1 //===- SimplifyCFG.cpp - Code to perform CFG simplification ---------------===// 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 // Peephole optimize the CFG. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/ADT/APInt.h" 15 #include "llvm/ADT/ArrayRef.h" 16 #include "llvm/ADT/DenseMap.h" 17 #include "llvm/ADT/Optional.h" 18 #include "llvm/ADT/STLExtras.h" 19 #include "llvm/ADT/SetOperations.h" 20 #include "llvm/ADT/SetVector.h" 21 #include "llvm/ADT/SmallPtrSet.h" 22 #include "llvm/ADT/SmallSet.h" 23 #include "llvm/ADT/SmallVector.h" 24 #include "llvm/ADT/Statistic.h" 25 #include "llvm/ADT/StringRef.h" 26 #include "llvm/Analysis/AssumptionCache.h" 27 #include "llvm/Analysis/ConstantFolding.h" 28 #include "llvm/Analysis/EHPersonalities.h" 29 #include "llvm/Analysis/InstructionSimplify.h" 30 #include "llvm/Analysis/TargetTransformInfo.h" 31 #include "llvm/Analysis/Utils/Local.h" 32 #include "llvm/Analysis/ValueTracking.h" 33 #include "llvm/IR/Attributes.h" 34 #include "llvm/IR/BasicBlock.h" 35 #include "llvm/IR/CFG.h" 36 #include "llvm/IR/CallSite.h" 37 #include "llvm/IR/Constant.h" 38 #include "llvm/IR/ConstantRange.h" 39 #include "llvm/IR/Constants.h" 40 #include "llvm/IR/DataLayout.h" 41 #include "llvm/IR/DerivedTypes.h" 42 #include "llvm/IR/Function.h" 43 #include "llvm/IR/GlobalValue.h" 44 #include "llvm/IR/GlobalVariable.h" 45 #include "llvm/IR/IRBuilder.h" 46 #include "llvm/IR/InstrTypes.h" 47 #include "llvm/IR/Instruction.h" 48 #include "llvm/IR/Instructions.h" 49 #include "llvm/IR/IntrinsicInst.h" 50 #include "llvm/IR/Intrinsics.h" 51 #include "llvm/IR/LLVMContext.h" 52 #include "llvm/IR/MDBuilder.h" 53 #include "llvm/IR/Metadata.h" 54 #include "llvm/IR/Module.h" 55 #include "llvm/IR/NoFolder.h" 56 #include "llvm/IR/Operator.h" 57 #include "llvm/IR/PatternMatch.h" 58 #include "llvm/IR/Type.h" 59 #include "llvm/IR/Use.h" 60 #include "llvm/IR/User.h" 61 #include "llvm/IR/Value.h" 62 #include "llvm/Support/Casting.h" 63 #include "llvm/Support/CommandLine.h" 64 #include "llvm/Support/Debug.h" 65 #include "llvm/Support/ErrorHandling.h" 66 #include "llvm/Support/KnownBits.h" 67 #include "llvm/Support/MathExtras.h" 68 #include "llvm/Support/raw_ostream.h" 69 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 70 #include "llvm/Transforms/Utils/ValueMapper.h" 71 #include <algorithm> 72 #include <cassert> 73 #include <climits> 74 #include <cstddef> 75 #include <cstdint> 76 #include <iterator> 77 #include <map> 78 #include <set> 79 #include <tuple> 80 #include <utility> 81 #include <vector> 82 83 using namespace llvm; 84 using namespace PatternMatch; 85 86 #define DEBUG_TYPE "simplifycfg" 87 88 // Chosen as 2 so as to be cheap, but still to have enough power to fold 89 // a select, so the "clamp" idiom (of a min followed by a max) will be caught. 90 // To catch this, we need to fold a compare and a select, hence '2' being the 91 // minimum reasonable default. 92 static cl::opt<unsigned> PHINodeFoldingThreshold( 93 "phi-node-folding-threshold", cl::Hidden, cl::init(2), 94 cl::desc( 95 "Control the amount of phi node folding to perform (default = 2)")); 96 97 static cl::opt<bool> DupRet( 98 "simplifycfg-dup-ret", cl::Hidden, cl::init(false), 99 cl::desc("Duplicate return instructions into unconditional branches")); 100 101 static cl::opt<bool> 102 SinkCommon("simplifycfg-sink-common", cl::Hidden, cl::init(true), 103 cl::desc("Sink common instructions down to the end block")); 104 105 static cl::opt<bool> HoistCondStores( 106 "simplifycfg-hoist-cond-stores", cl::Hidden, cl::init(true), 107 cl::desc("Hoist conditional stores if an unconditional store precedes")); 108 109 static cl::opt<bool> MergeCondStores( 110 "simplifycfg-merge-cond-stores", cl::Hidden, cl::init(true), 111 cl::desc("Hoist conditional stores even if an unconditional store does not " 112 "precede - hoist multiple conditional stores into a single " 113 "predicated store")); 114 115 static cl::opt<bool> MergeCondStoresAggressively( 116 "simplifycfg-merge-cond-stores-aggressively", cl::Hidden, cl::init(false), 117 cl::desc("When merging conditional stores, do so even if the resultant " 118 "basic blocks are unlikely to be if-converted as a result")); 119 120 static cl::opt<bool> SpeculateOneExpensiveInst( 121 "speculate-one-expensive-inst", cl::Hidden, cl::init(true), 122 cl::desc("Allow exactly one expensive instruction to be speculatively " 123 "executed")); 124 125 static cl::opt<unsigned> MaxSpeculationDepth( 126 "max-speculation-depth", cl::Hidden, cl::init(10), 127 cl::desc("Limit maximum recursion depth when calculating costs of " 128 "speculatively executed instructions")); 129 130 STATISTIC(NumBitMaps, "Number of switch instructions turned into bitmaps"); 131 STATISTIC(NumLinearMaps, 132 "Number of switch instructions turned into linear mapping"); 133 STATISTIC(NumLookupTables, 134 "Number of switch instructions turned into lookup tables"); 135 STATISTIC( 136 NumLookupTablesHoles, 137 "Number of switch instructions turned into lookup tables (holes checked)"); 138 STATISTIC(NumTableCmpReuses, "Number of reused switch table lookup compares"); 139 STATISTIC(NumSinkCommons, 140 "Number of common instructions sunk down to the end block"); 141 STATISTIC(NumSpeculations, "Number of speculative executed instructions"); 142 143 namespace { 144 145 // The first field contains the value that the switch produces when a certain 146 // case group is selected, and the second field is a vector containing the 147 // cases composing the case group. 148 using SwitchCaseResultVectorTy = 149 SmallVector<std::pair<Constant *, SmallVector<ConstantInt *, 4>>, 2>; 150 151 // The first field contains the phi node that generates a result of the switch 152 // and the second field contains the value generated for a certain case in the 153 // switch for that PHI. 154 using SwitchCaseResultsTy = SmallVector<std::pair<PHINode *, Constant *>, 4>; 155 156 /// ValueEqualityComparisonCase - Represents a case of a switch. 157 struct ValueEqualityComparisonCase { 158 ConstantInt *Value; 159 BasicBlock *Dest; 160 161 ValueEqualityComparisonCase(ConstantInt *Value, BasicBlock *Dest) 162 : Value(Value), Dest(Dest) {} 163 164 bool operator<(ValueEqualityComparisonCase RHS) const { 165 // Comparing pointers is ok as we only rely on the order for uniquing. 166 return Value < RHS.Value; 167 } 168 169 bool operator==(BasicBlock *RHSDest) const { return Dest == RHSDest; } 170 }; 171 172 class SimplifyCFGOpt { 173 const TargetTransformInfo &TTI; 174 const DataLayout &DL; 175 SmallPtrSetImpl<BasicBlock *> *LoopHeaders; 176 const SimplifyCFGOptions &Options; 177 178 Value *isValueEqualityComparison(TerminatorInst *TI); 179 BasicBlock *GetValueEqualityComparisonCases( 180 TerminatorInst *TI, std::vector<ValueEqualityComparisonCase> &Cases); 181 bool SimplifyEqualityComparisonWithOnlyPredecessor(TerminatorInst *TI, 182 BasicBlock *Pred, 183 IRBuilder<> &Builder); 184 bool FoldValueComparisonIntoPredecessors(TerminatorInst *TI, 185 IRBuilder<> &Builder); 186 187 bool SimplifyReturn(ReturnInst *RI, IRBuilder<> &Builder); 188 bool SimplifyResume(ResumeInst *RI, IRBuilder<> &Builder); 189 bool SimplifySingleResume(ResumeInst *RI); 190 bool SimplifyCommonResume(ResumeInst *RI); 191 bool SimplifyCleanupReturn(CleanupReturnInst *RI); 192 bool SimplifyUnreachable(UnreachableInst *UI); 193 bool SimplifySwitch(SwitchInst *SI, IRBuilder<> &Builder); 194 bool SimplifyIndirectBr(IndirectBrInst *IBI); 195 bool SimplifyUncondBranch(BranchInst *BI, IRBuilder<> &Builder); 196 bool SimplifyCondBranch(BranchInst *BI, IRBuilder<> &Builder); 197 198 public: 199 SimplifyCFGOpt(const TargetTransformInfo &TTI, const DataLayout &DL, 200 SmallPtrSetImpl<BasicBlock *> *LoopHeaders, 201 const SimplifyCFGOptions &Opts) 202 : TTI(TTI), DL(DL), LoopHeaders(LoopHeaders), Options(Opts) {} 203 204 bool run(BasicBlock *BB); 205 }; 206 207 } // end anonymous namespace 208 209 /// Return true if it is safe to merge these two 210 /// terminator instructions together. 211 static bool 212 SafeToMergeTerminators(TerminatorInst *SI1, TerminatorInst *SI2, 213 SmallSetVector<BasicBlock *, 4> *FailBlocks = nullptr) { 214 if (SI1 == SI2) 215 return false; // Can't merge with self! 216 217 // It is not safe to merge these two switch instructions if they have a common 218 // successor, and if that successor has a PHI node, and if *that* PHI node has 219 // conflicting incoming values from the two switch blocks. 220 BasicBlock *SI1BB = SI1->getParent(); 221 BasicBlock *SI2BB = SI2->getParent(); 222 223 SmallPtrSet<BasicBlock *, 16> SI1Succs(succ_begin(SI1BB), succ_end(SI1BB)); 224 bool Fail = false; 225 for (BasicBlock *Succ : successors(SI2BB)) 226 if (SI1Succs.count(Succ)) 227 for (BasicBlock::iterator BBI = Succ->begin(); isa<PHINode>(BBI); ++BBI) { 228 PHINode *PN = cast<PHINode>(BBI); 229 if (PN->getIncomingValueForBlock(SI1BB) != 230 PN->getIncomingValueForBlock(SI2BB)) { 231 if (FailBlocks) 232 FailBlocks->insert(Succ); 233 Fail = true; 234 } 235 } 236 237 return !Fail; 238 } 239 240 /// Return true if it is safe and profitable to merge these two terminator 241 /// instructions together, where SI1 is an unconditional branch. PhiNodes will 242 /// store all PHI nodes in common successors. 243 static bool 244 isProfitableToFoldUnconditional(BranchInst *SI1, BranchInst *SI2, 245 Instruction *Cond, 246 SmallVectorImpl<PHINode *> &PhiNodes) { 247 if (SI1 == SI2) 248 return false; // Can't merge with self! 249 assert(SI1->isUnconditional() && SI2->isConditional()); 250 251 // We fold the unconditional branch if we can easily update all PHI nodes in 252 // common successors: 253 // 1> We have a constant incoming value for the conditional branch; 254 // 2> We have "Cond" as the incoming value for the unconditional branch; 255 // 3> SI2->getCondition() and Cond have same operands. 256 CmpInst *Ci2 = dyn_cast<CmpInst>(SI2->getCondition()); 257 if (!Ci2) 258 return false; 259 if (!(Cond->getOperand(0) == Ci2->getOperand(0) && 260 Cond->getOperand(1) == Ci2->getOperand(1)) && 261 !(Cond->getOperand(0) == Ci2->getOperand(1) && 262 Cond->getOperand(1) == Ci2->getOperand(0))) 263 return false; 264 265 BasicBlock *SI1BB = SI1->getParent(); 266 BasicBlock *SI2BB = SI2->getParent(); 267 SmallPtrSet<BasicBlock *, 16> SI1Succs(succ_begin(SI1BB), succ_end(SI1BB)); 268 for (BasicBlock *Succ : successors(SI2BB)) 269 if (SI1Succs.count(Succ)) 270 for (BasicBlock::iterator BBI = Succ->begin(); isa<PHINode>(BBI); ++BBI) { 271 PHINode *PN = cast<PHINode>(BBI); 272 if (PN->getIncomingValueForBlock(SI1BB) != Cond || 273 !isa<ConstantInt>(PN->getIncomingValueForBlock(SI2BB))) 274 return false; 275 PhiNodes.push_back(PN); 276 } 277 return true; 278 } 279 280 /// Update PHI nodes in Succ to indicate that there will now be entries in it 281 /// from the 'NewPred' block. The values that will be flowing into the PHI nodes 282 /// will be the same as those coming in from ExistPred, an existing predecessor 283 /// of Succ. 284 static void AddPredecessorToBlock(BasicBlock *Succ, BasicBlock *NewPred, 285 BasicBlock *ExistPred) { 286 for (PHINode &PN : Succ->phis()) 287 PN.addIncoming(PN.getIncomingValueForBlock(ExistPred), NewPred); 288 } 289 290 /// Compute an abstract "cost" of speculating the given instruction, 291 /// which is assumed to be safe to speculate. TCC_Free means cheap, 292 /// TCC_Basic means less cheap, and TCC_Expensive means prohibitively 293 /// expensive. 294 static unsigned ComputeSpeculationCost(const User *I, 295 const TargetTransformInfo &TTI) { 296 assert(isSafeToSpeculativelyExecute(I) && 297 "Instruction is not safe to speculatively execute!"); 298 return TTI.getUserCost(I); 299 } 300 301 /// If we have a merge point of an "if condition" as accepted above, 302 /// return true if the specified value dominates the block. We 303 /// don't handle the true generality of domination here, just a special case 304 /// which works well enough for us. 305 /// 306 /// If AggressiveInsts is non-null, and if V does not dominate BB, we check to 307 /// see if V (which must be an instruction) and its recursive operands 308 /// that do not dominate BB have a combined cost lower than CostRemaining and 309 /// are non-trapping. If both are true, the instruction is inserted into the 310 /// set and true is returned. 311 /// 312 /// The cost for most non-trapping instructions is defined as 1 except for 313 /// Select whose cost is 2. 314 /// 315 /// After this function returns, CostRemaining is decreased by the cost of 316 /// V plus its non-dominating operands. If that cost is greater than 317 /// CostRemaining, false is returned and CostRemaining is undefined. 318 static bool DominatesMergePoint(Value *V, BasicBlock *BB, 319 SmallPtrSetImpl<Instruction *> *AggressiveInsts, 320 unsigned &CostRemaining, 321 const TargetTransformInfo &TTI, 322 unsigned Depth = 0) { 323 // It is possible to hit a zero-cost cycle (phi/gep instructions for example), 324 // so limit the recursion depth. 325 // TODO: While this recursion limit does prevent pathological behavior, it 326 // would be better to track visited instructions to avoid cycles. 327 if (Depth == MaxSpeculationDepth) 328 return false; 329 330 Instruction *I = dyn_cast<Instruction>(V); 331 if (!I) { 332 // Non-instructions all dominate instructions, but not all constantexprs 333 // can be executed unconditionally. 334 if (ConstantExpr *C = dyn_cast<ConstantExpr>(V)) 335 if (C->canTrap()) 336 return false; 337 return true; 338 } 339 BasicBlock *PBB = I->getParent(); 340 341 // We don't want to allow weird loops that might have the "if condition" in 342 // the bottom of this block. 343 if (PBB == BB) 344 return false; 345 346 // If this instruction is defined in a block that contains an unconditional 347 // branch to BB, then it must be in the 'conditional' part of the "if 348 // statement". If not, it definitely dominates the region. 349 BranchInst *BI = dyn_cast<BranchInst>(PBB->getTerminator()); 350 if (!BI || BI->isConditional() || BI->getSuccessor(0) != BB) 351 return true; 352 353 // If we aren't allowing aggressive promotion anymore, then don't consider 354 // instructions in the 'if region'. 355 if (!AggressiveInsts) 356 return false; 357 358 // If we have seen this instruction before, don't count it again. 359 if (AggressiveInsts->count(I)) 360 return true; 361 362 // Okay, it looks like the instruction IS in the "condition". Check to 363 // see if it's a cheap instruction to unconditionally compute, and if it 364 // only uses stuff defined outside of the condition. If so, hoist it out. 365 if (!isSafeToSpeculativelyExecute(I)) 366 return false; 367 368 unsigned Cost = ComputeSpeculationCost(I, TTI); 369 370 // Allow exactly one instruction to be speculated regardless of its cost 371 // (as long as it is safe to do so). 372 // This is intended to flatten the CFG even if the instruction is a division 373 // or other expensive operation. The speculation of an expensive instruction 374 // is expected to be undone in CodeGenPrepare if the speculation has not 375 // enabled further IR optimizations. 376 if (Cost > CostRemaining && 377 (!SpeculateOneExpensiveInst || !AggressiveInsts->empty() || Depth > 0)) 378 return false; 379 380 // Avoid unsigned wrap. 381 CostRemaining = (Cost > CostRemaining) ? 0 : CostRemaining - Cost; 382 383 // Okay, we can only really hoist these out if their operands do 384 // not take us over the cost threshold. 385 for (User::op_iterator i = I->op_begin(), e = I->op_end(); i != e; ++i) 386 if (!DominatesMergePoint(*i, BB, AggressiveInsts, CostRemaining, TTI, 387 Depth + 1)) 388 return false; 389 // Okay, it's safe to do this! Remember this instruction. 390 AggressiveInsts->insert(I); 391 return true; 392 } 393 394 /// Extract ConstantInt from value, looking through IntToPtr 395 /// and PointerNullValue. Return NULL if value is not a constant int. 396 static ConstantInt *GetConstantInt(Value *V, const DataLayout &DL) { 397 // Normal constant int. 398 ConstantInt *CI = dyn_cast<ConstantInt>(V); 399 if (CI || !isa<Constant>(V) || !V->getType()->isPointerTy()) 400 return CI; 401 402 // This is some kind of pointer constant. Turn it into a pointer-sized 403 // ConstantInt if possible. 404 IntegerType *PtrTy = cast<IntegerType>(DL.getIntPtrType(V->getType())); 405 406 // Null pointer means 0, see SelectionDAGBuilder::getValue(const Value*). 407 if (isa<ConstantPointerNull>(V)) 408 return ConstantInt::get(PtrTy, 0); 409 410 // IntToPtr const int. 411 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(V)) 412 if (CE->getOpcode() == Instruction::IntToPtr) 413 if (ConstantInt *CI = dyn_cast<ConstantInt>(CE->getOperand(0))) { 414 // The constant is very likely to have the right type already. 415 if (CI->getType() == PtrTy) 416 return CI; 417 else 418 return cast<ConstantInt>( 419 ConstantExpr::getIntegerCast(CI, PtrTy, /*isSigned=*/false)); 420 } 421 return nullptr; 422 } 423 424 namespace { 425 426 /// Given a chain of or (||) or and (&&) comparison of a value against a 427 /// constant, this will try to recover the information required for a switch 428 /// structure. 429 /// It will depth-first traverse the chain of comparison, seeking for patterns 430 /// like %a == 12 or %a < 4 and combine them to produce a set of integer 431 /// representing the different cases for the switch. 432 /// Note that if the chain is composed of '||' it will build the set of elements 433 /// that matches the comparisons (i.e. any of this value validate the chain) 434 /// while for a chain of '&&' it will build the set elements that make the test 435 /// fail. 436 struct ConstantComparesGatherer { 437 const DataLayout &DL; 438 439 /// Value found for the switch comparison 440 Value *CompValue = nullptr; 441 442 /// Extra clause to be checked before the switch 443 Value *Extra = nullptr; 444 445 /// Set of integers to match in switch 446 SmallVector<ConstantInt *, 8> Vals; 447 448 /// Number of comparisons matched in the and/or chain 449 unsigned UsedICmps = 0; 450 451 /// Construct and compute the result for the comparison instruction Cond 452 ConstantComparesGatherer(Instruction *Cond, const DataLayout &DL) : DL(DL) { 453 gather(Cond); 454 } 455 456 ConstantComparesGatherer(const ConstantComparesGatherer &) = delete; 457 ConstantComparesGatherer & 458 operator=(const ConstantComparesGatherer &) = delete; 459 460 private: 461 /// Try to set the current value used for the comparison, it succeeds only if 462 /// it wasn't set before or if the new value is the same as the old one 463 bool setValueOnce(Value *NewVal) { 464 if (CompValue && CompValue != NewVal) 465 return false; 466 CompValue = NewVal; 467 return (CompValue != nullptr); 468 } 469 470 /// Try to match Instruction "I" as a comparison against a constant and 471 /// populates the array Vals with the set of values that match (or do not 472 /// match depending on isEQ). 473 /// Return false on failure. On success, the Value the comparison matched 474 /// against is placed in CompValue. 475 /// If CompValue is already set, the function is expected to fail if a match 476 /// is found but the value compared to is different. 477 bool matchInstruction(Instruction *I, bool isEQ) { 478 // If this is an icmp against a constant, handle this as one of the cases. 479 ICmpInst *ICI; 480 ConstantInt *C; 481 if (!((ICI = dyn_cast<ICmpInst>(I)) && 482 (C = GetConstantInt(I->getOperand(1), DL)))) { 483 return false; 484 } 485 486 Value *RHSVal; 487 const APInt *RHSC; 488 489 // Pattern match a special case 490 // (x & ~2^z) == y --> x == y || x == y|2^z 491 // This undoes a transformation done by instcombine to fuse 2 compares. 492 if (ICI->getPredicate() == (isEQ ? ICmpInst::ICMP_EQ : ICmpInst::ICMP_NE)) { 493 // It's a little bit hard to see why the following transformations are 494 // correct. Here is a CVC3 program to verify them for 64-bit values: 495 496 /* 497 ONE : BITVECTOR(64) = BVZEROEXTEND(0bin1, 63); 498 x : BITVECTOR(64); 499 y : BITVECTOR(64); 500 z : BITVECTOR(64); 501 mask : BITVECTOR(64) = BVSHL(ONE, z); 502 QUERY( (y & ~mask = y) => 503 ((x & ~mask = y) <=> (x = y OR x = (y | mask))) 504 ); 505 QUERY( (y | mask = y) => 506 ((x | mask = y) <=> (x = y OR x = (y & ~mask))) 507 ); 508 */ 509 510 // Please note that each pattern must be a dual implication (<--> or 511 // iff). One directional implication can create spurious matches. If the 512 // implication is only one-way, an unsatisfiable condition on the left 513 // side can imply a satisfiable condition on the right side. Dual 514 // implication ensures that satisfiable conditions are transformed to 515 // other satisfiable conditions and unsatisfiable conditions are 516 // transformed to other unsatisfiable conditions. 517 518 // Here is a concrete example of a unsatisfiable condition on the left 519 // implying a satisfiable condition on the right: 520 // 521 // mask = (1 << z) 522 // (x & ~mask) == y --> (x == y || x == (y | mask)) 523 // 524 // Substituting y = 3, z = 0 yields: 525 // (x & -2) == 3 --> (x == 3 || x == 2) 526 527 // Pattern match a special case: 528 /* 529 QUERY( (y & ~mask = y) => 530 ((x & ~mask = y) <=> (x = y OR x = (y | mask))) 531 ); 532 */ 533 if (match(ICI->getOperand(0), 534 m_And(m_Value(RHSVal), m_APInt(RHSC)))) { 535 APInt Mask = ~*RHSC; 536 if (Mask.isPowerOf2() && (C->getValue() & ~Mask) == C->getValue()) { 537 // If we already have a value for the switch, it has to match! 538 if (!setValueOnce(RHSVal)) 539 return false; 540 541 Vals.push_back(C); 542 Vals.push_back( 543 ConstantInt::get(C->getContext(), 544 C->getValue() | Mask)); 545 UsedICmps++; 546 return true; 547 } 548 } 549 550 // Pattern match a special case: 551 /* 552 QUERY( (y | mask = y) => 553 ((x | mask = y) <=> (x = y OR x = (y & ~mask))) 554 ); 555 */ 556 if (match(ICI->getOperand(0), 557 m_Or(m_Value(RHSVal), m_APInt(RHSC)))) { 558 APInt Mask = *RHSC; 559 if (Mask.isPowerOf2() && (C->getValue() | Mask) == C->getValue()) { 560 // If we already have a value for the switch, it has to match! 561 if (!setValueOnce(RHSVal)) 562 return false; 563 564 Vals.push_back(C); 565 Vals.push_back(ConstantInt::get(C->getContext(), 566 C->getValue() & ~Mask)); 567 UsedICmps++; 568 return true; 569 } 570 } 571 572 // If we already have a value for the switch, it has to match! 573 if (!setValueOnce(ICI->getOperand(0))) 574 return false; 575 576 UsedICmps++; 577 Vals.push_back(C); 578 return ICI->getOperand(0); 579 } 580 581 // If we have "x ult 3", for example, then we can add 0,1,2 to the set. 582 ConstantRange Span = ConstantRange::makeAllowedICmpRegion( 583 ICI->getPredicate(), C->getValue()); 584 585 // Shift the range if the compare is fed by an add. This is the range 586 // compare idiom as emitted by instcombine. 587 Value *CandidateVal = I->getOperand(0); 588 if (match(I->getOperand(0), m_Add(m_Value(RHSVal), m_APInt(RHSC)))) { 589 Span = Span.subtract(*RHSC); 590 CandidateVal = RHSVal; 591 } 592 593 // If this is an and/!= check, then we are looking to build the set of 594 // value that *don't* pass the and chain. I.e. to turn "x ugt 2" into 595 // x != 0 && x != 1. 596 if (!isEQ) 597 Span = Span.inverse(); 598 599 // If there are a ton of values, we don't want to make a ginormous switch. 600 if (Span.isSizeLargerThan(8) || Span.isEmptySet()) { 601 return false; 602 } 603 604 // If we already have a value for the switch, it has to match! 605 if (!setValueOnce(CandidateVal)) 606 return false; 607 608 // Add all values from the range to the set 609 for (APInt Tmp = Span.getLower(); Tmp != Span.getUpper(); ++Tmp) 610 Vals.push_back(ConstantInt::get(I->getContext(), Tmp)); 611 612 UsedICmps++; 613 return true; 614 } 615 616 /// Given a potentially 'or'd or 'and'd together collection of icmp 617 /// eq/ne/lt/gt instructions that compare a value against a constant, extract 618 /// the value being compared, and stick the list constants into the Vals 619 /// vector. 620 /// One "Extra" case is allowed to differ from the other. 621 void gather(Value *V) { 622 Instruction *I = dyn_cast<Instruction>(V); 623 bool isEQ = (I->getOpcode() == Instruction::Or); 624 625 // Keep a stack (SmallVector for efficiency) for depth-first traversal 626 SmallVector<Value *, 8> DFT; 627 SmallPtrSet<Value *, 8> Visited; 628 629 // Initialize 630 Visited.insert(V); 631 DFT.push_back(V); 632 633 while (!DFT.empty()) { 634 V = DFT.pop_back_val(); 635 636 if (Instruction *I = dyn_cast<Instruction>(V)) { 637 // If it is a || (or && depending on isEQ), process the operands. 638 if (I->getOpcode() == (isEQ ? Instruction::Or : Instruction::And)) { 639 if (Visited.insert(I->getOperand(1)).second) 640 DFT.push_back(I->getOperand(1)); 641 if (Visited.insert(I->getOperand(0)).second) 642 DFT.push_back(I->getOperand(0)); 643 continue; 644 } 645 646 // Try to match the current instruction 647 if (matchInstruction(I, isEQ)) 648 // Match succeed, continue the loop 649 continue; 650 } 651 652 // One element of the sequence of || (or &&) could not be match as a 653 // comparison against the same value as the others. 654 // We allow only one "Extra" case to be checked before the switch 655 if (!Extra) { 656 Extra = V; 657 continue; 658 } 659 // Failed to parse a proper sequence, abort now 660 CompValue = nullptr; 661 break; 662 } 663 } 664 }; 665 666 } // end anonymous namespace 667 668 static void EraseTerminatorInstAndDCECond(TerminatorInst *TI) { 669 Instruction *Cond = nullptr; 670 if (SwitchInst *SI = dyn_cast<SwitchInst>(TI)) { 671 Cond = dyn_cast<Instruction>(SI->getCondition()); 672 } else if (BranchInst *BI = dyn_cast<BranchInst>(TI)) { 673 if (BI->isConditional()) 674 Cond = dyn_cast<Instruction>(BI->getCondition()); 675 } else if (IndirectBrInst *IBI = dyn_cast<IndirectBrInst>(TI)) { 676 Cond = dyn_cast<Instruction>(IBI->getAddress()); 677 } 678 679 TI->eraseFromParent(); 680 if (Cond) 681 RecursivelyDeleteTriviallyDeadInstructions(Cond); 682 } 683 684 /// Return true if the specified terminator checks 685 /// to see if a value is equal to constant integer value. 686 Value *SimplifyCFGOpt::isValueEqualityComparison(TerminatorInst *TI) { 687 Value *CV = nullptr; 688 if (SwitchInst *SI = dyn_cast<SwitchInst>(TI)) { 689 // Do not permit merging of large switch instructions into their 690 // predecessors unless there is only one predecessor. 691 if (SI->getNumSuccessors() * std::distance(pred_begin(SI->getParent()), 692 pred_end(SI->getParent())) <= 693 128) 694 CV = SI->getCondition(); 695 } else if (BranchInst *BI = dyn_cast<BranchInst>(TI)) 696 if (BI->isConditional() && BI->getCondition()->hasOneUse()) 697 if (ICmpInst *ICI = dyn_cast<ICmpInst>(BI->getCondition())) { 698 if (ICI->isEquality() && GetConstantInt(ICI->getOperand(1), DL)) 699 CV = ICI->getOperand(0); 700 } 701 702 // Unwrap any lossless ptrtoint cast. 703 if (CV) { 704 if (PtrToIntInst *PTII = dyn_cast<PtrToIntInst>(CV)) { 705 Value *Ptr = PTII->getPointerOperand(); 706 if (PTII->getType() == DL.getIntPtrType(Ptr->getType())) 707 CV = Ptr; 708 } 709 } 710 return CV; 711 } 712 713 /// Given a value comparison instruction, 714 /// decode all of the 'cases' that it represents and return the 'default' block. 715 BasicBlock *SimplifyCFGOpt::GetValueEqualityComparisonCases( 716 TerminatorInst *TI, std::vector<ValueEqualityComparisonCase> &Cases) { 717 if (SwitchInst *SI = dyn_cast<SwitchInst>(TI)) { 718 Cases.reserve(SI->getNumCases()); 719 for (auto Case : SI->cases()) 720 Cases.push_back(ValueEqualityComparisonCase(Case.getCaseValue(), 721 Case.getCaseSuccessor())); 722 return SI->getDefaultDest(); 723 } 724 725 BranchInst *BI = cast<BranchInst>(TI); 726 ICmpInst *ICI = cast<ICmpInst>(BI->getCondition()); 727 BasicBlock *Succ = BI->getSuccessor(ICI->getPredicate() == ICmpInst::ICMP_NE); 728 Cases.push_back(ValueEqualityComparisonCase( 729 GetConstantInt(ICI->getOperand(1), DL), Succ)); 730 return BI->getSuccessor(ICI->getPredicate() == ICmpInst::ICMP_EQ); 731 } 732 733 /// Given a vector of bb/value pairs, remove any entries 734 /// in the list that match the specified block. 735 static void 736 EliminateBlockCases(BasicBlock *BB, 737 std::vector<ValueEqualityComparisonCase> &Cases) { 738 Cases.erase(std::remove(Cases.begin(), Cases.end(), BB), Cases.end()); 739 } 740 741 /// Return true if there are any keys in C1 that exist in C2 as well. 742 static bool ValuesOverlap(std::vector<ValueEqualityComparisonCase> &C1, 743 std::vector<ValueEqualityComparisonCase> &C2) { 744 std::vector<ValueEqualityComparisonCase> *V1 = &C1, *V2 = &C2; 745 746 // Make V1 be smaller than V2. 747 if (V1->size() > V2->size()) 748 std::swap(V1, V2); 749 750 if (V1->empty()) 751 return false; 752 if (V1->size() == 1) { 753 // Just scan V2. 754 ConstantInt *TheVal = (*V1)[0].Value; 755 for (unsigned i = 0, e = V2->size(); i != e; ++i) 756 if (TheVal == (*V2)[i].Value) 757 return true; 758 } 759 760 // Otherwise, just sort both lists and compare element by element. 761 array_pod_sort(V1->begin(), V1->end()); 762 array_pod_sort(V2->begin(), V2->end()); 763 unsigned i1 = 0, i2 = 0, e1 = V1->size(), e2 = V2->size(); 764 while (i1 != e1 && i2 != e2) { 765 if ((*V1)[i1].Value == (*V2)[i2].Value) 766 return true; 767 if ((*V1)[i1].Value < (*V2)[i2].Value) 768 ++i1; 769 else 770 ++i2; 771 } 772 return false; 773 } 774 775 // Set branch weights on SwitchInst. This sets the metadata if there is at 776 // least one non-zero weight. 777 static void setBranchWeights(SwitchInst *SI, ArrayRef<uint32_t> Weights) { 778 // Check that there is at least one non-zero weight. Otherwise, pass 779 // nullptr to setMetadata which will erase the existing metadata. 