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#
#
# The Nim Compiler
# (c) Copyright 2015 Nim Contributors
#
# See the file "copying.txt", included in this
# distribution, for details about the copyright.
#
## This module implements Nim's object construction rules.
# included from sem.nim
type
ObjConstrContext = object
typ: PType # The constructed type
initExpr: PNode # The init expression (nkObjConstr)
needsFullInit: bool # A `requiresInit` derived type will
# set this to true while visiting
# parent types.
missingFields: seq[PSym] # Fields that the user failed to specify
InitStatus = enum # This indicates the result of object construction
initUnknown
initFull # All of the fields have been initialized
initPartial # Some of the fields have been initialized
initNone # None of the fields have been initialized
initConflict # Fields from different branches have been initialized
proc mergeInitStatus(existing: var InitStatus, newStatus: InitStatus) =
case newStatus
of initConflict:
existing = newStatus
of initPartial:
if existing in {initUnknown, initFull, initNone}:
existing = initPartial
of initNone:
if existing == initUnknown:
existing = initNone
elif existing == initFull:
existing = initPartial
of initFull:
if existing == initUnknown:
existing = initFull
elif existing == initNone:
existing = initPartial
of initUnknown:
discard
proc invalidObjConstr(c: PContext, n: PNode) =
if n.kind == nkInfix and n[0].kind == nkIdent and n[0].ident.s[0] == ':':
localError(c.config, n.info, "incorrect object construction syntax; use a space after the colon")
else:
localError(c.config, n.info, "incorrect object construction syntax")
proc locateFieldInInitExpr(c: PContext, field: PSym, initExpr: PNode): PNode =
# Returns the assignment nkExprColonExpr node or nil
let fieldId = field.name.id
for i in 1..<initExpr.len:
let assignment = initExpr[i]
if assignment.kind != nkExprColonExpr:
invalidObjConstr(c, assignment)
continue
if fieldId == considerQuotedIdent(c, assignment[0]).id:
return assignment
proc semConstrField(c: PContext, flags: TExprFlags,
field: PSym, initExpr: PNode): PNode =
let assignment = locateFieldInInitExpr(c, field, initExpr)
if assignment != nil:
if nfSem in assignment.flags: return assignment[1]
if not fieldVisible(c, field):
localError(c.config, initExpr.info,
"the field '$1' is not accessible." % [field.name.s])
return
var initValue = semExprFlagDispatched(c, assignment[1], flags)
if initValue != nil:
initValue = fitNode(c, field.typ, initValue, assignment.info)
assignment[0] = newSymNode(field)
assignment[1] = initValue
assignment.flags.incl nfSem
return initValue
proc caseBranchMatchesExpr(branch, matched: PNode): bool =
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
return false
proc branchVals(c: PContext, caseNode: PNode, caseIdx: int,
isStmtBranch: bool): IntSet =
if caseNode[caseIdx].kind == nkOfBranch:
result = initIntSet()
for val in processBranchVals(caseNode[caseIdx]):
result.incl(val)
else:
result = c.getIntSetOfType(caseNode[0].typ)
for i in 1..<caseNode.len-1:
for val in processBranchVals(caseNode[i]):
result.excl(val)
proc findUsefulCaseContext(c: PContext, discrimator: PNode): (PNode, int) =
for i in countdown(c.p.caseContext.high, 0):
let
(caseNode, index) = c.p.caseContext[i]
skipped = caseNode[0].skipHidden
if skipped.kind == nkSym and skipped.sym == discrimator.sym:
return (caseNode, index)
proc pickCaseBranch(caseExpr, matched: PNode): PNode =
# XXX: Perhaps this proc already exists somewhere
let endsWithElse = caseExpr[^1].kind == nkElse
for i in 1..<caseExpr.len - int(endsWithElse):
if caseExpr[i].caseBranchMatchesExpr(matched):
return caseExpr[i]
if endsWithElse:
return caseExpr[^1]
iterator directFieldsInRecList(recList: PNode): PNode =
# XXX: We can remove this case by making all nkOfBranch nodes
# regular. Currently, they try to avoid using nkRecList if they
# include only a single field
if recList.kind == nkSym:
yield recList
else:
doAssert recList.kind == nkRecList
for field in recList:
if field.kind != nkSym: continue
yield field
template quoteStr(s: string): string = "'" & s & "'"
proc fieldsPresentInInitExpr(c: PContext, fieldsRecList, initExpr: PNode): string =
result = ""
