1 //===-- PrologEpilogInserter.cpp - Insert Prolog/Epilog code in function --===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This pass is responsible for finalizing the functions frame layout, saving 11 // callee saved registers, and for emitting prolog & epilog code for the 12 // function. 13 // 14 // This pass must be run after register allocation. After this pass is 15 // executed, it is illegal to construct MO_FrameIndex operands. 16 // 17 //===----------------------------------------------------------------------===// 18 19 #include "llvm/ADT/STLExtras.h" 20 #include "llvm/ADT/SetVector.h" 21 #include "llvm/ADT/SmallSet.h" 22 #include "llvm/ADT/Statistic.h" 23 #include "llvm/CodeGen/MachineDominators.h" 24 #include "llvm/CodeGen/MachineFrameInfo.h" 25 #include "llvm/CodeGen/MachineInstr.h" 26 #include "llvm/CodeGen/MachineLoopInfo.h" 27 #include "llvm/CodeGen/MachineModuleInfo.h" 28 #include "llvm/CodeGen/MachineOptimizationRemarkEmitter.h" 29 #include "llvm/CodeGen/MachineRegisterInfo.h" 30 #include "llvm/CodeGen/Passes.h" 31 #include "llvm/CodeGen/RegisterScavenging.h" 32 #include "llvm/CodeGen/StackProtector.h" 33 #include "llvm/CodeGen/WinEHFuncInfo.h" 34 #include "llvm/IR/DiagnosticInfo.h" 35 #include "llvm/IR/InlineAsm.h" 36 #include "llvm/IR/LLVMContext.h" 37 #include "llvm/Support/CommandLine.h" 38 #include "llvm/Support/Debug.h" 39 #include "llvm/Support/raw_ostream.h" 40 #include "llvm/Target/TargetFrameLowering.h" 41 #include "llvm/Target/TargetInstrInfo.h" 42 #include "llvm/Target/TargetMachine.h" 43 #include "llvm/Target/TargetRegisterInfo.h" 44 #include "llvm/Target/TargetSubtargetInfo.h" 45 #include <climits> 46 47 using namespace llvm; 48 49 #define DEBUG_TYPE "prologepilog" 50 51 typedef SmallVector<MachineBasicBlock *, 4> MBBVector; 52 static void doSpillCalleeSavedRegs(MachineFunction &MF, RegScavenger *RS, 53 unsigned &MinCSFrameIndex, 54 unsigned &MaxCXFrameIndex, 55 const MBBVector &SaveBlocks, 56 const MBBVector &RestoreBlocks); 57 58 namespace { 59 class PEI : public MachineFunctionPass { 60 public: 61 static char ID; 62 PEI() : MachineFunctionPass(ID) { 63 initializePEIPass(*PassRegistry::getPassRegistry()); 64 } 65 66 void getAnalysisUsage(AnalysisUsage &AU) const override; 67 68 MachineFunctionProperties getRequiredProperties() const override { 69 MachineFunctionProperties MFP; 70 if (UsesCalleeSaves) 71 MFP.set(MachineFunctionProperties::Property::NoVRegs); 72 return MFP; 73 } 74 75 /// runOnMachineFunction - Insert prolog/epilog code and replace abstract 76 /// frame indexes with appropriate references. 77 /// 78 bool runOnMachineFunction(MachineFunction &Fn) override; 79 80 private: 81 std::function<void(MachineFunction &MF, RegScavenger *RS, 82 unsigned &MinCSFrameIndex, unsigned &MaxCSFrameIndex, 83 const MBBVector &SaveBlocks, 84 const MBBVector &RestoreBlocks)> 85 SpillCalleeSavedRegisters; 86 std::function<void(MachineFunction &MF, RegScavenger &RS)> 87 ScavengeFrameVirtualRegs; 88 89 bool UsesCalleeSaves = false; 90 91 RegScavenger *RS; 92 93 // MinCSFrameIndex, MaxCSFrameIndex - Keeps the range of callee saved 94 // stack frame indexes. 95 unsigned MinCSFrameIndex = std::numeric_limits<unsigned>::max(); 96 unsigned MaxCSFrameIndex = 0; 97 98 // Save and Restore blocks of the current function. Typically there is a 99 // single save block, unless Windows EH funclets are involved. 100 MBBVector SaveBlocks; 101 MBBVector RestoreBlocks; 102 103 // Flag to control whether to use the register scavenger to resolve 104 // frame index materialization registers. Set according to 105 // TRI->requiresFrameIndexScavenging() for the current function. 106 bool FrameIndexVirtualScavenging; 107 108 // Flag to control whether the scavenger should be passed even though 109 // FrameIndexVirtualScavenging is used. 110 bool FrameIndexEliminationScavenging; 111 112 // Emit remarks. 113 MachineOptimizationRemarkEmitter *ORE = nullptr; 114 115 void calculateCallFrameInfo(MachineFunction &Fn); 116 void calculateSaveRestoreBlocks(MachineFunction &Fn); 117 118 void calculateFrameObjectOffsets(MachineFunction &Fn); 119 void replaceFrameIndices(MachineFunction &Fn); 120 void replaceFrameIndices(MachineBasicBlock *BB, MachineFunction &Fn, 121 int &SPAdj); 122 void insertPrologEpilogCode(MachineFunction &Fn); 123 }; 124 } // namespace 125 126 char PEI::ID = 0; 127 char &llvm::PrologEpilogCodeInserterID = PEI::ID; 128 129 static cl::opt<unsigned> 130 WarnStackSize("warn-stack-size", cl::Hidden, cl::init((unsigned)-1), 131 cl::desc("Warn for stack size bigger than the given" 132 " number")); 133 134 INITIALIZE_PASS_BEGIN(PEI, DEBUG_TYPE, "Prologue/Epilogue Insertion", false, 135 false) 136 INITIALIZE_PASS_DEPENDENCY(MachineLoopInfo) 137 INITIALIZE_PASS_DEPENDENCY(MachineDominatorTree) 138 INITIALIZE_PASS_DEPENDENCY(StackProtector) 139 INITIALIZE_PASS_DEPENDENCY(MachineOptimizationRemarkEmitterPass) 140 INITIALIZE_PASS_END(PEI, DEBUG_TYPE, 141 "Prologue/Epilogue Insertion & Frame Finalization", false, 142 false) 143 144 MachineFunctionPass *llvm::createPrologEpilogInserterPass() { 145 return new PEI(); 146 } 147 148 STATISTIC(NumBytesStackSpace, 149 "Number of bytes used for stack in all functions"); 150 151 void PEI::getAnalysisUsage(AnalysisUsage &AU) const { 152 AU.setPreservesCFG(); 153 AU.addPreserved<MachineLoopInfo>(); 154 AU.addPreserved<MachineDominatorTree>(); 155 AU.addRequired<StackProtector>(); 156 AU.addRequired<MachineOptimizationRemarkEmitterPass>(); 157 MachineFunctionPass::getAnalysisUsage(AU); 158 } 159 160 161 /// StackObjSet - A set of stack object indexes 162 typedef SmallSetVector<int, 8> StackObjSet; 163 164 /// runOnMachineFunction - Insert prolog/epilog code and replace abstract 165 /// frame indexes with appropriate references. 