780 MDNode *N = nullptr; 781 if (llvm::any_of(Weights, [](uint32_t W) { return W != 0; })) 782 N = MDBuilder(SI->getParent()->getContext()).createBranchWeights(Weights); 783 SI->setMetadata(LLVMContext::MD_prof, N); 784 } 785 786 // Similar to the above, but for branch and select instructions that take 787 // exactly 2 weights. 788 static void setBranchWeights(Instruction *I, uint32_t TrueWeight, 789 uint32_t FalseWeight) { 790 assert(isa<BranchInst>(I) || isa<SelectInst>(I)); 791 // Check that there is at least one non-zero weight. Otherwise, pass 792 // nullptr to setMetadata which will erase the existing metadata. 793 MDNode *N = nullptr; 794 if (TrueWeight || FalseWeight) 795 N = MDBuilder(I->getParent()->getContext()) 796 .createBranchWeights(TrueWeight, FalseWeight); 797 I->setMetadata(LLVMContext::MD_prof, N); 798 } 799 800 /// If TI is known to be a terminator instruction and its block is known to 801 /// only have a single predecessor block, check to see if that predecessor is 802 /// also a value comparison with the same value, and if that comparison 803 /// determines the outcome of this comparison. If so, simplify TI. This does a 804 /// very limited form of jump threading. 805 bool SimplifyCFGOpt::SimplifyEqualityComparisonWithOnlyPredecessor( 806 TerminatorInst *TI, BasicBlock *Pred, IRBuilder<> &Builder) { 807 Value *PredVal = isValueEqualityComparison(Pred->getTerminator()); 808 if (!PredVal) 809 return false; // Not a value comparison in predecessor. 810 811 Value *ThisVal = isValueEqualityComparison(TI); 812 assert(ThisVal && "This isn't a value comparison!!"); 813 if (ThisVal != PredVal) 814 return false; // Different predicates. 815 816 // TODO: Preserve branch weight metadata, similarly to how 817 // FoldValueComparisonIntoPredecessors preserves it. 818 819 // Find out information about when control will move from Pred to TI's block. 820 std::vector<ValueEqualityComparisonCase> PredCases; 821 BasicBlock *PredDef = 822 GetValueEqualityComparisonCases(Pred->getTerminator(), PredCases); 823 EliminateBlockCases(PredDef, PredCases); // Remove default from cases. 824 825 // Find information about how control leaves this block. 826 std::vector<ValueEqualityComparisonCase> ThisCases; 827 BasicBlock *ThisDef = GetValueEqualityComparisonCases(TI, ThisCases); 828 EliminateBlockCases(ThisDef, ThisCases); // Remove default from cases. 829 830 // If TI's block is the default block from Pred's comparison, potentially 831 // simplify TI based on this knowledge. 832 if (PredDef == TI->getParent()) { 833 // If we are here, we know that the value is none of those cases listed in 834 // PredCases. If there are any cases in ThisCases that are in PredCases, we 835 // can simplify TI. 836 if (!ValuesOverlap(PredCases, ThisCases)) 837 return false; 838 839 if (isa<BranchInst>(TI)) { 840 // Okay, one of the successors of this condbr is dead. Convert it to a 841 // uncond br. 842 assert(ThisCases.size() == 1 && "Branch can only have one case!"); 843 // Insert the new branch. 844 Instruction *NI = Builder.CreateBr(ThisDef); 845 (void)NI; 846 847 // Remove PHI node entries for the dead edge. 848 ThisCases[0].Dest->removePredecessor(TI->getParent()); 849 850 DEBUG(dbgs() << "Threading pred instr: " << *Pred->getTerminator() 851 << "Through successor TI: " << *TI << "Leaving: " << *NI 852 << "\n"); 853 854 EraseTerminatorInstAndDCECond(TI); 855 return true; 856 } 857 858 SwitchInst *SI = cast<SwitchInst>(TI); 859 // Okay, TI has cases that are statically dead, prune them away. 860 SmallPtrSet<Constant *, 16> DeadCases; 861 for (unsigned i = 0, e = PredCases.size(); i != e; ++i) 862 DeadCases.insert(PredCases[i].Value); 863 864 DEBUG(dbgs() << "Threading pred instr: " << *Pred->getTerminator() 865 << "Through successor TI: " << *TI); 866 867 // Collect branch weights into a vector. 868 SmallVector<uint32_t, 8> Weights; 869 MDNode *MD = SI->getMetadata(LLVMContext::MD_prof); 870 bool HasWeight = MD && (MD->getNumOperands() == 2 + SI->getNumCases()); 871 if (HasWeight) 872 for (unsigned MD_i = 1, MD_e = MD->getNumOperands(); MD_i < MD_e; 873 ++MD_i) { 874 ConstantInt *CI = mdconst::extract<ConstantInt>(MD->getOperand(MD_i)); 875 Weights.push_back(CI->getValue().getZExtValue()); 876 } 877 for (SwitchInst::CaseIt i = SI->case_end(), e = SI->case_begin(); i != e;) { 878 --i; 879 if (DeadCases.count(i->getCaseValue())) { 880 if (HasWeight) { 881 std::swap(Weights[i->getCaseIndex() + 1], Weights.back()); 882 Weights.pop_back(); 883 } 884 i->getCaseSuccessor()->removePredecessor(TI->getParent()); 885 SI->removeCase(i); 886 } 887 } 888 if (HasWeight && Weights.size() >= 2) 889 setBranchWeights(SI, Weights); 890 891 DEBUG(dbgs() << "Leaving: " << *TI << "\n"); 892 return true; 893 } 894 895 // Otherwise, TI's block must correspond to some matched value. Find out 896 // which value (or set of values) this is. 897 ConstantInt *TIV = nullptr; 898 BasicBlock *TIBB = TI->getParent(); 899 for (unsigned i = 0, e = PredCases.size(); i != e; ++i) 900 if (PredCases[i].Dest == TIBB) { 901 if (TIV) 902 return false; // Cannot handle multiple values coming to this block. 903 TIV = PredCases[i].Value; 904 } 905 assert(TIV && "No edge from pred to succ?"); 906 907 // Okay, we found the one constant that our value can be if we get into TI's 908 // BB. Find out which successor will unconditionally be branched to. 909 BasicBlock *TheRealDest = nullptr; 910 for (unsigned i = 0, e = ThisCases.size(); i != e; ++i) 911 if (ThisCases[i].Value == TIV) { 912 TheRealDest = ThisCases[i].Dest; 913 break; 914 } 915 916 // If not handled by any explicit cases, it is handled by the default case. 917 if (!TheRealDest) 918 TheRealDest = ThisDef; 919 920 // Remove PHI node entries for dead edges. 921 BasicBlock *CheckEdge = TheRealDest; 922 for (BasicBlock *Succ : successors(TIBB)) 923 if (Succ != CheckEdge) 924 Succ->removePredecessor(TIBB); 925 else 926 CheckEdge = nullptr; 927 928 // Insert the new branch. 929 Instruction *NI = Builder.CreateBr(TheRealDest); 930 (void)NI; 931 932 DEBUG(dbgs() << "Threading pred instr: " << *Pred->getTerminator() 933 << "Through successor TI: " << *TI << "Leaving: " << *NI 934 << "\n"); 935 936 EraseTerminatorInstAndDCECond(TI); 937 return true; 938 } 939 940 namespace { 941 942 /// This class implements a stable ordering of constant 943 /// integers that does not depend on their address. This is important for 944 /// applications that sort ConstantInt's to ensure uniqueness. 945 struct ConstantIntOrdering { 946 bool operator()(const ConstantInt *LHS, const ConstantInt *RHS) const { 947 return LHS->getValue().ult(RHS->getValue()); 948 } 949 }; 950 951 } // end anonymous namespace 952 953 static int ConstantIntSortPredicate(ConstantInt *const *P1, 954 ConstantInt *const *P2) { 955 const ConstantInt *LHS = *P1; 956 const ConstantInt *RHS = *P2; 957 if (LHS == RHS) 958 return 0; 959 return LHS->getValue().ult(RHS->getValue()) ? 1 : -1; 960 } 961 962 static inline bool HasBranchWeights(const Instruction *I) { 963 MDNode *ProfMD = I->getMetadata(LLVMContext::MD_prof); 964 if (ProfMD && ProfMD->getOperand(0)) 965 if (MDString *MDS = dyn_cast<MDString>(ProfMD->getOperand(0))) 966 return MDS->getString().equals("branch_weights"); 967 968 return false; 969 } 970 971 /// Get Weights of a given TerminatorInst, the default weight is at the front 972 /// of the vector. If TI is a conditional eq, we need to swap the branch-weight 973 /// metadata. 974 static void GetBranchWeights(TerminatorInst *TI, 975 SmallVectorImpl<uint64_t> &Weights) { 976 MDNode *MD = TI->getMetadata(LLVMContext::MD_prof); 977 assert(MD); 978 for (unsigned i = 1, e = MD->getNumOperands(); i < e; ++i) { 979 ConstantInt *CI = mdconst::extract<ConstantInt>(MD->getOperand(i)); 980 Weights.push_back(CI->getValue().getZExtValue()); 981 } 982 983 // If TI is a conditional eq, the default case is the false case, 984 // and the corresponding branch-weight data is at index 2. We swap the 985 // default weight to be the first entry. 986 if (BranchInst *BI = dyn_cast<BranchInst>(TI)) { 987 assert(Weights.size() == 2); 988 ICmpInst *ICI = cast<ICmpInst>(BI->getCondition()); 989 if (ICI->getPredicate() == ICmpInst::ICMP_EQ) 990 std::swap(Weights.front(), Weights.back()); 991 } 992 } 993 994 /// Keep halving the weights until all can fit in uint32_t. 995 static void FitWeights(MutableArrayRef<uint64_t> Weights) { 996 uint64_t Max = *std::max_element(Weights.begin(), Weights.end()); 997 if (Max > UINT_MAX) { 998 unsigned Offset = 32 - countLeadingZeros(Max); 999 for (uint64_t &I : Weights) 1000 I >>= Offset; 1001 } 1002 } 1003 1004 /// The specified terminator is a value equality comparison instruction 1005 /// (either a switch or a branch on "X == c"). 1006 /// See if any of the predecessors of the terminator block are value comparisons 1007 /// on the same value. If so, and if safe to do so, fold them together. 1008 bool SimplifyCFGOpt::FoldValueComparisonIntoPredecessors(TerminatorInst *TI, 1009 IRBuilder<> &Builder) { 1010 BasicBlock *BB = TI->getParent(); 1011 Value *CV = isValueEqualityComparison(TI); // CondVal 1012 assert(CV && "Not a comparison?"); 1013 bool Changed = false; 1014 1015 SmallVector<BasicBlock *, 16> Preds(pred_begin(BB), pred_end(BB)); 1016 while (!Preds.empty()) { 1017 BasicBlock *Pred = Preds.pop_back_val(); 1018 1019 // See if the predecessor is a comparison with the same value. 1020 TerminatorInst *PTI = Pred->getTerminator(); 1021 Value *PCV = isValueEqualityComparison(PTI); // PredCondVal 1022 1023 if (PCV == CV && TI != PTI) { 1024 SmallSetVector<BasicBlock*, 4> FailBlocks; 1025 if (!SafeToMergeTerminators(TI, PTI, &FailBlocks)) { 1026 for (auto *Succ : FailBlocks) { 1027 if (!SplitBlockPredecessors(Succ, TI->getParent(), ".fold.split")) 1028 return false; 1029 } 1030 } 1031 1032 // Figure out which 'cases' to copy from SI to PSI. 1033 std::vector<ValueEqualityComparisonCase> BBCases; 1034 BasicBlock *BBDefault = GetValueEqualityComparisonCases(TI, BBCases); 1035 1036 std::vector<ValueEqualityComparisonCase> PredCases; 1037 BasicBlock *PredDefault = GetValueEqualityComparisonCases(PTI, PredCases); 1038 1039 // Based on whether the default edge from PTI goes to BB or not, fill in 1040 // PredCases and PredDefault with the new switch cases we would like to 1041 // build. 1042 SmallVector<BasicBlock *, 8> NewSuccessors; 1043 1044 // Update the branch weight metadata along the way 1045 SmallVector<uint64_t, 8> Weights; 1046 bool PredHasWeights = HasBranchWeights(PTI); 1047 bool SuccHasWeights = HasBranchWeights(TI); 1048 1049 if (PredHasWeights) { 1050 GetBranchWeights(PTI, Weights); 1051 // branch-weight metadata is inconsistent here. 1052 if (Weights.size() != 1 + PredCases.size()) 1053 PredHasWeights = SuccHasWeights = false; 1054 } else if (SuccHasWeights) 1055 // If there are no predecessor weights but there are successor weights, 1056 // populate Weights with 1, which will later be scaled to the sum of 1057 // successor's weights 1058 Weights.assign(1 + PredCases.size(), 1); 1059 1060 SmallVector<uint64_t, 8> SuccWeights; 1061 if (SuccHasWeights) { 1062 GetBranchWeights(TI, SuccWeights); 1063 // branch-weight metadata is inconsistent here. 1064 if (SuccWeights.size() != 1 + BBCases.size()) 1065 PredHasWeights = SuccHasWeights = false; 1066 } else if (PredHasWeights) 1067 SuccWeights.assign(1 + BBCases.size(), 1); 1068 1069 if (PredDefault == BB) { 1070 // If this is the default destination from PTI, only the edges in TI 1071 // that don't occur in PTI, or that branch to BB will be activated. 1072 std::set<ConstantInt *, ConstantIntOrdering> PTIHandled; 1073 for (unsigned i = 0, e = PredCases.size(); i != e; ++i) 1074 if (PredCases[i].Dest != BB) 1075 PTIHandled.insert(PredCases[i].Value); 1076 else { 1077 // The default destination is BB, we don't need explicit targets. 1078 std::swap(PredCases[i], PredCases.back()); 1079 1080 if (PredHasWeights || SuccHasWeights) { 1081 // Increase weight for the default case. 1082 Weights[0] += Weights[i + 1]; 1083 std::swap(Weights[i + 1], Weights.back()); 1084 Weights.pop_back(); 1085 } 1086 1087 PredCases.pop_back(); 1088 --i; 1089 --e; 1090 } 1091 1092 // Reconstruct the new switch statement we will be building. 1093 if (PredDefault != BBDefault) { 1094 PredDefault->removePredecessor(Pred); 1095 PredDefault = BBDefault; 1096 NewSuccessors.push_back(BBDefault); 1097 } 1098 1099 unsigned CasesFromPred = Weights.size(); 1100 uint64_t ValidTotalSuccWeight = 0; 1101 for (unsigned i = 0, e = BBCases.size(); i != e; ++i) 1102 if (!PTIHandled.count(BBCases[i].Value) && 1103 BBCases[i].Dest != BBDefault) { 1104 PredCases.push_back(BBCases[i]); 1105 NewSuccessors.push_back(BBCases[i].Dest); 1106 if (SuccHasWeights || PredHasWeights) { 1107 // The default weight is at index 0, so weight for the ith case 1108 // should be at index i+1. Scale the cases from successor by 1109 // PredDefaultWeight (Weights[0]). 1110 Weights.push_back(Weights[0] * SuccWeights[i + 1]); 1111 ValidTotalSuccWeight += SuccWeights[i + 1]; 1112 } 1113 } 1114 1115 if (SuccHasWeights || PredHasWeights) { 1116 ValidTotalSuccWeight += SuccWeights[0]; 1117 // Scale the cases from predecessor by ValidTotalSuccWeight. 1118 for (unsigned i = 1; i < CasesFromPred; ++i) 1119 Weights[i] *= ValidTotalSuccWeight; 1120 // Scale the default weight by SuccDefaultWeight (SuccWeights[0]). 1121 Weights[0] *= SuccWeights[0]; 1122 } 1123 } else { 1124 // If this is not the default destination from PSI, only the edges 1125 // in SI that occur in PSI with a destination of BB will be 1126 // activated. 1127 std::set<ConstantInt *, ConstantIntOrdering> PTIHandled; 1128 std::map<ConstantInt *, uint64_t> WeightsForHandled; 1129 for (unsigned i = 0, e = PredCases.size(); i != e; ++i) 1130 if (PredCases[i].Dest == BB) { 1131 PTIHandled.insert(PredCases[i].Value); 1132 1133 if (PredHasWeights || SuccHasWeights) { 1134 WeightsForHandled[PredCases[i].Value] = Weights[i + 1]; 1135 std::swap(Weights[i + 1], Weights.back()); 1136 Weights.pop_back(); 1137 } 1138 1139 std::swap(PredCases[i], PredCases.back()); 1140 PredCases.pop_back(); 1141 --i; 1142 --e; 1143 } 1144 1145 // Okay, now we know which constants were sent to BB from the 1146 // predecessor. Figure out where they will all go now. 1147 for (unsigned i = 0, e = BBCases.size(); i != e; ++i) 1148 if (PTIHandled.count(BBCases[i].Value)) { 1149 // If this is one we are capable of getting... 1150 if (PredHasWeights || SuccHasWeights) 1151 Weights.push_back(WeightsForHandled[BBCases[i].Value]); 1152 PredCases.push_back(BBCases[i]); 1153 NewSuccessors.push_back(BBCases[i].Dest); 1154 PTIHandled.erase( 1155 BBCases[i].Value); // This constant is taken care of 1156 } 1157 1158 // If there are any constants vectored to BB that TI doesn't handle, 1159 // they must go to the default destination of TI. 1160 for (ConstantInt *I : PTIHandled) { 1161 if (PredHasWeights || SuccHasWeights) 1162 Weights.push_back(WeightsForHandled[I]); 1163 PredCases.push_back(ValueEqualityComparisonCase(I, BBDefault)); 1164 NewSuccessors.push_back(BBDefault); 1165 } 1166 } 1167 1168 // Okay, at this point, we know which new successor Pred will get. Make 1169 // sure we update the number of entries in the PHI nodes for these 1170 // successors. 1171 for (BasicBlock *NewSuccessor : NewSuccessors) 1172 AddPredecessorToBlock(NewSuccessor, Pred, BB); 1173 1174 Builder.SetInsertPoint(PTI); 1175 // Convert pointer to int before we switch. 1176 if (CV->getType()->isPointerTy()) { 1177 CV = Builder.CreatePtrToInt(CV, DL.getIntPtrType(CV->getType()), 1178 "magicptr"); 1179 } 1180 1181 // Now that the successors are updated, create the new Switch instruction. 1182 SwitchInst *NewSI = 1183 Builder.CreateSwitch(CV, PredDefault, PredCases.size()); 1184 NewSI->setDebugLoc(PTI->getDebugLoc()); 1185 for (ValueEqualityComparisonCase &V : PredCases) 1186 NewSI->addCase(V.Value, V.Dest); 1187 1188 if (PredHasWeights || SuccHasWeights) { 1189 // Halve the weights if any of them cannot fit in an uint32_t 1190 FitWeights(Weights); 1191 1192 SmallVector<uint32_t, 8> MDWeights(Weights.begin(), Weights.end()); 1193 1194 setBranchWeights(NewSI, MDWeights); 1195 } 1196 1197 EraseTerminatorInstAndDCECond(PTI); 1198 1199 // Okay, last check. If BB is still a successor of PSI, then we must 1200 // have an infinite loop case. If so, add an infinitely looping block 1201 // to handle the case to preserve the behavior of the code. 1202 BasicBlock *InfLoopBlock = nullptr; 1203 for (unsigned i = 0, e = NewSI->getNumSuccessors(); i != e; ++i) 1204 if (NewSI->getSuccessor(i) == BB) { 1205 if (!InfLoopBlock) { 1206 // Insert it at the end of the function, because it's either code, 1207 // or it won't matter if it's hot. :) 1208 InfLoopBlock = BasicBlock::Create(BB->getContext(), "infloop", 1209 BB->getParent()); 1210 BranchInst::Create(InfLoopBlock, InfLoopBlock); 1211 } 1212 NewSI->setSuccessor(i, InfLoopBlock); 1213 } 1214 1215 Changed = true; 1216 } 1217 } 1218 return Changed; 1219 } 1220 1221 // If we would need to insert a select that uses the value of this invoke 1222 // (comments in HoistThenElseCodeToIf explain why we would need to do this), we 1223 // can't hoist the invoke, as there is nowhere to put the select in this case. 1224 static bool isSafeToHoistInvoke(BasicBlock *BB1, BasicBlock *BB2, 1225 Instruction *I1, Instruction *I2) { 1226 for (BasicBlock *Succ : successors(BB1)) { 1227 for (const PHINode &PN : Succ->phis()) { 1228 Value *BB1V = PN.getIncomingValueForBlock(BB1); 1229 Value *BB2V = PN.getIncomingValueForBlock(BB2); 1230 if (BB1V != BB2V && (BB1V == I1 || BB2V == I2)) { 1231 return false; 1232 } 1233 } 1234 } 1235 return true; 1236 } 1237 1238 static bool passingValueIsAlwaysUndefined(Value *V, Instruction *I); 1239 1240 /// Given a conditional branch that goes to BB1 and BB2, hoist any common code 1241 /// in the two blocks up into the branch block. The caller of this function 1242 /// guarantees that BI's block dominates BB1 and BB2. 1243 static bool HoistThenElseCodeToIf(BranchInst *BI, 1244 const TargetTransformInfo &TTI) { 1245 // This does very trivial matching, with limited scanning, to find identical 1246 // instructions in the two blocks. In particular, we don't want to get into 1247 // O(M*N) situations here where M and N are the sizes of BB1 and BB2. As 1248 // such, we currently just scan for obviously identical instructions in an 1249 // identical order. 1250 BasicBlock *BB1 = BI->getSuccessor(0); // The true destination. 1251 BasicBlock *BB2 = BI->getSuccessor(1); // The false destination 1252 1253 BasicBlock::iterator BB1_Itr = BB1->begin(); 1254 BasicBlock::iterator BB2_Itr = BB2->begin(); 1255 1256 Instruction *I1 = &*BB1_Itr++, *I2 = &*BB2_Itr++; 1257 // Skip debug info if it is not identical. 1258 DbgInfoIntrinsic *DBI1 = dyn_cast<DbgInfoIntrinsic>(I1); 1259 DbgInfoIntrinsic *DBI2 = dyn_cast<DbgInfoIntrinsic>(I2); 1260 if (!DBI1 || !DBI2 || !DBI1->isIdenticalToWhenDefined(DBI2)) { 1261 while (isa<DbgInfoIntrinsic>(I1)) 1262 I1 = &*BB1_Itr++; 1263 while (isa<DbgInfoIntrinsic>(I2)) 1264 I2 = &*BB2_Itr++; 1265 } 1266 if (isa<PHINode>(I1) || !I1->isIdenticalToWhenDefined(I2) || 1267 (isa<InvokeInst>(I1) && !isSafeToHoistInvoke(BB1, BB2, I1, I2))) 1268 return false; 1269 1270 BasicBlock *BIParent = BI->getParent(); 1271 1272 bool Changed = false; 1273 do { 1274 // If we are hoisting the terminator instruction, don't move one (making a 1275 // broken BB), instead clone it, and remove BI. 1276 if (isa<TerminatorInst>(I1)) 1277 goto HoistTerminator; 1278 1279 // If we're going to hoist a call, make sure that the two instructions we're 1280 // commoning/hoisting are both marked with musttail, or neither of them is 1281 // marked as such. Otherwise, we might end up in a situation where we hoist 1282 // from a block where the terminator is a `ret` to a block where the terminator 1283 // is a `br`, and `musttail` calls expect to be followed by a return. 1284 auto *C1 = dyn_cast<CallInst>(I1); 1285 auto *C2 = dyn_cast<CallInst>(I2); 1286 if (C1 && C2) 1287 if (C1->isMustTailCall() != C2->isMustTailCall()) 1288 return Changed; 1289 1290 if (!TTI.isProfitableToHoist(I1) || !TTI.isProfitableToHoist(I2)) 1291 return Changed; 1292 1293 if (isa<DbgInfoIntrinsic>(I1) || isa<DbgInfoIntrinsic>(I2)) { 1294 assert (isa<DbgInfoIntrinsic>(I1) && isa<DbgInfoIntrinsic>(I2)); 1295 // The debug location is an integral part of a debug info intrinsic 1296 // and can't be separated from it or replaced. Instead of attempting 1297 // to merge locations, simply hoist both copies of the intrinsic. 1298 BIParent->getInstList().splice(BI->getIterator(), 1299 BB1->getInstList(), I1); 1300 BIParent->getInstList().splice(BI->getIterator(), 1301 BB2->getInstList(), I2); 1302 Changed = true; 1303 } else { 1304 // For a normal instruction, we just move one to right before the branch, 1305 // then replace all uses of the other with the first. Finally, we remove 1306 // the now redundant second instruction. 1307 BIParent->getInstList().splice(BI->getIterator(), 1308 BB1->getInstList(), I1); 1309 if (!I2->use_empty()) 1310 I2->replaceAllUsesWith(I1); 1311 I1->andIRFlags(I2); 1312 unsigned KnownIDs[] = {LLVMContext::MD_tbaa, 1313 LLVMContext::MD_range, 1314 LLVMContext::MD_fpmath, 1315 LLVMContext::MD_invariant_load, 1316 LLVMContext::MD_nonnull, 1317 LLVMContext::MD_invariant_group, 1318 LLVMContext::MD_align, 1319 LLVMContext::MD_dereferenceable, 1320 LLVMContext::MD_dereferenceable_or_null, 1321 LLVMContext::MD_mem_parallel_loop_access}; 1322 combineMetadata(I1, I2, KnownIDs); 1323 1324 // I1 and I2 are being combined into a single instruction. Its debug 1325 // location is the merged locations of the original instructions. 1326 I1->applyMergedLocation(I1->getDebugLoc(), I2->getDebugLoc()); 1327 1328 I2->eraseFromParent(); 1329 Changed = true; 1330 } 1331 1332 I1 = &*BB1_Itr++; 1333 I2 = &*BB2_Itr++; 1334 // Skip debug info if it is not identical. 1335 DbgInfoIntrinsic *DBI1 = dyn_cast<DbgInfoIntrinsic>(I1); 1336 DbgInfoIntrinsic *DBI2 = dyn_cast<DbgInfoIntrinsic>(I2); 1337 if (!DBI1 || !DBI2 || !DBI1->isIdenticalToWhenDefined(DBI2)) { 1338 while (isa<DbgInfoIntrinsic>(I1)) 1339 I1 = &*BB1_Itr++; 1340 while (isa<DbgInfoIntrinsic>(I2)) 1341 I2 = &*BB2_Itr++; 1342 } 1343 } while (I1->isIdenticalToWhenDefined(I2)); 1344 1345 return true; 1346 1347 HoistTerminator: 1348 // It may not be possible to hoist an invoke. 1349 if (isa<InvokeInst>(I1) && !isSafeToHoistInvoke(BB1, BB2, I1, I2)) 1350 return Changed; 1351 1352 for (BasicBlock *Succ : successors(BB1)) { 1353 for (PHINode &PN : Succ->phis()) { 1354 Value *BB1V = PN.getIncomingValueForBlock(BB1); 1355 Value *BB2V = PN.getIncomingValueForBlock(BB2); 1356 if (BB1V == BB2V) 1357 continue; 1358 1359 // Check for passingValueIsAlwaysUndefined here because we would rather 1360 // eliminate undefined control flow then converting it to a select. 1361 if (passingValueIsAlwaysUndefined(BB1V, &PN) || 1362 passingValueIsAlwaysUndefined(BB2V, &PN)) 1363 return Changed; 1364 1365 if (isa<ConstantExpr>(BB1V) && !isSafeToSpeculativelyExecute(BB1V)) 1366 return Changed; 1367 if (isa<ConstantExpr>(BB2V) && !isSafeToSpeculativelyExecute(BB2V)) 1368 return Changed; 1369 } 1370 } 1371 1372 // Okay, it is safe to hoist the terminator. 1373 Instruction *NT = I1->clone(); 1374 BIParent->getInstList().insert(BI->getIterator(), NT); 1375 if (!NT->getType()->isVoidTy()) { 1376 I1->replaceAllUsesWith(NT); 1377 I2->replaceAllUsesWith(NT); 1378 NT->takeName(I1); 1379 } 1380 1381 IRBuilder<NoFolder> Builder(NT); 1382 // Hoisting one of the terminators from our successor is a great thing. 1383 // Unfortunately, the successors of the if/else blocks may have PHI nodes in 1384 // them. If they do, all PHI entries for BB1/BB2 must agree for all PHI 1385 // nodes, so we insert select instruction to compute the final result. 1386 std::map<std::pair<Value *, Value *>, SelectInst *> InsertedSelects; 1387 for (BasicBlock *Succ : successors(BB1)) { 1388 for (PHINode &PN : Succ->phis()) { 1389 Value *BB1V = PN.getIncomingValueForBlock(BB1); 1390 Value *BB2V = PN.getIncomingValueForBlock(BB2); 1391 if (BB1V == BB2V) 1392 continue; 1393 1394 // These values do not agree. Insert a select instruction before NT 1395 // that determines the right value. 1396 SelectInst *&SI = InsertedSelects[std::make_pair(BB1V, BB2V)]; 1397 if (!SI) 1398 SI = cast<SelectInst>( 1399 Builder.CreateSelect(BI->getCondition(), BB1V, BB2V, 1400 BB1V->getName() + "." + BB2V->getName(), BI)); 1401 1402 // Make the PHI node use the select for all incoming values for BB1/BB2 1403 for (unsigned i = 0, e = PN.getNumIncomingValues(); i != e; ++i) 1404 if (PN.getIncomingBlock(i) == BB1 || PN.getIncomingBlock(i) == BB2) 1405 PN.setIncomingValue(i, SI); 1406 } 1407 } 1408 1409 // Update any PHI nodes in our new successors. 1410 for (BasicBlock *Succ : successors(BB1)) 1411 AddPredecessorToBlock(Succ, BIParent, BB1); 1412 1413 EraseTerminatorInstAndDCECond(BI); 1414 return true; 1415 } 1416 1417 // All instructions in Insts belong to different blocks that all unconditionally 1418 // branch to a common successor. Analyze each instruction and return true if it 1419 // would be possible to sink them into their successor, creating one common 1420 // instruction instead. For every value that would be required to be provided by 1421 // PHI node (because an operand varies in each input block), add to PHIOperands. 1422 static bool canSinkInstructions( 1423 ArrayRef<Instruction *> Insts, 1424 DenseMap<Instruction *, SmallVector<Value *, 4>> &PHIOperands) { 1425 // Prune out obviously bad instructions to move. Any non-store instruction 1426 // must have exactly one use, and we check later that use is by a single, 1427 // common PHI instruction in the successor. 1428 for (auto *I : Insts) { 1429 // These instructions may change or break semantics if moved. 1430 if (isa<PHINode>(I) || I->isEHPad() || isa<AllocaInst>(I) || 1431 I->getType()->isTokenTy()) 1432 return false; 1433 1434 // Conservatively return false if I is an inline-asm instruction. Sinking 1435 // and merging inline-asm instructions can potentially create arguments 1436 // that cannot satisfy the inline-asm constraints. 1437 if (const auto *C = dyn_cast<CallInst>(I)) 1438 if (C->isInlineAsm()) 1439 return false; 1440 1441 // Everything must have only one use too, apart from stores which 1442 // have no uses. 1443 if (!isa<StoreInst>(I) && !I->hasOneUse()) 1444 return false; 1445 } 1446 1447 const Instruction *I0 = Insts.front(); 1448 for (auto *I : Insts) 1449 if (!I->isSameOperationAs(I0)) 1450 return false; 1451 1452 // All instructions in Insts are known to be the same opcode. If they aren't 1453 // stores, check the only user of each is a PHI or in the same block as the 1454 // instruction, because if a user is in the same block as an instruction 1455 // we're contemplating sinking, it must already be determined to be sinkable. 1456 if (!isa<StoreInst>(I0)) { 1457 auto *PNUse = dyn_cast<PHINode>(*I0->user_begin()); 1458 auto *Succ = I0->getParent()->getTerminator()->getSuccessor(0); 1459 if (!all_of(Insts, [&PNUse,&Succ](const Instruction *I) -> bool { 1460 auto *U = cast<Instruction>(*I->user_begin()); 1461 return (PNUse && 1462 PNUse->getParent() == Succ && 1463 PNUse->getIncomingValueForBlock(I->getParent()) == I) || 1464 U->getParent() == I->getParent(); 1465 })) 1466 return false; 1467 } 1468 1469 // Because SROA can't handle speculating stores of selects, try not 1470 // to sink loads or stores of allocas when we'd have to create a PHI for 1471 // the address operand. Also, because it is likely that loads or stores 1472 // of allocas will disappear when Mem2Reg/SROA is run, don't sink them. 1473 // This can cause code churn which can have unintended consequences down 1474 // the line - see https://llvm.org/bugs/show_bug.cgi?id=30244. 1475 // FIXME: This is a workaround for a deficiency in SROA - see 1476 // https://llvm.org/bugs/show_bug.cgi?id=30188 1477 if (isa<StoreInst>(I0) && any_of(Insts, [](const Instruction *I) { 1478 return isa<AllocaInst>(I->getOperand(1)); 1479 })) 1480 return false; 1481 if (isa<LoadInst>(I0) && any_of(Insts, [](const Instruction *I) { 1482 return isa<AllocaInst>(I->getOperand(0)); 1483 })) 1484 return false; 1485 1486 for (unsigned OI = 0, OE = I0->getNumOperands(); OI != OE; ++OI) { 1487 if (I0->getOperand(OI)->getType()->isTokenTy()) 1488 // Don't touch any operand of token type. 1489 return false; 1490 1491 auto SameAsI0 = [&I0, OI](const Instruction *I) { 1492 assert(I->getNumOperands() == I0->getNumOperands()); 1493 return I->getOperand(OI) == I0->getOperand(OI); 1494 }; 1495 if (!all_of(Insts, SameAsI0)) { 1496 if (!canReplaceOperandWithVariable(I0, OI)) 1497 // We can't create a PHI from this GEP. 1498 return false; 1499 // Don't create indirect calls! The called value is the final operand. 1500 if ((isa<CallInst>(I0) || isa<InvokeInst>(I0)) && OI == OE - 1) { 1501 // FIXME: if the call was *already* indirect, we should do this. 1502 return false; 1503 } 1504 for (auto *I : Insts) 1505 PHIOperands[I].push_back(I->getOperand(OI)); 1506 } 1507 } 1508 return true; 1509 } 1510 1511 // Assuming canSinkLastInstruction(Blocks) has returned true, sink the last 1512 // instruction of every block in Blocks to their common successor, commoning 1513 // into one instruction. 1514 static bool sinkLastInstruction(ArrayRef<BasicBlock*> Blocks) { 1515 auto *BBEnd = Blocks[0]->getTerminator()->getSuccessor(0); 1516 1517 // canSinkLastInstruction returning true guarantees that every block has at 1518 // least one non-terminator instruction. 