1 //===- PGOInstrumentation.cpp - MST-based PGO Instrumentation -------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements PGO instrumentation using a minimum spanning tree based 10 // on the following paper: 11 // [1] Donald E. Knuth, Francis R. Stevenson. Optimal measurement of points 12 // for program frequency counts. BIT Numerical Mathematics 1973, Volume 13, 13 // Issue 3, pp 313-322 14 // The idea of the algorithm based on the fact that for each node (except for 15 // the entry and exit), the sum of incoming edge counts equals the sum of 16 // outgoing edge counts. The count of edge on spanning tree can be derived from 17 // those edges not on the spanning tree. Knuth proves this method instruments 18 // the minimum number of edges. 19 // 20 // The minimal spanning tree here is actually a maximum weight tree -- on-tree 21 // edges have higher frequencies (more likely to execute). The idea is to 22 // instrument those less frequently executed edges to reduce the runtime 23 // overhead of instrumented binaries. 24 // 25 // This file contains two passes: 26 // (1) Pass PGOInstrumentationGen which instruments the IR to generate edge 27 // count profile, and generates the instrumentation for indirect call 28 // profiling. 29 // (2) Pass PGOInstrumentationUse which reads the edge count profile and 30 // annotates the branch weights. It also reads the indirect call value 31 // profiling records and annotate the indirect call instructions. 32 // 33 // To get the precise counter information, These two passes need to invoke at 34 // the same compilation point (so they see the same IR). For pass 35 // PGOInstrumentationGen, the real work is done in instrumentOneFunc(). For 36 // pass PGOInstrumentationUse, the real work in done in class PGOUseFunc and 37 // the profile is opened in module level and passed to each PGOUseFunc instance. 38 // The shared code for PGOInstrumentationGen and PGOInstrumentationUse is put 39 // in class FuncPGOInstrumentation. 40 // 41 // Class PGOEdge represents a CFG edge and some auxiliary information. Class 42 // BBInfo contains auxiliary information for each BB. These two classes are used 43 // in pass PGOInstrumentationGen. Class PGOUseEdge and UseBBInfo are the derived 44 // class of PGOEdge and BBInfo, respectively. They contains extra data structure 45 // used in populating profile counters. 46 // The MST implementation is in Class CFGMST (CFGMST.h). 47 // 48 //===----------------------------------------------------------------------===// 49 50 #include "CFGMST.h" 51 #include "llvm/ADT/APInt.h" 52 #include "llvm/ADT/ArrayRef.h" 53 #include "llvm/ADT/STLExtras.h" 54 #include "llvm/ADT/SmallVector.h" 55 #include "llvm/ADT/Statistic.h" 56 #include "llvm/ADT/StringRef.h" 57 #include "llvm/ADT/Triple.h" 58 #include "llvm/ADT/Twine.h" 59 #include "llvm/ADT/iterator.h" 60 #include "llvm/ADT/iterator_range.h" 61 #include "llvm/Analysis/BlockFrequencyInfo.h" 62 #include "llvm/Analysis/BranchProbabilityInfo.h" 63 #include "llvm/Analysis/CFG.h" 64 #include "llvm/Analysis/IndirectCallVisitor.h" 65 #include "llvm/Analysis/LoopInfo.h" 66 #include "llvm/Analysis/OptimizationRemarkEmitter.h" 67 #include "llvm/Analysis/ProfileSummaryInfo.h" 68 #include "llvm/IR/Attributes.h" 69 #include "llvm/IR/BasicBlock.h" 70 #include "llvm/IR/CFG.h" 71 #include "llvm/IR/CallSite.h" 72 #include "llvm/IR/Comdat.h" 73 #include "llvm/IR/Constant.h" 74 #include "llvm/IR/Constants.h" 75 #include "llvm/IR/DiagnosticInfo.h" 76 #include "llvm/IR/Dominators.h" 77 #include "llvm/IR/Function.h" 78 #include "llvm/IR/GlobalAlias.h" 79 #include "llvm/IR/GlobalValue.h" 80 #include "llvm/IR/GlobalVariable.h" 81 #include "llvm/IR/IRBuilder.h" 82 #include "llvm/IR/InstVisitor.h" 83 #include "llvm/IR/InstrTypes.h" 84 #include "llvm/IR/Instruction.h" 85 #include "llvm/IR/Instructions.h" 86 #include "llvm/IR/IntrinsicInst.h" 87 #include "llvm/IR/Intrinsics.h" 88 #include "llvm/IR/LLVMContext.h" 89 #include "llvm/IR/MDBuilder.h" 90 #include "llvm/IR/Module.h" 91 #include "llvm/IR/PassManager.h" 92 #include "llvm/IR/ProfileSummary.h" 93 #include "llvm/IR/Type.h" 94 #include "llvm/IR/Value.h" 95 #include "llvm/Pass.h" 96 #include "llvm/ProfileData/InstrProf.h" 97 #include "llvm/ProfileData/InstrProfReader.h" 98 #include "llvm/Support/BranchProbability.h" 99 #include "llvm/Support/Casting.h" 100 #include "llvm/Support/CommandLine.h" 101 #include "llvm/Support/DOTGraphTraits.h" 102 #include "llvm/Support/Debug.h" 103 #include "llvm/Support/Error.h" 104 #include "llvm/Support/ErrorHandling.h" 105 #include "llvm/Support/GraphWriter.h" 106 #include "llvm/Support/JamCRC.h" 107 #include "llvm/Support/raw_ostream.h" 108 #include "llvm/Transforms/Instrumentation.h" 109 #include "llvm/Transforms/Instrumentation/PGOInstrumentation.h" 110 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 111 #include <algorithm> 112 #include <cassert> 113 #include <cstdint> 114 #include <memory> 115 #include <numeric> 116 #include <string> 117 #include <unordered_map> 118 #include <utility> 119 #include <vector> 120 121 using namespace llvm; 122 using ProfileCount = Function::ProfileCount; 123 124 #define DEBUG_TYPE "pgo-instrumentation" 125 126 STATISTIC(NumOfPGOInstrument, "Number of edges instrumented."); 127 STATISTIC(NumOfPGOSelectInsts, "Number of select instruction instrumented."); 128 STATISTIC(NumOfPGOMemIntrinsics, "Number of mem intrinsics instrumented."); 129 STATISTIC(NumOfPGOEdge, "Number of edges."); 130 STATISTIC(NumOfPGOBB, "Number of basic-blocks."); 131 STATISTIC(NumOfPGOSplit, "Number of critical edge splits."); 132 STATISTIC(NumOfPGOFunc, "Number of functions having valid profile counts."); 133 STATISTIC(NumOfPGOMismatch, "Number of functions having mismatch profile."); 134 STATISTIC(NumOfPGOMissing, "Number of functions without profile."); 135 STATISTIC(NumOfPGOICall, "Number of indirect call value instrumentations."); 136 STATISTIC(NumOfCSPGOInstrument, "Number of edges instrumented in CSPGO."); 137 STATISTIC(NumOfCSPGOSelectInsts, 138 "Number of select instruction instrumented in CSPGO."); 139 STATISTIC(NumOfCSPGOMemIntrinsics, 140 "Number of mem intrinsics instrumented in CSPGO."); 141 STATISTIC(NumOfCSPGOEdge, "Number of edges in CSPGO."); 142 STATISTIC(NumOfCSPGOBB, "Number of basic-blocks in CSPGO."); 143 STATISTIC(NumOfCSPGOSplit, "Number of critical edge splits in CSPGO."); 144 STATISTIC(NumOfCSPGOFunc, 145 "Number of functions having valid profile counts in CSPGO."); 146 STATISTIC(NumOfCSPGOMismatch, 147 "Number of functions having mismatch profile in CSPGO."); 148 STATISTIC(NumOfCSPGOMissing, "Number of functions without profile in CSPGO."); 149 150 // Command line option to specify the file to read profile from. This is 151 // mainly used for testing. 152 static cl::opt<std::string> 153 PGOTestProfileFile("pgo-test-profile-file", cl::init(""), cl::Hidden, 154 cl::value_desc("filename"), 155 cl::desc("Specify the path of profile data file. This is" 156 "mainly for test purpose.")); 157 static cl::opt<std::string> PGOTestProfileRemappingFile( 158 "pgo-test-profile-remapping-file", cl::init(""), cl::Hidden, 159 cl::value_desc("filename"), 160 cl::desc("Specify the path of profile remapping file. This is mainly for " 161 "test purpose.")); 162 163 // Command line option to disable value profiling. The default is false: 164 // i.e. value profiling is enabled by default. This is for debug purpose. 165 static cl::opt<bool> DisableValueProfiling("disable-vp", cl::init(false), 166 cl::Hidden, 167 cl::desc("Disable Value Profiling")); 168 169 // Command line option to set the maximum number of VP annotations to write to 170 // the metadata for a single indirect call callsite. 171 static cl::opt<unsigned> MaxNumAnnotations( 172 "icp-max-annotations", cl::init(3), cl::Hidden, cl::ZeroOrMore, 173 cl::desc("Max number of annotations for a single indirect " 174 "call callsite")); 175 176 // Command line option to set the maximum number of value annotations 177 // to write to the metadata for a single memop intrinsic. 178 static cl::opt<unsigned> MaxNumMemOPAnnotations( 179 "memop-max-annotations", cl::init(4), cl::Hidden, cl::ZeroOrMore, 180 cl::desc("Max number of preicise value annotations for a single memop" 181 "intrinsic")); 182 183 // Command line option to control appending FunctionHash to the name of a COMDAT 184 // function. This is to avoid the hash mismatch caused by the preinliner. 