BitcodeReader.cpp 130 KB

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  1. //===- BitcodeReader.cpp - Internal BitcodeReader implementation ----------===//
  2. //
  3. // The LLVM Compiler Infrastructure
  4. //
  5. // This file is distributed under the University of Illinois Open Source
  6. // License. See LICENSE.TXT for details.
  7. //
  8. //===----------------------------------------------------------------------===//
  9. #include "llvm/Bitcode/ReaderWriter.h"
  10. #include "BitcodeReader.h"
  11. #include "llvm/ADT/SmallString.h"
  12. #include "llvm/ADT/SmallVector.h"
  13. #include "llvm/Bitcode/LLVMBitCodes.h"
  14. #include "llvm/IR/AutoUpgrade.h"
  15. #include "llvm/IR/Constants.h"
  16. #include "llvm/IR/DerivedTypes.h"
  17. #include "llvm/IR/InlineAsm.h"
  18. #include "llvm/IR/IntrinsicInst.h"
  19. #include "llvm/IR/LLVMContext.h"
  20. #include "llvm/IR/Module.h"
  21. #include "llvm/IR/OperandTraits.h"
  22. #include "llvm/IR/Operator.h"
  23. #include "llvm/Support/DataStream.h"
  24. #include "llvm/Support/MathExtras.h"
  25. #include "llvm/Support/MemoryBuffer.h"
  26. #include "llvm/Support/raw_ostream.h"
  27. #include "llvm/Support/ManagedStatic.h"
  28. using namespace llvm;
  29. enum {
  30. SWITCH_INST_MAGIC = 0x4B5 // May 2012 => 1205 => Hex
  31. };
  32. std::error_code BitcodeReader::materializeForwardReferencedFunctions() {
  33. if (WillMaterializeAllForwardRefs)
  34. return std::error_code();
  35. // Prevent recursion.
  36. WillMaterializeAllForwardRefs = true;
  37. while (!BasicBlockFwdRefQueue.empty()) {
  38. Function *F = BasicBlockFwdRefQueue.front();
  39. BasicBlockFwdRefQueue.pop_front();
  40. assert(F && "Expected valid function");
  41. if (!BasicBlockFwdRefs.count(F))
  42. // Already materialized.
  43. continue;
  44. // Check for a function that isn't materializable to prevent an infinite
  45. // loop. When parsing a blockaddress stored in a global variable, there
  46. // isn't a trivial way to check if a function will have a body without a
  47. // linear search through FunctionsWithBodies, so just check it here.
  48. if (!F->isMaterializable())
  49. return Error(BitcodeError::NeverResolvedFunctionFromBlockAddress);
  50. // Try to materialize F.
  51. if (std::error_code EC = materialize(F))
  52. return EC;
  53. }
  54. assert(BasicBlockFwdRefs.empty() && "Function missing from queue");
  55. // Reset state.
  56. WillMaterializeAllForwardRefs = false;
  57. return std::error_code();
  58. }
  59. void BitcodeReader::FreeState() {
  60. Buffer = nullptr;
  61. std::vector<Type*>().swap(TypeList);
  62. ValueList.clear();
  63. MDValueList.clear();
  64. std::vector<Comdat *>().swap(ComdatList);
  65. std::vector<AttributeSet>().swap(MAttributes);
  66. std::vector<BasicBlock*>().swap(FunctionBBs);
  67. std::vector<Function*>().swap(FunctionsWithBodies);
  68. DeferredFunctionInfo.clear();
  69. MDKindMap.clear();
  70. assert(BasicBlockFwdRefs.empty() && "Unresolved blockaddress fwd references");
  71. BasicBlockFwdRefQueue.clear();
  72. }
  73. //===----------------------------------------------------------------------===//
  74. // Helper functions to implement forward reference resolution, etc.
  75. //===----------------------------------------------------------------------===//
  76. /// ConvertToString - Convert a string from a record into an std::string, return
  77. /// true on failure.
  78. template<typename StrTy>
  79. static bool ConvertToString(ArrayRef<uint64_t> Record, unsigned Idx,
  80. StrTy &Result) {
  81. if (Idx > Record.size())
  82. return true;
  83. for (unsigned i = Idx, e = Record.size(); i != e; ++i)
  84. Result += (char)Record[i];
  85. return false;
  86. }
  87. static GlobalValue::LinkageTypes GetDecodedLinkage(unsigned Val) {
  88. switch (Val) {
  89. default: // Map unknown/new linkages to external
  90. case 0: return GlobalValue::ExternalLinkage;
  91. case 1: return GlobalValue::WeakAnyLinkage;
  92. case 2: return GlobalValue::AppendingLinkage;
  93. case 3: return GlobalValue::InternalLinkage;
  94. case 4: return GlobalValue::LinkOnceAnyLinkage;
  95. case 5: return GlobalValue::ExternalLinkage; // Obsolete DLLImportLinkage
  96. case 6: return GlobalValue::ExternalLinkage; // Obsolete DLLExportLinkage
  97. case 7: return GlobalValue::ExternalWeakLinkage;
  98. case 8: return GlobalValue::CommonLinkage;
  99. case 9: return GlobalValue::PrivateLinkage;
  100. case 10: return GlobalValue::WeakODRLinkage;
  101. case 11: return GlobalValue::LinkOnceODRLinkage;
  102. case 12: return GlobalValue::AvailableExternallyLinkage;
  103. case 13:
  104. return GlobalValue::PrivateLinkage; // Obsolete LinkerPrivateLinkage
  105. case 14:
  106. return GlobalValue::PrivateLinkage; // Obsolete LinkerPrivateWeakLinkage
  107. }
  108. }
  109. static GlobalValue::VisibilityTypes GetDecodedVisibility(unsigned Val) {
  110. switch (Val) {
  111. default: // Map unknown visibilities to default.
  112. case 0: return GlobalValue::DefaultVisibility;
  113. case 1: return GlobalValue::HiddenVisibility;
  114. case 2: return GlobalValue::ProtectedVisibility;
  115. }
  116. }
  117. static GlobalValue::DLLStorageClassTypes
  118. GetDecodedDLLStorageClass(unsigned Val) {
  119. switch (Val) {
  120. default: // Map unknown values to default.
  121. case 0: return GlobalValue::DefaultStorageClass;
  122. case 1: return GlobalValue::DLLImportStorageClass;
  123. case 2: return GlobalValue::DLLExportStorageClass;
  124. }
  125. }
  126. static GlobalVariable::ThreadLocalMode GetDecodedThreadLocalMode(unsigned Val) {
  127. switch (Val) {
  128. case 0: return GlobalVariable::NotThreadLocal;
  129. default: // Map unknown non-zero value to general dynamic.
  130. case 1: return GlobalVariable::GeneralDynamicTLSModel;
  131. case 2: return GlobalVariable::LocalDynamicTLSModel;
  132. case 3: return GlobalVariable::InitialExecTLSModel;
  133. case 4: return GlobalVariable::LocalExecTLSModel;
  134. }
  135. }
  136. static int GetDecodedCastOpcode(unsigned Val) {
  137. switch (Val) {
  138. default: return -1;
  139. case bitc::CAST_TRUNC : return Instruction::Trunc;
  140. case bitc::CAST_ZEXT : return Instruction::ZExt;
  141. case bitc::CAST_SEXT : return Instruction::SExt;
  142. case bitc::CAST_FPTOUI : return Instruction::FPToUI;
  143. case bitc::CAST_FPTOSI : return Instruction::FPToSI;
  144. case bitc::CAST_UITOFP : return Instruction::UIToFP;
  145. case bitc::CAST_SITOFP : return Instruction::SIToFP;
  146. case bitc::CAST_FPTRUNC : return Instruction::FPTrunc;
  147. case bitc::CAST_FPEXT : return Instruction::FPExt;
  148. case bitc::CAST_PTRTOINT: return Instruction::PtrToInt;
  149. case bitc::CAST_INTTOPTR: return Instruction::IntToPtr;
  150. case bitc::CAST_BITCAST : return Instruction::BitCast;
  151. case bitc::CAST_ADDRSPACECAST: return Instruction::AddrSpaceCast;
  152. }
  153. }
  154. static int GetDecodedBinaryOpcode(unsigned Val, Type *Ty) {
  155. switch (Val) {
  156. default: return -1;
  157. case bitc::BINOP_ADD:
  158. return Ty->isFPOrFPVectorTy() ? Instruction::FAdd : Instruction::Add;
  159. case bitc::BINOP_SUB:
  160. return Ty->isFPOrFPVectorTy() ? Instruction::FSub : Instruction::Sub;
  161. case bitc::BINOP_MUL:
  162. return Ty->isFPOrFPVectorTy() ? Instruction::FMul : Instruction::Mul;
  163. case bitc::BINOP_UDIV: return Instruction::UDiv;
  164. case bitc::BINOP_SDIV:
  165. return Ty->isFPOrFPVectorTy() ? Instruction::FDiv : Instruction::SDiv;
  166. case bitc::BINOP_UREM: return Instruction::URem;
  167. case bitc::BINOP_SREM:
  168. return Ty->isFPOrFPVectorTy() ? Instruction::FRem : Instruction::SRem;
  169. case bitc::BINOP_SHL: return Instruction::Shl;
  170. case bitc::BINOP_LSHR: return Instruction::LShr;
  171. case bitc::BINOP_ASHR: return Instruction::AShr;
  172. case bitc::BINOP_AND: return Instruction::And;
  173. case bitc::BINOP_OR: return Instruction::Or;
  174. case bitc::BINOP_XOR: return Instruction::Xor;
  175. }
  176. }
  177. static AtomicRMWInst::BinOp GetDecodedRMWOperation(unsigned Val) {
  178. switch (Val) {
  179. default: return AtomicRMWInst::BAD_BINOP;
  180. case bitc::RMW_XCHG: return AtomicRMWInst::Xchg;
  181. case bitc::RMW_ADD: return AtomicRMWInst::Add;
  182. case bitc::RMW_SUB: return AtomicRMWInst::Sub;
  183. case bitc::RMW_AND: return AtomicRMWInst::And;
  184. case bitc::RMW_NAND: return AtomicRMWInst::Nand;
  185. case bitc::RMW_OR: return AtomicRMWInst::Or;
  186. case bitc::RMW_XOR: return AtomicRMWInst::Xor;
  187. case bitc::RMW_MAX: return AtomicRMWInst::Max;
  188. case bitc::RMW_MIN: return AtomicRMWInst::Min;
  189. case bitc::RMW_UMAX: return AtomicRMWInst::UMax;
  190. case bitc::RMW_UMIN: return AtomicRMWInst::UMin;
  191. }
  192. }
  193. static AtomicOrdering GetDecodedOrdering(unsigned Val) {
  194. switch (Val) {
  195. case bitc::ORDERING_NOTATOMIC: return NotAtomic;
  196. case bitc::ORDERING_UNORDERED: return Unordered;
  197. case bitc::ORDERING_MONOTONIC: return Monotonic;
  198. case bitc::ORDERING_ACQUIRE: return Acquire;
  199. case bitc::ORDERING_RELEASE: return Release;
  200. case bitc::ORDERING_ACQREL: return AcquireRelease;
  201. default: // Map unknown orderings to sequentially-consistent.
  202. case bitc::ORDERING_SEQCST: return SequentiallyConsistent;
  203. }
  204. }
  205. static SynchronizationScope GetDecodedSynchScope(unsigned Val) {
  206. switch (Val) {
  207. case bitc::SYNCHSCOPE_SINGLETHREAD: return SingleThread;
  208. default: // Map unknown scopes to cross-thread.
  209. case bitc::SYNCHSCOPE_CROSSTHREAD: return CrossThread;
  210. }
  211. }
  212. static Comdat::SelectionKind getDecodedComdatSelectionKind(unsigned Val) {
  213. switch (Val) {
  214. default: // Map unknown selection kinds to any.
  215. case bitc::COMDAT_SELECTION_KIND_ANY:
  216. return Comdat::Any;
  217. case bitc::COMDAT_SELECTION_KIND_EXACT_MATCH:
  218. return Comdat::ExactMatch;
  219. case bitc::COMDAT_SELECTION_KIND_LARGEST:
  220. return Comdat::Largest;
  221. case bitc::COMDAT_SELECTION_KIND_NO_DUPLICATES:
  222. return Comdat::NoDuplicates;
  223. case bitc::COMDAT_SELECTION_KIND_SAME_SIZE:
  224. return Comdat::SameSize;
  225. }
  226. }
  227. static void UpgradeDLLImportExportLinkage(llvm::GlobalValue *GV, unsigned Val) {
  228. switch (Val) {
  229. case 5: GV->setDLLStorageClass(GlobalValue::DLLImportStorageClass); break;
  230. case 6: GV->setDLLStorageClass(GlobalValue::DLLExportStorageClass); break;
  231. }
  232. }
  233. namespace llvm {
  234. namespace {
  235. /// @brief A class for maintaining the slot number definition
  236. /// as a placeholder for the actual definition for forward constants defs.
  237. class ConstantPlaceHolder : public ConstantExpr {
  238. void operator=(const ConstantPlaceHolder &) LLVM_DELETED_FUNCTION;
  239. public:
  240. // allocate space for exactly one operand
  241. void *operator new(size_t s) {
  242. return User::operator new(s, 1);
  243. }
  244. explicit ConstantPlaceHolder(Type *Ty, LLVMContext& Context)
  245. : ConstantExpr(Ty, Instruction::UserOp1, &Op<0>(), 1) {
  246. Op<0>() = UndefValue::get(Type::getInt32Ty(Context));
  247. }
  248. /// @brief Methods to support type inquiry through isa, cast, and dyn_cast.
  249. static bool classof(const Value *V) {
  250. return isa<ConstantExpr>(V) &&
  251. cast<ConstantExpr>(V)->getOpcode() == Instruction::UserOp1;
  252. }
  253. /// Provide fast operand accessors
  254. DECLARE_TRANSPARENT_OPERAND_ACCESSORS(Value);
  255. };
  256. }
  257. // FIXME: can we inherit this from ConstantExpr?
  258. template <>
  259. struct OperandTraits<ConstantPlaceHolder> :
  260. public FixedNumOperandTraits<ConstantPlaceHolder, 1> {
  261. };
  262. DEFINE_TRANSPARENT_OPERAND_ACCESSORS(ConstantPlaceHolder, Value)
  263. }
  264. void BitcodeReaderValueList::AssignValue(Value *V, unsigned Idx) {
  265. if (Idx == size()) {
  266. push_back(V);
  267. return;
  268. }
  269. if (Idx >= size())
  270. resize(Idx+1);
  271. WeakVH &OldV = ValuePtrs[Idx];
  272. if (!OldV) {
  273. OldV = V;
  274. return;
  275. }
  276. // Handle constants and non-constants (e.g. instrs) differently for
  277. // efficiency.
  278. if (Constant *PHC = dyn_cast<Constant>(&*OldV)) {
  279. ResolveConstants.push_back(std::make_pair(PHC, Idx));
  280. OldV = V;
  281. } else {
  282. // If there was a forward reference to this value, replace it.
  283. Value *PrevVal = OldV;
  284. OldV->replaceAllUsesWith(V);
  285. delete PrevVal;
  286. }
  287. }
  288. Constant *BitcodeReaderValueList::getConstantFwdRef(unsigned Idx,
  289. Type *Ty) {
  290. if (Idx >= size())
  291. resize(Idx + 1);
  292. if (Value *V = ValuePtrs[Idx]) {
  293. assert(Ty == V->getType() && "Type mismatch in constant table!");
  294. return cast<Constant>(V);
  295. }
  296. // Create and return a placeholder, which will later be RAUW'd.
  297. Constant *C = new ConstantPlaceHolder(Ty, Context);
  298. ValuePtrs[Idx] = C;
  299. return C;
  300. }
  301. Value *BitcodeReaderValueList::getValueFwdRef(unsigned Idx, Type *Ty) {
  302. if (Idx >= size())
  303. resize(Idx + 1);
  304. if (Value *V = ValuePtrs[Idx]) {
  305. assert((!Ty || Ty == V->getType()) && "Type mismatch in value table!");
  306. return V;
  307. }
  308. // No type specified, must be invalid reference.
  309. if (!Ty) return nullptr;
  310. // Create and return a placeholder, which will later be RAUW'd.
  311. Value *V = new Argument(Ty);
  312. ValuePtrs[Idx] = V;
  313. return V;
  314. }
  315. /// ResolveConstantForwardRefs - Once all constants are read, this method bulk
  316. /// resolves any forward references. The idea behind this is that we sometimes
  317. /// get constants (such as large arrays) which reference *many* forward ref
  318. /// constants. Replacing each of these causes a lot of thrashing when
  319. /// building/reuniquing the constant. Instead of doing this, we look at all the
  320. /// uses and rewrite all the place holders at once for any constant that uses
  321. /// a placeholder.
  322. void BitcodeReaderValueList::ResolveConstantForwardRefs() {
  323. // Sort the values by-pointer so that they are efficient to look up with a
  324. // binary search.
  325. std::sort(ResolveConstants.begin(), ResolveConstants.end());
  326. SmallVector<Constant*, 64> NewOps;
  327. while (!ResolveConstants.empty()) {
  328. Value *RealVal = operator[](ResolveConstants.back().second);
  329. Constant *Placeholder = ResolveConstants.back().first;
  330. ResolveConstants.pop_back();
  331. // Loop over all users of the placeholder, updating them to reference the
  332. // new value. If they reference more than one placeholder, update them all
  333. // at once.
  334. while (!Placeholder->use_empty()) {
  335. auto UI = Placeholder->user_begin();
  336. User *U = *UI;
  337. // If the using object isn't uniqued, just update the operands. This
  338. // handles instructions and initializers for global variables.
  339. if (!isa<Constant>(U) || isa<GlobalValue>(U)) {
  340. UI.getUse().set(RealVal);
  341. continue;
  342. }
  343. // Otherwise, we have a constant that uses the placeholder. Replace that
  344. // constant with a new constant that has *all* placeholder uses updated.
  345. Constant *UserC = cast<Constant>(U);
  346. for (User::op_iterator I = UserC->op_begin(), E = UserC->op_end();
  347. I != E; ++I) {
  348. Value *NewOp;
  349. if (!isa<ConstantPlaceHolder>(*I)) {
  350. // Not a placeholder reference.
  351. NewOp = *I;
  352. } else if (*I == Placeholder) {
  353. // Common case is that it just references this one placeholder.
  354. NewOp = RealVal;
  355. } else {
  356. // Otherwise, look up the placeholder in ResolveConstants.
  357. ResolveConstantsTy::iterator It =
  358. std::lower_bound(ResolveConstants.begin(), ResolveConstants.end(),
  359. std::pair<Constant*, unsigned>(cast<Constant>(*I),
  360. 0));
  361. assert(It != ResolveConstants.end() && It->first == *I);
  362. NewOp = operator[](It->second);
  363. }
  364. NewOps.push_back(cast<Constant>(NewOp));
  365. }
  366. // Make the new constant.
  367. Constant *NewC;
  368. if (ConstantArray *UserCA = dyn_cast<ConstantArray>(UserC)) {
  369. NewC = ConstantArray::get(UserCA->getType(), NewOps);
  370. } else if (ConstantStruct *UserCS = dyn_cast<ConstantStruct>(UserC)) {
  371. NewC = ConstantStruct::get(UserCS->getType(), NewOps);
  372. } else if (isa<ConstantVector>(UserC)) {
  373. NewC = ConstantVector::get(NewOps);
  374. } else {
  375. assert(isa<ConstantExpr>(UserC) && "Must be a ConstantExpr.");
  376. NewC = cast<ConstantExpr>(UserC)->getWithOperands(NewOps);
  377. }
  378. UserC->replaceAllUsesWith(NewC);
  379. UserC->destroyConstant();
  380. NewOps.clear();
  381. }
  382. // Update all ValueHandles, they should be the only users at this point.
  383. Placeholder->replaceAllUsesWith(RealVal);
  384. delete Placeholder;
  385. }
  386. }
  387. void BitcodeReaderMDValueList::AssignValue(Metadata *MD, unsigned Idx) {
  388. if (Idx == size()) {
  389. push_back(MD);
  390. return;
  391. }
  392. if (Idx >= size())
  393. resize(Idx+1);
  394. TrackingMDRef &OldMD = MDValuePtrs[Idx];
  395. if (!OldMD) {
  396. OldMD.reset(MD);
  397. return;
  398. }
  399. // If there was a forward reference to this value, replace it.
  400. MDNodeFwdDecl *PrevMD = cast<MDNodeFwdDecl>(OldMD.get());
  401. PrevMD->replaceAllUsesWith(MD);
  402. MDNode::deleteTemporary(PrevMD);
  403. --NumFwdRefs;
  404. }
  405. Metadata *BitcodeReaderMDValueList::getValueFwdRef(unsigned Idx) {
  406. if (Idx >= size())
  407. resize(Idx + 1);
  408. if (Metadata *MD = MDValuePtrs[Idx])
  409. return MD;
  410. // Create and return a placeholder, which will later be RAUW'd.
  411. AnyFwdRefs = true;
  412. ++NumFwdRefs;
  413. Metadata *MD = MDNode::getTemporary(Context, None);
  414. MDValuePtrs[Idx].reset(MD);
  415. return MD;
  416. }
  417. void BitcodeReaderMDValueList::tryToResolveCycles() {
  418. if (!AnyFwdRefs)
  419. // Nothing to do.
