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/Support/Debug.h"
33 #include "llvm/Target/TargetOptions.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   return (MF.getTarget().Options.DisableFramePointerElim(MF) ||
87           TRI->needsStackRealignment(MF) ||
88           MFI.hasVarSizedObjects() ||
89           MFI.isFrameAddressTaken() || MFI.hasOpaqueSPAdjustment() ||
90           MF.getInfo<X86MachineFunctionInfo>()->getForceFramePointer() ||
91           MF.callsUnwindInit() || MF.hasEHFunclets() || MF.callsEHReturn() ||
92           MFI.hasStackMap() || MFI.hasPatchPoint() ||
93           MFI.hasCopyImplyingStackAdjustment());
94 }
95 
96 static unsigned getSUBriOpcode(unsigned IsLP64, int64_t Imm) {
97   if (IsLP64) {
98     if (isInt<8>(Imm))
99       return X86::SUB64ri8;
100     return X86::SUB64ri32;
101   } else {
102     if (isInt<8>(Imm))
103       return X86::SUB32ri8;
104     return X86::SUB32ri;
105   }
106 }
107 
108 static unsigned getADDriOpcode(unsigned IsLP64, int64_t Imm) {
109   if (IsLP64) {
110     if (isInt<8>(Imm))
111       return X86::ADD64ri8;
112     return X86::ADD64ri32;
113   } else {
114     if (isInt<8>(Imm))
115       return X86::ADD32ri8;
116     return X86::ADD32ri;
117   }
118 }
119 
120 static unsigned getSUBrrOpcode(unsigned isLP64) {
121   return isLP64 ? X86::SUB64rr : X86::SUB32rr;
122 }
123 
124 static unsigned getADDrrOpcode(unsigned isLP64) {
125   return isLP64 ? X86::ADD64rr : X86::ADD32rr;
126 }
127 
128 static unsigned getANDriOpcode(bool IsLP64, int64_t Imm) {
129   if (IsLP64) {
130     if (isInt<8>(Imm))
131       return X86::AND64ri8;
132     return X86::AND64ri32;
133   }
134   if (isInt<8>(Imm))
135     return X86::AND32ri8;
136   return X86::AND32ri;
137 }
138 
139 static unsigned getLEArOpcode(unsigned IsLP64) {
140   return IsLP64 ? X86::LEA64r : X86::LEA32r;
141 }
142 
143 /// findDeadCallerSavedReg - Return a caller-saved register that isn't live
144 /// when it reaches the "return" instruction. We can then pop a stack object
145 /// to this register without worry about clobbering it.
146 static unsigned findDeadCallerSavedReg(MachineBasicBlock &MBB,
147                                        MachineBasicBlock::iterator &MBBI,
148                                        const X86RegisterInfo *TRI,
149                                        bool Is64Bit) {
150   const MachineFunction *MF = MBB.getParent();
151   const Function *F = MF->getFunction();
152   if (!F || MF->callsEHReturn())
153     return 0;
154 
155   const TargetRegisterClass &AvailableRegs = *TRI->getGPRsForTailCall(*MF);
156 
157   if (MBBI == MBB.end())
158     return 0;
159 
160   switch (MBBI->getOpcode()) {
161   default: return 0;
162   case TargetOpcode::PATCHABLE_RET:
163   case X86::RET:
164   case X86::RETL:
165   case X86::RETQ:
166   case X86::RETIL:
167   case X86::RETIQ:
168   case X86::TCRETURNdi:
169   case X86::TCRETURNri:
170   case X86::TCRETURNmi:
171   case X86::TCRETURNdi64:
172   case X86::TCRETURNri64:
173   case X86::TCRETURNmi64:
174   case X86::EH_RETURN:
175   case X86::EH_RETURN64: {
176     SmallSet<uint16_t, 8> Uses;
177     for (unsigned i = 0, e = MBBI->getNumOperands(); i != e; ++i) {
178       MachineOperand &MO = MBBI->getOperand(i);
179       if (!MO.isReg() || MO.isDef())
180         continue;
181       unsigned Reg = MO.getReg();
182       if (!Reg)
183         continue;
184       for (MCRegAliasIterator AI(Reg, TRI, true); AI.isValid(); ++AI)
185         Uses.insert(*AI);
186     }
187 
188     for (auto CS : AvailableRegs)
189       if (!Uses.count(CS) && CS != X86::RIP)
190         return CS;
191   }
192   }
193 
194   return 0;
195 }
196 
197 static bool isEAXLiveIn(MachineBasicBlock &MBB) {
198   for (MachineBasicBlock::RegisterMaskPair RegMask : MBB.liveins()) {
199     unsigned Reg = RegMask.PhysReg;
200 
201     if (Reg == X86::RAX || Reg == X86::EAX || Reg == X86::AX ||
202         Reg == X86::AH || Reg == X86::AL)
203       return true;
204   }
205 
206   return false;
207 }
208 
209 /// Check if the flags need to be preserved before the terminators.
210 /// This would be the case, if the eflags is live-in of the region
211 /// composed by the terminators or live-out of that region, without
212 /// being defined by a terminator.
213 static bool
214 flagsNeedToBePreservedBeforeTheTerminators(const MachineBasicBlock &MBB) {
215   for (const MachineInstr &MI : MBB.terminators()) {
216     bool BreakNext = false;
217     for (const MachineOperand &MO : MI.operands()) {
218       if (!MO.isReg())
219         continue;
220       unsigned Reg = MO.getReg();
221       if (Reg != X86::EFLAGS)
222         continue;
223 
224       // This terminator needs an eflags that is not defined
225       // by a previous another terminator:
226       // EFLAGS is live-in of the region composed by the terminators.
227       if (!MO.isDef())
228         return true;
229       // This terminator defines the eflags, i.e., we don't need to preserve it.
230       // However, we still need to check this specific terminator does not
231       // read a live-in value.
232       BreakNext = true;
233     }
234     // We found a definition of the eflags, no need to preserve them.
235     if (BreakNext)
236       return false;
237   }
238 
239   // None of the terminators use or define the eflags.
240   // Check if they are live-out, that would imply we need to preserve them.
241   for (const MachineBasicBlock *Succ : MBB.successors())
242     if (Succ->isLiveIn(X86::EFLAGS))
243       return true;
244 
245   return false;
246 }
247 
248 /// emitSPUpdate - Emit a series of instructions to increment / decrement the
249 /// stack pointer by a constant value.
250 void X86FrameLowering::emitSPUpdate(MachineBasicBlock &MBB,
251                                     MachineBasicBlock::iterator &MBBI,
252                                     int64_t NumBytes, bool InEpilogue) const {
253   bool isSub = NumBytes < 0;
254   uint64_t Offset = isSub ? -NumBytes : NumBytes;
255   MachineInstr::MIFlag Flag =
256       isSub ? MachineInstr::FrameSetup : MachineInstr::FrameDestroy;
257 
258   uint64_t Chunk = (1LL << 31) - 1;
259   DebugLoc DL = MBB.findDebugLoc(MBBI);
260 
261   if (Offset > Chunk) {
262     // Rather than emit a long series of instructions for large offsets,
263     // load the offset into a register and do one sub/add
264     unsigned Reg = 0;
265     unsigned Rax = (unsigned)(Is64Bit ? X86::RAX : X86::EAX);
266 
267     if (isSub && !isEAXLiveIn(MBB))
268       Reg = Rax;
269     else
270       Reg = findDeadCallerSavedReg(MBB, MBBI, TRI, Is64Bit);
271 
272     unsigned MovRIOpc = Is64Bit ? X86::MOV64ri : X86::MOV32ri;
273     unsigned AddSubRROpc =
274         isSub ? getSUBrrOpcode(Is64Bit) : getADDrrOpcode(Is64Bit);
275     if (Reg) {
276       BuildMI(MBB, MBBI, DL, TII.get(MovRIOpc), Reg)
277           .addImm(Offset)
278           .setMIFlag(Flag);
279       MachineInstr *MI = BuildMI(MBB, MBBI, DL, TII.get(AddSubRROpc), StackPtr)
280                              .addReg(StackPtr)
281                              .addReg(Reg);
282       MI->getOperand(3).setIsDead(); // The EFLAGS implicit def is dead.
283       return;
284     } else if (Offset > 8 * Chunk) {
285       // If we would need more than 8 add or sub instructions (a >16GB stack
286       // frame), it's worth spilling RAX to materialize this immediate.
287       //   pushq %rax
288       //   movabsq +-$Offset+-SlotSize, %rax
289       //   addq %rsp, %rax
290       //   xchg %rax, (%rsp)
291       //   movq (%rsp), %rsp
292       assert(Is64Bit && "can't have 32-bit 16GB stack frame");
293       BuildMI(MBB, MBBI, DL, TII.get(X86::PUSH64r))
294           .addReg(Rax, RegState::Kill)
295           .setMIFlag(Flag);
296       // Subtract is not commutative, so negate the offset and always use add.
297       // Subtract 8 less and add 8 more to account for the PUSH we just did.
298       if (isSub)
299         Offset = -(Offset - SlotSize);
300       else
301         Offset = Offset + SlotSize;
302       BuildMI(MBB, MBBI, DL, TII.get(MovRIOpc), Rax)
303           .addImm(Offset)
304           .setMIFlag(Flag);
305       MachineInstr *MI = BuildMI(MBB, MBBI, DL, TII.get(X86::ADD64rr), Rax)
306                              .addReg(Rax)
307                              .addReg(StackPtr);
308       MI->getOperand(3).setIsDead(); // The EFLAGS implicit def is dead.
309       // Exchange the new SP in RAX with the top of the stack.
310       addRegOffset(
311           BuildMI(MBB, MBBI, DL, TII.get(X86::XCHG64rm), Rax).addReg(Rax),
312           StackPtr, false, 0);
313       // Load new SP from the top of the stack into RSP.
314       addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64rm), StackPtr),
315                    StackPtr, false, 0);
316       return;
317     }
318   }
319 
320   while (Offset) {
321     uint64_t ThisVal = std::min(Offset, Chunk);
322     if (ThisVal == SlotSize) {
323       // Use push / pop for slot sized adjustments as a size optimization. We
324       // need to find a dead register when using pop.
325       unsigned Reg = isSub
326         ? (unsigned)(Is64Bit ? X86::RAX : X86::EAX)
327         : findDeadCallerSavedReg(MBB, MBBI, TRI, Is64Bit);
328       if (Reg) {
329         unsigned Opc = isSub
330           ? (Is64Bit ? X86::PUSH64r : X86::PUSH32r)
331           : (Is64Bit ? X86::POP64r  : X86::POP32r);
332         BuildMI(MBB, MBBI, DL, TII.get(Opc))
333             .addReg(Reg, getDefRegState(!isSub) | getUndefRegState(isSub))
334             .setMIFlag(Flag);
335         Offset -= ThisVal;
336         continue;
337       }
338     }
339 
340     BuildStackAdjustment(MBB, MBBI, DL, isSub ? -ThisVal : ThisVal, InEpilogue)
341         .setMIFlag(Flag);
342 
343     Offset -= ThisVal;
344   }
345 }
346 
347 MachineInstrBuilder X86FrameLowering::BuildStackAdjustment(
348     MachineBasicBlock &MBB, MachineBasicBlock::iterator MBBI,
349     const DebugLoc &DL, int64_t Offset, bool InEpilogue) const {
350   assert(Offset != 0 && "zero offset stack adjustment requested");
351 
352   // On Atom, using LEA to adjust SP is preferred, but using it in the epilogue
353   // is tricky.
354   bool UseLEA;
355   if (!InEpilogue) {
356     // Check if inserting the prologue at the beginning
357     // of MBB would require to use LEA operations.
358     // We need to use LEA operations if EFLAGS is live in, because
359     // it means an instruction will read it before it gets defined.
360     UseLEA = STI.useLeaForSP() || MBB.isLiveIn(X86::EFLAGS);
361   } else {
362     // If we can use LEA for SP but we shouldn't, check that none
363     // of the terminators uses the eflags. Otherwise we will insert
364     // a ADD that will redefine the eflags and break the condition.
365     // Alternatively, we could move the ADD, but this may not be possible
366     // and is an optimization anyway.
367     UseLEA = canUseLEAForSPInEpilogue(*MBB.getParent());
368     if (UseLEA && !STI.useLeaForSP())
369       UseLEA = flagsNeedToBePreservedBeforeTheTerminators(MBB);
370     // If that assert breaks, that means we do not do the right thing
371     // in canUseAsEpilogue.
372     assert((UseLEA || !flagsNeedToBePreservedBeforeTheTerminators(MBB)) &&
373            "We shouldn't have allowed this insertion point");
374   }
375 
376   MachineInstrBuilder MI;
377   if (UseLEA) {
378     MI = addRegOffset(BuildMI(MBB, MBBI, DL,
379                               TII.get(getLEArOpcode(Uses64BitFramePtr)),
380                               StackPtr),
381                       StackPtr, false, Offset);
382   } else {
383     bool IsSub = Offset < 0;
384     uint64_t AbsOffset = IsSub ? -Offset : Offset;
385     unsigned Opc = IsSub ? getSUBriOpcode(Uses64BitFramePtr, AbsOffset)
386                          : getADDriOpcode(Uses64BitFramePtr, AbsOffset);
387     MI = BuildMI(MBB, MBBI, DL, TII.get(Opc), StackPtr)
388              .addReg(StackPtr)
389              .addImm(AbsOffset);
390     MI->getOperand(3).setIsDead(); // The EFLAGS implicit def is dead.
391   }
392   return MI;
393 }
394 
395 int X86FrameLowering::mergeSPUpdates(MachineBasicBlock &MBB,
396                                      MachineBasicBlock::iterator &MBBI,
397                                      bool doMergeWithPrevious) const {
398   if ((doMergeWithPrevious && MBBI == MBB.begin()) ||
399       (!doMergeWithPrevious && MBBI == MBB.end()))
400     return 0;
401 
402   MachineBasicBlock::iterator PI = doMergeWithPrevious ? std::prev(MBBI) : MBBI;
403   MachineBasicBlock::iterator NI = doMergeWithPrevious ? nullptr
404                                                        : std::next(MBBI);
405   PI = skipDebugInstructionsBackward(PI, MBB.begin());
406   if (NI != nullptr)
407     NI = skipDebugInstructionsForward(NI, MBB.end());
408 
409   unsigned Opc = PI->getOpcode();
410   int Offset = 0;
411 
412   if (!doMergeWithPrevious && NI != MBB.end() &&
413       NI->getOpcode() == TargetOpcode::CFI_INSTRUCTION) {
414     // Don't merge with the next instruction if it has CFI.
415     return Offset;
416   }
417 
418   if ((Opc == X86::ADD64ri32 || Opc == X86::ADD64ri8 ||
419        Opc == X86::ADD32ri || Opc == X86::ADD32ri8) &&
420       PI->getOperand(0).getReg() == StackPtr){
421     assert(PI->getOperand(1).getReg() == StackPtr);
422     Offset += PI->getOperand(2).getImm();
423     MBB.erase(PI);
424     if (!doMergeWithPrevious) MBBI = NI;
425   } else if ((Opc == X86::LEA32r || Opc == X86::LEA64_32r) &&
426              PI->getOperand(0).getReg() == StackPtr &&
427              PI->getOperand(1).getReg() == StackPtr &&
428              PI->getOperand(2).getImm() == 1 &&
429              PI->getOperand(3).getReg() == X86::NoRegister &&
430              PI->getOperand(5).getReg() == X86::NoRegister) {
431     // For LEAs we have: def = lea SP, FI, noreg, Offset, noreg.
432     Offset += PI->getOperand(4).getImm();
433     MBB.erase(PI);
434     if (!doMergeWithPrevious) MBBI = NI;
435   } else if ((Opc == X86::SUB64ri32 || Opc == X86::SUB64ri8 ||
436               Opc == X86::SUB32ri || Opc == X86::SUB32ri8) &&
437              PI->getOperand(0).getReg() == StackPtr) {
438     assert(PI->getOperand(1).getReg() == StackPtr);
439     Offset -= PI->getOperand(2).getImm();
440     MBB.erase(PI);
441     if (!doMergeWithPrevious) MBBI = NI;
442   }
443 
444   return Offset;
445 }
446 
447 void X86FrameLowering::BuildCFI(MachineBasicBlock &MBB,
448                                 MachineBasicBlock::iterator MBBI,
449                                 const DebugLoc &DL,
450                                 const MCCFIInstruction &CFIInst) const {
451   MachineFunction &MF = *MBB.getParent();
452   unsigned CFIIndex = MF.addFrameInst(CFIInst);
453   BuildMI(MBB, MBBI, DL, TII.get(TargetOpcode::CFI_INSTRUCTION))
454       .addCFIIndex(CFIIndex);
455 }
456 
457 void X86FrameLowering::emitCalleeSavedFrameMoves(
458     MachineBasicBlock &MBB, MachineBasicBlock::iterator MBBI,
459     const DebugLoc &DL) const {
460   MachineFunction &MF = *MBB.getParent();
461   MachineFrameInfo &MFI = MF.getFrameInfo();
462   MachineModuleInfo &MMI = MF.getMMI();
463   const MCRegisterInfo *MRI = MMI.getContext().getRegisterInfo();
464 
465   // Add callee saved registers to move list.
466   const std::vector<CalleeSavedInfo> &CSI = MFI.getCalleeSavedInfo();
467   if (CSI.empty()) return;
468 
469   // Calculate offsets.
