1 //===-- NVPTXISelLowering.cpp - NVPTX DAG Lowering Implementation ---------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file defines the interfaces that NVPTX uses to lower LLVM code into a
10 // selection DAG.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "NVPTXISelLowering.h"
15 #include "MCTargetDesc/NVPTXBaseInfo.h"
16 #include "NVPTX.h"
17 #include "NVPTXSubtarget.h"
18 #include "NVPTXTargetMachine.h"
19 #include "NVPTXTargetObjectFile.h"
20 #include "NVPTXUtilities.h"
21 #include "llvm/ADT/APInt.h"
22 #include "llvm/ADT/SmallVector.h"
23 #include "llvm/ADT/StringRef.h"
24 #include "llvm/CodeGen/Analysis.h"
25 #include "llvm/CodeGen/MachineFunction.h"
26 #include "llvm/CodeGen/MachineMemOperand.h"
27 #include "llvm/CodeGen/SelectionDAG.h"
28 #include "llvm/CodeGen/SelectionDAGNodes.h"
29 #include "llvm/CodeGen/TargetCallingConv.h"
30 #include "llvm/CodeGen/TargetLowering.h"
31 #include "llvm/CodeGen/ValueTypes.h"
32 #include "llvm/IR/Argument.h"
33 #include "llvm/IR/Attributes.h"
34 #include "llvm/IR/CallSite.h"
35 #include "llvm/IR/Constants.h"
36 #include "llvm/IR/DataLayout.h"
37 #include "llvm/IR/DerivedTypes.h"
38 #include "llvm/IR/Function.h"
39 #include "llvm/IR/GlobalValue.h"
40 #include "llvm/IR/Instruction.h"
41 #include "llvm/IR/Instructions.h"
42 #include "llvm/IR/IntrinsicsNVPTX.h"
43 #include "llvm/IR/Module.h"
44 #include "llvm/IR/Type.h"
45 #include "llvm/IR/Value.h"
46 #include "llvm/Support/Casting.h"
47 #include "llvm/Support/CodeGen.h"
48 #include "llvm/Support/CommandLine.h"
49 #include "llvm/Support/ErrorHandling.h"
50 #include "llvm/Support/MachineValueType.h"
51 #include "llvm/Support/MathExtras.h"
52 #include "llvm/Support/raw_ostream.h"
53 #include "llvm/Target/TargetMachine.h"
54 #include "llvm/Target/TargetOptions.h"
55 #include <algorithm>
56 #include <cassert>
57 #include <cstdint>
58 #include <iterator>
59 #include <sstream>
60 #include <string>
61 #include <utility>
62 #include <vector>
63 
64 #define DEBUG_TYPE "nvptx-lower"
65 
66 using namespace llvm;
67 
68 static unsigned int uniqueCallSite = 0;
69 
70 static cl::opt<bool> sched4reg(
71     "nvptx-sched4reg",
72     cl::desc("NVPTX Specific: schedule for register pressue"), cl::init(false));
73 
74 static cl::opt<unsigned>
75 FMAContractLevelOpt("nvptx-fma-level", cl::ZeroOrMore, cl::Hidden,
76                     cl::desc("NVPTX Specific: FMA contraction (0: don't do it"
77                              " 1: do it  2: do it aggressively"),
78                     cl::init(2));
79 
80 static cl::opt<int> UsePrecDivF32(
81     "nvptx-prec-divf32", cl::ZeroOrMore, cl::Hidden,
82     cl::desc("NVPTX Specifies: 0 use div.approx, 1 use div.full, 2 use"
83              " IEEE Compliant F32 div.rnd if available."),
84     cl::init(2));
85 
86 static cl::opt<bool> UsePrecSqrtF32(
87     "nvptx-prec-sqrtf32", cl::Hidden,
88     cl::desc("NVPTX Specific: 0 use sqrt.approx, 1 use sqrt.rn."),
89     cl::init(true));
90 
91 int NVPTXTargetLowering::getDivF32Level() const {
92   if (UsePrecDivF32.getNumOccurrences() > 0) {
93     // If nvptx-prec-div32=N is used on the command-line, always honor it
94     return UsePrecDivF32;
95   } else {
96     // Otherwise, use div.approx if fast math is enabled
97     if (getTargetMachine().Options.UnsafeFPMath)
98       return 0;
99     else
100       return 2;
101   }
102 }
103 
104 bool NVPTXTargetLowering::usePrecSqrtF32() const {
105   if (UsePrecSqrtF32.getNumOccurrences() > 0) {
106     // If nvptx-prec-sqrtf32 is used on the command-line, always honor it
107     return UsePrecSqrtF32;
108   } else {
109     // Otherwise, use sqrt.approx if fast math is enabled
110     return !getTargetMachine().Options.UnsafeFPMath;
111   }
112 }
113 
114 bool NVPTXTargetLowering::useF32FTZ(const MachineFunction &MF) const {
115   return MF.getDenormalMode(APFloat::IEEEsingle()).Output ==
116          DenormalMode::PreserveSign;
117 }
118 
119 static bool IsPTXVectorType(MVT VT) {
120   switch (VT.SimpleTy) {
121   default:
122     return false;
123   case MVT::v2i1:
124   case MVT::v4i1:
125   case MVT::v2i8:
126   case MVT::v4i8:
127   case MVT::v2i16:
128   case MVT::v4i16:
129   case MVT::v2i32:
130   case MVT::v4i32:
131   case MVT::v2i64:
132   case MVT::v2f16:
133   case MVT::v4f16:
134   case MVT::v8f16: // <4 x f16x2>
135   case MVT::v2f32:
136   case MVT::v4f32:
137   case MVT::v2f64:
138     return true;
139   }
140 }
141 
142 /// ComputePTXValueVTs - For the given Type \p Ty, returns the set of primitive
143 /// EVTs that compose it.  Unlike ComputeValueVTs, this will break apart vectors
144 /// into their primitive components.
145 /// NOTE: This is a band-aid for code that expects ComputeValueVTs to return the
146 /// same number of types as the Ins/Outs arrays in LowerFormalArguments,
147 /// LowerCall, and LowerReturn.
148 static void ComputePTXValueVTs(const TargetLowering &TLI, const DataLayout &DL,
149                                Type *Ty, SmallVectorImpl<EVT> &ValueVTs,
150                                SmallVectorImpl<uint64_t> *Offsets = nullptr,
151                                uint64_t StartingOffset = 0) {
152   SmallVector<EVT, 16> TempVTs;
153   SmallVector<uint64_t, 16> TempOffsets;
154 
155   // Special case for i128 - decompose to (i64, i64)
156   if (Ty->isIntegerTy(128)) {
157     ValueVTs.push_back(EVT(MVT::i64));
158     ValueVTs.push_back(EVT(MVT::i64));
159 
160     if (Offsets) {
161       Offsets->push_back(StartingOffset + 0);
162       Offsets->push_back(StartingOffset + 8);
163     }
164 
165     return;
166   }
167 
168   // Given a struct type, recursively traverse the elements with custom ComputePTXValueVTs.
169   if (StructType *STy = dyn_cast<StructType>(Ty)) {
170     auto const *SL = DL.getStructLayout(STy);
171     auto ElementNum = 0;
172     for(auto *EI : STy->elements()) {
173       ComputePTXValueVTs(TLI, DL, EI, ValueVTs, Offsets,
174                          StartingOffset + SL->getElementOffset(ElementNum));
175       ++ElementNum;
176     }
177     return;
178   }
179 
180   ComputeValueVTs(TLI, DL, Ty, TempVTs, &TempOffsets, StartingOffset);
181   for (unsigned i = 0, e = TempVTs.size(); i != e; ++i) {
182     EVT VT = TempVTs[i];
183     uint64_t Off = TempOffsets[i];
184     // Split vectors into individual elements, except for v2f16, which
185     // we will pass as a single scalar.
186     if (VT.isVector()) {
187       unsigned NumElts = VT.getVectorNumElements();
188       EVT EltVT = VT.getVectorElementType();
189       // Vectors with an even number of f16 elements will be passed to
190       // us as an array of v2f16 elements. We must match this so we
191       // stay in sync with Ins/Outs.
192       if (EltVT == MVT::f16 && NumElts % 2 == 0) {
193         EltVT = MVT::v2f16;
194         NumElts /= 2;
195       }
196       for (unsigned j = 0; j != NumElts; ++j) {
197         ValueVTs.push_back(EltVT);
198         if (Offsets)
199           Offsets->push_back(Off + j * EltVT.getStoreSize());
200       }
201     } else {
202       ValueVTs.push_back(VT);
203       if (Offsets)
204         Offsets->push_back(Off);
205     }
206   }
207 }
208 
209 // Check whether we can merge loads/stores of some of the pieces of a
210 // flattened function parameter or return value into a single vector
211 // load/store.
212 //
213 // The flattened parameter is represented as a list of EVTs and
214 // offsets, and the whole structure is aligned to ParamAlignment. This
215 // function determines whether we can load/store pieces of the
216 // parameter starting at index Idx using a single vectorized op of
217 // size AccessSize. If so, it returns the number of param pieces
218 // covered by the vector op. Otherwise, it returns 1.
219 static unsigned CanMergeParamLoadStoresStartingAt(
220     unsigned Idx, uint32_t AccessSize, const SmallVectorImpl<EVT> &ValueVTs,
221     const SmallVectorImpl<uint64_t> &Offsets, Align ParamAlignment) {
222 
223   // Can't vectorize if param alignment is not sufficient.
224   if (ParamAlignment < AccessSize)
225     return 1;
226   // Can't vectorize if offset is not aligned.
227   if (Offsets[Idx] & (AccessSize - 1))
228     return 1;
229 
230   EVT EltVT = ValueVTs[Idx];
231   unsigned EltSize = EltVT.getStoreSize();
232 
233   // Element is too large to vectorize.
234   if (EltSize >= AccessSize)
235     return 1;
236 
237   unsigned NumElts = AccessSize / EltSize;
238   // Can't vectorize if AccessBytes if not a multiple of EltSize.
239   if (AccessSize != EltSize * NumElts)
240     return 1;
241 
242   // We don't have enough elements to vectorize.
243   if (Idx + NumElts > ValueVTs.size())
244     return 1;
245 
246   // PTX ISA can only deal with 2- and 4-element vector ops.
247   if (NumElts != 4 && NumElts != 2)
248     return 1;
249 
250   for (unsigned j = Idx + 1; j < Idx + NumElts; ++j) {
251     // Types do not match.
252     if (ValueVTs[j] != EltVT)
253       return 1;
254 
255     // Elements are not contiguous.
256     if (Offsets[j] - Offsets[j - 1] != EltSize)
257       return 1;
258   }
259   // OK. We can vectorize ValueVTs[i..i+NumElts)
260   return NumElts;
261 }
262 
263 // Flags for tracking per-element vectorization state of loads/stores
264 // of a flattened function parameter or return value.
265 enum ParamVectorizationFlags {
266   PVF_INNER = 0x0, // Middle elements of a vector.
267   PVF_FIRST = 0x1, // First element of the vector.
268   PVF_LAST = 0x2,  // Last element of the vector.
269   // Scalar is effectively a 1-element vector.
270   PVF_SCALAR = PVF_FIRST | PVF_LAST
271 };
272 
273 // Computes whether and how we can vectorize the loads/stores of a
274 // flattened function parameter or return value.
275 //
276 // The flattened parameter is represented as the list of ValueVTs and
277 // Offsets, and is aligned to ParamAlignment bytes. We return a vector
278 // of the same size as ValueVTs indicating how each piece should be
279 // loaded/stored (i.e. as a scalar, or as part of a vector
280 // load/store).
281 static SmallVector<ParamVectorizationFlags, 16>
282 VectorizePTXValueVTs(const SmallVectorImpl<EVT> &ValueVTs,
283                      const SmallVectorImpl<uint64_t> &Offsets,
284                      Align ParamAlignment) {
285   // Set vector size to match ValueVTs and mark all elements as
286   // scalars by default.
287   SmallVector<ParamVectorizationFlags, 16> VectorInfo;
288   VectorInfo.assign(ValueVTs.size(), PVF_SCALAR);
289 
290   // Check what we can vectorize using 128/64/32-bit accesses.
291   for (int I = 0, E = ValueVTs.size(); I != E; ++I) {
292     // Skip elements we've already processed.
293     assert(VectorInfo[I] == PVF_SCALAR && "Unexpected vector info state.");
294     for (unsigned AccessSize : {16, 8, 4, 2}) {
295       unsigned NumElts = CanMergeParamLoadStoresStartingAt(
296           I, AccessSize, ValueVTs, Offsets, ParamAlignment);
297       // Mark vectorized elements.
298       switch (NumElts) {
299       default:
300         llvm_unreachable("Unexpected return value");
301       case 1:
302         // Can't vectorize using this size, try next smaller size.
303         continue;
304       case 2:
305         assert(I + 1 < E && "Not enough elements.");
306         VectorInfo[I] = PVF_FIRST;
307         VectorInfo[I + 1] = PVF_LAST;
308         I += 1;
309         break;
310       case 4:
311         assert(I + 3 < E && "Not enough elements.");
312         VectorInfo[I] = PVF_FIRST;
313         VectorInfo[I + 1] = PVF_INNER;
314         VectorInfo[I + 2] = PVF_INNER;
315         VectorInfo[I + 3] = PVF_LAST;
316         I += 3;
317         break;
318       }
319       // Break out of the inner loop because we've already succeeded
320       // using largest possible AccessSize.
321       break;
322     }
323   }
324   return VectorInfo;
325 }
326 
327 // NVPTXTargetLowering Constructor.
328 NVPTXTargetLowering::NVPTXTargetLowering(const NVPTXTargetMachine &TM,
329                                          const NVPTXSubtarget &STI)
330     : TargetLowering(TM), nvTM(&TM), STI(STI) {
331   // always lower memset, memcpy, and memmove intrinsics to load/store
332   // instructions, rather
333   // then generating calls to memset, mempcy or memmove.
334   MaxStoresPerMemset = (unsigned) 0xFFFFFFFF;
335   MaxStoresPerMemcpy = (unsigned) 0xFFFFFFFF;
336   MaxStoresPerMemmove = (unsigned) 0xFFFFFFFF;
337 
338   setBooleanContents(ZeroOrNegativeOneBooleanContent);
339   setBooleanVectorContents(ZeroOrNegativeOneBooleanContent);
340 
341   // Jump is Expensive. Don't create extra control flow for 'and', 'or'
342   // condition branches.
343   setJumpIsExpensive(true);
344 
345   // Wide divides are _very_ slow. Try to reduce the width of the divide if
346   // possible.
347   addBypassSlowDiv(64, 32);
348 
349   // By default, use the Source scheduling
350   if (sched4reg)
351     setSchedulingPreference(Sched::RegPressure);
352   else
353     setSchedulingPreference(Sched::Source);
354 
355   auto setFP16OperationAction = [&](unsigned Op, MVT VT, LegalizeAction Action,
356                                     LegalizeAction NoF16Action) {
357     setOperationAction(Op, VT, STI.allowFP16Math() ? Action : NoF16Action);
358   };
359 
360   addRegisterClass(MVT::i1, &NVPTX::Int1RegsRegClass);
361   addRegisterClass(MVT::i16, &NVPTX::Int16RegsRegClass);
362   addRegisterClass(MVT::i32, &NVPTX::Int32RegsRegClass);
363   addRegisterClass(MVT::i64, &NVPTX::Int64RegsRegClass);
364   addRegisterClass(MVT::f32, &NVPTX::Float32RegsRegClass);
365   addRegisterClass(MVT::f64, &NVPTX::Float64RegsRegClass);
366   addRegisterClass(MVT::f16, &NVPTX::Float16RegsRegClass);
367   addRegisterClass(MVT::v2f16, &NVPTX::Float16x2RegsRegClass);
368 
369   // Conversion to/from FP16/FP16x2 is always legal.
370   setOperationAction(ISD::SINT_TO_FP, MVT::f16, Legal);
371   setOperationAction(ISD::FP_TO_SINT, MVT::f16, Legal);
372   setOperationAction(ISD::BUILD_VECTOR, MVT::v2f16, Custom);
373   setOperationAction(ISD::EXTRACT_VECTOR_ELT, MVT::v2f16, Custom);
374   setOperationAction(ISD::INSERT_VECTOR_ELT, MVT::v2f16, Expand);
375   setOperationAction(ISD::VECTOR_SHUFFLE, MVT::v2f16, Expand);
376 
377   setFP16OperationAction(ISD::SETCC, MVT::f16, Legal, Promote);
378   setFP16OperationAction(ISD::SETCC, MVT::v2f16, Legal, Expand);
379 
380   // Operations not directly supported by NVPTX.
381   for (MVT VT : {MVT::f16, MVT::v2f16, MVT::f32, MVT::f64, MVT::i1, MVT::i8,
382                  MVT::i16, MVT::i32, MVT::i64}) {
383     setOperationAction(ISD::SELECT_CC, VT, Expand);
384     setOperationAction(ISD::BR_CC, VT, Expand);
385   }
386 
387   // Some SIGN_EXTEND_INREG can be done using cvt instruction.
388   // For others we will expand to a SHL/SRA pair.
389   setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::i64, Legal);
390   setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::i32, Legal);
391   setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::i16, Legal);
392   setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::i8 , Legal);
393   setOperationAction(ISD::SIGN_EXTEND_INREG, MVT::i1, Expand);
394 
395   setOperationAction(ISD::SHL_PARTS, MVT::i32  , Custom);
396   setOperationAction(ISD::SRA_PARTS, MVT::i32  , Custom);
397   setOperationAction(ISD::SRL_PARTS, MVT::i32  , Custom);
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 
402   setOperationAction(ISD::BITREVERSE, MVT::i32, Legal);
403   setOperationAction(ISD::BITREVERSE, MVT::i64, Legal);
404 
405   // TODO: we may consider expanding ROTL/ROTR on older GPUs.  Currently on GPUs
406   // that don't have h/w rotation we lower them to multi-instruction assembly.
