MicrosoftDemangleNodes.cpp 22 KB

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  1. //===- MicrosoftDemangle.cpp ----------------------------------------------===//
  2. //
  3. // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
  4. // See https://llvm.org/LICENSE.txt for license information.
  5. // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
  6. //
  7. //===----------------------------------------------------------------------===//
  8. //
  9. // This file defines a demangler for MSVC-style mangled symbols.
  10. //
  11. //===----------------------------------------------------------------------===//
  12. #include "llvm/Demangle/MicrosoftDemangleNodes.h"
  13. #include "llvm/Demangle/DemangleConfig.h"
  14. #include "llvm/Demangle/Utility.h"
  15. #include <cctype>
  16. #include <string>
  17. using namespace llvm;
  18. using namespace ms_demangle;
  19. #define OUTPUT_ENUM_CLASS_VALUE(Enum, Value, Desc) \
  20. case Enum::Value: \
  21. OS << Desc; \
  22. break;
  23. // Writes a space if the last token does not end with a punctuation.
  24. static void outputSpaceIfNecessary(OutputStream &OS) {
  25. if (OS.empty())
  26. return;
  27. char C = OS.back();
  28. if (std::isalnum(C) || C == '>')
  29. OS << " ";
  30. }
  31. static void outputSingleQualifier(OutputStream &OS, Qualifiers Q) {
  32. switch (Q) {
  33. case Q_Const:
  34. OS << "const";
  35. break;
  36. case Q_Volatile:
  37. OS << "volatile";
  38. break;
  39. case Q_Restrict:
  40. OS << "__restrict";
  41. break;
  42. default:
  43. break;
  44. }
  45. }
  46. static bool outputQualifierIfPresent(OutputStream &OS, Qualifiers Q,
  47. Qualifiers Mask, bool NeedSpace) {
  48. if (!(Q & Mask))
  49. return NeedSpace;
  50. if (NeedSpace)
  51. OS << " ";
  52. outputSingleQualifier(OS, Mask);
  53. return true;
  54. }
  55. static void outputQualifiers(OutputStream &OS, Qualifiers Q, bool SpaceBefore,
  56. bool SpaceAfter) {
  57. if (Q == Q_None)
  58. return;
  59. size_t Pos1 = OS.getCurrentPosition();
  60. SpaceBefore = outputQualifierIfPresent(OS, Q, Q_Const, SpaceBefore);
  61. SpaceBefore = outputQualifierIfPresent(OS, Q, Q_Volatile, SpaceBefore);
  62. SpaceBefore = outputQualifierIfPresent(OS, Q, Q_Restrict, SpaceBefore);
  63. size_t Pos2 = OS.getCurrentPosition();
  64. if (SpaceAfter && Pos2 > Pos1)
  65. OS << " ";
  66. }
  67. static void outputCallingConvention(OutputStream &OS, CallingConv CC) {
  68. outputSpaceIfNecessary(OS);
  69. switch (CC) {
  70. case CallingConv::Cdecl:
  71. OS << "__cdecl";
  72. break;
  73. case CallingConv::Fastcall:
  74. OS << "__fastcall";
  75. break;
  76. case CallingConv::Pascal:
  77. OS << "__pascal";
  78. break;
  79. case CallingConv::Regcall:
  80. OS << "__regcall";
  81. break;
  82. case CallingConv::Stdcall:
  83. OS << "__stdcall";
  84. break;
  85. case CallingConv::Thiscall:
  86. OS << "__thiscall";
  87. break;
  88. case CallingConv::Eabi:
  89. OS << "__eabi";
  90. break;
  91. case CallingConv::Vectorcall:
  92. OS << "__vectorcall";
  93. break;
  94. case CallingConv::Clrcall:
  95. OS << "__clrcall";
  96. break;
  97. default:
  98. break;
  99. }
  100. }
  101. std::string Node::toString(OutputFlags Flags) const {
  102. OutputStream OS;
  103. initializeOutputStream(nullptr, nullptr, OS, 1024);
  104. this->output(OS, Flags);
  105. OS << '\0';
  106. return {OS.getBuffer()};
  107. }
  108. void PrimitiveTypeNode::outputPre(OutputStream &OS, OutputFlags Flags) const {
  109. switch (PrimKind) {
  110. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Void, "void");
  111. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Bool, "bool");
  112. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Char, "char");
  113. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Schar, "signed char");
  114. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Uchar, "unsigned char");
  115. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Char8, "char8_t");
  116. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Char16, "char16_t");
  117. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Char32, "char32_t");
  118. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Short, "short");
  119. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Ushort, "unsigned short");
  120. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Int, "int");
  121. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Uint, "unsigned int");
  122. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Long, "long");
