1 //===-- X86FastISel.cpp - X86 FastISel implementation ---------------------===//
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 defines the X86-specific support for the FastISel class. Much
11 // of the target-specific code is generated by tablegen in the file
12 // X86GenFastISel.inc, which is #included here.
13 //
14 //===----------------------------------------------------------------------===//
15 
16 #include "X86.h"
17 #include "X86CallingConv.h"
18 #include "X86InstrBuilder.h"
19 #include "X86InstrInfo.h"
20 #include "X86MachineFunctionInfo.h"
21 #include "X86RegisterInfo.h"
22 #include "X86Subtarget.h"
23 #include "X86TargetMachine.h"
24 #include "llvm/Analysis/BranchProbabilityInfo.h"
25 #include "llvm/CodeGen/Analysis.h"
26 #include "llvm/CodeGen/FastISel.h"
27 #include "llvm/CodeGen/FunctionLoweringInfo.h"
28 #include "llvm/CodeGen/MachineConstantPool.h"
29 #include "llvm/CodeGen/MachineFrameInfo.h"
30 #include "llvm/CodeGen/MachineRegisterInfo.h"
31 #include "llvm/IR/CallSite.h"
32 #include "llvm/IR/CallingConv.h"
33 #include "llvm/IR/DebugInfo.h"
34 #include "llvm/IR/DerivedTypes.h"
35 #include "llvm/IR/GetElementPtrTypeIterator.h"
36 #include "llvm/IR/GlobalAlias.h"
37 #include "llvm/IR/GlobalVariable.h"
38 #include "llvm/IR/Instructions.h"
39 #include "llvm/IR/IntrinsicInst.h"
40 #include "llvm/IR/Operator.h"
41 #include "llvm/MC/MCAsmInfo.h"
42 #include "llvm/MC/MCSymbol.h"
43 #include "llvm/Support/ErrorHandling.h"
44 #include "llvm/Target/TargetOptions.h"
45 using namespace llvm;
46 
47 namespace {
48 
49 class X86FastISel final : public FastISel {
50   /// Subtarget - Keep a pointer to the X86Subtarget around so that we can
51   /// make the right decision when generating code for different targets.
52   const X86Subtarget *Subtarget;
53 
54   /// X86ScalarSSEf32, X86ScalarSSEf64 - Select between SSE or x87
55   /// floating point ops.
56   /// When SSE is available, use it for f32 operations.
57   /// When SSE2 is available, use it for f64 operations.
58   bool X86ScalarSSEf64;
59   bool X86ScalarSSEf32;
60 
61 public:
62   explicit X86FastISel(FunctionLoweringInfo &funcInfo,
63                        const TargetLibraryInfo *libInfo)
64       : FastISel(funcInfo, libInfo) {
65     Subtarget = &funcInfo.MF->getSubtarget<X86Subtarget>();
66     X86ScalarSSEf64 = Subtarget->hasSSE2();
67     X86ScalarSSEf32 = Subtarget->hasSSE1();
68   }
69 
70   bool fastSelectInstruction(const Instruction *I) override;
71 
72   /// \brief The specified machine instr operand is a vreg, and that
73   /// vreg is being provided by the specified load instruction.  If possible,
74   /// try to fold the load as an operand to the instruction, returning true if
75   /// possible.
76   bool tryToFoldLoadIntoMI(MachineInstr *MI, unsigned OpNo,
77                            const LoadInst *LI) override;
78 
79   bool fastLowerArguments() override;
80   bool fastLowerCall(CallLoweringInfo &CLI) override;
81   bool fastLowerIntrinsicCall(const IntrinsicInst *II) override;
82 
83 #include "X86GenFastISel.inc"
84 
85 private:
86   bool X86FastEmitCompare(const Value *LHS, const Value *RHS, EVT VT, DebugLoc DL);
87 
88   bool X86FastEmitLoad(EVT VT, X86AddressMode &AM, MachineMemOperand *MMO,
89                        unsigned &ResultReg, unsigned Alignment = 1);
90 
91   bool X86FastEmitStore(EVT VT, const Value *Val, X86AddressMode &AM,
92                         MachineMemOperand *MMO = nullptr, bool Aligned = false);
93   bool X86FastEmitStore(EVT VT, unsigned ValReg, bool ValIsKill,
94                         X86AddressMode &AM,
95                         MachineMemOperand *MMO = nullptr, bool Aligned = false);
96 
97   bool X86FastEmitExtend(ISD::NodeType Opc, EVT DstVT, unsigned Src, EVT SrcVT,
98                          unsigned &ResultReg);
99 
100   bool X86SelectAddress(const Value *V, X86AddressMode &AM);
101   bool X86SelectCallAddress(const Value *V, X86AddressMode &AM);
102 
103   bool X86SelectLoad(const Instruction *I);
104 
105   bool X86SelectStore(const Instruction *I);
106 
107   bool X86SelectRet(const Instruction *I);
108 
109   bool X86SelectCmp(const Instruction *I);
110 
111   bool X86SelectZExt(const Instruction *I);
112 
113   bool X86SelectBranch(const Instruction *I);
114 
115   bool X86SelectShift(const Instruction *I);
116 
117   bool X86SelectDivRem(const Instruction *I);
118 
119   bool X86FastEmitCMoveSelect(MVT RetVT, const Instruction *I);
120 
121   bool X86FastEmitSSESelect(MVT RetVT, const Instruction *I);
122 
123   bool X86FastEmitPseudoSelect(MVT RetVT, const Instruction *I);
124 
125   bool X86SelectSelect(const Instruction *I);
126 
127   bool X86SelectTrunc(const Instruction *I);
128 
129   bool X86SelectFPExtOrFPTrunc(const Instruction *I, unsigned Opc,
130                                const TargetRegisterClass *RC);
131 
132   bool X86SelectFPExt(const Instruction *I);
133   bool X86SelectFPTrunc(const Instruction *I);
134   bool X86SelectSIToFP(const Instruction *I);
135 
136   const X86InstrInfo *getInstrInfo() const {
137     return Subtarget->getInstrInfo();
138   }
139   const X86TargetMachine *getTargetMachine() const {
140     return static_cast<const X86TargetMachine *>(&TM);
141   }
142 
143   bool handleConstantAddresses(const Value *V, X86AddressMode &AM);
144 
145   unsigned X86MaterializeInt(const ConstantInt *CI, MVT VT);
146   unsigned X86MaterializeFP(const ConstantFP *CFP, MVT VT);
147   unsigned X86MaterializeGV(const GlobalValue *GV, MVT VT);
148   unsigned fastMaterializeConstant(const Constant *C) override;
149 
150   unsigned fastMaterializeAlloca(const AllocaInst *C) override;
151 
152   unsigned fastMaterializeFloatZero(const ConstantFP *CF) override;
153 
154   /// isScalarFPTypeInSSEReg - Return true if the specified scalar FP type is
155   /// computed in an SSE register, not on the X87 floating point stack.
156   bool isScalarFPTypeInSSEReg(EVT VT) const {
157     return (VT == MVT::f64 && X86ScalarSSEf64) || // f64 is when SSE2
158       (VT == MVT::f32 && X86ScalarSSEf32);   // f32 is when SSE1
159   }
160 
161   bool isTypeLegal(Type *Ty, MVT &VT, bool AllowI1 = false);
162 
163   bool IsMemcpySmall(uint64_t Len);
164 
165   bool TryEmitSmallMemcpy(X86AddressMode DestAM,
166                           X86AddressMode SrcAM, uint64_t Len);
167 
168   bool foldX86XALUIntrinsic(X86::CondCode &CC, const Instruction *I,
169                             const Value *Cond);
170 
171   const MachineInstrBuilder &addFullAddress(const MachineInstrBuilder &MIB,
172                                             X86AddressMode &AM);
173 };
174 
175 } // end anonymous namespace.
176 
177 static std::pair<X86::CondCode, bool>
178 getX86ConditionCode(CmpInst::Predicate Predicate) {
179   X86::CondCode CC = X86::COND_INVALID;
180   bool NeedSwap = false;
181   switch (Predicate) {
182   default: break;
183   // Floating-point Predicates
184   case CmpInst::FCMP_UEQ: CC = X86::COND_E;       break;
185   case CmpInst::FCMP_OLT: NeedSwap = true; // fall-through
186   case CmpInst::FCMP_OGT: CC = X86::COND_A;       break;
187   case CmpInst::FCMP_OLE: NeedSwap = true; // fall-through
188   case CmpInst::FCMP_OGE: CC = X86::COND_AE;      break;
189   case CmpInst::FCMP_UGT: NeedSwap = true; // fall-through
190   case CmpInst::FCMP_ULT: CC = X86::COND_B;       break;
191   case CmpInst::FCMP_UGE: NeedSwap = true; // fall-through
192   case CmpInst::FCMP_ULE: CC = X86::COND_BE;      break;
193   case CmpInst::FCMP_ONE: CC = X86::COND_NE;      break;
194   case CmpInst::FCMP_UNO: CC = X86::COND_P;       break;
195   case CmpInst::FCMP_ORD: CC = X86::COND_NP;      break;
196   case CmpInst::FCMP_OEQ: // fall-through
197   case CmpInst::FCMP_UNE: CC = X86::COND_INVALID; break;
198 
199   // Integer Predicates
200   case CmpInst::ICMP_EQ:  CC = X86::COND_E;       break;
201   case CmpInst::ICMP_NE:  CC = X86::COND_NE;      break;
202   case CmpInst::ICMP_UGT: CC = X86::COND_A;       break;
203   case CmpInst::ICMP_UGE: CC = X86::COND_AE;      break;
204   case CmpInst::ICMP_ULT: CC = X86::COND_B;       break;
205   case CmpInst::ICMP_ULE: CC = X86::COND_BE;      break;
206   case CmpInst::ICMP_SGT: CC = X86::COND_G;       break;
207   case CmpInst::ICMP_SGE: CC = X86::COND_GE;      break;
208   case CmpInst::ICMP_SLT: CC = X86::COND_L;       break;
209   case CmpInst::ICMP_SLE: CC = X86::COND_LE;      break;
210   }
211 
212   return std::make_pair(CC, NeedSwap);
213 }
214 
215 static std::pair<unsigned, bool>
216 getX86SSEConditionCode(CmpInst::Predicate Predicate) {
217   unsigned CC;
218   bool NeedSwap = false;
219 
220   // SSE Condition code mapping:
221   //  0 - EQ
222   //  1 - LT
223   //  2 - LE
224   //  3 - UNORD
225   //  4 - NEQ
226   //  5 - NLT
227   //  6 - NLE
228   //  7 - ORD
229   switch (Predicate) {
230   default: llvm_unreachable("Unexpected predicate");
231   case CmpInst::FCMP_OEQ: CC = 0;          break;
232   case CmpInst::FCMP_OGT: NeedSwap = true; // fall-through
233   case CmpInst::FCMP_OLT: CC = 1;          break;
234   case CmpInst::FCMP_OGE: NeedSwap = true; // fall-through
235   case CmpInst::FCMP_OLE: CC = 2;          break;
236   case CmpInst::FCMP_UNO: CC = 3;          break;
237   case CmpInst::FCMP_UNE: CC = 4;          break;
238   case CmpInst::FCMP_ULE: NeedSwap = true; // fall-through
239   case CmpInst::FCMP_UGE: CC = 5;          break;
240   case CmpInst::FCMP_ULT: NeedSwap = true; // fall-through
241   case CmpInst::FCMP_UGT: CC = 6;          break;
242   case CmpInst::FCMP_ORD: CC = 7;          break;
243   case CmpInst::FCMP_UEQ:
244   case CmpInst::FCMP_ONE: CC = 8;          break;
245   }
246 
247   return std::make_pair(CC, NeedSwap);
248 }
249 
250 /// \brief Adds a complex addressing mode to the given machine instr builder.
251 /// Note, this will constrain the index register.  If its not possible to
252 /// constrain the given index register, then a new one will be created.  The
253 /// IndexReg field of the addressing mode will be updated to match in this case.
254 const MachineInstrBuilder &
255 X86FastISel::addFullAddress(const MachineInstrBuilder &MIB,
256                             X86AddressMode &AM) {
257   // First constrain the index register.  It needs to be a GR64_NOSP.
258   AM.IndexReg = constrainOperandRegClass(MIB->getDesc(), AM.IndexReg,
259                                          MIB->getNumOperands() +
260                                          X86::AddrIndexReg);
261   return ::addFullAddress(MIB, AM);
262 }
263 
264 /// \brief Check if it is possible to fold the condition from the XALU intrinsic
265 /// into the user. The condition code will only be updated on success.
266 bool X86FastISel::foldX86XALUIntrinsic(X86::CondCode &CC, const Instruction *I,
267                                        const Value *Cond) {
268   if (!isa<ExtractValueInst>(Cond))
269     return false;
270 
271   const auto *EV = cast<ExtractValueInst>(Cond);
272   if (!isa<IntrinsicInst>(EV->getAggregateOperand()))
273     return false;
274 
275   const auto *II = cast<IntrinsicInst>(EV->getAggregateOperand());
276   MVT RetVT;
277   const Function *Callee = II->getCalledFunction();
278   Type *RetTy =
279     cast<StructType>(Callee->getReturnType())->getTypeAtIndex(0U);
280   if (!isTypeLegal(RetTy, RetVT))
281     return false;
282 
283   if (RetVT != MVT::i32 && RetVT != MVT::i64)
284     return false;
285 
286   X86::CondCode TmpCC;
287   switch (II->getIntrinsicID()) {
288   default: return false;
289   case Intrinsic::sadd_with_overflow:
290   case Intrinsic::ssub_with_overflow:
291   case Intrinsic::smul_with_overflow:
292   case Intrinsic::umul_with_overflow: TmpCC = X86::COND_O; break;
293   case Intrinsic::uadd_with_overflow:
294   case Intrinsic::usub_with_overflow: TmpCC = X86::COND_B; break;
295   }
296 
297   // Check if both instructions are in the same basic block.
298   if (II->getParent() != I->getParent())
299     return false;
300 
301   // Make sure nothing is in the way
302   BasicBlock::const_iterator Start(I);
303   BasicBlock::const_iterator End(II);
304   for (auto Itr = std::prev(Start); Itr != End; --Itr) {
305     // We only expect extractvalue instructions between the intrinsic and the
306     // instruction to be selected.
307     if (!isa<ExtractValueInst>(Itr))
308       return false;
309 
310     // Check that the extractvalue operand comes from the intrinsic.
311     const auto *EVI = cast<ExtractValueInst>(Itr);
312     if (EVI->getAggregateOperand() != II)
313       return false;
314   }
315 
316   CC = TmpCC;
317   return true;
318 }
319 
320 bool X86FastISel::isTypeLegal(Type *Ty, MVT &VT, bool AllowI1) {
321   EVT evt = TLI.getValueType(DL, Ty, /*HandleUnknown=*/true);
322   if (evt == MVT::Other || !evt.isSimple())
323     // Unhandled type. Halt "fast" selection and bail.
324     return false;
325 
326   VT = evt.getSimpleVT();
327   // For now, require SSE/SSE2 for performing floating-point operations,
328   // since x87 requires additional work.
329   if (VT == MVT::f64 && !X86ScalarSSEf64)
330     return false;
331   if (VT == MVT::f32 && !X86ScalarSSEf32)
332     return false;
333   // Similarly, no f80 support yet.
334   if (VT == MVT::f80)
335     return false;
336   // We only handle legal types. For example, on x86-32 the instruction
337   // selector contains all of the 64-bit instructions from x86-64,
338   // under the assumption that i64 won't be used if the target doesn't
339   // support it.
340   return (AllowI1 && VT == MVT::i1) || TLI.isTypeLegal(VT);
341 }
342 
343 #include "X86GenCallingConv.inc"
344 
345 /// X86FastEmitLoad - Emit a machine instruction to load a value of type VT.
346 /// The address is either pre-computed, i.e. Ptr, or a GlobalAddress, i.e. GV.
347 /// Return true and the result register by reference if it is possible.
348 bool X86FastISel::X86FastEmitLoad(EVT VT, X86AddressMode &AM,
349                                   MachineMemOperand *MMO, unsigned &ResultReg,
350                                   unsigned Alignment) {
351   // Get opcode and regclass of the output for the given load instruction.
352   unsigned Opc = 0;
353   const TargetRegisterClass *RC = nullptr;
354   switch (VT.getSimpleVT().SimpleTy) {
355   default: return false;
356   case MVT::i1:
357   case MVT::i8:
358     Opc = X86::MOV8rm;
359     RC  = &X86::GR8RegClass;
360     break;
361   case MVT::i16:
362     Opc = X86::MOV16rm;
363     RC  = &X86::GR16RegClass;
364     break;
365   case MVT::i32:
366     Opc = X86::MOV32rm;
367     RC  = &X86::GR32RegClass;
368     break;
369   case MVT::i64:
370     // Must be in x86-64 mode.
371     Opc = X86::MOV64rm;
372     RC  = &X86::GR64RegClass;
373     break;
374   case MVT::f32:
375     if (X86ScalarSSEf32) {
376       Opc = Subtarget->hasAVX() ? X86::VMOVSSrm : X86::MOVSSrm;
377       RC  = &X86::FR32RegClass;
378     } else {
379       Opc = X86::LD_Fp32m;
380       RC  = &X86::RFP32RegClass;
381     }
382     break;
383   case MVT::f64:
384     if (X86ScalarSSEf64) {
385       Opc = Subtarget->hasAVX() ? X86::VMOVSDrm : X86::MOVSDrm;
386       RC  = &X86::FR64RegClass;
387     } else {
388       Opc = X86::LD_Fp64m;
389       RC  = &X86::RFP64RegClass;
390     }
391     break;
392   case MVT::f80:
393     // No f80 support yet.
394     return false;
395   case MVT::v4f32:
396     if (Alignment >= 16)
397       Opc = Subtarget->hasAVX() ? X86::VMOVAPSrm : X86::MOVAPSrm;
398     else
399       Opc = Subtarget->hasAVX() ? X86::VMOVUPSrm : X86::MOVUPSrm;
400     RC  = &X86::VR128RegClass;
401     break;
402   case MVT::v2f64:
403     if (Alignment >= 16)
404       Opc = Subtarget->hasAVX() ? X86::VMOVAPDrm : X86::MOVAPDrm;
405     else
406       Opc = Subtarget->hasAVX() ? X86::VMOVUPDrm : X86::MOVUPDrm;
407     RC  = &X86::VR128RegClass;
408     break;
409   case MVT::v4i32:
410   case MVT::v2i64:
411   case MVT::v8i16:
412   case MVT::v16i8:
413     if (Alignment >= 16)
414       Opc = Subtarget->hasAVX() ? X86::VMOVDQArm : X86::MOVDQArm;
415     else
416       Opc = Subtarget->hasAVX() ? X86::VMOVDQUrm : X86::MOVDQUrm;
417     RC  = &X86::VR128RegClass;
418     break;
419   }
420 
421   ResultReg = createResultReg(RC);
422   MachineInstrBuilder MIB =
423     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Opc), ResultReg);
424   addFullAddress(MIB, AM);
425   if (MMO)
426     MIB->addMemOperand(*FuncInfo.MF, MMO);
427   return true;
428 }
429 
430 /// X86FastEmitStore - Emit a machine instruction to store a value Val of
431 /// type VT. The address is either pre-computed, consisted of a base ptr, Ptr
432 /// and a displacement offset, or a GlobalAddress,
433 /// i.e. V. Return true if it is possible.
434 bool X86FastISel::X86FastEmitStore(EVT VT, unsigned ValReg, bool ValIsKill,
435                                    X86AddressMode &AM,
436                                    MachineMemOperand *MMO, bool Aligned) {
437   bool HasSSE2 = Subtarget->hasSSE2();
438   bool HasSSE4A = Subtarget->hasSSE4A();
439   bool HasAVX = Subtarget->hasAVX();
440   bool IsNonTemporal = MMO && MMO->isNonTemporal();
441 
442   // Get opcode and regclass of the output for the given store instruction.
443   unsigned Opc = 0;
444   switch (VT.getSimpleVT().SimpleTy) {
445   case MVT::f80: // No f80 support yet.
446   default: return false;
447   case MVT::i1: {
448     // Mask out all but lowest bit.
449     unsigned AndResult = createResultReg(&X86::GR8RegClass);
450     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
451             TII.get(X86::AND8ri), AndResult)
452       .addReg(ValReg, getKillRegState(ValIsKill)).addImm(1);
453     ValReg = AndResult;
454   }
455   // FALLTHROUGH, handling i1 as i8.