407   // See ROT*_sw in NVPTXIntrInfo.td
408   setOperationAction(ISD::ROTL, MVT::i64, Legal);
409   setOperationAction(ISD::ROTR, MVT::i64, Legal);
410   setOperationAction(ISD::ROTL, MVT::i32, Legal);
411   setOperationAction(ISD::ROTR, MVT::i32, Legal);
412 
413   setOperationAction(ISD::ROTL, MVT::i16, Expand);
414   setOperationAction(ISD::ROTR, MVT::i16, Expand);
415   setOperationAction(ISD::ROTL, MVT::i8, Expand);
416   setOperationAction(ISD::ROTR, MVT::i8, Expand);
417   setOperationAction(ISD::BSWAP, MVT::i16, Expand);
418   setOperationAction(ISD::BSWAP, MVT::i32, Expand);
419   setOperationAction(ISD::BSWAP, MVT::i64, Expand);
420 
421   // Indirect branch is not supported.
422   // This also disables Jump Table creation.
423   setOperationAction(ISD::BR_JT, MVT::Other, Expand);
424   setOperationAction(ISD::BRIND, MVT::Other, Expand);
425 
426   setOperationAction(ISD::GlobalAddress, MVT::i32, Custom);
427   setOperationAction(ISD::GlobalAddress, MVT::i64, Custom);
428 
429   // We want to legalize constant related memmove and memcopy
430   // intrinsics.
431   setOperationAction(ISD::INTRINSIC_W_CHAIN, MVT::Other, Custom);
432 
433   // Turn FP extload into load/fpextend
434   setLoadExtAction(ISD::EXTLOAD, MVT::f32, MVT::f16, Expand);
435   setLoadExtAction(ISD::EXTLOAD, MVT::f64, MVT::f16, Expand);
436   setLoadExtAction(ISD::EXTLOAD, MVT::f64, MVT::f32, Expand);
437   setLoadExtAction(ISD::EXTLOAD, MVT::v2f32, MVT::v2f16, Expand);
438   setLoadExtAction(ISD::EXTLOAD, MVT::v2f64, MVT::v2f16, Expand);
439   setLoadExtAction(ISD::EXTLOAD, MVT::v2f64, MVT::v2f32, Expand);
440   setLoadExtAction(ISD::EXTLOAD, MVT::v4f32, MVT::v4f16, Expand);
441   setLoadExtAction(ISD::EXTLOAD, MVT::v4f64, MVT::v4f16, Expand);
442   setLoadExtAction(ISD::EXTLOAD, MVT::v4f64, MVT::v4f32, Expand);
443   // Turn FP truncstore into trunc + store.
444   // FIXME: vector types should also be expanded
445   setTruncStoreAction(MVT::f32, MVT::f16, Expand);
446   setTruncStoreAction(MVT::f64, MVT::f16, Expand);
447   setTruncStoreAction(MVT::f64, MVT::f32, Expand);
448 
449   // PTX does not support load / store predicate registers
450   setOperationAction(ISD::LOAD, MVT::i1, Custom);
451   setOperationAction(ISD::STORE, MVT::i1, Custom);
452 
453   for (MVT VT : MVT::integer_valuetypes()) {
454     setLoadExtAction(ISD::SEXTLOAD, VT, MVT::i1, Promote);
455     setLoadExtAction(ISD::ZEXTLOAD, VT, MVT::i1, Promote);
456     setTruncStoreAction(VT, MVT::i1, Expand);
457   }
458 
459   // This is legal in NVPTX
460   setOperationAction(ISD::ConstantFP, MVT::f64, Legal);
461   setOperationAction(ISD::ConstantFP, MVT::f32, Legal);
462   setOperationAction(ISD::ConstantFP, MVT::f16, Legal);
463 
464   // TRAP can be lowered to PTX trap
465   setOperationAction(ISD::TRAP, MVT::Other, Legal);
466 
467   // Register custom handling for vector loads/stores
468   for (MVT VT : MVT::fixedlen_vector_valuetypes()) {
469     if (IsPTXVectorType(VT)) {
470       setOperationAction(ISD::LOAD, VT, Custom);
471       setOperationAction(ISD::STORE, VT, Custom);
472       setOperationAction(ISD::INTRINSIC_W_CHAIN, VT, Custom);
473     }
474   }
475 
476   // Custom handling for i8 intrinsics
477   setOperationAction(ISD::INTRINSIC_W_CHAIN, MVT::i8, Custom);
478 
479   for (const auto& Ty : {MVT::i16, MVT::i32, MVT::i64}) {
480     setOperationAction(ISD::ABS,  Ty, Legal);
481     setOperationAction(ISD::SMIN, Ty, Legal);
482     setOperationAction(ISD::SMAX, Ty, Legal);
483     setOperationAction(ISD::UMIN, Ty, Legal);
484     setOperationAction(ISD::UMAX, Ty, Legal);
485 
486     setOperationAction(ISD::CTPOP, Ty, Legal);
487     setOperationAction(ISD::CTLZ, Ty, Legal);
488   }
489 
490   setOperationAction(ISD::CTTZ, MVT::i16, Expand);
491   setOperationAction(ISD::CTTZ, MVT::i32, Expand);
492   setOperationAction(ISD::CTTZ, MVT::i64, Expand);
493 
494   // PTX does not directly support SELP of i1, so promote to i32 first
495   setOperationAction(ISD::SELECT, MVT::i1, Custom);
496 
497   // PTX cannot multiply two i64s in a single instruction.
498   setOperationAction(ISD::SMUL_LOHI, MVT::i64, Expand);
499   setOperationAction(ISD::UMUL_LOHI, MVT::i64, Expand);
500 
501   // We have some custom DAG combine patterns for these nodes
502   setTargetDAGCombine(ISD::ADD);
503   setTargetDAGCombine(ISD::AND);
504   setTargetDAGCombine(ISD::FADD);
505   setTargetDAGCombine(ISD::MUL);
506   setTargetDAGCombine(ISD::SHL);
507   setTargetDAGCombine(ISD::SREM);
508   setTargetDAGCombine(ISD::UREM);
509 
510   // setcc for f16x2 needs special handling to prevent legalizer's
511   // attempt to scalarize it due to v2i1 not being legal.
512   if (STI.allowFP16Math())
513     setTargetDAGCombine(ISD::SETCC);
514 
515   // Promote fp16 arithmetic if fp16 hardware isn't available or the
516   // user passed --nvptx-no-fp16-math. The flag is useful because,
517   // although sm_53+ GPUs have some sort of FP16 support in
518   // hardware, only sm_53 and sm_60 have full implementation. Others
519   // only have token amount of hardware and are likely to run faster
520   // by using fp32 units instead.
521   for (const auto &Op : {ISD::FADD, ISD::FMUL, ISD::FSUB, ISD::FMA}) {
522     setFP16OperationAction(Op, MVT::f16, Legal, Promote);
523     setFP16OperationAction(Op, MVT::v2f16, Legal, Expand);
524   }
525 
526   // There's no neg.f16 instruction. Expand to (0-x).
527   setOperationAction(ISD::FNEG, MVT::f16, Expand);
528   setOperationAction(ISD::FNEG, MVT::v2f16, Expand);
529 
530   // (would be) Library functions.
531 
532   // These map to conversion instructions for scalar FP types.
533   for (const auto &Op : {ISD::FCEIL, ISD::FFLOOR, ISD::FNEARBYINT, ISD::FRINT,
534                          ISD::FTRUNC}) {
535     setOperationAction(Op, MVT::f16, Legal);
536     setOperationAction(Op, MVT::f32, Legal);
537     setOperationAction(Op, MVT::f64, Legal);
538     setOperationAction(Op, MVT::v2f16, Expand);
539   }
540 
541   setOperationAction(ISD::FROUND, MVT::f16, Promote);
542   setOperationAction(ISD::FROUND, MVT::v2f16, Expand);
543   setOperationAction(ISD::FROUND, MVT::f32, Custom);
544   setOperationAction(ISD::FROUND, MVT::f64, Custom);
545 
546 
547   // 'Expand' implements FCOPYSIGN without calling an external library.
548   setOperationAction(ISD::FCOPYSIGN, MVT::f16, Expand);
549   setOperationAction(ISD::FCOPYSIGN, MVT::v2f16, Expand);
550   setOperationAction(ISD::FCOPYSIGN, MVT::f32, Expand);
551   setOperationAction(ISD::FCOPYSIGN, MVT::f64, Expand);
552 
553   // These map to corresponding instructions for f32/f64. f16 must be
554   // promoted to f32. v2f16 is expanded to f16, which is then promoted
555   // to f32.
556   for (const auto &Op : {ISD::FDIV, ISD::FREM, ISD::FSQRT, ISD::FSIN, ISD::FCOS,
557                          ISD::FABS, ISD::FMINNUM, ISD::FMAXNUM}) {
558     setOperationAction(Op, MVT::f16, Promote);
559     setOperationAction(Op, MVT::f32, Legal);
560     setOperationAction(Op, MVT::f64, Legal);
561     setOperationAction(Op, MVT::v2f16, Expand);
562   }
563   setOperationAction(ISD::FMINNUM, MVT::f16, Promote);
564   setOperationAction(ISD::FMAXNUM, MVT::f16, Promote);
565   setOperationAction(ISD::FMINIMUM, MVT::f16, Promote);
566   setOperationAction(ISD::FMAXIMUM, MVT::f16, Promote);
567 
568   // No FEXP2, FLOG2.  The PTX ex2 and log2 functions are always approximate.
569   // No FPOW or FREM in PTX.
570 
571   // Now deduce the information based on the above mentioned
572   // actions
573   computeRegisterProperties(STI.getRegisterInfo());
574 }
575 
576 const char *NVPTXTargetLowering::getTargetNodeName(unsigned Opcode) const {
577   switch ((NVPTXISD::NodeType)Opcode) {
578   case NVPTXISD::FIRST_NUMBER:
579     break;
580   case NVPTXISD::CALL:
581     return "NVPTXISD::CALL";
582   case NVPTXISD::RET_FLAG:
583     return "NVPTXISD::RET_FLAG";
584   case NVPTXISD::LOAD_PARAM:
585     return "NVPTXISD::LOAD_PARAM";
586   case NVPTXISD::Wrapper:
587     return "NVPTXISD::Wrapper";
588   case NVPTXISD::DeclareParam:
589     return "NVPTXISD::DeclareParam";
590   case NVPTXISD::DeclareScalarParam:
591     return "NVPTXISD::DeclareScalarParam";
592   case NVPTXISD::DeclareRet:
593     return "NVPTXISD::DeclareRet";
594   case NVPTXISD::DeclareScalarRet:
595     return "NVPTXISD::DeclareScalarRet";
596   case NVPTXISD::DeclareRetParam:
597     return "NVPTXISD::DeclareRetParam";
598   case NVPTXISD::PrintCall:
599     return "NVPTXISD::PrintCall";
600   case NVPTXISD::PrintConvergentCall:
601     return "NVPTXISD::PrintConvergentCall";
602   case NVPTXISD::PrintCallUni:
603     return "NVPTXISD::PrintCallUni";
604   case NVPTXISD::PrintConvergentCallUni:
605     return "NVPTXISD::PrintConvergentCallUni";
606   case NVPTXISD::LoadParam:
607     return "NVPTXISD::LoadParam";
608   case NVPTXISD::LoadParamV2:
609     return "NVPTXISD::LoadParamV2";
610   case NVPTXISD::LoadParamV4:
611     return "NVPTXISD::LoadParamV4";
612   case NVPTXISD::StoreParam:
613     return "NVPTXISD::StoreParam";
614   case NVPTXISD::StoreParamV2:
615     return "NVPTXISD::StoreParamV2";
616   case NVPTXISD::StoreParamV4:
617     return "NVPTXISD::StoreParamV4";
618   case NVPTXISD::StoreParamS32:
619     return "NVPTXISD::StoreParamS32";
620   case NVPTXISD::StoreParamU32:
621     return "NVPTXISD::StoreParamU32";
622   case NVPTXISD::CallArgBegin:
623     return "NVPTXISD::CallArgBegin";
624   case NVPTXISD::CallArg:
625     return "NVPTXISD::CallArg";
626   case NVPTXISD::LastCallArg:
627     return "NVPTXISD::LastCallArg";
628   case NVPTXISD::CallArgEnd:
629     return "NVPTXISD::CallArgEnd";
630   case NVPTXISD::CallVoid:
631     return "NVPTXISD::CallVoid";
632   case NVPTXISD::CallVal:
633     return "NVPTXISD::CallVal";
634   case NVPTXISD::CallSymbol:
635     return "NVPTXISD::CallSymbol";
636   case NVPTXISD::Prototype:
637     return "NVPTXISD::Prototype";
638   case NVPTXISD::MoveParam:
639     return "NVPTXISD::MoveParam";
640   case NVPTXISD::StoreRetval:
641     return "NVPTXISD::StoreRetval";
642   case NVPTXISD::StoreRetvalV2:
643     return "NVPTXISD::StoreRetvalV2";
644   case NVPTXISD::StoreRetvalV4:
645     return "NVPTXISD::StoreRetvalV4";
646   case NVPTXISD::PseudoUseParam:
647     return "NVPTXISD::PseudoUseParam";
648   case NVPTXISD::RETURN:
649     return "NVPTXISD::RETURN";
650   case NVPTXISD::CallSeqBegin:
651     return "NVPTXISD::CallSeqBegin";
652   case NVPTXISD::CallSeqEnd:
653     return "NVPTXISD::CallSeqEnd";
654   case NVPTXISD::CallPrototype:
655     return "NVPTXISD::CallPrototype";
656   case NVPTXISD::ProxyReg:
657     return "NVPTXISD::ProxyReg";
658   case NVPTXISD::LoadV2:
659     return "NVPTXISD::LoadV2";
660   case NVPTXISD::LoadV4:
661     return "NVPTXISD::LoadV4";
662   case NVPTXISD::LDGV2:
663     return "NVPTXISD::LDGV2";
664   case NVPTXISD::LDGV4:
665     return "NVPTXISD::LDGV4";
666   case NVPTXISD::LDUV2:
667     return "NVPTXISD::LDUV2";
668   case NVPTXISD::LDUV4:
669     return "NVPTXISD::LDUV4";
670   case NVPTXISD::StoreV2:
671     return "NVPTXISD::StoreV2";
672   case NVPTXISD::StoreV4:
673     return "NVPTXISD::StoreV4";
674   case NVPTXISD::FUN_SHFL_CLAMP:
675     return "NVPTXISD::FUN_SHFL_CLAMP";
676   case NVPTXISD::FUN_SHFR_CLAMP:
677     return "NVPTXISD::FUN_SHFR_CLAMP";
678   case NVPTXISD::IMAD:
679     return "NVPTXISD::IMAD";
680   case NVPTXISD::SETP_F16X2:
681     return "NVPTXISD::SETP_F16X2";
682   case NVPTXISD::Dummy:
683     return "NVPTXISD::Dummy";
684   case NVPTXISD::MUL_WIDE_SIGNED:
685     return "NVPTXISD::MUL_WIDE_SIGNED";
686   case NVPTXISD::MUL_WIDE_UNSIGNED:
687     return "NVPTXISD::MUL_WIDE_UNSIGNED";
688   case NVPTXISD::Tex1DFloatS32:        return "NVPTXISD::Tex1DFloatS32";
689   case NVPTXISD::Tex1DFloatFloat:      return "NVPTXISD::Tex1DFloatFloat";
690   case NVPTXISD::Tex1DFloatFloatLevel:
691     return "NVPTXISD::Tex1DFloatFloatLevel";
692   case NVPTXISD::Tex1DFloatFloatGrad:
693     return "NVPTXISD::Tex1DFloatFloatGrad";
694   case NVPTXISD::Tex1DS32S32:          return "NVPTXISD::Tex1DS32S32";
695   case NVPTXISD::Tex1DS32Float:        return "NVPTXISD::Tex1DS32Float";
696   case NVPTXISD::Tex1DS32FloatLevel:
697     return "NVPTXISD::Tex1DS32FloatLevel";
698   case NVPTXISD::Tex1DS32FloatGrad:
699     return "NVPTXISD::Tex1DS32FloatGrad";
700   case NVPTXISD::Tex1DU32S32:          return "NVPTXISD::Tex1DU32S32";
701   case NVPTXISD::Tex1DU32Float:        return "NVPTXISD::Tex1DU32Float";
702   case NVPTXISD::Tex1DU32FloatLevel:
703     return "NVPTXISD::Tex1DU32FloatLevel";
704   case NVPTXISD::Tex1DU32FloatGrad:
705     return "NVPTXISD::Tex1DU32FloatGrad";
706   case NVPTXISD::Tex1DArrayFloatS32:   return "NVPTXISD::Tex1DArrayFloatS32";
707   case NVPTXISD::Tex1DArrayFloatFloat: return "NVPTXISD::Tex1DArrayFloatFloat";
708   case NVPTXISD::Tex1DArrayFloatFloatLevel:
709     return "NVPTXISD::Tex1DArrayFloatFloatLevel";
