rhs = transform(c, v)
result.add(asgnTo(lhs, rhs))
elif e.kind notin {nkAddr, nkHiddenAddr} and e.kind != nkSym:
# no need to generate temp for address operation + nodes without sideeffects
elif e.kind notin {nkAddr, nkHiddenAddr}: # no need to generate temp for address operation
# TODO do not use temp for nodes which cannot have side-effects
var tmp = newTemp(c, e.typ, e.info)
let v = newNodeI(nkVarSection, e.info)
@@ -429,9 +409,15 @@ proc transformYield(c: PTransf, n: PNode): PNode =
result.add transform(c, v)
assignTupleUnpacking(c, tmp)
for i in 0..<c.transCon.forStmt.len - 2:
let lhs = c.transCon.forStmt[i]
let rhs = transform(c, newTupleAccess(c.graph, tmp, i))
result.add(asgnTo(lhs, rhs))
else:
assignTupleUnpacking(c, e)
for i in 0..<c.transCon.forStmt.len - 2:
let lhs = c.transCon.forStmt[i]
let rhs = transform(c, newTupleAccess(c.graph, e, i))
result.add(asgnTo(lhs, rhs))
else:
if c.transCon.forStmt[0].kind == nkVarTuple:
var notLiteralTuple = false # we don't generate temp for tuples with const value: (1, 2, 3)
@@ -444,8 +430,7 @@ proc transformYield(c: PTransf, n: PNode): PNode =
else:
notLiteralTuple = true
if e.kind notin {nkAddr, nkHiddenAddr} and notLiteralTuple and e.kind != nkSym:
# no need to generate temp for address operation + nodes without sideeffects
if e.kind notin {nkAddr, nkHiddenAddr} and notLiteralTuple:
# TODO do not use temp for nodes which cannot have side-effects
var tmp = newTemp(c, e.typ, e.info)
let v = newNodeI(nkVarSection, e.info)
@@ -484,8 +469,8 @@ proc transformYield(c: PTransf, n: PNode): PNode =
result.add(introduceNewLocalVars(c, c.transCon.forLoopBody))
c.isIntroducingNewLocalVars = false
proc transformAddrDeref(c: PTransf, n: PNode, kinds: TNodeKinds, isAddr = false): PNode =
result = transformSons(c, n, noConstFold = isAddr)
proc transformAddrDeref(c: PTransf, n: PNode, kinds: TNodeKinds): PNode =
result = transformSons(c, n)
# inlining of 'var openarray' iterators; bug #19977
if n.typ.kind != tyOpenArray and (c.graph.config.backend == backendCpp or sfCompileToCpp in c.module.flags): return
var n = result
@@ -497,9 +482,9 @@ proc transformAddrDeref(c: PTransf, n: PNode, kinds: TNodeKinds, isAddr = false)
n[0][0] = m[0]
result = n[0]
if n.typ.skipTypes(abstractVar).kind != tyOpenArray:
result.typ() = n.typ
result.typ = n.typ
elif n.typ.skipTypes(abstractInst).kind in {tyVar}:
result.typ() = toVar(result.typ, n.typ.skipTypes(abstractInst).kind, c.idgen)
result.typ = toVar(result.typ, n.typ.skipTypes(abstractInst).kind, c.idgen)
of nkHiddenStdConv, nkHiddenSubConv, nkConv:
var m = n[0][1]
if m.kind in kinds:
@@ -507,25 +492,15 @@ proc transformAddrDeref(c: PTransf, n: PNode, kinds: TNodeKinds, isAddr = false)
n[0][1] = m[0]
result = n[0]
if n.typ.skipTypes(abstractVar).kind != tyOpenArray:
result.typ() = n.typ
result.typ = n.typ
elif n.typ.skipTypes(abstractInst).kind in {tyVar}:
result.typ() = toVar(result.typ, n.typ.skipTypes(abstractInst).kind, c.idgen)
result.typ = toVar(result.typ, n.typ.skipTypes(abstractInst).kind, c.idgen)
else:
if n[0].kind in kinds and
not (n[0][0].kind == nkSym and n[0][0].sym.kind == skForVar and
n[0][0].typ.skipTypes(abstractVar).kind == tyTuple
) and not (n[0][0].kind == nkSym and n[0][0].sym.kind == skParam and
n.typ.kind == tyVar and
n.typ.skipTypes(abstractVar).kind == tyOpenArray and
n[0][0].typ.skipTypes(abstractVar).kind == tyString) and
not (isAddr and n.typ.kind == tyVar and n[0][0].typ.kind == tyRef and
n[0][0].kind == nkObjConstr)
: # elimination is harmful to `for tuple unpack` because of newTupleAccess
# it is also harmful to openArrayLoc (var openArray) for strings
if n[0].kind in kinds:
# addr ( deref ( x )) --> x
result = n[0][0]
if n.typ.skipTypes(abstractVar).kind != tyOpenArray:
result.typ() = n.typ
result.typ = n.typ
proc generateThunk(c: PTransf; prc: PNode, dest: PType): PNode =
## Converts 'prc' into '(thunk, nil)' so that it's compatible with
@@ -584,7 +559,7 @@ proc transformConv(c: PTransf, n: PNode): PNode =
else:
result = transform(c, n[1])
#result = transformSons(c, n)
result.typ() = takeType(n.typ, n[1].typ, c.graph, c.idgen)
result.typ = takeType(n.typ, n[1].typ, c.graph, c.idgen)
#echo n.info, " came here and produced ", typeToString(result.typ),
# " from ", typeToString(n.typ), " and ", typeToString(n[1].typ)
of tyCstring:
@@ -612,7 +587,7 @@ proc transformConv(c: PTransf, n: PNode): PNode =
result[0] = transform(c, n[1])
else:
result = transform(c, n[1])
result.typ() = n.typ
result.typ = n.typ
else:
result = transformSons(c, n)
of tyObject:
@@ -625,7 +600,7 @@ proc transformConv(c: PTransf, n: PNode): PNode =
result[0] = transform(c, n[1])
else:
result = transform(c, n[1])
result.typ() = n.typ
result.typ = n.typ
of tyGenericParam, tyOrdinal:
result = transform(c, n[1])
# happens sometimes for generated assignments, etc.
@@ -649,12 +624,6 @@ proc putArgInto(arg: PNode, formal: PType): TPutArgInto =
case arg.kind
of nkStmtListExpr:
return paComplexOpenarray
of nkCall:
if skipTypes(arg.typ, abstractInst).kind in {tyOpenArray, tyVarargs}:
# XXX incorrect, causes #13417 when `arg` has side effects.
return paDirectMapping
else:
return paComplexOpenarray
of nkBracket:
return paFastAsgnTakeTypeFromArg
else:
@@ -663,11 +632,9 @@ proc putArgInto(arg: PNode, formal: PType): TPutArgInto =
case arg.kind
of nkEmpty..nkNilLit:
result = paDirectMapping
of nkDotExpr, nkDerefExpr, nkHiddenDeref:
of nkDotExpr, nkDerefExpr, nkHiddenDeref, nkAddr, nkHiddenAddr:
result = putArgInto(arg[0], formal)
of nkAddr, nkHiddenAddr:
result = putArgInto(arg[0], formal)
if result == paViaIndirection: result = paFastAsgn
#if result == paViaIndirection: result = paFastAsgn
of nkCurly, nkBracket:
for i in 0..<arg.len:
if putArgInto(arg[i], formal) != paDirectMapping:
@@ -821,7 +788,7 @@ proc transformFor(c: PTransf, n: PNode): PNode =
stmtList.add(newAsgnStmt(c, nkFastAsgn, temp, addrExp, true))
newC.mapping[formal.itemId] = newDeref(temp)
of paComplexOpenarray:
