1 //===-- PPCRegisterInfo.cpp - PowerPC Register Information ----------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file contains the PowerPC implementation of the TargetRegisterInfo
10 // class.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "PPCRegisterInfo.h"
15 #include "PPCFrameLowering.h"
16 #include "PPCInstrBuilder.h"
17 #include "PPCMachineFunctionInfo.h"
18 #include "PPCSubtarget.h"
19 #include "PPCTargetMachine.h"
20 #include "llvm/ADT/BitVector.h"
21 #include "llvm/ADT/STLExtras.h"
22 #include "llvm/ADT/Statistic.h"
23 #include "llvm/CodeGen/MachineFrameInfo.h"
24 #include "llvm/CodeGen/MachineFunction.h"
25 #include "llvm/CodeGen/MachineInstrBuilder.h"
26 #include "llvm/CodeGen/MachineModuleInfo.h"
27 #include "llvm/CodeGen/MachineRegisterInfo.h"
28 #include "llvm/CodeGen/RegisterScavenging.h"
29 #include "llvm/CodeGen/TargetFrameLowering.h"
30 #include "llvm/CodeGen/TargetInstrInfo.h"
31 #include "llvm/IR/CallingConv.h"
32 #include "llvm/IR/Constants.h"
33 #include "llvm/IR/Function.h"
34 #include "llvm/IR/Type.h"
35 #include "llvm/Support/CommandLine.h"
36 #include "llvm/Support/Debug.h"
37 #include "llvm/Support/ErrorHandling.h"
38 #include "llvm/Support/MathExtras.h"
39 #include "llvm/Support/raw_ostream.h"
40 #include "llvm/Target/TargetMachine.h"
41 #include "llvm/Target/TargetOptions.h"
42 #include <cstdlib>
43 
44 using namespace llvm;
45 
46 #define DEBUG_TYPE "reginfo"
47 
48 #define GET_REGINFO_TARGET_DESC
49 #include "PPCGenRegisterInfo.inc"
50 
51 STATISTIC(InflateGPRC, "Number of gprc inputs for getLargestLegalClass");
52 STATISTIC(InflateGP8RC, "Number of g8rc inputs for getLargestLegalClass");
53 
54 static cl::opt<bool>
55 EnableBasePointer("ppc-use-base-pointer", cl::Hidden, cl::init(true),
56          cl::desc("Enable use of a base pointer for complex stack frames"));
57 
58 static cl::opt<bool>
59 AlwaysBasePointer("ppc-always-use-base-pointer", cl::Hidden, cl::init(false),
60          cl::desc("Force the use of a base pointer in every function"));
61 
62 static cl::opt<bool>
63 EnableGPRToVecSpills("ppc-enable-gpr-to-vsr-spills", cl::Hidden, cl::init(false),
64          cl::desc("Enable spills from gpr to vsr rather than stack"));
65 
66 static cl::opt<bool>
67 StackPtrConst("ppc-stack-ptr-caller-preserved",
68                 cl::desc("Consider R1 caller preserved so stack saves of "
69                          "caller preserved registers can be LICM candidates"),
70                 cl::init(true), cl::Hidden);
71 
72 static cl::opt<unsigned>
73 MaxCRBitSpillDist("ppc-max-crbit-spill-dist",
74                   cl::desc("Maximum search distance for definition of CR bit "
75                            "spill on ppc"),
76                   cl::Hidden, cl::init(100));
77 
78 static unsigned offsetMinAlignForOpcode(unsigned OpC);
79 
80 PPCRegisterInfo::PPCRegisterInfo(const PPCTargetMachine &TM)
81   : PPCGenRegisterInfo(TM.isPPC64() ? PPC::LR8 : PPC::LR,
82                        TM.isPPC64() ? 0 : 1,
83                        TM.isPPC64() ? 0 : 1),
84     TM(TM) {
85   ImmToIdxMap[PPC::LD]   = PPC::LDX;    ImmToIdxMap[PPC::STD]  = PPC::STDX;
86   ImmToIdxMap[PPC::LBZ]  = PPC::LBZX;   ImmToIdxMap[PPC::STB]  = PPC::STBX;
87   ImmToIdxMap[PPC::LHZ]  = PPC::LHZX;   ImmToIdxMap[PPC::LHA]  = PPC::LHAX;
88   ImmToIdxMap[PPC::LWZ]  = PPC::LWZX;   ImmToIdxMap[PPC::LWA]  = PPC::LWAX;
89   ImmToIdxMap[PPC::LFS]  = PPC::LFSX;   ImmToIdxMap[PPC::LFD]  = PPC::LFDX;
90   ImmToIdxMap[PPC::STH]  = PPC::STHX;   ImmToIdxMap[PPC::STW]  = PPC::STWX;
91   ImmToIdxMap[PPC::STFS] = PPC::STFSX;  ImmToIdxMap[PPC::STFD] = PPC::STFDX;
92   ImmToIdxMap[PPC::ADDI] = PPC::ADD4;
93   ImmToIdxMap[PPC::LWA_32] = PPC::LWAX_32;
94 
95   // 64-bit
96   ImmToIdxMap[PPC::LHA8] = PPC::LHAX8; ImmToIdxMap[PPC::LBZ8] = PPC::LBZX8;
97   ImmToIdxMap[PPC::LHZ8] = PPC::LHZX8; ImmToIdxMap[PPC::LWZ8] = PPC::LWZX8;
98   ImmToIdxMap[PPC::STB8] = PPC::STBX8; ImmToIdxMap[PPC::STH8] = PPC::STHX8;
99   ImmToIdxMap[PPC::STW8] = PPC::STWX8; ImmToIdxMap[PPC::STDU] = PPC::STDUX;
100   ImmToIdxMap[PPC::ADDI8] = PPC::ADD8;
101 
102   // VSX
103   ImmToIdxMap[PPC::DFLOADf32] = PPC::LXSSPX;
104   ImmToIdxMap[PPC::DFLOADf64] = PPC::LXSDX;
105   ImmToIdxMap[PPC::SPILLTOVSR_LD] = PPC::SPILLTOVSR_LDX;
106   ImmToIdxMap[PPC::SPILLTOVSR_ST] = PPC::SPILLTOVSR_STX;
107   ImmToIdxMap[PPC::DFSTOREf32] = PPC::STXSSPX;
108   ImmToIdxMap[PPC::DFSTOREf64] = PPC::STXSDX;
109   ImmToIdxMap[PPC::LXV] = PPC::LXVX;
110   ImmToIdxMap[PPC::LXSD] = PPC::LXSDX;
111   ImmToIdxMap[PPC::LXSSP] = PPC::LXSSPX;
112   ImmToIdxMap[PPC::STXV] = PPC::STXVX;
113   ImmToIdxMap[PPC::STXSD] = PPC::STXSDX;
114   ImmToIdxMap[PPC::STXSSP] = PPC::STXSSPX;
115 
116   // SPE
117   ImmToIdxMap[PPC::EVLDD] = PPC::EVLDDX;
118   ImmToIdxMap[PPC::EVSTDD] = PPC::EVSTDDX;
119   ImmToIdxMap[PPC::SPESTW] = PPC::SPESTWX;
120   ImmToIdxMap[PPC::SPELWZ] = PPC::SPELWZX;
121 }
122 
123 /// getPointerRegClass - Return the register class to use to hold pointers.
124 /// This is used for addressing modes.
125 const TargetRegisterClass *
126 PPCRegisterInfo::getPointerRegClass(const MachineFunction &MF, unsigned Kind)
127                                                                        const {
128   // Note that PPCInstrInfo::FoldImmediate also directly uses this Kind value
129   // when it checks for ZERO folding.