  420. return;
  421. if (NumFwdRefs)
  422. // Still forward references... can't resolve cycles.
  423. return;
  424. // Resolve any cycles.
  425. for (auto &MD : MDValuePtrs) {
  426. assert(!(MD && isa<MDNodeFwdDecl>(MD)) && "Unexpected forward reference");
  427. if (auto *G = dyn_cast_or_null<GenericMDNode>(MD))
  428. G->resolveCycles();
  429. }
  430. }
  431. Type *BitcodeReader::getTypeByID(unsigned ID) {
  432. // The type table size is always specified correctly.
  433. if (ID >= TypeList.size())
  434. return nullptr;
  435. if (Type *Ty = TypeList[ID])
  436. return Ty;
  437. // If we have a forward reference, the only possible case is when it is to a
  438. // named struct. Just create a placeholder for now.
  439. return TypeList[ID] = createIdentifiedStructType(Context);
  440. }
  441. StructType *BitcodeReader::createIdentifiedStructType(LLVMContext &Context,
  442. StringRef Name) {
  443. auto *Ret = StructType::create(Context, Name);
  444. IdentifiedStructTypes.push_back(Ret);
  445. return Ret;
  446. }
  447. StructType *BitcodeReader::createIdentifiedStructType(LLVMContext &Context) {
  448. auto *Ret = StructType::create(Context);
  449. IdentifiedStructTypes.push_back(Ret);
  450. return Ret;
  451. }
  452. //===----------------------------------------------------------------------===//
  453. // Functions for parsing blocks from the bitcode file
  454. //===----------------------------------------------------------------------===//
  455. /// \brief This fills an AttrBuilder object with the LLVM attributes that have
  456. /// been decoded from the given integer. This function must stay in sync with
  457. /// 'encodeLLVMAttributesForBitcode'.
  458. static void decodeLLVMAttributesForBitcode(AttrBuilder &B,
  459. uint64_t EncodedAttrs) {
  460. // FIXME: Remove in 4.0.
  461. // The alignment is stored as a 16-bit raw value from bits 31--16. We shift
  462. // the bits above 31 down by 11 bits.
  463. unsigned Alignment = (EncodedAttrs & (0xffffULL << 16)) >> 16;
  464. assert((!Alignment || isPowerOf2_32(Alignment)) &&
  465. "Alignment must be a power of two.");
  466. if (Alignment)
  467. B.addAlignmentAttr(Alignment);
  468. B.addRawValue(((EncodedAttrs & (0xfffffULL << 32)) >> 11) |
  469. (EncodedAttrs & 0xffff));
  470. }
  471. std::error_code BitcodeReader::ParseAttributeBlock() {
  472. if (Stream.EnterSubBlock(bitc::PARAMATTR_BLOCK_ID))
  473. return Error(BitcodeError::InvalidRecord);
  474. if (!MAttributes.empty())
  475. return Error(BitcodeError::InvalidMultipleBlocks);
  476. SmallVector<uint64_t, 64> Record;
  477. SmallVector<AttributeSet, 8> Attrs;
  478. // Read all the records.
  479. while (1) {
  480. BitstreamEntry Entry = Stream.advanceSkippingSubblocks();
  481. switch (Entry.Kind) {
  482. case BitstreamEntry::SubBlock: // Handled for us already.
  483. case BitstreamEntry::Error:
  484. return Error(BitcodeError::MalformedBlock);
  485. case BitstreamEntry::EndBlock:
  486. return std::error_code();
  487. case BitstreamEntry::Record:
  488. // The interesting case.
  489. break;
  490. }
  491. // Read a record.
  492. Record.clear();
  493. switch (Stream.readRecord(Entry.ID, Record)) {
  494. default: // Default behavior: ignore.
  495. break;
  496. case bitc::PARAMATTR_CODE_ENTRY_OLD: { // ENTRY: [paramidx0, attr0, ...]
  497. // FIXME: Remove in 4.0.
  498. if (Record.size() & 1)
  499. return Error(BitcodeError::InvalidRecord);
  500. for (unsigned i = 0, e = Record.size(); i != e; i += 2) {
  501. AttrBuilder B;
  502. decodeLLVMAttributesForBitcode(B, Record[i+1]);
  503. Attrs.push_back(AttributeSet::get(Context, Record[i], B));
  504. }
  505. MAttributes.push_back(AttributeSet::get(Context, Attrs));
  506. Attrs.clear();
  507. break;
  508. }
  509. case bitc::PARAMATTR_CODE_ENTRY: { // ENTRY: [attrgrp0, attrgrp1, ...]
  510. for (unsigned i = 0, e = Record.size(); i != e; ++i)
  511. Attrs.push_back(MAttributeGroups[Record[i]]);
  512. MAttributes.push_back(AttributeSet::get(Context, Attrs));
  513. Attrs.clear();
  514. break;
  515. }
  516. }
  517. }
  518. }
  519. // Returns Attribute::None on unrecognized codes.
  520. static Attribute::AttrKind GetAttrFromCode(uint64_t Code) {
  521. switch (Code) {
  522. default:
  523. return Attribute::None;
  524. case bitc::ATTR_KIND_ALIGNMENT:
  525. return Attribute::Alignment;
  526. case bitc::ATTR_KIND_ALWAYS_INLINE:
  527. return Attribute::AlwaysInline;
  528. case bitc::ATTR_KIND_BUILTIN:
  529. return Attribute::Builtin;
  530. case bitc::ATTR_KIND_BY_VAL:
  531. return Attribute::ByVal;
  532. case bitc::ATTR_KIND_IN_ALLOCA:
  533. return Attribute::InAlloca;
  534. case bitc::ATTR_KIND_COLD:
  535. return Attribute::Cold;
  536. case bitc::ATTR_KIND_INLINE_HINT:
  537. return Attribute::InlineHint;
  538. case bitc::ATTR_KIND_IN_REG:
  539. return Attribute::InReg;
  540. case bitc::ATTR_KIND_JUMP_TABLE:
  541. return Attribute::JumpTable;
  542. case bitc::ATTR_KIND_MIN_SIZE:
  543. return Attribute::MinSize;
  544. case bitc::ATTR_KIND_NAKED:
  545. return Attribute::Naked;
  546. case bitc::ATTR_KIND_NEST:
  547. return Attribute::Nest;
  548. case bitc::ATTR_KIND_NO_ALIAS:
  549. return Attribute::NoAlias;
  550. case bitc::ATTR_KIND_NO_BUILTIN:
  551. return Attribute::NoBuiltin;
  552. case bitc::ATTR_KIND_NO_CAPTURE:
  553. return Attribute::NoCapture;
  554. case bitc::ATTR_KIND_NO_DUPLICATE:
  555. return Attribute::NoDuplicate;
  556. case bitc::ATTR_KIND_NO_IMPLICIT_FLOAT:
  557. return Attribute::NoImplicitFloat;
  558. case bitc::ATTR_KIND_NO_INLINE:
  559. return Attribute::NoInline;
  560. case bitc::ATTR_KIND_NON_LAZY_BIND:
  561. return Attribute::NonLazyBind;
  562. case bitc::ATTR_KIND_NON_NULL:
  563. return Attribute::NonNull;
  564. case bitc::ATTR_KIND_DEREFERENCEABLE:
  565. return Attribute::Dereferenceable;
  566. case bitc::ATTR_KIND_NO_RED_ZONE:
  567. return Attribute::NoRedZone;
  568. case bitc::ATTR_KIND_NO_RETURN:
  569. return Attribute::NoReturn;
  570. case bitc::ATTR_KIND_NO_UNWIND:
  571. return Attribute::NoUnwind;
  572. case bitc::ATTR_KIND_OPTIMIZE_FOR_SIZE:
  573. return Attribute::OptimizeForSize;
  574. case bitc::ATTR_KIND_OPTIMIZE_NONE:
  575. return Attribute::OptimizeNone;
  576. case bitc::ATTR_KIND_READ_NONE:
  577. return Attribute::ReadNone;
  578. case bitc::ATTR_KIND_READ_ONLY:
  579. return Attribute::ReadOnly;
  580. case bitc::ATTR_KIND_RETURNED:
  581. return Attribute::Returned;
  582. case bitc::ATTR_KIND_RETURNS_TWICE:
  583. return Attribute::ReturnsTwice;
  584. case bitc::ATTR_KIND_S_EXT:
  585. return Attribute::SExt;
  586. case bitc::ATTR_KIND_STACK_ALIGNMENT:
  587. return Attribute::StackAlignment;
  588. case bitc::ATTR_KIND_STACK_PROTECT:
  589. return Attribute::StackProtect;
  590. case bitc::ATTR_KIND_STACK_PROTECT_REQ:
  591. return Attribute::StackProtectReq;
  592. case bitc::ATTR_KIND_STACK_PROTECT_STRONG:
  593. return Attribute::StackProtectStrong;
  594. case bitc::ATTR_KIND_STRUCT_RET:
  595. return Attribute::StructRet;
  596. case bitc::ATTR_KIND_SANITIZE_ADDRESS:
  597. return Attribute::SanitizeAddress;
  598. case bitc::ATTR_KIND_SANITIZE_THREAD:
  599. return Attribute::SanitizeThread;
  600. case bitc::ATTR_KIND_SANITIZE_MEMORY:
  601. return Attribute::SanitizeMemory;
  602. case bitc::ATTR_KIND_UW_TABLE:
  603. return Attribute::UWTable;
  604. case bitc::ATTR_KIND_Z_EXT:
  605. return Attribute::ZExt;
  606. }
  607. }
  608. std::error_code BitcodeReader::ParseAttrKind(uint64_t Code,
  609. Attribute::AttrKind *Kind) {
  610. *Kind = GetAttrFromCode(Code);
  611. if (*Kind == Attribute::None)
  612. return Error(BitcodeError::InvalidValue);
  613. return std::error_code();
  614. }
  615. std::error_code BitcodeReader::ParseAttributeGroupBlock() {
  616. if (Stream.EnterSubBlock(bitc::PARAMATTR_GROUP_BLOCK_ID))
  617. return Error(BitcodeError::InvalidRecord);
  618. if (!MAttributeGroups.empty())
  619. return Error(BitcodeError::InvalidMultipleBlocks);
  620. SmallVector<uint64_t, 64> Record;
  621. // Read all the records.
  622. while (1) {
  623. BitstreamEntry Entry = Stream.advanceSkippingSubblocks();
  624. switch (Entry.Kind) {
  625. case BitstreamEntry::SubBlock: // Handled for us already.
  626. case BitstreamEntry::Error:
  627. return Error(BitcodeError::MalformedBlock);
  628. case BitstreamEntry::EndBlock:
  629. return std::error_code();
  630. case BitstreamEntry::Record:
  631. // The interesting case.
  632. break;
  633. }
  634. // Read a record.
  635. Record.clear();
  636. switch (Stream.readRecord(Entry.ID, Record)) {
  637. default: // Default behavior: ignore.
  638. break;
  639. case bitc::PARAMATTR_GRP_CODE_ENTRY: { // ENTRY: [grpid, idx, a0, a1, ...]
  640. if (Record.size() < 3)
  641. return Error(BitcodeError::InvalidRecord);
  642. uint64_t GrpID = Record[0];
  643. uint64_t Idx = Record[1]; // Index of the object this attribute refers to.
  644. AttrBuilder B;
  645. for (unsigned i = 2, e = Record.size(); i != e; ++i) {
  646. if (Record[i] == 0) { // Enum attribute
  647. Attribute::AttrKind Kind;
  648. if (std::error_code EC = ParseAttrKind(Record[++i], &Kind))
  649. return EC;
  650. B.addAttribute(Kind);
  651. } else if (Record[i] == 1) { // Integer attribute
  652. Attribute::AttrKind Kind;
  653. if (std::error_code EC = ParseAttrKind(Record[++i], &Kind))
  654. return EC;
  655. if (Kind == Attribute::Alignment)
  656. B.addAlignmentAttr(Record[++i]);
  657. else if (Kind == Attribute::StackAlignment)
  658. B.addStackAlignmentAttr(Record[++i]);
  659. else if (Kind == Attribute::Dereferenceable)
  660. B.addDereferenceableAttr(Record[++i]);
  661. } else { // String attribute
  662. assert((Record[i] == 3 || Record[i] == 4) &&
  663. "Invalid attribute group entry");
  664. bool HasValue = (Record[i++] == 4);
  665. SmallString<64> KindStr;
  666. SmallString<64> ValStr;
  667. while (Record[i] != 0 && i != e)
  668. KindStr += Record[i++];
  669. assert(Record[i] == 0 && "Kind string not null terminated");
  670. if (HasValue) {
  671. // Has a value associated with it.
  672. ++i; // Skip the '0' that terminates the "kind" string.
  673. while (Record[i] != 0 && i != e)
  674. ValStr += Record[i++];
  675. assert(Record[i] == 0 && "Value string not null terminated");
  676. }
  677. B.addAttribute(KindStr.str(), ValStr.str());
  678. }
  679. }
  680. MAttributeGroups[GrpID] = AttributeSet::get(Context, Idx, B);
  681. break;
  682. }
  683. }
  684. }
  685. }
  686. std::error_code BitcodeReader::ParseTypeTable() {
  687. if (Stream.EnterSubBlock(bitc::TYPE_BLOCK_ID_NEW))
  688. return Error(BitcodeError::InvalidRecord);
  689. return ParseTypeTableBody();
  690. }
  691. std::error_code BitcodeReader::ParseTypeTableBody() {
  692. if (!TypeList.empty())
  693. return Error(BitcodeError::InvalidMultipleBlocks);
  694. SmallVector<uint64_t, 64> Record;
  695. unsigned NumRecords = 0;
  696. SmallString<64> TypeName;
  697. // Read all the records for this type table.
  698. while (1) {
  699. BitstreamEntry Entry = Stream.advanceSkippingSubblocks();
  700. switch (Entry.Kind) {
  701. case BitstreamEntry::SubBlock: // Handled for us already.
  702. case BitstreamEntry::Error:
  703. return Error(BitcodeError::MalformedBlock);
  704. case BitstreamEntry::EndBlock:
  705. if (NumRecords != TypeList.size())
  706. return Error(BitcodeError::MalformedBlock);
  707. return std::error_code();
  708. case BitstreamEntry::Record:
  709. // The interesting case.
  710. break;
  711. }
  712. // Read a record.
  713. Record.clear();
  714. Type *ResultTy = nullptr;
  715. switch (Stream.readRecord(Entry.ID, Record)) {
  716. default:
  717. return Error(BitcodeError::InvalidValue);
  718. case bitc::TYPE_CODE_NUMENTRY: // TYPE_CODE_NUMENTRY: [numentries]
  719. // TYPE_CODE_NUMENTRY contains a count of the number of types in the
  720. // type list. This allows us to reserve space.
  721. if (Record.size() < 1)
  722. return Error(BitcodeError::InvalidRecord);
  723. TypeList.resize(Record[0]);
  724. continue;
  725. case bitc::TYPE_CODE_VOID: // VOID
  726. ResultTy = Type::getVoidTy(Context);
  727. break;
  728. case bitc::TYPE_CODE_HALF: // HALF
  729. ResultTy = Type::getHalfTy(Context);
  730. break;
  731. case bitc::TYPE_CODE_FLOAT: // FLOAT
  732. ResultTy = Type::getFloatTy(Context);
  733. break;
  734. case bitc::TYPE_CODE_DOUBLE: // DOUBLE
  735. ResultTy = Type::getDoubleTy(Context);
  736. break;
  737. case bitc::TYPE_CODE_X86_FP80: // X86_FP80
  738. ResultTy = Type::getX86_FP80Ty(Context);
  739. break;
  740. case bitc::TYPE_CODE_FP128: // FP128
  741. ResultTy = Type::getFP128Ty(Context);
  742. break;
  743. case bitc::TYPE_CODE_PPC_FP128: // PPC_FP128
  744. ResultTy = Type::getPPC_FP128Ty(Context);
  745. break;
  746. case bitc::TYPE_CODE_LABEL: // LABEL
  747. ResultTy = Type::getLabelTy(Context);
  748. break;
  749. case bitc::TYPE_CODE_METADATA: // METADATA
  750. ResultTy = Type::getMetadataTy(Context);
  751. break;
  752. case bitc::TYPE_CODE_X86_MMX: // X86_MMX
  753. ResultTy = Type::getX86_MMXTy(Context);
  754. break;
  755. case bitc::TYPE_CODE_INTEGER: // INTEGER: [width]
  756. if (Record.size() < 1)
  757. return Error(BitcodeError::InvalidRecord);
  758. ResultTy = IntegerType::get(Context, Record[0]);
  759. break;
  760. case bitc::TYPE_CODE_POINTER: { // POINTER: [pointee type] or
  761. // [pointee type, address space]
  762. if (Record.size() < 1)
  763. return Error(BitcodeError::InvalidRecord);
  764. unsigned AddressSpace = 0;
  765. if (Record.size() == 2)
  766. AddressSpace = Record[1];
  767. ResultTy = getTypeByID(Record[0]);
  768. if (!ResultTy)
  769. return Error(BitcodeError::InvalidType);
  770. ResultTy = PointerType::get(ResultTy, AddressSpace);
  771. break;
  772. }
  773. case bitc::TYPE_CODE_FUNCTION_OLD: {
  774. // FIXME: attrid is dead, remove it in LLVM 4.0
  775. // FUNCTION: [vararg, attrid, retty, paramty x N]
  776. if (Record.size() < 3)
  777. return Error(BitcodeError::InvalidRecord);
  778. SmallVector<Type*, 8> ArgTys;
  779. for (unsigned i = 3, e = Record.size(); i != e; ++i) {
  780. if (Type *T = getTypeByID(Record[i]))
  781. ArgTys.push_back(T);
  782. else
  783. break;
  784. }
  785. ResultTy = getTypeByID(Record[2]);
  786. if (!ResultTy || ArgTys.size() < Record.size()-3)
  787. return Error(BitcodeError::InvalidType);
  788. ResultTy = FunctionType::get(ResultTy, ArgTys, Record[0]);
  789. break;
  790. }
  791. case bitc::TYPE_CODE_FUNCTION: {
  792. // FUNCTION: [vararg, retty, paramty x N]
  793. if (Record.size() < 2)
  794. return Error(BitcodeError::InvalidRecord);
  795. SmallVector<Type*, 8> ArgTys;
  796. for (unsigned i = 2, e = Record.size(); i != e; ++i) {
  797. if (Type *T = getTypeByID(Record[i]))
  798. ArgTys.push_back(T);
  799. else
  800. break;
  801. }
  802. ResultTy = getTypeByID(Record[1]);
  803. if (!ResultTy || ArgTys.size() < Record.size()-2)
  804. return Error(BitcodeError::InvalidType);
  805. ResultTy = FunctionType::get(ResultTy, ArgTys, Record[0]);
  806. break;
  807. }
  808. case bitc::TYPE_CODE_STRUCT_ANON: { // STRUCT: [ispacked, eltty x N]
  809. if (Record.size() < 1)
  810. return Error(BitcodeError::InvalidRecord);
  811. SmallVector<Type*, 8> EltTys;
  812. for (unsigned i = 1, e = Record.size(); i != e; ++i) {
  813. if (Type *T = getTypeByID(Record[i]))
  814. EltTys.push_back(T);
  815. else
  816. break;
  817. }
  818. if (EltTys.size() != Record.size()-1)
  819. return Error(BitcodeError::InvalidType);
  820. ResultTy = StructType::get(Context, EltTys, Record[0]);
  821. break;
  822. }
  823. case bitc::TYPE_CODE_STRUCT_NAME: // STRUCT_NAME: [strchr x N]
  824. if (ConvertToString(Record, 0, TypeName))
  825. return Error(BitcodeError::InvalidRecord);
  826. continue;
  827. case bitc::TYPE_CODE_STRUCT_NAMED: { // STRUCT: [ispacked, eltty x N]
  828. if (Record.size() < 1)
  829. return Error(BitcodeError::InvalidRecord);
  830. if (NumRecords >= TypeList.size())
  831. return Error(BitcodeError::InvalidTYPETable);
  832. // Check to see if this was forward referenced, if so fill in the temp.
  833. StructType *Res = cast_or_null<StructType>(TypeList[NumRecords]);
  834. if (Res) {
  835. Res->setName(TypeName);
  836. TypeList[NumRecords] = nullptr;
  837. } else // Otherwise, create a new struct.
  838. Res = createIdentifiedStructType(Context, TypeName);
  839. TypeName.clear();
  840. SmallVector<Type*, 8> EltTys;
  841. for (unsigned i = 1, e = Record.size(); i != e; ++i) {
  842. if (Type *T = getTypeByID(Record[i]))
  843. EltTys.push_back(T);
  844. else
  845. break;
  846. }
  847. if (EltTys.size() != Record.size()-1)
  848. return Error(BitcodeError::InvalidRecord);
  849. Res->setBody(EltTys, Record[0]);
  850. ResultTy = Res;
  851. break;
  852. }
  853. case bitc::TYPE_CODE_OPAQUE: { // OPAQUE: []
  854. if (Record.size() != 1)
  855. return Error(BitcodeError::InvalidRecord);
  856. if (NumRecords >= TypeList.size())
  857. return Error(BitcodeError::InvalidTYPETable);
  858. // Check to see if this was forward referenced, if so fill in the temp.
