mirror of
https://github.com/nim-lang/Nim.git
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* fixes `@[]` type inference in generics * add issue links * fixes macros and iterators * refactor * add one more test
644 lines
24 KiB
Nim
644 lines
24 KiB
Nim
#
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#
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# The Nim Compiler
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# (c) Copyright 2015 Andreas Rumpf
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#
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# See the file "copying.txt", included in this
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# distribution, for details about the copyright.
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#
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# This include file implements the semantic checking for magics.
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# included from sem.nim
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proc semObjConstr(c: PContext, n: PNode, flags: TExprFlags; expectedType: PType = nil): PNode
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proc addDefaultFieldForNew(c: PContext, n: PNode): PNode =
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result = n
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let typ = result[1].typ # new(x)
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if typ.skipTypes({tyGenericInst, tyAlias, tySink}).kind == tyRef and typ.skipTypes({tyGenericInst, tyAlias, tySink})[0].kind == tyObject:
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var asgnExpr = newTree(nkObjConstr, newNodeIT(nkType, result[1].info, typ))
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asgnExpr.typ = typ
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var t = typ.skipTypes({tyGenericInst, tyAlias, tySink})[0]
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while true:
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asgnExpr.sons.add defaultFieldsForTheUninitialized(c, t.n)
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let base = t[0]
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if base == nil:
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break
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t = skipTypes(base, skipPtrs)
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if asgnExpr.sons.len > 1:
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result = newTree(nkAsgn, result[1], asgnExpr)
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proc semAddrArg(c: PContext; n: PNode): PNode =
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let x = semExprWithType(c, n)
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if x.kind == nkSym:
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x.sym.flags.incl(sfAddrTaken)
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if isAssignable(c, x) notin {arLValue, arLocalLValue, arAddressableConst, arLentValue}:
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localError(c.config, n.info, errExprHasNoAddress)
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result = x
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proc semTypeOf(c: PContext; n: PNode): PNode =
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var m = BiggestInt 1 # typeOfIter
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if n.len == 3:
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let mode = semConstExpr(c, n[2])
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if mode.kind != nkIntLit:
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localError(c.config, n.info, "typeof: cannot evaluate 'mode' parameter at compile-time")
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else:
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m = mode.intVal
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result = newNodeI(nkTypeOfExpr, n.info)
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let typExpr = semExprWithType(c, n[1], if m == 1: {efInTypeof} else: {})
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result.add typExpr
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result.typ = makeTypeDesc(c, typExpr.typ)
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type
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SemAsgnMode = enum asgnNormal, noOverloadedSubscript, noOverloadedAsgn
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proc semAsgn(c: PContext, n: PNode; mode=asgnNormal): PNode
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proc semSubscript(c: PContext, n: PNode, flags: TExprFlags): PNode
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proc semArrGet(c: PContext; n: PNode; flags: TExprFlags): PNode =
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result = newNodeI(nkBracketExpr, n.info)
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for i in 1..<n.len: result.add(n[i])
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result = semSubscript(c, result, flags)
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if result.isNil:
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let x = copyTree(n)
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x[0] = newIdentNode(getIdent(c.cache, "[]"), n.info)
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bracketNotFoundError(c, x)
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#localError(c.config, n.info, "could not resolve: " & $n)
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result = n
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proc semArrPut(c: PContext; n: PNode; flags: TExprFlags): PNode =
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# rewrite `[]=`(a, i, x) back to ``a[i] = x``.
