1 //===-- DataFlowSanitizer.cpp - dynamic data flow analysis ----------------===// 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 /// \file 10 /// This file is a part of DataFlowSanitizer, a generalised dynamic data flow 11 /// analysis. 12 /// 13 /// Unlike other Sanitizer tools, this tool is not designed to detect a specific 14 /// class of bugs on its own. Instead, it provides a generic dynamic data flow 15 /// analysis framework to be used by clients to help detect application-specific 16 /// issues within their own code. 17 /// 18 /// The analysis is based on automatic propagation of data flow labels (also 19 /// known as taint labels) through a program as it performs computation. Each 20 /// byte of application memory is backed by two bytes of shadow memory which 21 /// hold the label. On Linux/x86_64, memory is laid out as follows: 22 /// 23 /// +--------------------+ 0x800000000000 (top of memory) 24 /// | application memory | 25 /// +--------------------+ 0x700000008000 (kAppAddr) 26 /// | | 27 /// | unused | 28 /// | | 29 /// +--------------------+ 0x200200000000 (kUnusedAddr) 30 /// | union table | 31 /// +--------------------+ 0x200000000000 (kUnionTableAddr) 32 /// | shadow memory | 33 /// +--------------------+ 0x000000010000 (kShadowAddr) 34 /// | reserved by kernel | 35 /// +--------------------+ 0x000000000000 36 /// 37 /// To derive a shadow memory address from an application memory address, 38 /// bits 44-46 are cleared to bring the address into the range 39 /// [0x000000008000,0x100000000000). Then the address is shifted left by 1 to 40 /// account for the double byte representation of shadow labels and move the 41 /// address into the shadow memory range. See the function 42 /// DataFlowSanitizer::getShadowAddress below. 43 /// 44 /// For more information, please refer to the design document: 45 /// http://clang.llvm.org/docs/DataFlowSanitizerDesign.html 46 47 #include "llvm/Transforms/Instrumentation.h" 48 #include "llvm/ADT/DenseMap.h" 49 #include "llvm/ADT/DenseSet.h" 50 #include "llvm/ADT/DepthFirstIterator.h" 51 #include "llvm/ADT/StringExtras.h" 52 #include "llvm/Analysis/ValueTracking.h" 53 #include "llvm/IR/InlineAsm.h" 54 #include "llvm/IR/IRBuilder.h" 55 #include "llvm/IR/LLVMContext.h" 56 #include "llvm/IR/MDBuilder.h" 57 #include "llvm/IR/Type.h" 58 #include "llvm/IR/Value.h" 59 #include "llvm/InstVisitor.h" 60 #include "llvm/Pass.h" 61 #include "llvm/Support/CommandLine.h" 62 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 63 #include "llvm/Transforms/Utils/Local.h" 64 #include "llvm/Transforms/Utils/SpecialCaseList.h" 65 #include <iterator> 66 67 using namespace llvm; 68 69 // The -dfsan-preserve-alignment flag controls whether this pass assumes that 70 // alignment requirements provided by the input IR are correct. For example, 71 // if the input IR contains a load with alignment 8, this flag will cause 72 // the shadow load to have alignment 16. This flag is disabled by default as 73 // we have unfortunately encountered too much code (including Clang itself; 74 // see PR14291) which performs misaligned access. 75 static cl::opt<bool> ClPreserveAlignment( 76 "dfsan-preserve-alignment", 77 cl::desc("respect alignment requirements provided by input IR"), cl::Hidden, 78 cl::init(false)); 79 80 // The ABI list file controls how shadow parameters are passed. The pass treats 81 // every function labelled "uninstrumented" in the ABI list file as conforming 82 // to the "native" (i.e. unsanitized) ABI. Unless the ABI list contains 83 // additional annotations for those functions, a call to one of those functions 84 // will produce a warning message, as the labelling behaviour of the function is 85 // unknown. The other supported annotations are "functional" and "discard", 86 // which are described below under DataFlowSanitizer::WrapperKind. 87 static cl::opt<std::string> ClABIListFile( 88 "dfsan-abilist", 89 cl::desc("File listing native ABI functions and how the pass treats them"), 90 cl::Hidden); 91 92 // Controls whether the pass uses IA_Args or IA_TLS as the ABI for instrumented 93 // functions (see DataFlowSanitizer::InstrumentedABI below). 94 static cl::opt<bool> ClArgsABI( 95 "dfsan-args-abi", 96 cl::desc("Use the argument ABI rather than the TLS ABI"), 97 cl::Hidden); 98 99 // Controls whether the pass includes or ignores the labels of pointers in load 100 // instructions. 101 static cl::opt<bool> ClCombinePointerLabelsOnLoad( 102 "dfsan-combine-pointer-labels-on-load", 103 cl::desc("Combine the label of the pointer with the label of the data when " 104 "loading from memory."), 105 cl::Hidden, cl::init(true)); 106 107 // Controls whether the pass includes or ignores the labels of pointers in 108 // stores instructions. 109 static cl::opt<bool> ClCombinePointerLabelsOnStore( 110 "dfsan-combine-pointer-labels-on-store", 111 cl::desc("Combine the label of the pointer with the label of the data when " 112 "storing in memory."), 113 cl::Hidden, cl::init(false)); 114 115 static cl::opt<bool> ClDebugNonzeroLabels( 116 "dfsan-debug-nonzero-labels", 117 cl::desc("Insert calls to __dfsan_nonzero_label on observing a parameter, " 118 "load or return with a nonzero label"), 119 cl::Hidden); 120 121 namespace { 122 123 class DataFlowSanitizer : public ModulePass { 124 friend struct DFSanFunction; 125 friend class DFSanVisitor; 126 127 enum { 128 ShadowWidth = 16 129 }; 130 131 /// Which ABI should be used for instrumented functions? 132 enum InstrumentedABI { 133 /// Argument and return value labels are passed through additional 134 /// arguments and by modifying the return type. 135 IA_Args, 136 137 /// Argument and return value labels are passed through TLS variables 138 /// __dfsan_arg_tls and __dfsan_retval_tls. 139 IA_TLS 140 }; 141 142 /// How should calls to uninstrumented functions be handled? 143 enum WrapperKind { 144 /// This function is present in an uninstrumented form but we don't know 145 /// how it should be handled. Print a warning and call the function anyway. 146 /// Don't label the return value. 147 WK_Warning, 148 149 /// This function does not write to (user-accessible) memory, and its return 150 /// value is unlabelled. 151 WK_Discard, 152 153 /// This function does not write to (user-accessible) memory, and the label 154 /// of its return value is the union of the label of its arguments. 