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ItaniumDemangle.h
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1//===--- ItaniumDemangle.h -----------*- mode:c++;eval:(read-only-mode) -*-===//
2// Do not edit! See README.txt.
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// Generic itanium demangler library.
10// There are two copies of this file in the source tree. The one under
11// libcxxabi is the original and the one under llvm is the copy. Use
12// cp-to-llvm.sh to update the copy. See README.txt for more details.
13//
14//===----------------------------------------------------------------------===//
15
16#ifndef DEMANGLE_ITANIUMDEMANGLE_H
17#define DEMANGLE_ITANIUMDEMANGLE_H
18
19#include "DemangleConfig.h"
20#include "StringViewExtras.h"
21#include "Utility.h"
22#include <algorithm>
23#include <cctype>
24#include <cstdint>
25#include <cstdio>
26#include <cstdlib>
27#include <cstring>
28#include <limits>
29#include <new>
30#include <string_view>
31#include <type_traits>
32#include <utility>
33
34#if defined(__clang__)
35#pragma clang diagnostic push
36#pragma clang diagnostic ignored "-Wunused-template"
37#endif
38
40
41template <class T, size_t N> class PODSmallVector {
42 static_assert(std::is_trivially_copyable<T>::value,
43 "T is required to be a trivially copyable type");
44 static_assert(std::is_trivially_default_constructible<T>::value,
45 "T is required to be trivially default constructible");
46 T *First = nullptr;
47 T *Last = nullptr;
48 T *Cap = nullptr;
49 T Inline[N] = {};
50
51 bool isInline() const { return First == Inline; }
52
53 void clearInline() {
54 First = Inline;
55 Last = Inline;
56 Cap = Inline + N;
57 }
58
59 void reserve(size_t NewCap) {
60 size_t S = size();
61 if (isInline()) {
62 auto *Tmp = static_cast<T *>(std::malloc(NewCap * sizeof(T)));
63 if (Tmp == nullptr)
64 std::abort();
65 std::copy(First, Last, Tmp);
66 First = Tmp;
67 } else {
68 First = static_cast<T *>(std::realloc(First, NewCap * sizeof(T)));
69 if (First == nullptr)
70 std::abort();
71 }
72 Last = First + S;
73 Cap = First + NewCap;
74 }
75
76public:
77 PODSmallVector() : First(Inline), Last(First), Cap(Inline + N) {}
78
79 PODSmallVector(const PODSmallVector &) = delete;
81
83 if (Other.isInline()) {
84 std::copy(Other.begin(), Other.end(), First);
85 Last = First + Other.size();
86 Other.clear();
87 return;
88 }
89
90 First = Other.First;
91 Last = Other.Last;
92 Cap = Other.Cap;
93 Other.clearInline();
94 }
95
97 if (Other.isInline()) {
98 if (!isInline()) {
99 std::free(First);
100 clearInline();
101 }
102 std::copy(Other.begin(), Other.end(), First);
103 Last = First + Other.size();
104 Other.clear();
105 return *this;
106 }
107
108 if (isInline()) {
109 First = Other.First;
110 Last = Other.Last;
111 Cap = Other.Cap;
112 Other.clearInline();
113 return *this;
114 }
115
116 std::swap(First, Other.First);
117 std::swap(Last, Other.Last);
118 std::swap(Cap, Other.Cap);
119 Other.clear();
120 return *this;
121 }
122
123 // NOLINTNEXTLINE(readability-identifier-naming)
124 void push_back(const T &Elem) {
125 if (Last == Cap)
126 reserve(size() * 2);
127 *Last++ = Elem;
128 }
129
130 // NOLINTNEXTLINE(readability-identifier-naming)
131 void pop_back() {
132 DEMANGLE_ASSERT(Last != First, "Popping empty vector!");
133 --Last;
134 }
135
136 void shrinkToSize(size_t Index) {
137 DEMANGLE_ASSERT(Index <= size(), "shrinkToSize() can't expand!");
138 Last = First + Index;
139 }
140
141 T *begin() { return First; }
142 T *end() { return Last; }
143
144 bool empty() const { return First == Last; }
145 size_t size() const { return static_cast<size_t>(Last - First); }
146 T &back() {
147 DEMANGLE_ASSERT(Last != First, "Calling back() on empty vector!");
148 return *(Last - 1);
149 }
150 T &operator[](size_t Index) {
151 DEMANGLE_ASSERT(Index < size(), "Invalid access!");
152 return *(begin() + Index);
153 }
154 void clear() { Last = First; }
155
157 if (!isInline())
158 std::free(First);
159 }
160};
161
162class NodeArray;
163
164// Base class of all AST nodes. The AST is built by the parser, then is
165// traversed by the printLeft/Right functions to produce a demangled string.
166class Node {
167public:
168 enum Kind : uint8_t {
169#define NODE(NodeKind) K##NodeKind,
170#include "ItaniumNodes.def"
171 };
172
173 /// Three-way bool to track a cached value. Unknown is possible if this node
174 /// has an unexpanded parameter pack below it that may affect this cache.
175 enum class Cache : uint8_t { Yes, No, Unknown, };
176
177 /// Operator precedence for expression nodes. Used to determine required
178 /// parens in expression emission.
201
202private:
203 Kind K;
204
205 Prec Precedence : 6;
206
207protected:
208 /// Tracks if this node has a component on its right side, in which case we
209 /// need to call printRight.
211
212 /// Track if this node is a (possibly qualified) array type. This can affect
213 /// how we format the output string.
215
216 /// Track if this node is a (possibly qualified) function type. This can
217 /// affect how we format the output string.
219
220public:
221 Node(Kind K_, Prec Precedence_ = Prec::Primary,
222 Cache RHSComponentCache_ = Cache::No, Cache ArrayCache_ = Cache::No,
223 Cache FunctionCache_ = Cache::No)
224 : K(K_), Precedence(Precedence_), RHSComponentCache(RHSComponentCache_),
225 ArrayCache(ArrayCache_), FunctionCache(FunctionCache_) {}
226 Node(Kind K_, Cache RHSComponentCache_, Cache ArrayCache_ = Cache::No,
227 Cache FunctionCache_ = Cache::No)
228 : Node(K_, Prec::Primary, RHSComponentCache_, ArrayCache_,
229 FunctionCache_) {}
230
231 /// Visit the most-derived object corresponding to this object.
232 template<typename Fn> void visit(Fn F) const;
233
234 // The following function is provided by all derived classes:
235 //
236 // Call F with arguments that, when passed to the constructor of this node,
237 // would construct an equivalent node.
238 //template<typename Fn> void match(Fn F) const;
239
243 return hasRHSComponentSlow(OB);
244 }
245
246 bool hasArray(OutputBuffer &OB) const {
248 return ArrayCache == Cache::Yes;
249 return hasArraySlow(OB);
250 }
251
252 bool hasFunction(OutputBuffer &OB) const {
254 return FunctionCache == Cache::Yes;
255 return hasFunctionSlow(OB);
256 }
257
258 Kind getKind() const { return K; }
259
260 Prec getPrecedence() const { return Precedence; }
262 Cache getArrayCache() const { return ArrayCache; }
264
265 virtual bool hasRHSComponentSlow(OutputBuffer &) const { return false; }
266 virtual bool hasArraySlow(OutputBuffer &) const { return false; }
267 virtual bool hasFunctionSlow(OutputBuffer &) const { return false; }
268
269 // Dig through "glue" nodes like ParameterPack and ForwardTemplateReference to
270 // get at a node that actually represents some concrete syntax.
271 virtual const Node *getSyntaxNode(OutputBuffer &) const { return this; }
272
273 // Print this node as an expression operand, surrounding it in parentheses if
274 // its precedence is [Strictly] weaker than P.
276 bool StrictlyWorse = false) const {
277 bool Paren =
278 unsigned(getPrecedence()) >= unsigned(P) + unsigned(StrictlyWorse);
279 if (Paren)
280 OB.printOpen();
281 print(OB);
282 if (Paren)
283 OB.printClose();
284 }
285
286 void print(OutputBuffer &OB) const {
287 OB.printLeft(*this);
289 OB.printRight(*this);
290 }
291
292 // Print an initializer list of this type. Returns true if we printed a custom
293 // representation, false if nothing has been printed and the default
294 // representation should be used.
295 virtual bool printInitListAsType(OutputBuffer &, const NodeArray &) const {
296 return false;
297 }
298
299 virtual std::string_view getBaseName() const { return {}; }
300
301 // Silence compiler warnings, this dtor will never be called.
302 virtual ~Node() = default;
303
304#ifndef NDEBUG
306#endif
307
308private:
309 friend class OutputBuffer;
310
311 // Print the "left" side of this Node into OutputBuffer.
312 //
313 // Note, should only be called from OutputBuffer implementations.
314 // Call \ref OutputBuffer::printLeft instead.
315 virtual void printLeft(OutputBuffer &) const = 0;
316
317 // Print the "right". This distinction is necessary to represent C++ types
318 // that appear on the RHS of their subtype, such as arrays or functions.
319 // Since most types don't have such a component, provide a default
320 // implementation.
321 //
322 // Note, should only be called from OutputBuffer implementations.
323 // Call \ref OutputBuffer::printRight instead.
324 virtual void printRight(OutputBuffer &) const {}
325};
326
328 Node **Elements;
329 size_t NumElements;
330
331public:
332 NodeArray() : Elements(nullptr), NumElements(0) {}
333 NodeArray(Node **Elements_, size_t NumElements_)
334 : Elements(Elements_), NumElements(NumElements_) {}
335
336 bool empty() const { return NumElements == 0; }
337 size_t size() const { return NumElements; }
338
339 Node **begin() const { return Elements; }
340 Node **end() const { return Elements + NumElements; }
341
342 Node *operator[](size_t Idx) const { return Elements[Idx]; }
343
344 void printWithComma(OutputBuffer &OB) const {
345 bool FirstElement = true;
346 for (size_t Idx = 0; Idx != NumElements; ++Idx) {
347 size_t BeforeComma = OB.getCurrentPosition();
348 if (!FirstElement)
349 OB += ", ";
350 size_t AfterComma = OB.getCurrentPosition();
351 Elements[Idx]->printAsOperand(OB, Node::Prec::Comma);
352
353 // Elements[Idx] is an empty parameter pack expansion, we should erase the
354 // comma we just printed.
355 if (AfterComma == OB.getCurrentPosition()) {
356 OB.setCurrentPosition(BeforeComma);
357 continue;
358 }
359
360 FirstElement = false;
361 }
362 }
363
364 // Print an array of integer literals as a string literal. Returns whether we
365 // could do so.
366 bool printAsString(OutputBuffer &OB) const;
367};
368
371 NodeArrayNode(NodeArray Array_) : Node(KNodeArrayNode), Array(Array_) {}
372
373 template<typename Fn> void match(Fn F) const { F(Array); }
374
375 void printLeft(OutputBuffer &OB) const override { Array.printWithComma(OB); }
376};
377
378class DotSuffix final : public Node {
379 const Node *Prefix;
380 const std::string_view Suffix;
381
382public:
383 DotSuffix(const Node *Prefix_, std::string_view Suffix_)
384 : Node(KDotSuffix), Prefix(Prefix_), Suffix(Suffix_) {}
385
386 template<typename Fn> void match(Fn F) const { F(Prefix, Suffix); }
387
388 void printLeft(OutputBuffer &OB) const override {
389 Prefix->print(OB);
390 OB += " (";
391 OB += Suffix;
392 OB += ")";
393 }
394};
395
396class VendorExtQualType final : public Node {
397 const Node *Ty;
398 std::string_view Ext;
399 const Node *TA;
400
401public:
402 VendorExtQualType(const Node *Ty_, std::string_view Ext_, const Node *TA_)
403 : Node(KVendorExtQualType), Ty(Ty_), Ext(Ext_), TA(TA_) {}
404
405 const Node *getTy() const { return Ty; }
406 std::string_view getExt() const { return Ext; }
407 const Node *getTA() const { return TA; }
408
409 template <typename Fn> void match(Fn F) const { F(Ty, Ext, TA); }
410
411 void printLeft(OutputBuffer &OB) const override {
412 Ty->print(OB);
413 OB += " ";
414 OB += Ext;
415 if (TA != nullptr)
416 TA->print(OB);
417 }
418};
419
425
432
434 return Q1 = static_cast<Qualifiers>(Q1 | Q2);
435}
436
437class QualType final : public Node {
438protected:
440 const Node *Child;
441
442 void printQuals(OutputBuffer &OB) const {
443 if (Quals & QualConst)
444 OB += " const";
445 if (Quals & QualVolatile)
446 OB += " volatile";
447 if (Quals & QualRestrict)
448 OB += " restrict";
449 }
450
451public:
452 QualType(const Node *Child_, Qualifiers Quals_)
453 : Node(KQualType, Child_->getRHSComponentCache(), Child_->getArrayCache(),
454 Child_->getFunctionCache()),
455 Quals(Quals_), Child(Child_) {}
456
457 Qualifiers getQuals() const { return Quals; }
458 const Node *getChild() const { return Child; }
459
460 template<typename Fn> void match(Fn F) const { F(Child, Quals); }
461
462 bool hasRHSComponentSlow(OutputBuffer &OB) const override {
463 return Child->hasRHSComponent(OB);
464 }
465 bool hasArraySlow(OutputBuffer &OB) const override {
466 return Child->hasArray(OB);
467 }
468 bool hasFunctionSlow(OutputBuffer &OB) const override {
469 return Child->hasFunction(OB);
470 }
471
472 void printLeft(OutputBuffer &OB) const override {
473 OB.printLeft(*Child);
474 printQuals(OB);
475 }
476
477 void printRight(OutputBuffer &OB) const override { OB.printRight(*Child); }
478};
479
480class ConversionOperatorType final : public Node {
481 const Node *Ty;
482
483public:
485 : Node(KConversionOperatorType), Ty(Ty_) {}
486
487 template<typename Fn> void match(Fn F) const { F(Ty); }
488
489 void printLeft(OutputBuffer &OB) const override {
490 OB += "operator ";
491 Ty->print(OB);
492 }
493};
494
495class PostfixQualifiedType final : public Node {
496 const Node *Ty;
497 const std::string_view Postfix;
498
499public:
500 PostfixQualifiedType(const Node *Ty_, std::string_view Postfix_)
501 : Node(KPostfixQualifiedType), Ty(Ty_), Postfix(Postfix_) {}
502
503 template<typename Fn> void match(Fn F) const { F(Ty, Postfix); }
504
505 void printLeft(OutputBuffer &OB) const override {
506 OB.printLeft(*Ty);
507 OB += Postfix;
508 }
509};
510
511class NameType final : public Node {
512 const std::string_view Name;
513
514public:
515 NameType(std::string_view Name_) : Node(KNameType), Name(Name_) {}
516
517 template<typename Fn> void match(Fn F) const { F(Name); }
518
519 std::string_view getName() const { return Name; }
520 std::string_view getBaseName() const override { return Name; }
521
522 void printLeft(OutputBuffer &OB) const override { OB += Name; }
523};
524
525class BitIntType final : public Node {
526 const Node *Size;
527 bool Signed;
528
529public:
530 BitIntType(const Node *Size_, bool Signed_)
531 : Node(KBitIntType), Size(Size_), Signed(Signed_) {}
532
533 template <typename Fn> void match(Fn F) const { F(Size, Signed); }
534
535 void printLeft(OutputBuffer &OB) const override {
536 if (!Signed)
537 OB += "unsigned ";
538 OB += "_BitInt";
539 OB.printOpen();
540 Size->printAsOperand(OB);
541 OB.printClose();
542 }
543};
544
546 std::string_view Kind;
547 Node *Child;
548public:
549 ElaboratedTypeSpefType(std::string_view Kind_, Node *Child_)
550 : Node(KElaboratedTypeSpefType), Kind(Kind_), Child(Child_) {}
551
552 template<typename Fn> void match(Fn F) const { F(Kind, Child); }
553
554 void printLeft(OutputBuffer &OB) const override {
555 OB += Kind;
556 OB += ' ';
557 Child->print(OB);
558 }
559};
560
561class TransformedType : public Node {
562 std::string_view Transform;
563 Node *BaseType;
564public:
565 TransformedType(std::string_view Transform_, Node *BaseType_)
566 : Node(KTransformedType), Transform(Transform_), BaseType(BaseType_) {}
567
568 template<typename Fn> void match(Fn F) const { F(Transform, BaseType); }
569
570 void printLeft(OutputBuffer &OB) const override {
571 OB += Transform;
572 OB += '(';
573 BaseType->print(OB);
574 OB += ')';
575 }
576};
577
578struct AbiTagAttr : Node {
580 std::string_view Tag;
581
582 AbiTagAttr(Node *Base_, std::string_view Tag_)
583 : Node(KAbiTagAttr, Base_->getRHSComponentCache(), Base_->getArrayCache(),
584 Base_->getFunctionCache()),
585 Base(Base_), Tag(Tag_) {}
586
587 template<typename Fn> void match(Fn F) const { F(Base, Tag); }
588
589 std::string_view getBaseName() const override { return Base->getBaseName(); }
590
591 void printLeft(OutputBuffer &OB) const override {
592 OB.printLeft(*Base);
593 OB += "[abi:";
594 OB += Tag;
595 OB += "]";
596 }
597};
598
599class EnableIfAttr : public Node {
600 NodeArray Conditions;
601public:
603 : Node(KEnableIfAttr), Conditions(Conditions_) {}
604
605 template<typename Fn> void match(Fn F) const { F(Conditions); }
606
607 void printLeft(OutputBuffer &OB) const override {
608 OB += " [enable_if:";
609 Conditions.printWithComma(OB);
610 OB += ']';
611 }
612};
613
614class ObjCProtoName : public Node {
615 const Node *Ty;
616 std::string_view Protocol;
617
618public:
619 ObjCProtoName(const Node *Ty_, std::string_view Protocol_)
620 : Node(KObjCProtoName), Ty(Ty_), Protocol(Protocol_) {}
621
622 template<typename Fn> void match(Fn F) const { F(Ty, Protocol); }
623
624 bool isObjCObject() const {
625 return Ty->getKind() == KNameType &&
626 static_cast<const NameType *>(Ty)->getName() == "objc_object";
627 }
628
629 std::string_view getProtocol() const { return Protocol; }
630
631 void printLeft(OutputBuffer &OB) const override {
632 Ty->print(OB);
633 OB += "<";
634 OB += Protocol;
635 OB += ">";
636 }
637};
638
639class PointerType final : public Node {
640 const Node *Pointee;
641
642public:
643 PointerType(const Node *Pointee_)
644 : Node(KPointerType, Pointee_->getRHSComponentCache()),
645 Pointee(Pointee_) {}
646
647 const Node *getPointee() const { return Pointee; }
648
649 template<typename Fn> void match(Fn F) const { F(Pointee); }
650
651 bool hasRHSComponentSlow(OutputBuffer &OB) const override {
652 return Pointee->hasRHSComponent(OB);
653 }
654
655 void printLeft(OutputBuffer &OB) const override {
656 // We rewrite objc_object<SomeProtocol>* into id<SomeProtocol>.
657 if (Pointee->getKind() != KObjCProtoName ||
658 !static_cast<const ObjCProtoName *>(Pointee)->isObjCObject()) {
659 OB.printLeft(*Pointee);
660 if (Pointee->hasArray(OB))
661 OB += " ";
662 if (Pointee->hasArray(OB) || Pointee->hasFunction(OB))
663 OB += "(";
664 OB += "*";
665 } else {
666 const auto *objcProto = static_cast<const ObjCProtoName *>(Pointee);
667 OB += "id<";
668 OB += objcProto->getProtocol();
669 OB += ">";
670 }
671 }
672
673 void printRight(OutputBuffer &OB) const override {
674 if (Pointee->getKind() != KObjCProtoName ||
675 !static_cast<const ObjCProtoName *>(Pointee)->isObjCObject()) {
676 if (Pointee->hasArray(OB) || Pointee->hasFunction(OB))
677 OB += ")";
678 OB.printRight(*Pointee);
679 }
680 }
681};
682
687
688// Represents either a LValue or an RValue reference type.
689class ReferenceType : public Node {
690 const Node *Pointee;
691 ReferenceKind RK;
692
693 mutable bool Printing = false;
694
695 // Dig through any refs to refs, collapsing the ReferenceTypes as we go. The
696 // rule here is rvalue ref to rvalue ref collapses to a rvalue ref, and any
697 // other combination collapses to a lvalue ref.
698 //
699 // A combination of a TemplateForwardReference and a back-ref Substitution
700 // from an ill-formed string may have created a cycle; use cycle detection to
701 // avoid looping forever.
702 std::pair<ReferenceKind, const Node *> collapse(OutputBuffer &OB) const {
703 auto SoFar = std::make_pair(RK, Pointee);
704 // Track the chain of nodes for the Floyd's 'tortoise and hare'
705 // cycle-detection algorithm, since getSyntaxNode(S) is impure
707 for (;;) {
708 const Node *SN = SoFar.second->getSyntaxNode(OB);
709 if (SN->getKind() != KReferenceType)
710 break;
711 auto *RT = static_cast<const ReferenceType *>(SN);
712 SoFar.second = RT->Pointee;
713 SoFar.first = std::min(SoFar.first, RT->RK);
714
715 // The middle of Prev is the 'slow' pointer moving at half speed
716 Prev.push_back(SoFar.second);
717 if (Prev.size() > 1 && SoFar.second == Prev[(Prev.size() - 1) / 2]) {
718 // Cycle detected
719 SoFar.second = nullptr;
720 break;
721 }
722 }
723 return SoFar;
724 }
725
726public:
727 ReferenceType(const Node *Pointee_, ReferenceKind RK_)
728 : Node(KReferenceType, Pointee_->getRHSComponentCache()),
729 Pointee(Pointee_), RK(RK_) {}
730
731 template<typename Fn> void match(Fn F) const { F(Pointee, RK); }
732
733 bool hasRHSComponentSlow(OutputBuffer &OB) const override {
734 return Pointee->hasRHSComponent(OB);
735 }
736
737 void printLeft(OutputBuffer &OB) const override {
738 if (Printing)
739 return;
740 ScopedOverride<bool> SavePrinting(Printing, true);
741 std::pair<ReferenceKind, const Node *> Collapsed = collapse(OB);
742 if (!Collapsed.second)
743 return;
744 OB.printLeft(*Collapsed.second);
745 if (Collapsed.second->hasArray(OB))
746 OB += " ";
747 if (Collapsed.second->hasArray(OB) || Collapsed.second->hasFunction(OB))
748 OB += "(";
749
750 OB += (Collapsed.first == ReferenceKind::LValue ? "&" : "&&");
751 }
752 void printRight(OutputBuffer &OB) const override {
753 if (Printing)
754 return;
755 ScopedOverride<bool> SavePrinting(Printing, true);
756 std::pair<ReferenceKind, const Node *> Collapsed = collapse(OB);
757 if (!Collapsed.second)
758 return;
759 if (Collapsed.second->hasArray(OB) || Collapsed.second->hasFunction(OB))
760 OB += ")";
761 OB.printRight(*Collapsed.second);
762 }
763};
764
765class PointerToMemberType final : public Node {
766 const Node *ClassType;
767 const Node *MemberType;
768
769public:
770 PointerToMemberType(const Node *ClassType_, const Node *MemberType_)
771 : Node(KPointerToMemberType, MemberType_->getRHSComponentCache()),
772 ClassType(ClassType_), MemberType(MemberType_) {}
773
774 template<typename Fn> void match(Fn F) const { F(ClassType, MemberType); }
775
776 bool hasRHSComponentSlow(OutputBuffer &OB) const override {
777 return MemberType->hasRHSComponent(OB);
778 }
779
780 void printLeft(OutputBuffer &OB) const override {
781 OB.printLeft(*MemberType);
782 if (MemberType->hasArray(OB) || MemberType->hasFunction(OB))
783 OB += "(";
784 else
785 OB += " ";
786 ClassType->print(OB);
787 OB += "::*";
788 }
789
790 void printRight(OutputBuffer &OB) const override {
791 if (MemberType->hasArray(OB) || MemberType->hasFunction(OB))
792 OB += ")";
793 OB.printRight(*MemberType);
794 }
795};
796
797class ArrayType final : public Node {
798 const Node *Base;
799 Node *Dimension;
800
801public:
802 ArrayType(const Node *Base_, Node *Dimension_)
803 : Node(KArrayType,
804 /*RHSComponentCache=*/Cache::Yes,
805 /*ArrayCache=*/Cache::Yes),
806 Base(Base_), Dimension(Dimension_) {}
807
808 template<typename Fn> void match(Fn F) const { F(Base, Dimension); }
809
810 bool hasRHSComponentSlow(OutputBuffer &) const override { return true; }
811 bool hasArraySlow(OutputBuffer &) const override { return true; }
812
813 void printLeft(OutputBuffer &OB) const override { OB.printLeft(*Base); }
814
815 void printRight(OutputBuffer &OB) const override {
816 if (OB.back() != ']')
817 OB += " ";
818 OB += "[";
819 if (Dimension)
820 Dimension->print(OB);
821 OB += "]";
822 OB.printRight(*Base);
823 }
824
826 const NodeArray &Elements) const override {
827 if (Base->getKind() == KNameType &&
828 static_cast<const NameType *>(Base)->getName() == "char") {
829 return Elements.printAsString(OB);
830 }
831 return false;
832 }
833};
834
835class FunctionType final : public Node {
836 const Node *Ret;
837 NodeArray Params;
838 Qualifiers CVQuals;
839 FunctionRefQual RefQual;
840 const Node *ExceptionSpec;
841
842public:
843 FunctionType(const Node *Ret_, NodeArray Params_, Qualifiers CVQuals_,
844 FunctionRefQual RefQual_, const Node *ExceptionSpec_)
845 : Node(KFunctionType,
846 /*RHSComponentCache=*/Cache::Yes, /*ArrayCache=*/Cache::No,
847 /*FunctionCache=*/Cache::Yes),
848 Ret(Ret_), Params(Params_), CVQuals(CVQuals_), RefQual(RefQual_),
849 ExceptionSpec(ExceptionSpec_) {}
850
851 template<typename Fn> void match(Fn F) const {
852 F(Ret, Params, CVQuals, RefQual, ExceptionSpec);
853 }
854
855 bool hasRHSComponentSlow(OutputBuffer &) const override { return true; }
856 bool hasFunctionSlow(OutputBuffer &) const override { return true; }
857
858 // Handle C++'s ... quirky decl grammar by using the left & right
859 // distinction. Consider:
860 // int (*f(float))(char) {}
861 // f is a function that takes a float and returns a pointer to a function
862 // that takes a char and returns an int. If we're trying to print f, start
863 // by printing out the return types's left, then print our parameters, then
864 // finally print right of the return type.
865 void printLeft(OutputBuffer &OB) const override {
866 OB.printLeft(*Ret);
867 OB += " ";
868 }
869
870 void printRight(OutputBuffer &OB) const override {
871 OB.printOpen();
872 Params.printWithComma(OB);
873 OB.printClose();
874 OB.printRight(*Ret);
875
876 if (CVQuals & QualConst)
877 OB += " const";
878 if (CVQuals & QualVolatile)
879 OB += " volatile";
880 if (CVQuals & QualRestrict)
881 OB += " restrict";
882
883 if (RefQual == FrefQualLValue)
884 OB += " &";
885 else if (RefQual == FrefQualRValue)
886 OB += " &&";
887
888 if (ExceptionSpec != nullptr) {
889 OB += ' ';
890 ExceptionSpec->print(OB);
891 }
892 }
893};
894
895class NoexceptSpec : public Node {
896 const Node *E;
897public:
898 NoexceptSpec(const Node *E_) : Node(KNoexceptSpec), E(E_) {}
899
900 template<typename Fn> void match(Fn F) const { F(E); }
901
902 void printLeft(OutputBuffer &OB) const override {
903 OB += "noexcept";
904 OB.printOpen();
905 E->printAsOperand(OB);
906 OB.printClose();
907 }
908};
909
911 NodeArray Types;
912public:
914 : Node(KDynamicExceptionSpec), Types(Types_) {}
915
916 template<typename Fn> void match(Fn F) const { F(Types); }
917
918 void printLeft(OutputBuffer &OB) const override {
919 OB += "throw";
920 OB.printOpen();
921 Types.printWithComma(OB);
922 OB.printClose();
923 }
924};
925
926/// Represents the explicitly named object parameter.