# XXX arrays will deep copy here (pretty bad).
# arrays will deep copy here (pretty bad).
var temp = newTemp(c, arg.typ, formal.info)
addVar(v, temp)
stmtList.add(newAsgnStmt(c, nkFastAsgn, temp, arg, true))
@@ -851,7 +818,7 @@ proc transformCase(c: PTransf, n: PNode): PNode =
# as an expr
let kind = if n.typ != nil: nkIfExpr else: nkIfStmt
ifs = newTransNode(kind, it.info, 0)
ifs.typ() = n.typ
ifs.typ = n.typ
ifs.add(e)
of nkElse:
if ifs == nil: result.add(e)
@@ -875,18 +842,9 @@ proc transformArrayAccess(c: PTransf, n: PNode): PNode =
if n[0].kind == nkSym and n[0].sym.kind == skType:
result = n
else:
result = transformSons(c, n)
if n.len >= 2 and result[1].kind in {nkChckRange, nkChckRange64} and
n[1].kind in {nkHiddenStdConv, nkHiddenSubConv}:
# implicit conversion, was transformed into range check
# remove in favor of index check if conversion to array index type
# has to be done here because the array index type needs to be relaxed
# i.e. a uint32 index can implicitly convert to range[0..3] but not int
let arr = skipTypes(n[0].typ, abstractVarRange)
if arr.kind == tyArray and
firstOrd(c.graph.config, arr) == getOrdValue(result[1][1]) and
lastOrd(c.graph.config, arr) == getOrdValue(result[1][2]):
result[1] = result[1].skipConv
result = newTransNode(n)
for i in 0..<n.len:
result[i] = transform(c, skipConv(n[i]))
proc getMergeOp(n: PNode): PSym =
case n.kind
@@ -957,23 +915,6 @@ proc transformCall(c: PTransf, n: PNode): PNode =
else:
result = s
proc transformBareExcept(c: PTransf, n: PNode): PNode =
result = newTransNode(nkExceptBranch, n, 1)
if isEmptyType(n[0].typ):
result[0] = newNodeI(nkStmtList, n[0].info)
else:
result[0] = newNodeIT(nkStmtListExpr, n[0].info, n[0].typ)
# Generating `raiseDefect()`
let raiseDefectCall = callCodegenProc(c.graph, "raiseDefect", n[0].info)
result[0].add raiseDefectCall
if n[0].kind in {nkStmtList, nkStmtListExpr}:
# flattens stmtList
for son in n[0]:
result[0].add son
else:
result[0].add n[0]
result[0] = transform(c, result[0])
proc transformExceptBranch(c: PTransf, n: PNode): PNode =
if n[0].isInfixAs() and not isImportedException(n[0][1].typ, c.graph.config):
let excTypeNode = n[0][1]
@@ -985,7 +926,7 @@ proc transformExceptBranch(c: PTransf, n: PNode): PNode =
let convNode = newTransNode(nkHiddenSubConv, n[1].info, 2)
convNode[0] = newNodeI(nkEmpty, n.info)
convNode[1] = excCall
convNode.typ() = excTypeNode.typ.toRef(c.idgen)
convNode.typ = excTypeNode.typ.toRef(c.idgen)
# -> let exc = ...
let identDefs = newTransNode(nkIdentDefs, n[1].info, 3)
identDefs[0] = n[0][2]
@@ -1002,9 +943,6 @@ proc transformExceptBranch(c: PTransf, n: PNode): PNode =
# Replace the `Exception as foobar` with just `Exception`.
result[0] = transform(c, n[0][1])
result[1] = actions
elif n.len == 1 and
noPanicOnExcept notin c.graph.config.legacyFeatures:
result = transformBareExcept(c, n)
else:
result = transformSons(c, n)
@@ -1045,12 +983,12 @@ proc transformDerefBlock(c: PTransf, n: PNode): PNode =
# We transform (block: x)[] to (block: x[])
let e0 = n[0]
result = shallowCopy(e0)
result.typ() = n.typ
result.typ = n.typ
for i in 0 ..< e0.len - 1:
result[i] = e0[i]
result[e0.len-1] = newTreeIT(nkHiddenDeref, n.info, n.typ, e0[e0.len-1])
proc transform(c: PTransf, n: PNode, noConstFold = false): PNode =
proc transform(c: PTransf, n: PNode): PNode =
when false:
var oldDeferAnchor: PNode
if n.kind in {nkElifBranch, nkOfBranch, nkExceptBranch, nkElifExpr,
@@ -1116,8 +1054,13 @@ proc transform(c: PTransf, n: PNode, noConstFold = false): PNode =
of nkBreakStmt: result = transformBreak(c, n)
of nkCallKinds:
result = transformCall(c, n)
of nkAddr, nkHiddenAddr:
result = transformAddrDeref(c, n, {nkDerefExpr, nkHiddenDeref}, isAddr = true)
of nkHiddenAddr:
result = transformAddrDeref(c, n, {nkHiddenDeref})
of nkAddr:
let oldInAddr = c.inAddr
c.inAddr = true
result = transformAddrDeref(c, n, {nkDerefExpr, nkHiddenDeref})
c.inAddr = oldInAddr
of nkDerefExpr:
result = transformAddrDeref(c, n, {nkAddr, nkHiddenAddr})
of nkHiddenDeref:
@@ -1129,9 +1072,6 @@ proc transform(c: PTransf, n: PNode, noConstFold = false): PNode =
result = transformAddrDeref(c, n, {nkAddr, nkHiddenAddr})
of nkHiddenStdConv, nkHiddenSubConv, nkConv:
result = transformConv(c, n)
of nkObjConstr, nkCast:
# don't try to transform type node
result = transformSonsAfterType(c, n)
of nkDiscardStmt:
result = n
if n[0].kind != nkEmpty:
@@ -1200,7 +1140,7 @@ proc transform(c: PTransf, n: PNode, noConstFold = false): PNode =
let exprIsPointerCast = n.kind in {nkCast, nkConv, nkHiddenStdConv} and
n.typ != nil and
n.typ.kind == tyPointer
if not exprIsPointerCast and not noConstFold:
if not exprIsPointerCast and not c.inAddr:
var cnst = getConstExpr(c.module, result, c.idgen, c.graph)
# we inline constants if they are not complex constants:
if cnst != nil and not dontInlineConstant(n, cnst):
@@ -1250,7 +1190,7 @@ proc liftDeferAux(n: PNode) =
tryStmt.add deferPart
n[i] = tryStmt
n.sons.setLen(i+1)
n.typ() = tryStmt.typ
n.typ = tryStmt.typ
goOn = true
break
for i in 0..n.safeLen-1:

View File

@@ -131,8 +131,8 @@ proc isRange*(n: PNode): bool {.inline.} =
let callee = n[0]
if (callee.kind == nkIdent and callee.ident.id == ord(wDotDot)) or
(callee.kind == nkSym and callee.sym.name.id == ord(wDotDot)) or
(callee.kind in {nkClosedSymChoice, nkOpenSymChoice, nkOpenSym} and
callee[0].sym.name.id == ord(wDotDot)):
(callee.kind in {nkClosedSymChoice, nkOpenSymChoice} and
callee[1].sym.name.id == ord(wDotDot)):
result = true
else:
result = false
@@ -145,15 +145,8 @@ proc whichPragma*(n: PNode): TSpecialWord =
of nkIdent: result = whichKeyword(key.ident)
of nkSym: result = whichKeyword(key.sym.name)
of nkCast: return wCast
of nkClosedSymChoice, nkOpenSymChoice, nkOpenSym:
of nkClosedSymChoice, nkOpenSymChoice:
return whichPragma(key[0])
of nkBracketExpr:
if n.kind notin nkPragmaCallKinds: return wInvalid
result = whichPragma(key[0])
if result notin {wHint, wHintAsError, wWarning, wWarningAsError}:
# note bracket pragmas, see processNote
result = wInvalid
return
else: return wInvalid
if result in nonPragmaWordsLow..nonPragmaWordsHigh:
result = wInvalid

View File

@@ -200,7 +200,7 @@ proc typeAllowedAux(marker: var IntSet, typ: PType, kind: TSymKind,
result = typeAllowedNode(marker, t.n, kind, c, flags)
of tyEmpty:
if kind in {skVar, skLet}: result = t
of tyError:
of tyProxy:
# for now same as error node; we say it's a valid type as it should
# prevent cascading errors:
result = nil
@@ -209,6 +209,9 @@ proc typeAllowedAux(marker: var IntSet, typ: PType, kind: TSymKind,
result = typeAllowedAux(marker, t.skipModifier, kind, c, flags+{taHeap})
else:
result = t
of tyConcept:
if kind != skParam: result = t
else: result = nil
proc typeAllowed*(t: PType, kind: TSymKind; c: PContext; flags: TTypeAllowedFlags = {}): PType =
# returns 'nil' on success and otherwise the part of the type that is

View File

@@ -102,9 +102,6 @@ const
# typedescX is used if we're sure tyTypeDesc should be included (or skipped)
typedescPtrs* = abstractPtrs + {tyTypeDesc}
typedescInst* = abstractInst + {tyTypeDesc, tyOwned, tyUserTypeClass}
# incorrect definition of `[]` and `[]=` for these types in system.nim
arrPutGetMagicApplies* = {tyArray, tyOpenArray, tyString, tySequence, tyCstring, tyTuple}
proc invalidGenericInst*(f: PType): bool =
result = f.kind == tyGenericInst and skipModifier(f) == nil
@@ -235,11 +232,7 @@ proc iterOverTypeAux(marker: var IntSet, t: PType, iter: TTypeIter,
if result: return
if not containsOrIncl(marker, t.id):
case t.kind
of tyGenericBody:
# treat as atomic, containsUnresolvedType wants always false,
# containsGenericType always gives true
discard
of tyGenericInst, tyAlias, tySink, tyInferred:
of tyGenericInst, tyGenericBody, tyAlias, tySink, tyInferred:
result = iterOverTypeAux(marker, skipModifier(t), iter, closure)
else:
for a in t.kids:
@@ -755,16 +748,6 @@ proc typeToString(typ: PType, prefer: TPreferedDesc = preferName): string =
if tfThread in t.flags:
addSep(prag)
prag.add("gcsafe")
var effectsOfStr = ""
for i, a in t.paramTypes:
let j = paramTypeToNodeIndex(i)
if t.n != nil and j < t.n.len and t.n[j].kind == nkSym and t.n[j].sym.kind == skParam and sfEffectsDelayed in t.n[j].sym.flags:
addSep(effectsOfStr)
effectsOfStr.add(t.n[j].sym.name.s)
if effectsOfStr != "":
addSep(prag)
prag.add("effectsOf: ")
prag.add(effectsOfStr)
if not hasImplicitRaises and prefer == preferInferredEffects and not isNil(t.owner) and not isNil(t.owner.typ) and not isNil(t.owner.typ.n) and (t.owner.typ.n.len > 0):
let effects = t.owner.typ.n[0]
if effects.kind == nkEffectList and effects.len == effectListLen:
@@ -793,7 +776,7 @@ proc typeToString(typ: PType, prefer: TPreferedDesc = preferName): string =
proc firstOrd*(conf: ConfigRef; t: PType): Int128 =
case t.kind
of tyBool, tyChar, tySequence, tyOpenArray, tyString, tyVarargs, tyError:
of tyBool, tyChar, tySequence, tyOpenArray, tyString, tyVarargs, tyProxy:
result = Zero
of tySet, tyVar: result = firstOrd(conf, t.elementType)
of tyArray: result = firstOrd(conf, t.indexType)
@@ -926,7 +909,7 @@ proc lastOrd*(conf: ConfigRef; t: PType): Int128 =
result = lastOrd(conf, skipModifier(t))
of tyUserTypeClasses:
result = lastOrd(conf, last(t))
of tyError: result = Zero
of tyProxy: result = Zero
of tyOrdinal:
if t.hasElementType: result = lastOrd(conf, skipModifier(t))
else:
@@ -1001,8 +984,6 @@ type
AllowCommonBase
PickyCAliases # be picky about the distinction between 'cint' and 'int32'
IgnoreFlags # used for borrowed functions and methods; ignores the tfVarIsPtr flag
PickyBackendAliases # be picky about different aliases
IgnoreRangeShallow
TTypeCmpFlags* = set[TTypeCmpFlag]
@@ -1204,19 +1185,17 @@ proc sameChildrenAux(a, b: PType, c: var TSameTypeClosure): bool =
if not result: return
proc isGenericAlias*(t: PType): bool =
return t.kind == tyGenericInst and t.skipModifier.skipTypes({tyAlias}).kind == tyGenericInst
return t.kind == tyGenericInst and t.skipModifier.kind == tyGenericInst
proc genericAliasDepth*(t: PType): int =
result = 0
var it = t.skipTypes({tyAlias})
var it = t
while it.isGenericAlias:
it = it.skipModifier.skipTypes({tyAlias})
it = it.skipModifier
inc result
proc skipGenericAlias*(t: PType): PType =
result = t.skipTypes({tyAlias})
if result.isGenericAlias:
result = result.skipModifier.skipTypes({tyAlias})
return if t.isGenericAlias: t.skipModifier else: t
proc sameFlags*(a, b: PType): bool {.inline.} =
result = eqTypeFlags*a.flags == eqTypeFlags*b.flags
@@ -1233,40 +1212,26 @@ proc sameTypeAux(x, y: PType, c: var TSameTypeClosure): bool =
inc c.recCheck
else:
if containsOrIncl(c, a, b): return true
template maybeSkipRange(x: set[TTypeKind]): set[TTypeKind] =
if IgnoreRangeShallow in c.flags:
x + {tyRange}
else:
x
template withoutShallowFlags(body) =
let oldFlags = c.flags
c.flags.excl IgnoreRangeShallow
body
c.flags = oldFlags
if x == y: return true
let aliasSkipSet = maybeSkipRange({tyAlias})
var a = skipTypes(x, aliasSkipSet)
var a = skipTypes(x, {tyAlias})