155 WK_Functional, 156 157 /// Instead of calling the function, a custom wrapper __dfsw_F is called, 158 /// where F is the name of the function. This function may wrap the 159 /// original function or provide its own implementation. This is similar to 160 /// the IA_Args ABI, except that IA_Args uses a struct return type to 161 /// pass the return value shadow in a register, while WK_Custom uses an 162 /// extra pointer argument to return the shadow. This allows the wrapped 163 /// form of the function type to be expressed in C. 164 WK_Custom 165 }; 166 167 DataLayout *DL; 168 Module *Mod; 169 LLVMContext *Ctx; 170 IntegerType *ShadowTy; 171 PointerType *ShadowPtrTy; 172 IntegerType *IntptrTy; 173 ConstantInt *ZeroShadow; 174 ConstantInt *ShadowPtrMask; 175 ConstantInt *ShadowPtrMul; 176 Constant *ArgTLS; 177 Constant *RetvalTLS; 178 void *(*GetArgTLSPtr)(); 179 void *(*GetRetvalTLSPtr)(); 180 Constant *GetArgTLS; 181 Constant *GetRetvalTLS; 182 FunctionType *DFSanUnionFnTy; 183 FunctionType *DFSanUnionLoadFnTy; 184 FunctionType *DFSanUnimplementedFnTy; 185 FunctionType *DFSanSetLabelFnTy; 186 FunctionType *DFSanNonzeroLabelFnTy; 187 Constant *DFSanUnionFn; 188 Constant *DFSanUnionLoadFn; 189 Constant *DFSanUnimplementedFn; 190 Constant *DFSanSetLabelFn; 191 Constant *DFSanNonzeroLabelFn; 192 MDNode *ColdCallWeights; 193 OwningPtr<SpecialCaseList> ABIList; 194 DenseMap<Value *, Function *> UnwrappedFnMap; 195 AttributeSet ReadOnlyNoneAttrs; 196 197 Value *getShadowAddress(Value *Addr, Instruction *Pos); 198 Value *combineShadows(Value *V1, Value *V2, Instruction *Pos); 199 bool isInstrumented(const Function *F); 200 bool isInstrumented(const GlobalAlias *GA); 201 FunctionType *getArgsFunctionType(FunctionType *T); 202 FunctionType *getTrampolineFunctionType(FunctionType *T); 203 FunctionType *getCustomFunctionType(FunctionType *T); 204 InstrumentedABI getInstrumentedABI(); 205 WrapperKind getWrapperKind(Function *F); 206 void addGlobalNamePrefix(GlobalValue *GV); 207 Function *buildWrapperFunction(Function *F, StringRef NewFName, 208 GlobalValue::LinkageTypes NewFLink, 209 FunctionType *NewFT); 210 Constant *getOrBuildTrampolineFunction(FunctionType *FT, StringRef FName); 211 212 public: 213 DataFlowSanitizer(StringRef ABIListFile = StringRef(), 214 void *(*getArgTLS)() = 0, void *(*getRetValTLS)() = 0); 215 static char ID; 216 bool doInitialization(Module &M); 217 bool runOnModule(Module &M); 218 }; 219 220 struct DFSanFunction { 221 DataFlowSanitizer &DFS; 222 Function *F; 223 DataFlowSanitizer::InstrumentedABI IA; 224 bool IsNativeABI; 225 Value *ArgTLSPtr; 226 Value *RetvalTLSPtr; 227 AllocaInst *LabelReturnAlloca; 228 DenseMap<Value *, Value *> ValShadowMap; 229 DenseMap<AllocaInst *, AllocaInst *> AllocaShadowMap; 230 std::vector<std::pair<PHINode *, PHINode *> > PHIFixups; 231 DenseSet<Instruction *> SkipInsts; 232 DenseSet<Value *> NonZeroChecks; 233 234 DFSanFunction(DataFlowSanitizer &DFS, Function *F, bool IsNativeABI) 235 : DFS(DFS), F(F), IA(DFS.getInstrumentedABI()), 236 IsNativeABI(IsNativeABI), ArgTLSPtr(0), RetvalTLSPtr(0), 237 LabelReturnAlloca(0) {} 238 Value *getArgTLSPtr(); 239 Value *getArgTLS(unsigned Index, Instruction *Pos); 240 Value *getRetvalTLS(); 241 Value *getShadow(Value *V); 242 void setShadow(Instruction *I, Value *Shadow); 243 Value *combineOperandShadows(Instruction *Inst); 244 Value *loadShadow(Value *ShadowAddr, uint64_t Size, uint64_t Align, 245 Instruction *Pos); 246 void storeShadow(Value *Addr, uint64_t Size, uint64_t Align, Value *Shadow, 247 Instruction *Pos); 248 }; 249 250 class DFSanVisitor : public InstVisitor<DFSanVisitor> { 251 public: 252 DFSanFunction &DFSF; 253 DFSanVisitor(DFSanFunction &DFSF) : DFSF(DFSF) {} 254 255 void visitOperandShadowInst(Instruction &I); 256 257 void visitBinaryOperator(BinaryOperator &BO); 258 void visitCastInst(CastInst &CI); 259 void visitCmpInst(CmpInst &CI); 260 void visitGetElementPtrInst(GetElementPtrInst &GEPI); 261 void visitLoadInst(LoadInst &LI); 262 void visitStoreInst(StoreInst &SI); 263 void visitReturnInst(ReturnInst &RI); 264 void visitCallSite(CallSite CS); 265 void visitPHINode(PHINode &PN); 266 void visitExtractElementInst(ExtractElementInst &I); 267 void visitInsertElementInst(InsertElementInst &I); 268 void visitShuffleVectorInst(ShuffleVectorInst &I); 269 void visitExtractValueInst(ExtractValueInst &I); 270 void visitInsertValueInst(InsertValueInst &I); 271 void visitAllocaInst(AllocaInst &I); 272 void visitSelectInst(SelectInst &I); 273 void visitMemSetInst(MemSetInst &I); 274 void visitMemTransferInst(MemTransferInst &I); 275 }; 276 277 } 278 279 char DataFlowSanitizer::ID; 280 INITIALIZE_PASS(DataFlowSanitizer, "dfsan", 281 "DataFlowSanitizer: dynamic data flow analysis.", false, false) 282 283 ModulePass *llvm::createDataFlowSanitizerPass(StringRef ABIListFile, 284 void *(*getArgTLS)(), 285 void *(*getRetValTLS)()) { 286 return new DataFlowSanitizer(ABIListFile, getArgTLS, getRetValTLS); 287 } 288 289 DataFlowSanitizer::DataFlowSanitizer(StringRef ABIListFile, 290 void *(*getArgTLS)(), 291 void *(*getRetValTLS)()) 292 : ModulePass(ID), GetArgTLSPtr(getArgTLS), GetRetvalTLSPtr(getRetValTLS), 293 ABIList(SpecialCaseList::createOrDie(ABIListFile.empty() ? ClABIListFile 294 : ABIListFile)) { 295 } 296 297 FunctionType *DataFlowSanitizer::getArgsFunctionType(FunctionType *T) { 298 llvm::SmallVector<Type *, 4> ArgTypes; 299 std::copy(T->param_begin(), T->param_end(), std::back_inserter(ArgTypes)); 300 for (unsigned i = 0, e = T->getNumParams(); i != e; ++i) 301 ArgTypes.push_back(ShadowTy); 302 if (T->isVarArg()) 303 ArgTypes.push_back(ShadowPtrTy); 304 Type *RetType = T->getReturnType(); 305 if (!RetType->isVoidTy()) 306 RetType = StructType::get(RetType, ShadowTy, (Type *)0); 307 return FunctionType::get(RetType, ArgTypes, T->isVarArg()); 308 } 309 310 FunctionType *DataFlowSanitizer::getTrampolineFunctionType(FunctionType *T) { 311 assert(!T->isVarArg()); 312 llvm::SmallVector<Type *, 4> ArgTypes; 313 ArgTypes.push_back(T->getPointerTo()); 314 std::copy(T->param_begin(), T->param_end(), std::back_inserter(ArgTypes)); 315 for (unsigned i = 0, e = T->getNumParams(); i != e; ++i) 316 ArgTypes.push_back(ShadowTy); 317 Type *RetType = T->getReturnType(); 318 if (!RetType->isVoidTy()) 319 ArgTypes.push_back(ShadowPtrTy); 320 return FunctionType::get(T->getReturnType(), ArgTypes, false); 321 } 322 323 FunctionType *DataFlowSanitizer::getCustomFunctionType(FunctionType *T) { 324 assert(!T->isVarArg()); 325 llvm::SmallVector<Type *, 4> ArgTypes; 326 for (FunctionType::param_iterator i = T->param_begin(), e = T->param_end(); 327 i != e; ++i) { 328 FunctionType *FT; 329 if (isa<PointerType>(*i) && (FT = dyn_cast<FunctionType>(cast<PointerType>( 330 *i)->getElementType()))) { 331 