130   if (Kind == 1) {
131     if (TM.isPPC64())
132       return &PPC::G8RC_NOX0RegClass;
133     return &PPC::GPRC_NOR0RegClass;
134   }
135 
136   if (TM.isPPC64())
137     return &PPC::G8RCRegClass;
138   return &PPC::GPRCRegClass;
139 }
140 
141 const MCPhysReg*
142 PPCRegisterInfo::getCalleeSavedRegs(const MachineFunction *MF) const {
143   const PPCSubtarget &Subtarget = MF->getSubtarget<PPCSubtarget>();
144   if (MF->getFunction().getCallingConv() == CallingConv::AnyReg) {
145     if (!TM.isPPC64() && Subtarget.isAIXABI())
146       report_fatal_error("AnyReg unimplemented on 32-bit AIX.");
147     if (Subtarget.hasVSX())
148       return CSR_64_AllRegs_VSX_SaveList;
149     if (Subtarget.hasAltivec())
150       return CSR_64_AllRegs_Altivec_SaveList;
151     return CSR_64_AllRegs_SaveList;
152   }
153 
154   // On PPC64, we might need to save r2 (but only if it is not reserved).
155   // We do not need to treat R2 as callee-saved when using PC-Relative calls
156   // because any direct uses of R2 will cause it to be reserved. If the function
157   // is a leaf or the only uses of R2 are implicit uses for calls, the calls
158   // will use the @notoc relocation which will cause this function to set the
159   // st_other bit to 1, thereby communicating to its caller that it arbitrarily
160   // clobbers the TOC.
161   bool SaveR2 = MF->getRegInfo().isAllocatable(PPC::X2) &&
162                 !Subtarget.isUsingPCRelativeCalls();
163 
164   // Cold calling convention CSRs.
165   if (MF->getFunction().getCallingConv() == CallingConv::Cold) {
166     if (Subtarget.isAIXABI())
167       report_fatal_error("Cold calling unimplemented on AIX.");
168     if (TM.isPPC64()) {
169       if (Subtarget.hasAltivec())
170         return SaveR2 ? CSR_SVR64_ColdCC_R2_Altivec_SaveList
171                       : CSR_SVR64_ColdCC_Altivec_SaveList;
172       return SaveR2 ? CSR_SVR64_ColdCC_R2_SaveList
173                     : CSR_SVR64_ColdCC_SaveList;
174     }
175     // 32-bit targets.
176     if (Subtarget.hasAltivec())
177       return CSR_SVR32_ColdCC_Altivec_SaveList;
178     else if (Subtarget.hasSPE())
179       return CSR_SVR32_ColdCC_SPE_SaveList;
180     return CSR_SVR32_ColdCC_SaveList;
181   }
182   // Standard calling convention CSRs.
183   if (TM.isPPC64()) {
184     if (Subtarget.hasAltivec())
185       return SaveR2 ? CSR_PPC64_R2_Altivec_SaveList
186                     : CSR_PPC64_Altivec_SaveList;
187     return SaveR2 ? CSR_PPC64_R2_SaveList : CSR_PPC64_SaveList;
188   }
189   // 32-bit targets.
190   if (Subtarget.isAIXABI())
191     return CSR_AIX32_SaveList;
192   if (Subtarget.hasAltivec())
193     return CSR_SVR432_Altivec_SaveList;
194   else if (Subtarget.hasSPE())
195     return CSR_SVR432_SPE_SaveList;
196   return CSR_SVR432_SaveList;
197 }
198 
199 const uint32_t *
200 PPCRegisterInfo::getCallPreservedMask(const MachineFunction &MF,
201                                       CallingConv::ID CC) const {
202   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
203   if (CC == CallingConv::AnyReg) {
204     if (Subtarget.hasVSX())
205       return CSR_64_AllRegs_VSX_RegMask;
206     if (Subtarget.hasAltivec())
207       return CSR_64_AllRegs_Altivec_RegMask;
208     return CSR_64_AllRegs_RegMask;
209   }
210 
211   if (Subtarget.isAIXABI()) {
212     assert(!Subtarget.hasAltivec() && "Altivec is not implemented on AIX yet.");
213     return TM.isPPC64() ? CSR_PPC64_RegMask : CSR_AIX32_RegMask;
214   }
215 
216   if (CC == CallingConv::Cold) {
217     return TM.isPPC64() ? (Subtarget.hasAltivec() ? CSR_SVR64_ColdCC_Altivec_RegMask
218                                                   : CSR_SVR64_ColdCC_RegMask)
219                         : (Subtarget.hasAltivec() ? CSR_SVR32_ColdCC_Altivec_RegMask
220                                                   : (Subtarget.hasSPE()
221                                                   ? CSR_SVR32_ColdCC_SPE_RegMask
222                                                   : CSR_SVR32_ColdCC_RegMask));
223   }
224 
225   return TM.isPPC64() ? (Subtarget.hasAltivec() ? CSR_PPC64_Altivec_RegMask
226                                                 : CSR_PPC64_RegMask)
227                       : (Subtarget.hasAltivec()
228                              ? CSR_SVR432_Altivec_RegMask
229                              : (Subtarget.hasSPE() ? CSR_SVR432_SPE_RegMask
230                                                    : CSR_SVR432_RegMask));
231 }
232 
233 const uint32_t*
234 PPCRegisterInfo::getNoPreservedMask() const {
235   return CSR_NoRegs_RegMask;
236 }
237 
238 void PPCRegisterInfo::adjustStackMapLiveOutMask(uint32_t *Mask) const {
239   for (unsigned PseudoReg : {PPC::ZERO, PPC::ZERO8, PPC::RM})
240     Mask[PseudoReg / 32] &= ~(1u << (PseudoReg % 32));
241 }
242 
243 BitVector PPCRegisterInfo::getReservedRegs(const MachineFunction &MF) const {
244   BitVector Reserved(getNumRegs());
245   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
246   const PPCFrameLowering *TFI = getFrameLowering(MF);
247 
248   // The ZERO register is not really a register, but the representation of r0
249   // when used in instructions that treat r0 as the constant 0.
250   markSuperRegs(Reserved, PPC::ZERO);
251 
252   // The FP register is also not really a register, but is the representation
253   // of the frame pointer register used by ISD::FRAMEADDR.
254   markSuperRegs(Reserved, PPC::FP);
255 
256   // The BP register is also not really a register, but is the representation
257   // of the base pointer register used by setjmp.
258   markSuperRegs(Reserved, PPC::BP);
259 
260   // The counter registers must be reserved so that counter-based loops can
261   // be correctly formed (and the mtctr instructions are not DCE'd).
262   markSuperRegs(Reserved, PPC::CTR);
263   markSuperRegs(Reserved, PPC::CTR8);
264 
265   markSuperRegs(Reserved, PPC::R1);
266   markSuperRegs(Reserved, PPC::LR);
267   markSuperRegs(Reserved, PPC::LR8);
268   markSuperRegs(Reserved, PPC::RM);
269 
270   markSuperRegs(Reserved, PPC::VRSAVE);
271 
272   // The SVR4 ABI reserves r2 and r13
273   if (Subtarget.isSVR4ABI()) {
274     // We only reserve r2 if we need to use the TOC pointer. If we have no
275     // explicit uses of the TOC pointer (meaning we're a leaf function with
276     // no constant-pool loads, etc.) and we have no potential uses inside an
277     // inline asm block, then we can treat r2 has an ordinary callee-saved
278     // register.
279     const PPCFunctionInfo *FuncInfo = MF.getInfo<PPCFunctionInfo>();
280     if (!TM.isPPC64() || FuncInfo->usesTOCBasePtr() || MF.hasInlineAsm())
281       markSuperRegs(Reserved, PPC::R2);  // System-reserved register
282     markSuperRegs(Reserved, PPC::R13); // Small Data Area pointer register
283   }
284 
285   // Always reserve r2 on AIX for now.
286   // TODO: Make r2 allocatable on AIX/XCOFF for some leaf functions.
287   if (Subtarget.isAIXABI())
288     markSuperRegs(Reserved, PPC::R2);  // System-reserved register
289 
290   // On PPC64, r13 is the thread pointer. Never allocate this register.
291   if (TM.isPPC64())
292     markSuperRegs(Reserved, PPC::R13);
293 
294   if (TFI->needsFP(MF))
295     markSuperRegs(Reserved, PPC::R31);
296 
297   bool IsPositionIndependent = TM.isPositionIndependent();
298   if (hasBasePointer(MF)) {
299     if (Subtarget.is32BitELFABI() && IsPositionIndependent)
300       markSuperRegs(Reserved, PPC::R29);
301     else
302       markSuperRegs(Reserved, PPC::R30);
303   }
304 
305   if (Subtarget.is32BitELFABI() && IsPositionIndependent)
306     markSuperRegs(Reserved, PPC::R30);
307 
308   // Reserve Altivec registers when Altivec is unavailable.
