1 //===-- lib/Semantics/tools.cpp -------------------------------------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 
9 #include "flang/Parser/tools.h"
10 #include "flang/Common/Fortran.h"
11 #include "flang/Common/indirection.h"
12 #include "flang/Parser/dump-parse-tree.h"
13 #include "flang/Parser/message.h"
14 #include "flang/Parser/parse-tree.h"
15 #include "flang/Semantics/scope.h"
16 #include "flang/Semantics/semantics.h"
17 #include "flang/Semantics/symbol.h"
18 #include "flang/Semantics/tools.h"
19 #include "flang/Semantics/type.h"
20 #include "llvm/Support/raw_ostream.h"
21 #include <algorithm>
22 #include <set>
23 #include <variant>
24 
25 namespace Fortran::semantics {
26 
27 // Find this or containing scope that matches predicate
28 static const Scope *FindScopeContaining(
29     const Scope &start, std::function<bool(const Scope &)> predicate) {
30   for (const Scope *scope{&start};; scope = &scope->parent()) {
31     if (predicate(*scope)) {
32       return scope;
33     }
34     if (scope->IsGlobal()) {
35       return nullptr;
36     }
37   }
38 }
39 
40 const Scope &GetTopLevelUnitContaining(const Scope &start) {
41   CHECK(!start.IsGlobal());
42   return DEREF(FindScopeContaining(
43       start, [](const Scope &scope) { return scope.parent().IsGlobal(); }));
44 }
45 
46 const Scope &GetTopLevelUnitContaining(const Symbol &symbol) {
47   return GetTopLevelUnitContaining(symbol.owner());
48 }
49 
50 const Scope *FindModuleContaining(const Scope &start) {
51   return FindScopeContaining(
52       start, [](const Scope &scope) { return scope.IsModule(); });
53 }
54 
55 const Scope *FindModuleFileContaining(const Scope &start) {
56   return FindScopeContaining(
57       start, [](const Scope &scope) { return scope.IsModuleFile(); });
58 }
59 
60 const Scope &GetProgramUnitContaining(const Scope &start) {
61   CHECK(!start.IsGlobal());
62   return DEREF(FindScopeContaining(start, [](const Scope &scope) {
63     switch (scope.kind()) {
64     case Scope::Kind::Module:
65     case Scope::Kind::MainProgram:
66     case Scope::Kind::Subprogram:
67     case Scope::Kind::BlockData:
68       return true;
69     default:
70       return false;
71     }
72   }));
73 }
74 
75 const Scope &GetProgramUnitContaining(const Symbol &symbol) {
76   return GetProgramUnitContaining(symbol.owner());
77 }
78 
79 const Scope *FindPureProcedureContaining(const Scope &start) {
80   // N.B. We only need to examine the innermost containing program unit
81   // because an internal subprogram of a pure subprogram must also
82   // be pure (C1592).
83   if (start.IsGlobal()) {
84     return nullptr;
85   } else {
86     const Scope &scope{GetProgramUnitContaining(start)};
87     return IsPureProcedure(scope) ? &scope : nullptr;
88   }
89 }
90 
91 static bool MightHaveCompatibleDerivedtypes(
92     const std::optional<evaluate::DynamicType> &lhsType,
93     const std::optional<evaluate::DynamicType> &rhsType) {
94   const DerivedTypeSpec *lhsDerived{evaluate::GetDerivedTypeSpec(lhsType)};
95   const DerivedTypeSpec *rhsDerived{evaluate::GetDerivedTypeSpec(rhsType)};
96   if (!lhsDerived || !rhsDerived) {
97     return false;
98   }
99   return *lhsDerived == *rhsDerived ||
100       lhsDerived->MightBeAssignmentCompatibleWith(*rhsDerived);
101 }
102 
103 Tristate IsDefinedAssignment(
104     const std::optional<evaluate::DynamicType> &lhsType, int lhsRank,
105     const std::optional<evaluate::DynamicType> &rhsType, int rhsRank) {
106   if (!lhsType || !rhsType) {
107     return Tristate::No; // error or rhs is untyped
108   }
109   TypeCategory lhsCat{lhsType->category()};
110   TypeCategory rhsCat{rhsType->category()};
111   if (rhsRank > 0 && lhsRank != rhsRank) {
112     return Tristate::Yes;
113   } else if (lhsCat != TypeCategory::Derived) {
114     return ToTristate(lhsCat != rhsCat &&
115         (!IsNumericTypeCategory(lhsCat) || !IsNumericTypeCategory(rhsCat)));
116   } else if (MightHaveCompatibleDerivedtypes(lhsType, rhsType)) {
117     return Tristate::Maybe; // TYPE(t) = TYPE(t) can be defined or intrinsic
118   } else {
119     return Tristate::Yes;
120   }
121 }
122 
123 bool IsIntrinsicRelational(common::RelationalOperator opr,
124     const evaluate::DynamicType &type0, int rank0,
125     const evaluate::DynamicType &type1, int rank1) {
126   if (!evaluate::AreConformable(rank0, rank1)) {
127     return false;
128   } else {
129     auto cat0{type0.category()};
130     auto cat1{type1.category()};
131     if (IsNumericTypeCategory(cat0) && IsNumericTypeCategory(cat1)) {
132       // numeric types: EQ/NE always ok, others ok for non-complex
133       return opr == common::RelationalOperator::EQ ||
134           opr == common::RelationalOperator::NE ||
135           (cat0 != TypeCategory::Complex && cat1 != TypeCategory::Complex);
136     } else {
137       // not both numeric: only Character is ok
138       return cat0 == TypeCategory::Character && cat1 == TypeCategory::Character;
139     }
140   }
141 }
142 
143 bool IsIntrinsicNumeric(const evaluate::DynamicType &type0) {
144   return IsNumericTypeCategory(type0.category());
145 }
146 bool IsIntrinsicNumeric(const evaluate::DynamicType &type0, int rank0,
147     const evaluate::DynamicType &type1, int rank1) {
148   return evaluate::AreConformable(rank0, rank1) &&
149       IsNumericTypeCategory(type0.category()) &&
150       IsNumericTypeCategory(type1.category());
151 }
152 
153 bool IsIntrinsicLogical(const evaluate::DynamicType &type0) {
154   return type0.category() == TypeCategory::Logical;
155 }
156 bool IsIntrinsicLogical(const evaluate::DynamicType &type0, int rank0,
157     const evaluate::DynamicType &type1, int rank1) {
158   return evaluate::AreConformable(rank0, rank1) &&
159       type0.category() == TypeCategory::Logical &&
160       type1.category() == TypeCategory::Logical;
161 }
162 
163 bool IsIntrinsicConcat(const evaluate::DynamicType &type0, int rank0,
164     const evaluate::DynamicType &type1, int rank1) {
165   return evaluate::AreConformable(rank0, rank1) &&
166       type0.category() == TypeCategory::Character &&
167       type1.category() == TypeCategory::Character &&
168       type0.kind() == type1.kind();
169 }
170 
171 bool IsGenericDefinedOp(const Symbol &symbol) {
172   const Symbol &ultimate{symbol.GetUltimate()};
173   if (const auto *generic{ultimate.detailsIf<GenericDetails>()}) {
174     return generic->kind().IsDefinedOperator();
175   } else if (const auto *misc{ultimate.detailsIf<MiscDetails>()}) {
176     return misc->kind() == MiscDetails::Kind::TypeBoundDefinedOp;
177   } else {
178     return false;
179   }
180 }
181 
182 bool IsDefinedOperator(SourceName name) {
183   const char *begin{name.begin()};
184   const char *end{name.end()};
185   return begin != end && begin[0] == '.' && end[-1] == '.';
186 }
187 
188 std::string MakeOpName(SourceName name) {