for field in directFieldsInRecList(fieldsRecList):
if locateFieldInInitExpr(c, field.sym, initExpr) != nil:
if result.len != 0: result.add ", "
result.add field.sym.name.s.quoteStr
proc collectMissingFields(c: PContext, fieldsRecList: PNode,
constrCtx: var ObjConstrContext) =
for r in directFieldsInRecList(fieldsRecList):
if constrCtx.needsFullInit or
sfRequiresInit in r.sym.flags or
r.sym.typ.requiresInit:
let assignment = locateFieldInInitExpr(c, r.sym, constrCtx.initExpr)
if assignment == nil:
constrCtx.missingFields.add r.sym
proc semConstructFields(c: PContext, n: PNode,
constrCtx: var ObjConstrContext,
flags: TExprFlags): InitStatus =
result = initUnknown
case n.kind
of nkRecList:
for field in n:
let status = semConstructFields(c, field, constrCtx, flags)
mergeInitStatus(result, status)
of nkRecCase:
template fieldsPresentInBranch(branchIdx: int): string =
let branch = n[branchIdx]
let fields = branch[^1]
fieldsPresentInInitExpr(c, fields, constrCtx.initExpr)
template collectMissingFields(branchNode: PNode) =
if branchNode != nil:
let fields = branchNode[^1]
collectMissingFields(c, fields, constrCtx)
let discriminator = n[0]
internalAssert c.config, discriminator.kind == nkSym
var selectedBranch = -1
for i in 1..<n.len:
let innerRecords = n[i][^1]
let status = semConstructFields(c, innerRecords, constrCtx, flags)
if status notin {initNone, initUnknown}:
mergeInitStatus(result, status)
if selectedBranch != -1:
let prevFields = fieldsPresentInBranch(selectedBranch)
let currentFields = fieldsPresentInBranch(i)
localError(c.config, constrCtx.initExpr.info,
("The fields '$1' and '$2' cannot be initialized together, " &
"because they are from conflicting branches in the case object.") %
[prevFields, currentFields])
result = initConflict
else:
selectedBranch = i
if selectedBranch != -1:
template badDiscriminatorError =
let fields = fieldsPresentInBranch(selectedBranch)
localError(c.config, constrCtx.initExpr.info,
("cannot prove that it's safe to initialize $1 with " &
"the runtime value for the discriminator '$2' ") %
[fields, discriminator.sym.name.s])
mergeInitStatus(result, initNone)
template wrongBranchError(i) =
let fields = fieldsPresentInBranch(i)
localError(c.config, constrCtx.initExpr.info,
"a case selecting discriminator '$1' with value '$2' " &
"appears in the object construction, but the field(s) $3 " &
"are in conflict with this value.",
[discriminator.sym.name.s, discriminatorVal.renderTree, fields])
template valuesInConflictError(valsDiff) =
localError(c.config, discriminatorVal.info, ("possible values " &
"$2 are in conflict with discriminator values for " &
"selected object branch $1.") % [$selectedBranch,
valsDiff.renderAsType(n[0].typ)])
let branchNode = n[selectedBranch]
let flags = flags*{efAllowDestructor} + {efPreferStatic,
efPreferNilResult}
var discriminatorVal = semConstrField(c, flags,
discriminator.sym,
constrCtx.initExpr)
if discriminatorVal != nil:
discriminatorVal = discriminatorVal.skipHidden
if discriminatorVal.kind notin nkLiterals and (
not isOrdinalType(discriminatorVal.typ, true) or
lengthOrd(c.config, discriminatorVal.typ) > MaxSetElements or
lengthOrd(c.config, n[0].typ) > MaxSetElements):
localError(c.config, discriminatorVal.info,
"branch initialization with a runtime discriminator only " &
"supports ordinal types with 2^16 elements or less.")
if discriminatorVal == nil:
badDiscriminatorError()
elif discriminatorVal.kind == nkSym:
let (ctorCase, ctorIdx) = findUsefulCaseContext(c, discriminatorVal)
if ctorCase == nil:
if discriminatorVal.typ.kind == tyRange:
let rangeVals = c.getIntSetOfType(discriminatorVal.typ)
let recBranchVals = branchVals(c, n, selectedBranch, false)
let diff = rangeVals - recBranchVals
if diff.len != 0:
valuesInConflictError(diff)
else:
badDiscriminatorError()
elif discriminatorVal.sym.kind notin {skLet, skParam} or
discriminatorVal.sym.typ.kind in {tyVar}:
localError(c.config, discriminatorVal.info,
"runtime discriminator must be immutable if branch fields are " &
"initialized, a 'let' binding is required.")
elif ctorCase[ctorIdx].kind == nkElifBranch:
localError(c.config, discriminatorVal.info, "branch initialization " &
"with a runtime discriminator is not supported inside of an " &
"`elif` branch.")
