1 //===-- lib/Semantics/check-do-forall.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 "check-do-forall.h"
10 #include "flang/Common/template.h"
11 #include "flang/Evaluate/call.h"
12 #include "flang/Evaluate/expression.h"
13 #include "flang/Evaluate/tools.h"
14 #include "flang/Parser/message.h"
15 #include "flang/Parser/parse-tree-visitor.h"
16 #include "flang/Parser/tools.h"
17 #include "flang/Semantics/attr.h"
18 #include "flang/Semantics/scope.h"
19 #include "flang/Semantics/semantics.h"
20 #include "flang/Semantics/symbol.h"
21 #include "flang/Semantics/tools.h"
22 #include "flang/Semantics/type.h"
23 
24 namespace Fortran::evaluate {
25 using ActualArgumentRef = common::Reference<const ActualArgument>;
26 
27 inline bool operator<(ActualArgumentRef x, ActualArgumentRef y) {
28   return &*x < &*y;
29 }
30 } // namespace Fortran::evaluate
31 
32 namespace Fortran::semantics {
33 
34 using namespace parser::literals;
35 
36 using Bounds = parser::LoopControl::Bounds;
37 using IndexVarKind = SemanticsContext::IndexVarKind;
38 
39 static const parser::ConcurrentHeader &GetConcurrentHeader(
40     const parser::LoopControl &loopControl) {
41   const auto &concurrent{
42       std::get<parser::LoopControl::Concurrent>(loopControl.u)};
43   return std::get<parser::ConcurrentHeader>(concurrent.t);
44 }
45 static const parser::ConcurrentHeader &GetConcurrentHeader(
46     const parser::ForallConstruct &construct) {
47   const auto &stmt{
48       std::get<parser::Statement<parser::ForallConstructStmt>>(construct.t)};
49   return std::get<common::Indirection<parser::ConcurrentHeader>>(
50       stmt.statement.t)
51       .value();
52 }
53 static const parser::ConcurrentHeader &GetConcurrentHeader(
54     const parser::ForallStmt &stmt) {
55   return std::get<common::Indirection<parser::ConcurrentHeader>>(stmt.t)
56       .value();
57 }
58 template <typename T>
59 static const std::list<parser::ConcurrentControl> &GetControls(const T &x) {
60   return std::get<std::list<parser::ConcurrentControl>>(
61       GetConcurrentHeader(x).t);
62 }
63 
64 static const Bounds &GetBounds(const parser::DoConstruct &doConstruct) {
65   auto &loopControl{doConstruct.GetLoopControl().value()};
66   return std::get<Bounds>(loopControl.u);
67 }
68 
69 static const parser::Name &GetDoVariable(
70     const parser::DoConstruct &doConstruct) {
71   const Bounds &bounds{GetBounds(doConstruct)};
72   return bounds.name.thing;
73 }
74 
75 static parser::MessageFixedText GetEnclosingDoMsg() {
76   return "Enclosing DO CONCURRENT statement"_en_US;
77 }
78 
79 static void SayWithDo(SemanticsContext &context, parser::CharBlock stmtLocation,
80     parser::MessageFixedText &&message, parser::CharBlock doLocation) {
81   context.Say(stmtLocation, message).Attach(doLocation, GetEnclosingDoMsg());
82 }
83 
84 // 11.1.7.5 - enforce semantics constraints on a DO CONCURRENT loop body
85 class DoConcurrentBodyEnforce {
86 public:
87   DoConcurrentBodyEnforce(
88       SemanticsContext &context, parser::CharBlock doConcurrentSourcePosition)
89       : context_{context}, doConcurrentSourcePosition_{
90                                doConcurrentSourcePosition} {}
91   std::set<parser::Label> labels() { return labels_; }
92   template <typename T> bool Pre(const T &) { return true; }
93   template <typename T> void Post(const T &) {}
94 
95   template <typename T> bool Pre(const parser::Statement<T> &statement) {
96     currentStatementSourcePosition_ = statement.source;
97     if (statement.label.has_value()) {
98       labels_.insert(*statement.label);
99     }
100     return true;
101   }
102 
103   template <typename T> bool Pre(const parser::UnlabeledStatement<T> &stmt) {
104     currentStatementSourcePosition_ = stmt.source;
105     return true;
106   }
107 
108   // C1140 -- Can't deallocate a polymorphic entity in a DO CONCURRENT.
109   // Deallocation can be caused by exiting a block that declares an allocatable
110   // entity, assignment to an allocatable variable, or an actual DEALLOCATE
111   // statement
112   //
113   // Note also that the deallocation of a derived type entity might cause the
114   // invocation of an IMPURE final subroutine. (C1139)
115   //
116 
117   // Only to be called for symbols with ObjectEntityDetails
118   static bool HasImpureFinal(const Symbol &original) {
119     const Symbol &symbol{ResolveAssociations(original)};
120     if (symbol.has<ObjectEntityDetails>()) {
121       if (const DeclTypeSpec * symType{symbol.GetType()}) {
122         if (const DerivedTypeSpec * derived{symType->AsDerived()}) {
123           return semantics::HasImpureFinal(*derived);
124         }
125       }
126     }
127     return false;
128   }
129 
130   // Predicate for deallocations caused by block exit and direct deallocation
131   static bool DeallocateAll(const Symbol &) { return true; }
132 
133   // Predicate for deallocations caused by intrinsic assignment
134   static bool DeallocateNonCoarray(const Symbol &component) {
135     return !evaluate::IsCoarray(component);
136   }
137 
138   static bool WillDeallocatePolymorphic(const Symbol &entity,
139       const std::function<bool(const Symbol &)> &WillDeallocate) {
140     return WillDeallocate(entity) && IsPolymorphicAllocatable(entity);
141   }
142 
143   // Is it possible that we will we deallocate a polymorphic entity or one
144   // of its components?