189   std::string result{name.ToString()};
190   return IsDefinedOperator(name)         ? "OPERATOR(" + result + ")"
191       : result.find("operator(", 0) == 0 ? parser::ToUpperCaseLetters(result)
192                                          : result;
193 }
194 
195 bool IsCommonBlockContaining(const Symbol &block, const Symbol &object) {
196   const auto &objects{block.get<CommonBlockDetails>().objects()};
197   auto found{std::find(objects.begin(), objects.end(), object)};
198   return found != objects.end();
199 }
200 
201 bool IsUseAssociated(const Symbol &symbol, const Scope &scope) {
202   const Scope &owner{GetProgramUnitContaining(symbol.GetUltimate().owner())};
203   return owner.kind() == Scope::Kind::Module &&
204       owner != GetProgramUnitContaining(scope);
205 }
206 
207 bool DoesScopeContain(
208     const Scope *maybeAncestor, const Scope &maybeDescendent) {
209   return maybeAncestor && !maybeDescendent.IsGlobal() &&
210       FindScopeContaining(maybeDescendent.parent(),
211           [&](const Scope &scope) { return &scope == maybeAncestor; });
212 }
213 
214 bool DoesScopeContain(const Scope *maybeAncestor, const Symbol &symbol) {
215   return DoesScopeContain(maybeAncestor, symbol.owner());
216 }
217 
218 static const Symbol &FollowHostAssoc(const Symbol &symbol) {
219   for (const Symbol *s{&symbol};;) {
220     const auto *details{s->detailsIf<HostAssocDetails>()};
221     if (!details) {
222       return *s;
223     }
224     s = &details->symbol();
225   }
226 }
227 
228 bool IsHostAssociated(const Symbol &symbol, const Scope &scope) {
229   const Scope &subprogram{GetProgramUnitContaining(scope)};
230   return DoesScopeContain(
231       &GetProgramUnitContaining(FollowHostAssoc(symbol)), subprogram);
232 }
233 
234 bool IsInStmtFunction(const Symbol &symbol) {
235   if (const Symbol * function{symbol.owner().symbol()}) {
236     return IsStmtFunction(*function);
237   }
238   return false;
239 }
240 
241 bool IsStmtFunctionDummy(const Symbol &symbol) {
242   return IsDummy(symbol) && IsInStmtFunction(symbol);
243 }
244 
245 bool IsStmtFunctionResult(const Symbol &symbol) {
246   return IsFunctionResult(symbol) && IsInStmtFunction(symbol);
247 }
248 
249 bool IsPointerDummy(const Symbol &symbol) {
250   return IsPointer(symbol) && IsDummy(symbol);
251 }
252 
253 // proc-name
254 bool IsProcName(const Symbol &symbol) {
255   return symbol.GetUltimate().has<ProcEntityDetails>();
256 }
257 
258 bool IsBindCProcedure(const Symbol &symbol) {
259   if (const auto *procDetails{symbol.detailsIf<ProcEntityDetails>()}) {
260     if (const Symbol * procInterface{procDetails->interface().symbol()}) {
261       // procedure component with a BIND(C) interface
262       return IsBindCProcedure(*procInterface);
263     }
264   }
265   return symbol.attrs().test(Attr::BIND_C) && IsProcedure(symbol);
266 }
267 
268 bool IsBindCProcedure(const Scope &scope) {
269   if (const Symbol * symbol{scope.GetSymbol()}) {
270     return IsBindCProcedure(*symbol);
271   } else {
272     return false;
273   }
274 }
275 
276 static const Symbol *FindPointerComponent(
277     const Scope &scope, std::set<const Scope *> &visited) {
278   if (!scope.IsDerivedType()) {
279     return nullptr;
280   }
281   if (!visited.insert(&scope).second) {
282     return nullptr;
283   }
284   // If there's a top-level pointer component, return it for clearer error
285   // messaging.
286   for (const auto &pair : scope) {
287     const Symbol &symbol{*pair.second};
288     if (IsPointer(symbol)) {
289       return &symbol;
290     }
291   }
292   for (const auto &pair : scope) {
293     const Symbol &symbol{*pair.second};
294     if (const auto *details{symbol.detailsIf<ObjectEntityDetails>()}) {
295       if (const DeclTypeSpec * type{details->type()}) {
296         if (const DerivedTypeSpec * derived{type->AsDerived()}) {
297           if (const Scope * nested{derived->scope()}) {
298             if (const Symbol *
299                 pointer{FindPointerComponent(*nested, visited)}) {
300               return pointer;
301             }
302           }
303         }
304       }
305     }
306   }
307   return nullptr;
308 }
309 
310 const Symbol *FindPointerComponent(const Scope &scope) {
311   std::set<const Scope *> visited;
312   return FindPointerComponent(scope, visited);
313 }
314 
315 const Symbol *FindPointerComponent(const DerivedTypeSpec &derived) {
316   if (const Scope * scope{derived.scope()}) {
317     return FindPointerComponent(*scope);
318   } else {
319     return nullptr;
320   }
321 }
322 
323 const Symbol *FindPointerComponent(const DeclTypeSpec &type) {
324   if (const DerivedTypeSpec * derived{type.AsDerived()}) {
325     return FindPointerComponent(*derived);
326   } else {
327     return nullptr;
328   }
329 }
330 
331 const Symbol *FindPointerComponent(const DeclTypeSpec *type) {
332   return type ? FindPointerComponent(*type) : nullptr;
333 }
334 
335 const Symbol *FindPointerComponent(const Symbol &symbol) {
336   return IsPointer(symbol) ? &symbol : FindPointerComponent(symbol.GetType());
337 }
338 
339 // C1594 specifies several ways by which an object might be globally visible.
340 const Symbol *FindExternallyVisibleObject(
341     const Symbol &object, const Scope &scope) {
342   // TODO: Storage association with any object for which this predicate holds,
343   // once EQUIVALENCE is supported.
344   const Symbol &ultimate{GetAssociationRoot(object)};
345   if (IsDummy(ultimate)) {
346     if (IsIntentIn(ultimate)) {
347       return &ultimate;
348     }
349     if (IsPointer(ultimate) && IsPureProcedure(ultimate.owner()) &&
350         IsFunction(ultimate.owner())) {
351       return &ultimate;
352     }
353   } else if (&GetProgramUnitContaining(ultimate) !=
354       &GetProgramUnitContaining(scope)) {
355     return &object;
356   } else if (const Symbol * block{FindCommonBlockContaining(ultimate)}) {
357     return block;
358   }
359   return nullptr;
360 }
361 
362 const Symbol &BypassGeneric(const Symbol &symbol) {
363   const Symbol &ultimate{symbol.GetUltimate()};
364   if (const auto *generic{ultimate.detailsIf<GenericDetails>()}) {
365     if (const Symbol * specific{generic->specific()}) {
366       return *specific;
367     }
368   }
369   return symbol;
370 }
371 
372 bool ExprHasTypeCategory(
373     const SomeExpr &expr, const common::TypeCategory &type) {
374   auto dynamicType{expr.GetType()};
375   return dynamicType && dynamicType->category() == type;
376 }
377 
378 bool ExprTypeKindIsDefault(
379     const SomeExpr &expr, const SemanticsContext &context) {
380   auto dynamicType{expr.GetType()};
381   return dynamicType &&
382       dynamicType->category() != common::TypeCategory::Derived &&
383       dynamicType->kind() == context.GetDefaultKind(dynamicType->category());
384 }
385 
386 // If an analyzed expr or assignment is missing, dump the node and die.