470   for (std::vector<CalleeSavedInfo>::const_iterator
471          I = CSI.begin(), E = CSI.end(); I != E; ++I) {
472     int64_t Offset = MFI.getObjectOffset(I->getFrameIdx());
473     unsigned Reg = I->getReg();
474 
475     unsigned DwarfReg = MRI->getDwarfRegNum(Reg, true);
476     BuildCFI(MBB, MBBI, DL,
477              MCCFIInstruction::createOffset(nullptr, DwarfReg, Offset));
478   }
479 }
480 
481 void X86FrameLowering::emitStackProbe(MachineFunction &MF,
482                                       MachineBasicBlock &MBB,
483                                       MachineBasicBlock::iterator MBBI,
484                                       const DebugLoc &DL, bool InProlog) const {
485   const X86Subtarget &STI = MF.getSubtarget<X86Subtarget>();
486   if (STI.isTargetWindowsCoreCLR()) {
487     if (InProlog) {
488       emitStackProbeInlineStub(MF, MBB, MBBI, DL, true);
489     } else {
490       emitStackProbeInline(MF, MBB, MBBI, DL, false);
491     }
492   } else {
493     emitStackProbeCall(MF, MBB, MBBI, DL, InProlog);
494   }
495 }
496 
497 void X86FrameLowering::inlineStackProbe(MachineFunction &MF,
498                                         MachineBasicBlock &PrologMBB) const {
499   const StringRef ChkStkStubSymbol = "__chkstk_stub";
500   MachineInstr *ChkStkStub = nullptr;
501 
502   for (MachineInstr &MI : PrologMBB) {
503     if (MI.isCall() && MI.getOperand(0).isSymbol() &&
504         ChkStkStubSymbol == MI.getOperand(0).getSymbolName()) {
505       ChkStkStub = &MI;
506       break;
507     }
508   }
509 
510   if (ChkStkStub != nullptr) {
511     assert(!ChkStkStub->isBundled() &&
512            "Not expecting bundled instructions here");
513     MachineBasicBlock::iterator MBBI = std::next(ChkStkStub->getIterator());
514     assert(std::prev(MBBI) == ChkStkStub &&
515            "MBBI expected after __chkstk_stub.");
516     DebugLoc DL = PrologMBB.findDebugLoc(MBBI);
517     emitStackProbeInline(MF, PrologMBB, MBBI, DL, true);
518     ChkStkStub->eraseFromParent();
519   }
520 }
521 
522 void X86FrameLowering::emitStackProbeInline(MachineFunction &MF,
523                                             MachineBasicBlock &MBB,
524                                             MachineBasicBlock::iterator MBBI,
525                                             const DebugLoc &DL,
526                                             bool InProlog) const {
527   const X86Subtarget &STI = MF.getSubtarget<X86Subtarget>();
528   assert(STI.is64Bit() && "different expansion needed for 32 bit");
529   assert(STI.isTargetWindowsCoreCLR() && "custom expansion expects CoreCLR");
530   const TargetInstrInfo &TII = *STI.getInstrInfo();
531   const BasicBlock *LLVM_BB = MBB.getBasicBlock();
532 
533   // RAX contains the number of bytes of desired stack adjustment.
534   // The handling here assumes this value has already been updated so as to
535   // maintain stack alignment.
536   //
537   // We need to exit with RSP modified by this amount and execute suitable
538   // page touches to notify the OS that we're growing the stack responsibly.
539   // All stack probing must be done without modifying RSP.
540   //
541   // MBB:
542   //    SizeReg = RAX;
543   //    ZeroReg = 0
544   //    CopyReg = RSP
545   //    Flags, TestReg = CopyReg - SizeReg
546   //    FinalReg = !Flags.Ovf ? TestReg : ZeroReg
547   //    LimitReg = gs magic thread env access
548   //    if FinalReg >= LimitReg goto ContinueMBB
549   // RoundBB:
550   //    RoundReg = page address of FinalReg
551   // LoopMBB:
552   //    LoopReg = PHI(LimitReg,ProbeReg)
553   //    ProbeReg = LoopReg - PageSize
554   //    [ProbeReg] = 0
555   //    if (ProbeReg > RoundReg) goto LoopMBB
556   // ContinueMBB:
557   //    RSP = RSP - RAX
558   //    [rest of original MBB]
559 
560   // Set up the new basic blocks
561   MachineBasicBlock *RoundMBB = MF.CreateMachineBasicBlock(LLVM_BB);
562   MachineBasicBlock *LoopMBB = MF.CreateMachineBasicBlock(LLVM_BB);
563   MachineBasicBlock *ContinueMBB = MF.CreateMachineBasicBlock(LLVM_BB);
564 
565   MachineFunction::iterator MBBIter = std::next(MBB.getIterator());
566   MF.insert(MBBIter, RoundMBB);
567   MF.insert(MBBIter, LoopMBB);
568   MF.insert(MBBIter, ContinueMBB);
569 
570   // Split MBB and move the tail portion down to ContinueMBB.
571   MachineBasicBlock::iterator BeforeMBBI = std::prev(MBBI);
572   ContinueMBB->splice(ContinueMBB->begin(), &MBB, MBBI, MBB.end());
573   ContinueMBB->transferSuccessorsAndUpdatePHIs(&MBB);
574 
575   // Some useful constants
576   const int64_t ThreadEnvironmentStackLimit = 0x10;
577   const int64_t PageSize = 0x1000;
578   const int64_t PageMask = ~(PageSize - 1);
579 
580   // Registers we need. For the normal case we use virtual
581   // registers. For the prolog expansion we use RAX, RCX and RDX.
582   MachineRegisterInfo &MRI = MF.getRegInfo();
583   const TargetRegisterClass *RegClass = &X86::GR64RegClass;
584   const unsigned SizeReg = InProlog ? (unsigned)X86::RAX
585                                     : MRI.createVirtualRegister(RegClass),
586                  ZeroReg = InProlog ? (unsigned)X86::RCX
587                                     : MRI.createVirtualRegister(RegClass),
588                  CopyReg = InProlog ? (unsigned)X86::RDX
589                                     : MRI.createVirtualRegister(RegClass),
590                  TestReg = InProlog ? (unsigned)X86::RDX
591                                     : MRI.createVirtualRegister(RegClass),
592                  FinalReg = InProlog ? (unsigned)X86::RDX
593                                      : MRI.createVirtualRegister(RegClass),
594                  RoundedReg = InProlog ? (unsigned)X86::RDX
595                                        : MRI.createVirtualRegister(RegClass),
596                  LimitReg = InProlog ? (unsigned)X86::RCX
597                                      : MRI.createVirtualRegister(RegClass),
598                  JoinReg = InProlog ? (unsigned)X86::RCX
599                                     : MRI.createVirtualRegister(RegClass),
600                  ProbeReg = InProlog ? (unsigned)X86::RCX
601                                      : MRI.createVirtualRegister(RegClass);
602 
603   // SP-relative offsets where we can save RCX and RDX.
604   int64_t RCXShadowSlot = 0;
605   int64_t RDXShadowSlot = 0;
606 
607   // If inlining in the prolog, save RCX and RDX.
608   // Future optimization: don't save or restore if not live in.
609   if (InProlog) {
610     // Compute the offsets. We need to account for things already
611     // pushed onto the stack at this point: return address, frame
612     // pointer (if used), and callee saves.
613     X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>();
614     const int64_t CalleeSaveSize = X86FI->getCalleeSavedFrameSize();
615     const bool HasFP = hasFP(MF);
616     RCXShadowSlot = 8 + CalleeSaveSize + (HasFP ? 8 : 0);
617     RDXShadowSlot = RCXShadowSlot + 8;
618     // Emit the saves.
619     addRegOffset(BuildMI(&MBB, DL, TII.get(X86::MOV64mr)), X86::RSP, false,
620                  RCXShadowSlot)
621         .addReg(X86::RCX);
622     addRegOffset(BuildMI(&MBB, DL, TII.get(X86::MOV64mr)), X86::RSP, false,
623                  RDXShadowSlot)
624         .addReg(X86::RDX);
625   } else {
626     // Not in the prolog. Copy RAX to a virtual reg.
627     BuildMI(&MBB, DL, TII.get(X86::MOV64rr), SizeReg).addReg(X86::RAX);
628   }
629 
630   // Add code to MBB to check for overflow and set the new target stack pointer
631   // to zero if so.
632   BuildMI(&MBB, DL, TII.get(X86::XOR64rr), ZeroReg)
633       .addReg(ZeroReg, RegState::Undef)
634       .addReg(ZeroReg, RegState::Undef);
635   BuildMI(&MBB, DL, TII.get(X86::MOV64rr), CopyReg).addReg(X86::RSP);
636   BuildMI(&MBB, DL, TII.get(X86::SUB64rr), TestReg)
637       .addReg(CopyReg)
638       .addReg(SizeReg);
639   BuildMI(&MBB, DL, TII.get(X86::CMOVB64rr), FinalReg)
640       .addReg(TestReg)
641       .addReg(ZeroReg);
642 
643   // FinalReg now holds final stack pointer value, or zero if
644   // allocation would overflow. Compare against the current stack
645   // limit from the thread environment block. Note this limit is the
646   // lowest touched page on the stack, not the point at which the OS
647   // will cause an overflow exception, so this is just an optimization
648   // to avoid unnecessarily touching pages that are below the current
649   // SP but already committed to the stack by the OS.
650   BuildMI(&MBB, DL, TII.get(X86::MOV64rm), LimitReg)
651       .addReg(0)
652       .addImm(1)
653       .addReg(0)
654       .addImm(ThreadEnvironmentStackLimit)
655       .addReg(X86::GS);
656   BuildMI(&MBB, DL, TII.get(X86::CMP64rr)).addReg(FinalReg).addReg(LimitReg);
657   // Jump if the desired stack pointer is at or above the stack limit.
658   BuildMI(&MBB, DL, TII.get(X86::JAE_1)).addMBB(ContinueMBB);
659 
660   // Add code to roundMBB to round the final stack pointer to a page boundary.
661   BuildMI(RoundMBB, DL, TII.get(X86::AND64ri32), RoundedReg)
662       .addReg(FinalReg)
663       .addImm(PageMask);
664   BuildMI(RoundMBB, DL, TII.get(X86::JMP_1)).addMBB(LoopMBB);
665 
666   // LimitReg now holds the current stack limit, RoundedReg page-rounded
667   // final RSP value. Add code to loopMBB to decrement LimitReg page-by-page
668   // and probe until we reach RoundedReg.
669   if (!InProlog) {
670     BuildMI(LoopMBB, DL, TII.get(X86::PHI), JoinReg)
671         .addReg(LimitReg)
672         .addMBB(RoundMBB)
673         .addReg(ProbeReg)
674         .addMBB(LoopMBB);
675   }
676 
677   addRegOffset(BuildMI(LoopMBB, DL, TII.get(X86::LEA64r), ProbeReg), JoinReg,
678                false, -PageSize);
679 
680   // Probe by storing a byte onto the stack.
681   BuildMI(LoopMBB, DL, TII.get(X86::MOV8mi))
682       .addReg(ProbeReg)
683       .addImm(1)
684       .addReg(0)
685       .addImm(0)
686       .addReg(0)
687       .addImm(0);
688   BuildMI(LoopMBB, DL, TII.get(X86::CMP64rr))
689       .addReg(RoundedReg)
690       .addReg(ProbeReg);
691   BuildMI(LoopMBB, DL, TII.get(X86::JNE_1)).addMBB(LoopMBB);
692 
693   MachineBasicBlock::iterator ContinueMBBI = ContinueMBB->getFirstNonPHI();
694 
695   // If in prolog, restore RDX and RCX.
696   if (InProlog) {
697     addRegOffset(BuildMI(*ContinueMBB, ContinueMBBI, DL, TII.get(X86::MOV64rm),
698                          X86::RCX),
699                  X86::RSP, false, RCXShadowSlot);
700     addRegOffset(BuildMI(*ContinueMBB, ContinueMBBI, DL, TII.get(X86::MOV64rm),
701                          X86::RDX),
702                  X86::RSP, false, RDXShadowSlot);
703   }
704 
705   // Now that the probing is done, add code to continueMBB to update
706   // the stack pointer for real.
707   BuildMI(*ContinueMBB, ContinueMBBI, DL, TII.get(X86::SUB64rr), X86::RSP)
708       .addReg(X86::RSP)
709       .addReg(SizeReg);
710 
711   // Add the control flow edges we need.
712   MBB.addSuccessor(ContinueMBB);
713   MBB.addSuccessor(RoundMBB);
714   RoundMBB->addSuccessor(LoopMBB);
715   LoopMBB->addSuccessor(ContinueMBB);
716   LoopMBB->addSuccessor(LoopMBB);
717 
718   // Mark all the instructions added to the prolog as frame setup.
719   if (InProlog) {
720     for (++BeforeMBBI; BeforeMBBI != MBB.end(); ++BeforeMBBI) {
721       BeforeMBBI->setFlag(MachineInstr::FrameSetup);
722     }
723     for (MachineInstr &MI : *RoundMBB) {
724       MI.setFlag(MachineInstr::FrameSetup);
725     }
726     for (MachineInstr &MI : *LoopMBB) {
727       MI.setFlag(MachineInstr::FrameSetup);
728     }
729     for (MachineBasicBlock::iterator CMBBI = ContinueMBB->begin();
730          CMBBI != ContinueMBBI; ++CMBBI) {
731       CMBBI->setFlag(MachineInstr::FrameSetup);
732     }
733   }
734 
735   // Possible TODO: physreg liveness for InProlog case.
736 }
737 
738 void X86FrameLowering::emitStackProbeCall(MachineFunction &MF,
739                                           MachineBasicBlock &MBB,
740                                           MachineBasicBlock::iterator MBBI,
741                                           const DebugLoc &DL,
742                                           bool InProlog) const {
743   bool IsLargeCodeModel = MF.getTarget().getCodeModel() == CodeModel::Large;
744 
745   unsigned CallOp;
746   if (Is64Bit)
747     CallOp = IsLargeCodeModel ? X86::CALL64r : X86::CALL64pcrel32;
748   else
749     CallOp = X86::CALLpcrel32;
750 
751   StringRef Symbol = STI.getTargetLowering()->getStackProbeSymbolName(MF);
752 
753   MachineInstrBuilder CI;
754   MachineBasicBlock::iterator ExpansionMBBI = std::prev(MBBI);
755 
756   // All current stack probes take AX and SP as input, clobber flags, and
757   // preserve all registers. x86_64 probes leave RSP unmodified.
758   if (Is64Bit && MF.getTarget().getCodeModel() == CodeModel::Large) {
759     // For the large code model, we have to call through a register. Use R11,
760     // as it is scratch in all supported calling conventions.
761     BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64ri), X86::R11)
762         .addExternalSymbol(MF.createExternalSymbolName(Symbol));
763     CI = BuildMI(MBB, MBBI, DL, TII.get(CallOp)).addReg(X86::R11);
764   } else {
765     CI = BuildMI(MBB, MBBI, DL, TII.get(CallOp))
766         .addExternalSymbol(MF.createExternalSymbolName(Symbol));
767   }
768 
769   unsigned AX = Is64Bit ? X86::RAX : X86::EAX;
770   unsigned SP = Is64Bit ? X86::RSP : X86::ESP;
771   CI.addReg(AX, RegState::Implicit)
772       .addReg(SP, RegState::Implicit)
773       .addReg(AX, RegState::Define | RegState::Implicit)
774       .addReg(SP, RegState::Define | RegState::Implicit)
775       .addReg(X86::EFLAGS, RegState::Define | RegState::Implicit);
776 
777   if (STI.isTargetWin64() || !STI.isOSWindows()) {
778     // MSVC x32's _chkstk and cygwin/mingw's _alloca adjust %esp themselves.
779     // MSVC x64's __chkstk and cygwin/mingw's ___chkstk_ms do not adjust %rsp
780     // themselves. They also does not clobber %rax so we can reuse it when
781     // adjusting %rsp.
782     // All other platforms do not specify a particular ABI for the stack probe
783     // function, so we arbitrarily define it to not adjust %esp/%rsp itself.
784     BuildMI(MBB, MBBI, DL, TII.get(getSUBrrOpcode(Is64Bit)), SP)
785         .addReg(SP)
786         .addReg(AX);
787   }
788 
789   if (InProlog) {
790     // Apply the frame setup flag to all inserted instrs.
791     for (++ExpansionMBBI; ExpansionMBBI != MBBI; ++ExpansionMBBI)
792       ExpansionMBBI->setFlag(MachineInstr::FrameSetup);
793   }
794 }
795 
796 void X86FrameLowering::emitStackProbeInlineStub(
797     MachineFunction &MF, MachineBasicBlock &MBB,
798     MachineBasicBlock::iterator MBBI, const DebugLoc &DL, bool InProlog) const {
799 
800   assert(InProlog && "ChkStkStub called outside prolog!");
801 
802   BuildMI(MBB, MBBI, DL, TII.get(X86::CALLpcrel32))
803       .addExternalSymbol("__chkstk_stub");
804 }
805 
806 static unsigned calculateSetFPREG(uint64_t SPAdjust) {
807   // Win64 ABI has a less restrictive limitation of 240; 128 works equally well
808   // and might require smaller successive adjustments.
809   const uint64_t Win64MaxSEHOffset = 128;
810   uint64_t SEHFrameOffset = std::min(SPAdjust, Win64MaxSEHOffset);
811   // Win64 ABI requires 16-byte alignment for the UWOP_SET_FPREG opcode.
812   return SEHFrameOffset & -16;
813 }
814 
815 // If we're forcing a stack realignment we can't rely on just the frame
816 // info, we need to know the ABI stack alignment as well in case we
817 // have a call out.  Otherwise just make sure we have some alignment - we'll
818 // go with the minimum SlotSize.
819 uint64_t X86FrameLowering::calculateMaxStackAlign(const MachineFunction &MF) const {
820   const MachineFrameInfo &MFI = MF.getFrameInfo();
821   uint64_t MaxAlign = MFI.getMaxAlignment(); // Desired stack alignment.
822   unsigned StackAlign = getStackAlignment();
823   if (MF.getFunction()->hasFnAttribute("stackrealign")) {
824     if (MFI.hasCalls())
825       MaxAlign = (StackAlign > MaxAlign) ? StackAlign : MaxAlign;
826     else if (MaxAlign < SlotSize)
827       MaxAlign = SlotSize;
828   }
829   return MaxAlign;
830 }
831 
832 void X86FrameLowering::BuildStackAlignAND(MachineBasicBlock &MBB,
833                                           MachineBasicBlock::iterator MBBI,
834                                           const DebugLoc &DL, unsigned Reg,
835                                           uint64_t MaxAlign) const {
836   uint64_t Val = -MaxAlign;
837   unsigned AndOp = getANDriOpcode(Uses64BitFramePtr, Val);
838   MachineInstr *MI = BuildMI(MBB, MBBI, DL, TII.get(AndOp), Reg)
839                          .addReg(Reg)
840                          .addImm(Val)
841                          .setMIFlag(MachineInstr::FrameSetup);
842 
843   // The EFLAGS implicit def is dead.