1519 SmallVector<Instruction*,4> Insts; 1520 for (auto *BB : Blocks) { 1521 Instruction *I = BB->getTerminator(); 1522 do { 1523 I = I->getPrevNode(); 1524 } while (isa<DbgInfoIntrinsic>(I) && I != &BB->front()); 1525 if (!isa<DbgInfoIntrinsic>(I)) 1526 Insts.push_back(I); 1527 } 1528 1529 // The only checking we need to do now is that all users of all instructions 1530 // are the same PHI node. canSinkLastInstruction should have checked this but 1531 // it is slightly over-aggressive - it gets confused by commutative instructions 1532 // so double-check it here. 1533 Instruction *I0 = Insts.front(); 1534 if (!isa<StoreInst>(I0)) { 1535 auto *PNUse = dyn_cast<PHINode>(*I0->user_begin()); 1536 if (!all_of(Insts, [&PNUse](const Instruction *I) -> bool { 1537 auto *U = cast<Instruction>(*I->user_begin()); 1538 return U == PNUse; 1539 })) 1540 return false; 1541 } 1542 1543 // We don't need to do any more checking here; canSinkLastInstruction should 1544 // have done it all for us. 1545 SmallVector<Value*, 4> NewOperands; 1546 for (unsigned O = 0, E = I0->getNumOperands(); O != E; ++O) { 1547 // This check is different to that in canSinkLastInstruction. There, we 1548 // cared about the global view once simplifycfg (and instcombine) have 1549 // completed - it takes into account PHIs that become trivially 1550 // simplifiable. However here we need a more local view; if an operand 1551 // differs we create a PHI and rely on instcombine to clean up the very 1552 // small mess we may make. 1553 bool NeedPHI = any_of(Insts, [&I0, O](const Instruction *I) { 1554 return I->getOperand(O) != I0->getOperand(O); 1555 }); 1556 if (!NeedPHI) { 1557 NewOperands.push_back(I0->getOperand(O)); 1558 continue; 1559 } 1560 1561 // Create a new PHI in the successor block and populate it. 1562 auto *Op = I0->getOperand(O); 1563 assert(!Op->getType()->isTokenTy() && "Can't PHI tokens!"); 1564 auto *PN = PHINode::Create(Op->getType(), Insts.size(), 1565 Op->getName() + ".sink", &BBEnd->front()); 1566 for (auto *I : Insts) 1567 PN->addIncoming(I->getOperand(O), I->getParent()); 1568 NewOperands.push_back(PN); 1569 } 1570 1571 // Arbitrarily use I0 as the new "common" instruction; remap its operands 1572 // and move it to the start of the successor block. 1573 for (unsigned O = 0, E = I0->getNumOperands(); O != E; ++O) 1574 I0->getOperandUse(O).set(NewOperands[O]); 1575 I0->moveBefore(&*BBEnd->getFirstInsertionPt()); 1576 1577 // Update metadata and IR flags, and merge debug locations. 1578 for (auto *I : Insts) 1579 if (I != I0) { 1580 // The debug location for the "common" instruction is the merged locations 1581 // of all the commoned instructions. We start with the original location 1582 // of the "common" instruction and iteratively merge each location in the 1583 // loop below. 1584 // This is an N-way merge, which will be inefficient if I0 is a CallInst. 1585 // However, as N-way merge for CallInst is rare, so we use simplified API 1586 // instead of using complex API for N-way merge. 1587 I0->applyMergedLocation(I0->getDebugLoc(), I->getDebugLoc()); 1588 combineMetadataForCSE(I0, I); 1589 I0->andIRFlags(I); 1590 } 1591 1592 if (!isa<StoreInst>(I0)) { 1593 // canSinkLastInstruction checked that all instructions were used by 1594 // one and only one PHI node. Find that now, RAUW it to our common 1595 // instruction and nuke it. 1596 assert(I0->hasOneUse()); 1597 auto *PN = cast<PHINode>(*I0->user_begin()); 1598 PN->replaceAllUsesWith(I0); 1599 PN->eraseFromParent(); 1600 } 1601 1602 // Finally nuke all instructions apart from the common instruction. 1603 for (auto *I : Insts) 1604 if (I != I0) 1605 I->eraseFromParent(); 1606 1607 return true; 1608 } 1609 1610 namespace { 1611 1612 // LockstepReverseIterator - Iterates through instructions 1613 // in a set of blocks in reverse order from the first non-terminator. 1614 // For example (assume all blocks have size n): 1615 // LockstepReverseIterator I([B1, B2, B3]); 1616 // *I-- = [B1[n], B2[n], B3[n]]; 1617 // *I-- = [B1[n-1], B2[n-1], B3[n-1]]; 1618 // *I-- = [B1[n-2], B2[n-2], B3[n-2]]; 1619 // ... 1620 class LockstepReverseIterator { 1621 ArrayRef<BasicBlock*> Blocks; 1622 SmallVector<Instruction*,4> Insts; 1623 bool Fail; 1624 1625 public: 1626 LockstepReverseIterator(ArrayRef<BasicBlock*> Blocks) : Blocks(Blocks) { 1627 reset(); 1628 } 1629 1630 void reset() { 1631 Fail = false; 1632 Insts.clear(); 1633 for (auto *BB : Blocks) { 1634 Instruction *Inst = BB->getTerminator(); 1635 for (Inst = Inst->getPrevNode(); Inst && isa<DbgInfoIntrinsic>(Inst);) 1636 Inst = Inst->getPrevNode(); 1637 if (!Inst) { 1638 // Block wasn't big enough. 1639 Fail = true; 1640 return; 1641 } 1642 Insts.push_back(Inst); 1643 } 1644 } 1645 1646 bool isValid() const { 1647 return !Fail; 1648 } 1649 1650 void operator--() { 1651 if (Fail) 1652 return; 1653 for (auto *&Inst : Insts) { 1654 for (Inst = Inst->getPrevNode(); Inst && isa<DbgInfoIntrinsic>(Inst);) 1655 Inst = Inst->getPrevNode(); 1656 // Already at beginning of block. 1657 if (!Inst) { 1658 Fail = true; 1659 return; 1660 } 1661 } 1662 } 1663 1664 ArrayRef<Instruction*> operator * () const { 1665 return Insts; 1666 } 1667 }; 1668 1669 } // end anonymous namespace 1670 1671 /// Check whether BB's predecessors end with unconditional branches. If it is 1672 /// true, sink any common code from the predecessors to BB. 1673 /// We also allow one predecessor to end with conditional branch (but no more 1674 /// than one). 1675 static bool SinkCommonCodeFromPredecessors(BasicBlock *BB) { 1676 // We support two situations: 1677 // (1) all incoming arcs are unconditional 1678 // (2) one incoming arc is conditional 1679 // 1680 // (2) is very common in switch defaults and 1681 // else-if patterns; 1682 // 1683 // if (a) f(1); 1684 // else if (b) f(2); 1685 // 1686 // produces: 1687 // 1688 // [if] 1689 // / \ 1690 // [f(1)] [if] 1691 // | | \ 1692 // | | | 1693 // | [f(2)]| 1694 // \ | / 1695 // [ end ] 1696 // 1697 // [end] has two unconditional predecessor arcs and one conditional. The 1698 // conditional refers to the implicit empty 'else' arc. This conditional 1699 // arc can also be caused by an empty default block in a switch. 1700 // 1701 // In this case, we attempt to sink code from all *unconditional* arcs. 1702 // If we can sink instructions from these arcs (determined during the scan 1703 // phase below) we insert a common successor for all unconditional arcs and 1704 // connect that to [end], to enable sinking: 1705 // 1706 // [if] 1707 // / \ 1708 // [x(1)] [if] 1709 // | | \ 1710 // | | \ 1711 // | [x(2)] | 1712 // \ / | 1713 // [sink.split] | 1714 // \ / 1715 // [ end ] 1716 // 1717 SmallVector<BasicBlock*,4> UnconditionalPreds; 1718 Instruction *Cond = nullptr; 1719 for (auto *B : predecessors(BB)) { 1720 auto *T = B->getTerminator(); 1721 if (isa<BranchInst>(T) && cast<BranchInst>(T)->isUnconditional()) 1722 UnconditionalPreds.push_back(B); 1723 else if ((isa<BranchInst>(T) || isa<SwitchInst>(T)) && !Cond) 1724 Cond = T; 1725 else 1726 return false; 1727 } 1728 if (UnconditionalPreds.size() < 2) 1729 return false; 1730 1731 bool Changed = false; 1732 // We take a two-step approach to tail sinking. First we scan from the end of 1733 // each block upwards in lockstep. If the n'th instruction from the end of each 1734 // block can be sunk, those instructions are added to ValuesToSink and we 1735 // carry on. If we can sink an instruction but need to PHI-merge some operands 1736 // (because they're not identical in each instruction) we add these to 1737 // PHIOperands. 1738 unsigned ScanIdx = 0; 1739 SmallPtrSet<Value*,4> InstructionsToSink; 1740 DenseMap<Instruction*, SmallVector<Value*,4>> PHIOperands; 1741 LockstepReverseIterator LRI(UnconditionalPreds); 1742 while (LRI.isValid() && 1743 canSinkInstructions(*LRI, PHIOperands)) { 1744 DEBUG(dbgs() << "SINK: instruction can be sunk: " << *(*LRI)[0] << "\n"); 1745 InstructionsToSink.insert((*LRI).begin(), (*LRI).end()); 1746 ++ScanIdx; 1747 --LRI; 1748 } 1749 1750 auto ProfitableToSinkInstruction = [&](LockstepReverseIterator &LRI) { 1751 unsigned NumPHIdValues = 0; 1752 for (auto *I : *LRI) 1753 for (auto *V : PHIOperands[I]) 1754 if (InstructionsToSink.count(V) == 0) 1755 ++NumPHIdValues; 1756 DEBUG(dbgs() << "SINK: #phid values: " << NumPHIdValues << "\n"); 1757 unsigned NumPHIInsts = NumPHIdValues / UnconditionalPreds.size(); 1758 if ((NumPHIdValues % UnconditionalPreds.size()) != 0) 1759 NumPHIInsts++; 1760 1761 return NumPHIInsts <= 1; 1762 }; 1763 1764 if (ScanIdx > 0 && Cond) { 1765 // Check if we would actually sink anything first! This mutates the CFG and 1766 // adds an extra block. The goal in doing this is to allow instructions that 1767 // couldn't be sunk before to be sunk - obviously, speculatable instructions 1768 // (such as trunc, add) can be sunk and predicated already. So we check that 1769 // we're going to sink at least one non-speculatable instruction. 1770 LRI.reset(); 1771 unsigned Idx = 0; 1772 bool Profitable = false; 1773 while (ProfitableToSinkInstruction(LRI) && Idx < ScanIdx) { 1774 if (!isSafeToSpeculativelyExecute((*LRI)[0])) { 1775 Profitable = true; 1776 break; 1777 } 1778 --LRI; 1779 ++Idx; 1780 } 1781 if (!Profitable) 1782 return false; 1783 1784 DEBUG(dbgs() << "SINK: Splitting edge\n"); 1785 // We have a conditional edge and we're going to sink some instructions. 1786 // Insert a new block postdominating all blocks we're going to sink from. 1787 if (!SplitBlockPredecessors(BB, UnconditionalPreds, ".sink.split")) 1788 // Edges couldn't be split. 1789 return false; 1790 Changed = true; 1791 } 1792 1793 // Now that we've analyzed all potential sinking candidates, perform the 1794 // actual sink. We iteratively sink the last non-terminator of the source 1795 // blocks into their common successor unless doing so would require too 1796 // many PHI instructions to be generated (currently only one PHI is allowed 1797 // per sunk instruction). 1798 // 1799 // We can use InstructionsToSink to discount values needing PHI-merging that will 1800 // actually be sunk in a later iteration. This allows us to be more 1801 // aggressive in what we sink. This does allow a false positive where we 1802 // sink presuming a later value will also be sunk, but stop half way through 1803 // and never actually sink it which means we produce more PHIs than intended. 1804 // This is unlikely in practice though. 1805 for (unsigned SinkIdx = 0; SinkIdx != ScanIdx; ++SinkIdx) { 1806 DEBUG(dbgs() << "SINK: Sink: " 1807 << *UnconditionalPreds[0]->getTerminator()->getPrevNode() 1808 << "\n"); 1809 1810 // Because we've sunk every instruction in turn, the current instruction to 1811 // sink is always at index 0. 1812 LRI.reset(); 1813 if (!ProfitableToSinkInstruction(LRI)) { 1814 // Too many PHIs would be created. 1815 DEBUG(dbgs() << "SINK: stopping here, too many PHIs would be created!\n"); 1816 break; 1817 } 1818 1819 if (!sinkLastInstruction(UnconditionalPreds)) 1820 return Changed; 1821 NumSinkCommons++; 1822 Changed = true; 1823 } 1824 return Changed; 1825 } 1826 1827 /// \brief Determine if we can hoist sink a sole store instruction out of a 1828 /// conditional block. 1829 /// 1830 /// We are looking for code like the following: 1831 /// BrBB: 1832 /// store i32 %add, i32* %arrayidx2 1833 /// ... // No other stores or function calls (we could be calling a memory 1834 /// ... // function). 1835 /// %cmp = icmp ult %x, %y 1836 /// br i1 %cmp, label %EndBB, label %ThenBB 1837 /// ThenBB: 1838 /// store i32 %add5, i32* %arrayidx2 1839 /// br label EndBB 1840 /// EndBB: 1841 /// ... 1842 /// We are going to transform this into: 1843 /// BrBB: 1844 /// store i32 %add, i32* %arrayidx2 1845 /// ... // 1846 /// %cmp = icmp ult %x, %y 1847 /// %add.add5 = select i1 %cmp, i32 %add, %add5 1848 /// store i32 %add.add5, i32* %arrayidx2 1849 /// ... 1850 /// 1851 /// \return The pointer to the value of the previous store if the store can be 1852 /// hoisted into the predecessor block. 0 otherwise. 1853 static Value *isSafeToSpeculateStore(Instruction *I, BasicBlock *BrBB, 1854 BasicBlock *StoreBB, BasicBlock *EndBB) { 1855 StoreInst *StoreToHoist = dyn_cast<StoreInst>(I); 1856 if (!StoreToHoist) 1857 return nullptr; 1858 1859 // Volatile or atomic. 1860 if (!StoreToHoist->isSimple()) 1861 return nullptr; 1862 1863 Value *StorePtr = StoreToHoist->getPointerOperand(); 1864 1865 // Look for a store to the same pointer in BrBB. 1866 unsigned MaxNumInstToLookAt = 9; 1867 for (Instruction &CurI : reverse(*BrBB)) { 1868 if (!MaxNumInstToLookAt) 1869 break; 1870 // Skip debug info. 1871 if (isa<DbgInfoIntrinsic>(CurI)) 1872 continue; 1873 --MaxNumInstToLookAt; 1874 1875 // Could be calling an instruction that affects memory like free(). 1876 if (CurI.mayHaveSideEffects() && !isa<StoreInst>(CurI)) 1877 return nullptr; 1878 1879 if (auto *SI = dyn_cast<StoreInst>(&CurI)) { 1880 // Found the previous store make sure it stores to the same location. 1881 if (SI->getPointerOperand() == StorePtr) 1882 // Found the previous store, return its value operand. 1883 return SI->getValueOperand(); 1884 return nullptr; // Unknown store. 1885 } 1886 } 1887 1888 return nullptr; 1889 } 1890 1891 /// \brief Speculate a conditional basic block flattening the CFG. 1892 /// 1893 /// Note that this is a very risky transform currently. Speculating 1894 /// instructions like this is most often not desirable. Instead, there is an MI 1895 /// pass which can do it with full awareness of the resource constraints. 1896 /// However, some cases are "obvious" and we should do directly. An example of 1897 /// this is speculating a single, reasonably cheap instruction. 1898 /// 1899 /// There is only one distinct advantage to flattening the CFG at the IR level: 1900 /// it makes very common but simplistic optimizations such as are common in 1901 /// instcombine and the DAG combiner more powerful by removing CFG edges and 1902 /// modeling their effects with easier to reason about SSA value graphs. 1903 /// 1904 /// 1905 /// An illustration of this transform is turning this IR: 1906 /// \code 1907 /// BB: 1908 /// %cmp = icmp ult %x, %y 1909 /// br i1 %cmp, label %EndBB, label %ThenBB 1910 /// ThenBB: 1911 /// %sub = sub %x, %y 1912 /// br label BB2 1913 /// EndBB: 1914 /// %phi = phi [ %sub, %ThenBB ], [ 0, %EndBB ] 1915 /// ... 1916 /// \endcode 1917 /// 1918 /// Into this IR: 1919 /// \code 1920 /// BB: 1921 /// %cmp = icmp ult %x, %y 1922 /// %sub = sub %x, %y 1923 /// %cond = select i1 %cmp, 0, %sub 1924 /// ... 1925 /// \endcode 1926 /// 1927 /// \returns true if the conditional block is removed. 1928 static bool SpeculativelyExecuteBB(BranchInst *BI, BasicBlock *ThenBB, 1929 const TargetTransformInfo &TTI) { 1930 // Be conservative for now. FP select instruction can often be expensive. 1931 Value *BrCond = BI->getCondition(); 1932 if (isa<FCmpInst>(BrCond)) 1933 return false; 1934 1935 BasicBlock *BB = BI->getParent(); 1936 BasicBlock *EndBB = ThenBB->getTerminator()->getSuccessor(0); 1937 1938 // If ThenBB is actually on the false edge of the conditional branch, remember 1939 // to swap the select operands later. 1940 bool Invert = false; 1941 if (ThenBB != BI->getSuccessor(0)) { 1942 assert(ThenBB == BI->getSuccessor(1) && "No edge from 'if' block?"); 1943 Invert = true; 1944 } 1945 assert(EndBB == BI->getSuccessor(!Invert) && "No edge from to end block"); 1946 1947 // Keep a count of how many times instructions are used within CondBB when 1948 // they are candidates for sinking into CondBB. Specifically: 1949 // - They are defined in BB, and 1950 // - They have no side effects, and 1951 // - All of their uses are in CondBB. 1952 SmallDenseMap<Instruction *, unsigned, 4> SinkCandidateUseCounts; 1953 1954 SmallVector<Instruction *, 4> SpeculatedDbgIntrinsics; 1955 1956 unsigned SpeculationCost = 0; 1957 Value *SpeculatedStoreValue = nullptr; 1958 StoreInst *SpeculatedStore = nullptr; 1959 for (BasicBlock::iterator BBI = ThenBB->begin(), 1960 BBE = std::prev(ThenBB->end()); 1961 BBI != BBE; ++BBI) { 1962 Instruction *I = &*BBI; 1963 // Skip debug info. 1964 if (isa<DbgInfoIntrinsic>(I)) { 1965 SpeculatedDbgIntrinsics.push_back(I); 1966 continue; 1967 } 1968 1969 // Only speculatively execute a single instruction (not counting the 1970 // terminator) for now. 1971 ++SpeculationCost; 1972 if (SpeculationCost > 1) 1973 return false; 1974 1975 // Don't hoist the instruction if it's unsafe or expensive. 1976 if (!isSafeToSpeculativelyExecute(I) && 1977 !(HoistCondStores && (SpeculatedStoreValue = isSafeToSpeculateStore( 1978 I, BB, ThenBB, EndBB)))) 1979 return false; 1980 if (!SpeculatedStoreValue && 1981 ComputeSpeculationCost(I, TTI) > 1982 PHINodeFoldingThreshold * TargetTransformInfo::TCC_Basic) 1983 return false; 1984 1985 // Store the store speculation candidate. 1986 if (SpeculatedStoreValue) 1987 SpeculatedStore = cast<StoreInst>(I); 1988 1989 // Do not hoist the instruction if any of its operands are defined but not 1990 // used in BB. The transformation will prevent the operand from 1991 // being sunk into the use block. 1992 for (User::op_iterator i = I->op_begin(), e = I->op_end(); i != e; ++i) { 1993 Instruction *OpI = dyn_cast<Instruction>(*i); 1994 if (!OpI || OpI->getParent() != BB || OpI->mayHaveSideEffects()) 1995 continue; // Not a candidate for sinking. 1996 1997 ++SinkCandidateUseCounts[OpI]; 1998 } 1999 } 2000 2001 // Consider any sink candidates which are only used in CondBB as costs for 2002 // speculation. Note, while we iterate over a DenseMap here, we are summing 2003 // and so iteration order isn't significant. 2004 for (SmallDenseMap<Instruction *, unsigned, 4>::iterator 2005 I = SinkCandidateUseCounts.begin(), 2006 E = SinkCandidateUseCounts.end(); 2007 I != E; ++I) 2008 if (I->first->getNumUses() == I->second) { 2009 ++SpeculationCost; 2010 if (SpeculationCost > 1) 2011 return false; 2012 } 2013 2014 // Check that the PHI nodes can be converted to selects. 2015 bool HaveRewritablePHIs = false; 2016 for (PHINode &PN : EndBB->phis()) { 2017 Value *OrigV = PN.getIncomingValueForBlock(BB); 2018 Value *ThenV = PN.getIncomingValueForBlock(ThenBB); 2019 2020 // FIXME: Try to remove some of the duplication with HoistThenElseCodeToIf. 2021 // Skip PHIs which are trivial. 2022 if (ThenV == OrigV) 2023 continue; 2024 2025 // Don't convert to selects if we could remove undefined behavior instead. 2026 if (passingValueIsAlwaysUndefined(OrigV, &PN) || 2027 passingValueIsAlwaysUndefined(ThenV, &PN)) 2028 return false; 2029 2030 HaveRewritablePHIs = true; 2031 ConstantExpr *OrigCE = dyn_cast<ConstantExpr>(OrigV); 2032 ConstantExpr *ThenCE = dyn_cast<ConstantExpr>(ThenV); 2033 if (!OrigCE && !ThenCE) 2034 continue; // Known safe and cheap. 2035 2036 if ((ThenCE && !isSafeToSpeculativelyExecute(ThenCE)) || 2037 (OrigCE && !isSafeToSpeculativelyExecute(OrigCE))) 2038 return false; 2039 unsigned OrigCost = OrigCE ? ComputeSpeculationCost(OrigCE, TTI) : 0; 2040 unsigned ThenCost = ThenCE ? ComputeSpeculationCost(ThenCE, TTI) : 0; 2041 unsigned MaxCost = 2042 2 * PHINodeFoldingThreshold * TargetTransformInfo::TCC_Basic; 2043 if (OrigCost + ThenCost > MaxCost) 2044 return false; 2045 2046 // Account for the cost of an unfolded ConstantExpr which could end up 2047 // getting expanded into Instructions. 2048 // FIXME: This doesn't account for how many operations are combined in the 2049 // constant expression. 2050 ++SpeculationCost; 2051 if (SpeculationCost > 1) 2052 return false; 2053 } 2054 2055 // If there are no PHIs to process, bail early. This helps ensure idempotence 2056 // as well. 2057 if (!HaveRewritablePHIs && !(HoistCondStores && SpeculatedStoreValue)) 2058 return false; 2059 2060 // If we get here, we can hoist the instruction and if-convert. 2061 DEBUG(dbgs() << "SPECULATIVELY EXECUTING BB" << *ThenBB << "\n";); 2062 2063 // Insert a select of the value of the speculated store. 2064 if (SpeculatedStoreValue) { 2065 IRBuilder<NoFolder> Builder(BI); 2066 Value *TrueV = SpeculatedStore->getValueOperand(); 2067 Value *FalseV = SpeculatedStoreValue; 2068 if (Invert) 2069 std::swap(TrueV, FalseV); 2070 Value *S = Builder.CreateSelect( 2071 BrCond, TrueV, FalseV, "spec.store.select", BI); 2072 SpeculatedStore->setOperand(0, S); 2073 SpeculatedStore->applyMergedLocation(BI->getDebugLoc(), 2074 SpeculatedStore->getDebugLoc()); 2075 } 2076 2077 // Metadata can be dependent on the condition we are hoisting above. 2078 // Conservatively strip all metadata on the instruction. 2079 for (auto &I : *ThenBB) 2080 I.dropUnknownNonDebugMetadata(); 2081 2082 // Hoist the instructions. 2083 BB->getInstList().splice(BI->getIterator(), ThenBB->getInstList(), 2084 ThenBB->begin(), std::prev(ThenBB->end())); 2085 2086 // Insert selects and rewrite the PHI operands. 2087 IRBuilder<NoFolder> Builder(BI); 2088 for (PHINode &PN : EndBB->phis()) { 2089 unsigned OrigI = PN.getBasicBlockIndex(BB); 2090 unsigned ThenI = PN.getBasicBlockIndex(ThenBB); 2091 Value *OrigV = PN.getIncomingValue(OrigI); 2092 Value *ThenV = PN.getIncomingValue(ThenI); 2093 2094 // Skip PHIs which are trivial. 2095 if (OrigV == ThenV) 2096 continue; 2097 2098 // Create a select whose true value is the speculatively executed value and 2099 // false value is the preexisting value. Swap them if the branch 2100 // destinations were inverted. 2101 Value *TrueV = ThenV, *FalseV = OrigV; 2102 if (Invert) 2103 std::swap(TrueV, FalseV); 2104 Value *V = Builder.CreateSelect( 2105 BrCond, TrueV, FalseV, "spec.select", BI); 2106 PN.setIncomingValue(OrigI, V); 2107 PN.setIncomingValue(ThenI, V); 2108 } 2109 2110 // Remove speculated dbg intrinsics. 2111 // FIXME: Is it possible to do this in a more elegant way? Moving/merging the 2112 // dbg value for the different flows and inserting it after the select. 2113 for (Instruction *I : SpeculatedDbgIntrinsics) 2114 I->eraseFromParent(); 2115 2116 ++NumSpeculations; 2117 return true; 2118 } 2119 2120 /// Return true if we can thread a branch across this block. 2121 static bool BlockIsSimpleEnoughToThreadThrough(BasicBlock *BB) { 2122 BranchInst *BI = cast<BranchInst>(BB->getTerminator()); 2123 unsigned Size = 0; 2124 2125 for (BasicBlock::iterator BBI = BB->begin(); &*BBI != BI; ++BBI) { 2126 if (isa<DbgInfoIntrinsic>(BBI)) 2127 continue; 2128 if (Size > 10) 2129 return false; // Don't clone large BB's. 2130 ++Size; 2131 2132 // We can only support instructions that do not define values that are 2133 // live outside of the current basic block. 2134 for (User *U : BBI->users()) { 2135 Instruction *UI = cast<Instruction>(U); 2136 if (UI->getParent() != BB || isa<PHINode>(UI)) 2137 return false; 2138 } 2139 2140 // Looks ok, continue checking. 2141 } 2142 2143 return true; 2144 } 2145 2146 /// If we have a conditional branch on a PHI node value that is defined in the 2147 /// same block as the branch and if any PHI entries are constants, thread edges 2148 /// corresponding to that entry to be branches to their ultimate destination. 2149 static bool FoldCondBranchOnPHI(BranchInst *BI, const DataLayout &DL, 2150 AssumptionCache *AC) { 2151 BasicBlock *BB = BI->getParent(); 2152 PHINode *PN = dyn_cast<PHINode>(BI->getCondition()); 2153 // NOTE: we currently cannot transform this case if the PHI node is used 2154 // outside of the block. 2155 if (!PN || PN->getParent() != BB || !PN->hasOneUse()) 2156 return false; 2157 2158 // Degenerate case of a single entry PHI. 2159 if (PN->getNumIncomingValues() == 1) { 2160 FoldSingleEntryPHINodes(PN->getParent()); 2161 return true; 2162 } 2163 2164 // Now we know that this block has multiple preds and two succs. 2165 if (!BlockIsSimpleEnoughToThreadThrough(BB)) 2166 return false; 2167 2168 // Can't fold blocks that contain noduplicate or convergent calls. 2169 if (any_of(*BB, [](const Instruction &I) { 2170 const CallInst *CI = dyn_cast<CallInst>(&I); 2171 return CI && (CI->cannotDuplicate() || CI->isConvergent()); 2172 })) 2173 return false; 2174 2175 // Okay, this is a simple enough basic block. See if any phi values are 2176 // constants. 2177 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) { 2178 ConstantInt *CB = dyn_cast<ConstantInt>(PN->getIncomingValue(i)); 2179 if (!CB || !CB->getType()->isIntegerTy(1)) 2180 continue; 2181 2182 // Okay, we now know that all edges from PredBB should be revectored to 2183 // branch to RealDest. 2184 BasicBlock *PredBB = PN->getIncomingBlock(i); 2185 BasicBlock *RealDest = BI->getSuccessor(!CB->getZExtValue()); 2186 2187 if (RealDest == BB) 2188 continue; // Skip self loops. 2189 // Skip if the predecessor's terminator is an indirect branch. 2190 if (isa<IndirectBrInst>(PredBB->getTerminator())) 2191 continue; 2192 2193 // The dest block might have PHI nodes, other predecessors and other 2194 // difficult cases. Instead of being smart about this, just insert a new 2195 // block that jumps to the destination block, effectively splitting 2196 // the edge we are about to create. 2197 BasicBlock *EdgeBB = 2198 BasicBlock::Create(BB->getContext(), RealDest->getName() + ".critedge", 2199 RealDest->getParent(), RealDest); 2200 BranchInst::Create(RealDest, EdgeBB); 2201 2202 // Update PHI nodes. 2203 AddPredecessorToBlock(RealDest, EdgeBB, BB); 2204 2205 // BB may have instructions that are being threaded over. Clone these 2206 // instructions into EdgeBB. We know that there will be no uses of the 2207 // cloned instructions outside of EdgeBB. 2208 BasicBlock::iterator InsertPt = EdgeBB->begin(); 2209 DenseMap<Value *, Value *> TranslateMap; // Track translated values. 2210 for (BasicBlock::iterator BBI = BB->begin(); &*BBI != BI; ++BBI) { 2211 if (PHINode *PN = dyn_cast<PHINode>(BBI)) { 2212 TranslateMap[PN] = PN->getIncomingValueForBlock(PredBB); 2213 continue; 2214 } 2215 // Clone the instruction. 2216 Instruction *N = BBI->clone(); 2217 if (BBI->hasName()) 2218 N->setName(BBI->getName() + ".c"); 2219 2220 // Update operands due to translation. 2221 for (User::op_iterator i = N->op_begin(), e = N->op_end(); i != e; ++i) { 2222 DenseMap<Value *, Value *>::iterator PI = TranslateMap.find(*i); 2223 if (PI != TranslateMap.end()) 2224 *i = PI->second; 2225 } 2226 2227 // Check for trivial simplification. 2228 if (Value *V = SimplifyInstruction(N, {DL, nullptr, nullptr, AC})) { 2229 if (!BBI->use_empty()) 2230 TranslateMap[&*BBI] = V; 2231 if (!N->mayHaveSideEffects()) { 2232 N->deleteValue(); // Instruction folded away, don't need actual inst 2233 N = nullptr; 2234 } 2235 } else { 2236 if (!BBI->use_empty()) 2237 TranslateMap[&*BBI] = N; 2238 } 2239 // Insert the new instruction into its new home. 2240 if (N) 2241 EdgeBB->getInstList().insert(InsertPt, N); 2242 2243 // Register the new instruction with the assumption cache if necessary. 2244 if (auto *II = dyn_cast_or_null<IntrinsicInst>(N)) 2245 if (II->getIntrinsicID() == Intrinsic::assume) 2246 AC->registerAssumption(II); 2247 } 2248 2249 // Loop over all of the edges from PredBB to BB, changing them to branch 2250 // to EdgeBB instead. 2251 TerminatorInst *PredBBTI = PredBB->getTerminator(); 2252 for (unsigned i = 0, e = PredBBTI->getNumSuccessors(); i != e; ++i) 2253 if (PredBBTI->getSuccessor(i) == BB) { 2254 BB->removePredecessor(PredBB); 2255 PredBBTI->setSuccessor(i, EdgeBB); 2256 } 2257 2258 // Recurse, simplifying any other constants. 2259 return FoldCondBranchOnPHI(BI, DL, AC) | true; 2260 } 2261 2262 return false; 2263 } 2264 2265 /// Given a BB that starts with the specified two-entry PHI node, 2266 /// see if we can eliminate it. 2267 static bool FoldTwoEntryPHINode(PHINode *PN, const TargetTransformInfo &TTI, 2268 const DataLayout &DL) { 2269 // Ok, this is a two entry PHI node. Check to see if this is a simple "if 2270 // statement", which has a very simple dominance structure. Basically, we 2271 // are trying to find the condition that is being branched on, which 2272 // subsequently causes this merge to happen. We really want control 2273 // dependence information for this check, but simplifycfg can't keep it up 2274 // to date, and this catches most of the cases we care about anyway. 2275 BasicBlock *BB = PN->getParent(); 2276 const Function *Fn = BB->getParent(); 2277 if (Fn && Fn->hasFnAttribute(Attribute::OptForFuzzing)) 2278 return false; 2279 2280 BasicBlock *IfTrue, *IfFalse; 2281 Value *IfCond = GetIfCondition(BB, IfTrue, IfFalse); 2282 if (!IfCond || 2283 // Don't bother if the branch will be constant folded trivially. 2284 isa<ConstantInt>(IfCond)) 2285 return false; 2286 2287 // Okay, we found that we can merge this two-entry phi node into a select. 2288 // Doing so would require us to fold *all* two entry phi nodes in this block. 2289 // At some point this becomes non-profitable (particularly if the target 2290 // doesn't support cmov's). Only do this transformation if there are two or 2291 // fewer PHI nodes in this block. 2292 unsigned NumPhis = 0; 2293 for (BasicBlock::iterator I = BB->begin(); isa<PHINode>(I); ++NumPhis, ++I) 2294 if (NumPhis > 2) 2295 return false; 2296 2297 // Loop over the PHI's seeing if we can promote them all to select 2298 // instructions. While we are at it, keep track of the instructions 2299 // that need to be moved to the dominating block. 2300 SmallPtrSet<Instruction *, 4> AggressiveInsts; 2301 unsigned MaxCostVal0 = PHINodeFoldingThreshold, 2302 MaxCostVal1 = PHINodeFoldingThreshold; 2303 MaxCostVal0 *= TargetTransformInfo::TCC_Basic; 2304 MaxCostVal1 *= TargetTransformInfo::TCC_Basic; 2305 2306 for (BasicBlock::iterator II = BB->begin(); isa<PHINode>(II);) { 2307 PHINode *PN = cast<PHINode>(II++); 2308 if (Value *V = SimplifyInstruction(PN, {DL, PN})) { 2309 PN->replaceAllUsesWith(V); 2310 PN->eraseFromParent(); 2311 continue; 2312 } 2313 2314 if (!DominatesMergePoint(PN->getIncomingValue(0), BB, &AggressiveInsts, 2315 MaxCostVal0, TTI) || 2316 !DominatesMergePoint(PN->getIncomingValue(1), BB, &AggressiveInsts, 2317 MaxCostVal1, TTI)) 2318 return false; 2319 } 2320 2321 // If we folded the first phi, PN dangles at this point. Refresh it. If 2322 // we ran out of PHIs then we simplified them all. 2323 PN = dyn_cast<PHINode>(BB->begin()); 2324 if (!PN) 2325 return true; 2326 2327 // Don't fold i1 branches on PHIs which contain binary operators. These can 2328 // often be turned into switches and other things. 