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- #
- #
- # The Nim Compiler
- # (c) Copyright 2015 Andreas Rumpf
- #
- # See the file "copying.txt", included in this
- # distribution, for details about the copyright.
- #
- ## This module implements lifting for type-bound operations
- ## (``=sink``, ``=``, ``=destroy``, ``=deepCopy``).
- # Todo:
- # - use openArray instead of array to avoid over-specializations
- import modulegraphs, lineinfos, idents, ast, renderer, semdata,
- sighashes, lowerings, options, types, msgs, magicsys, tables
- from trees import isCaseObj
- type
- TLiftCtx = object
- g: ModuleGraph
- info: TLineInfo # for construction
- kind: TTypeAttachedOp
- fn: PSym
- asgnForType: PType
- recurse: bool
- filterDiscriminator: PSym # we generating destructor for case branch
- addMemReset: bool # add wasMoved() call after destructor call
- c: PContext # c can be nil, then we are called from lambdalifting!
- proc fillBody(c: var TLiftCtx; t: PType; body, x, y: PNode)
- proc produceSym(g: ModuleGraph; c: PContext; typ: PType; kind: TTypeAttachedOp;
- info: TLineInfo): PSym
- proc createTypeBoundOps*(g: ModuleGraph; c: PContext; orig: PType; info: TLineInfo)
- proc at(a, i: PNode, elemType: PType): PNode =
- result = newNodeI(nkBracketExpr, a.info, 2)
- result[0] = a
- result[1] = i
- result.typ = elemType
- proc fillBodyTup(c: var TLiftCtx; t: PType; body, x, y: PNode) =
- for i in 0..<t.len:
- let lit = lowerings.newIntLit(c.g, x.info, i)
- let b = if c.kind == attachedTrace: y else: y.at(lit, t[i])
- fillBody(c, t[i], body, x.at(lit, t[i]), b)
- proc dotField(x: PNode, f: PSym): PNode =
- result = newNodeI(nkDotExpr, x.info, 2)
- if x.typ.skipTypes(abstractInst).kind == tyVar:
- result[0] = x.newDeref
- else:
- result[0] = x
- result[1] = newSymNode(f, x.info)
- result.typ = f.typ
- proc newAsgnStmt(le, ri: PNode): PNode =
- result = newNodeI(nkAsgn, le.info, 2)
- result[0] = le
- result[1] = ri
- proc genBuiltin(g: ModuleGraph; magic: TMagic; name: string; i: PNode): PNode =
- result = newNodeI(nkCall, i.info)
- result.add createMagic(g, name, magic).newSymNode
- result.add i
- proc defaultOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
- if c.kind in {attachedAsgn, attachedDeepCopy, attachedSink}:
- body.add newAsgnStmt(x, y)
- elif c.kind == attachedDestructor and c.addMemReset:
- let call = genBuiltin(c.g, mDefault, "default", x)
- call.typ = t
- body.add newAsgnStmt(x, call)
- proc genAddr(g: ModuleGraph; x: PNode): PNode =
- if x.kind == nkHiddenDeref:
- checkSonsLen(x, 1, g.config)
- result = x[0]
- else:
- result = newNodeIT(nkHiddenAddr, x.info, makeVarType(x.typ.owner, x.typ))
- result.add x
- proc genWhileLoop(c: var TLiftCtx; i, dest: PNode): PNode =
- result = newNodeI(nkWhileStmt, c.info, 2)
- let cmp = genBuiltin(c.g, mLtI, "<", i)
- cmp.add genLen(c.g, dest)
- cmp.typ = getSysType(c.g, c.info, tyBool)
- result[0] = cmp
- result[1] = newNodeI(nkStmtList, c.info)
- proc genIf(c: var TLiftCtx; cond, action: PNode): PNode =
- result = newTree(nkIfStmt, newTree(nkElifBranch, cond, action))
- proc genContainerOf(c: TLiftCtx; objType: PType, field, x: PSym): PNode =
- # generate: cast[ptr ObjType](cast[int](addr(x)) - offsetOf(objType.field))
- let intType = getSysType(c.g, unknownLineInfo, tyInt)
- let addrOf = newNodeIT(nkAddr, c.info, makePtrType(x.owner, x.typ))
- addrOf.add newDeref(newSymNode(x))
- let castExpr1 = newNodeIT(nkCast, c.info, intType)
- castExpr1.add newNodeIT(nkType, c.info, intType)
- castExpr1.add addrOf
- let dotExpr = newNodeIT(nkDotExpr, c.info, x.typ)
- dotExpr.add newNodeIT(nkType, c.info, objType)
- dotExpr.add newSymNode(field)
- let offsetOf = genBuiltin(c.g, mOffsetOf, "offsetof", dotExpr)
- offsetOf.typ = intType
- let minusExpr = genBuiltin(c.g, mSubI, "-", castExpr1)
- minusExpr.typ = intType
- minusExpr.add offsetOf
- let objPtr = makePtrType(objType.owner, objType)
- result = newNodeIT(nkCast, c.info, objPtr)
- result.add newNodeIT(nkType, c.info, objPtr)
- result.add minusExpr
- proc destructorCall(c: TLiftCtx; op: PSym; x: PNode): PNode =
- var destroy = newNodeIT(nkCall, x.info, op.typ[0])
- destroy.add(newSymNode(op))
- destroy.add genAddr(c.g, x)
- if c.addMemReset:
- result = newTree(nkStmtList, destroy, genBuiltin(c.g, mWasMoved, "wasMoved", x))
- else:
- result = destroy
- proc fillBodyObj(c: var TLiftCtx; n, body, x, y: PNode; enforceDefaultOp: bool) =
- case n.kind
- of nkSym:
- if c.filterDiscriminator != nil: return
- let f = n.sym
- let b = if c.kind == attachedTrace: y else: y.dotField(f)
- if (sfCursor in f.flags and f.typ.skipTypes(abstractInst).kind in {tyRef, tyProc} and
- c.g.config.selectedGC in {gcArc, gcOrc, gcHooks}) or
- enforceDefaultOp:
- defaultOp(c, f.typ, body, x.dotField(f), b)
- else:
- fillBody(c, f.typ, body, x.dotField(f), b)
- of nkNilLit: discard
- of nkRecCase:
- # XXX This is only correct for 'attachedSink'!
