1 //===- AddDiscriminators.cpp - Insert DWARF path discriminators -----------===// 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 // 10 // This file adds DWARF discriminators to the IR. Path discriminators are 11 // used to decide what CFG path was taken inside sub-graphs whose instructions 12 // share the same line and column number information. 13 // 14 // The main user of this is the sample profiler. Instruction samples are 15 // mapped to line number information. Since a single line may be spread 16 // out over several basic blocks, discriminators add more precise location 17 // for the samples. 18 // 19 // For example, 20 // 21 // 1 #define ASSERT(P) 22 // 2 if (!(P)) 23 // 3 abort() 24 // ... 25 // 100 while (true) { 26 // 101 ASSERT (sum < 0); 27 // 102 ... 28 // 130 } 29 // 30 // when converted to IR, this snippet looks something like: 31 // 32 // while.body: ; preds = %entry, %if.end 33 // %0 = load i32* %sum, align 4, !dbg !15 34 // %cmp = icmp slt i32 %0, 0, !dbg !15 35 // br i1 %cmp, label %if.end, label %if.then, !dbg !15 36 // 37 // if.then: ; preds = %while.body 38 // call void @abort(), !dbg !15 39 // br label %if.end, !dbg !15 40 // 41 // Notice that all the instructions in blocks 'while.body' and 'if.then' 42 // have exactly the same debug information. When this program is sampled 43 // at runtime, the profiler will assume that all these instructions are 44 // equally frequent. This, in turn, will consider the edge while.body->if.then 45 // to be frequently taken (which is incorrect). 46 // 47 // By adding a discriminator value to the instructions in block 'if.then', 48 // we can distinguish instructions at line 101 with discriminator 0 from 49 // the instructions at line 101 with discriminator 1. 50 // 51 // For more details about DWARF discriminators, please visit 52 // http://wiki.dwarfstd.org/index.php?title=Path_Discriminators 53 //===----------------------------------------------------------------------===// 54 55 #include "llvm/Transforms/Utils/AddDiscriminators.h" 56 #include "llvm/ADT/DenseMap.h" 57 #include "llvm/ADT/DenseSet.h" 58 #include "llvm/IR/BasicBlock.h" 59 #include "llvm/IR/Constants.h" 60 #include "llvm/IR/DebugInfo.h" 61 #include "llvm/IR/Instructions.h" 62 #include "llvm/IR/IntrinsicInst.h" 63 #include "llvm/IR/LLVMContext.h" 64 #include "llvm/Pass.h" 65 #include "llvm/Support/CommandLine.h" 66 #include "llvm/Support/Debug.h" 67 #include "llvm/Support/raw_ostream.h" 68 #include "llvm/Transforms/Scalar.h" 69 70 using namespace llvm; 71 72 #define DEBUG_TYPE "add-discriminators" 73 74 namespace { 75 // The legacy pass of AddDiscriminators. 76 struct AddDiscriminatorsLegacyPass : public FunctionPass { 77 static char ID; // Pass identification, replacement for typeid 78 AddDiscriminatorsLegacyPass() : FunctionPass(ID) { 79 initializeAddDiscriminatorsLegacyPassPass(*PassRegistry::getPassRegistry()); 80 } 81 82 bool runOnFunction(Function &F) override; 83 }; 84 85 } // end anonymous namespace 86 87 char AddDiscriminatorsLegacyPass::ID = 0; 88 INITIALIZE_PASS_BEGIN(AddDiscriminatorsLegacyPass, "add-discriminators", 89 "Add DWARF path discriminators", false, false) 90 INITIALIZE_PASS_END(AddDiscriminatorsLegacyPass, "add-discriminators", 91 "Add DWARF path discriminators", false, false) 92 93 // Command line option to disable discriminator generation even in the 94 // presence of debug information. This is only needed when debugging 95 // debug info generation issues. 96 static cl::opt<bool> NoDiscriminators( 97 "no-discriminators", cl::init(false), 98 cl::desc("Disable generation of discriminator information.")); 99 100 // Create the legacy AddDiscriminatorsPass. 101 FunctionPass *llvm::createAddDiscriminatorsPass() { 102 return new AddDiscriminatorsLegacyPass(); 103 } 104 105 static bool shouldHaveDiscriminator(const Instruction *I) { 106 return !isa<IntrinsicInst>(I) || isa<MemIntrinsic>(I); 107 } 108 109 /// \brief Assign DWARF discriminators. 110 /// 111 /// To assign discriminators, we examine the boundaries of every 112 /// basic block and its successors. Suppose there is a basic block B1 113 /// with successor B2. The last instruction I1 in B1 and the first 114 /// instruction I2 in B2 are located at the same file and line number. 115 /// This situation is illustrated in the following code snippet: 116 /// 117 /// if (i < 10) x = i; 118 /// 119 /// entry: 120 /// br i1 %cmp, label %if.then, label %if.end, !dbg !10 121 /// if.then: 122 /// %1 = load i32* %i.addr, align 4, !dbg !10 123 /// store i32 %1, i32* %x, align 4, !dbg !10 124 /// br label %if.end, !dbg !10 125 /// if.end: 126 /// ret void, !dbg !12 127 /// 128 /// Notice how the branch instruction in block 'entry' and all the 129 /// instructions in block 'if.then' have the exact same debug location 130 /// information (!dbg !10). 131 /// 132 /// To distinguish instructions in block 'entry' from instructions in 133 /// block 'if.then', we generate a new lexical block for all the 134 /// instruction in block 'if.then' that share the same file and line 135 /// location with the last instruction of block 'entry'. 