  859. StructType *Res = cast_or_null<StructType>(TypeList[NumRecords]);
  860. if (Res) {
  861. Res->setName(TypeName);
  862. TypeList[NumRecords] = nullptr;
  863. } else // Otherwise, create a new struct with no body.
  864. Res = createIdentifiedStructType(Context, TypeName);
  865. TypeName.clear();
  866. ResultTy = Res;
  867. break;
  868. }
  869. case bitc::TYPE_CODE_ARRAY: // ARRAY: [numelts, eltty]
  870. if (Record.size() < 2)
  871. return Error(BitcodeError::InvalidRecord);
  872. if ((ResultTy = getTypeByID(Record[1])))
  873. ResultTy = ArrayType::get(ResultTy, Record[0]);
  874. else
  875. return Error(BitcodeError::InvalidType);
  876. break;
  877. case bitc::TYPE_CODE_VECTOR: // VECTOR: [numelts, eltty]
  878. if (Record.size() < 2)
  879. return Error(BitcodeError::InvalidRecord);
  880. if ((ResultTy = getTypeByID(Record[1])))
  881. ResultTy = VectorType::get(ResultTy, Record[0]);
  882. else
  883. return Error(BitcodeError::InvalidType);
  884. break;
  885. }
  886. if (NumRecords >= TypeList.size())
  887. return Error(BitcodeError::InvalidTYPETable);
  888. assert(ResultTy && "Didn't read a type?");
  889. assert(!TypeList[NumRecords] && "Already read type?");
  890. TypeList[NumRecords++] = ResultTy;
  891. }
  892. }
  893. std::error_code BitcodeReader::ParseValueSymbolTable() {
  894. if (Stream.EnterSubBlock(bitc::VALUE_SYMTAB_BLOCK_ID))
  895. return Error(BitcodeError::InvalidRecord);
  896. SmallVector<uint64_t, 64> Record;
  897. // Read all the records for this value table.
  898. SmallString<128> ValueName;
  899. while (1) {
  900. BitstreamEntry Entry = Stream.advanceSkippingSubblocks();
  901. switch (Entry.Kind) {
  902. case BitstreamEntry::SubBlock: // Handled for us already.
  903. case BitstreamEntry::Error:
  904. return Error(BitcodeError::MalformedBlock);
  905. case BitstreamEntry::EndBlock:
  906. return std::error_code();
  907. case BitstreamEntry::Record:
  908. // The interesting case.
  909. break;
  910. }
  911. // Read a record.
  912. Record.clear();
  913. switch (Stream.readRecord(Entry.ID, Record)) {
  914. default: // Default behavior: unknown type.
  915. break;
  916. case bitc::VST_CODE_ENTRY: { // VST_ENTRY: [valueid, namechar x N]
  917. if (ConvertToString(Record, 1, ValueName))
  918. return Error(BitcodeError::InvalidRecord);
  919. unsigned ValueID = Record[0];
  920. if (ValueID >= ValueList.size() || !ValueList[ValueID])
  921. return Error(BitcodeError::InvalidRecord);
  922. Value *V = ValueList[ValueID];
  923. V->setName(StringRef(ValueName.data(), ValueName.size()));
  924. ValueName.clear();
  925. break;
  926. }
  927. case bitc::VST_CODE_BBENTRY: {
  928. if (ConvertToString(Record, 1, ValueName))
  929. return Error(BitcodeError::InvalidRecord);
  930. BasicBlock *BB = getBasicBlock(Record[0]);
  931. if (!BB)
  932. return Error(BitcodeError::InvalidRecord);
  933. BB->setName(StringRef(ValueName.data(), ValueName.size()));
  934. ValueName.clear();
  935. break;
  936. }
  937. }
  938. }
  939. }
  940. std::error_code BitcodeReader::ParseMetadata() {
  941. unsigned NextMDValueNo = MDValueList.size();
  942. if (Stream.EnterSubBlock(bitc::METADATA_BLOCK_ID))
  943. return Error(BitcodeError::InvalidRecord);
  944. SmallVector<uint64_t, 64> Record;
  945. // Read all the records.
  946. while (1) {
  947. BitstreamEntry Entry = Stream.advanceSkippingSubblocks();
  948. switch (Entry.Kind) {
  949. case BitstreamEntry::SubBlock: // Handled for us already.
  950. case BitstreamEntry::Error:
  951. return Error(BitcodeError::MalformedBlock);
  952. case BitstreamEntry::EndBlock:
  953. MDValueList.tryToResolveCycles();
  954. return std::error_code();
  955. case BitstreamEntry::Record:
  956. // The interesting case.
  957. break;
  958. }
  959. // Read a record.
  960. Record.clear();
  961. unsigned Code = Stream.readRecord(Entry.ID, Record);
  962. switch (Code) {
  963. default: // Default behavior: ignore.
  964. break;
  965. case bitc::METADATA_NAME: {
  966. // Read name of the named metadata.
  967. SmallString<8> Name(Record.begin(), Record.end());
  968. Record.clear();
  969. Code = Stream.ReadCode();
  970. // METADATA_NAME is always followed by METADATA_NAMED_NODE.
  971. unsigned NextBitCode = Stream.readRecord(Code, Record);
  972. assert(NextBitCode == bitc::METADATA_NAMED_NODE); (void)NextBitCode;
  973. // Read named metadata elements.
  974. unsigned Size = Record.size();
  975. NamedMDNode *NMD = TheModule->getOrInsertNamedMetadata(Name);
  976. for (unsigned i = 0; i != Size; ++i) {
  977. MDNode *MD = dyn_cast_or_null<MDNode>(MDValueList.getValueFwdRef(Record[i]));
  978. if (!MD)
  979. return Error(BitcodeError::InvalidRecord);
  980. NMD->addOperand(MD);
  981. }
  982. break;
  983. }
  984. case bitc::METADATA_FN_NODE: {
  985. // This is a LocalAsMetadata record, the only type of function-local
  986. // metadata.
  987. if (Record.size() % 2 == 1)
  988. return Error(BitcodeError::InvalidRecord);
  989. // If this isn't a LocalAsMetadata record, we're dropping it. This used
  990. // to be legal, but there's no upgrade path.
  991. auto dropRecord = [&] {
  992. MDValueList.AssignValue(MDNode::get(Context, None), NextMDValueNo++);
  993. };
  994. if (Record.size() != 2) {
  995. dropRecord();
  996. break;
  997. }
  998. Type *Ty = getTypeByID(Record[0]);
  999. if (Ty->isMetadataTy() || Ty->isVoidTy()) {
  1000. dropRecord();
  1001. break;
  1002. }
  1003. MDValueList.AssignValue(
  1004. LocalAsMetadata::get(ValueList.getValueFwdRef(Record[1], Ty)),
  1005. NextMDValueNo++);
  1006. break;
  1007. }
  1008. case bitc::METADATA_NODE: {
  1009. if (Record.size() % 2 == 1)
  1010. return Error(BitcodeError::InvalidRecord);
  1011. unsigned Size = Record.size();
  1012. SmallVector<Metadata *, 8> Elts;
  1013. for (unsigned i = 0; i != Size; i += 2) {
  1014. Type *Ty = getTypeByID(Record[i]);
  1015. if (!Ty)
  1016. return Error(BitcodeError::InvalidRecord);
  1017. if (Ty->isMetadataTy())
  1018. Elts.push_back(MDValueList.getValueFwdRef(Record[i+1]));
  1019. else if (!Ty->isVoidTy()) {
  1020. auto *MD =
  1021. ValueAsMetadata::get(ValueList.getValueFwdRef(Record[i + 1], Ty));
  1022. assert(isa<ConstantAsMetadata>(MD) &&
  1023. "Expected non-function-local metadata");
  1024. Elts.push_back(MD);
  1025. } else
  1026. Elts.push_back(nullptr);
  1027. }
  1028. MDValueList.AssignValue(MDNode::get(Context, Elts), NextMDValueNo++);
  1029. break;
  1030. }
  1031. case bitc::METADATA_STRING: {
  1032. std::string String(Record.begin(), Record.end());
  1033. llvm::UpgradeMDStringConstant(String);
  1034. Metadata *MD = MDString::get(Context, String);
  1035. MDValueList.AssignValue(MD, NextMDValueNo++);
  1036. break;
  1037. }
  1038. case bitc::METADATA_KIND: {
  1039. if (Record.size() < 2)
  1040. return Error(BitcodeError::InvalidRecord);
  1041. unsigned Kind = Record[0];
  1042. SmallString<8> Name(Record.begin()+1, Record.end());
  1043. unsigned NewKind = TheModule->getMDKindID(Name.str());
  1044. if (!MDKindMap.insert(std::make_pair(Kind, NewKind)).second)
  1045. return Error(BitcodeError::ConflictingMETADATA_KINDRecords);
  1046. break;
  1047. }
  1048. }
  1049. }
  1050. }
  1051. /// decodeSignRotatedValue - Decode a signed value stored with the sign bit in
  1052. /// the LSB for dense VBR encoding.
  1053. uint64_t BitcodeReader::decodeSignRotatedValue(uint64_t V) {
  1054. if ((V & 1) == 0)
  1055. return V >> 1;
  1056. if (V != 1)
  1057. return -(V >> 1);
  1058. // There is no such thing as -0 with integers. "-0" really means MININT.
  1059. return 1ULL << 63;
  1060. }
  1061. /// ResolveGlobalAndAliasInits - Resolve all of the initializers for global
  1062. /// values and aliases that we can.
  1063. std::error_code BitcodeReader::ResolveGlobalAndAliasInits() {
  1064. std::vector<std::pair<GlobalVariable*, unsigned> > GlobalInitWorklist;
  1065. std::vector<std::pair<GlobalAlias*, unsigned> > AliasInitWorklist;
  1066. std::vector<std::pair<Function*, unsigned> > FunctionPrefixWorklist;
  1067. std::vector<std::pair<Function*, unsigned> > FunctionPrologueWorklist;
  1068. GlobalInitWorklist.swap(GlobalInits);
  1069. AliasInitWorklist.swap(AliasInits);
  1070. FunctionPrefixWorklist.swap(FunctionPrefixes);
  1071. FunctionPrologueWorklist.swap(FunctionPrologues);
  1072. while (!GlobalInitWorklist.empty()) {
  1073. unsigned ValID = GlobalInitWorklist.back().second;
  1074. if (ValID >= ValueList.size()) {
  1075. // Not ready to resolve this yet, it requires something later in the file.
  1076. GlobalInits.push_back(GlobalInitWorklist.back());
  1077. } else {
  1078. if (Constant *C = dyn_cast_or_null<Constant>(ValueList[ValID]))
  1079. GlobalInitWorklist.back().first->setInitializer(C);
  1080. else
  1081. return Error(BitcodeError::ExpectedConstant);
  1082. }
  1083. GlobalInitWorklist.pop_back();
  1084. }
  1085. while (!AliasInitWorklist.empty()) {
  1086. unsigned ValID = AliasInitWorklist.back().second;
  1087. if (ValID >= ValueList.size()) {
  1088. AliasInits.push_back(AliasInitWorklist.back());
  1089. } else {
  1090. if (Constant *C = dyn_cast_or_null<Constant>(ValueList[ValID]))
  1091. AliasInitWorklist.back().first->setAliasee(C);
  1092. else
  1093. return Error(BitcodeError::ExpectedConstant);
  1094. }
  1095. AliasInitWorklist.pop_back();
  1096. }
  1097. while (!FunctionPrefixWorklist.empty()) {
  1098. unsigned ValID = FunctionPrefixWorklist.back().second;
  1099. if (ValID >= ValueList.size()) {
  1100. FunctionPrefixes.push_back(FunctionPrefixWorklist.back());
  1101. } else {
  1102. if (Constant *C = dyn_cast_or_null<Constant>(ValueList[ValID]))
  1103. FunctionPrefixWorklist.back().first->setPrefixData(C);
  1104. else
  1105. return Error(BitcodeError::ExpectedConstant);
  1106. }
  1107. FunctionPrefixWorklist.pop_back();
  1108. }
  1109. while (!FunctionPrologueWorklist.empty()) {
  1110. unsigned ValID = FunctionPrologueWorklist.back().second;
  1111. if (ValID >= ValueList.size()) {
  1112. FunctionPrologues.push_back(FunctionPrologueWorklist.back());
  1113. } else {
  1114. if (Constant *C = dyn_cast_or_null<Constant>(ValueList[ValID]))
  1115. FunctionPrologueWorklist.back().first->setPrologueData(C);
  1116. else
  1117. return Error(BitcodeError::ExpectedConstant);
  1118. }
  1119. FunctionPrologueWorklist.pop_back();
  1120. }
  1121. return std::error_code();
  1122. }
  1123. static APInt ReadWideAPInt(ArrayRef<uint64_t> Vals, unsigned TypeBits) {
  1124. SmallVector<uint64_t, 8> Words(Vals.size());
  1125. std::transform(Vals.begin(), Vals.end(), Words.begin(),
  1126. BitcodeReader::decodeSignRotatedValue);
  1127. return APInt(TypeBits, Words);
  1128. }
  1129. std::error_code BitcodeReader::ParseConstants() {
  1130. if (Stream.EnterSubBlock(bitc::CONSTANTS_BLOCK_ID))
  1131. return Error(BitcodeError::InvalidRecord);
  1132. SmallVector<uint64_t, 64> Record;
  1133. // Read all the records for this value table.
  1134. Type *CurTy = Type::getInt32Ty(Context);
  1135. unsigned NextCstNo = ValueList.size();
  1136. while (1) {
  1137. BitstreamEntry Entry = Stream.advanceSkippingSubblocks();
  1138. switch (Entry.Kind) {
  1139. case BitstreamEntry::SubBlock: // Handled for us already.
  1140. case BitstreamEntry::Error:
  1141. return Error(BitcodeError::MalformedBlock);
  1142. case BitstreamEntry::EndBlock:
  1143. if (NextCstNo != ValueList.size())
  1144. return Error(BitcodeError::InvalidConstantReference);
  1145. // Once all the constants have been read, go through and resolve forward
  1146. // references.
  1147. ValueList.ResolveConstantForwardRefs();
  1148. return std::error_code();
  1149. case BitstreamEntry::Record:
  1150. // The interesting case.
  1151. break;
  1152. }
  1153. // Read a record.
  1154. Record.clear();
  1155. Value *V = nullptr;
  1156. unsigned BitCode = Stream.readRecord(Entry.ID, Record);
  1157. switch (BitCode) {
  1158. default: // Default behavior: unknown constant
  1159. case bitc::CST_CODE_UNDEF: // UNDEF
  1160. V = UndefValue::get(CurTy);
  1161. break;
  1162. case bitc::CST_CODE_SETTYPE: // SETTYPE: [typeid]
  1163. if (Record.empty())
  1164. return Error(BitcodeError::InvalidRecord);
  1165. if (Record[0] >= TypeList.size() || !TypeList[Record[0]])
  1166. return Error(BitcodeError::InvalidRecord);
  1167. CurTy = TypeList[Record[0]];
  1168. continue; // Skip the ValueList manipulation.
  1169. case bitc::CST_CODE_NULL: // NULL
  1170. V = Constant::getNullValue(CurTy);
  1171. break;
  1172. case bitc::CST_CODE_INTEGER: // INTEGER: [intval]
  1173. if (!CurTy->isIntegerTy() || Record.empty())
  1174. return Error(BitcodeError::InvalidRecord);
  1175. V = ConstantInt::get(CurTy, decodeSignRotatedValue(Record[0]));
  1176. break;
  1177. case bitc::CST_CODE_WIDE_INTEGER: {// WIDE_INTEGER: [n x intval]
  1178. if (!CurTy->isIntegerTy() || Record.empty())
  1179. return Error(BitcodeError::InvalidRecord);
  1180. APInt VInt = ReadWideAPInt(Record,
  1181. cast<IntegerType>(CurTy)->getBitWidth());
  1182. V = ConstantInt::get(Context, VInt);
  1183. break;
  1184. }
  1185. case bitc::CST_CODE_FLOAT: { // FLOAT: [fpval]
  1186. if (Record.empty())
  1187. return Error(BitcodeError::InvalidRecord);
  1188. if (CurTy->isHalfTy())
  1189. V = ConstantFP::get(Context, APFloat(APFloat::IEEEhalf,
  1190. APInt(16, (uint16_t)Record[0])));
  1191. else if (CurTy->isFloatTy())
  1192. V = ConstantFP::get(Context, APFloat(APFloat::IEEEsingle,
  1193. APInt(32, (uint32_t)Record[0])));
  1194. else if (CurTy->isDoubleTy())
  1195. V = ConstantFP::get(Context, APFloat(APFloat::IEEEdouble,
  1196. APInt(64, Record[0])));
  1197. else if (CurTy->isX86_FP80Ty()) {
  1198. // Bits are not stored the same way as a normal i80 APInt, compensate.
  1199. uint64_t Rearrange[2];
  1200. Rearrange[0] = (Record[1] & 0xffffLL) | (Record[0] << 16);
  1201. Rearrange[1] = Record[0] >> 48;
  1202. V = ConstantFP::get(Context, APFloat(APFloat::x87DoubleExtended,
  1203. APInt(80, Rearrange)));
  1204. } else if (CurTy->isFP128Ty())
  1205. V = ConstantFP::get(Context, APFloat(APFloat::IEEEquad,
  1206. APInt(128, Record)));
  1207. else if (CurTy->isPPC_FP128Ty())
  1208. V = ConstantFP::get(Context, APFloat(APFloat::PPCDoubleDouble,
  1209. APInt(128, Record)));
  1210. else
  1211. V = UndefValue::get(CurTy);
  1212. break;
  1213. }
  1214. case bitc::CST_CODE_AGGREGATE: {// AGGREGATE: [n x value number]
  1215. if (Record.empty())
  1216. return Error(BitcodeError::InvalidRecord);
  1217. unsigned Size = Record.size();
  1218. SmallVector<Constant*, 16> Elts;
  1219. if (StructType *STy = dyn_cast<StructType>(CurTy)) {
  1220. for (unsigned i = 0; i != Size; ++i)
  1221. Elts.push_back(ValueList.getConstantFwdRef(Record[i],
  1222. STy->getElementType(i)));
  1223. V = ConstantStruct::get(STy, Elts);
  1224. } else if (ArrayType *ATy = dyn_cast<ArrayType>(CurTy)) {
  1225. Type *EltTy = ATy->getElementType();
  1226. for (unsigned i = 0; i != Size; ++i)
  1227. Elts.push_back(ValueList.getConstantFwdRef(Record[i], EltTy));
  1228. V = ConstantArray::get(ATy, Elts);
  1229. } else if (VectorType *VTy = dyn_cast<VectorType>(CurTy)) {
  1230. Type *EltTy = VTy->getElementType();
  1231. for (unsigned i = 0; i != Size; ++i)
  1232. Elts.push_back(ValueList.getConstantFwdRef(Record[i], EltTy));
  1233. V = ConstantVector::get(Elts);
  1234. } else {
  1235. V = UndefValue::get(CurTy);
  1236. }
  1237. break;
  1238. }
  1239. case bitc::CST_CODE_STRING: // STRING: [values]
  1240. case bitc::CST_CODE_CSTRING: { // CSTRING: [values]
  1241. if (Record.empty())
  1242. return Error(BitcodeError::InvalidRecord);
  1243. SmallString<16> Elts(Record.begin(), Record.end());
  1244. V = ConstantDataArray::getString(Context, Elts,
  1245. BitCode == bitc::CST_CODE_CSTRING);
  1246. break;
  1247. }
  1248. case bitc::CST_CODE_DATA: {// DATA: [n x value]
  1249. if (Record.empty())
  1250. return Error(BitcodeError::InvalidRecord);
  1251. Type *EltTy = cast<SequentialType>(CurTy)->getElementType();
  1252. unsigned Size = Record.size();
  1253. if (EltTy->isIntegerTy(8)) {
  1254. SmallVector<uint8_t, 16> Elts(Record.begin(), Record.end());
  1255. if (isa<VectorType>(CurTy))
  1256. V = ConstantDataVector::get(Context, Elts);
  1257. else
  1258. V = ConstantDataArray::get(Context, Elts);
  1259. } else if (EltTy->isIntegerTy(16)) {
  1260. SmallVector<uint16_t, 16> Elts(Record.begin(), Record.end());
  1261. if (isa<VectorType>(CurTy))
  1262. V = ConstantDataVector::get(Context, Elts);
  1263. else
  1264. V = ConstantDataArray::get(Context, Elts);
  1265. } else if (EltTy->isIntegerTy(32)) {
  1266. SmallVector<uint32_t, 16> Elts(Record.begin(), Record.end());
  1267. if (isa<VectorType>(CurTy))
  1268. V = ConstantDataVector::get(Context, Elts);
  1269. else
  1270. V = ConstantDataArray::get(Context, Elts);
  1271. } else if (EltTy->isIntegerTy(64)) {
  1272. SmallVector<uint64_t, 16> Elts(Record.begin(), Record.end());
  1273. if (isa<VectorType>(CurTy))
  1274. V = ConstantDataVector::get(Context, Elts);
  1275. else
  1276. V = ConstantDataArray::get(Context, Elts);
  1277. } else if (EltTy->isFloatTy()) {
  1278. SmallVector<float, 16> Elts(Size);
  1279. std::transform(Record.begin(), Record.end(), Elts.begin(), BitsToFloat);
  1280. if (isa<VectorType>(CurTy))
  1281. V = ConstantDataVector::get(Context, Elts);
  1282. else
  1283. V = ConstantDataArray::get(Context, Elts);
  1284. } else if (EltTy->isDoubleTy()) {
  1285. SmallVector<double, 16> Elts(Size);
  1286. std::transform(Record.begin(), Record.end(), Elts.begin(),
  1287. BitsToDouble);
  1288. if (isa<VectorType>(CurTy))
  1289. V = ConstantDataVector::get(Context, Elts);
  1290. else
  1291. V = ConstantDataArray::get(Context, Elts);
  1292. } else {
  1293. return Error(BitcodeError::InvalidTypeForValue);
  1294. }
  1295. break;
  1296. }
  1297. case bitc::CST_CODE_CE_BINOP: { // CE_BINOP: [opcode, opval, opval]
  1298. if (Record.size() < 3)
  1299. return Error(BitcodeError::InvalidRecord);
  1300. int Opc = GetDecodedBinaryOpcode(Record[0], CurTy);