ArgTypes.push_back(getTrampolineFunctionType(FT)->getPointerTo()); 332 ArgTypes.push_back(Type::getInt8PtrTy(*Ctx)); 333 } else { 334 ArgTypes.push_back(*i); 335 } 336 } 337 for (unsigned i = 0, e = T->getNumParams(); i != e; ++i) 338 ArgTypes.push_back(ShadowTy); 339 Type *RetType = T->getReturnType(); 340 if (!RetType->isVoidTy()) 341 ArgTypes.push_back(ShadowPtrTy); 342 return FunctionType::get(T->getReturnType(), ArgTypes, false); 343 } 344 345 bool DataFlowSanitizer::doInitialization(Module &M) { 346 DL = getAnalysisIfAvailable<DataLayout>(); 347 if (!DL) 348 return false; 349 350 Mod = &M; 351 Ctx = &M.getContext(); 352 ShadowTy = IntegerType::get(*Ctx, ShadowWidth); 353 ShadowPtrTy = PointerType::getUnqual(ShadowTy); 354 IntptrTy = DL->getIntPtrType(*Ctx); 355 ZeroShadow = ConstantInt::getSigned(ShadowTy, 0); 356 ShadowPtrMask = ConstantInt::getSigned(IntptrTy, ~0x700000000000LL); 357 ShadowPtrMul = ConstantInt::getSigned(IntptrTy, ShadowWidth / 8); 358 359 Type *DFSanUnionArgs[2] = { ShadowTy, ShadowTy }; 360 DFSanUnionFnTy = 361 FunctionType::get(ShadowTy, DFSanUnionArgs, /*isVarArg=*/ false); 362 Type *DFSanUnionLoadArgs[2] = { ShadowPtrTy, IntptrTy }; 363 DFSanUnionLoadFnTy = 364 FunctionType::get(ShadowTy, DFSanUnionLoadArgs, /*isVarArg=*/ false); 365 DFSanUnimplementedFnTy = FunctionType::get( 366 Type::getVoidTy(*Ctx), Type::getInt8PtrTy(*Ctx), /*isVarArg=*/false); 367 Type *DFSanSetLabelArgs[3] = { ShadowTy, Type::getInt8PtrTy(*Ctx), IntptrTy }; 368 DFSanSetLabelFnTy = FunctionType::get(Type::getVoidTy(*Ctx), 369 DFSanSetLabelArgs, /*isVarArg=*/false); 370 DFSanNonzeroLabelFnTy = FunctionType::get( 371 Type::getVoidTy(*Ctx), ArrayRef<Type *>(), /*isVarArg=*/false); 372 373 if (GetArgTLSPtr) { 374 Type *ArgTLSTy = ArrayType::get(ShadowTy, 64); 375 ArgTLS = 0; 376 GetArgTLS = ConstantExpr::getIntToPtr( 377 ConstantInt::get(IntptrTy, uintptr_t(GetArgTLSPtr)), 378 PointerType::getUnqual( 379 FunctionType::get(PointerType::getUnqual(ArgTLSTy), (Type *)0))); 380 } 381 if (GetRetvalTLSPtr) { 382 RetvalTLS = 0; 383 GetRetvalTLS = ConstantExpr::getIntToPtr( 384 ConstantInt::get(IntptrTy, uintptr_t(GetRetvalTLSPtr)), 385 PointerType::getUnqual( 386 FunctionType::get(PointerType::getUnqual(ShadowTy), (Type *)0))); 387 } 388 389 ColdCallWeights = MDBuilder(*Ctx).createBranchWeights(1, 1000); 390 return true; 391 } 392 393 bool DataFlowSanitizer::isInstrumented(const Function *F) { 394 return !ABIList->isIn(*F, "uninstrumented"); 395 } 396 397 bool DataFlowSanitizer::isInstrumented(const GlobalAlias *GA) { 398 return !ABIList->isIn(*GA, "uninstrumented"); 399 } 400 401 DataFlowSanitizer::InstrumentedABI DataFlowSanitizer::getInstrumentedABI() { 402 return ClArgsABI ? IA_Args : IA_TLS; 403 } 404 405 DataFlowSanitizer::WrapperKind DataFlowSanitizer::getWrapperKind(Function *F) { 406 if (ABIList->isIn(*F, "functional")) 407 return WK_Functional; 408 if (ABIList->isIn(*F, "discard")) 409 return WK_Discard; 410 if (ABIList->isIn(*F, "custom")) 411 return WK_Custom; 412 413 return WK_Warning; 414 } 415 416 void DataFlowSanitizer::addGlobalNamePrefix(GlobalValue *GV) { 417 std::string GVName = GV->getName(), Prefix = "dfs$"; 418 GV->setName(Prefix + GVName); 419 420 // Try to change the name of the function in module inline asm. We only do 421 // this for specific asm directives, currently only ".symver", to try to avoid 422 // corrupting asm which happens to contain the symbol name as a substring. 423 // Note that the substitution for .symver assumes that the versioned symbol 424 // also has an instrumented name. 425 std::string Asm = GV->getParent()->getModuleInlineAsm(); 426 std::string SearchStr = ".symver " + GVName + ","; 427 size_t Pos = Asm.find(SearchStr); 428 if (Pos != std::string::npos) { 429 Asm.replace(Pos, SearchStr.size(), 430 ".symver " + Prefix + GVName + "," + Prefix); 431 GV->getParent()->setModuleInlineAsm(Asm); 432 } 433 } 434 435 Function * 436 DataFlowSanitizer::buildWrapperFunction(Function *F, StringRef NewFName, 437 GlobalValue::LinkageTypes NewFLink, 438 FunctionType *NewFT) { 439 FunctionType *FT = F->getFunctionType(); 440 Function *NewF = Function::Create(NewFT, NewFLink, NewFName, 441 F->getParent()); 442 NewF->copyAttributesFrom(F); 443 NewF->removeAttributes( 444 AttributeSet::ReturnIndex, 445 AttributeFuncs::typeIncompatible(NewFT->getReturnType(), 446 AttributeSet::ReturnIndex)); 447 448 BasicBlock *BB = BasicBlock::Create(*Ctx, "entry", NewF); 449 std::vector<Value *> Args; 450 unsigned n = FT->getNumParams(); 451 for (Function::arg_iterator ai = NewF->arg_begin(); n != 0; ++ai, --n) 452 Args.push_back(&*ai); 453 CallInst *CI = CallInst::Create(F, Args, "", BB); 454 if (FT->getReturnType()->isVoidTy()) 455 ReturnInst::Create(*Ctx, BB); 456 else 457 ReturnInst::Create(*Ctx, CI, BB); 458 459 return NewF; 460 } 461 462 Constant *DataFlowSanitizer::getOrBuildTrampolineFunction(FunctionType *FT, 463 StringRef FName) { 464 FunctionType *FTT = getTrampolineFunctionType(FT); 465 Constant *C = Mod->getOrInsertFunction(FName, FTT); 466 Function *F = dyn_cast<Function>(C); 467 if (F && F->isDeclaration()) { 468 F->setLinkage(GlobalValue::LinkOnceODRLinkage); 469 BasicBlock *BB = BasicBlock::Create(*Ctx, "entry", F); 470 std::vector<Value *> Args; 471 Function::arg_iterator AI = F->arg_begin(); ++AI; 472 for (unsigned N = FT->getNumParams(); N != 0; ++AI, --N) 473 Args.push_back(&*AI); 474 CallInst *CI = 475 CallInst::Create(&F->getArgumentList().front(), Args, "", BB); 476 ReturnInst *RI; 477 if (FT->getReturnType()->isVoidTy()) 478 RI = ReturnInst::Create(*Ctx, BB); 479 else 480 RI = ReturnInst::Create(*Ctx, CI, BB); 481 482 DFSanFunction DFSF(*this, F, /*IsNativeABI=*/true); 483 Function::arg_iterator ValAI = F->arg_begin(), ShadowAI = AI; ++ValAI; 484 for (unsigned N = FT->getNumParams(); N != 0; ++ValAI, ++ShadowAI, --N) 485 DFSF.ValShadowMap[ValAI] = ShadowAI; 486 DFSanVisitor(DFSF).visitCallInst(*CI); 487 if (!FT->getReturnType()->isVoidTy()) 488 new StoreInst(DFSF.getShadow(RI->getReturnValue()), 489 &F->getArgumentList().back(), RI); 490 } 491 492 return C; 493 } 494 495 bool DataFlowSanitizer::runOnModule(Module &M) { 496 if (!DL) 497 return false; 498 499 if (ABIList->isIn(M, "skip")) 500 return false; 501 502 if (!GetArgTLSPtr) { 503 Type *ArgTLSTy = ArrayType::get(ShadowTy, 64); 504 ArgTLS = Mod->getOrInsertGlobal("__dfsan_arg_tls", ArgTLSTy); 505 if (GlobalVariable *G = dyn_cast<GlobalVariable>(ArgTLS)) 506 G->setThreadLocalMode(GlobalVariable::InitialExecTLSModel); 507 } 508 if (!GetRetvalTLSPtr) { 509 RetvalTLS = Mod->getOrInsertGlobal("__dfsan_retval_tls", ShadowTy); 510 if (GlobalVariable *G = dyn_cast<GlobalVariable>(RetvalTLS)) 511 G->setThreadLocalMode(GlobalVariable::InitialExecTLSModel); 512 } 513 514 DFSanUnionFn = Mod->getOrInsertFunction("__dfsan_union", DFSanUnionFnTy); 515 if (Function *F = dyn_cast<Function>(DFSanUnionFn)) { 516 F->addAttribute(AttributeSet::FunctionIndex, Attribute::ReadNone); 517 F->addAttribute(AttributeSet::ReturnIndex, Attribute::ZExt); 518 F->addAttribute(1, Attribute::ZExt); 519 F->addAttribute(2, Attribute::ZExt); 520 } 521 DFSanUnionLoadFn = 522 Mod->getOrInsertFunction("__dfsan_union_load", DFSanUnionLoadFnTy); 523 if (Function *F = dyn_cast<Function>(DFSanUnionLoadFn)) { 524 F->addAttribute(AttributeSet::FunctionIndex, Attribute::ReadOnly); 525 F->addAttribute(AttributeSet::ReturnIndex, Attribute::ZExt); 526 } 527 DFSanUnimplementedFn = 528 Mod->getOrInsertFunction("__dfsan_unimplemented", DFSanUnimplementedFnTy); 529 DFSanSetLabelFn = 530 Mod->getOrInsertFunction("__dfsan_set_label", DFSanSetLabelFnTy); 531 if (Function *F = dyn_cast<Function>(DFSanSetLabelFn)) { 532 F->addAttribute(1, Attribute::ZExt); 533 } 534 DFSanNonzeroLabelFn = 535 Mod->getOrInsertFunction("__dfsan_nonzero_label", DFSanNonzeroLabelFnTy); 536 537 std::vector<Function *> FnsToInstrument; 538 llvm::SmallPtrSet<Function *, 2> FnsWithNativeABI; 539 for (Module::iterator i = M.begin(), e = M.end(); i != e; ++i) { 540 if (!i->isIntrinsic() && 541 i != DFSanUnionFn && 542 i != DFSanUnionLoadFn && 543 i != DFSanUnimplementedFn && 544 i != DFSanSetLabelFn && 545 i != DFSanNonzeroLabelFn) 546 FnsToInstrument.push_back(&*i); 547 } 548 549 // Give function aliases prefixes when necessary, and build wrappers where the 550 // instrumentedness is inconsistent. 551 for (Module::alias_iterator i = M.alias_begin(), e = M.alias_end(); i != e;) { 552 GlobalAlias *GA = &*i; 553 ++i; 554 // Don't stop on weak. We assume people aren't playing games with the 555 // instrumentedness of overridden weak aliases. 556 if (Function *F = dyn_cast<Function>( 557 GA->resolveAliasedGlobal(/*stopOnWeak=*/false))) { 558 bool GAInst = isInstrumented(GA), FInst = isInstrumented(F); 559 if (GAInst && FInst) { 560 addGlobalNamePrefix(GA); 561 } else if (GAInst != FInst) { 562 // Non-instrumented alias of an instrumented function, or vice versa. 563 // Replace the alias with a native-ABI wrapper of the aliasee. The pass 564 // below will take care of instrumenting it. 565 Function *NewF = 566 buildWrapperFunction(F, "", GA->getLinkage(), F->getFunctionType()); 567 GA->replaceAllUsesWith(NewF); 568 NewF->takeName(GA); 569 GA->eraseFromParent(); 570 FnsToInstrument.push_back(NewF); 571 } 572 } 573 } 574 575 AttrBuilder B; 576 B.addAttribute(Attribute::ReadOnly).addAttribute(Attribute::ReadNone); 577 ReadOnlyNoneAttrs = AttributeSet::get(*Ctx, AttributeSet::FunctionIndex, B); 578 579 // First, change the ABI of every function in the module. ABI-listed 580 // functions keep their original ABI and get a wrapper function. 581 for (std::vector<Function *>::iterator i = FnsToInstrument.begin(), 582 e = FnsToInstrument.end(); 583 i != e; ++i) { 584 Function &F = **i; 585 FunctionType *FT = F.getFunctionType(); 586 587 bool IsZeroArgsVoidRet = (FT->getNumParams() == 0 && !FT->isVarArg() && 588 FT->getReturnType()->isVoidTy()); 589 590 if (isInstrumented(&F)) { 591 // Instrumented functions get a 'dfs$' prefix. This allows us to more 592 // easily identify cases of mismatching ABIs. 593 if (getInstrumentedABI() == IA_Args && !IsZeroArgsVoidRet) { 594 FunctionType *NewFT = getArgsFunctionType(FT); 595 Function *NewF = Function::Create(NewFT, F.getLinkage(), "", &M); 596 NewF->copyAttributesFrom(&F); 597 NewF->removeAttributes( 598 AttributeSet::ReturnIndex, 599 AttributeFuncs::typeIncompatible(NewFT->getReturnType(), 600 AttributeSet::ReturnIndex)); 601 for (Function::arg_iterator FArg = F.arg_begin(), 602 NewFArg = NewF->arg_begin(), 603 FArgEnd = F.arg_end(); 604 FArg != FArgEnd; ++FArg, ++NewFArg) { 605 FArg->replaceAllUsesWith(NewFArg); 606 } 607 NewF->getBasicBlockList().splice(NewF->begin(), F.getBasicBlockList()); 608 609 for (Function::use_iterator ui = F.use_begin(), ue = F.use_end(); 610 ui != ue;) { 611 BlockAddress *BA = dyn_cast<BlockAddress>(ui.getUse().getUser()); 612 ++ui; 613 if (BA) { 614 BA->replaceAllUsesWith( 615 BlockAddress::get(NewF, BA->getBasicBlock())); 616 delete BA; 617 } 618 } 619 F.replaceAllUsesWith( 620 ConstantExpr::getBitCast(NewF, PointerType::getUnqual(FT))); 621 NewF->takeName(&F); 622 F.eraseFromParent(); 623 *i = NewF; 624 addGlobalNamePrefix(NewF); 625 } else { 626 addGlobalNamePrefix(&F); 627 } 628 // Hopefully, nobody will try to indirectly call a vararg 629 // function... yet. 630 } else if (FT->isVarArg()) { 631 UnwrappedFnMap[&F] = &F; 632 *i = 0; 633 } else if (!IsZeroArgsVoidRet || getWrapperKind(&F) == WK_Custom) { 634 // Build a wrapper function for F. The wrapper simply calls F, and is 635 // added to FnsToInstrument so that any instrumentation according to its 636 // WrapperKind is done in the second pass below. 637 FunctionType *NewFT = getInstrumentedABI() == IA_Args 638 ? getArgsFunctionType(FT) 639 : FT; 640 Function *NewF = buildWrapperFunction( 641 &F, std::string("dfsw$") + std::string(F.getName()), 642 GlobalValue::LinkOnceODRLinkage, NewFT); 643 if (getInstrumentedABI() == IA_TLS) 644 NewF->removeAttributes(AttributeSet::FunctionIndex, ReadOnlyNoneAttrs); 645 646 Value *WrappedFnCst = 647 ConstantExpr::getBitCast(NewF, PointerType::getUnqual(FT)); 648 F.replaceAllUsesWith(WrappedFnCst); 649 UnwrappedFnMap[WrappedFnCst] = &F; 650 *i = NewF; 651 652 if (!F.isDeclaration()) { 653 // This function is probably defining an interposition of an 654 // uninstrumented function and hence needs to keep the original ABI. 655 // But any functions it may call need to use the instrumented ABI, so 656 // we instrument it in a mode which preserves the original ABI. 657 FnsWithNativeABI.insert(&F); 658 659 // This code needs to rebuild the iterators, as they may be invalidated 660 // by the push_back, taking care that the new range does not include 661 // any functions added by this code. 662 size_t N = i - FnsToInstrument.begin(), 663 Count = e - FnsToInstrument.begin(); 664 FnsToInstrument.push_back(&F); 665 i = FnsToInstrument.begin() + N; 666 e = FnsToInstrument.begin() + Count; 667 } 668 } 669 } 670 671 for (std::vector<Function *>::iterator i = FnsToInstrument.begin(), 672 e = FnsToInstrument.end(); 673 i != e; ++i) { 674 if (!