1 //===-- SelectionDAGISel.cpp - Implement the SelectionDAGISel class -------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This implements the SelectionDAGISel class. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/CodeGen/SelectionDAGISel.h" 15 #include "ScheduleDAGSDNodes.h" 16 #include "SelectionDAGBuilder.h" 17 #include "llvm/ADT/PostOrderIterator.h" 18 #include "llvm/ADT/Statistic.h" 19 #include "llvm/Analysis/AliasAnalysis.h" 20 #include "llvm/Analysis/BranchProbabilityInfo.h" 21 #include "llvm/Analysis/CFG.h" 22 #include "llvm/CodeGen/FastISel.h" 23 #include "llvm/CodeGen/FunctionLoweringInfo.h" 24 #include "llvm/CodeGen/GCMetadata.h" 25 #include "llvm/CodeGen/GCStrategy.h" 26 #include "llvm/CodeGen/MachineFrameInfo.h" 27 #include "llvm/CodeGen/MachineFunction.h" 28 #include "llvm/CodeGen/MachineInstrBuilder.h" 29 #include "llvm/CodeGen/MachineModuleInfo.h" 30 #include "llvm/CodeGen/MachineRegisterInfo.h" 31 #include "llvm/CodeGen/ScheduleHazardRecognizer.h" 32 #include "llvm/CodeGen/SchedulerRegistry.h" 33 #include "llvm/CodeGen/SelectionDAG.h" 34 #include "llvm/IR/Constants.h" 35 #include "llvm/IR/DebugInfo.h" 36 #include "llvm/IR/Function.h" 37 #include "llvm/IR/InlineAsm.h" 38 #include "llvm/IR/Instructions.h" 39 #include "llvm/IR/IntrinsicInst.h" 40 #include "llvm/IR/Intrinsics.h" 41 #include "llvm/IR/LLVMContext.h" 42 #include "llvm/IR/Module.h" 43 #include "llvm/Support/Compiler.h" 44 #include "llvm/Support/Debug.h" 45 #include "llvm/Support/ErrorHandling.h" 46 #include "llvm/Support/Timer.h" 47 #include "llvm/Support/raw_ostream.h" 48 #include "llvm/Target/TargetInstrInfo.h" 49 #include "llvm/Target/TargetIntrinsicInfo.h" 50 #include "llvm/Target/TargetLibraryInfo.h" 51 #include "llvm/Target/TargetLowering.h" 52 #include "llvm/Target/TargetMachine.h" 53 #include "llvm/Target/TargetOptions.h" 54 #include "llvm/Target/TargetRegisterInfo.h" 55 #include "llvm/Target/TargetSubtargetInfo.h" 56 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 57 #include <algorithm> 58 using namespace llvm; 59 60 #define DEBUG_TYPE "isel" 61 62 STATISTIC(NumFastIselFailures, "Number of instructions fast isel failed on"); 63 STATISTIC(NumFastIselSuccess, "Number of instructions fast isel selected"); 64 STATISTIC(NumFastIselBlocks, "Number of blocks selected entirely by fast isel"); 65 STATISTIC(NumDAGBlocks, "Number of blocks selected using DAG"); 66 STATISTIC(NumDAGIselRetries,"Number of times dag isel has to try another path"); 67 STATISTIC(NumEntryBlocks, "Number of entry blocks encountered"); 68 STATISTIC(NumFastIselFailLowerArguments, 69 "Number of entry blocks where fast isel failed to lower arguments"); 70 71 #ifndef NDEBUG 72 static cl::opt<bool> 73 EnableFastISelVerbose2("fast-isel-verbose2", cl::Hidden, 74 cl::desc("Enable extra verbose messages in the \"fast\" " 75 "instruction selector")); 76 77 // Terminators 78 STATISTIC(NumFastIselFailRet,"Fast isel fails on Ret"); 79 STATISTIC(NumFastIselFailBr,"Fast isel fails on Br"); 80 STATISTIC(NumFastIselFailSwitch,"Fast isel fails on Switch"); 81 STATISTIC(NumFastIselFailIndirectBr,"Fast isel fails on IndirectBr"); 82 STATISTIC(NumFastIselFailInvoke,"Fast isel fails on Invoke"); 83 STATISTIC(NumFastIselFailResume,"Fast isel fails on Resume"); 84 STATISTIC(NumFastIselFailUnreachable,"Fast isel fails on Unreachable"); 85 86 // Standard binary operators... 87 STATISTIC(NumFastIselFailAdd,"Fast isel fails on Add"); 88 STATISTIC(NumFastIselFailFAdd,"Fast isel fails on FAdd"); 89 STATISTIC(NumFastIselFailSub,"Fast isel fails on Sub"); 90 STATISTIC(NumFastIselFailFSub,"Fast isel fails on FSub"); 91 STATISTIC(NumFastIselFailMul,"Fast isel fails on Mul"); 92 STATISTIC(NumFastIselFailFMul,"Fast isel fails on FMul"); 93 STATISTIC(NumFastIselFailUDiv,"Fast isel fails on UDiv"); 94 STATISTIC(NumFastIselFailSDiv,"Fast isel fails on SDiv"); 95 STATISTIC(NumFastIselFailFDiv,"Fast isel fails on FDiv"); 96 STATISTIC(NumFastIselFailURem,"Fast isel fails on URem"); 97 STATISTIC(NumFastIselFailSRem,"Fast isel fails on SRem"); 98 STATISTIC(NumFastIselFailFRem,"Fast isel fails on FRem"); 99 100 // Logical operators... 101 STATISTIC(NumFastIselFailAnd,"Fast isel fails on And"); 102 STATISTIC(NumFastIselFailOr,"Fast isel fails on Or"); 103 STATISTIC(NumFastIselFailXor,"Fast isel fails on Xor"); 104 105 // Memory instructions... 106 STATISTIC(NumFastIselFailAlloca,"Fast isel fails on Alloca"); 107 STATISTIC(NumFastIselFailLoad,"Fast isel fails on Load"); 108 STATISTIC(NumFastIselFailStore,"Fast isel fails on Store"); 109 STATISTIC(NumFastIselFailAtomicCmpXchg,"Fast isel fails on AtomicCmpXchg"); 110 STATISTIC(NumFastIselFailAtomicRMW,"Fast isel fails on AtomicRWM"); 111 STATISTIC(NumFastIselFailFence,"Fast isel fails on Frence"); 112 STATISTIC(NumFastIselFailGetElementPtr,"Fast isel fails on GetElementPtr"); 113 114 // Convert instructions... 115 STATISTIC(NumFastIselFailTrunc,"Fast isel fails on Trunc"); 116 STATISTIC(NumFastIselFailZExt,"Fast isel fails on ZExt"); 117 STATISTIC(NumFastIselFailSExt,"Fast isel fails on SExt"); 118 STATISTIC(NumFastIselFailFPTrunc,"Fast isel fails on FPTrunc"); 119 STATISTIC(NumFastIselFailFPExt,"Fast isel fails on FPExt"); 120 STATISTIC(NumFastIselFailFPToUI,"Fast isel fails on FPToUI"); 121 STATISTIC(NumFastIselFailFPToSI,"Fast isel fails on FPToSI"); 122 STATISTIC(NumFastIselFailUIToFP,"Fast isel fails on UIToFP"); 123 STATISTIC(NumFastIselFailSIToFP,"Fast isel fails on SIToFP"); 124 STATISTIC(NumFastIselFailIntToPtr,"Fast isel fails on IntToPtr"); 125 STATISTIC(NumFastIselFailPtrToInt,"Fast isel fails on PtrToInt"); 126 STATISTIC(NumFastIselFailBitCast,"Fast isel fails on BitCast"); 127 128 // Other instructions... 129 STATISTIC(NumFastIselFailICmp,"Fast isel fails on ICmp"); 130 STATISTIC(NumFastIselFailFCmp,"Fast isel fails on FCmp"); 131 STATISTIC(NumFastIselFailPHI,"Fast isel fails on PHI"); 132 STATISTIC(NumFastIselFailSelect,"Fast isel fails on Select"); 133 STATISTIC(NumFastIselFailCall,"Fast isel fails on Call"); 134 STATISTIC(NumFastIselFailShl,"Fast isel fails on Shl"); 135 STATISTIC(NumFastIselFailLShr,"Fast isel fails on LShr"); 136 STATISTIC(NumFastIselFailAShr,"Fast isel fails on AShr"); 137 STATISTIC(NumFastIselFailVAArg,"Fast isel fails on VAArg"); 138 STATISTIC(NumFastIselFailExtractElement,"Fast isel fails on ExtractElement"); 139 STATISTIC(NumFastIselFailInsertElement,"Fast isel fails on InsertElement"); 140 STATISTIC(NumFastIselFailShuffleVector,"Fast isel fails on ShuffleVector"); 141 STATISTIC(NumFastIselFailExtractValue,"Fast isel fails on ExtractValue"); 142 STATISTIC(NumFastIselFailInsertValue,"Fast isel fails on InsertValue"); 143 STATISTIC(NumFastIselFailLandingPad,"Fast isel fails on LandingPad"); 144 145 // Intrinsic instructions... 146 STATISTIC(NumFastIselFailIntrinsicCall, "Fast isel fails on Intrinsic call"); 147 STATISTIC(NumFastIselFailSAddWithOverflow, 148 "Fast isel fails on sadd.with.overflow"); 149 STATISTIC(NumFastIselFailUAddWithOverflow, 150 "Fast isel fails on uadd.with.overflow"); 151 STATISTIC(NumFastIselFailSSubWithOverflow, 152 "Fast isel fails on ssub.with.overflow"); 153 STATISTIC(NumFastIselFailUSubWithOverflow, 154 "Fast isel fails on usub.with.overflow"); 155 STATISTIC(NumFastIselFailSMulWithOverflow, 156 "Fast isel fails on smul.with.overflow"); 157 STATISTIC(NumFastIselFailUMulWithOverflow, 158 "Fast isel fails on umul.with.overflow"); 159 STATISTIC(NumFastIselFailFrameaddress, "Fast isel fails on Frameaddress"); 160 STATISTIC(NumFastIselFailSqrt, "Fast isel fails on sqrt call"); 161 STATISTIC(NumFastIselFailStackMap, "Fast isel fails on StackMap call"); 162 STATISTIC(NumFastIselFailPatchPoint, "Fast isel fails on PatchPoint call"); 163 #endif 164 165 static cl::opt<bool> 166 EnableFastISelVerbose("fast-isel-verbose", cl::Hidden, 167 cl::desc("Enable verbose messages in the \"fast\" " 168 "instruction selector")); 169 static cl::opt<bool> 170 EnableFastISelAbort("fast-isel-abort", cl::Hidden, 171 cl::desc("Enable abort calls when \"fast\" instruction selection " 172 "fails to lower an instruction")); 173 static cl::opt<bool> 174 EnableFastISelAbortArgs("fast-isel-abort-args", cl::Hidden, 175 cl::desc("Enable abort calls when \"fast\" instruction selection " 176 "fails to lower a formal argument")); 177 178 static cl::opt<bool> 179 UseMBPI("use-mbpi", 180 cl::desc("use Machine Branch Probability Info"), 181 cl::init(true), cl::Hidden); 182 183 #ifndef NDEBUG 184 static cl::opt<bool> 185 ViewDAGCombine1("view-dag-combine1-dags", cl::Hidden, 186 cl::desc("Pop up a window to show dags before the first " 187 "dag combine pass")); 188 static cl::opt<bool> 189 ViewLegalizeTypesDAGs("view-legalize-types-dags", cl::Hidden, 190 cl::desc("Pop up a window to show dags before legalize types")); 191 static cl::opt<bool> 192 ViewLegalizeDAGs("view-legalize-dags", cl::Hidden, 193 cl::desc("Pop up a window to show dags before legalize")); 194 static cl::opt<bool> 195 ViewDAGCombine2("view-dag-combine2-dags", cl::Hidden, 196 cl::desc("Pop up a window to show dags before the second " 197 "dag combine pass")); 198 static cl::opt<bool> 199 ViewDAGCombineLT("view-dag-combine-lt-dags", cl::Hidden, 200 cl::desc("Pop up a window to show dags before the post legalize types" 201 " dag combine pass")); 202 static cl::opt<bool> 203 ViewISelDAGs("view-isel-dags", cl::Hidden, 204 cl::desc("Pop up a window to show isel dags as they are selected")); 205 static cl::opt<bool> 206 ViewSchedDAGs("view-sched-dags", cl::Hidden, 207 cl::desc("Pop up a window to show sched dags as they are processed")); 208 static cl::opt<bool> 209 ViewSUnitDAGs("view-sunit-dags", cl::Hidden, 210 cl::desc("Pop up a window to show SUnit dags after they are processed")); 211 #else 212 static const bool ViewDAGCombine1 = false, 213 ViewLegalizeTypesDAGs = false, ViewLegalizeDAGs = false, 214 ViewDAGCombine2 = false, 215 ViewDAGCombineLT = false, 216 ViewISelDAGs = false, ViewSchedDAGs = false, 217 ViewSUnitDAGs = false; 218 #endif 219 220 //===---------------------------------------------------------------------===// 221 /// 222 /// RegisterScheduler class - Track the registration of instruction schedulers. 223 /// 224 //===---------------------------------------------------------------------===// 225 MachinePassRegistry RegisterScheduler::Registry; 226 227 //===---------------------------------------------------------------------===// 228 /// 229 /// ISHeuristic command line option for instruction schedulers. 230 /// 231 //===---------------------------------------------------------------------===// 232 static cl::opt<RegisterScheduler::FunctionPassCtor, false, 233 RegisterPassParser<RegisterScheduler> > 234 ISHeuristic("pre-RA-sched", 235 cl::init(&createDefaultScheduler), cl::Hidden, 236 cl::desc("Instruction schedulers available (before register" 237 " allocation):")); 238 239 static RegisterScheduler 240 defaultListDAGScheduler("default", "Best scheduler for the target", 241 createDefaultScheduler); 242 243 namespace llvm { 244 //===--------------------------------------------------------------------===// 245 /// \brief This class is used by SelectionDAGISel to temporarily override 246 /// the optimization level on a per-function basis. 247 class OptLevelChanger { 248 SelectionDAGISel &IS; 249 CodeGenOpt::Level SavedOptLevel; 250 bool SavedFastISel; 251 252 public: 253 OptLevelChanger(SelectionDAGISel &ISel, 254 CodeGenOpt::Level NewOptLevel) : IS(ISel) { 255 SavedOptLevel = IS.OptLevel; 256 if (NewOptLevel == SavedOptLevel) 257 return; 258 IS.OptLevel = NewOptLevel; 259 IS.TM.setOptLevel(NewOptLevel); 260 SavedFastISel = IS.TM.Options.EnableFastISel; 261 if (NewOptLevel == CodeGenOpt::None) 262 IS.TM.setFastISel(true); 263 DEBUG(dbgs() << "\nChanging optimization level for Function " 264 << IS.MF->getFunction()->getName() << "\n"); 265 DEBUG(dbgs() << "\tBefore: -O" << SavedOptLevel 266 << " ; After: -O" << NewOptLevel << "\n"); 267 } 268 269 ~OptLevelChanger() { 270 if (IS.OptLevel == SavedOptLevel) 271 return; 272 DEBUG(dbgs() << "\nRestoring optimization level for Function " 273 << IS.MF->getFunction()->getName() << "\n"); 274 DEBUG(dbgs() << "\tBefore: -O" << IS.OptLevel 275 << " ; After: -O" << SavedOptLevel << "\n"); 276 IS.OptLevel = SavedOptLevel; 277 IS.TM.setOptLevel(SavedOptLevel); 278 IS.TM.setFastISel(SavedFastISel); 279 } 280 }; 281 282 //===--------------------------------------------------------------------===// 283 /// createDefaultScheduler - This creates an instruction scheduler appropriate 284 /// for the target. 285 ScheduleDAGSDNodes* createDefaultScheduler(SelectionDAGISel *IS, 286 CodeGenOpt::Level OptLevel) { 287 const TargetLowering *TLI = IS->getTargetLowering(); 288 const TargetSubtargetInfo &ST = IS->TM.getSubtarget<TargetSubtargetInfo>(); 289 290 if (OptLevel == CodeGenOpt::None || ST.useMachineScheduler() || 291 TLI->getSchedulingPreference() == Sched::Source) 292 return createSourceListDAGScheduler(IS, OptLevel); 293 if (TLI->getSchedulingPreference() == Sched::RegPressure) 294 return createBURRListDAGScheduler(IS, OptLevel); 295 if (TLI->getSchedulingPreference() == Sched::Hybrid) 296 return createHybridListDAGScheduler(IS, OptLevel); 297 if (TLI->getSchedulingPreference() == Sched::VLIW) 298 return createVLIWDAGScheduler(IS, OptLevel); 299 assert(TLI->getSchedulingPreference() == Sched::ILP && 300 "Unknown sched type!"); 301 return createILPListDAGScheduler(IS, OptLevel); 302 } 303 } 304 305 // EmitInstrWithCustomInserter - This method should be implemented by targets 306 // that mark instructions with the 'usesCustomInserter' flag. These 307 // instructions are special in various ways, which require special support to 308 // insert. The specified MachineInstr is created but not inserted into any 309 // basic blocks, and this method is called to expand it into a sequence of 310 // instructions, potentially also creating new basic blocks and control flow. 311 // When new basic blocks are inserted and the edges from MBB to its successors 312 // are modified, the method should insert pairs of <OldSucc, NewSucc> into the 313 // DenseMap. 314 MachineBasicBlock * 315 TargetLowering::EmitInstrWithCustomInserter(MachineInstr *MI, 316 MachineBasicBlock *MBB) const { 317 #ifndef NDEBUG 318 dbgs() << "If a target marks an instruction with " 319 "'usesCustomInserter', it must implement " 320 "TargetLowering::EmitInstrWithCustomInserter!"; 321 #endif 322 llvm_unreachable(nullptr); 323 } 324 325 void TargetLowering::AdjustInstrPostInstrSelection(MachineInstr *MI, 326 SDNode *Node) const { 327 assert(!MI->hasPostISelHook() && 328 "If a target marks an instruction with 'hasPostISelHook', " 329 "it must implement TargetLowering::AdjustInstrPostInstrSelection!"); 330 } 331 332 //===----------------------------------------------------------------------===// 333 // SelectionDAGISel code 334 //===----------------------------------------------------------------------===// 335 336 SelectionDAGISel::SelectionDAGISel(TargetMachine &tm, 337 CodeGenOpt::Level OL) : 338 MachineFunctionPass(ID), TM(tm), 339 FuncInfo(new FunctionLoweringInfo(TM)), 340 CurDAG(new SelectionDAG(tm, OL)), 341 SDB(new SelectionDAGBuilder(*CurDAG, *FuncInfo, OL)), 342 GFI(), 343 OptLevel(OL), 344 DAGSize(0) { 345 initializeGCModuleInfoPass(*PassRegistry::getPassRegistry()); 346 initializeAliasAnalysisAnalysisGroup(*PassRegistry::getPassRegistry()); 347 initializeBranchProbabilityInfoPass(*PassRegistry::getPassRegistry()); 348 initializeTargetLibraryInfoPass(*PassRegistry::getPassRegistry()); 349 } 350 351 SelectionDAGISel::~SelectionDAGISel() { 352 delete SDB; 353 delete CurDAG; 354 delete FuncInfo; 355 } 356 357 void SelectionDAGISel::getAnalysisUsage(AnalysisUsage &AU) const { 358 AU.addRequired<AliasAnalysis>(); 359 AU.addPreserved<AliasAnalysis>(); 360 AU.addRequired<GCModuleInfo>(); 361 AU.addPreserved<GCModuleInfo>(); 362 AU.addRequired<TargetLibraryInfo>(); 363 if (UseMBPI && OptLevel != CodeGenOpt::None) 364 AU.addRequired<BranchProbabilityInfo>(); 365 MachineFunctionPass::getAnalysisUsage(AU); 366 } 367 368 /// SplitCriticalSideEffectEdges - Look for critical edges with a PHI value that 369 /// may trap on it. In this case we have to split the edge so that the path 370 /// through the predecessor block that doesn't go to the phi block doesn't 371 /// execute the possibly trapping instruction. 