145   static bool MightDeallocatePolymorphic(const Symbol &original,
146       const std::function<bool(const Symbol &)> &WillDeallocate) {
147     const Symbol &symbol{ResolveAssociations(original)};
148     // Check the entity itself, no coarray exception here
149     if (IsPolymorphicAllocatable(symbol)) {
150       return true;
151     }
152     // Check the components
153     if (const auto *details{symbol.detailsIf<ObjectEntityDetails>()}) {
154       if (const DeclTypeSpec * entityType{details->type()}) {
155         if (const DerivedTypeSpec * derivedType{entityType->AsDerived()}) {
156           UltimateComponentIterator ultimates{*derivedType};
157           for (const auto &ultimate : ultimates) {
158             if (WillDeallocatePolymorphic(ultimate, WillDeallocate)) {
159               return true;
160             }
161           }
162         }
163       }
164     }
165     return false;
166   }
167 
168   void SayDeallocateWithImpureFinal(const Symbol &entity, const char *reason) {
169     context_.SayWithDecl(entity, currentStatementSourcePosition_,
170         "Deallocation of an entity with an IMPURE FINAL procedure"
171         " caused by %s not allowed in DO CONCURRENT"_err_en_US,
172         reason);
173   }
174 
175   void SayDeallocateOfPolymorph(
176       parser::CharBlock location, const Symbol &entity, const char *reason) {
177     context_.SayWithDecl(entity, location,
178         "Deallocation of a polymorphic entity caused by %s"
179         " not allowed in DO CONCURRENT"_err_en_US,
180         reason);
181   }
182 
183   // Deallocation caused by block exit
184   // Allocatable entities and all of their allocatable subcomponents will be
185   // deallocated.  This test is different from the other two because it does
186   // not deallocate in cases where the entity itself is not allocatable but
187   // has allocatable polymorphic components
188   void Post(const parser::BlockConstruct &blockConstruct) {
189     const auto &endBlockStmt{
190         std::get<parser::Statement<parser::EndBlockStmt>>(blockConstruct.t)};
191     const Scope &blockScope{context_.FindScope(endBlockStmt.source)};
192     const Scope &doScope{context_.FindScope(doConcurrentSourcePosition_)};
193     if (DoesScopeContain(&doScope, blockScope)) {
194       const char *reason{"block exit"};
195       for (auto &pair : blockScope) {
196         const Symbol &entity{*pair.second};
197         if (IsAllocatable(entity) && !IsSaved(entity) &&
198             MightDeallocatePolymorphic(entity, DeallocateAll)) {
199           SayDeallocateOfPolymorph(endBlockStmt.source, entity, reason);
200         }
201         if (HasImpureFinal(entity)) {
202           SayDeallocateWithImpureFinal(entity, reason);
203         }
204       }
205     }
206   }
207 
208   // Deallocation caused by assignment
209   // Note that this case does not cause deallocation of coarray components
210   void Post(const parser::AssignmentStmt &stmt) {
211     const auto &variable{std::get<parser::Variable>(stmt.t)};
212     if (const Symbol * entity{GetLastName(variable).symbol}) {
213       const char *reason{"assignment"};
214       if (MightDeallocatePolymorphic(*entity, DeallocateNonCoarray)) {
215         SayDeallocateOfPolymorph(variable.GetSource(), *entity, reason);
216       }
217       if (HasImpureFinal(*entity)) {
218         SayDeallocateWithImpureFinal(*entity, reason);
219       }
220     }
221   }
222 
223   // Deallocation from a DEALLOCATE statement
224   // This case is different because DEALLOCATE statements deallocate both
225   // ALLOCATABLE and POINTER entities
226   void Post(const parser::DeallocateStmt &stmt) {
227     const auto &allocateObjectList{
228         std::get<std::list<parser::AllocateObject>>(stmt.t)};
229     for (const auto &allocateObject : allocateObjectList) {
230       const parser::Name &name{GetLastName(allocateObject)};
231       const char *reason{"a DEALLOCATE statement"};
232       if (name.symbol) {
233         const Symbol &entity{*name.symbol};
234         const DeclTypeSpec *entityType{entity.GetType()};
235         if ((entityType && entityType->IsPolymorphic()) || // POINTER case
236             MightDeallocatePolymorphic(entity, DeallocateAll)) {
237           SayDeallocateOfPolymorph(
238               currentStatementSourcePosition_, entity, reason);
239         }
240         if (HasImpureFinal(entity)) {
241           SayDeallocateWithImpureFinal(entity, reason);
242         }
243       }
244     }
245   }
246 
247   // C1137 -- No image control statements in a DO CONCURRENT
248   void Post(const parser::ExecutableConstruct &construct) {
249     if (IsImageControlStmt(construct)) {
250       const parser::CharBlock statementLocation{
251           GetImageControlStmtLocation(construct)};
252       auto &msg{context_.Say(statementLocation,
253           "An image control statement is not allowed in DO"
254           " CONCURRENT"_err_en_US)};
255       if (auto coarrayMsg{GetImageControlStmtCoarrayMsg(construct)}) {
256         msg.Attach(statementLocation, *coarrayMsg);
257       }
258       msg.Attach(doConcurrentSourcePosition_, GetEnclosingDoMsg());
259     }
260   }
261 
262   // C1136 -- No RETURN statements in a DO CONCURRENT
263   void Post(const parser::ReturnStmt &) {
264     context_
265         .Say(currentStatementSourcePosition_,
266             "RETURN is not allowed in DO CONCURRENT"_err_en_US)
267         .Attach(doConcurrentSourcePosition_, GetEnclosingDoMsg());
268   }
269 
270   // C1139: call to impure procedure and ...
