1 //===-- X86FrameLowering.cpp - X86 Frame Information ----------------------===// 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 file contains the X86 implementation of TargetFrameLowering class. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "X86FrameLowering.h" 15 #include "X86InstrBuilder.h" 16 #include "X86InstrInfo.h" 17 #include "X86MachineFunctionInfo.h" 18 #include "X86Subtarget.h" 19 #include "X86TargetMachine.h" 20 #include "llvm/ADT/SmallSet.h" 21 #include "llvm/Analysis/EHPersonalities.h" 22 #include "llvm/CodeGen/MachineFrameInfo.h" 23 #include "llvm/CodeGen/MachineFunction.h" 24 #include "llvm/CodeGen/MachineInstrBuilder.h" 25 #include "llvm/CodeGen/MachineModuleInfo.h" 26 #include "llvm/CodeGen/MachineRegisterInfo.h" 27 #include "llvm/CodeGen/WinEHFuncInfo.h" 28 #include "llvm/IR/DataLayout.h" 29 #include "llvm/IR/Function.h" 30 #include "llvm/MC/MCAsmInfo.h" 31 #include "llvm/MC/MCSymbol.h" 32 #include "llvm/Target/TargetOptions.h" 33 #include "llvm/Support/Debug.h" 34 #include <cstdlib> 35 36 using namespace llvm; 37 38 X86FrameLowering::X86FrameLowering(const X86Subtarget &STI, 39 unsigned StackAlignOverride) 40 : TargetFrameLowering(StackGrowsDown, StackAlignOverride, 41 STI.is64Bit() ? -8 : -4), 42 STI(STI), TII(*STI.getInstrInfo()), TRI(STI.getRegisterInfo()) { 43 // Cache a bunch of frame-related predicates for this subtarget. 44 SlotSize = TRI->getSlotSize(); 45 Is64Bit = STI.is64Bit(); 46 IsLP64 = STI.isTarget64BitLP64(); 47 // standard x86_64 and NaCl use 64-bit frame/stack pointers, x32 - 32-bit. 48 Uses64BitFramePtr = STI.isTarget64BitLP64() || STI.isTargetNaCl64(); 49 StackPtr = TRI->getStackRegister(); 50 } 51 52 bool X86FrameLowering::hasReservedCallFrame(const MachineFunction &MF) const { 53 return !MF.getFrameInfo()->hasVarSizedObjects() && 54 !MF.getInfo<X86MachineFunctionInfo>()->getHasPushSequences(); 55 } 56 57 /// canSimplifyCallFramePseudos - If there is a reserved call frame, the 58 /// call frame pseudos can be simplified. Having a FP, as in the default 59 /// implementation, is not sufficient here since we can't always use it. 60 /// Use a more nuanced condition. 61 bool 62 X86FrameLowering::canSimplifyCallFramePseudos(const MachineFunction &MF) const { 63 return hasReservedCallFrame(MF) || 64 (hasFP(MF) && !TRI->needsStackRealignment(MF)) || 65 TRI->hasBasePointer(MF); 66 } 67 68 // needsFrameIndexResolution - Do we need to perform FI resolution for 69 // this function. Normally, this is required only when the function 70 // has any stack objects. However, FI resolution actually has another job, 71 // not apparent from the title - it resolves callframesetup/destroy 72 // that were not simplified earlier. 73 // So, this is required for x86 functions that have push sequences even 74 // when there are no stack objects. 75 bool 76 X86FrameLowering::needsFrameIndexResolution(const MachineFunction &MF) const { 77 return MF.getFrameInfo()->hasStackObjects() || 78 MF.getInfo<X86MachineFunctionInfo>()->getHasPushSequences(); 79 } 80 81 /// hasFP - Return true if the specified function should have a dedicated frame 82 /// pointer register. This is true if the function has variable sized allocas 83 /// or if frame pointer elimination is disabled. 84 bool X86FrameLowering::hasFP(const MachineFunction &MF) const { 85 const MachineFrameInfo *MFI = MF.getFrameInfo(); 86 const MachineModuleInfo &MMI = MF.getMMI(); 87 88 return (MF.getTarget().Options.DisableFramePointerElim(MF) || 89 TRI->needsStackRealignment(MF) || 90 MFI->hasVarSizedObjects() || 91 MFI->isFrameAddressTaken() || MFI->hasOpaqueSPAdjustment() || 92 MF.getInfo<X86MachineFunctionInfo>()->getForceFramePointer() || 93 MMI.callsUnwindInit() || MMI.hasEHFunclets() || MMI.callsEHReturn() || 94 MFI->hasStackMap() || MFI->hasPatchPoint() || 95 MFI->hasCopyImplyingStackAdjustment()); 96 } 97 98 static unsigned getSUBriOpcode(unsigned IsLP64, int64_t Imm) { 99 if (IsLP64) { 100 if (isInt<8>(Imm)) 101 return X86::SUB64ri8; 102 return X86::SUB64ri32; 103 } else { 104 if (isInt<8>(Imm)) 105 return X86::SUB32ri8; 106 return X86::SUB32ri; 107 } 108 } 109 110 static unsigned getADDriOpcode(unsigned IsLP64, int64_t Imm) { 111 if (IsLP64) { 112 if (isInt<8>(Imm)) 113 return X86::ADD64ri8; 114 return X86::ADD64ri32; 115 } else { 116 if (isInt<8>(Imm)) 117 return X86::ADD32ri8; 118 return X86::ADD32ri; 119 } 120 } 121 122 static unsigned getSUBrrOpcode(unsigned isLP64) { 123 return isLP64 ? X86::SUB64rr : X86::SUB32rr; 124 } 125 126 static unsigned getADDrrOpcode(unsigned isLP64) { 127 return isLP64 ? X86::ADD64rr : X86::ADD32rr; 128 } 129 130 static unsigned getANDriOpcode(bool IsLP64, int64_t Imm) { 131 if (IsLP64) { 132 if (isInt<8>(Imm)) 133 return X86::AND64ri8; 134 return X86::AND64ri32; 135 } 136 if (isInt<8>(Imm)) 137 return X86::AND32ri8; 138 return X86::AND32ri; 139 } 140 141 static unsigned getLEArOpcode(unsigned IsLP64) { 142 return IsLP64 ? X86::LEA64r : X86::LEA32r; 143 } 144 145 /// findDeadCallerSavedReg - Return a caller-saved register that isn't live 146 /// when it reaches the "return" instruction. We can then pop a stack object 147 /// to this register without worry about clobbering it. 148 static unsigned findDeadCallerSavedReg(MachineBasicBlock &MBB, 149 MachineBasicBlock::iterator &MBBI, 150 const X86RegisterInfo *TRI, 151 bool Is64Bit) { 152 const MachineFunction *MF = MBB.getParent(); 153 const Function *F = MF->getFunction(); 154 if (!F || MF->getMMI().callsEHReturn()) 155 return 0; 156 157 const TargetRegisterClass &AvailableRegs = *TRI->getGPRsForTailCall(*MF); 158 159 unsigned Opc = MBBI->getOpcode(); 160 switch (Opc) { 161 default: return 0; 162 case X86::RET: 163 case X86::RETL: 164 case X86::RETQ: 165 case X86::RETIL: 166 case X86::RETIQ: 167 case X86::TCRETURNdi: 168 case X86::TCRETURNri: 169 case X86::TCRETURNmi: 170 case X86::TCRETURNdi64: 171 case X86::TCRETURNri64: 172 case X86::TCRETURNmi64: 173 case X86::EH_RETURN: 174 case X86::EH_RETURN64: { 175 SmallSet<uint16_t, 8> Uses; 176 for (unsigned i = 0, e = MBBI->getNumOperands(); i != e; ++i) { 177 MachineOperand &MO = MBBI->getOperand(i); 178 if (!MO.isReg() || MO.isDef()) 179 continue; 180 unsigned Reg = MO.getReg(); 181 if (!Reg) 182 continue; 183 for (MCRegAliasIterator AI(Reg, TRI, true); AI.isValid(); ++AI) 184 Uses.insert(*AI); 185 } 186 187 for (auto CS : AvailableRegs) 188 if (!Uses.count(CS) && CS != X86::RIP) 189 return CS; 190 } 191 } 192 193 return 0; 194 } 195 196 static bool isEAXLiveIn(MachineBasicBlock &MBB) { 197 for (MachineBasicBlock::RegisterMaskPair RegMask : MBB.liveins()) { 198 unsigned Reg = RegMask.PhysReg; 199 200 if (Reg == X86::RAX || Reg == X86::EAX || Reg == X86::AX || 201 Reg == X86::AH || Reg == X86::AL) 202 return true; 203 } 204 205 return false; 206 } 207 208 /// Check if the flags need to be preserved before the terminators. 209 /// This would be the case, if the eflags is live-in of the region 210 /// composed by the terminators or live-out of that region, without 211 /// being defined by a terminator. 212 static bool 213 flagsNeedToBePreservedBeforeTheTerminators(const MachineBasicBlock &MBB) { 214 for (const MachineInstr &MI : MBB.terminators()) { 215 bool BreakNext = false; 216 for (const MachineOperand &MO : MI.operands()) { 217 if (!MO.isReg()) 218 continue; 219 unsigned Reg = MO.getReg(); 220 if (Reg != X86::EFLAGS) 221 continue; 222 223 // This terminator needs an eflags that is not defined 224 // by a previous another terminator: 225 // EFLAGS is live-in of the region composed by the terminators. 226 if (!MO.isDef()) 227 return true; 228 // This terminator defines the eflags, i.e., we don't need to preserve it. 229 // However, we still need to check this specific terminator does not 230 // read a live-in value. 231 BreakNext = true; 232 } 233 // We found a definition of the eflags, no need to preserve them. 234 if (BreakNext) 235 return false; 236 } 237 238 // None of the terminators use or define the eflags. 239 // Check if they are live-out, that would imply we need to preserve them. 240 for (const MachineBasicBlock *Succ : MBB.successors()) 241 if (Succ->isLiveIn(X86::EFLAGS)) 242 return true; 243 244 return false; 245 } 246 247 /// emitSPUpdate - Emit a series of instructions to increment / decrement the 248 /// stack pointer by a constant value. 249 void X86FrameLowering::emitSPUpdate(MachineBasicBlock &MBB, 250 MachineBasicBlock::iterator &MBBI, 251 int64_t NumBytes, bool InEpilogue) const { 252 bool isSub = NumBytes < 0; 253 uint64_t Offset = isSub ? -NumBytes : NumBytes; 254 255 uint64_t Chunk = (1LL << 31) - 1; 256 DebugLoc DL = MBB.findDebugLoc(MBBI); 257 258 while (Offset) { 259 if (Offset > Chunk) { 260 // Rather than emit a long series of instructions for large offsets, 261 // load the offset into a register and do one sub/add 262 unsigned Reg = 0; 263 264 if (isSub && !isEAXLiveIn(MBB)) 265 Reg = (unsigned)(Is64Bit ? X86::RAX : X86::EAX); 266 else 267 Reg = findDeadCallerSavedReg(MBB, MBBI, TRI, Is64Bit); 268 269 if (Reg) { 270 unsigned Opc = Is64Bit ? X86::MOV64ri : X86::MOV32ri; 271 BuildMI(MBB, MBBI, DL, TII.get(Opc), Reg) 272 .addImm(Offset); 273 Opc = isSub 274 ? getSUBrrOpcode(Is64Bit) 275 : getADDrrOpcode(Is64Bit); 276 MachineInstr *MI = BuildMI(MBB, MBBI, DL, TII.get(Opc), StackPtr) 277 .addReg(StackPtr) 278 .addReg(Reg); 279 MI->getOperand(3).setIsDead(); // The EFLAGS implicit def is dead. 280 Offset = 0; 281 continue; 282 } 283 } 284 285 uint64_t ThisVal = std::min(Offset, Chunk); 286 if (ThisVal == (Is64Bit ? 8 : 4)) { 287 // Use push / pop instead. 288 unsigned Reg = isSub 289 ? (unsigned)(Is64Bit ? X86::RAX : X86::EAX) 290 : findDeadCallerSavedReg(MBB, MBBI, TRI, Is64Bit); 291 if (Reg) { 292 unsigned Opc = isSub 293 ? (Is64Bit ? X86::PUSH64r : X86::PUSH32r) 294 : (Is64Bit ? X86::POP64r : X86::POP32r); 295 MachineInstr *MI = BuildMI(MBB, MBBI, DL, TII.get(Opc)) 296 .addReg(Reg, getDefRegState(!isSub) | getUndefRegState(isSub)); 297 if (isSub) 298 MI->setFlag(MachineInstr::FrameSetup); 299 else 300 MI->setFlag(MachineInstr::FrameDestroy); 301 Offset -= ThisVal; 302 continue; 303 } 304 } 305 306 MachineInstrBuilder MI = BuildStackAdjustment( 307 MBB, MBBI, DL, isSub ? -ThisVal : ThisVal, InEpilogue); 308 if (isSub) 309 MI.setMIFlag(MachineInstr::FrameSetup); 310 else 311 MI.setMIFlag(MachineInstr::FrameDestroy); 312 313 Offset -= ThisVal; 314 } 315 } 316 317 MachineInstrBuilder X86FrameLowering::BuildStackAdjustment( 318 MachineBasicBlock &MBB, MachineBasicBlock::iterator MBBI, DebugLoc DL, 319 int64_t Offset, bool InEpilogue) const { 320 assert(Offset != 0 && "zero offset stack adjustment requested"); 321 322 // On Atom, using LEA to adjust SP is preferred, but using it in the epilogue 323 // is tricky. 324 bool UseLEA; 325 if (!InEpilogue) { 326 // Check if inserting the prologue at the beginning 327 // of MBB would require to use LEA operations. 328 // We need to use LEA operations if EFLAGS is live in, because 329 // it means an instruction will read it before it gets defined. 330 UseLEA = STI.useLeaForSP() || MBB.isLiveIn(X86::EFLAGS); 331 } else { 332 // If we can use LEA for SP but we shouldn't, check that none 333 // of the terminators uses the eflags. Otherwise we will insert 334 // a ADD that will redefine the eflags and break the condition. 335 // Alternatively, we could move the ADD, but this may not be possible 336 // and is an optimization anyway. 337 UseLEA = canUseLEAForSPInEpilogue(*MBB.getParent()); 338 if (UseLEA && !STI.useLeaForSP()) 339 UseLEA = flagsNeedToBePreservedBeforeTheTerminators(MBB); 340 // If that assert breaks, that means we do not do the right thing 341 // in canUseAsEpilogue. 342 assert((UseLEA || !flagsNeedToBePreservedBeforeTheTerminators(MBB)) && 343 "We shouldn't have allowed this insertion point"); 344 } 345 346 MachineInstrBuilder MI; 347 if (UseLEA) { 348 MI = addRegOffset(BuildMI(MBB, MBBI, DL, 349 TII.get(getLEArOpcode(Uses64BitFramePtr)), 350 StackPtr), 351 StackPtr, false, Offset); 352 } else { 353 bool IsSub = Offset < 0; 354 uint64_t AbsOffset = IsSub ? -Offset : Offset; 355 unsigned Opc = IsSub ? getSUBriOpcode(Uses64BitFramePtr, AbsOffset) 356 : getADDriOpcode(Uses64BitFramePtr, AbsOffset); 357 MI = BuildMI(MBB, MBBI, DL, TII.get(Opc), StackPtr) 358 .addReg(StackPtr) 359 .addImm(AbsOffset); 360 MI->getOperand(3).setIsDead(); // The EFLAGS implicit def is dead. 361 } 362 return MI; 363 } 364 365 int X86FrameLowering::mergeSPUpdates(MachineBasicBlock &MBB, 366 MachineBasicBlock::iterator &MBBI, 367 bool doMergeWithPrevious) const { 368 if ((doMergeWithPrevious && MBBI == MBB.begin()) || 369 (!doMergeWithPrevious && MBBI == MBB.end())) 370 return 0; 371 372 MachineBasicBlock::iterator PI = doMergeWithPrevious ? std::prev(MBBI) : MBBI; 373 MachineBasicBlock::iterator NI = doMergeWithPrevious ? nullptr 374 : std::next(MBBI); 375 unsigned Opc = PI->getOpcode(); 376 int Offset = 0; 377 378 if (!doMergeWithPrevious && NI != MBB.end() && 379 NI->getOpcode() == TargetOpcode::CFI_INSTRUCTION) { 380 // Don't merge with the next instruction if it has CFI. 381 return Offset; 382 } 383 384 if ((Opc == X86::ADD64ri32 || Opc == X86::ADD64ri8 || 385 Opc == X86::ADD32ri || Opc == X86::ADD32ri8) && 386 PI->getOperand(0).getReg() == StackPtr){ 387 assert(PI->getOperand(1).getReg() == StackPtr); 388 Offset += PI->getOperand(2).getImm(); 389 MBB.erase(PI); 390 if (!doMergeWithPrevious) MBBI = NI; 391 } else if ((Opc == X86::LEA32r || Opc == X86::LEA64_32r) && 392 PI->getOperand(0).getReg() == StackPtr && 393 PI->getOperand(1).getReg() == StackPtr && 394 PI->getOperand(2).getImm() == 1 && 395 PI->getOperand(3).getReg() == X86::NoRegister && 396 PI->getOperand(5).getReg() == X86::NoRegister) { 397 // For LEAs we have: def = lea SP, FI, noreg, Offset, noreg. 