710   case NVPTXISD::Tex1DArrayFloatFloatGrad:
711     return "NVPTXISD::Tex1DArrayFloatFloatGrad";
712   case NVPTXISD::Tex1DArrayS32S32:     return "NVPTXISD::Tex1DArrayS32S32";
713   case NVPTXISD::Tex1DArrayS32Float:   return "NVPTXISD::Tex1DArrayS32Float";
714   case NVPTXISD::Tex1DArrayS32FloatLevel:
715     return "NVPTXISD::Tex1DArrayS32FloatLevel";
716   case NVPTXISD::Tex1DArrayS32FloatGrad:
717     return "NVPTXISD::Tex1DArrayS32FloatGrad";
718   case NVPTXISD::Tex1DArrayU32S32:     return "NVPTXISD::Tex1DArrayU32S32";
719   case NVPTXISD::Tex1DArrayU32Float:   return "NVPTXISD::Tex1DArrayU32Float";
720   case NVPTXISD::Tex1DArrayU32FloatLevel:
721     return "NVPTXISD::Tex1DArrayU32FloatLevel";
722   case NVPTXISD::Tex1DArrayU32FloatGrad:
723     return "NVPTXISD::Tex1DArrayU32FloatGrad";
724   case NVPTXISD::Tex2DFloatS32:        return "NVPTXISD::Tex2DFloatS32";
725   case NVPTXISD::Tex2DFloatFloat:      return "NVPTXISD::Tex2DFloatFloat";
726   case NVPTXISD::Tex2DFloatFloatLevel:
727     return "NVPTXISD::Tex2DFloatFloatLevel";
728   case NVPTXISD::Tex2DFloatFloatGrad:
729     return "NVPTXISD::Tex2DFloatFloatGrad";
730   case NVPTXISD::Tex2DS32S32:          return "NVPTXISD::Tex2DS32S32";
731   case NVPTXISD::Tex2DS32Float:        return "NVPTXISD::Tex2DS32Float";
732   case NVPTXISD::Tex2DS32FloatLevel:
733     return "NVPTXISD::Tex2DS32FloatLevel";
734   case NVPTXISD::Tex2DS32FloatGrad:
735     return "NVPTXISD::Tex2DS32FloatGrad";
736   case NVPTXISD::Tex2DU32S32:          return "NVPTXISD::Tex2DU32S32";
737   case NVPTXISD::Tex2DU32Float:        return "NVPTXISD::Tex2DU32Float";
738   case NVPTXISD::Tex2DU32FloatLevel:
739     return "NVPTXISD::Tex2DU32FloatLevel";
740   case NVPTXISD::Tex2DU32FloatGrad:
741     return "NVPTXISD::Tex2DU32FloatGrad";
742   case NVPTXISD::Tex2DArrayFloatS32:   return "NVPTXISD::Tex2DArrayFloatS32";
743   case NVPTXISD::Tex2DArrayFloatFloat: return "NVPTXISD::Tex2DArrayFloatFloat";
744   case NVPTXISD::Tex2DArrayFloatFloatLevel:
745     return "NVPTXISD::Tex2DArrayFloatFloatLevel";
746   case NVPTXISD::Tex2DArrayFloatFloatGrad:
747     return "NVPTXISD::Tex2DArrayFloatFloatGrad";
748   case NVPTXISD::Tex2DArrayS32S32:     return "NVPTXISD::Tex2DArrayS32S32";
749   case NVPTXISD::Tex2DArrayS32Float:   return "NVPTXISD::Tex2DArrayS32Float";
750   case NVPTXISD::Tex2DArrayS32FloatLevel:
751     return "NVPTXISD::Tex2DArrayS32FloatLevel";
752   case NVPTXISD::Tex2DArrayS32FloatGrad:
753     return "NVPTXISD::Tex2DArrayS32FloatGrad";
754   case NVPTXISD::Tex2DArrayU32S32:     return "NVPTXISD::Tex2DArrayU32S32";
755   case NVPTXISD::Tex2DArrayU32Float:   return "NVPTXISD::Tex2DArrayU32Float";
756   case NVPTXISD::Tex2DArrayU32FloatLevel:
757     return "NVPTXISD::Tex2DArrayU32FloatLevel";
758   case NVPTXISD::Tex2DArrayU32FloatGrad:
759     return "NVPTXISD::Tex2DArrayU32FloatGrad";
760   case NVPTXISD::Tex3DFloatS32:        return "NVPTXISD::Tex3DFloatS32";
761   case NVPTXISD::Tex3DFloatFloat:      return "NVPTXISD::Tex3DFloatFloat";
762   case NVPTXISD::Tex3DFloatFloatLevel:
763     return "NVPTXISD::Tex3DFloatFloatLevel";
764   case NVPTXISD::Tex3DFloatFloatGrad:
765     return "NVPTXISD::Tex3DFloatFloatGrad";
766   case NVPTXISD::Tex3DS32S32:          return "NVPTXISD::Tex3DS32S32";
767   case NVPTXISD::Tex3DS32Float:        return "NVPTXISD::Tex3DS32Float";
768   case NVPTXISD::Tex3DS32FloatLevel:
769     return "NVPTXISD::Tex3DS32FloatLevel";
770   case NVPTXISD::Tex3DS32FloatGrad:
771     return "NVPTXISD::Tex3DS32FloatGrad";
772   case NVPTXISD::Tex3DU32S32:          return "NVPTXISD::Tex3DU32S32";
773   case NVPTXISD::Tex3DU32Float:        return "NVPTXISD::Tex3DU32Float";
774   case NVPTXISD::Tex3DU32FloatLevel:
775     return "NVPTXISD::Tex3DU32FloatLevel";
776   case NVPTXISD::Tex3DU32FloatGrad:
777     return "NVPTXISD::Tex3DU32FloatGrad";
778   case NVPTXISD::TexCubeFloatFloat:      return "NVPTXISD::TexCubeFloatFloat";
779   case NVPTXISD::TexCubeFloatFloatLevel:
780     return "NVPTXISD::TexCubeFloatFloatLevel";
781   case NVPTXISD::TexCubeS32Float:        return "NVPTXISD::TexCubeS32Float";
782   case NVPTXISD::TexCubeS32FloatLevel:
783     return "NVPTXISD::TexCubeS32FloatLevel";
784   case NVPTXISD::TexCubeU32Float:        return "NVPTXISD::TexCubeU32Float";
785   case NVPTXISD::TexCubeU32FloatLevel:
786     return "NVPTXISD::TexCubeU32FloatLevel";
787   case NVPTXISD::TexCubeArrayFloatFloat:
788     return "NVPTXISD::TexCubeArrayFloatFloat";
789   case NVPTXISD::TexCubeArrayFloatFloatLevel:
790     return "NVPTXISD::TexCubeArrayFloatFloatLevel";
791   case NVPTXISD::TexCubeArrayS32Float:
792     return "NVPTXISD::TexCubeArrayS32Float";
793   case NVPTXISD::TexCubeArrayS32FloatLevel:
794     return "NVPTXISD::TexCubeArrayS32FloatLevel";
795   case NVPTXISD::TexCubeArrayU32Float:
796     return "NVPTXISD::TexCubeArrayU32Float";
797   case NVPTXISD::TexCubeArrayU32FloatLevel:
798     return "NVPTXISD::TexCubeArrayU32FloatLevel";
799   case NVPTXISD::Tld4R2DFloatFloat:
800     return "NVPTXISD::Tld4R2DFloatFloat";
801   case NVPTXISD::Tld4G2DFloatFloat:
802     return "NVPTXISD::Tld4G2DFloatFloat";
803   case NVPTXISD::Tld4B2DFloatFloat:
804     return "NVPTXISD::Tld4B2DFloatFloat";
805   case NVPTXISD::Tld4A2DFloatFloat:
806     return "NVPTXISD::Tld4A2DFloatFloat";
807   case NVPTXISD::Tld4R2DS64Float:
808     return "NVPTXISD::Tld4R2DS64Float";
809   case NVPTXISD::Tld4G2DS64Float:
810     return "NVPTXISD::Tld4G2DS64Float";
811   case NVPTXISD::Tld4B2DS64Float:
812     return "NVPTXISD::Tld4B2DS64Float";
813   case NVPTXISD::Tld4A2DS64Float:
814     return "NVPTXISD::Tld4A2DS64Float";
815   case NVPTXISD::Tld4R2DU64Float:
816     return "NVPTXISD::Tld4R2DU64Float";
817   case NVPTXISD::Tld4G2DU64Float:
818     return "NVPTXISD::Tld4G2DU64Float";
819   case NVPTXISD::Tld4B2DU64Float:
820     return "NVPTXISD::Tld4B2DU64Float";
821   case NVPTXISD::Tld4A2DU64Float:
822     return "NVPTXISD::Tld4A2DU64Float";
823 
824   case NVPTXISD::TexUnified1DFloatS32:
825     return "NVPTXISD::TexUnified1DFloatS32";
826   case NVPTXISD::TexUnified1DFloatFloat:
827     return "NVPTXISD::TexUnified1DFloatFloat";
828   case NVPTXISD::TexUnified1DFloatFloatLevel:
829     return "NVPTXISD::TexUnified1DFloatFloatLevel";
830   case NVPTXISD::TexUnified1DFloatFloatGrad:
831     return "NVPTXISD::TexUnified1DFloatFloatGrad";
832   case NVPTXISD::TexUnified1DS32S32:
833     return "NVPTXISD::TexUnified1DS32S32";
834   case NVPTXISD::TexUnified1DS32Float:
835     return "NVPTXISD::TexUnified1DS32Float";
836   case NVPTXISD::TexUnified1DS32FloatLevel:
837     return "NVPTXISD::TexUnified1DS32FloatLevel";
838   case NVPTXISD::TexUnified1DS32FloatGrad:
839     return "NVPTXISD::TexUnified1DS32FloatGrad";
840   case NVPTXISD::TexUnified1DU32S32:
841     return "NVPTXISD::TexUnified1DU32S32";
842   case NVPTXISD::TexUnified1DU32Float:
843     return "NVPTXISD::TexUnified1DU32Float";
844   case NVPTXISD::TexUnified1DU32FloatLevel:
845     return "NVPTXISD::TexUnified1DU32FloatLevel";
846   case NVPTXISD::TexUnified1DU32FloatGrad:
847     return "NVPTXISD::TexUnified1DU32FloatGrad";
848   case NVPTXISD::TexUnified1DArrayFloatS32:
849     return "NVPTXISD::TexUnified1DArrayFloatS32";
850   case NVPTXISD::TexUnified1DArrayFloatFloat:
851     return "NVPTXISD::TexUnified1DArrayFloatFloat";
852   case NVPTXISD::TexUnified1DArrayFloatFloatLevel:
853     return "NVPTXISD::TexUnified1DArrayFloatFloatLevel";
854   case NVPTXISD::TexUnified1DArrayFloatFloatGrad:
855     return "NVPTXISD::TexUnified1DArrayFloatFloatGrad";
856   case NVPTXISD::TexUnified1DArrayS32S32:
857     return "NVPTXISD::TexUnified1DArrayS32S32";
858   case NVPTXISD::TexUnified1DArrayS32Float:
859     return "NVPTXISD::TexUnified1DArrayS32Float";
860   case NVPTXISD::TexUnified1DArrayS32FloatLevel:
861     return "NVPTXISD::TexUnified1DArrayS32FloatLevel";
862   case NVPTXISD::TexUnified1DArrayS32FloatGrad:
863     return "NVPTXISD::TexUnified1DArrayS32FloatGrad";
864   case NVPTXISD::TexUnified1DArrayU32S32:
865     return "NVPTXISD::TexUnified1DArrayU32S32";
866   case NVPTXISD::TexUnified1DArrayU32Float:
867     return "NVPTXISD::TexUnified1DArrayU32Float";
868   case NVPTXISD::TexUnified1DArrayU32FloatLevel:
869     return "NVPTXISD::TexUnified1DArrayU32FloatLevel";
870   case NVPTXISD::TexUnified1DArrayU32FloatGrad:
871     return "NVPTXISD::TexUnified1DArrayU32FloatGrad";
872   case NVPTXISD::TexUnified2DFloatS32:
873     return "NVPTXISD::TexUnified2DFloatS32";
874   case NVPTXISD::TexUnified2DFloatFloat:
875     return "NVPTXISD::TexUnified2DFloatFloat";
876   case NVPTXISD::TexUnified2DFloatFloatLevel:
877     return "NVPTXISD::TexUnified2DFloatFloatLevel";
878   case NVPTXISD::TexUnified2DFloatFloatGrad:
879     return "NVPTXISD::TexUnified2DFloatFloatGrad";
880   case NVPTXISD::TexUnified2DS32S32:
881     return "NVPTXISD::TexUnified2DS32S32";
882   case NVPTXISD::TexUnified2DS32Float:
883     return "NVPTXISD::TexUnified2DS32Float";
884   case NVPTXISD::TexUnified2DS32FloatLevel:
885     return "NVPTXISD::TexUnified2DS32FloatLevel";
886   case NVPTXISD::TexUnified2DS32FloatGrad:
887     return "NVPTXISD::TexUnified2DS32FloatGrad";
888   case NVPTXISD::TexUnified2DU32S32:
889     return "NVPTXISD::TexUnified2DU32S32";
890   case NVPTXISD::TexUnified2DU32Float:
891     return "NVPTXISD::TexUnified2DU32Float";
892   case NVPTXISD::TexUnified2DU32FloatLevel:
893     return "NVPTXISD::TexUnified2DU32FloatLevel";
894   case NVPTXISD::TexUnified2DU32FloatGrad:
895     return "NVPTXISD::TexUnified2DU32FloatGrad";
896   case NVPTXISD::TexUnified2DArrayFloatS32:
897     return "NVPTXISD::TexUnified2DArrayFloatS32";
898   case NVPTXISD::TexUnified2DArrayFloatFloat:
899     return "NVPTXISD::TexUnified2DArrayFloatFloat";
900   case NVPTXISD::TexUnified2DArrayFloatFloatLevel:
901     return "NVPTXISD::TexUnified2DArrayFloatFloatLevel";
902   case NVPTXISD::TexUnified2DArrayFloatFloatGrad:
903     return "NVPTXISD::TexUnified2DArrayFloatFloatGrad";
904   case NVPTXISD::TexUnified2DArrayS32S32:
905     return "NVPTXISD::TexUnified2DArrayS32S32";
906   case NVPTXISD::TexUnified2DArrayS32Float:
907     return "NVPTXISD::TexUnified2DArrayS32Float";
908   case NVPTXISD::TexUnified2DArrayS32FloatLevel:
909     return "NVPTXISD::TexUnified2DArrayS32FloatLevel";
910   case NVPTXISD::TexUnified2DArrayS32FloatGrad:
911     return "NVPTXISD::TexUnified2DArrayS32FloatGrad";
912   case NVPTXISD::TexUnified2DArrayU32S32:
913     return "NVPTXISD::TexUnified2DArrayU32S32";
914   case NVPTXISD::TexUnified2DArrayU32Float:
915     return "NVPTXISD::TexUnified2DArrayU32Float";
916   case NVPTXISD::TexUnified2DArrayU32FloatLevel:
917     return "NVPTXISD::TexUnified2DArrayU32FloatLevel";
918   case NVPTXISD::TexUnified2DArrayU32FloatGrad:
919     return "NVPTXISD::TexUnified2DArrayU32FloatGrad";
920   case NVPTXISD::TexUnified3DFloatS32:
921     return "NVPTXISD::TexUnified3DFloatS32";
922   case NVPTXISD::TexUnified3DFloatFloat:
923     return "NVPTXISD::TexUnified3DFloatFloat";
924   case NVPTXISD::TexUnified3DFloatFloatLevel:
925     return "NVPTXISD::TexUnified3DFloatFloatLevel";
926   case NVPTXISD::TexUnified3DFloatFloatGrad:
927     return "NVPTXISD::TexUnified3DFloatFloatGrad";
928   case NVPTXISD::TexUnified3DS32S32:
929     return "NVPTXISD::TexUnified3DS32S32";
930   case NVPTXISD::TexUnified3DS32Float:
931     return "NVPTXISD::TexUnified3DS32Float";
932   case NVPTXISD::TexUnified3DS32FloatLevel:
933     return "NVPTXISD::TexUnified3DS32FloatLevel";
934   case NVPTXISD::TexUnified3DS32FloatGrad:
935     return "NVPTXISD::TexUnified3DS32FloatGrad";
936   case NVPTXISD::TexUnified3DU32S32:
937     return "NVPTXISD::TexUnified3DU32S32";
938   case NVPTXISD::TexUnified3DU32Float:
939     return "NVPTXISD::TexUnified3DU32Float";
940   case NVPTXISD::TexUnified3DU32FloatLevel:
941     return "NVPTXISD::TexUnified3DU32FloatLevel";
942   case NVPTXISD::TexUnified3DU32FloatGrad:
943     return "NVPTXISD::TexUnified3DU32FloatGrad";
944   case NVPTXISD::TexUnifiedCubeFloatFloat:
945     return "NVPTXISD::TexUnifiedCubeFloatFloat";
946   case NVPTXISD::TexUnifiedCubeFloatFloatLevel:
947     return "NVPTXISD::TexUnifiedCubeFloatFloatLevel";
948   case NVPTXISD::TexUnifiedCubeS32Float:
949     return "NVPTXISD::TexUnifiedCubeS32Float";
950   case NVPTXISD::TexUnifiedCubeS32FloatLevel:
951     return "NVPTXISD::TexUnifiedCubeS32FloatLevel";
952   case NVPTXISD::TexUnifiedCubeU32Float:
953     return "NVPTXISD::TexUnifiedCubeU32Float";
954   case NVPTXISD::TexUnifiedCubeU32FloatLevel:
955     return "NVPTXISD::TexUnifiedCubeU32FloatLevel";
956   case NVPTXISD::TexUnifiedCubeArrayFloatFloat:
957     return "NVPTXISD::TexUnifiedCubeArrayFloatFloat";
958   case NVPTXISD::TexUnifiedCubeArrayFloatFloatLevel:
959     return "NVPTXISD::TexUnifiedCubeArrayFloatFloatLevel";
960   case NVPTXISD::TexUnifiedCubeArrayS32Float:
961     return "NVPTXISD::TexUnifiedCubeArrayS32Float";