2329 if (PN->getType()->isIntegerTy(1) && 2330 (isa<BinaryOperator>(PN->getIncomingValue(0)) || 2331 isa<BinaryOperator>(PN->getIncomingValue(1)) || 2332 isa<BinaryOperator>(IfCond))) 2333 return false; 2334 2335 // If all PHI nodes are promotable, check to make sure that all instructions 2336 // in the predecessor blocks can be promoted as well. If not, we won't be able 2337 // to get rid of the control flow, so it's not worth promoting to select 2338 // instructions. 2339 BasicBlock *DomBlock = nullptr; 2340 BasicBlock *IfBlock1 = PN->getIncomingBlock(0); 2341 BasicBlock *IfBlock2 = PN->getIncomingBlock(1); 2342 if (cast<BranchInst>(IfBlock1->getTerminator())->isConditional()) { 2343 IfBlock1 = nullptr; 2344 } else { 2345 DomBlock = *pred_begin(IfBlock1); 2346 for (BasicBlock::iterator I = IfBlock1->begin(); !isa<TerminatorInst>(I); 2347 ++I) 2348 if (!AggressiveInsts.count(&*I) && !isa<DbgInfoIntrinsic>(I)) { 2349 // This is not an aggressive instruction that we can promote. 2350 // Because of this, we won't be able to get rid of the control flow, so 2351 // the xform is not worth it. 2352 return false; 2353 } 2354 } 2355 2356 if (cast<BranchInst>(IfBlock2->getTerminator())->isConditional()) { 2357 IfBlock2 = nullptr; 2358 } else { 2359 DomBlock = *pred_begin(IfBlock2); 2360 for (BasicBlock::iterator I = IfBlock2->begin(); !isa<TerminatorInst>(I); 2361 ++I) 2362 if (!AggressiveInsts.count(&*I) && !isa<DbgInfoIntrinsic>(I)) { 2363 // This is not an aggressive instruction that we can promote. 2364 // Because of this, we won't be able to get rid of the control flow, so 2365 // the xform is not worth it. 2366 return false; 2367 } 2368 } 2369 2370 DEBUG(dbgs() << "FOUND IF CONDITION! " << *IfCond << " T: " 2371 << IfTrue->getName() << " F: " << IfFalse->getName() << "\n"); 2372 2373 // If we can still promote the PHI nodes after this gauntlet of tests, 2374 // do all of the PHI's now. 2375 Instruction *InsertPt = DomBlock->getTerminator(); 2376 IRBuilder<NoFolder> Builder(InsertPt); 2377 2378 // Move all 'aggressive' instructions, which are defined in the 2379 // conditional parts of the if's up to the dominating block. 2380 if (IfBlock1) { 2381 for (auto &I : *IfBlock1) 2382 I.dropUnknownNonDebugMetadata(); 2383 DomBlock->getInstList().splice(InsertPt->getIterator(), 2384 IfBlock1->getInstList(), IfBlock1->begin(), 2385 IfBlock1->getTerminator()->getIterator()); 2386 } 2387 if (IfBlock2) { 2388 for (auto &I : *IfBlock2) 2389 I.dropUnknownNonDebugMetadata(); 2390 DomBlock->getInstList().splice(InsertPt->getIterator(), 2391 IfBlock2->getInstList(), IfBlock2->begin(), 2392 IfBlock2->getTerminator()->getIterator()); 2393 } 2394 2395 while (PHINode *PN = dyn_cast<PHINode>(BB->begin())) { 2396 // Change the PHI node into a select instruction. 2397 Value *TrueVal = PN->getIncomingValue(PN->getIncomingBlock(0) == IfFalse); 2398 Value *FalseVal = PN->getIncomingValue(PN->getIncomingBlock(0) == IfTrue); 2399 2400 Value *Sel = Builder.CreateSelect(IfCond, TrueVal, FalseVal, "", InsertPt); 2401 PN->replaceAllUsesWith(Sel); 2402 Sel->takeName(PN); 2403 PN->eraseFromParent(); 2404 } 2405 2406 // At this point, IfBlock1 and IfBlock2 are both empty, so our if statement 2407 // has been flattened. Change DomBlock to jump directly to our new block to 2408 // avoid other simplifycfg's kicking in on the diamond. 2409 TerminatorInst *OldTI = DomBlock->getTerminator(); 2410 Builder.SetInsertPoint(OldTI); 2411 Builder.CreateBr(BB); 2412 OldTI->eraseFromParent(); 2413 return true; 2414 } 2415 2416 /// If we found a conditional branch that goes to two returning blocks, 2417 /// try to merge them together into one return, 2418 /// introducing a select if the return values disagree. 2419 static bool SimplifyCondBranchToTwoReturns(BranchInst *BI, 2420 IRBuilder<> &Builder) { 2421 assert(BI->isConditional() && "Must be a conditional branch"); 2422 BasicBlock *TrueSucc = BI->getSuccessor(0); 2423 BasicBlock *FalseSucc = BI->getSuccessor(1); 2424 ReturnInst *TrueRet = cast<ReturnInst>(TrueSucc->getTerminator()); 2425 ReturnInst *FalseRet = cast<ReturnInst>(FalseSucc->getTerminator()); 2426 2427 // Check to ensure both blocks are empty (just a return) or optionally empty 2428 // with PHI nodes. If there are other instructions, merging would cause extra 2429 // computation on one path or the other. 2430 if (!TrueSucc->getFirstNonPHIOrDbg()->isTerminator()) 2431 return false; 2432 if (!FalseSucc->getFirstNonPHIOrDbg()->isTerminator()) 2433 return false; 2434 2435 Builder.SetInsertPoint(BI); 2436 // Okay, we found a branch that is going to two return nodes. If 2437 // there is no return value for this function, just change the 2438 // branch into a return. 2439 if (FalseRet->getNumOperands() == 0) { 2440 TrueSucc->removePredecessor(BI->getParent()); 2441 FalseSucc->removePredecessor(BI->getParent()); 2442 Builder.CreateRetVoid(); 2443 EraseTerminatorInstAndDCECond(BI); 2444 return true; 2445 } 2446 2447 // Otherwise, figure out what the true and false return values are 2448 // so we can insert a new select instruction. 2449 Value *TrueValue = TrueRet->getReturnValue(); 2450 Value *FalseValue = FalseRet->getReturnValue(); 2451 2452 // Unwrap any PHI nodes in the return blocks. 2453 if (PHINode *TVPN = dyn_cast_or_null<PHINode>(TrueValue)) 2454 if (TVPN->getParent() == TrueSucc) 2455 TrueValue = TVPN->getIncomingValueForBlock(BI->getParent()); 2456 if (PHINode *FVPN = dyn_cast_or_null<PHINode>(FalseValue)) 2457 if (FVPN->getParent() == FalseSucc) 2458 FalseValue = FVPN->getIncomingValueForBlock(BI->getParent()); 2459 2460 // In order for this transformation to be safe, we must be able to 2461 // unconditionally execute both operands to the return. This is 2462 // normally the case, but we could have a potentially-trapping 2463 // constant expression that prevents this transformation from being 2464 // safe. 2465 if (ConstantExpr *TCV = dyn_cast_or_null<ConstantExpr>(TrueValue)) 2466 if (TCV->canTrap()) 2467 return false; 2468 if (ConstantExpr *FCV = dyn_cast_or_null<ConstantExpr>(FalseValue)) 2469 if (FCV->canTrap()) 2470 return false; 2471 2472 // Okay, we collected all the mapped values and checked them for sanity, and 2473 // defined to really do this transformation. First, update the CFG. 2474 TrueSucc->removePredecessor(BI->getParent()); 2475 FalseSucc->removePredecessor(BI->getParent()); 2476 2477 // Insert select instructions where needed. 2478 Value *BrCond = BI->getCondition(); 2479 if (TrueValue) { 2480 // Insert a select if the results differ. 2481 if (TrueValue == FalseValue || isa<UndefValue>(FalseValue)) { 2482 } else if (isa<UndefValue>(TrueValue)) { 2483 TrueValue = FalseValue; 2484 } else { 2485 TrueValue = 2486 Builder.CreateSelect(BrCond, TrueValue, FalseValue, "retval", BI); 2487 } 2488 } 2489 2490 Value *RI = 2491 !TrueValue ? Builder.CreateRetVoid() : Builder.CreateRet(TrueValue); 2492 2493 (void)RI; 2494 2495 DEBUG(dbgs() << "\nCHANGING BRANCH TO TWO RETURNS INTO SELECT:" 2496 << "\n " << *BI << "NewRet = " << *RI 2497 << "TRUEBLOCK: " << *TrueSucc << "FALSEBLOCK: " << *FalseSucc); 2498 2499 EraseTerminatorInstAndDCECond(BI); 2500 2501 return true; 2502 } 2503 2504 /// Return true if the given instruction is available 2505 /// in its predecessor block. If yes, the instruction will be removed. 2506 static bool checkCSEInPredecessor(Instruction *Inst, BasicBlock *PB) { 2507 if (!isa<BinaryOperator>(Inst) && !isa<CmpInst>(Inst)) 2508 return false; 2509 for (Instruction &I : *PB) { 2510 Instruction *PBI = &I; 2511 // Check whether Inst and PBI generate the same value. 2512 if (Inst->isIdenticalTo(PBI)) { 2513 Inst->replaceAllUsesWith(PBI); 2514 Inst->eraseFromParent(); 2515 return true; 2516 } 2517 } 2518 return false; 2519 } 2520 2521 /// Return true if either PBI or BI has branch weight available, and store 2522 /// the weights in {Pred|Succ}{True|False}Weight. If one of PBI and BI does 2523 /// not have branch weight, use 1:1 as its weight. 2524 static bool extractPredSuccWeights(BranchInst *PBI, BranchInst *BI, 2525 uint64_t &PredTrueWeight, 2526 uint64_t &PredFalseWeight, 2527 uint64_t &SuccTrueWeight, 2528 uint64_t &SuccFalseWeight) { 2529 bool PredHasWeights = 2530 PBI->extractProfMetadata(PredTrueWeight, PredFalseWeight); 2531 bool SuccHasWeights = 2532 BI->extractProfMetadata(SuccTrueWeight, SuccFalseWeight); 2533 if (PredHasWeights || SuccHasWeights) { 2534 if (!PredHasWeights) 2535 PredTrueWeight = PredFalseWeight = 1; 2536 if (!SuccHasWeights) 2537 SuccTrueWeight = SuccFalseWeight = 1; 2538 return true; 2539 } else { 2540 return false; 2541 } 2542 } 2543 2544 /// If this basic block is simple enough, and if a predecessor branches to us 2545 /// and one of our successors, fold the block into the predecessor and use 2546 /// logical operations to pick the right destination. 2547 bool llvm::FoldBranchToCommonDest(BranchInst *BI, unsigned BonusInstThreshold) { 2548 BasicBlock *BB = BI->getParent(); 2549 2550 Instruction *Cond = nullptr; 2551 if (BI->isConditional()) 2552 Cond = dyn_cast<Instruction>(BI->getCondition()); 2553 else { 2554 // For unconditional branch, check for a simple CFG pattern, where 2555 // BB has a single predecessor and BB's successor is also its predecessor's 2556 // successor. If such pattern exists, check for CSE between BB and its 2557 // predecessor. 2558 if (BasicBlock *PB = BB->getSinglePredecessor()) 2559 if (BranchInst *PBI = dyn_cast<BranchInst>(PB->getTerminator())) 2560 if (PBI->isConditional() && 2561 (BI->getSuccessor(0) == PBI->getSuccessor(0) || 2562 BI->getSuccessor(0) == PBI->getSuccessor(1))) { 2563 for (BasicBlock::iterator I = BB->begin(), E = BB->end(); I != E;) { 2564 Instruction *Curr = &*I++; 2565 if (isa<CmpInst>(Curr)) { 2566 Cond = Curr; 2567 break; 2568 } 2569 // Quit if we can't remove this instruction. 2570 if (!checkCSEInPredecessor(Curr, PB)) 2571 return false; 2572 } 2573 } 2574 2575 if (!Cond) 2576 return false; 2577 } 2578 2579 if (!Cond || (!isa<CmpInst>(Cond) && !isa<BinaryOperator>(Cond)) || 2580 Cond->getParent() != BB || !Cond->hasOneUse()) 2581 return false; 2582 2583 // Make sure the instruction after the condition is the cond branch. 2584 BasicBlock::iterator CondIt = ++Cond->getIterator(); 2585 2586 // Ignore dbg intrinsics. 2587 while (isa<DbgInfoIntrinsic>(CondIt)) 2588 ++CondIt; 2589 2590 if (&*CondIt != BI) 2591 return false; 2592 2593 // Only allow this transformation if computing the condition doesn't involve 2594 // too many instructions and these involved instructions can be executed 2595 // unconditionally. We denote all involved instructions except the condition 2596 // as "bonus instructions", and only allow this transformation when the 2597 // number of the bonus instructions does not exceed a certain threshold. 2598 unsigned NumBonusInsts = 0; 2599 for (auto I = BB->begin(); Cond != &*I; ++I) { 2600 // Ignore dbg intrinsics. 2601 if (isa<DbgInfoIntrinsic>(I)) 2602 continue; 2603 if (!I->hasOneUse() || !isSafeToSpeculativelyExecute(&*I)) 2604 return false; 2605 // I has only one use and can be executed unconditionally. 2606 Instruction *User = dyn_cast<Instruction>(I->user_back()); 2607 if (User == nullptr || User->getParent() != BB) 2608 return false; 2609 // I is used in the same BB. Since BI uses Cond and doesn't have more slots 2610 // to use any other instruction, User must be an instruction between next(I) 2611 // and Cond. 2612 ++NumBonusInsts; 2613 // Early exits once we reach the limit. 2614 if (NumBonusInsts > BonusInstThreshold) 2615 return false; 2616 } 2617 2618 // Cond is known to be a compare or binary operator. Check to make sure that 2619 // neither operand is a potentially-trapping constant expression. 2620 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(Cond->getOperand(0))) 2621 if (CE->canTrap()) 2622 return false; 2623 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(Cond->getOperand(1))) 2624 if (CE->canTrap()) 2625 return false; 2626 2627 // Finally, don't infinitely unroll conditional loops. 2628 BasicBlock *TrueDest = BI->getSuccessor(0); 2629 BasicBlock *FalseDest = (BI->isConditional()) ? BI->getSuccessor(1) : nullptr; 2630 if (TrueDest == BB || FalseDest == BB) 2631 return false; 2632 2633 for (pred_iterator PI = pred_begin(BB), E = pred_end(BB); PI != E; ++PI) { 2634 BasicBlock *PredBlock = *PI; 2635 BranchInst *PBI = dyn_cast<BranchInst>(PredBlock->getTerminator()); 2636 2637 // Check that we have two conditional branches. If there is a PHI node in 2638 // the common successor, verify that the same value flows in from both 2639 // blocks. 2640 SmallVector<PHINode *, 4> PHIs; 2641 if (!PBI || PBI->isUnconditional() || 2642 (BI->isConditional() && !SafeToMergeTerminators(BI, PBI)) || 2643 (!BI->isConditional() && 2644 !isProfitableToFoldUnconditional(BI, PBI, Cond, PHIs))) 2645 continue; 2646 2647 // Determine if the two branches share a common destination. 2648 Instruction::BinaryOps Opc = Instruction::BinaryOpsEnd; 2649 bool InvertPredCond = false; 2650 2651 if (BI->isConditional()) { 2652 if (PBI->getSuccessor(0) == TrueDest) { 2653 Opc = Instruction::Or; 2654 } else if (PBI->getSuccessor(1) == FalseDest) { 2655 Opc = Instruction::And; 2656 } else if (PBI->getSuccessor(0) == FalseDest) { 2657 Opc = Instruction::And; 2658 InvertPredCond = true; 2659 } else if (PBI->getSuccessor(1) == TrueDest) { 2660 Opc = Instruction::Or; 2661 InvertPredCond = true; 2662 } else { 2663 continue; 2664 } 2665 } else { 2666 if (PBI->getSuccessor(0) != TrueDest && PBI->getSuccessor(1) != TrueDest) 2667 continue; 2668 } 2669 2670 DEBUG(dbgs() << "FOLDING BRANCH TO COMMON DEST:\n" << *PBI << *BB); 2671 IRBuilder<> Builder(PBI); 2672 2673 // If we need to invert the condition in the pred block to match, do so now. 2674 if (InvertPredCond) { 2675 Value *NewCond = PBI->getCondition(); 2676 2677 if (NewCond->hasOneUse() && isa<CmpInst>(NewCond)) { 2678 CmpInst *CI = cast<CmpInst>(NewCond); 2679 CI->setPredicate(CI->getInversePredicate()); 2680 } else { 2681 NewCond = 2682 Builder.CreateNot(NewCond, PBI->getCondition()->getName() + ".not"); 2683 } 2684 2685 PBI->setCondition(NewCond); 2686 PBI->swapSuccessors(); 2687 } 2688 2689 // If we have bonus instructions, clone them into the predecessor block. 2690 // Note that there may be multiple predecessor blocks, so we cannot move 2691 // bonus instructions to a predecessor block. 2692 ValueToValueMapTy VMap; // maps original values to cloned values 2693 // We already make sure Cond is the last instruction before BI. Therefore, 2694 // all instructions before Cond other than DbgInfoIntrinsic are bonus 2695 // instructions. 2696 for (auto BonusInst = BB->begin(); Cond != &*BonusInst; ++BonusInst) { 2697 if (isa<DbgInfoIntrinsic>(BonusInst)) 2698 continue; 2699 Instruction *NewBonusInst = BonusInst->clone(); 2700 RemapInstruction(NewBonusInst, VMap, 2701 RF_NoModuleLevelChanges | RF_IgnoreMissingLocals); 2702 VMap[&*BonusInst] = NewBonusInst; 2703 2704 // If we moved a load, we cannot any longer claim any knowledge about 2705 // its potential value. The previous information might have been valid 2706 // only given the branch precondition. 2707 // For an analogous reason, we must also drop all the metadata whose 2708 // semantics we don't understand. 2709 NewBonusInst->dropUnknownNonDebugMetadata(); 2710 2711 PredBlock->getInstList().insert(PBI->getIterator(), NewBonusInst); 2712 NewBonusInst->takeName(&*BonusInst); 2713 BonusInst->setName(BonusInst->getName() + ".old"); 2714 } 2715 2716 // Clone Cond into the predecessor basic block, and or/and the 2717 // two conditions together. 2718 Instruction *New = Cond->clone(); 2719 RemapInstruction(New, VMap, 2720 RF_NoModuleLevelChanges | RF_IgnoreMissingLocals); 2721 PredBlock->getInstList().insert(PBI->getIterator(), New); 2722 New->takeName(Cond); 2723 Cond->setName(New->getName() + ".old"); 2724 2725 if (BI->isConditional()) { 2726 Instruction *NewCond = cast<Instruction>( 2727 Builder.CreateBinOp(Opc, PBI->getCondition(), New, "or.cond")); 2728 PBI->setCondition(NewCond); 2729 2730 uint64_t PredTrueWeight, PredFalseWeight, SuccTrueWeight, SuccFalseWeight; 2731 bool HasWeights = 2732 extractPredSuccWeights(PBI, BI, PredTrueWeight, PredFalseWeight, 2733 SuccTrueWeight, SuccFalseWeight); 2734 SmallVector<uint64_t, 8> NewWeights; 2735 2736 if (PBI->getSuccessor(0) == BB) { 2737 if (HasWeights) { 2738 // PBI: br i1 %x, BB, FalseDest 2739 // BI: br i1 %y, TrueDest, FalseDest 2740 // TrueWeight is TrueWeight for PBI * TrueWeight for BI. 2741 NewWeights.push_back(PredTrueWeight * SuccTrueWeight); 2742 // FalseWeight is FalseWeight for PBI * TotalWeight for BI + 2743 // TrueWeight for PBI * FalseWeight for BI. 2744 // We assume that total weights of a BranchInst can fit into 32 bits. 2745 // Therefore, we will not have overflow using 64-bit arithmetic. 2746 NewWeights.push_back(PredFalseWeight * 2747 (SuccFalseWeight + SuccTrueWeight) + 2748 PredTrueWeight * SuccFalseWeight); 2749 } 2750 AddPredecessorToBlock(TrueDest, PredBlock, BB); 2751 PBI->setSuccessor(0, TrueDest); 2752 } 2753 if (PBI->getSuccessor(1) == BB) { 2754 if (HasWeights) { 2755 // PBI: br i1 %x, TrueDest, BB 2756 // BI: br i1 %y, TrueDest, FalseDest 2757 // TrueWeight is TrueWeight for PBI * TotalWeight for BI + 2758 // FalseWeight for PBI * TrueWeight for BI. 2759 NewWeights.push_back(PredTrueWeight * 2760 (SuccFalseWeight + SuccTrueWeight) + 2761 PredFalseWeight * SuccTrueWeight); 2762 // FalseWeight is FalseWeight for PBI * FalseWeight for BI. 2763 NewWeights.push_back(PredFalseWeight * SuccFalseWeight); 2764 } 2765 AddPredecessorToBlock(FalseDest, PredBlock, BB); 2766 PBI->setSuccessor(1, FalseDest); 2767 } 2768 if (NewWeights.size() == 2) { 2769 // Halve the weights if any of them cannot fit in an uint32_t 2770 FitWeights(NewWeights); 2771 2772 SmallVector<uint32_t, 8> MDWeights(NewWeights.begin(), 2773 NewWeights.end()); 2774 setBranchWeights(PBI, MDWeights[0], MDWeights[1]); 2775 } else 2776 PBI->setMetadata(LLVMContext::MD_prof, nullptr); 2777 } else { 2778 // Update PHI nodes in the common successors. 2779 for (unsigned i = 0, e = PHIs.size(); i != e; ++i) { 2780 ConstantInt *PBI_C = cast<ConstantInt>( 2781 PHIs[i]->getIncomingValueForBlock(PBI->getParent())); 2782 assert(PBI_C->getType()->isIntegerTy(1)); 2783 Instruction *MergedCond = nullptr; 2784 if (PBI->getSuccessor(0) == TrueDest) { 2785 // Create (PBI_Cond and PBI_C) or (!PBI_Cond and BI_Value) 2786 // PBI_C is true: PBI_Cond or (!PBI_Cond and BI_Value) 2787 // is false: !PBI_Cond and BI_Value 2788 Instruction *NotCond = cast<Instruction>( 2789 Builder.CreateNot(PBI->getCondition(), "not.cond")); 2790 MergedCond = cast<Instruction>( 2791 Builder.CreateBinOp(Instruction::And, NotCond, New, "and.cond")); 2792 if (PBI_C->isOne()) 2793 MergedCond = cast<Instruction>(Builder.CreateBinOp( 2794 Instruction::Or, PBI->getCondition(), MergedCond, "or.cond")); 2795 } else { 2796 // Create (PBI_Cond and BI_Value) or (!PBI_Cond and PBI_C) 2797 // PBI_C is true: (PBI_Cond and BI_Value) or (!PBI_Cond) 2798 // is false: PBI_Cond and BI_Value 2799 MergedCond = cast<Instruction>(Builder.CreateBinOp( 2800 Instruction::And, PBI->getCondition(), New, "and.cond")); 2801 if (PBI_C->isOne()) { 2802 Instruction *NotCond = cast<Instruction>( 2803 Builder.CreateNot(PBI->getCondition(), "not.cond")); 2804 MergedCond = cast<Instruction>(Builder.CreateBinOp( 2805 Instruction::Or, NotCond, MergedCond, "or.cond")); 2806 } 2807 } 2808 // Update PHI Node. 2809 PHIs[i]->setIncomingValue(PHIs[i]->getBasicBlockIndex(PBI->getParent()), 2810 MergedCond); 2811 } 2812 // Change PBI from Conditional to Unconditional. 2813 BranchInst *New_PBI = BranchInst::Create(TrueDest, PBI); 2814 EraseTerminatorInstAndDCECond(PBI); 2815 PBI = New_PBI; 2816 } 2817 2818 // If BI was a loop latch, it may have had associated loop metadata. 2819 // We need to copy it to the new latch, that is, PBI. 2820 if (MDNode *LoopMD = BI->getMetadata(LLVMContext::MD_loop)) 2821 PBI->setMetadata(LLVMContext::MD_loop, LoopMD); 2822 2823 // TODO: If BB is reachable from all paths through PredBlock, then we 2824 // could replace PBI's branch probabilities with BI's. 2825 2826 // Copy any debug value intrinsics into the end of PredBlock. 2827 for (Instruction &I : *BB) 2828 if (isa<DbgInfoIntrinsic>(I)) 2829 I.clone()->insertBefore(PBI); 2830 2831 return true; 2832 } 2833 return false; 2834 } 2835 2836 // If there is only one store in BB1 and BB2, return it, otherwise return 2837 // nullptr. 2838 static StoreInst *findUniqueStoreInBlocks(BasicBlock *BB1, BasicBlock *BB2) { 2839 StoreInst *S = nullptr; 2840 for (auto *BB : {BB1, BB2}) { 2841 if (!BB) 2842 continue; 2843 for (auto &I : *BB) 2844 if (auto *SI = dyn_cast<StoreInst>(&I)) { 2845 if (S) 2846 // Multiple stores seen. 2847 return nullptr; 2848 else 2849 S = SI; 2850 } 2851 } 2852 return S; 2853 } 2854 2855 static Value *ensureValueAvailableInSuccessor(Value *V, BasicBlock *BB, 2856 Value *AlternativeV = nullptr) { 2857 // PHI is going to be a PHI node that allows the value V that is defined in 2858 // BB to be referenced in BB's only successor. 2859 // 2860 // If AlternativeV is nullptr, the only value we care about in PHI is V. It 2861 // doesn't matter to us what the other operand is (it'll never get used). We 2862 // could just create a new PHI with an undef incoming value, but that could 2863 // increase register pressure if EarlyCSE/InstCombine can't fold it with some 2864 // other PHI. So here we directly look for some PHI in BB's successor with V 2865 // as an incoming operand. If we find one, we use it, else we create a new 2866 // one. 2867 // 2868 // If AlternativeV is not nullptr, we care about both incoming values in PHI. 2869 // PHI must be exactly: phi <ty> [ %BB, %V ], [ %OtherBB, %AlternativeV] 2870 // where OtherBB is the single other predecessor of BB's only successor. 2871 PHINode *PHI = nullptr; 2872 BasicBlock *Succ = BB->getSingleSuccessor(); 2873 2874 for (auto I = Succ->begin(); isa<PHINode>(I); ++I) 2875 if (cast<PHINode>(I)->getIncomingValueForBlock(BB) == V) { 2876 PHI = cast<PHINode>(I); 2877 if (!AlternativeV) 2878 break; 2879 2880 assert(std::distance(pred_begin(Succ), pred_end(Succ)) == 2); 2881 auto PredI = pred_begin(Succ); 2882 BasicBlock *OtherPredBB = *PredI == BB ? *++PredI : *PredI; 2883 if (PHI->getIncomingValueForBlock(OtherPredBB) == AlternativeV) 2884 break; 2885 PHI = nullptr; 2886 } 2887 if (PHI) 2888 return PHI; 2889 2890 // If V is not an instruction defined in BB, just return it. 2891 if (!AlternativeV && 2892 (!isa<Instruction>(V) || cast<Instruction>(V)->getParent() != BB)) 2893 return V; 2894 2895 PHI = PHINode::Create(V->getType(), 2, "simplifycfg.merge", &Succ->front()); 2896 PHI->addIncoming(V, BB); 2897 for (BasicBlock *PredBB : predecessors(Succ)) 2898 if (PredBB != BB) 2899 PHI->addIncoming( 2900 AlternativeV ? AlternativeV : UndefValue::get(V->getType()), PredBB); 2901 return PHI; 2902 } 2903 2904 static bool mergeConditionalStoreToAddress(BasicBlock *PTB, BasicBlock *PFB, 2905 BasicBlock *QTB, BasicBlock *QFB, 2906 BasicBlock *PostBB, Value *Address, 2907 bool InvertPCond, bool InvertQCond, 2908 const DataLayout &DL) { 2909 auto IsaBitcastOfPointerType = [](const Instruction &I) { 2910 return Operator::getOpcode(&I) == Instruction::BitCast && 2911 I.getType()->isPointerTy(); 2912 }; 2913 2914 // If we're not in aggressive mode, we only optimize if we have some 2915 // confidence that by optimizing we'll allow P and/or Q to be if-converted. 2916 auto IsWorthwhile = [&](BasicBlock *BB) { 2917 if (!BB) 2918 return true; 2919 // Heuristic: if the block can be if-converted/phi-folded and the 2920 // instructions inside are all cheap (arithmetic/GEPs), it's worthwhile to 2921 // thread this store. 2922 unsigned N = 0; 2923 for (auto &I : *BB) { 2924 // Cheap instructions viable for folding. 2925 if (isa<BinaryOperator>(I) || isa<GetElementPtrInst>(I) || 2926 isa<StoreInst>(I)) 2927 ++N; 2928 // Free instructions. 2929 else if (isa<TerminatorInst>(I) || isa<DbgInfoIntrinsic>(I) || 2930 IsaBitcastOfPointerType(I)) 2931 continue; 2932 else 2933 return false; 2934 } 2935 // The store we want to merge is counted in N, so add 1 to make sure 2936 // we're counting the instructions that would be left. 2937 return N <= (PHINodeFoldingThreshold + 1); 2938 }; 2939 2940 if (!MergeCondStoresAggressively && 2941 (!IsWorthwhile(PTB) || !IsWorthwhile(PFB) || !IsWorthwhile(QTB) || 2942 !IsWorthwhile(QFB))) 2943 return false; 2944 2945 // For every pointer, there must be exactly two stores, one coming from 2946 // PTB or PFB, and the other from QTB or QFB. We don't support more than one 2947 // store (to any address) in PTB,PFB or QTB,QFB. 2948 // FIXME: We could relax this restriction with a bit more work and performance 2949 // testing. 2950 StoreInst *PStore = findUniqueStoreInBlocks(PTB, PFB); 2951 StoreInst *QStore = findUniqueStoreInBlocks(QTB, QFB); 2952 if (!PStore || !QStore) 2953 return false; 2954 2955 // Now check the stores are compatible. 2956 if (!QStore->isUnordered() || !PStore->isUnordered()) 2957 return false; 2958 2959 // Check that sinking the store won't cause program behavior changes. Sinking 2960 // the store out of the Q blocks won't change any behavior as we're sinking 2961 // from a block to its unconditional successor. But we're moving a store from 2962 // the P blocks down through the middle block (QBI) and past both QFB and QTB. 2963 // So we need to check that there are no aliasing loads or stores in 2964 // QBI, QTB and QFB. We also need to check there are no conflicting memory 2965 // operations between PStore and the end of its parent block. 2966 // 2967 // The ideal way to do this is to query AliasAnalysis, but we don't 2968 // preserve AA currently so that is dangerous. Be super safe and just 2969 // check there are no other memory operations at all. 2970 for (auto &I : *QFB->getSinglePredecessor()) 2971 if (I.mayReadOrWriteMemory()) 2972 return false; 2973 for (auto &I : *QFB) 2974 if (&I != QStore && I.mayReadOrWriteMemory()) 2975 return false; 2976 if (QTB) 2977 for (auto &I : *QTB) 2978 if (&I != QStore && I.mayReadOrWriteMemory()) 2979 return false; 2980 for (auto I = BasicBlock::iterator(PStore), E = PStore->getParent()->end(); 2981 I != E; ++I) 2982 if (&*I != PStore && I->mayReadOrWriteMemory()) 2983 return false; 2984 2985 // OK, we're going to sink the stores to PostBB. The store has to be 2986 // conditional though, so first create the predicate. 2987 Value *PCond = cast<BranchInst>(PFB->getSinglePredecessor()->getTerminator()) 2988 ->getCondition(); 2989 Value *QCond = cast<BranchInst>(QFB->getSinglePredecessor()->getTerminator()) 2990 ->getCondition(); 2991 2992 Value *PPHI = ensureValueAvailableInSuccessor(PStore->getValueOperand(), 2993 PStore->getParent()); 2994 Value *QPHI = ensureValueAvailableInSuccessor(QStore->getValueOperand(), 2995 QStore->getParent(), PPHI); 2996 2997 IRBuilder<> QB(&*PostBB->getFirstInsertionPt()); 2998 2999 Value *PPred = PStore->getParent() == PTB ? PCond : QB.CreateNot(PCond); 3000 Value *QPred = QStore->getParent() == QTB ? QCond : QB.CreateNot(QCond); 3001 3002 if (InvertPCond) 3003 PPred = QB.CreateNot(PPred); 3004 if (InvertQCond) 3005 QPred = QB.CreateNot(QPred); 3006 Value *CombinedPred = QB.CreateOr(PPred, QPred); 3007 3008 auto *T = 3009 SplitBlockAndInsertIfThen(CombinedPred, &*QB.GetInsertPoint(), false); 3010 QB.SetInsertPoint(T); 3011 StoreInst *SI = cast<StoreInst>(QB.CreateStore(QPHI, Address)); 3012 AAMDNodes AAMD; 3013 PStore->getAAMetadata(AAMD, /*Merge=*/false); 3014 PStore->getAAMetadata(AAMD, /*Merge=*/true); 3015 SI->setAAMetadata(AAMD); 3016 unsigned PAlignment = PStore->getAlignment(); 3017 unsigned QAlignment = QStore->getAlignment(); 3018 unsigned TypeAlignment = 3019 DL.getABITypeAlignment(SI->getValueOperand()->getType()); 3020 unsigned MinAlignment; 3021 unsigned MaxAlignment; 3022 std::tie(MinAlignment, MaxAlignment) = std::minmax(PAlignment, QAlignment); 3023 // Choose the minimum alignment. If we could prove both stores execute, we 3024 // could use biggest one. In this case, though, we only know that one of the 3025 // stores executes. And we don't know it's safe to take the alignment from a 3026 // store that doesn't execute. 3027 if (MinAlignment != 0) { 3028 // Choose the minimum of all non-zero alignments. 3029 SI->setAlignment(MinAlignment); 3030 } else if (MaxAlignment != 0) { 3031 // Choose the minimal alignment between the non-zero alignment and the ABI 3032 // default alignment for the type of the stored value. 3033 SI->setAlignment(std::min(MaxAlignment, TypeAlignment)); 3034 } else { 3035 // If both alignments are zero, use ABI default alignment for the type of 3036 // the stored value. 3037 SI->setAlignment(TypeAlignment); 3038 } 3039 3040 QStore->eraseFromParent(); 3041 PStore->eraseFromParent(); 3042 3043 return true; 3044 } 3045 3046 static bool mergeConditionalStores(BranchInst *PBI, BranchInst *QBI, 3047 const DataLayout &DL) { 3048 // The intention here is to find diamonds or triangles (see below) where each 3049 // conditional block contains a store to the same address. Both of these 3050 // stores are conditional, so they can't be unconditionally sunk. But it may 3051 // be profitable to speculatively sink the stores into one merged store at the 3052 // end, and predicate the merged store on the union of the two conditions of 3053 // PBI and QBI. 3054 // 3055 // This can reduce the number of stores executed if both of the conditions are 3056 // true, and can allow the blocks to become small enough to be if-converted. 