398 Offset += PI->getOperand(4).getImm(); 399 MBB.erase(PI); 400 if (!doMergeWithPrevious) MBBI = NI; 401 } else if ((Opc == X86::SUB64ri32 || Opc == X86::SUB64ri8 || 402 Opc == X86::SUB32ri || Opc == X86::SUB32ri8) && 403 PI->getOperand(0).getReg() == StackPtr) { 404 assert(PI->getOperand(1).getReg() == StackPtr); 405 Offset -= PI->getOperand(2).getImm(); 406 MBB.erase(PI); 407 if (!doMergeWithPrevious) MBBI = NI; 408 } 409 410 return Offset; 411 } 412 413 void X86FrameLowering::BuildCFI(MachineBasicBlock &MBB, 414 MachineBasicBlock::iterator MBBI, DebugLoc DL, 415 MCCFIInstruction CFIInst) const { 416 MachineFunction &MF = *MBB.getParent(); 417 unsigned CFIIndex = MF.getMMI().addFrameInst(CFIInst); 418 BuildMI(MBB, MBBI, DL, TII.get(TargetOpcode::CFI_INSTRUCTION)) 419 .addCFIIndex(CFIIndex); 420 } 421 422 void 423 X86FrameLowering::emitCalleeSavedFrameMoves(MachineBasicBlock &MBB, 424 MachineBasicBlock::iterator MBBI, 425 DebugLoc DL) const { 426 MachineFunction &MF = *MBB.getParent(); 427 MachineFrameInfo *MFI = MF.getFrameInfo(); 428 MachineModuleInfo &MMI = MF.getMMI(); 429 const MCRegisterInfo *MRI = MMI.getContext().getRegisterInfo(); 430 431 // Add callee saved registers to move list. 432 const std::vector<CalleeSavedInfo> &CSI = MFI->getCalleeSavedInfo(); 433 if (CSI.empty()) return; 434 435 // Calculate offsets. 436 for (std::vector<CalleeSavedInfo>::const_iterator 437 I = CSI.begin(), E = CSI.end(); I != E; ++I) { 438 int64_t Offset = MFI->getObjectOffset(I->getFrameIdx()); 439 unsigned Reg = I->getReg(); 440 441 unsigned DwarfReg = MRI->getDwarfRegNum(Reg, true); 442 BuildCFI(MBB, MBBI, DL, 443 MCCFIInstruction::createOffset(nullptr, DwarfReg, Offset)); 444 } 445 } 446 447 MachineInstr *X86FrameLowering::emitStackProbe(MachineFunction &MF, 448 MachineBasicBlock &MBB, 449 MachineBasicBlock::iterator MBBI, 450 DebugLoc DL, 451 bool InProlog) const { 452 const X86Subtarget &STI = MF.getSubtarget<X86Subtarget>(); 453 if (STI.isTargetWindowsCoreCLR()) { 454 if (InProlog) { 455 return emitStackProbeInlineStub(MF, MBB, MBBI, DL, true); 456 } else { 457 return emitStackProbeInline(MF, MBB, MBBI, DL, false); 458 } 459 } else { 460 return emitStackProbeCall(MF, MBB, MBBI, DL, InProlog); 461 } 462 } 463 464 void X86FrameLowering::inlineStackProbe(MachineFunction &MF, 465 MachineBasicBlock &PrologMBB) const { 466 const StringRef ChkStkStubSymbol = "__chkstk_stub"; 467 MachineInstr *ChkStkStub = nullptr; 468 469 for (MachineInstr &MI : PrologMBB) { 470 if (MI.isCall() && MI.getOperand(0).isSymbol() && 471 ChkStkStubSymbol == MI.getOperand(0).getSymbolName()) { 472 ChkStkStub = &MI; 473 break; 474 } 475 } 476 477 if (ChkStkStub != nullptr) { 478 assert(!ChkStkStub->isBundled() && 479 "Not expecting bundled instructions here"); 480 MachineBasicBlock::iterator MBBI = std::next(ChkStkStub->getIterator()); 481 assert(std::prev(MBBI).operator==(ChkStkStub) && 482 "MBBI expected after __chkstk_stub."); 483 DebugLoc DL = PrologMBB.findDebugLoc(MBBI); 484 emitStackProbeInline(MF, PrologMBB, MBBI, DL, true); 485 ChkStkStub->eraseFromParent(); 486 } 487 } 488 489 MachineInstr *X86FrameLowering::emitStackProbeInline( 490 MachineFunction &MF, MachineBasicBlock &MBB, 491 MachineBasicBlock::iterator MBBI, DebugLoc DL, bool InProlog) const { 492 const X86Subtarget &STI = MF.getSubtarget<X86Subtarget>(); 493 assert(STI.is64Bit() && "different expansion needed for 32 bit"); 494 assert(STI.isTargetWindowsCoreCLR() && "custom expansion expects CoreCLR"); 495 const TargetInstrInfo &TII = *STI.getInstrInfo(); 496 const BasicBlock *LLVM_BB = MBB.getBasicBlock(); 497 498 // RAX contains the number of bytes of desired stack adjustment. 499 // The handling here assumes this value has already been updated so as to 500 // maintain stack alignment. 501 // 502 // We need to exit with RSP modified by this amount and execute suitable 503 // page touches to notify the OS that we're growing the stack responsibly. 504 // All stack probing must be done without modifying RSP. 505 // 506 // MBB: 507 // SizeReg = RAX; 508 // ZeroReg = 0 509 // CopyReg = RSP 510 // Flags, TestReg = CopyReg - SizeReg 511 // FinalReg = !Flags.Ovf ? TestReg : ZeroReg 512 // LimitReg = gs magic thread env access 513 // if FinalReg >= LimitReg goto ContinueMBB 514 // RoundBB: 515 // RoundReg = page address of FinalReg 516 // LoopMBB: 517 // LoopReg = PHI(LimitReg,ProbeReg) 518 // ProbeReg = LoopReg - PageSize 519 // [ProbeReg] = 0 520 // if (ProbeReg > RoundReg) goto LoopMBB 521 // ContinueMBB: 522 // RSP = RSP - RAX 523 // [rest of original MBB] 524 525 // Set up the new basic blocks 526 MachineBasicBlock *RoundMBB = MF.CreateMachineBasicBlock(LLVM_BB); 527 MachineBasicBlock *LoopMBB = MF.CreateMachineBasicBlock(LLVM_BB); 528 MachineBasicBlock *ContinueMBB = MF.CreateMachineBasicBlock(LLVM_BB); 529 530 MachineFunction::iterator MBBIter = std::next(MBB.getIterator()); 531 MF.insert(MBBIter, RoundMBB); 532 MF.insert(MBBIter, LoopMBB); 533 MF.insert(MBBIter, ContinueMBB); 534 535 // Split MBB and move the tail portion down to ContinueMBB. 536 MachineBasicBlock::iterator BeforeMBBI = std::prev(MBBI); 537 ContinueMBB->splice(ContinueMBB->begin(), &MBB, MBBI, MBB.end()); 538 ContinueMBB->transferSuccessorsAndUpdatePHIs(&MBB); 539 540 // Some useful constants 541 const int64_t ThreadEnvironmentStackLimit = 0x10; 542 const int64_t PageSize = 0x1000; 543 const int64_t PageMask = ~(PageSize - 1); 544 545 // Registers we need. For the normal case we use virtual 546 // registers. For the prolog expansion we use RAX, RCX and RDX. 547 MachineRegisterInfo &MRI = MF.getRegInfo(); 548 const TargetRegisterClass *RegClass = &X86::GR64RegClass; 549 const unsigned SizeReg = InProlog ? (unsigned)X86::RAX 550 : MRI.createVirtualRegister(RegClass), 551 ZeroReg = InProlog ? (unsigned)X86::RCX 552 : MRI.createVirtualRegister(RegClass), 553 CopyReg = InProlog ? (unsigned)X86::RDX 554 : MRI.createVirtualRegister(RegClass), 555 TestReg = InProlog ? (unsigned)X86::RDX 556 : MRI.createVirtualRegister(RegClass), 557 FinalReg = InProlog ? (unsigned)X86::RDX 558 : MRI.createVirtualRegister(RegClass), 559 RoundedReg = InProlog ? (unsigned)X86::RDX 560 : MRI.createVirtualRegister(RegClass), 561 LimitReg = InProlog ? (unsigned)X86::RCX 562 : MRI.createVirtualRegister(RegClass), 563 JoinReg = InProlog ? (unsigned)X86::RCX 564 : MRI.createVirtualRegister(RegClass), 565 ProbeReg = InProlog ? (unsigned)X86::RCX 566 : MRI.createVirtualRegister(RegClass); 567 568 // SP-relative offsets where we can save RCX and RDX. 569 int64_t RCXShadowSlot = 0; 570 int64_t RDXShadowSlot = 0; 571 572 // If inlining in the prolog, save RCX and RDX. 573 // Future optimization: don't save or restore if not live in. 574 if (InProlog) { 575 // Compute the offsets. We need to account for things already 576 // pushed onto the stack at this point: return address, frame 577 // pointer (if used), and callee saves. 578 X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>(); 579 const int64_t CalleeSaveSize = X86FI->getCalleeSavedFrameSize(); 580 const bool HasFP = hasFP(MF); 581 RCXShadowSlot = 8 + CalleeSaveSize + (HasFP ? 8 : 0); 582 RDXShadowSlot = RCXShadowSlot + 8; 583 // Emit the saves. 584 addRegOffset(BuildMI(&MBB, DL, TII.get(X86::MOV64mr)), X86::RSP, false, 585 RCXShadowSlot) 586 .addReg(X86::RCX); 587 addRegOffset(BuildMI(&MBB, DL, TII.get(X86::MOV64mr)), X86::RSP, false, 588 RDXShadowSlot) 589 .addReg(X86::RDX); 590 } else { 591 // Not in the prolog. Copy RAX to a virtual reg. 592 BuildMI(&MBB, DL, TII.get(X86::MOV64rr), SizeReg).addReg(X86::RAX); 593 } 594 595 // Add code to MBB to check for overflow and set the new target stack pointer 596 // to zero if so. 597 BuildMI(&MBB, DL, TII.get(X86::XOR64rr), ZeroReg) 598 .addReg(ZeroReg, RegState::Undef) 599 .addReg(ZeroReg, RegState::Undef); 600 BuildMI(&MBB, DL, TII.get(X86::MOV64rr), CopyReg).addReg(X86::RSP); 601 BuildMI(&MBB, DL, TII.get(X86::SUB64rr), TestReg) 602 .addReg(CopyReg) 603 .addReg(SizeReg); 604 BuildMI(&MBB, DL, TII.get(X86::CMOVB64rr), FinalReg) 605 .addReg(TestReg) 606 .addReg(ZeroReg); 607 608 // FinalReg now holds final stack pointer value, or zero if 609 // allocation would overflow. Compare against the current stack 610 // limit from the thread environment block. Note this limit is the 611 // lowest touched page on the stack, not the point at which the OS 612 // will cause an overflow exception, so this is just an optimization 613 // to avoid unnecessarily touching pages that are below the current 614 // SP but already commited to the stack by the OS. 615 BuildMI(&MBB, DL, TII.get(X86::MOV64rm), LimitReg) 616 .addReg(0) 617 .addImm(1) 618 .addReg(0) 619 .addImm(ThreadEnvironmentStackLimit) 620 .addReg(X86::GS); 621 BuildMI(&MBB, DL, TII.get(X86::CMP64rr)).addReg(FinalReg).addReg(LimitReg); 622 // Jump if the desired stack pointer is at or above the stack limit. 623 BuildMI(&MBB, DL, TII.get(X86::JAE_1)).addMBB(ContinueMBB); 624 625 // Add code to roundMBB to round the final stack pointer to a page boundary. 626 BuildMI(RoundMBB, DL, TII.get(X86::AND64ri32), RoundedReg) 627 .addReg(FinalReg) 628 .addImm(PageMask); 629 BuildMI(RoundMBB, DL, TII.get(X86::JMP_1)).addMBB(LoopMBB); 630 631 // LimitReg now holds the current stack limit, RoundedReg page-rounded 632 // final RSP value. Add code to loopMBB to decrement LimitReg page-by-page 633 // and probe until we reach RoundedReg. 634 if (!InProlog) { 635 BuildMI(LoopMBB, DL, TII.get(X86::PHI), JoinReg) 636 .addReg(LimitReg) 637 .addMBB(RoundMBB) 638 .addReg(ProbeReg) 639 .addMBB(LoopMBB); 640 } 641 642 addRegOffset(BuildMI(LoopMBB, DL, TII.get(X86::LEA64r), ProbeReg), JoinReg, 643 false, -PageSize); 644 645 // Probe by storing a byte onto the stack. 646 BuildMI(LoopMBB, DL, TII.get(X86::MOV8mi)) 647 .addReg(ProbeReg) 648 .addImm(1) 649 .addReg(0) 650 .addImm(0) 651 .addReg(0) 652 .addImm(0); 653 BuildMI(LoopMBB, DL, TII.get(X86::CMP64rr)) 654 .addReg(RoundedReg) 655 .addReg(ProbeReg); 656 BuildMI(LoopMBB, DL, TII.get(X86::JNE_1)).addMBB(LoopMBB); 657 658 MachineBasicBlock::iterator ContinueMBBI = ContinueMBB->getFirstNonPHI(); 659 660 // If in prolog, restore RDX and RCX. 661 if (InProlog) { 662 addRegOffset(BuildMI(*ContinueMBB, ContinueMBBI, DL, TII.get(X86::MOV64rm), 663 X86::RCX), 664 X86::RSP, false, RCXShadowSlot); 665 addRegOffset(BuildMI(*ContinueMBB, ContinueMBBI, DL, TII.get(X86::MOV64rm), 666 X86::RDX), 667 X86::RSP, false, RDXShadowSlot); 668 } 669 670 // Now that the probing is done, add code to continueMBB to update 671 // the stack pointer for real. 672 BuildMI(*ContinueMBB, ContinueMBBI, DL, TII.get(X86::SUB64rr), X86::RSP) 673 .addReg(X86::RSP) 674 .addReg(SizeReg); 675 676 // Add the control flow edges we need. 677 MBB.addSuccessor(ContinueMBB); 678 MBB.addSuccessor(RoundMBB); 679 RoundMBB->addSuccessor(LoopMBB); 680 LoopMBB->addSuccessor(ContinueMBB); 681 LoopMBB->addSuccessor(LoopMBB); 682 683 // Mark all the instructions added to the prolog as frame setup. 684 if (InProlog) { 685 for (++BeforeMBBI; BeforeMBBI != MBB.end(); ++BeforeMBBI) { 686 BeforeMBBI->setFlag(MachineInstr::FrameSetup); 687 } 688 for (MachineInstr &MI : *RoundMBB) { 689 MI.setFlag(MachineInstr::FrameSetup); 690 } 691 for (MachineInstr &MI : *LoopMBB) { 692 MI.setFlag(MachineInstr::FrameSetup); 693 } 694 for (MachineBasicBlock::iterator CMBBI = ContinueMBB->begin(); 695 CMBBI != ContinueMBBI; ++CMBBI) { 696 CMBBI->setFlag(MachineInstr::FrameSetup); 697 } 698 } 699 700 // Possible TODO: physreg liveness for InProlog case. 701 702 return ContinueMBBI; 703 } 704 705 MachineInstr *X86FrameLowering::emitStackProbeCall( 706 MachineFunction &MF, MachineBasicBlock &MBB, 707 MachineBasicBlock::iterator MBBI, DebugLoc DL, bool InProlog) const { 708 bool IsLargeCodeModel = MF.getTarget().getCodeModel() == CodeModel::Large; 709 710 unsigned CallOp; 711 if (Is64Bit) 712 CallOp = IsLargeCodeModel ? X86::CALL64r : X86::CALL64pcrel32; 713 else 714 CallOp = X86::CALLpcrel32; 715 716 const char *Symbol; 717 if (Is64Bit) { 718 if (STI.isTargetCygMing()) { 719 Symbol = "___chkstk_ms"; 720 } else { 721 Symbol = "__chkstk"; 722 } 723 } else if (STI.isTargetCygMing()) 724 Symbol = "_alloca"; 725 else 726 Symbol = "_chkstk"; 727 728 MachineInstrBuilder CI; 729 MachineBasicBlock::iterator ExpansionMBBI = std::prev(MBBI); 730 731 // All current stack probes take AX and SP as input, clobber flags, and 732 // preserve all registers. x86_64 probes leave RSP unmodified. 733 if (Is64Bit && MF.getTarget().getCodeModel() == CodeModel::Large) { 734 // For the large code model, we have to call through a register. Use R11, 735 // as it is scratch in all supported calling conventions. 736 BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64ri), X86::R11) 737 .addExternalSymbol(Symbol); 738 CI = BuildMI(MBB, MBBI, DL, TII.get(CallOp)).addReg(X86::R11); 739 } else { 740 CI = BuildMI(MBB, MBBI, DL, TII.get(CallOp)).addExternalSymbol(Symbol); 741 } 742 743 unsigned AX = Is64Bit ? X86::RAX : X86::EAX; 744 unsigned SP = Is64Bit ? X86::RSP : X86::ESP; 745 CI.addReg(AX, RegState::Implicit) 746 .addReg(SP, RegState::Implicit) 747 .addReg(AX, RegState::Define | RegState::Implicit) 748 .addReg(SP, RegState::Define | RegState::Implicit) 749 .addReg(X86::EFLAGS, RegState::Define | RegState::Implicit); 750 751 if (Is64Bit) { 752 // MSVC x64's __chkstk and cygwin/mingw's ___chkstk_ms do not adjust %rsp 753 // themselves. It also does not clobber %rax so we can reuse it when 754 // adjusting %rsp. 755 BuildMI(MBB, MBBI, DL, TII.get(X86::SUB64rr), X86::RSP) 756 .addReg(X86::RSP) 757 .addReg(X86::RAX); 758 } 759 760 if (InProlog) { 761 // Apply the frame setup flag to all inserted instrs. 762 for (++ExpansionMBBI; ExpansionMBBI != MBBI; ++ExpansionMBBI) 763 ExpansionMBBI->setFlag(MachineInstr::FrameSetup); 764 } 765 766 return MBBI; 767 } 768 769 MachineInstr *X86FrameLowering::emitStackProbeInlineStub( 770 MachineFunction &MF, MachineBasicBlock &MBB, 771 MachineBasicBlock::iterator MBBI, DebugLoc DL, bool InProlog) const { 772 773 assert(InProlog && "ChkStkStub called outside prolog!"); 774 775 BuildMI(MBB, MBBI, DL, TII.get(X86::CALLpcrel32)) 776 .addExternalSymbol("__chkstk_stub"); 777 778 return MBBI; 779 } 780 781 static unsigned calculateSetFPREG(uint64_t SPAdjust) { 782 // Win64 ABI has a less restrictive limitation of 240; 128 works equally well 783 // and might require smaller successive adjustments. 