1 //===-- lib/Semantics/check-declarations.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 // Static declaration checking
10
11 #include "check-declarations.h"
12 #include "pointer-assignment.h"
13 #include "flang/Evaluate/check-expression.h"
14 #include "flang/Evaluate/fold.h"
15 #include "flang/Evaluate/tools.h"
16 #include "flang/Semantics/scope.h"
17 #include "flang/Semantics/semantics.h"
18 #include "flang/Semantics/symbol.h"
19 #include "flang/Semantics/tools.h"
20 #include "flang/Semantics/type.h"
21 #include <algorithm>
22
23 namespace Fortran::semantics {
24
25 namespace characteristics = evaluate::characteristics;
26 using characteristics::DummyArgument;
27 using characteristics::DummyDataObject;
28 using characteristics::DummyProcedure;
29 using characteristics::FunctionResult;
30 using characteristics::Procedure;
31
32 class CheckHelper {
33 public:
CheckHelper(SemanticsContext & c)34 explicit CheckHelper(SemanticsContext &c) : context_{c} {}
CheckHelper(SemanticsContext & c,const Scope & s)35 CheckHelper(SemanticsContext &c, const Scope &s) : context_{c}, scope_{&s} {}
36
context()37 SemanticsContext &context() { return context_; }
Check()38 void Check() { Check(context_.globalScope()); }
39 void Check(const ParamValue &, bool canBeAssumed);
Check(const Bound & bound)40 void Check(const Bound &bound) { CheckSpecExpr(bound.GetExplicit()); }
Check(const ShapeSpec & spec)41 void Check(const ShapeSpec &spec) {
42 Check(spec.lbound());
43 Check(spec.ubound());
44 }
45 void Check(const ArraySpec &);
46 void Check(const DeclTypeSpec &, bool canHaveAssumedTypeParameters);
47 void Check(const Symbol &);
48 void Check(const Scope &);
49 const Procedure *Characterize(const Symbol &);
50
51 private:
CheckSpecExpr(const A & x)52 template <typename A> void CheckSpecExpr(const A &x) {
53 evaluate::CheckSpecificationExpr(x, DEREF(scope_), foldingContext_);
54 }
55 void CheckValue(const Symbol &, const DerivedTypeSpec *);
56 void CheckVolatile(
57 const Symbol &, bool isAssociated, const DerivedTypeSpec *);
58 void CheckPointer(const Symbol &);
59 void CheckPassArg(
60 const Symbol &proc, const Symbol *interface, const WithPassArg &);
61 void CheckProcBinding(const Symbol &, const ProcBindingDetails &);
62 void CheckObjectEntity(const Symbol &, const ObjectEntityDetails &);
63 void CheckPointerInitialization(const Symbol &);
64 void CheckArraySpec(const Symbol &, const ArraySpec &);
65 void CheckProcEntity(const Symbol &, const ProcEntityDetails &);
66 void CheckSubprogram(const Symbol &, const SubprogramDetails &);
67 void CheckAssumedTypeEntity(const Symbol &, const ObjectEntityDetails &);
68 void CheckDerivedType(const Symbol &, const DerivedTypeDetails &);
69 bool CheckFinal(
70 const Symbol &subroutine, SourceName, const Symbol &derivedType);
71 bool CheckDistinguishableFinals(const Symbol &f1, SourceName f1name,
72 const Symbol &f2, SourceName f2name, const Symbol &derivedType);
73 void CheckGeneric(const Symbol &, const GenericDetails &);
74 void CheckHostAssoc(const Symbol &, const HostAssocDetails &);
75 bool CheckDefinedOperator(
76 SourceName, GenericKind, const Symbol &, const Procedure &);
77 std::optional<parser::MessageFixedText> CheckNumberOfArgs(
78 const GenericKind &, std::size_t);
79 bool CheckDefinedOperatorArg(
80 const SourceName &, const Symbol &, const Procedure &, std::size_t);
81 bool CheckDefinedAssignment(const Symbol &, const Procedure &);
82 bool CheckDefinedAssignmentArg(const Symbol &, const DummyArgument &, int);
83 void CheckSpecificsAreDistinguishable(const Symbol &, const GenericDetails &);
84 void CheckEquivalenceSet(const EquivalenceSet &);
85 void CheckBlockData(const Scope &);
86 void CheckGenericOps(const Scope &);
87 bool CheckConflicting(const Symbol &, Attr, Attr);
88 void WarnMissingFinal(const Symbol &);
InPure() const89 bool InPure() const {
90 return innermostSymbol_ && IsPureProcedure(*innermostSymbol_);
91 }
InFunction() const92 bool InFunction() const {
93 return innermostSymbol_ && IsFunction(*innermostSymbol_);
94 }
95 template <typename... A>
SayWithDeclaration(const Symbol & symbol,A &&...x)96 void SayWithDeclaration(const Symbol &symbol, A &&...x) {
97 if (parser::Message * msg{messages_.Say(std::forward<A>(x)...)}) {
98 if (messages_.at().begin() != symbol.name().begin()) {
99 evaluate::AttachDeclaration(*msg, symbol);
100 }
101 }
102 }
103 bool IsResultOkToDiffer(const FunctionResult &);
104
105 SemanticsContext &context_;
106 evaluate::FoldingContext &foldingContext_{context_.foldingContext()};
107 parser::ContextualMessages &messages_{foldingContext_.messages()};
108 const Scope *scope_{nullptr};
109 bool scopeIsUninstantiatedPDT_{false};
110 // This symbol is the one attached to the innermost enclosing scope
111 // that has a symbol.
112 const Symbol *innermostSymbol_{nullptr};
113 // Cache of calls to Procedure::Characterize(Symbol)
114 std::map<SymbolRef, std::optional<Procedure>> characterizeCache_;
115 };
116
117 class DistinguishabilityHelper {
118 public:
DistinguishabilityHelper(SemanticsContext & context)119 DistinguishabilityHelper(SemanticsContext &context) : context_{context} {}
120 void Add(const Symbol &, GenericKind, const Symbol &, const Procedure &);
121 void Check(const Scope &);
122
123 private:
124 void SayNotDistinguishable(const Scope &, const SourceName &, GenericKind,
125 const Symbol &, const Symbol &);
126 void AttachDeclaration(parser::Message &, const Scope &, const Symbol &);
127
128 SemanticsContext &context_;
129 struct ProcedureInfo {
130 GenericKind kind;
131 const Symbol &symbol;
132 const Procedure &procedure;
133 };
134 std::map<SourceName, std::vector<ProcedureInfo>> nameToInfo_;
135 };
136
Check(const ParamValue & value,bool canBeAssumed)137 void CheckHelper::Check(const ParamValue &value, bool canBeAssumed) {
138 if (value.isAssumed()) {
139 if (!canBeAssumed) { // C795, C721, C726
140 messages_.Say(
141 "An assumed (*) type parameter may be used only for a (non-statement"
142 " function) dummy argument, associate name, named constant, or"
143 " external function result"_err_en_US);
144 }
145 } else {
146 CheckSpecExpr(value.GetExplicit());
147 }
148 }
149
Check(const ArraySpec & shape)150 void CheckHelper::Check(const ArraySpec &shape) {
151 for (const auto &spec : shape) {
152 Check(spec);
153 }
154 }
155
Check(const DeclTypeSpec & type,bool canHaveAssumedTypeParameters)156 void CheckHelper::Check(
157 const DeclTypeSpec &type, bool canHaveAssumedTypeParameters) {
158 if (type.category() == DeclTypeSpec::Character) {
159 Check(type.characterTypeSpec().length(), canHaveAssumedTypeParameters);
160 } else if (const DerivedTypeSpec * derived{type.AsDerived()}) {
161 for (auto &parm : derived->parameters()) {
162 Check(parm.second, canHaveAssumedTypeParameters);
163 }
164 }
165 }
166
Check(const Symbol & symbol)167 void CheckHelper::Check(const Symbol &symbol) {
168 if (context_.HasError(symbol)) {
169 return;
170 }
171 auto restorer{messages_.SetLocation(symbol.name())};
172 context_.set_location(symbol.name());
173 const DeclTypeSpec *type{symbol.GetType()};
174 const DerivedTypeSpec *derived{type ? type->AsDerived() : nullptr};
175 bool isAssociated{symbol.has<UseDetails>() || symbol.has<HostAssocDetails>()};
176 if (symbol.attrs().test(Attr::VOLATILE)) {
177 CheckVolatile(symbol, isAssociated, derived);
178 }
179 if (isAssociated) {
180 if (const auto *details{symbol.detailsIf<HostAssocDetails>()}) {
181 CheckHostAssoc(symbol, *details);
182 }
183 return; // no other checks on associated symbols
184 }
185 if (IsPointer(symbol)) {
186 CheckPointer(symbol);
187 }
188 std::visit(
189 common::visitors{
190 [&](const ProcBindingDetails &x) { CheckProcBinding(symbol, x); },
191 [&](const ObjectEntityDetails &x) { CheckObjectEntity(symbol, x); },
192 [&](const ProcEntityDetails &x) { CheckProcEntity(symbol, x); },
193 [&](const SubprogramDetails &x) { CheckSubprogram(symbol, x); },
194 [&](const DerivedTypeDetails &x) { CheckDerivedType(symbol, x); },
195 [&](const GenericDetails &x) { CheckGeneric(symbol, x); },
196 [](const auto &) {},
197 },
198 symbol.details());
199 if (InPure()) {
200 if (IsSaved(symbol)) {
201 messages_.Say(
202 "A pure subprogram may not have a variable with the SAVE attribute"_err_en_US);
203 }
204 if (symbol.attrs().test(Attr::VOLATILE)) {
205 messages_.Say(
206 "A pure subprogram may not have a variable with the VOLATILE attribute"_err_en_US);
207 }
208 if (IsProcedure(symbol) && !IsPureProcedure(symbol) && IsDummy(symbol)) {
209 messages_.Say(
210 "A dummy procedure of a pure subprogram must be pure"_err_en_US);
211 }
212 if (!IsDummy(symbol) && !IsFunctionResult(symbol)) {
213 if (IsPolymorphicAllocatable(symbol)) {
214 SayWithDeclaration(symbol,
215 "Deallocation of polymorphic object '%s' is not permitted in a pure subprogram"_err_en_US,
216 symbol.name());
217 } else if (derived) {
218 if (auto bad{FindPolymorphicAllocatableUltimateComponent(*derived)}) {
219 SayWithDeclaration(*bad,
220 "Deallocation of polymorphic object '%s%s' is not permitted in a pure subprogram"_err_en_US,
221 symbol.name(), bad.BuildResultDesignatorName());
222 }
223 }
224 }
225 }
226 if (type) { // Section 7.2, paragraph 7
227 bool canHaveAssumedParameter{IsNamedConstant(symbol) ||
228 (IsAssumedLengthCharacter(symbol) && // C722
229 IsExternal(symbol)) ||
230 symbol.test(Symbol::Flag::ParentComp)};
231 if (!IsStmtFunctionDummy(symbol)) { // C726
232 if (const auto *object{symbol.detailsIf<ObjectEntityDetails>()}) {
233 canHaveAssumedParameter |= object->isDummy() ||
234 (object->isFuncResult() &&
235 type->category() == DeclTypeSpec::Character) ||
236 IsStmtFunctionResult(symbol); // Avoids multiple messages
237 } else {
238 canHaveAssumedParameter |= symbol.has<AssocEntityDetails>();
239 }
240 }
241 Check(*type, canHaveAssumedParameter);
242 if (InPure() && InFunction() && IsFunctionResult(symbol)) {
243 if (derived && HasImpureFinal(*derived)) { // C1584
244 messages_.Say(
245 "Result of pure function may not have an impure FINAL subroutine"_err_en_US);
246 }
247 if (type->IsPolymorphic() && IsAllocatable(symbol)) { // C1585
248 messages_.Say(
249 "Result of pure function may not be both polymorphic and ALLOCATABLE"_err_en_US);
250 }
251 if (derived) {
252 if (auto bad{FindPolymorphicAllocatableUltimateComponent(*derived)}) {
253 SayWithDeclaration(*bad,
254 "Result of pure function may not have polymorphic ALLOCATABLE ultimate component '%s'"_err_en_US,
255 bad.BuildResultDesignatorName());
256 }
257 }
258 }
