1 //===- BranchFolding.cpp - Fold machine code branch instructions ----------===// 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 pass forwards branches to unconditional branches to make them branch 11 // directly to the target block. This pass often results in dead MBB's, which 12 // it then removes. 13 // 14 // Note that this pass must be run after register allocation, it cannot handle 15 // SSA form. It also must handle virtual registers for targets that emit virtual 16 // ISA (e.g. NVPTX). 17 // 18 //===----------------------------------------------------------------------===// 19 20 #include "BranchFolding.h" 21 #include "llvm/ADT/BitVector.h" 22 #include "llvm/ADT/DenseMap.h" 23 #include "llvm/ADT/STLExtras.h" 24 #include "llvm/ADT/SmallPtrSet.h" 25 #include "llvm/ADT/SmallSet.h" 26 #include "llvm/ADT/SmallVector.h" 27 #include "llvm/ADT/Statistic.h" 28 #include "llvm/CodeGen/Analysis.h" 29 #include "llvm/CodeGen/LivePhysRegs.h" 30 #include "llvm/CodeGen/MachineBasicBlock.h" 31 #include "llvm/CodeGen/MachineBlockFrequencyInfo.h" 32 #include "llvm/CodeGen/MachineBranchProbabilityInfo.h" 33 #include "llvm/CodeGen/MachineFunction.h" 34 #include "llvm/CodeGen/MachineFunctionPass.h" 35 #include "llvm/CodeGen/MachineInstr.h" 36 #include "llvm/CodeGen/MachineInstrBuilder.h" 37 #include "llvm/CodeGen/MachineJumpTableInfo.h" 38 #include "llvm/CodeGen/MachineLoopInfo.h" 39 #include "llvm/CodeGen/MachineModuleInfo.h" 40 #include "llvm/CodeGen/MachineOperand.h" 41 #include "llvm/CodeGen/MachineRegisterInfo.h" 42 #include "llvm/CodeGen/TargetPassConfig.h" 43 #include "llvm/IR/DebugInfoMetadata.h" 44 #include "llvm/IR/DebugLoc.h" 45 #include "llvm/IR/Function.h" 46 #include "llvm/MC/LaneBitmask.h" 47 #include "llvm/MC/MCRegisterInfo.h" 48 #include "llvm/Pass.h" 49 #include "llvm/Support/BlockFrequency.h" 50 #include "llvm/Support/BranchProbability.h" 51 #include "llvm/Support/CommandLine.h" 52 #include "llvm/Support/Debug.h" 53 #include "llvm/Support/ErrorHandling.h" 54 #include "llvm/Support/raw_ostream.h" 55 #include "llvm/Target/TargetInstrInfo.h" 56 #include "llvm/Target/TargetMachine.h" 57 #include "llvm/Target/TargetOpcodes.h" 58 #include "llvm/Target/TargetRegisterInfo.h" 59 #include "llvm/Target/TargetSubtargetInfo.h" 60 #include <cassert> 61 #include <cstddef> 62 #include <iterator> 63 #include <numeric> 64 #include <vector> 65 66 using namespace llvm; 67 68 #define DEBUG_TYPE "branch-folder" 69 70 STATISTIC(NumDeadBlocks, "Number of dead blocks removed"); 71 STATISTIC(NumBranchOpts, "Number of branches optimized"); 72 STATISTIC(NumTailMerge , "Number of block tails merged"); 73 STATISTIC(NumHoist , "Number of times common instructions are hoisted"); 74 STATISTIC(NumTailCalls, "Number of tail calls optimized"); 75 76 static cl::opt<cl::boolOrDefault> FlagEnableTailMerge("enable-tail-merge", 77 cl::init(cl::BOU_UNSET), cl::Hidden); 78 79 // Throttle for huge numbers of predecessors (compile speed problems) 80 static cl::opt<unsigned> 81 TailMergeThreshold("tail-merge-threshold", 82 cl::desc("Max number of predecessors to consider tail merging"), 83 cl::init(150), cl::Hidden); 84 85 // Heuristic for tail merging (and, inversely, tail duplication). 86 // TODO: This should be replaced with a target query. 87 static cl::opt<unsigned> 88 TailMergeSize("tail-merge-size", 89 cl::desc("Min number of instructions to consider tail merging"), 90 cl::init(3), cl::Hidden); 91 92 namespace { 93 94 /// BranchFolderPass - Wrap branch folder in a machine function pass. 95 class BranchFolderPass : public MachineFunctionPass { 96 public: 97 static char ID; 98 99 explicit BranchFolderPass(): MachineFunctionPass(ID) {} 100 101 bool runOnMachineFunction(MachineFunction &MF) override; 102 103 void getAnalysisUsage(AnalysisUsage &AU) const override { 104 AU.addRequired<MachineBlockFrequencyInfo>(); 105 AU.addRequired<MachineBranchProbabilityInfo>(); 106 AU.addRequired<TargetPassConfig>(); 107 MachineFunctionPass::getAnalysisUsage(AU); 108 } 109 }; 110 111 } // end anonymous namespace 112 113 char BranchFolderPass::ID = 0; 114 115 char &llvm::BranchFolderPassID = BranchFolderPass::ID; 116 117 INITIALIZE_PASS(BranchFolderPass, DEBUG_TYPE, 118 "Control Flow Optimizer", false, false) 119 120 bool BranchFolderPass::runOnMachineFunction(MachineFunction &MF) { 121 if (skipFunction(*MF.getFunction())) 122 return false; 123 124 TargetPassConfig *PassConfig = &getAnalysis<TargetPassConfig>(); 125 // TailMerge can create jump into if branches that make CFG irreducible for 126 // HW that requires structurized CFG. 127 bool EnableTailMerge = !MF.getTarget().requiresStructuredCFG() && 128 PassConfig->getEnableTailMerge(); 129 BranchFolder::MBFIWrapper MBBFreqInfo( 130 getAnalysis<MachineBlockFrequencyInfo>()); 131 BranchFolder Folder(EnableTailMerge, /*CommonHoist=*/true, MBBFreqInfo, 132 getAnalysis<MachineBranchProbabilityInfo>()); 133 return Folder.OptimizeFunction(MF, MF.getSubtarget().getInstrInfo(), 134 MF.getSubtarget().getRegisterInfo(), 135 getAnalysisIfAvailable<MachineModuleInfo>()); 136 } 137 138 BranchFolder::BranchFolder(bool defaultEnableTailMerge, bool CommonHoist, 139 MBFIWrapper &FreqInfo, 140 const MachineBranchProbabilityInfo &ProbInfo, 141 unsigned MinTailLength) 142 : EnableHoistCommonCode(CommonHoist), MinCommonTailLength(MinTailLength), 143 MBBFreqInfo(FreqInfo), MBPI(ProbInfo) { 144 if (MinCommonTailLength == 0) 145 MinCommonTailLength = TailMergeSize; 146 switch (FlagEnableTailMerge) { 147 case cl::BOU_UNSET: EnableTailMerge = defaultEnableTailMerge; break; 148 case cl::BOU_TRUE: EnableTailMerge = true; break; 149 case cl::BOU_FALSE: EnableTailMerge = false; break; 150 } 151 } 152 153 void BranchFolder::RemoveDeadBlock(MachineBasicBlock *MBB) { 154 assert(MBB->pred_empty() && "MBB must be dead!"); 155 DEBUG(dbgs() << "\nRemoving MBB: " << *MBB); 156 157 MachineFunction *MF = MBB->getParent(); 158 // drop all successors. 159 while (!MBB->succ_empty()) 160 MBB->removeSuccessor(MBB->succ_end()-1); 161 162 // Avoid matching if this pointer gets reused. 163 TriedMerging.erase(MBB); 164 165 // Remove the block. 166 MF->erase(MBB); 167 FuncletMembership.erase(MBB); 168 if (MLI) 169 MLI->removeBlock(MBB); 170 } 171 172 bool BranchFolder::OptimizeFunction(MachineFunction &MF, 173 const TargetInstrInfo *tii, 174 const TargetRegisterInfo *tri, 175 MachineModuleInfo *mmi, 176 MachineLoopInfo *mli, bool AfterPlacement) { 177 if (!tii) return false; 178 179 TriedMerging.clear(); 180 181 MachineRegisterInfo &MRI = MF.getRegInfo(); 182 AfterBlockPlacement = AfterPlacement; 183 TII = tii; 184 TRI = tri; 185 MMI = mmi; 186 MLI = mli; 187 this->MRI = &MRI; 188 189 UpdateLiveIns = MRI.tracksLiveness() && TRI->trackLivenessAfterRegAlloc(MF); 190 if (!UpdateLiveIns) 191 MRI.invalidateLiveness(); 192 193 // Fix CFG. The later algorithms expect it to be right. 194 bool MadeChange = false; 195 for (MachineBasicBlock &MBB : MF) { 196 MachineBasicBlock *TBB = nullptr, *FBB = nullptr; 197 SmallVector<MachineOperand, 4> Cond; 198 if (!TII->analyzeBranch(MBB, TBB, FBB, Cond, true)) 199 MadeChange |= MBB.CorrectExtraCFGEdges(TBB, FBB, !Cond.empty()); 200 } 201 202 // Recalculate funclet membership. 203 FuncletMembership = getFuncletMembership(MF); 204 205 bool MadeChangeThisIteration = true; 206 while (MadeChangeThisIteration) { 207 MadeChangeThisIteration = TailMergeBlocks(MF); 208 // No need to clean up if tail merging does not change anything after the 209 // block placement. 210 if (!AfterBlockPlacement || MadeChangeThisIteration) 211 MadeChangeThisIteration |= OptimizeBranches(MF); 212 if (EnableHoistCommonCode) 213 MadeChangeThisIteration |= HoistCommonCode(MF); 214 MadeChange |= MadeChangeThisIteration; 215 } 216 217 // See if any jump tables have become dead as the code generator 218 // did its thing. 219 MachineJumpTableInfo *JTI = MF.getJumpTableInfo(); 220 if (!JTI) 221 return MadeChange; 222 223 // Walk the function to find jump tables that are live. 224 BitVector JTIsLive(JTI->getJumpTables().size()); 225 for (const MachineBasicBlock &BB : MF) { 226 for (const MachineInstr &I : BB) 227 for (const MachineOperand &Op : I.operands()) { 228 if (!Op.isJTI()) continue; 229 230 // Remember that this JT is live. 231 JTIsLive.set(Op.getIndex()); 232 } 233 } 234 235 // Finally, remove dead jump tables. This happens when the 236 // indirect jump was unreachable (and thus deleted). 237 for (unsigned i = 0, e = JTIsLive.size(); i != e; ++i) 238 if (!JTIsLive.test(i)) { 239 JTI->RemoveJumpTable(i); 240 MadeChange = true; 241 } 242 243 return MadeChange; 244 } 245 246 //===----------------------------------------------------------------------===// 247 // Tail Merging of Blocks 248 //===----------------------------------------------------------------------===// 249 250 /// HashMachineInstr - Compute a hash value for MI and its operands. 251 static unsigned HashMachineInstr(const MachineInstr &MI) { 252 unsigned Hash = MI.getOpcode(); 253 for (unsigned i = 0, e = MI.getNumOperands(); i != e; ++i) { 254 const MachineOperand &Op = MI.getOperand(i); 255 256 // Merge in bits from the operand if easy. We can't use MachineOperand's 257 // hash_code here because it's not deterministic and we sort by hash value 258 // later. 259 unsigned OperandHash = 0; 260 switch (Op.getType()) { 261 case MachineOperand::MO_Register: 262 OperandHash = Op.getReg(); 263 break; 264 case MachineOperand::MO_Immediate: 265 OperandHash = Op.getImm(); 266 break; 267 case MachineOperand::MO_MachineBasicBlock: 268 OperandHash = Op.getMBB()->getNumber(); 269 break; 270 case MachineOperand::MO_FrameIndex: 271 case MachineOperand::MO_ConstantPoolIndex: 272 case MachineOperand::MO_JumpTableIndex: 273 OperandHash = Op.getIndex(); 274 break; 275 case MachineOperand::MO_GlobalAddress: 276 case MachineOperand::MO_ExternalSymbol: 277 // Global address / external symbol are too hard, don't bother, but do 278 // pull in the offset. 