185 static cl::opt<bool> DoComdatRenaming( 186 "do-comdat-renaming", cl::init(false), cl::Hidden, 187 cl::desc("Append function hash to the name of COMDAT function to avoid " 188 "function hash mismatch due to the preinliner")); 189 190 // Command line option to enable/disable the warning about missing profile 191 // information. 192 static cl::opt<bool> 193 PGOWarnMissing("pgo-warn-missing-function", cl::init(false), cl::Hidden, 194 cl::desc("Use this option to turn on/off " 195 "warnings about missing profile data for " 196 "functions.")); 197 198 // Command line option to enable/disable the warning about a hash mismatch in 199 // the profile data. 200 static cl::opt<bool> 201 NoPGOWarnMismatch("no-pgo-warn-mismatch", cl::init(false), cl::Hidden, 202 cl::desc("Use this option to turn off/on " 203 "warnings about profile cfg mismatch.")); 204 205 // Command line option to enable/disable the warning about a hash mismatch in 206 // the profile data for Comdat functions, which often turns out to be false 207 // positive due to the pre-instrumentation inline. 208 static cl::opt<bool> 209 NoPGOWarnMismatchComdat("no-pgo-warn-mismatch-comdat", cl::init(true), 210 cl::Hidden, 211 cl::desc("The option is used to turn on/off " 212 "warnings about hash mismatch for comdat " 213 "functions.")); 214 215 // Command line option to enable/disable select instruction instrumentation. 216 static cl::opt<bool> 217 PGOInstrSelect("pgo-instr-select", cl::init(true), cl::Hidden, 218 cl::desc("Use this option to turn on/off SELECT " 219 "instruction instrumentation. ")); 220 221 // Command line option to turn on CFG dot or text dump of raw profile counts 222 static cl::opt<PGOViewCountsType> PGOViewRawCounts( 223 "pgo-view-raw-counts", cl::Hidden, 224 cl::desc("A boolean option to show CFG dag or text " 225 "with raw profile counts from " 226 "profile data. See also option " 227 "-pgo-view-counts. To limit graph " 228 "display to only one function, use " 229 "filtering option -view-bfi-func-name."), 230 cl::values(clEnumValN(PGOVCT_None, "none", "do not show."), 231 clEnumValN(PGOVCT_Graph, "graph", "show a graph."), 232 clEnumValN(PGOVCT_Text, "text", "show in text."))); 233 234 // Command line option to enable/disable memop intrinsic call.size profiling. 235 static cl::opt<bool> 236 PGOInstrMemOP("pgo-instr-memop", cl::init(true), cl::Hidden, 237 cl::desc("Use this option to turn on/off " 238 "memory intrinsic size profiling.")); 239 240 // Emit branch probability as optimization remarks. 241 static cl::opt<bool> 242 EmitBranchProbability("pgo-emit-branch-prob", cl::init(false), cl::Hidden, 243 cl::desc("When this option is on, the annotated " 244 "branch probability will be emitted as " 245 "optimization remarks: -{Rpass|" 246 "pass-remarks}=pgo-instrumentation")); 247 248 // Command line option to turn on CFG dot dump after profile annotation. 249 // Defined in Analysis/BlockFrequencyInfo.cpp: -pgo-view-counts 250 extern cl::opt<PGOViewCountsType> PGOViewCounts; 251 252 // Command line option to specify the name of the function for CFG dump 253 // Defined in Analysis/BlockFrequencyInfo.cpp: -view-bfi-func-name= 254 extern cl::opt<std::string> ViewBlockFreqFuncName; 255 256 // Return a string describing the branch condition that can be 257 // used in static branch probability heuristics: 258 static std::string getBranchCondString(Instruction *TI) { 259 BranchInst *BI = dyn_cast<BranchInst>(TI); 260 if (!BI || !BI->isConditional()) 261 return std::string(); 262 263 Value *Cond = BI->getCondition(); 264 ICmpInst *CI = dyn_cast<ICmpInst>(Cond); 265 if (!CI) 266 return std::string(); 267 268 std::string result; 269 raw_string_ostream OS(result); 270 OS << CmpInst::getPredicateName(CI->getPredicate()) << "_"; 271 CI->getOperand(0)->getType()->print(OS, true); 272 273 Value *RHS = CI->getOperand(1); 274 ConstantInt *CV = dyn_cast<ConstantInt>(RHS); 275 if (CV) { 276 if (CV->isZero()) 277 OS << "_Zero"; 278 else if (CV->isOne()) 279 OS << "_One"; 280 else if (CV->isMinusOne()) 281 OS << "_MinusOne"; 282 else 283 OS << "_Const"; 284 } 285 OS.flush(); 286 return result; 287 } 288 289 namespace { 290 291 /// The select instruction visitor plays three roles specified 292 /// by the mode. In \c VM_counting mode, it simply counts the number of 293 /// select instructions. In \c VM_instrument mode, it inserts code to count 294 /// the number times TrueValue of select is taken. In \c VM_annotate mode, 295 /// it reads the profile data and annotate the select instruction with metadata. 296 enum VisitMode { VM_counting, VM_instrument, VM_annotate }; 297 class PGOUseFunc; 298 299 /// Instruction Visitor class to visit select instructions. 300 struct SelectInstVisitor : public InstVisitor<SelectInstVisitor> { 301 Function &F; 302 unsigned NSIs = 0; // Number of select instructions instrumented. 303 VisitMode Mode = VM_counting; // Visiting mode. 304 unsigned *CurCtrIdx = nullptr; // Pointer to current counter index. 305 unsigned TotalNumCtrs = 0; // Total number of counters 306 GlobalVariable *FuncNameVar = nullptr; 307 uint64_t FuncHash = 0; 308 PGOUseFunc *UseFunc = nullptr; 309 310 SelectInstVisitor(Function &Func) : F(Func) {} 311 312 void countSelects(Function &Func) { 313 NSIs = 0; 314 Mode = VM_counting; 315 visit(Func); 316 } 317 318 // Visit the IR stream and instrument all select instructions. \p 319 // Ind is a pointer to the counter index variable; \p TotalNC 320 // is the total number of counters; \p FNV is the pointer to the 321 // PGO function name var; \p FHash is the function hash. 322 void instrumentSelects(Function &Func, unsigned *Ind, unsigned TotalNC, 323 GlobalVariable *FNV, uint64_t FHash) { 324 Mode = VM_instrument; 325 CurCtrIdx = Ind; 326 TotalNumCtrs = TotalNC; 327 FuncHash = FHash; 328 FuncNameVar = FNV; 329 visit(Func); 330 } 331 332 // Visit the IR stream and annotate all select instructions. 333 void annotateSelects(Function &Func, PGOUseFunc *UF, unsigned *Ind) { 334 Mode = VM_annotate; 335 UseFunc = UF; 336 CurCtrIdx = Ind; 337 visit(Func); 338 } 339 340 void instrumentOneSelectInst(SelectInst &SI); 341 void annotateOneSelectInst(SelectInst &SI); 342 343 // Visit \p SI instruction and perform tasks according to visit mode. 344 void visitSelectInst(SelectInst &SI); 345 346 // Return the number of select instructions. This needs be called after 347 // countSelects(). 348 unsigned getNumOfSelectInsts() const { return NSIs; } 349 }; 350 351 /// Instruction Visitor class to visit memory intrinsic calls. 352 struct MemIntrinsicVisitor : public InstVisitor<MemIntrinsicVisitor> { 353 Function &F; 354 unsigned NMemIs = 0; // Number of memIntrinsics instrumented. 355 VisitMode Mode = VM_counting; // Visiting mode. 356 unsigned CurCtrId = 0; // Current counter index. 357 unsigned TotalNumCtrs = 0; // Total number of counters 358 GlobalVariable *FuncNameVar = nullptr; 359 uint64_t FuncHash = 0; 360 PGOUseFunc *UseFunc = nullptr; 361 std::vector<Instruction *> Candidates; 362 363 MemIntrinsicVisitor(Function &Func) : F(Func) {} 364 365 void countMemIntrinsics(Function &Func) { 366 NMemIs = 0; 367 Mode = VM_counting; 368 visit(Func); 369 } 370 371 void instrumentMemIntrinsics(Function &Func, unsigned TotalNC, 372 GlobalVariable *FNV, uint64_t FHash) { 373 Mode = VM_instrument; 374 TotalNumCtrs = TotalNC; 375 FuncHash = FHash; 376 FuncNameVar = FNV; 377 visit(Func); 378 } 379 380 std::vector<Instruction *> findMemIntrinsics(Function &Func) { 381 Candidates.clear(); 382 Mode = VM_annotate; 383 visit(Func); 384 return Candidates; 385 } 386 387 // Visit the IR stream and annotate all mem intrinsic call instructions. 388 void instrumentOneMemIntrinsic(MemIntrinsic &MI); 389 390 // Visit \p MI instruction and perform tasks according to visit mode. 391 void visitMemIntrinsic(MemIntrinsic &SI); 392 393 unsigned getNumOfMemIntrinsics() const { return NMemIs; } 394 }; 395 396 class PGOInstrumentationGenLegacyPass : public ModulePass { 397 public: 398 static char ID; 399 400 PGOInstrumentationGenLegacyPass(bool IsCS = false) 401 : ModulePass(ID), IsCS(IsCS) { 402 initializePGOInstrumentationGenLegacyPassPass( 403 *PassRegistry::getPassRegistry()); 404 } 405 406 StringRef getPassName() const override { return "PGOInstrumentationGenPass"; } 407 408 private: 409 // Is this is context-sensitive instrumentation. 