372 /// 373 /// This is required for correctness, so it must be done at -O0. 374 /// 375 static void SplitCriticalSideEffectEdges(Function &Fn, Pass *SDISel) { 376 // Loop for blocks with phi nodes. 377 for (Function::iterator BB = Fn.begin(), E = Fn.end(); BB != E; ++BB) { 378 PHINode *PN = dyn_cast<PHINode>(BB->begin()); 379 if (!PN) continue; 380 381 ReprocessBlock: 382 // For each block with a PHI node, check to see if any of the input values 383 // are potentially trapping constant expressions. Constant expressions are 384 // the only potentially trapping value that can occur as the argument to a 385 // PHI. 386 for (BasicBlock::iterator I = BB->begin(); (PN = dyn_cast<PHINode>(I)); ++I) 387 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i) { 388 ConstantExpr *CE = dyn_cast<ConstantExpr>(PN->getIncomingValue(i)); 389 if (!CE || !CE->canTrap()) continue; 390 391 // The only case we have to worry about is when the edge is critical. 392 // Since this block has a PHI Node, we assume it has multiple input 393 // edges: check to see if the pred has multiple successors. 394 BasicBlock *Pred = PN->getIncomingBlock(i); 395 if (Pred->getTerminator()->getNumSuccessors() == 1) 396 continue; 397 398 // Okay, we have to split this edge. 399 SplitCriticalEdge(Pred->getTerminator(), 400 GetSuccessorNumber(Pred, BB), SDISel, true); 401 goto ReprocessBlock; 402 } 403 } 404 } 405 406 bool SelectionDAGISel::runOnMachineFunction(MachineFunction &mf) { 407 // Do some sanity-checking on the command-line options. 408 assert((!EnableFastISelVerbose || TM.Options.EnableFastISel) && 409 "-fast-isel-verbose requires -fast-isel"); 410 assert((!EnableFastISelAbort || TM.Options.EnableFastISel) && 411 "-fast-isel-abort requires -fast-isel"); 412 413 const Function &Fn = *mf.getFunction(); 414 const TargetInstrInfo &TII = *TM.getSubtargetImpl()->getInstrInfo(); 415 const TargetRegisterInfo &TRI = *TM.getSubtargetImpl()->getRegisterInfo(); 416 const TargetLowering *TLI = TM.getSubtargetImpl()->getTargetLowering(); 417 418 MF = &mf; 419 RegInfo = &MF->getRegInfo(); 420 AA = &getAnalysis<AliasAnalysis>(); 421 LibInfo = &getAnalysis<TargetLibraryInfo>(); 422 GFI = Fn.hasGC() ? &getAnalysis<GCModuleInfo>().getFunctionInfo(Fn) : nullptr; 423 424 TM.resetTargetOptions(Fn); 425 426 // Reset OptLevel to None for optnone functions. 427 CodeGenOpt::Level NewOptLevel = OptLevel; 428 if (Fn.hasFnAttribute(Attribute::OptimizeNone)) 429 NewOptLevel = CodeGenOpt::None; 430 OptLevelChanger OLC(*this, NewOptLevel); 431 432 DEBUG(dbgs() << "\n\n\n=== " << Fn.getName() << "\n"); 433 434 SplitCriticalSideEffectEdges(const_cast<Function&>(Fn), this); 435 436 CurDAG->init(*MF, TLI); 437 FuncInfo->set(Fn, *MF, CurDAG); 438 439 if (UseMBPI && OptLevel != CodeGenOpt::None) 440 FuncInfo->BPI = &getAnalysis<BranchProbabilityInfo>(); 441 else 442 FuncInfo->BPI = nullptr; 443 444 SDB->init(GFI, *AA, LibInfo); 445 446 MF->setHasInlineAsm(false); 447 448 SelectAllBasicBlocks(Fn); 449 450 // If the first basic block in the function has live ins that need to be 451 // copied into vregs, emit the copies into the top of the block before 452 // emitting the code for the block. 453 MachineBasicBlock *EntryMBB = MF->begin(); 454 RegInfo->EmitLiveInCopies(EntryMBB, TRI, TII); 455 456 DenseMap<unsigned, unsigned> LiveInMap; 457 if (!FuncInfo->ArgDbgValues.empty()) 458 for (MachineRegisterInfo::livein_iterator LI = RegInfo->livein_begin(), 459 E = RegInfo->livein_end(); LI != E; ++LI) 460 if (LI->second) 461 LiveInMap.insert(std::make_pair(LI->first, LI->second)); 462 463 // Insert DBG_VALUE instructions for function arguments to the entry block. 464 for (unsigned i = 0, e = FuncInfo->ArgDbgValues.size(); i != e; ++i) { 465 MachineInstr *MI = FuncInfo->ArgDbgValues[e-i-1]; 466 bool hasFI = MI->getOperand(0).isFI(); 467 unsigned Reg = 468 hasFI ? TRI.getFrameRegister(*MF) : MI->getOperand(0).getReg(); 469 if (TargetRegisterInfo::isPhysicalRegister(Reg)) 470 EntryMBB->insert(EntryMBB->begin(), MI); 471 else { 472 MachineInstr *Def = RegInfo->getVRegDef(Reg); 473 if (Def) { 474 MachineBasicBlock::iterator InsertPos = Def; 475 // FIXME: VR def may not be in entry block. 476 Def->getParent()->insert(std::next(InsertPos), MI); 477 } else 478 DEBUG(dbgs() << "Dropping debug info for dead vreg" 479 << TargetRegisterInfo::virtReg2Index(Reg) << "\n"); 480 } 481 482 // If Reg is live-in then update debug info to track its copy in a vreg. 483 DenseMap<unsigned, unsigned>::iterator LDI = LiveInMap.find(Reg); 484 if (LDI != LiveInMap.end()) { 485 assert(!hasFI && "There's no handling of frame pointer updating here yet " 486 "- add if needed"); 487 MachineInstr *Def = RegInfo->getVRegDef(LDI->second); 488 MachineBasicBlock::iterator InsertPos = Def; 489 const MDNode *Variable = MI->getDebugVariable(); 490 const MDNode *Expr = MI->getDebugExpression(); 491 bool IsIndirect = MI->isIndirectDebugValue(); 492 unsigned Offset = IsIndirect ? MI->getOperand(1).getImm() : 0; 493 // Def is never a terminator here, so it is ok to increment InsertPos. 494 BuildMI(*EntryMBB, ++InsertPos, MI->getDebugLoc(), 495 TII.get(TargetOpcode::DBG_VALUE), IsIndirect, LDI->second, Offset, 496 Variable, Expr); 497 498 // If this vreg is directly copied into an exported register then 499 // that COPY instructions also need DBG_VALUE, if it is the only 500 // user of LDI->second. 501 MachineInstr *CopyUseMI = nullptr; 502 for (MachineRegisterInfo::use_instr_iterator 503 UI = RegInfo->use_instr_begin(LDI->second), 504 E = RegInfo->use_instr_end(); UI != E; ) { 505 MachineInstr *UseMI = &*(UI++); 506 if (UseMI->isDebugValue()) continue; 507 if (UseMI->isCopy() && !CopyUseMI && UseMI->getParent() == EntryMBB) { 508 CopyUseMI = UseMI; continue; 509 } 510 // Otherwise this is another use or second copy use. 511 CopyUseMI = nullptr; break; 512 } 513 if (CopyUseMI) { 514 MachineInstr *NewMI = 515 BuildMI(*MF, CopyUseMI->getDebugLoc(), 516 TII.get(TargetOpcode::DBG_VALUE), IsIndirect, 517 CopyUseMI->getOperand(0).getReg(), Offset, Variable, Expr); 518 MachineBasicBlock::iterator Pos = CopyUseMI; 519 EntryMBB->insertAfter(Pos, NewMI); 520 } 521 } 522 } 523 524 // Determine if there are any calls in this machine function. 525 MachineFrameInfo *MFI = MF->getFrameInfo(); 526 for (const auto &MBB : *MF) { 527 if (MFI->hasCalls() && MF->hasInlineAsm()) 528 break; 529 530 for (const auto &MI : MBB) { 531 const MCInstrDesc &MCID = 532 TM.getSubtargetImpl()->getInstrInfo()->get(MI.getOpcode()); 533 if ((MCID.isCall() && !MCID.isReturn()) || 534 MI.isStackAligningInlineAsm()) { 535 MFI->setHasCalls(true); 536 } 537 if (MI.isInlineAsm()) { 538 MF->setHasInlineAsm(true); 539 } 540 } 541 } 542 543 // Determine if there is a call to setjmp in the machine function. 544 MF->setExposesReturnsTwice(Fn.callsFunctionThatReturnsTwice()); 545 546 // Replace forward-declared registers with the registers containing 547 // the desired value. 548 MachineRegisterInfo &MRI = MF->getRegInfo(); 549 for (DenseMap<unsigned, unsigned>::iterator 550 I = FuncInfo->RegFixups.begin(), E = FuncInfo->RegFixups.end(); 551 I != E; ++I) { 552 unsigned From = I->first; 553 unsigned To = I->second; 554 // If To is also scheduled to be replaced, find what its ultimate 555 // replacement is. 556 for (;;) { 557 DenseMap<unsigned, unsigned>::iterator J = FuncInfo->RegFixups.find(To); 558 if (J == E) break; 559 To = J->second; 560 } 561 // Make sure the new register has a sufficiently constrained register class. 562 if (TargetRegisterInfo::isVirtualRegister(From) && 563 TargetRegisterInfo::isVirtualRegister(To)) 564 MRI.constrainRegClass(To, MRI.getRegClass(From)); 565 // Replace it. 566 MRI.replaceRegWith(From, To); 567 } 568 569 // Freeze the set of reserved registers now that MachineFrameInfo has been 570 // set up. All the information required by getReservedRegs() should be 571 // available now. 572 MRI.freezeReservedRegs(*MF); 573 574 // Release function-specific state. SDB and CurDAG are already cleared 575 // at this point. 576 FuncInfo->clear(); 577 578 DEBUG(dbgs() << "*** MachineFunction at end of ISel ***\n"); 579 DEBUG(MF->print(dbgs())); 580 581 return true; 582 } 583 584 void SelectionDAGISel::SelectBasicBlock(BasicBlock::const_iterator Begin, 585 BasicBlock::const_iterator End, 586 bool &HadTailCall) { 587 // Lower all of the non-terminator instructions. If a call is emitted 588 // as a tail call, cease emitting nodes for this block. Terminators 589 // are handled below. 590 for (BasicBlock::const_iterator I = Begin; I != End && !SDB->HasTailCall; ++I) 591 SDB->visit(*I); 592 593 // Make sure the root of the DAG is up-to-date. 594 CurDAG->setRoot(SDB->getControlRoot()); 595 HadTailCall = SDB->HasTailCall; 596 SDB->clear(); 597 598 // Final step, emit the lowered DAG as machine code. 599 CodeGenAndEmitDAG(); 600 } 601 602 void SelectionDAGISel::ComputeLiveOutVRegInfo() { 603 SmallPtrSet<SDNode*, 128> VisitedNodes; 604 SmallVector<SDNode*, 128> Worklist; 605 606 Worklist.push_back(CurDAG->getRoot().getNode()); 607 608 APInt KnownZero; 609 APInt KnownOne; 610 611 do { 612 SDNode *N = Worklist.pop_back_val(); 613 614 // If we've already seen this node, ignore it. 615 if (!VisitedNodes.insert(N)) 616 continue; 617 618 // Otherwise, add all chain operands to the worklist. 619 for (unsigned i = 0, e = N->getNumOperands(); i != e; ++i) 620 if (N->getOperand(i).getValueType() == MVT::Other) 621 Worklist.push_back(N->getOperand(i).getNode()); 622 623 // If this is a CopyToReg with a vreg dest, process it. 624 if (N->getOpcode() != ISD::CopyToReg) 625 continue; 626 627 unsigned DestReg = cast<RegisterSDNode>(N->getOperand(1))->getReg(); 628 if (!TargetRegisterInfo::isVirtualRegister(DestReg)) 629 continue; 630 631 // Ignore non-scalar or non-integer values. 632 SDValue Src = N->getOperand(2); 633 EVT SrcVT = Src.getValueType(); 634 if (!SrcVT.isInteger() || SrcVT.isVector()) 635 continue; 636 637 unsigned NumSignBits = CurDAG->ComputeNumSignBits(Src); 638 CurDAG->computeKnownBits(Src, KnownZero, KnownOne); 639 FuncInfo->AddLiveOutRegInfo(DestReg, NumSignBits, KnownZero, KnownOne); 640 } while (!Worklist.empty()); 641 } 642 643 void SelectionDAGISel::CodeGenAndEmitDAG() { 644 std::string GroupName; 645 if (TimePassesIsEnabled) 646 GroupName = "Instruction Selection and Scheduling"; 647 std::string BlockName; 648 int BlockNumber = -1; 649 (void)BlockNumber; 650 #ifdef NDEBUG 651 if (ViewDAGCombine1 || ViewLegalizeTypesDAGs || ViewLegalizeDAGs || 652 ViewDAGCombine2 || ViewDAGCombineLT || ViewISelDAGs || ViewSchedDAGs || 653 ViewSUnitDAGs) 654 #endif 655 { 656 BlockNumber = FuncInfo->MBB->getNumber(); 657 BlockName = MF->getName().str() + ":" + 658 FuncInfo->MBB->getBasicBlock()->getName().str(); 659 } 660 DEBUG(dbgs() << "Initial selection DAG: BB#" << BlockNumber 661 << " '" << BlockName << "'\n"; CurDAG->dump()); 662 663 if (ViewDAGCombine1) CurDAG->viewGraph("dag-combine1 input for " + BlockName); 664 665 // Run the DAG combiner in pre-legalize mode. 666 { 667 NamedRegionTimer T("DAG Combining 1", GroupName, TimePassesIsEnabled); 668 CurDAG->Combine(BeforeLegalizeTypes, *AA, OptLevel); 669 } 670 671 DEBUG(dbgs() << "Optimized lowered selection DAG: BB#" << BlockNumber 672 << " '" << BlockName << "'\n"; CurDAG->dump()); 673 674 // Second step, hack on the DAG until it only uses operations and types that 675 // the target supports. 676 if (ViewLegalizeTypesDAGs) CurDAG->viewGraph("legalize-types input for " + 677 BlockName); 678 679 bool Changed; 680 { 681 NamedRegionTimer T("Type Legalization", GroupName, TimePassesIsEnabled); 682 Changed = CurDAG->LegalizeTypes(); 683 } 684 685 DEBUG(dbgs() << "Type-legalized selection DAG: BB#" << BlockNumber 686 << " '" << BlockName << "'\n"; CurDAG->dump()); 687 688 CurDAG->NewNodesMustHaveLegalTypes = true; 689 690 if (Changed) { 691 if (ViewDAGCombineLT) 692 CurDAG->viewGraph("dag-combine-lt input for " + BlockName); 693 694 // Run the DAG combiner in post-type-legalize mode. 695 { 696 NamedRegionTimer T("DAG Combining after legalize types", GroupName, 697 TimePassesIsEnabled); 698 CurDAG->Combine(AfterLegalizeTypes, *AA, OptLevel); 699 } 700 701 DEBUG(dbgs() << "Optimized type-legalized selection DAG: BB#" << BlockNumber 702 << " '" << BlockName << "'\n"; CurDAG->dump()); 703 704 } 705 706 { 707 NamedRegionTimer T("Vector Legalization", GroupName, TimePassesIsEnabled); 708 Changed = CurDAG->LegalizeVectors(); 709 } 710 711 if (Changed) { 712 { 713 NamedRegionTimer T("Type Legalization 2", GroupName, TimePassesIsEnabled); 714 CurDAG->LegalizeTypes(); 715 } 716 717 if (ViewDAGCombineLT) 718 CurDAG->viewGraph("dag-combine-lv input for " + BlockName); 719 720 // Run the DAG combiner in post-type-legalize mode. 721 { 722 NamedRegionTimer T("DAG Combining after legalize vectors", GroupName, 723 TimePassesIsEnabled); 724 CurDAG->Combine(AfterLegalizeVectorOps, *AA, OptLevel); 725 } 726 727 DEBUG(dbgs() << "Optimized vector-legalized selection DAG: BB#" 728 << BlockNumber << " '" << BlockName << "'\n"; CurDAG->dump()); 729 } 730 731 if (ViewLegalizeDAGs) CurDAG->viewGraph("legalize input for " + BlockName); 732 733 { 734 NamedRegionTimer T("DAG Legalization", GroupName, TimePassesIsEnabled); 735 CurDAG->Legalize(); 736 } 737 738 DEBUG(dbgs() << "Legalized selection DAG: BB#" << BlockNumber 739 << " '" << BlockName << "'\n"; CurDAG->dump()); 740 741 if (ViewDAGCombine2) CurDAG->viewGraph("dag-combine2 input for " + BlockName); 742 743 // Run the DAG combiner in post-legalize mode. 744 { 745 NamedRegionTimer T("DAG Combining 2", GroupName, TimePassesIsEnabled); 746 CurDAG->Combine(AfterLegalizeDAG, *AA, OptLevel); 747 } 748 749 DEBUG(dbgs() << "Optimized legalized selection DAG: BB#" << BlockNumber 750 << " '" << BlockName << "'\n"; CurDAG->dump()); 751 752 if (OptLevel != CodeGenOpt::None) 753 ComputeLiveOutVRegInfo(); 754 755 if (ViewISelDAGs) CurDAG->viewGraph("isel input for " + BlockName); 756 757 // Third, instruction select all of the operations to machine code, adding the 758 // code to the MachineBasicBlock. 759 { 760 NamedRegionTimer T("Instruction Selection", GroupName, TimePassesIsEnabled); 761 DoInstructionSelection(); 762 } 763 764 DEBUG(dbgs() << "Selected selection DAG: BB#" << BlockNumber 765 << " '" << BlockName << "'\n"; CurDAG->dump()); 766 767 if (ViewSchedDAGs) CurDAG->viewGraph("scheduler input for " + BlockName); 768 769 // Schedule machine code. 770 ScheduleDAGSDNodes *Scheduler = CreateScheduler(); 771 { 772 NamedRegionTimer T("Instruction Scheduling", GroupName, 773 TimePassesIsEnabled); 774 Scheduler->Run(CurDAG, FuncInfo->MBB); 775 } 776 777 if (ViewSUnitDAGs) Scheduler->viewGraph(); 778 779 // Emit machine code to BB. This can change 'BB' to the last block being 780 // inserted into. 781 MachineBasicBlock *FirstMBB = FuncInfo->MBB, *LastMBB; 782 { 783 NamedRegionTimer T("Instruction Creation", GroupName, TimePassesIsEnabled); 784 785 // FuncInfo->InsertPt is passed by reference and set to the end of the 786 // scheduled instructions. 787 LastMBB = FuncInfo->MBB = Scheduler->EmitSchedule(FuncInfo->InsertPt); 788 } 789 790 // If the block was split, make sure we update any references that are used to 791 // update PHI nodes later on. 792 if (FirstMBB != LastMBB) 793 SDB->UpdateSplitBlock(FirstMBB, LastMBB); 794 795 // Free the scheduler state. 796 { 797 NamedRegionTimer T("Instruction Scheduling Cleanup", GroupName, 798 TimePassesIsEnabled); 799 delete Scheduler; 800 } 801 802 // Free the SelectionDAG state, now that we're finished with it. 803 CurDAG->clear(); 804 } 805 806 namespace { 807 /// ISelUpdater - helper class to handle updates of the instruction selection 808 /// graph. 