while a.kind == tyUserTypeClass and tfResolved in a.flags:
a = skipTypes(a.last, aliasSkipSet)
var b = skipTypes(y, aliasSkipSet)
a = skipTypes(a.last, {tyAlias})
var b = skipTypes(y, {tyAlias})
while b.kind == tyUserTypeClass and tfResolved in b.flags:
b = skipTypes(b.last, aliasSkipSet)
b = skipTypes(b.last, {tyAlias})
assert(a != nil)
assert(b != nil)
case c.cmp
of dcEq:
if a.kind != b.kind: return false
of dcEqIgnoreDistinct:
let distinctSkipSet = maybeSkipRange({tyDistinct, tyGenericInst})
a = a.skipTypes(distinctSkipSet)
b = b.skipTypes(distinctSkipSet)
if a.kind != b.kind: return false
of dcEqOrDistinctOf:
let distinctSkipSet = maybeSkipRange({tyDistinct, tyGenericInst})
a = a.skipTypes(distinctSkipSet)
if a.kind != b.kind: return false
if a.kind != b.kind:
case c.cmp
of dcEq: return false
of dcEqIgnoreDistinct:
a = a.skipTypes({tyDistinct, tyGenericInst})
b = b.skipTypes({tyDistinct, tyGenericInst})
if a.kind != b.kind: return false
of dcEqOrDistinctOf:
a = a.skipTypes({tyDistinct, tyGenericInst})
if a.kind != b.kind: return false
#[
The following code should not run in the case either side is an generic alias,
@@ -1274,16 +1239,14 @@ proc sameTypeAux(x, y: PType, c: var TSameTypeClosure): bool =
objects ie `type A[T] = SomeObject`
]#
# this is required by tunique_type but makes no sense really:
if c.cmp == dcEq and x.kind == tyGenericInst and
IgnoreTupleFields notin c.flags and tyDistinct != y.kind:
if x.kind == tyGenericInst and IgnoreTupleFields notin c.flags and tyDistinct != y.kind:
let
lhs = x.skipGenericAlias
rhs = y.skipGenericAlias
if rhs.kind != tyGenericInst or lhs.base != rhs.base or rhs.kidsLen != lhs.kidsLen:
return false
withoutShallowFlags:
for ff, aa in underspecifiedPairs(rhs, lhs, 1, -1):
if not sameTypeAux(ff, aa, c): return false
for ff, aa in underspecifiedPairs(rhs, lhs, 1, -1):
if not sameTypeAux(ff, aa, c): return false
return true
case a.kind
@@ -1297,11 +1260,6 @@ proc sameTypeAux(x, y: PType, c: var TSameTypeClosure): bool =
let symFlagsB = if b.sym != nil: b.sym.flags else: {}
if (symFlagsA+symFlagsB) * {sfImportc, sfExportc} != {}:
result = symFlagsA == symFlagsB
elif result and PickyBackendAliases in c.flags:
let symFlagsA = if a.sym != nil: a.sym.flags else: {}
let symFlagsB = if b.sym != nil: b.sym.flags else: {}
if (symFlagsA+symFlagsB) * {sfImportc, sfExportc} != {}:
result = a.id == b.id
of tyStatic, tyFromExpr:
result = exprStructuralEquivalent(a.n, b.n) and sameFlags(a, b)
@@ -1309,34 +1267,15 @@ proc sameTypeAux(x, y: PType, c: var TSameTypeClosure): bool =
cycleCheck()
result = sameTypeAux(a.skipModifier, b.skipModifier, c)
of tyObject:
result = sameFlags(a, b)
if result:
ifFastObjectTypeCheckFailed(a, b):
cycleCheck()
# should be generic, and belong to the same generic head type:
assert a.typeInst != nil, "generic object " & $a & " has no typeInst"
assert b.typeInst != nil, "generic object " & $b & " has no typeInst"
if result:
withoutShallowFlags:
# this is required because of generic `ref object`s,
# the value of their dereferences are not wrapped in `tyGenericInst`,
# so we need to check the generic parameters here
for ff, aa in underspecifiedPairs(a.typeInst, b.typeInst, 1, -1):
if not sameTypeAux(ff, aa, c): return false
ifFastObjectTypeCheckFailed(a, b):
cycleCheck()
result = sameObjectStructures(a, b, c) and sameFlags(a, b)
of tyDistinct:
cycleCheck()
if c.cmp == dcEq:
result = sameFlags(a, b)
if result:
if sameFlags(a, b):
ifFastObjectTypeCheckFailed(a, b):
# should be generic, and belong to the same generic head type:
assert a.typeInst != nil, "generic distinct type " & $a & " has no typeInst"
assert b.typeInst != nil, "generic distinct type " & $b & " has no typeInst"
withoutShallowFlags:
# just in case `tyGenericInst` was skipped at some point,
# we need to check the generic parameters here
for ff, aa in underspecifiedPairs(a.typeInst, b.typeInst, 1, -1):
if not sameTypeAux(ff, aa, c): return false
result = sameTypeAux(a.elementType, b.elementType, c)
else:
result = sameTypeAux(a.elementType, b.elementType, c) and sameFlags(a, b)
of tyEnum, tyForward:
@@ -1345,9 +1284,8 @@ proc sameTypeAux(x, y: PType, c: var TSameTypeClosure): bool =
of tyError:
result = b.kind == tyError
of tyTuple:
withoutShallowFlags:
cycleCheck()
result = sameTuple(a, b, c) and sameFlags(a, b)
cycleCheck()
result = sameTuple(a, b, c) and sameFlags(a, b)
of tyTypeDesc:
if c.cmp == dcEqIgnoreDistinct: result = false
elif ExactTypeDescValues in c.flags:
@@ -1371,8 +1309,7 @@ proc sameTypeAux(x, y: PType, c: var TSameTypeClosure): bool =
tyAnd, tyOr, tyNot, tyAnything, tyOwned:
cycleCheck()
if a.kind == tyUserTypeClass and a.n != nil: return a.n == b.n
withoutShallowFlags:
result = sameChildrenAux(a, b, c)
result = sameChildrenAux(a, b, c)
if result and IgnoreFlags notin c.flags:
if IgnoreTupleFields in c.flags:
result = a.flags * {tfVarIsPtr, tfIsOutParam} == b.flags * {tfVarIsPtr, tfIsOutParam}
@@ -1385,9 +1322,8 @@ proc sameTypeAux(x, y: PType, c: var TSameTypeClosure): bool =
((ExactConstraints notin c.flags) or sameConstraints(a.n, b.n))
of tyRange:
cycleCheck()
result = sameTypeOrNilAux(a.elementType, b.elementType, c)
if result and IgnoreRangeShallow notin c.flags:
result = sameValue(a.n[0], b.n[0]) and
result = sameTypeOrNilAux(a.elementType, b.elementType, c) and
sameValue(a.n[0], b.n[0]) and
sameValue(a.n[1], b.n[1])
of tyAlias, tyInferred, tyIterable:
cycleCheck()
@@ -1397,9 +1333,8 @@ proc sameTypeAux(x, y: PType, c: var TSameTypeClosure): bool =