387 template <typename T>
388 static void CheckMissingAnalysis(bool absent, const T &x) {
389   if (absent) {
390     std::string buf;
391     llvm::raw_string_ostream ss{buf};
392     ss << "node has not been analyzed:\n";
393     parser::DumpTree(ss, x);
394     common::die(ss.str().c_str());
395   }
396 }
397 
398 template <typename T> static const SomeExpr *GetTypedExpr(const T &x) {
399   CheckMissingAnalysis(!x.typedExpr, x);
400   return common::GetPtrFromOptional(x.typedExpr->v);
401 }
402 const SomeExpr *GetExprHelper::Get(const parser::Expr &x) {
403   return GetTypedExpr(x);
404 }
405 const SomeExpr *GetExprHelper::Get(const parser::Variable &x) {
406   return GetTypedExpr(x);
407 }
408 const SomeExpr *GetExprHelper::Get(const parser::DataStmtConstant &x) {
409   return GetTypedExpr(x);
410 }
411 const SomeExpr *GetExprHelper::Get(const parser::AllocateObject &x) {
412   return GetTypedExpr(x);
413 }
414 const SomeExpr *GetExprHelper::Get(const parser::PointerObject &x) {
415   return GetTypedExpr(x);
416 }
417 
418 const evaluate::Assignment *GetAssignment(const parser::AssignmentStmt &x) {
419   CheckMissingAnalysis(!x.typedAssignment, x);
420   return common::GetPtrFromOptional(x.typedAssignment->v);
421 }
422 const evaluate::Assignment *GetAssignment(
423     const parser::PointerAssignmentStmt &x) {
424   CheckMissingAnalysis(!x.typedAssignment, x);
425   return common::GetPtrFromOptional(x.typedAssignment->v);
426 }
427 
428 const Symbol *FindInterface(const Symbol &symbol) {
429   return std::visit(
430       common::visitors{
431           [](const ProcEntityDetails &details) {
432             return details.interface().symbol();
433           },
434           [](const ProcBindingDetails &details) { return &details.symbol(); },
435           [](const auto &) -> const Symbol * { return nullptr; },
436       },
437       symbol.details());
438 }
439 
440 const Symbol *FindSubprogram(const Symbol &symbol) {
441   return std::visit(
442       common::visitors{
443           [&](const ProcEntityDetails &details) -> const Symbol * {
444             if (const Symbol * interface{details.interface().symbol()}) {
445               return FindSubprogram(*interface);
446             } else {
447               return &symbol;
448             }
449           },
450           [](const ProcBindingDetails &details) {
451             return FindSubprogram(details.symbol());
452           },
453           [&](const SubprogramDetails &) { return &symbol; },
454           [](const UseDetails &details) {
455             return FindSubprogram(details.symbol());
456           },
457           [](const HostAssocDetails &details) {
458             return FindSubprogram(details.symbol());
459           },
460           [](const auto &) -> const Symbol * { return nullptr; },
461       },
462       symbol.details());
463 }
464 
465 const Symbol *FindOverriddenBinding(const Symbol &symbol) {
466   if (symbol.has<ProcBindingDetails>()) {
467     if (const DeclTypeSpec * parentType{FindParentTypeSpec(symbol.owner())}) {
468       if (const DerivedTypeSpec * parentDerived{parentType->AsDerived()}) {
469         if (const Scope * parentScope{parentDerived->typeSymbol().scope()}) {
470           return parentScope->FindComponent(symbol.name());
471         }
472       }
473     }
474   }
475   return nullptr;
476 }
477 
478 const DeclTypeSpec *FindParentTypeSpec(const DerivedTypeSpec &derived) {
479   return FindParentTypeSpec(derived.typeSymbol());
480 }
481 
482 const DeclTypeSpec *FindParentTypeSpec(const DeclTypeSpec &decl) {
483   if (const DerivedTypeSpec * derived{decl.AsDerived()}) {
484     return FindParentTypeSpec(*derived);
485   } else {
486     return nullptr;
487   }
488 }
489 
490 const DeclTypeSpec *FindParentTypeSpec(const Scope &scope) {
491   if (scope.kind() == Scope::Kind::DerivedType) {
492     if (const auto *symbol{scope.symbol()}) {
493       return FindParentTypeSpec(*symbol);
494     }
495   }
496   return nullptr;
497 }
498 
499 const DeclTypeSpec *FindParentTypeSpec(const Symbol &symbol) {
500   if (const Scope * scope{symbol.scope()}) {
501     if (const auto *details{symbol.detailsIf<DerivedTypeDetails>()}) {
502       if (const Symbol * parent{details->GetParentComponent(*scope)}) {
503         return parent->GetType();
504       }
505     }
506   }
507   return nullptr;
508 }
509 
510 const EquivalenceSet *FindEquivalenceSet(const Symbol &symbol) {
511   const Symbol &ultimate{symbol.GetUltimate()};
512   for (const EquivalenceSet &set : ultimate.owner().equivalenceSets()) {
513     for (const EquivalenceObject &object : set) {
514       if (object.symbol == ultimate) {
515         return &set;
516       }
517     }
518   }
519   return nullptr;
520 }
521 
522 bool IsOrContainsEventOrLockComponent(const Symbol &original) {
523   const Symbol &symbol{ResolveAssociations(original)};
524   if (const auto *details{symbol.detailsIf<ObjectEntityDetails>()}) {
525     if (const DeclTypeSpec * type{details->type()}) {
526       if (const DerivedTypeSpec * derived{type->AsDerived()}) {
527         return IsEventTypeOrLockType(derived) ||
528             FindEventOrLockPotentialComponent(*derived);
529       }
530     }
531   }
532   return false;
533 }
534 
535 // Check this symbol suitable as a type-bound procedure - C769
536 bool CanBeTypeBoundProc(const Symbol *symbol) {
537   if (!symbol || IsDummy(*symbol) || IsProcedurePointer(*symbol)) {
538     return false;
539   } else if (symbol->has<SubprogramNameDetails>()) {
540     return symbol->owner().kind() == Scope::Kind::Module;
541   } else if (auto *details{symbol->detailsIf<SubprogramDetails>()}) {
542     return symbol->owner().kind() == Scope::Kind::Module ||
543         details->isInterface();
544   } else if (const auto *proc{symbol->detailsIf<ProcEntityDetails>()}) {
545     return !symbol->attrs().test(Attr::INTRINSIC) &&
546         proc->HasExplicitInterface();
547   } else {
548     return false;
549   }
550 }
551 
552 bool HasDeclarationInitializer(const Symbol &symbol) {
553   if (IsNamedConstant(symbol)) {
554     return false;
555   } else if (const auto *object{symbol.detailsIf<ObjectEntityDetails>()}) {
556     return object->init().has_value();
557   } else if (const auto *proc{symbol.detailsIf<ProcEntityDetails>()}) {
558     return proc->init().has_value();
559   } else {
560     return false;
561   }
562 }
563 
564 bool IsInitialized(const Symbol &symbol, bool ignoreDataStatements) {
565   if (IsAllocatable(symbol) ||
566       (!ignoreDataStatements && symbol.test(Symbol::Flag::InDataStmt)) ||
567       HasDeclarationInitializer(symbol)) {
568     return true;
569   } else if (IsNamedConstant(symbol) || IsFunctionResult(symbol) ||
570       IsPointer(symbol)) {
571     return false;
572   } else if (const auto *object{symbol.detailsIf<ObjectEntityDetails>()}) {
573     if (!object->isDummy() && object->type()) {
574       if (const auto *derived{object->type()->AsDerived()}) {
575         DirectComponentIterator directs{*derived};
576         return bool{std::find_if(
577             directs.begin(), directs.end(), [](const Symbol &component) {
578               return IsAllocatable(component) ||
579                   HasDeclarationInitializer(component);
580             })};
581       }
582     }
583   }
584   return false;
585 }
586 
587 bool IsDestructible(const Symbol &symbol, const Symbol *derivedTypeSymbol) {
588   if (IsAllocatable(symbol) || IsAutomatic(symbol)) {
589     return true;
590   } else if (IsNamedConstant(symbol) || IsFunctionResult(symbol) ||
591       IsPointer(symbol)) {
592     return false;
593   } else if (const auto *object{symbol.detailsIf<ObjectEntityDetails>()}) {
594     if (!object->isDummy() && object->type()) {