784 const uint64_t Win64MaxSEHOffset = 128; 785 uint64_t SEHFrameOffset = std::min(SPAdjust, Win64MaxSEHOffset); 786 // Win64 ABI requires 16-byte alignment for the UWOP_SET_FPREG opcode. 787 return SEHFrameOffset & -16; 788 } 789 790 // If we're forcing a stack realignment we can't rely on just the frame 791 // info, we need to know the ABI stack alignment as well in case we 792 // have a call out. Otherwise just make sure we have some alignment - we'll 793 // go with the minimum SlotSize. 794 uint64_t X86FrameLowering::calculateMaxStackAlign(const MachineFunction &MF) const { 795 const MachineFrameInfo *MFI = MF.getFrameInfo(); 796 uint64_t MaxAlign = MFI->getMaxAlignment(); // Desired stack alignment. 797 unsigned StackAlign = getStackAlignment(); 798 if (MF.getFunction()->hasFnAttribute("stackrealign")) { 799 if (MFI->hasCalls()) 800 MaxAlign = (StackAlign > MaxAlign) ? StackAlign : MaxAlign; 801 else if (MaxAlign < SlotSize) 802 MaxAlign = SlotSize; 803 } 804 return MaxAlign; 805 } 806 807 void X86FrameLowering::BuildStackAlignAND(MachineBasicBlock &MBB, 808 MachineBasicBlock::iterator MBBI, 809 DebugLoc DL, unsigned Reg, 810 uint64_t MaxAlign) const { 811 uint64_t Val = -MaxAlign; 812 unsigned AndOp = getANDriOpcode(Uses64BitFramePtr, Val); 813 MachineInstr *MI = BuildMI(MBB, MBBI, DL, TII.get(AndOp), Reg) 814 .addReg(Reg) 815 .addImm(Val) 816 .setMIFlag(MachineInstr::FrameSetup); 817 818 // The EFLAGS implicit def is dead. 819 MI->getOperand(3).setIsDead(); 820 } 821 822 /// emitPrologue - Push callee-saved registers onto the stack, which 823 /// automatically adjust the stack pointer. Adjust the stack pointer to allocate 824 /// space for local variables. Also emit labels used by the exception handler to 825 /// generate the exception handling frames. 826 827 /* 828 Here's a gist of what gets emitted: 829 830 ; Establish frame pointer, if needed 831 [if needs FP] 832 push %rbp 833 .cfi_def_cfa_offset 16 834 .cfi_offset %rbp, -16 835 .seh_pushreg %rpb 836 mov %rsp, %rbp 837 .cfi_def_cfa_register %rbp 838 839 ; Spill general-purpose registers 840 [for all callee-saved GPRs] 841 pushq %<reg> 842 [if not needs FP] 843 .cfi_def_cfa_offset (offset from RETADDR) 844 .seh_pushreg %<reg> 845 846 ; If the required stack alignment > default stack alignment 847 ; rsp needs to be re-aligned. This creates a "re-alignment gap" 848 ; of unknown size in the stack frame. 849 [if stack needs re-alignment] 850 and $MASK, %rsp 851 852 ; Allocate space for locals 853 [if target is Windows and allocated space > 4096 bytes] 854 ; Windows needs special care for allocations larger 855 ; than one page. 856 mov $NNN, %rax 857 call ___chkstk_ms/___chkstk 858 sub %rax, %rsp 859 [else] 860 sub $NNN, %rsp 861 862 [if needs FP] 863 .seh_stackalloc (size of XMM spill slots) 864 .seh_setframe %rbp, SEHFrameOffset ; = size of all spill slots 865 [else] 866 .seh_stackalloc NNN 867 868 ; Spill XMMs 869 ; Note, that while only Windows 64 ABI specifies XMMs as callee-preserved, 870 ; they may get spilled on any platform, if the current function 871 ; calls @llvm.eh.unwind.init 872 [if needs FP] 873 [for all callee-saved XMM registers] 874 movaps %<xmm reg>, -MMM(%rbp) 875 [for all callee-saved XMM registers] 876 .seh_savexmm %<xmm reg>, (-MMM + SEHFrameOffset) 877 ; i.e. the offset relative to (%rbp - SEHFrameOffset) 878 [else] 879 [for all callee-saved XMM registers] 880 movaps %<xmm reg>, KKK(%rsp) 881 [for all callee-saved XMM registers] 882 .seh_savexmm %<xmm reg>, KKK 883 884 .seh_endprologue 885 886 [if needs base pointer] 887 mov %rsp, %rbx 888 [if needs to restore base pointer] 889 mov %rsp, -MMM(%rbp) 890 891 ; Emit CFI info 892 [if needs FP] 893 [for all callee-saved registers] 894 .cfi_offset %<reg>, (offset from %rbp) 895 [else] 896 .cfi_def_cfa_offset (offset from RETADDR) 897 [for all callee-saved registers] 898 .cfi_offset %<reg>, (offset from %rsp) 899 900 Notes: 901 - .seh directives are emitted only for Windows 64 ABI 902 - .cfi directives are emitted for all other ABIs 903 - for 32-bit code, substitute %e?? registers for %r?? 904 */ 905 906 void X86FrameLowering::emitPrologue(MachineFunction &MF, 907 MachineBasicBlock &MBB) const { 908 assert(&STI == &MF.getSubtarget<X86Subtarget>() && 909 "MF used frame lowering for wrong subtarget"); 910 MachineBasicBlock::iterator MBBI = MBB.begin(); 911 MachineFrameInfo *MFI = MF.getFrameInfo(); 912 const Function *Fn = MF.getFunction(); 913 MachineModuleInfo &MMI = MF.getMMI(); 914 X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>(); 915 uint64_t MaxAlign = calculateMaxStackAlign(MF); // Desired stack alignment. 916 uint64_t StackSize = MFI->getStackSize(); // Number of bytes to allocate. 917 bool IsFunclet = MBB.isEHFuncletEntry(); 918 EHPersonality Personality = EHPersonality::Unknown; 919 if (Fn->hasPersonalityFn()) 920 Personality = classifyEHPersonality(Fn->getPersonalityFn()); 921 bool FnHasClrFunclet = 922 MMI.hasEHFunclets() && Personality == EHPersonality::CoreCLR; 923 bool IsClrFunclet = IsFunclet && FnHasClrFunclet; 924 bool HasFP = hasFP(MF); 925 bool IsWin64CC = STI.isCallingConvWin64(Fn->getCallingConv()); 926 bool IsWin64Prologue = MF.getTarget().getMCAsmInfo()->usesWindowsCFI(); 927 bool NeedsWinCFI = IsWin64Prologue && Fn->needsUnwindTableEntry(); 928 bool NeedsDwarfCFI = 929 !IsWin64Prologue && (MMI.hasDebugInfo() || Fn->needsUnwindTableEntry()); 930 unsigned FramePtr = TRI->getFrameRegister(MF); 931 const unsigned MachineFramePtr = 932 STI.isTarget64BitILP32() 933 ? getX86SubSuperRegister(FramePtr, 64) : FramePtr; 934 unsigned BasePtr = TRI->getBaseRegister(); 935 936 // Debug location must be unknown since the first debug location is used 937 // to determine the end of the prologue. 938 DebugLoc DL; 939 940 // Add RETADDR move area to callee saved frame size. 941 int TailCallReturnAddrDelta = X86FI->getTCReturnAddrDelta(); 942 if (TailCallReturnAddrDelta && IsWin64Prologue) 943 report_fatal_error("Can't handle guaranteed tail call under win64 yet"); 944 945 if (TailCallReturnAddrDelta < 0) 946 X86FI->setCalleeSavedFrameSize( 947 X86FI->getCalleeSavedFrameSize() - TailCallReturnAddrDelta); 948 949 bool UseStackProbe = (STI.isOSWindows() && !STI.isTargetMachO()); 950 951 // The default stack probe size is 4096 if the function has no stackprobesize 952 // attribute. 953 unsigned StackProbeSize = 4096; 954 if (Fn->hasFnAttribute("stack-probe-size")) 955 Fn->getFnAttribute("stack-probe-size") 956 .getValueAsString() 957 .getAsInteger(0, StackProbeSize); 958 959 // If this is x86-64 and the Red Zone is not disabled, if we are a leaf 960 // function, and use up to 128 bytes of stack space, don't have a frame 961 // pointer, calls, or dynamic alloca then we do not need to adjust the 962 // stack pointer (we fit in the Red Zone). We also check that we don't 963 // push and pop from the stack. 964 if (Is64Bit && !Fn->hasFnAttribute(Attribute::NoRedZone) && 965 !TRI->needsStackRealignment(MF) && 966 !MFI->hasVarSizedObjects() && // No dynamic alloca. 967 !MFI->adjustsStack() && // No calls. 968 !IsWin64CC && // Win64 has no Red Zone 969 !MFI->hasCopyImplyingStackAdjustment() && // Don't push and pop. 970 !MF.shouldSplitStack()) { // Regular stack 971 uint64_t MinSize = X86FI->getCalleeSavedFrameSize(); 972 if (HasFP) MinSize += SlotSize; 973 X86FI->setUsesRedZone(MinSize > 0 || StackSize > 0); 974 StackSize = std::max(MinSize, StackSize > 128 ? StackSize - 128 : 0); 975 MFI->setStackSize(StackSize); 976 } 977 978 // Insert stack pointer adjustment for later moving of return addr. Only 979 // applies to tail call optimized functions where the callee argument stack 980 // size is bigger than the callers. 981 if (TailCallReturnAddrDelta < 0) { 982 BuildStackAdjustment(MBB, MBBI, DL, TailCallReturnAddrDelta, 983 /*InEpilogue=*/false) 984 .setMIFlag(MachineInstr::FrameSetup); 985 } 986 987 // Mapping for machine moves: 988 // 989 // DST: VirtualFP AND 990 // SRC: VirtualFP => DW_CFA_def_cfa_offset 991 // ELSE => DW_CFA_def_cfa 992 // 993 // SRC: VirtualFP AND 994 // DST: Register => DW_CFA_def_cfa_register 995 // 996 // ELSE 997 // OFFSET < 0 => DW_CFA_offset_extended_sf 998 // REG < 64 => DW_CFA_offset + Reg 999 // ELSE => DW_CFA_offset_extended 1000 1001 uint64_t NumBytes = 0; 1002 int stackGrowth = -SlotSize; 1003 1004 // Find the funclet establisher parameter 1005 unsigned Establisher = X86::NoRegister; 1006 if (IsClrFunclet) 1007 Establisher = Uses64BitFramePtr ? X86::RCX : X86::ECX; 1008 else if (IsFunclet) 1009 Establisher = Uses64BitFramePtr ? X86::RDX : X86::EDX; 1010 1011 if (IsWin64Prologue && IsFunclet && !IsClrFunclet) { 1012 // Immediately spill establisher into the home slot. 1013 // The runtime cares about this. 1014 // MOV64mr %rdx, 16(%rsp) 1015 unsigned MOVmr = Uses64BitFramePtr ? X86::MOV64mr : X86::MOV32mr; 1016 addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(MOVmr)), StackPtr, true, 16) 1017 .addReg(Establisher) 1018 .setMIFlag(MachineInstr::FrameSetup); 1019 MBB.addLiveIn(Establisher); 1020 } 1021 1022 if (HasFP) { 1023 // Calculate required stack adjustment. 1024 uint64_t FrameSize = StackSize - SlotSize; 1025 // If required, include space for extra hidden slot for stashing base pointer. 1026 if (X86FI->getRestoreBasePointer()) 1027 FrameSize += SlotSize; 1028 1029 NumBytes = FrameSize - X86FI->getCalleeSavedFrameSize(); 1030 1031 // Callee-saved registers are pushed on stack before the stack is realigned. 1032 if (TRI->needsStackRealignment(MF) && !IsWin64Prologue) 1033 NumBytes = alignTo(NumBytes, MaxAlign); 1034 1035 // Get the offset of the stack slot for the EBP register, which is 1036 // guaranteed to be the last slot by processFunctionBeforeFrameFinalized. 1037 // Update the frame offset adjustment. 1038 if (!IsFunclet) 1039 MFI->setOffsetAdjustment(-NumBytes); 1040 else 1041 assert(MFI->getOffsetAdjustment() == -(int)NumBytes && 1042 "should calculate same local variable offset for funclets"); 1043 1044 // Save EBP/RBP into the appropriate stack slot. 1045 BuildMI(MBB, MBBI, DL, TII.get(Is64Bit ? X86::PUSH64r : X86::PUSH32r)) 1046 .addReg(MachineFramePtr, RegState::Kill) 1047 .setMIFlag(MachineInstr::FrameSetup); 1048 1049 if (NeedsDwarfCFI) { 1050 // Mark the place where EBP/RBP was saved. 1051 // Define the current CFA rule to use the provided offset. 1052 assert(StackSize); 1053 BuildCFI(MBB, MBBI, DL, 1054 MCCFIInstruction::createDefCfaOffset(nullptr, 2 * stackGrowth)); 1055 1056 // Change the rule for the FramePtr to be an "offset" rule. 1057 unsigned DwarfFramePtr = TRI->getDwarfRegNum(MachineFramePtr, true); 1058 BuildCFI(MBB, MBBI, DL, MCCFIInstruction::createOffset( 1059 nullptr, DwarfFramePtr, 2 * stackGrowth)); 1060 } 1061 1062 if (NeedsWinCFI) { 1063 BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_PushReg)) 1064 .addImm(FramePtr) 1065 .setMIFlag(MachineInstr::FrameSetup); 1066 } 1067 1068 if (!IsWin64Prologue && !IsFunclet) { 1069 // Update EBP with the new base value. 1070 BuildMI(MBB, MBBI, DL, 1071 TII.get(Uses64BitFramePtr ? X86::MOV64rr : X86::MOV32rr), 1072 FramePtr) 1073 .addReg(StackPtr) 1074 .setMIFlag(MachineInstr::FrameSetup); 1075 1076 if (NeedsDwarfCFI) { 1077 // Mark effective beginning of when frame pointer becomes valid. 1078 // Define the current CFA to use the EBP/RBP register. 1079 unsigned DwarfFramePtr = TRI->getDwarfRegNum(MachineFramePtr, true); 1080 BuildCFI(MBB, MBBI, DL, MCCFIInstruction::createDefCfaRegister( 1081 nullptr, DwarfFramePtr)); 1082 } 1083 } 1084 1085 // Mark the FramePtr as live-in in every block. Don't do this again for 1086 // funclet prologues. 1087 if (!IsFunclet) { 1088 for (MachineBasicBlock &EveryMBB : MF) 1089 EveryMBB.addLiveIn(MachineFramePtr); 1090 } 1091 } else { 1092 assert(!IsFunclet && "funclets without FPs not yet implemented"); 1093 NumBytes = StackSize - X86FI->getCalleeSavedFrameSize(); 1094 } 1095 1096 // For EH funclets, only allocate enough space for outgoing calls. Save the 1097 // NumBytes value that we would've used for the parent frame. 1098 unsigned ParentFrameNumBytes = NumBytes; 1099 if (IsFunclet) 1100 NumBytes = getWinEHFuncletFrameSize(MF); 1101 1102 // Skip the callee-saved push instructions. 1103 bool PushedRegs = false; 1104 int StackOffset = 2 * stackGrowth; 1105 1106 while (MBBI != MBB.end() && 1107 MBBI->getFlag(MachineInstr::FrameSetup) && 1108 (MBBI->getOpcode() == X86::PUSH32r || 1109 MBBI->getOpcode() == X86::PUSH64r)) { 1110 PushedRegs = true; 1111 unsigned Reg = MBBI->getOperand(0).getReg(); 1112 ++MBBI; 1113 1114 if (!HasFP && NeedsDwarfCFI) { 1115 // Mark callee-saved push instruction. 1116 // Define the current CFA rule to use the provided offset. 1117 assert(StackSize); 1118 BuildCFI(MBB, MBBI, DL, 1119 MCCFIInstruction::createDefCfaOffset(nullptr, StackOffset)); 1120 StackOffset += stackGrowth; 1121 } 1122 1123 if (NeedsWinCFI) { 1124 BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_PushReg)).addImm(Reg).setMIFlag( 1125 MachineInstr::FrameSetup); 1126 } 1127 } 1128 1129 // Realign stack after we pushed callee-saved registers (so that we'll be 1130 // able to calculate their offsets from the frame pointer). 1131 // Don't do this for Win64, it needs to realign the stack after the prologue. 1132 if (!IsWin64Prologue && !IsFunclet && TRI->needsStackRealignment(MF)) { 1133 assert(HasFP && "There should be a frame pointer if stack is realigned."); 1134 BuildStackAlignAND(MBB, MBBI, DL, StackPtr, MaxAlign); 1135 } 1136 1137 // If there is an SUB32ri of ESP immediately before this instruction, merge 1138 // the two. This can be the case when tail call elimination is enabled and 1139 // the callee has more arguments then the caller. 1140 NumBytes -= mergeSPUpdates(MBB, MBBI, true); 1141 1142 // Adjust stack pointer: ESP -= numbytes. 1143 1144 // Windows and cygwin/mingw require a prologue helper routine when allocating 1145 // more than 4K bytes on the stack. Windows uses __chkstk and cygwin/mingw 1146 // uses __alloca. __alloca and the 32-bit version of __chkstk will probe the 1147 // stack and adjust the stack pointer in one go. The 64-bit version of 1148 // __chkstk is only responsible for probing the stack. The 64-bit prologue is 1149 // responsible for adjusting the stack pointer. Touching the stack at 4K 1150 // increments is necessary to ensure that the guard pages used by the OS 1151 // virtual memory manager are allocated in correct sequence. 