1 //===-- PPCISelLowering.cpp - PPC DAG Lowering 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 implements the PPCISelLowering class.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "PPCISelLowering.h"
15 #include "MCTargetDesc/PPCPredicates.h"
16 #include "PPCCallingConv.h"
17 #include "PPCMachineFunctionInfo.h"
18 #include "PPCPerfectShuffle.h"
19 #include "PPCTargetMachine.h"
20 #include "PPCTargetObjectFile.h"
21 #include "llvm/ADT/STLExtras.h"
22 #include "llvm/ADT/StringSwitch.h"
23 #include "llvm/ADT/Triple.h"
24 #include "llvm/CodeGen/CallingConvLower.h"
25 #include "llvm/CodeGen/MachineFrameInfo.h"
26 #include "llvm/CodeGen/MachineFunction.h"
27 #include "llvm/CodeGen/MachineInstrBuilder.h"
28 #include "llvm/CodeGen/MachineLoopInfo.h"
29 #include "llvm/CodeGen/MachineRegisterInfo.h"
30 #include "llvm/CodeGen/SelectionDAG.h"
31 #include "llvm/CodeGen/TargetLoweringObjectFileImpl.h"
32 #include "llvm/IR/CallingConv.h"
33 #include "llvm/IR/Constants.h"
34 #include "llvm/IR/DerivedTypes.h"
35 #include "llvm/IR/Function.h"
36 #include "llvm/IR/Intrinsics.h"
37 #include "llvm/Support/CommandLine.h"
38 #include "llvm/Support/ErrorHandling.h"
39 #include "llvm/Support/MathExtras.h"
40 #include "llvm/Support/raw_ostream.h"
41 #include "llvm/Target/TargetOptions.h"
42 
43 using namespace llvm;
44 
45 static cl::opt<bool> DisablePPCPreinc("disable-ppc-preinc",
46 cl::desc("disable preincrement load/store generation on PPC"), cl::Hidden);
47 
48 static cl::opt<bool> DisableILPPref("disable-ppc-ilp-pref",
49 cl::desc("disable setting the node scheduling preference to ILP on PPC"), cl::Hidden);
50 
51 static cl::opt<bool> DisablePPCUnaligned("disable-ppc-unaligned",
52 cl::desc("disable unaligned load/store generation on PPC"), cl::Hidden);
53 
54 // FIXME: Remove this once the bug has been fixed!
55 extern cl::opt<bool> ANDIGlueBug;
56 
57 PPCTargetLowering::PPCTargetLowering(const PPCTargetMachine &TM,
58                                      const PPCSubtarget &STI)
59     : TargetLowering(TM), Subtarget(STI) {
60   // Use _setjmp/_longjmp instead of setjmp/longjmp.
61   setUseUnderscoreSetJmp(true);
62   setUseUnderscoreLongJmp(true);
63 
64   // On PPC32/64, arguments smaller than 4/8 bytes are extended, so all
65   // arguments are at least 4/8 bytes aligned.
66   bool isPPC64 = Subtarget.isPPC64();
67   setMinStackArgumentAlignment(isPPC64 ? 8:4);
68 
69   // Set up the register classes.
70   addRegisterClass(MVT::i32, &PPC::GPRCRegClass);
71   if (!Subtarget.useSoftFloat()) {
72     addRegisterClass(MVT::f32, &PPC::F4RCRegClass);
73     addRegisterClass(MVT::f64, &PPC::F8RCRegClass);
74   }
75 
76   // PowerPC has an i16 but no i8 (or i1) SEXTLOAD
77   for (MVT VT : MVT::integer_valuetypes()) {
78     setLoadExtAction(ISD::SEXTLOAD, VT, MVT::i1, Promote);
79     setLoadExtAction(ISD::SEXTLOAD, VT, MVT::i8, Expand);
80   }
81 
82   setTruncStoreAction(MVT::f64, MVT::f32, Expand);
83 
84   // PowerPC has pre-inc load and store's.
85   setIndexedLoadAction(ISD::PRE_INC, MVT::i1, Legal);
86   setIndexedLoadAction(ISD::PRE_INC, MVT::i8, Legal);
87   setIndexedLoadAction(ISD::PRE_INC, MVT::i16, Legal);
88   setIndexedLoadAction(ISD::PRE_INC, MVT::i32, Legal);
89   setIndexedLoadAction(ISD::PRE_INC, MVT::i64, Legal);
90   setIndexedLoadAction(ISD::PRE_INC, MVT::f32, Legal);
91   setIndexedLoadAction(ISD::PRE_INC, MVT::f64, Legal);
92   setIndexedStoreAction(ISD::PRE_INC, MVT::i1, Legal);
93   setIndexedStoreAction(ISD::PRE_INC, MVT::i8, Legal);
94   setIndexedStoreAction(ISD::PRE_INC, MVT::i16, Legal);
95   setIndexedStoreAction(ISD::PRE_INC, MVT::i32, Legal);
96   setIndexedStoreAction(ISD::PRE_INC, MVT::i64, Legal);
97   setIndexedStoreAction(ISD::PRE_INC, MVT::f32, Legal);
98   setIndexedStoreAction(ISD::PRE_INC, MVT::f64, Legal);
99 
100   if (Subtarget.useCRBits()) {
101     setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::i1, Expand);
102 
103     if (isPPC64 || Subtarget.hasFPCVT()) {
104       setOperationAction(ISD::SINT_TO_FP, MVT::i1, Promote);
105       AddPromotedToType (ISD::SINT_TO_FP, MVT::i1,
106                          isPPC64 ? MVT::i64 : MVT::i32);
107       setOperationAction(ISD::UINT_TO_FP, MVT::i1, Promote);
108       AddPromotedToType(ISD::UINT_TO_FP, MVT::i1,
109                         isPPC64 ? MVT::i64 : MVT::i32);
110     } else {
111       setOperationAction(ISD::SINT_TO_FP, MVT::i1, Custom);
112       setOperationAction(ISD::UINT_TO_FP, MVT::i1, Custom);
113     }
114 
115     // PowerPC does not support direct load / store of condition registers
116     setOperationAction(ISD::LOAD, MVT::i1, Custom);
117     setOperationAction(ISD::STORE, MVT::i1, Custom);
118 
119     // FIXME: Remove this once the ANDI glue bug is fixed:
120     if (ANDIGlueBug)
121       setOperationAction(ISD::TRUNCATE, MVT::i1, Custom);
122 
123     for (MVT VT : MVT::integer_valuetypes()) {
124       setLoadExtAction(ISD::SEXTLOAD, VT, MVT::i1, Promote);
125       setLoadExtAction(ISD::ZEXTLOAD, VT, MVT::i1, Promote);
126       setTruncStoreAction(VT, MVT::i1, Expand);
127     }
128 
129     addRegisterClass(MVT::i1, &PPC::CRBITRCRegClass);
130   }
131 
132   // This is used in the ppcf128->int sequence.  Note it has different semantics
133   // from FP_ROUND:  that rounds to nearest, this rounds to zero.
134   setOperationAction(ISD::FP_ROUND_INREG, MVT::ppcf128, Custom);
135 
136   // We do not currently implement these libm ops for PowerPC.
137   setOperationAction(ISD::FFLOOR, MVT::ppcf128, Expand);
138   setOperationAction(ISD::FCEIL,  MVT::ppcf128, Expand);
139   setOperationAction(ISD::FTRUNC, MVT::ppcf128, Expand);
140   setOperationAction(ISD::FRINT,  MVT::ppcf128, Expand);
141   setOperationAction(ISD::FNEARBYINT, MVT::ppcf128, Expand);
142   setOperationAction(ISD::FREM, MVT::ppcf128, Expand);
143 
144   // PowerPC has no SREM/UREM instructions
145   setOperationAction(ISD::SREM, MVT::i32, Expand);
146   setOperationAction(ISD::UREM, MVT::i32, Expand);
147   setOperationAction(ISD::SREM, MVT::i64, Expand);
148   setOperationAction(ISD::UREM, MVT::i64, Expand);
149 
150   // Don't use SMUL_LOHI/UMUL_LOHI or SDIVREM/UDIVREM to lower SREM/UREM.
151   setOperationAction(ISD::UMUL_LOHI, MVT::i32, Expand);
152   setOperationAction(ISD::SMUL_LOHI, MVT::i32, Expand);
153   setOperationAction(ISD::UMUL_LOHI, MVT::i64, Expand);
154   setOperationAction(ISD::SMUL_LOHI, MVT::i64, Expand);
155   setOperationAction(ISD::UDIVREM, MVT::i32, Expand);
156   setOperationAction(ISD::SDIVREM, MVT::i32, Expand);
157   setOperationAction(ISD::UDIVREM, MVT::i64, Expand);
158   setOperationAction(ISD::SDIVREM, MVT::i64, Expand);
159 
160   // We don't support sin/cos/sqrt/fmod/pow
161   setOperationAction(ISD::FSIN , MVT::f64, Expand);
162   setOperationAction(ISD::FCOS , MVT::f64, Expand);
163   setOperationAction(ISD::FSINCOS, MVT::f64, Expand);
164   setOperationAction(ISD::FREM , MVT::f64, Expand);
165   setOperationAction(ISD::FPOW , MVT::f64, Expand);
166   setOperationAction(ISD::FMA  , MVT::f64, Legal);
167   setOperationAction(ISD::FSIN , MVT::f32, Expand);
168   setOperationAction(ISD::FCOS , MVT::f32, Expand);
169   setOperationAction(ISD::FSINCOS, MVT::f32, Expand);
170   setOperationAction(ISD::FREM , MVT::f32, Expand);
171   setOperationAction(ISD::FPOW , MVT::f32, Expand);
172   setOperationAction(ISD::FMA  , MVT::f32, Legal);
173 
174   setOperationAction(ISD::FLT_ROUNDS_, MVT::i32, Custom);
175 
176   // If we're enabling GP optimizations, use hardware square root
177   if (!Subtarget.hasFSQRT() &&
178       !(TM.Options.UnsafeFPMath && Subtarget.hasFRSQRTE() &&
179         Subtarget.hasFRE()))
180     setOperationAction(ISD::FSQRT, MVT::f64, Expand);
181 
182   if (!Subtarget.hasFSQRT() &&
183       !(TM.Options.UnsafeFPMath && Subtarget.hasFRSQRTES() &&
184         Subtarget.hasFRES()))
185     setOperationAction(ISD::FSQRT, MVT::f32, Expand);
186 
187   if (Subtarget.hasFCPSGN()) {
188     setOperationAction(ISD::FCOPYSIGN, MVT::f64, Legal);
189     setOperationAction(ISD::FCOPYSIGN, MVT::f32, Legal);
190   } else {
191     setOperationAction(ISD::FCOPYSIGN, MVT::f64, Expand);
192     setOperationAction(ISD::FCOPYSIGN, MVT::f32, Expand);
193   }
194 
195   if (Subtarget.hasFPRND()) {
196     setOperationAction(ISD::FFLOOR, MVT::f64, Legal);
197     setOperationAction(ISD::FCEIL,  MVT::f64, Legal);
198     setOperationAction(ISD::FTRUNC, MVT::f64, Legal);
199     setOperationAction(ISD::FROUND, MVT::f64, Legal);
200 
201     setOperationAction(ISD::FFLOOR, MVT::f32, Legal);
202     setOperationAction(ISD::FCEIL,  MVT::f32, Legal);
203     setOperationAction(ISD::FTRUNC, MVT::f32, Legal);
204     setOperationAction(ISD::FROUND, MVT::f32, Legal);
205   }
206 
207   // PowerPC does not have BSWAP, CTPOP or CTTZ
208   setOperationAction(ISD::BSWAP, MVT::i32  , Expand);
209   setOperationAction(ISD::CTTZ , MVT::i32  , Expand);
210   setOperationAction(ISD::CTTZ_ZERO_UNDEF, MVT::i32, Expand);
211   setOperationAction(ISD::CTLZ_ZERO_UNDEF, MVT::i32, Expand);
212   setOperationAction(ISD::BSWAP, MVT::i64  , Expand);
213   setOperationAction(ISD::CTTZ , MVT::i64  , Expand);
214   setOperationAction(ISD::CTTZ_ZERO_UNDEF, MVT::i64, Expand);
215   setOperationAction(ISD::CTLZ_ZERO_UNDEF, MVT::i64, Expand);
216 
217   if (Subtarget.hasPOPCNTD()) {
218     setOperationAction(ISD::CTPOP, MVT::i32  , Legal);
219     setOperationAction(ISD::CTPOP, MVT::i64  , Legal);
220   } else {
221     setOperationAction(ISD::CTPOP, MVT::i32  , Expand);
222     setOperationAction(ISD::CTPOP, MVT::i64  , Expand);
223   }
224 
225   // PowerPC does not have ROTR
226   setOperationAction(ISD::ROTR, MVT::i32   , Expand);
227   setOperationAction(ISD::ROTR, MVT::i64   , Expand);
228 
229   if (!Subtarget.useCRBits()) {
230     // PowerPC does not have Select
231     setOperationAction(ISD::SELECT, MVT::i32, Expand);
232     setOperationAction(ISD::SELECT, MVT::i64, Expand);
233     setOperationAction(ISD::SELECT, MVT::f32, Expand);
234     setOperationAction(ISD::SELECT, MVT::f64, Expand);
235   }
236 
237   // PowerPC wants to turn select_cc of FP into fsel when possible.
238   setOperationAction(ISD::SELECT_CC, MVT::f32, Custom);
239   setOperationAction(ISD::SELECT_CC, MVT::f64, Custom);
240 
241   // PowerPC wants to optimize integer setcc a bit
242   if (!Subtarget.useCRBits())
243     setOperationAction(ISD::SETCC, MVT::i32, Custom);
244 
245   // PowerPC does not have BRCOND which requires SetCC
246   if (!Subtarget.useCRBits())
247     setOperationAction(ISD::BRCOND, MVT::Other, Expand);
248 
249   setOperationAction(ISD::BR_JT,  MVT::Other, Expand);
250 
251   // PowerPC turns FP_TO_SINT into FCTIWZ and some load/stores.
252   setOperationAction(ISD::FP_TO_SINT, MVT::i32, Custom);
253 
254   // PowerPC does not have [U|S]INT_TO_FP
255   setOperationAction(ISD::SINT_TO_FP, MVT::i32, Expand);
256   setOperationAction(ISD::UINT_TO_FP, MVT::i32, Expand);
257 
258   if (Subtarget.hasDirectMove() && isPPC64) {
259     setOperationAction(ISD::BITCAST, MVT::f32, Legal);
260     setOperationAction(ISD::BITCAST, MVT::i32, Legal);
261     setOperationAction(ISD::BITCAST, MVT::i64, Legal);
262     setOperationAction(ISD::BITCAST, MVT::f64, Legal);
263   } else {
264     setOperationAction(ISD::BITCAST, MVT::f32, Expand);
265     setOperationAction(ISD::BITCAST, MVT::i32, Expand);
266     setOperationAction(ISD::BITCAST, MVT::i64, Expand);
267     setOperationAction(ISD::BITCAST, MVT::f64, Expand);
268   }
269 
270   // We cannot sextinreg(i1).  Expand to shifts.
271   setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::i1, Expand);
272 
273   // NOTE: EH_SJLJ_SETJMP/_LONGJMP supported here is NOT intended to support
274   // SjLj exception handling but a light-weight setjmp/longjmp replacement to
275   // support continuation, user-level threading, and etc.. As a result, no
276   // other SjLj exception interfaces are implemented and please don't build
277   // your own exception handling based on them.
278   // LLVM/Clang supports zero-cost DWARF exception handling.
279   setOperationAction(ISD::EH_SJLJ_SETJMP, MVT::i32, Custom);
280   setOperationAction(ISD::EH_SJLJ_LONGJMP, MVT::Other, Custom);
281 
282   // We want to legalize GlobalAddress and ConstantPool nodes into the
283   // appropriate instructions to materialize the address.
284   setOperationAction(ISD::GlobalAddress, MVT::i32, Custom);
285   setOperationAction(ISD::GlobalTLSAddress, MVT::i32, Custom);
286   setOperationAction(ISD::BlockAddress,  MVT::i32, Custom);
287   setOperationAction(ISD::ConstantPool,  MVT::i32, Custom);
288   setOperationAction(ISD::JumpTable,     MVT::i32, Custom);
289   setOperationAction(ISD::GlobalAddress, MVT::i64, Custom);
290   setOperationAction(ISD::GlobalTLSAddress, MVT::i64, Custom);
291   setOperationAction(ISD::BlockAddress,  MVT::i64, Custom);
292   setOperationAction(ISD::ConstantPool,  MVT::i64, Custom);
293   setOperationAction(ISD::JumpTable,     MVT::i64, Custom);
294 
295   // TRAP is legal.
296   setOperationAction(ISD::TRAP, MVT::Other, Legal);
297 
298   // TRAMPOLINE is custom lowered.
299   setOperationAction(ISD::INIT_TRAMPOLINE, MVT::Other, Custom);
300   setOperationAction(ISD::ADJUST_TRAMPOLINE, MVT::Other, Custom);
301 
302   // VASTART needs to be custom lowered to use the VarArgsFrameIndex
303   setOperationAction(ISD::VASTART           , MVT::Other, Custom);
304 
305   if (Subtarget.isSVR4ABI()) {
306     if (isPPC64) {
307       // VAARG always uses double-word chunks, so promote anything smaller.
308       setOperationAction(ISD::VAARG, MVT::i1, Promote);
309       AddPromotedToType (ISD::VAARG, MVT::i1, MVT::i64);
310       setOperationAction(ISD::VAARG, MVT::i8, Promote);
311       AddPromotedToType (ISD::VAARG, MVT::i8, MVT::i64);
312       setOperationAction(ISD::VAARG, MVT::i16, Promote);
313       AddPromotedToType (ISD::VAARG, MVT::i16, MVT::i64);
314       setOperationAction(ISD::VAARG, MVT::i32, Promote);
315       AddPromotedToType (ISD::VAARG, MVT::i32, MVT::i64);
316       setOperationAction(ISD::VAARG, MVT::Other, Expand);
317     } else {
318       // VAARG is custom lowered with the 32-bit SVR4 ABI.
319       setOperationAction(ISD::VAARG, MVT::Other, Custom);
320       setOperationAction(ISD::VAARG, MVT::i64, Custom);
321     }
322   } else
323     setOperationAction(ISD::VAARG, MVT::Other, Expand);
324 
325   if (Subtarget.isSVR4ABI() && !isPPC64)
326     // VACOPY is custom lowered with the 32-bit SVR4 ABI.
327     setOperationAction(ISD::VACOPY            , MVT::Other, Custom);
328   else
329     setOperationAction(ISD::VACOPY            , MVT::Other, Expand);
330 
331   // Use the default implementation.
332   setOperationAction(ISD::VAEND             , MVT::Other, Expand);
333   setOperationAction(ISD::STACKSAVE         , MVT::Other, Expand);
334   setOperationAction(ISD::STACKRESTORE      , MVT::Other, Custom);
335   setOperationAction(ISD::DYNAMIC_STACKALLOC, MVT::i32  , Custom);
336   setOperationAction(ISD::DYNAMIC_STACKALLOC, MVT::i64  , Custom);
337   setOperationAction(ISD::GET_DYNAMIC_AREA_OFFSET, MVT::i32, Custom);
338   setOperationAction(ISD::GET_DYNAMIC_AREA_OFFSET, MVT::i64, Custom);
339 
340   // We want to custom lower some of our intrinsics.
341   setOperationAction(ISD::INTRINSIC_WO_CHAIN, MVT::Other, Custom);
342 
343   // To handle counter-based loop conditions.
344   setOperationAction(ISD::INTRINSIC_W_CHAIN, MVT::i1, Custom);
345 
346   // Comparisons that require checking two conditions.
347   setCondCodeAction(ISD::SETULT, MVT::f32, Expand);
348   setCondCodeAction(ISD::SETULT, MVT::f64, Expand);
349   setCondCodeAction(ISD::SETUGT, MVT::f32, Expand);
350   setCondCodeAction(ISD::SETUGT, MVT::f64, Expand);
351   setCondCodeAction(ISD::SETUEQ, MVT::f32, Expand);
352   setCondCodeAction(ISD::SETUEQ, MVT::f64, Expand);
353   setCondCodeAction(ISD::SETOGE, MVT::f32, Expand);
354   setCondCodeAction(ISD::SETOGE, MVT::f64, Expand);
355   setCondCodeAction(ISD::SETOLE, MVT::f32, Expand);
356   setCondCodeAction(ISD::SETOLE, MVT::f64, Expand);
357   setCondCodeAction(ISD::SETONE, MVT::f32, Expand);
358   setCondCodeAction(ISD::SETONE, MVT::f64, Expand);
359 
360   if (Subtarget.has64BitSupport()) {
361     // They also have instructions for converting between i64 and fp.
362     setOperationAction(ISD::FP_TO_SINT, MVT::i64, Custom);
363     setOperationAction(ISD::FP_TO_UINT, MVT::i64, Expand);
364     setOperationAction(ISD::SINT_TO_FP, MVT::i64, Custom);
365     setOperationAction(ISD::UINT_TO_FP, MVT::i64, Expand);
366     // This is just the low 32 bits of a (signed) fp->i64 conversion.
367     // We cannot do this with Promote because i64 is not a legal type.
368     setOperationAction(ISD::FP_TO_UINT, MVT::i32, Custom);
369 
370     if (Subtarget.hasLFIWAX() || Subtarget.isPPC64())
371       setOperationAction(ISD::SINT_TO_FP, MVT::i32, Custom);
372   } else {
373     // PowerPC does not have FP_TO_UINT on 32-bit implementations.
374     setOperationAction(ISD::FP_TO_UINT, MVT::i32, Expand);
375   }
376 
377   // With the instructions enabled under FPCVT, we can do everything.
378   if (Subtarget.hasFPCVT()) {
379     if (Subtarget.has64BitSupport()) {
380       setOperationAction(ISD::FP_TO_SINT, MVT::i64, Custom);
381       setOperationAction(ISD::FP_TO_UINT, MVT::i64, Custom);
382       setOperationAction(ISD::SINT_TO_FP, MVT::i64, Custom);
383       setOperationAction(ISD::UINT_TO_FP, MVT::i64, Custom);
384     }
385 
386     setOperationAction(ISD::FP_TO_SINT, MVT::i32, Custom);
387     setOperationAction(ISD::FP_TO_UINT, MVT::i32, Custom);
388     setOperationAction(ISD::SINT_TO_FP, MVT::i32, Custom);
389     setOperationAction(ISD::UINT_TO_FP, MVT::i32, Custom);
390   }
391 
392   if (Subtarget.use64BitRegs()) {
393     // 64-bit PowerPC implementations can support i64 types directly
394     addRegisterClass(MVT::i64, &PPC::G8RCRegClass);
395     // BUILD_PAIR can't be handled natively, and should be expanded to shl/or
396     setOperationAction(ISD::BUILD_PAIR, MVT::i64, Expand);
397     // 64-bit PowerPC wants to expand i128 shifts itself.
398     setOperationAction(ISD::SHL_PARTS, MVT::i64, Custom);
399     setOperationAction(ISD::SRA_PARTS, MVT::i64, Custom);
400     setOperationAction(ISD::SRL_PARTS, MVT::i64, Custom);
401   } else {
402     // 32-bit PowerPC wants to expand i64 shifts itself.
403     setOperationAction(ISD::SHL_PARTS, MVT::i32, Custom);
404     setOperationAction(ISD::SRA_PARTS, MVT::i32, Custom);
405     setOperationAction(ISD::SRL_PARTS, MVT::i32, Custom);
406   }
407 
408   if (Subtarget.hasAltivec()) {
409     // First set operation action for all vector types to expand. Then we
410     // will selectively turn on ones that can be effectively codegen'd.
411     for (MVT VT : MVT::vector_valuetypes()) {
412       // add/sub are legal for all supported vector VT's.
413       setOperationAction(ISD::ADD, VT, Legal);
414       setOperationAction(ISD::SUB, VT, Legal);
415 
416       // Vector instructions introduced in P8
417       if (Subtarget.hasP8Altivec() && (VT.SimpleTy != MVT::v1i128)) {
418         setOperationAction(ISD::CTPOP, VT, Legal);
419         setOperationAction(ISD::CTLZ, VT, Legal);
420       }
421       else {
422         setOperationAction(ISD::CTPOP, VT, Expand);
423         setOperationAction(ISD::CTLZ, VT, Expand);
424       }
425 
426       // We promote all shuffles to v16i8.
427       setOperationAction(ISD::VECTOR_SHUFFLE, VT, Promote);
428       AddPromotedToType (ISD::VECTOR_SHUFFLE, VT, MVT::v16i8);
429 
430       // We promote all non-typed operations to v4i32.
431       setOperationAction(ISD::AND   , VT, Promote);
432       AddPromotedToType (ISD::AND   , VT, MVT::v4i32);
433       setOperationAction(ISD::OR    , VT, Promote);
434       AddPromotedToType (ISD::OR    , VT, MVT::v4i32);
435       setOperationAction(ISD::XOR   , VT, Promote);
436       AddPromotedToType (ISD::XOR   , VT, MVT::v4i32);
437       setOperationAction(ISD::LOAD  , VT, Promote);
438       AddPromotedToType (ISD::LOAD  , VT, MVT::v4i32);
439       setOperationAction(ISD::SELECT, VT, Promote);
440       AddPromotedToType (ISD::SELECT, VT, MVT::v4i32);
441       setOperationAction(ISD::SELECT_CC, VT, Promote);
442       AddPromotedToType (ISD::SELECT_CC, VT, MVT::v4i32);
443       setOperationAction(ISD::STORE, VT, Promote);
444       AddPromotedToType (ISD::STORE, VT, MVT::v4i32);
445 
446       // No other operations are legal.
447       setOperationAction(ISD::MUL , VT, Expand);
448       setOperationAction(ISD::SDIV, VT, Expand);
449       setOperationAction(ISD::SREM, VT, Expand);
450       setOperationAction(ISD::UDIV, VT, Expand);
451       setOperationAction(ISD::UREM, VT, Expand);
452       setOperationAction(ISD::FDIV, VT, Expand);
453       setOperationAction(ISD::FREM, VT, Expand);
454       setOperationAction(ISD::FNEG, VT, Expand);
455       setOperationAction(ISD::FSQRT, VT, Expand);
456       setOperationAction(ISD::FLOG, VT, Expand);
457       setOperationAction(ISD::FLOG10, VT, Expand);
458       setOperationAction(ISD::FLOG2, VT, Expand);
459       setOperationAction(ISD::FEXP, VT, Expand);
460       setOperationAction(ISD::FEXP2, VT, Expand);
461       setOperationAction(ISD::FSIN, VT, Expand);
462       setOperationAction(ISD::FCOS, VT, Expand);
463       setOperationAction(ISD::FABS, VT, Expand);
464       setOperationAction(ISD::FPOWI, VT, Expand);
465       setOperationAction(ISD::FFLOOR, VT, Expand);
466       setOperationAction(ISD::FCEIL,  VT, Expand);
467       setOperationAction(ISD::FTRUNC, VT, Expand);
468       setOperationAction(ISD::FRINT,  VT, Expand);
469       setOperationAction(ISD::FNEARBYINT, VT, Expand);
470       setOperationAction(ISD::EXTRACT_VECTOR_ELT, VT, Expand);
471       setOperationAction(ISD::INSERT_VECTOR_ELT, VT, Expand);
472       setOperationAction(ISD::BUILD_VECTOR, VT, Expand);
473       setOperationAction(ISD::MULHU, VT, Expand);
474       setOperationAction(ISD::MULHS, VT, Expand);
475       setOperationAction(ISD::UMUL_LOHI, VT, Expand);
476       setOperationAction(ISD::SMUL_LOHI, VT, Expand);
477       setOperationAction(ISD::UDIVREM, VT, Expand);
478       setOperationAction(ISD::SDIVREM, VT, Expand);
479       setOperationAction(ISD::SCALAR_TO_VECTOR, VT, Expand);
480       setOperationAction(ISD::FPOW, VT, Expand);
481       setOperationAction(ISD::BSWAP, VT, Expand);
482       setOperationAction(ISD::CTLZ_ZERO_UNDEF, VT, Expand);
483       setOperationAction(ISD::CTTZ, VT, Expand);
484       setOperationAction(ISD::CTTZ_ZERO_UNDEF, VT, Expand);
485       setOperationAction(ISD::VSELECT, VT, Expand);
486       setOperationAction(ISD::SIGN_EXTEND_INREG, VT, Expand);
487       setOperationAction(ISD::ROTL, VT, Expand);
488       setOperationAction(ISD::ROTR, VT, Expand);
489 
490       for (MVT InnerVT : MVT::vector_valuetypes()) {
491         setTruncStoreAction(VT, InnerVT, Expand);
492         setLoadExtAction(ISD::SEXTLOAD, VT, InnerVT, Expand);
493         setLoadExtAction(ISD::ZEXTLOAD, VT, InnerVT, Expand);
494         setLoadExtAction(ISD::EXTLOAD, VT, InnerVT, Expand);
495       }
496     }
497 
498     // We can custom expand all VECTOR_SHUFFLEs to VPERM, others we can handle
499     // with merges, splats, etc.
500     setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v16i8, Custom);
501 
502     setOperationAction(ISD::AND   , MVT::v4i32, Legal);
503     setOperationAction(ISD::OR    , MVT::v4i32, Legal);
504     setOperationAction(ISD::XOR   , MVT::v4i32, Legal);
505     setOperationAction(ISD::LOAD  , MVT::v4i32, Legal);
506     setOperationAction(ISD::SELECT, MVT::v4i32,
507                        Subtarget.useCRBits() ? Legal : Expand);
508     setOperationAction(ISD::STORE , MVT::v4i32, Legal);
509     setOperationAction(ISD::FP_TO_SINT, MVT::v4i32, Legal);
510     setOperationAction(ISD::FP_TO_UINT, MVT::v4i32, Legal);
511     setOperationAction(ISD::SINT_TO_FP, MVT::v4i32, Legal);
512     setOperationAction(ISD::UINT_TO_FP, MVT::v4i32, Legal);
513     setOperationAction(ISD::FFLOOR, MVT::v4f32, Legal);
514     setOperationAction(ISD::FCEIL, MVT::v4f32, Legal);
515     setOperationAction(ISD::FTRUNC, MVT::v4f32, Legal);
516     setOperationAction(ISD::FNEARBYINT, MVT::v4f32, Legal);
517 
518     addRegisterClass(MVT::v4f32, &PPC::VRRCRegClass);
519     addRegisterClass(MVT::v4i32, &PPC::VRRCRegClass);
520     addRegisterClass(MVT::v8i16, &PPC::VRRCRegClass);
521     addRegisterClass(MVT::v16i8, &PPC::VRRCRegClass);
522 
523     setOperationAction(ISD::MUL, MVT::v4f32, Legal);
524     setOperationAction(ISD::FMA, MVT::v4f32, Legal);
525 
526     if (TM.Options.UnsafeFPMath || Subtarget.hasVSX()) {
527       setOperationAction(ISD::FDIV, MVT::v4f32, Legal);
528       setOperationAction(ISD::FSQRT, MVT::v4f32, Legal);
529     }
530 
531     if (Subtarget.hasP8Altivec())
532       setOperationAction(ISD::MUL, MVT::v4i32, Legal);
533     else
534       setOperationAction(ISD::MUL, MVT::v4i32, Custom);
535 
536     setOperationAction(ISD::MUL, MVT::v8i16, Custom);
537     setOperationAction(ISD::MUL, MVT::v16i8, Custom);
538 
539     setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v4f32, Custom);
540     setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v4i32, Custom);
541 
542     setOperationAction(ISD::BUILD_VECTOR, MVT::v16i8, Custom);
543     setOperationAction(ISD::BUILD_VECTOR, MVT::v8i16, Custom);
544     setOperationAction(ISD::BUILD_VECTOR, MVT::v4i32, Custom);
545     setOperationAction(ISD::BUILD_VECTOR, MVT::v4f32, Custom);
546 
547     // Altivec does not contain unordered floating-point compare instructions
548     setCondCodeAction(ISD::SETUO, MVT::v4f32, Expand);
549     setCondCodeAction(ISD::SETUEQ, MVT::v4f32, Expand);
550     setCondCodeAction(ISD::SETO,   MVT::v4f32, Expand);
551     setCondCodeAction(ISD::SETONE, MVT::v4f32, Expand);
552 
553     if (Subtarget.hasVSX()) {
554       setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v2f64, Legal);
555       setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v2f64, Legal);
556       if (Subtarget.hasP8Vector()) {
557         setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v4f32, Legal);
558         setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v4f32, Legal);
559       }
560       if (Subtarget.hasDirectMove() && isPPC64) {
561         setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v16i8, Legal);
562         setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v8i16, Legal);
563         setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v4i32, Legal);
564         setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v2i64, Legal);
565         setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v16i8, Legal);
566         setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v8i16, Legal);
567         setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v4i32, Legal);
568         setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v2i64, Legal);
569       }
570       setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v2f64, Legal);
571 
572       setOperationAction(ISD::FFLOOR, MVT::v2f64, Legal);
573       setOperationAction(ISD::FCEIL, MVT::v2f64, Legal);
574       setOperationAction(ISD::FTRUNC, MVT::v2f64, Legal);
575       setOperationAction(ISD::FNEARBYINT, MVT::v2f64, Legal);
576       setOperationAction(ISD::FROUND, MVT::v2f64, Legal);
577 
578       setOperationAction(ISD::FROUND, MVT::v4f32, Legal);
579 
580       setOperationAction(ISD::MUL, MVT::v2f64, Legal);
581       setOperationAction(ISD::FMA, MVT::v2f64, Legal);
582 
583       setOperationAction(ISD::FDIV, MVT::v2f64, Legal);
584       setOperationAction(ISD::FSQRT, MVT::v2f64, Legal);
585 
586       setOperationAction(ISD::VSELECT, MVT::v16i8, Legal);
587       setOperationAction(ISD::VSELECT, MVT::v8i16, Legal);
588       setOperationAction(ISD::VSELECT, MVT::v4i32, Legal);
589       setOperationAction(ISD::VSELECT, MVT::v4f32, Legal);
590       setOperationAction(ISD::VSELECT, MVT::v2f64, Legal);
591 
592       // Share the Altivec comparison restrictions.
593       setCondCodeAction(ISD::SETUO, MVT::v2f64, Expand);
594       setCondCodeAction(ISD::SETUEQ, MVT::v2f64, Expand);
595       setCondCodeAction(ISD::SETO,   MVT::v2f64, Expand);
596       setCondCodeAction(ISD::SETONE, MVT::v2f64, Expand);
597 
598       setOperationAction(ISD::LOAD, MVT::v2f64, Legal);
599       setOperationAction(ISD::STORE, MVT::v2f64, Legal);
600 
601       setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v2f64, Legal);
602 
603       if (Subtarget.hasP8Vector())
604         addRegisterClass(MVT::f32, &PPC::VSSRCRegClass);
605 
606       addRegisterClass(MVT::f64, &PPC::VSFRCRegClass);
607 
608       addRegisterClass(MVT::v4i32, &PPC::VSRCRegClass);
609       addRegisterClass(MVT::v4f32, &PPC::VSRCRegClass);
610       addRegisterClass(MVT::v2f64, &PPC::VSRCRegClass);
611 
612       if (Subtarget.hasP8Altivec()) {
613         setOperationAction(ISD::SHL, MVT::v2i64, Legal);
614         setOperationAction(ISD::SRA, MVT::v2i64, Legal);
615         setOperationAction(ISD::SRL, MVT::v2i64, Legal);
616 
617         setOperationAction(ISD::SETCC, MVT::v2i64, Legal);
618       }
619       else {
620         setOperationAction(ISD::SHL, MVT::v2i64, Expand);
621         setOperationAction(ISD::SRA, MVT::v2i64, Expand);
622         setOperationAction(ISD::SRL, MVT::v2i64, Expand);
623 
624         setOperationAction(ISD::SETCC, MVT::v2i64, Custom);
625 
626         // VSX v2i64 only supports non-arithmetic operations.
627         setOperationAction(ISD::ADD, MVT::v2i64, Expand);
628         setOperationAction(ISD::SUB, MVT::v2i64, Expand);
629       }
630 
631       setOperationAction(ISD::LOAD, MVT::v2i64, Promote);
632       AddPromotedToType (ISD::LOAD, MVT::v2i64, MVT::v2f64);
633       setOperationAction(ISD::STORE, MVT::v2i64, Promote);
634       AddPromotedToType (ISD::STORE, MVT::v2i64, MVT::v2f64);
635 
636       setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v2i64, Legal);
637 
638       setOperationAction(ISD::SINT_TO_FP, MVT::v2i64, Legal);
639       setOperationAction(ISD::UINT_TO_FP, MVT::v2i64, Legal);
640       setOperationAction(ISD::FP_TO_SINT, MVT::v2i64, Legal);
641       setOperationAction(ISD::FP_TO_UINT, MVT::v2i64, Legal);
642 
643       // Vector operation legalization checks the result type of
644       // SIGN_EXTEND_INREG, overall legalization checks the inner type.
645       setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::v2i64, Legal);
646       setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::v2i32, Legal);
647       setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::v2i16, Custom);
648       setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::v2i8, Custom);
649 
650       setOperationAction(ISD::FNEG, MVT::v4f32, Legal);
651       setOperationAction(ISD::FNEG, MVT::v2f64, Legal);
652       setOperationAction(ISD::FABS, MVT::v4f32, Legal);
653       setOperationAction(ISD::FABS, MVT::v2f64, Legal);
654 
655       addRegisterClass(MVT::v2i64, &PPC::VSRCRegClass);
656     }
657 
658     if (Subtarget.hasP8Altivec()) {
659       addRegisterClass(MVT::v2i64, &PPC::VRRCRegClass);
660       addRegisterClass(MVT::v1i128, &PPC::VRRCRegClass);
661     }
662   }
663 
664   if (Subtarget.hasQPX()) {
665     setOperationAction(ISD::FADD, MVT::v4f64, Legal);
666     setOperationAction(ISD::FSUB, MVT::v4f64, Legal);
667     setOperationAction(ISD::FMUL, MVT::v4f64, Legal);
668     setOperationAction(ISD::FREM, MVT::v4f64, Expand);
669 
670     setOperationAction(ISD::FCOPYSIGN, MVT::v4f64, Legal);
671     setOperationAction(ISD::FGETSIGN, MVT::v4f64, Expand);
672 
673     setOperationAction(ISD::LOAD  , MVT::v4f64, Custom);
674     setOperationAction(ISD::STORE , MVT::v4f64, Custom);
675 
676     setTruncStoreAction(MVT::v4f64, MVT::v4f32, Custom);
677     setLoadExtAction(ISD::EXTLOAD, MVT::v4f64, MVT::v4f32, Custom);
678 
679     if (!Subtarget.useCRBits())
680       setOperationAction(ISD::SELECT, MVT::v4f64, Expand);
681     setOperationAction(ISD::VSELECT, MVT::v4f64, Legal);
682 
683     setOperationAction(ISD::EXTRACT_VECTOR_ELT , MVT::v4f64, Legal);
684     setOperationAction(ISD::INSERT_VECTOR_ELT , MVT::v4f64, Expand);
685     setOperationAction(ISD::CONCAT_VECTORS , MVT::v4f64, Expand);
686     setOperationAction(ISD::EXTRACT_SUBVECTOR , MVT::v4f64, Expand);
687     setOperationAction(ISD::VECTOR_SHUFFLE , MVT::v4f64, Custom);
688     setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v4f64, Legal);
689     setOperationAction(ISD::BUILD_VECTOR, MVT::v4f64, Custom);
690 
691     setOperationAction(ISD::FP_TO_SINT , MVT::v4f64, Legal);
692     setOperationAction(ISD::FP_TO_UINT , MVT::v4f64, Expand);
693 
694     setOperationAction(ISD::FP_ROUND , MVT::v4f32, Legal);
695     setOperationAction(ISD::FP_ROUND_INREG , MVT::v4f32, Expand);
696     setOperationAction(ISD::FP_EXTEND, MVT::v4f64, Legal);
697 
698     setOperationAction(ISD::FNEG , MVT::v4f64, Legal);
699     setOperationAction(ISD::FABS , MVT::v4f64, Legal);
700     setOperationAction(ISD::FSIN , MVT::v4f64, Expand);
701     setOperationAction(ISD::FCOS , MVT::v4f64, Expand);
702     setOperationAction(ISD::FPOWI , MVT::v4f64, Expand);
703     setOperationAction(ISD::FPOW , MVT::v4f64, Expand);
704     setOperationAction(ISD::FLOG , MVT::v4f64, Expand);
705     setOperationAction(ISD::FLOG2 , MVT::v4f64, Expand);
706     setOperationAction(ISD::FLOG10 , MVT::v4f64, Expand);
707     setOperationAction(ISD::FEXP , MVT::v4f64, Expand);
708     setOperationAction(ISD::FEXP2 , MVT::v4f64, Expand);
709 
710     setOperationAction(ISD::FMINNUM, MVT::v4f64, Legal);
711     setOperationAction(ISD::FMAXNUM, MVT::v4f64, Legal);
712 
713     setIndexedLoadAction(ISD::PRE_INC, MVT::v4f64, Legal);
714     setIndexedStoreAction(ISD::PRE_INC, MVT::v4f64, Legal);
715 
716     addRegisterClass(MVT::v4f64, &PPC::QFRCRegClass);
717 
718     setOperationAction(ISD::FADD, MVT::v4f32, Legal);
719     setOperationAction(ISD::FSUB, MVT::v4f32, Legal);
720     setOperationAction(ISD::FMUL, MVT::v4f32, Legal);
721     setOperationAction(ISD::FREM, MVT::v4f32, Expand);
722 
723     setOperationAction(ISD::FCOPYSIGN, MVT::v4f32, Legal);
724     setOperationAction(ISD::FGETSIGN, MVT::v4f32, Expand);
725 
726     setOperationAction(ISD::LOAD  , MVT::v4f32, Custom);
727     setOperationAction(ISD::STORE , MVT::v4f32, Custom);
728 
729     if (!Subtarget.useCRBits())
730       setOperationAction(ISD::SELECT, MVT::v4f32, Expand);
731     setOperationAction(ISD::VSELECT, MVT::v4f32, Legal);
732 
733     setOperationAction(ISD::EXTRACT_VECTOR_ELT , MVT::v4f32, Legal);
734     setOperationAction(ISD::INSERT_VECTOR_ELT , MVT::v4f32, Expand);
735     setOperationAction(ISD::CONCAT_VECTORS , MVT::v4f32, Expand);
736     setOperationAction(ISD::EXTRACT_SUBVECTOR , MVT::v4f32, Expand);
737     setOperationAction(ISD::VECTOR_SHUFFLE , MVT::v4f32, Custom);
738     setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v4f32, Legal);
739     setOperationAction(ISD::BUILD_VECTOR, MVT::v4f32, Custom);
740 
741     setOperationAction(ISD::FP_TO_SINT , MVT::v4f32, Legal);
742     setOperationAction(ISD::FP_TO_UINT , MVT::v4f32, Expand);
743 
744     setOperationAction(ISD::FNEG , MVT::v4f32, Legal);
745     setOperationAction(ISD::FABS , MVT::v4f32, Legal);
746     setOperationAction(ISD::FSIN , MVT::v4f32, Expand);
747     setOperationAction(ISD::FCOS , MVT::v4f32, Expand);
748     setOperationAction(ISD::FPOWI , MVT::v4f32, Expand);
749     setOperationAction(ISD::FPOW , MVT::v4f32, Expand);
750     setOperationAction(ISD::FLOG , MVT::v4f32, Expand);
751     setOperationAction(ISD::FLOG2 , MVT::v4f32, Expand);
752     setOperationAction(ISD::FLOG10 , MVT::v4f32, Expand);
753     setOperationAction(ISD::FEXP , MVT::v4f32, Expand);
754     setOperationAction(ISD::FEXP2 , MVT::v4f32, Expand);
755 
756     setOperationAction(ISD::FMINNUM, MVT::v4f32, Legal);
757     setOperationAction(ISD::FMAXNUM, MVT::v4f32, Legal);
758 
759     setIndexedLoadAction(ISD::PRE_INC, MVT::v4f32, Legal);
760     setIndexedStoreAction(ISD::PRE_INC, MVT::v4f32, Legal);
761 
762     addRegisterClass(MVT::v4f32, &PPC::QSRCRegClass);
763 
764     setOperationAction(ISD::AND , MVT::v4i1, Legal);
765     setOperationAction(ISD::OR , MVT::v4i1, Legal);
766     setOperationAction(ISD::XOR , MVT::v4i1, Legal);
767 
768     if (!Subtarget.useCRBits())
769       setOperationAction(ISD::SELECT, MVT::v4i1, Expand);
770     setOperationAction(ISD::VSELECT, MVT::v4i1, Legal);
771 
772     setOperationAction(ISD::LOAD  , MVT::v4i1, Custom);
773     setOperationAction(ISD::STORE , MVT::v4i1, Custom);
774 
775     setOperationAction(ISD::EXTRACT_VECTOR_ELT , MVT::v4i1, Custom);
776     setOperationAction(ISD::INSERT_VECTOR_ELT , MVT::v4i1, Expand);
777     setOperationAction(ISD::CONCAT_VECTORS , MVT::v4i1, Expand);
778     setOperationAction(ISD::EXTRACT_SUBVECTOR , MVT::v4i1, Expand);
779     setOperationAction(ISD::VECTOR_SHUFFLE , MVT::v4i1, Custom);
780     setOperationAction(ISD::SCALAR_TO_VECTOR, MVT::v4i1, Expand);
781     setOperationAction(ISD::BUILD_VECTOR, MVT::v4i1, Custom);
782 
783     setOperationAction(ISD::SINT_TO_FP, MVT::v4i1, Custom);
784     setOperationAction(ISD::UINT_TO_FP, MVT::v4i1, Custom);
785 
786     addRegisterClass(MVT::v4i1, &PPC::QBRCRegClass);
787 
788     setOperationAction(ISD::FFLOOR, MVT::v4f64, Legal);
789     setOperationAction(ISD::FCEIL,  MVT::v4f64, Legal);
790     setOperationAction(ISD::FTRUNC, MVT::v4f64, Legal);
791     setOperationAction(ISD::FROUND, MVT::v4f64, Legal);
792 
793     setOperationAction(ISD::FFLOOR, MVT::v4f32, Legal);
794     setOperationAction(ISD::FCEIL,  MVT::v4f32, Legal);
795     setOperationAction(ISD::FTRUNC, MVT::v4f32, Legal);
796     setOperationAction(ISD::FROUND, MVT::v4f32, Legal);
797 
798     setOperationAction(ISD::FNEARBYINT, MVT::v4f64, Expand);
799     setOperationAction(ISD::FNEARBYINT, MVT::v4f32, Expand);
800 
801     // These need to set FE_INEXACT, and so cannot be vectorized here.
802     setOperationAction(ISD::FRINT, MVT::v4f64, Expand);
803     setOperationAction(ISD::FRINT, MVT::v4f32, Expand);
804 
805     if (TM.Options.UnsafeFPMath) {
806       setOperationAction(ISD::FDIV, MVT::v4f64, Legal);
807       setOperationAction(ISD::FSQRT, MVT::v4f64, Legal);
808 
809       setOperationAction(ISD::FDIV, MVT::v4f32, Legal);
810       setOperationAction(ISD::FSQRT, MVT::v4f32, Legal);
811     } else {
812       setOperationAction(ISD::FDIV, MVT::v4f64, Expand);
813       setOperationAction(ISD::FSQRT, MVT::v4f64, Expand);
814 
815       setOperationAction(ISD::FDIV, MVT::v4f32, Expand);
816       setOperationAction(ISD::FSQRT, MVT::v4f32, Expand);
817     }
818   }
819 
820   if (Subtarget.has64BitSupport())
821     setOperationAction(ISD::PREFETCH, MVT::Other, Legal);
822 
823   setOperationAction(ISD::READCYCLECOUNTER, MVT::i64, isPPC64 ? Legal : Custom);
824 
825   if (!isPPC64) {
826     setOperationAction(ISD::ATOMIC_LOAD,  MVT::i64, Expand);
827     setOperationAction(ISD::ATOMIC_STORE, MVT::i64, Expand);
828   }
829 
830   setBooleanContents(ZeroOrOneBooleanContent);
831 
832   if (Subtarget.hasAltivec()) {
833     // Altivec instructions set fields to all zeros or all ones.
834     setBooleanVectorContents(ZeroOrNegativeOneBooleanContent);
835   }
836 
837   if (!isPPC64) {
838     // These libcalls are not available in 32-bit.
839     setLibcallName(RTLIB::SHL_I128, nullptr);
840     setLibcallName(RTLIB::SRL_I128, nullptr);
841     setLibcallName(RTLIB::SRA_I128, nullptr);
842   }
843 
844   setStackPointerRegisterToSaveRestore(isPPC64 ? PPC::X1 : PPC::R1);
845 
846   // We have target-specific dag combine patterns for the following nodes:
847   setTargetDAGCombine(ISD::SINT_TO_FP);
848   if (Subtarget.hasFPCVT())
849     setTargetDAGCombine(ISD::UINT_TO_FP);
850   setTargetDAGCombine(ISD::LOAD);
851   setTargetDAGCombine(ISD::STORE);
852   setTargetDAGCombine(ISD::BR_CC);
853   if (Subtarget.useCRBits())
854     setTargetDAGCombine(ISD::BRCOND);
855   setTargetDAGCombine(ISD::BSWAP);
856   setTargetDAGCombine(ISD::INTRINSIC_WO_CHAIN);
857   setTargetDAGCombine(ISD::INTRINSIC_W_CHAIN);
858   setTargetDAGCombine(ISD::INTRINSIC_VOID);
859 
860   setTargetDAGCombine(ISD::SIGN_EXTEND);
861   setTargetDAGCombine(ISD::ZERO_EXTEND);
862   setTargetDAGCombine(ISD::ANY_EXTEND);
863 
864   if (Subtarget.useCRBits()) {
865     setTargetDAGCombine(ISD::TRUNCATE);
866     setTargetDAGCombine(ISD::SETCC);
867     setTargetDAGCombine(ISD::SELECT_CC);
868   }
869 
870   // Use reciprocal estimates.
871   if (TM.Options.UnsafeFPMath) {
872     setTargetDAGCombine(ISD::FDIV);
873     setTargetDAGCombine(ISD::FSQRT);
874   }
875 
876   // Darwin long double math library functions have $LDBL128 appended.
877   if (Subtarget.isDarwin()) {
878     setLibcallName(RTLIB::COS_PPCF128, "cosl$LDBL128");
879     setLibcallName(RTLIB::POW_PPCF128, "powl$LDBL128");
880     setLibcallName(RTLIB::REM_PPCF128, "fmodl$LDBL128");
881     setLibcallName(RTLIB::SIN_PPCF128, "sinl$LDBL128");
882     setLibcallName(RTLIB::SQRT_PPCF128, "sqrtl$LDBL128");
883     setLibcallName(RTLIB::LOG_PPCF128, "logl$LDBL128");
884     setLibcallName(RTLIB::LOG2_PPCF128, "log2l$LDBL128");
885     setLibcallName(RTLIB::LOG10_PPCF128, "log10l$LDBL128");
886     setLibcallName(RTLIB::EXP_PPCF128, "expl$LDBL128");
887     setLibcallName(RTLIB::EXP2_PPCF128, "exp2l$LDBL128");
888   }
889 
890   // With 32 condition bits, we don't need to sink (and duplicate) compares
891   // aggressively in CodeGenPrep.
892   if (Subtarget.useCRBits()) {
893     setHasMultipleConditionRegisters();
894     setJumpIsExpensive();
895   }
896 
897   setMinFunctionAlignment(2);
898   if (Subtarget.isDarwin())
899     setPrefFunctionAlignment(4);
900 
901   switch (Subtarget.getDarwinDirective()) {
902   default: break;
903   case PPC::DIR_970:
904   case PPC::DIR_A2:
905   case PPC::DIR_E500mc:
906   case PPC::DIR_E5500:
907   case PPC::DIR_PWR4:
908   case PPC::DIR_PWR5:
909   case PPC::DIR_PWR5X:
910   case PPC::DIR_PWR6:
911   case PPC::DIR_PWR6X:
912   case PPC::DIR_PWR7:
913   case PPC::DIR_PWR8:
914     setPrefFunctionAlignment(4);
915     setPrefLoopAlignment(4);
916     break;
917   }
918 
919 
920   if (Subtarget.enableMachineScheduler())
921     setSchedulingPreference(Sched::Source);
922   else
923     setSchedulingPreference(Sched::Hybrid);
924 
925   computeRegisterProperties(STI.getRegisterInfo());
926 
927   // The Freescale cores do better with aggressive inlining of memcpy and
928   // friends. GCC uses same threshold of 128 bytes (= 32 word stores).
929   if (Subtarget.getDarwinDirective() == PPC::DIR_E500mc ||
930       Subtarget.getDarwinDirective() == PPC::DIR_E5500) {
931     MaxStoresPerMemset = 32;
932     MaxStoresPerMemsetOptSize = 16;
933     MaxStoresPerMemcpy = 32;
934     MaxStoresPerMemcpyOptSize = 8;
935     MaxStoresPerMemmove = 32;
936     MaxStoresPerMemmoveOptSize = 8;
937   } else if (Subtarget.getDarwinDirective() == PPC::DIR_A2) {
938     // The A2 also benefits from (very) aggressive inlining of memcpy and
939     // friends. The overhead of a the function call, even when warm, can be
940     // over one hundred cycles.
941     MaxStoresPerMemset = 128;
942     MaxStoresPerMemcpy = 128;
943     MaxStoresPerMemmove = 128;
944   }
945 }
946 
947 /// getMaxByValAlign - Helper for getByValTypeAlignment to determine
948 /// the desired ByVal argument alignment.
949 static void getMaxByValAlign(Type *Ty, unsigned &MaxAlign,
950                              unsigned MaxMaxAlign) {
951   if (MaxAlign == MaxMaxAlign)
952     return;
953   if (VectorType *VTy = dyn_cast<VectorType>(Ty)) {
954     if (MaxMaxAlign >= 32 && VTy->getBitWidth() >= 256)
955       MaxAlign = 32;
956     else if (VTy->getBitWidth() >= 128 && MaxAlign < 16)
957       MaxAlign = 16;
958   } else if (ArrayType *ATy = dyn_cast<ArrayType>(Ty)) {
959     unsigned EltAlign = 0;
960     getMaxByValAlign(ATy->getElementType(), EltAlign, MaxMaxAlign);
961     if (EltAlign > MaxAlign)
962       MaxAlign = EltAlign;
963   } else if (StructType *STy = dyn_cast<StructType>(Ty)) {
964     for (auto *EltTy : STy->elements()) {
965       unsigned EltAlign = 0;
966       getMaxByValAlign(EltTy, EltAlign, MaxMaxAlign);
967       if (EltAlign > MaxAlign)
968         MaxAlign = EltAlign;
969       if (MaxAlign == MaxMaxAlign)
970         break;
971     }
972   }
973 }
974 
975 /// getByValTypeAlignment - Return the desired alignment for ByVal aggregate
976 /// function arguments in the caller parameter area.
977 unsigned PPCTargetLowering::getByValTypeAlignment(Type *Ty,
978                                                   const DataLayout &DL) const {
979   // Darwin passes everything on 4 byte boundary.
980   if (Subtarget.isDarwin())
981     return 4;
982 
983   // 16byte and wider vectors are passed on 16byte boundary.
984   // The rest is 8 on PPC64 and 4 on PPC32 boundary.
985   unsigned Align = Subtarget.isPPC64() ? 8 : 4;
986   if (Subtarget.hasAltivec() || Subtarget.hasQPX())
987     getMaxByValAlign(Ty, Align, Subtarget.hasQPX() ? 32 : 16);
988   return Align;
989 }
990 
991 bool PPCTargetLowering::useSoftFloat() const {
992   return Subtarget.useSoftFloat();
993 }
994 
995 const char *PPCTargetLowering::getTargetNodeName(unsigned Opcode) const {
996   switch ((PPCISD::NodeType)Opcode) {
997   case PPCISD::FIRST_NUMBER:    break;
998   case PPCISD::FSEL:            return "PPCISD::FSEL";
999   case PPCISD::FCFID:           return "PPCISD::FCFID";
1000   case PPCISD::FCFIDU:          return "PPCISD::FCFIDU";
1001   case PPCISD::FCFIDS:          return "PPCISD::FCFIDS";
1002   case PPCISD::FCFIDUS:         return "PPCISD::FCFIDUS";
1003   case PPCISD::FCTIDZ:          return "PPCISD::FCTIDZ";
1004   case PPCISD::FCTIWZ:          return "PPCISD::FCTIWZ";
1005   case PPCISD::FCTIDUZ:         return "PPCISD::FCTIDUZ";
1006   case PPCISD::FCTIWUZ:         return "PPCISD::FCTIWUZ";
1007   case PPCISD::FRE:             return "PPCISD::FRE";
1008   case PPCISD::FRSQRTE:         return "PPCISD::FRSQRTE";
1009   case PPCISD::STFIWX:          return "PPCISD::STFIWX";
1010   case PPCISD::VMADDFP:         return "PPCISD::VMADDFP";
1011   case PPCISD::VNMSUBFP:        return "PPCISD::VNMSUBFP";
1012   case PPCISD::VPERM:           return "PPCISD::VPERM";
1013   case PPCISD::CMPB:            return "PPCISD::CMPB";
1014   case PPCISD::Hi:              return "PPCISD::Hi";
1015   case PPCISD::Lo:              return "PPCISD::Lo";
1016   case PPCISD::TOC_ENTRY:       return "PPCISD::TOC_ENTRY";
1017   case PPCISD::DYNALLOC:        return "PPCISD::DYNALLOC";
1018   case PPCISD::DYNAREAOFFSET:   return "PPCISD::DYNAREAOFFSET";
1019   case PPCISD::GlobalBaseReg:   return "PPCISD::GlobalBaseReg";
1020   case PPCISD::SRL:             return "PPCISD::SRL";
1021   case PPCISD::SRA:             return "PPCISD::SRA";
1022   case PPCISD::SHL:             return "PPCISD::SHL";
1023   case PPCISD::SRA_ADDZE:       return "PPCISD::SRA_ADDZE";
1024   case PPCISD::CALL:            return "PPCISD::CALL";
1025   case PPCISD::CALL_NOP:        return "PPCISD::CALL_NOP";
1026   case PPCISD::MTCTR:           return "PPCISD::MTCTR";
1027   case PPCISD::BCTRL:           return "PPCISD::BCTRL";
1028   case PPCISD::BCTRL_LOAD_TOC:  return "PPCISD::BCTRL_LOAD_TOC";
1029   case PPCISD::RET_FLAG:        return "PPCISD::RET_FLAG";
1030   case PPCISD::READ_TIME_BASE:  return "PPCISD::READ_TIME_BASE";
1031   case PPCISD::EH_SJLJ_SETJMP:  return "PPCISD::EH_SJLJ_SETJMP";
1032   case PPCISD::EH_SJLJ_LONGJMP: return "PPCISD::EH_SJLJ_LONGJMP";
1033   case PPCISD::MFOCRF:          return "PPCISD::MFOCRF";
1034   case PPCISD::MFVSR:           return "PPCISD::MFVSR";
1035   case PPCISD::MTVSRA:          return "PPCISD::MTVSRA";
1036   case PPCISD::MTVSRZ:          return "PPCISD::MTVSRZ";
1037   case PPCISD::ANDIo_1_EQ_BIT:  return "PPCISD::ANDIo_1_EQ_BIT";
1038   case PPCISD::ANDIo_1_GT_BIT:  return "PPCISD::ANDIo_1_GT_BIT";
1039   case PPCISD::VCMP:            return "PPCISD::VCMP";
1040   case PPCISD::VCMPo:           return "PPCISD::VCMPo";
1041   case PPCISD::LBRX:            return "PPCISD::LBRX";
1042   case PPCISD::STBRX:           return "PPCISD::STBRX";
1043   case PPCISD::LFIWAX:          return "PPCISD::LFIWAX";
1044   case PPCISD::LFIWZX:          return "PPCISD::LFIWZX";
1045   case PPCISD::LXVD2X:          return "PPCISD::LXVD2X";
1046   case PPCISD::STXVD2X:         return "PPCISD::STXVD2X";
1047   case PPCISD::COND_BRANCH:     return "PPCISD::COND_BRANCH";
1048   case PPCISD::BDNZ:            return "PPCISD::BDNZ";
1049   case PPCISD::BDZ:             return "PPCISD::BDZ";
1050   case PPCISD::MFFS:            return "PPCISD::MFFS";
1051   case PPCISD::FADDRTZ:         return "PPCISD::FADDRTZ";
1052   case PPCISD::TC_RETURN:       return "PPCISD::TC_RETURN";
1053   case PPCISD::CR6SET:          return "PPCISD::CR6SET";
1054   case PPCISD::CR6UNSET:        return "PPCISD::CR6UNSET";
1055   case PPCISD::PPC32_GOT:       return "PPCISD::PPC32_GOT";
1056   case PPCISD::PPC32_PICGOT:    return "PPCISD::PPC32_PICGOT";
1057   case PPCISD::ADDIS_GOT_TPREL_HA: return "PPCISD::ADDIS_GOT_TPREL_HA";
1058   case PPCISD::LD_GOT_TPREL_L:  return "PPCISD::LD_GOT_TPREL_L";
1059   case PPCISD::ADD_TLS:         return "PPCISD::ADD_TLS";
1060   case PPCISD::ADDIS_TLSGD_HA:  return "PPCISD::ADDIS_TLSGD_HA";
1061   case PPCISD::ADDI_TLSGD_L:    return "PPCISD::ADDI_TLSGD_L";
1062   case PPCISD::GET_TLS_ADDR:    return "PPCISD::GET_TLS_ADDR";
1063   case PPCISD::ADDI_TLSGD_L_ADDR: return "PPCISD::ADDI_TLSGD_L_ADDR";
1064   case PPCISD::ADDIS_TLSLD_HA:  return "PPCISD::ADDIS_TLSLD_HA";
1065   case PPCISD::ADDI_TLSLD_L:    return "PPCISD::ADDI_TLSLD_L";
1066   case PPCISD::GET_TLSLD_ADDR:  return "PPCISD::GET_TLSLD_ADDR";
1067   case PPCISD::ADDI_TLSLD_L_ADDR: return "PPCISD::ADDI_TLSLD_L_ADDR";
1068   case PPCISD::ADDIS_DTPREL_HA: return "PPCISD::ADDIS_DTPREL_HA";
1069   case PPCISD::ADDI_DTPREL_L:   return "PPCISD::ADDI_DTPREL_L";
1070   case PPCISD::VADD_SPLAT:      return "PPCISD::VADD_SPLAT";
1071   case PPCISD::SC:              return "PPCISD::SC";
1072   case PPCISD::CLRBHRB:         return "PPCISD::CLRBHRB";
1073   case PPCISD::MFBHRBE:         return "PPCISD::MFBHRBE";
1074   case PPCISD::RFEBB:           return "PPCISD::RFEBB";
1075   case PPCISD::XXSWAPD:         return "PPCISD::XXSWAPD";
1076   case PPCISD::QVFPERM:         return "PPCISD::QVFPERM";
1077   case PPCISD::QVGPCI:          return "PPCISD::QVGPCI";
1078   case PPCISD::QVALIGNI:        return "PPCISD::QVALIGNI";
1079   case PPCISD::QVESPLATI:       return "PPCISD::QVESPLATI";
1080   case PPCISD::QBFLT:           return "PPCISD::QBFLT";
1081   case PPCISD::QVLFSb:          return "PPCISD::QVLFSb";
1082   }
1083   return nullptr;
1084 }
1085 
1086 EVT PPCTargetLowering::getSetCCResultType(const DataLayout &DL, LLVMContext &C,
1087                                           EVT VT) const {
1088   if (!VT.isVector())
1089     return Subtarget.useCRBits() ? MVT::i1 : MVT::i32;
1090 
1091   if (Subtarget.hasQPX())
1092     return EVT::getVectorVT(C, MVT::i1, VT.getVectorNumElements());
1093 
1094   return VT.changeVectorElementTypeToInteger();
1095 }
1096 
1097 bool PPCTargetLowering::enableAggressiveFMAFusion(EVT VT) const {
1098   assert(VT.isFloatingPoint() && "Non-floating-point FMA?");
1099   return true;
1100 }
1101 
1102 //===----------------------------------------------------------------------===//
1103 // Node matching predicates, for use by the tblgen matching code.
1104 //===----------------------------------------------------------------------===//
1105 
1106 /// isFloatingPointZero - Return true if this is 0.0 or -0.0.
1107 static bool isFloatingPointZero(SDValue Op) {
1108   if (ConstantFPSDNode *CFP = dyn_cast<ConstantFPSDNode>(Op))
1109     return CFP->getValueAPF().isZero();
1110   else if (ISD::isEXTLoad(Op.getNode()) || ISD::isNON_EXTLoad(Op.getNode())) {
1111     // Maybe this has already been legalized into the constant pool?
1112     if (ConstantPoolSDNode *CP = dyn_cast<ConstantPoolSDNode>(Op.getOperand(1)))
1113       if (const ConstantFP *CFP = dyn_cast<ConstantFP>(CP->getConstVal()))
1114         return CFP->getValueAPF().isZero();
1115   }
1116   return false;
1117 }
1118 
1119 /// isConstantOrUndef - Op is either an undef node or a ConstantSDNode.  Return
1120 /// true if Op is undef or if it matches the specified value.
1121 static bool isConstantOrUndef(int Op, int Val) {
1122   return Op < 0 || Op == Val;
1123 }
1124 
1125 /// isVPKUHUMShuffleMask - Return true if this is the shuffle mask for a
1126 /// VPKUHUM instruction.
1127 /// The ShuffleKind distinguishes between big-endian operations with
1128 /// two different inputs (0), either-endian operations with two identical
1129 /// inputs (1), and little-endian operations with two different inputs (2).
1130 /// For the latter, the input operands are swapped (see PPCInstrAltivec.td).
1131 bool PPC::isVPKUHUMShuffleMask(ShuffleVectorSDNode *N, unsigned ShuffleKind,
1132                                SelectionDAG &DAG) {
1133   bool IsLE = DAG.getDataLayout().isLittleEndian();
1134   if (ShuffleKind == 0) {
1135     if (IsLE)
1136       return false;
1137     for (unsigned i = 0; i != 16; ++i)
1138       if (!isConstantOrUndef(N->getMaskElt(i), i*2+1))
1139         return false;
1140   } else if (ShuffleKind == 2) {
1141     if (!IsLE)
1142       return false;
1143     for (unsigned i = 0; i != 16; ++i)
1144       if (!isConstantOrUndef(N->getMaskElt(i), i*2))
1145         return false;
1146   } else if (ShuffleKind == 1) {
1147     unsigned j = IsLE ? 0 : 1;
1148     for (unsigned i = 0; i != 8; ++i)
1149       if (!isConstantOrUndef(N->getMaskElt(i),    i*2+j) ||
1150           !isConstantOrUndef(N->getMaskElt(i+8),  i*2+j))
1151         return false;
1152   }
1153   return true;
1154 }
1155 
1156 /// isVPKUWUMShuffleMask - Return true if this is the shuffle mask for a
1157 /// VPKUWUM instruction.
1158 /// The ShuffleKind distinguishes between big-endian operations with
1159 /// two different inputs (0), either-endian operations with two identical
1160 /// inputs (1), and little-endian operations with two different inputs (2).
1161 /// For the latter, the input operands are swapped (see PPCInstrAltivec.td).
1162 bool PPC::isVPKUWUMShuffleMask(ShuffleVectorSDNode *N, unsigned ShuffleKind,
1163                                SelectionDAG &DAG) {
1164   bool IsLE = DAG.getDataLayout().isLittleEndian();
1165   if (ShuffleKind == 0) {
1166     if (IsLE)
1167       return false;
1168     for (unsigned i = 0; i != 16; i += 2)
1169       if (!isConstantOrUndef(N->getMaskElt(i  ),  i*2+2) ||
1170           !isConstantOrUndef(N->getMaskElt(i+1),  i*2+3))
1171         return false;
1172   } else if (ShuffleKind == 2) {
1173     if (!IsLE)
1174       return false;
1175     for (unsigned i = 0; i != 16; i += 2)
1176       if (!isConstantOrUndef(N->getMaskElt(i  ),  i*2) ||
1177           !isConstantOrUndef(N->getMaskElt(i+1),  i*2+1))
1178         return false;
1179   } else if (ShuffleKind == 1) {
1180     unsigned j = IsLE ? 0 : 2;
1181     for (unsigned i = 0; i != 8; i += 2)
1182       if (!isConstantOrUndef(N->getMaskElt(i  ),  i*2+j)   ||
1183           !isConstantOrUndef(N->getMaskElt(i+1),  i*2+j+1) ||
1184           !isConstantOrUndef(N->getMaskElt(i+8),  i*2+j)   ||
1185           !isConstantOrUndef(N->getMaskElt(i+9),  i*2+j+1))
1186         return false;
1187   }
1188   return true;
1189 }
1190 
1191 /// isVPKUDUMShuffleMask - Return true if this is the shuffle mask for a
1192 /// VPKUDUM instruction, AND the VPKUDUM instruction exists for the
1193 /// current subtarget.
1194 ///
1195 /// The ShuffleKind distinguishes between big-endian operations with
1196 /// two different inputs (0), either-endian operations with two identical
1197 /// inputs (1), and little-endian operations with two different inputs (2).
1198 /// For the latter, the input operands are swapped (see PPCInstrAltivec.td).
1199 bool PPC::isVPKUDUMShuffleMask(ShuffleVectorSDNode *N, unsigned ShuffleKind,
1200                                SelectionDAG &DAG) {
1201   const PPCSubtarget& Subtarget =
1202     static_cast<const PPCSubtarget&>(DAG.getSubtarget());
1203   if (!Subtarget.hasP8Vector())
1204     return false;
1205 
1206   bool IsLE = DAG.getDataLayout().isLittleEndian();
1207   if (ShuffleKind == 0) {
1208     if (IsLE)
1209       return false;
1210     for (unsigned i = 0; i != 16; i += 4)
1211       if (!isConstantOrUndef(N->getMaskElt(i  ),  i*2+4) ||
1212           !isConstantOrUndef(N->getMaskElt(i+1),  i*2+5) ||
1213           !isConstantOrUndef(N->getMaskElt(i+2),  i*2+6) ||
1214           !isConstantOrUndef(N->getMaskElt(i+3),  i*2+7))
1215         return false;
1216   } else if (ShuffleKind == 2) {
1217     if (!IsLE)
1218       return false;
1219     for (unsigned i = 0; i != 16; i += 4)
1220       if (!isConstantOrUndef(N->getMaskElt(i  ),  i*2) ||
1221           !isConstantOrUndef(N->getMaskElt(i+1),  i*2+1) ||
1222           !isConstantOrUndef(N->getMaskElt(i+2),  i*2+2) ||
1223           !isConstantOrUndef(N->getMaskElt(i+3),  i*2+3))
1224         return false;
1225   } else if (ShuffleKind == 1) {
1226     unsigned j = IsLE ? 0 : 4;
1227     for (unsigned i = 0; i != 8; i += 4)
1228       if (!isConstantOrUndef(N->getMaskElt(i  ),  i*2+j)   ||
1229           !isConstantOrUndef(N->getMaskElt(i+1),  i*2+j+1) ||
1230           !isConstantOrUndef(N->getMaskElt(i+2),  i*2+j+2) ||
1231           !isConstantOrUndef(N->getMaskElt(i+3),  i*2+j+3) ||
1232           !isConstantOrUndef(N->getMaskElt(i+8),  i*2+j)   ||
1233           !isConstantOrUndef(N->getMaskElt(i+9),  i*2+j+1) ||
1234           !isConstantOrUndef(N->getMaskElt(i+10), i*2+j+2) ||
1235           !isConstantOrUndef(N->getMaskElt(i+11), i*2+j+3))
1236         return false;
1237   }
1238   return true;
1239 }
1240 
1241 /// isVMerge - Common function, used to match vmrg* shuffles.
1242 ///
1243 static bool isVMerge(ShuffleVectorSDNode *N, unsigned UnitSize,
1244                      unsigned LHSStart, unsigned RHSStart) {
1245   if (N->getValueType(0) != MVT::v16i8)
1246     return false;
1247   assert((UnitSize == 1 || UnitSize == 2 || UnitSize == 4) &&
1248          "Unsupported merge size!");
1249 
1250   for (unsigned i = 0; i != 8/UnitSize; ++i)     // Step over units
1251     for (unsigned j = 0; j != UnitSize; ++j) {   // Step over bytes within unit
1252       if (!isConstantOrUndef(N->getMaskElt(i*UnitSize*2+j),
1253                              LHSStart+j+i*UnitSize) ||
1254           !isConstantOrUndef(N->getMaskElt(i*UnitSize*2+UnitSize+j),
1255                              RHSStart+j+i*UnitSize))
1256         return false;
1257     }
1258   return true;
1259 }
1260 
1261 /// isVMRGLShuffleMask - Return true if this is a shuffle mask suitable for
1262 /// a VMRGL* instruction with the specified unit size (1,2 or 4 bytes).
1263 /// The ShuffleKind distinguishes between big-endian merges with two
1264 /// different inputs (0), either-endian merges with two identical inputs (1),
1265 /// and little-endian merges with two different inputs (2).  For the latter,
1266 /// the input operands are swapped (see PPCInstrAltivec.td).
1267 bool PPC::isVMRGLShuffleMask(ShuffleVectorSDNode *N, unsigned UnitSize,
1268                              unsigned ShuffleKind, SelectionDAG &DAG) {
1269   if (DAG.getDataLayout().isLittleEndian()) {
1270     if (ShuffleKind == 1) // unary
1271       return isVMerge(N, UnitSize, 0, 0);
1272     else if (ShuffleKind == 2) // swapped
1273       return isVMerge(N, UnitSize, 0, 16);
1274     else
1275       return false;
1276   } else {
1277     if (ShuffleKind == 1) // unary
1278       return isVMerge(N, UnitSize, 8, 8);
1279     else if (ShuffleKind == 0) // normal
1280       return isVMerge(N, UnitSize, 8, 24);
1281     else
1282       return false;
1283   }
1284 }
1285 
1286 /// isVMRGHShuffleMask - Return true if this is a shuffle mask suitable for
1287 /// a VMRGH* instruction with the specified unit size (1,2 or 4 bytes).
1288 /// The ShuffleKind distinguishes between big-endian merges with two
1289 /// different inputs (0), either-endian merges with two identical inputs (1),
1290 /// and little-endian merges with two different inputs (2).  For the latter,
1291 /// the input operands are swapped (see PPCInstrAltivec.td).
1292 bool PPC::isVMRGHShuffleMask(ShuffleVectorSDNode *N, unsigned UnitSize,
1293                              unsigned ShuffleKind, SelectionDAG &DAG) {
1294   if (DAG.getDataLayout().isLittleEndian()) {
1295     if (ShuffleKind == 1) // unary
1296       return isVMerge(N, UnitSize, 8, 8);
1297     else if (ShuffleKind == 2) // swapped
1298       return isVMerge(N, UnitSize, 8, 24);
1299     else
1300       return false;
1301   } else {
1302     if (ShuffleKind == 1) // unary
1303       return isVMerge(N, UnitSize, 0, 0);
1304     else if (ShuffleKind == 0) // normal
1305       return isVMerge(N, UnitSize, 0, 16);
1306     else
1307       return false;
1308   }
1309 }
1310 
1311 /**
1312  * \brief Common function used to match vmrgew and vmrgow shuffles
1313  *
1314  * The indexOffset determines whether to look for even or odd words in
1315  * the shuffle mask. This is based on the of the endianness of the target
1316  * machine.