595       if (const auto *derived{object->type()->AsDerived()}) {
596         return &derived->typeSymbol() != derivedTypeSymbol &&
597             derived->HasDestruction();
598       }
599     }
600   }
601   return false;
602 }
603 
604 bool HasIntrinsicTypeName(const Symbol &symbol) {
605   std::string name{symbol.name().ToString()};
606   if (name == "doubleprecision") {
607     return true;
608   } else if (name == "derived") {
609     return false;
610   } else {
611     for (int i{0}; i != common::TypeCategory_enumSize; ++i) {
612       if (name == parser::ToLowerCaseLetters(EnumToString(TypeCategory{i}))) {
613         return true;
614       }
615     }
616     return false;
617   }
618 }
619 
620 bool IsSeparateModuleProcedureInterface(const Symbol *symbol) {
621   if (symbol && symbol->attrs().test(Attr::MODULE)) {
622     if (auto *details{symbol->detailsIf<SubprogramDetails>()}) {
623       return details->isInterface();
624     }
625   }
626   return false;
627 }
628 
629 bool IsFinalizable(
630     const Symbol &symbol, std::set<const DerivedTypeSpec *> *inProgress) {
631   if (IsPointer(symbol)) {
632     return false;
633   }
634   if (const auto *object{symbol.detailsIf<ObjectEntityDetails>()}) {
635     if (object->isDummy() && !IsIntentOut(symbol)) {
636       return false;
637     }
638     const DeclTypeSpec *type{object->type()};
639     const DerivedTypeSpec *typeSpec{type ? type->AsDerived() : nullptr};
640     return typeSpec && IsFinalizable(*typeSpec, inProgress);
641   }
642   return false;
643 }
644 
645 bool IsFinalizable(const DerivedTypeSpec &derived,
646     std::set<const DerivedTypeSpec *> *inProgress) {
647   if (!derived.typeSymbol().get<DerivedTypeDetails>().finals().empty()) {
648     return true;
649   }
650   std::set<const DerivedTypeSpec *> basis;
651   if (inProgress) {
652     if (inProgress->find(&derived) != inProgress->end()) {
653       return false; // don't loop on recursive type
654     }
655   } else {
656     inProgress = &basis;
657   }
658   auto iterator{inProgress->insert(&derived).first};
659   PotentialComponentIterator components{derived};
660   bool result{bool{std::find_if(
661       components.begin(), components.end(), [=](const Symbol &component) {
662         return IsFinalizable(component, inProgress);
663       })}};
664   inProgress->erase(iterator);
665   return result;
666 }
667 
668 bool HasImpureFinal(const DerivedTypeSpec &derived) {
669   if (const auto *details{
670           derived.typeSymbol().detailsIf<DerivedTypeDetails>()}) {
671     const auto &finals{details->finals()};
672     return std::any_of(finals.begin(), finals.end(),
673         [](const auto &x) { return !x.second->attrs().test(Attr::PURE); });
674   } else {
675     return false;
676   }
677 }
678 
679 bool IsAssumedLengthCharacter(const Symbol &symbol) {
680   if (const DeclTypeSpec * type{symbol.GetType()}) {
681     return type->category() == DeclTypeSpec::Character &&
682         type->characterTypeSpec().length().isAssumed();
683   } else {
684     return false;
685   }
686 }
687 
688 bool IsInBlankCommon(const Symbol &symbol) {
689   const Symbol *block{FindCommonBlockContaining(symbol)};
690   return block && block->name().empty();
691 }
692 
693 // C722 and C723:  For a function to be assumed length, it must be external and
694 // of CHARACTER type
695 bool IsExternal(const Symbol &symbol) {
696   return ClassifyProcedure(symbol) == ProcedureDefinitionClass::External;
697 }
698 
699 // Most scopes have no EQUIVALENCE, and this function is a fast no-op for them.
700 std::list<std::list<SymbolRef>> GetStorageAssociations(const Scope &scope) {
701   UnorderedSymbolSet distinct;
702   for (const EquivalenceSet &set : scope.equivalenceSets()) {
703     for (const EquivalenceObject &object : set) {
704       distinct.emplace(object.symbol);
705     }
706   }
707   // This set is ordered by ascending offsets, with ties broken by greatest
708   // size.  A multiset is used here because multiple symbols may have the
709   // same offset and size; the symbols in the set, however, are distinct.
710   std::multiset<SymbolRef, SymbolOffsetCompare> associated;
711   for (SymbolRef ref : distinct) {
712     associated.emplace(*ref);
713   }
714   std::list<std::list<SymbolRef>> result;
715   std::size_t limit{0};
716   const Symbol *currentCommon{nullptr};
717   for (const Symbol &symbol : associated) {
718     const Symbol *thisCommon{FindCommonBlockContaining(symbol)};
719     if (result.empty() || symbol.offset() >= limit ||
720         thisCommon != currentCommon) {
721       // Start a new group
722       result.emplace_back(std::list<SymbolRef>{});
723       limit = 0;
724       currentCommon = thisCommon;
725     }
726     result.back().emplace_back(symbol);
727     limit = std::max(limit, symbol.offset() + symbol.size());
728   }
729   return result;
730 }
731 
732 bool IsModuleProcedure(const Symbol &symbol) {
733   return ClassifyProcedure(symbol) == ProcedureDefinitionClass::Module;
734 }
735 const Symbol *IsExternalInPureContext(
736     const Symbol &symbol, const Scope &scope) {
737   if (const auto *pureProc{FindPureProcedureContaining(scope)}) {
738     return FindExternallyVisibleObject(symbol.GetUltimate(), *pureProc);
739   }
740   return nullptr;
741 }
742 
743 PotentialComponentIterator::const_iterator FindPolymorphicPotentialComponent(
744     const DerivedTypeSpec &derived) {
745   PotentialComponentIterator potentials{derived};
746   return std::find_if(
747       potentials.begin(), potentials.end(), [](const Symbol &component) {
748         if (const auto *details{component.detailsIf<ObjectEntityDetails>()}) {
749           const DeclTypeSpec *type{details->type()};
750           return type && type->IsPolymorphic();
751         }
752         return false;
753       });
754 }
755 
756 bool IsOrContainsPolymorphicComponent(const Symbol &original) {
757   const Symbol &symbol{ResolveAssociations(original)};
758   if (const auto *details{symbol.detailsIf<ObjectEntityDetails>()}) {
759     if (const DeclTypeSpec * type{details->type()}) {
760       if (type->IsPolymorphic()) {
761         return true;
762       }
763       if (const DerivedTypeSpec * derived{type->AsDerived()}) {
764         return (bool)FindPolymorphicPotentialComponent(*derived);
765       }
766     }
767   }
768   return false;
769 }
770 
771 bool InProtectedContext(const Symbol &symbol, const Scope &currentScope) {
772   return IsProtected(symbol) && !IsHostAssociated(symbol, currentScope);
773 }
774 
775 // C1101 and C1158
776 // Modifiability checks on the leftmost symbol ("base object")
777 // of a data-ref
778 std::optional<parser::MessageFixedText> WhyNotModifiableFirst(
779     const Symbol &symbol, const Scope &scope) {
780   if (symbol.has<AssocEntityDetails>()) {
781     return "'%s' is construct associated with an expression"_en_US;
782   } else if (IsExternalInPureContext(symbol, scope)) {
783     return "'%s' is externally visible and referenced in a pure"
784            " procedure"_en_US;
785   } else if (!IsVariableName(symbol)) {
786     return "'%s' is not a variable"_en_US;
787   } else {
788     return std::nullopt;
789   }
790 }
791 
792 // Modifiability checks on the rightmost symbol of a data-ref
793 std::optional<parser::MessageFixedText> WhyNotModifiableLast(
794     const Symbol &symbol, const Scope &scope) {
795   if (IsOrContainsEventOrLockComponent(symbol)) {
796     return "'%s' is an entity with either an EVENT_TYPE or LOCK_TYPE"_en_US;
797   } else {
798     return std::nullopt;
799   }
800 }
801 
802 // Modifiability checks on the leftmost (base) symbol of a data-ref
803 // that apply only when there are no pointer components or a base
804 // that is a pointer.