309   if (!Subtarget.hasAltivec())
310     for (TargetRegisterClass::iterator I = PPC::VRRCRegClass.begin(),
311          IE = PPC::VRRCRegClass.end(); I != IE; ++I)
312       markSuperRegs(Reserved, *I);
313 
314   assert(checkAllSuperRegsMarked(Reserved));
315   return Reserved;
316 }
317 
318 bool PPCRegisterInfo::requiresFrameIndexScavenging(const MachineFunction &MF) const {
319   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
320   const PPCInstrInfo *InstrInfo =  Subtarget.getInstrInfo();
321   const MachineFrameInfo &MFI = MF.getFrameInfo();
322   const std::vector<CalleeSavedInfo> &Info = MFI.getCalleeSavedInfo();
323 
324   // If the callee saved info is invalid we have to default to true for safety.
325   if (!MFI.isCalleeSavedInfoValid())
326     return true;
327 
328   // We will require the use of X-Forms because the frame is larger than what
329   // can be represented in signed 16 bits that fit in the immediate of a D-Form.
330   // If we need an X-Form then we need a register to store the address offset.
331   unsigned FrameSize = MFI.getStackSize();
332   // Signed 16 bits means that the FrameSize cannot be more than 15 bits.
333   if (FrameSize & ~0x7FFF)
334     return true;
335 
336   // The callee saved info is valid so it can be traversed.
337   // Checking for registers that need saving that do not have load or store
338   // forms where the address offset is an immediate.
339   for (unsigned i = 0; i < Info.size(); i++) {
340     int FrIdx = Info[i].getFrameIdx();
341     unsigned Reg = Info[i].getReg();
342 
343     const TargetRegisterClass *RC = getMinimalPhysRegClass(Reg);
344     unsigned Opcode = InstrInfo->getStoreOpcodeForSpill(RC);
345     if (!MFI.isFixedObjectIndex(FrIdx)) {
346       // This is not a fixed object. If it requires alignment then we may still
347       // need to use the XForm.
348       if (offsetMinAlignForOpcode(Opcode) > 1)
349         return true;
350     }
351 
352     // This is eiher:
353     // 1) A fixed frame index object which we know are aligned so
354     // as long as we have a valid DForm/DSForm/DQForm (non XForm) we don't
355     // need to consider the alignment here.
356     // 2) A not fixed object but in that case we now know that the min required
357     // alignment is no more than 1 based on the previous check.
358     if (InstrInfo->isXFormMemOp(Opcode))
359       return true;
360   }
361   return false;
362 }
363 
364 bool PPCRegisterInfo::isCallerPreservedPhysReg(MCRegister PhysReg,
365                                                const MachineFunction &MF) const {
366   assert(Register::isPhysicalRegister(PhysReg));
367   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
368   const MachineFrameInfo &MFI = MF.getFrameInfo();
369   if (!TM.isPPC64())
370     return false;
371 
372   if (!Subtarget.isSVR4ABI())
373     return false;
374   if (PhysReg == PPC::X2)
375     // X2 is guaranteed to be preserved within a function if it is reserved.
376     // The reason it's reserved is that it's the TOC pointer (and the function
377     // uses the TOC). In functions where it isn't reserved (i.e. leaf functions
378     // with no TOC access), we can't claim that it is preserved.
379     return (getReservedRegs(MF).test(PPC::X2));
380   if (StackPtrConst && (PhysReg == PPC::X1) && !MFI.hasVarSizedObjects()
381       && !MFI.hasOpaqueSPAdjustment())
382     // The value of the stack pointer does not change within a function after
383     // the prologue and before the epilogue if there are no dynamic allocations
384     // and no inline asm which clobbers X1.
385     return true;
386   return false;
387 }
388 
389 unsigned PPCRegisterInfo::getRegPressureLimit(const TargetRegisterClass *RC,
390                                               MachineFunction &MF) const {
391   const PPCFrameLowering *TFI = getFrameLowering(MF);
392   const unsigned DefaultSafety = 1;
393 
394   switch (RC->getID()) {
395   default:
396     return 0;
397   case PPC::G8RC_NOX0RegClassID:
398   case PPC::GPRC_NOR0RegClassID:
399   case PPC::SPERCRegClassID:
400   case PPC::G8RCRegClassID:
401   case PPC::GPRCRegClassID: {
402     unsigned FP = TFI->hasFP(MF) ? 1 : 0;
403     return 32 - FP - DefaultSafety;
404   }
405   case PPC::F8RCRegClassID:
406   case PPC::F4RCRegClassID:
407   case PPC::VRRCRegClassID:
408   case PPC::VFRCRegClassID:
409   case PPC::VSLRCRegClassID:
410     return 32 - DefaultSafety;
411   case PPC::VSRCRegClassID:
412   case PPC::VSFRCRegClassID:
413   case PPC::VSSRCRegClassID:
414     return 64 - DefaultSafety;
415   case PPC::CRRCRegClassID:
416     return 8 - DefaultSafety;
417   }
418 }
419 
420 const TargetRegisterClass *
421 PPCRegisterInfo::getLargestLegalSuperClass(const TargetRegisterClass *RC,
422                                            const MachineFunction &MF) const {
423   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
424   if (Subtarget.hasVSX()) {
425     // With VSX, we can inflate various sub-register classes to the full VSX
426     // register set.
427 
428     // For Power9 we allow the user to enable GPR to vector spills.
429     // FIXME: Currently limited to spilling GP8RC. A follow on patch will add
430     // support to spill GPRC.
431     if (TM.isELFv2ABI()) {
432       if (Subtarget.hasP9Vector() && EnableGPRToVecSpills &&
433           RC == &PPC::G8RCRegClass) {
434         InflateGP8RC++;
435         return &PPC::SPILLTOVSRRCRegClass;
436       }
437       if (RC == &PPC::GPRCRegClass && EnableGPRToVecSpills)
438         InflateGPRC++;
439     }
440     if (RC == &PPC::F8RCRegClass)
441       return &PPC::VSFRCRegClass;
442     else if (RC == &PPC::VRRCRegClass)
443       return &PPC::VSRCRegClass;
444     else if (RC == &PPC::F4RCRegClass && Subtarget.hasP8Vector())
445       return &PPC::VSSRCRegClass;
446   }
447 
448   return TargetRegisterInfo::getLargestLegalSuperClass(RC, MF);
449 }
450 
451 //===----------------------------------------------------------------------===//
452 // Stack Frame Processing methods
453 //===----------------------------------------------------------------------===//
454 
455 /// lowerDynamicAlloc - Generate the code for allocating an object in the
456 /// current frame.  The sequence of code will be in the general form
457 ///
458 ///   addi   R0, SP, \#frameSize ; get the address of the previous frame
459 ///   stwxu  R0, SP, Rnegsize   ; add and update the SP with the negated size
460 ///   addi   Rnew, SP, \#maxCalFrameSize ; get the top of the allocation
461 ///
462 void PPCRegisterInfo::lowerDynamicAlloc(MachineBasicBlock::iterator II) const {
463   // Get the instruction.
464   MachineInstr &MI = *II;
465   // Get the instruction's basic block.
466   MachineBasicBlock &MBB = *MI.getParent();
467   // Get the basic block's function.
468   MachineFunction &MF = *MBB.getParent();
469   // Get the frame info.
470   MachineFrameInfo &MFI = MF.getFrameInfo();
471   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
472   // Get the instruction info.
473   const TargetInstrInfo &TII = *Subtarget.getInstrInfo();
474   // Determine whether 64-bit pointers are used.
475   bool LP64 = TM.isPPC64();
476   DebugLoc dl = MI.getDebugLoc();
477 
478   // Get the maximum call stack size.