962   case NVPTXISD::TexUnifiedCubeArrayS32FloatLevel:
963     return "NVPTXISD::TexUnifiedCubeArrayS32FloatLevel";
964   case NVPTXISD::TexUnifiedCubeArrayU32Float:
965     return "NVPTXISD::TexUnifiedCubeArrayU32Float";
966   case NVPTXISD::TexUnifiedCubeArrayU32FloatLevel:
967     return "NVPTXISD::TexUnifiedCubeArrayU32FloatLevel";
968   case NVPTXISD::Tld4UnifiedR2DFloatFloat:
969     return "NVPTXISD::Tld4UnifiedR2DFloatFloat";
970   case NVPTXISD::Tld4UnifiedG2DFloatFloat:
971     return "NVPTXISD::Tld4UnifiedG2DFloatFloat";
972   case NVPTXISD::Tld4UnifiedB2DFloatFloat:
973     return "NVPTXISD::Tld4UnifiedB2DFloatFloat";
974   case NVPTXISD::Tld4UnifiedA2DFloatFloat:
975     return "NVPTXISD::Tld4UnifiedA2DFloatFloat";
976   case NVPTXISD::Tld4UnifiedR2DS64Float:
977     return "NVPTXISD::Tld4UnifiedR2DS64Float";
978   case NVPTXISD::Tld4UnifiedG2DS64Float:
979     return "NVPTXISD::Tld4UnifiedG2DS64Float";
980   case NVPTXISD::Tld4UnifiedB2DS64Float:
981     return "NVPTXISD::Tld4UnifiedB2DS64Float";
982   case NVPTXISD::Tld4UnifiedA2DS64Float:
983     return "NVPTXISD::Tld4UnifiedA2DS64Float";
984   case NVPTXISD::Tld4UnifiedR2DU64Float:
985     return "NVPTXISD::Tld4UnifiedR2DU64Float";
986   case NVPTXISD::Tld4UnifiedG2DU64Float:
987     return "NVPTXISD::Tld4UnifiedG2DU64Float";
988   case NVPTXISD::Tld4UnifiedB2DU64Float:
989     return "NVPTXISD::Tld4UnifiedB2DU64Float";
990   case NVPTXISD::Tld4UnifiedA2DU64Float:
991     return "NVPTXISD::Tld4UnifiedA2DU64Float";
992 
993   case NVPTXISD::Suld1DI8Clamp:          return "NVPTXISD::Suld1DI8Clamp";
994   case NVPTXISD::Suld1DI16Clamp:         return "NVPTXISD::Suld1DI16Clamp";
995   case NVPTXISD::Suld1DI32Clamp:         return "NVPTXISD::Suld1DI32Clamp";
996   case NVPTXISD::Suld1DI64Clamp:         return "NVPTXISD::Suld1DI64Clamp";
997   case NVPTXISD::Suld1DV2I8Clamp:        return "NVPTXISD::Suld1DV2I8Clamp";
998   case NVPTXISD::Suld1DV2I16Clamp:       return "NVPTXISD::Suld1DV2I16Clamp";
999   case NVPTXISD::Suld1DV2I32Clamp:       return "NVPTXISD::Suld1DV2I32Clamp";
1000   case NVPTXISD::Suld1DV2I64Clamp:       return "NVPTXISD::Suld1DV2I64Clamp";
1001   case NVPTXISD::Suld1DV4I8Clamp:        return "NVPTXISD::Suld1DV4I8Clamp";
1002   case NVPTXISD::Suld1DV4I16Clamp:       return "NVPTXISD::Suld1DV4I16Clamp";
1003   case NVPTXISD::Suld1DV4I32Clamp:       return "NVPTXISD::Suld1DV4I32Clamp";
1004 
1005   case NVPTXISD::Suld1DArrayI8Clamp:   return "NVPTXISD::Suld1DArrayI8Clamp";
1006   case NVPTXISD::Suld1DArrayI16Clamp:  return "NVPTXISD::Suld1DArrayI16Clamp";
1007   case NVPTXISD::Suld1DArrayI32Clamp:  return "NVPTXISD::Suld1DArrayI32Clamp";
1008   case NVPTXISD::Suld1DArrayI64Clamp:  return "NVPTXISD::Suld1DArrayI64Clamp";
1009   case NVPTXISD::Suld1DArrayV2I8Clamp: return "NVPTXISD::Suld1DArrayV2I8Clamp";
1010   case NVPTXISD::Suld1DArrayV2I16Clamp:return "NVPTXISD::Suld1DArrayV2I16Clamp";
1011   case NVPTXISD::Suld1DArrayV2I32Clamp:return "NVPTXISD::Suld1DArrayV2I32Clamp";
1012   case NVPTXISD::Suld1DArrayV2I64Clamp:return "NVPTXISD::Suld1DArrayV2I64Clamp";
1013   case NVPTXISD::Suld1DArrayV4I8Clamp: return "NVPTXISD::Suld1DArrayV4I8Clamp";
1014   case NVPTXISD::Suld1DArrayV4I16Clamp:return "NVPTXISD::Suld1DArrayV4I16Clamp";
1015   case NVPTXISD::Suld1DArrayV4I32Clamp:return "NVPTXISD::Suld1DArrayV4I32Clamp";
1016 
1017   case NVPTXISD::Suld2DI8Clamp:          return "NVPTXISD::Suld2DI8Clamp";
1018   case NVPTXISD::Suld2DI16Clamp:         return "NVPTXISD::Suld2DI16Clamp";
1019   case NVPTXISD::Suld2DI32Clamp:         return "NVPTXISD::Suld2DI32Clamp";
1020   case NVPTXISD::Suld2DI64Clamp:         return "NVPTXISD::Suld2DI64Clamp";
1021   case NVPTXISD::Suld2DV2I8Clamp:        return "NVPTXISD::Suld2DV2I8Clamp";
1022   case NVPTXISD::Suld2DV2I16Clamp:       return "NVPTXISD::Suld2DV2I16Clamp";
1023   case NVPTXISD::Suld2DV2I32Clamp:       return "NVPTXISD::Suld2DV2I32Clamp";
1024   case NVPTXISD::Suld2DV2I64Clamp:       return "NVPTXISD::Suld2DV2I64Clamp";
1025   case NVPTXISD::Suld2DV4I8Clamp:        return "NVPTXISD::Suld2DV4I8Clamp";
1026   case NVPTXISD::Suld2DV4I16Clamp:       return "NVPTXISD::Suld2DV4I16Clamp";
1027   case NVPTXISD::Suld2DV4I32Clamp:       return "NVPTXISD::Suld2DV4I32Clamp";
1028 
1029   case NVPTXISD::Suld2DArrayI8Clamp:   return "NVPTXISD::Suld2DArrayI8Clamp";
1030   case NVPTXISD::Suld2DArrayI16Clamp:  return "NVPTXISD::Suld2DArrayI16Clamp";
1031   case NVPTXISD::Suld2DArrayI32Clamp:  return "NVPTXISD::Suld2DArrayI32Clamp";
1032   case NVPTXISD::Suld2DArrayI64Clamp:  return "NVPTXISD::Suld2DArrayI64Clamp";
1033   case NVPTXISD::Suld2DArrayV2I8Clamp: return "NVPTXISD::Suld2DArrayV2I8Clamp";
1034   case NVPTXISD::Suld2DArrayV2I16Clamp:return "NVPTXISD::Suld2DArrayV2I16Clamp";
1035   case NVPTXISD::Suld2DArrayV2I32Clamp:return "NVPTXISD::Suld2DArrayV2I32Clamp";
1036   case NVPTXISD::Suld2DArrayV2I64Clamp:return "NVPTXISD::Suld2DArrayV2I64Clamp";
1037   case NVPTXISD::Suld2DArrayV4I8Clamp: return "NVPTXISD::Suld2DArrayV4I8Clamp";
1038   case NVPTXISD::Suld2DArrayV4I16Clamp:return "NVPTXISD::Suld2DArrayV4I16Clamp";
1039   case NVPTXISD::Suld2DArrayV4I32Clamp:return "NVPTXISD::Suld2DArrayV4I32Clamp";
1040 
1041   case NVPTXISD::Suld3DI8Clamp:          return "NVPTXISD::Suld3DI8Clamp";
1042   case NVPTXISD::Suld3DI16Clamp:         return "NVPTXISD::Suld3DI16Clamp";
1043   case NVPTXISD::Suld3DI32Clamp:         return "NVPTXISD::Suld3DI32Clamp";
1044   case NVPTXISD::Suld3DI64Clamp:         return "NVPTXISD::Suld3DI64Clamp";
1045   case NVPTXISD::Suld3DV2I8Clamp:        return "NVPTXISD::Suld3DV2I8Clamp";
1046   case NVPTXISD::Suld3DV2I16Clamp:       return "NVPTXISD::Suld3DV2I16Clamp";
1047   case NVPTXISD::Suld3DV2I32Clamp:       return "NVPTXISD::Suld3DV2I32Clamp";
1048   case NVPTXISD::Suld3DV2I64Clamp:       return "NVPTXISD::Suld3DV2I64Clamp";
1049   case NVPTXISD::Suld3DV4I8Clamp:        return "NVPTXISD::Suld3DV4I8Clamp";
1050   case NVPTXISD::Suld3DV4I16Clamp:       return "NVPTXISD::Suld3DV4I16Clamp";
1051   case NVPTXISD::Suld3DV4I32Clamp:       return "NVPTXISD::Suld3DV4I32Clamp";
1052 
1053   case NVPTXISD::Suld1DI8Trap:          return "NVPTXISD::Suld1DI8Trap";
1054   case NVPTXISD::Suld1DI16Trap:         return "NVPTXISD::Suld1DI16Trap";
1055   case NVPTXISD::Suld1DI32Trap:         return "NVPTXISD::Suld1DI32Trap";
1056   case NVPTXISD::Suld1DI64Trap:         return "NVPTXISD::Suld1DI64Trap";
1057   case NVPTXISD::Suld1DV2I8Trap:        return "NVPTXISD::Suld1DV2I8Trap";
1058   case NVPTXISD::Suld1DV2I16Trap:       return "NVPTXISD::Suld1DV2I16Trap";
1059   case NVPTXISD::Suld1DV2I32Trap:       return "NVPTXISD::Suld1DV2I32Trap";
1060   case NVPTXISD::Suld1DV2I64Trap:       return "NVPTXISD::Suld1DV2I64Trap";
1061   case NVPTXISD::Suld1DV4I8Trap:        return "NVPTXISD::Suld1DV4I8Trap";
1062   case NVPTXISD::Suld1DV4I16Trap:       return "NVPTXISD::Suld1DV4I16Trap";
1063   case NVPTXISD::Suld1DV4I32Trap:       return "NVPTXISD::Suld1DV4I32Trap";
1064 
1065   case NVPTXISD::Suld1DArrayI8Trap:     return "NVPTXISD::Suld1DArrayI8Trap";
1066   case NVPTXISD::Suld1DArrayI16Trap:    return "NVPTXISD::Suld1DArrayI16Trap";
1067   case NVPTXISD::Suld1DArrayI32Trap:    return "NVPTXISD::Suld1DArrayI32Trap";
1068   case NVPTXISD::Suld1DArrayI64Trap:    return "NVPTXISD::Suld1DArrayI64Trap";
1069   case NVPTXISD::Suld1DArrayV2I8Trap:   return "NVPTXISD::Suld1DArrayV2I8Trap";
1070   case NVPTXISD::Suld1DArrayV2I16Trap:  return "NVPTXISD::Suld1DArrayV2I16Trap";
1071   case NVPTXISD::Suld1DArrayV2I32Trap:  return "NVPTXISD::Suld1DArrayV2I32Trap";
1072   case NVPTXISD::Suld1DArrayV2I64Trap:  return "NVPTXISD::Suld1DArrayV2I64Trap";
1073   case NVPTXISD::Suld1DArrayV4I8Trap:   return "NVPTXISD::Suld1DArrayV4I8Trap";
1074   case NVPTXISD::Suld1DArrayV4I16Trap:  return "NVPTXISD::Suld1DArrayV4I16Trap";
1075   case NVPTXISD::Suld1DArrayV4I32Trap:  return "NVPTXISD::Suld1DArrayV4I32Trap";
1076 
1077   case NVPTXISD::Suld2DI8Trap:          return "NVPTXISD::Suld2DI8Trap";
1078   case NVPTXISD::Suld2DI16Trap:         return "NVPTXISD::Suld2DI16Trap";
1079   case NVPTXISD::Suld2DI32Trap:         return "NVPTXISD::Suld2DI32Trap";
1080   case NVPTXISD::Suld2DI64Trap:         return "NVPTXISD::Suld2DI64Trap";
1081   case NVPTXISD::Suld2DV2I8Trap:        return "NVPTXISD::Suld2DV2I8Trap";
1082   case NVPTXISD::Suld2DV2I16Trap:       return "NVPTXISD::Suld2DV2I16Trap";
1083   case NVPTXISD::Suld2DV2I32Trap:       return "NVPTXISD::Suld2DV2I32Trap";
1084   case NVPTXISD::Suld2DV2I64Trap:       return "NVPTXISD::Suld2DV2I64Trap";
1085   case NVPTXISD::Suld2DV4I8Trap:        return "NVPTXISD::Suld2DV4I8Trap";
1086   case NVPTXISD::Suld2DV4I16Trap:       return "NVPTXISD::Suld2DV4I16Trap";
1087   case NVPTXISD::Suld2DV4I32Trap:       return "NVPTXISD::Suld2DV4I32Trap";
1088 
1089   case NVPTXISD::Suld2DArrayI8Trap:     return "NVPTXISD::Suld2DArrayI8Trap";
1090   case NVPTXISD::Suld2DArrayI16Trap:    return "NVPTXISD::Suld2DArrayI16Trap";
1091   case NVPTXISD::Suld2DArrayI32Trap:    return "NVPTXISD::Suld2DArrayI32Trap";
1092   case NVPTXISD::Suld2DArrayI64Trap:    return "NVPTXISD::Suld2DArrayI64Trap";
1093   case NVPTXISD::Suld2DArrayV2I8Trap:   return "NVPTXISD::Suld2DArrayV2I8Trap";
1094   case NVPTXISD::Suld2DArrayV2I16Trap:  return "NVPTXISD::Suld2DArrayV2I16Trap";
1095   case NVPTXISD::Suld2DArrayV2I32Trap:  return "NVPTXISD::Suld2DArrayV2I32Trap";
1096   case NVPTXISD::Suld2DArrayV2I64Trap:  return "NVPTXISD::Suld2DArrayV2I64Trap";
1097   case NVPTXISD::Suld2DArrayV4I8Trap:   return "NVPTXISD::Suld2DArrayV4I8Trap";
1098   case NVPTXISD::Suld2DArrayV4I16Trap:  return "NVPTXISD::Suld2DArrayV4I16Trap";
1099   case NVPTXISD::Suld2DArrayV4I32Trap:  return "NVPTXISD::Suld2DArrayV4I32Trap";
1100 
1101   case NVPTXISD::Suld3DI8Trap:          return "NVPTXISD::Suld3DI8Trap";
1102   case NVPTXISD::Suld3DI16Trap:         return "NVPTXISD::Suld3DI16Trap";
1103   case NVPTXISD::Suld3DI32Trap:         return "NVPTXISD::Suld3DI32Trap";
1104   case NVPTXISD::Suld3DI64Trap:         return "NVPTXISD::Suld3DI64Trap";
1105   case NVPTXISD::Suld3DV2I8Trap:        return "NVPTXISD::Suld3DV2I8Trap";
1106   case NVPTXISD::Suld3DV2I16Trap:       return "NVPTXISD::Suld3DV2I16Trap";
1107   case NVPTXISD::Suld3DV2I32Trap:       return "NVPTXISD::Suld3DV2I32Trap";
1108   case NVPTXISD::Suld3DV2I64Trap:       return "NVPTXISD::Suld3DV2I64Trap";
1109   case NVPTXISD::Suld3DV4I8Trap:        return "NVPTXISD::Suld3DV4I8Trap";
1110   case NVPTXISD::Suld3DV4I16Trap:       return "NVPTXISD::Suld3DV4I16Trap";
1111   case NVPTXISD::Suld3DV4I32Trap:       return "NVPTXISD::Suld3DV4I32Trap";
1112 
1113   case NVPTXISD::Suld1DI8Zero:          return "NVPTXISD::Suld1DI8Zero";
1114   case NVPTXISD::Suld1DI16Zero:         return "NVPTXISD::Suld1DI16Zero";
1115   case NVPTXISD::Suld1DI32Zero:         return "NVPTXISD::Suld1DI32Zero";
1116   case NVPTXISD::Suld1DI64Zero:         return "NVPTXISD::Suld1DI64Zero";
1117   case NVPTXISD::Suld1DV2I8Zero:        return "NVPTXISD::Suld1DV2I8Zero";
1118   case NVPTXISD::Suld1DV2I16Zero:       return "NVPTXISD::Suld1DV2I16Zero";
1119   case NVPTXISD::Suld1DV2I32Zero:       return "NVPTXISD::Suld1DV2I32Zero";
1120   case NVPTXISD::Suld1DV2I64Zero:       return "NVPTXISD::Suld1DV2I64Zero";
1121   case NVPTXISD::Suld1DV4I8Zero:        return "NVPTXISD::Suld1DV4I8Zero";
1122   case NVPTXISD::Suld1DV4I16Zero:       return "NVPTXISD::Suld1DV4I16Zero";
1123   case NVPTXISD::Suld1DV4I32Zero:       return "NVPTXISD::Suld1DV4I32Zero";
1124 
1125   case NVPTXISD::Suld1DArrayI8Zero:     return "NVPTXISD::Suld1DArrayI8Zero";
1126   case NVPTXISD::Suld1DArrayI16Zero:    return "NVPTXISD::Suld1DArrayI16Zero";
1127   case NVPTXISD::Suld1DArrayI32Zero:    return "NVPTXISD::Suld1DArrayI32Zero";
1128   case NVPTXISD::Suld1DArrayI64Zero:    return "NVPTXISD::Suld1DArrayI64Zero";
1129   case NVPTXISD::Suld1DArrayV2I8Zero:   return "NVPTXISD::Suld1DArrayV2I8Zero";
1130   case NVPTXISD::Suld1DArrayV2I16Zero:  return "NVPTXISD::Suld1DArrayV2I16Zero";
1131   case NVPTXISD::Suld1DArrayV2I32Zero:  return "NVPTXISD::Suld1DArrayV2I32Zero";
1132   case NVPTXISD::Suld1DArrayV2I64Zero:  return "NVPTXISD::Suld1DArrayV2I64Zero";
1133   case NVPTXISD::Suld1DArrayV4I8Zero:   return "NVPTXISD::Suld1DArrayV4I8Zero";
1134   case NVPTXISD::Suld1DArrayV4I16Zero:  return "NVPTXISD::Suld1DArrayV4I16Zero";
1135   case NVPTXISD::Suld1DArrayV4I32Zero:  return "NVPTXISD::Suld1DArrayV4I32Zero";
1136 
1137   case NVPTXISD::Suld2DI8Zero:          return "NVPTXISD::Suld2DI8Zero";
1138   case NVPTXISD::Suld2DI16Zero:         return "NVPTXISD::Suld2DI16Zero";
1139   case NVPTXISD::Suld2DI32Zero:         return "NVPTXISD::Suld2DI32Zero";
1140   case NVPTXISD::Suld2DI64Zero:         return "NVPTXISD::Suld2DI64Zero";
1141   case NVPTXISD::Suld2DV2I8Zero:        return "NVPTXISD::Suld2DV2I8Zero";
1142   case NVPTXISD::Suld2DV2I16Zero:       return "NVPTXISD::Suld2DV2I16Zero";
