1 //===-- lib/Semantics/tools.cpp -------------------------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 9 #include "flang/Parser/tools.h" 10 #include "flang/Common/Fortran.h" 11 #include "flang/Common/indirection.h" 12 #include "flang/Parser/dump-parse-tree.h" 13 #include "flang/Parser/message.h" 14 #include "flang/Parser/parse-tree.h" 15 #include "flang/Semantics/scope.h" 16 #include "flang/Semantics/semantics.h" 17 #include "flang/Semantics/symbol.h" 18 #include "flang/Semantics/tools.h" 19 #include "flang/Semantics/type.h" 20 #include "llvm/Support/raw_ostream.h" 21 #include <algorithm> 22 #include <set> 23 #include <variant> 24 25 namespace Fortran::semantics { 26 27 // Find this or containing scope that matches predicate 28 static const Scope *FindScopeContaining( 29 const Scope &start, std::function<bool(const Scope &)> predicate) { 30 for (const Scope *scope{&start};; scope = &scope->parent()) { 31 if (predicate(*scope)) { 32 return scope; 33 } 34 if (scope->IsGlobal()) { 35 return nullptr; 36 } 37 } 38 } 39 40 const Scope &GetTopLevelUnitContaining(const Scope &start) { 41 CHECK(!start.IsGlobal()); 42 return DEREF(FindScopeContaining( 43 start, [](const Scope &scope) { return scope.parent().IsGlobal(); })); 44 } 45 46 const Scope &GetTopLevelUnitContaining(const Symbol &symbol) { 47 return GetTopLevelUnitContaining(symbol.owner()); 48 } 49 50 const Scope *FindModuleContaining(const Scope &start) { 51 return FindScopeContaining( 52 start, [](const Scope &scope) { return scope.IsModule(); }); 53 } 54 55 const Scope *FindModuleFileContaining(const Scope &start) { 56 return FindScopeContaining( 57 start, [](const Scope &scope) { return scope.IsModuleFile(); }); 58 } 59 60 const Scope &GetProgramUnitContaining(const Scope &start) { 61 CHECK(!start.IsGlobal()); 62 return DEREF(FindScopeContaining(start, [](const Scope &scope) { 63 switch (scope.kind()) { 64 case Scope::Kind::Module: 65 case Scope::Kind::MainProgram: 66 case Scope::Kind::Subprogram: 67 case Scope::Kind::BlockData: 68 return true; 69 default: 70 return false; 71 } 72 })); 73 } 74 75 const Scope &GetProgramUnitContaining(const Symbol &symbol) { 76 return GetProgramUnitContaining(symbol.owner()); 77 } 78 79 const Scope *FindPureProcedureContaining(const Scope &start) { 80 // N.B. We only need to examine the innermost containing program unit 81 // because an internal subprogram of a pure subprogram must also 82 // be pure (C1592). 83 if (start.IsGlobal()) { 84 return nullptr; 85 } else { 86 const Scope &scope{GetProgramUnitContaining(start)}; 87 return IsPureProcedure(scope) ? &scope : nullptr; 88 } 89 } 90 91 static bool MightHaveCompatibleDerivedtypes( 92 const std::optional<evaluate::DynamicType> &lhsType, 93 const std::optional<evaluate::DynamicType> &rhsType) { 94 const DerivedTypeSpec *lhsDerived{evaluate::GetDerivedTypeSpec(lhsType)}; 95 const DerivedTypeSpec *rhsDerived{evaluate::GetDerivedTypeSpec(rhsType)}; 96 if (!lhsDerived || !rhsDerived) { 97 return false; 98 } 99 return *lhsDerived == *rhsDerived || 100 lhsDerived->MightBeAssignmentCompatibleWith(*rhsDerived); 101 } 102 103 Tristate IsDefinedAssignment( 104 const std::optional<evaluate::DynamicType> &lhsType, int lhsRank, 105 const std::optional<evaluate::DynamicType> &rhsType, int rhsRank) { 106 if (!lhsType || !rhsType) { 107 return Tristate::No; // error or rhs is untyped 108 } 109 TypeCategory lhsCat{lhsType->category()}; 110 TypeCategory rhsCat{rhsType->category()}; 111 if (rhsRank > 0 && lhsRank != rhsRank) { 112 return Tristate::Yes; 113 } else if (lhsCat != TypeCategory::Derived) { 114 return ToTristate(lhsCat != rhsCat && 115 (!IsNumericTypeCategory(lhsCat) || !IsNumericTypeCategory(rhsCat))); 116 } else if (MightHaveCompatibleDerivedtypes(lhsType, rhsType)) { 117 return Tristate::Maybe; // TYPE(t) = TYPE(t) can be defined or intrinsic 118 } else { 119 return Tristate::Yes; 120 } 121 } 122 123 bool IsIntrinsicRelational(common::RelationalOperator opr, 124 const evaluate::DynamicType &type0, int rank0, 125 const evaluate::DynamicType &type1, int rank1) { 126 if (!evaluate::AreConformable(rank0, rank1)) { 127 return false; 128 } else { 129 auto cat0{type0.category()}; 130 auto cat1{type1.category()}; 131 if (IsNumericTypeCategory(cat0) && IsNumericTypeCategory(cat1)) { 132 // numeric types: EQ/NE always ok, others ok for non-complex 133 return opr == common::RelationalOperator::EQ || 134 opr == common::RelationalOperator::NE || 135 (cat0 != TypeCategory::Complex && cat1 != TypeCategory::Complex); 136 } else { 137 // not both numeric: only Character is ok 138 return cat0 == TypeCategory::Character && cat1 == TypeCategory::Character; 139 } 140 } 141 } 142 143 bool IsIntrinsicNumeric(const evaluate::DynamicType &type0) { 144 return IsNumericTypeCategory(type0.category()); 145 } 146 bool IsIntrinsicNumeric(const evaluate::DynamicType &type0, int rank0, 147 const evaluate::DynamicType &type1, int rank1) { 148 return evaluate::AreConformable(rank0, rank1) && 149 IsNumericTypeCategory(type0.category()) && 150 IsNumericTypeCategory(type1.category()); 151 } 152 153 bool IsIntrinsicLogical(const evaluate::DynamicType &type0) { 154 return type0.category() == TypeCategory::Logical; 155 } 156 bool IsIntrinsicLogical(const evaluate::DynamicType &type0, int rank0, 157 const evaluate::DynamicType &type1, int rank1) { 158 return evaluate::AreConformable(rank0, rank1) && 159 type0.category() == TypeCategory::Logical && 160 type1.category() == TypeCategory::Logical; 161 } 162 163 bool IsIntrinsicConcat(const evaluate::DynamicType &type0, int rank0, 164 const evaluate::DynamicType &type1, int rank1) { 165 return evaluate::AreConformable(rank0, rank1) && 166 type0.category() == TypeCategory::Character && 167 type1.category() == TypeCategory::Character && 168 type0.kind() == type1.kind(); 169 } 170 171 bool IsGenericDefinedOp(const Symbol &symbol) { 172 const Symbol &ultimate{symbol.GetUltimate()}; 173 if (const auto *generic{ultimate.detailsIf<GenericDetails>()}) { 174 return generic->kind().IsDefinedOperator(); 175 } else if (const auto *misc{ultimate.detailsIf<MiscDetails>()}) { 176 return misc->kind() == MiscDetails::Kind::TypeBoundDefinedOp; 177 } else { 178 return false; 179 } 180 } 181 182 bool IsDefinedOperator(SourceName name) { 183 const char *begin{name.begin()}; 184 const char *end{name.end()}; 185 return begin != end && begin[0] == '.' && end[-1] == '.'; 186 } 187 188 std::string MakeOpName(SourceName name) { 