*i || (*i)->isDeclaration()) 675 continue; 676 677 removeUnreachableBlocks(**i); 678 679 DFSanFunction DFSF(*this, *i, FnsWithNativeABI.count(*i)); 680 681 // DFSanVisitor may create new basic blocks, which confuses df_iterator. 682 // Build a copy of the list before iterating over it. 683 llvm::SmallVector<BasicBlock *, 4> BBList; 684 std::copy(df_begin(&(*i)->getEntryBlock()), df_end(&(*i)->getEntryBlock()), 685 std::back_inserter(BBList)); 686 687 for (llvm::SmallVector<BasicBlock *, 4>::iterator i = BBList.begin(), 688 e = BBList.end(); 689 i != e; ++i) { 690 Instruction *Inst = &(*i)->front(); 691 while (1) { 692 // DFSanVisitor may split the current basic block, changing the current 693 // instruction's next pointer and moving the next instruction to the 694 // tail block from which we should continue. 695 Instruction *Next = Inst->getNextNode(); 696 // DFSanVisitor may delete Inst, so keep track of whether it was a 697 // terminator. 698 bool IsTerminator = isa<TerminatorInst>(Inst); 699 if (!DFSF.SkipInsts.count(Inst)) 700 DFSanVisitor(DFSF).visit(Inst); 701 if (IsTerminator) 702 break; 703 Inst = Next; 704 } 705 } 706 707 // We will not necessarily be able to compute the shadow for every phi node 708 // until we have visited every block. Therefore, the code that handles phi 709 // nodes adds them to the PHIFixups list so that they can be properly 710 // handled here. 711 for (std::vector<std::pair<PHINode *, PHINode *> >::iterator 712 i = DFSF.PHIFixups.begin(), 713 e = DFSF.PHIFixups.end(); 714 i != e; ++i) { 715 for (unsigned val = 0, n = i->first->getNumIncomingValues(); val != n; 716 ++val) { 717 i->second->setIncomingValue( 718 val, DFSF.getShadow(i->first->getIncomingValue(val))); 719 } 720 } 721 722 // -dfsan-debug-nonzero-labels will split the CFG in all kinds of crazy 723 // places (i.e. instructions in basic blocks we haven't even begun visiting 724 // yet). To make our life easier, do this work in a pass after the main 725 // instrumentation. 726 if (ClDebugNonzeroLabels) { 727 for (DenseSet<Value *>::iterator i = DFSF.NonZeroChecks.begin(), 728 e = DFSF.NonZeroChecks.end(); 729 i != e; ++i) { 730 Instruction *Pos; 731 if (Instruction *I = dyn_cast<Instruction>(*i)) 732 Pos = I->getNextNode(); 733 else 734 Pos = DFSF.F->getEntryBlock().begin(); 735 while (isa<PHINode>(Pos) || isa<AllocaInst>(Pos)) 736 Pos = Pos->getNextNode(); 737 IRBuilder<> IRB(Pos); 738 Instruction *NeInst = cast<Instruction>( 739 IRB.CreateICmpNE(*i, DFSF.DFS.ZeroShadow)); 740 BranchInst *BI = cast<BranchInst>(SplitBlockAndInsertIfThen( 741 NeInst, /*Unreachable=*/ false, ColdCallWeights)); 742 IRBuilder<> ThenIRB(BI); 743 ThenIRB.CreateCall(DFSF.DFS.DFSanNonzeroLabelFn); 744 } 745 } 746 } 747 748 return false; 749 } 750 751 Value *DFSanFunction::getArgTLSPtr() { 752 if (ArgTLSPtr) 753 return ArgTLSPtr; 754 if (DFS.ArgTLS) 755 return ArgTLSPtr = DFS.ArgTLS; 756 757 IRBuilder<> IRB(F->getEntryBlock().begin()); 758 return ArgTLSPtr = IRB.CreateCall(DFS.GetArgTLS); 759 } 760 761 Value *DFSanFunction::getRetvalTLS() { 762 if (RetvalTLSPtr) 763 return RetvalTLSPtr; 764 if (DFS.RetvalTLS) 765 return RetvalTLSPtr = DFS.RetvalTLS; 766 767 IRBuilder<> IRB(F->getEntryBlock().begin()); 768 return RetvalTLSPtr = IRB.CreateCall(DFS.GetRetvalTLS); 769 } 770 771 Value *DFSanFunction::getArgTLS(unsigned Idx, Instruction *Pos) { 772 IRBuilder<> IRB(Pos); 773 return IRB.CreateConstGEP2_64(getArgTLSPtr(), 0, Idx); 774 } 775 776 Value *DFSanFunction::getShadow(Value *V) { 777 if (!isa<Argument>(V) && !isa<Instruction>(V)) 778 return DFS.ZeroShadow; 779 Value *&Shadow = ValShadowMap[V]; 780 if (!Shadow) { 781 if (Argument *A = dyn_cast<Argument>(V)) { 782 if (IsNativeABI) 783 return DFS.ZeroShadow; 784 switch (IA) { 785 case DataFlowSanitizer::IA_TLS: { 786 Value *ArgTLSPtr = getArgTLSPtr(); 787 Instruction *ArgTLSPos = 788 DFS.ArgTLS ? &*F->getEntryBlock().begin() 789 : cast<Instruction>(ArgTLSPtr)->getNextNode(); 790 IRBuilder<> IRB(ArgTLSPos); 791 Shadow = IRB.CreateLoad(getArgTLS(A->getArgNo(), ArgTLSPos)); 792 break; 793 } 794 case DataFlowSanitizer::IA_Args: { 795 unsigned ArgIdx = A->getArgNo() + F->getArgumentList().size() / 2; 796 Function::arg_iterator i = F->arg_begin(); 797 while (ArgIdx--) 798 ++i; 799 Shadow = i; 800 assert(Shadow->getType() == DFS.ShadowTy); 801 break; 802 } 803 } 804 NonZeroChecks.insert(Shadow); 805 } else { 806 Shadow = DFS.ZeroShadow; 807 } 808 } 809 return Shadow; 810 } 811 812 void DFSanFunction::setShadow(Instruction *I, Value *Shadow) { 813 assert(!ValShadowMap.count(I)); 814 assert(Shadow->getType() == DFS.ShadowTy); 815 ValShadowMap[I] = Shadow; 816 } 817 818 Value *DataFlowSanitizer::getShadowAddress(Value *Addr, Instruction *Pos) { 819 assert(Addr != RetvalTLS && "Reinstrumenting?"); 820 IRBuilder<> IRB(Pos); 821 return IRB.CreateIntToPtr( 822 IRB.CreateMul( 823 IRB.CreateAnd(IRB.CreatePtrToInt(Addr, IntptrTy), ShadowPtrMask), 824 ShadowPtrMul), 825 ShadowPtrTy); 826 } 827 828 // Generates IR to compute the union of the two given shadows, inserting it 829 // before Pos. Returns the computed union Value. 830 Value *DataFlowSanitizer::combineShadows(Value *V1, Value *V2, 831 Instruction *Pos) { 832 if (V1 == ZeroShadow) 833 return V2; 834 if (V2 == ZeroShadow) 835 return V1; 836 if (V1 == V2) 837 return V1; 838 IRBuilder<> IRB(Pos); 839 BasicBlock *Head = Pos->getParent(); 840 Value *Ne = IRB.CreateICmpNE(V1, V2); 841 Instruction *NeInst = dyn_cast<Instruction>(Ne); 842 if (NeInst) { 843 BranchInst *BI = cast<BranchInst>(SplitBlockAndInsertIfThen( 844 NeInst, /*Unreachable=*/ false, ColdCallWeights)); 845 IRBuilder<> ThenIRB(BI); 846 CallInst *Call = ThenIRB.CreateCall2(DFSanUnionFn, V1, V2); 847 Call->addAttribute(AttributeSet::ReturnIndex, Attribute::ZExt); 848 Call->addAttribute(1, Attribute::ZExt); 849 Call->addAttribute(2, Attribute::ZExt); 850 851 BasicBlock *Tail = BI->getSuccessor(0); 852 PHINode *Phi = PHINode::Create(ShadowTy, 2, "", Tail->begin()); 853 Phi->addIncoming(Call, Call->getParent()); 854 Phi->addIncoming(V1, Head); 855 Pos = Phi; 856 return Phi; 857 } else { 858 assert(0 && "todo"); 859 return 0; 860 } 861 } 862 863 // A convenience function which folds the shadows of each of the operands 864 // of the provided instruction Inst, inserting the IR before Inst. Returns 865 // the computed union Value. 