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let b = newNodeI(nkBracketExpr, n.info)
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b.add(n[1].skipAddr)
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for i in 2..<n.len-1: b.add(n[i])
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result = newNodeI(nkAsgn, n.info, 2)
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result[0] = b
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result[1] = n.lastSon
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result = semAsgn(c, result, noOverloadedSubscript)
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proc semAsgnOpr(c: PContext; n: PNode; k: TNodeKind): PNode =
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result = newNodeI(k, n.info, 2)
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result[0] = n[1]
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result[1] = n[2]
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result = semAsgn(c, result, noOverloadedAsgn)
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proc semIsPartOf(c: PContext, n: PNode, flags: TExprFlags): PNode =
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var r = isPartOf(n[1], n[2])
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result = newIntNodeT(toInt128(ord(r)), n, c.idgen, c.graph)
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proc expectIntLit(c: PContext, n: PNode): int =
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let x = c.semConstExpr(c, n)
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case x.kind
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of nkIntLit..nkInt64Lit: result = int(x.intVal)
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else: localError(c.config, n.info, errIntLiteralExpected)
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proc semInstantiationInfo(c: PContext, n: PNode): PNode =
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result = newNodeIT(nkTupleConstr, n.info, n.typ)
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let idx = expectIntLit(c, n[1])
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let useFullPaths = expectIntLit(c, n[2])
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let info = getInfoContext(c.config, idx)
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var filename = newNodeIT(nkStrLit, n.info, getSysType(c.graph, n.info, tyString))
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filename.strVal = if useFullPaths != 0: toFullPath(c.config, info) else: toFilename(c.config, info)
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var line = newNodeIT(nkIntLit, n.info, getSysType(c.graph, n.info, tyInt))
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line.intVal = toLinenumber(info)
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var column = newNodeIT(nkIntLit, n.info, getSysType(c.graph, n.info, tyInt))
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column.intVal = toColumn(info)
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# filename: string, line: int, column: int
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result.add(newTree(nkExprColonExpr, n.typ.n[0], filename))
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result.add(newTree(nkExprColonExpr, n.typ.n[1], line))
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result.add(newTree(nkExprColonExpr, n.typ.n[2], column))
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proc toNode(t: PType, i: TLineInfo): PNode =
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result = newNodeIT(nkType, i, t)
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const
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# these are types that use the bracket syntax for instantiation
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# they can be subjected to the type traits `genericHead` and
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# `Uninstantiated`
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tyUserDefinedGenerics* = {tyGenericInst, tyGenericInvocation,
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tyUserTypeClassInst}
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tyMagicGenerics* = {tySet, tySequence, tyArray, tyOpenArray}
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tyGenericLike* = tyUserDefinedGenerics +
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tyMagicGenerics +
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{tyCompositeTypeClass}
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proc uninstantiate(t: PType): PType =
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result = case t.kind
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of tyMagicGenerics: t
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of tyUserDefinedGenerics: t.base
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of tyCompositeTypeClass: uninstantiate t[1]
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else: t
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proc getTypeDescNode(c: PContext; typ: PType, sym: PSym, info: TLineInfo): PNode =
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var resType = newType(tyTypeDesc, nextTypeId c.idgen, sym)
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rawAddSon(resType, typ)
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result = toNode(resType, info)
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proc evalTypeTrait(c: PContext; traitCall: PNode, operand: PType, context: PSym): PNode =
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const skippedTypes = {tyTypeDesc, tyAlias, tySink}
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let trait = traitCall[0]
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internalAssert c.config, trait.kind == nkSym
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var operand = operand.skipTypes(skippedTypes)
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template operand2: PType =
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traitCall[2].typ.skipTypes({tyTypeDesc})
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template typeWithSonsResult(kind, sons): PNode =
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newTypeWithSons(context, kind, sons, c.idgen).toNode(traitCall.info)
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if operand.kind == tyGenericParam or (traitCall.len > 2 and operand2.kind == tyGenericParam):