805 std::optional<parser::MessageFixedText> WhyNotModifiableIfNoPtr(
806     const Symbol &symbol, const Scope &scope) {
807   if (InProtectedContext(symbol, scope)) {
808     return "'%s' is protected in this scope"_en_US;
809   } else if (IsIntentIn(symbol)) {
810     return "'%s' is an INTENT(IN) dummy argument"_en_US;
811   } else {
812     return std::nullopt;
813   }
814 }
815 
816 // Apply all modifiability checks to a single symbol
817 std::optional<parser::MessageFixedText> WhyNotModifiable(
818     const Symbol &original, const Scope &scope) {
819   const Symbol &symbol{GetAssociationRoot(original)};
820   if (auto first{WhyNotModifiableFirst(symbol, scope)}) {
821     return first;
822   } else if (auto last{WhyNotModifiableLast(symbol, scope)}) {
823     return last;
824   } else if (!IsPointer(symbol)) {
825     return WhyNotModifiableIfNoPtr(symbol, scope);
826   } else {
827     return std::nullopt;
828   }
829 }
830 
831 // Modifiability checks for a data-ref
832 std::optional<parser::Message> WhyNotModifiable(parser::CharBlock at,
833     const SomeExpr &expr, const Scope &scope, bool vectorSubscriptIsOk) {
834   if (auto dataRef{evaluate::ExtractDataRef(expr, true)}) {
835     if (!vectorSubscriptIsOk && evaluate::HasVectorSubscript(expr)) {
836       return parser::Message{at, "Variable has a vector subscript"_en_US};
837     }
838     const Symbol &first{GetAssociationRoot(dataRef->GetFirstSymbol())};
839     if (auto maybeWhyFirst{WhyNotModifiableFirst(first, scope)}) {
840       return parser::Message{first.name(),
841           parser::MessageFormattedText{
842               std::move(*maybeWhyFirst), first.name()}};
843     }
844     const Symbol &last{dataRef->GetLastSymbol()};
845     if (auto maybeWhyLast{WhyNotModifiableLast(last, scope)}) {
846       return parser::Message{last.name(),
847           parser::MessageFormattedText{std::move(*maybeWhyLast), last.name()}};
848     }
849     if (!GetLastPointerSymbol(*dataRef)) {
850       if (auto maybeWhyFirst{WhyNotModifiableIfNoPtr(first, scope)}) {
851         return parser::Message{first.name(),
852             parser::MessageFormattedText{
853                 std::move(*maybeWhyFirst), first.name()}};
854       }
855     }
856   } else if (!evaluate::IsVariable(expr)) {
857     return parser::Message{
858         at, "'%s' is not a variable"_en_US, expr.AsFortran()};
859   } else {
860     // reference to function returning POINTER
861   }
862   return std::nullopt;
863 }
864 
865 class ImageControlStmtHelper {
866   using ImageControlStmts = std::variant<parser::ChangeTeamConstruct,
867       parser::CriticalConstruct, parser::EventPostStmt, parser::EventWaitStmt,
868       parser::FormTeamStmt, parser::LockStmt, parser::StopStmt,
869       parser::SyncAllStmt, parser::SyncImagesStmt, parser::SyncMemoryStmt,
870       parser::SyncTeamStmt, parser::UnlockStmt>;
871 
872 public:
873   template <typename T> bool operator()(const T &) {
874     return common::HasMember<T, ImageControlStmts>;
875   }
876   template <typename T> bool operator()(const common::Indirection<T> &x) {
877     return (*this)(x.value());
878   }
879   bool operator()(const parser::AllocateStmt &stmt) {
880     const auto &allocationList{std::get<std::list<parser::Allocation>>(stmt.t)};
881     for (const auto &allocation : allocationList) {
882       const auto &allocateObject{
883           std::get<parser::AllocateObject>(allocation.t)};
884       if (IsCoarrayObject(allocateObject)) {
885         return true;
886       }
887     }
888     return false;
889   }
890   bool operator()(const parser::DeallocateStmt &stmt) {
891     const auto &allocateObjectList{
892         std::get<std::list<parser::AllocateObject>>(stmt.t)};
893     for (const auto &allocateObject : allocateObjectList) {
894       if (IsCoarrayObject(allocateObject)) {
895         return true;
896       }
897     }
898     return false;
899   }
900   bool operator()(const parser::CallStmt &stmt) {
901     const auto &procedureDesignator{
902         std::get<parser::ProcedureDesignator>(stmt.v.t)};
903     if (auto *name{std::get_if<parser::Name>(&procedureDesignator.u)}) {
904       // TODO: also ensure that the procedure is, in fact, an intrinsic
905       if (name->source == "move_alloc") {
906         const auto &args{std::get<std::list<parser::ActualArgSpec>>(stmt.v.t)};
907         if (!args.empty()) {
908           const parser::ActualArg &actualArg{
909               std::get<parser::ActualArg>(args.front().t)};
910           if (const auto *argExpr{
911                   std::get_if<common::Indirection<parser::Expr>>(
912                       &actualArg.u)}) {
913             return HasCoarray(argExpr->value());
914           }
915         }
916       }
917     }
918     return false;
919   }
920   bool operator()(const parser::Statement<parser::ActionStmt> &stmt) {
921     return std::visit(*this, stmt.statement.u);
922   }
923 
924 private:
925   bool IsCoarrayObject(const parser::AllocateObject &allocateObject) {
926     const parser::Name &name{GetLastName(allocateObject)};
927     return name.symbol && evaluate::IsCoarray(*name.symbol);
928   }
929 };
930 
931 bool IsImageControlStmt(const parser::ExecutableConstruct &construct) {
932   return std::visit(ImageControlStmtHelper{}, construct.u);
933 }
934 
935 std::optional<parser::MessageFixedText> GetImageControlStmtCoarrayMsg(
936     const parser::ExecutableConstruct &construct) {
937   if (const auto *actionStmt{
938           std::get_if<parser::Statement<parser::ActionStmt>>(&construct.u)}) {
939     return std::visit(
940         common::visitors{
941             [](const common::Indirection<parser::AllocateStmt> &)
942                 -> std::optional<parser::MessageFixedText> {
943               return "ALLOCATE of a coarray is an image control"
944                      " statement"_en_US;
945             },
946             [](const common::Indirection<parser::DeallocateStmt> &)
947                 -> std::optional<parser::MessageFixedText> {
948               return "DEALLOCATE of a coarray is an image control"
949                      " statement"_en_US;
950             },
951             [](const common::Indirection<parser::CallStmt> &)
952                 -> std::optional<parser::MessageFixedText> {
953               return "MOVE_ALLOC of a coarray is an image control"
954                      " statement "_en_US;
955             },
956             [](const auto &) -> std::optional<parser::MessageFixedText> {
957               return std::nullopt;
958             },
959         },
960         actionStmt->statement.u);
961   }
962   return std::nullopt;
963 }
964 
965 parser::CharBlock GetImageControlStmtLocation(
966     const parser::ExecutableConstruct &executableConstruct) {
967   return std::visit(
968       common::visitors{
969           [](const common::Indirection<parser::ChangeTeamConstruct>
970                   &construct) {
971             return std::get<parser::Statement<parser::ChangeTeamStmt>>(
972                 construct.value().t)
973                 .source;
974           },
975           [](const common::Indirection<parser::CriticalConstruct> &construct) {
976             return std::get<parser::Statement<parser::CriticalStmt>>(
977                 construct.value().t)