  123. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Ulong, "unsigned long");
  124. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Int64, "__int64");
  125. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Uint64, "unsigned __int64");
  126. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Wchar, "wchar_t");
  127. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Float, "float");
  128. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Double, "double");
  129. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Ldouble, "long double");
  130. OUTPUT_ENUM_CLASS_VALUE(PrimitiveKind, Nullptr, "std::nullptr_t");
  131. }
  132. outputQualifiers(OS, Quals, true, false);
  133. }
  134. void NodeArrayNode::output(OutputStream &OS, OutputFlags Flags) const {
  135. output(OS, Flags, ", ");
  136. }
  137. void NodeArrayNode::output(OutputStream &OS, OutputFlags Flags,
  138. StringView Separator) const {
  139. if (Count == 0)
  140. return;
  141. if (Nodes[0])
  142. Nodes[0]->output(OS, Flags);
  143. for (size_t I = 1; I < Count; ++I) {
  144. OS << Separator;
  145. Nodes[I]->output(OS, Flags);
  146. }
  147. }
  148. void EncodedStringLiteralNode::output(OutputStream &OS,
  149. OutputFlags Flags) const {
  150. switch (Char) {
  151. case CharKind::Wchar:
  152. OS << "L\"";
  153. break;
  154. case CharKind::Char:
  155. OS << "\"";
  156. break;
  157. case CharKind::Char16:
  158. OS << "u\"";
  159. break;
  160. case CharKind::Char32:
  161. OS << "U\"";
  162. break;
  163. }
  164. OS << DecodedString << "\"";
  165. if (IsTruncated)
  166. OS << "...";
  167. }
  168. void IntegerLiteralNode::output(OutputStream &OS, OutputFlags Flags) const {
  169. if (IsNegative)
  170. OS << '-';
  171. OS << Value;
  172. }
  173. void TemplateParameterReferenceNode::output(OutputStream &OS,
  174. OutputFlags Flags) const {
  175. if (ThunkOffsetCount > 0)
  176. OS << "{";
  177. else if (Affinity == PointerAffinity::Pointer)
  178. OS << "&";
  179. if (Symbol) {
  180. Symbol->output(OS, Flags);
  181. if (ThunkOffsetCount > 0)
  182. OS << ", ";
  183. }
  184. if (ThunkOffsetCount > 0)
  185. OS << ThunkOffsets[0];
  186. for (int I = 1; I < ThunkOffsetCount; ++I) {
  187. OS << ", " << ThunkOffsets[I];
  188. }
  189. if (ThunkOffsetCount > 0)
  190. OS << "}";
  191. }
  192. void IdentifierNode::outputTemplateParameters(OutputStream &OS,
  193. OutputFlags Flags) const {
  194. if (!TemplateParams)
  195. return;
  196. OS << "<";
  197. TemplateParams->output(OS, Flags);
  198. OS << ">";
  199. }
  200. void DynamicStructorIdentifierNode::output(OutputStream &OS,
  201. OutputFlags Flags) const {
  202. if (IsDestructor)
  203. OS << "`dynamic atexit destructor for ";
  204. else
  205. OS << "`dynamic initializer for ";
  206. if (Variable) {
  207. OS << "`";
  208. Variable->output(OS, Flags);
  209. OS << "''";
  210. } else {
  211. OS << "'";
  212. Name->output(OS, Flags);
  213. OS << "''";
  214. }
  215. }
  216. void NamedIdentifierNode::output(OutputStream &OS, OutputFlags Flags) const {
  217. OS << Name;
  218. outputTemplateParameters(OS, Flags);
  219. }
  220. void IntrinsicFunctionIdentifierNode::output(OutputStream &OS,
  221. OutputFlags Flags) const {
  222. switch (Operator) {
  223. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, New, "operator new");
  224. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Delete, "operator delete");
  225. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Assign, "operator=");
  226. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, RightShift, "operator>>");
  227. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, LeftShift, "operator<<");
  228. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, LogicalNot, "operator!");
  229. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Equals, "operator==");
  230. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, NotEquals, "operator!=");
  231. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, ArraySubscript,
  232. "operator[]");
  233. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Pointer, "operator->");
  234. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Increment, "operator++");
  235. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Decrement, "operator--");
  236. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Minus, "operator-");
  237. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Plus, "operator+");