1152 uint64_t AlignedNumBytes = NumBytes; 1153 if (IsWin64Prologue && !IsFunclet && TRI->needsStackRealignment(MF)) 1154 AlignedNumBytes = alignTo(AlignedNumBytes, MaxAlign); 1155 if (AlignedNumBytes >= StackProbeSize && UseStackProbe) { 1156 // Check whether EAX is livein for this block. 1157 bool isEAXAlive = isEAXLiveIn(MBB); 1158 1159 if (isEAXAlive) { 1160 // Sanity check that EAX is not livein for this function. 1161 // It should not be, so throw an assert. 1162 assert(!Is64Bit && "EAX is livein in x64 case!"); 1163 1164 // Save EAX 1165 BuildMI(MBB, MBBI, DL, TII.get(X86::PUSH32r)) 1166 .addReg(X86::EAX, RegState::Kill) 1167 .setMIFlag(MachineInstr::FrameSetup); 1168 } 1169 1170 if (Is64Bit) { 1171 // Handle the 64-bit Windows ABI case where we need to call __chkstk. 1172 // Function prologue is responsible for adjusting the stack pointer. 1173 if (isUInt<32>(NumBytes)) { 1174 BuildMI(MBB, MBBI, DL, TII.get(X86::MOV32ri), X86::EAX) 1175 .addImm(NumBytes) 1176 .setMIFlag(MachineInstr::FrameSetup); 1177 } else if (isInt<32>(NumBytes)) { 1178 BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64ri32), X86::RAX) 1179 .addImm(NumBytes) 1180 .setMIFlag(MachineInstr::FrameSetup); 1181 } else { 1182 BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64ri), X86::RAX) 1183 .addImm(NumBytes) 1184 .setMIFlag(MachineInstr::FrameSetup); 1185 } 1186 } else { 1187 // Allocate NumBytes-4 bytes on stack in case of isEAXAlive. 1188 // We'll also use 4 already allocated bytes for EAX. 1189 BuildMI(MBB, MBBI, DL, TII.get(X86::MOV32ri), X86::EAX) 1190 .addImm(isEAXAlive ? NumBytes - 4 : NumBytes) 1191 .setMIFlag(MachineInstr::FrameSetup); 1192 } 1193 1194 // Call __chkstk, __chkstk_ms, or __alloca. 1195 emitStackProbe(MF, MBB, MBBI, DL, true); 1196 1197 if (isEAXAlive) { 1198 // Restore EAX 1199 MachineInstr *MI = 1200 addRegOffset(BuildMI(MF, DL, TII.get(X86::MOV32rm), X86::EAX), 1201 StackPtr, false, NumBytes - 4); 1202 MI->setFlag(MachineInstr::FrameSetup); 1203 MBB.insert(MBBI, MI); 1204 } 1205 } else if (NumBytes) { 1206 emitSPUpdate(MBB, MBBI, -(int64_t)NumBytes, /*InEpilogue=*/false); 1207 } 1208 1209 if (NeedsWinCFI && NumBytes) 1210 BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_StackAlloc)) 1211 .addImm(NumBytes) 1212 .setMIFlag(MachineInstr::FrameSetup); 1213 1214 int SEHFrameOffset = 0; 1215 unsigned SPOrEstablisher; 1216 if (IsFunclet) { 1217 if (IsClrFunclet) { 1218 // The establisher parameter passed to a CLR funclet is actually a pointer 1219 // to the (mostly empty) frame of its nearest enclosing funclet; we have 1220 // to find the root function establisher frame by loading the PSPSym from 1221 // the intermediate frame. 1222 unsigned PSPSlotOffset = getPSPSlotOffsetFromSP(MF); 1223 MachinePointerInfo NoInfo; 1224 MBB.addLiveIn(Establisher); 1225 addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64rm), Establisher), 1226 Establisher, false, PSPSlotOffset) 1227 .addMemOperand(MF.getMachineMemOperand( 1228 NoInfo, MachineMemOperand::MOLoad, SlotSize, SlotSize)); 1229 ; 1230 // Save the root establisher back into the current funclet's (mostly 1231 // empty) frame, in case a sub-funclet or the GC needs it. 1232 addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64mr)), StackPtr, 1233 false, PSPSlotOffset) 1234 .addReg(Establisher) 1235 .addMemOperand( 1236 MF.getMachineMemOperand(NoInfo, MachineMemOperand::MOStore | 1237 MachineMemOperand::MOVolatile, 1238 SlotSize, SlotSize)); 1239 } 1240 SPOrEstablisher = Establisher; 1241 } else { 1242 SPOrEstablisher = StackPtr; 1243 } 1244 1245 if (IsWin64Prologue && HasFP) { 1246 // Set RBP to a small fixed offset from RSP. In the funclet case, we base 1247 // this calculation on the incoming establisher, which holds the value of 1248 // RSP from the parent frame at the end of the prologue. 1249 SEHFrameOffset = calculateSetFPREG(ParentFrameNumBytes); 1250 if (SEHFrameOffset) 1251 addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::LEA64r), FramePtr), 1252 SPOrEstablisher, false, SEHFrameOffset); 1253 else 1254 BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64rr), FramePtr) 1255 .addReg(SPOrEstablisher); 1256 1257 // If this is not a funclet, emit the CFI describing our frame pointer. 1258 if (NeedsWinCFI && !IsFunclet) { 1259 BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_SetFrame)) 1260 .addImm(FramePtr) 1261 .addImm(SEHFrameOffset) 1262 .setMIFlag(MachineInstr::FrameSetup); 1263 if (isAsynchronousEHPersonality(Personality)) 1264 MF.getWinEHFuncInfo()->SEHSetFrameOffset = SEHFrameOffset; 1265 } 1266 } else if (IsFunclet && STI.is32Bit()) { 1267 // Reset EBP / ESI to something good for funclets. 1268 MBBI = restoreWin32EHStackPointers(MBB, MBBI, DL); 1269 // If we're a catch funclet, we can be returned to via catchret. Save ESP 1270 // into the registration node so that the runtime will restore it for us. 1271 if (!MBB.isCleanupFuncletEntry()) { 1272 assert(Personality == EHPersonality::MSVC_CXX); 1273 unsigned FrameReg; 1274 int FI = MF.getWinEHFuncInfo()->EHRegNodeFrameIndex; 1275 int64_t EHRegOffset = getFrameIndexReference(MF, FI, FrameReg); 1276 // ESP is the first field, so no extra displacement is needed. 1277 addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV32mr)), FrameReg, 1278 false, EHRegOffset) 1279 .addReg(X86::ESP); 1280 } 1281 } 1282 1283 while (MBBI != MBB.end() && MBBI->getFlag(MachineInstr::FrameSetup)) { 1284 const MachineInstr *FrameInstr = &*MBBI; 1285 ++MBBI; 1286 1287 if (NeedsWinCFI) { 1288 int FI; 1289 if (unsigned Reg = TII.isStoreToStackSlot(FrameInstr, FI)) { 1290 if (X86::FR64RegClass.contains(Reg)) { 1291 unsigned IgnoredFrameReg; 1292 int Offset = getFrameIndexReference(MF, FI, IgnoredFrameReg); 1293 Offset += SEHFrameOffset; 1294 1295 BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_SaveXMM)) 1296 .addImm(Reg) 1297 .addImm(Offset) 1298 .setMIFlag(MachineInstr::FrameSetup); 1299 } 1300 } 1301 } 1302 } 1303 1304 if (NeedsWinCFI) 1305 BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_EndPrologue)) 1306 .setMIFlag(MachineInstr::FrameSetup); 1307 1308 if (FnHasClrFunclet && !IsFunclet) { 1309 // Save the so-called Initial-SP (i.e. the value of the stack pointer 1310 // immediately after the prolog) into the PSPSlot so that funclets 1311 // and the GC can recover it. 1312 unsigned PSPSlotOffset = getPSPSlotOffsetFromSP(MF); 1313 auto PSPInfo = MachinePointerInfo::getFixedStack( 1314 MF, MF.getWinEHFuncInfo()->PSPSymFrameIdx); 1315 addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64mr)), StackPtr, false, 1316 PSPSlotOffset) 1317 .addReg(StackPtr) 1318 .addMemOperand(MF.getMachineMemOperand( 1319 PSPInfo, MachineMemOperand::MOStore | MachineMemOperand::MOVolatile, 1320 SlotSize, SlotSize)); 1321 } 1322 1323 // Realign stack after we spilled callee-saved registers (so that we'll be 1324 // able to calculate their offsets from the frame pointer). 1325 // Win64 requires aligning the stack after the prologue. 1326 if (IsWin64Prologue && TRI->needsStackRealignment(MF)) { 1327 assert(HasFP && "There should be a frame pointer if stack is realigned."); 1328 BuildStackAlignAND(MBB, MBBI, DL, SPOrEstablisher, MaxAlign); 1329 } 1330 1331 // We already dealt with stack realignment and funclets above. 1332 if (IsFunclet && STI.is32Bit()) 1333 return; 1334 1335 // If we need a base pointer, set it up here. It's whatever the value 1336 // of the stack pointer is at this point. Any variable size objects 1337 // will be allocated after this, so we can still use the base pointer 1338 // to reference locals. 1339 if (TRI->hasBasePointer(MF)) { 1340 // Update the base pointer with the current stack pointer. 1341 unsigned Opc = Uses64BitFramePtr ? X86::MOV64rr : X86::MOV32rr; 1342 BuildMI(MBB, MBBI, DL, TII.get(Opc), BasePtr) 1343 .addReg(SPOrEstablisher) 1344 .setMIFlag(MachineInstr::FrameSetup); 1345 if (X86FI->getRestoreBasePointer()) { 1346 // Stash value of base pointer. Saving RSP instead of EBP shortens 1347 // dependence chain. Used by SjLj EH. 1348 unsigned Opm = Uses64BitFramePtr ? X86::MOV64mr : X86::MOV32mr; 1349 addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(Opm)), 1350 FramePtr, true, X86FI->getRestoreBasePointerOffset()) 1351 .addReg(SPOrEstablisher) 1352 .setMIFlag(MachineInstr::FrameSetup); 1353 } 1354 1355 if (X86FI->getHasSEHFramePtrSave() && !IsFunclet) { 1356 // Stash the value of the frame pointer relative to the base pointer for 1357 // Win32 EH. This supports Win32 EH, which does the inverse of the above: 1358 // it recovers the frame pointer from the base pointer rather than the 1359 // other way around. 1360 unsigned Opm = Uses64BitFramePtr ? X86::MOV64mr : X86::MOV32mr; 1361 unsigned UsedReg; 1362 int Offset = 1363 getFrameIndexReference(MF, X86FI->getSEHFramePtrSaveIndex(), UsedReg); 1364 assert(UsedReg == BasePtr); 1365 addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(Opm)), UsedReg, true, Offset) 1366 .addReg(FramePtr) 1367 .setMIFlag(MachineInstr::FrameSetup); 1368 } 1369 } 1370 1371 if (((!HasFP && NumBytes) || PushedRegs) && NeedsDwarfCFI) { 1372 // Mark end of stack pointer adjustment. 1373 if (!HasFP && NumBytes) { 1374 // Define the current CFA rule to use the provided offset. 1375 assert(StackSize); 1376 BuildCFI(MBB, MBBI, DL, MCCFIInstruction::createDefCfaOffset( 1377 nullptr, -StackSize + stackGrowth)); 1378 } 1379 1380 // Emit DWARF info specifying the offsets of the callee-saved registers. 1381 if (PushedRegs) 1382 emitCalleeSavedFrameMoves(MBB, MBBI, DL); 1383 } 1384 } 1385 1386 bool X86FrameLowering::canUseLEAForSPInEpilogue( 1387 const MachineFunction &MF) const { 1388 // We can't use LEA instructions for adjusting the stack pointer if this is a 1389 // leaf function in the Win64 ABI. Only ADD instructions may be used to 1390 // deallocate the stack. 1391 // This means that we can use LEA for SP in two situations: 1392 // 1. We *aren't* using the Win64 ABI which means we are free to use LEA. 1393 // 2. We *have* a frame pointer which means we are permitted to use LEA. 1394 return !MF.getTarget().getMCAsmInfo()->usesWindowsCFI() || hasFP(MF); 1395 } 1396 1397 static bool isFuncletReturnInstr(MachineInstr *MI) { 1398 switch (MI->getOpcode()) { 1399 case X86::CATCHRET: 1400 case X86::CLEANUPRET: 1401 return true; 1402 default: 1403 return false; 1404 } 1405 llvm_unreachable("impossible"); 1406 } 1407 1408 // CLR funclets use a special "Previous Stack Pointer Symbol" slot on the 1409 // stack. It holds a pointer to the bottom of the root function frame. The 1410 // establisher frame pointer passed to a nested funclet may point to the 1411 // (mostly empty) frame of its parent funclet, but it will need to find 1412 // the frame of the root function to access locals. To facilitate this, 1413 // every funclet copies the pointer to the bottom of the root function 1414 // frame into a PSPSym slot in its own (mostly empty) stack frame. Using the 1415 // same offset for the PSPSym in the root function frame that's used in the 1416 // funclets' frames allows each funclet to dynamically accept any ancestor 1417 // frame as its establisher argument (the runtime doesn't guarantee the 1418 // immediate parent for some reason lost to history), and also allows the GC, 1419 // which uses the PSPSym for some bookkeeping, to find it in any funclet's 1420 // frame with only a single offset reported for the entire method. 1421 unsigned 1422 X86FrameLowering::getPSPSlotOffsetFromSP(const MachineFunction &MF) const { 1423 const WinEHFuncInfo &Info = *MF.getWinEHFuncInfo(); 1424 // getFrameIndexReferenceFromSP has an out ref parameter for the stack 1425 // pointer register; pass a dummy that we ignore 1426 unsigned SPReg; 1427 int Offset = getFrameIndexReferenceFromSP(MF, Info.PSPSymFrameIdx, SPReg); 1428 assert(Offset >= 0); 1429 return static_cast<unsigned>(Offset); 1430 } 1431 1432 unsigned 1433 X86FrameLowering::getWinEHFuncletFrameSize(const MachineFunction &MF) const { 1434 // This is the size of the pushed CSRs. 1435 unsigned CSSize = 1436 MF.getInfo<X86MachineFunctionInfo>()->getCalleeSavedFrameSize(); 1437 // This is the amount of stack a funclet needs to allocate. 1438 unsigned UsedSize; 1439 EHPersonality Personality = 1440 classifyEHPersonality(MF.getFunction()->getPersonalityFn()); 1441 if (Personality == EHPersonality::CoreCLR) { 1442 // CLR funclets need to hold enough space to include the PSPSym, at the 1443 // same offset from the stack pointer (immediately after the prolog) as it 1444 // resides at in the main function. 1445 UsedSize = getPSPSlotOffsetFromSP(MF) + SlotSize; 1446 } else { 1447 // Other funclets just need enough stack for outgoing call arguments. 1448 UsedSize = MF.getFrameInfo()->getMaxCallFrameSize(); 1449 } 1450 // RBP is not included in the callee saved register block. After pushing RBP, 1451 // everything is 16 byte aligned. Everything we allocate before an outgoing 1452 // call must also be 16 byte aligned. 1453 unsigned FrameSizeMinusRBP = alignTo(CSSize + UsedSize, getStackAlignment()); 1454 // Subtract out the size of the callee saved registers. This is how much stack 1455 // each funclet will allocate. 1456 return FrameSizeMinusRBP - CSSize; 1457 } 1458 1459 void X86FrameLowering::emitEpilogue(MachineFunction &MF, 1460 MachineBasicBlock &MBB) const { 1461 const MachineFrameInfo *MFI = MF.getFrameInfo(); 1462 X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>(); 1463 MachineBasicBlock::iterator MBBI = MBB.getFirstTerminator(); 1464 DebugLoc DL; 1465 if (MBBI != MBB.end()) 1466 DL = MBBI->getDebugLoc(); 1467 // standard x86_64 and NaCl use 64-bit frame/stack pointers, x32 - 32-bit. 1468 const bool Is64BitILP32 = STI.isTarget64BitILP32(); 1469 unsigned FramePtr = TRI->getFrameRegister(MF); 1470 unsigned MachineFramePtr = 1471 Is64BitILP32 ? getX86SubSuperRegister(FramePtr, 64) : FramePtr; 1472 1473 bool IsWin64Prologue = MF.getTarget().getMCAsmInfo()->usesWindowsCFI(); 1474 bool NeedsWinCFI = 1475 IsWin64Prologue && MF.getFunction()->needsUnwindTableEntry(); 1476 bool IsFunclet = isFuncletReturnInstr(MBBI); 1477 MachineBasicBlock *TargetMBB = nullptr; 1478 1479 // Get the number of bytes to allocate from the FrameInfo. 