- var localEnforceDefaultOp = enforceDefaultOp
- if c.kind == attachedSink:
- # the value needs to be destroyed before we assign the selector
- # or the value is lost
- let prevKind = c.kind
- c.kind = attachedDestructor
- fillBodyObj(c, n, body, x, y, enforceDefaultOp = false)
- c.kind = prevKind
- localEnforceDefaultOp = true
- if c.kind != attachedDestructor:
- # copy the selector before case stmt, but destroy after case stmt
- fillBodyObj(c, n[0], body, x, y, enforceDefaultOp = false)
- let oldfilterDiscriminator = c.filterDiscriminator
- if c.filterDiscriminator == n[0].sym:
- c.filterDiscriminator = nil # we have found the case part, proceed as normal
- # we need to generate a case statement:
- var caseStmt = newNodeI(nkCaseStmt, c.info)
- # XXX generate 'if' that checks same branches
- # generate selector:
- var access = dotField(x, n[0].sym)
- caseStmt.add(access)
- var emptyBranches = 0
- # copy the branches over, but replace the fields with the for loop body:
- for i in 1..<n.len:
- var branch = copyTree(n[i])
- branch[^1] = newNodeI(nkStmtList, c.info)
- fillBodyObj(c, n[i].lastSon, branch[^1], x, y,
- enforceDefaultOp = localEnforceDefaultOp)
- if branch[^1].len == 0: inc emptyBranches
- caseStmt.add(branch)
- if emptyBranches != n.len-1:
- body.add(caseStmt)
- if c.kind == attachedDestructor:
- # destructor for selector is done after case stmt
- fillBodyObj(c, n[0], body, x, y, enforceDefaultOp = false)
- c.filterDiscriminator = oldfilterDiscriminator
- of nkRecList:
- for t in items(n): fillBodyObj(c, t, body, x, y, enforceDefaultOp)
- else:
- illFormedAstLocal(n, c.g.config)
- proc fillBodyObjTImpl(c: var TLiftCtx; t: PType, body, x, y: PNode) =
- if t.len > 0 and t[0] != nil:
- fillBody(c, skipTypes(t[0], abstractPtrs), body, x, y)
- fillBodyObj(c, t.n, body, x, y, enforceDefaultOp = false)
- proc fillBodyObjT(c: var TLiftCtx; t: PType, body, x, y: PNode) =
- var hasCase = isCaseObj(t.n)
- var obj = t
- while obj.len > 0 and obj[0] != nil:
- obj = skipTypes(obj[0], abstractPtrs)
- hasCase = hasCase or isCaseObj(obj.n)
- if hasCase and c.kind in {attachedAsgn, attachedDeepCopy}:
- # assignment for case objects is complex, we do:
- # =destroy(dest)
- # wasMoved(dest)
- # for every field:
- # `=` dest.field, src.field
- # ^ this is what we used to do, but for 'result = result.sons[0]' it
- # destroys 'result' too early.
