1 //===-- BranchProbabilityInfo.cpp - Branch Probability 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 // 10 // Loops should be simplified before this analysis. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/Analysis/BranchProbabilityInfo.h" 15 #include "llvm/ADT/PostOrderIterator.h" 16 #include "llvm/Analysis/LoopInfo.h" 17 #include "llvm/IR/CFG.h" 18 #include "llvm/IR/Constants.h" 19 #include "llvm/IR/Function.h" 20 #include "llvm/IR/Instructions.h" 21 #include "llvm/IR/LLVMContext.h" 22 #include "llvm/IR/Metadata.h" 23 #include "llvm/Support/Debug.h" 24 #include "llvm/Support/raw_ostream.h" 25 26 using namespace llvm; 27 28 #define DEBUG_TYPE "branch-prob" 29 30 INITIALIZE_PASS_BEGIN(BranchProbabilityInfo, "branch-prob", 31 "Branch Probability Analysis", false, true) 32 INITIALIZE_PASS_DEPENDENCY(LoopInfoWrapperPass) 33 INITIALIZE_PASS_END(BranchProbabilityInfo, "branch-prob", 34 "Branch Probability Analysis", false, true) 35 36 char BranchProbabilityInfo::ID = 0; 37 38 // Weights are for internal use only. They are used by heuristics to help to 39 // estimate edges' probability. Example: 40 // 41 // Using "Loop Branch Heuristics" we predict weights of edges for the 42 // block BB2. 43 // ... 44 // | 45 // V 46 // BB1<-+ 47 // | | 48 // | | (Weight = 124) 49 // V | 50 // BB2--+ 51 // | 52 // | (Weight = 4) 53 // V 54 // BB3 55 // 56 // Probability of the edge BB2->BB1 = 124 / (124 + 4) = 0.96875 57 // Probability of the edge BB2->BB3 = 4 / (124 + 4) = 0.03125 58 static const uint32_t LBH_TAKEN_WEIGHT = 124; 59 static const uint32_t LBH_NONTAKEN_WEIGHT = 4; 60 61 /// \brief Unreachable-terminating branch taken weight. 62 /// 63 /// This is the weight for a branch being taken to a block that terminates 64 /// (eventually) in unreachable. These are predicted as unlikely as possible. 65 static const uint32_t UR_TAKEN_WEIGHT = 1; 66 67 /// \brief Unreachable-terminating branch not-taken weight. 68 /// 69 /// This is the weight for a branch not being taken toward a block that 70 /// terminates (eventually) in unreachable. Such a branch is essentially never 71 /// taken. Set the weight to an absurdly high value so that nested loops don't 72 /// easily subsume it. 73 static const uint32_t UR_NONTAKEN_WEIGHT = 1024*1024 - 1; 74 75 /// \brief Weight for a branch taken going into a cold block. 76 /// 77 /// This is the weight for a branch taken toward a block marked 78 /// cold. A block is marked cold if it's postdominated by a 79 /// block containing a call to a cold function. Cold functions 80 /// are those marked with attribute 'cold'. 81 static const uint32_t CC_TAKEN_WEIGHT = 4; 82 83 /// \brief Weight for a branch not-taken into a cold block. 84 /// 85 /// This is the weight for a branch not taken toward a block marked 86 /// cold. 87 static const uint32_t CC_NONTAKEN_WEIGHT = 64; 88 89 static const uint32_t PH_TAKEN_WEIGHT = 20; 90 static const uint32_t PH_NONTAKEN_WEIGHT = 12; 91 92 static const uint32_t ZH_TAKEN_WEIGHT = 20; 93 static const uint32_t ZH_NONTAKEN_WEIGHT = 12; 94 95 static const uint32_t FPH_TAKEN_WEIGHT = 20; 96 static const uint32_t FPH_NONTAKEN_WEIGHT = 12; 97 98 /// \brief Invoke-terminating normal branch taken weight 99 /// 100 /// This is the weight for branching to the normal destination of an invoke 101 /// instruction. We expect this to happen most of the time. Set the weight to an 102 /// absurdly high value so that nested loops subsume it. 103 static const uint32_t IH_TAKEN_WEIGHT = 1024 * 1024 - 1; 104 105 /// \brief Invoke-terminating normal branch not-taken weight. 