271   // C1141: cannot call ieee_get_flag, ieee_[gs]et_halting_mode
272   // It's not necessary to check the ieee_get* procedures because they're
273   // not pure, and impure procedures are caught by checks for constraint C1139
274   void Post(const parser::ProcedureDesignator &procedureDesignator) {
275     if (auto *name{std::get_if<parser::Name>(&procedureDesignator.u)}) {
276       if (name->symbol && !IsPureProcedure(*name->symbol)) {
277         SayWithDo(context_, currentStatementSourcePosition_,
278             "Call to an impure procedure is not allowed in DO"
279             " CONCURRENT"_err_en_US,
280             doConcurrentSourcePosition_);
281       }
282       if (name->symbol &&
283           fromScope(*name->symbol, "__fortran_ieee_exceptions"s)) {
284         if (name->source == "ieee_set_halting_mode") {
285           SayWithDo(context_, currentStatementSourcePosition_,
286               "IEEE_SET_HALTING_MODE is not allowed in DO "
287               "CONCURRENT"_err_en_US,
288               doConcurrentSourcePosition_);
289         }
290       }
291     } else {
292       // C1139: this a procedure component
293       auto &component{std::get<parser::ProcComponentRef>(procedureDesignator.u)
294                           .v.thing.component};
295       if (component.symbol && !IsPureProcedure(*component.symbol)) {
296         SayWithDo(context_, currentStatementSourcePosition_,
297             "Call to an impure procedure component is not allowed"
298             " in DO CONCURRENT"_err_en_US,
299             doConcurrentSourcePosition_);
300       }
301     }
302   }
303 
304   // 11.1.7.5, paragraph 5, no ADVANCE specifier in a DO CONCURRENT
305   void Post(const parser::IoControlSpec &ioControlSpec) {
306     if (auto *charExpr{
307             std::get_if<parser::IoControlSpec::CharExpr>(&ioControlSpec.u)}) {
308       if (std::get<parser::IoControlSpec::CharExpr::Kind>(charExpr->t) ==
309           parser::IoControlSpec::CharExpr::Kind::Advance) {
310         SayWithDo(context_, currentStatementSourcePosition_,
311             "ADVANCE specifier is not allowed in DO"
312             " CONCURRENT"_err_en_US,
313             doConcurrentSourcePosition_);
314       }
315     }
316   }
317 
318 private:
319   bool fromScope(const Symbol &symbol, const std::string &moduleName) {
320     if (symbol.GetUltimate().owner().IsModule() &&
321         symbol.GetUltimate().owner().GetName().value().ToString() ==
322             moduleName) {
323       return true;
324     }
325     return false;
326   }
327 
328   std::set<parser::Label> labels_;
329   parser::CharBlock currentStatementSourcePosition_;
330   SemanticsContext &context_;
331   parser::CharBlock doConcurrentSourcePosition_;
332 }; // class DoConcurrentBodyEnforce
333 
334 // Class for enforcing C1130 -- in a DO CONCURRENT with DEFAULT(NONE),
335 // variables from enclosing scopes must have their locality specified
336 class DoConcurrentVariableEnforce {
337 public:
338   DoConcurrentVariableEnforce(
339       SemanticsContext &context, parser::CharBlock doConcurrentSourcePosition)
340       : context_{context},
341         doConcurrentSourcePosition_{doConcurrentSourcePosition},
342         blockScope_{context.FindScope(doConcurrentSourcePosition_)} {}
343 
344   template <typename T> bool Pre(const T &) { return true; }
345   template <typename T> void Post(const T &) {}
346 
347   // Check to see if the name is a variable from an enclosing scope
348   void Post(const parser::Name &name) {
349     if (const Symbol * symbol{name.symbol}) {
350       if (IsVariableName(*symbol)) {
351         const Scope &variableScope{symbol->owner()};
352         if (DoesScopeContain(&variableScope, blockScope_)) {
353           context_.SayWithDecl(*symbol, name.source,
354               "Variable '%s' from an enclosing scope referenced in DO "
355               "CONCURRENT with DEFAULT(NONE) must appear in a "
356               "locality-spec"_err_en_US,
357               symbol->name());
358         }
359       }
360     }
361   }
362 
363 private:
364   SemanticsContext &context_;
365   parser::CharBlock doConcurrentSourcePosition_;
366   const Scope &blockScope_;
367 }; // class DoConcurrentVariableEnforce
368 
369 // Find a DO or FORALL and enforce semantics checks on its body
370 class DoContext {
371 public:
372   DoContext(SemanticsContext &context, IndexVarKind kind)
373       : context_{context}, kind_{kind} {}
374 
375   // Mark this DO construct as a point of definition for the DO variables
376   // or index-names it contains.  If they're already defined, emit an error
377   // message.  We need to remember both the variable and the source location of
378   // the variable in the DO construct so that we can remove it when we leave
379   // the DO construct and use its location in error messages.