809 class ISelUpdater : public SelectionDAG::DAGUpdateListener { 810 SelectionDAG::allnodes_iterator &ISelPosition; 811 public: 812 ISelUpdater(SelectionDAG &DAG, SelectionDAG::allnodes_iterator &isp) 813 : SelectionDAG::DAGUpdateListener(DAG), ISelPosition(isp) {} 814 815 /// NodeDeleted - Handle nodes deleted from the graph. If the node being 816 /// deleted is the current ISelPosition node, update ISelPosition. 817 /// 818 void NodeDeleted(SDNode *N, SDNode *E) override { 819 if (ISelPosition == SelectionDAG::allnodes_iterator(N)) 820 ++ISelPosition; 821 } 822 }; 823 } // end anonymous namespace 824 825 void SelectionDAGISel::DoInstructionSelection() { 826 DEBUG(dbgs() << "===== Instruction selection begins: BB#" 827 << FuncInfo->MBB->getNumber() 828 << " '" << FuncInfo->MBB->getName() << "'\n"); 829 830 PreprocessISelDAG(); 831 832 // Select target instructions for the DAG. 833 { 834 // Number all nodes with a topological order and set DAGSize. 835 DAGSize = CurDAG->AssignTopologicalOrder(); 836 837 // Create a dummy node (which is not added to allnodes), that adds 838 // a reference to the root node, preventing it from being deleted, 839 // and tracking any changes of the root. 840 HandleSDNode Dummy(CurDAG->getRoot()); 841 SelectionDAG::allnodes_iterator ISelPosition (CurDAG->getRoot().getNode()); 842 ++ISelPosition; 843 844 // Make sure that ISelPosition gets properly updated when nodes are deleted 845 // in calls made from this function. 846 ISelUpdater ISU(*CurDAG, ISelPosition); 847 848 // The AllNodes list is now topological-sorted. Visit the 849 // nodes by starting at the end of the list (the root of the 850 // graph) and preceding back toward the beginning (the entry 851 // node). 852 while (ISelPosition != CurDAG->allnodes_begin()) { 853 SDNode *Node = --ISelPosition; 854 // Skip dead nodes. DAGCombiner is expected to eliminate all dead nodes, 855 // but there are currently some corner cases that it misses. Also, this 856 // makes it theoretically possible to disable the DAGCombiner. 857 if (Node->use_empty()) 858 continue; 859 860 SDNode *ResNode = Select(Node); 861 862 // FIXME: This is pretty gross. 'Select' should be changed to not return 863 // anything at all and this code should be nuked with a tactical strike. 864 865 // If node should not be replaced, continue with the next one. 866 if (ResNode == Node || Node->getOpcode() == ISD::DELETED_NODE) 867 continue; 868 // Replace node. 869 if (ResNode) { 870 ReplaceUses(Node, ResNode); 871 } 872 873 // If after the replacement this node is not used any more, 874 // remove this dead node. 875 if (Node->use_empty()) // Don't delete EntryToken, etc. 876 CurDAG->RemoveDeadNode(Node); 877 } 878 879 CurDAG->setRoot(Dummy.getValue()); 880 } 881 882 DEBUG(dbgs() << "===== Instruction selection ends:\n"); 883 884 PostprocessISelDAG(); 885 } 886 887 /// PrepareEHLandingPad - Emit an EH_LABEL, set up live-in registers, and 888 /// do other setup for EH landing-pad blocks. 889 void SelectionDAGISel::PrepareEHLandingPad() { 890 MachineBasicBlock *MBB = FuncInfo->MBB; 891 892 // Add a label to mark the beginning of the landing pad. Deletion of the 893 // landing pad can thus be detected via the MachineModuleInfo. 894 MCSymbol *Label = MF->getMMI().addLandingPad(MBB); 895 896 // Assign the call site to the landing pad's begin label. 897 MF->getMMI().setCallSiteLandingPad(Label, SDB->LPadToCallSiteMap[MBB]); 898 899 const MCInstrDesc &II = 900 TM.getSubtargetImpl()->getInstrInfo()->get(TargetOpcode::EH_LABEL); 901 BuildMI(*MBB, FuncInfo->InsertPt, SDB->getCurDebugLoc(), II) 902 .addSym(Label); 903 904 // Mark exception register as live in. 905 const TargetLowering *TLI = getTargetLowering(); 906 const TargetRegisterClass *PtrRC = TLI->getRegClassFor(TLI->getPointerTy()); 907 if (unsigned Reg = TLI->getExceptionPointerRegister()) 908 FuncInfo->ExceptionPointerVirtReg = MBB->addLiveIn(Reg, PtrRC); 909 910 // Mark exception selector register as live in. 911 if (unsigned Reg = TLI->getExceptionSelectorRegister()) 912 FuncInfo->ExceptionSelectorVirtReg = MBB->addLiveIn(Reg, PtrRC); 913 } 914 915 /// isFoldedOrDeadInstruction - Return true if the specified instruction is 916 /// side-effect free and is either dead or folded into a generated instruction. 917 /// Return false if it needs to be emitted. 918 static bool isFoldedOrDeadInstruction(const Instruction *I, 919 FunctionLoweringInfo *FuncInfo) { 920 return !I->mayWriteToMemory() && // Side-effecting instructions aren't folded. 921 !isa<TerminatorInst>(I) && // Terminators aren't folded. 922 !isa<DbgInfoIntrinsic>(I) && // Debug instructions aren't folded. 923 !isa<LandingPadInst>(I) && // Landingpad instructions aren't folded. 924 !FuncInfo->isExportedInst(I); // Exported instrs must be computed. 925 } 926 927 #ifndef NDEBUG 928 // Collect per Instruction statistics for fast-isel misses. Only those 929 // instructions that cause the bail are accounted for. It does not account for 930 // instructions higher in the block. Thus, summing the per instructions stats 931 // will not add up to what is reported by NumFastIselFailures. 932 static void collectFailStats(const Instruction *I) { 933 switch (I->getOpcode()) { 934 default: assert (0 && "<Invalid operator> "); 935 936 // Terminators 937 case Instruction::Ret: NumFastIselFailRet++; return; 938 case Instruction::Br: NumFastIselFailBr++; return; 939 case Instruction::Switch: NumFastIselFailSwitch++; return; 940 case Instruction::IndirectBr: NumFastIselFailIndirectBr++; return; 941 case Instruction::Invoke: NumFastIselFailInvoke++; return; 942 case Instruction::Resume: NumFastIselFailResume++; return; 943 case Instruction::Unreachable: NumFastIselFailUnreachable++; return; 944 945 // Standard binary operators... 946 case Instruction::Add: NumFastIselFailAdd++; return; 947 case Instruction::FAdd: NumFastIselFailFAdd++; return; 948 case Instruction::Sub: NumFastIselFailSub++; return; 949 case Instruction::FSub: NumFastIselFailFSub++; return; 950 case Instruction::Mul: NumFastIselFailMul++; return; 951 case Instruction::FMul: NumFastIselFailFMul++; return; 952 case Instruction::UDiv: NumFastIselFailUDiv++; return; 953 case Instruction::SDiv: NumFastIselFailSDiv++; return; 954 case Instruction::FDiv: NumFastIselFailFDiv++; return; 955 case Instruction::URem: NumFastIselFailURem++; return; 956 case Instruction::SRem: NumFastIselFailSRem++; return; 957 case Instruction::FRem: NumFastIselFailFRem++; return; 958 959 // Logical operators... 960 case Instruction::And: NumFastIselFailAnd++; return; 961 case Instruction::Or: NumFastIselFailOr++; return; 962 case Instruction::Xor: NumFastIselFailXor++; return; 963 964 // Memory instructions... 965 case Instruction::Alloca: NumFastIselFailAlloca++; return; 966 case Instruction::Load: NumFastIselFailLoad++; return; 967 case Instruction::Store: NumFastIselFailStore++; return; 968 case Instruction::AtomicCmpXchg: NumFastIselFailAtomicCmpXchg++; return; 969 case Instruction::AtomicRMW: NumFastIselFailAtomicRMW++; return; 970 case Instruction::Fence: NumFastIselFailFence++; return; 971 case Instruction::GetElementPtr: NumFastIselFailGetElementPtr++; return; 972 973 // Convert instructions... 974 case Instruction::Trunc: NumFastIselFailTrunc++; return; 975 case Instruction::ZExt: NumFastIselFailZExt++; return; 976 case Instruction::SExt: NumFastIselFailSExt++; return; 977 case Instruction::FPTrunc: NumFastIselFailFPTrunc++; return; 978 case Instruction::FPExt: NumFastIselFailFPExt++; return; 979 case Instruction::FPToUI: NumFastIselFailFPToUI++; return; 980 case Instruction::FPToSI: NumFastIselFailFPToSI++; return; 981 case Instruction::UIToFP: NumFastIselFailUIToFP++; return; 982 case Instruction::SIToFP: NumFastIselFailSIToFP++; return; 983 case Instruction::IntToPtr: NumFastIselFailIntToPtr++; return; 984 case Instruction::PtrToInt: NumFastIselFailPtrToInt++; return; 985 case Instruction::BitCast: NumFastIselFailBitCast++; return; 986 987 // Other instructions... 988 case Instruction::ICmp: NumFastIselFailICmp++; return; 989 case Instruction::FCmp: NumFastIselFailFCmp++; return; 990 case Instruction::PHI: NumFastIselFailPHI++; return; 991 case Instruction::Select: NumFastIselFailSelect++; return; 992 case Instruction::Call: { 993 if (auto const *Intrinsic = dyn_cast<IntrinsicInst>(I)) { 994 switch (Intrinsic->getIntrinsicID()) { 995 default: 996 NumFastIselFailIntrinsicCall++; return; 997 case Intrinsic::sadd_with_overflow: 998 NumFastIselFailSAddWithOverflow++; return; 999 case Intrinsic::uadd_with_overflow: 1000 NumFastIselFailUAddWithOverflow++; return; 1001 case Intrinsic::ssub_with_overflow: 1002 NumFastIselFailSSubWithOverflow++; return; 1003 case Intrinsic::usub_with_overflow: 1004 NumFastIselFailUSubWithOverflow++; return; 1005 case Intrinsic::smul_with_overflow: 1006 NumFastIselFailSMulWithOverflow++; return; 1007 case Intrinsic::umul_with_overflow: 1008 NumFastIselFailUMulWithOverflow++; return; 1009 case Intrinsic::frameaddress: 1010 NumFastIselFailFrameaddress++; return; 1011 case Intrinsic::sqrt: 1012 NumFastIselFailSqrt++; return; 1013 case Intrinsic::experimental_stackmap: 1014 NumFastIselFailStackMap++; return; 1015 case Intrinsic::experimental_patchpoint_void: // fall-through 1016 case Intrinsic::experimental_patchpoint_i64: 1017 NumFastIselFailPatchPoint++; return; 1018 } 1019 } 1020 NumFastIselFailCall++; 1021 return; 1022 } 1023 case Instruction::Shl: NumFastIselFailShl++; return; 1024 case Instruction::LShr: NumFastIselFailLShr++; return; 1025 case Instruction::AShr: NumFastIselFailAShr++; return; 1026 case Instruction::VAArg: NumFastIselFailVAArg++; return; 1027 case Instruction::ExtractElement: NumFastIselFailExtractElement++; return; 1028 case Instruction::InsertElement: NumFastIselFailInsertElement++; return; 1029 case Instruction::ShuffleVector: NumFastIselFailShuffleVector++; return; 1030 case Instruction::ExtractValue: NumFastIselFailExtractValue++; return; 1031 case Instruction::InsertValue: NumFastIselFailInsertValue++; return; 1032 case Instruction::LandingPad: NumFastIselFailLandingPad++; return; 1033 } 1034 } 1035 #endif 1036 1037 void SelectionDAGISel::SelectAllBasicBlocks(const Function &Fn) { 1038 // Initialize the Fast-ISel state, if needed. 1039 FastISel *FastIS = nullptr; 1040 if (TM.Options.EnableFastISel) 1041 FastIS = getTargetLowering()->createFastISel(*FuncInfo, LibInfo); 1042 1043 // Iterate over all basic blocks in the function. 1044 ReversePostOrderTraversal<const Function*> RPOT(&Fn); 1045 for (ReversePostOrderTraversal<const Function*>::rpo_iterator 1046 I = RPOT.begin(), E = RPOT.end(); I != E; ++I) { 1047 const BasicBlock *LLVMBB = *I; 1048 1049 if (OptLevel != CodeGenOpt::None) { 1050 bool AllPredsVisited = true; 1051 for (const_pred_iterator PI = pred_begin(LLVMBB), PE = pred_end(LLVMBB); 1052 PI != PE; ++PI) { 1053 if (!FuncInfo->VisitedBBs.count(*PI)) { 1054 AllPredsVisited = false; 1055 break; 1056 } 1057 } 1058 1059 if (AllPredsVisited) { 1060 for (BasicBlock::const_iterator I = LLVMBB->begin(); 1061 const PHINode *PN = dyn_cast<PHINode>(I); ++I) 1062 FuncInfo->ComputePHILiveOutRegInfo(PN); 1063 } else { 1064 for (BasicBlock::const_iterator I = LLVMBB->begin(); 1065 const PHINode *PN = dyn_cast<PHINode>(I); ++I) 1066 FuncInfo->InvalidatePHILiveOutRegInfo(PN); 1067 } 1068 1069 FuncInfo->VisitedBBs.insert(LLVMBB); 1070 } 1071 1072 BasicBlock::const_iterator const Begin = LLVMBB->getFirstNonPHI(); 1073 BasicBlock::const_iterator const End = LLVMBB->end(); 1074 BasicBlock::const_iterator BI = End; 1075 1076 FuncInfo->MBB = FuncInfo->MBBMap[LLVMBB]; 1077 FuncInfo->InsertPt = FuncInfo->MBB->getFirstNonPHI(); 1078 1079 // Setup an EH landing-pad block. 1080 FuncInfo->ExceptionPointerVirtReg = 0; 1081 FuncInfo->ExceptionSelectorVirtReg = 0; 1082 if (FuncInfo->MBB->isLandingPad()) 1083 PrepareEHLandingPad(); 1084 1085 // Before doing SelectionDAG ISel, see if FastISel has been requested. 1086 if (FastIS) { 1087 FastIS->startNewBlock(); 1088 1089 // Emit code for any incoming arguments. This must happen before 1090 // beginning FastISel on the entry block. 1091 if (LLVMBB == &Fn.getEntryBlock()) { 1092 ++NumEntryBlocks; 1093 1094 // Lower any arguments needed in this block if this is the entry block. 1095 if (!FastIS->lowerArguments()) { 1096 // Fast isel failed to lower these arguments 1097 ++NumFastIselFailLowerArguments; 1098 if (EnableFastISelAbortArgs) 1099 llvm_unreachable("FastISel didn't lower all arguments"); 1100 1101 // Use SelectionDAG argument lowering 1102 LowerArguments(Fn); 1103 CurDAG->setRoot(SDB->getControlRoot()); 1104 SDB->clear(); 1105 CodeGenAndEmitDAG(); 1106 } 1107 1108 // If we inserted any instructions at the beginning, make a note of 1109 // where they are, so we can be sure to emit subsequent instructions 1110 // after them. 1111 if (FuncInfo->InsertPt != FuncInfo->MBB->begin()) 1112 FastIS->setLastLocalValue(std::prev(FuncInfo->InsertPt)); 1113 else 1114 FastIS->setLastLocalValue(nullptr); 1115 } 1116 1117 unsigned NumFastIselRemaining = std::distance(Begin, End); 1118 // Do FastISel on as many instructions as possible. 1119 for (; BI != Begin; --BI) { 1120 const Instruction *Inst = std::prev(BI); 1121 1122 // If we no longer require this instruction, skip it. 1123 if (isFoldedOrDeadInstruction(Inst, FuncInfo)) { 1124 --NumFastIselRemaining; 1125 continue; 1126 } 1127 1128 // Bottom-up: reset the insert pos at the top, after any local-value 1129 // instructions. 1130 FastIS->recomputeInsertPt(); 1131 1132 // Try to select the instruction with FastISel. 1133 if (FastIS->selectInstruction(Inst)) { 1134 --NumFastIselRemaining; 1135 ++NumFastIselSuccess; 1136 // If fast isel succeeded, skip over all the folded instructions, and 1137 // then see if there is a load right before the selected instructions. 1138 // Try to fold the load if so. 1139 const Instruction *BeforeInst = Inst; 1140 while (BeforeInst != Begin) { 1141 BeforeInst = std::prev(BasicBlock::const_iterator(BeforeInst)); 1142 if (!isFoldedOrDeadInstruction(BeforeInst, FuncInfo)) 1143 break; 1144 } 1145 if (BeforeInst != Inst && isa<LoadInst>(BeforeInst) && 1146 BeforeInst->hasOneUse() && 1147 FastIS->tryToFoldLoad(cast<LoadInst>(BeforeInst), Inst)) { 1148 // If we succeeded, don't re-select the load. 1149 BI = std::next(BasicBlock::const_iterator(BeforeInst)); 1150 --NumFastIselRemaining; 1151 ++NumFastIselSuccess; 1152 } 1153 continue; 1154 } 1155 1156 #ifndef NDEBUG 1157 if (EnableFastISelVerbose2) 1158 collectFailStats(Inst); 1159 #endif 1160 1161 // Then handle certain instructions as single-LLVM-Instruction blocks. 1162 if (isa<CallInst>(Inst)) { 1163 1164 if (EnableFastISelVerbose || EnableFastISelAbort) { 1165 dbgs() << "FastISel missed call: "; 1166 Inst->dump(); 1167 } 1168 1169 if (!Inst->getType()->isVoidTy() && !Inst->use_empty()) { 1170 unsigned &R = FuncInfo->ValueMap[Inst]; 1171 if (!R) 1172 R = FuncInfo->CreateRegs(Inst->getType()); 1173 } 1174 1175 bool HadTailCall = false; 1176 MachineBasicBlock::iterator SavedInsertPt = FuncInfo->InsertPt; 1177 SelectBasicBlock(Inst, BI, HadTailCall); 1178 1179 // If the call was emitted as a tail call, we're done with the block. 1180 // We also need to delete any previously emitted instructions. 1181 if (HadTailCall) { 1182 FastIS->removeDeadCode(SavedInsertPt, FuncInfo->MBB->end()); 1183 --BI; 1184 break; 1185 } 1186 1187 // Recompute NumFastIselRemaining as Selection DAG instruction 1188 // selection may have handled the call, input args, etc. 1189 unsigned RemainingNow = std::distance(Begin, BI); 1190 NumFastIselFailures += NumFastIselRemaining - RemainingNow; 1191 NumFastIselRemaining = RemainingNow; 1192 continue; 1193 } 1194 1195 if (isa<TerminatorInst>(Inst) && !isa<BranchInst>(Inst)) { 1196 // Don't abort, and use a different message for terminator misses. 1197 NumFastIselFailures += NumFastIselRemaining; 1198 if (EnableFastISelVerbose || EnableFastISelAbort) { 1199 dbgs() << "FastISel missed terminator: "; 1200 Inst->dump(); 1201 } 1202 } else { 1203 NumFastIselFailures += NumFastIselRemaining; 1204 if (EnableFastISelVerbose || EnableFastISelAbort) { 1205 dbgs() << "FastISel miss: "; 1206 Inst->dump(); 1207 } 1208 if (EnableFastISelAbort) 1209 // The "fast" selector couldn't handle something and bailed. 