844   MI->getOperand(3).setIsDead();
845 }
846 
847 /// emitPrologue - Push callee-saved registers onto the stack, which
848 /// automatically adjust the stack pointer. Adjust the stack pointer to allocate
849 /// space for local variables. Also emit labels used by the exception handler to
850 /// generate the exception handling frames.
851 
852 /*
853   Here's a gist of what gets emitted:
854 
855   ; Establish frame pointer, if needed
856   [if needs FP]
857       push  %rbp
858       .cfi_def_cfa_offset 16
859       .cfi_offset %rbp, -16
860       .seh_pushreg %rpb
861       mov  %rsp, %rbp
862       .cfi_def_cfa_register %rbp
863 
864   ; Spill general-purpose registers
865   [for all callee-saved GPRs]
866       pushq %<reg>
867       [if not needs FP]
868          .cfi_def_cfa_offset (offset from RETADDR)
869       .seh_pushreg %<reg>
870 
871   ; If the required stack alignment > default stack alignment
872   ; rsp needs to be re-aligned.  This creates a "re-alignment gap"
873   ; of unknown size in the stack frame.
874   [if stack needs re-alignment]
875       and  $MASK, %rsp
876 
877   ; Allocate space for locals
878   [if target is Windows and allocated space > 4096 bytes]
879       ; Windows needs special care for allocations larger
880       ; than one page.
881       mov $NNN, %rax
882       call ___chkstk_ms/___chkstk
883       sub  %rax, %rsp
884   [else]
885       sub  $NNN, %rsp
886 
887   [if needs FP]
888       .seh_stackalloc (size of XMM spill slots)
889       .seh_setframe %rbp, SEHFrameOffset ; = size of all spill slots
890   [else]
891       .seh_stackalloc NNN
892 
893   ; Spill XMMs
894   ; Note, that while only Windows 64 ABI specifies XMMs as callee-preserved,
895   ; they may get spilled on any platform, if the current function
896   ; calls @llvm.eh.unwind.init
897   [if needs FP]
898       [for all callee-saved XMM registers]
899           movaps  %<xmm reg>, -MMM(%rbp)
900       [for all callee-saved XMM registers]
901           .seh_savexmm %<xmm reg>, (-MMM + SEHFrameOffset)
902               ; i.e. the offset relative to (%rbp - SEHFrameOffset)
903   [else]
904       [for all callee-saved XMM registers]
905           movaps  %<xmm reg>, KKK(%rsp)
906       [for all callee-saved XMM registers]
907           .seh_savexmm %<xmm reg>, KKK
908 
909   .seh_endprologue
910 
911   [if needs base pointer]
912       mov  %rsp, %rbx
913       [if needs to restore base pointer]
914           mov %rsp, -MMM(%rbp)
915 
916   ; Emit CFI info
917   [if needs FP]
918       [for all callee-saved registers]
919           .cfi_offset %<reg>, (offset from %rbp)
920   [else]
921        .cfi_def_cfa_offset (offset from RETADDR)
922       [for all callee-saved registers]
923           .cfi_offset %<reg>, (offset from %rsp)
924 
925   Notes:
926   - .seh directives are emitted only for Windows 64 ABI
927   - .cv_fpo directives are emitted on win32 when emitting CodeView
928   - .cfi directives are emitted for all other ABIs
929   - for 32-bit code, substitute %e?? registers for %r??
930 */
931 
932 void X86FrameLowering::emitPrologue(MachineFunction &MF,
933                                     MachineBasicBlock &MBB) const {
934   assert(&STI == &MF.getSubtarget<X86Subtarget>() &&
935          "MF used frame lowering for wrong subtarget");
936   MachineBasicBlock::iterator MBBI = MBB.begin();
937   MachineFrameInfo &MFI = MF.getFrameInfo();
938   const Function *Fn = MF.getFunction();
939   MachineModuleInfo &MMI = MF.getMMI();
940   X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>();
941   uint64_t MaxAlign = calculateMaxStackAlign(MF); // Desired stack alignment.
942   uint64_t StackSize = MFI.getStackSize();    // Number of bytes to allocate.
943   bool IsFunclet = MBB.isEHFuncletEntry();
944   EHPersonality Personality = EHPersonality::Unknown;
945   if (Fn->hasPersonalityFn())
946     Personality = classifyEHPersonality(Fn->getPersonalityFn());
947   bool FnHasClrFunclet =
948       MF.hasEHFunclets() && Personality == EHPersonality::CoreCLR;
949   bool IsClrFunclet = IsFunclet && FnHasClrFunclet;
950   bool HasFP = hasFP(MF);
951   bool IsWin64CC = STI.isCallingConvWin64(Fn->getCallingConv());
952   bool IsWin64Prologue = MF.getTarget().getMCAsmInfo()->usesWindowsCFI();
953   bool NeedsWin64CFI = IsWin64Prologue && Fn->needsUnwindTableEntry();
954   // FIXME: Emit FPO data for EH funclets.
955   bool NeedsWinFPO =
956       !IsFunclet && STI.isTargetWin32() && MMI.getModule()->getCodeViewFlag();
957   bool NeedsWinCFI = NeedsWin64CFI || NeedsWinFPO;
958   bool NeedsDwarfCFI =
959       !IsWin64Prologue && (MMI.hasDebugInfo() || Fn->needsUnwindTableEntry());
960   unsigned FramePtr = TRI->getFrameRegister(MF);
961   const unsigned MachineFramePtr =
962       STI.isTarget64BitILP32()
963           ? getX86SubSuperRegister(FramePtr, 64) : FramePtr;
964   unsigned BasePtr = TRI->getBaseRegister();
965   bool HasWinCFI = false;
966 
967   // Debug location must be unknown since the first debug location is used
968   // to determine the end of the prologue.
969   DebugLoc DL;
970 
971   // Add RETADDR move area to callee saved frame size.
972   int TailCallReturnAddrDelta = X86FI->getTCReturnAddrDelta();
973   if (TailCallReturnAddrDelta && IsWin64Prologue)
974     report_fatal_error("Can't handle guaranteed tail call under win64 yet");
975 
976   if (TailCallReturnAddrDelta < 0)
977     X86FI->setCalleeSavedFrameSize(
978       X86FI->getCalleeSavedFrameSize() - TailCallReturnAddrDelta);
979 
980   bool UseStackProbe = !STI.getTargetLowering()->getStackProbeSymbolName(MF).empty();
981 
982   // The default stack probe size is 4096 if the function has no stackprobesize
983   // attribute.
984   unsigned StackProbeSize = 4096;
985   if (Fn->hasFnAttribute("stack-probe-size"))
986     Fn->getFnAttribute("stack-probe-size")
987         .getValueAsString()
988         .getAsInteger(0, StackProbeSize);
989 
990   // Re-align the stack on 64-bit if the x86-interrupt calling convention is
991   // used and an error code was pushed, since the x86-64 ABI requires a 16-byte
992   // stack alignment.
993   if (Fn->getCallingConv() == CallingConv::X86_INTR && Is64Bit &&
994       Fn->arg_size() == 2) {
995     StackSize += 8;
996     MFI.setStackSize(StackSize);
997     emitSPUpdate(MBB, MBBI, -8, /*InEpilogue=*/false);
998   }
999 
1000   // If this is x86-64 and the Red Zone is not disabled, if we are a leaf
1001   // function, and use up to 128 bytes of stack space, don't have a frame
1002   // pointer, calls, or dynamic alloca then we do not need to adjust the
1003   // stack pointer (we fit in the Red Zone). We also check that we don't
1004   // push and pop from the stack.
1005   if (Is64Bit && !Fn->hasFnAttribute(Attribute::NoRedZone) &&
1006       !TRI->needsStackRealignment(MF) &&
1007       !MFI.hasVarSizedObjects() &&             // No dynamic alloca.
1008       !MFI.adjustsStack() &&                   // No calls.
1009       !UseStackProbe &&                        // No stack probes.
1010       !IsWin64CC &&                            // Win64 has no Red Zone
1011       !MFI.hasCopyImplyingStackAdjustment() && // Don't push and pop.
1012       !MF.shouldSplitStack()) {                // Regular stack
1013     uint64_t MinSize = X86FI->getCalleeSavedFrameSize();
1014     if (HasFP) MinSize += SlotSize;
1015     X86FI->setUsesRedZone(MinSize > 0 || StackSize > 0);
1016     StackSize = std::max(MinSize, StackSize > 128 ? StackSize - 128 : 0);
1017     MFI.setStackSize(StackSize);
1018   }
1019 
1020   // Insert stack pointer adjustment for later moving of return addr.  Only
1021   // applies to tail call optimized functions where the callee argument stack
1022   // size is bigger than the callers.
1023   if (TailCallReturnAddrDelta < 0) {
1024     BuildStackAdjustment(MBB, MBBI, DL, TailCallReturnAddrDelta,
1025                          /*InEpilogue=*/false)
1026         .setMIFlag(MachineInstr::FrameSetup);
1027   }
1028 
1029   // Mapping for machine moves:
1030   //
1031   //   DST: VirtualFP AND
1032   //        SRC: VirtualFP              => DW_CFA_def_cfa_offset
1033   //        ELSE                        => DW_CFA_def_cfa
1034   //
1035   //   SRC: VirtualFP AND
1036   //        DST: Register               => DW_CFA_def_cfa_register
1037   //
1038   //   ELSE
1039   //        OFFSET < 0                  => DW_CFA_offset_extended_sf
1040   //        REG < 64                    => DW_CFA_offset + Reg
1041   //        ELSE                        => DW_CFA_offset_extended
1042 
1043   uint64_t NumBytes = 0;
1044   int stackGrowth = -SlotSize;
1045 
1046   // Find the funclet establisher parameter
1047   unsigned Establisher = X86::NoRegister;
1048   if (IsClrFunclet)
1049     Establisher = Uses64BitFramePtr ? X86::RCX : X86::ECX;
1050   else if (IsFunclet)
1051     Establisher = Uses64BitFramePtr ? X86::RDX : X86::EDX;
1052 
1053   if (IsWin64Prologue && IsFunclet && !IsClrFunclet) {
1054     // Immediately spill establisher into the home slot.
1055     // The runtime cares about this.
1056     // MOV64mr %rdx, 16(%rsp)
1057     unsigned MOVmr = Uses64BitFramePtr ? X86::MOV64mr : X86::MOV32mr;
1058     addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(MOVmr)), StackPtr, true, 16)
1059         .addReg(Establisher)
1060         .setMIFlag(MachineInstr::FrameSetup);
1061     MBB.addLiveIn(Establisher);
1062   }
1063 
1064   if (HasFP) {
1065     assert(MF.getRegInfo().isReserved(MachineFramePtr) && "FP reserved");
1066 
1067     // Calculate required stack adjustment.
1068     uint64_t FrameSize = StackSize - SlotSize;
1069     // If required, include space for extra hidden slot for stashing base pointer.
1070     if (X86FI->getRestoreBasePointer())
1071       FrameSize += SlotSize;
1072 
1073     NumBytes = FrameSize - X86FI->getCalleeSavedFrameSize();
1074 
1075     // Callee-saved registers are pushed on stack before the stack is realigned.
1076     if (TRI->needsStackRealignment(MF) && !IsWin64Prologue)
1077       NumBytes = alignTo(NumBytes, MaxAlign);
1078 
1079     // Get the offset of the stack slot for the EBP register, which is
1080     // guaranteed to be the last slot by processFunctionBeforeFrameFinalized.
1081     // Update the frame offset adjustment.
1082     if (!IsFunclet)
1083       MFI.setOffsetAdjustment(-NumBytes);
1084     else
1085       assert(MFI.getOffsetAdjustment() == -(int)NumBytes &&
1086              "should calculate same local variable offset for funclets");
1087 
1088     // Save EBP/RBP into the appropriate stack slot.
1089     BuildMI(MBB, MBBI, DL, TII.get(Is64Bit ? X86::PUSH64r : X86::PUSH32r))
1090       .addReg(MachineFramePtr, RegState::Kill)
1091       .setMIFlag(MachineInstr::FrameSetup);
1092 
1093     if (NeedsDwarfCFI) {
1094       // Mark the place where EBP/RBP was saved.
1095       // Define the current CFA rule to use the provided offset.
1096       assert(StackSize);
1097       BuildCFI(MBB, MBBI, DL,
1098                MCCFIInstruction::createDefCfaOffset(nullptr, 2 * stackGrowth));
1099 
1100       // Change the rule for the FramePtr to be an "offset" rule.
1101       unsigned DwarfFramePtr = TRI->getDwarfRegNum(MachineFramePtr, true);
1102       BuildCFI(MBB, MBBI, DL, MCCFIInstruction::createOffset(
1103                                   nullptr, DwarfFramePtr, 2 * stackGrowth));
1104     }
1105 
1106     if (NeedsWinCFI) {
1107       HasWinCFI = true;
1108       BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_PushReg))
1109           .addImm(FramePtr)
1110           .setMIFlag(MachineInstr::FrameSetup);
1111     }
1112 
1113     if (!IsWin64Prologue && !IsFunclet) {
1114       // Update EBP with the new base value.
1115       BuildMI(MBB, MBBI, DL,
1116               TII.get(Uses64BitFramePtr ? X86::MOV64rr : X86::MOV32rr),
1117               FramePtr)
1118           .addReg(StackPtr)
1119           .setMIFlag(MachineInstr::FrameSetup);
1120 
1121       if (NeedsDwarfCFI) {
1122         // Mark effective beginning of when frame pointer becomes valid.
1123         // Define the current CFA to use the EBP/RBP register.
1124         unsigned DwarfFramePtr = TRI->getDwarfRegNum(MachineFramePtr, true);
1125         BuildCFI(MBB, MBBI, DL, MCCFIInstruction::createDefCfaRegister(
1126                                     nullptr, DwarfFramePtr));
1127       }
1128 
1129       if (NeedsWinFPO) {
1130         // .cv_fpo_setframe $FramePtr
1131         HasWinCFI = true;
1132         BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_SetFrame))
1133             .addImm(FramePtr)
1134             .addImm(0)
1135             .setMIFlag(MachineInstr::FrameSetup);
1136       }
1137     }
1138   } else {
1139     assert(!IsFunclet && "funclets without FPs not yet implemented");
1140     NumBytes = StackSize - X86FI->getCalleeSavedFrameSize();
1141   }
1142 
1143   // For EH funclets, only allocate enough space for outgoing calls. Save the
1144   // NumBytes value that we would've used for the parent frame.
1145   unsigned ParentFrameNumBytes = NumBytes;
1146   if (IsFunclet)
1147     NumBytes = getWinEHFuncletFrameSize(MF);
1148 
1149   // Skip the callee-saved push instructions.
1150   bool PushedRegs = false;
1151   int StackOffset = 2 * stackGrowth;
1152 
1153   while (MBBI != MBB.end() &&
1154          MBBI->getFlag(MachineInstr::FrameSetup) &&
1155          (MBBI->getOpcode() == X86::PUSH32r ||
1156           MBBI->getOpcode() == X86::PUSH64r)) {
1157     PushedRegs = true;
1158     unsigned Reg = MBBI->getOperand(0).getReg();
1159     ++MBBI;
1160 
1161     if (!HasFP && NeedsDwarfCFI) {
1162       // Mark callee-saved push instruction.
1163       // Define the current CFA rule to use the provided offset.
1164       assert(StackSize);
1165       BuildCFI(MBB, MBBI, DL,
1166                MCCFIInstruction::createDefCfaOffset(nullptr, StackOffset));
1167       StackOffset += stackGrowth;
1168     }
1169 
1170     if (NeedsWinCFI) {
1171       HasWinCFI = true;
1172       BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_PushReg))
1173           .addImm(Reg)
1174           .setMIFlag(MachineInstr::FrameSetup);
1175     }
1176   }
1177 
1178   // Realign stack after we pushed callee-saved registers (so that we'll be
1179   // able to calculate their offsets from the frame pointer).
1180   // Don't do this for Win64, it needs to realign the stack after the prologue.
1181   if (!IsWin64Prologue && !IsFunclet && TRI->needsStackRealignment(MF)) {
1182     assert(HasFP && "There should be a frame pointer if stack is realigned.");
1183     BuildStackAlignAND(MBB, MBBI, DL, StackPtr, MaxAlign);
1184   }
1185 
1186   // If there is an SUB32ri of ESP immediately before this instruction, merge
1187   // the two. This can be the case when tail call elimination is enabled and
1188   // the callee has more arguments then the caller.
1189   NumBytes -= mergeSPUpdates(MBB, MBBI, true);
1190 
1191   // Adjust stack pointer: ESP -= numbytes.
1192 
1193   // Windows and cygwin/mingw require a prologue helper routine when allocating
1194   // more than 4K bytes on the stack.  Windows uses __chkstk and cygwin/mingw
1195   // uses __alloca.  __alloca and the 32-bit version of __chkstk will probe the
1196   // stack and adjust the stack pointer in one go.  The 64-bit version of
1197   // __chkstk is only responsible for probing the stack.  The 64-bit prologue is
1198   // responsible for adjusting the stack pointer.  Touching the stack at 4K
1199   // increments is necessary to ensure that the guard pages used by the OS
1200   // virtual memory manager are allocated in correct sequence.
1201   uint64_t AlignedNumBytes = NumBytes;
1202   if (IsWin64Prologue && !IsFunclet && TRI->needsStackRealignment(MF))
1203     AlignedNumBytes = alignTo(AlignedNumBytes, MaxAlign);
1204   if (AlignedNumBytes >= StackProbeSize && UseStackProbe) {
1205     assert(!X86FI->getUsesRedZone() &&
1206            "The Red Zone is not accounted for in stack probes");
1207 
1208     // Check whether EAX is livein for this block.
1209     bool isEAXAlive = isEAXLiveIn(MBB);
1210 
1211     if (isEAXAlive) {
1212       // Sanity check that EAX is not livein for this function.
1213       // It should not be, so throw an assert.
1214       assert(!Is64Bit && "EAX is livein in x64 case!");
1215 
1216       // Save EAX
1217       BuildMI(MBB, MBBI, DL, TII.get(X86::PUSH32r))
1218         .addReg(X86::EAX, RegState::Kill)
1219         .setMIFlag(MachineInstr::FrameSetup);
1220     }
1221 
1222     if (Is64Bit) {
1223       // Handle the 64-bit Windows ABI case where we need to call __chkstk.
1224       // Function prologue is responsible for adjusting the stack pointer.