  1301. if (Opc < 0) {
  1302. V = UndefValue::get(CurTy); // Unknown binop.
  1303. } else {
  1304. Constant *LHS = ValueList.getConstantFwdRef(Record[1], CurTy);
  1305. Constant *RHS = ValueList.getConstantFwdRef(Record[2], CurTy);
  1306. unsigned Flags = 0;
  1307. if (Record.size() >= 4) {
  1308. if (Opc == Instruction::Add ||
  1309. Opc == Instruction::Sub ||
  1310. Opc == Instruction::Mul ||
  1311. Opc == Instruction::Shl) {
  1312. if (Record[3] & (1 << bitc::OBO_NO_SIGNED_WRAP))
  1313. Flags |= OverflowingBinaryOperator::NoSignedWrap;
  1314. if (Record[3] & (1 << bitc::OBO_NO_UNSIGNED_WRAP))
  1315. Flags |= OverflowingBinaryOperator::NoUnsignedWrap;
  1316. } else if (Opc == Instruction::SDiv ||
  1317. Opc == Instruction::UDiv ||
  1318. Opc == Instruction::LShr ||
  1319. Opc == Instruction::AShr) {
  1320. if (Record[3] & (1 << bitc::PEO_EXACT))
  1321. Flags |= SDivOperator::IsExact;
  1322. }
  1323. }
  1324. V = ConstantExpr::get(Opc, LHS, RHS, Flags);
  1325. }
  1326. break;
  1327. }
  1328. case bitc::CST_CODE_CE_CAST: { // CE_CAST: [opcode, opty, opval]
  1329. if (Record.size() < 3)
  1330. return Error(BitcodeError::InvalidRecord);
  1331. int Opc = GetDecodedCastOpcode(Record[0]);
  1332. if (Opc < 0) {
  1333. V = UndefValue::get(CurTy); // Unknown cast.
  1334. } else {
  1335. Type *OpTy = getTypeByID(Record[1]);
  1336. if (!OpTy)
  1337. return Error(BitcodeError::InvalidRecord);
  1338. Constant *Op = ValueList.getConstantFwdRef(Record[2], OpTy);
  1339. V = UpgradeBitCastExpr(Opc, Op, CurTy);
  1340. if (!V) V = ConstantExpr::getCast(Opc, Op, CurTy);
  1341. }
  1342. break;
  1343. }
  1344. case bitc::CST_CODE_CE_INBOUNDS_GEP:
  1345. case bitc::CST_CODE_CE_GEP: { // CE_GEP: [n x operands]
  1346. if (Record.size() & 1)
  1347. return Error(BitcodeError::InvalidRecord);
  1348. SmallVector<Constant*, 16> Elts;
  1349. for (unsigned i = 0, e = Record.size(); i != e; i += 2) {
  1350. Type *ElTy = getTypeByID(Record[i]);
  1351. if (!ElTy)
  1352. return Error(BitcodeError::InvalidRecord);
  1353. Elts.push_back(ValueList.getConstantFwdRef(Record[i+1], ElTy));
  1354. }
  1355. ArrayRef<Constant *> Indices(Elts.begin() + 1, Elts.end());
  1356. V = ConstantExpr::getGetElementPtr(Elts[0], Indices,
  1357. BitCode ==
  1358. bitc::CST_CODE_CE_INBOUNDS_GEP);
  1359. break;
  1360. }
  1361. case bitc::CST_CODE_CE_SELECT: { // CE_SELECT: [opval#, opval#, opval#]
  1362. if (Record.size() < 3)
  1363. return Error(BitcodeError::InvalidRecord);
  1364. Type *SelectorTy = Type::getInt1Ty(Context);
  1365. // If CurTy is a vector of length n, then Record[0] must be a <n x i1>
  1366. // vector. Otherwise, it must be a single bit.
  1367. if (VectorType *VTy = dyn_cast<VectorType>(CurTy))
  1368. SelectorTy = VectorType::get(Type::getInt1Ty(Context),
  1369. VTy->getNumElements());
  1370. V = ConstantExpr::getSelect(ValueList.getConstantFwdRef(Record[0],
  1371. SelectorTy),
  1372. ValueList.getConstantFwdRef(Record[1],CurTy),
  1373. ValueList.getConstantFwdRef(Record[2],CurTy));
  1374. break;
  1375. }
  1376. case bitc::CST_CODE_CE_EXTRACTELT
  1377. : { // CE_EXTRACTELT: [opty, opval, opty, opval]
  1378. if (Record.size() < 3)
  1379. return Error(BitcodeError::InvalidRecord);
  1380. VectorType *OpTy =
  1381. dyn_cast_or_null<VectorType>(getTypeByID(Record[0]));
  1382. if (!OpTy)
  1383. return Error(BitcodeError::InvalidRecord);
  1384. Constant *Op0 = ValueList.getConstantFwdRef(Record[1], OpTy);
  1385. Constant *Op1 = nullptr;
  1386. if (Record.size() == 4) {
  1387. Type *IdxTy = getTypeByID(Record[2]);
  1388. if (!IdxTy)
  1389. return Error(BitcodeError::InvalidRecord);
  1390. Op1 = ValueList.getConstantFwdRef(Record[3], IdxTy);
  1391. } else // TODO: Remove with llvm 4.0
  1392. Op1 = ValueList.getConstantFwdRef(Record[2], Type::getInt32Ty(Context));
  1393. if (!Op1)
  1394. return Error(BitcodeError::InvalidRecord);
  1395. V = ConstantExpr::getExtractElement(Op0, Op1);
  1396. break;
  1397. }
  1398. case bitc::CST_CODE_CE_INSERTELT
  1399. : { // CE_INSERTELT: [opval, opval, opty, opval]
  1400. VectorType *OpTy = dyn_cast<VectorType>(CurTy);
  1401. if (Record.size() < 3 || !OpTy)
  1402. return Error(BitcodeError::InvalidRecord);
  1403. Constant *Op0 = ValueList.getConstantFwdRef(Record[0], OpTy);
  1404. Constant *Op1 = ValueList.getConstantFwdRef(Record[1],
  1405. OpTy->getElementType());
  1406. Constant *Op2 = nullptr;
  1407. if (Record.size() == 4) {
  1408. Type *IdxTy = getTypeByID(Record[2]);
  1409. if (!IdxTy)
  1410. return Error(BitcodeError::InvalidRecord);
  1411. Op2 = ValueList.getConstantFwdRef(Record[3], IdxTy);
  1412. } else // TODO: Remove with llvm 4.0
  1413. Op2 = ValueList.getConstantFwdRef(Record[2], Type::getInt32Ty(Context));
  1414. if (!Op2)
  1415. return Error(BitcodeError::InvalidRecord);
  1416. V = ConstantExpr::getInsertElement(Op0, Op1, Op2);
  1417. break;
  1418. }
  1419. case bitc::CST_CODE_CE_SHUFFLEVEC: { // CE_SHUFFLEVEC: [opval, opval, opval]
  1420. VectorType *OpTy = dyn_cast<VectorType>(CurTy);
  1421. if (Record.size() < 3 || !OpTy)
  1422. return Error(BitcodeError::InvalidRecord);
  1423. Constant *Op0 = ValueList.getConstantFwdRef(Record[0], OpTy);
  1424. Constant *Op1 = ValueList.getConstantFwdRef(Record[1], OpTy);
  1425. Type *ShufTy = VectorType::get(Type::getInt32Ty(Context),
  1426. OpTy->getNumElements());
  1427. Constant *Op2 = ValueList.getConstantFwdRef(Record[2], ShufTy);
  1428. V = ConstantExpr::getShuffleVector(Op0, Op1, Op2);
  1429. break;
  1430. }
  1431. case bitc::CST_CODE_CE_SHUFVEC_EX: { // [opty, opval, opval, opval]
  1432. VectorType *RTy = dyn_cast<VectorType>(CurTy);
  1433. VectorType *OpTy =
  1434. dyn_cast_or_null<VectorType>(getTypeByID(Record[0]));
  1435. if (Record.size() < 4 || !RTy || !OpTy)
  1436. return Error(BitcodeError::InvalidRecord);
  1437. Constant *Op0 = ValueList.getConstantFwdRef(Record[1], OpTy);
  1438. Constant *Op1 = ValueList.getConstantFwdRef(Record[2], OpTy);
  1439. Type *ShufTy = VectorType::get(Type::getInt32Ty(Context),
  1440. RTy->getNumElements());
  1441. Constant *Op2 = ValueList.getConstantFwdRef(Record[3], ShufTy);
  1442. V = ConstantExpr::getShuffleVector(Op0, Op1, Op2);
  1443. break;
  1444. }
  1445. case bitc::CST_CODE_CE_CMP: { // CE_CMP: [opty, opval, opval, pred]
  1446. if (Record.size() < 4)
  1447. return Error(BitcodeError::InvalidRecord);
  1448. Type *OpTy = getTypeByID(Record[0]);
  1449. if (!OpTy)
  1450. return Error(BitcodeError::InvalidRecord);
  1451. Constant *Op0 = ValueList.getConstantFwdRef(Record[1], OpTy);
  1452. Constant *Op1 = ValueList.getConstantFwdRef(Record[2], OpTy);
  1453. if (OpTy->isFPOrFPVectorTy())
  1454. V = ConstantExpr::getFCmp(Record[3], Op0, Op1);
  1455. else
  1456. V = ConstantExpr::getICmp(Record[3], Op0, Op1);
  1457. break;
  1458. }
  1459. // This maintains backward compatibility, pre-asm dialect keywords.
  1460. // FIXME: Remove with the 4.0 release.
  1461. case bitc::CST_CODE_INLINEASM_OLD: {
  1462. if (Record.size() < 2)
  1463. return Error(BitcodeError::InvalidRecord);
  1464. std::string AsmStr, ConstrStr;
  1465. bool HasSideEffects = Record[0] & 1;
  1466. bool IsAlignStack = Record[0] >> 1;
  1467. unsigned AsmStrSize = Record[1];
  1468. if (2+AsmStrSize >= Record.size())
  1469. return Error(BitcodeError::InvalidRecord);
  1470. unsigned ConstStrSize = Record[2+AsmStrSize];
  1471. if (3+AsmStrSize+ConstStrSize > Record.size())
  1472. return Error(BitcodeError::InvalidRecord);
  1473. for (unsigned i = 0; i != AsmStrSize; ++i)
  1474. AsmStr += (char)Record[2+i];
  1475. for (unsigned i = 0; i != ConstStrSize; ++i)
  1476. ConstrStr += (char)Record[3+AsmStrSize+i];
  1477. PointerType *PTy = cast<PointerType>(CurTy);
  1478. V = InlineAsm::get(cast<FunctionType>(PTy->getElementType()),
  1479. AsmStr, ConstrStr, HasSideEffects, IsAlignStack);
  1480. break;
  1481. }
  1482. // This version adds support for the asm dialect keywords (e.g.,
  1483. // inteldialect).
  1484. case bitc::CST_CODE_INLINEASM: {
  1485. if (Record.size() < 2)
  1486. return Error(BitcodeError::InvalidRecord);
  1487. std::string AsmStr, ConstrStr;
  1488. bool HasSideEffects = Record[0] & 1;
  1489. bool IsAlignStack = (Record[0] >> 1) & 1;
  1490. unsigned AsmDialect = Record[0] >> 2;
  1491. unsigned AsmStrSize = Record[1];
  1492. if (2+AsmStrSize >= Record.size())
  1493. return Error(BitcodeError::InvalidRecord);
  1494. unsigned ConstStrSize = Record[2+AsmStrSize];
  1495. if (3+AsmStrSize+ConstStrSize > Record.size())
  1496. return Error(BitcodeError::InvalidRecord);
  1497. for (unsigned i = 0; i != AsmStrSize; ++i)
  1498. AsmStr += (char)Record[2+i];
  1499. for (unsigned i = 0; i != ConstStrSize; ++i)
  1500. ConstrStr += (char)Record[3+AsmStrSize+i];
  1501. PointerType *PTy = cast<PointerType>(CurTy);
  1502. V = InlineAsm::get(cast<FunctionType>(PTy->getElementType()),
  1503. AsmStr, ConstrStr, HasSideEffects, IsAlignStack,
  1504. InlineAsm::AsmDialect(AsmDialect));
  1505. break;
  1506. }
  1507. case bitc::CST_CODE_BLOCKADDRESS:{
  1508. if (Record.size() < 3)
  1509. return Error(BitcodeError::InvalidRecord);
  1510. Type *FnTy = getTypeByID(Record[0]);
  1511. if (!FnTy)
  1512. return Error(BitcodeError::InvalidRecord);
  1513. Function *Fn =
  1514. dyn_cast_or_null<Function>(ValueList.getConstantFwdRef(Record[1],FnTy));
  1515. if (!Fn)
  1516. return Error(BitcodeError::InvalidRecord);
  1517. // Don't let Fn get dematerialized.
  1518. BlockAddressesTaken.insert(Fn);
  1519. // If the function is already parsed we can insert the block address right
  1520. // away.
  1521. BasicBlock *BB;
  1522. unsigned BBID = Record[2];
  1523. if (!BBID)
  1524. // Invalid reference to entry block.
  1525. return Error(BitcodeError::InvalidID);
  1526. if (!Fn->empty()) {
  1527. Function::iterator BBI = Fn->begin(), BBE = Fn->end();
  1528. for (size_t I = 0, E = BBID; I != E; ++I) {
  1529. if (BBI == BBE)
  1530. return Error(BitcodeError::InvalidID);
  1531. ++BBI;
  1532. }
  1533. BB = BBI;
  1534. } else {
  1535. // Otherwise insert a placeholder and remember it so it can be inserted
  1536. // when the function is parsed.
  1537. auto &FwdBBs = BasicBlockFwdRefs[Fn];
  1538. if (FwdBBs.empty())
  1539. BasicBlockFwdRefQueue.push_back(Fn);
  1540. if (FwdBBs.size() < BBID + 1)
  1541. FwdBBs.resize(BBID + 1);
  1542. if (!FwdBBs[BBID])
  1543. FwdBBs[BBID] = BasicBlock::Create(Context);
  1544. BB = FwdBBs[BBID];
  1545. }
  1546. V = BlockAddress::get(Fn, BB);
  1547. break;
  1548. }
  1549. }
  1550. ValueList.AssignValue(V, NextCstNo);
  1551. ++NextCstNo;
  1552. }
  1553. }
  1554. std::error_code BitcodeReader::ParseUseLists() {
  1555. if (Stream.EnterSubBlock(bitc::USELIST_BLOCK_ID))
  1556. return Error(BitcodeError::InvalidRecord);
  1557. // Read all the records.
  1558. SmallVector<uint64_t, 64> Record;
  1559. while (1) {
  1560. BitstreamEntry Entry = Stream.advanceSkippingSubblocks();
  1561. switch (Entry.Kind) {
  1562. case BitstreamEntry::SubBlock: // Handled for us already.
  1563. case BitstreamEntry::Error:
  1564. return Error(BitcodeError::MalformedBlock);
  1565. case BitstreamEntry::EndBlock:
  1566. return std::error_code();
  1567. case BitstreamEntry::Record:
  1568. // The interesting case.
  1569. break;
  1570. }
  1571. // Read a use list record.
  1572. Record.clear();
  1573. bool IsBB = false;
  1574. switch (Stream.readRecord(Entry.ID, Record)) {
  1575. default: // Default behavior: unknown type.
  1576. break;
  1577. case bitc::USELIST_CODE_BB:
  1578. IsBB = true;
  1579. // fallthrough
  1580. case bitc::USELIST_CODE_DEFAULT: {
  1581. unsigned RecordLength = Record.size();
  1582. if (RecordLength < 3)
  1583. // Records should have at least an ID and two indexes.
  1584. return Error(BitcodeError::InvalidRecord);
  1585. unsigned ID = Record.back();
  1586. Record.pop_back();
  1587. Value *V;
  1588. if (IsBB) {
  1589. assert(ID < FunctionBBs.size() && "Basic block not found");
  1590. V = FunctionBBs[ID];
  1591. } else
  1592. V = ValueList[ID];
  1593. unsigned NumUses = 0;
  1594. SmallDenseMap<const Use *, unsigned, 16> Order;
  1595. for (const Use &U : V->uses()) {
  1596. if (++NumUses > Record.size())
  1597. break;
  1598. Order[&U] = Record[NumUses - 1];
  1599. }
  1600. if (Order.size() != Record.size() || NumUses > Record.size())
  1601. // Mismatches can happen if the functions are being materialized lazily
  1602. // (out-of-order), or a value has been upgraded.
  1603. break;
  1604. V->sortUseList([&](const Use &L, const Use &R) {
  1605. return Order.lookup(&L) < Order.lookup(&R);
  1606. });
  1607. break;
  1608. }
  1609. }
  1610. }
  1611. }
  1612. /// RememberAndSkipFunctionBody - When we see the block for a function body,
  1613. /// remember where it is and then skip it. This lets us lazily deserialize the
  1614. /// functions.
  1615. std::error_code BitcodeReader::RememberAndSkipFunctionBody() {
  1616. // Get the function we are talking about.
  1617. if (FunctionsWithBodies.empty())
  1618. return Error(BitcodeError::InsufficientFunctionProtos);
  1619. Function *Fn = FunctionsWithBodies.back();
  1620. FunctionsWithBodies.pop_back();
  1621. // Save the current stream state.
  1622. uint64_t CurBit = Stream.GetCurrentBitNo();
  1623. DeferredFunctionInfo[Fn] = CurBit;
  1624. // Skip over the function block for now.
  1625. if (Stream.SkipBlock())
  1626. return Error(BitcodeError::InvalidRecord);
  1627. return std::error_code();
  1628. }
  1629. std::error_code BitcodeReader::GlobalCleanup() {
  1630. // Patch the initializers for globals and aliases up.
  1631. ResolveGlobalAndAliasInits();
  1632. if (!GlobalInits.empty() || !AliasInits.empty())
  1633. return Error(BitcodeError::MalformedGlobalInitializerSet);
  1634. // Look for intrinsic functions which need to be upgraded at some point
  1635. for (Module::iterator FI = TheModule->begin(), FE = TheModule->end();
  1636. FI != FE; ++FI) {
  1637. Function *NewFn;
  1638. if (UpgradeIntrinsicFunction(FI, NewFn))
  1639. UpgradedIntrinsics.push_back(std::make_pair(FI, NewFn));
  1640. }
  1641. // Look for global variables which need to be renamed.
  1642. for (Module::global_iterator
  1643. GI = TheModule->global_begin(), GE = TheModule->global_end();
  1644. GI != GE;) {
  1645. GlobalVariable *GV = GI++;
  1646. UpgradeGlobalVariable(GV);
  1647. }
  1648. // Force deallocation of memory for these vectors to favor the client that
  1649. // want lazy deserialization.
  1650. std::vector<std::pair<GlobalVariable*, unsigned> >().swap(GlobalInits);
  1651. std::vector<std::pair<GlobalAlias*, unsigned> >().swap(AliasInits);
  1652. return std::error_code();
  1653. }
  1654. std::error_code BitcodeReader::ParseModule(bool Resume) {
  1655. if (Resume)
  1656. Stream.JumpToBit(NextUnreadBit);
  1657. else if (Stream.EnterSubBlock(bitc::MODULE_BLOCK_ID))
  1658. return Error(BitcodeError::InvalidRecord);
  1659. SmallVector<uint64_t, 64> Record;
  1660. std::vector<std::string> SectionTable;
  1661. std::vector<std::string> GCTable;
  1662. // Read all the records for this module.
  1663. while (1) {
  1664. BitstreamEntry Entry = Stream.advance();
  1665. switch (Entry.Kind) {
  1666. case BitstreamEntry::Error:
  1667. return Error(BitcodeError::MalformedBlock);
  1668. case BitstreamEntry::EndBlock:
  1669. return GlobalCleanup();
  1670. case BitstreamEntry::SubBlock:
  1671. switch (Entry.ID) {
  1672. default: // Skip unknown content.