3057 // This optimization will also chain, so that ladders of test-and-set 3058 // sequences can be if-converted away. 3059 // 3060 // We only deal with simple diamonds or triangles: 3061 // 3062 // PBI or PBI or a combination of the two 3063 // / \ | \ 3064 // PTB PFB | PFB 3065 // \ / | / 3066 // QBI QBI 3067 // / \ | \ 3068 // QTB QFB | QFB 3069 // \ / | / 3070 // PostBB PostBB 3071 // 3072 // We model triangles as a type of diamond with a nullptr "true" block. 3073 // Triangles are canonicalized so that the fallthrough edge is represented by 3074 // a true condition, as in the diagram above. 3075 BasicBlock *PTB = PBI->getSuccessor(0); 3076 BasicBlock *PFB = PBI->getSuccessor(1); 3077 BasicBlock *QTB = QBI->getSuccessor(0); 3078 BasicBlock *QFB = QBI->getSuccessor(1); 3079 BasicBlock *PostBB = QFB->getSingleSuccessor(); 3080 3081 // Make sure we have a good guess for PostBB. If QTB's only successor is 3082 // QFB, then QFB is a better PostBB. 3083 if (QTB->getSingleSuccessor() == QFB) 3084 PostBB = QFB; 3085 3086 // If we couldn't find a good PostBB, stop. 3087 if (!PostBB) 3088 return false; 3089 3090 bool InvertPCond = false, InvertQCond = false; 3091 // Canonicalize fallthroughs to the true branches. 3092 if (PFB == QBI->getParent()) { 3093 std::swap(PFB, PTB); 3094 InvertPCond = true; 3095 } 3096 if (QFB == PostBB) { 3097 std::swap(QFB, QTB); 3098 InvertQCond = true; 3099 } 3100 3101 // From this point on we can assume PTB or QTB may be fallthroughs but PFB 3102 // and QFB may not. Model fallthroughs as a nullptr block. 3103 if (PTB == QBI->getParent()) 3104 PTB = nullptr; 3105 if (QTB == PostBB) 3106 QTB = nullptr; 3107 3108 // Legality bailouts. We must have at least the non-fallthrough blocks and 3109 // the post-dominating block, and the non-fallthroughs must only have one 3110 // predecessor. 3111 auto HasOnePredAndOneSucc = [](BasicBlock *BB, BasicBlock *P, BasicBlock *S) { 3112 return BB->getSinglePredecessor() == P && BB->getSingleSuccessor() == S; 3113 }; 3114 if (!HasOnePredAndOneSucc(PFB, PBI->getParent(), QBI->getParent()) || 3115 !HasOnePredAndOneSucc(QFB, QBI->getParent(), PostBB)) 3116 return false; 3117 if ((PTB && !HasOnePredAndOneSucc(PTB, PBI->getParent(), QBI->getParent())) || 3118 (QTB && !HasOnePredAndOneSucc(QTB, QBI->getParent(), PostBB))) 3119 return false; 3120 if (!PostBB->hasNUses(2) || !QBI->getParent()->hasNUses(2)) 3121 return false; 3122 3123 // OK, this is a sequence of two diamonds or triangles. 3124 // Check if there are stores in PTB or PFB that are repeated in QTB or QFB. 3125 SmallPtrSet<Value *, 4> PStoreAddresses, QStoreAddresses; 3126 for (auto *BB : {PTB, PFB}) { 3127 if (!BB) 3128 continue; 3129 for (auto &I : *BB) 3130 if (StoreInst *SI = dyn_cast<StoreInst>(&I)) 3131 PStoreAddresses.insert(SI->getPointerOperand()); 3132 } 3133 for (auto *BB : {QTB, QFB}) { 3134 if (!BB) 3135 continue; 3136 for (auto &I : *BB) 3137 if (StoreInst *SI = dyn_cast<StoreInst>(&I)) 3138 QStoreAddresses.insert(SI->getPointerOperand()); 3139 } 3140 3141 set_intersect(PStoreAddresses, QStoreAddresses); 3142 // set_intersect mutates PStoreAddresses in place. Rename it here to make it 3143 // clear what it contains. 3144 auto &CommonAddresses = PStoreAddresses; 3145 3146 bool Changed = false; 3147 for (auto *Address : CommonAddresses) 3148 Changed |= mergeConditionalStoreToAddress( 3149 PTB, PFB, QTB, QFB, PostBB, Address, InvertPCond, InvertQCond, DL); 3150 return Changed; 3151 } 3152 3153 /// If we have a conditional branch as a predecessor of another block, 3154 /// this function tries to simplify it. We know 3155 /// that PBI and BI are both conditional branches, and BI is in one of the 3156 /// successor blocks of PBI - PBI branches to BI. 3157 static bool SimplifyCondBranchToCondBranch(BranchInst *PBI, BranchInst *BI, 3158 const DataLayout &DL) { 3159 assert(PBI->isConditional() && BI->isConditional()); 3160 BasicBlock *BB = BI->getParent(); 3161 3162 // If this block ends with a branch instruction, and if there is a 3163 // predecessor that ends on a branch of the same condition, make 3164 // this conditional branch redundant. 3165 if (PBI->getCondition() == BI->getCondition() && 3166 PBI->getSuccessor(0) != PBI->getSuccessor(1)) { 3167 // Okay, the outcome of this conditional branch is statically 3168 // knowable. If this block had a single pred, handle specially. 3169 if (BB->getSinglePredecessor()) { 3170 // Turn this into a branch on constant. 3171 bool CondIsTrue = PBI->getSuccessor(0) == BB; 3172 BI->setCondition( 3173 ConstantInt::get(Type::getInt1Ty(BB->getContext()), CondIsTrue)); 3174 return true; // Nuke the branch on constant. 3175 } 3176 3177 // Otherwise, if there are multiple predecessors, insert a PHI that merges 3178 // in the constant and simplify the block result. Subsequent passes of 3179 // simplifycfg will thread the block. 3180 if (BlockIsSimpleEnoughToThreadThrough(BB)) { 3181 pred_iterator PB = pred_begin(BB), PE = pred_end(BB); 3182 PHINode *NewPN = PHINode::Create( 3183 Type::getInt1Ty(BB->getContext()), std::distance(PB, PE), 3184 BI->getCondition()->getName() + ".pr", &BB->front()); 3185 // Okay, we're going to insert the PHI node. Since PBI is not the only 3186 // predecessor, compute the PHI'd conditional value for all of the preds. 3187 // Any predecessor where the condition is not computable we keep symbolic. 3188 for (pred_iterator PI = PB; PI != PE; ++PI) { 3189 BasicBlock *P = *PI; 3190 if ((PBI = dyn_cast<BranchInst>(P->getTerminator())) && PBI != BI && 3191 PBI->isConditional() && PBI->getCondition() == BI->getCondition() && 3192 PBI->getSuccessor(0) != PBI->getSuccessor(1)) { 3193 bool CondIsTrue = PBI->getSuccessor(0) == BB; 3194 NewPN->addIncoming( 3195 ConstantInt::get(Type::getInt1Ty(BB->getContext()), CondIsTrue), 3196 P); 3197 } else { 3198 NewPN->addIncoming(BI->getCondition(), P); 3199 } 3200 } 3201 3202 BI->setCondition(NewPN); 3203 return true; 3204 } 3205 } 3206 3207 if (auto *CE = dyn_cast<ConstantExpr>(BI->getCondition())) 3208 if (CE->canTrap()) 3209 return false; 3210 3211 // If both branches are conditional and both contain stores to the same 3212 // address, remove the stores from the conditionals and create a conditional 3213 // merged store at the end. 3214 if (MergeCondStores && mergeConditionalStores(PBI, BI, DL)) 3215 return true; 3216 3217 // If this is a conditional branch in an empty block, and if any 3218 // predecessors are a conditional branch to one of our destinations, 3219 // fold the conditions into logical ops and one cond br. 3220 BasicBlock::iterator BBI = BB->begin(); 3221 // Ignore dbg intrinsics. 3222 while (isa<DbgInfoIntrinsic>(BBI)) 3223 ++BBI; 3224 if (&*BBI != BI) 3225 return false; 3226 3227 int PBIOp, BIOp; 3228 if (PBI->getSuccessor(0) == BI->getSuccessor(0)) { 3229 PBIOp = 0; 3230 BIOp = 0; 3231 } else if (PBI->getSuccessor(0) == BI->getSuccessor(1)) { 3232 PBIOp = 0; 3233 BIOp = 1; 3234 } else if (PBI->getSuccessor(1) == BI->getSuccessor(0)) { 3235 PBIOp = 1; 3236 BIOp = 0; 3237 } else if (PBI->getSuccessor(1) == BI->getSuccessor(1)) { 3238 PBIOp = 1; 3239 BIOp = 1; 3240 } else { 3241 return false; 3242 } 3243 3244 // Check to make sure that the other destination of this branch 3245 // isn't BB itself. If so, this is an infinite loop that will 3246 // keep getting unwound. 3247 if (PBI->getSuccessor(PBIOp) == BB) 3248 return false; 3249 3250 // Do not perform this transformation if it would require 3251 // insertion of a large number of select instructions. For targets 3252 // without predication/cmovs, this is a big pessimization. 3253 3254 // Also do not perform this transformation if any phi node in the common 3255 // destination block can trap when reached by BB or PBB (PR17073). In that 3256 // case, it would be unsafe to hoist the operation into a select instruction. 3257 3258 BasicBlock *CommonDest = PBI->getSuccessor(PBIOp); 3259 unsigned NumPhis = 0; 3260 for (BasicBlock::iterator II = CommonDest->begin(); isa<PHINode>(II); 3261 ++II, ++NumPhis) { 3262 if (NumPhis > 2) // Disable this xform. 3263 return false; 3264 3265 PHINode *PN = cast<PHINode>(II); 3266 Value *BIV = PN->getIncomingValueForBlock(BB); 3267 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(BIV)) 3268 if (CE->canTrap()) 3269 return false; 3270 3271 unsigned PBBIdx = PN->getBasicBlockIndex(PBI->getParent()); 3272 Value *PBIV = PN->getIncomingValue(PBBIdx); 3273 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(PBIV)) 3274 if (CE->canTrap()) 3275 return false; 3276 } 3277 3278 // Finally, if everything is ok, fold the branches to logical ops. 3279 BasicBlock *OtherDest = BI->getSuccessor(BIOp ^ 1); 3280 3281 DEBUG(dbgs() << "FOLDING BRs:" << *PBI->getParent() 3282 << "AND: " << *BI->getParent()); 3283 3284 // If OtherDest *is* BB, then BB is a basic block with a single conditional 3285 // branch in it, where one edge (OtherDest) goes back to itself but the other 3286 // exits. We don't *know* that the program avoids the infinite loop 3287 // (even though that seems likely). If we do this xform naively, we'll end up 3288 // recursively unpeeling the loop. Since we know that (after the xform is 3289 // done) that the block *is* infinite if reached, we just make it an obviously 3290 // infinite loop with no cond branch. 3291 if (OtherDest == BB) { 3292 // Insert it at the end of the function, because it's either code, 3293 // or it won't matter if it's hot. :) 3294 BasicBlock *InfLoopBlock = 3295 BasicBlock::Create(BB->getContext(), "infloop", BB->getParent()); 3296 BranchInst::Create(InfLoopBlock, InfLoopBlock); 3297 OtherDest = InfLoopBlock; 3298 } 3299 3300 DEBUG(dbgs() << *PBI->getParent()->getParent()); 3301 3302 // BI may have other predecessors. Because of this, we leave 3303 // it alone, but modify PBI. 3304 3305 // Make sure we get to CommonDest on True&True directions. 3306 Value *PBICond = PBI->getCondition(); 3307 IRBuilder<NoFolder> Builder(PBI); 3308 if (PBIOp) 3309 PBICond = Builder.CreateNot(PBICond, PBICond->getName() + ".not"); 3310 3311 Value *BICond = BI->getCondition(); 3312 if (BIOp) 3313 BICond = Builder.CreateNot(BICond, BICond->getName() + ".not"); 3314 3315 // Merge the conditions. 3316 Value *Cond = Builder.CreateOr(PBICond, BICond, "brmerge"); 3317 3318 // Modify PBI to branch on the new condition to the new dests. 3319 PBI->setCondition(Cond); 3320 PBI->setSuccessor(0, CommonDest); 3321 PBI->setSuccessor(1, OtherDest); 3322 3323 // Update branch weight for PBI. 3324 uint64_t PredTrueWeight, PredFalseWeight, SuccTrueWeight, SuccFalseWeight; 3325 uint64_t PredCommon, PredOther, SuccCommon, SuccOther; 3326 bool HasWeights = 3327 extractPredSuccWeights(PBI, BI, PredTrueWeight, PredFalseWeight, 3328 SuccTrueWeight, SuccFalseWeight); 3329 if (HasWeights) { 3330 PredCommon = PBIOp ? PredFalseWeight : PredTrueWeight; 3331 PredOther = PBIOp ? PredTrueWeight : PredFalseWeight; 3332 SuccCommon = BIOp ? SuccFalseWeight : SuccTrueWeight; 3333 SuccOther = BIOp ? SuccTrueWeight : SuccFalseWeight; 3334 // The weight to CommonDest should be PredCommon * SuccTotal + 3335 // PredOther * SuccCommon. 3336 // The weight to OtherDest should be PredOther * SuccOther. 3337 uint64_t NewWeights[2] = {PredCommon * (SuccCommon + SuccOther) + 3338 PredOther * SuccCommon, 3339 PredOther * SuccOther}; 3340 // Halve the weights if any of them cannot fit in an uint32_t 3341 FitWeights(NewWeights); 3342 3343 setBranchWeights(PBI, NewWeights[0], NewWeights[1]); 3344 } 3345 3346 // OtherDest may have phi nodes. If so, add an entry from PBI's 3347 // block that are identical to the entries for BI's block. 3348 AddPredecessorToBlock(OtherDest, PBI->getParent(), BB); 3349 3350 // We know that the CommonDest already had an edge from PBI to 3351 // it. If it has PHIs though, the PHIs may have different 3352 // entries for BB and PBI's BB. If so, insert a select to make 3353 // them agree. 3354 for (PHINode &PN : CommonDest->phis()) { 3355 Value *BIV = PN.getIncomingValueForBlock(BB); 3356 unsigned PBBIdx = PN.getBasicBlockIndex(PBI->getParent()); 3357 Value *PBIV = PN.getIncomingValue(PBBIdx); 3358 if (BIV != PBIV) { 3359 // Insert a select in PBI to pick the right value. 3360 SelectInst *NV = cast<SelectInst>( 3361 Builder.CreateSelect(PBICond, PBIV, BIV, PBIV->getName() + ".mux")); 3362 PN.setIncomingValue(PBBIdx, NV); 3363 // Although the select has the same condition as PBI, the original branch 3364 // weights for PBI do not apply to the new select because the select's 3365 // 'logical' edges are incoming edges of the phi that is eliminated, not 3366 // the outgoing edges of PBI. 3367 if (HasWeights) { 3368 uint64_t PredCommon = PBIOp ? PredFalseWeight : PredTrueWeight; 3369 uint64_t PredOther = PBIOp ? PredTrueWeight : PredFalseWeight; 3370 uint64_t SuccCommon = BIOp ? SuccFalseWeight : SuccTrueWeight; 3371 uint64_t SuccOther = BIOp ? SuccTrueWeight : SuccFalseWeight; 3372 // The weight to PredCommonDest should be PredCommon * SuccTotal. 3373 // The weight to PredOtherDest should be PredOther * SuccCommon. 3374 uint64_t NewWeights[2] = {PredCommon * (SuccCommon + SuccOther), 3375 PredOther * SuccCommon}; 3376 3377 FitWeights(NewWeights); 3378 3379 setBranchWeights(NV, NewWeights[0], NewWeights[1]); 3380 } 3381 } 3382 } 3383 3384 DEBUG(dbgs() << "INTO: " << *PBI->getParent()); 3385 DEBUG(dbgs() << *PBI->getParent()->getParent()); 3386 3387 // This basic block is probably dead. We know it has at least 3388 // one fewer predecessor. 3389 return true; 3390 } 3391 3392 // Simplifies a terminator by replacing it with a branch to TrueBB if Cond is 3393 // true or to FalseBB if Cond is false. 3394 // Takes care of updating the successors and removing the old terminator. 3395 // Also makes sure not to introduce new successors by assuming that edges to 3396 // non-successor TrueBBs and FalseBBs aren't reachable. 3397 static bool SimplifyTerminatorOnSelect(TerminatorInst *OldTerm, Value *Cond, 3398 BasicBlock *TrueBB, BasicBlock *FalseBB, 3399 uint32_t TrueWeight, 3400 uint32_t FalseWeight) { 3401 // Remove any superfluous successor edges from the CFG. 3402 // First, figure out which successors to preserve. 3403 // If TrueBB and FalseBB are equal, only try to preserve one copy of that 3404 // successor. 3405 BasicBlock *KeepEdge1 = TrueBB; 3406 BasicBlock *KeepEdge2 = TrueBB != FalseBB ? FalseBB : nullptr; 3407 3408 // Then remove the rest. 3409 for (BasicBlock *Succ : OldTerm->successors()) { 3410 // Make sure only to keep exactly one copy of each edge. 3411 if (Succ == KeepEdge1) 3412 KeepEdge1 = nullptr; 3413 else if (Succ == KeepEdge2) 3414 KeepEdge2 = nullptr; 3415 else 3416 Succ->removePredecessor(OldTerm->getParent(), 3417 /*DontDeleteUselessPHIs=*/true); 3418 } 3419 3420 IRBuilder<> Builder(OldTerm); 3421 Builder.SetCurrentDebugLocation(OldTerm->getDebugLoc()); 3422 3423 // Insert an appropriate new terminator. 3424 if (!KeepEdge1 && !KeepEdge2) { 3425 if (TrueBB == FalseBB) 3426 // We were only looking for one successor, and it was present. 3427 // Create an unconditional branch to it. 3428 Builder.CreateBr(TrueBB); 3429 else { 3430 // We found both of the successors we were looking for. 3431 // Create a conditional branch sharing the condition of the select. 3432 BranchInst *NewBI = Builder.CreateCondBr(Cond, TrueBB, FalseBB); 3433 if (TrueWeight != FalseWeight) 3434 setBranchWeights(NewBI, TrueWeight, FalseWeight); 3435 } 3436 } else if (KeepEdge1 && (KeepEdge2 || TrueBB == FalseBB)) { 3437 // Neither of the selected blocks were successors, so this 3438 // terminator must be unreachable. 3439 new UnreachableInst(OldTerm->getContext(), OldTerm); 3440 } else { 3441 // One of the selected values was a successor, but the other wasn't. 3442 // Insert an unconditional branch to the one that was found; 3443 // the edge to the one that wasn't must be unreachable. 3444 if (!KeepEdge1) 3445 // Only TrueBB was found. 3446 Builder.CreateBr(TrueBB); 3447 else 3448 // Only FalseBB was found. 3449 Builder.CreateBr(FalseBB); 3450 } 3451 3452 EraseTerminatorInstAndDCECond(OldTerm); 3453 return true; 3454 } 3455 3456 // Replaces 3457 // (switch (select cond, X, Y)) on constant X, Y 3458 // with a branch - conditional if X and Y lead to distinct BBs, 3459 // unconditional otherwise. 3460 static bool SimplifySwitchOnSelect(SwitchInst *SI, SelectInst *Select) { 3461 // Check for constant integer values in the select. 3462 ConstantInt *TrueVal = dyn_cast<ConstantInt>(Select->getTrueValue()); 3463 ConstantInt *FalseVal = dyn_cast<ConstantInt>(Select->getFalseValue()); 3464 if (!TrueVal || !FalseVal) 3465 return false; 3466 3467 // Find the relevant condition and destinations. 3468 Value *Condition = Select->getCondition(); 3469 BasicBlock *TrueBB = SI->findCaseValue(TrueVal)->getCaseSuccessor(); 3470 BasicBlock *FalseBB = SI->findCaseValue(FalseVal)->getCaseSuccessor(); 3471 3472 // Get weight for TrueBB and FalseBB. 3473 uint32_t TrueWeight = 0, FalseWeight = 0; 3474 SmallVector<uint64_t, 8> Weights; 3475 bool HasWeights = HasBranchWeights(SI); 3476 if (HasWeights) { 3477 GetBranchWeights(SI, Weights); 3478 if (Weights.size() == 1 + SI->getNumCases()) { 3479 TrueWeight = 3480 (uint32_t)Weights[SI->findCaseValue(TrueVal)->getSuccessorIndex()]; 3481 FalseWeight = 3482 (uint32_t)Weights[SI->findCaseValue(FalseVal)->getSuccessorIndex()]; 3483 } 3484 } 3485 3486 // Perform the actual simplification. 3487 return SimplifyTerminatorOnSelect(SI, Condition, TrueBB, FalseBB, TrueWeight, 3488 FalseWeight); 3489 } 3490 3491 // Replaces 3492 // (indirectbr (select cond, blockaddress(@fn, BlockA), 3493 // blockaddress(@fn, BlockB))) 3494 // with 3495 // (br cond, BlockA, BlockB). 3496 static bool SimplifyIndirectBrOnSelect(IndirectBrInst *IBI, SelectInst *SI) { 3497 // Check that both operands of the select are block addresses. 3498 BlockAddress *TBA = dyn_cast<BlockAddress>(SI->getTrueValue()); 3499 BlockAddress *FBA = dyn_cast<BlockAddress>(SI->getFalseValue()); 3500 if (!TBA || !FBA) 3501 return false; 3502 3503 // Extract the actual blocks. 3504 BasicBlock *TrueBB = TBA->getBasicBlock(); 3505 BasicBlock *FalseBB = FBA->getBasicBlock(); 3506 3507 // Perform the actual simplification. 3508 return SimplifyTerminatorOnSelect(IBI, SI->getCondition(), TrueBB, FalseBB, 0, 3509 0); 3510 } 3511 3512 /// This is called when we find an icmp instruction 3513 /// (a seteq/setne with a constant) as the only instruction in a 3514 /// block that ends with an uncond branch. We are looking for a very specific 3515 /// pattern that occurs when "A == 1 || A == 2 || A == 3" gets simplified. In 3516 /// this case, we merge the first two "or's of icmp" into a switch, but then the 3517 /// default value goes to an uncond block with a seteq in it, we get something 3518 /// like: 3519 /// 3520 /// switch i8 %A, label %DEFAULT [ i8 1, label %end i8 2, label %end ] 3521 /// DEFAULT: 3522 /// %tmp = icmp eq i8 %A, 92 3523 /// br label %end 3524 /// end: 3525 /// ... = phi i1 [ true, %entry ], [ %tmp, %DEFAULT ], [ true, %entry ] 3526 /// 3527 /// We prefer to split the edge to 'end' so that there is a true/false entry to 3528 /// the PHI, merging the third icmp into the switch. 3529 static bool tryToSimplifyUncondBranchWithICmpInIt( 3530 ICmpInst *ICI, IRBuilder<> &Builder, const DataLayout &DL, 3531 const TargetTransformInfo &TTI, const SimplifyCFGOptions &Options) { 3532 BasicBlock *BB = ICI->getParent(); 3533 3534 // If the block has any PHIs in it or the icmp has multiple uses, it is too 3535 // complex. 3536 if (isa<PHINode>(BB->begin()) || !ICI->hasOneUse()) 3537 return false; 3538 3539 Value *V = ICI->getOperand(0); 3540 ConstantInt *Cst = cast<ConstantInt>(ICI->getOperand(1)); 3541 3542 // The pattern we're looking for is where our only predecessor is a switch on 3543 // 'V' and this block is the default case for the switch. In this case we can 3544 // fold the compared value into the switch to simplify things. 3545 BasicBlock *Pred = BB->getSinglePredecessor(); 3546 if (!Pred || !isa<SwitchInst>(Pred->getTerminator())) 3547 return false; 3548 3549 SwitchInst *SI = cast<SwitchInst>(Pred->getTerminator()); 3550 if (SI->getCondition() != V) 3551 return false; 3552 3553 // If BB is reachable on a non-default case, then we simply know the value of 3554 // V in this block. Substitute it and constant fold the icmp instruction 3555 // away. 3556 if (SI->getDefaultDest() != BB) { 3557 ConstantInt *VVal = SI->findCaseDest(BB); 3558 assert(VVal && "Should have a unique destination value"); 3559 ICI->setOperand(0, VVal); 3560 3561 if (Value *V = SimplifyInstruction(ICI, {DL, ICI})) { 3562 ICI->replaceAllUsesWith(V); 3563 ICI->eraseFromParent(); 3564 } 3565 // BB is now empty, so it is likely to simplify away. 3566 return simplifyCFG(BB, TTI, Options) | true; 3567 } 3568 3569 // Ok, the block is reachable from the default dest. If the constant we're 3570 // comparing exists in one of the other edges, then we can constant fold ICI 3571 // and zap it. 3572 if (SI->findCaseValue(Cst) != SI->case_default()) { 3573 Value *V; 3574 if (ICI->getPredicate() == ICmpInst::ICMP_EQ) 3575 V = ConstantInt::getFalse(BB->getContext()); 3576 else 3577 V = ConstantInt::getTrue(BB->getContext()); 3578 3579 ICI->replaceAllUsesWith(V); 3580 ICI->eraseFromParent(); 3581 // BB is now empty, so it is likely to simplify away. 3582 return simplifyCFG(BB, TTI, Options) | true; 3583 } 3584 3585 // The use of the icmp has to be in the 'end' block, by the only PHI node in 3586 // the block. 3587 BasicBlock *SuccBlock = BB->getTerminator()->getSuccessor(0); 3588 PHINode *PHIUse = dyn_cast<PHINode>(ICI->user_back()); 3589 if (PHIUse == nullptr || PHIUse != &SuccBlock->front() || 3590 isa<PHINode>(++BasicBlock::iterator(PHIUse))) 3591 return false; 3592 3593 // If the icmp is a SETEQ, then the default dest gets false, the new edge gets 3594 // true in the PHI. 3595 Constant *DefaultCst = ConstantInt::getTrue(BB->getContext()); 3596 Constant *NewCst = ConstantInt::getFalse(BB->getContext()); 3597 3598 if (ICI->getPredicate() == ICmpInst::ICMP_EQ) 3599 std::swap(DefaultCst, NewCst); 3600 3601 // Replace ICI (which is used by the PHI for the default value) with true or 3602 // false depending on if it is EQ or NE. 3603 ICI->replaceAllUsesWith(DefaultCst); 3604 ICI->eraseFromParent(); 3605 3606 // Okay, the switch goes to this block on a default value. Add an edge from 3607 // the switch to the merge point on the compared value. 3608 BasicBlock *NewBB = 3609 BasicBlock::Create(BB->getContext(), "switch.edge", BB->getParent(), BB); 3610 SmallVector<uint64_t, 8> Weights; 3611 bool HasWeights = HasBranchWeights(SI); 3612 if (HasWeights) { 3613 GetBranchWeights(SI, Weights); 3614 if (Weights.size() == 1 + SI->getNumCases()) { 3615 // Split weight for default case to case for "Cst". 3616 Weights[0] = (Weights[0] + 1) >> 1; 3617 Weights.push_back(Weights[0]); 3618 3619 SmallVector<uint32_t, 8> MDWeights(Weights.begin(), Weights.end()); 3620 setBranchWeights(SI, MDWeights); 3621 } 3622 } 3623 SI->addCase(Cst, NewBB); 3624 3625 // NewBB branches to the phi block, add the uncond branch and the phi entry. 3626 Builder.SetInsertPoint(NewBB); 3627 Builder.SetCurrentDebugLocation(SI->getDebugLoc()); 3628 Builder.CreateBr(SuccBlock); 3629 PHIUse->addIncoming(NewCst, NewBB); 3630 return true; 3631 } 3632 3633 /// The specified branch is a conditional branch. 3634 /// Check to see if it is branching on an or/and chain of icmp instructions, and 3635 /// fold it into a switch instruction if so. 3636 static bool SimplifyBranchOnICmpChain(BranchInst *BI, IRBuilder<> &Builder, 3637 const DataLayout &DL) { 3638 Instruction *Cond = dyn_cast<Instruction>(BI->getCondition()); 3639 if (!Cond) 3640 return false; 3641 3642 // Change br (X == 0 | X == 1), T, F into a switch instruction. 3643 // If this is a bunch of seteq's or'd together, or if it's a bunch of 3644 // 'setne's and'ed together, collect them. 3645 3646 // Try to gather values from a chain of and/or to be turned into a switch 3647 ConstantComparesGatherer ConstantCompare(Cond, DL); 3648 // Unpack the result 3649 SmallVectorImpl<ConstantInt *> &Values = ConstantCompare.Vals; 3650 Value *CompVal = ConstantCompare.CompValue; 3651 unsigned UsedICmps = ConstantCompare.UsedICmps; 3652 Value *ExtraCase = ConstantCompare.Extra; 3653 3654 // If we didn't have a multiply compared value, fail. 3655 if (!CompVal) 3656 return false; 3657 3658 // Avoid turning single icmps into a switch. 3659 if (UsedICmps <= 1) 3660 return false; 3661 3662 bool TrueWhenEqual = (Cond->getOpcode() == Instruction::Or); 3663 3664 // There might be duplicate constants in the list, which the switch 3665 // instruction can't handle, remove them now. 3666 array_pod_sort(Values.begin(), Values.end(), ConstantIntSortPredicate); 3667 Values.erase(std::unique(Values.begin(), Values.end()), Values.end()); 3668 3669 // If Extra was used, we require at least two switch values to do the 3670 // transformation. A switch with one value is just a conditional branch. 3671 if (ExtraCase && Values.size() < 2) 3672 return false; 3673 3674 // TODO: Preserve branch weight metadata, similarly to how 3675 // FoldValueComparisonIntoPredecessors preserves it. 3676 3677 // Figure out which block is which destination. 3678 BasicBlock *DefaultBB = BI->getSuccessor(1); 3679 BasicBlock *EdgeBB = BI->getSuccessor(0); 3680 if (!TrueWhenEqual) 3681 std::swap(DefaultBB, EdgeBB); 3682 3683 BasicBlock *BB = BI->getParent(); 3684 3685 DEBUG(dbgs() << "Converting 'icmp' chain with " << Values.size() 3686 << " cases into SWITCH. BB is:\n" 3687 << *BB); 3688 3689 // If there are any extra values that couldn't be folded into the switch 3690 // then we evaluate them with an explicit branch first. Split the block 3691 // right before the condbr to handle it. 3692 if (ExtraCase) { 3693 BasicBlock *NewBB = 3694 BB->splitBasicBlock(BI->getIterator(), "switch.early.test"); 3695 // Remove the uncond branch added to the old block. 3696 TerminatorInst *OldTI = BB->getTerminator(); 3697 Builder.SetInsertPoint(OldTI); 3698 3699 if (TrueWhenEqual) 3700 Builder.CreateCondBr(ExtraCase, EdgeBB, NewBB); 3701 else 3702 Builder.CreateCondBr(ExtraCase, NewBB, EdgeBB); 3703 3704 OldTI->eraseFromParent(); 3705 3706 // If there are PHI nodes in EdgeBB, then we need to add a new entry to them 3707 // for the edge we just added. 3708 AddPredecessorToBlock(EdgeBB, BB, NewBB); 3709 3710 DEBUG(dbgs() << " ** 'icmp' chain unhandled condition: " << *ExtraCase 3711 << "\nEXTRABB = " << *BB); 3712 BB = NewBB; 3713 } 3714 3715 Builder.SetInsertPoint(BI); 3716 // Convert pointer to int before we switch. 3717 if (CompVal->getType()->isPointerTy()) { 3718 CompVal = Builder.CreatePtrToInt( 3719 CompVal, DL.getIntPtrType(CompVal->getType()), "magicptr"); 3720 } 3721 3722 // Create the new switch instruction now. 3723 SwitchInst *New = Builder.CreateSwitch(CompVal, DefaultBB, Values.size()); 3724 3725 // Add all of the 'cases' to the switch instruction. 3726 for (unsigned i = 0, e = Values.size(); i != e; ++i) 3727 New->addCase(Values[i], EdgeBB); 3728 3729 // We added edges from PI to the EdgeBB. As such, if there were any 3730 // PHI nodes in EdgeBB, they need entries to be added corresponding to 3731 // the number of edges added. 3732 for (BasicBlock::iterator BBI = EdgeBB->begin(); isa<PHINode>(BBI); ++BBI) { 3733 PHINode *PN = cast<PHINode>(BBI); 3734 Value *InVal = PN->getIncomingValueForBlock(BB); 3735 for (unsigned i = 0, e = Values.size() - 1; i != e; ++i) 3736 PN->addIncoming(InVal, BB); 3737 } 3738 3739 // Erase the old branch instruction. 3740 EraseTerminatorInstAndDCECond(BI); 3741 3742 DEBUG(dbgs() << " ** 'icmp' chain result is:\n" << *BB << '\n'); 3743 return true; 3744 } 3745 3746 bool SimplifyCFGOpt::SimplifyResume(ResumeInst *RI, IRBuilder<> &Builder) { 3747 if (isa<PHINode>(RI->getValue())) 3748 return SimplifyCommonResume(RI); 3749 else if (isa<LandingPadInst>(RI->getParent()->getFirstNonPHI()) && 3750 RI->getValue() == RI->getParent()->getFirstNonPHI()) 3751 // The resume must unwind the exception that caused control to branch here. 3752 return SimplifySingleResume(RI); 3753 3754 return false; 3755 } 3756 3757 // Simplify resume that is shared by several landing pads (phi of landing pad). 3758 bool SimplifyCFGOpt::SimplifyCommonResume(ResumeInst *RI) { 3759 BasicBlock *BB = RI->getParent(); 3760 3761 // Check that there are no other instructions except for debug intrinsics 3762 // between the phi of landing pads (RI->getValue()) and resume instruction. 3763 BasicBlock::iterator I = cast<Instruction>(RI->getValue())->getIterator(), 3764 E = RI->getIterator(); 3765 while (++I != E) 3766 if (!isa<DbgInfoIntrinsic>(I)) 3767 return false; 3768 3769 SmallSetVector<BasicBlock *, 4> TrivialUnwindBlocks; 3770 auto *PhiLPInst = cast<PHINode>(RI->getValue()); 3771 3772 // Check incoming blocks to see if any of them are trivial. 3773 for (unsigned Idx = 0, End = PhiLPInst->getNumIncomingValues(); Idx != End; 3774 Idx++) { 3775 auto *IncomingBB = PhiLPInst->getIncomingBlock(Idx); 3776 auto *IncomingValue = PhiLPInst->getIncomingValue(Idx); 3777 3778 // If the block has other successors, we can not delete it because 3779 // it has other dependents. 3780 if (IncomingBB->getUniqueSuccessor() != BB) 3781 continue; 3782 3783 auto *LandingPad = dyn_cast<LandingPadInst>(IncomingBB->getFirstNonPHI()); 3784 // Not the landing pad that caused the control to branch here. 3785 if (IncomingValue != LandingPad) 3786 continue; 3787 3788 bool isTrivial = true; 3789 3790 I = IncomingBB->getFirstNonPHI()->getIterator(); 3791 E = IncomingBB->getTerminator()->getIterator(); 3792 while (++I != E) 3793 if (!isa<DbgInfoIntrinsic>(I)) { 3794 isTrivial = false; 3795 break; 3796 } 3797 3798 if (isTrivial) 3799 TrivialUnwindBlocks.insert(IncomingBB); 3800 } 3801 3802 // If no trivial unwind blocks, don't do any simplifications. 