1143   case NVPTXISD::Suld2DV2I32Zero:       return "NVPTXISD::Suld2DV2I32Zero";
1144   case NVPTXISD::Suld2DV2I64Zero:       return "NVPTXISD::Suld2DV2I64Zero";
1145   case NVPTXISD::Suld2DV4I8Zero:        return "NVPTXISD::Suld2DV4I8Zero";
1146   case NVPTXISD::Suld2DV4I16Zero:       return "NVPTXISD::Suld2DV4I16Zero";
1147   case NVPTXISD::Suld2DV4I32Zero:       return "NVPTXISD::Suld2DV4I32Zero";
1148 
1149   case NVPTXISD::Suld2DArrayI8Zero:     return "NVPTXISD::Suld2DArrayI8Zero";
1150   case NVPTXISD::Suld2DArrayI16Zero:    return "NVPTXISD::Suld2DArrayI16Zero";
1151   case NVPTXISD::Suld2DArrayI32Zero:    return "NVPTXISD::Suld2DArrayI32Zero";
1152   case NVPTXISD::Suld2DArrayI64Zero:    return "NVPTXISD::Suld2DArrayI64Zero";
1153   case NVPTXISD::Suld2DArrayV2I8Zero:   return "NVPTXISD::Suld2DArrayV2I8Zero";
1154   case NVPTXISD::Suld2DArrayV2I16Zero:  return "NVPTXISD::Suld2DArrayV2I16Zero";
1155   case NVPTXISD::Suld2DArrayV2I32Zero:  return "NVPTXISD::Suld2DArrayV2I32Zero";
1156   case NVPTXISD::Suld2DArrayV2I64Zero:  return "NVPTXISD::Suld2DArrayV2I64Zero";
1157   case NVPTXISD::Suld2DArrayV4I8Zero:   return "NVPTXISD::Suld2DArrayV4I8Zero";
1158   case NVPTXISD::Suld2DArrayV4I16Zero:  return "NVPTXISD::Suld2DArrayV4I16Zero";
1159   case NVPTXISD::Suld2DArrayV4I32Zero:  return "NVPTXISD::Suld2DArrayV4I32Zero";
1160 
1161   case NVPTXISD::Suld3DI8Zero:          return "NVPTXISD::Suld3DI8Zero";
1162   case NVPTXISD::Suld3DI16Zero:         return "NVPTXISD::Suld3DI16Zero";
1163   case NVPTXISD::Suld3DI32Zero:         return "NVPTXISD::Suld3DI32Zero";
1164   case NVPTXISD::Suld3DI64Zero:         return "NVPTXISD::Suld3DI64Zero";
1165   case NVPTXISD::Suld3DV2I8Zero:        return "NVPTXISD::Suld3DV2I8Zero";
1166   case NVPTXISD::Suld3DV2I16Zero:       return "NVPTXISD::Suld3DV2I16Zero";
1167   case NVPTXISD::Suld3DV2I32Zero:       return "NVPTXISD::Suld3DV2I32Zero";
1168   case NVPTXISD::Suld3DV2I64Zero:       return "NVPTXISD::Suld3DV2I64Zero";
1169   case NVPTXISD::Suld3DV4I8Zero:        return "NVPTXISD::Suld3DV4I8Zero";
1170   case NVPTXISD::Suld3DV4I16Zero:       return "NVPTXISD::Suld3DV4I16Zero";
1171   case NVPTXISD::Suld3DV4I32Zero:       return "NVPTXISD::Suld3DV4I32Zero";
1172   }
1173   return nullptr;
1174 }
1175 
1176 TargetLoweringBase::LegalizeTypeAction
1177 NVPTXTargetLowering::getPreferredVectorAction(MVT VT) const {
1178   if (VT.getVectorNumElements() != 1 && VT.getScalarType() == MVT::i1)
1179     return TypeSplitVector;
1180   if (VT == MVT::v2f16)
1181     return TypeLegal;
1182   return TargetLoweringBase::getPreferredVectorAction(VT);
1183 }
1184 
1185 SDValue NVPTXTargetLowering::getSqrtEstimate(SDValue Operand, SelectionDAG &DAG,
1186                                              int Enabled, int &ExtraSteps,
1187                                              bool &UseOneConst,
1188                                              bool Reciprocal) const {
1189   if (!(Enabled == ReciprocalEstimate::Enabled ||
1190         (Enabled == ReciprocalEstimate::Unspecified && !usePrecSqrtF32())))
1191     return SDValue();
1192 
1193   if (ExtraSteps == ReciprocalEstimate::Unspecified)
1194     ExtraSteps = 0;
1195 
1196   SDLoc DL(Operand);
1197   EVT VT = Operand.getValueType();
1198   bool Ftz = useF32FTZ(DAG.getMachineFunction());
1199 
1200   auto MakeIntrinsicCall = [&](Intrinsic::ID IID) {
1201     return DAG.getNode(ISD::INTRINSIC_WO_CHAIN, DL, VT,
1202                        DAG.getConstant(IID, DL, MVT::i32), Operand);
1203   };
1204 
1205   // The sqrt and rsqrt refinement processes assume we always start out with an
1206   // approximation of the rsqrt.  Therefore, if we're going to do any refinement
1207   // (i.e. ExtraSteps > 0), we must return an rsqrt.  But if we're *not* doing
1208   // any refinement, we must return a regular sqrt.
1209   if (Reciprocal || ExtraSteps > 0) {
1210     if (VT == MVT::f32)
1211       return MakeIntrinsicCall(Ftz ? Intrinsic::nvvm_rsqrt_approx_ftz_f
1212                                    : Intrinsic::nvvm_rsqrt_approx_f);
1213     else if (VT == MVT::f64)
1214       return MakeIntrinsicCall(Intrinsic::nvvm_rsqrt_approx_d);
1215     else
1216       return SDValue();
1217   } else {
1218     if (VT == MVT::f32)
1219       return MakeIntrinsicCall(Ftz ? Intrinsic::nvvm_sqrt_approx_ftz_f
1220                                    : Intrinsic::nvvm_sqrt_approx_f);
1221     else {
1222       // There's no sqrt.approx.f64 instruction, so we emit
1223       // reciprocal(rsqrt(x)).  This is faster than
1224       // select(x == 0, 0, x * rsqrt(x)).  (In fact, it's faster than plain
1225       // x * rsqrt(x).)
1226       return DAG.getNode(
1227           ISD::INTRINSIC_WO_CHAIN, DL, VT,
1228           DAG.getConstant(Intrinsic::nvvm_rcp_approx_ftz_d, DL, MVT::i32),
1229           MakeIntrinsicCall(Intrinsic::nvvm_rsqrt_approx_d));
1230     }
1231   }
1232 }
1233 
1234 SDValue
1235 NVPTXTargetLowering::LowerGlobalAddress(SDValue Op, SelectionDAG &DAG) const {
1236   SDLoc dl(Op);
1237   const GlobalAddressSDNode *GAN = cast<GlobalAddressSDNode>(Op);
1238   auto PtrVT = getPointerTy(DAG.getDataLayout(), GAN->getAddressSpace());
1239   Op = DAG.getTargetGlobalAddress(GAN->getGlobal(), dl, PtrVT);
1240   return DAG.getNode(NVPTXISD::Wrapper, dl, PtrVT, Op);
1241 }
1242 
1243 std::string NVPTXTargetLowering::getPrototype(
1244     const DataLayout &DL, Type *retTy, const ArgListTy &Args,
1245     const SmallVectorImpl<ISD::OutputArg> &Outs, MaybeAlign retAlignment,
1246     ImmutableCallSite CS) const {
1247   auto PtrVT = getPointerTy(DL);
1248 
1249   bool isABI = (STI.getSmVersion() >= 20);
1250   assert(isABI && "Non-ABI compilation is not supported");
1251   if (!isABI)
1252     return "";
1253 
1254   std::stringstream O;
1255   O << "prototype_" << uniqueCallSite << " : .callprototype ";
1256 
1257   if (retTy->getTypeID() == Type::VoidTyID) {
1258     O << "()";
1259   } else {
1260     O << "(";
1261     if (retTy->isFloatingPointTy() || (retTy->isIntegerTy() && !retTy->isIntegerTy(128))) {
1262       unsigned size = 0;
1263       if (auto *ITy = dyn_cast<IntegerType>(retTy)) {
1264         size = ITy->getBitWidth();
1265       } else {
1266         assert(retTy->isFloatingPointTy() &&
1267                "Floating point type expected here");
1268         size = retTy->getPrimitiveSizeInBits();
1269       }
1270       // PTX ABI requires all scalar return values to be at least 32
1271       // bits in size.  fp16 normally uses .b16 as its storage type in
1272       // PTX, so its size must be adjusted here, too.
1273       if (size < 32)
1274         size = 32;
1275 
1276       O << ".param .b" << size << " _";
1277     } else if (isa<PointerType>(retTy)) {
1278       O << ".param .b" << PtrVT.getSizeInBits() << " _";
1279     } else if (retTy->isAggregateType() || retTy->isVectorTy() ||
1280                retTy->isIntegerTy(128)) {
1281       O << ".param .align " << (retAlignment ? retAlignment->value() : 0)
1282         << " .b8 _[" << DL.getTypeAllocSize(retTy) << "]";
1283     } else {
1284       llvm_unreachable("Unknown return type");
1285     }
1286     O << ") ";
1287   }
1288   O << "_ (";
1289 
1290   bool first = true;
1291 
1292   unsigned OIdx = 0;
1293   for (unsigned i = 0, e = Args.size(); i != e; ++i, ++OIdx) {
1294     Type *Ty = Args[i].Ty;
1295     if (!first) {
1296       O << ", ";
1297     }
1298     first = false;
1299 
1300     if (!Outs[OIdx].Flags.isByVal()) {
1301       if (Ty->isAggregateType() || Ty->isVectorTy() || Ty->isIntegerTy(128)) {
1302         unsigned align = 0;
1303         const CallInst *CallI = cast<CallInst>(CS.getInstruction());
1304         // +1 because index 0 is reserved for return type alignment
1305         if (!getAlign(*CallI, i + 1, align))
1306           align = DL.getABITypeAlignment(Ty);
1307         unsigned sz = DL.getTypeAllocSize(Ty);
1308         O << ".param .align " << align << " .b8 ";
1309         O << "_";
1310         O << "[" << sz << "]";
1311         // update the index for Outs
1312         SmallVector<EVT, 16> vtparts;
1313         ComputeValueVTs(*this, DL, Ty, vtparts);
1314         if (unsigned len = vtparts.size())
1315           OIdx += len - 1;
1316         continue;
1317       }
1318       // i8 types in IR will be i16 types in SDAG
1319       assert((getValueType(DL, Ty) == Outs[OIdx].VT ||
1320               (getValueType(DL, Ty) == MVT::i8 && Outs[OIdx].VT == MVT::i16)) &&
1321              "type mismatch between callee prototype and arguments");
1322       // scalar type
1323       unsigned sz = 0;
1324       if (isa<IntegerType>(Ty)) {
1325         sz = cast<IntegerType>(Ty)->getBitWidth();
1326         if (sz < 32)
1327           sz = 32;
1328       } else if (isa<PointerType>(Ty)) {
1329         sz = PtrVT.getSizeInBits();
1330       } else if (Ty->isHalfTy())
1331         // PTX ABI requires all scalar parameters to be at least 32
1332         // bits in size.  fp16 normally uses .b16 as its storage type
1333         // in PTX, so its size must be adjusted here, too.
1334         sz = 32;
1335       else
1336         sz = Ty->getPrimitiveSizeInBits();
1337       O << ".param .b" << sz << " ";
1338       O << "_";
1339       continue;
1340     }
1341     auto *PTy = dyn_cast<PointerType>(Ty);
1342     assert(PTy && "Param with byval attribute should be a pointer type");
1343     Type *ETy = PTy->getElementType();
1344 
1345     Align align = Outs[OIdx].Flags.getNonZeroByValAlign();
1346     unsigned sz = DL.getTypeAllocSize(ETy);
1347     O << ".param .align " << align.value() << " .b8 ";
1348     O << "_";
1349     O << "[" << sz << "]";
1350   }
1351   O << ");";
1352   return O.str();
1353 }
1354 
1355 Align NVPTXTargetLowering::getArgumentAlignment(SDValue Callee,
1356                                                 ImmutableCallSite CS, Type *Ty,
1357                                                 unsigned Idx,
1358                                                 const DataLayout &DL) const {
1359   if (!CS) {
1360     // CallSite is zero, fallback to ABI type alignment
1361     return DL.getABITypeAlign(Ty);
1362   }
1363 
1364   unsigned Alignment = 0;
1365   const Value *DirectCallee = CS.getCalledFunction();
1366 
1367   if (!DirectCallee) {
1368     // We don't have a direct function symbol, but that may be because of
1369     // constant cast instructions in the call.
1370     const Instruction *CalleeI = CS.getInstruction();
1371     assert(CalleeI && "Call target is not a function or derived value?");
1372 
1373     // With bitcast'd call targets, the instruction will be the call
1374     if (isa<CallInst>(CalleeI)) {
1375       // Check if we have call alignment metadata
1376       if (getAlign(*cast<CallInst>(CalleeI), Idx, Alignment))
1377         return Align(Alignment);
1378 
1379       const Value *CalleeV = cast<CallInst>(CalleeI)->getCalledValue();
1380       // Ignore any bitcast instructions
1381       while (isa<ConstantExpr>(CalleeV)) {
1382         const ConstantExpr *CE = cast<ConstantExpr>(CalleeV);
1383         if (!CE->isCast())
1384           break;
1385         // Look through the bitcast
1386         CalleeV = cast<ConstantExpr>(CalleeV)->getOperand(0);
1387       }
1388 
1389       // We have now looked past all of the bitcasts.  Do we finally have a
1390       // Function?
1391       if (isa<Function>(CalleeV))
1392         DirectCallee = CalleeV;
1393     }
1394   }
1395 
1396   // Check for function alignment information if we found that the
1397   // ultimate target is a Function
1398   if (DirectCallee)
1399     if (getAlign(*cast<Function>(DirectCallee), Idx, Alignment))
1400       return Align(Alignment);
1401 
1402   // Call is indirect or alignment information is not available, fall back to
1403   // the ABI type alignment
1404   return DL.getABITypeAlign(Ty);
1405 }
1406 
1407 SDValue NVPTXTargetLowering::LowerCall(TargetLowering::CallLoweringInfo &CLI,
1408                                        SmallVectorImpl<SDValue> &InVals) const {
1409   SelectionDAG &DAG = CLI.DAG;
1410   SDLoc dl = CLI.DL;
1411   SmallVectorImpl<ISD::OutputArg> &Outs = CLI.Outs;
1412   SmallVectorImpl<SDValue> &OutVals = CLI.OutVals;
1413   SmallVectorImpl<ISD::InputArg> &Ins = CLI.Ins;
1414   SDValue Chain = CLI.Chain;
1415   SDValue Callee = CLI.Callee;
1416   bool &isTailCall = CLI.IsTailCall;
1417   ArgListTy &Args = CLI.getArgs();
1418   Type *RetTy = CLI.RetTy;
1419   ImmutableCallSite CS = CLI.CS;
1420   const DataLayout &DL = DAG.getDataLayout();
1421 
1422   bool isABI = (STI.getSmVersion() >= 20);
1423   assert(isABI && "Non-ABI compilation is not supported");
1424   if (!isABI)
1425     return Chain;
1426 
1427   SDValue tempChain = Chain;
1428   Chain = DAG.getCALLSEQ_START(Chain, uniqueCallSite, 0, dl);
1429   SDValue InFlag = Chain.getValue(1);
1430 
1431   unsigned paramCount = 0;
1432   // Args.size() and Outs.size() need not match.