259 }
260 if (IsAssumedLengthCharacter(symbol) && IsExternal(symbol)) { // C723
261 if (symbol.attrs().test(Attr::RECURSIVE)) {
262 messages_.Say(
263 "An assumed-length CHARACTER(*) function cannot be RECURSIVE"_err_en_US);
264 }
265 if (symbol.Rank() > 0) {
266 messages_.Say(
267 "An assumed-length CHARACTER(*) function cannot return an array"_err_en_US);
268 }
269 if (symbol.attrs().test(Attr::PURE)) {
270 messages_.Say(
271 "An assumed-length CHARACTER(*) function cannot be PURE"_err_en_US);
272 }
273 if (symbol.attrs().test(Attr::ELEMENTAL)) {
274 messages_.Say(
275 "An assumed-length CHARACTER(*) function cannot be ELEMENTAL"_err_en_US);
276 }
277 if (const Symbol * result{FindFunctionResult(symbol)}) {
278 if (IsPointer(*result)) {
279 messages_.Say(
280 "An assumed-length CHARACTER(*) function cannot return a POINTER"_err_en_US);
281 }
282 }
283 }
284 if (symbol.attrs().test(Attr::VALUE)) {
285 CheckValue(symbol, derived);
286 }
287 if (symbol.attrs().test(Attr::CONTIGUOUS) && IsPointer(symbol) &&
288 symbol.Rank() == 0) { // C830
289 messages_.Say("CONTIGUOUS POINTER must be an array"_err_en_US);
290 }
291 if (IsDummy(symbol)) {
292 if (IsNamedConstant(symbol)) {
293 messages_.Say(
294 "A dummy argument may not also be a named constant"_err_en_US);
295 }
296 if (IsSaved(symbol)) {
297 messages_.Say(
298 "A dummy argument may not have the SAVE attribute"_err_en_US);
299 }
300 } else if (IsFunctionResult(symbol)) {
301 if (IsSaved(symbol)) {
302 messages_.Say(
303 "A function result may not have the SAVE attribute"_err_en_US);
304 }
305 }
306 if (symbol.owner().IsDerivedType() &&
307 (symbol.attrs().test(Attr::CONTIGUOUS) &&
308 !(IsPointer(symbol) && symbol.Rank() > 0))) { // C752
309 messages_.Say(
310 "A CONTIGUOUS component must be an array with the POINTER attribute"_err_en_US);
311 }
312 if (symbol.owner().IsModule() && IsAutomatic(symbol)) {
313 messages_.Say(
314 "Automatic data object '%s' may not appear in the specification part"
315 " of a module"_err_en_US,
316 symbol.name());
317 }
318 }
319
CheckValue(const Symbol & symbol,const DerivedTypeSpec * derived)320 void CheckHelper::CheckValue(
321 const Symbol &symbol, const DerivedTypeSpec *derived) { // C863 - C865
322 if (!IsDummy(symbol)) {
323 messages_.Say(
324 "VALUE attribute may apply only to a dummy argument"_err_en_US);
325 }
326 if (IsProcedure(symbol)) {
327 messages_.Say(
328 "VALUE attribute may apply only to a dummy data object"_err_en_US);
329 }
330 if (IsAssumedSizeArray(symbol)) {
331 messages_.Say(
332 "VALUE attribute may not apply to an assumed-size array"_err_en_US);
333 }
334 if (IsCoarray(symbol)) {
335 messages_.Say("VALUE attribute may not apply to a coarray"_err_en_US);
336 }
337 if (IsAllocatable(symbol)) {
338 messages_.Say("VALUE attribute may not apply to an ALLOCATABLE"_err_en_US);
339 } else if (IsPointer(symbol)) {
340 messages_.Say("VALUE attribute may not apply to a POINTER"_err_en_US);
341 }
342 if (IsIntentInOut(symbol)) {
343 messages_.Say(
344 "VALUE attribute may not apply to an INTENT(IN OUT) argument"_err_en_US);
345 } else if (IsIntentOut(symbol)) {
346 messages_.Say(
347 "VALUE attribute may not apply to an INTENT(OUT) argument"_err_en_US);
348 }
349 if (symbol.attrs().test(Attr::VOLATILE)) {
350 messages_.Say("VALUE attribute may not apply to a VOLATILE"_err_en_US);
351 }
352 if (innermostSymbol_ && IsBindCProcedure(*innermostSymbol_) &&
353 IsOptional(symbol)) {
354 messages_.Say(
355 "VALUE attribute may not apply to an OPTIONAL in a BIND(C) procedure"_err_en_US);
356 }
357 if (derived) {
358 if (FindCoarrayUltimateComponent(*derived)) {
359 messages_.Say(
360 "VALUE attribute may not apply to a type with a coarray ultimate component"_err_en_US);
361 }
362 }
363 }
364
CheckAssumedTypeEntity(const Symbol & symbol,const ObjectEntityDetails & details)365 void CheckHelper::CheckAssumedTypeEntity( // C709
366 const Symbol &symbol, const ObjectEntityDetails &details) {
367 if (const DeclTypeSpec * type{symbol.GetType()};
368 type && type->category() == DeclTypeSpec::TypeStar) {
369 if (!IsDummy(symbol)) {
370 messages_.Say(
371 "Assumed-type entity '%s' must be a dummy argument"_err_en_US,
372 symbol.name());
373 } else {
374 if (symbol.attrs().test(Attr::ALLOCATABLE)) {
375 messages_.Say("Assumed-type argument '%s' cannot have the ALLOCATABLE"
376 " attribute"_err_en_US,
377 symbol.name());
378 }
379 if (symbol.attrs().test(Attr::POINTER)) {
380 messages_.Say("Assumed-type argument '%s' cannot have the POINTER"
381 " attribute"_err_en_US,
382 symbol.name());
383 }
384 if (symbol.attrs().test(Attr::VALUE)) {
385 messages_.Say("Assumed-type argument '%s' cannot have the VALUE"
386 " attribute"_err_en_US,
387 symbol.name());
388 }
389 if (symbol.attrs().test(Attr::INTENT_OUT)) {
390 messages_.Say(
391 "Assumed-type argument '%s' cannot be INTENT(OUT)"_err_en_US,
392 symbol.name());
393 }
394 if (IsCoarray(symbol)) {
395 messages_.Say(
396 "Assumed-type argument '%s' cannot be a coarray"_err_en_US,
397 symbol.name());
398 }
399 if (details.IsArray() && details.shape().IsExplicitShape()) {
400 messages_.Say(
401 "Assumed-type array argument 'arg8' must be assumed shape,"
402 " assumed size, or assumed rank"_err_en_US,
403 symbol.name());
404 }
405 }
406 }
407 }
408
CheckObjectEntity(const Symbol & symbol,const ObjectEntityDetails & details)409 void CheckHelper::CheckObjectEntity(
410 const Symbol &symbol, const ObjectEntityDetails &details) {
411 CheckArraySpec(symbol, details.shape());
412 Check(details.shape());
413 Check(details.coshape());
414 CheckAssumedTypeEntity(symbol, details);
415 WarnMissingFinal(symbol);
416 if (!details.coshape().empty()) {
417 bool isDeferredShape{details.coshape().IsDeferredShape()};
418 if (IsAllocatable(symbol)) {
419 if (!isDeferredShape) { // C827
420 messages_.Say("'%s' is an ALLOCATABLE coarray and must have a deferred"
421 " coshape"_err_en_US,
422 symbol.name());
423 }
424 } else if (symbol.owner().IsDerivedType()) { // C746
425 std::string deferredMsg{
426 isDeferredShape ? "" : " and have a deferred coshape"};
427 messages_.Say("Component '%s' is a coarray and must have the ALLOCATABLE"
428 " attribute%s"_err_en_US,
429 symbol.name(), deferredMsg);
430 } else {
431 if (!details.coshape().IsAssumedSize()) { // C828
432 messages_.Say(
433 "Component '%s' is a non-ALLOCATABLE coarray and must have"
434 " an explicit coshape"_err_en_US,
435 symbol.name());
436 }
437 }
438 }
439 if (details.isDummy()) {
440 if (symbol.attrs().test(Attr::INTENT_OUT)) {
441 if (FindUltimateComponent(symbol, [](const Symbol &x) {
442 return IsCoarray(x) && IsAllocatable(x);
443 })) { // C846
444 messages_.Say(
445 "An INTENT(OUT) dummy argument may not be, or contain, an ALLOCATABLE coarray"_err_en_US);
446 }
447 if (IsOrContainsEventOrLockComponent(symbol)) { // C847
448 messages_.Say(
449 "An INTENT(OUT) dummy argument may not be, or contain, EVENT_TYPE or LOCK_TYPE"_err_en_US);
450 }
451 }
452 if (InPure() && !IsStmtFunction(DEREF(innermostSymbol_)) &&
453 !IsPointer(symbol) && !IsIntentIn(symbol) &&
454 !symbol.attrs().test(Attr::VALUE)) {
455 if (InFunction()) { // C1583
456 messages_.Say(
457 "non-POINTER dummy argument of pure function must be INTENT(IN) or VALUE"_err_en_US);
458 } else if (IsIntentOut(symbol)) {
459 if (const DeclTypeSpec * type{details.type()}) {
460 if (type && type->IsPolymorphic()) { // C1588
461 messages_.Say(
462 "An INTENT(OUT) dummy argument of a pure subroutine may not be polymorphic"_err_en_US);
463 } else if (const DerivedTypeSpec * derived{type->AsDerived()}) {
464 if (FindUltimateComponent(*derived, [](const Symbol &x) {
465 const DeclTypeSpec *type{x.GetType()};
466 return type && type->IsPolymorphic();
467 })) { // C1588
468 messages_.Say(
469 "An INTENT(OUT) dummy argument of a pure subroutine may not have a polymorphic ultimate component"_err_en_US);
470 }
471 if (HasImpureFinal(*derived)) { // C1587
472 messages_.Say(
473 "An INTENT(OUT) dummy argument of a pure subroutine may not have an impure FINAL subroutine"_err_en_US);
474 }
475 }
476 }
477 } else if (!IsIntentInOut(symbol)) { // C1586
478 messages_.Say(
479 "non-POINTER dummy argument of pure subroutine must have INTENT() or VALUE attribute"_err_en_US);
480 }
481 }
482 }
483 if (IsInitialized(symbol, true /* ignore DATA inits */)) { // C808
484 CheckPointerInitialization(symbol);
485 if (IsAutomatic(symbol)) {
486 messages_.Say(
487 "An automatic variable or component must not be initialized"_err_en_US);
488 } else if (IsDummy(symbol)) {
489 messages_.Say("A dummy argument must not be initialized"_err_en_US);
490 } else if (IsFunctionResult(symbol)) {
491 messages_.Say("A function result must not be initialized"_err_en_US);
492 } else if (IsInBlankCommon(symbol)) {
493 messages_.Say(
494 "A variable in blank COMMON should not be initialized"_en_US);
495 }
496 }
497 if (symbol.owner().kind() == Scope::Kind::BlockData) {
498 if (IsAllocatable(symbol)) {
499 messages_.Say(
500 "An ALLOCATABLE variable may not appear in a BLOCK DATA subprogram"_err_en_US);
501 } else if (IsInitialized(symbol) && !FindCommonBlockContaining(symbol)) {
502 messages_.Say(
503 "An initialized variable in BLOCK DATA must be in a COMMON block"_err_en_US);
504 }
505 }
506 if (const DeclTypeSpec * type{details.type()}) { // C708
507 if (type->IsPolymorphic() &&
508 !(type->IsAssumedType() || IsAllocatableOrPointer(symbol) ||
509 IsDummy(symbol))) {
510 messages_.Say("CLASS entity '%s' must be a dummy argument or have "
511 "ALLOCATABLE or POINTER attribute"_err_en_US,
512 symbol.name());
513 }
514 }
515 }
516
CheckPointerInitialization(const Symbol & symbol)517 void CheckHelper::CheckPointerInitialization(const Symbol &symbol) {
518 if (IsPointer(symbol) && !context_.HasError(symbol) &&
519 !scopeIsUninstantiatedPDT_) {
520 if (const auto *object{symbol.detailsIf<ObjectEntityDetails>()}) {
521 if (object->init()) { // C764, C765; C808
522 if (auto dyType{evaluate::DynamicType::From(symbol)}) {
523 if (auto designator{evaluate::TypedWrapper<evaluate::Designator>(
524 *dyType, evaluate::DataRef{symbol})}) {
525 auto restorer{messages_.SetLocation(symbol.name())};
526 context_.set_location(symbol.name());
527 CheckInitialTarget(foldingContext_, *designator, *object->init());
528 }
529 }
530 }
531 } else if (const auto *proc{symbol.detailsIf<ProcEntityDetails>()}) {
532 if (proc->init() && *proc->init()) {
533 // C1519 - must be nonelemental external or module procedure,
534 // or an unrestricted specific intrinsic function.