3803 if (TrivialUnwindBlocks.empty()) 3804 return false; 3805 3806 // Turn all invokes that unwind here into calls. 3807 for (auto *TrivialBB : TrivialUnwindBlocks) { 3808 // Blocks that will be simplified should be removed from the phi node. 3809 // Note there could be multiple edges to the resume block, and we need 3810 // to remove them all. 3811 while (PhiLPInst->getBasicBlockIndex(TrivialBB) != -1) 3812 BB->removePredecessor(TrivialBB, true); 3813 3814 for (pred_iterator PI = pred_begin(TrivialBB), PE = pred_end(TrivialBB); 3815 PI != PE;) { 3816 BasicBlock *Pred = *PI++; 3817 removeUnwindEdge(Pred); 3818 } 3819 3820 // In each SimplifyCFG run, only the current processed block can be erased. 3821 // Otherwise, it will break the iteration of SimplifyCFG pass. So instead 3822 // of erasing TrivialBB, we only remove the branch to the common resume 3823 // block so that we can later erase the resume block since it has no 3824 // predecessors. 3825 TrivialBB->getTerminator()->eraseFromParent(); 3826 new UnreachableInst(RI->getContext(), TrivialBB); 3827 } 3828 3829 // Delete the resume block if all its predecessors have been removed. 3830 if (pred_empty(BB)) 3831 BB->eraseFromParent(); 3832 3833 return !TrivialUnwindBlocks.empty(); 3834 } 3835 3836 // Simplify resume that is only used by a single (non-phi) landing pad. 3837 bool SimplifyCFGOpt::SimplifySingleResume(ResumeInst *RI) { 3838 BasicBlock *BB = RI->getParent(); 3839 LandingPadInst *LPInst = dyn_cast<LandingPadInst>(BB->getFirstNonPHI()); 3840 assert(RI->getValue() == LPInst && 3841 "Resume must unwind the exception that caused control to here"); 3842 3843 // Check that there are no other instructions except for debug intrinsics. 3844 BasicBlock::iterator I = LPInst->getIterator(), E = RI->getIterator(); 3845 while (++I != E) 3846 if (!isa<DbgInfoIntrinsic>(I)) 3847 return false; 3848 3849 // Turn all invokes that unwind here into calls and delete the basic block. 3850 for (pred_iterator PI = pred_begin(BB), PE = pred_end(BB); PI != PE;) { 3851 BasicBlock *Pred = *PI++; 3852 removeUnwindEdge(Pred); 3853 } 3854 3855 // The landingpad is now unreachable. Zap it. 3856 BB->eraseFromParent(); 3857 if (LoopHeaders) 3858 LoopHeaders->erase(BB); 3859 return true; 3860 } 3861 3862 static bool removeEmptyCleanup(CleanupReturnInst *RI) { 3863 // If this is a trivial cleanup pad that executes no instructions, it can be 3864 // eliminated. If the cleanup pad continues to the caller, any predecessor 3865 // that is an EH pad will be updated to continue to the caller and any 3866 // predecessor that terminates with an invoke instruction will have its invoke 3867 // instruction converted to a call instruction. If the cleanup pad being 3868 // simplified does not continue to the caller, each predecessor will be 3869 // updated to continue to the unwind destination of the cleanup pad being 3870 // simplified. 3871 BasicBlock *BB = RI->getParent(); 3872 CleanupPadInst *CPInst = RI->getCleanupPad(); 3873 if (CPInst->getParent() != BB) 3874 // This isn't an empty cleanup. 3875 return false; 3876 3877 // We cannot kill the pad if it has multiple uses. This typically arises 3878 // from unreachable basic blocks. 3879 if (!CPInst->hasOneUse()) 3880 return false; 3881 3882 // Check that there are no other instructions except for benign intrinsics. 3883 BasicBlock::iterator I = CPInst->getIterator(), E = RI->getIterator(); 3884 while (++I != E) { 3885 auto *II = dyn_cast<IntrinsicInst>(I); 3886 if (!II) 3887 return false; 3888 3889 Intrinsic::ID IntrinsicID = II->getIntrinsicID(); 3890 switch (IntrinsicID) { 3891 case Intrinsic::dbg_declare: 3892 case Intrinsic::dbg_value: 3893 case Intrinsic::lifetime_end: 3894 break; 3895 default: 3896 return false; 3897 } 3898 } 3899 3900 // If the cleanup return we are simplifying unwinds to the caller, this will 3901 // set UnwindDest to nullptr. 3902 BasicBlock *UnwindDest = RI->getUnwindDest(); 3903 Instruction *DestEHPad = UnwindDest ? UnwindDest->getFirstNonPHI() : nullptr; 3904 3905 // We're about to remove BB from the control flow. Before we do, sink any 3906 // PHINodes into the unwind destination. Doing this before changing the 3907 // control flow avoids some potentially slow checks, since we can currently 3908 // be certain that UnwindDest and BB have no common predecessors (since they 3909 // are both EH pads). 3910 if (UnwindDest) { 3911 // First, go through the PHI nodes in UnwindDest and update any nodes that 3912 // reference the block we are removing 3913 for (BasicBlock::iterator I = UnwindDest->begin(), 3914 IE = DestEHPad->getIterator(); 3915 I != IE; ++I) { 3916 PHINode *DestPN = cast<PHINode>(I); 3917 3918 int Idx = DestPN->getBasicBlockIndex(BB); 3919 // Since BB unwinds to UnwindDest, it has to be in the PHI node. 3920 assert(Idx != -1); 3921 // This PHI node has an incoming value that corresponds to a control 3922 // path through the cleanup pad we are removing. If the incoming 3923 // value is in the cleanup pad, it must be a PHINode (because we 3924 // verified above that the block is otherwise empty). Otherwise, the 3925 // value is either a constant or a value that dominates the cleanup 3926 // pad being removed. 3927 // 3928 // Because BB and UnwindDest are both EH pads, all of their 3929 // predecessors must unwind to these blocks, and since no instruction 3930 // can have multiple unwind destinations, there will be no overlap in 3931 // incoming blocks between SrcPN and DestPN. 3932 Value *SrcVal = DestPN->getIncomingValue(Idx); 3933 PHINode *SrcPN = dyn_cast<PHINode>(SrcVal); 3934 3935 // Remove the entry for the block we are deleting. 3936 DestPN->removeIncomingValue(Idx, false); 3937 3938 if (SrcPN && SrcPN->getParent() == BB) { 3939 // If the incoming value was a PHI node in the cleanup pad we are 3940 // removing, we need to merge that PHI node's incoming values into 3941 // DestPN. 3942 for (unsigned SrcIdx = 0, SrcE = SrcPN->getNumIncomingValues(); 3943 SrcIdx != SrcE; ++SrcIdx) { 3944 DestPN->addIncoming(SrcPN->getIncomingValue(SrcIdx), 3945 SrcPN->getIncomingBlock(SrcIdx)); 3946 } 3947 } else { 3948 // Otherwise, the incoming value came from above BB and 3949 // so we can just reuse it. We must associate all of BB's 3950 // predecessors with this value. 3951 for (auto *pred : predecessors(BB)) { 3952 DestPN->addIncoming(SrcVal, pred); 3953 } 3954 } 3955 } 3956 3957 // Sink any remaining PHI nodes directly into UnwindDest. 3958 Instruction *InsertPt = DestEHPad; 3959 for (BasicBlock::iterator I = BB->begin(), 3960 IE = BB->getFirstNonPHI()->getIterator(); 3961 I != IE;) { 3962 // The iterator must be incremented here because the instructions are 3963 // being moved to another block. 3964 PHINode *PN = cast<PHINode>(I++); 3965 if (PN->use_empty()) 3966 // If the PHI node has no uses, just leave it. It will be erased 3967 // when we erase BB below. 3968 continue; 3969 3970 // Otherwise, sink this PHI node into UnwindDest. 3971 // Any predecessors to UnwindDest which are not already represented 3972 // must be back edges which inherit the value from the path through 3973 // BB. In this case, the PHI value must reference itself. 3974 for (auto *pred : predecessors(UnwindDest)) 3975 if (pred != BB) 3976 PN->addIncoming(PN, pred); 3977 PN->moveBefore(InsertPt); 3978 } 3979 } 3980 3981 for (pred_iterator PI = pred_begin(BB), PE = pred_end(BB); PI != PE;) { 3982 // The iterator must be updated here because we are removing this pred. 3983 BasicBlock *PredBB = *PI++; 3984 if (UnwindDest == nullptr) { 3985 removeUnwindEdge(PredBB); 3986 } else { 3987 TerminatorInst *TI = PredBB->getTerminator(); 3988 TI->replaceUsesOfWith(BB, UnwindDest); 3989 } 3990 } 3991 3992 // The cleanup pad is now unreachable. Zap it. 3993 BB->eraseFromParent(); 3994 return true; 3995 } 3996 3997 // Try to merge two cleanuppads together. 3998 static bool mergeCleanupPad(CleanupReturnInst *RI) { 3999 // Skip any cleanuprets which unwind to caller, there is nothing to merge 4000 // with. 4001 BasicBlock *UnwindDest = RI->getUnwindDest(); 4002 if (!UnwindDest) 4003 return false; 4004 4005 // This cleanupret isn't the only predecessor of this cleanuppad, it wouldn't 4006 // be safe to merge without code duplication. 4007 if (UnwindDest->getSinglePredecessor() != RI->getParent()) 4008 return false; 4009 4010 // Verify that our cleanuppad's unwind destination is another cleanuppad. 4011 auto *SuccessorCleanupPad = dyn_cast<CleanupPadInst>(&UnwindDest->front()); 4012 if (!SuccessorCleanupPad) 4013 return false; 4014 4015 CleanupPadInst *PredecessorCleanupPad = RI->getCleanupPad(); 4016 // Replace any uses of the successor cleanupad with the predecessor pad 4017 // The only cleanuppad uses should be this cleanupret, it's cleanupret and 4018 // funclet bundle operands. 4019 SuccessorCleanupPad->replaceAllUsesWith(PredecessorCleanupPad); 4020 // Remove the old cleanuppad. 4021 SuccessorCleanupPad->eraseFromParent(); 4022 // Now, we simply replace the cleanupret with a branch to the unwind 4023 // destination. 4024 BranchInst::Create(UnwindDest, RI->getParent()); 4025 RI->eraseFromParent(); 4026 4027 return true; 4028 } 4029 4030 bool SimplifyCFGOpt::SimplifyCleanupReturn(CleanupReturnInst *RI) { 4031 // It is possible to transiantly have an undef cleanuppad operand because we 4032 // have deleted some, but not all, dead blocks. 4033 // Eventually, this block will be deleted. 4034 if (isa<UndefValue>(RI->getOperand(0))) 4035 return false; 4036 4037 if (mergeCleanupPad(RI)) 4038 return true; 4039 4040 if (removeEmptyCleanup(RI)) 4041 return true; 4042 4043 return false; 4044 } 4045 4046 bool SimplifyCFGOpt::SimplifyReturn(ReturnInst *RI, IRBuilder<> &Builder) { 4047 BasicBlock *BB = RI->getParent(); 4048 if (!BB->getFirstNonPHIOrDbg()->isTerminator()) 4049 return false; 4050 4051 // Find predecessors that end with branches. 4052 SmallVector<BasicBlock *, 8> UncondBranchPreds; 4053 SmallVector<BranchInst *, 8> CondBranchPreds; 4054 for (pred_iterator PI = pred_begin(BB), E = pred_end(BB); PI != E; ++PI) { 4055 BasicBlock *P = *PI; 4056 TerminatorInst *PTI = P->getTerminator(); 4057 if (BranchInst *BI = dyn_cast<BranchInst>(PTI)) { 4058 if (BI->isUnconditional()) 4059 UncondBranchPreds.push_back(P); 4060 else 4061 CondBranchPreds.push_back(BI); 4062 } 4063 } 4064 4065 // If we found some, do the transformation! 4066 if (!UncondBranchPreds.empty() && DupRet) { 4067 while (!UncondBranchPreds.empty()) { 4068 BasicBlock *Pred = UncondBranchPreds.pop_back_val(); 4069 DEBUG(dbgs() << "FOLDING: " << *BB 4070 << "INTO UNCOND BRANCH PRED: " << *Pred); 4071 (void)FoldReturnIntoUncondBranch(RI, BB, Pred); 4072 } 4073 4074 // If we eliminated all predecessors of the block, delete the block now. 4075 if (pred_empty(BB)) { 4076 // We know there are no successors, so just nuke the block. 4077 BB->eraseFromParent(); 4078 if (LoopHeaders) 4079 LoopHeaders->erase(BB); 4080 } 4081 4082 return true; 4083 } 4084 4085 // Check out all of the conditional branches going to this return 4086 // instruction. If any of them just select between returns, change the 4087 // branch itself into a select/return pair. 4088 while (!CondBranchPreds.empty()) { 4089 BranchInst *BI = CondBranchPreds.pop_back_val(); 4090 4091 // Check to see if the non-BB successor is also a return block. 4092 if (isa<ReturnInst>(BI->getSuccessor(0)->getTerminator()) && 4093 isa<ReturnInst>(BI->getSuccessor(1)->getTerminator()) && 4094 SimplifyCondBranchToTwoReturns(BI, Builder)) 4095 return true; 4096 } 4097 return false; 4098 } 4099 4100 bool SimplifyCFGOpt::SimplifyUnreachable(UnreachableInst *UI) { 4101 BasicBlock *BB = UI->getParent(); 4102 4103 bool Changed = false; 4104 4105 // If there are any instructions immediately before the unreachable that can 4106 // be removed, do so. 4107 while (UI->getIterator() != BB->begin()) { 4108 BasicBlock::iterator BBI = UI->getIterator(); 4109 --BBI; 4110 // Do not delete instructions that can have side effects which might cause 4111 // the unreachable to not be reachable; specifically, calls and volatile 4112 // operations may have this effect. 4113 if (isa<CallInst>(BBI) && !isa<DbgInfoIntrinsic>(BBI)) 4114 break; 4115 4116 if (BBI->mayHaveSideEffects()) { 4117 if (auto *SI = dyn_cast<StoreInst>(BBI)) { 4118 if (SI->isVolatile()) 4119 break; 4120 } else if (auto *LI = dyn_cast<LoadInst>(BBI)) { 4121 if (LI->isVolatile()) 4122 break; 4123 } else if (auto *RMWI = dyn_cast<AtomicRMWInst>(BBI)) { 4124 if (RMWI->isVolatile()) 4125 break; 4126 } else if (auto *CXI = dyn_cast<AtomicCmpXchgInst>(BBI)) { 4127 if (CXI->isVolatile()) 4128 break; 4129 } else if (isa<CatchPadInst>(BBI)) { 4130 // A catchpad may invoke exception object constructors and such, which 4131 // in some languages can be arbitrary code, so be conservative by 4132 // default. 4133 // For CoreCLR, it just involves a type test, so can be removed. 4134 if (classifyEHPersonality(BB->getParent()->getPersonalityFn()) != 4135 EHPersonality::CoreCLR) 4136 break; 4137 } else if (!isa<FenceInst>(BBI) && !isa<VAArgInst>(BBI) && 4138 !isa<LandingPadInst>(BBI)) { 4139 break; 4140 } 4141 // Note that deleting LandingPad's here is in fact okay, although it 4142 // involves a bit of subtle reasoning. If this inst is a LandingPad, 4143 // all the predecessors of this block will be the unwind edges of Invokes, 4144 // and we can therefore guarantee this block will be erased. 4145 } 4146 4147 // Delete this instruction (any uses are guaranteed to be dead) 4148 if (!BBI->use_empty()) 4149 BBI->replaceAllUsesWith(UndefValue::get(BBI->getType())); 4150 BBI->eraseFromParent(); 4151 Changed = true; 4152 } 4153 4154 // If the unreachable instruction is the first in the block, take a gander 4155 // at all of the predecessors of this instruction, and simplify them. 4156 if (&BB->front() != UI) 4157 return Changed; 4158 4159 SmallVector<BasicBlock *, 8> Preds(pred_begin(BB), pred_end(BB)); 4160 for (unsigned i = 0, e = Preds.size(); i != e; ++i) { 4161 TerminatorInst *TI = Preds[i]->getTerminator(); 4162 IRBuilder<> Builder(TI); 4163 if (auto *BI = dyn_cast<BranchInst>(TI)) { 4164 if (BI->isUnconditional()) { 4165 if (BI->getSuccessor(0) == BB) { 4166 new UnreachableInst(TI->getContext(), TI); 4167 TI->eraseFromParent(); 4168 Changed = true; 4169 } 4170 } else { 4171 if (BI->getSuccessor(0) == BB) { 4172 Builder.CreateBr(BI->getSuccessor(1)); 4173 EraseTerminatorInstAndDCECond(BI); 4174 } else if (BI->getSuccessor(1) == BB) { 4175 Builder.CreateBr(BI->getSuccessor(0)); 4176 EraseTerminatorInstAndDCECond(BI); 4177 Changed = true; 4178 } 4179 } 4180 } else if (auto *SI = dyn_cast<SwitchInst>(TI)) { 4181 for (auto i = SI->case_begin(), e = SI->case_end(); i != e;) { 4182 if (i->getCaseSuccessor() != BB) { 4183 ++i; 4184 continue; 4185 } 4186 BB->removePredecessor(SI->getParent()); 4187 i = SI->removeCase(i); 4188 e = SI->case_end(); 4189 Changed = true; 4190 } 4191 } else if (auto *II = dyn_cast<InvokeInst>(TI)) { 4192 if (II->getUnwindDest() == BB) { 4193 removeUnwindEdge(TI->getParent()); 4194 Changed = true; 4195 } 4196 } else if (auto *CSI = dyn_cast<CatchSwitchInst>(TI)) { 4197 if (CSI->getUnwindDest() == BB) { 4198 removeUnwindEdge(TI->getParent()); 4199 Changed = true; 4200 continue; 4201 } 4202 4203 for (CatchSwitchInst::handler_iterator I = CSI->handler_begin(), 4204 E = CSI->handler_end(); 4205 I != E; ++I) { 4206 if (*I == BB) { 4207 CSI->removeHandler(I); 4208 --I; 4209 --E; 4210 Changed = true; 4211 } 4212 } 4213 if (CSI->getNumHandlers() == 0) { 4214 BasicBlock *CatchSwitchBB = CSI->getParent(); 4215 if (CSI->hasUnwindDest()) { 4216 // Redirect preds to the unwind dest 4217 CatchSwitchBB->replaceAllUsesWith(CSI->getUnwindDest()); 4218 } else { 4219 // Rewrite all preds to unwind to caller (or from invoke to call). 4220 SmallVector<BasicBlock *, 8> EHPreds(predecessors(CatchSwitchBB)); 4221 for (BasicBlock *EHPred : EHPreds) 4222 removeUnwindEdge(EHPred); 4223 } 4224 // The catchswitch is no longer reachable. 4225 new UnreachableInst(CSI->getContext(), CSI); 4226 CSI->eraseFromParent(); 4227 Changed = true; 4228 } 4229 } else if (isa<CleanupReturnInst>(TI)) { 4230 new UnreachableInst(TI->getContext(), TI); 4231 TI->eraseFromParent(); 4232 Changed = true; 4233 } 4234 } 4235 4236 // If this block is now dead, remove it. 4237 if (pred_empty(BB) && BB != &BB->getParent()->getEntryBlock()) { 4238 // We know there are no successors, so just nuke the block. 4239 BB->eraseFromParent(); 4240 if (LoopHeaders) 4241 LoopHeaders->erase(BB); 4242 return true; 4243 } 4244 4245 return Changed; 4246 } 4247 4248 static bool CasesAreContiguous(SmallVectorImpl<ConstantInt *> &Cases) { 4249 assert(Cases.size() >= 1); 4250 4251 array_pod_sort(Cases.begin(), Cases.end(), ConstantIntSortPredicate); 4252 for (size_t I = 1, E = Cases.size(); I != E; ++I) { 4253 if (Cases[I - 1]->getValue() != Cases[I]->getValue() + 1) 4254 return false; 4255 } 4256 return true; 4257 } 4258 4259 /// Turn a switch with two reachable destinations into an integer range 4260 /// comparison and branch. 4261 static bool TurnSwitchRangeIntoICmp(SwitchInst *SI, IRBuilder<> &Builder) { 4262 assert(SI->getNumCases() > 1 && "Degenerate switch?"); 4263 4264 bool HasDefault = 4265 !isa<UnreachableInst>(SI->getDefaultDest()->getFirstNonPHIOrDbg()); 4266 4267 // Partition the cases into two sets with different destinations. 4268 BasicBlock *DestA = HasDefault ? SI->getDefaultDest() : nullptr; 4269 BasicBlock *DestB = nullptr; 4270 SmallVector<ConstantInt *, 16> CasesA; 4271 SmallVector<ConstantInt *, 16> CasesB; 4272 4273 for (auto Case : SI->cases()) { 4274 BasicBlock *Dest = Case.getCaseSuccessor(); 4275 if (!DestA) 4276 DestA = Dest; 4277 if (Dest == DestA) { 4278 CasesA.push_back(Case.getCaseValue()); 4279 continue; 4280 } 4281 if (!DestB) 4282 DestB = Dest; 4283 if (Dest == DestB) { 4284 CasesB.push_back(Case.getCaseValue()); 4285 continue; 4286 } 4287 return false; // More than two destinations. 4288 } 4289 4290 assert(DestA && DestB && 4291 "Single-destination switch should have been folded."); 4292 assert(DestA != DestB); 4293 assert(DestB != SI->getDefaultDest()); 4294 assert(!CasesB.empty() && "There must be non-default cases."); 4295 assert(!CasesA.empty() || HasDefault); 4296 4297 // Figure out if one of the sets of cases form a contiguous range. 4298 SmallVectorImpl<ConstantInt *> *ContiguousCases = nullptr; 4299 BasicBlock *ContiguousDest = nullptr; 4300 BasicBlock *OtherDest = nullptr; 4301 if (!CasesA.empty() && CasesAreContiguous(CasesA)) { 4302 ContiguousCases = &CasesA; 4303 ContiguousDest = DestA; 4304 OtherDest = DestB; 4305 } else if (CasesAreContiguous(CasesB)) { 4306 ContiguousCases = &CasesB; 4307 ContiguousDest = DestB; 4308 OtherDest = DestA; 4309 } else 4310 return false; 4311 4312 // Start building the compare and branch. 4313 4314 Constant *Offset = ConstantExpr::getNeg(ContiguousCases->back()); 4315 Constant *NumCases = 4316 ConstantInt::get(Offset->getType(), ContiguousCases->size()); 4317 4318 Value *Sub = SI->getCondition(); 4319 if (!Offset->isNullValue()) 4320 Sub = Builder.CreateAdd(Sub, Offset, Sub->getName() + ".off"); 4321 4322 Value *Cmp; 4323 // If NumCases overflowed, then all possible values jump to the successor. 4324 if (NumCases->isNullValue() && !ContiguousCases->empty()) 4325 Cmp = ConstantInt::getTrue(SI->getContext()); 4326 else 4327 Cmp = Builder.CreateICmpULT(Sub, NumCases, "switch"); 4328 BranchInst *NewBI = Builder.CreateCondBr(Cmp, ContiguousDest, OtherDest); 4329 4330 // Update weight for the newly-created conditional branch. 4331 if (HasBranchWeights(SI)) { 4332 SmallVector<uint64_t, 8> Weights; 4333 GetBranchWeights(SI, Weights); 4334 if (Weights.size() == 1 + SI->getNumCases()) { 4335 uint64_t TrueWeight = 0; 4336 uint64_t FalseWeight = 0; 4337 for (size_t I = 0, E = Weights.size(); I != E; ++I) { 4338 if (SI->getSuccessor(I) == ContiguousDest) 4339 TrueWeight += Weights[I]; 4340 else 4341 FalseWeight += Weights[I]; 4342 } 4343 while (TrueWeight > UINT32_MAX || FalseWeight > UINT32_MAX) { 4344 TrueWeight /= 2; 4345 FalseWeight /= 2; 4346 } 4347 setBranchWeights(NewBI, TrueWeight, FalseWeight); 4348 } 4349 } 4350 4351 // Prune obsolete incoming values off the successors' PHI nodes. 4352 for (auto BBI = ContiguousDest->begin(); isa<PHINode>(BBI); ++BBI) { 4353 unsigned PreviousEdges = ContiguousCases->size(); 4354 if (ContiguousDest == SI->getDefaultDest()) 4355 ++PreviousEdges; 4356 for (unsigned I = 0, E = PreviousEdges - 1; I != E; ++I) 4357 cast<PHINode>(BBI)->removeIncomingValue(SI->getParent()); 4358 } 4359 for (auto BBI = OtherDest->begin(); isa<PHINode>(BBI); ++BBI) { 4360 unsigned PreviousEdges = SI->getNumCases() - ContiguousCases->size(); 4361 if (OtherDest == SI->getDefaultDest()) 4362 ++PreviousEdges; 4363 for (unsigned I = 0, E = PreviousEdges - 1; I != E; ++I) 4364 cast<PHINode>(BBI)->removeIncomingValue(SI->getParent()); 4365 } 4366 4367 // Drop the switch. 4368 SI->eraseFromParent(); 4369 4370 return true; 4371 } 4372 4373 /// Compute masked bits for the condition of a switch 4374 /// and use it to remove dead cases. 4375 static bool eliminateDeadSwitchCases(SwitchInst *SI, AssumptionCache *AC, 4376 const DataLayout &DL) { 4377 Value *Cond = SI->getCondition(); 4378 unsigned Bits = Cond->getType()->getIntegerBitWidth(); 4379 KnownBits Known = computeKnownBits(Cond, DL, 0, AC, SI); 4380 4381 // We can also eliminate cases by determining that their values are outside of 4382 // the limited range of the condition based on how many significant (non-sign) 4383 // bits are in the condition value. 4384 unsigned ExtraSignBits = ComputeNumSignBits(Cond, DL, 0, AC, SI) - 1; 4385 unsigned MaxSignificantBitsInCond = Bits - ExtraSignBits; 4386 4387 // Gather dead cases. 4388 SmallVector<ConstantInt *, 8> DeadCases; 4389 for (auto &Case : SI->cases()) { 4390 const APInt &CaseVal = Case.getCaseValue()->getValue(); 4391 if (Known.Zero.intersects(CaseVal) || !Known.One.isSubsetOf(CaseVal) || 4392 (CaseVal.getMinSignedBits() > MaxSignificantBitsInCond)) { 4393 DeadCases.push_back(Case.getCaseValue()); 4394 DEBUG(dbgs() << "SimplifyCFG: switch case " << CaseVal << " is dead.\n"); 4395 } 4396 } 4397 4398 // If we can prove that the cases must cover all possible values, the 4399 // default destination becomes dead and we can remove it. If we know some 4400 // of the bits in the value, we can use that to more precisely compute the 4401 // number of possible unique case values. 4402 bool HasDefault = 4403 !isa<UnreachableInst>(SI->getDefaultDest()->getFirstNonPHIOrDbg()); 4404 const unsigned NumUnknownBits = 4405 Bits - (Known.Zero | Known.One).countPopulation(); 4406 assert(NumUnknownBits <= Bits); 4407 if (HasDefault && DeadCases.empty() && 4408 NumUnknownBits < 64 /* avoid overflow */ && 4409 SI->getNumCases() == (1ULL << NumUnknownBits)) { 4410 DEBUG(dbgs() << "SimplifyCFG: switch default is dead.\n"); 4411 BasicBlock *NewDefault = 4412 SplitBlockPredecessors(SI->getDefaultDest(), SI->getParent(), ""); 4413 SI->setDefaultDest(&*NewDefault); 4414 SplitBlock(&*NewDefault, &NewDefault->front()); 4415 auto *OldTI = NewDefault->getTerminator(); 4416 new UnreachableInst(SI->getContext(), OldTI); 4417 EraseTerminatorInstAndDCECond(OldTI); 4418 return true; 4419 } 4420 4421 SmallVector<uint64_t, 8> Weights; 4422 bool HasWeight = HasBranchWeights(SI); 4423 if (HasWeight) { 4424 GetBranchWeights(SI, Weights); 4425 HasWeight = (Weights.size() == 1 + SI->getNumCases()); 4426 } 4427 4428 // Remove dead cases from the switch. 4429 for (ConstantInt *DeadCase : DeadCases) { 4430 SwitchInst::CaseIt CaseI = SI->findCaseValue(DeadCase); 4431 assert(CaseI != SI->case_default() && 4432 "Case was not found. Probably mistake in DeadCases forming."); 4433 if (HasWeight) { 4434 std::swap(Weights[CaseI->getCaseIndex() + 1], Weights.back()); 4435 Weights.pop_back(); 4436 } 4437 4438 // Prune unused values from PHI nodes. 4439 CaseI->getCaseSuccessor()->removePredecessor(SI->getParent()); 4440 SI->removeCase(CaseI); 4441 } 4442 if (HasWeight && Weights.size() >= 2) { 4443 SmallVector<uint32_t, 8> MDWeights(Weights.begin(), Weights.end()); 4444 setBranchWeights(SI, MDWeights); 4445 } 4446 4447 return !DeadCases.empty(); 4448 } 4449 4450 /// If BB would be eligible for simplification by 4451 /// TryToSimplifyUncondBranchFromEmptyBlock (i.e. it is empty and terminated 4452 /// by an unconditional branch), look at the phi node for BB in the successor 4453 /// block and see if the incoming value is equal to CaseValue. If so, return 4454 /// the phi node, and set PhiIndex to BB's index in the phi node. 4455 static PHINode *FindPHIForConditionForwarding(ConstantInt *CaseValue, 4456 BasicBlock *BB, int *PhiIndex) { 4457 if (BB->getFirstNonPHIOrDbg() != BB->getTerminator()) 4458 return nullptr; // BB must be empty to be a candidate for simplification. 4459 if (!BB->getSinglePredecessor()) 4460 return nullptr; // BB must be dominated by the switch. 4461 4462 BranchInst *Branch = dyn_cast<BranchInst>(BB->getTerminator()); 4463 if (!Branch || !Branch->isUnconditional()) 4464 return nullptr; // Terminator must be unconditional branch. 4465 4466 BasicBlock *Succ = Branch->getSuccessor(0); 4467 4468 for (PHINode &PHI : Succ->phis()) { 4469 int Idx = PHI.getBasicBlockIndex(BB); 4470 assert(Idx >= 0 && "PHI has no entry for predecessor?"); 4471 4472 Value *InValue = PHI.getIncomingValue(Idx); 4473 if (InValue != CaseValue) 4474 continue; 4475 4476 *PhiIndex = Idx; 4477 return &PHI; 4478 } 4479 4480 return nullptr; 4481 } 4482 4483 /// Try to forward the condition of a switch instruction to a phi node 4484 /// dominated by the switch, if that would mean that some of the destination 4485 /// blocks of the switch can be folded away. Return true if a change is made. 4486 static bool ForwardSwitchConditionToPHI(SwitchInst *SI) { 4487 using ForwardingNodesMap = DenseMap<PHINode *, SmallVector<int, 4>>; 4488 4489 ForwardingNodesMap ForwardingNodes; 4490 BasicBlock *SwitchBlock = SI->getParent(); 4491 bool Changed = false; 4492 for (auto &Case : SI->cases()) { 4493 ConstantInt *CaseValue = Case.getCaseValue(); 4494 BasicBlock *CaseDest = Case.getCaseSuccessor(); 4495 4496 // Replace phi operands in successor blocks that are using the constant case 4497 // value rather than the switch condition variable: 4498 // switchbb: 4499 // switch i32 %x, label %default [ 4500 // i32 17, label %succ 4501 // ... 4502 // succ: 4503 // %r = phi i32 ... [ 17, %switchbb ] ... 4504 // --> 4505 // %r = phi i32 ... [ %x, %switchbb ] ... 4506 4507 for (PHINode &Phi : CaseDest->phis()) { 4508 // This only works if there is exactly 1 incoming edge from the switch to 4509 // a phi. If there is >1, that means multiple cases of the switch map to 1 4510 // value in the phi, and that phi value is not the switch condition. Thus, 4511 // this transform would not make sense (the phi would be invalid because 4512 // a phi can't have different incoming values from the same block). 4513 int SwitchBBIdx = Phi.getBasicBlockIndex(SwitchBlock); 4514 if (Phi.getIncomingValue(SwitchBBIdx) == CaseValue && 4515 count(Phi.blocks(), SwitchBlock) == 1) { 4516 Phi.setIncomingValue(SwitchBBIdx, SI->getCondition()); 4517 Changed = true; 4518 } 4519 } 4520 4521 // Collect phi nodes that are indirectly using this switch's case constants. 4522 int PhiIdx; 4523 if (auto *Phi = FindPHIForConditionForwarding(CaseValue, CaseDest, &PhiIdx)) 4524 ForwardingNodes[Phi].push_back(PhiIdx); 4525 } 4526 4527 for (auto &ForwardingNode : ForwardingNodes) { 4528 PHINode *Phi = ForwardingNode.first; 4529 SmallVectorImpl<int> &Indexes = ForwardingNode.second; 4530 if (Indexes.size() < 2) 4531 continue; 4532 4533 for (int Index : Indexes) 4534 Phi->setIncomingValue(Index, SI->getCondition()); 4535 Changed = true; 4536 } 4537 4538 return Changed; 4539 } 4540 4541 /// Return true if the backend will be able to handle 4542 /// initializing an array of constants like C. 4543 static bool ValidLookupTableConstant(Constant *C, const TargetTransformInfo &TTI) { 4544 if (C->isThreadDependent()) 4545 return false; 4546 if (C->isDLLImportDependent()) 4547 return false; 4548 4549 if (!isa<ConstantFP>(C) && !isa<ConstantInt>(C) && 4550 !isa<ConstantPointerNull>(C) && !isa<GlobalValue>(C) && 4551 !isa<UndefValue>(C) && !isa<ConstantExpr>(C)) 4552 return false; 4553 4554 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(C)) { 4555 if (!CE->isGEPWithNoNotionalOverIndexing()) 4556 return false; 4557 if (!ValidLookupTableConstant(CE->getOperand(0), TTI)) 4558 return false; 4559 } 4560 4561 if (!TTI.shouldBuildLookupTablesForConstant(C)) 4562 return false; 4563 4564 return true; 4565 } 4566 4567 /// If V is a Constant, return it. Otherwise, try to look up 4568 /// its constant value in ConstantPool, returning 0 if it's not there. 4569 static Constant * 4570 LookupConstant(Value *V, 4571 const SmallDenseMap<Value *, Constant *> &ConstantPool) { 4572 if (Constant *C = dyn_cast<Constant>(V)) 4573 return C; 4574 return ConstantPool.lookup(V); 4575 } 4576 4577 /// Try to fold instruction I into a constant. This works for 4578 /// simple instructions such as binary operations where both operands are 4579 /// constant or can be replaced by constants from the ConstantPool. Returns the 4580 /// resulting constant on success, 0 otherwise. 