136 /// 137 /// This new lexical block will have the same location information as 138 /// the previous one, but with a new DWARF discriminator value. 139 /// 140 /// One of the main uses of this discriminator value is in runtime 141 /// sample profilers. It allows the profiler to distinguish instructions 142 /// at location !dbg !10 that execute on different basic blocks. This is 143 /// important because while the predicate 'if (x < 10)' may have been 144 /// executed millions of times, the assignment 'x = i' may have only 145 /// executed a handful of times (meaning that the entry->if.then edge is 146 /// seldom taken). 147 /// 148 /// If we did not have discriminator information, the profiler would 149 /// assign the same weight to both blocks 'entry' and 'if.then', which 150 /// in turn will make it conclude that the entry->if.then edge is very 151 /// hot. 152 /// 153 /// To decide where to create new discriminator values, this function 154 /// traverses the CFG and examines instruction at basic block boundaries. 155 /// If the last instruction I1 of a block B1 is at the same file and line 156 /// location as instruction I2 of successor B2, then it creates a new 157 /// lexical block for I2 and all the instruction in B2 that share the same 158 /// file and line location as I2. This new lexical block will have a 159 /// different discriminator number than I1. 160 static bool addDiscriminators(Function &F) { 161 // If the function has debug information, but the user has disabled 162 // discriminators, do nothing. 163 // Simlarly, if the function has no debug info, do nothing. 164 if (NoDiscriminators || !F.getSubprogram()) 165 return false; 166 167 bool Changed = false; 168 169 typedef std::pair<StringRef, unsigned> Location; 170 typedef DenseSet<const BasicBlock *> BBSet; 171 typedef DenseMap<Location, BBSet> LocationBBMap; 172 typedef DenseMap<Location, unsigned> LocationDiscriminatorMap; 173 typedef DenseSet<Location> LocationSet; 174 175 LocationBBMap LBM; 176 LocationDiscriminatorMap LDM; 177 178 // Traverse all instructions in the function. If the source line location 179 // of the instruction appears in other basic block, assign a new 180 // discriminator for this instruction. 181 for (BasicBlock &B : F) { 182 for (auto &I : B.getInstList()) { 183 // Not all intrinsic calls should have a discriminator. 184 // We want to avoid a non-deterministic assignment of discriminators at 185 // different debug levels. We still allow discriminators on memory 186 // intrinsic calls because those can be early expanded by SROA into 187 // pairs of loads and stores, and the expanded load/store instructions 188 // should have a valid discriminator. 189 if (!shouldHaveDiscriminator(&I)) 190 continue; 191 const DILocation *DIL = I.getDebugLoc(); 192 if (!DIL) 193 continue; 194 Location L = std::make_pair(DIL->getFilename(), DIL->getLine()); 195 auto &BBMap = LBM[L]; 196 auto R = BBMap.insert(&B); 197 if (BBMap.size() == 1) 198 continue; 199 // If we could insert more than one block with the same line+file, a 200 // discriminator is needed to distinguish both instructions. 201 // Only the lowest 7 bits are used to represent a discriminator to fit 202 // it in 1 byte ULEB128 representation. 203 unsigned Discriminator = R.second ? ++LDM[L] : LDM[L]; 204 I.setDebugLoc(DIL->setBaseDiscriminator(Discriminator)); 205 DEBUG(dbgs() << DIL->getFilename() << ":" << DIL->getLine() << ":" 206 << DIL->getColumn() << ":" << Discriminator << " " << I 207 << "\n"); 208 Changed = true; 209 } 210 } 211 212 // Traverse all instructions and assign new discriminators to call 213 // instructions with the same lineno that are in the same basic block. 214 // Sample base profile needs to distinguish different function calls within 215 // a same source line for correct profile annotation. 216 for (BasicBlock &B : F) { 217 LocationSet CallLocations; 218 for (auto &I : B.getInstList()) { 219 CallInst *Current = dyn_cast<CallInst>(&I); 220 // We bypass intrinsic calls for the following two reasons: 221 // 1) We want to avoid a non-deterministic assigment of 222 // discriminators. 223 // 2) We want to minimize the number of base discriminators used. 224 if (!Current || isa<IntrinsicInst>(&I)) 225 continue; 226 227 DILocation *CurrentDIL = Current->getDebugLoc(); 228 if (!CurrentDIL) 229 continue; 230 Location L = 231 std::make_pair(CurrentDIL->getFilename(), CurrentDIL->getLine()); 232 if (!CallLocations.insert(L).second) { 233 unsigned Discriminator = ++LDM[L]; 234 Current->setDebugLoc(CurrentDIL->setBaseDiscriminator(Discriminator)); 235 Changed = true; 236 } 237 } 238 } 239 return Changed; 240 } 241 242 bool AddDiscriminatorsLegacyPass::runOnFunction(Function &F) { 243 return addDiscriminators(F); 244 } 245 PreservedAnalyses AddDiscriminatorsPass::run(Function &F, 246 FunctionAnalysisManager &AM) { 247 if (!addDiscriminators(F)) 248 return PreservedAnalyses::all(); 249 250 // FIXME: should be all() 251 return PreservedAnalyses::none(); 252 } 253