1225       if (isUInt<32>(NumBytes)) {
1226         BuildMI(MBB, MBBI, DL, TII.get(X86::MOV32ri), X86::EAX)
1227             .addImm(NumBytes)
1228             .setMIFlag(MachineInstr::FrameSetup);
1229       } else if (isInt<32>(NumBytes)) {
1230         BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64ri32), X86::RAX)
1231             .addImm(NumBytes)
1232             .setMIFlag(MachineInstr::FrameSetup);
1233       } else {
1234         BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64ri), X86::RAX)
1235             .addImm(NumBytes)
1236             .setMIFlag(MachineInstr::FrameSetup);
1237       }
1238     } else {
1239       // Allocate NumBytes-4 bytes on stack in case of isEAXAlive.
1240       // We'll also use 4 already allocated bytes for EAX.
1241       BuildMI(MBB, MBBI, DL, TII.get(X86::MOV32ri), X86::EAX)
1242           .addImm(isEAXAlive ? NumBytes - 4 : NumBytes)
1243           .setMIFlag(MachineInstr::FrameSetup);
1244     }
1245 
1246     // Call __chkstk, __chkstk_ms, or __alloca.
1247     emitStackProbe(MF, MBB, MBBI, DL, true);
1248 
1249     if (isEAXAlive) {
1250       // Restore EAX
1251       MachineInstr *MI =
1252           addRegOffset(BuildMI(MF, DL, TII.get(X86::MOV32rm), X86::EAX),
1253                        StackPtr, false, NumBytes - 4);
1254       MI->setFlag(MachineInstr::FrameSetup);
1255       MBB.insert(MBBI, MI);
1256     }
1257   } else if (NumBytes) {
1258     emitSPUpdate(MBB, MBBI, -(int64_t)NumBytes, /*InEpilogue=*/false);
1259   }
1260 
1261   if (NeedsWinCFI && NumBytes) {
1262     HasWinCFI = true;
1263     BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_StackAlloc))
1264         .addImm(NumBytes)
1265         .setMIFlag(MachineInstr::FrameSetup);
1266   }
1267 
1268   int SEHFrameOffset = 0;
1269   unsigned SPOrEstablisher;
1270   if (IsFunclet) {
1271     if (IsClrFunclet) {
1272       // The establisher parameter passed to a CLR funclet is actually a pointer
1273       // to the (mostly empty) frame of its nearest enclosing funclet; we have
1274       // to find the root function establisher frame by loading the PSPSym from
1275       // the intermediate frame.
1276       unsigned PSPSlotOffset = getPSPSlotOffsetFromSP(MF);
1277       MachinePointerInfo NoInfo;
1278       MBB.addLiveIn(Establisher);
1279       addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64rm), Establisher),
1280                    Establisher, false, PSPSlotOffset)
1281           .addMemOperand(MF.getMachineMemOperand(
1282               NoInfo, MachineMemOperand::MOLoad, SlotSize, SlotSize));
1283       ;
1284       // Save the root establisher back into the current funclet's (mostly
1285       // empty) frame, in case a sub-funclet or the GC needs it.
1286       addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64mr)), StackPtr,
1287                    false, PSPSlotOffset)
1288           .addReg(Establisher)
1289           .addMemOperand(
1290               MF.getMachineMemOperand(NoInfo, MachineMemOperand::MOStore |
1291                                                   MachineMemOperand::MOVolatile,
1292                                       SlotSize, SlotSize));
1293     }
1294     SPOrEstablisher = Establisher;
1295   } else {
1296     SPOrEstablisher = StackPtr;
1297   }
1298 
1299   if (IsWin64Prologue && HasFP) {
1300     // Set RBP to a small fixed offset from RSP. In the funclet case, we base
1301     // this calculation on the incoming establisher, which holds the value of
1302     // RSP from the parent frame at the end of the prologue.
1303     SEHFrameOffset = calculateSetFPREG(ParentFrameNumBytes);
1304     if (SEHFrameOffset)
1305       addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::LEA64r), FramePtr),
1306                    SPOrEstablisher, false, SEHFrameOffset);
1307     else
1308       BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64rr), FramePtr)
1309           .addReg(SPOrEstablisher);
1310 
1311     // If this is not a funclet, emit the CFI describing our frame pointer.
1312     if (NeedsWinCFI && !IsFunclet) {
1313       assert(!NeedsWinFPO && "this setframe incompatible with FPO data");
1314       HasWinCFI = true;
1315       BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_SetFrame))
1316           .addImm(FramePtr)
1317           .addImm(SEHFrameOffset)
1318           .setMIFlag(MachineInstr::FrameSetup);
1319       if (isAsynchronousEHPersonality(Personality))
1320         MF.getWinEHFuncInfo()->SEHSetFrameOffset = SEHFrameOffset;
1321     }
1322   } else if (IsFunclet && STI.is32Bit()) {
1323     // Reset EBP / ESI to something good for funclets.
1324     MBBI = restoreWin32EHStackPointers(MBB, MBBI, DL);
1325     // If we're a catch funclet, we can be returned to via catchret. Save ESP
1326     // into the registration node so that the runtime will restore it for us.
1327     if (!MBB.isCleanupFuncletEntry()) {
1328       assert(Personality == EHPersonality::MSVC_CXX);
1329       unsigned FrameReg;
1330       int FI = MF.getWinEHFuncInfo()->EHRegNodeFrameIndex;
1331       int64_t EHRegOffset = getFrameIndexReference(MF, FI, FrameReg);
1332       // ESP is the first field, so no extra displacement is needed.
1333       addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV32mr)), FrameReg,
1334                    false, EHRegOffset)
1335           .addReg(X86::ESP);
1336     }
1337   }
1338 
1339   while (MBBI != MBB.end() && MBBI->getFlag(MachineInstr::FrameSetup)) {
1340     const MachineInstr &FrameInstr = *MBBI;
1341     ++MBBI;
1342 
1343     if (NeedsWinCFI) {
1344       int FI;
1345       if (unsigned Reg = TII.isStoreToStackSlot(FrameInstr, FI)) {
1346         if (X86::FR64RegClass.contains(Reg)) {
1347           unsigned IgnoredFrameReg;
1348           int Offset = getFrameIndexReference(MF, FI, IgnoredFrameReg);
1349           Offset += SEHFrameOffset;
1350 
1351           HasWinCFI = true;
1352           assert(!NeedsWinFPO && "SEH_SaveXMM incompatible with FPO data");
1353           BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_SaveXMM))
1354               .addImm(Reg)
1355               .addImm(Offset)
1356               .setMIFlag(MachineInstr::FrameSetup);
1357         }
1358       }
1359     }
1360   }
1361 
1362   if (NeedsWinCFI && HasWinCFI)
1363     BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_EndPrologue))
1364         .setMIFlag(MachineInstr::FrameSetup);
1365 
1366   if (FnHasClrFunclet && !IsFunclet) {
1367     // Save the so-called Initial-SP (i.e. the value of the stack pointer
1368     // immediately after the prolog)  into the PSPSlot so that funclets
1369     // and the GC can recover it.
1370     unsigned PSPSlotOffset = getPSPSlotOffsetFromSP(MF);
1371     auto PSPInfo = MachinePointerInfo::getFixedStack(
1372         MF, MF.getWinEHFuncInfo()->PSPSymFrameIdx);
1373     addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64mr)), StackPtr, false,
1374                  PSPSlotOffset)
1375         .addReg(StackPtr)
1376         .addMemOperand(MF.getMachineMemOperand(
1377             PSPInfo, MachineMemOperand::MOStore | MachineMemOperand::MOVolatile,
1378             SlotSize, SlotSize));
1379   }
1380 
1381   // Realign stack after we spilled callee-saved registers (so that we'll be
1382   // able to calculate their offsets from the frame pointer).
1383   // Win64 requires aligning the stack after the prologue.
1384   if (IsWin64Prologue && TRI->needsStackRealignment(MF)) {
1385     assert(HasFP && "There should be a frame pointer if stack is realigned.");
1386     BuildStackAlignAND(MBB, MBBI, DL, SPOrEstablisher, MaxAlign);
1387   }
1388 
1389   // We already dealt with stack realignment and funclets above.
1390   if (IsFunclet && STI.is32Bit())
1391     return;
1392 
1393   // If we need a base pointer, set it up here. It's whatever the value
1394   // of the stack pointer is at this point. Any variable size objects
1395   // will be allocated after this, so we can still use the base pointer
1396   // to reference locals.
1397   if (TRI->hasBasePointer(MF)) {
1398     // Update the base pointer with the current stack pointer.
1399     unsigned Opc = Uses64BitFramePtr ? X86::MOV64rr : X86::MOV32rr;
1400     BuildMI(MBB, MBBI, DL, TII.get(Opc), BasePtr)
1401       .addReg(SPOrEstablisher)
1402       .setMIFlag(MachineInstr::FrameSetup);
1403     if (X86FI->getRestoreBasePointer()) {
1404       // Stash value of base pointer.  Saving RSP instead of EBP shortens
1405       // dependence chain. Used by SjLj EH.
1406       unsigned Opm = Uses64BitFramePtr ? X86::MOV64mr : X86::MOV32mr;
1407       addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(Opm)),
1408                    FramePtr, true, X86FI->getRestoreBasePointerOffset())
1409         .addReg(SPOrEstablisher)
1410         .setMIFlag(MachineInstr::FrameSetup);
1411     }
1412 
1413     if (X86FI->getHasSEHFramePtrSave() && !IsFunclet) {
1414       // Stash the value of the frame pointer relative to the base pointer for
1415       // Win32 EH. This supports Win32 EH, which does the inverse of the above:
1416       // it recovers the frame pointer from the base pointer rather than the
1417       // other way around.
1418       unsigned Opm = Uses64BitFramePtr ? X86::MOV64mr : X86::MOV32mr;
1419       unsigned UsedReg;
1420       int Offset =
1421           getFrameIndexReference(MF, X86FI->getSEHFramePtrSaveIndex(), UsedReg);
1422       assert(UsedReg == BasePtr);
1423       addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(Opm)), UsedReg, true, Offset)
1424           .addReg(FramePtr)
1425           .setMIFlag(MachineInstr::FrameSetup);
1426     }
1427   }
1428 
1429   if (((!HasFP && NumBytes) || PushedRegs) && NeedsDwarfCFI) {
1430     // Mark end of stack pointer adjustment.
1431     if (!HasFP && NumBytes) {
1432       // Define the current CFA rule to use the provided offset.
1433       assert(StackSize);
1434       BuildCFI(MBB, MBBI, DL, MCCFIInstruction::createDefCfaOffset(
1435                                   nullptr, -StackSize + stackGrowth));
1436     }
1437 
1438     // Emit DWARF info specifying the offsets of the callee-saved registers.
1439     if (PushedRegs)
1440       emitCalleeSavedFrameMoves(MBB, MBBI, DL);
1441   }
1442 
1443   // X86 Interrupt handling function cannot assume anything about the direction
1444   // flag (DF in EFLAGS register). Clear this flag by creating "cld" instruction
1445   // in each prologue of interrupt handler function.
1446   //
1447   // FIXME: Create "cld" instruction only in these cases:
1448   // 1. The interrupt handling function uses any of the "rep" instructions.
1449   // 2. Interrupt handling function calls another function.
1450   //
1451   if (Fn->getCallingConv() == CallingConv::X86_INTR)
1452     BuildMI(MBB, MBBI, DL, TII.get(X86::CLD))
1453         .setMIFlag(MachineInstr::FrameSetup);
1454 
1455   // At this point we know if the function has WinCFI or not.
1456   MF.setHasWinCFI(HasWinCFI);
1457 }
1458 
1459 bool X86FrameLowering::canUseLEAForSPInEpilogue(
1460     const MachineFunction &MF) const {
1461   // We can't use LEA instructions for adjusting the stack pointer if we don't
1462   // have a frame pointer in the Win64 ABI.  Only ADD instructions may be used
1463   // to deallocate the stack.
1464   // This means that we can use LEA for SP in two situations:
1465   // 1. We *aren't* using the Win64 ABI which means we are free to use LEA.
1466   // 2. We *have* a frame pointer which means we are permitted to use LEA.
1467   return !MF.getTarget().getMCAsmInfo()->usesWindowsCFI() || hasFP(MF);
1468 }
1469 
1470 static bool isFuncletReturnInstr(MachineInstr &MI) {
1471   switch (MI.getOpcode()) {
1472   case X86::CATCHRET:
1473   case X86::CLEANUPRET:
1474     return true;
1475   default:
1476     return false;
1477   }
1478   llvm_unreachable("impossible");
1479 }
1480 
1481 // CLR funclets use a special "Previous Stack Pointer Symbol" slot on the
1482 // stack. It holds a pointer to the bottom of the root function frame.  The
1483 // establisher frame pointer passed to a nested funclet may point to the
1484 // (mostly empty) frame of its parent funclet, but it will need to find
1485 // the frame of the root function to access locals.  To facilitate this,
1486 // every funclet copies the pointer to the bottom of the root function
1487 // frame into a PSPSym slot in its own (mostly empty) stack frame. Using the
1488 // same offset for the PSPSym in the root function frame that's used in the
1489 // funclets' frames allows each funclet to dynamically accept any ancestor
1490 // frame as its establisher argument (the runtime doesn't guarantee the
1491 // immediate parent for some reason lost to history), and also allows the GC,
1492 // which uses the PSPSym for some bookkeeping, to find it in any funclet's
1493 // frame with only a single offset reported for the entire method.
1494 unsigned
1495 X86FrameLowering::getPSPSlotOffsetFromSP(const MachineFunction &MF) const {
1496   const WinEHFuncInfo &Info = *MF.getWinEHFuncInfo();
1497   unsigned SPReg;
1498   int Offset = getFrameIndexReferencePreferSP(MF, Info.PSPSymFrameIdx, SPReg,
1499                                               /*IgnoreSPUpdates*/ true);
1500   assert(Offset >= 0 && SPReg == TRI->getStackRegister());
1501   return static_cast<unsigned>(Offset);
1502 }
1503 
1504 unsigned
1505 X86FrameLowering::getWinEHFuncletFrameSize(const MachineFunction &MF) const {
1506   // This is the size of the pushed CSRs.
1507   unsigned CSSize =
1508       MF.getInfo<X86MachineFunctionInfo>()->getCalleeSavedFrameSize();
1509   // This is the amount of stack a funclet needs to allocate.
1510   unsigned UsedSize;
1511   EHPersonality Personality =
1512       classifyEHPersonality(MF.getFunction()->getPersonalityFn());
1513   if (Personality == EHPersonality::CoreCLR) {
1514     // CLR funclets need to hold enough space to include the PSPSym, at the
1515     // same offset from the stack pointer (immediately after the prolog) as it
1516     // resides at in the main function.
1517     UsedSize = getPSPSlotOffsetFromSP(MF) + SlotSize;
1518   } else {
1519     // Other funclets just need enough stack for outgoing call arguments.
1520     UsedSize = MF.getFrameInfo().getMaxCallFrameSize();
1521   }
1522   // RBP is not included in the callee saved register block. After pushing RBP,
1523   // everything is 16 byte aligned. Everything we allocate before an outgoing
1524   // call must also be 16 byte aligned.
1525   unsigned FrameSizeMinusRBP = alignTo(CSSize + UsedSize, getStackAlignment());
1526   // Subtract out the size of the callee saved registers. This is how much stack
1527   // each funclet will allocate.
1528   return FrameSizeMinusRBP - CSSize;
1529 }
1530 
1531 static bool isTailCallOpcode(unsigned Opc) {
1532     return Opc == X86::TCRETURNri || Opc == X86::TCRETURNdi ||
1533         Opc == X86::TCRETURNmi ||
1534         Opc == X86::TCRETURNri64 || Opc == X86::TCRETURNdi64 ||
1535         Opc == X86::TCRETURNmi64;
1536 }
1537 
1538 void X86FrameLowering::emitEpilogue(MachineFunction &MF,
1539                                     MachineBasicBlock &MBB) const {
1540   const MachineFrameInfo &MFI = MF.getFrameInfo();
1541   X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>();
1542   MachineBasicBlock::iterator Terminator = MBB.getFirstTerminator();
1543   MachineBasicBlock::iterator MBBI = Terminator;
1544   DebugLoc DL;
1545   if (MBBI != MBB.end())
1546     DL = MBBI->getDebugLoc();
1547   // standard x86_64 and NaCl use 64-bit frame/stack pointers, x32 - 32-bit.
1548   const bool Is64BitILP32 = STI.isTarget64BitILP32();
1549   unsigned FramePtr = TRI->getFrameRegister(MF);
1550   unsigned MachineFramePtr =
1551       Is64BitILP32 ? getX86SubSuperRegister(FramePtr, 64) : FramePtr;
1552 
1553   bool IsWin64Prologue = MF.getTarget().getMCAsmInfo()->usesWindowsCFI();
1554   bool NeedsWin64CFI =
1555       IsWin64Prologue && MF.getFunction()->needsUnwindTableEntry();
1556   bool IsFunclet = MBBI == MBB.end() ? false : isFuncletReturnInstr(*MBBI);
1557 
1558   // Get the number of bytes to allocate from the FrameInfo.
1559   uint64_t StackSize = MFI.getStackSize();
1560   uint64_t MaxAlign = calculateMaxStackAlign(MF);
1561   unsigned CSSize = X86FI->getCalleeSavedFrameSize();
1562   bool HasFP = hasFP(MF);
1563   uint64_t NumBytes = 0;
1564 
1565   bool NeedsDwarfCFI =
1566       (!MF.getTarget().getTargetTriple().isOSDarwin() &&
1567        !MF.getTarget().getTargetTriple().isOSWindows()) &&
1568       (MF.getMMI().hasDebugInfo() || MF.getFunction()->needsUnwindTableEntry());
1569 
1570   if (IsFunclet) {
1571     assert(HasFP && "EH funclets without FP not yet implemented");
1572     NumBytes = getWinEHFuncletFrameSize(MF);
1573   } else if (HasFP) {
1574     // Calculate required stack adjustment.
1575     uint64_t FrameSize = StackSize - SlotSize;
1576     NumBytes = FrameSize - CSSize;
1577 
1578     // Callee-saved registers were pushed on stack before the stack was
1579     // realigned.
1580     if (TRI->needsStackRealignment(MF) && !IsWin64Prologue)
1581       NumBytes = alignTo(FrameSize, MaxAlign);
1582   } else {
1583     NumBytes = StackSize - CSSize;
1584   }
1585   uint64_t SEHStackAllocAmt = NumBytes;
1586 
1587   if (HasFP) {
1588     // Pop EBP.