1210 // For the purpose of debugging, just abort. 1211 llvm_unreachable("FastISel didn't select the entire block"); 1212 } 1213 break; 1214 } 1215 1216 FastIS->recomputeInsertPt(); 1217 } else { 1218 // Lower any arguments needed in this block if this is the entry block. 1219 if (LLVMBB == &Fn.getEntryBlock()) { 1220 ++NumEntryBlocks; 1221 LowerArguments(Fn); 1222 } 1223 } 1224 1225 if (Begin != BI) 1226 ++NumDAGBlocks; 1227 else 1228 ++NumFastIselBlocks; 1229 1230 if (Begin != BI) { 1231 // Run SelectionDAG instruction selection on the remainder of the block 1232 // not handled by FastISel. If FastISel is not run, this is the entire 1233 // block. 1234 bool HadTailCall; 1235 SelectBasicBlock(Begin, BI, HadTailCall); 1236 } 1237 1238 FinishBasicBlock(); 1239 FuncInfo->PHINodesToUpdate.clear(); 1240 } 1241 1242 delete FastIS; 1243 SDB->clearDanglingDebugInfo(); 1244 SDB->SPDescriptor.resetPerFunctionState(); 1245 } 1246 1247 /// Given that the input MI is before a partial terminator sequence TSeq, return 1248 /// true if M + TSeq also a partial terminator sequence. 1249 /// 1250 /// A Terminator sequence is a sequence of MachineInstrs which at this point in 1251 /// lowering copy vregs into physical registers, which are then passed into 1252 /// terminator instructors so we can satisfy ABI constraints. A partial 1253 /// terminator sequence is an improper subset of a terminator sequence (i.e. it 1254 /// may be the whole terminator sequence). 1255 static bool MIIsInTerminatorSequence(const MachineInstr *MI) { 1256 // If we do not have a copy or an implicit def, we return true if and only if 1257 // MI is a debug value. 1258 if (!MI->isCopy() && !MI->isImplicitDef()) 1259 // Sometimes DBG_VALUE MI sneak in between the copies from the vregs to the 1260 // physical registers if there is debug info associated with the terminator 1261 // of our mbb. We want to include said debug info in our terminator 1262 // sequence, so we return true in that case. 1263 return MI->isDebugValue(); 1264 1265 // We have left the terminator sequence if we are not doing one of the 1266 // following: 1267 // 1268 // 1. Copying a vreg into a physical register. 1269 // 2. Copying a vreg into a vreg. 1270 // 3. Defining a register via an implicit def. 1271 1272 // OPI should always be a register definition... 1273 MachineInstr::const_mop_iterator OPI = MI->operands_begin(); 1274 if (!OPI->isReg() || !OPI->isDef()) 1275 return false; 1276 1277 // Defining any register via an implicit def is always ok. 1278 if (MI->isImplicitDef()) 1279 return true; 1280 1281 // Grab the copy source... 1282 MachineInstr::const_mop_iterator OPI2 = OPI; 1283 ++OPI2; 1284 assert(OPI2 != MI->operands_end() 1285 && "Should have a copy implying we should have 2 arguments."); 1286 1287 // Make sure that the copy dest is not a vreg when the copy source is a 1288 // physical register. 1289 if (!OPI2->isReg() || 1290 (!TargetRegisterInfo::isPhysicalRegister(OPI->getReg()) && 1291 TargetRegisterInfo::isPhysicalRegister(OPI2->getReg()))) 1292 return false; 1293 1294 return true; 1295 } 1296 1297 /// Find the split point at which to splice the end of BB into its success stack 1298 /// protector check machine basic block. 1299 /// 1300 /// On many platforms, due to ABI constraints, terminators, even before register 1301 /// allocation, use physical registers. This creates an issue for us since 1302 /// physical registers at this point can not travel across basic 1303 /// blocks. Luckily, selectiondag always moves physical registers into vregs 1304 /// when they enter functions and moves them through a sequence of copies back 1305 /// into the physical registers right before the terminator creating a 1306 /// ``Terminator Sequence''. This function is searching for the beginning of the 1307 /// terminator sequence so that we can ensure that we splice off not just the 1308 /// terminator, but additionally the copies that move the vregs into the 1309 /// physical registers. 1310 static MachineBasicBlock::iterator 1311 FindSplitPointForStackProtector(MachineBasicBlock *BB, DebugLoc DL) { 1312 MachineBasicBlock::iterator SplitPoint = BB->getFirstTerminator(); 1313 // 1314 if (SplitPoint == BB->begin()) 1315 return SplitPoint; 1316 1317 MachineBasicBlock::iterator Start = BB->begin(); 1318 MachineBasicBlock::iterator Previous = SplitPoint; 1319 --Previous; 1320 1321 while (MIIsInTerminatorSequence(Previous)) { 1322 SplitPoint = Previous; 1323 if (Previous == Start) 1324 break; 1325 --Previous; 1326 } 1327 1328 return SplitPoint; 1329 } 1330 1331 void 1332 SelectionDAGISel::FinishBasicBlock() { 1333 1334 DEBUG(dbgs() << "Total amount of phi nodes to update: " 1335 << FuncInfo->PHINodesToUpdate.size() << "\n"; 1336 for (unsigned i = 0, e = FuncInfo->PHINodesToUpdate.size(); i != e; ++i) 1337 dbgs() << "Node " << i << " : (" 1338 << FuncInfo->PHINodesToUpdate[i].first 1339 << ", " << FuncInfo->PHINodesToUpdate[i].second << ")\n"); 1340 1341 const bool MustUpdatePHINodes = SDB->SwitchCases.empty() && 1342 SDB->JTCases.empty() && 1343 SDB->BitTestCases.empty(); 1344 1345 // Next, now that we know what the last MBB the LLVM BB expanded is, update 1346 // PHI nodes in successors. 1347 if (MustUpdatePHINodes) { 1348 for (unsigned i = 0, e = FuncInfo->PHINodesToUpdate.size(); i != e; ++i) { 1349 MachineInstrBuilder PHI(*MF, FuncInfo->PHINodesToUpdate[i].first); 1350 assert(PHI->isPHI() && 1351 "This is not a machine PHI node that we are updating!"); 1352 if (!FuncInfo->MBB->isSuccessor(PHI->getParent())) 1353 continue; 1354 PHI.addReg(FuncInfo->PHINodesToUpdate[i].second).addMBB(FuncInfo->MBB); 1355 } 1356 } 1357 1358 // Handle stack protector. 1359 if (SDB->SPDescriptor.shouldEmitStackProtector()) { 1360 MachineBasicBlock *ParentMBB = SDB->SPDescriptor.getParentMBB(); 1361 MachineBasicBlock *SuccessMBB = SDB->SPDescriptor.getSuccessMBB(); 1362 1363 // Find the split point to split the parent mbb. At the same time copy all 1364 // physical registers used in the tail of parent mbb into virtual registers 1365 // before the split point and back into physical registers after the split 1366 // point. This prevents us needing to deal with Live-ins and many other 1367 // register allocation issues caused by us splitting the parent mbb. The 1368 // register allocator will clean up said virtual copies later on. 1369 MachineBasicBlock::iterator SplitPoint = 1370 FindSplitPointForStackProtector(ParentMBB, SDB->getCurDebugLoc()); 1371 1372 // Splice the terminator of ParentMBB into SuccessMBB. 1373 SuccessMBB->splice(SuccessMBB->end(), ParentMBB, 1374 SplitPoint, 1375 ParentMBB->end()); 1376 1377 // Add compare/jump on neq/jump to the parent BB. 1378 FuncInfo->MBB = ParentMBB; 1379 FuncInfo->InsertPt = ParentMBB->end(); 1380 SDB->visitSPDescriptorParent(SDB->SPDescriptor, ParentMBB); 1381 CurDAG->setRoot(SDB->getRoot()); 1382 SDB->clear(); 1383 CodeGenAndEmitDAG(); 1384 1385 // CodeGen Failure MBB if we have not codegened it yet. 1386 MachineBasicBlock *FailureMBB = SDB->SPDescriptor.getFailureMBB(); 1387 if (!FailureMBB->size()) { 1388 FuncInfo->MBB = FailureMBB; 1389 FuncInfo->InsertPt = FailureMBB->end(); 1390 SDB->visitSPDescriptorFailure(SDB->SPDescriptor); 1391 CurDAG->setRoot(SDB->getRoot()); 1392 SDB->clear(); 1393 CodeGenAndEmitDAG(); 1394 } 1395 1396 // Clear the Per-BB State. 1397 SDB->SPDescriptor.resetPerBBState(); 1398 } 1399 1400 // If we updated PHI Nodes, return early. 1401 if (MustUpdatePHINodes) 1402 return; 1403 1404 for (unsigned i = 0, e = SDB->BitTestCases.size(); i != e; ++i) { 1405 // Lower header first, if it wasn't already lowered 1406 if (!SDB->BitTestCases[i].Emitted) { 1407 // Set the current basic block to the mbb we wish to insert the code into 1408 FuncInfo->MBB = SDB->BitTestCases[i].Parent; 1409 FuncInfo->InsertPt = FuncInfo->MBB->end(); 1410 // Emit the code 1411 SDB->visitBitTestHeader(SDB->BitTestCases[i], FuncInfo->MBB); 1412 CurDAG->setRoot(SDB->getRoot()); 1413 SDB->clear(); 1414 CodeGenAndEmitDAG(); 1415 } 1416 1417 uint32_t UnhandledWeight = 0; 1418 for (unsigned j = 0, ej = SDB->BitTestCases[i].Cases.size(); j != ej; ++j) 1419 UnhandledWeight += SDB->BitTestCases[i].Cases[j].ExtraWeight; 1420 1421 for (unsigned j = 0, ej = SDB->BitTestCases[i].Cases.size(); j != ej; ++j) { 1422 UnhandledWeight -= SDB->BitTestCases[i].Cases[j].ExtraWeight; 1423 // Set the current basic block to the mbb we wish to insert the code into 1424 FuncInfo->MBB = SDB->BitTestCases[i].Cases[j].ThisBB; 1425 FuncInfo->InsertPt = FuncInfo->MBB->end(); 1426 // Emit the code 1427 if (j+1 != ej) 1428 SDB->visitBitTestCase(SDB->BitTestCases[i], 1429 SDB->BitTestCases[i].Cases[j+1].ThisBB, 1430 UnhandledWeight, 1431 SDB->BitTestCases[i].Reg, 1432 SDB->BitTestCases[i].Cases[j], 1433 FuncInfo->MBB); 1434 else 1435 SDB->visitBitTestCase(SDB->BitTestCases[i], 1436 SDB->BitTestCases[i].Default, 1437 UnhandledWeight, 1438 SDB->BitTestCases[i].Reg, 1439 SDB->BitTestCases[i].Cases[j], 1440 FuncInfo->MBB); 1441 1442 1443 CurDAG->setRoot(SDB->getRoot()); 1444 SDB->clear(); 1445 CodeGenAndEmitDAG(); 1446 } 1447 1448 // Update PHI Nodes 1449 for (unsigned pi = 0, pe = FuncInfo->PHINodesToUpdate.size(); 1450 pi != pe; ++pi) { 1451 MachineInstrBuilder PHI(*MF, FuncInfo->PHINodesToUpdate[pi].first); 1452 MachineBasicBlock *PHIBB = PHI->getParent(); 1453 assert(PHI->isPHI() && 1454 "This is not a machine PHI node that we are updating!"); 1455 // This is "default" BB. We have two jumps to it. From "header" BB and 1456 // from last "case" BB. 1457 if (PHIBB == SDB->BitTestCases[i].Default) 1458 PHI.addReg(FuncInfo->PHINodesToUpdate[pi].second) 1459 .addMBB(SDB->BitTestCases[i].Parent) 1460 .addReg(FuncInfo->PHINodesToUpdate[pi].second) 1461 .addMBB(SDB->BitTestCases[i].Cases.back().ThisBB); 1462 // One of "cases" BB. 1463 for (unsigned j = 0, ej = SDB->BitTestCases[i].Cases.size(); 1464 j != ej; ++j) { 1465 MachineBasicBlock* cBB = SDB->BitTestCases[i].Cases[j].ThisBB; 1466 if (cBB->isSuccessor(PHIBB)) 1467 PHI.addReg(FuncInfo->PHINodesToUpdate[pi].second).addMBB(cBB); 1468 } 1469 } 1470 } 1471 SDB->BitTestCases.clear(); 1472 1473 // If the JumpTable record is filled in, then we need to emit a jump table. 1474 // Updating the PHI nodes is tricky in this case, since we need to determine 1475 // whether the PHI is a successor of the range check MBB or the jump table MBB 1476 for (unsigned i = 0, e = SDB->JTCases.size(); i != e; ++i) { 1477 // Lower header first, if it wasn't already lowered 1478 if (!SDB->JTCases[i].first.Emitted) { 1479 // Set the current basic block to the mbb we wish to insert the code into 1480 FuncInfo->MBB = SDB->JTCases[i].first.HeaderBB; 1481 FuncInfo->InsertPt = FuncInfo->MBB->end(); 1482 // Emit the code 1483 SDB->visitJumpTableHeader(SDB->JTCases[i].second, SDB->JTCases[i].first, 1484 FuncInfo->MBB); 1485 CurDAG->setRoot(SDB->getRoot()); 1486 SDB->clear(); 1487 CodeGenAndEmitDAG(); 1488 } 1489 1490 // Set the current basic block to the mbb we wish to insert the code into 1491 FuncInfo->MBB = SDB->JTCases[i].second.MBB; 1492 FuncInfo->InsertPt = FuncInfo->MBB->end(); 1493 // Emit the code 1494 SDB->visitJumpTable(SDB->JTCases[i].second); 1495 CurDAG->setRoot(SDB->getRoot()); 1496 SDB->clear(); 1497 CodeGenAndEmitDAG(); 1498 1499 // Update PHI Nodes 1500 for (unsigned pi = 0, pe = FuncInfo->PHINodesToUpdate.size(); 1501 pi != pe; ++pi) { 1502 MachineInstrBuilder PHI(*MF, FuncInfo->PHINodesToUpdate[pi].first); 1503 MachineBasicBlock *PHIBB = PHI->getParent(); 1504 assert(PHI->isPHI() && 1505 "This is not a machine PHI node that we are updating!"); 1506 // "default" BB. We can go there only from header BB. 1507 if (PHIBB == SDB->JTCases[i].second.Default) 1508 PHI.addReg(FuncInfo->PHINodesToUpdate[pi].second) 1509 .addMBB(SDB->JTCases[i].first.HeaderBB); 1510 // JT BB. Just iterate over successors here 1511 if (FuncInfo->MBB->isSuccessor(PHIBB)) 1512 PHI.addReg(FuncInfo->PHINodesToUpdate[pi].second).addMBB(FuncInfo->MBB); 1513 } 1514 } 1515 SDB->JTCases.clear(); 1516 1517 // If the switch block involved a branch to one of the actual successors, we 1518 // need to update PHI nodes in that block. 1519 for (unsigned i = 0, e = FuncInfo->PHINodesToUpdate.size(); i != e; ++i) { 1520 MachineInstrBuilder PHI(*MF, FuncInfo->PHINodesToUpdate[i].first); 1521 assert(PHI->isPHI() && 1522 "This is not a machine PHI node that we are updating!"); 1523 if (FuncInfo->MBB->isSuccessor(PHI->getParent())) 1524 PHI.addReg(FuncInfo->PHINodesToUpdate[i].second).addMBB(FuncInfo->MBB); 1525 } 1526 1527 // If we generated any switch lowering information, build and codegen any 1528 // additional DAGs necessary. 1529 for (unsigned i = 0, e = SDB->SwitchCases.size(); i != e; ++i) { 1530 // Set the current basic block to the mbb we wish to insert the code into 1531 FuncInfo->MBB = SDB->SwitchCases[i].ThisBB; 1532 FuncInfo->InsertPt = FuncInfo->MBB->end(); 1533 1534 // Determine the unique successors. 1535 SmallVector<MachineBasicBlock *, 2> Succs; 1536 Succs.push_back(SDB->SwitchCases[i].TrueBB); 1537 if (SDB->SwitchCases[i].TrueBB != SDB->SwitchCases[i].FalseBB) 1538 Succs.push_back(SDB->SwitchCases[i].FalseBB); 1539 1540 // Emit the code. Note that this could result in FuncInfo->MBB being split. 1541 SDB->visitSwitchCase(SDB->SwitchCases[i], FuncInfo->MBB); 1542 CurDAG->setRoot(SDB->getRoot()); 1543 SDB->clear(); 1544 CodeGenAndEmitDAG(); 1545 1546 // Remember the last block, now that any splitting is done, for use in 1547 // populating PHI nodes in successors. 1548 MachineBasicBlock *ThisBB = FuncInfo->MBB; 1549 1550 // Handle any PHI nodes in successors of this chunk, as if we were coming 1551 // from the original BB before switch expansion. Note that PHI nodes can 1552 // occur multiple times in PHINodesToUpdate. We have to be very careful to 1553 // handle them the right number of times. 1554 for (unsigned i = 0, e = Succs.size(); i != e; ++i) { 1555 FuncInfo->MBB = Succs[i]; 1556 FuncInfo->InsertPt = FuncInfo->MBB->end(); 1557 // FuncInfo->MBB may have been removed from the CFG if a branch was 1558 // constant folded. 1559 if (ThisBB->isSuccessor(FuncInfo->MBB)) { 1560 for (MachineBasicBlock::iterator 1561 MBBI = FuncInfo->MBB->begin(), MBBE = FuncInfo->MBB->end(); 1562 MBBI != MBBE && MBBI->isPHI(); ++MBBI) { 1563 MachineInstrBuilder PHI(*MF, MBBI); 1564 // This value for this PHI node is recorded in PHINodesToUpdate. 1565 for (unsigned pn = 0; ; ++pn) { 1566 assert(pn != FuncInfo->PHINodesToUpdate.size() && 1567 "Didn't find PHI entry!"); 1568 if (FuncInfo->PHINodesToUpdate[pn].first == PHI) { 1569 PHI.addReg(FuncInfo->PHINodesToUpdate[pn].second).addMBB(ThisBB); 1570 break; 1571 } 1572 } 1573 } 1574 } 1575 } 1576 } 1577 SDB->SwitchCases.clear(); 1578 } 1579 1580 1581 /// Create the scheduler. If a specific scheduler was specified 1582 /// via the SchedulerRegistry, use it, otherwise select the 1583 /// one preferred by the target. 1584 /// 1585 ScheduleDAGSDNodes *SelectionDAGISel::CreateScheduler() { 1586 RegisterScheduler::FunctionPassCtor Ctor = RegisterScheduler::getDefault(); 1587 1588 if (!Ctor) { 1589 Ctor = ISHeuristic; 1590 RegisterScheduler::setDefault(Ctor); 1591 } 1592 1593 return Ctor(this, OptLevel); 1594 } 1595 1596 //===----------------------------------------------------------------------===// 1597 // Helper functions used by the generated instruction selector. 1598 //===----------------------------------------------------------------------===// 1599 // Calls to these methods are generated by tblgen. 1600 1601 /// CheckAndMask - The isel is trying to match something like (and X, 255). If 1602 /// the dag combiner simplified the 255, we still want to match. RHS is the 1603 /// actual value in the DAG on the RHS of an AND, and DesiredMaskS is the value 1604 /// specified in the .td file (e.g. 255). 