- # So this is what we really need to do:
- # let blob {.cursor.} = dest # remembers the old dest.kind
- # wasMoved(dest)
- # dest.kind = src.kind
- # for every field (dependent on dest.kind):
- # `=` dest.field, src.field
- # =destroy(blob)
- var temp = newSym(skTemp, getIdent(c.g.cache, lowerings.genPrefix), c.fn, c.info)
- temp.typ = x.typ
- incl(temp.flags, sfFromGeneric)
- var v = newNodeI(nkVarSection, c.info)
- let blob = newSymNode(temp)
- v.addVar(blob, x)
- body.add v
- #body.add newAsgnStmt(blob, x)
- var wasMovedCall = newNodeI(nkCall, c.info)
- wasMovedCall.add(newSymNode(createMagic(c.g, "wasMoved", mWasMoved)))
- wasMovedCall.add x # mWasMoved does not take the address
- body.add wasMovedCall
- fillBodyObjTImpl(c, t, body, x, y)
- when false:
- # does not work yet due to phase-ordering problems:
- assert t.destructor != nil
- body.add destructorCall(c.g, t.destructor, blob)
- let prevKind = c.kind
- c.kind = attachedDestructor
- fillBodyObjTImpl(c, t, body, blob, y)
- c.kind = prevKind
- else:
- fillBodyObjTImpl(c, t, body, x, y)
- proc newHookCall(g: ModuleGraph; op: PSym; x, y: PNode): PNode =
- #if sfError in op.flags:
- # localError(c.config, x.info, "usage of '$1' is a user-defined error" % op.name.s)
- result = newNodeI(nkCall, x.info)
- result.add newSymNode(op)
- if op.typ.sons[1].kind == tyVar:
- result.add genAddr(g, x)
- else:
- result.add x
- if y != nil:
- result.add y
- proc newOpCall(op: PSym; x: PNode): PNode =
- result = newNodeIT(nkCall, x.info, op.typ[0])
- result.add(newSymNode(op))
- result.add x
- proc newDeepCopyCall(op: PSym; x, y: PNode): PNode =
- result = newAsgnStmt(x, newOpCall(op, y))
- proc usesBuiltinArc(t: PType): bool =
- proc wrap(t: PType): bool {.nimcall.} = ast.isGCedMem(t)
- result = types.searchTypeFor(t, wrap)
- proc useNoGc(c: TLiftCtx; t: PType): bool {.inline.} =
- result = optSeqDestructors in c.g.config.globalOptions and
- ({tfHasGCedMem, tfHasOwned} * t.flags != {} or usesBuiltinArc(t))
- proc requiresDestructor(c: TLiftCtx; t: PType): bool {.inline.} =
- result = optSeqDestructors in c.g.config.globalOptions and
- containsGarbageCollectedRef(t)
- proc instantiateGeneric(c: var TLiftCtx; op: PSym; t, typeInst: PType): PSym =
- if c.c != nil and typeInst != nil:
- result = c.c.instTypeBoundOp(c.c, op, typeInst, c.info, attachedAsgn, 1)
- else:
- localError(c.g.config, c.info,
- "cannot generate destructor for generic type: " & typeToString(t))
- result = nil
- proc considerAsgnOrSink(c: var TLiftCtx; t: PType; body, x, y: PNode;
- field: var PSym): bool =
- if optSeqDestructors in c.g.config.globalOptions:
- let op = field
- if field != nil and sfOverriden in field.flags:
- if sfError in op.flags:
- incl c.fn.flags, sfError
- #else:
- # markUsed(c.g.config, c.info, op, c.g.usageSym)
- onUse(c.info, op)
- body.add newHookCall(c.g, op, x, y)
- result = true
- elif tfHasAsgn in t.flags:
- var op: PSym
- if sameType(t, c.asgnForType):
- # generate recursive call:
- if c.recurse:
- op = c.fn
- else:
- c.recurse = true
- return false
- else:
- op = field
- if op == nil:
- op = produceSym(c.g, c.c, t, c.kind, c.info)
- if sfError in op.flags:
- incl c.fn.flags, sfError
- #else:
- # markUsed(c.g.config, c.info, op, c.g.usageSym)
- onUse(c.info, op)
- # We also now do generic instantiations in the destructor lifting pass:
- if op.ast[genericParamsPos].kind != nkEmpty:
- op = instantiateGeneric(c, op, t, t.typeInst)
- field = op
- #echo "trying to use ", op.ast
- #echo "for ", op.name.s, " "
- #debug(t)
- #return false
- assert op.ast[genericParamsPos].kind == nkEmpty
- body.add newHookCall(c.g, op, x, y)
- result = true
- proc addDestructorCall(c: var TLiftCtx; orig: PType; body, x: PNode) =
- let t = orig.skipTypes(abstractInst)
- var op = t.destructor
- if op != nil and sfOverriden in op.flags:
- if op.ast[genericParamsPos].kind != nkEmpty:
- # patch generic destructor:
- op = instantiateGeneric(c, op, t, t.typeInst)
- t.attachedOps[attachedDestructor] = op
- if op == nil and (useNoGc(c, t) or requiresDestructor(c, t)):
- op = produceSym(c.g, c.c, t, attachedDestructor, c.info)
- doAssert op != nil
- doAssert op == t.destructor
- if op != nil:
- #markUsed(c.g.config, c.info, op, c.g.usageSym)
- onUse(c.info, op)
- body.add destructorCall(c, op, x)
- elif useNoGc(c, t):
- internalError(c.g.config, c.info,
- "type-bound operator could not be resolved")