380   void DefineDoVariables(const parser::DoConstruct &doConstruct) {
381     if (doConstruct.IsDoNormal()) {
382       context_.ActivateIndexVar(GetDoVariable(doConstruct), IndexVarKind::DO);
383     } else if (doConstruct.IsDoConcurrent()) {
384       if (const auto &loopControl{doConstruct.GetLoopControl()}) {
385         ActivateIndexVars(GetControls(*loopControl));
386       }
387     }
388   }
389 
390   // Called at the end of a DO construct to deactivate the DO construct
391   void ResetDoVariables(const parser::DoConstruct &doConstruct) {
392     if (doConstruct.IsDoNormal()) {
393       context_.DeactivateIndexVar(GetDoVariable(doConstruct));
394     } else if (doConstruct.IsDoConcurrent()) {
395       if (const auto &loopControl{doConstruct.GetLoopControl()}) {
396         DeactivateIndexVars(GetControls(*loopControl));
397       }
398     }
399   }
400 
401   void ActivateIndexVars(const std::list<parser::ConcurrentControl> &controls) {
402     for (const auto &control : controls) {
403       context_.ActivateIndexVar(std::get<parser::Name>(control.t), kind_);
404     }
405   }
406   void DeactivateIndexVars(
407       const std::list<parser::ConcurrentControl> &controls) {
408     for (const auto &control : controls) {
409       context_.DeactivateIndexVar(std::get<parser::Name>(control.t));
410     }
411   }
412 
413   void Check(const parser::DoConstruct &doConstruct) {
414     if (doConstruct.IsDoConcurrent()) {
415       CheckDoConcurrent(doConstruct);
416       return;
417     }
418     if (doConstruct.IsDoNormal()) {
419       CheckDoNormal(doConstruct);
420       return;
421     }
422     // TODO: handle the other cases
423   }
424 
425   void Check(const parser::ForallStmt &stmt) {
426     CheckConcurrentHeader(GetConcurrentHeader(stmt));
427   }
428   void Check(const parser::ForallConstruct &construct) {
429     CheckConcurrentHeader(GetConcurrentHeader(construct));
430   }
431 
432   void Check(const parser::ForallAssignmentStmt &stmt) {
433     const evaluate::Assignment *assignment{std::visit(
434         common::visitors{[&](const auto &x) { return GetAssignment(x); }},
435         stmt.u)};
436     if (assignment) {
437       CheckForallIndexesUsed(*assignment);
438       CheckForImpureCall(assignment->lhs);
439       CheckForImpureCall(assignment->rhs);
440       if (const auto *proc{
441               std::get_if<evaluate::ProcedureRef>(&assignment->u)}) {
442         CheckForImpureCall(*proc);
443       }
444       std::visit(common::visitors{
445                      [](const evaluate::Assignment::Intrinsic &) {},
446                      [&](const evaluate::ProcedureRef &proc) {
447                        CheckForImpureCall(proc);
448                      },
449                      [&](const evaluate::Assignment::BoundsSpec &bounds) {
450                        for (const auto &bound : bounds) {
451                          CheckForImpureCall(SomeExpr{bound});
452                        }
453                      },
454                      [&](const evaluate::Assignment::BoundsRemapping &bounds) {
455                        for (const auto &bound : bounds) {
456                          CheckForImpureCall(SomeExpr{bound.first});
457                          CheckForImpureCall(SomeExpr{bound.second});
458                        }
459                      },
460                  },
461           assignment->u);
462     }
463   }
464 
465 private:
466   void SayBadDoControl(parser::CharBlock sourceLocation) {
467     context_.Say(sourceLocation, "DO controls should be INTEGER"_err_en_US);
468   }
469 
470   void CheckDoControl(const parser::CharBlock &sourceLocation, bool isReal) {
471     const bool warn{context_.warnOnNonstandardUsage() ||
472         context_.ShouldWarn(common::LanguageFeature::RealDoControls)};
473     if (isReal && !warn) {
474       // No messages for the default case
475     } else if (isReal && warn) {
476       context_.Say(sourceLocation, "DO controls should be INTEGER"_port_en_US);
477     } else {
478       SayBadDoControl(sourceLocation);
479     }
480   }
481 
482   void CheckDoVariable(const parser::ScalarName &scalarName) {
483     const parser::CharBlock &sourceLocation{scalarName.thing.source};
484     if (const Symbol * symbol{scalarName.thing.symbol}) {
485       if (!IsVariableName(*symbol)) {
486         context_.Say(
487             sourceLocation, "DO control must be an INTEGER variable"_err_en_US);
488       } else {
489         const DeclTypeSpec *symType{symbol->GetType()};
490         if (!symType) {
491           SayBadDoControl(sourceLocation);
492         } else {
493           if (!symType->IsNumeric(TypeCategory::Integer)) {
494             CheckDoControl(
495                 sourceLocation, symType->IsNumeric(TypeCategory::Real));
496           }
497         }
498       } // No messages for INTEGER
499     }
500   }
501 
502   // Semantic checks for the limit and step expressions
503   void CheckDoExpression(const parser::ScalarExpr &scalarExpression) {
504     if (const SomeExpr * expr{GetExpr(scalarExpression)}) {
505       if (!ExprHasTypeCategory(*expr, TypeCategory::Integer)) {
506         // No warnings or errors for type INTEGER
507         const parser::CharBlock &loc{scalarExpression.thing.value().source};
508         CheckDoControl(loc, ExprHasTypeCategory(*expr, TypeCategory::Real));
509       }
510     }
511   }
512 
513   void CheckDoNormal(const parser::DoConstruct &doConstruct) {
514     // C1120 -- types of DO variables must be INTEGER, extended by allowing
515     // REAL and DOUBLE PRECISION
516     const Bounds &bounds{GetBounds(doConstruct)};
517     CheckDoVariable(bounds.name);
518     CheckDoExpression(bounds.lower);
519     CheckDoExpression(bounds.upper);