479   unsigned maxCallFrameSize = MFI.getMaxCallFrameSize();
480   Align MaxAlign = MFI.getMaxAlign();
481   assert(isAligned(MaxAlign, maxCallFrameSize) &&
482          "Maximum call-frame size not sufficiently aligned");
483   (void)MaxAlign;
484 
485   const TargetRegisterClass *G8RC = &PPC::G8RCRegClass;
486   const TargetRegisterClass *GPRC = &PPC::GPRCRegClass;
487   Register Reg = MF.getRegInfo().createVirtualRegister(LP64 ? G8RC : GPRC);
488   bool KillNegSizeReg = MI.getOperand(1).isKill();
489   Register NegSizeReg = MI.getOperand(1).getReg();
490 
491   prepareDynamicAlloca(II, NegSizeReg, KillNegSizeReg, Reg);
492   // Grow the stack and update the stack pointer link, then determine the
493   // address of new allocated space.
494   if (LP64) {
495     BuildMI(MBB, II, dl, TII.get(PPC::STDUX), PPC::X1)
496         .addReg(Reg, RegState::Kill)
497         .addReg(PPC::X1)
498         .addReg(NegSizeReg, getKillRegState(KillNegSizeReg));
499     BuildMI(MBB, II, dl, TII.get(PPC::ADDI8), MI.getOperand(0).getReg())
500         .addReg(PPC::X1)
501         .addImm(maxCallFrameSize);
502   } else {
503     BuildMI(MBB, II, dl, TII.get(PPC::STWUX), PPC::R1)
504         .addReg(Reg, RegState::Kill)
505         .addReg(PPC::R1)
506         .addReg(NegSizeReg, getKillRegState(KillNegSizeReg));
507     BuildMI(MBB, II, dl, TII.get(PPC::ADDI), MI.getOperand(0).getReg())
508         .addReg(PPC::R1)
509         .addImm(maxCallFrameSize);
510   }
511 
512   // Discard the DYNALLOC instruction.
513   MBB.erase(II);
514 }
515 
516 /// To accomplish dynamic stack allocation, we have to calculate exact size
517 /// subtracted from the stack pointer according alignment information and get
518 /// previous frame pointer.
519 void PPCRegisterInfo::prepareDynamicAlloca(MachineBasicBlock::iterator II,
520                                            Register &NegSizeReg,
521                                            bool &KillNegSizeReg,
522                                            Register &FramePointer) const {
523   // Get the instruction.
524   MachineInstr &MI = *II;
525   // Get the instruction's basic block.
526   MachineBasicBlock &MBB = *MI.getParent();
527   // Get the basic block's function.
528   MachineFunction &MF = *MBB.getParent();
529   // Get the frame info.
530   MachineFrameInfo &MFI = MF.getFrameInfo();
531   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
532   // Get the instruction info.
533   const TargetInstrInfo &TII = *Subtarget.getInstrInfo();
534   // Determine whether 64-bit pointers are used.
535   bool LP64 = TM.isPPC64();
536   DebugLoc dl = MI.getDebugLoc();
537   // Get the total frame size.
538   unsigned FrameSize = MFI.getStackSize();
539 
540   // Get stack alignments.
541   const PPCFrameLowering *TFI = getFrameLowering(MF);
542   Align TargetAlign = TFI->getStackAlign();
543   Align MaxAlign = MFI.getMaxAlign();
544 
545   // Determine the previous frame's address.  If FrameSize can't be
546   // represented as 16 bits or we need special alignment, then we load the
547   // previous frame's address from 0(SP).  Why not do an addis of the hi?
548   // Because R0 is our only safe tmp register and addi/addis treat R0 as zero.
549   // Constructing the constant and adding would take 3 instructions.
550   // Fortunately, a frame greater than 32K is rare.
551   const TargetRegisterClass *G8RC = &PPC::G8RCRegClass;
552   const TargetRegisterClass *GPRC = &PPC::GPRCRegClass;
553 
554   if (MaxAlign < TargetAlign && isInt<16>(FrameSize)) {
555     if (LP64)
556       BuildMI(MBB, II, dl, TII.get(PPC::ADDI8), FramePointer)
557           .addReg(PPC::X31)
558           .addImm(FrameSize);
559     else
560       BuildMI(MBB, II, dl, TII.get(PPC::ADDI), FramePointer)
561           .addReg(PPC::R31)
562           .addImm(FrameSize);
563   } else if (LP64) {
564     BuildMI(MBB, II, dl, TII.get(PPC::LD), FramePointer)
565         .addImm(0)
566         .addReg(PPC::X1);
567   } else {
568     BuildMI(MBB, II, dl, TII.get(PPC::LWZ), FramePointer)
569         .addImm(0)
570         .addReg(PPC::R1);
571   }
572   // Determine the actual NegSizeReg according to alignment info.
573   if (LP64) {
574     if (MaxAlign > TargetAlign) {
575       unsigned UnalNegSizeReg = NegSizeReg;
576       NegSizeReg = MF.getRegInfo().createVirtualRegister(G8RC);
577 
578       // Unfortunately, there is no andi, only andi., and we can't insert that
579       // here because we might clobber cr0 while it is live.
580       BuildMI(MBB, II, dl, TII.get(PPC::LI8), NegSizeReg)
581           .addImm(~(MaxAlign.value() - 1));
582 
583       unsigned NegSizeReg1 = NegSizeReg;
584       NegSizeReg = MF.getRegInfo().createVirtualRegister(G8RC);
585       BuildMI(MBB, II, dl, TII.get(PPC::AND8), NegSizeReg)
586           .addReg(UnalNegSizeReg, getKillRegState(KillNegSizeReg))
587           .addReg(NegSizeReg1, RegState::Kill);
588       KillNegSizeReg = true;
589     }
590   } else {
591     if (MaxAlign > TargetAlign) {
592       unsigned UnalNegSizeReg = NegSizeReg;
593       NegSizeReg = MF.getRegInfo().createVirtualRegister(GPRC);
594 
595       // Unfortunately, there is no andi, only andi., and we can't insert that
596       // here because we might clobber cr0 while it is live.
597       BuildMI(MBB, II, dl, TII.get(PPC::LI), NegSizeReg)
598           .addImm(~(MaxAlign.value() - 1));
599 
600       unsigned NegSizeReg1 = NegSizeReg;
601       NegSizeReg = MF.getRegInfo().createVirtualRegister(GPRC);
602       BuildMI(MBB, II, dl, TII.get(PPC::AND), NegSizeReg)
603           .addReg(UnalNegSizeReg, getKillRegState(KillNegSizeReg))
604           .addReg(NegSizeReg1, RegState::Kill);
605       KillNegSizeReg = true;
606     }
607   }
608 }
609 
610 void PPCRegisterInfo::lowerPrepareProbedAlloca(
611     MachineBasicBlock::iterator II) const {
612   MachineInstr &MI = *II;
613   // Get the instruction's basic block.
614   MachineBasicBlock &MBB = *MI.getParent();
615   // Get the basic block's function.
616   MachineFunction &MF = *MBB.getParent();
617   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
618   // Get the instruction info.
619   const TargetInstrInfo &TII = *Subtarget.getInstrInfo();
620   // Determine whether 64-bit pointers are used.
621   bool LP64 = TM.isPPC64();
622   DebugLoc dl = MI.getDebugLoc();
623   Register FramePointer = MI.getOperand(0).getReg();
624   const Register ActualNegSizeReg = MI.getOperand(1).getReg();
625   bool KillNegSizeReg = MI.getOperand(2).isKill();
626   Register NegSizeReg = MI.getOperand(2).getReg();
627   const MCInstrDesc &CopyInst = TII.get(LP64 ? PPC::OR8 : PPC::OR);
628   // RegAllocator might allocate FramePointer and NegSizeReg in the same phyreg.
629   if (FramePointer == NegSizeReg) {
630     assert(KillNegSizeReg && "FramePointer is a def and NegSizeReg is an use, "
631                              "NegSizeReg should be killed");
632     // FramePointer is clobbered earlier than the use of NegSizeReg in
633     // prepareDynamicAlloca, save NegSizeReg in ActualNegSizeReg to avoid
634     // misuse.
635     BuildMI(MBB, II, dl, CopyInst, ActualNegSizeReg)
636         .addReg(NegSizeReg)
637         .addReg(NegSizeReg);
638     NegSizeReg = ActualNegSizeReg;
639     KillNegSizeReg = false;
640   }
641   prepareDynamicAlloca(II, NegSizeReg, KillNegSizeReg, FramePointer);
642   // NegSizeReg might be updated in prepareDynamicAlloca if MaxAlign >
643   // TargetAlign.