  1673. if (Stream.SkipBlock())
  1674. return Error(BitcodeError::InvalidRecord);
  1675. break;
  1676. case bitc::BLOCKINFO_BLOCK_ID:
  1677. if (Stream.ReadBlockInfoBlock())
  1678. return Error(BitcodeError::MalformedBlock);
  1679. break;
  1680. case bitc::PARAMATTR_BLOCK_ID:
  1681. if (std::error_code EC = ParseAttributeBlock())
  1682. return EC;
  1683. break;
  1684. case bitc::PARAMATTR_GROUP_BLOCK_ID:
  1685. if (std::error_code EC = ParseAttributeGroupBlock())
  1686. return EC;
  1687. break;
  1688. case bitc::TYPE_BLOCK_ID_NEW:
  1689. if (std::error_code EC = ParseTypeTable())
  1690. return EC;
  1691. break;
  1692. case bitc::VALUE_SYMTAB_BLOCK_ID:
  1693. if (std::error_code EC = ParseValueSymbolTable())
  1694. return EC;
  1695. SeenValueSymbolTable = true;
  1696. break;
  1697. case bitc::CONSTANTS_BLOCK_ID:
  1698. if (std::error_code EC = ParseConstants())
  1699. return EC;
  1700. if (std::error_code EC = ResolveGlobalAndAliasInits())
  1701. return EC;
  1702. break;
  1703. case bitc::METADATA_BLOCK_ID:
  1704. if (std::error_code EC = ParseMetadata())
  1705. return EC;
  1706. break;
  1707. case bitc::FUNCTION_BLOCK_ID:
  1708. // If this is the first function body we've seen, reverse the
  1709. // FunctionsWithBodies list.
  1710. if (!SeenFirstFunctionBody) {
  1711. std::reverse(FunctionsWithBodies.begin(), FunctionsWithBodies.end());
  1712. if (std::error_code EC = GlobalCleanup())
  1713. return EC;
  1714. SeenFirstFunctionBody = true;
  1715. }
  1716. if (std::error_code EC = RememberAndSkipFunctionBody())
  1717. return EC;
  1718. // For streaming bitcode, suspend parsing when we reach the function
  1719. // bodies. Subsequent materialization calls will resume it when
  1720. // necessary. For streaming, the function bodies must be at the end of
  1721. // the bitcode. If the bitcode file is old, the symbol table will be
  1722. // at the end instead and will not have been seen yet. In this case,
  1723. // just finish the parse now.
  1724. if (LazyStreamer && SeenValueSymbolTable) {
  1725. NextUnreadBit = Stream.GetCurrentBitNo();
  1726. return std::error_code();
  1727. }
  1728. break;
  1729. case bitc::USELIST_BLOCK_ID:
  1730. if (std::error_code EC = ParseUseLists())
  1731. return EC;
  1732. break;
  1733. }
  1734. continue;
  1735. case BitstreamEntry::Record:
  1736. // The interesting case.
  1737. break;
  1738. }
  1739. // Read a record.
  1740. switch (Stream.readRecord(Entry.ID, Record)) {
  1741. default: break; // Default behavior, ignore unknown content.
  1742. case bitc::MODULE_CODE_VERSION: { // VERSION: [version#]
  1743. if (Record.size() < 1)
  1744. return Error(BitcodeError::InvalidRecord);
  1745. // Only version #0 and #1 are supported so far.
  1746. unsigned module_version = Record[0];
  1747. switch (module_version) {
  1748. default:
  1749. return Error(BitcodeError::InvalidValue);
  1750. case 0:
  1751. UseRelativeIDs = false;
  1752. break;
  1753. case 1:
  1754. UseRelativeIDs = true;
  1755. break;
  1756. }
  1757. break;
  1758. }
  1759. case bitc::MODULE_CODE_TRIPLE: { // TRIPLE: [strchr x N]
  1760. std::string S;
  1761. if (ConvertToString(Record, 0, S))
  1762. return Error(BitcodeError::InvalidRecord);
  1763. TheModule->setTargetTriple(S);
  1764. break;
  1765. }
  1766. case bitc::MODULE_CODE_DATALAYOUT: { // DATALAYOUT: [strchr x N]
  1767. std::string S;
  1768. if (ConvertToString(Record, 0, S))
  1769. return Error(BitcodeError::InvalidRecord);
  1770. TheModule->setDataLayout(S);
  1771. break;
  1772. }
  1773. case bitc::MODULE_CODE_ASM: { // ASM: [strchr x N]
  1774. std::string S;
  1775. if (ConvertToString(Record, 0, S))
  1776. return Error(BitcodeError::InvalidRecord);
  1777. TheModule->setModuleInlineAsm(S);
  1778. break;
  1779. }
  1780. case bitc::MODULE_CODE_DEPLIB: { // DEPLIB: [strchr x N]
  1781. // FIXME: Remove in 4.0.
  1782. std::string S;
  1783. if (ConvertToString(Record, 0, S))
  1784. return Error(BitcodeError::InvalidRecord);
  1785. // Ignore value.
  1786. break;
  1787. }
  1788. case bitc::MODULE_CODE_SECTIONNAME: { // SECTIONNAME: [strchr x N]
  1789. std::string S;
  1790. if (ConvertToString(Record, 0, S))
  1791. return Error(BitcodeError::InvalidRecord);
  1792. SectionTable.push_back(S);
  1793. break;
  1794. }
  1795. case bitc::MODULE_CODE_GCNAME: { // SECTIONNAME: [strchr x N]
  1796. std::string S;
  1797. if (ConvertToString(Record, 0, S))
  1798. return Error(BitcodeError::InvalidRecord);
  1799. GCTable.push_back(S);
  1800. break;
  1801. }
  1802. case bitc::MODULE_CODE_COMDAT: { // COMDAT: [selection_kind, name]
  1803. if (Record.size() < 2)
  1804. return Error(BitcodeError::InvalidRecord);
  1805. Comdat::SelectionKind SK = getDecodedComdatSelectionKind(Record[0]);
  1806. unsigned ComdatNameSize = Record[1];
  1807. std::string ComdatName;
  1808. ComdatName.reserve(ComdatNameSize);
  1809. for (unsigned i = 0; i != ComdatNameSize; ++i)
  1810. ComdatName += (char)Record[2 + i];
  1811. Comdat *C = TheModule->getOrInsertComdat(ComdatName);
  1812. C->setSelectionKind(SK);
  1813. ComdatList.push_back(C);
  1814. break;
  1815. }
  1816. // GLOBALVAR: [pointer type, isconst, initid,
  1817. // linkage, alignment, section, visibility, threadlocal,
  1818. // unnamed_addr, dllstorageclass]
  1819. case bitc::MODULE_CODE_GLOBALVAR: {
  1820. if (Record.size() < 6)
  1821. return Error(BitcodeError::InvalidRecord);
  1822. Type *Ty = getTypeByID(Record[0]);
  1823. if (!Ty)
  1824. return Error(BitcodeError::InvalidRecord);
  1825. if (!Ty->isPointerTy())
  1826. return Error(BitcodeError::InvalidTypeForValue);
  1827. unsigned AddressSpace = cast<PointerType>(Ty)->getAddressSpace();
  1828. Ty = cast<PointerType>(Ty)->getElementType();
  1829. bool isConstant = Record[1];
  1830. GlobalValue::LinkageTypes Linkage = GetDecodedLinkage(Record[3]);
  1831. unsigned Alignment = (1 << Record[4]) >> 1;
  1832. std::string Section;
  1833. if (Record[5]) {
  1834. if (Record[5]-1 >= SectionTable.size())
  1835. return Error(BitcodeError::InvalidID);
  1836. Section = SectionTable[Record[5]-1];
  1837. }
  1838. GlobalValue::VisibilityTypes Visibility = GlobalValue::DefaultVisibility;
  1839. // Local linkage must have default visibility.
  1840. if (Record.size() > 6 && !GlobalValue::isLocalLinkage(Linkage))
  1841. // FIXME: Change to an error if non-default in 4.0.
  1842. Visibility = GetDecodedVisibility(Record[6]);
  1843. GlobalVariable::ThreadLocalMode TLM = GlobalVariable::NotThreadLocal;
  1844. if (Record.size() > 7)
  1845. TLM = GetDecodedThreadLocalMode(Record[7]);
  1846. bool UnnamedAddr = false;
  1847. if (Record.size() > 8)
  1848. UnnamedAddr = Record[8];
  1849. bool ExternallyInitialized = false;
  1850. if (Record.size() > 9)
  1851. ExternallyInitialized = Record[9];
  1852. GlobalVariable *NewGV =
  1853. new GlobalVariable(*TheModule, Ty, isConstant, Linkage, nullptr, "", nullptr,
  1854. TLM, AddressSpace, ExternallyInitialized);
  1855. NewGV->setAlignment(Alignment);
  1856. if (!Section.empty())
  1857. NewGV->setSection(Section);
  1858. NewGV->setVisibility(Visibility);
  1859. NewGV->setUnnamedAddr(UnnamedAddr);
  1860. if (Record.size() > 10)
  1861. NewGV->setDLLStorageClass(GetDecodedDLLStorageClass(Record[10]));
  1862. else
  1863. UpgradeDLLImportExportLinkage(NewGV, Record[3]);
  1864. ValueList.push_back(NewGV);
  1865. // Remember which value to use for the global initializer.
  1866. if (unsigned InitID = Record[2])
  1867. GlobalInits.push_back(std::make_pair(NewGV, InitID-1));
  1868. if (Record.size() > 11)
  1869. if (unsigned ComdatID = Record[11]) {
  1870. assert(ComdatID <= ComdatList.size());
  1871. NewGV->setComdat(ComdatList[ComdatID - 1]);
  1872. }
  1873. break;
  1874. }
  1875. // FUNCTION: [type, callingconv, isproto, linkage, paramattr,
  1876. // alignment, section, visibility, gc, unnamed_addr,
  1877. // prologuedata, dllstorageclass, comdat, prefixdata]
  1878. case bitc::MODULE_CODE_FUNCTION: {
  1879. if (Record.size() < 8)
  1880. return Error(BitcodeError::InvalidRecord);
  1881. Type *Ty = getTypeByID(Record[0]);
  1882. if (!Ty)
  1883. return Error(BitcodeError::InvalidRecord);
  1884. if (!Ty->isPointerTy())
  1885. return Error(BitcodeError::InvalidTypeForValue);
  1886. FunctionType *FTy =
  1887. dyn_cast<FunctionType>(cast<PointerType>(Ty)->getElementType());
  1888. if (!FTy)
  1889. return Error(BitcodeError::InvalidTypeForValue);
  1890. Function *Func = Function::Create(FTy, GlobalValue::ExternalLinkage,
  1891. "", TheModule);
  1892. Func->setCallingConv(static_cast<CallingConv::ID>(Record[1]));
  1893. bool isProto = Record[2];
  1894. Func->setLinkage(GetDecodedLinkage(Record[3]));
  1895. Func->setAttributes(getAttributes(Record[4]));
  1896. Func->setAlignment((1 << Record[5]) >> 1);
  1897. if (Record[6]) {
  1898. if (Record[6]-1 >= SectionTable.size())
  1899. return Error(BitcodeError::InvalidID);
  1900. Func->setSection(SectionTable[Record[6]-1]);
  1901. }
  1902. // Local linkage must have default visibility.
  1903. if (!Func->hasLocalLinkage())
  1904. // FIXME: Change to an error if non-default in 4.0.
  1905. Func->setVisibility(GetDecodedVisibility(Record[7]));
  1906. if (Record.size() > 8 && Record[8]) {
  1907. if (Record[8]-1 > GCTable.size())
  1908. return Error(BitcodeError::InvalidID);
  1909. Func->setGC(GCTable[Record[8]-1].c_str());
  1910. }
  1911. bool UnnamedAddr = false;
  1912. if (Record.size() > 9)
  1913. UnnamedAddr = Record[9];
  1914. Func->setUnnamedAddr(UnnamedAddr);
  1915. if (Record.size() > 10 && Record[10] != 0)
  1916. FunctionPrologues.push_back(std::make_pair(Func, Record[10]-1));
  1917. if (Record.size() > 11)
  1918. Func->setDLLStorageClass(GetDecodedDLLStorageClass(Record[11]));
  1919. else
  1920. UpgradeDLLImportExportLinkage(Func, Record[3]);
  1921. if (Record.size() > 12)
  1922. if (unsigned ComdatID = Record[12]) {
  1923. assert(ComdatID <= ComdatList.size());
  1924. Func->setComdat(ComdatList[ComdatID - 1]);
  1925. }
  1926. if (Record.size() > 13 && Record[13] != 0)
  1927. FunctionPrefixes.push_back(std::make_pair(Func, Record[13]-1));
  1928. ValueList.push_back(Func);
  1929. // If this is a function with a body, remember the prototype we are
  1930. // creating now, so that we can match up the body with them later.
  1931. if (!isProto) {
  1932. Func->setIsMaterializable(true);
  1933. FunctionsWithBodies.push_back(Func);
  1934. if (LazyStreamer)
  1935. DeferredFunctionInfo[Func] = 0;
  1936. }
  1937. break;
  1938. }
  1939. // ALIAS: [alias type, aliasee val#, linkage]
  1940. // ALIAS: [alias type, aliasee val#, linkage, visibility, dllstorageclass]
  1941. case bitc::MODULE_CODE_ALIAS: {
  1942. if (Record.size() < 3)
  1943. return Error(BitcodeError::InvalidRecord);
  1944. Type *Ty = getTypeByID(Record[0]);
  1945. if (!Ty)
  1946. return Error(BitcodeError::InvalidRecord);
  1947. auto *PTy = dyn_cast<PointerType>(Ty);
  1948. if (!PTy)
  1949. return Error(BitcodeError::InvalidTypeForValue);
  1950. auto *NewGA =
  1951. GlobalAlias::create(PTy->getElementType(), PTy->getAddressSpace(),
  1952. GetDecodedLinkage(Record[2]), "", TheModule);
  1953. // Old bitcode files didn't have visibility field.
  1954. // Local linkage must have default visibility.
  1955. if (Record.size() > 3 && !NewGA->hasLocalLinkage())
  1956. // FIXME: Change to an error if non-default in 4.0.
  1957. NewGA->setVisibility(GetDecodedVisibility(Record[3]));
  1958. if (Record.size() > 4)
  1959. NewGA->setDLLStorageClass(GetDecodedDLLStorageClass(Record[4]));
  1960. else
  1961. UpgradeDLLImportExportLinkage(NewGA, Record[2]);
  1962. if (Record.size() > 5)
  1963. NewGA->setThreadLocalMode(GetDecodedThreadLocalMode(Record[5]));
  1964. if (Record.size() > 6)
  1965. NewGA->setUnnamedAddr(Record[6]);
  1966. ValueList.push_back(NewGA);
  1967. AliasInits.push_back(std::make_pair(NewGA, Record[1]));
  1968. break;
  1969. }
  1970. /// MODULE_CODE_PURGEVALS: [numvals]
  1971. case bitc::MODULE_CODE_PURGEVALS:
  1972. // Trim down the value list to the specified size.
  1973. if (Record.size() < 1 || Record[0] > ValueList.size())
  1974. return Error(BitcodeError::InvalidRecord);
  1975. ValueList.shrinkTo(Record[0]);
  1976. break;
  1977. }
  1978. Record.clear();
  1979. }
  1980. }
  1981. std::error_code BitcodeReader::ParseBitcodeInto(Module *M) {
  1982. TheModule = nullptr;
  1983. if (std::error_code EC = InitStream())
  1984. return EC;
  1985. // Sniff for the signature.
  1986. if (Stream.Read(8) != 'B' ||
  1987. Stream.Read(8) != 'C' ||
  1988. Stream.Read(4) != 0x0 ||
  1989. Stream.Read(4) != 0xC ||
  1990. Stream.Read(4) != 0xE ||
  1991. Stream.Read(4) != 0xD)
  1992. return Error(BitcodeError::InvalidBitcodeSignature);
  1993. // We expect a number of well-defined blocks, though we don't necessarily
  1994. // need to understand them all.
  1995. while (1) {
  1996. if (Stream.AtEndOfStream())
  1997. return std::error_code();
  1998. BitstreamEntry Entry =
  1999. Stream.advance(BitstreamCursor::AF_DontAutoprocessAbbrevs);
  2000. switch (Entry.Kind) {
  2001. case BitstreamEntry::Error:
  2002. return Error(BitcodeError::MalformedBlock);
  2003. case BitstreamEntry::EndBlock:
  2004. return std::error_code();
  2005. case BitstreamEntry::SubBlock:
  2006. switch (Entry.ID) {
  2007. case bitc::BLOCKINFO_BLOCK_ID:
  2008. if (Stream.ReadBlockInfoBlock())
  2009. return Error(BitcodeError::MalformedBlock);
  2010. break;
  2011. case bitc::MODULE_BLOCK_ID:
  2012. // Reject multiple MODULE_BLOCK's in a single bitstream.
  2013. if (TheModule)
  2014. return Error(BitcodeError::InvalidMultipleBlocks);
  2015. TheModule = M;
  2016. if (std::error_code EC = ParseModule(false))
  2017. return EC;
  2018. if (LazyStreamer)
  2019. return std::error_code();
  2020. break;
  2021. default:
  2022. if (Stream.SkipBlock())
  2023. return Error(BitcodeError::InvalidRecord);
  2024. break;
  2025. }
  2026. continue;
  2027. case BitstreamEntry::Record:
  2028. // There should be no records in the top-level of blocks.
  2029. // The ranlib in Xcode 4 will align archive members by appending newlines
  2030. // to the end of them. If this file size is a multiple of 4 but not 8, we
  2031. // have to read and ignore these final 4 bytes :-(
  2032. if (Stream.getAbbrevIDWidth() == 2 && Entry.ID == 2 &&
  2033. Stream.Read(6) == 2 && Stream.Read(24) == 0xa0a0a &&
  2034. Stream.AtEndOfStream())
  2035. return std::error_code();
  2036. return Error(BitcodeError::InvalidRecord);
  2037. }
  2038. }
  2039. }
  2040. ErrorOr<std::string> BitcodeReader::parseModuleTriple() {
  2041. if (Stream.EnterSubBlock(bitc::MODULE_BLOCK_ID))
  2042. return Error(BitcodeError::InvalidRecord);
  2043. SmallVector<uint64_t, 64> Record;
  2044. std::string Triple;
  2045. // Read all the records for this module.
  2046. while (1) {
  2047. BitstreamEntry Entry = Stream.advanceSkippingSubblocks();
  2048. switch (Entry.Kind) {
  2049. case BitstreamEntry::SubBlock: // Handled for us already.
  2050. case BitstreamEntry::Error:
  2051. return Error(BitcodeError::MalformedBlock);
  2052. case BitstreamEntry::EndBlock:
  2053. return Triple;
  2054. case BitstreamEntry::Record:
  2055. // The interesting case.
  2056. break;
  2057. }
  2058. // Read a record.
  2059. switch (Stream.readRecord(Entry.ID, Record)) {
  2060. default: break; // Default behavior, ignore unknown content.
  2061. case bitc::MODULE_CODE_TRIPLE: { // TRIPLE: [strchr x N]
  2062. std::string S;
  2063. if (ConvertToString(Record, 0, S))
  2064. return Error(BitcodeError::InvalidRecord);
  2065. Triple = S;
  2066. break;
  2067. }
  2068. }
  2069. Record.clear();
  2070. }
  2071. llvm_unreachable("Exit infinite loop");
  2072. }
  2073. ErrorOr<std::string> BitcodeReader::parseTriple() {
  2074. if (std::error_code EC = InitStream())
  2075. return EC;
  2076. // Sniff for the signature.
  2077. if (Stream.Read(8) != 'B' ||
  2078. Stream.Read(8) != 'C' ||
  2079. Stream.Read(4) != 0x0 ||
  2080. Stream.Read(4) != 0xC ||
  2081. Stream.Read(4) != 0xE ||
  2082. Stream.Read(4) != 0xD)
  2083. return Error(BitcodeError::InvalidBitcodeSignature);
  2084. // We expect a number of well-defined blocks, though we don't necessarily
  2085. // need to understand them all.
  2086. while (1) {
  2087. BitstreamEntry Entry = Stream.advance();
  2088. switch (Entry.Kind) {
  2089. case BitstreamEntry::Error:
  2090. return Error(BitcodeError::MalformedBlock);
  2091. case BitstreamEntry::EndBlock:
  2092. return std::error_code();
  2093. case BitstreamEntry::SubBlock:
  2094. if (Entry.ID == bitc::MODULE_BLOCK_ID)
  2095. return parseModuleTriple();
  2096. // Ignore other sub-blocks.
  2097. if (Stream.SkipBlock())
  2098. return Error(BitcodeError::MalformedBlock);
  2099. continue;
  2100. case BitstreamEntry::Record:
  2101. Stream.skipRecord(Entry.ID);
  2102. continue;
  2103. }
  2104. }
  2105. }
  2106. /// ParseMetadataAttachment - Parse metadata attachments.
  2107. std::error_code BitcodeReader::ParseMetadataAttachment() {
  2108. if (Stream.EnterSubBlock(bitc::METADATA_ATTACHMENT_ID))
  2109. return Error(BitcodeError::InvalidRecord);
  2110. SmallVector<uint64_t, 64> Record;
  2111. while (1) {
  2112. BitstreamEntry Entry = Stream.advanceSkippingSubblocks();
  2113. switch (Entry.Kind) {
  2114. case BitstreamEntry::SubBlock: // Handled for us already.