520     if (bounds.step) {
521       CheckDoExpression(*bounds.step);
522       if (IsZero(*bounds.step)) {
523         context_.Say(bounds.step->thing.value().source,
524             "DO step expression should not be zero"_warn_en_US);
525       }
526     }
527   }
528 
529   void CheckDoConcurrent(const parser::DoConstruct &doConstruct) {
530     auto &doStmt{
531         std::get<parser::Statement<parser::NonLabelDoStmt>>(doConstruct.t)};
532     currentStatementSourcePosition_ = doStmt.source;
533 
534     const parser::Block &block{std::get<parser::Block>(doConstruct.t)};
535     DoConcurrentBodyEnforce doConcurrentBodyEnforce{context_, doStmt.source};
536     parser::Walk(block, doConcurrentBodyEnforce);
537 
538     LabelEnforce doConcurrentLabelEnforce{context_,
539         doConcurrentBodyEnforce.labels(), currentStatementSourcePosition_,
540         "DO CONCURRENT"};
541     parser::Walk(block, doConcurrentLabelEnforce);
542 
543     const auto &loopControl{doConstruct.GetLoopControl()};
544     CheckConcurrentLoopControl(*loopControl);
545     CheckLocalitySpecs(*loopControl, block);
546   }
547 
548   // Return a set of symbols whose names are in a Local locality-spec.  Look
549   // the names up in the scope that encloses the DO construct to avoid getting
550   // the local versions of them.  Then follow the host-, use-, and
551   // construct-associations to get the root symbols
552   UnorderedSymbolSet GatherLocals(
553       const std::list<parser::LocalitySpec> &localitySpecs) const {
554     UnorderedSymbolSet symbols;
555     const Scope &parentScope{
556         context_.FindScope(currentStatementSourcePosition_).parent()};
557     // Loop through the LocalitySpec::Local locality-specs
558     for (const auto &ls : localitySpecs) {
559       if (const auto *names{std::get_if<parser::LocalitySpec::Local>(&ls.u)}) {
560         // Loop through the names in the Local locality-spec getting their
561         // symbols
562         for (const parser::Name &name : names->v) {
563           if (const Symbol * symbol{parentScope.FindSymbol(name.source)}) {
564             symbols.insert(ResolveAssociations(*symbol));
565           }
566         }
567       }
568     }
569     return symbols;
570   }
571 
572   static UnorderedSymbolSet GatherSymbolsFromExpression(
573       const parser::Expr &expression) {
574     UnorderedSymbolSet result;
575     if (const auto *expr{GetExpr(expression)}) {
576       for (const Symbol &symbol : evaluate::CollectSymbols(*expr)) {
577         result.insert(ResolveAssociations(symbol));
578       }
579     }
580     return result;
581   }
582 
583   // C1121 - procedures in mask must be pure
584   void CheckMaskIsPure(const parser::ScalarLogicalExpr &mask) const {
585     UnorderedSymbolSet references{
586         GatherSymbolsFromExpression(mask.thing.thing.value())};
587     for (const Symbol &ref : OrderBySourcePosition(references)) {
588       if (IsProcedure(ref) && !IsPureProcedure(ref)) {
589         context_.SayWithDecl(ref, parser::Unwrap<parser::Expr>(mask)->source,
590             "%s mask expression may not reference impure procedure '%s'"_err_en_US,
591             LoopKindName(), ref.name());
592         return;
593       }
594     }
595   }
596 
597   void CheckNoCollisions(const UnorderedSymbolSet &refs,
598       const UnorderedSymbolSet &uses, parser::MessageFixedText &&errorMessage,
599       const parser::CharBlock &refPosition) const {
600     for (const Symbol &ref : OrderBySourcePosition(refs)) {
601       if (uses.find(ref) != uses.end()) {
602         context_.SayWithDecl(ref, refPosition, std::move(errorMessage),
603             LoopKindName(), ref.name());
604         return;
605       }
606     }
607   }
608 
609   void HasNoReferences(const UnorderedSymbolSet &indexNames,
610       const parser::ScalarIntExpr &expr) const {
611     CheckNoCollisions(GatherSymbolsFromExpression(expr.thing.thing.value()),
612         indexNames,
613         "%s limit expression may not reference index variable '%s'"_err_en_US,
614         expr.thing.thing.value().source);
615   }
616 
617   // C1129, names in local locality-specs can't be in mask expressions
618   void CheckMaskDoesNotReferenceLocal(const parser::ScalarLogicalExpr &mask,
619       const UnorderedSymbolSet &localVars) const {
620     CheckNoCollisions(GatherSymbolsFromExpression(mask.thing.thing.value()),
621         localVars,
622         "%s mask expression references variable '%s'"
623         " in LOCAL locality-spec"_err_en_US,
624         mask.thing.thing.value().source);
625   }
626 
627   // C1129, names in local locality-specs can't be in limit or step
628   // expressions
629   void CheckExprDoesNotReferenceLocal(const parser::ScalarIntExpr &expr,
630       const UnorderedSymbolSet &localVars) const {
631     CheckNoCollisions(GatherSymbolsFromExpression(expr.thing.thing.value()),
632         localVars,
633         "%s expression references variable '%s'"
634         " in LOCAL locality-spec"_err_en_US,
635         expr.thing.thing.value().source);
636   }
637 
638   // C1130, DEFAULT(NONE) locality requires names to be in locality-specs to
639   // be used in the body of the DO loop
640   void CheckDefaultNoneImpliesExplicitLocality(
641       const std::list<parser::LocalitySpec> &localitySpecs,
642       const parser::Block &block) const {
643     bool hasDefaultNone{false};
644     for (auto &ls : localitySpecs) {
645       if (std::holds_alternative<parser::LocalitySpec::DefaultNone>(ls.u)) {
646         if (hasDefaultNone) {
647           // C1127, you can only have one DEFAULT(NONE)
648           context_.Say(currentStatementSourcePosition_,
649               "Only one DEFAULT(NONE) may appear"_port_en_US);
650           break;