644   if (NegSizeReg != ActualNegSizeReg)
645     BuildMI(MBB, II, dl, CopyInst, ActualNegSizeReg)
646         .addReg(NegSizeReg)
647         .addReg(NegSizeReg);
648   MBB.erase(II);
649 }
650 
651 void PPCRegisterInfo::lowerDynamicAreaOffset(
652     MachineBasicBlock::iterator II) const {
653   // Get the instruction.
654   MachineInstr &MI = *II;
655   // Get the instruction's basic block.
656   MachineBasicBlock &MBB = *MI.getParent();
657   // Get the basic block's function.
658   MachineFunction &MF = *MBB.getParent();
659   // Get the frame info.
660   MachineFrameInfo &MFI = MF.getFrameInfo();
661   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
662   // Get the instruction info.
663   const TargetInstrInfo &TII = *Subtarget.getInstrInfo();
664 
665   unsigned maxCallFrameSize = MFI.getMaxCallFrameSize();
666   bool is64Bit = TM.isPPC64();
667   DebugLoc dl = MI.getDebugLoc();
668   BuildMI(MBB, II, dl, TII.get(is64Bit ? PPC::LI8 : PPC::LI),
669           MI.getOperand(0).getReg())
670       .addImm(maxCallFrameSize);
671   MBB.erase(II);
672 }
673 
674 /// lowerCRSpilling - Generate the code for spilling a CR register. Instead of
675 /// reserving a whole register (R0), we scrounge for one here. This generates
676 /// code like this:
677 ///
678 ///   mfcr rA                  ; Move the conditional register into GPR rA.
679 ///   rlwinm rA, rA, SB, 0, 31 ; Shift the bits left so they are in CR0's slot.
680 ///   stw rA, FI               ; Store rA to the frame.
681 ///
682 void PPCRegisterInfo::lowerCRSpilling(MachineBasicBlock::iterator II,
683                                       unsigned FrameIndex) const {
684   // Get the instruction.
685   MachineInstr &MI = *II;       // ; SPILL_CR <SrcReg>, <offset>
686   // Get the instruction's basic block.
687   MachineBasicBlock &MBB = *MI.getParent();
688   MachineFunction &MF = *MBB.getParent();
689   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
690   const TargetInstrInfo &TII = *Subtarget.getInstrInfo();
691   DebugLoc dl = MI.getDebugLoc();
692 
693   bool LP64 = TM.isPPC64();
694   const TargetRegisterClass *G8RC = &PPC::G8RCRegClass;
695   const TargetRegisterClass *GPRC = &PPC::GPRCRegClass;
696 
697   Register Reg = MF.getRegInfo().createVirtualRegister(LP64 ? G8RC : GPRC);
698   Register SrcReg = MI.getOperand(0).getReg();
699 
700   // We need to store the CR in the low 4-bits of the saved value. First, issue
701   // an MFOCRF to save all of the CRBits and, if needed, kill the SrcReg.
702   BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::MFOCRF8 : PPC::MFOCRF), Reg)
703       .addReg(SrcReg, getKillRegState(MI.getOperand(0).isKill()));
704 
705   // If the saved register wasn't CR0, shift the bits left so that they are in
706   // CR0's slot.
707   if (SrcReg != PPC::CR0) {
708     Register Reg1 = Reg;
709     Reg = MF.getRegInfo().createVirtualRegister(LP64 ? G8RC : GPRC);
710 
711     // rlwinm rA, rA, ShiftBits, 0, 31.
712     BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::RLWINM8 : PPC::RLWINM), Reg)
713       .addReg(Reg1, RegState::Kill)
714       .addImm(getEncodingValue(SrcReg) * 4)
715       .addImm(0)
716       .addImm(31);
717   }
718 
719   addFrameReference(BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::STW8 : PPC::STW))
720                     .addReg(Reg, RegState::Kill),
721                     FrameIndex);
722 
723   // Discard the pseudo instruction.
724   MBB.erase(II);
725 }
726 
727 void PPCRegisterInfo::lowerCRRestore(MachineBasicBlock::iterator II,
728                                       unsigned FrameIndex) const {
729   // Get the instruction.
730   MachineInstr &MI = *II;       // ; <DestReg> = RESTORE_CR <offset>
731   // Get the instruction's basic block.
732   MachineBasicBlock &MBB = *MI.getParent();
733   MachineFunction &MF = *MBB.getParent();
734   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
735   const TargetInstrInfo &TII = *Subtarget.getInstrInfo();
736   DebugLoc dl = MI.getDebugLoc();
737 
738   bool LP64 = TM.isPPC64();
739   const TargetRegisterClass *G8RC = &PPC::G8RCRegClass;
740   const TargetRegisterClass *GPRC = &PPC::GPRCRegClass;
741 
742   Register Reg = MF.getRegInfo().createVirtualRegister(LP64 ? G8RC : GPRC);
743   Register DestReg = MI.getOperand(0).getReg();
744   assert(MI.definesRegister(DestReg) &&
745     "RESTORE_CR does not define its destination");
746 
747   addFrameReference(BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::LWZ8 : PPC::LWZ),
748                               Reg), FrameIndex);
749 
750   // If the reloaded register isn't CR0, shift the bits right so that they are
751   // in the right CR's slot.
752   if (DestReg != PPC::CR0) {
753     Register Reg1 = Reg;
754     Reg = MF.getRegInfo().createVirtualRegister(LP64 ? G8RC : GPRC);
755 
756     unsigned ShiftBits = getEncodingValue(DestReg)*4;
757     // rlwinm r11, r11, 32-ShiftBits, 0, 31.
758     BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::RLWINM8 : PPC::RLWINM), Reg)
759              .addReg(Reg1, RegState::Kill).addImm(32-ShiftBits).addImm(0)
760              .addImm(31);
761   }
762 
763   BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::MTOCRF8 : PPC::MTOCRF), DestReg)
764              .addReg(Reg, RegState::Kill);
765 
766   // Discard the pseudo instruction.
767   MBB.erase(II);
768 }
769 
770 void PPCRegisterInfo::lowerCRBitSpilling(MachineBasicBlock::iterator II,
771                                          unsigned FrameIndex) const {
772   // Get the instruction.
773   MachineInstr &MI = *II;       // ; SPILL_CRBIT <SrcReg>, <offset>
774   // Get the instruction's basic block.
775   MachineBasicBlock &MBB = *MI.getParent();
776   MachineFunction &MF = *MBB.getParent();
777   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
778   const TargetInstrInfo &TII = *Subtarget.getInstrInfo();
779   const TargetRegisterInfo* TRI = Subtarget.getRegisterInfo();
780   DebugLoc dl = MI.getDebugLoc();
781 
782   bool LP64 = TM.isPPC64();
783   const TargetRegisterClass *G8RC = &PPC::G8RCRegClass;
784   const TargetRegisterClass *GPRC = &PPC::GPRCRegClass;
785 
786   Register Reg = MF.getRegInfo().createVirtualRegister(LP64 ? G8RC : GPRC);
787   Register SrcReg = MI.getOperand(0).getReg();
788 
789   // Search up the BB to find the definition of the CR bit.
790   MachineBasicBlock::reverse_iterator Ins = MI;
791   MachineBasicBlock::reverse_iterator Rend = MBB.rend();
792   ++Ins;
793   unsigned CRBitSpillDistance = 0;
794   bool SeenUse = false;
795   for (; Ins != Rend; ++Ins) {
796     // Definition found.
797     if (Ins->modifiesRegister(SrcReg, TRI))
798       break;
799     // Use found.
800     if (Ins->readsRegister(SrcReg, TRI))
801       SeenUse = true;
802     // Unable to find CR bit definition within maximum search distance.
803     if (CRBitSpillDistance == MaxCRBitSpillDist) {
804       Ins = MI;
805       break;
806     }
807     // Skip debug instructions when counting CR bit spill distance.
808     if (!Ins->isDebugInstr())
809       CRBitSpillDistance++;
810   }
811 
812   // Unable to find the definition of the CR bit in the MBB.