978                 .source;
979           },
980           [](const parser::Statement<parser::ActionStmt> &actionStmt) {
981             return actionStmt.source;
982           },
983           [](const auto &) { return parser::CharBlock{}; },
984       },
985       executableConstruct.u);
986 }
987 
988 bool HasCoarray(const parser::Expr &expression) {
989   if (const auto *expr{GetExpr(expression)}) {
990     for (const Symbol &symbol : evaluate::CollectSymbols(*expr)) {
991       if (evaluate::IsCoarray(symbol)) {
992         return true;
993       }
994     }
995   }
996   return false;
997 }
998 
999 bool IsPolymorphic(const Symbol &symbol) {
1000   if (const DeclTypeSpec * type{symbol.GetType()}) {
1001     return type->IsPolymorphic();
1002   }
1003   return false;
1004 }
1005 
1006 bool IsPolymorphicAllocatable(const Symbol &symbol) {
1007   return IsAllocatable(symbol) && IsPolymorphic(symbol);
1008 }
1009 
1010 std::optional<parser::MessageFormattedText> CheckAccessibleComponent(
1011     const Scope &scope, const Symbol &symbol) {
1012   CHECK(symbol.owner().IsDerivedType()); // symbol must be a component
1013   if (symbol.attrs().test(Attr::PRIVATE)) {
1014     if (FindModuleFileContaining(scope)) {
1015       // Don't enforce component accessibility checks in module files;
1016       // there may be forward-substituted named constants of derived type
1017       // whose structure constructors reference private components.
1018     } else if (const Scope *
1019         moduleScope{FindModuleContaining(symbol.owner())}) {
1020       if (!moduleScope->Contains(scope)) {
1021         return parser::MessageFormattedText{
1022             "PRIVATE component '%s' is only accessible within module '%s'"_err_en_US,
1023             symbol.name(), moduleScope->GetName().value()};
1024       }
1025     }
1026   }
1027   return std::nullopt;
1028 }
1029 
1030 std::list<SourceName> OrderParameterNames(const Symbol &typeSymbol) {
1031   std::list<SourceName> result;
1032   if (const DerivedTypeSpec * spec{typeSymbol.GetParentTypeSpec()}) {
1033     result = OrderParameterNames(spec->typeSymbol());
1034   }
1035   const auto &paramNames{typeSymbol.get<DerivedTypeDetails>().paramNames()};
1036   result.insert(result.end(), paramNames.begin(), paramNames.end());
1037   return result;
1038 }
1039 
1040 SymbolVector OrderParameterDeclarations(const Symbol &typeSymbol) {
1041   SymbolVector result;
1042   if (const DerivedTypeSpec * spec{typeSymbol.GetParentTypeSpec()}) {
1043     result = OrderParameterDeclarations(spec->typeSymbol());
1044   }
1045   const auto &paramDecls{typeSymbol.get<DerivedTypeDetails>().paramDecls()};
1046   result.insert(result.end(), paramDecls.begin(), paramDecls.end());
1047   return result;
1048 }
1049 
1050 const DeclTypeSpec &FindOrInstantiateDerivedType(
1051     Scope &scope, DerivedTypeSpec &&spec, DeclTypeSpec::Category category) {
1052   spec.EvaluateParameters(scope.context());
1053   if (const DeclTypeSpec *
1054       type{scope.FindInstantiatedDerivedType(spec, category)}) {
1055     return *type;
1056   }
1057   // Create a new instantiation of this parameterized derived type
1058   // for this particular distinct set of actual parameter values.
1059   DeclTypeSpec &type{scope.MakeDerivedType(category, std::move(spec))};
1060   type.derivedTypeSpec().Instantiate(scope);
1061   return type;
1062 }
1063 
1064 const Symbol *FindSeparateModuleSubprogramInterface(const Symbol *proc) {
1065   if (proc) {
1066     if (const Symbol * submodule{proc->owner().symbol()}) {
1067       if (const auto *details{submodule->detailsIf<ModuleDetails>()}) {
1068         if (const Scope * ancestor{details->ancestor()}) {
1069           const Symbol *iface{ancestor->FindSymbol(proc->name())};
1070           if (IsSeparateModuleProcedureInterface(iface)) {
1071             return iface;
1072           }
1073         }
1074       }
1075     }
1076   }
1077   return nullptr;
1078 }
1079 
1080 ProcedureDefinitionClass ClassifyProcedure(const Symbol &symbol) { // 15.2.2
1081   const Symbol &ultimate{symbol.GetUltimate()};
1082   if (ultimate.attrs().test(Attr::INTRINSIC)) {
1083     return ProcedureDefinitionClass::Intrinsic;
1084   } else if (ultimate.attrs().test(Attr::EXTERNAL)) {
1085     return ProcedureDefinitionClass::External;
1086   } else if (const auto *procDetails{ultimate.detailsIf<ProcEntityDetails>()}) {
1087     if (procDetails->isDummy()) {
1088       return ProcedureDefinitionClass::Dummy;
1089     } else if (IsPointer(ultimate)) {
1090       return ProcedureDefinitionClass::Pointer;
1091     }
1092   } else if (const Symbol * subp{FindSubprogram(symbol)}) {
1093     if (const auto *subpDetails{subp->detailsIf<SubprogramDetails>()}) {
1094       if (subpDetails->stmtFunction()) {
1095         return ProcedureDefinitionClass::StatementFunction;
1096       }
1097     }
1098     switch (ultimate.owner().kind()) {
1099     case Scope::Kind::Global:
1100       return ProcedureDefinitionClass::External;
1101     case Scope::Kind::Module:
1102       return ProcedureDefinitionClass::Module;
1103     case Scope::Kind::MainProgram:
1104     case Scope::Kind::Subprogram:
1105       return ProcedureDefinitionClass::Internal;
1106     default:
1107       break;
1108     }
1109   }
1110   return ProcedureDefinitionClass::None;
1111 }
1112 
1113 // ComponentIterator implementation
1114 
1115 template <ComponentKind componentKind>
1116 typename ComponentIterator<componentKind>::const_iterator
1117 ComponentIterator<componentKind>::const_iterator::Create(
1118     const DerivedTypeSpec &derived) {
1119   const_iterator it{};
1120   it.componentPath_.emplace_back(derived);
1121   it.Increment(); // cue up first relevant component, if any
1122   return it;
1123 }
1124 
1125 template <ComponentKind componentKind>
1126 const DerivedTypeSpec *
1127 ComponentIterator<componentKind>::const_iterator::PlanComponentTraversal(
1128     const Symbol &component) const {
1129   if (const auto *details{component.detailsIf<ObjectEntityDetails>()}) {
1130     if (const DeclTypeSpec * type{details->type()}) {
1131       if (const auto *derived{type->AsDerived()}) {
1132         bool traverse{false};
1133         if constexpr (componentKind == ComponentKind::Ordered) {
1134           // Order Component (only visit parents)
1135           traverse = component.test(Symbol::Flag::ParentComp);
1136         } else if constexpr (componentKind == ComponentKind::Direct) {
1137           traverse = !IsAllocatableOrPointer(component);
1138         } else if constexpr (componentKind == ComponentKind::Ultimate) {
1139           traverse = !IsAllocatableOrPointer(component);
1140         } else if constexpr (componentKind == ComponentKind::Potential) {
1141           traverse = !IsPointer(component);
1142         } else if constexpr (componentKind == ComponentKind::Scope) {
1143           traverse = !IsAllocatableOrPointer(component);
1144         }
1145         if (traverse) {
1146           const Symbol &newTypeSymbol{derived->typeSymbol()};
1147           // Avoid infinite loop if the type is already part of the types
1148           // being visited. It is possible to have "loops in type" because
1149           // C744 does not forbid to use not yet declared type for
1150           // ALLOCATABLE or POINTER components.