651         }
652         hasDefaultNone = true;
653       }
654     }
655     if (hasDefaultNone) {
656       DoConcurrentVariableEnforce doConcurrentVariableEnforce{
657           context_, currentStatementSourcePosition_};
658       parser::Walk(block, doConcurrentVariableEnforce);
659     }
660   }
661 
662   // C1123, concurrent limit or step expressions can't reference index-names
663   void CheckConcurrentHeader(const parser::ConcurrentHeader &header) const {
664     if (const auto &mask{
665             std::get<std::optional<parser::ScalarLogicalExpr>>(header.t)}) {
666       CheckMaskIsPure(*mask);
667     }
668     auto &controls{std::get<std::list<parser::ConcurrentControl>>(header.t)};
669     UnorderedSymbolSet indexNames;
670     for (const parser::ConcurrentControl &control : controls) {
671       const auto &indexName{std::get<parser::Name>(control.t)};
672       if (indexName.symbol) {
673         indexNames.insert(*indexName.symbol);
674       }
675     }
676     if (!indexNames.empty()) {
677       for (const parser::ConcurrentControl &control : controls) {
678         HasNoReferences(indexNames, std::get<1>(control.t));
679         HasNoReferences(indexNames, std::get<2>(control.t));
680         if (const auto &intExpr{
681                 std::get<std::optional<parser::ScalarIntExpr>>(control.t)}) {
682           const parser::Expr &expr{intExpr->thing.thing.value()};
683           CheckNoCollisions(GatherSymbolsFromExpression(expr), indexNames,
684               "%s step expression may not reference index variable '%s'"_err_en_US,
685               expr.source);
686           if (IsZero(expr)) {
687             context_.Say(expr.source,
688                 "%s step expression may not be zero"_err_en_US, LoopKindName());
689           }
690         }
691       }
692     }
693   }
694 
695   void CheckLocalitySpecs(
696       const parser::LoopControl &control, const parser::Block &block) const {
697     const auto &concurrent{
698         std::get<parser::LoopControl::Concurrent>(control.u)};
699     const auto &header{std::get<parser::ConcurrentHeader>(concurrent.t)};
700     const auto &localitySpecs{
701         std::get<std::list<parser::LocalitySpec>>(concurrent.t)};
702     if (!localitySpecs.empty()) {
703       const UnorderedSymbolSet &localVars{GatherLocals(localitySpecs)};
704       for (const auto &c : GetControls(control)) {
705         CheckExprDoesNotReferenceLocal(std::get<1>(c.t), localVars);
706         CheckExprDoesNotReferenceLocal(std::get<2>(c.t), localVars);
707         if (const auto &expr{
708                 std::get<std::optional<parser::ScalarIntExpr>>(c.t)}) {
709           CheckExprDoesNotReferenceLocal(*expr, localVars);
710         }
711       }
712       if (const auto &mask{
713               std::get<std::optional<parser::ScalarLogicalExpr>>(header.t)}) {
714         CheckMaskDoesNotReferenceLocal(*mask, localVars);
715       }
716       CheckDefaultNoneImpliesExplicitLocality(localitySpecs, block);
717     }
718   }
719 
720   // check constraints [C1121 .. C1130]
721   void CheckConcurrentLoopControl(const parser::LoopControl &control) const {
722     const auto &concurrent{
723         std::get<parser::LoopControl::Concurrent>(control.u)};
724     CheckConcurrentHeader(std::get<parser::ConcurrentHeader>(concurrent.t));
725   }
726 
727   template <typename T> void CheckForImpureCall(const T &x) {
728     if (auto bad{FindImpureCall(context_.foldingContext(), x)}) {
729       context_.Say(
730           "Impure procedure '%s' may not be referenced in a %s"_err_en_US, *bad,
731           LoopKindName());
732     }
733   }
734 
735   // Each index should be used on the LHS of each assignment in a FORALL
736   void CheckForallIndexesUsed(const evaluate::Assignment &assignment) {
737     SymbolVector indexVars{context_.GetIndexVars(IndexVarKind::FORALL)};
738     if (!indexVars.empty()) {
739       UnorderedSymbolSet symbols{evaluate::CollectSymbols(assignment.lhs)};
740       std::visit(
741           common::visitors{
742               [&](const evaluate::Assignment::BoundsSpec &spec) {
743                 for (const auto &bound : spec) {
744 // TODO: this is working around missing std::set::merge in some versions of
745 // clang that we are building with
746 #ifdef __clang__
747                   auto boundSymbols{evaluate::CollectSymbols(bound)};
748                   symbols.insert(boundSymbols.begin(), boundSymbols.end());
749 #else
750                   symbols.merge(evaluate::CollectSymbols(bound));
751 #endif
752                 }
753               },
754               [&](const evaluate::Assignment::BoundsRemapping &remapping) {
755                 for (const auto &bounds : remapping) {
756 #ifdef __clang__
757                   auto lbSymbols{evaluate::CollectSymbols(bounds.first)};
758                   symbols.insert(lbSymbols.begin(), lbSymbols.end());
759                   auto ubSymbols{evaluate::CollectSymbols(bounds.second)};
760                   symbols.insert(ubSymbols.begin(), ubSymbols.end());
761 #else
762                   symbols.merge(evaluate::CollectSymbols(bounds.first));
763                   symbols.merge(evaluate::CollectSymbols(bounds.second));
764 #endif
765                 }
766               },
767               [](const auto &) {},
768           },
769           assignment.u);
770       for (const Symbol &index : indexVars) {
771         if (symbols.count(index) == 0) {
772           context_.Say("FORALL index variable '%s' not used on left-hand side"
773                        " of assignment"_warn_en_US,
774               index.name());
775         }
776       }
777     }
778   }
779 
780   // For messages where the DO loop must be DO CONCURRENT, make that explicit.