189 std::string result{name.ToString()}; 190 return IsDefinedOperator(name) ? "OPERATOR(" + result + ")" 191 : result.find("operator(", 0) == 0 ? parser::ToUpperCaseLetters(result) 192 : result; 193 } 194 195 bool IsCommonBlockContaining(const Symbol &block, const Symbol &object) { 196 const auto &objects{block.get<CommonBlockDetails>().objects()}; 197 auto found{std::find(objects.begin(), objects.end(), object)}; 198 return found != objects.end(); 199 } 200 201 bool IsUseAssociated(const Symbol &symbol, const Scope &scope) { 202 const Scope &owner{GetProgramUnitContaining(symbol.GetUltimate().owner())}; 203 return owner.kind() == Scope::Kind::Module && 204 owner != GetProgramUnitContaining(scope); 205 } 206 207 bool DoesScopeContain( 208 const Scope *maybeAncestor, const Scope &maybeDescendent) { 209 return maybeAncestor && !maybeDescendent.IsGlobal() && 210 FindScopeContaining(maybeDescendent.parent(), 211 [&](const Scope &scope) { return &scope == maybeAncestor; }); 212 } 213 214 bool DoesScopeContain(const Scope *maybeAncestor, const Symbol &symbol) { 215 return DoesScopeContain(maybeAncestor, symbol.owner()); 216 } 217 218 static const Symbol &FollowHostAssoc(const Symbol &symbol) { 219 for (const Symbol *s{&symbol};;) { 220 const auto *details{s->detailsIf<HostAssocDetails>()}; 221 if (!details) { 222 return *s; 223 } 224 s = &details->symbol(); 225 } 226 } 227 228 bool IsHostAssociated(const Symbol &symbol, const Scope &scope) { 229 const Scope &subprogram{GetProgramUnitContaining(scope)}; 230 return DoesScopeContain( 231 &GetProgramUnitContaining(FollowHostAssoc(symbol)), subprogram); 232 } 233 234 bool IsInStmtFunction(const Symbol &symbol) { 235 if (const Symbol * function{symbol.owner().symbol()}) { 236 return IsStmtFunction(*function); 237 } 238 return false; 239 } 240 241 bool IsStmtFunctionDummy(const Symbol &symbol) { 242 return IsDummy(symbol) && IsInStmtFunction(symbol); 243 } 244 245 bool IsStmtFunctionResult(const Symbol &symbol) { 246 return IsFunctionResult(symbol) && IsInStmtFunction(symbol); 247 } 248 249 bool IsPointerDummy(const Symbol &symbol) { 250 return IsPointer(symbol) && IsDummy(symbol); 251 } 252 253 // proc-name 254 bool IsProcName(const Symbol &symbol) { 255 return symbol.GetUltimate().has<ProcEntityDetails>(); 256 } 257 258 bool IsBindCProcedure(const Symbol &symbol) { 259 if (const auto *procDetails{symbol.detailsIf<ProcEntityDetails>()}) { 260 if (const Symbol * procInterface{procDetails->interface().symbol()}) { 261 // procedure component with a BIND(C) interface 262 return IsBindCProcedure(*procInterface); 263 } 264 } 265 return symbol.attrs().test(Attr::BIND_C) && IsProcedure(symbol); 266 } 267 268 bool IsBindCProcedure(const Scope &scope) { 269 if (const Symbol * symbol{scope.GetSymbol()}) { 270 return IsBindCProcedure(*symbol); 271 } else { 272 return false; 273 } 274 } 275 276 static const Symbol *FindPointerComponent( 277 const Scope &scope, std::set<const Scope *> &visited) { 278 if (!scope.IsDerivedType()) { 279 return nullptr; 280 } 281 if (!visited.insert(&scope).second) { 282 return nullptr; 283 } 284 // If there's a top-level pointer component, return it for clearer error 285 // messaging. 286 for (const auto &pair : scope) { 287 const Symbol &symbol{*pair.second}; 288 if (IsPointer(symbol)) { 289 return &symbol; 290 } 291 } 292 for (const auto &pair : scope) { 293 const Symbol &symbol{*pair.second}; 294 if (const auto *details{symbol.detailsIf<ObjectEntityDetails>()}) { 295 if (const DeclTypeSpec * type{details->type()}) { 296 if (const DerivedTypeSpec * derived{type->AsDerived()}) { 297 if (const Scope * nested{derived->scope()}) { 298 if (const Symbol * 299 pointer{FindPointerComponent(*nested, visited)}) { 300 return pointer; 301 } 302 } 303 } 304 } 305 } 306 } 307 return nullptr; 308 } 309 310 const Symbol *FindPointerComponent(const Scope &scope) { 311 std::set<const Scope *> visited; 312 return FindPointerComponent(scope, visited); 313 } 314 315 const Symbol *FindPointerComponent(const DerivedTypeSpec &derived) { 316 if (const Scope * scope{derived.scope()}) { 317 return FindPointerComponent(*scope); 318 } else { 319 return nullptr; 320 } 321 } 322 323 const Symbol *FindPointerComponent(const DeclTypeSpec &type) { 324 if (const DerivedTypeSpec * derived{type.AsDerived()}) { 325 return FindPointerComponent(*derived); 326 } else { 327 return nullptr; 328 } 329 } 330 331 const Symbol *FindPointerComponent(const DeclTypeSpec *type) { 332 return type ? FindPointerComponent(*type) : nullptr; 333 } 334 335 const Symbol *FindPointerComponent(const Symbol &symbol) { 336 return IsPointer(symbol) ? &symbol : FindPointerComponent(symbol.GetType()); 337 } 338 339 // C1594 specifies several ways by which an object might be globally visible. 340 const Symbol *FindExternallyVisibleObject( 341 const Symbol &object, const Scope &scope) { 342 // TODO: Storage association with any object for which this predicate holds, 343 // once EQUIVALENCE is supported. 344 const Symbol &ultimate{GetAssociationRoot(object)}; 345 if (IsDummy(ultimate)) { 346 if (IsIntentIn(ultimate)) { 347 return &ultimate; 348 } 349 if (IsPointer(ultimate) && IsPureProcedure(ultimate.owner()) && 350 IsFunction(ultimate.owner())) { 351 return &ultimate; 352 } 353 } else if (&GetProgramUnitContaining(ultimate) != 354 &GetProgramUnitContaining(scope)) { 355 return &object; 356 } else if (const Symbol * block{FindCommonBlockContaining(ultimate)}) { 357 return block; 358 } 359 return nullptr; 360 } 361 362 const Symbol &BypassGeneric(const Symbol &symbol) { 363 const Symbol &ultimate{symbol.GetUltimate()}; 364 if (const auto *generic{ultimate.detailsIf<GenericDetails>()}) { 365 if (const Symbol * specific{generic->specific()}) { 366 return *specific; 367 } 368 } 369 return symbol; 370 } 371 372 bool ExprHasTypeCategory( 373 const SomeExpr &expr, const common::TypeCategory &type) { 374 auto dynamicType{expr.GetType()}; 375 return dynamicType && dynamicType->category() == type; 376 } 377 378 bool ExprTypeKindIsDefault( 379 const SomeExpr &expr, const SemanticsContext &context) { 380 auto dynamicType{expr.GetType()}; 381 return dynamicType && 382 dynamicType->category() != common::TypeCategory::Derived && 383 dynamicType->kind() == context.GetDefaultKind(dynamicType->category()); 384 } 385 386 // If an analyzed expr or assignment is missing, dump the node and die. 387 template <typename T> 388 static void CheckMissingAnalysis(bool absent, const