  238. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Dereference, "operator*");
  239. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, BitwiseAnd, "operator&");
  240. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, MemberPointer,
  241. "operator->*");
  242. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Divide, "operator/");
  243. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Modulus, "operator%");
  244. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, LessThan, "operator<");
  245. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, LessThanEqual, "operator<=");
  246. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, GreaterThan, "operator>");
  247. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, GreaterThanEqual,
  248. "operator>=");
  249. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Comma, "operator,");
  250. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Parens, "operator()");
  251. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, BitwiseNot, "operator~");
  252. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, BitwiseXor, "operator^");
  253. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, BitwiseOr, "operator|");
  254. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, LogicalAnd, "operator&&");
  255. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, LogicalOr, "operator||");
  256. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, TimesEqual, "operator*=");
  257. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, PlusEqual, "operator+=");
  258. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, MinusEqual, "operator-=");
  259. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, DivEqual, "operator/=");
  260. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, ModEqual, "operator%=");
  261. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, RshEqual, "operator>>=");
  262. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, LshEqual, "operator<<=");
  263. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, BitwiseAndEqual,
  264. "operator&=");
  265. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, BitwiseOrEqual,
  266. "operator|=");
  267. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, BitwiseXorEqual,
  268. "operator^=");
  269. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, VbaseDtor, "`vbase dtor'");
  270. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, VecDelDtor,
  271. "`vector deleting dtor'");
  272. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, DefaultCtorClosure,
  273. "`default ctor closure'");
  274. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, ScalarDelDtor,
  275. "`scalar deleting dtor'");
  276. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, VecCtorIter,
  277. "`vector ctor iterator'");
  278. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, VecDtorIter,
  279. "`vector dtor iterator'");
  280. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, VecVbaseCtorIter,
  281. "`vector vbase ctor iterator'");
  282. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, VdispMap,
  283. "`virtual displacement map'");
  284. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, EHVecCtorIter,
  285. "`eh vector ctor iterator'");
  286. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, EHVecDtorIter,
  287. "`eh vector dtor iterator'");
  288. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, EHVecVbaseCtorIter,
  289. "`eh vector vbase ctor iterator'");
  290. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, CopyCtorClosure,
  291. "`copy ctor closure'");
  292. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, LocalVftableCtorClosure,
  293. "`local vftable ctor closure'");
  294. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, ArrayNew, "operator new[]");
  295. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, ArrayDelete,
  296. "operator delete[]");
  297. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, ManVectorCtorIter,
  298. "`managed vector ctor iterator'");
  299. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, ManVectorDtorIter,
  300. "`managed vector dtor iterator'");
  301. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, EHVectorCopyCtorIter,
  302. "`EH vector copy ctor iterator'");
  303. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, EHVectorVbaseCopyCtorIter,
  304. "`EH vector vbase copy ctor iterator'");
  305. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, VectorCopyCtorIter,