1589     BuildMI(MBB, MBBI, DL, TII.get(Is64Bit ? X86::POP64r : X86::POP32r),
1590             MachineFramePtr)
1591         .setMIFlag(MachineInstr::FrameDestroy);
1592     if (NeedsDwarfCFI) {
1593       unsigned DwarfStackPtr =
1594           TRI->getDwarfRegNum(Is64Bit ? X86::RSP : X86::ESP, true);
1595       BuildCFI(MBB, MBBI, DL, MCCFIInstruction::createDefCfa(
1596                                   nullptr, DwarfStackPtr, -SlotSize));
1597       --MBBI;
1598     }
1599   }
1600 
1601   MachineBasicBlock::iterator FirstCSPop = MBBI;
1602   // Skip the callee-saved pop instructions.
1603   while (MBBI != MBB.begin()) {
1604     MachineBasicBlock::iterator PI = std::prev(MBBI);
1605     unsigned Opc = PI->getOpcode();
1606 
1607     if (Opc != X86::DBG_VALUE && !PI->isTerminator()) {
1608       if ((Opc != X86::POP32r || !PI->getFlag(MachineInstr::FrameDestroy)) &&
1609           (Opc != X86::POP64r || !PI->getFlag(MachineInstr::FrameDestroy)))
1610         break;
1611       FirstCSPop = PI;
1612     }
1613 
1614     --MBBI;
1615   }
1616   MBBI = FirstCSPop;
1617 
1618   if (IsFunclet && Terminator->getOpcode() == X86::CATCHRET)
1619     emitCatchRetReturnValue(MBB, FirstCSPop, &*Terminator);
1620 
1621   if (MBBI != MBB.end())
1622     DL = MBBI->getDebugLoc();
1623 
1624   // If there is an ADD32ri or SUB32ri of ESP immediately before this
1625   // instruction, merge the two instructions.
1626   if (NumBytes || MFI.hasVarSizedObjects())
1627     NumBytes += mergeSPUpdates(MBB, MBBI, true);
1628 
1629   // If dynamic alloca is used, then reset esp to point to the last callee-saved
1630   // slot before popping them off! Same applies for the case, when stack was
1631   // realigned. Don't do this if this was a funclet epilogue, since the funclets
1632   // will not do realignment or dynamic stack allocation.
1633   if ((TRI->needsStackRealignment(MF) || MFI.hasVarSizedObjects()) &&
1634       !IsFunclet) {
1635     if (TRI->needsStackRealignment(MF))
1636       MBBI = FirstCSPop;
1637     unsigned SEHFrameOffset = calculateSetFPREG(SEHStackAllocAmt);
1638     uint64_t LEAAmount =
1639         IsWin64Prologue ? SEHStackAllocAmt - SEHFrameOffset : -CSSize;
1640 
1641     // There are only two legal forms of epilogue:
1642     // - add SEHAllocationSize, %rsp
1643     // - lea SEHAllocationSize(%FramePtr), %rsp
1644     //
1645     // 'mov %FramePtr, %rsp' will not be recognized as an epilogue sequence.
1646     // However, we may use this sequence if we have a frame pointer because the
1647     // effects of the prologue can safely be undone.
1648     if (LEAAmount != 0) {
1649       unsigned Opc = getLEArOpcode(Uses64BitFramePtr);
1650       addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(Opc), StackPtr),
1651                    FramePtr, false, LEAAmount);
1652       --MBBI;
1653     } else {
1654       unsigned Opc = (Uses64BitFramePtr ? X86::MOV64rr : X86::MOV32rr);
1655       BuildMI(MBB, MBBI, DL, TII.get(Opc), StackPtr)
1656         .addReg(FramePtr);
1657       --MBBI;
1658     }
1659   } else if (NumBytes) {
1660     // Adjust stack pointer back: ESP += numbytes.
1661     emitSPUpdate(MBB, MBBI, NumBytes, /*InEpilogue=*/true);
1662     if (!hasFP(MF) && NeedsDwarfCFI) {
1663       // Define the current CFA rule to use the provided offset.
1664       BuildCFI(MBB, MBBI, DL, MCCFIInstruction::createDefCfaOffset(
1665                                   nullptr, -CSSize - SlotSize));
1666     }
1667     --MBBI;
1668   }
1669 
1670   // Windows unwinder will not invoke function's exception handler if IP is
1671   // either in prologue or in epilogue.  This behavior causes a problem when a
1672   // call immediately precedes an epilogue, because the return address points
1673   // into the epilogue.  To cope with that, we insert an epilogue marker here,
1674   // then replace it with a 'nop' if it ends up immediately after a CALL in the
1675   // final emitted code.
1676   if (NeedsWin64CFI && MF.hasWinCFI())
1677     BuildMI(MBB, MBBI, DL, TII.get(X86::SEH_Epilogue));
1678 
1679   if (!hasFP(MF) && NeedsDwarfCFI) {
1680     MBBI = FirstCSPop;
1681     int64_t Offset = -CSSize - SlotSize;
1682     // Mark callee-saved pop instruction.
1683     // Define the current CFA rule to use the provided offset.
1684     while (MBBI != MBB.end()) {
1685       MachineBasicBlock::iterator PI = MBBI;
1686       unsigned Opc = PI->getOpcode();
1687       ++MBBI;
1688       if (Opc == X86::POP32r || Opc == X86::POP64r) {
1689         Offset += SlotSize;
1690         BuildCFI(MBB, MBBI, DL,
1691                  MCCFIInstruction::createDefCfaOffset(nullptr, Offset));
1692       }
1693     }
1694   }
1695 
1696   if (Terminator == MBB.end() || !isTailCallOpcode(Terminator->getOpcode())) {
1697     // Add the return addr area delta back since we are not tail calling.
1698     int Offset = -1 * X86FI->getTCReturnAddrDelta();
1699     assert(Offset >= 0 && "TCDelta should never be positive");
1700     if (Offset) {
1701       // Check for possible merge with preceding ADD instruction.
1702       Offset += mergeSPUpdates(MBB, Terminator, true);
1703       emitSPUpdate(MBB, Terminator, Offset, /*InEpilogue=*/true);
1704     }
1705   }
1706 }
1707 
1708 int X86FrameLowering::getFrameIndexReference(const MachineFunction &MF, int FI,
1709                                              unsigned &FrameReg) const {
1710   const MachineFrameInfo &MFI = MF.getFrameInfo();
1711 
1712   bool IsFixed = MFI.isFixedObjectIndex(FI);
1713   // We can't calculate offset from frame pointer if the stack is realigned,
1714   // so enforce usage of stack/base pointer.  The base pointer is used when we
1715   // have dynamic allocas in addition to dynamic realignment.
1716   if (TRI->hasBasePointer(MF))
1717     FrameReg = IsFixed ? TRI->getFramePtr() : TRI->getBaseRegister();
1718   else if (TRI->needsStackRealignment(MF))
1719     FrameReg = IsFixed ? TRI->getFramePtr() : TRI->getStackRegister();
1720   else
1721     FrameReg = TRI->getFrameRegister(MF);
1722 
1723   // Offset will hold the offset from the stack pointer at function entry to the
1724   // object.
1725   // We need to factor in additional offsets applied during the prologue to the
1726   // frame, base, and stack pointer depending on which is used.
1727   int Offset = MFI.getObjectOffset(FI) - getOffsetOfLocalArea();
1728   const X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>();
1729   unsigned CSSize = X86FI->getCalleeSavedFrameSize();
1730   uint64_t StackSize = MFI.getStackSize();
1731   bool HasFP = hasFP(MF);
1732   bool IsWin64Prologue = MF.getTarget().getMCAsmInfo()->usesWindowsCFI();
1733   int64_t FPDelta = 0;
1734 
1735   if (IsWin64Prologue) {
1736     assert(!MFI.hasCalls() || (StackSize % 16) == 8);
1737 
1738     // Calculate required stack adjustment.
1739     uint64_t FrameSize = StackSize - SlotSize;
1740     // If required, include space for extra hidden slot for stashing base pointer.
1741     if (X86FI->getRestoreBasePointer())
1742       FrameSize += SlotSize;
1743     uint64_t NumBytes = FrameSize - CSSize;
1744 
1745     uint64_t SEHFrameOffset = calculateSetFPREG(NumBytes);
1746     if (FI && FI == X86FI->getFAIndex())
1747       return -SEHFrameOffset;
1748 
1749     // FPDelta is the offset from the "traditional" FP location of the old base
1750     // pointer followed by return address and the location required by the
1751     // restricted Win64 prologue.
1752     // Add FPDelta to all offsets below that go through the frame pointer.
1753     FPDelta = FrameSize - SEHFrameOffset;
1754     assert((!MFI.hasCalls() || (FPDelta % 16) == 0) &&
1755            "FPDelta isn't aligned per the Win64 ABI!");
1756   }
1757 
1758 
1759   if (TRI->hasBasePointer(MF)) {
1760     assert(HasFP && "VLAs and dynamic stack realign, but no FP?!");
1761     if (FI < 0) {
1762       // Skip the saved EBP.
1763       return Offset + SlotSize + FPDelta;
1764     } else {
1765       assert((-(Offset + StackSize)) % MFI.getObjectAlignment(FI) == 0);
1766       return Offset + StackSize;
1767     }
1768   } else if (TRI->needsStackRealignment(MF)) {
1769     if (FI < 0) {
1770       // Skip the saved EBP.
1771       return Offset + SlotSize + FPDelta;
1772     } else {
1773       assert((-(Offset + StackSize)) % MFI.getObjectAlignment(FI) == 0);
1774       return Offset + StackSize;
1775     }
1776     // FIXME: Support tail calls
1777   } else {
1778     if (!HasFP)
1779       return Offset + StackSize;
1780 
1781     // Skip the saved EBP.
1782     Offset += SlotSize;
1783 
1784     // Skip the RETADDR move area
1785     int TailCallReturnAddrDelta = X86FI->getTCReturnAddrDelta();
1786     if (TailCallReturnAddrDelta < 0)
1787       Offset -= TailCallReturnAddrDelta;
1788   }
1789 
1790   return Offset + FPDelta;
1791 }
1792 
1793 int X86FrameLowering::getFrameIndexReferenceSP(const MachineFunction &MF,
1794                                                int FI, unsigned &FrameReg,
1795                                                int Adjustment) const {
1796   const MachineFrameInfo &MFI = MF.getFrameInfo();
1797   FrameReg = TRI->getStackRegister();
1798   return MFI.getObjectOffset(FI) - getOffsetOfLocalArea() + Adjustment;
1799 }
1800 
1801 int
1802 X86FrameLowering::getFrameIndexReferencePreferSP(const MachineFunction &MF,
1803                                                  int FI, unsigned &FrameReg,
1804                                                  bool IgnoreSPUpdates) const {
1805 
1806   const MachineFrameInfo &MFI = MF.getFrameInfo();
1807   // Does not include any dynamic realign.
1808   const uint64_t StackSize = MFI.getStackSize();
1809   // LLVM arranges the stack as follows:
1810   //   ...
1811   //   ARG2
1812   //   ARG1
1813   //   RETADDR
1814   //   PUSH RBP   <-- RBP points here
1815   //   PUSH CSRs
1816   //   ~~~~~~~    <-- possible stack realignment (non-win64)
1817   //   ...
1818   //   STACK OBJECTS
1819   //   ...        <-- RSP after prologue points here
1820   //   ~~~~~~~    <-- possible stack realignment (win64)
1821   //
1822   // if (hasVarSizedObjects()):
1823   //   ...        <-- "base pointer" (ESI/RBX) points here
1824   //   DYNAMIC ALLOCAS
1825   //   ...        <-- RSP points here
1826   //
1827   // Case 1: In the simple case of no stack realignment and no dynamic
1828   // allocas, both "fixed" stack objects (arguments and CSRs) are addressable
1829   // with fixed offsets from RSP.
1830   //
1831   // Case 2: In the case of stack realignment with no dynamic allocas, fixed
1832   // stack objects are addressed with RBP and regular stack objects with RSP.
1833   //
1834   // Case 3: In the case of dynamic allocas and stack realignment, RSP is used
1835   // to address stack arguments for outgoing calls and nothing else. The "base
1836   // pointer" points to local variables, and RBP points to fixed objects.
1837   //
1838   // In cases 2 and 3, we can only answer for non-fixed stack objects, and the
1839   // answer we give is relative to the SP after the prologue, and not the
1840   // SP in the middle of the function.
1841 
1842   if (MFI.isFixedObjectIndex(FI) && TRI->needsStackRealignment(MF) &&
1843       !STI.isTargetWin64())
1844     return getFrameIndexReference(MF, FI, FrameReg);
1845 
1846   // If !hasReservedCallFrame the function might have SP adjustement in the
1847   // body.  So, even though the offset is statically known, it depends on where
1848   // we are in the function.
1849   const TargetFrameLowering *TFI = MF.getSubtarget().getFrameLowering();
1850   if (!IgnoreSPUpdates && !TFI->hasReservedCallFrame(MF))
1851     return getFrameIndexReference(MF, FI, FrameReg);
1852 
1853   // We don't handle tail calls, and shouldn't be seeing them either.
1854   assert(MF.getInfo<X86MachineFunctionInfo>()->getTCReturnAddrDelta() >= 0 &&
1855          "we don't handle this case!");
1856 
1857   // This is how the math works out:
1858   //
1859   //  %rsp grows (i.e. gets lower) left to right. Each box below is
1860   //  one word (eight bytes).  Obj0 is the stack slot we're trying to
1861   //  get to.
1862   //
1863   //    ----------------------------------
1864   //    | BP | Obj0 | Obj1 | ... | ObjN |
1865   //    ----------------------------------
1866   //    ^    ^      ^                   ^
1867   //    A    B      C                   E
1868   //
1869   // A is the incoming stack pointer.
1870   // (B - A) is the local area offset (-8 for x86-64) [1]
1871   // (C - A) is the Offset returned by MFI.getObjectOffset for Obj0 [2]
1872   //
1873   // |(E - B)| is the StackSize (absolute value, positive).  For a
1874   // stack that grown down, this works out to be (B - E). [3]
1875   //
1876   // E is also the value of %rsp after stack has been set up, and we
1877   // want (C - E) -- the value we can add to %rsp to get to Obj0.  Now
1878   // (C - E) == (C - A) - (B - A) + (B - E)
1879   //            { Using [1], [2] and [3] above }
1880   //         == getObjectOffset - LocalAreaOffset + StackSize
1881 
1882   return getFrameIndexReferenceSP(MF, FI, FrameReg, StackSize);
1883 }
1884 
1885 bool X86FrameLowering::assignCalleeSavedSpillSlots(
1886     MachineFunction &MF, const TargetRegisterInfo *TRI,
1887     std::vector<CalleeSavedInfo> &CSI) const {
1888   MachineFrameInfo &MFI = MF.getFrameInfo();
1889   X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>();
1890 
1891   unsigned CalleeSavedFrameSize = 0;
1892   int SpillSlotOffset = getOffsetOfLocalArea() + X86FI->getTCReturnAddrDelta();
1893 
1894   if (hasFP(MF)) {
1895     // emitPrologue always spills frame register the first thing.
1896     SpillSlotOffset -= SlotSize;
1897     MFI.CreateFixedSpillStackObject(SlotSize, SpillSlotOffset);
1898 
1899     // Since emitPrologue and emitEpilogue will handle spilling and restoring of
1900     // the frame register, we can delete it from CSI list and not have to worry
1901     // about avoiding it later.
1902     unsigned FPReg = TRI->getFrameRegister(MF);
1903     for (unsigned i = 0; i < CSI.size(); ++i) {
1904       if (TRI->regsOverlap(CSI[i].getReg(),FPReg)) {
1905         CSI.erase(CSI.begin() + i);
1906         break;
1907       }
1908     }
1909   }
1910 
1911   // Assign slots for GPRs. It increases frame size.
1912   for (unsigned i = CSI.size(); i != 0; --i) {
1913     unsigned Reg = CSI[i - 1].getReg();
1914 
1915     if (!X86::GR64RegClass.contains(Reg) && !X86::GR32RegClass.contains(Reg))
1916       continue;
1917 
1918     SpillSlotOffset -= SlotSize;
1919     CalleeSavedFrameSize += SlotSize;
1920 
1921     int SlotIndex = MFI.CreateFixedSpillStackObject(SlotSize, SpillSlotOffset);
1922     CSI[i - 1].setFrameIdx(SlotIndex);
1923   }
1924 
1925   X86FI->setCalleeSavedFrameSize(CalleeSavedFrameSize);
1926 
1927   // Assign slots for XMMs.
1928   for (unsigned i = CSI.size(); i != 0; --i) {
1929     unsigned Reg = CSI[i - 1].getReg();
1930     if (X86::GR64RegClass.contains(Reg) || X86::GR32RegClass.contains(Reg))
1931       continue;
1932 
1933     const TargetRegisterClass *RC = TRI->getMinimalPhysRegClass(Reg);
1934     unsigned Size = TRI->getSpillSize(*RC);
1935     unsigned Align = TRI->getSpillAlignment(*RC);
1936     // ensure alignment
1937     SpillSlotOffset -= std::abs(SpillSlotOffset) % Align;
1938     // spill into slot
1939     SpillSlotOffset -= Size;
1940     int SlotIndex = MFI.CreateFixedSpillStackObject(Size, SpillSlotOffset);
1941     CSI[i - 1].setFrameIdx(SlotIndex);
1942     MFI.ensureMaxAlignment(Align);
1943   }
1944 
1945   return true;
1946 }
1947 
1948 bool X86FrameLowering::spillCalleeSavedRegisters(
1949     MachineBasicBlock &MBB, MachineBasicBlock::iterator MI,
1950     const std::vector<CalleeSavedInfo> &CSI,
1951     const TargetRegisterInfo *TRI) const {
1952   DebugLoc DL = MBB.findDebugLoc(MI);
1953 
1954   // Don't save CSRs in 32-bit EH funclets. The caller saves EBX, EBP, ESI, EDI
1955   // for us, and there are no XMM CSRs on Win32.
1956   if (MBB.isEHFuncletEntry() && STI.is32Bit() && STI.isOSWindows())
1957     return true;
1958 
1959   // Push GPRs. It increases frame size.