410 bool IsCS; 411 bool runOnModule(Module &M) override; 412 413 void getAnalysisUsage(AnalysisUsage &AU) const override { 414 AU.addRequired<BlockFrequencyInfoWrapperPass>(); 415 } 416 }; 417 418 class PGOInstrumentationUseLegacyPass : public ModulePass { 419 public: 420 static char ID; 421 422 // Provide the profile filename as the parameter. 423 PGOInstrumentationUseLegacyPass(std::string Filename = "", bool IsCS = false) 424 : ModulePass(ID), ProfileFileName(std::move(Filename)), IsCS(IsCS) { 425 if (!PGOTestProfileFile.empty()) 426 ProfileFileName = PGOTestProfileFile; 427 initializePGOInstrumentationUseLegacyPassPass( 428 *PassRegistry::getPassRegistry()); 429 } 430 431 StringRef getPassName() const override { return "PGOInstrumentationUsePass"; } 432 433 private: 434 std::string ProfileFileName; 435 // Is this is context-sensitive instrumentation use. 436 bool IsCS; 437 438 bool runOnModule(Module &M) override; 439 440 void getAnalysisUsage(AnalysisUsage &AU) const override { 441 AU.addRequired<ProfileSummaryInfoWrapperPass>(); 442 AU.addRequired<BlockFrequencyInfoWrapperPass>(); 443 } 444 }; 445 446 class PGOInstrumentationGenCreateVarLegacyPass : public ModulePass { 447 public: 448 static char ID; 449 StringRef getPassName() const override { 450 return "PGOInstrumentationGenCreateVarPass"; 451 } 452 PGOInstrumentationGenCreateVarLegacyPass(std::string CSInstrName = "") 453 : ModulePass(ID), InstrProfileOutput(CSInstrName) { 454 initializePGOInstrumentationGenCreateVarLegacyPassPass( 455 *PassRegistry::getPassRegistry()); 456 } 457 458 private: 459 bool runOnModule(Module &M) override { 460 createProfileFileNameVar(M, InstrProfileOutput); 461 createIRLevelProfileFlagVar(M, true); 462 return false; 463 } 464 std::string InstrProfileOutput; 465 }; 466 467 } // end anonymous namespace 468 469 char PGOInstrumentationGenLegacyPass::ID = 0; 470 471 INITIALIZE_PASS_BEGIN(PGOInstrumentationGenLegacyPass, "pgo-instr-gen", 472 "PGO instrumentation.", false, false) 473 INITIALIZE_PASS_DEPENDENCY(BlockFrequencyInfoWrapperPass) 474 INITIALIZE_PASS_DEPENDENCY(BranchProbabilityInfoWrapperPass) 475 INITIALIZE_PASS_END(PGOInstrumentationGenLegacyPass, "pgo-instr-gen", 476 "PGO instrumentation.", false, false) 477 478 ModulePass *llvm::createPGOInstrumentationGenLegacyPass(bool IsCS) { 479 return new PGOInstrumentationGenLegacyPass(IsCS); 480 } 481 482 char PGOInstrumentationUseLegacyPass::ID = 0; 483 484 INITIALIZE_PASS_BEGIN(PGOInstrumentationUseLegacyPass, "pgo-instr-use", 485 "Read PGO instrumentation profile.", false, false) 486 INITIALIZE_PASS_DEPENDENCY(BlockFrequencyInfoWrapperPass) 487 INITIALIZE_PASS_DEPENDENCY(BranchProbabilityInfoWrapperPass) 488 INITIALIZE_PASS_DEPENDENCY(ProfileSummaryInfoWrapperPass) 489 INITIALIZE_PASS_END(PGOInstrumentationUseLegacyPass, "pgo-instr-use", 490 "Read PGO instrumentation profile.", false, false) 491 492 ModulePass *llvm::createPGOInstrumentationUseLegacyPass(StringRef Filename, 493 bool IsCS) { 494 return new PGOInstrumentationUseLegacyPass(Filename.str(), IsCS); 495 } 496 497 char PGOInstrumentationGenCreateVarLegacyPass::ID = 0; 498 499 INITIALIZE_PASS(PGOInstrumentationGenCreateVarLegacyPass, 500 "pgo-instr-gen-create-var", 501 "Create PGO instrumentation version variable for CSPGO.", false, 502 false) 503 504 ModulePass * 505 llvm::createPGOInstrumentationGenCreateVarLegacyPass(StringRef CSInstrName) { 506 return new PGOInstrumentationGenCreateVarLegacyPass(CSInstrName); 507 } 508 509 namespace { 510 511 /// An MST based instrumentation for PGO 512 /// 513 /// Implements a Minimum Spanning Tree (MST) based instrumentation for PGO 514 /// in the function level. 515 struct PGOEdge { 516 // This class implements the CFG edges. Note the CFG can be a multi-graph. 517 // So there might be multiple edges with same SrcBB and DestBB. 518 const BasicBlock *SrcBB; 519 const BasicBlock *DestBB; 520 uint64_t Weight; 521 bool InMST = false; 522 bool Removed = false; 523 bool IsCritical = false; 524 525 PGOEdge(const BasicBlock *Src, const BasicBlock *Dest, uint64_t W = 1) 526 : SrcBB(Src), DestBB(Dest), Weight(W) {} 527 528 // Return the information string of an edge. 529 const std::string infoString() const { 530 return (Twine(Removed ? "-" : " ") + (InMST ? " " : "*") + 531 (IsCritical ? "c" : " ") + " W=" + Twine(Weight)).str(); 532 } 533 }; 534 535 // This class stores the auxiliary information for each BB. 536 struct BBInfo { 537 BBInfo *Group; 538 uint32_t Index; 539 uint32_t Rank = 0; 540 541 BBInfo(unsigned IX) : Group(this), Index(IX) {} 542 543 // Return the information string of this object. 544 const std::string infoString() const { 545 return (Twine("Index=") + Twine(Index)).str(); 546 } 547 }; 548 549 // This class implements the CFG edges. Note the CFG can be a multi-graph. 550 template <class Edge, class BBInfo> class FuncPGOInstrumentation { 551 private: 552 Function &F; 553 554 // Is this is context-sensitive instrumentation. 555 bool IsCS; 556 557 // A map that stores the Comdat group in function F. 558 std::unordered_multimap<Comdat *, GlobalValue *> &ComdatMembers; 559 560 void computeCFGHash(); 561 void renameComdatFunction(); 562 563 public: 564 std::vector<std::vector<Instruction *>> ValueSites; 565 SelectInstVisitor SIVisitor; 566 MemIntrinsicVisitor MIVisitor; 567 std::string FuncName; 568 GlobalVariable *FuncNameVar; 569 570 // CFG hash value for this function. 571 uint64_t FunctionHash = 0; 572 573 // The Minimum Spanning Tree of function CFG. 574 CFGMST<Edge, BBInfo> MST; 575 576 // Give an edge, find the BB that will be instrumented. 577 // Return nullptr if there is no BB to be instrumented. 578 BasicBlock *getInstrBB(Edge *E); 579 580 // Return the auxiliary BB information. 581 BBInfo &getBBInfo(const BasicBlock *BB) const { return MST.getBBInfo(BB); } 582 583 // Return the auxiliary BB information if available. 584 BBInfo *findBBInfo(const BasicBlock *BB) const { return MST.findBBInfo(BB); } 585 586 // Dump edges and BB information. 587 void dumpInfo(std::string Str = "") const { 588 MST.dumpEdges(dbgs(), Twine("Dump Function ") + FuncName + " Hash: " + 589 Twine(FunctionHash) + "\t" + Str); 590 } 591 592 FuncPGOInstrumentation( 593 Function &Func, 594 std::unordered_multimap<Comdat *, GlobalValue *> &ComdatMembers, 595 bool CreateGlobalVar = false, BranchProbabilityInfo *BPI = nullptr, 596 BlockFrequencyInfo *BFI = nullptr, bool IsCS = false) 597 : F(Func), IsCS(IsCS), ComdatMembers(ComdatMembers), 598 ValueSites(IPVK_Last + 1), SIVisitor(Func), MIVisitor(Func), 599 MST(F, BPI, BFI) { 600 // This should be done before CFG hash computation. 601 SIVisitor.countSelects(Func); 602 MIVisitor.countMemIntrinsics(Func); 603 if (!IsCS) { 604 NumOfPGOSelectInsts += SIVisitor.getNumOfSelectInsts(); 605 NumOfPGOMemIntrinsics += MIVisitor.getNumOfMemIntrinsics(); 606 NumOfPGOBB += MST.BBInfos.size(); 607 ValueSites[IPVK_IndirectCallTarget] = findIndirectCalls(Func); 608 } else { 609 NumOfCSPGOSelectInsts += SIVisitor.getNumOfSelectInsts(); 610 NumOfCSPGOMemIntrinsics += MIVisitor.getNumOfMemIntrinsics(); 611 NumOfCSPGOBB += MST.BBInfos.size(); 612 } 613 ValueSites[IPVK_MemOPSize] = MIVisitor.findMemIntrinsics(Func); 614 615 FuncName = getPGOFuncName(F); 616 computeCFGHash(); 617 if (!ComdatMembers.empty()) 618 renameComdatFunction(); 619 LLVM_DEBUG(dumpInfo("after CFGMST")); 620 621 for (auto &E : MST.AllEdges) { 622 if (E->Removed) 623 continue; 624 IsCS ? NumOfCSPGOEdge++ : NumOfPGOEdge++; 625 if (!E->InMST) 626 IsCS ? NumOfCSPGOInstrument++ : NumOfPGOInstrument++; 627 } 628 629 if (CreateGlobalVar) 630 FuncNameVar = createPGOFuncNameVar(F, FuncName); 631 } 632 633 // Return the number of profile counters needed for the function. 634 unsigned getNumCounters() { 635 unsigned NumCounters = 0; 636 for (auto &E : this->MST.AllEdges) { 637 if (!E->InMST && !E->Removed) 638 NumCounters++; 639 } 640 return NumCounters + SIVisitor.getNumOfSelectInsts(); 641 } 642 }; 643 644 } // end anonymous namespace 645 646 // Compute Hash value for the CFG: the lower 32 bits are CRC32 of the index 647 // value of each BB in the CFG. The higher 32 bits record the number of edges. 