279 OperandHash = Op.getOffset(); 280 break; 281 default: 282 break; 283 } 284 285 Hash += ((OperandHash << 3) | Op.getType()) << (i & 31); 286 } 287 return Hash; 288 } 289 290 /// HashEndOfMBB - Hash the last instruction in the MBB. 291 static unsigned HashEndOfMBB(const MachineBasicBlock &MBB) { 292 MachineBasicBlock::const_iterator I = MBB.getLastNonDebugInstr(); 293 if (I == MBB.end()) 294 return 0; 295 296 return HashMachineInstr(*I); 297 } 298 299 // Whether MI should be counted as an instruction when calculating common tail. 300 static bool countsAsInstruction(const MachineInstr &MI) { 301 return !(MI.isDebugValue() || MI.isCFIInstruction()); 302 } 303 304 /// ComputeCommonTailLength - Given two machine basic blocks, compute the number 305 /// of instructions they actually have in common together at their end. Return 306 /// iterators for the first shared instruction in each block. 307 static unsigned ComputeCommonTailLength(MachineBasicBlock *MBB1, 308 MachineBasicBlock *MBB2, 309 MachineBasicBlock::iterator &I1, 310 MachineBasicBlock::iterator &I2) { 311 I1 = MBB1->end(); 312 I2 = MBB2->end(); 313 314 unsigned TailLen = 0; 315 while (I1 != MBB1->begin() && I2 != MBB2->begin()) { 316 --I1; --I2; 317 // Skip debugging pseudos; necessary to avoid changing the code. 318 while (!countsAsInstruction(*I1)) { 319 if (I1==MBB1->begin()) { 320 while (!countsAsInstruction(*I2)) { 321 if (I2==MBB2->begin()) 322 // I1==DBG at begin; I2==DBG at begin 323 return TailLen; 324 --I2; 325 } 326 ++I2; 327 // I1==DBG at begin; I2==non-DBG, or first of DBGs not at begin 328 return TailLen; 329 } 330 --I1; 331 } 332 // I1==first (untested) non-DBG preceding known match 333 while (!countsAsInstruction(*I2)) { 334 if (I2==MBB2->begin()) { 335 ++I1; 336 // I1==non-DBG, or first of DBGs not at begin; I2==DBG at begin 337 return TailLen; 338 } 339 --I2; 340 } 341 // I1, I2==first (untested) non-DBGs preceding known match 342 if (!I1->isIdenticalTo(*I2) || 343 // FIXME: This check is dubious. It's used to get around a problem where 344 // people incorrectly expect inline asm directives to remain in the same 345 // relative order. This is untenable because normal compiler 346 // optimizations (like this one) may reorder and/or merge these 347 // directives. 348 I1->isInlineAsm()) { 349 ++I1; ++I2; 350 break; 351 } 352 ++TailLen; 353 } 354 // Back past possible debugging pseudos at beginning of block. This matters 355 // when one block differs from the other only by whether debugging pseudos 356 // are present at the beginning. (This way, the various checks later for 357 // I1==MBB1->begin() work as expected.) 358 if (I1 == MBB1->begin() && I2 != MBB2->begin()) { 359 --I2; 360 while (I2->isDebugValue()) { 361 if (I2 == MBB2->begin()) 362 return TailLen; 363 --I2; 364 } 365 ++I2; 366 } 367 if (I2 == MBB2->begin() && I1 != MBB1->begin()) { 368 --I1; 369 while (I1->isDebugValue()) { 370 if (I1 == MBB1->begin()) 371 return TailLen; 372 --I1; 373 } 374 ++I1; 375 } 376 377 // Ensure that I1 and I2 do not point to a CFI_INSTRUCTION. This can happen if 378 // I1 and I2 are non-identical when compared and then one or both of them ends 379 // up pointing to a CFI instruction after being incremented. For example: 380 /* 381 BB1: 382 ... 383 INSTRUCTION_A 384 ADD32ri8 <- last common instruction 385 ... 386 BB2: 387 ... 388 INSTRUCTION_B 389 CFI_INSTRUCTION 390 ADD32ri8 <- last common instruction 391 ... 392 */ 393 // When INSTRUCTION_A and INSTRUCTION_B are compared as not equal, after 394 // incrementing the iterators, I1 will point to ADD, however I2 will point to 395 // the CFI instruction. Later on, this leads to BB2 being 'hacked off' at the 396 // wrong place (in ReplaceTailWithBranchTo()) which results in losing this CFI 397 // instruction. 398 while (I1 != MBB1->end() && I1->isCFIInstruction()) { 399 ++I1; 400 } 401 402 while (I2 != MBB2->end() && I2->isCFIInstruction()) { 403 ++I2; 404 } 405 return TailLen; 406 } 407 408 void BranchFolder::replaceTailWithBranchTo(MachineBasicBlock::iterator OldInst, 409 MachineBasicBlock &NewDest) { 410 if (UpdateLiveIns) { 411 // OldInst should always point to an instruction. 412 MachineBasicBlock &OldMBB = *OldInst->getParent(); 413 LiveRegs.clear(); 414 LiveRegs.addLiveOuts(OldMBB); 415 // Move backward to the place where will insert the jump. 416 MachineBasicBlock::iterator I = OldMBB.end(); 417 do { 418 --I; 419 LiveRegs.stepBackward(*I); 420 } while (I != OldInst); 421 422 // Merging the tails may have switched some undef operand to non-undef ones. 423 // Add IMPLICIT_DEFS into OldMBB as necessary to have a definition of the 424 // register. 425 for (MachineBasicBlock::RegisterMaskPair P : NewDest.liveins()) { 426 // We computed the liveins with computeLiveIn earlier and should only see 427 // full registers: 428 assert(P.LaneMask == LaneBitmask::getAll() && 429 "Can only handle full register."); 430 MCPhysReg Reg = P.PhysReg; 431 if (!LiveRegs.available(*MRI, Reg)) 432 continue; 433 DebugLoc DL; 434 BuildMI(OldMBB, OldInst, DL, TII->get(TargetOpcode::IMPLICIT_DEF), Reg); 435 } 436 } 437 438 TII->ReplaceTailWithBranchTo(OldInst, &NewDest); 439 ++NumTailMerge; 440 } 441 442 MachineBasicBlock *BranchFolder::SplitMBBAt(MachineBasicBlock &CurMBB, 443 MachineBasicBlock::iterator BBI1, 444 const BasicBlock *BB) { 445 if (!TII->isLegalToSplitMBBAt(CurMBB, BBI1)) 446 return nullptr; 447 448 MachineFunction &MF = *CurMBB.getParent(); 449 450 // Create the fall-through block. 451 MachineFunction::iterator MBBI = CurMBB.getIterator(); 452 MachineBasicBlock *NewMBB = MF.CreateMachineBasicBlock(BB); 453 CurMBB.getParent()->insert(++MBBI, NewMBB); 454 455 // Move all the successors of this block to the specified block. 456 NewMBB->transferSuccessors(&CurMBB); 457 458 // Add an edge from CurMBB to NewMBB for the fall-through. 459 CurMBB.addSuccessor(NewMBB); 460 461 // Splice the code over. 462 NewMBB->splice(NewMBB->end(), &CurMBB, BBI1, CurMBB.end()); 463 464 // NewMBB belongs to the same loop as CurMBB. 465 if (MLI) 466 if (MachineLoop *ML = MLI->getLoopFor(&CurMBB)) 467 ML->addBasicBlockToLoop(NewMBB, MLI->getBase()); 468 469 // NewMBB inherits CurMBB's block frequency. 470 MBBFreqInfo.setBlockFreq(NewMBB, MBBFreqInfo.getBlockFreq(&CurMBB)); 471 472 if (UpdateLiveIns) 473 computeAndAddLiveIns(LiveRegs, *NewMBB); 474 475 // Add the new block to the funclet. 476 const auto &FuncletI = FuncletMembership.find(&CurMBB); 477 if (FuncletI != FuncletMembership.end()) { 478 auto n = FuncletI->second; 479 FuncletMembership[NewMBB] = n; 480 } 481 482 return NewMBB; 483 } 484 485 /// EstimateRuntime - Make a rough estimate for how long it will take to run 486 /// the specified code. 487 static unsigned EstimateRuntime(MachineBasicBlock::iterator I, 488 MachineBasicBlock::iterator E) { 489 unsigned Time = 0; 490 for (; I != E; ++I) { 491 if (!countsAsInstruction(*I)) 492 continue; 493 if (I->isCall()) 494 Time += 10; 495 else if (I->mayLoad() || I->mayStore()) 496 Time += 2; 497 else 498 ++Time; 499 } 500 return Time; 501 } 502 503 // CurMBB needs to add an unconditional branch to SuccMBB (we removed these 504 // branches temporarily for tail merging). In the case where CurMBB ends 505 // with a conditional branch to the next block, optimize by reversing the 506 // test and conditionally branching to SuccMBB instead. 507 static void FixTail(MachineBasicBlock *CurMBB, MachineBasicBlock *SuccBB, 508 const TargetInstrInfo *TII) { 509 MachineFunction *MF = CurMBB->getParent(); 510 MachineFunction::iterator I = std::next(MachineFunction::iterator(CurMBB)); 511 MachineBasicBlock *TBB = nullptr, *FBB = nullptr; 512 SmallVector<MachineOperand, 4> Cond; 513 DebugLoc dl = CurMBB->findBranchDebugLoc(); 514 if (I != MF->end() && !TII->analyzeBranch(*CurMBB, TBB, FBB, Cond, true)) { 515 MachineBasicBlock *NextBB = &*I; 516 if (TBB == NextBB && !Cond.empty() && !FBB) { 517 if (!TII->reverseBranchCondition(Cond)) { 518 TII->removeBranch(*CurMBB); 519 TII->insertBranch(*CurMBB, SuccBB, nullptr, Cond, dl); 520 return; 521 } 522 } 523 } 524 TII->insertBranch(*CurMBB, SuccBB, nullptr, 525 SmallVector<MachineOperand, 0>(), dl); 526 } 527 528 bool 529 BranchFolder::MergePotentialsElt::operator<(const MergePotentialsElt &o) const { 530 if (getHash() < o.getHash()) 531 return true; 532 if (getHash() > o.getHash()) 533 return false; 534 if (getBlock()->getNumber() < o.getBlock()->getNumber()) 535 return true; 536 if (getBlock()->getNumber() > o.getBlock()->getNumber()) 537 return false; 538 // _GLIBCXX_DEBUG checks strict weak ordering, which involves comparing 539 // an object with itself. 540 #ifndef _GLIBCXX_DEBUG 541 llvm_unreachable("Predecessor appears twice"); 542 #else 543 return false; 544 #endif 545 } 546 547 BlockFrequency 548 BranchFolder::MBFIWrapper::getBlockFreq(const MachineBasicBlock *MBB) const { 549 auto I = MergedBBFreq.find(MBB); 550 551 if (I != MergedBBFreq.end()) 552 return I->second; 553 554 return MBFI.getBlockFreq(MBB); 555 } 556 557 void BranchFolder::MBFIWrapper::setBlockFreq(const MachineBasicBlock *MBB, 558 BlockFrequency F) { 559 MergedBBFreq[MBB] = F; 560 } 561 562 raw_ostream & 563 BranchFolder::MBFIWrapper::printBlockFreq(raw_ostream &OS, 564 const MachineBasicBlock *MBB) const { 565 return MBFI.printBlockFreq(OS, getBlockFreq(MBB)); 566 } 567 568 raw_ostream & 569 BranchFolder::MBFIWrapper::printBlockFreq(raw_ostream &OS, 570 const BlockFrequency Freq) const { 571 return MBFI.printBlockFreq(OS, Freq); 572 } 573 574 void BranchFolder::MBFIWrapper::view(const Twine &Name, bool isSimple) { 575 MBFI.view(Name, isSimple); 576 } 577 578 uint64_t 579 BranchFolder::MBFIWrapper::getEntryFreq() const { 580 return MBFI.getEntryFreq(); 581 } 582 583 /// CountTerminators - Count the number of terminators in the given 584 /// block and set I to the position of the first non-terminator, if there 585 /// is one, or MBB->end() otherwise. 