106 /// 107 /// This is the weight for branching to the unwind destination of an invoke 108 /// instruction. This is essentially never taken. 109 static const uint32_t IH_NONTAKEN_WEIGHT = 1; 110 111 // Standard weight value. Used when none of the heuristics set weight for 112 // the edge. 113 static const uint32_t NORMAL_WEIGHT = 16; 114 115 // Minimum weight of an edge. Please note, that weight is NEVER 0. 116 static const uint32_t MIN_WEIGHT = 1; 117 118 static uint32_t getMaxWeightFor(BasicBlock *BB) { 119 return UINT32_MAX / BB->getTerminator()->getNumSuccessors(); 120 } 121 122 123 /// \brief Calculate edge weights for successors lead to unreachable. 124 /// 125 /// Predict that a successor which leads necessarily to an 126 /// unreachable-terminated block as extremely unlikely. 127 bool BranchProbabilityInfo::calcUnreachableHeuristics(BasicBlock *BB) { 128 TerminatorInst *TI = BB->getTerminator(); 129 if (TI->getNumSuccessors() == 0) { 130 if (isa<UnreachableInst>(TI)) 131 PostDominatedByUnreachable.insert(BB); 132 return false; 133 } 134 135 SmallVector<unsigned, 4> UnreachableEdges; 136 SmallVector<unsigned, 4> ReachableEdges; 137 138 for (succ_iterator I = succ_begin(BB), E = succ_end(BB); I != E; ++I) { 139 if (PostDominatedByUnreachable.count(*I)) 140 UnreachableEdges.push_back(I.getSuccessorIndex()); 141 else 142 ReachableEdges.push_back(I.getSuccessorIndex()); 143 } 144 145 // If all successors are in the set of blocks post-dominated by unreachable, 146 // this block is too. 147 if (UnreachableEdges.size() == TI->getNumSuccessors()) 148 PostDominatedByUnreachable.insert(BB); 149 150 // Skip probabilities if this block has a single successor or if all were 151 // reachable. 152 if (TI->getNumSuccessors() == 1 || UnreachableEdges.empty()) 153 return false; 154 155 uint32_t UnreachableWeight = 156 std::max(UR_TAKEN_WEIGHT / (unsigned)UnreachableEdges.size(), MIN_WEIGHT); 157 for (SmallVectorImpl<unsigned>::iterator I = UnreachableEdges.begin(), 158 E = UnreachableEdges.end(); 159 I != E; ++I) 160 setEdgeWeight(BB, *I, UnreachableWeight); 161 162 if (ReachableEdges.empty()) 163 return true; 164 uint32_t ReachableWeight = 165 std::max(UR_NONTAKEN_WEIGHT / (unsigned)ReachableEdges.size(), 166 NORMAL_WEIGHT); 167 for (SmallVectorImpl<unsigned>::iterator I = ReachableEdges.begin(), 168 E = ReachableEdges.end(); 169 I != E; ++I) 170 setEdgeWeight(BB, *I, ReachableWeight); 171 172 return true; 173 } 174 175 // Propagate existing explicit probabilities from either profile data or 176 // 'expect' intrinsic processing. 