166 /// 167 bool PEI::runOnMachineFunction(MachineFunction &Fn) { 168 if (!SpillCalleeSavedRegisters) { 169 const TargetMachine &TM = Fn.getTarget(); 170 if (!TM.usesPhysRegsForPEI()) { 171 SpillCalleeSavedRegisters = [](MachineFunction &, RegScavenger *, 172 unsigned &, unsigned &, const MBBVector &, 173 const MBBVector &) {}; 174 ScavengeFrameVirtualRegs = [](MachineFunction &, RegScavenger &) {}; 175 } else { 176 SpillCalleeSavedRegisters = doSpillCalleeSavedRegs; 177 ScavengeFrameVirtualRegs = scavengeFrameVirtualRegs; 178 UsesCalleeSaves = true; 179 } 180 } 181 182 const Function* F = Fn.getFunction(); 183 const TargetRegisterInfo *TRI = Fn.getSubtarget().getRegisterInfo(); 184 const TargetFrameLowering *TFI = Fn.getSubtarget().getFrameLowering(); 185 186 RS = TRI->requiresRegisterScavenging(Fn) ? new RegScavenger() : nullptr; 187 FrameIndexVirtualScavenging = TRI->requiresFrameIndexScavenging(Fn); 188 FrameIndexEliminationScavenging = (RS && !FrameIndexVirtualScavenging) || 189 TRI->requiresFrameIndexReplacementScavenging(Fn); 190 ORE = &getAnalysis<MachineOptimizationRemarkEmitterPass>().getORE(); 191 192 // Calculate the MaxCallFrameSize and AdjustsStack variables for the 193 // function's frame information. Also eliminates call frame pseudo 194 // instructions. 195 calculateCallFrameInfo(Fn); 196 197 // Determine placement of CSR spill/restore code and prolog/epilog code: 198 // place all spills in the entry block, all restores in return blocks. 199 calculateSaveRestoreBlocks(Fn); 200 201 // Handle CSR spilling and restoring, for targets that need it. 202 SpillCalleeSavedRegisters(Fn, RS, MinCSFrameIndex, MaxCSFrameIndex, 203 SaveBlocks, RestoreBlocks); 204 205 // Allow the target machine to make final modifications to the function 206 // before the frame layout is finalized. 207 TFI->processFunctionBeforeFrameFinalized(Fn, RS); 208 209 // Calculate actual frame offsets for all abstract stack objects... 210 calculateFrameObjectOffsets(Fn); 211 212 // Add prolog and epilog code to the function. This function is required 213 // to align the stack frame as necessary for any stack variables or 214 // called functions. Because of this, calculateCalleeSavedRegisters() 215 // must be called before this function in order to set the AdjustsStack 216 // and MaxCallFrameSize variables. 217 if (!F->hasFnAttribute(Attribute::Naked)) 218 insertPrologEpilogCode(Fn); 219 220 // Replace all MO_FrameIndex operands with physical register references 221 // and actual offsets. 222 // 223 replaceFrameIndices(Fn); 224 225 // If register scavenging is needed, as we've enabled doing it as a 226 // post-pass, scavenge the virtual registers that frame index elimination 227 // inserted. 228 if (TRI->requiresRegisterScavenging(Fn) && FrameIndexVirtualScavenging) { 229 ScavengeFrameVirtualRegs(Fn, *RS); 230 231 // Clear any vregs created by virtual scavenging. 232 Fn.getRegInfo().clearVirtRegs(); 233 } 234 235 // Warn on stack size when we exceeds the given limit. 236 MachineFrameInfo &MFI = Fn.getFrameInfo(); 237 uint64_t StackSize = MFI.getStackSize(); 238 if (WarnStackSize.getNumOccurrences() > 0 && WarnStackSize < StackSize) { 239 DiagnosticInfoStackSize DiagStackSize(*F, StackSize); 240 F->getContext().diagnose(DiagStackSize); 241 } 242 243 delete RS; 244 SaveBlocks.clear(); 245 RestoreBlocks.clear(); 246 MFI.setSavePoint(nullptr); 247 MFI.setRestorePoint(nullptr); 248 return true; 249 } 250 251 /// Calculate the MaxCallFrameSize and AdjustsStack 252 /// variables for the function's frame information and eliminate call frame 253 /// pseudo instructions. 254 void PEI::calculateCallFrameInfo(MachineFunction &Fn) { 255 const TargetInstrInfo &TII = *Fn.getSubtarget().getInstrInfo(); 256 const TargetFrameLowering *TFI = Fn.getSubtarget().getFrameLowering(); 257 MachineFrameInfo &MFI = Fn.getFrameInfo(); 258 259 unsigned MaxCallFrameSize = 0; 260 bool AdjustsStack = MFI.adjustsStack(); 261 262 // Get the function call frame set-up and tear-down instruction opcode 263 unsigned FrameSetupOpcode = TII.getCallFrameSetupOpcode(); 264 unsigned FrameDestroyOpcode = TII.getCallFrameDestroyOpcode(); 265 266 // Early exit for targets which have no call frame setup/destroy pseudo 267 // instructions. 268 if (FrameSetupOpcode == ~0u && FrameDestroyOpcode == ~0u) 269 return; 270 271 std::vector<MachineBasicBlock::iterator> FrameSDOps; 272 for (MachineFunction::iterator BB = Fn.begin(), E = Fn.end(); BB != E; ++BB) 273 for (MachineBasicBlock::iterator I = BB->begin(); I != BB->end(); ++I) 274 if (TII.isFrameInstr(*I)) { 275 unsigned Size = TII.getFrameSize(*I); 276 if (Size > MaxCallFrameSize) MaxCallFrameSize = Size; 277 AdjustsStack = true; 278 FrameSDOps.push_back(I); 279 } else if (I->isInlineAsm()) { 280 // Some inline asm's need a stack frame, as indicated by operand 1. 281 unsigned ExtraInfo = I->getOperand(InlineAsm::MIOp_ExtraInfo).getImm(); 282 if (ExtraInfo & InlineAsm::Extra_IsAlignStack) 283 AdjustsStack = true; 284 } 285 286 assert(!MFI.isMaxCallFrameSizeComputed() || 287 (MFI.getMaxCallFrameSize() == MaxCallFrameSize && 288 MFI.adjustsStack() == AdjustsStack)); 289 MFI.setAdjustsStack(AdjustsStack); 290 MFI.setMaxCallFrameSize(MaxCallFrameSize); 291 292 for (std::vector<MachineBasicBlock::iterator>::iterator 293 i = FrameSDOps.begin(), e = FrameSDOps.end(); i != e; ++i) { 294 MachineBasicBlock::iterator I = *i; 295 296 // If call frames are not being included as part of the stack frame, and 297 // the target doesn't indicate otherwise, remove the call frame pseudos 298 // here. The sub/add sp instruction pairs are still inserted, but we don't 299 // need to track the SP adjustment for frame index elimination. 