456   case MVT::i8:  Opc = X86::MOV8mr;  break;
457   case MVT::i16: Opc = X86::MOV16mr; break;
458   case MVT::i32:
459     Opc = (IsNonTemporal && HasSSE2) ? X86::MOVNTImr : X86::MOV32mr;
460     break;
461   case MVT::i64:
462     // Must be in x86-64 mode.
463     Opc = (IsNonTemporal && HasSSE2) ? X86::MOVNTI_64mr : X86::MOV64mr;
464     break;
465   case MVT::f32:
466     if (X86ScalarSSEf32) {
467       if (IsNonTemporal && HasSSE4A)
468         Opc = X86::MOVNTSS;
469       else
470         Opc = HasAVX ? X86::VMOVSSmr : X86::MOVSSmr;
471     } else
472       Opc = X86::ST_Fp32m;
473     break;
474   case MVT::f64:
475     if (X86ScalarSSEf32) {
476       if (IsNonTemporal && HasSSE4A)
477         Opc = X86::MOVNTSD;
478       else
479         Opc = HasAVX ? X86::VMOVSDmr : X86::MOVSDmr;
480     } else
481       Opc = X86::ST_Fp64m;
482     break;
483   case MVT::v4f32:
484     if (Aligned) {
485       if (IsNonTemporal)
486         Opc = HasAVX ? X86::VMOVNTPSmr : X86::MOVNTPSmr;
487       else
488         Opc = HasAVX ? X86::VMOVAPSmr : X86::MOVAPSmr;
489     } else
490       Opc = HasAVX ? X86::VMOVUPSmr : X86::MOVUPSmr;
491     break;
492   case MVT::v2f64:
493     if (Aligned) {
494       if (IsNonTemporal)
495         Opc = HasAVX ? X86::VMOVNTPDmr : X86::MOVNTPDmr;
496       else
497         Opc = HasAVX ? X86::VMOVAPDmr : X86::MOVAPDmr;
498     } else
499       Opc = HasAVX ? X86::VMOVUPDmr : X86::MOVUPDmr;
500     break;
501   case MVT::v4i32:
502   case MVT::v2i64:
503   case MVT::v8i16:
504   case MVT::v16i8:
505     if (Aligned) {
506       if (IsNonTemporal)
507         Opc = HasAVX ? X86::VMOVNTDQmr : X86::MOVNTDQmr;
508       else
509         Opc = HasAVX ? X86::VMOVDQAmr : X86::MOVDQAmr;
510     } else
511       Opc = Subtarget->hasAVX() ? X86::VMOVDQUmr : X86::MOVDQUmr;
512     break;
513   }
514 
515   const MCInstrDesc &Desc = TII.get(Opc);
516   // Some of the instructions in the previous switch use FR128 instead
517   // of FR32 for ValReg. Make sure the register we feed the instruction
518   // matches its register class constraints.
519   // Note: This is fine to do a copy from FR32 to FR128, this is the
520   // same registers behind the scene and actually why it did not trigger
521   // any bugs before.
522   ValReg = constrainOperandRegClass(Desc, ValReg, Desc.getNumOperands() - 1);
523   MachineInstrBuilder MIB =
524       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, Desc);
525   addFullAddress(MIB, AM).addReg(ValReg, getKillRegState(ValIsKill));
526   if (MMO)
527     MIB->addMemOperand(*FuncInfo.MF, MMO);
528 
529   return true;
530 }
531 
532 bool X86FastISel::X86FastEmitStore(EVT VT, const Value *Val,
533                                    X86AddressMode &AM,
534                                    MachineMemOperand *MMO, bool Aligned) {
535   // Handle 'null' like i32/i64 0.
536   if (isa<ConstantPointerNull>(Val))
537     Val = Constant::getNullValue(DL.getIntPtrType(Val->getContext()));
538 
539   // If this is a store of a simple constant, fold the constant into the store.
540   if (const ConstantInt *CI = dyn_cast<ConstantInt>(Val)) {
541     unsigned Opc = 0;
542     bool Signed = true;
543     switch (VT.getSimpleVT().SimpleTy) {
544     default: break;
545     case MVT::i1:  Signed = false;     // FALLTHROUGH to handle as i8.
546     case MVT::i8:  Opc = X86::MOV8mi;  break;
547     case MVT::i16: Opc = X86::MOV16mi; break;
548     case MVT::i32: Opc = X86::MOV32mi; break;
549     case MVT::i64:
550       // Must be a 32-bit sign extended value.
551       if (isInt<32>(CI->getSExtValue()))
552         Opc = X86::MOV64mi32;
553       break;
554     }
555 
556     if (Opc) {
557       MachineInstrBuilder MIB =
558         BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Opc));
559       addFullAddress(MIB, AM).addImm(Signed ? (uint64_t) CI->getSExtValue()
560                                             : CI->getZExtValue());
561       if (MMO)
562         MIB->addMemOperand(*FuncInfo.MF, MMO);
563       return true;
564     }
565   }
566 
567   unsigned ValReg = getRegForValue(Val);
568   if (ValReg == 0)
569     return false;
570 
571   bool ValKill = hasTrivialKill(Val);
572   return X86FastEmitStore(VT, ValReg, ValKill, AM, MMO, Aligned);
573 }
574 
575 /// X86FastEmitExtend - Emit a machine instruction to extend a value Src of
576 /// type SrcVT to type DstVT using the specified extension opcode Opc (e.g.
577 /// ISD::SIGN_EXTEND).
578 bool X86FastISel::X86FastEmitExtend(ISD::NodeType Opc, EVT DstVT,
579                                     unsigned Src, EVT SrcVT,
580                                     unsigned &ResultReg) {
581   unsigned RR = fastEmit_r(SrcVT.getSimpleVT(), DstVT.getSimpleVT(), Opc,
582                            Src, /*TODO: Kill=*/false);
583   if (RR == 0)
584     return false;
585 
586   ResultReg = RR;
587   return true;
588 }
589 
590 bool X86FastISel::handleConstantAddresses(const Value *V, X86AddressMode &AM) {
591   // Handle constant address.
592   if (const GlobalValue *GV = dyn_cast<GlobalValue>(V)) {
593     // Can't handle alternate code models yet.
594     if (TM.getCodeModel() != CodeModel::Small)
595       return false;
596 
597     // Can't handle TLS yet.
598     if (GV->isThreadLocal())
599       return false;
600 
601     // RIP-relative addresses can't have additional register operands, so if
602     // we've already folded stuff into the addressing mode, just force the
603     // global value into its own register, which we can use as the basereg.
604     if (!Subtarget->isPICStyleRIPRel() ||
605         (AM.Base.Reg == 0 && AM.IndexReg == 0)) {
606       // Okay, we've committed to selecting this global. Set up the address.
607       AM.GV = GV;
608 
609       // Allow the subtarget to classify the global.
610       unsigned char GVFlags = Subtarget->ClassifyGlobalReference(GV, TM);
611 
612       // If this reference is relative to the pic base, set it now.
613       if (isGlobalRelativeToPICBase(GVFlags)) {
614         // FIXME: How do we know Base.Reg is free??
615         AM.Base.Reg = getInstrInfo()->getGlobalBaseReg(FuncInfo.MF);
616       }
617 
618       // Unless the ABI requires an extra load, return a direct reference to
619       // the global.
620       if (!isGlobalStubReference(GVFlags)) {
621         if (Subtarget->isPICStyleRIPRel()) {
622           // Use rip-relative addressing if we can.  Above we verified that the
623           // base and index registers are unused.
624           assert(AM.Base.Reg == 0 && AM.IndexReg == 0);
625           AM.Base.Reg = X86::RIP;
626         }
627         AM.GVOpFlags = GVFlags;
628         return true;
629       }
630 
631       // Ok, we need to do a load from a stub.  If we've already loaded from
632       // this stub, reuse the loaded pointer, otherwise emit the load now.
633       DenseMap<const Value *, unsigned>::iterator I = LocalValueMap.find(V);
634       unsigned LoadReg;
635       if (I != LocalValueMap.end() && I->second != 0) {
636         LoadReg = I->second;
637       } else {
638         // Issue load from stub.
639         unsigned Opc = 0;
640         const TargetRegisterClass *RC = nullptr;
641         X86AddressMode StubAM;
642         StubAM.Base.Reg = AM.Base.Reg;
643         StubAM.GV = GV;
644         StubAM.GVOpFlags = GVFlags;
645 
646         // Prepare for inserting code in the local-value area.
647         SavePoint SaveInsertPt = enterLocalValueArea();
648 
649         if (TLI.getPointerTy(DL) == MVT::i64) {
650           Opc = X86::MOV64rm;
651           RC  = &X86::GR64RegClass;
652 
653           if (Subtarget->isPICStyleRIPRel())
654             StubAM.Base.Reg = X86::RIP;
655         } else {
656           Opc = X86::MOV32rm;
657           RC  = &X86::GR32RegClass;
658         }
659 
660         LoadReg = createResultReg(RC);
661         MachineInstrBuilder LoadMI =
662           BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Opc), LoadReg);
663         addFullAddress(LoadMI, StubAM);
664 
665         // Ok, back to normal mode.
666         leaveLocalValueArea(SaveInsertPt);
667 
668         // Prevent loading GV stub multiple times in same MBB.
669         LocalValueMap[V] = LoadReg;
670       }
671 
672       // Now construct the final address. Note that the Disp, Scale,
673       // and Index values may already be set here.
674       AM.Base.Reg = LoadReg;
675       AM.GV = nullptr;
676       return true;
677     }
678   }
679 
680   // If all else fails, try to materialize the value in a register.
681   if (!AM.GV || !Subtarget->isPICStyleRIPRel()) {
682     if (AM.Base.Reg == 0) {
683       AM.Base.Reg = getRegForValue(V);
684       return AM.Base.Reg != 0;
685     }
686     if (AM.IndexReg == 0) {
687       assert(AM.Scale == 1 && "Scale with no index!");
688       AM.IndexReg = getRegForValue(V);
689       return AM.IndexReg != 0;
690     }
691   }
692 
693   return false;
694 }
695 
696 /// X86SelectAddress - Attempt to fill in an address from the given value.
697 ///
698 bool X86FastISel::X86SelectAddress(const Value *V, X86AddressMode &AM) {
699   SmallVector<const Value *, 32> GEPs;
700 redo_gep:
701   const User *U = nullptr;
702   unsigned Opcode = Instruction::UserOp1;
703   if (const Instruction *I = dyn_cast<Instruction>(V)) {
704     // Don't walk into other basic blocks; it's possible we haven't
705     // visited them yet, so the instructions may not yet be assigned
706     // virtual registers.
707     if (FuncInfo.StaticAllocaMap.count(static_cast<const AllocaInst *>(V)) ||
708         FuncInfo.MBBMap[I->getParent()] == FuncInfo.MBB) {
709       Opcode = I->getOpcode();
710       U = I;
711     }
712   } else if (const ConstantExpr *C = dyn_cast<ConstantExpr>(V)) {
713     Opcode = C->getOpcode();
714     U = C;
715   }
716 
717   if (PointerType *Ty = dyn_cast<PointerType>(V->getType()))
718     if (Ty->getAddressSpace() > 255)
719       // Fast instruction selection doesn't support the special
720       // address spaces.
721       return false;
722 
723   switch (Opcode) {
724   default: break;
725   case Instruction::BitCast:
726     // Look past bitcasts.
727     return X86SelectAddress(U->getOperand(0), AM);
728 
729   case Instruction::IntToPtr:
730     // Look past no-op inttoptrs.
731     if (TLI.getValueType(DL, U->getOperand(0)->getType()) ==
732         TLI.getPointerTy(DL))
733       return X86SelectAddress(U->getOperand(0), AM);
734     break;
735 
736   case Instruction::PtrToInt:
737     // Look past no-op ptrtoints.
738     if (TLI.getValueType(DL, U->getType()) == TLI.getPointerTy(DL))
739       return X86SelectAddress(U->getOperand(0), AM);
740     break;
741 
742   case Instruction::Alloca: {
743     // Do static allocas.
744     const AllocaInst *A = cast<AllocaInst>(V);
745     DenseMap<const AllocaInst *, int>::iterator SI =
746       FuncInfo.StaticAllocaMap.find(A);
747     if (SI != FuncInfo.StaticAllocaMap.end()) {
748       AM.BaseType = X86AddressMode::FrameIndexBase;
749       AM.Base.FrameIndex = SI->second;
750       return true;
751     }
752     break;
753   }
754 
755   case Instruction::Add: {
756     // Adds of constants are common and easy enough.
757     if (const ConstantInt *CI = dyn_cast<ConstantInt>(U->getOperand(1))) {
758       uint64_t Disp = (int32_t)AM.Disp + (uint64_t)CI->getSExtValue();
759       // They have to fit in the 32-bit signed displacement field though.
760       if (isInt<32>(Disp)) {
761         AM.Disp = (uint32_t)Disp;
762         return X86SelectAddress(U->getOperand(0), AM);
763       }
764     }
765     break;
766   }
767 
768   case Instruction::GetElementPtr: {
769     X86AddressMode SavedAM = AM;
770 
771     // Pattern-match simple GEPs.
772     uint64_t Disp = (int32_t)AM.Disp;
773     unsigned IndexReg = AM.IndexReg;
774     unsigned Scale = AM.Scale;
775     gep_type_iterator GTI = gep_type_begin(U);
776     // Iterate through the indices, folding what we can. Constants can be
777     // folded, and one dynamic index can be handled, if the scale is supported.
778     for (User::const_op_iterator i = U->op_begin() + 1, e = U->op_end();
779          i != e; ++i, ++GTI) {
780       const Value *Op = *i;
781       if (StructType *STy = dyn_cast<StructType>(*GTI)) {
782         const StructLayout *SL = DL.getStructLayout(STy);
783         Disp += SL->getElementOffset(cast<ConstantInt>(Op)->getZExtValue());
784         continue;
785       }
786 
787       // A array/variable index is always of the form i*S where S is the
788       // constant scale size.  See if we can push the scale into immediates.
789       uint64_t S = DL.getTypeAllocSize(GTI.getIndexedType());
790       for (;;) {
791         if (const ConstantInt *CI = dyn_cast<ConstantInt>(Op)) {
792           // Constant-offset addressing.
793           Disp += CI->getSExtValue() * S;
794           break;
795         }
796         if (canFoldAddIntoGEP(U, Op)) {
797           // A compatible add with a constant operand. Fold the constant.
798           ConstantInt *CI =
799             cast<ConstantInt>(cast<AddOperator>(Op)->getOperand(1));
800           Disp += CI->getSExtValue() * S;
801           // Iterate on the other operand.
802           Op = cast<AddOperator>(Op)->getOperand(0);
803           continue;
804         }
805         if (IndexReg == 0 &&
806             (!AM.GV || !Subtarget->isPICStyleRIPRel()) &&
807             (S == 1 || S == 2 || S == 4 || S == 8)) {
808           // Scaled-index addressing.
809           Scale = S;
810           IndexReg = getRegForGEPIndex(Op).first;
811           if (IndexReg == 0)
812             return false;
813           break;
814         }
815         // Unsupported.
816         goto unsupported_gep;
817       }
818     }
819 
820     // Check for displacement overflow.
821     if (!isInt<32>(Disp))
822       break;
823 
824     AM.IndexReg = IndexReg;
825     AM.Scale = Scale;
826     AM.Disp = (uint32_t)Disp;
827     GEPs.push_back(V);
828 
829     if (const GetElementPtrInst *GEP =
830           dyn_cast<GetElementPtrInst>(U->getOperand(0))) {
831       // Ok, the GEP indices were covered by constant-offset and scaled-index
832       // addressing. Update the address state and move on to examining the base.
833       V = GEP;
834       goto redo_gep;
835     } else if (X86SelectAddress(U->getOperand(0), AM)) {
836       return true;
837     }
838 
839     // If we couldn't merge the gep value into this addr mode, revert back to
840     // our address and just match the value instead of completely failing.
841     AM = SavedAM;
842 
843     for (SmallVectorImpl<const Value *>::reverse_iterator
844            I = GEPs.rbegin(), E = GEPs.rend(); I != E; ++I)
845       if (handleConstantAddresses(*I, AM))
846         return true;
847 
848     return false;
849   unsupported_gep:
850     // Ok, the GEP indices weren't all covered.
851     break;
852   }
853   }
854 
855   return handleConstantAddresses(V, AM);
856 }
857 
858 /// X86SelectCallAddress - Attempt to fill in an address from the given value.
859 ///
860 bool X86FastISel::X86SelectCallAddress(const Value *V, X86AddressMode &AM) {
861   const User *U = nullptr;
862   unsigned Opcode = Instruction::UserOp1;
863   const Instruction *I = dyn_cast<Instruction>(V);
864   // Record if the value is defined in the same basic block.
865   //
866   // This information is crucial to know whether or not folding an
867   // operand is valid.
868   // Indeed, FastISel generates or reuses a virtual register for all
869   // operands of all instructions it selects. Obviously, the definition and
870   // its uses must use the same virtual register otherwise the produced
871   // code is incorrect.
872   // Before instruction selection, FunctionLoweringInfo::set sets the virtual
873   // registers for values that are alive across basic blocks. This ensures
874   // that the values are consistently set between across basic block, even
875   // if different instruction selection mechanisms are used (e.g., a mix of
876   // SDISel and FastISel).
877   // For values local to a basic block, the instruction selection process
878   // generates these virtual registers with whatever method is appropriate
879   // for its needs. In particular, FastISel and SDISel do not share the way
880   // local virtual registers are set.
881   // Therefore, this is impossible (or at least unsafe) to share values
882   // between basic blocks unless they use the same instruction selection
883   // method, which is not guarantee for X86.
884   // Moreover, things like hasOneUse could not be used accurately, if we
885   // allow to reference values across basic blocks whereas they are not
886   // alive across basic blocks initially.
887   bool InMBB = true;
888   if (I) {
889     Opcode = I->getOpcode();
890     U = I;
891     InMBB = I->getParent() == FuncInfo.MBB->getBasicBlock();
892   } else if (const ConstantExpr *C = dyn_cast<ConstantExpr>(V)) {
893     Opcode = C->getOpcode();
894     U = C;
895   }
896 
897   switch (Opcode) {
898   default: break;
899   case Instruction::BitCast:
900     // Look past bitcasts if its operand is in the same BB.
901     if (InMBB)
902       return X86SelectCallAddress(U->getOperand(0), AM);
903     break;
904 
905   case Instruction::IntToPtr:
906     // Look past no-op inttoptrs if its operand is in the same BB.
907     if (InMBB &&
908         TLI.getValueType(DL, U->getOperand(0)->getType()) ==
909             TLI.getPointerTy(DL))
910       return X86SelectCallAddress(U->getOperand(0), AM);
911     break;
912 
913   case Instruction::PtrToInt:
914     // Look past no-op ptrtoints if its operand is in the same BB.
915     if (InMBB && TLI.getValueType(DL, U->getType()) == TLI.getPointerTy(DL))
916       return X86SelectCallAddress(U->getOperand(0), AM);
917     break;
918   }
919 
920   // Handle constant address.
921   if (const GlobalValue *GV = dyn_cast<GlobalValue>(V)) {
922     // Can't handle alternate code models yet.
923     if (TM.getCodeModel() != CodeModel::Small)
924       return false;
925 
926     // RIP-relative addresses can't have additional register operands.
927     if (Subtarget->isPICStyleRIPRel() &&
928         (AM.Base.Reg != 0 || AM.IndexReg != 0))
929       return false;
930 
931     // Can't handle DLL Import.
932     if (GV->hasDLLImportStorageClass())
933       return false;
934 
935     // Can't handle TLS.
936     if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GV))
937       if (GVar->isThreadLocal())
938         return false;
939 
940     // Okay, we've committed to selecting this global. Set up the basic address.
941     AM.GV = GV;
942 
943     // No ABI requires an extra load for anything other than DLLImport, which
944     // we rejected above. Return a direct reference to the global.
945     if (Subtarget->isPICStyleRIPRel()) {
946       // Use rip-relative addressing if we can.  Above we verified that the
947       // base and index registers are unused.
948       assert(AM.Base.Reg == 0 && AM.IndexReg == 0);
949       AM.Base.Reg = X86::RIP;
950     } else if (Subtarget->isPICStyleStubPIC()) {
951       AM.GVOpFlags = X86II::MO_PIC_BASE_OFFSET;
952     } else if (Subtarget->isPICStyleGOT()) {
953       AM.GVOpFlags = X86II::MO_GOTOFF;
954     }
955 
956     return true;
957   }
958 
959   // If all else fails, try to materialize the value in a register.