1480 uint64_t StackSize = MFI->getStackSize(); 1481 uint64_t MaxAlign = calculateMaxStackAlign(MF); 1482 unsigned CSSize = X86FI->getCalleeSavedFrameSize(); 1483 uint64_t NumBytes = 0; 1484 1485 if (MBBI->getOpcode() == X86::CATCHRET) { 1486 // SEH shouldn't use catchret. 1487 assert(!isAsynchronousEHPersonality( 1488 classifyEHPersonality(MF.getFunction()->getPersonalityFn())) && 1489 "SEH should not use CATCHRET"); 1490 1491 NumBytes = getWinEHFuncletFrameSize(MF); 1492 assert(hasFP(MF) && "EH funclets without FP not yet implemented"); 1493 TargetMBB = MBBI->getOperand(0).getMBB(); 1494 1495 // Pop EBP. 1496 BuildMI(MBB, MBBI, DL, TII.get(Is64Bit ? X86::POP64r : X86::POP32r), 1497 MachineFramePtr) 1498 .setMIFlag(MachineInstr::FrameDestroy); 1499 } else if (MBBI->getOpcode() == X86::CLEANUPRET) { 1500 NumBytes = getWinEHFuncletFrameSize(MF); 1501 assert(hasFP(MF) && "EH funclets without FP not yet implemented"); 1502 BuildMI(MBB, MBBI, DL, TII.get(Is64Bit ? X86::POP64r : X86::POP32r), 1503 MachineFramePtr) 1504 .setMIFlag(MachineInstr::FrameDestroy); 1505 } else if (hasFP(MF)) { 1506 // Calculate required stack adjustment. 1507 uint64_t FrameSize = StackSize - SlotSize; 1508 NumBytes = FrameSize - CSSize; 1509 1510 // Callee-saved registers were pushed on stack before the stack was 1511 // realigned. 1512 if (TRI->needsStackRealignment(MF) && !IsWin64Prologue) 1513 NumBytes = alignTo(FrameSize, MaxAlign); 1514 1515 // Pop EBP. 1516 BuildMI(MBB, MBBI, DL, 1517 TII.get(Is64Bit ? X86::POP64r : X86::POP32r), MachineFramePtr) 1518 .setMIFlag(MachineInstr::FrameDestroy); 1519 } else { 1520 NumBytes = StackSize - CSSize; 1521 } 1522 uint64_t SEHStackAllocAmt = NumBytes; 1523 1524 // Skip the callee-saved pop instructions. 1525 while (MBBI != MBB.begin()) { 1526 MachineBasicBlock::iterator PI = std::prev(MBBI); 1527 unsigned Opc = PI->getOpcode(); 1528 1529 if ((Opc != X86::POP32r || !PI->getFlag(MachineInstr::FrameDestroy)) && 1530 (Opc != X86::POP64r || !PI->getFlag(MachineInstr::FrameDestroy)) && 1531 Opc != X86::DBG_VALUE && !PI->isTerminator()) 1532 break; 1533 1534 --MBBI; 1535 } 1536 MachineBasicBlock::iterator FirstCSPop = MBBI; 1537 1538 if (TargetMBB) { 1539 // Fill EAX/RAX with the address of the target block. 1540 unsigned ReturnReg = STI.is64Bit() ? X86::RAX : X86::EAX; 1541 if (STI.is64Bit()) { 1542 // LEA64r TargetMBB(%rip), %rax 1543 BuildMI(MBB, FirstCSPop, DL, TII.get(X86::LEA64r), ReturnReg) 1544 .addReg(X86::RIP) 1545 .addImm(0) 1546 .addReg(0) 1547 .addMBB(TargetMBB) 1548 .addReg(0); 1549 } else { 1550 // MOV32ri $TargetMBB, %eax 1551 BuildMI(MBB, FirstCSPop, DL, TII.get(X86::MOV32ri), ReturnReg) 1552 .addMBB(TargetMBB); 1553 } 1554 // Record that we've taken the address of TargetMBB and no longer just 1555 // reference it in a terminator. 1556 TargetMBB->setHasAddressTaken(); 1557 } 1558 1559 if (MBBI != MBB.end()) 1560 DL = MBBI->getDebugLoc(); 1561 1562 // If there is an ADD32ri or SUB32ri of ESP immediately before this 1563 // instruction, merge the two instructions. 1564 if (NumBytes || MFI->hasVarSizedObjects()) 1565 NumBytes += mergeSPUpdates(MBB, MBBI, true); 1566 1567 // If dynamic alloca is used, then reset esp to point to the last callee-saved 1568 // slot before popping them off! Same applies for the case, when stack was 1569 // realigned. Don't do this if this was a funclet epilogue, since the funclets 1570 // will not do realignment or dynamic stack allocation. 1571 if ((TRI->needsStackRealignment(MF) || MFI->hasVarSizedObjects()) && 1572 !IsFunclet) { 1573 if (TRI->needsStackRealignment(MF)) 1574 MBBI = FirstCSPop; 1575 unsigned SEHFrameOffset = calculateSetFPREG(SEHStackAllocAmt); 1576 uint64_t LEAAmount = 1577 IsWin64Prologue ? SEHStackAllocAmt - SEHFrameOffset : -CSSize; 1578 1579 // There are only two legal forms of epilogue: 1580 // - add SEHAllocationSize, %rsp 1581 // - lea SEHAllocationSize(%FramePtr), %rsp 1582 // 1583 // 'mov %FramePtr, %rsp' will not be recognized as an epilogue sequence. 1584 // However, we may use this sequence if we have a frame pointer because the 1585 // effects of the prologue can safely be undone. 1586 if (LEAAmount != 0) { 1587 unsigned Opc = getLEArOpcode(Uses64BitFramePtr); 1588 addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(Opc), StackPtr), 1589 FramePtr, false, LEAAmount); 1590 --MBBI; 1591 } else { 1592 unsigned Opc = (Uses64BitFramePtr ? X86::MOV64rr : X86::MOV32rr); 1593 BuildMI(MBB, MBBI, DL, TII.get(Opc), StackPtr) 1594 .addReg(FramePtr); 1595 --MBBI; 1596 } 1597 } else if (NumBytes) { 1598 // Adjust stack pointer back: ESP += numbytes. 1599 emitSPUpdate(MBB, MBBI, NumBytes, /*InEpilogue=*/true); 1600 --MBBI; 1601 } 1602 1603 // Windows unwinder will not invoke function's exception handler if IP is 1604 // either in prologue or in epilogue. This behavior causes a problem when a 1605 // call immediately precedes an epilogue, because the return address points 1606 // into the epilogue. To cope with that, we insert an epilogue marker here, 1607 // then replace it with a 'nop' if it ends up immediately after a CALL in the 1608 // final emitted code. 1609 if (NeedsWinCFI) 1610 BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_Epilogue)); 1611 1612 // Add the return addr area delta back since we are not tail calling. 1613 int Offset = -1 * X86FI->getTCReturnAddrDelta(); 1614 assert(Offset >= 0 && "TCDelta should never be positive"); 1615 if (Offset) { 1616 MBBI = MBB.getFirstTerminator(); 1617 1618 // Check for possible merge with preceding ADD instruction. 1619 Offset += mergeSPUpdates(MBB, MBBI, true); 1620 emitSPUpdate(MBB, MBBI, Offset, /*InEpilogue=*/true); 1621 } 1622 } 1623 1624 // NOTE: this only has a subset of the full frame index logic. In 1625 // particular, the FI < 0 and AfterFPPop logic is handled in 1626 // X86RegisterInfo::eliminateFrameIndex, but not here. Possibly 1627 // (probably?) it should be moved into here. 1628 int X86FrameLowering::getFrameIndexReference(const MachineFunction &MF, int FI, 1629 unsigned &FrameReg) const { 1630 const MachineFrameInfo *MFI = MF.getFrameInfo(); 1631 1632 // We can't calculate offset from frame pointer if the stack is realigned, 1633 // so enforce usage of stack/base pointer. The base pointer is used when we 1634 // have dynamic allocas in addition to dynamic realignment. 1635 if (TRI->hasBasePointer(MF)) 1636 FrameReg = TRI->getBaseRegister(); 1637 else if (TRI->needsStackRealignment(MF)) 1638 FrameReg = TRI->getStackRegister(); 1639 else 1640 FrameReg = TRI->getFrameRegister(MF); 1641 1642 // Offset will hold the offset from the stack pointer at function entry to the 1643 // object. 1644 // We need to factor in additional offsets applied during the prologue to the 1645 // frame, base, and stack pointer depending on which is used. 1646 int Offset = MFI->getObjectOffset(FI) - getOffsetOfLocalArea(); 1647 const X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>(); 1648 unsigned CSSize = X86FI->getCalleeSavedFrameSize(); 1649 uint64_t StackSize = MFI->getStackSize(); 1650 bool HasFP = hasFP(MF); 1651 bool IsWin64Prologue = MF.getTarget().getMCAsmInfo()->usesWindowsCFI(); 1652 int64_t FPDelta = 0; 1653 1654 if (IsWin64Prologue) { 1655 assert(!MFI->hasCalls() || (StackSize % 16) == 8); 1656 1657 // Calculate required stack adjustment. 1658 uint64_t FrameSize = StackSize - SlotSize; 1659 // If required, include space for extra hidden slot for stashing base pointer. 1660 if (X86FI->getRestoreBasePointer()) 1661 FrameSize += SlotSize; 1662 uint64_t NumBytes = FrameSize - CSSize; 1663 1664 uint64_t SEHFrameOffset = calculateSetFPREG(NumBytes); 1665 if (FI && FI == X86FI->getFAIndex()) 1666 return -SEHFrameOffset; 1667 1668 // FPDelta is the offset from the "traditional" FP location of the old base 1669 // pointer followed by return address and the location required by the 1670 // restricted Win64 prologue. 1671 // Add FPDelta to all offsets below that go through the frame pointer. 1672 FPDelta = FrameSize - SEHFrameOffset; 1673 assert((!MFI->hasCalls() || (FPDelta % 16) == 0) && 1674 "FPDelta isn't aligned per the Win64 ABI!"); 1675 } 1676 1677 1678 if (TRI->hasBasePointer(MF)) { 1679 assert(HasFP && "VLAs and dynamic stack realign, but no FP?!"); 1680 if (FI < 0) { 1681 // Skip the saved EBP. 1682 return Offset + SlotSize + FPDelta; 1683 } else { 1684 assert((-(Offset + StackSize)) % MFI->getObjectAlignment(FI) == 0); 1685 return Offset + StackSize; 1686 } 1687 } else if (TRI->needsStackRealignment(MF)) { 1688 if (FI < 0) { 1689 // Skip the saved EBP. 1690 return Offset + SlotSize + FPDelta; 1691 } else { 1692 assert((-(Offset + StackSize)) % MFI->getObjectAlignment(FI) == 0); 1693 return Offset + StackSize; 1694 } 1695 // FIXME: Support tail calls 1696 } else { 1697 if (!HasFP) 1698 return Offset + StackSize; 1699 1700 // Skip the saved EBP. 1701 Offset += SlotSize; 1702 1703 // Skip the RETADDR move area 1704 int TailCallReturnAddrDelta = X86FI->getTCReturnAddrDelta(); 1705 if (TailCallReturnAddrDelta < 0) 1706 Offset -= TailCallReturnAddrDelta; 1707 } 1708 1709 return Offset + FPDelta; 1710 } 1711 1712 // Simplified from getFrameIndexReference keeping only StackPointer cases 1713 int X86FrameLowering::getFrameIndexReferenceFromSP(const MachineFunction &MF, 1714 int FI, 1715 unsigned &FrameReg) const { 1716 const MachineFrameInfo *MFI = MF.getFrameInfo(); 1717 // Does not include any dynamic realign. 1718 const uint64_t StackSize = MFI->getStackSize(); 1719 { 1720 #ifndef NDEBUG 1721 // LLVM arranges the stack as follows: 1722 // ... 1723 // ARG2 1724 // ARG1 1725 // RETADDR 1726 // PUSH RBP <-- RBP points here 1727 // PUSH CSRs 1728 // ~~~~~~~ <-- possible stack realignment (non-win64) 1729 // ... 1730 // STACK OBJECTS 1731 // ... <-- RSP after prologue points here 1732 // ~~~~~~~ <-- possible stack realignment (win64) 1733 // 1734 // if (hasVarSizedObjects()): 1735 // ... <-- "base pointer" (ESI/RBX) points here 1736 // DYNAMIC ALLOCAS 1737 // ... <-- RSP points here 1738 // 1739 // Case 1: In the simple case of no stack realignment and no dynamic 1740 // allocas, both "fixed" stack objects (arguments and CSRs) are addressable 1741 // with fixed offsets from RSP. 1742 // 1743 // Case 2: In the case of stack realignment with no dynamic allocas, fixed 1744 // stack objects are addressed with RBP and regular stack objects with RSP. 1745 // 1746 // Case 3: In the case of dynamic allocas and stack realignment, RSP is used 1747 // to address stack arguments for outgoing calls and nothing else. The "base 1748 // pointer" points to local variables, and RBP points to fixed objects. 1749 // 1750 // In cases 2 and 3, we can only answer for non-fixed stack objects, and the 1751 // answer we give is relative to the SP after the prologue, and not the 1752 // SP in the middle of the function. 1753 1754 assert((!MFI->isFixedObjectIndex(FI) || !TRI->needsStackRealignment(MF) || 1755 STI.isTargetWin64()) && 1756 "offset from fixed object to SP is not static"); 1757 1758 // We don't handle tail calls, and shouldn't be seeing them either. 1759 int TailCallReturnAddrDelta = 1760 MF.getInfo<X86MachineFunctionInfo>()->getTCReturnAddrDelta(); 1761 assert(!(TailCallReturnAddrDelta < 0) && "we don't handle this case!"); 1762 #endif 1763 } 1764 1765 // Fill in FrameReg output argument. 1766 FrameReg = TRI->getStackRegister(); 1767 1768 // This is how the math works out: 1769 // 1770 // %rsp grows (i.e. gets lower) left to right. Each box below is 1771 // one word (eight bytes). Obj0 is the stack slot we're trying to 1772 // get to. 1773 // 1774 // ---------------------------------- 1775 // | BP | Obj0 | Obj1 | ... | ObjN | 1776 // ---------------------------------- 1777 // ^ ^ ^ ^ 1778 // A B C E 1779 // 1780 // A is the incoming stack pointer. 1781 // (B - A) is the local area offset (-8 for x86-64) [1] 1782 // (C - A) is the Offset returned by MFI->getObjectOffset for Obj0 [2] 1783 // 1784 // |(E - B)| is the StackSize (absolute value, positive). For a 1785 // stack that grown down, this works out to be (B - E). [3] 1786 // 1787 // E is also the value of %rsp after stack has been set up, and we 1788 // want (C - E) -- the value we can add to %rsp to get to Obj0. Now 1789 // (C - E) == (C - A) - (B - A) + (B - E) 1790 // { Using [1], [2] and [3] above } 1791 // == getObjectOffset - LocalAreaOffset + StackSize 1792 // 1793 1794 // Get the Offset from the StackPointer 1795 int Offset = MFI->getObjectOffset(FI) - getOffsetOfLocalArea(); 1796 1797 return Offset + StackSize; 1798 } 1799 1800 bool X86FrameLowering::assignCalleeSavedSpillSlots( 1801 MachineFunction &MF, const TargetRegisterInfo *TRI, 1802 std::vector<CalleeSavedInfo> &CSI) const { 1803 MachineFrameInfo *MFI = MF.getFrameInfo(); 1804 X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>(); 1805 1806 unsigned CalleeSavedFrameSize = 0; 1807 int SpillSlotOffset = getOffsetOfLocalArea() + X86FI->getTCReturnAddrDelta(); 1808 1809 if (hasFP(MF)) { 1810 // emitPrologue always spills frame register the first thing. 1811 SpillSlotOffset -= SlotSize; 1812 MFI->CreateFixedSpillStackObject(SlotSize, SpillSlotOffset); 1813 1814 // Since emitPrologue and emitEpilogue will handle spilling and restoring of 1815 // the frame register, we can delete it from CSI list and not have to worry 1816 // about avoiding it later. 