1151           for (const auto &node : componentPath_) {
1152             if (&newTypeSymbol == &node.GetTypeSymbol()) {
1153               return nullptr;
1154             }
1155           }
1156           return derived;
1157         }
1158       }
1159     } // intrinsic & unlimited polymorphic not traversable
1160   }
1161   return nullptr;
1162 }
1163 
1164 template <ComponentKind componentKind>
1165 static bool StopAtComponentPre(const Symbol &component) {
1166   if constexpr (componentKind == ComponentKind::Ordered) {
1167     // Parent components need to be iterated upon after their
1168     // sub-components in structure constructor analysis.
1169     return !component.test(Symbol::Flag::ParentComp);
1170   } else if constexpr (componentKind == ComponentKind::Direct) {
1171     return true;
1172   } else if constexpr (componentKind == ComponentKind::Ultimate) {
1173     return component.has<ProcEntityDetails>() ||
1174         IsAllocatableOrPointer(component) ||
1175         (component.get<ObjectEntityDetails>().type() &&
1176             component.get<ObjectEntityDetails>().type()->AsIntrinsic());
1177   } else if constexpr (componentKind == ComponentKind::Potential) {
1178     return !IsPointer(component);
1179   }
1180 }
1181 
1182 template <ComponentKind componentKind>
1183 static bool StopAtComponentPost(const Symbol &component) {
1184   return componentKind == ComponentKind::Ordered &&
1185       component.test(Symbol::Flag::ParentComp);
1186 }
1187 
1188 template <ComponentKind componentKind>
1189 void ComponentIterator<componentKind>::const_iterator::Increment() {
1190   while (!componentPath_.empty()) {
1191     ComponentPathNode &deepest{componentPath_.back()};
1192     if (deepest.component()) {
1193       if (!deepest.descended()) {
1194         deepest.set_descended(true);
1195         if (const DerivedTypeSpec *
1196             derived{PlanComponentTraversal(*deepest.component())}) {
1197           componentPath_.emplace_back(*derived);
1198           continue;
1199         }
1200       } else if (!deepest.visited()) {
1201         deepest.set_visited(true);
1202         return; // this is the next component to visit, after descending
1203       }
1204     }
1205     auto &nameIterator{deepest.nameIterator()};
1206     if (nameIterator == deepest.nameEnd()) {
1207       componentPath_.pop_back();
1208     } else if constexpr (componentKind == ComponentKind::Scope) {
1209       deepest.set_component(*nameIterator++->second);
1210       deepest.set_descended(false);
1211       deepest.set_visited(true);
1212       return; // this is the next component to visit, before descending
1213     } else {
1214       const Scope &scope{deepest.GetScope()};
1215       auto scopeIter{scope.find(*nameIterator++)};
1216       if (scopeIter != scope.cend()) {
1217         const Symbol &component{*scopeIter->second};
1218         deepest.set_component(component);
1219         deepest.set_descended(false);
1220         if (StopAtComponentPre<componentKind>(component)) {
1221           deepest.set_visited(true);
1222           return; // this is the next component to visit, before descending
1223         } else {
1224           deepest.set_visited(!StopAtComponentPost<componentKind>(component));
1225         }
1226       }
1227     }
1228   }
1229 }
1230 
1231 template <ComponentKind componentKind>
1232 std::string
1233 ComponentIterator<componentKind>::const_iterator::BuildResultDesignatorName()
1234     const {
1235   std::string designator{""};
1236   for (const auto &node : componentPath_) {
1237     designator += "%" + DEREF(node.component()).name().ToString();
1238   }
1239   return designator;
1240 }
1241 
1242 template class ComponentIterator<ComponentKind::Ordered>;
1243 template class ComponentIterator<ComponentKind::Direct>;
1244 template class ComponentIterator<ComponentKind::Ultimate>;
1245 template class ComponentIterator<ComponentKind::Potential>;
1246 template class ComponentIterator<ComponentKind::Scope>;
1247 
1248 UltimateComponentIterator::const_iterator FindCoarrayUltimateComponent(
1249     const DerivedTypeSpec &derived) {
1250   UltimateComponentIterator ultimates{derived};
1251   return std::find_if(ultimates.begin(), ultimates.end(),
1252       [](const Symbol &symbol) { return evaluate::IsCoarray(symbol); });
1253 }
1254 
1255 UltimateComponentIterator::const_iterator FindPointerUltimateComponent(
1256     const DerivedTypeSpec &derived) {
1257   UltimateComponentIterator ultimates{derived};
1258   return std::find_if(ultimates.begin(), ultimates.end(), IsPointer);
1259 }
1260 
1261 PotentialComponentIterator::const_iterator FindEventOrLockPotentialComponent(
1262     const DerivedTypeSpec &derived) {
1263   PotentialComponentIterator potentials{derived};
1264   return std::find_if(
1265       potentials.begin(), potentials.end(), [](const Symbol &component) {
1266         if (const auto *details{component.detailsIf<ObjectEntityDetails>()}) {
1267           const DeclTypeSpec *type{details->type()};
1268           return type && IsEventTypeOrLockType(type->AsDerived());
1269         }
1270         return false;
1271       });
1272 }
1273 
1274 UltimateComponentIterator::const_iterator FindAllocatableUltimateComponent(
1275     const DerivedTypeSpec &derived) {
1276   UltimateComponentIterator ultimates{derived};
1277   return std::find_if(ultimates.begin(), ultimates.end(), IsAllocatable);
1278 }
1279 
1280 UltimateComponentIterator::const_iterator
1281 FindPolymorphicAllocatableUltimateComponent(const DerivedTypeSpec &derived) {
1282   UltimateComponentIterator ultimates{derived};
1283   return std::find_if(
1284       ultimates.begin(), ultimates.end(), IsPolymorphicAllocatable);
1285 }
1286 
1287 UltimateComponentIterator::const_iterator
1288 FindPolymorphicAllocatableNonCoarrayUltimateComponent(
1289     const DerivedTypeSpec &derived) {
1290   UltimateComponentIterator ultimates{derived};
1291   return std::find_if(ultimates.begin(), ultimates.end(), [](const Symbol &x) {
1292     return IsPolymorphicAllocatable(x) && !evaluate::IsCoarray(x);