960   if (!AM.GV || !Subtarget->isPICStyleRIPRel()) {
961     if (AM.Base.Reg == 0) {
962       AM.Base.Reg = getRegForValue(V);
963       return AM.Base.Reg != 0;
964     }
965     if (AM.IndexReg == 0) {
966       assert(AM.Scale == 1 && "Scale with no index!");
967       AM.IndexReg = getRegForValue(V);
968       return AM.IndexReg != 0;
969     }
970   }
971 
972   return false;
973 }
974 
975 
976 /// X86SelectStore - Select and emit code to implement store instructions.
977 bool X86FastISel::X86SelectStore(const Instruction *I) {
978   // Atomic stores need special handling.
979   const StoreInst *S = cast<StoreInst>(I);
980 
981   if (S->isAtomic())
982     return false;
983 
984   const Value *PtrV = I->getOperand(1);
985   if (TLI.supportSwiftError()) {
986     // Swifterror values can come from either a function parameter with
987     // swifterror attribute or an alloca with swifterror attribute.
988     if (const Argument *Arg = dyn_cast<Argument>(PtrV)) {
989       if (Arg->hasSwiftErrorAttr())
990         return false;
991     }
992 
993     if (const AllocaInst *Alloca = dyn_cast<AllocaInst>(PtrV)) {
994       if (Alloca->isSwiftError())
995         return false;
996     }
997   }
998 
999   const Value *Val = S->getValueOperand();
1000   const Value *Ptr = S->getPointerOperand();
1001 
1002   MVT VT;
1003   if (!isTypeLegal(Val->getType(), VT, /*AllowI1=*/true))
1004     return false;
1005 
1006   unsigned Alignment = S->getAlignment();
1007   unsigned ABIAlignment = DL.getABITypeAlignment(Val->getType());
1008   if (Alignment == 0) // Ensure that codegen never sees alignment 0
1009     Alignment = ABIAlignment;
1010   bool Aligned = Alignment >= ABIAlignment;
1011 
1012   X86AddressMode AM;
1013   if (!X86SelectAddress(Ptr, AM))
1014     return false;
1015 
1016   return X86FastEmitStore(VT, Val, AM, createMachineMemOperandFor(I), Aligned);
1017 }
1018 
1019 /// X86SelectRet - Select and emit code to implement ret instructions.
1020 bool X86FastISel::X86SelectRet(const Instruction *I) {
1021   const ReturnInst *Ret = cast<ReturnInst>(I);
1022   const Function &F = *I->getParent()->getParent();
1023   const X86MachineFunctionInfo *X86MFInfo =
1024       FuncInfo.MF->getInfo<X86MachineFunctionInfo>();
1025 
1026   if (!FuncInfo.CanLowerReturn)
1027     return false;
1028 
1029   if (TLI.supportSwiftError() &&
1030       F.getAttributes().hasAttrSomewhere(Attribute::SwiftError))
1031     return false;
1032 
1033   if (TLI.supportSplitCSR(FuncInfo.MF))
1034     return false;
1035 
1036   CallingConv::ID CC = F.getCallingConv();
1037   if (CC != CallingConv::C &&
1038       CC != CallingConv::Fast &&
1039       CC != CallingConv::X86_FastCall &&
1040       CC != CallingConv::X86_64_SysV)
1041     return false;
1042 
1043   if (Subtarget->isCallingConvWin64(CC))
1044     return false;
1045 
1046   // Don't handle popping bytes on return for now.
1047   if (X86MFInfo->getBytesToPopOnReturn() != 0)
1048     return false;
1049 
1050   // fastcc with -tailcallopt is intended to provide a guaranteed
1051   // tail call optimization. Fastisel doesn't know how to do that.
1052   if (CC == CallingConv::Fast && TM.Options.GuaranteedTailCallOpt)
1053     return false;
1054 
1055   // Let SDISel handle vararg functions.
1056   if (F.isVarArg())
1057     return false;
1058 
1059   // Build a list of return value registers.
1060   SmallVector<unsigned, 4> RetRegs;
1061 
1062   if (Ret->getNumOperands() > 0) {
1063     SmallVector<ISD::OutputArg, 4> Outs;
1064     GetReturnInfo(F.getReturnType(), F.getAttributes(), Outs, TLI, DL);
1065 
1066     // Analyze operands of the call, assigning locations to each operand.
1067     SmallVector<CCValAssign, 16> ValLocs;
1068     CCState CCInfo(CC, F.isVarArg(), *FuncInfo.MF, ValLocs, I->getContext());
1069     CCInfo.AnalyzeReturn(Outs, RetCC_X86);
1070 
1071     const Value *RV = Ret->getOperand(0);
1072     unsigned Reg = getRegForValue(RV);
1073     if (Reg == 0)
1074       return false;
1075 
1076     // Only handle a single return value for now.
1077     if (ValLocs.size() != 1)
1078       return false;
1079 
1080     CCValAssign &VA = ValLocs[0];
1081 
1082     // Don't bother handling odd stuff for now.
1083     if (VA.getLocInfo() != CCValAssign::Full)
1084       return false;
1085     // Only handle register returns for now.
1086     if (!VA.isRegLoc())
1087       return false;
1088 
1089     // The calling-convention tables for x87 returns don't tell
1090     // the whole story.
1091     if (VA.getLocReg() == X86::FP0 || VA.getLocReg() == X86::FP1)
1092       return false;
1093 
1094     unsigned SrcReg = Reg + VA.getValNo();
1095     EVT SrcVT = TLI.getValueType(DL, RV->getType());
1096     EVT DstVT = VA.getValVT();
1097     // Special handling for extended integers.
1098     if (SrcVT != DstVT) {
1099       if (SrcVT != MVT::i1 && SrcVT != MVT::i8 && SrcVT != MVT::i16)
1100         return false;
1101 
1102       if (!Outs[0].Flags.isZExt() && !Outs[0].Flags.isSExt())
1103         return false;
1104 
1105       assert(DstVT == MVT::i32 && "X86 should always ext to i32");
1106 
1107       if (SrcVT == MVT::i1) {
1108         if (Outs[0].Flags.isSExt())
1109           return false;
1110         SrcReg = fastEmitZExtFromI1(MVT::i8, SrcReg, /*TODO: Kill=*/false);
1111         SrcVT = MVT::i8;
1112       }
1113       unsigned Op = Outs[0].Flags.isZExt() ? ISD::ZERO_EXTEND :
1114                                              ISD::SIGN_EXTEND;
1115       SrcReg = fastEmit_r(SrcVT.getSimpleVT(), DstVT.getSimpleVT(), Op,
1116                           SrcReg, /*TODO: Kill=*/false);
1117     }
1118 
1119     // Make the copy.
1120     unsigned DstReg = VA.getLocReg();
1121     const TargetRegisterClass *SrcRC = MRI.getRegClass(SrcReg);
1122     // Avoid a cross-class copy. This is very unlikely.
1123     if (!SrcRC->contains(DstReg))
1124       return false;
1125     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
1126             TII.get(TargetOpcode::COPY), DstReg).addReg(SrcReg);
1127 
1128     // Add register to return instruction.
1129     RetRegs.push_back(VA.getLocReg());
1130   }
1131 
1132   // Swift calling convention does not require we copy the sret argument
1133   // into %rax/%eax for the return, and SRetReturnReg is not set for Swift.
1134 
1135   // All x86 ABIs require that for returning structs by value we copy
1136   // the sret argument into %rax/%eax (depending on ABI) for the return.
1137   // We saved the argument into a virtual register in the entry block,
1138   // so now we copy the value out and into %rax/%eax.
1139   if (F.hasStructRetAttr() && CC != CallingConv::Swift) {
1140     unsigned Reg = X86MFInfo->getSRetReturnReg();
1141     assert(Reg &&
1142            "SRetReturnReg should have been set in LowerFormalArguments()!");
1143     unsigned RetReg = Subtarget->is64Bit() ? X86::RAX : X86::EAX;
1144     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
1145             TII.get(TargetOpcode::COPY), RetReg).addReg(Reg);
1146     RetRegs.push_back(RetReg);
1147   }
1148 
1149   // Now emit the RET.
1150   MachineInstrBuilder MIB =
1151     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
1152             TII.get(Subtarget->is64Bit() ? X86::RETQ : X86::RETL));
1153   for (unsigned i = 0, e = RetRegs.size(); i != e; ++i)
1154     MIB.addReg(RetRegs[i], RegState::Implicit);
1155   return true;
1156 }
1157 
1158 /// X86SelectLoad - Select and emit code to implement load instructions.
1159 ///
1160 bool X86FastISel::X86SelectLoad(const Instruction *I) {
1161   const LoadInst *LI = cast<LoadInst>(I);
1162 
1163   // Atomic loads need special handling.
1164   if (LI->isAtomic())
1165     return false;
1166 
1167   const Value *SV = I->getOperand(0);
1168   if (TLI.supportSwiftError()) {
1169     // Swifterror values can come from either a function parameter with
1170     // swifterror attribute or an alloca with swifterror attribute.
1171     if (const Argument *Arg = dyn_cast<Argument>(SV)) {
1172       if (Arg->hasSwiftErrorAttr())
1173         return false;
1174     }
1175 
1176     if (const AllocaInst *Alloca = dyn_cast<AllocaInst>(SV)) {
1177       if (Alloca->isSwiftError())
1178         return false;
1179     }
1180   }
1181 
1182   MVT VT;
1183   if (!isTypeLegal(LI->getType(), VT, /*AllowI1=*/true))
1184     return false;
1185 
1186   const Value *Ptr = LI->getPointerOperand();
1187 
1188   X86AddressMode AM;
1189   if (!X86SelectAddress(Ptr, AM))
1190     return false;
1191 
1192   unsigned Alignment = LI->getAlignment();
1193   unsigned ABIAlignment = DL.getABITypeAlignment(LI->getType());
1194   if (Alignment == 0) // Ensure that codegen never sees alignment 0
1195     Alignment = ABIAlignment;
1196 
1197   unsigned ResultReg = 0;
1198   if (!X86FastEmitLoad(VT, AM, createMachineMemOperandFor(LI), ResultReg,
1199                        Alignment))
1200     return false;
1201 
1202   updateValueMap(I, ResultReg);
1203   return true;
1204 }
1205 
1206 static unsigned X86ChooseCmpOpcode(EVT VT, const X86Subtarget *Subtarget) {
1207   bool HasAVX = Subtarget->hasAVX();
1208   bool X86ScalarSSEf32 = Subtarget->hasSSE1();
1209   bool X86ScalarSSEf64 = Subtarget->hasSSE2();
1210 
1211   switch (VT.getSimpleVT().SimpleTy) {
1212   default:       return 0;
1213   case MVT::i8:  return X86::CMP8rr;
1214   case MVT::i16: return X86::CMP16rr;
1215   case MVT::i32: return X86::CMP32rr;
1216   case MVT::i64: return X86::CMP64rr;
1217   case MVT::f32:
1218     return X86ScalarSSEf32 ? (HasAVX ? X86::VUCOMISSrr : X86::UCOMISSrr) : 0;
1219   case MVT::f64:
1220     return X86ScalarSSEf64 ? (HasAVX ? X86::VUCOMISDrr : X86::UCOMISDrr) : 0;
1221   }
1222 }
1223 
1224 /// If we have a comparison with RHS as the RHS  of the comparison, return an
1225 /// opcode that works for the compare (e.g. CMP32ri) otherwise return 0.
1226 static unsigned X86ChooseCmpImmediateOpcode(EVT VT, const ConstantInt *RHSC) {
1227   int64_t Val = RHSC->getSExtValue();
1228   switch (VT.getSimpleVT().SimpleTy) {
1229   // Otherwise, we can't fold the immediate into this comparison.
1230   default:
1231     return 0;
1232   case MVT::i8:
1233     return X86::CMP8ri;
1234   case MVT::i16:
1235     if (isInt<8>(Val))
1236       return X86::CMP16ri8;
1237     return X86::CMP16ri;
1238   case MVT::i32:
1239     if (isInt<8>(Val))
1240       return X86::CMP32ri8;
1241     return X86::CMP32ri;
1242   case MVT::i64:
1243     if (isInt<8>(Val))
1244       return X86::CMP64ri8;
1245     // 64-bit comparisons are only valid if the immediate fits in a 32-bit sext
1246     // field.
1247     if (isInt<32>(Val))
1248       return X86::CMP64ri32;
1249     return 0;
1250   }
1251 }
1252 
1253 bool X86FastISel::X86FastEmitCompare(const Value *Op0, const Value *Op1,
1254                                      EVT VT, DebugLoc CurDbgLoc) {
1255   unsigned Op0Reg = getRegForValue(Op0);
1256   if (Op0Reg == 0) return false;
1257 
1258   // Handle 'null' like i32/i64 0.
1259   if (isa<ConstantPointerNull>(Op1))
1260     Op1 = Constant::getNullValue(DL.getIntPtrType(Op0->getContext()));
1261 
1262   // We have two options: compare with register or immediate.  If the RHS of
1263   // the compare is an immediate that we can fold into this compare, use
1264   // CMPri, otherwise use CMPrr.
1265   if (const ConstantInt *Op1C = dyn_cast<ConstantInt>(Op1)) {
1266     if (unsigned CompareImmOpc = X86ChooseCmpImmediateOpcode(VT, Op1C)) {
1267       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, CurDbgLoc, TII.get(CompareImmOpc))
1268         .addReg(Op0Reg)
1269         .addImm(Op1C->getSExtValue());
1270       return true;
1271     }
1272   }
1273 
1274   unsigned CompareOpc = X86ChooseCmpOpcode(VT, Subtarget);
1275   if (CompareOpc == 0) return false;
1276 
1277   unsigned Op1Reg = getRegForValue(Op1);
1278   if (Op1Reg == 0) return false;
1279   BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, CurDbgLoc, TII.get(CompareOpc))
1280     .addReg(Op0Reg)
1281     .addReg(Op1Reg);
1282 
1283   return true;
1284 }
1285 
1286 bool X86FastISel::X86SelectCmp(const Instruction *I) {
1287   const CmpInst *CI = cast<CmpInst>(I);
1288 
1289   MVT VT;
1290   if (!isTypeLegal(I->getOperand(0)->getType(), VT))
1291     return false;
1292 
1293   // Try to optimize or fold the cmp.
1294   CmpInst::Predicate Predicate = optimizeCmpPredicate(CI);
1295   unsigned ResultReg = 0;
1296   switch (Predicate) {
1297   default: break;
1298   case CmpInst::FCMP_FALSE: {
1299     ResultReg = createResultReg(&X86::GR32RegClass);
1300     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(X86::MOV32r0),
1301             ResultReg);
1302     ResultReg = fastEmitInst_extractsubreg(MVT::i8, ResultReg, /*Kill=*/true,
1303                                            X86::sub_8bit);
1304     if (!ResultReg)
1305       return false;
1306     break;
1307   }
1308   case CmpInst::FCMP_TRUE: {
1309     ResultReg = createResultReg(&X86::GR8RegClass);
1310     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(X86::MOV8ri),
1311             ResultReg).addImm(1);
1312     break;
1313   }
1314   }
1315 
1316   if (ResultReg) {
1317     updateValueMap(I, ResultReg);
1318     return true;
1319   }
1320 
1321   const Value *LHS = CI->getOperand(0);
1322   const Value *RHS = CI->getOperand(1);
1323 
1324   // The optimizer might have replaced fcmp oeq %x, %x with fcmp ord %x, 0.0.
1325   // We don't have to materialize a zero constant for this case and can just use
1326   // %x again on the RHS.
1327   if (Predicate == CmpInst::FCMP_ORD || Predicate == CmpInst::FCMP_UNO) {
1328     const auto *RHSC = dyn_cast<ConstantFP>(RHS);
1329     if (RHSC && RHSC->isNullValue())
1330       RHS = LHS;
1331   }
1332 
1333   // FCMP_OEQ and FCMP_UNE cannot be checked with a single instruction.
1334   static unsigned SETFOpcTable[2][3] = {
1335     { X86::SETEr,  X86::SETNPr, X86::AND8rr },
1336     { X86::SETNEr, X86::SETPr,  X86::OR8rr  }
1337   };
1338   unsigned *SETFOpc = nullptr;
1339   switch (Predicate) {
1340   default: break;
1341   case CmpInst::FCMP_OEQ: SETFOpc = &SETFOpcTable[0][0]; break;
1342   case CmpInst::FCMP_UNE: SETFOpc = &SETFOpcTable[1][0]; break;
1343   }
1344 
1345   ResultReg = createResultReg(&X86::GR8RegClass);
1346   if (SETFOpc) {
1347     if (!X86FastEmitCompare(LHS, RHS, VT, I->getDebugLoc()))
1348       return false;
1349 
1350     unsigned FlagReg1 = createResultReg(&X86::GR8RegClass);
1351     unsigned FlagReg2 = createResultReg(&X86::GR8RegClass);
1352     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(SETFOpc[0]),
1353             FlagReg1);
1354     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(SETFOpc[1]),
1355             FlagReg2);
1356     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(SETFOpc[2]),
1357             ResultReg).addReg(FlagReg1).addReg(FlagReg2);
1358     updateValueMap(I, ResultReg);
1359     return true;
1360   }
1361 
1362   X86::CondCode CC;
1363   bool SwapArgs;
1364   std::tie(CC, SwapArgs) = getX86ConditionCode(Predicate);
1365   assert(CC <= X86::LAST_VALID_COND && "Unexpected condition code.");
1366   unsigned Opc = X86::getSETFromCond(CC);
1367 
1368   if (SwapArgs)
1369     std::swap(LHS, RHS);
1370 
1371   // Emit a compare of LHS/RHS.
1372   if (!X86FastEmitCompare(LHS, RHS, VT, I->getDebugLoc()))
1373     return false;
1374 
1375   BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Opc), ResultReg);
1376   updateValueMap(I, ResultReg);
1377   return true;
1378 }
1379 
1380 bool X86FastISel::X86SelectZExt(const Instruction *I) {
1381   EVT DstVT = TLI.getValueType(DL, I->getType());
1382   if (!TLI.isTypeLegal(DstVT))
1383     return false;
1384 
1385   unsigned ResultReg = getRegForValue(I->getOperand(0));
1386   if (ResultReg == 0)
1387     return false;
1388 
1389   // Handle zero-extension from i1 to i8, which is common.
1390   MVT SrcVT = TLI.getSimpleValueType(DL, I->getOperand(0)->getType());
1391   if (SrcVT.SimpleTy == MVT::i1) {
1392     // Set the high bits to zero.
1393     ResultReg = fastEmitZExtFromI1(MVT::i8, ResultReg, /*TODO: Kill=*/false);
1394     SrcVT = MVT::i8;
1395 
1396     if (ResultReg == 0)
1397       return false;
1398   }
1399 
1400   if (DstVT == MVT::i64) {
1401     // Handle extension to 64-bits via sub-register shenanigans.
1402     unsigned MovInst;
1403 
1404     switch (SrcVT.SimpleTy) {
1405     case MVT::i8:  MovInst = X86::MOVZX32rr8;  break;
1406     case MVT::i16: MovInst = X86::MOVZX32rr16; break;
1407     case MVT::i32: MovInst = X86::MOV32rr;     break;
1408     default: llvm_unreachable("Unexpected zext to i64 source type");
1409     }
1410 
1411     unsigned Result32 = createResultReg(&X86::GR32RegClass);
1412     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(MovInst), Result32)
1413       .addReg(ResultReg);
1414 
1415     ResultReg = createResultReg(&X86::GR64RegClass);
1416     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(TargetOpcode::SUBREG_TO_REG),
1417             ResultReg)
1418       .addImm(0).addReg(Result32).addImm(X86::sub_32bit);
1419   } else if (DstVT != MVT::i8) {
1420     ResultReg = fastEmit_r(MVT::i8, DstVT.getSimpleVT(), ISD::ZERO_EXTEND,
1421                            ResultReg, /*Kill=*/true);
1422     if (ResultReg == 0)
1423       return false;
1424   }
1425 
1426   updateValueMap(I, ResultReg);
1427   return true;
1428 }
1429 
1430 bool X86FastISel::X86SelectBranch(const Instruction *I) {
1431   // Unconditional branches are selected by tablegen-generated code.
1432   // Handle a conditional branch.