177 bool BranchProbabilityInfo::calcMetadataWeights(BasicBlock *BB) { 178 TerminatorInst *TI = BB->getTerminator(); 179 if (TI->getNumSuccessors() == 1) 180 return false; 181 if (!isa<BranchInst>(TI) && !isa<SwitchInst>(TI)) 182 return false; 183 184 MDNode *WeightsNode = TI->getMetadata(LLVMContext::MD_prof); 185 if (!WeightsNode) 186 return false; 187 188 // Ensure there are weights for all of the successors. Note that the first 189 // operand to the metadata node is a name, not a weight. 190 if (WeightsNode->getNumOperands() != TI->getNumSuccessors() + 1) 191 return false; 192 193 // Build up the final weights that will be used in a temporary buffer, but 194 // don't add them until all weihts are present. Each weight value is clamped 195 // to [1, getMaxWeightFor(BB)]. 196 uint32_t WeightLimit = getMaxWeightFor(BB); 197 SmallVector<uint32_t, 2> Weights; 198 Weights.reserve(TI->getNumSuccessors()); 199 for (unsigned i = 1, e = WeightsNode->getNumOperands(); i != e; ++i) { 200 ConstantInt *Weight = 201 mdconst::dyn_extract<ConstantInt>(WeightsNode->getOperand(i)); 202 if (!Weight) 203 return false; 204 Weights.push_back( 205 std::max<uint32_t>(1, Weight->getLimitedValue(WeightLimit))); 206 } 207 assert(Weights.size() == TI->getNumSuccessors() && "Checked above"); 208 for (unsigned i = 0, e = TI->getNumSuccessors(); i != e; ++i) 209 setEdgeWeight(BB, i, Weights[i]); 210 211 return true; 212 } 213 214 /// \brief Calculate edge weights for edges leading to cold blocks. 215 /// 216 /// A cold block is one post-dominated by a block with a call to a 217 /// cold function. Those edges are unlikely to be taken, so we give 218 /// them relatively low weight. 219 /// 220 /// Return true if we could compute the weights for cold edges. 221 /// Return false, otherwise. 222 bool BranchProbabilityInfo::calcColdCallHeuristics(BasicBlock *BB) { 223 TerminatorInst *TI = BB->getTerminator(); 224 if (TI->getNumSuccessors() == 0) 225 return false; 226 227 // Determine which successors are post-dominated by a cold block. 228 SmallVector<unsigned, 4> ColdEdges; 229 SmallVector<unsigned, 4> NormalEdges; 230 for (succ_iterator I = succ_begin(BB), E = succ_end(BB); I != E; ++I) 231 if (PostDominatedByColdCall.count(*I)) 232 ColdEdges.push_back(I.getSuccessorIndex()); 233 else 234 NormalEdges.push_back(I.getSuccessorIndex()); 235 236 // If all successors are in the set of blocks post-dominated by cold calls, 237 // this block is in the set post-dominated by cold calls. 238 if (ColdEdges.size() == TI->getNumSuccessors()) 239 PostDominatedByColdCall.insert(BB); 240 else { 241 // Otherwise, if the block itself contains a cold function, add it to the 242 // set of blocks postdominated by a cold call. 243 assert(!PostDominatedByColdCall.count(BB)); 244 for (BasicBlock::iterator I = BB->begin(), E = BB->end(); I != E; ++I) 245 if (CallInst *CI = dyn_cast<CallInst>(I)) 246 if (CI->hasFnAttr(Attribute::Cold)) { 247 PostDominatedByColdCall.insert(BB); 248 break; 249 } 250 } 251 252 // Skip probabilities if this block has a single successor. 