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return traitCall ## too early to evaluate
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let s = trait.sym.name.s
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case s
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of "or", "|":
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return typeWithSonsResult(tyOr, @[operand, operand2])
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of "and":
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return typeWithSonsResult(tyAnd, @[operand, operand2])
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of "not":
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return typeWithSonsResult(tyNot, @[operand])
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of "typeToString":
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var prefer = preferTypeName
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if traitCall.len >= 2:
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let preferStr = traitCall[2].strVal
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prefer = parseEnum[TPreferedDesc](preferStr)
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result = newStrNode(nkStrLit, operand.typeToString(prefer))
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result.typ = getSysType(c.graph, traitCall[1].info, tyString)
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result.info = traitCall.info
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of "name", "$":
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result = newStrNode(nkStrLit, operand.typeToString(preferTypeName))
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result.typ = getSysType(c.graph, traitCall[1].info, tyString)
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result.info = traitCall.info
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of "arity":
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result = newIntNode(nkIntLit, operand.len - ord(operand.kind==tyProc))
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result.typ = newType(tyInt, nextTypeId c.idgen, context)
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result.info = traitCall.info
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of "genericHead":
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var arg = operand
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case arg.kind
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of tyGenericInst:
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result = getTypeDescNode(c, arg.base, operand.owner, traitCall.info)
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# of tySequence: # this doesn't work
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# var resType = newType(tySequence, operand.owner)
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# result = toNode(resType, traitCall.info) # doesn't work yet
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else:
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localError(c.config, traitCall.info, "expected generic type, got: type $2 of kind $1" % [arg.kind.toHumanStr, typeToString(operand)])
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result = newType(tyError, nextTypeId c.idgen, context).toNode(traitCall.info)
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of "stripGenericParams":
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result = uninstantiate(operand).toNode(traitCall.info)
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of "supportsCopyMem":
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let t = operand.skipTypes({tyVar, tyLent, tyGenericInst, tyAlias, tySink, tyInferred})
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let complexObj = containsGarbageCollectedRef(t) or
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hasDestructor(t)
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result = newIntNodeT(toInt128(ord(not complexObj)), traitCall, c.idgen, c.graph)
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of "isNamedTuple":
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var operand = operand.skipTypes({tyGenericInst})
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let cond = operand.kind == tyTuple and operand.n != nil
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result = newIntNodeT(toInt128(ord(cond)), traitCall, c.idgen, c.graph)
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of "tupleLen":
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var operand = operand.skipTypes({tyGenericInst})
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assert operand.kind == tyTuple, $operand.kind
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result = newIntNodeT(toInt128(operand.len), traitCall, c.idgen, c.graph)
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of "distinctBase":
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var arg = operand.skipTypes({tyGenericInst})
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let rec = semConstExpr(c, traitCall[2]).intVal != 0
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while arg.kind == tyDistinct:
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arg = arg.base.skipTypes(skippedTypes + {tyGenericInst})
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if not rec: break
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result = getTypeDescNode(c, arg, operand.owner, traitCall.info)
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else:
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localError(c.config, traitCall.info, "unknown trait: " & s)
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result = newNodeI(nkEmpty, traitCall.info)
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proc semTypeTraits(c: PContext, n: PNode): PNode =
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checkMinSonsLen(n, 2, c.config)
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let t = n[1].typ
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internalAssert c.config, t != nil and t.kind == tyTypeDesc
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if t.len > 0:
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# This is either a type known to sem or a typedesc
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# param to a regular proc (again, known at instantiation)