1433   const BranchInst *BI = cast<BranchInst>(I);
1434   MachineBasicBlock *TrueMBB = FuncInfo.MBBMap[BI->getSuccessor(0)];
1435   MachineBasicBlock *FalseMBB = FuncInfo.MBBMap[BI->getSuccessor(1)];
1436 
1437   // Fold the common case of a conditional branch with a comparison
1438   // in the same block (values defined on other blocks may not have
1439   // initialized registers).
1440   X86::CondCode CC;
1441   if (const CmpInst *CI = dyn_cast<CmpInst>(BI->getCondition())) {
1442     if (CI->hasOneUse() && CI->getParent() == I->getParent()) {
1443       EVT VT = TLI.getValueType(DL, CI->getOperand(0)->getType());
1444 
1445       // Try to optimize or fold the cmp.
1446       CmpInst::Predicate Predicate = optimizeCmpPredicate(CI);
1447       switch (Predicate) {
1448       default: break;
1449       case CmpInst::FCMP_FALSE: fastEmitBranch(FalseMBB, DbgLoc); return true;
1450       case CmpInst::FCMP_TRUE:  fastEmitBranch(TrueMBB, DbgLoc); return true;
1451       }
1452 
1453       const Value *CmpLHS = CI->getOperand(0);
1454       const Value *CmpRHS = CI->getOperand(1);
1455 
1456       // The optimizer might have replaced fcmp oeq %x, %x with fcmp ord %x,
1457       // 0.0.
1458       // We don't have to materialize a zero constant for this case and can just
1459       // use %x again on the RHS.
1460       if (Predicate == CmpInst::FCMP_ORD || Predicate == CmpInst::FCMP_UNO) {
1461         const auto *CmpRHSC = dyn_cast<ConstantFP>(CmpRHS);
1462         if (CmpRHSC && CmpRHSC->isNullValue())
1463           CmpRHS = CmpLHS;
1464       }
1465 
1466       // Try to take advantage of fallthrough opportunities.
1467       if (FuncInfo.MBB->isLayoutSuccessor(TrueMBB)) {
1468         std::swap(TrueMBB, FalseMBB);
1469         Predicate = CmpInst::getInversePredicate(Predicate);
1470       }
1471 
1472       // FCMP_OEQ and FCMP_UNE cannot be expressed with a single flag/condition
1473       // code check. Instead two branch instructions are required to check all
1474       // the flags. First we change the predicate to a supported condition code,
1475       // which will be the first branch. Later one we will emit the second
1476       // branch.
1477       bool NeedExtraBranch = false;
1478       switch (Predicate) {
1479       default: break;
1480       case CmpInst::FCMP_OEQ:
1481         std::swap(TrueMBB, FalseMBB); // fall-through
1482       case CmpInst::FCMP_UNE:
1483         NeedExtraBranch = true;
1484         Predicate = CmpInst::FCMP_ONE;
1485         break;
1486       }
1487 
1488       bool SwapArgs;
1489       unsigned BranchOpc;
1490       std::tie(CC, SwapArgs) = getX86ConditionCode(Predicate);
1491       assert(CC <= X86::LAST_VALID_COND && "Unexpected condition code.");
1492 
1493       BranchOpc = X86::GetCondBranchFromCond(CC);
1494       if (SwapArgs)
1495         std::swap(CmpLHS, CmpRHS);
1496 
1497       // Emit a compare of the LHS and RHS, setting the flags.
1498       if (!X86FastEmitCompare(CmpLHS, CmpRHS, VT, CI->getDebugLoc()))
1499         return false;
1500 
1501       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(BranchOpc))
1502         .addMBB(TrueMBB);
1503 
1504       // X86 requires a second branch to handle UNE (and OEQ, which is mapped
1505       // to UNE above).
1506       if (NeedExtraBranch) {
1507         BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(X86::JP_1))
1508           .addMBB(TrueMBB);
1509       }
1510 
1511       finishCondBranch(BI->getParent(), TrueMBB, FalseMBB);
1512       return true;
1513     }
1514   } else if (TruncInst *TI = dyn_cast<TruncInst>(BI->getCondition())) {
1515     // Handle things like "%cond = trunc i32 %X to i1 / br i1 %cond", which
1516     // typically happen for _Bool and C++ bools.
1517     MVT SourceVT;
1518     if (TI->hasOneUse() && TI->getParent() == I->getParent() &&
1519         isTypeLegal(TI->getOperand(0)->getType(), SourceVT)) {
1520       unsigned TestOpc = 0;
1521       switch (SourceVT.SimpleTy) {
1522       default: break;
1523       case MVT::i8:  TestOpc = X86::TEST8ri; break;
1524       case MVT::i16: TestOpc = X86::TEST16ri; break;
1525       case MVT::i32: TestOpc = X86::TEST32ri; break;
1526       case MVT::i64: TestOpc = X86::TEST64ri32; break;
1527       }
1528       if (TestOpc) {
1529         unsigned OpReg = getRegForValue(TI->getOperand(0));
1530         if (OpReg == 0) return false;
1531         BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(TestOpc))
1532           .addReg(OpReg).addImm(1);
1533 
1534         unsigned JmpOpc = X86::JNE_1;
1535         if (FuncInfo.MBB->isLayoutSuccessor(TrueMBB)) {
1536           std::swap(TrueMBB, FalseMBB);
1537           JmpOpc = X86::JE_1;
1538         }
1539 
1540         BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(JmpOpc))
1541           .addMBB(TrueMBB);
1542 
1543         finishCondBranch(BI->getParent(), TrueMBB, FalseMBB);
1544         return true;
1545       }
1546     }
1547   } else if (foldX86XALUIntrinsic(CC, BI, BI->getCondition())) {
1548     // Fake request the condition, otherwise the intrinsic might be completely
1549     // optimized away.
1550     unsigned TmpReg = getRegForValue(BI->getCondition());
1551     if (TmpReg == 0)
1552       return false;
1553 
1554     unsigned BranchOpc = X86::GetCondBranchFromCond(CC);
1555 
1556     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(BranchOpc))
1557       .addMBB(TrueMBB);
1558     finishCondBranch(BI->getParent(), TrueMBB, FalseMBB);
1559     return true;
1560   }
1561 
1562   // Otherwise do a clumsy setcc and re-test it.
1563   // Note that i1 essentially gets ANY_EXTEND'ed to i8 where it isn't used
1564   // in an explicit cast, so make sure to handle that correctly.
1565   unsigned OpReg = getRegForValue(BI->getCondition());
1566   if (OpReg == 0) return false;
1567 
1568   BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(X86::TEST8ri))
1569     .addReg(OpReg).addImm(1);
1570   BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(X86::JNE_1))
1571     .addMBB(TrueMBB);
1572   finishCondBranch(BI->getParent(), TrueMBB, FalseMBB);
1573   return true;
1574 }
1575 
1576 bool X86FastISel::X86SelectShift(const Instruction *I) {
1577   unsigned CReg = 0, OpReg = 0;
1578   const TargetRegisterClass *RC = nullptr;
1579   if (I->getType()->isIntegerTy(8)) {
1580     CReg = X86::CL;
1581     RC = &X86::GR8RegClass;
1582     switch (I->getOpcode()) {
1583     case Instruction::LShr: OpReg = X86::SHR8rCL; break;
1584     case Instruction::AShr: OpReg = X86::SAR8rCL; break;
1585     case Instruction::Shl:  OpReg = X86::SHL8rCL; break;
1586     default: return false;
1587     }
1588   } else if (I->getType()->isIntegerTy(16)) {
1589     CReg = X86::CX;
1590     RC = &X86::GR16RegClass;
1591     switch (I->getOpcode()) {
1592     case Instruction::LShr: OpReg = X86::SHR16rCL; break;
1593     case Instruction::AShr: OpReg = X86::SAR16rCL; break;
1594     case Instruction::Shl:  OpReg = X86::SHL16rCL; break;
1595     default: return false;
1596     }
1597   } else if (I->getType()->isIntegerTy(32)) {
1598     CReg = X86::ECX;
1599     RC = &X86::GR32RegClass;
1600     switch (I->getOpcode()) {
1601     case Instruction::LShr: OpReg = X86::SHR32rCL; break;
1602     case Instruction::AShr: OpReg = X86::SAR32rCL; break;
1603     case Instruction::Shl:  OpReg = X86::SHL32rCL; break;
1604     default: return false;
1605     }
1606   } else if (I->getType()->isIntegerTy(64)) {
1607     CReg = X86::RCX;
1608     RC = &X86::GR64RegClass;
1609     switch (I->getOpcode()) {
1610     case Instruction::LShr: OpReg = X86::SHR64rCL; break;
1611     case Instruction::AShr: OpReg = X86::SAR64rCL; break;
1612     case Instruction::Shl:  OpReg = X86::SHL64rCL; break;
1613     default: return false;
1614     }
1615   } else {
1616     return false;
1617   }
1618 
1619   MVT VT;
1620   if (!isTypeLegal(I->getType(), VT))
1621     return false;
1622 
1623   unsigned Op0Reg = getRegForValue(I->getOperand(0));
1624   if (Op0Reg == 0) return false;
1625 
1626   unsigned Op1Reg = getRegForValue(I->getOperand(1));
1627   if (Op1Reg == 0) return false;
1628   BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(TargetOpcode::COPY),
1629           CReg).addReg(Op1Reg);
1630 
1631   // The shift instruction uses X86::CL. If we defined a super-register
1632   // of X86::CL, emit a subreg KILL to precisely describe what we're doing here.
1633   if (CReg != X86::CL)
1634     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
1635             TII.get(TargetOpcode::KILL), X86::CL)
1636       .addReg(CReg, RegState::Kill);
1637 
1638   unsigned ResultReg = createResultReg(RC);
1639   BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(OpReg), ResultReg)
1640     .addReg(Op0Reg);
1641   updateValueMap(I, ResultReg);
1642   return true;
1643 }
1644 
1645 bool X86FastISel::X86SelectDivRem(const Instruction *I) {
1646   const static unsigned NumTypes = 4; // i8, i16, i32, i64
1647   const static unsigned NumOps   = 4; // SDiv, SRem, UDiv, URem
1648   const static bool S = true;  // IsSigned
1649   const static bool U = false; // !IsSigned
1650   const static unsigned Copy = TargetOpcode::COPY;
1651   // For the X86 DIV/IDIV instruction, in most cases the dividend
1652   // (numerator) must be in a specific register pair highreg:lowreg,
1653   // producing the quotient in lowreg and the remainder in highreg.
1654   // For most data types, to set up the instruction, the dividend is
1655   // copied into lowreg, and lowreg is sign-extended or zero-extended
1656   // into highreg.  The exception is i8, where the dividend is defined
1657   // as a single register rather than a register pair, and we
1658   // therefore directly sign-extend or zero-extend the dividend into
1659   // lowreg, instead of copying, and ignore the highreg.
1660   const static struct DivRemEntry {
1661     // The following portion depends only on the data type.
1662     const TargetRegisterClass *RC;
1663     unsigned LowInReg;  // low part of the register pair
1664     unsigned HighInReg; // high part of the register pair
1665     // The following portion depends on both the data type and the operation.
1666     struct DivRemResult {
1667     unsigned OpDivRem;        // The specific DIV/IDIV opcode to use.
1668     unsigned OpSignExtend;    // Opcode for sign-extending lowreg into
1669                               // highreg, or copying a zero into highreg.
1670     unsigned OpCopy;          // Opcode for copying dividend into lowreg, or
1671                               // zero/sign-extending into lowreg for i8.
1672     unsigned DivRemResultReg; // Register containing the desired result.
1673     bool IsOpSigned;          // Whether to use signed or unsigned form.
1674     } ResultTable[NumOps];
1675   } OpTable[NumTypes] = {
1676     { &X86::GR8RegClass,  X86::AX,  0, {
1677         { X86::IDIV8r,  0,            X86::MOVSX16rr8, X86::AL,  S }, // SDiv
1678         { X86::IDIV8r,  0,            X86::MOVSX16rr8, X86::AH,  S }, // SRem
1679         { X86::DIV8r,   0,            X86::MOVZX16rr8, X86::AL,  U }, // UDiv
1680         { X86::DIV8r,   0,            X86::MOVZX16rr8, X86::AH,  U }, // URem
1681       }
1682     }, // i8
1683     { &X86::GR16RegClass, X86::AX,  X86::DX, {
1684         { X86::IDIV16r, X86::CWD,     Copy,            X86::AX,  S }, // SDiv
1685         { X86::IDIV16r, X86::CWD,     Copy,            X86::DX,  S }, // SRem
1686         { X86::DIV16r,  X86::MOV32r0, Copy,            X86::AX,  U }, // UDiv
1687         { X86::DIV16r,  X86::MOV32r0, Copy,            X86::DX,  U }, // URem
1688       }
1689     }, // i16
1690     { &X86::GR32RegClass, X86::EAX, X86::EDX, {
1691         { X86::IDIV32r, X86::CDQ,     Copy,            X86::EAX, S }, // SDiv
1692         { X86::IDIV32r, X86::CDQ,     Copy,            X86::EDX, S }, // SRem
1693         { X86::DIV32r,  X86::MOV32r0, Copy,            X86::EAX, U }, // UDiv
1694         { X86::DIV32r,  X86::MOV32r0, Copy,            X86::EDX, U }, // URem
1695       }
1696     }, // i32
1697     { &X86::GR64RegClass, X86::RAX, X86::RDX, {
1698         { X86::IDIV64r, X86::CQO,     Copy,            X86::RAX, S }, // SDiv
1699         { X86::IDIV64r, X86::CQO,     Copy,            X86::RDX, S }, // SRem
1700         { X86::DIV64r,  X86::MOV32r0, Copy,            X86::RAX, U }, // UDiv
1701         { X86::DIV64r,  X86::MOV32r0, Copy,            X86::RDX, U }, // URem
1702       }
1703     }, // i64
1704   };
1705 
1706   MVT VT;
1707   if (!isTypeLegal(I->getType(), VT))
1708     return false;
1709 
1710   unsigned TypeIndex, OpIndex;
1711   switch (VT.SimpleTy) {
1712   default: return false;
1713   case MVT::i8:  TypeIndex = 0; break;
1714   case MVT::i16: TypeIndex = 1; break;
1715   case MVT::i32: TypeIndex = 2; break;
1716   case MVT::i64: TypeIndex = 3;
1717     if (!Subtarget->is64Bit())
1718       return false;
1719     break;
1720   }
1721 
1722   switch (I->getOpcode()) {
1723   default: llvm_unreachable("Unexpected div/rem opcode");
1724   case Instruction::SDiv: OpIndex = 0; break;
1725   case Instruction::SRem: OpIndex = 1; break;
1726   case Instruction::UDiv: OpIndex = 2; break;
1727   case Instruction::URem: OpIndex = 3; break;
1728   }
1729 
1730   const DivRemEntry &TypeEntry = OpTable[TypeIndex];
1731   const DivRemEntry::DivRemResult &OpEntry = TypeEntry.ResultTable[OpIndex];
1732   unsigned Op0Reg = getRegForValue(I->getOperand(0));
1733   if (Op0Reg == 0)
1734     return false;
1735   unsigned Op1Reg = getRegForValue(I->getOperand(1));
1736   if (Op1Reg == 0)
1737     return false;
1738 
1739   // Move op0 into low-order input register.
1740   BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
1741           TII.get(OpEntry.OpCopy), TypeEntry.LowInReg).addReg(Op0Reg);
1742   // Zero-extend or sign-extend into high-order input register.
1743   if (OpEntry.OpSignExtend) {
1744     if (OpEntry.IsOpSigned)
1745       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
1746               TII.get(OpEntry.OpSignExtend));
1747     else {
1748       unsigned Zero32 = createResultReg(&X86::GR32RegClass);
1749       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
1750               TII.get(X86::MOV32r0), Zero32);
1751 
1752       // Copy the zero into the appropriate sub/super/identical physical
1753       // register. Unfortunately the operations needed are not uniform enough
1754       // to fit neatly into the table above.
1755       if (VT.SimpleTy == MVT::i16) {
1756         BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
1757                 TII.get(Copy), TypeEntry.HighInReg)
1758           .addReg(Zero32, 0, X86::sub_16bit);
1759       } else if (VT.SimpleTy == MVT::i32) {
1760         BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
1761                 TII.get(Copy), TypeEntry.HighInReg)
1762             .addReg(Zero32);
1763       } else if (VT.SimpleTy == MVT::i64) {
1764         BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
1765                 TII.get(TargetOpcode::SUBREG_TO_REG), TypeEntry.HighInReg)
1766             .addImm(0).addReg(Zero32).addImm(X86::sub_32bit);
1767       }
1768     }
1769   }
1770   // Generate the DIV/IDIV instruction.
1771   BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
1772           TII.get(OpEntry.OpDivRem)).addReg(Op1Reg);
1773   // For i8 remainder, we can't reference AH directly, as we'll end
1774   // up with bogus copies like %R9B = COPY %AH. Reference AX
1775   // instead to prevent AH references in a REX instruction.
1776   //
1777   // The current assumption of the fast register allocator is that isel
1778   // won't generate explicit references to the GPR8_NOREX registers. If
1779   // the allocator and/or the backend get enhanced to be more robust in
1780   // that regard, this can be, and should be, removed.
1781   unsigned ResultReg = 0;
1782   if ((I->getOpcode() == Instruction::SRem ||
1783        I->getOpcode() == Instruction::URem) &&
1784       OpEntry.DivRemResultReg == X86::AH && Subtarget->is64Bit()) {
1785     unsigned SourceSuperReg = createResultReg(&X86::GR16RegClass);
1786     unsigned ResultSuperReg = createResultReg(&X86::GR16RegClass);
1787     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
1788             TII.get(Copy), SourceSuperReg).addReg(X86::AX);
1789 
1790     // Shift AX right by 8 bits instead of using AH.
1791     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(X86::SHR16ri),
1792             ResultSuperReg).addReg(SourceSuperReg).addImm(8);
1793 
1794     // Now reference the 8-bit subreg of the result.
1795     ResultReg = fastEmitInst_extractsubreg(MVT::i8, ResultSuperReg,
1796                                            /*Kill=*/true, X86::sub_8bit);
1797   }
1798   // Copy the result out of the physreg if we haven't already.
1799   if (!ResultReg) {
1800     ResultReg = createResultReg(TypeEntry.RC);
1801     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Copy), ResultReg)
1802         .addReg(OpEntry.DivRemResultReg);
1803   }
1804   updateValueMap(I, ResultReg);
1805 
1806   return true;
1807 }
1808 
1809 /// \brief Emit a conditional move instruction (if the are supported) to lower
1810 /// the select.
1811 bool X86FastISel::X86FastEmitCMoveSelect(MVT RetVT, const Instruction *I) {
1812   // Check if the subtarget supports these instructions.
1813   if (!Subtarget->hasCMov())
1814     return false;
1815 
1816   // FIXME: Add support for i8.
1817   if (RetVT < MVT::i16 || RetVT > MVT::i64)
1818     return false;
1819 
1820   const Value *Cond = I->getOperand(0);
1821   const TargetRegisterClass *RC = TLI.getRegClassFor(RetVT);
1822   bool NeedTest = true;
1823   X86::CondCode CC = X86::COND_NE;
1824 
1825   // Optimize conditions coming from a compare if both instructions are in the
1826   // same basic block (values defined in other basic blocks may not have
1827   // initialized registers).
1828   const auto *CI = dyn_cast<CmpInst>(Cond);
1829   if (CI && (CI->getParent() == I->getParent())) {
1830     CmpInst::Predicate Predicate = optimizeCmpPredicate(CI);
1831 
1832     // FCMP_OEQ and FCMP_UNE cannot be checked with a single instruction.
1833     static unsigned SETFOpcTable[2][3] = {
1834       { X86::SETNPr, X86::SETEr , X86::TEST8rr },
1835       { X86::SETPr,  X86::SETNEr, X86::OR8rr   }
1836     };
1837     unsigned *SETFOpc = nullptr;
1838     switch (Predicate) {
1839     default: break;
1840     case CmpInst::FCMP_OEQ:
1841       SETFOpc = &SETFOpcTable[0][0];
1842       Predicate = CmpInst::ICMP_NE;
1843       break;
1844     case CmpInst::FCMP_UNE:
1845       SETFOpc = &SETFOpcTable[1][0];
1846       Predicate = CmpInst::ICMP_NE;
1847       break;
1848     }
1849 
1850     bool NeedSwap;
1851     std::tie(CC, NeedSwap) = getX86ConditionCode(Predicate);
1852     assert(CC <= X86::LAST_VALID_COND && "Unexpected condition code.");
1853 
1854     const Value *CmpLHS = CI->getOperand(0);
1855     const Value *CmpRHS = CI->getOperand(1);
1856     if (NeedSwap)
1857       std::swap(CmpLHS, CmpRHS);
1858 
1859     EVT CmpVT = TLI.getValueType(DL, CmpLHS->getType());
1860     // Emit a compare of the LHS and RHS, setting the flags.