253 if (TI->getNumSuccessors() == 1 || ColdEdges.empty()) 254 return false; 255 256 uint32_t ColdWeight = 257 std::max(CC_TAKEN_WEIGHT / (unsigned) ColdEdges.size(), MIN_WEIGHT); 258 for (SmallVectorImpl<unsigned>::iterator I = ColdEdges.begin(), 259 E = ColdEdges.end(); 260 I != E; ++I) 261 setEdgeWeight(BB, *I, ColdWeight); 262 263 if (NormalEdges.empty()) 264 return true; 265 uint32_t NormalWeight = std::max( 266 CC_NONTAKEN_WEIGHT / (unsigned) NormalEdges.size(), NORMAL_WEIGHT); 267 for (SmallVectorImpl<unsigned>::iterator I = NormalEdges.begin(), 268 E = NormalEdges.end(); 269 I != E; ++I) 270 setEdgeWeight(BB, *I, NormalWeight); 271 272 return true; 273 } 274 275 // Calculate Edge Weights using "Pointer Heuristics". Predict a comparsion 276 // between two pointer or pointer and NULL will fail. 277 bool BranchProbabilityInfo::calcPointerHeuristics(BasicBlock *BB) { 278 BranchInst * BI = dyn_cast<BranchInst>(BB->getTerminator()); 279 if (!BI || !BI->isConditional()) 280 return false; 281 282 Value *Cond = BI->getCondition(); 283 ICmpInst *CI = dyn_cast<ICmpInst>(Cond); 284 if (!CI || !CI->isEquality()) 285 return false; 286 287 Value *LHS = CI->getOperand(0); 288 289 if (!LHS->getType()->isPointerTy()) 290 return false; 291 292 assert(CI->getOperand(1)->getType()->isPointerTy()); 293 294 // p != 0 -> isProb = true 295 // p == 0 -> isProb = false 296 // p != q -> isProb = true 297 // p == q -> isProb = false; 298 unsigned TakenIdx = 0, NonTakenIdx = 1; 299 bool isProb = CI->getPredicate() == ICmpInst::ICMP_NE; 300 if (!isProb) 301 std::swap(TakenIdx, NonTakenIdx); 302 303 setEdgeWeight(BB, TakenIdx, PH_TAKEN_WEIGHT); 304 setEdgeWeight(BB, NonTakenIdx, PH_NONTAKEN_WEIGHT); 305 return true; 306 } 307 308 // Calculate Edge Weights using "Loop Branch Heuristics". Predict backedges 309 // as taken, exiting edges as not-taken. 310 bool BranchProbabilityInfo::calcLoopBranchHeuristics(BasicBlock *BB) { 311 Loop *L = LI->getLoopFor(BB); 312 if (!L) 313 return false; 314 315 SmallVector<unsigned, 8> BackEdges; 316 SmallVector<unsigned, 8> ExitingEdges; 317 SmallVector<unsigned, 8> InEdges; // Edges from header to the loop. 318 319 for (succ_iterator I = succ_begin(BB), E = succ_end(BB); I != E; ++I) { 320 if (!L->contains(*I)) 321 ExitingEdges.push_back(I.getSuccessorIndex()); 322 else if (L->getHeader() == *I) 323 BackEdges.push_back(I.getSuccessorIndex()); 324 else 325 InEdges.push_back(I.getSuccessorIndex()); 326 } 327 328 if (BackEdges.empty() && ExitingEdges.empty()) 329 return false; 330 331 if (uint32_t numBackEdges = BackEdges.size()) { 332 uint32_t backWeight = LBH_TAKEN_WEIGHT / numBackEdges; 333 if (backWeight < NORMAL_WEIGHT) 334 backWeight = NORMAL_WEIGHT; 335 336 for (SmallVectorImpl<unsigned>::iterator EI = BackEdges.begin(), 337 EE = BackEdges.end(); EI != EE; ++EI) { 338 setEdgeWeight(BB, *EI, backWeight); 339 } 340 } 341 342 if (uint32_t numInEdges = InEdges.size()) { 343 uint32_t inWeight = LBH_TAKEN_WEIGHT / numInEdges; 344 if (inWeight < NORMAL_WEIGHT) 345 inWeight = NORMAL_WEIGHT; 346 347 for (SmallVectorImpl<unsigned>::iterator EI = InEdges.begin(), 348 EE = InEdges.end(); EI != EE; ++EI) { 349 setEdgeWeight(BB, *EI, inWeight); 350 } 351 } 352 353 if (uint32_t numExitingEdges = ExitingEdges.size()) { 354 uint32_t exitWeight = LBH_NONTAKEN_WEIGHT / numExitingEdges; 355 if (exitWeight < MIN_WEIGHT) 356 exitWeight = MIN_WEIGHT; 357 358 for (SmallVectorImpl<unsigned>::iterator EI = ExitingEdges.begin(), 359 EE = ExitingEdges.end(); EI != EE; ++EI) { 360 