T &x) { 389 if (absent) { 390 std::string buf; 391 llvm::raw_string_ostream ss{buf}; 392 ss << "node has not been analyzed:\n"; 393 parser::DumpTree(ss, x); 394 common::die(ss.str().c_str()); 395 } 396 } 397 398 template <typename T> static const SomeExpr *GetTypedExpr(const T &x) { 399 CheckMissingAnalysis(!x.typedExpr, x); 400 return common::GetPtrFromOptional(x.typedExpr->v); 401 } 402 const SomeExpr *GetExprHelper::Get(const parser::Expr &x) { 403 return GetTypedExpr(x); 404 } 405 const SomeExpr *GetExprHelper::Get(const parser::Variable &x) { 406 return GetTypedExpr(x); 407 } 408 const SomeExpr *GetExprHelper::Get(const parser::DataStmtConstant &x) { 409 return GetTypedExpr(x); 410 } 411 const SomeExpr *GetExprHelper::Get(const parser::AllocateObject &x) { 412 return GetTypedExpr(x); 413 } 414 const SomeExpr *GetExprHelper::Get(const parser::PointerObject &x) { 415 return GetTypedExpr(x); 416 } 417 418 const evaluate::Assignment *GetAssignment(const parser::AssignmentStmt &x) { 419 CheckMissingAnalysis(!x.typedAssignment, x); 420 return common::GetPtrFromOptional(x.typedAssignment->v); 421 } 422 const evaluate::Assignment *GetAssignment( 423 const parser::PointerAssignmentStmt &x) { 424 CheckMissingAnalysis(!x.typedAssignment, x); 425 return common::GetPtrFromOptional(x.typedAssignment->v); 426 } 427 428 const Symbol *FindInterface(const Symbol &symbol) { 429 return std::visit( 430 common::visitors{ 431 [](const ProcEntityDetails &details) { 432 return details.interface().symbol(); 433 }, 434 [](const ProcBindingDetails &details) { return &details.symbol(); }, 435 [](const auto &) -> const Symbol * { return nullptr; }, 436 }, 437 symbol.details()); 438 } 439 440 const Symbol *FindSubprogram(const Symbol &symbol) { 441 return std::visit( 442 common::visitors{ 443 [&](const ProcEntityDetails &details) -> const Symbol * { 444 if (const Symbol * interface{details.interface().symbol()}) { 445 return FindSubprogram(*interface); 446 } else { 447 return &symbol; 448 } 449 }, 450 [](const ProcBindingDetails &details) { 451 return FindSubprogram(details.symbol()); 452 }, 453 [&](const SubprogramDetails &) { return &symbol; }, 454 [](const UseDetails &details) { 455 return FindSubprogram(details.symbol()); 456 }, 457 [](const HostAssocDetails &details) { 458 return FindSubprogram(details.symbol()); 459 }, 460 [](const auto &) -> const Symbol * { return nullptr; }, 461 }, 462 symbol.details()); 463 } 464 465 const Symbol *FindOverriddenBinding(const Symbol &symbol) { 466 if (symbol.has<ProcBindingDetails>()) { 467 if (const DeclTypeSpec * parentType{FindParentTypeSpec(symbol.owner())}) { 468 if (const DerivedTypeSpec * parentDerived{parentType->AsDerived()}) { 469 if (const Scope * parentScope{parentDerived->typeSymbol().scope()}) { 470 return parentScope->FindComponent(symbol.name()); 471 } 472 } 473 } 474 } 475 return nullptr; 476 } 477 478 const DeclTypeSpec *FindParentTypeSpec(const DerivedTypeSpec &derived) { 479 return FindParentTypeSpec(derived.typeSymbol()); 480 } 481 482 const DeclTypeSpec *FindParentTypeSpec(const DeclTypeSpec &decl) { 483 if (const DerivedTypeSpec * derived{decl.AsDerived()}) { 484 return FindParentTypeSpec(*derived); 485 } else { 486 return nullptr; 487 } 488 } 489 490 const DeclTypeSpec *FindParentTypeSpec(const Scope &scope) { 491 if (scope.kind() == Scope::Kind::DerivedType) { 492 if (const auto *symbol{scope.symbol()}) { 493 return FindParentTypeSpec(*symbol); 494 } 495 } 496 return nullptr; 497 } 498 499 const DeclTypeSpec *FindParentTypeSpec(const Symbol &symbol) { 500 if (const Scope * scope{symbol.scope()}) { 501 if (const auto *details{symbol.detailsIf<DerivedTypeDetails>()}) { 502 if (const Symbol * parent{details->GetParentComponent(*scope)}) { 503 return parent->GetType(); 504 } 505 } 506 } 507 return nullptr; 508 } 509 510 bool IsExtensibleType(const DerivedTypeSpec *derived) { 511 return derived && !IsIsoCType(derived) && 512 !derived->typeSymbol().attrs().test(Attr::BIND_C) && 513 !derived->typeSymbol().get<DerivedTypeDetails>().sequence(); 514 } 515 516 bool IsBuiltinDerivedType(const DerivedTypeSpec *derived, const char *name) { 517 if (!derived) { 518 return false; 519 } else { 520 const auto &symbol{derived->typeSymbol()}; 521 return symbol.owner().IsModule() && 522 (symbol.owner().GetName().value() == "__fortran_builtins" || 523 symbol.owner().GetName().value() == "__fortran_type_info") && 524 symbol.name() == "__builtin_"s + name; 525 } 526 } 527 528 bool IsIsoCType(const DerivedTypeSpec *derived) { 529 return IsBuiltinDerivedType(derived, "c_ptr") || 530 IsBuiltinDerivedType(derived, "c_funptr"); 531 } 532 533 bool IsTeamType(const DerivedTypeSpec *derived) { 534 return IsBuiltinDerivedType(derived, "team_type"); 535 } 536 537 bool IsEventTypeOrLockType(const DerivedTypeSpec *derivedTypeSpec) { 538 return IsBuiltinDerivedType(derivedTypeSpec, "event_type") || 539 IsBuiltinDerivedType(derivedTypeSpec, "lock_type"); 540 } 541 542 bool IsOrContainsEventOrLockComponent(const Symbol &original) { 543 const Symbol &symbol{ResolveAssociations(original)}; 544 if (const auto *details{symbol.detailsIf<ObjectEntityDetails>()}) { 545 if (const DeclTypeSpec * type{details->type()}) { 546 if (const DerivedTypeSpec * derived{type->AsDerived()}) { 547 return IsEventTypeOrLockType(derived) || 548 FindEventOrLockPotentialComponent(*derived); 549 } 550 } 551 } 552 return false; 553 } 554 555 // Check this symbol suitable as a type-bound procedure - C769 556 bool CanBeTypeBoundProc(const Symbol *symbol) { 557 if (!symbol || IsDummy(*symbol) || IsProcedurePointer(*symbol)) { 558 return false; 559 } else if (symbol->has<SubprogramNameDetails>()) { 560 return symbol->owner().kind() == Scope::Kind::Module; 561 } else if (auto *details{symbol->detailsIf<SubprogramDetails>()}) { 562 return symbol->owner().kind() == Scope::Kind::Module || 563 details->isInterface(); 564 } else if (const auto *proc{symbol->detailsIf<ProcEntityDetails>()}) { 565 return !symbol->attrs().test(Attr::INTRINSIC) && 566 proc->HasExplicitInterface(); 567 } else { 568 return false; 569 } 570 } 571 572 bool IsStaticallyInitialized(const Symbol &symbol, bool ignoreDATAstatements) { 573 if (!ignoreDATAstatements && symbol.test(Symbol::Flag::InDataStmt)) { 574 return true; 575 } else if (IsNamedConstant(symbol)) { 576 return false; 577 } else if (const auto *object{symbol.detailsIf<ObjectEntityDetails>()}) { 578 return object->init().has_value(); 579 } else if (const auto *proc{symbol.detailsIf<ProcEntityDetails>()}) { 580 return proc->init().has_value(); 581 } 582 return false; 583 } 584 585 bool IsInitialized(const Symbol &symbol, bool ignoreDATAstatements, 586 const Symbol *derivedTypeSymbol) { 587 if (IsStaticallyInitialized(symbol, ignoreDATAstatements) || 588 IsAllocatable(symbol)) { 589 return true; 590 } else if (IsNamedConstant(symbol) || IsFunctionResult(symbol) || 591 IsPointer(symbol)) { 592 return false; 593 } else if (const auto *object{symbol.detailsIf<ObjectEntityDetails>()}) { 594 if (!object->isDummy() && object->type()) { 595 const auto *derived{object->type()->AsDerived()}; 596 // error recovery: avoid infinite recursion on invalid 597 // recursive usage of a derived type 598 return derived && &derived->typeSymbol() != derivedTypeSymbol && 599 derived->HasDefaultInitialization(); 600 } 601 } 602 return false; 603 } 604 605 bool HasIntrinsicTypeName(const Symbol &symbol) { 606 std::string name{symbol.name().ToString()}; 607 if (name == "doubleprecision") { 608 return true; 609 } else if (name == "derived") { 610 return false; 611 } else { 612 for (int i{0}; i != common::TypeCategory_enumSize; ++i) { 613 if (name == parser::ToLowerCaseLetters(EnumToString(TypeCategory{i}))) { 614 return true; 615 } 616 } 617 return false; 618 } 619 } 620 621 bool IsSeparateModuleProcedureInterface(const Symbol *symbol) { 622 if (symbol && symbol->attrs().test(Attr::MODULE)) { 623 if (auto *details{symbol->detailsIf<SubprogramDetails>()}) { 624 return details->isInterface(); 625 } 626 } 627 return false; 628 } 629 630 // 3.11 automatic data object 631 bool IsAutomatic(const Symbol &symbol) { 632 if (const auto *object{symbol.detailsIf<ObjectEntityDetails>()}) { 633 if (!object->isDummy() && !IsAllocatable(symbol) && !IsPointer(symbol)) { 634 if (const DeclTypeSpec * type{symbol.GetType()}) { 635 // If a type parameter value is not a constant expression, the 636 // object is automatic. 637 if (type->category() == DeclTypeSpec::Character) { 638 if (const auto &length{ 639 type->characterTypeSpec().length().GetExplicit()}) { 640 if (!evaluate::IsConstantExpr(*length)) { 641 return true; 642 } 643 } 644 } else if (const DerivedTypeSpec * derived{type->AsDerived()}) { 645 for (const auto &pair : derived->parameters()) { 646 if (const auto &value{pair.second.GetExplicit()}) { 647 if (!evaluate::IsConstantExpr(*value)) { 648 return true; 649 } 650 } 651 } 652 } 653 } 654 // If an array bound is not a constant expression, the object is 655 // automatic. 656 for (const ShapeSpec &dim : object->shape()) { 657 if (const auto &lb{dim.lbound().GetExplicit()}) { 658 if (!evaluate::IsConstantExpr(*lb)) { 659 return true; 660 } 661 } 662 if (const auto &ub{dim.ubound().GetExplicit()}) { 663 if (!evaluate::IsConstantExpr(*ub)) { 664 return true; 665 } 666 } 667 } 668 } 669 } 670 return false; 671 } 672 673 bool IsFinalizable(const Symbol &symbol) { 674 if (IsPointer(symbol)) { 675 return false; 676 } 677 if (const auto *object{symbol.detailsIf<ObjectEntityDetails>()}) { 678 if (object->isDummy() && !IsIntentOut(symbol)) { 679 return false; 680 } 681 const DeclTypeSpec *type{object->type()}; 682 const DerivedTypeSpec *derived{type ? type->AsDerived() : nullptr}; 683 return derived && IsFinalizable(*derived); 684 } 685 return false; 686 } 687 688 bool IsFinalizable(const DerivedTypeSpec &derived) { 689 if (!derived.typeSymbol().get<DerivedTypeDetails>().finals().empty()) { 690 return true; 691 } 692 DirectComponentIterator components{derived}; 693 return bool{std::find_if(components.begin(), components.end(), 694 [](const Symbol &component) { return IsFinalizable(component); })}; 695 } 696 697 bool HasImpureFinal(const DerivedTypeSpec &derived) { 698 if (const auto *details{ 699 derived.typeSymbol().detailsIf<DerivedTypeDetails>()}) { 700 const auto &finals{details->finals()}; 701 return std::any_of(finals.begin(), finals.end(), 702 [](const auto &x) { return !x.second->attrs().test(Attr::PURE); }); 703 } else { 704 return false; 705 } 706 } 707 708 bool IsCoarray(const Symbol &symbol) { return symbol.Corank() > 0; } 709 710 bool IsAutomaticObject(const Symbol &symbol) { 711 if (IsDummy(symbol) || IsPointer(symbol) || IsAllocatable(symbol)) { 712 return false; 713 } 714 if (const DeclTypeSpec * type{symbol.GetType()}) { 715 if (type->category() == DeclTypeSpec::Character) { 716 ParamValue length{type->characterTypeSpec().length()}; 717 if (length.isExplicit()) { 718 if (MaybeIntExpr lengthExpr{length.GetExplicit()}) { 719 if (!ToInt64(lengthExpr)) { 720 return true; 721 } 722 } 723 } 724 } 725 } 726 if (symbol.IsObjectArray()) { 727 for (const ShapeSpec &spec : symbol.get<ObjectEntityDetails>().shape()) { 728 auto &lbound{spec.lbound().GetExplicit()}; 729 auto &ubound{spec.ubound().GetExplicit()}; 730 if ((lbound && !evaluate::ToInt64(*lbound)) || 731 (ubound && !evaluate::ToInt64(*ubound))) { 732 return true; 733 } 734 } 735 } 736 return false; 737 } 738 739 bool IsAssumedLengthCharacter(const Symbol &symbol) { 740 if (const DeclTypeSpec * type{symbol.GetType()}) { 741 return type->category() == DeclTypeSpec::Character && 742 type->characterTypeSpec().length().isAssumed(); 743 } else { 744 return false; 745 } 746 } 747 748 bool IsInBlankCommon(const Symbol &symbol) { 749 const Symbol *block{FindCommonBlockContaining(symbol)}; 750 return block && block->name().empty(); 751 } 752 753 // C722 and C723: For a function to be assumed length, it must be external and 754 // of CHARACTER type 755 bool IsExternal(const Symbol &symbol) { 756 return ClassifyProcedure(symbol) == ProcedureDefinitionClass::External; 757 } 758 759 bool IsModuleProcedure(const Symbol &symbol) { 760 return ClassifyProcedure(symbol) == ProcedureDefinitionClass::Module; 761 } 762 const Symbol *IsExternalInPureContext( 763 const Symbol &symbol, const Scope &scope) { 764 if (const auto *pureProc{FindPureProcedureContaining(scope)}) { 765 return FindExternallyVisibleObject(symbol.GetUltimate(), *pureProc); 766 } 767 return nullptr; 768 } 769 770 PotentialComponentIterator::const_iterator FindPolymorphicPotentialComponent( 771 const DerivedTypeSpec &derived) { 772 PotentialComponentIterator potentials{derived}; 773 return std::find_if( 774 potentials.begin(), potentials.end(), [](const Symbol &component) { 775 if (const auto *details{component.detailsIf<ObjectEntityDetails>()}) { 776 const DeclTypeSpec *type{details->type()}; 777 return type && type->IsPolymorphic(); 778 } 779 return false; 780 }); 781 } 782 783 bool IsOrContainsPolymorphicComponent(const Symbol &original) { 784 const Symbol &symbol{ResolveAssociations(original)}; 785 if (const auto *details{symbol.detailsIf<ObjectEntityDetails>()}) { 786 if (const DeclTypeSpec * type{details->type()}) { 787 if (type->IsPolymorphic()) { 788 return true; 789 } 790 if (const DerivedTypeSpec * derived{type->AsDerived()}) { 791 return (bool)FindPolymorphicPotentialComponent(*derived); 792 } 793 } 794 } 795 return false; 796 } 797 798 bool InProtectedContext(const Symbol &symbol, const Scope ¤tScope) { 799 return IsProtected(symbol) && !IsHostAssociated(symbol, currentScope); 800 } 801 802 // C1101 and C1158 803 // Modifiability checks on the leftmost symbol ("base object") 804 // of a data-ref 805 std::optional<parser::MessageFixedText> WhyNotModifiableFirst( 806 const Symbol &symbol, const Scope &scope) { 807 if (symbol.has<AssocEntityDetails>()) { 808 return "'%s' is construct associated with an expression"_en_US; 809 } else if (IsExternalInPureContext(symbol, scope)) { 810 return "'%s' is externally visible and referenced in a pure" 811 " procedure"_en_US; 812 } else if (!IsVariableName(symbol)) { 813 return "'%s' is not a variable"_en_US; 814 } else { 815 return std::nullopt; 816 } 817 } 818 819 // Modifiability checks on the rightmost symbol of a data-ref 820 std::optional<parser::MessageFixedText> WhyNotModifiableLast( 821 const Symbol &symbol, const Scope &scope) { 822 if (IsOrContainsEventOrLockComponent(symbol)) { 823 return "'%s' is an entity with either an EVENT_TYPE or LOCK_TYPE"_en_US; 824 } else { 825 return std::nullopt; 826 } 827 } 828 829 // Modifiability checks on the leftmost (base) symbol of a data-ref 830 // that apply only when there are no pointer components or a base 831 // that is a pointer. 832 std::optional<parser::MessageFixedText> WhyNotModifiableIfNoPtr( 833 const Symbol &symbol, const Scope &scope) { 834 if (InProtectedContext(symbol, scope)) { 835 return "'%s' is protected in this scope"_en_US; 836 } else if (IsIntentIn(symbol)) { 837 return "'%s' is an INTENT(IN) dummy argument"_en_US; 838 } else { 839 return std::nullopt; 840 } 841 } 842 843 // Apply all modifiability checks to a single symbol 844 std::optional<parser::MessageFixedText> WhyNotModifiable( 845 const Symbol &original, const Scope &scope) { 846 const Symbol &symbol{GetAssociationRoot(original)}; 847 if (auto first{WhyNotModifiableFirst(symbol, scope)}) { 848 return first; 849 } else if (auto last{WhyNotModifiableLast(symbol, scope)}) { 850 return last; 851 } else if (!IsPointer(symbol)) { 852 return WhyNotModifiableIfNoPtr(symbol, scope); 853 } else { 854 return std::nullopt; 855 } 856 } 857 858 // Modifiability checks for a data-ref 859 std::optional<parser::Message> WhyNotModifiable(parser::CharBlock at, 860 const SomeExpr &expr, const Scope &scope, bool vectorSubscriptIsOk) { 861 if (auto dataRef{evaluate::ExtractDataRef(expr, true)}) { 862 if (!vectorSubscriptIsOk && evaluate::HasVectorSubscript(expr)) { 863 return parser::Message{at, "Variable has a vector subscript"_en_US}; 864 } 865 const Symbol &first{GetAssociationRoot(dataRef->GetFirstSymbol())}; 866 if (auto maybeWhyFirst{WhyNotModifiableFirst(first, scope)}) { 867 return parser::Message{first.name(), 868 parser::MessageFormattedText{ 869 std::move(*maybeWhyFirst), first.name()}}; 870 } 871 const Symbol &last{dataRef->GetLastSymbol()}; 872 if (auto maybeWhyLast{WhyNotModifiableLast(last, scope)}) { 873 return parser::Message{last.name(), 874 parser::MessageFormattedText{std::move(*maybeWhyLast), last.name()}}; 875 } 876 if (!GetLastPointerSymbol(*dataRef)) { 877 if (auto maybeWhyFirst{WhyNotModifiableIfNoPtr(first, scope)}) { 878 return parser::Message{first.name(), 879 parser::MessageFormattedText{ 880 std::move(*maybeWhyFirst), first.name()}}; 881 } 882 } 883 } else if (!evaluate::IsVariable(expr)) { 884 return parser::Message{ 885 at, "'%s' is not a variable"_en_US, expr.AsFortran()}; 886 } else { 887 // reference to function returning POINTER 888 } 889 return std::nullopt; 890 } 891 892 class ImageControlStmtHelper { 893 using ImageControlStmts = std::variant<parser::ChangeTeamConstruct, 894 parser::CriticalConstruct, parser::EventPostStmt, parser::EventWaitStmt, 895 parser::FormTeamStmt, parser::LockStmt, parser::StopStmt, 896 parser::SyncAllStmt, parser::SyncImagesStmt, parser::SyncMemoryStmt, 897 parser::SyncTeamStmt, parser::UnlockStmt>; 898 899 public: 900 template <typename T> bool operator()(const T &) { 901 return common::HasMember<T, ImageControlStmts>; 902 } 903 template <typename T> bool operator()(const common::Indirection<T> &x) { 904 return (*this)(x.value()); 905 } 906 bool operator()(const parser::AllocateStmt &stmt) { 907 const auto &allocationList{std::get<std::list<parser::Allocation>>(stmt.t)}; 908 for (const auto &allocation : allocationList) { 909 const auto &allocateObject{ 910 std::get<parser::AllocateObject>(allocation.t)}; 911 if (IsCoarrayObject(allocateObject)) { 912 return true; 913 } 914 } 915 return false; 916 } 917 bool operator()(const parser::DeallocateStmt &stmt) { 918 const auto &allocateObjectList{ 919 std::get<std::list<parser::AllocateObject>>(stmt.t)}; 920 for (const auto &allocateObject : allocateObjectList) { 921 if (IsCoarrayObject(allocateObject)) { 922 return true; 923 } 924 } 925 return false; 926 } 927 bool operator()(const parser::CallStmt &stmt) { 928 const auto &procedureDesignator{ 929 std::get<parser::ProcedureDesignator>(stmt.v.t)}; 930 if (auto *name{std::get_if<parser::Name>(&procedureDesignator.u)}) { 931 // TODO: also ensure that the procedure is, in fact, an intrinsic 932 if (name->source == "move_alloc") { 933 const auto &args{std::get<std::list<parser::ActualArgSpec>>(stmt.v.t)}; 934 if (!args.empty()) { 935 const parser::ActualArg &actualArg{ 936 std::get<parser::ActualArg>(args.front().t)}; 937 if (const auto *argExpr{ 938 std::get_if<common::Indirection<parser::Expr>>( 939 &actualArg.u)}) { 940 return HasCoarray(argExpr->value()); 941 } 942 } 943 } 944 } 945 return false; 946 } 947 bool operator()(const parser::Statement<parser::ActionStmt> &stmt) { 948 return std::visit(*this, stmt.statement.u); 949 } 950 951 private: 952 bool IsCoarrayObject(const parser::AllocateObject &allocateObject) { 953 const parser::Name &name{GetLastName(allocateObject)}; 954 return name.symbol && IsCoarray(*name.symbol); 955 } 956 }; 