813   if (Ins == MBB.rend())
814     Ins = MI;
815 
816   bool SpillsKnownBit = false;
817   // There is no need to extract the CR bit if its value is already known.
818   switch (Ins->getOpcode()) {
819   case PPC::CRUNSET:
820     BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::LI8 : PPC::LI), Reg)
821       .addImm(0);
822     SpillsKnownBit = true;
823     break;
824   case PPC::CRSET:
825     BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::LIS8 : PPC::LIS), Reg)
826       .addImm(-32768);
827     SpillsKnownBit = true;
828     break;
829   default:
830     // On Power10, we can use SETNBC to spill all CR bits. SETNBC will set all
831     // bits (specifically, it produces a -1 if the CR bit is set). Ultimately,
832     // the bit that is of importance to us is bit 32 (bit 0 of a 32-bit
833     // register), and SETNBC will set this.
834     if (Subtarget.isISA3_1()) {
835       BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::SETNBC8 : PPC::SETNBC), Reg)
836           .addReg(SrcReg, RegState::Undef);
837       break;
838     }
839 
840     // On Power9, we can use SETB to extract the LT bit. This only works for
841     // the LT bit since SETB produces -1/1/0 for LT/GT/<neither>. So the value
842     // of the bit we care about (32-bit sign bit) will be set to the value of
843     // the LT bit (regardless of the other bits in the CR field).
844     if (Subtarget.isISA3_0()) {
845       if (SrcReg == PPC::CR0LT || SrcReg == PPC::CR1LT ||
846           SrcReg == PPC::CR2LT || SrcReg == PPC::CR3LT ||
847           SrcReg == PPC::CR4LT || SrcReg == PPC::CR5LT ||
848           SrcReg == PPC::CR6LT || SrcReg == PPC::CR7LT) {
849         BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::SETB8 : PPC::SETB), Reg)
850           .addReg(getCRFromCRBit(SrcReg), RegState::Undef);
851         break;
852       }
853     }
854 
855     // We need to move the CR field that contains the CR bit we are spilling.
856     // The super register may not be explicitly defined (i.e. it can be defined
857     // by a CR-logical that only defines the subreg) so we state that the CR
858     // field is undef. Also, in order to preserve the kill flag on the CR bit,
859     // we add it as an implicit use.
860     BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::MFOCRF8 : PPC::MFOCRF), Reg)
861       .addReg(getCRFromCRBit(SrcReg), RegState::Undef)
862       .addReg(SrcReg,
863               RegState::Implicit | getKillRegState(MI.getOperand(0).isKill()));
864 
865     // If the saved register wasn't CR0LT, shift the bits left so that the bit
866     // to store is the first one. Mask all but that bit.
867     Register Reg1 = Reg;
868     Reg = MF.getRegInfo().createVirtualRegister(LP64 ? G8RC : GPRC);
869 
870     // rlwinm rA, rA, ShiftBits, 0, 0.
871     BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::RLWINM8 : PPC::RLWINM), Reg)
872       .addReg(Reg1, RegState::Kill)
873       .addImm(getEncodingValue(SrcReg))
874       .addImm(0).addImm(0);
875   }
876   addFrameReference(BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::STW8 : PPC::STW))
877                     .addReg(Reg, RegState::Kill),
878                     FrameIndex);
879 
880   bool KillsCRBit = MI.killsRegister(SrcReg, TRI);
881   // Discard the pseudo instruction.
882   MBB.erase(II);
883   if (SpillsKnownBit && KillsCRBit && !SeenUse) {
884     Ins->setDesc(TII.get(PPC::UNENCODED_NOP));
885     Ins->RemoveOperand(0);
886   }
887 }
888 
889 void PPCRegisterInfo::lowerCRBitRestore(MachineBasicBlock::iterator II,
890                                       unsigned FrameIndex) const {
891   // Get the instruction.
892   MachineInstr &MI = *II;       // ; <DestReg> = RESTORE_CRBIT <offset>
893   // Get the instruction's basic block.
894   MachineBasicBlock &MBB = *MI.getParent();
895   MachineFunction &MF = *MBB.getParent();
896   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
897   const TargetInstrInfo &TII = *Subtarget.getInstrInfo();
898   DebugLoc dl = MI.getDebugLoc();
899 
900   bool LP64 = TM.isPPC64();
901   const TargetRegisterClass *G8RC = &PPC::G8RCRegClass;
902   const TargetRegisterClass *GPRC = &PPC::GPRCRegClass;
903 
904   Register Reg = MF.getRegInfo().createVirtualRegister(LP64 ? G8RC : GPRC);
905   Register DestReg = MI.getOperand(0).getReg();
906   assert(MI.definesRegister(DestReg) &&
907     "RESTORE_CRBIT does not define its destination");
908 
909   addFrameReference(BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::LWZ8 : PPC::LWZ),
910                               Reg), FrameIndex);
911 
912   BuildMI(MBB, II, dl, TII.get(TargetOpcode::IMPLICIT_DEF), DestReg);
913 
914   Register RegO = MF.getRegInfo().createVirtualRegister(LP64 ? G8RC : GPRC);
915   BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::MFOCRF8 : PPC::MFOCRF), RegO)
916           .addReg(getCRFromCRBit(DestReg));
917 
918   unsigned ShiftBits = getEncodingValue(DestReg);
919   // rlwimi r11, r10, 32-ShiftBits, ..., ...
920   BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::RLWIMI8 : PPC::RLWIMI), RegO)
921       .addReg(RegO, RegState::Kill)
922       .addReg(Reg, RegState::Kill)
923       .addImm(ShiftBits ? 32 - ShiftBits : 0)
924       .addImm(ShiftBits)
925       .addImm(ShiftBits);
926 
927   BuildMI(MBB, II, dl, TII.get(LP64 ? PPC::MTOCRF8 : PPC::MTOCRF),
928           getCRFromCRBit(DestReg))
929       .addReg(RegO, RegState::Kill)
930       // Make sure we have a use dependency all the way through this
931       // sequence of instructions. We can't have the other bits in the CR
932       // modified in between the mfocrf and the mtocrf.
933       .addReg(getCRFromCRBit(DestReg), RegState::Implicit);
934 
935   // Discard the pseudo instruction.
936   MBB.erase(II);
937 }
938 
939 bool PPCRegisterInfo::hasReservedSpillSlot(const MachineFunction &MF,
940                                            Register Reg, int &FrameIdx) const {
941   // For the nonvolatile condition registers (CR2, CR3, CR4) return true to
942   // prevent allocating an additional frame slot.
943   // For 64-bit ELF and AIX, the CR save area is in the linkage area at SP+8,
944   // for 32-bit AIX the CR save area is in the linkage area at SP+4.
945   // We have created a FrameIndex to that spill slot to keep the CalleSaveInfos
946   // valid.
947   // For 32-bit ELF, we have previously created the stack slot if needed, so
948   // return its FrameIdx.
949   if (PPC::CR2 <= Reg && Reg <= PPC::CR4) {
950     FrameIdx = MF.getInfo<PPCFunctionInfo>()->getCRSpillFrameIndex();
951     return true;
952   }
953   return false;
954 }
955 
956 // If the offset must be a multiple of some value, return what that value is.
957 static unsigned offsetMinAlignForOpcode(unsigned OpC) {
958   switch (OpC) {
959   default:
960     return 1;
961   case PPC::LWA:
962   case PPC::LWA_32:
963   case PPC::LD:
964   case PPC::LDU:
965   case PPC::STD:
966   case PPC::STDU:
967   case PPC::DFLOADf32:
968   case PPC::DFLOADf64:
969   case PPC::DFSTOREf32:
970   case PPC::DFSTOREf64:
971   case PPC::LXSD:
972   case PPC::LXSSP:
973   case PPC::STXSD:
974   case PPC::STXSSP:
975     return 4;
976   case PPC::EVLDD:
977   case PPC::EVSTDD:
978     return 8;
979   case PPC::LXV:
980   case PPC::STXV:
981     return 16;
982   }
983 }
984 
985 // If the offset must be a multiple of some value, return what that value is.