1317  *   - Little Endian:
1318  *     - Use offset of 0 to check for odd elements
1319  *     - Use offset of 4 to check for even elements
1320  *   - Big Endian:
1321  *     - Use offset of 0 to check for even elements
1322  *     - Use offset of 4 to check for odd elements
1323  * A detailed description of the vector element ordering for little endian and
1324  * big endian can be found at
1325  * http://www.ibm.com/developerworks/library/l-ibm-xl-c-cpp-compiler/index.html
1326  * Targeting your applications - what little endian and big endian IBM XL C/C++
1327  * compiler differences mean to you
1328  *
1329  * The mask to the shuffle vector instruction specifies the indices of the
1330  * elements from the two input vectors to place in the result. The elements are
1331  * numbered in array-access order, starting with the first vector. These vectors
1332  * are always of type v16i8, thus each vector will contain 16 elements of size
1333  * 8. More info on the shuffle vector can be found in the
1334  * http://llvm.org/docs/LangRef.html#shufflevector-instruction
1335  * Language Reference.
1336  *
1337  * The RHSStartValue indicates whether the same input vectors are used (unary)
1338  * or two different input vectors are used, based on the following:
1339  *   - If the instruction uses the same vector for both inputs, the range of the
1340  *     indices will be 0 to 15. In this case, the RHSStart value passed should
1341  *     be 0.
1342  *   - If the instruction has two different vectors then the range of the
1343  *     indices will be 0 to 31. In this case, the RHSStart value passed should
1344  *     be 16 (indices 0-15 specify elements in the first vector while indices 16
1345  *     to 31 specify elements in the second vector).
1346  *
1347  * \param[in] N The shuffle vector SD Node to analyze
1348  * \param[in] IndexOffset Specifies whether to look for even or odd elements
1349  * \param[in] RHSStartValue Specifies the starting index for the righthand input
1350  * vector to the shuffle_vector instruction
1351  * \return true iff this shuffle vector represents an even or odd word merge
1352  */
1353 static bool isVMerge(ShuffleVectorSDNode *N, unsigned IndexOffset,
1354                      unsigned RHSStartValue) {
1355   if (N->getValueType(0) != MVT::v16i8)
1356     return false;
1357 
1358   for (unsigned i = 0; i < 2; ++i)
1359     for (unsigned j = 0; j < 4; ++j)
1360       if (!isConstantOrUndef(N->getMaskElt(i*4+j),
1361                              i*RHSStartValue+j+IndexOffset) ||
1362           !isConstantOrUndef(N->getMaskElt(i*4+j+8),
1363                              i*RHSStartValue+j+IndexOffset+8))
1364         return false;
1365   return true;
1366 }
1367 
1368 /**
1369  * \brief Determine if the specified shuffle mask is suitable for the vmrgew or
1370  * vmrgow instructions.
1371  *
1372  * \param[in] N The shuffle vector SD Node to analyze
1373  * \param[in] CheckEven Check for an even merge (true) or an odd merge (false)
1374  * \param[in] ShuffleKind Identify the type of merge:
1375  *   - 0 = big-endian merge with two different inputs;
1376  *   - 1 = either-endian merge with two identical inputs;
1377  *   - 2 = little-endian merge with two different inputs (inputs are swapped for
1378  *     little-endian merges).
1379  * \param[in] DAG The current SelectionDAG
1380  * \return true iff this shuffle mask
1381  */
1382 bool PPC::isVMRGEOShuffleMask(ShuffleVectorSDNode *N, bool CheckEven,
1383                               unsigned ShuffleKind, SelectionDAG &DAG) {
1384   if (DAG.getDataLayout().isLittleEndian()) {
1385     unsigned indexOffset = CheckEven ? 4 : 0;
1386     if (ShuffleKind == 1) // Unary
1387       return isVMerge(N, indexOffset, 0);
1388     else if (ShuffleKind == 2) // swapped
1389       return isVMerge(N, indexOffset, 16);
1390     else
1391       return false;
1392   }
1393   else {
1394     unsigned indexOffset = CheckEven ? 0 : 4;
1395     if (ShuffleKind == 1) // Unary
1396       return isVMerge(N, indexOffset, 0);
1397     else if (ShuffleKind == 0) // Normal
1398       return isVMerge(N, indexOffset, 16);
1399     else
1400       return false;
1401   }
1402   return false;
1403 }
1404 
1405 /// isVSLDOIShuffleMask - If this is a vsldoi shuffle mask, return the shift
1406 /// amount, otherwise return -1.
1407 /// The ShuffleKind distinguishes between big-endian operations with two
1408 /// different inputs (0), either-endian operations with two identical inputs
1409 /// (1), and little-endian operations with two different inputs (2).  For the
1410 /// latter, the input operands are swapped (see PPCInstrAltivec.td).
1411 int PPC::isVSLDOIShuffleMask(SDNode *N, unsigned ShuffleKind,
1412                              SelectionDAG &DAG) {
1413   if (N->getValueType(0) != MVT::v16i8)
1414     return -1;
1415 
1416   ShuffleVectorSDNode *SVOp = cast<ShuffleVectorSDNode>(N);
1417 
1418   // Find the first non-undef value in the shuffle mask.
1419   unsigned i;
1420   for (i = 0; i != 16 && SVOp->getMaskElt(i) < 0; ++i)
1421     /*search*/;
1422 
1423   if (i == 16) return -1;  // all undef.
1424 
1425   // Otherwise, check to see if the rest of the elements are consecutively
1426   // numbered from this value.
1427   unsigned ShiftAmt = SVOp->getMaskElt(i);
1428   if (ShiftAmt < i) return -1;
1429 
1430   ShiftAmt -= i;
1431   bool isLE = DAG.getDataLayout().isLittleEndian();
1432 
1433   if ((ShuffleKind == 0 && !isLE) || (ShuffleKind == 2 && isLE)) {
1434     // Check the rest of the elements to see if they are consecutive.
1435     for (++i; i != 16; ++i)
1436       if (!isConstantOrUndef(SVOp->getMaskElt(i), ShiftAmt+i))
1437         return -1;
1438   } else if (ShuffleKind == 1) {
1439     // Check the rest of the elements to see if they are consecutive.
1440     for (++i; i != 16; ++i)
1441       if (!isConstantOrUndef(SVOp->getMaskElt(i), (ShiftAmt+i) & 15))
1442         return -1;
1443   } else
1444     return -1;
1445 
1446   if (isLE)
1447     ShiftAmt = 16 - ShiftAmt;
1448 
1449   return ShiftAmt;
1450 }
1451 
1452 /// isSplatShuffleMask - Return true if the specified VECTOR_SHUFFLE operand
1453 /// specifies a splat of a single element that is suitable for input to
1454 /// VSPLTB/VSPLTH/VSPLTW.
1455 bool PPC::isSplatShuffleMask(ShuffleVectorSDNode *N, unsigned EltSize) {
1456   assert(N->getValueType(0) == MVT::v16i8 &&
1457          (EltSize == 1 || EltSize == 2 || EltSize == 4));
1458 
1459   // The consecutive indices need to specify an element, not part of two
1460   // different elements.  So abandon ship early if this isn't the case.
1461   if (N->getMaskElt(0) % EltSize != 0)
1462     return false;
1463 
1464   // This is a splat operation if each element of the permute is the same, and
1465   // if the value doesn't reference the second vector.
1466   unsigned ElementBase = N->getMaskElt(0);
1467 
1468   // FIXME: Handle UNDEF elements too!
1469   if (ElementBase >= 16)
1470     return false;
1471 
1472   // Check that the indices are consecutive, in the case of a multi-byte element
1473   // splatted with a v16i8 mask.
1474   for (unsigned i = 1; i != EltSize; ++i)
1475     if (N->getMaskElt(i) < 0 || N->getMaskElt(i) != (int)(i+ElementBase))
1476       return false;
1477 
1478   for (unsigned i = EltSize, e = 16; i != e; i += EltSize) {
1479     if (N->getMaskElt(i) < 0) continue;
1480     for (unsigned j = 0; j != EltSize; ++j)
1481       if (N->getMaskElt(i+j) != N->getMaskElt(j))
1482         return false;
1483   }
1484   return true;
1485 }
1486 
1487 /// getVSPLTImmediate - Return the appropriate VSPLT* immediate to splat the
1488 /// specified isSplatShuffleMask VECTOR_SHUFFLE mask.
1489 unsigned PPC::getVSPLTImmediate(SDNode *N, unsigned EltSize,
1490                                 SelectionDAG &DAG) {
1491   ShuffleVectorSDNode *SVOp = cast<ShuffleVectorSDNode>(N);
1492   assert(isSplatShuffleMask(SVOp, EltSize));
1493   if (DAG.getDataLayout().isLittleEndian())
1494     return (16 / EltSize) - 1 - (SVOp->getMaskElt(0) / EltSize);
1495   else
1496     return SVOp->getMaskElt(0) / EltSize;
1497 }
1498 
1499 /// get_VSPLTI_elt - If this is a build_vector of constants which can be formed
1500 /// by using a vspltis[bhw] instruction of the specified element size, return
1501 /// the constant being splatted.  The ByteSize field indicates the number of
1502 /// bytes of each element [124] -> [bhw].
1503 SDValue PPC::get_VSPLTI_elt(SDNode *N, unsigned ByteSize, SelectionDAG &DAG) {
1504   SDValue OpVal(nullptr, 0);
1505 
1506   // If ByteSize of the splat is bigger than the element size of the
1507   // build_vector, then we have a case where we are checking for a splat where
1508   // multiple elements of the buildvector are folded together into a single
1509   // logical element of the splat (e.g. "vsplish 1" to splat {0,1}*8).
1510   unsigned EltSize = 16/N->getNumOperands();
1511   if (EltSize < ByteSize) {
1512     unsigned Multiple = ByteSize/EltSize;   // Number of BV entries per spltval.
1513     SDValue UniquedVals[4];
1514     assert(Multiple > 1 && Multiple <= 4 && "How can this happen?");
1515 
1516     // See if all of the elements in the buildvector agree across.
1517     for (unsigned i = 0, e = N->getNumOperands(); i != e; ++i) {
1518       if (N->getOperand(i).isUndef()) continue;
1519       // If the element isn't a constant, bail fully out.
1520       if (!isa<ConstantSDNode>(N->getOperand(i))) return SDValue();
1521 
1522 
1523       if (!UniquedVals[i&(Multiple-1)].getNode())
1524         UniquedVals[i&(Multiple-1)] = N->getOperand(i);
1525       else if (UniquedVals[i&(Multiple-1)] != N->getOperand(i))
1526         return SDValue();  // no match.
1527     }
1528 
1529     // Okay, if we reached this point, UniquedVals[0..Multiple-1] contains
1530     // either constant or undef values that are identical for each chunk.  See
1531     // if these chunks can form into a larger vspltis*.
1532 
1533     // Check to see if all of the leading entries are either 0 or -1.  If
1534     // neither, then this won't fit into the immediate field.
1535     bool LeadingZero = true;
1536     bool LeadingOnes = true;
1537     for (unsigned i = 0; i != Multiple-1; ++i) {
1538       if (!UniquedVals[i].getNode()) continue;  // Must have been undefs.
1539 
1540       LeadingZero &= isNullConstant(UniquedVals[i]);
1541       LeadingOnes &= isAllOnesConstant(UniquedVals[i]);
1542     }
1543     // Finally, check the least significant entry.
1544     if (LeadingZero) {
1545       if (!UniquedVals[Multiple-1].getNode())
1546         return DAG.getTargetConstant(0, SDLoc(N), MVT::i32);  // 0,0,0,undef
1547       int Val = cast<ConstantSDNode>(UniquedVals[Multiple-1])->getZExtValue();
1548       if (Val < 16)                                   // 0,0,0,4 -> vspltisw(4)
1549         return DAG.getTargetConstant(Val, SDLoc(N), MVT::i32);
1550     }
1551     if (LeadingOnes) {
1552       if (!UniquedVals[Multiple-1].getNode())
1553         return DAG.getTargetConstant(~0U, SDLoc(N), MVT::i32); // -1,-1,-1,undef
1554       int Val =cast<ConstantSDNode>(UniquedVals[Multiple-1])->getSExtValue();
1555       if (Val >= -16)                            // -1,-1,-1,-2 -> vspltisw(-2)
1556         return DAG.getTargetConstant(Val, SDLoc(N), MVT::i32);
1557     }
1558 
1559     return SDValue();
1560   }
1561 
1562   // Check to see if this buildvec has a single non-undef value in its elements.
1563   for (unsigned i = 0, e = N->getNumOperands(); i != e; ++i) {
1564     if (N->getOperand(i).isUndef()) continue;
1565     if (!OpVal.getNode())
1566       OpVal = N->getOperand(i);
1567     else if (OpVal != N->getOperand(i))
1568       return SDValue();
1569   }
1570 
1571   if (!OpVal.getNode()) return SDValue();  // All UNDEF: use implicit def.
1572 
1573   unsigned ValSizeInBytes = EltSize;
1574   uint64_t Value = 0;
1575   if (ConstantSDNode *CN = dyn_cast<ConstantSDNode>(OpVal)) {
1576     Value = CN->getZExtValue();
1577   } else if (ConstantFPSDNode *CN = dyn_cast<ConstantFPSDNode>(OpVal)) {
1578     assert(CN->getValueType(0) == MVT::f32 && "Only one legal FP vector type!");
1579     Value = FloatToBits(CN->getValueAPF().convertToFloat());
1580   }
1581 
1582   // If the splat value is larger than the element value, then we can never do
1583   // this splat.  The only case that we could fit the replicated bits into our
1584   // immediate field for would be zero, and we prefer to use vxor for it.
1585   if (ValSizeInBytes < ByteSize) return SDValue();
1586 
1587   // If the element value is larger than the splat value, check if it consists
1588   // of a repeated bit pattern of size ByteSize.
1589   if (!APInt(ValSizeInBytes * 8, Value).isSplat(ByteSize * 8))
1590     return SDValue();
1591 
1592   // Properly sign extend the value.
1593   int MaskVal = SignExtend32(Value, ByteSize * 8);
1594 
1595   // If this is zero, don't match, zero matches ISD::isBuildVectorAllZeros.
1596   if (MaskVal == 0) return SDValue();
1597 
1598   // Finally, if this value fits in a 5 bit sext field, return it
1599   if (SignExtend32<5>(MaskVal) == MaskVal)
1600     return DAG.getTargetConstant(MaskVal, SDLoc(N), MVT::i32);
1601   return SDValue();
1602 }
1603 
1604 /// isQVALIGNIShuffleMask - If this is a qvaligni shuffle mask, return the shift
1605 /// amount, otherwise return -1.
1606 int PPC::isQVALIGNIShuffleMask(SDNode *N) {
1607   EVT VT = N->getValueType(0);
1608   if (VT != MVT::v4f64 && VT != MVT::v4f32 && VT != MVT::v4i1)
1609     return -1;
1610 
1611   ShuffleVectorSDNode *SVOp = cast<ShuffleVectorSDNode>(N);
1612 
1613   // Find the first non-undef value in the shuffle mask.
1614   unsigned i;
1615   for (i = 0; i != 4 && SVOp->getMaskElt(i) < 0; ++i)
1616     /*search*/;
1617 
1618   if (i == 4) return -1;  // all undef.
1619 
1620   // Otherwise, check to see if the rest of the elements are consecutively
1621   // numbered from this value.
1622   unsigned ShiftAmt = SVOp->getMaskElt(i);
1623   if (ShiftAmt < i) return -1;
1624   ShiftAmt -= i;
1625 
1626   // Check the rest of the elements to see if they are consecutive.
1627   for (++i; i != 4; ++i)
1628     if (!isConstantOrUndef(SVOp->getMaskElt(i), ShiftAmt+i))
1629       return -1;
1630 
1631   return ShiftAmt;
1632 }
1633 
1634 //===----------------------------------------------------------------------===//
1635 //  Addressing Mode Selection
1636 //===----------------------------------------------------------------------===//
1637 
1638 /// isIntS16Immediate - This method tests to see if the node is either a 32-bit
1639 /// or 64-bit immediate, and if the value can be accurately represented as a
1640 /// sign extension from a 16-bit value.  If so, this returns true and the
1641 /// immediate.
1642 static bool isIntS16Immediate(SDNode *N, short &Imm) {
1643   if (!isa<ConstantSDNode>(N))
1644     return false;
1645 
1646   Imm = (short)cast<ConstantSDNode>(N)->getZExtValue();
1647   if (N->getValueType(0) == MVT::i32)
1648     return Imm == (int32_t)cast<ConstantSDNode>(N)->getZExtValue();
1649   else
1650     return Imm == (int64_t)cast<ConstantSDNode>(N)->getZExtValue();
1651 }
1652 static bool isIntS16Immediate(SDValue Op, short &Imm) {
1653   return isIntS16Immediate(Op.getNode(), Imm);
1654 }
1655 
1656 /// SelectAddressRegReg - Given the specified addressed, check to see if it
1657 /// can be represented as an indexed [r+r] operation.  Returns false if it
1658 /// can be more efficiently represented with [r+imm].
1659 bool PPCTargetLowering::SelectAddressRegReg(SDValue N, SDValue &Base,
1660                                             SDValue &Index,
1661                                             SelectionDAG &DAG) const {
1662   short imm = 0;
1663   if (N.getOpcode() == ISD::ADD) {
1664     if (isIntS16Immediate(N.getOperand(1), imm))
1665       return false;    // r+i
1666     if (N.getOperand(1).getOpcode() == PPCISD::Lo)
1667       return false;    // r+i
1668 
1669     Base = N.getOperand(0);
1670     Index = N.getOperand(1);
1671     return true;
1672   } else if (N.getOpcode() == ISD::OR) {
1673     if (isIntS16Immediate(N.getOperand(1), imm))
1674       return false;    // r+i can fold it if we can.
1675 
1676     // If this is an or of disjoint bitfields, we can codegen this as an add
1677     // (for better address arithmetic) if the LHS and RHS of the OR are provably
1678     // disjoint.
1679     APInt LHSKnownZero, LHSKnownOne;
1680     APInt RHSKnownZero, RHSKnownOne;
1681     DAG.computeKnownBits(N.getOperand(0),
1682                          LHSKnownZero, LHSKnownOne);
1683 
1684     if (LHSKnownZero.getBoolValue()) {
1685       DAG.computeKnownBits(N.getOperand(1),
1686                            RHSKnownZero, RHSKnownOne);
1687       // If all of the bits are known zero on the LHS or RHS, the add won't
1688       // carry.
1689       if (~(LHSKnownZero | RHSKnownZero) == 0) {
1690         Base = N.getOperand(0);
1691         Index = N.getOperand(1);
1692         return true;
1693       }
1694     }
1695   }
1696 
1697   return false;
1698 }
1699 
1700 // If we happen to be doing an i64 load or store into a stack slot that has
1701 // less than a 4-byte alignment, then the frame-index elimination may need to
1702 // use an indexed load or store instruction (because the offset may not be a
1703 // multiple of 4). The extra register needed to hold the offset comes from the
1704 // register scavenger, and it is possible that the scavenger will need to use
1705 // an emergency spill slot. As a result, we need to make sure that a spill slot
1706 // is allocated when doing an i64 load/store into a less-than-4-byte-aligned
1707 // stack slot.
1708 static void fixupFuncForFI(SelectionDAG &DAG, int FrameIdx, EVT VT) {
1709   // FIXME: This does not handle the LWA case.
1710   if (VT != MVT::i64)
1711     return;
1712 
1713   // NOTE: We'll exclude negative FIs here, which come from argument
1714   // lowering, because there are no known test cases triggering this problem
1715   // using packed structures (or similar). We can remove this exclusion if
1716   // we find such a test case. The reason why this is so test-case driven is
1717   // because this entire 'fixup' is only to prevent crashes (from the
1718   // register scavenger) on not-really-valid inputs. For example, if we have:
1719   //   %a = alloca i1
1720   //   %b = bitcast i1* %a to i64*
1721   //   store i64* a, i64 b
1722   // then the store should really be marked as 'align 1', but is not. If it
1723   // were marked as 'align 1' then the indexed form would have been
1724   // instruction-selected initially, and the problem this 'fixup' is preventing
1725   // won't happen regardless.
1726   if (FrameIdx < 0)
1727     return;
1728 
1729   MachineFunction &MF = DAG.getMachineFunction();
1730   MachineFrameInfo *MFI = MF.getFrameInfo();
1731 
1732   unsigned Align = MFI->getObjectAlignment(FrameIdx);
1733   if (Align >= 4)
1734     return;
1735 
1736   PPCFunctionInfo *FuncInfo = MF.getInfo<PPCFunctionInfo>();
1737   FuncInfo->setHasNonRISpills();
1738 }
1739 
1740 /// Returns true if the address N can be represented by a base register plus
1741 /// a signed 16-bit displacement [r+imm], and if it is not better
1742 /// represented as reg+reg.  If Aligned is true, only accept displacements
1743 /// suitable for STD and friends, i.e. multiples of 4.
1744 bool PPCTargetLowering::SelectAddressRegImm(SDValue N, SDValue &Disp,
1745                                             SDValue &Base,
1746                                             SelectionDAG &DAG,
1747                                             bool Aligned) const {
1748   // FIXME dl should come from parent load or store, not from address
1749   SDLoc dl(N);
1750   // If this can be more profitably realized as r+r, fail.
1751   if (SelectAddressRegReg(N, Disp, Base, DAG))
1752     return false;
1753 
1754   if (N.getOpcode() == ISD::ADD) {
1755     short imm = 0;
1756     if (isIntS16Immediate(N.getOperand(1), imm) &&
1757         (!Aligned || (imm & 3) == 0)) {
1758       Disp = DAG.getTargetConstant(imm, dl, N.getValueType());
1759       if (FrameIndexSDNode *FI = dyn_cast<FrameIndexSDNode>(N.getOperand(0))) {
1760         Base = DAG.getTargetFrameIndex(FI->getIndex(), N.getValueType());
1761         fixupFuncForFI(DAG, FI->getIndex(), N.getValueType());
1762       } else {
1763         Base = N.getOperand(0);
1764       }
1765       return true; // [r+i]
1766     } else if (N.getOperand(1).getOpcode() == PPCISD::Lo) {
1767       // Match LOAD (ADD (X, Lo(G))).
1768       assert(!cast<ConstantSDNode>(N.getOperand(1).getOperand(1))->getZExtValue()
1769              && "Cannot handle constant offsets yet!");
1770       Disp = N.getOperand(1).getOperand(0);  // The global address.
1771       assert(Disp.getOpcode() == ISD::TargetGlobalAddress ||
1772              Disp.getOpcode() == ISD::TargetGlobalTLSAddress ||
1773              Disp.getOpcode() == ISD::TargetConstantPool ||
1774              Disp.getOpcode() == ISD::TargetJumpTable);
1775       Base = N.getOperand(0);
1776       return true;  // [&g+r]
1777     }
1778   } else if (N.getOpcode() == ISD::OR) {
1779     short imm = 0;
1780     if (isIntS16Immediate(N.getOperand(1), imm) &&
1781         (!Aligned || (imm & 3) == 0)) {
1782       // If this is an or of disjoint bitfields, we can codegen this as an add
1783       // (for better address arithmetic) if the LHS and RHS of the OR are
1784       // provably disjoint.
1785       APInt LHSKnownZero, LHSKnownOne;
1786       DAG.computeKnownBits(N.getOperand(0), LHSKnownZero, LHSKnownOne);
1787 
1788       if ((LHSKnownZero.getZExtValue()|~(uint64_t)imm) == ~0ULL) {
1789         // If all of the bits are known zero on the LHS or RHS, the add won't
1790         // carry.
1791         if (FrameIndexSDNode *FI =
1792               dyn_cast<FrameIndexSDNode>(N.getOperand(0))) {
1793           Base = DAG.getTargetFrameIndex(FI->getIndex(), N.getValueType());
1794           fixupFuncForFI(DAG, FI->getIndex(), N.getValueType());
1795         } else {
1796           Base = N.getOperand(0);
1797         }
1798         Disp = DAG.getTargetConstant(imm, dl, N.getValueType());
1799         return true;
1800       }
1801     }
1802   } else if (ConstantSDNode *CN = dyn_cast<ConstantSDNode>(N)) {
1803     // Loading from a constant address.
1804 
1805     // If this address fits entirely in a 16-bit sext immediate field, codegen
1806     // this as "d, 0"
1807     short Imm;
1808     if (isIntS16Immediate(CN, Imm) && (!Aligned || (Imm & 3) == 0)) {
1809       Disp = DAG.getTargetConstant(Imm, dl, CN->getValueType(0));
1810       Base = DAG.getRegister(Subtarget.isPPC64() ? PPC::ZERO8 : PPC::ZERO,
1811                              CN->getValueType(0));
1812       return true;
1813     }
1814 
1815     // Handle 32-bit sext immediates with LIS + addr mode.
1816     if ((CN->getValueType(0) == MVT::i32 ||
1817          (int64_t)CN->getZExtValue() == (int)CN->getZExtValue()) &&
1818         (!Aligned || (CN->getZExtValue() & 3) == 0)) {
1819       int Addr = (int)CN->getZExtValue();
1820 
1821       // Otherwise, break this down into an LIS + disp.
1822       Disp = DAG.getTargetConstant((short)Addr, dl, MVT::i32);
1823 
1824       Base = DAG.getTargetConstant((Addr - (signed short)Addr) >> 16, dl,
1825                                    MVT::i32);
1826       unsigned Opc = CN->getValueType(0) == MVT::i32 ? PPC::LIS : PPC::LIS8;
1827       Base = SDValue(DAG.getMachineNode(Opc, dl, CN->getValueType(0), Base), 0);
1828       return true;
1829     }
1830   }
1831 
1832   Disp = DAG.getTargetConstant(0, dl, getPointerTy(DAG.getDataLayout()));
1833   if (FrameIndexSDNode *FI = dyn_cast<FrameIndexSDNode>(N)) {
1834     Base = DAG.getTargetFrameIndex(FI->getIndex(), N.getValueType());
1835     fixupFuncForFI(DAG, FI->getIndex(), N.getValueType());
1836   } else
1837     Base = N;
1838   return true;      // [r+0]
1839 }
1840 
1841 /// SelectAddressRegRegOnly - Given the specified addressed, force it to be
1842 /// represented as an indexed [r+r] operation.
1843 bool PPCTargetLowering::SelectAddressRegRegOnly(SDValue N, SDValue &Base,
1844                                                 SDValue &Index,
1845                                                 SelectionDAG &DAG) const {
1846   // Check to see if we can easily represent this as an [r+r] address.  This
1847   // will fail if it thinks that the address is more profitably represented as
1848   // reg+imm, e.g. where imm = 0.
1849   if (SelectAddressRegReg(N, Base, Index, DAG))
1850     return true;
1851 
1852   // If the operand is an addition, always emit this as [r+r], since this is
1853   // better (for code size, and execution, as the memop does the add for free)
1854   // than emitting an explicit add.
1855   if (N.getOpcode() == ISD::ADD) {
1856     Base = N.getOperand(0);
1857     Index = N.getOperand(1);
1858     return true;
1859   }
1860 
1861   // Otherwise, do it the hard way, using R0 as the base register.
1862   Base = DAG.getRegister(Subtarget.isPPC64() ? PPC::ZERO8 : PPC::ZERO,
1863                          N.getValueType());
1864   Index = N;
1865   return true;
1866 }
1867 
1868 /// getPreIndexedAddressParts - returns true by value, base pointer and
1869 /// offset pointer and addressing mode by reference if the node's address
1870 /// can be legally represented as pre-indexed load / store address.
1871 bool PPCTargetLowering::getPreIndexedAddressParts(SDNode *N, SDValue &Base,
1872                                                   SDValue &Offset,
1873                                                   ISD::MemIndexedMode &AM,
1874                                                   SelectionDAG &DAG) const {
1875   if (DisablePPCPreinc) return false;
1876 
1877   bool isLoad = true;
1878   SDValue Ptr;
1879   EVT VT;
1880   unsigned Alignment;
1881   if (LoadSDNode *LD = dyn_cast<LoadSDNode>(N)) {
1882     Ptr = LD->getBasePtr();
1883     VT = LD->getMemoryVT();
1884     Alignment = LD->getAlignment();
1885   } else if (StoreSDNode *ST = dyn_cast<StoreSDNode>(N)) {
1886     Ptr = ST->getBasePtr();
1887     VT  = ST->getMemoryVT();
1888     Alignment = ST->getAlignment();
1889     isLoad = false;
1890   } else
1891     return false;
1892 
1893   // PowerPC doesn't have preinc load/store instructions for vectors (except
1894   // for QPX, which does have preinc r+r forms).
1895   if (VT.isVector()) {
1896     if (!Subtarget.hasQPX() || (VT != MVT::v4f64 && VT != MVT::v4f32)) {
1897       return false;
1898     } else if (SelectAddressRegRegOnly(Ptr, Offset, Base, DAG)) {
1899       AM = ISD::PRE_INC;
1900       return true;
1901     }
1902   }
1903 
1904   if (SelectAddressRegReg(Ptr, Base, Offset, DAG)) {
1905 
1906     // Common code will reject creating a pre-inc form if the base pointer
1907     // is a frame index, or if N is a store and the base pointer is either
1908     // the same as or a predecessor of the value being stored.  Check for
1909     // those situations here, and try with swapped Base/Offset instead.
1910     bool Swap = false;
1911 
1912     if (isa<FrameIndexSDNode>(Base) || isa<RegisterSDNode>(Base))
1913       Swap = true;
1914     else if (!isLoad) {
1915       SDValue Val = cast<StoreSDNode>(N)->getValue();
1916       if (Val == Base || Base.getNode()->isPredecessorOf(Val.getNode()))
1917         Swap = true;
1918     }
1919 
1920     if (Swap)
1921       std::swap(Base, Offset);
1922 
1923     AM = ISD::PRE_INC;
1924     return true;
1925   }
1926 
1927   // LDU/STU can only handle immediates that are a multiple of 4.
1928   if (VT != MVT::i64) {
1929     if (!SelectAddressRegImm(Ptr, Offset, Base, DAG, false))
1930       return false;
1931   } else {
1932     // LDU/STU need an address with at least 4-byte alignment.
1933     if (Alignment < 4)
1934       return false;
1935 
1936     if (!SelectAddressRegImm(Ptr, Offset, Base, DAG, true))
1937       return false;
1938   }
1939 
1940   if (LoadSDNode *LD = dyn_cast<LoadSDNode>(N)) {
1941     // PPC64 doesn't have lwau, but it does have lwaux.  Reject preinc load of
1942     // sext i32 to i64 when addr mode is r+i.
1943     if (LD->getValueType(0) == MVT::i64 && LD->getMemoryVT() == MVT::i32 &&
1944         LD->getExtensionType() == ISD::SEXTLOAD &&
1945         isa<ConstantSDNode>(Offset))
1946       return false;
1947   }
1948 
1949   AM = ISD::PRE_INC;
1950   return true;
1951 }
1952 
1953 //===----------------------------------------------------------------------===//
1954 //  LowerOperation implementation
1955 //===----------------------------------------------------------------------===//
1956 
1957 /// GetLabelAccessInfo - Return true if we should reference labels using a
1958 /// PICBase, set the HiOpFlags and LoOpFlags to the target MO flags.
1959 static bool GetLabelAccessInfo(const TargetMachine &TM,
1960                                const PPCSubtarget &Subtarget,
1961                                unsigned &HiOpFlags, unsigned &LoOpFlags,
1962                                const GlobalValue *GV = nullptr) {
1963   HiOpFlags = PPCII::MO_HA;
1964   LoOpFlags = PPCII::MO_LO;
1965 
1966   // Don't use the pic base if not in PIC relocation model.
1967   bool isPIC = TM.getRelocationModel() == Reloc::PIC_;
1968 
1969   if (isPIC) {
1970     HiOpFlags |= PPCII::MO_PIC_FLAG;
1971     LoOpFlags |= PPCII::MO_PIC_FLAG;
1972   }
1973 
1974   // If this is a reference to a global value that requires a non-lazy-ptr, make
1975   // sure that instruction lowering adds it.
1976   if (GV && Subtarget.hasLazyResolverStub(GV)) {
1977     HiOpFlags |= PPCII::MO_NLP_FLAG;
1978     LoOpFlags |= PPCII::MO_NLP_FLAG;
1979 
1980     if (GV->hasHiddenVisibility()) {
1981       HiOpFlags |= PPCII::MO_NLP_HIDDEN_FLAG;
1982       LoOpFlags |= PPCII::MO_NLP_HIDDEN_FLAG;
1983     }
1984   }
1985 
1986   return isPIC;
1987 }
1988 
1989 static SDValue LowerLabelRef(SDValue HiPart, SDValue LoPart, bool isPIC,
1990                              SelectionDAG &DAG) {
1991   SDLoc DL(HiPart);
1992   EVT PtrVT = HiPart.getValueType();
1993   SDValue Zero = DAG.getConstant(0, DL, PtrVT);
1994 
1995   SDValue Hi = DAG.getNode(PPCISD::Hi, DL, PtrVT, HiPart, Zero);
1996   SDValue Lo = DAG.getNode(PPCISD::Lo, DL, PtrVT, LoPart, Zero);
1997 
1998   // With PIC, the first instruction is actually "GR+hi(&G)".
1999   if (isPIC)
2000     Hi = DAG.getNode(ISD::ADD, DL, PtrVT,
2001                      DAG.getNode(PPCISD::GlobalBaseReg, DL, PtrVT), Hi);
2002 
2003   // Generate non-pic code that has direct accesses to the constant pool.
2004   // The address of the global is just (hi(&g)+lo(&g)).
2005   return DAG.getNode(ISD::ADD, DL, PtrVT, Hi, Lo);
2006 }
2007 
2008 static void setUsesTOCBasePtr(MachineFunction &MF) {
2009   PPCFunctionInfo *FuncInfo = MF.getInfo<PPCFunctionInfo>();
2010   FuncInfo->setUsesTOCBasePtr();
2011 }
2012 
2013 static void setUsesTOCBasePtr(SelectionDAG &DAG) {
2014   setUsesTOCBasePtr(DAG.getMachineFunction());
2015 }
2016 
2017 static SDValue getTOCEntry(SelectionDAG &DAG, SDLoc dl, bool Is64Bit,
2018                            SDValue GA) {
2019   EVT VT = Is64Bit ? MVT::i64 : MVT::i32;
2020   SDValue Reg = Is64Bit ? DAG.getRegister(PPC::X2, VT) :
2021                 DAG.getNode(PPCISD::GlobalBaseReg, dl, VT);
2022 
2023   SDValue Ops[] = { GA, Reg };
2024   return DAG.getMemIntrinsicNode(
2025       PPCISD::TOC_ENTRY, dl, DAG.getVTList(VT, MVT::Other), Ops, VT,
2026       MachinePointerInfo::getGOT(DAG.getMachineFunction()), 0, false, true,
2027       false, 0);
2028 }
2029 
2030 SDValue PPCTargetLowering::LowerConstantPool(SDValue Op,
2031                                              SelectionDAG &DAG) const {
2032   EVT PtrVT = Op.getValueType();
2033   ConstantPoolSDNode *CP = cast<ConstantPoolSDNode>(Op);
2034   const Constant *C = CP->getConstVal();
2035 
2036   // 64-bit SVR4 ABI code is always position-independent.
2037   // The actual address of the GlobalValue is stored in the TOC.
2038   if (Subtarget.isSVR4ABI() && Subtarget.isPPC64()) {
2039     setUsesTOCBasePtr(DAG);
2040     SDValue GA = DAG.getTargetConstantPool(C, PtrVT, CP->getAlignment(), 0);
2041     return getTOCEntry(DAG, SDLoc(CP), true, GA);
2042   }
2043 
2044   unsigned MOHiFlag, MOLoFlag;
2045   bool isPIC =
2046       GetLabelAccessInfo(DAG.getTarget(), Subtarget, MOHiFlag, MOLoFlag);
2047 
2048   if (isPIC && Subtarget.isSVR4ABI()) {
2049     SDValue GA = DAG.getTargetConstantPool(C, PtrVT, CP->getAlignment(),
2050                                            PPCII::MO_PIC_FLAG);
2051     return getTOCEntry(DAG, SDLoc(CP), false, GA);
2052   }
2053 
2054   SDValue CPIHi =
2055     DAG.getTargetConstantPool(C, PtrVT, CP->getAlignment(), 0, MOHiFlag);
2056   SDValue CPILo =
2057     DAG.getTargetConstantPool(C, PtrVT, CP->getAlignment(), 0, MOLoFlag);
2058   return LowerLabelRef(CPIHi, CPILo, isPIC, DAG);
2059 }
2060 
2061 SDValue PPCTargetLowering::LowerJumpTable(SDValue Op, SelectionDAG &DAG) const {
2062   EVT PtrVT = Op.getValueType();
2063   JumpTableSDNode *JT = cast<JumpTableSDNode>(Op);
2064 
2065   // 64-bit SVR4 ABI code is always position-independent.
2066   // The actual address of the GlobalValue is stored in the TOC.
2067   if (Subtarget.isSVR4ABI() && Subtarget.isPPC64()) {
2068     setUsesTOCBasePtr(DAG);
2069     SDValue GA = DAG.getTargetJumpTable(JT->getIndex(), PtrVT);
2070     return getTOCEntry(DAG, SDLoc(JT), true, GA);
2071   }
2072 
2073   unsigned MOHiFlag, MOLoFlag;
2074   bool isPIC =
2075       GetLabelAccessInfo(DAG.getTarget(), Subtarget, MOHiFlag, MOLoFlag);
2076 
2077   if (isPIC && Subtarget.isSVR4ABI()) {
2078     SDValue GA = DAG.getTargetJumpTable(JT->getIndex(), PtrVT,
2079                                         PPCII::MO_PIC_FLAG);
2080     return getTOCEntry(DAG, SDLoc(GA), false, GA);
2081   }
2082 
2083   SDValue JTIHi = DAG.getTargetJumpTable(JT->getIndex(), PtrVT, MOHiFlag);
2084   SDValue JTILo = DAG.getTargetJumpTable(JT->getIndex(), PtrVT, MOLoFlag);
2085   return LowerLabelRef(JTIHi, JTILo, isPIC, DAG);
2086 }
2087 
2088 SDValue PPCTargetLowering::LowerBlockAddress(SDValue Op,
2089                                              SelectionDAG &DAG) const {
2090   EVT PtrVT = Op.getValueType();
2091   BlockAddressSDNode *BASDN = cast<BlockAddressSDNode>(Op);
2092   const BlockAddress *BA = BASDN->getBlockAddress();
2093 
2094   // 64-bit SVR4 ABI code is always position-independent.
2095   // The actual BlockAddress is stored in the TOC.
2096   if (Subtarget.isSVR4ABI() && Subtarget.isPPC64()) {
2097     setUsesTOCBasePtr(DAG);
2098     SDValue GA = DAG.getTargetBlockAddress(BA, PtrVT, BASDN->getOffset());
2099     return getTOCEntry(DAG, SDLoc(BASDN), true, GA);
2100   }
2101 
2102   unsigned MOHiFlag, MOLoFlag;
2103   bool isPIC =
2104       GetLabelAccessInfo(DAG.getTarget(), Subtarget, MOHiFlag, MOLoFlag);
2105   SDValue TgtBAHi = DAG.getTargetBlockAddress(BA, PtrVT, 0, MOHiFlag);
2106   SDValue TgtBALo = DAG.getTargetBlockAddress(BA, PtrVT, 0, MOLoFlag);
2107   return LowerLabelRef(TgtBAHi, TgtBALo, isPIC, DAG);
2108 }
2109 
2110 SDValue PPCTargetLowering::LowerGlobalTLSAddress(SDValue Op,
2111                                               SelectionDAG &DAG) const {
2112 
2113   // FIXME: TLS addresses currently use medium model code sequences,
2114   // which is the most useful form.  Eventually support for small and
2115   // large models could be added if users need it, at the cost of
2116   // additional complexity.
2117   GlobalAddressSDNode *GA = cast<GlobalAddressSDNode>(Op);
2118   if (DAG.getTarget().Options.EmulatedTLS)
2119     return LowerToTLSEmulatedModel(GA, DAG);
2120 
2121   SDLoc dl(GA);
2122   const GlobalValue *GV = GA->getGlobal();
2123   EVT PtrVT = getPointerTy(DAG.getDataLayout());
2124   bool is64bit = Subtarget.isPPC64();
2125   const Module *M = DAG.getMachineFunction().getFunction()->getParent();
2126   PICLevel::Level picLevel = M->getPICLevel();
2127 
2128   TLSModel::Model Model = getTargetMachine().getTLSModel(GV);
2129 
2130   if (Model == TLSModel::LocalExec) {
2131     SDValue TGAHi = DAG.getTargetGlobalAddress(GV, dl, PtrVT, 0,
2132                                                PPCII::MO_TPREL_HA);
2133     SDValue TGALo = DAG.getTargetGlobalAddress(GV, dl, PtrVT, 0,
2134                                                PPCII::MO_TPREL_LO);
2135     SDValue TLSReg = DAG.getRegister(is64bit ? PPC::X13 : PPC::R2,
2136                                      is64bit ? MVT::i64 : MVT::i32);
2137     SDValue Hi = DAG.getNode(PPCISD::Hi, dl, PtrVT, TGAHi, TLSReg);
2138     return DAG.getNode(PPCISD::Lo, dl, PtrVT, TGALo, Hi);
2139   }
2140 
2141   if (Model == TLSModel::InitialExec) {
2142     SDValue TGA = DAG.getTargetGlobalAddress(GV, dl, PtrVT, 0, 0);
2143     SDValue TGATLS = DAG.getTargetGlobalAddress(GV, dl, PtrVT, 0,
2144                                                 PPCII::MO_TLS);
2145     SDValue GOTPtr;
2146     if (is64bit) {
2147       setUsesTOCBasePtr(DAG);
2148       SDValue GOTReg = DAG.getRegister(PPC::X2, MVT::i64);
2149       GOTPtr = DAG.getNode(PPCISD::ADDIS_GOT_TPREL_HA, dl,
2150                            PtrVT, GOTReg, TGA);
2151     } else
2152       GOTPtr = DAG.getNode(PPCISD::PPC32_GOT, dl, PtrVT);
2153     SDValue TPOffset = DAG.getNode(PPCISD::LD_GOT_TPREL_L, dl,
2154                                    PtrVT, TGA, GOTPtr);
2155     return DAG.getNode(PPCISD::ADD_TLS, dl, PtrVT, TPOffset, TGATLS);
2156   }
2157 
2158   if (Model == TLSModel::GeneralDynamic) {
2159     SDValue TGA = DAG.getTargetGlobalAddress(GV, dl, PtrVT, 0, 0);
2160     SDValue GOTPtr;
2161     if (is64bit) {
2162       setUsesTOCBasePtr(DAG);
2163       SDValue GOTReg = DAG.getRegister(PPC::X2, MVT::i64);
2164       GOTPtr = DAG.getNode(PPCISD::ADDIS_TLSGD_HA, dl, PtrVT,
2165                                    GOTReg, TGA);
2166     } else {
2167       if (picLevel == PICLevel::Small)
2168         GOTPtr = DAG.getNode(PPCISD::GlobalBaseReg, dl, PtrVT);
2169       else
2170         GOTPtr = DAG.getNode(PPCISD::PPC32_PICGOT, dl, PtrVT);
2171     }
2172     return DAG.getNode(PPCISD::ADDI_TLSGD_L_ADDR, dl, PtrVT,
2173                        GOTPtr, TGA, TGA);
2174   }
2175 
2176   if (Model == TLSModel::LocalDynamic) {
2177     SDValue TGA = DAG.getTargetGlobalAddress(GV, dl, PtrVT, 0, 0);
2178     SDValue GOTPtr;
2179     if (is64bit) {
2180       setUsesTOCBasePtr(DAG);
2181       SDValue GOTReg = DAG.getRegister(PPC::X2, MVT::i64);
2182       GOTPtr = DAG.getNode(PPCISD::ADDIS_TLSLD_HA, dl, PtrVT,
2183                            GOTReg, TGA);
2184     } else {
2185       if (picLevel == PICLevel::Small)
2186         GOTPtr = DAG.getNode(PPCISD::GlobalBaseReg, dl, PtrVT);
2187       else
2188         GOTPtr = DAG.getNode(PPCISD::PPC32_PICGOT, dl, PtrVT);
2189     }
2190     SDValue TLSAddr = DAG.getNode(PPCISD::ADDI_TLSLD_L_ADDR, dl,
2191                                   PtrVT, GOTPtr, TGA, TGA);
2192     SDValue DtvOffsetHi = DAG.getNode(PPCISD::ADDIS_DTPREL_HA, dl,
2193                                       PtrVT, TLSAddr, TGA);
2194     return DAG.getNode(PPCISD::ADDI_DTPREL_L, dl, PtrVT, DtvOffsetHi, TGA);
2195   }
2196 
2197   llvm_unreachable("Unknown TLS model!");
2198 }
2199 
2200 SDValue PPCTargetLowering::LowerGlobalAddress(SDValue Op,
2201                                               SelectionDAG &DAG) const {
2202   EVT PtrVT = Op.getValueType();
2203   GlobalAddressSDNode *GSDN = cast<GlobalAddressSDNode>(Op);
2204   SDLoc DL(GSDN);
2205   const GlobalValue *GV = GSDN->getGlobal();
2206 
2207   // 64-bit SVR4 ABI code is always position-independent.
2208   // The actual address of the GlobalValue is stored in the TOC.
2209   if (Subtarget.isSVR4ABI() && Subtarget.isPPC64()) {
2210     setUsesTOCBasePtr(DAG);
2211     SDValue GA = DAG.getTargetGlobalAddress(GV, DL, PtrVT, GSDN->getOffset());
2212     return getTOCEntry(DAG, DL, true, GA);
2213   }
2214 
2215   unsigned MOHiFlag, MOLoFlag;
2216   bool isPIC =
2217       GetLabelAccessInfo(DAG.getTarget(), Subtarget, MOHiFlag, MOLoFlag, GV);
2218 
2219   if (isPIC && Subtarget.isSVR4ABI()) {
2220     SDValue GA = DAG.getTargetGlobalAddress(GV, DL, PtrVT,
2221                                             GSDN->getOffset(),
2222                                             PPCII::MO_PIC_FLAG);
2223     return getTOCEntry(DAG, DL, false, GA);
2224   }
2225 
2226   SDValue GAHi =
2227     DAG.getTargetGlobalAddress(GV, DL, PtrVT, GSDN->getOffset(), MOHiFlag);
2228   SDValue GALo =
2229     DAG.getTargetGlobalAddress(GV, DL, PtrVT, GSDN->getOffset(), MOLoFlag);
2230 
2231   SDValue Ptr = LowerLabelRef(GAHi, GALo, isPIC, DAG);
2232 
2233   // If the global reference is actually to a non-lazy-pointer, we have to do an
2234   // extra load to get the address of the global.
2235   if (MOHiFlag & PPCII::MO_NLP_FLAG)
2236     Ptr = DAG.getLoad(PtrVT, DL, DAG.getEntryNode(), Ptr, MachinePointerInfo(),
2237                       false, false, false, 0);
2238   return Ptr;
2239 }
2240 
2241 SDValue PPCTargetLowering::LowerSETCC(SDValue Op, SelectionDAG &DAG) const {
2242   ISD::CondCode CC = cast<CondCodeSDNode>(Op.getOperand(2))->get();
2243   SDLoc dl(Op);
2244 
2245   if (Op.getValueType() == MVT::v2i64) {
2246     // When the operands themselves are v2i64 values, we need to do something
2247     // special because VSX has no underlying comparison operations for these.
2248     if (Op.getOperand(0).getValueType() == MVT::v2i64) {
2249       // Equality can be handled by casting to the legal type for Altivec
2250       // comparisons, everything else needs to be expanded.
2251       if (CC == ISD::SETEQ || CC == ISD::SETNE) {
2252         return DAG.getNode(ISD::BITCAST, dl, MVT::v2i64,
2253                  DAG.getSetCC(dl, MVT::v4i32,
2254                    DAG.getNode(ISD::BITCAST, dl, MVT::v4i32, Op.getOperand(0)),
2255                    DAG.getNode(ISD::BITCAST, dl, MVT::v4i32, Op.getOperand(1)),
2256                    CC));
2257       }
2258 
2259       return SDValue();
2260     }
2261 
2262     // We handle most of these in the usual way.
2263     return Op;
2264   }
2265 
2266   // If we're comparing for equality to zero, expose the fact that this is
2267   // implented as a ctlz/srl pair on ppc, so that the dag combiner can
2268   // fold the new nodes.
2269   if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op.getOperand(1))) {
2270     if (C->isNullValue() && CC == ISD::SETEQ) {
2271       EVT VT = Op.getOperand(0).getValueType();
2272       SDValue Zext = Op.getOperand(0);
2273       if (VT.bitsLT(MVT::i32)) {
2274         VT = MVT::i32;
2275         Zext = DAG.getNode(ISD::ZERO_EXTEND, dl, VT, Op.getOperand(0));
2276       }
2277       unsigned Log2b = Log2_32(VT.getSizeInBits());
2278       SDValue Clz = DAG.getNode(ISD::CTLZ, dl, VT, Zext);
2279       SDValue Scc = DAG.getNode(ISD::SRL, dl, VT, Clz,
2280                                 DAG.getConstant(Log2b, dl, MVT::i32));
2281       return DAG.getNode(ISD::TRUNCATE, dl, MVT::i32, Scc);
2282     }
2283     // Leave comparisons against 0 and -1 alone for now, since they're usually
2284     // optimized.  FIXME: revisit this when we can custom lower all setcc
2285     // optimizations.
2286     if (C->isAllOnesValue() || C->isNullValue())
2287       return SDValue();
2288   }
2289 
2290   // If we have an integer seteq/setne, turn it into a compare against zero
2291   // by xor'ing the rhs with the lhs, which is faster than setting a
2292   // condition register, reading it back out, and masking the correct bit.  The
2293   // normal approach here uses sub to do this instead of xor.  Using xor exposes
2294   // the result to other bit-twiddling opportunities.
2295   EVT LHSVT = Op.getOperand(0).getValueType();
2296   if (LHSVT.isInteger() && (CC == ISD::SETEQ || CC == ISD::SETNE)) {
2297     EVT VT = Op.getValueType();
2298     SDValue Sub = DAG.getNode(ISD::XOR, dl, LHSVT, Op.getOperand(0),
2299                                 Op.getOperand(1));
2300     return DAG.getSetCC(dl, VT, Sub, DAG.getConstant(0, dl, LHSVT), CC);
2301   }
2302   return SDValue();
2303 }
2304 
2305 SDValue PPCTargetLowering::LowerVAARG(SDValue Op, SelectionDAG &DAG,
2306                                       const PPCSubtarget &Subtarget) const {
2307   SDNode *Node = Op.getNode();
2308   EVT VT = Node->getValueType(0);
2309   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(DAG.getDataLayout());
2310   SDValue InChain = Node->getOperand(0);
2311   SDValue VAListPtr = Node->getOperand(1);
2312   const Value *SV = cast<SrcValueSDNode>(Node->getOperand(2))->getValue();
2313   SDLoc dl(Node);
2314 
2315   assert(!Subtarget.isPPC64() && "LowerVAARG is PPC32 only");
2316 
2317   // gpr_index
2318   SDValue GprIndex = DAG.getExtLoad(ISD::ZEXTLOAD, dl, MVT::i32, InChain,
2319                                     VAListPtr, MachinePointerInfo(SV), MVT::i8,
2320                                     false, false, false, 0);
2321   InChain = GprIndex.getValue(1);
2322 
2323   if (VT == MVT::i64) {
2324     // Check if GprIndex is even
2325     SDValue GprAnd = DAG.getNode(ISD::AND, dl, MVT::i32, GprIndex,
2326                                  DAG.getConstant(1, dl, MVT::i32));
2327     SDValue CC64 = DAG.getSetCC(dl, MVT::i32, GprAnd,
2328                                 DAG.getConstant(0, dl, MVT::i32), ISD::SETNE);
2329     SDValue GprIndexPlusOne = DAG.getNode(ISD::ADD, dl, MVT::i32, GprIndex,
2330                                           DAG.getConstant(1, dl, MVT::i32));
2331     // Align GprIndex to be even if it isn't
2332     GprIndex = DAG.getNode(ISD::SELECT, dl, MVT::i32, CC64, GprIndexPlusOne,
2333                            GprIndex);
2334   }
2335 
2336   // fpr index is 1 byte after gpr
2337   SDValue FprPtr = DAG.getNode(ISD::ADD, dl, PtrVT, VAListPtr,
2338                                DAG.getConstant(1, dl, MVT::i32));
2339 
2340   // fpr
2341   SDValue FprIndex = DAG.getExtLoad(ISD::ZEXTLOAD, dl, MVT::i32, InChain,
2342                                     FprPtr, MachinePointerInfo(SV), MVT::i8,
2343                                     false, false, false, 0);
2344   InChain = FprIndex.getValue(1);
2345 
2346   SDValue RegSaveAreaPtr = DAG.getNode(ISD::ADD, dl, PtrVT, VAListPtr,
2347                                        DAG.getConstant(8, dl, MVT::i32));
2348 
2349   SDValue OverflowAreaPtr = DAG.getNode(ISD::ADD, dl, PtrVT, VAListPtr,
2350                                         DAG.getConstant(4, dl, MVT::i32));
2351 
2352   // areas
2353   SDValue OverflowArea = DAG.getLoad(MVT::i32, dl, InChain, OverflowAreaPtr,
2354                                      MachinePointerInfo(), false, false,
2355                                      false, 0);
2356   InChain = OverflowArea.getValue(1);
2357 
2358   SDValue RegSaveArea = DAG.getLoad(MVT::i32, dl, InChain, RegSaveAreaPtr,
2359                                     MachinePointerInfo(), false, false,
2360                                     false, 0);
2361   InChain = RegSaveArea.getValue(1);
2362 
2363   // select overflow_area if index > 8
2364   SDValue CC = DAG.getSetCC(dl, MVT::i32, VT.isInteger() ? GprIndex : FprIndex,
2365                             DAG.getConstant(8, dl, MVT::i32), ISD::SETLT);
2366 
2367   // adjustment constant gpr_index * 4/8
2368   SDValue RegConstant = DAG.getNode(ISD::MUL, dl, MVT::i32,
2369                                     VT.isInteger() ? GprIndex : FprIndex,
2370                                     DAG.getConstant(VT.isInteger() ? 4 : 8, dl,
2371                                                     MVT::i32));
2372 
2373   // OurReg = RegSaveArea + RegConstant
2374   SDValue OurReg = DAG.getNode(ISD::ADD, dl, PtrVT, RegSaveArea,
2375                                RegConstant);
2376 
2377   // Floating types are 32 bytes into RegSaveArea
2378   if (VT.isFloatingPoint())
2379     OurReg = DAG.getNode(ISD::ADD, dl, PtrVT, OurReg,
2380                          DAG.getConstant(32, dl, MVT::i32));
2381 
2382   // increase {f,g}pr_index by 1 (or 2 if VT is i64)
2383   SDValue IndexPlus1 = DAG.getNode(ISD::ADD, dl, MVT::i32,
2384                                    VT.isInteger() ? GprIndex : FprIndex,
2385                                    DAG.getConstant(VT == MVT::i64 ? 2 : 1, dl,
2386                                                    MVT::i32));
2387 
2388   InChain = DAG.getTruncStore(InChain, dl, IndexPlus1,
2389                               VT.isInteger() ? VAListPtr : FprPtr,
2390                               MachinePointerInfo(SV),
2391                               MVT::i8, false, false, 0);
2392 
2393   // determine if we should load from reg_save_area or overflow_area
2394   SDValue Result = DAG.getNode(ISD::SELECT, dl, PtrVT, CC, OurReg, OverflowArea);
2395 
2396   // increase overflow_area by 4/8 if gpr/fpr > 8
2397   SDValue OverflowAreaPlusN = DAG.getNode(ISD::ADD, dl, PtrVT, OverflowArea,
2398                                           DAG.getConstant(VT.isInteger() ? 4 : 8,
2399                                           dl, MVT::i32));
2400 
2401   OverflowArea = DAG.getNode(ISD::SELECT, dl, MVT::i32, CC, OverflowArea,
2402                              OverflowAreaPlusN);
2403 
2404   InChain = DAG.getTruncStore(InChain, dl, OverflowArea,
2405                               OverflowAreaPtr,
2406                               MachinePointerInfo(),
2407                               MVT::i32, false, false, 0);
2408 
2409   return DAG.getLoad(VT, dl, InChain, Result, MachinePointerInfo(),
2410                      false, false, false, 0);
2411 }
2412 
2413 SDValue PPCTargetLowering::LowerVACOPY(SDValue Op, SelectionDAG &DAG,
2414                                        const PPCSubtarget &Subtarget) const {
2415   assert(!Subtarget.isPPC64() && "LowerVACOPY is PPC32 only");
2416 
2417   // We have to copy the entire va_list struct:
2418   // 2*sizeof(char) + 2 Byte alignment + 2*sizeof(char*) = 12 Byte
2419   return DAG.getMemcpy(Op.getOperand(0), Op,
2420                        Op.getOperand(1), Op.getOperand(2),
2421                        DAG.getConstant(12, SDLoc(Op), MVT::i32), 8, false, true,
2422                        false, MachinePointerInfo(), MachinePointerInfo());
2423 }
2424 
2425 SDValue PPCTargetLowering::LowerADJUST_TRAMPOLINE(SDValue Op,
2426                                                   SelectionDAG &DAG) const {
2427   return Op.getOperand(0);
2428 }
2429 
2430 SDValue PPCTargetLowering::LowerINIT_TRAMPOLINE(SDValue Op,
2431                                                 SelectionDAG &DAG) const {
2432   SDValue Chain = Op.getOperand(0);
2433   SDValue Trmp = Op.getOperand(1); // trampoline
2434   SDValue FPtr = Op.getOperand(2); // nested function
2435   SDValue Nest = Op.getOperand(3); // 'nest' parameter value
2436   SDLoc dl(Op);
2437 
2438   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(DAG.getDataLayout());
2439   bool isPPC64 = (PtrVT == MVT::i64);
2440   Type *IntPtrTy = DAG.getDataLayout().getIntPtrType(*DAG.getContext());
2441 
2442   TargetLowering::ArgListTy Args;
2443   TargetLowering::ArgListEntry Entry;
2444 
2445   Entry.Ty = IntPtrTy;
2446   Entry.Node = Trmp; Args.push_back(Entry);
2447 
2448   // TrampSize == (isPPC64 ? 48 : 40);
2449   Entry.Node = DAG.getConstant(isPPC64 ? 48 : 40, dl,
2450                                isPPC64 ? MVT::i64 : MVT::i32);
2451   Args.push_back(Entry);
2452 
2453   Entry.Node = FPtr; Args.push_back(Entry);
2454   Entry.Node = Nest; Args.push_back(Entry);
2455 
2456   // Lower to a call to __trampoline_setup(Trmp, TrampSize, FPtr, ctx_reg)
2457   TargetLowering::CallLoweringInfo CLI(DAG);
2458   CLI.setDebugLoc(dl).setChain(Chain)
2459     .setCallee(CallingConv::C, Type::getVoidTy(*DAG.getContext()),
2460                DAG.getExternalSymbol("__trampoline_setup", PtrVT),
2461                std::move(Args), 0);
2462 
2463   std::pair<SDValue, SDValue> CallResult = LowerCallTo(CLI);
2464   return CallResult.second;
2465 }
2466 
2467 SDValue PPCTargetLowering::LowerVASTART(SDValue Op, SelectionDAG &DAG,
2468                                         const PPCSubtarget &Subtarget) const {
2469   MachineFunction &MF = DAG.getMachineFunction();
2470   PPCFunctionInfo *FuncInfo = MF.getInfo<PPCFunctionInfo>();
2471 
2472   SDLoc dl(Op);
2473 
2474   if (Subtarget.isDarwinABI() || Subtarget.isPPC64()) {
2475     // vastart just stores the address of the VarArgsFrameIndex slot into the
2476     // memory location argument.
2477     EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(MF.getDataLayout());
2478     SDValue FR = DAG.getFrameIndex(FuncInfo->getVarArgsFrameIndex(), PtrVT);
2479     const Value *SV = cast<SrcValueSDNode>(Op.getOperand(2))->getValue();
2480     return DAG.getStore(Op.getOperand(0), dl, FR, Op.getOperand(1),
2481                         MachinePointerInfo(SV),
2482                         false, false, 0);
2483   }
2484 
2485   // For the 32-bit SVR4 ABI we follow the layout of the va_list struct.
2486   // We suppose the given va_list is already allocated.
2487   //
2488   // typedef struct {
2489   //  char gpr;     /* index into the array of 8 GPRs
2490   //                 * stored in the register save area
2491   //                 * gpr=0 corresponds to r3,
2492   //                 * gpr=1 to r4, etc.
2493   //                 */
2494   //  char fpr;     /* index into the array of 8 FPRs
2495   //                 * stored in the register save area
2496   //                 * fpr=0 corresponds to f1,
2497   //                 * fpr=1 to f2, etc.
2498   //                 */
2499   //  char *overflow_arg_area;
2500   //                /* location on stack that holds
2501   //                 * the next overflow argument
2502   //                 */
2503   //  char *reg_save_area;
2504   //               /* where r3:r10 and f1:f8 (if saved)
2505   //                * are stored
2506   //                */
2507   // } va_list[1];
2508 
2509   SDValue ArgGPR = DAG.getConstant(FuncInfo->getVarArgsNumGPR(), dl, MVT::i32);
2510   SDValue ArgFPR = DAG.getConstant(FuncInfo->getVarArgsNumFPR(), dl, MVT::i32);
2511 
2512   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(MF.getDataLayout());
2513 
2514   SDValue StackOffsetFI = DAG.getFrameIndex(FuncInfo->getVarArgsStackOffset(),
2515                                             PtrVT);
2516   SDValue FR = DAG.getFrameIndex(FuncInfo->getVarArgsFrameIndex(),
2517                                  PtrVT);
2518 
2519   uint64_t FrameOffset = PtrVT.getSizeInBits()/8;
2520   SDValue ConstFrameOffset = DAG.getConstant(FrameOffset, dl, PtrVT);
2521 
2522   uint64_t StackOffset = PtrVT.getSizeInBits()/8 - 1;
2523   SDValue ConstStackOffset = DAG.getConstant(StackOffset, dl, PtrVT);
2524 
2525   uint64_t FPROffset = 1;
2526   SDValue ConstFPROffset = DAG.getConstant(FPROffset, dl, PtrVT);
2527 
2528   const Value *SV = cast<SrcValueSDNode>(Op.getOperand(2))->getValue();
2529 
2530   // Store first byte : number of int regs
2531   SDValue firstStore = DAG.getTruncStore(Op.getOperand(0), dl, ArgGPR,
2532                                          Op.getOperand(1),
2533                                          MachinePointerInfo(SV),
2534                                          MVT::i8, false, false, 0);
2535   uint64_t nextOffset = FPROffset;
2536   SDValue nextPtr = DAG.getNode(ISD::ADD, dl, PtrVT, Op.getOperand(1),
2537                                   ConstFPROffset);
2538 
2539   // Store second byte : number of float regs
2540   SDValue secondStore =
2541     DAG.getTruncStore(firstStore, dl, ArgFPR, nextPtr,
2542                       MachinePointerInfo(SV, nextOffset), MVT::i8,
2543                       false, false, 0);
2544   nextOffset += StackOffset;
2545   nextPtr = DAG.getNode(ISD::ADD, dl, PtrVT, nextPtr, ConstStackOffset);
2546 
2547   // Store second word : arguments given on stack
2548   SDValue thirdStore =
2549     DAG.getStore(secondStore, dl, StackOffsetFI, nextPtr,
2550                  MachinePointerInfo(SV, nextOffset),
2551                  false, false, 0);
2552   nextOffset += FrameOffset;
2553   nextPtr = DAG.getNode(ISD::ADD, dl, PtrVT, nextPtr, ConstFrameOffset);
2554 
2555   // Store third word : arguments given in registers
2556   return DAG.getStore(thirdStore, dl, FR, nextPtr,
2557                       MachinePointerInfo(SV, nextOffset),
2558                       false, false, 0);
2559 
2560 }
2561 
2562 #include "PPCGenCallingConv.inc"
2563 
2564 // Function whose sole purpose is to kill compiler warnings
2565 // stemming from unused functions included from PPCGenCallingConv.inc.
2566 CCAssignFn *PPCTargetLowering::useFastISelCCs(unsigned Flag) const {
2567   return Flag ? CC_PPC64_ELF_FIS : RetCC_PPC64_ELF_FIS;
2568 }
2569 
2570 bool llvm::CC_PPC32_SVR4_Custom_Dummy(unsigned &ValNo, MVT &ValVT, MVT &LocVT,
2571                                       CCValAssign::LocInfo &LocInfo,
2572                                       ISD::ArgFlagsTy &ArgFlags,
2573                                       CCState &State) {
2574   return true;
2575 }
2576 
2577 bool llvm::CC_PPC32_SVR4_Custom_AlignArgRegs(unsigned &ValNo, MVT &ValVT,
2578                                              MVT &LocVT,
2579                                              CCValAssign::LocInfo &LocInfo,
2580                                              ISD::ArgFlagsTy &ArgFlags,
2581                                              CCState &State) {
2582   static const MCPhysReg ArgRegs[] = {
2583     PPC::R3, PPC::R4, PPC::R5, PPC::R6,
2584     PPC::R7, PPC::R8, PPC::R9, PPC::R10,
2585   };
2586   const unsigned NumArgRegs = array_lengthof(ArgRegs);
2587 
2588   unsigned RegNum = State.getFirstUnallocated(ArgRegs);
2589 
2590   // Skip one register if the first unallocated register has an even register
2591   // number and there are still argument registers available which have not been
2592   // allocated yet. RegNum is actually an index into ArgRegs, which means we
2593   // need to skip a register if RegNum is odd.
2594   if (RegNum != NumArgRegs && RegNum % 2 == 1) {
2595     State.AllocateReg(ArgRegs[RegNum]);
2596   }
2597 
2598   // Always return false here, as this function only makes sure that the first
2599   // unallocated register has an odd register number and does not actually
2600   // allocate a register for the current argument.
2601   return false;
2602 }
2603 
2604 bool llvm::CC_PPC32_SVR4_Custom_AlignFPArgRegs(unsigned &ValNo, MVT &ValVT,
2605                                                MVT &LocVT,
2606                                                CCValAssign::LocInfo &LocInfo,
2607                                                ISD::ArgFlagsTy &ArgFlags,
2608                                                CCState &State) {
2609   static const MCPhysReg ArgRegs[] = {
2610     PPC::F1, PPC::F2, PPC::F3, PPC::F4, PPC::F5, PPC::F6, PPC::F7,
2611     PPC::F8
2612   };
2613 
2614   const unsigned NumArgRegs = array_lengthof(ArgRegs);
2615 
2616   unsigned RegNum = State.getFirstUnallocated(ArgRegs);
2617 
2618   // If there is only one Floating-point register left we need to put both f64
2619   // values of a split ppc_fp128 value on the stack.
2620   if (RegNum != NumArgRegs && ArgRegs[RegNum] == PPC::F8) {
2621     State.AllocateReg(ArgRegs[RegNum]);
2622   }
2623 
2624   // Always return false here, as this function only makes sure that the two f64
2625   // values a ppc_fp128 value is split into are both passed in registers or both
2626   // passed on the stack and does not actually allocate a register for the
2627   // current argument.
2628   return false;
2629 }
2630 
2631 /// FPR - The set of FP registers that should be allocated for arguments,
2632 /// on Darwin.
2633 static const MCPhysReg FPR[] = {PPC::F1,  PPC::F2,  PPC::F3, PPC::F4, PPC::F5,
2634                                 PPC::F6,  PPC::F7,  PPC::F8, PPC::F9, PPC::F10,
2635                                 PPC::F11, PPC::F12, PPC::F13};
2636 
2637 /// QFPR - The set of QPX registers that should be allocated for arguments.
2638 static const MCPhysReg QFPR[] = {
2639     PPC::QF1, PPC::QF2, PPC::QF3,  PPC::QF4,  PPC::QF5,  PPC::QF6, PPC::QF7,
2640     PPC::QF8, PPC::QF9, PPC::QF10, PPC::QF11, PPC::QF12, PPC::QF13};
2641 
2642 /// CalculateStackSlotSize - Calculates the size reserved for this argument on
2643 /// the stack.
2644 static unsigned CalculateStackSlotSize(EVT ArgVT, ISD::ArgFlagsTy Flags,
2645                                        unsigned PtrByteSize) {
2646   unsigned ArgSize = ArgVT.getStoreSize();
2647   if (Flags.isByVal())
2648     ArgSize = Flags.getByValSize();
2649 
2650   // Round up to multiples of the pointer size, except for array members,
2651   // which are always packed.
2652   if (!Flags.isInConsecutiveRegs())
2653     ArgSize = ((ArgSize + PtrByteSize - 1)/PtrByteSize) * PtrByteSize;
2654 
2655   return ArgSize;
2656 }
2657 
2658 /// CalculateStackSlotAlignment - Calculates the alignment of this argument
2659 /// on the stack.
2660 static unsigned CalculateStackSlotAlignment(EVT ArgVT, EVT OrigVT,
2661                                             ISD::ArgFlagsTy Flags,
2662                                             unsigned PtrByteSize) {
2663   unsigned Align = PtrByteSize;
2664 
2665   // Altivec parameters are padded to a 16 byte boundary.
2666   if (ArgVT == MVT::v4f32 || ArgVT == MVT::v4i32 ||
2667       ArgVT == MVT::v8i16 || ArgVT == MVT::v16i8 ||
2668       ArgVT == MVT::v2f64 || ArgVT == MVT::v2i64 ||
2669       ArgVT == MVT::v1i128)
2670     Align = 16;
2671   // QPX vector types stored in double-precision are padded to a 32 byte
2672   // boundary.
2673   else if (ArgVT == MVT::v4f64 || ArgVT == MVT::v4i1)
2674     Align = 32;
2675 
2676   // ByVal parameters are aligned as requested.
2677   if (Flags.isByVal()) {
2678     unsigned BVAlign = Flags.getByValAlign();
2679     if (BVAlign > PtrByteSize) {
2680       if (BVAlign % PtrByteSize != 0)
2681           llvm_unreachable(
2682             "ByVal alignment is not a multiple of the pointer size");
2683 
2684       Align = BVAlign;
2685     }
2686   }
2687 
2688   // Array members are always packed to their original alignment.
2689   if (Flags.isInConsecutiveRegs()) {
2690     // If the array member was split into multiple registers, the first
2691     // needs to be aligned to the size of the full type.  (Except for
2692     // ppcf128, which is only aligned as its f64 components.)
2693     if (Flags.isSplit() && OrigVT != MVT::ppcf128)
2694       Align = OrigVT.getStoreSize();
2695     else
2696       Align = ArgVT.getStoreSize();
2697   }
2698 
2699   return Align;
2700 }
2701 
2702 /// CalculateStackSlotUsed - Return whether this argument will use its
2703 /// stack slot (instead of being passed in registers).  ArgOffset,
2704 /// AvailableFPRs, and AvailableVRs must hold the current argument
2705 /// position, and will be updated to account for this argument.
2706 static bool CalculateStackSlotUsed(EVT ArgVT, EVT OrigVT,
2707                                    ISD::ArgFlagsTy Flags,
2708                                    unsigned PtrByteSize,
2709                                    unsigned LinkageSize,
2710                                    unsigned ParamAreaSize,
2711                                    unsigned &ArgOffset,
2712                                    unsigned &AvailableFPRs,
2713                                    unsigned &AvailableVRs, bool HasQPX) {
2714   bool UseMemory = false;
2715 
2716   // Respect alignment of argument on the stack.
2717   unsigned Align =
2718     CalculateStackSlotAlignment(ArgVT, OrigVT, Flags, PtrByteSize);
2719   ArgOffset = ((ArgOffset + Align - 1) / Align) * Align;
2720   // If there's no space left in the argument save area, we must
2721   // use memory (this check also catches zero-sized arguments).
2722   if (ArgOffset >= LinkageSize + ParamAreaSize)
2723     UseMemory = true;
2724 
2725   // Allocate argument on the stack.
2726   ArgOffset += CalculateStackSlotSize(ArgVT, Flags, PtrByteSize);
2727   if (Flags.isInConsecutiveRegsLast())
2728     ArgOffset = ((ArgOffset + PtrByteSize - 1)/PtrByteSize) * PtrByteSize;
2729   // If we overran the argument save area, we must use memory
2730   // (this check catches arguments passed partially in memory)
2731   if (ArgOffset > LinkageSize + ParamAreaSize)
2732     UseMemory = true;
2733 
2734   // However, if the argument is actually passed in an FPR or a VR,
2735   // we don't use memory after all.
2736   if (!Flags.isByVal()) {
2737     if (ArgVT == MVT::f32 || ArgVT == MVT::f64 ||
2738         // QPX registers overlap with the scalar FP registers.
2739         (HasQPX && (ArgVT == MVT::v4f32 ||
2740                     ArgVT == MVT::v4f64 ||
2741                     ArgVT == MVT::v4i1)))
2742       if (AvailableFPRs > 0) {
2743         --AvailableFPRs;
2744         return false;
2745       }
2746     if (ArgVT == MVT::v4f32 || ArgVT == MVT::v4i32 ||
2747         ArgVT == MVT::v8i16 || ArgVT == MVT::v16i8 ||
2748         ArgVT == MVT::v2f64 || ArgVT == MVT::v2i64 ||
2749         ArgVT == MVT::v1i128)
2750       if (AvailableVRs > 0) {
2751         --AvailableVRs;
2752         return false;
2753       }
2754   }
2755 
2756   return UseMemory;
2757 }
2758 
2759 /// EnsureStackAlignment - Round stack frame size up from NumBytes to
2760 /// ensure minimum alignment required for target.