866 Value *DFSanFunction::combineOperandShadows(Instruction *Inst) { 867 if (Inst->getNumOperands() == 0) 868 return DFS.ZeroShadow; 869 870 Value *Shadow = getShadow(Inst->getOperand(0)); 871 for (unsigned i = 1, n = Inst->getNumOperands(); i != n; ++i) { 872 Shadow = DFS.combineShadows(Shadow, getShadow(Inst->getOperand(i)), Inst); 873 } 874 return Shadow; 875 } 876 877 void DFSanVisitor::visitOperandShadowInst(Instruction &I) { 878 Value *CombinedShadow = DFSF.combineOperandShadows(&I); 879 DFSF.setShadow(&I, CombinedShadow); 880 } 881 882 // Generates IR to load shadow corresponding to bytes [Addr, Addr+Size), where 883 // Addr has alignment Align, and take the union of each of those shadows. 884 Value *DFSanFunction::loadShadow(Value *Addr, uint64_t Size, uint64_t Align, 885 Instruction *Pos) { 886 if (AllocaInst *AI = dyn_cast<AllocaInst>(Addr)) { 887 llvm::DenseMap<AllocaInst *, AllocaInst *>::iterator i = 888 AllocaShadowMap.find(AI); 889 if (i != AllocaShadowMap.end()) { 890 IRBuilder<> IRB(Pos); 891 return IRB.CreateLoad(i->second); 892 } 893 } 894 895 uint64_t ShadowAlign = Align * DFS.ShadowWidth / 8; 896 SmallVector<Value *, 2> Objs; 897 GetUnderlyingObjects(Addr, Objs, DFS.DL); 898 bool AllConstants = true; 899 for (SmallVector<Value *, 2>::iterator i = Objs.begin(), e = Objs.end(); 900 i != e; ++i) { 901 if (isa<Function>(*i) || isa<BlockAddress>(*i)) 902 continue; 903 if (isa<GlobalVariable>(*i) && cast<GlobalVariable>(*i)->isConstant()) 904 continue; 905 906 AllConstants = false; 907 break; 908 } 909 if (AllConstants) 910 return DFS.ZeroShadow; 911 912 Value *ShadowAddr = DFS.getShadowAddress(Addr, Pos); 913 switch (Size) { 914 case 0: 915 return DFS.ZeroShadow; 916 case 1: { 917 LoadInst *LI = new LoadInst(ShadowAddr, "", Pos); 918 LI->setAlignment(ShadowAlign); 919 return LI; 920 } 921 case 2: { 922 IRBuilder<> IRB(Pos); 923 Value *ShadowAddr1 = 924 IRB.CreateGEP(ShadowAddr, ConstantInt::get(DFS.IntptrTy, 1)); 925 return DFS.combineShadows(IRB.CreateAlignedLoad(ShadowAddr, ShadowAlign), 926 IRB.CreateAlignedLoad(ShadowAddr1, ShadowAlign), 927 Pos); 928 } 929 } 930 if (Size % (64 / DFS.ShadowWidth) == 0) { 931 // Fast path for the common case where each byte has identical shadow: load 932 // shadow 64 bits at a time, fall out to a __dfsan_union_load call if any 933 // shadow is non-equal. 934 BasicBlock *FallbackBB = BasicBlock::Create(*DFS.Ctx, "", F); 935 IRBuilder<> FallbackIRB(FallbackBB); 936 CallInst *FallbackCall = FallbackIRB.CreateCall2( 937 DFS.DFSanUnionLoadFn, ShadowAddr, ConstantInt::get(DFS.IntptrTy, Size)); 938 FallbackCall->addAttribute(AttributeSet::ReturnIndex, Attribute::ZExt); 939 940 // Compare each of the shadows stored in the loaded 64 bits to each other, 941 // by computing (WideShadow rotl ShadowWidth) == WideShadow. 942 IRBuilder<> IRB(Pos); 943 Value *WideAddr = 944 IRB.CreateBitCast(ShadowAddr, Type::getInt64PtrTy(*DFS.Ctx)); 945 Value *WideShadow = IRB.CreateAlignedLoad(WideAddr, ShadowAlign); 946 Value *TruncShadow = IRB.CreateTrunc(WideShadow, DFS.ShadowTy); 947 Value *ShlShadow = IRB.CreateShl(WideShadow, DFS.ShadowWidth); 948 Value *ShrShadow = IRB.CreateLShr(WideShadow, 64 - DFS.ShadowWidth); 949 Value *RotShadow = IRB.CreateOr(ShlShadow, ShrShadow); 950 Value *ShadowsEq = IRB.CreateICmpEQ(WideShadow, RotShadow); 951 952 BasicBlock *Head = Pos->getParent(); 953 BasicBlock *Tail = Head->splitBasicBlock(Pos); 954 // In the following code LastBr will refer to the previous basic block's 955 // conditional branch instruction, whose true successor is fixed up to point 956 // to the next block during the loop below or to the tail after the final 957 // iteration. 958 BranchInst *LastBr = BranchInst::Create(FallbackBB, FallbackBB, ShadowsEq); 959 ReplaceInstWithInst(Head->getTerminator(), LastBr); 960 961 for (uint64_t Ofs = 64 / DFS.ShadowWidth; Ofs != Size; 962 Ofs += 64 / DFS.ShadowWidth) { 963 BasicBlock *NextBB = BasicBlock::Create(*DFS.Ctx, "", F); 964 IRBuilder<> NextIRB(NextBB); 965 WideAddr = NextIRB.CreateGEP(WideAddr, ConstantInt::get(DFS.IntptrTy, 1)); 966 Value *NextWideShadow = NextIRB.CreateAlignedLoad(WideAddr, ShadowAlign); 967 ShadowsEq = NextIRB.CreateICmpEQ(WideShadow, NextWideShadow); 968 LastBr->setSuccessor(0, NextBB); 969 LastBr = NextIRB.CreateCondBr(ShadowsEq, FallbackBB, FallbackBB); 970 } 971 972 LastBr->setSuccessor(0, Tail); 973 FallbackIRB.CreateBr(Tail); 974 PHINode *Shadow = PHINode::Create(DFS.ShadowTy, 2, "", &Tail->front()); 975 Shadow->addIncoming(FallbackCall, FallbackBB); 976 Shadow->addIncoming(TruncShadow, LastBr->getParent()); 977 return Shadow; 978 } 979 980 IRBuilder<> IRB(Pos); 981 CallInst *FallbackCall = IRB.CreateCall2( 982 DFS.DFSanUnionLoadFn, ShadowAddr, ConstantInt::get(DFS.IntptrTy, Size)); 983 FallbackCall->addAttribute(AttributeSet::ReturnIndex, Attribute::ZExt); 984 return FallbackCall; 985 } 986 987 void DFSanVisitor::visitLoadInst(LoadInst &LI) { 988 uint64_t Size = DFSF.DFS.DL->getTypeStoreSize(LI.getType()); 989 uint64_t Align; 990 if (ClPreserveAlignment) { 991 Align = LI.getAlignment(); 992 if (Align == 0) 993 Align = DFSF.DFS.DL->getABITypeAlignment(LI.getType()); 994 } else { 995 Align = 1; 996 } 997 IRBuilder<> IRB(&LI); 998 Value *Shadow = DFSF.loadShadow(LI.getPointerOperand(), Size, Align, &LI); 999 if (ClCombinePointerLabelsOnLoad) { 1000 Value *PtrShadow = DFSF.getShadow(LI.getPointerOperand()); 1001 Shadow = DFSF.DFS.combineShadows(Shadow, PtrShadow, &LI); 1002 } 1003 if (Shadow != DFSF.DFS.ZeroShadow) 1004 DFSF.NonZeroChecks.insert(Shadow); 1005 1006 DFSF.setShadow(&LI, Shadow); 1007 } 1008 1009 void DFSanFunction::storeShadow(Value *Addr, uint64_t Size, uint64_t Align, 1010 Value *Shadow, Instruction *Pos) { 1011 if (AllocaInst *AI = dyn_cast<AllocaInst>(Addr)) { 1012 llvm::DenseMap<AllocaInst *, AllocaInst *>::iterator i = 1013 AllocaShadowMap.find(AI); 1014 if (i != AllocaShadowMap.end()) { 1015 IRBuilder<> IRB(Pos); 1016 IRB.CreateStore(Shadow, i->second); 1017 return; 1018 } 1019 } 1020 1021 uint64_t ShadowAlign = Align * DFS.ShadowWidth / 8; 1022 IRBuilder<> IRB(Pos); 1023 Value *ShadowAddr = DFS.getShadowAddress(Addr, Pos); 1024 if (Shadow == DFS.ZeroShadow) { 1025 IntegerType *ShadowTy = IntegerType::get(*DFS.Ctx, Size * DFS.ShadowWidth); 1026 Value *ExtZeroShadow = ConstantInt::get(ShadowTy, 0); 1027 Value *ExtShadowAddr = 1028 IRB.CreateBitCast(ShadowAddr, PointerType::getUnqual(ShadowTy)); 1029 IRB.CreateAlignedStore(ExtZeroShadow, ExtShadowAddr, ShadowAlign); 1030 return; 1031 } 1032 1033 const unsigned ShadowVecSize = 128 / DFS.ShadowWidth; 1034 uint64_t Offset = 0; 1035 if (Size >= ShadowVecSize) { 1036 VectorType *ShadowVecTy = VectorType::get(DFS.ShadowTy, ShadowVecSize); 1037 Value *ShadowVec = UndefValue::get(ShadowVecTy); 1038 for (unsigned i = 0; i != ShadowVecSize; ++i) { 1039 ShadowVec = IRB.CreateInsertElement( 1040 ShadowVec, Shadow, ConstantInt::get(Type::getInt32Ty(*DFS.Ctx), i)); 1041 } 1042 Value *ShadowVecAddr = 1043 IRB.CreateBitCast(ShadowAddr, PointerType::getUnqual(ShadowVecTy)); 1044 do { 1045 Value *CurShadowVecAddr = IRB.CreateConstGEP1_32(ShadowVecAddr, Offset); 1046 IRB.CreateAlignedStore(ShadowVec, CurShadowVecAddr, ShadowAlign); 1047 Size -= ShadowVecSize; 1048 ++Offset; 1049 } while (Size >= ShadowVecSize); 1050 Offset *= ShadowVecSize; 1051 } 1052 while (Size > 0) { 1053 Value *CurShadowAddr = IRB.CreateConstGEP1_32(ShadowAddr, Offset); 1054 IRB.CreateAlignedStore(Shadow, CurShadowAddr, ShadowAlign); 1055 --Size; 1056 ++Offset; 1057 } 1058 } 1059 1060 void DFSanVisitor::visitStoreInst(StoreInst &SI) { 1061 uint64_t Size = 1062 DFSF.DFS.DL->getTypeStoreSize(SI.getValueOperand()->getType()); 1063 uint64_t Align; 1064 if (ClPreserveAlignment) { 1065 Align = SI.getAlignment(); 1066 if (Align == 0) 1067 Align = DFSF.DFS.DL->getABITypeAlignment(SI.getValueOperand()->getType()); 1068 } else { 1069 Align = 1; 1070 } 1071 1072 Value* Shadow = DFSF.getShadow(SI.getValueOperand()); 1073 if (ClCombinePointerLabelsOnStore) { 1074 Value *PtrShadow = DFSF.getShadow(SI.getPointerOperand()); 1075 Shadow = DFSF.DFS.combineShadows(Shadow, PtrShadow, &SI); 1076 } 1077 DFSF.storeShadow(SI.getPointerOperand(), Size, Align, Shadow, &SI); 1078 } 1079 1080 void DFSanVisitor::visitBinaryOperator(BinaryOperator &BO) { 1081 visitOperandShadowInst(BO); 1082 } 1083 1084 void DFSanVisitor::visitCastInst(CastInst &CI) { visitOperandShadowInst(CI); } 1085 1086 void DFSanVisitor::visitCmpInst(CmpInst &CI) { visitOperandShadowInst(CI); } 1087 1088 void DFSanVisitor::visitGetElementPtrInst(GetElementPtrInst &GEPI) { 1089 visitOperandShadowInst(GEPI); 1090 } 1091 1092 void DFSanVisitor::visitExtractElementInst(ExtractElementInst &I) { 1093 visitOperandShadowInst(I); 1094 } 1095 1096 void DFSanVisitor::visitInsertElementInst(InsertElementInst &I) { 1097 visitOperandShadowInst(I); 1098 } 1099 1100 void DFSanVisitor::visitShuffleVectorInst(ShuffleVectorInst &I) { 1101 visitOperandShadowInst(I); 1102 } 1103 1104 void DFSanVisitor::visitExtractValueInst(ExtractValueInst &I) { 1105 visitOperandShadowInst(I); 1106 } 1107 1108 void DFSanVisitor::visitInsertValueInst(InsertValueInst &I) { 1109 visitOperandShadowInst(I); 1110 } 1111 1112 void DFSanVisitor::visitAllocaInst(AllocaInst &I) { 1113 bool AllLoadsStores = true; 1114 for (Instruction::use_iterator i = I.use_begin(), e = I.use_end(); i != e; 1115 ++i) { 1116 if (isa<LoadInst>(*i)) 1117 continue; 1118 1119 if (StoreInst *SI = dyn_cast<StoreInst>(*i)) { 1120 if (SI->getPointerOperand() == &I) 1121 continue; 1122 } 1123 1124 AllLoadsStores = false; 1125 break; 1126 } 1127 if (AllLoadsStores) { 1128 IRBuilder<> IRB(&I); 1129 DFSF.AllocaShadowMap[&I] = IRB.CreateAlloca(DFSF.DFS.ShadowTy); 1130 } 1131 DFSF.setShadow(&I, DFSF.DFS.ZeroShadow); 1132 } 1133 1134 void DFSanVisitor::visitSelectInst(SelectInst &I) { 1135 Value *CondShadow = DFSF.getShadow(I.getCondition()); 1136 Value *TrueShadow = DFSF.getShadow(I.getTrueValue()); 1137 Value *FalseShadow = DFSF.getShadow(I.getFalseValue()); 1138 1139 if (isa<VectorType>(I.getCondition()->getType())) { 1140 DFSF.setShadow( 1141 &I, DFSF.DFS.combineShadows( 1142 CondShadow, 1143 DFSF.DFS.combineShadows(TrueShadow, FalseShadow, &I), &I)); 1144 } else { 1145 Value *ShadowSel; 1146 if (TrueShadow == FalseShadow) { 1147 ShadowSel = TrueShadow; 1148 } else { 1149 ShadowSel = 1150 SelectInst::Create(I.getCondition(), TrueShadow, FalseShadow, "", &I); 1151 } 1152 DFSF.setShadow(&I, DFSF.DFS.combineShadows(CondShadow, ShadowSel, &I)); 1153 } 1154 } 1155 1156 void DFSanVisitor::visitMemSetInst(MemSetInst &I) { 1157 IRBuilder<> IRB(&I); 1158 Value *ValShadow = DFSF.getShadow(I.getValue()); 1159 IRB.CreateCall3( 1160 DFSF.DFS.DFSanSetLabelFn, ValShadow, 1161 IRB.CreateBitCast(I.getDest(), Type::getInt8PtrTy(*DFSF.DFS.Ctx)), 1162 IRB.CreateZExtOrTrunc(I.getLength(), DFSF.DFS.IntptrTy)); 1163 } 1164 1165 void DFSanVisitor::visitMemTransferInst(MemTransferInst &I) { 1166 IRBuilder<> IRB(&I); 1167 Value *DestShadow = DFSF.DFS.getShadowAddress(I.getDest(), &I); 1168 Value *SrcShadow = DFSF.DFS.getShadowAddress(I.getSource(), &I); 1169 Value *LenShadow = IRB.CreateMul( 1170 I.getLength(), 1171 ConstantInt::get(I.getLength()->getType(), DFSF.DFS.ShadowWidth / 8)); 1172 Value *AlignShadow; 1173 if (ClPreserveAlignment) { 1174 AlignShadow = IRB.CreateMul(I.getAlignmentCst(), 1175 ConstantInt::get(I.getAlignmentCst()->getType(), 1176 DFSF.DFS.ShadowWidth / 8)); 1177 } else { 1178 AlignShadow = ConstantInt::get(I.getAlignmentCst()->getType(), 1179 DFSF.DFS.ShadowWidth / 8); 1180 } 1181 Type *Int8Ptr = Type::getInt8PtrTy(*DFSF.DFS.Ctx); 1182 DestShadow = IRB.CreateBitCast(DestShadow, Int8Ptr); 1183 SrcShadow = IRB.CreateBitCast(SrcShadow, Int8Ptr); 1184 IRB.CreateCall5(I.getCalledValue(), DestShadow, SrcShadow, LenShadow, 1185 AlignShadow, I.getVolatileCst()); 1186 } 1187 1188 void DFSanVisitor::visitReturnInst(ReturnInst &RI) { 1189 if (!DFSF.IsNativeABI && RI.getReturnValue()) { 1190 switch (DFSF.IA) { 1191 case DataFlowSanitizer::IA_TLS: { 1192 Value *S = DFSF.getShadow(RI.getReturnValue()); 1193 IRBuilder<> IRB(&RI); 1194 IRB.CreateStore(S, DFSF.getRetvalTLS()); 1195 break; 1196 } 1197 case DataFlowSanitizer::IA_Args: { 1198 IRBuilder<> IRB(&RI); 1199 Type *RT = DFSF.F->getFunctionType()->getReturnType(); 1200 Value *InsVal = 1201 IRB.CreateInsertValue(UndefValue::get(RT), RI.getReturnValue(), 0); 1202 Value *InsShadow = 1203 IRB.CreateInsertValue(InsVal, DFSF.getShadow(RI.getReturnValue()), 1); 1204 RI.setOperand(0, InsShadow); 1205 break; 1206 } 1207 } 1208 } 1209 } 1210 1211 void DFSanVisitor::visitCallSite(CallSite CS) { 1212 Function *F = CS.getCalledFunction(); 1213 if ((F && F->isIntrinsic()) || isa<InlineAsm>(CS.getCalledValue())) { 1214 visitOperandShadowInst(*CS.getInstruction()); 1215 return; 1216 } 1217 1218 IRBuilder<> IRB(CS.getInstruction()); 1219 1220 DenseMap<Value *, Function *>::iterator i = 1221 DFSF.DFS.UnwrappedFnMap.find(CS.getCalledValue()); 1222 if (i != DFSF.DFS.UnwrappedFnMap.end()) { 1223 Function *F = i->second; 1224 switch (DFSF.DFS.getWrapperKind(F)) { 1225 case DataFlowSanitizer::WK_Warning: { 1226 CS.setCalledFunction(F); 1227 IRB.CreateCall(DFSF.DFS.DFSanUnimplementedFn, 1228 IRB.CreateGlobalStringPtr(F->getName())); 1229 DFSF.setShadow(CS.getInstruction(), DFSF.DFS.ZeroShadow); 1230 return; 1231 } 1232 case DataFlowSanitizer::WK_Discard: { 1233 CS.setCalledFunction(F); 1234 DFSF.setShadow(CS.getInstruction(), DFSF.DFS.ZeroShadow); 1235 return; 1236 } 1237 case DataFlowSanitizer::WK_Functional: { 1238 CS.setCalledFunction(F); 1239 visitOperandShadowInst(*CS.getInstruction()); 1240 return; 1241 } 1242 case DataFlowSanitizer::WK_Custom: { 1243 // Don't try to handle invokes of custom functions, it's too complicated. 