1293   });
1294 }
1295 
1296 const Symbol *FindUltimateComponent(const DerivedTypeSpec &derived,
1297     const std::function<bool(const Symbol &)> &predicate) {
1298   UltimateComponentIterator ultimates{derived};
1299   if (auto it{std::find_if(ultimates.begin(), ultimates.end(),
1300           [&predicate](const Symbol &component) -> bool {
1301             return predicate(component);
1302           })}) {
1303     return &*it;
1304   }
1305   return nullptr;
1306 }
1307 
1308 const Symbol *FindUltimateComponent(const Symbol &symbol,
1309     const std::function<bool(const Symbol &)> &predicate) {
1310   if (predicate(symbol)) {
1311     return &symbol;
1312   } else if (const auto *object{symbol.detailsIf<ObjectEntityDetails>()}) {
1313     if (const auto *type{object->type()}) {
1314       if (const auto *derived{type->AsDerived()}) {
1315         return FindUltimateComponent(*derived, predicate);
1316       }
1317     }
1318   }
1319   return nullptr;
1320 }
1321 
1322 const Symbol *FindImmediateComponent(const DerivedTypeSpec &type,
1323     const std::function<bool(const Symbol &)> &predicate) {
1324   if (const Scope * scope{type.scope()}) {
1325     const Symbol *parent{nullptr};
1326     for (const auto &pair : *scope) {
1327       const Symbol *symbol{&*pair.second};
1328       if (predicate(*symbol)) {
1329         return symbol;
1330       }
1331       if (symbol->test(Symbol::Flag::ParentComp)) {
1332         parent = symbol;
1333       }
1334     }
1335     if (parent) {
1336       if (const auto *object{parent->detailsIf<ObjectEntityDetails>()}) {
1337         if (const auto *type{object->type()}) {
1338           if (const auto *derived{type->AsDerived()}) {
1339             return FindImmediateComponent(*derived, predicate);
1340           }
1341         }
1342       }
1343     }
1344   }
1345   return nullptr;
1346 }
1347 
1348 bool IsFunctionResultWithSameNameAsFunction(const Symbol &symbol) {
1349   if (IsFunctionResult(symbol)) {
1350     if (const Symbol * function{symbol.owner().symbol()}) {
1351       return symbol.name() == function->name();
1352     }
1353   }
1354   return false;
1355 }
1356 
1357 void LabelEnforce::Post(const parser::GotoStmt &gotoStmt) {
1358   checkLabelUse(gotoStmt.v);
1359 }
1360 void LabelEnforce::Post(const parser::ComputedGotoStmt &computedGotoStmt) {
1361   for (auto &i : std::get<std::list<parser::Label>>(computedGotoStmt.t)) {
1362     checkLabelUse(i);
1363   }
1364 }
1365 
1366 void LabelEnforce::Post(const parser::ArithmeticIfStmt &arithmeticIfStmt) {
1367   checkLabelUse(std::get<1>(arithmeticIfStmt.t));
1368   checkLabelUse(std::get<2>(arithmeticIfStmt.t));
1369   checkLabelUse(std::get<3>(arithmeticIfStmt.t));
1370 }
1371 
1372 void LabelEnforce::Post(const parser::AssignStmt &assignStmt) {
1373   checkLabelUse(std::get<parser::Label>(assignStmt.t));
1374 }
1375 
1376 void LabelEnforce::Post(const parser::AssignedGotoStmt &assignedGotoStmt) {
1377   for (auto &i : std::get<std::list<parser::Label>>(assignedGotoStmt.t)) {
1378     checkLabelUse(i);
1379   }
1380 }
1381 
1382 void LabelEnforce::Post(const parser::AltReturnSpec &altReturnSpec) {
1383   checkLabelUse(altReturnSpec.v);
1384 }
1385 
1386 void LabelEnforce::Post(const parser::ErrLabel &errLabel) {
1387   checkLabelUse(errLabel.v);
1388 }
1389 void LabelEnforce::Post(const parser::EndLabel &endLabel) {
1390   checkLabelUse(endLabel.v);
1391 }
1392 void LabelEnforce::Post(const parser::EorLabel &eorLabel) {
1393   checkLabelUse(eorLabel.v);
1394 }
1395 
1396 void LabelEnforce::checkLabelUse(const parser::Label &labelUsed) {
1397   if (labels_.find(labelUsed) == labels_.end()) {
1398     SayWithConstruct(context_, currentStatementSourcePosition_,
1399         parser::MessageFormattedText{
1400             "Control flow escapes from %s"_err_en_US, construct_},
1401         constructSourcePosition_);
1402   }
1403 }
1404 
1405 parser::MessageFormattedText LabelEnforce::GetEnclosingConstructMsg() {
1406   return {"Enclosing %s statement"_en_US, construct_};
1407 }
1408 
1409 void LabelEnforce::SayWithConstruct(SemanticsContext &context,
1410     parser::CharBlock stmtLocation, parser::MessageFormattedText &&message,
1411     parser::CharBlock constructLocation) {
1412   context.Say(stmtLocation, message)
1413       .Attach(constructLocation, GetEnclosingConstructMsg());
1414 }
1415 
1416 bool HasAlternateReturns(const Symbol &subprogram) {
1417   for (const auto *dummyArg : subprogram.get<SubprogramDetails>().dummyArgs()) {
1418     if (!dummyArg) {
1419       return true;
1420     }
1421   }
1422   return false;
1423 }
1424 
1425 bool InCommonBlock(const Symbol &symbol) {
1426   const auto *details{symbol.detailsIf<ObjectEntityDetails>()};
1427   return details && details->commonBlock();
1428 }
1429 
1430 const std::optional<parser::Name> &MaybeGetNodeName(
1431     const ConstructNode &construct) {
1432   return std::visit(
1433       common::visitors{
1434           [&](const parser::BlockConstruct *blockConstruct)
1435               -> const std::optional<parser::Name> & {
1436             return std::get<0>(blockConstruct->t).statement.v;
1437           },
1438           [&](const auto *a) -> const std::optional<parser::Name> & {
1439             return std::get<0>(std::get<0>(a->t).statement.t);
1440           },
1441       },
1442       construct);
1443 }
1444 
1445 std::optional<ArraySpec> ToArraySpec(
1446     evaluate::FoldingContext &context, const evaluate::Shape &shape) {
1447   if (auto extents{evaluate::AsConstantExtents(context, shape)}) {
1448     ArraySpec result;
1449     for (const auto &extent : *extents) {
1450       result.emplace_back(ShapeSpec::MakeExplicit(Bound{extent}));
1451     }
1452     return {std::move(result)};
1453   } else {
1454     return std::nullopt;
1455   }
1456 }
1457 
1458 std::optional<ArraySpec> ToArraySpec(evaluate::FoldingContext &context,
1459     const std::optional<evaluate::Shape> &shape) {
1460   return shape ? ToArraySpec(context, *shape) : std::nullopt;
1461 }
1462 
1463 } // namespace Fortran::semantics
1464