2761 static unsigned EnsureStackAlignment(const PPCFrameLowering *Lowering,
2762                                      unsigned NumBytes) {
2763   unsigned TargetAlign = Lowering->getStackAlignment();
2764   unsigned AlignMask = TargetAlign - 1;
2765   NumBytes = (NumBytes + AlignMask) & ~AlignMask;
2766   return NumBytes;
2767 }
2768 
2769 SDValue
2770 PPCTargetLowering::LowerFormalArguments(SDValue Chain,
2771                                         CallingConv::ID CallConv, bool isVarArg,
2772                                         const SmallVectorImpl<ISD::InputArg>
2773                                           &Ins,
2774                                         SDLoc dl, SelectionDAG &DAG,
2775                                         SmallVectorImpl<SDValue> &InVals)
2776                                           const {
2777   if (Subtarget.isSVR4ABI()) {
2778     if (Subtarget.isPPC64())
2779       return LowerFormalArguments_64SVR4(Chain, CallConv, isVarArg, Ins,
2780                                          dl, DAG, InVals);
2781     else
2782       return LowerFormalArguments_32SVR4(Chain, CallConv, isVarArg, Ins,
2783                                          dl, DAG, InVals);
2784   } else {
2785     return LowerFormalArguments_Darwin(Chain, CallConv, isVarArg, Ins,
2786                                        dl, DAG, InVals);
2787   }
2788 }
2789 
2790 SDValue
2791 PPCTargetLowering::LowerFormalArguments_32SVR4(
2792                                       SDValue Chain,
2793                                       CallingConv::ID CallConv, bool isVarArg,
2794                                       const SmallVectorImpl<ISD::InputArg>
2795                                         &Ins,
2796                                       SDLoc dl, SelectionDAG &DAG,
2797                                       SmallVectorImpl<SDValue> &InVals) const {
2798 
2799   // 32-bit SVR4 ABI Stack Frame Layout:
2800   //              +-----------------------------------+
2801   //        +-->  |            Back chain             |
2802   //        |     +-----------------------------------+
2803   //        |     | Floating-point register save area |
2804   //        |     +-----------------------------------+
2805   //        |     |    General register save area     |
2806   //        |     +-----------------------------------+
2807   //        |     |          CR save word             |
2808   //        |     +-----------------------------------+
2809   //        |     |         VRSAVE save word          |
2810   //        |     +-----------------------------------+
2811   //        |     |         Alignment padding         |
2812   //        |     +-----------------------------------+
2813   //        |     |     Vector register save area     |
2814   //        |     +-----------------------------------+
2815   //        |     |       Local variable space        |
2816   //        |     +-----------------------------------+
2817   //        |     |        Parameter list area        |
2818   //        |     +-----------------------------------+
2819   //        |     |           LR save word            |
2820   //        |     +-----------------------------------+
2821   // SP-->  +---  |            Back chain             |
2822   //              +-----------------------------------+
2823   //
2824   // Specifications:
2825   //   System V Application Binary Interface PowerPC Processor Supplement
2826   //   AltiVec Technology Programming Interface Manual
2827 
2828   MachineFunction &MF = DAG.getMachineFunction();
2829   MachineFrameInfo *MFI = MF.getFrameInfo();
2830   PPCFunctionInfo *FuncInfo = MF.getInfo<PPCFunctionInfo>();
2831 
2832   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(MF.getDataLayout());
2833   // Potential tail calls could cause overwriting of argument stack slots.
2834   bool isImmutable = !(getTargetMachine().Options.GuaranteedTailCallOpt &&
2835                        (CallConv == CallingConv::Fast));
2836   unsigned PtrByteSize = 4;
2837 
2838   // Assign locations to all of the incoming arguments.
2839   SmallVector<CCValAssign, 16> ArgLocs;
2840   CCState CCInfo(CallConv, isVarArg, DAG.getMachineFunction(), ArgLocs,
2841                  *DAG.getContext());
2842 
2843   // Reserve space for the linkage area on the stack.
2844   unsigned LinkageSize = Subtarget.getFrameLowering()->getLinkageSize();
2845   CCInfo.AllocateStack(LinkageSize, PtrByteSize);
2846 
2847   CCInfo.AnalyzeFormalArguments(Ins, CC_PPC32_SVR4);
2848 
2849   for (unsigned i = 0, e = ArgLocs.size(); i != e; ++i) {
2850     CCValAssign &VA = ArgLocs[i];
2851 
2852     // Arguments stored in registers.
2853     if (VA.isRegLoc()) {
2854       const TargetRegisterClass *RC;
2855       EVT ValVT = VA.getValVT();
2856 
2857       switch (ValVT.getSimpleVT().SimpleTy) {
2858         default:
2859           llvm_unreachable("ValVT not supported by formal arguments Lowering");
2860         case MVT::i1:
2861         case MVT::i32:
2862           RC = &PPC::GPRCRegClass;
2863           break;
2864         case MVT::f32:
2865           if (Subtarget.hasP8Vector())
2866             RC = &PPC::VSSRCRegClass;
2867           else
2868             RC = &PPC::F4RCRegClass;
2869           break;
2870         case MVT::f64:
2871           if (Subtarget.hasVSX())
2872             RC = &PPC::VSFRCRegClass;
2873           else
2874             RC = &PPC::F8RCRegClass;
2875           break;
2876         case MVT::v16i8:
2877         case MVT::v8i16:
2878         case MVT::v4i32:
2879           RC = &PPC::VRRCRegClass;
2880           break;
2881         case MVT::v4f32:
2882           RC = Subtarget.hasQPX() ? &PPC::QSRCRegClass : &PPC::VRRCRegClass;
2883           break;
2884         case MVT::v2f64:
2885         case MVT::v2i64:
2886           RC = &PPC::VSHRCRegClass;
2887           break;
2888         case MVT::v4f64:
2889           RC = &PPC::QFRCRegClass;
2890           break;
2891         case MVT::v4i1:
2892           RC = &PPC::QBRCRegClass;
2893           break;
2894       }
2895 
2896       // Transform the arguments stored in physical registers into virtual ones.
2897       unsigned Reg = MF.addLiveIn(VA.getLocReg(), RC);
2898       SDValue ArgValue = DAG.getCopyFromReg(Chain, dl, Reg,
2899                                             ValVT == MVT::i1 ? MVT::i32 : ValVT);
2900 
2901       if (ValVT == MVT::i1)
2902         ArgValue = DAG.getNode(ISD::TRUNCATE, dl, MVT::i1, ArgValue);
2903 
2904       InVals.push_back(ArgValue);
2905     } else {
2906       // Argument stored in memory.
2907       assert(VA.isMemLoc());
2908 
2909       unsigned ArgSize = VA.getLocVT().getStoreSize();
2910       int FI = MFI->CreateFixedObject(ArgSize, VA.getLocMemOffset(),
2911                                       isImmutable);
2912 
2913       // Create load nodes to retrieve arguments from the stack.
2914       SDValue FIN = DAG.getFrameIndex(FI, PtrVT);
2915       InVals.push_back(DAG.getLoad(VA.getValVT(), dl, Chain, FIN,
2916                                    MachinePointerInfo(),
2917                                    false, false, false, 0));
2918     }
2919   }
2920 
2921   // Assign locations to all of the incoming aggregate by value arguments.
2922   // Aggregates passed by value are stored in the local variable space of the
2923   // caller's stack frame, right above the parameter list area.
2924   SmallVector<CCValAssign, 16> ByValArgLocs;
2925   CCState CCByValInfo(CallConv, isVarArg, DAG.getMachineFunction(),
2926                       ByValArgLocs, *DAG.getContext());
2927 
2928   // Reserve stack space for the allocations in CCInfo.
2929   CCByValInfo.AllocateStack(CCInfo.getNextStackOffset(), PtrByteSize);
2930 
2931   CCByValInfo.AnalyzeFormalArguments(Ins, CC_PPC32_SVR4_ByVal);
2932 
2933   // Area that is at least reserved in the caller of this function.
2934   unsigned MinReservedArea = CCByValInfo.getNextStackOffset();
2935   MinReservedArea = std::max(MinReservedArea, LinkageSize);
2936 
2937   // Set the size that is at least reserved in caller of this function.  Tail
2938   // call optimized function's reserved stack space needs to be aligned so that
2939   // taking the difference between two stack areas will result in an aligned
2940   // stack.
2941   MinReservedArea =
2942       EnsureStackAlignment(Subtarget.getFrameLowering(), MinReservedArea);
2943   FuncInfo->setMinReservedArea(MinReservedArea);
2944 
2945   SmallVector<SDValue, 8> MemOps;
2946 
2947   // If the function takes variable number of arguments, make a frame index for
2948   // the start of the first vararg value... for expansion of llvm.va_start.
2949   if (isVarArg) {
2950     static const MCPhysReg GPArgRegs[] = {
2951       PPC::R3, PPC::R4, PPC::R5, PPC::R6,
2952       PPC::R7, PPC::R8, PPC::R9, PPC::R10,
2953     };
2954     const unsigned NumGPArgRegs = array_lengthof(GPArgRegs);
2955 
2956     static const MCPhysReg FPArgRegs[] = {
2957       PPC::F1, PPC::F2, PPC::F3, PPC::F4, PPC::F5, PPC::F6, PPC::F7,
2958       PPC::F8
2959     };
2960     unsigned NumFPArgRegs = array_lengthof(FPArgRegs);
2961 
2962     if (Subtarget.useSoftFloat())
2963        NumFPArgRegs = 0;
2964 
2965     FuncInfo->setVarArgsNumGPR(CCInfo.getFirstUnallocated(GPArgRegs));
2966     FuncInfo->setVarArgsNumFPR(CCInfo.getFirstUnallocated(FPArgRegs));
2967 
2968     // Make room for NumGPArgRegs and NumFPArgRegs.
2969     int Depth = NumGPArgRegs * PtrVT.getSizeInBits()/8 +
2970                 NumFPArgRegs * MVT(MVT::f64).getSizeInBits()/8;
2971 
2972     FuncInfo->setVarArgsStackOffset(
2973       MFI->CreateFixedObject(PtrVT.getSizeInBits()/8,
2974                              CCInfo.getNextStackOffset(), true));
2975 
2976     FuncInfo->setVarArgsFrameIndex(MFI->CreateStackObject(Depth, 8, false));
2977     SDValue FIN = DAG.getFrameIndex(FuncInfo->getVarArgsFrameIndex(), PtrVT);
2978 
2979     // The fixed integer arguments of a variadic function are stored to the
2980     // VarArgsFrameIndex on the stack so that they may be loaded by deferencing
2981     // the result of va_next.
2982     for (unsigned GPRIndex = 0; GPRIndex != NumGPArgRegs; ++GPRIndex) {
2983       // Get an existing live-in vreg, or add a new one.
2984       unsigned VReg = MF.getRegInfo().getLiveInVirtReg(GPArgRegs[GPRIndex]);
2985       if (!VReg)
2986         VReg = MF.addLiveIn(GPArgRegs[GPRIndex], &PPC::GPRCRegClass);
2987 
2988       SDValue Val = DAG.getCopyFromReg(Chain, dl, VReg, PtrVT);
2989       SDValue Store = DAG.getStore(Val.getValue(1), dl, Val, FIN,
2990                                    MachinePointerInfo(), false, false, 0);
2991       MemOps.push_back(Store);
2992       // Increment the address by four for the next argument to store
2993       SDValue PtrOff = DAG.getConstant(PtrVT.getSizeInBits()/8, dl, PtrVT);
2994       FIN = DAG.getNode(ISD::ADD, dl, PtrOff.getValueType(), FIN, PtrOff);
2995     }
2996 
2997     // FIXME 32-bit SVR4: We only need to save FP argument registers if CR bit 6
2998     // is set.
2999     // The double arguments are stored to the VarArgsFrameIndex
3000     // on the stack.
3001     for (unsigned FPRIndex = 0; FPRIndex != NumFPArgRegs; ++FPRIndex) {
3002       // Get an existing live-in vreg, or add a new one.
3003       unsigned VReg = MF.getRegInfo().getLiveInVirtReg(FPArgRegs[FPRIndex]);
3004       if (!VReg)
3005         VReg = MF.addLiveIn(FPArgRegs[FPRIndex], &PPC::F8RCRegClass);
3006 
3007       SDValue Val = DAG.getCopyFromReg(Chain, dl, VReg, MVT::f64);
3008       SDValue Store = DAG.getStore(Val.getValue(1), dl, Val, FIN,
3009                                    MachinePointerInfo(), false, false, 0);
3010       MemOps.push_back(Store);
3011       // Increment the address by eight for the next argument to store
3012       SDValue PtrOff = DAG.getConstant(MVT(MVT::f64).getSizeInBits()/8, dl,
3013                                          PtrVT);
3014       FIN = DAG.getNode(ISD::ADD, dl, PtrOff.getValueType(), FIN, PtrOff);
3015     }
3016   }
3017 
3018   if (!MemOps.empty())
3019     Chain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, MemOps);
3020 
3021   return Chain;
3022 }
3023 
3024 // PPC64 passes i8, i16, and i32 values in i64 registers. Promote
3025 // value to MVT::i64 and then truncate to the correct register size.
3026 SDValue
3027 PPCTargetLowering::extendArgForPPC64(ISD::ArgFlagsTy Flags, EVT ObjectVT,
3028                                      SelectionDAG &DAG, SDValue ArgVal,
3029                                      SDLoc dl) const {
3030   if (Flags.isSExt())
3031     ArgVal = DAG.getNode(ISD::AssertSext, dl, MVT::i64, ArgVal,
3032                          DAG.getValueType(ObjectVT));
3033   else if (Flags.isZExt())
3034     ArgVal = DAG.getNode(ISD::AssertZext, dl, MVT::i64, ArgVal,
3035                          DAG.getValueType(ObjectVT));
3036 
3037   return DAG.getNode(ISD::TRUNCATE, dl, ObjectVT, ArgVal);
3038 }
3039 
3040 SDValue
3041 PPCTargetLowering::LowerFormalArguments_64SVR4(
3042                                       SDValue Chain,
3043                                       CallingConv::ID CallConv, bool isVarArg,
3044                                       const SmallVectorImpl<ISD::InputArg>
3045                                         &Ins,
3046                                       SDLoc dl, SelectionDAG &DAG,
3047                                       SmallVectorImpl<SDValue> &InVals) const {
3048   // TODO: add description of PPC stack frame format, or at least some docs.
3049   //
3050   bool isELFv2ABI = Subtarget.isELFv2ABI();
3051   bool isLittleEndian = Subtarget.isLittleEndian();
3052   MachineFunction &MF = DAG.getMachineFunction();
3053   MachineFrameInfo *MFI = MF.getFrameInfo();
3054   PPCFunctionInfo *FuncInfo = MF.getInfo<PPCFunctionInfo>();
3055 
3056   assert(!(CallConv == CallingConv::Fast && isVarArg) &&
3057          "fastcc not supported on varargs functions");
3058 
3059   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(MF.getDataLayout());
3060   // Potential tail calls could cause overwriting of argument stack slots.
3061   bool isImmutable = !(getTargetMachine().Options.GuaranteedTailCallOpt &&
3062                        (CallConv == CallingConv::Fast));
3063   unsigned PtrByteSize = 8;
3064   unsigned LinkageSize = Subtarget.getFrameLowering()->getLinkageSize();
3065 
3066   static const MCPhysReg GPR[] = {
3067     PPC::X3, PPC::X4, PPC::X5, PPC::X6,
3068     PPC::X7, PPC::X8, PPC::X9, PPC::X10,
3069   };
3070   static const MCPhysReg VR[] = {
3071     PPC::V2, PPC::V3, PPC::V4, PPC::V5, PPC::V6, PPC::V7, PPC::V8,
3072     PPC::V9, PPC::V10, PPC::V11, PPC::V12, PPC::V13
3073   };
3074   static const MCPhysReg VSRH[] = {
3075     PPC::VSH2, PPC::VSH3, PPC::VSH4, PPC::VSH5, PPC::VSH6, PPC::VSH7, PPC::VSH8,
3076     PPC::VSH9, PPC::VSH10, PPC::VSH11, PPC::VSH12, PPC::VSH13
3077   };
3078 
3079   const unsigned Num_GPR_Regs = array_lengthof(GPR);
3080   const unsigned Num_FPR_Regs = 13;
3081   const unsigned Num_VR_Regs  = array_lengthof(VR);
3082   const unsigned Num_QFPR_Regs = Num_FPR_Regs;
3083 
3084   // Do a first pass over the arguments to determine whether the ABI
3085   // guarantees that our caller has allocated the parameter save area
3086   // on its stack frame.  In the ELFv1 ABI, this is always the case;
3087   // in the ELFv2 ABI, it is true if this is a vararg function or if
3088   // any parameter is located in a stack slot.
3089 
3090   bool HasParameterArea = !isELFv2ABI || isVarArg;
3091   unsigned ParamAreaSize = Num_GPR_Regs * PtrByteSize;
3092   unsigned NumBytes = LinkageSize;
3093   unsigned AvailableFPRs = Num_FPR_Regs;
3094   unsigned AvailableVRs = Num_VR_Regs;
3095   for (unsigned i = 0, e = Ins.size(); i != e; ++i) {
3096     if (Ins[i].Flags.isNest())
3097       continue;
3098 
3099     if (CalculateStackSlotUsed(Ins[i].VT, Ins[i].ArgVT, Ins[i].Flags,
3100                                PtrByteSize, LinkageSize, ParamAreaSize,
3101                                NumBytes, AvailableFPRs, AvailableVRs,
3102                                Subtarget.hasQPX()))
3103       HasParameterArea = true;
3104   }
3105 
3106   // Add DAG nodes to load the arguments or copy them out of registers.  On
3107   // entry to a function on PPC, the arguments start after the linkage area,
3108   // although the first ones are often in registers.
3109 
3110   unsigned ArgOffset = LinkageSize;
3111   unsigned GPR_idx = 0, FPR_idx = 0, VR_idx = 0;
3112   unsigned &QFPR_idx = FPR_idx;
3113   SmallVector<SDValue, 8> MemOps;
3114   Function::const_arg_iterator FuncArg = MF.getFunction()->arg_begin();
3115   unsigned CurArgIdx = 0;
3116   for (unsigned ArgNo = 0, e = Ins.size(); ArgNo != e; ++ArgNo) {
3117     SDValue ArgVal;
3118     bool needsLoad = false;
3119     EVT ObjectVT = Ins[ArgNo].VT;
3120     EVT OrigVT = Ins[ArgNo].ArgVT;
3121     unsigned ObjSize = ObjectVT.getStoreSize();
3122     unsigned ArgSize = ObjSize;
3123     ISD::ArgFlagsTy Flags = Ins[ArgNo].Flags;
3124     if (Ins[ArgNo].isOrigArg()) {
3125       std::advance(FuncArg, Ins[ArgNo].getOrigArgIndex() - CurArgIdx);
3126       CurArgIdx = Ins[ArgNo].getOrigArgIndex();
3127     }
3128     // We re-align the argument offset for each argument, except when using the
3129     // fast calling convention, when we need to make sure we do that only when
3130     // we'll actually use a stack slot.
3131     unsigned CurArgOffset, Align;
3132     auto ComputeArgOffset = [&]() {
3133       /* Respect alignment of argument on the stack.  */
3134       Align = CalculateStackSlotAlignment(ObjectVT, OrigVT, Flags, PtrByteSize);
3135       ArgOffset = ((ArgOffset + Align - 1) / Align) * Align;
3136       CurArgOffset = ArgOffset;
3137     };
3138 
3139     if (CallConv != CallingConv::Fast) {
3140       ComputeArgOffset();
3141 
3142       /* Compute GPR index associated with argument offset.  */
3143       GPR_idx = (ArgOffset - LinkageSize) / PtrByteSize;
3144       GPR_idx = std::min(GPR_idx, Num_GPR_Regs);
3145     }
3146 
3147     // FIXME the codegen can be much improved in some cases.
3148     // We do not have to keep everything in memory.
3149     if (Flags.isByVal()) {
3150       assert(Ins[ArgNo].isOrigArg() && "Byval arguments cannot be implicit");
3151 
3152       if (CallConv == CallingConv::Fast)
3153         ComputeArgOffset();
3154 
3155       // ObjSize is the true size, ArgSize rounded up to multiple of registers.
3156       ObjSize = Flags.getByValSize();
3157       ArgSize = ((ObjSize + PtrByteSize - 1)/PtrByteSize) * PtrByteSize;
3158       // Empty aggregate parameters do not take up registers.  Examples:
3159       //   struct { } a;
3160       //   union  { } b;
3161       //   int c[0];
3162       // etc.  However, we have to provide a place-holder in InVals, so
3163       // pretend we have an 8-byte item at the current address for that
3164       // purpose.
3165       if (!ObjSize) {
3166         int FI = MFI->CreateFixedObject(PtrByteSize, ArgOffset, true);
3167         SDValue FIN = DAG.getFrameIndex(FI, PtrVT);
3168         InVals.push_back(FIN);
3169         continue;
3170       }
3171 
3172       // Create a stack object covering all stack doublewords occupied
3173       // by the argument.  If the argument is (fully or partially) on
3174       // the stack, or if the argument is fully in registers but the
3175       // caller has allocated the parameter save anyway, we can refer
3176       // directly to the caller's stack frame.  Otherwise, create a
3177       // local copy in our own frame.
3178       int FI;
3179       if (HasParameterArea ||
3180           ArgSize + ArgOffset > LinkageSize + Num_GPR_Regs * PtrByteSize)
3181         FI = MFI->CreateFixedObject(ArgSize, ArgOffset, false, true);
3182       else
3183         FI = MFI->CreateStackObject(ArgSize, Align, false);
3184       SDValue FIN = DAG.getFrameIndex(FI, PtrVT);
3185 
3186       // Handle aggregates smaller than 8 bytes.
3187       if (ObjSize < PtrByteSize) {
3188         // The value of the object is its address, which differs from the
3189         // address of the enclosing doubleword on big-endian systems.
3190         SDValue Arg = FIN;
3191         if (!isLittleEndian) {
3192           SDValue ArgOff = DAG.getConstant(PtrByteSize - ObjSize, dl, PtrVT);
3193           Arg = DAG.getNode(ISD::ADD, dl, ArgOff.getValueType(), Arg, ArgOff);
3194         }
3195         InVals.push_back(Arg);
3196 
3197         if (GPR_idx != Num_GPR_Regs) {
3198           unsigned VReg = MF.addLiveIn(GPR[GPR_idx++], &PPC::G8RCRegClass);
3199           SDValue Val = DAG.getCopyFromReg(Chain, dl, VReg, PtrVT);
3200           SDValue Store;
3201 
3202           if (ObjSize==1 || ObjSize==2 || ObjSize==4) {
3203             EVT ObjType = (ObjSize == 1 ? MVT::i8 :
3204                            (ObjSize == 2 ? MVT::i16 : MVT::i32));
3205             Store = DAG.getTruncStore(Val.getValue(1), dl, Val, Arg,
3206                                       MachinePointerInfo(&*FuncArg), ObjType,
3207                                       false, false, 0);
3208           } else {
3209             // For sizes that don't fit a truncating store (3, 5, 6, 7),
3210             // store the whole register as-is to the parameter save area
3211             // slot.
3212             Store =
3213                 DAG.getStore(Val.getValue(1), dl, Val, FIN,
3214                              MachinePointerInfo(&*FuncArg), false, false, 0);
3215           }
3216 
3217           MemOps.push_back(Store);
3218         }
3219         // Whether we copied from a register or not, advance the offset
3220         // into the parameter save area by a full doubleword.
3221         ArgOffset += PtrByteSize;
3222         continue;
3223       }
3224 
3225       // The value of the object is its address, which is the address of
3226       // its first stack doubleword.
3227       InVals.push_back(FIN);
3228 
3229       // Store whatever pieces of the object are in registers to memory.
3230       for (unsigned j = 0; j < ArgSize; j += PtrByteSize) {
3231         if (GPR_idx == Num_GPR_Regs)
3232           break;
3233 
3234         unsigned VReg = MF.addLiveIn(GPR[GPR_idx], &PPC::G8RCRegClass);
3235         SDValue Val = DAG.getCopyFromReg(Chain, dl, VReg, PtrVT);
3236         SDValue Addr = FIN;
3237         if (j) {
3238           SDValue Off = DAG.getConstant(j, dl, PtrVT);
3239           Addr = DAG.getNode(ISD::ADD, dl, Off.getValueType(), Addr, Off);
3240         }
3241         SDValue Store =
3242             DAG.getStore(Val.getValue(1), dl, Val, Addr,
3243                          MachinePointerInfo(&*FuncArg, j), false, false, 0);
3244         MemOps.push_back(Store);
3245         ++GPR_idx;
3246       }
3247       ArgOffset += ArgSize;
3248       continue;
3249     }
3250 
3251     switch (ObjectVT.getSimpleVT().SimpleTy) {
3252     default: llvm_unreachable("Unhandled argument type!");
3253     case MVT::i1:
3254     case MVT::i32:
3255     case MVT::i64:
3256       if (Flags.isNest()) {
3257         // The 'nest' parameter, if any, is passed in R11.
3258         unsigned VReg = MF.addLiveIn(PPC::X11, &PPC::G8RCRegClass);
3259         ArgVal = DAG.getCopyFromReg(Chain, dl, VReg, MVT::i64);
3260 
3261         if (ObjectVT == MVT::i32 || ObjectVT == MVT::i1)
3262           ArgVal = extendArgForPPC64(Flags, ObjectVT, DAG, ArgVal, dl);
3263 
3264         break;
3265       }
3266 
3267       // These can be scalar arguments or elements of an integer array type
3268       // passed directly.  Clang may use those instead of "byval" aggregate
3269       // types to avoid forcing arguments to memory unnecessarily.
3270       if (GPR_idx != Num_GPR_Regs) {
3271         unsigned VReg = MF.addLiveIn(GPR[GPR_idx++], &PPC::G8RCRegClass);
3272         ArgVal = DAG.getCopyFromReg(Chain, dl, VReg, MVT::i64);
3273 
3274         if (ObjectVT == MVT::i32 || ObjectVT == MVT::i1)
3275           // PPC64 passes i8, i16, and i32 values in i64 registers. Promote
3276           // value to MVT::i64 and then truncate to the correct register size.
3277           ArgVal = extendArgForPPC64(Flags, ObjectVT, DAG, ArgVal, dl);
3278       } else {
3279         if (CallConv == CallingConv::Fast)
3280           ComputeArgOffset();
3281 
3282         needsLoad = true;
3283         ArgSize = PtrByteSize;
3284       }
3285       if (CallConv != CallingConv::Fast || needsLoad)
3286         ArgOffset += 8;
3287       break;
3288 
3289     case MVT::f32:
3290     case MVT::f64:
3291       // These can be scalar arguments or elements of a float array type
3292       // passed directly.  The latter are used to implement ELFv2 homogenous
3293       // float aggregates.
3294       if (FPR_idx != Num_FPR_Regs) {
3295         unsigned VReg;
3296 
3297         if (ObjectVT == MVT::f32)
3298           VReg = MF.addLiveIn(FPR[FPR_idx],
3299                               Subtarget.hasP8Vector()
3300                                   ? &PPC::VSSRCRegClass
3301                                   : &PPC::F4RCRegClass);
3302         else
3303           VReg = MF.addLiveIn(FPR[FPR_idx], Subtarget.hasVSX()
3304                                                 ? &PPC::VSFRCRegClass
3305                                                 : &PPC::F8RCRegClass);
3306 
3307         ArgVal = DAG.getCopyFromReg(Chain, dl, VReg, ObjectVT);
3308         ++FPR_idx;
3309       } else if (GPR_idx != Num_GPR_Regs && CallConv != CallingConv::Fast) {
3310         // FIXME: We may want to re-enable this for CallingConv::Fast on the P8
3311         // once we support fp <-> gpr moves.
3312 
3313         // This can only ever happen in the presence of f32 array types,
3314         // since otherwise we never run out of FPRs before running out
3315         // of GPRs.
3316         unsigned VReg = MF.addLiveIn(GPR[GPR_idx++], &PPC::G8RCRegClass);
3317         ArgVal = DAG.getCopyFromReg(Chain, dl, VReg, MVT::i64);
3318 
3319         if (ObjectVT == MVT::f32) {
3320           if ((ArgOffset % PtrByteSize) == (isLittleEndian ? 4 : 0))
3321             ArgVal = DAG.getNode(ISD::SRL, dl, MVT::i64, ArgVal,
3322                                  DAG.getConstant(32, dl, MVT::i32));
3323           ArgVal = DAG.getNode(ISD::TRUNCATE, dl, MVT::i32, ArgVal);
3324         }
3325 
3326         ArgVal = DAG.getNode(ISD::BITCAST, dl, ObjectVT, ArgVal);
3327       } else {
3328         if (CallConv == CallingConv::Fast)
3329           ComputeArgOffset();
3330 
3331         needsLoad = true;
3332       }
3333 
3334       // When passing an array of floats, the array occupies consecutive
3335       // space in the argument area; only round up to the next doubleword
3336       // at the end of the array.  Otherwise, each float takes 8 bytes.
3337       if (CallConv != CallingConv::Fast || needsLoad) {
3338         ArgSize = Flags.isInConsecutiveRegs() ? ObjSize : PtrByteSize;
3339         ArgOffset += ArgSize;
3340         if (Flags.isInConsecutiveRegsLast())
3341           ArgOffset = ((ArgOffset + PtrByteSize - 1)/PtrByteSize) * PtrByteSize;
3342       }
3343       break;
3344     case MVT::v4f32:
3345     case MVT::v4i32:
3346     case MVT::v8i16:
3347     case MVT::v16i8:
3348     case MVT::v2f64:
3349     case MVT::v2i64:
3350     case MVT::v1i128:
3351       if (!Subtarget.hasQPX()) {
3352       // These can be scalar arguments or elements of a vector array type
3353       // passed directly.  The latter are used to implement ELFv2 homogenous
3354       // vector aggregates.
3355       if (VR_idx != Num_VR_Regs) {
3356         unsigned VReg = (ObjectVT == MVT::v2f64 || ObjectVT == MVT::v2i64) ?
3357                         MF.addLiveIn(VSRH[VR_idx], &PPC::VSHRCRegClass) :
3358                         MF.addLiveIn(VR[VR_idx], &PPC::VRRCRegClass);
3359         ArgVal = DAG.getCopyFromReg(Chain, dl, VReg, ObjectVT);
3360         ++VR_idx;
3361       } else {
3362         if (CallConv == CallingConv::Fast)
3363           ComputeArgOffset();
3364 
3365         needsLoad = true;
3366       }
3367       if (CallConv != CallingConv::Fast || needsLoad)
3368         ArgOffset += 16;
3369       break;
3370       } // not QPX
3371 
3372       assert(ObjectVT.getSimpleVT().SimpleTy == MVT::v4f32 &&
3373              "Invalid QPX parameter type");
3374       /* fall through */
3375 
3376     case MVT::v4f64:
3377     case MVT::v4i1:
3378       // QPX vectors are treated like their scalar floating-point subregisters
3379       // (except that they're larger).
3380       unsigned Sz = ObjectVT.getSimpleVT().SimpleTy == MVT::v4f32 ? 16 : 32;
3381       if (QFPR_idx != Num_QFPR_Regs) {
3382         const TargetRegisterClass *RC;
3383         switch (ObjectVT.getSimpleVT().SimpleTy) {
3384         case MVT::v4f64: RC = &PPC::QFRCRegClass; break;
3385         case MVT::v4f32: RC = &PPC::QSRCRegClass; break;
3386         default:         RC = &PPC::QBRCRegClass; break;
3387         }
3388 
3389         unsigned VReg = MF.addLiveIn(QFPR[QFPR_idx], RC);
3390         ArgVal = DAG.getCopyFromReg(Chain, dl, VReg, ObjectVT);
3391         ++QFPR_idx;
3392       } else {
3393         if (CallConv == CallingConv::Fast)
3394           ComputeArgOffset();
3395         needsLoad = true;
3396       }
3397       if (CallConv != CallingConv::Fast || needsLoad)
3398         ArgOffset += Sz;
3399       break;
3400     }
3401 
3402     // We need to load the argument to a virtual register if we determined
3403     // above that we ran out of physical registers of the appropriate type.
3404     if (needsLoad) {
3405       if (ObjSize < ArgSize && !isLittleEndian)
3406         CurArgOffset += ArgSize - ObjSize;
3407       int FI = MFI->CreateFixedObject(ObjSize, CurArgOffset, isImmutable);
3408       SDValue FIN = DAG.getFrameIndex(FI, PtrVT);
3409       ArgVal = DAG.getLoad(ObjectVT, dl, Chain, FIN, MachinePointerInfo(),
3410                            false, false, false, 0);
3411     }
3412 
3413     InVals.push_back(ArgVal);
3414   }
3415 
3416   // Area that is at least reserved in the caller of this function.
3417   unsigned MinReservedArea;
3418   if (HasParameterArea)
3419     MinReservedArea = std::max(ArgOffset, LinkageSize + 8 * PtrByteSize);
3420   else
3421     MinReservedArea = LinkageSize;
3422 
3423   // Set the size that is at least reserved in caller of this function.  Tail
3424   // call optimized functions' reserved stack space needs to be aligned so that
3425   // taking the difference between two stack areas will result in an aligned
3426   // stack.
3427   MinReservedArea =
3428       EnsureStackAlignment(Subtarget.getFrameLowering(), MinReservedArea);
3429   FuncInfo->setMinReservedArea(MinReservedArea);
3430 
3431   // If the function takes variable number of arguments, make a frame index for
3432   // the start of the first vararg value... for expansion of llvm.va_start.
3433   if (isVarArg) {
3434     int Depth = ArgOffset;
3435 
3436     FuncInfo->setVarArgsFrameIndex(
3437       MFI->CreateFixedObject(PtrByteSize, Depth, true));
3438     SDValue FIN = DAG.getFrameIndex(FuncInfo->getVarArgsFrameIndex(), PtrVT);
3439 
3440     // If this function is vararg, store any remaining integer argument regs
3441     // to their spots on the stack so that they may be loaded by deferencing the
3442     // result of va_next.
3443     for (GPR_idx = (ArgOffset - LinkageSize) / PtrByteSize;
3444          GPR_idx < Num_GPR_Regs; ++GPR_idx) {
3445       unsigned VReg = MF.addLiveIn(GPR[GPR_idx], &PPC::G8RCRegClass);
3446       SDValue Val = DAG.getCopyFromReg(Chain, dl, VReg, PtrVT);
3447       SDValue Store = DAG.getStore(Val.getValue(1), dl, Val, FIN,
3448                                    MachinePointerInfo(), false, false, 0);
3449       MemOps.push_back(Store);
3450       // Increment the address by four for the next argument to store
3451       SDValue PtrOff = DAG.getConstant(PtrByteSize, dl, PtrVT);
3452       FIN = DAG.getNode(ISD::ADD, dl, PtrOff.getValueType(), FIN, PtrOff);
3453     }
3454   }
3455 
3456   if (!MemOps.empty())
3457     Chain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, MemOps);
3458 
3459   return Chain;
3460 }
3461 
3462 SDValue
3463 PPCTargetLowering::LowerFormalArguments_Darwin(
3464                                       SDValue Chain,
3465                                       CallingConv::ID CallConv, bool isVarArg,
3466                                       const SmallVectorImpl<ISD::InputArg>
3467                                         &Ins,
3468                                       SDLoc dl, SelectionDAG &DAG,
3469                                       SmallVectorImpl<SDValue> &InVals) const {
3470   // TODO: add description of PPC stack frame format, or at least some docs.
3471   //
3472   MachineFunction &MF = DAG.getMachineFunction();
3473   MachineFrameInfo *MFI = MF.getFrameInfo();
3474   PPCFunctionInfo *FuncInfo = MF.getInfo<PPCFunctionInfo>();
3475 
3476   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(MF.getDataLayout());
3477   bool isPPC64 = PtrVT == MVT::i64;
3478   // Potential tail calls could cause overwriting of argument stack slots.
3479   bool isImmutable = !(getTargetMachine().Options.GuaranteedTailCallOpt &&
3480                        (CallConv == CallingConv::Fast));
3481   unsigned PtrByteSize = isPPC64 ? 8 : 4;
3482   unsigned LinkageSize = Subtarget.getFrameLowering()->getLinkageSize();
3483   unsigned ArgOffset = LinkageSize;
3484   // Area that is at least reserved in caller of this function.
3485   unsigned MinReservedArea = ArgOffset;
3486 
3487   static const MCPhysReg GPR_32[] = {           // 32-bit registers.
3488     PPC::R3, PPC::R4, PPC::R5, PPC::R6,
3489     PPC::R7, PPC::R8, PPC::R9, PPC::R10,
3490   };
3491   static const MCPhysReg GPR_64[] = {           // 64-bit registers.
3492     PPC::X3, PPC::X4, PPC::X5, PPC::X6,
3493     PPC::X7, PPC::X8, PPC::X9, PPC::X10,
3494   };
3495   static const MCPhysReg VR[] = {
3496     PPC::V2, PPC::V3, PPC::V4, PPC::V5, PPC::V6, PPC::V7, PPC::V8,
3497     PPC::V9, PPC::V10, PPC::V11, PPC::V12, PPC::V13
3498   };
3499 
3500   const unsigned Num_GPR_Regs = array_lengthof(GPR_32);
3501   const unsigned Num_FPR_Regs = 13;
3502   const unsigned Num_VR_Regs  = array_lengthof( VR);
3503 
3504   unsigned GPR_idx = 0, FPR_idx = 0, VR_idx = 0;
3505 
3506   const MCPhysReg *GPR = isPPC64 ? GPR_64 : GPR_32;
3507 
3508   // In 32-bit non-varargs functions, the stack space for vectors is after the
3509   // stack space for non-vectors.  We do not use this space unless we have
3510   // too many vectors to fit in registers, something that only occurs in
3511   // constructed examples:), but we have to walk the arglist to figure
3512   // that out...for the pathological case, compute VecArgOffset as the
3513   // start of the vector parameter area.  Computing VecArgOffset is the
3514   // entire point of the following loop.
3515   unsigned VecArgOffset = ArgOffset;
3516   if (!isVarArg && !isPPC64) {
3517     for (unsigned ArgNo = 0, e = Ins.size(); ArgNo != e;
3518          ++ArgNo) {
3519       EVT ObjectVT = Ins[ArgNo].VT;
3520       ISD::ArgFlagsTy Flags = Ins[ArgNo].Flags;
3521 
3522       if (Flags.isByVal()) {
3523         // ObjSize is the true size, ArgSize rounded up to multiple of regs.
3524         unsigned ObjSize = Flags.getByValSize();
3525         unsigned ArgSize =
3526                 ((ObjSize + PtrByteSize - 1)/PtrByteSize) * PtrByteSize;
3527         VecArgOffset += ArgSize;
3528         continue;
3529       }
3530 
3531       switch(ObjectVT.getSimpleVT().SimpleTy) {
3532       default: llvm_unreachable("Unhandled argument type!");
3533       case MVT::i1:
3534       case MVT::i32:
3535       case MVT::f32:
3536         VecArgOffset += 4;
3537         break;
3538       case MVT::i64:  // PPC64
3539       case MVT::f64:
3540         // FIXME: We are guaranteed to be !isPPC64 at this point.
3541         // Does MVT::i64 apply?
3542         VecArgOffset += 8;
3543         break;
3544       case MVT::v4f32:
3545       case MVT::v4i32:
3546       case MVT::v8i16:
3547       case MVT::v16i8:
3548         // Nothing to do, we're only looking at Nonvector args here.
3549         break;
3550       }
3551     }
3552   }
3553   // We've found where the vector parameter area in memory is.  Skip the
3554   // first 12 parameters; these don't use that memory.
3555   VecArgOffset = ((VecArgOffset+15)/16)*16;
3556   VecArgOffset += 12*16;
3557 
3558   // Add DAG nodes to load the arguments or copy them out of registers.  On
3559   // entry to a function on PPC, the arguments start after the linkage area,
3560   // although the first ones are often in registers.
3561 
3562   SmallVector<SDValue, 8> MemOps;
3563   unsigned nAltivecParamsAtEnd = 0;
3564   Function::const_arg_iterator FuncArg = MF.getFunction()->arg_begin();
3565   unsigned CurArgIdx = 0;
3566   for (unsigned ArgNo = 0, e = Ins.size(); ArgNo != e; ++ArgNo) {
3567     SDValue ArgVal;
3568     bool needsLoad = false;
3569     EVT ObjectVT = Ins[ArgNo].VT;
3570     unsigned ObjSize = ObjectVT.getSizeInBits()/8;
3571     unsigned ArgSize = ObjSize;
3572     ISD::ArgFlagsTy Flags = Ins[ArgNo].Flags;
3573     if (Ins[ArgNo].isOrigArg()) {
3574       std::advance(FuncArg, Ins[ArgNo].getOrigArgIndex() - CurArgIdx);
3575       CurArgIdx = Ins[ArgNo].getOrigArgIndex();
3576     }
3577     unsigned CurArgOffset = ArgOffset;
3578 
3579     // Varargs or 64 bit Altivec parameters are padded to a 16 byte boundary.
3580     if (ObjectVT==MVT::v4f32 || ObjectVT==MVT::v4i32 ||
3581         ObjectVT==MVT::v8i16 || ObjectVT==MVT::v16i8) {
3582       if (isVarArg || isPPC64) {
3583         MinReservedArea = ((MinReservedArea+15)/16)*16;
3584         MinReservedArea += CalculateStackSlotSize(ObjectVT,
3585                                                   Flags,
3586                                                   PtrByteSize);
3587       } else  nAltivecParamsAtEnd++;
3588     } else
3589       // Calculate min reserved area.
3590       MinReservedArea += CalculateStackSlotSize(Ins[ArgNo].VT,
3591                                                 Flags,
3592                                                 PtrByteSize);
3593 
3594     // FIXME the codegen can be much improved in some cases.
3595     // We do not have to keep everything in memory.
3596     if (Flags.isByVal()) {
3597       assert(Ins[ArgNo].isOrigArg() && "Byval arguments cannot be implicit");
3598 
3599       // ObjSize is the true size, ArgSize rounded up to multiple of registers.
3600       ObjSize = Flags.getByValSize();
3601       ArgSize = ((ObjSize + PtrByteSize - 1)/PtrByteSize) * PtrByteSize;
3602       // Objects of size 1 and 2 are right justified, everything else is
3603       // left justified.  This means the memory address is adjusted forwards.
3604       if (ObjSize==1 || ObjSize==2) {
3605         CurArgOffset = CurArgOffset + (4 - ObjSize);
3606       }
3607       // The value of the object is its address.
3608       int FI = MFI->CreateFixedObject(ObjSize, CurArgOffset, false, true);
3609       SDValue FIN = DAG.getFrameIndex(FI, PtrVT);
3610       InVals.push_back(FIN);
3611       if (ObjSize==1 || ObjSize==2) {
3612         if (GPR_idx != Num_GPR_Regs) {
3613           unsigned VReg;
3614           if (isPPC64)
3615             VReg = MF.addLiveIn(GPR[GPR_idx], &PPC::G8RCRegClass);
3616           else
3617             VReg = MF.addLiveIn(GPR[GPR_idx], &PPC::GPRCRegClass);
3618           SDValue Val = DAG.getCopyFromReg(Chain, dl, VReg, PtrVT);
3619           EVT ObjType = ObjSize == 1 ? MVT::i8 : MVT::i16;
3620           SDValue Store = DAG.getTruncStore(Val.getValue(1), dl, Val, FIN,
3621                                             MachinePointerInfo(&*FuncArg),
3622                                             ObjType, false, false, 0);
3623           MemOps.push_back(Store);
3624           ++GPR_idx;
3625         }
3626 
3627         ArgOffset += PtrByteSize;
3628 
3629         continue;
3630       }
3631       for (unsigned j = 0; j < ArgSize; j += PtrByteSize) {
3632         // Store whatever pieces of the object are in registers
3633         // to memory.  ArgOffset will be the address of the beginning
3634         // of the object.
3635         if (GPR_idx != Num_GPR_Regs) {
3636           unsigned VReg;
3637           if (isPPC64)
3638             VReg = MF.addLiveIn(GPR[GPR_idx], &PPC::G8RCRegClass);
3639           else
3640             VReg = MF.addLiveIn(GPR[GPR_idx], &PPC::GPRCRegClass);
3641           int FI = MFI->CreateFixedObject(PtrByteSize, ArgOffset, true);
3642           SDValue FIN = DAG.getFrameIndex(FI, PtrVT);
3643           SDValue Val = DAG.getCopyFromReg(Chain, dl, VReg, PtrVT);
3644           SDValue Store =
3645               DAG.getStore(Val.getValue(1), dl, Val, FIN,
3646                            MachinePointerInfo(&*FuncArg, j), false, false, 0);
3647           MemOps.push_back(Store);
3648           ++GPR_idx;
3649           ArgOffset += PtrByteSize;
3650         } else {
3651           ArgOffset += ArgSize - (ArgOffset-CurArgOffset);
3652           break;
3653         }
3654       }
3655       continue;
3656     }
3657 
3658     switch (ObjectVT.getSimpleVT().SimpleTy) {
3659     default: llvm_unreachable("Unhandled argument type!");
3660     case MVT::i1:
3661     case MVT::i32:
3662       if (!isPPC64) {
3663         if (GPR_idx != Num_GPR_Regs) {
3664           unsigned VReg = MF.addLiveIn(GPR[GPR_idx], &PPC::GPRCRegClass);
3665           ArgVal = DAG.getCopyFromReg(Chain, dl, VReg, MVT::i32);
3666 
3667           if (ObjectVT == MVT::i1)
3668             ArgVal = DAG.getNode(ISD::TRUNCATE, dl, MVT::i1, ArgVal);
3669 
3670           ++GPR_idx;
3671         } else {
3672           needsLoad = true;
3673           ArgSize = PtrByteSize;
3674         }
3675         // All int arguments reserve stack space in the Darwin ABI.
3676         ArgOffset += PtrByteSize;
3677         break;
3678       }
3679       // FALLTHROUGH
3680     case MVT::i64:  // PPC64
3681       if (GPR_idx != Num_GPR_Regs) {
3682         unsigned VReg = MF.addLiveIn(GPR[GPR_idx], &PPC::G8RCRegClass);
3683         ArgVal = DAG.getCopyFromReg(Chain, dl, VReg, MVT::i64);
3684 
3685         if (ObjectVT == MVT::i32 || ObjectVT == MVT::i1)
3686           // PPC64 passes i8, i16, and i32 values in i64 registers. Promote
3687           // value to MVT::i64 and then truncate to the correct register size.
3688           ArgVal = extendArgForPPC64(Flags, ObjectVT, DAG, ArgVal, dl);
3689 
3690         ++GPR_idx;
3691       } else {
3692         needsLoad = true;
3693         ArgSize = PtrByteSize;
3694       }
3695       // All int arguments reserve stack space in the Darwin ABI.
3696       ArgOffset += 8;
3697       break;
3698 
3699     case MVT::f32:
3700     case MVT::f64:
3701       // Every 4 bytes of argument space consumes one of the GPRs available for
3702       // argument passing.
3703       if (GPR_idx != Num_GPR_Regs) {
3704         ++GPR_idx;
3705         if (ObjSize == 8 && GPR_idx != Num_GPR_Regs && !isPPC64)
3706           ++GPR_idx;
3707       }
3708       if (FPR_idx != Num_FPR_Regs) {
3709         unsigned VReg;
3710 
3711         if (ObjectVT == MVT::f32)
3712           VReg = MF.addLiveIn(FPR[FPR_idx], &PPC::F4RCRegClass);
3713         else
3714           VReg = MF.addLiveIn(FPR[FPR_idx], &PPC::F8RCRegClass);
3715 
3716         ArgVal = DAG.getCopyFromReg(Chain, dl, VReg, ObjectVT);
3717         ++FPR_idx;
3718       } else {
3719         needsLoad = true;
3720       }
3721 
3722       // All FP arguments reserve stack space in the Darwin ABI.
3723       ArgOffset += isPPC64 ? 8 : ObjSize;
3724       break;
3725     case MVT::v4f32:
3726     case MVT::v4i32:
3727     case MVT::v8i16:
3728     case MVT::v16i8:
3729       // Note that vector arguments in registers don't reserve stack space,
3730       // except in varargs functions.
3731       if (VR_idx != Num_VR_Regs) {
3732         unsigned VReg = MF.addLiveIn(VR[VR_idx], &PPC::VRRCRegClass);
3733         ArgVal = DAG.getCopyFromReg(Chain, dl, VReg, ObjectVT);
3734         if (isVarArg) {
3735           while ((ArgOffset % 16) != 0) {
3736             ArgOffset += PtrByteSize;
3737             if (GPR_idx != Num_GPR_Regs)
3738               GPR_idx++;
3739           }
3740           ArgOffset += 16;
3741           GPR_idx = std::min(GPR_idx+4, Num_GPR_Regs); // FIXME correct for ppc64?
3742         }
3743         ++VR_idx;
3744       } else {
3745         if (!isVarArg && !isPPC64) {
3746           // Vectors go after all the nonvectors.
3747           CurArgOffset = VecArgOffset;
3748           VecArgOffset += 16;
3749         } else {
3750           // Vectors are aligned.
3751           ArgOffset = ((ArgOffset+15)/16)*16;
3752           CurArgOffset = ArgOffset;
3753           ArgOffset += 16;
3754         }
3755         needsLoad = true;
3756       }
3757       break;
3758     }
3759 
3760     // We need to load the argument to a virtual register if we determined above
3761     // that we ran out of physical registers of the appropriate type.
3762     if (needsLoad) {
3763       int FI = MFI->CreateFixedObject(ObjSize,
3764                                       CurArgOffset + (ArgSize - ObjSize),
3765                                       isImmutable);
3766       SDValue FIN = DAG.getFrameIndex(FI, PtrVT);
3767       ArgVal = DAG.getLoad(ObjectVT, dl, Chain, FIN, MachinePointerInfo(),
3768                            false, false, false, 0);
3769     }
3770 
3771     InVals.push_back(ArgVal);
3772   }
3773 
3774   // Allow for Altivec parameters at the end, if needed.
3775   if (nAltivecParamsAtEnd) {
3776     MinReservedArea = ((MinReservedArea+15)/16)*16;
3777     MinReservedArea += 16*nAltivecParamsAtEnd;
3778   }
3779 
3780   // Area that is at least reserved in the caller of this function.
3781   MinReservedArea = std::max(MinReservedArea, LinkageSize + 8 * PtrByteSize);
3782 
3783   // Set the size that is at least reserved in caller of this function.  Tail
3784   // call optimized functions' reserved stack space needs to be aligned so that
3785   // taking the difference between two stack areas will result in an aligned
3786   // stack.
3787   MinReservedArea =
3788       EnsureStackAlignment(Subtarget.getFrameLowering(), MinReservedArea);
3789   FuncInfo->setMinReservedArea(MinReservedArea);
3790 
3791   // If the function takes variable number of arguments, make a frame index for
3792   // the start of the first vararg value... for expansion of llvm.va_start.
3793   if (isVarArg) {
3794     int Depth = ArgOffset;
3795 
3796     FuncInfo->setVarArgsFrameIndex(
3797       MFI->CreateFixedObject(PtrVT.getSizeInBits()/8,
3798                              Depth, true));
3799     SDValue FIN = DAG.getFrameIndex(FuncInfo->getVarArgsFrameIndex(), PtrVT);
3800 
3801     // If this function is vararg, store any remaining integer argument regs
3802     // to their spots on the stack so that they may be loaded by deferencing the
3803     // result of va_next.
3804     for (; GPR_idx != Num_GPR_Regs; ++GPR_idx) {
3805       unsigned VReg;
3806 
3807       if (isPPC64)
3808         VReg = MF.addLiveIn(GPR[GPR_idx], &PPC::G8RCRegClass);
3809       else
3810         VReg = MF.addLiveIn(GPR[GPR_idx], &PPC::GPRCRegClass);
3811 
3812       SDValue Val = DAG.getCopyFromReg(Chain, dl, VReg, PtrVT);
3813       SDValue Store = DAG.getStore(Val.getValue(1), dl, Val, FIN,
3814                                    MachinePointerInfo(), false, false, 0);
3815       MemOps.push_back(Store);
3816       // Increment the address by four for the next argument to store
3817       SDValue PtrOff = DAG.getConstant(PtrVT.getSizeInBits()/8, dl, PtrVT);
3818       FIN = DAG.getNode(ISD::ADD, dl, PtrOff.getValueType(), FIN, PtrOff);
3819     }
3820   }
3821 
3822   if (!MemOps.empty())
3823     Chain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, MemOps);
3824 
3825   return Chain;
3826 }
3827 
3828 /// CalculateTailCallSPDiff - Get the amount the stack pointer has to be
3829 /// adjusted to accommodate the arguments for the tailcall.
3830 static int CalculateTailCallSPDiff(SelectionDAG& DAG, bool isTailCall,
3831                                    unsigned ParamSize) {
3832 
3833   if (!isTailCall) return 0;
3834 
3835   PPCFunctionInfo *FI = DAG.getMachineFunction().getInfo<PPCFunctionInfo>();
3836   unsigned CallerMinReservedArea = FI->getMinReservedArea();
3837   int SPDiff = (int)CallerMinReservedArea - (int)ParamSize;
3838   // Remember only if the new adjustement is bigger.
3839   if (SPDiff < FI->getTailCallSPDelta())
3840     FI->setTailCallSPDelta(SPDiff);
3841 
3842   return SPDiff;
3843 }
3844 
3845 /// IsEligibleForTailCallOptimization - Check whether the call is eligible
3846 /// for tail call optimization. Targets which want to do tail call
3847 /// optimization should implement this function.
3848 bool
3849 PPCTargetLowering::IsEligibleForTailCallOptimization(SDValue Callee,
3850                                                      CallingConv::ID CalleeCC,
3851                                                      bool isVarArg,
3852                                       const SmallVectorImpl<ISD::InputArg> &Ins,
3853                                                      SelectionDAG& DAG) const {
3854   if (!getTargetMachine().Options.GuaranteedTailCallOpt)
3855     return false;
3856 
3857   // Variable argument functions are not supported.
3858   if (isVarArg)
3859     return false;
3860 
3861   MachineFunction &MF = DAG.getMachineFunction();
3862   CallingConv::ID CallerCC = MF.getFunction()->getCallingConv();
3863   if (CalleeCC == CallingConv::Fast && CallerCC == CalleeCC) {
3864     // Functions containing by val parameters are not supported.
3865     for (unsigned i = 0; i != Ins.size(); i++) {
3866        ISD::ArgFlagsTy Flags = Ins[i].Flags;
3867        if (Flags.isByVal()) return false;
3868     }
3869 
3870     // Non-PIC/GOT tail calls are supported.
3871     if (getTargetMachine().getRelocationModel() != Reloc::PIC_)
3872       return true;
3873 
3874     // At the moment we can only do local tail calls (in same module, hidden
3875     // or protected) if we are generating PIC.
3876     if (GlobalAddressSDNode *G = dyn_cast<GlobalAddressSDNode>(Callee))
3877       return G->getGlobal()->hasHiddenVisibility()
3878           || G->getGlobal()->hasProtectedVisibility();
3879   }
3880 
3881   return false;
3882 }
3883 
3884 /// isCallCompatibleAddress - Return the immediate to use if the specified
3885 /// 32-bit value is representable in the immediate field of a BxA instruction.
3886 static SDNode *isBLACompatibleAddress(SDValue Op, SelectionDAG &DAG) {
3887   ConstantSDNode *C = dyn_cast<ConstantSDNode>(Op);
3888   if (!C) return nullptr;
3889 
3890   int Addr = C->getZExtValue();
3891   if ((Addr & 3) != 0 ||  // Low 2 bits are implicitly zero.
3892       SignExtend32<26>(Addr) != Addr)
3893     return nullptr;  // Top 6 bits have to be sext of immediate.
3894 
3895   return DAG.getConstant((int)C->getZExtValue() >> 2, SDLoc(Op),
3896                          DAG.getTargetLoweringInfo().getPointerTy(
3897                              DAG.getDataLayout())).getNode();
3898 }
3899 
3900 namespace {
3901 
3902 struct TailCallArgumentInfo {
3903   SDValue Arg;
3904   SDValue FrameIdxOp;
3905   int       FrameIdx;
3906 
3907   TailCallArgumentInfo() : FrameIdx(0) {}
3908 };
3909 }
3910 
3911 /// StoreTailCallArgumentsToStackSlot - Stores arguments to their stack slot.
3912 static void
3913 StoreTailCallArgumentsToStackSlot(SelectionDAG &DAG,
3914                                            SDValue Chain,
3915                    const SmallVectorImpl<TailCallArgumentInfo> &TailCallArgs,
3916                    SmallVectorImpl<SDValue> &MemOpChains,
3917                    SDLoc dl) {
3918   for (unsigned i = 0, e = TailCallArgs.size(); i != e; ++i) {
3919     SDValue Arg = TailCallArgs[i].Arg;
3920     SDValue FIN = TailCallArgs[i].FrameIdxOp;
3921     int FI = TailCallArgs[i].FrameIdx;
3922     // Store relative to framepointer.
3923     MemOpChains.push_back(DAG.getStore(
3924         Chain, dl, Arg, FIN,
3925         MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), FI), false,
3926         false, 0));
3927   }
3928 }
3929 
3930 /// EmitTailCallStoreFPAndRetAddr - Move the frame pointer and return address to
3931 /// the appropriate stack slot for the tail call optimized function call.
3932 static SDValue EmitTailCallStoreFPAndRetAddr(SelectionDAG &DAG,
3933                                                MachineFunction &MF,
3934                                                SDValue Chain,
3935                                                SDValue OldRetAddr,
3936                                                SDValue OldFP,
3937                                                int SPDiff,
3938                                                bool isPPC64,
3939                                                bool isDarwinABI,
3940                                                SDLoc dl) {
3941   if (SPDiff) {
3942     // Calculate the new stack slot for the return address.
3943     int SlotSize = isPPC64 ? 8 : 4;
3944     const PPCFrameLowering *FL =
3945         MF.getSubtarget<PPCSubtarget>().getFrameLowering();
3946     int NewRetAddrLoc = SPDiff + FL->getReturnSaveOffset();
3947     int NewRetAddr = MF.getFrameInfo()->CreateFixedObject(SlotSize,
3948                                                           NewRetAddrLoc, true);
3949     EVT VT = isPPC64 ? MVT::i64 : MVT::i32;
3950     SDValue NewRetAddrFrIdx = DAG.getFrameIndex(NewRetAddr, VT);
3951     Chain = DAG.getStore(
3952         Chain, dl, OldRetAddr, NewRetAddrFrIdx,
3953         MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), NewRetAddr),
3954         false, false, 0);
3955 
3956     // When using the 32/64-bit SVR4 ABI there is no need to move the FP stack
3957     // slot as the FP is never overwritten.
3958     if (isDarwinABI) {
3959       int NewFPLoc = SPDiff + FL->getFramePointerSaveOffset();
3960       int NewFPIdx = MF.getFrameInfo()->CreateFixedObject(SlotSize, NewFPLoc,
3961                                                           true);
3962       SDValue NewFramePtrIdx = DAG.getFrameIndex(NewFPIdx, VT);
3963       Chain = DAG.getStore(
3964           Chain, dl, OldFP, NewFramePtrIdx,
3965           MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), NewFPIdx),
3966           false, false, 0);
3967     }
3968   }
3969   return Chain;
3970 }
3971 
3972 /// CalculateTailCallArgDest - Remember Argument for later processing. Calculate
3973 /// the position of the argument.
3974 static void
3975 CalculateTailCallArgDest(SelectionDAG &DAG, MachineFunction &MF, bool isPPC64,
3976                          SDValue Arg, int SPDiff, unsigned ArgOffset,
3977                      SmallVectorImpl<TailCallArgumentInfo>& TailCallArguments) {
3978   int Offset = ArgOffset + SPDiff;
3979   uint32_t OpSize = (Arg.getValueType().getSizeInBits()+7)/8;
3980   int FI = MF.getFrameInfo()->CreateFixedObject(OpSize, Offset, true);
3981   EVT VT = isPPC64 ? MVT::i64 : MVT::i32;
3982   SDValue FIN = DAG.getFrameIndex(FI, VT);
3983   TailCallArgumentInfo Info;
3984   Info.Arg = Arg;
3985   Info.FrameIdxOp = FIN;
3986   Info.FrameIdx = FI;
3987   TailCallArguments.push_back(Info);
3988 }
3989 
3990 /// EmitTCFPAndRetAddrLoad - Emit load from frame pointer and return address
3991 /// stack slot. Returns the chain as result and the loaded frame pointers in
3992 /// LROpOut/FPOpout. Used when tail calling.
3993 SDValue PPCTargetLowering::EmitTailCallLoadFPAndRetAddr(SelectionDAG & DAG,
3994                                                         int SPDiff,
3995                                                         SDValue Chain,
3996                                                         SDValue &LROpOut,
3997                                                         SDValue &FPOpOut,
3998                                                         bool isDarwinABI,
3999                                                         SDLoc dl) const {
4000   if (SPDiff) {
4001     // Load the LR and FP stack slot for later adjusting.
4002     EVT VT = Subtarget.isPPC64() ? MVT::i64 : MVT::i32;
4003     LROpOut = getReturnAddrFrameIndex(DAG);
4004     LROpOut = DAG.getLoad(VT, dl, Chain, LROpOut, MachinePointerInfo(),
4005                           false, false, false, 0);
4006     Chain = SDValue(LROpOut.getNode(), 1);
4007 
4008     // When using the 32/64-bit SVR4 ABI there is no need to load the FP stack
4009     // slot as the FP is never overwritten.
4010     if (isDarwinABI) {
4011       FPOpOut = getFramePointerFrameIndex(DAG);
4012       FPOpOut = DAG.getLoad(VT, dl, Chain, FPOpOut, MachinePointerInfo(),
4013                             false, false, false, 0);
4014       Chain = SDValue(FPOpOut.getNode(), 1);
4015     }
4016   }
4017   return Chain;
4018 }
4019 
4020 /// CreateCopyOfByValArgument - Make a copy of an aggregate at address specified
4021 /// by "Src" to address "Dst" of size "Size".  Alignment information is
4022 /// specified by the specific parameter attribute. The copy will be passed as
4023 /// a byval function parameter.
4024 /// Sometimes what we are copying is the end of a larger object, the part that
4025 /// does not fit in registers.
4026 static SDValue
4027 CreateCopyOfByValArgument(SDValue Src, SDValue Dst, SDValue Chain,
4028                           ISD::ArgFlagsTy Flags, SelectionDAG &DAG,
4029                           SDLoc dl) {
4030   SDValue SizeNode = DAG.getConstant(Flags.getByValSize(), dl, MVT::i32);
4031   return DAG.getMemcpy(Chain, dl, Dst, Src, SizeNode, Flags.getByValAlign(),
4032                        false, false, false, MachinePointerInfo(),
4033                        MachinePointerInfo());
4034 }
4035 
4036 /// LowerMemOpCallTo - Store the argument to the stack or remember it in case of
4037 /// tail calls.
4038 static void
4039 LowerMemOpCallTo(SelectionDAG &DAG, MachineFunction &MF, SDValue Chain,
4040                  SDValue Arg, SDValue PtrOff, int SPDiff,
4041                  unsigned ArgOffset, bool isPPC64, bool isTailCall,
4042                  bool isVector, SmallVectorImpl<SDValue> &MemOpChains,
4043                  SmallVectorImpl<TailCallArgumentInfo> &TailCallArguments,
4044                  SDLoc dl) {
4045   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(DAG.getDataLayout());
4046   if (!isTailCall) {
4047     if (isVector) {
4048       SDValue StackPtr;
4049       if (isPPC64)
4050         StackPtr = DAG.getRegister(PPC::X1, MVT::i64);
4051       else
4052         StackPtr = DAG.getRegister(PPC::R1, MVT::i32);
4053       PtrOff = DAG.getNode(ISD::ADD, dl, PtrVT, StackPtr,
4054                            DAG.getConstant(ArgOffset, dl, PtrVT));
4055     }
4056     MemOpChains.push_back(DAG.getStore(Chain, dl, Arg, PtrOff,
4057                                        MachinePointerInfo(), false, false, 0));
4058   // Calculate and remember argument location.
4059   } else CalculateTailCallArgDest(DAG, MF, isPPC64, Arg, SPDiff, ArgOffset,
4060                                   TailCallArguments);
4061 }
4062 
4063 static
4064 void PrepareTailCall(SelectionDAG &DAG, SDValue &InFlag, SDValue &Chain,
4065                      SDLoc dl, bool isPPC64, int SPDiff, unsigned NumBytes,
4066                      SDValue LROp, SDValue FPOp, bool isDarwinABI,
4067                      SmallVectorImpl<TailCallArgumentInfo> &TailCallArguments) {
4068   MachineFunction &MF = DAG.getMachineFunction();
4069 
4070   // Emit a sequence of copyto/copyfrom virtual registers for arguments that
4071   // might overwrite each other in case of tail call optimization.
4072   SmallVector<SDValue, 8> MemOpChains2;
4073   // Do not flag preceding copytoreg stuff together with the following stuff.
4074   InFlag = SDValue();
4075   StoreTailCallArgumentsToStackSlot(DAG, Chain, TailCallArguments,
4076                                     MemOpChains2, dl);
4077   if (!MemOpChains2.empty())
4078     Chain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, MemOpChains2);
4079 
4080   // Store the return address to the appropriate stack slot.
4081   Chain = EmitTailCallStoreFPAndRetAddr(DAG, MF, Chain, LROp, FPOp, SPDiff,
4082                                         isPPC64, isDarwinABI, dl);
4083 
4084   // Emit callseq_end just before tailcall node.
4085   Chain = DAG.getCALLSEQ_END(Chain, DAG.getIntPtrConstant(NumBytes, dl, true),
4086                              DAG.getIntPtrConstant(0, dl, true), InFlag, dl);
4087   InFlag = Chain.getValue(1);
4088 }
4089 
4090 // Is this global address that of a function that can be called by name? (as
4091 // opposed to something that must hold a descriptor for an indirect call).
4092 static bool isFunctionGlobalAddress(SDValue Callee) {
4093   if (GlobalAddressSDNode *G = dyn_cast<GlobalAddressSDNode>(Callee)) {
4094     if (Callee.getOpcode() == ISD::GlobalTLSAddress ||
4095         Callee.getOpcode() == ISD::TargetGlobalTLSAddress)
4096       return false;
4097 
4098     return G->getGlobal()->getValueType()->isFunctionTy();
4099   }
4100 
4101   return false;
4102 }
4103 
4104 static
4105 unsigned PrepareCall(SelectionDAG &DAG, SDValue &Callee, SDValue &InFlag,
4106                      SDValue &Chain, SDValue CallSeqStart, SDLoc dl, int SPDiff,
4107                      bool isTailCall, bool IsPatchPoint, bool hasNest,
4108                      SmallVectorImpl<std::pair<unsigned, SDValue> > &RegsToPass,
4109                      SmallVectorImpl<SDValue> &Ops, std::vector<EVT> &NodeTys,
4110                      ImmutableCallSite *CS, const PPCSubtarget &Subtarget) {
4111 
4112   bool isPPC64 = Subtarget.isPPC64();
4113   bool isSVR4ABI = Subtarget.isSVR4ABI();
4114   bool isELFv2ABI = Subtarget.isELFv2ABI();
4115 
4116   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(DAG.getDataLayout());
4117   NodeTys.push_back(MVT::Other);   // Returns a chain
4118   NodeTys.push_back(MVT::Glue);    // Returns a flag for retval copy to use.
4119 
4120   unsigned CallOpc = PPCISD::CALL;
4121 
4122   bool needIndirectCall = true;
4123   if (!isSVR4ABI || !isPPC64)
4124     if (SDNode *Dest = isBLACompatibleAddress(Callee, DAG)) {
4125       // If this is an absolute destination address, use the munged value.
4126       Callee = SDValue(Dest, 0);
4127       needIndirectCall = false;
4128     }
4129 
4130   if (isFunctionGlobalAddress(Callee)) {
4131     GlobalAddressSDNode *G = cast<GlobalAddressSDNode>(Callee);
4132     // A call to a TLS address is actually an indirect call to a
4133     // thread-specific pointer.
4134     unsigned OpFlags = 0;
4135     if ((DAG.getTarget().getRelocationModel() != Reloc::Static &&
4136          (Subtarget.getTargetTriple().isMacOSX() &&
4137           Subtarget.getTargetTriple().isMacOSXVersionLT(10, 5)) &&
4138          !G->getGlobal()->isStrongDefinitionForLinker()) ||
4139         (Subtarget.isTargetELF() && !isPPC64 &&
4140          !G->getGlobal()->hasLocalLinkage() &&
4141          DAG.getTarget().getRelocationModel() == Reloc::PIC_)) {
4142       // PC-relative references to external symbols should go through $stub,
4143       // unless we're building with the leopard linker or later, which
4144       // automatically synthesizes these stubs.
4145       OpFlags = PPCII::MO_PLT_OR_STUB;
4146     }
4147 
4148     // If the callee is a GlobalAddress/ExternalSymbol node (quite common,
4149     // every direct call is) turn it into a TargetGlobalAddress /
4150     // TargetExternalSymbol node so that legalize doesn't hack it.
4151     Callee = DAG.getTargetGlobalAddress(G->getGlobal(), dl,
4152                                         Callee.getValueType(), 0, OpFlags);
4153     needIndirectCall = false;
4154   }
4155 
4156   if (ExternalSymbolSDNode *S = dyn_cast<ExternalSymbolSDNode>(Callee)) {
4157     unsigned char OpFlags = 0;
4158 
4159     if ((DAG.getTarget().getRelocationModel() != Reloc::Static &&
4160          (Subtarget.getTargetTriple().isMacOSX() &&
4161           Subtarget.getTargetTriple().isMacOSXVersionLT(10, 5))) ||
4162         (Subtarget.isTargetELF() && !isPPC64 &&
4163          DAG.getTarget().getRelocationModel() == Reloc::PIC_)) {
4164       // PC-relative references to external symbols should go through $stub,
4165       // unless we're building with the leopard linker or later, which
4166       // automatically synthesizes these stubs.
4167       OpFlags = PPCII::MO_PLT_OR_STUB;
4168     }
4169 
4170     Callee = DAG.getTargetExternalSymbol(S->getSymbol(), Callee.getValueType(),
4171                                          OpFlags);
4172     needIndirectCall = false;
4173   }
4174 
4175   if (IsPatchPoint) {
4176     // We'll form an invalid direct call when lowering a patchpoint; the full
4177     // sequence for an indirect call is complicated, and many of the
4178     // instructions introduced might have side effects (and, thus, can't be
4179     // removed later). The call itself will be removed as soon as the
4180     // argument/return lowering is complete, so the fact that it has the wrong
4181     // kind of operands should not really matter.
4182     needIndirectCall = false;
4183   }
4184 
4185   if (needIndirectCall) {
4186     // Otherwise, this is an indirect call.  We have to use a MTCTR/BCTRL pair
4187     // to do the call, we can't use PPCISD::CALL.
4188     SDValue MTCTROps[] = {Chain, Callee, InFlag};
4189 
4190     if (isSVR4ABI && isPPC64 && !isELFv2ABI) {
4191       // Function pointers in the 64-bit SVR4 ABI do not point to the function
4192       // entry point, but to the function descriptor (the function entry point
4193       // address is part of the function descriptor though).
4194       // The function descriptor is a three doubleword structure with the
4195       // following fields: function entry point, TOC base address and
4196       // environment pointer.
4197       // Thus for a call through a function pointer, the following actions need
4198       // to be performed:
4199       //   1. Save the TOC of the caller in the TOC save area of its stack
4200       //      frame (this is done in LowerCall_Darwin() or LowerCall_64SVR4()).
4201       //   2. Load the address of the function entry point from the function
4202       //      descriptor.
4203       //   3. Load the TOC of the callee from the function descriptor into r2.
4204       //   4. Load the environment pointer from the function descriptor into
4205       //      r11.
4206       //   5. Branch to the function entry point address.
4207       //   6. On return of the callee, the TOC of the caller needs to be
4208       //      restored (this is done in FinishCall()).
4209       //
4210       // The loads are scheduled at the beginning of the call sequence, and the
4211       // register copies are flagged together to ensure that no other
4212       // operations can be scheduled in between. E.g. without flagging the
4213       // copies together, a TOC access in the caller could be scheduled between
4214       // the assignment of the callee TOC and the branch to the callee, which
4215       // results in the TOC access going through the TOC of the callee instead
4216       // of going through the TOC of the caller, which leads to incorrect code.
4217 
4218       // Load the address of the function entry point from the function
4219       // descriptor.
4220       SDValue LDChain = CallSeqStart.getValue(CallSeqStart->getNumValues()-1);
4221       if (LDChain.getValueType() == MVT::Glue)
4222         LDChain = CallSeqStart.getValue(CallSeqStart->getNumValues()-2);
4223 
4224       bool LoadsInv = Subtarget.hasInvariantFunctionDescriptors();
4225 
4226       MachinePointerInfo MPI(CS ? CS->getCalledValue() : nullptr);
4227       SDValue LoadFuncPtr = DAG.getLoad(MVT::i64, dl, LDChain, Callee, MPI,
4228                                         false, false, LoadsInv, 8);
4229 
4230       // Load environment pointer into r11.
4231       SDValue PtrOff = DAG.getIntPtrConstant(16, dl);
4232       SDValue AddPtr = DAG.getNode(ISD::ADD, dl, MVT::i64, Callee, PtrOff);
4233       SDValue LoadEnvPtr = DAG.getLoad(MVT::i64, dl, LDChain, AddPtr,
4234                                        MPI.getWithOffset(16), false, false,
4235                                        LoadsInv, 8);
4236 
4237       SDValue TOCOff = DAG.getIntPtrConstant(8, dl);
4238       SDValue AddTOC = DAG.getNode(ISD::ADD, dl, MVT::i64, Callee, TOCOff);
4239       SDValue TOCPtr = DAG.getLoad(MVT::i64, dl, LDChain, AddTOC,
4240                                    MPI.getWithOffset(8), false, false,
4241                                    LoadsInv, 8);
4242 
4243       setUsesTOCBasePtr(DAG);
4244       SDValue TOCVal = DAG.getCopyToReg(Chain, dl, PPC::X2, TOCPtr,
4245                                         InFlag);
4246       Chain = TOCVal.getValue(0);
4247       InFlag = TOCVal.getValue(1);
4248 
4249       // If the function call has an explicit 'nest' parameter, it takes the
4250       // place of the environment pointer.
4251       if (!hasNest) {
4252         SDValue EnvVal = DAG.getCopyToReg(Chain, dl, PPC::X11, LoadEnvPtr,
4253                                           InFlag);
4254 
4255         Chain = EnvVal.getValue(0);
4256         InFlag = EnvVal.getValue(1);
4257       }
4258 
4259       MTCTROps[0] = Chain;
4260       MTCTROps[1] = LoadFuncPtr;
4261       MTCTROps[2] = InFlag;
4262     }
4263 
4264     Chain = DAG.getNode(PPCISD::MTCTR, dl, NodeTys,
4265                         makeArrayRef(MTCTROps, InFlag.getNode() ? 3 : 2));
4266     InFlag = Chain.getValue(1);
4267 
4268     NodeTys.clear();
4269     NodeTys.push_back(MVT::Other);
4270     NodeTys.push_back(MVT::Glue);
4271     Ops.push_back(Chain);
4272     CallOpc = PPCISD::BCTRL;
4273     Callee.setNode(nullptr);
4274     // Add use of X11 (holding environment pointer)
4275     if (isSVR4ABI && isPPC64 && !isELFv2ABI && !hasNest)
4276       Ops.push_back(DAG.getRegister(PPC::X11, PtrVT));
4277     // Add CTR register as callee so a bctr can be emitted later.
4278     if (isTailCall)
4279       Ops.push_back(DAG.getRegister(isPPC64 ? PPC::CTR8 : PPC::CTR, PtrVT));
4280   }
4281 
4282   // If this is a direct call, pass the chain and the callee.
4283   if (Callee.getNode()) {
4284     Ops.push_back(Chain);
4285     Ops.push_back(Callee);
4286   }
4287   // If this is a tail call add stack pointer delta.