1960   const MachineFunction &MF = *MBB.getParent();
1961   unsigned Opc = STI.is64Bit() ? X86::PUSH64r : X86::PUSH32r;
1962   for (unsigned i = CSI.size(); i != 0; --i) {
1963     unsigned Reg = CSI[i - 1].getReg();
1964 
1965     if (!X86::GR64RegClass.contains(Reg) && !X86::GR32RegClass.contains(Reg))
1966       continue;
1967 
1968     const MachineRegisterInfo &MRI = MF.getRegInfo();
1969     bool isLiveIn = MRI.isLiveIn(Reg);
1970     if (!isLiveIn)
1971       MBB.addLiveIn(Reg);
1972 
1973     // Decide whether we can add a kill flag to the use.
1974     bool CanKill = !isLiveIn;
1975     // Check if any subregister is live-in
1976     if (CanKill) {
1977       for (MCRegAliasIterator AReg(Reg, TRI, false); AReg.isValid(); ++AReg) {
1978         if (MRI.isLiveIn(*AReg)) {
1979           CanKill = false;
1980           break;
1981         }
1982       }
1983     }
1984 
1985     // Do not set a kill flag on values that are also marked as live-in. This
1986     // happens with the @llvm-returnaddress intrinsic and with arguments
1987     // passed in callee saved registers.
1988     // Omitting the kill flags is conservatively correct even if the live-in
1989     // is not used after all.
1990     BuildMI(MBB, MI, DL, TII.get(Opc)).addReg(Reg, getKillRegState(CanKill))
1991       .setMIFlag(MachineInstr::FrameSetup);
1992   }
1993 
1994   // Make XMM regs spilled. X86 does not have ability of push/pop XMM.
1995   // It can be done by spilling XMMs to stack frame.
1996   for (unsigned i = CSI.size(); i != 0; --i) {
1997     unsigned Reg = CSI[i-1].getReg();
1998     if (X86::GR64RegClass.contains(Reg) || X86::GR32RegClass.contains(Reg))
1999       continue;
2000     // Add the callee-saved register as live-in. It's killed at the spill.
2001     MBB.addLiveIn(Reg);
2002     const TargetRegisterClass *RC = TRI->getMinimalPhysRegClass(Reg);
2003 
2004     TII.storeRegToStackSlot(MBB, MI, Reg, true, CSI[i - 1].getFrameIdx(), RC,
2005                             TRI);
2006     --MI;
2007     MI->setFlag(MachineInstr::FrameSetup);
2008     ++MI;
2009   }
2010 
2011   return true;
2012 }
2013 
2014 void X86FrameLowering::emitCatchRetReturnValue(MachineBasicBlock &MBB,
2015                                                MachineBasicBlock::iterator MBBI,
2016                                                MachineInstr *CatchRet) const {
2017   // SEH shouldn't use catchret.
2018   assert(!isAsynchronousEHPersonality(classifyEHPersonality(
2019              MBB.getParent()->getFunction()->getPersonalityFn())) &&
2020          "SEH should not use CATCHRET");
2021   DebugLoc DL = CatchRet->getDebugLoc();
2022   MachineBasicBlock *CatchRetTarget = CatchRet->getOperand(0).getMBB();
2023 
2024   // Fill EAX/RAX with the address of the target block.
2025   if (STI.is64Bit()) {
2026     // LEA64r CatchRetTarget(%rip), %rax
2027     BuildMI(MBB, MBBI, DL, TII.get(X86::LEA64r), X86::RAX)
2028         .addReg(X86::RIP)
2029         .addImm(0)
2030         .addReg(0)
2031         .addMBB(CatchRetTarget)
2032         .addReg(0);
2033   } else {
2034     // MOV32ri $CatchRetTarget, %eax
2035     BuildMI(MBB, MBBI, DL, TII.get(X86::MOV32ri), X86::EAX)
2036         .addMBB(CatchRetTarget);
2037   }
2038 
2039   // Record that we've taken the address of CatchRetTarget and no longer just
2040   // reference it in a terminator.
2041   CatchRetTarget->setHasAddressTaken();
2042 }
2043 
2044 bool X86FrameLowering::restoreCalleeSavedRegisters(MachineBasicBlock &MBB,
2045                                                MachineBasicBlock::iterator MI,
2046                                           std::vector<CalleeSavedInfo> &CSI,
2047                                           const TargetRegisterInfo *TRI) const {
2048   if (CSI.empty())
2049     return false;
2050 
2051   if (MI != MBB.end() && isFuncletReturnInstr(*MI) && STI.isOSWindows()) {
2052     // Don't restore CSRs in 32-bit EH funclets. Matches
2053     // spillCalleeSavedRegisters.
2054     if (STI.is32Bit())
2055       return true;
2056     // Don't restore CSRs before an SEH catchret. SEH except blocks do not form
2057     // funclets. emitEpilogue transforms these to normal jumps.
2058     if (MI->getOpcode() == X86::CATCHRET) {
2059       const Function *Func = MBB.getParent()->getFunction();
2060       bool IsSEH = isAsynchronousEHPersonality(
2061           classifyEHPersonality(Func->getPersonalityFn()));
2062       if (IsSEH)
2063         return true;
2064     }
2065   }
2066 
2067   DebugLoc DL = MBB.findDebugLoc(MI);
2068 
2069   // Reload XMMs from stack frame.
2070   for (unsigned i = 0, e = CSI.size(); i != e; ++i) {
2071     unsigned Reg = CSI[i].getReg();
2072     if (X86::GR64RegClass.contains(Reg) ||
2073         X86::GR32RegClass.contains(Reg))
2074       continue;
2075 
2076     const TargetRegisterClass *RC = TRI->getMinimalPhysRegClass(Reg);
2077     TII.loadRegFromStackSlot(MBB, MI, Reg, CSI[i].getFrameIdx(), RC, TRI);
2078   }
2079 
2080   // POP GPRs.
2081   unsigned Opc = STI.is64Bit() ? X86::POP64r : X86::POP32r;
2082   for (unsigned i = 0, e = CSI.size(); i != e; ++i) {
2083     unsigned Reg = CSI[i].getReg();
2084     if (!X86::GR64RegClass.contains(Reg) &&
2085         !X86::GR32RegClass.contains(Reg))
2086       continue;
2087 
2088     BuildMI(MBB, MI, DL, TII.get(Opc), Reg)
2089         .setMIFlag(MachineInstr::FrameDestroy);
2090   }
2091   return true;
2092 }
2093 
2094 void X86FrameLowering::determineCalleeSaves(MachineFunction &MF,
2095                                             BitVector &SavedRegs,
2096                                             RegScavenger *RS) const {
2097   TargetFrameLowering::determineCalleeSaves(MF, SavedRegs, RS);
2098 
2099   MachineFrameInfo &MFI = MF.getFrameInfo();
2100 
2101   X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>();
2102   int64_t TailCallReturnAddrDelta = X86FI->getTCReturnAddrDelta();
2103 
2104   if (TailCallReturnAddrDelta < 0) {
2105     // create RETURNADDR area
2106     //   arg
2107     //   arg
2108     //   RETADDR
2109     //   { ...
2110     //     RETADDR area
2111     //     ...
2112     //   }
2113     //   [EBP]
2114     MFI.CreateFixedObject(-TailCallReturnAddrDelta,
2115                            TailCallReturnAddrDelta - SlotSize, true);
2116   }
2117 
2118   // Spill the BasePtr if it's used.
2119   if (TRI->hasBasePointer(MF)) {
2120     SavedRegs.set(TRI->getBaseRegister());
2121 
2122     // Allocate a spill slot for EBP if we have a base pointer and EH funclets.
2123     if (MF.hasEHFunclets()) {
2124       int FI = MFI.CreateSpillStackObject(SlotSize, SlotSize);
2125       X86FI->setHasSEHFramePtrSave(true);
2126       X86FI->setSEHFramePtrSaveIndex(FI);
2127     }
2128   }
2129 }
2130 
2131 static bool
2132 HasNestArgument(const MachineFunction *MF) {
2133   const Function *F = MF->getFunction();
2134   for (Function::const_arg_iterator I = F->arg_begin(), E = F->arg_end();
2135        I != E; I++) {
2136     if (I->hasNestAttr())
2137       return true;
2138   }
2139   return false;
2140 }
2141 
2142 /// GetScratchRegister - Get a temp register for performing work in the
2143 /// segmented stack and the Erlang/HiPE stack prologue. Depending on platform
2144 /// and the properties of the function either one or two registers will be
2145 /// needed. Set primary to true for the first register, false for the second.
2146 static unsigned
2147 GetScratchRegister(bool Is64Bit, bool IsLP64, const MachineFunction &MF, bool Primary) {
2148   CallingConv::ID CallingConvention = MF.getFunction()->getCallingConv();
2149 
2150   // Erlang stuff.
2151   if (CallingConvention == CallingConv::HiPE) {
2152     if (Is64Bit)
2153       return Primary ? X86::R14 : X86::R13;
2154     else
2155       return Primary ? X86::EBX : X86::EDI;
2156   }
2157 
2158   if (Is64Bit) {
2159     if (IsLP64)
2160       return Primary ? X86::R11 : X86::R12;
2161     else
2162       return Primary ? X86::R11D : X86::R12D;
2163   }
2164 
2165   bool IsNested = HasNestArgument(&MF);
2166 
2167   if (CallingConvention == CallingConv::X86_FastCall ||
2168       CallingConvention == CallingConv::Fast) {
2169     if (IsNested)
2170       report_fatal_error("Segmented stacks does not support fastcall with "
2171                          "nested function.");
2172     return Primary ? X86::EAX : X86::ECX;
2173   }
2174   if (IsNested)
2175     return Primary ? X86::EDX : X86::EAX;
2176   return Primary ? X86::ECX : X86::EAX;
2177 }
2178 
2179 // The stack limit in the TCB is set to this many bytes above the actual stack
2180 // limit.
2181 static const uint64_t kSplitStackAvailable = 256;
2182 
2183 void X86FrameLowering::adjustForSegmentedStacks(
2184     MachineFunction &MF, MachineBasicBlock &PrologueMBB) const {
2185   MachineFrameInfo &MFI = MF.getFrameInfo();
2186   uint64_t StackSize;
2187   unsigned TlsReg, TlsOffset;
2188   DebugLoc DL;
2189 
2190   // To support shrink-wrapping we would need to insert the new blocks
2191   // at the right place and update the branches to PrologueMBB.
2192   assert(&(*MF.begin()) == &PrologueMBB && "Shrink-wrapping not supported yet");
2193 
2194   unsigned ScratchReg = GetScratchRegister(Is64Bit, IsLP64, MF, true);
2195   assert(!MF.getRegInfo().isLiveIn(ScratchReg) &&
2196          "Scratch register is live-in");
2197 
2198   if (MF.getFunction()->isVarArg())
2199     report_fatal_error("Segmented stacks do not support vararg functions.");
2200   if (!STI.isTargetLinux() && !STI.isTargetDarwin() && !STI.isTargetWin32() &&
2201       !STI.isTargetWin64() && !STI.isTargetFreeBSD() &&
2202       !STI.isTargetDragonFly())
2203     report_fatal_error("Segmented stacks not supported on this platform.");
2204 
2205   // Eventually StackSize will be calculated by a link-time pass; which will
2206   // also decide whether checking code needs to be injected into this particular
2207   // prologue.
2208   StackSize = MFI.getStackSize();
2209 
2210   // Do not generate a prologue for functions with a stack of size zero
2211   if (StackSize == 0)
2212     return;
2213 
2214   MachineBasicBlock *allocMBB = MF.CreateMachineBasicBlock();
2215   MachineBasicBlock *checkMBB = MF.CreateMachineBasicBlock();
2216   X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>();
2217   bool IsNested = false;
2218 
2219   // We need to know if the function has a nest argument only in 64 bit mode.
2220   if (Is64Bit)
2221     IsNested = HasNestArgument(&MF);
2222 
2223   // The MOV R10, RAX needs to be in a different block, since the RET we emit in
2224   // allocMBB needs to be last (terminating) instruction.
2225 
2226   for (const auto &LI : PrologueMBB.liveins()) {
2227     allocMBB->addLiveIn(LI);
2228     checkMBB->addLiveIn(LI);
2229   }
2230 
2231   if (IsNested)
2232     allocMBB->addLiveIn(IsLP64 ? X86::R10 : X86::R10D);
2233 
2234   MF.push_front(allocMBB);
2235   MF.push_front(checkMBB);
2236 
2237   // When the frame size is less than 256 we just compare the stack
2238   // boundary directly to the value of the stack pointer, per gcc.
2239   bool CompareStackPointer = StackSize < kSplitStackAvailable;
2240 
2241   // Read the limit off the current stacklet off the stack_guard location.
2242   if (Is64Bit) {
2243     if (STI.isTargetLinux()) {
2244       TlsReg = X86::FS;
2245       TlsOffset = IsLP64 ? 0x70 : 0x40;
2246     } else if (STI.isTargetDarwin()) {
2247       TlsReg = X86::GS;
2248       TlsOffset = 0x60 + 90*8; // See pthread_machdep.h. Steal TLS slot 90.
2249     } else if (STI.isTargetWin64()) {
2250       TlsReg = X86::GS;
2251       TlsOffset = 0x28; // pvArbitrary, reserved for application use
2252     } else if (STI.isTargetFreeBSD()) {
2253       TlsReg = X86::FS;
2254       TlsOffset = 0x18;
2255     } else if (STI.isTargetDragonFly()) {
2256       TlsReg = X86::FS;
2257       TlsOffset = 0x20; // use tls_tcb.tcb_segstack
2258     } else {
2259       report_fatal_error("Segmented stacks not supported on this platform.");
2260     }
2261 
2262     if (CompareStackPointer)
2263       ScratchReg = IsLP64 ? X86::RSP : X86::ESP;
2264     else
2265       BuildMI(checkMBB, DL, TII.get(IsLP64 ? X86::LEA64r : X86::LEA64_32r), ScratchReg).addReg(X86::RSP)
2266         .addImm(1).addReg(0).addImm(-StackSize).addReg(0);
2267 
2268     BuildMI(checkMBB, DL, TII.get(IsLP64 ? X86::CMP64rm : X86::CMP32rm)).addReg(ScratchReg)
2269       .addReg(0).addImm(1).addReg(0).addImm(TlsOffset).addReg(TlsReg);
2270   } else {
2271     if (STI.isTargetLinux()) {
2272       TlsReg = X86::GS;
2273       TlsOffset = 0x30;
2274     } else if (STI.isTargetDarwin()) {
2275       TlsReg = X86::GS;
2276       TlsOffset = 0x48 + 90*4;
2277     } else if (STI.isTargetWin32()) {
2278       TlsReg = X86::FS;
2279       TlsOffset = 0x14; // pvArbitrary, reserved for application use
2280     } else if (STI.isTargetDragonFly()) {
2281       TlsReg = X86::FS;
2282       TlsOffset = 0x10; // use tls_tcb.tcb_segstack
2283     } else if (STI.isTargetFreeBSD()) {
2284       report_fatal_error("Segmented stacks not supported on FreeBSD i386.");
2285     } else {
2286       report_fatal_error("Segmented stacks not supported on this platform.");
2287     }
2288 
2289     if (CompareStackPointer)
2290       ScratchReg = X86::ESP;
2291     else
2292       BuildMI(checkMBB, DL, TII.get(X86::LEA32r), ScratchReg).addReg(X86::ESP)
2293         .addImm(1).addReg(0).addImm(-StackSize).addReg(0);
2294 
2295     if (STI.isTargetLinux() || STI.isTargetWin32() || STI.isTargetWin64() ||
2296         STI.isTargetDragonFly()) {
2297       BuildMI(checkMBB, DL, TII.get(X86::CMP32rm)).addReg(ScratchReg)
2298         .addReg(0).addImm(0).addReg(0).addImm(TlsOffset).addReg(TlsReg);
2299     } else if (STI.isTargetDarwin()) {
2300 
2301       // TlsOffset doesn't fit into a mod r/m byte so we need an extra register.
2302       unsigned ScratchReg2;
2303       bool SaveScratch2;
2304       if (CompareStackPointer) {
2305         // The primary scratch register is available for holding the TLS offset.
2306         ScratchReg2 = GetScratchRegister(Is64Bit, IsLP64, MF, true);
2307         SaveScratch2 = false;
2308       } else {
2309         // Need to use a second register to hold the TLS offset
2310         ScratchReg2 = GetScratchRegister(Is64Bit, IsLP64, MF, false);
2311 
2312         // Unfortunately, with fastcc the second scratch register may hold an
2313         // argument.
2314         SaveScratch2 = MF.getRegInfo().isLiveIn(ScratchReg2);
2315       }
2316 
2317       // If Scratch2 is live-in then it needs to be saved.
2318       assert((!MF.getRegInfo().isLiveIn(ScratchReg2) || SaveScratch2) &&
2319              "Scratch register is live-in and not saved");
2320 
2321       if (SaveScratch2)
2322         BuildMI(checkMBB, DL, TII.get(X86::PUSH32r))
2323           .addReg(ScratchReg2, RegState::Kill);
2324 
2325       BuildMI(checkMBB, DL, TII.get(X86::MOV32ri), ScratchReg2)
2326         .addImm(TlsOffset);
2327       BuildMI(checkMBB, DL, TII.get(X86::CMP32rm))
2328         .addReg(ScratchReg)
2329         .addReg(ScratchReg2).addImm(1).addReg(0)
2330         .addImm(0)
2331         .addReg(TlsReg);
2332 
2333       if (SaveScratch2)
2334         BuildMI(checkMBB, DL, TII.get(X86::POP32r), ScratchReg2);
2335     }
2336   }
2337 
2338   // This jump is taken if SP >= (Stacklet Limit + Stack Space required).
2339   // It jumps to normal execution of the function body.
2340   BuildMI(checkMBB, DL, TII.get(X86::JA_1)).addMBB(&PrologueMBB);
2341 
2342   // On 32 bit we first push the arguments size and then the frame size. On 64
2343   // bit, we pass the stack frame size in r10 and the argument size in r11.