setEdgeWeight(BB, *EI, exitWeight); 361 } 362 } 363 364 return true; 365 } 366 367 bool BranchProbabilityInfo::calcZeroHeuristics(BasicBlock *BB) { 368 BranchInst * BI = dyn_cast<BranchInst>(BB->getTerminator()); 369 if (!BI || !BI->isConditional()) 370 return false; 371 372 Value *Cond = BI->getCondition(); 373 ICmpInst *CI = dyn_cast<ICmpInst>(Cond); 374 if (!CI) 375 return false; 376 377 Value *RHS = CI->getOperand(1); 378 ConstantInt *CV = dyn_cast<ConstantInt>(RHS); 379 if (!CV) 380 return false; 381 382 // If the LHS is the result of AND'ing a value with a single bit bitmask, 383 // we don't have information about probabilities. 384 if (Instruction *LHS = dyn_cast<Instruction>(CI->getOperand(0))) 385 if (LHS->getOpcode() == Instruction::And) 386 if (ConstantInt *AndRHS = dyn_cast<ConstantInt>(LHS->getOperand(1))) 387 if (AndRHS->getUniqueInteger().isPowerOf2()) 388 return false; 389 390 bool isProb; 391 if (CV->isZero()) { 392 switch (CI->getPredicate()) { 393 case CmpInst::ICMP_EQ: 394 // X == 0 -> Unlikely 395 isProb = false; 396 break; 397 case CmpInst::ICMP_NE: 398 // X != 0 -> Likely 399 isProb = true; 400 break; 401 case CmpInst::ICMP_SLT: 402 // X < 0 -> Unlikely 403 isProb = false; 404 break; 405 case CmpInst::ICMP_SGT: 406 // X > 0 -> Likely 407 isProb = true; 408 break; 409 default: 410 return false; 411 } 412 } else if (CV->isOne() && CI->getPredicate() == CmpInst::ICMP_SLT) { 413 // InstCombine canonicalizes X <= 0 into X < 1. 414 // X <= 0 -> Unlikely 415 isProb = false; 416 } else if (CV->isAllOnesValue()) { 417 switch (CI->getPredicate()) { 418 case CmpInst::ICMP_EQ: 419 // X == -1 -> Unlikely 420 isProb = false; 421 break; 422 case CmpInst::ICMP_NE: 423 // X != -1 -> Likely 424 isProb = true; 425 break; 426 case CmpInst::ICMP_SGT: 427 // InstCombine canonicalizes X >= 0 into X > -1. 428 // X >= 0 -> Likely 429 isProb = true; 430 break; 431 default: 432 return false; 433 } 434 } else { 435 return false; 436 } 437 438 unsigned TakenIdx = 0, NonTakenIdx = 1; 439 440 if (!isProb) 441 std::swap(TakenIdx, NonTakenIdx); 442 443 setEdgeWeight(BB, TakenIdx, ZH_TAKEN_WEIGHT); 444 setEdgeWeight(BB, NonTakenIdx, ZH_NONTAKEN_WEIGHT); 445 446 return true; 447 } 448 449 bool BranchProbabilityInfo::calcFloatingPointHeuristics(BasicBlock *BB) { 450 BranchInst *BI = dyn_cast<BranchInst>(BB->getTerminator()); 451 if (!BI || !BI->isConditional()) 452 return false; 453 454 Value *Cond = BI->getCondition(); 455 FCmpInst *FCmp = dyn_cast<FCmpInst>(Cond); 456 if (!FCmp) 457 return false; 458 459 bool isProb; 460 if (FCmp->isEquality()) { 461 // f1 == f2 -> Unlikely 462 // f1 != f2 -> Likely 463 isProb = !FCmp->isTrueWhenEqual(); 464 } else if (FCmp->getPredicate() == FCmpInst::FCMP_ORD) { 465 // !isnan -> Likely 466 isProb = true; 467 } else if (FCmp->getPredicate() == FCmpInst::FCMP_UNO) { 468 // isnan -> Unlikely 469 isProb = false; 470 } else { 471 return false; 472 } 473 474 unsigned TakenIdx = 0, NonTakenIdx = 1; 475 476 if (!isProb) 477 std::swap(TakenIdx, NonTakenIdx); 478 479 setEdgeWeight(BB, TakenIdx, FPH_TAKEN_WEIGHT); 480 setEdgeWeight(BB, NonTakenIdx, FPH_NONTAKEN_WEIGHT); 481 482 return true; 483 } 484 485 bool