4288   if (isTailCall)
4289     Ops.push_back(DAG.getConstant(SPDiff, dl, MVT::i32));
4290 
4291   // Add argument registers to the end of the list so that they are known live
4292   // into the call.
4293   for (unsigned i = 0, e = RegsToPass.size(); i != e; ++i)
4294     Ops.push_back(DAG.getRegister(RegsToPass[i].first,
4295                                   RegsToPass[i].second.getValueType()));
4296 
4297   // All calls, in both the ELF V1 and V2 ABIs, need the TOC register live
4298   // into the call.
4299   if (isSVR4ABI && isPPC64 && !IsPatchPoint) {
4300     setUsesTOCBasePtr(DAG);
4301     Ops.push_back(DAG.getRegister(PPC::X2, PtrVT));
4302   }
4303 
4304   return CallOpc;
4305 }
4306 
4307 static
4308 bool isLocalCall(const SDValue &Callee)
4309 {
4310   if (GlobalAddressSDNode *G = dyn_cast<GlobalAddressSDNode>(Callee))
4311     return G->getGlobal()->isStrongDefinitionForLinker();
4312   return false;
4313 }
4314 
4315 SDValue
4316 PPCTargetLowering::LowerCallResult(SDValue Chain, SDValue InFlag,
4317                                    CallingConv::ID CallConv, bool isVarArg,
4318                                    const SmallVectorImpl<ISD::InputArg> &Ins,
4319                                    SDLoc dl, SelectionDAG &DAG,
4320                                    SmallVectorImpl<SDValue> &InVals) const {
4321 
4322   SmallVector<CCValAssign, 16> RVLocs;
4323   CCState CCRetInfo(CallConv, isVarArg, DAG.getMachineFunction(), RVLocs,
4324                     *DAG.getContext());
4325   CCRetInfo.AnalyzeCallResult(Ins, RetCC_PPC);
4326 
4327   // Copy all of the result registers out of their specified physreg.
4328   for (unsigned i = 0, e = RVLocs.size(); i != e; ++i) {
4329     CCValAssign &VA = RVLocs[i];
4330     assert(VA.isRegLoc() && "Can only return in registers!");
4331 
4332     SDValue Val = DAG.getCopyFromReg(Chain, dl,
4333                                      VA.getLocReg(), VA.getLocVT(), InFlag);
4334     Chain = Val.getValue(1);
4335     InFlag = Val.getValue(2);
4336 
4337     switch (VA.getLocInfo()) {
4338     default: llvm_unreachable("Unknown loc info!");
4339     case CCValAssign::Full: break;
4340     case CCValAssign::AExt:
4341       Val = DAG.getNode(ISD::TRUNCATE, dl, VA.getValVT(), Val);
4342       break;
4343     case CCValAssign::ZExt:
4344       Val = DAG.getNode(ISD::AssertZext, dl, VA.getLocVT(), Val,
4345                         DAG.getValueType(VA.getValVT()));
4346       Val = DAG.getNode(ISD::TRUNCATE, dl, VA.getValVT(), Val);
4347       break;
4348     case CCValAssign::SExt:
4349       Val = DAG.getNode(ISD::AssertSext, dl, VA.getLocVT(), Val,
4350                         DAG.getValueType(VA.getValVT()));
4351       Val = DAG.getNode(ISD::TRUNCATE, dl, VA.getValVT(), Val);
4352       break;
4353     }
4354 
4355     InVals.push_back(Val);
4356   }
4357 
4358   return Chain;
4359 }
4360 
4361 SDValue
4362 PPCTargetLowering::FinishCall(CallingConv::ID CallConv, SDLoc dl,
4363                               bool isTailCall, bool isVarArg, bool IsPatchPoint,
4364                               bool hasNest, SelectionDAG &DAG,
4365                               SmallVector<std::pair<unsigned, SDValue>, 8>
4366                                 &RegsToPass,
4367                               SDValue InFlag, SDValue Chain,
4368                               SDValue CallSeqStart, SDValue &Callee,
4369                               int SPDiff, unsigned NumBytes,
4370                               const SmallVectorImpl<ISD::InputArg> &Ins,
4371                               SmallVectorImpl<SDValue> &InVals,
4372                               ImmutableCallSite *CS) const {
4373 
4374   std::vector<EVT> NodeTys;
4375   SmallVector<SDValue, 8> Ops;
4376   unsigned CallOpc = PrepareCall(DAG, Callee, InFlag, Chain, CallSeqStart, dl,
4377                                  SPDiff, isTailCall, IsPatchPoint, hasNest,
4378                                  RegsToPass, Ops, NodeTys, CS, Subtarget);
4379 
4380   // Add implicit use of CR bit 6 for 32-bit SVR4 vararg calls
4381   if (isVarArg && Subtarget.isSVR4ABI() && !Subtarget.isPPC64())
4382     Ops.push_back(DAG.getRegister(PPC::CR1EQ, MVT::i32));
4383 
4384   // When performing tail call optimization the callee pops its arguments off
4385   // the stack. Account for this here so these bytes can be pushed back on in
4386   // PPCFrameLowering::eliminateCallFramePseudoInstr.
4387   int BytesCalleePops =
4388     (CallConv == CallingConv::Fast &&
4389      getTargetMachine().Options.GuaranteedTailCallOpt) ? NumBytes : 0;
4390 
4391   // Add a register mask operand representing the call-preserved registers.
4392   const TargetRegisterInfo *TRI = Subtarget.getRegisterInfo();
4393   const uint32_t *Mask =
4394       TRI->getCallPreservedMask(DAG.getMachineFunction(), CallConv);
4395   assert(Mask && "Missing call preserved mask for calling convention");
4396   Ops.push_back(DAG.getRegisterMask(Mask));
4397 
4398   if (InFlag.getNode())
4399     Ops.push_back(InFlag);
4400 
4401   // Emit tail call.
4402   if (isTailCall) {
4403     assert(((Callee.getOpcode() == ISD::Register &&
4404              cast<RegisterSDNode>(Callee)->getReg() == PPC::CTR) ||
4405             Callee.getOpcode() == ISD::TargetExternalSymbol ||
4406             Callee.getOpcode() == ISD::TargetGlobalAddress ||
4407             isa<ConstantSDNode>(Callee)) &&
4408     "Expecting an global address, external symbol, absolute value or register");
4409 
4410     DAG.getMachineFunction().getFrameInfo()->setHasTailCall();
4411     return DAG.getNode(PPCISD::TC_RETURN, dl, MVT::Other, Ops);
4412   }
4413 
4414   // Add a NOP immediately after the branch instruction when using the 64-bit
4415   // SVR4 ABI. At link time, if caller and callee are in a different module and
4416   // thus have a different TOC, the call will be replaced with a call to a stub
4417   // function which saves the current TOC, loads the TOC of the callee and
4418   // branches to the callee. The NOP will be replaced with a load instruction
4419   // which restores the TOC of the caller from the TOC save slot of the current
4420   // stack frame. If caller and callee belong to the same module (and have the
4421   // same TOC), the NOP will remain unchanged.
4422 
4423   if (!isTailCall && Subtarget.isSVR4ABI()&& Subtarget.isPPC64() &&
4424       !IsPatchPoint) {
4425     if (CallOpc == PPCISD::BCTRL) {
4426       // This is a call through a function pointer.
4427       // Restore the caller TOC from the save area into R2.
4428       // See PrepareCall() for more information about calls through function
4429       // pointers in the 64-bit SVR4 ABI.
4430       // We are using a target-specific load with r2 hard coded, because the
4431       // result of a target-independent load would never go directly into r2,
4432       // since r2 is a reserved register (which prevents the register allocator
4433       // from allocating it), resulting in an additional register being
4434       // allocated and an unnecessary move instruction being generated.
4435       CallOpc = PPCISD::BCTRL_LOAD_TOC;
4436 
4437       EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(DAG.getDataLayout());
4438       SDValue StackPtr = DAG.getRegister(PPC::X1, PtrVT);
4439       unsigned TOCSaveOffset = Subtarget.getFrameLowering()->getTOCSaveOffset();
4440       SDValue TOCOff = DAG.getIntPtrConstant(TOCSaveOffset, dl);
4441       SDValue AddTOC = DAG.getNode(ISD::ADD, dl, MVT::i64, StackPtr, TOCOff);
4442 
4443       // The address needs to go after the chain input but before the flag (or
4444       // any other variadic arguments).
4445       Ops.insert(std::next(Ops.begin()), AddTOC);
4446     } else if ((CallOpc == PPCISD::CALL) &&
4447                (!isLocalCall(Callee) ||
4448                 DAG.getTarget().getRelocationModel() == Reloc::PIC_))
4449       // Otherwise insert NOP for non-local calls.
4450       CallOpc = PPCISD::CALL_NOP;
4451   }
4452 
4453   Chain = DAG.getNode(CallOpc, dl, NodeTys, Ops);
4454   InFlag = Chain.getValue(1);
4455 
4456   Chain = DAG.getCALLSEQ_END(Chain, DAG.getIntPtrConstant(NumBytes, dl, true),
4457                              DAG.getIntPtrConstant(BytesCalleePops, dl, true),
4458                              InFlag, dl);
4459   if (!Ins.empty())
4460     InFlag = Chain.getValue(1);
4461 
4462   return LowerCallResult(Chain, InFlag, CallConv, isVarArg,
4463                          Ins, dl, DAG, InVals);
4464 }
4465 
4466 SDValue
4467 PPCTargetLowering::LowerCall(TargetLowering::CallLoweringInfo &CLI,
4468                              SmallVectorImpl<SDValue> &InVals) const {
4469   SelectionDAG &DAG                     = CLI.DAG;
4470   SDLoc &dl                             = CLI.DL;
4471   SmallVectorImpl<ISD::OutputArg> &Outs = CLI.Outs;
4472   SmallVectorImpl<SDValue> &OutVals     = CLI.OutVals;
4473   SmallVectorImpl<ISD::InputArg> &Ins   = CLI.Ins;
4474   SDValue Chain                         = CLI.Chain;
4475   SDValue Callee                        = CLI.Callee;
4476   bool &isTailCall                      = CLI.IsTailCall;
4477   CallingConv::ID CallConv              = CLI.CallConv;
4478   bool isVarArg                         = CLI.IsVarArg;
4479   bool IsPatchPoint                     = CLI.IsPatchPoint;
4480   ImmutableCallSite *CS                 = CLI.CS;
4481 
4482   if (isTailCall)
4483     isTailCall = IsEligibleForTailCallOptimization(Callee, CallConv, isVarArg,
4484                                                    Ins, DAG);
4485 
4486   if (!isTailCall && CS && CS->isMustTailCall())
4487     report_fatal_error("failed to perform tail call elimination on a call "
4488                        "site marked musttail");
4489 
4490   if (Subtarget.isSVR4ABI()) {
4491     if (Subtarget.isPPC64())
4492       return LowerCall_64SVR4(Chain, Callee, CallConv, isVarArg,
4493                               isTailCall, IsPatchPoint, Outs, OutVals, Ins,
4494                               dl, DAG, InVals, CS);
4495     else
4496       return LowerCall_32SVR4(Chain, Callee, CallConv, isVarArg,
4497                               isTailCall, IsPatchPoint, Outs, OutVals, Ins,
4498                               dl, DAG, InVals, CS);
4499   }
4500 
4501   return LowerCall_Darwin(Chain, Callee, CallConv, isVarArg,
4502                           isTailCall, IsPatchPoint, Outs, OutVals, Ins,
4503                           dl, DAG, InVals, CS);
4504 }
4505 
4506 SDValue
4507 PPCTargetLowering::LowerCall_32SVR4(SDValue Chain, SDValue Callee,
4508                                     CallingConv::ID CallConv, bool isVarArg,
4509                                     bool isTailCall, bool IsPatchPoint,
4510                                     const SmallVectorImpl<ISD::OutputArg> &Outs,
4511                                     const SmallVectorImpl<SDValue> &OutVals,
4512                                     const SmallVectorImpl<ISD::InputArg> &Ins,
4513                                     SDLoc dl, SelectionDAG &DAG,
4514                                     SmallVectorImpl<SDValue> &InVals,
4515                                     ImmutableCallSite *CS) const {
4516   // See PPCTargetLowering::LowerFormalArguments_32SVR4() for a description
4517   // of the 32-bit SVR4 ABI stack frame layout.
4518 
4519   assert((CallConv == CallingConv::C ||
4520           CallConv == CallingConv::Fast) && "Unknown calling convention!");
4521 
4522   unsigned PtrByteSize = 4;
4523 
4524   MachineFunction &MF = DAG.getMachineFunction();
4525 
4526   // Mark this function as potentially containing a function that contains a
4527   // tail call. As a consequence the frame pointer will be used for dynamicalloc
4528   // and restoring the callers stack pointer in this functions epilog. This is
4529   // done because by tail calling the called function might overwrite the value
4530   // in this function's (MF) stack pointer stack slot 0(SP).
4531   if (getTargetMachine().Options.GuaranteedTailCallOpt &&
4532       CallConv == CallingConv::Fast)
4533     MF.getInfo<PPCFunctionInfo>()->setHasFastCall();
4534 
4535   // Count how many bytes are to be pushed on the stack, including the linkage
4536   // area, parameter list area and the part of the local variable space which
4537   // contains copies of aggregates which are passed by value.
4538 
4539   // Assign locations to all of the outgoing arguments.
4540   SmallVector<CCValAssign, 16> ArgLocs;
4541   CCState CCInfo(CallConv, isVarArg, DAG.getMachineFunction(), ArgLocs,
4542                  *DAG.getContext());
4543 
4544   // Reserve space for the linkage area on the stack.
4545   CCInfo.AllocateStack(Subtarget.getFrameLowering()->getLinkageSize(),
4546                        PtrByteSize);
4547 
4548   if (isVarArg) {
4549     // Handle fixed and variable vector arguments differently.
4550     // Fixed vector arguments go into registers as long as registers are
4551     // available. Variable vector arguments always go into memory.
4552     unsigned NumArgs = Outs.size();
4553 
4554     for (unsigned i = 0; i != NumArgs; ++i) {
4555       MVT ArgVT = Outs[i].VT;
4556       ISD::ArgFlagsTy ArgFlags = Outs[i].Flags;
4557       bool Result;
4558 
4559       if (Outs[i].IsFixed) {
4560         Result = CC_PPC32_SVR4(i, ArgVT, ArgVT, CCValAssign::Full, ArgFlags,
4561                                CCInfo);
4562       } else {
4563         Result = CC_PPC32_SVR4_VarArg(i, ArgVT, ArgVT, CCValAssign::Full,
4564                                       ArgFlags, CCInfo);
4565       }
4566 
4567       if (Result) {
4568 #ifndef NDEBUG
4569         errs() << "Call operand #" << i << " has unhandled type "
4570              << EVT(ArgVT).getEVTString() << "\n";
4571 #endif
4572         llvm_unreachable(nullptr);
4573       }
4574     }
4575   } else {
4576     // All arguments are treated the same.
4577     CCInfo.AnalyzeCallOperands(Outs, CC_PPC32_SVR4);
4578   }
4579 
4580   // Assign locations to all of the outgoing aggregate by value arguments.
4581   SmallVector<CCValAssign, 16> ByValArgLocs;
4582   CCState CCByValInfo(CallConv, isVarArg, DAG.getMachineFunction(),
4583                       ByValArgLocs, *DAG.getContext());
4584 
4585   // Reserve stack space for the allocations in CCInfo.
4586   CCByValInfo.AllocateStack(CCInfo.getNextStackOffset(), PtrByteSize);
4587 
4588   CCByValInfo.AnalyzeCallOperands(Outs, CC_PPC32_SVR4_ByVal);
4589 
4590   // Size of the linkage area, parameter list area and the part of the local
4591   // space variable where copies of aggregates which are passed by value are
4592   // stored.
4593   unsigned NumBytes = CCByValInfo.getNextStackOffset();
4594 
4595   // Calculate by how many bytes the stack has to be adjusted in case of tail
4596   // call optimization.
4597   int SPDiff = CalculateTailCallSPDiff(DAG, isTailCall, NumBytes);
4598 
4599   // Adjust the stack pointer for the new arguments...
4600   // These operations are automatically eliminated by the prolog/epilog pass
4601   Chain = DAG.getCALLSEQ_START(Chain, DAG.getIntPtrConstant(NumBytes, dl, true),
4602                                dl);
4603   SDValue CallSeqStart = Chain;
4604 
4605   // Load the return address and frame pointer so it can be moved somewhere else
4606   // later.
4607   SDValue LROp, FPOp;
4608   Chain = EmitTailCallLoadFPAndRetAddr(DAG, SPDiff, Chain, LROp, FPOp, false,
4609                                        dl);
4610 
4611   // Set up a copy of the stack pointer for use loading and storing any
4612   // arguments that may not fit in the registers available for argument
4613   // passing.
4614   SDValue StackPtr = DAG.getRegister(PPC::R1, MVT::i32);
4615 
4616   SmallVector<std::pair<unsigned, SDValue>, 8> RegsToPass;
4617   SmallVector<TailCallArgumentInfo, 8> TailCallArguments;
4618   SmallVector<SDValue, 8> MemOpChains;
4619 
4620   bool seenFloatArg = false;
4621   // Walk the register/memloc assignments, inserting copies/loads.
4622   for (unsigned i = 0, j = 0, e = ArgLocs.size();
4623        i != e;
4624        ++i) {
4625     CCValAssign &VA = ArgLocs[i];
4626     SDValue Arg = OutVals[i];
4627     ISD::ArgFlagsTy Flags = Outs[i].Flags;
4628 
4629     if (Flags.isByVal()) {
4630       // Argument is an aggregate which is passed by value, thus we need to
4631       // create a copy of it in the local variable space of the current stack
4632       // frame (which is the stack frame of the caller) and pass the address of
4633       // this copy to the callee.
4634       assert((j < ByValArgLocs.size()) && "Index out of bounds!");
4635       CCValAssign &ByValVA = ByValArgLocs[j++];
4636       assert((VA.getValNo() == ByValVA.getValNo()) && "ValNo mismatch!");
4637 
4638       // Memory reserved in the local variable space of the callers stack frame.
4639       unsigned LocMemOffset = ByValVA.getLocMemOffset();
4640 
4641       SDValue PtrOff = DAG.getIntPtrConstant(LocMemOffset, dl);
4642       PtrOff = DAG.getNode(ISD::ADD, dl, getPointerTy(MF.getDataLayout()),
4643                            StackPtr, PtrOff);
4644 
4645       // Create a copy of the argument in the local area of the current
4646       // stack frame.
4647       SDValue MemcpyCall =
4648         CreateCopyOfByValArgument(Arg, PtrOff,
4649                                   CallSeqStart.getNode()->getOperand(0),
4650                                   Flags, DAG, dl);
4651 
4652       // This must go outside the CALLSEQ_START..END.
4653       SDValue NewCallSeqStart = DAG.getCALLSEQ_START(MemcpyCall,
4654                            CallSeqStart.getNode()->getOperand(1),
4655                            SDLoc(MemcpyCall));
4656       DAG.ReplaceAllUsesWith(CallSeqStart.getNode(),
4657                              NewCallSeqStart.getNode());
4658       Chain = CallSeqStart = NewCallSeqStart;
4659 
4660       // Pass the address of the aggregate copy on the stack either in a
4661       // physical register or in the parameter list area of the current stack
4662       // frame to the callee.
4663       Arg = PtrOff;
4664     }
4665 
4666     if (VA.isRegLoc()) {
4667       if (Arg.getValueType() == MVT::i1)
4668         Arg = DAG.getNode(ISD::ZERO_EXTEND, dl, MVT::i32, Arg);
4669 
4670       seenFloatArg |= VA.getLocVT().isFloatingPoint();
4671       // Put argument in a physical register.
4672       RegsToPass.push_back(std::make_pair(VA.getLocReg(), Arg));
4673     } else {
4674       // Put argument in the parameter list area of the current stack frame.
4675       assert(VA.isMemLoc());
4676       unsigned LocMemOffset = VA.getLocMemOffset();
4677 
4678       if (!isTailCall) {
4679         SDValue PtrOff = DAG.getIntPtrConstant(LocMemOffset, dl);
4680         PtrOff = DAG.getNode(ISD::ADD, dl, getPointerTy(MF.getDataLayout()),
4681                              StackPtr, PtrOff);
4682 
4683         MemOpChains.push_back(DAG.getStore(Chain, dl, Arg, PtrOff,
4684                                            MachinePointerInfo(),
4685                                            false, false, 0));
4686       } else {
4687         // Calculate and remember argument location.
4688         CalculateTailCallArgDest(DAG, MF, false, Arg, SPDiff, LocMemOffset,
4689                                  TailCallArguments);
4690       }
4691     }
4692   }
4693 
4694   if (!MemOpChains.empty())
4695     Chain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, MemOpChains);
4696 
4697   // Build a sequence of copy-to-reg nodes chained together with token chain
4698   // and flag operands which copy the outgoing args into the appropriate regs.
4699   SDValue InFlag;
4700   for (unsigned i = 0, e = RegsToPass.size(); i != e; ++i) {
4701     Chain = DAG.getCopyToReg(Chain, dl, RegsToPass[i].first,
4702                              RegsToPass[i].second, InFlag);
4703     InFlag = Chain.getValue(1);
4704   }
4705 
4706   // Set CR bit 6 to true if this is a vararg call with floating args passed in
4707   // registers.
4708   if (isVarArg) {
4709     SDVTList VTs = DAG.getVTList(MVT::Other, MVT::Glue);
4710     SDValue Ops[] = { Chain, InFlag };
4711 
4712     Chain = DAG.getNode(seenFloatArg ? PPCISD::CR6SET : PPCISD::CR6UNSET,
4713                         dl, VTs, makeArrayRef(Ops, InFlag.getNode() ? 2 : 1));
4714 
4715     InFlag = Chain.getValue(1);
4716   }
4717 
4718   if (isTailCall)
4719     PrepareTailCall(DAG, InFlag, Chain, dl, false, SPDiff, NumBytes, LROp, FPOp,
4720                     false, TailCallArguments);
4721 
4722   return FinishCall(CallConv, dl, isTailCall, isVarArg, IsPatchPoint,
4723                     /* unused except on PPC64 ELFv1 */ false, DAG,
4724                     RegsToPass, InFlag, Chain, CallSeqStart, Callee, SPDiff,
4725                     NumBytes, Ins, InVals, CS);
4726 }
4727 
4728 // Copy an argument into memory, being careful to do this outside the
4729 // call sequence for the call to which the argument belongs.
4730 SDValue
4731 PPCTargetLowering::createMemcpyOutsideCallSeq(SDValue Arg, SDValue PtrOff,
4732                                               SDValue CallSeqStart,
4733                                               ISD::ArgFlagsTy Flags,
4734                                               SelectionDAG &DAG,
4735                                               SDLoc dl) const {
4736   SDValue MemcpyCall = CreateCopyOfByValArgument(Arg, PtrOff,
4737                         CallSeqStart.getNode()->getOperand(0),
4738                         Flags, DAG, dl);
4739   // The MEMCPY must go outside the CALLSEQ_START..END.
4740   SDValue NewCallSeqStart = DAG.getCALLSEQ_START(MemcpyCall,
4741                              CallSeqStart.getNode()->getOperand(1),
4742                              SDLoc(MemcpyCall));
4743   DAG.ReplaceAllUsesWith(CallSeqStart.getNode(),
4744                          NewCallSeqStart.getNode());
4745   return NewCallSeqStart;
4746 }
4747 
4748 SDValue
4749 PPCTargetLowering::LowerCall_64SVR4(SDValue Chain, SDValue Callee,
4750                                     CallingConv::ID CallConv, bool isVarArg,
4751                                     bool isTailCall, bool IsPatchPoint,
4752                                     const SmallVectorImpl<ISD::OutputArg> &Outs,
4753                                     const SmallVectorImpl<SDValue> &OutVals,
4754                                     const SmallVectorImpl<ISD::InputArg> &Ins,
4755                                     SDLoc dl, SelectionDAG &DAG,
4756                                     SmallVectorImpl<SDValue> &InVals,
4757                                     ImmutableCallSite *CS) const {
4758 
4759   bool isELFv2ABI = Subtarget.isELFv2ABI();
4760   bool isLittleEndian = Subtarget.isLittleEndian();
4761   unsigned NumOps = Outs.size();
4762   bool hasNest = false;
4763 
4764   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(DAG.getDataLayout());
4765   unsigned PtrByteSize = 8;
4766 
4767   MachineFunction &MF = DAG.getMachineFunction();
4768 
4769   // Mark this function as potentially containing a function that contains a
4770   // tail call. As a consequence the frame pointer will be used for dynamicalloc
4771   // and restoring the callers stack pointer in this functions epilog. This is
4772   // done because by tail calling the called function might overwrite the value
4773   // in this function's (MF) stack pointer stack slot 0(SP).
4774   if (getTargetMachine().Options.GuaranteedTailCallOpt &&
4775       CallConv == CallingConv::Fast)
4776     MF.getInfo<PPCFunctionInfo>()->setHasFastCall();
4777 
4778   assert(!(CallConv == CallingConv::Fast && isVarArg) &&
4779          "fastcc not supported on varargs functions");
4780 
4781   // Count how many bytes are to be pushed on the stack, including the linkage
4782   // area, and parameter passing area.  On ELFv1, the linkage area is 48 bytes
4783   // reserved space for [SP][CR][LR][2 x unused][TOC]; on ELFv2, the linkage
4784   // area is 32 bytes reserved space for [SP][CR][LR][TOC].
4785   unsigned LinkageSize = Subtarget.getFrameLowering()->getLinkageSize();
4786   unsigned NumBytes = LinkageSize;
4787   unsigned GPR_idx = 0, FPR_idx = 0, VR_idx = 0;
4788   unsigned &QFPR_idx = FPR_idx;
4789 
4790   static const MCPhysReg GPR[] = {
4791     PPC::X3, PPC::X4, PPC::X5, PPC::X6,
4792     PPC::X7, PPC::X8, PPC::X9, PPC::X10,
4793   };
4794   static const MCPhysReg VR[] = {
4795     PPC::V2, PPC::V3, PPC::V4, PPC::V5, PPC::V6, PPC::V7, PPC::V8,
4796     PPC::V9, PPC::V10, PPC::V11, PPC::V12, PPC::V13
4797   };
4798   static const MCPhysReg VSRH[] = {
4799     PPC::VSH2, PPC::VSH3, PPC::VSH4, PPC::VSH5, PPC::VSH6, PPC::VSH7, PPC::VSH8,
4800     PPC::VSH9, PPC::VSH10, PPC::VSH11, PPC::VSH12, PPC::VSH13
4801   };
4802 
4803   const unsigned NumGPRs = array_lengthof(GPR);
4804   const unsigned NumFPRs = 13;
4805   const unsigned NumVRs  = array_lengthof(VR);
4806   const unsigned NumQFPRs = NumFPRs;
4807 
4808   // When using the fast calling convention, we don't provide backing for
4809   // arguments that will be in registers.
4810   unsigned NumGPRsUsed = 0, NumFPRsUsed = 0, NumVRsUsed = 0;
4811 
4812   // Add up all the space actually used.
4813   for (unsigned i = 0; i != NumOps; ++i) {
4814     ISD::ArgFlagsTy Flags = Outs[i].Flags;
4815     EVT ArgVT = Outs[i].VT;
4816     EVT OrigVT = Outs[i].ArgVT;
4817 
4818     if (Flags.isNest())
4819       continue;
4820 
4821     if (CallConv == CallingConv::Fast) {
4822       if (Flags.isByVal())
4823         NumGPRsUsed += (Flags.getByValSize()+7)/8;
4824       else
4825         switch (ArgVT.getSimpleVT().SimpleTy) {
4826         default: llvm_unreachable("Unexpected ValueType for argument!");
4827         case MVT::i1:
4828         case MVT::i32:
4829         case MVT::i64:
4830           if (++NumGPRsUsed <= NumGPRs)
4831             continue;
4832           break;
4833         case MVT::v4i32:
4834         case MVT::v8i16:
4835         case MVT::v16i8:
4836         case MVT::v2f64:
4837         case MVT::v2i64:
4838         case MVT::v1i128:
4839           if (++NumVRsUsed <= NumVRs)
4840             continue;
4841           break;
4842         case MVT::v4f32:
4843           // When using QPX, this is handled like a FP register, otherwise, it
4844           // is an Altivec register.
4845           if (Subtarget.hasQPX()) {
4846             if (++NumFPRsUsed <= NumFPRs)
4847               continue;
4848           } else {
4849             if (++NumVRsUsed <= NumVRs)
4850               continue;
4851           }
4852           break;
4853         case MVT::f32:
4854         case MVT::f64:
4855         case MVT::v4f64: // QPX
4856         case MVT::v4i1:  // QPX
4857           if (++NumFPRsUsed <= NumFPRs)
4858             continue;
4859           break;
4860         }
4861     }
4862 
4863     /* Respect alignment of argument on the stack.  */
4864     unsigned Align =
4865       CalculateStackSlotAlignment(ArgVT, OrigVT, Flags, PtrByteSize);
4866     NumBytes = ((NumBytes + Align - 1) / Align) * Align;
4867 
4868     NumBytes += CalculateStackSlotSize(ArgVT, Flags, PtrByteSize);
4869     if (Flags.isInConsecutiveRegsLast())
4870       NumBytes = ((NumBytes + PtrByteSize - 1)/PtrByteSize) * PtrByteSize;
4871   }
4872 
4873   unsigned NumBytesActuallyUsed = NumBytes;
4874 
4875   // The prolog code of the callee may store up to 8 GPR argument registers to
4876   // the stack, allowing va_start to index over them in memory if its varargs.
4877   // Because we cannot tell if this is needed on the caller side, we have to
4878   // conservatively assume that it is needed.  As such, make sure we have at
4879   // least enough stack space for the caller to store the 8 GPRs.
4880   // FIXME: On ELFv2, it may be unnecessary to allocate the parameter area.
4881   NumBytes = std::max(NumBytes, LinkageSize + 8 * PtrByteSize);
4882 
4883   // Tail call needs the stack to be aligned.
4884   if (getTargetMachine().Options.GuaranteedTailCallOpt &&
4885       CallConv == CallingConv::Fast)
4886     NumBytes = EnsureStackAlignment(Subtarget.getFrameLowering(), NumBytes);
4887 
4888   // Calculate by how many bytes the stack has to be adjusted in case of tail
4889   // call optimization.
4890   int SPDiff = CalculateTailCallSPDiff(DAG, isTailCall, NumBytes);
4891 
4892   // To protect arguments on the stack from being clobbered in a tail call,
4893   // force all the loads to happen before doing any other lowering.
4894   if (isTailCall)
4895     Chain = DAG.getStackArgumentTokenFactor(Chain);
4896 
4897   // Adjust the stack pointer for the new arguments...
4898   // These operations are automatically eliminated by the prolog/epilog pass
4899   Chain = DAG.getCALLSEQ_START(Chain, DAG.getIntPtrConstant(NumBytes, dl, true),
4900                                dl);
4901   SDValue CallSeqStart = Chain;
4902 
4903   // Load the return address and frame pointer so it can be move somewhere else
4904   // later.
4905   SDValue LROp, FPOp;
4906   Chain = EmitTailCallLoadFPAndRetAddr(DAG, SPDiff, Chain, LROp, FPOp, true,
4907                                        dl);
4908 
4909   // Set up a copy of the stack pointer for use loading and storing any
4910   // arguments that may not fit in the registers available for argument
4911   // passing.
4912   SDValue StackPtr = DAG.getRegister(PPC::X1, MVT::i64);
4913 
4914   // Figure out which arguments are going to go in registers, and which in
4915   // memory.  Also, if this is a vararg function, floating point operations
4916   // must be stored to our stack, and loaded into integer regs as well, if
4917   // any integer regs are available for argument passing.
4918   unsigned ArgOffset = LinkageSize;
4919 
4920   SmallVector<std::pair<unsigned, SDValue>, 8> RegsToPass;
4921   SmallVector<TailCallArgumentInfo, 8> TailCallArguments;
4922 
4923   SmallVector<SDValue, 8> MemOpChains;
4924   for (unsigned i = 0; i != NumOps; ++i) {
4925     SDValue Arg = OutVals[i];
4926     ISD::ArgFlagsTy Flags = Outs[i].Flags;
4927     EVT ArgVT = Outs[i].VT;
4928     EVT OrigVT = Outs[i].ArgVT;
4929 
4930     // PtrOff will be used to store the current argument to the stack if a
4931     // register cannot be found for it.
4932     SDValue PtrOff;
4933 
4934     // We re-align the argument offset for each argument, except when using the
4935     // fast calling convention, when we need to make sure we do that only when
4936     // we'll actually use a stack slot.
4937     auto ComputePtrOff = [&]() {
4938       /* Respect alignment of argument on the stack.  */
4939       unsigned Align =
4940         CalculateStackSlotAlignment(ArgVT, OrigVT, Flags, PtrByteSize);
4941       ArgOffset = ((ArgOffset + Align - 1) / Align) * Align;
4942 
4943       PtrOff = DAG.getConstant(ArgOffset, dl, StackPtr.getValueType());
4944 
4945       PtrOff = DAG.getNode(ISD::ADD, dl, PtrVT, StackPtr, PtrOff);
4946     };
4947 
4948     if (CallConv != CallingConv::Fast) {
4949       ComputePtrOff();
4950 
4951       /* Compute GPR index associated with argument offset.  */
4952       GPR_idx = (ArgOffset - LinkageSize) / PtrByteSize;
4953       GPR_idx = std::min(GPR_idx, NumGPRs);
4954     }
4955 
4956     // Promote integers to 64-bit values.
4957     if (Arg.getValueType() == MVT::i32 || Arg.getValueType() == MVT::i1) {
4958       // FIXME: Should this use ANY_EXTEND if neither sext nor zext?
4959       unsigned ExtOp = Flags.isSExt() ? ISD::SIGN_EXTEND : ISD::ZERO_EXTEND;
4960       Arg = DAG.getNode(ExtOp, dl, MVT::i64, Arg);
4961     }
4962 
4963     // FIXME memcpy is used way more than necessary.  Correctness first.
4964     // Note: "by value" is code for passing a structure by value, not
4965     // basic types.
4966     if (Flags.isByVal()) {
4967       // Note: Size includes alignment padding, so
4968       //   struct x { short a; char b; }
4969       // will have Size = 4.  With #pragma pack(1), it will have Size = 3.
4970       // These are the proper values we need for right-justifying the
4971       // aggregate in a parameter register.
4972       unsigned Size = Flags.getByValSize();
4973 
4974       // An empty aggregate parameter takes up no storage and no
4975       // registers.
4976       if (Size == 0)
4977         continue;
4978 
4979       if (CallConv == CallingConv::Fast)
4980         ComputePtrOff();
4981 
4982       // All aggregates smaller than 8 bytes must be passed right-justified.
4983       if (Size==1 || Size==2 || Size==4) {
4984         EVT VT = (Size==1) ? MVT::i8 : ((Size==2) ? MVT::i16 : MVT::i32);
4985         if (GPR_idx != NumGPRs) {
4986           SDValue Load = DAG.getExtLoad(ISD::EXTLOAD, dl, PtrVT, Chain, Arg,
4987                                         MachinePointerInfo(), VT,
4988                                         false, false, false, 0);
4989           MemOpChains.push_back(Load.getValue(1));
4990           RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], Load));
4991 
4992           ArgOffset += PtrByteSize;
4993           continue;
4994         }
4995       }
4996 
4997       if (GPR_idx == NumGPRs && Size < 8) {
4998         SDValue AddPtr = PtrOff;
4999         if (!isLittleEndian) {
5000           SDValue Const = DAG.getConstant(PtrByteSize - Size, dl,
5001                                           PtrOff.getValueType());
5002           AddPtr = DAG.getNode(ISD::ADD, dl, PtrVT, PtrOff, Const);
5003         }
5004         Chain = CallSeqStart = createMemcpyOutsideCallSeq(Arg, AddPtr,
5005                                                           CallSeqStart,
5006                                                           Flags, DAG, dl);
5007         ArgOffset += PtrByteSize;
5008         continue;
5009       }
5010       // Copy entire object into memory.  There are cases where gcc-generated
5011       // code assumes it is there, even if it could be put entirely into
5012       // registers.  (This is not what the doc says.)
5013 
5014       // FIXME: The above statement is likely due to a misunderstanding of the
5015       // documents.  All arguments must be copied into the parameter area BY
5016       // THE CALLEE in the event that the callee takes the address of any
5017       // formal argument.  That has not yet been implemented.  However, it is
5018       // reasonable to use the stack area as a staging area for the register
5019       // load.
5020 
5021       // Skip this for small aggregates, as we will use the same slot for a
5022       // right-justified copy, below.
5023       if (Size >= 8)
5024         Chain = CallSeqStart = createMemcpyOutsideCallSeq(Arg, PtrOff,
5025                                                           CallSeqStart,
5026                                                           Flags, DAG, dl);
5027 
5028       // When a register is available, pass a small aggregate right-justified.
5029       if (Size < 8 && GPR_idx != NumGPRs) {
5030         // The easiest way to get this right-justified in a register
5031         // is to copy the structure into the rightmost portion of a
5032         // local variable slot, then load the whole slot into the
5033         // register.
5034         // FIXME: The memcpy seems to produce pretty awful code for
5035         // small aggregates, particularly for packed ones.
5036         // FIXME: It would be preferable to use the slot in the
5037         // parameter save area instead of a new local variable.
5038         SDValue AddPtr = PtrOff;
5039         if (!isLittleEndian) {
5040           SDValue Const = DAG.getConstant(8 - Size, dl, PtrOff.getValueType());
5041           AddPtr = DAG.getNode(ISD::ADD, dl, PtrVT, PtrOff, Const);
5042         }
5043         Chain = CallSeqStart = createMemcpyOutsideCallSeq(Arg, AddPtr,
5044                                                           CallSeqStart,
5045                                                           Flags, DAG, dl);
5046 
5047         // Load the slot into the register.
5048         SDValue Load = DAG.getLoad(PtrVT, dl, Chain, PtrOff,
5049                                    MachinePointerInfo(),
5050                                    false, false, false, 0);
5051         MemOpChains.push_back(Load.getValue(1));
5052         RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], Load));
5053 
5054         // Done with this argument.
5055         ArgOffset += PtrByteSize;
5056         continue;
5057       }
5058 
5059       // For aggregates larger than PtrByteSize, copy the pieces of the
5060       // object that fit into registers from the parameter save area.
5061       for (unsigned j=0; j<Size; j+=PtrByteSize) {
5062         SDValue Const = DAG.getConstant(j, dl, PtrOff.getValueType());
5063         SDValue AddArg = DAG.getNode(ISD::ADD, dl, PtrVT, Arg, Const);
5064         if (GPR_idx != NumGPRs) {
5065           SDValue Load = DAG.getLoad(PtrVT, dl, Chain, AddArg,
5066                                      MachinePointerInfo(),
5067                                      false, false, false, 0);
5068           MemOpChains.push_back(Load.getValue(1));
5069           RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], Load));
5070           ArgOffset += PtrByteSize;
5071         } else {
5072           ArgOffset += ((Size - j + PtrByteSize-1)/PtrByteSize)*PtrByteSize;
5073           break;
5074         }
5075       }
5076       continue;
5077     }
5078 
5079     switch (Arg.getSimpleValueType().SimpleTy) {
5080     default: llvm_unreachable("Unexpected ValueType for argument!");
5081     case MVT::i1:
5082     case MVT::i32:
5083     case MVT::i64:
5084       if (Flags.isNest()) {
5085         // The 'nest' parameter, if any, is passed in R11.
5086         RegsToPass.push_back(std::make_pair(PPC::X11, Arg));
5087         hasNest = true;
5088         break;
5089       }
5090 
5091       // These can be scalar arguments or elements of an integer array type
5092       // passed directly.  Clang may use those instead of "byval" aggregate
5093       // types to avoid forcing arguments to memory unnecessarily.
5094       if (GPR_idx != NumGPRs) {
5095         RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], Arg));
5096       } else {
5097         if (CallConv == CallingConv::Fast)
5098           ComputePtrOff();
5099 
5100         LowerMemOpCallTo(DAG, MF, Chain, Arg, PtrOff, SPDiff, ArgOffset,
5101                          true, isTailCall, false, MemOpChains,
5102                          TailCallArguments, dl);
5103         if (CallConv == CallingConv::Fast)
5104           ArgOffset += PtrByteSize;
5105       }
5106       if (CallConv != CallingConv::Fast)
5107         ArgOffset += PtrByteSize;
5108       break;
5109     case MVT::f32:
5110     case MVT::f64: {
5111       // These can be scalar arguments or elements of a float array type
5112       // passed directly.  The latter are used to implement ELFv2 homogenous
5113       // float aggregates.
5114 
5115       // Named arguments go into FPRs first, and once they overflow, the
5116       // remaining arguments go into GPRs and then the parameter save area.
5117       // Unnamed arguments for vararg functions always go to GPRs and
5118       // then the parameter save area.  For now, put all arguments to vararg
5119       // routines always in both locations (FPR *and* GPR or stack slot).
5120       bool NeedGPROrStack = isVarArg || FPR_idx == NumFPRs;
5121       bool NeededLoad = false;
5122 
5123       // First load the argument into the next available FPR.
5124       if (FPR_idx != NumFPRs)
5125         RegsToPass.push_back(std::make_pair(FPR[FPR_idx++], Arg));
5126 
5127       // Next, load the argument into GPR or stack slot if needed.
5128       if (!NeedGPROrStack)
5129         ;
5130       else if (GPR_idx != NumGPRs && CallConv != CallingConv::Fast) {
5131         // FIXME: We may want to re-enable this for CallingConv::Fast on the P8
5132         // once we support fp <-> gpr moves.
5133 
5134         // In the non-vararg case, this can only ever happen in the
5135         // presence of f32 array types, since otherwise we never run
5136         // out of FPRs before running out of GPRs.
5137         SDValue ArgVal;
5138 
5139         // Double values are always passed in a single GPR.
5140         if (Arg.getValueType() != MVT::f32) {
5141           ArgVal = DAG.getNode(ISD::BITCAST, dl, MVT::i64, Arg);
5142 
5143         // Non-array float values are extended and passed in a GPR.
5144         } else if (!Flags.isInConsecutiveRegs()) {
5145           ArgVal = DAG.getNode(ISD::BITCAST, dl, MVT::i32, Arg);
5146           ArgVal = DAG.getNode(ISD::ANY_EXTEND, dl, MVT::i64, ArgVal);
5147 
5148         // If we have an array of floats, we collect every odd element
5149         // together with its predecessor into one GPR.
5150         } else if (ArgOffset % PtrByteSize != 0) {
5151           SDValue Lo, Hi;
5152           Lo = DAG.getNode(ISD::BITCAST, dl, MVT::i32, OutVals[i - 1]);
5153           Hi = DAG.getNode(ISD::BITCAST, dl, MVT::i32, Arg);
5154           if (!isLittleEndian)
5155             std::swap(Lo, Hi);
5156           ArgVal = DAG.getNode(ISD::BUILD_PAIR, dl, MVT::i64, Lo, Hi);
5157 
5158         // The final element, if even, goes into the first half of a GPR.
5159         } else if (Flags.isInConsecutiveRegsLast()) {
5160           ArgVal = DAG.getNode(ISD::BITCAST, dl, MVT::i32, Arg);
5161           ArgVal = DAG.getNode(ISD::ANY_EXTEND, dl, MVT::i64, ArgVal);
5162           if (!isLittleEndian)
5163             ArgVal = DAG.getNode(ISD::SHL, dl, MVT::i64, ArgVal,
5164                                  DAG.getConstant(32, dl, MVT::i32));
5165 
5166         // Non-final even elements are skipped; they will be handled
5167         // together the with subsequent argument on the next go-around.
5168         } else
5169           ArgVal = SDValue();
5170 
5171         if (ArgVal.getNode())
5172           RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], ArgVal));
5173       } else {
5174         if (CallConv == CallingConv::Fast)
5175           ComputePtrOff();
5176 
5177         // Single-precision floating-point values are mapped to the
5178         // second (rightmost) word of the stack doubleword.
5179         if (Arg.getValueType() == MVT::f32 &&
5180             !isLittleEndian && !Flags.isInConsecutiveRegs()) {
5181           SDValue ConstFour = DAG.getConstant(4, dl, PtrOff.getValueType());
5182           PtrOff = DAG.getNode(ISD::ADD, dl, PtrVT, PtrOff, ConstFour);
5183         }
5184 
5185         LowerMemOpCallTo(DAG, MF, Chain, Arg, PtrOff, SPDiff, ArgOffset,
5186                          true, isTailCall, false, MemOpChains,
5187                          TailCallArguments, dl);
5188 
5189         NeededLoad = true;
5190       }
5191       // When passing an array of floats, the array occupies consecutive
5192       // space in the argument area; only round up to the next doubleword
5193       // at the end of the array.  Otherwise, each float takes 8 bytes.
5194       if (CallConv != CallingConv::Fast || NeededLoad) {
5195         ArgOffset += (Arg.getValueType() == MVT::f32 &&
5196                       Flags.isInConsecutiveRegs()) ? 4 : 8;
5197         if (Flags.isInConsecutiveRegsLast())
5198           ArgOffset = ((ArgOffset + PtrByteSize - 1)/PtrByteSize) * PtrByteSize;
5199       }
5200       break;
5201     }
5202     case MVT::v4f32:
5203     case MVT::v4i32:
5204     case MVT::v8i16:
5205     case MVT::v16i8:
5206     case MVT::v2f64:
5207     case MVT::v2i64:
5208     case MVT::v1i128:
5209       if (!Subtarget.hasQPX()) {
5210       // These can be scalar arguments or elements of a vector array type
5211       // passed directly.  The latter are used to implement ELFv2 homogenous
5212       // vector aggregates.
5213 
5214       // For a varargs call, named arguments go into VRs or on the stack as
5215       // usual; unnamed arguments always go to the stack or the corresponding
5216       // GPRs when within range.  For now, we always put the value in both
5217       // locations (or even all three).
5218       if (isVarArg) {
5219         // We could elide this store in the case where the object fits
5220         // entirely in R registers.  Maybe later.
5221         SDValue Store = DAG.getStore(Chain, dl, Arg, PtrOff,
5222                                      MachinePointerInfo(), false, false, 0);
5223         MemOpChains.push_back(Store);
5224         if (VR_idx != NumVRs) {
5225           SDValue Load = DAG.getLoad(MVT::v4f32, dl, Store, PtrOff,
5226                                      MachinePointerInfo(),
5227                                      false, false, false, 0);
5228           MemOpChains.push_back(Load.getValue(1));
5229 
5230           unsigned VReg = (Arg.getSimpleValueType() == MVT::v2f64 ||
5231                            Arg.getSimpleValueType() == MVT::v2i64) ?
5232                           VSRH[VR_idx] : VR[VR_idx];
5233           ++VR_idx;
5234 
5235           RegsToPass.push_back(std::make_pair(VReg, Load));
5236         }
5237         ArgOffset += 16;
5238         for (unsigned i=0; i<16; i+=PtrByteSize) {
5239           if (GPR_idx == NumGPRs)
5240             break;
5241           SDValue Ix = DAG.getNode(ISD::ADD, dl, PtrVT, PtrOff,
5242                                    DAG.getConstant(i, dl, PtrVT));
5243           SDValue Load = DAG.getLoad(PtrVT, dl, Store, Ix, MachinePointerInfo(),
5244                                      false, false, false, 0);
5245           MemOpChains.push_back(Load.getValue(1));
5246           RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], Load));
5247         }
5248         break;
5249       }
5250 
5251       // Non-varargs Altivec params go into VRs or on the stack.
5252       if (VR_idx != NumVRs) {
5253         unsigned VReg = (Arg.getSimpleValueType() == MVT::v2f64 ||
5254                          Arg.getSimpleValueType() == MVT::v2i64) ?
5255                         VSRH[VR_idx] : VR[VR_idx];
5256         ++VR_idx;
5257 
5258         RegsToPass.push_back(std::make_pair(VReg, Arg));
5259       } else {
5260         if (CallConv == CallingConv::Fast)
5261           ComputePtrOff();
5262 
5263         LowerMemOpCallTo(DAG, MF, Chain, Arg, PtrOff, SPDiff, ArgOffset,
5264                          true, isTailCall, true, MemOpChains,
5265                          TailCallArguments, dl);
5266         if (CallConv == CallingConv::Fast)
5267           ArgOffset += 16;
5268       }
5269 
5270       if (CallConv != CallingConv::Fast)
5271         ArgOffset += 16;
5272       break;
5273       } // not QPX
5274 
5275       assert(Arg.getValueType().getSimpleVT().SimpleTy == MVT::v4f32 &&
5276              "Invalid QPX parameter type");
5277 
5278       /* fall through */
5279     case MVT::v4f64:
5280     case MVT::v4i1: {
5281       bool IsF32 = Arg.getValueType().getSimpleVT().SimpleTy == MVT::v4f32;
5282       if (isVarArg) {
5283         // We could elide this store in the case where the object fits
5284         // entirely in R registers.  Maybe later.
5285         SDValue Store = DAG.getStore(Chain, dl, Arg, PtrOff,
5286                                      MachinePointerInfo(), false, false, 0);
5287         MemOpChains.push_back(Store);
5288         if (QFPR_idx != NumQFPRs) {
5289           SDValue Load = DAG.getLoad(IsF32 ? MVT::v4f32 : MVT::v4f64, dl,
5290                                      Store, PtrOff, MachinePointerInfo(),
5291                                      false, false, false, 0);
5292           MemOpChains.push_back(Load.getValue(1));
5293           RegsToPass.push_back(std::make_pair(QFPR[QFPR_idx++], Load));
5294         }
5295         ArgOffset += (IsF32 ? 16 : 32);
5296         for (unsigned i = 0; i < (IsF32 ? 16U : 32U); i += PtrByteSize) {
5297           if (GPR_idx == NumGPRs)
5298             break;
5299           SDValue Ix = DAG.getNode(ISD::ADD, dl, PtrVT, PtrOff,
5300                                    DAG.getConstant(i, dl, PtrVT));
5301           SDValue Load = DAG.getLoad(PtrVT, dl, Store, Ix, MachinePointerInfo(),
5302                                      false, false, false, 0);
5303           MemOpChains.push_back(Load.getValue(1));
5304           RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], Load));
5305         }
5306         break;
5307       }
5308 
5309       // Non-varargs QPX params go into registers or on the stack.
5310       if (QFPR_idx != NumQFPRs) {
5311         RegsToPass.push_back(std::make_pair(QFPR[QFPR_idx++], Arg));
5312       } else {
5313         if (CallConv == CallingConv::Fast)
5314           ComputePtrOff();
5315 
5316         LowerMemOpCallTo(DAG, MF, Chain, Arg, PtrOff, SPDiff, ArgOffset,
5317                          true, isTailCall, true, MemOpChains,
5318                          TailCallArguments, dl);
5319         if (CallConv == CallingConv::Fast)
5320           ArgOffset += (IsF32 ? 16 : 32);
5321       }
5322 
5323       if (CallConv != CallingConv::Fast)
5324         ArgOffset += (IsF32 ? 16 : 32);
5325       break;
5326       }
5327     }
5328   }
5329 
5330   assert(NumBytesActuallyUsed == ArgOffset);
5331   (void)NumBytesActuallyUsed;
5332 
5333   if (!MemOpChains.empty())
5334     Chain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, MemOpChains);
5335 
5336   // Check if this is an indirect call (MTCTR/BCTRL).
5337   // See PrepareCall() for more information about calls through function
5338   // pointers in the 64-bit SVR4 ABI.
5339   if (!isTailCall && !IsPatchPoint &&
5340       !isFunctionGlobalAddress(Callee) &&
5341       !isa<ExternalSymbolSDNode>(Callee)) {
5342     // Load r2 into a virtual register and store it to the TOC save area.
5343     setUsesTOCBasePtr(DAG);
5344     SDValue Val = DAG.getCopyFromReg(Chain, dl, PPC::X2, MVT::i64);
5345     // TOC save area offset.
5346     unsigned TOCSaveOffset = Subtarget.getFrameLowering()->getTOCSaveOffset();
5347     SDValue PtrOff = DAG.getIntPtrConstant(TOCSaveOffset, dl);
5348     SDValue AddPtr = DAG.getNode(ISD::ADD, dl, PtrVT, StackPtr, PtrOff);
5349     Chain = DAG.getStore(
5350         Val.getValue(1), dl, Val, AddPtr,
5351         MachinePointerInfo::getStack(DAG.getMachineFunction(), TOCSaveOffset),
5352         false, false, 0);
5353     // In the ELFv2 ABI, R12 must contain the address of an indirect callee.
5354     // This does not mean the MTCTR instruction must use R12; it's easier
5355     // to model this as an extra parameter, so do that.
5356     if (isELFv2ABI && !IsPatchPoint)
5357       RegsToPass.push_back(std::make_pair((unsigned)PPC::X12, Callee));
5358   }
5359 
5360   // Build a sequence of copy-to-reg nodes chained together with token chain
5361   // and flag operands which copy the outgoing args into the appropriate regs.
5362   SDValue InFlag;
5363   for (unsigned i = 0, e = RegsToPass.size(); i != e; ++i) {
5364     Chain = DAG.getCopyToReg(Chain, dl, RegsToPass[i].first,
5365                              RegsToPass[i].second, InFlag);
5366     InFlag = Chain.getValue(1);
5367   }
5368 
5369   if (isTailCall)
5370     PrepareTailCall(DAG, InFlag, Chain, dl, true, SPDiff, NumBytes, LROp,
5371                     FPOp, true, TailCallArguments);
5372 
5373   return FinishCall(CallConv, dl, isTailCall, isVarArg, IsPatchPoint, hasNest,
5374                     DAG, RegsToPass, InFlag, Chain, CallSeqStart, Callee,
5375                     SPDiff, NumBytes, Ins, InVals, CS);
5376 }
5377 
5378 SDValue
5379 PPCTargetLowering::LowerCall_Darwin(SDValue Chain, SDValue Callee,
5380                                     CallingConv::ID CallConv, bool isVarArg,
5381                                     bool isTailCall, bool IsPatchPoint,
5382                                     const SmallVectorImpl<ISD::OutputArg> &Outs,
5383                                     const SmallVectorImpl<SDValue> &OutVals,
5384                                     const SmallVectorImpl<ISD::InputArg> &Ins,
5385                                     SDLoc dl, SelectionDAG &DAG,
5386                                     SmallVectorImpl<SDValue> &InVals,
5387                                     ImmutableCallSite *CS) const {
5388 
5389   unsigned NumOps = Outs.size();
5390 
5391   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(DAG.getDataLayout());
5392   bool isPPC64 = PtrVT == MVT::i64;
5393   unsigned PtrByteSize = isPPC64 ? 8 : 4;
5394 
5395   MachineFunction &MF = DAG.getMachineFunction();
5396 
5397   // Mark this function as potentially containing a function that contains a
5398   // tail call. As a consequence the frame pointer will be used for dynamicalloc
5399   // and restoring the callers stack pointer in this functions epilog. This is
5400   // done because by tail calling the called function might overwrite the value
5401   // in this function's (MF) stack pointer stack slot 0(SP).
5402   if (getTargetMachine().Options.GuaranteedTailCallOpt &&
5403       CallConv == CallingConv::Fast)
5404     MF.getInfo<PPCFunctionInfo>()->setHasFastCall();
5405 
5406   // Count how many bytes are to be pushed on the stack, including the linkage
5407   // area, and parameter passing area.  We start with 24/48 bytes, which is
5408   // prereserved space for [SP][CR][LR][3 x unused].
5409   unsigned LinkageSize = Subtarget.getFrameLowering()->getLinkageSize();
5410   unsigned NumBytes = LinkageSize;
5411 
5412   // Add up all the space actually used.
5413   // In 32-bit non-varargs calls, Altivec parameters all go at the end; usually
5414   // they all go in registers, but we must reserve stack space for them for
5415   // possible use by the caller.  In varargs or 64-bit calls, parameters are
5416   // assigned stack space in order, with padding so Altivec parameters are
5417   // 16-byte aligned.
5418   unsigned nAltivecParamsAtEnd = 0;
5419   for (unsigned i = 0; i != NumOps; ++i) {
5420     ISD::ArgFlagsTy Flags = Outs[i].Flags;
5421     EVT ArgVT = Outs[i].VT;
5422     // Varargs Altivec parameters are padded to a 16 byte boundary.
5423     if (ArgVT == MVT::v4f32 || ArgVT == MVT::v4i32 ||
5424         ArgVT == MVT::v8i16 || ArgVT == MVT::v16i8 ||
5425         ArgVT == MVT::v2f64 || ArgVT == MVT::v2i64) {
5426       if (!isVarArg && !isPPC64) {
5427         // Non-varargs Altivec parameters go after all the non-Altivec
5428         // parameters; handle those later so we know how much padding we need.
5429         nAltivecParamsAtEnd++;
5430         continue;
5431       }
5432       // Varargs and 64-bit Altivec parameters are padded to 16 byte boundary.
5433       NumBytes = ((NumBytes+15)/16)*16;
5434     }
5435     NumBytes += CalculateStackSlotSize(ArgVT, Flags, PtrByteSize);
5436   }
5437 
5438   // Allow for Altivec parameters at the end, if needed.
5439   if (nAltivecParamsAtEnd) {
5440     NumBytes = ((NumBytes+15)/16)*16;
5441     NumBytes += 16*nAltivecParamsAtEnd;
5442   }
5443 
5444   // The prolog code of the callee may store up to 8 GPR argument registers to
5445   // the stack, allowing va_start to index over them in memory if its varargs.
5446   // Because we cannot tell if this is needed on the caller side, we have to
5447   // conservatively assume that it is needed.  As such, make sure we have at
5448   // least enough stack space for the caller to store the 8 GPRs.
5449   NumBytes = std::max(NumBytes, LinkageSize + 8 * PtrByteSize);
5450 
5451   // Tail call needs the stack to be aligned.
5452   if (getTargetMachine().Options.GuaranteedTailCallOpt &&
5453       CallConv == CallingConv::Fast)
5454     NumBytes = EnsureStackAlignment(Subtarget.getFrameLowering(), NumBytes);
5455 
5456   // Calculate by how many bytes the stack has to be adjusted in case of tail
5457   // call optimization.
5458   int SPDiff = CalculateTailCallSPDiff(DAG, isTailCall, NumBytes);
5459 
5460   // To protect arguments on the stack from being clobbered in a tail call,
5461   // force all the loads to happen before doing any other lowering.
5462   if (isTailCall)
5463     Chain = DAG.getStackArgumentTokenFactor(Chain);
5464 
5465   // Adjust the stack pointer for the new arguments...
5466   // These operations are automatically eliminated by the prolog/epilog pass
5467   Chain = DAG.getCALLSEQ_START(Chain, DAG.getIntPtrConstant(NumBytes, dl, true),
5468                                dl);
5469   SDValue CallSeqStart = Chain;
5470 
5471   // Load the return address and frame pointer so it can be move somewhere else
5472   // later.
5473   SDValue LROp, FPOp;
5474   Chain = EmitTailCallLoadFPAndRetAddr(DAG, SPDiff, Chain, LROp, FPOp, true,
5475                                        dl);
5476 
5477   // Set up a copy of the stack pointer for use loading and storing any
5478   // arguments that may not fit in the registers available for argument
5479   // passing.
5480   SDValue StackPtr;
5481   if (isPPC64)
5482     StackPtr = DAG.getRegister(PPC::X1, MVT::i64);
5483   else
5484     StackPtr = DAG.getRegister(PPC::R1, MVT::i32);
5485 
5486   // Figure out which arguments are going to go in registers, and which in
5487   // memory.  Also, if this is a vararg function, floating point operations
5488   // must be stored to our stack, and loaded into integer regs as well, if
5489   // any integer regs are available for argument passing.
5490   unsigned ArgOffset = LinkageSize;
5491   unsigned GPR_idx = 0, FPR_idx = 0, VR_idx = 0;
5492 
5493   static const MCPhysReg GPR_32[] = {           // 32-bit registers.
5494     PPC::R3, PPC::R4, PPC::R5, PPC::R6,
5495     PPC::R7, PPC::R8, PPC::R9, PPC::R10,
5496   };
5497   static const MCPhysReg GPR_64[] = {           // 64-bit registers.
5498     PPC::X3, PPC::X4, PPC::X5, PPC::X6,
5499     PPC::X7, PPC::X8, PPC::X9, PPC::X10,
5500   };
5501   static const MCPhysReg VR[] = {
5502     PPC::V2, PPC::V3, PPC::V4, PPC::V5, PPC::V6, PPC::V7, PPC::V8,
5503     PPC::V9, PPC::V10, PPC::V11, PPC::V12, PPC::V13
5504   };
5505   const unsigned NumGPRs = array_lengthof(GPR_32);
5506   const unsigned NumFPRs = 13;
5507   const unsigned NumVRs  = array_lengthof(VR);
5508 
5509   const MCPhysReg *GPR = isPPC64 ? GPR_64 : GPR_32;
5510 
5511   SmallVector<std::pair<unsigned, SDValue>, 8> RegsToPass;
5512   SmallVector<TailCallArgumentInfo, 8> TailCallArguments;
5513 
5514   SmallVector<SDValue, 8> MemOpChains;
5515   for (unsigned i = 0; i != NumOps; ++i) {
5516     SDValue Arg = OutVals[i];
5517     ISD::ArgFlagsTy Flags = Outs[i].Flags;
5518 
5519     // PtrOff will be used to store the current argument to the stack if a
5520     // register cannot be found for it.
5521     SDValue PtrOff;
5522 
5523     PtrOff = DAG.getConstant(ArgOffset, dl, StackPtr.getValueType());
5524 
5525     PtrOff = DAG.getNode(ISD::ADD, dl, PtrVT, StackPtr, PtrOff);
5526 
5527     // On PPC64, promote integers to 64-bit values.
5528     if (isPPC64 && Arg.getValueType() == MVT::i32) {
5529       // FIXME: Should this use ANY_EXTEND if neither sext nor zext?
5530       unsigned ExtOp = Flags.isSExt() ? ISD::SIGN_EXTEND : ISD::ZERO_EXTEND;
5531       Arg = DAG.getNode(ExtOp, dl, MVT::i64, Arg);
5532     }
5533 
5534     // FIXME memcpy is used way more than necessary.  Correctness first.
5535     // Note: "by value" is code for passing a structure by value, not
5536     // basic types.
5537     if (Flags.isByVal()) {
5538       unsigned Size = Flags.getByValSize();
5539       // Very small objects are passed right-justified.  Everything else is
5540       // passed left-justified.
5541       if (Size==1 || Size==2) {
5542         EVT VT = (Size==1) ? MVT::i8 : MVT::i16;
5543         if (GPR_idx != NumGPRs) {
5544           SDValue Load = DAG.getExtLoad(ISD::EXTLOAD, dl, PtrVT, Chain, Arg,
5545                                         MachinePointerInfo(), VT,
5546                                         false, false, false, 0);
5547           MemOpChains.push_back(Load.getValue(1));
5548           RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], Load));
5549 
5550           ArgOffset += PtrByteSize;
5551         } else {
5552           SDValue Const = DAG.getConstant(PtrByteSize - Size, dl,
5553                                           PtrOff.getValueType());
5554           SDValue AddPtr = DAG.getNode(ISD::ADD, dl, PtrVT, PtrOff, Const);
5555           Chain = CallSeqStart = createMemcpyOutsideCallSeq(Arg, AddPtr,
5556                                                             CallSeqStart,
5557                                                             Flags, DAG, dl);
5558           ArgOffset += PtrByteSize;
5559         }
5560         continue;
5561       }
5562       // Copy entire object into memory.  There are cases where gcc-generated
5563       // code assumes it is there, even if it could be put entirely into
5564       // registers.  (This is not what the doc says.)
5565       Chain = CallSeqStart = createMemcpyOutsideCallSeq(Arg, PtrOff,
5566                                                         CallSeqStart,
5567                                                         Flags, DAG, dl);
5568 
5569       // For small aggregates (Darwin only) and aggregates >= PtrByteSize,
5570       // copy the pieces of the object that fit into registers from the
5571       // parameter save area.
5572       for (unsigned j=0; j<Size; j+=PtrByteSize) {
5573         SDValue Const = DAG.getConstant(j, dl, PtrOff.getValueType());
5574         SDValue AddArg = DAG.getNode(ISD::ADD, dl, PtrVT, Arg, Const);
5575         if (GPR_idx != NumGPRs) {
5576           SDValue Load = DAG.getLoad(PtrVT, dl, Chain, AddArg,
5577                                      MachinePointerInfo(),
5578                                      false, false, false, 0);
5579           MemOpChains.push_back(Load.getValue(1));
5580           RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], Load));
5581           ArgOffset += PtrByteSize;
5582         } else {
5583           ArgOffset += ((Size - j + PtrByteSize-1)/PtrByteSize)*PtrByteSize;
5584           break;
5585         }
5586       }
5587       continue;
5588     }
5589 
5590     switch (Arg.getSimpleValueType().SimpleTy) {
5591     default: llvm_unreachable("Unexpected ValueType for argument!");
5592     case MVT::i1:
5593     case MVT::i32:
5594     case MVT::i64:
5595       if (GPR_idx != NumGPRs) {
5596         if (Arg.getValueType() == MVT::i1)
5597           Arg = DAG.getNode(ISD::ZERO_EXTEND, dl, PtrVT, Arg);
5598 
5599         RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], Arg));
5600       } else {
5601         LowerMemOpCallTo(DAG, MF, Chain, Arg, PtrOff, SPDiff, ArgOffset,
5602                          isPPC64, isTailCall, false, MemOpChains,
5603                          TailCallArguments, dl);
5604       }
5605       ArgOffset += PtrByteSize;
5606       break;
5607     case MVT::f32:
5608     case MVT::f64:
5609       if (FPR_idx != NumFPRs) {
5610         RegsToPass.push_back(std::make_pair(FPR[FPR_idx++], Arg));
5611 
5612         if (isVarArg) {
5613           SDValue Store = DAG.getStore(Chain, dl, Arg, PtrOff,
5614                                        MachinePointerInfo(), false, false, 0);
5615           MemOpChains.push_back(Store);
5616 
5617           // Float varargs are always shadowed in available integer registers
5618           if (GPR_idx != NumGPRs) {
5619             SDValue Load = DAG.getLoad(PtrVT, dl, Store, PtrOff,
5620                                        MachinePointerInfo(), false, false,
5621                                        false, 0);
5622             MemOpChains.push_back(Load.getValue(1));
5623             RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], Load));
5624           }
5625           if (GPR_idx != NumGPRs && Arg.getValueType() == MVT::f64 && !isPPC64){
5626             SDValue ConstFour = DAG.getConstant(4, dl, PtrOff.getValueType());
5627             PtrOff = DAG.getNode(ISD::ADD, dl, PtrVT, PtrOff, ConstFour);
5628             SDValue Load = DAG.getLoad(PtrVT, dl, Store, PtrOff,
5629                                        MachinePointerInfo(),
5630                                        false, false, false, 0);
5631             MemOpChains.push_back(Load.getValue(1));
5632             RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], Load));
5633           }
5634         } else {
5635           // If we have any FPRs remaining, we may also have GPRs remaining.
5636           // Args passed in FPRs consume either 1 (f32) or 2 (f64) available
5637           // GPRs.
5638           if (GPR_idx != NumGPRs)
5639             ++GPR_idx;
5640           if (GPR_idx != NumGPRs && Arg.getValueType() == MVT::f64 &&
5641               !isPPC64)  // PPC64 has 64-bit GPR's obviously :)
5642             ++GPR_idx;
5643         }
5644       } else
5645         LowerMemOpCallTo(DAG, MF, Chain, Arg, PtrOff, SPDiff, ArgOffset,
5646                          isPPC64, isTailCall, false, MemOpChains,
5647                          TailCallArguments, dl);
5648       if (isPPC64)
5649         ArgOffset += 8;
5650       else
5651         ArgOffset += Arg.getValueType() == MVT::f32 ? 4 : 8;
5652       break;
5653     case MVT::v4f32:
5654     case MVT::v4i32:
5655     case MVT::v8i16:
5656     case MVT::v16i8:
5657       if (isVarArg) {
5658         // These go aligned on the stack, or in the corresponding R registers
5659         // when within range.  The Darwin PPC ABI doc claims they also go in
5660         // V registers; in fact gcc does this only for arguments that are
5661         // prototyped, not for those that match the ...  We do it for all
5662         // arguments, seems to work.
5663         while (ArgOffset % 16 !=0) {
5664           ArgOffset += PtrByteSize;
5665           if (GPR_idx != NumGPRs)
5666             GPR_idx++;
5667         }
5668         // We could elide this store in the case where the object fits
5669         // entirely in R registers.  Maybe later.
5670         PtrOff = DAG.getNode(ISD::ADD, dl, PtrVT, StackPtr,
5671                              DAG.getConstant(ArgOffset, dl, PtrVT));
5672         SDValue Store = DAG.getStore(Chain, dl, Arg, PtrOff,
5673                                      MachinePointerInfo(), false, false, 0);
5674         MemOpChains.push_back(Store);
5675         if (VR_idx != NumVRs) {
5676           SDValue Load = DAG.getLoad(MVT::v4f32, dl, Store, PtrOff,
5677                                      MachinePointerInfo(),
5678                                      false, false, false, 0);
5679           MemOpChains.push_back(Load.getValue(1));
5680           RegsToPass.push_back(std::make_pair(VR[VR_idx++], Load));
5681         }
5682         ArgOffset += 16;
5683         for (unsigned i=0; i<16; i+=PtrByteSize) {
5684           if (GPR_idx == NumGPRs)
5685             break;
5686           SDValue Ix = DAG.getNode(ISD::ADD, dl, PtrVT, PtrOff,
5687                                    DAG.getConstant(i, dl, PtrVT));
5688           SDValue Load = DAG.getLoad(PtrVT, dl, Store, Ix, MachinePointerInfo(),
5689                                      false, false, false, 0);
5690           MemOpChains.push_back(Load.getValue(1));
5691           RegsToPass.push_back(std::make_pair(GPR[GPR_idx++], Load));
5692         }
5693         break;
5694       }
5695 
5696       // Non-varargs Altivec params generally go in registers, but have
5697       // stack space allocated at the end.
5698       if (VR_idx != NumVRs) {
5699         // Doesn't have GPR space allocated.
5700         RegsToPass.push_back(std::make_pair(VR[VR_idx++], Arg));
5701       } else if (nAltivecParamsAtEnd==0) {
5702         // We are emitting Altivec params in order.
5703         LowerMemOpCallTo(DAG, MF, Chain, Arg, PtrOff, SPDiff, ArgOffset,
5704                          isPPC64, isTailCall, true, MemOpChains,
5705                          TailCallArguments, dl);
5706         ArgOffset += 16;
5707       }
5708       break;
5709     }
5710   }
5711   // If all Altivec parameters fit in registers, as they usually do,
5712   // they get stack space following the non-Altivec parameters.  We
5713   // don't track this here because nobody below needs it.
5714   // If there are more Altivec parameters than fit in registers emit
5715   // the stores here.
5716   if (!isVarArg && nAltivecParamsAtEnd > NumVRs) {
5717     unsigned j = 0;
5718     // Offset is aligned; skip 1st 12 params which go in V registers.
5719     ArgOffset = ((ArgOffset+15)/16)*16;
5720     ArgOffset += 12*16;
5721     for (unsigned i = 0; i != NumOps; ++i) {
5722       SDValue Arg = OutVals[i];
5723       EVT ArgType = Outs[i].VT;
5724       if (ArgType==MVT::v4f32 || ArgType==MVT::v4i32 ||
5725           ArgType==MVT::v8i16 || ArgType==MVT::v16i8) {
5726         if (++j > NumVRs) {
5727           SDValue PtrOff;
5728           // We are emitting Altivec params in order.
5729           LowerMemOpCallTo(DAG, MF, Chain, Arg, PtrOff, SPDiff, ArgOffset,
5730                            isPPC64, isTailCall, true, MemOpChains,
5731                            TailCallArguments, dl);
5732           ArgOffset += 16;
5733         }
5734       }
5735     }
5736   }
5737 
5738   if (!MemOpChains.empty())
5739     Chain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, MemOpChains);
5740 
5741   // On Darwin, R12 must contain the address of an indirect callee.  This does
5742   // not mean the MTCTR instruction must use R12; it's easier to model this as
5743   // an extra parameter, so do that.
5744   if (!isTailCall &&
5745       !isFunctionGlobalAddress(Callee) &&
5746       !isa<ExternalSymbolSDNode>(Callee) &&
5747       !isBLACompatibleAddress(Callee, DAG))
5748     RegsToPass.push_back(std::make_pair((unsigned)(isPPC64 ? PPC::X12 :
5749                                                    PPC::R12), Callee));
5750 
5751   // Build a sequence of copy-to-reg nodes chained together with token chain
5752   // and flag operands which copy the outgoing args into the appropriate regs.
5753   SDValue InFlag;
5754   for (unsigned i = 0, e = RegsToPass.size(); i != e; ++i) {
5755     Chain = DAG.getCopyToReg(Chain, dl, RegsToPass[i].first,
5756                              RegsToPass[i].second, InFlag);
5757     InFlag = Chain.getValue(1);
5758   }
5759 
5760   if (isTailCall)
5761     PrepareTailCall(DAG, InFlag, Chain, dl, isPPC64, SPDiff, NumBytes, LROp,
5762                     FPOp, true, TailCallArguments);
5763 
5764   return FinishCall(CallConv, dl, isTailCall, isVarArg, IsPatchPoint,
5765                     /* unused except on PPC64 ELFv1 */ false, DAG,
5766                     RegsToPass, InFlag, Chain, CallSeqStart, Callee, SPDiff,
5767                     NumBytes, Ins, InVals, CS);
5768 }
5769 
5770 bool
5771 PPCTargetLowering::CanLowerReturn(CallingConv::ID CallConv,
5772                                   MachineFunction &MF, bool isVarArg,
5773                                   const SmallVectorImpl<ISD::OutputArg> &Outs,
5774                                   LLVMContext &Context) const {
5775   SmallVector<CCValAssign, 16> RVLocs;
5776   CCState CCInfo(CallConv, isVarArg, MF, RVLocs, Context);
5777   return CCInfo.CheckReturn(Outs, RetCC_PPC);
5778 }
5779 
5780 SDValue
5781 PPCTargetLowering::LowerReturn(SDValue Chain,
5782                                CallingConv::ID CallConv, bool isVarArg,
5783                                const SmallVectorImpl<ISD::OutputArg> &Outs,
5784                                const SmallVectorImpl<SDValue> &OutVals,
5785                                SDLoc dl, SelectionDAG &DAG) const {
5786 
5787   SmallVector<CCValAssign, 16> RVLocs;
5788   CCState CCInfo(CallConv, isVarArg, DAG.getMachineFunction(), RVLocs,
5789                  *DAG.getContext());
5790   CCInfo.AnalyzeReturn(Outs, RetCC_PPC);
5791 
5792   SDValue Flag;
5793   SmallVector<SDValue, 4> RetOps(1, Chain);
5794 
5795   // Copy the result values into the output registers.