648 template <class Edge, class BBInfo> 649 void FuncPGOInstrumentation<Edge, BBInfo>::computeCFGHash() { 650 std::vector<char> Indexes; 651 JamCRC JC; 652 for (auto &BB : F) { 653 const Instruction *TI = BB.getTerminator(); 654 for (unsigned I = 0, E = TI->getNumSuccessors(); I != E; ++I) { 655 BasicBlock *Succ = TI->getSuccessor(I); 656 auto BI = findBBInfo(Succ); 657 if (BI == nullptr) 658 continue; 659 uint32_t Index = BI->Index; 660 for (int J = 0; J < 4; J++) 661 Indexes.push_back((char)(Index >> (J * 8))); 662 } 663 } 664 JC.update(Indexes); 665 666 // Hash format for context sensitive profile. Reserve 4 bits for other 667 // information. 668 FunctionHash = (uint64_t)SIVisitor.getNumOfSelectInsts() << 56 | 669 (uint64_t)ValueSites[IPVK_IndirectCallTarget].size() << 48 | 670 //(uint64_t)ValueSites[IPVK_MemOPSize].size() << 40 | 671 (uint64_t)MST.AllEdges.size() << 32 | JC.getCRC(); 672 // Reserve bit 60-63 for other information purpose. 673 FunctionHash &= 0x0FFFFFFFFFFFFFFF; 674 if (IsCS) 675 NamedInstrProfRecord::setCSFlagInHash(FunctionHash); 676 LLVM_DEBUG(dbgs() << "Function Hash Computation for " << F.getName() << ":\n" 677 << " CRC = " << JC.getCRC() 678 << ", Selects = " << SIVisitor.getNumOfSelectInsts() 679 << ", Edges = " << MST.AllEdges.size() << ", ICSites = " 680 << ValueSites[IPVK_IndirectCallTarget].size() 681 << ", Hash = " << FunctionHash << "\n";); 682 } 683 684 // Check if we can safely rename this Comdat function. 685 static bool canRenameComdat( 686 Function &F, 687 std::unordered_multimap<Comdat *, GlobalValue *> &ComdatMembers) { 688 if (!DoComdatRenaming || !canRenameComdatFunc(F, true)) 689 return false; 690 691 // FIXME: Current only handle those Comdat groups that only containing one 692 // function and function aliases. 693 // (1) For a Comdat group containing multiple functions, we need to have a 694 // unique postfix based on the hashes for each function. There is a 695 // non-trivial code refactoring to do this efficiently. 696 // (2) Variables can not be renamed, so we can not rename Comdat function in a 697 // group including global vars. 698 Comdat *C = F.getComdat(); 699 for (auto &&CM : make_range(ComdatMembers.equal_range(C))) { 700 if (dyn_cast<GlobalAlias>(CM.second)) 701 continue; 702 Function *FM = dyn_cast<Function>(CM.second); 703 if (FM != &F) 704 return false; 705 } 706 return true; 707 } 708 709 // Append the CFGHash to the Comdat function name. 710 template <class Edge, class BBInfo> 711 void FuncPGOInstrumentation<Edge, BBInfo>::renameComdatFunction() { 712 if (!canRenameComdat(F, ComdatMembers)) 713 return; 714 std::string OrigName = F.getName().str(); 715 std::string NewFuncName = 716 Twine(F.getName() + "." + Twine(FunctionHash)).str(); 717 F.setName(Twine(NewFuncName)); 718 GlobalAlias::create(GlobalValue::WeakAnyLinkage, OrigName, &F); 719 FuncName = Twine(FuncName + "." + Twine(FunctionHash)).str(); 720 Comdat *NewComdat; 721 Module *M = F.getParent(); 722 // For AvailableExternallyLinkage functions, change the linkage to 723 // LinkOnceODR and put them into comdat. This is because after renaming, there 724 // is no backup external copy available for the function. 725 if (!F.hasComdat()) { 726 assert(F.getLinkage() == GlobalValue::AvailableExternallyLinkage); 727 NewComdat = M->getOrInsertComdat(StringRef(NewFuncName)); 728 F.setLinkage(GlobalValue::LinkOnceODRLinkage); 729 F.setComdat(NewComdat); 730 return; 731 } 732 733 // This function belongs to a single function Comdat group. 734 Comdat *OrigComdat = F.getComdat(); 735 std::string NewComdatName = 736 Twine(OrigComdat->getName() + "." + Twine(FunctionHash)).str(); 737 NewComdat = M->getOrInsertComdat(StringRef(NewComdatName)); 738 NewComdat->setSelectionKind(OrigComdat->getSelectionKind()); 739 740 for (auto &&CM : make_range(ComdatMembers.equal_range(OrigComdat))) { 741 if (GlobalAlias *GA = dyn_cast<GlobalAlias>(CM.second)) { 742 // For aliases, change the name directly. 743 assert(dyn_cast<Function>(GA->getAliasee()->stripPointerCasts()) == &F); 744 std::string OrigGAName = GA->getName().str(); 745 GA->setName(Twine(GA->getName() + "." + Twine(FunctionHash))); 746 GlobalAlias::create(GlobalValue::WeakAnyLinkage, OrigGAName, GA); 747 continue; 748 } 749 // Must be a function. 750 Function *CF = dyn_cast<Function>(CM.second); 751 assert(CF); 752 CF->setComdat(NewComdat); 753 } 754 } 755 756 // Given a CFG E to be instrumented, find which BB to place the instrumented 757 // code. The function will split the critical edge if necessary. 758 template <class Edge, class BBInfo> 759 BasicBlock *FuncPGOInstrumentation<Edge, BBInfo>::getInstrBB(Edge *E) { 760 if (E->InMST || E->Removed) 761 return nullptr; 762 763 BasicBlock *SrcBB = const_cast<BasicBlock *>(E->SrcBB); 764 BasicBlock *DestBB = const_cast<BasicBlock *>(E->DestBB); 765 // For a fake edge, instrument the real BB. 766 if (SrcBB == nullptr) 767 return DestBB; 768 if (DestBB == nullptr) 769 return SrcBB; 770 771 // Instrument the SrcBB if it has a single successor, 772 // otherwise, the DestBB if this is not a critical edge. 773 Instruction *TI = SrcBB->getTerminator(); 774 if (TI->getNumSuccessors() <= 1) 775 return SrcBB; 776 if (!E->IsCritical) 777 return DestBB; 778 779 // For a critical edge, we have to split. Instrument the newly 780 // created BB. 781 IsCS ? NumOfCSPGOSplit++ : NumOfPGOSplit++; 782 LLVM_DEBUG(dbgs() << "Split critical edge: " << getBBInfo(SrcBB).Index 783 << " --> " << getBBInfo(DestBB).Index << "\n"); 784 unsigned SuccNum = GetSuccessorNumber(SrcBB, DestBB); 785 BasicBlock *InstrBB = SplitCriticalEdge(TI, SuccNum); 786 assert(InstrBB && "Critical edge is not split"); 787 788 E->Removed = true; 789 return InstrBB; 790 } 791 792 // Visit all edge and instrument the edges not in MST, and do value profiling. 793 // Critical edges will be split. 794 static void instrumentOneFunc( 795 Function &F, Module *M, BranchProbabilityInfo *BPI, BlockFrequencyInfo *BFI, 796 std::unordered_multimap<Comdat *, GlobalValue *> &ComdatMembers, 797 bool IsCS) { 798 // Split indirectbr critical edges here before computing the MST rather than 799 // later in getInstrBB() to avoid invalidating it. 800 SplitIndirectBrCriticalEdges(F, BPI, BFI); 801 802 FuncPGOInstrumentation<PGOEdge, BBInfo> FuncInfo(F, ComdatMembers, true, BPI, 803 BFI, IsCS); 804 unsigned NumCounters = FuncInfo.getNumCounters(); 805 806 uint32_t I = 0; 807 Type *I8PtrTy = Type::getInt8PtrTy(M->getContext()); 808 for (auto &E : FuncInfo.MST.AllEdges) { 809 BasicBlock *InstrBB = FuncInfo.getInstrBB(E.get()); 810 if (!InstrBB) 811 continue; 812 813 IRBuilder<> Builder(InstrBB, InstrBB->getFirstInsertionPt()); 814 assert(Builder.GetInsertPoint() != InstrBB->end() && 815 "Cannot get the Instrumentation point"); 816 Builder.CreateCall( 817 Intrinsic::getDeclaration(M, Intrinsic::instrprof_increment), 818 {ConstantExpr::getBitCast(FuncInfo.FuncNameVar, I8PtrTy), 819 Builder.getInt64(FuncInfo.FunctionHash), Builder.getInt32(NumCounters), 820 Builder.getInt32(I++)}); 821 } 822 823 // Now instrument select instructions: 824 FuncInfo.SIVisitor.instrumentSelects(F, &I, NumCounters, FuncInfo.FuncNameVar, 825 FuncInfo.FunctionHash); 826 assert(I == NumCounters); 827 828 if (DisableValueProfiling) 829 return; 830 831 unsigned NumIndirectCalls = 0; 832 for (auto &I : FuncInfo.ValueSites[IPVK_IndirectCallTarget]) { 833 CallSite CS(I); 834 Value *Callee = CS.getCalledValue(); 835 LLVM_DEBUG(dbgs() << "Instrument one indirect call: CallSite Index = " 836 << NumIndirectCalls << "\n"); 837 IRBuilder<> Builder(I); 838 assert(Builder.GetInsertPoint() != I->getParent()->end() && 839 "Cannot get the Instrumentation point"); 840 Builder.CreateCall( 841 Intrinsic::getDeclaration(M, Intrinsic::instrprof_value_profile), 842 {ConstantExpr::getBitCast(FuncInfo.FuncNameVar, I8PtrTy), 843 Builder.getInt64(FuncInfo.FunctionHash), 844 Builder.CreatePtrToInt(Callee, Builder.getInt64Ty()), 845 Builder.getInt32(IPVK_IndirectCallTarget), 846 Builder.getInt32(NumIndirectCalls++)}); 847 } 848 NumOfPGOICall += NumIndirectCalls; 849 850 // Now instrument memop intrinsic calls. 851 FuncInfo.MIVisitor.instrumentMemIntrinsics( 852 F, NumCounters, FuncInfo.FuncNameVar, FuncInfo.FunctionHash); 853 } 854 855 namespace { 856 857 // This class represents a CFG edge in profile use compilation. 