586 static unsigned CountTerminators(MachineBasicBlock *MBB, 587 MachineBasicBlock::iterator &I) { 588 I = MBB->end(); 589 unsigned NumTerms = 0; 590 while (true) { 591 if (I == MBB->begin()) { 592 I = MBB->end(); 593 break; 594 } 595 --I; 596 if (!I->isTerminator()) break; 597 ++NumTerms; 598 } 599 return NumTerms; 600 } 601 602 /// A no successor, non-return block probably ends in unreachable and is cold. 603 /// Also consider a block that ends in an indirect branch to be a return block, 604 /// since many targets use plain indirect branches to return. 605 static bool blockEndsInUnreachable(const MachineBasicBlock *MBB) { 606 if (!MBB->succ_empty()) 607 return false; 608 if (MBB->empty()) 609 return true; 610 return !(MBB->back().isReturn() || MBB->back().isIndirectBranch()); 611 } 612 613 /// ProfitableToMerge - Check if two machine basic blocks have a common tail 614 /// and decide if it would be profitable to merge those tails. Return the 615 /// length of the common tail and iterators to the first common instruction 616 /// in each block. 617 /// MBB1, MBB2 The blocks to check 618 /// MinCommonTailLength Minimum size of tail block to be merged. 619 /// CommonTailLen Out parameter to record the size of the shared tail between 620 /// MBB1 and MBB2 621 /// I1, I2 Iterator references that will be changed to point to the first 622 /// instruction in the common tail shared by MBB1,MBB2 623 /// SuccBB A common successor of MBB1, MBB2 which are in a canonical form 624 /// relative to SuccBB 625 /// PredBB The layout predecessor of SuccBB, if any. 626 /// FuncletMembership map from block to funclet #. 627 /// AfterPlacement True if we are merging blocks after layout. Stricter 628 /// thresholds apply to prevent undoing tail-duplication. 629 static bool 630 ProfitableToMerge(MachineBasicBlock *MBB1, MachineBasicBlock *MBB2, 631 unsigned MinCommonTailLength, unsigned &CommonTailLen, 632 MachineBasicBlock::iterator &I1, 633 MachineBasicBlock::iterator &I2, MachineBasicBlock *SuccBB, 634 MachineBasicBlock *PredBB, 635 DenseMap<const MachineBasicBlock *, int> &FuncletMembership, 636 bool AfterPlacement) { 637 // It is never profitable to tail-merge blocks from two different funclets. 638 if (!FuncletMembership.empty()) { 639 auto Funclet1 = FuncletMembership.find(MBB1); 640 assert(Funclet1 != FuncletMembership.end()); 641 auto Funclet2 = FuncletMembership.find(MBB2); 642 assert(Funclet2 != FuncletMembership.end()); 643 if (Funclet1->second != Funclet2->second) 644 return false; 645 } 646 647 CommonTailLen = ComputeCommonTailLength(MBB1, MBB2, I1, I2); 648 if (CommonTailLen == 0) 649 return false; 650 DEBUG(dbgs() << "Common tail length of BB#" << MBB1->getNumber() 651 << " and BB#" << MBB2->getNumber() << " is " << CommonTailLen 652 << '\n'); 653 654 // It's almost always profitable to merge any number of non-terminator 655 // instructions with the block that falls through into the common successor. 656 // This is true only for a single successor. For multiple successors, we are 657 // trading a conditional branch for an unconditional one. 658 // TODO: Re-visit successor size for non-layout tail merging. 659 if ((MBB1 == PredBB || MBB2 == PredBB) && 660 (!AfterPlacement || MBB1->succ_size() == 1)) { 661 MachineBasicBlock::iterator I; 662 unsigned NumTerms = CountTerminators(MBB1 == PredBB ? MBB2 : MBB1, I); 663 if (CommonTailLen > NumTerms) 664 return true; 665 } 666 667 // If these are identical non-return blocks with no successors, merge them. 668 // Such blocks are typically cold calls to noreturn functions like abort, and 669 // are unlikely to become a fallthrough target after machine block placement. 670 // Tail merging these blocks is unlikely to create additional unconditional 671 // branches, and will reduce the size of this cold code. 672 if (I1 == MBB1->begin() && I2 == MBB2->begin() && 673 blockEndsInUnreachable(MBB1) && blockEndsInUnreachable(MBB2)) 674 return true; 675 676 // If one of the blocks can be completely merged and happens to be in 677 // a position where the other could fall through into it, merge any number 678 // of instructions, because it can be done without a branch. 679 // TODO: If the blocks are not adjacent, move one of them so that they are? 680 if (MBB1->isLayoutSuccessor(MBB2) && I2 == MBB2->begin()) 681 return true; 682 if (MBB2->isLayoutSuccessor(MBB1) && I1 == MBB1->begin()) 683 return true; 684 685 // If both blocks are identical and end in a branch, merge them unless they 686 // both have a fallthrough predecessor and successor. 687 // We can only do this after block placement because it depends on whether 688 // there are fallthroughs, and we don't know until after layout. 689 if (AfterPlacement && I1 == MBB1->begin() && I2 == MBB2->begin()) { 690 auto BothFallThrough = [](MachineBasicBlock *MBB) { 691 if (MBB->succ_size() != 0 && !MBB->canFallThrough()) 692 return false; 693 MachineFunction::iterator I(MBB); 694 MachineFunction *MF = MBB->getParent(); 695 return (MBB != &*MF->begin()) && std::prev(I)->canFallThrough(); 696 }; 697 if (!BothFallThrough(MBB1) || !BothFallThrough(MBB2)) 698 return true; 699 } 700 701 // If both blocks have an unconditional branch temporarily stripped out, 702 // count that as an additional common instruction for the following 703 // heuristics. This heuristic is only accurate for single-succ blocks, so to 704 // make sure that during layout merging and duplicating don't crash, we check 705 // for that when merging during layout. 706 unsigned EffectiveTailLen = CommonTailLen; 707 if (SuccBB && MBB1 != PredBB && MBB2 != PredBB && 708 (MBB1->succ_size() == 1 || !AfterPlacement) && 709 !MBB1->back().isBarrier() && 710 !MBB2->back().isBarrier()) 711 ++EffectiveTailLen; 712 713 // Check if the common tail is long enough to be worthwhile. 714 if (EffectiveTailLen >= MinCommonTailLength) 715 return true; 716 717 // If we are optimizing for code size, 2 instructions in common is enough if 718 // we don't have to split a block. At worst we will be introducing 1 new 719 // branch instruction, which is likely to be smaller than the 2 720 // instructions that would be deleted in the merge. 721 MachineFunction *MF = MBB1->getParent(); 722 return EffectiveTailLen >= 2 && MF->getFunction()->optForSize() && 723 (I1 == MBB1->begin() || I2 == MBB2->begin()); 724 } 725 726 unsigned BranchFolder::ComputeSameTails(unsigned CurHash, 727 unsigned MinCommonTailLength, 728 MachineBasicBlock *SuccBB, 729 MachineBasicBlock *PredBB) { 730 unsigned maxCommonTailLength = 0U; 731 SameTails.clear(); 732 MachineBasicBlock::iterator TrialBBI1, TrialBBI2; 733 MPIterator HighestMPIter = std::prev(MergePotentials.end()); 734 for (MPIterator CurMPIter = std::prev(MergePotentials.end()), 735 B = MergePotentials.begin(); 736 CurMPIter != B && CurMPIter->getHash() == CurHash; --CurMPIter) { 737 for (MPIterator I = std::prev(CurMPIter); I->getHash() == CurHash; --I) { 738 unsigned CommonTailLen; 739 if (ProfitableToMerge(CurMPIter->getBlock(), I->getBlock(), 740 MinCommonTailLength, 741 CommonTailLen, TrialBBI1, TrialBBI2, 742 SuccBB, PredBB, 743 FuncletMembership, 744 AfterBlockPlacement)) { 745 if (CommonTailLen > maxCommonTailLength) { 746 SameTails.clear(); 747 maxCommonTailLength = CommonTailLen; 748 HighestMPIter = CurMPIter; 749 SameTails.push_back(SameTailElt(CurMPIter, TrialBBI1)); 750 } 751 if (HighestMPIter == CurMPIter && 752 CommonTailLen == maxCommonTailLength) 753 SameTails.push_back(SameTailElt(I, TrialBBI2)); 754 } 755 if (I == B) 756 break; 757 } 758 } 759 return maxCommonTailLength; 760 } 761 762 void BranchFolder::RemoveBlocksWithHash(unsigned CurHash, 763 MachineBasicBlock *SuccBB, 764 MachineBasicBlock *PredBB) { 765 MPIterator CurMPIter, B; 766 for (CurMPIter = std::prev(MergePotentials.end()), 767 B = MergePotentials.begin(); 768 CurMPIter->getHash() == CurHash; --CurMPIter) { 769 // Put the unconditional branch back, if we need one. 770 MachineBasicBlock *CurMBB = CurMPIter->getBlock(); 771 if (SuccBB && CurMBB != PredBB) 772 FixTail(CurMBB, SuccBB, TII); 773 if (CurMPIter == B) 774 break; 775 } 776 if (CurMPIter->getHash() != CurHash) 777 CurMPIter++; 778 MergePotentials.erase(CurMPIter, MergePotentials.end()); 779 } 780 781 bool BranchFolder::CreateCommonTailOnlyBlock(MachineBasicBlock *&PredBB, 782 MachineBasicBlock *SuccBB, 783 unsigned maxCommonTailLength, 784 unsigned &commonTailIndex) { 785 commonTailIndex = 0; 786 unsigned TimeEstimate = ~0U; 787 for (unsigned i = 0, e = SameTails.size(); i != e; ++i) { 788 // Use PredBB if possible; that doesn't require a new branch. 789 if (SameTails[i].getBlock() == PredBB) { 790 commonTailIndex = i; 791 break; 792 } 793 // Otherwise, make a (fairly bogus) choice based on estimate of 794 // how long it will take the various blocks to execute. 795 unsigned t = EstimateRuntime(SameTails[i].getBlock()->begin(), 796 SameTails[i].getTailStartPos()); 797 if (t <= TimeEstimate) { 798 TimeEstimate = t; 799 commonTailIndex = i; 800 } 801 } 802 803 MachineBasicBlock::iterator BBI = 804 SameTails[commonTailIndex].getTailStartPos(); 805 MachineBasicBlock *MBB = SameTails[commonTailIndex].getBlock(); 806 807 DEBUG(dbgs() << "\nSplitting BB#" << MBB->getNumber() << ", size " 808 << maxCommonTailLength); 809 810 // If the split block unconditionally falls-thru to SuccBB, it will be 811 // merged. In control flow terms it should then take SuccBB's name. e.g. If 812 // SuccBB is an inner loop, the common tail is still part of the inner loop. 813 const BasicBlock *BB = (SuccBB && MBB->succ_size() == 1) ? 