986 static unsigned offsetMinAlign(const MachineInstr &MI) {
987   unsigned OpC = MI.getOpcode();
988   return offsetMinAlignForOpcode(OpC);
989 }
990 
991 // Return the OffsetOperandNo given the FIOperandNum (and the instruction).
992 static unsigned getOffsetONFromFION(const MachineInstr &MI,
993                                     unsigned FIOperandNum) {
994   // Take into account whether it's an add or mem instruction
995   unsigned OffsetOperandNo = (FIOperandNum == 2) ? 1 : 2;
996   if (MI.isInlineAsm())
997     OffsetOperandNo = FIOperandNum - 1;
998   else if (MI.getOpcode() == TargetOpcode::STACKMAP ||
999            MI.getOpcode() == TargetOpcode::PATCHPOINT)
1000     OffsetOperandNo = FIOperandNum + 1;
1001 
1002   return OffsetOperandNo;
1003 }
1004 
1005 void
1006 PPCRegisterInfo::eliminateFrameIndex(MachineBasicBlock::iterator II,
1007                                      int SPAdj, unsigned FIOperandNum,
1008                                      RegScavenger *RS) const {
1009   assert(SPAdj == 0 && "Unexpected");
1010 
1011   // Get the instruction.
1012   MachineInstr &MI = *II;
1013   // Get the instruction's basic block.
1014   MachineBasicBlock &MBB = *MI.getParent();
1015   // Get the basic block's function.
1016   MachineFunction &MF = *MBB.getParent();
1017   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
1018   // Get the instruction info.
1019   const TargetInstrInfo &TII = *Subtarget.getInstrInfo();
1020   // Get the frame info.
1021   MachineFrameInfo &MFI = MF.getFrameInfo();
1022   DebugLoc dl = MI.getDebugLoc();
1023 
1024   unsigned OffsetOperandNo = getOffsetONFromFION(MI, FIOperandNum);
1025 
1026   // Get the frame index.
1027   int FrameIndex = MI.getOperand(FIOperandNum).getIndex();
1028 
1029   // Get the frame pointer save index.  Users of this index are primarily
1030   // DYNALLOC instructions.
1031   PPCFunctionInfo *FI = MF.getInfo<PPCFunctionInfo>();
1032   int FPSI = FI->getFramePointerSaveIndex();
1033   // Get the instruction opcode.
1034   unsigned OpC = MI.getOpcode();
1035 
1036   if ((OpC == PPC::DYNAREAOFFSET || OpC == PPC::DYNAREAOFFSET8)) {
1037     lowerDynamicAreaOffset(II);
1038     return;
1039   }
1040 
1041   // Special case for dynamic alloca.
1042   if (FPSI && FrameIndex == FPSI &&
1043       (OpC == PPC::DYNALLOC || OpC == PPC::DYNALLOC8)) {
1044     lowerDynamicAlloc(II);
1045     return;
1046   }
1047 
1048   if (FPSI && FrameIndex == FPSI &&
1049       (OpC == PPC::PREPARE_PROBED_ALLOCA_64 ||
1050        OpC == PPC::PREPARE_PROBED_ALLOCA_32 ||
1051        OpC == PPC::PREPARE_PROBED_ALLOCA_NEGSIZE_SAME_REG_64 ||
1052        OpC == PPC::PREPARE_PROBED_ALLOCA_NEGSIZE_SAME_REG_32)) {
1053     lowerPrepareProbedAlloca(II);
1054     return;
1055   }
1056 
1057   // Special case for pseudo-ops SPILL_CR and RESTORE_CR, etc.
1058   if (OpC == PPC::SPILL_CR) {
1059     lowerCRSpilling(II, FrameIndex);
1060     return;
1061   } else if (OpC == PPC::RESTORE_CR) {
1062     lowerCRRestore(II, FrameIndex);
1063     return;
1064   } else if (OpC == PPC::SPILL_CRBIT) {
1065     lowerCRBitSpilling(II, FrameIndex);
1066     return;
1067   } else if (OpC == PPC::RESTORE_CRBIT) {
1068     lowerCRBitRestore(II, FrameIndex);
1069     return;
1070   }
1071 
1072   // Replace the FrameIndex with base register with GPR1 (SP) or GPR31 (FP).
1073   MI.getOperand(FIOperandNum).ChangeToRegister(
1074     FrameIndex < 0 ? getBaseRegister(MF) : getFrameRegister(MF), false);
1075 
1076   // If the instruction is not present in ImmToIdxMap, then it has no immediate
1077   // form (and must be r+r).
1078   bool noImmForm = !MI.isInlineAsm() && OpC != TargetOpcode::STACKMAP &&
1079                    OpC != TargetOpcode::PATCHPOINT && !ImmToIdxMap.count(OpC);
1080 
1081   // Now add the frame object offset to the offset from r1.
1082   int Offset = MFI.getObjectOffset(FrameIndex);
1083   Offset += MI.getOperand(OffsetOperandNo).getImm();
1084 
1085   // If we're not using a Frame Pointer that has been set to the value of the
1086   // SP before having the stack size subtracted from it, then add the stack size
1087   // to Offset to get the correct offset.
1088   // Naked functions have stack size 0, although getStackSize may not reflect
1089   // that because we didn't call all the pieces that compute it for naked
1090   // functions.
1091   if (!MF.getFunction().hasFnAttribute(Attribute::Naked)) {
1092     if (!(hasBasePointer(MF) && FrameIndex < 0))
1093       Offset += MFI.getStackSize();
1094   }
1095 
1096   // If we can, encode the offset directly into the instruction.  If this is a
1097   // normal PPC "ri" instruction, any 16-bit value can be safely encoded.  If
1098   // this is a PPC64 "ix" instruction, only a 16-bit value with the low two bits
1099   // clear can be encoded.  This is extremely uncommon, because normally you
1100   // only "std" to a stack slot that is at least 4-byte aligned, but it can
1101   // happen in invalid code.
1102   assert(OpC != PPC::DBG_VALUE &&
1103          "This should be handled in a target-independent way");
1104   bool OffsetFitsMnemonic = (OpC == PPC::EVSTDD || OpC == PPC::EVLDD) ?
1105                             isUInt<8>(Offset) :
1106                             isInt<16>(Offset);
1107   if (!noImmForm && ((OffsetFitsMnemonic &&
1108                       ((Offset % offsetMinAlign(MI)) == 0)) ||
1109                      OpC == TargetOpcode::STACKMAP ||
1110                      OpC == TargetOpcode::PATCHPOINT)) {
1111     MI.getOperand(OffsetOperandNo).ChangeToImmediate(Offset);
1112     return;
1113   }
1114 
1115   // The offset doesn't fit into a single register, scavenge one to build the
1116   // offset in.