5796   for (unsigned i = 0; i != RVLocs.size(); ++i) {
5797     CCValAssign &VA = RVLocs[i];
5798     assert(VA.isRegLoc() && "Can only return in registers!");
5799 
5800     SDValue Arg = OutVals[i];
5801 
5802     switch (VA.getLocInfo()) {
5803     default: llvm_unreachable("Unknown loc info!");
5804     case CCValAssign::Full: break;
5805     case CCValAssign::AExt:
5806       Arg = DAG.getNode(ISD::ANY_EXTEND, dl, VA.getLocVT(), Arg);
5807       break;
5808     case CCValAssign::ZExt:
5809       Arg = DAG.getNode(ISD::ZERO_EXTEND, dl, VA.getLocVT(), Arg);
5810       break;
5811     case CCValAssign::SExt:
5812       Arg = DAG.getNode(ISD::SIGN_EXTEND, dl, VA.getLocVT(), Arg);
5813       break;
5814     }
5815 
5816     Chain = DAG.getCopyToReg(Chain, dl, VA.getLocReg(), Arg, Flag);
5817     Flag = Chain.getValue(1);
5818     RetOps.push_back(DAG.getRegister(VA.getLocReg(), VA.getLocVT()));
5819   }
5820 
5821   RetOps[0] = Chain;  // Update chain.
5822 
5823   // Add the flag if we have it.
5824   if (Flag.getNode())
5825     RetOps.push_back(Flag);
5826 
5827   return DAG.getNode(PPCISD::RET_FLAG, dl, MVT::Other, RetOps);
5828 }
5829 
5830 SDValue PPCTargetLowering::LowerGET_DYNAMIC_AREA_OFFSET(
5831     SDValue Op, SelectionDAG &DAG, const PPCSubtarget &Subtarget) const {
5832   SDLoc dl(Op);
5833 
5834   // Get the corect type for integers.
5835   EVT IntVT = Op.getValueType();
5836 
5837   // Get the inputs.
5838   SDValue Chain = Op.getOperand(0);
5839   SDValue FPSIdx = getFramePointerFrameIndex(DAG);
5840   // Build a DYNAREAOFFSET node.
5841   SDValue Ops[2] = {Chain, FPSIdx};
5842   SDVTList VTs = DAG.getVTList(IntVT);
5843   return DAG.getNode(PPCISD::DYNAREAOFFSET, dl, VTs, Ops);
5844 }
5845 
5846 SDValue PPCTargetLowering::LowerSTACKRESTORE(SDValue Op, SelectionDAG &DAG,
5847                                    const PPCSubtarget &Subtarget) const {
5848   // When we pop the dynamic allocation we need to restore the SP link.
5849   SDLoc dl(Op);
5850 
5851   // Get the corect type for pointers.
5852   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(DAG.getDataLayout());
5853 
5854   // Construct the stack pointer operand.
5855   bool isPPC64 = Subtarget.isPPC64();
5856   unsigned SP = isPPC64 ? PPC::X1 : PPC::R1;
5857   SDValue StackPtr = DAG.getRegister(SP, PtrVT);
5858 
5859   // Get the operands for the STACKRESTORE.
5860   SDValue Chain = Op.getOperand(0);
5861   SDValue SaveSP = Op.getOperand(1);
5862 
5863   // Load the old link SP.
5864   SDValue LoadLinkSP = DAG.getLoad(PtrVT, dl, Chain, StackPtr,
5865                                    MachinePointerInfo(),
5866                                    false, false, false, 0);
5867 
5868   // Restore the stack pointer.
5869   Chain = DAG.getCopyToReg(LoadLinkSP.getValue(1), dl, SP, SaveSP);
5870 
5871   // Store the old link SP.
5872   return DAG.getStore(Chain, dl, LoadLinkSP, StackPtr, MachinePointerInfo(),
5873                       false, false, 0);
5874 }
5875 
5876 SDValue PPCTargetLowering::getReturnAddrFrameIndex(SelectionDAG &DAG) const {
5877   MachineFunction &MF = DAG.getMachineFunction();
5878   bool isPPC64 = Subtarget.isPPC64();
5879   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(MF.getDataLayout());
5880 
5881   // Get current frame pointer save index.  The users of this index will be
5882   // primarily DYNALLOC instructions.
5883   PPCFunctionInfo *FI = MF.getInfo<PPCFunctionInfo>();
5884   int RASI = FI->getReturnAddrSaveIndex();
5885 
5886   // If the frame pointer save index hasn't been defined yet.
5887   if (!RASI) {
5888     // Find out what the fix offset of the frame pointer save area.
5889     int LROffset = Subtarget.getFrameLowering()->getReturnSaveOffset();
5890     // Allocate the frame index for frame pointer save area.
5891     RASI = MF.getFrameInfo()->CreateFixedObject(isPPC64? 8 : 4, LROffset, false);
5892     // Save the result.
5893     FI->setReturnAddrSaveIndex(RASI);
5894   }
5895   return DAG.getFrameIndex(RASI, PtrVT);
5896 }
5897 
5898 SDValue
5899 PPCTargetLowering::getFramePointerFrameIndex(SelectionDAG & DAG) const {
5900   MachineFunction &MF = DAG.getMachineFunction();
5901   bool isPPC64 = Subtarget.isPPC64();
5902   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(MF.getDataLayout());
5903 
5904   // Get current frame pointer save index.  The users of this index will be
5905   // primarily DYNALLOC instructions.
5906   PPCFunctionInfo *FI = MF.getInfo<PPCFunctionInfo>();
5907   int FPSI = FI->getFramePointerSaveIndex();
5908 
5909   // If the frame pointer save index hasn't been defined yet.
5910   if (!FPSI) {
5911     // Find out what the fix offset of the frame pointer save area.
5912     int FPOffset = Subtarget.getFrameLowering()->getFramePointerSaveOffset();
5913     // Allocate the frame index for frame pointer save area.
5914     FPSI = MF.getFrameInfo()->CreateFixedObject(isPPC64? 8 : 4, FPOffset, true);
5915     // Save the result.
5916     FI->setFramePointerSaveIndex(FPSI);
5917   }
5918   return DAG.getFrameIndex(FPSI, PtrVT);
5919 }
5920 
5921 SDValue PPCTargetLowering::LowerDYNAMIC_STACKALLOC(SDValue Op,
5922                                          SelectionDAG &DAG,
5923                                          const PPCSubtarget &Subtarget) const {
5924   // Get the inputs.
5925   SDValue Chain = Op.getOperand(0);
5926   SDValue Size  = Op.getOperand(1);
5927   SDLoc dl(Op);
5928 
5929   // Get the corect type for pointers.
5930   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(DAG.getDataLayout());
5931   // Negate the size.
5932   SDValue NegSize = DAG.getNode(ISD::SUB, dl, PtrVT,
5933                                 DAG.getConstant(0, dl, PtrVT), Size);
5934   // Construct a node for the frame pointer save index.
5935   SDValue FPSIdx = getFramePointerFrameIndex(DAG);
5936   // Build a DYNALLOC node.
5937   SDValue Ops[3] = { Chain, NegSize, FPSIdx };
5938   SDVTList VTs = DAG.getVTList(PtrVT, MVT::Other);
5939   return DAG.getNode(PPCISD::DYNALLOC, dl, VTs, Ops);
5940 }
5941 
5942 SDValue PPCTargetLowering::lowerEH_SJLJ_SETJMP(SDValue Op,
5943                                                SelectionDAG &DAG) const {
5944   SDLoc DL(Op);
5945   return DAG.getNode(PPCISD::EH_SJLJ_SETJMP, DL,
5946                      DAG.getVTList(MVT::i32, MVT::Other),
5947                      Op.getOperand(0), Op.getOperand(1));
5948 }
5949 
5950 SDValue PPCTargetLowering::lowerEH_SJLJ_LONGJMP(SDValue Op,
5951                                                 SelectionDAG &DAG) const {
5952   SDLoc DL(Op);
5953   return DAG.getNode(PPCISD::EH_SJLJ_LONGJMP, DL, MVT::Other,
5954                      Op.getOperand(0), Op.getOperand(1));
5955 }
5956 
5957 SDValue PPCTargetLowering::LowerLOAD(SDValue Op, SelectionDAG &DAG) const {
5958   if (Op.getValueType().isVector())
5959     return LowerVectorLoad(Op, DAG);
5960 
5961   assert(Op.getValueType() == MVT::i1 &&
5962          "Custom lowering only for i1 loads");
5963 
5964   // First, load 8 bits into 32 bits, then truncate to 1 bit.
5965 
5966   SDLoc dl(Op);
5967   LoadSDNode *LD = cast<LoadSDNode>(Op);
5968 
5969   SDValue Chain = LD->getChain();
5970   SDValue BasePtr = LD->getBasePtr();
5971   MachineMemOperand *MMO = LD->getMemOperand();
5972 
5973   SDValue NewLD =
5974       DAG.getExtLoad(ISD::EXTLOAD, dl, getPointerTy(DAG.getDataLayout()), Chain,
5975                      BasePtr, MVT::i8, MMO);
5976   SDValue Result = DAG.getNode(ISD::TRUNCATE, dl, MVT::i1, NewLD);
5977 
5978   SDValue Ops[] = { Result, SDValue(NewLD.getNode(), 1) };
5979   return DAG.getMergeValues(Ops, dl);
5980 }
5981 
5982 SDValue PPCTargetLowering::LowerSTORE(SDValue Op, SelectionDAG &DAG) const {
5983   if (Op.getOperand(1).getValueType().isVector())
5984     return LowerVectorStore(Op, DAG);
5985 
5986   assert(Op.getOperand(1).getValueType() == MVT::i1 &&
5987          "Custom lowering only for i1 stores");
5988 
5989   // First, zero extend to 32 bits, then use a truncating store to 8 bits.
5990 
5991   SDLoc dl(Op);
5992   StoreSDNode *ST = cast<StoreSDNode>(Op);
5993 
5994   SDValue Chain = ST->getChain();
5995   SDValue BasePtr = ST->getBasePtr();
5996   SDValue Value = ST->getValue();
5997   MachineMemOperand *MMO = ST->getMemOperand();
5998 
5999   Value = DAG.getNode(ISD::ZERO_EXTEND, dl, getPointerTy(DAG.getDataLayout()),
6000                       Value);
6001   return DAG.getTruncStore(Chain, dl, Value, BasePtr, MVT::i8, MMO);
6002 }
6003 
6004 // FIXME: Remove this once the ANDI glue bug is fixed:
6005 SDValue PPCTargetLowering::LowerTRUNCATE(SDValue Op, SelectionDAG &DAG) const {
6006   assert(Op.getValueType() == MVT::i1 &&
6007          "Custom lowering only for i1 results");
6008 
6009   SDLoc DL(Op);
6010   return DAG.getNode(PPCISD::ANDIo_1_GT_BIT, DL, MVT::i1,
6011                      Op.getOperand(0));
6012 }
6013 
6014 /// LowerSELECT_CC - Lower floating point select_cc's into fsel instruction when
6015 /// possible.
6016 SDValue PPCTargetLowering::LowerSELECT_CC(SDValue Op, SelectionDAG &DAG) const {
6017   // Not FP? Not a fsel.
6018   if (!Op.getOperand(0).getValueType().isFloatingPoint() ||
6019       !Op.getOperand(2).getValueType().isFloatingPoint())
6020     return Op;
6021 
6022   // We might be able to do better than this under some circumstances, but in
6023   // general, fsel-based lowering of select is a finite-math-only optimization.
6024   // For more information, see section F.3 of the 2.06 ISA specification.
6025   if (!DAG.getTarget().Options.NoInfsFPMath ||
6026       !DAG.getTarget().Options.NoNaNsFPMath)
6027     return Op;
6028   // TODO: Propagate flags from the select rather than global settings.
6029   SDNodeFlags Flags;
6030   Flags.setNoInfs(true);
6031   Flags.setNoNaNs(true);
6032 
6033   ISD::CondCode CC = cast<CondCodeSDNode>(Op.getOperand(4))->get();
6034 
6035   EVT ResVT = Op.getValueType();
6036   EVT CmpVT = Op.getOperand(0).getValueType();
6037   SDValue LHS = Op.getOperand(0), RHS = Op.getOperand(1);
6038   SDValue TV  = Op.getOperand(2), FV  = Op.getOperand(3);
6039   SDLoc dl(Op);
6040 
6041   // If the RHS of the comparison is a 0.0, we don't need to do the
6042   // subtraction at all.
6043   SDValue Sel1;
6044   if (isFloatingPointZero(RHS))
6045     switch (CC) {
6046     default: break;       // SETUO etc aren't handled by fsel.
6047     case ISD::SETNE:
6048       std::swap(TV, FV);
6049     case ISD::SETEQ:
6050       if (LHS.getValueType() == MVT::f32)   // Comparison is always 64-bits
6051         LHS = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, LHS);
6052       Sel1 = DAG.getNode(PPCISD::FSEL, dl, ResVT, LHS, TV, FV);
6053       if (Sel1.getValueType() == MVT::f32)   // Comparison is always 64-bits
6054         Sel1 = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, Sel1);
6055       return DAG.getNode(PPCISD::FSEL, dl, ResVT,
6056                          DAG.getNode(ISD::FNEG, dl, MVT::f64, LHS), Sel1, FV);
6057     case ISD::SETULT:
6058     case ISD::SETLT:
6059       std::swap(TV, FV);  // fsel is natively setge, swap operands for setlt
6060     case ISD::SETOGE:
6061     case ISD::SETGE:
6062       if (LHS.getValueType() == MVT::f32)   // Comparison is always 64-bits
6063         LHS = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, LHS);
6064       return DAG.getNode(PPCISD::FSEL, dl, ResVT, LHS, TV, FV);
6065     case ISD::SETUGT:
6066     case ISD::SETGT:
6067       std::swap(TV, FV);  // fsel is natively setge, swap operands for setlt
6068     case ISD::SETOLE:
6069     case ISD::SETLE:
6070       if (LHS.getValueType() == MVT::f32)   // Comparison is always 64-bits
6071         LHS = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, LHS);
6072       return DAG.getNode(PPCISD::FSEL, dl, ResVT,
6073                          DAG.getNode(ISD::FNEG, dl, MVT::f64, LHS), TV, FV);
6074     }
6075 
6076   SDValue Cmp;
6077   switch (CC) {
6078   default: break;       // SETUO etc aren't handled by fsel.
6079   case ISD::SETNE:
6080     std::swap(TV, FV);
6081   case ISD::SETEQ:
6082     Cmp = DAG.getNode(ISD::FSUB, dl, CmpVT, LHS, RHS, &Flags);
6083     if (Cmp.getValueType() == MVT::f32)   // Comparison is always 64-bits
6084       Cmp = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, Cmp);
6085     Sel1 = DAG.getNode(PPCISD::FSEL, dl, ResVT, Cmp, TV, FV);
6086     if (Sel1.getValueType() == MVT::f32)   // Comparison is always 64-bits
6087       Sel1 = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, Sel1);
6088     return DAG.getNode(PPCISD::FSEL, dl, ResVT,
6089                        DAG.getNode(ISD::FNEG, dl, MVT::f64, Cmp), Sel1, FV);
6090   case ISD::SETULT:
6091   case ISD::SETLT:
6092     Cmp = DAG.getNode(ISD::FSUB, dl, CmpVT, LHS, RHS, &Flags);
6093     if (Cmp.getValueType() == MVT::f32)   // Comparison is always 64-bits
6094       Cmp = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, Cmp);
6095     return DAG.getNode(PPCISD::FSEL, dl, ResVT, Cmp, FV, TV);
6096   case ISD::SETOGE:
6097   case ISD::SETGE:
6098     Cmp = DAG.getNode(ISD::FSUB, dl, CmpVT, LHS, RHS, &Flags);
6099     if (Cmp.getValueType() == MVT::f32)   // Comparison is always 64-bits
6100       Cmp = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, Cmp);
6101     return DAG.getNode(PPCISD::FSEL, dl, ResVT, Cmp, TV, FV);
6102   case ISD::SETUGT:
6103   case ISD::SETGT:
6104     Cmp = DAG.getNode(ISD::FSUB, dl, CmpVT, RHS, LHS, &Flags);
6105     if (Cmp.getValueType() == MVT::f32)   // Comparison is always 64-bits
6106       Cmp = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, Cmp);
6107     return DAG.getNode(PPCISD::FSEL, dl, ResVT, Cmp, FV, TV);
6108   case ISD::SETOLE:
6109   case ISD::SETLE:
6110     Cmp = DAG.getNode(ISD::FSUB, dl, CmpVT, RHS, LHS, &Flags);
6111     if (Cmp.getValueType() == MVT::f32)   // Comparison is always 64-bits
6112       Cmp = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, Cmp);
6113     return DAG.getNode(PPCISD::FSEL, dl, ResVT, Cmp, TV, FV);
6114   }
6115   return Op;
6116 }
6117 
6118 void PPCTargetLowering::LowerFP_TO_INTForReuse(SDValue Op, ReuseLoadInfo &RLI,
6119                                                SelectionDAG &DAG,
6120                                                SDLoc dl) const {
6121   assert(Op.getOperand(0).getValueType().isFloatingPoint());
6122   SDValue Src = Op.getOperand(0);
6123   if (Src.getValueType() == MVT::f32)
6124     Src = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, Src);
6125 
6126   SDValue Tmp;
6127   switch (Op.getSimpleValueType().SimpleTy) {
6128   default: llvm_unreachable("Unhandled FP_TO_INT type in custom expander!");
6129   case MVT::i32:
6130     Tmp = DAG.getNode(
6131         Op.getOpcode() == ISD::FP_TO_SINT
6132             ? PPCISD::FCTIWZ
6133             : (Subtarget.hasFPCVT() ? PPCISD::FCTIWUZ : PPCISD::FCTIDZ),
6134         dl, MVT::f64, Src);
6135     break;
6136   case MVT::i64:
6137     assert((Op.getOpcode() == ISD::FP_TO_SINT || Subtarget.hasFPCVT()) &&
6138            "i64 FP_TO_UINT is supported only with FPCVT");
6139     Tmp = DAG.getNode(Op.getOpcode()==ISD::FP_TO_SINT ? PPCISD::FCTIDZ :
6140                                                         PPCISD::FCTIDUZ,
6141                       dl, MVT::f64, Src);
6142     break;
6143   }
6144 
6145   // Convert the FP value to an int value through memory.
6146   bool i32Stack = Op.getValueType() == MVT::i32 && Subtarget.hasSTFIWX() &&
6147     (Op.getOpcode() == ISD::FP_TO_SINT || Subtarget.hasFPCVT());
6148   SDValue FIPtr = DAG.CreateStackTemporary(i32Stack ? MVT::i32 : MVT::f64);
6149   int FI = cast<FrameIndexSDNode>(FIPtr)->getIndex();
6150   MachinePointerInfo MPI =
6151       MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), FI);
6152 
6153   // Emit a store to the stack slot.
6154   SDValue Chain;
6155   if (i32Stack) {
6156     MachineFunction &MF = DAG.getMachineFunction();
6157     MachineMemOperand *MMO =
6158       MF.getMachineMemOperand(MPI, MachineMemOperand::MOStore, 4, 4);
6159     SDValue Ops[] = { DAG.getEntryNode(), Tmp, FIPtr };
6160     Chain = DAG.getMemIntrinsicNode(PPCISD::STFIWX, dl,
6161               DAG.getVTList(MVT::Other), Ops, MVT::i32, MMO);
6162   } else
6163     Chain = DAG.getStore(DAG.getEntryNode(), dl, Tmp, FIPtr,
6164                          MPI, false, false, 0);
6165 
6166   // Result is a load from the stack slot.  If loading 4 bytes, make sure to
6167   // add in a bias on big endian.
6168   if (Op.getValueType() == MVT::i32 && !i32Stack) {
6169     FIPtr = DAG.getNode(ISD::ADD, dl, FIPtr.getValueType(), FIPtr,
6170                         DAG.getConstant(4, dl, FIPtr.getValueType()));
6171     MPI = MPI.getWithOffset(Subtarget.isLittleEndian() ? 0 : 4);
6172   }
6173 
6174   RLI.Chain = Chain;
6175   RLI.Ptr = FIPtr;
6176   RLI.MPI = MPI;
6177 }
6178 
6179 /// \brief Custom lowers floating point to integer conversions to use
6180 /// the direct move instructions available in ISA 2.07 to avoid the
6181 /// need for load/store combinations.
6182 SDValue PPCTargetLowering::LowerFP_TO_INTDirectMove(SDValue Op,
6183                                                     SelectionDAG &DAG,
6184                                                     SDLoc dl) const {
6185   assert(Op.getOperand(0).getValueType().isFloatingPoint());
6186   SDValue Src = Op.getOperand(0);
6187 
6188   if (Src.getValueType() == MVT::f32)
6189     Src = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, Src);
6190 
6191   SDValue Tmp;
6192   switch (Op.getSimpleValueType().SimpleTy) {
6193   default: llvm_unreachable("Unhandled FP_TO_INT type in custom expander!");
6194   case MVT::i32:
6195     Tmp = DAG.getNode(
6196         Op.getOpcode() == ISD::FP_TO_SINT
6197             ? PPCISD::FCTIWZ
6198             : (Subtarget.hasFPCVT() ? PPCISD::FCTIWUZ : PPCISD::FCTIDZ),
6199         dl, MVT::f64, Src);
6200     Tmp = DAG.getNode(PPCISD::MFVSR, dl, MVT::i32, Tmp);
6201     break;
6202   case MVT::i64:
6203     assert((Op.getOpcode() == ISD::FP_TO_SINT || Subtarget.hasFPCVT()) &&
6204            "i64 FP_TO_UINT is supported only with FPCVT");
6205     Tmp = DAG.getNode(Op.getOpcode()==ISD::FP_TO_SINT ? PPCISD::FCTIDZ :
6206                                                         PPCISD::FCTIDUZ,
6207                       dl, MVT::f64, Src);
6208     Tmp = DAG.getNode(PPCISD::MFVSR, dl, MVT::i64, Tmp);
6209     break;
6210   }
6211   return Tmp;
6212 }
6213 
6214 SDValue PPCTargetLowering::LowerFP_TO_INT(SDValue Op, SelectionDAG &DAG,
6215                                           SDLoc dl) const {
6216   if (Subtarget.hasDirectMove() && Subtarget.isPPC64())
6217     return LowerFP_TO_INTDirectMove(Op, DAG, dl);
6218 
6219   ReuseLoadInfo RLI;
6220   LowerFP_TO_INTForReuse(Op, RLI, DAG, dl);
6221 
6222   return DAG.getLoad(Op.getValueType(), dl, RLI.Chain, RLI.Ptr, RLI.MPI, false,
6223                      false, RLI.IsInvariant, RLI.Alignment, RLI.AAInfo,
6224                      RLI.Ranges);
6225 }
6226 
6227 // We're trying to insert a regular store, S, and then a load, L. If the
6228 // incoming value, O, is a load, we might just be able to have our load use the
6229 // address used by O. However, we don't know if anything else will store to
6230 // that address before we can load from it. To prevent this situation, we need
6231 // to insert our load, L, into the chain as a peer of O. To do this, we give L
6232 // the same chain operand as O, we create a token factor from the chain results
6233 // of O and L, and we replace all uses of O's chain result with that token
6234 // factor (see spliceIntoChain below for this last part).
6235 bool PPCTargetLowering::canReuseLoadAddress(SDValue Op, EVT MemVT,
6236                                             ReuseLoadInfo &RLI,
6237                                             SelectionDAG &DAG,
6238                                             ISD::LoadExtType ET) const {
6239   SDLoc dl(Op);
6240   if (ET == ISD::NON_EXTLOAD &&
6241       (Op.getOpcode() == ISD::FP_TO_UINT ||
6242        Op.getOpcode() == ISD::FP_TO_SINT) &&
6243       isOperationLegalOrCustom(Op.getOpcode(),
6244                                Op.getOperand(0).getValueType())) {
6245 
6246     LowerFP_TO_INTForReuse(Op, RLI, DAG, dl);
6247     return true;
6248   }
6249 
6250   LoadSDNode *LD = dyn_cast<LoadSDNode>(Op);
6251   if (!LD || LD->getExtensionType() != ET || LD->isVolatile() ||
6252       LD->isNonTemporal())
6253     return false;
6254   if (LD->getMemoryVT() != MemVT)
6255     return false;
6256 
6257   RLI.Ptr = LD->getBasePtr();
6258   if (LD->isIndexed() && !LD->getOffset().isUndef()) {
6259     assert(LD->getAddressingMode() == ISD::PRE_INC &&
6260            "Non-pre-inc AM on PPC?");
6261     RLI.Ptr = DAG.getNode(ISD::ADD, dl, RLI.Ptr.getValueType(), RLI.Ptr,
6262                           LD->getOffset());
6263   }
6264 
6265   RLI.Chain = LD->getChain();
6266   RLI.MPI = LD->getPointerInfo();
6267   RLI.IsInvariant = LD->isInvariant();
6268   RLI.Alignment = LD->getAlignment();
6269   RLI.AAInfo = LD->getAAInfo();
6270   RLI.Ranges = LD->getRanges();
6271 
6272   RLI.ResChain = SDValue(LD, LD->isIndexed() ? 2 : 1);
6273   return true;
6274 }
6275 
6276 // Given the head of the old chain, ResChain, insert a token factor containing
6277 // it and NewResChain, and make users of ResChain now be users of that token
6278 // factor.
6279 void PPCTargetLowering::spliceIntoChain(SDValue ResChain,
6280                                         SDValue NewResChain,
6281                                         SelectionDAG &DAG) const {
6282   if (!ResChain)
6283     return;
6284 
6285   SDLoc dl(NewResChain);
6286 
6287   SDValue TF = DAG.getNode(ISD::TokenFactor, dl, MVT::Other,
6288                            NewResChain, DAG.getUNDEF(MVT::Other));
6289   assert(TF.getNode() != NewResChain.getNode() &&
6290          "A new TF really is required here");
6291 
6292   DAG.ReplaceAllUsesOfValueWith(ResChain, TF);
6293   DAG.UpdateNodeOperands(TF.getNode(), ResChain, NewResChain);
6294 }
6295 
6296 /// \brief Custom lowers integer to floating point conversions to use
6297 /// the direct move instructions available in ISA 2.07 to avoid the
6298 /// need for load/store combinations.
6299 SDValue PPCTargetLowering::LowerINT_TO_FPDirectMove(SDValue Op,
6300                                                     SelectionDAG &DAG,
6301                                                     SDLoc dl) const {
6302   assert((Op.getValueType() == MVT::f32 ||
6303           Op.getValueType() == MVT::f64) &&
6304          "Invalid floating point type as target of conversion");
6305   assert(Subtarget.hasFPCVT() &&
6306          "Int to FP conversions with direct moves require FPCVT");
6307   SDValue FP;
6308   SDValue Src = Op.getOperand(0);
6309   bool SinglePrec = Op.getValueType() == MVT::f32;
6310   bool WordInt = Src.getSimpleValueType().SimpleTy == MVT::i32;
6311   bool Signed = Op.getOpcode() == ISD::SINT_TO_FP;
6312   unsigned ConvOp = Signed ? (SinglePrec ? PPCISD::FCFIDS : PPCISD::FCFID) :
6313                              (SinglePrec ? PPCISD::FCFIDUS : PPCISD::FCFIDU);
6314 
6315   if (WordInt) {
6316     FP = DAG.getNode(Signed ? PPCISD::MTVSRA : PPCISD::MTVSRZ,
6317                      dl, MVT::f64, Src);
6318     FP = DAG.getNode(ConvOp, dl, SinglePrec ? MVT::f32 : MVT::f64, FP);
6319   }
6320   else {
6321     FP = DAG.getNode(PPCISD::MTVSRA, dl, MVT::f64, Src);
6322     FP = DAG.getNode(ConvOp, dl, SinglePrec ? MVT::f32 : MVT::f64, FP);
6323   }
6324 
6325   return FP;
6326 }
6327 
6328 SDValue PPCTargetLowering::LowerINT_TO_FP(SDValue Op,
6329                                           SelectionDAG &DAG) const {
6330   SDLoc dl(Op);
6331 
6332   if (Subtarget.hasQPX() && Op.getOperand(0).getValueType() == MVT::v4i1) {
6333     if (Op.getValueType() != MVT::v4f32 && Op.getValueType() != MVT::v4f64)
6334       return SDValue();
6335 
6336     SDValue Value = Op.getOperand(0);
6337     // The values are now known to be -1 (false) or 1 (true). To convert this
6338     // into 0 (false) and 1 (true), add 1 and then divide by 2 (multiply by 0.5).
6339     // This can be done with an fma and the 0.5 constant: (V+1.0)*0.5 = 0.5*V+0.5
6340     Value = DAG.getNode(PPCISD::QBFLT, dl, MVT::v4f64, Value);
6341 
6342     SDValue FPHalfs = DAG.getConstantFP(0.5, dl, MVT::v4f64);
6343 
6344     Value = DAG.getNode(ISD::FMA, dl, MVT::v4f64, Value, FPHalfs, FPHalfs);
6345 
6346     if (Op.getValueType() != MVT::v4f64)
6347       Value = DAG.getNode(ISD::FP_ROUND, dl,
6348                           Op.getValueType(), Value,
6349                           DAG.getIntPtrConstant(1, dl));
6350     return Value;
6351   }
6352 
6353   // Don't handle ppc_fp128 here; let it be lowered to a libcall.
6354   if (Op.getValueType() != MVT::f32 && Op.getValueType() != MVT::f64)
6355     return SDValue();
6356 
6357   if (Op.getOperand(0).getValueType() == MVT::i1)
6358     return DAG.getNode(ISD::SELECT, dl, Op.getValueType(), Op.getOperand(0),
6359                        DAG.getConstantFP(1.0, dl, Op.getValueType()),
6360                        DAG.getConstantFP(0.0, dl, Op.getValueType()));
6361 
6362   // If we have direct moves, we can do all the conversion, skip the store/load
6363   // however, without FPCVT we can't do most conversions.
6364   if (Subtarget.hasDirectMove() && Subtarget.isPPC64() && Subtarget.hasFPCVT())
6365     return LowerINT_TO_FPDirectMove(Op, DAG, dl);
6366 
6367   assert((Op.getOpcode() == ISD::SINT_TO_FP || Subtarget.hasFPCVT()) &&
6368          "UINT_TO_FP is supported only with FPCVT");
6369 
6370   // If we have FCFIDS, then use it when converting to single-precision.
6371   // Otherwise, convert to double-precision and then round.
6372   unsigned FCFOp = (Subtarget.hasFPCVT() && Op.getValueType() == MVT::f32)
6373                        ? (Op.getOpcode() == ISD::UINT_TO_FP ? PPCISD::FCFIDUS
6374                                                             : PPCISD::FCFIDS)
6375                        : (Op.getOpcode() == ISD::UINT_TO_FP ? PPCISD::FCFIDU
6376                                                             : PPCISD::FCFID);
6377   MVT FCFTy = (Subtarget.hasFPCVT() && Op.getValueType() == MVT::f32)
6378                   ? MVT::f32
6379                   : MVT::f64;
6380 
6381   if (Op.getOperand(0).getValueType() == MVT::i64) {
6382     SDValue SINT = Op.getOperand(0);
6383     // When converting to single-precision, we actually need to convert
6384     // to double-precision first and then round to single-precision.
6385     // To avoid double-rounding effects during that operation, we have
6386     // to prepare the input operand.  Bits that might be truncated when
6387     // converting to double-precision are replaced by a bit that won't
6388     // be lost at this stage, but is below the single-precision rounding
6389     // position.
6390     //
6391     // However, if -enable-unsafe-fp-math is in effect, accept double
6392     // rounding to avoid the extra overhead.
6393     if (Op.getValueType() == MVT::f32 &&
6394         !Subtarget.hasFPCVT() &&
6395         !DAG.getTarget().Options.UnsafeFPMath) {
6396 
6397       // Twiddle input to make sure the low 11 bits are zero.  (If this
6398       // is the case, we are guaranteed the value will fit into the 53 bit
6399       // mantissa of an IEEE double-precision value without rounding.)
6400       // If any of those low 11 bits were not zero originally, make sure
6401       // bit 12 (value 2048) is set instead, so that the final rounding
6402       // to single-precision gets the correct result.
6403       SDValue Round = DAG.getNode(ISD::AND, dl, MVT::i64,
6404                                   SINT, DAG.getConstant(2047, dl, MVT::i64));
6405       Round = DAG.getNode(ISD::ADD, dl, MVT::i64,
6406                           Round, DAG.getConstant(2047, dl, MVT::i64));
6407       Round = DAG.getNode(ISD::OR, dl, MVT::i64, Round, SINT);
6408       Round = DAG.getNode(ISD::AND, dl, MVT::i64,
6409                           Round, DAG.getConstant(-2048, dl, MVT::i64));
6410 
6411       // However, we cannot use that value unconditionally: if the magnitude
6412       // of the input value is small, the bit-twiddling we did above might
6413       // end up visibly changing the output.  Fortunately, in that case, we
6414       // don't need to twiddle bits since the original input will convert
6415       // exactly to double-precision floating-point already.  Therefore,
6416       // construct a conditional to use the original value if the top 11
6417       // bits are all sign-bit copies, and use the rounded value computed
6418       // above otherwise.
6419       SDValue Cond = DAG.getNode(ISD::SRA, dl, MVT::i64,
6420                                  SINT, DAG.getConstant(53, dl, MVT::i32));
6421       Cond = DAG.getNode(ISD::ADD, dl, MVT::i64,
6422                          Cond, DAG.getConstant(1, dl, MVT::i64));
6423       Cond = DAG.getSetCC(dl, MVT::i32,
6424                           Cond, DAG.getConstant(1, dl, MVT::i64), ISD::SETUGT);
6425 
6426       SINT = DAG.getNode(ISD::SELECT, dl, MVT::i64, Cond, Round, SINT);
6427     }
6428 
6429     ReuseLoadInfo RLI;
6430     SDValue Bits;
6431 
6432     MachineFunction &MF = DAG.getMachineFunction();
6433     if (canReuseLoadAddress(SINT, MVT::i64, RLI, DAG)) {
6434       Bits = DAG.getLoad(MVT::f64, dl, RLI.Chain, RLI.Ptr, RLI.MPI, false,
6435                          false, RLI.IsInvariant, RLI.Alignment, RLI.AAInfo,
6436                          RLI.Ranges);
6437       spliceIntoChain(RLI.ResChain, Bits.getValue(1), DAG);
6438     } else if (Subtarget.hasLFIWAX() &&
6439                canReuseLoadAddress(SINT, MVT::i32, RLI, DAG, ISD::SEXTLOAD)) {
6440       MachineMemOperand *MMO =
6441         MF.getMachineMemOperand(RLI.MPI, MachineMemOperand::MOLoad, 4,
6442                                 RLI.Alignment, RLI.AAInfo, RLI.Ranges);
6443       SDValue Ops[] = { RLI.Chain, RLI.Ptr };
6444       Bits = DAG.getMemIntrinsicNode(PPCISD::LFIWAX, dl,
6445                                      DAG.getVTList(MVT::f64, MVT::Other),
6446                                      Ops, MVT::i32, MMO);
6447       spliceIntoChain(RLI.ResChain, Bits.getValue(1), DAG);
6448     } else if (Subtarget.hasFPCVT() &&
6449                canReuseLoadAddress(SINT, MVT::i32, RLI, DAG, ISD::ZEXTLOAD)) {
6450       MachineMemOperand *MMO =
6451         MF.getMachineMemOperand(RLI.MPI, MachineMemOperand::MOLoad, 4,
6452                                 RLI.Alignment, RLI.AAInfo, RLI.Ranges);
6453       SDValue Ops[] = { RLI.Chain, RLI.Ptr };
6454       Bits = DAG.getMemIntrinsicNode(PPCISD::LFIWZX, dl,
6455                                      DAG.getVTList(MVT::f64, MVT::Other),
6456                                      Ops, MVT::i32, MMO);
6457       spliceIntoChain(RLI.ResChain, Bits.getValue(1), DAG);
6458     } else if (((Subtarget.hasLFIWAX() &&
6459                  SINT.getOpcode() == ISD::SIGN_EXTEND) ||
6460                 (Subtarget.hasFPCVT() &&
6461                  SINT.getOpcode() == ISD::ZERO_EXTEND)) &&
6462                SINT.getOperand(0).getValueType() == MVT::i32) {
6463       MachineFrameInfo *FrameInfo = MF.getFrameInfo();
6464       EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(DAG.getDataLayout());
6465 
6466       int FrameIdx = FrameInfo->CreateStackObject(4, 4, false);
6467       SDValue FIdx = DAG.getFrameIndex(FrameIdx, PtrVT);
6468 
6469       SDValue Store = DAG.getStore(
6470           DAG.getEntryNode(), dl, SINT.getOperand(0), FIdx,
6471           MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), FrameIdx),
6472           false, false, 0);
6473 
6474       assert(cast<StoreSDNode>(Store)->getMemoryVT() == MVT::i32 &&
6475              "Expected an i32 store");
6476 
6477       RLI.Ptr = FIdx;
6478       RLI.Chain = Store;
6479       RLI.MPI =
6480           MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), FrameIdx);
6481       RLI.Alignment = 4;
6482 
6483       MachineMemOperand *MMO =
6484         MF.getMachineMemOperand(RLI.MPI, MachineMemOperand::MOLoad, 4,
6485                                 RLI.Alignment, RLI.AAInfo, RLI.Ranges);
6486       SDValue Ops[] = { RLI.Chain, RLI.Ptr };
6487       Bits = DAG.getMemIntrinsicNode(SINT.getOpcode() == ISD::ZERO_EXTEND ?
6488                                      PPCISD::LFIWZX : PPCISD::LFIWAX,
6489                                      dl, DAG.getVTList(MVT::f64, MVT::Other),
6490                                      Ops, MVT::i32, MMO);
6491     } else
6492       Bits = DAG.getNode(ISD::BITCAST, dl, MVT::f64, SINT);
6493 
6494     SDValue FP = DAG.getNode(FCFOp, dl, FCFTy, Bits);
6495 
6496     if (Op.getValueType() == MVT::f32 && !Subtarget.hasFPCVT())
6497       FP = DAG.getNode(ISD::FP_ROUND, dl,
6498                        MVT::f32, FP, DAG.getIntPtrConstant(0, dl));
6499     return FP;
6500   }
6501 
6502   assert(Op.getOperand(0).getValueType() == MVT::i32 &&
6503          "Unhandled INT_TO_FP type in custom expander!");
6504   // Since we only generate this in 64-bit mode, we can take advantage of
6505   // 64-bit registers.  In particular, sign extend the input value into the
6506   // 64-bit register with extsw, store the WHOLE 64-bit value into the stack
6507   // then lfd it and fcfid it.
6508   MachineFunction &MF = DAG.getMachineFunction();
6509   MachineFrameInfo *FrameInfo = MF.getFrameInfo();
6510   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(MF.getDataLayout());
6511 
6512   SDValue Ld;
6513   if (Subtarget.hasLFIWAX() || Subtarget.hasFPCVT()) {
6514     ReuseLoadInfo RLI;
6515     bool ReusingLoad;
6516     if (!(ReusingLoad = canReuseLoadAddress(Op.getOperand(0), MVT::i32, RLI,
6517                                             DAG))) {
6518       int FrameIdx = FrameInfo->CreateStackObject(4, 4, false);
6519       SDValue FIdx = DAG.getFrameIndex(FrameIdx, PtrVT);
6520 
6521       SDValue Store = DAG.getStore(
6522           DAG.getEntryNode(), dl, Op.getOperand(0), FIdx,
6523           MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), FrameIdx),
6524           false, false, 0);
6525 
6526       assert(cast<StoreSDNode>(Store)->getMemoryVT() == MVT::i32 &&
6527              "Expected an i32 store");
6528 
6529       RLI.Ptr = FIdx;
6530       RLI.Chain = Store;
6531       RLI.MPI =
6532           MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), FrameIdx);
6533       RLI.Alignment = 4;
6534     }
6535 
6536     MachineMemOperand *MMO =
6537       MF.getMachineMemOperand(RLI.MPI, MachineMemOperand::MOLoad, 4,
6538                               RLI.Alignment, RLI.AAInfo, RLI.Ranges);
6539     SDValue Ops[] = { RLI.Chain, RLI.Ptr };
6540     Ld = DAG.getMemIntrinsicNode(Op.getOpcode() == ISD::UINT_TO_FP ?
6541                                    PPCISD::LFIWZX : PPCISD::LFIWAX,
6542                                  dl, DAG.getVTList(MVT::f64, MVT::Other),
6543                                  Ops, MVT::i32, MMO);
6544     if (ReusingLoad)
6545       spliceIntoChain(RLI.ResChain, Ld.getValue(1), DAG);
6546   } else {
6547     assert(Subtarget.isPPC64() &&
6548            "i32->FP without LFIWAX supported only on PPC64");
6549 
6550     int FrameIdx = FrameInfo->CreateStackObject(8, 8, false);
6551     SDValue FIdx = DAG.getFrameIndex(FrameIdx, PtrVT);
6552 
6553     SDValue Ext64 = DAG.getNode(ISD::SIGN_EXTEND, dl, MVT::i64,
6554                                 Op.getOperand(0));
6555 
6556     // STD the extended value into the stack slot.
6557     SDValue Store = DAG.getStore(
6558         DAG.getEntryNode(), dl, Ext64, FIdx,
6559         MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), FrameIdx),
6560         false, false, 0);
6561 
6562     // Load the value as a double.
6563     Ld = DAG.getLoad(
6564         MVT::f64, dl, Store, FIdx,
6565         MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), FrameIdx),
6566         false, false, false, 0);
6567   }
6568 
6569   // FCFID it and return it.
6570   SDValue FP = DAG.getNode(FCFOp, dl, FCFTy, Ld);
6571   if (Op.getValueType() == MVT::f32 && !Subtarget.hasFPCVT())
6572     FP = DAG.getNode(ISD::FP_ROUND, dl, MVT::f32, FP,
6573                      DAG.getIntPtrConstant(0, dl));
6574   return FP;
6575 }
6576 
6577 SDValue PPCTargetLowering::LowerFLT_ROUNDS_(SDValue Op,
6578                                             SelectionDAG &DAG) const {
6579   SDLoc dl(Op);
6580   /*
6581    The rounding mode is in bits 30:31 of FPSR, and has the following
6582    settings:
6583      00 Round to nearest
6584      01 Round to 0
6585      10 Round to +inf
6586      11 Round to -inf
6587 
6588   FLT_ROUNDS, on the other hand, expects the following:
6589     -1 Undefined
6590      0 Round to 0
6591      1 Round to nearest
6592      2 Round to +inf
6593      3 Round to -inf
6594 
6595   To perform the conversion, we do:
6596     ((FPSCR & 0x3) ^ ((~FPSCR & 0x3) >> 1))
6597   */
6598 
6599   MachineFunction &MF = DAG.getMachineFunction();
6600   EVT VT = Op.getValueType();
6601   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(MF.getDataLayout());
6602 
6603   // Save FP Control Word to register
6604   EVT NodeTys[] = {
6605     MVT::f64,    // return register
6606     MVT::Glue    // unused in this context
6607   };
6608   SDValue Chain = DAG.getNode(PPCISD::MFFS, dl, NodeTys, None);
6609 
6610   // Save FP register to stack slot
6611   int SSFI = MF.getFrameInfo()->CreateStackObject(8, 8, false);
6612   SDValue StackSlot = DAG.getFrameIndex(SSFI, PtrVT);
6613   SDValue Store = DAG.getStore(DAG.getEntryNode(), dl, Chain,
6614                                StackSlot, MachinePointerInfo(), false, false,0);
6615 
6616   // Load FP Control Word from low 32 bits of stack slot.
6617   SDValue Four = DAG.getConstant(4, dl, PtrVT);
6618   SDValue Addr = DAG.getNode(ISD::ADD, dl, PtrVT, StackSlot, Four);
6619   SDValue CWD = DAG.getLoad(MVT::i32, dl, Store, Addr, MachinePointerInfo(),
6620                             false, false, false, 0);
6621 
6622   // Transform as necessary
6623   SDValue CWD1 =
6624     DAG.getNode(ISD::AND, dl, MVT::i32,
6625                 CWD, DAG.getConstant(3, dl, MVT::i32));
6626   SDValue CWD2 =
6627     DAG.getNode(ISD::SRL, dl, MVT::i32,
6628                 DAG.getNode(ISD::AND, dl, MVT::i32,
6629                             DAG.getNode(ISD::XOR, dl, MVT::i32,
6630                                         CWD, DAG.getConstant(3, dl, MVT::i32)),
6631                             DAG.getConstant(3, dl, MVT::i32)),
6632                 DAG.getConstant(1, dl, MVT::i32));
6633 
6634   SDValue RetVal =
6635     DAG.getNode(ISD::XOR, dl, MVT::i32, CWD1, CWD2);
6636 
6637   return DAG.getNode((VT.getSizeInBits() < 16 ?
6638                       ISD::TRUNCATE : ISD::ZERO_EXTEND), dl, VT, RetVal);
6639 }
6640 
6641 SDValue PPCTargetLowering::LowerSHL_PARTS(SDValue Op, SelectionDAG &DAG) const {
6642   EVT VT = Op.getValueType();
6643   unsigned BitWidth = VT.getSizeInBits();
6644   SDLoc dl(Op);
6645   assert(Op.getNumOperands() == 3 &&
6646          VT == Op.getOperand(1).getValueType() &&
6647          "Unexpected SHL!");
6648 
6649   // Expand into a bunch of logical ops.  Note that these ops
6650   // depend on the PPC behavior for oversized shift amounts.
6651   SDValue Lo = Op.getOperand(0);
6652   SDValue Hi = Op.getOperand(1);
6653   SDValue Amt = Op.getOperand(2);
6654   EVT AmtVT = Amt.getValueType();
6655 
6656   SDValue Tmp1 = DAG.getNode(ISD::SUB, dl, AmtVT,
6657                              DAG.getConstant(BitWidth, dl, AmtVT), Amt);
6658   SDValue Tmp2 = DAG.getNode(PPCISD::SHL, dl, VT, Hi, Amt);
6659   SDValue Tmp3 = DAG.getNode(PPCISD::SRL, dl, VT, Lo, Tmp1);
6660   SDValue Tmp4 = DAG.getNode(ISD::OR , dl, VT, Tmp2, Tmp3);
6661   SDValue Tmp5 = DAG.getNode(ISD::ADD, dl, AmtVT, Amt,
6662                              DAG.getConstant(-BitWidth, dl, AmtVT));
6663   SDValue Tmp6 = DAG.getNode(PPCISD::SHL, dl, VT, Lo, Tmp5);
6664   SDValue OutHi = DAG.getNode(ISD::OR, dl, VT, Tmp4, Tmp6);
6665   SDValue OutLo = DAG.getNode(PPCISD::SHL, dl, VT, Lo, Amt);
6666   SDValue OutOps[] = { OutLo, OutHi };
6667   return DAG.getMergeValues(OutOps, dl);
6668 }
6669 
6670 SDValue PPCTargetLowering::LowerSRL_PARTS(SDValue Op, SelectionDAG &DAG) const {
6671   EVT VT = Op.getValueType();
6672   SDLoc dl(Op);
6673   unsigned BitWidth = VT.getSizeInBits();
6674   assert(Op.getNumOperands() == 3 &&
6675          VT == Op.getOperand(1).getValueType() &&
6676          "Unexpected SRL!");
6677 
6678   // Expand into a bunch of logical ops.  Note that these ops
6679   // depend on the PPC behavior for oversized shift amounts.
6680   SDValue Lo = Op.getOperand(0);
6681   SDValue Hi = Op.getOperand(1);
6682   SDValue Amt = Op.getOperand(2);
6683   EVT AmtVT = Amt.getValueType();
6684 
6685   SDValue Tmp1 = DAG.getNode(ISD::SUB, dl, AmtVT,
6686                              DAG.getConstant(BitWidth, dl, AmtVT), Amt);
6687   SDValue Tmp2 = DAG.getNode(PPCISD::SRL, dl, VT, Lo, Amt);
6688   SDValue Tmp3 = DAG.getNode(PPCISD::SHL, dl, VT, Hi, Tmp1);
6689   SDValue Tmp4 = DAG.getNode(ISD::OR, dl, VT, Tmp2, Tmp3);
6690   SDValue Tmp5 = DAG.getNode(ISD::ADD, dl, AmtVT, Amt,
6691                              DAG.getConstant(-BitWidth, dl, AmtVT));
6692   SDValue Tmp6 = DAG.getNode(PPCISD::SRL, dl, VT, Hi, Tmp5);
6693   SDValue OutLo = DAG.getNode(ISD::OR, dl, VT, Tmp4, Tmp6);
6694   SDValue OutHi = DAG.getNode(PPCISD::SRL, dl, VT, Hi, Amt);
6695   SDValue OutOps[] = { OutLo, OutHi };
6696   return DAG.getMergeValues(OutOps, dl);
6697 }
6698 
6699 SDValue PPCTargetLowering::LowerSRA_PARTS(SDValue Op, SelectionDAG &DAG) const {
6700   SDLoc dl(Op);
6701   EVT VT = Op.getValueType();
6702   unsigned BitWidth = VT.getSizeInBits();
6703   assert(Op.getNumOperands() == 3 &&
6704          VT == Op.getOperand(1).getValueType() &&
6705          "Unexpected SRA!");
6706 
6707   // Expand into a bunch of logical ops, followed by a select_cc.
6708   SDValue Lo = Op.getOperand(0);
6709   SDValue Hi = Op.getOperand(1);
6710   SDValue Amt = Op.getOperand(2);
6711   EVT AmtVT = Amt.getValueType();
6712 
6713   SDValue Tmp1 = DAG.getNode(ISD::SUB, dl, AmtVT,
6714                              DAG.getConstant(BitWidth, dl, AmtVT), Amt);
6715   SDValue Tmp2 = DAG.getNode(PPCISD::SRL, dl, VT, Lo, Amt);
6716   SDValue Tmp3 = DAG.getNode(PPCISD::SHL, dl, VT, Hi, Tmp1);
6717   SDValue Tmp4 = DAG.getNode(ISD::OR, dl, VT, Tmp2, Tmp3);
6718   SDValue Tmp5 = DAG.getNode(ISD::ADD, dl, AmtVT, Amt,
6719                              DAG.getConstant(-BitWidth, dl, AmtVT));
6720   SDValue Tmp6 = DAG.getNode(PPCISD::SRA, dl, VT, Hi, Tmp5);
6721   SDValue OutHi = DAG.getNode(PPCISD::SRA, dl, VT, Hi, Amt);
6722   SDValue OutLo = DAG.getSelectCC(dl, Tmp5, DAG.getConstant(0, dl, AmtVT),
6723                                   Tmp4, Tmp6, ISD::SETLE);
6724   SDValue OutOps[] = { OutLo, OutHi };
6725   return DAG.getMergeValues(OutOps, dl);
6726 }
6727 
6728 //===----------------------------------------------------------------------===//
6729 // Vector related lowering.
6730 //
6731 
6732 /// BuildSplatI - Build a canonical splati of Val with an element size of
6733 /// SplatSize.  Cast the result to VT.
6734 static SDValue BuildSplatI(int Val, unsigned SplatSize, EVT VT,
6735                              SelectionDAG &DAG, SDLoc dl) {
6736   assert(Val >= -16 && Val <= 15 && "vsplti is out of range!");
6737 
6738   static const MVT VTys[] = { // canonical VT to use for each size.
6739     MVT::v16i8, MVT::v8i16, MVT::Other, MVT::v4i32
6740   };
6741 
6742   EVT ReqVT = VT != MVT::Other ? VT : VTys[SplatSize-1];
6743 
6744   // Force vspltis[hw] -1 to vspltisb -1 to canonicalize.
6745   if (Val == -1)
6746     SplatSize = 1;
6747 
6748   EVT CanonicalVT = VTys[SplatSize-1];
6749 
6750   // Build a canonical splat for this value.
6751   return DAG.getBitcast(ReqVT, DAG.getConstant(Val, dl, CanonicalVT));
6752 }
6753 
6754 /// BuildIntrinsicOp - Return a unary operator intrinsic node with the
6755 /// specified intrinsic ID.
6756 static SDValue BuildIntrinsicOp(unsigned IID, SDValue Op,
6757                                 SelectionDAG &DAG, SDLoc dl,
6758                                 EVT DestVT = MVT::Other) {
6759   if (DestVT == MVT::Other) DestVT = Op.getValueType();
6760   return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, DestVT,
6761                      DAG.getConstant(IID, dl, MVT::i32), Op);
6762 }
6763 
6764 /// BuildIntrinsicOp - Return a binary operator intrinsic node with the
6765 /// specified intrinsic ID.
6766 static SDValue BuildIntrinsicOp(unsigned IID, SDValue LHS, SDValue RHS,
6767                                 SelectionDAG &DAG, SDLoc dl,
6768                                 EVT DestVT = MVT::Other) {
6769   if (DestVT == MVT::Other) DestVT = LHS.getValueType();
6770   return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, DestVT,
6771                      DAG.getConstant(IID, dl, MVT::i32), LHS, RHS);
6772 }
6773 
6774 /// BuildIntrinsicOp - Return a ternary operator intrinsic node with the
6775 /// specified intrinsic ID.
6776 static SDValue BuildIntrinsicOp(unsigned IID, SDValue Op0, SDValue Op1,
6777                                 SDValue Op2, SelectionDAG &DAG,
6778                                 SDLoc dl, EVT DestVT = MVT::Other) {
6779   if (DestVT == MVT::Other) DestVT = Op0.getValueType();
6780   return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, DestVT,
6781                      DAG.getConstant(IID, dl, MVT::i32), Op0, Op1, Op2);
6782 }
6783 
6784 /// BuildVSLDOI - Return a VECTOR_SHUFFLE that is a vsldoi of the specified
6785 /// amount.  The result has the specified value type.
6786 static SDValue BuildVSLDOI(SDValue LHS, SDValue RHS, unsigned Amt,
6787                              EVT VT, SelectionDAG &DAG, SDLoc dl) {
6788   // Force LHS/RHS to be the right type.
6789   LHS = DAG.getNode(ISD::BITCAST, dl, MVT::v16i8, LHS);
6790   RHS = DAG.getNode(ISD::BITCAST, dl, MVT::v16i8, RHS);
6791 
6792   int Ops[16];
6793   for (unsigned i = 0; i != 16; ++i)
6794     Ops[i] = i + Amt;
6795   SDValue T = DAG.getVectorShuffle(MVT::v16i8, dl, LHS, RHS, Ops);
6796   return DAG.getNode(ISD::BITCAST, dl, VT, T);
6797 }
6798 
6799 // If this is a case we can't handle, return null and let the default
6800 // expansion code take care of it.  If we CAN select this case, and if it
6801 // selects to a single instruction, return Op.  Otherwise, if we can codegen
6802 // this case more efficiently than a constant pool load, lower it to the
6803 // sequence of ops that should be used.
6804 SDValue PPCTargetLowering::LowerBUILD_VECTOR(SDValue Op,
6805                                              SelectionDAG &DAG) const {
6806   SDLoc dl(Op);
6807   BuildVectorSDNode *BVN = dyn_cast<BuildVectorSDNode>(Op.getNode());
6808   assert(BVN && "Expected a BuildVectorSDNode in LowerBUILD_VECTOR");
6809 
6810   if (Subtarget.hasQPX() && Op.getValueType() == MVT::v4i1) {
6811     // We first build an i32 vector, load it into a QPX register,
6812     // then convert it to a floating-point vector and compare it
6813     // to a zero vector to get the boolean result.
6814     MachineFrameInfo *FrameInfo = DAG.getMachineFunction().getFrameInfo();
6815     int FrameIdx = FrameInfo->CreateStackObject(16, 16, false);
6816     MachinePointerInfo PtrInfo =
6817         MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), FrameIdx);
6818     EVT PtrVT = getPointerTy(DAG.getDataLayout());
6819     SDValue FIdx = DAG.getFrameIndex(FrameIdx, PtrVT);
6820 
6821     assert(BVN->getNumOperands() == 4 &&
6822       "BUILD_VECTOR for v4i1 does not have 4 operands");
6823 
6824     bool IsConst = true;
6825     for (unsigned i = 0; i < 4; ++i) {
6826       if (BVN->getOperand(i).isUndef()) continue;
6827       if (!isa<ConstantSDNode>(BVN->getOperand(i))) {
6828         IsConst = false;
6829         break;
6830       }
6831     }
6832 
6833     if (IsConst) {
6834       Constant *One =
6835         ConstantFP::get(Type::getFloatTy(*DAG.getContext()), 1.0);
6836       Constant *NegOne =
6837         ConstantFP::get(Type::getFloatTy(*DAG.getContext()), -1.0);
6838 
6839       SmallVector<Constant*, 4> CV(4, NegOne);
6840       for (unsigned i = 0; i < 4; ++i) {
6841         if (BVN->getOperand(i).isUndef())
6842           CV[i] = UndefValue::get(Type::getFloatTy(*DAG.getContext()));
6843         else if (isNullConstant(BVN->getOperand(i)))
6844           continue;
6845         else
6846           CV[i] = One;
6847       }
6848 
6849       Constant *CP = ConstantVector::get(CV);
6850       SDValue CPIdx = DAG.getConstantPool(CP, getPointerTy(DAG.getDataLayout()),
6851                                           16 /* alignment */);
6852 
6853       SmallVector<SDValue, 2> Ops;
6854       Ops.push_back(DAG.getEntryNode());
6855       Ops.push_back(CPIdx);
6856 
6857       SmallVector<EVT, 2> ValueVTs;
6858       ValueVTs.push_back(MVT::v4i1);
6859       ValueVTs.push_back(MVT::Other); // chain
6860       SDVTList VTs = DAG.getVTList(ValueVTs);
6861 
6862       return DAG.getMemIntrinsicNode(
6863           PPCISD::QVLFSb, dl, VTs, Ops, MVT::v4f32,
6864           MachinePointerInfo::getConstantPool(DAG.getMachineFunction()));
6865     }
6866 
6867     SmallVector<SDValue, 4> Stores;
6868     for (unsigned i = 0; i < 4; ++i) {
6869       if (BVN->getOperand(i).isUndef()) continue;
6870 
6871       unsigned Offset = 4*i;
6872       SDValue Idx = DAG.getConstant(Offset, dl, FIdx.getValueType());
6873       Idx = DAG.getNode(ISD::ADD, dl, FIdx.getValueType(), FIdx, Idx);
6874 
6875       unsigned StoreSize = BVN->getOperand(i).getValueType().getStoreSize();
6876       if (StoreSize > 4) {
6877         Stores.push_back(DAG.getTruncStore(DAG.getEntryNode(), dl,
6878                                            BVN->getOperand(i), Idx,
6879                                            PtrInfo.getWithOffset(Offset),
6880                                            MVT::i32, false, false, 0));
6881       } else {
6882         SDValue StoreValue = BVN->getOperand(i);
6883         if (StoreSize < 4)
6884           StoreValue = DAG.getNode(ISD::ANY_EXTEND, dl, MVT::i32, StoreValue);
6885 
6886         Stores.push_back(DAG.getStore(DAG.getEntryNode(), dl,
6887                                       StoreValue, Idx,
6888                                       PtrInfo.getWithOffset(Offset),
6889                                       false, false, 0));
6890       }
6891     }
6892 
6893     SDValue StoreChain;
6894     if (!Stores.empty())
6895       StoreChain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, Stores);
6896     else
6897       StoreChain = DAG.getEntryNode();
6898 
6899     // Now load from v4i32 into the QPX register; this will extend it to
6900     // v4i64 but not yet convert it to a floating point. Nevertheless, this
6901     // is typed as v4f64 because the QPX register integer states are not
6902     // explicitly represented.
6903 
6904     SmallVector<SDValue, 2> Ops;
6905     Ops.push_back(StoreChain);
6906     Ops.push_back(DAG.getConstant(Intrinsic::ppc_qpx_qvlfiwz, dl, MVT::i32));
6907     Ops.push_back(FIdx);
6908 
6909     SmallVector<EVT, 2> ValueVTs;
6910     ValueVTs.push_back(MVT::v4f64);
6911     ValueVTs.push_back(MVT::Other); // chain
6912     SDVTList VTs = DAG.getVTList(ValueVTs);
6913 
6914     SDValue LoadedVect = DAG.getMemIntrinsicNode(ISD::INTRINSIC_W_CHAIN,
6915       dl, VTs, Ops, MVT::v4i32, PtrInfo);
6916     LoadedVect = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, MVT::v4f64,
6917       DAG.getConstant(Intrinsic::ppc_qpx_qvfcfidu, dl, MVT::i32),
6918       LoadedVect);
6919 
6920     SDValue FPZeros = DAG.getConstantFP(0.0, dl, MVT::v4f64);
6921 
6922     return DAG.getSetCC(dl, MVT::v4i1, LoadedVect, FPZeros, ISD::SETEQ);
6923   }
6924 
6925   // All other QPX vectors are handled by generic code.
6926   if (Subtarget.hasQPX())
6927     return SDValue();
6928 
6929   // Check if this is a splat of a constant value.
6930   APInt APSplatBits, APSplatUndef;
6931   unsigned SplatBitSize;
6932   bool HasAnyUndefs;
6933   if (! BVN->isConstantSplat(APSplatBits, APSplatUndef, SplatBitSize,
6934                              HasAnyUndefs, 0, !Subtarget.isLittleEndian()) ||
6935       SplatBitSize > 32)
6936     return SDValue();
6937 
6938   unsigned SplatBits = APSplatBits.getZExtValue();
6939   unsigned SplatUndef = APSplatUndef.getZExtValue();
6940   unsigned SplatSize = SplatBitSize / 8;
6941 
6942   // First, handle single instruction cases.
6943 
6944   // All zeros?
6945   if (SplatBits == 0) {
6946     // Canonicalize all zero vectors to be v4i32.
6947     if (Op.getValueType() != MVT::v4i32 || HasAnyUndefs) {
6948       SDValue Z = DAG.getConstant(0, dl, MVT::v4i32);
6949       Op = DAG.getNode(ISD::BITCAST, dl, Op.getValueType(), Z);
6950     }
6951     return Op;
6952   }
6953 
6954   // If the sign extended value is in the range [-16,15], use VSPLTI[bhw].
6955   int32_t SextVal= (int32_t(SplatBits << (32-SplatBitSize)) >>
6956                     (32-SplatBitSize));
6957   if (SextVal >= -16 && SextVal <= 15)
6958     return BuildSplatI(SextVal, SplatSize, Op.getValueType(), DAG, dl);
6959 
6960   // Two instruction sequences.
6961 
6962   // If this value is in the range [-32,30] and is even, use:
6963   //     VSPLTI[bhw](val/2) + VSPLTI[bhw](val/2)
6964   // If this value is in the range [17,31] and is odd, use:
6965   //     VSPLTI[bhw](val-16) - VSPLTI[bhw](-16)
6966   // If this value is in the range [-31,-17] and is odd, use:
6967   //     VSPLTI[bhw](val+16) + VSPLTI[bhw](-16)
6968   // Note the last two are three-instruction sequences.
6969   if (SextVal >= -32 && SextVal <= 31) {
6970     // To avoid having these optimizations undone by constant folding,
6971     // we convert to a pseudo that will be expanded later into one of
6972     // the above forms.
6973     SDValue Elt = DAG.getConstant(SextVal, dl, MVT::i32);
6974     EVT VT = (SplatSize == 1 ? MVT::v16i8 :
6975               (SplatSize == 2 ? MVT::v8i16 : MVT::v4i32));
6976     SDValue EltSize = DAG.getConstant(SplatSize, dl, MVT::i32);
6977     SDValue RetVal = DAG.getNode(PPCISD::VADD_SPLAT, dl, VT, Elt, EltSize);
6978     if (VT == Op.getValueType())
6979       return RetVal;
6980     else
6981       return DAG.getNode(ISD::BITCAST, dl, Op.getValueType(), RetVal);
6982   }
6983 
6984   // If this is 0x8000_0000 x 4, turn into vspltisw + vslw.  If it is
6985   // 0x7FFF_FFFF x 4, turn it into not(0x8000_0000).  This is important
6986   // for fneg/fabs.
6987   if (SplatSize == 4 && SplatBits == (0x7FFFFFFF&~SplatUndef)) {
6988     // Make -1 and vspltisw -1:
6989     SDValue OnesV = BuildSplatI(-1, 4, MVT::v4i32, DAG, dl);
6990 
6991     // Make the VSLW intrinsic, computing 0x8000_0000.
6992     SDValue Res = BuildIntrinsicOp(Intrinsic::ppc_altivec_vslw, OnesV,
6993                                    OnesV, DAG, dl);
6994 
6995     // xor by OnesV to invert it.
6996     Res = DAG.getNode(ISD::XOR, dl, MVT::v4i32, Res, OnesV);
6997     return DAG.getNode(ISD::BITCAST, dl, Op.getValueType(), Res);
6998   }
6999 
7000   // Check to see if this is a wide variety of vsplti*, binop self cases.
7001   static const signed char SplatCsts[] = {
7002     -1, 1, -2, 2, -3, 3, -4, 4, -5, 5, -6, 6, -7, 7,
7003     -8, 8, -9, 9, -10, 10, -11, 11, -12, 12, -13, 13, 14, -14, 15, -15, -16
7004   };
7005 
7006   for (unsigned idx = 0; idx < array_lengthof(SplatCsts); ++idx) {
7007     // Indirect through the SplatCsts array so that we favor 'vsplti -1' for
7008     // cases which are ambiguous (e.g. formation of 0x8000_0000).  'vsplti -1'
7009     int i = SplatCsts[idx];
7010 
7011     // Figure out what shift amount will be used by altivec if shifted by i in
7012     // this splat size.
7013     unsigned TypeShiftAmt = i & (SplatBitSize-1);
7014 
7015     // vsplti + shl self.
7016     if (SextVal == (int)((unsigned)i << TypeShiftAmt)) {
7017       SDValue Res = BuildSplatI(i, SplatSize, MVT::Other, DAG, dl);
7018       static const unsigned IIDs[] = { // Intrinsic to use for each size.
7019         Intrinsic::ppc_altivec_vslb, Intrinsic::ppc_altivec_vslh, 0,
7020         Intrinsic::ppc_altivec_vslw
7021       };
7022       Res = BuildIntrinsicOp(IIDs[SplatSize-1], Res, Res, DAG, dl);
7023       return DAG.getNode(ISD::BITCAST, dl, Op.getValueType(), Res);
7024     }
7025 
7026     // vsplti + srl self.
7027     if (SextVal == (int)((unsigned)i >> TypeShiftAmt)) {
7028       SDValue Res = BuildSplatI(i, SplatSize, MVT::Other, DAG, dl);
7029       static const unsigned IIDs[] = { // Intrinsic to use for each size.
7030         Intrinsic::ppc_altivec_vsrb, Intrinsic::ppc_altivec_vsrh, 0,
7031         Intrinsic::ppc_altivec_vsrw
7032       };
7033       Res = BuildIntrinsicOp(IIDs[SplatSize-1], Res, Res, DAG, dl);
7034       return DAG.getNode(ISD::BITCAST, dl, Op.getValueType(), Res);
7035     }
7036 
7037     // vsplti + sra self.
7038     if (SextVal == (int)((unsigned)i >> TypeShiftAmt)) {
7039       SDValue Res = BuildSplatI(i, SplatSize, MVT::Other, DAG, dl);
7040       static const unsigned IIDs[] = { // Intrinsic to use for each size.
7041         Intrinsic::ppc_altivec_vsrab, Intrinsic::ppc_altivec_vsrah, 0,
7042         Intrinsic::ppc_altivec_vsraw
7043       };
7044       Res = BuildIntrinsicOp(IIDs[SplatSize-1], Res, Res, DAG, dl);
7045       return DAG.getNode(ISD::BITCAST, dl, Op.getValueType(), Res);
7046     }
7047 
7048     // vsplti + rol self.
7049     if (SextVal == (int)(((unsigned)i << TypeShiftAmt) |
7050                          ((unsigned)i >> (SplatBitSize-TypeShiftAmt)))) {
7051       SDValue Res = BuildSplatI(i, SplatSize, MVT::Other, DAG, dl);
7052       static const unsigned IIDs[] = { // Intrinsic to use for each size.
7053         Intrinsic::ppc_altivec_vrlb, Intrinsic::ppc_altivec_vrlh, 0,
7054         Intrinsic::ppc_altivec_vrlw
7055       };
7056       Res = BuildIntrinsicOp(IIDs[SplatSize-1], Res, Res, DAG, dl);
7057       return DAG.getNode(ISD::BITCAST, dl, Op.getValueType(), Res);
7058     }
7059 
7060     // t = vsplti c, result = vsldoi t, t, 1
7061     if (SextVal == (int)(((unsigned)i << 8) | (i < 0 ? 0xFF : 0))) {
7062       SDValue T = BuildSplatI(i, SplatSize, MVT::v16i8, DAG, dl);
7063       unsigned Amt = Subtarget.isLittleEndian() ? 15 : 1;
7064       return BuildVSLDOI(T, T, Amt, Op.getValueType(), DAG, dl);
7065     }
7066     // t = vsplti c, result = vsldoi t, t, 2
7067     if (SextVal == (int)(((unsigned)i << 16) | (i < 0 ? 0xFFFF : 0))) {
7068       SDValue T = BuildSplatI(i, SplatSize, MVT::v16i8, DAG, dl);
7069       unsigned Amt = Subtarget.isLittleEndian() ? 14 : 2;
7070       return BuildVSLDOI(T, T, Amt, Op.getValueType(), DAG, dl);
7071     }
7072     // t = vsplti c, result = vsldoi t, t, 3
7073     if (SextVal == (int)(((unsigned)i << 24) | (i < 0 ? 0xFFFFFF : 0))) {
7074       SDValue T = BuildSplatI(i, SplatSize, MVT::v16i8, DAG, dl);
7075       unsigned Amt = Subtarget.isLittleEndian() ? 13 : 3;
7076       return BuildVSLDOI(T, T, Amt, Op.getValueType(), DAG, dl);
7077     }
7078   }
7079 
7080   return SDValue();
7081 }
7082 
7083 /// GeneratePerfectShuffle - Given an entry in the perfect-shuffle table, emit
7084 /// the specified operations to build the shuffle.
7085 static SDValue GeneratePerfectShuffle(unsigned PFEntry, SDValue LHS,
7086                                       SDValue RHS, SelectionDAG &DAG,
7087                                       SDLoc dl) {
7088   unsigned OpNum = (PFEntry >> 26) & 0x0F;
7089   unsigned LHSID = (PFEntry >> 13) & ((1 << 13)-1);
7090   unsigned RHSID = (PFEntry >>  0) & ((1 << 13)-1);
7091 
7092   enum {
7093     OP_COPY = 0,  // Copy, used for things like <u,u,u,3> to say it is <0,1,2,3>
7094     OP_VMRGHW,
7095     OP_VMRGLW,
7096     OP_VSPLTISW0,
7097     OP_VSPLTISW1,
7098     OP_VSPLTISW2,
7099     OP_VSPLTISW3,
7100     OP_VSLDOI4,
7101     OP_VSLDOI8,
7102     OP_VSLDOI12
7103   };
7104 
7105   if (OpNum == OP_COPY) {
7106     if (LHSID == (1*9+2)*9+3) return LHS;
7107     assert(LHSID == ((4*9+5)*9+6)*9+7 && "Illegal OP_COPY!");
7108     return RHS;
7109   }
7110 
7111   SDValue OpLHS, OpRHS;
7112   OpLHS = GeneratePerfectShuffle(PerfectShuffleTable[LHSID], LHS, RHS, DAG, dl);
7113   OpRHS = GeneratePerfectShuffle(PerfectShuffleTable[RHSID], LHS, RHS, DAG, dl);
7114 
7115   int ShufIdxs[16];
7116   switch (OpNum) {
7117   default: llvm_unreachable("Unknown i32 permute!");
7118   case OP_VMRGHW:
7119     ShufIdxs[ 0] =  0; ShufIdxs[ 1] =  1; ShufIdxs[ 2] =  2; ShufIdxs[ 3] =  3;
7120     ShufIdxs[ 4] = 16; ShufIdxs[ 5] = 17; ShufIdxs[ 6] = 18; ShufIdxs[ 7] = 19;
7121     ShufIdxs[ 8] =  4; ShufIdxs[ 9] =  5; ShufIdxs[10] =  6; ShufIdxs[11] =  7;
7122     ShufIdxs[12] = 20; ShufIdxs[13] = 21; ShufIdxs[14] = 22; ShufIdxs[15] = 23;
7123     break;
7124   case OP_VMRGLW:
7125     ShufIdxs[ 0] =  8; ShufIdxs[ 1] =  9; ShufIdxs[ 2] = 10; ShufIdxs[ 3] = 11;
7126     ShufIdxs[ 4] = 24; ShufIdxs[ 5] = 25; ShufIdxs[ 6] = 26; ShufIdxs[ 7] = 27;
7127     ShufIdxs[ 8] = 12; ShufIdxs[ 9] = 13; ShufIdxs[10] = 14; ShufIdxs[11] = 15;
7128     ShufIdxs[12] = 28; ShufIdxs[13] = 29; ShufIdxs[14] = 30; ShufIdxs[15] = 31;
7129     break;
7130   case OP_VSPLTISW0:
7131     for (unsigned i = 0; i != 16; ++i)
7132       ShufIdxs[i] = (i&3)+0;
7133     break;
7134   case OP_VSPLTISW1:
7135     for (unsigned i = 0; i != 16; ++i)
7136       ShufIdxs[i] = (i&3)+4;
7137     break;
7138   case OP_VSPLTISW2:
7139     for (unsigned i = 0; i != 16; ++i)
7140       ShufIdxs[i] = (i&3)+8;
7141     break;
7142   case OP_VSPLTISW3:
7143     for (unsigned i = 0; i != 16; ++i)
7144       ShufIdxs[i] = (i&3)+12;
7145     break;
7146   case OP_VSLDOI4:
7147     return BuildVSLDOI(OpLHS, OpRHS, 4, OpLHS.getValueType(), DAG, dl);
7148   case OP_VSLDOI8:
7149     return BuildVSLDOI(OpLHS, OpRHS, 8, OpLHS.getValueType(), DAG, dl);
7150   case OP_VSLDOI12:
7151     return BuildVSLDOI(OpLHS, OpRHS, 12, OpLHS.getValueType(), DAG, dl);
7152   }
7153   EVT VT = OpLHS.getValueType();
7154   OpLHS = DAG.getNode(ISD::BITCAST, dl, MVT::v16i8, OpLHS);
7155   OpRHS = DAG.getNode(ISD::BITCAST, dl, MVT::v16i8, OpRHS);
7156   SDValue T = DAG.getVectorShuffle(MVT::v16i8, dl, OpLHS, OpRHS, ShufIdxs);
7157   return DAG.getNode(ISD::BITCAST, dl, VT, T);
7158 }
7159 
7160 /// LowerVECTOR_SHUFFLE - Return the code we lower for VECTOR_SHUFFLE.  If this
7161 /// is a shuffle we can handle in a single instruction, return it.  Otherwise,
7162 /// return the code it can be lowered into.  Worst case, it can always be
7163 /// lowered into a vperm.