BranchProbabilityInfo::calcInvokeHeuristics(BasicBlock *BB) { 486 InvokeInst *II = dyn_cast<InvokeInst>(BB->getTerminator()); 487 if (!II) 488 return false; 489 490 setEdgeWeight(BB, 0/*Index for Normal*/, IH_TAKEN_WEIGHT); 491 setEdgeWeight(BB, 1/*Index for Unwind*/, IH_NONTAKEN_WEIGHT); 492 return true; 493 } 494 495 void BranchProbabilityInfo::getAnalysisUsage(AnalysisUsage &AU) const { 496 AU.addRequired<LoopInfoWrapperPass>(); 497 AU.setPreservesAll(); 498 } 499 500 bool BranchProbabilityInfo::runOnFunction(Function &F) { 501 DEBUG(dbgs() << "---- Branch Probability Info : " << F.getName() 502 << " ----\n\n"); 503 LastF = &F; // Store the last function we ran on for printing. 504 LI = &getAnalysis<LoopInfoWrapperPass>().getLoopInfo(); 505 assert(PostDominatedByUnreachable.empty()); 506 assert(PostDominatedByColdCall.empty()); 507 508 // Walk the basic blocks in post-order so that we can build up state about 509 // the successors of a block iteratively. 510 for (auto BB : post_order(&F.getEntryBlock())) { 511 DEBUG(dbgs() << "Computing probabilities for " << BB->getName() << "\n"); 512 if (calcUnreachableHeuristics(BB)) 513 continue; 514 if (calcMetadataWeights(BB)) 515 continue; 516 if (calcColdCallHeuristics(BB)) 517 continue; 518 if (calcLoopBranchHeuristics(BB)) 519 continue; 520 if (calcPointerHeuristics(BB)) 521 continue; 522 if (calcZeroHeuristics(BB)) 523 continue; 524 if (calcFloatingPointHeuristics(BB)) 525 continue; 526 calcInvokeHeuristics(BB); 527 } 528 529 PostDominatedByUnreachable.clear(); 530 PostDominatedByColdCall.clear(); 531 return false; 532 } 533 534 void BranchProbabilityInfo::print(raw_ostream &OS, const Module *) const { 535 OS << "---- Branch Probabilities ----\n"; 536 // We print the probabilities from the last function the analysis ran over, 537 // or the function it is currently running over. 538 assert(LastF && "Cannot print prior to running over a function"); 539 for (Function::const_iterator BI = LastF->begin(), BE = LastF->end(); 540 BI != BE; ++BI) { 541 for (succ_const_iterator SI = succ_begin(BI), SE = succ_end(BI); 542 SI != SE; ++SI) { 543 printEdgeProbability(OS << " ", BI, *SI); 544 } 545 } 546 } 547 548 uint32_t BranchProbabilityInfo::getSumForBlock(const BasicBlock *BB) const { 549 uint32_t Sum = 0; 550 551 for (succ_const_iterator I = succ_begin(BB), E = succ_end(BB); I != E; ++I) { 552 uint32_t Weight = getEdgeWeight(BB, I.getSuccessorIndex()); 553 uint32_t PrevSum = Sum; 554 555 Sum += Weight; 556 assert(Sum > PrevSum); (void) PrevSum; 557 } 558 559 return Sum; 560 } 561 562 bool BranchProbabilityInfo:: 563 isEdgeHot(const BasicBlock *Src, const BasicBlock *Dst) const { 564 // Hot probability is at least 4/5 = 80% 565 // FIXME: Compare against a static "hot" BranchProbability. 