- proc considerUserDefinedOp(c: var TLiftCtx; t: PType; body, x, y: PNode): bool =
- case c.kind
- of attachedDestructor:
- var op = t.destructor
- if op != nil and sfOverriden in op.flags:
- if op.ast[genericParamsPos].kind != nkEmpty:
- # patch generic destructor:
- op = instantiateGeneric(c, op, t, t.typeInst)
- t.attachedOps[attachedDestructor] = op
- #markUsed(c.g.config, c.info, op, c.g.usageSym)
- onUse(c.info, op)
- body.add destructorCall(c, op, x)
- result = true
- #result = addDestructorCall(c, t, body, x)
- of attachedAsgn, attachedSink, attachedTrace:
- result = considerAsgnOrSink(c, t, body, x, y, t.attachedOps[c.kind])
- of attachedDispose:
- result = considerAsgnOrSink(c, t, body, x, nil, t.attachedOps[c.kind])
- of attachedDeepCopy:
- let op = t.attachedOps[attachedDeepCopy]
- if op != nil:
- #markUsed(c.g.config, c.info, op, c.g.usageSym)
- onUse(c.info, op)
- body.add newDeepCopyCall(op, x, y)
- result = true
- proc declareCounter(c: var TLiftCtx; body: PNode; first: BiggestInt): PNode =
- var temp = newSym(skTemp, getIdent(c.g.cache, lowerings.genPrefix), c.fn, c.info)
- temp.typ = getSysType(c.g, body.info, tyInt)
- incl(temp.flags, sfFromGeneric)
- var v = newNodeI(nkVarSection, c.info)
- result = newSymNode(temp)
- v.addVar(result, lowerings.newIntLit(c.g, body.info, first))
- body.add v
- proc addIncStmt(c: var TLiftCtx; body, i: PNode) =
- let incCall = genBuiltin(c.g, mInc, "inc", i)
- incCall.add lowerings.newIntLit(c.g, c.info, 1)
- body.add incCall
- proc newSeqCall(g: ModuleGraph; x, y: PNode): PNode =
- # don't call genAddr(c, x) here:
- result = genBuiltin(g, mNewSeq, "newSeq", x)
- let lenCall = genBuiltin(g, mLengthSeq, "len", y)
- lenCall.typ = getSysType(g, x.info, tyInt)
- result.add lenCall
- proc setLenStrCall(g: ModuleGraph; x, y: PNode): PNode =
- let lenCall = genBuiltin(g, mLengthStr, "len", y)
- lenCall.typ = getSysType(g, x.info, tyInt)
- result = genBuiltin(g, mSetLengthStr, "setLen", x) # genAddr(g, x))
- result.add lenCall
- proc setLenSeqCall(c: var TLiftCtx; t: PType; x, y: PNode): PNode =
- let lenCall = genBuiltin(c.g, mLengthSeq, "len", y)
- 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)
- proc forallElements(c: var TLiftCtx; t: PType; body, x, y: PNode) =
- let i = declareCounter(c, body, toInt64(firstOrd(c.g.config, t)))
- let whileLoop = genWhileLoop(c, i, x)
- let elemType = t.lastSon
- let b = if c.kind == attachedTrace: y else: y.at(i, elemType)
- fillBody(c, elemType, whileLoop[1], x.at(i, elemType), b)
- addIncStmt(c, whileLoop[1], i)
- body.add whileLoop
- proc fillSeqOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
- case c.kind
- of attachedAsgn, attachedDeepCopy:
- # we generate:
- # setLen(dest, y.len)
- # var i = 0
- # while i < y.len: dest[i] = y[i]; inc(i)
- # This is usually more efficient than a destroy/create pair.
- body.add setLenSeqCall(c, t, x, y)
- forallElements(c, t, body, x, y)
- of attachedSink:
- let moveCall = genBuiltin(c.g, mMove, "move", x)
- moveCall.add y
- doAssert t.destructor != nil
- moveCall.add destructorCall(c, t.destructor, x)
- body.add moveCall
- of attachedDestructor:
- # destroy all elements:
- forallElements(c, t, body, x, y)
- body.add genBuiltin(c.g, mDestroy, "destroy", x)
- of attachedTrace:
- # follow all elements:
- forallElements(c, t, body, x, y)
- of attachedDispose:
- body.add genBuiltin(c.g, mDestroy, "destroy", x)
- proc useSeqOrStrOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
- createTypeBoundOps(c.g, c.c, t, body.info)
- # recursions are tricky, so we might need to forward the generated
- # operation here:
- var t = t
- if t.assignment == nil or t.destructor == nil:
- let h = sighashes.hashType(t, {CoType, CoConsiderOwned, CoDistinct})
- let canon = c.g.canonTypes.getOrDefault(h)
- if canon != nil: t = canon
- case c.kind
- of attachedAsgn, attachedDeepCopy:
- if t.assignment == nil:
- return # protect from recursion
- body.add newHookCall(c.g, t.assignment, x, y)
- of attachedSink:
- # we always inline the move for better performance:
- let moveCall = genBuiltin(c.g, mMove, "move", x)
- moveCall.add y
- doAssert t.destructor != nil
- moveCall.add destructorCall(c, t.destructor, x)
- body.add moveCall
- # alternatively we could do this:
- when false:
- doAssert t.asink != nil
- body.add newHookCall(c.g, t.asink, x, y)
- of attachedDestructor:
- doAssert t.destructor != nil
- body.add destructorCall(c, t.destructor, x)
- of attachedTrace:
- if t.attachedOps[c.kind] == nil:
- return # protect from recursion
- body.add newHookCall(c.g, t.attachedOps[c.kind], x, y)
- of attachedDispose:
- if t.attachedOps[c.kind] == nil:
- return # protect from recursion
- body.add newHookCall(c.g, t.attachedOps[c.kind], x, nil)
- proc fillStrOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
- case c.kind
- of attachedAsgn, attachedDeepCopy:
- body.add callCodegenProc(c.g, "nimAsgnStrV2", c.info, genAddr(c.g, x), y)
- of attachedSink:
- let moveCall = genBuiltin(c.g, mMove, "move", x)
- moveCall.add y
- doAssert t.destructor != nil
- moveCall.add destructorCall(c, t.destructor, x)
- body.add moveCall
- of attachedDestructor, attachedDispose:
- body.add genBuiltin(c.g, mDestroy, "destroy", x)
- of attachedTrace:
- discard "strings are atomic and have no inner elements that are to trace"
- proc atomicRefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
- var actions = newNodeI(nkStmtList, c.info)
- let elemType = t.lastSon
- if isFinal(elemType):
- addDestructorCall(c, elemType, actions, genDeref(x, nkDerefExpr))
- actions.add callCodegenProc(c.g, "nimRawDispose", c.info, x)
- else:
- addDestructorCall(c, elemType, newNodeI(nkStmtList, c.info), genDeref(x, nkDerefExpr))
- actions.add callCodegenProc(c.g, "nimDestroyAndDispose", c.info, x)
- let isCyclic = c.g.config.selectedGC == gcOrc and types.canFormAcycle(t)
- var cond: PNode
- if isCyclic:
- if isFinal(elemType):
- let typInfo = genBuiltin(c.g, mGetTypeInfo, "getTypeInfo", newNodeIT(nkType, x.info, elemType))
- typInfo.typ = getSysType(c.g, c.info, tyPointer)
- cond = callCodegenProc(c.g, "nimDecRefIsLastCyclicStatic", c.info, x, typInfo)
- else:
- cond = callCodegenProc(c.g, "nimDecRefIsLastCyclicDyn", c.info, x)
- else:
- cond = callCodegenProc(c.g, "nimDecRefIsLast", c.info, x)
- cond.typ = getSysType(c.g, x.info, tyBool)
- case c.kind
- of attachedSink:
- body.add genIf(c, cond, actions)
- body.add newAsgnStmt(x, y)
- of attachedAsgn:
- body.add genIf(c, y, callCodegenProc(c.g,
- if isCyclic: "nimIncRefCyclic" else: "nimIncRef", c.info, y))
- body.add genIf(c, cond, actions)
- body.add newAsgnStmt(x, y)
- of attachedDestructor:
- body.add genIf(c, cond, actions)
- body.add newAsgnStmt(x, newNodeIT(nkNilLit, body.info, t))
- of attachedDeepCopy: assert(false, "cannot happen")
- of attachedTrace:
- if isFinal(elemType):
- let typInfo = genBuiltin(c.g, mGetTypeInfo, "getTypeInfo", newNodeIT(nkType, x.info, elemType))
- typInfo.typ = getSysType(c.g, c.info, tyPointer)
- body.add callCodegenProc(c.g, "nimTraceRef", c.info, genAddrOf(x), typInfo, y)
- else:
- # If the ref is polymorphic we have to account for this
- body.add callCodegenProc(c.g, "nimTraceRefDyn", c.info, genAddrOf(x), y)
- of attachedDispose:
- # this is crucial! dispose is like =destroy but we don't follow refs
- # as that is dealt within the cycle collector.
- when false:
- let cond = copyTree(x)
- cond.typ = getSysType(c.g, x.info, tyBool)
- actions.add callCodegenProc(c.g, "nimRawDispose", c.info, x)
- body.add genIf(c, cond, actions)
- 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.g, mAccessEnv, "accessEnv", x)
- xenv.typ = getSysType(c.g, c.info, tyPointer)
- var actions = newNodeI(nkStmtList, c.info)
- actions.add callCodegenProc(c.g, "nimDestroyAndDispose", c.info, xenv)
- let decRefProc =
- if c.g.config.selectedGC == gcOrc: "nimDecRefIsLastCyclicDyn"
- else: "nimDecRefIsLast"
- let cond = callCodegenProc(c.g, decRefProc, c.info, xenv)
- cond.typ = getSysType(c.g, x.info, tyBool)
- case c.kind
- of attachedSink:
- body.add genIf(c, cond, actions)
- body.add newAsgnStmt(x, y)
- of attachedAsgn:
- let yenv = genBuiltin(c.g, mAccessEnv, "accessEnv", y)
- yenv.typ = getSysType(c.g, c.info, tyPointer)
- let incRefProc =
- if c.g.config.selectedGC == gcOrc: "nimIncRefCyclic"
- else: "nimIncRef"
- body.add genIf(c, yenv, callCodegenProc(c.g, incRefProc, c.info, yenv))
- body.add genIf(c, cond, actions)
- body.add newAsgnStmt(x, y)
- of attachedDestructor:
- body.add genIf(c, cond, actions)
- body.add newAsgnStmt(xenv, newNodeIT(nkNilLit, body.info, xenv.typ))
- of attachedDeepCopy: assert(false, "cannot happen")
- of attachedTrace:
- body.add callCodegenProc(c.g, "nimTraceRefDyn", c.info, genAddrOf(xenv), y)
- of attachedDispose:
- # this is crucial! dispose is like =destroy but we don't follow refs
- # as that is dealt within the cycle collector.