535 const Symbol &ultimate{(*proc->init())->GetUltimate()};
536 if (ultimate.attrs().test(Attr::INTRINSIC)) {
537 } else if (!ultimate.attrs().test(Attr::EXTERNAL) &&
538 ultimate.owner().kind() != Scope::Kind::Module) {
539 context_.Say("Procedure pointer '%s' initializer '%s' is neither "
540 "an external nor a module procedure"_err_en_US,
541 symbol.name(), ultimate.name());
542 } else if (ultimate.attrs().test(Attr::ELEMENTAL)) {
543 context_.Say("Procedure pointer '%s' cannot be initialized with the "
544 "elemental procedure '%s"_err_en_US,
545 symbol.name(), ultimate.name());
546 } else {
547 // TODO: Check the "shalls" in the 15.4.3.6 paragraphs 7-10.
548 }
549 }
550 }
551 }
552 }
553
554 // The six different kinds of array-specs:
555 // array-spec -> explicit-shape-list | deferred-shape-list
556 // | assumed-shape-list | implied-shape-list
557 // | assumed-size | assumed-rank
558 // explicit-shape -> [ lb : ] ub
559 // deferred-shape -> :
560 // assumed-shape -> [ lb ] :
561 // implied-shape -> [ lb : ] *
562 // assumed-size -> [ explicit-shape-list , ] [ lb : ] *
563 // assumed-rank -> ..
564 // Note:
565 // - deferred-shape is also an assumed-shape
566 // - A single "*" or "lb:*" might be assumed-size or implied-shape-list
CheckArraySpec(const Symbol & symbol,const ArraySpec & arraySpec)567 void CheckHelper::CheckArraySpec(
568 const Symbol &symbol, const ArraySpec &arraySpec) {
569 if (arraySpec.Rank() == 0) {
570 return;
571 }
572 bool isExplicit{arraySpec.IsExplicitShape()};
573 bool isDeferred{arraySpec.IsDeferredShape()};
574 bool isImplied{arraySpec.IsImpliedShape()};
575 bool isAssumedShape{arraySpec.IsAssumedShape()};
576 bool isAssumedSize{arraySpec.IsAssumedSize()};
577 bool isAssumedRank{arraySpec.IsAssumedRank()};
578 std::optional<parser::MessageFixedText> msg;
579 if (symbol.test(Symbol::Flag::CrayPointee) && !isExplicit && !isAssumedSize) {
580 msg = "Cray pointee '%s' must have must have explicit shape or"
581 " assumed size"_err_en_US;
582 } else if (IsAllocatableOrPointer(symbol) && !isDeferred && !isAssumedRank) {
583 if (symbol.owner().IsDerivedType()) { // C745
584 if (IsAllocatable(symbol)) {
585 msg = "Allocatable array component '%s' must have"
586 " deferred shape"_err_en_US;
587 } else {
588 msg = "Array pointer component '%s' must have deferred shape"_err_en_US;
589 }
590 } else {
591 if (IsAllocatable(symbol)) { // C832
592 msg = "Allocatable array '%s' must have deferred shape or"
593 " assumed rank"_err_en_US;
594 } else {
595 msg = "Array pointer '%s' must have deferred shape or"
596 " assumed rank"_err_en_US;
597 }
598 }
599 } else if (IsDummy(symbol)) {
600 if (isImplied && !isAssumedSize) { // C836
601 msg = "Dummy array argument '%s' may not have implied shape"_err_en_US;
602 }
603 } else if (isAssumedShape && !isDeferred) {
604 msg = "Assumed-shape array '%s' must be a dummy argument"_err_en_US;
605 } else if (isAssumedSize && !isImplied) { // C833
606 msg = "Assumed-size array '%s' must be a dummy argument"_err_en_US;
607 } else if (isAssumedRank) { // C837
608 msg = "Assumed-rank array '%s' must be a dummy argument"_err_en_US;
609 } else if (isImplied) {
610 if (!IsNamedConstant(symbol)) { // C836
611 msg = "Implied-shape array '%s' must be a named constant"_err_en_US;
612 }
613 } else if (IsNamedConstant(symbol)) {
614 if (!isExplicit && !isImplied) {
615 msg = "Named constant '%s' array must have constant or"
616 " implied shape"_err_en_US;
617 }
618 } else if (!IsAllocatableOrPointer(symbol) && !isExplicit) {
619 if (symbol.owner().IsDerivedType()) { // C749
620 msg = "Component array '%s' without ALLOCATABLE or POINTER attribute must"
621 " have explicit shape"_err_en_US;
622 } else { // C816
623 msg = "Array '%s' without ALLOCATABLE or POINTER attribute must have"
624 " explicit shape"_err_en_US;
625 }
626 }
627 if (msg) {
628 context_.Say(std::move(*msg), symbol.name());
629 }
630 }
631
CheckProcEntity(const Symbol & symbol,const ProcEntityDetails & details)632 void CheckHelper::CheckProcEntity(
633 const Symbol &symbol, const ProcEntityDetails &details) {
634 if (details.isDummy()) {
635 const Symbol *interface{details.interface().symbol()};
636 if (!symbol.attrs().test(Attr::INTRINSIC) &&
637 (symbol.attrs().test(Attr::ELEMENTAL) ||
638 (interface && !interface->attrs().test(Attr::INTRINSIC) &&
639 interface->attrs().test(Attr::ELEMENTAL)))) {
640 // There's no explicit constraint or "shall" that we can find in the
641 // standard for this check, but it seems to be implied in multiple
642 // sites, and ELEMENTAL non-intrinsic actual arguments *are*
643 // explicitly forbidden. But we allow "PROCEDURE(SIN)::dummy"
644 // because it is explicitly legal to *pass* the specific intrinsic
645 // function SIN as an actual argument.
646 messages_.Say("A dummy procedure may not be ELEMENTAL"_err_en_US);
647 }
648 } else if (symbol.owner().IsDerivedType()) {
649 if (!symbol.attrs().test(Attr::POINTER)) { // C756
650 const auto &name{symbol.name()};
651 messages_.Say(name,
652 "Procedure component '%s' must have POINTER attribute"_err_en_US,
653 name);
654 }
655 CheckPassArg(symbol, details.interface().symbol(), details);
656 }
657 if (symbol.attrs().test(Attr::POINTER)) {
658 CheckPointerInitialization(symbol);
659 if (const Symbol * interface{details.interface().symbol()}) {
660 if (interface->attrs().test(Attr::ELEMENTAL) &&
661 !interface->attrs().test(Attr::INTRINSIC)) {
662 messages_.Say("Procedure pointer '%s' may not be ELEMENTAL"_err_en_US,
663 symbol.name()); // C1517
664 }
665 }
666 } else if (symbol.attrs().test(Attr::SAVE)) {
667 messages_.Say(
668 "Procedure '%s' with SAVE attribute must also have POINTER attribute"_err_en_US,
669 symbol.name());
670 }
671 }
672
673 // When a module subprogram has the MODULE prefix the following must match
674 // with the corresponding separate module procedure interface body:
675 // - C1549: characteristics and dummy argument names
676 // - C1550: binding label
677 // - C1551: NON_RECURSIVE prefix
678 class SubprogramMatchHelper {
679 public:
SubprogramMatchHelper(CheckHelper & checkHelper)680 explicit SubprogramMatchHelper(CheckHelper &checkHelper)
681 : checkHelper{checkHelper} {}
682
683 void Check(const Symbol &, const Symbol &);
684
685 private:
context()686 SemanticsContext &context() { return checkHelper.context(); }
687 void CheckDummyArg(const Symbol &, const Symbol &, const DummyArgument &,
688 const DummyArgument &);
689 void CheckDummyDataObject(const Symbol &, const Symbol &,
690 const DummyDataObject &, const DummyDataObject &);
691 void CheckDummyProcedure(const Symbol &, const Symbol &,
692 const DummyProcedure &, const DummyProcedure &);
693 bool CheckSameIntent(
694 const Symbol &, const Symbol &, common::Intent, common::Intent);
695 template <typename... A>
696 void Say(
697 const Symbol &, const Symbol &, parser::MessageFixedText &&, A &&...);
698 template <typename ATTRS>
699 bool CheckSameAttrs(const Symbol &, const Symbol &, ATTRS, ATTRS);
700 bool ShapesAreCompatible(const DummyDataObject &, const DummyDataObject &);
701 evaluate::Shape FoldShape(const evaluate::Shape &);
AsFortran(DummyDataObject::Attr attr)702 std::string AsFortran(DummyDataObject::Attr attr) {
703 return parser::ToUpperCaseLetters(DummyDataObject::EnumToString(attr));
704 }
AsFortran(DummyProcedure::Attr attr)705 std::string AsFortran(DummyProcedure::Attr attr) {
706 return parser::ToUpperCaseLetters(DummyProcedure::EnumToString(attr));
707 }
708
709 CheckHelper &checkHelper;
710 };
711
712 // 15.6.2.6 para 3 - can the result of an ENTRY differ from its function?