814 SuccBB->getBasicBlock() : MBB->getBasicBlock(); 815 MachineBasicBlock *newMBB = SplitMBBAt(*MBB, BBI, BB); 816 if (!newMBB) { 817 DEBUG(dbgs() << "... failed!"); 818 return false; 819 } 820 821 SameTails[commonTailIndex].setBlock(newMBB); 822 SameTails[commonTailIndex].setTailStartPos(newMBB->begin()); 823 824 // If we split PredBB, newMBB is the new predecessor. 825 if (PredBB == MBB) 826 PredBB = newMBB; 827 828 return true; 829 } 830 831 static void 832 mergeOperations(MachineBasicBlock::iterator MBBIStartPos, 833 MachineBasicBlock &MBBCommon) { 834 MachineBasicBlock *MBB = MBBIStartPos->getParent(); 835 // Note CommonTailLen does not necessarily matches the size of 836 // the common BB nor all its instructions because of debug 837 // instructions differences. 838 unsigned CommonTailLen = 0; 839 for (auto E = MBB->end(); MBBIStartPos != E; ++MBBIStartPos) 840 ++CommonTailLen; 841 842 MachineBasicBlock::reverse_iterator MBBI = MBB->rbegin(); 843 MachineBasicBlock::reverse_iterator MBBIE = MBB->rend(); 844 MachineBasicBlock::reverse_iterator MBBICommon = MBBCommon.rbegin(); 845 MachineBasicBlock::reverse_iterator MBBIECommon = MBBCommon.rend(); 846 847 while (CommonTailLen--) { 848 assert(MBBI != MBBIE && "Reached BB end within common tail length!"); 849 (void)MBBIE; 850 851 if (!countsAsInstruction(*MBBI)) { 852 ++MBBI; 853 continue; 854 } 855 856 while ((MBBICommon != MBBIECommon) && !countsAsInstruction(*MBBICommon)) 857 ++MBBICommon; 858 859 assert(MBBICommon != MBBIECommon && 860 "Reached BB end within common tail length!"); 861 assert(MBBICommon->isIdenticalTo(*MBBI) && "Expected matching MIIs!"); 862 863 // Merge MMOs from memory operations in the common block. 864 if (MBBICommon->mayLoad() || MBBICommon->mayStore()) 865 MBBICommon->setMemRefs(MBBICommon->mergeMemRefsWith(*MBBI)); 866 // Drop undef flags if they aren't present in all merged instructions. 867 for (unsigned I = 0, E = MBBICommon->getNumOperands(); I != E; ++I) { 868 MachineOperand &MO = MBBICommon->getOperand(I); 869 if (MO.isReg() && MO.isUndef()) { 870 const MachineOperand &OtherMO = MBBI->getOperand(I); 871 if (!OtherMO.isUndef()) 872 MO.setIsUndef(false); 873 } 874 } 875 876 ++MBBI; 877 ++MBBICommon; 878 } 879 } 880 881 void BranchFolder::mergeCommonTails(unsigned commonTailIndex) { 882 MachineBasicBlock *MBB = SameTails[commonTailIndex].getBlock(); 883 884 std::vector<MachineBasicBlock::iterator> NextCommonInsts(SameTails.size()); 885 for (unsigned int i = 0 ; i != SameTails.size() ; ++i) { 886 if (i != commonTailIndex) { 887 NextCommonInsts[i] = SameTails[i].getTailStartPos(); 888 mergeOperations(SameTails[i].getTailStartPos(), *MBB); 889 } else { 890 assert(SameTails[i].getTailStartPos() == MBB->begin() && 891 "MBB is not a common tail only block"); 892 } 893 } 894 895 for (auto &MI : *MBB) { 896 if (!countsAsInstruction(MI)) 897 continue; 898 DebugLoc DL = MI.getDebugLoc(); 899 for (unsigned int i = 0 ; i < NextCommonInsts.size() ; i++) { 900 if (i == commonTailIndex) 901 continue; 902 903 auto &Pos = NextCommonInsts[i]; 904 assert(Pos != SameTails[i].getBlock()->end() && 905 "Reached BB end within common tail"); 906 while (!countsAsInstruction(*Pos)) { 907 ++Pos; 908 assert(Pos != SameTails[i].getBlock()->end() && 909 "Reached BB end within common tail"); 910 } 911 assert(MI.isIdenticalTo(*Pos) && "Expected matching MIIs!"); 912 DL = DILocation::getMergedLocation(DL, Pos->getDebugLoc()); 913 NextCommonInsts[i] = ++Pos; 914 } 915 MI.setDebugLoc(DL); 916 } 917 918 if (UpdateLiveIns) { 919 LivePhysRegs NewLiveIns(*TRI); 920 computeLiveIns(NewLiveIns, *MBB); 921 922 // The flag merging may lead to some register uses no longer using the 923 // <undef> flag, add IMPLICIT_DEFs in the predecessors as necessary. 924 for (MachineBasicBlock *Pred : MBB->predecessors()) { 925 LiveRegs.init(*TRI); 926 LiveRegs.addLiveOuts(*Pred); 927 MachineBasicBlock::iterator InsertBefore = Pred->getFirstTerminator(); 928 for (unsigned Reg : NewLiveIns) { 929 if (!LiveRegs.available(*MRI, Reg)) 930 continue; 931 DebugLoc DL; 932 BuildMI(*Pred, InsertBefore, DL, TII->get(TargetOpcode::IMPLICIT_DEF), 933 Reg); 934 } 935 } 936 937 MBB->clearLiveIns(); 938 addLiveIns(*MBB, NewLiveIns); 939 } 940 } 941 942 // See if any of the blocks in MergePotentials (which all have SuccBB as a 943 // successor, or all have no successor if it is null) can be tail-merged. 944 // If there is a successor, any blocks in MergePotentials that are not 945 // tail-merged and are not immediately before Succ must have an unconditional 946 // branch to Succ added (but the predecessor/successor lists need no 947 // adjustment). The lone predecessor of Succ that falls through into Succ, 948 // if any, is given in PredBB. 949 // MinCommonTailLength - Except for the special cases below, tail-merge if 950 // there are at least this many instructions in common. 951 bool BranchFolder::TryTailMergeBlocks(MachineBasicBlock *SuccBB, 952 MachineBasicBlock *PredBB, 953 unsigned MinCommonTailLength) { 954 bool MadeChange = false; 955 956 DEBUG(dbgs() << "\nTryTailMergeBlocks: "; 957 for (unsigned i = 0, e = MergePotentials.size(); i != e; ++i) 958 dbgs() << "BB#" << MergePotentials[i].getBlock()->getNumber() 959 << (i == e-1 ? "" : ", "); 960 dbgs() << "\n"; 961 if (SuccBB) { 962 dbgs() << " with successor BB#" << SuccBB->getNumber() << '\n'; 963 if (PredBB) 964 dbgs() << " which has fall-through from BB#" 965 << PredBB->getNumber() << "\n"; 966 } 967 dbgs() << "Looking for common tails of at least " 968 << MinCommonTailLength << " instruction" 969 << (MinCommonTailLength == 1 ? "" : "s") << '\n'; 970 ); 971 972 // Sort by hash value so that blocks with identical end sequences sort 973 // together. 974 array_pod_sort(MergePotentials.begin(), MergePotentials.end()); 975 976 // Walk through equivalence sets looking for actual exact matches. 977 while (MergePotentials.size() > 1) { 978 unsigned CurHash = MergePotentials.back().getHash(); 979 980 // Build SameTails, identifying the set of blocks with this hash code 981 // and with the maximum number of instructions in common. 982 unsigned maxCommonTailLength = ComputeSameTails(CurHash, 983 MinCommonTailLength, 984 SuccBB, PredBB); 985 986 // If we didn't find any pair that has at least MinCommonTailLength 987 // instructions in common, remove all blocks with this hash code and retry. 988 if (SameTails.empty()) { 989 RemoveBlocksWithHash(CurHash, SuccBB, PredBB); 990 continue; 991 } 992 993 // If one of the blocks is the entire common tail (and not the entry 994 // block, which we can't jump to), we can treat all blocks with this same 995 // tail at once. Use PredBB if that is one of the possibilities, as that 996 // will not introduce any extra branches. 997 MachineBasicBlock *EntryBB = 998 &MergePotentials.front().getBlock()->getParent()->front(); 999 unsigned commonTailIndex = SameTails.size(); 1000 // If there are two blocks, check to see if one can be made to fall through 1001 // into the other. 1002 if (SameTails.size() == 2 && 1003 SameTails[0].getBlock()->isLayoutSuccessor(SameTails[1].getBlock()) && 1004 SameTails[1].tailIsWholeBlock()) 1005 commonTailIndex = 1; 1006 else if (SameTails.size() == 2 && 1007 SameTails[1].getBlock()->isLayoutSuccessor( 1008 SameTails[0].getBlock()) && 1009 SameTails[0].tailIsWholeBlock()) 1010 commonTailIndex = 0; 1011 else { 1012 // Otherwise just pick one, favoring the fall-through predecessor if 1013 // there is one. 1014 for (unsigned i = 0, e = SameTails.size(); i != e; ++i) { 1015 MachineBasicBlock *MBB = SameTails[i].getBlock(); 1016 if (MBB == EntryBB && SameTails[i].tailIsWholeBlock()) 1017 continue; 1018 if (MBB == PredBB) { 1019 commonTailIndex = i; 1020 break; 1021 } 1022 if (SameTails[i].tailIsWholeBlock()) 1023 commonTailIndex = i; 1024 } 1025 } 1026 1027 if (commonTailIndex == SameTails.size() || 1028 (SameTails[commonTailIndex].getBlock() == PredBB && 1029 !SameTails[commonTailIndex].tailIsWholeBlock())) { 1030 // None of the blocks consist entirely of the common tail. 1031 // Split a block so that one does. 1032 if (!CreateCommonTailOnlyBlock(PredBB, SuccBB, 1033 maxCommonTailLength, commonTailIndex)) { 1034 RemoveBlocksWithHash(CurHash, SuccBB, PredBB); 1035 continue; 1036 } 1037 } 1038 1039 MachineBasicBlock *MBB = SameTails[commonTailIndex].getBlock(); 1040 1041 // Recompute common tail MBB's edge weights and block frequency. 1042 setCommonTailEdgeWeights(*MBB); 1043 1044 // Merge debug locations, MMOs and undef flags across identical instructions 1045 // for common tail. 1046 mergeCommonTails(commonTailIndex); 1047 1048 // MBB is common tail. Adjust all other BB's to jump to this one. 1049 // Traversal must be forwards so erases work. 1050 DEBUG(dbgs() << "\nUsing common tail in BB#" << MBB->getNumber() 1051 << " for "); 1052 for (unsigned int i=0, e = SameTails.size(); i != e; ++i) { 1053 if (commonTailIndex == i) 1054 continue; 1055 DEBUG(dbgs() << "BB#" << SameTails[i].getBlock()->getNumber() 1056 << (i == e-1 ? "" : ", ")); 1057 // Hack the end off BB i, making it jump to BB commonTailIndex instead. 1058 replaceTailWithBranchTo(SameTails[i].getTailStartPos(), *MBB); 1059 // BB i is no longer a predecessor of SuccBB; remove it from the worklist. 1060 MergePotentials.erase(SameTails[i].getMPIter()); 1061 } 1062 DEBUG(dbgs() << "\n"); 1063 // We leave commonTailIndex in the worklist in case there are other blocks 1064 // that match it with a smaller number of instructions. 1065 MadeChange = true; 1066 } 1067 return MadeChange; 1068 } 1069 1070 bool BranchFolder::TailMergeBlocks(MachineFunction &MF) { 1071 bool MadeChange = false; 1072 if (!EnableTailMerge) return MadeChange; 1073 1074 // First find blocks with no successors. 1075 // Block placement does not create new tail merging opportunities for these 1076 // blocks. 