1861     if (!X86FastEmitCompare(CmpLHS, CmpRHS, CmpVT, CI->getDebugLoc()))
1862       return false;
1863 
1864     if (SETFOpc) {
1865       unsigned FlagReg1 = createResultReg(&X86::GR8RegClass);
1866       unsigned FlagReg2 = createResultReg(&X86::GR8RegClass);
1867       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(SETFOpc[0]),
1868               FlagReg1);
1869       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(SETFOpc[1]),
1870               FlagReg2);
1871       auto const &II = TII.get(SETFOpc[2]);
1872       if (II.getNumDefs()) {
1873         unsigned TmpReg = createResultReg(&X86::GR8RegClass);
1874         BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, II, TmpReg)
1875           .addReg(FlagReg2).addReg(FlagReg1);
1876       } else {
1877         BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, II)
1878           .addReg(FlagReg2).addReg(FlagReg1);
1879       }
1880     }
1881     NeedTest = false;
1882   } else if (foldX86XALUIntrinsic(CC, I, Cond)) {
1883     // Fake request the condition, otherwise the intrinsic might be completely
1884     // optimized away.
1885     unsigned TmpReg = getRegForValue(Cond);
1886     if (TmpReg == 0)
1887       return false;
1888 
1889     NeedTest = false;
1890   }
1891 
1892   if (NeedTest) {
1893     // Selects operate on i1, however, CondReg is 8 bits width and may contain
1894     // garbage. Indeed, only the less significant bit is supposed to be
1895     // accurate. If we read more than the lsb, we may see non-zero values
1896     // whereas lsb is zero. Therefore, we have to truncate Op0Reg to i1 for
1897     // the select. This is achieved by performing TEST against 1.
1898     unsigned CondReg = getRegForValue(Cond);
1899     if (CondReg == 0)
1900       return false;
1901     bool CondIsKill = hasTrivialKill(Cond);
1902 
1903     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(X86::TEST8ri))
1904       .addReg(CondReg, getKillRegState(CondIsKill)).addImm(1);
1905   }
1906 
1907   const Value *LHS = I->getOperand(1);
1908   const Value *RHS = I->getOperand(2);
1909 
1910   unsigned RHSReg = getRegForValue(RHS);
1911   bool RHSIsKill = hasTrivialKill(RHS);
1912 
1913   unsigned LHSReg = getRegForValue(LHS);
1914   bool LHSIsKill = hasTrivialKill(LHS);
1915 
1916   if (!LHSReg || !RHSReg)
1917     return false;
1918 
1919   unsigned Opc = X86::getCMovFromCond(CC, RC->getSize());
1920   unsigned ResultReg = fastEmitInst_rr(Opc, RC, RHSReg, RHSIsKill,
1921                                        LHSReg, LHSIsKill);
1922   updateValueMap(I, ResultReg);
1923   return true;
1924 }
1925 
1926 /// \brief Emit SSE or AVX instructions to lower the select.
1927 ///
1928 /// Try to use SSE1/SSE2 instructions to simulate a select without branches.
1929 /// This lowers fp selects into a CMP/AND/ANDN/OR sequence when the necessary
1930 /// SSE instructions are available. If AVX is available, try to use a VBLENDV.
1931 bool X86FastISel::X86FastEmitSSESelect(MVT RetVT, const Instruction *I) {
1932   // Optimize conditions coming from a compare if both instructions are in the
1933   // same basic block (values defined in other basic blocks may not have
1934   // initialized registers).
1935   const auto *CI = dyn_cast<FCmpInst>(I->getOperand(0));
1936   if (!CI || (CI->getParent() != I->getParent()))
1937     return false;
1938 
1939   if (I->getType() != CI->getOperand(0)->getType() ||
1940       !((Subtarget->hasSSE1() && RetVT == MVT::f32) ||
1941         (Subtarget->hasSSE2() && RetVT == MVT::f64)))
1942     return false;
1943 
1944   const Value *CmpLHS = CI->getOperand(0);
1945   const Value *CmpRHS = CI->getOperand(1);
1946   CmpInst::Predicate Predicate = optimizeCmpPredicate(CI);
1947 
1948   // The optimizer might have replaced fcmp oeq %x, %x with fcmp ord %x, 0.0.
1949   // We don't have to materialize a zero constant for this case and can just use
1950   // %x again on the RHS.
1951   if (Predicate == CmpInst::FCMP_ORD || Predicate == CmpInst::FCMP_UNO) {
1952     const auto *CmpRHSC = dyn_cast<ConstantFP>(CmpRHS);
1953     if (CmpRHSC && CmpRHSC->isNullValue())
1954       CmpRHS = CmpLHS;
1955   }
1956 
1957   unsigned CC;
1958   bool NeedSwap;
1959   std::tie(CC, NeedSwap) = getX86SSEConditionCode(Predicate);
1960   if (CC > 7)
1961     return false;
1962 
1963   if (NeedSwap)
1964     std::swap(CmpLHS, CmpRHS);
1965 
1966   // Choose the SSE instruction sequence based on data type (float or double).
1967   static unsigned OpcTable[2][4] = {
1968     { X86::CMPSSrr,  X86::FsANDPSrr,  X86::FsANDNPSrr,  X86::FsORPSrr  },
1969     { X86::CMPSDrr,  X86::FsANDPDrr,  X86::FsANDNPDrr,  X86::FsORPDrr  }
1970   };
1971 
1972   unsigned *Opc = nullptr;
1973   switch (RetVT.SimpleTy) {
1974   default: return false;
1975   case MVT::f32: Opc = &OpcTable[0][0]; break;
1976   case MVT::f64: Opc = &OpcTable[1][0]; break;
1977   }
1978 
1979   const Value *LHS = I->getOperand(1);
1980   const Value *RHS = I->getOperand(2);
1981 
1982   unsigned LHSReg = getRegForValue(LHS);
1983   bool LHSIsKill = hasTrivialKill(LHS);
1984 
1985   unsigned RHSReg = getRegForValue(RHS);
1986   bool RHSIsKill = hasTrivialKill(RHS);
1987 
1988   unsigned CmpLHSReg = getRegForValue(CmpLHS);
1989   bool CmpLHSIsKill = hasTrivialKill(CmpLHS);
1990 
1991   unsigned CmpRHSReg = getRegForValue(CmpRHS);
1992   bool CmpRHSIsKill = hasTrivialKill(CmpRHS);
1993 
1994   if (!LHSReg || !RHSReg || !CmpLHS || !CmpRHS)
1995     return false;
1996 
1997   const TargetRegisterClass *RC = TLI.getRegClassFor(RetVT);
1998   unsigned ResultReg;
1999 
2000   if (Subtarget->hasAVX()) {
2001     const TargetRegisterClass *FR32 = &X86::FR32RegClass;
2002     const TargetRegisterClass *VR128 = &X86::VR128RegClass;
2003 
2004     // If we have AVX, create 1 blendv instead of 3 logic instructions.
2005     // Blendv was introduced with SSE 4.1, but the 2 register form implicitly
2006     // uses XMM0 as the selection register. That may need just as many
2007     // instructions as the AND/ANDN/OR sequence due to register moves, so
2008     // don't bother.
2009     unsigned CmpOpcode =
2010       (RetVT.SimpleTy == MVT::f32) ? X86::VCMPSSrr : X86::VCMPSDrr;
2011     unsigned BlendOpcode =
2012       (RetVT.SimpleTy == MVT::f32) ? X86::VBLENDVPSrr : X86::VBLENDVPDrr;
2013 
2014     unsigned CmpReg = fastEmitInst_rri(CmpOpcode, FR32, CmpLHSReg, CmpLHSIsKill,
2015                                        CmpRHSReg, CmpRHSIsKill, CC);
2016     unsigned VBlendReg = fastEmitInst_rrr(BlendOpcode, VR128, RHSReg, RHSIsKill,
2017                                           LHSReg, LHSIsKill, CmpReg, true);
2018     ResultReg = createResultReg(RC);
2019     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2020             TII.get(TargetOpcode::COPY), ResultReg).addReg(VBlendReg);
2021   } else {
2022     unsigned CmpReg = fastEmitInst_rri(Opc[0], RC, CmpLHSReg, CmpLHSIsKill,
2023                                        CmpRHSReg, CmpRHSIsKill, CC);
2024     unsigned AndReg = fastEmitInst_rr(Opc[1], RC, CmpReg, /*IsKill=*/false,
2025                                       LHSReg, LHSIsKill);
2026     unsigned AndNReg = fastEmitInst_rr(Opc[2], RC, CmpReg, /*IsKill=*/true,
2027                                        RHSReg, RHSIsKill);
2028     ResultReg = fastEmitInst_rr(Opc[3], RC, AndNReg, /*IsKill=*/true,
2029                                          AndReg, /*IsKill=*/true);
2030   }
2031   updateValueMap(I, ResultReg);
2032   return true;
2033 }
2034 
2035 bool X86FastISel::X86FastEmitPseudoSelect(MVT RetVT, const Instruction *I) {
2036   // These are pseudo CMOV instructions and will be later expanded into control-
2037   // flow.
2038   unsigned Opc;
2039   switch (RetVT.SimpleTy) {
2040   default: return false;
2041   case MVT::i8:  Opc = X86::CMOV_GR8;  break;
2042   case MVT::i16: Opc = X86::CMOV_GR16; break;
2043   case MVT::i32: Opc = X86::CMOV_GR32; break;
2044   case MVT::f32: Opc = X86::CMOV_FR32; break;
2045   case MVT::f64: Opc = X86::CMOV_FR64; break;
2046   }
2047 
2048   const Value *Cond = I->getOperand(0);
2049   X86::CondCode CC = X86::COND_NE;
2050 
2051   // Optimize conditions coming from a compare if both instructions are in the
2052   // same basic block (values defined in other basic blocks may not have
2053   // initialized registers).
2054   const auto *CI = dyn_cast<CmpInst>(Cond);
2055   if (CI && (CI->getParent() == I->getParent())) {
2056     bool NeedSwap;
2057     std::tie(CC, NeedSwap) = getX86ConditionCode(CI->getPredicate());
2058     if (CC > X86::LAST_VALID_COND)
2059       return false;
2060 
2061     const Value *CmpLHS = CI->getOperand(0);
2062     const Value *CmpRHS = CI->getOperand(1);
2063 
2064     if (NeedSwap)
2065       std::swap(CmpLHS, CmpRHS);
2066 
2067     EVT CmpVT = TLI.getValueType(DL, CmpLHS->getType());
2068     if (!X86FastEmitCompare(CmpLHS, CmpRHS, CmpVT, CI->getDebugLoc()))
2069       return false;
2070   } else {
2071     unsigned CondReg = getRegForValue(Cond);
2072     if (CondReg == 0)
2073       return false;
2074     bool CondIsKill = hasTrivialKill(Cond);
2075     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(X86::TEST8ri))
2076       .addReg(CondReg, getKillRegState(CondIsKill)).addImm(1);
2077   }
2078 
2079   const Value *LHS = I->getOperand(1);
2080   const Value *RHS = I->getOperand(2);
2081 
2082   unsigned LHSReg = getRegForValue(LHS);
2083   bool LHSIsKill = hasTrivialKill(LHS);
2084 
2085   unsigned RHSReg = getRegForValue(RHS);
2086   bool RHSIsKill = hasTrivialKill(RHS);
2087 
2088   if (!LHSReg || !RHSReg)
2089     return false;
2090 
2091   const TargetRegisterClass *RC = TLI.getRegClassFor(RetVT);
2092 
2093   unsigned ResultReg =
2094     fastEmitInst_rri(Opc, RC, RHSReg, RHSIsKill, LHSReg, LHSIsKill, CC);
2095   updateValueMap(I, ResultReg);
2096   return true;
2097 }
2098 
2099 bool X86FastISel::X86SelectSelect(const Instruction *I) {
2100   MVT RetVT;
2101   if (!isTypeLegal(I->getType(), RetVT))
2102     return false;
2103 
2104   // Check if we can fold the select.
2105   if (const auto *CI = dyn_cast<CmpInst>(I->getOperand(0))) {
2106     CmpInst::Predicate Predicate = optimizeCmpPredicate(CI);
2107     const Value *Opnd = nullptr;
2108     switch (Predicate) {
2109     default:                              break;
2110     case CmpInst::FCMP_FALSE: Opnd = I->getOperand(2); break;
2111     case CmpInst::FCMP_TRUE:  Opnd = I->getOperand(1); break;
2112     }
2113     // No need for a select anymore - this is an unconditional move.
2114     if (Opnd) {
2115       unsigned OpReg = getRegForValue(Opnd);
2116       if (OpReg == 0)
2117         return false;
2118       bool OpIsKill = hasTrivialKill(Opnd);
2119       const TargetRegisterClass *RC = TLI.getRegClassFor(RetVT);
2120       unsigned ResultReg = createResultReg(RC);
2121       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2122               TII.get(TargetOpcode::COPY), ResultReg)
2123         .addReg(OpReg, getKillRegState(OpIsKill));
2124       updateValueMap(I, ResultReg);
2125       return true;
2126     }
2127   }
2128 
2129   // First try to use real conditional move instructions.
2130   if (X86FastEmitCMoveSelect(RetVT, I))
2131     return true;
2132 
2133   // Try to use a sequence of SSE instructions to simulate a conditional move.
2134   if (X86FastEmitSSESelect(RetVT, I))
2135     return true;
2136 
2137   // Fall-back to pseudo conditional move instructions, which will be later
2138   // converted to control-flow.
2139   if (X86FastEmitPseudoSelect(RetVT, I))
2140     return true;
2141 
2142   return false;
2143 }
2144 
2145 bool X86FastISel::X86SelectSIToFP(const Instruction *I) {
2146   // The target-independent selection algorithm in FastISel already knows how
2147   // to select a SINT_TO_FP if the target is SSE but not AVX.
2148   // Early exit if the subtarget doesn't have AVX.
2149   if (!Subtarget->hasAVX())
2150     return false;
2151 
2152   if (!I->getOperand(0)->getType()->isIntegerTy(32))
2153     return false;
2154 
2155   // Select integer to float/double conversion.
2156   unsigned OpReg = getRegForValue(I->getOperand(0));
2157   if (OpReg == 0)
2158     return false;
2159 
2160   const TargetRegisterClass *RC = nullptr;
2161   unsigned Opcode;
2162 
2163   if (I->getType()->isDoubleTy()) {
2164     // sitofp int -> double
2165     Opcode = X86::VCVTSI2SDrr;
2166     RC = &X86::FR64RegClass;
2167   } else if (I->getType()->isFloatTy()) {
2168     // sitofp int -> float
2169     Opcode = X86::VCVTSI2SSrr;
2170     RC = &X86::FR32RegClass;
2171   } else
2172     return false;
2173 
2174   unsigned ImplicitDefReg = createResultReg(RC);
2175   BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2176           TII.get(TargetOpcode::IMPLICIT_DEF), ImplicitDefReg);
2177   unsigned ResultReg =
2178       fastEmitInst_rr(Opcode, RC, ImplicitDefReg, true, OpReg, false);
2179   updateValueMap(I, ResultReg);
2180   return true;
2181 }
2182 
2183 // Helper method used by X86SelectFPExt and X86SelectFPTrunc.
2184 bool X86FastISel::X86SelectFPExtOrFPTrunc(const Instruction *I,
2185                                           unsigned TargetOpc,
2186                                           const TargetRegisterClass *RC) {
2187   assert((I->getOpcode() == Instruction::FPExt ||
2188           I->getOpcode() == Instruction::FPTrunc) &&
2189          "Instruction must be an FPExt or FPTrunc!");
2190 
2191   unsigned OpReg = getRegForValue(I->getOperand(0));
2192   if (OpReg == 0)
2193     return false;
2194 
2195   unsigned ResultReg = createResultReg(RC);
2196   MachineInstrBuilder MIB;
2197   MIB = BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(TargetOpc),
2198                 ResultReg);
2199   if (Subtarget->hasAVX())
2200     MIB.addReg(OpReg);
2201   MIB.addReg(OpReg);
2202   updateValueMap(I, ResultReg);
2203   return true;
2204 }
2205 
2206 bool X86FastISel::X86SelectFPExt(const Instruction *I) {
2207   if (X86ScalarSSEf64 && I->getType()->isDoubleTy() &&
2208       I->getOperand(0)->getType()->isFloatTy()) {
2209     // fpext from float to double.
2210     unsigned Opc = Subtarget->hasAVX() ? X86::VCVTSS2SDrr : X86::CVTSS2SDrr;
2211     return X86SelectFPExtOrFPTrunc(I, Opc, &X86::FR64RegClass);
2212   }
2213 
2214   return false;
2215 }
2216 
2217 bool X86FastISel::X86SelectFPTrunc(const Instruction *I) {
2218   if (X86ScalarSSEf64 && I->getType()->isFloatTy() &&
2219       I->getOperand(0)->getType()->isDoubleTy()) {
2220     // fptrunc from double to float.
2221     unsigned Opc = Subtarget->hasAVX() ? X86::VCVTSD2SSrr : X86::CVTSD2SSrr;
2222     return X86SelectFPExtOrFPTrunc(I, Opc, &X86::FR32RegClass);
2223   }
2224 
2225   return false;
2226 }
2227 
2228 bool X86FastISel::X86SelectTrunc(const Instruction *I) {
2229   EVT SrcVT = TLI.getValueType(DL, I->getOperand(0)->getType());
2230   EVT DstVT = TLI.getValueType(DL, I->getType());
2231 
2232   // This code only handles truncation to byte.
2233   if (DstVT != MVT::i8 && DstVT != MVT::i1)
2234     return false;
2235   if (!TLI.isTypeLegal(SrcVT))
2236     return false;
2237 
2238   unsigned InputReg = getRegForValue(I->getOperand(0));
2239   if (!InputReg)
2240     // Unhandled operand.  Halt "fast" selection and bail.
2241     return false;
2242 
2243   if (SrcVT == MVT::i8) {
2244     // Truncate from i8 to i1; no code needed.
2245     updateValueMap(I, InputReg);
2246     return true;
2247   }
2248 
2249   bool KillInputReg = false;
2250   if (!Subtarget->is64Bit()) {
2251     // If we're on x86-32; we can't extract an i8 from a general register.
2252     // First issue a copy to GR16_ABCD or GR32_ABCD.
2253     const TargetRegisterClass *CopyRC =
2254       (SrcVT == MVT::i16) ? &X86::GR16_ABCDRegClass : &X86::GR32_ABCDRegClass;
2255     unsigned CopyReg = createResultReg(CopyRC);
2256     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2257             TII.get(TargetOpcode::COPY), CopyReg).addReg(InputReg);
2258     InputReg = CopyReg;
2259     KillInputReg = true;
2260   }
2261 
2262   // Issue an extract_subreg.
2263   unsigned ResultReg = fastEmitInst_extractsubreg(MVT::i8,
2264                                                   InputReg, KillInputReg,
2265                                                   X86::sub_8bit);
2266   if (!ResultReg)
2267     return false;
2268 
2269   updateValueMap(I, ResultReg);
2270   return true;
2271 }
2272 
2273 bool X86FastISel::IsMemcpySmall(uint64_t Len) {
2274   return Len <= (Subtarget->is64Bit() ? 32 : 16);
2275 }
2276 
2277 bool X86FastISel::TryEmitSmallMemcpy(X86AddressMode DestAM,
2278                                      X86AddressMode SrcAM, uint64_t Len) {
2279 
2280   // Make sure we don't bloat code by inlining very large memcpy's.
2281   if (!IsMemcpySmall(Len))
2282     return false;
2283 
2284   bool i64Legal = Subtarget->is64Bit();
2285 
2286   // We don't care about alignment here since we just emit integer accesses.