927/// E.g.,
928/// \code{.cpp}
929/// struct Foo {
930/// void bar(this Foo && self);
931/// };
932/// \endcode
933class ExplicitObjectParameter final : public Node {
934 Node *Base;
935
936public:
938 : Node(KExplicitObjectParameter), Base(Base_) {
940 Base != nullptr,
941 "Creating an ExplicitObjectParameter without a valid Base Node.");
942 }
943
944 template <typename Fn> void match(Fn F) const { F(Base); }
945
946 void printLeft(OutputBuffer &OB) const override {
947 OB += "this ";
948 Base->print(OB);
949 }
950};
951
952class FunctionEncoding final : public Node {
953 const Node *Ret;
954 const Node *Name;
955 NodeArray Params;
956 const Node *Attrs;
957 const Node *Requires;
958 Qualifiers CVQuals;
959 FunctionRefQual RefQual;
960
961public:
962 FunctionEncoding(const Node *Ret_, const Node *Name_, NodeArray Params_,
963 const Node *Attrs_, const Node *Requires_,
964 Qualifiers CVQuals_, FunctionRefQual RefQual_)
965 : Node(KFunctionEncoding,
966 /*RHSComponentCache=*/Cache::Yes, /*ArrayCache=*/Cache::No,
967 /*FunctionCache=*/Cache::Yes),
968 Ret(Ret_), Name(Name_), Params(Params_), Attrs(Attrs_),
969 Requires(Requires_), CVQuals(CVQuals_), RefQual(RefQual_) {}
970
971 template<typename Fn> void match(Fn F) const {
972 F(Ret, Name, Params, Attrs, Requires, CVQuals, RefQual);
973 }
974
975 Qualifiers getCVQuals() const { return CVQuals; }
976 FunctionRefQual getRefQual() const { return RefQual; }
977 NodeArray getParams() const { return Params; }
978 const Node *getReturnType() const { return Ret; }
979 const Node *getAttrs() const { return Attrs; }
980 const Node *getRequires() const { return Requires; }
981
982 bool hasRHSComponentSlow(OutputBuffer &) const override { return true; }
983 bool hasFunctionSlow(OutputBuffer &) const override { return true; }
984
985 const Node *getName() const { return Name; }
986
987 void printLeft(OutputBuffer &OB) const override {
988 if (Ret) {
989 OB.printLeft(*Ret);
990 if (!Ret->hasRHSComponent(OB))
991 OB += " ";
992 }
993
994 Name->print(OB);
995 }
996
997 void printRight(OutputBuffer &OB) const override {
998 OB.printOpen();
999 Params.printWithComma(OB);
1000 OB.printClose();
1001
1002 if (Ret)
1003 OB.printRight(*Ret);
1004
1005 if (CVQuals & QualConst)
1006 OB += " const";
1007 if (CVQuals & QualVolatile)
1008 OB += " volatile";
1009 if (CVQuals & QualRestrict)
1010 OB += " restrict";
1011
1012 if (RefQual == FrefQualLValue)
1013 OB += " &";
1014 else if (RefQual == FrefQualRValue)
1015 OB += " &&";
1016
1017 if (Attrs != nullptr)
1018 Attrs->print(OB);
1019
1020 if (Requires != nullptr) {
1021 OB += " requires ";
1022 Requires->print(OB);
1023 }
1024 }
1025};
1026
1027class LiteralOperator : public Node {
1028 const Node *OpName;
1029
1030public:
1031 LiteralOperator(const Node *OpName_)
1032 : Node(KLiteralOperator), OpName(OpName_) {}
1033
1034 template<typename Fn> void match(Fn F) const { F(OpName); }
1035
1036 void printLeft(OutputBuffer &OB) const override {
1037 OB += "operator\"\" ";
1038 OpName->print(OB);
1039 }
1040};
1041
1042class SpecialName final : public Node {
1043 const std::string_view Special;
1044 const Node *Child;
1045
1046public:
1047 SpecialName(std::string_view Special_, const Node *Child_)
1048 : Node(KSpecialName), Special(Special_), Child(Child_) {}
1049
1050 template<typename Fn> void match(Fn F) const { F(Special, Child); }
1051
1052 void printLeft(OutputBuffer &OB) const override {
1053 OB += Special;
1054 Child->print(OB);
1055 }
1056};
1057
1058class CtorVtableSpecialName final : public Node {
1059 const Node *FirstType;
1060 const Node *SecondType;
1061
1062public:
1063 CtorVtableSpecialName(const Node *FirstType_, const Node *SecondType_)
1064 : Node(KCtorVtableSpecialName),
1065 FirstType(FirstType_), SecondType(SecondType_) {}
1066
1067 template<typename Fn> void match(Fn F) const { F(FirstType, SecondType); }
1068
1069 void printLeft(OutputBuffer &OB) const override {
1070 OB += "construction vtable for ";
1071 FirstType->print(OB);
1072 OB += "-in-";
1073 SecondType->print(OB);
1074 }
1075};
1076
1080
1081 NestedName(Node *Qual_, Node *Name_)
1082 : Node(KNestedName), Qual(Qual_), Name(Name_) {}
1083
1084 template<typename Fn> void match(Fn F) const { F(Qual, Name); }
1085
1086 std::string_view getBaseName() const override { return Name->getBaseName(); }
1087
1088 void printLeft(OutputBuffer &OB) const override {
1089 Qual->print(OB);
1090 OB += "::";
1091 Name->print(OB);
1092 }
1093};
1094
1098
1100 : Node(KMemberLikeFriendName), Qual(Qual_), Name(Name_) {}
1101
1102 template<typename Fn> void match(Fn F) const { F(Qual, Name); }
1103
1104 std::string_view getBaseName() const override { return Name->getBaseName(); }
1105
1106 void printLeft(OutputBuffer &OB) const override {
1107 Qual->print(OB);
1108 OB += "::friend ";
1109 Name->print(OB);
1110 }
1111};
1112
1117
1118 ModuleName(ModuleName *Parent_, Node *Name_, bool IsPartition_ = false)
1119 : Node(KModuleName), Parent(Parent_), Name(Name_),
1120 IsPartition(IsPartition_) {}
1121
1122 template <typename Fn> void match(Fn F) const {
1124 }
1125
1126 void printLeft(OutputBuffer &OB) const override {
1127 if (Parent)
1128 Parent->print(OB);
1129 if (Parent || IsPartition)
1130 OB += IsPartition ? ':' : '.';
1131 Name->print(OB);
1132 }
1133};
1134
1138
1139 ModuleEntity(ModuleName *Module_, Node *Name_)
1140 : Node(KModuleEntity), Module(Module_), Name(Name_) {}
1141
1142 template <typename Fn> void match(Fn F) const { F(Module, Name); }
1143
1144 std::string_view getBaseName() const override { return Name->getBaseName(); }
1145
1146 void printLeft(OutputBuffer &OB) const override {
1147 Name->print(OB);
1148 OB += '@';
1149 Module->print(OB);
1150 }
1151};
1152
1153struct LocalName : Node {
1156
1157 LocalName(Node *Encoding_, Node *Entity_)
1158 : Node(KLocalName), Encoding(Encoding_), Entity(Entity_) {}
1159
1160 template<typename Fn> void match(Fn F) const { F(Encoding, Entity); }
1161
1162 void printLeft(OutputBuffer &OB) const override {
1163 Encoding->print(OB);
1164 OB += "::";
1165 Entity->print(OB);
1166 }
1167};
1168
1169class QualifiedName final : public Node {
1170 // qualifier::name
1171 const Node *Qualifier;
1172 const Node *Name;
1173
1174public:
1175 QualifiedName(const Node *Qualifier_, const Node *Name_)
1176 : Node(KQualifiedName), Qualifier(Qualifier_), Name(Name_) {}
1177
1178 template<typename Fn> void match(Fn F) const { F(Qualifier, Name); }
1179
1180 std::string_view getBaseName() const override { return Name->getBaseName(); }
1181
1182 void printLeft(OutputBuffer &OB) const override {
1183 Qualifier->print(OB);
1184 OB += "::";
1185 Name->print(OB);
1186 }
1187};
1188
1189class VectorType final : public Node {
1190 const Node *BaseType;
1191 const Node *Dimension;
1192
1193public:
1194 VectorType(const Node *BaseType_, const Node *Dimension_)
1195 : Node(KVectorType), BaseType(BaseType_), Dimension(Dimension_) {}
1196
1197 const Node *getBaseType() const { return BaseType; }
1198 const Node *getDimension() const { return Dimension; }
1199
1200 template<typename Fn> void match(Fn F) const { F(BaseType, Dimension); }
1201
1202 void printLeft(OutputBuffer &OB) const override {
1203 BaseType->print(OB);
1204 OB += " vector[";
1205 if (Dimension)
1206 Dimension->print(OB);
1207 OB += "]";
1208 }
1209};
1210
1211class PixelVectorType final : public Node {
1212 const Node *Dimension;
1213
1214public:
1215 PixelVectorType(const Node *Dimension_)
1216 : Node(KPixelVectorType), Dimension(Dimension_) {}
1217
1218 template<typename Fn> void match(Fn F) const { F(Dimension); }
1219
1220 void printLeft(OutputBuffer &OB) const override {
1221 // FIXME: This should demangle as "vector pixel".
1222 OB += "pixel vector[";
1223 Dimension->print(OB);
1224 OB += "]";
1225 }
1226};
1227
1228class BinaryFPType final : public Node {
1229 const Node *Dimension;
1230
1231public:
1232 BinaryFPType(const Node *Dimension_)
1233 : Node(KBinaryFPType), Dimension(Dimension_) {}
1234
1235 template<typename Fn> void match(Fn F) const { F(Dimension); }
1236
1237 void printLeft(OutputBuffer &OB) const override {
1238 OB += "_Float";
1239 Dimension->print(OB);
1240 }
1241};
1242
1243enum class TemplateParamKind { Type, NonType, Template };
1244
1245/// An invented name for a template parameter for which we don't have a
1246/// corresponding template argument.
1247///
1248/// This node is created when parsing the <lambda-sig> for a lambda with
1249/// explicit template arguments, which might be referenced in the parameter
1250/// types appearing later in the <lambda-sig>.
1251class SyntheticTemplateParamName final : public Node {
1252 TemplateParamKind Kind;
1253 unsigned Index;
1254
1255public:
1257 : Node(KSyntheticTemplateParamName), Kind(Kind_), Index(Index_) {}
1258
1259 template<typename Fn> void match(Fn F) const { F(Kind, Index); }
1260
1261 void printLeft(OutputBuffer &OB) const override {
1262 switch (Kind) {
1264 OB += "$T";
1265 break;
1267 OB += "$N";
1268 break;
1270 OB += "$TT";
1271 break;
1272 }
1273 if (Index > 0)
1274 OB << Index - 1;
1275 }
1276};
1277
1278class TemplateParamQualifiedArg final : public Node {
1279 Node *Param;
1280 Node *Arg;
1281
1282public:
1284 : Node(KTemplateParamQualifiedArg), Param(Param_), Arg(Arg_) {}
1285
1286 template <typename Fn> void match(Fn F) const { F(Param, Arg); }
1287
1288 Node *getArg() { return Arg; }
1289
1290 void printLeft(OutputBuffer &OB) const override {
1291 // Don't print Param to keep the output consistent.
1292 Arg->print(OB);
1293 }
1294};
1295
1296/// A template type parameter declaration, 'typename T'.
1297class TypeTemplateParamDecl final : public Node {
1298 Node *Name;
1299
1300public:
1302 : Node(KTypeTemplateParamDecl, Cache::Yes), Name(Name_) {}
1303
1304 template<typename Fn> void match(Fn F) const { F(Name); }
1305
1306 void printLeft(OutputBuffer &OB) const override { OB += "typename "; }
1307
1308 void printRight(OutputBuffer &OB) const override { Name->print(OB); }
1309};
1310
1311/// A constrained template type parameter declaration, 'C<U> T'.
1313 Node *Constraint;
1314 Node *Name;
1315
1316public:
1318 : Node(KConstrainedTypeTemplateParamDecl, Cache::Yes),
1319 Constraint(Constraint_), Name(Name_) {}
1320
1321 template<typename Fn> void match(Fn F) const { F(Constraint, Name); }
1322
1323 void printLeft(OutputBuffer &OB) const override {
1324 Constraint->print(OB);
1325 OB += " ";
1326 }
1327
1328 void printRight(OutputBuffer &OB) const override { Name->print(OB); }
1329};
1330
1331/// A non-type template parameter declaration, 'int N'.
1332class NonTypeTemplateParamDecl final : public Node {
1333 Node *Name;
1334 Node *Type;
1335
1336public:
1338 : Node(KNonTypeTemplateParamDecl, Cache::Yes), Name(Name_), Type(Type_) {}
1339
1340 template<typename Fn> void match(Fn F) const { F(Name, Type); }
1341
1342 void printLeft(OutputBuffer &OB) const override {
1343 OB.printLeft(*Type);
1344 if (!Type->hasRHSComponent(OB))
1345 OB += " ";
1346 }
1347
1348 void printRight(OutputBuffer &OB) const override {
1349 Name->print(OB);
1350 OB.printRight(*Type);
1351 }
1352};
1353
1354/// A template template parameter declaration,
1355/// 'template<typename T> typename N'.
1356class TemplateTemplateParamDecl final : public Node {
1357 Node *Name;
1358 NodeArray Params;
1359 Node *Requires;
1360
1361public:
1362 TemplateTemplateParamDecl(Node *Name_, NodeArray Params_, Node *Requires_)
1363 : Node(KTemplateTemplateParamDecl, Cache::Yes), Name(Name_),
1364 Params(Params_), Requires(Requires_) {}
1365
1366 template <typename Fn> void match(Fn F) const { F(Name, Params, Requires); }
1367
1368 void printLeft(OutputBuffer &OB) const override {
1369 ScopedOverride<unsigned> LT(OB.GtIsGt, 0);
1370 OB += "template<";
1371 Params.printWithComma(OB);
1372 OB += "> typename ";
1373 }
1374
1375 void printRight(OutputBuffer &OB) const override {
1376 Name->print(OB);
1377 if (Requires != nullptr) {
1378 OB += " requires ";
1379 Requires->print(OB);
1380 }
1381 }
1382};
1383
1384/// A template parameter pack declaration, 'typename ...T'.
1385class TemplateParamPackDecl final : public Node {
1386 Node *Param;
1387
1388public:
1390 : Node(KTemplateParamPackDecl, Cache::Yes), Param(Param_) {}
1391
1392 template<typename Fn> void match(Fn F) const { F(Param); }
1393
1394 void printLeft(OutputBuffer &OB) const override {
1395 OB.printLeft(*Param);
1396 OB += "...";
1397 }
1398
1399 void printRight(OutputBuffer &OB) const override { OB.printRight(*Param); }
1400};
1401
1402/// An unexpanded parameter pack (either in the expression or type context). If
1403/// this AST is correct, this node will have a ParameterPackExpansion node above
1404/// it.
1405///
1406/// This node is created when some <template-args> are found that apply to an
1407/// <encoding>, and is stored in the TemplateParams table. In order for this to
1408/// appear in the final AST, it has to referenced via a <template-param> (ie,
1409/// T_).
1410class ParameterPack final : public Node {
1411 NodeArray Data;
1412
1413 // Setup OutputBuffer for a pack expansion, unless we're already expanding
1414 // one.
1415 void initializePackExpansion(OutputBuffer &OB) const {
1416 if (OB.CurrentPackMax == std::numeric_limits<unsigned>::max()) {
1417 OB.CurrentPackMax = static_cast<unsigned>(Data.size());
1418 OB.CurrentPackIndex = 0;
1419 }
1420 }
1421
1422public:
1423 ParameterPack(NodeArray Data_) : Node(KParameterPack), Data(Data_) {
1425 if (std::all_of(Data.begin(), Data.end(),
1426 [](Node *P) { return P->getArrayCache() == Cache::No; }))
1428 if (std::all_of(Data.begin(), Data.end(),
1429 [](Node *P) { return P->getFunctionCache() == Cache::No; }))
1431 if (std::all_of(Data.begin(), Data.end(), [](Node *P) {
1432 return P->getRHSComponentCache() == Cache::No;
1433 }))
1435 }
1436
1437 template<typename Fn> void match(Fn F) const { F(Data); }
1438
1439 bool hasRHSComponentSlow(OutputBuffer &OB) const override {
1440 initializePackExpansion(OB);
1441 size_t Idx = OB.CurrentPackIndex;
1442 return Idx < Data.size() && Data[Idx]->hasRHSComponent(OB);
1443 }
1444 bool hasArraySlow(OutputBuffer &OB) const override {
1445 initializePackExpansion(OB);
1446 size_t Idx = OB.CurrentPackIndex;
1447 return Idx < Data.size() && Data[Idx]->hasArray(OB);
1448 }
1449 bool hasFunctionSlow(OutputBuffer &OB) const override {
1450 initializePackExpansion(OB);
1451 size_t Idx = OB.CurrentPackIndex;
1452 return Idx < Data.size() && Data[Idx]->hasFunction(OB);
1453 }
1454 const Node *getSyntaxNode(OutputBuffer &OB) const override {
1455 initializePackExpansion(OB);
1456 size_t Idx = OB.CurrentPackIndex;
1457 return Idx < Data.size() ? Data[Idx]->getSyntaxNode(OB) : this;
1458 }
1459
1460 void printLeft(OutputBuffer &OB) const override {
1461 initializePackExpansion(OB);
1462 size_t Idx = OB.CurrentPackIndex;
1463 if (Idx < Data.size())
1464 OB.printLeft(*Data[Idx]);
1465 }
1466 void printRight(OutputBuffer &OB) const override {
1467 initializePackExpansion(OB);
1468 size_t Idx = OB.CurrentPackIndex;
1469 if (Idx < Data.size())
1470 OB.printRight(*Data[Idx]);
1471 }
1472};
1473
1474/// A variadic template argument. This node represents an occurrence of
1475/// J<something>E in some <template-args>. It isn't itself unexpanded, unless
1476/// one of its Elements is. The parser inserts a ParameterPack into the
1477/// TemplateParams table if the <template-args> this pack belongs to apply to an
1478/// <encoding>.
1479class TemplateArgumentPack final : public Node {
1480 NodeArray Elements;
1481public:
1483 : Node(KTemplateArgumentPack), Elements(Elements_) {}
1484
1485 template<typename Fn> void match(Fn F) const { F(Elements); }
1486
1487 NodeArray getElements() const { return Elements; }
1488
1489 void printLeft(OutputBuffer &OB) const override {
1490 Elements.printWithComma(OB);
1491 }
1492};
1493
1494/// A pack expansion. Below this node, there are some unexpanded ParameterPacks
1495/// which each have Child->ParameterPackSize elements.
1496class ParameterPackExpansion final : public Node {
1497 const Node *Child;
1498
1499public:
1501 : Node(KParameterPackExpansion), Child(Child_) {}
1502
1503 template<typename Fn> void match(Fn F) const { F(Child); }
1504
1505 const Node *getChild() const { return Child; }
1506
1507 void printLeft(OutputBuffer &OB) const override {
1508 constexpr unsigned Max = std::numeric_limits<unsigned>::max();
1509 ScopedOverride<unsigned> SavePackIdx(OB.CurrentPackIndex, Max);
1510 ScopedOverride<unsigned> SavePackMax(OB.CurrentPackMax, Max);
1511 size_t StreamPos = OB.getCurrentPosition();
1512
1513 // Print the first element in the pack. If Child contains a ParameterPack,
1514 // it will set up S.CurrentPackMax and print the first element.
1515 Child->print(OB);
1516
1517 // No ParameterPack was found in Child. This can occur if we've found a pack
1518 // expansion on a <function-param>.
1519 if (OB.CurrentPackMax == Max) {
1520 OB += "...";
1521 return;
1522 }
1523
1524 // We found a ParameterPack, but it has no elements. Erase whatever we may
1525 // of printed.
1526 if (OB.CurrentPackMax == 0) {
1527 OB.setCurrentPosition(StreamPos);
1528 return;
1529 }
1530
1531 // Else, iterate through the rest of the elements in the pack.
1532 for (unsigned I = 1, E = OB.CurrentPackMax; I < E; ++I) {
1533 OB += ", ";
1534 OB.CurrentPackIndex = I;
1535 Child->print(OB);
1536 }
1537 }
1538};
1539
1540class TemplateArgs final : public Node {
1541 NodeArray Params;
1542 Node *Requires;
1543
1544public:
1545 TemplateArgs(NodeArray Params_, Node *Requires_)
1546 : Node(KTemplateArgs), Params(Params_), Requires(Requires_) {}
1547
1548 template<typename Fn> void match(Fn F) const { F(Params, Requires); }
1549
1550 NodeArray getParams() { return Params; }
1551
1552 void printLeft(OutputBuffer &OB) const override {
1553 ScopedOverride<unsigned> LT(OB.GtIsGt, 0);
1554 OB += "<";
1555 Params.printWithComma(OB);
1556 OB += ">";
1557 // Don't print the requires clause to keep the output simple.
1558 }
1559};
1560
1561/// A forward-reference to a template argument that was not known at the point
1562/// where the template parameter name was parsed in a mangling.
1563///
1564/// This is created when demangling the name of a specialization of a
1565/// conversion function template:
1566///
1567/// \code
1568/// struct A {
1569/// template<typename T> operator T*();
1570/// };
1571/// \endcode
1572///
1573/// When demangling a specialization of the conversion function template, we
1574/// encounter the name of the template (including the \c T) before we reach
1575/// the template argument list, so we cannot substitute the parameter name
1576/// for the corresponding argument while parsing. Instead, we create a
1577/// \c ForwardTemplateReference node that is resolved after we parse the
1578/// template arguments.
1580 size_t Index;
1581 Node *Ref = nullptr;
1582
1583 // If we're currently printing this node. It is possible (though invalid) for
1584 // a forward template reference to refer to itself via a substitution. This
1585 // creates a cyclic AST, which will stack overflow printing. To fix this, bail
1586 // out if more than one print* function is active.
1587 mutable bool Printing = false;
1588
1590 : Node(KForwardTemplateReference, Cache::Unknown, Cache::Unknown,
1591 Cache::Unknown),
1592 Index(Index_) {}
1593
1594 // We don't provide a matcher for these, because the value of the node is
1595 // not determined by its construction parameters, and it generally needs
1596 // special handling.
1597 template<typename Fn> void match(Fn F) const = delete;
1598
1599 bool hasRHSComponentSlow(OutputBuffer &OB) const override {
1600 if (Printing)
1601 return false;
1602 ScopedOverride<bool> SavePrinting(Printing, true);
1603 return Ref->hasRHSComponent(OB);
1604 }
1605 bool hasArraySlow(OutputBuffer &OB) const override {
1606 if (Printing)
1607 return false;
1608 ScopedOverride<bool> SavePrinting(Printing, true);
1609 return Ref->hasArray(OB);
1610 }
1611 bool hasFunctionSlow(OutputBuffer &OB) const override {
1612 if (Printing)
1613 return false;
1614 ScopedOverride<bool> SavePrinting(Printing, true);
1615 return Ref->hasFunction(OB);
1616 }
1617 const Node *getSyntaxNode(OutputBuffer &OB) const override {
1618 if (Printing)
1619 return this;
1620 ScopedOverride<bool> SavePrinting(Printing, true);
1621 return Ref->getSyntaxNode(OB);
1622 }
1623
1624 void printLeft(OutputBuffer &OB) const override {
1625 if (Printing)
1626 return;
1627 ScopedOverride<bool> SavePrinting(Printing, true);
1628 OB.printLeft(*Ref);
1629 }
1630 void printRight(OutputBuffer &OB) const override {
1631 if (Printing)
1632 return;
1633 ScopedOverride<bool> SavePrinting(Printing, true);
1634 OB.printRight(*Ref);
1635 }
1636};
1637
1639 // name<template_args>
1642
1643 NameWithTemplateArgs(Node *Name_, Node *TemplateArgs_)
1644 : Node(KNameWithTemplateArgs), Name(Name_), TemplateArgs(TemplateArgs_) {}
1645
1646 template<typename Fn> void match(Fn F) const { F(Name, TemplateArgs); }
1647
1648 std::string_view getBaseName() const override { return Name->getBaseName(); }
1649
1650 void printLeft(OutputBuffer &OB) const override {
1651 Name->print(OB);
1652 TemplateArgs->print(OB);
1653 }
1654};
1655
1656class GlobalQualifiedName final : public Node {
1657 Node *Child;
1658
1659public:
1661 : Node(KGlobalQualifiedName), Child(Child_) {}
1662
1663 template<typename Fn> void match(Fn F) const { F(Child); }
1664
1665 std::string_view getBaseName() const override { return Child->getBaseName(); }
1666
1667 void printLeft(OutputBuffer &OB) const override {
1668 OB += "::";
1669 Child->print(OB);
1670 }
1671};
1672
1681
1684protected:
1686
1689public:
1691 : ExpandedSpecialSubstitution(SSK_, KExpandedSpecialSubstitution) {}
1693
1694 template<typename Fn> void match(Fn F) const { F(SSK); }
1695
1696protected:
1697 bool isInstantiation() const {
1699 }
1700
1701 std::string_view getBaseName() const override {
1702 switch (SSK) {
1704 return {"allocator"};
1706 return {"basic_string"};
1708 return {"basic_string"};
1710 return {"basic_istream"};
1712 return {"basic_ostream"};
1714 return {"basic_iostream"};
1715 }
1717 }
1718
1719private:
1720 void printLeft(OutputBuffer &OB) const override {
1721 OB << "std::" << getBaseName();
1722 if (isInstantiation()) {
1723 OB << "<char, std::char_traits<char>";
1725 OB << ", std::allocator<char>";
1726 OB << ">";
1727 }
1728 }
1729};
1730
1732public:
1734 : ExpandedSpecialSubstitution(SSK_, KSpecialSubstitution) {}
1735
1736 template<typename Fn> void match(Fn F) const { F(SSK); }
1737
1738 std::string_view getBaseName() const override {
1739 std::string_view SV = ExpandedSpecialSubstitution::getBaseName();
1740 if (isInstantiation()) {
1741 // The instantiations are typedefs that drop the "basic_" prefix.
1742 DEMANGLE_ASSERT(starts_with(SV, "basic_"), "");
1743 SV.remove_prefix(sizeof("basic_") - 1);
1744 }
1745 return SV;
1746 }
1747
1748 void printLeft(OutputBuffer &OB) const override {
1749 OB << "std::" << getBaseName();
1750 }
1751};
1752
1756
1757class CtorDtorName final : public Node {
1758 const Node *Basename;
1759 const bool IsDtor;
1760 const int Variant;
1761
1762public:
1763 CtorDtorName(const Node *Basename_, bool IsDtor_, int Variant_)
1764 : Node(KCtorDtorName), Basename(Basename_), IsDtor(IsDtor_),
1765 Variant(Variant_) {}
1766
1767 template<typename Fn> void match(Fn F) const { F(Basename, IsDtor, Variant); }
1768
1769 void printLeft(OutputBuffer &OB) const override {
1770 if (IsDtor)
1771 OB += "~";
1772 OB += Basename->getBaseName();
1773 }
1774};
1775
1776class DtorName : public Node {
1777 const Node *Base;
1778
1779public:
1780 DtorName(const Node *Base_) : Node(KDtorName), Base(Base_) {}
1781
1782 template<typename Fn> void match(Fn F) const { F(Base); }
1783
1784 void printLeft(OutputBuffer &OB) const override {
1785 OB += "~";
1786 OB.printLeft(*Base);
1787 }
1788};
1789
1790class UnnamedTypeName : public Node {
1791 const std::string_view Count;
1792
1793public:
1794 UnnamedTypeName(std::string_view Count_)
1795 : Node(KUnnamedTypeName), Count(Count_) {}
1796
1797 template<typename Fn> void match(Fn F) const { F(Count); }
1798
1799 void printLeft(OutputBuffer &OB) const override {
1800 OB += "'unnamed";
1801 OB += Count;
1802 OB += "\'";
1803 }
1804};
1805
1806class ClosureTypeName : public Node {
1807 NodeArray TemplateParams;
1808 const Node *Requires1;
1809 NodeArray Params;
1810 const Node *Requires2;
1811 std::string_view Count;
1812
1813public:
1814 ClosureTypeName(NodeArray TemplateParams_, const Node *Requires1_,
1815 NodeArray Params_, const Node *Requires2_,
1816 std::string_view Count_)
1817 : Node(KClosureTypeName), TemplateParams(TemplateParams_),
1818 Requires1(Requires1_), Params(Params_), Requires2(Requires2_),
1819 Count(Count_) {}
1820
1821 template<typename Fn> void match(Fn F) const {
1822 F(TemplateParams, Requires1, Params, Requires2, Count);
1823 }
1824
1826 if (!TemplateParams.empty()) {
1827 ScopedOverride<unsigned> LT(OB.GtIsGt, 0);
1828 OB += "<";
1829 TemplateParams.printWithComma(OB);
1830 OB += ">";
1831 }
1832 if (Requires1 != nullptr) {
1833 OB += " requires ";
1834 Requires1->print(OB);
1835 OB += " ";
1836 }
1837 OB.printOpen();
1838 Params.printWithComma(OB);
1839 OB.printClose();
1840 if (Requires2 != nullptr) {
1841 OB += " requires ";
1842 Requires2->print(OB);
1843 }
1844 }
1845
1846 void printLeft(OutputBuffer &OB) const override {
1847 // FIXME: This demangling is not particularly readable.