1117 
1118   bool is64Bit = TM.isPPC64();
1119   const TargetRegisterClass *G8RC = &PPC::G8RCRegClass;
1120   const TargetRegisterClass *GPRC = &PPC::GPRCRegClass;
1121   const TargetRegisterClass *RC = is64Bit ? G8RC : GPRC;
1122   Register SRegHi = MF.getRegInfo().createVirtualRegister(RC),
1123            SReg = MF.getRegInfo().createVirtualRegister(RC);
1124 
1125   // Insert a set of rA with the full offset value before the ld, st, or add
1126   if (isInt<16>(Offset))
1127     BuildMI(MBB, II, dl, TII.get(is64Bit ? PPC::LI8 : PPC::LI), SReg)
1128       .addImm(Offset);
1129   else {
1130     BuildMI(MBB, II, dl, TII.get(is64Bit ? PPC::LIS8 : PPC::LIS), SRegHi)
1131       .addImm(Offset >> 16);
1132     BuildMI(MBB, II, dl, TII.get(is64Bit ? PPC::ORI8 : PPC::ORI), SReg)
1133       .addReg(SRegHi, RegState::Kill)
1134       .addImm(Offset);
1135   }
1136 
1137   // Convert into indexed form of the instruction:
1138   //
1139   //   sth 0:rA, 1:imm 2:(rB) ==> sthx 0:rA, 2:rB, 1:r0
1140   //   addi 0:rA 1:rB, 2, imm ==> add 0:rA, 1:rB, 2:r0
1141   unsigned OperandBase;
1142 
1143   if (noImmForm)
1144     OperandBase = 1;
1145   else if (OpC != TargetOpcode::INLINEASM &&
1146            OpC != TargetOpcode::INLINEASM_BR) {
1147     assert(ImmToIdxMap.count(OpC) &&
1148            "No indexed form of load or store available!");
1149     unsigned NewOpcode = ImmToIdxMap.find(OpC)->second;
1150     MI.setDesc(TII.get(NewOpcode));
1151     OperandBase = 1;
1152   } else {
1153     OperandBase = OffsetOperandNo;
1154   }
1155 
1156   Register StackReg = MI.getOperand(FIOperandNum).getReg();
1157   MI.getOperand(OperandBase).ChangeToRegister(StackReg, false);
1158   MI.getOperand(OperandBase + 1).ChangeToRegister(SReg, false, false, true);
1159 }
1160 
1161 Register PPCRegisterInfo::getFrameRegister(const MachineFunction &MF) const {
1162   const PPCFrameLowering *TFI = getFrameLowering(MF);
1163 
1164   if (!TM.isPPC64())
1165     return TFI->hasFP(MF) ? PPC::R31 : PPC::R1;
1166   else
1167     return TFI->hasFP(MF) ? PPC::X31 : PPC::X1;
1168 }
1169 
1170 Register PPCRegisterInfo::getBaseRegister(const MachineFunction &MF) const {
1171   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
1172   if (!hasBasePointer(MF))
1173     return getFrameRegister(MF);
1174 
1175   if (TM.isPPC64())
1176     return PPC::X30;
1177 
1178   if (Subtarget.isSVR4ABI() && TM.isPositionIndependent())
1179     return PPC::R29;
1180 
1181   return PPC::R30;
1182 }
1183 
1184 bool PPCRegisterInfo::hasBasePointer(const MachineFunction &MF) const {
1185   if (!EnableBasePointer)
1186     return false;
1187   if (AlwaysBasePointer)
1188     return true;
1189 
1190   // If we need to realign the stack, then the stack pointer can no longer
1191   // serve as an offset into the caller's stack space. As a result, we need a
1192   // base pointer.
1193   return needsStackRealignment(MF);
1194 }
1195 
1196 /// Returns true if the instruction's frame index
1197 /// reference would be better served by a base register other than FP
1198 /// or SP. Used by LocalStackFrameAllocation to determine which frame index
1199 /// references it should create new base registers for.
1200 bool PPCRegisterInfo::
1201 needsFrameBaseReg(MachineInstr *MI, int64_t Offset) const {
1202   assert(Offset < 0 && "Local offset must be negative");
1203 
1204   // It's the load/store FI references that cause issues, as it can be difficult
1205   // to materialize the offset if it won't fit in the literal field. Estimate
1206   // based on the size of the local frame and some conservative assumptions
1207   // about the rest of the stack frame (note, this is pre-regalloc, so
1208   // we don't know everything for certain yet) whether this offset is likely
1209   // to be out of range of the immediate. Return true if so.
1210 
1211   // We only generate virtual base registers for loads and stores that have
1212   // an r+i form. Return false for everything else.
1213   unsigned OpC = MI->getOpcode();
1214   if (!ImmToIdxMap.count(OpC))
1215     return false;
1216 
1217   // Don't generate a new virtual base register just to add zero to it.
1218   if ((OpC == PPC::ADDI || OpC == PPC::ADDI8) &&
1219       MI->getOperand(2).getImm() == 0)
1220     return false;
1221 
1222   MachineBasicBlock &MBB = *MI->getParent();
1223   MachineFunction &MF = *MBB.getParent();
1224   const PPCFrameLowering *TFI = getFrameLowering(MF);
1225   unsigned StackEst = TFI->determineFrameLayout(MF, true);
1226 
1227   // If we likely don't need a stack frame, then we probably don't need a
1228   // virtual base register either.
1229   if (!StackEst)
1230     return false;
1231 
1232   // Estimate an offset from the stack pointer.
1233   // The incoming offset is relating to the SP at the start of the function,
1234   // but when we access the local it'll be relative to the SP after local
1235   // allocation, so adjust our SP-relative offset by that allocation size.
1236   Offset += StackEst;
1237 
1238   // The frame pointer will point to the end of the stack, so estimate the
1239   // offset as the difference between the object offset and the FP location.
1240   return !isFrameOffsetLegal(MI, getBaseRegister(MF), Offset);
1241 }
1242 
1243 /// Insert defining instruction(s) for BaseReg to
1244 /// be a pointer to FrameIdx at the beginning of the basic block.
1245 void PPCRegisterInfo::materializeFrameBaseRegister(MachineBasicBlock *MBB,
1246                                                    Register BaseReg,
1247                                                    int FrameIdx,
1248                                                    int64_t Offset) const {
1249   unsigned ADDriOpc = TM.isPPC64() ? PPC::ADDI8 : PPC::ADDI;
1250 
1251   MachineBasicBlock::iterator Ins = MBB->begin();
1252   DebugLoc DL;                  // Defaults to "unknown"
1253   if (Ins != MBB->end())
1254     DL = Ins->getDebugLoc();
1255 
1256   const MachineFunction &MF = *MBB->getParent();
1257   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
1258   const TargetInstrInfo &TII = *Subtarget.getInstrInfo();
1259   const MCInstrDesc &MCID = TII.get(ADDriOpc);
1260   MachineRegisterInfo &MRI = MBB->getParent()->getRegInfo();
1261   MRI.constrainRegClass(BaseReg, TII.getRegClass(MCID, 0, this, MF));
1262 
1263   BuildMI(*MBB, Ins, DL, MCID, BaseReg)
1264     .addFrameIndex(FrameIdx).addImm(Offset);
1265 }
1266 
1267 void PPCRegisterInfo::resolveFrameIndex(MachineInstr &MI, Register BaseReg,
1268                                         int64_t Offset) const {
1269   unsigned FIOperandNum = 0;
1270   while (!MI.getOperand(FIOperandNum).isFI()) {
1271     ++FIOperandNum;
1272     assert(FIOperandNum < MI.getNumOperands() &&
1273            "Instr doesn't have FrameIndex operand!");
1274   }
1275 
1276   MI.getOperand(FIOperandNum).ChangeToRegister(BaseReg, false);
1277   unsigned OffsetOperandNo = getOffsetONFromFION(MI, FIOperandNum);
1278   Offset += MI.getOperand(OffsetOperandNo).getImm();
1279   MI.getOperand(OffsetOperandNo).ChangeToImmediate(Offset);
1280 
1281   MachineBasicBlock &MBB = *MI.getParent();
1282   MachineFunction &MF = *MBB.getParent();
1283   const PPCSubtarget &Subtarget = MF.getSubtarget<PPCSubtarget>();
1284   const TargetInstrInfo &TII = *Subtarget.getInstrInfo();
1285   const MCInstrDesc &MCID = MI.getDesc();
1286   MachineRegisterInfo &MRI = MF.getRegInfo();
1287   MRI.constrainRegClass(BaseReg,
1288                         TII.getRegClass(MCID, FIOperandNum, this, MF));
1289 }
1290 
1291 bool PPCRegisterInfo::isFrameOffsetLegal(const MachineInstr *MI,
1292                                          Register BaseReg,
1293                                          int64_t Offset) const {
1294   unsigned FIOperandNum = 0;
1295   while (!MI->getOperand(FIOperandNum).isFI()) {
1296     ++FIOperandNum;
1297     assert(FIOperandNum < MI->getNumOperands() &&
1298            "Instr doesn't have FrameIndex operand!");
1299   }
1300 
1301   unsigned OffsetOperandNo = getOffsetONFromFION(*MI, FIOperandNum);
1302   Offset += MI->getOperand(OffsetOperandNo).getImm();
1303 
1304   return MI->getOpcode() == PPC::DBG_VALUE || // DBG_VALUE is always Reg+Imm
1305          MI->getOpcode() == TargetOpcode::STACKMAP ||
1306          MI->getOpcode() == TargetOpcode::PATCHPOINT ||
1307          (isInt<16>(Offset) && (Offset % offsetMinAlign(*MI)) == 0);
1308 }
1309