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result = evalTypeTrait(c, n, t, getCurrOwner(c))
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else:
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# a typedesc variable, pass unmodified to evals
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result = n
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proc semOrd(c: PContext, n: PNode): PNode =
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result = n
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let parType = n[1].typ
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if isOrdinalType(parType, allowEnumWithHoles=true):
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discard
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else:
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localError(c.config, n.info, errOrdinalTypeExpected % typeToString(parType, preferDesc))
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result.typ = errorType(c)
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proc semBindSym(c: PContext, n: PNode): PNode =
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result = copyNode(n)
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result.add(n[0])
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let sl = semConstExpr(c, n[1])
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if sl.kind notin {nkStrLit, nkRStrLit, nkTripleStrLit}:
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return localErrorNode(c, n, n[1].info, errStringLiteralExpected)
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let isMixin = semConstExpr(c, n[2])
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if isMixin.kind != nkIntLit or isMixin.intVal < 0 or
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isMixin.intVal > high(TSymChoiceRule).int:
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return localErrorNode(c, n, n[2].info, errConstExprExpected)
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let id = newIdentNode(getIdent(c.cache, sl.strVal), n.info)
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let s = qualifiedLookUp(c, id, {checkUndeclared})
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if s != nil:
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# we need to mark all symbols:
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var sc = symChoice(c, id, s, TSymChoiceRule(isMixin.intVal))
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if not (c.inStaticContext > 0 or getCurrOwner(c).isCompileTimeProc):
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# inside regular code, bindSym resolves to the sym-choice
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# nodes (see tinspectsymbol)
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return sc
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result.add(sc)
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else:
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errorUndeclaredIdentifier(c, n[1].info, sl.strVal)
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proc opBindSym(c: PContext, scope: PScope, n: PNode, isMixin: int, info: PNode): PNode =
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if n.kind notin {nkStrLit, nkRStrLit, nkTripleStrLit, nkIdent}:
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return localErrorNode(c, n, info.info, errStringOrIdentNodeExpected)
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if isMixin < 0 or isMixin > high(TSymChoiceRule).int:
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return localErrorNode(c, n, info.info, errConstExprExpected)
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let id = if n.kind == nkIdent: n
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else: newIdentNode(getIdent(c.cache, n.strVal), info.info)
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let tmpScope = c.currentScope
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c.currentScope = scope
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let s = qualifiedLookUp(c, id, {checkUndeclared})
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if s != nil:
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# we need to mark all symbols:
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result = symChoice(c, id, s, TSymChoiceRule(isMixin))
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else:
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errorUndeclaredIdentifier(c, info.info, if n.kind == nkIdent: n.ident.s
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else: n.strVal)
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c.currentScope = tmpScope
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proc semDynamicBindSym(c: PContext, n: PNode): PNode =
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# inside regular code, bindSym resolves to the sym-choice
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# nodes (see tinspectsymbol)
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if not (c.inStaticContext > 0 or getCurrOwner(c).isCompileTimeProc):
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return semBindSym(c, n)
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if c.graph.vm.isNil:
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setupGlobalCtx(c.module, c.graph, c.idgen)
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let
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vm = PCtx c.graph.vm
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# cache the current scope to
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# prevent it lost into oblivion
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scope = c.currentScope
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# cannot use this
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# vm.config.features.incl dynamicBindSym
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proc bindSymWrapper(a: VmArgs) =
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# capture PContext and currentScope
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# param description:
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# 0. ident, a string literal / computed string / or ident node
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# 1. bindSym rule