1077 if (!AfterBlockPlacement) { 1078 MergePotentials.clear(); 1079 for (MachineBasicBlock &MBB : MF) { 1080 if (MergePotentials.size() == TailMergeThreshold) 1081 break; 1082 if (!TriedMerging.count(&MBB) && MBB.succ_empty()) 1083 MergePotentials.push_back(MergePotentialsElt(HashEndOfMBB(MBB), &MBB)); 1084 } 1085 1086 // If this is a large problem, avoid visiting the same basic blocks 1087 // multiple times. 1088 if (MergePotentials.size() == TailMergeThreshold) 1089 for (unsigned i = 0, e = MergePotentials.size(); i != e; ++i) 1090 TriedMerging.insert(MergePotentials[i].getBlock()); 1091 1092 // See if we can do any tail merging on those. 1093 if (MergePotentials.size() >= 2) 1094 MadeChange |= TryTailMergeBlocks(nullptr, nullptr, MinCommonTailLength); 1095 } 1096 1097 // Look at blocks (IBB) with multiple predecessors (PBB). 1098 // We change each predecessor to a canonical form, by 1099 // (1) temporarily removing any unconditional branch from the predecessor 1100 // to IBB, and 1101 // (2) alter conditional branches so they branch to the other block 1102 // not IBB; this may require adding back an unconditional branch to IBB 1103 // later, where there wasn't one coming in. E.g. 1104 // Bcc IBB 1105 // fallthrough to QBB 1106 // here becomes 1107 // Bncc QBB 1108 // with a conceptual B to IBB after that, which never actually exists. 1109 // With those changes, we see whether the predecessors' tails match, 1110 // and merge them if so. We change things out of canonical form and 1111 // back to the way they were later in the process. (OptimizeBranches 1112 // would undo some of this, but we can't use it, because we'd get into 1113 // a compile-time infinite loop repeatedly doing and undoing the same 1114 // transformations.) 1115 1116 for (MachineFunction::iterator I = std::next(MF.begin()), E = MF.end(); 1117 I != E; ++I) { 1118 if (I->pred_size() < 2) continue; 1119 SmallPtrSet<MachineBasicBlock *, 8> UniquePreds; 1120 MachineBasicBlock *IBB = &*I; 1121 MachineBasicBlock *PredBB = &*std::prev(I); 1122 MergePotentials.clear(); 1123 MachineLoop *ML; 1124 1125 // Bail if merging after placement and IBB is the loop header because 1126 // -- If merging predecessors that belong to the same loop as IBB, the 1127 // common tail of merged predecessors may become the loop top if block 1128 // placement is called again and the predecessors may branch to this common 1129 // tail and require more branches. This can be relaxed if 1130 // MachineBlockPlacement::findBestLoopTop is more flexible. 1131 // --If merging predecessors that do not belong to the same loop as IBB, the 1132 // loop info of IBB's loop and the other loops may be affected. Calling the 1133 // block placement again may make big change to the layout and eliminate the 1134 // reason to do tail merging here. 1135 if (AfterBlockPlacement && MLI) { 1136 ML = MLI->getLoopFor(IBB); 1137 if (ML && IBB == ML->getHeader()) 1138 continue; 1139 } 1140 1141 for (MachineBasicBlock *PBB : I->predecessors()) { 1142 if (MergePotentials.size() == TailMergeThreshold) 1143 break; 1144 1145 if (TriedMerging.count(PBB)) 1146 continue; 1147 1148 // Skip blocks that loop to themselves, can't tail merge these. 1149 if (PBB == IBB) 1150 continue; 1151 1152 // Visit each predecessor only once. 1153 if (!UniquePreds.insert(PBB).second) 1154 continue; 1155 1156 // Skip blocks which may jump to a landing pad. Can't tail merge these. 1157 if (PBB->hasEHPadSuccessor()) 1158 continue; 1159 1160 // After block placement, only consider predecessors that belong to the 1161 // same loop as IBB. The reason is the same as above when skipping loop 1162 // header. 1163 if (AfterBlockPlacement && MLI) 1164 if (ML != MLI->getLoopFor(PBB)) 1165 continue; 1166 1167 MachineBasicBlock *TBB = nullptr, *FBB = nullptr; 1168 SmallVector<MachineOperand, 4> Cond; 1169 if (!TII->analyzeBranch(*PBB, TBB, FBB, Cond, true)) { 1170 // Failing case: IBB is the target of a cbr, and we cannot reverse the 1171 // branch. 1172 SmallVector<MachineOperand, 4> NewCond(Cond); 1173 if (!Cond.empty() && TBB == IBB) { 1174 if (TII->reverseBranchCondition(NewCond)) 1175 continue; 1176 // This is the QBB case described above 1177 if (!FBB) { 1178 auto Next = ++PBB->getIterator(); 1179 if (Next != MF.end()) 1180 FBB = &*Next; 1181 } 1182 } 1183 1184 // Failing case: the only way IBB can be reached from PBB is via 1185 // exception handling. Happens for landing pads. Would be nice to have 1186 // a bit in the edge so we didn't have to do all this. 1187 if (IBB->isEHPad()) { 1188 MachineFunction::iterator IP = ++PBB->getIterator(); 1189 MachineBasicBlock *PredNextBB = nullptr; 1190 if (IP != MF.end()) 1191 PredNextBB = &*IP; 1192 if (!TBB) { 1193 if (IBB != PredNextBB) // fallthrough 1194 continue; 1195 } else if (FBB) { 1196 if (TBB != IBB && FBB != IBB) // cbr then ubr 1197 continue; 1198 } else if (Cond.empty()) { 1199 if (TBB != IBB) // ubr 1200 continue; 1201 } else { 1202 if (TBB != IBB && IBB != PredNextBB) // cbr 1203 continue; 1204 } 1205 } 1206 1207 // Remove the unconditional branch at the end, if any. 1208 if (TBB && (Cond.empty() || FBB)) { 1209 DebugLoc dl = PBB->findBranchDebugLoc(); 1210 TII->removeBranch(*PBB); 1211 if (!Cond.empty()) 1212 // reinsert conditional branch only, for now 1213 TII->insertBranch(*PBB, (TBB == IBB) ? FBB : TBB, nullptr, 1214 NewCond, dl); 1215 } 1216 1217 MergePotentials.push_back(MergePotentialsElt(HashEndOfMBB(*PBB), PBB)); 1218 } 1219 } 1220 1221 // If this is a large problem, avoid visiting the same basic blocks multiple 1222 // times. 1223 if (MergePotentials.size() == TailMergeThreshold) 1224 for (unsigned i = 0, e = MergePotentials.size(); i != e; ++i) 1225 TriedMerging.insert(MergePotentials[i].getBlock()); 1226 1227 if (MergePotentials.size() >= 2) 1228 MadeChange |= TryTailMergeBlocks(IBB, PredBB, MinCommonTailLength); 1229 1230 // Reinsert an unconditional branch if needed. The 1 below can occur as a 1231 // result of removing blocks in TryTailMergeBlocks. 1232 PredBB = &*std::prev(I); // this may have been changed in TryTailMergeBlocks 1233 if (MergePotentials.size() == 1 && 1234 MergePotentials.begin()->getBlock() != PredBB) 1235 FixTail(MergePotentials.begin()->getBlock(), IBB, TII); 1236 } 1237 1238 return MadeChange; 1239 } 1240 1241 void BranchFolder::setCommonTailEdgeWeights(MachineBasicBlock &TailMBB) { 1242 SmallVector<BlockFrequency, 2> EdgeFreqLs(TailMBB.succ_size()); 1243 BlockFrequency AccumulatedMBBFreq; 1244 1245 // Aggregate edge frequency of successor edge j: 1246 // edgeFreq(j) = sum (freq(bb) * edgeProb(bb, j)), 1247 // where bb is a basic block that is in SameTails. 1248 for (const auto &Src : SameTails) { 1249 const MachineBasicBlock *SrcMBB = Src.getBlock(); 1250 BlockFrequency BlockFreq = MBBFreqInfo.getBlockFreq(SrcMBB); 1251 AccumulatedMBBFreq += BlockFreq; 1252 1253 // It is not necessary to recompute edge weights if TailBB has less than two 1254 // successors. 1255 if (TailMBB.succ_size() <= 1) 1256 continue; 1257 1258 auto EdgeFreq = EdgeFreqLs.begin(); 1259 1260 for (auto SuccI = TailMBB.succ_begin(), SuccE = TailMBB.succ_end(); 1261 SuccI != SuccE; ++SuccI, ++EdgeFreq) 1262 *EdgeFreq += BlockFreq * MBPI.getEdgeProbability(SrcMBB, *SuccI); 1263 } 1264 1265 MBBFreqInfo.setBlockFreq(&TailMBB, AccumulatedMBBFreq); 1266 1267 if (TailMBB.succ_size() <= 1) 1268 return; 1269 1270 auto SumEdgeFreq = 1271 std::accumulate(EdgeFreqLs.begin(), EdgeFreqLs.end(), BlockFrequency(0)) 1272 .getFrequency(); 1273 auto EdgeFreq = EdgeFreqLs.begin(); 1274 1275 if (SumEdgeFreq > 0) { 1276 for (auto SuccI = TailMBB.succ_begin(), SuccE = TailMBB.succ_end(); 1277 SuccI != SuccE; ++SuccI, ++EdgeFreq) { 1278 auto Prob = BranchProbability::getBranchProbability( 1279 EdgeFreq->getFrequency(), SumEdgeFreq); 1280 TailMBB.setSuccProbability(SuccI, Prob); 1281 } 1282 } 1283 } 1284 1285 //===----------------------------------------------------------------------===// 1286 // Branch Optimization 1287 //===----------------------------------------------------------------------===// 1288 1289 bool BranchFolder::OptimizeBranches(MachineFunction &MF) { 1290 bool MadeChange = false; 1291 1292 // Make sure blocks are numbered in order 1293 MF.RenumberBlocks(); 1294 // Renumbering blocks alters funclet membership, recalculate it. 1295 FuncletMembership = getFuncletMembership(MF); 1296 1297 for (MachineFunction::iterator I = std::next(MF.begin()), E = MF.end(); 1298 I != E; ) { 1299 MachineBasicBlock *MBB = &*I++; 1300 MadeChange |= OptimizeBlock(MBB); 1301 1302 // If it is dead, remove it. 1303 if (MBB->pred_empty()) { 1304 RemoveDeadBlock(MBB); 1305 MadeChange = true; 1306 ++NumDeadBlocks; 1307 } 1308 } 1309 1310 return MadeChange; 1311 } 1312 1313 // Blocks should be considered empty if they contain only debug info; 1314 // else the debug info would affect codegen. 1315 static bool IsEmptyBlock(MachineBasicBlock *MBB) { 1316 return MBB->getFirstNonDebugInstr() == MBB->end(); 1317 } 1318 1319 // Blocks with only debug info and branches should be considered the same 1320 // as blocks with only branches. 1321 static bool IsBranchOnlyBlock(MachineBasicBlock *MBB) { 1322 MachineBasicBlock::iterator I = MBB->getFirstNonDebugInstr(); 1323 assert(I != MBB->end() && "empty block!"); 1324 return I->isBranch(); 1325 } 1326 1327 /// IsBetterFallthrough - Return true if it would be clearly better to 1328 /// fall-through to MBB1 than to fall through into MBB2. This has to return 1329 /// a strict ordering, returning true for both (MBB1,MBB2) and (MBB2,MBB1) will 1330 /// result in infinite loops. 1331 static bool IsBetterFallthrough(MachineBasicBlock *MBB1, 1332 MachineBasicBlock *MBB2) { 1333 // Right now, we use a simple heuristic. If MBB2 ends with a call, and 1334 // MBB1 doesn't, we prefer to fall through into MBB1. This allows us to 1335 // optimize branches that branch to either a return block or an assert block 1336 // into a fallthrough to the return. 