1605 bool SelectionDAGISel::CheckAndMask(SDValue LHS, ConstantSDNode *RHS, 1606 int64_t DesiredMaskS) const { 1607 const APInt &ActualMask = RHS->getAPIntValue(); 1608 const APInt &DesiredMask = APInt(LHS.getValueSizeInBits(), DesiredMaskS); 1609 1610 // If the actual mask exactly matches, success! 1611 if (ActualMask == DesiredMask) 1612 return true; 1613 1614 // If the actual AND mask is allowing unallowed bits, this doesn't match. 1615 if (ActualMask.intersects(~DesiredMask)) 1616 return false; 1617 1618 // Otherwise, the DAG Combiner may have proven that the value coming in is 1619 // either already zero or is not demanded. Check for known zero input bits. 1620 APInt NeededMask = DesiredMask & ~ActualMask; 1621 if (CurDAG->MaskedValueIsZero(LHS, NeededMask)) 1622 return true; 1623 1624 // TODO: check to see if missing bits are just not demanded. 1625 1626 // Otherwise, this pattern doesn't match. 1627 return false; 1628 } 1629 1630 /// CheckOrMask - The isel is trying to match something like (or X, 255). If 1631 /// the dag combiner simplified the 255, we still want to match. RHS is the 1632 /// actual value in the DAG on the RHS of an OR, and DesiredMaskS is the value 1633 /// specified in the .td file (e.g. 255). 1634 bool SelectionDAGISel::CheckOrMask(SDValue LHS, ConstantSDNode *RHS, 1635 int64_t DesiredMaskS) const { 1636 const APInt &ActualMask = RHS->getAPIntValue(); 1637 const APInt &DesiredMask = APInt(LHS.getValueSizeInBits(), DesiredMaskS); 1638 1639 // If the actual mask exactly matches, success! 1640 if (ActualMask == DesiredMask) 1641 return true; 1642 1643 // If the actual AND mask is allowing unallowed bits, this doesn't match. 1644 if (ActualMask.intersects(~DesiredMask)) 1645 return false; 1646 1647 // Otherwise, the DAG Combiner may have proven that the value coming in is 1648 // either already zero or is not demanded. Check for known zero input bits. 1649 APInt NeededMask = DesiredMask & ~ActualMask; 1650 1651 APInt KnownZero, KnownOne; 1652 CurDAG->computeKnownBits(LHS, KnownZero, KnownOne); 1653 1654 // If all the missing bits in the or are already known to be set, match! 1655 if ((NeededMask & KnownOne) == NeededMask) 1656 return true; 1657 1658 // TODO: check to see if missing bits are just not demanded. 1659 1660 // Otherwise, this pattern doesn't match. 1661 return false; 1662 } 1663 1664 1665 /// SelectInlineAsmMemoryOperands - Calls to this are automatically generated 1666 /// by tblgen. Others should not call it. 1667 void SelectionDAGISel:: 1668 SelectInlineAsmMemoryOperands(std::vector<SDValue> &Ops) { 1669 std::vector<SDValue> InOps; 1670 std::swap(InOps, Ops); 1671 1672 Ops.push_back(InOps[InlineAsm::Op_InputChain]); // 0 1673 Ops.push_back(InOps[InlineAsm::Op_AsmString]); // 1 1674 Ops.push_back(InOps[InlineAsm::Op_MDNode]); // 2, !srcloc 1675 Ops.push_back(InOps[InlineAsm::Op_ExtraInfo]); // 3 (SideEffect, AlignStack) 1676 1677 unsigned i = InlineAsm::Op_FirstOperand, e = InOps.size(); 1678 if (InOps[e-1].getValueType() == MVT::Glue) 1679 --e; // Don't process a glue operand if it is here. 1680 1681 while (i != e) { 1682 unsigned Flags = cast<ConstantSDNode>(InOps[i])->getZExtValue(); 1683 if (!InlineAsm::isMemKind(Flags)) { 1684 // Just skip over this operand, copying the operands verbatim. 1685 Ops.insert(Ops.end(), InOps.begin()+i, 1686 InOps.begin()+i+InlineAsm::getNumOperandRegisters(Flags) + 1); 1687 i += InlineAsm::getNumOperandRegisters(Flags) + 1; 1688 } else { 1689 assert(InlineAsm::getNumOperandRegisters(Flags) == 1 && 1690 "Memory operand with multiple values?"); 1691 // Otherwise, this is a memory operand. Ask the target to select it. 1692 std::vector<SDValue> SelOps; 1693 if (SelectInlineAsmMemoryOperand(InOps[i+1], 'm', SelOps)) 1694 report_fatal_error("Could not match memory address. Inline asm" 1695 " failure!"); 1696 1697 // Add this to the output node. 1698 unsigned NewFlags = 1699 InlineAsm::getFlagWord(InlineAsm::Kind_Mem, SelOps.size()); 1700 Ops.push_back(CurDAG->getTargetConstant(NewFlags, MVT::i32)); 1701 Ops.insert(Ops.end(), SelOps.begin(), SelOps.end()); 1702 i += 2; 1703 } 1704 } 1705 1706 // Add the glue input back if present. 1707 if (e != InOps.size()) 1708 Ops.push_back(InOps.back()); 1709 } 1710 1711 /// findGlueUse - Return use of MVT::Glue value produced by the specified 1712 /// SDNode. 1713 /// 1714 static SDNode *findGlueUse(SDNode *N) { 1715 unsigned FlagResNo = N->getNumValues()-1; 1716 for (SDNode::use_iterator I = N->use_begin(), E = N->use_end(); I != E; ++I) { 1717 SDUse &Use = I.getUse(); 1718 if (Use.getResNo() == FlagResNo) 1719 return Use.getUser(); 1720 } 1721 return nullptr; 1722 } 1723 1724 /// findNonImmUse - Return true if "Use" is a non-immediate use of "Def". 1725 /// This function recursively traverses up the operand chain, ignoring 1726 /// certain nodes. 1727 static bool findNonImmUse(SDNode *Use, SDNode* Def, SDNode *ImmedUse, 1728 SDNode *Root, SmallPtrSetImpl<SDNode*> &Visited, 1729 bool IgnoreChains) { 1730 // The NodeID's are given uniques ID's where a node ID is guaranteed to be 1731 // greater than all of its (recursive) operands. If we scan to a point where 1732 // 'use' is smaller than the node we're scanning for, then we know we will 1733 // never find it. 1734 // 1735 // The Use may be -1 (unassigned) if it is a newly allocated node. This can 1736 // happen because we scan down to newly selected nodes in the case of glue 1737 // uses. 1738 if ((Use->getNodeId() < Def->getNodeId() && Use->getNodeId() != -1)) 1739 return false; 1740 1741 // Don't revisit nodes if we already scanned it and didn't fail, we know we 1742 // won't fail if we scan it again. 1743 if (!Visited.insert(Use)) 1744 return false; 1745 1746 for (unsigned i = 0, e = Use->getNumOperands(); i != e; ++i) { 1747 // Ignore chain uses, they are validated by HandleMergeInputChains. 1748 if (Use->getOperand(i).getValueType() == MVT::Other && IgnoreChains) 1749 continue; 1750 1751 SDNode *N = Use->getOperand(i).getNode(); 1752 if (N == Def) { 1753 if (Use == ImmedUse || Use == Root) 1754 continue; // We are not looking for immediate use. 1755 assert(N != Root); 1756 return true; 1757 } 1758 1759 // Traverse up the operand chain. 1760 if (findNonImmUse(N, Def, ImmedUse, Root, Visited, IgnoreChains)) 1761 return true; 1762 } 1763 return false; 1764 } 1765 1766 /// IsProfitableToFold - Returns true if it's profitable to fold the specific 1767 /// operand node N of U during instruction selection that starts at Root. 1768 bool SelectionDAGISel::IsProfitableToFold(SDValue N, SDNode *U, 1769 SDNode *Root) const { 1770 if (OptLevel == CodeGenOpt::None) return false; 1771 return N.hasOneUse(); 1772 } 1773 1774 /// IsLegalToFold - Returns true if the specific operand node N of 1775 /// U can be folded during instruction selection that starts at Root. 1776 bool SelectionDAGISel::IsLegalToFold(SDValue N, SDNode *U, SDNode *Root, 1777 CodeGenOpt::Level OptLevel, 1778 bool IgnoreChains) { 1779 if (OptLevel == CodeGenOpt::None) return false; 1780 1781 // If Root use can somehow reach N through a path that that doesn't contain 1782 // U then folding N would create a cycle. e.g. In the following 1783 // diagram, Root can reach N through X. If N is folded into into Root, then 1784 // X is both a predecessor and a successor of U. 1785 // 1786 // [N*] // 1787 // ^ ^ // 1788 // / \ // 1789 // [U*] [X]? // 1790 // ^ ^ // 1791 // \ / // 1792 // \ / // 1793 // [Root*] // 1794 // 1795 // * indicates nodes to be folded together. 1796 // 1797 // If Root produces glue, then it gets (even more) interesting. Since it 1798 // will be "glued" together with its glue use in the scheduler, we need to 1799 // check if it might reach N. 1800 // 1801 // [N*] // 1802 // ^ ^ // 1803 // / \ // 1804 // [U*] [X]? // 1805 // ^ ^ // 1806 // \ \ // 1807 // \ | // 1808 // [Root*] | // 1809 // ^ | // 1810 // f | // 1811 // | / // 1812 // [Y] / // 1813 // ^ / // 1814 // f / // 1815 // | / // 1816 // [GU] // 1817 // 1818 // If GU (glue use) indirectly reaches N (the load), and Root folds N 1819 // (call it Fold), then X is a predecessor of GU and a successor of 1820 // Fold. But since Fold and GU are glued together, this will create 1821 // a cycle in the scheduling graph. 1822 1823 // If the node has glue, walk down the graph to the "lowest" node in the 1824 // glueged set. 1825 EVT VT = Root->getValueType(Root->getNumValues()-1); 1826 while (VT == MVT::Glue) { 1827 SDNode *GU = findGlueUse(Root); 1828 if (!GU) 1829 break; 1830 Root = GU; 1831 VT = Root->getValueType(Root->getNumValues()-1); 1832 1833 // If our query node has a glue result with a use, we've walked up it. If 1834 // the user (which has already been selected) has a chain or indirectly uses 1835 // the chain, our WalkChainUsers predicate will not consider it. Because of 1836 // this, we cannot ignore chains in this predicate. 1837 IgnoreChains = false; 1838 } 1839 1840 1841 SmallPtrSet<SDNode*, 16> Visited; 1842 return !findNonImmUse(Root, N.getNode(), U, Root, Visited, IgnoreChains); 1843 } 1844 1845 SDNode *SelectionDAGISel::Select_INLINEASM(SDNode *N) { 1846 std::vector<SDValue> Ops(N->op_begin(), N->op_end()); 1847 SelectInlineAsmMemoryOperands(Ops); 1848 1849 EVT VTs[] = { MVT::Other, MVT::Glue }; 1850 SDValue New = CurDAG->getNode(ISD::INLINEASM, SDLoc(N), VTs, Ops); 1851 New->setNodeId(-1); 1852 return New.getNode(); 1853 } 1854 1855 SDNode 1856 *SelectionDAGISel::Select_READ_REGISTER(SDNode *Op) { 1857 SDLoc dl(Op); 1858 MDNodeSDNode *MD = dyn_cast<MDNodeSDNode>(Op->getOperand(0)); 1859 const MDString *RegStr = dyn_cast<MDString>(MD->getMD()->getOperand(0)); 1860 unsigned Reg = getTargetLowering()->getRegisterByName( 1861 RegStr->getString().data(), Op->getValueType(0)); 1862 SDValue New = CurDAG->getCopyFromReg( 1863 CurDAG->getEntryNode(), dl, Reg, Op->getValueType(0)); 1864 New->setNodeId(-1); 1865 return New.getNode(); 1866 } 1867 1868 SDNode 1869 *SelectionDAGISel::Select_WRITE_REGISTER(SDNode *Op) { 1870 SDLoc dl(Op); 1871 MDNodeSDNode *MD = dyn_cast<MDNodeSDNode>(Op->getOperand(1)); 1872 const MDString *RegStr = dyn_cast<MDString>(MD->getMD()->getOperand(0)); 1873 unsigned Reg = getTargetLowering()->getRegisterByName( 1874 RegStr->getString().data(), Op->getOperand(2).getValueType()); 1875 SDValue New = CurDAG->getCopyToReg( 1876 CurDAG->getEntryNode(), dl, Reg, Op->getOperand(2)); 1877 New->setNodeId(-1); 1878 return New.getNode(); 1879 } 1880 1881 1882 1883 SDNode *SelectionDAGISel::Select_UNDEF(SDNode *N) { 1884 return CurDAG->SelectNodeTo(N, TargetOpcode::IMPLICIT_DEF,N->getValueType(0)); 1885 } 1886 1887 /// GetVBR - decode a vbr encoding whose top bit is set. 1888 LLVM_ATTRIBUTE_ALWAYS_INLINE static uint64_t 1889 GetVBR(uint64_t Val, const unsigned char *MatcherTable, unsigned &Idx) { 1890 assert(Val >= 128 && "Not a VBR"); 1891 Val &= 127; // Remove first vbr bit. 1892 1893 unsigned Shift = 7; 1894 uint64_t NextBits; 1895 do { 1896 NextBits = MatcherTable[Idx++]; 1897 Val |= (NextBits&127) << Shift; 1898 Shift += 7; 1899 } while (NextBits & 128); 1900 1901 return Val; 1902 } 1903 1904 1905 /// UpdateChainsAndGlue - When a match is complete, this method updates uses of 1906 /// interior glue and chain results to use the new glue and chain results. 1907 void SelectionDAGISel:: 1908 UpdateChainsAndGlue(SDNode *NodeToMatch, SDValue InputChain, 1909 const SmallVectorImpl<SDNode*> &ChainNodesMatched, 1910 SDValue InputGlue, 1911 const SmallVectorImpl<SDNode*> &GlueResultNodesMatched, 1912 bool isMorphNodeTo) { 1913 SmallVector<SDNode*, 4> NowDeadNodes; 1914 1915 // Now that all the normal results are replaced, we replace the chain and 1916 // glue results if present. 1917 if (!ChainNodesMatched.empty()) { 1918 assert(InputChain.getNode() && 1919 "Matched input chains but didn't produce a chain"); 1920 // Loop over all of the nodes we matched that produced a chain result. 1921 // Replace all the chain results with the final chain we ended up with. 1922 for (unsigned i = 0, e = ChainNodesMatched.size(); i != e; ++i) { 1923 SDNode *ChainNode = ChainNodesMatched[i]; 1924 1925 // If this node was already deleted, don't look at it. 1926 if (ChainNode->getOpcode() == ISD::DELETED_NODE) 1927 continue; 1928 1929 // Don't replace the results of the root node if we're doing a 1930 // MorphNodeTo. 1931 if (ChainNode == NodeToMatch && isMorphNodeTo) 1932 continue; 1933 1934 SDValue ChainVal = SDValue(ChainNode, ChainNode->getNumValues()-1); 1935 if (ChainVal.getValueType() == MVT::Glue) 1936 ChainVal = ChainVal.getValue(ChainVal->getNumValues()-2); 1937 assert(ChainVal.getValueType() == MVT::Other && "Not a chain?"); 1938 CurDAG->ReplaceAllUsesOfValueWith(ChainVal, InputChain); 1939 1940 // If the node became dead and we haven't already seen it, delete it. 1941 if (ChainNode->use_empty() && 1942 !std::count(NowDeadNodes.begin(), NowDeadNodes.end(), ChainNode)) 1943 NowDeadNodes.push_back(ChainNode); 1944 } 1945 } 1946 1947 // If the result produces glue, update any glue results in the matched 1948 // pattern with the glue result. 1949 if (InputGlue.getNode()) { 1950 // Handle any interior nodes explicitly marked. 1951 for (unsigned i = 0, e = GlueResultNodesMatched.size(); i != e; ++i) { 1952 SDNode *FRN = GlueResultNodesMatched[i]; 1953 1954 // If this node was already deleted, don't look at it. 1955 if (FRN->getOpcode() == ISD::DELETED_NODE) 1956 continue; 1957 1958 assert(FRN->getValueType(FRN->getNumValues()-1) == MVT::Glue && 1959 "Doesn't have a glue result"); 1960 CurDAG->ReplaceAllUsesOfValueWith(SDValue(FRN, FRN->getNumValues()-1), 1961 InputGlue); 1962 1963 // If the node became dead and we haven't already seen it, delete it. 1964 if (FRN->use_empty() && 1965 !std::count(NowDeadNodes.begin(), NowDeadNodes.end(), FRN)) 1966 NowDeadNodes.push_back(FRN); 1967 } 1968 } 1969 1970 if (!NowDeadNodes.empty()) 1971 CurDAG->RemoveDeadNodes(NowDeadNodes); 1972 1973 DEBUG(dbgs() << "ISEL: Match complete!\n"); 1974 } 1975 1976 enum ChainResult { 1977 CR_Simple, 1978 CR_InducesCycle, 1979 CR_LeadsToInteriorNode 1980 }; 1981 1982 /// WalkChainUsers - Walk down the users of the specified chained node that is 1983 /// part of the pattern we're matching, looking at all of the users we find. 1984 /// This determines whether something is an interior node, whether we have a 1985 /// non-pattern node in between two pattern nodes (which prevent folding because 1986 /// it would induce a cycle) and whether we have a TokenFactor node sandwiched 1987 /// between pattern nodes (in which case the TF becomes part of the pattern). 1988 /// 1989 /// The walk we do here is guaranteed to be small because we quickly get down to 1990 /// already selected nodes "below" us. 1991 static ChainResult 1992 WalkChainUsers(const SDNode *ChainedNode, 1993 SmallVectorImpl<SDNode*> &ChainedNodesInPattern, 1994 SmallVectorImpl<SDNode*> &InteriorChainedNodes) { 1995 ChainResult Result = CR_Simple; 1996 1997 for (SDNode::use_iterator UI = ChainedNode->use_begin(), 1998 E = ChainedNode->use_end(); UI != E; ++UI) { 1999 // Make sure the use is of the chain, not some other value we produce. 2000 if (UI.getUse().getValueType() != MVT::Other) continue; 2001 2002 SDNode *User = *UI; 2003 2004 if (User->getOpcode() == ISD::HANDLENODE) // Root of the graph. 2005 continue; 2006 2007 // If we see an already-selected machine node, then we've gone beyond the 2008 // pattern that we're selecting down into the already selected chunk of the 2009 // DAG. 2010 unsigned UserOpcode = User->getOpcode(); 2011 if (User->isMachineOpcode() || 2012 UserOpcode == ISD::CopyToReg || 2013 UserOpcode == ISD::CopyFromReg || 2014 UserOpcode == ISD::INLINEASM || 2015 UserOpcode == ISD::EH_LABEL || 2016 UserOpcode == ISD::LIFETIME_START || 2017 UserOpcode == ISD::LIFETIME_END) { 2018 // If their node ID got reset to -1 then they've already been selected. 2019 // Treat them like a MachineOpcode. 2020 if (User->getNodeId() == -1) 2021 continue; 2022 } 2023 2024 // If we have a TokenFactor, we handle it specially. 