7164 SDValue PPCTargetLowering::LowerVECTOR_SHUFFLE(SDValue Op,
7165                                                SelectionDAG &DAG) const {
7166   SDLoc dl(Op);
7167   SDValue V1 = Op.getOperand(0);
7168   SDValue V2 = Op.getOperand(1);
7169   ShuffleVectorSDNode *SVOp = cast<ShuffleVectorSDNode>(Op);
7170   EVT VT = Op.getValueType();
7171   bool isLittleEndian = Subtarget.isLittleEndian();
7172 
7173   if (Subtarget.hasQPX()) {
7174     if (VT.getVectorNumElements() != 4)
7175       return SDValue();
7176 
7177     if (V2.isUndef()) V2 = V1;
7178 
7179     int AlignIdx = PPC::isQVALIGNIShuffleMask(SVOp);
7180     if (AlignIdx != -1) {
7181       return DAG.getNode(PPCISD::QVALIGNI, dl, VT, V1, V2,
7182                          DAG.getConstant(AlignIdx, dl, MVT::i32));
7183     } else if (SVOp->isSplat()) {
7184       int SplatIdx = SVOp->getSplatIndex();
7185       if (SplatIdx >= 4) {
7186         std::swap(V1, V2);
7187         SplatIdx -= 4;
7188       }
7189 
7190       // FIXME: If SplatIdx == 0 and the input came from a load, then there is
7191       // nothing to do.
7192 
7193       return DAG.getNode(PPCISD::QVESPLATI, dl, VT, V1,
7194                          DAG.getConstant(SplatIdx, dl, MVT::i32));
7195     }
7196 
7197     // Lower this into a qvgpci/qvfperm pair.
7198 
7199     // Compute the qvgpci literal
7200     unsigned idx = 0;
7201     for (unsigned i = 0; i < 4; ++i) {
7202       int m = SVOp->getMaskElt(i);
7203       unsigned mm = m >= 0 ? (unsigned) m : i;
7204       idx |= mm << (3-i)*3;
7205     }
7206 
7207     SDValue V3 = DAG.getNode(PPCISD::QVGPCI, dl, MVT::v4f64,
7208                              DAG.getConstant(idx, dl, MVT::i32));
7209     return DAG.getNode(PPCISD::QVFPERM, dl, VT, V1, V2, V3);
7210   }
7211 
7212   // Cases that are handled by instructions that take permute immediates
7213   // (such as vsplt*) should be left as VECTOR_SHUFFLE nodes so they can be
7214   // selected by the instruction selector.
7215   if (V2.isUndef()) {
7216     if (PPC::isSplatShuffleMask(SVOp, 1) ||
7217         PPC::isSplatShuffleMask(SVOp, 2) ||
7218         PPC::isSplatShuffleMask(SVOp, 4) ||
7219         PPC::isVPKUWUMShuffleMask(SVOp, 1, DAG) ||
7220         PPC::isVPKUHUMShuffleMask(SVOp, 1, DAG) ||
7221         PPC::isVSLDOIShuffleMask(SVOp, 1, DAG) != -1 ||
7222         PPC::isVMRGLShuffleMask(SVOp, 1, 1, DAG) ||
7223         PPC::isVMRGLShuffleMask(SVOp, 2, 1, DAG) ||
7224         PPC::isVMRGLShuffleMask(SVOp, 4, 1, DAG) ||
7225         PPC::isVMRGHShuffleMask(SVOp, 1, 1, DAG) ||
7226         PPC::isVMRGHShuffleMask(SVOp, 2, 1, DAG) ||
7227         PPC::isVMRGHShuffleMask(SVOp, 4, 1, DAG) ||
7228         (Subtarget.hasP8Altivec() && (
7229          PPC::isVPKUDUMShuffleMask(SVOp, 1, DAG) ||
7230          PPC::isVMRGEOShuffleMask(SVOp, true, 1, DAG) ||
7231          PPC::isVMRGEOShuffleMask(SVOp, false, 1, DAG)))) {
7232       return Op;
7233     }
7234   }
7235 
7236   // Altivec has a variety of "shuffle immediates" that take two vector inputs
7237   // and produce a fixed permutation.  If any of these match, do not lower to
7238   // VPERM.
7239   unsigned int ShuffleKind = isLittleEndian ? 2 : 0;
7240   if (PPC::isVPKUWUMShuffleMask(SVOp, ShuffleKind, DAG) ||
7241       PPC::isVPKUHUMShuffleMask(SVOp, ShuffleKind, DAG) ||
7242       PPC::isVSLDOIShuffleMask(SVOp, ShuffleKind, DAG) != -1 ||
7243       PPC::isVMRGLShuffleMask(SVOp, 1, ShuffleKind, DAG) ||
7244       PPC::isVMRGLShuffleMask(SVOp, 2, ShuffleKind, DAG) ||
7245       PPC::isVMRGLShuffleMask(SVOp, 4, ShuffleKind, DAG) ||
7246       PPC::isVMRGHShuffleMask(SVOp, 1, ShuffleKind, DAG) ||
7247       PPC::isVMRGHShuffleMask(SVOp, 2, ShuffleKind, DAG) ||
7248       PPC::isVMRGHShuffleMask(SVOp, 4, ShuffleKind, DAG) ||
7249       (Subtarget.hasP8Altivec() && (
7250        PPC::isVPKUDUMShuffleMask(SVOp, ShuffleKind, DAG) ||
7251        PPC::isVMRGEOShuffleMask(SVOp, true, ShuffleKind, DAG) ||
7252        PPC::isVMRGEOShuffleMask(SVOp, false, ShuffleKind, DAG))))
7253     return Op;
7254 
7255   // Check to see if this is a shuffle of 4-byte values.  If so, we can use our
7256   // perfect shuffle table to emit an optimal matching sequence.
7257   ArrayRef<int> PermMask = SVOp->getMask();
7258 
7259   unsigned PFIndexes[4];
7260   bool isFourElementShuffle = true;
7261   for (unsigned i = 0; i != 4 && isFourElementShuffle; ++i) { // Element number
7262     unsigned EltNo = 8;   // Start out undef.
7263     for (unsigned j = 0; j != 4; ++j) {  // Intra-element byte.
7264       if (PermMask[i*4+j] < 0)
7265         continue;   // Undef, ignore it.
7266 
7267       unsigned ByteSource = PermMask[i*4+j];
7268       if ((ByteSource & 3) != j) {
7269         isFourElementShuffle = false;
7270         break;
7271       }
7272 
7273       if (EltNo == 8) {
7274         EltNo = ByteSource/4;
7275       } else if (EltNo != ByteSource/4) {
7276         isFourElementShuffle = false;
7277         break;
7278       }
7279     }
7280     PFIndexes[i] = EltNo;
7281   }
7282 
7283   // If this shuffle can be expressed as a shuffle of 4-byte elements, use the
7284   // perfect shuffle vector to determine if it is cost effective to do this as
7285   // discrete instructions, or whether we should use a vperm.
7286   // For now, we skip this for little endian until such time as we have a
7287   // little-endian perfect shuffle table.
7288   if (isFourElementShuffle && !isLittleEndian) {
7289     // Compute the index in the perfect shuffle table.
7290     unsigned PFTableIndex =
7291       PFIndexes[0]*9*9*9+PFIndexes[1]*9*9+PFIndexes[2]*9+PFIndexes[3];
7292 
7293     unsigned PFEntry = PerfectShuffleTable[PFTableIndex];
7294     unsigned Cost  = (PFEntry >> 30);
7295 
7296     // Determining when to avoid vperm is tricky.  Many things affect the cost
7297     // of vperm, particularly how many times the perm mask needs to be computed.
7298     // For example, if the perm mask can be hoisted out of a loop or is already
7299     // used (perhaps because there are multiple permutes with the same shuffle
7300     // mask?) the vperm has a cost of 1.  OTOH, hoisting the permute mask out of
7301     // the loop requires an extra register.
7302     //
7303     // As a compromise, we only emit discrete instructions if the shuffle can be
7304     // generated in 3 or fewer operations.  When we have loop information
7305     // available, if this block is within a loop, we should avoid using vperm
7306     // for 3-operation perms and use a constant pool load instead.
7307     if (Cost < 3)
7308       return GeneratePerfectShuffle(PFEntry, V1, V2, DAG, dl);
7309   }
7310 
7311   // Lower this to a VPERM(V1, V2, V3) expression, where V3 is a constant
7312   // vector that will get spilled to the constant pool.
7313   if (V2.isUndef()) V2 = V1;
7314 
7315   // The SHUFFLE_VECTOR mask is almost exactly what we want for vperm, except
7316   // that it is in input element units, not in bytes.  Convert now.
7317 
7318   // For little endian, the order of the input vectors is reversed, and
7319   // the permutation mask is complemented with respect to 31.  This is
7320   // necessary to produce proper semantics with the big-endian-biased vperm
7321   // instruction.
7322   EVT EltVT = V1.getValueType().getVectorElementType();
7323   unsigned BytesPerElement = EltVT.getSizeInBits()/8;
7324 
7325   SmallVector<SDValue, 16> ResultMask;
7326   for (unsigned i = 0, e = VT.getVectorNumElements(); i != e; ++i) {
7327     unsigned SrcElt = PermMask[i] < 0 ? 0 : PermMask[i];
7328 
7329     for (unsigned j = 0; j != BytesPerElement; ++j)
7330       if (isLittleEndian)
7331         ResultMask.push_back(DAG.getConstant(31 - (SrcElt*BytesPerElement + j),
7332                                              dl, MVT::i32));
7333       else
7334         ResultMask.push_back(DAG.getConstant(SrcElt*BytesPerElement + j, dl,
7335                                              MVT::i32));
7336   }
7337 
7338   SDValue VPermMask = DAG.getNode(ISD::BUILD_VECTOR, dl, MVT::v16i8,
7339                                   ResultMask);
7340   if (isLittleEndian)
7341     return DAG.getNode(PPCISD::VPERM, dl, V1.getValueType(),
7342                        V2, V1, VPermMask);
7343   else
7344     return DAG.getNode(PPCISD::VPERM, dl, V1.getValueType(),
7345                        V1, V2, VPermMask);
7346 }
7347 
7348 /// getVectorCompareInfo - Given an intrinsic, return false if it is not a
7349 /// vector comparison.  If it is, return true and fill in Opc/isDot with
7350 /// information about the intrinsic.
7351 static bool getVectorCompareInfo(SDValue Intrin, int &CompareOpc,
7352                                  bool &isDot, const PPCSubtarget &Subtarget) {
7353   unsigned IntrinsicID =
7354     cast<ConstantSDNode>(Intrin.getOperand(0))->getZExtValue();
7355   CompareOpc = -1;
7356   isDot = false;
7357   switch (IntrinsicID) {
7358   default: return false;
7359     // Comparison predicates.
7360   case Intrinsic::ppc_altivec_vcmpbfp_p:  CompareOpc = 966; isDot = 1; break;
7361   case Intrinsic::ppc_altivec_vcmpeqfp_p: CompareOpc = 198; isDot = 1; break;
7362   case Intrinsic::ppc_altivec_vcmpequb_p: CompareOpc =   6; isDot = 1; break;
7363   case Intrinsic::ppc_altivec_vcmpequh_p: CompareOpc =  70; isDot = 1; break;
7364   case Intrinsic::ppc_altivec_vcmpequw_p: CompareOpc = 134; isDot = 1; break;
7365   case Intrinsic::ppc_altivec_vcmpequd_p:
7366     if (Subtarget.hasP8Altivec()) {
7367       CompareOpc = 199;
7368       isDot = 1;
7369     } else
7370       return false;
7371 
7372     break;
7373   case Intrinsic::ppc_altivec_vcmpgefp_p: CompareOpc = 454; isDot = 1; break;
7374   case Intrinsic::ppc_altivec_vcmpgtfp_p: CompareOpc = 710; isDot = 1; break;
7375   case Intrinsic::ppc_altivec_vcmpgtsb_p: CompareOpc = 774; isDot = 1; break;
7376   case Intrinsic::ppc_altivec_vcmpgtsh_p: CompareOpc = 838; isDot = 1; break;
7377   case Intrinsic::ppc_altivec_vcmpgtsw_p: CompareOpc = 902; isDot = 1; break;
7378   case Intrinsic::ppc_altivec_vcmpgtsd_p:
7379     if (Subtarget.hasP8Altivec()) {
7380       CompareOpc = 967;
7381       isDot = 1;
7382     } else
7383       return false;
7384 
7385     break;
7386   case Intrinsic::ppc_altivec_vcmpgtub_p: CompareOpc = 518; isDot = 1; break;
7387   case Intrinsic::ppc_altivec_vcmpgtuh_p: CompareOpc = 582; isDot = 1; break;
7388   case Intrinsic::ppc_altivec_vcmpgtuw_p: CompareOpc = 646; isDot = 1; break;
7389   case Intrinsic::ppc_altivec_vcmpgtud_p:
7390     if (Subtarget.hasP8Altivec()) {
7391       CompareOpc = 711;
7392       isDot = 1;
7393     } else
7394       return false;
7395 
7396     break;
7397     // VSX predicate comparisons use the same infrastructure
7398   case Intrinsic::ppc_vsx_xvcmpeqdp_p:
7399   case Intrinsic::ppc_vsx_xvcmpgedp_p:
7400   case Intrinsic::ppc_vsx_xvcmpgtdp_p:
7401   case Intrinsic::ppc_vsx_xvcmpeqsp_p:
7402   case Intrinsic::ppc_vsx_xvcmpgesp_p:
7403   case Intrinsic::ppc_vsx_xvcmpgtsp_p:
7404     if (Subtarget.hasVSX()) {
7405       switch (IntrinsicID) {
7406       case Intrinsic::ppc_vsx_xvcmpeqdp_p: CompareOpc = 99; break;
7407       case Intrinsic::ppc_vsx_xvcmpgedp_p: CompareOpc = 115; break;
7408       case Intrinsic::ppc_vsx_xvcmpgtdp_p: CompareOpc = 107; break;
7409       case Intrinsic::ppc_vsx_xvcmpeqsp_p: CompareOpc = 67; break;
7410       case Intrinsic::ppc_vsx_xvcmpgesp_p: CompareOpc = 83; break;
7411       case Intrinsic::ppc_vsx_xvcmpgtsp_p: CompareOpc = 75; break;
7412       }
7413       isDot = 1;
7414     }
7415     else
7416       return false;
7417 
7418     break;
7419 
7420     // Normal Comparisons.
7421   case Intrinsic::ppc_altivec_vcmpbfp:    CompareOpc = 966; isDot = 0; break;
7422   case Intrinsic::ppc_altivec_vcmpeqfp:   CompareOpc = 198; isDot = 0; break;
7423   case Intrinsic::ppc_altivec_vcmpequb:   CompareOpc =   6; isDot = 0; break;
7424   case Intrinsic::ppc_altivec_vcmpequh:   CompareOpc =  70; isDot = 0; break;
7425   case Intrinsic::ppc_altivec_vcmpequw:   CompareOpc = 134; isDot = 0; break;
7426   case Intrinsic::ppc_altivec_vcmpequd:
7427     if (Subtarget.hasP8Altivec()) {
7428       CompareOpc = 199;
7429       isDot = 0;
7430     } else
7431       return false;
7432 
7433     break;
7434   case Intrinsic::ppc_altivec_vcmpgefp:   CompareOpc = 454; isDot = 0; break;
7435   case Intrinsic::ppc_altivec_vcmpgtfp:   CompareOpc = 710; isDot = 0; break;
7436   case Intrinsic::ppc_altivec_vcmpgtsb:   CompareOpc = 774; isDot = 0; break;
7437   case Intrinsic::ppc_altivec_vcmpgtsh:   CompareOpc = 838; isDot = 0; break;
7438   case Intrinsic::ppc_altivec_vcmpgtsw:   CompareOpc = 902; isDot = 0; break;
7439   case Intrinsic::ppc_altivec_vcmpgtsd:
7440     if (Subtarget.hasP8Altivec()) {
7441       CompareOpc = 967;
7442       isDot = 0;
7443     } else
7444       return false;
7445 
7446     break;
7447   case Intrinsic::ppc_altivec_vcmpgtub:   CompareOpc = 518; isDot = 0; break;
7448   case Intrinsic::ppc_altivec_vcmpgtuh:   CompareOpc = 582; isDot = 0; break;
7449   case Intrinsic::ppc_altivec_vcmpgtuw:   CompareOpc = 646; isDot = 0; break;
7450   case Intrinsic::ppc_altivec_vcmpgtud:
7451     if (Subtarget.hasP8Altivec()) {
7452       CompareOpc = 711;
7453       isDot = 0;
7454     } else
7455       return false;
7456 
7457     break;
7458   }
7459   return true;
7460 }
7461 
7462 /// LowerINTRINSIC_WO_CHAIN - If this is an intrinsic that we want to custom
7463 /// lower, do it, otherwise return null.
7464 SDValue PPCTargetLowering::LowerINTRINSIC_WO_CHAIN(SDValue Op,
7465                                                    SelectionDAG &DAG) const {
7466   // If this is a lowered altivec predicate compare, CompareOpc is set to the
7467   // opcode number of the comparison.
7468   SDLoc dl(Op);
7469   int CompareOpc;
7470   bool isDot;
7471   if (!getVectorCompareInfo(Op, CompareOpc, isDot, Subtarget))
7472     return SDValue();    // Don't custom lower most intrinsics.
7473 
7474   // If this is a non-dot comparison, make the VCMP node and we are done.
7475   if (!isDot) {
7476     SDValue Tmp = DAG.getNode(PPCISD::VCMP, dl, Op.getOperand(2).getValueType(),
7477                               Op.getOperand(1), Op.getOperand(2),
7478                               DAG.getConstant(CompareOpc, dl, MVT::i32));
7479     return DAG.getNode(ISD::BITCAST, dl, Op.getValueType(), Tmp);
7480   }
7481 
7482   // Create the PPCISD altivec 'dot' comparison node.
7483   SDValue Ops[] = {
7484     Op.getOperand(2),  // LHS
7485     Op.getOperand(3),  // RHS
7486     DAG.getConstant(CompareOpc, dl, MVT::i32)
7487   };
7488   EVT VTs[] = { Op.getOperand(2).getValueType(), MVT::Glue };
7489   SDValue CompNode = DAG.getNode(PPCISD::VCMPo, dl, VTs, Ops);
7490 
7491   // Now that we have the comparison, emit a copy from the CR to a GPR.
7492   // This is flagged to the above dot comparison.
7493   SDValue Flags = DAG.getNode(PPCISD::MFOCRF, dl, MVT::i32,
7494                                 DAG.getRegister(PPC::CR6, MVT::i32),
7495                                 CompNode.getValue(1));
7496 
7497   // Unpack the result based on how the target uses it.
7498   unsigned BitNo;   // Bit # of CR6.
7499   bool InvertBit;   // Invert result?
7500   switch (cast<ConstantSDNode>(Op.getOperand(1))->getZExtValue()) {
7501   default:  // Can't happen, don't crash on invalid number though.
7502   case 0:   // Return the value of the EQ bit of CR6.
7503     BitNo = 0; InvertBit = false;
7504     break;
7505   case 1:   // Return the inverted value of the EQ bit of CR6.
7506     BitNo = 0; InvertBit = true;
7507     break;
7508   case 2:   // Return the value of the LT bit of CR6.
7509     BitNo = 2; InvertBit = false;
7510     break;
7511   case 3:   // Return the inverted value of the LT bit of CR6.
7512     BitNo = 2; InvertBit = true;
7513     break;
7514   }
7515 
7516   // Shift the bit into the low position.
7517   Flags = DAG.getNode(ISD::SRL, dl, MVT::i32, Flags,
7518                       DAG.getConstant(8 - (3 - BitNo), dl, MVT::i32));
7519   // Isolate the bit.
7520   Flags = DAG.getNode(ISD::AND, dl, MVT::i32, Flags,
7521                       DAG.getConstant(1, dl, MVT::i32));
7522 
7523   // If we are supposed to, toggle the bit.
7524   if (InvertBit)
7525     Flags = DAG.getNode(ISD::XOR, dl, MVT::i32, Flags,
7526                         DAG.getConstant(1, dl, MVT::i32));
7527   return Flags;
7528 }
7529 
7530 SDValue PPCTargetLowering::LowerSIGN_EXTEND_INREG(SDValue Op,
7531                                                   SelectionDAG &DAG) const {
7532   SDLoc dl(Op);
7533   // For v2i64 (VSX), we can pattern patch the v2i32 case (using fp <-> int
7534   // instructions), but for smaller types, we need to first extend up to v2i32
7535   // before doing going farther.
7536   if (Op.getValueType() == MVT::v2i64) {
7537     EVT ExtVT = cast<VTSDNode>(Op.getOperand(1))->getVT();
7538     if (ExtVT != MVT::v2i32) {
7539       Op = DAG.getNode(ISD::BITCAST, dl, MVT::v4i32, Op.getOperand(0));
7540       Op = DAG.getNode(ISD::SIGN_EXTEND_INREG, dl, MVT::v4i32, Op,
7541                        DAG.getValueType(EVT::getVectorVT(*DAG.getContext(),
7542                                         ExtVT.getVectorElementType(), 4)));
7543       Op = DAG.getNode(ISD::BITCAST, dl, MVT::v2i64, Op);
7544       Op = DAG.getNode(ISD::SIGN_EXTEND_INREG, dl, MVT::v2i64, Op,
7545                        DAG.getValueType(MVT::v2i32));
7546     }
7547 
7548     return Op;
7549   }
7550 
7551   return SDValue();
7552 }
7553 
7554 SDValue PPCTargetLowering::LowerSCALAR_TO_VECTOR(SDValue Op,
7555                                                    SelectionDAG &DAG) const {
7556   SDLoc dl(Op);
7557   // Create a stack slot that is 16-byte aligned.
7558   MachineFrameInfo *FrameInfo = DAG.getMachineFunction().getFrameInfo();
7559   int FrameIdx = FrameInfo->CreateStackObject(16, 16, false);
7560   EVT PtrVT = getPointerTy(DAG.getDataLayout());
7561   SDValue FIdx = DAG.getFrameIndex(FrameIdx, PtrVT);
7562 
7563   // Store the input value into Value#0 of the stack slot.
7564   SDValue Store = DAG.getStore(DAG.getEntryNode(), dl,
7565                                Op.getOperand(0), FIdx, MachinePointerInfo(),
7566                                false, false, 0);
7567   // Load it out.
7568   return DAG.getLoad(Op.getValueType(), dl, Store, FIdx, MachinePointerInfo(),
7569                      false, false, false, 0);
7570 }
7571 
7572 SDValue PPCTargetLowering::LowerEXTRACT_VECTOR_ELT(SDValue Op,
7573                                                    SelectionDAG &DAG) const {
7574   SDLoc dl(Op);
7575   SDNode *N = Op.getNode();
7576 
7577   assert(N->getOperand(0).getValueType() == MVT::v4i1 &&
7578          "Unknown extract_vector_elt type");
7579 
7580   SDValue Value = N->getOperand(0);
7581 
7582   // The first part of this is like the store lowering except that we don't
7583   // need to track the chain.
7584 
7585   // The values are now known to be -1 (false) or 1 (true). To convert this
7586   // into 0 (false) and 1 (true), add 1 and then divide by 2 (multiply by 0.5).
7587   // This can be done with an fma and the 0.5 constant: (V+1.0)*0.5 = 0.5*V+0.5
7588   Value = DAG.getNode(PPCISD::QBFLT, dl, MVT::v4f64, Value);
7589 
7590   // FIXME: We can make this an f32 vector, but the BUILD_VECTOR code needs to
7591   // understand how to form the extending load.
7592   SDValue FPHalfs = DAG.getConstantFP(0.5, dl, MVT::v4f64);
7593 
7594   Value = DAG.getNode(ISD::FMA, dl, MVT::v4f64, Value, FPHalfs, FPHalfs);
7595 
7596   // Now convert to an integer and store.
7597   Value = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, MVT::v4f64,
7598     DAG.getConstant(Intrinsic::ppc_qpx_qvfctiwu, dl, MVT::i32),
7599     Value);
7600 
7601   MachineFrameInfo *FrameInfo = DAG.getMachineFunction().getFrameInfo();
7602   int FrameIdx = FrameInfo->CreateStackObject(16, 16, false);
7603   MachinePointerInfo PtrInfo =
7604       MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), FrameIdx);
7605   EVT PtrVT = getPointerTy(DAG.getDataLayout());
7606   SDValue FIdx = DAG.getFrameIndex(FrameIdx, PtrVT);
7607 
7608   SDValue StoreChain = DAG.getEntryNode();
7609   SmallVector<SDValue, 2> Ops;
7610   Ops.push_back(StoreChain);
7611   Ops.push_back(DAG.getConstant(Intrinsic::ppc_qpx_qvstfiw, dl, MVT::i32));
7612   Ops.push_back(Value);
7613   Ops.push_back(FIdx);
7614 
7615   SmallVector<EVT, 2> ValueVTs;
7616   ValueVTs.push_back(MVT::Other); // chain
7617   SDVTList VTs = DAG.getVTList(ValueVTs);
7618 
7619   StoreChain = DAG.getMemIntrinsicNode(ISD::INTRINSIC_VOID,
7620     dl, VTs, Ops, MVT::v4i32, PtrInfo);
7621 
7622   // Extract the value requested.
7623   unsigned Offset = 4*cast<ConstantSDNode>(N->getOperand(1))->getZExtValue();
7624   SDValue Idx = DAG.getConstant(Offset, dl, FIdx.getValueType());
7625   Idx = DAG.getNode(ISD::ADD, dl, FIdx.getValueType(), FIdx, Idx);
7626 
7627   SDValue IntVal = DAG.getLoad(MVT::i32, dl, StoreChain, Idx,
7628                                PtrInfo.getWithOffset(Offset),
7629                                false, false, false, 0);
7630 
7631   if (!Subtarget.useCRBits())
7632     return IntVal;
7633 
7634   return DAG.getNode(ISD::TRUNCATE, dl, MVT::i1, IntVal);
7635 }
7636 
7637 /// Lowering for QPX v4i1 loads
7638 SDValue PPCTargetLowering::LowerVectorLoad(SDValue Op,
7639                                            SelectionDAG &DAG) const {
7640   SDLoc dl(Op);
7641   LoadSDNode *LN = cast<LoadSDNode>(Op.getNode());
7642   SDValue LoadChain = LN->getChain();
7643   SDValue BasePtr = LN->getBasePtr();
7644 
7645   if (Op.getValueType() == MVT::v4f64 ||
7646       Op.getValueType() == MVT::v4f32) {
7647     EVT MemVT = LN->getMemoryVT();
7648     unsigned Alignment = LN->getAlignment();
7649 
7650     // If this load is properly aligned, then it is legal.
7651     if (Alignment >= MemVT.getStoreSize())
7652       return Op;
7653 
7654     EVT ScalarVT = Op.getValueType().getScalarType(),
7655         ScalarMemVT = MemVT.getScalarType();
7656     unsigned Stride = ScalarMemVT.getStoreSize();
7657 
7658     SmallVector<SDValue, 8> Vals, LoadChains;
7659     for (unsigned Idx = 0; Idx < 4; ++Idx) {
7660       SDValue Load;
7661       if (ScalarVT != ScalarMemVT)
7662         Load =
7663           DAG.getExtLoad(LN->getExtensionType(), dl, ScalarVT, LoadChain,
7664                          BasePtr,
7665                          LN->getPointerInfo().getWithOffset(Idx*Stride),
7666                          ScalarMemVT, LN->isVolatile(), LN->isNonTemporal(),
7667                          LN->isInvariant(), MinAlign(Alignment, Idx*Stride),
7668                          LN->getAAInfo());
7669       else
7670         Load =
7671           DAG.getLoad(ScalarVT, dl, LoadChain, BasePtr,
7672                        LN->getPointerInfo().getWithOffset(Idx*Stride),
7673                        LN->isVolatile(), LN->isNonTemporal(),
7674                        LN->isInvariant(), MinAlign(Alignment, Idx*Stride),
7675                        LN->getAAInfo());
7676 
7677       if (Idx == 0 && LN->isIndexed()) {
7678         assert(LN->getAddressingMode() == ISD::PRE_INC &&
7679                "Unknown addressing mode on vector load");
7680         Load = DAG.getIndexedLoad(Load, dl, BasePtr, LN->getOffset(),
7681                                   LN->getAddressingMode());
7682       }
7683 
7684       Vals.push_back(Load);
7685       LoadChains.push_back(Load.getValue(1));
7686 
7687       BasePtr = DAG.getNode(ISD::ADD, dl, BasePtr.getValueType(), BasePtr,
7688                             DAG.getConstant(Stride, dl,
7689                                             BasePtr.getValueType()));
7690     }
7691 
7692     SDValue TF =  DAG.getNode(ISD::TokenFactor, dl, MVT::Other, LoadChains);
7693     SDValue Value = DAG.getNode(ISD::BUILD_VECTOR, dl,
7694                                 Op.getValueType(), Vals);
7695 
7696     if (LN->isIndexed()) {
7697       SDValue RetOps[] = { Value, Vals[0].getValue(1), TF };
7698       return DAG.getMergeValues(RetOps, dl);
7699     }
7700 
7701     SDValue RetOps[] = { Value, TF };
7702     return DAG.getMergeValues(RetOps, dl);
7703   }
7704 
7705   assert(Op.getValueType() == MVT::v4i1 && "Unknown load to lower");
7706   assert(LN->isUnindexed() && "Indexed v4i1 loads are not supported");
7707 
7708   // To lower v4i1 from a byte array, we load the byte elements of the
7709   // vector and then reuse the BUILD_VECTOR logic.
7710 
7711   SmallVector<SDValue, 4> VectElmts, VectElmtChains;
7712   for (unsigned i = 0; i < 4; ++i) {
7713     SDValue Idx = DAG.getConstant(i, dl, BasePtr.getValueType());
7714     Idx = DAG.getNode(ISD::ADD, dl, BasePtr.getValueType(), BasePtr, Idx);
7715 
7716     VectElmts.push_back(DAG.getExtLoad(ISD::EXTLOAD,
7717                         dl, MVT::i32, LoadChain, Idx,
7718                         LN->getPointerInfo().getWithOffset(i),
7719                         MVT::i8 /* memory type */,
7720                         LN->isVolatile(), LN->isNonTemporal(),
7721                         LN->isInvariant(),
7722                         1 /* alignment */, LN->getAAInfo()));
7723     VectElmtChains.push_back(VectElmts[i].getValue(1));
7724   }
7725 
7726   LoadChain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, VectElmtChains);
7727   SDValue Value = DAG.getNode(ISD::BUILD_VECTOR, dl, MVT::v4i1, VectElmts);
7728 
7729   SDValue RVals[] = { Value, LoadChain };
7730   return DAG.getMergeValues(RVals, dl);
7731 }
7732 
7733 /// Lowering for QPX v4i1 stores
7734 SDValue PPCTargetLowering::LowerVectorStore(SDValue Op,
7735                                             SelectionDAG &DAG) const {
7736   SDLoc dl(Op);
7737   StoreSDNode *SN = cast<StoreSDNode>(Op.getNode());
7738   SDValue StoreChain = SN->getChain();
7739   SDValue BasePtr = SN->getBasePtr();
7740   SDValue Value = SN->getValue();
7741 
7742   if (Value.getValueType() == MVT::v4f64 ||
7743       Value.getValueType() == MVT::v4f32) {
7744     EVT MemVT = SN->getMemoryVT();
7745     unsigned Alignment = SN->getAlignment();
7746 
7747     // If this store is properly aligned, then it is legal.
7748     if (Alignment >= MemVT.getStoreSize())
7749       return Op;
7750 
7751     EVT ScalarVT = Value.getValueType().getScalarType(),
7752         ScalarMemVT = MemVT.getScalarType();
7753     unsigned Stride = ScalarMemVT.getStoreSize();
7754 
7755     SmallVector<SDValue, 8> Stores;
7756     for (unsigned Idx = 0; Idx < 4; ++Idx) {
7757       SDValue Ex = DAG.getNode(
7758           ISD::EXTRACT_VECTOR_ELT, dl, ScalarVT, Value,
7759           DAG.getConstant(Idx, dl, getVectorIdxTy(DAG.getDataLayout())));
7760       SDValue Store;
7761       if (ScalarVT != ScalarMemVT)
7762         Store =
7763           DAG.getTruncStore(StoreChain, dl, Ex, BasePtr,
7764                             SN->getPointerInfo().getWithOffset(Idx*Stride),
7765                             ScalarMemVT, SN->isVolatile(), SN->isNonTemporal(),
7766                             MinAlign(Alignment, Idx*Stride), SN->getAAInfo());
7767       else
7768         Store =
7769           DAG.getStore(StoreChain, dl, Ex, BasePtr,
7770                        SN->getPointerInfo().getWithOffset(Idx*Stride),
7771                        SN->isVolatile(), SN->isNonTemporal(),
7772                        MinAlign(Alignment, Idx*Stride), SN->getAAInfo());
7773 
7774       if (Idx == 0 && SN->isIndexed()) {
7775         assert(SN->getAddressingMode() == ISD::PRE_INC &&
7776                "Unknown addressing mode on vector store");
7777         Store = DAG.getIndexedStore(Store, dl, BasePtr, SN->getOffset(),
7778                                     SN->getAddressingMode());
7779       }
7780 
7781       BasePtr = DAG.getNode(ISD::ADD, dl, BasePtr.getValueType(), BasePtr,
7782                             DAG.getConstant(Stride, dl,
7783                                             BasePtr.getValueType()));
7784       Stores.push_back(Store);
7785     }
7786 
7787     SDValue TF =  DAG.getNode(ISD::TokenFactor, dl, MVT::Other, Stores);
7788 
7789     if (SN->isIndexed()) {
7790       SDValue RetOps[] = { TF, Stores[0].getValue(1) };
7791       return DAG.getMergeValues(RetOps, dl);
7792     }
7793 
7794     return TF;
7795   }
7796 
7797   assert(SN->isUnindexed() && "Indexed v4i1 stores are not supported");
7798   assert(Value.getValueType() == MVT::v4i1 && "Unknown store to lower");
7799 
7800   // The values are now known to be -1 (false) or 1 (true). To convert this
7801   // into 0 (false) and 1 (true), add 1 and then divide by 2 (multiply by 0.5).
7802   // This can be done with an fma and the 0.5 constant: (V+1.0)*0.5 = 0.5*V+0.5
7803   Value = DAG.getNode(PPCISD::QBFLT, dl, MVT::v4f64, Value);
7804 
7805   // FIXME: We can make this an f32 vector, but the BUILD_VECTOR code needs to
7806   // understand how to form the extending load.
7807   SDValue FPHalfs = DAG.getConstantFP(0.5, dl, MVT::v4f64);
7808 
7809   Value = DAG.getNode(ISD::FMA, dl, MVT::v4f64, Value, FPHalfs, FPHalfs);
7810 
7811   // Now convert to an integer and store.
7812   Value = DAG.getNode(ISD::INTRINSIC_WO_CHAIN, dl, MVT::v4f64,
7813     DAG.getConstant(Intrinsic::ppc_qpx_qvfctiwu, dl, MVT::i32),
7814     Value);
7815 
7816   MachineFrameInfo *FrameInfo = DAG.getMachineFunction().getFrameInfo();
7817   int FrameIdx = FrameInfo->CreateStackObject(16, 16, false);
7818   MachinePointerInfo PtrInfo =
7819       MachinePointerInfo::getFixedStack(DAG.getMachineFunction(), FrameIdx);
7820   EVT PtrVT = getPointerTy(DAG.getDataLayout());
7821   SDValue FIdx = DAG.getFrameIndex(FrameIdx, PtrVT);
7822 
7823   SmallVector<SDValue, 2> Ops;
7824   Ops.push_back(StoreChain);
7825   Ops.push_back(DAG.getConstant(Intrinsic::ppc_qpx_qvstfiw, dl, MVT::i32));
7826   Ops.push_back(Value);
7827   Ops.push_back(FIdx);
7828 
7829   SmallVector<EVT, 2> ValueVTs;
7830   ValueVTs.push_back(MVT::Other); // chain
7831   SDVTList VTs = DAG.getVTList(ValueVTs);
7832 
7833   StoreChain = DAG.getMemIntrinsicNode(ISD::INTRINSIC_VOID,
7834     dl, VTs, Ops, MVT::v4i32, PtrInfo);
7835 
7836   // Move data into the byte array.
7837   SmallVector<SDValue, 4> Loads, LoadChains;
7838   for (unsigned i = 0; i < 4; ++i) {
7839     unsigned Offset = 4*i;
7840     SDValue Idx = DAG.getConstant(Offset, dl, FIdx.getValueType());
7841     Idx = DAG.getNode(ISD::ADD, dl, FIdx.getValueType(), FIdx, Idx);
7842 
7843     Loads.push_back(DAG.getLoad(MVT::i32, dl, StoreChain, Idx,
7844                                    PtrInfo.getWithOffset(Offset),
7845                                    false, false, false, 0));
7846     LoadChains.push_back(Loads[i].getValue(1));
7847   }
7848 
7849   StoreChain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, LoadChains);
7850 
7851   SmallVector<SDValue, 4> Stores;
7852   for (unsigned i = 0; i < 4; ++i) {
7853     SDValue Idx = DAG.getConstant(i, dl, BasePtr.getValueType());
7854     Idx = DAG.getNode(ISD::ADD, dl, BasePtr.getValueType(), BasePtr, Idx);
7855 
7856     Stores.push_back(DAG.getTruncStore(
7857         StoreChain, dl, Loads[i], Idx, SN->getPointerInfo().getWithOffset(i),
7858         MVT::i8 /* memory type */, SN->isNonTemporal(), SN->isVolatile(),
7859         1 /* alignment */, SN->getAAInfo()));
7860   }
7861 
7862   StoreChain = DAG.getNode(ISD::TokenFactor, dl, MVT::Other, Stores);
7863 
7864   return StoreChain;
7865 }
7866 
7867 SDValue PPCTargetLowering::LowerMUL(SDValue Op, SelectionDAG &DAG) const {
7868   SDLoc dl(Op);
7869   if (Op.getValueType() == MVT::v4i32) {
7870     SDValue LHS = Op.getOperand(0), RHS = Op.getOperand(1);
7871 
7872     SDValue Zero  = BuildSplatI(  0, 1, MVT::v4i32, DAG, dl);
7873     SDValue Neg16 = BuildSplatI(-16, 4, MVT::v4i32, DAG, dl);//+16 as shift amt.
7874 
7875     SDValue RHSSwap =   // = vrlw RHS, 16
7876       BuildIntrinsicOp(Intrinsic::ppc_altivec_vrlw, RHS, Neg16, DAG, dl);
7877 
7878     // Shrinkify inputs to v8i16.
7879     LHS = DAG.getNode(ISD::BITCAST, dl, MVT::v8i16, LHS);
7880     RHS = DAG.getNode(ISD::BITCAST, dl, MVT::v8i16, RHS);
7881     RHSSwap = DAG.getNode(ISD::BITCAST, dl, MVT::v8i16, RHSSwap);
7882 
7883     // Low parts multiplied together, generating 32-bit results (we ignore the
7884     // top parts).
7885     SDValue LoProd = BuildIntrinsicOp(Intrinsic::ppc_altivec_vmulouh,
7886                                         LHS, RHS, DAG, dl, MVT::v4i32);
7887 
7888     SDValue HiProd = BuildIntrinsicOp(Intrinsic::ppc_altivec_vmsumuhm,
7889                                       LHS, RHSSwap, Zero, DAG, dl, MVT::v4i32);
7890     // Shift the high parts up 16 bits.
7891     HiProd = BuildIntrinsicOp(Intrinsic::ppc_altivec_vslw, HiProd,
7892                               Neg16, DAG, dl);
7893     return DAG.getNode(ISD::ADD, dl, MVT::v4i32, LoProd, HiProd);
7894   } else if (Op.getValueType() == MVT::v8i16) {
7895     SDValue LHS = Op.getOperand(0), RHS = Op.getOperand(1);
7896 
7897     SDValue Zero = BuildSplatI(0, 1, MVT::v8i16, DAG, dl);
7898 
7899     return BuildIntrinsicOp(Intrinsic::ppc_altivec_vmladduhm,
7900                             LHS, RHS, Zero, DAG, dl);
7901   } else if (Op.getValueType() == MVT::v16i8) {
7902     SDValue LHS = Op.getOperand(0), RHS = Op.getOperand(1);
7903     bool isLittleEndian = Subtarget.isLittleEndian();
7904 
7905     // Multiply the even 8-bit parts, producing 16-bit sums.
7906     SDValue EvenParts = BuildIntrinsicOp(Intrinsic::ppc_altivec_vmuleub,
7907                                            LHS, RHS, DAG, dl, MVT::v8i16);
7908     EvenParts = DAG.getNode(ISD::BITCAST, dl, MVT::v16i8, EvenParts);
7909 
7910     // Multiply the odd 8-bit parts, producing 16-bit sums.
7911     SDValue OddParts = BuildIntrinsicOp(Intrinsic::ppc_altivec_vmuloub,
7912                                           LHS, RHS, DAG, dl, MVT::v8i16);
7913     OddParts = DAG.getNode(ISD::BITCAST, dl, MVT::v16i8, OddParts);
7914 
7915     // Merge the results together.  Because vmuleub and vmuloub are
7916     // instructions with a big-endian bias, we must reverse the
7917     // element numbering and reverse the meaning of "odd" and "even"
7918     // when generating little endian code.
7919     int Ops[16];
7920     for (unsigned i = 0; i != 8; ++i) {
7921       if (isLittleEndian) {
7922         Ops[i*2  ] = 2*i;
7923         Ops[i*2+1] = 2*i+16;
7924       } else {
7925         Ops[i*2  ] = 2*i+1;
7926         Ops[i*2+1] = 2*i+1+16;
7927       }
7928     }
7929     if (isLittleEndian)
7930       return DAG.getVectorShuffle(MVT::v16i8, dl, OddParts, EvenParts, Ops);
7931     else
7932       return DAG.getVectorShuffle(MVT::v16i8, dl, EvenParts, OddParts, Ops);
7933   } else {
7934     llvm_unreachable("Unknown mul to lower!");
7935   }
7936 }
7937 
7938 /// LowerOperation - Provide custom lowering hooks for some operations.
7939 ///
7940 SDValue PPCTargetLowering::LowerOperation(SDValue Op, SelectionDAG &DAG) const {
7941   switch (Op.getOpcode()) {
7942   default: llvm_unreachable("Wasn't expecting to be able to lower this!");
7943   case ISD::ConstantPool:       return LowerConstantPool(Op, DAG);
7944   case ISD::BlockAddress:       return LowerBlockAddress(Op, DAG);
7945   case ISD::GlobalAddress:      return LowerGlobalAddress(Op, DAG);
7946   case ISD::GlobalTLSAddress:   return LowerGlobalTLSAddress(Op, DAG);
7947   case ISD::JumpTable:          return LowerJumpTable(Op, DAG);
7948   case ISD::SETCC:              return LowerSETCC(Op, DAG);
7949   case ISD::INIT_TRAMPOLINE:    return LowerINIT_TRAMPOLINE(Op, DAG);
7950   case ISD::ADJUST_TRAMPOLINE:  return LowerADJUST_TRAMPOLINE(Op, DAG);
7951   case ISD::VASTART:
7952     return LowerVASTART(Op, DAG, Subtarget);
7953 
7954   case ISD::VAARG:
7955     return LowerVAARG(Op, DAG, Subtarget);
7956 
7957   case ISD::VACOPY:
7958     return LowerVACOPY(Op, DAG, Subtarget);
7959 
7960   case ISD::STACKRESTORE:       return LowerSTACKRESTORE(Op, DAG, Subtarget);
7961   case ISD::DYNAMIC_STACKALLOC:
7962     return LowerDYNAMIC_STACKALLOC(Op, DAG, Subtarget);
7963   case ISD::GET_DYNAMIC_AREA_OFFSET: return LowerGET_DYNAMIC_AREA_OFFSET(Op, DAG, Subtarget);
7964 
7965   case ISD::EH_SJLJ_SETJMP:     return lowerEH_SJLJ_SETJMP(Op, DAG);
7966   case ISD::EH_SJLJ_LONGJMP:    return lowerEH_SJLJ_LONGJMP(Op, DAG);
7967 
7968   case ISD::LOAD:               return LowerLOAD(Op, DAG);
7969   case ISD::STORE:              return LowerSTORE(Op, DAG);
7970   case ISD::TRUNCATE:           return LowerTRUNCATE(Op, DAG);
7971   case ISD::SELECT_CC:          return LowerSELECT_CC(Op, DAG);
7972   case ISD::FP_TO_UINT:
7973   case ISD::FP_TO_SINT:         return LowerFP_TO_INT(Op, DAG,
7974                                                       SDLoc(Op));
7975   case ISD::UINT_TO_FP:
7976   case ISD::SINT_TO_FP:         return LowerINT_TO_FP(Op, DAG);
7977   case ISD::FLT_ROUNDS_:        return LowerFLT_ROUNDS_(Op, DAG);
7978 
7979   // Lower 64-bit shifts.
7980   case ISD::SHL_PARTS:          return LowerSHL_PARTS(Op, DAG);
7981   case ISD::SRL_PARTS:          return LowerSRL_PARTS(Op, DAG);
7982   case ISD::SRA_PARTS:          return LowerSRA_PARTS(Op, DAG);
7983 
7984   // Vector-related lowering.
7985   case ISD::BUILD_VECTOR:       return LowerBUILD_VECTOR(Op, DAG);
7986   case ISD::VECTOR_SHUFFLE:     return LowerVECTOR_SHUFFLE(Op, DAG);
7987   case ISD::INTRINSIC_WO_CHAIN: return LowerINTRINSIC_WO_CHAIN(Op, DAG);
7988   case ISD::SCALAR_TO_VECTOR:   return LowerSCALAR_TO_VECTOR(Op, DAG);
7989   case ISD::SIGN_EXTEND_INREG:  return LowerSIGN_EXTEND_INREG(Op, DAG);
7990   case ISD::EXTRACT_VECTOR_ELT: return LowerEXTRACT_VECTOR_ELT(Op, DAG);
7991   case ISD::MUL:                return LowerMUL(Op, DAG);
7992 
7993   // For counter-based loop handling.
7994   case ISD::INTRINSIC_W_CHAIN:  return SDValue();
7995 
7996   // Frame & Return address.
7997   case ISD::RETURNADDR:         return LowerRETURNADDR(Op, DAG);
7998   case ISD::FRAMEADDR:          return LowerFRAMEADDR(Op, DAG);
7999   }
8000 }
8001 
8002 void PPCTargetLowering::ReplaceNodeResults(SDNode *N,
8003                                            SmallVectorImpl<SDValue>&Results,
8004                                            SelectionDAG &DAG) const {
8005   SDLoc dl(N);
8006   switch (N->getOpcode()) {
8007   default:
8008     llvm_unreachable("Do not know how to custom type legalize this operation!");
8009   case ISD::READCYCLECOUNTER: {
8010     SDVTList VTs = DAG.getVTList(MVT::i32, MVT::i32, MVT::Other);
8011     SDValue RTB = DAG.getNode(PPCISD::READ_TIME_BASE, dl, VTs, N->getOperand(0));
8012 
8013     Results.push_back(RTB);
8014     Results.push_back(RTB.getValue(1));
8015     Results.push_back(RTB.getValue(2));
8016     break;
8017   }
8018   case ISD::INTRINSIC_W_CHAIN: {
8019     if (cast<ConstantSDNode>(N->getOperand(1))->getZExtValue() !=
8020         Intrinsic::ppc_is_decremented_ctr_nonzero)
8021       break;
8022 
8023     assert(N->getValueType(0) == MVT::i1 &&
8024            "Unexpected result type for CTR decrement intrinsic");
8025     EVT SVT = getSetCCResultType(DAG.getDataLayout(), *DAG.getContext(),
8026                                  N->getValueType(0));
8027     SDVTList VTs = DAG.getVTList(SVT, MVT::Other);
8028     SDValue NewInt = DAG.getNode(N->getOpcode(), dl, VTs, N->getOperand(0),
8029                                  N->getOperand(1));
8030 
8031     Results.push_back(NewInt);
8032     Results.push_back(NewInt.getValue(1));
8033     break;
8034   }
8035   case ISD::VAARG: {
8036     if (!Subtarget.isSVR4ABI() || Subtarget.isPPC64())
8037       return;
8038 
8039     EVT VT = N->getValueType(0);
8040 
8041     if (VT == MVT::i64) {
8042       SDValue NewNode = LowerVAARG(SDValue(N, 1), DAG, Subtarget);
8043 
8044       Results.push_back(NewNode);
8045       Results.push_back(NewNode.getValue(1));
8046     }
8047     return;
8048   }
8049   case ISD::FP_ROUND_INREG: {
8050     assert(N->getValueType(0) == MVT::ppcf128);
8051     assert(N->getOperand(0).getValueType() == MVT::ppcf128);
8052     SDValue Lo = DAG.getNode(ISD::EXTRACT_ELEMENT, dl,
8053                              MVT::f64, N->getOperand(0),
8054                              DAG.getIntPtrConstant(0, dl));
8055     SDValue Hi = DAG.getNode(ISD::EXTRACT_ELEMENT, dl,
8056                              MVT::f64, N->getOperand(0),
8057                              DAG.getIntPtrConstant(1, dl));
8058 
8059     // Add the two halves of the long double in round-to-zero mode.
8060     SDValue FPreg = DAG.getNode(PPCISD::FADDRTZ, dl, MVT::f64, Lo, Hi);
8061 
8062     // We know the low half is about to be thrown away, so just use something
8063     // convenient.
8064     Results.push_back(DAG.getNode(ISD::BUILD_PAIR, dl, MVT::ppcf128,
8065                                 FPreg, FPreg));
8066     return;
8067   }
8068   case ISD::FP_TO_SINT:
8069   case ISD::FP_TO_UINT:
8070     // LowerFP_TO_INT() can only handle f32 and f64.
8071     if (N->getOperand(0).getValueType() == MVT::ppcf128)
8072       return;
8073     Results.push_back(LowerFP_TO_INT(SDValue(N, 0), DAG, dl));
8074     return;
8075   }
8076 }
8077 
8078 //===----------------------------------------------------------------------===//
8079 //  Other Lowering Code
8080 //===----------------------------------------------------------------------===//
8081 
8082 static Instruction* callIntrinsic(IRBuilder<> &Builder, Intrinsic::ID Id) {
8083   Module *M = Builder.GetInsertBlock()->getParent()->getParent();
8084   Function *Func = Intrinsic::getDeclaration(M, Id);
8085   return Builder.CreateCall(Func, {});
8086 }
8087 
8088 // The mappings for emitLeading/TrailingFence is taken from
8089 // http://www.cl.cam.ac.uk/~pes20/cpp/cpp0xmappings.html
8090 Instruction* PPCTargetLowering::emitLeadingFence(IRBuilder<> &Builder,
8091                                          AtomicOrdering Ord, bool IsStore,
8092                                          bool IsLoad) const {
8093   if (Ord == SequentiallyConsistent)
8094     return callIntrinsic(Builder, Intrinsic::ppc_sync);
8095   if (isAtLeastRelease(Ord))
8096     return callIntrinsic(Builder, Intrinsic::ppc_lwsync);
8097   return nullptr;
8098 }
8099 
8100 Instruction* PPCTargetLowering::emitTrailingFence(IRBuilder<> &Builder,
8101                                           AtomicOrdering Ord, bool IsStore,
8102                                           bool IsLoad) const {
8103   if (IsLoad && isAtLeastAcquire(Ord))
8104     return callIntrinsic(Builder, Intrinsic::ppc_lwsync);
8105   // FIXME: this is too conservative, a dependent branch + isync is enough.
8106   // See http://www.cl.cam.ac.uk/~pes20/cpp/cpp0xmappings.html and
8107   // http://www.rdrop.com/users/paulmck/scalability/paper/N2745r.2011.03.04a.html
8108   // and http://www.cl.cam.ac.uk/~pes20/cppppc/ for justification.
8109   return nullptr;
8110 }
8111 
8112 MachineBasicBlock *
8113 PPCTargetLowering::EmitAtomicBinary(MachineInstr *MI, MachineBasicBlock *BB,
8114                                     unsigned AtomicSize,
8115                                     unsigned BinOpcode) const {
8116   // This also handles ATOMIC_SWAP, indicated by BinOpcode==0.
8117   const TargetInstrInfo *TII = Subtarget.getInstrInfo();
8118 
8119   auto LoadMnemonic = PPC::LDARX;
8120   auto StoreMnemonic = PPC::STDCX;
8121   switch (AtomicSize) {
8122   default:
8123     llvm_unreachable("Unexpected size of atomic entity");
8124   case 1:
8125     LoadMnemonic = PPC::LBARX;
8126     StoreMnemonic = PPC::STBCX;
8127     assert(Subtarget.hasPartwordAtomics() && "Call this only with size >=4");
8128     break;
8129   case 2:
8130     LoadMnemonic = PPC::LHARX;
8131     StoreMnemonic = PPC::STHCX;
8132     assert(Subtarget.hasPartwordAtomics() && "Call this only with size >=4");
8133     break;
8134   case 4:
8135     LoadMnemonic = PPC::LWARX;
8136     StoreMnemonic = PPC::STWCX;
8137     break;
8138   case 8:
8139     LoadMnemonic = PPC::LDARX;
8140     StoreMnemonic = PPC::STDCX;
8141     break;
8142   }
8143 
8144   const BasicBlock *LLVM_BB = BB->getBasicBlock();
8145   MachineFunction *F = BB->getParent();
8146   MachineFunction::iterator It = ++BB->getIterator();
8147 
8148   unsigned dest = MI->getOperand(0).getReg();
8149   unsigned ptrA = MI->getOperand(1).getReg();
8150   unsigned ptrB = MI->getOperand(2).getReg();
8151   unsigned incr = MI->getOperand(3).getReg();
8152   DebugLoc dl = MI->getDebugLoc();
8153 
8154   MachineBasicBlock *loopMBB = F->CreateMachineBasicBlock(LLVM_BB);
8155   MachineBasicBlock *exitMBB = F->CreateMachineBasicBlock(LLVM_BB);
8156   F->insert(It, loopMBB);
8157   F->insert(It, exitMBB);
8158   exitMBB->splice(exitMBB->begin(), BB,
8159                   std::next(MachineBasicBlock::iterator(MI)), BB->end());
8160   exitMBB->transferSuccessorsAndUpdatePHIs(BB);
8161 
8162   MachineRegisterInfo &RegInfo = F->getRegInfo();
8163   unsigned TmpReg = (!BinOpcode) ? incr :
8164     RegInfo.createVirtualRegister( AtomicSize == 8 ? &PPC::G8RCRegClass
8165                                            : &PPC::GPRCRegClass);
8166 
8167   //  thisMBB:
8168   //   ...
8169   //   fallthrough --> loopMBB
8170   BB->addSuccessor(loopMBB);
8171 
8172   //  loopMBB:
8173   //   l[wd]arx dest, ptr
8174   //   add r0, dest, incr
8175   //   st[wd]cx. r0, ptr
8176   //   bne- loopMBB
8177   //   fallthrough --> exitMBB
8178   BB = loopMBB;
8179   BuildMI(BB, dl, TII->get(LoadMnemonic), dest)
8180     .addReg(ptrA).addReg(ptrB);
8181   if (BinOpcode)
8182     BuildMI(BB, dl, TII->get(BinOpcode), TmpReg).addReg(incr).addReg(dest);
8183   BuildMI(BB, dl, TII->get(StoreMnemonic))
8184     .addReg(TmpReg).addReg(ptrA).addReg(ptrB);
8185   BuildMI(BB, dl, TII->get(PPC::BCC))
8186     .addImm(PPC::PRED_NE).addReg(PPC::CR0).addMBB(loopMBB);
8187   BB->addSuccessor(loopMBB);
8188   BB->addSuccessor(exitMBB);
8189 
8190   //  exitMBB:
8191   //   ...
8192   BB = exitMBB;
8193   return BB;
8194 }
8195 
8196 MachineBasicBlock *
8197 PPCTargetLowering::EmitPartwordAtomicBinary(MachineInstr *MI,
8198                                             MachineBasicBlock *BB,
8199                                             bool is8bit,    // operation
8200                                             unsigned BinOpcode) const {
8201   // If we support part-word atomic mnemonics, just use them
8202   if (Subtarget.hasPartwordAtomics())
8203     return EmitAtomicBinary(MI, BB, is8bit ? 1 : 2, BinOpcode);
8204 
8205   // This also handles ATOMIC_SWAP, indicated by BinOpcode==0.
8206   const TargetInstrInfo *TII = Subtarget.getInstrInfo();
8207   // In 64 bit mode we have to use 64 bits for addresses, even though the
8208   // lwarx/stwcx are 32 bits.  With the 32-bit atomics we can use address
8209   // registers without caring whether they're 32 or 64, but here we're
8210   // doing actual arithmetic on the addresses.
8211   bool is64bit = Subtarget.isPPC64();
8212   unsigned ZeroReg = is64bit ? PPC::ZERO8 : PPC::ZERO;
8213 
8214   const BasicBlock *LLVM_BB = BB->getBasicBlock();
8215   MachineFunction *F = BB->getParent();
8216   MachineFunction::iterator It = ++BB->getIterator();
8217 
8218   unsigned dest = MI->getOperand(0).getReg();
8219   unsigned ptrA = MI->getOperand(1).getReg();
8220   unsigned ptrB = MI->getOperand(2).getReg();
8221   unsigned incr = MI->getOperand(3).getReg();
8222   DebugLoc dl = MI->getDebugLoc();
8223 
8224   MachineBasicBlock *loopMBB = F->CreateMachineBasicBlock(LLVM_BB);
8225   MachineBasicBlock *exitMBB = F->CreateMachineBasicBlock(LLVM_BB);
8226   F->insert(It, loopMBB);
8227   F->insert(It, exitMBB);
8228   exitMBB->splice(exitMBB->begin(), BB,
8229                   std::next(MachineBasicBlock::iterator(MI)), BB->end());
8230   exitMBB->transferSuccessorsAndUpdatePHIs(BB);
8231 
8232   MachineRegisterInfo &RegInfo = F->getRegInfo();
8233   const TargetRegisterClass *RC = is64bit ? &PPC::G8RCRegClass
8234                                           : &PPC::GPRCRegClass;
8235   unsigned PtrReg = RegInfo.createVirtualRegister(RC);
8236   unsigned Shift1Reg = RegInfo.createVirtualRegister(RC);
8237   unsigned ShiftReg = RegInfo.createVirtualRegister(RC);
8238   unsigned Incr2Reg = RegInfo.createVirtualRegister(RC);
8239   unsigned MaskReg = RegInfo.createVirtualRegister(RC);
8240   unsigned Mask2Reg = RegInfo.createVirtualRegister(RC);
8241   unsigned Mask3Reg = RegInfo.createVirtualRegister(RC);
8242   unsigned Tmp2Reg = RegInfo.createVirtualRegister(RC);
8243   unsigned Tmp3Reg = RegInfo.createVirtualRegister(RC);
8244   unsigned Tmp4Reg = RegInfo.createVirtualRegister(RC);
8245   unsigned TmpDestReg = RegInfo.createVirtualRegister(RC);
8246   unsigned Ptr1Reg;
8247   unsigned TmpReg = (!BinOpcode) ? Incr2Reg : RegInfo.createVirtualRegister(RC);
8248 
8249   //  thisMBB:
8250   //   ...
8251   //   fallthrough --> loopMBB
8252   BB->addSuccessor(loopMBB);
8253 
8254   // The 4-byte load must be aligned, while a char or short may be
8255   // anywhere in the word.  Hence all this nasty bookkeeping code.
8256   //   add ptr1, ptrA, ptrB [copy if ptrA==0]
8257   //   rlwinm shift1, ptr1, 3, 27, 28 [3, 27, 27]
8258   //   xori shift, shift1, 24 [16]
8259   //   rlwinm ptr, ptr1, 0, 0, 29
8260   //   slw incr2, incr, shift
8261   //   li mask2, 255 [li mask3, 0; ori mask2, mask3, 65535]
8262   //   slw mask, mask2, shift
8263   //  loopMBB:
8264   //   lwarx tmpDest, ptr
8265   //   add tmp, tmpDest, incr2
8266   //   andc tmp2, tmpDest, mask
8267   //   and tmp3, tmp, mask
8268   //   or tmp4, tmp3, tmp2
8269   //   stwcx. tmp4, ptr
8270   //   bne- loopMBB
8271   //   fallthrough --> exitMBB
8272   //   srw dest, tmpDest, shift
8273   if (ptrA != ZeroReg) {
8274     Ptr1Reg = RegInfo.createVirtualRegister(RC);
8275     BuildMI(BB, dl, TII->get(is64bit ? PPC::ADD8 : PPC::ADD4), Ptr1Reg)
8276       .addReg(ptrA).addReg(ptrB);
8277   } else {
8278     Ptr1Reg = ptrB;
8279   }
8280   BuildMI(BB, dl, TII->get(PPC::RLWINM), Shift1Reg).addReg(Ptr1Reg)
8281       .addImm(3).addImm(27).addImm(is8bit ? 28 : 27);
8282   BuildMI(BB, dl, TII->get(is64bit ? PPC::XORI8 : PPC::XORI), ShiftReg)
8283       .addReg(Shift1Reg).addImm(is8bit ? 24 : 16);
8284   if (is64bit)
8285     BuildMI(BB, dl, TII->get(PPC::RLDICR), PtrReg)
8286       .addReg(Ptr1Reg).addImm(0).addImm(61);
8287   else
8288     BuildMI(BB, dl, TII->get(PPC::RLWINM), PtrReg)
8289       .addReg(Ptr1Reg).addImm(0).addImm(0).addImm(29);
8290   BuildMI(BB, dl, TII->get(PPC::SLW), Incr2Reg)
8291       .addReg(incr).addReg(ShiftReg);
8292   if (is8bit)
8293     BuildMI(BB, dl, TII->get(PPC::LI), Mask2Reg).addImm(255);
8294   else {
8295     BuildMI(BB, dl, TII->get(PPC::LI), Mask3Reg).addImm(0);
8296     BuildMI(BB, dl, TII->get(PPC::ORI),Mask2Reg).addReg(Mask3Reg).addImm(65535);
8297   }
8298   BuildMI(BB, dl, TII->get(PPC::SLW), MaskReg)
8299       .addReg(Mask2Reg).addReg(ShiftReg);
8300 
8301   BB = loopMBB;
8302   BuildMI(BB, dl, TII->get(PPC::LWARX), TmpDestReg)
8303     .addReg(ZeroReg).addReg(PtrReg);
8304   if (BinOpcode)
8305     BuildMI(BB, dl, TII->get(BinOpcode), TmpReg)
8306       .addReg(Incr2Reg).addReg(TmpDestReg);
8307   BuildMI(BB, dl, TII->get(is64bit ? PPC::ANDC8 : PPC::ANDC), Tmp2Reg)
8308     .addReg(TmpDestReg).addReg(MaskReg);
8309   BuildMI(BB, dl, TII->get(is64bit ? PPC::AND8 : PPC::AND), Tmp3Reg)
8310     .addReg(TmpReg).addReg(MaskReg);
8311   BuildMI(BB, dl, TII->get(is64bit ? PPC::OR8 : PPC::OR), Tmp4Reg)
8312     .addReg(Tmp3Reg).addReg(Tmp2Reg);
8313   BuildMI(BB, dl, TII->get(PPC::STWCX))
8314     .addReg(Tmp4Reg).addReg(ZeroReg).addReg(PtrReg);
8315   BuildMI(BB, dl, TII->get(PPC::BCC))
8316     .addImm(PPC::PRED_NE).addReg(PPC::CR0).addMBB(loopMBB);
8317   BB->addSuccessor(loopMBB);
8318   BB->addSuccessor(exitMBB);
8319 
8320   //  exitMBB:
8321   //   ...
8322   BB = exitMBB;
8323   BuildMI(*BB, BB->begin(), dl, TII->get(PPC::SRW), dest).addReg(TmpDestReg)
8324     .addReg(ShiftReg);
8325   return BB;
8326 }
8327 
8328 llvm::MachineBasicBlock*
8329 PPCTargetLowering::emitEHSjLjSetJmp(MachineInstr *MI,
8330                                     MachineBasicBlock *MBB) const {
8331   DebugLoc DL = MI->getDebugLoc();
8332   const TargetInstrInfo *TII = Subtarget.getInstrInfo();
8333 
8334   MachineFunction *MF = MBB->getParent();
8335   MachineRegisterInfo &MRI = MF->getRegInfo();
8336 
8337   const BasicBlock *BB = MBB->getBasicBlock();
8338   MachineFunction::iterator I = ++MBB->getIterator();
8339 
8340   // Memory Reference
8341   MachineInstr::mmo_iterator MMOBegin = MI->memoperands_begin();
8342   MachineInstr::mmo_iterator MMOEnd = MI->memoperands_end();
8343 
8344   unsigned DstReg = MI->getOperand(0).getReg();
8345   const TargetRegisterClass *RC = MRI.getRegClass(DstReg);
8346   assert(RC->hasType(MVT::i32) && "Invalid destination!");
8347   unsigned mainDstReg = MRI.createVirtualRegister(RC);
8348   unsigned restoreDstReg = MRI.createVirtualRegister(RC);
8349 
8350   MVT PVT = getPointerTy(MF->getDataLayout());
8351   assert((PVT == MVT::i64 || PVT == MVT::i32) &&
8352          "Invalid Pointer Size!");
8353   // For v = setjmp(buf), we generate
8354   //
8355   // thisMBB:
8356   //  SjLjSetup mainMBB
8357   //  bl mainMBB
8358   //  v_restore = 1
8359   //  b sinkMBB
8360   //
8361   // mainMBB:
8362   //  buf[LabelOffset] = LR
8363   //  v_main = 0
8364   //
8365   // sinkMBB:
8366   //  v = phi(main, restore)
8367   //
8368 
8369   MachineBasicBlock *thisMBB = MBB;
8370   MachineBasicBlock *mainMBB = MF->CreateMachineBasicBlock(BB);
8371   MachineBasicBlock *sinkMBB = MF->CreateMachineBasicBlock(BB);
8372   MF->insert(I, mainMBB);
8373   MF->insert(I, sinkMBB);
8374 
8375   MachineInstrBuilder MIB;
8376 
8377   // Transfer the remainder of BB and its successor edges to sinkMBB.
8378   sinkMBB->splice(sinkMBB->begin(), MBB,
8379                   std::next(MachineBasicBlock::iterator(MI)), MBB->end());
8380   sinkMBB->transferSuccessorsAndUpdatePHIs(MBB);
8381 
8382   // Note that the structure of the jmp_buf used here is not compatible
8383   // with that used by libc, and is not designed to be. Specifically, it
8384   // stores only those 'reserved' registers that LLVM does not otherwise
8385   // understand how to spill. Also, by convention, by the time this
8386   // intrinsic is called, Clang has already stored the frame address in the
8387   // first slot of the buffer and stack address in the third. Following the
8388   // X86 target code, we'll store the jump address in the second slot. We also
8389   // need to save the TOC pointer (R2) to handle jumps between shared
8390   // libraries, and that will be stored in the fourth slot. The thread
8391   // identifier (R13) is not affected.
8392 
8393   // thisMBB:
8394   const int64_t LabelOffset = 1 * PVT.getStoreSize();
8395   const int64_t TOCOffset   = 3 * PVT.getStoreSize();
8396   const int64_t BPOffset    = 4 * PVT.getStoreSize();
8397 
8398   // Prepare IP either in reg.
8399   const TargetRegisterClass *PtrRC = getRegClassFor(PVT);
8400   unsigned LabelReg = MRI.createVirtualRegister(PtrRC);
8401   unsigned BufReg = MI->getOperand(1).getReg();
8402 
8403   if (Subtarget.isPPC64() && Subtarget.isSVR4ABI()) {
8404     setUsesTOCBasePtr(*MBB->getParent());
8405     MIB = BuildMI(*thisMBB, MI, DL, TII->get(PPC::STD))
8406             .addReg(PPC::X2)
8407             .addImm(TOCOffset)
8408             .addReg(BufReg);
8409     MIB.setMemRefs(MMOBegin, MMOEnd);
8410   }
8411 
8412   // Naked functions never have a base pointer, and so we use r1. For all
8413   // other functions, this decision must be delayed until during PEI.
8414   unsigned BaseReg;
8415   if (MF->getFunction()->hasFnAttribute(Attribute::Naked))
8416     BaseReg = Subtarget.isPPC64() ? PPC::X1 : PPC::R1;
8417   else
8418     BaseReg = Subtarget.isPPC64() ? PPC::BP8 : PPC::BP;
8419 
8420   MIB = BuildMI(*thisMBB, MI, DL,
8421                 TII->get(Subtarget.isPPC64() ? PPC::STD : PPC::STW))
8422             .addReg(BaseReg)
8423             .addImm(BPOffset)
8424             .addReg(BufReg);
8425   MIB.setMemRefs(MMOBegin, MMOEnd);
8426 
8427   // Setup
8428   MIB = BuildMI(*thisMBB, MI, DL, TII->get(PPC::BCLalways)).addMBB(mainMBB);
8429   const PPCRegisterInfo *TRI = Subtarget.getRegisterInfo();
8430   MIB.addRegMask(TRI->getNoPreservedMask());
8431 
8432   BuildMI(*thisMBB, MI, DL, TII->get(PPC::LI), restoreDstReg).addImm(1);
8433 
8434   MIB = BuildMI(*thisMBB, MI, DL, TII->get(PPC::EH_SjLj_Setup))
8435           .addMBB(mainMBB);
8436   MIB = BuildMI(*thisMBB, MI, DL, TII->get(PPC::B)).addMBB(sinkMBB);
8437 
8438   thisMBB->addSuccessor(mainMBB, BranchProbability::getZero());
8439   thisMBB->addSuccessor(sinkMBB, BranchProbability::getOne());
8440 
8441   // mainMBB:
8442   //  mainDstReg = 0
8443   MIB =
8444       BuildMI(mainMBB, DL,
8445               TII->get(Subtarget.isPPC64() ? PPC::MFLR8 : PPC::MFLR), LabelReg);
8446 
8447   // Store IP
8448   if (Subtarget.isPPC64()) {
8449     MIB = BuildMI(mainMBB, DL, TII->get(PPC::STD))
8450             .addReg(LabelReg)
8451             .addImm(LabelOffset)
8452             .addReg(BufReg);
8453   } else {
8454     MIB = BuildMI(mainMBB, DL, TII->get(PPC::STW))
8455             .addReg(LabelReg)
8456             .addImm(LabelOffset)
8457             .addReg(BufReg);
8458   }
8459 
8460   MIB.setMemRefs(MMOBegin, MMOEnd);
8461 
8462   BuildMI(mainMBB, DL, TII->get(PPC::LI), mainDstReg).addImm(0);
8463   mainMBB->addSuccessor(sinkMBB);
8464 
8465   // sinkMBB:
8466   BuildMI(*sinkMBB, sinkMBB->begin(), DL,
8467           TII->get(PPC::PHI), DstReg)
8468     .addReg(mainDstReg).addMBB(mainMBB)
8469     .addReg(restoreDstReg).addMBB(thisMBB);
8470 
8471   MI->eraseFromParent();
8472   return sinkMBB;
8473 }
8474 
8475 MachineBasicBlock *
8476 PPCTargetLowering::emitEHSjLjLongJmp(MachineInstr *MI,
8477                                      MachineBasicBlock *MBB) const {
8478   DebugLoc DL = MI->getDebugLoc();
8479   const TargetInstrInfo *TII = Subtarget.getInstrInfo();
8480 
8481   MachineFunction *MF = MBB->getParent();
8482   MachineRegisterInfo &MRI = MF->getRegInfo();
8483 
8484   // Memory Reference
8485   MachineInstr::mmo_iterator MMOBegin = MI->memoperands_begin();
8486   MachineInstr::mmo_iterator MMOEnd = MI->memoperands_end();
8487 
8488   MVT PVT = getPointerTy(MF->getDataLayout());
8489   assert((PVT == MVT::i64 || PVT == MVT::i32) &&
8490          "Invalid Pointer Size!");
8491 
8492   const TargetRegisterClass *RC =
8493     (PVT == MVT::i64) ? &PPC::G8RCRegClass : &PPC::GPRCRegClass;
8494   unsigned Tmp = MRI.createVirtualRegister(RC);
8495   // Since FP is only updated here but NOT referenced, it's treated as GPR.
8496   unsigned FP  = (PVT == MVT::i64) ? PPC::X31 : PPC::R31;
8497   unsigned SP  = (PVT == MVT::i64) ? PPC::X1 : PPC::R1;
8498   unsigned BP =
8499       (PVT == MVT::i64)
8500           ? PPC::X30
8501           : (Subtarget.isSVR4ABI() &&
8502                      MF->getTarget().getRelocationModel() == Reloc::PIC_
8503                  ? PPC::R29
8504                  : PPC::R30);
8505 
8506   MachineInstrBuilder MIB;
8507 
8508   const int64_t LabelOffset = 1 * PVT.getStoreSize();
8509   const int64_t SPOffset    = 2 * PVT.getStoreSize();
8510   const int64_t TOCOffset   = 3 * PVT.getStoreSize();
8511   const int64_t BPOffset    = 4 * PVT.getStoreSize();
8512 
8513   unsigned BufReg = MI->getOperand(0).getReg();
8514 
8515   // Reload FP (the jumped-to function may not have had a
8516   // frame pointer, and if so, then its r31 will be restored
8517   // as necessary).
8518   if (PVT == MVT::i64) {
8519     MIB = BuildMI(*MBB, MI, DL, TII->get(PPC::LD), FP)
8520             .addImm(0)
8521             .addReg(BufReg);
8522   } else {
8523     MIB = BuildMI(*MBB, MI, DL, TII->get(PPC::LWZ), FP)
8524             .addImm(0)
8525             .addReg(BufReg);
8526   }
8527   MIB.setMemRefs(MMOBegin, MMOEnd);
8528 
8529   // Reload IP
8530   if (PVT == MVT::i64) {
8531     MIB = BuildMI(*MBB, MI, DL, TII->get(PPC::LD), Tmp)
8532             .addImm(LabelOffset)
8533             .addReg(BufReg);
8534   } else {
8535     MIB = BuildMI(*MBB, MI, DL, TII->get(PPC::LWZ), Tmp)
8536             .addImm(LabelOffset)
8537             .addReg(BufReg);
8538   }
8539   MIB.setMemRefs(MMOBegin, MMOEnd);
8540 
8541   // Reload SP
8542   if (PVT == MVT::i64) {
8543     MIB = BuildMI(*MBB, MI, DL, TII->get(PPC::LD), SP)
8544             .addImm(SPOffset)
8545             .addReg(BufReg);
8546   } else {
8547     MIB = BuildMI(*MBB, MI, DL, TII->get(PPC::LWZ), SP)
8548             .addImm(SPOffset)
8549             .addReg(BufReg);
8550   }
8551   MIB.setMemRefs(MMOBegin, MMOEnd);
8552 
8553   // Reload BP
8554   if (PVT == MVT::i64) {
8555     MIB = BuildMI(*MBB, MI, DL, TII->get(PPC::LD), BP)
8556             .addImm(BPOffset)
8557             .addReg(BufReg);
8558   } else {
8559     MIB = BuildMI(*MBB, MI, DL, TII->get(PPC::LWZ), BP)
8560             .addImm(BPOffset)
8561             .addReg(BufReg);
8562   }
8563   MIB.setMemRefs(MMOBegin, MMOEnd);
8564 
8565   // Reload TOC
8566   if (PVT == MVT::i64 && Subtarget.isSVR4ABI()) {
8567     setUsesTOCBasePtr(*MBB->getParent());
8568     MIB = BuildMI(*MBB, MI, DL, TII->get(PPC::LD), PPC::X2)
8569             .addImm(TOCOffset)
8570             .addReg(BufReg);
8571 
8572     MIB.setMemRefs(MMOBegin, MMOEnd);
8573   }
8574 
8575   // Jump
8576   BuildMI(*MBB, MI, DL,
8577           TII->get(PVT == MVT::i64 ? PPC::MTCTR8 : PPC::MTCTR)).addReg(Tmp);
8578   BuildMI(*MBB, MI, DL, TII->get(PVT == MVT::i64 ? PPC::BCTR8 : PPC::BCTR));
8579 
8580   MI->eraseFromParent();
8581   return MBB;
8582 }
8583 
8584 MachineBasicBlock *
8585 PPCTargetLowering::EmitInstrWithCustomInserter(MachineInstr *MI,
8586                                                MachineBasicBlock *BB) const {
8587   if (MI->getOpcode() == TargetOpcode::STACKMAP ||
8588       MI->getOpcode() == TargetOpcode::PATCHPOINT) {
8589     if (Subtarget.isPPC64() && Subtarget.isSVR4ABI() &&
8590         MI->getOpcode() == TargetOpcode::PATCHPOINT) {
8591       // Call lowering should have added an r2 operand to indicate a dependence
8592       // on the TOC base pointer value. It can't however, because there is no
8593       // way to mark the dependence as implicit there, and so the stackmap code
8594       // will confuse it with a regular operand. Instead, add the dependence
8595       // here.