1433   // Outs.size() will be larger
1434   //   * if there is an aggregate argument with multiple fields (each field
1435   //     showing up separately in Outs)
1436   //   * if there is a vector argument with more than typical vector-length
1437   //     elements (generally if more than 4) where each vector element is
1438   //     individually present in Outs.
1439   // So a different index should be used for indexing into Outs/OutVals.
1440   // See similar issue in LowerFormalArguments.
1441   unsigned OIdx = 0;
1442   // Declare the .params or .reg need to pass values
1443   // to the function
1444   for (unsigned i = 0, e = Args.size(); i != e; ++i, ++OIdx) {
1445     EVT VT = Outs[OIdx].VT;
1446     Type *Ty = Args[i].Ty;
1447 
1448     if (!Outs[OIdx].Flags.isByVal()) {
1449       SmallVector<EVT, 16> VTs;
1450       SmallVector<uint64_t, 16> Offsets;
1451       ComputePTXValueVTs(*this, DL, Ty, VTs, &Offsets);
1452       Align ArgAlign = getArgumentAlignment(Callee, CS, Ty, paramCount + 1, DL);
1453       unsigned AllocSize = DL.getTypeAllocSize(Ty);
1454       SDVTList DeclareParamVTs = DAG.getVTList(MVT::Other, MVT::Glue);
1455       bool NeedAlign; // Does argument declaration specify alignment?
1456       if (Ty->isAggregateType() || Ty->isVectorTy() || Ty->isIntegerTy(128)) {
1457         // declare .param .align <align> .b8 .param<n>[<size>];
1458         SDValue DeclareParamOps[] = {
1459             Chain, DAG.getConstant(ArgAlign.value(), dl, MVT::i32),
1460             DAG.getConstant(paramCount, dl, MVT::i32),
1461             DAG.getConstant(AllocSize, dl, MVT::i32), InFlag};
1462         Chain = DAG.getNode(NVPTXISD::DeclareParam, dl, DeclareParamVTs,
1463                             DeclareParamOps);
1464         NeedAlign = true;
1465       } else {
1466         // declare .param .b<size> .param<n>;
1467         if ((VT.isInteger() || VT.isFloatingPoint()) && AllocSize < 4) {
1468           // PTX ABI requires integral types to be at least 32 bits in
1469           // size. FP16 is loaded/stored using i16, so it's handled
1470           // here as well.
1471           AllocSize = 4;
1472         }
1473         SDValue DeclareScalarParamOps[] = {
1474             Chain, DAG.getConstant(paramCount, dl, MVT::i32),
1475             DAG.getConstant(AllocSize * 8, dl, MVT::i32),
1476             DAG.getConstant(0, dl, MVT::i32), InFlag};
1477         Chain = DAG.getNode(NVPTXISD::DeclareScalarParam, dl, DeclareParamVTs,
1478                             DeclareScalarParamOps);
1479         NeedAlign = false;
1480       }
1481       InFlag = Chain.getValue(1);
1482 
1483       // PTX Interoperability Guide 3.3(A): [Integer] Values shorter
1484       // than 32-bits are sign extended or zero extended, depending on
1485       // whether they are signed or unsigned types. This case applies
1486       // only to scalar parameters and not to aggregate values.
1487       bool ExtendIntegerParam =
1488           Ty->isIntegerTy() && DL.getTypeAllocSizeInBits(Ty) < 32;
1489 
1490       auto VectorInfo = VectorizePTXValueVTs(VTs, Offsets, ArgAlign);
1491       SmallVector<SDValue, 6> StoreOperands;
1492       for (unsigned j = 0, je = VTs.size(); j != je; ++j) {
1493         // New store.
1494         if (VectorInfo[j] & PVF_FIRST) {
1495           assert(StoreOperands.empty() && "Unfinished preceding store.");
1496           StoreOperands.push_back(Chain);
1497           StoreOperands.push_back(DAG.getConstant(paramCount, dl, MVT::i32));
1498           StoreOperands.push_back(DAG.getConstant(Offsets[j], dl, MVT::i32));
1499         }
1500 
1501         EVT EltVT = VTs[j];
1502         SDValue StVal = OutVals[OIdx];
1503         if (ExtendIntegerParam) {
1504           assert(VTs.size() == 1 && "Scalar can't have multiple parts.");
1505           // zext/sext to i32
1506           StVal = DAG.getNode(Outs[OIdx].Flags.isSExt() ? ISD::SIGN_EXTEND
1507                                                         : ISD::ZERO_EXTEND,
1508                               dl, MVT::i32, StVal);
1509         } else if (EltVT.getSizeInBits() < 16) {
1510           // Use 16-bit registers for small stores as it's the
1511           // smallest general purpose register size supported by NVPTX.
1512           StVal = DAG.getNode(ISD::ANY_EXTEND, dl, MVT::i16, StVal);
1513         }
1514 
1515         // Record the value to store.
1516         StoreOperands.push_back(StVal);
1517 
1518         if (VectorInfo[j] & PVF_LAST) {
1519           unsigned NumElts = StoreOperands.size() - 3;
1520           NVPTXISD::NodeType Op;
1521           switch (NumElts) {
1522           case 1:
1523             Op = NVPTXISD::StoreParam;
1524             break;
1525           case 2:
1526             Op = NVPTXISD::StoreParamV2;
1527             break;
1528           case 4:
1529             Op = NVPTXISD::StoreParamV4;
1530             break;
1531           default:
1532             llvm_unreachable("Invalid vector info.");
1533           }
1534 
1535           StoreOperands.push_back(InFlag);
1536 
1537           // Adjust type of the store op if we've extended the scalar
1538           // return value.
1539           EVT TheStoreType = ExtendIntegerParam ? MVT::i32 : VTs[j];
1540           MaybeAlign EltAlign;
1541           if (NeedAlign)
1542             EltAlign = commonAlignment(ArgAlign, Offsets[j]);
1543 
1544           Chain = DAG.getMemIntrinsicNode(
1545               Op, dl, DAG.getVTList(MVT::Other, MVT::Glue), StoreOperands,
1546               TheStoreType, MachinePointerInfo(), EltAlign,
1547               MachineMemOperand::MOStore);
1548           InFlag = Chain.getValue(1);
1549 
1550           // Cleanup.
1551           StoreOperands.clear();
1552         }
1553         ++OIdx;
1554       }
1555       assert(StoreOperands.empty() && "Unfinished parameter store.");
1556       if (VTs.size() > 0)
1557         --OIdx;
1558       ++paramCount;
1559       continue;
1560     }
1561 
1562     // ByVal arguments
1563     SmallVector<EVT, 16> VTs;
1564     SmallVector<uint64_t, 16> Offsets;
1565     auto *PTy = dyn_cast<PointerType>(Args[i].Ty);
1566     assert(PTy && "Type of a byval parameter should be pointer");
1567     ComputePTXValueVTs(*this, DL, PTy->getElementType(), VTs, &Offsets, 0);
1568 
1569     // declare .param .align <align> .b8 .param<n>[<size>];
1570     unsigned sz = Outs[OIdx].Flags.getByValSize();
1571     SDVTList DeclareParamVTs = DAG.getVTList(MVT::Other, MVT::Glue);
1572     Align ArgAlign = Outs[OIdx].Flags.getNonZeroByValAlign();
1573     // The ByValAlign in the Outs[OIdx].Flags is alway set at this point,
1574     // so we don't need to worry about natural alignment or not.
1575     // See TargetLowering::LowerCallTo().
1576 
1577     // Enforce minumum alignment of 4 to work around ptxas miscompile
1578     // for sm_50+. See corresponding alignment adjustment in
1579     // emitFunctionParamList() for details.
1580     if (ArgAlign < Align(4))
1581       ArgAlign = Align(4);
1582     SDValue DeclareParamOps[] = {
1583         Chain, DAG.getConstant(ArgAlign.value(), dl, MVT::i32),
1584         DAG.getConstant(paramCount, dl, MVT::i32),
1585         DAG.getConstant(sz, dl, MVT::i32), InFlag};
1586     Chain = DAG.getNode(NVPTXISD::DeclareParam, dl, DeclareParamVTs,
1587                         DeclareParamOps);
1588     InFlag = Chain.getValue(1);
1589     for (unsigned j = 0, je = VTs.size(); j != je; ++j) {
1590       EVT elemtype = VTs[j];
1591       int curOffset = Offsets[j];
1592       unsigned PartAlign = GreatestCommonDivisor64(ArgAlign.value(), curOffset);
1593       auto PtrVT = getPointerTy(DL);
1594       SDValue srcAddr = DAG.getNode(ISD::ADD, dl, PtrVT, OutVals[OIdx],
1595                                     DAG.getConstant(curOffset, dl, PtrVT));
1596       SDValue theVal = DAG.getLoad(elemtype, dl, tempChain, srcAddr,
1597                                    MachinePointerInfo(), PartAlign);
1598       if (elemtype.getSizeInBits() < 16) {
1599         theVal = DAG.getNode(ISD::ANY_EXTEND, dl, MVT::i16, theVal);
1600       }
1601       SDVTList CopyParamVTs = DAG.getVTList(MVT::Other, MVT::Glue);
1602       SDValue CopyParamOps[] = { Chain,
1603                                  DAG.getConstant(paramCount, dl, MVT::i32),
1604                                  DAG.getConstant(curOffset, dl, MVT::i32),
1605                                  theVal, InFlag };
1606       Chain = DAG.getMemIntrinsicNode(
1607           NVPTXISD::StoreParam, dl, CopyParamVTs, CopyParamOps, elemtype,
1608           MachinePointerInfo(), /* Align */ None, MachineMemOperand::MOStore);
1609 
1610       InFlag = Chain.getValue(1);
1611     }
1612     ++paramCount;
1613   }
1614 
1615   GlobalAddressSDNode *Func = dyn_cast<GlobalAddressSDNode>(Callee.getNode());
1616   MaybeAlign retAlignment = None;
1617 
1618   // Handle Result
1619   if (Ins.size() > 0) {
1620     SmallVector<EVT, 16> resvtparts;
1621     ComputeValueVTs(*this, DL, RetTy, resvtparts);
1622 
1623     // Declare
1624     //  .param .align 16 .b8 retval0[<size-in-bytes>], or
1625     //  .param .b<size-in-bits> retval0
1626     unsigned resultsz = DL.getTypeAllocSizeInBits(RetTy);
1627     // Emit ".param .b<size-in-bits> retval0" instead of byte arrays only for
1628     // these three types to match the logic in
1629     // NVPTXAsmPrinter::printReturnValStr and NVPTXTargetLowering::getPrototype.
1630     // Plus, this behavior is consistent with nvcc's.
1631     if (RetTy->isFloatingPointTy() || RetTy->isPointerTy() ||
1632         (RetTy->isIntegerTy() && !RetTy->isIntegerTy(128))) {
1633       // Scalar needs to be at least 32bit wide
1634       if (resultsz < 32)
1635         resultsz = 32;
1636       SDVTList DeclareRetVTs = DAG.getVTList(MVT::Other, MVT::Glue);
1637       SDValue DeclareRetOps[] = { Chain, DAG.getConstant(1, dl, MVT::i32),
1638                                   DAG.getConstant(resultsz, dl, MVT::i32),
1639                                   DAG.getConstant(0, dl, MVT::i32), InFlag };
1640       Chain = DAG.getNode(NVPTXISD::DeclareRet, dl, DeclareRetVTs,
1641                           DeclareRetOps);
1642       InFlag = Chain.getValue(1);
1643     } else {
1644       retAlignment = getArgumentAlignment(Callee, CS, RetTy, 0, DL);
1645       assert(retAlignment && "retAlignment is guaranteed to be set");
1646       SDVTList DeclareRetVTs = DAG.getVTList(MVT::Other, MVT::Glue);
1647       SDValue DeclareRetOps[] = {
1648           Chain, DAG.getConstant(retAlignment->value(), dl, MVT::i32),
1649           DAG.getConstant(resultsz / 8, dl, MVT::i32),
1650           DAG.getConstant(0, dl, MVT::i32), InFlag};
1651       Chain = DAG.getNode(NVPTXISD::DeclareRetParam, dl, DeclareRetVTs,
1652                           DeclareRetOps);
1653       InFlag = Chain.getValue(1);
1654     }
1655   }
1656 
1657   // Both indirect calls and libcalls have nullptr Func. In order to distinguish
1658   // between them we must rely on the call site value which is valid for
1659   // indirect calls but is always null for libcalls.
1660   bool isIndirectCall = !Func && CS;
1661 
1662   if (isa<ExternalSymbolSDNode>(Callee)) {
1663     Function* CalleeFunc = nullptr;
1664 
1665     // Try to find the callee in the current module.
1666     Callee = DAG.getSymbolFunctionGlobalAddress(Callee, &CalleeFunc);
1667     assert(CalleeFunc != nullptr && "Libcall callee must be set.");
1668 
1669     // Set the "libcall callee" attribute to indicate that the function
1670     // must always have a declaration.
1671     CalleeFunc->addFnAttr("nvptx-libcall-callee", "true");
1672   }
1673 
1674   if (isIndirectCall) {
1675     // This is indirect function call case : PTX requires a prototype of the
1676     // form
1677     // proto_0 : .callprototype(.param .b32 _) _ (.param .b32 _);
1678     // to be emitted, and the label has to used as the last arg of call
1679     // instruction.
1680     // The prototype is embedded in a string and put as the operand for a
1681     // CallPrototype SDNode which will print out to the value of the string.
1682     SDVTList ProtoVTs = DAG.getVTList(MVT::Other, MVT::Glue);
1683     std::string Proto = getPrototype(DL, RetTy, Args, Outs, retAlignment, CS);
1684     const char *ProtoStr =
1685       nvTM->getManagedStrPool()->getManagedString(Proto.c_str())->c_str();
1686     SDValue ProtoOps[] = {
1687       Chain, DAG.getTargetExternalSymbol(ProtoStr, MVT::i32), InFlag,
1688     };
1689     Chain = DAG.getNode(NVPTXISD::CallPrototype, dl, ProtoVTs, ProtoOps);
1690     InFlag = Chain.getValue(1);
1691   }
1692   // Op to just print "call"
1693   SDVTList PrintCallVTs = DAG.getVTList(MVT::Other, MVT::Glue);
1694   SDValue PrintCallOps[] = {
1695     Chain, DAG.getConstant((Ins.size() == 0) ? 0 : 1, dl, MVT::i32), InFlag
1696   };
1697   // We model convergent calls as separate opcodes.
1698   unsigned Opcode = isIndirectCall ? NVPTXISD::PrintCall : NVPTXISD::PrintCallUni;
1699   if (CLI.IsConvergent)
1700     Opcode = Opcode == NVPTXISD::PrintCallUni ? NVPTXISD::PrintConvergentCallUni
1701                                               : NVPTXISD::PrintConvergentCall;
1702   Chain = DAG.getNode(Opcode, dl, PrintCallVTs, PrintCallOps);
1703   InFlag = Chain.getValue(1);
1704 
1705   // Ops to print out the function name
1706   SDVTList CallVoidVTs = DAG.getVTList(MVT::Other, MVT::Glue);
1707   SDValue CallVoidOps[] = { Chain, Callee, InFlag };
1708   Chain = DAG.getNode(NVPTXISD::CallVoid, dl, CallVoidVTs, CallVoidOps);
1709   InFlag = Chain.getValue(1);
1710 
1711   // Ops to print out the param list
1712   SDVTList CallArgBeginVTs = DAG.getVTList(MVT::Other, MVT::Glue);
1713   SDValue CallArgBeginOps[] = { Chain, InFlag };
1714   Chain = DAG.getNode(NVPTXISD::CallArgBegin, dl, CallArgBeginVTs,
1715                       CallArgBeginOps);
1716   InFlag = Chain.getValue(1);
1717 
1718   for (unsigned i = 0, e = paramCount; i != e; ++i) {
1719     unsigned opcode;
1720     if (i == (e - 1))
1721       opcode = NVPTXISD::LastCallArg;
1722     else
1723       opcode = NVPTXISD::CallArg;
1724     SDVTList CallArgVTs = DAG.getVTList(MVT::Other, MVT::Glue);
1725     SDValue CallArgOps[] = { Chain, DAG.getConstant(1, dl, MVT::i32),
1726                              DAG.getConstant(i, dl, MVT::i32), InFlag };
1727     Chain = DAG.getNode(opcode, dl, CallArgVTs, CallArgOps);
1728     InFlag = Chain.getValue(1);
1729   }
1730   SDVTList CallArgEndVTs = DAG.getVTList(MVT::Other, MVT::Glue);
1731   SDValue CallArgEndOps[] = { Chain,
1732                               DAG.getConstant(isIndirectCall ? 0 : 1, dl, MVT::i32),
1733                               InFlag };
1734   Chain = DAG.getNode(NVPTXISD::CallArgEnd, dl, CallArgEndVTs, CallArgEndOps);
1735   InFlag = Chain.getValue(1);
1736 
1737   if (isIndirectCall) {
1738     SDVTList PrototypeVTs = DAG.getVTList(MVT::Other, MVT::Glue);
1739     SDValue PrototypeOps[] = { Chain,
1740                                DAG.getConstant(uniqueCallSite, dl, MVT::i32),
1741                                InFlag };
1742     Chain = DAG.getNode(NVPTXISD::Prototype, dl, PrototypeVTs, PrototypeOps);
1743     InFlag = Chain.getValue(1);
1744   }
1745 
1746   SmallVector<SDValue, 16> ProxyRegOps;
1747   SmallVector<Optional<MVT>, 16> ProxyRegTruncates;
1748 
1749   // Generate loads from param memory/moves from registers for result
1750   if (Ins.size() > 0) {
1751     SmallVector<EVT, 16> VTs;
1752     SmallVector<uint64_t, 16> Offsets;
1753     ComputePTXValueVTs(*this, DL, RetTy, VTs, &Offsets, 0);
1754     assert(VTs.size() == Ins.size() && "Bad value decomposition");
1755 
1756     Align RetAlign = getArgumentAlignment(Callee, CS, RetTy, 0, DL);
1757     auto VectorInfo = VectorizePTXValueVTs(VTs, Offsets, RetAlign);
1758 
1759     SmallVector<EVT, 6> LoadVTs;
1760     int VecIdx = -1; // Index of the first element of the vector.