1848 OB += "\'lambda";
1849 OB += Count;
1850 OB += "\'";
1851 printDeclarator(OB);
1852 }
1853};
1854
1856 NodeArray Bindings;
1857public:
1859 : Node(KStructuredBindingName), Bindings(Bindings_) {}
1860
1861 template<typename Fn> void match(Fn F) const { F(Bindings); }
1862
1863 void printLeft(OutputBuffer &OB) const override {
1864 OB.printOpen('[');
1865 Bindings.printWithComma(OB);
1866 OB.printClose(']');
1867 }
1868};
1869
1870// -- Expression Nodes --
1871
1872class BinaryExpr : public Node {
1873 const Node *LHS;
1874 const std::string_view InfixOperator;
1875 const Node *RHS;
1876
1877public:
1878 BinaryExpr(const Node *LHS_, std::string_view InfixOperator_,
1879 const Node *RHS_, Prec Prec_)
1880 : Node(KBinaryExpr, Prec_), LHS(LHS_), InfixOperator(InfixOperator_),
1881 RHS(RHS_) {}
1882
1883 template <typename Fn> void match(Fn F) const {
1884 F(LHS, InfixOperator, RHS, getPrecedence());
1885 }
1886
1887 void printLeft(OutputBuffer &OB) const override {
1888 bool ParenAll = OB.isGtInsideTemplateArgs() &&
1889 (InfixOperator == ">" || InfixOperator == ">>");
1890 if (ParenAll)
1891 OB.printOpen();
1892 // Assignment is right associative, with special LHS precedence.
1893 bool IsAssign = getPrecedence() == Prec::Assign;
1894 LHS->printAsOperand(OB, IsAssign ? Prec::OrIf : getPrecedence(), !IsAssign);
1895 // No space before comma operator
1896 if (!(InfixOperator == ","))
1897 OB += " ";
1898 OB += InfixOperator;
1899 OB += " ";
1900 RHS->printAsOperand(OB, getPrecedence(), IsAssign);
1901 if (ParenAll)
1902 OB.printClose();
1903 }
1904};
1905
1906class ArraySubscriptExpr : public Node {
1907 const Node *Op1;
1908 const Node *Op2;
1909
1910public:
1911 ArraySubscriptExpr(const Node *Op1_, const Node *Op2_, Prec Prec_)
1912 : Node(KArraySubscriptExpr, Prec_), Op1(Op1_), Op2(Op2_) {}
1913
1914 template <typename Fn> void match(Fn F) const {
1915 F(Op1, Op2, getPrecedence());
1916 }
1917
1918 void printLeft(OutputBuffer &OB) const override {
1919 Op1->printAsOperand(OB, getPrecedence());
1920 OB.printOpen('[');
1921 Op2->printAsOperand(OB);
1922 OB.printClose(']');
1923 }
1924};
1925
1926class PostfixExpr : public Node {
1927 const Node *Child;
1928 const std::string_view Operator;
1929
1930public:
1931 PostfixExpr(const Node *Child_, std::string_view Operator_, Prec Prec_)
1932 : Node(KPostfixExpr, Prec_), Child(Child_), Operator(Operator_) {}
1933
1934 template <typename Fn> void match(Fn F) const {
1935 F(Child, Operator, getPrecedence());
1936 }
1937
1938 void printLeft(OutputBuffer &OB) const override {
1939 Child->printAsOperand(OB, getPrecedence(), true);
1940 OB += Operator;
1941 }
1942};
1943
1944class ConditionalExpr : public Node {
1945 const Node *Cond;
1946 const Node *Then;
1947 const Node *Else;
1948
1949public:
1950 ConditionalExpr(const Node *Cond_, const Node *Then_, const Node *Else_,
1951 Prec Prec_)
1952 : Node(KConditionalExpr, Prec_), Cond(Cond_), Then(Then_), Else(Else_) {}
1953
1954 template <typename Fn> void match(Fn F) const {
1955 F(Cond, Then, Else, getPrecedence());
1956 }
1957
1958 void printLeft(OutputBuffer &OB) const override {
1959 Cond->printAsOperand(OB, getPrecedence());
1960 OB += " ? ";
1961 Then->printAsOperand(OB);
1962 OB += " : ";
1963 Else->printAsOperand(OB, Prec::Assign, true);
1964 }
1965};
1966
1967class MemberExpr : public Node {
1968 const Node *LHS;
1969 const std::string_view Kind;
1970 const Node *RHS;
1971
1972public:
1973 MemberExpr(const Node *LHS_, std::string_view Kind_, const Node *RHS_,
1974 Prec Prec_)
1975 : Node(KMemberExpr, Prec_), LHS(LHS_), Kind(Kind_), RHS(RHS_) {}
1976
1977 template <typename Fn> void match(Fn F) const {
1978 F(LHS, Kind, RHS, getPrecedence());
1979 }
1980
1981 void printLeft(OutputBuffer &OB) const override {
1982 LHS->printAsOperand(OB, getPrecedence(), true);
1983 OB += Kind;
1984 RHS->printAsOperand(OB, getPrecedence(), false);
1985 }
1986};
1987
1988class SubobjectExpr : public Node {
1989 const Node *Type;
1990 const Node *SubExpr;
1991 std::string_view Offset;
1992 NodeArray UnionSelectors;
1993 bool OnePastTheEnd;
1994
1995public:
1996 SubobjectExpr(const Node *Type_, const Node *SubExpr_,
1997 std::string_view Offset_, NodeArray UnionSelectors_,
1998 bool OnePastTheEnd_)
1999 : Node(KSubobjectExpr), Type(Type_), SubExpr(SubExpr_), Offset(Offset_),
2000 UnionSelectors(UnionSelectors_), OnePastTheEnd(OnePastTheEnd_) {}
2001
2002 template<typename Fn> void match(Fn F) const {
2003 F(Type, SubExpr, Offset, UnionSelectors, OnePastTheEnd);
2004 }
2005
2006 void printLeft(OutputBuffer &OB) const override {
2007 SubExpr->print(OB);
2008 OB += ".<";
2009 Type->print(OB);
2010 OB += " at offset ";
2011 if (Offset.empty()) {
2012 OB += "0";
2013 } else if (Offset[0] == 'n') {
2014 OB += "-";
2015 OB += std::string_view(Offset.data() + 1, Offset.size() - 1);
2016 } else {
2017 OB += Offset;
2018 }
2019 OB += ">";
2020 }
2021};
2022
2023class EnclosingExpr : public Node {
2024 const std::string_view Prefix;
2025 const Node *Infix;
2026 const std::string_view Postfix;
2027
2028public:
2029 EnclosingExpr(std::string_view Prefix_, const Node *Infix_,
2030 Prec Prec_ = Prec::Primary)
2031 : Node(KEnclosingExpr, Prec_), Prefix(Prefix_), Infix(Infix_) {}
2032
2033 template <typename Fn> void match(Fn F) const {
2034 F(Prefix, Infix, getPrecedence());
2035 }
2036
2037 void printLeft(OutputBuffer &OB) const override {
2038 OB += Prefix;
2039 OB.printOpen();
2040 Infix->print(OB);
2041 OB.printClose();
2042 OB += Postfix;
2043 }
2044};
2045
2046class CastExpr : public Node {
2047 // cast_kind<to>(from)
2048 const std::string_view CastKind;
2049 const Node *To;
2050 const Node *From;
2051
2052public:
2053 CastExpr(std::string_view CastKind_, const Node *To_, const Node *From_,
2054 Prec Prec_)
2055 : Node(KCastExpr, Prec_), CastKind(CastKind_), To(To_), From(From_) {}
2056
2057 template <typename Fn> void match(Fn F) const {
2058 F(CastKind, To, From, getPrecedence());
2059 }
2060
2061 void printLeft(OutputBuffer &OB) const override {
2062 OB += CastKind;
2063 {
2064 ScopedOverride<unsigned> LT(OB.GtIsGt, 0);
2065 OB += "<";
2066 OB.printLeft(*To);
2067 OB += ">";
2068 }
2069 OB.printOpen();
2070 From->printAsOperand(OB);
2071 OB.printClose();
2072 }
2073};
2074
2076 const Node *Pack;
2077
2078public:
2080 : Node(KSizeofParamPackExpr), Pack(Pack_) {}
2081
2082 template<typename Fn> void match(Fn F) const { F(Pack); }
2083
2084 void printLeft(OutputBuffer &OB) const override {
2085 OB += "sizeof...";
2086 OB.printOpen();
2087 ParameterPackExpansion PPE(Pack);
2088 PPE.printLeft(OB);
2089 OB.printClose();
2090 }
2091};
2092
2093class CallExpr : public Node {
2094 const Node *Callee;
2095 NodeArray Args;
2096 bool IsParen; // (func)(args ...) ?
2097
2098public:
2099 CallExpr(const Node *Callee_, NodeArray Args_, bool IsParen_, Prec Prec_)
2100 : Node(KCallExpr, Prec_), Callee(Callee_), Args(Args_),
2101 IsParen(IsParen_) {}
2102
2103 template <typename Fn> void match(Fn F) const {
2104 F(Callee, Args, IsParen, getPrecedence());
2105 }
2106
2107 void printLeft(OutputBuffer &OB) const override {
2108 if (IsParen)
2109 OB.printOpen();
2110 Callee->print(OB);
2111 if (IsParen)
2112 OB.printClose();
2113 OB.printOpen();
2114 Args.printWithComma(OB);
2115 OB.printClose();
2116 }
2117};
2118
2119class NewExpr : public Node {
2120 // new (expr_list) type(init_list)
2121 NodeArray ExprList;
2122 Node *Type;
2123 NodeArray InitList;
2124 bool IsGlobal; // ::operator new ?
2125 bool IsArray; // new[] ?
2126public:
2127 NewExpr(NodeArray ExprList_, Node *Type_, NodeArray InitList_, bool IsGlobal_,
2128 bool IsArray_, Prec Prec_)
2129 : Node(KNewExpr, Prec_), ExprList(ExprList_), Type(Type_),
2130 InitList(InitList_), IsGlobal(IsGlobal_), IsArray(IsArray_) {}
2131
2132 template<typename Fn> void match(Fn F) const {
2133 F(ExprList, Type, InitList, IsGlobal, IsArray, getPrecedence());
2134 }
2135
2136 void printLeft(OutputBuffer &OB) const override {
2137 if (IsGlobal)
2138 OB += "::";
2139 OB += "new";
2140 if (IsArray)
2141 OB += "[]";
2142 if (!ExprList.empty()) {
2143 OB.printOpen();
2144 ExprList.printWithComma(OB);
2145 OB.printClose();
2146 }
2147 OB += " ";
2148 Type->print(OB);
2149 if (!InitList.empty()) {
2150 OB.printOpen();
2151 InitList.printWithComma(OB);
2152 OB.printClose();
2153 }
2154 }
2155};
2156
2157class DeleteExpr : public Node {
2158 Node *Op;
2159 bool IsGlobal;
2160 bool IsArray;
2161
2162public:
2163 DeleteExpr(Node *Op_, bool IsGlobal_, bool IsArray_, Prec Prec_)
2164 : Node(KDeleteExpr, Prec_), Op(Op_), IsGlobal(IsGlobal_),
2165 IsArray(IsArray_) {}
2166
2167 template <typename Fn> void match(Fn F) const {
2168 F(Op, IsGlobal, IsArray, getPrecedence());
2169 }
2170
2171 void printLeft(OutputBuffer &OB) const override {
2172 if (IsGlobal)
2173 OB += "::";
2174 OB += "delete";
2175 if (IsArray)
2176 OB += "[]";
2177 OB += ' ';
2178 Op->print(OB);
2179 }
2180};
2181
2182class PrefixExpr : public Node {
2183 std::string_view Prefix;
2184 Node *Child;
2185
2186public:
2187 PrefixExpr(std::string_view Prefix_, Node *Child_, Prec Prec_)
2188 : Node(KPrefixExpr, Prec_), Prefix(Prefix_), Child(Child_) {}
2189
2190 template <typename Fn> void match(Fn F) const {
2191 F(Prefix, Child, getPrecedence());
2192 }
2193
2194 void printLeft(OutputBuffer &OB) const override {
2195 OB += Prefix;
2196 Child->printAsOperand(OB, getPrecedence());
2197 }
2198};
2199
2200class FunctionParam : public Node {
2201 std::string_view Number;
2202
2203public:
2204 FunctionParam(std::string_view Number_)
2205 : Node(KFunctionParam), Number(Number_) {}
2206
2207 template<typename Fn> void match(Fn F) const { F(Number); }
2208
2209 void printLeft(OutputBuffer &OB) const override {
2210 OB += "fp";
2211 OB += Number;
2212 }
2213};
2214
2215class ConversionExpr : public Node {
2216 const Node *Type;
2217 NodeArray Expressions;
2218
2219public:
2220 ConversionExpr(const Node *Type_, NodeArray Expressions_, Prec Prec_)
2221 : Node(KConversionExpr, Prec_), Type(Type_), Expressions(Expressions_) {}
2222
2223 template <typename Fn> void match(Fn F) const {
2224 F(Type, Expressions, getPrecedence());
2225 }
2226
2227 void printLeft(OutputBuffer &OB) const override {
2228 OB.printOpen();
2229 Type->print(OB);
2230 OB.printClose();
2231 OB.printOpen();
2232 Expressions.printWithComma(OB);
2233 OB.printClose();
2234 }
2235};
2236
2238 const Node *Type;
2239 const Node *SubExpr;
2240 std::string_view Offset;
2241
2242public:
2243 PointerToMemberConversionExpr(const Node *Type_, const Node *SubExpr_,
2244 std::string_view Offset_, Prec Prec_)
2245 : Node(KPointerToMemberConversionExpr, Prec_), Type(Type_),
2246 SubExpr(SubExpr_), Offset(Offset_) {}
2247
2248 template <typename Fn> void match(Fn F) const {
2249 F(Type, SubExpr, Offset, getPrecedence());
2250 }
2251
2252 void printLeft(OutputBuffer &OB) const override {
2253 OB.printOpen();
2254 Type->print(OB);
2255 OB.printClose();
2256 OB.printOpen();
2257 SubExpr->print(OB);
2258 OB.printClose();
2259 }
2260};
2261
2262class InitListExpr : public Node {
2263 const Node *Ty;
2264 NodeArray Inits;
2265public:
2266 InitListExpr(const Node *Ty_, NodeArray Inits_)
2267 : Node(KInitListExpr), Ty(Ty_), Inits(Inits_) {}
2268
2269 template<typename Fn> void match(Fn F) const { F(Ty, Inits); }
2270
2271 void printLeft(OutputBuffer &OB) const override {
2272 if (Ty) {
2273 if (Ty->printInitListAsType(OB, Inits))
2274 return;
2275 Ty->print(OB);
2276 }
2277 OB += '{';
2278 Inits.printWithComma(OB);
2279 OB += '}';
2280 }
2281};
2282
2283class BracedExpr : public Node {
2284 const Node *Elem;
2285 const Node *Init;
2286 bool IsArray;
2287public:
2288 BracedExpr(const Node *Elem_, const Node *Init_, bool IsArray_)
2289 : Node(KBracedExpr), Elem(Elem_), Init(Init_), IsArray(IsArray_) {}
2290
2291 template<typename Fn> void match(Fn F) const { F(Elem, Init, IsArray); }
2292
2293 void printLeft(OutputBuffer &OB) const override {
2294 if (IsArray) {
2295 OB += '[';
2296 Elem->print(OB);
2297 OB += ']';
2298 } else {
2299 OB += '.';
2300 Elem->print(OB);
2301 }
2302 if (Init->getKind() != KBracedExpr && Init->getKind() != KBracedRangeExpr)
2303 OB += " = ";
2304 Init->print(OB);
2305 }
2306};
2307
2308class BracedRangeExpr : public Node {
2309 const Node *First;
2310 const Node *Last;
2311 const Node *Init;
2312public:
2313 BracedRangeExpr(const Node *First_, const Node *Last_, const Node *Init_)
2314 : Node(KBracedRangeExpr), First(First_), Last(Last_), Init(Init_) {}
2315
2316 template<typename Fn> void match(Fn F) const { F(First, Last, Init); }
2317
2318 void printLeft(OutputBuffer &OB) const override {
2319 OB += '[';
2320 First->print(OB);
2321 OB += " ... ";
2322 Last->print(OB);
2323 OB += ']';
2324 if (Init->getKind() != KBracedExpr && Init->getKind() != KBracedRangeExpr)
2325 OB += " = ";
2326 Init->print(OB);
2327 }
2328};
2329
2330class FoldExpr : public Node {
2331 const Node *Pack, *Init;
2332 std::string_view OperatorName;
2333 bool IsLeftFold;
2334
2335public:
2336 FoldExpr(bool IsLeftFold_, std::string_view OperatorName_, const Node *Pack_,
2337 const Node *Init_)
2338 : Node(KFoldExpr), Pack(Pack_), Init(Init_), OperatorName(OperatorName_),
2339 IsLeftFold(IsLeftFold_) {}
2340
2341 template<typename Fn> void match(Fn F) const {
2342 F(IsLeftFold, OperatorName, Pack, Init);
2343 }
2344
2345 void printLeft(OutputBuffer &OB) const override {
2346 auto PrintPack = [&] {
2347 OB.printOpen();
2348 ParameterPackExpansion(Pack).print(OB);
2349 OB.printClose();
2350 };
2351
2352 OB.printOpen();
2353 // Either '[init op ]... op pack' or 'pack op ...[ op init]'
2354 // Refactored to '[(init|pack) op ]...[ op (pack|init)]'
2355 // Fold expr operands are cast-expressions
2356 if (!IsLeftFold || Init != nullptr) {
2357 // '(init|pack) op '
2358 if (IsLeftFold)
2359 Init->printAsOperand(OB, Prec::Cast, true);
2360 else
2361 PrintPack();
2362 OB << " " << OperatorName << " ";
2363 }
2364 OB << "...";
2365 if (IsLeftFold || Init != nullptr) {
2366 // ' op (init|pack)'
2367 OB << " " << OperatorName << " ";
2368 if (IsLeftFold)
2369 PrintPack();
2370 else
2371 Init->printAsOperand(OB, Prec::Cast, true);
2372 }
2373 OB.printClose();
2374 }
2375};
2376
2377class ThrowExpr : public Node {
2378 const Node *Op;
2379
2380public:
2381 ThrowExpr(const Node *Op_) : Node(KThrowExpr), Op(Op_) {}
2382
2383 template<typename Fn> void match(Fn F) const { F(Op); }
2384
2385 void printLeft(OutputBuffer &OB) const override {
2386 OB += "throw ";
2387 Op->print(OB);
2388 }
2389};
2390
2391class BoolExpr : public Node {
2392 bool Value;
2393
2394public:
2395 BoolExpr(bool Value_) : Node(KBoolExpr), Value(Value_) {}
2396
2397 template<typename Fn> void match(Fn F) const { F(Value); }
2398
2399 void printLeft(OutputBuffer &OB) const override {
2400 OB += Value ? std::string_view("true") : std::string_view("false");
2401 }
2402};
2403
2404class StringLiteral : public Node {
2405 const Node *Type;
2406
2407public:
2408 StringLiteral(const Node *Type_) : Node(KStringLiteral), Type(Type_) {}
2409
2410 template<typename Fn> void match(Fn F) const { F(Type); }
2411
2412 void printLeft(OutputBuffer &OB) const override {
2413 OB += "\"<";
2414 Type->print(OB);
2415 OB += ">\"";
2416 }
2417};
2418
2419class LambdaExpr : public Node {
2420 const Node *Type;
2421
2422public:
2423 LambdaExpr(const Node *Type_) : Node(KLambdaExpr), Type(Type_) {}
2424
2425 template<typename Fn> void match(Fn F) const { F(Type); }
2426
2427 void printLeft(OutputBuffer &OB) const override {
2428 OB += "[]";
2429 if (Type->getKind() == KClosureTypeName)
2430 static_cast<const ClosureTypeName *>(Type)->printDeclarator(OB);
2431 OB += "{...}";
2432 }
2433};
2434
2435class EnumLiteral : public Node {
2436 // ty(integer)
2437 const Node *Ty;
2438 std::string_view Integer;
2439
2440public:
2441 EnumLiteral(const Node *Ty_, std::string_view Integer_)
2442 : Node(KEnumLiteral), Ty(Ty_), Integer(Integer_) {}
2443
2444 template<typename Fn> void match(Fn F) const { F(Ty, Integer); }
2445
2446 void printLeft(OutputBuffer &OB) const override {
2447 OB.printOpen();
2448 Ty->print(OB);
2449 OB.printClose();
2450
2451 if (Integer[0] == 'n')
2452 OB << '-' << std::string_view(Integer.data() + 1, Integer.size() - 1);
2453 else
2454 OB << Integer;
2455 }
2456};
2457
2458class IntegerLiteral : public Node {
2459 std::string_view Type;
2460 std::string_view Value;
2461
2462public:
2463 IntegerLiteral(std::string_view Type_, std::string_view Value_)
2464 : Node(KIntegerLiteral), Type(Type_), Value(Value_) {}
2465
2466 template<typename Fn> void match(Fn F) const { F(Type, Value); }
2467
2468 void printLeft(OutputBuffer &OB) const override {
2469 if (Type.size() > 3) {
2470 OB.printOpen();
2471 OB += Type;
2472 OB.printClose();
2473 }
2474
2475 if (Value[0] == 'n')
2476 OB << '-' << std::string_view(Value.data() + 1, Value.size() - 1);
2477 else
2478 OB += Value;
2479
2480 if (Type.size() <= 3)
2481 OB += Type;
2482 }
2483
2484 std::string_view value() const { return Value; }
2485};
2486
2487class RequiresExpr : public Node {
2488 NodeArray Parameters;
2489 NodeArray Requirements;
2490public:
2491 RequiresExpr(NodeArray Parameters_, NodeArray Requirements_)
2492 : Node(KRequiresExpr), Parameters(Parameters_),
2493 Requirements(Requirements_) {}
2494
2495 template<typename Fn> void match(Fn F) const { F(Parameters, Requirements); }
2496
2497 void printLeft(OutputBuffer &OB) const override {
2498 OB += "requires";
2499 if (!Parameters.empty()) {
2500 OB += ' ';
2501 OB.printOpen();
2502 Parameters.printWithComma(OB);
2503 OB.printClose();
2504 }
2505 OB += ' ';
2506 OB.printOpen('{');
2507 for (const Node *Req : Requirements) {
2508 Req->print(OB);
2509 }
2510 OB += ' ';
2511 OB.printClose('}');
2512 }
2513};
2514
2515class ExprRequirement : public Node {
2516 const Node *Expr;
2517 bool IsNoexcept;
2518 const Node *TypeConstraint;
2519public:
2520 ExprRequirement(const Node *Expr_, bool IsNoexcept_,
2521 const Node *TypeConstraint_)
2522 : Node(KExprRequirement), Expr(Expr_), IsNoexcept(IsNoexcept_),
2523 TypeConstraint(TypeConstraint_) {}
2524
2525 template <typename Fn> void match(Fn F) const {
2526 F(Expr, IsNoexcept, TypeConstraint);
2527 }
2528
2529 void printLeft(OutputBuffer &OB) const override {
2530 OB += " ";
2531 if (IsNoexcept || TypeConstraint)
2532 OB.printOpen('{');
2533 Expr->print(OB);
2534 if (IsNoexcept || TypeConstraint)
2535 OB.printClose('}');
2536 if (IsNoexcept)
2537 OB += " noexcept";
2538 if (TypeConstraint) {
2539 OB += " -> ";
2540 TypeConstraint->print(OB);
2541 }
2542 OB += ';';
2543 }
2544};
2545
2546class TypeRequirement : public Node {
2547 const Node *Type;
2548public:
2549 TypeRequirement(const Node *Type_)
2550 : Node(KTypeRequirement), Type(Type_) {}
2551
2552 template <typename Fn> void match(Fn F) const { F(Type); }
2553
2554 void printLeft(OutputBuffer &OB) const override {
2555 OB += " typename ";
2556 Type->print(OB);
2557 OB += ';';
2558 }
2559};
2560
2561class NestedRequirement : public Node {
2562 const Node *Constraint;
2563public:
2564 NestedRequirement(const Node *Constraint_)
2565 : Node(KNestedRequirement), Constraint(Constraint_) {}
2566
2567 template <typename Fn> void match(Fn F) const { F(Constraint); }
2568
2569 void printLeft(OutputBuffer &OB) const override {
2570 OB += " requires ";
2571 Constraint->print(OB);
2572 OB += ';';
2573 }
2574};
2575
2576template <class Float> struct FloatData;
2577
2580 return Node::KFloatLiteral;
2581}
2582constexpr Node::Kind getFloatLiteralKind(double *) {
2583 return Node::KDoubleLiteral;
2584}
2585constexpr Node::Kind getFloatLiteralKind(long double *) {
2586 return Node::KLongDoubleLiteral;
2587}
2588}
2589
2590template <class Float> class FloatLiteralImpl : public Node {
2591 const std::string_view Contents;
2592
2593 static constexpr Kind KindForClass =
2595
2596public:
2597 FloatLiteralImpl(std::string_view Contents_)
2598 : Node(KindForClass), Contents(Contents_) {}
2599
2600 template<typename Fn> void match(Fn F) const { F(Contents); }
2601
2602 void printLeft(OutputBuffer &OB) const override {
2603 const size_t N = FloatData<Float>::mangled_size;
2604 if (Contents.size() >= N) {
2605 union {
2606 Float value;
2607 char buf[sizeof(Float)];
2608 };
2609 const char *t = Contents.data();
2610 const char *last = t + N;
2611 char *e = buf;
2612 for (; t != last; ++t, ++e) {
2613 unsigned d1 = isdigit(*t) ? static_cast<unsigned>(*t - '0')
2614 : static_cast<unsigned>(*t - 'a' + 10);
2615 ++t;
2616 unsigned d0 = isdigit(*t) ? static_cast<unsigned>(*t - '0')
2617 : static_cast<unsigned>(*t - 'a' + 10);
2618 *e = static_cast<char>((d1 << 4) + d0);
2619 }
2620#if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
2621 std::reverse(buf, e);
2622#endif
2624 int n = snprintf(num, sizeof(num), FloatData<Float>::spec, value);
2625 OB += std::string_view(num, n);
2626 }
2627 }
2628};
2629
2633
2634/// Visit the node. Calls \c F(P), where \c P is the node cast to the
2635/// appropriate derived class.
2636template<typename Fn>
2637void Node::visit(Fn F) const {
2638 switch (K) {
2639#define NODE(X) \
2640 case K##X: \
2641 return F(static_cast<const X *>(this));
2642#include "ItaniumNodes.def"
2643 }
2644 DEMANGLE_ASSERT(0, "unknown mangling node kind");
2645}
2646
2647/// Determine the kind of a node from its type.
2648template<typename NodeT> struct NodeKind;
2649#define NODE(X) \
2650 template <> struct NodeKind<X> { \
2651 static constexpr Node::Kind Kind = Node::K##X; \
2652 static constexpr const char *name() { return #X; } \
2653 };
2654#include "ItaniumNodes.def"
2655
2657 auto StartPos = OB.getCurrentPosition();
2658 auto Fail = [&OB, StartPos] {
2659 OB.setCurrentPosition(StartPos);
2660 return false;
2661 };
2662
2663 OB += '"';
2664 bool LastWasNumericEscape = false;
2665 for (const Node *Element : *this) {
2666 if (Element->getKind() != Node::KIntegerLiteral)
2667 return Fail();
2668 int integer_value = 0;
2669 for (char c : static_cast<const IntegerLiteral *>(Element)->value()) {
2670 if (c < '0' || c > '9' || integer_value > 25)
2671 return Fail();
2672 integer_value *= 10;
2673 integer_value += c - '0';
2674 }
2675 if (integer_value > 255)
2676 return Fail();
2677
2678 // Insert a `""` to avoid accidentally extending a numeric escape.
2679 if (LastWasNumericEscape) {
2680 if ((integer_value >= '0' && integer_value <= '9') ||
2681 (integer_value >= 'a' && integer_value <= 'f') ||
2682 (integer_value >= 'A' && integer_value <= 'F')) {
2683 OB += "\"\"";
2684 }
2685 }
2686
2687 LastWasNumericEscape = false;
2688
2689 // Determine how to print this character.
2690 switch (integer_value) {
2691 case '\a':
2692 OB += "\\a";
2693 break;
2694 case '\b':
2695 OB += "\\b";
2696 break;
2697 case '\f':
2698 OB += "\\f";
2699 break;
2700 case '\n':
2701 OB += "\\n";
2702 break;
2703 case '\r':
2704 OB += "\\r";
2705 break;
2706 case '\t':
2707 OB += "\\t";
2708 break;
2709 case '\v':
2710 OB += "\\v";
2711 break;
2712
2713 case '"':
2714 OB += "\\\"";
2715 break;
2716 case '\\':
2717 OB += "\\\\";
2718 break;
2719
2720 default:
2721 // We assume that the character is ASCII, and use a numeric escape for all
2722 // remaining non-printable ASCII characters.
2723 if (integer_value < 32 || integer_value == 127) {
2724 constexpr char Hex[] = "0123456789ABCDEF";
2725 OB += '\\';
2726 if (integer_value > 7)
2727 OB += 'x';
2728 if (integer_value >= 16)
2729 OB += Hex[integer_value >> 4];
2730 OB += Hex[integer_value & 0xF];
2731 LastWasNumericEscape = true;
2732 break;
2733 }
2734
2735 // Assume all remaining characters are directly printable.
2736 OB += (char)integer_value;
2737 break;
2738 }
2739 }
2740 OB += '"';
2741 return true;
2742}
2743
2744template <typename Derived, typename Alloc> struct AbstractManglingParser {
2745 const char *First;
2746 const char *Last;
2747
2748 // Name stack, this is used by the parser to hold temporary names that were
2749 // parsed. The parser collapses multiple names into new nodes to construct
2750 // the AST. Once the parser is finished, names.size() == 1.