2287   while (Len) {
2288     MVT VT;
2289     if (Len >= 8 && i64Legal)
2290       VT = MVT::i64;
2291     else if (Len >= 4)
2292       VT = MVT::i32;
2293     else if (Len >= 2)
2294       VT = MVT::i16;
2295     else
2296       VT = MVT::i8;
2297 
2298     unsigned Reg;
2299     bool RV = X86FastEmitLoad(VT, SrcAM, nullptr, Reg);
2300     RV &= X86FastEmitStore(VT, Reg, /*Kill=*/true, DestAM);
2301     assert(RV && "Failed to emit load or store??");
2302 
2303     unsigned Size = VT.getSizeInBits()/8;
2304     Len -= Size;
2305     DestAM.Disp += Size;
2306     SrcAM.Disp += Size;
2307   }
2308 
2309   return true;
2310 }
2311 
2312 bool X86FastISel::fastLowerIntrinsicCall(const IntrinsicInst *II) {
2313   // FIXME: Handle more intrinsics.
2314   switch (II->getIntrinsicID()) {
2315   default: return false;
2316   case Intrinsic::convert_from_fp16:
2317   case Intrinsic::convert_to_fp16: {
2318     if (Subtarget->useSoftFloat() || !Subtarget->hasF16C())
2319       return false;
2320 
2321     const Value *Op = II->getArgOperand(0);
2322     unsigned InputReg = getRegForValue(Op);
2323     if (InputReg == 0)
2324       return false;
2325 
2326     // F16C only allows converting from float to half and from half to float.
2327     bool IsFloatToHalf = II->getIntrinsicID() == Intrinsic::convert_to_fp16;
2328     if (IsFloatToHalf) {
2329       if (!Op->getType()->isFloatTy())
2330         return false;
2331     } else {
2332       if (!II->getType()->isFloatTy())
2333         return false;
2334     }
2335 
2336     unsigned ResultReg = 0;
2337     const TargetRegisterClass *RC = TLI.getRegClassFor(MVT::v8i16);
2338     if (IsFloatToHalf) {
2339       // 'InputReg' is implicitly promoted from register class FR32 to
2340       // register class VR128 by method 'constrainOperandRegClass' which is
2341       // directly called by 'fastEmitInst_ri'.
2342       // Instruction VCVTPS2PHrr takes an extra immediate operand which is
2343       // used to provide rounding control: use MXCSR.RC, encoded as 0b100.
2344       // It's consistent with the other FP instructions, which are usually
2345       // controlled by MXCSR.
2346       InputReg = fastEmitInst_ri(X86::VCVTPS2PHrr, RC, InputReg, false, 4);
2347 
2348       // Move the lower 32-bits of ResultReg to another register of class GR32.
2349       ResultReg = createResultReg(&X86::GR32RegClass);
2350       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2351               TII.get(X86::VMOVPDI2DIrr), ResultReg)
2352           .addReg(InputReg, RegState::Kill);
2353 
2354       // The result value is in the lower 16-bits of ResultReg.
2355       unsigned RegIdx = X86::sub_16bit;
2356       ResultReg = fastEmitInst_extractsubreg(MVT::i16, ResultReg, true, RegIdx);
2357     } else {
2358       assert(Op->getType()->isIntegerTy(16) && "Expected a 16-bit integer!");
2359       // Explicitly sign-extend the input to 32-bit.
2360       InputReg = fastEmit_r(MVT::i16, MVT::i32, ISD::SIGN_EXTEND, InputReg,
2361                             /*Kill=*/false);
2362 
2363       // The following SCALAR_TO_VECTOR will be expanded into a VMOVDI2PDIrr.
2364       InputReg = fastEmit_r(MVT::i32, MVT::v4i32, ISD::SCALAR_TO_VECTOR,
2365                             InputReg, /*Kill=*/true);
2366 
2367       InputReg = fastEmitInst_r(X86::VCVTPH2PSrr, RC, InputReg, /*Kill=*/true);
2368 
2369       // The result value is in the lower 32-bits of ResultReg.
2370       // Emit an explicit copy from register class VR128 to register class FR32.
2371       ResultReg = createResultReg(&X86::FR32RegClass);
2372       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2373               TII.get(TargetOpcode::COPY), ResultReg)
2374           .addReg(InputReg, RegState::Kill);
2375     }
2376 
2377     updateValueMap(II, ResultReg);
2378     return true;
2379   }
2380   case Intrinsic::frameaddress: {
2381     MachineFunction *MF = FuncInfo.MF;
2382     if (MF->getTarget().getMCAsmInfo()->usesWindowsCFI())
2383       return false;
2384 
2385     Type *RetTy = II->getCalledFunction()->getReturnType();
2386 
2387     MVT VT;
2388     if (!isTypeLegal(RetTy, VT))
2389       return false;
2390 
2391     unsigned Opc;
2392     const TargetRegisterClass *RC = nullptr;
2393 
2394     switch (VT.SimpleTy) {
2395     default: llvm_unreachable("Invalid result type for frameaddress.");
2396     case MVT::i32: Opc = X86::MOV32rm; RC = &X86::GR32RegClass; break;
2397     case MVT::i64: Opc = X86::MOV64rm; RC = &X86::GR64RegClass; break;
2398     }
2399 
2400     // This needs to be set before we call getPtrSizedFrameRegister, otherwise
2401     // we get the wrong frame register.
2402     MachineFrameInfo *MFI = MF->getFrameInfo();
2403     MFI->setFrameAddressIsTaken(true);
2404 
2405     const X86RegisterInfo *RegInfo = Subtarget->getRegisterInfo();
2406     unsigned FrameReg = RegInfo->getPtrSizedFrameRegister(*MF);
2407     assert(((FrameReg == X86::RBP && VT == MVT::i64) ||
2408             (FrameReg == X86::EBP && VT == MVT::i32)) &&
2409            "Invalid Frame Register!");
2410 
2411     // Always make a copy of the frame register to to a vreg first, so that we
2412     // never directly reference the frame register (the TwoAddressInstruction-
2413     // Pass doesn't like that).
2414     unsigned SrcReg = createResultReg(RC);
2415     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2416             TII.get(TargetOpcode::COPY), SrcReg).addReg(FrameReg);
2417 
2418     // Now recursively load from the frame address.
2419     // movq (%rbp), %rax
2420     // movq (%rax), %rax
2421     // movq (%rax), %rax
2422     // ...
2423     unsigned DestReg;
2424     unsigned Depth = cast<ConstantInt>(II->getOperand(0))->getZExtValue();
2425     while (Depth--) {
2426       DestReg = createResultReg(RC);
2427       addDirectMem(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2428                            TII.get(Opc), DestReg), SrcReg);
2429       SrcReg = DestReg;
2430     }
2431 
2432     updateValueMap(II, SrcReg);
2433     return true;
2434   }
2435   case Intrinsic::memcpy: {
2436     const MemCpyInst *MCI = cast<MemCpyInst>(II);
2437     // Don't handle volatile or variable length memcpys.
2438     if (MCI->isVolatile())
2439       return false;
2440 
2441     if (isa<ConstantInt>(MCI->getLength())) {
2442       // Small memcpy's are common enough that we want to do them
2443       // without a call if possible.
2444       uint64_t Len = cast<ConstantInt>(MCI->getLength())->getZExtValue();
2445       if (IsMemcpySmall(Len)) {
2446         X86AddressMode DestAM, SrcAM;
2447         if (!X86SelectAddress(MCI->getRawDest(), DestAM) ||
2448             !X86SelectAddress(MCI->getRawSource(), SrcAM))
2449           return false;
2450         TryEmitSmallMemcpy(DestAM, SrcAM, Len);
2451         return true;
2452       }
2453     }
2454 
2455     unsigned SizeWidth = Subtarget->is64Bit() ? 64 : 32;
2456     if (!MCI->getLength()->getType()->isIntegerTy(SizeWidth))
2457       return false;
2458 
2459     if (MCI->getSourceAddressSpace() > 255 || MCI->getDestAddressSpace() > 255)
2460       return false;
2461 
2462     return lowerCallTo(II, "memcpy", II->getNumArgOperands() - 2);
2463   }
2464   case Intrinsic::memset: {
2465     const MemSetInst *MSI = cast<MemSetInst>(II);
2466 
2467     if (MSI->isVolatile())
2468       return false;
2469 
2470     unsigned SizeWidth = Subtarget->is64Bit() ? 64 : 32;
2471     if (!MSI->getLength()->getType()->isIntegerTy(SizeWidth))
2472       return false;
2473 
2474     if (MSI->getDestAddressSpace() > 255)
2475       return false;
2476 
2477     return lowerCallTo(II, "memset", II->getNumArgOperands() - 2);
2478   }
2479   case Intrinsic::stackprotector: {
2480     // Emit code to store the stack guard onto the stack.
2481     EVT PtrTy = TLI.getPointerTy(DL);
2482 
2483     const Value *Op1 = II->getArgOperand(0); // The guard's value.
2484     const AllocaInst *Slot = cast<AllocaInst>(II->getArgOperand(1));
2485 
2486     MFI.setStackProtectorIndex(FuncInfo.StaticAllocaMap[Slot]);
2487 
2488     // Grab the frame index.
2489     X86AddressMode AM;
2490     if (!X86SelectAddress(Slot, AM)) return false;
2491     if (!X86FastEmitStore(PtrTy, Op1, AM)) return false;
2492     return true;
2493   }
2494   case Intrinsic::dbg_declare: {
2495     const DbgDeclareInst *DI = cast<DbgDeclareInst>(II);
2496     X86AddressMode AM;
2497     assert(DI->getAddress() && "Null address should be checked earlier!");
2498     if (!X86SelectAddress(DI->getAddress(), AM))
2499       return false;
2500     const MCInstrDesc &II = TII.get(TargetOpcode::DBG_VALUE);
2501     // FIXME may need to add RegState::Debug to any registers produced,
2502     // although ESP/EBP should be the only ones at the moment.
2503     assert(DI->getVariable()->isValidLocationForIntrinsic(DbgLoc) &&
2504            "Expected inlined-at fields to agree");
2505     addFullAddress(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, II), AM)
2506         .addImm(0)
2507         .addMetadata(DI->getVariable())
2508         .addMetadata(DI->getExpression());
2509     return true;
2510   }
2511   case Intrinsic::trap: {
2512     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(X86::TRAP));
2513     return true;
2514   }
2515   case Intrinsic::sqrt: {
2516     if (!Subtarget->hasSSE1())
2517       return false;
2518 
2519     Type *RetTy = II->getCalledFunction()->getReturnType();
2520 
2521     MVT VT;
2522     if (!isTypeLegal(RetTy, VT))
2523       return false;
2524 
2525     // Unfortunately we can't use fastEmit_r, because the AVX version of FSQRT
2526     // is not generated by FastISel yet.
2527     // FIXME: Update this code once tablegen can handle it.
2528     static const uint16_t SqrtOpc[2][2] = {
2529       {X86::SQRTSSr, X86::VSQRTSSr},
2530       {X86::SQRTSDr, X86::VSQRTSDr}
2531     };
2532     bool HasAVX = Subtarget->hasAVX();
2533     unsigned Opc;
2534     const TargetRegisterClass *RC;
2535     switch (VT.SimpleTy) {
2536     default: return false;
2537     case MVT::f32: Opc = SqrtOpc[0][HasAVX]; RC = &X86::FR32RegClass; break;
2538     case MVT::f64: Opc = SqrtOpc[1][HasAVX]; RC = &X86::FR64RegClass; break;
2539     }
2540 
2541     const Value *SrcVal = II->getArgOperand(0);
2542     unsigned SrcReg = getRegForValue(SrcVal);
2543 
2544     if (SrcReg == 0)
2545       return false;
2546 
2547     unsigned ImplicitDefReg = 0;
2548     if (HasAVX) {
2549       ImplicitDefReg = createResultReg(RC);
2550       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2551               TII.get(TargetOpcode::IMPLICIT_DEF), ImplicitDefReg);
2552     }
2553 
2554     unsigned ResultReg = createResultReg(RC);
2555     MachineInstrBuilder MIB;
2556     MIB = BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Opc),
2557                   ResultReg);
2558 
2559     if (ImplicitDefReg)
2560       MIB.addReg(ImplicitDefReg);
2561 
2562     MIB.addReg(SrcReg);
2563 
2564     updateValueMap(II, ResultReg);
2565     return true;
2566   }
2567   case Intrinsic::sadd_with_overflow:
2568   case Intrinsic::uadd_with_overflow:
2569   case Intrinsic::ssub_with_overflow:
2570   case Intrinsic::usub_with_overflow:
2571   case Intrinsic::smul_with_overflow:
2572   case Intrinsic::umul_with_overflow: {
2573     // This implements the basic lowering of the xalu with overflow intrinsics
2574     // into add/sub/mul followed by either seto or setb.
2575     const Function *Callee = II->getCalledFunction();
2576     auto *Ty = cast<StructType>(Callee->getReturnType());
2577     Type *RetTy = Ty->getTypeAtIndex(0U);
2578     Type *CondTy = Ty->getTypeAtIndex(1);
2579 
2580     MVT VT;
2581     if (!isTypeLegal(RetTy, VT))
2582       return false;
2583 
2584     if (VT < MVT::i8 || VT > MVT::i64)
2585       return false;
2586 
2587     const Value *LHS = II->getArgOperand(0);
2588     const Value *RHS = II->getArgOperand(1);
2589 
2590     // Canonicalize immediate to the RHS.
2591     if (isa<ConstantInt>(LHS) && !isa<ConstantInt>(RHS) &&
2592         isCommutativeIntrinsic(II))
2593       std::swap(LHS, RHS);
2594 
2595     bool UseIncDec = false;
2596     if (isa<ConstantInt>(RHS) && cast<ConstantInt>(RHS)->isOne())
2597       UseIncDec = true;
2598 
2599     unsigned BaseOpc, CondOpc;
2600     switch (II->getIntrinsicID()) {
2601     default: llvm_unreachable("Unexpected intrinsic!");
2602     case Intrinsic::sadd_with_overflow:
2603       BaseOpc = UseIncDec ? unsigned(X86ISD::INC) : unsigned(ISD::ADD);
2604       CondOpc = X86::SETOr;
2605       break;
2606     case Intrinsic::uadd_with_overflow:
2607       BaseOpc = ISD::ADD; CondOpc = X86::SETBr; break;
2608     case Intrinsic::ssub_with_overflow:
2609       BaseOpc = UseIncDec ? unsigned(X86ISD::DEC) : unsigned(ISD::SUB);
2610       CondOpc = X86::SETOr;
2611       break;
2612     case Intrinsic::usub_with_overflow:
2613       BaseOpc = ISD::SUB; CondOpc = X86::SETBr; break;
2614     case Intrinsic::smul_with_overflow:
2615       BaseOpc = X86ISD::SMUL; CondOpc = X86::SETOr; break;
2616     case Intrinsic::umul_with_overflow:
2617       BaseOpc = X86ISD::UMUL; CondOpc = X86::SETOr; break;
2618     }
2619 
2620     unsigned LHSReg = getRegForValue(LHS);
2621     if (LHSReg == 0)
2622       return false;
2623     bool LHSIsKill = hasTrivialKill(LHS);
2624 
2625     unsigned ResultReg = 0;
2626     // Check if we have an immediate version.
2627     if (const auto *CI = dyn_cast<ConstantInt>(RHS)) {
2628       static const unsigned Opc[2][4] = {
2629         { X86::INC8r, X86::INC16r, X86::INC32r, X86::INC64r },
2630         { X86::DEC8r, X86::DEC16r, X86::DEC32r, X86::DEC64r }
2631       };
2632 
2633       if (BaseOpc == X86ISD::INC || BaseOpc == X86ISD::DEC) {
2634         ResultReg = createResultReg(TLI.getRegClassFor(VT));
2635         bool IsDec = BaseOpc == X86ISD::DEC;
2636         BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2637                 TII.get(Opc[IsDec][VT.SimpleTy-MVT::i8]), ResultReg)
2638           .addReg(LHSReg, getKillRegState(LHSIsKill));
2639       } else
2640         ResultReg = fastEmit_ri(VT, VT, BaseOpc, LHSReg, LHSIsKill,
2641                                 CI->getZExtValue());
2642     }
2643 
2644     unsigned RHSReg;
2645     bool RHSIsKill;
2646     if (!ResultReg) {
2647       RHSReg = getRegForValue(RHS);
2648       if (RHSReg == 0)
2649         return false;
2650       RHSIsKill = hasTrivialKill(RHS);
2651       ResultReg = fastEmit_rr(VT, VT, BaseOpc, LHSReg, LHSIsKill, RHSReg,
2652                               RHSIsKill);
2653     }
2654 
2655     // FastISel doesn't have a pattern for all X86::MUL*r and X86::IMUL*r. Emit
2656     // it manually.
2657     if (BaseOpc == X86ISD::UMUL && !ResultReg) {
2658       static const uint16_t MULOpc[] =
2659         { X86::MUL8r, X86::MUL16r, X86::MUL32r, X86::MUL64r };
2660       static const MCPhysReg Reg[] = { X86::AL, X86::AX, X86::EAX, X86::RAX };
2661       // First copy the first operand into RAX, which is an implicit input to
2662       // the X86::MUL*r instruction.
2663       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2664               TII.get(TargetOpcode::COPY), Reg[VT.SimpleTy-MVT::i8])
2665         .addReg(LHSReg, getKillRegState(LHSIsKill));
2666       ResultReg = fastEmitInst_r(MULOpc[VT.SimpleTy-MVT::i8],
2667                                  TLI.getRegClassFor(VT), RHSReg, RHSIsKill);
2668     } else if (BaseOpc == X86ISD::SMUL && !ResultReg) {
2669       static const uint16_t MULOpc[] =
2670         { X86::IMUL8r, X86::IMUL16rr, X86::IMUL32rr, X86::IMUL64rr };
2671       if (VT == MVT::i8) {
2672         // Copy the first operand into AL, which is an implicit input to the
2673         // X86::IMUL8r instruction.
2674         BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2675                TII.get(TargetOpcode::COPY), X86::AL)
2676           .addReg(LHSReg, getKillRegState(LHSIsKill));
2677         ResultReg = fastEmitInst_r(MULOpc[0], TLI.getRegClassFor(VT), RHSReg,
2678                                    RHSIsKill);
2679       } else
2680         ResultReg = fastEmitInst_rr(MULOpc[VT.SimpleTy-MVT::i8],
2681                                     TLI.getRegClassFor(VT), LHSReg, LHSIsKill,
2682                                     RHSReg, RHSIsKill);
2683     }
2684 
2685     if (!ResultReg)
2686       return false;
2687 
2688     unsigned ResultReg2 = FuncInfo.CreateRegs(CondTy);
2689     assert((ResultReg+1) == ResultReg2 && "Nonconsecutive result registers.");
2690     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(CondOpc),
2691             ResultReg2);
2692 
2693     updateValueMap(II, ResultReg, 2);
2694     return true;
2695   }
2696   case Intrinsic::x86_sse_cvttss2si:
2697   case Intrinsic::x86_sse_cvttss2si64:
2698   case Intrinsic::x86_sse2_cvttsd2si:
2699   case Intrinsic::x86_sse2_cvttsd2si64: {
2700     bool IsInputDouble;
2701     switch (II->getIntrinsicID()) {
2702     default: llvm_unreachable("Unexpected intrinsic.");
2703     case Intrinsic::x86_sse_cvttss2si:
2704     case Intrinsic::x86_sse_cvttss2si64:
2705       if (!Subtarget->hasSSE1())
2706         return false;
2707       IsInputDouble = false;
2708       break;
2709     case Intrinsic::x86_sse2_cvttsd2si:
2710     case Intrinsic::x86_sse2_cvttsd2si64:
2711       if (!Subtarget->hasSSE2())
2712         return false;
2713       IsInputDouble = true;
2714       break;
2715     }
2716 
2717     Type *RetTy = II->getCalledFunction()->getReturnType();
2718     MVT VT;
2719     if (!isTypeLegal(RetTy, VT))
2720       return false;
2721 
2722     static const unsigned CvtOpc[2][2][2] = {
2723       { { X86::CVTTSS2SIrr,   X86::VCVTTSS2SIrr   },
2724         { X86::CVTTSS2SI64rr, X86::VCVTTSS2SI64rr }  },
2725       { { X86::CVTTSD2SIrr,   X86::VCVTTSD2SIrr   },
2726         { X86::CVTTSD2SI64rr, X86::VCVTTSD2SI64rr }  }
2727     };
2728     bool HasAVX = Subtarget->hasAVX();
2729     unsigned Opc;
2730     switch (VT.SimpleTy) {
2731     default: llvm_unreachable("Unexpected result type.");
2732     case MVT::i32: Opc = CvtOpc[IsInputDouble][0][HasAVX]; break;
2733     case MVT::i64: Opc = CvtOpc[IsInputDouble][1][HasAVX]; break;
2734     }
2735 
2736     // Check if we can fold insertelement instructions into the convert.