IsResultOkToDiffer(const FunctionResult & result)713 bool CheckHelper::IsResultOkToDiffer(const FunctionResult &result) {
714 if (result.attrs.test(FunctionResult::Attr::Allocatable) ||
715 result.attrs.test(FunctionResult::Attr::Pointer)) {
716 return false;
717 }
718 const auto *typeAndShape{result.GetTypeAndShape()};
719 if (!typeAndShape || typeAndShape->Rank() != 0) {
720 return false;
721 }
722 auto category{typeAndShape->type().category()};
723 if (category == TypeCategory::Character ||
724 category == TypeCategory::Derived) {
725 return false;
726 }
727 int kind{typeAndShape->type().kind()};
728 return kind == context_.GetDefaultKind(category) ||
729 (category == TypeCategory::Real &&
730 kind == context_.doublePrecisionKind());
731 }
732
CheckSubprogram(const Symbol & symbol,const SubprogramDetails & details)733 void CheckHelper::CheckSubprogram(
734 const Symbol &symbol, const SubprogramDetails &details) {
735 if (const Symbol * iface{FindSeparateModuleSubprogramInterface(&symbol)}) {
736 SubprogramMatchHelper{*this}.Check(symbol, *iface);
737 }
738 if (const Scope * entryScope{details.entryScope()}) {
739 // ENTRY 15.6.2.6, esp. C1571
740 std::optional<parser::MessageFixedText> error;
741 const Symbol *subprogram{entryScope->symbol()};
742 const SubprogramDetails *subprogramDetails{nullptr};
743 if (subprogram) {
744 subprogramDetails = subprogram->detailsIf<SubprogramDetails>();
745 }
746 if (entryScope->kind() != Scope::Kind::Subprogram) {
747 error = "ENTRY may appear only in a subroutine or function"_err_en_US;
748 } else if (!(entryScope->parent().IsGlobal() ||
749 entryScope->parent().IsModule() ||
750 entryScope->parent().IsSubmodule())) {
751 error = "ENTRY may not appear in an internal subprogram"_err_en_US;
752 } else if (FindSeparateModuleSubprogramInterface(subprogram)) {
753 error = "ENTRY may not appear in a separate module procedure"_err_en_US;
754 } else if (subprogramDetails && details.isFunction() &&
755 subprogramDetails->isFunction()) {
756 auto result{FunctionResult::Characterize(
757 details.result(), context_.foldingContext())};
758 auto subpResult{FunctionResult::Characterize(
759 subprogramDetails->result(), context_.foldingContext())};
760 if (result && subpResult && *result != *subpResult &&
761 (!IsResultOkToDiffer(*result) || !IsResultOkToDiffer(*subpResult))) {
762 error =
763 "Result of ENTRY is not compatible with result of containing function"_err_en_US;
764 }
765 }
766 if (error) {
767 if (auto *msg{messages_.Say(symbol.name(), *error)}) {
768 if (subprogram) {
769 msg->Attach(subprogram->name(), "Containing subprogram"_en_US);
770 }
771 }
772 }
773 }
774 }
775
CheckDerivedType(const Symbol & derivedType,const DerivedTypeDetails & details)776 void CheckHelper::CheckDerivedType(
777 const Symbol &derivedType, const DerivedTypeDetails &details) {
778 const Scope *scope{derivedType.scope()};
779 if (!scope) {
780 CHECK(details.isForwardReferenced());
781 return;
782 }
783 CHECK(scope->symbol() == &derivedType);
784 CHECK(scope->IsDerivedType());
785 if (derivedType.attrs().test(Attr::ABSTRACT) && // C734
786 (derivedType.attrs().test(Attr::BIND_C) || details.sequence())) {
787 messages_.Say("An ABSTRACT derived type must be extensible"_err_en_US);
788 }
789 if (const DeclTypeSpec * parent{FindParentTypeSpec(derivedType)}) {
790 const DerivedTypeSpec *parentDerived{parent->AsDerived()};
791 if (!IsExtensibleType(parentDerived)) { // C705
792 messages_.Say("The parent type is not extensible"_err_en_US);
793 }
794 if (!derivedType.attrs().test(Attr::ABSTRACT) && parentDerived &&
795 parentDerived->typeSymbol().attrs().test(Attr::ABSTRACT)) {
796 ScopeComponentIterator components{*parentDerived};
797 for (const Symbol &component : components) {
798 if (component.attrs().test(Attr::DEFERRED)) {
799 if (scope->FindComponent(component.name()) == &component) {
800 SayWithDeclaration(component,
801 "Non-ABSTRACT extension of ABSTRACT derived type '%s' lacks a binding for DEFERRED procedure '%s'"_err_en_US,
802 parentDerived->typeSymbol().name(), component.name());
803 }
804 }
805 }
806 }
807 DerivedTypeSpec derived{derivedType.name(), derivedType};
808 derived.set_scope(*scope);
809 if (FindCoarrayUltimateComponent(derived) && // C736
810 !(parentDerived && FindCoarrayUltimateComponent(*parentDerived))) {
811 messages_.Say(
812 "Type '%s' has a coarray ultimate component so the type at the base "
813 "of its type extension chain ('%s') must be a type that has a "
814 "coarray ultimate component"_err_en_US,
815 derivedType.name(), scope->GetDerivedTypeBase().GetSymbol()->name());
816 }
817 if (FindEventOrLockPotentialComponent(derived) && // C737
818 !(FindEventOrLockPotentialComponent(*parentDerived) ||
819 IsEventTypeOrLockType(parentDerived))) {
820 messages_.Say(
821 "Type '%s' has an EVENT_TYPE or LOCK_TYPE component, so the type "
822 "at the base of its type extension chain ('%s') must either have an "
823 "EVENT_TYPE or LOCK_TYPE component, or be EVENT_TYPE or "
824 "LOCK_TYPE"_err_en_US,
825 derivedType.name(), scope->GetDerivedTypeBase().GetSymbol()->name());
826 }
827 }
828 if (HasIntrinsicTypeName(derivedType)) { // C729
829 messages_.Say("A derived type name cannot be the name of an intrinsic"
830 " type"_err_en_US);
831 }
832 std::map<SourceName, SymbolRef> previous;
833 for (const auto &pair : details.finals()) {
834 SourceName source{pair.first};
835 const Symbol &ref{*pair.second};
836 if (CheckFinal(ref, source, derivedType) &&
837 std::all_of(previous.begin(), previous.end(),
838 [&](std::pair<SourceName, SymbolRef> prev) {
839 return CheckDistinguishableFinals(
840 ref, source, *prev.second, prev.first, derivedType);
841 })) {
842 previous.emplace(source, ref);
843 }
844 }
845 }
846
847 // C786
CheckFinal(const Symbol & subroutine,SourceName finalName,const Symbol & derivedType)848 bool CheckHelper::CheckFinal(
849 const Symbol &subroutine, SourceName finalName, const Symbol &derivedType) {
850 if (!IsModuleProcedure(subroutine)) {
851 SayWithDeclaration(subroutine, finalName,
852 "FINAL subroutine '%s' of derived type '%s' must be a module procedure"_err_en_US,
853 subroutine.name(), derivedType.name());
854 return false;
855 }
856 const Procedure *proc{Characterize(subroutine)};
857 if (!proc) {
858 return false; // error recovery
859 }
860 if (!proc->IsSubroutine()) {
861 SayWithDeclaration(subroutine, finalName,
862 "FINAL subroutine '%s' of derived type '%s' must be a subroutine"_err_en_US,
863 subroutine.name(), derivedType.name());
864 return false;
865 }
866 if (proc->dummyArguments.size() != 1) {
867 SayWithDeclaration(subroutine, finalName,
868 "FINAL subroutine '%s' of derived type '%s' must have a single dummy argument"_err_en_US,
869 subroutine.name(), derivedType.name());
870 return false;
871 }
872 const auto &arg{proc->dummyArguments[0]};
873 const Symbol *errSym{&subroutine};
874 if (const auto *details{subroutine.detailsIf<SubprogramDetails>()}) {
875 if (!details->dummyArgs().empty()) {
876 if (const Symbol * argSym{details->dummyArgs()[0]}) {
877 errSym = argSym;
878 }
879 }
880 }
881 const auto *ddo{std::get_if<DummyDataObject>(&arg.u)};
882 if (!ddo) {
883 SayWithDeclaration(subroutine, finalName,
884 "FINAL subroutine '%s' of derived type '%s' must have a single dummy argument that is a data object"_err_en_US,
885 subroutine.name(), derivedType.name());
886 return false;
887 }
888 bool ok{true};
889 if (arg.IsOptional()) {
890 SayWithDeclaration(*errSym, finalName,
891 "FINAL subroutine '%s' of derived type '%s' must not have an OPTIONAL dummy argument"_err_en_US,
892 subroutine.name(), derivedType.name());
893 ok = false;
894 }
895 if (ddo->attrs.test(DummyDataObject::Attr::Allocatable)) {
896 SayWithDeclaration(*errSym, finalName,
897 "FINAL subroutine '%s' of derived type '%s' must not have an ALLOCATABLE dummy argument"_err_en_US,
898 subroutine.name(), derivedType.name());
899 ok = false;
900 }
901 if (ddo->attrs.test(DummyDataObject::Attr::Pointer)) {
902 SayWithDeclaration(*errSym, finalName,
903 "FINAL subroutine '%s' of derived type '%s' must not have a POINTER dummy argument"_err_en_US,
904 subroutine.name(), derivedType.name());
905 ok = false;
906 }
907 if (ddo->intent == common::Intent::Out) {
908 SayWithDeclaration(*errSym, finalName,
909 "FINAL subroutine '%s' of derived type '%s' must not have a dummy argument with INTENT(OUT)"_err_en_US,
910 subroutine.name(), derivedType.name());
911 ok = false;
912 }
913 if (ddo->attrs.test(DummyDataObject::Attr::Value)) {
914 SayWithDeclaration(*errSym, finalName,
915 "FINAL subroutine '%s' of derived type '%s' must not have a dummy argument with the VALUE attribute"_err_en_US,
916 subroutine.name(), derivedType.name());
917 ok = false;
918 }
919 if (ddo->type.corank() > 0) {
920 SayWithDeclaration(*errSym, finalName,
921 "FINAL subroutine '%s' of derived type '%s' must not have a coarray dummy argument"_err_en_US,
922 subroutine.name(), derivedType.name());
923 ok = false;
924 }
925 if (ddo->type.type().IsPolymorphic()) {
926 SayWithDeclaration(*errSym, finalName,
927 "FINAL subroutine '%s' of derived type '%s' must not have a polymorphic dummy argument"_err_en_US,
928 subroutine.name(), derivedType.name());
929 ok = false;
930 } else if (ddo->type.type().category() != TypeCategory::Derived ||
931 &ddo->type.type().GetDerivedTypeSpec().typeSymbol() != &derivedType) {
932 SayWithDeclaration(*errSym, finalName,