566 return getEdgeProbability(Src, Dst) > BranchProbability(4, 5); 567 } 568 569 BasicBlock *BranchProbabilityInfo::getHotSucc(BasicBlock *BB) const { 570 uint32_t Sum = 0; 571 uint32_t MaxWeight = 0; 572 BasicBlock *MaxSucc = nullptr; 573 574 for (succ_iterator I = succ_begin(BB), E = succ_end(BB); I != E; ++I) { 575 BasicBlock *Succ = *I; 576 uint32_t Weight = getEdgeWeight(BB, Succ); 577 uint32_t PrevSum = Sum; 578 579 Sum += Weight; 580 assert(Sum > PrevSum); (void) PrevSum; 581 582 if (Weight > MaxWeight) { 583 MaxWeight = Weight; 584 MaxSucc = Succ; 585 } 586 } 587 588 // Hot probability is at least 4/5 = 80% 589 if (BranchProbability(MaxWeight, Sum) > BranchProbability(4, 5)) 590 return MaxSucc; 591 592 return nullptr; 593 } 594 595 /// Get the raw edge weight for the edge. If can't find it, return 596 /// DEFAULT_WEIGHT value. Here an edge is specified using PredBlock and an index 597 /// to the successors. 598 uint32_t BranchProbabilityInfo:: 599 getEdgeWeight(const BasicBlock *Src, unsigned IndexInSuccessors) const { 600 DenseMap<Edge, uint32_t>::const_iterator I = 601 Weights.find(std::make_pair(Src, IndexInSuccessors)); 602 603 if (I != Weights.end()) 604 return I->second; 605 606 return DEFAULT_WEIGHT; 607 } 608 609 uint32_t BranchProbabilityInfo::getEdgeWeight(const BasicBlock *Src, 610 succ_const_iterator Dst) const { 611 return getEdgeWeight(Src, Dst.getSuccessorIndex()); 612 } 613 614 /// Get the raw edge weight calculated for the block pair. This returns the sum 615 /// of all raw edge weights from Src to Dst. 616 uint32_t BranchProbabilityInfo:: 617 getEdgeWeight(const BasicBlock *Src, const BasicBlock *Dst) const { 618 uint32_t Weight = 0; 619 DenseMap<Edge, uint32_t>::const_iterator MapI; 620 for (succ_const_iterator I = succ_begin(Src), E = succ_end(Src); I != E; ++I) 621 if (*I == Dst) { 622 MapI = Weights.find(std::make_pair(Src, I.getSuccessorIndex())); 623 if (MapI != Weights.end()) 624 Weight += MapI->second; 625 } 626 return (Weight == 0) ? DEFAULT_WEIGHT : Weight; 627 } 628 629 /// Set the edge weight for a given edge specified by PredBlock and an index 630 /// to the successors. 631 void BranchProbabilityInfo:: 632 setEdgeWeight(const BasicBlock *Src, unsigned IndexInSuccessors, 633 uint32_t Weight) { 634 Weights[std::make_pair(Src, IndexInSuccessors)] = Weight; 635 DEBUG(dbgs() << "set edge " << Src->getName() << " -> " 636 << IndexInSuccessors << " successor weight to " 637 << Weight << "\n"); 638 } 639 640 /// Get an edge's probability, relative to other out-edges from Src. 641 BranchProbability BranchProbabilityInfo:: 642 getEdgeProbability(const BasicBlock *Src, unsigned IndexInSuccessors) const { 643 uint32_t N = getEdgeWeight(Src, IndexInSuccessors); 644 uint32_t D = getSumForBlock(Src); 645 646 return BranchProbability(N, D); 647 } 648 649 /// Get the probability of going from Src to Dst. It returns the sum of all 650 /// probabilities for edges from Src to Dst. 651 BranchProbability BranchProbabilityInfo:: 652 getEdgeProbability(const BasicBlock *Src, const BasicBlock *Dst) const { 653 654 uint32_t N = getEdgeWeight(Src, Dst); 655 uint32_t D = getSumForBlock(Src); 656 657 return BranchProbability(N, D); 658 } 659 660 raw_ostream & 661 BranchProbabilityInfo::printEdgeProbability(raw_ostream &OS, 662 const BasicBlock *Src, 663 const BasicBlock *Dst) const { 664 665 const BranchProbability Prob = getEdgeProbability(Src, Dst); 666 OS << "edge " << Src->getName() << " -> " << Dst->getName() 667 << " probability is " << Prob 668 << (isEdgeHot(Src, Dst) ? " [HOT edge]\n" : "\n"); 669 670 return OS; 671 } 672