1761 
1762     // PTX Interoperability Guide 3.3(A): [Integer] Values shorter than
1763     // 32-bits are sign extended or zero extended, depending on whether
1764     // they are signed or unsigned types.
1765     bool ExtendIntegerRetVal =
1766         RetTy->isIntegerTy() && DL.getTypeAllocSizeInBits(RetTy) < 32;
1767 
1768     for (unsigned i = 0, e = VTs.size(); i != e; ++i) {
1769       bool needTruncate = false;
1770       EVT TheLoadType = VTs[i];
1771       EVT EltType = Ins[i].VT;
1772       Align EltAlign = commonAlignment(RetAlign, Offsets[i]);
1773       if (ExtendIntegerRetVal) {
1774         TheLoadType = MVT::i32;
1775         EltType = MVT::i32;
1776         needTruncate = true;
1777       } else if (TheLoadType.getSizeInBits() < 16) {
1778         if (VTs[i].isInteger())
1779           needTruncate = true;
1780         EltType = MVT::i16;
1781       }
1782 
1783       // Record index of the very first element of the vector.
1784       if (VectorInfo[i] & PVF_FIRST) {
1785         assert(VecIdx == -1 && LoadVTs.empty() && "Orphaned operand list.");
1786         VecIdx = i;
1787       }
1788 
1789       LoadVTs.push_back(EltType);
1790 
1791       if (VectorInfo[i] & PVF_LAST) {
1792         unsigned NumElts = LoadVTs.size();
1793         LoadVTs.push_back(MVT::Other);
1794         LoadVTs.push_back(MVT::Glue);
1795         NVPTXISD::NodeType Op;
1796         switch (NumElts) {
1797         case 1:
1798           Op = NVPTXISD::LoadParam;
1799           break;
1800         case 2:
1801           Op = NVPTXISD::LoadParamV2;
1802           break;
1803         case 4:
1804           Op = NVPTXISD::LoadParamV4;
1805           break;
1806         default:
1807           llvm_unreachable("Invalid vector info.");
1808         }
1809 
1810         SDValue LoadOperands[] = {
1811             Chain, DAG.getConstant(1, dl, MVT::i32),
1812             DAG.getConstant(Offsets[VecIdx], dl, MVT::i32), InFlag};
1813         SDValue RetVal = DAG.getMemIntrinsicNode(
1814             Op, dl, DAG.getVTList(LoadVTs), LoadOperands, TheLoadType,
1815             MachinePointerInfo(), EltAlign,
1816             MachineMemOperand::MOLoad);
1817 
1818         for (unsigned j = 0; j < NumElts; ++j) {
1819           ProxyRegOps.push_back(RetVal.getValue(j));
1820 
1821           if (needTruncate)
1822             ProxyRegTruncates.push_back(Optional<MVT>(Ins[VecIdx + j].VT));
1823           else
1824             ProxyRegTruncates.push_back(Optional<MVT>());
1825         }
1826 
1827         Chain = RetVal.getValue(NumElts);
1828         InFlag = RetVal.getValue(NumElts + 1);
1829 
1830         // Cleanup
1831         VecIdx = -1;
1832         LoadVTs.clear();
1833       }
1834     }
1835   }
1836 
1837   Chain = DAG.getCALLSEQ_END(Chain,
1838                              DAG.getIntPtrConstant(uniqueCallSite, dl, true),
1839                              DAG.getIntPtrConstant(uniqueCallSite + 1, dl,
1840                                                    true),
1841                              InFlag, dl);
1842   InFlag = Chain.getValue(1);
1843   uniqueCallSite++;
1844 
1845   // Append ProxyReg instructions to the chain to make sure that `callseq_end`
1846   // will not get lost. Otherwise, during libcalls expansion, the nodes can become
1847   // dangling.
1848   for (unsigned i = 0; i < ProxyRegOps.size(); ++i) {
1849     SDValue Ret = DAG.getNode(
1850       NVPTXISD::ProxyReg, dl,
1851       DAG.getVTList(ProxyRegOps[i].getSimpleValueType(), MVT::Other, MVT::Glue),
1852       { Chain, ProxyRegOps[i], InFlag }
1853     );
1854 
1855     Chain = Ret.getValue(1);
1856     InFlag = Ret.getValue(2);
1857 
1858     if (ProxyRegTruncates[i].hasValue()) {
1859       Ret = DAG.getNode(ISD::TRUNCATE, dl, ProxyRegTruncates[i].getValue(), Ret);
1860     }
1861 
1862     InVals.push_back(Ret);
1863   }
1864 
1865   // set isTailCall to false for now, until we figure out how to express
1866   // tail call optimization in PTX
1867   isTailCall = false;
1868   return Chain;
1869 }
1870 
1871 // By default CONCAT_VECTORS is lowered by ExpandVectorBuildThroughStack()
1872 // (see LegalizeDAG.cpp). This is slow and uses local memory.
1873 // We use extract/insert/build vector just as what LegalizeOp() does in llvm 2.5
1874 SDValue
1875 NVPTXTargetLowering::LowerCONCAT_VECTORS(SDValue Op, SelectionDAG &DAG) const {
1876   SDNode *Node = Op.getNode();
1877   SDLoc dl(Node);
1878   SmallVector<SDValue, 8> Ops;
1879   unsigned NumOperands = Node->getNumOperands();
1880   for (unsigned i = 0; i < NumOperands; ++i) {
1881     SDValue SubOp = Node->getOperand(i);
1882     EVT VVT = SubOp.getNode()->getValueType(0);
1883     EVT EltVT = VVT.getVectorElementType();
1884     unsigned NumSubElem = VVT.getVectorNumElements();
1885     for (unsigned j = 0; j < NumSubElem; ++j) {
1886       Ops.push_back(DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, EltVT, SubOp,
1887                                 DAG.getIntPtrConstant(j, dl)));
1888     }
1889   }
1890   return DAG.getBuildVector(Node->getValueType(0), dl, Ops);
1891 }
1892 
1893 // We can init constant f16x2 with a single .b32 move.  Normally it
1894 // would get lowered as two constant loads and vector-packing move.
1895 //        mov.b16         %h1, 0x4000;
1896 //        mov.b16         %h2, 0x3C00;
1897 //        mov.b32         %hh2, {%h2, %h1};
1898 // Instead we want just a constant move:
1899 //        mov.b32         %hh2, 0x40003C00
1900 //
1901 // This results in better SASS code with CUDA 7.x. Ptxas in CUDA 8.0
1902 // generates good SASS in both cases.
1903 SDValue NVPTXTargetLowering::LowerBUILD_VECTOR(SDValue Op,
1904                                                SelectionDAG &DAG) const {
1905   //return Op;
1906   if (!(Op->getValueType(0) == MVT::v2f16 &&
1907         isa<ConstantFPSDNode>(Op->getOperand(0)) &&
1908         isa<ConstantFPSDNode>(Op->getOperand(1))))
1909     return Op;
1910 
1911   APInt E0 =
1912       cast<ConstantFPSDNode>(Op->getOperand(0))->getValueAPF().bitcastToAPInt();
1913   APInt E1 =
1914       cast<ConstantFPSDNode>(Op->getOperand(1))->getValueAPF().bitcastToAPInt();
1915   SDValue Const =
1916       DAG.getConstant(E1.zext(32).shl(16) | E0.zext(32), SDLoc(Op), MVT::i32);
1917   return DAG.getNode(ISD::BITCAST, SDLoc(Op), MVT::v2f16, Const);
1918 }
1919 
1920 SDValue NVPTXTargetLowering::LowerEXTRACT_VECTOR_ELT(SDValue Op,
1921                                                      SelectionDAG &DAG) const {
1922   SDValue Index = Op->getOperand(1);
1923   // Constant index will be matched by tablegen.
1924   if (isa<ConstantSDNode>(Index.getNode()))
1925     return Op;
1926 
1927   // Extract individual elements and select one of them.
1928   SDValue Vector = Op->getOperand(0);
1929   EVT VectorVT = Vector.getValueType();
1930   assert(VectorVT == MVT::v2f16 && "Unexpected vector type.");
1931   EVT EltVT = VectorVT.getVectorElementType();
1932 
1933   SDLoc dl(Op.getNode());
1934   SDValue E0 = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, EltVT, Vector,
1935                            DAG.getIntPtrConstant(0, dl));
1936   SDValue E1 = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, EltVT, Vector,
1937                            DAG.getIntPtrConstant(1, dl));
1938   return DAG.getSelectCC(dl, Index, DAG.getIntPtrConstant(0, dl), E0, E1,
1939                          ISD::CondCode::SETEQ);
1940 }
1941 
1942 /// LowerShiftRightParts - Lower SRL_PARTS, SRA_PARTS, which
1943 /// 1) returns two i32 values and take a 2 x i32 value to shift plus a shift
1944 ///    amount, or
1945 /// 2) returns two i64 values and take a 2 x i64 value to shift plus a shift
1946 ///    amount.
1947 SDValue NVPTXTargetLowering::LowerShiftRightParts(SDValue Op,
1948                                                   SelectionDAG &DAG) const {
1949   assert(Op.getNumOperands() == 3 && "Not a double-shift!");
1950   assert(Op.getOpcode() == ISD::SRA_PARTS || Op.getOpcode() == ISD::SRL_PARTS);
1951 
1952   EVT VT = Op.getValueType();
1953   unsigned VTBits = VT.getSizeInBits();
1954   SDLoc dl(Op);
1955   SDValue ShOpLo = Op.getOperand(0);
1956   SDValue ShOpHi = Op.getOperand(1);
1957   SDValue ShAmt  = Op.getOperand(2);
1958   unsigned Opc = (Op.getOpcode() == ISD::SRA_PARTS) ? ISD::SRA : ISD::SRL;
1959 
1960   if (VTBits == 32 && STI.getSmVersion() >= 35) {
1961     // For 32bit and sm35, we can use the funnel shift 'shf' instruction.
1962     // {dHi, dLo} = {aHi, aLo} >> Amt
1963     //   dHi = aHi >> Amt
1964     //   dLo = shf.r.clamp aLo, aHi, Amt
1965 
1966     SDValue Hi = DAG.getNode(Opc, dl, VT, ShOpHi, ShAmt);
1967     SDValue Lo = DAG.getNode(NVPTXISD::FUN_SHFR_CLAMP, dl, VT, ShOpLo, ShOpHi,
1968                              ShAmt);
1969 
1970     SDValue Ops[2] = { Lo, Hi };
1971     return DAG.getMergeValues(Ops, dl);
1972   }
1973   else {
1974     // {dHi, dLo} = {aHi, aLo} >> Amt
1975     // - if (Amt>=size) then
1976     //      dLo = aHi >> (Amt-size)
1977     //      dHi = aHi >> Amt (this is either all 0 or all 1)
1978     //   else
1979     //      dLo = (aLo >>logic Amt) | (aHi << (size-Amt))
1980     //      dHi = aHi >> Amt
1981 
1982     SDValue RevShAmt = DAG.getNode(ISD::SUB, dl, MVT::i32,
1983                                    DAG.getConstant(VTBits, dl, MVT::i32),
1984                                    ShAmt);
1985     SDValue Tmp1 = DAG.getNode(ISD::SRL, dl, VT, ShOpLo, ShAmt);
1986     SDValue ExtraShAmt = DAG.getNode(ISD::SUB, dl, MVT::i32, ShAmt,
1987                                      DAG.getConstant(VTBits, dl, MVT::i32));
1988     SDValue Tmp2 = DAG.getNode(ISD::SHL, dl, VT, ShOpHi, RevShAmt);
1989     SDValue FalseVal = DAG.getNode(ISD::OR, dl, VT, Tmp1, Tmp2);
1990     SDValue TrueVal = DAG.getNode(Opc, dl, VT, ShOpHi, ExtraShAmt);
1991 
1992     SDValue Cmp = DAG.getSetCC(dl, MVT::i1, ShAmt,
1993                                DAG.getConstant(VTBits, dl, MVT::i32),
1994                                ISD::SETGE);
1995     SDValue Hi = DAG.getNode(Opc, dl, VT, ShOpHi, ShAmt);
1996     SDValue Lo = DAG.getNode(ISD::SELECT, dl, VT, Cmp, TrueVal, FalseVal);
1997 
1998     SDValue Ops[2] = { Lo, Hi };
1999     return DAG.getMergeValues(Ops, dl);
2000   }
2001 }
2002 
2003 /// LowerShiftLeftParts - Lower SHL_PARTS, which
2004 /// 1) returns two i32 values and take a 2 x i32 value to shift plus a shift
2005 ///    amount, or
2006 /// 2) returns two i64 values and take a 2 x i64 value to shift plus a shift
2007 ///    amount.
2008 SDValue NVPTXTargetLowering::LowerShiftLeftParts(SDValue Op,
2009                                                  SelectionDAG &DAG) const {
2010   assert(Op.getNumOperands() == 3 && "Not a double-shift!");
2011   assert(Op.getOpcode() == ISD::SHL_PARTS);
2012 
2013   EVT VT = Op.getValueType();
2014   unsigned VTBits = VT.getSizeInBits();
2015   SDLoc dl(Op);
2016   SDValue ShOpLo = Op.getOperand(0);
2017   SDValue ShOpHi = Op.getOperand(1);
2018   SDValue ShAmt  = Op.getOperand(2);
2019 
2020   if (VTBits == 32 && STI.getSmVersion() >= 35) {
2021     // For 32bit and sm35, we can use the funnel shift 'shf' instruction.
2022     // {dHi, dLo} = {aHi, aLo} << Amt
2023     //   dHi = shf.l.clamp aLo, aHi, Amt
2024     //   dLo = aLo << Amt
2025 
2026     SDValue Hi = DAG.getNode(NVPTXISD::FUN_SHFL_CLAMP, dl, VT, ShOpLo, ShOpHi,
2027                              ShAmt);
2028     SDValue Lo = DAG.getNode(ISD::SHL, dl, VT, ShOpLo, ShAmt);
2029 
2030     SDValue Ops[2] = { Lo, Hi };
2031     return DAG.getMergeValues(Ops, dl);
2032   }
2033   else {
2034     // {dHi, dLo} = {aHi, aLo} << Amt
2035     // - if (Amt>=size) then
2036     //      dLo = aLo << Amt (all 0)
2037     //      dLo = aLo << (Amt-size)
2038     //   else
2039     //      dLo = aLo << Amt
2040     //      dHi = (aHi << Amt) | (aLo >> (size-Amt))
2041 
2042     SDValue RevShAmt = DAG.getNode(ISD::SUB, dl, MVT::i32,
2043                                    DAG.getConstant(VTBits, dl, MVT::i32),
2044                                    ShAmt);
2045     SDValue Tmp1 = DAG.getNode(ISD::SHL, dl, VT, ShOpHi, ShAmt);
2046     SDValue ExtraShAmt = DAG.getNode(ISD::SUB, dl, MVT::i32, ShAmt,
2047                                      DAG.getConstant(VTBits, dl, MVT::i32));
2048     SDValue Tmp2 = DAG.getNode(ISD::SRL, dl, VT, ShOpLo, RevShAmt);
2049     SDValue FalseVal = DAG.getNode(ISD::OR, dl, VT, Tmp1, Tmp2);
2050     SDValue TrueVal = DAG.getNode(ISD::SHL, dl, VT, ShOpLo, ExtraShAmt);
2051 
2052     SDValue Cmp = DAG.getSetCC(dl, MVT::i1, ShAmt,
2053                                DAG.getConstant(VTBits, dl, MVT::i32),
2054                                ISD::SETGE);
2055     SDValue Lo = DAG.getNode(ISD::SHL, dl, VT, ShOpLo, ShAmt);
2056     SDValue Hi = DAG.getNode(ISD::SELECT, dl, VT, Cmp, TrueVal, FalseVal);
2057 
2058     SDValue Ops[2] = { Lo, Hi };
2059     return DAG.getMergeValues(Ops, dl);
2060   }
2061 }
2062 
2063 SDValue NVPTXTargetLowering::LowerFROUND(SDValue Op, SelectionDAG &DAG) const {
2064   EVT VT = Op.getValueType();
2065 
2066   if (VT == MVT::f32)
2067     return LowerFROUND32(Op, DAG);
2068 
2069   if (VT == MVT::f64)
2070     return LowerFROUND64(Op, DAG);
2071 
2072   llvm_unreachable("unhandled type");
2073 }
2074 
2075 // This is the the rounding method used in CUDA libdevice in C like code:
2076 // float roundf(float A)
2077 // {
2078 //   float RoundedA = (float) (int) ( A > 0 ? (A + 0.5f) : (A - 0.5f));
2079 //   RoundedA = abs(A) > 0x1.0p23 ? A : RoundedA;
2080 //   return abs(A) < 0.5 ? (float)(int)A : RoundedA;
2081 // }
2082 SDValue NVPTXTargetLowering::LowerFROUND32(SDValue Op,
2083                                            SelectionDAG &DAG) const {
2084   SDLoc SL(Op);
2085   SDValue A = Op.getOperand(0);
2086   EVT VT = Op.getValueType();
2087 
2088   SDValue AbsA = DAG.getNode(ISD::FABS, SL, VT, A);
2089 
2090   // RoundedA = (float) (int) ( A > 0 ? (A + 0.5f) : (A - 0.5f))
2091   SDValue Bitcast  = DAG.getNode(ISD::BITCAST, SL, MVT::i32, A);
2092   const int SignBitMask = 0x80000000;
2093   SDValue Sign = DAG.getNode(ISD::AND, SL, MVT::i32, Bitcast,
2094                              DAG.getConstant(SignBitMask, SL, MVT::i32));
2095   const int PointFiveInBits = 0x3F000000;
2096   SDValue PointFiveWithSignRaw =
2097       DAG.getNode(ISD::OR, SL, MVT::i32, Sign,
2098                   DAG.getConstant(PointFiveInBits, SL, MVT::i32));
2099   SDValue PointFiveWithSign =
2100       DAG.getNode(ISD::BITCAST, SL, VT, PointFiveWithSignRaw);
2101   SDValue AdjustedA = DAG.getNode(ISD::FADD, SL, VT, A, PointFiveWithSign);
2102   SDValue RoundedA = DAG.getNode(ISD::FTRUNC, SL, VT, AdjustedA);
2103 
2104   // RoundedA = abs(A) > 0x1.0p23 ? A : RoundedA;
2105   EVT SetCCVT = getSetCCResultType(DAG.getDataLayout(), *DAG.getContext(), VT);
2106   SDValue IsLarge =
2107       DAG.getSetCC(SL, SetCCVT, AbsA, DAG.getConstantFP(pow(2.0, 23.0), SL, VT),
2108                    ISD::SETOGT);
2109   RoundedA = DAG.getNode(ISD::SELECT, SL, VT, IsLarge, A, RoundedA);
2110 
2111   // return abs(A) < 0.5 ? (float)(int)A : RoundedA;
2112   SDValue IsSmall =DAG.getSetCC(SL, SetCCVT, AbsA,
2113                                 DAG.getConstantFP(0.5, SL, VT), ISD::SETOLT);
2114   SDValue RoundedAForSmallA = DAG.getNode(ISD::FTRUNC, SL, VT, A);
2115   return DAG.getNode(ISD::SELECT, SL, VT, IsSmall, RoundedAForSmallA, RoundedA);
2116 }
2117 
2118 // The implementation of round(double) is similar to that of round(float) in
2119 // that they both separate the value range into three regions and use a method
2120 // specific to the region to round the values. However, round(double) first
2121 // calculates the round of the absolute value and then adds the sign back while
2122 // round(float) directly rounds the value with sign.