2752
2753 // Substitution table. Itanium supports name substitutions as a means of
2754 // compression. The string "S42_" refers to the 44nd entry (base-36) in this
2755 // table.
2757
2758 // A list of template argument values corresponding to a template parameter
2759 // list.
2761
2763 AbstractManglingParser *Parser;
2764 size_t OldNumTemplateParamLists;
2765 TemplateParamList Params;
2766
2767 public:
2769 : Parser(TheParser),
2770 OldNumTemplateParamLists(TheParser->TemplateParams.size()) {
2771 Parser->TemplateParams.push_back(&Params);
2772 }
2774 DEMANGLE_ASSERT(Parser->TemplateParams.size() >= OldNumTemplateParamLists,
2775 "");
2776 Parser->TemplateParams.shrinkToSize(OldNumTemplateParamLists);
2777 }
2778 TemplateParamList *params() { return &Params; }
2779 };
2780
2781 // Template parameter table. Like the above, but referenced like "T42_".
2782 // This has a smaller size compared to Subs and Names because it can be
2783 // stored on the stack.
2785
2786 // Lists of template parameters indexed by template parameter depth,
2787 // referenced like "TL2_4_". If nonempty, element 0 is always
2788 // OuterTemplateParams; inner elements are always template parameter lists of
2789 // lambda expressions. For a generic lambda with no explicit template
2790 // parameter list, the corresponding parameter list pointer will be null.
2792
2794 AbstractManglingParser *Parser;
2795 decltype(TemplateParams) OldParams;
2796 decltype(OuterTemplateParams) OldOuterParams;
2797
2798 public:
2799 SaveTemplateParams(AbstractManglingParser *TheParser) : Parser(TheParser) {
2800 OldParams = std::move(Parser->TemplateParams);
2801 OldOuterParams = std::move(Parser->OuterTemplateParams);
2802 Parser->TemplateParams.clear();
2803 Parser->OuterTemplateParams.clear();
2804 }
2806 Parser->TemplateParams = std::move(OldParams);
2807 Parser->OuterTemplateParams = std::move(OldOuterParams);
2808 }
2809 };
2810
2811 // Set of unresolved forward <template-param> references. These can occur in a
2812 // conversion operator's type, and are resolved in the enclosing <encoding>.
2814
2818 size_t ParsingLambdaParamsAtLevel = (size_t)-1;
2819
2821
2823
2824 AbstractManglingParser(const char *First_, const char *Last_)
2825 : First(First_), Last(Last_) {}
2826
2827 Derived &getDerived() { return static_cast<Derived &>(*this); }
2828
2829 void reset(const char *First_, const char *Last_) {
2830 First = First_;
2831 Last = Last_;
2832 Names.clear();
2833 Subs.clear();
2834 TemplateParams.clear();
2835 ParsingLambdaParamsAtLevel = (size_t)-1;
2838 for (int I = 0; I != 3; ++I)
2840 ASTAllocator.reset();
2841 }
2842
2843 template <class T, class... Args> Node *make(Args &&... args) {
2844 return ASTAllocator.template makeNode<T>(std::forward<Args>(args)...);
2845 }
2846
2847 template <class It> NodeArray makeNodeArray(It begin, It end) {
2848 size_t sz = static_cast<size_t>(end - begin);
2849 void *mem = ASTAllocator.allocateNodeArray(sz);
2850 Node **data = new (mem) Node *[sz];
2851 std::copy(begin, end, data);
2852 return NodeArray(data, sz);
2853 }
2854
2855 NodeArray popTrailingNodeArray(size_t FromPosition) {
2856 DEMANGLE_ASSERT(FromPosition <= Names.size(), "");
2857 NodeArray res =
2858 makeNodeArray(Names.begin() + (long)FromPosition, Names.end());
2859 Names.shrinkToSize(FromPosition);
2860 return res;
2861 }
2862
2863 bool consumeIf(std::string_view S) {
2864 if (starts_with(std::string_view(First, Last - First), S)) {
2865 First += S.size();
2866 return true;
2867 }
2868 return false;
2869 }
2870
2871 bool consumeIf(char C) {
2872 if (First != Last && *First == C) {
2873 ++First;
2874 return true;
2875 }
2876 return false;
2877 }
2878
2879 char consume() { return First != Last ? *First++ : '\0'; }
2880
2881 char look(unsigned Lookahead = 0) const {
2882 if (static_cast<size_t>(Last - First) <= Lookahead)
2883 return '\0';
2884 return First[Lookahead];
2885 }
2886
2887 size_t numLeft() const { return static_cast<size_t>(Last - First); }
2888
2889 std::string_view parseNumber(bool AllowNegative = false);
2891 bool parsePositiveInteger(size_t *Out);
2892 std::string_view parseBareSourceName();
2893
2894 bool parseSeqId(size_t *Out);
2898 Node *parseTemplateArgs(bool TagTemplates = false);
2900
2902 return look() == 'T' &&
2903 std::string_view("yptnk").find(look(1)) != std::string_view::npos;
2904 }
2905
2906 /// Parse the <expression> production.
2908 Node *parsePrefixExpr(std::string_view Kind, Node::Prec Prec);
2909 Node *parseBinaryExpr(std::string_view Kind, Node::Prec Prec);
2910 Node *parseIntegerLiteral(std::string_view Lit);
2912 template <class Float> Node *parseFloatingLiteral();
2921
2922 /// Parse the <type> production.
2931
2932 Node *parseEncoding(bool ParseParams = true);
2935
2936 /// Holds some extra information about a <name> that is being parsed. This
2937 /// information is only pertinent if the <name> refers to an <encoding>.
2949
2951 size_t I = State.ForwardTemplateRefsBegin;
2952 size_t E = ForwardTemplateRefs.size();
2953 for (; I < E; ++I) {
2954 size_t Idx = ForwardTemplateRefs[I]->Index;
2955 if (TemplateParams.empty() || !TemplateParams[0] ||
2956 Idx >= TemplateParams[0]->size())
2957 return true;
2958 ForwardTemplateRefs[I]->Ref = (*TemplateParams[0])[Idx];
2959 }
2960 ForwardTemplateRefs.shrinkToSize(State.ForwardTemplateRefsBegin);
2961 return false;
2962 }
2963
2964 /// Parse the <name> production>
2965 Node *parseName(NameState *State = nullptr);
2966 Node *parseLocalName(NameState *State);
2967 Node *parseOperatorName(NameState *State);
2969 Node *parseUnqualifiedName(NameState *State, Node *Scope, ModuleName *Module);
2970 Node *parseUnnamedTypeName(NameState *State);
2971 Node *parseSourceName(NameState *State);
2972 Node *parseUnscopedName(NameState *State, bool *isSubstName);
2973 Node *parseNestedName(NameState *State);
2974 Node *parseCtorDtorName(Node *&SoFar, NameState *State);
2975
2977
2979 enum OIKind : unsigned char {
2980 Prefix, // Prefix unary: @ expr
2981 Postfix, // Postfix unary: expr @
2982 Binary, // Binary: lhs @ rhs
2983 Array, // Array index: lhs [ rhs ]
2984 Member, // Member access: lhs @ rhs
2985 New, // New
2986 Del, // Delete
2987 Call, // Function call: expr (expr*)
2988 CCast, // C cast: (type)expr
2989 Conditional, // Conditional: expr ? expr : expr
2990 NameOnly, // Overload only, not allowed in expression.
2991 // Below do not have operator names
2992 NamedCast, // Named cast, @<type>(expr)
2993 OfIdOp, // alignof, sizeof, typeid
2994
2996 };
2997 char Enc[2]; // Encoding
2998 OIKind Kind; // Kind of operator
2999 bool Flag : 1; // Entry-specific flag
3000 Node::Prec Prec : 7; // Precedence
3001 const char *Name; // Spelling
3002
3003 public:
3004 constexpr OperatorInfo(const char (&E)[3], OIKind K, bool F, Node::Prec P,
3005 const char *N)
3006 : Enc{E[0], E[1]}, Kind{K}, Flag{F}, Prec{P}, Name{N} {}
3007
3008 public:
3009 bool operator<(const OperatorInfo &Other) const {
3010 return *this < Other.Enc;
3011 }
3012 bool operator<(const char *Peek) const {
3013 return Enc[0] < Peek[0] || (Enc[0] == Peek[0] && Enc[1] < Peek[1]);
3014 }
3015 bool operator==(const char *Peek) const {
3016 return Enc[0] == Peek[0] && Enc[1] == Peek[1];
3017 }
3018 bool operator!=(const char *Peek) const { return !this->operator==(Peek); }
3019
3020 public:
3021 std::string_view getSymbol() const {
3022 std::string_view Res = Name;
3023 if (Kind < Unnameable) {
3024 DEMANGLE_ASSERT(starts_with(Res, "operator"),
3025 "operator name does not start with 'operator'");
3026 Res.remove_prefix(sizeof("operator") - 1);
3027 if (starts_with(Res, ' '))
3028 Res.remove_prefix(1);
3029 }
3030 return Res;
3031 }
3032 std::string_view getName() const { return Name; }
3033 OIKind getKind() const { return Kind; }
3034 bool getFlag() const { return Flag; }
3035 Node::Prec getPrecedence() const { return Prec; }
3036 };
3037 static const OperatorInfo Ops[];
3038 static const size_t NumOps;
3039 const OperatorInfo *parseOperatorEncoding();
3040
3041 /// Parse the <unresolved-name> production.
3047
3048 /// Top-level entry point into the parser.
3049 Node *parse(bool ParseParams = true);
3050};
3051
3052DEMANGLE_ABI const char *parse_discriminator(const char *first,
3053 const char *last);
3054
3055// <name> ::= <nested-name> // N
3056// ::= <local-name> # See Scope Encoding below // Z
3057// ::= <unscoped-template-name> <template-args>
3058// ::= <unscoped-name>
3059//
3060// <unscoped-template-name> ::= <unscoped-name>
3061// ::= <substitution>
3062template <typename Derived, typename Alloc>
3064 if (look() == 'N')
3065 return getDerived().parseNestedName(State);
3066 if (look() == 'Z')
3067 return getDerived().parseLocalName(State);
3068
3069 Node *Result = nullptr;
3070 bool IsSubst = false;
3071
3072 Result = getDerived().parseUnscopedName(State, &IsSubst);
3073 if (!Result)
3074 return nullptr;
3075
3076 if (look() == 'I') {
3077 // ::= <unscoped-template-name> <template-args>
3078 if (!IsSubst)
3079 // An unscoped-template-name is substitutable.
3080 Subs.push_back(Result);
3081 Node *TA = getDerived().parseTemplateArgs(State != nullptr);
3082 if (TA == nullptr)
3083 return nullptr;
3084 if (State)
3085 State->EndsWithTemplateArgs = true;
3086 Result = make<NameWithTemplateArgs>(Result, TA);
3087 } else if (IsSubst) {
3088 // The substitution case must be followed by <template-args>.
3089 return nullptr;
3090 }
3091
3092 return Result;
3093}
3094
3095// <local-name> := Z <function encoding> E <entity name> [<discriminator>]
3096// := Z <function encoding> E s [<discriminator>]
3097// := Z <function encoding> Ed [ <parameter number> ] _ <entity name>
3098template <typename Derived, typename Alloc>
3100 if (!consumeIf('Z'))
3101 return nullptr;
3102 Node *Encoding = getDerived().parseEncoding();
3103 if (Encoding == nullptr || !consumeIf('E'))
3104 return nullptr;
3105
3106 if (consumeIf('s')) {
3108 auto *StringLitName = make<NameType>("string literal");
3109 if (!StringLitName)
3110 return nullptr;
3111 return make<LocalName>(Encoding, StringLitName);
3112 }
3113
3114 // The template parameters of the inner name are unrelated to those of the
3115 // enclosing context.
3116 SaveTemplateParams SaveTemplateParamsScope(this);
3117
3118 if (consumeIf('d')) {
3119 parseNumber(true);
3120 if (!consumeIf('_'))
3121 return nullptr;
3122 Node *N = getDerived().parseName(State);
3123 if (N == nullptr)
3124 return nullptr;
3125 return make<LocalName>(Encoding, N);
3126 }
3127
3128 Node *Entity = getDerived().parseName(State);
3129 if (Entity == nullptr)
3130 return nullptr;
3132 return make<LocalName>(Encoding, Entity);
3133}
3134
3135// <unscoped-name> ::= <unqualified-name>
3136// ::= St <unqualified-name> # ::std::
3137// [*] extension
3138template <typename Derived, typename Alloc>
3139Node *
3141 bool *IsSubst) {
3142
3143 Node *Std = nullptr;
3144 if (consumeIf("St")) {
3145 Std = make<NameType>("std");
3146 if (Std == nullptr)
3147 return nullptr;
3148 }
3149
3150 Node *Res = nullptr;
3151 ModuleName *Module = nullptr;
3152 if (look() == 'S') {
3153 Node *S = getDerived().parseSubstitution();
3154 if (!S)
3155 return nullptr;
3156 if (S->getKind() == Node::KModuleName)
3157 Module = static_cast<ModuleName *>(S);
3158 else if (IsSubst && Std == nullptr) {
3159 Res = S;
3160 *IsSubst = true;
3161 } else {
3162 return nullptr;
3163 }
3164 }
3165
3166 if (Res == nullptr || Std != nullptr) {
3167 Res = getDerived().parseUnqualifiedName(State, Std, Module);
3168 }
3169
3170 return Res;
3171}
3172
3173// <unqualified-name> ::= [<module-name>] F? L? <operator-name> [<abi-tags>]
3174// ::= [<module-name>] <ctor-dtor-name> [<abi-tags>]
3175// ::= [<module-name>] F? L? <source-name> [<abi-tags>]
3176// ::= [<module-name>] L? <unnamed-type-name> [<abi-tags>]
3177// # structured binding declaration
3178// ::= [<module-name>] L? DC <source-name>+ E
3179template <typename Derived, typename Alloc>
3181 NameState *State, Node *Scope, ModuleName *Module) {
3183 return nullptr;
3184
3185 bool IsMemberLikeFriend = Scope && consumeIf('F');
3186
3187 consumeIf('L');
3188
3189 Node *Result;
3190 if (look() >= '1' && look() <= '9') {
3191 Result = getDerived().parseSourceName(State);
3192 } else if (look() == 'U') {
3193 Result = getDerived().parseUnnamedTypeName(State);
3194 } else if (consumeIf("DC")) {
3195 // Structured binding
3196 size_t BindingsBegin = Names.size();
3197 do {
3198 Node *Binding = getDerived().parseSourceName(State);
3199 if (Binding == nullptr)
3200 return nullptr;
3201 Names.push_back(Binding);
3202 } while (!consumeIf('E'));
3203 Result = make<StructuredBindingName>(popTrailingNodeArray(BindingsBegin));
3204 } else if (look() == 'C' || look() == 'D') {
3205 // A <ctor-dtor-name>.
3206 if (Scope == nullptr || Module != nullptr)
3207 return nullptr;
3208 Result = getDerived().parseCtorDtorName(Scope, State);
3209 } else {
3210 Result = getDerived().parseOperatorName(State);
3211 }
3212
3213 if (Result != nullptr && Module != nullptr)
3214 Result = make<ModuleEntity>(Module, Result);
3215 if (Result != nullptr)
3216 Result = getDerived().parseAbiTags(Result);
3217 if (Result != nullptr && IsMemberLikeFriend)
3218 Result = make<MemberLikeFriendName>(Scope, Result);
3219 else if (Result != nullptr && Scope != nullptr)
3220 Result = make<NestedName>(Scope, Result);
3221
3222 return Result;
3223}
3224
3225// <module-name> ::= <module-subname>
3226// ::= <module-name> <module-subname>
3227// ::= <substitution> # passed in by caller
3228// <module-subname> ::= W <source-name>
3229// ::= W P <source-name>
3230template <typename Derived, typename Alloc>
3232 ModuleName *&Module) {
3233 while (consumeIf('W')) {
3234 bool IsPartition = consumeIf('P');
3235 Node *Sub = getDerived().parseSourceName(nullptr);
3236 if (!Sub)
3237 return true;
3238 Module =
3239 static_cast<ModuleName *>(make<ModuleName>(Module, Sub, IsPartition));
3240 Subs.push_back(Module);
3241 }
3242
3243 return false;
3244}
3245
3246// <unnamed-type-name> ::= Ut [<nonnegative number>] _
3247// ::= <closure-type-name>
3248//
3249// <closure-type-name> ::= Ul <lambda-sig> E [ <nonnegative number> ] _
3250//
3251// <lambda-sig> ::= <template-param-decl>* [Q <requires-clause expression>]
3252// <parameter type>+ # or "v" if the lambda has no parameters
3253template <typename Derived, typename Alloc>
3254Node *
3256 // <template-params> refer to the innermost <template-args>. Clear out any
3257 // outer args that we may have inserted into TemplateParams.
3258 if (State != nullptr)
3259 TemplateParams.clear();
3260
3261 if (consumeIf("Ut")) {
3262 std::string_view Count = parseNumber();
3263 if (!consumeIf('_'))
3264 return nullptr;
3265 return make<UnnamedTypeName>(Count);
3266 }
3267 if (consumeIf("Ul")) {
3269 TemplateParams.size());
3270 ScopedTemplateParamList LambdaTemplateParams(this);
3271
3272 size_t ParamsBegin = Names.size();
3273 while (getDerived().isTemplateParamDecl()) {
3274 Node *T =
3275 getDerived().parseTemplateParamDecl(LambdaTemplateParams.params());
3276 if (T == nullptr)
3277 return nullptr;
3278 Names.push_back(T);
3279 }
3280 NodeArray TempParams = popTrailingNodeArray(ParamsBegin);
3281
3282 // FIXME: If TempParams is empty and none of the function parameters
3283 // includes 'auto', we should remove LambdaTemplateParams from the
3284 // TemplateParams list. Unfortunately, we don't find out whether there are
3285 // any 'auto' parameters until too late in an example such as:
3286 //
3287 // template<typename T> void f(
3288 // decltype([](decltype([]<typename T>(T v) {}),
3289 // auto) {})) {}
3290 // template<typename T> void f(
3291 // decltype([](decltype([]<typename T>(T w) {}),
3292 // int) {})) {}
3293 //
3294 // Here, the type of v is at level 2 but the type of w is at level 1. We
3295 // don't find this out until we encounter the type of the next parameter.
3296 //
3297 // However, compilers can't actually cope with the former example in
3298 // practice, and it's likely to be made ill-formed in future, so we don't
3299 // need to support it here.
3300 //
3301 // If we encounter an 'auto' in the function parameter types, we will
3302 // recreate a template parameter scope for it, but any intervening lambdas
3303 // will be parsed in the 'wrong' template parameter depth.
3304 if (TempParams.empty())
3305 TemplateParams.pop_back();
3306
3307 Node *Requires1 = nullptr;
3308 if (consumeIf('Q')) {
3309 Requires1 = getDerived().parseConstraintExpr();
3310 if (Requires1 == nullptr)
3311 return nullptr;
3312 }
3313
3314 if (!consumeIf("v")) {
3315 do {
3316 Node *P = getDerived().parseType();
3317 if (P == nullptr)
3318 return nullptr;
3319 Names.push_back(P);
3320 } while (look() != 'E' && look() != 'Q');
3321 }
3322 NodeArray Params = popTrailingNodeArray(ParamsBegin);
3323
3324 Node *Requires2 = nullptr;
3325 if (consumeIf('Q')) {
3326 Requires2 = getDerived().parseConstraintExpr();
3327 if (Requires2 == nullptr)
3328 return nullptr;
3329 }
3330
3331 if (!consumeIf('E'))
3332 return nullptr;
3333
3334 std::string_view Count = parseNumber();
3335 if (!consumeIf('_'))
3336 return nullptr;
3337 return make<ClosureTypeName>(TempParams, Requires1, Params, Requires2,
3338 Count);
3339 }
3340 if (consumeIf("Ub")) {
3341 (void)parseNumber();
3342 if (!consumeIf('_'))
3343 return nullptr;
3344 return make<NameType>("'block-literal'");
3345 }
3346 return nullptr;
3347}
3348
3349// <source-name> ::= <positive length number> <identifier>
3350template <typename Derived, typename Alloc>
3352 size_t Length = 0;
3353 if (parsePositiveInteger(&Length))
3354 return nullptr;
3355 if (numLeft() < Length || Length == 0)
3356 return nullptr;
3357 std::string_view Name(First, Length);
3358 First += Length;
3359 if (starts_with(Name, "_GLOBAL__N"))
3360 return make<NameType>("(anonymous namespace)");
3361 return make<NameType>(Name);
3362}
3363
3364// Operator encodings
3365template <typename Derived, typename Alloc>
3366const typename AbstractManglingParser<
3367 Derived, Alloc>::OperatorInfo AbstractManglingParser<Derived,
3369 // Keep ordered by encoding
3370 {"aN", OperatorInfo::Binary, false, Node::Prec::Assign, "operator&="},
3371 {"aS", OperatorInfo::Binary, false, Node::Prec::Assign, "operator="},
3372 {"aa", OperatorInfo::Binary, false, Node::Prec::AndIf, "operator&&"},
3373 {"ad", OperatorInfo::Prefix, false, Node::Prec::Unary, "operator&"},
3374 {"an", OperatorInfo::Binary, false, Node::Prec::And, "operator&"},
3375 {"at", OperatorInfo::OfIdOp, /*Type*/ true, Node::Prec::Unary, "alignof "},
3376 {"aw", OperatorInfo::NameOnly, false, Node::Prec::Primary,
3377 "operator co_await"},
3378 {"az", OperatorInfo::OfIdOp, /*Type*/ false, Node::Prec::Unary, "alignof "},
3379 {"cc", OperatorInfo::NamedCast, false, Node::Prec::Postfix, "const_cast"},
3380 {"cl", OperatorInfo::Call, /*Paren*/ false, Node::Prec::Postfix,
3381 "operator()"},
3382 {"cm", OperatorInfo::Binary, false, Node::Prec::Comma, "operator,"},
3383 {"co", OperatorInfo::Prefix, false, Node::Prec::Unary, "operator~"},
3384 {"cp", OperatorInfo::Call, /*Paren*/ true, Node::Prec::Postfix,
3385 "operator()"},
3386 {"cv", OperatorInfo::CCast, false, Node::Prec::Cast, "operator"}, // C Cast
3387 {"dV", OperatorInfo::Binary, false, Node::Prec::Assign, "operator/="},
3388 {"da", OperatorInfo::Del, /*Ary*/ true, Node::Prec::Unary,
3389 "operator delete[]"},
3390 {"dc", OperatorInfo::NamedCast, false, Node::Prec::Postfix, "dynamic_cast"},
3391 {"de", OperatorInfo::Prefix, false, Node::Prec::Unary, "operator*"},
3392 {"dl", OperatorInfo::Del, /*Ary*/ false, Node::Prec::Unary,
3393 "operator delete"},
3394 {"ds", OperatorInfo::Member, /*Named*/ false, Node::Prec::PtrMem,
3395 "operator.*"},
3396 {"dt", OperatorInfo::Member, /*Named*/ false, Node::Prec::Postfix,
3397 "operator."},
3398 {"dv", OperatorInfo::Binary, false, Node::Prec::Assign, "operator/"},
3399 {"eO", OperatorInfo::Binary, false, Node::Prec::Assign, "operator^="},
3400 {"eo", OperatorInfo::Binary, false, Node::Prec::Xor, "operator^"},
3401 {"eq", OperatorInfo::Binary, false, Node::Prec::Equality, "operator=="},
3402 {"ge", OperatorInfo::Binary, false, Node::Prec::Relational, "operator>="},
3403 {"gt", OperatorInfo::Binary, false, Node::Prec::Relational, "operator>"},
3404 {"ix", OperatorInfo::Array, false, Node::Prec::Postfix, "operator[]"},
3405 {"lS", OperatorInfo::Binary, false, Node::Prec::Assign, "operator<<="},
3406 {"le", OperatorInfo::Binary, false, Node::Prec::Relational, "operator<="},
3407 {"ls", OperatorInfo::Binary, false, Node::Prec::Shift, "operator<<"},
3408 {"lt", OperatorInfo::Binary, false, Node::Prec::Relational, "operator<"},
3409 {"mI", OperatorInfo::Binary, false, Node::Prec::Assign, "operator-="},
3410 {"mL", OperatorInfo::Binary, false, Node::Prec::Assign, "operator*="},
3411 {"mi", OperatorInfo::Binary, false, Node::Prec::Additive, "operator-"},
3412 {"ml", OperatorInfo::Binary, false, Node::Prec::Multiplicative,
3413 "operator*"},
3414 {"mm", OperatorInfo::Postfix, false, Node::Prec::Postfix, "operator--"},
3415 {"na", OperatorInfo::New, /*Ary*/ true, Node::Prec::Unary,
3416 "operator new[]"},
3417 {"ne", OperatorInfo::Binary, false, Node::Prec::Equality, "operator!="},
3418 {"ng", OperatorInfo::Prefix, false, Node::Prec::Unary, "operator-"},
3419 {"nt", OperatorInfo::Prefix, false, Node::Prec::Unary, "operator!"},
3420 {"nw", OperatorInfo::New, /*Ary*/ false, Node::Prec::Unary, "operator new"},
3421 {"oR", OperatorInfo::Binary, false, Node::Prec::Assign, "operator|="},
3422 {"oo", OperatorInfo::Binary, false, Node::Prec::OrIf, "operator||"},
3423 {"or", OperatorInfo::Binary, false, Node::Prec::Ior, "operator|"},
3424 {"pL", OperatorInfo::Binary, false, Node::Prec::Assign, "operator+="},
3425 {"pl", OperatorInfo::Binary, false, Node::Prec::Additive, "operator+"},
3426 {"pm", OperatorInfo::Member, /*Named*/ true, Node::Prec::PtrMem,
3427 "operator->*"},
3428 {"pp", OperatorInfo::Postfix, false, Node::Prec::Postfix, "operator++"},
3429 {"ps", OperatorInfo::Prefix, false, Node::Prec::Unary, "operator+"},
3430 {"pt", OperatorInfo::Member, /*Named*/ true, Node::Prec::Postfix,
3431 "operator->"},
3432 {"qu", OperatorInfo::Conditional, false, Node::Prec::Conditional,
3433 "operator?"},
3434 {"rM", OperatorInfo::Binary, false, Node::Prec::Assign, "operator%="},
3435 {"rS", OperatorInfo::Binary, false, Node::Prec::Assign, "operator>>="},
3436 {"rc", OperatorInfo::NamedCast, false, Node::Prec::Postfix,
3437 "reinterpret_cast"},
3438 {"rm", OperatorInfo::Binary, false, Node::Prec::Multiplicative,
3439 "operator%"},
3440 {"rs", OperatorInfo::Binary, false, Node::Prec::Shift, "operator>>"},
3441 {"sc", OperatorInfo::NamedCast, false, Node::Prec::Postfix, "static_cast"},
3442 {"ss", OperatorInfo::Binary, false, Node::Prec::Spaceship, "operator<=>"},
3443 {"st", OperatorInfo::OfIdOp, /*Type*/ true, Node::Prec::Unary, "sizeof "},
3444 {"sz", OperatorInfo::OfIdOp, /*Type*/ false, Node::Prec::Unary, "sizeof "},
3445 {"te", OperatorInfo::OfIdOp, /*Type*/ false, Node::Prec::Postfix,
3446 "typeid "},
3447 {"ti", OperatorInfo::OfIdOp, /*Type*/ true, Node::Prec::Postfix, "typeid "},
3448};
3449template <typename Derived, typename Alloc>
3451 sizeof(Ops[0]);
3452
3453// If the next 2 chars are an operator encoding, consume them and return their
3454// OperatorInfo. Otherwise return nullptr.
3455template <typename Derived, typename Alloc>
3458 if (numLeft() < 2)
3459 return nullptr;
3460
3461 // We can't use lower_bound as that can link to symbols in the C++ library,
3462 // and this must remain independent of that.
3463 size_t lower = 0u, upper = NumOps - 1; // Inclusive bounds.
3464 while (upper != lower) {
3465 size_t middle = (upper + lower) / 2;
3466 if (Ops[middle] < First)
3467 lower = middle + 1;
3468 else
3469 upper = middle;
3470 }
3471 if (Ops[lower] != First)
3472 return nullptr;
3473
3474 First += 2;
3475 return &Ops[lower];
3476}
3477
3478// <operator-name> ::= See parseOperatorEncoding()
3479// ::= li <source-name> # operator ""
3480// ::= v <digit> <source-name> # vendor extended operator
3481template <typename Derived, typename Alloc>
3482Node *
3484 if (const auto *Op = parseOperatorEncoding()) {
3485 if (Op->getKind() == OperatorInfo::CCast) {
3486 // ::= cv <type> # (cast)
3487 ScopedOverride<bool> SaveTemplate(TryToParseTemplateArgs, false);
3488 // If we're parsing an encoding, State != nullptr and the conversion
3489 // operators' <type> could have a <template-param> that refers to some
3490 // <template-arg>s further ahead in the mangled name.