933 "FINAL subroutine '%s' of derived type '%s' must have a TYPE(%s) dummy argument"_err_en_US,
934 subroutine.name(), derivedType.name(), derivedType.name());
935 ok = false;
936 } else { // check that all LEN type parameters are assumed
937 for (auto ref : OrderParameterDeclarations(derivedType)) {
938 if (IsLenTypeParameter(*ref)) {
939 const auto *value{
940 ddo->type.type().GetDerivedTypeSpec().FindParameter(ref->name())};
941 if (!value || !value->isAssumed()) {
942 SayWithDeclaration(*errSym, finalName,
943 "FINAL subroutine '%s' of derived type '%s' must have a dummy argument with an assumed LEN type parameter '%s=*'"_err_en_US,
944 subroutine.name(), derivedType.name(), ref->name());
945 ok = false;
946 }
947 }
948 }
949 }
950 return ok;
951 }
952
CheckDistinguishableFinals(const Symbol & f1,SourceName f1Name,const Symbol & f2,SourceName f2Name,const Symbol & derivedType)953 bool CheckHelper::CheckDistinguishableFinals(const Symbol &f1,
954 SourceName f1Name, const Symbol &f2, SourceName f2Name,
955 const Symbol &derivedType) {
956 const Procedure *p1{Characterize(f1)};
957 const Procedure *p2{Characterize(f2)};
958 if (p1 && p2) {
959 if (characteristics::Distinguishable(*p1, *p2)) {
960 return true;
961 }
962 if (auto *msg{messages_.Say(f1Name,
963 "FINAL subroutines '%s' and '%s' of derived type '%s' cannot be distinguished by rank or KIND type parameter value"_err_en_US,
964 f1Name, f2Name, derivedType.name())}) {
965 msg->Attach(f2Name, "FINAL declaration of '%s'"_en_US, f2.name())
966 .Attach(f1.name(), "Definition of '%s'"_en_US, f1Name)
967 .Attach(f2.name(), "Definition of '%s'"_en_US, f2Name);
968 }
969 }
970 return false;
971 }
972
CheckHostAssoc(const Symbol & symbol,const HostAssocDetails & details)973 void CheckHelper::CheckHostAssoc(
974 const Symbol &symbol, const HostAssocDetails &details) {
975 const Symbol &hostSymbol{details.symbol()};
976 if (hostSymbol.test(Symbol::Flag::ImplicitOrError)) {
977 if (details.implicitOrSpecExprError) {
978 messages_.Say("Implicitly typed local entity '%s' not allowed in"
979 " specification expression"_err_en_US,
980 symbol.name());
981 } else if (details.implicitOrExplicitTypeError) {
982 messages_.Say(
983 "No explicit type declared for '%s'"_err_en_US, symbol.name());
984 }
985 }
986 }
987
CheckGeneric(const Symbol & symbol,const GenericDetails & details)988 void CheckHelper::CheckGeneric(
989 const Symbol &symbol, const GenericDetails &details) {
990 CheckSpecificsAreDistinguishable(symbol, details);
991 }
992
993 // Check that the specifics of this generic are distinguishable from each other
CheckSpecificsAreDistinguishable(const Symbol & generic,const GenericDetails & details)994 void CheckHelper::CheckSpecificsAreDistinguishable(
995 const Symbol &generic, const GenericDetails &details) {
996 GenericKind kind{details.kind()};
997 const SymbolVector &specifics{details.specificProcs()};
998 std::size_t count{specifics.size()};
999 if (count < 2 || !kind.IsName()) {
1000 return;
1001 }
1002 DistinguishabilityHelper helper{context_};
1003 for (const Symbol &specific : specifics) {
1004 if (const Procedure * procedure{Characterize(specific)}) {
1005 helper.Add(generic, kind, specific, *procedure);
1006 }
1007 }
1008 helper.Check(generic.owner());
1009 }
1010
ConflictsWithIntrinsicAssignment(const Procedure & proc)1011 static bool ConflictsWithIntrinsicAssignment(const Procedure &proc) {
1012 auto lhs{std::get<DummyDataObject>(proc.dummyArguments[0].u).type};
1013 auto rhs{std::get<DummyDataObject>(proc.dummyArguments[1].u).type};
1014 return Tristate::No ==
1015 IsDefinedAssignment(lhs.type(), lhs.Rank(), rhs.type(), rhs.Rank());
1016 }
1017
ConflictsWithIntrinsicOperator(const GenericKind & kind,const Procedure & proc)1018 static bool ConflictsWithIntrinsicOperator(
1019 const GenericKind &kind, const Procedure &proc) {
1020 if (!kind.IsIntrinsicOperator()) {
1021 return false;
1022 }
1023 auto arg0{std::get<DummyDataObject>(proc.dummyArguments[0].u).type};
1024 auto type0{arg0.type()};
1025 if (proc.dummyArguments.size() == 1) { // unary
1026 return std::visit(
1027 common::visitors{
1028 [&](common::NumericOperator) { return IsIntrinsicNumeric(type0); },
1029 [&](common::LogicalOperator) { return IsIntrinsicLogical(type0); },
1030 [](const auto &) -> bool { DIE("bad generic kind"); },
1031 },
1032 kind.u);
1033 } else { // binary
1034 int rank0{arg0.Rank()};
1035 auto arg1{std::get<DummyDataObject>(proc.dummyArguments[1].u).type};
1036 auto type1{arg1.type()};
1037 int rank1{arg1.Rank()};
1038 return std::visit(
1039 common::visitors{
1040 [&](common::NumericOperator) {
1041 return IsIntrinsicNumeric(type0, rank0, type1, rank1);
1042 },
1043 [&](common::LogicalOperator) {
1044 return IsIntrinsicLogical(type0, rank0, type1, rank1);
1045 },
1046 [&](common::RelationalOperator opr) {
1047 return IsIntrinsicRelational(opr, type0, rank0, type1, rank1);
1048 },
1049 [&](GenericKind::OtherKind x) {
1050 CHECK(x == GenericKind::OtherKind::Concat);
1051 return IsIntrinsicConcat(type0, rank0, type1, rank1);
1052 },
1053 [](const auto &) -> bool { DIE("bad generic kind"); },
1054 },
1055 kind.u);
1056 }
1057 }
1058
1059 // Check if this procedure can be used for defined operators (see 15.4.3.4.2).
CheckDefinedOperator(SourceName opName,GenericKind kind,const Symbol & specific,const Procedure & proc)1060 bool CheckHelper::CheckDefinedOperator(SourceName opName, GenericKind kind,
1061 const Symbol &specific, const Procedure &proc) {
1062 if (context_.HasError(specific)) {
1063 return false;
1064 }
1065 std::optional<parser::MessageFixedText> msg;
1066 if (specific.attrs().test(Attr::NOPASS)) { // C774
1067 msg = "%s procedure '%s' may not have NOPASS attribute"_err_en_US;
1068 } else if (!proc.functionResult.has_value()) {
1069 msg = "%s procedure '%s' must be a function"_err_en_US;
1070 } else if (proc.functionResult->IsAssumedLengthCharacter()) {
1071 msg = "%s function '%s' may not have assumed-length CHARACTER(*)"
1072 " result"_err_en_US;
1073 } else if (auto m{CheckNumberOfArgs(kind, proc.dummyArguments.size())}) {
1074 msg = std::move(m);
1075 } else if (!CheckDefinedOperatorArg(opName, specific, proc, 0) |
1076 !CheckDefinedOperatorArg(opName, specific, proc, 1)) {
1077 return false; // error was reported
1078 } else if (ConflictsWithIntrinsicOperator(kind, proc)) {
1079 msg = "%s function '%s' conflicts with intrinsic operator"_err_en_US;
1080 } else {
1081 return true; // OK
1082 }
1083 SayWithDeclaration(
1084 specific, std::move(*msg), MakeOpName(opName), specific.name());
1085 context_.SetError(specific);
1086 return false;
1087 }
1088
1089 // If the number of arguments is wrong for this intrinsic operator, return
1090 // false and return the error message in msg.
CheckNumberOfArgs(const GenericKind & kind,std::size_t nargs)1091 std::optional<parser::MessageFixedText> CheckHelper::CheckNumberOfArgs(
1092 const GenericKind &kind, std::size_t nargs) {
1093 if (!kind.IsIntrinsicOperator()) {
1094 return std::nullopt;
1095 }
1096 std::size_t min{2}, max{2}; // allowed number of args; default is binary
1097 std::visit(common::visitors{
1098 [&](const common::NumericOperator &x) {
1099 if (x == common::NumericOperator::Add ||
1100 x == common::NumericOperator::Subtract) {
1101 min = 1; // + and - are unary or binary
1102 }
1103 },
1104 [&](const common::LogicalOperator &x) {
1105 if (x == common::LogicalOperator::Not) {
1106 min = 1; // .NOT. is unary
1107 max = 1;
1108 }
1109 },
1110 [](const common::RelationalOperator &) {
1111 // all are binary
1112 },
1113 [](const GenericKind::OtherKind &x) {
1114 CHECK(x == GenericKind::OtherKind::Concat);
1115 },
1116 [](const auto &) { DIE("expected intrinsic operator"); },
1117 },
1118 kind.u);
1119 if (nargs >= min && nargs <= max) {
1120 return std::nullopt;
1121 } else if (max == 1) {
1122 return "%s function '%s' must have one dummy argument"_err_en_US;
1123 } else if (min == 2) {
1124 return "%s function '%s' must have two dummy arguments"_err_en_US;
1125 } else {
1126 return "%s function '%s' must have one or two dummy arguments"_err_en_US;
1127 }
1128 }
1129
CheckDefinedOperatorArg(const SourceName & opName,const Symbol & symbol,const Procedure & proc,std::size_t pos)1130 bool CheckHelper::CheckDefinedOperatorArg(const SourceName &opName,
1131 const Symbol &symbol, const Procedure &proc, std::size_t pos) {
1132 if (pos >= proc.dummyArguments.size()) {
1133 return true;
1134 }
1135 auto &arg{proc.dummyArguments.at(pos)};
1136 std::optional<parser::MessageFixedText> msg;
1137 if (arg.IsOptional()) {
1138 msg = "In %s function '%s', dummy argument '%s' may not be"
1139 " OPTIONAL"_err_en_US;
1140 } else if (const auto *dataObject{std::get_if<DummyDataObject>(&arg.u)};
1141 dataObject == nullptr) {
1142 msg = "In %s function '%s', dummy argument '%s' must be a"
1143 " data object"_err_en_US;
1144 } else if (dataObject->intent != common::Intent::In &&
1145 !dataObject->attrs.test(DummyDataObject::Attr::Value)) {
1146 msg = "In %s function '%s', dummy argument '%s' must have INTENT(IN)"
1147 " or VALUE attribute"_err_en_US;
1148 }
1149 if (msg) {
1150 SayWithDeclaration(symbol, std::move(*msg),
1151 parser::ToUpperCaseLetters(opName.ToString()), symbol.name(), arg.name);
1152 return false;
1153 }
1154 return true;
1155 }
1156
1157 // Check if this procedure can be used for defined assignment (see 15.4.3.4.3).