2344   if (Is64Bit) {
2345     // Functions with nested arguments use R10, so it needs to be saved across
2346     // the call to _morestack
2347 
2348     const unsigned RegAX = IsLP64 ? X86::RAX : X86::EAX;
2349     const unsigned Reg10 = IsLP64 ? X86::R10 : X86::R10D;
2350     const unsigned Reg11 = IsLP64 ? X86::R11 : X86::R11D;
2351     const unsigned MOVrr = IsLP64 ? X86::MOV64rr : X86::MOV32rr;
2352     const unsigned MOVri = IsLP64 ? X86::MOV64ri : X86::MOV32ri;
2353 
2354     if (IsNested)
2355       BuildMI(allocMBB, DL, TII.get(MOVrr), RegAX).addReg(Reg10);
2356 
2357     BuildMI(allocMBB, DL, TII.get(MOVri), Reg10)
2358       .addImm(StackSize);
2359     BuildMI(allocMBB, DL, TII.get(MOVri), Reg11)
2360       .addImm(X86FI->getArgumentStackSize());
2361   } else {
2362     BuildMI(allocMBB, DL, TII.get(X86::PUSHi32))
2363       .addImm(X86FI->getArgumentStackSize());
2364     BuildMI(allocMBB, DL, TII.get(X86::PUSHi32))
2365       .addImm(StackSize);
2366   }
2367 
2368   // __morestack is in libgcc
2369   if (Is64Bit && MF.getTarget().getCodeModel() == CodeModel::Large) {
2370     // Under the large code model, we cannot assume that __morestack lives
2371     // within 2^31 bytes of the call site, so we cannot use pc-relative
2372     // addressing. We cannot perform the call via a temporary register,
2373     // as the rax register may be used to store the static chain, and all
2374     // other suitable registers may be either callee-save or used for
2375     // parameter passing. We cannot use the stack at this point either
2376     // because __morestack manipulates the stack directly.
2377     //
2378     // To avoid these issues, perform an indirect call via a read-only memory
2379     // location containing the address.
2380     //
2381     // This solution is not perfect, as it assumes that the .rodata section
2382     // is laid out within 2^31 bytes of each function body, but this seems
2383     // to be sufficient for JIT.
2384     BuildMI(allocMBB, DL, TII.get(X86::CALL64m))
2385         .addReg(X86::RIP)
2386         .addImm(0)
2387         .addReg(0)
2388         .addExternalSymbol("__morestack_addr")
2389         .addReg(0);
2390     MF.getMMI().setUsesMorestackAddr(true);
2391   } else {
2392     if (Is64Bit)
2393       BuildMI(allocMBB, DL, TII.get(X86::CALL64pcrel32))
2394         .addExternalSymbol("__morestack");
2395     else
2396       BuildMI(allocMBB, DL, TII.get(X86::CALLpcrel32))
2397         .addExternalSymbol("__morestack");
2398   }
2399 
2400   if (IsNested)
2401     BuildMI(allocMBB, DL, TII.get(X86::MORESTACK_RET_RESTORE_R10));
2402   else
2403     BuildMI(allocMBB, DL, TII.get(X86::MORESTACK_RET));
2404 
2405   allocMBB->addSuccessor(&PrologueMBB);
2406 
2407   checkMBB->addSuccessor(allocMBB);
2408   checkMBB->addSuccessor(&PrologueMBB);
2409 
2410 #ifdef EXPENSIVE_CHECKS
2411   MF.verify();
2412 #endif
2413 }
2414 
2415 /// Lookup an ERTS parameter in the !hipe.literals named metadata node.
2416 /// HiPE provides Erlang Runtime System-internal parameters, such as PCB offsets
2417 /// to fields it needs, through a named metadata node "hipe.literals" containing
2418 /// name-value pairs.
2419 static unsigned getHiPELiteral(
2420     NamedMDNode *HiPELiteralsMD, const StringRef LiteralName) {
2421   for (int i = 0, e = HiPELiteralsMD->getNumOperands(); i != e; ++i) {
2422     MDNode *Node = HiPELiteralsMD->getOperand(i);
2423     if (Node->getNumOperands() != 2) continue;
2424     MDString *NodeName = dyn_cast<MDString>(Node->getOperand(0));
2425     ValueAsMetadata *NodeVal = dyn_cast<ValueAsMetadata>(Node->getOperand(1));
2426     if (!NodeName || !NodeVal) continue;
2427     ConstantInt *ValConst = dyn_cast_or_null<ConstantInt>(NodeVal->getValue());
2428     if (ValConst && NodeName->getString() == LiteralName) {
2429       return ValConst->getZExtValue();
2430     }
2431   }
2432 
2433   report_fatal_error("HiPE literal " + LiteralName
2434                      + " required but not provided");
2435 }
2436 
2437 /// Erlang programs may need a special prologue to handle the stack size they
2438 /// might need at runtime. That is because Erlang/OTP does not implement a C
2439 /// stack but uses a custom implementation of hybrid stack/heap architecture.
2440 /// (for more information see Eric Stenman's Ph.D. thesis:
2441 /// http://publications.uu.se/uu/fulltext/nbn_se_uu_diva-2688.pdf)
2442 ///
2443 /// CheckStack:
2444 ///       temp0 = sp - MaxStack
2445 ///       if( temp0 < SP_LIMIT(P) ) goto IncStack else goto OldStart
2446 /// OldStart:
2447 ///       ...
2448 /// IncStack:
2449 ///       call inc_stack   # doubles the stack space
2450 ///       temp0 = sp - MaxStack
2451 ///       if( temp0 < SP_LIMIT(P) ) goto IncStack else goto OldStart
2452 void X86FrameLowering::adjustForHiPEPrologue(
2453     MachineFunction &MF, MachineBasicBlock &PrologueMBB) const {
2454   MachineFrameInfo &MFI = MF.getFrameInfo();
2455   DebugLoc DL;
2456 
2457   // To support shrink-wrapping we would need to insert the new blocks
2458   // at the right place and update the branches to PrologueMBB.
2459   assert(&(*MF.begin()) == &PrologueMBB && "Shrink-wrapping not supported yet");
2460 
2461   // HiPE-specific values
2462   NamedMDNode *HiPELiteralsMD = MF.getMMI().getModule()
2463     ->getNamedMetadata("hipe.literals");
2464   if (!HiPELiteralsMD)
2465     report_fatal_error(
2466         "Can't generate HiPE prologue without runtime parameters");
2467   const unsigned HipeLeafWords
2468     = getHiPELiteral(HiPELiteralsMD,
2469                      Is64Bit ? "AMD64_LEAF_WORDS" : "X86_LEAF_WORDS");
2470   const unsigned CCRegisteredArgs = Is64Bit ? 6 : 5;
2471   const unsigned Guaranteed = HipeLeafWords * SlotSize;
2472   unsigned CallerStkArity = MF.getFunction()->arg_size() > CCRegisteredArgs ?
2473                             MF.getFunction()->arg_size() - CCRegisteredArgs : 0;
2474   unsigned MaxStack = MFI.getStackSize() + CallerStkArity*SlotSize + SlotSize;
2475 
2476   assert(STI.isTargetLinux() &&
2477          "HiPE prologue is only supported on Linux operating systems.");
2478 
2479   // Compute the largest caller's frame that is needed to fit the callees'
2480   // frames. This 'MaxStack' is computed from:
2481   //
2482   // a) the fixed frame size, which is the space needed for all spilled temps,
2483   // b) outgoing on-stack parameter areas, and
2484   // c) the minimum stack space this function needs to make available for the
2485   //    functions it calls (a tunable ABI property).
2486   if (MFI.hasCalls()) {
2487     unsigned MoreStackForCalls = 0;
2488 
2489     for (auto &MBB : MF) {
2490       for (auto &MI : MBB) {
2491         if (!MI.isCall())
2492           continue;
2493 
2494         // Get callee operand.
2495         const MachineOperand &MO = MI.getOperand(0);
2496 
2497         // Only take account of global function calls (no closures etc.).
2498         if (!MO.isGlobal())
2499           continue;
2500 
2501         const Function *F = dyn_cast<Function>(MO.getGlobal());
2502         if (!F)
2503           continue;
2504 
2505         // Do not update 'MaxStack' for primitive and built-in functions
2506         // (encoded with names either starting with "erlang."/"bif_" or not
2507         // having a ".", such as a simple <Module>.<Function>.<Arity>, or an
2508         // "_", such as the BIF "suspend_0") as they are executed on another
2509         // stack.
2510         if (F->getName().find("erlang.") != StringRef::npos ||
2511             F->getName().find("bif_") != StringRef::npos ||
2512             F->getName().find_first_of("._") == StringRef::npos)
2513           continue;
2514 
2515         unsigned CalleeStkArity =
2516           F->arg_size() > CCRegisteredArgs ? F->arg_size()-CCRegisteredArgs : 0;
2517         if (HipeLeafWords - 1 > CalleeStkArity)
2518           MoreStackForCalls = std::max(MoreStackForCalls,
2519                                (HipeLeafWords - 1 - CalleeStkArity) * SlotSize);
2520       }
2521     }
2522     MaxStack += MoreStackForCalls;
2523   }
2524 
2525   // If the stack frame needed is larger than the guaranteed then runtime checks
2526   // and calls to "inc_stack_0" BIF should be inserted in the assembly prologue.
2527   if (MaxStack > Guaranteed) {
2528     MachineBasicBlock *stackCheckMBB = MF.CreateMachineBasicBlock();
2529     MachineBasicBlock *incStackMBB = MF.CreateMachineBasicBlock();
2530 
2531     for (const auto &LI : PrologueMBB.liveins()) {
2532       stackCheckMBB->addLiveIn(LI);
2533       incStackMBB->addLiveIn(LI);
2534     }
2535 
2536     MF.push_front(incStackMBB);
2537     MF.push_front(stackCheckMBB);
2538 
2539     unsigned ScratchReg, SPReg, PReg, SPLimitOffset;
2540     unsigned LEAop, CMPop, CALLop;
2541     SPLimitOffset = getHiPELiteral(HiPELiteralsMD, "P_NSP_LIMIT");
2542     if (Is64Bit) {
2543       SPReg = X86::RSP;
2544       PReg  = X86::RBP;
2545       LEAop = X86::LEA64r;
2546       CMPop = X86::CMP64rm;
2547       CALLop = X86::CALL64pcrel32;
2548     } else {
2549       SPReg = X86::ESP;
2550       PReg  = X86::EBP;
2551       LEAop = X86::LEA32r;
2552       CMPop = X86::CMP32rm;
2553       CALLop = X86::CALLpcrel32;
2554     }
2555 
2556     ScratchReg = GetScratchRegister(Is64Bit, IsLP64, MF, true);
2557     assert(!MF.getRegInfo().isLiveIn(ScratchReg) &&
2558            "HiPE prologue scratch register is live-in");
2559 
2560     // Create new MBB for StackCheck:
2561     addRegOffset(BuildMI(stackCheckMBB, DL, TII.get(LEAop), ScratchReg),
2562                  SPReg, false, -MaxStack);
2563     // SPLimitOffset is in a fixed heap location (pointed by BP).
2564     addRegOffset(BuildMI(stackCheckMBB, DL, TII.get(CMPop))
2565                  .addReg(ScratchReg), PReg, false, SPLimitOffset);
2566     BuildMI(stackCheckMBB, DL, TII.get(X86::JAE_1)).addMBB(&PrologueMBB);
2567 
2568     // Create new MBB for IncStack:
2569     BuildMI(incStackMBB, DL, TII.get(CALLop)).
2570       addExternalSymbol("inc_stack_0");
2571     addRegOffset(BuildMI(incStackMBB, DL, TII.get(LEAop), ScratchReg),
2572                  SPReg, false, -MaxStack);
2573     addRegOffset(BuildMI(incStackMBB, DL, TII.get(CMPop))
2574                  .addReg(ScratchReg), PReg, false, SPLimitOffset);
2575     BuildMI(incStackMBB, DL, TII.get(X86::JLE_1)).addMBB(incStackMBB);
2576 
2577     stackCheckMBB->addSuccessor(&PrologueMBB, {99, 100});
2578     stackCheckMBB->addSuccessor(incStackMBB, {1, 100});
2579     incStackMBB->addSuccessor(&PrologueMBB, {99, 100});
2580     incStackMBB->addSuccessor(incStackMBB, {1, 100});
2581   }
2582 #ifdef EXPENSIVE_CHECKS
2583   MF.verify();
2584 #endif
2585 }
2586 
2587 bool X86FrameLowering::adjustStackWithPops(MachineBasicBlock &MBB,
2588                                            MachineBasicBlock::iterator MBBI,
2589                                            const DebugLoc &DL,
2590                                            int Offset) const {
2591 
2592   if (Offset <= 0)
2593     return false;
2594 
2595   if (Offset % SlotSize)
2596     return false;
2597 
2598   int NumPops = Offset / SlotSize;
2599   // This is only worth it if we have at most 2 pops.
2600   if (NumPops != 1 && NumPops != 2)
2601     return false;
2602 
2603   // Handle only the trivial case where the adjustment directly follows
2604   // a call. This is the most common one, anyway.
2605   if (MBBI == MBB.begin())
2606     return false;
2607   MachineBasicBlock::iterator Prev = std::prev(MBBI);
2608   if (!Prev->isCall() || !Prev->getOperand(1).isRegMask())
2609     return false;
2610 
2611   unsigned Regs[2];
2612   unsigned FoundRegs = 0;
2613 
2614   auto &MRI = MBB.getParent()->getRegInfo();
2615   auto RegMask = Prev->getOperand(1);
2616 
2617   auto &RegClass =
2618       Is64Bit ? X86::GR64_NOREX_NOSPRegClass : X86::GR32_NOREX_NOSPRegClass;
2619   // Try to find up to NumPops free registers.
2620   for (auto Candidate : RegClass) {
2621 
2622     // Poor man's liveness:
2623     // Since we're immediately after a call, any register that is clobbered
2624     // by the call and not defined by it can be considered dead.
2625     if (!RegMask.clobbersPhysReg(Candidate))
2626       continue;
2627 
2628     // Don't clobber reserved registers
2629     if (MRI.isReserved(Candidate))
2630       continue;
2631 
2632     bool IsDef = false;
2633     for (const MachineOperand &MO : Prev->implicit_operands()) {
2634       if (MO.isReg() && MO.isDef() &&
2635           TRI->isSuperOrSubRegisterEq(MO.getReg(), Candidate)) {
2636         IsDef = true;
2637         break;
2638       }
2639     }
2640 
2641     if (IsDef)
2642       continue;
2643 
2644     Regs[FoundRegs++] = Candidate;
2645     if (FoundRegs == (unsigned)NumPops)
2646       break;
2647   }
2648 
2649   if (FoundRegs == 0)
2650     return false;
2651 
2652   // If we found only one free register, but need two, reuse the same one twice.
2653   while (FoundRegs < (unsigned)NumPops)
2654     Regs[FoundRegs++] = Regs[0];
2655 
2656   for (int i = 0; i < NumPops; ++i)
2657     BuildMI(MBB, MBBI, DL,
2658             TII.get(STI.is64Bit() ? X86::POP64r : X86::POP32r), Regs[i]);
2659 
2660   return true;
2661 }
2662 
2663 MachineBasicBlock::iterator X86FrameLowering::
2664 eliminateCallFramePseudoInstr(MachineFunction &MF, MachineBasicBlock &MBB,
2665                               MachineBasicBlock::iterator I) const {
2666   bool reserveCallFrame = hasReservedCallFrame(MF);
2667   unsigned Opcode = I->getOpcode();
2668   bool isDestroy = Opcode == TII.getCallFrameDestroyOpcode();
2669   DebugLoc DL = I->getDebugLoc();
2670   uint64_t Amount = !reserveCallFrame ? TII.getFrameSize(*I) : 0;
2671   uint64_t InternalAmt = (isDestroy || Amount) ? TII.getFrameAdjustment(*I) : 0;
2672   I = MBB.erase(I);
2673   auto InsertPos = skipDebugInstructionsForward(I, MBB.end());
2674 
2675   if (!reserveCallFrame) {
2676     // If the stack pointer can be changed after prologue, turn the
2677     // adjcallstackup instruction into a 'sub ESP, <amt>' and the
2678     // adjcallstackdown instruction into 'add ESP, <amt>'
2679 
2680     // We need to keep the stack aligned properly.  To do this, we round the
2681     // amount of space needed for the outgoing arguments up to the next
2682     // alignment boundary.
2683     unsigned StackAlign = getStackAlignment();
2684     Amount = alignTo(Amount, StackAlign);
2685 
2686     MachineModuleInfo &MMI = MF.getMMI();
2687     const Function *Fn = MF.getFunction();
2688     bool WindowsCFI = MF.getTarget().getMCAsmInfo()->usesWindowsCFI();
2689     bool DwarfCFI = !WindowsCFI &&
2690                     (MMI.hasDebugInfo() || Fn->needsUnwindTableEntry());
2691 
2692     // If we have any exception handlers in this function, and we adjust
2693     // the SP before calls, we may need to indicate this to the unwinder
2694     // using GNU_ARGS_SIZE. Note that this may be necessary even when
2695     // Amount == 0, because the preceding function may have set a non-0
2696     // GNU_ARGS_SIZE.
2697     // TODO: We don't need to reset this between subsequent functions,
2698     // if it didn't change.
2699     bool HasDwarfEHHandlers = !WindowsCFI && !MF.getLandingPads().empty();
2700 
2701     if (HasDwarfEHHandlers && !isDestroy &&
2702         MF.getInfo<X86MachineFunctionInfo>()->getHasPushSequences())
2703       BuildCFI(MBB, InsertPos, DL,
2704                MCCFIInstruction::createGnuArgsSize(nullptr, Amount));
2705 
2706     if (Amount == 0)
2707       return I;
2708 
2709     // Factor out the amount that gets handled inside the sequence
2710     // (Pushes of argument for frame setup, callee pops for frame destroy)
2711     Amount -= InternalAmt;
2712 
2713     // TODO: This is needed only if we require precise CFA.
2714     // If this is a callee-pop calling convention, emit a CFA adjust for
2715     // the amount the callee popped.
2716     if (isDestroy && InternalAmt && DwarfCFI && !hasFP(MF))
2717       BuildCFI(MBB, InsertPos, DL,
2718                MCCFIInstruction::createAdjustCfaOffset(nullptr, -InternalAmt));
2719 
2720     // Add Amount to SP to destroy a frame, or subtract to setup.