4581 static Constant * 4582 ConstantFold(Instruction *I, const DataLayout &DL, 4583 const SmallDenseMap<Value *, Constant *> &ConstantPool) { 4584 if (SelectInst *Select = dyn_cast<SelectInst>(I)) { 4585 Constant *A = LookupConstant(Select->getCondition(), ConstantPool); 4586 if (!A) 4587 return nullptr; 4588 if (A->isAllOnesValue()) 4589 return LookupConstant(Select->getTrueValue(), ConstantPool); 4590 if (A->isNullValue()) 4591 return LookupConstant(Select->getFalseValue(), ConstantPool); 4592 return nullptr; 4593 } 4594 4595 SmallVector<Constant *, 4> COps; 4596 for (unsigned N = 0, E = I->getNumOperands(); N != E; ++N) { 4597 if (Constant *A = LookupConstant(I->getOperand(N), ConstantPool)) 4598 COps.push_back(A); 4599 else 4600 return nullptr; 4601 } 4602 4603 if (CmpInst *Cmp = dyn_cast<CmpInst>(I)) { 4604 return ConstantFoldCompareInstOperands(Cmp->getPredicate(), COps[0], 4605 COps[1], DL); 4606 } 4607 4608 return ConstantFoldInstOperands(I, COps, DL); 4609 } 4610 4611 /// Try to determine the resulting constant values in phi nodes 4612 /// at the common destination basic block, *CommonDest, for one of the case 4613 /// destionations CaseDest corresponding to value CaseVal (0 for the default 4614 /// case), of a switch instruction SI. 4615 static bool 4616 GetCaseResults(SwitchInst *SI, ConstantInt *CaseVal, BasicBlock *CaseDest, 4617 BasicBlock **CommonDest, 4618 SmallVectorImpl<std::pair<PHINode *, Constant *>> &Res, 4619 const DataLayout &DL, const TargetTransformInfo &TTI) { 4620 // The block from which we enter the common destination. 4621 BasicBlock *Pred = SI->getParent(); 4622 4623 // If CaseDest is empty except for some side-effect free instructions through 4624 // which we can constant-propagate the CaseVal, continue to its successor. 4625 SmallDenseMap<Value *, Constant *> ConstantPool; 4626 ConstantPool.insert(std::make_pair(SI->getCondition(), CaseVal)); 4627 for (BasicBlock::iterator I = CaseDest->begin(), E = CaseDest->end(); I != E; 4628 ++I) { 4629 if (TerminatorInst *T = dyn_cast<TerminatorInst>(I)) { 4630 // If the terminator is a simple branch, continue to the next block. 4631 if (T->getNumSuccessors() != 1 || T->isExceptional()) 4632 return false; 4633 Pred = CaseDest; 4634 CaseDest = T->getSuccessor(0); 4635 } else if (isa<DbgInfoIntrinsic>(I)) { 4636 // Skip debug intrinsic. 4637 continue; 4638 } else if (Constant *C = ConstantFold(&*I, DL, ConstantPool)) { 4639 // Instruction is side-effect free and constant. 4640 4641 // If the instruction has uses outside this block or a phi node slot for 4642 // the block, it is not safe to bypass the instruction since it would then 4643 // no longer dominate all its uses. 4644 for (auto &Use : I->uses()) { 4645 User *User = Use.getUser(); 4646 if (Instruction *I = dyn_cast<Instruction>(User)) 4647 if (I->getParent() == CaseDest) 4648 continue; 4649 if (PHINode *Phi = dyn_cast<PHINode>(User)) 4650 if (Phi->getIncomingBlock(Use) == CaseDest) 4651 continue; 4652 return false; 4653 } 4654 4655 ConstantPool.insert(std::make_pair(&*I, C)); 4656 } else { 4657 break; 4658 } 4659 } 4660 4661 // If we did not have a CommonDest before, use the current one. 4662 if (!*CommonDest) 4663 *CommonDest = CaseDest; 4664 // If the destination isn't the common one, abort. 4665 if (CaseDest != *CommonDest) 4666 return false; 4667 4668 // Get the values for this case from phi nodes in the destination block. 4669 for (PHINode &PHI : (*CommonDest)->phis()) { 4670 int Idx = PHI.getBasicBlockIndex(Pred); 4671 if (Idx == -1) 4672 continue; 4673 4674 Constant *ConstVal = 4675 LookupConstant(PHI.getIncomingValue(Idx), ConstantPool); 4676 if (!ConstVal) 4677 return false; 4678 4679 // Be conservative about which kinds of constants we support. 4680 if (!ValidLookupTableConstant(ConstVal, TTI)) 4681 return false; 4682 4683 Res.push_back(std::make_pair(&PHI, ConstVal)); 4684 } 4685 4686 return Res.size() > 0; 4687 } 4688 4689 // Helper function used to add CaseVal to the list of cases that generate 4690 // Result. Returns the updated number of cases that generate this result. 4691 static uintptr_t MapCaseToResult(ConstantInt *CaseVal, 4692 SwitchCaseResultVectorTy &UniqueResults, 4693 Constant *Result) { 4694 for (auto &I : UniqueResults) { 4695 if (I.first == Result) { 4696 I.second.push_back(CaseVal); 4697 return I.second.size(); 4698 } 4699 } 4700 UniqueResults.push_back( 4701 std::make_pair(Result, SmallVector<ConstantInt *, 4>(1, CaseVal))); 4702 return 1; 4703 } 4704 4705 // Helper function that initializes a map containing 4706 // results for the PHI node of the common destination block for a switch 4707 // instruction. Returns false if multiple PHI nodes have been found or if 4708 // there is not a common destination block for the switch. 4709 static bool 4710 InitializeUniqueCases(SwitchInst *SI, PHINode *&PHI, BasicBlock *&CommonDest, 4711 SwitchCaseResultVectorTy &UniqueResults, 4712 Constant *&DefaultResult, const DataLayout &DL, 4713 const TargetTransformInfo &TTI, 4714 uintptr_t MaxUniqueResults, uintptr_t MaxCasesPerResult) { 4715 for (auto &I : SI->cases()) { 4716 ConstantInt *CaseVal = I.getCaseValue(); 4717 4718 // Resulting value at phi nodes for this case value. 4719 SwitchCaseResultsTy Results; 4720 if (!GetCaseResults(SI, CaseVal, I.getCaseSuccessor(), &CommonDest, Results, 4721 DL, TTI)) 4722 return false; 4723 4724 // Only one value per case is permitted. 4725 if (Results.size() > 1) 4726 return false; 4727 4728 // Add the case->result mapping to UniqueResults. 4729 const uintptr_t NumCasesForResult = 4730 MapCaseToResult(CaseVal, UniqueResults, Results.begin()->second); 4731 4732 // Early out if there are too many cases for this result. 4733 if (NumCasesForResult > MaxCasesPerResult) 4734 return false; 4735 4736 // Early out if there are too many unique results. 4737 if (UniqueResults.size() > MaxUniqueResults) 4738 return false; 4739 4740 // Check the PHI consistency. 4741 if (!PHI) 4742 PHI = Results[0].first; 4743 else if (PHI != Results[0].first) 4744 return false; 4745 } 4746 // Find the default result value. 4747 SmallVector<std::pair<PHINode *, Constant *>, 1> DefaultResults; 4748 BasicBlock *DefaultDest = SI->getDefaultDest(); 4749 GetCaseResults(SI, nullptr, SI->getDefaultDest(), &CommonDest, DefaultResults, 4750 DL, TTI); 4751 // If the default value is not found abort unless the default destination 4752 // is unreachable. 4753 DefaultResult = 4754 DefaultResults.size() == 1 ? DefaultResults.begin()->second : nullptr; 4755 if ((!DefaultResult && 4756 !isa<UnreachableInst>(DefaultDest->getFirstNonPHIOrDbg()))) 4757 return false; 4758 4759 return true; 4760 } 4761 4762 // Helper function that checks if it is possible to transform a switch with only 4763 // two cases (or two cases + default) that produces a result into a select. 4764 // Example: 4765 // switch (a) { 4766 // case 10: %0 = icmp eq i32 %a, 10 4767 // return 10; %1 = select i1 %0, i32 10, i32 4 4768 // case 20: ----> %2 = icmp eq i32 %a, 20 4769 // return 2; %3 = select i1 %2, i32 2, i32 %1 4770 // default: 4771 // return 4; 4772 // } 4773 static Value *ConvertTwoCaseSwitch(const SwitchCaseResultVectorTy &ResultVector, 4774 Constant *DefaultResult, Value *Condition, 4775 IRBuilder<> &Builder) { 4776 assert(ResultVector.size() == 2 && 4777 "We should have exactly two unique results at this point"); 4778 // If we are selecting between only two cases transform into a simple 4779 // select or a two-way select if default is possible. 4780 if (ResultVector[0].second.size() == 1 && 4781 ResultVector[1].second.size() == 1) { 4782 ConstantInt *const FirstCase = ResultVector[0].second[0]; 4783 ConstantInt *const SecondCase = ResultVector[1].second[0]; 4784 4785 bool DefaultCanTrigger = DefaultResult; 4786 Value *SelectValue = ResultVector[1].first; 4787 if (DefaultCanTrigger) { 4788 Value *const ValueCompare = 4789 Builder.CreateICmpEQ(Condition, SecondCase, "switch.selectcmp"); 4790 SelectValue = Builder.CreateSelect(ValueCompare, ResultVector[1].first, 4791 DefaultResult, "switch.select"); 4792 } 4793 Value *const ValueCompare = 4794 Builder.CreateICmpEQ(Condition, FirstCase, "switch.selectcmp"); 4795 return Builder.CreateSelect(ValueCompare, ResultVector[0].first, 4796 SelectValue, "switch.select"); 4797 } 4798 4799 return nullptr; 4800 } 4801 4802 // Helper function to cleanup a switch instruction that has been converted into 4803 // a select, fixing up PHI nodes and basic blocks. 4804 static void RemoveSwitchAfterSelectConversion(SwitchInst *SI, PHINode *PHI, 4805 Value *SelectValue, 4806 IRBuilder<> &Builder) { 4807 BasicBlock *SelectBB = SI->getParent(); 4808 while (PHI->getBasicBlockIndex(SelectBB) >= 0) 4809 PHI->removeIncomingValue(SelectBB); 4810 PHI->addIncoming(SelectValue, SelectBB); 4811 4812 Builder.CreateBr(PHI->getParent()); 4813 4814 // Remove the switch. 4815 for (unsigned i = 0, e = SI->getNumSuccessors(); i < e; ++i) { 4816 BasicBlock *Succ = SI->getSuccessor(i); 4817 4818 if (Succ == PHI->getParent()) 4819 continue; 4820 Succ->removePredecessor(SelectBB); 4821 } 4822 SI->eraseFromParent(); 4823 } 4824 4825 /// If the switch is only used to initialize one or more 4826 /// phi nodes in a common successor block with only two different 4827 /// constant values, replace the switch with select. 4828 static bool switchToSelect(SwitchInst *SI, IRBuilder<> &Builder, 4829 const DataLayout &DL, 4830 const TargetTransformInfo &TTI) { 4831 Value *const Cond = SI->getCondition(); 4832 PHINode *PHI = nullptr; 4833 BasicBlock *CommonDest = nullptr; 4834 Constant *DefaultResult; 4835 SwitchCaseResultVectorTy UniqueResults; 4836 // Collect all the cases that will deliver the same value from the switch. 4837 if (!InitializeUniqueCases(SI, PHI, CommonDest, UniqueResults, DefaultResult, 4838 DL, TTI, 2, 1)) 4839 return false; 4840 // Selects choose between maximum two values. 4841 if (UniqueResults.size() != 2) 4842 return false; 4843 assert(PHI != nullptr && "PHI for value select not found"); 4844 4845 Builder.SetInsertPoint(SI); 4846 Value *SelectValue = 4847 ConvertTwoCaseSwitch(UniqueResults, DefaultResult, Cond, Builder); 4848 if (SelectValue) { 4849 RemoveSwitchAfterSelectConversion(SI, PHI, SelectValue, Builder); 4850 return true; 4851 } 4852 // The switch couldn't be converted into a select. 4853 return false; 4854 } 4855 4856 namespace { 4857 4858 /// This class represents a lookup table that can be used to replace a switch. 4859 class SwitchLookupTable { 4860 public: 4861 /// Create a lookup table to use as a switch replacement with the contents 4862 /// of Values, using DefaultValue to fill any holes in the table. 4863 SwitchLookupTable( 4864 Module &M, uint64_t TableSize, ConstantInt *Offset, 4865 const SmallVectorImpl<std::pair<ConstantInt *, Constant *>> &Values, 4866 Constant *DefaultValue, const DataLayout &DL, const StringRef &FuncName); 4867 4868 /// Build instructions with Builder to retrieve the value at 4869 /// the position given by Index in the lookup table. 4870 Value *BuildLookup(Value *Index, IRBuilder<> &Builder); 4871 4872 /// Return true if a table with TableSize elements of 4873 /// type ElementType would fit in a target-legal register. 4874 static bool WouldFitInRegister(const DataLayout &DL, uint64_t TableSize, 4875 Type *ElementType); 4876 4877 private: 4878 // Depending on the contents of the table, it can be represented in 4879 // different ways. 4880 enum { 4881 // For tables where each element contains the same value, we just have to 4882 // store that single value and return it for each lookup. 4883 SingleValueKind, 4884 4885 // For tables where there is a linear relationship between table index 4886 // and values. We calculate the result with a simple multiplication 4887 // and addition instead of a table lookup. 4888 LinearMapKind, 4889 4890 // For small tables with integer elements, we can pack them into a bitmap 4891 // that fits into a target-legal register. Values are retrieved by 4892 // shift and mask operations. 4893 BitMapKind, 4894 4895 // The table is stored as an array of values. Values are retrieved by load 4896 // instructions from the table. 4897 ArrayKind 4898 } Kind; 4899 4900 // For SingleValueKind, this is the single value. 4901 Constant *SingleValue = nullptr; 4902 4903 // For BitMapKind, this is the bitmap. 4904 ConstantInt *BitMap = nullptr; 4905 IntegerType *BitMapElementTy = nullptr; 4906 4907 // For LinearMapKind, these are the constants used to derive the value. 4908 ConstantInt *LinearOffset = nullptr; 4909 ConstantInt *LinearMultiplier = nullptr; 4910 4911 // For ArrayKind, this is the array. 4912 GlobalVariable *Array = nullptr; 4913 }; 4914 4915 } // end anonymous namespace 4916 4917 SwitchLookupTable::SwitchLookupTable( 4918 Module &M, uint64_t TableSize, ConstantInt *Offset, 4919 const SmallVectorImpl<std::pair<ConstantInt *, Constant *>> &Values, 4920 Constant *DefaultValue, const DataLayout &DL, const StringRef &FuncName) { 4921 assert(Values.size() && "Can't build lookup table without values!"); 4922 assert(TableSize >= Values.size() && "Can't fit values in table!"); 4923 4924 // If all values in the table are equal, this is that value. 4925 SingleValue = Values.begin()->second; 4926 4927 Type *ValueType = Values.begin()->second->getType(); 4928 4929 // Build up the table contents. 4930 SmallVector<Constant *, 64> TableContents(TableSize); 4931 for (size_t I = 0, E = Values.size(); I != E; ++I) { 4932 ConstantInt *CaseVal = Values[I].first; 4933 Constant *CaseRes = Values[I].second; 4934 assert(CaseRes->getType() == ValueType); 4935 4936 uint64_t Idx = (CaseVal->getValue() - Offset->getValue()).getLimitedValue(); 4937 TableContents[Idx] = CaseRes; 4938 4939 if (CaseRes != SingleValue) 4940 SingleValue = nullptr; 4941 } 4942 4943 // Fill in any holes in the table with the default result. 4944 if (Values.size() < TableSize) { 4945 assert(DefaultValue && 4946 "Need a default value to fill the lookup table holes."); 4947 assert(DefaultValue->getType() == ValueType); 4948 for (uint64_t I = 0; I < TableSize; ++I) { 4949 if (!TableContents[I]) 4950 TableContents[I] = DefaultValue; 4951 } 4952 4953 if (DefaultValue != SingleValue) 4954 SingleValue = nullptr; 4955 } 4956 4957 // If each element in the table contains the same value, we only need to store 4958 // that single value. 4959 if (SingleValue) { 4960 Kind = SingleValueKind; 4961 return; 4962 } 4963 4964 // Check if we can derive the value with a linear transformation from the 4965 // table index. 4966 if (isa<IntegerType>(ValueType)) { 4967 bool LinearMappingPossible = true; 4968 APInt PrevVal; 4969 APInt DistToPrev; 4970 assert(TableSize >= 2 && "Should be a SingleValue table."); 4971 // Check if there is the same distance between two consecutive values. 4972 for (uint64_t I = 0; I < TableSize; ++I) { 4973 ConstantInt *ConstVal = dyn_cast<ConstantInt>(TableContents[I]); 4974 if (!ConstVal) { 4975 // This is an undef. We could deal with it, but undefs in lookup tables 4976 // are very seldom. It's probably not worth the additional complexity. 4977 LinearMappingPossible = false; 4978 break; 4979 } 4980 const APInt &Val = ConstVal->getValue(); 4981 if (I != 0) { 4982 APInt Dist = Val - PrevVal; 4983 if (I == 1) { 4984 DistToPrev = Dist; 4985 } else if (Dist != DistToPrev) { 4986 LinearMappingPossible = false; 4987 break; 4988 } 4989 } 4990 PrevVal = Val; 4991 } 4992 if (LinearMappingPossible) { 4993 LinearOffset = cast<ConstantInt>(TableContents[0]); 4994 LinearMultiplier = ConstantInt::get(M.getContext(), DistToPrev); 4995 Kind = LinearMapKind; 4996 ++NumLinearMaps; 4997 return; 4998 } 4999 } 5000 5001 // If the type is integer and the table fits in a register, build a bitmap. 5002 if (WouldFitInRegister(DL, TableSize, ValueType)) { 5003 IntegerType *IT = cast<IntegerType>(ValueType); 5004 APInt TableInt(TableSize * IT->getBitWidth(), 0); 5005 for (uint64_t I = TableSize; I > 0; --I) { 5006 TableInt <<= IT->getBitWidth(); 5007 // Insert values into the bitmap. Undef values are set to zero. 5008 if (!isa<UndefValue>(TableContents[I - 1])) { 5009 ConstantInt *Val = cast<ConstantInt>(TableContents[I - 1]); 5010 TableInt |= Val->getValue().zext(TableInt.getBitWidth()); 5011 } 5012 } 5013 BitMap = ConstantInt::get(M.getContext(), TableInt); 5014 BitMapElementTy = IT; 5015 Kind = BitMapKind; 5016 ++NumBitMaps; 5017 return; 5018 } 5019 5020 // Store the table in an array. 5021 ArrayType *ArrayTy = ArrayType::get(ValueType, TableSize); 5022 Constant *Initializer = ConstantArray::get(ArrayTy, TableContents); 5023 5024 Array = new GlobalVariable(M, ArrayTy, /*constant=*/true, 5025 GlobalVariable::PrivateLinkage, Initializer, 5026 "switch.table." + FuncName); 5027 Array->setUnnamedAddr(GlobalValue::UnnamedAddr::Global); 5028 Kind = ArrayKind; 5029 } 5030 5031 Value *SwitchLookupTable::BuildLookup(Value *Index, IRBuilder<> &Builder) { 5032 switch (Kind) { 5033 case SingleValueKind: 5034 return SingleValue; 5035 case LinearMapKind: { 5036 // Derive the result value from the input value. 5037 Value *Result = Builder.CreateIntCast(Index, LinearMultiplier->getType(), 5038 false, "switch.idx.cast"); 5039 if (!LinearMultiplier->isOne()) 5040 Result = Builder.CreateMul(Result, LinearMultiplier, "switch.idx.mult"); 5041 if (!LinearOffset->isZero()) 5042 Result = Builder.CreateAdd(Result, LinearOffset, "switch.offset"); 5043 return Result; 5044 } 5045 case BitMapKind: { 5046 // Type of the bitmap (e.g. i59). 5047 IntegerType *MapTy = BitMap->getType(); 5048 5049 // Cast Index to the same type as the bitmap. 5050 // Note: The Index is <= the number of elements in the table, so 5051 // truncating it to the width of the bitmask is safe. 5052 Value *ShiftAmt = Builder.CreateZExtOrTrunc(Index, MapTy, "switch.cast"); 5053 5054 // Multiply the shift amount by the element width. 5055 ShiftAmt = Builder.CreateMul( 5056 ShiftAmt, ConstantInt::get(MapTy, BitMapElementTy->getBitWidth()), 5057 "switch.shiftamt"); 5058 5059 // Shift down. 5060 Value *DownShifted = 5061 Builder.CreateLShr(BitMap, ShiftAmt, "switch.downshift"); 5062 // Mask off. 5063 return Builder.CreateTrunc(DownShifted, BitMapElementTy, "switch.masked"); 5064 } 5065 case ArrayKind: { 5066 // Make sure the table index will not overflow when treated as signed. 5067 IntegerType *IT = cast<IntegerType>(Index->getType()); 5068 uint64_t TableSize = 5069 Array->getInitializer()->getType()->getArrayNumElements(); 5070 if (TableSize > (1ULL << (IT->getBitWidth() - 1))) 5071 Index = Builder.CreateZExt( 5072 Index, IntegerType::get(IT->getContext(), IT->getBitWidth() + 1), 5073 "switch.tableidx.zext"); 5074 5075 Value *GEPIndices[] = {Builder.getInt32(0), Index}; 5076 Value *GEP = Builder.CreateInBoundsGEP(Array->getValueType(), Array, 5077 GEPIndices, "switch.gep"); 5078 return Builder.CreateLoad(GEP, "switch.load"); 5079 } 5080 } 5081 llvm_unreachable("Unknown lookup table kind!"); 5082 } 5083 5084 bool SwitchLookupTable::WouldFitInRegister(const DataLayout &DL, 5085 uint64_t TableSize, 5086 Type *ElementType) { 5087 auto *IT = dyn_cast<IntegerType>(ElementType); 5088 if (!IT) 5089 return false; 5090 // FIXME: If the type is wider than it needs to be, e.g. i8 but all values 5091 // are <= 15, we could try to narrow the type. 5092 5093 // Avoid overflow, fitsInLegalInteger uses unsigned int for the width. 5094 if (TableSize >= UINT_MAX / IT->getBitWidth()) 5095 return false; 5096 return DL.fitsInLegalInteger(TableSize * IT->getBitWidth()); 5097 } 5098 5099 /// Determine whether a lookup table should be built for this switch, based on 5100 /// the number of cases, size of the table, and the types of the results. 5101 static bool 5102 ShouldBuildLookupTable(SwitchInst *SI, uint64_t TableSize, 5103 const TargetTransformInfo &TTI, const DataLayout &DL, 5104 const SmallDenseMap<PHINode *, Type *> &ResultTypes) { 5105 if (SI->getNumCases() > TableSize || TableSize >= UINT64_MAX / 10) 5106 return false; // TableSize overflowed, or mul below might overflow. 5107 5108 bool AllTablesFitInRegister = true; 5109 bool HasIllegalType = false; 5110 for (const auto &I : ResultTypes) { 5111 Type *Ty = I.second; 5112 5113 // Saturate this flag to true. 5114 HasIllegalType = HasIllegalType || !TTI.isTypeLegal(Ty); 5115 5116 // Saturate this flag to false. 5117 AllTablesFitInRegister = 5118 AllTablesFitInRegister && 5119 SwitchLookupTable::WouldFitInRegister(DL, TableSize, Ty); 5120 5121 // If both flags saturate, we're done. NOTE: This *only* works with 5122 // saturating flags, and all flags have to saturate first due to the 5123 // non-deterministic behavior of iterating over a dense map. 5124 if (HasIllegalType && !AllTablesFitInRegister) 5125 break; 5126 } 5127 5128 // If each table would fit in a register, we should build it anyway. 5129 if (AllTablesFitInRegister) 5130 return true; 5131 5132 // Don't build a table that doesn't fit in-register if it has illegal types. 5133 if (HasIllegalType) 5134 return false; 5135 5136 // The table density should be at least 40%. This is the same criterion as for 5137 // jump tables, see SelectionDAGBuilder::handleJTSwitchCase. 5138 // FIXME: Find the best cut-off. 5139 return SI->getNumCases() * 10 >= TableSize * 4; 5140 } 5141 5142 /// Try to reuse the switch table index compare. Following pattern: 5143 /// \code 5144 /// if (idx < tablesize) 5145 /// r = table[idx]; // table does not contain default_value 5146 /// else 5147 /// r = default_value; 5148 /// if (r != default_value) 5149 /// ... 5150 /// \endcode 5151 /// Is optimized to: 5152 /// \code 5153 /// cond = idx < tablesize; 5154 /// if (cond) 5155 /// r = table[idx]; 5156 /// else 5157 /// r = default_value; 5158 /// if (cond) 5159 /// ... 5160 /// \endcode 5161 /// Jump threading will then eliminate the second if(cond). 5162 static void reuseTableCompare( 5163 User *PhiUser, BasicBlock *PhiBlock, BranchInst *RangeCheckBranch, 5164 Constant *DefaultValue, 5165 const SmallVectorImpl<std::pair<ConstantInt *, Constant *>> &Values) { 5166 ICmpInst *CmpInst = dyn_cast<ICmpInst>(PhiUser); 5167 if (!CmpInst) 5168 return; 5169 5170 // We require that the compare is in the same block as the phi so that jump 5171 // threading can do its work afterwards. 5172 if (CmpInst->getParent() != PhiBlock) 5173 return; 5174 5175 Constant *CmpOp1 = dyn_cast<Constant>(CmpInst->getOperand(1)); 5176 if (!CmpOp1) 5177 return; 5178 5179 Value *RangeCmp = RangeCheckBranch->getCondition(); 5180 Constant *TrueConst = ConstantInt::getTrue(RangeCmp->getType()); 5181 Constant *FalseConst = ConstantInt::getFalse(RangeCmp->getType()); 5182 5183 // Check if the compare with the default value is constant true or false. 5184 Constant *DefaultConst = ConstantExpr::getICmp(CmpInst->getPredicate(), 5185 DefaultValue, CmpOp1, true); 5186 if (DefaultConst != TrueConst && DefaultConst != FalseConst) 5187 return; 5188 5189 // Check if the compare with the case values is distinct from the default 5190 // compare result. 5191 for (auto ValuePair : Values) { 5192 Constant *CaseConst = ConstantExpr::getICmp(CmpInst->getPredicate(), 5193 ValuePair.second, CmpOp1, true); 5194 if (!CaseConst || CaseConst == DefaultConst || isa<UndefValue>(CaseConst)) 5195 return; 5196 assert((CaseConst == TrueConst || CaseConst == FalseConst) && 5197 "Expect true or false as compare result."); 5198 } 5199 5200 // Check if the branch instruction dominates the phi node. It's a simple 5201 // dominance check, but sufficient for our needs. 5202 // Although this check is invariant in the calling loops, it's better to do it 5203 // at this late stage. Practically we do it at most once for a switch. 5204 BasicBlock *BranchBlock = RangeCheckBranch->getParent(); 5205 for (auto PI = pred_begin(PhiBlock), E = pred_end(PhiBlock); PI != E; ++PI) { 5206 BasicBlock *Pred = *PI; 5207 if (Pred != BranchBlock && Pred->getUniquePredecessor() != BranchBlock) 5208 return; 5209 } 5210 5211 if (DefaultConst == FalseConst) { 5212 // The compare yields the same result. We can replace it. 5213 CmpInst->replaceAllUsesWith(RangeCmp); 5214 ++NumTableCmpReuses; 5215 } else { 5216 // The compare yields the same result, just inverted. We can replace it. 5217 Value *InvertedTableCmp = BinaryOperator::CreateXor( 5218 RangeCmp, ConstantInt::get(RangeCmp->getType(), 1), "inverted.cmp", 5219 RangeCheckBranch); 5220 CmpInst->replaceAllUsesWith(InvertedTableCmp); 5221 ++NumTableCmpReuses; 5222 } 5223 } 5224 5225 /// If the switch is only used to initialize one or more phi nodes in a common 5226 /// successor block with different constant values, replace the switch with 5227 /// lookup tables. 5228 static bool SwitchToLookupTable(SwitchInst *SI, IRBuilder<> &Builder, 5229 const DataLayout &DL, 5230 const TargetTransformInfo &TTI) { 5231 assert(SI->getNumCases() > 1 && "Degenerate switch?"); 5232 5233 Function *Fn = SI->getParent()->getParent(); 5234 // Only build lookup table when we have a target that supports it or the 5235 // attribute is not set. 5236 if (!TTI.shouldBuildLookupTables() || 5237 (Fn->getFnAttribute("no-jump-tables").getValueAsString() == "true")) 5238 return false; 5239 5240 // FIXME: If the switch is too sparse for a lookup table, perhaps we could 5241 // split off a dense part and build a lookup table for that. 5242 5243 // FIXME: This creates arrays of GEPs to constant strings, which means each 5244 // GEP needs a runtime relocation in PIC code. We should just build one big 5245 // string and lookup indices into that. 5246 5247 // Ignore switches with less than three cases. Lookup tables will not make 5248 // them faster, so we don't analyze them. 5249 if (SI->getNumCases() < 3) 5250 return false; 5251 5252 // Figure out the corresponding result for each case value and phi node in the 5253 // common destination, as well as the min and max case values. 5254 assert(SI->case_begin() != SI->case_end()); 5255 SwitchInst::CaseIt CI = SI->case_begin(); 5256 ConstantInt *MinCaseVal = CI->getCaseValue(); 5257 ConstantInt *MaxCaseVal = CI->getCaseValue(); 5258 5259 BasicBlock *CommonDest = nullptr; 5260 5261 using ResultListTy = SmallVector<std::pair<ConstantInt *, Constant *>, 4>; 5262 SmallDenseMap<PHINode *, ResultListTy> ResultLists; 5263 5264 SmallDenseMap<PHINode *, Constant *> DefaultResults; 5265 SmallDenseMap<PHINode *, Type *> ResultTypes; 5266 SmallVector<PHINode *, 4> PHIs; 5267 5268 for (SwitchInst::CaseIt E = SI->case_end(); CI != E; ++CI) { 5269 ConstantInt *CaseVal = CI->getCaseValue(); 5270 if (CaseVal->getValue().slt(MinCaseVal->getValue())) 5271 MinCaseVal = CaseVal; 5272 if (CaseVal->getValue().sgt(MaxCaseVal->getValue())) 5273 MaxCaseVal = CaseVal; 5274 5275 // Resulting value at phi nodes for this case value. 5276 using ResultsTy = SmallVector<std::pair<PHINode *, Constant *>, 4>; 5277 ResultsTy Results; 5278 if (!GetCaseResults(SI, CaseVal, CI->getCaseSuccessor(), &CommonDest, 5279 Results, DL, TTI)) 5280 return false; 5281 5282 // Append the result from this case to the list for each phi. 5283 for (const auto &I : Results) { 5284 PHINode *PHI = I.first; 5285 Constant *Value = I.second; 5286 if (!ResultLists.count(PHI)) 5287 PHIs.push_back(PHI); 5288 ResultLists[PHI].push_back(std::make_pair(CaseVal, Value)); 5289 } 5290 } 5291 5292 // Keep track of the result types. 5293 for (PHINode *PHI : PHIs) { 5294 ResultTypes[PHI] = ResultLists[PHI][0].second->getType(); 5295 } 5296 5297 uint64_t NumResults = ResultLists[PHIs[0]].size(); 5298 APInt RangeSpread = MaxCaseVal->getValue() - MinCaseVal->getValue(); 5299 uint64_t TableSize = RangeSpread.getLimitedValue() + 1; 5300 bool TableHasHoles = (NumResults < TableSize); 5301 5302 // If the table has holes, we need a constant result for the default case 5303 // or a bitmask that fits in a register. 5304 SmallVector<std::pair<PHINode *, Constant *>, 4> DefaultResultsList; 5305 bool HasDefaultResults = 5306 GetCaseResults(SI, nullptr, SI->getDefaultDest(), &CommonDest, 5307 DefaultResultsList, DL, TTI); 5308 5309 bool NeedMask = (TableHasHoles && !HasDefaultResults); 5310 if (NeedMask) { 5311 // As an extra penalty for the validity test we require more cases. 5312 if (SI->getNumCases() < 4) // FIXME: Find best threshold value (benchmark). 5313 return false; 5314 if (!DL.fitsInLegalInteger(TableSize)) 5315 return false; 5316 } 5317 5318 for (const auto &I : DefaultResultsList) { 5319 PHINode *PHI = I.first; 5320 Constant *Result = I.second; 5321 DefaultResults[PHI] = Result; 5322 } 5323 5324 if (!ShouldBuildLookupTable(SI, TableSize, TTI, DL, ResultTypes)) 5325 return false; 5326 5327 // Create the BB that does the lookups. 5328 Module &Mod = *CommonDest->getParent()->getParent(); 5329 BasicBlock *LookupBB = BasicBlock::Create( 5330 Mod.getContext(), "switch.lookup", CommonDest->getParent(), CommonDest); 5331 5332 // Compute the table index value. 5333 Builder.SetInsertPoint(SI); 5334 Value *TableIndex; 5335 if (MinCaseVal->isNullValue()) 5336 TableIndex = SI->getCondition(); 5337 else 5338 TableIndex = Builder.CreateSub(SI->getCondition(), MinCaseVal, 5339 "switch.tableidx"); 5340 5341 // Compute the maximum table size representable by the integer type we are 5342 // switching upon. 5343 unsigned CaseSize = MinCaseVal->getType()->getPrimitiveSizeInBits(); 5344 uint64_t MaxTableSize = CaseSize > 63 ? UINT64_MAX : 1ULL << CaseSize; 5345 assert(MaxTableSize >= TableSize && 5346 "It is impossible for a switch to have more entries than the max " 5347 "representable value of its input integer type's size."); 5348 5349 // If the default destination is unreachable, or if the lookup table covers 5350 // all values of the conditional variable, branch directly to the lookup table 5351 // BB. Otherwise, check that the condition is within the case range. 