300 if (TFI->canSimplifyCallFramePseudos(Fn)) 301 TFI->eliminateCallFramePseudoInstr(Fn, *I->getParent(), I); 302 } 303 } 304 305 /// Compute the sets of entry and return blocks for saving and restoring 306 /// callee-saved registers, and placing prolog and epilog code. 307 void PEI::calculateSaveRestoreBlocks(MachineFunction &Fn) { 308 const MachineFrameInfo &MFI = Fn.getFrameInfo(); 309 310 // Even when we do not change any CSR, we still want to insert the 311 // prologue and epilogue of the function. 312 // So set the save points for those. 313 314 // Use the points found by shrink-wrapping, if any. 315 if (MFI.getSavePoint()) { 316 SaveBlocks.push_back(MFI.getSavePoint()); 317 assert(MFI.getRestorePoint() && "Both restore and save must be set"); 318 MachineBasicBlock *RestoreBlock = MFI.getRestorePoint(); 319 // If RestoreBlock does not have any successor and is not a return block 320 // then the end point is unreachable and we do not need to insert any 321 // epilogue. 322 if (!RestoreBlock->succ_empty() || RestoreBlock->isReturnBlock()) 323 RestoreBlocks.push_back(RestoreBlock); 324 return; 325 } 326 327 // Save refs to entry and return blocks. 328 SaveBlocks.push_back(&Fn.front()); 329 for (MachineBasicBlock &MBB : Fn) { 330 if (MBB.isEHFuncletEntry()) 331 SaveBlocks.push_back(&MBB); 332 if (MBB.isReturnBlock()) 333 RestoreBlocks.push_back(&MBB); 334 } 335 } 336 337 static void assignCalleeSavedSpillSlots(MachineFunction &F, 338 const BitVector &SavedRegs, 339 unsigned &MinCSFrameIndex, 340 unsigned &MaxCSFrameIndex) { 341 if (SavedRegs.empty()) 342 return; 343 344 const TargetRegisterInfo *RegInfo = F.getSubtarget().getRegisterInfo(); 345 const MCPhysReg *CSRegs = F.getRegInfo().getCalleeSavedRegs(); 346 347 std::vector<CalleeSavedInfo> CSI; 348 for (unsigned i = 0; CSRegs[i]; ++i) { 349 unsigned Reg = CSRegs[i]; 350 if (SavedRegs.test(Reg)) 351 CSI.push_back(CalleeSavedInfo(Reg)); 352 } 353 354 const TargetFrameLowering *TFI = F.getSubtarget().getFrameLowering(); 355 MachineFrameInfo &MFI = F.getFrameInfo(); 356 if (!TFI->assignCalleeSavedSpillSlots(F, RegInfo, CSI)) { 357 // If target doesn't implement this, use generic code. 358 359 if (CSI.empty()) 360 return; // Early exit if no callee saved registers are modified! 361 362 unsigned NumFixedSpillSlots; 363 const TargetFrameLowering::SpillSlot *FixedSpillSlots = 364 TFI->getCalleeSavedSpillSlots(NumFixedSpillSlots); 365 366 // Now that we know which registers need to be saved and restored, allocate 367 // stack slots for them. 368 for (auto &CS : CSI) { 369 unsigned Reg = CS.getReg(); 370 const TargetRegisterClass *RC = RegInfo->getMinimalPhysRegClass(Reg); 371 372 int FrameIdx; 373 if (RegInfo->hasReservedSpillSlot(F, Reg, FrameIdx)) { 374 CS.setFrameIdx(FrameIdx); 375 continue; 376 } 377 378 // Check to see if this physreg must be spilled to a particular stack slot 379 // on this target. 380 const TargetFrameLowering::SpillSlot *FixedSlot = FixedSpillSlots; 381 while (FixedSlot != FixedSpillSlots + NumFixedSpillSlots && 382 FixedSlot->Reg != Reg) 383 ++FixedSlot; 384 385 unsigned Size = RegInfo->getSpillSize(*RC); 386 if (FixedSlot == FixedSpillSlots + NumFixedSpillSlots) { 387 // Nope, just spill it anywhere convenient. 388 unsigned Align = RegInfo->getSpillAlignment(*RC); 389 unsigned StackAlign = TFI->getStackAlignment(); 390 391 // We may not be able to satisfy the desired alignment specification of 392 // the TargetRegisterClass if the stack alignment is smaller. Use the 393 // min. 394 Align = std::min(Align, StackAlign); 395 FrameIdx = MFI.CreateStackObject(Size, Align, true); 396 if ((unsigned)FrameIdx < MinCSFrameIndex) MinCSFrameIndex = FrameIdx; 397 if ((unsigned)FrameIdx > MaxCSFrameIndex) MaxCSFrameIndex = FrameIdx; 398 } else { 399 // Spill it to the stack where we must. 400 FrameIdx = MFI.CreateFixedSpillStackObject(Size, FixedSlot->Offset); 401 } 402 403 CS.setFrameIdx(FrameIdx); 404 } 405 } 406 407 MFI.setCalleeSavedInfo(CSI); 408 } 409 410 /// Helper function to update the liveness information for the callee-saved 411 /// registers. 412 static void updateLiveness(MachineFunction &MF) { 413 MachineFrameInfo &MFI = MF.getFrameInfo(); 414 // Visited will contain all the basic blocks that are in the region 415 // where the callee saved registers are alive: 416 // - Anything that is not Save or Restore -> LiveThrough. 417 // - Save -> LiveIn. 418 // - Restore -> LiveOut. 419 // The live-out is not attached to the block, so no need to keep 420 // Restore in this set. 421 SmallPtrSet<MachineBasicBlock *, 8> Visited; 422 SmallVector<MachineBasicBlock *, 8> WorkList; 423 MachineBasicBlock *Entry = &MF.front(); 424 MachineBasicBlock *Save = MFI.getSavePoint(); 425 426 if (!Save) 427 Save = Entry; 428 429 if (Entry != Save) { 430 WorkList.push_back(Entry); 431 Visited.insert(Entry); 432 } 433 Visited.insert(Save); 434 435 MachineBasicBlock *Restore = MFI.getRestorePoint(); 436 if (Restore) 437 // By construction Restore cannot be visited, otherwise it 438 // means there exists a path to Restore that does not go 439 // through Save. 440 WorkList.push_back(Restore); 441 442 while (!WorkList.empty()) { 443 const MachineBasicBlock *CurBB = WorkList.pop_back_val(); 444 // By construction, the region that is after the save point is 445 // dominated by the Save and post-dominated by the Restore. 