3493 State != nullptr);
3494 Node *Ty = getDerived().parseType();
3495 if (Ty == nullptr)
3496 return nullptr;
3497 if (State) State->CtorDtorConversion = true;
3499 }
3500
3501 if (Op->getKind() >= OperatorInfo::Unnameable)
3502 /* Not a nameable operator. */
3503 return nullptr;
3504 if (Op->getKind() == OperatorInfo::Member && !Op->getFlag())
3505 /* Not a nameable MemberExpr */
3506 return nullptr;
3507
3508 return make<NameType>(Op->getName());
3509 }
3510
3511 if (consumeIf("li")) {
3512 // ::= li <source-name> # operator ""
3513 Node *SN = getDerived().parseSourceName(State);
3514 if (SN == nullptr)
3515 return nullptr;
3516 return make<LiteralOperator>(SN);
3517 }
3518
3519 if (consumeIf('v')) {
3520 // ::= v <digit> <source-name> # vendor extended operator
3521 if (look() >= '0' && look() <= '9') {
3522 First++;
3523 Node *SN = getDerived().parseSourceName(State);
3524 if (SN == nullptr)
3525 return nullptr;
3527 }
3528 return nullptr;
3529 }
3530
3531 return nullptr;
3532}
3533
3534// <ctor-dtor-name> ::= C1 # complete object constructor
3535// ::= C2 # base object constructor
3536// ::= C3 # complete object allocating constructor
3537// extension ::= C4 # gcc old-style "[unified]" constructor
3538// extension ::= C5 # the COMDAT used for ctors
3539// ::= D0 # deleting destructor
3540// ::= D1 # complete object destructor
3541// ::= D2 # base object destructor
3542// extension ::= D4 # gcc old-style "[unified]" destructor
3543// extension ::= D5 # the COMDAT used for dtors
3544template <typename Derived, typename Alloc>
3545Node *
3547 NameState *State) {
3548 if (SoFar->getKind() == Node::KSpecialSubstitution) {
3549 // Expand the special substitution.
3551 static_cast<SpecialSubstitution *>(SoFar));
3552 if (!SoFar)
3553 return nullptr;
3554 }
3555
3556 if (consumeIf('C')) {
3557 bool IsInherited = consumeIf('I');
3558 if (look() != '1' && look() != '2' && look() != '3' && look() != '4' &&
3559 look() != '5')
3560 return nullptr;
3561 int Variant = look() - '0';
3562 ++First;
3563 if (State) State->CtorDtorConversion = true;
3564 if (IsInherited) {
3565 if (getDerived().parseName(State) == nullptr)
3566 return nullptr;
3567 }
3568 return make<CtorDtorName>(SoFar, /*IsDtor=*/false, Variant);
3569 }
3570
3571 if (look() == 'D' && (look(1) == '0' || look(1) == '1' || look(1) == '2' ||
3572 look(1) == '4' || look(1) == '5')) {
3573 int Variant = look(1) - '0';
3574 First += 2;
3575 if (State) State->CtorDtorConversion = true;
3576 return make<CtorDtorName>(SoFar, /*IsDtor=*/true, Variant);
3577 }
3578
3579 return nullptr;
3580}
3581
3582// <nested-name> ::= N [<CV-Qualifiers>] [<ref-qualifier>] <prefix>
3583// <unqualified-name> E
3584// ::= N [<CV-Qualifiers>] [<ref-qualifier>] <template-prefix>
3585// <template-args> E
3586//
3587// <prefix> ::= <prefix> <unqualified-name>
3588// ::= <template-prefix> <template-args>
3589// ::= <template-param>
3590// ::= <decltype>
3591// ::= # empty
3592// ::= <substitution>
3593// ::= <prefix> <data-member-prefix>
3594// [*] extension
3595//
3596// <data-member-prefix> := <member source-name> [<template-args>] M
3597//
3598// <template-prefix> ::= <prefix> <template unqualified-name>
3599// ::= <template-param>
3600// ::= <substitution>
3601template <typename Derived, typename Alloc>
3602Node *
3604 if (!consumeIf('N'))
3605 return nullptr;
3606
3607 // 'H' specifies that the encoding that follows
3608 // has an explicit object parameter.
3609 if (!consumeIf('H')) {
3610 Qualifiers CVTmp = parseCVQualifiers();
3611 if (State)
3612 State->CVQualifiers = CVTmp;
3613
3614 if (consumeIf('O')) {
3615 if (State)
3616 State->ReferenceQualifier = FrefQualRValue;
3617 } else if (consumeIf('R')) {
3618 if (State)
3619 State->ReferenceQualifier = FrefQualLValue;
3620 } else {
3621 if (State)
3622 State->ReferenceQualifier = FrefQualNone;
3623 }
3624 } else if (State) {
3625 State->HasExplicitObjectParameter = true;
3626 }
3627
3628 Node *SoFar = nullptr;
3629 while (!consumeIf('E')) {
3630 if (State)
3631 // Only set end-with-template on the case that does that.
3632 State->EndsWithTemplateArgs = false;
3633
3634 if (look() == 'T') {
3635 // ::= <template-param>
3636 if (SoFar != nullptr)
3637 return nullptr; // Cannot have a prefix.
3638 SoFar = getDerived().parseTemplateParam();
3639 } else if (look() == 'I') {
3640 // ::= <template-prefix> <template-args>
3641 if (SoFar == nullptr)
3642 return nullptr; // Must have a prefix.
3643 Node *TA = getDerived().parseTemplateArgs(State != nullptr);
3644 if (TA == nullptr)
3645 return nullptr;
3646 if (SoFar->getKind() == Node::KNameWithTemplateArgs)
3647 // Semantically <template-args> <template-args> cannot be generated by a
3648 // C++ entity. There will always be [something like] a name between
3649 // them.
3650 return nullptr;
3651 if (State)
3652 State->EndsWithTemplateArgs = true;
3653 SoFar = make<NameWithTemplateArgs>(SoFar, TA);
3654 } else if (look() == 'D' && (look(1) == 't' || look(1) == 'T')) {
3655 // ::= <decltype>
3656 if (SoFar != nullptr)
3657 return nullptr; // Cannot have a prefix.
3658 SoFar = getDerived().parseDecltype();
3659 } else {
3660 ModuleName *Module = nullptr;
3661
3662 if (look() == 'S') {
3663 // ::= <substitution>
3664 Node *S = nullptr;
3665 if (look(1) == 't') {
3666 First += 2;
3667 S = make<NameType>("std");
3668 } else {
3669 S = getDerived().parseSubstitution();
3670 }
3671 if (!S)
3672 return nullptr;
3673 if (S->getKind() == Node::KModuleName) {
3674 Module = static_cast<ModuleName *>(S);
3675 } else if (SoFar != nullptr) {
3676 return nullptr; // Cannot have a prefix.
3677 } else {
3678 SoFar = S;
3679 continue; // Do not push a new substitution.
3680 }
3681 }
3682
3683 // ::= [<prefix>] <unqualified-name>
3684 SoFar = getDerived().parseUnqualifiedName(State, SoFar, Module);
3685 }
3686
3687 if (SoFar == nullptr)
3688 return nullptr;
3689 Subs.push_back(SoFar);
3690
3691 // No longer used.
3692 // <data-member-prefix> := <member source-name> [<template-args>] M
3693 consumeIf('M');
3694 }
3695
3696 if (SoFar == nullptr || Subs.empty())
3697 return nullptr;
3698
3699 Subs.pop_back();
3700 return SoFar;
3701}
3702
3703// <simple-id> ::= <source-name> [ <template-args> ]
3704template <typename Derived, typename Alloc>
3706 Node *SN = getDerived().parseSourceName(/*NameState=*/nullptr);
3707 if (SN == nullptr)
3708 return nullptr;
3709 if (look() == 'I') {
3710 Node *TA = getDerived().parseTemplateArgs();
3711 if (TA == nullptr)
3712 return nullptr;
3713 return make<NameWithTemplateArgs>(SN, TA);
3714 }
3715 return SN;
3716}
3717
3718// <destructor-name> ::= <unresolved-type> # e.g., ~T or ~decltype(f())
3719// ::= <simple-id> # e.g., ~A<2*N>
3720template <typename Derived, typename Alloc>
3722 Node *Result;
3723 if (std::isdigit(look()))
3724 Result = getDerived().parseSimpleId();
3725 else
3726 Result = getDerived().parseUnresolvedType();
3727 if (Result == nullptr)
3728 return nullptr;
3729 return make<DtorName>(Result);
3730}
3731
3732// <unresolved-type> ::= <template-param>
3733// ::= <decltype>
3734// ::= <substitution>
3735template <typename Derived, typename Alloc>
3737 if (look() == 'T') {
3738 Node *TP = getDerived().parseTemplateParam();
3739 if (TP == nullptr)
3740 return nullptr;
3741 Subs.push_back(TP);
3742 return TP;
3743 }
3744 if (look() == 'D') {
3745 Node *DT = getDerived().parseDecltype();
3746 if (DT == nullptr)
3747 return nullptr;
3748 Subs.push_back(DT);
3749 return DT;
3750 }
3751 return getDerived().parseSubstitution();
3752}
3753
3754// <base-unresolved-name> ::= <simple-id> # unresolved name
3755// extension ::= <operator-name> # unresolved operator-function-id
3756// extension ::= <operator-name> <template-args> # unresolved operator template-id
3757// ::= on <operator-name> # unresolved operator-function-id
3758// ::= on <operator-name> <template-args> # unresolved operator template-id
3759// ::= dn <destructor-name> # destructor or pseudo-destructor;
3760// # e.g. ~X or ~X<N-1>
3761template <typename Derived, typename Alloc>
3763 if (std::isdigit(look()))
3764 return getDerived().parseSimpleId();
3765
3766 if (consumeIf("dn"))
3767 return getDerived().parseDestructorName();
3768
3769 consumeIf("on");
3770
3771 Node *Oper = getDerived().parseOperatorName(/*NameState=*/nullptr);
3772 if (Oper == nullptr)
3773 return nullptr;
3774 if (look() == 'I') {
3775 Node *TA = getDerived().parseTemplateArgs();
3776 if (TA == nullptr)
3777 return nullptr;
3778 return make<NameWithTemplateArgs>(Oper, TA);
3779 }
3780 return Oper;
3781}
3782
3783// <unresolved-name>
3784// extension ::= srN <unresolved-type> [<template-args>] <unresolved-qualifier-level>* E <base-unresolved-name>
3785// ::= [gs] <base-unresolved-name> # x or (with "gs") ::x
3786// ::= [gs] sr <unresolved-qualifier-level>+ E <base-unresolved-name>
3787// # A::x, N::y, A<T>::z; "gs" means leading "::"
3788// [gs] has been parsed by caller.
3789// ::= sr <unresolved-type> <base-unresolved-name> # T::x / decltype(p)::x
3790// extension ::= sr <unresolved-type> <template-args> <base-unresolved-name>
3791// # T::N::x /decltype(p)::N::x
3792// (ignored) ::= srN <unresolved-type> <unresolved-qualifier-level>+ E <base-unresolved-name>
3793//
3794// <unresolved-qualifier-level> ::= <simple-id>
3795template <typename Derived, typename Alloc>
3797 Node *SoFar = nullptr;
3798
3799 // srN <unresolved-type> [<template-args>] <unresolved-qualifier-level>* E <base-unresolved-name>
3800 // srN <unresolved-type> <unresolved-qualifier-level>+ E <base-unresolved-name>
3801 if (consumeIf("srN")) {
3802 SoFar = getDerived().parseUnresolvedType();
3803 if (SoFar == nullptr)
3804 return nullptr;
3805
3806 if (look() == 'I') {
3807 Node *TA = getDerived().parseTemplateArgs();
3808 if (TA == nullptr)
3809 return nullptr;
3810 SoFar = make<NameWithTemplateArgs>(SoFar, TA);
3811 if (!SoFar)
3812 return nullptr;
3813 }
3814
3815 while (!consumeIf('E')) {
3816 Node *Qual = getDerived().parseSimpleId();
3817 if (Qual == nullptr)
3818 return nullptr;
3819 SoFar = make<QualifiedName>(SoFar, Qual);
3820 if (!SoFar)
3821 return nullptr;
3822 }
3823
3824 Node *Base = getDerived().parseBaseUnresolvedName();
3825 if (Base == nullptr)
3826 return nullptr;
3827 return make<QualifiedName>(SoFar, Base);
3828 }
3829
3830 // [gs] <base-unresolved-name> # x or (with "gs") ::x
3831 if (!consumeIf("sr")) {
3832 SoFar = getDerived().parseBaseUnresolvedName();
3833 if (SoFar == nullptr)
3834 return nullptr;
3835 if (Global)
3836 SoFar = make<GlobalQualifiedName>(SoFar);
3837 return SoFar;
3838 }
3839
3840 // [gs] sr <unresolved-qualifier-level>+ E <base-unresolved-name>
3841 if (std::isdigit(look())) {
3842 do {
3843 Node *Qual = getDerived().parseSimpleId();
3844 if (Qual == nullptr)
3845 return nullptr;
3846 if (SoFar)
3847 SoFar = make<QualifiedName>(SoFar, Qual);
3848 else if (Global)
3849 SoFar = make<GlobalQualifiedName>(Qual);
3850 else
3851 SoFar = Qual;
3852 if (!SoFar)
3853 return nullptr;
3854 } while (!consumeIf('E'));
3855 }
3856 // sr <unresolved-type> <base-unresolved-name>
3857 // sr <unresolved-type> <template-args> <base-unresolved-name>
3858 else {
3859 SoFar = getDerived().parseUnresolvedType();
3860 if (SoFar == nullptr)
3861 return nullptr;
3862
3863 if (look() == 'I') {
3864 Node *TA = getDerived().parseTemplateArgs();
3865 if (TA == nullptr)
3866 return nullptr;
3867 SoFar = make<NameWithTemplateArgs>(SoFar, TA);
3868 if (!SoFar)
3869 return nullptr;
3870 }
3871 }
3872
3873 DEMANGLE_ASSERT(SoFar != nullptr, "");
3874
3875 Node *Base = getDerived().parseBaseUnresolvedName();
3876 if (Base == nullptr)
3877 return nullptr;
3878 return make<QualifiedName>(SoFar, Base);
3879}
3880
3881// <abi-tags> ::= <abi-tag> [<abi-tags>]
3882// <abi-tag> ::= B <source-name>
3883template <typename Derived, typename Alloc>
3885 while (consumeIf('B')) {
3886 std::string_view SN = parseBareSourceName();
3887 if (SN.empty())
3888 return nullptr;
3889 N = make<AbiTagAttr>(N, SN);
3890 if (!N)
3891 return nullptr;
3892 }
3893 return N;
3894}
3895
3896// <number> ::= [n] <non-negative decimal integer>
3897template <typename Alloc, typename Derived>
3898std::string_view
3900 const char *Tmp = First;
3901 if (AllowNegative)
3902 consumeIf('n');
3903 if (numLeft() == 0 || !std::isdigit(*First))
3904 return std::string_view();
3905 while (numLeft() != 0 && std::isdigit(*First))
3906 ++First;
3907 return std::string_view(Tmp, First - Tmp);
3908}
3909
3910// <positive length number> ::= [0-9]*
3911template <typename Alloc, typename Derived>
3913 *Out = 0;
3914 if (look() < '0' || look() > '9')
3915 return true;
3916 while (look() >= '0' && look() <= '9') {
3917 *Out *= 10;
3918 *Out += static_cast<size_t>(consume() - '0');
3919 }
3920 return false;
3921}
3922
3923template <typename Alloc, typename Derived>
3925 size_t Int = 0;
3926 if (parsePositiveInteger(&Int) || numLeft() < Int)
3927 return {};
3928 std::string_view R(First, Int);
3929 First += Int;
3930 return R;
3931}
3932
3933// <function-type> ::= [<CV-qualifiers>] [<exception-spec>] [Dx] F [Y] <bare-function-type> [<ref-qualifier>] E
3934//
3935// <exception-spec> ::= Do # non-throwing exception-specification (e.g., noexcept, throw())
3936// ::= DO <expression> E # computed (instantiation-dependent) noexcept
3937// ::= Dw <type>+ E # dynamic exception specification with instantiation-dependent types
3938//
3939// <ref-qualifier> ::= R # & ref-qualifier
3940// <ref-qualifier> ::= O # && ref-qualifier
3941template <typename Derived, typename Alloc>
3943 Qualifiers CVQuals = parseCVQualifiers();
3944
3945 Node *ExceptionSpec = nullptr;
3946 if (consumeIf("Do")) {
3947 ExceptionSpec = make<NameType>("noexcept");
3948 if (!ExceptionSpec)
3949 return nullptr;
3950 } else if (consumeIf("DO")) {
3951 Node *E = getDerived().parseExpr();
3952 if (E == nullptr || !consumeIf('E'))
3953 return nullptr;
3954 ExceptionSpec = make<NoexceptSpec>(E);
3955 if (!ExceptionSpec)
3956 return nullptr;
3957 } else if (consumeIf("Dw")) {
3958 size_t SpecsBegin = Names.size();
3959 while (!consumeIf('E')) {
3960 Node *T = getDerived().parseType();
3961 if (T == nullptr)
3962 return nullptr;
3963 Names.push_back(T);
3964 }
3965 ExceptionSpec =
3967 if (!ExceptionSpec)
3968 return nullptr;
3969 }
3970
3971 consumeIf("Dx"); // transaction safe
3972
3973 if (!consumeIf('F'))
3974 return nullptr;
3975 consumeIf('Y'); // extern "C"
3976 Node *ReturnType = getDerived().parseType();
3977 if (ReturnType == nullptr)
3978 return nullptr;
3979
3980 FunctionRefQual ReferenceQualifier = FrefQualNone;
3981 size_t ParamsBegin = Names.size();
3982 while (true) {
3983 if (consumeIf('E'))
3984 break;
3985 if (consumeIf('v'))
3986 continue;
3987 if (consumeIf("RE")) {
3988 ReferenceQualifier = FrefQualLValue;
3989 break;
3990 }
3991 if (consumeIf("OE")) {
3992 ReferenceQualifier = FrefQualRValue;
3993 break;
3994 }
3995 Node *T = getDerived().parseType();
3996 if (T == nullptr)
3997 return nullptr;
3998 Names.push_back(T);
3999 }
4000
4001 NodeArray Params = popTrailingNodeArray(ParamsBegin);
4002 return make<FunctionType>(ReturnType, Params, CVQuals,
4003 ReferenceQualifier, ExceptionSpec);
4004}
4005
4006// extension:
4007// <vector-type> ::= Dv <positive dimension number> _ <extended element type>
4008// ::= Dv [<dimension expression>] _ <element type>
4009// <extended element type> ::= <element type>
4010// ::= p # AltiVec vector pixel
4011template <typename Derived, typename Alloc>
4013 if (!consumeIf("Dv"))
4014 return nullptr;
4015 if (look() >= '1' && look() <= '9') {
4016 Node *DimensionNumber = make<NameType>(parseNumber());
4017 if (!DimensionNumber)
4018 return nullptr;
4019 if (!consumeIf('_'))
4020 return nullptr;
4021 if (consumeIf('p'))
4022 return make<PixelVectorType>(DimensionNumber);
4023 Node *ElemType = getDerived().parseType();
4024 if (ElemType == nullptr)
4025 return nullptr;
4026 return make<VectorType>(ElemType, DimensionNumber);
4027 }
4028
4029 if (!consumeIf('_')) {
4030 Node *DimExpr = getDerived().parseExpr();
4031 if (!DimExpr)
4032 return nullptr;
4033 if (!consumeIf('_'))
4034 return nullptr;
4035 Node *ElemType = getDerived().parseType();
4036 if (!ElemType)
4037 return nullptr;
4038 return make<VectorType>(ElemType, DimExpr);
4039 }
4040 Node *ElemType = getDerived().parseType();
4041 if (!ElemType)
4042 return nullptr;
4043 return make<VectorType>(ElemType, /*Dimension=*/nullptr);
4044}
4045
4046// <decltype> ::= Dt <expression> E # decltype of an id-expression or class member access (C++0x)
4047// ::= DT <expression> E # decltype of an expression (C++0x)
4048template <typename Derived, typename Alloc>
4050 if (!consumeIf('D'))
4051 return nullptr;
4052 if (!consumeIf('t') && !consumeIf('T'))
4053 return nullptr;
4054 Node *E = getDerived().parseExpr();
4055 if (E == nullptr)
4056 return nullptr;
4057 if (!consumeIf('E'))
4058 return nullptr;
4059 return make<EnclosingExpr>("decltype", E);
4060}
4061
4062// <array-type> ::= A <positive dimension number> _ <element type>
4063// ::= A [<dimension expression>] _ <element type>
4064template <typename Derived, typename Alloc>
4066 if (!consumeIf('A'))
4067 return nullptr;
4068
4069 Node *Dimension = nullptr;
4070
4071 if (std::isdigit(look())) {
4072 Dimension = make<NameType>(parseNumber());
4073 if (!Dimension)
4074 return nullptr;
4075 if (!consumeIf('_'))
4076 return nullptr;
4077 } else if (!consumeIf('_')) {
4078 Node *DimExpr = getDerived().parseExpr();
4079 if (DimExpr == nullptr)
4080 return nullptr;
4081 if (!consumeIf('_'))
4082 return nullptr;
4083 Dimension = DimExpr;
4084 }
4085
4086 Node *Ty = getDerived().parseType();
4087 if (Ty == nullptr)
4088 return nullptr;
4089 return make<ArrayType>(Ty, Dimension);
4090}
4091
4092// <pointer-to-member-type> ::= M <class type> <member type>
4093template <typename Derived, typename Alloc>
4095 if (!consumeIf('M'))
4096 return nullptr;
4097 Node *ClassType = getDerived().parseType();
4098 if (ClassType == nullptr)
4099 return nullptr;
4100 Node *MemberType = getDerived().parseType();
4101 if (MemberType == nullptr)
4102 return nullptr;
4103 return make<PointerToMemberType>(ClassType, MemberType);
4104}
4105
4106// <class-enum-type> ::= <name> # non-dependent type name, dependent type name, or dependent typename-specifier
4107// ::= Ts <name> # dependent elaborated type specifier using 'struct' or 'class'
4108// ::= Tu <name> # dependent elaborated type specifier using 'union'
4109// ::= Te <name> # dependent elaborated type specifier using 'enum'
4110template <typename Derived, typename Alloc>
4112 std::string_view ElabSpef;
4113 if (consumeIf("Ts"))
4114 ElabSpef = "struct";
4115 else if (consumeIf("Tu"))
4116 ElabSpef = "union";
4117 else if (consumeIf("Te"))
4118 ElabSpef = "enum";
4119
4120 Node *Name = getDerived().parseName();
4121 if (Name == nullptr)
4122 return nullptr;
4123
4124 if (!ElabSpef.empty())
4125 return make<ElaboratedTypeSpefType>(ElabSpef, Name);
4126
4127 return Name;
4128}
4129
4130// <qualified-type> ::= <qualifiers> <type>
4131// <qualifiers> ::= <extended-qualifier>* <CV-qualifiers>
4132// <extended-qualifier> ::= U <source-name> [<template-args>] # vendor extended type qualifier
4133template <typename Derived, typename Alloc>
4135 if (consumeIf('U')) {
4136 std::string_view Qual = parseBareSourceName();
4137 if (Qual.empty())
4138 return nullptr;
4139
4140 // extension ::= U <objc-name> <objc-type> # objc-type<identifier>
4141 if (starts_with(Qual, "objcproto")) {
4142 constexpr size_t Len = sizeof("objcproto") - 1;
4143 std::string_view ProtoSourceName(Qual.data() + Len, Qual.size() - Len);
4144 std::string_view Proto;
4145 {
4146 ScopedOverride<const char *> SaveFirst(First, ProtoSourceName.data()),
4147 SaveLast(Last, &*ProtoSourceName.rbegin() + 1);
4148 Proto = parseBareSourceName();
4149 }
4150 if (Proto.empty())
4151 return nullptr;
4152 Node *Child = getDerived().parseQualifiedType();
4153 if (Child == nullptr)
4154 return nullptr;
4155 return make<ObjCProtoName>(Child, Proto);
4156 }
4157
4158 Node *TA = nullptr;
4159 if (look() == 'I') {
4160 TA = getDerived().parseTemplateArgs();
4161 if (TA == nullptr)
4162 return nullptr;
4163 }
4164
4165 Node *Child = getDerived().parseQualifiedType();
4166 if (Child == nullptr)
4167 return nullptr;
4168 return make<VendorExtQualType>(Child, Qual, TA);
4169 }
4170
4171 Qualifiers Quals = parseCVQualifiers();
4172 Node *Ty = getDerived().parseType();
4173 if (Ty == nullptr)
4174 return nullptr;
4175 if (Quals != QualNone)
4176 Ty = make<QualType>(Ty, Quals);
4177 return Ty;
4178}
4179
4180// <type> ::= <builtin-type>
4181// ::= <qualified-type>
4182// ::= <function-type>
4183// ::= <class-enum-type>
4184// ::= <array-type>
4185// ::= <pointer-to-member-type>
4186// ::= <template-param>
4187// ::= <template-template-param> <template-args>
4188// ::= <decltype>
4189// ::= P <type> # pointer
4190// ::= R <type> # l-value reference
4191// ::= O <type> # r-value reference (C++11)
4192// ::= C <type> # complex pair (C99)
4193// ::= G <type> # imaginary (C99)
4194// ::= <substitution> # See Compression below
4195// extension ::= U <objc-name> <objc-type> # objc-type<identifier>
4196// extension ::= <vector-type> # <vector-type> starts with Dv
4197//
4198// <objc-name> ::= <k0 number> objcproto <k1 number> <identifier> # k0 = 9 + <number of digits in k1> + k1
4199// <objc-type> ::= <source-name> # PU<11+>objcproto 11objc_object<source-name> 11objc_object -> id<source-name>
4200template <typename Derived, typename Alloc>
4202 Node *Result = nullptr;
4203
4204 switch (look()) {
4205 // ::= <qualified-type>
4206 case 'r':
4207 case 'V':
4208 case 'K': {
4209 unsigned AfterQuals = 0;
4210 if (look(AfterQuals) == 'r') ++AfterQuals;
4211 if (look(AfterQuals) == 'V') ++AfterQuals;
4212 if (look(AfterQuals) == 'K') ++AfterQuals;
4213
4214 if (look(AfterQuals) == 'F' ||
4215 (look(AfterQuals) == 'D' &&
4216 (look(AfterQuals + 1) == 'o' || look(AfterQuals + 1) == 'O' ||
4217 look(AfterQuals + 1) == 'w' || look(AfterQuals + 1) == 'x'))) {
4218 Result = getDerived().parseFunctionType();
4219 break;
4220 }
4222 }
4223 case 'U': {
4224 Result = getDerived().parseQualifiedType();
4225 break;
4226 }
4227 // <builtin-type> ::= v # void
4228 case 'v':
4229 ++First;
4230 return make<NameType>("void");
4231 // ::= w # wchar_t
4232 case 'w':
4233 ++First;
4234 return make<NameType>("wchar_t");
4235 // ::= b # bool
4236 case 'b':
4237 ++First;
4238 return make<NameType>("bool");
4239 // ::= c # char
4240 case 'c':
4241 ++First;
4242 return make<NameType>("char");
4243 // ::= a # signed char
4244 case 'a':
4245 ++First;
4246 return make<NameType>("signed char");
4247 // ::= h # unsigned char
4248 case 'h':
4249 ++First;
4250 return make<NameType>("unsigned char");
4251 // ::= s # short
4252 case 's':
4253 ++First;
4254 return make<NameType>("short");
4255 // ::= t # unsigned short
4256 case 't':
4257 ++First;
4258 return make<NameType>("unsigned short");
4259 // ::= i # int
4260 case 'i':
4261 ++First;
4262 return make<NameType>("int");
4263 // ::= j # unsigned int
4264 case 'j':
4265 ++First;
4266 return make<NameType>("unsigned int");
4267 // ::= l # long
4268 case 'l':
4269 ++First;
4270 return make<NameType>("long");
4271 // ::= m # unsigned long
4272 case 'm':
4273 ++First;
4274 return make<NameType>("unsigned long");
4275 // ::= x # long long, __int64
4276 case 'x':
4277 ++First;
4278 return make<NameType>("long long");
4279 // ::= y # unsigned long long, __int64
4280 case 'y':
4281 ++First;
4282 return make<NameType>("unsigned long long");
4283 // ::= n # __int128
4284 case 'n':
4285 ++First;
4286 return make<NameType>("__int128");
4287 // ::= o # unsigned __int128
4288 case 'o':
4289 ++First;
4290 return make<NameType>("unsigned __int128");
4291 // ::= f # float
4292 case 'f':
4293 ++First;
4294 return make<NameType>("float");
4295 // ::= d # double
4296 case 'd':
4297 ++First;
4298 return make<NameType>("double");
4299 // ::= e # long double, __float80
4300 case 'e':
4301 ++First;
4302 return make<NameType>("long double");
4303 // ::= g # __float128
4304 case 'g':
4305 ++First;
4306 return make<NameType>("__float128");
4307 // ::= z # ellipsis
4308 case 'z':
4309 ++First;
4310 return make<NameType>("...");
4311
4312 // <builtin-type> ::= u <source-name> # vendor extended type
4313 case 'u': {
4314 ++First;
4315 std::string_view Res = parseBareSourceName();
4316 if (Res.empty())
4317 return nullptr;
4318 // Typically, <builtin-type>s are not considered substitution candidates,
4319 // but the exception to that exception is vendor extended types (Itanium C++
4320 // ABI 5.9.1).