else:
var
ctorBranchVals = branchVals(c, ctorCase, ctorIdx, true)
recBranchVals = branchVals(c, n, selectedBranch, false)
branchValsDiff = ctorBranchVals - recBranchVals
if branchValsDiff.len != 0:
valuesInConflictError(branchValsDiff)
else:
var failedBranch = -1
if branchNode.kind != nkElse:
if not branchNode.caseBranchMatchesExpr(discriminatorVal):
failedBranch = selectedBranch
else:
# With an else clause, check that all other branches don't match:
for i in 1..<n.len - 1:
if n[i].caseBranchMatchesExpr(discriminatorVal):
failedBranch = i
break
if failedBranch != -1:
if discriminatorVal.typ.kind == tyRange:
let rangeVals = c.getIntSetOfType(discriminatorVal.typ)
let recBranchVals = branchVals(c, n, selectedBranch, false)
let diff = rangeVals - recBranchVals
if diff.len != 0:
valuesInConflictError(diff)
else:
wrongBranchError(failedBranch)
# When a branch is selected with a partial match, some of the fields
# that were not initialized may be mandatory. We must check for this:
if result == initPartial:
collectMissingFields branchNode
else:
result = initNone
let discriminatorVal = semConstrField(c, flags + {efPreferStatic},
discriminator.sym,
constrCtx.initExpr)
if discriminatorVal == nil:
# None of the branches were explicitly selected by the user and no
# value was given to the discrimator. We can assume that it will be
# initialized to zero and this will select a particular branch as
# a result:
let defaultValue = newIntLit(c.graph, constrCtx.initExpr.info, 0)
let matchedBranch = n.pickCaseBranch defaultValue
collectMissingFields matchedBranch
else:
result = initPartial
if discriminatorVal.kind == nkIntLit:
# When the discriminator is a compile-time value, we also know
# which branch will be selected:
let matchedBranch = n.pickCaseBranch discriminatorVal
if matchedBranch != nil: collectMissingFields matchedBranch
else:
# All bets are off. If any of the branches has a mandatory
# fields we must produce an error:
for i in 1..<n.len: collectMissingFields n[i]
of nkSym:
let field = n.sym
let e = semConstrField(c, flags, field, constrCtx.initExpr)
result = if e != nil: initFull else: initNone
else:
internalAssert c.config, false
proc semConstructTypeAux(c: PContext,
constrCtx: var ObjConstrContext,
flags: TExprFlags): InitStatus =
result = initUnknown
var t = constrCtx.typ
while true:
let status = semConstructFields(c, t.n, constrCtx, flags)
mergeInitStatus(result, status)
if status in {initPartial, initNone, initUnknown}:
collectMissingFields c, t.n, constrCtx
let base = t[0]
if base == nil: break
t = skipTypes(base, skipPtrs)
if t.kind != tyObject:
# XXX: This is not supposed to happen, but apparently
# there are some issues in semtypinst. Luckily, it
# seems to affect only `computeRequiresInit`.
return
constrCtx.needsFullInit = constrCtx.needsFullInit or
tfNeedsFullInit in t.flags
proc initConstrContext(t: PType, initExpr: PNode): ObjConstrContext =
ObjConstrContext(typ: t, initExpr: initExpr,
needsFullInit: tfNeedsFullInit in t.flags)
proc computeRequiresInit(c: PContext, t: PType): bool =
assert t.kind == tyObject
var constrCtx = initConstrContext(t, newNode(nkObjConstr))
let initResult = semConstructTypeAux(c, constrCtx, {})
constrCtx.missingFields.len > 0
proc defaultConstructionError(c: PContext, t: PType, info: TLineInfo) =
var objType = t
while objType.kind != tyObject:
objType = objType.lastSon
assert objType != nil
var constrCtx = initConstrContext(objType, newNodeI(nkObjConstr, info))
let initResult = semConstructTypeAux(c, constrCtx, {})
assert 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)])
proc semObjConstr(c: PContext, n: PNode, flags: TExprFlags): PNode =
var t = semTypeNode(c, n[0], nil)
result = newNodeIT(nkObjConstr, n.info, t)
for child in n: result.add child
if t == nil:
localError(c.config, n.info, errGenerated, "object constructor needs an object type")
return
t = skipTypes(t, {tyGenericInst, tyAlias, tySink, tyOwned})
if t.kind == tyRef:
t = skipTypes(t[0], {tyGenericInst, tyAlias, tySink, tyOwned})
if optOwnedRefs in c.config.globalOptions:
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
if t.kind != tyObject:
localError(c.config, n.info, errGenerated, "object constructor needs an object type")
return
# Check if the object is fully initialized by recursively testing each
# field (if this is a case object, initialized fields in two different
# branches will be reported as an error):
var constrCtx = initConstrContext(t, result)
let initResult = semConstructTypeAux(c, constrCtx, flags)
# It's possible that the object was not fully initialized while
# specifying a .requiresInit. pragma:
if constrCtx.missingFields.len > 0:
localError(c.config, result.info,
"The $1 type requires the following fields to be initialized: $2.",
[t.sym.name.s, listSymbolNames(constrCtx.missingFields)])
# Since we were traversing the object fields, it's possible that
# not all of the fields specified in the constructor was visited.
# We'll check for such fields here:
for i in 1..<result.len:
let field = result[i]
if nfSem notin field.flags:
if field.kind != nkExprColonExpr:
invalidObjConstr(c, field)
continue
let id = considerQuotedIdent(c, field[0])
# This node was not processed. There are two possible reasons:
# 1) It was shadowed by a field with the same name on the left
for j in 1..<i:
let prevId = considerQuotedIdent(c, result[j][0])
if prevId.id == id.id:
localError(c.config, field.info, errFieldInitTwice % id.s)
return
# 2) No such field exists in the constructed type
localError(c.config, field.info, errUndeclaredFieldX % id.s)
return
if initResult == initFull:
incl result.flags, nfAllFieldsSet
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