  2115. case BitstreamEntry::Error:
  2116. return Error(BitcodeError::MalformedBlock);
  2117. case BitstreamEntry::EndBlock:
  2118. return std::error_code();
  2119. case BitstreamEntry::Record:
  2120. // The interesting case.
  2121. break;
  2122. }
  2123. // Read a metadata attachment record.
  2124. Record.clear();
  2125. switch (Stream.readRecord(Entry.ID, Record)) {
  2126. default: // Default behavior: ignore.
  2127. break;
  2128. case bitc::METADATA_ATTACHMENT: {
  2129. unsigned RecordLength = Record.size();
  2130. if (Record.empty() || (RecordLength - 1) % 2 == 1)
  2131. return Error(BitcodeError::InvalidRecord);
  2132. Instruction *Inst = InstructionList[Record[0]];
  2133. for (unsigned i = 1; i != RecordLength; i = i+2) {
  2134. unsigned Kind = Record[i];
  2135. DenseMap<unsigned, unsigned>::iterator I =
  2136. MDKindMap.find(Kind);
  2137. if (I == MDKindMap.end())
  2138. return Error(BitcodeError::InvalidID);
  2139. Metadata *Node = MDValueList.getValueFwdRef(Record[i + 1]);
  2140. if (isa<LocalAsMetadata>(Node))
  2141. // Drop the attachment. This used to be legal, but there's no
  2142. // upgrade path.
  2143. break;
  2144. Inst->setMetadata(I->second, cast<MDNode>(Node));
  2145. if (I->second == LLVMContext::MD_tbaa)
  2146. InstsWithTBAATag.push_back(Inst);
  2147. }
  2148. break;
  2149. }
  2150. }
  2151. }
  2152. }
  2153. /// ParseFunctionBody - Lazily parse the specified function body block.
  2154. std::error_code BitcodeReader::ParseFunctionBody(Function *F) {
  2155. if (Stream.EnterSubBlock(bitc::FUNCTION_BLOCK_ID))
  2156. return Error(BitcodeError::InvalidRecord);
  2157. InstructionList.clear();
  2158. unsigned ModuleValueListSize = ValueList.size();
  2159. unsigned ModuleMDValueListSize = MDValueList.size();
  2160. // Add all the function arguments to the value table.
  2161. for(Function::arg_iterator I = F->arg_begin(), E = F->arg_end(); I != E; ++I)
  2162. ValueList.push_back(I);
  2163. unsigned NextValueNo = ValueList.size();
  2164. BasicBlock *CurBB = nullptr;
  2165. unsigned CurBBNo = 0;
  2166. DebugLoc LastLoc;
  2167. // Read all the records.
  2168. SmallVector<uint64_t, 64> Record;
  2169. while (1) {
  2170. BitstreamEntry Entry = Stream.advance();
  2171. switch (Entry.Kind) {
  2172. case BitstreamEntry::Error:
  2173. return Error(BitcodeError::MalformedBlock);
  2174. case BitstreamEntry::EndBlock:
  2175. goto OutOfRecordLoop;
  2176. case BitstreamEntry::SubBlock:
  2177. switch (Entry.ID) {
  2178. default: // Skip unknown content.
  2179. if (Stream.SkipBlock())
  2180. return Error(BitcodeError::InvalidRecord);
  2181. break;
  2182. case bitc::CONSTANTS_BLOCK_ID:
  2183. if (std::error_code EC = ParseConstants())
  2184. return EC;
  2185. NextValueNo = ValueList.size();
  2186. break;
  2187. case bitc::VALUE_SYMTAB_BLOCK_ID:
  2188. if (std::error_code EC = ParseValueSymbolTable())
  2189. return EC;
  2190. break;
  2191. case bitc::METADATA_ATTACHMENT_ID:
  2192. if (std::error_code EC = ParseMetadataAttachment())
  2193. return EC;
  2194. break;
  2195. case bitc::METADATA_BLOCK_ID:
  2196. if (std::error_code EC = ParseMetadata())
  2197. return EC;
  2198. break;
  2199. case bitc::USELIST_BLOCK_ID:
  2200. if (std::error_code EC = ParseUseLists())
  2201. return EC;
  2202. break;
  2203. }
  2204. continue;
  2205. case BitstreamEntry::Record:
  2206. // The interesting case.
  2207. break;
  2208. }
  2209. // Read a record.
  2210. Record.clear();
  2211. Instruction *I = nullptr;
  2212. unsigned BitCode = Stream.readRecord(Entry.ID, Record);
  2213. switch (BitCode) {
  2214. default: // Default behavior: reject
  2215. return Error(BitcodeError::InvalidValue);
  2216. case bitc::FUNC_CODE_DECLAREBLOCKS: { // DECLAREBLOCKS: [nblocks]
  2217. if (Record.size() < 1 || Record[0] == 0)
  2218. return Error(BitcodeError::InvalidRecord);
  2219. // Create all the basic blocks for the function.
  2220. FunctionBBs.resize(Record[0]);
  2221. // See if anything took the address of blocks in this function.
  2222. auto BBFRI = BasicBlockFwdRefs.find(F);
  2223. if (BBFRI == BasicBlockFwdRefs.end()) {
  2224. for (unsigned i = 0, e = FunctionBBs.size(); i != e; ++i)
  2225. FunctionBBs[i] = BasicBlock::Create(Context, "", F);
  2226. } else {
  2227. auto &BBRefs = BBFRI->second;
  2228. // Check for invalid basic block references.
  2229. if (BBRefs.size() > FunctionBBs.size())
  2230. return Error(BitcodeError::InvalidID);
  2231. assert(!BBRefs.empty() && "Unexpected empty array");
  2232. assert(!BBRefs.front() && "Invalid reference to entry block");
  2233. for (unsigned I = 0, E = FunctionBBs.size(), RE = BBRefs.size(); I != E;
  2234. ++I)
  2235. if (I < RE && BBRefs[I]) {
  2236. BBRefs[I]->insertInto(F);
  2237. FunctionBBs[I] = BBRefs[I];
  2238. } else {
  2239. FunctionBBs[I] = BasicBlock::Create(Context, "", F);
  2240. }
  2241. // Erase from the table.
  2242. BasicBlockFwdRefs.erase(BBFRI);
  2243. }
  2244. CurBB = FunctionBBs[0];
  2245. continue;
  2246. }
  2247. case bitc::FUNC_CODE_DEBUG_LOC_AGAIN: // DEBUG_LOC_AGAIN
  2248. // This record indicates that the last instruction is at the same
  2249. // location as the previous instruction with a location.
  2250. I = nullptr;
  2251. // Get the last instruction emitted.
  2252. if (CurBB && !CurBB->empty())
  2253. I = &CurBB->back();
  2254. else if (CurBBNo && FunctionBBs[CurBBNo-1] &&
  2255. !FunctionBBs[CurBBNo-1]->empty())
  2256. I = &FunctionBBs[CurBBNo-1]->back();
  2257. if (!I)
  2258. return Error(BitcodeError::InvalidRecord);
  2259. I->setDebugLoc(LastLoc);
  2260. I = nullptr;
  2261. continue;
  2262. case bitc::FUNC_CODE_DEBUG_LOC: { // DEBUG_LOC: [line, col, scope, ia]
  2263. I = nullptr; // Get the last instruction emitted.
  2264. if (CurBB && !CurBB->empty())
  2265. I = &CurBB->back();
  2266. else if (CurBBNo && FunctionBBs[CurBBNo-1] &&
  2267. !FunctionBBs[CurBBNo-1]->empty())
  2268. I = &FunctionBBs[CurBBNo-1]->back();
  2269. if (!I || Record.size() < 4)
  2270. return Error(BitcodeError::InvalidRecord);
  2271. unsigned Line = Record[0], Col = Record[1];
  2272. unsigned ScopeID = Record[2], IAID = Record[3];
  2273. MDNode *Scope = nullptr, *IA = nullptr;
  2274. if (ScopeID) Scope = cast<MDNode>(MDValueList.getValueFwdRef(ScopeID-1));
  2275. if (IAID) IA = cast<MDNode>(MDValueList.getValueFwdRef(IAID-1));
  2276. LastLoc = DebugLoc::get(Line, Col, Scope, IA);
  2277. I->setDebugLoc(LastLoc);
  2278. I = nullptr;
  2279. continue;
  2280. }
  2281. case bitc::FUNC_CODE_INST_BINOP: { // BINOP: [opval, ty, opval, opcode]
  2282. unsigned OpNum = 0;
  2283. Value *LHS, *RHS;
  2284. if (getValueTypePair(Record, OpNum, NextValueNo, LHS) ||
  2285. popValue(Record, OpNum, NextValueNo, LHS->getType(), RHS) ||
  2286. OpNum+1 > Record.size())
  2287. return Error(BitcodeError::InvalidRecord);
  2288. int Opc = GetDecodedBinaryOpcode(Record[OpNum++], LHS->getType());
  2289. if (Opc == -1)
  2290. return Error(BitcodeError::InvalidRecord);
  2291. I = BinaryOperator::Create((Instruction::BinaryOps)Opc, LHS, RHS);
  2292. InstructionList.push_back(I);
  2293. if (OpNum < Record.size()) {
  2294. if (Opc == Instruction::Add ||
  2295. Opc == Instruction::Sub ||
  2296. Opc == Instruction::Mul ||
  2297. Opc == Instruction::Shl) {
  2298. if (Record[OpNum] & (1 << bitc::OBO_NO_SIGNED_WRAP))
  2299. cast<BinaryOperator>(I)->setHasNoSignedWrap(true);
  2300. if (Record[OpNum] & (1 << bitc::OBO_NO_UNSIGNED_WRAP))
  2301. cast<BinaryOperator>(I)->setHasNoUnsignedWrap(true);
  2302. } else if (Opc == Instruction::SDiv ||
  2303. Opc == Instruction::UDiv ||
  2304. Opc == Instruction::LShr ||
  2305. Opc == Instruction::AShr) {
  2306. if (Record[OpNum] & (1 << bitc::PEO_EXACT))
  2307. cast<BinaryOperator>(I)->setIsExact(true);
  2308. } else if (isa<FPMathOperator>(I)) {
  2309. FastMathFlags FMF;
  2310. if (0 != (Record[OpNum] & FastMathFlags::UnsafeAlgebra))
  2311. FMF.setUnsafeAlgebra();
  2312. if (0 != (Record[OpNum] & FastMathFlags::NoNaNs))
  2313. FMF.setNoNaNs();
  2314. if (0 != (Record[OpNum] & FastMathFlags::NoInfs))
  2315. FMF.setNoInfs();
  2316. if (0 != (Record[OpNum] & FastMathFlags::NoSignedZeros))
  2317. FMF.setNoSignedZeros();
  2318. if (0 != (Record[OpNum] & FastMathFlags::AllowReciprocal))
  2319. FMF.setAllowReciprocal();
  2320. if (FMF.any())
  2321. I->setFastMathFlags(FMF);
  2322. }
  2323. }
  2324. break;
  2325. }
  2326. case bitc::FUNC_CODE_INST_CAST: { // CAST: [opval, opty, destty, castopc]
  2327. unsigned OpNum = 0;
  2328. Value *Op;
  2329. if (getValueTypePair(Record, OpNum, NextValueNo, Op) ||
  2330. OpNum+2 != Record.size())
  2331. return Error(BitcodeError::InvalidRecord);
  2332. Type *ResTy = getTypeByID(Record[OpNum]);
  2333. int Opc = GetDecodedCastOpcode(Record[OpNum+1]);
  2334. if (Opc == -1 || !ResTy)
  2335. return Error(BitcodeError::InvalidRecord);
  2336. Instruction *Temp = nullptr;
  2337. if ((I = UpgradeBitCastInst(Opc, Op, ResTy, Temp))) {
  2338. if (Temp) {
  2339. InstructionList.push_back(Temp);
  2340. CurBB->getInstList().push_back(Temp);
  2341. }
  2342. } else {
  2343. I = CastInst::Create((Instruction::CastOps)Opc, Op, ResTy);
  2344. }
  2345. InstructionList.push_back(I);
  2346. break;
  2347. }
  2348. case bitc::FUNC_CODE_INST_INBOUNDS_GEP:
  2349. case bitc::FUNC_CODE_INST_GEP: { // GEP: [n x operands]
  2350. unsigned OpNum = 0;
  2351. Value *BasePtr;
  2352. if (getValueTypePair(Record, OpNum, NextValueNo, BasePtr))
  2353. return Error(BitcodeError::InvalidRecord);
  2354. SmallVector<Value*, 16> GEPIdx;
  2355. while (OpNum != Record.size()) {
  2356. Value *Op;
  2357. if (getValueTypePair(Record, OpNum, NextValueNo, Op))
  2358. return Error(BitcodeError::InvalidRecord);
  2359. GEPIdx.push_back(Op);
  2360. }
  2361. I = GetElementPtrInst::Create(BasePtr, GEPIdx);
  2362. InstructionList.push_back(I);
  2363. if (BitCode == bitc::FUNC_CODE_INST_INBOUNDS_GEP)
  2364. cast<GetElementPtrInst>(I)->setIsInBounds(true);
  2365. break;
  2366. }
  2367. case bitc::FUNC_CODE_INST_EXTRACTVAL: {
  2368. // EXTRACTVAL: [opty, opval, n x indices]
  2369. unsigned OpNum = 0;
  2370. Value *Agg;
  2371. if (getValueTypePair(Record, OpNum, NextValueNo, Agg))
  2372. return Error(BitcodeError::InvalidRecord);
  2373. SmallVector<unsigned, 4> EXTRACTVALIdx;
  2374. for (unsigned RecSize = Record.size();
  2375. OpNum != RecSize; ++OpNum) {
  2376. uint64_t Index = Record[OpNum];
  2377. if ((unsigned)Index != Index)
  2378. return Error(BitcodeError::InvalidValue);
  2379. EXTRACTVALIdx.push_back((unsigned)Index);
  2380. }
  2381. I = ExtractValueInst::Create(Agg, EXTRACTVALIdx);
  2382. InstructionList.push_back(I);
  2383. break;
  2384. }
  2385. case bitc::FUNC_CODE_INST_INSERTVAL: {
  2386. // INSERTVAL: [opty, opval, opty, opval, n x indices]
  2387. unsigned OpNum = 0;
  2388. Value *Agg;
  2389. if (getValueTypePair(Record, OpNum, NextValueNo, Agg))
  2390. return Error(BitcodeError::InvalidRecord);
  2391. Value *Val;
  2392. if (getValueTypePair(Record, OpNum, NextValueNo, Val))
  2393. return Error(BitcodeError::InvalidRecord);
  2394. SmallVector<unsigned, 4> INSERTVALIdx;
  2395. for (unsigned RecSize = Record.size();
  2396. OpNum != RecSize; ++OpNum) {
  2397. uint64_t Index = Record[OpNum];
  2398. if ((unsigned)Index != Index)
  2399. return Error(BitcodeError::InvalidValue);
  2400. INSERTVALIdx.push_back((unsigned)Index);
  2401. }
  2402. I = InsertValueInst::Create(Agg, Val, INSERTVALIdx);
  2403. InstructionList.push_back(I);
  2404. break;
  2405. }
  2406. case bitc::FUNC_CODE_INST_SELECT: { // SELECT: [opval, ty, opval, opval]
  2407. // obsolete form of select
  2408. // handles select i1 ... in old bitcode
  2409. unsigned OpNum = 0;
  2410. Value *TrueVal, *FalseVal, *Cond;
  2411. if (getValueTypePair(Record, OpNum, NextValueNo, TrueVal) ||
  2412. popValue(Record, OpNum, NextValueNo, TrueVal->getType(), FalseVal) ||
  2413. popValue(Record, OpNum, NextValueNo, Type::getInt1Ty(Context), Cond))
  2414. return Error(BitcodeError::InvalidRecord);
  2415. I = SelectInst::Create(Cond, TrueVal, FalseVal);
  2416. InstructionList.push_back(I);
  2417. break;
  2418. }
  2419. case bitc::FUNC_CODE_INST_VSELECT: {// VSELECT: [ty,opval,opval,predty,pred]
  2420. // new form of select
  2421. // handles select i1 or select [N x i1]
  2422. unsigned OpNum = 0;
  2423. Value *TrueVal, *FalseVal, *Cond;
  2424. if (getValueTypePair(Record, OpNum, NextValueNo, TrueVal) ||
  2425. popValue(Record, OpNum, NextValueNo, TrueVal->getType(), FalseVal) ||
  2426. getValueTypePair(Record, OpNum, NextValueNo, Cond))
  2427. return Error(BitcodeError::InvalidRecord);
  2428. // select condition can be either i1 or [N x i1]
  2429. if (VectorType* vector_type =
  2430. dyn_cast<VectorType>(Cond->getType())) {
  2431. // expect <n x i1>
  2432. if (vector_type->getElementType() != Type::getInt1Ty(Context))
  2433. return Error(BitcodeError::InvalidTypeForValue);
  2434. } else {
  2435. // expect i1
  2436. if (Cond->getType() != Type::getInt1Ty(Context))
  2437. return Error(BitcodeError::InvalidTypeForValue);
  2438. }
  2439. I = SelectInst::Create(Cond, TrueVal, FalseVal);
  2440. InstructionList.push_back(I);
  2441. break;
  2442. }
  2443. case bitc::FUNC_CODE_INST_EXTRACTELT: { // EXTRACTELT: [opty, opval, opval]
  2444. unsigned OpNum = 0;
  2445. Value *Vec, *Idx;
  2446. if (getValueTypePair(Record, OpNum, NextValueNo, Vec) ||
  2447. getValueTypePair(Record, OpNum, NextValueNo, Idx))
  2448. return Error(BitcodeError::InvalidRecord);
  2449. I = ExtractElementInst::Create(Vec, Idx);
  2450. InstructionList.push_back(I);
  2451. break;
  2452. }
  2453. case bitc::FUNC_CODE_INST_INSERTELT: { // INSERTELT: [ty, opval,opval,opval]
  2454. unsigned OpNum = 0;
  2455. Value *Vec, *Elt, *Idx;
  2456. if (getValueTypePair(Record, OpNum, NextValueNo, Vec) ||
  2457. popValue(Record, OpNum, NextValueNo,
  2458. cast<VectorType>(Vec->getType())->getElementType(), Elt) ||
  2459. getValueTypePair(Record, OpNum, NextValueNo, Idx))
  2460. return Error(BitcodeError::InvalidRecord);
  2461. I = InsertElementInst::Create(Vec, Elt, Idx);
  2462. InstructionList.push_back(I);
  2463. break;
  2464. }
  2465. case bitc::FUNC_CODE_INST_SHUFFLEVEC: {// SHUFFLEVEC: [opval,ty,opval,opval]
  2466. unsigned OpNum = 0;
  2467. Value *Vec1, *Vec2, *Mask;
  2468. if (getValueTypePair(Record, OpNum, NextValueNo, Vec1) ||
  2469. popValue(Record, OpNum, NextValueNo, Vec1->getType(), Vec2))
  2470. return Error(BitcodeError::InvalidRecord);
  2471. if (getValueTypePair(Record, OpNum, NextValueNo, Mask))
  2472. return Error(BitcodeError::InvalidRecord);
  2473. I = new ShuffleVectorInst(Vec1, Vec2, Mask);
  2474. InstructionList.push_back(I);
  2475. break;
  2476. }
  2477. case bitc::FUNC_CODE_INST_CMP: // CMP: [opty, opval, opval, pred]
  2478. // Old form of ICmp/FCmp returning bool
  2479. // Existed to differentiate between icmp/fcmp and vicmp/vfcmp which were
  2480. // both legal on vectors but had different behaviour.