4321 if (consumeIf('I')) {
4322 Node *BaseType = parseType();
4323 if (BaseType == nullptr)
4324 return nullptr;
4325 if (!consumeIf('E'))
4326 return nullptr;
4327 Result = make<TransformedType>(Res, BaseType);
4328 } else
4329 Result = make<NameType>(Res);
4330 break;
4331 }
4332 case 'D':
4333 switch (look(1)) {
4334 // ::= Dd # IEEE 754r decimal floating point (64 bits)
4335 case 'd':
4336 First += 2;
4337 return make<NameType>("decimal64");
4338 // ::= De # IEEE 754r decimal floating point (128 bits)
4339 case 'e':
4340 First += 2;
4341 return make<NameType>("decimal128");
4342 // ::= Df # IEEE 754r decimal floating point (32 bits)
4343 case 'f':
4344 First += 2;
4345 return make<NameType>("decimal32");
4346 // ::= Dh # IEEE 754r half-precision floating point (16 bits)
4347 case 'h':
4348 First += 2;
4349 return make<NameType>("half");
4350 // ::= DF16b # C++23 std::bfloat16_t
4351 // ::= DF <number> _ # ISO/IEC TS 18661 binary floating point (N bits)
4352 case 'F': {
4353 First += 2;
4354 if (consumeIf("16b"))
4355 return make<NameType>("std::bfloat16_t");
4356 Node *DimensionNumber = make<NameType>(parseNumber());
4357 if (!DimensionNumber)
4358 return nullptr;
4359 if (!consumeIf('_'))
4360 return nullptr;
4361 return make<BinaryFPType>(DimensionNumber);
4362 }
4363 // ::= [DS] DA # N1169 fixed-point [_Sat] T _Accum
4364 // ::= [DS] DR # N1169 fixed-point [_Sat] T _Frac
4365 // <fixed-point-size>
4366 // ::= s # short
4367 // ::= t # unsigned short
4368 // ::= i # plain
4369 // ::= j # unsigned
4370 // ::= l # long
4371 // ::= m # unsigned long
4372 case 'A': {
4373 char c = look(2);
4374 First += 3;
4375 switch (c) {
4376 case 's':
4377 return make<NameType>("short _Accum");
4378 case 't':
4379 return make<NameType>("unsigned short _Accum");
4380 case 'i':
4381 return make<NameType>("_Accum");
4382 case 'j':
4383 return make<NameType>("unsigned _Accum");
4384 case 'l':
4385 return make<NameType>("long _Accum");
4386 case 'm':
4387 return make<NameType>("unsigned long _Accum");
4388 default:
4389 return nullptr;
4390 }
4391 }
4392 case 'R': {
4393 char c = look(2);
4394 First += 3;
4395 switch (c) {
4396 case 's':
4397 return make<NameType>("short _Fract");
4398 case 't':
4399 return make<NameType>("unsigned short _Fract");
4400 case 'i':
4401 return make<NameType>("_Fract");
4402 case 'j':
4403 return make<NameType>("unsigned _Fract");
4404 case 'l':
4405 return make<NameType>("long _Fract");
4406 case 'm':
4407 return make<NameType>("unsigned long _Fract");
4408 default:
4409 return nullptr;
4410 }
4411 }
4412 case 'S': {
4413 First += 2;
4414 if (look() != 'D')
4415 return nullptr;
4416 if (look(1) == 'A') {
4417 char c = look(2);
4418 First += 3;
4419 switch (c) {
4420 case 's':
4421 return make<NameType>("_Sat short _Accum");
4422 case 't':
4423 return make<NameType>("_Sat unsigned short _Accum");
4424 case 'i':
4425 return make<NameType>("_Sat _Accum");
4426 case 'j':
4427 return make<NameType>("_Sat unsigned _Accum");
4428 case 'l':
4429 return make<NameType>("_Sat long _Accum");
4430 case 'm':
4431 return make<NameType>("_Sat unsigned long _Accum");
4432 default:
4433 return nullptr;
4434 }
4435 }
4436 if (look(1) == 'R') {
4437 char c = look(2);
4438 First += 3;
4439 switch (c) {
4440 case 's':
4441 return make<NameType>("_Sat short _Fract");
4442 case 't':
4443 return make<NameType>("_Sat unsigned short _Fract");
4444 case 'i':
4445 return make<NameType>("_Sat _Fract");
4446 case 'j':
4447 return make<NameType>("_Sat unsigned _Fract");
4448 case 'l':
4449 return make<NameType>("_Sat long _Fract");
4450 case 'm':
4451 return make<NameType>("_Sat unsigned long _Fract");
4452 default:
4453 return nullptr;
4454 }
4455 }
4456 return nullptr;
4457 }
4458 // ::= DB <number> _ # C23 signed _BitInt(N)
4459 // ::= DB <instantiation-dependent expression> _ # C23 signed _BitInt(N)
4460 // ::= DU <number> _ # C23 unsigned _BitInt(N)
4461 // ::= DU <instantiation-dependent expression> _ # C23 unsigned _BitInt(N)
4462 case 'B':
4463 case 'U': {
4464 bool Signed = look(1) == 'B';
4465 First += 2;
4466 Node *Size = std::isdigit(look()) ? make<NameType>(parseNumber())
4467 : getDerived().parseExpr();
4468 if (!Size)
4469 return nullptr;
4470 if (!consumeIf('_'))
4471 return nullptr;
4472 // The front end expects this to be available for Substitution
4473 Result = make<BitIntType>(Size, Signed);
4474 break;
4475 }
4476 // ::= Di # char32_t
4477 case 'i':
4478 First += 2;
4479 return make<NameType>("char32_t");
4480 // ::= Ds # char16_t
4481 case 's':
4482 First += 2;
4483 return make<NameType>("char16_t");
4484 // ::= Du # char8_t (C++2a, not yet in the Itanium spec)
4485 case 'u':
4486 First += 2;
4487 return make<NameType>("char8_t");
4488 // ::= Da # auto (in dependent new-expressions)
4489 case 'a':
4490 First += 2;
4491 return make<NameType>("auto");
4492 // ::= Dc # decltype(auto)
4493 case 'c':
4494 First += 2;
4495 return make<NameType>("decltype(auto)");
4496 // ::= Dk <type-constraint> # constrained auto
4497 // ::= DK <type-constraint> # constrained decltype(auto)
4498 case 'k':
4499 case 'K': {
4500 std::string_view Kind = look(1) == 'k' ? " auto" : " decltype(auto)";
4501 First += 2;
4502 Node *Constraint = getDerived().parseName();
4503 if (!Constraint)
4504 return nullptr;
4505 return make<PostfixQualifiedType>(Constraint, Kind);
4506 }
4507 // ::= Dn # std::nullptr_t (i.e., decltype(nullptr))
4508 case 'n':
4509 First += 2;
4510 return make<NameType>("std::nullptr_t");
4511
4512 // ::= <decltype>
4513 case 't':
4514 case 'T': {
4515 Result = getDerived().parseDecltype();
4516 break;
4517 }
4518 // extension ::= <vector-type> # <vector-type> starts with Dv
4519 case 'v': {
4520 Result = getDerived().parseVectorType();
4521 break;
4522 }
4523 // ::= Dp <type> # pack expansion (C++0x)
4524 case 'p': {
4525 First += 2;
4526 Node *Child = getDerived().parseType();
4527 if (!Child)
4528 return nullptr;
4529 Result = make<ParameterPackExpansion>(Child);
4530 break;
4531 }
4532 // Exception specifier on a function type.
4533 case 'o':
4534 case 'O':
4535 case 'w':
4536 // Transaction safe function type.
4537 case 'x':
4538 Result = getDerived().parseFunctionType();
4539 break;
4540 }
4541 break;
4542 // ::= <function-type>
4543 case 'F': {
4544 Result = getDerived().parseFunctionType();
4545 break;
4546 }
4547 // ::= <array-type>
4548 case 'A': {
4549 Result = getDerived().parseArrayType();
4550 break;
4551 }
4552 // ::= <pointer-to-member-type>
4553 case 'M': {
4554 Result = getDerived().parsePointerToMemberType();
4555 break;
4556 }
4557 // ::= <template-param>
4558 case 'T': {
4559 // This could be an elaborate type specifier on a <class-enum-type>.
4560 if (look(1) == 's' || look(1) == 'u' || look(1) == 'e') {
4561 Result = getDerived().parseClassEnumType();
4562 break;
4563 }
4564
4565 Result = getDerived().parseTemplateParam();
4566 if (Result == nullptr)
4567 return nullptr;
4568
4569 // Result could be either of:
4570 // <type> ::= <template-param>
4571 // <type> ::= <template-template-param> <template-args>
4572 //
4573 // <template-template-param> ::= <template-param>
4574 // ::= <substitution>
4575 //
4576 // If this is followed by some <template-args>, and we're permitted to
4577 // parse them, take the second production.
4578
4579 if (TryToParseTemplateArgs && look() == 'I') {
4580 Subs.push_back(Result);
4581 Node *TA = getDerived().parseTemplateArgs();
4582 if (TA == nullptr)
4583 return nullptr;
4584 Result = make<NameWithTemplateArgs>(Result, TA);
4585 }
4586 break;
4587 }
4588 // ::= P <type> # pointer
4589 case 'P': {
4590 ++First;
4591 Node *Ptr = getDerived().parseType();
4592 if (Ptr == nullptr)
4593 return nullptr;
4594 Result = make<PointerType>(Ptr);
4595 break;
4596 }
4597 // ::= R <type> # l-value reference
4598 case 'R': {
4599 ++First;
4600 Node *Ref = getDerived().parseType();
4601 if (Ref == nullptr)
4602 return nullptr;
4604 break;
4605 }
4606 // ::= O <type> # r-value reference (C++11)
4607 case 'O': {
4608 ++First;
4609 Node *Ref = getDerived().parseType();
4610 if (Ref == nullptr)
4611 return nullptr;
4613 break;
4614 }
4615 // ::= C <type> # complex pair (C99)
4616 case 'C': {
4617 ++First;
4618 Node *P = getDerived().parseType();
4619 if (P == nullptr)
4620 return nullptr;
4621 Result = make<PostfixQualifiedType>(P, " complex");
4622 break;
4623 }
4624 // ::= G <type> # imaginary (C99)
4625 case 'G': {
4626 ++First;
4627 Node *P = getDerived().parseType();
4628 if (P == nullptr)
4629 return P;
4630 Result = make<PostfixQualifiedType>(P, " imaginary");
4631 break;
4632 }
4633 // ::= <substitution> # See Compression below
4634 case 'S': {
4635 if (look(1) != 't') {
4636 bool IsSubst = false;
4637 Result = getDerived().parseUnscopedName(nullptr, &IsSubst);
4638 if (!Result)
4639 return nullptr;
4640
4641 // Sub could be either of:
4642 // <type> ::= <substitution>
4643 // <type> ::= <template-template-param> <template-args>
4644 //
4645 // <template-template-param> ::= <template-param>
4646 // ::= <substitution>
4647 //
4648 // If this is followed by some <template-args>, and we're permitted to
4649 // parse them, take the second production.
4650
4651 if (look() == 'I' && (!IsSubst || TryToParseTemplateArgs)) {
4652 if (!IsSubst)
4653 Subs.push_back(Result);
4654 Node *TA = getDerived().parseTemplateArgs();
4655 if (TA == nullptr)
4656 return nullptr;
4657 Result = make<NameWithTemplateArgs>(Result, TA);
4658 } else if (IsSubst) {
4659 // If all we parsed was a substitution, don't re-insert into the
4660 // substitution table.
4661 return Result;
4662 }
4663 break;
4664 }
4666 }
4667 // ::= <class-enum-type>
4668 default: {
4669 Result = getDerived().parseClassEnumType();
4670 break;
4671 }
4672 }
4673
4674 // If we parsed a type, insert it into the substitution table. Note that all
4675 // <builtin-type>s and <substitution>s have already bailed out, because they
4676 // don't get substitutions.
4677 if (Result != nullptr)
4678 Subs.push_back(Result);
4679 return Result;
4680}
4681
4682template <typename Derived, typename Alloc>
4683Node *
4685 Node::Prec Prec) {
4686 Node *E = getDerived().parseExpr();
4687 if (E == nullptr)
4688 return nullptr;
4689 return make<PrefixExpr>(Kind, E, Prec);
4690}
4691
4692template <typename Derived, typename Alloc>
4693Node *
4695 Node::Prec Prec) {
4696 Node *LHS = getDerived().parseExpr();
4697 if (LHS == nullptr)
4698 return nullptr;
4699 Node *RHS = getDerived().parseExpr();
4700 if (RHS == nullptr)
4701 return nullptr;
4702 return make<BinaryExpr>(LHS, Kind, RHS, Prec);
4703}
4704
4705template <typename Derived, typename Alloc>
4707 std::string_view Lit) {
4708 std::string_view Tmp = parseNumber(true);
4709 if (!Tmp.empty() && consumeIf('E'))
4710 return make<IntegerLiteral>(Lit, Tmp);
4711 return nullptr;
4712}
4713
4714// <CV-Qualifiers> ::= [r] [V] [K]
4715template <typename Alloc, typename Derived>
4717 Qualifiers CVR = QualNone;
4718 if (consumeIf('r'))
4719 CVR |= QualRestrict;
4720 if (consumeIf('V'))
4721 CVR |= QualVolatile;
4722 if (consumeIf('K'))
4723 CVR |= QualConst;
4724 return CVR;
4725}
4726
4727// <function-param> ::= fp <top-level CV-Qualifiers> _ # L == 0, first parameter
4728// ::= fp <top-level CV-Qualifiers> <parameter-2 non-negative number> _ # L == 0, second and later parameters
4729// ::= fL <L-1 non-negative number> p <top-level CV-Qualifiers> _ # L > 0, first parameter
4730// ::= fL <L-1 non-negative number> p <top-level CV-Qualifiers> <parameter-2 non-negative number> _ # L > 0, second and later parameters
4731// ::= fpT # 'this' expression (not part of standard?)
4732template <typename Derived, typename Alloc>
4734 if (consumeIf("fpT"))
4735 return make<NameType>("this");
4736 if (consumeIf("fp")) {
4738 std::string_view Num = parseNumber();
4739 if (!consumeIf('_'))
4740 return nullptr;
4741 return make<FunctionParam>(Num);
4742 }
4743 if (consumeIf("fL")) {
4744 if (parseNumber().empty())
4745 return nullptr;
4746 if (!consumeIf('p'))
4747 return nullptr;
4749 std::string_view Num = parseNumber();
4750 if (!consumeIf('_'))
4751 return nullptr;
4752 return make<FunctionParam>(Num);
4753 }
4754 return nullptr;
4755}
4756
4757// cv <type> <expression> # conversion with one argument
4758// cv <type> _ <expression>* E # conversion with a different number of arguments
4759template <typename Derived, typename Alloc>
4761 if (!consumeIf("cv"))
4762 return nullptr;
4763 Node *Ty;
4764 {
4766 Ty = getDerived().parseType();
4767 }
4768
4769 if (Ty == nullptr)
4770 return nullptr;
4771
4772 if (consumeIf('_')) {
4773 size_t ExprsBegin = Names.size();
4774 while (!consumeIf('E')) {
4775 Node *E = getDerived().parseExpr();
4776 if (E == nullptr)
4777 return E;
4778 Names.push_back(E);
4779 }
4780 NodeArray Exprs = popTrailingNodeArray(ExprsBegin);
4781 return make<ConversionExpr>(Ty, Exprs);
4782 }
4783
4784 Node *E[1] = {getDerived().parseExpr()};
4785 if (E[0] == nullptr)
4786 return nullptr;
4787 return make<ConversionExpr>(Ty, makeNodeArray(E, E + 1));
4788}
4789
4790// <expr-primary> ::= L <type> <value number> E # integer literal
4791// ::= L <type> <value float> E # floating literal
4792// ::= L <string type> E # string literal
4793// ::= L <nullptr type> E # nullptr literal (i.e., "LDnE")
4794// ::= L <lambda type> E # lambda expression
4795// FIXME: ::= L <type> <real-part float> _ <imag-part float> E # complex floating point literal (C 2000)
4796// ::= L <mangled-name> E # external name
4797template <typename Derived, typename Alloc>
4799 if (!consumeIf('L'))
4800 return nullptr;
4801 switch (look()) {
4802 case 'w':
4803 ++First;
4804 return getDerived().parseIntegerLiteral("wchar_t");
4805 case 'b':
4806 if (consumeIf("b0E"))
4807 return make<BoolExpr>(0);
4808 if (consumeIf("b1E"))
4809 return make<BoolExpr>(1);
4810 return nullptr;
4811 case 'c':
4812 ++First;
4813 return getDerived().parseIntegerLiteral("char");
4814 case 'a':
4815 ++First;
4816 return getDerived().parseIntegerLiteral("signed char");
4817 case 'h':
4818 ++First;
4819 return getDerived().parseIntegerLiteral("unsigned char");
4820 case 's':
4821 ++First;
4822 return getDerived().parseIntegerLiteral("short");
4823 case 't':
4824 ++First;
4825 return getDerived().parseIntegerLiteral("unsigned short");
4826 case 'i':
4827 ++First;
4828 return getDerived().parseIntegerLiteral("");
4829 case 'j':
4830 ++First;
4831 return getDerived().parseIntegerLiteral("u");
4832 case 'l':
4833 ++First;
4834 return getDerived().parseIntegerLiteral("l");
4835 case 'm':
4836 ++First;
4837 return getDerived().parseIntegerLiteral("ul");
4838 case 'x':
4839 ++First;
4840 return getDerived().parseIntegerLiteral("ll");
4841 case 'y':
4842 ++First;
4843 return getDerived().parseIntegerLiteral("ull");
4844 case 'n':
4845 ++First;
4846 return getDerived().parseIntegerLiteral("__int128");
4847 case 'o':
4848 ++First;
4849 return getDerived().parseIntegerLiteral("unsigned __int128");
4850 case 'f':
4851 ++First;
4852 return getDerived().template parseFloatingLiteral<float>();
4853 case 'd':
4854 ++First;
4855 return getDerived().template parseFloatingLiteral<double>();
4856 case 'e':
4857 ++First;
4858#if defined(__powerpc__) || defined(__s390__)
4859 // Handle cases where long doubles encoded with e have the same size
4860 // and representation as doubles.
4861 return getDerived().template parseFloatingLiteral<double>();
4862#else
4864#endif
4865 case '_':
4866 if (consumeIf("_Z")) {
4867 Node *R = getDerived().parseEncoding();
4868 if (R != nullptr && consumeIf('E'))
4869 return R;
4870 }
4871 return nullptr;
4872 case 'A': {
4873 Node *T = getDerived().parseType();
4874 if (T == nullptr)
4875 return nullptr;
4876 // FIXME: We need to include the string contents in the mangling.
4877 if (consumeIf('E'))
4878 return make<StringLiteral>(T);
4879 return nullptr;
4880 }
4881 case 'D':
4882 if (consumeIf("Dn") && (consumeIf('0'), consumeIf('E')))
4883 return make<NameType>("nullptr");
4884 return nullptr;
4885 case 'T':
4886 // Invalid mangled name per
4887 // http://sourcerytools.com/pipermail/cxx-abi-dev/2011-August/002422.html
4888 return nullptr;
4889 case 'U': {
4890 // FIXME: Should we support LUb... for block literals?
4891 if (look(1) != 'l')
4892 return nullptr;
4893 Node *T = parseUnnamedTypeName(nullptr);
4894 if (!T || !consumeIf('E'))
4895 return nullptr;
4896 return make<LambdaExpr>(T);
4897 }
4898 default: {
4899 // might be named type
4900 Node *T = getDerived().parseType();
4901 if (T == nullptr)
4902 return nullptr;
4903 std::string_view N = parseNumber(/*AllowNegative=*/true);
4904 if (N.empty())
4905 return nullptr;
4906 if (!consumeIf('E'))
4907 return nullptr;
4908 return make<EnumLiteral>(T, N);
4909 }
4910 }
4911}
4912
4913// <braced-expression> ::= <expression>
4914// ::= di <field source-name> <braced-expression> # .name = expr
4915// ::= dx <index expression> <braced-expression> # [expr] = expr
4916// ::= dX <range begin expression> <range end expression> <braced-expression>
4917template <typename Derived, typename Alloc>
4919 if (look() == 'd') {
4920 switch (look(1)) {
4921 case 'i': {
4922 First += 2;
4923 Node *Field = getDerived().parseSourceName(/*NameState=*/nullptr);
4924 if (Field == nullptr)
4925 return nullptr;
4926 Node *Init = getDerived().parseBracedExpr();
4927 if (Init == nullptr)
4928 return nullptr;
4929 return make<BracedExpr>(Field, Init, /*isArray=*/false);
4930 }
4931 case 'x': {
4932 First += 2;
4933 Node *Index = getDerived().parseExpr();
4934 if (Index == nullptr)
4935 return nullptr;
4936 Node *Init = getDerived().parseBracedExpr();
4937 if (Init == nullptr)
4938 return nullptr;
4939 return make<BracedExpr>(Index, Init, /*isArray=*/true);
4940 }
4941 case 'X': {
4942 First += 2;
4943 Node *RangeBegin = getDerived().parseExpr();
4944 if (RangeBegin == nullptr)
4945 return nullptr;
4946 Node *RangeEnd = getDerived().parseExpr();
4947 if (RangeEnd == nullptr)
4948 return nullptr;
4949 Node *Init = getDerived().parseBracedExpr();
4950 if (Init == nullptr)
4951 return nullptr;
4952 return make<BracedRangeExpr>(RangeBegin, RangeEnd, Init);
4953 }
4954 }
4955 }
4956 return getDerived().parseExpr();
4957}
4958
4959// (not yet in the spec)
4960// <fold-expr> ::= fL <binary-operator-name> <expression> <expression>
4961// ::= fR <binary-operator-name> <expression> <expression>
4962// ::= fl <binary-operator-name> <expression>
4963// ::= fr <binary-operator-name> <expression>
4964template <typename Derived, typename Alloc>
4966 if (!consumeIf('f'))
4967 return nullptr;
4968
4969 bool IsLeftFold = false, HasInitializer = false;
4970 switch (look()) {
4971 default:
4972 return nullptr;
4973 case 'L':
4974 IsLeftFold = true;
4975 HasInitializer = true;
4976 break;
4977 case 'R':
4978 HasInitializer = true;
4979 break;
4980 case 'l':
4981 IsLeftFold = true;
4982 break;
4983 case 'r':
4984 break;
4985 }
4986 ++First;
4987
4988 const auto *Op = parseOperatorEncoding();
4989 if (!Op)
4990 return nullptr;
4991 if (!(Op->getKind() == OperatorInfo::Binary
4992 || (Op->getKind() == OperatorInfo::Member
4993 && Op->getName().back() == '*')))
4994 return nullptr;
4995
4996 Node *Pack = getDerived().parseExpr();
4997 if (Pack == nullptr)
4998 return nullptr;
4999
5000 Node *Init = nullptr;
5001 if (HasInitializer) {
5002 Init = getDerived().parseExpr();
5003 if (Init == nullptr)
5004 return nullptr;
5005 }
5006
5007 if (IsLeftFold && Init)
5008 std::swap(Pack, Init);
5009
5010 return make<FoldExpr>(IsLeftFold, Op->getSymbol(), Pack, Init);
5011}
5012
5013// <expression> ::= mc <parameter type> <expr> [<offset number>] E
5014//
5015// Not yet in the spec: https://github.com/itanium-cxx-abi/cxx-abi/issues/47
5016template <typename Derived, typename Alloc>
5017Node *
5019 Node::Prec Prec) {
5020 Node *Ty = getDerived().parseType();
5021 if (!Ty)
5022 return nullptr;
5023 Node *Expr = getDerived().parseExpr();
5024 if (!Expr)
5025 return nullptr;
5026 std::string_view Offset = getDerived().parseNumber(true);
5027 if (!consumeIf('E'))
5028 return nullptr;
5029 return make<PointerToMemberConversionExpr>(Ty, Expr, Offset, Prec);
5030}
5031
5032// <expression> ::= so <referent type> <expr> [<offset number>] <union-selector>* [p] E
5033// <union-selector> ::= _ [<number>]
5034//
5035// Not yet in the spec: https://github.com/itanium-cxx-abi/cxx-abi/issues/47
5036template <typename Derived, typename Alloc>
5038 Node *Ty = getDerived().parseType();
5039 if (!Ty)
5040 return nullptr;
5041 Node *Expr = getDerived().parseExpr();
5042 if (!Expr)
5043 return nullptr;
5044 std::string_view Offset = getDerived().parseNumber(true);
5045 size_t SelectorsBegin = Names.size();
5046 while (consumeIf('_')) {
5047 Node *Selector = make<NameType>(parseNumber());
5048 if (!Selector)
5049 return nullptr;
5050 Names.push_back(Selector);
5051 }
5052 bool OnePastTheEnd = consumeIf('p');
5053 if (!consumeIf('E'))
5054 return nullptr;
5055 return make<SubobjectExpr>(
5056 Ty, Expr, Offset, popTrailingNodeArray(SelectorsBegin), OnePastTheEnd);
5057}
5058
5059template <typename Derived, typename Alloc>
5061 // Within this expression, all enclosing template parameter lists are in
5062 // scope.
5063 ScopedOverride<bool> SaveIncompleteTemplateParameterTracking(
5065 return getDerived().parseExpr();
5066}
5067
5068template <typename Derived, typename Alloc>
5070 NodeArray Params;
5071 if (consumeIf("rQ")) {
5072 // <expression> ::= rQ <bare-function-type> _ <requirement>+ E
5073 size_t ParamsBegin = Names.size();
5074 while (!consumeIf('_')) {
5075 Node *Type = getDerived().parseType();
5076 if (Type == nullptr)
5077 return nullptr;
5078 Names.push_back(Type);
5079 }
5080 Params = popTrailingNodeArray(ParamsBegin);
5081 } else if (!consumeIf("rq")) {
5082 // <expression> ::= rq <requirement>+ E
5083 return nullptr;
5084 }
5085
5086 size_t ReqsBegin = Names.size();
5087 do {
5088 Node *Constraint = nullptr;
5089 if (consumeIf('X')) {
5090 // <requirement> ::= X <expression> [N] [R <type-constraint>]
5091 Node *Expr = getDerived().parseExpr();
5092 if (Expr == nullptr)
5093 return nullptr;
5094 bool Noexcept = consumeIf('N');
5095 Node *TypeReq = nullptr;
5096 if (consumeIf('R')) {
5097 TypeReq = getDerived().parseName();
5098 if (TypeReq == nullptr)
5099 return nullptr;
5100 }
5101 Constraint = make<ExprRequirement>(Expr, Noexcept, TypeReq);
5102 } else if (consumeIf('T')) {
5103 // <requirement> ::= T <type>
5104 Node *Type = getDerived().parseType();
5105 if (Type == nullptr)
5106 return nullptr;
5107 Constraint = make<TypeRequirement>(Type);
5108 } else if (consumeIf('Q')) {
5109 // <requirement> ::= Q <constraint-expression>
5110 //
5111 // FIXME: We use <expression> instead of <constraint-expression>. Either
5112 // the requires expression is already inside a constraint expression, in
5113 // which case it makes no difference, or we're in a requires-expression
5114 // that might be partially-substituted, where the language behavior is
5115 // not yet settled and clang mangles after substitution.