781   const char *LoopKindName() const {
782     return kind_ == IndexVarKind::DO ? "DO CONCURRENT" : "FORALL";
783   }
784 
785   SemanticsContext &context_;
786   const IndexVarKind kind_;
787   parser::CharBlock currentStatementSourcePosition_;
788 }; // class DoContext
789 
790 void DoForallChecker::Enter(const parser::DoConstruct &doConstruct) {
791   DoContext doContext{context_, IndexVarKind::DO};
792   doContext.DefineDoVariables(doConstruct);
793 }
794 
795 void DoForallChecker::Leave(const parser::DoConstruct &doConstruct) {
796   DoContext doContext{context_, IndexVarKind::DO};
797   doContext.Check(doConstruct);
798   doContext.ResetDoVariables(doConstruct);
799 }
800 
801 void DoForallChecker::Enter(const parser::ForallConstruct &construct) {
802   DoContext doContext{context_, IndexVarKind::FORALL};
803   doContext.ActivateIndexVars(GetControls(construct));
804 }
805 void DoForallChecker::Leave(const parser::ForallConstruct &construct) {
806   DoContext doContext{context_, IndexVarKind::FORALL};
807   doContext.Check(construct);
808   doContext.DeactivateIndexVars(GetControls(construct));
809 }
810 
811 void DoForallChecker::Enter(const parser::ForallStmt &stmt) {
812   DoContext doContext{context_, IndexVarKind::FORALL};
813   doContext.ActivateIndexVars(GetControls(stmt));
814 }
815 void DoForallChecker::Leave(const parser::ForallStmt &stmt) {
816   DoContext doContext{context_, IndexVarKind::FORALL};
817   doContext.Check(stmt);
818   doContext.DeactivateIndexVars(GetControls(stmt));
819 }
820 void DoForallChecker::Leave(const parser::ForallAssignmentStmt &stmt) {
821   DoContext doContext{context_, IndexVarKind::FORALL};
822   doContext.Check(stmt);
823 }
824 
825 template <typename A>
826 static parser::CharBlock GetConstructPosition(const A &a) {
827   return std::get<0>(a.t).source;
828 }
829 
830 static parser::CharBlock GetNodePosition(const ConstructNode &construct) {
831   return std::visit(
832       [&](const auto &x) { return GetConstructPosition(*x); }, construct);
833 }
834 
835 void DoForallChecker::SayBadLeave(StmtType stmtType,
836     const char *enclosingStmtName, const ConstructNode &construct) const {
837   context_
838       .Say("%s must not leave a %s statement"_err_en_US, EnumToString(stmtType),
839           enclosingStmtName)
840       .Attach(GetNodePosition(construct), "The construct that was left"_en_US);
841 }
842 
843 static const parser::DoConstruct *MaybeGetDoConstruct(
844     const ConstructNode &construct) {
845   if (const auto *doNode{
846           std::get_if<const parser::DoConstruct *>(&construct)}) {
847     return *doNode;
848   } else {
849     return nullptr;
850   }
851 }
852 
853 static bool ConstructIsDoConcurrent(const ConstructNode &construct) {
854   const parser::DoConstruct *doConstruct{MaybeGetDoConstruct(construct)};
855   return doConstruct && doConstruct->IsDoConcurrent();
856 }
857 
858 // Check that CYCLE and EXIT statements do not cause flow of control to
859 // leave DO CONCURRENT, CRITICAL, or CHANGE TEAM constructs.
860 void DoForallChecker::CheckForBadLeave(
861     StmtType stmtType, const ConstructNode &construct) const {
862   std::visit(common::visitors{
863                  [&](const parser::DoConstruct *doConstructPtr) {
864                    if (doConstructPtr->IsDoConcurrent()) {
865                      // C1135 and C1167 -- CYCLE and EXIT statements can't leave
866                      // a DO CONCURRENT
867                      SayBadLeave(stmtType, "DO CONCURRENT", construct);
868                    }
869                  },
870                  [&](const parser::CriticalConstruct *) {
871                    // C1135 and C1168 -- similarly, for CRITICAL
872                    SayBadLeave(stmtType, "CRITICAL", construct);
873                  },
874                  [&](const parser::ChangeTeamConstruct *) {
875                    // C1135 and C1168 -- similarly, for CHANGE TEAM
876                    SayBadLeave(stmtType, "CHANGE TEAM", construct);
877                  },
878                  [](const auto *) {},
879              },
880       construct);
881 }
882 
883 static bool StmtMatchesConstruct(const parser::Name *stmtName,
884     StmtType stmtType, const std::optional<parser::Name> &constructName,
885     const ConstructNode &construct) {
886   bool inDoConstruct{MaybeGetDoConstruct(construct) != nullptr};
887   if (!stmtName) {
888     return inDoConstruct; // Unlabeled statements match all DO constructs
889   } else if (constructName && constructName->source == stmtName->source) {
890     return stmtType == StmtType::EXIT || inDoConstruct;
891   } else {
892     return false;
893   }
894 }
895 
896 // C1167 Can't EXIT from a DO CONCURRENT
897 void DoForallChecker::CheckDoConcurrentExit(
898     StmtType stmtType, const ConstructNode &construct) const {
899   if (stmtType == StmtType::EXIT && ConstructIsDoConcurrent(construct)) {
900     SayBadLeave(StmtType::EXIT, "DO CONCURRENT", construct);
901   }
902 }
903 
904 // Check nesting violations for a CYCLE or EXIT statement.  Loop up the
905 // nesting levels looking for a construct that matches the CYCLE or EXIT
906 // statment.  At every construct, check for a violation.  If we find a match
907 // without finding a violation, the check is complete.
908 void DoForallChecker::CheckNesting(
909     StmtType stmtType, const parser::Name *stmtName) const {
910   const ConstructStack &stack{context_.constructStack()};
911   for (auto iter{stack.cend()}; iter-- != stack.cbegin();) {
912     const ConstructNode &construct{*iter};
913     const std::optional<parser::Name> &constructName{
914         MaybeGetNodeName(construct)};
915     if (StmtMatchesConstruct(stmtName, stmtType, constructName, construct)) {
916       CheckDoConcurrentExit(stmtType, construct);
917       return; // We got a match, so we're finished checking
918     }
919     CheckForBadLeave(stmtType, construct);
920   }
921 
922   // We haven't found a match in the enclosing constructs
923   if (stmtType == StmtType::EXIT) {
924     context_.Say("No matching construct for EXIT statement"_err_en_US);
925   } else {
926     context_.Say("No matching DO construct for CYCLE statement"_err_en_US);
927   }
928 }
929 
930 // C1135 -- Nesting for CYCLE statements
931 void DoForallChecker::Enter(const parser::CycleStmt &cycleStmt) {
932   CheckNesting(StmtType::CYCLE, common::GetPtrFromOptional(cycleStmt.v));
933 }
934 
935 // C1167 and C1168 -- Nesting for EXIT statements
936 void DoForallChecker::Enter(const parser::ExitStmt &exitStmt) {
937   CheckNesting(StmtType::EXIT, common::GetPtrFromOptional(exitStmt.v));
938 }
939 
940 void DoForallChecker::Leave(const parser::AssignmentStmt &stmt) {
941   const auto &variable{std::get<parser::Variable>(stmt.t)};
942   context_.CheckIndexVarRedefine(variable);
943 }
944 
945 static void CheckIfArgIsDoVar(const evaluate::ActualArgument &arg,
946     const parser::CharBlock location, SemanticsContext &context) {
947   common::Intent intent{arg.dummyIntent()};
948   if (intent == common::Intent::Out || intent == common::Intent::InOut) {
949     if (const SomeExpr * argExpr{arg.UnwrapExpr()}) {
950       if (const Symbol * var{evaluate::UnwrapWholeSymbolDataRef(*argExpr)}) {
951         if (intent == common::Intent::Out) {
952           context.CheckIndexVarRedefine(location, *var);
953         } else {
954           context.WarnIndexVarRedefine(location, *var); // INTENT(INOUT)
955         }
956       }
957     }
958   }
959 }
960 
961 // Check to see if a DO variable is being passed as an actual argument to a
962 // dummy argument whose intent is OUT or INOUT.  To do this, we need to find
963 // the expressions for actual arguments which contain DO variables.  We get the
964 // intents of the dummy arguments from the ProcedureRef in the "typedCall"
965 // field of the CallStmt which was filled in during expression checking.  At
966 // the same time, we need to iterate over the parser::Expr versions of the
967 // actual arguments to get their source locations of the arguments for the
968 // messages.