2025 if (User->getOpcode() != ISD::TokenFactor) { 2026 // If the node isn't a token factor and isn't part of our pattern, then it 2027 // must be a random chained node in between two nodes we're selecting. 2028 // This happens when we have something like: 2029 // x = load ptr 2030 // call 2031 // y = x+4 2032 // store y -> ptr 2033 // Because we structurally match the load/store as a read/modify/write, 2034 // but the call is chained between them. We cannot fold in this case 2035 // because it would induce a cycle in the graph. 2036 if (!std::count(ChainedNodesInPattern.begin(), 2037 ChainedNodesInPattern.end(), User)) 2038 return CR_InducesCycle; 2039 2040 // Otherwise we found a node that is part of our pattern. For example in: 2041 // x = load ptr 2042 // y = x+4 2043 // store y -> ptr 2044 // This would happen when we're scanning down from the load and see the 2045 // store as a user. Record that there is a use of ChainedNode that is 2046 // part of the pattern and keep scanning uses. 2047 Result = CR_LeadsToInteriorNode; 2048 InteriorChainedNodes.push_back(User); 2049 continue; 2050 } 2051 2052 // If we found a TokenFactor, there are two cases to consider: first if the 2053 // TokenFactor is just hanging "below" the pattern we're matching (i.e. no 2054 // uses of the TF are in our pattern) we just want to ignore it. Second, 2055 // the TokenFactor can be sandwiched in between two chained nodes, like so: 2056 // [Load chain] 2057 // ^ 2058 // | 2059 // [Load] 2060 // ^ ^ 2061 // | \ DAG's like cheese 2062 // / \ do you? 2063 // / | 2064 // [TokenFactor] [Op] 2065 // ^ ^ 2066 // | | 2067 // \ / 2068 // \ / 2069 // [Store] 2070 // 2071 // In this case, the TokenFactor becomes part of our match and we rewrite it 2072 // as a new TokenFactor. 2073 // 2074 // To distinguish these two cases, do a recursive walk down the uses. 2075 switch (WalkChainUsers(User, ChainedNodesInPattern, InteriorChainedNodes)) { 2076 case CR_Simple: 2077 // If the uses of the TokenFactor are just already-selected nodes, ignore 2078 // it, it is "below" our pattern. 2079 continue; 2080 case CR_InducesCycle: 2081 // If the uses of the TokenFactor lead to nodes that are not part of our 2082 // pattern that are not selected, folding would turn this into a cycle, 2083 // bail out now. 2084 return CR_InducesCycle; 2085 case CR_LeadsToInteriorNode: 2086 break; // Otherwise, keep processing. 2087 } 2088 2089 // Okay, we know we're in the interesting interior case. The TokenFactor 2090 // is now going to be considered part of the pattern so that we rewrite its 2091 // uses (it may have uses that are not part of the pattern) with the 2092 // ultimate chain result of the generated code. We will also add its chain 2093 // inputs as inputs to the ultimate TokenFactor we create. 2094 Result = CR_LeadsToInteriorNode; 2095 ChainedNodesInPattern.push_back(User); 2096 InteriorChainedNodes.push_back(User); 2097 continue; 2098 } 2099 2100 return Result; 2101 } 2102 2103 /// HandleMergeInputChains - This implements the OPC_EmitMergeInputChains 2104 /// operation for when the pattern matched at least one node with a chains. The 2105 /// input vector contains a list of all of the chained nodes that we match. We 2106 /// must determine if this is a valid thing to cover (i.e. matching it won't 2107 /// induce cycles in the DAG) and if so, creating a TokenFactor node. that will 2108 /// be used as the input node chain for the generated nodes. 2109 static SDValue 2110 HandleMergeInputChains(SmallVectorImpl<SDNode*> &ChainNodesMatched, 2111 SelectionDAG *CurDAG) { 2112 // Walk all of the chained nodes we've matched, recursively scanning down the 2113 // users of the chain result. This adds any TokenFactor nodes that are caught 2114 // in between chained nodes to the chained and interior nodes list. 2115 SmallVector<SDNode*, 3> InteriorChainedNodes; 2116 for (unsigned i = 0, e = ChainNodesMatched.size(); i != e; ++i) { 2117 if (WalkChainUsers(ChainNodesMatched[i], ChainNodesMatched, 2118 InteriorChainedNodes) == CR_InducesCycle) 2119 return SDValue(); // Would induce a cycle. 2120 } 2121 2122 // Okay, we have walked all the matched nodes and collected TokenFactor nodes 2123 // that we are interested in. Form our input TokenFactor node. 2124 SmallVector<SDValue, 3> InputChains; 2125 for (unsigned i = 0, e = ChainNodesMatched.size(); i != e; ++i) { 2126 // Add the input chain of this node to the InputChains list (which will be 2127 // the operands of the generated TokenFactor) if it's not an interior node. 2128 SDNode *N = ChainNodesMatched[i]; 2129 if (N->getOpcode() != ISD::TokenFactor) { 2130 if (std::count(InteriorChainedNodes.begin(),InteriorChainedNodes.end(),N)) 2131 continue; 2132 2133 // Otherwise, add the input chain. 2134 SDValue InChain = ChainNodesMatched[i]->getOperand(0); 2135 assert(InChain.getValueType() == MVT::Other && "Not a chain"); 2136 InputChains.push_back(InChain); 2137 continue; 2138 } 2139 2140 // If we have a token factor, we want to add all inputs of the token factor 2141 // that are not part of the pattern we're matching. 2142 for (unsigned op = 0, e = N->getNumOperands(); op != e; ++op) { 2143 if (!std::count(ChainNodesMatched.begin(), ChainNodesMatched.end(), 2144 N->getOperand(op).getNode())) 2145 InputChains.push_back(N->getOperand(op)); 2146 } 2147 } 2148 2149 if (InputChains.size() == 1) 2150 return InputChains[0]; 2151 return CurDAG->getNode(ISD::TokenFactor, SDLoc(ChainNodesMatched[0]), 2152 MVT::Other, InputChains); 2153 } 2154 2155 /// MorphNode - Handle morphing a node in place for the selector. 2156 SDNode *SelectionDAGISel:: 2157 MorphNode(SDNode *Node, unsigned TargetOpc, SDVTList VTList, 2158 ArrayRef<SDValue> Ops, unsigned EmitNodeInfo) { 2159 // It is possible we're using MorphNodeTo to replace a node with no 2160 // normal results with one that has a normal result (or we could be 2161 // adding a chain) and the input could have glue and chains as well. 2162 // In this case we need to shift the operands down. 2163 // FIXME: This is a horrible hack and broken in obscure cases, no worse 2164 // than the old isel though. 2165 int OldGlueResultNo = -1, OldChainResultNo = -1; 2166 2167 unsigned NTMNumResults = Node->getNumValues(); 2168 if (Node->getValueType(NTMNumResults-1) == MVT::Glue) { 2169 OldGlueResultNo = NTMNumResults-1; 2170 if (NTMNumResults != 1 && 2171 Node->getValueType(NTMNumResults-2) == MVT::Other) 2172 OldChainResultNo = NTMNumResults-2; 2173 } else if (Node->getValueType(NTMNumResults-1) == MVT::Other) 2174 OldChainResultNo = NTMNumResults-1; 2175 2176 // Call the underlying SelectionDAG routine to do the transmogrification. Note 2177 // that this deletes operands of the old node that become dead. 2178 SDNode *Res = CurDAG->MorphNodeTo(Node, ~TargetOpc, VTList, Ops); 2179 2180 // MorphNodeTo can operate in two ways: if an existing node with the 2181 // specified operands exists, it can just return it. Otherwise, it 2182 // updates the node in place to have the requested operands. 2183 if (Res == Node) { 2184 // If we updated the node in place, reset the node ID. To the isel, 2185 // this should be just like a newly allocated machine node. 2186 Res->setNodeId(-1); 2187 } 2188 2189 unsigned ResNumResults = Res->getNumValues(); 2190 // Move the glue if needed. 2191 if ((EmitNodeInfo & OPFL_GlueOutput) && OldGlueResultNo != -1 && 2192 (unsigned)OldGlueResultNo != ResNumResults-1) 2193 CurDAG->ReplaceAllUsesOfValueWith(SDValue(Node, OldGlueResultNo), 2194 SDValue(Res, ResNumResults-1)); 2195 2196 if ((EmitNodeInfo & OPFL_GlueOutput) != 0) 2197 --ResNumResults; 2198 2199 // Move the chain reference if needed. 2200 if ((EmitNodeInfo & OPFL_Chain) && OldChainResultNo != -1 && 2201 (unsigned)OldChainResultNo != ResNumResults-1) 2202 CurDAG->ReplaceAllUsesOfValueWith(SDValue(Node, OldChainResultNo), 2203 SDValue(Res, ResNumResults-1)); 2204 2205 // Otherwise, no replacement happened because the node already exists. Replace 2206 // Uses of the old node with the new one. 2207 if (Res != Node) 2208 CurDAG->ReplaceAllUsesWith(Node, Res); 2209 2210 return Res; 2211 } 2212 2213 /// CheckSame - Implements OP_CheckSame. 2214 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2215 CheckSame(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2216 SDValue N, 2217 const SmallVectorImpl<std::pair<SDValue, SDNode*> > &RecordedNodes) { 2218 // Accept if it is exactly the same as a previously recorded node. 2219 unsigned RecNo = MatcherTable[MatcherIndex++]; 2220 assert(RecNo < RecordedNodes.size() && "Invalid CheckSame"); 2221 return N == RecordedNodes[RecNo].first; 2222 } 2223 2224 /// CheckChildSame - Implements OP_CheckChildXSame. 2225 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2226 CheckChildSame(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2227 SDValue N, 2228 const SmallVectorImpl<std::pair<SDValue, SDNode*> > &RecordedNodes, 2229 unsigned ChildNo) { 2230 if (ChildNo >= N.getNumOperands()) 2231 return false; // Match fails if out of range child #. 2232 return ::CheckSame(MatcherTable, MatcherIndex, N.getOperand(ChildNo), 2233 RecordedNodes); 2234 } 2235 2236 /// CheckPatternPredicate - Implements OP_CheckPatternPredicate. 2237 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2238 CheckPatternPredicate(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2239 const SelectionDAGISel &SDISel) { 2240 return SDISel.CheckPatternPredicate(MatcherTable[MatcherIndex++]); 2241 } 2242 2243 /// CheckNodePredicate - Implements OP_CheckNodePredicate. 2244 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2245 CheckNodePredicate(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2246 const SelectionDAGISel &SDISel, SDNode *N) { 2247 return SDISel.CheckNodePredicate(N, MatcherTable[MatcherIndex++]); 2248 } 2249 2250 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2251 CheckOpcode(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2252 SDNode *N) { 2253 uint16_t Opc = MatcherTable[MatcherIndex++]; 2254 Opc |= (unsigned short)MatcherTable[MatcherIndex++] << 8; 2255 return N->getOpcode() == Opc; 2256 } 2257 2258 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2259 CheckType(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2260 SDValue N, const TargetLowering *TLI) { 2261 MVT::SimpleValueType VT = (MVT::SimpleValueType)MatcherTable[MatcherIndex++]; 2262 if (N.getValueType() == VT) return true; 2263 2264 // Handle the case when VT is iPTR. 2265 return VT == MVT::iPTR && N.getValueType() == TLI->getPointerTy(); 2266 } 2267 2268 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2269 CheckChildType(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2270 SDValue N, const TargetLowering *TLI, unsigned ChildNo) { 2271 if (ChildNo >= N.getNumOperands()) 2272 return false; // Match fails if out of range child #. 2273 return ::CheckType(MatcherTable, MatcherIndex, N.getOperand(ChildNo), TLI); 2274 } 2275 2276 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2277 CheckCondCode(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2278 SDValue N) { 2279 return cast<CondCodeSDNode>(N)->get() == 2280 (ISD::CondCode)MatcherTable[MatcherIndex++]; 2281 } 2282 2283 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2284 CheckValueType(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2285 SDValue N, const TargetLowering *TLI) { 2286 MVT::SimpleValueType VT = (MVT::SimpleValueType)MatcherTable[MatcherIndex++]; 2287 if (cast<VTSDNode>(N)->getVT() == VT) 2288 return true; 2289 2290 // Handle the case when VT is iPTR. 2291 return VT == MVT::iPTR && cast<VTSDNode>(N)->getVT() == TLI->getPointerTy(); 2292 } 2293 2294 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2295 CheckInteger(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2296 SDValue N) { 2297 int64_t Val = MatcherTable[MatcherIndex++]; 2298 if (Val & 128) 2299 Val = GetVBR(Val, MatcherTable, MatcherIndex); 2300 2301 ConstantSDNode *C = dyn_cast<ConstantSDNode>(N); 2302 return C && C->getSExtValue() == Val; 2303 } 2304 2305 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2306 CheckChildInteger(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2307 SDValue N, unsigned ChildNo) { 2308 if (ChildNo >= N.getNumOperands()) 2309 return false; // Match fails if out of range child #. 2310 return ::CheckInteger(MatcherTable, MatcherIndex, N.getOperand(ChildNo)); 2311 } 2312 2313 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2314 CheckAndImm(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2315 SDValue N, const SelectionDAGISel &SDISel) { 2316 int64_t Val = MatcherTable[MatcherIndex++]; 2317 if (Val & 128) 2318 Val = GetVBR(Val, MatcherTable, MatcherIndex); 2319 2320 if (N->getOpcode() != ISD::AND) return false; 2321 2322 ConstantSDNode *C = dyn_cast<ConstantSDNode>(N->getOperand(1)); 2323 return C && SDISel.CheckAndMask(N.getOperand(0), C, Val); 2324 } 2325 2326 LLVM_ATTRIBUTE_ALWAYS_INLINE static bool 2327 CheckOrImm(const unsigned char *MatcherTable, unsigned &MatcherIndex, 2328 SDValue N, const SelectionDAGISel &SDISel) { 2329 int64_t Val = MatcherTable[MatcherIndex++]; 2330 if (Val & 128) 2331 Val = GetVBR(Val, MatcherTable, MatcherIndex); 2332 2333 if (N->getOpcode() != ISD::OR) return false; 2334 2335 ConstantSDNode *C = dyn_cast<ConstantSDNode>(N->getOperand(1)); 2336 return C && SDISel.CheckOrMask(N.getOperand(0), C, Val); 2337 } 2338 2339 /// IsPredicateKnownToFail - If we know how and can do so without pushing a 2340 /// scope, evaluate the current node. If the current predicate is known to 2341 /// fail, set Result=true and return anything. If the current predicate is 2342 /// known to pass, set Result=false and return the MatcherIndex to continue 2343 /// with. If the current predicate is unknown, set Result=false and return the 2344 /// MatcherIndex to continue with. 2345 static unsigned IsPredicateKnownToFail(const unsigned char *Table, 2346 unsigned Index, SDValue N, 2347 bool &Result, 2348 const SelectionDAGISel &SDISel, 2349 SmallVectorImpl<std::pair<SDValue, SDNode*> > &RecordedNodes) { 2350 switch (Table[Index++]) { 2351 default: 2352 Result = false; 2353 return Index-1; // Could not evaluate this predicate. 2354 case SelectionDAGISel::OPC_CheckSame: 2355 Result = !::CheckSame(Table, Index, N, RecordedNodes); 2356 return Index; 2357 case SelectionDAGISel::OPC_CheckChild0Same: 2358 case SelectionDAGISel::OPC_CheckChild1Same: 2359 case SelectionDAGISel::OPC_CheckChild2Same: 2360 case SelectionDAGISel::OPC_CheckChild3Same: 2361 Result = !::CheckChildSame(Table, Index, N, RecordedNodes, 2362 Table[Index-1] - SelectionDAGISel::OPC_CheckChild0Same); 2363 return Index; 2364 case SelectionDAGISel::OPC_CheckPatternPredicate: 2365 Result = !::CheckPatternPredicate(Table, Index, SDISel); 2366 return Index; 2367 case SelectionDAGISel::OPC_CheckPredicate: 2368 Result = !::CheckNodePredicate(Table, Index, SDISel, N.getNode()); 2369 return Index; 2370 case SelectionDAGISel::OPC_CheckOpcode: 2371 Result = !::CheckOpcode(Table, Index, N.getNode()); 2372 return Index; 2373 case SelectionDAGISel::OPC_CheckType: 2374 Result = !::CheckType(Table, Index, N, SDISel.getTargetLowering()); 2375 return Index; 2376 case SelectionDAGISel::OPC_CheckChild0Type: 2377 case SelectionDAGISel::OPC_CheckChild1Type: 2378 case SelectionDAGISel::OPC_CheckChild2Type: 2379 case SelectionDAGISel::OPC_CheckChild3Type: 2380 case SelectionDAGISel::OPC_CheckChild4Type: 2381 case SelectionDAGISel::OPC_CheckChild5Type: 2382 case SelectionDAGISel::OPC_CheckChild6Type: 2383 case SelectionDAGISel::OPC_CheckChild7Type: 2384 Result = !::CheckChildType(Table, Index, N, SDISel.getTargetLowering(), 2385 Table[Index-1] - SelectionDAGISel::OPC_CheckChild0Type); 2386 return Index; 2387 case SelectionDAGISel::OPC_CheckCondCode: 2388 Result = !::CheckCondCode(Table, Index, N); 2389 return Index; 2390 case SelectionDAGISel::OPC_CheckValueType: 2391 Result = !::CheckValueType(Table, Index, N, SDISel.getTargetLowering()); 2392 return Index; 2393 case SelectionDAGISel::OPC_CheckInteger: 2394 Result = !::CheckInteger(Table, Index, N); 2395 return Index; 2396 case SelectionDAGISel::OPC_CheckChild0Integer: 2397 case SelectionDAGISel::OPC_CheckChild1Integer: 2398 case SelectionDAGISel::OPC_CheckChild2Integer: 2399 case SelectionDAGISel::OPC_CheckChild3Integer: 2400 case SelectionDAGISel::OPC_CheckChild4Integer: 2401 Result = !::CheckChildInteger(Table, Index, N, 2402 Table[Index-1] - SelectionDAGISel::OPC_CheckChild0Integer); 2403 return Index; 2404 case SelectionDAGISel::OPC_CheckAndImm: 2405 Result = !::CheckAndImm(Table, Index, N, SDISel); 2406 return Index; 2407 case SelectionDAGISel::OPC_CheckOrImm: 2408 Result = !::CheckOrImm(Table, Index, N, SDISel); 2409 return Index; 2410 } 2411 } 2412 2413 namespace { 2414 2415 struct MatchScope { 2416 /// FailIndex - If this match fails, this is the index to continue with. 2417 unsigned FailIndex; 2418 2419 /// NodeStack - The node stack when the scope was formed. 