8596       setUsesTOCBasePtr(*BB->getParent());
8597       MI->addOperand(MachineOperand::CreateReg(PPC::X2, false, true));
8598     }
8599 
8600     return emitPatchPoint(MI, BB);
8601   }
8602 
8603   if (MI->getOpcode() == PPC::EH_SjLj_SetJmp32 ||
8604       MI->getOpcode() == PPC::EH_SjLj_SetJmp64) {
8605     return emitEHSjLjSetJmp(MI, BB);
8606   } else if (MI->getOpcode() == PPC::EH_SjLj_LongJmp32 ||
8607              MI->getOpcode() == PPC::EH_SjLj_LongJmp64) {
8608     return emitEHSjLjLongJmp(MI, BB);
8609   }
8610 
8611   const TargetInstrInfo *TII = Subtarget.getInstrInfo();
8612 
8613   // To "insert" these instructions we actually have to insert their
8614   // control-flow patterns.
8615   const BasicBlock *LLVM_BB = BB->getBasicBlock();
8616   MachineFunction::iterator It = ++BB->getIterator();
8617 
8618   MachineFunction *F = BB->getParent();
8619 
8620   if (Subtarget.hasISEL() && (MI->getOpcode() == PPC::SELECT_CC_I4 ||
8621                               MI->getOpcode() == PPC::SELECT_CC_I8 ||
8622                               MI->getOpcode() == PPC::SELECT_I4 ||
8623                               MI->getOpcode() == PPC::SELECT_I8)) {
8624     SmallVector<MachineOperand, 2> Cond;
8625     if (MI->getOpcode() == PPC::SELECT_CC_I4 ||
8626         MI->getOpcode() == PPC::SELECT_CC_I8)
8627       Cond.push_back(MI->getOperand(4));
8628     else
8629       Cond.push_back(MachineOperand::CreateImm(PPC::PRED_BIT_SET));
8630     Cond.push_back(MI->getOperand(1));
8631 
8632     DebugLoc dl = MI->getDebugLoc();
8633     TII->insertSelect(*BB, MI, dl, MI->getOperand(0).getReg(),
8634                       Cond, MI->getOperand(2).getReg(),
8635                       MI->getOperand(3).getReg());
8636   } else if (MI->getOpcode() == PPC::SELECT_CC_I4 ||
8637              MI->getOpcode() == PPC::SELECT_CC_I8 ||
8638              MI->getOpcode() == PPC::SELECT_CC_F4 ||
8639              MI->getOpcode() == PPC::SELECT_CC_F8 ||
8640              MI->getOpcode() == PPC::SELECT_CC_QFRC ||
8641              MI->getOpcode() == PPC::SELECT_CC_QSRC ||
8642              MI->getOpcode() == PPC::SELECT_CC_QBRC ||
8643              MI->getOpcode() == PPC::SELECT_CC_VRRC ||
8644              MI->getOpcode() == PPC::SELECT_CC_VSFRC ||
8645              MI->getOpcode() == PPC::SELECT_CC_VSSRC ||
8646              MI->getOpcode() == PPC::SELECT_CC_VSRC ||
8647              MI->getOpcode() == PPC::SELECT_I4 ||
8648              MI->getOpcode() == PPC::SELECT_I8 ||
8649              MI->getOpcode() == PPC::SELECT_F4 ||
8650              MI->getOpcode() == PPC::SELECT_F8 ||
8651              MI->getOpcode() == PPC::SELECT_QFRC ||
8652              MI->getOpcode() == PPC::SELECT_QSRC ||
8653              MI->getOpcode() == PPC::SELECT_QBRC ||
8654              MI->getOpcode() == PPC::SELECT_VRRC ||
8655              MI->getOpcode() == PPC::SELECT_VSFRC ||
8656              MI->getOpcode() == PPC::SELECT_VSSRC ||
8657              MI->getOpcode() == PPC::SELECT_VSRC) {
8658     // The incoming instruction knows the destination vreg to set, the
8659     // condition code register to branch on, the true/false values to
8660     // select between, and a branch opcode to use.
8661 
8662     //  thisMBB:
8663     //  ...
8664     //   TrueVal = ...
8665     //   cmpTY ccX, r1, r2
8666     //   bCC copy1MBB
8667     //   fallthrough --> copy0MBB
8668     MachineBasicBlock *thisMBB = BB;
8669     MachineBasicBlock *copy0MBB = F->CreateMachineBasicBlock(LLVM_BB);
8670     MachineBasicBlock *sinkMBB = F->CreateMachineBasicBlock(LLVM_BB);
8671     DebugLoc dl = MI->getDebugLoc();
8672     F->insert(It, copy0MBB);
8673     F->insert(It, sinkMBB);
8674 
8675     // Transfer the remainder of BB and its successor edges to sinkMBB.
8676     sinkMBB->splice(sinkMBB->begin(), BB,
8677                     std::next(MachineBasicBlock::iterator(MI)), BB->end());
8678     sinkMBB->transferSuccessorsAndUpdatePHIs(BB);
8679 
8680     // Next, add the true and fallthrough blocks as its successors.
8681     BB->addSuccessor(copy0MBB);
8682     BB->addSuccessor(sinkMBB);
8683 
8684     if (MI->getOpcode() == PPC::SELECT_I4 ||
8685         MI->getOpcode() == PPC::SELECT_I8 ||
8686         MI->getOpcode() == PPC::SELECT_F4 ||
8687         MI->getOpcode() == PPC::SELECT_F8 ||
8688         MI->getOpcode() == PPC::SELECT_QFRC ||
8689         MI->getOpcode() == PPC::SELECT_QSRC ||
8690         MI->getOpcode() == PPC::SELECT_QBRC ||
8691         MI->getOpcode() == PPC::SELECT_VRRC ||
8692         MI->getOpcode() == PPC::SELECT_VSFRC ||
8693         MI->getOpcode() == PPC::SELECT_VSSRC ||
8694         MI->getOpcode() == PPC::SELECT_VSRC) {
8695       BuildMI(BB, dl, TII->get(PPC::BC))
8696         .addReg(MI->getOperand(1).getReg()).addMBB(sinkMBB);
8697     } else {
8698       unsigned SelectPred = MI->getOperand(4).getImm();
8699       BuildMI(BB, dl, TII->get(PPC::BCC))
8700         .addImm(SelectPred).addReg(MI->getOperand(1).getReg()).addMBB(sinkMBB);
8701     }
8702 
8703     //  copy0MBB:
8704     //   %FalseValue = ...
8705     //   # fallthrough to sinkMBB
8706     BB = copy0MBB;
8707 
8708     // Update machine-CFG edges
8709     BB->addSuccessor(sinkMBB);
8710 
8711     //  sinkMBB:
8712     //   %Result = phi [ %FalseValue, copy0MBB ], [ %TrueValue, thisMBB ]
8713     //  ...
8714     BB = sinkMBB;
8715     BuildMI(*BB, BB->begin(), dl,
8716             TII->get(PPC::PHI), MI->getOperand(0).getReg())
8717       .addReg(MI->getOperand(3).getReg()).addMBB(copy0MBB)
8718       .addReg(MI->getOperand(2).getReg()).addMBB(thisMBB);
8719   } else if (MI->getOpcode() == PPC::ReadTB) {
8720     // To read the 64-bit time-base register on a 32-bit target, we read the
8721     // two halves. Should the counter have wrapped while it was being read, we
8722     // need to try again.
8723     // ...
8724     // readLoop:
8725     // mfspr Rx,TBU # load from TBU
8726     // mfspr Ry,TB  # load from TB
8727     // mfspr Rz,TBU # load from TBU
8728     // cmpw crX,Rx,Rz # check if 'old'='new'
8729     // bne readLoop   # branch if they're not equal
8730     // ...
8731 
8732     MachineBasicBlock *readMBB = F->CreateMachineBasicBlock(LLVM_BB);
8733     MachineBasicBlock *sinkMBB = F->CreateMachineBasicBlock(LLVM_BB);
8734     DebugLoc dl = MI->getDebugLoc();
8735     F->insert(It, readMBB);
8736     F->insert(It, sinkMBB);
8737 
8738     // Transfer the remainder of BB and its successor edges to sinkMBB.
8739     sinkMBB->splice(sinkMBB->begin(), BB,
8740                     std::next(MachineBasicBlock::iterator(MI)), BB->end());
8741     sinkMBB->transferSuccessorsAndUpdatePHIs(BB);
8742 
8743     BB->addSuccessor(readMBB);
8744     BB = readMBB;
8745 
8746     MachineRegisterInfo &RegInfo = F->getRegInfo();
8747     unsigned ReadAgainReg = RegInfo.createVirtualRegister(&PPC::GPRCRegClass);
8748     unsigned LoReg = MI->getOperand(0).getReg();
8749     unsigned HiReg = MI->getOperand(1).getReg();
8750 
8751     BuildMI(BB, dl, TII->get(PPC::MFSPR), HiReg).addImm(269);
8752     BuildMI(BB, dl, TII->get(PPC::MFSPR), LoReg).addImm(268);
8753     BuildMI(BB, dl, TII->get(PPC::MFSPR), ReadAgainReg).addImm(269);
8754 
8755     unsigned CmpReg = RegInfo.createVirtualRegister(&PPC::CRRCRegClass);
8756 
8757     BuildMI(BB, dl, TII->get(PPC::CMPW), CmpReg)
8758       .addReg(HiReg).addReg(ReadAgainReg);
8759     BuildMI(BB, dl, TII->get(PPC::BCC))
8760       .addImm(PPC::PRED_NE).addReg(CmpReg).addMBB(readMBB);
8761 
8762     BB->addSuccessor(readMBB);
8763     BB->addSuccessor(sinkMBB);
8764   }
8765   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_ADD_I8)
8766     BB = EmitPartwordAtomicBinary(MI, BB, true, PPC::ADD4);
8767   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_ADD_I16)
8768     BB = EmitPartwordAtomicBinary(MI, BB, false, PPC::ADD4);
8769   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_ADD_I32)
8770     BB = EmitAtomicBinary(MI, BB, 4, PPC::ADD4);
8771   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_ADD_I64)
8772     BB = EmitAtomicBinary(MI, BB, 8, PPC::ADD8);
8773 
8774   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_AND_I8)
8775     BB = EmitPartwordAtomicBinary(MI, BB, true, PPC::AND);
8776   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_AND_I16)
8777     BB = EmitPartwordAtomicBinary(MI, BB, false, PPC::AND);
8778   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_AND_I32)
8779     BB = EmitAtomicBinary(MI, BB, 4, PPC::AND);
8780   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_AND_I64)
8781     BB = EmitAtomicBinary(MI, BB, 8, PPC::AND8);
8782 
8783   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_OR_I8)
8784     BB = EmitPartwordAtomicBinary(MI, BB, true, PPC::OR);
8785   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_OR_I16)
8786     BB = EmitPartwordAtomicBinary(MI, BB, false, PPC::OR);
8787   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_OR_I32)
8788     BB = EmitAtomicBinary(MI, BB, 4, PPC::OR);
8789   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_OR_I64)
8790     BB = EmitAtomicBinary(MI, BB, 8, PPC::OR8);
8791 
8792   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_XOR_I8)
8793     BB = EmitPartwordAtomicBinary(MI, BB, true, PPC::XOR);
8794   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_XOR_I16)
8795     BB = EmitPartwordAtomicBinary(MI, BB, false, PPC::XOR);
8796   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_XOR_I32)
8797     BB = EmitAtomicBinary(MI, BB, 4, PPC::XOR);
8798   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_XOR_I64)
8799     BB = EmitAtomicBinary(MI, BB, 8, PPC::XOR8);
8800 
8801   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_NAND_I8)
8802     BB = EmitPartwordAtomicBinary(MI, BB, true, PPC::NAND);
8803   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_NAND_I16)
8804     BB = EmitPartwordAtomicBinary(MI, BB, false, PPC::NAND);
8805   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_NAND_I32)
8806     BB = EmitAtomicBinary(MI, BB, 4, PPC::NAND);
8807   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_NAND_I64)
8808     BB = EmitAtomicBinary(MI, BB, 8, PPC::NAND8);
8809 
8810   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_SUB_I8)
8811     BB = EmitPartwordAtomicBinary(MI, BB, true, PPC::SUBF);
8812   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_SUB_I16)
8813     BB = EmitPartwordAtomicBinary(MI, BB, false, PPC::SUBF);
8814   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_SUB_I32)
8815     BB = EmitAtomicBinary(MI, BB, 4, PPC::SUBF);
8816   else if (MI->getOpcode() == PPC::ATOMIC_LOAD_SUB_I64)
8817     BB = EmitAtomicBinary(MI, BB, 8, PPC::SUBF8);
8818 
8819   else if (MI->getOpcode() == PPC::ATOMIC_SWAP_I8)
8820     BB = EmitPartwordAtomicBinary(MI, BB, true, 0);
8821   else if (MI->getOpcode() == PPC::ATOMIC_SWAP_I16)
8822     BB = EmitPartwordAtomicBinary(MI, BB, false, 0);
8823   else if (MI->getOpcode() == PPC::ATOMIC_SWAP_I32)
8824     BB = EmitAtomicBinary(MI, BB, 4, 0);
8825   else if (MI->getOpcode() == PPC::ATOMIC_SWAP_I64)
8826     BB = EmitAtomicBinary(MI, BB, 8, 0);
8827 
8828   else if (MI->getOpcode() == PPC::ATOMIC_CMP_SWAP_I32 ||
8829            MI->getOpcode() == PPC::ATOMIC_CMP_SWAP_I64 ||
8830            (Subtarget.hasPartwordAtomics() &&
8831             MI->getOpcode() == PPC::ATOMIC_CMP_SWAP_I8) ||
8832            (Subtarget.hasPartwordAtomics() &&
8833             MI->getOpcode() == PPC::ATOMIC_CMP_SWAP_I16)) {
8834     bool is64bit = MI->getOpcode() == PPC::ATOMIC_CMP_SWAP_I64;
8835 
8836     auto LoadMnemonic = PPC::LDARX;
8837     auto StoreMnemonic = PPC::STDCX;
8838     switch(MI->getOpcode()) {
8839     default:
8840       llvm_unreachable("Compare and swap of unknown size");
8841     case PPC::ATOMIC_CMP_SWAP_I8:
8842       LoadMnemonic = PPC::LBARX;
8843       StoreMnemonic = PPC::STBCX;
8844       assert(Subtarget.hasPartwordAtomics() && "No support partword atomics.");
8845       break;
8846     case PPC::ATOMIC_CMP_SWAP_I16:
8847       LoadMnemonic = PPC::LHARX;
8848       StoreMnemonic = PPC::STHCX;
8849       assert(Subtarget.hasPartwordAtomics() && "No support partword atomics.");
8850       break;
8851     case PPC::ATOMIC_CMP_SWAP_I32:
8852       LoadMnemonic = PPC::LWARX;
8853       StoreMnemonic = PPC::STWCX;
8854       break;
8855     case PPC::ATOMIC_CMP_SWAP_I64:
8856       LoadMnemonic = PPC::LDARX;
8857       StoreMnemonic = PPC::STDCX;
8858       break;
8859     }
8860     unsigned dest   = MI->getOperand(0).getReg();
8861     unsigned ptrA   = MI->getOperand(1).getReg();
8862     unsigned ptrB   = MI->getOperand(2).getReg();
8863     unsigned oldval = MI->getOperand(3).getReg();
8864     unsigned newval = MI->getOperand(4).getReg();
8865     DebugLoc dl     = MI->getDebugLoc();
8866 
8867     MachineBasicBlock *loop1MBB = F->CreateMachineBasicBlock(LLVM_BB);
8868     MachineBasicBlock *loop2MBB = F->CreateMachineBasicBlock(LLVM_BB);
8869     MachineBasicBlock *midMBB = F->CreateMachineBasicBlock(LLVM_BB);
8870     MachineBasicBlock *exitMBB = F->CreateMachineBasicBlock(LLVM_BB);
8871     F->insert(It, loop1MBB);
8872     F->insert(It, loop2MBB);
8873     F->insert(It, midMBB);
8874     F->insert(It, exitMBB);
8875     exitMBB->splice(exitMBB->begin(), BB,
8876                     std::next(MachineBasicBlock::iterator(MI)), BB->end());
8877     exitMBB->transferSuccessorsAndUpdatePHIs(BB);
8878 
8879     //  thisMBB:
8880     //   ...
8881     //   fallthrough --> loopMBB
8882     BB->addSuccessor(loop1MBB);
8883 
8884     // loop1MBB:
8885     //   l[bhwd]arx dest, ptr
8886     //   cmp[wd] dest, oldval
8887     //   bne- midMBB
8888     // loop2MBB:
8889     //   st[bhwd]cx. newval, ptr
8890     //   bne- loopMBB
8891     //   b exitBB
8892     // midMBB:
8893     //   st[bhwd]cx. dest, ptr
8894     // exitBB:
8895     BB = loop1MBB;
8896     BuildMI(BB, dl, TII->get(LoadMnemonic), dest)
8897       .addReg(ptrA).addReg(ptrB);
8898     BuildMI(BB, dl, TII->get(is64bit ? PPC::CMPD : PPC::CMPW), PPC::CR0)
8899       .addReg(oldval).addReg(dest);
8900     BuildMI(BB, dl, TII->get(PPC::BCC))
8901       .addImm(PPC::PRED_NE).addReg(PPC::CR0).addMBB(midMBB);
8902     BB->addSuccessor(loop2MBB);
8903     BB->addSuccessor(midMBB);
8904 
8905     BB = loop2MBB;
8906     BuildMI(BB, dl, TII->get(StoreMnemonic))
8907       .addReg(newval).addReg(ptrA).addReg(ptrB);
8908     BuildMI(BB, dl, TII->get(PPC::BCC))
8909       .addImm(PPC::PRED_NE).addReg(PPC::CR0).addMBB(loop1MBB);
8910     BuildMI(BB, dl, TII->get(PPC::B)).addMBB(exitMBB);
8911     BB->addSuccessor(loop1MBB);
8912     BB->addSuccessor(exitMBB);
8913 
8914     BB = midMBB;
8915     BuildMI(BB, dl, TII->get(StoreMnemonic))
8916       .addReg(dest).addReg(ptrA).addReg(ptrB);
8917     BB->addSuccessor(exitMBB);
8918 
8919     //  exitMBB:
8920     //   ...
8921     BB = exitMBB;
8922   } else if (MI->getOpcode() == PPC::ATOMIC_CMP_SWAP_I8 ||
8923              MI->getOpcode() == PPC::ATOMIC_CMP_SWAP_I16) {
8924     // We must use 64-bit registers for addresses when targeting 64-bit,
8925     // since we're actually doing arithmetic on them.  Other registers
8926     // can be 32-bit.
8927     bool is64bit = Subtarget.isPPC64();
8928     bool is8bit = MI->getOpcode() == PPC::ATOMIC_CMP_SWAP_I8;
8929 
8930     unsigned dest   = MI->getOperand(0).getReg();
8931     unsigned ptrA   = MI->getOperand(1).getReg();
8932     unsigned ptrB   = MI->getOperand(2).getReg();
8933     unsigned oldval = MI->getOperand(3).getReg();
8934     unsigned newval = MI->getOperand(4).getReg();
8935     DebugLoc dl     = MI->getDebugLoc();
8936 
8937     MachineBasicBlock *loop1MBB = F->CreateMachineBasicBlock(LLVM_BB);
8938     MachineBasicBlock *loop2MBB = F->CreateMachineBasicBlock(LLVM_BB);
8939     MachineBasicBlock *midMBB = F->CreateMachineBasicBlock(LLVM_BB);
8940     MachineBasicBlock *exitMBB = F->CreateMachineBasicBlock(LLVM_BB);
8941     F->insert(It, loop1MBB);
8942     F->insert(It, loop2MBB);
8943     F->insert(It, midMBB);
8944     F->insert(It, exitMBB);
8945     exitMBB->splice(exitMBB->begin(), BB,
8946                     std::next(MachineBasicBlock::iterator(MI)), BB->end());
8947     exitMBB->transferSuccessorsAndUpdatePHIs(BB);
8948 
8949     MachineRegisterInfo &RegInfo = F->getRegInfo();
8950     const TargetRegisterClass *RC = is64bit ? &PPC::G8RCRegClass
8951                                             : &PPC::GPRCRegClass;
8952     unsigned PtrReg = RegInfo.createVirtualRegister(RC);
8953     unsigned Shift1Reg = RegInfo.createVirtualRegister(RC);
8954     unsigned ShiftReg = RegInfo.createVirtualRegister(RC);
8955     unsigned NewVal2Reg = RegInfo.createVirtualRegister(RC);
8956     unsigned NewVal3Reg = RegInfo.createVirtualRegister(RC);
8957     unsigned OldVal2Reg = RegInfo.createVirtualRegister(RC);
8958     unsigned OldVal3Reg = RegInfo.createVirtualRegister(RC);
8959     unsigned MaskReg = RegInfo.createVirtualRegister(RC);
8960     unsigned Mask2Reg = RegInfo.createVirtualRegister(RC);
8961     unsigned Mask3Reg = RegInfo.createVirtualRegister(RC);
8962     unsigned Tmp2Reg = RegInfo.createVirtualRegister(RC);
8963     unsigned Tmp4Reg = RegInfo.createVirtualRegister(RC);
8964     unsigned TmpDestReg = RegInfo.createVirtualRegister(RC);
8965     unsigned Ptr1Reg;
8966     unsigned TmpReg = RegInfo.createVirtualRegister(RC);
8967     unsigned ZeroReg = is64bit ? PPC::ZERO8 : PPC::ZERO;
8968     //  thisMBB:
8969     //   ...
8970     //   fallthrough --> loopMBB
8971     BB->addSuccessor(loop1MBB);
8972 
8973     // The 4-byte load must be aligned, while a char or short may be
8974     // anywhere in the word.  Hence all this nasty bookkeeping code.
8975     //   add ptr1, ptrA, ptrB [copy if ptrA==0]
8976     //   rlwinm shift1, ptr1, 3, 27, 28 [3, 27, 27]
8977     //   xori shift, shift1, 24 [16]
8978     //   rlwinm ptr, ptr1, 0, 0, 29
8979     //   slw newval2, newval, shift
8980     //   slw oldval2, oldval,shift
8981     //   li mask2, 255 [li mask3, 0; ori mask2, mask3, 65535]
8982     //   slw mask, mask2, shift
8983     //   and newval3, newval2, mask
8984     //   and oldval3, oldval2, mask
8985     // loop1MBB:
8986     //   lwarx tmpDest, ptr
8987     //   and tmp, tmpDest, mask
8988     //   cmpw tmp, oldval3
8989     //   bne- midMBB
8990     // loop2MBB:
8991     //   andc tmp2, tmpDest, mask
8992     //   or tmp4, tmp2, newval3
8993     //   stwcx. tmp4, ptr
8994     //   bne- loop1MBB
8995     //   b exitBB
8996     // midMBB:
8997     //   stwcx. tmpDest, ptr
8998     // exitBB:
8999     //   srw dest, tmpDest, shift
9000     if (ptrA != ZeroReg) {
9001       Ptr1Reg = RegInfo.createVirtualRegister(RC);
9002       BuildMI(BB, dl, TII->get(is64bit ? PPC::ADD8 : PPC::ADD4), Ptr1Reg)
9003         .addReg(ptrA).addReg(ptrB);
9004     } else {
9005       Ptr1Reg = ptrB;
9006     }
9007     BuildMI(BB, dl, TII->get(PPC::RLWINM), Shift1Reg).addReg(Ptr1Reg)
9008         .addImm(3).addImm(27).addImm(is8bit ? 28 : 27);
9009     BuildMI(BB, dl, TII->get(is64bit ? PPC::XORI8 : PPC::XORI), ShiftReg)
9010         .addReg(Shift1Reg).addImm(is8bit ? 24 : 16);
9011     if (is64bit)
9012       BuildMI(BB, dl, TII->get(PPC::RLDICR), PtrReg)
9013         .addReg(Ptr1Reg).addImm(0).addImm(61);
9014     else
9015       BuildMI(BB, dl, TII->get(PPC::RLWINM), PtrReg)
9016         .addReg(Ptr1Reg).addImm(0).addImm(0).addImm(29);
9017     BuildMI(BB, dl, TII->get(PPC::SLW), NewVal2Reg)
9018         .addReg(newval).addReg(ShiftReg);
9019     BuildMI(BB, dl, TII->get(PPC::SLW), OldVal2Reg)
9020         .addReg(oldval).addReg(ShiftReg);
9021     if (is8bit)
9022       BuildMI(BB, dl, TII->get(PPC::LI), Mask2Reg).addImm(255);
9023     else {
9024       BuildMI(BB, dl, TII->get(PPC::LI), Mask3Reg).addImm(0);
9025       BuildMI(BB, dl, TII->get(PPC::ORI), Mask2Reg)
9026         .addReg(Mask3Reg).addImm(65535);
9027     }
9028     BuildMI(BB, dl, TII->get(PPC::SLW), MaskReg)
9029         .addReg(Mask2Reg).addReg(ShiftReg);
9030     BuildMI(BB, dl, TII->get(PPC::AND), NewVal3Reg)
9031         .addReg(NewVal2Reg).addReg(MaskReg);
9032     BuildMI(BB, dl, TII->get(PPC::AND), OldVal3Reg)
9033         .addReg(OldVal2Reg).addReg(MaskReg);
9034 
9035     BB = loop1MBB;
9036     BuildMI(BB, dl, TII->get(PPC::LWARX), TmpDestReg)
9037         .addReg(ZeroReg).addReg(PtrReg);
9038     BuildMI(BB, dl, TII->get(PPC::AND),TmpReg)
9039         .addReg(TmpDestReg).addReg(MaskReg);
9040     BuildMI(BB, dl, TII->get(PPC::CMPW), PPC::CR0)
9041         .addReg(TmpReg).addReg(OldVal3Reg);
9042     BuildMI(BB, dl, TII->get(PPC::BCC))
9043         .addImm(PPC::PRED_NE).addReg(PPC::CR0).addMBB(midMBB);
9044     BB->addSuccessor(loop2MBB);
9045     BB->addSuccessor(midMBB);
9046 
9047     BB = loop2MBB;
9048     BuildMI(BB, dl, TII->get(PPC::ANDC),Tmp2Reg)
9049         .addReg(TmpDestReg).addReg(MaskReg);
9050     BuildMI(BB, dl, TII->get(PPC::OR),Tmp4Reg)
9051         .addReg(Tmp2Reg).addReg(NewVal3Reg);
9052     BuildMI(BB, dl, TII->get(PPC::STWCX)).addReg(Tmp4Reg)
9053         .addReg(ZeroReg).addReg(PtrReg);
9054     BuildMI(BB, dl, TII->get(PPC::BCC))
9055       .addImm(PPC::PRED_NE).addReg(PPC::CR0).addMBB(loop1MBB);
9056     BuildMI(BB, dl, TII->get(PPC::B)).addMBB(exitMBB);
9057     BB->addSuccessor(loop1MBB);
9058     BB->addSuccessor(exitMBB);
9059 
9060     BB = midMBB;
9061     BuildMI(BB, dl, TII->get(PPC::STWCX)).addReg(TmpDestReg)
9062       .addReg(ZeroReg).addReg(PtrReg);
9063     BB->addSuccessor(exitMBB);
9064 
9065     //  exitMBB:
9066     //   ...
9067     BB = exitMBB;
9068     BuildMI(*BB, BB->begin(), dl, TII->get(PPC::SRW),dest).addReg(TmpReg)
9069       .addReg(ShiftReg);
9070   } else if (MI->getOpcode() == PPC::FADDrtz) {
9071     // This pseudo performs an FADD with rounding mode temporarily forced
9072     // to round-to-zero.  We emit this via custom inserter since the FPSCR
9073     // is not modeled at the SelectionDAG level.
9074     unsigned Dest = MI->getOperand(0).getReg();
9075     unsigned Src1 = MI->getOperand(1).getReg();
9076     unsigned Src2 = MI->getOperand(2).getReg();
9077     DebugLoc dl   = MI->getDebugLoc();
9078 
9079     MachineRegisterInfo &RegInfo = F->getRegInfo();
9080     unsigned MFFSReg = RegInfo.createVirtualRegister(&PPC::F8RCRegClass);
9081 
9082     // Save FPSCR value.
9083     BuildMI(*BB, MI, dl, TII->get(PPC::MFFS), MFFSReg);
9084 
9085     // Set rounding mode to round-to-zero.
9086     BuildMI(*BB, MI, dl, TII->get(PPC::MTFSB1)).addImm(31);
9087     BuildMI(*BB, MI, dl, TII->get(PPC::MTFSB0)).addImm(30);
9088 
9089     // Perform addition.
9090     BuildMI(*BB, MI, dl, TII->get(PPC::FADD), Dest).addReg(Src1).addReg(Src2);
9091 
9092     // Restore FPSCR value.
9093     BuildMI(*BB, MI, dl, TII->get(PPC::MTFSFb)).addImm(1).addReg(MFFSReg);
9094   } else if (MI->getOpcode() == PPC::ANDIo_1_EQ_BIT ||
9095              MI->getOpcode() == PPC::ANDIo_1_GT_BIT ||
9096              MI->getOpcode() == PPC::ANDIo_1_EQ_BIT8 ||
9097              MI->getOpcode() == PPC::ANDIo_1_GT_BIT8) {
9098     unsigned Opcode = (MI->getOpcode() == PPC::ANDIo_1_EQ_BIT8 ||
9099                        MI->getOpcode() == PPC::ANDIo_1_GT_BIT8) ?
9100                       PPC::ANDIo8 : PPC::ANDIo;
9101     bool isEQ = (MI->getOpcode() == PPC::ANDIo_1_EQ_BIT ||
9102                  MI->getOpcode() == PPC::ANDIo_1_EQ_BIT8);
9103 
9104     MachineRegisterInfo &RegInfo = F->getRegInfo();
9105     unsigned Dest = RegInfo.createVirtualRegister(Opcode == PPC::ANDIo ?
9106                                                   &PPC::GPRCRegClass :
9107                                                   &PPC::G8RCRegClass);
9108 
9109     DebugLoc dl   = MI->getDebugLoc();
9110     BuildMI(*BB, MI, dl, TII->get(Opcode), Dest)
9111       .addReg(MI->getOperand(1).getReg()).addImm(1);
9112     BuildMI(*BB, MI, dl, TII->get(TargetOpcode::COPY),
9113             MI->getOperand(0).getReg())
9114       .addReg(isEQ ? PPC::CR0EQ : PPC::CR0GT);
9115   } else if (MI->getOpcode() == PPC::TCHECK_RET) {
9116     DebugLoc Dl = MI->getDebugLoc();
9117     MachineRegisterInfo &RegInfo = F->getRegInfo();
9118     unsigned CRReg = RegInfo.createVirtualRegister(&PPC::CRRCRegClass);
9119     BuildMI(*BB, MI, Dl, TII->get(PPC::TCHECK), CRReg);
9120     return BB;
9121   } else {
9122     llvm_unreachable("Unexpected instr type to insert");
9123   }
9124 
9125   MI->eraseFromParent();   // The pseudo instruction is gone now.
9126   return BB;
9127 }
9128 
9129 //===----------------------------------------------------------------------===//
9130 // Target Optimization Hooks
9131 //===----------------------------------------------------------------------===//
9132 
9133 static std::string getRecipOp(const char *Base, EVT VT) {
9134   std::string RecipOp(Base);
9135   if (VT.getScalarType() == MVT::f64)
9136     RecipOp += "d";
9137   else
9138     RecipOp += "f";
9139 
9140   if (VT.isVector())
9141     RecipOp = "vec-" + RecipOp;
9142 
9143   return RecipOp;
9144 }
9145 
9146 SDValue PPCTargetLowering::getRsqrtEstimate(SDValue Operand,
9147                                             DAGCombinerInfo &DCI,
9148                                             unsigned &RefinementSteps,
9149                                             bool &UseOneConstNR) const {
9150   EVT VT = Operand.getValueType();
9151   if ((VT == MVT::f32 && Subtarget.hasFRSQRTES()) ||
9152       (VT == MVT::f64 && Subtarget.hasFRSQRTE()) ||
9153       (VT == MVT::v4f32 && Subtarget.hasAltivec()) ||
9154       (VT == MVT::v2f64 && Subtarget.hasVSX()) ||
9155       (VT == MVT::v4f32 && Subtarget.hasQPX()) ||
9156       (VT == MVT::v4f64 && Subtarget.hasQPX())) {
9157     TargetRecip Recips = DCI.DAG.getTarget().Options.Reciprocals;
9158     std::string RecipOp = getRecipOp("sqrt", VT);
9159     if (!Recips.isEnabled(RecipOp))
9160       return SDValue();
9161 
9162     RefinementSteps = Recips.getRefinementSteps(RecipOp);
9163     UseOneConstNR = true;
9164     return DCI.DAG.getNode(PPCISD::FRSQRTE, SDLoc(Operand), VT, Operand);
9165   }
9166   return SDValue();
9167 }
9168 
9169 SDValue PPCTargetLowering::getRecipEstimate(SDValue Operand,
9170                                             DAGCombinerInfo &DCI,
9171                                             unsigned &RefinementSteps) const {
9172   EVT VT = Operand.getValueType();
9173   if ((VT == MVT::f32 && Subtarget.hasFRES()) ||
9174       (VT == MVT::f64 && Subtarget.hasFRE()) ||
9175       (VT == MVT::v4f32 && Subtarget.hasAltivec()) ||
9176       (VT == MVT::v2f64 && Subtarget.hasVSX()) ||
9177       (VT == MVT::v4f32 && Subtarget.hasQPX()) ||
9178       (VT == MVT::v4f64 && Subtarget.hasQPX())) {
9179     TargetRecip Recips = DCI.DAG.getTarget().Options.Reciprocals;
9180     std::string RecipOp = getRecipOp("div", VT);
9181     if (!Recips.isEnabled(RecipOp))
9182       return SDValue();
9183 
9184     RefinementSteps = Recips.getRefinementSteps(RecipOp);
9185     return DCI.DAG.getNode(PPCISD::FRE, SDLoc(Operand), VT, Operand);
9186   }
9187   return SDValue();
9188 }
9189 
9190 unsigned PPCTargetLowering::combineRepeatedFPDivisors() const {
9191   // Note: This functionality is used only when unsafe-fp-math is enabled, and
9192   // on cores with reciprocal estimates (which are used when unsafe-fp-math is
9193   // enabled for division), this functionality is redundant with the default
9194   // combiner logic (once the division -> reciprocal/multiply transformation
9195   // has taken place). As a result, this matters more for older cores than for
9196   // newer ones.
9197 
9198   // Combine multiple FDIVs with the same divisor into multiple FMULs by the
9199   // reciprocal if there are two or more FDIVs (for embedded cores with only
9200   // one FP pipeline) for three or more FDIVs (for generic OOO cores).
9201   switch (Subtarget.getDarwinDirective()) {
9202   default:
9203     return 3;
9204   case PPC::DIR_440:
9205   case PPC::DIR_A2:
9206   case PPC::DIR_E500mc:
9207   case PPC::DIR_E5500:
9208     return 2;
9209   }
9210 }
9211 
9212 // isConsecutiveLSLoc needs to work even if all adds have not yet been
9213 // collapsed, and so we need to look through chains of them.
9214 static void getBaseWithConstantOffset(SDValue Loc, SDValue &Base,
9215                                      int64_t& Offset, SelectionDAG &DAG) {
9216   if (DAG.isBaseWithConstantOffset(Loc)) {
9217     Base = Loc.getOperand(0);
9218     Offset += cast<ConstantSDNode>(Loc.getOperand(1))->getSExtValue();
9219 
9220     // The base might itself be a base plus an offset, and if so, accumulate
9221     // that as well.
9222     getBaseWithConstantOffset(Loc.getOperand(0), Base, Offset, DAG);
9223   }
9224 }
9225 
9226 static bool isConsecutiveLSLoc(SDValue Loc, EVT VT, LSBaseSDNode *Base,
9227                             unsigned Bytes, int Dist,
9228                             SelectionDAG &DAG) {
9229   if (VT.getSizeInBits() / 8 != Bytes)
9230     return false;
9231 
9232   SDValue BaseLoc = Base->getBasePtr();
9233   if (Loc.getOpcode() == ISD::FrameIndex) {
9234     if (BaseLoc.getOpcode() != ISD::FrameIndex)
9235       return false;
9236     const MachineFrameInfo *MFI = DAG.getMachineFunction().getFrameInfo();
9237     int FI  = cast<FrameIndexSDNode>(Loc)->getIndex();
9238     int BFI = cast<FrameIndexSDNode>(BaseLoc)->getIndex();
9239     int FS  = MFI->getObjectSize(FI);
9240     int BFS = MFI->getObjectSize(BFI);
9241     if (FS != BFS || FS != (int)Bytes) return false;
9242     return MFI->getObjectOffset(FI) == (MFI->getObjectOffset(BFI) + Dist*Bytes);
9243   }
9244 
9245   SDValue Base1 = Loc, Base2 = BaseLoc;
9246   int64_t Offset1 = 0, Offset2 = 0;
9247   getBaseWithConstantOffset(Loc, Base1, Offset1, DAG);
9248   getBaseWithConstantOffset(BaseLoc, Base2, Offset2, DAG);
9249   if (Base1 == Base2 && Offset1 == (Offset2 + Dist * Bytes))
9250     return true;
9251 
9252   const TargetLowering &TLI = DAG.getTargetLoweringInfo();
9253   const GlobalValue *GV1 = nullptr;
9254   const GlobalValue *GV2 = nullptr;
9255   Offset1 = 0;
9256   Offset2 = 0;
9257   bool isGA1 = TLI.isGAPlusOffset(Loc.getNode(), GV1, Offset1);
9258   bool isGA2 = TLI.isGAPlusOffset(BaseLoc.getNode(), GV2, Offset2);
9259   if (isGA1 && isGA2 && GV1 == GV2)
9260     return Offset1 == (Offset2 + Dist*Bytes);
9261   return false;
9262 }
9263 
9264 // Like SelectionDAG::isConsecutiveLoad, but also works for stores, and does
9265 // not enforce equality of the chain operands.
9266 static bool isConsecutiveLS(SDNode *N, LSBaseSDNode *Base,
9267                             unsigned Bytes, int Dist,
9268                             SelectionDAG &DAG) {
9269   if (LSBaseSDNode *LS = dyn_cast<LSBaseSDNode>(N)) {
9270     EVT VT = LS->getMemoryVT();
9271     SDValue Loc = LS->getBasePtr();
9272     return isConsecutiveLSLoc(Loc, VT, Base, Bytes, Dist, DAG);
9273   }
9274 
9275   if (N->getOpcode() == ISD::INTRINSIC_W_CHAIN) {
9276     EVT VT;
9277     switch (cast<ConstantSDNode>(N->getOperand(1))->getZExtValue()) {
9278     default: return false;
9279     case Intrinsic::ppc_qpx_qvlfd:
9280     case Intrinsic::ppc_qpx_qvlfda:
9281       VT = MVT::v4f64;
9282       break;
9283     case Intrinsic::ppc_qpx_qvlfs:
9284     case Intrinsic::ppc_qpx_qvlfsa:
9285       VT = MVT::v4f32;
9286       break;
9287     case Intrinsic::ppc_qpx_qvlfcd:
9288     case Intrinsic::ppc_qpx_qvlfcda:
9289       VT = MVT::v2f64;
9290       break;
9291     case Intrinsic::ppc_qpx_qvlfcs:
9292     case Intrinsic::ppc_qpx_qvlfcsa:
9293       VT = MVT::v2f32;
9294       break;
9295     case Intrinsic::ppc_qpx_qvlfiwa:
9296     case Intrinsic::ppc_qpx_qvlfiwz:
9297     case Intrinsic::ppc_altivec_lvx:
9298     case Intrinsic::ppc_altivec_lvxl:
9299     case Intrinsic::ppc_vsx_lxvw4x:
9300       VT = MVT::v4i32;
9301       break;
9302     case Intrinsic::ppc_vsx_lxvd2x:
9303       VT = MVT::v2f64;
9304       break;
9305     case Intrinsic::ppc_altivec_lvebx:
9306       VT = MVT::i8;
9307       break;
9308     case Intrinsic::ppc_altivec_lvehx:
9309       VT = MVT::i16;
9310       break;
9311     case Intrinsic::ppc_altivec_lvewx:
9312       VT = MVT::i32;
9313       break;
9314     }
9315 
9316     return isConsecutiveLSLoc(N->getOperand(2), VT, Base, Bytes, Dist, DAG);
9317   }
9318 
9319   if (N->getOpcode() == ISD::INTRINSIC_VOID) {
9320     EVT VT;
9321     switch (cast<ConstantSDNode>(N->getOperand(1))->getZExtValue()) {
9322     default: return false;
9323     case Intrinsic::ppc_qpx_qvstfd:
9324     case Intrinsic::ppc_qpx_qvstfda:
9325       VT = MVT::v4f64;
9326       break;
9327     case Intrinsic::ppc_qpx_qvstfs:
9328     case Intrinsic::ppc_qpx_qvstfsa:
9329       VT = MVT::v4f32;
9330       break;
9331     case Intrinsic::ppc_qpx_qvstfcd:
9332     case Intrinsic::ppc_qpx_qvstfcda:
9333       VT = MVT::v2f64;
9334       break;
9335     case Intrinsic::ppc_qpx_qvstfcs:
9336     case Intrinsic::ppc_qpx_qvstfcsa:
9337       VT = MVT::v2f32;
9338       break;
9339     case Intrinsic::ppc_qpx_qvstfiw:
9340     case Intrinsic::ppc_qpx_qvstfiwa:
9341     case Intrinsic::ppc_altivec_stvx:
9342     case Intrinsic::ppc_altivec_stvxl:
9343     case Intrinsic::ppc_vsx_stxvw4x:
9344       VT = MVT::v4i32;
9345       break;
9346     case Intrinsic::ppc_vsx_stxvd2x:
9347       VT = MVT::v2f64;
9348       break;
9349     case Intrinsic::ppc_altivec_stvebx:
9350       VT = MVT::i8;
9351       break;
9352     case Intrinsic::ppc_altivec_stvehx:
9353       VT = MVT::i16;
9354       break;
9355     case Intrinsic::ppc_altivec_stvewx:
9356       VT = MVT::i32;
9357       break;
9358     }
9359 
9360     return isConsecutiveLSLoc(N->getOperand(3), VT, Base, Bytes, Dist, DAG);
9361   }
9362 
9363   return false;
9364 }
9365 
9366 // Return true is there is a nearyby consecutive load to the one provided
9367 // (regardless of alignment). We search up and down the chain, looking though
9368 // token factors and other loads (but nothing else). As a result, a true result
9369 // indicates that it is safe to create a new consecutive load adjacent to the
9370 // load provided.
9371 static bool findConsecutiveLoad(LoadSDNode *LD, SelectionDAG &DAG) {
9372   SDValue Chain = LD->getChain();
9373   EVT VT = LD->getMemoryVT();
9374 
9375   SmallSet<SDNode *, 16> LoadRoots;
9376   SmallVector<SDNode *, 8> Queue(1, Chain.getNode());
9377   SmallSet<SDNode *, 16> Visited;
9378 
9379   // First, search up the chain, branching to follow all token-factor operands.
9380   // If we find a consecutive load, then we're done, otherwise, record all
9381   // nodes just above the top-level loads and token factors.
9382   while (!Queue.empty()) {
9383     SDNode *ChainNext = Queue.pop_back_val();
9384     if (!Visited.insert(ChainNext).second)
9385       continue;
9386 
9387     if (MemSDNode *ChainLD = dyn_cast<MemSDNode>(ChainNext)) {
9388       if (isConsecutiveLS(ChainLD, LD, VT.getStoreSize(), 1, DAG))
9389         return true;
9390 
9391       if (!Visited.count(ChainLD->getChain().getNode()))
9392         Queue.push_back(ChainLD->getChain().getNode());
9393     } else if (ChainNext->getOpcode() == ISD::TokenFactor) {
9394       for (const SDUse &O : ChainNext->ops())
9395         if (!Visited.count(O.getNode()))
9396           Queue.push_back(O.getNode());
9397     } else
9398       LoadRoots.insert(ChainNext);
9399   }
9400 
9401   // Second, search down the chain, starting from the top-level nodes recorded
9402   // in the first phase. These top-level nodes are the nodes just above all
9403   // loads and token factors. Starting with their uses, recursively look though
9404   // all loads (just the chain uses) and token factors to find a consecutive
9405   // load.
9406   Visited.clear();
9407   Queue.clear();
9408 
9409   for (SmallSet<SDNode *, 16>::iterator I = LoadRoots.begin(),
9410        IE = LoadRoots.end(); I != IE; ++I) {
9411     Queue.push_back(*I);
9412 
9413     while (!Queue.empty()) {
9414       SDNode *LoadRoot = Queue.pop_back_val();
9415       if (!Visited.insert(LoadRoot).second)
9416         continue;
9417 
9418       if (MemSDNode *ChainLD = dyn_cast<MemSDNode>(LoadRoot))
9419         if (isConsecutiveLS(ChainLD, LD, VT.getStoreSize(), 1, DAG))
9420           return true;
9421 
9422       for (SDNode::use_iterator UI = LoadRoot->use_begin(),
9423            UE = LoadRoot->use_end(); UI != UE; ++UI)
9424         if (((isa<MemSDNode>(*UI) &&
9425             cast<MemSDNode>(*UI)->getChain().getNode() == LoadRoot) ||
9426             UI->getOpcode() == ISD::TokenFactor) && !Visited.count(*UI))
9427           Queue.push_back(*UI);
9428     }
9429   }
9430 
9431   return false;
9432 }
9433 
9434 SDValue PPCTargetLowering::DAGCombineTruncBoolExt(SDNode *N,
9435                                                   DAGCombinerInfo &DCI) const {
9436   SelectionDAG &DAG = DCI.DAG;
9437   SDLoc dl(N);
9438 
9439   assert(Subtarget.useCRBits() && "Expecting to be tracking CR bits");
9440   // If we're tracking CR bits, we need to be careful that we don't have:
9441   //   trunc(binary-ops(zext(x), zext(y)))
9442   // or
9443   //   trunc(binary-ops(binary-ops(zext(x), zext(y)), ...)
9444   // such that we're unnecessarily moving things into GPRs when it would be
9445   // better to keep them in CR bits.
9446 
9447   // Note that trunc here can be an actual i1 trunc, or can be the effective
9448   // truncation that comes from a setcc or select_cc.
9449   if (N->getOpcode() == ISD::TRUNCATE &&
9450       N->getValueType(0) != MVT::i1)
9451     return SDValue();
9452 
9453   if (N->getOperand(0).getValueType() != MVT::i32 &&
9454       N->getOperand(0).getValueType() != MVT::i64)
9455     return SDValue();
9456 
9457   if (N->getOpcode() == ISD::SETCC ||
9458       N->getOpcode() == ISD::SELECT_CC) {
9459     // If we're looking at a comparison, then we need to make sure that the
9460     // high bits (all except for the first) don't matter the result.
9461     ISD::CondCode CC =
9462       cast<CondCodeSDNode>(N->getOperand(
9463         N->getOpcode() == ISD::SETCC ? 2 : 4))->get();
9464     unsigned OpBits = N->getOperand(0).getValueSizeInBits();
9465 
9466     if (ISD::isSignedIntSetCC(CC)) {
9467       if (DAG.ComputeNumSignBits(N->getOperand(0)) != OpBits ||
9468           DAG.ComputeNumSignBits(N->getOperand(1)) != OpBits)
9469         return SDValue();
9470     } else if (ISD::isUnsignedIntSetCC(CC)) {
9471       if (!DAG.MaskedValueIsZero(N->getOperand(0),
9472                                  APInt::getHighBitsSet(OpBits, OpBits-1)) ||
9473           !DAG.MaskedValueIsZero(N->getOperand(1),
9474                                  APInt::getHighBitsSet(OpBits, OpBits-1)))
9475         return SDValue();
9476     } else {
9477       // This is neither a signed nor an unsigned comparison, just make sure
9478       // that the high bits are equal.
9479       APInt Op1Zero, Op1One;
9480       APInt Op2Zero, Op2One;
9481       DAG.computeKnownBits(N->getOperand(0), Op1Zero, Op1One);
9482       DAG.computeKnownBits(N->getOperand(1), Op2Zero, Op2One);
9483 
9484       // We don't really care about what is known about the first bit (if
9485       // anything), so clear it in all masks prior to comparing them.
9486       Op1Zero.clearBit(0); Op1One.clearBit(0);
9487       Op2Zero.clearBit(0); Op2One.clearBit(0);
9488 
9489       if (Op1Zero != Op2Zero || Op1One != Op2One)
9490         return SDValue();
9491     }
9492   }
9493 
9494   // We now know that the higher-order bits are irrelevant, we just need to
9495   // make sure that all of the intermediate operations are bit operations, and
9496   // all inputs are extensions.
9497   if (N->getOperand(0).getOpcode() != ISD::AND &&
9498       N->getOperand(0).getOpcode() != ISD::OR  &&
9499       N->getOperand(0).getOpcode() != ISD::XOR &&
9500       N->getOperand(0).getOpcode() != ISD::SELECT &&
9501       N->getOperand(0).getOpcode() != ISD::SELECT_CC &&
9502       N->getOperand(0).getOpcode() != ISD::TRUNCATE &&
9503       N->getOperand(0).getOpcode() != ISD::SIGN_EXTEND &&
9504       N->getOperand(0).getOpcode() != ISD::ZERO_EXTEND &&
9505       N->getOperand(0).getOpcode() != ISD::ANY_EXTEND)
9506     return SDValue();
9507 
9508   if ((N->getOpcode() == ISD::SETCC || N->getOpcode() == ISD::SELECT_CC) &&
9509       N->getOperand(1).getOpcode() != ISD::AND &&
9510       N->getOperand(1).getOpcode() != ISD::OR  &&
9511       N->getOperand(1).getOpcode() != ISD::XOR &&
9512       N->getOperand(1).getOpcode() != ISD::SELECT &&
9513       N->getOperand(1).getOpcode() != ISD::SELECT_CC &&
9514       N->getOperand(1).getOpcode() != ISD::TRUNCATE &&
9515       N->getOperand(1).getOpcode() != ISD::SIGN_EXTEND &&
9516       N->getOperand(1).getOpcode() != ISD::ZERO_EXTEND &&
9517       N->getOperand(1).getOpcode() != ISD::ANY_EXTEND)
9518     return SDValue();
9519 
9520   SmallVector<SDValue, 4> Inputs;
9521   SmallVector<SDValue, 8> BinOps, PromOps;
9522   SmallPtrSet<SDNode *, 16> Visited;
9523 
9524   for (unsigned i = 0; i < 2; ++i) {
9525     if (((N->getOperand(i).getOpcode() == ISD::SIGN_EXTEND ||
9526           N->getOperand(i).getOpcode() == ISD::ZERO_EXTEND ||
9527           N->getOperand(i).getOpcode() == ISD::ANY_EXTEND) &&
9528           N->getOperand(i).getOperand(0).getValueType() == MVT::i1) ||
9529         isa<ConstantSDNode>(N->getOperand(i)))
9530       Inputs.push_back(N->getOperand(i));
9531     else
9532       BinOps.push_back(N->getOperand(i));
9533 
9534     if (N->getOpcode() == ISD::TRUNCATE)
9535       break;
9536   }
9537 
9538   // Visit all inputs, collect all binary operations (and, or, xor and
9539   // select) that are all fed by extensions.
9540   while (!BinOps.empty()) {
9541     SDValue BinOp = BinOps.back();
9542     BinOps.pop_back();
9543 
9544     if (!Visited.insert(BinOp.getNode()).second)
9545       continue;
9546 
9547     PromOps.push_back(BinOp);
9548 
9549     for (unsigned i = 0, ie = BinOp.getNumOperands(); i != ie; ++i) {
9550       // The condition of the select is not promoted.
9551       if (BinOp.getOpcode() == ISD::SELECT && i == 0)
9552         continue;
9553       if (BinOp.getOpcode() == ISD::SELECT_CC && i != 2 && i != 3)
9554         continue;
9555 
9556       if (((BinOp.getOperand(i).getOpcode() == ISD::SIGN_EXTEND ||
9557             BinOp.getOperand(i).getOpcode() == ISD::ZERO_EXTEND ||
9558             BinOp.getOperand(i).getOpcode() == ISD::ANY_EXTEND) &&
9559            BinOp.getOperand(i).getOperand(0).getValueType() == MVT::i1) ||
9560           isa<ConstantSDNode>(BinOp.getOperand(i))) {
9561         Inputs.push_back(BinOp.getOperand(i));
9562       } else if (BinOp.getOperand(i).getOpcode() == ISD::AND ||
9563                  BinOp.getOperand(i).getOpcode() == ISD::OR  ||
9564                  BinOp.getOperand(i).getOpcode() == ISD::XOR ||
9565                  BinOp.getOperand(i).getOpcode() == ISD::SELECT ||
9566                  BinOp.getOperand(i).getOpcode() == ISD::SELECT_CC ||
9567                  BinOp.getOperand(i).getOpcode() == ISD::TRUNCATE ||
9568                  BinOp.getOperand(i).getOpcode() == ISD::SIGN_EXTEND ||
9569                  BinOp.getOperand(i).getOpcode() == ISD::ZERO_EXTEND ||
9570                  BinOp.getOperand(i).getOpcode() == ISD::ANY_EXTEND) {
9571         BinOps.push_back(BinOp.getOperand(i));
9572       } else {
9573         // We have an input that is not an extension or another binary
9574         // operation; we'll abort this transformation.
9575         return SDValue();
9576       }
9577     }
9578   }
9579 
9580   // Make sure that this is a self-contained cluster of operations (which
9581   // is not quite the same thing as saying that everything has only one
9582   // use).
9583   for (unsigned i = 0, ie = Inputs.size(); i != ie; ++i) {
9584     if (isa<ConstantSDNode>(Inputs[i]))
9585       continue;
9586 
9587     for (SDNode::use_iterator UI = Inputs[i].getNode()->use_begin(),
9588                               UE = Inputs[i].getNode()->use_end();
9589          UI != UE; ++UI) {
9590       SDNode *User = *UI;
9591       if (User != N && !Visited.count(User))
9592         return SDValue();
9593 
9594       // Make sure that we're not going to promote the non-output-value
9595       // operand(s) or SELECT or SELECT_CC.
9596       // FIXME: Although we could sometimes handle this, and it does occur in
9597       // practice that one of the condition inputs to the select is also one of
9598       // the outputs, we currently can't deal with this.
9599       if (User->getOpcode() == ISD::SELECT) {
9600         if (User->getOperand(0) == Inputs[i])
9601           return SDValue();
9602       } else if (User->getOpcode() == ISD::SELECT_CC) {
9603         if (User->getOperand(0) == Inputs[i] ||
9604             User->getOperand(1) == Inputs[i])
9605           return SDValue();
9606       }
9607     }
9608   }
9609 
9610   for (unsigned i = 0, ie = PromOps.size(); i != ie; ++i) {
9611     for (SDNode::use_iterator UI = PromOps[i].getNode()->use_begin(),
9612                               UE = PromOps[i].getNode()->use_end();
9613          UI != UE; ++UI) {
9614       SDNode *User = *UI;
9615       if (User != N && !Visited.count(User))
9616         return SDValue();
9617 
9618       // Make sure that we're not going to promote the non-output-value
9619       // operand(s) or SELECT or SELECT_CC.
9620       // FIXME: Although we could sometimes handle this, and it does occur in
9621       // practice that one of the condition inputs to the select is also one of
9622       // the outputs, we currently can't deal with this.
9623       if (User->getOpcode() == ISD::SELECT) {
9624         if (User->getOperand(0) == PromOps[i])
9625           return SDValue();
9626       } else if (User->getOpcode() == ISD::SELECT_CC) {
9627         if (User->getOperand(0) == PromOps[i] ||
9628             User->getOperand(1) == PromOps[i])
9629           return SDValue();
9630       }
9631     }
9632   }
9633 
9634   // Replace all inputs with the extension operand.
9635   for (unsigned i = 0, ie = Inputs.size(); i != ie; ++i) {
9636     // Constants may have users outside the cluster of to-be-promoted nodes,
9637     // and so we need to replace those as we do the promotions.
9638     if (isa<ConstantSDNode>(Inputs[i]))
9639       continue;
9640     else
9641       DAG.ReplaceAllUsesOfValueWith(Inputs[i], Inputs[i].getOperand(0));
9642   }
9643 
9644   // Replace all operations (these are all the same, but have a different
9645   // (i1) return type). DAG.getNode will validate that the types of
9646   // a binary operator match, so go through the list in reverse so that
9647   // we've likely promoted both operands first. Any intermediate truncations or
9648   // extensions disappear.
9649   while (!PromOps.empty()) {
9650     SDValue PromOp = PromOps.back();
9651     PromOps.pop_back();
9652 
9653     if (PromOp.getOpcode() == ISD::TRUNCATE ||
9654         PromOp.getOpcode() == ISD::SIGN_EXTEND ||
9655         PromOp.getOpcode() == ISD::ZERO_EXTEND ||
9656         PromOp.getOpcode() == ISD::ANY_EXTEND) {
9657       if (!isa<ConstantSDNode>(PromOp.getOperand(0)) &&
9658           PromOp.getOperand(0).getValueType() != MVT::i1) {
9659         // The operand is not yet ready (see comment below).
9660         PromOps.insert(PromOps.begin(), PromOp);
9661         continue;
9662       }
9663 
9664       SDValue RepValue = PromOp.getOperand(0);
9665       if (isa<ConstantSDNode>(RepValue))
9666         RepValue = DAG.getNode(ISD::TRUNCATE, dl, MVT::i1, RepValue);
9667 
9668       DAG.ReplaceAllUsesOfValueWith(PromOp, RepValue);
9669       continue;
9670     }
9671 
9672     unsigned C;
9673     switch (PromOp.getOpcode()) {
9674     default:             C = 0; break;
9675     case ISD::SELECT:    C = 1; break;
9676     case ISD::SELECT_CC: C = 2; break;
9677     }
9678 
9679     if ((!isa<ConstantSDNode>(PromOp.getOperand(C)) &&
9680          PromOp.getOperand(C).getValueType() != MVT::i1) ||
9681         (!isa<ConstantSDNode>(PromOp.getOperand(C+1)) &&
9682          PromOp.getOperand(C+1).getValueType() != MVT::i1)) {
9683       // The to-be-promoted operands of this node have not yet been
9684       // promoted (this should be rare because we're going through the
9685       // list backward, but if one of the operands has several users in
9686       // this cluster of to-be-promoted nodes, it is possible).
9687       PromOps.insert(PromOps.begin(), PromOp);
9688       continue;
9689     }
9690 
9691     SmallVector<SDValue, 3> Ops(PromOp.getNode()->op_begin(),
9692                                 PromOp.getNode()->op_end());
9693 
9694     // If there are any constant inputs, make sure they're replaced now.
9695     for (unsigned i = 0; i < 2; ++i)
9696       if (isa<ConstantSDNode>(Ops[C+i]))
9697         Ops[C+i] = DAG.getNode(ISD::TRUNCATE, dl, MVT::i1, Ops[C+i]);
9698 
9699     DAG.ReplaceAllUsesOfValueWith(PromOp,
9700       DAG.getNode(PromOp.getOpcode(), dl, MVT::i1, Ops));
9701   }
9702 
9703   // Now we're left with the initial truncation itself.
9704   if (N->getOpcode() == ISD::TRUNCATE)
9705     return N->getOperand(0);
9706 
9707   // Otherwise, this is a comparison. The operands to be compared have just
9708   // changed type (to i1), but everything else is the same.
9709   return SDValue(N, 0);
9710 }
9711 
9712 SDValue PPCTargetLowering::DAGCombineExtBoolTrunc(SDNode *N,
9713                                                   DAGCombinerInfo &DCI) const {
9714   SelectionDAG &DAG = DCI.DAG;
9715   SDLoc dl(N);
9716 
9717   // If we're tracking CR bits, we need to be careful that we don't have:
9718   //   zext(binary-ops(trunc(x), trunc(y)))
9719   // or
9720   //   zext(binary-ops(binary-ops(trunc(x), trunc(y)), ...)
9721   // such that we're unnecessarily moving things into CR bits that can more
9722   // efficiently stay in GPRs. Note that if we're not certain that the high
9723   // bits are set as required by the final extension, we still may need to do
9724   // some masking to get the proper behavior.
9725 
9726   // This same functionality is important on PPC64 when dealing with
9727   // 32-to-64-bit extensions; these occur often when 32-bit values are used as
9728   // the return values of functions. Because it is so similar, it is handled
9729   // here as well.
9730 
9731   if (N->getValueType(0) != MVT::i32 &&
9732       N->getValueType(0) != MVT::i64)
9733     return SDValue();
9734 
9735   if (!((N->getOperand(0).getValueType() == MVT::i1 && Subtarget.useCRBits()) ||
9736         (N->getOperand(0).getValueType() == MVT::i32 && Subtarget.isPPC64())))
9737     return SDValue();
9738 
9739   if (N->getOperand(0).getOpcode() != ISD::AND &&
9740       N->getOperand(0).getOpcode() != ISD::OR  &&
9741       N->getOperand(0).getOpcode() != ISD::XOR &&
9742       N->getOperand(0).getOpcode() != ISD::SELECT &&
9743       N->getOperand(0).getOpcode() != ISD::SELECT_CC)
9744     return SDValue();
9745 
9746   SmallVector<SDValue, 4> Inputs;
9747   SmallVector<SDValue, 8> BinOps(1, N->getOperand(0)), PromOps;
9748   SmallPtrSet<SDNode *, 16> Visited;
9749 
9750   // Visit all inputs, collect all binary operations (and, or, xor and
9751   // select) that are all fed by truncations.
9752   while (!BinOps.empty()) {
9753     SDValue BinOp = BinOps.back();
9754     BinOps.pop_back();
9755 
9756     if (!Visited.insert(BinOp.getNode()).second)
9757       continue;
9758 
9759     PromOps.push_back(BinOp);
9760 
9761     for (unsigned i = 0, ie = BinOp.getNumOperands(); i != ie; ++i) {
9762       // The condition of the select is not promoted.
9763       if (BinOp.getOpcode() == ISD::SELECT && i == 0)
9764         continue;
9765       if (BinOp.getOpcode() == ISD::SELECT_CC && i != 2 && i != 3)
9766         continue;
9767 
9768       if (BinOp.getOperand(i).getOpcode() == ISD::TRUNCATE ||
9769           isa<ConstantSDNode>(BinOp.getOperand(i))) {
9770         Inputs.push_back(BinOp.getOperand(i));
9771       } else if (BinOp.getOperand(i).getOpcode() == ISD::AND ||
9772                  BinOp.getOperand(i).getOpcode() == ISD::OR  ||
9773                  BinOp.getOperand(i).getOpcode() == ISD::XOR ||
9774                  BinOp.getOperand(i).getOpcode() == ISD::SELECT ||
9775                  BinOp.getOperand(i).getOpcode() == ISD::SELECT_CC) {
9776         BinOps.push_back(BinOp.getOperand(i));
9777       } else {
9778         // We have an input that is not a truncation or another binary
9779         // operation; we'll abort this transformation.
9780         return SDValue();
9781       }
9782     }
9783   }
9784 
9785   // The operands of a select that must be truncated when the select is
9786   // promoted because the operand is actually part of the to-be-promoted set.
9787   DenseMap<SDNode *, EVT> SelectTruncOp[2];
9788 
9789   // Make sure that this is a self-contained cluster of operations (which
9790   // is not quite the same thing as saying that everything has only one
9791   // use).
9792   for (unsigned i = 0, ie = Inputs.size(); i != ie; ++i) {
9793     if (isa<ConstantSDNode>(Inputs[i]))
9794       continue;
9795 
9796     for (SDNode::use_iterator UI = Inputs[i].getNode()->use_begin(),
9797                               UE = Inputs[i].getNode()->use_end();
9798          UI != UE; ++UI) {
9799       SDNode *User = *UI;
9800       if (User != N && !Visited.count(User))
9801         return SDValue();
9802 
9803       // If we're going to promote the non-output-value operand(s) or SELECT or
9804       // SELECT_CC, record them for truncation.
9805       if (User->getOpcode() == ISD::SELECT) {
9806         if (User->getOperand(0) == Inputs[i])
9807           SelectTruncOp[0].insert(std::make_pair(User,
9808                                     User->getOperand(0).getValueType()));
9809       } else if (User->getOpcode() == ISD::SELECT_CC) {
9810         if (User->getOperand(0) == Inputs[i])
9811           SelectTruncOp[0].insert(std::make_pair(User,
9812                                     User->getOperand(0).getValueType()));
9813         if (User->getOperand(1) == Inputs[i])
9814           SelectTruncOp[1].insert(std::make_pair(User,
9815                                     User->getOperand(1).getValueType()));
9816       }
9817     }
9818   }
9819 
9820   for (unsigned i = 0, ie = PromOps.size(); i != ie; ++i) {
9821     for (SDNode::use_iterator UI = PromOps[i].getNode()->use_begin(),
9822                               UE = PromOps[i].getNode()->use_end();
9823          UI != UE; ++UI) {
9824       SDNode *User = *UI;
9825       if (User != N && !Visited.count(User))
9826         return SDValue();
9827 
9828       // If we're going to promote the non-output-value operand(s) or SELECT or
9829       // SELECT_CC, record them for truncation.
9830       if (User->getOpcode() == ISD::SELECT) {
9831         if (User->getOperand(0) == PromOps[i])
9832           SelectTruncOp[0].insert(std::make_pair(User,
9833                                     User->getOperand(0).getValueType()));
9834       } else if (User->getOpcode() == ISD::SELECT_CC) {
9835         if (User->getOperand(0) == PromOps[i])
9836           SelectTruncOp[0].insert(std::make_pair(User,
9837                                     User->getOperand(0).getValueType()));
9838         if (User->getOperand(1) == PromOps[i])
9839           SelectTruncOp[1].insert(std::make_pair(User,
9840                                     User->getOperand(1).getValueType()));
9841       }
9842     }
9843   }
9844 
9845   unsigned PromBits = N->getOperand(0).getValueSizeInBits();
9846   bool ReallyNeedsExt = false;
9847   if (N->getOpcode() != ISD::ANY_EXTEND) {
9848     // If all of the inputs are not already sign/zero extended, then
9849     // we'll still need to do that at the end.
9850     for (unsigned i = 0, ie = Inputs.size(); i != ie; ++i) {
9851       if (isa<ConstantSDNode>(Inputs[i]))
9852         continue;
9853 
9854       unsigned OpBits =
9855         Inputs[i].getOperand(0).getValueSizeInBits();
9856       assert(PromBits < OpBits && "Truncation not to a smaller bit count?");
9857 
9858       if ((N->getOpcode() == ISD::ZERO_EXTEND &&
9859            !DAG.MaskedValueIsZero(Inputs[i].getOperand(0),
9860                                   APInt::getHighBitsSet(OpBits,
9861                                                         OpBits-PromBits))) ||
9862           (N->getOpcode() == ISD::SIGN_EXTEND &&
9863            DAG.ComputeNumSignBits(Inputs[i].getOperand(0)) <
9864              (OpBits-(PromBits-1)))) {
9865         ReallyNeedsExt = true;
9866         break;
9867       }
9868     }
9869   }
9870 
9871   // Replace all inputs, either with the truncation operand, or a
9872   // truncation or extension to the final output type.
9873   for (unsigned i = 0, ie = Inputs.size(); i != ie; ++i) {
9874     // Constant inputs need to be replaced with the to-be-promoted nodes that
9875     // use them because they might have users outside of the cluster of
9876     // promoted nodes.
9877     if (isa<ConstantSDNode>(Inputs[i]))
9878       continue;
9879 
9880     SDValue InSrc = Inputs[i].getOperand(0);
9881     if (Inputs[i].getValueType() == N->getValueType(0))
9882       DAG.ReplaceAllUsesOfValueWith(Inputs[i], InSrc);
9883     else if (N->getOpcode() == ISD::SIGN_EXTEND)
9884       DAG.ReplaceAllUsesOfValueWith(Inputs[i],
9885         DAG.getSExtOrTrunc(InSrc, dl, N->getValueType(0)));
9886     else if (N->getOpcode() == ISD::ZERO_EXTEND)
9887       DAG.ReplaceAllUsesOfValueWith(Inputs[i],
9888         DAG.getZExtOrTrunc(InSrc, dl, N->getValueType(0)));
9889     else
9890       DAG.ReplaceAllUsesOfValueWith(Inputs[i],
9891         DAG.getAnyExtOrTrunc(InSrc, dl, N->getValueType(0)));
9892   }
9893 
9894   // Replace all operations (these are all the same, but have a different
9895   // (promoted) return type). DAG.getNode will validate that the types of
9896   // a binary operator match, so go through the list in reverse so that
9897   // we've likely promoted both operands first.
9898   while (!PromOps.empty()) {
9899     SDValue PromOp = PromOps.back();
9900     PromOps.pop_back();
9901 
9902     unsigned C;
9903     switch (PromOp.getOpcode()) {
9904     default:             C = 0; break;
9905     case ISD::SELECT:    C = 1; break;
9906     case ISD::SELECT_CC: C = 2; break;
9907     }
9908 
9909     if ((!isa<ConstantSDNode>(PromOp.getOperand(C)) &&
9910          PromOp.getOperand(C).getValueType() != N->getValueType(0)) ||
9911         (!isa<ConstantSDNode>(PromOp.getOperand(C+1)) &&
9912          PromOp.getOperand(C+1).getValueType() != N->getValueType(0))) {
9913       // The to-be-promoted operands of this node have not yet been
9914       // promoted (this should be rare because we're going through the
9915       // list backward, but if one of the operands has several users in
9916       // this cluster of to-be-promoted nodes, it is possible).
9917       PromOps.insert(PromOps.begin(), PromOp);
9918       continue;
9919     }
9920 
9921     // For SELECT and SELECT_CC nodes, we do a similar check for any
9922     // to-be-promoted comparison inputs.
9923     if (PromOp.getOpcode() == ISD::SELECT ||
9924         PromOp.getOpcode() == ISD::SELECT_CC) {
9925       if ((SelectTruncOp[0].count(PromOp.getNode()) &&
9926            PromOp.getOperand(0).getValueType() != N->getValueType(0)) ||
9927           (SelectTruncOp[1].count(PromOp.getNode()) &&
9928            PromOp.getOperand(1).getValueType() != N->getValueType(0))) {
9929         PromOps.insert(PromOps.begin(), PromOp);
9930         continue;
9931       }
9932     }
9933 
9934     SmallVector<SDValue, 3> Ops(PromOp.getNode()->op_begin(),
9935                                 PromOp.getNode()->op_end());
9936 
9937     // If this node has constant inputs, then they'll need to be promoted here.
9938     for (unsigned i = 0; i < 2; ++i) {
9939       if (!isa<ConstantSDNode>(Ops[C+i]))
9940         continue;
9941       if (Ops[C+i].getValueType() == N->getValueType(0))
9942         continue;
9943 
9944       if (N->getOpcode() == ISD::SIGN_EXTEND)
9945         Ops[C+i] = DAG.getSExtOrTrunc(Ops[C+i], dl, N->getValueType(0));
9946       else if (N->getOpcode() == ISD::ZERO_EXTEND)
9947         Ops[C+i] = DAG.getZExtOrTrunc(Ops[C+i], dl, N->getValueType(0));
9948       else
9949         Ops[C+i] = DAG.getAnyExtOrTrunc(Ops[C+i], dl, N->getValueType(0));
9950     }
9951 
9952     // If we've promoted the comparison inputs of a SELECT or SELECT_CC,
9953     // truncate them again to the original value type.
9954     if (PromOp.getOpcode() == ISD::SELECT ||
9955         PromOp.getOpcode() == ISD::SELECT_CC) {
9956       auto SI0 = SelectTruncOp[0].find(PromOp.getNode());
9957       if (SI0 != SelectTruncOp[0].end())
9958         Ops[0] = DAG.getNode(ISD::TRUNCATE, dl, SI0->second, Ops[0]);
9959       auto SI1 = SelectTruncOp[1].find(PromOp.getNode());
9960       if (SI1 != SelectTruncOp[1].end())
9961         Ops[1] = DAG.getNode(ISD::TRUNCATE, dl, SI1->second, Ops[1]);
9962     }
9963 
9964     DAG.ReplaceAllUsesOfValueWith(PromOp,
9965       DAG.getNode(PromOp.getOpcode(), dl, N->getValueType(0), Ops));
9966   }
9967 
9968   // Now we're left with the initial extension itself.
9969   if (!ReallyNeedsExt)
9970     return N->getOperand(0);
9971 
9972   // To zero extend, just mask off everything except for the first bit (in the
9973   // i1 case).
9974   if (N->getOpcode() == ISD::ZERO_EXTEND)
9975     return DAG.getNode(ISD::AND, dl, N->getValueType(0), N->getOperand(0),
9976                        DAG.getConstant(APInt::getLowBitsSet(
9977                                          N->getValueSizeInBits(0), PromBits),
9978                                        dl, N->getValueType(0)));
9979 
9980   assert(N->getOpcode() == ISD::SIGN_EXTEND &&
9981          "Invalid extension type");
9982   EVT ShiftAmountTy = getShiftAmountTy(N->getValueType(0), DAG.getDataLayout());
9983   SDValue ShiftCst =
9984       DAG.getConstant(N->getValueSizeInBits(0) - PromBits, dl, ShiftAmountTy);
9985   return DAG.getNode(
9986       ISD::SRA, dl, N->getValueType(0),
9987       DAG.getNode(ISD::SHL, dl, N->getValueType(0), N->getOperand(0), ShiftCst),
9988       ShiftCst);
9989 }
9990 
9991 SDValue PPCTargetLowering::combineFPToIntToFP(SDNode *N,
9992                                               DAGCombinerInfo &DCI) const {
9993   assert((N->getOpcode() == ISD::SINT_TO_FP ||
9994           N->getOpcode() == ISD::UINT_TO_FP) &&
9995          "Need an int -> FP conversion node here");
9996 
9997   if (!Subtarget.has64BitSupport())
9998     return SDValue();
9999 
10000   SelectionDAG &DAG = DCI.DAG;
10001   SDLoc dl(N);
10002   SDValue Op(N, 0);
10003 
10004   // Don't handle ppc_fp128 here or i1 conversions.