969 void DoForallChecker::Leave(const parser::CallStmt &callStmt) {
970   if (const auto &typedCall{callStmt.typedCall}) {
971     const auto &parsedArgs{
972         std::get<std::list<parser::ActualArgSpec>>(callStmt.v.t)};
973     auto parsedArgIter{parsedArgs.begin()};
974     const evaluate::ActualArguments &checkedArgs{typedCall->arguments()};
975     for (const auto &checkedOptionalArg : checkedArgs) {
976       if (parsedArgIter == parsedArgs.end()) {
977         break; // No more parsed arguments, we're done.
978       }
979       const auto &parsedArg{std::get<parser::ActualArg>(parsedArgIter->t)};
980       ++parsedArgIter;
981       if (checkedOptionalArg) {
982         const evaluate::ActualArgument &checkedArg{*checkedOptionalArg};
983         if (const auto *parsedExpr{
984                 std::get_if<common::Indirection<parser::Expr>>(&parsedArg.u)}) {
985           CheckIfArgIsDoVar(checkedArg, parsedExpr->value().source, context_);
986         }
987       }
988     }
989   }
990 }
991 
992 void DoForallChecker::Leave(const parser::ConnectSpec &connectSpec) {
993   const auto *newunit{
994       std::get_if<parser::ConnectSpec::Newunit>(&connectSpec.u)};
995   if (newunit) {
996     context_.CheckIndexVarRedefine(newunit->v.thing.thing);
997   }
998 }
999 
1000 using ActualArgumentSet = std::set<evaluate::ActualArgumentRef>;
1001 
1002 struct CollectActualArgumentsHelper
1003     : public evaluate::SetTraverse<CollectActualArgumentsHelper,
1004           ActualArgumentSet> {
1005   using Base = SetTraverse<CollectActualArgumentsHelper, ActualArgumentSet>;
1006   CollectActualArgumentsHelper() : Base{*this} {}
1007   using Base::operator();
1008   ActualArgumentSet operator()(const evaluate::ActualArgument &arg) const {
1009     return Combine(ActualArgumentSet{arg},
1010         CollectActualArgumentsHelper{}(arg.UnwrapExpr()));
1011   }
1012 };
1013 
1014 template <typename A> ActualArgumentSet CollectActualArguments(const A &x) {
1015   return CollectActualArgumentsHelper{}(x);
1016 }
1017 
1018 template ActualArgumentSet CollectActualArguments(const SomeExpr &);
1019 
1020 void DoForallChecker::Enter(const parser::Expr &parsedExpr) { ++exprDepth_; }
1021 
1022 void DoForallChecker::Leave(const parser::Expr &parsedExpr) {
1023   CHECK(exprDepth_ > 0);
1024   if (--exprDepth_ == 0) { // Only check top level expressions
1025     if (const SomeExpr * expr{GetExpr(parsedExpr)}) {
1026       ActualArgumentSet argSet{CollectActualArguments(*expr)};
1027       for (const evaluate::ActualArgumentRef &argRef : argSet) {
1028         CheckIfArgIsDoVar(*argRef, parsedExpr.source, context_);
1029       }
1030     }
1031   }
1032 }
1033 
1034 void DoForallChecker::Leave(const parser::InquireSpec &inquireSpec) {
1035   const auto *intVar{std::get_if<parser::InquireSpec::IntVar>(&inquireSpec.u)};
1036   if (intVar) {
1037     const auto &scalar{std::get<parser::ScalarIntVariable>(intVar->t)};
1038     context_.CheckIndexVarRedefine(scalar.thing.thing);
1039   }
1040 }
1041 
1042 void DoForallChecker::Leave(const parser::IoControlSpec &ioControlSpec) {
1043   const auto *size{std::get_if<parser::IoControlSpec::Size>(&ioControlSpec.u)};
1044   if (size) {
1045     context_.CheckIndexVarRedefine(size->v.thing.thing);
1046   }
1047 }
1048 
1049 void DoForallChecker::Leave(const parser::OutputImpliedDo &outputImpliedDo) {
1050   const auto &control{std::get<parser::IoImpliedDoControl>(outputImpliedDo.t)};
1051   const parser::Name &name{control.name.thing.thing};
1052   context_.CheckIndexVarRedefine(name.source, *name.symbol);
1053 }
1054 
1055 void DoForallChecker::Leave(const parser::StatVariable &statVariable) {
1056   context_.CheckIndexVarRedefine(statVariable.v.thing.thing);
1057 }
1058 
1059 } // namespace Fortran::semantics
1060