  2481. case bitc::FUNC_CODE_INST_CMP2: { // CMP2: [opty, opval, opval, pred]
  2482. // FCmp/ICmp returning bool or vector of bool
  2483. unsigned OpNum = 0;
  2484. Value *LHS, *RHS;
  2485. if (getValueTypePair(Record, OpNum, NextValueNo, LHS) ||
  2486. popValue(Record, OpNum, NextValueNo, LHS->getType(), RHS) ||
  2487. OpNum+1 != Record.size())
  2488. return Error(BitcodeError::InvalidRecord);
  2489. if (LHS->getType()->isFPOrFPVectorTy())
  2490. I = new FCmpInst((FCmpInst::Predicate)Record[OpNum], LHS, RHS);
  2491. else
  2492. I = new ICmpInst((ICmpInst::Predicate)Record[OpNum], LHS, RHS);
  2493. InstructionList.push_back(I);
  2494. break;
  2495. }
  2496. case bitc::FUNC_CODE_INST_RET: // RET: [opty,opval<optional>]
  2497. {
  2498. unsigned Size = Record.size();
  2499. if (Size == 0) {
  2500. I = ReturnInst::Create(Context);
  2501. InstructionList.push_back(I);
  2502. break;
  2503. }
  2504. unsigned OpNum = 0;
  2505. Value *Op = nullptr;
  2506. if (getValueTypePair(Record, OpNum, NextValueNo, Op))
  2507. return Error(BitcodeError::InvalidRecord);
  2508. if (OpNum != Record.size())
  2509. return Error(BitcodeError::InvalidRecord);
  2510. I = ReturnInst::Create(Context, Op);
  2511. InstructionList.push_back(I);
  2512. break;
  2513. }
  2514. case bitc::FUNC_CODE_INST_BR: { // BR: [bb#, bb#, opval] or [bb#]
  2515. if (Record.size() != 1 && Record.size() != 3)
  2516. return Error(BitcodeError::InvalidRecord);
  2517. BasicBlock *TrueDest = getBasicBlock(Record[0]);
  2518. if (!TrueDest)
  2519. return Error(BitcodeError::InvalidRecord);
  2520. if (Record.size() == 1) {
  2521. I = BranchInst::Create(TrueDest);
  2522. InstructionList.push_back(I);
  2523. }
  2524. else {
  2525. BasicBlock *FalseDest = getBasicBlock(Record[1]);
  2526. Value *Cond = getValue(Record, 2, NextValueNo,
  2527. Type::getInt1Ty(Context));
  2528. if (!FalseDest || !Cond)
  2529. return Error(BitcodeError::InvalidRecord);
  2530. I = BranchInst::Create(TrueDest, FalseDest, Cond);
  2531. InstructionList.push_back(I);
  2532. }
  2533. break;
  2534. }
  2535. case bitc::FUNC_CODE_INST_SWITCH: { // SWITCH: [opty, op0, op1, ...]
  2536. // Check magic
  2537. if ((Record[0] >> 16) == SWITCH_INST_MAGIC) {
  2538. // "New" SwitchInst format with case ranges. The changes to write this
  2539. // format were reverted but we still recognize bitcode that uses it.
  2540. // Hopefully someday we will have support for case ranges and can use
  2541. // this format again.
  2542. Type *OpTy = getTypeByID(Record[1]);
  2543. unsigned ValueBitWidth = cast<IntegerType>(OpTy)->getBitWidth();
  2544. Value *Cond = getValue(Record, 2, NextValueNo, OpTy);
  2545. BasicBlock *Default = getBasicBlock(Record[3]);
  2546. if (!OpTy || !Cond || !Default)
  2547. return Error(BitcodeError::InvalidRecord);
  2548. unsigned NumCases = Record[4];
  2549. SwitchInst *SI = SwitchInst::Create(Cond, Default, NumCases);
  2550. InstructionList.push_back(SI);
  2551. unsigned CurIdx = 5;
  2552. for (unsigned i = 0; i != NumCases; ++i) {
  2553. SmallVector<ConstantInt*, 1> CaseVals;
  2554. unsigned NumItems = Record[CurIdx++];
  2555. for (unsigned ci = 0; ci != NumItems; ++ci) {
  2556. bool isSingleNumber = Record[CurIdx++];
  2557. APInt Low;
  2558. unsigned ActiveWords = 1;
  2559. if (ValueBitWidth > 64)
  2560. ActiveWords = Record[CurIdx++];
  2561. Low = ReadWideAPInt(makeArrayRef(&Record[CurIdx], ActiveWords),
  2562. ValueBitWidth);
  2563. CurIdx += ActiveWords;
  2564. if (!isSingleNumber) {
  2565. ActiveWords = 1;
  2566. if (ValueBitWidth > 64)
  2567. ActiveWords = Record[CurIdx++];
  2568. APInt High =
  2569. ReadWideAPInt(makeArrayRef(&Record[CurIdx], ActiveWords),
  2570. ValueBitWidth);
  2571. CurIdx += ActiveWords;
  2572. // FIXME: It is not clear whether values in the range should be
  2573. // compared as signed or unsigned values. The partially
  2574. // implemented changes that used this format in the past used
  2575. // unsigned comparisons.
  2576. for ( ; Low.ule(High); ++Low)
  2577. CaseVals.push_back(ConstantInt::get(Context, Low));
  2578. } else
  2579. CaseVals.push_back(ConstantInt::get(Context, Low));
  2580. }
  2581. BasicBlock *DestBB = getBasicBlock(Record[CurIdx++]);
  2582. for (SmallVector<ConstantInt*, 1>::iterator cvi = CaseVals.begin(),
  2583. cve = CaseVals.end(); cvi != cve; ++cvi)
  2584. SI->addCase(*cvi, DestBB);
  2585. }
  2586. I = SI;
  2587. break;
  2588. }
  2589. // Old SwitchInst format without case ranges.
  2590. if (Record.size() < 3 || (Record.size() & 1) == 0)
  2591. return Error(BitcodeError::InvalidRecord);
  2592. Type *OpTy = getTypeByID(Record[0]);
  2593. Value *Cond = getValue(Record, 1, NextValueNo, OpTy);
  2594. BasicBlock *Default = getBasicBlock(Record[2]);
  2595. if (!OpTy || !Cond || !Default)
  2596. return Error(BitcodeError::InvalidRecord);
  2597. unsigned NumCases = (Record.size()-3)/2;
  2598. SwitchInst *SI = SwitchInst::Create(Cond, Default, NumCases);
  2599. InstructionList.push_back(SI);
  2600. for (unsigned i = 0, e = NumCases; i != e; ++i) {
  2601. ConstantInt *CaseVal =
  2602. dyn_cast_or_null<ConstantInt>(getFnValueByID(Record[3+i*2], OpTy));
  2603. BasicBlock *DestBB = getBasicBlock(Record[1+3+i*2]);
  2604. if (!CaseVal || !DestBB) {
  2605. delete SI;
  2606. return Error(BitcodeError::InvalidRecord);
  2607. }
  2608. SI->addCase(CaseVal, DestBB);
  2609. }
  2610. I = SI;
  2611. break;
  2612. }
  2613. case bitc::FUNC_CODE_INST_INDIRECTBR: { // INDIRECTBR: [opty, op0, op1, ...]
  2614. if (Record.size() < 2)
  2615. return Error(BitcodeError::InvalidRecord);
  2616. Type *OpTy = getTypeByID(Record[0]);
  2617. Value *Address = getValue(Record, 1, NextValueNo, OpTy);
  2618. if (!OpTy || !Address)
  2619. return Error(BitcodeError::InvalidRecord);
  2620. unsigned NumDests = Record.size()-2;
  2621. IndirectBrInst *IBI = IndirectBrInst::Create(Address, NumDests);
  2622. InstructionList.push_back(IBI);
  2623. for (unsigned i = 0, e = NumDests; i != e; ++i) {
  2624. if (BasicBlock *DestBB = getBasicBlock(Record[2+i])) {
  2625. IBI->addDestination(DestBB);
  2626. } else {
  2627. delete IBI;
  2628. return Error(BitcodeError::InvalidRecord);
  2629. }
  2630. }
  2631. I = IBI;
  2632. break;
  2633. }
  2634. case bitc::FUNC_CODE_INST_INVOKE: {
  2635. // INVOKE: [attrs, cc, normBB, unwindBB, fnty, op0,op1,op2, ...]
  2636. if (Record.size() < 4)
  2637. return Error(BitcodeError::InvalidRecord);
  2638. AttributeSet PAL = getAttributes(Record[0]);
  2639. unsigned CCInfo = Record[1];
  2640. BasicBlock *NormalBB = getBasicBlock(Record[2]);
  2641. BasicBlock *UnwindBB = getBasicBlock(Record[3]);
  2642. unsigned OpNum = 4;
  2643. Value *Callee;
  2644. if (getValueTypePair(Record, OpNum, NextValueNo, Callee))
  2645. return Error(BitcodeError::InvalidRecord);
  2646. PointerType *CalleeTy = dyn_cast<PointerType>(Callee->getType());
  2647. FunctionType *FTy = !CalleeTy ? nullptr :
  2648. dyn_cast<FunctionType>(CalleeTy->getElementType());
  2649. // Check that the right number of fixed parameters are here.
  2650. if (!FTy || !NormalBB || !UnwindBB ||
  2651. Record.size() < OpNum+FTy->getNumParams())
  2652. return Error(BitcodeError::InvalidRecord);
  2653. SmallVector<Value*, 16> Ops;
  2654. for (unsigned i = 0, e = FTy->getNumParams(); i != e; ++i, ++OpNum) {
  2655. Ops.push_back(getValue(Record, OpNum, NextValueNo,
  2656. FTy->getParamType(i)));
  2657. if (!Ops.back())
  2658. return Error(BitcodeError::InvalidRecord);
  2659. }
  2660. if (!FTy->isVarArg()) {
  2661. if (Record.size() != OpNum)
  2662. return Error(BitcodeError::InvalidRecord);
  2663. } else {
  2664. // Read type/value pairs for varargs params.
  2665. while (OpNum != Record.size()) {
  2666. Value *Op;
  2667. if (getValueTypePair(Record, OpNum, NextValueNo, Op))
  2668. return Error(BitcodeError::InvalidRecord);
  2669. Ops.push_back(Op);
  2670. }
  2671. }
  2672. I = InvokeInst::Create(Callee, NormalBB, UnwindBB, Ops);
  2673. InstructionList.push_back(I);
  2674. cast<InvokeInst>(I)->setCallingConv(
  2675. static_cast<CallingConv::ID>(CCInfo));
  2676. cast<InvokeInst>(I)->setAttributes(PAL);
  2677. break;
  2678. }
  2679. case bitc::FUNC_CODE_INST_RESUME: { // RESUME: [opval]
  2680. unsigned Idx = 0;
  2681. Value *Val = nullptr;
  2682. if (getValueTypePair(Record, Idx, NextValueNo, Val))
  2683. return Error(BitcodeError::InvalidRecord);
  2684. I = ResumeInst::Create(Val);
  2685. InstructionList.push_back(I);
  2686. break;
  2687. }
  2688. case bitc::FUNC_CODE_INST_UNREACHABLE: // UNREACHABLE
  2689. I = new UnreachableInst(Context);
  2690. InstructionList.push_back(I);
  2691. break;
  2692. case bitc::FUNC_CODE_INST_PHI: { // PHI: [ty, val0,bb0, ...]
  2693. if (Record.size() < 1 || ((Record.size()-1)&1))
  2694. return Error(BitcodeError::InvalidRecord);
  2695. Type *Ty = getTypeByID(Record[0]);
  2696. if (!Ty)
  2697. return Error(BitcodeError::InvalidRecord);
  2698. PHINode *PN = PHINode::Create(Ty, (Record.size()-1)/2);
  2699. InstructionList.push_back(PN);
  2700. for (unsigned i = 0, e = Record.size()-1; i != e; i += 2) {
  2701. Value *V;
  2702. // With the new function encoding, it is possible that operands have
  2703. // negative IDs (for forward references). Use a signed VBR
  2704. // representation to keep the encoding small.
  2705. if (UseRelativeIDs)
  2706. V = getValueSigned(Record, 1+i, NextValueNo, Ty);
  2707. else
  2708. V = getValue(Record, 1+i, NextValueNo, Ty);
  2709. BasicBlock *BB = getBasicBlock(Record[2+i]);
  2710. if (!V || !BB)
  2711. return Error(BitcodeError::InvalidRecord);
  2712. PN->addIncoming(V, BB);
  2713. }
  2714. I = PN;
  2715. break;
  2716. }
  2717. case bitc::FUNC_CODE_INST_LANDINGPAD: {
  2718. // LANDINGPAD: [ty, val, val, num, (id0,val0 ...)?]
  2719. unsigned Idx = 0;
  2720. if (Record.size() < 4)
  2721. return Error(BitcodeError::InvalidRecord);
  2722. Type *Ty = getTypeByID(Record[Idx++]);
  2723. if (!Ty)
  2724. return Error(BitcodeError::InvalidRecord);
  2725. Value *PersFn = nullptr;
  2726. if (getValueTypePair(Record, Idx, NextValueNo, PersFn))
  2727. return Error(BitcodeError::InvalidRecord);
  2728. bool IsCleanup = !!Record[Idx++];
  2729. unsigned NumClauses = Record[Idx++];
  2730. LandingPadInst *LP = LandingPadInst::Create(Ty, PersFn, NumClauses);
  2731. LP->setCleanup(IsCleanup);
  2732. for (unsigned J = 0; J != NumClauses; ++J) {
  2733. LandingPadInst::ClauseType CT =
  2734. LandingPadInst::ClauseType(Record[Idx++]); (void)CT;
  2735. Value *Val;
  2736. if (getValueTypePair(Record, Idx, NextValueNo, Val)) {
  2737. delete LP;
  2738. return Error(BitcodeError::InvalidRecord);
  2739. }
  2740. assert((CT != LandingPadInst::Catch ||
  2741. !isa<ArrayType>(Val->getType())) &&
  2742. "Catch clause has a invalid type!");
  2743. assert((CT != LandingPadInst::Filter ||
  2744. isa<ArrayType>(Val->getType())) &&
  2745. "Filter clause has invalid type!");
  2746. LP->addClause(cast<Constant>(Val));
  2747. }
  2748. I = LP;
  2749. InstructionList.push_back(I);
  2750. break;
  2751. }
  2752. case bitc::FUNC_CODE_INST_ALLOCA: { // ALLOCA: [instty, opty, op, align]
  2753. if (Record.size() != 4)
  2754. return Error(BitcodeError::InvalidRecord);
  2755. PointerType *Ty =
  2756. dyn_cast_or_null<PointerType>(getTypeByID(Record[0]));
  2757. Type *OpTy = getTypeByID(Record[1]);
  2758. Value *Size = getFnValueByID(Record[2], OpTy);
  2759. unsigned AlignRecord = Record[3];
  2760. bool InAlloca = AlignRecord & (1 << 5);
  2761. unsigned Align = AlignRecord & ((1 << 5) - 1);
  2762. if (!Ty || !Size)
  2763. return Error(BitcodeError::InvalidRecord);
  2764. AllocaInst *AI = new AllocaInst(Ty->getElementType(), Size, (1 << Align) >> 1);
  2765. AI->setUsedWithInAlloca(InAlloca);
  2766. I = AI;
  2767. InstructionList.push_back(I);
  2768. break;
  2769. }
  2770. case bitc::FUNC_CODE_INST_LOAD: { // LOAD: [opty, op, align, vol]
  2771. unsigned OpNum = 0;
  2772. Value *Op;
  2773. if (getValueTypePair(Record, OpNum, NextValueNo, Op) ||
  2774. OpNum+2 != Record.size())
  2775. return Error(BitcodeError::InvalidRecord);
  2776. I = new LoadInst(Op, "", Record[OpNum+1], (1 << Record[OpNum]) >> 1);
  2777. InstructionList.push_back(I);
  2778. break;
  2779. }
  2780. case bitc::FUNC_CODE_INST_LOADATOMIC: {
  2781. // LOADATOMIC: [opty, op, align, vol, ordering, synchscope]
  2782. unsigned OpNum = 0;
  2783. Value *Op;
  2784. if (getValueTypePair(Record, OpNum, NextValueNo, Op) ||
  2785. OpNum+4 != Record.size())
  2786. return Error(BitcodeError::InvalidRecord);
  2787. AtomicOrdering Ordering = GetDecodedOrdering(Record[OpNum+2]);
  2788. if (Ordering == NotAtomic || Ordering == Release ||
  2789. Ordering == AcquireRelease)
  2790. return Error(BitcodeError::InvalidRecord);
  2791. if (Ordering != NotAtomic && Record[OpNum] == 0)
  2792. return Error(BitcodeError::InvalidRecord);
  2793. SynchronizationScope SynchScope = GetDecodedSynchScope(Record[OpNum+3]);
  2794. I = new LoadInst(Op, "", Record[OpNum+1], (1 << Record[OpNum]) >> 1,
  2795. Ordering, SynchScope);
  2796. InstructionList.push_back(I);
  2797. break;
  2798. }
  2799. case bitc::FUNC_CODE_INST_STORE: { // STORE2:[ptrty, ptr, val, align, vol]
  2800. unsigned OpNum = 0;
  2801. Value *Val, *Ptr;
  2802. if (getValueTypePair(Record, OpNum, NextValueNo, Ptr) ||
  2803. popValue(Record, OpNum, NextValueNo,
  2804. cast<PointerType>(Ptr->getType())->getElementType(), Val) ||
  2805. OpNum+2 != Record.size())
  2806. return Error(BitcodeError::InvalidRecord);
  2807. I = new StoreInst(Val, Ptr, Record[OpNum+1], (1 << Record[OpNum]) >> 1);
  2808. InstructionList.push_back(I);
  2809. break;
  2810. }
  2811. case bitc::FUNC_CODE_INST_STOREATOMIC: {
  2812. // STOREATOMIC: [ptrty, ptr, val, align, vol, ordering, synchscope]
  2813. unsigned OpNum = 0;
  2814. Value *Val, *Ptr;
  2815. if (getValueTypePair(Record, OpNum, NextValueNo, Ptr) ||
  2816. popValue(Record, OpNum, NextValueNo,
  2817. cast<PointerType>(Ptr->getType())->getElementType(), Val) ||
  2818. OpNum+4 != Record.size())
  2819. return Error(BitcodeError::InvalidRecord);
  2820. AtomicOrdering Ordering = GetDecodedOrdering(Record[OpNum+2]);
  2821. if (Ordering == NotAtomic || Ordering == Acquire ||
  2822. Ordering == AcquireRelease)
  2823. return Error(BitcodeError::InvalidRecord);
  2824. SynchronizationScope SynchScope = GetDecodedSynchScope(Record[OpNum+3]);
  2825. if (Ordering != NotAtomic && Record[OpNum] == 0)
  2826. return Error(BitcodeError::InvalidRecord);
  2827. I = new StoreInst(Val, Ptr, Record[OpNum+1], (1 << Record[OpNum]) >> 1,
  2828. Ordering, SynchScope);
  2829. InstructionList.push_back(I);
  2830. break;
  2831. }
  2832. case bitc::FUNC_CODE_INST_CMPXCHG: {
  2833. // CMPXCHG:[ptrty, ptr, cmp, new, vol, successordering, synchscope,
  2834. // failureordering?, isweak?]
  2835. unsigned OpNum = 0;
  2836. Value *Ptr, *Cmp, *New;
  2837. if (getValueTypePair(Record, OpNum, NextValueNo, Ptr) ||
  2838. popValue(Record, OpNum, NextValueNo,
  2839. cast<PointerType>(Ptr->getType())->getElementType(), Cmp) ||
  2840. popValue(Record, OpNum, NextValueNo,
  2841. cast<PointerType>(Ptr->getType())->getElementType(), New) ||
  2842. (Record.size() < OpNum + 3 || Record.size() > OpNum + 5))
  2843. return Error(BitcodeError::InvalidRecord);
  2844. AtomicOrdering SuccessOrdering = GetDecodedOrdering(Record[OpNum+1]);
  2845. if (SuccessOrdering == NotAtomic || SuccessOrdering == Unordered)
  2846. return Error(BitcodeError::InvalidRecord);
  2847. SynchronizationScope SynchScope = GetDecodedSynchScope(Record[OpNum+2]);
  2848. AtomicOrdering FailureOrdering;
  2849. if (Record.size() < 7)
  2850. FailureOrdering =
  2851. AtomicCmpXchgInst::getStrongestFailureOrdering(SuccessOrdering);
  2852. else
  2853. FailureOrdering = GetDecodedOrdering(Record[OpNum+3]);
  2854. I = new AtomicCmpXchgInst(Ptr, Cmp, New, SuccessOrdering, FailureOrdering,
  2855. SynchScope);
  2856. cast<AtomicCmpXchgInst>(I)->setVolatile(Record[OpNum]);
  2857. if (Record.size() < 8) {
  2858. // Before weak cmpxchgs existed, the instruction simply returned the
  2859. // value loaded from memory, so bitcode files from that era will be
  2860. // expecting the first component of a modern cmpxchg.
  2861. CurBB->getInstList().push_back(I);
  2862. I = ExtractValueInst::Create(I, 0);
  2863. } else {
  2864. cast<AtomicCmpXchgInst>(I)->setWeak(Record[OpNum+4]);
  2865. }
  2866. InstructionList.push_back(I);
  2867. break;
  2868. }
  2869. case bitc::FUNC_CODE_INST_ATOMICRMW: {
  2870. // ATOMICRMW:[ptrty, ptr, val, op, vol, ordering, synchscope]
  2871. unsigned OpNum = 0;
  2872. Value *Ptr, *Val;
  2873. if (getValueTypePair(Record, OpNum, NextValueNo, Ptr) ||
  2874. popValue(Record, OpNum, NextValueNo,
  2875. cast<PointerType>(Ptr->getType())->getElementType(), Val) ||
  2876. OpNum+4 != Record.size())
  2877. return Error(BitcodeError::InvalidRecord);
  2878. AtomicRMWInst::BinOp Operation = GetDecodedRMWOperation(Record[OpNum]);
  2879. if (Operation < AtomicRMWInst::FIRST_BINOP ||
  2880. Operation > AtomicRMWInst::LAST_BINOP)
  2881. return Error(BitcodeError::InvalidRecord);
  2882. AtomicOrdering Ordering = GetDecodedOrdering(Record[OpNum+2]);
  2883. if (Ordering == NotAtomic || Ordering == Unordered)
  2884. return Error(BitcodeError::InvalidRecord);
  2885. SynchronizationScope SynchScope = GetDecodedSynchScope(Record[OpNum+3]);
  2886. I = new AtomicRMWInst(Operation, Ptr, Val, Ordering, SynchScope);
  2887. cast<AtomicRMWInst>(I)->setVolatile(Record[OpNum+1]);
  2888. InstructionList.push_back(I);
  2889. break;
  2890. }
  2891. case bitc::FUNC_CODE_INST_FENCE: { // FENCE:[ordering, synchscope]
  2892. if (2 != Record.size())
  2893. return Error(BitcodeError::InvalidRecord);
  2894. AtomicOrdering Ordering = GetDecodedOrdering(Record[0]);
  2895. if (Ordering == NotAtomic || Ordering == Unordered ||
  2896. Ordering == Monotonic)
  2897. return Error(BitcodeError::InvalidRecord);
  2898. SynchronizationScope SynchScope = GetDecodedSynchScope(Record[1]);
  2899. I = new FenceInst(Context, Ordering, SynchScope);
  2900. InstructionList.push_back(I);
  2901. break;
  2902. }
  2903. case bitc::FUNC_CODE_INST_CALL: {
  2904. // CALL: [paramattrs, cc, fnty, fnid, arg0, arg1...]