446 if (CurBB == Save && Save != Restore) 447 continue; 448 // Enqueue all the successors not already visited. 449 // Those are by construction either before Save or after Restore. 450 for (MachineBasicBlock *SuccBB : CurBB->successors()) 451 if (Visited.insert(SuccBB).second) 452 WorkList.push_back(SuccBB); 453 } 454 455 const std::vector<CalleeSavedInfo> &CSI = MFI.getCalleeSavedInfo(); 456 457 MachineRegisterInfo &MRI = MF.getRegInfo(); 458 for (unsigned i = 0, e = CSI.size(); i != e; ++i) { 459 for (MachineBasicBlock *MBB : Visited) { 460 MCPhysReg Reg = CSI[i].getReg(); 461 // Add the callee-saved register as live-in. 462 // It's killed at the spill. 463 if (!MRI.isReserved(Reg) && !MBB->isLiveIn(Reg)) 464 MBB->addLiveIn(Reg); 465 } 466 } 467 } 468 469 /// Insert restore code for the callee-saved registers used in the function. 470 static void insertCSRSaves(MachineBasicBlock &SaveBlock, 471 ArrayRef<CalleeSavedInfo> CSI) { 472 MachineFunction &Fn = *SaveBlock.getParent(); 473 const TargetInstrInfo &TII = *Fn.getSubtarget().getInstrInfo(); 474 const TargetFrameLowering *TFI = Fn.getSubtarget().getFrameLowering(); 475 const TargetRegisterInfo *TRI = Fn.getSubtarget().getRegisterInfo(); 476 477 MachineBasicBlock::iterator I = SaveBlock.begin(); 478 if (!TFI->spillCalleeSavedRegisters(SaveBlock, I, CSI, TRI)) { 479 for (const CalleeSavedInfo &CS : CSI) { 480 // Insert the spill to the stack frame. 481 unsigned Reg = CS.getReg(); 482 const TargetRegisterClass *RC = TRI->getMinimalPhysRegClass(Reg); 483 TII.storeRegToStackSlot(SaveBlock, I, Reg, true, CS.getFrameIdx(), RC, 484 TRI); 485 } 486 } 487 } 488 489 /// Insert restore code for the callee-saved registers used in the function. 490 static void insertCSRRestores(MachineBasicBlock &RestoreBlock, 491 ArrayRef<CalleeSavedInfo> CSI) { 492 MachineFunction &Fn = *RestoreBlock.getParent(); 493 const TargetInstrInfo &TII = *Fn.getSubtarget().getInstrInfo(); 494 const TargetFrameLowering *TFI = Fn.getSubtarget().getFrameLowering(); 495 const TargetRegisterInfo *TRI = Fn.getSubtarget().getRegisterInfo(); 496 497 // Restore all registers immediately before the return and any 498 // terminators that precede it. 499 MachineBasicBlock::iterator I = RestoreBlock.getFirstTerminator(); 500 501 if (!TFI->restoreCalleeSavedRegisters(RestoreBlock, I, CSI, TRI)) { 502 for (const CalleeSavedInfo &CI : reverse(CSI)) { 503 unsigned Reg = CI.getReg(); 504 const TargetRegisterClass *RC = TRI->getMinimalPhysRegClass(Reg); 505 TII.loadRegFromStackSlot(RestoreBlock, I, Reg, CI.getFrameIdx(), RC, TRI); 506 assert(I != RestoreBlock.begin() && 507 "loadRegFromStackSlot didn't insert any code!"); 508 // Insert in reverse order. loadRegFromStackSlot can insert 509 // multiple instructions. 510 } 511 } 512 } 513 514 static void doSpillCalleeSavedRegs(MachineFunction &Fn, RegScavenger *RS, 515 unsigned &MinCSFrameIndex, 516 unsigned &MaxCSFrameIndex, 517 const MBBVector &SaveBlocks, 518 const MBBVector &RestoreBlocks) { 519 const Function *F = Fn.getFunction(); 520 const TargetFrameLowering *TFI = Fn.getSubtarget().getFrameLowering(); 521 MachineFrameInfo &MFI = Fn.getFrameInfo(); 522 MinCSFrameIndex = std::numeric_limits<unsigned>::max(); 523 MaxCSFrameIndex = 0; 524 525 // Determine which of the registers in the callee save list should be saved. 526 BitVector SavedRegs; 527 TFI->determineCalleeSaves(Fn, SavedRegs, RS); 528 529 // Assign stack slots for any callee-saved registers that must be spilled. 530 assignCalleeSavedSpillSlots(Fn, SavedRegs, MinCSFrameIndex, MaxCSFrameIndex); 531 532 // Add the code to save and restore the callee saved registers. 533 if (!F->hasFnAttribute(Attribute::Naked)) { 534 MFI.setCalleeSavedInfoValid(true); 535 536 ArrayRef<CalleeSavedInfo> CSI = MFI.getCalleeSavedInfo(); 537 if (!CSI.empty()) { 538 for (MachineBasicBlock *SaveBlock : SaveBlocks) { 539 insertCSRSaves(*SaveBlock, CSI); 540 // Update the live-in information of all the blocks up to the save 541 // point. 542 updateLiveness(Fn); 543 } 544 for (MachineBasicBlock *RestoreBlock : RestoreBlocks) 545 insertCSRRestores(*RestoreBlock, CSI); 546 } 547 } 548 } 549 550 /// AdjustStackOffset - Helper function used to adjust the stack frame offset. 551 static inline void 552 AdjustStackOffset(MachineFrameInfo &MFI, int FrameIdx, 553 bool StackGrowsDown, int64_t &Offset, 554 unsigned &MaxAlign, unsigned Skew) { 555 // If the stack grows down, add the object size to find the lowest address. 556 if (StackGrowsDown) 557 Offset += MFI.getObjectSize(FrameIdx); 558 559 unsigned Align = MFI.getObjectAlignment(FrameIdx); 560 561 // If the alignment of this object is greater than that of the stack, then 562 // increase the stack alignment to match. 563 MaxAlign = std::max(MaxAlign, Align); 564 565 // Adjust to alignment boundary. 566 Offset = alignTo(Offset, Align, Skew); 567 568 if (StackGrowsDown) { 569 DEBUG(dbgs() << "alloc FI(" << FrameIdx << ") at SP[" << -Offset << "]\n"); 570 MFI.setObjectOffset(FrameIdx, -Offset); // Set the computed offset 571 } else { 572 DEBUG(dbgs() << "alloc FI(" << FrameIdx << ") at SP[" << Offset << "]\n"); 573 MFI.setObjectOffset(FrameIdx, Offset); 574 Offset += MFI.getObjectSize(FrameIdx); 575 } 576 } 577 578 /// Compute which bytes of fixed and callee-save stack area are unused and keep 579 /// track of them in StackBytesFree. 