858 struct PGOUseEdge : public PGOEdge { 859 bool CountValid = false; 860 uint64_t CountValue = 0; 861 862 PGOUseEdge(const BasicBlock *Src, const BasicBlock *Dest, uint64_t W = 1) 863 : PGOEdge(Src, Dest, W) {} 864 865 // Set edge count value 866 void setEdgeCount(uint64_t Value) { 867 CountValue = Value; 868 CountValid = true; 869 } 870 871 // Return the information string for this object. 872 const std::string infoString() const { 873 if (!CountValid) 874 return PGOEdge::infoString(); 875 return (Twine(PGOEdge::infoString()) + " Count=" + Twine(CountValue)) 876 .str(); 877 } 878 }; 879 880 using DirectEdges = SmallVector<PGOUseEdge *, 2>; 881 882 // This class stores the auxiliary information for each BB. 883 struct UseBBInfo : public BBInfo { 884 uint64_t CountValue = 0; 885 bool CountValid; 886 int32_t UnknownCountInEdge = 0; 887 int32_t UnknownCountOutEdge = 0; 888 DirectEdges InEdges; 889 DirectEdges OutEdges; 890 891 UseBBInfo(unsigned IX) : BBInfo(IX), CountValid(false) {} 892 893 UseBBInfo(unsigned IX, uint64_t C) 894 : BBInfo(IX), CountValue(C), CountValid(true) {} 895 896 // Set the profile count value for this BB. 897 void setBBInfoCount(uint64_t Value) { 898 CountValue = Value; 899 CountValid = true; 900 } 901 902 // Return the information string of this object. 903 const std::string infoString() const { 904 if (!CountValid) 905 return BBInfo::infoString(); 906 return (Twine(BBInfo::infoString()) + " Count=" + Twine(CountValue)).str(); 907 } 908 }; 909 910 } // end anonymous namespace 911 912 // Sum up the count values for all the edges. 913 static uint64_t sumEdgeCount(const ArrayRef<PGOUseEdge *> Edges) { 914 uint64_t Total = 0; 915 for (auto &E : Edges) { 916 if (E->Removed) 917 continue; 918 Total += E->CountValue; 919 } 920 return Total; 921 } 922 923 namespace { 924 925 class PGOUseFunc { 926 public: 927 PGOUseFunc(Function &Func, Module *Modu, 928 std::unordered_multimap<Comdat *, GlobalValue *> &ComdatMembers, 929 BranchProbabilityInfo *BPI = nullptr, 930 BlockFrequencyInfo *BFIin = nullptr, bool IsCS = false) 931 : F(Func), M(Modu), BFI(BFIin), 932 FuncInfo(Func, ComdatMembers, false, BPI, BFIin, IsCS), 933 FreqAttr(FFA_Normal), IsCS(IsCS) {} 934 935 // Read counts for the instrumented BB from profile. 936 bool readCounters(IndexedInstrProfReader *PGOReader, bool &AllZeros); 937 938 // Populate the counts for all BBs. 939 void populateCounters(); 940 941 // Set the branch weights based on the count values. 942 void setBranchWeights(); 943 944 // Annotate the value profile call sites for all value kind. 945 void annotateValueSites(); 946 947 // Annotate the value profile call sites for one value kind. 948 void annotateValueSites(uint32_t Kind); 949 950 // Annotate the irreducible loop header weights. 951 void annotateIrrLoopHeaderWeights(); 952 953 // The hotness of the function from the profile count. 954 enum FuncFreqAttr { FFA_Normal, FFA_Cold, FFA_Hot }; 955 956 // Return the function hotness from the profile. 957 FuncFreqAttr getFuncFreqAttr() const { return FreqAttr; } 958 959 // Return the function hash. 960 uint64_t getFuncHash() const { return FuncInfo.FunctionHash; } 961 962 // Return the profile record for this function; 963 InstrProfRecord &getProfileRecord() { return ProfileRecord; } 964 965 // Return the auxiliary BB information. 966 UseBBInfo &getBBInfo(const BasicBlock *BB) const { 967 return FuncInfo.getBBInfo(BB); 968 } 969 970 // Return the auxiliary BB information if available. 971 UseBBInfo *findBBInfo(const BasicBlock *BB) const { 972 return FuncInfo.findBBInfo(BB); 973 } 974 975 Function &getFunc() const { return F; } 976 977 void dumpInfo(std::string Str = "") const { 978 FuncInfo.dumpInfo(Str); 979 } 980 981 uint64_t getProgramMaxCount() const { return ProgramMaxCount; } 982 private: 983 Function &F; 984 Module *M; 985 BlockFrequencyInfo *BFI; 986 987 // This member stores the shared information with class PGOGenFunc. 988 FuncPGOInstrumentation<PGOUseEdge, UseBBInfo> FuncInfo; 989 990 // The maximum count value in the profile. This is only used in PGO use 991 // compilation. 992 uint64_t ProgramMaxCount; 993 994 // Position of counter that remains to be read. 995 uint32_t CountPosition = 0; 996 997 // Total size of the profile count for this function. 998 uint32_t ProfileCountSize = 0; 999 1000 // ProfileRecord for this function. 1001 InstrProfRecord ProfileRecord; 1002 1003 // Function hotness info derived from profile. 1004 FuncFreqAttr FreqAttr; 1005 1006 // Is to use the context sensitive profile. 1007 bool IsCS; 1008 1009 // Find the Instrumented BB and set the value. Return false on error. 1010 bool setInstrumentedCounts(const std::vector<uint64_t> &CountFromProfile); 1011 1012 // Set the edge counter value for the unknown edge -- there should be only 1013 // one unknown edge. 1014 void setEdgeCount(DirectEdges &Edges, uint64_t Value); 1015 1016 // Return FuncName string; 1017 const std::string getFuncName() const { return FuncInfo.FuncName; } 1018 1019 // Set the hot/cold inline hints based on the count values. 1020 // FIXME: This function should be removed once the functionality in 1021 // the inliner is implemented. 1022 void markFunctionAttributes(uint64_t EntryCount, uint64_t MaxCount) { 1023 if (ProgramMaxCount == 0) 1024 return; 1025 // Threshold of the hot functions. 1026 const BranchProbability HotFunctionThreshold(1, 100); 1027 // Threshold of the cold functions. 1028 const BranchProbability ColdFunctionThreshold(2, 10000); 1029 if (EntryCount >= HotFunctionThreshold.scale(ProgramMaxCount)) 1030 FreqAttr = FFA_Hot; 1031 else if (MaxCount <= ColdFunctionThreshold.scale(ProgramMaxCount)) 1032 FreqAttr = FFA_Cold; 1033 } 1034 }; 1035 1036 } // end anonymous namespace 1037 1038 // Visit all the edges and assign the count value for the instrumented 1039 // edges and the BB. Return false on error. 1040 bool PGOUseFunc::setInstrumentedCounts( 1041 const std::vector<uint64_t> &CountFromProfile) { 1042 // The number of counters here should match the number of counters 1043 // in profile. Return if they mismatch. 1044 if (FuncInfo.getNumCounters() != CountFromProfile.size()) { 1045 return false; 1046 } 1047 // Use a worklist as we will update the vector during the iteration. 1048 std::vector<PGOUseEdge *> WorkList; 1049 for (auto &E : FuncInfo.MST.AllEdges) 1050 WorkList.push_back(E.get()); 1051 1052 uint32_t I = 0; 1053 for (auto &E : WorkList) { 1054 BasicBlock *InstrBB = FuncInfo.getInstrBB(E); 1055 if (!InstrBB) 1056 continue; 1057 uint64_t CountValue = CountFromProfile[I++]; 1058 if (!E->Removed) { 1059 getBBInfo(InstrBB).setBBInfoCount(CountValue); 1060 E->setEdgeCount(CountValue); 1061 continue; 1062 } 1063 1064 // Need to add two new edges. 1065 BasicBlock *SrcBB = const_cast<BasicBlock *>(E->SrcBB); 1066 BasicBlock *DestBB = const_cast<BasicBlock *>(E->DestBB); 1067 // Add new edge of SrcBB->InstrBB. 1068 PGOUseEdge &NewEdge = FuncInfo.MST.addEdge(SrcBB, InstrBB, 0); 1069 NewEdge.setEdgeCount(CountValue); 1070 // Add new edge of InstrBB->DestBB. 1071 PGOUseEdge &NewEdge1 = FuncInfo.MST.addEdge(InstrBB, DestBB, 0); 1072 NewEdge1.setEdgeCount(CountValue); 1073 NewEdge1.InMST = true; 1074 getBBInfo(InstrBB).setBBInfoCount(CountValue); 1075 } 1076 ProfileCountSize = CountFromProfile.size(); 1077 CountPosition = I; 1078 return true; 1079 } 1080 1081 // Set the count value for the unknown edge. There should be one and only one 1082 // unknown edge in Edges vector. 1083 void PGOUseFunc::setEdgeCount(DirectEdges &Edges, uint64_t Value) { 1084 for (auto &E : Edges) { 1085 if (E->CountValid) 1086 continue; 1087 E->setEdgeCount(Value); 1088 1089 getBBInfo(E->SrcBB).UnknownCountOutEdge--; 1090 getBBInfo(E->DestBB).UnknownCountInEdge--; 1091 return; 1092 } 1093 llvm_unreachable("Cannot find the unknown count edge"); 1094 } 1095 1096 // Read the profile from ProfileFileName and assign the value to the 1097 // instrumented BB and the edges. This function also updates ProgramMaxCount. 1098 // Return true if the profile are successfully read, and false on errors. 