1244 // Instead, invoke the dfsw$ wrapper, which will in turn call the __dfsw_ 1245 // wrapper. 1246 if (CallInst *CI = dyn_cast<CallInst>(CS.getInstruction())) { 1247 FunctionType *FT = F->getFunctionType(); 1248 FunctionType *CustomFT = DFSF.DFS.getCustomFunctionType(FT); 1249 std::string CustomFName = "__dfsw_"; 1250 CustomFName += F->getName(); 1251 Constant *CustomF = 1252 DFSF.DFS.Mod->getOrInsertFunction(CustomFName, CustomFT); 1253 if (Function *CustomFn = dyn_cast<Function>(CustomF)) { 1254 CustomFn->copyAttributesFrom(F); 1255 1256 // Custom functions returning non-void will write to the return label. 1257 if (!FT->getReturnType()->isVoidTy()) { 1258 CustomFn->removeAttributes(AttributeSet::FunctionIndex, 1259 DFSF.DFS.ReadOnlyNoneAttrs); 1260 } 1261 } 1262 1263 std::vector<Value *> Args; 1264 1265 CallSite::arg_iterator i = CS.arg_begin(); 1266 for (unsigned n = FT->getNumParams(); n != 0; ++i, --n) { 1267 Type *T = (*i)->getType(); 1268 FunctionType *ParamFT; 1269 if (isa<PointerType>(T) && 1270 (ParamFT = dyn_cast<FunctionType>( 1271 cast<PointerType>(T)->getElementType()))) { 1272 std::string TName = "dfst"; 1273 TName += utostr(FT->getNumParams() - n); 1274 TName += "$"; 1275 TName += F->getName(); 1276 Constant *T = DFSF.DFS.getOrBuildTrampolineFunction(ParamFT, TName); 1277 Args.push_back(T); 1278 Args.push_back( 1279 IRB.CreateBitCast(*i, Type::getInt8PtrTy(*DFSF.DFS.Ctx))); 1280 } else { 1281 Args.push_back(*i); 1282 } 1283 } 1284 1285 i = CS.arg_begin(); 1286 for (unsigned n = FT->getNumParams(); n != 0; ++i, --n) 1287 Args.push_back(DFSF.getShadow(*i)); 1288 1289 if (!FT->getReturnType()->isVoidTy()) { 1290 if (!DFSF.LabelReturnAlloca) { 1291 DFSF.LabelReturnAlloca = 1292 new AllocaInst(DFSF.DFS.ShadowTy, "labelreturn", 1293 DFSF.F->getEntryBlock().begin()); 1294 } 1295 Args.push_back(DFSF.LabelReturnAlloca); 1296 } 1297 1298 CallInst *CustomCI = IRB.CreateCall(CustomF, Args); 1299 CustomCI->setCallingConv(CI->getCallingConv()); 1300 CustomCI->setAttributes(CI->getAttributes()); 1301 1302 if (!FT->getReturnType()->isVoidTy()) { 1303 LoadInst *LabelLoad = IRB.CreateLoad(DFSF.LabelReturnAlloca); 1304 DFSF.setShadow(CustomCI, LabelLoad); 1305 } 1306 1307 CI->replaceAllUsesWith(CustomCI); 1308 CI->eraseFromParent(); 1309 return; 1310 } 1311 break; 1312 } 1313 } 1314 } 1315 1316 FunctionType *FT = cast<FunctionType>( 1317 CS.getCalledValue()->getType()->getPointerElementType()); 1318 if (DFSF.DFS.getInstrumentedABI() == DataFlowSanitizer::IA_TLS) { 1319 for (unsigned i = 0, n = FT->getNumParams(); i != n; ++i) { 1320 IRB.CreateStore(DFSF.getShadow(CS.getArgument(i)), 1321 DFSF.getArgTLS(i, CS.getInstruction())); 1322 } 1323 } 1324 1325 Instruction *Next = 0; 1326 if (!CS.getType()->isVoidTy()) { 1327 if (InvokeInst *II = dyn_cast<InvokeInst>(CS.getInstruction())) { 1328 if (II->getNormalDest()->getSinglePredecessor()) { 1329 Next = II->getNormalDest()->begin(); 1330 } else { 1331 BasicBlock *NewBB = 1332 SplitEdge(II->getParent(), II->getNormalDest(), &DFSF.DFS); 1333 Next = NewBB->begin(); 1334 } 1335 } else { 1336 Next = CS->getNextNode(); 1337 } 1338 1339 if (DFSF.DFS.getInstrumentedABI() == DataFlowSanitizer::IA_TLS) { 1340 IRBuilder<> NextIRB(Next); 1341 LoadInst *LI = NextIRB.CreateLoad(DFSF.getRetvalTLS()); 1342 DFSF.SkipInsts.insert(LI); 1343 DFSF.setShadow(CS.getInstruction(), LI); 1344 DFSF.NonZeroChecks.insert(LI); 1345 } 1346 } 1347 1348 // Do all instrumentation for IA_Args down here to defer tampering with the 1349 // CFG in a way that SplitEdge may be able to detect. 1350 if (DFSF.DFS.getInstrumentedABI() == DataFlowSanitizer::IA_Args) { 1351 FunctionType *NewFT = DFSF.DFS.getArgsFunctionType(FT); 1352 Value *Func = 1353 IRB.CreateBitCast(CS.getCalledValue(), PointerType::getUnqual(NewFT)); 1354 std::vector<Value *> Args; 1355 1356 CallSite::arg_iterator i = CS.arg_begin(), e = CS.arg_end(); 1357 for (unsigned n = FT->getNumParams(); n != 0; ++i, --n) 1358 Args.push_back(*i); 1359 1360 i = CS.arg_begin(); 1361 for (unsigned n = FT->getNumParams(); n != 0; ++i, --n) 1362 Args.push_back(DFSF.getShadow(*i)); 1363 1364 if (FT->isVarArg()) { 1365 unsigned VarArgSize = CS.arg_size() - FT->getNumParams(); 1366 ArrayType *VarArgArrayTy = ArrayType::get(DFSF.DFS.ShadowTy, VarArgSize); 1367 AllocaInst *VarArgShadow = 1368 new AllocaInst(VarArgArrayTy, "", DFSF.F->getEntryBlock().begin()); 1369 Args.push_back(IRB.CreateConstGEP2_32(VarArgShadow, 0, 0)); 1370 for (unsigned n = 0; i != e; ++i, ++n) { 1371 IRB.CreateStore(DFSF.getShadow(*i), 1372 IRB.CreateConstGEP2_32(VarArgShadow, 0, n)); 1373 Args.push_back(*i); 1374 } 1375 } 1376 1377 CallSite NewCS; 1378 if (InvokeInst *II = dyn_cast<InvokeInst>(CS.getInstruction())) { 1379 NewCS = IRB.CreateInvoke(Func, II->getNormalDest(), II->getUnwindDest(), 1380 Args); 1381 } else { 1382 NewCS = IRB.CreateCall(Func, Args); 1383 } 1384 NewCS.setCallingConv(CS.getCallingConv()); 1385 NewCS.setAttributes(CS.getAttributes().removeAttributes( 1386 *DFSF.DFS.Ctx, AttributeSet::ReturnIndex, 1387 AttributeFuncs::typeIncompatible(NewCS.getInstruction()->getType(), 1388 AttributeSet::ReturnIndex))); 1389 1390 if (Next) { 1391 ExtractValueInst *ExVal = 1392 ExtractValueInst::Create(NewCS.getInstruction(), 0, "", Next); 1393 DFSF.SkipInsts.insert(ExVal); 1394 ExtractValueInst *ExShadow = 1395 ExtractValueInst::Create(NewCS.getInstruction(), 1, "", Next); 1396 DFSF.SkipInsts.insert(ExShadow); 1397 DFSF.setShadow(ExVal, ExShadow); 1398 DFSF.NonZeroChecks.insert(ExShadow); 1399 1400 CS.getInstruction()->replaceAllUsesWith(ExVal); 1401 } 1402 1403 CS.getInstruction()->eraseFromParent(); 1404 } 1405 } 1406 1407 void DFSanVisitor::visitPHINode(PHINode &PN) { 1408 PHINode *ShadowPN = 1409 PHINode::Create(DFSF.DFS.ShadowTy, PN.getNumIncomingValues(), "", &PN); 1410 1411 // Give the shadow phi node valid predecessors to fool SplitEdge into working. 1412 Value *UndefShadow = UndefValue::get(DFSF.DFS.ShadowTy); 1413 for (PHINode::block_iterator i = PN.block_begin(), e = PN.block_end(); i != e; 1414 ++i) { 1415 ShadowPN->addIncoming(UndefShadow, *i); 1416 } 1417 1418 DFSF.PHIFixups.push_back(std::make_pair(&PN, ShadowPN)); 1419 DFSF.setShadow(&PN, ShadowPN); 1420 } 1421