# The type system must distinguish between `T[int] = object #[empty]#`
# and `T[float] = object #[empty]#`!
cycleCheck()
withoutShallowFlags:
for ff, aa in underspecifiedPairs(a, b, 1, -1):
if not sameTypeAux(ff, aa, c): return false
for ff, aa in underspecifiedPairs(a, b, 1, -1):
if not sameTypeAux(ff, aa, c): return false
result = sameTypeAux(a.skipModifier, b.skipModifier, c)
of tyNone: result = false
of tyConcept:
@@ -1411,19 +1346,6 @@ proc sameBackendType*(x, y: PType): bool =
c.cmp = dcEqIgnoreDistinct
result = sameTypeAux(x, y, c)
proc sameBackendTypeIgnoreRange*(x, y: PType): bool =
var c = initSameTypeClosure()
c.flags.incl IgnoreTupleFields
c.flags.incl IgnoreRangeShallow
c.cmp = dcEqIgnoreDistinct
result = sameTypeAux(x, y, c)
proc sameBackendTypePickyAliases*(x, y: PType): bool =
var c = initSameTypeClosure()
c.flags.incl {IgnoreTupleFields, IgnoreRangeShallow, PickyCAliases, PickyBackendAliases}
c.cmp = dcEqIgnoreDistinct
result = sameTypeAux(x, y, c)
proc compareTypes*(x, y: PType,
cmp: TDistinctCompare = dcEq,
flags: TTypeCmpFlags = {}): bool =
@@ -1484,17 +1406,6 @@ proc commonSuperclass*(a, b: PType): PType =
return t
y = y.baseClass
proc lacksMTypeField*(typ: PType): bool {.inline.} =
## Returns true if the type is an object that lacks a m_type field.
## It doesn't check base classes.
(typ.sym != nil and sfPure in typ.sym.flags) or tfFinal in typ.flags
proc isObjLackingTypeField*(typ: PType): bool {.inline.} =
## Returns true if the type is an object that lacks a type field.
## Object types that store type headers are not final or pure and
## have inheritable root types, which are not pure, neither.
result = (typ.kind == tyObject) and ((tfFinal in typ.flags) and
(typ.baseClass == nil) or isPureObject(typ))
include sizealignoffsetimpl
@@ -1515,31 +1426,6 @@ proc getSize*(conf: ConfigRef; typ: PType): BiggestInt =
computeSizeAlign(conf, typ)
result = typ.size
proc setImportedTypeSize*(conf: ConfigRef, t: PType, size: int) =
t.size = size
if tfPacked in t.flags or size <= 1:
t.align = 1
elif size <= 2:
t.align = 2
elif size <= 4:
t.align = 4
else:
t.align = floatInt64Align(conf)
proc isConcept*(t: PType): bool=
case t.kind
of tyConcept: true
of tyCompositeTypeClass:
t.hasElementType and isConcept(t.elementType)
of tyGenericBody:
t.typeBodyImpl.kind == tyConcept
of tyGenericInvocation, tyGenericInst:
if t.baseClass.kind == tyGenericBody:
t.baseClass.typeBodyImpl.kind == tyConcept
else:
t.baseClass.kind == tyConcept
else: false
proc containsGenericTypeIter(t: PType, closure: RootRef): bool =
case t.kind
of tyStatic:
@@ -1550,31 +1436,12 @@ proc containsGenericTypeIter(t: PType, closure: RootRef): bool =
return false
of GenericTypes + tyTypeClasses + {tyFromExpr}:
return true
of tyGenericInst:
return t.isConcept
else:
return false
proc containsGenericType*(t: PType): bool =
result = iterOverType(t, containsGenericTypeIter, nil)
proc containsUnresolvedTypeIter(t: PType, closure: RootRef): bool =
if tfUnresolved in t.flags: return true
case t.kind
of tyStatic:
return t.n == nil
of tyTypeDesc:
if t.base.kind == tyNone: return true
if containsUnresolvedTypeIter(t.base, closure): return true
return false
of tyGenericInvocation, tyGenericParam, tyFromExpr, tyAnything:
return true
else:
return false
proc containsUnresolvedType*(t: PType): bool =
result = iterOverType(t, containsUnresolvedTypeIter, nil)
proc baseOfDistinct*(t: PType; g: ModuleGraph; idgen: IdGenerator): PType =
if t.kind == tyDistinct:
result = t.elementType
@@ -1744,7 +1611,7 @@ proc skipHidden*(n: PNode): PNode =
proc skipConvTakeType*(n: PNode): PNode =
result = n.skipConv
result.typ() = n.typ
result.typ = n.typ
proc isEmptyContainer*(t: PType): bool =
case t.kind
@@ -1784,7 +1651,7 @@ proc skipHiddenSubConv*(n: PNode; g: ModuleGraph; idgen: IdGenerator): PNode =
result = n
else:
result = copyTree(result)
result.typ() = dest
result.typ = dest
else:
result = n
@@ -1858,13 +1725,6 @@ proc processPragmaAndCallConvMismatch(msg: var string, formal, actual: PType, co
of efTagsIllegal:
msg.add "\n.notTag catched an illegal effect"
proc typeNameAndDesc*(t: PType): string =
result = typeToString(t)
let desc = typeToString(t, preferDesc)
if result != desc:
result.add(" = ")
result.add(desc)
proc typeMismatch*(conf: ConfigRef; info: TLineInfo, formal, actual: PType, n: PNode) =
if formal.kind != tyError and actual.kind != tyError:
let actualStr = typeToString(actual)
@@ -1897,7 +1757,7 @@ proc typeMismatch*(conf: ConfigRef; info: TLineInfo, formal, actual: PType, n: P
processPragmaAndCallConvMismatch(msg, a, b, conf)
localError(conf, info, msg)
proc isRecursiveStructuralType(t: PType, cycleDetector: var IntSet): bool =
proc isTupleRecursive(t: PType, cycleDetector: var IntSet): bool =
if t == nil:
return false
if cycleDetector.containsOrIncl(t.id):
@@ -1908,30 +1768,19 @@ proc isRecursiveStructuralType(t: PType, cycleDetector: var IntSet): bool =
var cycleDetectorCopy: IntSet
for a in t.kids:
cycleDetectorCopy = cycleDetector
if isRecursiveStructuralType(a, cycleDetectorCopy):
return true
of tyProc:
result = false
var cycleDetectorCopy: IntSet
if t.returnType != nil:
cycleDetectorCopy = cycleDetector
if isRecursiveStructuralType(t.returnType, cycleDetectorCopy):
return true
for _, a in t.paramTypes:
cycleDetectorCopy = cycleDetector
if isRecursiveStructuralType(a, cycleDetectorCopy):
if isTupleRecursive(a, cycleDetectorCopy):
return true
of tyRef, tyPtr, tyVar, tyLent, tySink,
tyArray, tyUncheckedArray, tySequence, tyDistinct:
return isRecursiveStructuralType(t.elementType, cycleDetector)
return isTupleRecursive(t.elementType, cycleDetector)
of tyAlias, tyGenericInst:
return isRecursiveStructuralType(t.skipModifier, cycleDetector)
return isTupleRecursive(t.skipModifier, cycleDetector)
else:
return false
proc isRecursiveStructuralType*(t: PType): bool =
proc isTupleRecursive*(t: PType): bool =
var cycleDetector = initIntSet()
isRecursiveStructuralType(t, cycleDetector)
isTupleRecursive(t, cycleDetector)
proc isException*(t: PType): bool =
# check if `y` is object type and it inherits from Exception
@@ -2006,125 +1855,5 @@ proc isCharArrayPtr*(t: PType; allowPointerToChar: bool): bool =
else:
result = false
proc isRefPtrObject*(t: PType): bool =
t.kind in {tyRef, tyPtr} and tfRefsAnonObj in t.flags
proc nominalRoot*(t: PType): PType =
## the "name" type of a given instance of a nominal type,
## i.e. the type directly associated with the symbol where the root
## nominal type of `t` was defined, skipping things like generic instances,
## aliases, `var`/`sink`/`typedesc` modifiers
##
## instead of returning the uninstantiated body of a generic type,
## returns the type of the symbol instead (with tyGenericBody type)
result = nil
case t.kind
of tyAlias, tyVar, tySink:
# varargs?
result = nominalRoot(t.skipModifier)
of tyTypeDesc:
# for proc foo(_: type T)
result = nominalRoot(t.skipModifier)
of tyGenericInvocation, tyGenericInst:
result = t
# skip aliases, so this works in the same module but not in another module:
# type Foo[T] = object
# type Bar[T] = Foo[T]
# proc foo[T](x: Bar[T]) = ... # attached to type
while result.skipModifier.kind in {tyGenericInvocation, tyGenericInst}:
result = result.skipModifier
result = nominalRoot(result[0])
of tyGenericBody:
result = t
# this time skip the aliases but take the generic body
while result.skipModifier.kind in {tyGenericInvocation, tyGenericInst}:
result = result.skipModifier[0]
let val = result.skipModifier
if val.kind in {tyDistinct, tyEnum, tyObject} or
isRefPtrObject(val):
# atomic nominal types, this generic body is attached to them
discard
else:
result = nominalRoot(val)
of tyCompositeTypeClass:
# parameter with type Foo
result = nominalRoot(t.skipModifier)
of tyGenericParam:
if t.genericParamHasConstraints:
# T: Foo
result = nominalRoot(t.genericConstraint)
else:
result = nil
of tyDistinct, tyEnum, tyObject:
result = t
of tyPtr, tyRef:
if tfRefsAnonObj in t.flags:
# in the case that we have `type Foo = ref object` etc
result = t
else:
# we could allow this in general, but there's things like `seq[Foo]`
#result = nominalRoot(t.skipModifier)
result = nil
of tyStatic:
result = nominalRoot(t.base)
else:
# skips all typeclasses
# is this correct for `concept`?
result = nil
proc genericRoot*(t: PType): PType =
## gets the root generic type (`tyGenericBody`) from `t`,
## if `t` is a generic type or the body of a generic instantiation
case t.kind
of tyGenericBody:
result = t
of tyGenericInst, tyGenericInvocation:
result = t.genericHead
else:
if t.typeInst != nil:
result = t.typeInst.genericHead
elif t.sym != nil and t.sym.typ.kind == tyGenericBody:
# can happen if `t` is the last child (body) of the generic body
result = t.sym.typ
else:
result = nil
proc reduceToBase*(f: PType): PType =
#[
Not recursion safe
Returns the lowest order (most general) type that that is compatible with the input.
E.g.
A[T] = ptr object ... A -> ptr object
A[N: static[int]] = array[N, int] ... A -> array
]#
case f.kind:
of tyGenericParam:
if f.len <= 0 or f.skipModifier == nil:
result = f
else:
result = reduceToBase(f.skipModifier)
of tyGenericInvocation:
result = reduceToBase(f.baseClass)
of tyCompositeTypeClass, tyAlias:
if not f.hasElementType or f.elementType == nil:
result = f
else:
result = reduceToBase(f.elementType)
of tyGenericInst:
result = reduceToBase(f.skipModifier)
of tyGenericBody:
result = reduceToBase(f.typeBodyImpl)
of tyUserTypeClass:
if f.isResolvedUserTypeClass:
result = f.base
else:
result = f.skipModifier
of tyStatic, tyOwned, tyVar, tyLent, tySink:
result = reduceToBase(f.base)
of tyInferred:
# This is not true "After a candidate type is selected"
result = reduceToBase(f.base)
of tyRange:
result = f.elementType
else:
result = f
proc lacksMTypeField*(typ: PType): bool {.inline.} =
(typ.sym != nil and sfPure in typ.sym.flags) or tfFinal in typ.flags

View File

@@ -441,15 +441,11 @@ proc destMightOwn(c: var Partitions; dest: var VarIndex; n: PNode) =
of nkIfStmt, nkIfExpr:
for i in 0..<n.len:
inc c.inConditional
destMightOwn(c, dest, n[i].lastSon)
dec c.inConditional
of nkCaseStmt:
for i in 1..<n.len:
inc c.inConditional
destMightOwn(c, dest, n[i].lastSon)
dec c.inConditional
of nkStmtList, nkStmtListExpr:
if n.len > 0:
@@ -502,17 +498,8 @@ proc destMightOwn(c: var Partitions; dest: var VarIndex; n: PNode) =
# we know the result is derived from the first argument:
var roots: seq[(PSym, int)] = @[]
allRoots(n[1], roots, RootEscapes)
if roots.len == 0 and c.inConditional > 0:
# when in a conditional expression,
# to ensure that the first argument isn't outlived
# by the lvalue, we need find the root, otherwise
# it is probably a local temporary
# (e.g. a return value from a call),
# we should prevent cursorfication
dest.flags.incl preventCursor
else:
for r in roots:
connect(c, dest.sym, r[0], n[1].info)
for r in roots:
connect(c, dest.sym, r[0], n[1].info)
else:
let magic = if n[0].kind == nkSym: n[0].sym.magic else: mNone

View File

@@ -12,7 +12,7 @@
import semmacrosanity
import
std/[strutils, tables, intsets, parseutils],
std/[strutils, tables, parseutils],
msgs, vmdef, vmgen, nimsets, types,
parser, vmdeps, idents, trees, renderer, options, transf,
gorgeimpl, lineinfos, btrees, macrocacheimpl,
@@ -202,7 +202,7 @@ proc copyValue(src: PNode): PNode =
return src
result = newNode(src.kind)
result.info = src.info
result.typ() = src.typ
result.typ = src.typ
result.flags = src.flags * PersistentNodeFlags
result.comment = src.comment
when defined(useNodeIds):
@@ -507,7 +507,7 @@ proc setLenSeq(c: PCtx; node: PNode; newLen: int; info: TLineInfo) =
setLen(node.sons, newLen)
if oldLen < newLen:
for i in oldLen..<newLen:
node[i] = getNullValue(c, typ.elementType, info, c.config)
node[i] = getNullValue(typ.elementType, info, c.config)
const
errNilAccess = "attempt to access a nil address"
@@ -516,8 +516,6 @@ const
errIllegalConvFromXtoY = "illegal conversion from '$1' to '$2'"
errTooManyIterations = "interpretation requires too many iterations; " &
"if you are sure this is not a bug in your code, compile with `--maxLoopIterationsVM:number` (current value: $1)"
errCallDepthExceeded = "maximum call depth for the VM exceeded; " &
"if you are sure this is not a bug in your code, compile with `--maxCallDepthVM:number` (current value: $1)"
errFieldXNotFound = "node lacks field: "
@@ -592,7 +590,6 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
let newPc = c.cleanUpOnReturn(tos)
# Perform any cleanup action before returning
if newPc < 0:
inc(c.callDepth)
pc = tos.comesFrom
let retVal = regs[0]
tos = tos.next
@@ -612,10 +609,7 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
of opcYldVal: assert false
of opcAsgnInt:
decodeB(rkInt)
if regs[rb].kind == rkInt:
regs[ra].intVal = regs[rb].intVal
else:
stackTrace(c, tos, pc, "opcAsgnInt: got " & $regs[rb].kind)
regs[ra].intVal = regs[rb].intVal
of opcAsgnFloat:
decodeB(rkFloat)
regs[ra].floatVal = regs[rb].floatVal
@@ -682,19 +676,16 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
else:
assert regs[rb].kind == rkNode
let nb = regs[rb].node
if nb == nil:
stackTrace(c, tos, pc, errNilAccess)
case nb.kind
of nkCharLit..nkUInt64Lit:
ensureKind(rkInt)
regs[ra].intVal = nb.intVal
of nkFloatLit..nkFloat64Lit:
ensureKind(rkFloat)
regs[ra].floatVal = nb.floatVal
else:
case nb.kind
of nkCharLit..nkUInt64Lit:
ensureKind(rkInt)
regs[ra].intVal = nb.intVal
of nkFloatLit..nkFloat64Lit:
ensureKind(rkFloat)
regs[ra].floatVal = nb.floatVal
else:
ensureKind(rkNode)
regs[ra].node = nb
ensureKind(rkNode)
regs[ra].node = nb
of opcSlice:
# A bodge, but this takes in `toOpenArray(rb, rc, rc)` and emits
# nkTupleConstr(x, y, z) into the `regs[ra]`. These can later be used for calculating the slice we have taken.
@@ -859,30 +850,25 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
of opcLdObj:
# a = b.c
decodeBC(rkNode)
if rb >= regs.len or regs[rb].kind == rkNone or
(regs[rb].kind == rkNode and regs[rb].node == nil) or
(regs[rb].kind == rkNodeAddr and regs[rb].nodeAddr[] == nil):
stackTrace(c, tos, pc, errNilAccess)
let src = if regs[rb].kind == rkNode: regs[rb].node else: regs[rb].nodeAddr[]
case src.kind
of nkEmpty..nkNilLit:
# for nkPtrLit, this could be supported in the future, use something like:
# derefPtrToReg(src.intVal + offsetof(src.typ, rc), typ_field, regs[ra], isAssign = false)
# where we compute the offset in bytes for field rc
stackTrace(c, tos, pc, errNilAccess & " " & $("kind", src.kind, "typ", typeToString(src.typ), "rc", rc))
of nkObjConstr:
let n = src[rc + 1].skipColon
regs[ra].node = n
of nkTupleConstr:
let n = if src.typ != nil and tfTriggersCompileTime in src.typ.flags:
src[rc]
else:
src[rc].skipColon
regs[ra].node = n
else:
let src = if regs[rb].kind == rkNode: regs[rb].node else: regs[rb].nodeAddr[]
case src.kind
of nkEmpty..nkNilLit:
# for nkPtrLit, this could be supported in the future, use something like:
# derefPtrToReg(src.intVal + offsetof(src.typ, rc), typ_field, regs[ra], isAssign = false)
# where we compute the offset in bytes for field rc
stackTrace(c, tos, pc, errNilAccess & " " & $("kind", src.kind, "typ", typeToString(src.typ), "rc", rc))
of nkObjConstr:
let n = src[rc + 1].skipColon
regs[ra].node = n
of nkTupleConstr:
let n = if src.typ != nil and tfTriggersCompileTime in src.typ.flags:
src[rc]
else:
src[rc].skipColon
regs[ra].node = n
else:
let n = src[rc]
regs[ra].node = n
let n = src[rc]
regs[ra].node = n
of opcLdObjAddr:
# a = addr(b.c)
decodeBC(rkNodeAddr)
@@ -908,10 +894,8 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
stackTrace(c, tos, pc, errNilAccess)
elif dest[shiftedRb].kind == nkExprColonExpr:
writeField(dest[shiftedRb][1], regs[rc])
dest[shiftedRb][1].flags.incl nfSkipFieldChecking
else:
writeField(dest[shiftedRb], regs[rc])
dest[shiftedRb].flags.incl nfSkipFieldChecking
of opcWrStrIdx:
decodeBC(rkNode)
let idx = regs[rb].intVal.int
@@ -1279,11 +1263,6 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
createSet(regs[ra])
move(regs[ra].node.sons,
nimsets.diffSets(c.config, regs[rb].node, regs[rc].node).sons)
of opcXorSet:
decodeBC(rkNode)
createSet(regs[ra])
move(regs[ra].node.sons,
nimsets.symdiffSets(c.config, regs[rb].node, regs[rc].node).sons)
of opcConcatStr:
decodeBC(rkNode)
createStr regs[ra]
@@ -1384,7 +1363,7 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
else:
internalError(c.config, c.debug[pc], "opcParseFloat: Incorrectly created openarray")
else:
regs[ra].intVal = parseBiggestFloat(regs[rb].node.strVal, rcAddr.floatVal)
regs[ra].intVal = parseBiggestFloat(regs[ra].node.strVal, rcAddr.floatVal)
of opcRangeChck:
let rb = instr.regB
@@ -1399,11 +1378,7 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
let rb = instr.regB
let rc = instr.regC
let bb = regs[rb].node
if bb.kind == nkNilLit:
stackTrace(c, tos, pc, "attempt to call nil closure")
let isClosure = bb.kind == nkTupleConstr
if isClosure and bb[0].kind == nkNilLit:
stackTrace(c, tos, pc, "attempt to call nil closure")
let prc = if not isClosure: bb.sym else: bb[0].sym
if prc.offset < -1:
# it's a callback:
@@ -1443,19 +1418,11 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
var newFrame = PStackFrame(prc: prc, comesFrom: pc, next: tos)
newSeq(newFrame.slots, prc.offset+ord(isClosure))
if not isEmptyType(prc.typ.returnType):
putIntoReg(newFrame.slots[0], getNullValue(c, prc.typ.returnType, prc.info, c.config))
putIntoReg(newFrame.slots[0], getNullValue(prc.typ.returnType, prc.info, c.config))
for i in 1..rc-1:
newFrame.slots[i] = regs[rb+i]
if isClosure:
newFrame.slots[rc] = TFullReg(kind: rkNode, node: regs[rb].node[1])
if c.callDepth <= 0:
if allowInfiniteRecursion in c.features:
c.callDepth = c.config.maxCallDepthVM
else:
msgWriteln(c.config, "stack trace: (most recent call last)", {msgNoUnitSep})
stackTraceAux(c, tos, pc)
globalError(c.config, c.debug[pc], errCallDepthExceeded % $c.config.maxCallDepthVM)
dec(c.callDepth)
tos = newFrame
updateRegsAlias
# -1 for the following 'inc pc'
@@ -1548,10 +1515,10 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
# Set the `name` field of the exception
var exceptionNameNode = newStrNode(nkStrLit, c.currentExceptionA.typ.sym.name.s)
if c.currentExceptionA[2].kind == nkExprColonExpr:
exceptionNameNode.typ() = c.currentExceptionA[2][1].typ
exceptionNameNode.typ = c.currentExceptionA[2][1].typ
c.currentExceptionA[2][1] = exceptionNameNode
else:
exceptionNameNode.typ() = c.currentExceptionA[2].typ
exceptionNameNode.typ = c.currentExceptionA[2].typ
c.currentExceptionA[2] = exceptionNameNode
c.exceptionInstr = pc
@@ -1584,7 +1551,7 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
of opcNew:
ensureKind(rkNode)
let typ = c.types[instr.regBx - wordExcess]
regs[ra].node = getNullValue(c, typ, c.debug[pc], c.config)
regs[ra].node = getNullValue(typ, c.debug[pc], c.config)
regs[ra].node.flags.incl nfIsRef
of opcNewSeq:
let typ = c.types[instr.regBx - wordExcess]
@@ -1593,10 +1560,10 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
let instr2 = c.code[pc]
let count = regs[instr2.regA].intVal.int
regs[ra].node = newNodeI(nkBracket, c.debug[pc])
regs[ra].node.typ() = typ