2737     const Value *Op = II->getArgOperand(0);
2738     while (auto *IE = dyn_cast<InsertElementInst>(Op)) {
2739       const Value *Index = IE->getOperand(2);
2740       if (!isa<ConstantInt>(Index))
2741         break;
2742       unsigned Idx = cast<ConstantInt>(Index)->getZExtValue();
2743 
2744       if (Idx == 0) {
2745         Op = IE->getOperand(1);
2746         break;
2747       }
2748       Op = IE->getOperand(0);
2749     }
2750 
2751     unsigned Reg = getRegForValue(Op);
2752     if (Reg == 0)
2753       return false;
2754 
2755     unsigned ResultReg = createResultReg(TLI.getRegClassFor(VT));
2756     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Opc), ResultReg)
2757       .addReg(Reg);
2758 
2759     updateValueMap(II, ResultReg);
2760     return true;
2761   }
2762   }
2763 }
2764 
2765 bool X86FastISel::fastLowerArguments() {
2766   if (!FuncInfo.CanLowerReturn)
2767     return false;
2768 
2769   const Function *F = FuncInfo.Fn;
2770   if (F->isVarArg())
2771     return false;
2772 
2773   CallingConv::ID CC = F->getCallingConv();
2774   if (CC != CallingConv::C)
2775     return false;
2776 
2777   if (Subtarget->isCallingConvWin64(CC))
2778     return false;
2779 
2780   if (!Subtarget->is64Bit())
2781     return false;
2782 
2783   // Only handle simple cases. i.e. Up to 6 i32/i64 scalar arguments.
2784   unsigned GPRCnt = 0;
2785   unsigned FPRCnt = 0;
2786   unsigned Idx = 0;
2787   for (auto const &Arg : F->args()) {
2788     // The first argument is at index 1.
2789     ++Idx;
2790     if (F->getAttributes().hasAttribute(Idx, Attribute::ByVal) ||
2791         F->getAttributes().hasAttribute(Idx, Attribute::InReg) ||
2792         F->getAttributes().hasAttribute(Idx, Attribute::StructRet) ||
2793         F->getAttributes().hasAttribute(Idx, Attribute::SwiftSelf) ||
2794         F->getAttributes().hasAttribute(Idx, Attribute::SwiftError) ||
2795         F->getAttributes().hasAttribute(Idx, Attribute::Nest))
2796       return false;
2797 
2798     Type *ArgTy = Arg.getType();
2799     if (ArgTy->isStructTy() || ArgTy->isArrayTy() || ArgTy->isVectorTy())
2800       return false;
2801 
2802     EVT ArgVT = TLI.getValueType(DL, ArgTy);
2803     if (!ArgVT.isSimple()) return false;
2804     switch (ArgVT.getSimpleVT().SimpleTy) {
2805     default: return false;
2806     case MVT::i32:
2807     case MVT::i64:
2808       ++GPRCnt;
2809       break;
2810     case MVT::f32:
2811     case MVT::f64:
2812       if (!Subtarget->hasSSE1())
2813         return false;
2814       ++FPRCnt;
2815       break;
2816     }
2817 
2818     if (GPRCnt > 6)
2819       return false;
2820 
2821     if (FPRCnt > 8)
2822       return false;
2823   }
2824 
2825   static const MCPhysReg GPR32ArgRegs[] = {
2826     X86::EDI, X86::ESI, X86::EDX, X86::ECX, X86::R8D, X86::R9D
2827   };
2828   static const MCPhysReg GPR64ArgRegs[] = {
2829     X86::RDI, X86::RSI, X86::RDX, X86::RCX, X86::R8 , X86::R9
2830   };
2831   static const MCPhysReg XMMArgRegs[] = {
2832     X86::XMM0, X86::XMM1, X86::XMM2, X86::XMM3,
2833     X86::XMM4, X86::XMM5, X86::XMM6, X86::XMM7
2834   };
2835 
2836   unsigned GPRIdx = 0;
2837   unsigned FPRIdx = 0;
2838   for (auto const &Arg : F->args()) {
2839     MVT VT = TLI.getSimpleValueType(DL, Arg.getType());
2840     const TargetRegisterClass *RC = TLI.getRegClassFor(VT);
2841     unsigned SrcReg;
2842     switch (VT.SimpleTy) {
2843     default: llvm_unreachable("Unexpected value type.");
2844     case MVT::i32: SrcReg = GPR32ArgRegs[GPRIdx++]; break;
2845     case MVT::i64: SrcReg = GPR64ArgRegs[GPRIdx++]; break;
2846     case MVT::f32: // fall-through
2847     case MVT::f64: SrcReg = XMMArgRegs[FPRIdx++]; break;
2848     }
2849     unsigned DstReg = FuncInfo.MF->addLiveIn(SrcReg, RC);
2850     // FIXME: Unfortunately it's necessary to emit a copy from the livein copy.
2851     // Without this, EmitLiveInCopies may eliminate the livein if its only
2852     // use is a bitcast (which isn't turned into an instruction).
2853     unsigned ResultReg = createResultReg(RC);
2854     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
2855             TII.get(TargetOpcode::COPY), ResultReg)
2856       .addReg(DstReg, getKillRegState(true));
2857     updateValueMap(&Arg, ResultReg);
2858   }
2859   return true;
2860 }
2861 
2862 static unsigned computeBytesPoppedByCallee(const X86Subtarget *Subtarget,
2863                                            CallingConv::ID CC,
2864                                            ImmutableCallSite *CS) {
2865   if (Subtarget->is64Bit())
2866     return 0;
2867   if (Subtarget->getTargetTriple().isOSMSVCRT())
2868     return 0;
2869   if (CC == CallingConv::Fast || CC == CallingConv::GHC ||
2870       CC == CallingConv::HiPE)
2871     return 0;
2872 
2873   if (CS)
2874     if (CS->arg_empty() || !CS->paramHasAttr(1, Attribute::StructRet) ||
2875         CS->paramHasAttr(1, Attribute::InReg) || Subtarget->isTargetMCU())
2876       return 0;
2877 
2878   return 4;
2879 }
2880 
2881 bool X86FastISel::fastLowerCall(CallLoweringInfo &CLI) {
2882   auto &OutVals       = CLI.OutVals;
2883   auto &OutFlags      = CLI.OutFlags;
2884   auto &OutRegs       = CLI.OutRegs;
2885   auto &Ins           = CLI.Ins;
2886   auto &InRegs        = CLI.InRegs;
2887   CallingConv::ID CC  = CLI.CallConv;
2888   bool &IsTailCall    = CLI.IsTailCall;
2889   bool IsVarArg       = CLI.IsVarArg;
2890   const Value *Callee = CLI.Callee;
2891   MCSymbol *Symbol = CLI.Symbol;
2892 
2893   bool Is64Bit        = Subtarget->is64Bit();
2894   bool IsWin64        = Subtarget->isCallingConvWin64(CC);
2895 
2896   // Handle only C, fastcc, and webkit_js calling conventions for now.
2897   switch (CC) {
2898   default: return false;
2899   case CallingConv::C:
2900   case CallingConv::Fast:
2901   case CallingConv::WebKit_JS:
2902   case CallingConv::Swift:
2903   case CallingConv::X86_FastCall:
2904   case CallingConv::X86_64_Win64:
2905   case CallingConv::X86_64_SysV:
2906     break;
2907   }
2908 
2909   // Allow SelectionDAG isel to handle tail calls.
2910   if (IsTailCall)
2911     return false;
2912 
2913   // fastcc with -tailcallopt is intended to provide a guaranteed
2914   // tail call optimization. Fastisel doesn't know how to do that.
2915   if (CC == CallingConv::Fast && TM.Options.GuaranteedTailCallOpt)
2916     return false;
2917 
2918   // Don't know how to handle Win64 varargs yet.  Nothing special needed for
2919   // x86-32. Special handling for x86-64 is implemented.
2920   if (IsVarArg && IsWin64)
2921     return false;
2922 
2923   // Don't know about inalloca yet.
2924   if (CLI.CS && CLI.CS->hasInAllocaArgument())
2925     return false;
2926 
2927   for (auto Flag : CLI.OutFlags)
2928     if (Flag.isSwiftError())
2929       return false;
2930 
2931   // Fast-isel doesn't know about callee-pop yet.
2932   if (X86::isCalleePop(CC, Subtarget->is64Bit(), IsVarArg,
2933                        TM.Options.GuaranteedTailCallOpt))
2934     return false;
2935 
2936   SmallVector<MVT, 16> OutVTs;
2937   SmallVector<unsigned, 16> ArgRegs;
2938 
2939   // If this is a constant i1/i8/i16 argument, promote to i32 to avoid an extra
2940   // instruction. This is safe because it is common to all FastISel supported
2941   // calling conventions on x86.
2942   for (int i = 0, e = OutVals.size(); i != e; ++i) {
2943     Value *&Val = OutVals[i];
2944     ISD::ArgFlagsTy Flags = OutFlags[i];
2945     if (auto *CI = dyn_cast<ConstantInt>(Val)) {
2946       if (CI->getBitWidth() < 32) {
2947         if (Flags.isSExt())
2948           Val = ConstantExpr::getSExt(CI, Type::getInt32Ty(CI->getContext()));
2949         else
2950           Val = ConstantExpr::getZExt(CI, Type::getInt32Ty(CI->getContext()));
2951       }
2952     }
2953 
2954     // Passing bools around ends up doing a trunc to i1 and passing it.
2955     // Codegen this as an argument + "and 1".
2956     MVT VT;
2957     auto *TI = dyn_cast<TruncInst>(Val);
2958     unsigned ResultReg;
2959     if (TI && TI->getType()->isIntegerTy(1) && CLI.CS &&
2960               (TI->getParent() == CLI.CS->getInstruction()->getParent()) &&
2961               TI->hasOneUse()) {
2962       Value *PrevVal = TI->getOperand(0);
2963       ResultReg = getRegForValue(PrevVal);
2964 
2965       if (!ResultReg)
2966         return false;
2967 
2968       if (!isTypeLegal(PrevVal->getType(), VT))
2969         return false;
2970 
2971       ResultReg =
2972         fastEmit_ri(VT, VT, ISD::AND, ResultReg, hasTrivialKill(PrevVal), 1);
2973     } else {
2974       if (!isTypeLegal(Val->getType(), VT))
2975         return false;
2976       ResultReg = getRegForValue(Val);
2977     }
2978 
2979     if (!ResultReg)
2980       return false;
2981 
2982     ArgRegs.push_back(ResultReg);
2983     OutVTs.push_back(VT);
2984   }
2985 
2986   // Analyze operands of the call, assigning locations to each operand.
2987   SmallVector<CCValAssign, 16> ArgLocs;
2988   CCState CCInfo(CC, IsVarArg, *FuncInfo.MF, ArgLocs, CLI.RetTy->getContext());
2989 
2990   // Allocate shadow area for Win64
2991   if (IsWin64)
2992     CCInfo.AllocateStack(32, 8);
2993 
2994   CCInfo.AnalyzeCallOperands(OutVTs, OutFlags, CC_X86);
2995 
2996   // Get a count of how many bytes are to be pushed on the stack.
2997   unsigned NumBytes = CCInfo.getAlignedCallFrameSize();
2998 
2999   // Issue CALLSEQ_START
3000   unsigned AdjStackDown = TII.getCallFrameSetupOpcode();
3001   BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AdjStackDown))
3002     .addImm(NumBytes).addImm(0);
3003 
3004   // Walk the register/memloc assignments, inserting copies/loads.
3005   const X86RegisterInfo *RegInfo = Subtarget->getRegisterInfo();
3006   for (unsigned i = 0, e = ArgLocs.size(); i != e; ++i) {
3007     CCValAssign const &VA = ArgLocs[i];
3008     const Value *ArgVal = OutVals[VA.getValNo()];
3009     MVT ArgVT = OutVTs[VA.getValNo()];
3010 
3011     if (ArgVT == MVT::x86mmx)
3012       return false;
3013 
3014     unsigned ArgReg = ArgRegs[VA.getValNo()];
3015 
3016     // Promote the value if needed.
3017     switch (VA.getLocInfo()) {
3018     case CCValAssign::Full: break;
3019     case CCValAssign::SExt: {
3020       assert(VA.getLocVT().isInteger() && !VA.getLocVT().isVector() &&
3021              "Unexpected extend");
3022       bool Emitted = X86FastEmitExtend(ISD::SIGN_EXTEND, VA.getLocVT(), ArgReg,
3023                                        ArgVT, ArgReg);
3024       assert(Emitted && "Failed to emit a sext!"); (void)Emitted;
3025       ArgVT = VA.getLocVT();
3026       break;
3027     }
3028     case CCValAssign::ZExt: {
3029       assert(VA.getLocVT().isInteger() && !VA.getLocVT().isVector() &&
3030              "Unexpected extend");
3031       bool Emitted = X86FastEmitExtend(ISD::ZERO_EXTEND, VA.getLocVT(), ArgReg,
3032                                        ArgVT, ArgReg);
3033       assert(Emitted && "Failed to emit a zext!"); (void)Emitted;
3034       ArgVT = VA.getLocVT();
3035       break;
3036     }
3037     case CCValAssign::AExt: {
3038       assert(VA.getLocVT().isInteger() && !VA.getLocVT().isVector() &&
3039              "Unexpected extend");
3040       bool Emitted = X86FastEmitExtend(ISD::ANY_EXTEND, VA.getLocVT(), ArgReg,
3041                                        ArgVT, ArgReg);
3042       if (!Emitted)
3043         Emitted = X86FastEmitExtend(ISD::ZERO_EXTEND, VA.getLocVT(), ArgReg,
3044                                     ArgVT, ArgReg);
3045       if (!Emitted)
3046         Emitted = X86FastEmitExtend(ISD::SIGN_EXTEND, VA.getLocVT(), ArgReg,
3047                                     ArgVT, ArgReg);
3048 
3049       assert(Emitted && "Failed to emit a aext!"); (void)Emitted;
3050       ArgVT = VA.getLocVT();
3051       break;
3052     }
3053     case CCValAssign::BCvt: {
3054       ArgReg = fastEmit_r(ArgVT, VA.getLocVT(), ISD::BITCAST, ArgReg,
3055                           /*TODO: Kill=*/false);
3056       assert(ArgReg && "Failed to emit a bitcast!");
3057       ArgVT = VA.getLocVT();
3058       break;
3059     }
3060     case CCValAssign::VExt:
3061       // VExt has not been implemented, so this should be impossible to reach
3062       // for now.  However, fallback to Selection DAG isel once implemented.
3063       return false;
3064     case CCValAssign::AExtUpper:
3065     case CCValAssign::SExtUpper:
3066     case CCValAssign::ZExtUpper:
3067     case CCValAssign::FPExt:
3068       llvm_unreachable("Unexpected loc info!");
3069     case CCValAssign::Indirect:
3070       // FIXME: Indirect doesn't need extending, but fast-isel doesn't fully
3071       // support this.
3072       return false;
3073     }
3074 
3075     if (VA.isRegLoc()) {
3076       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
3077               TII.get(TargetOpcode::COPY), VA.getLocReg()).addReg(ArgReg);
3078       OutRegs.push_back(VA.getLocReg());
3079     } else {
3080       assert(VA.isMemLoc());
3081 
3082       // Don't emit stores for undef values.
3083       if (isa<UndefValue>(ArgVal))
3084         continue;
3085 
3086       unsigned LocMemOffset = VA.getLocMemOffset();
3087       X86AddressMode AM;
3088       AM.Base.Reg = RegInfo->getStackRegister();
3089       AM.Disp = LocMemOffset;
3090       ISD::ArgFlagsTy Flags = OutFlags[VA.getValNo()];
3091       unsigned Alignment = DL.getABITypeAlignment(ArgVal->getType());
3092       MachineMemOperand *MMO = FuncInfo.MF->getMachineMemOperand(
3093           MachinePointerInfo::getStack(*FuncInfo.MF, LocMemOffset),
3094           MachineMemOperand::MOStore, ArgVT.getStoreSize(), Alignment);
3095       if (Flags.isByVal()) {
3096         X86AddressMode SrcAM;
3097         SrcAM.Base.Reg = ArgReg;
3098         if (!TryEmitSmallMemcpy(AM, SrcAM, Flags.getByValSize()))
3099           return false;
3100       } else if (isa<ConstantInt>(ArgVal) || isa<ConstantPointerNull>(ArgVal)) {
3101         // If this is a really simple value, emit this with the Value* version
3102         // of X86FastEmitStore.  If it isn't simple, we don't want to do this,
3103         // as it can cause us to reevaluate the argument.
3104         if (!X86FastEmitStore(ArgVT, ArgVal, AM, MMO))
3105           return false;
3106       } else {
3107         bool ValIsKill = hasTrivialKill(ArgVal);
3108         if (!X86FastEmitStore(ArgVT, ArgReg, ValIsKill, AM, MMO))
3109           return false;
3110       }
3111     }
3112   }
3113 
3114   // ELF / PIC requires GOT in the EBX register before function calls via PLT
3115   // GOT pointer.
3116   if (Subtarget->isPICStyleGOT()) {
3117     unsigned Base = getInstrInfo()->getGlobalBaseReg(FuncInfo.MF);
3118     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
3119             TII.get(TargetOpcode::COPY), X86::EBX).addReg(Base);
3120   }
3121 
3122   if (Is64Bit && IsVarArg && !IsWin64) {
3123     // From AMD64 ABI document:
3124     // For calls that may call functions that use varargs or stdargs
3125     // (prototype-less calls or calls to functions containing ellipsis (...) in
3126     // the declaration) %al is used as hidden argument to specify the number
3127     // of SSE registers used. The contents of %al do not need to match exactly
3128     // the number of registers, but must be an ubound on the number of SSE
3129     // registers used and is in the range 0 - 8 inclusive.
3130 
3131     // Count the number of XMM registers allocated.
3132     static const MCPhysReg XMMArgRegs[] = {
3133       X86::XMM0, X86::XMM1, X86::XMM2, X86::XMM3,
3134       X86::XMM4, X86::XMM5, X86::XMM6, X86::XMM7
3135     };
3136     unsigned NumXMMRegs = CCInfo.getFirstUnallocated(XMMArgRegs);
3137     assert((Subtarget->hasSSE1() || !NumXMMRegs)
3138            && "SSE registers cannot be used when SSE is disabled");
3139     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(X86::MOV8ri),
3140             X86::AL).addImm(NumXMMRegs);
3141   }
3142 
3143   // Materialize callee address in a register. FIXME: GV address can be
3144   // handled with a CALLpcrel32 instead.
3145   X86AddressMode CalleeAM;
3146   if (!X86SelectCallAddress(Callee, CalleeAM))
3147     return false;
3148 
3149   unsigned CalleeOp = 0;
3150   const GlobalValue *GV = nullptr;
3151   if (CalleeAM.GV != nullptr) {
3152     GV = CalleeAM.GV;
3153   } else if (CalleeAM.Base.Reg != 0) {
3154     CalleeOp = CalleeAM.Base.Reg;
3155   } else
3156     return false;
3157 
3158   // Issue the call.
3159   MachineInstrBuilder MIB;
3160   if (CalleeOp) {
3161     // Register-indirect call.
3162     unsigned CallOpc = Is64Bit ? X86::CALL64r : X86::CALL32r;
3163     MIB = BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(CallOpc))
3164       .addReg(CalleeOp);
3165   } else {
3166     // Direct call.
3167     assert(GV && "Not a direct call");
3168     unsigned CallOpc = Is64Bit ? X86::CALL64pcrel32 : X86::CALLpcrel32;
3169 
3170     // See if we need any target-specific flags on the GV operand.
3171     unsigned char OpFlags = Subtarget->classifyGlobalFunctionReference(GV, TM);
3172     // Ignore NonLazyBind attribute in FastISel
3173     if (OpFlags == X86II::MO_GOTPCREL)
3174       OpFlags = 0;
3175 
3176     MIB = BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(CallOpc));
3177     if (Symbol)
3178       MIB.addSym(Symbol, OpFlags);
3179     else
3180       MIB.addGlobalAddress(GV, 0, OpFlags);
3181   }
3182 
3183   // Add a register mask operand representing the call-preserved registers.
3184   // Proper defs for return values will be added by setPhysRegsDeadExcept().
3185   MIB.addRegMask(TRI.getCallPreservedMask(*FuncInfo.MF, CC));
3186 
3187   // Add an implicit use GOT pointer in EBX.