- when false:
- let cond = copyTree(xenv)
- cond.typ = getSysType(c.g, xenv.info, tyBool)
- actions.add callCodegenProc(c.g, "nimRawDispose", c.info, xenv)
- body.add genIf(c, cond, actions)
- proc weakrefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
- case c.kind
- of attachedSink:
- # we 'nil' y out afterwards so we *need* to take over its reference
- # count value:
- body.add genIf(c, x, callCodegenProc(c.g, "nimDecWeakRef", c.info, x))
- body.add newAsgnStmt(x, y)
- of attachedAsgn:
- body.add genIf(c, y, callCodegenProc(c.g, "nimIncRef", c.info, y))
- body.add genIf(c, x, callCodegenProc(c.g, "nimDecWeakRef", c.info, x))
- body.add newAsgnStmt(x, y)
- of attachedDestructor:
- # it's better to prepend the destruction of weak refs in order to
- # prevent wrong "dangling refs exist" problems:
- var actions = newNodeI(nkStmtList, c.info)
- actions.add callCodegenProc(c.g, "nimDecWeakRef", c.info, x)
- actions.add newAsgnStmt(x, newNodeIT(nkNilLit, body.info, t))
- let des = genIf(c, x, actions)
- if body.len == 0:
- body.add des
- else:
- body.sons.insert(des, 0)
- of attachedDeepCopy: assert(false, "cannot happen")
- of attachedTrace, attachedDispose: discard
- proc ownedRefOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
- var actions = newNodeI(nkStmtList, c.info)
- let elemType = t.lastSon
- #fillBody(c, elemType, actions, genDeref(x), genDeref(y))
- #var disposeCall = genBuiltin(c.g, mDispose, "dispose", x)
- if isFinal(elemType):
- addDestructorCall(c, elemType, actions, genDeref(x, nkDerefExpr))
- actions.add callCodegenProc(c.g, "nimRawDispose", c.info, x)
- else:
- addDestructorCall(c, elemType, newNodeI(nkStmtList, c.info), genDeref(x, nkDerefExpr))
- actions.add callCodegenProc(c.g, "nimDestroyAndDispose", c.info, x)
- case c.kind
- of attachedSink, attachedAsgn:
- body.add genIf(c, x, actions)
- body.add newAsgnStmt(x, y)
- of attachedDestructor:
- body.add genIf(c, x, actions)
- body.add newAsgnStmt(x, newNodeIT(nkNilLit, body.info, t))
- of attachedDeepCopy: assert(false, "cannot happen")
- of attachedTrace, attachedDispose: discard
- 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[0] = newSymNode(createMagic(c.g, "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, gcOrc}:
- let xx = genBuiltin(c.g, mAccessEnv, "accessEnv", x)
- 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
- # count value:
- body.add genIf(c, xx, callCodegenProc(c.g, "nimDecWeakRef", c.info, xx))
- body.add newAsgnStmt(x, y)
- of attachedAsgn:
- let yy = genBuiltin(c.g, mAccessEnv, "accessEnv", y)
- 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 attachedDestructor:
- var actions = newNodeI(nkStmtList, c.info)
- actions.add callCodegenProc(c.g, "nimDecWeakRef", c.info, xx)
- actions.add newAsgnStmt(xx, newNodeIT(nkNilLit, body.info, xx.typ))
- let des = genIf(c, xx, actions)
- if body.len == 0:
- body.add des
- else:
- body.sons.insert(des, 0)
- of attachedDeepCopy: assert(false, "cannot happen")
- of attachedTrace, attachedDispose: discard
- proc ownedClosureOp(c: var TLiftCtx; t: PType; body, x, y: PNode) =
- let xx = genBuiltin(c.g, mAccessEnv, "accessEnv", x)
- 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)
- case c.kind
- of attachedSink, attachedAsgn:
- body.add genIf(c, xx, actions)
- body.add newAsgnStmt(x, y)
- of attachedDestructor:
- body.add genIf(c, xx, actions)
- body.add newAsgnStmt(xx, newNodeIT(nkNilLit, body.info, xx.typ))
- of attachedDeepCopy: assert(false, "cannot happen")
- of attachedTrace, attachedDispose: discard
- proc fillBody(c: var TLiftCtx; t: PType; body, x, y: PNode) =
- case t.kind
- of tyNone, tyEmpty, tyVoid: discard
- of tyPointer, tySet, tyBool, tyChar, tyEnum, tyInt..tyUInt64, tyCString,
- tyPtr, tyUncheckedArray, tyVar, tyLent:
- defaultOp(c, t, body, x, y)
- of tyRef:
- if c.g.config.selectedGC in {gcArc, gcOrc}:
- atomicRefOp(c, t, body, x, y)
- elif (optOwnedRefs in c.g.config.globalOptions and
- optRefCheck in c.g.config.options):
- weakrefOp(c, t, body, x, y)
- else:
- defaultOp(c, t, body, x, y)
- of tyProc:
- if t.callConv == ccClosure:
- if c.g.config.selectedGC in {gcArc, gcOrc}:
- atomicClosureOp(c, t, body, x, y)
- else:
- closureOp(c, t, body, x, y)
- else:
- defaultOp(c, t, body, x, y)
- of tyOwned:
- let base = t.skipTypes(abstractInstOwned)
- if optOwnedRefs in c.g.config.globalOptions:
- case base.kind
- of tyRef:
- ownedRefOp(c, base, body, x, y)
- return
- of tyProc:
- if base.callConv == ccClosure:
- ownedClosureOp(c, base, body, x, y)
- return
- else: discard
- defaultOp(c, base, body, x, y)
- of tyArray:
- if tfHasAsgn in t.flags or useNoGc(c, t):
- forallElements(c, t, body, x, y)
- else:
- defaultOp(c, t, body, x, y)
- of tySequence:
- if useNoGc(c, t):
- useSeqOrStrOp(c, t, body, x, y)
- elif optSeqDestructors in c.g.config.globalOptions:
- # note that tfHasAsgn is propagated so we need the check on
- # 'selectedGC' here to determine if we have the new runtime.