5116 Node *NestedReq = getDerived().parseExpr();
5117 if (NestedReq == nullptr)
5118 return nullptr;
5119 Constraint = make<NestedRequirement>(NestedReq);
5120 }
5121 if (Constraint == nullptr)
5122 return nullptr;
5123 Names.push_back(Constraint);
5124 } while (!consumeIf('E'));
5125
5126 return make<RequiresExpr>(Params, popTrailingNodeArray(ReqsBegin));
5127}
5128
5129// <expression> ::= <unary operator-name> <expression>
5130// ::= <binary operator-name> <expression> <expression>
5131// ::= <ternary operator-name> <expression> <expression> <expression>
5132// ::= cl <expression>+ E # call
5133// ::= cp <base-unresolved-name> <expression>* E # (name) (expr-list), call that would use argument-dependent lookup but for the parentheses
5134// ::= cv <type> <expression> # conversion with one argument
5135// ::= cv <type> _ <expression>* E # conversion with a different number of arguments
5136// ::= [gs] nw <expression>* _ <type> E # new (expr-list) type
5137// ::= [gs] nw <expression>* _ <type> <initializer> # new (expr-list) type (init)
5138// ::= [gs] na <expression>* _ <type> E # new[] (expr-list) type
5139// ::= [gs] na <expression>* _ <type> <initializer> # new[] (expr-list) type (init)
5140// ::= [gs] dl <expression> # delete expression
5141// ::= [gs] da <expression> # delete[] expression
5142// ::= pp_ <expression> # prefix ++
5143// ::= mm_ <expression> # prefix --
5144// ::= ti <type> # typeid (type)
5145// ::= te <expression> # typeid (expression)
5146// ::= dc <type> <expression> # dynamic_cast<type> (expression)
5147// ::= sc <type> <expression> # static_cast<type> (expression)
5148// ::= cc <type> <expression> # const_cast<type> (expression)
5149// ::= rc <type> <expression> # reinterpret_cast<type> (expression)
5150// ::= st <type> # sizeof (a type)
5151// ::= sz <expression> # sizeof (an expression)
5152// ::= at <type> # alignof (a type)
5153// ::= az <expression> # alignof (an expression)
5154// ::= nx <expression> # noexcept (expression)
5155// ::= <template-param>
5156// ::= <function-param>
5157// ::= dt <expression> <unresolved-name> # expr.name
5158// ::= pt <expression> <unresolved-name> # expr->name
5159// ::= ds <expression> <expression> # expr.*expr
5160// ::= sZ <template-param> # size of a parameter pack
5161// ::= sZ <function-param> # size of a function parameter pack
5162// ::= sP <template-arg>* E # sizeof...(T), size of a captured template parameter pack from an alias template
5163// ::= sp <expression> # pack expansion
5164// ::= tw <expression> # throw expression
5165// ::= tr # throw with no operand (rethrow)
5166// ::= <unresolved-name> # f(p), N::f(p), ::f(p),
5167// # freestanding dependent name (e.g., T::x),
5168// # objectless nonstatic member reference
5169// ::= fL <binary-operator-name> <expression> <expression>
5170// ::= fR <binary-operator-name> <expression> <expression>
5171// ::= fl <binary-operator-name> <expression>
5172// ::= fr <binary-operator-name> <expression>
5173// ::= <expr-primary>
5174template <typename Derived, typename Alloc>
5176 bool Global = consumeIf("gs");
5177
5178 const auto *Op = parseOperatorEncoding();
5179 if (Op) {
5180 auto Sym = Op->getSymbol();
5181 switch (Op->getKind()) {
5183 // Binary operator: lhs @ rhs
5184 return getDerived().parseBinaryExpr(Sym, Op->getPrecedence());
5186 // Prefix unary operator: @ expr
5187 return getDerived().parsePrefixExpr(Sym, Op->getPrecedence());
5188 case OperatorInfo::Postfix: {
5189 // Postfix unary operator: expr @
5190 if (consumeIf('_'))
5191 return getDerived().parsePrefixExpr(Sym, Op->getPrecedence());
5192 Node *Ex = getDerived().parseExpr();
5193 if (Ex == nullptr)
5194 return nullptr;
5195 return make<PostfixExpr>(Ex, Sym, Op->getPrecedence());
5196 }
5197 case OperatorInfo::Array: {
5198 // Array Index: lhs [ rhs ]
5199 Node *Base = getDerived().parseExpr();
5200 if (Base == nullptr)
5201 return nullptr;
5202 Node *Index = getDerived().parseExpr();
5203 if (Index == nullptr)
5204 return nullptr;
5205 return make<ArraySubscriptExpr>(Base, Index, Op->getPrecedence());
5206 }
5207 case OperatorInfo::Member: {
5208 // Member access lhs @ rhs
5209 Node *LHS = getDerived().parseExpr();
5210 if (LHS == nullptr)
5211 return nullptr;
5212 Node *RHS = getDerived().parseExpr();
5213 if (RHS == nullptr)
5214 return nullptr;
5215 return make<MemberExpr>(LHS, Sym, RHS, Op->getPrecedence());
5216 }
5217 case OperatorInfo::New: {
5218 // New
5219 // # new (expr-list) type [(init)]
5220 // [gs] nw <expression>* _ <type> [pi <expression>*] E
5221 // # new[] (expr-list) type [(init)]
5222 // [gs] na <expression>* _ <type> [pi <expression>*] E
5223 size_t Exprs = Names.size();
5224 while (!consumeIf('_')) {
5225 Node *Ex = getDerived().parseExpr();
5226 if (Ex == nullptr)
5227 return nullptr;
5228 Names.push_back(Ex);
5229 }
5230 NodeArray ExprList = popTrailingNodeArray(Exprs);
5231 Node *Ty = getDerived().parseType();
5232 if (Ty == nullptr)
5233 return nullptr;
5234 bool HaveInits = consumeIf("pi");
5235 size_t InitsBegin = Names.size();
5236 while (!consumeIf('E')) {
5237 if (!HaveInits)
5238 return nullptr;
5239 Node *Init = getDerived().parseExpr();
5240 if (Init == nullptr)
5241 return Init;
5242 Names.push_back(Init);
5243 }
5244 NodeArray Inits = popTrailingNodeArray(InitsBegin);
5245 return make<NewExpr>(ExprList, Ty, Inits, Global,
5246 /*IsArray=*/Op->getFlag(), Op->getPrecedence());
5247 }
5248 case OperatorInfo::Del: {
5249 // Delete
5250 Node *Ex = getDerived().parseExpr();
5251 if (Ex == nullptr)
5252 return nullptr;
5253 return make<DeleteExpr>(Ex, Global, /*IsArray=*/Op->getFlag(),
5254 Op->getPrecedence());
5255 }
5256 case OperatorInfo::Call: {
5257 // Function Call
5258 Node *Callee = getDerived().parseExpr();
5259 if (Callee == nullptr)
5260 return nullptr;
5261 size_t ExprsBegin = Names.size();
5262 while (!consumeIf('E')) {
5263 Node *E = getDerived().parseExpr();
5264 if (E == nullptr)
5265 return nullptr;
5266 Names.push_back(E);
5267 }
5268 return make<CallExpr>(Callee, popTrailingNodeArray(ExprsBegin),
5269 /*IsParen=*/Op->getFlag(), Op->getPrecedence());
5270 }
5271 case OperatorInfo::CCast: {
5272 // C Cast: (type)expr
5273 Node *Ty;
5274 {
5276 Ty = getDerived().parseType();
5277 }
5278 if (Ty == nullptr)
5279 return nullptr;
5280
5281 size_t ExprsBegin = Names.size();
5282 bool IsMany = consumeIf('_');
5283 while (!consumeIf('E')) {
5284 Node *E = getDerived().parseExpr();
5285 if (E == nullptr)
5286 return E;
5287 Names.push_back(E);
5288 if (!IsMany)
5289 break;
5290 }
5291 NodeArray Exprs = popTrailingNodeArray(ExprsBegin);
5292 if (!IsMany && Exprs.size() != 1)
5293 return nullptr;
5294 return make<ConversionExpr>(Ty, Exprs, Op->getPrecedence());
5295 }
5297 // Conditional operator: expr ? expr : expr
5298 Node *Cond = getDerived().parseExpr();
5299 if (Cond == nullptr)
5300 return nullptr;
5301 Node *LHS = getDerived().parseExpr();
5302 if (LHS == nullptr)
5303 return nullptr;
5304 Node *RHS = getDerived().parseExpr();
5305 if (RHS == nullptr)
5306 return nullptr;
5307 return make<ConditionalExpr>(Cond, LHS, RHS, Op->getPrecedence());
5308 }
5310 // Named cast operation, @<type>(expr)
5311 Node *Ty = getDerived().parseType();
5312 if (Ty == nullptr)
5313 return nullptr;
5314 Node *Ex = getDerived().parseExpr();
5315 if (Ex == nullptr)
5316 return nullptr;
5317 return make<CastExpr>(Sym, Ty, Ex, Op->getPrecedence());
5318 }
5319 case OperatorInfo::OfIdOp: {
5320 // [sizeof/alignof/typeid] ( <type>|<expr> )
5321 Node *Arg =
5322 Op->getFlag() ? getDerived().parseType() : getDerived().parseExpr();
5323 if (!Arg)
5324 return nullptr;
5325 return make<EnclosingExpr>(Sym, Arg, Op->getPrecedence());
5326 }
5328 // Not valid as an expression operand.
5329 return nullptr;
5330 }
5331 }
5333 }
5334
5335 if (numLeft() < 2)
5336 return nullptr;
5337
5338 if (look() == 'L')
5339 return getDerived().parseExprPrimary();
5340 if (look() == 'T')
5341 return getDerived().parseTemplateParam();
5342 if (look() == 'f') {
5343 // Disambiguate a fold expression from a <function-param>.
5344 if (look(1) == 'p' || (look(1) == 'L' && std::isdigit(look(2))))
5345 return getDerived().parseFunctionParam();
5346 return getDerived().parseFoldExpr();
5347 }
5348 if (consumeIf("il")) {
5349 size_t InitsBegin = Names.size();
5350 while (!consumeIf('E')) {
5351 Node *E = getDerived().parseBracedExpr();
5352 if (E == nullptr)
5353 return nullptr;
5354 Names.push_back(E);
5355 }
5356 return make<InitListExpr>(nullptr, popTrailingNodeArray(InitsBegin));
5357 }
5358 if (consumeIf("mc"))
5360 if (consumeIf("nx")) {
5361 Node *Ex = getDerived().parseExpr();
5362 if (Ex == nullptr)
5363 return Ex;
5364 return make<EnclosingExpr>("noexcept ", Ex, Node::Prec::Unary);
5365 }
5366 if (look() == 'r' && (look(1) == 'q' || look(1) == 'Q'))
5367 return parseRequiresExpr();
5368 if (consumeIf("so"))
5369 return parseSubobjectExpr();
5370 if (consumeIf("sp")) {
5371 Node *Child = getDerived().parseExpr();
5372 if (Child == nullptr)
5373 return nullptr;
5374 return make<ParameterPackExpansion>(Child);
5375 }
5376 if (consumeIf("sZ")) {
5377 if (look() == 'T') {
5378 Node *R = getDerived().parseTemplateParam();
5379 if (R == nullptr)
5380 return nullptr;
5381 return make<SizeofParamPackExpr>(R);
5382 }
5383 Node *FP = getDerived().parseFunctionParam();
5384 if (FP == nullptr)
5385 return nullptr;
5386 return make<EnclosingExpr>("sizeof... ", FP);
5387 }
5388 if (consumeIf("sP")) {
5389 size_t ArgsBegin = Names.size();
5390 while (!consumeIf('E')) {
5391 Node *Arg = getDerived().parseTemplateArg();
5392 if (Arg == nullptr)
5393 return nullptr;
5394 Names.push_back(Arg);
5395 }
5396 auto *Pack = make<NodeArrayNode>(popTrailingNodeArray(ArgsBegin));
5397 if (!Pack)
5398 return nullptr;
5399 return make<EnclosingExpr>("sizeof... ", Pack);
5400 }
5401 if (consumeIf("tl")) {
5402 Node *Ty = getDerived().parseType();
5403 if (Ty == nullptr)
5404 return nullptr;
5405 size_t InitsBegin = Names.size();
5406 while (!consumeIf('E')) {
5407 Node *E = getDerived().parseBracedExpr();
5408 if (E == nullptr)
5409 return nullptr;
5410 Names.push_back(E);
5411 }
5412 return make<InitListExpr>(Ty, popTrailingNodeArray(InitsBegin));
5413 }
5414 if (consumeIf("tr"))
5415 return make<NameType>("throw");
5416 if (consumeIf("tw")) {
5417 Node *Ex = getDerived().parseExpr();
5418 if (Ex == nullptr)
5419 return nullptr;
5420 return make<ThrowExpr>(Ex);
5421 }
5422 if (consumeIf('u')) {
5423 Node *Name = getDerived().parseSourceName(/*NameState=*/nullptr);
5424 if (!Name)
5425 return nullptr;
5426 // Special case legacy __uuidof mangling. The 't' and 'z' appear where the
5427 // standard encoding expects a <template-arg>, and would be otherwise be
5428 // interpreted as <type> node 'short' or 'ellipsis'. However, neither
5429 // __uuidof(short) nor __uuidof(...) can actually appear, so there is no
5430 // actual conflict here.
5431 bool IsUUID = false;
5432 Node *UUID = nullptr;
5433 if (Name->getBaseName() == "__uuidof") {
5434 if (consumeIf('t')) {
5435 UUID = getDerived().parseType();
5436 IsUUID = true;
5437 } else if (consumeIf('z')) {
5438 UUID = getDerived().parseExpr();
5439 IsUUID = true;
5440 }
5441 }
5442 size_t ExprsBegin = Names.size();
5443 if (IsUUID) {
5444 if (UUID == nullptr)
5445 return nullptr;
5446 Names.push_back(UUID);
5447 } else {
5448 while (!consumeIf('E')) {
5449 Node *E = getDerived().parseTemplateArg();
5450 if (E == nullptr)
5451 return E;
5452 Names.push_back(E);
5453 }
5454 }
5455 return make<CallExpr>(Name, popTrailingNodeArray(ExprsBegin),
5456 /*IsParen=*/false, Node::Prec::Postfix);
5457 }
5458
5459 // Only unresolved names remain.
5460 return getDerived().parseUnresolvedName(Global);
5461}
5462
5463// <call-offset> ::= h <nv-offset> _
5464// ::= v <v-offset> _
5465//
5466// <nv-offset> ::= <offset number>
5467// # non-virtual base override
5468//
5469// <v-offset> ::= <offset number> _ <virtual offset number>
5470// # virtual base override, with vcall offset
5471template <typename Alloc, typename Derived>
5473 // Just scan through the call offset, we never add this information into the
5474 // output.
5475 if (consumeIf('h'))
5476 return parseNumber(true).empty() || !consumeIf('_');
5477 if (consumeIf('v'))
5478 return parseNumber(true).empty() || !consumeIf('_') ||
5479 parseNumber(true).empty() || !consumeIf('_');
5480 return true;
5481}
5482
5483// <special-name> ::= TV <type> # virtual table
5484// ::= TT <type> # VTT structure (construction vtable index)
5485// ::= TI <type> # typeinfo structure
5486// ::= TS <type> # typeinfo name (null-terminated byte string)
5487// ::= Tc <call-offset> <call-offset> <base encoding>
5488// # base is the nominal target function of thunk
5489// # first call-offset is 'this' adjustment
5490// # second call-offset is result adjustment
5491// ::= T <call-offset> <base encoding>
5492// # base is the nominal target function of thunk
5493// # Guard variable for one-time initialization
5494// ::= GV <object name>
5495// # No <type>
5496// ::= TW <object name> # Thread-local wrapper
5497// ::= TH <object name> # Thread-local initialization
5498// ::= GR <object name> _ # First temporary
5499// ::= GR <object name> <seq-id> _ # Subsequent temporaries
5500// # construction vtable for second-in-first
5501// extension ::= TC <first type> <number> _ <second type>
5502// extension ::= GR <object name> # reference temporary for object
5503// extension ::= GI <module name> # module global initializer
5504template <typename Derived, typename Alloc>
5506 switch (look()) {
5507 case 'T':
5508 switch (look(1)) {
5509 // TA <template-arg> # template parameter object
5510 //
5511 // Not yet in the spec: https://github.com/itanium-cxx-abi/cxx-abi/issues/63
5512 case 'A': {
5513 First += 2;
5514 Node *Arg = getDerived().parseTemplateArg();
5515 if (Arg == nullptr)
5516 return nullptr;
5517 return make<SpecialName>("template parameter object for ", Arg);
5518 }
5519 // TV <type> # virtual table
5520 case 'V': {
5521 First += 2;
5522 Node *Ty = getDerived().parseType();
5523 if (Ty == nullptr)
5524 return nullptr;
5525 return make<SpecialName>("vtable for ", Ty);
5526 }
5527 // TT <type> # VTT structure (construction vtable index)
5528 case 'T': {
5529 First += 2;
5530 Node *Ty = getDerived().parseType();
5531 if (Ty == nullptr)
5532 return nullptr;
5533 return make<SpecialName>("VTT for ", Ty);
5534 }
5535 // TI <type> # typeinfo structure
5536 case 'I': {
5537 First += 2;
5538 Node *Ty = getDerived().parseType();
5539 if (Ty == nullptr)
5540 return nullptr;
5541 return make<SpecialName>("typeinfo for ", Ty);
5542 }
5543 // TS <type> # typeinfo name (null-terminated byte string)
5544 case 'S': {
5545 First += 2;
5546 Node *Ty = getDerived().parseType();
5547 if (Ty == nullptr)
5548 return nullptr;
5549 return make<SpecialName>("typeinfo name for ", Ty);
5550 }
5551 // Tc <call-offset> <call-offset> <base encoding>
5552 case 'c': {
5553 First += 2;
5555 return nullptr;
5556 Node *Encoding = getDerived().parseEncoding();
5557 if (Encoding == nullptr)
5558 return nullptr;
5559 return make<SpecialName>("covariant return thunk to ", Encoding);
5560 }
5561 // extension ::= TC <first type> <number> _ <second type>
5562 // # construction vtable for second-in-first
5563 case 'C': {
5564 First += 2;
5565 Node *FirstType = getDerived().parseType();
5566 if (FirstType == nullptr)
5567 return nullptr;
5568 if (parseNumber(true).empty() || !consumeIf('_'))
5569 return nullptr;
5570 Node *SecondType = getDerived().parseType();
5571 if (SecondType == nullptr)
5572 return nullptr;
5573 return make<CtorVtableSpecialName>(SecondType, FirstType);
5574 }
5575 // TW <object name> # Thread-local wrapper
5576 case 'W': {
5577 First += 2;
5578 Node *Name = getDerived().parseName();
5579 if (Name == nullptr)
5580 return nullptr;
5581 return make<SpecialName>("thread-local wrapper routine for ", Name);
5582 }
5583 // TH <object name> # Thread-local initialization
5584 case 'H': {
5585 First += 2;
5586 Node *Name = getDerived().parseName();
5587 if (Name == nullptr)
5588 return nullptr;
5589 return make<SpecialName>("thread-local initialization routine for ", Name);
5590 }
5591 // T <call-offset> <base encoding>
5592 default: {
5593 ++First;
5594 bool IsVirt = look() == 'v';
5595 if (parseCallOffset())
5596 return nullptr;
5597 Node *BaseEncoding = getDerived().parseEncoding();
5598 if (BaseEncoding == nullptr)
5599 return nullptr;
5600 if (IsVirt)
5601 return make<SpecialName>("virtual thunk to ", BaseEncoding);
5602 else
5603 return make<SpecialName>("non-virtual thunk to ", BaseEncoding);
5604 }
5605 }
5606 case 'G':
5607 switch (look(1)) {
5608 // GV <object name> # Guard variable for one-time initialization
5609 case 'V': {
5610 First += 2;
5611 Node *Name = getDerived().parseName();
5612 if (Name == nullptr)
5613 return nullptr;
5614 return make<SpecialName>("guard variable for ", Name);
5615 }
5616 // GR <object name> # reference temporary for object
5617 // GR <object name> _ # First temporary
5618 // GR <object name> <seq-id> _ # Subsequent temporaries
5619 case 'R': {
5620 First += 2;
5621 Node *Name = getDerived().parseName();
5622 if (Name == nullptr)
5623 return nullptr;
5624 size_t Count;
5625 bool ParsedSeqId = !parseSeqId(&Count);
5626 if (!consumeIf('_') && ParsedSeqId)
5627 return nullptr;
5628 return make<SpecialName>("reference temporary for ", Name);
5629 }
5630 // GI <module-name> v
5631 case 'I': {
5632 First += 2;
5633 ModuleName *Module = nullptr;
5635 return nullptr;
5636 if (Module == nullptr)
5637 return nullptr;
5638 return make<SpecialName>("initializer for module ", Module);
5639 }
5640 }
5641 }
5642 return nullptr;
5643}
5644
5645// <encoding> ::= <function name> <bare-function-type>
5646// [`Q` <requires-clause expr>]
5647// ::= <data name>
5648// ::= <special-name>
5649template <typename Derived, typename Alloc>
5651 // The template parameters of an encoding are unrelated to those of the
5652 // enclosing context.
5653 SaveTemplateParams SaveTemplateParamsScope(this);
5654
5655 if (look() == 'G' || look() == 'T')
5656 return getDerived().parseSpecialName();
5657
5658 auto IsEndOfEncoding = [&] {
5659 // The set of chars that can potentially follow an <encoding> (none of which
5660 // can start a <type>). Enumerating these allows us to avoid speculative
5661 // parsing.
5662 return numLeft() == 0 || look() == 'E' || look() == '.' || look() == '_';
5663 };
5664
5665 NameState NameInfo(this);
5666 Node *Name = getDerived().parseName(&NameInfo);
5667 if (Name == nullptr)
5668 return nullptr;
5669
5670 if (resolveForwardTemplateRefs(NameInfo))
5671 return nullptr;
5672
5673 if (IsEndOfEncoding())
5674 return Name;
5675
5676 // ParseParams may be false at the top level only, when called from parse().
5677 // For example in the mangled name _Z3fooILZ3BarEET_f, ParseParams may be
5678 // false when demangling 3fooILZ3BarEET_f but is always true when demangling
5679 // 3Bar.
5680 if (!ParseParams) {
5681 while (consume())
5682 ;
5683 return Name;
5684 }
5685
5686 Node *Attrs = nullptr;
5687 if (consumeIf("Ua9enable_ifI")) {
5688 size_t BeforeArgs = Names.size();
5689 while (!consumeIf('E')) {
5690 Node *Arg = getDerived().parseTemplateArg();
5691 if (Arg == nullptr)
5692 return nullptr;
5693 Names.push_back(Arg);
5694 }
5695 Attrs = make<EnableIfAttr>(popTrailingNodeArray(BeforeArgs));
5696 if (!Attrs)
5697 return nullptr;
5698 }
5699
5700 Node *ReturnType = nullptr;
5701 if (!NameInfo.CtorDtorConversion && NameInfo.EndsWithTemplateArgs) {
5702 ReturnType = getDerived().parseType();
5703 if (ReturnType == nullptr)
5704 return nullptr;
5705 }
5706
5707 NodeArray Params;
5708 if (!consumeIf('v')) {
5709 size_t ParamsBegin = Names.size();
5710 do {
5711 Node *Ty = getDerived().parseType();
5712 if (Ty == nullptr)
5713 return nullptr;
5714
5715 const bool IsFirstParam = ParamsBegin == Names.size();
5716 if (NameInfo.HasExplicitObjectParameter && IsFirstParam)
5718
5719 if (Ty == nullptr)
5720 return nullptr;
5721
5722 Names.push_back(Ty);
5723 } while (!IsEndOfEncoding() && look() != 'Q');
5724 Params = popTrailingNodeArray(ParamsBegin);
5725 }
5726
5727 Node *Requires = nullptr;
5728 if (consumeIf('Q')) {
5729 Requires = getDerived().parseConstraintExpr();
5730 if (!Requires)
5731 return nullptr;
5732 }
5733
5734 return make<FunctionEncoding>(ReturnType, Name, Params, Attrs, Requires,
5735 NameInfo.CVQualifiers,
5736 NameInfo.ReferenceQualifier);
5737}
5738
5739template <class Float>
5740struct FloatData;
5741
5742template <>
5743struct FloatData<float>
5744{
5745 static const size_t mangled_size = 8;
5746 static const size_t max_demangled_size = 24;
5747 static constexpr const char* spec = "%af";
5748};
5749
5750template <>
5751struct FloatData<double>
5752{
5753 static const size_t mangled_size = 16;
5754 static const size_t max_demangled_size = 32;
5755 static constexpr const char* spec = "%a";
5756};
5757
5758template <>
5759struct FloatData<long double>
5760{
5761#if __LDBL_MANT_DIG__ == 113 || __LDBL_MANT_DIG__ == 106
5762 static const size_t mangled_size = 32;
5763#elif __LDBL_MANT_DIG__ == 53 || defined(_MSC_VER)
5764 // MSVC doesn't define __LDBL_MANT_DIG__, but it has long double equal to
5765 // regular double on all current architectures.
5766 static const size_t mangled_size = 16;
5767#elif __LDBL_MANT_DIG__ == 64
5768 static const size_t mangled_size = 20;
5769#else
5770#error Unknown size for __LDBL_MANT_DIG__
5771#endif
5772 // `-0x1.ffffffffffffffffffffffffffffp+16383` + 'L' + '\0' == 42 bytes.
5773 // 28 'f's * 4 bits == 112 bits, which is the number of mantissa bits.
5774 // Negatives are one character longer than positives.
5775 // `0x1.` and `p` are constant, and exponents `+16383` and `-16382` are the
5776 // same length. 1 sign bit, 112 mantissa bits, and 15 exponent bits == 128.
5777 static const size_t max_demangled_size = 42;
5778 static constexpr const char *spec = "%LaL";
5779};
5780
5781template <typename Alloc, typename Derived>
5782template <class Float>
5784 const size_t N = FloatData<Float>::mangled_size;
5785 if (numLeft() <= N)
5786 return nullptr;
5787 std::string_view Data(First, N);
5788 for (char C : Data)
5789 if (!(C >= '0' && C <= '9') && !(C >= 'a' && C <= 'f'))
5790 return nullptr;
5791 First += N;
5792 if (!consumeIf('E'))
5793 return nullptr;
5794 return make<FloatLiteralImpl<Float>>(Data);
5795}
5796
5797// <seq-id> ::= <0-9A-Z>+
5798template <typename Alloc, typename Derived>
5800 if (!(look() >= '0' && look() <= '9') &&
5801 !(look() >= 'A' && look() <= 'Z'))
5802 return true;
5803
5804 size_t Id = 0;
5805 while (true) {
5806 if (look() >= '0' && look() <= '9') {
5807 Id *= 36;
5808 Id += static_cast<size_t>(look() - '0');
5809 } else if (look() >= 'A' && look() <= 'Z') {
5810 Id *= 36;
5811 Id += static_cast<size_t>(look() - 'A') + 10;
5812 } else {
5813 *Out = Id;
5814 return false;
5815 }
5816 ++First;
5817 }
5818}
5819
5820// <substitution> ::= S <seq-id> _
5821// ::= S_
5822// <substitution> ::= Sa # ::std::allocator
5823// <substitution> ::= Sb # ::std::basic_string
5824// <substitution> ::= Ss # ::std::basic_string < char,
5825// ::std::char_traits<char>,
5826// ::std::allocator<char> >
5827// <substitution> ::= Si # ::std::basic_istream<char, std::char_traits<char> >
5828// <substitution> ::= So # ::std::basic_ostream<char, std::char_traits<char> >
5829// <substitution> ::= Sd # ::std::basic_iostream<char, std::char_traits<char> >
5830// The St case is handled specially in parseNestedName.
5831template <typename Derived, typename Alloc>
5833 if (!consumeIf('S'))
5834 return nullptr;
5835
5836 if (look() >= 'a' && look() <= 'z') {
5837 SpecialSubKind Kind;
5838 switch (look()) {
5839 case 'a':
5841 break;
5842 case 'b':
5844 break;
5845 case 'd':
5847 break;
5848 case 'i':
5850 break;
5851 case 'o':
5853 break;
5854 case 's':
5856 break;
5857 default:
5858 return nullptr;
5859 }
5860 ++First;
5861 auto *SpecialSub = make<SpecialSubstitution>(Kind);
5862 if (!SpecialSub)
5863 return nullptr;
5864
5865 // Itanium C++ ABI 5.1.2: If a name that would use a built-in <substitution>
5866 // has ABI tags, the tags are appended to the substitution; the result is a
5867 // substitutable component.
5868 Node *WithTags = getDerived().parseAbiTags(SpecialSub);
5869 if (WithTags != SpecialSub) {
5870 Subs.push_back(WithTags);
5871 SpecialSub = WithTags;
5872 }
5873 return SpecialSub;
5874 }
5875
5876 // ::= S_
5877 if (consumeIf('_')) {
5878 if (Subs.empty())
5879 return nullptr;
5880 return Subs[0];
5881 }
5882
5883 // ::= S <seq-id> _
5884 size_t Index = 0;
5885 if (parseSeqId(&Index))
5886 return nullptr;
5887 ++Index;
5888 if (!consumeIf('_') || Index >= Subs.size())
5889 return nullptr;
5890 return Subs[Index];
5891}
5892
5893// <template-param> ::= T_ # first template parameter
5894// ::= T <parameter-2 non-negative number> _
5895// ::= TL <level-1> __
5896// ::= TL <level-1> _ <parameter-2 non-negative number> _
5897template <typename Derived, typename Alloc>
5899 const char *Begin = First;
5900 if (!consumeIf('T'))
5901 return nullptr;
5902
5903 size_t Level = 0;
5904 if (consumeIf('L')) {
5905 if (parsePositiveInteger(&Level))
5906 return nullptr;
5907 ++Level;
5908 if (!consumeIf('_'))
5909 return nullptr;
5910 }
5911
5912 size_t Index = 0;
5913 if (!consumeIf('_')) {
5914 if (parsePositiveInteger(&Index))
5915 return nullptr;
5916 ++Index;
5917 if (!consumeIf('_'))
5918 return nullptr;
5919 }
5920
5921 // We don't track enclosing template parameter levels well enough to reliably
5922 // substitute them all within a <constraint-expression>, so print the
5923 // parameter numbering instead for now.
5924 // TODO: Track all enclosing template parameters and substitute them here.
5926 return make<NameType>(std::string_view(Begin, First - 1 - Begin));
5927 }
5928
5929 // If we're in a context where this <template-param> refers to a
5930 // <template-arg> further ahead in the mangled name (currently just conversion
5931 // operator types), then we should only look it up in the right context.
5932 // This can only happen at the outermost level.