1817 unsigned FPReg = TRI->getFrameRegister(MF); 1818 for (unsigned i = 0; i < CSI.size(); ++i) { 1819 if (TRI->regsOverlap(CSI[i].getReg(),FPReg)) { 1820 CSI.erase(CSI.begin() + i); 1821 break; 1822 } 1823 } 1824 } 1825 1826 // Assign slots for GPRs. It increases frame size. 1827 for (unsigned i = CSI.size(); i != 0; --i) { 1828 unsigned Reg = CSI[i - 1].getReg(); 1829 1830 if (!X86::GR64RegClass.contains(Reg) && !X86::GR32RegClass.contains(Reg)) 1831 continue; 1832 1833 SpillSlotOffset -= SlotSize; 1834 CalleeSavedFrameSize += SlotSize; 1835 1836 int SlotIndex = MFI->CreateFixedSpillStackObject(SlotSize, SpillSlotOffset); 1837 CSI[i - 1].setFrameIdx(SlotIndex); 1838 } 1839 1840 X86FI->setCalleeSavedFrameSize(CalleeSavedFrameSize); 1841 1842 // Assign slots for XMMs. 1843 for (unsigned i = CSI.size(); i != 0; --i) { 1844 unsigned Reg = CSI[i - 1].getReg(); 1845 if (X86::GR64RegClass.contains(Reg) || X86::GR32RegClass.contains(Reg)) 1846 continue; 1847 1848 const TargetRegisterClass *RC = TRI->getMinimalPhysRegClass(Reg); 1849 // ensure alignment 1850 SpillSlotOffset -= std::abs(SpillSlotOffset) % RC->getAlignment(); 1851 // spill into slot 1852 SpillSlotOffset -= RC->getSize(); 1853 int SlotIndex = 1854 MFI->CreateFixedSpillStackObject(RC->getSize(), SpillSlotOffset); 1855 CSI[i - 1].setFrameIdx(SlotIndex); 1856 MFI->ensureMaxAlignment(RC->getAlignment()); 1857 } 1858 1859 return true; 1860 } 1861 1862 bool X86FrameLowering::spillCalleeSavedRegisters( 1863 MachineBasicBlock &MBB, MachineBasicBlock::iterator MI, 1864 const std::vector<CalleeSavedInfo> &CSI, 1865 const TargetRegisterInfo *TRI) const { 1866 DebugLoc DL = MBB.findDebugLoc(MI); 1867 1868 // Don't save CSRs in 32-bit EH funclets. The caller saves EBX, EBP, ESI, EDI 1869 // for us, and there are no XMM CSRs on Win32. 1870 if (MBB.isEHFuncletEntry() && STI.is32Bit() && STI.isOSWindows()) 1871 return true; 1872 1873 // Push GPRs. It increases frame size. 1874 const MachineFunction &MF = *MBB.getParent(); 1875 unsigned Opc = STI.is64Bit() ? X86::PUSH64r : X86::PUSH32r; 1876 for (unsigned i = CSI.size(); i != 0; --i) { 1877 unsigned Reg = CSI[i - 1].getReg(); 1878 1879 if (!X86::GR64RegClass.contains(Reg) && !X86::GR32RegClass.contains(Reg)) 1880 continue; 1881 1882 bool isLiveIn = MF.getRegInfo().isLiveIn(Reg); 1883 if (!isLiveIn) 1884 MBB.addLiveIn(Reg); 1885 1886 // Do not set a kill flag on values that are also marked as live-in. This 1887 // happens with the @llvm-returnaddress intrinsic and with arguments 1888 // passed in callee saved registers. 1889 // Omitting the kill flags is conservatively correct even if the live-in 1890 // is not used after all. 1891 bool isKill = !isLiveIn; 1892 BuildMI(MBB, MI, DL, TII.get(Opc)).addReg(Reg, getKillRegState(isKill)) 1893 .setMIFlag(MachineInstr::FrameSetup); 1894 } 1895 1896 // Make XMM regs spilled. X86 does not have ability of push/pop XMM. 1897 // It can be done by spilling XMMs to stack frame. 1898 for (unsigned i = CSI.size(); i != 0; --i) { 1899 unsigned Reg = CSI[i-1].getReg(); 1900 if (X86::GR64RegClass.contains(Reg) || X86::GR32RegClass.contains(Reg)) 1901 continue; 1902 // Add the callee-saved register as live-in. It's killed at the spill. 1903 MBB.addLiveIn(Reg); 1904 const TargetRegisterClass *RC = TRI->getMinimalPhysRegClass(Reg); 1905 1906 TII.storeRegToStackSlot(MBB, MI, Reg, true, CSI[i - 1].getFrameIdx(), RC, 1907 TRI); 1908 --MI; 1909 MI->setFlag(MachineInstr::FrameSetup); 1910 ++MI; 1911 } 1912 1913 return true; 1914 } 1915 1916 bool X86FrameLowering::restoreCalleeSavedRegisters(MachineBasicBlock &MBB, 1917 MachineBasicBlock::iterator MI, 1918 const std::vector<CalleeSavedInfo> &CSI, 1919 const TargetRegisterInfo *TRI) const { 1920 if (CSI.empty()) 1921 return false; 1922 1923 if (isFuncletReturnInstr(MI) && STI.isOSWindows()) { 1924 // Don't restore CSRs in 32-bit EH funclets. Matches 1925 // spillCalleeSavedRegisters. 1926 if (STI.is32Bit()) 1927 return true; 1928 // Don't restore CSRs before an SEH catchret. SEH except blocks do not form 1929 // funclets. emitEpilogue transforms these to normal jumps. 1930 if (MI->getOpcode() == X86::CATCHRET) { 1931 const Function *Func = MBB.getParent()->getFunction(); 1932 bool IsSEH = isAsynchronousEHPersonality( 1933 classifyEHPersonality(Func->getPersonalityFn())); 1934 if (IsSEH) 1935 return true; 1936 } 1937 } 1938 1939 DebugLoc DL = MBB.findDebugLoc(MI); 1940 1941 // Reload XMMs from stack frame. 1942 for (unsigned i = 0, e = CSI.size(); i != e; ++i) { 1943 unsigned Reg = CSI[i].getReg(); 1944 if (X86::GR64RegClass.contains(Reg) || 1945 X86::GR32RegClass.contains(Reg)) 1946 continue; 1947 1948 const TargetRegisterClass *RC = TRI->getMinimalPhysRegClass(Reg); 1949 TII.loadRegFromStackSlot(MBB, MI, Reg, CSI[i].getFrameIdx(), RC, TRI); 1950 } 1951 1952 // POP GPRs. 1953 unsigned Opc = STI.is64Bit() ? X86::POP64r : X86::POP32r; 1954 for (unsigned i = 0, e = CSI.size(); i != e; ++i) { 1955 unsigned Reg = CSI[i].getReg(); 1956 if (!X86::GR64RegClass.contains(Reg) && 1957 !X86::GR32RegClass.contains(Reg)) 1958 continue; 1959 1960 BuildMI(MBB, MI, DL, TII.get(Opc), Reg) 1961 .setMIFlag(MachineInstr::FrameDestroy); 1962 } 1963 return true; 1964 } 1965 1966 void X86FrameLowering::determineCalleeSaves(MachineFunction &MF, 1967 BitVector &SavedRegs, 1968 RegScavenger *RS) const { 1969 TargetFrameLowering::determineCalleeSaves(MF, SavedRegs, RS); 1970 1971 MachineFrameInfo *MFI = MF.getFrameInfo(); 1972 1973 X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>(); 1974 int64_t TailCallReturnAddrDelta = X86FI->getTCReturnAddrDelta(); 1975 1976 if (TailCallReturnAddrDelta < 0) { 1977 // create RETURNADDR area 1978 // arg 1979 // arg 1980 // RETADDR 1981 // { ... 1982 // RETADDR area 1983 // ... 1984 // } 1985 // [EBP] 1986 MFI->CreateFixedObject(-TailCallReturnAddrDelta, 1987 TailCallReturnAddrDelta - SlotSize, true); 1988 } 1989 1990 // Spill the BasePtr if it's used. 1991 if (TRI->hasBasePointer(MF)) { 1992 SavedRegs.set(TRI->getBaseRegister()); 1993 1994 // Allocate a spill slot for EBP if we have a base pointer and EH funclets. 1995 if (MF.getMMI().hasEHFunclets()) { 1996 int FI = MFI->CreateSpillStackObject(SlotSize, SlotSize); 1997 X86FI->setHasSEHFramePtrSave(true); 1998 X86FI->setSEHFramePtrSaveIndex(FI); 1999 } 2000 } 2001 } 2002 2003 static bool 2004 HasNestArgument(const MachineFunction *MF) { 2005 const Function *F = MF->getFunction(); 2006 for (Function::const_arg_iterator I = F->arg_begin(), E = F->arg_end(); 2007 I != E; I++) { 2008 if (I->hasNestAttr()) 2009 return true; 2010 } 2011 return false; 2012 } 2013 2014 /// GetScratchRegister - Get a temp register for performing work in the 2015 /// segmented stack and the Erlang/HiPE stack prologue. Depending on platform 2016 /// and the properties of the function either one or two registers will be 2017 /// needed. Set primary to true for the first register, false for the second. 2018 static unsigned 2019 GetScratchRegister(bool Is64Bit, bool IsLP64, const MachineFunction &MF, bool Primary) { 2020 CallingConv::ID CallingConvention = MF.getFunction()->getCallingConv(); 2021 2022 // Erlang stuff. 2023 if (CallingConvention == CallingConv::HiPE) { 2024 if (Is64Bit) 2025 return Primary ? X86::R14 : X86::R13; 2026 else 2027 return Primary ? X86::EBX : X86::EDI; 2028 } 2029 2030 if (Is64Bit) { 2031 if (IsLP64) 2032 return Primary ? X86::R11 : X86::R12; 2033 else 2034 return Primary ? X86::R11D : X86::R12D; 2035 } 2036 2037 bool IsNested = HasNestArgument(&MF); 2038 2039 if (CallingConvention == CallingConv::X86_FastCall || 2040 CallingConvention == CallingConv::Fast) { 2041 if (IsNested) 2042 report_fatal_error("Segmented stacks does not support fastcall with " 2043 "nested function."); 2044 return Primary ? X86::EAX : X86::ECX; 2045 } 2046 if (IsNested) 2047 return Primary ? X86::EDX : X86::EAX; 2048 return Primary ? X86::ECX : X86::EAX; 2049 } 2050 2051 // The stack limit in the TCB is set to this many bytes above the actual stack 2052 // limit. 2053 static const uint64_t kSplitStackAvailable = 256; 2054 2055 void X86FrameLowering::adjustForSegmentedStacks( 2056 MachineFunction &MF, MachineBasicBlock &PrologueMBB) const { 2057 MachineFrameInfo *MFI = MF.getFrameInfo(); 2058 uint64_t StackSize; 2059 unsigned TlsReg, TlsOffset; 2060 DebugLoc DL; 2061 2062 // To support shrink-wrapping we would need to insert the new blocks 2063 // at the right place and update the branches to PrologueMBB. 2064 assert(&(*MF.begin()) == &PrologueMBB && "Shrink-wrapping not supported yet"); 2065 2066 unsigned ScratchReg = GetScratchRegister(Is64Bit, IsLP64, MF, true); 2067 assert(!MF.getRegInfo().isLiveIn(ScratchReg) && 2068 "Scratch register is live-in"); 2069 2070 if (MF.getFunction()->isVarArg()) 2071 report_fatal_error("Segmented stacks do not support vararg functions."); 2072 if (!STI.isTargetLinux() && !STI.isTargetDarwin() && !STI.isTargetWin32() && 2073 !STI.isTargetWin64() && !STI.isTargetFreeBSD() && 2074 !STI.isTargetDragonFly()) 2075 report_fatal_error("Segmented stacks not supported on this platform."); 2076 2077 // Eventually StackSize will be calculated by a link-time pass; which will 2078 // also decide whether checking code needs to be injected into this particular 2079 // prologue. 2080 StackSize = MFI->getStackSize(); 2081 2082 // Do not generate a prologue for functions with a stack of size zero 2083 if (StackSize == 0) 2084 return; 2085 2086 MachineBasicBlock *allocMBB = MF.CreateMachineBasicBlock(); 2087 MachineBasicBlock *checkMBB = MF.CreateMachineBasicBlock(); 2088 X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>(); 2089 bool IsNested = false; 2090 2091 // We need to know if the function has a nest argument only in 64 bit mode. 2092 if (Is64Bit) 2093 IsNested = HasNestArgument(&MF); 2094 2095 // The MOV R10, RAX needs to be in a different block, since the RET we emit in 2096 // allocMBB needs to be last (terminating) instruction. 2097 2098 for (const auto &LI : PrologueMBB.liveins()) { 2099 allocMBB->addLiveIn(LI); 2100 checkMBB->addLiveIn(LI); 2101 } 2102 2103 if (IsNested) 2104 allocMBB->addLiveIn(IsLP64 ? X86::R10 : X86::R10D); 2105 2106 MF.push_front(allocMBB); 2107 MF.push_front(checkMBB); 2108 2109 // When the frame size is less than 256 we just compare the stack 2110 // boundary directly to the value of the stack pointer, per gcc. 2111 bool CompareStackPointer = StackSize < kSplitStackAvailable; 2112 2113 // Read the limit off the current stacklet off the stack_guard location. 2114 if (Is64Bit) { 2115 if (STI.isTargetLinux()) { 2116 TlsReg = X86::FS; 2117 TlsOffset = IsLP64 ? 0x70 : 0x40; 2118 } else if (STI.isTargetDarwin()) { 2119 TlsReg = X86::GS; 2120 TlsOffset = 0x60 + 90*8; // See pthread_machdep.h. Steal TLS slot 90. 2121 } else if (STI.isTargetWin64()) { 2122 TlsReg = X86::GS; 2123 TlsOffset = 0x28; // pvArbitrary, reserved for application use 2124 } else if (STI.isTargetFreeBSD()) { 2125 TlsReg = X86::FS; 2126 TlsOffset = 0x18; 2127 } else if (STI.isTargetDragonFly()) { 2128 TlsReg = X86::FS; 2129 TlsOffset = 0x20; // use tls_tcb.tcb_segstack 2130 } else { 2131 report_fatal_error("Segmented stacks not supported on this platform."); 2132 } 2133 2134 if (CompareStackPointer) 2135 ScratchReg = IsLP64 ? X86::RSP : X86::ESP; 2136 else 2137 BuildMI(checkMBB, DL, TII.get(IsLP64 ? X86::LEA64r : X86::LEA64_32r), ScratchReg).addReg(X86::RSP) 2138 .addImm(1).addReg(0).addImm(-StackSize).addReg(0); 2139 2140 BuildMI(checkMBB, DL, TII.get(IsLP64 ? X86::CMP64rm : X86::CMP32rm)).addReg(ScratchReg) 2141 .addReg(0).addImm(1).addReg(0).addImm(TlsOffset).addReg(TlsReg); 2142 } else { 2143 if (STI.isTargetLinux()) { 2144 TlsReg = X86::GS; 2145 TlsOffset = 0x30; 2146 } else if (STI.isTargetDarwin()) { 2147 TlsReg = X86::GS; 2148 TlsOffset = 0x48 + 90*4; 2149 } else if (STI.isTargetWin32()) { 2150 TlsReg = X86::FS; 2151 TlsOffset = 0x14; // pvArbitrary, reserved for application use 2152 } else if (STI.isTargetDragonFly()) { 2153 TlsReg = X86::FS; 2154 TlsOffset = 0x10; // use tls_tcb.tcb_segstack 2155 } else if (STI.isTargetFreeBSD()) { 2156 report_fatal_error("Segmented stacks not supported on FreeBSD i386."); 2157 } else { 2158 report_fatal_error("Segmented stacks not supported on this platform."); 2159 } 2160 2161 if (CompareStackPointer) 2162 ScratchReg = X86::ESP; 2163 else 2164 BuildMI(checkMBB, DL, TII.get(X86::LEA32r), ScratchReg).addReg(X86::ESP) 2165 .addImm(1).addReg(0).addImm(-StackSize).addReg(0); 2166 2167 if (STI.isTargetLinux() || STI.isTargetWin32() || STI.isTargetWin64() || 2168 STI.isTargetDragonFly()) { 2169 BuildMI(checkMBB, DL, TII.get(X86::CMP32rm)).addReg(ScratchReg) 2170 .addReg(0).addImm(0).addReg(0).addImm(TlsOffset).addReg(TlsReg); 2171 } else if (STI.isTargetDarwin()) { 2172 2173 // TlsOffset doesn't fit into a mod r/m byte so we need an extra register. 2174 unsigned ScratchReg2; 2175 bool SaveScratch2; 2176 if (CompareStackPointer) { 2177 // The primary scratch register is available for holding the TLS offset. 2178 ScratchReg2 = GetScratchRegister(Is64Bit, IsLP64, MF, true); 2179 SaveScratch2 = false; 2180 } else { 2181 // Need to use a second register to hold the TLS offset 2182 ScratchReg2 = GetScratchRegister(Is64Bit, IsLP64, MF, false); 2183 2184 // Unfortunately, with fastcc the second scratch register may hold an 2185 // argument. 2186 SaveScratch2 = MF.getRegInfo().isLiveIn(ScratchReg2); 2187 } 2188 2189 // If Scratch2 is live-in then it needs to be saved. 2190 assert((!MF.getRegInfo().isLiveIn(ScratchReg2) || SaveScratch2) && 2191 "Scratch register is live-in and not saved"); 2192 2193 if (SaveScratch2) 2194 BuildMI(checkMBB, DL, TII.get(X86::PUSH32r)) 2195 .addReg(ScratchReg2, RegState::Kill); 2196 2197 BuildMI(checkMBB, DL, TII.get(X86::MOV32ri), ScratchReg2) 2198 .addImm(TlsOffset); 2199 BuildMI(checkMBB, DL, TII.get(X86::CMP32rm)) 2200 .addReg(ScratchReg) 2201 .addReg(ScratchReg2).addImm(1).addReg(0) 2202 .addImm(0) 2203 .addReg(TlsReg); 2204 2205 if (SaveScratch2) 2206 BuildMI(checkMBB, DL, TII.get(X86::POP32r), ScratchReg2); 2207 } 2208 } 2209 2210 // This jump is taken if SP >= (Stacklet Limit + Stack Space required). 2211 // It jumps to normal execution of the function body. 2212 BuildMI(checkMBB, DL, TII.get(X86::JA_1)).addMBB(&PrologueMBB); 2213 2214 // On 32 bit we first push the arguments size and then the frame size. On 64 2215 // bit, we pass the stack frame size in r10 and the argument size in r11. 