957 958 bool IsImageControlStmt(const parser::ExecutableConstruct &construct) { 959 return std::visit(ImageControlStmtHelper{}, construct.u); 960 } 961 962 std::optional<parser::MessageFixedText> GetImageControlStmtCoarrayMsg( 963 const parser::ExecutableConstruct &construct) { 964 if (const auto *actionStmt{ 965 std::get_if<parser::Statement<parser::ActionStmt>>(&construct.u)}) { 966 return std::visit( 967 common::visitors{ 968 [](const common::Indirection<parser::AllocateStmt> &) 969 -> std::optional<parser::MessageFixedText> { 970 return "ALLOCATE of a coarray is an image control" 971 " statement"_en_US; 972 }, 973 [](const common::Indirection<parser::DeallocateStmt> &) 974 -> std::optional<parser::MessageFixedText> { 975 return "DEALLOCATE of a coarray is an image control" 976 " statement"_en_US; 977 }, 978 [](const common::Indirection<parser::CallStmt> &) 979 -> std::optional<parser::MessageFixedText> { 980 return "MOVE_ALLOC of a coarray is an image control" 981 " statement "_en_US; 982 }, 983 [](const auto &) -> std::optional<parser::MessageFixedText> { 984 return std::nullopt; 985 }, 986 }, 987 actionStmt->statement.u); 988 } 989 return std::nullopt; 990 } 991 992 parser::CharBlock GetImageControlStmtLocation( 993 const parser::ExecutableConstruct &executableConstruct) { 994 return std::visit( 995 common::visitors{ 996 [](const common::Indirection<parser::ChangeTeamConstruct> 997 &construct) { 998 return std::get<parser::Statement<parser::ChangeTeamStmt>>( 999 construct.value().t) 1000 .source; 1001 }, 1002 [](const common::Indirection<parser::CriticalConstruct> &construct) { 1003 return std::get<parser::Statement<parser::CriticalStmt>>( 1004 construct.value().t) 1005 .source; 1006 }, 1007 [](const parser::Statement<parser::ActionStmt> &actionStmt) { 1008 return actionStmt.source; 1009 }, 1010 [](const auto &) { return parser::CharBlock{}; }, 1011 }, 1012 executableConstruct.u); 1013 } 1014 1015 bool HasCoarray(const parser::Expr &expression) { 1016 if (const auto *expr{GetExpr(expression)}) { 1017 for (const Symbol &symbol : evaluate::CollectSymbols(*expr)) { 1018 if (IsCoarray(GetAssociationRoot(symbol))) { 1019 return true; 1020 } 1021 } 1022 } 1023 return false; 1024 } 1025 1026 bool IsPolymorphic(const Symbol &symbol) { 1027 if (const DeclTypeSpec * type{symbol.GetType()}) { 1028 return type->IsPolymorphic(); 1029 } 1030 return false; 1031 } 1032 1033 bool IsPolymorphicAllocatable(const Symbol &symbol) { 1034 return IsAllocatable(symbol) && IsPolymorphic(symbol); 1035 } 1036 1037 std::optional<parser::MessageFormattedText> CheckAccessibleComponent( 1038 const Scope &scope, const Symbol &symbol) { 1039 CHECK(symbol.owner().IsDerivedType()); // symbol must be a component 1040 if (symbol.attrs().test(Attr::PRIVATE)) { 1041 if (FindModuleFileContaining(scope)) { 1042 // Don't enforce component accessibility checks in module files; 1043 // there may be forward-substituted named constants of derived type 1044 // whose structure constructors reference private components. 1045 } else if (const Scope * 1046 moduleScope{FindModuleContaining(symbol.owner())}) { 1047 if (!moduleScope->Contains(scope)) { 1048 return parser::MessageFormattedText{ 1049 "PRIVATE component '%s' is only accessible within module '%s'"_err_en_US, 1050 symbol.name(), moduleScope->GetName().value()}; 1051 } 1052 } 1053 } 1054 return std::nullopt; 1055 } 1056 1057 std::list<SourceName> OrderParameterNames(const Symbol &typeSymbol) { 1058 std::list<SourceName> result; 1059 if (const DerivedTypeSpec * spec{typeSymbol.GetParentTypeSpec()}) { 1060 result = OrderParameterNames(spec->typeSymbol()); 1061 } 1062 const auto ¶mNames{typeSymbol.get<DerivedTypeDetails>().paramNames()}; 1063 result.insert(result.end(), paramNames.begin(), paramNames.end()); 1064 return result; 1065 } 1066 1067 SymbolVector OrderParameterDeclarations(const Symbol &typeSymbol) { 1068 SymbolVector result; 1069 if (const DerivedTypeSpec * spec{typeSymbol.GetParentTypeSpec()}) { 1070 result = OrderParameterDeclarations(spec->typeSymbol()); 1071 } 1072 const auto ¶mDecls{typeSymbol.get<DerivedTypeDetails>().paramDecls()}; 1073 result.insert(result.end(), paramDecls.begin(), paramDecls.end()); 1074 return result; 1075 } 1076 1077 const DeclTypeSpec &FindOrInstantiateDerivedType( 1078 Scope &scope, DerivedTypeSpec &&spec, DeclTypeSpec::Category category) { 1079 spec.EvaluateParameters(scope.context()); 1080 if (const DeclTypeSpec * 1081 type{scope.FindInstantiatedDerivedType(spec, category)}) { 1082 return *type; 1083 } 1084 // Create a new instantiation of this parameterized derived type 1085 // for this particular distinct set of actual parameter values. 1086 DeclTypeSpec &type{scope.MakeDerivedType(category, std::move(spec))}; 1087 type.derivedTypeSpec().Instantiate(scope); 1088 return type; 1089 } 1090 1091 const Symbol *FindSeparateModuleSubprogramInterface(const Symbol *proc) { 1092 if (proc) { 1093 if (const Symbol * submodule{proc->owner().symbol()}) { 1094 if (const auto *details{submodule->detailsIf<ModuleDetails>()}) { 1095 if (const Scope * ancestor{details->ancestor()}) { 1096 const Symbol *iface{ancestor->FindSymbol(proc->name())}; 1097 if (IsSeparateModuleProcedureInterface(iface)) { 1098 return iface; 1099 } 1100 } 1101 } 1102 } 1103 } 1104 return nullptr; 1105 } 1106 1107 ProcedureDefinitionClass ClassifyProcedure(const Symbol &symbol) { // 15.2.2 1108 const Symbol &ultimate{symbol.GetUltimate()}; 1109 if (ultimate.attrs().test(Attr::INTRINSIC)) { 1110 return ProcedureDefinitionClass::Intrinsic; 1111 } else if (ultimate.attrs().test(Attr::EXTERNAL)) { 1112 return ProcedureDefinitionClass::External; 1113 } else if (const auto *procDetails{ultimate.detailsIf<ProcEntityDetails>()}) { 1114 if (procDetails->isDummy()) { 1115 return ProcedureDefinitionClass::Dummy; 1116 } else if (IsPointer(ultimate)) { 1117 return ProcedureDefinitionClass::Pointer; 1118 } 1119 } else if (const Symbol * subp{FindSubprogram(symbol)}) { 1120 if (const auto *subpDetails{subp->detailsIf<SubprogramDetails>()}) { 1121 if (subpDetails->stmtFunction()) { 1122 return ProcedureDefinitionClass::StatementFunction; 1123 } 1124 } 1125 switch (ultimate.owner().kind()) { 1126 case Scope::Kind::Global: 1127 return ProcedureDefinitionClass::External; 1128 case Scope::Kind::Module: 1129 return ProcedureDefinitionClass::Module; 1130 case Scope::Kind::MainProgram: 1131 case Scope::Kind::Subprogram: 1132 return ProcedureDefinitionClass::Internal; 