3188   if (Subtarget->isPICStyleGOT())
3189     MIB.addReg(X86::EBX, RegState::Implicit);
3190 
3191   if (Is64Bit && IsVarArg && !IsWin64)
3192     MIB.addReg(X86::AL, RegState::Implicit);
3193 
3194   // Add implicit physical register uses to the call.
3195   for (auto Reg : OutRegs)
3196     MIB.addReg(Reg, RegState::Implicit);
3197 
3198   // Issue CALLSEQ_END
3199   unsigned NumBytesForCalleeToPop =
3200     computeBytesPoppedByCallee(Subtarget, CC, CLI.CS);
3201   unsigned AdjStackUp = TII.getCallFrameDestroyOpcode();
3202   BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(AdjStackUp))
3203     .addImm(NumBytes).addImm(NumBytesForCalleeToPop);
3204 
3205   // Now handle call return values.
3206   SmallVector<CCValAssign, 16> RVLocs;
3207   CCState CCRetInfo(CC, IsVarArg, *FuncInfo.MF, RVLocs,
3208                     CLI.RetTy->getContext());
3209   CCRetInfo.AnalyzeCallResult(Ins, RetCC_X86);
3210 
3211   // Copy all of the result registers out of their specified physreg.
3212   unsigned ResultReg = FuncInfo.CreateRegs(CLI.RetTy);
3213   for (unsigned i = 0; i != RVLocs.size(); ++i) {
3214     CCValAssign &VA = RVLocs[i];
3215     EVT CopyVT = VA.getValVT();
3216     unsigned CopyReg = ResultReg + i;
3217 
3218     // If this is x86-64, and we disabled SSE, we can't return FP values
3219     if ((CopyVT == MVT::f32 || CopyVT == MVT::f64) &&
3220         ((Is64Bit || Ins[i].Flags.isInReg()) && !Subtarget->hasSSE1())) {
3221       report_fatal_error("SSE register return with SSE disabled");
3222     }
3223 
3224     // If we prefer to use the value in xmm registers, copy it out as f80 and
3225     // use a truncate to move it from fp stack reg to xmm reg.
3226     if ((VA.getLocReg() == X86::FP0 || VA.getLocReg() == X86::FP1) &&
3227         isScalarFPTypeInSSEReg(VA.getValVT())) {
3228       CopyVT = MVT::f80;
3229       CopyReg = createResultReg(&X86::RFP80RegClass);
3230     }
3231 
3232     // Copy out the result.
3233     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
3234             TII.get(TargetOpcode::COPY), CopyReg).addReg(VA.getLocReg());
3235     InRegs.push_back(VA.getLocReg());
3236 
3237     // Round the f80 to the right size, which also moves it to the appropriate
3238     // xmm register. This is accomplished by storing the f80 value in memory
3239     // and then loading it back.
3240     if (CopyVT != VA.getValVT()) {
3241       EVT ResVT = VA.getValVT();
3242       unsigned Opc = ResVT == MVT::f32 ? X86::ST_Fp80m32 : X86::ST_Fp80m64;
3243       unsigned MemSize = ResVT.getSizeInBits()/8;
3244       int FI = MFI.CreateStackObject(MemSize, MemSize, false);
3245       addFrameReference(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
3246                                 TII.get(Opc)), FI)
3247         .addReg(CopyReg);
3248       Opc = ResVT == MVT::f32 ? X86::MOVSSrm : X86::MOVSDrm;
3249       addFrameReference(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
3250                                 TII.get(Opc), ResultReg + i), FI);
3251     }
3252   }
3253 
3254   CLI.ResultReg = ResultReg;
3255   CLI.NumResultRegs = RVLocs.size();
3256   CLI.Call = MIB;
3257 
3258   return true;
3259 }
3260 
3261 bool
3262 X86FastISel::fastSelectInstruction(const Instruction *I)  {
3263   switch (I->getOpcode()) {
3264   default: break;
3265   case Instruction::Load:
3266     return X86SelectLoad(I);
3267   case Instruction::Store:
3268     return X86SelectStore(I);
3269   case Instruction::Ret:
3270     return X86SelectRet(I);
3271   case Instruction::ICmp:
3272   case Instruction::FCmp:
3273     return X86SelectCmp(I);
3274   case Instruction::ZExt:
3275     return X86SelectZExt(I);
3276   case Instruction::Br:
3277     return X86SelectBranch(I);
3278   case Instruction::LShr:
3279   case Instruction::AShr:
3280   case Instruction::Shl:
3281     return X86SelectShift(I);
3282   case Instruction::SDiv:
3283   case Instruction::UDiv:
3284   case Instruction::SRem:
3285   case Instruction::URem:
3286     return X86SelectDivRem(I);
3287   case Instruction::Select:
3288     return X86SelectSelect(I);
3289   case Instruction::Trunc:
3290     return X86SelectTrunc(I);
3291   case Instruction::FPExt:
3292     return X86SelectFPExt(I);
3293   case Instruction::FPTrunc:
3294     return X86SelectFPTrunc(I);
3295   case Instruction::SIToFP:
3296     return X86SelectSIToFP(I);
3297   case Instruction::IntToPtr: // Deliberate fall-through.
3298   case Instruction::PtrToInt: {
3299     EVT SrcVT = TLI.getValueType(DL, I->getOperand(0)->getType());
3300     EVT DstVT = TLI.getValueType(DL, I->getType());
3301     if (DstVT.bitsGT(SrcVT))
3302       return X86SelectZExt(I);
3303     if (DstVT.bitsLT(SrcVT))
3304       return X86SelectTrunc(I);
3305     unsigned Reg = getRegForValue(I->getOperand(0));
3306     if (Reg == 0) return false;
3307     updateValueMap(I, Reg);
3308     return true;
3309   }
3310   case Instruction::BitCast: {
3311     // Select SSE2/AVX bitcasts between 128/256 bit vector types.
3312     if (!Subtarget->hasSSE2())
3313       return false;
3314 
3315     EVT SrcVT = TLI.getValueType(DL, I->getOperand(0)->getType());
3316     EVT DstVT = TLI.getValueType(DL, I->getType());
3317 
3318     if (!SrcVT.isSimple() || !DstVT.isSimple())
3319       return false;
3320 
3321     if (!SrcVT.is128BitVector() &&
3322         !(Subtarget->hasAVX() && SrcVT.is256BitVector()))
3323       return false;
3324 
3325     unsigned Reg = getRegForValue(I->getOperand(0));
3326     if (Reg == 0)
3327       return false;
3328 
3329     // No instruction is needed for conversion. Reuse the register used by
3330     // the fist operand.
3331     updateValueMap(I, Reg);
3332     return true;
3333   }
3334   }
3335 
3336   return false;
3337 }
3338 
3339 unsigned X86FastISel::X86MaterializeInt(const ConstantInt *CI, MVT VT) {
3340   if (VT > MVT::i64)
3341     return 0;
3342 
3343   uint64_t Imm = CI->getZExtValue();
3344   if (Imm == 0) {
3345     unsigned SrcReg = fastEmitInst_(X86::MOV32r0, &X86::GR32RegClass);
3346     switch (VT.SimpleTy) {
3347     default: llvm_unreachable("Unexpected value type");
3348     case MVT::i1:
3349     case MVT::i8:
3350       return fastEmitInst_extractsubreg(MVT::i8, SrcReg, /*Kill=*/true,
3351                                         X86::sub_8bit);
3352     case MVT::i16:
3353       return fastEmitInst_extractsubreg(MVT::i16, SrcReg, /*Kill=*/true,
3354                                         X86::sub_16bit);
3355     case MVT::i32:
3356       return SrcReg;
3357     case MVT::i64: {
3358       unsigned ResultReg = createResultReg(&X86::GR64RegClass);
3359       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
3360               TII.get(TargetOpcode::SUBREG_TO_REG), ResultReg)
3361         .addImm(0).addReg(SrcReg).addImm(X86::sub_32bit);
3362       return ResultReg;
3363     }
3364     }
3365   }
3366 
3367   unsigned Opc = 0;
3368   switch (VT.SimpleTy) {
3369   default: llvm_unreachable("Unexpected value type");
3370   case MVT::i1:  VT = MVT::i8; // fall-through
3371   case MVT::i8:  Opc = X86::MOV8ri;  break;
3372   case MVT::i16: Opc = X86::MOV16ri; break;
3373   case MVT::i32: Opc = X86::MOV32ri; break;
3374   case MVT::i64: {
3375     if (isUInt<32>(Imm))
3376       Opc = X86::MOV32ri;
3377     else if (isInt<32>(Imm))
3378       Opc = X86::MOV64ri32;
3379     else
3380       Opc = X86::MOV64ri;
3381     break;
3382   }
3383   }
3384   if (VT == MVT::i64 && Opc == X86::MOV32ri) {
3385     unsigned SrcReg = fastEmitInst_i(Opc, &X86::GR32RegClass, Imm);
3386     unsigned ResultReg = createResultReg(&X86::GR64RegClass);
3387     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
3388             TII.get(TargetOpcode::SUBREG_TO_REG), ResultReg)
3389       .addImm(0).addReg(SrcReg).addImm(X86::sub_32bit);
3390     return ResultReg;
3391   }
3392   return fastEmitInst_i(Opc, TLI.getRegClassFor(VT), Imm);
3393 }
3394 
3395 unsigned X86FastISel::X86MaterializeFP(const ConstantFP *CFP, MVT VT) {
3396   if (CFP->isNullValue())
3397     return fastMaterializeFloatZero(CFP);
3398 
3399   // Can't handle alternate code models yet.
3400   CodeModel::Model CM = TM.getCodeModel();
3401   if (CM != CodeModel::Small && CM != CodeModel::Large)
3402     return 0;
3403 
3404   // Get opcode and regclass of the output for the given load instruction.
3405   unsigned Opc = 0;
3406   const TargetRegisterClass *RC = nullptr;
3407   switch (VT.SimpleTy) {
3408   default: return 0;
3409   case MVT::f32:
3410     if (X86ScalarSSEf32) {
3411       Opc = Subtarget->hasAVX() ? X86::VMOVSSrm : X86::MOVSSrm;
3412       RC  = &X86::FR32RegClass;
3413     } else {
3414       Opc = X86::LD_Fp32m;
3415       RC  = &X86::RFP32RegClass;
3416     }
3417     break;
3418   case MVT::f64:
3419     if (X86ScalarSSEf64) {
3420       Opc = Subtarget->hasAVX() ? X86::VMOVSDrm : X86::MOVSDrm;
3421       RC  = &X86::FR64RegClass;
3422     } else {
3423       Opc = X86::LD_Fp64m;
3424       RC  = &X86::RFP64RegClass;
3425     }
3426     break;
3427   case MVT::f80:
3428     // No f80 support yet.
3429     return 0;
3430   }
3431 
3432   // MachineConstantPool wants an explicit alignment.
3433   unsigned Align = DL.getPrefTypeAlignment(CFP->getType());
3434   if (Align == 0) {
3435     // Alignment of vector types. FIXME!
3436     Align = DL.getTypeAllocSize(CFP->getType());
3437   }
3438 
3439   // x86-32 PIC requires a PIC base register for constant pools.
3440   unsigned PICBase = 0;
3441   unsigned char OpFlag = 0;
3442   if (Subtarget->isPICStyleStubPIC()) { // Not dynamic-no-pic
3443     OpFlag = X86II::MO_PIC_BASE_OFFSET;
3444     PICBase = getInstrInfo()->getGlobalBaseReg(FuncInfo.MF);
3445   } else if (Subtarget->isPICStyleGOT()) {
3446     OpFlag = X86II::MO_GOTOFF;
3447     PICBase = getInstrInfo()->getGlobalBaseReg(FuncInfo.MF);
3448   } else if (Subtarget->isPICStyleRIPRel() &&
3449              TM.getCodeModel() == CodeModel::Small) {
3450     PICBase = X86::RIP;
3451   }
3452 
3453   // Create the load from the constant pool.
3454   unsigned CPI = MCP.getConstantPoolIndex(CFP, Align);
3455   unsigned ResultReg = createResultReg(RC);
3456 
3457   if (CM == CodeModel::Large) {
3458     unsigned AddrReg = createResultReg(&X86::GR64RegClass);
3459     BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(X86::MOV64ri),
3460             AddrReg)
3461       .addConstantPoolIndex(CPI, 0, OpFlag);
3462     MachineInstrBuilder MIB = BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
3463                                       TII.get(Opc), ResultReg);
3464     addDirectMem(MIB, AddrReg);
3465     MachineMemOperand *MMO = FuncInfo.MF->getMachineMemOperand(
3466         MachinePointerInfo::getConstantPool(*FuncInfo.MF),
3467         MachineMemOperand::MOLoad, DL.getPointerSize(), Align);
3468     MIB->addMemOperand(*FuncInfo.MF, MMO);
3469     return ResultReg;
3470   }
3471 
3472   addConstantPoolReference(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
3473                                    TII.get(Opc), ResultReg),
3474                            CPI, PICBase, OpFlag);
3475   return ResultReg;
3476 }
3477 
3478 unsigned X86FastISel::X86MaterializeGV(const GlobalValue *GV, MVT VT) {
3479   // Can't handle alternate code models yet.
3480   if (TM.getCodeModel() != CodeModel::Small)
3481     return 0;
3482 
3483   // Materialize addresses with LEA/MOV instructions.
3484   X86AddressMode AM;
3485   if (X86SelectAddress(GV, AM)) {
3486     // If the expression is just a basereg, then we're done, otherwise we need
3487     // to emit an LEA.
3488     if (AM.BaseType == X86AddressMode::RegBase &&
3489         AM.IndexReg == 0 && AM.Disp == 0 && AM.GV == nullptr)
3490       return AM.Base.Reg;
3491 
3492     unsigned ResultReg = createResultReg(TLI.getRegClassFor(VT));
3493     if (TM.getRelocationModel() == Reloc::Static &&
3494         TLI.getPointerTy(DL) == MVT::i64) {
3495       // The displacement code could be more than 32 bits away so we need to use
3496       // an instruction with a 64 bit immediate
3497       BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(X86::MOV64ri),
3498               ResultReg)
3499         .addGlobalAddress(GV);
3500     } else {
3501       unsigned Opc =
3502           TLI.getPointerTy(DL) == MVT::i32
3503               ? (Subtarget->isTarget64BitILP32() ? X86::LEA64_32r : X86::LEA32r)
3504               : X86::LEA64r;
3505       addFullAddress(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
3506                              TII.get(Opc), ResultReg), AM);
3507     }
3508     return ResultReg;
3509   }
3510   return 0;
3511 }
3512 
3513 unsigned X86FastISel::fastMaterializeConstant(const Constant *C) {
3514   EVT CEVT = TLI.getValueType(DL, C->getType(), true);
3515 
3516   // Only handle simple types.
3517   if (!CEVT.isSimple())
3518     return 0;
3519   MVT VT = CEVT.getSimpleVT();
3520 
3521   if (const auto *CI = dyn_cast<ConstantInt>(C))
3522     return X86MaterializeInt(CI, VT);
3523   else if (const ConstantFP *CFP = dyn_cast<ConstantFP>(C))
3524     return X86MaterializeFP(CFP, VT);
3525   else if (const GlobalValue *GV = dyn_cast<GlobalValue>(C))
3526     return X86MaterializeGV(GV, VT);
3527 
3528   return 0;
3529 }
3530 
3531 unsigned X86FastISel::fastMaterializeAlloca(const AllocaInst *C) {
3532   // Fail on dynamic allocas. At this point, getRegForValue has already
3533   // checked its CSE maps, so if we're here trying to handle a dynamic
3534   // alloca, we're not going to succeed. X86SelectAddress has a
3535   // check for dynamic allocas, because it's called directly from
3536   // various places, but targetMaterializeAlloca also needs a check
3537   // in order to avoid recursion between getRegForValue,
3538   // X86SelectAddrss, and targetMaterializeAlloca.
3539   if (!FuncInfo.StaticAllocaMap.count(C))
3540     return 0;
3541   assert(C->isStaticAlloca() && "dynamic alloca in the static alloca map?");
3542 
3543   X86AddressMode AM;
3544   if (!X86SelectAddress(C, AM))
3545     return 0;
3546   unsigned Opc =
3547       TLI.getPointerTy(DL) == MVT::i32
3548           ? (Subtarget->isTarget64BitILP32() ? X86::LEA64_32r : X86::LEA32r)
3549           : X86::LEA64r;
3550   const TargetRegisterClass *RC = TLI.getRegClassFor(TLI.getPointerTy(DL));
3551   unsigned ResultReg = createResultReg(RC);
3552   addFullAddress(BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc,
3553                          TII.get(Opc), ResultReg), AM);
3554   return ResultReg;
3555 }
3556 
3557 unsigned X86FastISel::fastMaterializeFloatZero(const ConstantFP *CF) {
3558   MVT VT;
3559   if (!isTypeLegal(CF->getType(), VT))
3560     return 0;
3561 
3562   // Get opcode and regclass for the given zero.
3563   unsigned Opc = 0;
3564   const TargetRegisterClass *RC = nullptr;
3565   switch (VT.SimpleTy) {
3566   default: return 0;
3567   case MVT::f32:
3568     if (X86ScalarSSEf32) {
3569       Opc = X86::FsFLD0SS;
3570       RC  = &X86::FR32RegClass;
3571     } else {
3572       Opc = X86::LD_Fp032;
3573       RC  = &X86::RFP32RegClass;
3574     }
3575     break;
3576   case MVT::f64:
3577     if (X86ScalarSSEf64) {
3578       Opc = X86::FsFLD0SD;
3579       RC  = &X86::FR64RegClass;
3580     } else {
3581       Opc = X86::LD_Fp064;
3582       RC  = &X86::RFP64RegClass;
3583     }
3584     break;
3585   case MVT::f80:
3586     // No f80 support yet.
3587     return 0;
3588   }
3589 
3590   unsigned ResultReg = createResultReg(RC);
3591   BuildMI(*FuncInfo.MBB, FuncInfo.InsertPt, DbgLoc, TII.get(Opc), ResultReg);
3592   return ResultReg;
3593 }
3594 
3595 
3596 bool X86FastISel::tryToFoldLoadIntoMI(MachineInstr *MI, unsigned OpNo,
3597                                       const LoadInst *LI) {
3598   const Value *Ptr = LI->getPointerOperand();
3599   X86AddressMode AM;
3600   if (!X86SelectAddress(Ptr, AM))
3601     return false;
3602 
3603   const X86InstrInfo &XII = (const X86InstrInfo &)TII;
3604 
3605   unsigned Size = DL.getTypeAllocSize(LI->getType());
3606   unsigned Alignment = LI->getAlignment();
3607 
3608   if (Alignment == 0)  // Ensure that codegen never sees alignment 0
3609     Alignment = DL.getABITypeAlignment(LI->getType());
3610 
3611   SmallVector<MachineOperand, 8> AddrOps;
3612   AM.getFullAddress(AddrOps);
3613 
3614   MachineInstr *Result = XII.foldMemoryOperandImpl(
3615       *FuncInfo.MF, MI, OpNo, AddrOps, FuncInfo.InsertPt, Size, Alignment,
3616       /*AllowCommute=*/true);
3617   if (!Result)
3618     return false;
3619 
3620   // The index register could be in the wrong register class.  Unfortunately,
3621   // foldMemoryOperandImpl could have commuted the instruction so its not enough
3622   // to just look at OpNo + the offset to the index reg.  We actually need to
3623   // scan the instruction to find the index reg and see if its the correct reg
3624   // class.
3625   unsigned OperandNo = 0;
3626   for (MachineInstr::mop_iterator I = Result->operands_begin(),
3627        E = Result->operands_end(); I != E; ++I, ++OperandNo) {
3628     MachineOperand &MO = *I;
3629     if (!MO.isReg() || MO.isDef() || MO.getReg() != AM.IndexReg)
3630       continue;
3631     // Found the index reg, now try to rewrite it.
3632     unsigned IndexReg = constrainOperandRegClass(Result->getDesc(),
3633                                                  MO.getReg(), OperandNo);
3634     if (IndexReg == MO.getReg())
3635       continue;
3636     MO.setReg(IndexReg);
3637   }
3638 
3639   Result->addMemOperand(*FuncInfo.MF, createMachineMemOperandFor(LI));
3640   MI->eraseFromParent();
3641   return true;
3642 }
3643 
3644 
3645 namespace llvm {
3646   FastISel *X86::createFastISel(FunctionLoweringInfo &funcInfo,
3647                                 const TargetLibraryInfo *libInfo) {
3648     return new X86FastISel(funcInfo, libInfo);
3649   }
3650 }
3651