2216 if (Is64Bit) { 2217 // Functions with nested arguments use R10, so it needs to be saved across 2218 // the call to _morestack 2219 2220 const unsigned RegAX = IsLP64 ? X86::RAX : X86::EAX; 2221 const unsigned Reg10 = IsLP64 ? X86::R10 : X86::R10D; 2222 const unsigned Reg11 = IsLP64 ? X86::R11 : X86::R11D; 2223 const unsigned MOVrr = IsLP64 ? X86::MOV64rr : X86::MOV32rr; 2224 const unsigned MOVri = IsLP64 ? X86::MOV64ri : X86::MOV32ri; 2225 2226 if (IsNested) 2227 BuildMI(allocMBB, DL, TII.get(MOVrr), RegAX).addReg(Reg10); 2228 2229 BuildMI(allocMBB, DL, TII.get(MOVri), Reg10) 2230 .addImm(StackSize); 2231 BuildMI(allocMBB, DL, TII.get(MOVri), Reg11) 2232 .addImm(X86FI->getArgumentStackSize()); 2233 } else { 2234 BuildMI(allocMBB, DL, TII.get(X86::PUSHi32)) 2235 .addImm(X86FI->getArgumentStackSize()); 2236 BuildMI(allocMBB, DL, TII.get(X86::PUSHi32)) 2237 .addImm(StackSize); 2238 } 2239 2240 // __morestack is in libgcc 2241 if (Is64Bit && MF.getTarget().getCodeModel() == CodeModel::Large) { 2242 // Under the large code model, we cannot assume that __morestack lives 2243 // within 2^31 bytes of the call site, so we cannot use pc-relative 2244 // addressing. We cannot perform the call via a temporary register, 2245 // as the rax register may be used to store the static chain, and all 2246 // other suitable registers may be either callee-save or used for 2247 // parameter passing. We cannot use the stack at this point either 2248 // because __morestack manipulates the stack directly. 2249 // 2250 // To avoid these issues, perform an indirect call via a read-only memory 2251 // location containing the address. 2252 // 2253 // This solution is not perfect, as it assumes that the .rodata section 2254 // is laid out within 2^31 bytes of each function body, but this seems 2255 // to be sufficient for JIT. 2256 BuildMI(allocMBB, DL, TII.get(X86::CALL64m)) 2257 .addReg(X86::RIP) 2258 .addImm(0) 2259 .addReg(0) 2260 .addExternalSymbol("__morestack_addr") 2261 .addReg(0); 2262 MF.getMMI().setUsesMorestackAddr(true); 2263 } else { 2264 if (Is64Bit) 2265 BuildMI(allocMBB, DL, TII.get(X86::CALL64pcrel32)) 2266 .addExternalSymbol("__morestack"); 2267 else 2268 BuildMI(allocMBB, DL, TII.get(X86::CALLpcrel32)) 2269 .addExternalSymbol("__morestack"); 2270 } 2271 2272 if (IsNested) 2273 BuildMI(allocMBB, DL, TII.get(X86::MORESTACK_RET_RESTORE_R10)); 2274 else 2275 BuildMI(allocMBB, DL, TII.get(X86::MORESTACK_RET)); 2276 2277 allocMBB->addSuccessor(&PrologueMBB); 2278 2279 checkMBB->addSuccessor(allocMBB); 2280 checkMBB->addSuccessor(&PrologueMBB); 2281 2282 #ifdef EXPENSIVE_CHECKS 2283 MF.verify(); 2284 #endif 2285 } 2286 2287 /// Erlang programs may need a special prologue to handle the stack size they 2288 /// might need at runtime. That is because Erlang/OTP does not implement a C 2289 /// stack but uses a custom implementation of hybrid stack/heap architecture. 2290 /// (for more information see Eric Stenman's Ph.D. thesis: 2291 /// http://publications.uu.se/uu/fulltext/nbn_se_uu_diva-2688.pdf) 2292 /// 2293 /// CheckStack: 2294 /// temp0 = sp - MaxStack 2295 /// if( temp0 < SP_LIMIT(P) ) goto IncStack else goto OldStart 2296 /// OldStart: 2297 /// ... 2298 /// IncStack: 2299 /// call inc_stack # doubles the stack space 2300 /// temp0 = sp - MaxStack 2301 /// if( temp0 < SP_LIMIT(P) ) goto IncStack else goto OldStart 2302 void X86FrameLowering::adjustForHiPEPrologue( 2303 MachineFunction &MF, MachineBasicBlock &PrologueMBB) const { 2304 MachineFrameInfo *MFI = MF.getFrameInfo(); 2305 DebugLoc DL; 2306 2307 // To support shrink-wrapping we would need to insert the new blocks 2308 // at the right place and update the branches to PrologueMBB. 2309 assert(&(*MF.begin()) == &PrologueMBB && "Shrink-wrapping not supported yet"); 2310 2311 // HiPE-specific values 2312 const unsigned HipeLeafWords = 24; 2313 const unsigned CCRegisteredArgs = Is64Bit ? 6 : 5; 2314 const unsigned Guaranteed = HipeLeafWords * SlotSize; 2315 unsigned CallerStkArity = MF.getFunction()->arg_size() > CCRegisteredArgs ? 2316 MF.getFunction()->arg_size() - CCRegisteredArgs : 0; 2317 unsigned MaxStack = MFI->getStackSize() + CallerStkArity*SlotSize + SlotSize; 2318 2319 assert(STI.isTargetLinux() && 2320 "HiPE prologue is only supported on Linux operating systems."); 2321 2322 // Compute the largest caller's frame that is needed to fit the callees' 2323 // frames. This 'MaxStack' is computed from: 2324 // 2325 // a) the fixed frame size, which is the space needed for all spilled temps, 2326 // b) outgoing on-stack parameter areas, and 2327 // c) the minimum stack space this function needs to make available for the 2328 // functions it calls (a tunable ABI property). 2329 if (MFI->hasCalls()) { 2330 unsigned MoreStackForCalls = 0; 2331 2332 for (auto &MBB : MF) { 2333 for (auto &MI : MBB) { 2334 if (!MI.isCall()) 2335 continue; 2336 2337 // Get callee operand. 2338 const MachineOperand &MO = MI.getOperand(0); 2339 2340 // Only take account of global function calls (no closures etc.). 2341 if (!MO.isGlobal()) 2342 continue; 2343 2344 const Function *F = dyn_cast<Function>(MO.getGlobal()); 2345 if (!F) 2346 continue; 2347 2348 // Do not update 'MaxStack' for primitive and built-in functions 2349 // (encoded with names either starting with "erlang."/"bif_" or not 2350 // having a ".", such as a simple <Module>.<Function>.<Arity>, or an 2351 // "_", such as the BIF "suspend_0") as they are executed on another 2352 // stack. 2353 if (F->getName().find("erlang.") != StringRef::npos || 2354 F->getName().find("bif_") != StringRef::npos || 2355 F->getName().find_first_of("._") == StringRef::npos) 2356 continue; 2357 2358 unsigned CalleeStkArity = 2359 F->arg_size() > CCRegisteredArgs ? F->arg_size()-CCRegisteredArgs : 0; 2360 if (HipeLeafWords - 1 > CalleeStkArity) 2361 MoreStackForCalls = std::max(MoreStackForCalls, 2362 (HipeLeafWords - 1 - CalleeStkArity) * SlotSize); 2363 } 2364 } 2365 MaxStack += MoreStackForCalls; 2366 } 2367 2368 // If the stack frame needed is larger than the guaranteed then runtime checks 2369 // and calls to "inc_stack_0" BIF should be inserted in the assembly prologue. 2370 if (MaxStack > Guaranteed) { 2371 MachineBasicBlock *stackCheckMBB = MF.CreateMachineBasicBlock(); 2372 MachineBasicBlock *incStackMBB = MF.CreateMachineBasicBlock(); 2373 2374 for (const auto &LI : PrologueMBB.liveins()) { 2375 stackCheckMBB->addLiveIn(LI); 2376 incStackMBB->addLiveIn(LI); 2377 } 2378 2379 MF.push_front(incStackMBB); 2380 MF.push_front(stackCheckMBB); 2381 2382 unsigned ScratchReg, SPReg, PReg, SPLimitOffset; 2383 unsigned LEAop, CMPop, CALLop; 2384 if (Is64Bit) { 2385 SPReg = X86::RSP; 2386 PReg = X86::RBP; 2387 LEAop = X86::LEA64r; 2388 CMPop = X86::CMP64rm; 2389 CALLop = X86::CALL64pcrel32; 2390 SPLimitOffset = 0x90; 2391 } else { 2392 SPReg = X86::ESP; 2393 PReg = X86::EBP; 2394 LEAop = X86::LEA32r; 2395 CMPop = X86::CMP32rm; 2396 CALLop = X86::CALLpcrel32; 2397 SPLimitOffset = 0x4c; 2398 } 2399 2400 ScratchReg = GetScratchRegister(Is64Bit, IsLP64, MF, true); 2401 assert(!MF.getRegInfo().isLiveIn(ScratchReg) && 2402 "HiPE prologue scratch register is live-in"); 2403 2404 // Create new MBB for StackCheck: 2405 addRegOffset(BuildMI(stackCheckMBB, DL, TII.get(LEAop), ScratchReg), 2406 SPReg, false, -MaxStack); 2407 // SPLimitOffset is in a fixed heap location (pointed by BP). 2408 addRegOffset(BuildMI(stackCheckMBB, DL, TII.get(CMPop)) 2409 .addReg(ScratchReg), PReg, false, SPLimitOffset); 2410 BuildMI(stackCheckMBB, DL, TII.get(X86::JAE_1)).addMBB(&PrologueMBB); 2411 2412 // Create new MBB for IncStack: 2413 BuildMI(incStackMBB, DL, TII.get(CALLop)). 2414 addExternalSymbol("inc_stack_0"); 2415 addRegOffset(BuildMI(incStackMBB, DL, TII.get(LEAop), ScratchReg), 2416 SPReg, false, -MaxStack); 2417 addRegOffset(BuildMI(incStackMBB, DL, TII.get(CMPop)) 2418 .addReg(ScratchReg), PReg, false, SPLimitOffset); 2419 BuildMI(incStackMBB, DL, TII.get(X86::JLE_1)).addMBB(incStackMBB); 2420 2421 stackCheckMBB->addSuccessor(&PrologueMBB, {99, 100}); 2422 stackCheckMBB->addSuccessor(incStackMBB, {1, 100}); 2423 incStackMBB->addSuccessor(&PrologueMBB, {99, 100}); 2424 incStackMBB->addSuccessor(incStackMBB, {1, 100}); 2425 } 2426 #ifdef EXPENSIVE_CHECKS 2427 MF.verify(); 2428 #endif 2429 } 2430 2431 bool X86FrameLowering::adjustStackWithPops(MachineBasicBlock &MBB, 2432 MachineBasicBlock::iterator MBBI, DebugLoc DL, int Offset) const { 2433 2434 if (Offset <= 0) 2435 return false; 2436 2437 if (Offset % SlotSize) 2438 return false; 2439 2440 int NumPops = Offset / SlotSize; 2441 // This is only worth it if we have at most 2 pops. 2442 if (NumPops != 1 && NumPops != 2) 2443 return false; 2444 2445 // Handle only the trivial case where the adjustment directly follows 2446 // a call. This is the most common one, anyway. 2447 if (MBBI == MBB.begin()) 2448 return false; 2449 MachineBasicBlock::iterator Prev = std::prev(MBBI); 2450 if (!Prev->isCall() || !Prev->getOperand(1).isRegMask()) 2451 return false; 2452 2453 unsigned Regs[2]; 2454 unsigned FoundRegs = 0; 2455 2456 auto RegMask = Prev->getOperand(1); 2457 2458 auto &RegClass = 2459 Is64Bit ? X86::GR64_NOREX_NOSPRegClass : X86::GR32_NOREX_NOSPRegClass; 2460 // Try to find up to NumPops free registers. 2461 for (auto Candidate : RegClass) { 2462 2463 // Poor man's liveness: 2464 // Since we're immediately after a call, any register that is clobbered 2465 // by the call and not defined by it can be considered dead. 2466 if (!RegMask.clobbersPhysReg(Candidate)) 2467 continue; 2468 2469 bool IsDef = false; 2470 for (const MachineOperand &MO : Prev->implicit_operands()) { 2471 if (MO.isReg() && MO.isDef() && 2472 TRI->isSuperOrSubRegisterEq(MO.getReg(), Candidate)) { 2473 IsDef = true; 2474 break; 2475 } 2476 } 2477 2478 if (IsDef) 2479 continue; 2480 2481 Regs[FoundRegs++] = Candidate; 2482 if (FoundRegs == (unsigned)NumPops) 2483 break; 2484 } 2485 2486 if (FoundRegs == 0) 2487 return false; 2488 2489 // If we found only one free register, but need two, reuse the same one twice. 2490 while (FoundRegs < (unsigned)NumPops) 2491 Regs[FoundRegs++] = Regs[0]; 2492 2493 for (int i = 0; i < NumPops; ++i) 2494 BuildMI(MBB, MBBI, DL, 2495 TII.get(STI.is64Bit() ? X86::POP64r : X86::POP32r), Regs[i]); 2496 2497 return true; 2498 } 2499 2500 MachineBasicBlock::iterator X86FrameLowering:: 2501 eliminateCallFramePseudoInstr(MachineFunction &MF, MachineBasicBlock &MBB, 2502 MachineBasicBlock::iterator I) const { 2503 bool reserveCallFrame = hasReservedCallFrame(MF); 2504 unsigned Opcode = I->getOpcode(); 2505 bool isDestroy = Opcode == TII.getCallFrameDestroyOpcode(); 2506 DebugLoc DL = I->getDebugLoc(); 2507 uint64_t Amount = !reserveCallFrame ? I->getOperand(0).getImm() : 0; 2508 uint64_t InternalAmt = (isDestroy || Amount) ? I->getOperand(1).getImm() : 0; 2509 I = MBB.erase(I); 2510 2511 if (!reserveCallFrame) { 2512 // If the stack pointer can be changed after prologue, turn the 2513 // adjcallstackup instruction into a 'sub ESP, <amt>' and the 2514 // adjcallstackdown instruction into 'add ESP, <amt>' 2515 2516 // We need to keep the stack aligned properly. To do this, we round the 2517 // amount of space needed for the outgoing arguments up to the next 2518 // alignment boundary. 2519 unsigned StackAlign = getStackAlignment(); 2520 Amount = alignTo(Amount, StackAlign); 2521 2522 MachineModuleInfo &MMI = MF.getMMI(); 2523 const Function *Fn = MF.getFunction(); 2524 bool WindowsCFI = MF.getTarget().getMCAsmInfo()->usesWindowsCFI(); 2525 bool DwarfCFI = !WindowsCFI && 2526 (MMI.hasDebugInfo() || Fn->needsUnwindTableEntry()); 2527 2528 // If we have any exception handlers in this function, and we adjust 2529 // the SP before calls, we may need to indicate this to the unwinder 2530 // using GNU_ARGS_SIZE. Note that this may be necessary even when 2531 // Amount == 0, because the preceding function may have set a non-0 2532 // GNU_ARGS_SIZE. 2533 // TODO: We don't need to reset this between subsequent functions, 2534 // if it didn't change. 2535 bool HasDwarfEHHandlers = !WindowsCFI && 2536 !MF.getMMI().getLandingPads().empty(); 2537 2538 if (HasDwarfEHHandlers && !isDestroy && 2539 MF.getInfo<X86MachineFunctionInfo>()->getHasPushSequences()) 2540 BuildCFI(MBB, I, DL, 2541 MCCFIInstruction::createGnuArgsSize(nullptr, Amount)); 2542 2543 if (Amount == 0) 2544 return I; 2545 2546 // Factor out the amount that gets handled inside the sequence 2547 // (Pushes of argument for frame setup, callee pops for frame destroy) 2548 Amount -= InternalAmt; 2549 2550 // TODO: This is needed only if we require precise CFA. 2551 // If this is a callee-pop calling convention, emit a CFA adjust for 2552 // the amount the callee popped. 2553 if (isDestroy && InternalAmt && DwarfCFI && !hasFP(MF)) 2554 BuildCFI(MBB, I, DL, 2555 MCCFIInstruction::createAdjustCfaOffset(nullptr, -InternalAmt)); 2556 2557 // Add Amount to SP to destroy a frame, or subtract to setup. 2558 int64_t StackAdjustment = isDestroy ? Amount : -Amount; 2559 int64_t CfaAdjustment = -StackAdjustment; 2560 2561 if (StackAdjustment) { 2562 // Merge with any previous or following adjustment instruction. Note: the 2563 // instructions merged with here do not have CFI, so their stack 2564 // adjustments do not feed into CfaAdjustment. 2565 StackAdjustment += mergeSPUpdates(MBB, I, true); 2566 StackAdjustment += mergeSPUpdates(MBB, I, false); 2567 2568 if (StackAdjustment) { 2569 if (!(Fn->optForMinSize() && 2570 adjustStackWithPops(MBB, I, DL, StackAdjustment))) 2571 BuildStackAdjustment(MBB, I, DL, StackAdjustment, 2572 /*InEpilogue=*/false); 2573 } 2574 } 2575 2576 if (DwarfCFI && !hasFP(MF)) { 2577 // If we don't have FP, but need to generate unwind information, 2578 // we need to set the correct CFA offset after the stack adjustment. 2579 // How much we adjust the CFA offset depends on whether we're emitting 2580 // CFI only for EH purposes or for debugging. EH only requires the CFA 2581 // offset to be correct at each call site, while for debugging we want 2582 // it to be more precise. 2583 2584 // TODO: When not using precise CFA, we also need to adjust for the 2585 // InternalAmt here. 2586 if (CfaAdjustment) { 2587 BuildCFI(MBB, I, DL, MCCFIInstruction::createAdjustCfaOffset( 2588 nullptr, CfaAdjustment)); 2589 } 2590 } 2591 2592 return I; 2593 } 2594 2595 if (isDestroy && InternalAmt) { 2596 // If we are performing frame pointer elimination and if the callee pops 2597 // something off the stack pointer, add it back. We do this until we have 2598 // more advanced stack pointer tracking ability. 