2420 SmallVector<SDValue, 4> NodeStack; 2421 2422 /// NumRecordedNodes - The number of recorded nodes when the scope was formed. 2423 unsigned NumRecordedNodes; 2424 2425 /// NumMatchedMemRefs - The number of matched memref entries. 2426 unsigned NumMatchedMemRefs; 2427 2428 /// InputChain/InputGlue - The current chain/glue 2429 SDValue InputChain, InputGlue; 2430 2431 /// HasChainNodesMatched - True if the ChainNodesMatched list is non-empty. 2432 bool HasChainNodesMatched, HasGlueResultNodesMatched; 2433 }; 2434 2435 } 2436 2437 SDNode *SelectionDAGISel:: 2438 SelectCodeCommon(SDNode *NodeToMatch, const unsigned char *MatcherTable, 2439 unsigned TableSize) { 2440 // FIXME: Should these even be selected? Handle these cases in the caller? 2441 switch (NodeToMatch->getOpcode()) { 2442 default: 2443 break; 2444 case ISD::EntryToken: // These nodes remain the same. 2445 case ISD::BasicBlock: 2446 case ISD::Register: 2447 case ISD::RegisterMask: 2448 case ISD::HANDLENODE: 2449 case ISD::MDNODE_SDNODE: 2450 case ISD::TargetConstant: 2451 case ISD::TargetConstantFP: 2452 case ISD::TargetConstantPool: 2453 case ISD::TargetFrameIndex: 2454 case ISD::TargetExternalSymbol: 2455 case ISD::TargetBlockAddress: 2456 case ISD::TargetJumpTable: 2457 case ISD::TargetGlobalTLSAddress: 2458 case ISD::TargetGlobalAddress: 2459 case ISD::TokenFactor: 2460 case ISD::CopyFromReg: 2461 case ISD::CopyToReg: 2462 case ISD::EH_LABEL: 2463 case ISD::LIFETIME_START: 2464 case ISD::LIFETIME_END: 2465 NodeToMatch->setNodeId(-1); // Mark selected. 2466 return nullptr; 2467 case ISD::AssertSext: 2468 case ISD::AssertZext: 2469 CurDAG->ReplaceAllUsesOfValueWith(SDValue(NodeToMatch, 0), 2470 NodeToMatch->getOperand(0)); 2471 return nullptr; 2472 case ISD::INLINEASM: return Select_INLINEASM(NodeToMatch); 2473 case ISD::READ_REGISTER: return Select_READ_REGISTER(NodeToMatch); 2474 case ISD::WRITE_REGISTER: return Select_WRITE_REGISTER(NodeToMatch); 2475 case ISD::UNDEF: return Select_UNDEF(NodeToMatch); 2476 } 2477 2478 assert(!NodeToMatch->isMachineOpcode() && "Node already selected!"); 2479 2480 // Set up the node stack with NodeToMatch as the only node on the stack. 2481 SmallVector<SDValue, 8> NodeStack; 2482 SDValue N = SDValue(NodeToMatch, 0); 2483 NodeStack.push_back(N); 2484 2485 // MatchScopes - Scopes used when matching, if a match failure happens, this 2486 // indicates where to continue checking. 2487 SmallVector<MatchScope, 8> MatchScopes; 2488 2489 // RecordedNodes - This is the set of nodes that have been recorded by the 2490 // state machine. The second value is the parent of the node, or null if the 2491 // root is recorded. 2492 SmallVector<std::pair<SDValue, SDNode*>, 8> RecordedNodes; 2493 2494 // MatchedMemRefs - This is the set of MemRef's we've seen in the input 2495 // pattern. 2496 SmallVector<MachineMemOperand*, 2> MatchedMemRefs; 2497 2498 // These are the current input chain and glue for use when generating nodes. 2499 // Various Emit operations change these. For example, emitting a copytoreg 2500 // uses and updates these. 2501 SDValue InputChain, InputGlue; 2502 2503 // ChainNodesMatched - If a pattern matches nodes that have input/output 2504 // chains, the OPC_EmitMergeInputChains operation is emitted which indicates 2505 // which ones they are. The result is captured into this list so that we can 2506 // update the chain results when the pattern is complete. 2507 SmallVector<SDNode*, 3> ChainNodesMatched; 2508 SmallVector<SDNode*, 3> GlueResultNodesMatched; 2509 2510 DEBUG(dbgs() << "ISEL: Starting pattern match on root node: "; 2511 NodeToMatch->dump(CurDAG); 2512 dbgs() << '\n'); 2513 2514 // Determine where to start the interpreter. Normally we start at opcode #0, 2515 // but if the state machine starts with an OPC_SwitchOpcode, then we 2516 // accelerate the first lookup (which is guaranteed to be hot) with the 2517 // OpcodeOffset table. 2518 unsigned MatcherIndex = 0; 2519 2520 if (!OpcodeOffset.empty()) { 2521 // Already computed the OpcodeOffset table, just index into it. 2522 if (N.getOpcode() < OpcodeOffset.size()) 2523 MatcherIndex = OpcodeOffset[N.getOpcode()]; 2524 DEBUG(dbgs() << " Initial Opcode index to " << MatcherIndex << "\n"); 2525 2526 } else if (MatcherTable[0] == OPC_SwitchOpcode) { 2527 // Otherwise, the table isn't computed, but the state machine does start 2528 // with an OPC_SwitchOpcode instruction. Populate the table now, since this 2529 // is the first time we're selecting an instruction. 2530 unsigned Idx = 1; 2531 while (1) { 2532 // Get the size of this case. 2533 unsigned CaseSize = MatcherTable[Idx++]; 2534 if (CaseSize & 128) 2535 CaseSize = GetVBR(CaseSize, MatcherTable, Idx); 2536 if (CaseSize == 0) break; 2537 2538 // Get the opcode, add the index to the table. 2539 uint16_t Opc = MatcherTable[Idx++]; 2540 Opc |= (unsigned short)MatcherTable[Idx++] << 8; 2541 if (Opc >= OpcodeOffset.size()) 2542 OpcodeOffset.resize((Opc+1)*2); 2543 OpcodeOffset[Opc] = Idx; 2544 Idx += CaseSize; 2545 } 2546 2547 // Okay, do the lookup for the first opcode. 2548 if (N.getOpcode() < OpcodeOffset.size()) 2549 MatcherIndex = OpcodeOffset[N.getOpcode()]; 2550 } 2551 2552 while (1) { 2553 assert(MatcherIndex < TableSize && "Invalid index"); 2554 #ifndef NDEBUG 2555 unsigned CurrentOpcodeIndex = MatcherIndex; 2556 #endif 2557 BuiltinOpcodes Opcode = (BuiltinOpcodes)MatcherTable[MatcherIndex++]; 2558 switch (Opcode) { 2559 case OPC_Scope: { 2560 // Okay, the semantics of this operation are that we should push a scope 2561 // then evaluate the first child. However, pushing a scope only to have 2562 // the first check fail (which then pops it) is inefficient. If we can 2563 // determine immediately that the first check (or first several) will 2564 // immediately fail, don't even bother pushing a scope for them. 2565 unsigned FailIndex; 2566 2567 while (1) { 2568 unsigned NumToSkip = MatcherTable[MatcherIndex++]; 2569 if (NumToSkip & 128) 2570 NumToSkip = GetVBR(NumToSkip, MatcherTable, MatcherIndex); 2571 // Found the end of the scope with no match. 2572 if (NumToSkip == 0) { 2573 FailIndex = 0; 2574 break; 2575 } 2576 2577 FailIndex = MatcherIndex+NumToSkip; 2578 2579 unsigned MatcherIndexOfPredicate = MatcherIndex; 2580 (void)MatcherIndexOfPredicate; // silence warning. 2581 2582 // If we can't evaluate this predicate without pushing a scope (e.g. if 2583 // it is a 'MoveParent') or if the predicate succeeds on this node, we 2584 // push the scope and evaluate the full predicate chain. 2585 bool Result; 2586 MatcherIndex = IsPredicateKnownToFail(MatcherTable, MatcherIndex, N, 2587 Result, *this, RecordedNodes); 2588 if (!Result) 2589 break; 2590 2591 DEBUG(dbgs() << " Skipped scope entry (due to false predicate) at " 2592 << "index " << MatcherIndexOfPredicate 2593 << ", continuing at " << FailIndex << "\n"); 2594 ++NumDAGIselRetries; 2595 2596 // Otherwise, we know that this case of the Scope is guaranteed to fail, 2597 // move to the next case. 2598 MatcherIndex = FailIndex; 2599 } 2600 2601 // If the whole scope failed to match, bail. 2602 if (FailIndex == 0) break; 2603 2604 // Push a MatchScope which indicates where to go if the first child fails 2605 // to match. 2606 MatchScope NewEntry; 2607 NewEntry.FailIndex = FailIndex; 2608 NewEntry.NodeStack.append(NodeStack.begin(), NodeStack.end()); 2609 NewEntry.NumRecordedNodes = RecordedNodes.size(); 2610 NewEntry.NumMatchedMemRefs = MatchedMemRefs.size(); 2611 NewEntry.InputChain = InputChain; 2612 NewEntry.InputGlue = InputGlue; 2613 NewEntry.HasChainNodesMatched = !ChainNodesMatched.empty(); 2614 NewEntry.HasGlueResultNodesMatched = !GlueResultNodesMatched.empty(); 2615 MatchScopes.push_back(NewEntry); 2616 continue; 2617 } 2618 case OPC_RecordNode: { 2619 // Remember this node, it may end up being an operand in the pattern. 2620 SDNode *Parent = nullptr; 2621 if (NodeStack.size() > 1) 2622 Parent = NodeStack[NodeStack.size()-2].getNode(); 2623 RecordedNodes.push_back(std::make_pair(N, Parent)); 2624 continue; 2625 } 2626 2627 case OPC_RecordChild0: case OPC_RecordChild1: 2628 case OPC_RecordChild2: case OPC_RecordChild3: 2629 case OPC_RecordChild4: case OPC_RecordChild5: 2630 case OPC_RecordChild6: case OPC_RecordChild7: { 2631 unsigned ChildNo = Opcode-OPC_RecordChild0; 2632 if (ChildNo >= N.getNumOperands()) 2633 break; // Match fails if out of range child #. 2634 2635 RecordedNodes.push_back(std::make_pair(N->getOperand(ChildNo), 2636 N.getNode())); 2637 continue; 2638 } 2639 case OPC_RecordMemRef: 2640 MatchedMemRefs.push_back(cast<MemSDNode>(N)->getMemOperand()); 2641 continue; 2642 2643 case OPC_CaptureGlueInput: 2644 // If the current node has an input glue, capture it in InputGlue. 2645 if (N->getNumOperands() != 0 && 2646 N->getOperand(N->getNumOperands()-1).getValueType() == MVT::Glue) 2647 InputGlue = N->getOperand(N->getNumOperands()-1); 2648 continue; 2649 2650 case OPC_MoveChild: { 2651 unsigned ChildNo = MatcherTable[MatcherIndex++]; 2652 if (ChildNo >= N.getNumOperands()) 2653 break; // Match fails if out of range child #. 2654 N = N.getOperand(ChildNo); 2655 NodeStack.push_back(N); 2656 continue; 2657 } 2658 2659 case OPC_MoveParent: 2660 // Pop the current node off the NodeStack. 2661 NodeStack.pop_back(); 2662 assert(!NodeStack.empty() && "Node stack imbalance!"); 2663 N = NodeStack.back(); 2664 continue; 2665 2666 case OPC_CheckSame: 2667 if (!::CheckSame(MatcherTable, MatcherIndex, N, RecordedNodes)) break; 2668 continue; 2669 2670 case OPC_CheckChild0Same: case OPC_CheckChild1Same: 2671 case OPC_CheckChild2Same: case OPC_CheckChild3Same: 2672 if (!::CheckChildSame(MatcherTable, MatcherIndex, N, RecordedNodes, 2673 Opcode-OPC_CheckChild0Same)) 2674 break; 2675 continue; 2676 2677 case OPC_CheckPatternPredicate: 2678 if (!::CheckPatternPredicate(MatcherTable, MatcherIndex, *this)) break; 2679 continue; 2680 case OPC_CheckPredicate: 2681 if (!::CheckNodePredicate(MatcherTable, MatcherIndex, *this, 2682 N.getNode())) 2683 break; 2684 continue; 2685 case OPC_CheckComplexPat: { 2686 unsigned CPNum = MatcherTable[MatcherIndex++]; 2687 unsigned RecNo = MatcherTable[MatcherIndex++]; 2688 assert(RecNo < RecordedNodes.size() && "Invalid CheckComplexPat"); 2689 if (!CheckComplexPattern(NodeToMatch, RecordedNodes[RecNo].second, 2690 RecordedNodes[RecNo].first, CPNum, 2691 RecordedNodes)) 2692 break; 2693 continue; 2694 } 2695 case OPC_CheckOpcode: 2696 if (!::CheckOpcode(MatcherTable, MatcherIndex, N.getNode())) break; 2697 continue; 2698 2699 case OPC_CheckType: 2700 if (!::CheckType(MatcherTable, MatcherIndex, N, getTargetLowering())) 2701 break; 2702 continue; 2703 2704 case OPC_SwitchOpcode: { 2705 unsigned CurNodeOpcode = N.getOpcode(); 2706 unsigned SwitchStart = MatcherIndex-1; (void)SwitchStart; 2707 unsigned CaseSize; 2708 while (1) { 2709 // Get the size of this case. 2710 CaseSize = MatcherTable[MatcherIndex++]; 2711 if (CaseSize & 128) 2712 CaseSize = GetVBR(CaseSize, MatcherTable, MatcherIndex); 2713 if (CaseSize == 0) break; 2714 2715 uint16_t Opc = MatcherTable[MatcherIndex++]; 2716 Opc |= (unsigned short)MatcherTable[MatcherIndex++] << 8; 2717 2718 // If the opcode matches, then we will execute this case. 2719 if (CurNodeOpcode == Opc) 2720 break; 2721 2722 // Otherwise, skip over this case. 2723 MatcherIndex += CaseSize; 2724 } 2725 2726 // If no cases matched, bail out. 2727 if (CaseSize == 0) break; 2728 2729 // Otherwise, execute the case we found. 2730 DEBUG(dbgs() << " OpcodeSwitch from " << SwitchStart 2731 << " to " << MatcherIndex << "\n"); 2732 continue; 2733 } 2734 2735 case OPC_SwitchType: { 2736 MVT CurNodeVT = N.getSimpleValueType(); 2737 unsigned SwitchStart = MatcherIndex-1; (void)SwitchStart; 2738 unsigned CaseSize; 2739 while (1) { 2740 // Get the size of this case. 2741 CaseSize = MatcherTable[MatcherIndex++]; 2742 if (CaseSize & 128) 2743 CaseSize = GetVBR(CaseSize, MatcherTable, MatcherIndex); 2744 if (CaseSize == 0) break; 2745 2746 MVT CaseVT = (MVT::SimpleValueType)MatcherTable[MatcherIndex++]; 2747 if (CaseVT == MVT::iPTR) 2748 CaseVT = getTargetLowering()->getPointerTy(); 2749 2750 // If the VT matches, then we will execute this case. 2751 if (CurNodeVT == CaseVT) 2752 break; 2753 2754 // Otherwise, skip over this case. 2755 MatcherIndex += CaseSize; 2756 } 2757 2758 // If no cases matched, bail out. 2759 if (CaseSize == 0) break; 2760 2761 // Otherwise, execute the case we found. 2762 DEBUG(dbgs() << " TypeSwitch[" << EVT(CurNodeVT).getEVTString() 2763 << "] from " << SwitchStart << " to " << MatcherIndex<<'\n'); 2764 continue; 2765 } 2766 case OPC_CheckChild0Type: case OPC_CheckChild1Type: 2767 case OPC_CheckChild2Type: case OPC_CheckChild3Type: 2768 case OPC_CheckChild4Type: case OPC_CheckChild5Type: 2769 case OPC_CheckChild6Type: case OPC_CheckChild7Type: 2770 if (!::CheckChildType(MatcherTable, MatcherIndex, N, getTargetLowering(), 2771 Opcode-OPC_CheckChild0Type)) 2772 break; 2773 continue; 2774 case OPC_CheckCondCode: 2775 if (!::CheckCondCode(MatcherTable, MatcherIndex, N)) break; 2776 continue; 2777 case OPC_CheckValueType: 2778 if (!::CheckValueType(MatcherTable, MatcherIndex, N, getTargetLowering())) 2779 break; 2780 continue; 2781 case OPC_CheckInteger: 2782 if (!::CheckInteger(MatcherTable, MatcherIndex, N)) break; 2783 continue; 2784 case OPC_CheckChild0Integer: case OPC_CheckChild1Integer: 2785 case OPC_CheckChild2Integer: case OPC_CheckChild3Integer: 2786 case OPC_CheckChild4Integer: 2787 if (!::CheckChildInteger(MatcherTable, MatcherIndex, N, 2788 Opcode-OPC_CheckChild0Integer)) break; 2789 continue; 2790 case OPC_CheckAndImm: 2791 if (!::CheckAndImm(MatcherTable, MatcherIndex, N, *this)) break; 2792 continue; 2793 case OPC_CheckOrImm: 2794 if (!::CheckOrImm(MatcherTable, MatcherIndex, N, *this)) break; 2795 continue; 2796 2797 case OPC_CheckFoldableChainNode: { 2798 assert(NodeStack.size() != 1 && "No parent node"); 2799 // Verify that all intermediate nodes between the root and this one have 2800 // a single use. 2801 bool HasMultipleUses = false; 2802 for (unsigned i = 1, e = NodeStack.size()-1; i != e; ++i) 2803 if (!NodeStack[i].hasOneUse()) { 2804 HasMultipleUses = true; 2805 break; 2806 } 2807 if (HasMultipleUses) break; 2808 2809 // Check to see that the target thinks this is profitable to fold and that 2810 // we can fold it without inducing cycles in the graph. 2811 if (!IsProfitableToFold(N, NodeStack[NodeStack.size()-2].getNode(), 2812 NodeToMatch) || 2813 !IsLegalToFold(N, NodeStack[NodeStack.size()-2].getNode(), 2814 NodeToMatch, OptLevel, 2815 true/*We validate our own chains*/)) 2816 break; 2817 2818 continue; 2819 } 2820 case OPC_EmitInteger: { 2821 MVT::SimpleValueType VT = 2822 (MVT::SimpleValueType)MatcherTable[MatcherIndex++]; 2823 int64_t Val = MatcherTable[MatcherIndex++]; 2824 if (Val & 128) 2825 Val = GetVBR(Val, MatcherTable, MatcherIndex); 2826 RecordedNodes.push_back(std::pair<SDValue, SDNode*>( 2827 CurDAG->getTargetConstant(Val, VT), nullptr)); 2828 continue; 2829 } 2830 case OPC_EmitRegister: { 2831 MVT::SimpleValueType VT = 2832 (MVT::SimpleValueType)MatcherTable[MatcherIndex++]; 2833 unsigned RegNo = MatcherTable[MatcherIndex++]; 2834 RecordedNodes.push_back(std::pair<SDValue, SDNode*>( 2835 CurDAG->getRegister(RegNo, VT), nullptr)); 2836 continue; 2837 } 2838 case OPC_EmitRegister2: { 2839 // For targets w/ more than 256 register names, the register enum 2840 // values are stored in two bytes in the matcher table (just like 2841 // opcodes). 