1133 default: 1134 break; 1135 } 1136 } 1137 return ProcedureDefinitionClass::None; 1138 } 1139 1140 // ComponentIterator implementation 1141 1142 template <ComponentKind componentKind> 1143 typename ComponentIterator<componentKind>::const_iterator 1144 ComponentIterator<componentKind>::const_iterator::Create( 1145 const DerivedTypeSpec &derived) { 1146 const_iterator it{}; 1147 it.componentPath_.emplace_back(derived); 1148 it.Increment(); // cue up first relevant component, if any 1149 return it; 1150 } 1151 1152 template <ComponentKind componentKind> 1153 const DerivedTypeSpec * 1154 ComponentIterator<componentKind>::const_iterator::PlanComponentTraversal( 1155 const Symbol &component) const { 1156 if (const auto *details{component.detailsIf<ObjectEntityDetails>()}) { 1157 if (const DeclTypeSpec * type{details->type()}) { 1158 if (const auto *derived{type->AsDerived()}) { 1159 bool traverse{false}; 1160 if constexpr (componentKind == ComponentKind::Ordered) { 1161 // Order Component (only visit parents) 1162 traverse = component.test(Symbol::Flag::ParentComp); 1163 } else if constexpr (componentKind == ComponentKind::Direct) { 1164 traverse = !IsAllocatableOrPointer(component); 1165 } else if constexpr (componentKind == ComponentKind::Ultimate) { 1166 traverse = !IsAllocatableOrPointer(component); 1167 } else if constexpr (componentKind == ComponentKind::Potential) { 1168 traverse = !IsPointer(component); 1169 } else if constexpr (componentKind == ComponentKind::Scope) { 1170 traverse = !IsAllocatableOrPointer(component); 1171 } 1172 if (traverse) { 1173 const Symbol &newTypeSymbol{derived->typeSymbol()}; 1174 // Avoid infinite loop if the type is already part of the types 1175 // being visited. It is possible to have "loops in type" because 1176 // C744 does not forbid to use not yet declared type for 1177 // ALLOCATABLE or POINTER components. 1178 for (const auto &node : componentPath_) { 1179 if (&newTypeSymbol == &node.GetTypeSymbol()) { 1180 return nullptr; 1181 } 1182 } 1183 return derived; 1184 } 1185 } 1186 } // intrinsic & unlimited polymorphic not traversable 1187 } 1188 return nullptr; 1189 } 1190 1191 template <ComponentKind componentKind> 1192 static bool StopAtComponentPre(const Symbol &component) { 1193 if constexpr (componentKind == ComponentKind::Ordered) { 1194 // Parent components need to be iterated upon after their 1195 // sub-components in structure constructor analysis. 1196 return !component.test(Symbol::Flag::ParentComp); 1197 } else if constexpr (componentKind == ComponentKind::Direct) { 1198 return true; 1199 } else if constexpr (componentKind == ComponentKind::Ultimate) { 1200 return component.has<ProcEntityDetails>() || 1201 IsAllocatableOrPointer(component) || 1202 (component.get<ObjectEntityDetails>().type() && 1203 component.get<ObjectEntityDetails>().type()->AsIntrinsic()); 1204 } else if constexpr (componentKind == ComponentKind::Potential) { 1205 return !IsPointer(component); 1206 } 1207 } 1208 1209 template <ComponentKind componentKind> 1210 static bool StopAtComponentPost(const Symbol &component) { 1211 return componentKind == ComponentKind::Ordered && 1212 component.test(Symbol::Flag::ParentComp); 1213 } 1214 1215 template <ComponentKind componentKind> 1216 void ComponentIterator<componentKind>::const_iterator::Increment() { 1217 while (!componentPath_.empty()) { 1218 ComponentPathNode &deepest{componentPath_.back()}; 1219 if (deepest.component()) { 1220 if (!deepest.descended()) { 1221 deepest.set_descended(true); 1222 if (const DerivedTypeSpec * 1223 derived{PlanComponentTraversal(*deepest.component())}) { 1224 componentPath_.emplace_back(*derived); 1225 continue; 1226 } 1227 } else if (!deepest.visited()) { 1228 deepest.set_visited(true); 1229 return; // this is the next component to visit, after descending 1230 } 1231 } 1232 auto &nameIterator{deepest.nameIterator()}; 1233 if (nameIterator == deepest.nameEnd()) { 1234 componentPath_.pop_back(); 1235 } else if constexpr (componentKind == ComponentKind::Scope) { 1236 deepest.set_component(*nameIterator++->second); 1237 deepest.set_descended(false); 1238 deepest.set_visited(true); 1239 return; // this is the next component to visit, before descending 1240 } else { 1241 const Scope &scope{deepest.GetScope()}; 1242 auto scopeIter{scope.find(*nameIterator++)}; 1243 if (scopeIter != scope.cend()) { 1244 const Symbol &component{*scopeIter->second}; 1245 deepest.set_component(component); 1246 deepest.set_descended(false); 1247 if (StopAtComponentPre<componentKind>(component)) { 1248 deepest.set_visited(true); 1249 return; // this is the next component to visit, before descending 1250 } else { 1251 deepest.set_visited(!StopAtComponentPost<componentKind>(component)); 1252 } 1253 } 1254 } 1255 } 1256 } 1257 1258 template <ComponentKind componentKind> 1259 std::string 1260 ComponentIterator<componentKind>::const_iterator::BuildResultDesignatorName() 1261 const { 1262 std::string designator{""}; 1263 for (const auto &node : componentPath_) { 1264 designator += "%" + DEREF(node.component()).name().ToString(); 1265 } 1266 return designator; 1267 } 1268 1269 template class ComponentIterator<ComponentKind::Ordered>; 1270 template class ComponentIterator<ComponentKind::Direct>; 1271 template class ComponentIterator<ComponentKind::Ultimate>; 1272 template class ComponentIterator<ComponentKind::Potential>; 1273 template class ComponentIterator<ComponentKind::Scope>; 1274 1275 UltimateComponentIterator::const_iterator FindCoarrayUltimateComponent( 1276 const DerivedTypeSpec &derived) { 1277 UltimateComponentIterator ultimates{derived}; 1278 return std::find_if(ultimates.begin(), ultimates.end(), IsCoarray); 1279 } 1280 1281 UltimateComponentIterator::const_iterator FindPointerUltimateComponent( 1282 const DerivedTypeSpec &derived) { 1283 UltimateComponentIterator ultimates{derived}; 1284 return std::find_if(ultimates.begin(), ultimates.end(), IsPointer); 1285 } 1286 1287 PotentialComponentIterator::const_iterator FindEventOrLockPotentialComponent( 1288 const DerivedTypeSpec &derived) { 1289 PotentialComponentIterator potentials{derived}; 1290 return std::find_if( 1291 potentials.begin(), potentials.end(), [](const Symbol &component) { 1292 if (const auto *details{component.detailsIf<ObjectEntityDetails>()}) { 1293 const DeclTypeSpec *type{details->type()}; 1294 return type && IsEventTypeOrLockType(type->AsDerived()); 1295 } 1296 return false; 1297 }); 1298 } 1299 1300 UltimateComponentIterator::const_iterator FindAllocatableUltimateComponent( 1301 const DerivedTypeSpec &derived) { 1302 UltimateComponentIterator ultimates{derived}; 1303 return std::find_if(ultimates.begin(), ultimates.end(), IsAllocatable); 1304 } 1305 1306 UltimateComponentIterator::const_iterator 1307 FindPolymorphicAllocatableUltimateComponent(const DerivedTypeSpec &derived) { 1308 UltimateComponentIterator ultimates{derived}; 1309 return std::find_if( 1310 ultimates.begin(), ultimates.end(), IsPolymorphicAllocatable); 1311 } 1312 1313 UltimateComponentIterator::const_iterator 1314 FindPolymorphicAllocatableNonCoarrayUltimateComponent( 1315 const DerivedTypeSpec &derived) { 1316 UltimateComponentIterator ultimates{derived}; 1317 return std::find_if(ultimates.begin(), ultimates.end(), [](const Symbol &x) { 1318 return IsPolymorphicAllocatable(x) && !IsCoarray(x); 1319 }); 1320 } 1321 1322 const Symbol *FindUltimateComponent(const DerivedTypeSpec &derived, 1323 const std::function<bool(const Symbol &)> &predicate) { 1324 UltimateComponentIterator ultimates{derived}; 1325 if (auto it{std::find_if(ultimates.begin(), ultimates.end(), 1326 [&predicate](const Symbol &component) -> bool { 1327 return predicate(component); 1328 })}) { 1329 return &*it; 1330 } 1331 return nullptr; 1332 } 1333 1334 const Symbol *FindUltimateComponent(const Symbol &symbol, 1335 const std::function<bool(const Symbol &)> &predicate) { 1336 if (predicate(symbol)) { 1337 return &symbol; 1338 } else if (const auto *object{symbol.detailsIf<ObjectEntityDetails>()}) { 1339 if (const auto *type{object->type()}) { 1340 if (const auto *derived{type->AsDerived()}) { 1341 return FindUltimateComponent(*derived, predicate); 1342 } 1343 } 1344 } 1345 return nullptr; 1346 } 1347 1348 const Symbol *FindImmediateComponent(const DerivedTypeSpec &type, 1349 const std::function<bool(const Symbol &)> &predicate) { 1350 if (const Scope * scope{type.scope()}) { 1351 const Symbol *parent{nullptr}; 1352 for (const auto &pair : *scope) { 1353 const Symbol *symbol{&*pair.second}; 1354 if (predicate(*symbol)) { 1355 return symbol; 1356 } 1357 if (symbol->test(Symbol::Flag::ParentComp)) { 1358 parent = symbol; 1359 } 1360 } 1361 if (parent) { 1362 if (const auto *object{parent->detailsIf<ObjectEntityDetails>()}) { 1363 if (const auto *type{object->type()}) { 1364 if (const auto *derived{type->AsDerived()}) { 1365 return FindImmediateComponent(*derived, predicate); 1366 } 1367 } 1368 } 1369 } 1370 } 1371 return nullptr; 1372 } 1373 1374 bool IsFunctionResultWithSameNameAsFunction(const Symbol &symbol) { 1375 if (IsFunctionResult(symbol)) { 1376 if (const Symbol * function{symbol.owner().symbol()}) { 1377 return symbol.name() == function->name(); 1378 } 1379 } 1380 return false; 1381 } 1382 1383 void LabelEnforce::Post(const parser::GotoStmt &gotoStmt) { 1384 checkLabelUse(gotoStmt.v); 1385 } 1386 void LabelEnforce::Post(const parser::ComputedGotoStmt &computedGotoStmt) { 1387 for (auto &i : std::get<std::list<parser::Label>>(computedGotoStmt.t)) { 1388 checkLabelUse(i); 1389 } 1390 } 1391 1392 void LabelEnforce::Post(const parser::ArithmeticIfStmt &arithmeticIfStmt) { 1393 checkLabelUse(std::get<1>(arithmeticIfStmt.t)); 1394 checkLabelUse(std::get<2>(arithmeticIfStmt.t)); 1395 checkLabelUse(std::get<3>(arithmeticIfStmt.t)); 1396 } 1397 1398 void LabelEnforce::Post(const parser::AssignStmt &assignStmt) { 1399 checkLabelUse(std::get<parser::Label>(assignStmt.t)); 1400 } 1401 1402 void LabelEnforce::Post(const parser::AssignedGotoStmt &assignedGotoStmt) { 1403 for (auto &i : std::get<std::list<parser::Label>>(assignedGotoStmt.t)) { 1404 checkLabelUse(i); 1405 } 1406 } 1407 1408 void LabelEnforce::Post(const parser::AltReturnSpec &altReturnSpec) { 1409 checkLabelUse(altReturnSpec.v); 1410 } 1411 1412 void LabelEnforce::Post(const parser::ErrLabel &errLabel) { 1413 checkLabelUse(errLabel.v); 1414 } 1415 void LabelEnforce::Post(const parser::EndLabel &endLabel) { 1416 checkLabelUse(endLabel.v); 1417 } 1418 void LabelEnforce::Post(const parser::EorLabel &eorLabel) { 1419 checkLabelUse(eorLabel.v); 1420 } 1421 1422 void LabelEnforce::checkLabelUse(const parser::Label &labelUsed) { 1423 if (labels_.find(labelUsed) == labels_.end()) { 1424 SayWithConstruct(context_, currentStatementSourcePosition_, 1425 parser::MessageFormattedText{ 1426 "Control flow escapes from %s"_err_en_US, construct_}, 1427 constructSourcePosition_); 1428 } 1429 } 1430 1431 parser::MessageFormattedText LabelEnforce::GetEnclosingConstructMsg() { 1432 return {"Enclosing %s statement"_en_US, construct_}; 1433 } 1434 1435 void LabelEnforce::SayWithConstruct(SemanticsContext &context, 1436 parser::CharBlock stmtLocation, parser::MessageFormattedText &&message, 1437 parser::CharBlock constructLocation) { 1438 context.Say(stmtLocation, message) 1439 .Attach(constructLocation, GetEnclosingConstructMsg()); 1440 } 1441 1442 bool HasAlternateReturns(const Symbol &subprogram) { 1443 for (const auto *dummyArg : subprogram.get<SubprogramDetails>().dummyArgs()) { 1444 if (!dummyArg) { 1445 return true; 1446 } 1447 } 1448 return false; 1449 } 1450 1451 bool InCommonBlock(const Symbol &symbol) { 1452 const auto *details{symbol.detailsIf<ObjectEntityDetails>()}; 1453 return details && details->commonBlock(); 1454 } 1455 1456 const std::optional<parser::Name> &MaybeGetNodeName( 1457 const ConstructNode &construct) { 1458 return std::visit( 1459 common::visitors{ 1460 [&](const parser::BlockConstruct *blockConstruct) 1461 -> const std::optional<parser::Name> & { 1462 return std::get<0>(blockConstruct->t).statement.v; 1463 }, 1464 [&](const auto *a) -> const std::optional<parser::Name> & { 1465 return std::get<0>(std::get<0>(a->t).statement.t); 1466 }, 1467 }, 1468 construct); 1469 } 1470 1471 std::optional<ArraySpec> ToArraySpec( 1472 evaluate::FoldingContext &context, const evaluate::Shape &shape) { 1473 if (auto extents{evaluate::AsConstantExtents(context, shape)}) { 1474 ArraySpec result; 1475 for (const auto &extent : *extents) { 1476 result.emplace_back(ShapeSpec::MakeExplicit(Bound{extent})); 1477 } 1478 return {std::move(result)}; 1479 } else { 1480 return std::nullopt; 1481 } 1482 } 1483 1484 std::optional<ArraySpec> ToArraySpec(evaluate::FoldingContext &context, 1485 const std::optional<evaluate::Shape> &shape) { 1486 return shape ? ToArraySpec(context, *shape) : std::nullopt; 1487 } 1488 1489 } // namespace Fortran::semantics 1490