regs[ra].node.typ = typ
newSeq(regs[ra].node.sons, count)
for i in 0..<count:
regs[ra].node[i] = getNullValue(c, typ.elementType, c.debug[pc], c.config)
regs[ra].node[i] = getNullValue(typ.elementType, c.debug[pc], c.config)
of opcNewStr:
decodeB(rkNode)
regs[ra].node = newNodeI(nkStrLit, c.debug[pc])
@@ -1608,7 +1575,7 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
of opcLdNull:
ensureKind(rkNode)
let typ = c.types[instr.regBx - wordExcess]
regs[ra].node = getNullValue(c, typ, c.debug[pc], c.config)
regs[ra].node = getNullValue(typ, c.debug[pc], c.config)
# opcLdNull really is the gist of the VM's problems: should it load
# a fresh null to regs[ra].node or to regs[ra].node[]? This really
# depends on whether regs[ra] represents the variable itself or whether
@@ -2008,7 +1975,7 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
else:
internalAssert c.config, false
regs[ra].node.info = n.info
regs[ra].node.typ() = n.typ
regs[ra].node.typ = n.typ
of opcNCopyLineInfo:
decodeB(rkNode)
regs[ra].node.info = regs[rb].node.info
@@ -2051,7 +2018,7 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
aStrVal = aNode.ident.s.cstring
of nkSym:
aStrVal = aNode.sym.name.s.cstring
of nkOpenSymChoice, nkClosedSymChoice, nkOpenSym:
of nkOpenSymChoice, nkClosedSymChoice:
aStrVal = aNode[0].sym.name.s.cstring
else:
discard
@@ -2063,7 +2030,7 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
bStrVal = bNode.ident.s.cstring
of nkSym:
bStrVal = bNode.sym.name.s.cstring
of nkOpenSymChoice, nkClosedSymChoice, nkOpenSym:
of nkOpenSymChoice, nkClosedSymChoice:
bStrVal = bNode[0].sym.name.s.cstring
else:
discard
@@ -2088,7 +2055,7 @@ proc rawExecute(c: PCtx, start: int, tos: PStackFrame): TFullReg =
ensureKind(rkNode)
regs[ra].node = temp
regs[ra].node.info = c.debug[pc]
regs[ra].node.typ() = typ
regs[ra].node.typ = typ
of opcConv:
let rb = instr.regB
inc pc
@@ -2322,7 +2289,6 @@ proc execute(c: PCtx, start: int): PNode =
proc execProc*(c: PCtx; sym: PSym; args: openArray[PNode]): PNode =
c.loopIterations = c.config.maxLoopIterationsVM
c.callDepth = c.config.maxCallDepthVM
if sym.kind in routineKinds:
if sym.typ.paramsLen != args.len:
result = nil
@@ -2338,7 +2304,7 @@ proc execProc*(c: PCtx; sym: PSym; args: openArray[PNode]): PNode =
# setup parameters:
if not isEmptyType(sym.typ.returnType) or sym.kind == skMacro:
putIntoReg(tos.slots[0], getNullValue(c, sym.typ.returnType, sym.info, c.config))
putIntoReg(tos.slots[0], getNullValue(sym.typ.returnType, sym.info, c.config))
# XXX We could perform some type checking here.
for i in 0..<sym.typ.paramsLen:
putIntoReg(tos.slots[i+1], args[i])
@@ -2349,17 +2315,9 @@ proc execProc*(c: PCtx; sym: PSym; args: openArray[PNode]): PNode =
localError(c.config, sym.info,
"NimScript: attempt to call non-routine: " & sym.name.s)
proc errorNode(idgen: IdGenerator; owner: PSym, n: PNode): PNode =
result = newNodeI(nkEmpty, n.info)
result.typ() = newType(tyError, idgen, owner)
result.typ.flags.incl tfCheckedForDestructor
proc evalStmt*(c: PCtx, n: PNode) =
let n = transformExpr(c.graph, c.idgen, c.module, n)
let start = genStmt(c, n)
if c.cannotEval:
c.cannotEval = false
return
# execute new instructions; this redundant opcEof check saves us lots
# of allocations in 'execute':
if c.code[start].opcode != opcEof:
@@ -2370,10 +2328,7 @@ proc evalExpr*(c: PCtx, n: PNode): PNode =
# `nim --eval:"expr"` might've used it at some point for idetools; could
# be revived for nimsuggest
let n = transformExpr(c.graph, c.idgen, c.module, n)
c.cannotEval = false
let start = genExpr(c, n)
if c.cannotEval:
return errorNode(c.idgen, c.module, n)
assert c.code[start].opcode != opcEof
result = execute(c, start)
@@ -2425,14 +2380,8 @@ proc evalConstExprAux(module: PSym; idgen: IdGenerator;
setupGlobalCtx(module, g, idgen)
var c = PCtx g.vm
let oldMode = c.mode
let oldLocals = c.locals
c.mode = mode
c.locals = initIntSet()
c.cannotEval = false
let start = genExpr(c, n, requiresValue = mode!=emStaticStmt)
c.locals = oldLocals
if c.cannotEval:
return errorNode(idgen, prc, n)
if c.code[start].opcode == opcEof: return newNodeI(nkEmpty, n.info)
assert c.code[start].opcode != opcEof
when debugEchoCode: c.echoCode start
@@ -2489,7 +2438,7 @@ proc setupMacroParam(x: PNode, typ: PType): TFullReg =
var n = x
if n.kind in {nkHiddenSubConv, nkHiddenStdConv}: n = n[1]
n.flags.incl nfIsRef
n.typ() = x.typ
n.typ = x.typ
result = TFullReg(kind: rkNode, node: n)
iterator genericParamsInMacroCall*(macroSym: PSym, call: PNode): (PSym, PNode) =
@@ -2503,6 +2452,11 @@ iterator genericParamsInMacroCall*(macroSym: PSym, call: PNode): (PSym, PNode) =
# to prevent endless recursion in macro instantiation
const evalMacroLimit = 1000
#proc errorNode(idgen: IdGenerator; owner: PSym, n: PNode): PNode =
# result = newNodeI(nkEmpty, n.info)
# result.typ = newType(tyError, idgen, owner)
# result.typ.flags.incl tfCheckedForDestructor
proc evalMacroCall*(module: PSym; idgen: IdGenerator; g: ModuleGraph; templInstCounter: ref int;
n, nOrig: PNode, sym: PSym): PNode =
#if g.config.errorCounter > 0: return errorNode(idgen, module, n)
@@ -2526,10 +2480,7 @@ proc evalMacroCall*(module: PSym; idgen: IdGenerator; g: ModuleGraph; templInstC
c.comesFromHeuristic.line = 0'u16
c.callsite = nOrig
c.templInstCounter = templInstCounter
c.cannotEval = false
let start = genProc(c, sym)
if c.cannotEval:
return errorNode(idgen, module, n)
var tos = PStackFrame(prc: sym, comesFrom: 0, next: nil)
let maxSlots = sym.offset

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