  2905. if (Record.size() < 3)
  2906. return Error(BitcodeError::InvalidRecord);
  2907. AttributeSet PAL = getAttributes(Record[0]);
  2908. unsigned CCInfo = Record[1];
  2909. unsigned OpNum = 2;
  2910. Value *Callee;
  2911. if (getValueTypePair(Record, OpNum, NextValueNo, Callee))
  2912. return Error(BitcodeError::InvalidRecord);
  2913. PointerType *OpTy = dyn_cast<PointerType>(Callee->getType());
  2914. FunctionType *FTy = nullptr;
  2915. if (OpTy) FTy = dyn_cast<FunctionType>(OpTy->getElementType());
  2916. if (!FTy || Record.size() < FTy->getNumParams()+OpNum)
  2917. return Error(BitcodeError::InvalidRecord);
  2918. SmallVector<Value*, 16> Args;
  2919. // Read the fixed params.
  2920. for (unsigned i = 0, e = FTy->getNumParams(); i != e; ++i, ++OpNum) {
  2921. if (FTy->getParamType(i)->isLabelTy())
  2922. Args.push_back(getBasicBlock(Record[OpNum]));
  2923. else
  2924. Args.push_back(getValue(Record, OpNum, NextValueNo,
  2925. FTy->getParamType(i)));
  2926. if (!Args.back())
  2927. return Error(BitcodeError::InvalidRecord);
  2928. }
  2929. // Read type/value pairs for varargs params.
  2930. if (!FTy->isVarArg()) {
  2931. if (OpNum != Record.size())
  2932. return Error(BitcodeError::InvalidRecord);
  2933. } else {
  2934. while (OpNum != Record.size()) {
  2935. Value *Op;
  2936. if (getValueTypePair(Record, OpNum, NextValueNo, Op))
  2937. return Error(BitcodeError::InvalidRecord);
  2938. Args.push_back(Op);
  2939. }
  2940. }
  2941. I = CallInst::Create(Callee, Args);
  2942. InstructionList.push_back(I);
  2943. cast<CallInst>(I)->setCallingConv(
  2944. static_cast<CallingConv::ID>((~(1U << 14) & CCInfo) >> 1));
  2945. CallInst::TailCallKind TCK = CallInst::TCK_None;
  2946. if (CCInfo & 1)
  2947. TCK = CallInst::TCK_Tail;
  2948. if (CCInfo & (1 << 14))
  2949. TCK = CallInst::TCK_MustTail;
  2950. cast<CallInst>(I)->setTailCallKind(TCK);
  2951. cast<CallInst>(I)->setAttributes(PAL);
  2952. break;
  2953. }
  2954. case bitc::FUNC_CODE_INST_VAARG: { // VAARG: [valistty, valist, instty]
  2955. if (Record.size() < 3)
  2956. return Error(BitcodeError::InvalidRecord);
  2957. Type *OpTy = getTypeByID(Record[0]);
  2958. Value *Op = getValue(Record, 1, NextValueNo, OpTy);
  2959. Type *ResTy = getTypeByID(Record[2]);
  2960. if (!OpTy || !Op || !ResTy)
  2961. return Error(BitcodeError::InvalidRecord);
  2962. I = new VAArgInst(Op, ResTy);
  2963. InstructionList.push_back(I);
  2964. break;
  2965. }
  2966. }
  2967. // Add instruction to end of current BB. If there is no current BB, reject
  2968. // this file.
  2969. if (!CurBB) {
  2970. delete I;
  2971. return Error(BitcodeError::InvalidInstructionWithNoBB);
  2972. }
  2973. CurBB->getInstList().push_back(I);
  2974. // If this was a terminator instruction, move to the next block.
  2975. if (isa<TerminatorInst>(I)) {
  2976. ++CurBBNo;
  2977. CurBB = CurBBNo < FunctionBBs.size() ? FunctionBBs[CurBBNo] : nullptr;
  2978. }
  2979. // Non-void values get registered in the value table for future use.
  2980. if (I && !I->getType()->isVoidTy())
  2981. ValueList.AssignValue(I, NextValueNo++);
  2982. }
  2983. OutOfRecordLoop:
  2984. // Check the function list for unresolved values.
  2985. if (Argument *A = dyn_cast<Argument>(ValueList.back())) {
  2986. if (!A->getParent()) {
  2987. // We found at least one unresolved value. Nuke them all to avoid leaks.
  2988. for (unsigned i = ModuleValueListSize, e = ValueList.size(); i != e; ++i){
  2989. if ((A = dyn_cast_or_null<Argument>(ValueList[i])) && !A->getParent()) {
  2990. A->replaceAllUsesWith(UndefValue::get(A->getType()));
  2991. delete A;
  2992. }
  2993. }
  2994. return Error(BitcodeError::NeverResolvedValueFoundInFunction);
  2995. }
  2996. }
  2997. // FIXME: Check for unresolved forward-declared metadata references
  2998. // and clean up leaks.
  2999. // Trim the value list down to the size it was before we parsed this function.
  3000. ValueList.shrinkTo(ModuleValueListSize);
  3001. MDValueList.shrinkTo(ModuleMDValueListSize);
  3002. std::vector<BasicBlock*>().swap(FunctionBBs);
  3003. return std::error_code();
  3004. }
  3005. /// Find the function body in the bitcode stream
  3006. std::error_code BitcodeReader::FindFunctionInStream(
  3007. Function *F,
  3008. DenseMap<Function *, uint64_t>::iterator DeferredFunctionInfoIterator) {
  3009. while (DeferredFunctionInfoIterator->second == 0) {
  3010. if (Stream.AtEndOfStream())
  3011. return Error(BitcodeError::CouldNotFindFunctionInStream);
  3012. // ParseModule will parse the next body in the stream and set its
  3013. // position in the DeferredFunctionInfo map.
  3014. if (std::error_code EC = ParseModule(true))
  3015. return EC;
  3016. }
  3017. return std::error_code();
  3018. }
  3019. //===----------------------------------------------------------------------===//
  3020. // GVMaterializer implementation
  3021. //===----------------------------------------------------------------------===//
  3022. void BitcodeReader::releaseBuffer() { Buffer.release(); }
  3023. std::error_code BitcodeReader::materialize(GlobalValue *GV) {
  3024. Function *F = dyn_cast<Function>(GV);
  3025. // If it's not a function or is already material, ignore the request.
  3026. if (!F || !F->isMaterializable())
  3027. return std::error_code();
  3028. DenseMap<Function*, uint64_t>::iterator DFII = DeferredFunctionInfo.find(F);
  3029. assert(DFII != DeferredFunctionInfo.end() && "Deferred function not found!");
  3030. // If its position is recorded as 0, its body is somewhere in the stream
  3031. // but we haven't seen it yet.
  3032. if (DFII->second == 0 && LazyStreamer)
  3033. if (std::error_code EC = FindFunctionInStream(F, DFII))
  3034. return EC;
  3035. // Move the bit stream to the saved position of the deferred function body.
  3036. Stream.JumpToBit(DFII->second);
  3037. if (std::error_code EC = ParseFunctionBody(F))
  3038. return EC;
  3039. F->setIsMaterializable(false);
  3040. // Upgrade any old intrinsic calls in the function.
  3041. for (UpgradedIntrinsicMap::iterator I = UpgradedIntrinsics.begin(),
  3042. E = UpgradedIntrinsics.end(); I != E; ++I) {
  3043. if (I->first != I->second) {
  3044. for (auto UI = I->first->user_begin(), UE = I->first->user_end();
  3045. UI != UE;) {
  3046. if (CallInst* CI = dyn_cast<CallInst>(*UI++))
  3047. UpgradeIntrinsicCall(CI, I->second);
  3048. }
  3049. }
  3050. }
  3051. // Bring in any functions that this function forward-referenced via
  3052. // blockaddresses.
  3053. return materializeForwardReferencedFunctions();
  3054. }
  3055. bool BitcodeReader::isDematerializable(const GlobalValue *GV) const {
  3056. const Function *F = dyn_cast<Function>(GV);
  3057. if (!F || F->isDeclaration())
  3058. return false;
  3059. // Dematerializing F would leave dangling references that wouldn't be
  3060. // reconnected on re-materialization.
  3061. if (BlockAddressesTaken.count(F))
  3062. return false;
  3063. return DeferredFunctionInfo.count(const_cast<Function*>(F));
  3064. }
  3065. void BitcodeReader::Dematerialize(GlobalValue *GV) {
  3066. Function *F = dyn_cast<Function>(GV);
  3067. // If this function isn't dematerializable, this is a noop.
  3068. if (!F || !isDematerializable(F))
  3069. return;
  3070. assert(DeferredFunctionInfo.count(F) && "No info to read function later?");
  3071. // Just forget the function body, we can remat it later.
  3072. F->dropAllReferences();
  3073. F->setIsMaterializable(true);
  3074. }
  3075. std::error_code BitcodeReader::MaterializeModule(Module *M) {
  3076. assert(M == TheModule &&
  3077. "Can only Materialize the Module this BitcodeReader is attached to.");
  3078. // Promise to materialize all forward references.
  3079. WillMaterializeAllForwardRefs = true;
  3080. // Iterate over the module, deserializing any functions that are still on
  3081. // disk.
  3082. for (Module::iterator F = TheModule->begin(), E = TheModule->end();
  3083. F != E; ++F) {
  3084. if (std::error_code EC = materialize(F))
  3085. return EC;
  3086. }
  3087. // At this point, if there are any function bodies, the current bit is
  3088. // pointing to the END_BLOCK record after them. Now make sure the rest
  3089. // of the bits in the module have been read.
  3090. if (NextUnreadBit)
  3091. ParseModule(true);
  3092. // Check that all block address forward references got resolved (as we
  3093. // promised above).
  3094. if (!BasicBlockFwdRefs.empty())
  3095. return Error(BitcodeError::NeverResolvedFunctionFromBlockAddress);
  3096. // Upgrade any intrinsic calls that slipped through (should not happen!) and
  3097. // delete the old functions to clean up. We can't do this unless the entire
  3098. // module is materialized because there could always be another function body
  3099. // with calls to the old function.
  3100. for (std::vector<std::pair<Function*, Function*> >::iterator I =
  3101. UpgradedIntrinsics.begin(), E = UpgradedIntrinsics.end(); I != E; ++I) {
  3102. if (I->first != I->second) {
  3103. for (auto UI = I->first->user_begin(), UE = I->first->user_end();
  3104. UI != UE;) {
  3105. if (CallInst* CI = dyn_cast<CallInst>(*UI++))
  3106. UpgradeIntrinsicCall(CI, I->second);
  3107. }
  3108. if (!I->first->use_empty())
  3109. I->first->replaceAllUsesWith(I->second);
  3110. I->first->eraseFromParent();
  3111. }
  3112. }
  3113. std::vector<std::pair<Function*, Function*> >().swap(UpgradedIntrinsics);
  3114. for (unsigned I = 0, E = InstsWithTBAATag.size(); I < E; I++)
  3115. UpgradeInstWithTBAATag(InstsWithTBAATag[I]);
  3116. UpgradeDebugInfo(*M);
  3117. return std::error_code();
  3118. }
  3119. std::vector<StructType *> BitcodeReader::getIdentifiedStructTypes() const {
  3120. return IdentifiedStructTypes;
  3121. }
  3122. std::error_code BitcodeReader::InitStream() {
  3123. if (LazyStreamer)
  3124. return InitLazyStream();
  3125. return InitStreamFromBuffer();
  3126. }
  3127. std::error_code BitcodeReader::InitStreamFromBuffer() {
  3128. const unsigned char *BufPtr = (const unsigned char*)Buffer->getBufferStart();
  3129. const unsigned char *BufEnd = BufPtr+Buffer->getBufferSize();
  3130. if (Buffer->getBufferSize() & 3)
  3131. return Error(BitcodeError::InvalidBitcodeSignature);
  3132. // If we have a wrapper header, parse it and ignore the non-bc file contents.
  3133. // The magic number is 0x0B17C0DE stored in little endian.
  3134. if (isBitcodeWrapper(BufPtr, BufEnd))
  3135. if (SkipBitcodeWrapperHeader(BufPtr, BufEnd, true))
  3136. return Error(BitcodeError::InvalidBitcodeWrapperHeader);
  3137. StreamFile.reset(new BitstreamReader(BufPtr, BufEnd));
  3138. Stream.init(&*StreamFile);
  3139. return std::error_code();
  3140. }
  3141. std::error_code BitcodeReader::InitLazyStream() {
  3142. // Check and strip off the bitcode wrapper; BitstreamReader expects never to
  3143. // see it.
  3144. StreamingMemoryObject *Bytes = new StreamingMemoryObject(LazyStreamer);
  3145. StreamFile.reset(new BitstreamReader(Bytes));
  3146. Stream.init(&*StreamFile);
  3147. unsigned char buf[16];
  3148. if (Bytes->readBytes(buf, 16, 0) != 16)
  3149. return Error(BitcodeError::InvalidBitcodeSignature);
  3150. if (!isBitcode(buf, buf + 16))
  3151. return Error(BitcodeError::InvalidBitcodeSignature);
  3152. if (isBitcodeWrapper(buf, buf + 4)) {
  3153. const unsigned char *bitcodeStart = buf;
  3154. const unsigned char *bitcodeEnd = buf + 16;
  3155. SkipBitcodeWrapperHeader(bitcodeStart, bitcodeEnd, false);
  3156. Bytes->dropLeadingBytes(bitcodeStart - buf);
  3157. Bytes->setKnownObjectSize(bitcodeEnd - bitcodeStart);
  3158. }
  3159. return std::error_code();
  3160. }
  3161. namespace {
  3162. class BitcodeErrorCategoryType : public std::error_category {
  3163. const char *name() const LLVM_NOEXCEPT override {
  3164. return "llvm.bitcode";
  3165. }
  3166. std::string message(int IE) const override {
  3167. BitcodeError E = static_cast<BitcodeError>(IE);
  3168. switch (E) {
  3169. case BitcodeError::ConflictingMETADATA_KINDRecords:
  3170. return "Conflicting METADATA_KIND records";
  3171. case BitcodeError::CouldNotFindFunctionInStream:
  3172. return "Could not find function in stream";
  3173. case BitcodeError::ExpectedConstant:
  3174. return "Expected a constant";
  3175. case BitcodeError::InsufficientFunctionProtos:
  3176. return "Insufficient function protos";
  3177. case BitcodeError::InvalidBitcodeSignature:
  3178. return "Invalid bitcode signature";
  3179. case BitcodeError::InvalidBitcodeWrapperHeader:
  3180. return "Invalid bitcode wrapper header";
  3181. case BitcodeError::InvalidConstantReference:
  3182. return "Invalid ronstant reference";
  3183. case BitcodeError::InvalidID:
  3184. return "Invalid ID";
  3185. case BitcodeError::InvalidInstructionWithNoBB:
  3186. return "Invalid instruction with no BB";
  3187. case BitcodeError::InvalidRecord:
  3188. return "Invalid record";
  3189. case BitcodeError::InvalidTypeForValue:
  3190. return "Invalid type for value";
  3191. case BitcodeError::InvalidTYPETable:
  3192. return "Invalid TYPE table";
  3193. case BitcodeError::InvalidType:
  3194. return "Invalid type";
  3195. case BitcodeError::MalformedBlock:
  3196. return "Malformed block";
  3197. case BitcodeError::MalformedGlobalInitializerSet:
  3198. return "Malformed global initializer set";
  3199. case BitcodeError::InvalidMultipleBlocks:
  3200. return "Invalid multiple blocks";
  3201. case BitcodeError::NeverResolvedValueFoundInFunction:
  3202. return "Never resolved value found in function";
  3203. case BitcodeError::NeverResolvedFunctionFromBlockAddress:
  3204. return "Never resolved function from blockaddress";
  3205. case BitcodeError::InvalidValue:
  3206. return "Invalid value";
  3207. }
  3208. llvm_unreachable("Unknown error type!");
  3209. }
  3210. };
  3211. }
  3212. static ManagedStatic<BitcodeErrorCategoryType> ErrorCategory;
  3213. const std::error_category &llvm::BitcodeErrorCategory() {
  3214. return *ErrorCategory;
  3215. }
  3216. //===----------------------------------------------------------------------===//
  3217. // External interface
  3218. //===----------------------------------------------------------------------===//
  3219. /// \brief Get a lazy one-at-time loading module from bitcode.
  3220. ///
  3221. /// This isn't always used in a lazy context. In particular, it's also used by
  3222. /// \a parseBitcodeFile(). If this is truly lazy, then we need to eagerly pull
  3223. /// in forward-referenced functions from block address references.
  3224. ///
  3225. /// \param[in] WillMaterializeAll Set to \c true if the caller promises to
  3226. /// materialize everything -- in particular, if this isn't truly lazy.
  3227. static ErrorOr<Module *>
  3228. getLazyBitcodeModuleImpl(std::unique_ptr<MemoryBuffer> &&Buffer,
  3229. LLVMContext &Context, bool WillMaterializeAll) {
  3230. Module *M = new Module(Buffer->getBufferIdentifier(), Context);
  3231. BitcodeReader *R = new BitcodeReader(Buffer.get(), Context);
  3232. M->setMaterializer(R);
  3233. auto cleanupOnError = [&](std::error_code EC) {
  3234. R->releaseBuffer(); // Never take ownership on error.
  3235. delete M; // Also deletes R.
  3236. return EC;
  3237. };
  3238. if (std::error_code EC = R->ParseBitcodeInto(M))
  3239. return cleanupOnError(EC);
  3240. if (!WillMaterializeAll)
  3241. // Resolve forward references from blockaddresses.
  3242. if (std::error_code EC = R->materializeForwardReferencedFunctions())
  3243. return cleanupOnError(EC);
  3244. Buffer.release(); // The BitcodeReader owns it now.
  3245. return M;
  3246. }
  3247. ErrorOr<Module *>
  3248. llvm::getLazyBitcodeModule(std::unique_ptr<MemoryBuffer> &&Buffer,
  3249. LLVMContext &Context) {
  3250. return getLazyBitcodeModuleImpl(std::move(Buffer), Context, false);
  3251. }
  3252. Module *llvm::getStreamedBitcodeModule(const std::string &name,
  3253. DataStreamer *streamer,
  3254. LLVMContext &Context,
  3255. std::string *ErrMsg) {
  3256. Module *M = new Module(name, Context);
  3257. BitcodeReader *R = new BitcodeReader(streamer, Context);
  3258. M->setMaterializer(R);
  3259. if (std::error_code EC = R->ParseBitcodeInto(M)) {
  3260. if (ErrMsg)
  3261. *ErrMsg = EC.message();
  3262. delete M; // Also deletes R.
  3263. return nullptr;
  3264. }
  3265. return M;
  3266. }
  3267. ErrorOr<Module *> llvm::parseBitcodeFile(MemoryBufferRef Buffer,
  3268. LLVMContext &Context) {
  3269. std::unique_ptr<MemoryBuffer> Buf = MemoryBuffer::getMemBuffer(Buffer, false);
  3270. ErrorOr<Module *> ModuleOrErr =
  3271. getLazyBitcodeModuleImpl(std::move(Buf), Context, true);
  3272. if (!ModuleOrErr)
  3273. return ModuleOrErr;
  3274. Module *M = ModuleOrErr.get();
  3275. // Read in the entire module, and destroy the BitcodeReader.
  3276. if (std::error_code EC = M->materializeAllPermanently()) {
  3277. delete M;
  3278. return EC;
  3279. }
  3280. // TODO: Restore the use-lists to the in-memory state when the bitcode was
  3281. // written. We must defer until the Module has been fully materialized.
  3282. return M;
  3283. }
  3284. std::string llvm::getBitcodeTargetTriple(MemoryBufferRef Buffer,
  3285. LLVMContext &Context) {
  3286. std::unique_ptr<MemoryBuffer> Buf = MemoryBuffer::getMemBuffer(Buffer, false);
  3287. auto R = llvm::make_unique<BitcodeReader>(Buf.release(), Context);
  3288. ErrorOr<std::string> Triple = R->parseTriple();
  3289. if (Triple.getError())
  3290. return "";
  3291. return Triple.get();
  3292. }