580 /// 581 static inline void 582 computeFreeStackSlots(MachineFrameInfo &MFI, bool StackGrowsDown, 583 unsigned MinCSFrameIndex, unsigned MaxCSFrameIndex, 584 int64_t FixedCSEnd, BitVector &StackBytesFree) { 585 // Avoid undefined int64_t -> int conversion below in extreme case. 586 if (FixedCSEnd > std::numeric_limits<int>::max()) 587 return; 588 589 StackBytesFree.resize(FixedCSEnd, true); 590 591 SmallVector<int, 16> AllocatedFrameSlots; 592 // Add fixed objects. 593 for (int i = MFI.getObjectIndexBegin(); i != 0; ++i) 594 AllocatedFrameSlots.push_back(i); 595 // Add callee-save objects. 596 for (int i = MinCSFrameIndex; i <= (int)MaxCSFrameIndex; ++i) 597 AllocatedFrameSlots.push_back(i); 598 599 for (int i : AllocatedFrameSlots) { 600 // These are converted from int64_t, but they should always fit in int 601 // because of the FixedCSEnd check above. 602 int ObjOffset = MFI.getObjectOffset(i); 603 int ObjSize = MFI.getObjectSize(i); 604 int ObjStart, ObjEnd; 605 if (StackGrowsDown) { 606 // ObjOffset is negative when StackGrowsDown is true. 607 ObjStart = -ObjOffset - ObjSize; 608 ObjEnd = -ObjOffset; 609 } else { 610 ObjStart = ObjOffset; 611 ObjEnd = ObjOffset + ObjSize; 612 } 613 // Ignore fixed holes that are in the previous stack frame. 614 if (ObjEnd > 0) 615 StackBytesFree.reset(ObjStart, ObjEnd); 616 } 617 } 618 619 /// Assign frame object to an unused portion of the stack in the fixed stack 620 /// object range. Return true if the allocation was successful. 621 /// 622 static inline bool scavengeStackSlot(MachineFrameInfo &MFI, int FrameIdx, 623 bool StackGrowsDown, unsigned MaxAlign, 624 BitVector &StackBytesFree) { 625 if (MFI.isVariableSizedObjectIndex(FrameIdx)) 626 return false; 627 628 if (StackBytesFree.none()) { 629 // clear it to speed up later scavengeStackSlot calls to 630 // StackBytesFree.none() 631 StackBytesFree.clear(); 632 return false; 633 } 634 635 unsigned ObjAlign = MFI.getObjectAlignment(FrameIdx); 636 if (ObjAlign > MaxAlign) 637 return false; 638 639 int64_t ObjSize = MFI.getObjectSize(FrameIdx); 640 int FreeStart; 641 for (FreeStart = StackBytesFree.find_first(); FreeStart != -1; 642 FreeStart = StackBytesFree.find_next(FreeStart)) { 643 644 // Check that free space has suitable alignment. 645 unsigned ObjStart = StackGrowsDown ? FreeStart + ObjSize : FreeStart; 646 if (alignTo(ObjStart, ObjAlign) != ObjStart) 647 continue; 648 649 if (FreeStart + ObjSize > StackBytesFree.size()) 650 return false; 651 652 bool AllBytesFree = true; 653 for (unsigned Byte = 0; Byte < ObjSize; ++Byte) 654 if (!StackBytesFree.test(FreeStart + Byte)) { 655 AllBytesFree = false; 656 break; 657 } 658 if (AllBytesFree) 659 break; 660 } 661 662 if (FreeStart == -1) 663 return false; 664 665 if (StackGrowsDown) { 666 int ObjStart = -(FreeStart + ObjSize); 667 DEBUG(dbgs() << "alloc FI(" << FrameIdx << ") scavenged at SP[" << ObjStart 668 << "]\n"); 669 MFI.setObjectOffset(FrameIdx, ObjStart); 670 } else { 671 DEBUG(dbgs() << "alloc FI(" << FrameIdx << ") scavenged at SP[" << FreeStart 672 << "]\n"); 673 MFI.setObjectOffset(FrameIdx, FreeStart); 674 } 675 676 StackBytesFree.reset(FreeStart, FreeStart + ObjSize); 677 return true; 678 } 679 680 /// AssignProtectedObjSet - Helper function to assign large stack objects (i.e., 681 /// those required to be close to the Stack Protector) to stack offsets. 682 static void 683 AssignProtectedObjSet(const StackObjSet &UnassignedObjs, 684 SmallSet<int, 16> &ProtectedObjs, 685 MachineFrameInfo &MFI, bool StackGrowsDown, 686 int64_t &Offset, unsigned &MaxAlign, unsigned Skew) { 687 688 for (StackObjSet::const_iterator I = UnassignedObjs.begin(), 689 E = UnassignedObjs.end(); I != E; ++I) { 690 int i = *I; 691 AdjustStackOffset(MFI, i, StackGrowsDown, Offset, MaxAlign, Skew); 692 ProtectedObjs.insert(i); 693 } 694 } 695 696 /// calculateFrameObjectOffsets - Calculate actual frame offsets for all of the 697 /// abstract stack objects. 698 /// 699 void PEI::calculateFrameObjectOffsets(MachineFunction &Fn) { 700 const TargetFrameLowering &TFI = *Fn.getSubtarget().getFrameLowering(); 701 StackProtector *SP = &getAnalysis<StackProtector>(); 702 703 bool StackGrowsDown = 704 TFI.getStackGrowthDirection() == TargetFrameLowering::StackGrowsDown; 705 706 // Loop over all of the stack objects, assigning sequential addresses... 707 MachineFrameInfo &MFI = Fn.getFrameInfo(); 708 709 // Start at the beginning of the local area. 710 // The Offset is the distance from the stack top in the direction 711 // of stack growth -- so it's always nonnegative. 712 int LocalAreaOffset = TFI.getOffsetOfLocalArea(); 713 if (StackGrowsDown) 714 LocalAreaOffset = -LocalAreaOffset; 715 assert(LocalAreaOffset >= 0 716 && "Local area offset should be in direction of stack growth"); 717 int64_t Offset = LocalAreaOffset; 718 719 // Skew to be applied to alignment. 720 unsigned Skew = TFI.getStackAlignmentSkew(Fn); 721 722 // If there are fixed sized objects that are preallocated in the local area, 723 // non-fixed objects can't be allocated right at the start of local area. 724 // Adjust 'Offset' to point to the end of last fixed sized preallocated 725 // object. 726 for (int i = MFI.getObjectIndexBegin(); i != 0; ++i) { 727 int64_t FixedOff; 728 if (StackGrowsDown) { 729 // The maximum distance from the stack pointer is at lower address of 730 // the object -- which is given by offset. For down growing stack 731 // the offset is negative, so we negate the offset to get the distance. 