2599 // We are not tracking the stack pointer adjustment by the callee, so make 2600 // sure we restore the stack pointer immediately after the call, there may 2601 // be spill code inserted between the CALL and ADJCALLSTACKUP instructions. 2602 MachineBasicBlock::iterator CI = I; 2603 MachineBasicBlock::iterator B = MBB.begin(); 2604 while (CI != B && !std::prev(CI)->isCall()) 2605 --CI; 2606 BuildStackAdjustment(MBB, CI, DL, -InternalAmt, /*InEpilogue=*/false); 2607 } 2608 2609 return I; 2610 } 2611 2612 bool X86FrameLowering::canUseAsPrologue(const MachineBasicBlock &MBB) const { 2613 assert(MBB.getParent() && "Block is not attached to a function!"); 2614 const MachineFunction &MF = *MBB.getParent(); 2615 return !TRI->needsStackRealignment(MF) || !MBB.isLiveIn(X86::EFLAGS); 2616 } 2617 2618 bool X86FrameLowering::canUseAsEpilogue(const MachineBasicBlock &MBB) const { 2619 assert(MBB.getParent() && "Block is not attached to a function!"); 2620 2621 // Win64 has strict requirements in terms of epilogue and we are 2622 // not taking a chance at messing with them. 2623 // I.e., unless this block is already an exit block, we can't use 2624 // it as an epilogue. 2625 if (STI.isTargetWin64() && !MBB.succ_empty() && !MBB.isReturnBlock()) 2626 return false; 2627 2628 if (canUseLEAForSPInEpilogue(*MBB.getParent())) 2629 return true; 2630 2631 // If we cannot use LEA to adjust SP, we may need to use ADD, which 2632 // clobbers the EFLAGS. Check that we do not need to preserve it, 2633 // otherwise, conservatively assume this is not 2634 // safe to insert the epilogue here. 2635 return !flagsNeedToBePreservedBeforeTheTerminators(MBB); 2636 } 2637 2638 bool X86FrameLowering::enableShrinkWrapping(const MachineFunction &MF) const { 2639 // If we may need to emit frameless compact unwind information, give 2640 // up as this is currently broken: PR25614. 2641 return (MF.getFunction()->hasFnAttribute(Attribute::NoUnwind) || hasFP(MF)) && 2642 // The lowering of segmented stack and HiPE only support entry blocks 2643 // as prologue blocks: PR26107. 2644 // This limitation may be lifted if we fix: 2645 // - adjustForSegmentedStacks 2646 // - adjustForHiPEPrologue 2647 MF.getFunction()->getCallingConv() != CallingConv::HiPE && 2648 !MF.shouldSplitStack(); 2649 } 2650 2651 MachineBasicBlock::iterator X86FrameLowering::restoreWin32EHStackPointers( 2652 MachineBasicBlock &MBB, MachineBasicBlock::iterator MBBI, 2653 DebugLoc DL, bool RestoreSP) const { 2654 assert(STI.isTargetWindowsMSVC() && "funclets only supported in MSVC env"); 2655 assert(STI.isTargetWin32() && "EBP/ESI restoration only required on win32"); 2656 assert(STI.is32Bit() && !Uses64BitFramePtr && 2657 "restoring EBP/ESI on non-32-bit target"); 2658 2659 MachineFunction &MF = *MBB.getParent(); 2660 unsigned FramePtr = TRI->getFrameRegister(MF); 2661 unsigned BasePtr = TRI->getBaseRegister(); 2662 WinEHFuncInfo &FuncInfo = *MF.getWinEHFuncInfo(); 2663 X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>(); 2664 MachineFrameInfo *MFI = MF.getFrameInfo(); 2665 2666 // FIXME: Don't set FrameSetup flag in catchret case. 2667 2668 int FI = FuncInfo.EHRegNodeFrameIndex; 2669 int EHRegSize = MFI->getObjectSize(FI); 2670 2671 if (RestoreSP) { 2672 // MOV32rm -EHRegSize(%ebp), %esp 2673 addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV32rm), X86::ESP), 2674 X86::EBP, true, -EHRegSize) 2675 .setMIFlag(MachineInstr::FrameSetup); 2676 } 2677 2678 unsigned UsedReg; 2679 int EHRegOffset = getFrameIndexReference(MF, FI, UsedReg); 2680 int EndOffset = -EHRegOffset - EHRegSize; 2681 FuncInfo.EHRegNodeEndOffset = EndOffset; 2682 2683 if (UsedReg == FramePtr) { 2684 // ADD $offset, %ebp 2685 unsigned ADDri = getADDriOpcode(false, EndOffset); 2686 BuildMI(MBB, MBBI, DL, TII.get(ADDri), FramePtr) 2687 .addReg(FramePtr) 2688 .addImm(EndOffset) 2689 .setMIFlag(MachineInstr::FrameSetup) 2690 ->getOperand(3) 2691 .setIsDead(); 2692 assert(EndOffset >= 0 && 2693 "end of registration object above normal EBP position!"); 2694 } else if (UsedReg == BasePtr) { 2695 // LEA offset(%ebp), %esi 2696 addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::LEA32r), BasePtr), 2697 FramePtr, false, EndOffset) 2698 .setMIFlag(MachineInstr::FrameSetup); 2699 // MOV32rm SavedEBPOffset(%esi), %ebp 2700 assert(X86FI->getHasSEHFramePtrSave()); 2701 int Offset = 2702 getFrameIndexReference(MF, X86FI->getSEHFramePtrSaveIndex(), UsedReg); 2703 assert(UsedReg == BasePtr); 2704 addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV32rm), FramePtr), 2705 UsedReg, true, Offset) 2706 .setMIFlag(MachineInstr::FrameSetup); 2707 } else { 2708 llvm_unreachable("32-bit frames with WinEH must use FramePtr or BasePtr"); 2709 } 2710 return MBBI; 2711 } 2712 2713 namespace { 2714 // Struct used by orderFrameObjects to help sort the stack objects. 2715 struct X86FrameSortingObject { 2716 bool IsValid = false; // true if we care about this Object. 2717 unsigned ObjectIndex = 0; // Index of Object into MFI list. 2718 unsigned ObjectSize = 0; // Size of Object in bytes. 2719 unsigned ObjectAlignment = 1; // Alignment of Object in bytes. 2720 unsigned ObjectNumUses = 0; // Object static number of uses. 2721 }; 2722 2723 // The comparison function we use for std::sort to order our local 2724 // stack symbols. The current algorithm is to use an estimated 2725 // "density". This takes into consideration the size and number of 2726 // uses each object has in order to roughly minimize code size. 2727 // So, for example, an object of size 16B that is referenced 5 times 2728 // will get higher priority than 4 4B objects referenced 1 time each. 2729 // It's not perfect and we may be able to squeeze a few more bytes out of 2730 // it (for example : 0(esp) requires fewer bytes, symbols allocated at the 2731 // fringe end can have special consideration, given their size is less 2732 // important, etc.), but the algorithmic complexity grows too much to be 2733 // worth the extra gains we get. This gets us pretty close. 2734 // The final order leaves us with objects with highest priority going 2735 // at the end of our list. 2736 struct X86FrameSortingComparator { 2737 inline bool operator()(const X86FrameSortingObject &A, 2738 const X86FrameSortingObject &B) { 2739 uint64_t DensityAScaled, DensityBScaled; 2740 2741 // For consistency in our comparison, all invalid objects are placed 2742 // at the end. This also allows us to stop walking when we hit the 2743 // first invalid item after it's all sorted. 2744 if (!A.IsValid) 2745 return false; 2746 if (!B.IsValid) 2747 return true; 2748 2749 // The density is calculated by doing : 2750 // (double)DensityA = A.ObjectNumUses / A.ObjectSize 2751 // (double)DensityB = B.ObjectNumUses / B.ObjectSize 2752 // Since this approach may cause inconsistencies in 2753 // the floating point <, >, == comparisons, depending on the floating 2754 // point model with which the compiler was built, we're going 2755 // to scale both sides by multiplying with 2756 // A.ObjectSize * B.ObjectSize. This ends up factoring away 2757 // the division and, with it, the need for any floating point 2758 // arithmetic. 2759 DensityAScaled = static_cast<uint64_t>(A.ObjectNumUses) * 2760 static_cast<uint64_t>(B.ObjectSize); 2761 DensityBScaled = static_cast<uint64_t>(B.ObjectNumUses) * 2762 static_cast<uint64_t>(A.ObjectSize); 2763 2764 // If the two densities are equal, prioritize highest alignment 2765 // objects. This allows for similar alignment objects 2766 // to be packed together (given the same density). 2767 // There's room for improvement here, also, since we can pack 2768 // similar alignment (different density) objects next to each 2769 // other to save padding. This will also require further 2770 // complexity/iterations, and the overall gain isn't worth it, 2771 // in general. Something to keep in mind, though. 2772 if (DensityAScaled == DensityBScaled) 2773 return A.ObjectAlignment < B.ObjectAlignment; 2774 2775 return DensityAScaled < DensityBScaled; 2776 } 2777 }; 2778 } // namespace 2779 2780 // Order the symbols in the local stack. 2781 // We want to place the local stack objects in some sort of sensible order. 2782 // The heuristic we use is to try and pack them according to static number 2783 // of uses and size of object in order to minimize code size. 2784 void X86FrameLowering::orderFrameObjects( 2785 const MachineFunction &MF, SmallVectorImpl<int> &ObjectsToAllocate) const { 2786 const MachineFrameInfo *MFI = MF.getFrameInfo(); 2787 2788 // Don't waste time if there's nothing to do. 2789 if (ObjectsToAllocate.empty()) 2790 return; 2791 2792 // Create an array of all MFI objects. We won't need all of these 2793 // objects, but we're going to create a full array of them to make 2794 // it easier to index into when we're counting "uses" down below. 2795 // We want to be able to easily/cheaply access an object by simply 2796 // indexing into it, instead of having to search for it every time. 2797 std::vector<X86FrameSortingObject> SortingObjects(MFI->getObjectIndexEnd()); 2798 2799 // Walk the objects we care about and mark them as such in our working 2800 // struct. 2801 for (auto &Obj : ObjectsToAllocate) { 2802 SortingObjects[Obj].IsValid = true; 2803 SortingObjects[Obj].ObjectIndex = Obj; 2804 SortingObjects[Obj].ObjectAlignment = MFI->getObjectAlignment(Obj); 2805 // Set the size. 2806 int ObjectSize = MFI->getObjectSize(Obj); 2807 if (ObjectSize == 0) 2808 // Variable size. Just use 4. 2809 SortingObjects[Obj].ObjectSize = 4; 2810 else 2811 SortingObjects[Obj].ObjectSize = ObjectSize; 2812 } 2813 2814 // Count the number of uses for each object. 2815 for (auto &MBB : MF) { 2816 for (auto &MI : MBB) { 2817 for (const MachineOperand &MO : MI.operands()) { 2818 // Check to see if it's a local stack symbol. 2819 if (!MO.isFI()) 2820 continue; 2821 int Index = MO.getIndex(); 2822 // Check to see if it falls within our range, and is tagged 2823 // to require ordering. 2824 if (Index >= 0 && Index < MFI->getObjectIndexEnd() && 2825 SortingObjects[Index].IsValid) 2826 SortingObjects[Index].ObjectNumUses++; 2827 } 2828 } 2829 } 2830 2831 // Sort the objects using X86FrameSortingAlgorithm (see its comment for 2832 // info). 2833 std::stable_sort(SortingObjects.begin(), SortingObjects.end(), 2834 X86FrameSortingComparator()); 2835 2836 // Now modify the original list to represent the final order that 2837 // we want. The order will depend on whether we're going to access them 2838 // from the stack pointer or the frame pointer. For SP, the list should 2839 // end up with the END containing objects that we want with smaller offsets. 2840 // For FP, it should be flipped. 2841 int i = 0; 2842 for (auto &Obj : SortingObjects) { 2843 // All invalid items are sorted at the end, so it's safe to stop. 2844 if (!Obj.IsValid) 2845 break; 2846 ObjectsToAllocate[i++] = Obj.ObjectIndex; 2847 } 2848 2849 // Flip it if we're accessing off of the FP. 2850 if (!TRI->needsStackRealignment(MF) && hasFP(MF)) 2851 std::reverse(ObjectsToAllocate.begin(), ObjectsToAllocate.end()); 2852 } 2853 2854 2855 unsigned X86FrameLowering::getWinEHParentFrameOffset(const MachineFunction &MF) const { 2856 // RDX, the parent frame pointer, is homed into 16(%rsp) in the prologue. 2857 unsigned Offset = 16; 2858 // RBP is immediately pushed. 2859 Offset += SlotSize; 2860 // All callee-saved registers are then pushed. 2861 Offset += MF.getInfo<X86MachineFunctionInfo>()->getCalleeSavedFrameSize(); 2862 // Every funclet allocates enough stack space for the largest outgoing call. 2863 Offset += getWinEHFuncletFrameSize(MF); 2864 return Offset; 2865 } 2866 2867 void X86FrameLowering::processFunctionBeforeFrameFinalized( 2868 MachineFunction &MF, RegScavenger *RS) const { 2869 // If this function isn't doing Win64-style C++ EH, we don't need to do 2870 // anything. 2871 const Function *Fn = MF.getFunction(); 2872 if (!STI.is64Bit() || !MF.getMMI().hasEHFunclets() || 2873 classifyEHPersonality(Fn->getPersonalityFn()) != EHPersonality::MSVC_CXX) 2874 return; 2875 2876 // Win64 C++ EH needs to allocate the UnwindHelp object at some fixed offset 2877 // relative to RSP after the prologue. Find the offset of the last fixed 2878 // object, so that we can allocate a slot immediately following it. If there 2879 // were no fixed objects, use offset -SlotSize, which is immediately after the 2880 // return address. Fixed objects have negative frame indices. 2881 MachineFrameInfo *MFI = MF.getFrameInfo(); 2882 WinEHFuncInfo &EHInfo = *MF.getWinEHFuncInfo(); 2883 int64_t MinFixedObjOffset = -SlotSize; 2884 for (int I = MFI->getObjectIndexBegin(); I < 0; ++I) 2885 MinFixedObjOffset = std::min(MinFixedObjOffset, MFI->getObjectOffset(I)); 2886 2887 for (WinEHTryBlockMapEntry &TBME : EHInfo.TryBlockMap) { 2888 for (WinEHHandlerType &H : TBME.HandlerArray) { 2889 int FrameIndex = H.CatchObj.FrameIndex; 2890 if (FrameIndex != INT_MAX) { 2891 // Ensure alignment. 2892 unsigned Align = MFI->getObjectAlignment(FrameIndex); 2893 MinFixedObjOffset -= std::abs(MinFixedObjOffset) % Align; 2894 MinFixedObjOffset -= MFI->getObjectSize(FrameIndex); 2895 MFI->setObjectOffset(FrameIndex, MinFixedObjOffset); 2896 } 2897 } 2898 } 2899 2900 // Ensure alignment. 2901 MinFixedObjOffset -= std::abs(MinFixedObjOffset) % 8; 2902 int64_t UnwindHelpOffset = MinFixedObjOffset - SlotSize; 2903 int UnwindHelpFI = 2904 MFI->CreateFixedObject(SlotSize, UnwindHelpOffset, /*Immutable=*/false); 2905 EHInfo.UnwindHelpFrameIdx = UnwindHelpFI; 2906 2907 // Store -2 into UnwindHelp on function entry. We have to scan forwards past 2908 // other frame setup instructions. 2909 MachineBasicBlock &MBB = MF.front(); 2910 auto MBBI = MBB.begin(); 2911 while (MBBI != MBB.end() && MBBI->getFlag(MachineInstr::FrameSetup)) 2912 ++MBBI; 2913 2914 DebugLoc DL = MBB.findDebugLoc(MBBI); 2915 addFrameReference(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64mi32)), 2916 UnwindHelpFI) 2917 .addImm(-2); 2918 } 2919