1337 MachineBasicBlock::iterator MBB1I = MBB1->getLastNonDebugInstr(); 1338 MachineBasicBlock::iterator MBB2I = MBB2->getLastNonDebugInstr(); 1339 if (MBB1I == MBB1->end() || MBB2I == MBB2->end()) 1340 return false; 1341 1342 // If there is a clear successor ordering we make sure that one block 1343 // will fall through to the next 1344 if (MBB1->isSuccessor(MBB2)) return true; 1345 if (MBB2->isSuccessor(MBB1)) return false; 1346 1347 return MBB2I->isCall() && !MBB1I->isCall(); 1348 } 1349 1350 /// getBranchDebugLoc - Find and return, if any, the DebugLoc of the branch 1351 /// instructions on the block. 1352 static DebugLoc getBranchDebugLoc(MachineBasicBlock &MBB) { 1353 MachineBasicBlock::iterator I = MBB.getLastNonDebugInstr(); 1354 if (I != MBB.end() && I->isBranch()) 1355 return I->getDebugLoc(); 1356 return DebugLoc(); 1357 } 1358 1359 bool BranchFolder::OptimizeBlock(MachineBasicBlock *MBB) { 1360 bool MadeChange = false; 1361 MachineFunction &MF = *MBB->getParent(); 1362 ReoptimizeBlock: 1363 1364 MachineFunction::iterator FallThrough = MBB->getIterator(); 1365 ++FallThrough; 1366 1367 // Make sure MBB and FallThrough belong to the same funclet. 1368 bool SameFunclet = true; 1369 if (!FuncletMembership.empty() && FallThrough != MF.end()) { 1370 auto MBBFunclet = FuncletMembership.find(MBB); 1371 assert(MBBFunclet != FuncletMembership.end()); 1372 auto FallThroughFunclet = FuncletMembership.find(&*FallThrough); 1373 assert(FallThroughFunclet != FuncletMembership.end()); 1374 SameFunclet = MBBFunclet->second == FallThroughFunclet->second; 1375 } 1376 1377 // If this block is empty, make everyone use its fall-through, not the block 1378 // explicitly. Landing pads should not do this since the landing-pad table 1379 // points to this block. Blocks with their addresses taken shouldn't be 1380 // optimized away. 1381 if (IsEmptyBlock(MBB) && !MBB->isEHPad() && !MBB->hasAddressTaken() && 1382 SameFunclet) { 1383 // Dead block? Leave for cleanup later. 1384 if (MBB->pred_empty()) return MadeChange; 1385 1386 if (FallThrough == MF.end()) { 1387 // TODO: Simplify preds to not branch here if possible! 1388 } else if (FallThrough->isEHPad()) { 1389 // Don't rewrite to a landing pad fallthough. That could lead to the case 1390 // where a BB jumps to more than one landing pad. 1391 // TODO: Is it ever worth rewriting predecessors which don't already 1392 // jump to a landing pad, and so can safely jump to the fallthrough? 1393 } else if (MBB->isSuccessor(&*FallThrough)) { 1394 // Rewrite all predecessors of the old block to go to the fallthrough 1395 // instead. 1396 while (!MBB->pred_empty()) { 1397 MachineBasicBlock *Pred = *(MBB->pred_end()-1); 1398 Pred->ReplaceUsesOfBlockWith(MBB, &*FallThrough); 1399 } 1400 // If MBB was the target of a jump table, update jump tables to go to the 1401 // fallthrough instead. 1402 if (MachineJumpTableInfo *MJTI = MF.getJumpTableInfo()) 1403 MJTI->ReplaceMBBInJumpTables(MBB, &*FallThrough); 1404 MadeChange = true; 1405 } 1406 return MadeChange; 1407 } 1408 1409 // Check to see if we can simplify the terminator of the block before this 1410 // one. 1411 MachineBasicBlock &PrevBB = *std::prev(MachineFunction::iterator(MBB)); 1412 1413 MachineBasicBlock *PriorTBB = nullptr, *PriorFBB = nullptr; 1414 SmallVector<MachineOperand, 4> PriorCond; 1415 bool PriorUnAnalyzable = 1416 TII->analyzeBranch(PrevBB, PriorTBB, PriorFBB, PriorCond, true); 1417 if (!PriorUnAnalyzable) { 1418 // If the CFG for the prior block has extra edges, remove them. 1419 MadeChange |= PrevBB.CorrectExtraCFGEdges(PriorTBB, PriorFBB, 1420 !PriorCond.empty()); 1421 1422 // If the previous branch is conditional and both conditions go to the same 1423 // destination, remove the branch, replacing it with an unconditional one or 1424 // a fall-through. 1425 if (PriorTBB && PriorTBB == PriorFBB) { 1426 DebugLoc dl = getBranchDebugLoc(PrevBB); 1427 TII->removeBranch(PrevBB); 1428 PriorCond.clear(); 1429 if (PriorTBB != MBB) 1430 TII->insertBranch(PrevBB, PriorTBB, nullptr, PriorCond, dl); 1431 MadeChange = true; 1432 ++NumBranchOpts; 1433 goto ReoptimizeBlock; 1434 } 1435 1436 // If the previous block unconditionally falls through to this block and 1437 // this block has no other predecessors, move the contents of this block 1438 // into the prior block. This doesn't usually happen when SimplifyCFG 1439 // has been used, but it can happen if tail merging splits a fall-through 1440 // predecessor of a block. 1441 // This has to check PrevBB->succ_size() because EH edges are ignored by 1442 // AnalyzeBranch. 1443 if (PriorCond.empty() && !PriorTBB && MBB->pred_size() == 1 && 1444 PrevBB.succ_size() == 1 && 1445 !MBB->hasAddressTaken() && !MBB->isEHPad()) { 1446 DEBUG(dbgs() << "\nMerging into block: " << PrevBB 1447 << "From MBB: " << *MBB); 1448 // Remove redundant DBG_VALUEs first. 1449 if (PrevBB.begin() != PrevBB.end()) { 1450 MachineBasicBlock::iterator PrevBBIter = PrevBB.end(); 1451 --PrevBBIter; 1452 MachineBasicBlock::iterator MBBIter = MBB->begin(); 1453 // Check if DBG_VALUE at the end of PrevBB is identical to the 1454 // DBG_VALUE at the beginning of MBB. 1455 while (PrevBBIter != PrevBB.begin() && MBBIter != MBB->end() 1456 && PrevBBIter->isDebugValue() && MBBIter->isDebugValue()) { 1457 if (!MBBIter->isIdenticalTo(*PrevBBIter)) 1458 break; 1459 MachineInstr &DuplicateDbg = *MBBIter; 1460 ++MBBIter; -- PrevBBIter; 1461 DuplicateDbg.eraseFromParent(); 1462 } 1463 } 1464 PrevBB.splice(PrevBB.end(), MBB, MBB->begin(), MBB->end()); 1465 PrevBB.removeSuccessor(PrevBB.succ_begin()); 1466 assert(PrevBB.succ_empty()); 1467 PrevBB.transferSuccessors(MBB); 1468 MadeChange = true; 1469 return MadeChange; 1470 } 1471 1472 // If the previous branch *only* branches to *this* block (conditional or 1473 // not) remove the branch. 1474 if (PriorTBB == MBB && !PriorFBB) { 1475 TII->removeBranch(PrevBB); 1476 MadeChange = true; 1477 ++NumBranchOpts; 1478 goto ReoptimizeBlock; 1479 } 1480 1481 // If the prior block branches somewhere else on the condition and here if 1482 // the condition is false, remove the uncond second branch. 1483 if (PriorFBB == MBB) { 1484 DebugLoc dl = getBranchDebugLoc(PrevBB); 1485 TII->removeBranch(PrevBB); 1486 TII->insertBranch(PrevBB, PriorTBB, nullptr, PriorCond, dl); 1487 MadeChange = true; 1488 ++NumBranchOpts; 1489 goto ReoptimizeBlock; 1490 } 1491 1492 // If the prior block branches here on true and somewhere else on false, and 1493 // if the branch condition is reversible, reverse the branch to create a 1494 // fall-through. 1495 if (PriorTBB == MBB) { 1496 SmallVector<MachineOperand, 4> NewPriorCond(PriorCond); 1497 if (!TII->reverseBranchCondition(NewPriorCond)) { 1498 DebugLoc dl = getBranchDebugLoc(PrevBB); 1499 TII->removeBranch(PrevBB); 1500 TII->insertBranch(PrevBB, PriorFBB, nullptr, NewPriorCond, dl); 1501 MadeChange = true; 1502 ++NumBranchOpts; 1503 goto ReoptimizeBlock; 1504 } 1505 } 1506 1507 // If this block has no successors (e.g. it is a return block or ends with 1508 // a call to a no-return function like abort or __cxa_throw) and if the pred 1509 // falls through into this block, and if it would otherwise fall through 1510 // into the block after this, move this block to the end of the function. 1511 // 1512 // We consider it more likely that execution will stay in the function (e.g. 1513 // due to loops) than it is to exit it. This asserts in loops etc, moving 1514 // the assert condition out of the loop body. 1515 if (MBB->succ_empty() && !PriorCond.empty() && !PriorFBB && 1516 MachineFunction::iterator(PriorTBB) == FallThrough && 1517 !MBB->canFallThrough()) { 1518 bool DoTransform = true; 1519 1520 // We have to be careful that the succs of PredBB aren't both no-successor 1521 // blocks. If neither have successors and if PredBB is the second from 1522 // last block in the function, we'd just keep swapping the two blocks for 1523 // last. Only do the swap if one is clearly better to fall through than 1524 // the other. 1525 if (FallThrough == --MF.end() && 1526 !IsBetterFallthrough(PriorTBB, MBB)) 1527 DoTransform = false; 1528 1529 if (DoTransform) { 1530 // Reverse the branch so we will fall through on the previous true cond. 1531 SmallVector<MachineOperand, 4> NewPriorCond(PriorCond); 1532 if (!TII->reverseBranchCondition(NewPriorCond)) { 1533 DEBUG(dbgs() << "\nMoving MBB: " << *MBB 1534 << "To make fallthrough to: " << *PriorTBB << "\n"); 1535 1536 DebugLoc dl = getBranchDebugLoc(PrevBB); 1537 TII->removeBranch(PrevBB); 1538 TII->insertBranch(PrevBB, MBB, nullptr, NewPriorCond, dl); 1539 1540 // Move this block to the end of the function. 1541 MBB->moveAfter(&MF.back()); 1542 MadeChange = true; 1543 ++NumBranchOpts; 1544 return MadeChange; 1545 } 1546 } 1547 } 1548 } 1549 1550 if (!IsEmptyBlock(MBB) && MBB->pred_size() == 1 && 1551 MF.getFunction()->optForSize()) { 1552 // Changing "Jcc foo; foo: jmp bar;" into "Jcc bar;" might change the branch 1553 // direction, thereby defeating careful block placement and regressing 1554 // performance. Therefore, only consider this for optsize functions. 1555 MachineInstr &TailCall = *MBB->getFirstNonDebugInstr(); 1556 if (TII->isUnconditionalTailCall(TailCall)) { 1557 MachineBasicBlock *Pred = *MBB->pred_begin(); 1558 MachineBasicBlock *PredTBB = nullptr, *PredFBB = nullptr; 1559 SmallVector<MachineOperand, 4> PredCond; 1560 bool PredAnalyzable = 1561 !TII->analyzeBranch(*Pred, PredTBB, PredFBB, PredCond, true); 1562 1563 if (PredAnalyzable && !PredCond.empty() && PredTBB == MBB && 1564 PredTBB != PredFBB) { 1565 // The predecessor has a conditional branch to this block which consists 1566 // of only a tail call. Try to fold the tail call into the conditional 1567 // branch. 