732 FixedOff = -MFI.getObjectOffset(i); 733 } else { 734 // The maximum distance from the start pointer is at the upper 735 // address of the object. 736 FixedOff = MFI.getObjectOffset(i) + MFI.getObjectSize(i); 737 } 738 if (FixedOff > Offset) Offset = FixedOff; 739 } 740 741 // First assign frame offsets to stack objects that are used to spill 742 // callee saved registers. 743 if (StackGrowsDown) { 744 for (unsigned i = MinCSFrameIndex; i <= MaxCSFrameIndex; ++i) { 745 // If the stack grows down, we need to add the size to find the lowest 746 // address of the object. 747 Offset += MFI.getObjectSize(i); 748 749 unsigned Align = MFI.getObjectAlignment(i); 750 // Adjust to alignment boundary 751 Offset = alignTo(Offset, Align, Skew); 752 753 DEBUG(dbgs() << "alloc FI(" << i << ") at SP[" << -Offset << "]\n"); 754 MFI.setObjectOffset(i, -Offset); // Set the computed offset 755 } 756 } else if (MaxCSFrameIndex >= MinCSFrameIndex) { 757 // Be careful about underflow in comparisons agains MinCSFrameIndex. 758 for (unsigned i = MaxCSFrameIndex; i != MinCSFrameIndex - 1; --i) { 759 if (MFI.isDeadObjectIndex(i)) 760 continue; 761 762 unsigned Align = MFI.getObjectAlignment(i); 763 // Adjust to alignment boundary 764 Offset = alignTo(Offset, Align, Skew); 765 766 DEBUG(dbgs() << "alloc FI(" << i << ") at SP[" << Offset << "]\n"); 767 MFI.setObjectOffset(i, Offset); 768 Offset += MFI.getObjectSize(i); 769 } 770 } 771 772 // FixedCSEnd is the stack offset to the end of the fixed and callee-save 773 // stack area. 774 int64_t FixedCSEnd = Offset; 775 unsigned MaxAlign = MFI.getMaxAlignment(); 776 777 // Make sure the special register scavenging spill slot is closest to the 778 // incoming stack pointer if a frame pointer is required and is closer 779 // to the incoming rather than the final stack pointer. 780 const TargetRegisterInfo *RegInfo = Fn.getSubtarget().getRegisterInfo(); 781 bool EarlyScavengingSlots = (TFI.hasFP(Fn) && 782 TFI.isFPCloseToIncomingSP() && 783 RegInfo->useFPForScavengingIndex(Fn) && 784 !RegInfo->needsStackRealignment(Fn)); 785 if (RS && EarlyScavengingSlots) { 786 SmallVector<int, 2> SFIs; 787 RS->getScavengingFrameIndices(SFIs); 788 for (SmallVectorImpl<int>::iterator I = SFIs.begin(), 789 IE = SFIs.end(); I != IE; ++I) 790 AdjustStackOffset(MFI, *I, StackGrowsDown, Offset, MaxAlign, Skew); 791 } 792 793 // FIXME: Once this is working, then enable flag will change to a target 794 // check for whether the frame is large enough to want to use virtual 795 // frame index registers. Functions which don't want/need this optimization 796 // will continue to use the existing code path. 797 if (MFI.getUseLocalStackAllocationBlock()) { 798 unsigned Align = MFI.getLocalFrameMaxAlign(); 799 800 // Adjust to alignment boundary. 801 Offset = alignTo(Offset, Align, Skew); 802 803 DEBUG(dbgs() << "Local frame base offset: " << Offset << "\n"); 804 805 // Resolve offsets for objects in the local block. 806 for (unsigned i = 0, e = MFI.getLocalFrameObjectCount(); i != e; ++i) { 807 std::pair<int, int64_t> Entry = MFI.getLocalFrameObjectMap(i); 808 int64_t FIOffset = (StackGrowsDown ? -Offset : Offset) + Entry.second; 809 DEBUG(dbgs() << "alloc FI(" << Entry.first << ") at SP[" << 810 FIOffset << "]\n"); 811 MFI.setObjectOffset(Entry.first, FIOffset); 812 } 813 // Allocate the local block 814 Offset += MFI.getLocalFrameSize(); 815 816 MaxAlign = std::max(Align, MaxAlign); 817 } 818 819 // Retrieve the Exception Handler registration node. 820 int EHRegNodeFrameIndex = INT_MAX; 821 if (const WinEHFuncInfo *FuncInfo = Fn.getWinEHFuncInfo()) 822 EHRegNodeFrameIndex = FuncInfo->EHRegNodeFrameIndex; 823 824 // Make sure that the stack protector comes before the local variables on the 825 // stack. 826 SmallSet<int, 16> ProtectedObjs; 827 if (MFI.getStackProtectorIndex() >= 0) { 828 StackObjSet LargeArrayObjs; 829 StackObjSet SmallArrayObjs; 830 StackObjSet AddrOfObjs; 831 832 AdjustStackOffset(MFI, MFI.getStackProtectorIndex(), StackGrowsDown, 833 Offset, MaxAlign, Skew); 834 835 // Assign large stack objects first. 836 for (unsigned i = 0, e = MFI.getObjectIndexEnd(); i != e; ++i) { 837 if (MFI.isObjectPreAllocated(i) && 838 MFI.getUseLocalStackAllocationBlock()) 839 continue; 840 if (i >= MinCSFrameIndex && i <= MaxCSFrameIndex) 841 continue; 842 if (RS && RS->isScavengingFrameIndex((int)i)) 843 continue; 844 if (MFI.isDeadObjectIndex(i)) 845 continue; 846 if (MFI.getStackProtectorIndex() == (int)i || 847 EHRegNodeFrameIndex == (int)i) 848 continue; 849 850 switch (SP->getSSPLayout(MFI.getObjectAllocation(i))) { 851 case StackProtector::SSPLK_None: 852 continue; 853 case StackProtector::SSPLK_SmallArray: 854 SmallArrayObjs.insert(i); 855 continue; 856 case StackProtector::SSPLK_AddrOf: 857 AddrOfObjs.insert(i); 858 continue; 859 case StackProtector::SSPLK_LargeArray: 860 LargeArrayObjs.insert(i); 861 continue; 862 } 863 llvm_unreachable("Unexpected SSPLayoutKind."); 864 } 865 866 AssignProtectedObjSet(LargeArrayObjs, ProtectedObjs, MFI, StackGrowsDown, 867 Offset, MaxAlign, Skew); 868 AssignProtectedObjSet(SmallArrayObjs, ProtectedObjs, MFI, StackGrowsDown, 869 Offset, MaxAlign, Skew); 870 AssignProtectedObjSet(AddrOfObjs, ProtectedObjs, MFI, StackGrowsDown, 871 Offset, MaxAlign, Skew); 872 } 873 874 SmallVector<int, 8> ObjectsToAllocate; 875 876 // Then prepare to assign frame offsets to stack objects that are not used to 877 // spill callee saved registers. 