  306. "`vector copy ctor iterator'");
  307. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, VectorVbaseCopyCtorIter,
  308. "`vector vbase copy constructor iterator'");
  309. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, ManVectorVbaseCopyCtorIter,
  310. "`managed vector vbase copy constructor iterator'");
  311. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, CoAwait,
  312. "operator co_await");
  313. OUTPUT_ENUM_CLASS_VALUE(IntrinsicFunctionKind, Spaceship, "operator<=>");
  314. case IntrinsicFunctionKind::MaxIntrinsic:
  315. case IntrinsicFunctionKind::None:
  316. break;
  317. }
  318. outputTemplateParameters(OS, Flags);
  319. }
  320. void LocalStaticGuardIdentifierNode::output(OutputStream &OS,
  321. OutputFlags Flags) const {
  322. if (IsThread)
  323. OS << "`local static thread guard'";
  324. else
  325. OS << "`local static guard'";
  326. if (ScopeIndex > 0)
  327. OS << "{" << ScopeIndex << "}";
  328. }
  329. void ConversionOperatorIdentifierNode::output(OutputStream &OS,
  330. OutputFlags Flags) const {
  331. OS << "operator";
  332. outputTemplateParameters(OS, Flags);
  333. OS << " ";
  334. TargetType->output(OS, Flags);
  335. }
  336. void StructorIdentifierNode::output(OutputStream &OS, OutputFlags Flags) const {
  337. if (IsDestructor)
  338. OS << "~";
  339. Class->output(OS, Flags);
  340. outputTemplateParameters(OS, Flags);
  341. }
  342. void LiteralOperatorIdentifierNode::output(OutputStream &OS,
  343. OutputFlags Flags) const {
  344. OS << "operator \"\"" << Name;
  345. outputTemplateParameters(OS, Flags);
  346. }
  347. void FunctionSignatureNode::outputPre(OutputStream &OS,
  348. OutputFlags Flags) const {
  349. if (!(Flags & OF_NoAccessSpecifier)) {
  350. if (FunctionClass & FC_Public)
  351. OS << "public: ";
  352. if (FunctionClass & FC_Protected)
  353. OS << "protected: ";
  354. if (FunctionClass & FC_Private)
  355. OS << "private: ";
  356. }
  357. if (!(Flags & OF_NoMemberType)) {
  358. if (!(FunctionClass & FC_Global)) {
  359. if (FunctionClass & FC_Static)
  360. OS << "static ";
  361. }
  362. if (FunctionClass & FC_Virtual)
  363. OS << "virtual ";
  364. if (FunctionClass & FC_ExternC)
  365. OS << "extern \"C\" ";
  366. }
  367. if (!(Flags & OF_NoReturnType) && ReturnType) {
  368. ReturnType->outputPre(OS, Flags);
  369. OS << " ";
  370. }
  371. if (!(Flags & OF_NoCallingConvention))
  372. outputCallingConvention(OS, CallConvention);
  373. }
  374. void FunctionSignatureNode::outputPost(OutputStream &OS,
  375. OutputFlags Flags) const {
  376. if (!(FunctionClass & FC_NoParameterList)) {
  377. OS << "(";
  378. if (Params)
  379. Params->output(OS, Flags);
  380. else
  381. OS << "void";
  382. if (IsVariadic) {
  383. if (OS.back() != '(')
  384. OS << ", ";
  385. OS << "...";
  386. }
  387. OS << ")";
  388. }
  389. if (Quals & Q_Const)
  390. OS << " const";
  391. if (Quals & Q_Volatile)
  392. OS << " volatile";
  393. if (Quals & Q_Restrict)
  394. OS << " __restrict";
  395. if (Quals & Q_Unaligned)
  396. OS << " __unaligned";
  397. if (IsNoexcept)
  398. OS << " noexcept";
  399. if (RefQualifier == FunctionRefQualifier::Reference)
  400. OS << " &";
  401. else if (RefQualifier == FunctionRefQualifier::RValueReference)
  402. OS << " &&";
  403. if (!(Flags & OF_NoReturnType) && ReturnType)
  404. ReturnType->outputPost(OS, Flags);
  405. }
  406. void ThunkSignatureNode::outputPre(OutputStream &OS, OutputFlags Flags) const {
  407. OS << "[thunk]: ";
  408. FunctionSignatureNode::outputPre(OS, Flags);
  409. }
  410. void ThunkSignatureNode::outputPost(OutputStream &OS, OutputFlags Flags) const {
  411. if (FunctionClass & FC_StaticThisAdjust) {
  412. OS << "`adjustor{" << ThisAdjust.StaticOffset << "}'";
  413. } else if (FunctionClass & FC_VirtualThisAdjust) {
  414. if (FunctionClass & FC_VirtualThisAdjustEx) {
  415. OS << "`vtordispex{" << ThisAdjust.VBPtrOffset << ", "
  416. << ThisAdjust.VBOffsetOffset << ", " << ThisAdjust.VtordispOffset
  417. << ", " << ThisAdjust.StaticOffset << "}'";
  418. } else {
  419. OS << "`vtordisp{" << ThisAdjust.VtordispOffset << ", "
  420. << ThisAdjust.StaticOffset << "}'";
  421. }
  422. }
  423. FunctionSignatureNode::outputPost(OS, Flags);
  424. }
  425. void PointerTypeNode::outputPre(OutputStream &OS, OutputFlags Flags) const {
  426. if (Pointee->kind() == NodeKind::FunctionSignature) {
  427. // If this is a pointer to a function, don't output the calling convention.