1568 if (TII->canMakeTailCallConditional(PredCond, TailCall)) { 1569 // TODO: It would be nice if analyzeBranch() could provide a pointer 1570 // to the branch instruction so replaceBranchWithTailCall() doesn't 1571 // have to search for it. 1572 TII->replaceBranchWithTailCall(*Pred, PredCond, TailCall); 1573 ++NumTailCalls; 1574 Pred->removeSuccessor(MBB); 1575 MadeChange = true; 1576 return MadeChange; 1577 } 1578 } 1579 // If the predecessor is falling through to this block, we could reverse 1580 // the branch condition and fold the tail call into that. However, after 1581 // that we might have to re-arrange the CFG to fall through to the other 1582 // block and there is a high risk of regressing code size rather than 1583 // improving it. 1584 } 1585 } 1586 1587 // Analyze the branch in the current block. 1588 MachineBasicBlock *CurTBB = nullptr, *CurFBB = nullptr; 1589 SmallVector<MachineOperand, 4> CurCond; 1590 bool CurUnAnalyzable = 1591 TII->analyzeBranch(*MBB, CurTBB, CurFBB, CurCond, true); 1592 if (!CurUnAnalyzable) { 1593 // If the CFG for the prior block has extra edges, remove them. 1594 MadeChange |= MBB->CorrectExtraCFGEdges(CurTBB, CurFBB, !CurCond.empty()); 1595 1596 // If this is a two-way branch, and the FBB branches to this block, reverse 1597 // the condition so the single-basic-block loop is faster. Instead of: 1598 // Loop: xxx; jcc Out; jmp Loop 1599 // we want: 1600 // Loop: xxx; jncc Loop; jmp Out 1601 if (CurTBB && CurFBB && CurFBB == MBB && CurTBB != MBB) { 1602 SmallVector<MachineOperand, 4> NewCond(CurCond); 1603 if (!TII->reverseBranchCondition(NewCond)) { 1604 DebugLoc dl = getBranchDebugLoc(*MBB); 1605 TII->removeBranch(*MBB); 1606 TII->insertBranch(*MBB, CurFBB, CurTBB, NewCond, dl); 1607 MadeChange = true; 1608 ++NumBranchOpts; 1609 goto ReoptimizeBlock; 1610 } 1611 } 1612 1613 // If this branch is the only thing in its block, see if we can forward 1614 // other blocks across it. 1615 if (CurTBB && CurCond.empty() && !CurFBB && 1616 IsBranchOnlyBlock(MBB) && CurTBB != MBB && 1617 !MBB->hasAddressTaken() && !MBB->isEHPad()) { 1618 DebugLoc dl = getBranchDebugLoc(*MBB); 1619 // This block may contain just an unconditional branch. Because there can 1620 // be 'non-branch terminators' in the block, try removing the branch and 1621 // then seeing if the block is empty. 1622 TII->removeBranch(*MBB); 1623 // If the only things remaining in the block are debug info, remove these 1624 // as well, so this will behave the same as an empty block in non-debug 1625 // mode. 1626 if (IsEmptyBlock(MBB)) { 1627 // Make the block empty, losing the debug info (we could probably 1628 // improve this in some cases.) 1629 MBB->erase(MBB->begin(), MBB->end()); 1630 } 1631 // If this block is just an unconditional branch to CurTBB, we can 1632 // usually completely eliminate the block. The only case we cannot 1633 // completely eliminate the block is when the block before this one 1634 // falls through into MBB and we can't understand the prior block's branch 1635 // condition. 1636 if (MBB->empty()) { 1637 bool PredHasNoFallThrough = !PrevBB.canFallThrough(); 1638 if (PredHasNoFallThrough || !PriorUnAnalyzable || 1639 !PrevBB.isSuccessor(MBB)) { 1640 // If the prior block falls through into us, turn it into an 1641 // explicit branch to us to make updates simpler. 1642 if (!PredHasNoFallThrough && PrevBB.isSuccessor(MBB) && 1643 PriorTBB != MBB && PriorFBB != MBB) { 1644 if (!PriorTBB) { 1645 assert(PriorCond.empty() && !PriorFBB && 1646 "Bad branch analysis"); 1647 PriorTBB = MBB; 1648 } else { 1649 assert(!PriorFBB && "Machine CFG out of date!"); 1650 PriorFBB = MBB; 1651 } 1652 DebugLoc pdl = getBranchDebugLoc(PrevBB); 1653 TII->removeBranch(PrevBB); 1654 TII->insertBranch(PrevBB, PriorTBB, PriorFBB, PriorCond, pdl); 1655 } 1656 1657 // Iterate through all the predecessors, revectoring each in-turn. 1658 size_t PI = 0; 1659 bool DidChange = false; 1660 bool HasBranchToSelf = false; 1661 while(PI != MBB->pred_size()) { 1662 MachineBasicBlock *PMBB = *(MBB->pred_begin() + PI); 1663 if (PMBB == MBB) { 1664 // If this block has an uncond branch to itself, leave it. 1665 ++PI; 1666 HasBranchToSelf = true; 1667 } else { 1668 DidChange = true; 1669 PMBB->ReplaceUsesOfBlockWith(MBB, CurTBB); 1670 // If this change resulted in PMBB ending in a conditional 1671 // branch where both conditions go to the same destination, 1672 // change this to an unconditional branch (and fix the CFG). 1673 MachineBasicBlock *NewCurTBB = nullptr, *NewCurFBB = nullptr; 1674 SmallVector<MachineOperand, 4> NewCurCond; 1675 bool NewCurUnAnalyzable = TII->analyzeBranch( 1676 *PMBB, NewCurTBB, NewCurFBB, NewCurCond, true); 1677 if (!NewCurUnAnalyzable && NewCurTBB && NewCurTBB == NewCurFBB) { 1678 DebugLoc pdl = getBranchDebugLoc(*PMBB); 1679 TII->removeBranch(*PMBB); 1680 NewCurCond.clear(); 1681 TII->insertBranch(*PMBB, NewCurTBB, nullptr, NewCurCond, pdl); 1682 MadeChange = true; 1683 ++NumBranchOpts; 1684 PMBB->CorrectExtraCFGEdges(NewCurTBB, nullptr, false); 1685 } 1686 } 1687 } 1688 1689 // Change any jumptables to go to the new MBB. 1690 if (MachineJumpTableInfo *MJTI = MF.getJumpTableInfo()) 1691 MJTI->ReplaceMBBInJumpTables(MBB, CurTBB); 1692 if (DidChange) { 1693 ++NumBranchOpts; 1694 MadeChange = true; 1695 if (!HasBranchToSelf) return MadeChange; 1696 } 1697 } 1698 } 1699 1700 // Add the branch back if the block is more than just an uncond branch. 1701 TII->insertBranch(*MBB, CurTBB, nullptr, CurCond, dl); 1702 } 1703 } 1704 1705 // If the prior block doesn't fall through into this block, and if this 1706 // block doesn't fall through into some other block, see if we can find a 1707 // place to move this block where a fall-through will happen. 1708 if (!PrevBB.canFallThrough()) { 1709 // Now we know that there was no fall-through into this block, check to 1710 // see if it has a fall-through into its successor. 1711 bool CurFallsThru = MBB->canFallThrough(); 1712 1713 if (!MBB->isEHPad()) { 1714 // Check all the predecessors of this block. If one of them has no fall 1715 // throughs, move this block right after it. 1716 for (MachineBasicBlock *PredBB : MBB->predecessors()) { 1717 // Analyze the branch at the end of the pred. 1718 MachineBasicBlock *PredTBB = nullptr, *PredFBB = nullptr; 1719 SmallVector<MachineOperand, 4> PredCond; 1720 if (PredBB != MBB && !PredBB->canFallThrough() && 1721 !TII->analyzeBranch(*PredBB, PredTBB, PredFBB, PredCond, true) && 1722 (!CurFallsThru || !CurTBB || !CurFBB) && 1723 (!CurFallsThru || MBB->getNumber() >= PredBB->getNumber())) { 1724 // If the current block doesn't fall through, just move it. 1725 // If the current block can fall through and does not end with a 1726 // conditional branch, we need to append an unconditional jump to 1727 // the (current) next block. To avoid a possible compile-time 1728 // infinite loop, move blocks only backward in this case. 1729 // Also, if there are already 2 branches here, we cannot add a third; 1730 // this means we have the case 1731 // Bcc next 1732 // B elsewhere 1733 // next: 1734 if (CurFallsThru) { 1735 MachineBasicBlock *NextBB = &*std::next(MBB->getIterator()); 1736 CurCond.clear(); 1737 TII->insertBranch(*MBB, NextBB, nullptr, CurCond, DebugLoc()); 1738 } 1739 MBB->moveAfter(PredBB); 1740 MadeChange = true; 1741 goto ReoptimizeBlock; 1742 } 1743 } 1744 } 1745 1746 if (!CurFallsThru) { 1747 // Check all successors to see if we can move this block before it. 1748 for (MachineBasicBlock *SuccBB : MBB->successors()) { 1749 // Analyze the branch at the end of the block before the succ. 1750 MachineFunction::iterator SuccPrev = --SuccBB->getIterator(); 1751 1752 // If this block doesn't already fall-through to that successor, and if 1753 // the succ doesn't already have a block that can fall through into it, 1754 // and if the successor isn't an EH destination, we can arrange for the 1755 // fallthrough to happen. 1756 if (SuccBB != MBB && &*SuccPrev != MBB && 1757 !SuccPrev->canFallThrough() && !CurUnAnalyzable && 1758 !SuccBB->isEHPad()) { 1759 MBB->moveBefore(SuccBB); 1760 MadeChange = true; 1761 goto ReoptimizeBlock; 1762 } 1763 } 1764 1765 // Okay, there is no really great place to put this block. If, however, 1766 // the block before this one would be a fall-through if this block were 1767 // removed, move this block to the end of the function. There is no real 1768 // advantage in "falling through" to an EH block, so we don't want to 1769 // perform this transformation for that case. 1770 // 1771 // Also, Windows EH introduced the possibility of an arbitrary number of 1772 // successors to a given block. The analyzeBranch call does not consider 1773 // exception handling and so we can get in a state where a block 1774 // containing a call is followed by multiple EH blocks that would be 1775 // rotated infinitely at the end of the function if the transformation 1776 // below were performed for EH "FallThrough" blocks. Therefore, even if 1777 // that appears not to be happening anymore, we should assume that it is 1778 // possible and not remove the "!FallThrough()->isEHPad" condition below. 1779 MachineBasicBlock *PrevTBB = nullptr, *PrevFBB = nullptr; 1780 SmallVector<MachineOperand, 4> PrevCond; 1781 if (FallThrough != MF.end() && 1782 !FallThrough->isEHPad() && 1783 !TII->analyzeBranch(PrevBB, PrevTBB, PrevFBB, PrevCond, true) && 1784 PrevBB.isSuccessor(&*FallThrough)) { 1785 MBB->moveAfter(&MF.back()); 1786 MadeChange = true; 1787 return MadeChange; 1788 } 1789 } 1790 } 1791 1792 return MadeChange; 1793 } 1794 1795 //===----------------------------------------------------------------------===// 1796 // Hoist Common Code 1797 //===----------------------------------------------------------------------===// 1798 1799 bool BranchFolder::HoistCommonCode(MachineFunction &MF) { 1800 bool MadeChange = false; 1801 for (MachineFunction::iterator I = MF.begin(), E = MF.end(); I != E; ) { 1802 MachineBasicBlock *MBB = &*I++; 1803 MadeChange |= HoistCommonCodeInSuccs(MBB); 1804 } 1805 1806 return MadeChange; 1807 } 1808 1809 /// findFalseBlock - BB has a fallthrough. Find its 'false' successor given 1810 /// its 'true' successor. 