- discard considerUserDefinedOp(c, t, body, x, y)
- elif tfHasAsgn in t.flags:
- if c.kind in {attachedAsgn, attachedSink, attachedDeepCopy}:
- body.add newSeqCall(c.g, x, y)
- forallElements(c, t, body, x, y)
- else:
- defaultOp(c, t, body, x, y)
- of tyString:
- if useNoGc(c, t):
- useSeqOrStrOp(c, t, body, x, y)
- elif tfHasAsgn in t.flags:
- discard considerUserDefinedOp(c, t, body, x, y)
- else:
- defaultOp(c, t, body, x, y)
- of tyObject:
- if not considerUserDefinedOp(c, t, body, x, y):
- if c.kind in {attachedAsgn, attachedSink} and t.sym != nil and sfImportc in t.sym.flags:
- body.add newAsgnStmt(x, y)
- else:
- fillBodyObjT(c, t, body, x, y)
- of tyDistinct:
- if not considerUserDefinedOp(c, t, body, x, y):
- fillBody(c, t[0], body, x, y)
- of tyTuple:
- fillBodyTup(c, t, body, x, y)
- of tyVarargs, tyOpenArray:
- if c.kind == attachedDestructor and (tfHasAsgn in t.flags or useNoGc(c, t)):
- forallElements(c, t, body, x, y)
- else:
- discard "cannot copy openArray"
- of tyFromExpr, tyProxy, tyBuiltInTypeClass, tyUserTypeClass,
- tyUserTypeClassInst, tyCompositeTypeClass, tyAnd, tyOr, tyNot, tyAnything,
- tyGenericParam, tyGenericBody, tyNil, tyUntyped, tyTyped,
- tyTypeDesc, tyGenericInvocation, tyForward, tyStatic:
- #internalError(c.g.config, c.info, "assignment requested for type: " & typeToString(t))
- discard
- of tyOrdinal, tyRange, tyInferred,
- tyGenericInst, tyAlias, tySink:
- fillBody(c, lastSon(t), body, x, y)
- of tyOptDeprecated: doAssert false
- proc produceSymDistinctType(g: ModuleGraph; c: PContext; typ: PType;
- kind: TTypeAttachedOp; info: TLineInfo): PSym =
- assert typ.kind == tyDistinct
- let baseType = typ[0]
- if baseType.attachedOps[kind] == nil:
- discard produceSym(g, c, baseType, kind, info)
- typ.attachedOps[kind] = baseType.attachedOps[kind]
- result = typ.attachedOps[kind]
- proc symPrototype(g: ModuleGraph; typ: PType; owner: PSym; kind: TTypeAttachedOp;
- info: TLineInfo): PSym =
- let procname = getIdent(g.cache, AttachedOpToStr[kind])
- result = newSym(skProc, procname, owner, info)
- let dest = newSym(skParam, getIdent(g.cache, "dest"), result, info)
- let src = newSym(skParam, getIdent(g.cache, if kind == attachedTrace: "env" else: "src"), result, info)
- dest.typ = makeVarType(typ.owner, typ)
- if kind == attachedTrace:
- src.typ = getSysType(g, info, tyPointer)
- else:
- src.typ = typ
- result.typ = newProcType(info, owner)
- result.typ.addParam dest
- if kind notin {attachedDestructor, attachedDispose}:
- result.typ.addParam src
- var n = newNodeI(nkProcDef, info, bodyPos+1)
- for i in 0..<n.len: n[i] = newNodeI(nkEmpty, info)
- n[namePos] = newSymNode(result)
- n[paramsPos] = result.typ.n
- n[bodyPos] = newNodeI(nkStmtList, info)
- result.ast = n
- incl result.flags, sfFromGeneric
- incl result.flags, sfGeneratedOp
- proc produceSym(g: ModuleGraph; c: PContext; typ: PType; kind: TTypeAttachedOp;
- info: TLineInfo): PSym =
- if typ.kind == tyDistinct:
- return produceSymDistinctType(g, c, typ, kind, info)
- result = symPrototype(g, typ, typ.owner, kind, info)
- var a = TLiftCtx(info: info, g: g, kind: kind, c: c, asgnForType:typ)
- a.fn = result
- let dest = result.typ.n[1].sym
- let d = newDeref(newSymNode(dest))
- let src = if kind in {attachedDestructor, attachedDispose}: newNodeIT(nkSym, info, getSysType(g, info, tyPointer))
- else: newSymNode(result.typ.n[2].sym)
- # register this operation already:
- typ.attachedOps[kind] = result
- if kind == attachedSink and typ.attachedOps[attachedDestructor] != nil and
- sfOverriden in typ.attachedOps[attachedDestructor].flags:
- ## compiler can use a combination of `=destroy` and memCopy for sink op
- dest.flags.incl sfCursor
- result.ast[bodyPos].add newOpCall(typ.attachedOps[attachedDestructor], d[0])
- result.ast[bodyPos].add newAsgnStmt(d, src)
- else:
- var tk: TTypeKind
- if g.config.selectedGC in {gcArc, gcOrc, gcHooks}:
- tk = skipTypes(typ, {tyOrdinal, tyRange, tyInferred, tyGenericInst, tyStatic, tyAlias, tySink}).kind
- else:
- tk = tyNone # no special casing for strings and seqs
- case tk
- of tySequence:
- fillSeqOp(a, typ, result.ast[bodyPos], d, src)
- of tyString:
- fillStrOp(a, typ, result.ast[bodyPos], d, src)
- else:
- fillBody(a, typ, result.ast[bodyPos], d, src)
- proc produceDestructorForDiscriminator*(g: ModuleGraph; typ: PType; field: PSym, info: TLineInfo): PSym =
- assert(typ.skipTypes({tyAlias, tyGenericInst}).kind == tyObject)
- result = symPrototype(g, field.typ, typ.owner, attachedDestructor, info)
- var a = TLiftCtx(info: info, g: g, kind: attachedDestructor, asgnForType: typ)
- a.fn = result
- a.asgnForType = typ
- a.filterDiscriminator = field
- a.addMemReset = true
- let discrimantDest = result.typ.n[1].sym
- let dst = newSym(skVar, getIdent(g.cache, "dest"), result, info)
- dst.typ = makePtrType(typ.owner, typ)
- let dstSym = newSymNode(dst)
- let d = newDeref(dstSym)
- let v = newNodeI(nkVarSection, info)
- v.addVar(dstSym, genContainerOf(a, typ, field, discrimantDest))
- result.ast[bodyPos].add v
- let placeHolder = newNodeIT(nkSym, info, getSysType(g, info, tyPointer))
- fillBody(a, typ, result.ast[bodyPos], d, placeHolder)
- template liftTypeBoundOps*(c: PContext; typ: PType; info: TLineInfo) =
- discard "now a nop"
- proc patchBody(g: ModuleGraph; c: PContext; n: PNode; info: TLineInfo) =
- if n.kind in nkCallKinds:
- if n[0].kind == nkSym and n[0].sym.magic == mDestroy:
- let t = n[1].typ.skipTypes(abstractVar)
- if t.destructor == nil:
- discard produceSym(g, c, t, attachedDestructor, info)
- if t.destructor != nil:
- if t.destructor.ast[genericParamsPos].kind != nkEmpty:
- internalError(g.config, info, "resolved destructor is generic")
- if t.destructor.magic == mDestroy:
- internalError(g.config, info, "patching mDestroy with mDestroy?")
- n[0] = newSymNode(t.destructor)
- for x in n: patchBody(g, c, x, info)
- template inst(field, t) =
- if field.ast != nil and field.ast[genericParamsPos].kind != nkEmpty:
- if t.typeInst != nil:
- var a: TLiftCtx
- a.info = info
- a.g = g
- a.kind = k
- a.c = c
- field = instantiateGeneric(a, field, t, t.typeInst)
- if field.ast != nil:
- patchBody(g, c, field.ast, info)
- else:
- localError(g.config, info, "unresolved generic parameter")
- proc isTrival(s: PSym): bool {.inline.} =
- s == nil or (s.ast != nil and s.ast[bodyPos].len == 0)
- proc isEmptyContainer(g: ModuleGraph, t: PType): bool =
- (t.kind == tyArray and lengthOrd(g.config, t[0]) == 0) or
- (t.kind == tySequence and t[0].kind == tyError)
- proc createTypeBoundOps(g: ModuleGraph; c: PContext; orig: PType; info: TLineInfo) =
- ## In the semantic pass this is called in strategic places
- ## to ensure we lift assignment, destructors and moves properly.
- ## The later 'injectdestructors' pass depends on it.
- if orig == nil or {tfCheckedForDestructor, tfHasMeta} * orig.flags != {}: return
- incl orig.flags, tfCheckedForDestructor
- let skipped = orig.skipTypes({tyGenericInst, tyAlias, tySink})
- if isEmptyContainer(skipped) or skipped.kind == tyStatic: return
- let h = sighashes.hashType(skipped, {CoType, CoConsiderOwned, CoDistinct})
- var canon = g.canonTypes.getOrDefault(h)
- if canon == nil:
- g.canonTypes[h] = skipped
- canon = skipped
- # multiple cases are to distinguish here:
- # 1. we don't know yet if 'typ' has a nontrival destructor.
- # 2. we have a nop destructor. --> mDestroy
- # 3. we have a lifted destructor.
- # 4. We have a custom destructor.
- # 5. We have a (custom) generic destructor.
- # we do not generate '=trace' nor '=dispose' procs if we
- # have the cycle detection disabled, saves code size.
- let lastAttached = if g.config.selectedGC == gcOrc: attachedDispose
- else: attachedSink
- # we generate the destructor first so that other operators can depend on it:
- for k in attachedDestructor..lastAttached:
- if canon.attachedOps[k] == nil:
- discard produceSym(g, c, canon, k, info)
- else:
- inst(canon.attachedOps[k], canon)
- if canon != orig:
- orig.attachedOps[k] = canon.attachedOps[k]
- if not isTrival(orig.destructor):
- #or not isTrival(orig.assignment) or
- # not isTrival(orig.sink):
- orig.flags.incl tfHasAsgn
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