  428. // It needs to go inside the parentheses.
  429. const FunctionSignatureNode *Sig =
  430. static_cast<const FunctionSignatureNode *>(Pointee);
  431. Sig->outputPre(OS, OF_NoCallingConvention);
  432. } else
  433. Pointee->outputPre(OS, Flags);
  434. outputSpaceIfNecessary(OS);
  435. if (Quals & Q_Unaligned)
  436. OS << "__unaligned ";
  437. if (Pointee->kind() == NodeKind::ArrayType) {
  438. OS << "(";
  439. } else if (Pointee->kind() == NodeKind::FunctionSignature) {
  440. OS << "(";
  441. const FunctionSignatureNode *Sig =
  442. static_cast<const FunctionSignatureNode *>(Pointee);
  443. outputCallingConvention(OS, Sig->CallConvention);
  444. OS << " ";
  445. }
  446. if (ClassParent) {
  447. ClassParent->output(OS, Flags);
  448. OS << "::";
  449. }
  450. switch (Affinity) {
  451. case PointerAffinity::Pointer:
  452. OS << "*";
  453. break;
  454. case PointerAffinity::Reference:
  455. OS << "&";
  456. break;
  457. case PointerAffinity::RValueReference:
  458. OS << "&&";
  459. break;
  460. default:
  461. assert(false);
  462. }
  463. outputQualifiers(OS, Quals, false, false);
  464. }
  465. void PointerTypeNode::outputPost(OutputStream &OS, OutputFlags Flags) const {
  466. if (Pointee->kind() == NodeKind::ArrayType ||
  467. Pointee->kind() == NodeKind::FunctionSignature)
  468. OS << ")";
  469. Pointee->outputPost(OS, Flags);
  470. }
  471. void TagTypeNode::outputPre(OutputStream &OS, OutputFlags Flags) const {
  472. if (!(Flags & OF_NoTagSpecifier)) {
  473. switch (Tag) {
  474. OUTPUT_ENUM_CLASS_VALUE(TagKind, Class, "class");
  475. OUTPUT_ENUM_CLASS_VALUE(TagKind, Struct, "struct");
  476. OUTPUT_ENUM_CLASS_VALUE(TagKind, Union, "union");
  477. OUTPUT_ENUM_CLASS_VALUE(TagKind, Enum, "enum");
  478. }
  479. OS << " ";
  480. }
  481. QualifiedName->output(OS, Flags);
  482. outputQualifiers(OS, Quals, true, false);
  483. }
  484. void TagTypeNode::outputPost(OutputStream &OS, OutputFlags Flags) const {}
  485. void ArrayTypeNode::outputPre(OutputStream &OS, OutputFlags Flags) const {
  486. ElementType->outputPre(OS, Flags);
  487. outputQualifiers(OS, Quals, true, false);
  488. }
  489. void ArrayTypeNode::outputOneDimension(OutputStream &OS, OutputFlags Flags,
  490. Node *N) const {
  491. assert(N->kind() == NodeKind::IntegerLiteral);
  492. IntegerLiteralNode *ILN = static_cast<IntegerLiteralNode *>(N);
  493. if (ILN->Value != 0)
  494. ILN->output(OS, Flags);
  495. }
  496. void ArrayTypeNode::outputDimensionsImpl(OutputStream &OS,
  497. OutputFlags Flags) const {
  498. if (Dimensions->Count == 0)
  499. return;
  500. outputOneDimension(OS, Flags, Dimensions->Nodes[0]);
  501. for (size_t I = 1; I < Dimensions->Count; ++I) {