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# 2. info node
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a.setResult opBindSym(c, scope, a.getNode(0), a.getInt(1).int, a.getNode(2))
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let
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# although we use VM callback here, it is not
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# executed like 'normal' VM callback
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idx = vm.registerCallback("bindSymImpl", bindSymWrapper)
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# dummy node to carry idx information to VM
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idxNode = newIntTypeNode(idx, c.graph.getSysType(TLineInfo(), tyInt))
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result = copyNode(n)
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for x in n: result.add x
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result.add n # info node
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result.add idxNode
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proc semShallowCopy(c: PContext, n: PNode, flags: TExprFlags): PNode
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proc semOf(c: PContext, n: PNode): PNode =
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if n.len == 3:
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n[1] = semExprWithType(c, n[1])
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n[2] = semExprWithType(c, n[2], {efDetermineType})
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#restoreOldStyleType(n[1])
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#restoreOldStyleType(n[2])
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let a = skipTypes(n[1].typ, abstractPtrs)
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let b = skipTypes(n[2].typ, abstractPtrs)
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let x = skipTypes(n[1].typ, abstractPtrs-{tyTypeDesc})
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let y = skipTypes(n[2].typ, abstractPtrs-{tyTypeDesc})
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if x.kind == tyTypeDesc or y.kind != tyTypeDesc:
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localError(c.config, n.info, "'of' takes object types")
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elif b.kind != tyObject or a.kind != tyObject:
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localError(c.config, n.info, "'of' takes object types")
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else:
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let diff = inheritanceDiff(a, b)
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# | returns: 0 iff `a` == `b`
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# | returns: -x iff `a` is the x'th direct superclass of `b`
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# | returns: +x iff `a` is the x'th direct subclass of `b`
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# | returns: `maxint` iff `a` and `b` are not compatible at all
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if diff <= 0:
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# optimize to true:
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message(c.config, n.info, hintConditionAlwaysTrue, renderTree(n))
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result = newIntNode(nkIntLit, 1)
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result.info = n.info
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result.typ = getSysType(c.graph, n.info, tyBool)
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return result
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elif diff == high(int):
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if commonSuperclass(a, b) == nil:
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localError(c.config, n.info, "'$1' cannot be of this subtype" % typeToString(a))
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else:
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message(c.config, n.info, hintConditionAlwaysFalse, renderTree(n))
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result = newIntNode(nkIntLit, 0)
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result.info = n.info
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result.typ = getSysType(c.graph, n.info, tyBool)
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else:
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localError(c.config, n.info, "'of' takes 2 arguments")
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n.typ = getSysType(c.graph, n.info, tyBool)
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result = n
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proc semUnown(c: PContext; n: PNode): PNode =
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proc unownedType(c: PContext; t: PType): PType =
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case t.kind
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of tyTuple:
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var elems = newSeq[PType](t.len)
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var someChange = false
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for i in 0..<t.len:
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elems[i] = unownedType(c, t[i])
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if elems[i] != t[i]: someChange = true
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if someChange:
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result = newType(tyTuple, nextTypeId c.idgen, t.owner)
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# we have to use 'rawAddSon' here so that type flags are
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# properly computed:
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for e in elems: result.rawAddSon(e)
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else:
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result = t
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of tyOwned: result = t[0]
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of tySequence, tyOpenArray, tyArray, tyVarargs, tyVar, tyLent,
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tyGenericInst, tyAlias:
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let b = unownedType(c, t[^1])