5933 if (PermitForwardTemplateReferences && Level == 0) {
5934 Node *ForwardRef = make<ForwardTemplateReference>(Index);
5935 if (!ForwardRef)
5936 return nullptr;
5937 DEMANGLE_ASSERT(ForwardRef->getKind() == Node::KForwardTemplateReference,
5938 "");
5939 ForwardTemplateRefs.push_back(
5940 static_cast<ForwardTemplateReference *>(ForwardRef));
5941 return ForwardRef;
5942 }
5943
5944 if (Level >= TemplateParams.size() || !TemplateParams[Level] ||
5945 Index >= TemplateParams[Level]->size()) {
5946 // Itanium ABI 5.1.8: In a generic lambda, uses of auto in the parameter
5947 // list are mangled as the corresponding artificial template type parameter.
5948 if (ParsingLambdaParamsAtLevel == Level && Level <= TemplateParams.size()) {
5949 // This will be popped by the ScopedTemplateParamList in
5950 // parseUnnamedTypeName.
5951 if (Level == TemplateParams.size())
5952 TemplateParams.push_back(nullptr);
5953 return make<NameType>("auto");
5954 }
5955
5956 return nullptr;
5957 }
5958
5959 return (*TemplateParams[Level])[Index];
5960}
5961
5962// <template-param-decl> ::= Ty # type parameter
5963// ::= Tk <concept name> [<template-args>] # constrained type parameter
5964// ::= Tn <type> # non-type parameter
5965// ::= Tt <template-param-decl>* E # template parameter
5966// ::= Tp <template-param-decl> # parameter pack
5967template <typename Derived, typename Alloc>
5969 TemplateParamList *Params) {
5970 auto InventTemplateParamName = [&](TemplateParamKind Kind) {
5971 unsigned Index = NumSyntheticTemplateParameters[(int)Kind]++;
5972 Node *N = make<SyntheticTemplateParamName>(Kind, Index);
5973 if (N && Params)
5974 Params->push_back(N);
5975 return N;
5976 };
5977
5978 if (consumeIf("Ty")) {
5979 Node *Name = InventTemplateParamName(TemplateParamKind::Type);
5980 if (!Name)
5981 return nullptr;
5982 return make<TypeTemplateParamDecl>(Name);
5983 }
5984
5985 if (consumeIf("Tk")) {
5986 // We don't track enclosing template parameter levels well enough to
5987 // reliably demangle template parameter substitutions, so print an arbitrary
5988 // string in place of a parameter for now.
5989 // TODO: Track all enclosing template parameters and demangle substitutions.
5990 ScopedOverride<bool> SaveIncompleteTemplateParameterTrackingExpr(
5992 Node *Constraint = getDerived().parseName();
5993 if (!Constraint)
5994 return nullptr;
5995 Node *Name = InventTemplateParamName(TemplateParamKind::Type);
5996 if (!Name)
5997 return nullptr;
5998 return make<ConstrainedTypeTemplateParamDecl>(Constraint, Name);
5999 }
6000
6001 if (consumeIf("Tn")) {
6002 Node *Name = InventTemplateParamName(TemplateParamKind::NonType);
6003 if (!Name)
6004 return nullptr;
6005 Node *Type = parseType();
6006 if (!Type)
6007 return nullptr;
6009 }
6010
6011 if (consumeIf("Tt")) {
6012 Node *Name = InventTemplateParamName(TemplateParamKind::Template);
6013 if (!Name)
6014 return nullptr;
6015 size_t ParamsBegin = Names.size();
6016 ScopedTemplateParamList TemplateTemplateParamParams(this);
6017 Node *Requires = nullptr;
6018 while (!consumeIf('E')) {
6019 Node *P = parseTemplateParamDecl(TemplateTemplateParamParams.params());
6020 if (!P)
6021 return nullptr;
6022 Names.push_back(P);
6023 if (consumeIf('Q')) {
6024 Requires = getDerived().parseConstraintExpr();
6025 if (Requires == nullptr || !consumeIf('E'))
6026 return nullptr;
6027 break;
6028 }
6029 }
6030 NodeArray InnerParams = popTrailingNodeArray(ParamsBegin);
6031 return make<TemplateTemplateParamDecl>(Name, InnerParams, Requires);
6032 }
6033
6034 if (consumeIf("Tp")) {
6035 Node *P = parseTemplateParamDecl(Params);
6036 if (!P)
6037 return nullptr;
6039 }
6040
6041 return nullptr;
6042}
6043
6044// <template-arg> ::= <type> # type or template
6045// ::= X <expression> E # expression
6046// ::= <expr-primary> # simple expressions
6047// ::= J <template-arg>* E # argument pack
6048// ::= LZ <encoding> E # extension
6049// ::= <template-param-decl> <template-arg>
6050template <typename Derived, typename Alloc>
6052 switch (look()) {
6053 case 'X': {
6054 ++First;
6055 Node *Arg = getDerived().parseExpr();
6056 if (Arg == nullptr || !consumeIf('E'))
6057 return nullptr;
6058 return Arg;
6059 }
6060 case 'J': {
6061 ++First;
6062 size_t ArgsBegin = Names.size();
6063 while (!consumeIf('E')) {
6064 Node *Arg = getDerived().parseTemplateArg();
6065 if (Arg == nullptr)
6066 return nullptr;
6067 Names.push_back(Arg);
6068 }
6069 NodeArray Args = popTrailingNodeArray(ArgsBegin);
6070 return make<TemplateArgumentPack>(Args);
6071 }
6072 case 'L': {
6073 // ::= LZ <encoding> E # extension
6074 if (look(1) == 'Z') {
6075 First += 2;
6076 Node *Arg = getDerived().parseEncoding();
6077 if (Arg == nullptr || !consumeIf('E'))
6078 return nullptr;
6079 return Arg;
6080 }
6081 // ::= <expr-primary> # simple expressions
6082 return getDerived().parseExprPrimary();
6083 }
6084 case 'T': {
6085 // Either <template-param> or a <template-param-decl> <template-arg>.
6087 return getDerived().parseType();
6088 Node *Param = getDerived().parseTemplateParamDecl(nullptr);
6089 if (!Param)
6090 return nullptr;
6091 Node *Arg = getDerived().parseTemplateArg();
6092 if (!Arg)
6093 return nullptr;
6094 return make<TemplateParamQualifiedArg>(Param, Arg);
6095 }
6096 default:
6097 return getDerived().parseType();
6098 }
6099}
6100
6101// <template-args> ::= I <template-arg>* [Q <requires-clause expr>] E
6102// extension, the abi says <template-arg>+
6103template <typename Derived, typename Alloc>
6104Node *
6106 if (!consumeIf('I'))
6107 return nullptr;
6108
6109 // <template-params> refer to the innermost <template-args>. Clear out any
6110 // outer args that we may have inserted into TemplateParams.
6111 if (TagTemplates) {
6112 TemplateParams.clear();
6114 OuterTemplateParams.clear();
6115 }
6116
6117 size_t ArgsBegin = Names.size();
6118 Node *Requires = nullptr;
6119 while (!consumeIf('E')) {
6120 if (TagTemplates) {
6121 Node *Arg = getDerived().parseTemplateArg();
6122 if (Arg == nullptr)
6123 return nullptr;
6124 Names.push_back(Arg);
6125 Node *TableEntry = Arg;
6126 if (Arg->getKind() == Node::KTemplateParamQualifiedArg) {
6127 TableEntry =
6128 static_cast<TemplateParamQualifiedArg *>(TableEntry)->getArg();
6129 }
6130 if (Arg->getKind() == Node::KTemplateArgumentPack) {
6132 static_cast<TemplateArgumentPack*>(TableEntry)->getElements());
6133 if (!TableEntry)
6134 return nullptr;
6135 }
6137 } else {
6138 Node *Arg = getDerived().parseTemplateArg();
6139 if (Arg == nullptr)
6140 return nullptr;
6141 Names.push_back(Arg);
6142 }
6143 if (consumeIf('Q')) {
6144 Requires = getDerived().parseConstraintExpr();
6145 if (!Requires || !consumeIf('E'))
6146 return nullptr;
6147 break;
6148 }
6149 }
6150 return make<TemplateArgs>(popTrailingNodeArray(ArgsBegin), Requires);
6151}
6152
6153// <mangled-name> ::= _Z <encoding>
6154// ::= <type>
6155// extension ::= ___Z <encoding> _block_invoke
6156// extension ::= ___Z <encoding> _block_invoke<decimal-digit>+
6157// extension ::= ___Z <encoding> _block_invoke_<decimal-digit>+
6158template <typename Derived, typename Alloc>
6160 if (consumeIf("_Z") || consumeIf("__Z")) {
6161 Node *Encoding = getDerived().parseEncoding(ParseParams);
6162 if (Encoding == nullptr)
6163 return nullptr;
6164 if (look() == '.') {
6165 Encoding =
6166 make<DotSuffix>(Encoding, std::string_view(First, Last - First));
6167 First = Last;
6168 }
6169 if (numLeft() != 0)
6170 return nullptr;
6171 return Encoding;
6172 }
6173
6174 if (consumeIf("___Z") || consumeIf("____Z")) {
6175 Node *Encoding = getDerived().parseEncoding(ParseParams);
6176 if (Encoding == nullptr || !consumeIf("_block_invoke"))
6177 return nullptr;
6178 bool RequireNumber = consumeIf('_');
6179 if (parseNumber().empty() && RequireNumber)
6180 return nullptr;
6181 if (look() == '.')
6182 First = Last;
6183 if (numLeft() != 0)
6184 return nullptr;
6185 return make<SpecialName>("invocation function for block in ", Encoding);
6186 }
6187
6188 Node *Ty = getDerived().parseType();
6189 if (numLeft() != 0)
6190 return nullptr;
6191 return Ty;
6192}
6193
6194template <typename Alloc>
6199
6200inline void OutputBuffer::printLeft(const Node &N) { N.printLeft(*this); }
6201
6202inline void OutputBuffer::printRight(const Node &N) { N.printRight(*this); }
6203
6205
6206#if defined(__clang__)
6207#pragma clang diagnostic pop
6208#endif
6209
6210#endif // DEMANGLE_ITANIUMDEMANGLE_H
#define Fail
AMDGPU Prepare AGPR Alloc
static GCRegistry::Add< ShadowStackGC > C("shadow-stack", "Very portable GC for uncooperative code generators")
static GCRegistry::Add< CoreCLRGC > E("coreclr", "CoreCLR-compatible GC")
DXIL Resource Implicit Binding
#define DEMANGLE_ABI
DEMANGLE_ABI is the export/visibility macro used to mark symbols delcared in llvm/Demangle as exporte...
#define DEMANGLE_DUMP_METHOD
#define DEMANGLE_FALLTHROUGH
#define DEMANGLE_NAMESPACE_END
#define DEMANGLE_ASSERT(__expr, __msg)
#define DEMANGLE_NAMESPACE_BEGIN
#define DEMANGLE_UNREACHABLE
DEMANGLE_ABI const char * parse_discriminator(const char *first, const char *last)
Qualifiers operator|=(Qualifiers &Q1, Qualifiers Q2)
TemplateParamKind
const AbstractManglingParser< Derived, Alloc >::OperatorInfo AbstractManglingParser< Derived, Alloc >::Ops[]
FunctionRefQual
@ FrefQualLValue
@ FrefQualNone
@ FrefQualRValue
ReferenceKind
FloatLiteralImpl< long double > LongDoubleLiteral
SpecialSubKind
FloatLiteralImpl< float > FloatLiteral
Qualifiers
@ QualVolatile
@ QualRestrict
@ QualConst
@ QualNone
FloatLiteralImpl< double > DoubleLiteral
#define F(x, y, z)
Definition MD5.cpp:55
#define I(x, y, z)
Definition MD5.cpp:58
Machine Check Debug Module
#define T
nvptx lower args
OptimizedStructLayoutField Field
#define P(N)
if(PassOpts->AAPipeline)
static StringRef getName(Value *V)
const SmallVectorImpl< MachineOperand > & Cond
BaseType
A given derived pointer can have multiple base pointers through phi/selects.
static Split data
DEMANGLE_NAMESPACE_BEGIN bool starts_with(std::string_view self, char C) noexcept
std::pair< llvm::MachO::Target, std::string > UUID
static bool consume(InternalInstruction *insn, T &ptr)
Value * RHS
Value * LHS
SaveTemplateParams(AbstractManglingParser *TheParser)
ScopedTemplateParamList(AbstractManglingParser *TheParser)
void printLeft(OutputBuffer &OB) const override
ArraySubscriptExpr(const Node *Op1_, const Node *Op2_, Prec Prec_)
void match(Fn F) const
void printRight(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
bool printInitListAsType(OutputBuffer &OB, const NodeArray &Elements) const override
void match(Fn F) const
bool hasArraySlow(OutputBuffer &) const override
ArrayType(const Node *Base_, Node *Dimension_)
bool hasRHSComponentSlow(OutputBuffer &) const override
BinaryExpr(const Node *LHS_, std::string_view InfixOperator_, const Node *RHS_, Prec Prec_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
BinaryFPType(const Node *Dimension_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
BitIntType(const Node *Size_, bool Signed_)
BoolExpr(bool Value_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
BracedExpr(const Node *Elem_, const Node *Init_, bool IsArray_)
void printLeft(OutputBuffer &OB) const override
BracedRangeExpr(const Node *First_, const Node *Last_, const Node *Init_)
void match(Fn F) const
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
CallExpr(const Node *Callee_, NodeArray Args_, bool IsParen_, Prec Prec_)
CastExpr(std::string_view CastKind_, const Node *To_, const Node *From_, Prec Prec_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
void printDeclarator(OutputBuffer &OB) const
ClosureTypeName(NodeArray TemplateParams_, const Node *Requires1_, NodeArray Params_, const Node *Requires2_, std::string_view Count_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
ConditionalExpr(const Node *Cond_, const Node *Then_, const Node *Else_, Prec Prec_)
ConstrainedTypeTemplateParamDecl(Node *Constraint_, Node *Name_)
void printRight(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
ConversionExpr(const Node *Type_, NodeArray Expressions_, Prec Prec_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
ConversionOperatorType(const Node *Ty_)
void match(Fn F) const
CtorDtorName(const Node *Basename_, bool IsDtor_, int Variant_)
void printLeft(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
CtorVtableSpecialName(const Node *FirstType_, const Node *SecondType_)
void printLeft(OutputBuffer &OB) const override
DeleteExpr(Node *Op_, bool IsGlobal_, bool IsArray_, Prec Prec_)
void match(Fn F) const
void match(Fn F) const
DotSuffix(const Node *Prefix_, std::string_view Suffix_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
DtorName(const Node *Base_)
void printLeft(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
DynamicExceptionSpec(NodeArray Types_)
void match(Fn F) const
ElaboratedTypeSpefType(std::string_view Kind_, Node *Child_)
void printLeft(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
EnableIfAttr(NodeArray Conditions_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
EnclosingExpr(std::string_view Prefix_, const Node *Infix_, Prec Prec_=Prec::Primary)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
EnumLiteral(const Node *Ty_, std::string_view Integer_)
void match(Fn F) const
std::string_view getBaseName() const override
ExpandedSpecialSubstitution(SpecialSubKind SSK_)
ExpandedSpecialSubstitution(SpecialSubKind SSK_, Kind K_)
ExplicitObjectParameter(Node *Base_)
void printLeft(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
ExprRequirement(const Node *Expr_, bool IsNoexcept_, const Node *TypeConstraint_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
FloatLiteralImpl(std::string_view Contents_)
void printLeft(OutputBuffer &OB) const override
FoldExpr(bool IsLeftFold_, std::string_view OperatorName_, const Node *Pack_, const Node *Init_)
void match(Fn F) const
void printRight(OutputBuffer &OB) const override
Qualifiers getCVQuals() const
FunctionRefQual getRefQual() const
const Node * getAttrs() const
const Node * getReturnType() const
bool hasRHSComponentSlow(OutputBuffer &) const override
const Node * getRequires() const
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
const Node * getName() const
bool hasFunctionSlow(OutputBuffer &) const override
FunctionEncoding(const Node *Ret_, const Node *Name_, NodeArray Params_, const Node *Attrs_, const Node *Requires_, Qualifiers CVQuals_, FunctionRefQual RefQual_)
NodeArray getParams() const
void printLeft(OutputBuffer &OB) const override
FunctionParam(std::string_view Number_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
FunctionType(const Node *Ret_, NodeArray Params_, Qualifiers CVQuals_, FunctionRefQual RefQual_, const Node *ExceptionSpec_)
bool hasRHSComponentSlow(OutputBuffer &) const override
void printRight(OutputBuffer &OB) const override
void match(Fn F) const
bool hasFunctionSlow(OutputBuffer &) const override
GlobalQualifiedName(Node *Child_)
std::string_view getBaseName() const override
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
InitListExpr(const Node *Ty_, NodeArray Inits_)
std::string_view value() const
IntegerLiteral(std::string_view Type_, std::string_view Value_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
LambdaExpr(const Node *Type_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
void match(Fn F) const
LiteralOperator(const Node *OpName_)
void printLeft(OutputBuffer &OB) const override
MemberExpr(const Node *LHS_, std::string_view Kind_, const Node *RHS_, Prec Prec_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
NameType(std::string_view Name_)
std::string_view getBaseName() const override
std::string_view getName() const
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
NestedRequirement(const Node *Constraint_)
void match(Fn F) const
NewExpr(NodeArray ExprList_, Node *Type_, NodeArray InitList_, bool IsGlobal_, bool IsArray_, Prec Prec_)
void printLeft(OutputBuffer &OB) const override
NodeArray(Node **Elements_, size_t NumElements_)
bool empty() const
Node ** begin() const
size_t size() const
void printWithComma(OutputBuffer &OB) const
Node ** end() const
bool printAsString(OutputBuffer &OB) const
Node * operator[](size_t Idx) const
void print(OutputBuffer &OB) const
Prec getPrecedence() const
Prec
Operator precedence for expression nodes.
virtual bool printInitListAsType(OutputBuffer &, const NodeArray &) const
void visit(Fn F) const
Visit the most-derived object corresponding to this object.
void printAsOperand(OutputBuffer &OB, Prec P=Prec::Default, bool StrictlyWorse=false) const
Node(Kind K_, Cache RHSComponentCache_, Cache ArrayCache_=Cache::No, Cache FunctionCache_=Cache::No)
bool hasRHSComponent(OutputBuffer &OB) const
DEMANGLE_DUMP_METHOD void dump() const
friend class OutputBuffer
bool hasFunction(OutputBuffer &OB) const
Cache
Three-way bool to track a cached value.
Node(Kind K_, Prec Precedence_=Prec::Primary, Cache RHSComponentCache_=Cache::No, Cache ArrayCache_=Cache::No, Cache FunctionCache_=Cache::No)
Cache getRHSComponentCache() const
bool hasArray(OutputBuffer &OB) const
Cache getArrayCache() const
virtual bool hasRHSComponentSlow(OutputBuffer &) const
Cache ArrayCache
Track if this node is a (possibly qualified) array type.
virtual bool hasArraySlow(OutputBuffer &) const
Kind getKind() const
virtual std::string_view getBaseName() const
virtual const Node * getSyntaxNode(OutputBuffer &) const
virtual bool hasFunctionSlow(OutputBuffer &) const
virtual ~Node()=default
Cache getFunctionCache() const
Cache RHSComponentCache
Tracks if this node has a component on its right side, in which case we need to call printRight.
Cache FunctionCache
Track if this node is a (possibly qualified) function type.
NoexceptSpec(const Node *E_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
void printRight(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
NonTypeTemplateParamDecl(Node *Name_, Node *Type_)
bool isObjCObject() const
ObjCProtoName(const Node *Ty_, std::string_view Protocol_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
std::string_view getProtocol() const
virtual void printRight(const Node &N)
virtual void printLeft(const Node &N)
Called by the demangler when printing the demangle tree.
PODSmallVector & operator=(PODSmallVector &&Other)
PODSmallVector(const PODSmallVector &)=delete
void push_back(const T &Elem)
bool empty() const
PODSmallVector & operator=(const PODSmallVector &)=delete
PODSmallVector(PODSmallVector &&Other)
size_t size() const
void shrinkToSize(size_t Index)
T & operator[](size_t Index)
const Node * getChild() const
ParameterPackExpansion(const Node *Child_)
void printLeft(OutputBuffer &OB) const override
ParameterPack(NodeArray Data_)
void printRight(OutputBuffer &OB) const override
bool hasArraySlow(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
const Node * getSyntaxNode(OutputBuffer &OB) const override
void match(Fn F) const
bool hasFunctionSlow(OutputBuffer &OB) const override
bool hasRHSComponentSlow(OutputBuffer &OB) const override
PixelVectorType(const Node *Dimension_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
PointerToMemberConversionExpr(const Node *Type_, const Node *SubExpr_, std::string_view Offset_, Prec Prec_)
void match(Fn F) const
void printRight(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
bool hasRHSComponentSlow(OutputBuffer &OB) const override
PointerToMemberType(const Node *ClassType_, const Node *MemberType_)
bool hasRHSComponentSlow(OutputBuffer &OB) const override
PointerType(const Node *Pointee_)
void match(Fn F) const
const Node * getPointee() const
void printRight(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
PostfixExpr(const Node *Child_, std::string_view Operator_, Prec Prec_)
void printLeft(OutputBuffer &OB) const override
PostfixQualifiedType(const Node *Ty_, std::string_view Postfix_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
PrefixExpr(std::string_view Prefix_, Node *Child_, Prec Prec_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
bool hasFunctionSlow(OutputBuffer &OB) const override
QualType(const Node *Child_, Qualifiers Quals_)
void printLeft(OutputBuffer &OB) const override
const Qualifiers Quals
void printQuals(OutputBuffer &OB) const
Qualifiers getQuals() const
const Node * Child
void printRight(OutputBuffer &OB) const override
const Node * getChild() const
bool hasRHSComponentSlow(OutputBuffer &OB) const override
bool hasArraySlow(OutputBuffer &OB) const override
void match(Fn F) const
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
std::string_view getBaseName() const override
QualifiedName(const Node *Qualifier_, const Node *Name_)
void printLeft(OutputBuffer &OB) const override
bool hasRHSComponentSlow(OutputBuffer &OB) const override
ReferenceType(const Node *Pointee_, ReferenceKind RK_)
void printRight(OutputBuffer &OB) const override
void match(Fn F) const
void match(Fn F) const
RequiresExpr(NodeArray Parameters_, NodeArray Requirements_)
void printLeft(OutputBuffer &OB) const override
SizeofParamPackExpr(const Node *Pack_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
SpecialName(std::string_view Special_, const Node *Child_)
void match(Fn F) const
void match(Fn F) const
std::string_view getBaseName() const override
SpecialSubstitution(SpecialSubKind SSK_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
StringLiteral(const Node *Type_)
void printLeft(OutputBuffer &OB) const override
StructuredBindingName(NodeArray Bindings_)
void printLeft(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
SubobjectExpr(const Node *Type_, const Node *SubExpr_, std::string_view Offset_, NodeArray UnionSelectors_, bool OnePastTheEnd_)
void printLeft(OutputBuffer &OB) const override
SyntheticTemplateParamName(TemplateParamKind Kind_, unsigned Index_)
NodeArray getParams()
TemplateArgs(NodeArray Params_, Node *Requires_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
A variadic template argument.
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
TemplateArgumentPack(NodeArray Elements_)
NodeArray getElements() const
void printRight(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
TemplateParamPackDecl(Node *Param_)
TemplateParamQualifiedArg(Node *Param_, Node *Arg_)
void printLeft(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
TemplateTemplateParamDecl(Node *Name_, NodeArray Params_, Node *Requires_)
void printRight(OutputBuffer &OB) const override
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
ThrowExpr(const Node *Op_)
TransformedType(std::string_view Transform_, Node *BaseType_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
TypeRequirement(const Node *Type_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
TypeTemplateParamDecl(Node *Name_)
void printRight(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
UnnamedTypeName(std::string_view Count_)
VectorType(const Node *BaseType_, const Node *Dimension_)
const Node * getDimension() const
void printLeft(OutputBuffer &OB) const override
const Node * getBaseType() const
void match(Fn F) const
VendorExtQualType(const Node *Ty_, std::string_view Ext_, const Node *TA_)
void printLeft(OutputBuffer &OB) const override
std::string_view getExt() const
const Node * getTA() const
void match(Fn F) const
const Node * getTy() const
constexpr Node::Kind getFloatLiteralKind(float *)
void swap(llvm::BitVector &LHS, llvm::BitVector &RHS)
Implement std::swap in terms of BitVector swap.
Definition BitVector.h:853
#define N
void printLeft(OutputBuffer &OB) const override
std::string_view Tag
AbiTagAttr(Node *Base_, std::string_view Tag_)
void match(Fn F) const
std::string_view getBaseName() const override
Holds some extra information about a <name> that is being parsed.
NameState(AbstractManglingParser *Enclosing)
constexpr OperatorInfo(const char(&E)[3], OIKind K, bool F, Node::Prec P, const char *N)
bool operator<(const OperatorInfo &Other) const
bool operator==(const char *Peek) const
bool operator!=(const char *Peek) const
bool operator<(const char *Peek) const
bool parseModuleNameOpt(ModuleName *&Module)
PODSmallVector< Node *, 32 > Subs
PODSmallVector< Node *, 8 > TemplateParamList
void reset(const char *First_, const char *Last_)
PODSmallVector< ForwardTemplateReference *, 4 > ForwardTemplateRefs
PODSmallVector< Node *, 32 > Names
Node * parseTemplateArgs(bool TagTemplates=false)
Node * parseType()
Parse the <type> production.
Node * parseTemplateParamDecl(TemplateParamList *Params)
Node * parsePrefixExpr(std::string_view Kind, Node::Prec Prec)
Node * parseUnresolvedName(bool Global)
Parse the <unresolved-name> production.
Node * parsePointerToMemberConversionExpr(Node::Prec Prec)
bool resolveForwardTemplateRefs(NameState &State)
Node * parseIntegerLiteral(std::string_view Lit)
Node * make(Args &&... args)
bool parseSeqId(size_t *Out)
Node * parseEncoding(bool ParseParams=true)
Node * parseName(NameState *State=nullptr)
Parse the <name> production>
Node * parseBinaryExpr(std::string_view Kind, Node::Prec Prec)
std::string_view parseNumber(bool AllowNegative=false)
TemplateParamList OuterTemplateParams
Node * parse(bool ParseParams=true)
Top-level entry point into the parser.
static const OperatorInfo Ops[]
NodeArray makeNodeArray(It begin, It end)
Node * parseLocalName(NameState *State)
AbstractManglingParser(const char *First_, const char *Last_)
char look(unsigned Lookahead=0) const
bool parsePositiveInteger(size_t *Out)
Node * parseCtorDtorName(Node *&SoFar, NameState *State)
Node * parseExpr()
Parse the <expression> production.
Node * parseAbiTags(Node *N)
Node * parseNestedName(NameState *State)
unsigned NumSyntheticTemplateParameters[3]
Node * parseSourceName(NameState *State)
Node * parseUnscopedName(NameState *State, bool *isSubstName)
bool consumeIf(std::string_view S)
Node * parseUnqualifiedName(NameState *State, Node *Scope, ModuleName *Module)
std::string_view parseBareSourceName()
NodeArray popTrailingNodeArray(size_t FromPosition)
PODSmallVector< TemplateParamList *, 4 > TemplateParams
const OperatorInfo * parseOperatorEncoding()
Node * parseOperatorName(NameState *State)
Node * parseUnnamedTypeName(NameState *State)
static const size_t NumOps
static const size_t mangled_size
static const size_t max_demangled_size
static constexpr const char * spec
static constexpr const char * spec
static const size_t mangled_size
static const size_t max_demangled_size
static const size_t max_demangled_size
static constexpr const char * spec
A forward-reference to a template argument that was not known at the point where the template paramet...
const Node * getSyntaxNode(OutputBuffer &OB) const override
bool hasRHSComponentSlow(OutputBuffer &OB) const override
void printLeft(OutputBuffer &OB) const override
bool hasFunctionSlow(OutputBuffer &OB) const override
bool hasArraySlow(OutputBuffer &OB) const override
void printRight(OutputBuffer &OB) const override
ForwardTemplateReference(size_t Index_)
void match(Fn F) const =delete
LocalName(Node *Encoding_, Node *Entity_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
std::string_view getBaseName() const override
MemberLikeFriendName(Node *Qual_, Node *Name_)
void printLeft(OutputBuffer &OB) const override
std::string_view getBaseName() const override
ModuleName * Module
void printLeft(OutputBuffer &OB) const override
ModuleEntity(ModuleName *Module_, Node *Name_)
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
ModuleName(ModuleName *Parent_, Node *Name_, bool IsPartition_=false)
ModuleName * Parent
void printLeft(OutputBuffer &OB) const override
std::string_view getBaseName() const override
NameWithTemplateArgs(Node *Name_, Node *TemplateArgs_)
void match(Fn F) const
std::string_view getBaseName() const override
NestedName(Node *Qual_, Node *Name_)
void printLeft(OutputBuffer &OB) const override
void match(Fn F) const
void match(Fn F) const
void printLeft(OutputBuffer &OB) const override
NodeArrayNode(NodeArray Array_)
Determine the kind of a node from its type.