5352 const bool DefaultIsReachable = 5353 !isa<UnreachableInst>(SI->getDefaultDest()->getFirstNonPHIOrDbg()); 5354 const bool GeneratingCoveredLookupTable = (MaxTableSize == TableSize); 5355 BranchInst *RangeCheckBranch = nullptr; 5356 5357 if (!DefaultIsReachable || GeneratingCoveredLookupTable) { 5358 Builder.CreateBr(LookupBB); 5359 // Note: We call removeProdecessor later since we need to be able to get the 5360 // PHI value for the default case in case we're using a bit mask. 5361 } else { 5362 Value *Cmp = Builder.CreateICmpULT( 5363 TableIndex, ConstantInt::get(MinCaseVal->getType(), TableSize)); 5364 RangeCheckBranch = 5365 Builder.CreateCondBr(Cmp, LookupBB, SI->getDefaultDest()); 5366 } 5367 5368 // Populate the BB that does the lookups. 5369 Builder.SetInsertPoint(LookupBB); 5370 5371 if (NeedMask) { 5372 // Before doing the lookup, we do the hole check. The LookupBB is therefore 5373 // re-purposed to do the hole check, and we create a new LookupBB. 5374 BasicBlock *MaskBB = LookupBB; 5375 MaskBB->setName("switch.hole_check"); 5376 LookupBB = BasicBlock::Create(Mod.getContext(), "switch.lookup", 5377 CommonDest->getParent(), CommonDest); 5378 5379 // Make the mask's bitwidth at least 8-bit and a power-of-2 to avoid 5380 // unnecessary illegal types. 5381 uint64_t TableSizePowOf2 = NextPowerOf2(std::max(7ULL, TableSize - 1ULL)); 5382 APInt MaskInt(TableSizePowOf2, 0); 5383 APInt One(TableSizePowOf2, 1); 5384 // Build bitmask; fill in a 1 bit for every case. 5385 const ResultListTy &ResultList = ResultLists[PHIs[0]]; 5386 for (size_t I = 0, E = ResultList.size(); I != E; ++I) { 5387 uint64_t Idx = (ResultList[I].first->getValue() - MinCaseVal->getValue()) 5388 .getLimitedValue(); 5389 MaskInt |= One << Idx; 5390 } 5391 ConstantInt *TableMask = ConstantInt::get(Mod.getContext(), MaskInt); 5392 5393 // Get the TableIndex'th bit of the bitmask. 5394 // If this bit is 0 (meaning hole) jump to the default destination, 5395 // else continue with table lookup. 5396 IntegerType *MapTy = TableMask->getType(); 5397 Value *MaskIndex = 5398 Builder.CreateZExtOrTrunc(TableIndex, MapTy, "switch.maskindex"); 5399 Value *Shifted = Builder.CreateLShr(TableMask, MaskIndex, "switch.shifted"); 5400 Value *LoBit = Builder.CreateTrunc( 5401 Shifted, Type::getInt1Ty(Mod.getContext()), "switch.lobit"); 5402 Builder.CreateCondBr(LoBit, LookupBB, SI->getDefaultDest()); 5403 5404 Builder.SetInsertPoint(LookupBB); 5405 AddPredecessorToBlock(SI->getDefaultDest(), MaskBB, SI->getParent()); 5406 } 5407 5408 if (!DefaultIsReachable || GeneratingCoveredLookupTable) { 5409 // We cached PHINodes in PHIs. To avoid accessing deleted PHINodes later, 5410 // do not delete PHINodes here. 5411 SI->getDefaultDest()->removePredecessor(SI->getParent(), 5412 /*DontDeleteUselessPHIs=*/true); 5413 } 5414 5415 bool ReturnedEarly = false; 5416 for (size_t I = 0, E = PHIs.size(); I != E; ++I) { 5417 PHINode *PHI = PHIs[I]; 5418 const ResultListTy &ResultList = ResultLists[PHI]; 5419 5420 // If using a bitmask, use any value to fill the lookup table holes. 5421 Constant *DV = NeedMask ? ResultLists[PHI][0].second : DefaultResults[PHI]; 5422 StringRef FuncName = Fn->getName(); 5423 SwitchLookupTable Table(Mod, TableSize, MinCaseVal, ResultList, DV, DL, 5424 FuncName); 5425 5426 Value *Result = Table.BuildLookup(TableIndex, Builder); 5427 5428 // If the result is used to return immediately from the function, we want to 5429 // do that right here. 5430 if (PHI->hasOneUse() && isa<ReturnInst>(*PHI->user_begin()) && 5431 PHI->user_back() == CommonDest->getFirstNonPHIOrDbg()) { 5432 Builder.CreateRet(Result); 5433 ReturnedEarly = true; 5434 break; 5435 } 5436 5437 // Do a small peephole optimization: re-use the switch table compare if 5438 // possible. 5439 if (!TableHasHoles && HasDefaultResults && RangeCheckBranch) { 5440 BasicBlock *PhiBlock = PHI->getParent(); 5441 // Search for compare instructions which use the phi. 5442 for (auto *User : PHI->users()) { 5443 reuseTableCompare(User, PhiBlock, RangeCheckBranch, DV, ResultList); 5444 } 5445 } 5446 5447 PHI->addIncoming(Result, LookupBB); 5448 } 5449 5450 if (!ReturnedEarly) 5451 Builder.CreateBr(CommonDest); 5452 5453 // Remove the switch. 5454 for (unsigned i = 0, e = SI->getNumSuccessors(); i < e; ++i) { 5455 BasicBlock *Succ = SI->getSuccessor(i); 5456 5457 if (Succ == SI->getDefaultDest()) 5458 continue; 5459 Succ->removePredecessor(SI->getParent()); 5460 } 5461 SI->eraseFromParent(); 5462 5463 ++NumLookupTables; 5464 if (NeedMask) 5465 ++NumLookupTablesHoles; 5466 return true; 5467 } 5468 5469 static bool isSwitchDense(ArrayRef<int64_t> Values) { 5470 // See also SelectionDAGBuilder::isDense(), which this function was based on. 5471 uint64_t Diff = (uint64_t)Values.back() - (uint64_t)Values.front(); 5472 uint64_t Range = Diff + 1; 5473 uint64_t NumCases = Values.size(); 5474 // 40% is the default density for building a jump table in optsize/minsize mode. 5475 uint64_t MinDensity = 40; 5476 5477 return NumCases * 100 >= Range * MinDensity; 5478 } 5479 5480 /// Try to transform a switch that has "holes" in it to a contiguous sequence 5481 /// of cases. 5482 /// 5483 /// A switch such as: switch(i) {case 5: case 9: case 13: case 17:} can be 5484 /// range-reduced to: switch ((i-5) / 4) {case 0: case 1: case 2: case 3:}. 5485 /// 5486 /// This converts a sparse switch into a dense switch which allows better 5487 /// lowering and could also allow transforming into a lookup table. 5488 static bool ReduceSwitchRange(SwitchInst *SI, IRBuilder<> &Builder, 5489 const DataLayout &DL, 5490 const TargetTransformInfo &TTI) { 5491 auto *CondTy = cast<IntegerType>(SI->getCondition()->getType()); 5492 if (CondTy->getIntegerBitWidth() > 64 || 5493 !DL.fitsInLegalInteger(CondTy->getIntegerBitWidth())) 5494 return false; 5495 // Only bother with this optimization if there are more than 3 switch cases; 5496 // SDAG will only bother creating jump tables for 4 or more cases. 5497 if (SI->getNumCases() < 4) 5498 return false; 5499 5500 // This transform is agnostic to the signedness of the input or case values. We 5501 // can treat the case values as signed or unsigned. We can optimize more common 5502 // cases such as a sequence crossing zero {-4,0,4,8} if we interpret case values 5503 // as signed. 5504 SmallVector<int64_t,4> Values; 5505 for (auto &C : SI->cases()) 5506 Values.push_back(C.getCaseValue()->getValue().getSExtValue()); 5507 std::sort(Values.begin(), Values.end()); 5508 5509 // If the switch is already dense, there's nothing useful to do here. 5510 if (isSwitchDense(Values)) 5511 return false; 5512 5513 // First, transform the values such that they start at zero and ascend. 5514 int64_t Base = Values[0]; 5515 for (auto &V : Values) 5516 V -= (uint64_t)(Base); 5517 5518 // Now we have signed numbers that have been shifted so that, given enough 5519 // precision, there are no negative values. Since the rest of the transform 5520 // is bitwise only, we switch now to an unsigned representation. 5521 uint64_t GCD = 0; 5522 for (auto &V : Values) 5523 GCD = GreatestCommonDivisor64(GCD, (uint64_t)V); 5524 5525 // This transform can be done speculatively because it is so cheap - it results 5526 // in a single rotate operation being inserted. This can only happen if the 5527 // factor extracted is a power of 2. 5528 // FIXME: If the GCD is an odd number we can multiply by the multiplicative 5529 // inverse of GCD and then perform this transform. 5530 // FIXME: It's possible that optimizing a switch on powers of two might also 5531 // be beneficial - flag values are often powers of two and we could use a CLZ 5532 // as the key function. 5533 if (GCD <= 1 || !isPowerOf2_64(GCD)) 5534 // No common divisor found or too expensive to compute key function. 5535 return false; 5536 5537 unsigned Shift = Log2_64(GCD); 5538 for (auto &V : Values) 5539 V = (int64_t)((uint64_t)V >> Shift); 5540 5541 if (!isSwitchDense(Values)) 5542 // Transform didn't create a dense switch. 5543 return false; 5544 5545 // The obvious transform is to shift the switch condition right and emit a 5546 // check that the condition actually cleanly divided by GCD, i.e. 5547 // C & (1 << Shift - 1) == 0 5548 // inserting a new CFG edge to handle the case where it didn't divide cleanly. 5549 // 5550 // A cheaper way of doing this is a simple ROTR(C, Shift). This performs the 5551 // shift and puts the shifted-off bits in the uppermost bits. If any of these 5552 // are nonzero then the switch condition will be very large and will hit the 5553 // default case. 5554 5555 auto *Ty = cast<IntegerType>(SI->getCondition()->getType()); 5556 Builder.SetInsertPoint(SI); 5557 auto *ShiftC = ConstantInt::get(Ty, Shift); 5558 auto *Sub = Builder.CreateSub(SI->getCondition(), ConstantInt::get(Ty, Base)); 5559 auto *LShr = Builder.CreateLShr(Sub, ShiftC); 5560 auto *Shl = Builder.CreateShl(Sub, Ty->getBitWidth() - Shift); 5561 auto *Rot = Builder.CreateOr(LShr, Shl); 5562 SI->replaceUsesOfWith(SI->getCondition(), Rot); 5563 5564 for (auto Case : SI->cases()) { 5565 auto *Orig = Case.getCaseValue(); 5566 auto Sub = Orig->getValue() - APInt(Ty->getBitWidth(), Base); 5567 Case.setValue( 5568 cast<ConstantInt>(ConstantInt::get(Ty, Sub.lshr(ShiftC->getValue())))); 5569 } 5570 return true; 5571 } 5572 5573 bool SimplifyCFGOpt::SimplifySwitch(SwitchInst *SI, IRBuilder<> &Builder) { 5574 BasicBlock *BB = SI->getParent(); 5575 5576 if (isValueEqualityComparison(SI)) { 5577 // If we only have one predecessor, and if it is a branch on this value, 5578 // see if that predecessor totally determines the outcome of this switch. 5579 if (BasicBlock *OnlyPred = BB->getSinglePredecessor()) 5580 if (SimplifyEqualityComparisonWithOnlyPredecessor(SI, OnlyPred, Builder)) 5581 return simplifyCFG(BB, TTI, Options) | true; 5582 5583 Value *Cond = SI->getCondition(); 5584 if (SelectInst *Select = dyn_cast<SelectInst>(Cond)) 5585 if (SimplifySwitchOnSelect(SI, Select)) 5586 return simplifyCFG(BB, TTI, Options) | true; 5587 5588 // If the block only contains the switch, see if we can fold the block 5589 // away into any preds. 5590 BasicBlock::iterator BBI = BB->begin(); 5591 // Ignore dbg intrinsics. 5592 while (isa<DbgInfoIntrinsic>(BBI)) 5593 ++BBI; 5594 if (SI == &*BBI) 5595 if (FoldValueComparisonIntoPredecessors(SI, Builder)) 5596 return simplifyCFG(BB, TTI, Options) | true; 5597 } 5598 5599 // Try to transform the switch into an icmp and a branch. 5600 if (TurnSwitchRangeIntoICmp(SI, Builder)) 5601 return simplifyCFG(BB, TTI, Options) | true; 5602 5603 // Remove unreachable cases. 5604 if (eliminateDeadSwitchCases(SI, Options.AC, DL)) 5605 return simplifyCFG(BB, TTI, Options) | true; 5606 5607 if (switchToSelect(SI, Builder, DL, TTI)) 5608 return simplifyCFG(BB, TTI, Options) | true; 5609 5610 if (Options.ForwardSwitchCondToPhi && ForwardSwitchConditionToPHI(SI)) 5611 return simplifyCFG(BB, TTI, Options) | true; 5612 5613 // The conversion from switch to lookup tables results in difficult-to-analyze 5614 // code and makes pruning branches much harder. This is a problem if the 5615 // switch expression itself can still be restricted as a result of inlining or 5616 // CVP. Therefore, only apply this transformation during late stages of the 5617 // optimisation pipeline. 5618 if (Options.ConvertSwitchToLookupTable && 5619 SwitchToLookupTable(SI, Builder, DL, TTI)) 5620 return simplifyCFG(BB, TTI, Options) | true; 5621 5622 if (ReduceSwitchRange(SI, Builder, DL, TTI)) 5623 return simplifyCFG(BB, TTI, Options) | true; 5624 5625 return false; 5626 } 5627 5628 bool SimplifyCFGOpt::SimplifyIndirectBr(IndirectBrInst *IBI) { 5629 BasicBlock *BB = IBI->getParent(); 5630 bool Changed = false; 5631 5632 // Eliminate redundant destinations. 5633 SmallPtrSet<Value *, 8> Succs; 5634 for (unsigned i = 0, e = IBI->getNumDestinations(); i != e; ++i) { 5635 BasicBlock *Dest = IBI->getDestination(i); 5636 if (!Dest->hasAddressTaken() || !Succs.insert(Dest).second) { 5637 Dest->removePredecessor(BB); 5638 IBI->removeDestination(i); 5639 --i; 5640 --e; 5641 Changed = true; 5642 } 5643 } 5644 5645 if (IBI->getNumDestinations() == 0) { 5646 // If the indirectbr has no successors, change it to unreachable. 5647 new UnreachableInst(IBI->getContext(), IBI); 5648 EraseTerminatorInstAndDCECond(IBI); 5649 return true; 5650 } 5651 5652 if (IBI->getNumDestinations() == 1) { 5653 // If the indirectbr has one successor, change it to a direct branch. 5654 BranchInst::Create(IBI->getDestination(0), IBI); 5655 EraseTerminatorInstAndDCECond(IBI); 5656 return true; 5657 } 5658 5659 if (SelectInst *SI = dyn_cast<SelectInst>(IBI->getAddress())) { 5660 if (SimplifyIndirectBrOnSelect(IBI, SI)) 5661 return simplifyCFG(BB, TTI, Options) | true; 5662 } 5663 return Changed; 5664 } 5665 5666 /// Given an block with only a single landing pad and a unconditional branch 5667 /// try to find another basic block which this one can be merged with. This 5668 /// handles cases where we have multiple invokes with unique landing pads, but 5669 /// a shared handler. 5670 /// 5671 /// We specifically choose to not worry about merging non-empty blocks 5672 /// here. That is a PRE/scheduling problem and is best solved elsewhere. In 5673 /// practice, the optimizer produces empty landing pad blocks quite frequently 5674 /// when dealing with exception dense code. (see: instcombine, gvn, if-else 5675 /// sinking in this file) 5676 /// 5677 /// This is primarily a code size optimization. We need to avoid performing 5678 /// any transform which might inhibit optimization (such as our ability to 5679 /// specialize a particular handler via tail commoning). We do this by not 5680 /// merging any blocks which require us to introduce a phi. Since the same 5681 /// values are flowing through both blocks, we don't loose any ability to 5682 /// specialize. If anything, we make such specialization more likely. 5683 /// 5684 /// TODO - This transformation could remove entries from a phi in the target 5685 /// block when the inputs in the phi are the same for the two blocks being 5686 /// merged. In some cases, this could result in removal of the PHI entirely. 5687 static bool TryToMergeLandingPad(LandingPadInst *LPad, BranchInst *BI, 5688 BasicBlock *BB) { 5689 auto Succ = BB->getUniqueSuccessor(); 5690 assert(Succ); 5691 // If there's a phi in the successor block, we'd likely have to introduce 5692 // a phi into the merged landing pad block. 5693 if (isa<PHINode>(*Succ->begin())) 5694 return false; 5695 5696 for (BasicBlock *OtherPred : predecessors(Succ)) { 5697 if (BB == OtherPred) 5698 continue; 5699 BasicBlock::iterator I = OtherPred->begin(); 5700 LandingPadInst *LPad2 = dyn_cast<LandingPadInst>(I); 5701 if (!LPad2 || !LPad2->isIdenticalTo(LPad)) 5702 continue; 5703 for (++I; isa<DbgInfoIntrinsic>(I); ++I) 5704 ; 5705 BranchInst *BI2 = dyn_cast<BranchInst>(I); 5706 if (!BI2 || !BI2->isIdenticalTo(BI)) 5707 continue; 5708 5709 // We've found an identical block. Update our predecessors to take that 5710 // path instead and make ourselves dead. 5711 SmallSet<BasicBlock *, 16> Preds; 5712 Preds.insert(pred_begin(BB), pred_end(BB)); 5713 for (BasicBlock *Pred : Preds) { 5714 InvokeInst *II = cast<InvokeInst>(Pred->getTerminator()); 5715 assert(II->getNormalDest() != BB && II->getUnwindDest() == BB && 5716 "unexpected successor"); 5717 II->setUnwindDest(OtherPred); 5718 } 5719 5720 // The debug info in OtherPred doesn't cover the merged control flow that 5721 // used to go through BB. We need to delete it or update it. 5722 for (auto I = OtherPred->begin(), E = OtherPred->end(); I != E;) { 5723 Instruction &Inst = *I; 5724 I++; 5725 if (isa<DbgInfoIntrinsic>(Inst)) 5726 Inst.eraseFromParent(); 5727 } 5728 5729 SmallSet<BasicBlock *, 16> Succs; 5730 Succs.insert(succ_begin(BB), succ_end(BB)); 5731 for (BasicBlock *Succ : Succs) { 5732 Succ->removePredecessor(BB); 5733 } 5734 5735 IRBuilder<> Builder(BI); 5736 Builder.CreateUnreachable(); 5737 BI->eraseFromParent(); 5738 return true; 5739 } 5740 return false; 5741 } 5742 5743 bool SimplifyCFGOpt::SimplifyUncondBranch(BranchInst *BI, 5744 IRBuilder<> &Builder) { 5745 BasicBlock *BB = BI->getParent(); 5746 BasicBlock *Succ = BI->getSuccessor(0); 5747 5748 // If the Terminator is the only non-phi instruction, simplify the block. 5749 // If LoopHeader is provided, check if the block or its successor is a loop 5750 // header. (This is for early invocations before loop simplify and 5751 // vectorization to keep canonical loop forms for nested loops. These blocks 5752 // can be eliminated when the pass is invoked later in the back-end.) 5753 // Note that if BB has only one predecessor then we do not introduce new 5754 // backedge, so we can eliminate BB. 5755 bool NeedCanonicalLoop = 5756 Options.NeedCanonicalLoop && 5757 (LoopHeaders && std::distance(pred_begin(BB), pred_end(BB)) > 1 && 5758 (LoopHeaders->count(BB) || LoopHeaders->count(Succ))); 5759 BasicBlock::iterator I = BB->getFirstNonPHIOrDbg()->getIterator(); 5760 if (I->isTerminator() && BB != &BB->getParent()->getEntryBlock() && 5761 !NeedCanonicalLoop && TryToSimplifyUncondBranchFromEmptyBlock(BB)) 5762 return true; 5763 5764 // If the only instruction in the block is a seteq/setne comparison against a 5765 // constant, try to simplify the block. 5766 if (ICmpInst *ICI = dyn_cast<ICmpInst>(I)) 5767 if (ICI->isEquality() && isa<ConstantInt>(ICI->getOperand(1))) { 5768 for (++I; isa<DbgInfoIntrinsic>(I); ++I) 5769 ; 5770 if (I->isTerminator() && 5771 tryToSimplifyUncondBranchWithICmpInIt(ICI, Builder, DL, TTI, Options)) 5772 return true; 5773 } 5774 5775 // See if we can merge an empty landing pad block with another which is 5776 // equivalent. 5777 if (LandingPadInst *LPad = dyn_cast<LandingPadInst>(I)) { 5778 for (++I; isa<DbgInfoIntrinsic>(I); ++I) 5779 ; 5780 if (I->isTerminator() && TryToMergeLandingPad(LPad, BI, BB)) 5781 return true; 5782 } 5783 5784 // If this basic block is ONLY a compare and a branch, and if a predecessor 5785 // branches to us and our successor, fold the comparison into the 5786 // predecessor and use logical operations to update the incoming value 5787 // for PHI nodes in common successor. 5788 if (FoldBranchToCommonDest(BI, Options.BonusInstThreshold)) 5789 return simplifyCFG(BB, TTI, Options) | true; 5790 return false; 5791 } 5792 5793 static BasicBlock *allPredecessorsComeFromSameSource(BasicBlock *BB) { 5794 BasicBlock *PredPred = nullptr; 5795 for (auto *P : predecessors(BB)) { 5796 BasicBlock *PPred = P->getSinglePredecessor(); 5797 if (!PPred || (PredPred && PredPred != PPred)) 5798 return nullptr; 5799 PredPred = PPred; 5800 } 5801 return PredPred; 5802 } 5803 5804 bool SimplifyCFGOpt::SimplifyCondBranch(BranchInst *BI, IRBuilder<> &Builder) { 5805 BasicBlock *BB = BI->getParent(); 5806 const Function *Fn = BB->getParent(); 5807 if (Fn && Fn->hasFnAttribute(Attribute::OptForFuzzing)) 5808 return false; 5809 5810 // Conditional branch 5811 if (isValueEqualityComparison(BI)) { 5812 // If we only have one predecessor, and if it is a branch on this value, 5813 // see if that predecessor totally determines the outcome of this 5814 // switch. 5815 if (BasicBlock *OnlyPred = BB->getSinglePredecessor()) 5816 if (SimplifyEqualityComparisonWithOnlyPredecessor(BI, OnlyPred, Builder)) 5817 return simplifyCFG(BB, TTI, Options) | true; 5818 5819 // This block must be empty, except for the setcond inst, if it exists. 5820 // Ignore dbg intrinsics. 5821 BasicBlock::iterator I = BB->begin(); 5822 // Ignore dbg intrinsics. 5823 while (isa<DbgInfoIntrinsic>(I)) 5824 ++I; 5825 if (&*I == BI) { 5826 if (FoldValueComparisonIntoPredecessors(BI, Builder)) 5827 return simplifyCFG(BB, TTI, Options) | true; 5828 } else if (&*I == cast<Instruction>(BI->getCondition())) { 5829 ++I; 5830 // Ignore dbg intrinsics. 5831 while (isa<DbgInfoIntrinsic>(I)) 5832 ++I; 5833 if (&*I == BI && FoldValueComparisonIntoPredecessors(BI, Builder)) 5834 return simplifyCFG(BB, TTI, Options) | true; 5835 } 5836 } 5837 5838 // Try to turn "br (X == 0 | X == 1), T, F" into a switch instruction. 5839 if (SimplifyBranchOnICmpChain(BI, Builder, DL)) 5840 return true; 5841 5842 // If this basic block has a single dominating predecessor block and the 5843 // dominating block's condition implies BI's condition, we know the direction 5844 // of the BI branch. 5845 if (BasicBlock *Dom = BB->getSinglePredecessor()) { 5846 auto *PBI = dyn_cast_or_null<BranchInst>(Dom->getTerminator()); 5847 if (PBI && PBI->isConditional() && 5848 PBI->getSuccessor(0) != PBI->getSuccessor(1)) { 5849 assert(PBI->getSuccessor(0) == BB || PBI->getSuccessor(1) == BB); 5850 bool CondIsTrue = PBI->getSuccessor(0) == BB; 5851 Optional<bool> Implication = isImpliedCondition( 5852 PBI->getCondition(), BI->getCondition(), DL, CondIsTrue); 5853 if (Implication) { 5854 // Turn this into a branch on constant. 5855 auto *OldCond = BI->getCondition(); 5856 ConstantInt *CI = *Implication 5857 ? ConstantInt::getTrue(BB->getContext()) 5858 : ConstantInt::getFalse(BB->getContext()); 5859 BI->setCondition(CI); 5860 RecursivelyDeleteTriviallyDeadInstructions(OldCond); 5861 return simplifyCFG(BB, TTI, Options) | true; 5862 } 5863 } 5864 } 5865 5866 // If this basic block is ONLY a compare and a branch, and if a predecessor 5867 // branches to us and one of our successors, fold the comparison into the 5868 // predecessor and use logical operations to pick the right destination. 5869 if (FoldBranchToCommonDest(BI, Options.BonusInstThreshold)) 5870 return simplifyCFG(BB, TTI, Options) | true; 5871 5872 // We have a conditional branch to two blocks that are only reachable 5873 // from BI. We know that the condbr dominates the two blocks, so see if 5874 // there is any identical code in the "then" and "else" blocks. If so, we 5875 // can hoist it up to the branching block. 5876 if (BI->getSuccessor(0)->getSinglePredecessor()) { 5877 if (BI->getSuccessor(1)->getSinglePredecessor()) { 5878 if (HoistThenElseCodeToIf(BI, TTI)) 5879 return simplifyCFG(BB, TTI, Options) | true; 5880 } else { 5881 // If Successor #1 has multiple preds, we may be able to conditionally 5882 // execute Successor #0 if it branches to Successor #1. 5883 TerminatorInst *Succ0TI = BI->getSuccessor(0)->getTerminator(); 5884 if (Succ0TI->getNumSuccessors() == 1 && 5885 Succ0TI->getSuccessor(0) == BI->getSuccessor(1)) 5886 if (SpeculativelyExecuteBB(BI, BI->getSuccessor(0), TTI)) 5887 return simplifyCFG(BB, TTI, Options) | true; 5888 } 5889 } else if (BI->getSuccessor(1)->getSinglePredecessor()) { 5890 // If Successor #0 has multiple preds, we may be able to conditionally 5891 // execute Successor #1 if it branches to Successor #0. 5892 TerminatorInst *Succ1TI = BI->getSuccessor(1)->getTerminator(); 5893 if (Succ1TI->getNumSuccessors() == 1 && 5894 Succ1TI->getSuccessor(0) == BI->getSuccessor(0)) 5895 if (SpeculativelyExecuteBB(BI, BI->getSuccessor(1), TTI)) 5896 return simplifyCFG(BB, TTI, Options) | true; 5897 } 5898 5899 // If this is a branch on a phi node in the current block, thread control 5900 // through this block if any PHI node entries are constants. 5901 if (PHINode *PN = dyn_cast<PHINode>(BI->getCondition())) 5902 if (PN->getParent() == BI->getParent()) 5903 if (FoldCondBranchOnPHI(BI, DL, Options.AC)) 5904 return simplifyCFG(BB, TTI, Options) | true; 5905 5906 // Scan predecessor blocks for conditional branches. 5907 for (pred_iterator PI = pred_begin(BB), E = pred_end(BB); PI != E; ++PI) 5908 if (BranchInst *PBI = dyn_cast<BranchInst>((*PI)->getTerminator())) 5909 if (PBI != BI && PBI->isConditional()) 5910 if (SimplifyCondBranchToCondBranch(PBI, BI, DL)) 5911 return simplifyCFG(BB, TTI, Options) | true; 5912 5913 // Look for diamond patterns. 5914 if (MergeCondStores) 5915 if (BasicBlock *PrevBB = allPredecessorsComeFromSameSource(BB)) 5916 if (BranchInst *PBI = dyn_cast<BranchInst>(PrevBB->getTerminator())) 5917 if (PBI != BI && PBI->isConditional()) 5918 if (mergeConditionalStores(PBI, BI, DL)) 5919 return simplifyCFG(BB, TTI, Options) | true; 5920 5921 return false; 5922 } 5923 5924 /// Check if passing a value to an instruction will cause undefined behavior. 5925 static bool passingValueIsAlwaysUndefined(Value *V, Instruction *I) { 5926 Constant *C = dyn_cast<Constant>(V); 5927 if (!C) 5928 return false; 5929 5930 if (I->use_empty()) 5931 return false; 5932 5933 if (C->isNullValue() || isa<UndefValue>(C)) { 5934 // Only look at the first use, avoid hurting compile time with long uselists 5935 User *Use = *I->user_begin(); 5936 5937 // Now make sure that there are no instructions in between that can alter 5938 // control flow (eg. calls) 5939 for (BasicBlock::iterator 5940 i = ++BasicBlock::iterator(I), 5941 UI = BasicBlock::iterator(dyn_cast<Instruction>(Use)); 5942 i != UI; ++i) 5943 if (i == I->getParent()->end() || i->mayHaveSideEffects()) 5944 return false; 5945 5946 // Look through GEPs. A load from a GEP derived from NULL is still undefined 5947 if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(Use)) 5948 if (GEP->getPointerOperand() == I) 5949 return passingValueIsAlwaysUndefined(V, GEP); 5950 5951 // Look through bitcasts. 5952 if (BitCastInst *BC = dyn_cast<BitCastInst>(Use)) 5953 return passingValueIsAlwaysUndefined(V, BC); 5954 5955 // Load from null is undefined. 5956 if (LoadInst *LI = dyn_cast<LoadInst>(Use)) 5957 if (!LI->isVolatile()) 5958 return LI->getPointerAddressSpace() == 0; 5959 5960 // Store to null is undefined. 5961 if (StoreInst *SI = dyn_cast<StoreInst>(Use)) 5962 if (!SI->isVolatile()) 5963 return SI->getPointerAddressSpace() == 0 && 5964 SI->getPointerOperand() == I; 5965 5966 // A call to null is undefined. 5967 if (auto CS = CallSite(Use)) 5968 return CS.getCalledValue() == I; 5969 } 5970 return false; 5971 } 5972 5973 /// If BB has an incoming value that will always trigger undefined behavior 5974 /// (eg. null pointer dereference), remove the branch leading here. 5975 static bool removeUndefIntroducingPredecessor(BasicBlock *BB) { 5976 for (PHINode &PHI : BB->phis()) 5977 for (unsigned i = 0, e = PHI.getNumIncomingValues(); i != e; ++i) 5978 if (passingValueIsAlwaysUndefined(PHI.getIncomingValue(i), &PHI)) { 5979 TerminatorInst *T = PHI.getIncomingBlock(i)->getTerminator(); 5980 IRBuilder<> Builder(T); 5981 if (BranchInst *BI = dyn_cast<BranchInst>(T)) { 5982 BB->removePredecessor(PHI.getIncomingBlock(i)); 5983 // Turn uncoditional branches into unreachables and remove the dead 5984 // destination from conditional branches. 5985 if (BI->isUnconditional()) 5986 Builder.CreateUnreachable(); 5987 else 5988 Builder.CreateBr(BI->getSuccessor(0) == BB ? BI->getSuccessor(1) 5989 : BI->getSuccessor(0)); 5990 BI->eraseFromParent(); 5991 return true; 5992 } 5993 // TODO: SwitchInst. 5994 } 5995 5996 return false; 5997 } 5998 5999 bool SimplifyCFGOpt::run(BasicBlock *BB) { 6000 bool Changed = false; 6001 6002 assert(BB && BB->getParent() && "Block not embedded in function!"); 6003 assert(BB->getTerminator() && "Degenerate basic block encountered!"); 6004 6005 // Remove basic blocks that have no predecessors (except the entry block)... 6006 // or that just have themself as a predecessor. These are unreachable. 6007 if ((pred_empty(BB) && BB != &BB->getParent()->getEntryBlock()) || 6008 BB->getSinglePredecessor() == BB) { 6009 DEBUG(dbgs() << "Removing BB: \n" << *BB); 6010 DeleteDeadBlock(BB); 6011 return true; 6012 } 6013 6014 // Check to see if we can constant propagate this terminator instruction 6015 // away... 6016 Changed |= ConstantFoldTerminator(BB, true); 6017 6018 // Check for and eliminate duplicate PHI nodes in this block. 6019 Changed |= EliminateDuplicatePHINodes(BB); 6020 6021 // Check for and remove branches that will always cause undefined behavior. 6022 Changed |= removeUndefIntroducingPredecessor(BB); 6023 6024 // Merge basic blocks into their predecessor if there is only one distinct 6025 // pred, and if there is only one distinct successor of the predecessor, and 6026 // if there are no PHI nodes. 6027 if (MergeBlockIntoPredecessor(BB)) 6028 return true; 6029 6030 if (SinkCommon && Options.SinkCommonInsts) 6031 Changed |= SinkCommonCodeFromPredecessors(BB); 6032 6033 IRBuilder<> Builder(BB); 6034 6035 // If there is a trivial two-entry PHI node in this basic block, and we can 6036 // eliminate it, do so now. 6037 if (auto *PN = dyn_cast<PHINode>(BB->begin())) 6038 if (PN->getNumIncomingValues() == 2) 6039 Changed |= FoldTwoEntryPHINode(PN, TTI, DL); 6040 6041 Builder.SetInsertPoint(BB->getTerminator()); 6042 if (auto *BI = dyn_cast<BranchInst>(BB->getTerminator())) { 6043 if (BI->isUnconditional()) { 6044 if (SimplifyUncondBranch(BI, Builder)) 6045 return true; 6046 } else { 6047 if (SimplifyCondBranch(BI, Builder)) 6048 return true; 6049 } 6050 } else if (auto *RI = dyn_cast<ReturnInst>(BB->getTerminator())) { 6051 if (SimplifyReturn(RI, Builder)) 6052 return true; 6053 } else if (auto *RI = dyn_cast<ResumeInst>(BB->getTerminator())) { 6054 if (SimplifyResume(RI, Builder)) 6055 return true; 6056 } else if (auto *RI = dyn_cast<CleanupReturnInst>(BB->getTerminator())) { 6057 if (SimplifyCleanupReturn(RI)) 6058 return true; 6059 } else if (auto *SI = dyn_cast<SwitchInst>(BB->getTerminator())) { 6060 if (SimplifySwitch(SI, Builder)) 6061 return true; 6062 } else if (auto *UI = dyn_cast<UnreachableInst>(BB->getTerminator())) { 6063 if (SimplifyUnreachable(UI)) 6064 return true; 6065 } else if (auto *IBI = dyn_cast<IndirectBrInst>(BB->getTerminator())) { 6066 if (SimplifyIndirectBr(IBI)) 6067 return true; 6068 } 6069 6070 return Changed; 6071 } 6072 6073 bool llvm::simplifyCFG(BasicBlock *BB, const TargetTransformInfo &TTI, 6074 const SimplifyCFGOptions &Options, 6075 SmallPtrSetImpl<BasicBlock *> *LoopHeaders) { 6076 return SimplifyCFGOpt(TTI, BB->getModule()->getDataLayout(), LoopHeaders, 6077 Options) 6078 .run(BB); 6079 } 6080