878 for (unsigned i = 0, e = MFI.getObjectIndexEnd(); i != e; ++i) { 879 if (MFI.isObjectPreAllocated(i) && MFI.getUseLocalStackAllocationBlock()) 880 continue; 881 if (i >= MinCSFrameIndex && i <= MaxCSFrameIndex) 882 continue; 883 if (RS && RS->isScavengingFrameIndex((int)i)) 884 continue; 885 if (MFI.isDeadObjectIndex(i)) 886 continue; 887 if (MFI.getStackProtectorIndex() == (int)i || 888 EHRegNodeFrameIndex == (int)i) 889 continue; 890 if (ProtectedObjs.count(i)) 891 continue; 892 893 // Add the objects that we need to allocate to our working set. 894 ObjectsToAllocate.push_back(i); 895 } 896 897 // Allocate the EH registration node first if one is present. 898 if (EHRegNodeFrameIndex != INT_MAX) 899 AdjustStackOffset(MFI, EHRegNodeFrameIndex, StackGrowsDown, Offset, 900 MaxAlign, Skew); 901 902 // Give the targets a chance to order the objects the way they like it. 903 if (Fn.getTarget().getOptLevel() != CodeGenOpt::None && 904 Fn.getTarget().Options.StackSymbolOrdering) 905 TFI.orderFrameObjects(Fn, ObjectsToAllocate); 906 907 // Keep track of which bytes in the fixed and callee-save range are used so we 908 // can use the holes when allocating later stack objects. Only do this if 909 // stack protector isn't being used and the target requests it and we're 910 // optimizing. 911 BitVector StackBytesFree; 912 if (!ObjectsToAllocate.empty() && 913 Fn.getTarget().getOptLevel() != CodeGenOpt::None && 914 MFI.getStackProtectorIndex() < 0 && TFI.enableStackSlotScavenging(Fn)) 915 computeFreeStackSlots(MFI, StackGrowsDown, MinCSFrameIndex, MaxCSFrameIndex, 916 FixedCSEnd, StackBytesFree); 917 918 // Now walk the objects and actually assign base offsets to them. 919 for (auto &Object : ObjectsToAllocate) 920 if (!scavengeStackSlot(MFI, Object, StackGrowsDown, MaxAlign, 921 StackBytesFree)) 922 AdjustStackOffset(MFI, Object, StackGrowsDown, Offset, MaxAlign, Skew); 923 924 // Make sure the special register scavenging spill slot is closest to the 925 // stack pointer. 926 if (RS && !EarlyScavengingSlots) { 927 SmallVector<int, 2> SFIs; 928 RS->getScavengingFrameIndices(SFIs); 929 for (SmallVectorImpl<int>::iterator I = SFIs.begin(), 930 IE = SFIs.end(); I != IE; ++I) 931 AdjustStackOffset(MFI, *I, StackGrowsDown, Offset, MaxAlign, Skew); 932 } 933 934 if (!TFI.targetHandlesStackFrameRounding()) { 935 // If we have reserved argument space for call sites in the function 936 // immediately on entry to the current function, count it as part of the 937 // overall stack size. 938 if (MFI.adjustsStack() && TFI.hasReservedCallFrame(Fn)) 939 Offset += MFI.getMaxCallFrameSize(); 940 941 // Round up the size to a multiple of the alignment. If the function has 942 // any calls or alloca's, align to the target's StackAlignment value to 943 // ensure that the callee's frame or the alloca data is suitably aligned; 944 // otherwise, for leaf functions, align to the TransientStackAlignment 945 // value. 946 unsigned StackAlign; 947 if (MFI.adjustsStack() || MFI.hasVarSizedObjects() || 948 (RegInfo->needsStackRealignment(Fn) && MFI.getObjectIndexEnd() != 0)) 949 StackAlign = TFI.getStackAlignment(); 950 else 951 StackAlign = TFI.getTransientStackAlignment(); 952 953 // If the frame pointer is eliminated, all frame offsets will be relative to 954 // SP not FP. Align to MaxAlign so this works. 955 StackAlign = std::max(StackAlign, MaxAlign); 956 Offset = alignTo(Offset, StackAlign, Skew); 957 } 958 959 // Update frame info to pretend that this is part of the stack... 960 int64_t StackSize = Offset - LocalAreaOffset; 961 MFI.setStackSize(StackSize); 962 NumBytesStackSpace += StackSize; 963 964 MachineOptimizationRemarkAnalysis R( 965 DEBUG_TYPE, "StackSize", Fn.getFunction()->getSubprogram(), &Fn.front()); 966 R << ore::NV("NumStackBytes", StackSize) 967 << " stack bytes in function"; 968 ORE->emit(R); 969 } 970 971 /// insertPrologEpilogCode - Scan the function for modified callee saved 972 /// registers, insert spill code for these callee saved registers, then add 973 /// prolog and epilog code to the function. 974 /// 975 void PEI::insertPrologEpilogCode(MachineFunction &Fn) { 976 const TargetFrameLowering &TFI = *Fn.getSubtarget().getFrameLowering(); 977 978 // Add prologue to the function... 979 for (MachineBasicBlock *SaveBlock : SaveBlocks) 980 TFI.emitPrologue(Fn, *SaveBlock); 981 982 // Add epilogue to restore the callee-save registers in each exiting block. 983 for (MachineBasicBlock *RestoreBlock : RestoreBlocks) 984 TFI.emitEpilogue(Fn, *RestoreBlock); 985 986 for (MachineBasicBlock *SaveBlock : SaveBlocks) 987 TFI.inlineStackProbe(Fn, *SaveBlock); 988 989 // Emit additional code that is required to support segmented stacks, if 990 // we've been asked for it. This, when linked with a runtime with support 991 // for segmented stacks (libgcc is one), will result in allocating stack 992 // space in small chunks instead of one large contiguous block. 993 if (Fn.shouldSplitStack()) { 994 for (MachineBasicBlock *SaveBlock : SaveBlocks) 995 TFI.adjustForSegmentedStacks(Fn, *SaveBlock); 996 } 997 998 // Emit additional code that is required to explicitly handle the stack in 999 // HiPE native code (if needed) when loaded in the Erlang/OTP runtime. The 1000 // approach is rather similar to that of Segmented Stacks, but it uses a 1001 // different conditional check and another BIF for allocating more stack 1002 // space. 1003 if (Fn.getFunction()->getCallingConv() == CallingConv::HiPE) 1004 for (MachineBasicBlock *SaveBlock : SaveBlocks) 1005 TFI.adjustForHiPEPrologue(Fn, *SaveBlock); 1006 } 1007 1008 /// replaceFrameIndices - Replace all MO_FrameIndex operands with physical 1009 /// register references and actual offsets. 