CheckDefinedAssignment(const Symbol & specific,const Procedure & proc)1158 bool CheckHelper::CheckDefinedAssignment(
1159 const Symbol &specific, const Procedure &proc) {
1160 if (context_.HasError(specific)) {
1161 return false;
1162 }
1163 std::optional<parser::MessageFixedText> msg;
1164 if (specific.attrs().test(Attr::NOPASS)) { // C774
1165 msg = "Defined assignment procedure '%s' may not have"
1166 " NOPASS attribute"_err_en_US;
1167 } else if (!proc.IsSubroutine()) {
1168 msg = "Defined assignment procedure '%s' must be a subroutine"_err_en_US;
1169 } else if (proc.dummyArguments.size() != 2) {
1170 msg = "Defined assignment subroutine '%s' must have"
1171 " two dummy arguments"_err_en_US;
1172 } else if (!CheckDefinedAssignmentArg(specific, proc.dummyArguments[0], 0) |
1173 !CheckDefinedAssignmentArg(specific, proc.dummyArguments[1], 1)) {
1174 return false; // error was reported
1175 } else if (ConflictsWithIntrinsicAssignment(proc)) {
1176 msg = "Defined assignment subroutine '%s' conflicts with"
1177 " intrinsic assignment"_err_en_US;
1178 } else {
1179 return true; // OK
1180 }
1181 SayWithDeclaration(specific, std::move(msg.value()), specific.name());
1182 context_.SetError(specific);
1183 return false;
1184 }
1185
CheckDefinedAssignmentArg(const Symbol & symbol,const DummyArgument & arg,int pos)1186 bool CheckHelper::CheckDefinedAssignmentArg(
1187 const Symbol &symbol, const DummyArgument &arg, int pos) {
1188 std::optional<parser::MessageFixedText> msg;
1189 if (arg.IsOptional()) {
1190 msg = "In defined assignment subroutine '%s', dummy argument '%s'"
1191 " may not be OPTIONAL"_err_en_US;
1192 } else if (const auto *dataObject{std::get_if<DummyDataObject>(&arg.u)}) {
1193 if (pos == 0) {
1194 if (dataObject->intent != common::Intent::Out &&
1195 dataObject->intent != common::Intent::InOut) {
1196 msg = "In defined assignment subroutine '%s', first dummy argument '%s'"
1197 " must have INTENT(OUT) or INTENT(INOUT)"_err_en_US;
1198 }
1199 } else if (pos == 1) {
1200 if (dataObject->intent != common::Intent::In &&
1201 !dataObject->attrs.test(DummyDataObject::Attr::Value)) {
1202 msg =
1203 "In defined assignment subroutine '%s', second dummy"
1204 " argument '%s' must have INTENT(IN) or VALUE attribute"_err_en_US;
1205 }
1206 } else {
1207 DIE("pos must be 0 or 1");
1208 }
1209 } else {
1210 msg = "In defined assignment subroutine '%s', dummy argument '%s'"
1211 " must be a data object"_err_en_US;
1212 }
1213 if (msg) {
1214 SayWithDeclaration(symbol, std::move(*msg), symbol.name(), arg.name);
1215 context_.SetError(symbol);
1216 return false;
1217 }
1218 return true;
1219 }
1220
1221 // Report a conflicting attribute error if symbol has both of these attributes
CheckConflicting(const Symbol & symbol,Attr a1,Attr a2)1222 bool CheckHelper::CheckConflicting(const Symbol &symbol, Attr a1, Attr a2) {
1223 if (symbol.attrs().test(a1) && symbol.attrs().test(a2)) {
1224 messages_.Say("'%s' may not have both the %s and %s attributes"_err_en_US,
1225 symbol.name(), EnumToString(a1), EnumToString(a2));
1226 return true;
1227 } else {
1228 return false;
1229 }
1230 }
1231
WarnMissingFinal(const Symbol & symbol)1232 void CheckHelper::WarnMissingFinal(const Symbol &symbol) {
1233 const auto *object{symbol.detailsIf<ObjectEntityDetails>()};
1234 if (!object || IsPointer(symbol)) {
1235 return;
1236 }
1237 const DeclTypeSpec *type{object->type()};
1238 const DerivedTypeSpec *derived{type ? type->AsDerived() : nullptr};
1239 const Symbol *derivedSym{derived ? &derived->typeSymbol() : nullptr};
1240 int rank{object->shape().Rank()};
1241 const Symbol *initialDerivedSym{derivedSym};
1242 while (const auto *derivedDetails{
1243 derivedSym ? derivedSym->detailsIf<DerivedTypeDetails>() : nullptr}) {
1244 if (!derivedDetails->finals().empty() &&
1245 !derivedDetails->GetFinalForRank(rank)) {
1246 if (auto *msg{derivedSym == initialDerivedSym
1247 ? messages_.Say(symbol.name(),
1248 "'%s' of derived type '%s' does not have a FINAL subroutine for its rank (%d)"_en_US,
1249 symbol.name(), derivedSym->name(), rank)
1250 : messages_.Say(symbol.name(),
1251 "'%s' of derived type '%s' extended from '%s' does not have a FINAL subroutine for its rank (%d)"_en_US,
1252 symbol.name(), initialDerivedSym->name(),
1253 derivedSym->name(), rank)}) {
1254 msg->Attach(derivedSym->name(),
1255 "Declaration of derived type '%s'"_en_US, derivedSym->name());
1256 }
1257 return;
1258 }
1259 derived = derivedSym->GetParentTypeSpec();
1260 derivedSym = derived ? &derived->typeSymbol() : nullptr;
1261 }
1262 }
1263
Characterize(const Symbol & symbol)1264 const Procedure *CheckHelper::Characterize(const Symbol &symbol) {
1265 auto it{characterizeCache_.find(symbol)};
1266 if (it == characterizeCache_.end()) {
1267 auto pair{characterizeCache_.emplace(SymbolRef{symbol},
1268 Procedure::Characterize(symbol, context_.foldingContext()))};
1269 it = pair.first;
1270 }
1271 return common::GetPtrFromOptional(it->second);
1272 }
1273
CheckVolatile(const Symbol & symbol,bool isAssociated,const DerivedTypeSpec * derived)1274 void CheckHelper::CheckVolatile(const Symbol &symbol, bool isAssociated,
1275 const DerivedTypeSpec *derived) { // C866 - C868
1276 if (IsIntentIn(symbol)) {
1277 messages_.Say(
1278 "VOLATILE attribute may not apply to an INTENT(IN) argument"_err_en_US);
1279 }
1280 if (IsProcedure(symbol)) {
1281 messages_.Say("VOLATILE attribute may apply only to a variable"_err_en_US);
1282 }
1283 if (isAssociated) {
1284 const Symbol &ultimate{symbol.GetUltimate()};
1285 if (IsCoarray(ultimate)) {
1286 messages_.Say(
1287 "VOLATILE attribute may not apply to a coarray accessed by USE or host association"_err_en_US);
1288 }
1289 if (derived) {
1290 if (FindCoarrayUltimateComponent(*derived)) {
1291 messages_.Say(
1292 "VOLATILE attribute may not apply to a type with a coarray ultimate component accessed by USE or host association"_err_en_US);
1293 }
1294 }
1295 }
1296 }
1297
CheckPointer(const Symbol & symbol)1298 void CheckHelper::CheckPointer(const Symbol &symbol) { // C852
1299 CheckConflicting(symbol, Attr::POINTER, Attr::TARGET);
1300 CheckConflicting(symbol, Attr::POINTER, Attr::ALLOCATABLE); // C751
1301 CheckConflicting(symbol, Attr::POINTER, Attr::INTRINSIC);
1302 // Prohibit constant pointers. The standard does not explicitly prohibit
1303 // them, but the PARAMETER attribute requires a entity-decl to have an
1304 // initialization that is a constant-expr, and the only form of
1305 // initialization that allows a constant-expr is the one that's not a "=>"
1306 // pointer initialization. See C811, C807, and section 8.5.13.
1307 CheckConflicting(symbol, Attr::POINTER, Attr::PARAMETER);
1308 if (symbol.Corank() > 0) {
1309 messages_.Say(
1310 "'%s' may not have the POINTER attribute because it is a coarray"_err_en_US,
1311 symbol.name());
1312 }
1313 }
1314
1315 // C760 constraints on the passed-object dummy argument
1316 // C757 constraints on procedure pointer components
CheckPassArg(const Symbol & proc,const Symbol * interface,const WithPassArg & details)1317 void CheckHelper::CheckPassArg(
1318 const Symbol &proc, const Symbol *interface, const WithPassArg &details) {
1319 if (proc.attrs().test(Attr::NOPASS)) {
1320 return;
1321 }
1322 const auto &name{proc.name()};
1323 if (!interface) {
1324 messages_.Say(name,
1325 "Procedure component '%s' must have NOPASS attribute or explicit interface"_err_en_US,
1326 name);
1327 return;
1328 }
1329 const auto *subprogram{interface->detailsIf<SubprogramDetails>()};
1330 if (!subprogram) {
1331 messages_.Say(name,
1332 "Procedure component '%s' has invalid interface '%s'"_err_en_US, name,
1333 interface->name());
1334 return;
1335 }
1336 std::optional<SourceName> passName{details.passName()};
1337 const auto &dummyArgs{subprogram->dummyArgs()};
1338 if (!passName) {
1339 if (dummyArgs.empty()) {
1340 messages_.Say(name,
1341 proc.has<ProcEntityDetails>()
1342 ? "Procedure component '%s' with no dummy arguments"
1343 " must have NOPASS attribute"_err_en_US
1344 : "Procedure binding '%s' with no dummy arguments"
1345 " must have NOPASS attribute"_err_en_US,
1346 name);
1347 return;
1348 }
1349 passName = dummyArgs[0]->name();
1350 }
1351 std::optional<int> passArgIndex{};
1352 for (std::size_t i{0}; i < dummyArgs.size(); ++i) {
1353 if (dummyArgs[i] && dummyArgs[i]->name() == *passName) {
1354 passArgIndex = i;
1355 break;
1356 }
1357 }
1358 if (!passArgIndex) { // C758
1359 messages_.Say(*passName,
1360 "'%s' is not a dummy argument of procedure interface '%s'"_err_en_US,
1361 *passName, interface->name());
1362 return;
1363 }
1364 const Symbol &passArg{*dummyArgs[*passArgIndex]};
1365 std::optional<parser::MessageFixedText> msg;
1366 if (!passArg.has<ObjectEntityDetails>()) {
1367 msg = "Passed-object dummy argument '%s' of procedure '%s'"
1368 " must be a data object"_err_en_US;
1369 } else if (passArg.attrs().test(Attr::POINTER)) {
1370 msg = "Passed-object dummy argument '%s' of procedure '%s'"
1371 " may not have the POINTER attribute"_err_en_US;
1372 } else if (passArg.attrs().test(Attr::ALLOCATABLE)) {
1373 msg = "Passed-object dummy argument '%s' of procedure '%s'"
1374 " may not have the ALLOCATABLE attribute"_err_en_US;
1375 } else if (passArg.attrs().test(Attr::VALUE)) {
1376 msg = "Passed-object dummy argument '%s' of procedure '%s'"
1377 " may not have the VALUE attribute"_err_en_US;
1378 } else if (passArg.Rank() > 0) {
1379 msg = "Passed-object dummy argument '%s' of procedure '%s'"
1380 " must be scalar"_err_en_US;
1381 }
1382 if (msg) {
1383 messages_.Say(name, std::move(*msg), passName.value(), name);
1384 return;
1385 }
1386 const DeclTypeSpec *type{passArg.GetType()};
1387 if (!type) {
1388 return; // an error already occurred
1389 }
1390 const Symbol &typeSymbol{*proc.owner().GetSymbol()};
1391 const DerivedTypeSpec *derived{type->AsDerived()};
1392 if (!derived || derived->typeSymbol() != typeSymbol) {
1393 messages_.Say(name,
1394 "Passed-object dummy argument '%s' of procedure '%s'"
1395 " must be of type '%s' but is '%s'"_err_en_US,
1396 passName.value(), name, typeSymbol.name(), type->AsFortran());
1397 return;
1398 }
1399 if (IsExtensibleType(derived) != type->IsPolymorphic()) {
1400 messages_.Say(name,
1401 type->IsPolymorphic()
1402 ? "Passed-object dummy argument '%s' of procedure '%s'"
1403 " may not be polymorphic because '%s' is not extensible"_err_en_US
1404 : "Passed-object dummy argument '%s' of procedure '%s'"
1405 " must be polymorphic because '%s' is extensible"_err_en_US,
1406 passName.value(), name, typeSymbol.name());
1407 return;
1408 }
1409 for (const auto &[paramName, paramValue] : derived->parameters()) {