  502. OS << "][";
  503. outputOneDimension(OS, Flags, Dimensions->Nodes[I]);
  504. }
  505. }
  506. void ArrayTypeNode::outputPost(OutputStream &OS, OutputFlags Flags) const {
  507. OS << "[";
  508. outputDimensionsImpl(OS, Flags);
  509. OS << "]";
  510. ElementType->outputPost(OS, Flags);
  511. }
  512. void SymbolNode::output(OutputStream &OS, OutputFlags Flags) const {
  513. Name->output(OS, Flags);
  514. }
  515. void FunctionSymbolNode::output(OutputStream &OS, OutputFlags Flags) const {
  516. Signature->outputPre(OS, Flags);
  517. outputSpaceIfNecessary(OS);
  518. Name->output(OS, Flags);
  519. Signature->outputPost(OS, Flags);
  520. }
  521. void VariableSymbolNode::output(OutputStream &OS, OutputFlags Flags) const {
  522. const char *AccessSpec = nullptr;
  523. bool IsStatic = true;
  524. switch (SC) {
  525. case StorageClass::PrivateStatic:
  526. AccessSpec = "private";
  527. break;
  528. case StorageClass::PublicStatic:
  529. AccessSpec = "public";
  530. break;
  531. case StorageClass::ProtectedStatic:
  532. AccessSpec = "protected";
  533. break;
  534. default:
  535. IsStatic = false;
  536. break;
  537. }
  538. if (!(Flags & OF_NoAccessSpecifier) && AccessSpec)
  539. OS << AccessSpec << ": ";
  540. if (!(Flags & OF_NoMemberType) && IsStatic)
  541. OS << "static ";
  542. if (Type) {
  543. Type->outputPre(OS, Flags);
  544. outputSpaceIfNecessary(OS);
  545. }
  546. Name->output(OS, Flags);
  547. if (Type)
  548. Type->outputPost(OS, Flags);
  549. }
  550. void CustomTypeNode::outputPre(OutputStream &OS, OutputFlags Flags) const {
  551. Identifier->output(OS, Flags);
  552. }
  553. void CustomTypeNode::outputPost(OutputStream &OS, OutputFlags Flags) const {}
  554. void QualifiedNameNode::output(OutputStream &OS, OutputFlags Flags) const {
  555. Components->output(OS, Flags, "::");
  556. }
  557. void RttiBaseClassDescriptorNode::output(OutputStream &OS,
  558. OutputFlags Flags) const {
  559. OS << "`RTTI Base Class Descriptor at (";
  560. OS << NVOffset << ", " << VBPtrOffset << ", " << VBTableOffset << ", "
  561. << this->Flags;
  562. OS << ")'";
  563. }
  564. void LocalStaticGuardVariableNode::output(OutputStream &OS,
  565. OutputFlags Flags) const {
  566. Name->output(OS, Flags);
  567. }
  568. void VcallThunkIdentifierNode::output(OutputStream &OS,
  569. OutputFlags Flags) const {
  570. OS << "`vcall'{" << OffsetInVTable << ", {flat}}";
  571. }
  572. void SpecialTableSymbolNode::output(OutputStream &OS, OutputFlags Flags) const {
  573. outputQualifiers(OS, Quals, false, true);
  574. Name->output(OS, Flags);
  575. if (TargetName) {
  576. OS << "{for `";
  577. TargetName->output(OS, Flags);
  578. OS << "'}";
  579. }
  580. }