1099 bool PGOUseFunc::readCounters(IndexedInstrProfReader *PGOReader, bool &AllZeros) { 1100 auto &Ctx = M->getContext(); 1101 Expected<InstrProfRecord> Result = 1102 PGOReader->getInstrProfRecord(FuncInfo.FuncName, FuncInfo.FunctionHash); 1103 if (Error E = Result.takeError()) { 1104 handleAllErrors(std::move(E), [&](const InstrProfError &IPE) { 1105 auto Err = IPE.get(); 1106 bool SkipWarning = false; 1107 LLVM_DEBUG(dbgs() << "Error in reading profile for Func " 1108 << FuncInfo.FuncName << ": "); 1109 if (Err == instrprof_error::unknown_function) { 1110 IsCS ? NumOfCSPGOMissing++ : NumOfPGOMissing++; 1111 SkipWarning = !PGOWarnMissing; 1112 LLVM_DEBUG(dbgs() << "unknown function"); 1113 } else if (Err == instrprof_error::hash_mismatch || 1114 Err == instrprof_error::malformed) { 1115 IsCS ? NumOfCSPGOMismatch++ : NumOfPGOMismatch++; 1116 SkipWarning = 1117 NoPGOWarnMismatch || 1118 (NoPGOWarnMismatchComdat && 1119 (F.hasComdat() || 1120 F.getLinkage() == GlobalValue::AvailableExternallyLinkage)); 1121 LLVM_DEBUG(dbgs() << "hash mismatch (skip=" << SkipWarning << ")"); 1122 } 1123 1124 LLVM_DEBUG(dbgs() << " IsCS=" << IsCS << "\n"); 1125 if (SkipWarning) 1126 return; 1127 1128 std::string Msg = IPE.message() + std::string(" ") + F.getName().str() + 1129 std::string(" Hash = ") + 1130 std::to_string(FuncInfo.FunctionHash); 1131 1132 Ctx.diagnose( 1133 DiagnosticInfoPGOProfile(M->getName().data(), Msg, DS_Warning)); 1134 }); 1135 return false; 1136 } 1137 ProfileRecord = std::move(Result.get()); 1138 std::vector<uint64_t> &CountFromProfile = ProfileRecord.Counts; 1139 1140 IsCS ? NumOfCSPGOFunc++ : NumOfPGOFunc++; 1141 LLVM_DEBUG(dbgs() << CountFromProfile.size() << " counts\n"); 1142 uint64_t ValueSum = 0; 1143 for (unsigned I = 0, S = CountFromProfile.size(); I < S; I++) { 1144 LLVM_DEBUG(dbgs() << " " << I << ": " << CountFromProfile[I] << "\n"); 1145 ValueSum += CountFromProfile[I]; 1146 } 1147 AllZeros = (ValueSum == 0); 1148 1149 LLVM_DEBUG(dbgs() << "SUM = " << ValueSum << "\n"); 1150 1151 getBBInfo(nullptr).UnknownCountOutEdge = 2; 1152 getBBInfo(nullptr).UnknownCountInEdge = 2; 1153 1154 if (!setInstrumentedCounts(CountFromProfile)) { 1155 LLVM_DEBUG( 1156 dbgs() << "Inconsistent number of counts, skipping this function"); 1157 Ctx.diagnose(DiagnosticInfoPGOProfile( 1158 M->getName().data(), 1159 Twine("Inconsistent number of counts in ") + F.getName().str() 1160 + Twine(": the profile may be stale or there is a function name collision."), 1161 DS_Warning)); 1162 return false; 1163 } 1164 ProgramMaxCount = PGOReader->getMaximumFunctionCount(IsCS); 1165 return true; 1166 } 1167 1168 // Populate the counters from instrumented BBs to all BBs. 1169 // In the end of this operation, all BBs should have a valid count value. 1170 void PGOUseFunc::populateCounters() { 1171 // First set up Count variable for all BBs. 1172 for (auto &E : FuncInfo.MST.AllEdges) { 1173 if (E->Removed) 1174 continue; 1175 1176 const BasicBlock *SrcBB = E->SrcBB; 1177 const BasicBlock *DestBB = E->DestBB; 1178 UseBBInfo &SrcInfo = getBBInfo(SrcBB); 1179 UseBBInfo &DestInfo = getBBInfo(DestBB); 1180 SrcInfo.OutEdges.push_back(E.get()); 1181 DestInfo.InEdges.push_back(E.get()); 1182 SrcInfo.UnknownCountOutEdge++; 1183 DestInfo.UnknownCountInEdge++; 1184 1185 if (!E->CountValid) 1186 continue; 1187 DestInfo.UnknownCountInEdge--; 1188 SrcInfo.UnknownCountOutEdge--; 1189 } 1190 1191 bool Changes = true; 1192 unsigned NumPasses = 0; 1193 while (Changes) { 1194 NumPasses++; 1195 Changes = false; 1196 1197 // For efficient traversal, it's better to start from the end as most 1198 // of the instrumented edges are at the end. 1199 for (auto &BB : reverse(F)) { 1200 UseBBInfo *Count = findBBInfo(&BB); 1201 if (Count == nullptr) 1202 continue; 1203 if (!Count->CountValid) { 1204 if (Count->UnknownCountOutEdge == 0) { 1205 Count->CountValue = sumEdgeCount(Count->OutEdges); 1206 Count->CountValid = true; 1207 Changes = true; 1208 } else if (Count->UnknownCountInEdge == 0) { 1209 Count->CountValue = sumEdgeCount(Count->InEdges); 1210 Count->CountValid = true; 1211 Changes = true; 1212 } 1213 } 1214 if (Count->CountValid) { 1215 if (Count->UnknownCountOutEdge == 1) { 1216 uint64_t Total = 0; 1217 uint64_t OutSum = sumEdgeCount(Count->OutEdges); 1218 // If the one of the successor block can early terminate (no-return), 1219 // we can end up with situation where out edge sum count is larger as 1220 // the source BB's count is collected by a post-dominated block. 1221 if (Count->CountValue > OutSum) 1222 Total = Count->CountValue - OutSum; 1223 setEdgeCount(Count->OutEdges, Total); 1224 Changes = true; 1225 } 1226 if (Count->UnknownCountInEdge == 1) { 1227 uint64_t Total = 0; 1228 uint64_t InSum = sumEdgeCount(Count->InEdges); 1229 if (Count->CountValue > InSum) 1230 Total = Count->CountValue - InSum; 1231 setEdgeCount(Count->InEdges, Total); 1232 Changes = true; 1233 } 1234 } 1235 } 1236 } 1237 1238 LLVM_DEBUG(dbgs() << "Populate counts in " << NumPasses << " passes.\n"); 1239 #ifndef NDEBUG 1240 // Assert every BB has a valid counter. 1241 for (auto &BB : F) { 1242 auto BI = findBBInfo(&BB); 1243 if (BI == nullptr) 1244 continue; 1245 assert(BI->CountValid && "BB count is not valid"); 1246 } 1247 #endif 1248 uint64_t FuncEntryCount = getBBInfo(&*F.begin()).CountValue; 1249 F.setEntryCount(ProfileCount(FuncEntryCount, Function::PCT_Real)); 1250 uint64_t FuncMaxCount = FuncEntryCount; 1251 for (auto &BB : F) { 1252 auto BI = findBBInfo(&BB); 1253 if (BI == nullptr) 1254 continue; 1255 FuncMaxCount = std::max(FuncMaxCount, BI->CountValue); 1256 } 1257 markFunctionAttributes(FuncEntryCount, FuncMaxCount); 1258 1259 // Now annotate select instructions 1260 FuncInfo.SIVisitor.annotateSelects(F, this, &CountPosition); 1261 assert(CountPosition == ProfileCountSize); 1262 1263 LLVM_DEBUG(FuncInfo.dumpInfo("after reading profile.")); 1264 } 1265 1266 // Assign the scaled count values to the BB with multiple out edges. 1267 void PGOUseFunc::setBranchWeights() { 1268 // Generate MD_prof metadata for every branch instruction. 1269 LLVM_DEBUG(dbgs() << "\nSetting branch weights for func " << F.getName() 1270 << " IsCS=" << IsCS << "\n"); 1271 for (auto &BB : F) { 1272 Instruction *TI = BB.getTerminator(); 1273 if (TI->getNumSuccessors() < 2) 1274 continue; 1275 if (!(isa<BranchInst>(TI) || isa<SwitchInst>(TI) || 1276 isa<IndirectBrInst>(TI))) 1277 continue; 1278 1279 if (getBBInfo(&BB).CountValue == 0) 1280 continue; 1281 1282 // We have a non-zero Branch BB. 1283 const UseBBInfo &BBCountInfo = getBBInfo(&BB); 1284 unsigned Size = BBCountInfo.OutEdges.size(); 1285 SmallVector<uint64_t, 2> EdgeCounts(Size, 0); 1286 uint64_t MaxCount = 0; 1287 for (unsigned s = 0; s < Size; s++) { 1288 const PGOUseEdge *E = BBCountInfo.OutEdges[s]; 1289 const BasicBlock *SrcBB = E->SrcBB; 1290 const BasicBlock *DestBB = E->DestBB; 1291 if (DestBB == nullptr) 1292 continue; 1293 unsigned SuccNum = GetSuccessorNumber(SrcBB, DestBB); 1294 uint64_t EdgeCount = E->CountValue; 1295 if (EdgeCount > MaxCount) 1296 MaxCount = EdgeCount; 1297 EdgeCounts[SuccNum] = EdgeCount; 1298 } 1299 setProfMetadata(M, TI, EdgeCounts, MaxCount); 1300 } 1301 } 1302 1303 static bool isIndirectBrTarget(BasicBlock *BB) { 1304 for (pred_iterator PI = pred_begin(BB), E = pred_end(BB); PI != E; ++PI) { 1305 if (isa<IndirectBrInst>((*PI)->getTerminator())) 1306 return true; 1307 } 1308 return false; 1309 } 1310 1311 void PGOUseFunc::annotateIrrLoopHeaderWeights() { 1312 LLVM_DEBUG(dbgs() << "\nAnnotating irreducible loop header weights.\n"); 1313 // Find irr loop headers 1314 for (auto &BB : F) { 1315 // As a heuristic also annotate indrectbr targets as they have a high chance 1316 // to become an irreducible loop header after the indirectbr tail 1317 // duplication. 