1410 if (paramValue.isLen() && !paramValue.isAssumed()) {
1411 messages_.Say(name,
1412 "Passed-object dummy argument '%s' of procedure '%s'"
1413 " has non-assumed length parameter '%s'"_err_en_US,
1414 passName.value(), name, paramName);
1415 }
1416 }
1417 }
1418
CheckProcBinding(const Symbol & symbol,const ProcBindingDetails & binding)1419 void CheckHelper::CheckProcBinding(
1420 const Symbol &symbol, const ProcBindingDetails &binding) {
1421 const Scope &dtScope{symbol.owner()};
1422 CHECK(dtScope.kind() == Scope::Kind::DerivedType);
1423 if (const Symbol * dtSymbol{dtScope.symbol()}) {
1424 if (symbol.attrs().test(Attr::DEFERRED)) {
1425 if (!dtSymbol->attrs().test(Attr::ABSTRACT)) { // C733
1426 SayWithDeclaration(*dtSymbol,
1427 "Procedure bound to non-ABSTRACT derived type '%s' may not be DEFERRED"_err_en_US,
1428 dtSymbol->name());
1429 }
1430 if (symbol.attrs().test(Attr::NON_OVERRIDABLE)) {
1431 messages_.Say(
1432 "Type-bound procedure '%s' may not be both DEFERRED and NON_OVERRIDABLE"_err_en_US,
1433 symbol.name());
1434 }
1435 }
1436 }
1437 if (const Symbol * overridden{FindOverriddenBinding(symbol)}) {
1438 if (overridden->attrs().test(Attr::NON_OVERRIDABLE)) {
1439 SayWithDeclaration(*overridden,
1440 "Override of NON_OVERRIDABLE '%s' is not permitted"_err_en_US,
1441 symbol.name());
1442 }
1443 if (const auto *overriddenBinding{
1444 overridden->detailsIf<ProcBindingDetails>()}) {
1445 if (!IsPureProcedure(symbol) && IsPureProcedure(*overridden)) {
1446 SayWithDeclaration(*overridden,
1447 "An overridden pure type-bound procedure binding must also be pure"_err_en_US);
1448 return;
1449 }
1450 if (!binding.symbol().attrs().test(Attr::ELEMENTAL) &&
1451 overriddenBinding->symbol().attrs().test(Attr::ELEMENTAL)) {
1452 SayWithDeclaration(*overridden,
1453 "A type-bound procedure and its override must both, or neither, be ELEMENTAL"_err_en_US);
1454 return;
1455 }
1456 bool isNopass{symbol.attrs().test(Attr::NOPASS)};
1457 if (isNopass != overridden->attrs().test(Attr::NOPASS)) {
1458 SayWithDeclaration(*overridden,
1459 isNopass
1460 ? "A NOPASS type-bound procedure may not override a passed-argument procedure"_err_en_US
1461 : "A passed-argument type-bound procedure may not override a NOPASS procedure"_err_en_US);
1462 } else {
1463 const auto *bindingChars{Characterize(binding.symbol())};
1464 const auto *overriddenChars{Characterize(overriddenBinding->symbol())};
1465 if (bindingChars && overriddenChars) {
1466 if (isNopass) {
1467 if (!bindingChars->CanOverride(*overriddenChars, std::nullopt)) {
1468 SayWithDeclaration(*overridden,
1469 "A type-bound procedure and its override must have compatible interfaces"_err_en_US);
1470 }
1471 } else {
1472 int passIndex{bindingChars->FindPassIndex(binding.passName())};
1473 int overriddenPassIndex{
1474 overriddenChars->FindPassIndex(overriddenBinding->passName())};
1475 if (passIndex != overriddenPassIndex) {
1476 SayWithDeclaration(*overridden,
1477 "A type-bound procedure and its override must use the same PASS argument"_err_en_US);
1478 } else if (!bindingChars->CanOverride(
1479 *overriddenChars, passIndex)) {
1480 SayWithDeclaration(*overridden,
1481 "A type-bound procedure and its override must have compatible interfaces apart from their passed argument"_err_en_US);
1482 }
1483 }
1484 }
1485 }
1486 if (symbol.attrs().test(Attr::PRIVATE) &&
1487 overridden->attrs().test(Attr::PUBLIC)) {
1488 SayWithDeclaration(*overridden,
1489 "A PRIVATE procedure may not override a PUBLIC procedure"_err_en_US);
1490 }
1491 } else {
1492 SayWithDeclaration(*overridden,
1493 "A type-bound procedure binding may not have the same name as a parent component"_err_en_US);
1494 }
1495 }
1496 CheckPassArg(symbol, &binding.symbol(), binding);
1497 }
1498
Check(const Scope & scope)1499 void CheckHelper::Check(const Scope &scope) {
1500 scope_ = &scope;
1501 common::Restorer<const Symbol *> restorer{innermostSymbol_};
1502 if (const Symbol * symbol{scope.symbol()}) {
1503 innermostSymbol_ = symbol;
1504 }
1505 if (scope.IsParameterizedDerivedTypeInstantiation()) {
1506 auto restorer{common::ScopedSet(scopeIsUninstantiatedPDT_, false)};
1507 auto restorer2{context_.foldingContext().messages().SetContext(
1508 scope.instantiationContext().get())};
1509 for (const auto &pair : scope) {
1510 CheckPointerInitialization(*pair.second);
1511 }
1512 } else {
1513 auto restorer{common::ScopedSet(
1514 scopeIsUninstantiatedPDT_, scope.IsParameterizedDerivedType())};
1515 for (const auto &set : scope.equivalenceSets()) {
1516 CheckEquivalenceSet(set);
1517 }
1518 for (const auto &pair : scope) {
1519 Check(*pair.second);
1520 }
1521 for (const Scope &child : scope.children()) {
1522 Check(child);
1523 }
1524 if (scope.kind() == Scope::Kind::BlockData) {
1525 CheckBlockData(scope);
1526 }
1527 CheckGenericOps(scope);
1528 }
1529 }
1530
CheckEquivalenceSet(const EquivalenceSet & set)1531 void CheckHelper::CheckEquivalenceSet(const EquivalenceSet &set) {
1532 auto iter{
1533 std::find_if(set.begin(), set.end(), [](const EquivalenceObject &object) {
1534 return FindCommonBlockContaining(object.symbol) != nullptr;
1535 })};
1536 if (iter != set.end()) {
1537 const Symbol &commonBlock{DEREF(FindCommonBlockContaining(iter->symbol))};
1538 for (auto &object : set) {
1539 if (&object != &*iter) {
1540 if (auto *details{object.symbol.detailsIf<ObjectEntityDetails>()}) {
1541 if (details->commonBlock()) {
1542 if (details->commonBlock() != &commonBlock) { // 8.10.3 paragraph 1
1543 if (auto *msg{messages_.Say(object.symbol.name(),
1544 "Two objects in the same EQUIVALENCE set may not be members of distinct COMMON blocks"_err_en_US)}) {
1545 msg->Attach(iter->symbol.name(),
1546 "Other object in EQUIVALENCE set"_en_US)
1547 .Attach(details->commonBlock()->name(),
1548 "COMMON block containing '%s'"_en_US,
1549 object.symbol.name())
1550 .Attach(commonBlock.name(),
1551 "COMMON block containing '%s'"_en_US,
1552 iter->symbol.name());
1553 }
1554 }
1555 } else {
1556 // Mark all symbols in the equivalence set with the same COMMON
1557 // block to prevent spurious error messages about initialization
1558 // in BLOCK DATA outside COMMON
1559 details->set_commonBlock(commonBlock);
1560 }
1561 }
1562 }
1563 }
1564 }
1565 // TODO: Move C8106 (&al.) checks here from resolve-names-utils.cpp
1566 }
1567
CheckBlockData(const Scope & scope)1568 void CheckHelper::CheckBlockData(const Scope &scope) {
1569 // BLOCK DATA subprograms should contain only named common blocks.
1570 // C1415 presents a list of statements that shouldn't appear in
1571 // BLOCK DATA, but so long as the subprogram contains no executable
1572 // code and allocates no storage outside named COMMON, we're happy
1573 // (e.g., an ENUM is strictly not allowed).
1574 for (const auto &pair : scope) {
1575 const Symbol &symbol{*pair.second};
1576 if (!(symbol.has<CommonBlockDetails>() || symbol.has<UseDetails>() ||
1577 symbol.has<UseErrorDetails>() || symbol.has<DerivedTypeDetails>() ||
1578 symbol.has<SubprogramDetails>() ||
1579 symbol.has<ObjectEntityDetails>() ||
1580 (symbol.has<ProcEntityDetails>() &&
1581 !symbol.attrs().test(Attr::POINTER)))) {
1582 messages_.Say(symbol.name(),
1583 "'%s' may not appear in a BLOCK DATA subprogram"_err_en_US,
1584 symbol.name());
1585 }
1586 }
1587 }
1588
1589 // Check distinguishability of generic assignment and operators.
1590 // For these, generics and generic bindings must be considered together.
CheckGenericOps(const Scope & scope)1591 void CheckHelper::CheckGenericOps(const Scope &scope) {
1592 DistinguishabilityHelper helper{context_};
1593 auto addSpecifics{[&](const Symbol &generic) {
1594 const auto *details{generic.GetUltimate().detailsIf<GenericDetails>()};
1595 if (!details) {
1596 return;
1597 }
1598 GenericKind kind{details->kind()};
1599 if (!kind.IsAssignment() && !kind.IsOperator()) {
1600 return;
1601 }
1602 const SymbolVector &specifics{details->specificProcs()};
1603 const std::vector<SourceName> &bindingNames{details->bindingNames()};
1604 for (std::size_t i{0}; i < specifics.size(); ++i) {
1605 const Symbol &specific{*specifics[i]};
1606 if (const Procedure * proc{Characterize(specific)}) {
1607 auto restorer{messages_.SetLocation(bindingNames[i])};
1608 if (kind.IsAssignment()) {
1609 if (!CheckDefinedAssignment(specific, *proc)) {
1610 continue;
1611 }
1612 } else {
1613 if (!CheckDefinedOperator(generic.name(), kind, specific, *proc)) {
1614 continue;
1615 }
1616 }
1617 helper.Add(generic, kind, specific, *proc);
1618 }
1619 }
1620 }};
1621 for (const auto &pair : scope) {
1622 const Symbol &symbol{*pair.second};
1623 addSpecifics(symbol);
1624 const Symbol &ultimate{symbol.GetUltimate()};
1625 if (ultimate.has<DerivedTypeDetails>()) {
1626 if (const Scope * typeScope{ultimate.scope()}) {
1627 for (const auto &pair2 : *typeScope) {
1628 addSpecifics(*pair2.second);
1629 }
1630 }
1631 }
1632 }
1633 helper.Check(scope);
1634 }
1635
Check(const Symbol & symbol1,const Symbol & symbol2)1636 void SubprogramMatchHelper::Check(
1637 const Symbol &symbol1, const Symbol &symbol2) {
1638 const auto details1{symbol1.get<SubprogramDetails>()};
1639 const auto details2{symbol2.get<SubprogramDetails>()};
1640 if (details1.isFunction() != details2.isFunction()) {
1641 Say(symbol1, symbol2,
1642 details1.isFunction()
1643 ? "Module function '%s' was declared as a subroutine in the"
1644 " corresponding interface body"_err_en_US
1645 : "Module subroutine '%s' was declared as a function in the"
1646 " corresponding interface body"_err_en_US);
1647 return;
1648 }
1649 const auto &args1{details1.dummyArgs()};
1650 const auto &args2{details2.dummyArgs()};
1651 int nargs1{static_cast<int>(args1.size())};
1652 int nargs2{static_cast<int>(args2.size())};
1653 if (nargs1 != nargs2) {
1654 Say(symbol1, symbol2,
1655 "Module subprogram '%s' has %d args but the corresponding interface"
1656 " body has %d"_err_en_US,
1657 nargs1, nargs2);
1658 return;
1659 }
1660 bool nonRecursive1{symbol1.attrs().test(Attr::NON_RECURSIVE)};
1661 if (nonRecursive1 != symbol2.attrs().test(Attr::NON_RECURSIVE)) { // C1551
1662 Say(symbol1, symbol2,
1663 nonRecursive1
1664 ? "Module subprogram '%s' has NON_RECURSIVE prefix but"
1665 " the corresponding interface body does not"_err_en_US
1666 : "Module subprogram '%s' does not have NON_RECURSIVE prefix but "
1667 "the corresponding interface body does"_err_en_US);
1668 }
1669 MaybeExpr bindName1{details1.bindName()};
1670 MaybeExpr bindName2{details2.bindName()};
1671 if (bindName1.has_value() != bindName2.has_value()) {
1672 Say(symbol1, symbol2,
1673 bindName1.has_value()
1674 ? "Module subprogram '%s' has a binding label but the corresponding"