2721     int64_t StackAdjustment = isDestroy ? Amount : -Amount;
2722     int64_t CfaAdjustment = -StackAdjustment;
2723 
2724     if (StackAdjustment) {
2725       // Merge with any previous or following adjustment instruction. Note: the
2726       // instructions merged with here do not have CFI, so their stack
2727       // adjustments do not feed into CfaAdjustment.
2728       StackAdjustment += mergeSPUpdates(MBB, InsertPos, true);
2729       StackAdjustment += mergeSPUpdates(MBB, InsertPos, false);
2730 
2731       if (StackAdjustment) {
2732         if (!(Fn->optForMinSize() &&
2733               adjustStackWithPops(MBB, InsertPos, DL, StackAdjustment)))
2734           BuildStackAdjustment(MBB, InsertPos, DL, StackAdjustment,
2735                                /*InEpilogue=*/false);
2736       }
2737     }
2738 
2739     if (DwarfCFI && !hasFP(MF)) {
2740       // If we don't have FP, but need to generate unwind information,
2741       // we need to set the correct CFA offset after the stack adjustment.
2742       // How much we adjust the CFA offset depends on whether we're emitting
2743       // CFI only for EH purposes or for debugging. EH only requires the CFA
2744       // offset to be correct at each call site, while for debugging we want
2745       // it to be more precise.
2746 
2747       // TODO: When not using precise CFA, we also need to adjust for the
2748       // InternalAmt here.
2749       if (CfaAdjustment) {
2750         BuildCFI(MBB, InsertPos, DL,
2751                  MCCFIInstruction::createAdjustCfaOffset(nullptr,
2752                                                          CfaAdjustment));
2753       }
2754     }
2755 
2756     return I;
2757   }
2758 
2759   if (isDestroy && InternalAmt) {
2760     // If we are performing frame pointer elimination and if the callee pops
2761     // something off the stack pointer, add it back.  We do this until we have
2762     // more advanced stack pointer tracking ability.
2763     // We are not tracking the stack pointer adjustment by the callee, so make
2764     // sure we restore the stack pointer immediately after the call, there may
2765     // be spill code inserted between the CALL and ADJCALLSTACKUP instructions.
2766     MachineBasicBlock::iterator CI = I;
2767     MachineBasicBlock::iterator B = MBB.begin();
2768     while (CI != B && !std::prev(CI)->isCall())
2769       --CI;
2770     BuildStackAdjustment(MBB, CI, DL, -InternalAmt, /*InEpilogue=*/false);
2771   }
2772 
2773   return I;
2774 }
2775 
2776 bool X86FrameLowering::canUseAsPrologue(const MachineBasicBlock &MBB) const {
2777   assert(MBB.getParent() && "Block is not attached to a function!");
2778   const MachineFunction &MF = *MBB.getParent();
2779   return !TRI->needsStackRealignment(MF) || !MBB.isLiveIn(X86::EFLAGS);
2780 }
2781 
2782 bool X86FrameLowering::canUseAsEpilogue(const MachineBasicBlock &MBB) const {
2783   assert(MBB.getParent() && "Block is not attached to a function!");
2784 
2785   // Win64 has strict requirements in terms of epilogue and we are
2786   // not taking a chance at messing with them.
2787   // I.e., unless this block is already an exit block, we can't use
2788   // it as an epilogue.
2789   if (STI.isTargetWin64() && !MBB.succ_empty() && !MBB.isReturnBlock())
2790     return false;
2791 
2792   if (canUseLEAForSPInEpilogue(*MBB.getParent()))
2793     return true;
2794 
2795   // If we cannot use LEA to adjust SP, we may need to use ADD, which
2796   // clobbers the EFLAGS. Check that we do not need to preserve it,
2797   // otherwise, conservatively assume this is not
2798   // safe to insert the epilogue here.
2799   return !flagsNeedToBePreservedBeforeTheTerminators(MBB);
2800 }
2801 
2802 bool X86FrameLowering::enableShrinkWrapping(const MachineFunction &MF) const {
2803   // If we may need to emit frameless compact unwind information, give
2804   // up as this is currently broken: PR25614.
2805   return (MF.getFunction()->hasFnAttribute(Attribute::NoUnwind) || hasFP(MF)) &&
2806          // The lowering of segmented stack and HiPE only support entry blocks
2807          // as prologue blocks: PR26107.
2808          // This limitation may be lifted if we fix:
2809          // - adjustForSegmentedStacks
2810          // - adjustForHiPEPrologue
2811          MF.getFunction()->getCallingConv() != CallingConv::HiPE &&
2812          !MF.shouldSplitStack();
2813 }
2814 
2815 MachineBasicBlock::iterator X86FrameLowering::restoreWin32EHStackPointers(
2816     MachineBasicBlock &MBB, MachineBasicBlock::iterator MBBI,
2817     const DebugLoc &DL, bool RestoreSP) const {
2818   assert(STI.isTargetWindowsMSVC() && "funclets only supported in MSVC env");
2819   assert(STI.isTargetWin32() && "EBP/ESI restoration only required on win32");
2820   assert(STI.is32Bit() && !Uses64BitFramePtr &&
2821          "restoring EBP/ESI on non-32-bit target");
2822 
2823   MachineFunction &MF = *MBB.getParent();
2824   unsigned FramePtr = TRI->getFrameRegister(MF);
2825   unsigned BasePtr = TRI->getBaseRegister();
2826   WinEHFuncInfo &FuncInfo = *MF.getWinEHFuncInfo();
2827   X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>();
2828   MachineFrameInfo &MFI = MF.getFrameInfo();
2829 
2830   // FIXME: Don't set FrameSetup flag in catchret case.
2831 
2832   int FI = FuncInfo.EHRegNodeFrameIndex;
2833   int EHRegSize = MFI.getObjectSize(FI);
2834 
2835   if (RestoreSP) {
2836     // MOV32rm -EHRegSize(%ebp), %esp
2837     addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV32rm), X86::ESP),
2838                  X86::EBP, true, -EHRegSize)
2839         .setMIFlag(MachineInstr::FrameSetup);
2840   }
2841 
2842   unsigned UsedReg;
2843   int EHRegOffset = getFrameIndexReference(MF, FI, UsedReg);
2844   int EndOffset = -EHRegOffset - EHRegSize;
2845   FuncInfo.EHRegNodeEndOffset = EndOffset;
2846 
2847   if (UsedReg == FramePtr) {
2848     // ADD $offset, %ebp
2849     unsigned ADDri = getADDriOpcode(false, EndOffset);
2850     BuildMI(MBB, MBBI, DL, TII.get(ADDri), FramePtr)
2851         .addReg(FramePtr)
2852         .addImm(EndOffset)
2853         .setMIFlag(MachineInstr::FrameSetup)
2854         ->getOperand(3)
2855         .setIsDead();
2856     assert(EndOffset >= 0 &&
2857            "end of registration object above normal EBP position!");
2858   } else if (UsedReg == BasePtr) {
2859     // LEA offset(%ebp), %esi
2860     addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::LEA32r), BasePtr),
2861                  FramePtr, false, EndOffset)
2862         .setMIFlag(MachineInstr::FrameSetup);
2863     // MOV32rm SavedEBPOffset(%esi), %ebp
2864     assert(X86FI->getHasSEHFramePtrSave());
2865     int Offset =
2866         getFrameIndexReference(MF, X86FI->getSEHFramePtrSaveIndex(), UsedReg);
2867     assert(UsedReg == BasePtr);
2868     addRegOffset(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV32rm), FramePtr),
2869                  UsedReg, true, Offset)
2870         .setMIFlag(MachineInstr::FrameSetup);
2871   } else {
2872     llvm_unreachable("32-bit frames with WinEH must use FramePtr or BasePtr");
2873   }
2874   return MBBI;
2875 }
2876 
2877 int X86FrameLowering::getInitialCFAOffset(const MachineFunction &MF) const {
2878   return TRI->getSlotSize();
2879 }
2880 
2881 unsigned X86FrameLowering::getInitialCFARegister(const MachineFunction &MF)
2882     const {
2883   return TRI->getDwarfRegNum(StackPtr, true);
2884 }
2885 
2886 namespace {
2887 // Struct used by orderFrameObjects to help sort the stack objects.
2888 struct X86FrameSortingObject {
2889   bool IsValid = false;         // true if we care about this Object.
2890   unsigned ObjectIndex = 0;     // Index of Object into MFI list.
2891   unsigned ObjectSize = 0;      // Size of Object in bytes.
2892   unsigned ObjectAlignment = 1; // Alignment of Object in bytes.
2893   unsigned ObjectNumUses = 0;   // Object static number of uses.
2894 };
2895 
2896 // The comparison function we use for std::sort to order our local
2897 // stack symbols. The current algorithm is to use an estimated
2898 // "density". This takes into consideration the size and number of
2899 // uses each object has in order to roughly minimize code size.
2900 // So, for example, an object of size 16B that is referenced 5 times
2901 // will get higher priority than 4 4B objects referenced 1 time each.
2902 // It's not perfect and we may be able to squeeze a few more bytes out of
2903 // it (for example : 0(esp) requires fewer bytes, symbols allocated at the
2904 // fringe end can have special consideration, given their size is less
2905 // important, etc.), but the algorithmic complexity grows too much to be
2906 // worth the extra gains we get. This gets us pretty close.
2907 // The final order leaves us with objects with highest priority going
2908 // at the end of our list.
2909 struct X86FrameSortingComparator {
2910   inline bool operator()(const X86FrameSortingObject &A,
2911                          const X86FrameSortingObject &B) {
2912     uint64_t DensityAScaled, DensityBScaled;
2913 
2914     // For consistency in our comparison, all invalid objects are placed
2915     // at the end. This also allows us to stop walking when we hit the
2916     // first invalid item after it's all sorted.
2917     if (!A.IsValid)
2918       return false;
2919     if (!B.IsValid)
2920       return true;
2921 
2922     // The density is calculated by doing :
2923     //     (double)DensityA = A.ObjectNumUses / A.ObjectSize
2924     //     (double)DensityB = B.ObjectNumUses / B.ObjectSize
2925     // Since this approach may cause inconsistencies in
2926     // the floating point <, >, == comparisons, depending on the floating
2927     // point model with which the compiler was built, we're going
2928     // to scale both sides by multiplying with
2929     // A.ObjectSize * B.ObjectSize. This ends up factoring away
2930     // the division and, with it, the need for any floating point
2931     // arithmetic.
2932     DensityAScaled = static_cast<uint64_t>(A.ObjectNumUses) *
2933       static_cast<uint64_t>(B.ObjectSize);
2934     DensityBScaled = static_cast<uint64_t>(B.ObjectNumUses) *
2935       static_cast<uint64_t>(A.ObjectSize);
2936 
2937     // If the two densities are equal, prioritize highest alignment
2938     // objects. This allows for similar alignment objects
2939     // to be packed together (given the same density).
2940     // There's room for improvement here, also, since we can pack
2941     // similar alignment (different density) objects next to each
2942     // other to save padding. This will also require further
2943     // complexity/iterations, and the overall gain isn't worth it,
2944     // in general. Something to keep in mind, though.
2945     if (DensityAScaled == DensityBScaled)
2946       return A.ObjectAlignment < B.ObjectAlignment;
2947 
2948     return DensityAScaled < DensityBScaled;
2949   }
2950 };
2951 } // namespace
2952 
2953 // Order the symbols in the local stack.
2954 // We want to place the local stack objects in some sort of sensible order.
2955 // The heuristic we use is to try and pack them according to static number
2956 // of uses and size of object in order to minimize code size.
2957 void X86FrameLowering::orderFrameObjects(
2958     const MachineFunction &MF, SmallVectorImpl<int> &ObjectsToAllocate) const {
2959   const MachineFrameInfo &MFI = MF.getFrameInfo();
2960 
2961   // Don't waste time if there's nothing to do.
2962   if (ObjectsToAllocate.empty())
2963     return;
2964 
2965   // Create an array of all MFI objects. We won't need all of these
2966   // objects, but we're going to create a full array of them to make
2967   // it easier to index into when we're counting "uses" down below.
2968   // We want to be able to easily/cheaply access an object by simply
2969   // indexing into it, instead of having to search for it every time.
2970   std::vector<X86FrameSortingObject> SortingObjects(MFI.getObjectIndexEnd());
2971 
2972   // Walk the objects we care about and mark them as such in our working
2973   // struct.
2974   for (auto &Obj : ObjectsToAllocate) {
2975     SortingObjects[Obj].IsValid = true;
2976     SortingObjects[Obj].ObjectIndex = Obj;
2977     SortingObjects[Obj].ObjectAlignment = MFI.getObjectAlignment(Obj);
2978     // Set the size.
2979     int ObjectSize = MFI.getObjectSize(Obj);
2980     if (ObjectSize == 0)
2981       // Variable size. Just use 4.
2982       SortingObjects[Obj].ObjectSize = 4;
2983     else
2984       SortingObjects[Obj].ObjectSize = ObjectSize;
2985   }
2986 
2987   // Count the number of uses for each object.
2988   for (auto &MBB : MF) {
2989     for (auto &MI : MBB) {
2990       if (MI.isDebugValue())
2991         continue;
2992       for (const MachineOperand &MO : MI.operands()) {
2993         // Check to see if it's a local stack symbol.
2994         if (!MO.isFI())
2995           continue;
2996         int Index = MO.getIndex();
2997         // Check to see if it falls within our range, and is tagged
2998         // to require ordering.
2999         if (Index >= 0 && Index < MFI.getObjectIndexEnd() &&
3000             SortingObjects[Index].IsValid)
3001           SortingObjects[Index].ObjectNumUses++;
3002       }
3003     }
3004   }
3005 
3006   // Sort the objects using X86FrameSortingAlgorithm (see its comment for
3007   // info).
3008   std::stable_sort(SortingObjects.begin(), SortingObjects.end(),
3009                    X86FrameSortingComparator());
3010 
3011   // Now modify the original list to represent the final order that
3012   // we want. The order will depend on whether we're going to access them
3013   // from the stack pointer or the frame pointer. For SP, the list should
3014   // end up with the END containing objects that we want with smaller offsets.
3015   // For FP, it should be flipped.
3016   int i = 0;
3017   for (auto &Obj : SortingObjects) {
3018     // All invalid items are sorted at the end, so it's safe to stop.
3019     if (!Obj.IsValid)
3020       break;
3021     ObjectsToAllocate[i++] = Obj.ObjectIndex;
3022   }
3023 
3024   // Flip it if we're accessing off of the FP.
3025   if (!TRI->needsStackRealignment(MF) && hasFP(MF))
3026     std::reverse(ObjectsToAllocate.begin(), ObjectsToAllocate.end());
3027 }
3028 
3029 
3030 unsigned X86FrameLowering::getWinEHParentFrameOffset(const MachineFunction &MF) const {
3031   // RDX, the parent frame pointer, is homed into 16(%rsp) in the prologue.
3032   unsigned Offset = 16;
3033   // RBP is immediately pushed.
3034   Offset += SlotSize;
3035   // All callee-saved registers are then pushed.
3036   Offset += MF.getInfo<X86MachineFunctionInfo>()->getCalleeSavedFrameSize();
3037   // Every funclet allocates enough stack space for the largest outgoing call.
3038   Offset += getWinEHFuncletFrameSize(MF);
3039   return Offset;
3040 }
3041 
3042 void X86FrameLowering::processFunctionBeforeFrameFinalized(
3043     MachineFunction &MF, RegScavenger *RS) const {
3044   // Mark the function as not having WinCFI. We will set it back to true in
3045   // emitPrologue if it gets called and emits CFI.
3046   MF.setHasWinCFI(false);
3047 
3048   // If this function isn't doing Win64-style C++ EH, we don't need to do
3049   // anything.
3050   const Function *Fn = MF.getFunction();
3051   if (!STI.is64Bit() || !MF.hasEHFunclets() ||
3052       classifyEHPersonality(Fn->getPersonalityFn()) != EHPersonality::MSVC_CXX)
3053     return;
3054 
3055   // Win64 C++ EH needs to allocate the UnwindHelp object at some fixed offset
3056   // relative to RSP after the prologue.  Find the offset of the last fixed
3057   // object, so that we can allocate a slot immediately following it. If there
3058   // were no fixed objects, use offset -SlotSize, which is immediately after the
3059   // return address. Fixed objects have negative frame indices.
3060   MachineFrameInfo &MFI = MF.getFrameInfo();
3061   WinEHFuncInfo &EHInfo = *MF.getWinEHFuncInfo();
3062   int64_t MinFixedObjOffset = -SlotSize;
3063   for (int I = MFI.getObjectIndexBegin(); I < 0; ++I)
3064     MinFixedObjOffset = std::min(MinFixedObjOffset, MFI.getObjectOffset(I));
3065 
3066   for (WinEHTryBlockMapEntry &TBME : EHInfo.TryBlockMap) {
3067     for (WinEHHandlerType &H : TBME.HandlerArray) {
3068       int FrameIndex = H.CatchObj.FrameIndex;
3069       if (FrameIndex != INT_MAX) {
3070         // Ensure alignment.
3071         unsigned Align = MFI.getObjectAlignment(FrameIndex);
3072         MinFixedObjOffset -= std::abs(MinFixedObjOffset) % Align;
3073         MinFixedObjOffset -= MFI.getObjectSize(FrameIndex);
3074         MFI.setObjectOffset(FrameIndex, MinFixedObjOffset);
3075       }
3076     }
3077   }
3078 
3079   // Ensure alignment.
3080   MinFixedObjOffset -= std::abs(MinFixedObjOffset) % 8;
3081   int64_t UnwindHelpOffset = MinFixedObjOffset - SlotSize;
3082   int UnwindHelpFI =
3083       MFI.CreateFixedObject(SlotSize, UnwindHelpOffset, /*Immutable=*/false);
3084   EHInfo.UnwindHelpFrameIdx = UnwindHelpFI;
3085 
3086   // Store -2 into UnwindHelp on function entry. We have to scan forwards past
3087   // other frame setup instructions.
3088   MachineBasicBlock &MBB = MF.front();
3089   auto MBBI = MBB.begin();
3090   while (MBBI != MBB.end() && MBBI->getFlag(MachineInstr::FrameSetup))
3091     ++MBBI;
3092 
3093   DebugLoc DL = MBB.findDebugLoc(MBBI);
3094   addFrameReference(BuildMI(MBB, MBBI, DL, TII.get(X86::MOV64mi32)),
3095                     UnwindHelpFI)
3096       .addImm(-2);
3097 }
3098