1318 if (BFI->isIrrLoopHeader(&BB) || isIndirectBrTarget(&BB)) { 1319 Instruction *TI = BB.getTerminator(); 1320 const UseBBInfo &BBCountInfo = getBBInfo(&BB); 1321 setIrrLoopHeaderMetadata(M, TI, BBCountInfo.CountValue); 1322 } 1323 } 1324 } 1325 1326 void SelectInstVisitor::instrumentOneSelectInst(SelectInst &SI) { 1327 Module *M = F.getParent(); 1328 IRBuilder<> Builder(&SI); 1329 Type *Int64Ty = Builder.getInt64Ty(); 1330 Type *I8PtrTy = Builder.getInt8PtrTy(); 1331 auto *Step = Builder.CreateZExt(SI.getCondition(), Int64Ty); 1332 Builder.CreateCall( 1333 Intrinsic::getDeclaration(M, Intrinsic::instrprof_increment_step), 1334 {ConstantExpr::getBitCast(FuncNameVar, I8PtrTy), 1335 Builder.getInt64(FuncHash), Builder.getInt32(TotalNumCtrs), 1336 Builder.getInt32(*CurCtrIdx), Step}); 1337 ++(*CurCtrIdx); 1338 } 1339 1340 void SelectInstVisitor::annotateOneSelectInst(SelectInst &SI) { 1341 std::vector<uint64_t> &CountFromProfile = UseFunc->getProfileRecord().Counts; 1342 assert(*CurCtrIdx < CountFromProfile.size() && 1343 "Out of bound access of counters"); 1344 uint64_t SCounts[2]; 1345 SCounts[0] = CountFromProfile[*CurCtrIdx]; // True count 1346 ++(*CurCtrIdx); 1347 uint64_t TotalCount = 0; 1348 auto BI = UseFunc->findBBInfo(SI.getParent()); 1349 if (BI != nullptr) 1350 TotalCount = BI->CountValue; 1351 // False Count 1352 SCounts[1] = (TotalCount > SCounts[0] ? TotalCount - SCounts[0] : 0); 1353 uint64_t MaxCount = std::max(SCounts[0], SCounts[1]); 1354 if (MaxCount) 1355 setProfMetadata(F.getParent(), &SI, SCounts, MaxCount); 1356 } 1357 1358 void SelectInstVisitor::visitSelectInst(SelectInst &SI) { 1359 if (!PGOInstrSelect) 1360 return; 1361 // FIXME: do not handle this yet. 1362 if (SI.getCondition()->getType()->isVectorTy()) 1363 return; 1364 1365 switch (Mode) { 1366 case VM_counting: 1367 NSIs++; 1368 return; 1369 case VM_instrument: 1370 instrumentOneSelectInst(SI); 1371 return; 1372 case VM_annotate: 1373 annotateOneSelectInst(SI); 1374 return; 1375 } 1376 1377 llvm_unreachable("Unknown visiting mode"); 1378 } 1379 1380 void MemIntrinsicVisitor::instrumentOneMemIntrinsic(MemIntrinsic &MI) { 1381 Module *M = F.getParent(); 1382 IRBuilder<> Builder(&MI); 1383 Type *Int64Ty = Builder.getInt64Ty(); 1384 Type *I8PtrTy = Builder.getInt8PtrTy(); 1385 Value *Length = MI.getLength(); 1386 assert(!isa<ConstantInt>(Length)); 1387 Builder.CreateCall( 1388 Intrinsic::getDeclaration(M, Intrinsic::instrprof_value_profile), 1389 {ConstantExpr::getBitCast(FuncNameVar, I8PtrTy), 1390 Builder.getInt64(FuncHash), Builder.CreateZExtOrTrunc(Length, Int64Ty), 1391 Builder.getInt32(IPVK_MemOPSize), Builder.getInt32(CurCtrId)}); 1392 ++CurCtrId; 1393 } 1394 1395 void MemIntrinsicVisitor::visitMemIntrinsic(MemIntrinsic &MI) { 1396 if (!PGOInstrMemOP) 1397 return; 1398 Value *Length = MI.getLength(); 1399 // Not instrument constant length calls. 1400 if (dyn_cast<ConstantInt>(Length)) 1401 return; 1402 1403 switch (Mode) { 1404 case VM_counting: 1405 NMemIs++; 1406 return; 1407 case VM_instrument: 1408 instrumentOneMemIntrinsic(MI); 1409 return; 1410 case VM_annotate: 1411 Candidates.push_back(&MI); 1412 return; 1413 } 1414 llvm_unreachable("Unknown visiting mode"); 1415 } 1416 1417 // Traverse all valuesites and annotate the instructions for all value kind. 1418 void PGOUseFunc::annotateValueSites() { 1419 if (DisableValueProfiling) 1420 return; 1421 1422 // Create the PGOFuncName meta data. 1423 createPGOFuncNameMetadata(F, FuncInfo.FuncName); 1424 1425 for (uint32_t Kind = IPVK_First; Kind <= IPVK_Last; ++Kind) 1426 annotateValueSites(Kind); 1427 } 1428 1429 static const char *ValueProfKindDescr[] = { 1430 #define VALUE_PROF_KIND(Enumerator, Value, Descr) Descr, 1431 #include "llvm/ProfileData/InstrProfData.inc" 1432 }; 1433 1434 // Annotate the instructions for a specific value kind. 1435 void PGOUseFunc::annotateValueSites(uint32_t Kind) { 1436 assert(Kind <= IPVK_Last); 1437 unsigned ValueSiteIndex = 0; 1438 auto &ValueSites = FuncInfo.ValueSites[Kind]; 1439 unsigned NumValueSites = ProfileRecord.getNumValueSites(Kind); 1440 if (NumValueSites != ValueSites.size()) { 1441 auto &Ctx = M->getContext(); 1442 Ctx.diagnose(DiagnosticInfoPGOProfile( 1443 M->getName().data(), 1444 Twine("Inconsistent number of value sites for ") + 1445 Twine(ValueProfKindDescr[Kind]) + 1446 Twine(" profiling in \"") + F.getName().str() + 1447 Twine("\", possibly due to the use of a stale profile."), 1448 DS_Warning)); 1449 return; 1450 } 1451 1452 for (auto &I : ValueSites) { 1453 LLVM_DEBUG(dbgs() << "Read one value site profile (kind = " << Kind 1454 << "): Index = " << ValueSiteIndex << " out of " 1455 << NumValueSites << "\n"); 1456 annotateValueSite(*M, *I, ProfileRecord, 1457 static_cast<InstrProfValueKind>(Kind), ValueSiteIndex, 1458 Kind == IPVK_MemOPSize ? MaxNumMemOPAnnotations 1459 : MaxNumAnnotations); 1460 ValueSiteIndex++; 1461 } 1462 } 1463 1464 // Collect the set of members for each Comdat in module M and store 1465 // in ComdatMembers. 1466 static void collectComdatMembers( 1467 Module &M, 1468 std::unordered_multimap<Comdat *, GlobalValue *> &ComdatMembers) { 1469 if (!DoComdatRenaming) 1470 return; 1471 for (Function &F : M) 1472 if (Comdat *C = F.getComdat()) 1473 ComdatMembers.insert(std::make_pair(C, &F)); 1474 for (GlobalVariable &GV : M.globals()) 1475 if (Comdat *C = GV.getComdat()) 1476 ComdatMembers.insert(std::make_pair(C, &GV)); 1477 for (GlobalAlias &GA : M.aliases()) 1478 if (Comdat *C = GA.getComdat()) 1479 ComdatMembers.insert(std::make_pair(C, &GA)); 1480 } 1481 1482 static bool InstrumentAllFunctions( 1483 Module &M, function_ref<BranchProbabilityInfo *(Function &)> LookupBPI, 1484 function_ref<BlockFrequencyInfo *(Function &)> LookupBFI, bool IsCS) { 1485 // For the context-sensitve instrumentation, we should have a separated pass 1486 // (before LTO/ThinLTO linking) to create these variables. 1487 if (!IsCS) 1488 createIRLevelProfileFlagVar(M, /* IsCS */ false); 1489 std::unordered_multimap<Comdat *, GlobalValue *> ComdatMembers; 1490 collectComdatMembers(M, ComdatMembers); 1491 1492 for (auto &F : M) { 1493 if (F.isDeclaration()) 1494 continue; 1495 auto *BPI = LookupBPI(F); 1496 auto *BFI = LookupBFI(F); 1497 instrumentOneFunc(F, &M, BPI, BFI, ComdatMembers, IsCS); 1498 } 1499 return true; 1500 } 1501 1502 PreservedAnalyses 1503 PGOInstrumentationGenCreateVar::run(Module &M, ModuleAnalysisManager &AM) { 1504 createProfileFileNameVar(M, CSInstrName); 1505 createIRLevelProfileFlagVar(M, /* IsCS */ true); 1506 return PreservedAnalyses::all(); 1507 } 1508 1509 bool PGOInstrumentationGenLegacyPass::runOnModule(Module &M) { 1510 if (skipModule(M)) 1511 return false; 1512 1513 auto LookupBPI = [this](Function &F) { 1514 return &this->getAnalysis<BranchProbabilityInfoWrapperPass>(F).getBPI(); 1515 }; 1516 auto LookupBFI = [this](Function &F) { 1517 return &this->getAnalysis<BlockFrequencyInfoWrapperPass>(F).getBFI(); 1518 }; 1519 return InstrumentAllFunctions(M, LookupBPI, LookupBFI, IsCS); 1520 } 1521 1522 PreservedAnalyses PGOInstrumentationGen::run(Module &M, 1523 ModuleAnalysisManager &AM) { 1524 auto &FAM = AM.getResult<FunctionAnalysisManagerModuleProxy>(M).getManager(); 1525 auto LookupBPI = [&FAM](Function &F) { 1526 return &FAM.getResult<BranchProbabilityAnalysis>(F); 1527 }; 1528 1529 auto LookupBFI = [&FAM](Function &F) { 1530 return &FAM.getResult<BlockFrequencyAnalysis>(F); 1531 }; 1532 1533 if (!InstrumentAllFunctions(M, LookupBPI, LookupBFI, IsCS)) 1534 return PreservedAnalyses::all(); 1535 1536 return PreservedAnalyses::none(); 1537 } 1538 1539 static bool annotateAllFunctions( 1540 Module &M, StringRef ProfileFileName, StringRef ProfileRemappingFileName, 1541 function_ref<BranchProbabilityInfo *(Function &)> LookupBPI, 1542 function_ref<BlockFrequencyInfo *(Function &)> LookupBFI, bool IsCS) { 1543 LLVM_DEBUG(dbgs() << "Read in profile counters: "); 1544 auto &Ctx = M.getContext(); 1545 // Read the counter array from file. 1546 auto ReaderOrErr = 1547 IndexedInstrProfReader::create(ProfileFileName, ProfileRemappingFileName); 1548 if (Error E = ReaderOrErr.takeError()) { 1549 handleAllErrors(std::move(E), [&](const ErrorInfoBase &EI) { 1550 Ctx.diagnose( 1551 DiagnosticInfoPGOProfile(ProfileFileName.data(), EI.message())); 1552 }); 1553 return false; 1554 } 1555 1556 std::unique_ptr<IndexedInstrProfReader> PGOReader = 1557 std::move(ReaderOrErr.get()); 1558 if (!PGOReader) { 1559 Ctx.diagnose(DiagnosticInfoPGOProfile(ProfileFileName.data(), 1560 StringRef("Cannot get PGOReader"))); 1561 return false; 1562 } 1563 if (!PGOReader->hasCSIRLevelProfile() && IsCS) 1564 return false; 1565 1566 // TODO: might need to change the warning once the clang option is finalized. 