1675 " interface body does not"_err_en_US
1676 : "Module subprogram '%s' does not have a binding label but the"
1677 " corresponding interface body does"_err_en_US);
1678 } else if (bindName1) {
1679 std::string string1{bindName1->AsFortran()};
1680 std::string string2{bindName2->AsFortran()};
1681 if (string1 != string2) {
1682 Say(symbol1, symbol2,
1683 "Module subprogram '%s' has binding label %s but the corresponding"
1684 " interface body has %s"_err_en_US,
1685 string1, string2);
1686 }
1687 }
1688 const Procedure *proc1{checkHelper.Characterize(symbol1)};
1689 const Procedure *proc2{checkHelper.Characterize(symbol2)};
1690 if (!proc1 || !proc2) {
1691 return;
1692 }
1693 if (proc1->functionResult && proc2->functionResult &&
1694 *proc1->functionResult != *proc2->functionResult) {
1695 Say(symbol1, symbol2,
1696 "Return type of function '%s' does not match return type of"
1697 " the corresponding interface body"_err_en_US);
1698 }
1699 for (int i{0}; i < nargs1; ++i) {
1700 const Symbol *arg1{args1[i]};
1701 const Symbol *arg2{args2[i]};
1702 if (arg1 && !arg2) {
1703 Say(symbol1, symbol2,
1704 "Dummy argument %2$d of '%1$s' is not an alternate return indicator"
1705 " but the corresponding argument in the interface body is"_err_en_US,
1706 i + 1);
1707 } else if (!arg1 && arg2) {
1708 Say(symbol1, symbol2,
1709 "Dummy argument %2$d of '%1$s' is an alternate return indicator but"
1710 " the corresponding argument in the interface body is not"_err_en_US,
1711 i + 1);
1712 } else if (arg1 && arg2) {
1713 SourceName name1{arg1->name()};
1714 SourceName name2{arg2->name()};
1715 if (name1 != name2) {
1716 Say(*arg1, *arg2,
1717 "Dummy argument name '%s' does not match corresponding name '%s'"
1718 " in interface body"_err_en_US,
1719 name2);
1720 } else {
1721 CheckDummyArg(
1722 *arg1, *arg2, proc1->dummyArguments[i], proc2->dummyArguments[i]);
1723 }
1724 }
1725 }
1726 }
1727
CheckDummyArg(const Symbol & symbol1,const Symbol & symbol2,const DummyArgument & arg1,const DummyArgument & arg2)1728 void SubprogramMatchHelper::CheckDummyArg(const Symbol &symbol1,
1729 const Symbol &symbol2, const DummyArgument &arg1,
1730 const DummyArgument &arg2) {
1731 std::visit(common::visitors{
1732 [&](const DummyDataObject &obj1, const DummyDataObject &obj2) {
1733 CheckDummyDataObject(symbol1, symbol2, obj1, obj2);
1734 },
1735 [&](const DummyProcedure &proc1, const DummyProcedure &proc2) {
1736 CheckDummyProcedure(symbol1, symbol2, proc1, proc2);
1737 },
1738 [&](const DummyDataObject &, const auto &) {
1739 Say(symbol1, symbol2,
1740 "Dummy argument '%s' is a data object; the corresponding"
1741 " argument in the interface body is not"_err_en_US);
1742 },
1743 [&](const DummyProcedure &, const auto &) {
1744 Say(symbol1, symbol2,
1745 "Dummy argument '%s' is a procedure; the corresponding"
1746 " argument in the interface body is not"_err_en_US);
1747 },
1748 [&](const auto &, const auto &) {
1749 llvm_unreachable("Dummy arguments are not data objects or"
1750 "procedures");
1751 },
1752 },
1753 arg1.u, arg2.u);
1754 }
1755
CheckDummyDataObject(const Symbol & symbol1,const Symbol & symbol2,const DummyDataObject & obj1,const DummyDataObject & obj2)1756 void SubprogramMatchHelper::CheckDummyDataObject(const Symbol &symbol1,
1757 const Symbol &symbol2, const DummyDataObject &obj1,
1758 const DummyDataObject &obj2) {
1759 if (!CheckSameIntent(symbol1, symbol2, obj1.intent, obj2.intent)) {
1760 } else if (!CheckSameAttrs(symbol1, symbol2, obj1.attrs, obj2.attrs)) {
1761 } else if (obj1.type.type() != obj2.type.type()) {
1762 Say(symbol1, symbol2,
1763 "Dummy argument '%s' has type %s; the corresponding argument in the"
1764 " interface body has type %s"_err_en_US,
1765 obj1.type.type().AsFortran(), obj2.type.type().AsFortran());
1766 } else if (!ShapesAreCompatible(obj1, obj2)) {
1767 Say(symbol1, symbol2,
1768 "The shape of dummy argument '%s' does not match the shape of the"
1769 " corresponding argument in the interface body"_err_en_US);
1770 }
1771 // TODO: coshape
1772 }
1773
CheckDummyProcedure(const Symbol & symbol1,const Symbol & symbol2,const DummyProcedure & proc1,const DummyProcedure & proc2)1774 void SubprogramMatchHelper::CheckDummyProcedure(const Symbol &symbol1,
1775 const Symbol &symbol2, const DummyProcedure &proc1,
1776 const DummyProcedure &proc2) {
1777 if (!CheckSameIntent(symbol1, symbol2, proc1.intent, proc2.intent)) {
1778 } else if (!CheckSameAttrs(symbol1, symbol2, proc1.attrs, proc2.attrs)) {
1779 } else if (proc1 != proc2) {
1780 Say(symbol1, symbol2,
1781 "Dummy procedure '%s' does not match the corresponding argument in"
1782 " the interface body"_err_en_US);
1783 }
1784 }
1785
CheckSameIntent(const Symbol & symbol1,const Symbol & symbol2,common::Intent intent1,common::Intent intent2)1786 bool SubprogramMatchHelper::CheckSameIntent(const Symbol &symbol1,
1787 const Symbol &symbol2, common::Intent intent1, common::Intent intent2) {
1788 if (intent1 == intent2) {
1789 return true;
1790 } else {
1791 Say(symbol1, symbol2,
1792 "The intent of dummy argument '%s' does not match the intent"
1793 " of the corresponding argument in the interface body"_err_en_US);
1794 return false;
1795 }
1796 }
1797
1798 // Report an error referring to first symbol with declaration of second symbol
1799 template <typename... A>
Say(const Symbol & symbol1,const Symbol & symbol2,parser::MessageFixedText && text,A &&...args)1800 void SubprogramMatchHelper::Say(const Symbol &symbol1, const Symbol &symbol2,
1801 parser::MessageFixedText &&text, A &&...args) {
1802 auto &message{context().Say(symbol1.name(), std::move(text), symbol1.name(),
1803 std::forward<A>(args)...)};
1804 evaluate::AttachDeclaration(message, symbol2);
1805 }
1806
1807 template <typename ATTRS>
CheckSameAttrs(const Symbol & symbol1,const Symbol & symbol2,ATTRS attrs1,ATTRS attrs2)1808 bool SubprogramMatchHelper::CheckSameAttrs(
1809 const Symbol &symbol1, const Symbol &symbol2, ATTRS attrs1, ATTRS attrs2) {
1810 if (attrs1 == attrs2) {
1811 return true;
1812 }
1813 attrs1.IterateOverMembers([&](auto attr) {
1814 if (!attrs2.test(attr)) {
1815 Say(symbol1, symbol2,
1816 "Dummy argument '%s' has the %s attribute; the corresponding"
1817 " argument in the interface body does not"_err_en_US,
1818 AsFortran(attr));
1819 }
1820 });
1821 attrs2.IterateOverMembers([&](auto attr) {
1822 if (!attrs1.test(attr)) {
1823 Say(symbol1, symbol2,
1824 "Dummy argument '%s' does not have the %s attribute; the"
1825 " corresponding argument in the interface body does"_err_en_US,
1826 AsFortran(attr));
1827 }
1828 });
1829 return false;
1830 }
1831
ShapesAreCompatible(const DummyDataObject & obj1,const DummyDataObject & obj2)1832 bool SubprogramMatchHelper::ShapesAreCompatible(
1833 const DummyDataObject &obj1, const DummyDataObject &obj2) {
1834 return characteristics::ShapesAreCompatible(
1835 FoldShape(obj1.type.shape()), FoldShape(obj2.type.shape()));
1836 }
1837
FoldShape(const evaluate::Shape & shape)1838 evaluate::Shape SubprogramMatchHelper::FoldShape(const evaluate::Shape &shape) {
1839 evaluate::Shape result;
1840 for (const auto &extent : shape) {
1841 result.emplace_back(
1842 evaluate::Fold(context().foldingContext(), common::Clone(extent)));
1843 }
1844 return result;
1845 }
1846
Add(const Symbol & generic,GenericKind kind,const Symbol & specific,const Procedure & procedure)1847 void DistinguishabilityHelper::Add(const Symbol &generic, GenericKind kind,
1848 const Symbol &specific, const Procedure &procedure) {
1849 if (!context_.HasError(specific)) {
1850 nameToInfo_[generic.name()].emplace_back(
1851 ProcedureInfo{kind, specific, procedure});
1852 }
1853 }
1854
Check(const Scope & scope)1855 void DistinguishabilityHelper::Check(const Scope &scope) {
1856 for (const auto &[name, info] : nameToInfo_) {
1857 auto count{info.size()};
1858 for (std::size_t i1{0}; i1 < count - 1; ++i1) {
1859 const auto &[kind1, symbol1, proc1] = info[i1];
1860 for (std::size_t i2{i1 + 1}; i2 < count; ++i2) {
1861 const auto &[kind2, symbol2, proc2] = info[i2];
1862 auto distinguishable{kind1.IsName()
1863 ? evaluate::characteristics::Distinguishable
1864 : evaluate::characteristics::DistinguishableOpOrAssign};
1865 if (!distinguishable(proc1, proc2)) {
1866 SayNotDistinguishable(
1867 GetTopLevelUnitContaining(scope), name, kind1, symbol1, symbol2);
1868 }
1869 }
1870 }
1871 }
1872 }
1873
SayNotDistinguishable(const Scope & scope,const SourceName & name,GenericKind kind,const Symbol & proc1,const Symbol & proc2)1874 void DistinguishabilityHelper::SayNotDistinguishable(const Scope &scope,
1875 const SourceName &name, GenericKind kind, const Symbol &proc1,
1876 const Symbol &proc2) {
1877 std::string name1{proc1.name().ToString()};
1878 std::string name2{proc2.name().ToString()};
1879 if (kind.IsOperator() || kind.IsAssignment()) {
1880 // proc1 and proc2 may come from different scopes so qualify their names
1881 if (proc1.owner().IsDerivedType()) {
1882 name1 = proc1.owner().GetName()->ToString() + '%' + name1;
1883 }
1884 if (proc2.owner().IsDerivedType()) {
1885 name2 = proc2.owner().GetName()->ToString() + '%' + name2;
1886 }
1887 }
1888 parser::Message *msg;
1889 if (scope.sourceRange().Contains(name)) {
1890 msg = &context_.Say(name,
1891 "Generic '%s' may not have specific procedures '%s' and"
1892 " '%s' as their interfaces are not distinguishable"_err_en_US,
1893 MakeOpName(name), name1, name2);
1894 } else {
1895 msg = &context_.Say(*GetTopLevelUnitContaining(proc1).GetName(),
1896 "USE-associated generic '%s' may not have specific procedures '%s' and"
1897 " '%s' as their interfaces are not distinguishable"_err_en_US,
1898 MakeOpName(name), name1, name2);
1899 }
1900 AttachDeclaration(*msg, scope, proc1);
1901 AttachDeclaration(*msg, scope, proc2);
1902 }
1903
1904 // `evaluate::AttachDeclaration` doesn't handle the generic case where `proc`
1905 // comes from a different module but is not necessarily use-associated.
AttachDeclaration(parser::Message & msg,const Scope & scope,const Symbol & proc)1906 void DistinguishabilityHelper::AttachDeclaration(
1907 parser::Message &msg, const Scope &scope, const Symbol &proc) {
1908 const Scope &unit{GetTopLevelUnitContaining(proc)};
1909 if (unit == scope) {
1910 evaluate::AttachDeclaration(msg, proc);
1911 } else {
1912 msg.Attach(unit.GetName().value(),
1913 "'%s' is USE-associated from module '%s'"_en_US, proc.name(),
1914 unit.GetName().value());
1915 }
1916 }
1917
CheckDeclarations(SemanticsContext & context)1918 void CheckDeclarations(SemanticsContext &context) {
1919 CheckHelper{context}.Check();
1920 }
1921 } // namespace Fortran::semantics
1922