10005   if (Op.getValueType() != MVT::f32 && Op.getValueType() != MVT::f64)
10006     return SDValue();
10007   if (Op.getOperand(0).getValueType() == MVT::i1)
10008     return SDValue();
10009 
10010   // For i32 intermediate values, unfortunately, the conversion functions
10011   // leave the upper 32 bits of the value are undefined. Within the set of
10012   // scalar instructions, we have no method for zero- or sign-extending the
10013   // value. Thus, we cannot handle i32 intermediate values here.
10014   if (Op.getOperand(0).getValueType() == MVT::i32)
10015     return SDValue();
10016 
10017   assert((Op.getOpcode() == ISD::SINT_TO_FP || Subtarget.hasFPCVT()) &&
10018          "UINT_TO_FP is supported only with FPCVT");
10019 
10020   // If we have FCFIDS, then use it when converting to single-precision.
10021   // Otherwise, convert to double-precision and then round.
10022   unsigned FCFOp = (Subtarget.hasFPCVT() && Op.getValueType() == MVT::f32)
10023                        ? (Op.getOpcode() == ISD::UINT_TO_FP ? PPCISD::FCFIDUS
10024                                                             : PPCISD::FCFIDS)
10025                        : (Op.getOpcode() == ISD::UINT_TO_FP ? PPCISD::FCFIDU
10026                                                             : PPCISD::FCFID);
10027   MVT FCFTy = (Subtarget.hasFPCVT() && Op.getValueType() == MVT::f32)
10028                   ? MVT::f32
10029                   : MVT::f64;
10030 
10031   // If we're converting from a float, to an int, and back to a float again,
10032   // then we don't need the store/load pair at all.
10033   if ((Op.getOperand(0).getOpcode() == ISD::FP_TO_UINT &&
10034        Subtarget.hasFPCVT()) ||
10035       (Op.getOperand(0).getOpcode() == ISD::FP_TO_SINT)) {
10036     SDValue Src = Op.getOperand(0).getOperand(0);
10037     if (Src.getValueType() == MVT::f32) {
10038       Src = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, Src);
10039       DCI.AddToWorklist(Src.getNode());
10040     } else if (Src.getValueType() != MVT::f64) {
10041       // Make sure that we don't pick up a ppc_fp128 source value.
10042       return SDValue();
10043     }
10044 
10045     unsigned FCTOp =
10046       Op.getOperand(0).getOpcode() == ISD::FP_TO_SINT ? PPCISD::FCTIDZ :
10047                                                         PPCISD::FCTIDUZ;
10048 
10049     SDValue Tmp = DAG.getNode(FCTOp, dl, MVT::f64, Src);
10050     SDValue FP = DAG.getNode(FCFOp, dl, FCFTy, Tmp);
10051 
10052     if (Op.getValueType() == MVT::f32 && !Subtarget.hasFPCVT()) {
10053       FP = DAG.getNode(ISD::FP_ROUND, dl,
10054                        MVT::f32, FP, DAG.getIntPtrConstant(0, dl));
10055       DCI.AddToWorklist(FP.getNode());
10056     }
10057 
10058     return FP;
10059   }
10060 
10061   return SDValue();
10062 }
10063 
10064 // expandVSXLoadForLE - Convert VSX loads (which may be intrinsics for
10065 // builtins) into loads with swaps.
10066 SDValue PPCTargetLowering::expandVSXLoadForLE(SDNode *N,
10067                                               DAGCombinerInfo &DCI) const {
10068   SelectionDAG &DAG = DCI.DAG;
10069   SDLoc dl(N);
10070   SDValue Chain;
10071   SDValue Base;
10072   MachineMemOperand *MMO;
10073 
10074   switch (N->getOpcode()) {
10075   default:
10076     llvm_unreachable("Unexpected opcode for little endian VSX load");
10077   case ISD::LOAD: {
10078     LoadSDNode *LD = cast<LoadSDNode>(N);
10079     Chain = LD->getChain();
10080     Base = LD->getBasePtr();
10081     MMO = LD->getMemOperand();
10082     // If the MMO suggests this isn't a load of a full vector, leave
10083     // things alone.  For a built-in, we have to make the change for
10084     // correctness, so if there is a size problem that will be a bug.
10085     if (MMO->getSize() < 16)
10086       return SDValue();
10087     break;
10088   }
10089   case ISD::INTRINSIC_W_CHAIN: {
10090     MemIntrinsicSDNode *Intrin = cast<MemIntrinsicSDNode>(N);
10091     Chain = Intrin->getChain();
10092     // Similarly to the store case below, Intrin->getBasePtr() doesn't get
10093     // us what we want. Get operand 2 instead.
10094     Base = Intrin->getOperand(2);
10095     MMO = Intrin->getMemOperand();
10096     break;
10097   }
10098   }
10099 
10100   MVT VecTy = N->getValueType(0).getSimpleVT();
10101   SDValue LoadOps[] = { Chain, Base };
10102   SDValue Load = DAG.getMemIntrinsicNode(PPCISD::LXVD2X, dl,
10103                                          DAG.getVTList(VecTy, MVT::Other),
10104                                          LoadOps, VecTy, MMO);
10105   DCI.AddToWorklist(Load.getNode());
10106   Chain = Load.getValue(1);
10107   SDValue Swap = DAG.getNode(PPCISD::XXSWAPD, dl,
10108                              DAG.getVTList(VecTy, MVT::Other), Chain, Load);
10109   DCI.AddToWorklist(Swap.getNode());
10110   return Swap;
10111 }
10112 
10113 // expandVSXStoreForLE - Convert VSX stores (which may be intrinsics for
10114 // builtins) into stores with swaps.
10115 SDValue PPCTargetLowering::expandVSXStoreForLE(SDNode *N,
10116                                                DAGCombinerInfo &DCI) const {
10117   SelectionDAG &DAG = DCI.DAG;
10118   SDLoc dl(N);
10119   SDValue Chain;
10120   SDValue Base;
10121   unsigned SrcOpnd;
10122   MachineMemOperand *MMO;
10123 
10124   switch (N->getOpcode()) {
10125   default:
10126     llvm_unreachable("Unexpected opcode for little endian VSX store");
10127   case ISD::STORE: {
10128     StoreSDNode *ST = cast<StoreSDNode>(N);
10129     Chain = ST->getChain();
10130     Base = ST->getBasePtr();
10131     MMO = ST->getMemOperand();
10132     SrcOpnd = 1;
10133     // If the MMO suggests this isn't a store of a full vector, leave
10134     // things alone.  For a built-in, we have to make the change for
10135     // correctness, so if there is a size problem that will be a bug.
10136     if (MMO->getSize() < 16)
10137       return SDValue();
10138     break;
10139   }
10140   case ISD::INTRINSIC_VOID: {
10141     MemIntrinsicSDNode *Intrin = cast<MemIntrinsicSDNode>(N);
10142     Chain = Intrin->getChain();
10143     // Intrin->getBasePtr() oddly does not get what we want.
10144     Base = Intrin->getOperand(3);
10145     MMO = Intrin->getMemOperand();
10146     SrcOpnd = 2;
10147     break;
10148   }
10149   }
10150 
10151   SDValue Src = N->getOperand(SrcOpnd);
10152   MVT VecTy = Src.getValueType().getSimpleVT();
10153   SDValue Swap = DAG.getNode(PPCISD::XXSWAPD, dl,
10154                              DAG.getVTList(VecTy, MVT::Other), Chain, Src);
10155   DCI.AddToWorklist(Swap.getNode());
10156   Chain = Swap.getValue(1);
10157   SDValue StoreOps[] = { Chain, Swap, Base };
10158   SDValue Store = DAG.getMemIntrinsicNode(PPCISD::STXVD2X, dl,
10159                                           DAG.getVTList(MVT::Other),
10160                                           StoreOps, VecTy, MMO);
10161   DCI.AddToWorklist(Store.getNode());
10162   return Store;
10163 }
10164 
10165 SDValue PPCTargetLowering::PerformDAGCombine(SDNode *N,
10166                                              DAGCombinerInfo &DCI) const {
10167   SelectionDAG &DAG = DCI.DAG;
10168   SDLoc dl(N);
10169   switch (N->getOpcode()) {
10170   default: break;
10171   case PPCISD::SHL:
10172     if (isNullConstant(N->getOperand(0))) // 0 << V -> 0.
10173         return N->getOperand(0);
10174     break;
10175   case PPCISD::SRL:
10176     if (isNullConstant(N->getOperand(0))) // 0 >>u V -> 0.
10177         return N->getOperand(0);
10178     break;
10179   case PPCISD::SRA:
10180     if (ConstantSDNode *C = dyn_cast<ConstantSDNode>(N->getOperand(0))) {
10181       if (C->isNullValue() ||   //  0 >>s V -> 0.
10182           C->isAllOnesValue())    // -1 >>s V -> -1.
10183         return N->getOperand(0);
10184     }
10185     break;
10186   case ISD::SIGN_EXTEND:
10187   case ISD::ZERO_EXTEND:
10188   case ISD::ANY_EXTEND:
10189     return DAGCombineExtBoolTrunc(N, DCI);
10190   case ISD::TRUNCATE:
10191   case ISD::SETCC:
10192   case ISD::SELECT_CC:
10193     return DAGCombineTruncBoolExt(N, DCI);
10194   case ISD::SINT_TO_FP:
10195   case ISD::UINT_TO_FP:
10196     return combineFPToIntToFP(N, DCI);
10197   case ISD::STORE: {
10198     // Turn STORE (FP_TO_SINT F) -> STFIWX(FCTIWZ(F)).
10199     if (Subtarget.hasSTFIWX() && !cast<StoreSDNode>(N)->isTruncatingStore() &&
10200         N->getOperand(1).getOpcode() == ISD::FP_TO_SINT &&
10201         N->getOperand(1).getValueType() == MVT::i32 &&
10202         N->getOperand(1).getOperand(0).getValueType() != MVT::ppcf128) {
10203       SDValue Val = N->getOperand(1).getOperand(0);
10204       if (Val.getValueType() == MVT::f32) {
10205         Val = DAG.getNode(ISD::FP_EXTEND, dl, MVT::f64, Val);
10206         DCI.AddToWorklist(Val.getNode());
10207       }
10208       Val = DAG.getNode(PPCISD::FCTIWZ, dl, MVT::f64, Val);
10209       DCI.AddToWorklist(Val.getNode());
10210 
10211       SDValue Ops[] = {
10212         N->getOperand(0), Val, N->getOperand(2),
10213         DAG.getValueType(N->getOperand(1).getValueType())
10214       };
10215 
10216       Val = DAG.getMemIntrinsicNode(PPCISD::STFIWX, dl,
10217               DAG.getVTList(MVT::Other), Ops,
10218               cast<StoreSDNode>(N)->getMemoryVT(),
10219               cast<StoreSDNode>(N)->getMemOperand());
10220       DCI.AddToWorklist(Val.getNode());
10221       return Val;
10222     }
10223 
10224     // Turn STORE (BSWAP) -> sthbrx/stwbrx.
10225     if (cast<StoreSDNode>(N)->isUnindexed() &&
10226         N->getOperand(1).getOpcode() == ISD::BSWAP &&
10227         N->getOperand(1).getNode()->hasOneUse() &&
10228         (N->getOperand(1).getValueType() == MVT::i32 ||
10229          N->getOperand(1).getValueType() == MVT::i16 ||
10230          (Subtarget.hasLDBRX() && Subtarget.isPPC64() &&
10231           N->getOperand(1).getValueType() == MVT::i64))) {
10232       SDValue BSwapOp = N->getOperand(1).getOperand(0);
10233       // Do an any-extend to 32-bits if this is a half-word input.
10234       if (BSwapOp.getValueType() == MVT::i16)
10235         BSwapOp = DAG.getNode(ISD::ANY_EXTEND, dl, MVT::i32, BSwapOp);
10236 
10237       SDValue Ops[] = {
10238         N->getOperand(0), BSwapOp, N->getOperand(2),
10239         DAG.getValueType(N->getOperand(1).getValueType())
10240       };
10241       return
10242         DAG.getMemIntrinsicNode(PPCISD::STBRX, dl, DAG.getVTList(MVT::Other),
10243                                 Ops, cast<StoreSDNode>(N)->getMemoryVT(),
10244                                 cast<StoreSDNode>(N)->getMemOperand());
10245     }
10246 
10247     // For little endian, VSX stores require generating xxswapd/lxvd2x.
10248     EVT VT = N->getOperand(1).getValueType();
10249     if (VT.isSimple()) {
10250       MVT StoreVT = VT.getSimpleVT();
10251       if (Subtarget.hasVSX() && Subtarget.isLittleEndian() &&
10252           (StoreVT == MVT::v2f64 || StoreVT == MVT::v2i64 ||
10253            StoreVT == MVT::v4f32 || StoreVT == MVT::v4i32))
10254         return expandVSXStoreForLE(N, DCI);
10255     }
10256     break;
10257   }
10258   case ISD::LOAD: {
10259     LoadSDNode *LD = cast<LoadSDNode>(N);
10260     EVT VT = LD->getValueType(0);
10261 
10262     // For little endian, VSX loads require generating lxvd2x/xxswapd.
10263     if (VT.isSimple()) {
10264       MVT LoadVT = VT.getSimpleVT();
10265       if (Subtarget.hasVSX() && Subtarget.isLittleEndian() &&
10266           (LoadVT == MVT::v2f64 || LoadVT == MVT::v2i64 ||
10267            LoadVT == MVT::v4f32 || LoadVT == MVT::v4i32))
10268         return expandVSXLoadForLE(N, DCI);
10269     }
10270 
10271     EVT MemVT = LD->getMemoryVT();
10272     Type *Ty = MemVT.getTypeForEVT(*DAG.getContext());
10273     unsigned ABIAlignment = DAG.getDataLayout().getABITypeAlignment(Ty);
10274     Type *STy = MemVT.getScalarType().getTypeForEVT(*DAG.getContext());
10275     unsigned ScalarABIAlignment = DAG.getDataLayout().getABITypeAlignment(STy);
10276     if (LD->isUnindexed() && VT.isVector() &&
10277         ((Subtarget.hasAltivec() && ISD::isNON_EXTLoad(N) &&
10278           // P8 and later hardware should just use LOAD.
10279           !Subtarget.hasP8Vector() && (VT == MVT::v16i8 || VT == MVT::v8i16 ||
10280                                        VT == MVT::v4i32 || VT == MVT::v4f32)) ||
10281          (Subtarget.hasQPX() && (VT == MVT::v4f64 || VT == MVT::v4f32) &&
10282           LD->getAlignment() >= ScalarABIAlignment)) &&
10283         LD->getAlignment() < ABIAlignment) {
10284       // This is a type-legal unaligned Altivec or QPX load.
10285       SDValue Chain = LD->getChain();
10286       SDValue Ptr = LD->getBasePtr();
10287       bool isLittleEndian = Subtarget.isLittleEndian();
10288 
10289       // This implements the loading of unaligned vectors as described in
10290       // the venerable Apple Velocity Engine overview. Specifically:
10291       // https://developer.apple.com/hardwaredrivers/ve/alignment.html
10292       // https://developer.apple.com/hardwaredrivers/ve/code_optimization.html
10293       //
10294       // The general idea is to expand a sequence of one or more unaligned
10295       // loads into an alignment-based permutation-control instruction (lvsl
10296       // or lvsr), a series of regular vector loads (which always truncate
10297       // their input address to an aligned address), and a series of
10298       // permutations.  The results of these permutations are the requested
10299       // loaded values.  The trick is that the last "extra" load is not taken
10300       // from the address you might suspect (sizeof(vector) bytes after the
10301       // last requested load), but rather sizeof(vector) - 1 bytes after the
10302       // last requested vector. The point of this is to avoid a page fault if
10303       // the base address happened to be aligned. This works because if the
10304       // base address is aligned, then adding less than a full vector length
10305       // will cause the last vector in the sequence to be (re)loaded.
10306       // Otherwise, the next vector will be fetched as you might suspect was
10307       // necessary.
10308 
10309       // We might be able to reuse the permutation generation from
10310       // a different base address offset from this one by an aligned amount.
10311       // The INTRINSIC_WO_CHAIN DAG combine will attempt to perform this
10312       // optimization later.
10313       Intrinsic::ID Intr, IntrLD, IntrPerm;
10314       MVT PermCntlTy, PermTy, LDTy;
10315       if (Subtarget.hasAltivec()) {
10316         Intr = isLittleEndian ?  Intrinsic::ppc_altivec_lvsr :
10317                                  Intrinsic::ppc_altivec_lvsl;
10318         IntrLD = Intrinsic::ppc_altivec_lvx;
10319         IntrPerm = Intrinsic::ppc_altivec_vperm;
10320         PermCntlTy = MVT::v16i8;
10321         PermTy = MVT::v4i32;
10322         LDTy = MVT::v4i32;
10323       } else {
10324         Intr =   MemVT == MVT::v4f64 ? Intrinsic::ppc_qpx_qvlpcld :
10325                                        Intrinsic::ppc_qpx_qvlpcls;
10326         IntrLD = MemVT == MVT::v4f64 ? Intrinsic::ppc_qpx_qvlfd :
10327                                        Intrinsic::ppc_qpx_qvlfs;
10328         IntrPerm = Intrinsic::ppc_qpx_qvfperm;
10329         PermCntlTy = MVT::v4f64;
10330         PermTy = MVT::v4f64;
10331         LDTy = MemVT.getSimpleVT();
10332       }
10333 
10334       SDValue PermCntl = BuildIntrinsicOp(Intr, Ptr, DAG, dl, PermCntlTy);
10335 
10336       // Create the new MMO for the new base load. It is like the original MMO,
10337       // but represents an area in memory almost twice the vector size centered
10338       // on the original address. If the address is unaligned, we might start
10339       // reading up to (sizeof(vector)-1) bytes below the address of the
10340       // original unaligned load.
10341       MachineFunction &MF = DAG.getMachineFunction();
10342       MachineMemOperand *BaseMMO =
10343         MF.getMachineMemOperand(LD->getMemOperand(),
10344                                 -(long)MemVT.getStoreSize()+1,
10345                                 2*MemVT.getStoreSize()-1);
10346 
10347       // Create the new base load.
10348       SDValue LDXIntID =
10349           DAG.getTargetConstant(IntrLD, dl, getPointerTy(MF.getDataLayout()));
10350       SDValue BaseLoadOps[] = { Chain, LDXIntID, Ptr };
10351       SDValue BaseLoad =
10352         DAG.getMemIntrinsicNode(ISD::INTRINSIC_W_CHAIN, dl,
10353                                 DAG.getVTList(PermTy, MVT::Other),
10354                                 BaseLoadOps, LDTy, BaseMMO);
10355 
10356       // Note that the value of IncOffset (which is provided to the next
10357       // load's pointer info offset value, and thus used to calculate the
10358       // alignment), and the value of IncValue (which is actually used to
10359       // increment the pointer value) are different! This is because we
10360       // require the next load to appear to be aligned, even though it
10361       // is actually offset from the base pointer by a lesser amount.
10362       int IncOffset = VT.getSizeInBits() / 8;
10363       int IncValue = IncOffset;
10364 
10365       // Walk (both up and down) the chain looking for another load at the real
10366       // (aligned) offset (the alignment of the other load does not matter in
10367       // this case). If found, then do not use the offset reduction trick, as
10368       // that will prevent the loads from being later combined (as they would
10369       // otherwise be duplicates).
10370       if (!findConsecutiveLoad(LD, DAG))
10371         --IncValue;
10372 
10373       SDValue Increment =
10374           DAG.getConstant(IncValue, dl, getPointerTy(MF.getDataLayout()));
10375       Ptr = DAG.getNode(ISD::ADD, dl, Ptr.getValueType(), Ptr, Increment);
10376 
10377       MachineMemOperand *ExtraMMO =
10378         MF.getMachineMemOperand(LD->getMemOperand(),
10379                                 1, 2*MemVT.getStoreSize()-1);
10380       SDValue ExtraLoadOps[] = { Chain, LDXIntID, Ptr };
10381       SDValue ExtraLoad =
10382         DAG.getMemIntrinsicNode(ISD::INTRINSIC_W_CHAIN, dl,
10383                                 DAG.getVTList(PermTy, MVT::Other),
10384                                 ExtraLoadOps, LDTy, ExtraMMO);
10385 
10386       SDValue TF = DAG.getNode(ISD::TokenFactor, dl, MVT::Other,
10387         BaseLoad.getValue(1), ExtraLoad.getValue(1));
10388 
10389       // Because vperm has a big-endian bias, we must reverse the order
10390       // of the input vectors and complement the permute control vector
10391       // when generating little endian code.  We have already handled the
10392       // latter by using lvsr instead of lvsl, so just reverse BaseLoad
10393       // and ExtraLoad here.
10394       SDValue Perm;
10395       if (isLittleEndian)
10396         Perm = BuildIntrinsicOp(IntrPerm,
10397                                 ExtraLoad, BaseLoad, PermCntl, DAG, dl);
10398       else
10399         Perm = BuildIntrinsicOp(IntrPerm,
10400                                 BaseLoad, ExtraLoad, PermCntl, DAG, dl);
10401 
10402       if (VT != PermTy)
10403         Perm = Subtarget.hasAltivec() ?
10404                  DAG.getNode(ISD::BITCAST, dl, VT, Perm) :
10405                  DAG.getNode(ISD::FP_ROUND, dl, VT, Perm, // QPX
10406                                DAG.getTargetConstant(1, dl, MVT::i64));
10407                                // second argument is 1 because this rounding
10408                                // is always exact.
10409 
10410       // The output of the permutation is our loaded result, the TokenFactor is
10411       // our new chain.
10412       DCI.CombineTo(N, Perm, TF);
10413       return SDValue(N, 0);
10414     }
10415     }
10416     break;
10417     case ISD::INTRINSIC_WO_CHAIN: {
10418       bool isLittleEndian = Subtarget.isLittleEndian();
10419       unsigned IID = cast<ConstantSDNode>(N->getOperand(0))->getZExtValue();
10420       Intrinsic::ID Intr = (isLittleEndian ? Intrinsic::ppc_altivec_lvsr
10421                                            : Intrinsic::ppc_altivec_lvsl);
10422       if ((IID == Intr ||
10423            IID == Intrinsic::ppc_qpx_qvlpcld  ||
10424            IID == Intrinsic::ppc_qpx_qvlpcls) &&
10425         N->getOperand(1)->getOpcode() == ISD::ADD) {
10426         SDValue Add = N->getOperand(1);
10427 
10428         int Bits = IID == Intrinsic::ppc_qpx_qvlpcld ?
10429                    5 /* 32 byte alignment */ : 4 /* 16 byte alignment */;
10430 
10431         if (DAG.MaskedValueIsZero(
10432                 Add->getOperand(1),
10433                 APInt::getAllOnesValue(Bits /* alignment */)
10434                     .zext(
10435                         Add.getValueType().getScalarType().getSizeInBits()))) {
10436           SDNode *BasePtr = Add->getOperand(0).getNode();
10437           for (SDNode::use_iterator UI = BasePtr->use_begin(),
10438                                     UE = BasePtr->use_end();
10439                UI != UE; ++UI) {
10440             if (UI->getOpcode() == ISD::INTRINSIC_WO_CHAIN &&
10441                 cast<ConstantSDNode>(UI->getOperand(0))->getZExtValue() == IID) {
10442               // We've found another LVSL/LVSR, and this address is an aligned
10443               // multiple of that one. The results will be the same, so use the
10444               // one we've just found instead.
10445 
10446               return SDValue(*UI, 0);
10447             }
10448           }
10449         }
10450 
10451         if (isa<ConstantSDNode>(Add->getOperand(1))) {
10452           SDNode *BasePtr = Add->getOperand(0).getNode();
10453           for (SDNode::use_iterator UI = BasePtr->use_begin(),
10454                UE = BasePtr->use_end(); UI != UE; ++UI) {
10455             if (UI->getOpcode() == ISD::ADD &&
10456                 isa<ConstantSDNode>(UI->getOperand(1)) &&
10457                 (cast<ConstantSDNode>(Add->getOperand(1))->getZExtValue() -
10458                  cast<ConstantSDNode>(UI->getOperand(1))->getZExtValue()) %
10459                 (1ULL << Bits) == 0) {
10460               SDNode *OtherAdd = *UI;
10461               for (SDNode::use_iterator VI = OtherAdd->use_begin(),
10462                    VE = OtherAdd->use_end(); VI != VE; ++VI) {
10463                 if (VI->getOpcode() == ISD::INTRINSIC_WO_CHAIN &&
10464                     cast<ConstantSDNode>(VI->getOperand(0))->getZExtValue() == IID) {
10465                   return SDValue(*VI, 0);
10466                 }
10467               }
10468             }
10469           }
10470         }
10471       }
10472     }
10473 
10474     break;
10475   case ISD::INTRINSIC_W_CHAIN: {
10476     // For little endian, VSX loads require generating lxvd2x/xxswapd.
10477     if (Subtarget.hasVSX() && Subtarget.isLittleEndian()) {
10478       switch (cast<ConstantSDNode>(N->getOperand(1))->getZExtValue()) {
10479       default:
10480         break;
10481       case Intrinsic::ppc_vsx_lxvw4x:
10482       case Intrinsic::ppc_vsx_lxvd2x:
10483         return expandVSXLoadForLE(N, DCI);
10484       }
10485     }
10486     break;
10487   }
10488   case ISD::INTRINSIC_VOID: {
10489     // For little endian, VSX stores require generating xxswapd/stxvd2x.
10490     if (Subtarget.hasVSX() && Subtarget.isLittleEndian()) {
10491       switch (cast<ConstantSDNode>(N->getOperand(1))->getZExtValue()) {
10492       default:
10493         break;
10494       case Intrinsic::ppc_vsx_stxvw4x:
10495       case Intrinsic::ppc_vsx_stxvd2x:
10496         return expandVSXStoreForLE(N, DCI);
10497       }
10498     }
10499     break;
10500   }
10501   case ISD::BSWAP:
10502     // Turn BSWAP (LOAD) -> lhbrx/lwbrx.
10503     if (ISD::isNON_EXTLoad(N->getOperand(0).getNode()) &&
10504         N->getOperand(0).hasOneUse() &&
10505         (N->getValueType(0) == MVT::i32 || N->getValueType(0) == MVT::i16 ||
10506          (Subtarget.hasLDBRX() && Subtarget.isPPC64() &&
10507           N->getValueType(0) == MVT::i64))) {
10508       SDValue Load = N->getOperand(0);
10509       LoadSDNode *LD = cast<LoadSDNode>(Load);
10510       // Create the byte-swapping load.
10511       SDValue Ops[] = {
10512         LD->getChain(),    // Chain
10513         LD->getBasePtr(),  // Ptr
10514         DAG.getValueType(N->getValueType(0)) // VT
10515       };
10516       SDValue BSLoad =
10517         DAG.getMemIntrinsicNode(PPCISD::LBRX, dl,
10518                                 DAG.getVTList(N->getValueType(0) == MVT::i64 ?
10519                                               MVT::i64 : MVT::i32, MVT::Other),
10520                                 Ops, LD->getMemoryVT(), LD->getMemOperand());
10521 
10522       // If this is an i16 load, insert the truncate.
10523       SDValue ResVal = BSLoad;
10524       if (N->getValueType(0) == MVT::i16)
10525         ResVal = DAG.getNode(ISD::TRUNCATE, dl, MVT::i16, BSLoad);
10526 
10527       // First, combine the bswap away.  This makes the value produced by the
10528       // load dead.
10529       DCI.CombineTo(N, ResVal);
10530 
10531       // Next, combine the load away, we give it a bogus result value but a real
10532       // chain result.  The result value is dead because the bswap is dead.
10533       DCI.CombineTo(Load.getNode(), ResVal, BSLoad.getValue(1));
10534 
10535       // Return N so it doesn't get rechecked!
10536       return SDValue(N, 0);
10537     }
10538 
10539     break;
10540   case PPCISD::VCMP: {
10541     // If a VCMPo node already exists with exactly the same operands as this
10542     // node, use its result instead of this node (VCMPo computes both a CR6 and
10543     // a normal output).
10544     //
10545     if (!N->getOperand(0).hasOneUse() &&
10546         !N->getOperand(1).hasOneUse() &&
10547         !N->getOperand(2).hasOneUse()) {
10548 
10549       // Scan all of the users of the LHS, looking for VCMPo's that match.
10550       SDNode *VCMPoNode = nullptr;
10551 
10552       SDNode *LHSN = N->getOperand(0).getNode();
10553       for (SDNode::use_iterator UI = LHSN->use_begin(), E = LHSN->use_end();
10554            UI != E; ++UI)
10555         if (UI->getOpcode() == PPCISD::VCMPo &&
10556             UI->getOperand(1) == N->getOperand(1) &&
10557             UI->getOperand(2) == N->getOperand(2) &&
10558             UI->getOperand(0) == N->getOperand(0)) {
10559           VCMPoNode = *UI;
10560           break;
10561         }
10562 
10563       // If there is no VCMPo node, or if the flag value has a single use, don't
10564       // transform this.
10565       if (!VCMPoNode || VCMPoNode->hasNUsesOfValue(0, 1))
10566         break;
10567 
10568       // Look at the (necessarily single) use of the flag value.  If it has a
10569       // chain, this transformation is more complex.  Note that multiple things
10570       // could use the value result, which we should ignore.
10571       SDNode *FlagUser = nullptr;
10572       for (SDNode::use_iterator UI = VCMPoNode->use_begin();
10573            FlagUser == nullptr; ++UI) {
10574         assert(UI != VCMPoNode->use_end() && "Didn't find user!");
10575         SDNode *User = *UI;
10576         for (unsigned i = 0, e = User->getNumOperands(); i != e; ++i) {
10577           if (User->getOperand(i) == SDValue(VCMPoNode, 1)) {
10578             FlagUser = User;
10579             break;
10580           }
10581         }
10582       }
10583 
10584       // If the user is a MFOCRF instruction, we know this is safe.
10585       // Otherwise we give up for right now.
10586       if (FlagUser->getOpcode() == PPCISD::MFOCRF)
10587         return SDValue(VCMPoNode, 0);
10588     }
10589     break;
10590   }
10591   case ISD::BRCOND: {
10592     SDValue Cond = N->getOperand(1);
10593     SDValue Target = N->getOperand(2);
10594 
10595     if (Cond.getOpcode() == ISD::INTRINSIC_W_CHAIN &&
10596         cast<ConstantSDNode>(Cond.getOperand(1))->getZExtValue() ==
10597           Intrinsic::ppc_is_decremented_ctr_nonzero) {
10598 
10599       // We now need to make the intrinsic dead (it cannot be instruction
10600       // selected).
10601       DAG.ReplaceAllUsesOfValueWith(Cond.getValue(1), Cond.getOperand(0));
10602       assert(Cond.getNode()->hasOneUse() &&
10603              "Counter decrement has more than one use");
10604 
10605       return DAG.getNode(PPCISD::BDNZ, dl, MVT::Other,
10606                          N->getOperand(0), Target);
10607     }
10608   }
10609   break;
10610   case ISD::BR_CC: {
10611     // If this is a branch on an altivec predicate comparison, lower this so
10612     // that we don't have to do a MFOCRF: instead, branch directly on CR6.  This
10613     // lowering is done pre-legalize, because the legalizer lowers the predicate
10614     // compare down to code that is difficult to reassemble.
10615     ISD::CondCode CC = cast<CondCodeSDNode>(N->getOperand(1))->get();
10616     SDValue LHS = N->getOperand(2), RHS = N->getOperand(3);
10617 
10618     // Sometimes the promoted value of the intrinsic is ANDed by some non-zero
10619     // value. If so, pass-through the AND to get to the intrinsic.
10620     if (LHS.getOpcode() == ISD::AND &&
10621         LHS.getOperand(0).getOpcode() == ISD::INTRINSIC_W_CHAIN &&
10622         cast<ConstantSDNode>(LHS.getOperand(0).getOperand(1))->getZExtValue() ==
10623           Intrinsic::ppc_is_decremented_ctr_nonzero &&
10624         isa<ConstantSDNode>(LHS.getOperand(1)) &&
10625         !isNullConstant(LHS.getOperand(1)))
10626       LHS = LHS.getOperand(0);
10627 
10628     if (LHS.getOpcode() == ISD::INTRINSIC_W_CHAIN &&
10629         cast<ConstantSDNode>(LHS.getOperand(1))->getZExtValue() ==
10630           Intrinsic::ppc_is_decremented_ctr_nonzero &&
10631         isa<ConstantSDNode>(RHS)) {
10632       assert((CC == ISD::SETEQ || CC == ISD::SETNE) &&
10633              "Counter decrement comparison is not EQ or NE");
10634 
10635       unsigned Val = cast<ConstantSDNode>(RHS)->getZExtValue();
10636       bool isBDNZ = (CC == ISD::SETEQ && Val) ||
10637                     (CC == ISD::SETNE && !Val);
10638 
10639       // We now need to make the intrinsic dead (it cannot be instruction
10640       // selected).
10641       DAG.ReplaceAllUsesOfValueWith(LHS.getValue(1), LHS.getOperand(0));
10642       assert(LHS.getNode()->hasOneUse() &&
10643              "Counter decrement has more than one use");
10644 
10645       return DAG.getNode(isBDNZ ? PPCISD::BDNZ : PPCISD::BDZ, dl, MVT::Other,
10646                          N->getOperand(0), N->getOperand(4));
10647     }
10648 
10649     int CompareOpc;
10650     bool isDot;
10651 
10652     if (LHS.getOpcode() == ISD::INTRINSIC_WO_CHAIN &&
10653         isa<ConstantSDNode>(RHS) && (CC == ISD::SETEQ || CC == ISD::SETNE) &&
10654         getVectorCompareInfo(LHS, CompareOpc, isDot, Subtarget)) {
10655       assert(isDot && "Can't compare against a vector result!");
10656 
10657       // If this is a comparison against something other than 0/1, then we know
10658       // that the condition is never/always true.
10659       unsigned Val = cast<ConstantSDNode>(RHS)->getZExtValue();
10660       if (Val != 0 && Val != 1) {
10661         if (CC == ISD::SETEQ)      // Cond never true, remove branch.
10662           return N->getOperand(0);
10663         // Always !=, turn it into an unconditional branch.
10664         return DAG.getNode(ISD::BR, dl, MVT::Other,
10665                            N->getOperand(0), N->getOperand(4));
10666       }
10667 
10668       bool BranchOnWhenPredTrue = (CC == ISD::SETEQ) ^ (Val == 0);
10669 
10670       // Create the PPCISD altivec 'dot' comparison node.
10671       SDValue Ops[] = {
10672         LHS.getOperand(2),  // LHS of compare
10673         LHS.getOperand(3),  // RHS of compare
10674         DAG.getConstant(CompareOpc, dl, MVT::i32)
10675       };
10676       EVT VTs[] = { LHS.getOperand(2).getValueType(), MVT::Glue };
10677       SDValue CompNode = DAG.getNode(PPCISD::VCMPo, dl, VTs, Ops);
10678 
10679       // Unpack the result based on how the target uses it.
10680       PPC::Predicate CompOpc;
10681       switch (cast<ConstantSDNode>(LHS.getOperand(1))->getZExtValue()) {
10682       default:  // Can't happen, don't crash on invalid number though.
10683       case 0:   // Branch on the value of the EQ bit of CR6.
10684         CompOpc = BranchOnWhenPredTrue ? PPC::PRED_EQ : PPC::PRED_NE;
10685         break;
10686       case 1:   // Branch on the inverted value of the EQ bit of CR6.
10687         CompOpc = BranchOnWhenPredTrue ? PPC::PRED_NE : PPC::PRED_EQ;
10688         break;
10689       case 2:   // Branch on the value of the LT bit of CR6.
10690         CompOpc = BranchOnWhenPredTrue ? PPC::PRED_LT : PPC::PRED_GE;
10691         break;
10692       case 3:   // Branch on the inverted value of the LT bit of CR6.
10693         CompOpc = BranchOnWhenPredTrue ? PPC::PRED_GE : PPC::PRED_LT;
10694         break;
10695       }
10696 
10697       return DAG.getNode(PPCISD::COND_BRANCH, dl, MVT::Other, N->getOperand(0),
10698                          DAG.getConstant(CompOpc, dl, MVT::i32),
10699                          DAG.getRegister(PPC::CR6, MVT::i32),
10700                          N->getOperand(4), CompNode.getValue(1));
10701     }
10702     break;
10703   }
10704   }
10705 
10706   return SDValue();
10707 }
10708 
10709 SDValue
10710 PPCTargetLowering::BuildSDIVPow2(SDNode *N, const APInt &Divisor,
10711                                   SelectionDAG &DAG,
10712                                   std::vector<SDNode *> *Created) const {
10713   // fold (sdiv X, pow2)
10714   EVT VT = N->getValueType(0);
10715   if (VT == MVT::i64 && !Subtarget.isPPC64())
10716     return SDValue();
10717   if ((VT != MVT::i32 && VT != MVT::i64) ||
10718       !(Divisor.isPowerOf2() || (-Divisor).isPowerOf2()))
10719     return SDValue();
10720 
10721   SDLoc DL(N);
10722   SDValue N0 = N->getOperand(0);
10723 
10724   bool IsNegPow2 = (-Divisor).isPowerOf2();
10725   unsigned Lg2 = (IsNegPow2 ? -Divisor : Divisor).countTrailingZeros();
10726   SDValue ShiftAmt = DAG.getConstant(Lg2, DL, VT);
10727 
10728   SDValue Op = DAG.getNode(PPCISD::SRA_ADDZE, DL, VT, N0, ShiftAmt);
10729   if (Created)
10730     Created->push_back(Op.getNode());
10731 
10732   if (IsNegPow2) {
10733     Op = DAG.getNode(ISD::SUB, DL, VT, DAG.getConstant(0, DL, VT), Op);
10734     if (Created)
10735       Created->push_back(Op.getNode());
10736   }
10737 
10738   return Op;
10739 }
10740 
10741 //===----------------------------------------------------------------------===//
10742 // Inline Assembly Support
10743 //===----------------------------------------------------------------------===//
10744 
10745 void PPCTargetLowering::computeKnownBitsForTargetNode(const SDValue Op,
10746                                                       APInt &KnownZero,
10747                                                       APInt &KnownOne,
10748                                                       const SelectionDAG &DAG,
10749                                                       unsigned Depth) const {
10750   KnownZero = KnownOne = APInt(KnownZero.getBitWidth(), 0);
10751   switch (Op.getOpcode()) {
10752   default: break;
10753   case PPCISD::LBRX: {
10754     // lhbrx is known to have the top bits cleared out.
10755     if (cast<VTSDNode>(Op.getOperand(2))->getVT() == MVT::i16)
10756       KnownZero = 0xFFFF0000;
10757     break;
10758   }
10759   case ISD::INTRINSIC_WO_CHAIN: {
10760     switch (cast<ConstantSDNode>(Op.getOperand(0))->getZExtValue()) {
10761     default: break;
10762     case Intrinsic::ppc_altivec_vcmpbfp_p:
10763     case Intrinsic::ppc_altivec_vcmpeqfp_p:
10764     case Intrinsic::ppc_altivec_vcmpequb_p:
10765     case Intrinsic::ppc_altivec_vcmpequh_p:
10766     case Intrinsic::ppc_altivec_vcmpequw_p:
10767     case Intrinsic::ppc_altivec_vcmpequd_p:
10768     case Intrinsic::ppc_altivec_vcmpgefp_p:
10769     case Intrinsic::ppc_altivec_vcmpgtfp_p:
10770     case Intrinsic::ppc_altivec_vcmpgtsb_p:
10771     case Intrinsic::ppc_altivec_vcmpgtsh_p:
10772     case Intrinsic::ppc_altivec_vcmpgtsw_p:
10773     case Intrinsic::ppc_altivec_vcmpgtsd_p:
10774     case Intrinsic::ppc_altivec_vcmpgtub_p:
10775     case Intrinsic::ppc_altivec_vcmpgtuh_p:
10776     case Intrinsic::ppc_altivec_vcmpgtuw_p:
10777     case Intrinsic::ppc_altivec_vcmpgtud_p:
10778       KnownZero = ~1U;  // All bits but the low one are known to be zero.
10779       break;
10780     }
10781   }
10782   }
10783 }
10784 
10785 unsigned PPCTargetLowering::getPrefLoopAlignment(MachineLoop *ML) const {
10786   switch (Subtarget.getDarwinDirective()) {
10787   default: break;
10788   case PPC::DIR_970:
10789   case PPC::DIR_PWR4:
10790   case PPC::DIR_PWR5:
10791   case PPC::DIR_PWR5X:
10792   case PPC::DIR_PWR6:
10793   case PPC::DIR_PWR6X:
10794   case PPC::DIR_PWR7:
10795   case PPC::DIR_PWR8: {
10796     if (!ML)
10797       break;
10798 
10799     const PPCInstrInfo *TII = Subtarget.getInstrInfo();
10800 
10801     // For small loops (between 5 and 8 instructions), align to a 32-byte
10802     // boundary so that the entire loop fits in one instruction-cache line.
10803     uint64_t LoopSize = 0;
10804     for (auto I = ML->block_begin(), IE = ML->block_end(); I != IE; ++I)
10805       for (auto J = (*I)->begin(), JE = (*I)->end(); J != JE; ++J) {
10806         LoopSize += TII->GetInstSizeInBytes(J);
10807         if (LoopSize > 32)
10808           break;
10809       }
10810 
10811     if (LoopSize > 16 && LoopSize <= 32)
10812       return 5;
10813 
10814     break;
10815   }
10816   }
10817 
10818   return TargetLowering::getPrefLoopAlignment(ML);
10819 }
10820 
10821 /// getConstraintType - Given a constraint, return the type of
10822 /// constraint it is for this target.
10823 PPCTargetLowering::ConstraintType
10824 PPCTargetLowering::getConstraintType(StringRef Constraint) const {
10825   if (Constraint.size() == 1) {
10826     switch (Constraint[0]) {
10827     default: break;
10828     case 'b':
10829     case 'r':
10830     case 'f':
10831     case 'd':
10832     case 'v':
10833     case 'y':
10834       return C_RegisterClass;
10835     case 'Z':
10836       // FIXME: While Z does indicate a memory constraint, it specifically
10837       // indicates an r+r address (used in conjunction with the 'y' modifier
10838       // in the replacement string). Currently, we're forcing the base
10839       // register to be r0 in the asm printer (which is interpreted as zero)
10840       // and forming the complete address in the second register. This is
10841       // suboptimal.
10842       return C_Memory;
10843     }
10844   } else if (Constraint == "wc") { // individual CR bits.
10845     return C_RegisterClass;
10846   } else if (Constraint == "wa" || Constraint == "wd" ||
10847              Constraint == "wf" || Constraint == "ws") {
10848     return C_RegisterClass; // VSX registers.
10849   }
10850   return TargetLowering::getConstraintType(Constraint);
10851 }
10852 
10853 /// Examine constraint type and operand type and determine a weight value.
10854 /// This object must already have been set up with the operand type
10855 /// and the current alternative constraint selected.
10856 TargetLowering::ConstraintWeight
10857 PPCTargetLowering::getSingleConstraintMatchWeight(
10858     AsmOperandInfo &info, const char *constraint) const {
10859   ConstraintWeight weight = CW_Invalid;
10860   Value *CallOperandVal = info.CallOperandVal;
10861     // If we don't have a value, we can't do a match,
10862     // but allow it at the lowest weight.
10863   if (!CallOperandVal)
10864     return CW_Default;
10865   Type *type = CallOperandVal->getType();
10866 
10867   // Look at the constraint type.
10868   if (StringRef(constraint) == "wc" && type->isIntegerTy(1))
10869     return CW_Register; // an individual CR bit.
10870   else if ((StringRef(constraint) == "wa" ||
10871             StringRef(constraint) == "wd" ||
10872             StringRef(constraint) == "wf") &&
10873            type->isVectorTy())
10874     return CW_Register;
10875   else if (StringRef(constraint) == "ws" && type->isDoubleTy())
10876     return CW_Register;
10877 
10878   switch (*constraint) {
10879   default:
10880     weight = TargetLowering::getSingleConstraintMatchWeight(info, constraint);
10881     break;
10882   case 'b':
10883     if (type->isIntegerTy())
10884       weight = CW_Register;
10885     break;
10886   case 'f':
10887     if (type->isFloatTy())
10888       weight = CW_Register;
10889     break;
10890   case 'd':
10891     if (type->isDoubleTy())
10892       weight = CW_Register;
10893     break;
10894   case 'v':
10895     if (type->isVectorTy())
10896       weight = CW_Register;
10897     break;
10898   case 'y':
10899     weight = CW_Register;
10900     break;
10901   case 'Z':
10902     weight = CW_Memory;
10903     break;
10904   }
10905   return weight;
10906 }
10907 
10908 std::pair<unsigned, const TargetRegisterClass *>
10909 PPCTargetLowering::getRegForInlineAsmConstraint(const TargetRegisterInfo *TRI,
10910                                                 StringRef Constraint,
10911                                                 MVT VT) const {
10912   if (Constraint.size() == 1) {
10913     // GCC RS6000 Constraint Letters
10914     switch (Constraint[0]) {
10915     case 'b':   // R1-R31
10916       if (VT == MVT::i64 && Subtarget.isPPC64())
10917         return std::make_pair(0U, &PPC::G8RC_NOX0RegClass);
10918       return std::make_pair(0U, &PPC::GPRC_NOR0RegClass);
10919     case 'r':   // R0-R31
10920       if (VT == MVT::i64 && Subtarget.isPPC64())
10921         return std::make_pair(0U, &PPC::G8RCRegClass);
10922       return std::make_pair(0U, &PPC::GPRCRegClass);
10923     // 'd' and 'f' constraints are both defined to be "the floating point
10924     // registers", where one is for 32-bit and the other for 64-bit. We don't
10925     // really care overly much here so just give them all the same reg classes.
10926     case 'd':
10927     case 'f':
10928       if (VT == MVT::f32 || VT == MVT::i32)
10929         return std::make_pair(0U, &PPC::F4RCRegClass);
10930       if (VT == MVT::f64 || VT == MVT::i64)
10931         return std::make_pair(0U, &PPC::F8RCRegClass);
10932       if (VT == MVT::v4f64 && Subtarget.hasQPX())
10933         return std::make_pair(0U, &PPC::QFRCRegClass);
10934       if (VT == MVT::v4f32 && Subtarget.hasQPX())
10935         return std::make_pair(0U, &PPC::QSRCRegClass);
10936       break;
10937     case 'v':
10938       if (VT == MVT::v4f64 && Subtarget.hasQPX())
10939         return std::make_pair(0U, &PPC::QFRCRegClass);
10940       if (VT == MVT::v4f32 && Subtarget.hasQPX())
10941         return std::make_pair(0U, &PPC::QSRCRegClass);
10942       if (Subtarget.hasAltivec())
10943         return std::make_pair(0U, &PPC::VRRCRegClass);
10944     case 'y':   // crrc
10945       return std::make_pair(0U, &PPC::CRRCRegClass);
10946     }
10947   } else if (Constraint == "wc" && Subtarget.useCRBits()) {
10948     // An individual CR bit.
10949     return std::make_pair(0U, &PPC::CRBITRCRegClass);
10950   } else if ((Constraint == "wa" || Constraint == "wd" ||
10951              Constraint == "wf") && Subtarget.hasVSX()) {
10952     return std::make_pair(0U, &PPC::VSRCRegClass);
10953   } else if (Constraint == "ws" && Subtarget.hasVSX()) {
10954     if (VT == MVT::f32 && Subtarget.hasP8Vector())
10955       return std::make_pair(0U, &PPC::VSSRCRegClass);
10956     else
10957       return std::make_pair(0U, &PPC::VSFRCRegClass);
10958   }
10959 
10960   std::pair<unsigned, const TargetRegisterClass *> R =
10961       TargetLowering::getRegForInlineAsmConstraint(TRI, Constraint, VT);
10962 
10963   // r[0-9]+ are used, on PPC64, to refer to the corresponding 64-bit registers
10964   // (which we call X[0-9]+). If a 64-bit value has been requested, and a
10965   // 32-bit GPR has been selected, then 'upgrade' it to the 64-bit parent
10966   // register.
10967   // FIXME: If TargetLowering::getRegForInlineAsmConstraint could somehow use
10968   // the AsmName field from *RegisterInfo.td, then this would not be necessary.
10969   if (R.first && VT == MVT::i64 && Subtarget.isPPC64() &&
10970       PPC::GPRCRegClass.contains(R.first))
10971     return std::make_pair(TRI->getMatchingSuperReg(R.first,
10972                             PPC::sub_32, &PPC::G8RCRegClass),
10973                           &PPC::G8RCRegClass);
10974 
10975   // GCC accepts 'cc' as an alias for 'cr0', and we need to do the same.
10976   if (!R.second && StringRef("{cc}").equals_lower(Constraint)) {
10977     R.first = PPC::CR0;
10978     R.second = &PPC::CRRCRegClass;
10979   }
10980 
10981   return R;
10982 }
10983 
10984 /// LowerAsmOperandForConstraint - Lower the specified operand into the Ops
10985 /// vector.  If it is invalid, don't add anything to Ops.
10986 void PPCTargetLowering::LowerAsmOperandForConstraint(SDValue Op,
10987                                                      std::string &Constraint,
10988                                                      std::vector<SDValue>&Ops,
10989                                                      SelectionDAG &DAG) const {
10990   SDValue Result;
10991 
10992   // Only support length 1 constraints.
10993   if (Constraint.length() > 1) return;
10994 
10995   char Letter = Constraint[0];
10996   switch (Letter) {
10997   default: break;
10998   case 'I':
10999   case 'J':
11000   case 'K':
11001   case 'L':
11002   case 'M':
11003   case 'N':
11004   case 'O':
11005   case 'P': {
11006     ConstantSDNode *CST = dyn_cast<ConstantSDNode>(Op);
11007     if (!CST) return; // Must be an immediate to match.
11008     SDLoc dl(Op);
11009     int64_t Value = CST->getSExtValue();
11010     EVT TCVT = MVT::i64; // All constants taken to be 64 bits so that negative
11011                          // numbers are printed as such.
11012     switch (Letter) {
11013     default: llvm_unreachable("Unknown constraint letter!");
11014     case 'I':  // "I" is a signed 16-bit constant.
11015       if (isInt<16>(Value))
11016         Result = DAG.getTargetConstant(Value, dl, TCVT);
11017       break;
11018     case 'J':  // "J" is a constant with only the high-order 16 bits nonzero.
11019       if (isShiftedUInt<16, 16>(Value))
11020         Result = DAG.getTargetConstant(Value, dl, TCVT);
11021       break;
11022     case 'L':  // "L" is a signed 16-bit constant shifted left 16 bits.
11023       if (isShiftedInt<16, 16>(Value))
11024         Result = DAG.getTargetConstant(Value, dl, TCVT);
11025       break;
11026     case 'K':  // "K" is a constant with only the low-order 16 bits nonzero.
11027       if (isUInt<16>(Value))
11028         Result = DAG.getTargetConstant(Value, dl, TCVT);
11029       break;
11030     case 'M':  // "M" is a constant that is greater than 31.
11031       if (Value > 31)
11032         Result = DAG.getTargetConstant(Value, dl, TCVT);
11033       break;
11034     case 'N':  // "N" is a positive constant that is an exact power of two.
11035       if (Value > 0 && isPowerOf2_64(Value))
11036         Result = DAG.getTargetConstant(Value, dl, TCVT);
11037       break;
11038     case 'O':  // "O" is the constant zero.
11039       if (Value == 0)
11040         Result = DAG.getTargetConstant(Value, dl, TCVT);
11041       break;
11042     case 'P':  // "P" is a constant whose negation is a signed 16-bit constant.
11043       if (isInt<16>(-Value))
11044         Result = DAG.getTargetConstant(Value, dl, TCVT);
11045       break;
11046     }
11047     break;
11048   }
11049   }
11050 
11051   if (Result.getNode()) {
11052     Ops.push_back(Result);
11053     return;
11054   }
11055 
11056   // Handle standard constraint letters.
11057   TargetLowering::LowerAsmOperandForConstraint(Op, Constraint, Ops, DAG);
11058 }
11059 
11060 // isLegalAddressingMode - Return true if the addressing mode represented
11061 // by AM is legal for this target, for a load/store of the specified type.
11062 bool PPCTargetLowering::isLegalAddressingMode(const DataLayout &DL,
11063                                               const AddrMode &AM, Type *Ty,
11064                                               unsigned AS) const {
11065   // PPC does not allow r+i addressing modes for vectors!
11066   if (Ty->isVectorTy() && AM.BaseOffs != 0)
11067     return false;
11068 
11069   // PPC allows a sign-extended 16-bit immediate field.
11070   if (AM.BaseOffs <= -(1LL << 16) || AM.BaseOffs >= (1LL << 16)-1)
11071     return false;
11072 
11073   // No global is ever allowed as a base.
11074   if (AM.BaseGV)
11075     return false;
11076 
11077   // PPC only support r+r,
11078   switch (AM.Scale) {
11079   case 0:  // "r+i" or just "i", depending on HasBaseReg.
11080     break;
11081   case 1:
11082     if (AM.HasBaseReg && AM.BaseOffs)  // "r+r+i" is not allowed.
11083       return false;
11084     // Otherwise we have r+r or r+i.
11085     break;
11086   case 2:
11087     if (AM.HasBaseReg || AM.BaseOffs)  // 2*r+r  or  2*r+i is not allowed.
11088       return false;
11089     // Allow 2*r as r+r.
11090     break;
11091   default:
11092     // No other scales are supported.
11093     return false;
11094   }
11095 
11096   return true;
11097 }
11098 
11099 SDValue PPCTargetLowering::LowerRETURNADDR(SDValue Op,
11100                                            SelectionDAG &DAG) const {
11101   MachineFunction &MF = DAG.getMachineFunction();
11102   MachineFrameInfo *MFI = MF.getFrameInfo();
11103   MFI->setReturnAddressIsTaken(true);
11104 
11105   if (verifyReturnAddressArgumentIsConstant(Op, DAG))
11106     return SDValue();
11107 
11108   SDLoc dl(Op);
11109   unsigned Depth = cast<ConstantSDNode>(Op.getOperand(0))->getZExtValue();
11110 
11111   // Make sure the function does not optimize away the store of the RA to
11112   // the stack.
11113   PPCFunctionInfo *FuncInfo = MF.getInfo<PPCFunctionInfo>();
11114   FuncInfo->setLRStoreRequired();
11115   bool isPPC64 = Subtarget.isPPC64();
11116   auto PtrVT = getPointerTy(MF.getDataLayout());
11117 
11118   if (Depth > 0) {
11119     SDValue FrameAddr = LowerFRAMEADDR(Op, DAG);
11120     SDValue Offset =
11121         DAG.getConstant(Subtarget.getFrameLowering()->getReturnSaveOffset(), dl,
11122                         isPPC64 ? MVT::i64 : MVT::i32);
11123     return DAG.getLoad(PtrVT, dl, DAG.getEntryNode(),
11124                        DAG.getNode(ISD::ADD, dl, PtrVT, FrameAddr, Offset),
11125                        MachinePointerInfo(), false, false, false, 0);
11126   }
11127 
11128   // Just load the return address off the stack.
11129   SDValue RetAddrFI = getReturnAddrFrameIndex(DAG);
11130   return DAG.getLoad(PtrVT, dl, DAG.getEntryNode(), RetAddrFI,
11131                      MachinePointerInfo(), false, false, false, 0);
11132 }
11133 
11134 SDValue PPCTargetLowering::LowerFRAMEADDR(SDValue Op,
11135                                           SelectionDAG &DAG) const {
11136   SDLoc dl(Op);
11137   unsigned Depth = cast<ConstantSDNode>(Op.getOperand(0))->getZExtValue();
11138 
11139   MachineFunction &MF = DAG.getMachineFunction();
11140   MachineFrameInfo *MFI = MF.getFrameInfo();
11141   MFI->setFrameAddressIsTaken(true);
11142 
11143   EVT PtrVT = DAG.getTargetLoweringInfo().getPointerTy(MF.getDataLayout());
11144   bool isPPC64 = PtrVT == MVT::i64;
11145 
11146   // Naked functions never have a frame pointer, and so we use r1. For all
11147   // other functions, this decision must be delayed until during PEI.
11148   unsigned FrameReg;
11149   if (MF.getFunction()->hasFnAttribute(Attribute::Naked))
11150     FrameReg = isPPC64 ? PPC::X1 : PPC::R1;
11151   else
11152     FrameReg = isPPC64 ? PPC::FP8 : PPC::FP;
11153 
11154   SDValue FrameAddr = DAG.getCopyFromReg(DAG.getEntryNode(), dl, FrameReg,
11155                                          PtrVT);
11156   while (Depth--)
11157     FrameAddr = DAG.getLoad(Op.getValueType(), dl, DAG.getEntryNode(),
11158                             FrameAddr, MachinePointerInfo(), false, false,
11159                             false, 0);
11160   return FrameAddr;
11161 }
11162 
11163 // FIXME? Maybe this could be a TableGen attribute on some registers and
11164 // this table could be generated automatically from RegInfo.
11165 unsigned PPCTargetLowering::getRegisterByName(const char* RegName, EVT VT,
11166                                               SelectionDAG &DAG) const {
11167   bool isPPC64 = Subtarget.isPPC64();
11168   bool isDarwinABI = Subtarget.isDarwinABI();
11169 
11170   if ((isPPC64 && VT != MVT::i64 && VT != MVT::i32) ||
11171       (!isPPC64 && VT != MVT::i32))
11172     report_fatal_error("Invalid register global variable type");
11173 
11174   bool is64Bit = isPPC64 && VT == MVT::i64;
11175   unsigned Reg = StringSwitch<unsigned>(RegName)
11176                    .Case("r1", is64Bit ? PPC::X1 : PPC::R1)
11177                    .Case("r2", (isDarwinABI || isPPC64) ? 0 : PPC::R2)
11178                    .Case("r13", (!isPPC64 && isDarwinABI) ? 0 :
11179                                   (is64Bit ? PPC::X13 : PPC::R13))
11180                    .Default(0);
11181 
11182   if (Reg)
11183     return Reg;
11184   report_fatal_error("Invalid register name global variable");
11185 }
11186 
11187 bool
11188 PPCTargetLowering::isOffsetFoldingLegal(const GlobalAddressSDNode *GA) const {
11189   // The PowerPC target isn't yet aware of offsets.
11190   return false;
11191 }
11192 
11193 bool PPCTargetLowering::getTgtMemIntrinsic(IntrinsicInfo &Info,
11194                                            const CallInst &I,
11195                                            unsigned Intrinsic) const {
11196 
11197   switch (Intrinsic) {
11198   case Intrinsic::ppc_qpx_qvlfd:
11199   case Intrinsic::ppc_qpx_qvlfs:
11200   case Intrinsic::ppc_qpx_qvlfcd:
11201   case Intrinsic::ppc_qpx_qvlfcs:
11202   case Intrinsic::ppc_qpx_qvlfiwa:
11203   case Intrinsic::ppc_qpx_qvlfiwz:
11204   case Intrinsic::ppc_altivec_lvx:
11205   case Intrinsic::ppc_altivec_lvxl:
11206   case Intrinsic::ppc_altivec_lvebx:
11207   case Intrinsic::ppc_altivec_lvehx:
11208   case Intrinsic::ppc_altivec_lvewx:
11209   case Intrinsic::ppc_vsx_lxvd2x:
11210   case Intrinsic::ppc_vsx_lxvw4x: {
11211     EVT VT;
11212     switch (Intrinsic) {
11213     case Intrinsic::ppc_altivec_lvebx:
11214       VT = MVT::i8;
11215       break;
11216     case Intrinsic::ppc_altivec_lvehx:
11217       VT = MVT::i16;
11218       break;
11219     case Intrinsic::ppc_altivec_lvewx:
11220       VT = MVT::i32;
11221       break;
11222     case Intrinsic::ppc_vsx_lxvd2x:
11223       VT = MVT::v2f64;
11224       break;
11225     case Intrinsic::ppc_qpx_qvlfd:
11226       VT = MVT::v4f64;
11227       break;
11228     case Intrinsic::ppc_qpx_qvlfs:
11229       VT = MVT::v4f32;
11230       break;
11231     case Intrinsic::ppc_qpx_qvlfcd:
11232       VT = MVT::v2f64;
11233       break;
11234     case Intrinsic::ppc_qpx_qvlfcs:
11235       VT = MVT::v2f32;
11236       break;
11237     default:
11238       VT = MVT::v4i32;
11239       break;
11240     }
11241 
11242     Info.opc = ISD::INTRINSIC_W_CHAIN;
11243     Info.memVT = VT;
11244     Info.ptrVal = I.getArgOperand(0);
11245     Info.offset = -VT.getStoreSize()+1;
11246     Info.size = 2*VT.getStoreSize()-1;
11247     Info.align = 1;
11248     Info.vol = false;
11249     Info.readMem = true;
11250     Info.writeMem = false;
11251     return true;
11252   }
11253   case Intrinsic::ppc_qpx_qvlfda:
11254   case Intrinsic::ppc_qpx_qvlfsa:
11255   case Intrinsic::ppc_qpx_qvlfcda:
11256   case Intrinsic::ppc_qpx_qvlfcsa:
11257   case Intrinsic::ppc_qpx_qvlfiwaa:
11258   case Intrinsic::ppc_qpx_qvlfiwza: {
11259     EVT VT;
11260     switch (Intrinsic) {
11261     case Intrinsic::ppc_qpx_qvlfda:
11262       VT = MVT::v4f64;
11263       break;
11264     case Intrinsic::ppc_qpx_qvlfsa:
11265       VT = MVT::v4f32;
11266       break;
11267     case Intrinsic::ppc_qpx_qvlfcda:
11268       VT = MVT::v2f64;
11269       break;
11270     case Intrinsic::ppc_qpx_qvlfcsa:
11271       VT = MVT::v2f32;
11272       break;
11273     default:
11274       VT = MVT::v4i32;
11275       break;
11276     }
11277 
11278     Info.opc = ISD::INTRINSIC_W_CHAIN;
11279     Info.memVT = VT;
11280     Info.ptrVal = I.getArgOperand(0);
11281     Info.offset = 0;
11282     Info.size = VT.getStoreSize();
11283     Info.align = 1;
11284     Info.vol = false;
11285     Info.readMem = true;
11286     Info.writeMem = false;
11287     return true;
11288   }
11289   case Intrinsic::ppc_qpx_qvstfd:
11290   case Intrinsic::ppc_qpx_qvstfs:
11291   case Intrinsic::ppc_qpx_qvstfcd:
11292   case Intrinsic::ppc_qpx_qvstfcs:
11293   case Intrinsic::ppc_qpx_qvstfiw:
11294   case Intrinsic::ppc_altivec_stvx:
11295   case Intrinsic::ppc_altivec_stvxl:
11296   case Intrinsic::ppc_altivec_stvebx:
11297   case Intrinsic::ppc_altivec_stvehx:
11298   case Intrinsic::ppc_altivec_stvewx:
11299   case Intrinsic::ppc_vsx_stxvd2x:
11300   case Intrinsic::ppc_vsx_stxvw4x: {
11301     EVT VT;
11302     switch (Intrinsic) {
11303     case Intrinsic::ppc_altivec_stvebx:
11304       VT = MVT::i8;
11305       break;
11306     case Intrinsic::ppc_altivec_stvehx:
11307       VT = MVT::i16;
11308       break;
11309     case Intrinsic::ppc_altivec_stvewx:
11310       VT = MVT::i32;
11311       break;
11312     case Intrinsic::ppc_vsx_stxvd2x:
11313       VT = MVT::v2f64;
11314       break;
11315     case Intrinsic::ppc_qpx_qvstfd:
11316       VT = MVT::v4f64;
11317       break;
11318     case Intrinsic::ppc_qpx_qvstfs:
11319       VT = MVT::v4f32;
11320       break;
11321     case Intrinsic::ppc_qpx_qvstfcd:
11322       VT = MVT::v2f64;
11323       break;
11324     case Intrinsic::ppc_qpx_qvstfcs:
11325       VT = MVT::v2f32;
11326       break;
11327     default:
11328       VT = MVT::v4i32;
11329       break;
11330     }
11331 
11332     Info.opc = ISD::INTRINSIC_VOID;
11333     Info.memVT = VT;
11334     Info.ptrVal = I.getArgOperand(1);
11335     Info.offset = -VT.getStoreSize()+1;
11336     Info.size = 2*VT.getStoreSize()-1;
11337     Info.align = 1;
11338     Info.vol = false;
11339     Info.readMem = false;
11340     Info.writeMem = true;
11341     return true;
11342   }
11343   case Intrinsic::ppc_qpx_qvstfda:
11344   case Intrinsic::ppc_qpx_qvstfsa:
11345   case Intrinsic::ppc_qpx_qvstfcda:
11346   case Intrinsic::ppc_qpx_qvstfcsa:
11347   case Intrinsic::ppc_qpx_qvstfiwa: {
11348     EVT VT;
11349     switch (Intrinsic) {
11350     case Intrinsic::ppc_qpx_qvstfda:
11351       VT = MVT::v4f64;
11352       break;
11353     case Intrinsic::ppc_qpx_qvstfsa:
11354       VT = MVT::v4f32;
11355       break;
11356     case Intrinsic::ppc_qpx_qvstfcda:
11357       VT = MVT::v2f64;
11358       break;
11359     case Intrinsic::ppc_qpx_qvstfcsa:
11360       VT = MVT::v2f32;
11361       break;
11362     default:
11363       VT = MVT::v4i32;
11364       break;
11365     }
11366 
11367     Info.opc = ISD::INTRINSIC_VOID;
11368     Info.memVT = VT;
11369     Info.ptrVal = I.getArgOperand(1);
11370     Info.offset = 0;
11371     Info.size = VT.getStoreSize();
11372     Info.align = 1;
11373     Info.vol = false;
11374     Info.readMem = false;
11375     Info.writeMem = true;
11376     return true;
11377   }
11378   default:
11379     break;
11380   }
11381 
11382   return false;
11383 }
11384 
11385 /// getOptimalMemOpType - Returns the target specific optimal type for load
11386 /// and store operations as a result of memset, memcpy, and memmove
11387 /// lowering. If DstAlign is zero that means it's safe to destination
11388 /// alignment can satisfy any constraint. Similarly if SrcAlign is zero it
11389 /// means there isn't a need to check it against alignment requirement,
11390 /// probably because the source does not need to be loaded. If 'IsMemset' is
11391 /// true, that means it's expanding a memset. If 'ZeroMemset' is true, that
11392 /// means it's a memset of zero. 'MemcpyStrSrc' indicates whether the memcpy
11393 /// source is constant so it does not need to be loaded.
11394 /// It returns EVT::Other if the type should be determined using generic
11395 /// target-independent logic.
11396 EVT PPCTargetLowering::getOptimalMemOpType(uint64_t Size,
11397                                            unsigned DstAlign, unsigned SrcAlign,
11398                                            bool IsMemset, bool ZeroMemset,
11399                                            bool MemcpyStrSrc,
11400                                            MachineFunction &MF) const {
11401   if (getTargetMachine().getOptLevel() != CodeGenOpt::None) {
11402     const Function *F = MF.getFunction();
11403     // When expanding a memset, require at least two QPX instructions to cover
11404     // the cost of loading the value to be stored from the constant pool.
11405     if (Subtarget.hasQPX() && Size >= 32 && (!IsMemset || Size >= 64) &&
11406        (!SrcAlign || SrcAlign >= 32) && (!DstAlign || DstAlign >= 32) &&
11407         !F->hasFnAttribute(Attribute::NoImplicitFloat)) {
11408       return MVT::v4f64;
11409     }
11410 
11411     // We should use Altivec/VSX loads and stores when available. For unaligned
11412     // addresses, unaligned VSX loads are only fast starting with the P8.
11413     if (Subtarget.hasAltivec() && Size >= 16 &&
11414         (((!SrcAlign || SrcAlign >= 16) && (!DstAlign || DstAlign >= 16)) ||
11415          ((IsMemset && Subtarget.hasVSX()) || Subtarget.hasP8Vector())))
11416       return MVT::v4i32;
11417   }
11418 
11419   if (Subtarget.isPPC64()) {
11420     return MVT::i64;
11421   }
11422 
11423   return MVT::i32;
11424 }
11425 
11426 /// \brief Returns true if it is beneficial to convert a load of a constant
11427 /// to just the constant itself.
11428 bool PPCTargetLowering::shouldConvertConstantLoadToIntImm(const APInt &Imm,
11429                                                           Type *Ty) const {
11430   assert(Ty->isIntegerTy());
11431 
11432   unsigned BitSize = Ty->getPrimitiveSizeInBits();
11433   return !(BitSize == 0 || BitSize > 64);
11434 }
11435 
11436 bool PPCTargetLowering::isTruncateFree(Type *Ty1, Type *Ty2) const {
11437   if (!Ty1->isIntegerTy() || !Ty2->isIntegerTy())
11438     return false;
11439   unsigned NumBits1 = Ty1->getPrimitiveSizeInBits();
11440   unsigned NumBits2 = Ty2->getPrimitiveSizeInBits();
11441   return NumBits1 == 64 && NumBits2 == 32;
11442 }
11443 
11444 bool PPCTargetLowering::isTruncateFree(EVT VT1, EVT VT2) const {
11445   if (!VT1.isInteger() || !VT2.isInteger())
11446     return false;
11447   unsigned NumBits1 = VT1.getSizeInBits();
11448   unsigned NumBits2 = VT2.getSizeInBits();
11449   return NumBits1 == 64 && NumBits2 == 32;
11450 }
11451 
11452 bool PPCTargetLowering::isZExtFree(SDValue Val, EVT VT2) const {
11453   // Generally speaking, zexts are not free, but they are free when they can be
11454   // folded with other operations.
11455   if (LoadSDNode *LD = dyn_cast<LoadSDNode>(Val)) {
11456     EVT MemVT = LD->getMemoryVT();
11457     if ((MemVT == MVT::i1 || MemVT == MVT::i8 || MemVT == MVT::i16 ||
11458          (Subtarget.isPPC64() && MemVT == MVT::i32)) &&
11459         (LD->getExtensionType() == ISD::NON_EXTLOAD ||
11460          LD->getExtensionType() == ISD::ZEXTLOAD))
11461       return true;
11462   }
11463 
11464   // FIXME: Add other cases...
11465   //  - 32-bit shifts with a zext to i64
11466   //  - zext after ctlz, bswap, etc.
11467   //  - zext after and by a constant mask
11468 
11469   return TargetLowering::isZExtFree(Val, VT2);
11470 }
11471 
11472 bool PPCTargetLowering::isFPExtFree(EVT VT) const {
11473   assert(VT.isFloatingPoint());
11474   return true;
11475 }
11476 
11477 bool PPCTargetLowering::isLegalICmpImmediate(int64_t Imm) const {
11478   return isInt<16>(Imm) || isUInt<16>(Imm);
11479 }
11480 
11481 bool PPCTargetLowering::isLegalAddImmediate(int64_t Imm) const {
11482   return isInt<16>(Imm) || isUInt<16>(Imm);
11483 }
11484 
11485 bool PPCTargetLowering::allowsMisalignedMemoryAccesses(EVT VT,
11486                                                        unsigned,
11487                                                        unsigned,
11488                                                        bool *Fast) const {
11489   if (DisablePPCUnaligned)
11490     return false;
11491 
11492   // PowerPC supports unaligned memory access for simple non-vector types.
11493   // Although accessing unaligned addresses is not as efficient as accessing
11494   // aligned addresses, it is generally more efficient than manual expansion,
11495   // and generally only traps for software emulation when crossing page
11496   // boundaries.
11497 
11498   if (!VT.isSimple())
11499     return false;
11500 
11501   if (VT.getSimpleVT().isVector()) {
11502     if (Subtarget.hasVSX()) {
11503       if (VT != MVT::v2f64 && VT != MVT::v2i64 &&
11504           VT != MVT::v4f32 && VT != MVT::v4i32)
11505         return false;
11506     } else {
11507       return false;
11508     }
11509   }
11510 
11511   if (VT == MVT::ppcf128)
11512     return false;
11513 
11514   if (Fast)
11515     *Fast = true;
11516 
11517   return true;
11518 }
11519 
11520 bool PPCTargetLowering::isFMAFasterThanFMulAndFAdd(EVT VT) const {
11521   VT = VT.getScalarType();
11522 
11523   if (!VT.isSimple())
11524     return false;
11525 
11526   switch (VT.getSimpleVT().SimpleTy) {
11527   case MVT::f32:
11528   case MVT::f64:
11529     return true;
11530   default:
11531     break;
11532   }
11533 
11534   return false;
11535 }
11536 
11537 const MCPhysReg *
11538 PPCTargetLowering::getScratchRegisters(CallingConv::ID) const {
11539   // LR is a callee-save register, but we must treat it as clobbered by any call
11540   // site. Hence we include LR in the scratch registers, which are in turn added
11541   // as implicit-defs for stackmaps and patchpoints. The same reasoning applies
11542   // to CTR, which is used by any indirect call.
11543   static const MCPhysReg ScratchRegs[] = {
11544     PPC::X12, PPC::LR8, PPC::CTR8, 0
11545   };
11546 
11547   return ScratchRegs;
11548 }
11549 
11550 unsigned PPCTargetLowering::getExceptionPointerRegister(
11551     const Constant *PersonalityFn) const {
11552   return Subtarget.isPPC64() ? PPC::X3 : PPC::R3;
11553 }
11554 
11555 unsigned PPCTargetLowering::getExceptionSelectorRegister(
11556     const Constant *PersonalityFn) const {
11557   return Subtarget.isPPC64() ? PPC::X4 : PPC::R4;
11558 }
11559 
11560 bool
11561 PPCTargetLowering::shouldExpandBuildVectorWithShuffles(
11562                      EVT VT , unsigned DefinedValues) const {
11563   if (VT == MVT::v2i64)
11564     return Subtarget.hasDirectMove(); // Don't need stack ops with direct moves
11565 
11566   if (Subtarget.hasQPX()) {
11567     if (VT == MVT::v4f32 || VT == MVT::v4f64 || VT == MVT::v4i1)
11568       return true;
11569   }
11570 
11571   return TargetLowering::shouldExpandBuildVectorWithShuffles(VT, DefinedValues);
11572 }
11573 
11574 Sched::Preference PPCTargetLowering::getSchedulingPreference(SDNode *N) const {
11575   if (DisableILPPref || Subtarget.enableMachineScheduler())
11576     return TargetLowering::getSchedulingPreference(N);
11577 
11578   return Sched::ILP;
11579 }
11580 
11581 // Create a fast isel object.
11582 FastISel *
11583 PPCTargetLowering::createFastISel(FunctionLoweringInfo &FuncInfo,
11584                                   const TargetLibraryInfo *LibInfo) const {
11585   return PPC::createFastISel(FuncInfo, LibInfo);
11586 }
11587