1010 /// 1011 void PEI::replaceFrameIndices(MachineFunction &Fn) { 1012 const TargetFrameLowering &TFI = *Fn.getSubtarget().getFrameLowering(); 1013 if (!TFI.needsFrameIndexResolution(Fn)) return; 1014 1015 // Store SPAdj at exit of a basic block. 1016 SmallVector<int, 8> SPState; 1017 SPState.resize(Fn.getNumBlockIDs()); 1018 df_iterator_default_set<MachineBasicBlock*> Reachable; 1019 1020 // Iterate over the reachable blocks in DFS order. 1021 for (auto DFI = df_ext_begin(&Fn, Reachable), DFE = df_ext_end(&Fn, Reachable); 1022 DFI != DFE; ++DFI) { 1023 int SPAdj = 0; 1024 // Check the exit state of the DFS stack predecessor. 1025 if (DFI.getPathLength() >= 2) { 1026 MachineBasicBlock *StackPred = DFI.getPath(DFI.getPathLength() - 2); 1027 assert(Reachable.count(StackPred) && 1028 "DFS stack predecessor is already visited.\n"); 1029 SPAdj = SPState[StackPred->getNumber()]; 1030 } 1031 MachineBasicBlock *BB = *DFI; 1032 replaceFrameIndices(BB, Fn, SPAdj); 1033 SPState[BB->getNumber()] = SPAdj; 1034 } 1035 1036 // Handle the unreachable blocks. 1037 for (auto &BB : Fn) { 1038 if (Reachable.count(&BB)) 1039 // Already handled in DFS traversal. 1040 continue; 1041 int SPAdj = 0; 1042 replaceFrameIndices(&BB, Fn, SPAdj); 1043 } 1044 } 1045 1046 void PEI::replaceFrameIndices(MachineBasicBlock *BB, MachineFunction &Fn, 1047 int &SPAdj) { 1048 assert(Fn.getSubtarget().getRegisterInfo() && 1049 "getRegisterInfo() must be implemented!"); 1050 const TargetInstrInfo &TII = *Fn.getSubtarget().getInstrInfo(); 1051 const TargetRegisterInfo &TRI = *Fn.getSubtarget().getRegisterInfo(); 1052 const TargetFrameLowering *TFI = Fn.getSubtarget().getFrameLowering(); 1053 1054 if (RS && FrameIndexEliminationScavenging) 1055 RS->enterBasicBlock(*BB); 1056 1057 bool InsideCallSequence = false; 1058 1059 for (MachineBasicBlock::iterator I = BB->begin(); I != BB->end(); ) { 1060 1061 if (TII.isFrameInstr(*I)) { 1062 InsideCallSequence = TII.isFrameSetup(*I); 1063 SPAdj += TII.getSPAdjust(*I); 1064 I = TFI->eliminateCallFramePseudoInstr(Fn, *BB, I); 1065 continue; 1066 } 1067 1068 MachineInstr &MI = *I; 1069 bool DoIncr = true; 1070 bool DidFinishLoop = true; 1071 for (unsigned i = 0, e = MI.getNumOperands(); i != e; ++i) { 1072 if (!MI.getOperand(i).isFI()) 1073 continue; 1074 1075 // Frame indices in debug values are encoded in a target independent 1076 // way with simply the frame index and offset rather than any 1077 // target-specific addressing mode. 1078 if (MI.isDebugValue()) { 1079 assert(i == 0 && "Frame indices can only appear as the first " 1080 "operand of a DBG_VALUE machine instruction"); 1081 unsigned Reg; 1082 MachineOperand &Offset = MI.getOperand(1); 1083 Offset.setImm( 1084 Offset.getImm() + 1085 TFI->getFrameIndexReference(Fn, MI.getOperand(0).getIndex(), Reg)); 1086 MI.getOperand(0).ChangeToRegister(Reg, false /*isDef*/); 1087 continue; 1088 } 1089 1090 // TODO: This code should be commoned with the code for 1091 // PATCHPOINT. There's no good reason for the difference in 1092 // implementation other than historical accident. The only 1093 // remaining difference is the unconditional use of the stack 1094 // pointer as the base register. 1095 if (MI.getOpcode() == TargetOpcode::STATEPOINT) { 1096 assert((!MI.isDebugValue() || i == 0) && 1097 "Frame indicies can only appear as the first operand of a " 1098 "DBG_VALUE machine instruction"); 1099 unsigned Reg; 1100 MachineOperand &Offset = MI.getOperand(i + 1); 1101 int refOffset = TFI->getFrameIndexReferencePreferSP( 1102 Fn, MI.getOperand(i).getIndex(), Reg, /*IgnoreSPUpdates*/ false); 1103 Offset.setImm(Offset.getImm() + refOffset); 1104 MI.getOperand(i).ChangeToRegister(Reg, false /*isDef*/); 1105 continue; 1106 } 1107 1108 // Some instructions (e.g. inline asm instructions) can have 1109 // multiple frame indices and/or cause eliminateFrameIndex 1110 // to insert more than one instruction. We need the register 1111 // scavenger to go through all of these instructions so that 1112 // it can update its register information. We keep the 1113 // iterator at the point before insertion so that we can 1114 // revisit them in full. 1115 bool AtBeginning = (I == BB->begin()); 1116 if (!AtBeginning) --I; 1117 1118 // If this instruction has a FrameIndex operand, we need to 1119 // use that target machine register info object to eliminate 1120 // it. 1121 TRI.eliminateFrameIndex(MI, SPAdj, i, 1122 FrameIndexEliminationScavenging ? RS : nullptr); 1123 1124 // Reset the iterator if we were at the beginning of the BB. 1125 if (AtBeginning) { 1126 I = BB->begin(); 1127 DoIncr = false; 1128 } 1129 1130 DidFinishLoop = false; 1131 break; 1132 } 1133 1134 // If we are looking at a call sequence, we need to keep track of 1135 // the SP adjustment made by each instruction in the sequence. 1136 // This includes both the frame setup/destroy pseudos (handled above), 1137 // as well as other instructions that have side effects w.r.t the SP. 1138 // Note that this must come after eliminateFrameIndex, because 1139 // if I itself referred to a frame index, we shouldn't count its own 1140 // adjustment. 1141 if (DidFinishLoop && InsideCallSequence) 1142 SPAdj += TII.getSPAdjust(MI); 1143 1144 if (DoIncr && I != BB->end()) ++I; 1145 1146 // Update register states. 1147 if (RS && FrameIndexEliminationScavenging && DidFinishLoop) 1148 RS->forward(MI); 1149 } 1150 } 1151