1567 if (!PGOReader->isIRLevelProfile()) { 1568 Ctx.diagnose(DiagnosticInfoPGOProfile( 1569 ProfileFileName.data(), "Not an IR level instrumentation profile")); 1570 return false; 1571 } 1572 1573 std::unordered_multimap<Comdat *, GlobalValue *> ComdatMembers; 1574 collectComdatMembers(M, ComdatMembers); 1575 std::vector<Function *> HotFunctions; 1576 std::vector<Function *> ColdFunctions; 1577 for (auto &F : M) { 1578 if (F.isDeclaration()) 1579 continue; 1580 auto *BPI = LookupBPI(F); 1581 auto *BFI = LookupBFI(F); 1582 // Split indirectbr critical edges here before computing the MST rather than 1583 // later in getInstrBB() to avoid invalidating it. 1584 SplitIndirectBrCriticalEdges(F, BPI, BFI); 1585 PGOUseFunc Func(F, &M, ComdatMembers, BPI, BFI, IsCS); 1586 bool AllZeros = false; 1587 if (!Func.readCounters(PGOReader.get(), AllZeros)) 1588 continue; 1589 if (AllZeros) { 1590 F.setEntryCount(ProfileCount(0, Function::PCT_Real)); 1591 if (Func.getProgramMaxCount() != 0) 1592 ColdFunctions.push_back(&F); 1593 continue; 1594 } 1595 Func.populateCounters(); 1596 Func.setBranchWeights(); 1597 Func.annotateValueSites(); 1598 Func.annotateIrrLoopHeaderWeights(); 1599 PGOUseFunc::FuncFreqAttr FreqAttr = Func.getFuncFreqAttr(); 1600 if (FreqAttr == PGOUseFunc::FFA_Cold) 1601 ColdFunctions.push_back(&F); 1602 else if (FreqAttr == PGOUseFunc::FFA_Hot) 1603 HotFunctions.push_back(&F); 1604 if (PGOViewCounts != PGOVCT_None && 1605 (ViewBlockFreqFuncName.empty() || 1606 F.getName().equals(ViewBlockFreqFuncName))) { 1607 LoopInfo LI{DominatorTree(F)}; 1608 std::unique_ptr<BranchProbabilityInfo> NewBPI = 1609 llvm::make_unique<BranchProbabilityInfo>(F, LI); 1610 std::unique_ptr<BlockFrequencyInfo> NewBFI = 1611 llvm::make_unique<BlockFrequencyInfo>(F, *NewBPI, LI); 1612 if (PGOViewCounts == PGOVCT_Graph) 1613 NewBFI->view(); 1614 else if (PGOViewCounts == PGOVCT_Text) { 1615 dbgs() << "pgo-view-counts: " << Func.getFunc().getName() << "\n"; 1616 NewBFI->print(dbgs()); 1617 } 1618 } 1619 if (PGOViewRawCounts != PGOVCT_None && 1620 (ViewBlockFreqFuncName.empty() || 1621 F.getName().equals(ViewBlockFreqFuncName))) { 1622 if (PGOViewRawCounts == PGOVCT_Graph) 1623 if (ViewBlockFreqFuncName.empty()) 1624 WriteGraph(&Func, Twine("PGORawCounts_") + Func.getFunc().getName()); 1625 else 1626 ViewGraph(&Func, Twine("PGORawCounts_") + Func.getFunc().getName()); 1627 else if (PGOViewRawCounts == PGOVCT_Text) { 1628 dbgs() << "pgo-view-raw-counts: " << Func.getFunc().getName() << "\n"; 1629 Func.dumpInfo(); 1630 } 1631 } 1632 } 1633 M.setProfileSummary(PGOReader->getSummary(IsCS).getMD(M.getContext()), 1634 IsCS ? ProfileSummary::PSK_CSInstr 1635 : ProfileSummary::PSK_Instr); 1636 1637 // Set function hotness attribute from the profile. 1638 // We have to apply these attributes at the end because their presence 1639 // can affect the BranchProbabilityInfo of any callers, resulting in an 1640 // inconsistent MST between prof-gen and prof-use. 1641 for (auto &F : HotFunctions) { 1642 F->addFnAttr(Attribute::InlineHint); 1643 LLVM_DEBUG(dbgs() << "Set inline attribute to function: " << F->getName() 1644 << "\n"); 1645 } 1646 for (auto &F : ColdFunctions) { 1647 F->addFnAttr(Attribute::Cold); 1648 LLVM_DEBUG(dbgs() << "Set cold attribute to function: " << F->getName() 1649 << "\n"); 1650 } 1651 return true; 1652 } 1653 1654 PGOInstrumentationUse::PGOInstrumentationUse(std::string Filename, 1655 std::string RemappingFilename, 1656 bool IsCS) 1657 : ProfileFileName(std::move(Filename)), 1658 ProfileRemappingFileName(std::move(RemappingFilename)), IsCS(IsCS) { 1659 if (!PGOTestProfileFile.empty()) 1660 ProfileFileName = PGOTestProfileFile; 1661 if (!PGOTestProfileRemappingFile.empty()) 1662 ProfileRemappingFileName = PGOTestProfileRemappingFile; 1663 } 1664 1665 PreservedAnalyses PGOInstrumentationUse::run(Module &M, 1666 ModuleAnalysisManager &AM) { 1667 1668 auto &FAM = AM.getResult<FunctionAnalysisManagerModuleProxy>(M).getManager(); 1669 auto LookupBPI = [&FAM](Function &F) { 1670 return &FAM.getResult<BranchProbabilityAnalysis>(F); 1671 }; 1672 1673 auto LookupBFI = [&FAM](Function &F) { 1674 return &FAM.getResult<BlockFrequencyAnalysis>(F); 1675 }; 1676 1677 if (!annotateAllFunctions(M, ProfileFileName, ProfileRemappingFileName, 1678 LookupBPI, LookupBFI, IsCS)) 1679 return PreservedAnalyses::all(); 1680 1681 return PreservedAnalyses::none(); 1682 } 1683 1684 bool PGOInstrumentationUseLegacyPass::runOnModule(Module &M) { 1685 if (skipModule(M)) 1686 return false; 1687 1688 auto LookupBPI = [this](Function &F) { 1689 return &this->getAnalysis<BranchProbabilityInfoWrapperPass>(F).getBPI(); 1690 }; 1691 auto LookupBFI = [this](Function &F) { 1692 return &this->getAnalysis<BlockFrequencyInfoWrapperPass>(F).getBFI(); 1693 }; 1694 1695 return annotateAllFunctions(M, ProfileFileName, "", LookupBPI, LookupBFI, 1696 IsCS); 1697 } 1698 1699 static std::string getSimpleNodeName(const BasicBlock *Node) { 1700 if (!Node->getName().empty()) 1701 return Node->getName(); 1702 1703 std::string SimpleNodeName; 1704 raw_string_ostream OS(SimpleNodeName); 1705 Node->printAsOperand(OS, false); 1706 return OS.str(); 1707 } 1708 1709 void llvm::setProfMetadata(Module *M, Instruction *TI, 1710 ArrayRef<uint64_t> EdgeCounts, 1711 uint64_t MaxCount) { 1712 MDBuilder MDB(M->getContext()); 1713 assert(MaxCount > 0 && "Bad max count"); 1714 uint64_t Scale = calculateCountScale(MaxCount); 1715 SmallVector<unsigned, 4> Weights; 1716 for (const auto &ECI : EdgeCounts) 1717 Weights.push_back(scaleBranchCount(ECI, Scale)); 1718 1719 LLVM_DEBUG(dbgs() << "Weight is: "; for (const auto &W 1720 : Weights) { 1721 dbgs() << W << " "; 1722 } dbgs() << "\n";); 1723 TI->setMetadata(LLVMContext::MD_prof, MDB.createBranchWeights(Weights)); 1724 if (EmitBranchProbability) { 1725 std::string BrCondStr = getBranchCondString(TI); 1726 if (BrCondStr.empty()) 1727 return; 1728 1729 uint64_t WSum = 1730 std::accumulate(Weights.begin(), Weights.end(), (uint64_t)0, 1731 [](uint64_t w1, uint64_t w2) { return w1 + w2; }); 1732 uint64_t TotalCount = 1733 std::accumulate(EdgeCounts.begin(), EdgeCounts.end(), (uint64_t)0, 1734 [](uint64_t c1, uint64_t c2) { return c1 + c2; }); 1735 Scale = calculateCountScale(WSum); 1736 BranchProbability BP(scaleBranchCount(Weights[0], Scale), 1737 scaleBranchCount(WSum, Scale)); 1738 std::string BranchProbStr; 1739 raw_string_ostream OS(BranchProbStr); 1740 OS << BP; 1741 OS << " (total count : " << TotalCount << ")"; 1742 OS.flush(); 1743 Function *F = TI->getParent()->getParent(); 1744 OptimizationRemarkEmitter ORE(F); 1745 ORE.emit([&]() { 1746 return OptimizationRemark(DEBUG_TYPE, "pgo-instrumentation", TI) 1747 << BrCondStr << " is true with probability : " << BranchProbStr; 1748 }); 1749 } 1750 } 1751 1752 namespace llvm { 1753 1754 void setIrrLoopHeaderMetadata(Module *M, Instruction *TI, uint64_t Count) { 1755 MDBuilder MDB(M->getContext()); 1756 TI->setMetadata(llvm::LLVMContext::MD_irr_loop, 1757 MDB.createIrrLoopHeaderWeight(Count)); 1758 } 1759 1760 template <> struct GraphTraits<PGOUseFunc *> { 1761 using NodeRef = const BasicBlock *; 1762 using ChildIteratorType = succ_const_iterator; 1763 using nodes_iterator = pointer_iterator<Function::const_iterator>; 1764 1765 static NodeRef getEntryNode(const PGOUseFunc *G) { 1766 return &G->getFunc().front(); 1767 } 1768 1769 static ChildIteratorType child_begin(const NodeRef N) { 1770 return succ_begin(N); 1771 } 1772 1773 static ChildIteratorType child_end(const NodeRef N) { return succ_end(N); } 1774 1775 static nodes_iterator nodes_begin(const PGOUseFunc *G) { 1776 return nodes_iterator(G->getFunc().begin()); 1777 } 1778 1779 static nodes_iterator nodes_end(const PGOUseFunc *G) { 1780 return nodes_iterator(G->getFunc().end()); 1781 } 1782 }; 1783 1784 template <> struct DOTGraphTraits<PGOUseFunc *> : DefaultDOTGraphTraits { 1785 explicit DOTGraphTraits(bool isSimple = false) 1786 : DefaultDOTGraphTraits(isSimple) {} 1787 1788 static std::string getGraphName(const PGOUseFunc *G) { 1789 return G->getFunc().getName(); 1790 } 1791 1792 std::string getNodeLabel(const BasicBlock *Node, const PGOUseFunc *Graph) { 1793 std::string Result; 1794 raw_string_ostream OS(Result); 1795 1796 OS << getSimpleNodeName(Node) << ":\\l"; 1797 UseBBInfo *BI = Graph->findBBInfo(Node); 1798 OS << "Count : "; 1799 if (BI && BI->CountValid) 1800 OS << BI->CountValue << "\\l"; 1801 else 1802 OS << "Unknown\\l"; 1803 1804 if (!PGOInstrSelect) 1805 return Result; 1806 1807 for (auto BI = Node->begin(); BI != Node->end(); ++BI) { 1808 auto *I = &*BI; 1809 if (!isa<SelectInst>(I)) 1810 continue; 1811 // Display scaled counts for SELECT instruction: 1812 OS << "SELECT : { T = "; 1813 uint64_t TC, FC; 1814 bool HasProf = I->extractProfMetadata(TC, FC); 1815 if (!HasProf) 1816 OS << "Unknown, F = Unknown }\\l"; 1817 else 1818 OS << TC << ", F = " << FC << " }\\l"; 1819 } 1820 return Result; 1821 } 1822 }; 1823 1824 } // end namespace llvm 1825