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if b != t[^1]:
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result = copyType(t, nextTypeId c.idgen, t.owner)
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copyTypeProps(c.graph, c.idgen.module, result, t)
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result[^1] = b
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result.flags.excl tfHasOwned
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else:
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result = t
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else:
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result = t
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result = copyTree(n[1])
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result.typ = unownedType(c, result.typ)
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# little hack for injectdestructors.nim (see bug #11350):
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#result[0].typ = nil
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proc turnFinalizerIntoDestructor(c: PContext; orig: PSym; info: TLineInfo): PSym =
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# We need to do 2 things: Replace n.typ which is a 'ref T' by a 'var T' type.
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# Replace nkDerefExpr by nkHiddenDeref
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# nkDeref is for 'ref T': x[].field
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# nkHiddenDeref is for 'var T': x<hidden deref [] here>.field
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proc transform(c: PContext; n: PNode; old, fresh: PType; oldParam, newParam: PSym): PNode =
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result = shallowCopy(n)
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if sameTypeOrNil(n.typ, old):
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result.typ = fresh
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if n.kind == nkSym and n.sym == oldParam:
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result.sym = newParam
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for i in 0 ..< safeLen(n):
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result[i] = transform(c, n[i], old, fresh, oldParam, newParam)
|
|
#if n.kind == nkDerefExpr and sameType(n[0].typ, old):
|
|
# result =
|
|
|
|
result = copySym(orig, nextSymId c.idgen)
|
|
result.info = info
|
|
result.flags.incl sfFromGeneric
|
|
result.owner = orig
|
|
let origParamType = orig.typ[1]
|
|
let newParamType = makeVarType(result, origParamType.skipTypes(abstractPtrs), c.idgen)
|
|
let oldParam = orig.typ.n[1].sym
|
|
let newParam = newSym(skParam, oldParam.name, nextSymId c.idgen, result, result.info)
|
|
newParam.typ = newParamType
|
|
# proc body:
|
|
result.ast = transform(c, orig.ast, origParamType, newParamType, oldParam, newParam)
|
|
# proc signature:
|
|
result.typ = newProcType(result.info, nextTypeId c.idgen, result)
|
|
result.typ.addParam newParam
|
|
|
|
proc semQuantifier(c: PContext; n: PNode): PNode =
|
|
checkSonsLen(n, 2, c.config)
|
|
openScope(c)
|
|
result = newNodeIT(n.kind, n.info, n.typ)
|
|
result.add n[0]
|
|
let args = n[1]
|
|
assert args.kind == nkArgList
|
|
for i in 0..args.len-2:
|
|
let it = args[i]
|
|
var valid = false
|
|
if it.kind == nkInfix:
|
|
let op = considerQuotedIdent(c, it[0])
|
|
if op.id == ord(wIn):
|
|
let v = newSymS(skForVar, it[1], c)
|
|
styleCheckDef(c, v)
|
|
onDef(it[1].info, v)
|
|
let domain = semExprWithType(c, it[2], {efWantIterator})
|
|
v.typ = domain.typ
|
|
valid = true
|
|
addDecl(c, v)
|
|
result.add newTree(nkInfix, it[0], newSymNode(v), domain)
|
|
if not valid:
|
|
localError(c.config, n.info, "<quantifier> 'in' <range> expected")
|
|
result.add forceBool(c, semExprWithType(c, args[^1]))
|
|
closeScope(c)
|
|
|
|
proc semOld(c: PContext; n: PNode): PNode =
|
|
if n[1].kind == nkHiddenDeref:
|
|
n[1] = n[1][0]
|
|
if n[1].kind != nkSym or n[1].sym.kind != skParam:
|
|
localError(c.config, n[1].info, "'old' takes a parameter name")
|
|
elif n[1].sym.owner != getCurrOwner(c):
|
|
localError(c.config, n[1].info, n[1].sym.name.s & " does not belong to " & getCurrOwner(c).name.s)
|
|
result = n
|
|
|
|
proc semNewFinalize(c: PContext; n: PNode): PNode =
|
|
# Make sure the finalizer procedure refers to a procedure
|
|
if n[^1].kind == nkSym and n[^1].sym.kind notin {skProc, skFunc}:
|
|
localError(c.config, n.info, "finalizer must be a direct reference to a proc")
|
|
elif optTinyRtti in c.config.globalOptions:
|
|
let nfin = skipConvCastAndClosure(n[^1])
|
|
let fin = case nfin.kind
|
|
of nkSym: nfin.sym
|
|
of nkLambda, nkDo: nfin[namePos].sym
|
|
else:
|
|
localError(c.config, n.info, "finalizer must be a direct reference to a proc")
|
|
nil
|
|
if fin != nil:
|
|
if fin.kind notin {skProc, skFunc}:
|
|
# calling convention is checked in codegen
|
|
localError(c.config, n.info, "finalizer must be a direct reference to a proc")
|
|
|
|
# check if we converted this finalizer into a destructor already:
|
|
let t = whereToBindTypeHook(c, fin.typ[1].skipTypes(abstractInst+{tyRef}))
|
|
if t != nil and getAttachedOp(c.graph, t, attachedDestructor) != nil and
|
|
getAttachedOp(c.graph, t, attachedDestructor).owner == fin:
|
|
discard "already turned this one into a finalizer"
|
|
else:
|
|
let wrapperSym = newSym(skProc, getIdent(c.graph.cache, fin.name.s & "FinalizerWrapper"), nextSymId c.idgen, fin.owner, fin.info)
|
|
let selfSymNode = newSymNode(copySym(fin.ast[paramsPos][1][0].sym, nextSymId c.idgen))
|
|
selfSymNode.typ = fin.typ[1]
|
|
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[1]), 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)
|
|
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)
|
|
bindTypeHook(c, transFormedSym, n, attachedDestructor)
|
|
result = addDefaultFieldForNew(c, n)
|
|
|
|
proc semPrivateAccess(c: PContext, n: PNode): PNode =
|
|
let t = n[1].typ[0].toObjectFromRefPtrGeneric
|
|
c.currentScope.allowPrivateAccess.add t.sym
|
|
result = newNodeIT(nkEmpty, n.info, getSysType(c.graph, n.info, tyVoid))
|
|
|
|
proc checkDefault(c: PContext, n: PNode): PNode =
|
|
result = n
|
|
c.config.internalAssert result[1].typ.kind == tyTypeDesc
|
|
let constructed = result[1].typ.base
|
|
if constructed.requiresInit:
|
|
message(c.config, n.info, warnUnsafeDefault, typeToString(constructed))