2842 MVT::SimpleValueType VT = 2843 (MVT::SimpleValueType)MatcherTable[MatcherIndex++]; 2844 unsigned RegNo = MatcherTable[MatcherIndex++]; 2845 RegNo |= MatcherTable[MatcherIndex++] << 8; 2846 RecordedNodes.push_back(std::pair<SDValue, SDNode*>( 2847 CurDAG->getRegister(RegNo, VT), nullptr)); 2848 continue; 2849 } 2850 2851 case OPC_EmitConvertToTarget: { 2852 // Convert from IMM/FPIMM to target version. 2853 unsigned RecNo = MatcherTable[MatcherIndex++]; 2854 assert(RecNo < RecordedNodes.size() && "Invalid EmitConvertToTarget"); 2855 SDValue Imm = RecordedNodes[RecNo].first; 2856 2857 if (Imm->getOpcode() == ISD::Constant) { 2858 const ConstantInt *Val=cast<ConstantSDNode>(Imm)->getConstantIntValue(); 2859 Imm = CurDAG->getConstant(*Val, Imm.getValueType(), true); 2860 } else if (Imm->getOpcode() == ISD::ConstantFP) { 2861 const ConstantFP *Val=cast<ConstantFPSDNode>(Imm)->getConstantFPValue(); 2862 Imm = CurDAG->getConstantFP(*Val, Imm.getValueType(), true); 2863 } 2864 2865 RecordedNodes.push_back(std::make_pair(Imm, RecordedNodes[RecNo].second)); 2866 continue; 2867 } 2868 2869 case OPC_EmitMergeInputChains1_0: // OPC_EmitMergeInputChains, 1, 0 2870 case OPC_EmitMergeInputChains1_1: { // OPC_EmitMergeInputChains, 1, 1 2871 // These are space-optimized forms of OPC_EmitMergeInputChains. 2872 assert(!InputChain.getNode() && 2873 "EmitMergeInputChains should be the first chain producing node"); 2874 assert(ChainNodesMatched.empty() && 2875 "Should only have one EmitMergeInputChains per match"); 2876 2877 // Read all of the chained nodes. 2878 unsigned RecNo = Opcode == OPC_EmitMergeInputChains1_1; 2879 assert(RecNo < RecordedNodes.size() && "Invalid EmitMergeInputChains"); 2880 ChainNodesMatched.push_back(RecordedNodes[RecNo].first.getNode()); 2881 2882 // FIXME: What if other value results of the node have uses not matched 2883 // by this pattern? 2884 if (ChainNodesMatched.back() != NodeToMatch && 2885 !RecordedNodes[RecNo].first.hasOneUse()) { 2886 ChainNodesMatched.clear(); 2887 break; 2888 } 2889 2890 // Merge the input chains if they are not intra-pattern references. 2891 InputChain = HandleMergeInputChains(ChainNodesMatched, CurDAG); 2892 2893 if (!InputChain.getNode()) 2894 break; // Failed to merge. 2895 continue; 2896 } 2897 2898 case OPC_EmitMergeInputChains: { 2899 assert(!InputChain.getNode() && 2900 "EmitMergeInputChains should be the first chain producing node"); 2901 // This node gets a list of nodes we matched in the input that have 2902 // chains. We want to token factor all of the input chains to these nodes 2903 // together. However, if any of the input chains is actually one of the 2904 // nodes matched in this pattern, then we have an intra-match reference. 2905 // Ignore these because the newly token factored chain should not refer to 2906 // the old nodes. 2907 unsigned NumChains = MatcherTable[MatcherIndex++]; 2908 assert(NumChains != 0 && "Can't TF zero chains"); 2909 2910 assert(ChainNodesMatched.empty() && 2911 "Should only have one EmitMergeInputChains per match"); 2912 2913 // Read all of the chained nodes. 2914 for (unsigned i = 0; i != NumChains; ++i) { 2915 unsigned RecNo = MatcherTable[MatcherIndex++]; 2916 assert(RecNo < RecordedNodes.size() && "Invalid EmitMergeInputChains"); 2917 ChainNodesMatched.push_back(RecordedNodes[RecNo].first.getNode()); 2918 2919 // FIXME: What if other value results of the node have uses not matched 2920 // by this pattern? 2921 if (ChainNodesMatched.back() != NodeToMatch && 2922 !RecordedNodes[RecNo].first.hasOneUse()) { 2923 ChainNodesMatched.clear(); 2924 break; 2925 } 2926 } 2927 2928 // If the inner loop broke out, the match fails. 2929 if (ChainNodesMatched.empty()) 2930 break; 2931 2932 // Merge the input chains if they are not intra-pattern references. 2933 InputChain = HandleMergeInputChains(ChainNodesMatched, CurDAG); 2934 2935 if (!InputChain.getNode()) 2936 break; // Failed to merge. 2937 2938 continue; 2939 } 2940 2941 case OPC_EmitCopyToReg: { 2942 unsigned RecNo = MatcherTable[MatcherIndex++]; 2943 assert(RecNo < RecordedNodes.size() && "Invalid EmitCopyToReg"); 2944 unsigned DestPhysReg = MatcherTable[MatcherIndex++]; 2945 2946 if (!InputChain.getNode()) 2947 InputChain = CurDAG->getEntryNode(); 2948 2949 InputChain = CurDAG->getCopyToReg(InputChain, SDLoc(NodeToMatch), 2950 DestPhysReg, RecordedNodes[RecNo].first, 2951 InputGlue); 2952 2953 InputGlue = InputChain.getValue(1); 2954 continue; 2955 } 2956 2957 case OPC_EmitNodeXForm: { 2958 unsigned XFormNo = MatcherTable[MatcherIndex++]; 2959 unsigned RecNo = MatcherTable[MatcherIndex++]; 2960 assert(RecNo < RecordedNodes.size() && "Invalid EmitNodeXForm"); 2961 SDValue Res = RunSDNodeXForm(RecordedNodes[RecNo].first, XFormNo); 2962 RecordedNodes.push_back(std::pair<SDValue,SDNode*>(Res, nullptr)); 2963 continue; 2964 } 2965 2966 case OPC_EmitNode: 2967 case OPC_MorphNodeTo: { 2968 uint16_t TargetOpc = MatcherTable[MatcherIndex++]; 2969 TargetOpc |= (unsigned short)MatcherTable[MatcherIndex++] << 8; 2970 unsigned EmitNodeInfo = MatcherTable[MatcherIndex++]; 2971 // Get the result VT list. 2972 unsigned NumVTs = MatcherTable[MatcherIndex++]; 2973 SmallVector<EVT, 4> VTs; 2974 for (unsigned i = 0; i != NumVTs; ++i) { 2975 MVT::SimpleValueType VT = 2976 (MVT::SimpleValueType)MatcherTable[MatcherIndex++]; 2977 if (VT == MVT::iPTR) VT = getTargetLowering()->getPointerTy().SimpleTy; 2978 VTs.push_back(VT); 2979 } 2980 2981 if (EmitNodeInfo & OPFL_Chain) 2982 VTs.push_back(MVT::Other); 2983 if (EmitNodeInfo & OPFL_GlueOutput) 2984 VTs.push_back(MVT::Glue); 2985 2986 // This is hot code, so optimize the two most common cases of 1 and 2 2987 // results. 2988 SDVTList VTList; 2989 if (VTs.size() == 1) 2990 VTList = CurDAG->getVTList(VTs[0]); 2991 else if (VTs.size() == 2) 2992 VTList = CurDAG->getVTList(VTs[0], VTs[1]); 2993 else 2994 VTList = CurDAG->getVTList(VTs); 2995 2996 // Get the operand list. 2997 unsigned NumOps = MatcherTable[MatcherIndex++]; 2998 SmallVector<SDValue, 8> Ops; 2999 for (unsigned i = 0; i != NumOps; ++i) { 3000 unsigned RecNo = MatcherTable[MatcherIndex++]; 3001 if (RecNo & 128) 3002 RecNo = GetVBR(RecNo, MatcherTable, MatcherIndex); 3003 3004 assert(RecNo < RecordedNodes.size() && "Invalid EmitNode"); 3005 Ops.push_back(RecordedNodes[RecNo].first); 3006 } 3007 3008 // If there are variadic operands to add, handle them now. 3009 if (EmitNodeInfo & OPFL_VariadicInfo) { 3010 // Determine the start index to copy from. 3011 unsigned FirstOpToCopy = getNumFixedFromVariadicInfo(EmitNodeInfo); 3012 FirstOpToCopy += (EmitNodeInfo & OPFL_Chain) ? 1 : 0; 3013 assert(NodeToMatch->getNumOperands() >= FirstOpToCopy && 3014 "Invalid variadic node"); 3015 // Copy all of the variadic operands, not including a potential glue 3016 // input. 3017 for (unsigned i = FirstOpToCopy, e = NodeToMatch->getNumOperands(); 3018 i != e; ++i) { 3019 SDValue V = NodeToMatch->getOperand(i); 3020 if (V.getValueType() == MVT::Glue) break; 3021 Ops.push_back(V); 3022 } 3023 } 3024 3025 // If this has chain/glue inputs, add them. 3026 if (EmitNodeInfo & OPFL_Chain) 3027 Ops.push_back(InputChain); 3028 if ((EmitNodeInfo & OPFL_GlueInput) && InputGlue.getNode() != nullptr) 3029 Ops.push_back(InputGlue); 3030 3031 // Create the node. 3032 SDNode *Res = nullptr; 3033 if (Opcode != OPC_MorphNodeTo) { 3034 // If this is a normal EmitNode command, just create the new node and 3035 // add the results to the RecordedNodes list. 3036 Res = CurDAG->getMachineNode(TargetOpc, SDLoc(NodeToMatch), 3037 VTList, Ops); 3038 3039 // Add all the non-glue/non-chain results to the RecordedNodes list. 3040 for (unsigned i = 0, e = VTs.size(); i != e; ++i) { 3041 if (VTs[i] == MVT::Other || VTs[i] == MVT::Glue) break; 3042 RecordedNodes.push_back(std::pair<SDValue,SDNode*>(SDValue(Res, i), 3043 nullptr)); 3044 } 3045 3046 } else if (NodeToMatch->getOpcode() != ISD::DELETED_NODE) { 3047 Res = MorphNode(NodeToMatch, TargetOpc, VTList, Ops, EmitNodeInfo); 3048 } else { 3049 // NodeToMatch was eliminated by CSE when the target changed the DAG. 3050 // We will visit the equivalent node later. 3051 DEBUG(dbgs() << "Node was eliminated by CSE\n"); 3052 return nullptr; 3053 } 3054 3055 // If the node had chain/glue results, update our notion of the current 3056 // chain and glue. 3057 if (EmitNodeInfo & OPFL_GlueOutput) { 3058 InputGlue = SDValue(Res, VTs.size()-1); 3059 if (EmitNodeInfo & OPFL_Chain) 3060 InputChain = SDValue(Res, VTs.size()-2); 3061 } else if (EmitNodeInfo & OPFL_Chain) 3062 InputChain = SDValue(Res, VTs.size()-1); 3063 3064 // If the OPFL_MemRefs glue is set on this node, slap all of the 3065 // accumulated memrefs onto it. 3066 // 3067 // FIXME: This is vastly incorrect for patterns with multiple outputs 3068 // instructions that access memory and for ComplexPatterns that match 3069 // loads. 3070 if (EmitNodeInfo & OPFL_MemRefs) { 3071 // Only attach load or store memory operands if the generated 3072 // instruction may load or store. 3073 const MCInstrDesc &MCID = 3074 TM.getSubtargetImpl()->getInstrInfo()->get(TargetOpc); 3075 bool mayLoad = MCID.mayLoad(); 3076 bool mayStore = MCID.mayStore(); 3077 3078 unsigned NumMemRefs = 0; 3079 for (SmallVectorImpl<MachineMemOperand *>::const_iterator I = 3080 MatchedMemRefs.begin(), E = MatchedMemRefs.end(); I != E; ++I) { 3081 if ((*I)->isLoad()) { 3082 if (mayLoad) 3083 ++NumMemRefs; 3084 } else if ((*I)->isStore()) { 3085 if (mayStore) 3086 ++NumMemRefs; 3087 } else { 3088 ++NumMemRefs; 3089 } 3090 } 3091 3092 MachineSDNode::mmo_iterator MemRefs = 3093 MF->allocateMemRefsArray(NumMemRefs); 3094 3095 MachineSDNode::mmo_iterator MemRefsPos = MemRefs; 3096 for (SmallVectorImpl<MachineMemOperand *>::const_iterator I = 3097 MatchedMemRefs.begin(), E = MatchedMemRefs.end(); I != E; ++I) { 3098 if ((*I)->isLoad()) { 3099 if (mayLoad) 3100 *MemRefsPos++ = *I; 3101 } else if ((*I)->isStore()) { 3102 if (mayStore) 3103 *MemRefsPos++ = *I; 3104 } else { 3105 *MemRefsPos++ = *I; 3106 } 3107 } 3108 3109 cast<MachineSDNode>(Res) 3110 ->setMemRefs(MemRefs, MemRefs + NumMemRefs); 3111 } 3112 3113 DEBUG(dbgs() << " " 3114 << (Opcode == OPC_MorphNodeTo ? "Morphed" : "Created") 3115 << " node: "; Res->dump(CurDAG); dbgs() << "\n"); 3116 3117 // If this was a MorphNodeTo then we're completely done! 3118 if (Opcode == OPC_MorphNodeTo) { 3119 // Update chain and glue uses. 3120 UpdateChainsAndGlue(NodeToMatch, InputChain, ChainNodesMatched, 3121 InputGlue, GlueResultNodesMatched, true); 3122 return Res; 3123 } 3124 3125 continue; 3126 } 3127 3128 case OPC_MarkGlueResults: { 3129 unsigned NumNodes = MatcherTable[MatcherIndex++]; 3130 3131 // Read and remember all the glue-result nodes. 3132 for (unsigned i = 0; i != NumNodes; ++i) { 3133 unsigned RecNo = MatcherTable[MatcherIndex++]; 3134 if (RecNo & 128) 3135 RecNo = GetVBR(RecNo, MatcherTable, MatcherIndex); 3136 3137 assert(RecNo < RecordedNodes.size() && "Invalid MarkGlueResults"); 3138 GlueResultNodesMatched.push_back(RecordedNodes[RecNo].first.getNode()); 3139 } 3140 continue; 3141 } 3142 3143 case OPC_CompleteMatch: { 3144 // The match has been completed, and any new nodes (if any) have been 3145 // created. Patch up references to the matched dag to use the newly 3146 // created nodes. 3147 unsigned NumResults = MatcherTable[MatcherIndex++]; 3148 3149 for (unsigned i = 0; i != NumResults; ++i) { 3150 unsigned ResSlot = MatcherTable[MatcherIndex++]; 3151 if (ResSlot & 128) 3152 ResSlot = GetVBR(ResSlot, MatcherTable, MatcherIndex); 3153 3154 assert(ResSlot < RecordedNodes.size() && "Invalid CompleteMatch"); 3155 SDValue Res = RecordedNodes[ResSlot].first; 3156 3157 assert(i < NodeToMatch->getNumValues() && 3158 NodeToMatch->getValueType(i) != MVT::Other && 3159 NodeToMatch->getValueType(i) != MVT::Glue && 3160 "Invalid number of results to complete!"); 3161 assert((NodeToMatch->getValueType(i) == Res.getValueType() || 3162 NodeToMatch->getValueType(i) == MVT::iPTR || 3163 Res.getValueType() == MVT::iPTR || 3164 NodeToMatch->getValueType(i).getSizeInBits() == 3165 Res.getValueType().getSizeInBits()) && 3166 "invalid replacement"); 3167 CurDAG->ReplaceAllUsesOfValueWith(SDValue(NodeToMatch, i), Res); 3168 } 3169 3170 // If the root node defines glue, add it to the glue nodes to update list. 3171 if (NodeToMatch->getValueType(NodeToMatch->getNumValues()-1) == MVT::Glue) 3172 GlueResultNodesMatched.push_back(NodeToMatch); 3173 3174 // Update chain and glue uses. 3175 UpdateChainsAndGlue(NodeToMatch, InputChain, ChainNodesMatched, 3176 InputGlue, GlueResultNodesMatched, false); 3177 3178 assert(NodeToMatch->use_empty() && 3179 "Didn't replace all uses of the node?"); 3180 3181 // FIXME: We just return here, which interacts correctly with SelectRoot 3182 // above. We should fix this to not return an SDNode* anymore. 3183 return nullptr; 3184 } 3185 } 3186 3187 // If the code reached this point, then the match failed. See if there is 3188 // another child to try in the current 'Scope', otherwise pop it until we 3189 // find a case to check. 3190 DEBUG(dbgs() << " Match failed at index " << CurrentOpcodeIndex << "\n"); 3191 ++NumDAGIselRetries; 3192 while (1) { 3193 if (MatchScopes.empty()) { 3194 CannotYetSelect(NodeToMatch); 3195 return nullptr; 3196 } 3197 3198 // Restore the interpreter state back to the point where the scope was 3199 // formed. 3200 MatchScope &LastScope = MatchScopes.back(); 3201 RecordedNodes.resize(LastScope.NumRecordedNodes); 3202 NodeStack.clear(); 3203 NodeStack.append(LastScope.NodeStack.begin(), LastScope.NodeStack.end()); 3204 N = NodeStack.back(); 3205 3206 if (LastScope.NumMatchedMemRefs != MatchedMemRefs.size()) 3207 MatchedMemRefs.resize(LastScope.NumMatchedMemRefs); 3208 MatcherIndex = LastScope.FailIndex; 3209 3210 DEBUG(dbgs() << " Continuing at " << MatcherIndex << "\n"); 3211 3212 InputChain = LastScope.InputChain; 3213 InputGlue = LastScope.InputGlue; 3214 if (!LastScope.HasChainNodesMatched) 3215 ChainNodesMatched.clear(); 3216 if (!LastScope.HasGlueResultNodesMatched) 3217 GlueResultNodesMatched.clear(); 3218 3219 // Check to see what the offset is at the new MatcherIndex. If it is zero 3220 // we have reached the end of this scope, otherwise we have another child 3221 // in the current scope to try. 3222 unsigned NumToSkip = MatcherTable[MatcherIndex++]; 3223 if (NumToSkip & 128) 3224 NumToSkip = GetVBR(NumToSkip, MatcherTable, MatcherIndex); 3225 3226 // If we have another child in this scope to match, update FailIndex and 3227 // try it. 3228 if (NumToSkip != 0) { 3229 LastScope.FailIndex = MatcherIndex+NumToSkip; 3230 break; 3231 } 3232 3233 // End of this scope, pop it and try the next child in the containing 3234 // scope. 3235 MatchScopes.pop_back(); 3236 } 3237 } 3238 } 3239 3240 3241 3242 void SelectionDAGISel::CannotYetSelect(SDNode *N) { 3243 std::string msg; 3244 raw_string_ostream Msg(msg); 3245 Msg << "Cannot select: "; 3246 3247 if (N->getOpcode() != ISD::INTRINSIC_W_CHAIN && 3248 N->getOpcode() != ISD::INTRINSIC_WO_CHAIN && 3249 N->getOpcode() != ISD::INTRINSIC_VOID) { 3250 N->printrFull(Msg, CurDAG); 3251 Msg << "\nIn function: " << MF->getName(); 3252 } else { 3253 bool HasInputChain = N->getOperand(0).getValueType() == MVT::Other; 3254 unsigned iid = 3255 cast<ConstantSDNode>(N->getOperand(HasInputChain))->getZExtValue(); 3256 if (iid < Intrinsic::num_intrinsics) 3257 Msg << "intrinsic %" << Intrinsic::getName((Intrinsic::ID)iid); 3258 else if (const TargetIntrinsicInfo *TII = TM.getIntrinsicInfo()) 3259 Msg << "target intrinsic %" << TII->getName(iid); 3260 else 3261 Msg << "unknown intrinsic #" << iid; 3262 } 3263 report_fatal_error(Msg.str()); 3264 } 3265 3266 char SelectionDAGISel::ID = 0; 3267