1811 static MachineBasicBlock *findFalseBlock(MachineBasicBlock *BB, 1812 MachineBasicBlock *TrueBB) { 1813 for (MachineBasicBlock *SuccBB : BB->successors()) 1814 if (SuccBB != TrueBB) 1815 return SuccBB; 1816 return nullptr; 1817 } 1818 1819 template <class Container> 1820 static void addRegAndItsAliases(unsigned Reg, const TargetRegisterInfo *TRI, 1821 Container &Set) { 1822 if (TargetRegisterInfo::isPhysicalRegister(Reg)) { 1823 for (MCRegAliasIterator AI(Reg, TRI, true); AI.isValid(); ++AI) 1824 Set.insert(*AI); 1825 } else { 1826 Set.insert(Reg); 1827 } 1828 } 1829 1830 /// findHoistingInsertPosAndDeps - Find the location to move common instructions 1831 /// in successors to. The location is usually just before the terminator, 1832 /// however if the terminator is a conditional branch and its previous 1833 /// instruction is the flag setting instruction, the previous instruction is 1834 /// the preferred location. This function also gathers uses and defs of the 1835 /// instructions from the insertion point to the end of the block. The data is 1836 /// used by HoistCommonCodeInSuccs to ensure safety. 1837 static 1838 MachineBasicBlock::iterator findHoistingInsertPosAndDeps(MachineBasicBlock *MBB, 1839 const TargetInstrInfo *TII, 1840 const TargetRegisterInfo *TRI, 1841 SmallSet<unsigned,4> &Uses, 1842 SmallSet<unsigned,4> &Defs) { 1843 MachineBasicBlock::iterator Loc = MBB->getFirstTerminator(); 1844 if (!TII->isUnpredicatedTerminator(*Loc)) 1845 return MBB->end(); 1846 1847 for (const MachineOperand &MO : Loc->operands()) { 1848 if (!MO.isReg()) 1849 continue; 1850 unsigned Reg = MO.getReg(); 1851 if (!Reg) 1852 continue; 1853 if (MO.isUse()) { 1854 addRegAndItsAliases(Reg, TRI, Uses); 1855 } else { 1856 if (!MO.isDead()) 1857 // Don't try to hoist code in the rare case the terminator defines a 1858 // register that is later used. 1859 return MBB->end(); 1860 1861 // If the terminator defines a register, make sure we don't hoist 1862 // the instruction whose def might be clobbered by the terminator. 1863 addRegAndItsAliases(Reg, TRI, Defs); 1864 } 1865 } 1866 1867 if (Uses.empty()) 1868 return Loc; 1869 if (Loc == MBB->begin()) 1870 return MBB->end(); 1871 1872 // The terminator is probably a conditional branch, try not to separate the 1873 // branch from condition setting instruction. 1874 MachineBasicBlock::iterator PI = 1875 skipDebugInstructionsBackward(std::prev(Loc), MBB->begin()); 1876 1877 bool IsDef = false; 1878 for (const MachineOperand &MO : PI->operands()) { 1879 // If PI has a regmask operand, it is probably a call. Separate away. 1880 if (MO.isRegMask()) 1881 return Loc; 1882 if (!MO.isReg() || MO.isUse()) 1883 continue; 1884 unsigned Reg = MO.getReg(); 1885 if (!Reg) 1886 continue; 1887 if (Uses.count(Reg)) { 1888 IsDef = true; 1889 break; 1890 } 1891 } 1892 if (!IsDef) 1893 // The condition setting instruction is not just before the conditional 1894 // branch. 1895 return Loc; 1896 1897 // Be conservative, don't insert instruction above something that may have 1898 // side-effects. And since it's potentially bad to separate flag setting 1899 // instruction from the conditional branch, just abort the optimization 1900 // completely. 1901 // Also avoid moving code above predicated instruction since it's hard to 1902 // reason about register liveness with predicated instruction. 1903 bool DontMoveAcrossStore = true; 1904 if (!PI->isSafeToMove(nullptr, DontMoveAcrossStore) || TII->isPredicated(*PI)) 1905 return MBB->end(); 1906 1907 // Find out what registers are live. Note this routine is ignoring other live 1908 // registers which are only used by instructions in successor blocks. 1909 for (const MachineOperand &MO : PI->operands()) { 1910 if (!MO.isReg()) 1911 continue; 1912 unsigned Reg = MO.getReg(); 1913 if (!Reg) 1914 continue; 1915 if (MO.isUse()) { 1916 addRegAndItsAliases(Reg, TRI, Uses); 1917 } else { 1918 if (Uses.erase(Reg)) { 1919 if (TargetRegisterInfo::isPhysicalRegister(Reg)) { 1920 for (MCSubRegIterator SubRegs(Reg, TRI); SubRegs.isValid(); ++SubRegs) 1921 Uses.erase(*SubRegs); // Use sub-registers to be conservative 1922 } 1923 } 1924 addRegAndItsAliases(Reg, TRI, Defs); 1925 } 1926 } 1927 1928 return PI; 1929 } 1930 1931 bool BranchFolder::HoistCommonCodeInSuccs(MachineBasicBlock *MBB) { 1932 MachineBasicBlock *TBB = nullptr, *FBB = nullptr; 1933 SmallVector<MachineOperand, 4> Cond; 1934 if (TII->analyzeBranch(*MBB, TBB, FBB, Cond, true) || !TBB || Cond.empty()) 1935 return false; 1936 1937 if (!FBB) FBB = findFalseBlock(MBB, TBB); 1938 if (!FBB) 1939 // Malformed bcc? True and false blocks are the same? 1940 return false; 1941 1942 // Restrict the optimization to cases where MBB is the only predecessor, 1943 // it is an obvious win. 1944 if (TBB->pred_size() > 1 || FBB->pred_size() > 1) 1945 return false; 1946 1947 // Find a suitable position to hoist the common instructions to. Also figure 1948 // out which registers are used or defined by instructions from the insertion 1949 // point to the end of the block. 1950 SmallSet<unsigned, 4> Uses, Defs; 1951 MachineBasicBlock::iterator Loc = 1952 findHoistingInsertPosAndDeps(MBB, TII, TRI, Uses, Defs); 1953 if (Loc == MBB->end()) 1954 return false; 1955 1956 bool HasDups = false; 1957 SmallVector<unsigned, 4> LocalDefs, LocalKills; 1958 SmallSet<unsigned, 4> ActiveDefsSet, AllDefsSet; 1959 MachineBasicBlock::iterator TIB = TBB->begin(); 1960 MachineBasicBlock::iterator FIB = FBB->begin(); 1961 MachineBasicBlock::iterator TIE = TBB->end(); 1962 MachineBasicBlock::iterator FIE = FBB->end(); 1963 while (TIB != TIE && FIB != FIE) { 1964 // Skip dbg_value instructions. These do not count. 1965 TIB = skipDebugInstructionsForward(TIB, TIE); 1966 FIB = skipDebugInstructionsForward(FIB, FIE); 1967 if (TIB == TIE || FIB == FIE) 1968 break; 1969 1970 if (!TIB->isIdenticalTo(*FIB, MachineInstr::CheckKillDead)) 1971 break; 1972 1973 if (TII->isPredicated(*TIB)) 1974 // Hard to reason about register liveness with predicated instruction. 1975 break; 1976 1977 bool IsSafe = true; 1978 for (MachineOperand &MO : TIB->operands()) { 1979 // Don't attempt to hoist instructions with register masks. 1980 if (MO.isRegMask()) { 1981 IsSafe = false; 1982 break; 1983 } 1984 if (!MO.isReg()) 1985 continue; 1986 unsigned Reg = MO.getReg(); 1987 if (!Reg) 1988 continue; 1989 if (MO.isDef()) { 1990 if (Uses.count(Reg)) { 1991 // Avoid clobbering a register that's used by the instruction at 1992 // the point of insertion. 1993 IsSafe = false; 1994 break; 1995 } 1996 1997 if (Defs.count(Reg) && !MO.isDead()) { 1998 // Don't hoist the instruction if the def would be clobber by the 1999 // instruction at the point insertion. FIXME: This is overly 2000 // conservative. It should be possible to hoist the instructions 2001 // in BB2 in the following example: 2002 // BB1: 2003 // r1, eflag = op1 r2, r3 2004 // brcc eflag 2005 // 2006 // BB2: 2007 // r1 = op2, ... 2008 // = op3, r1<kill> 2009 IsSafe = false; 2010 break; 2011 } 2012 } else if (!ActiveDefsSet.count(Reg)) { 2013 if (Defs.count(Reg)) { 2014 // Use is defined by the instruction at the point of insertion. 2015 IsSafe = false; 2016 break; 2017 } 2018 2019 if (MO.isKill() && Uses.count(Reg)) 2020 // Kills a register that's read by the instruction at the point of 2021 // insertion. Remove the kill marker. 2022 MO.setIsKill(false); 2023 } 2024 } 2025 if (!IsSafe) 2026 break; 2027 2028 bool DontMoveAcrossStore = true; 2029 if (!TIB->isSafeToMove(nullptr, DontMoveAcrossStore)) 2030 break; 2031 2032 // Remove kills from ActiveDefsSet, these registers had short live ranges. 2033 for (const MachineOperand &MO : TIB->operands()) { 2034 if (!MO.isReg() || !MO.isUse() || !MO.isKill()) 2035 continue; 2036 unsigned Reg = MO.getReg(); 2037 if (!Reg) 2038 continue; 2039 if (!AllDefsSet.count(Reg)) { 2040 LocalKills.push_back(Reg); 2041 continue; 2042 } 2043 if (TargetRegisterInfo::isPhysicalRegister(Reg)) { 2044 for (MCRegAliasIterator AI(Reg, TRI, true); AI.isValid(); ++AI) 2045 ActiveDefsSet.erase(*AI); 2046 } else { 2047 ActiveDefsSet.erase(Reg); 2048 } 2049 } 2050 2051 // Track local defs so we can update liveins. 2052 for (const MachineOperand &MO : TIB->operands()) { 2053 if (!MO.isReg() || !MO.isDef() || MO.isDead()) 2054 continue; 2055 unsigned Reg = MO.getReg(); 2056 if (!Reg || TargetRegisterInfo::isVirtualRegister(Reg)) 2057 continue; 2058 LocalDefs.push_back(Reg); 2059 addRegAndItsAliases(Reg, TRI, ActiveDefsSet); 2060 addRegAndItsAliases(Reg, TRI, AllDefsSet); 2061 } 2062 2063 HasDups = true; 2064 ++TIB; 2065 ++FIB; 2066 } 2067 2068 if (!HasDups) 2069 return false; 2070 2071 MBB->splice(Loc, TBB, TBB->begin(), TIB); 2072 FBB->erase(FBB->begin(), FIB); 2073 2074 // Update livein's. 2075 bool ChangedLiveIns = false; 2076 for (unsigned i = 0, e = LocalDefs.size(); i != e; ++i) { 2077 unsigned Def = LocalDefs[i]; 2078 if (ActiveDefsSet.count(Def)) { 2079 TBB->addLiveIn(Def); 2080 FBB->addLiveIn(Def); 2081 ChangedLiveIns = true; 2082 } 2083 } 2084 for (unsigned K : LocalKills) { 2085 TBB->removeLiveIn(K); 2086 FBB->removeLiveIn(K); 2087 ChangedLiveIns = true; 2088 } 2089 2090 if (ChangedLiveIns) { 2091 TBB->sortUniqueLiveIns(); 2092 FBB->sortUniqueLiveIns(); 2093 } 2094 2095 ++NumHoist; 2096 return true; 2097 } 2098