|
|
|
|
proc magicsAfterOverloadResolution(c: PContext, n: PNode,
|
|
flags: TExprFlags; expectedType: PType = nil): PNode =
|
|
## This is the preferred code point to implement magics.
|
|
## ``c`` the current module, a symbol table to a very good approximation
|
|
## ``n`` the ast like it would be passed to a real macro
|
|
## ``flags`` Some flags for more contextual information on how the
|
|
## "macro" is calld.
|
|
|
|
case n[0].sym.magic
|
|
of mAddr:
|
|
checkSonsLen(n, 2, c.config)
|
|
result = n
|
|
result[1] = semAddrArg(c, n[1])
|
|
result.typ = makePtrType(c, result[1].typ)
|
|
of mTypeOf:
|
|
result = semTypeOf(c, n)
|
|
of mSizeOf:
|
|
result = foldSizeOf(c.config, n, n)
|
|
of mAlignOf:
|
|
result = foldAlignOf(c.config, n, n)
|
|
of mOffsetOf:
|
|
result = foldOffsetOf(c.config, n, n)
|
|
of mArrGet:
|
|
result = semArrGet(c, n, flags)
|
|
of mArrPut:
|
|
result = semArrPut(c, n, flags)
|
|
of mAsgn:
|
|
if n[0].sym.name.s == "=":
|
|
result = semAsgnOpr(c, n, nkAsgn)
|
|
elif n[0].sym.name.s == "=sink":
|
|
result = semAsgnOpr(c, n, nkSinkAsgn)
|
|
else:
|
|
result = semShallowCopy(c, n, flags)
|
|
of mIsPartOf: result = semIsPartOf(c, n, flags)
|
|
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)
|
|
of mInstantiationInfo: result = semInstantiationInfo(c, n)
|
|
of mOrd: result = semOrd(c, n)
|
|
of mOf: result = semOf(c, n)
|
|
of mHigh, mLow: result = semLowHigh(c, n, n[0].sym.magic)
|
|
of mShallowCopy: result = semShallowCopy(c, n, flags)
|
|
of mNBindSym:
|
|
if dynamicBindSym notin c.features:
|
|
result = semBindSym(c, n)
|
|
else:
|
|
result = semDynamicBindSym(c, n)
|
|
of mProcCall:
|
|
result = n
|
|
result.typ = n[1].typ
|
|
of mDotDot:
|
|
result = n
|
|
of mPlugin:
|
|
let plugin = getPlugin(c.cache, n[0].sym)
|
|
if plugin.isNil:
|
|
localError(c.config, n.info, "cannot find plugin " & n[0].sym.name.s)
|
|
result = n
|
|
else:
|
|
result = plugin(c, n)
|
|
of mNew:
|
|
if n[0].sym.name.s == "unsafeNew": # special case for unsafeNew
|
|
result = n
|
|
else:
|
|
result = addDefaultFieldForNew(c, n)
|
|
of mNewFinalize:
|
|
result = semNewFinalize(c, n)
|
|
of mDestroy:
|
|
result = n
|
|
let t = n[1].typ.skipTypes(abstractVar)
|
|
let op = getAttachedOp(c.graph, t, attachedDestructor)
|
|
if op != nil:
|
|
result[0] = newSymNode(op)
|
|
of mTrace:
|
|
result = n
|
|
let t = n[1].typ.skipTypes(abstractVar)
|
|
let op = getAttachedOp(c.graph, t, attachedTrace)
|
|
if op != nil:
|
|
result[0] = newSymNode(op)
|
|
of mUnown:
|
|
result = semUnown(c, n)
|
|
of mExists, mForall:
|
|
result = semQuantifier(c, n)
|
|
of mOld:
|
|
result = semOld(c, n)
|
|
of mSetLengthSeq:
|
|
result = n
|
|
let seqType = result[1].typ.skipTypes({tyPtr, tyRef, # in case we had auto-dereferencing
|
|
tyVar, tyGenericInst, tyOwned, tySink,
|
|
tyAlias, tyUserTypeClassInst})
|
|
if seqType.kind == tySequence and seqType.base.requiresInit:
|
|
message(c.config, n.info, warnUnsafeSetLen, typeToString(seqType.base))
|
|
of mDefault:
|
|
result = checkDefault(c, n)
|
|
let typ = result[^1].typ.skipTypes({tyTypeDesc})
|
|
let defaultExpr = defaultNodeField(c, result[^1], typ)
|
|
if defaultExpr != nil:
|
|
result = defaultExpr
|
|
of mZeroDefault:
|
|
result = checkDefault(c, n)
|
|
of mIsolate:
|
|
if not checkIsolate(n[1]):
|
|
localError(c.config, n.info, "expression cannot be isolated: " & $n[1])
|
|
result = n
|
|
of mPred:
|
|
if n[1].typ.skipTypes(abstractInst).kind in {tyUInt..tyUInt64}:
|
|
n[0].sym.magic = mSubU
|
|
result = n
|
|
of mPrivateAccess:
|
|
result = semPrivateAccess(c, n)
|
|
of mArrToSeq:
|
|
result = n
|
|
if result.typ != nil and expectedType != nil and result.typ.kind == tySequence and expectedType.kind == tySequence and result.typ[0].kind == tyEmpty:
|
|
result.typ = expectedType # type inference for empty sequence # bug #21377
|
|
else:
|
|
result = n
|