2123 SDValue NVPTXTargetLowering::LowerFROUND64(SDValue Op,
2124                                            SelectionDAG &DAG) const {
2125   SDLoc SL(Op);
2126   SDValue A = Op.getOperand(0);
2127   EVT VT = Op.getValueType();
2128 
2129   SDValue AbsA = DAG.getNode(ISD::FABS, SL, VT, A);
2130 
2131   // double RoundedA = (double) (int) (abs(A) + 0.5f);
2132   SDValue AdjustedA = DAG.getNode(ISD::FADD, SL, VT, AbsA,
2133                                   DAG.getConstantFP(0.5, SL, VT));
2134   SDValue RoundedA = DAG.getNode(ISD::FTRUNC, SL, VT, AdjustedA);
2135 
2136   // RoundedA = abs(A) < 0.5 ? (double)0 : RoundedA;
2137   EVT SetCCVT = getSetCCResultType(DAG.getDataLayout(), *DAG.getContext(), VT);
2138   SDValue IsSmall =DAG.getSetCC(SL, SetCCVT, AbsA,
2139                                 DAG.getConstantFP(0.5, SL, VT), ISD::SETOLT);
2140   RoundedA = DAG.getNode(ISD::SELECT, SL, VT, IsSmall,
2141                          DAG.getConstantFP(0, SL, VT),
2142                          RoundedA);
2143 
2144   // Add sign to rounded_A
2145   RoundedA = DAG.getNode(ISD::FCOPYSIGN, SL, VT, RoundedA, A);
2146   DAG.getNode(ISD::FTRUNC, SL, VT, A);
2147 
2148   // RoundedA = abs(A) > 0x1.0p52 ? A : RoundedA;
2149   SDValue IsLarge =
2150       DAG.getSetCC(SL, SetCCVT, AbsA, DAG.getConstantFP(pow(2.0, 52.0), SL, VT),
2151                    ISD::SETOGT);
2152   return DAG.getNode(ISD::SELECT, SL, VT, IsLarge, A, RoundedA);
2153 }
2154 
2155 
2156 
2157 SDValue
2158 NVPTXTargetLowering::LowerOperation(SDValue Op, SelectionDAG &DAG) const {
2159   switch (Op.getOpcode()) {
2160   case ISD::RETURNADDR:
2161     return SDValue();
2162   case ISD::FRAMEADDR:
2163     return SDValue();
2164   case ISD::GlobalAddress:
2165     return LowerGlobalAddress(Op, DAG);
2166   case ISD::INTRINSIC_W_CHAIN:
2167     return Op;
2168   case ISD::BUILD_VECTOR:
2169     return LowerBUILD_VECTOR(Op, DAG);
2170   case ISD::EXTRACT_SUBVECTOR:
2171     return Op;
2172   case ISD::EXTRACT_VECTOR_ELT:
2173     return LowerEXTRACT_VECTOR_ELT(Op, DAG);
2174   case ISD::CONCAT_VECTORS:
2175     return LowerCONCAT_VECTORS(Op, DAG);
2176   case ISD::STORE:
2177     return LowerSTORE(Op, DAG);
2178   case ISD::LOAD:
2179     return LowerLOAD(Op, DAG);
2180   case ISD::SHL_PARTS:
2181     return LowerShiftLeftParts(Op, DAG);
2182   case ISD::SRA_PARTS:
2183   case ISD::SRL_PARTS:
2184     return LowerShiftRightParts(Op, DAG);
2185   case ISD::SELECT:
2186     return LowerSelect(Op, DAG);
2187   case ISD::FROUND:
2188     return LowerFROUND(Op, DAG);
2189   default:
2190     llvm_unreachable("Custom lowering not defined for operation");
2191   }
2192 }
2193 
2194 SDValue NVPTXTargetLowering::LowerSelect(SDValue Op, SelectionDAG &DAG) const {
2195   SDValue Op0 = Op->getOperand(0);
2196   SDValue Op1 = Op->getOperand(1);
2197   SDValue Op2 = Op->getOperand(2);
2198   SDLoc DL(Op.getNode());
2199 
2200   assert(Op.getValueType() == MVT::i1 && "Custom lowering enabled only for i1");
2201 
2202   Op1 = DAG.getNode(ISD::ANY_EXTEND, DL, MVT::i32, Op1);
2203   Op2 = DAG.getNode(ISD::ANY_EXTEND, DL, MVT::i32, Op2);
2204   SDValue Select = DAG.getNode(ISD::SELECT, DL, MVT::i32, Op0, Op1, Op2);
2205   SDValue Trunc = DAG.getNode(ISD::TRUNCATE, DL, MVT::i1, Select);
2206 
2207   return Trunc;
2208 }
2209 
2210 SDValue NVPTXTargetLowering::LowerLOAD(SDValue Op, SelectionDAG &DAG) const {
2211   if (Op.getValueType() == MVT::i1)
2212     return LowerLOADi1(Op, DAG);
2213 
2214   // v2f16 is legal, so we can't rely on legalizer to handle unaligned
2215   // loads and have to handle it here.
2216   if (Op.getValueType() == MVT::v2f16) {
2217     LoadSDNode *Load = cast<LoadSDNode>(Op);
2218     EVT MemVT = Load->getMemoryVT();
2219     if (!allowsMemoryAccessForAlignment(*DAG.getContext(), DAG.getDataLayout(),
2220                                         MemVT, *Load->getMemOperand())) {
2221       SDValue Ops[2];
2222       std::tie(Ops[0], Ops[1]) = expandUnalignedLoad(Load, DAG);
2223       return DAG.getMergeValues(Ops, SDLoc(Op));
2224     }
2225   }
2226 
2227   return SDValue();
2228 }
2229 
2230 // v = ld i1* addr
2231 //   =>
2232 // v1 = ld i8* addr (-> i16)
2233 // v = trunc i16 to i1
2234 SDValue NVPTXTargetLowering::LowerLOADi1(SDValue Op, SelectionDAG &DAG) const {
2235   SDNode *Node = Op.getNode();
2236   LoadSDNode *LD = cast<LoadSDNode>(Node);
2237   SDLoc dl(Node);
2238   assert(LD->getExtensionType() == ISD::NON_EXTLOAD);
2239   assert(Node->getValueType(0) == MVT::i1 &&
2240          "Custom lowering for i1 load only");
2241   SDValue newLD = DAG.getLoad(MVT::i16, dl, LD->getChain(), LD->getBasePtr(),
2242                               LD->getPointerInfo(), LD->getAlignment(),
2243                               LD->getMemOperand()->getFlags());
2244   SDValue result = DAG.getNode(ISD::TRUNCATE, dl, MVT::i1, newLD);
2245   // The legalizer (the caller) is expecting two values from the legalized
2246   // load, so we build a MergeValues node for it. See ExpandUnalignedLoad()
2247   // in LegalizeDAG.cpp which also uses MergeValues.
2248   SDValue Ops[] = { result, LD->getChain() };
2249   return DAG.getMergeValues(Ops, dl);
2250 }
2251 
2252 SDValue NVPTXTargetLowering::LowerSTORE(SDValue Op, SelectionDAG &DAG) const {
2253   StoreSDNode *Store = cast<StoreSDNode>(Op);
2254   EVT VT = Store->getMemoryVT();
2255 
2256   if (VT == MVT::i1)
2257     return LowerSTOREi1(Op, DAG);
2258 
2259   // v2f16 is legal, so we can't rely on legalizer to handle unaligned
2260   // stores and have to handle it here.
2261   if (VT == MVT::v2f16 &&
2262       !allowsMemoryAccessForAlignment(*DAG.getContext(), DAG.getDataLayout(),
2263                                       VT, *Store->getMemOperand()))
2264     return expandUnalignedStore(Store, DAG);
2265 
2266   if (VT.isVector())
2267     return LowerSTOREVector(Op, DAG);
2268 
2269   return SDValue();
2270 }
2271 
2272 SDValue
2273 NVPTXTargetLowering::LowerSTOREVector(SDValue Op, SelectionDAG &DAG) const {
2274   SDNode *N = Op.getNode();
2275   SDValue Val = N->getOperand(1);
2276   SDLoc DL(N);
2277   EVT ValVT = Val.getValueType();
2278 
2279   if (ValVT.isVector()) {
2280     // We only handle "native" vector sizes for now, e.g. <4 x double> is not
2281     // legal.  We can (and should) split that into 2 stores of <2 x double> here
2282     // but I'm leaving that as a TODO for now.
2283     if (!ValVT.isSimple())
2284       return SDValue();
2285     switch (ValVT.getSimpleVT().SimpleTy) {
2286     default:
2287       return SDValue();
2288     case MVT::v2i8:
2289     case MVT::v2i16:
2290     case MVT::v2i32:
2291     case MVT::v2i64:
2292     case MVT::v2f16:
2293     case MVT::v2f32:
2294     case MVT::v2f64:
2295     case MVT::v4i8:
2296     case MVT::v4i16:
2297     case MVT::v4i32:
2298     case MVT::v4f16:
2299     case MVT::v4f32:
2300     case MVT::v8f16: // <4 x f16x2>
2301       // This is a "native" vector type
2302       break;
2303     }
2304 
2305     MemSDNode *MemSD = cast<MemSDNode>(N);
2306     const DataLayout &TD = DAG.getDataLayout();
2307 
2308     unsigned Align = MemSD->getAlignment();
2309     unsigned PrefAlign =
2310         TD.getPrefTypeAlignment(ValVT.getTypeForEVT(*DAG.getContext()));
2311     if (Align < PrefAlign) {
2312       // This store is not sufficiently aligned, so bail out and let this vector
2313       // store be scalarized.  Note that we may still be able to emit smaller
2314       // vector stores.  For example, if we are storing a <4 x float> with an
2315       // alignment of 8, this check will fail but the legalizer will try again
2316       // with 2 x <2 x float>, which will succeed with an alignment of 8.
2317       return SDValue();
2318     }
2319 
2320     unsigned Opcode = 0;
2321     EVT EltVT = ValVT.getVectorElementType();
2322     unsigned NumElts = ValVT.getVectorNumElements();
2323 
2324     // Since StoreV2 is a target node, we cannot rely on DAG type legalization.
2325     // Therefore, we must ensure the type is legal.  For i1 and i8, we set the
2326     // stored type to i16 and propagate the "real" type as the memory type.
2327     bool NeedExt = false;
2328     if (EltVT.getSizeInBits() < 16)
2329       NeedExt = true;
2330 
2331     bool StoreF16x2 = false;
2332     switch (NumElts) {
2333     default:
2334       return SDValue();
2335     case 2:
2336       Opcode = NVPTXISD::StoreV2;
2337       break;
2338     case 4:
2339       Opcode = NVPTXISD::StoreV4;
2340       break;
2341     case 8:
2342       // v8f16 is a special case. PTX doesn't have st.v8.f16
2343       // instruction. Instead, we split the vector into v2f16 chunks and
2344       // store them with st.v4.b32.
2345       assert(EltVT == MVT::f16 && "Wrong type for the vector.");
2346       Opcode = NVPTXISD::StoreV4;
2347       StoreF16x2 = true;
2348       break;
2349     }
2350 
2351     SmallVector<SDValue, 8> Ops;
2352 
2353     // First is the chain
2354     Ops.push_back(N->getOperand(0));
2355 
2356     if (StoreF16x2) {
2357       // Combine f16,f16 -> v2f16
2358       NumElts /= 2;
2359       for (unsigned i = 0; i < NumElts; ++i) {
2360         SDValue E0 = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, DL, MVT::f16, Val,
2361                                  DAG.getIntPtrConstant(i * 2, DL));
2362         SDValue E1 = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, DL, MVT::f16, Val,
2363                                  DAG.getIntPtrConstant(i * 2 + 1, DL));
2364         SDValue V2 = DAG.getNode(ISD::BUILD_VECTOR, DL, MVT::v2f16, E0, E1);
2365         Ops.push_back(V2);
2366       }
2367     } else {
2368       // Then the split values
2369       for (unsigned i = 0; i < NumElts; ++i) {
2370         SDValue ExtVal = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, DL, EltVT, Val,
2371                                      DAG.getIntPtrConstant(i, DL));
2372         if (NeedExt)
2373           ExtVal = DAG.getNode(ISD::ANY_EXTEND, DL, MVT::i16, ExtVal);
2374         Ops.push_back(ExtVal);
2375       }
2376     }
2377 
2378     // Then any remaining arguments
2379     Ops.append(N->op_begin() + 2, N->op_end());
2380 
2381     SDValue NewSt =
2382         DAG.getMemIntrinsicNode(Opcode, DL, DAG.getVTList(MVT::Other), Ops,
2383                                 MemSD->getMemoryVT(), MemSD->getMemOperand());
2384 
2385     // return DCI.CombineTo(N, NewSt, true);
2386     return NewSt;
2387   }
2388 
2389   return SDValue();
2390 }
2391 
2392 // st i1 v, addr
2393 //    =>
2394 // v1 = zxt v to i16
2395 // st.u8 i16, addr
2396 SDValue NVPTXTargetLowering::LowerSTOREi1(SDValue Op, SelectionDAG &DAG) const {
2397   SDNode *Node = Op.getNode();
2398   SDLoc dl(Node);
2399   StoreSDNode *ST = cast<StoreSDNode>(Node);
2400   SDValue Tmp1 = ST->getChain();
2401   SDValue Tmp2 = ST->getBasePtr();
2402   SDValue Tmp3 = ST->getValue();
2403   assert(Tmp3.getValueType() == MVT::i1 && "Custom lowering for i1 store only");
2404   Tmp3 = DAG.getNode(ISD::ZERO_EXTEND, dl, MVT::i16, Tmp3);
2405   SDValue Result =
2406       DAG.getTruncStore(Tmp1, dl, Tmp3, Tmp2, ST->getPointerInfo(), MVT::i8,
2407                         ST->getAlignment(), ST->getMemOperand()->getFlags());
2408   return Result;
2409 }
2410 
2411 SDValue
2412 NVPTXTargetLowering::getParamSymbol(SelectionDAG &DAG, int idx, EVT v) const {
2413   std::string ParamSym;
2414   raw_string_ostream ParamStr(ParamSym);
2415 
2416   ParamStr << DAG.getMachineFunction().getName() << "_param_" << idx;
2417   ParamStr.flush();
2418 
2419   std::string *SavedStr =
2420     nvTM->getManagedStrPool()->getManagedString(ParamSym.c_str());
2421   return DAG.getTargetExternalSymbol(SavedStr->c_str(), v);
2422 }
2423 
2424 // Check to see if the kernel argument is image*_t or sampler_t
2425 
2426 static bool isImageOrSamplerVal(const Value *arg, const Module *context) {
2427   static const char *const specialTypes[] = { "struct._image2d_t",
2428                                               "struct._image3d_t",
2429                                               "struct._sampler_t" };
2430 
2431   Type *Ty = arg->getType();
2432   auto *PTy = dyn_cast<PointerType>(Ty);
2433 
2434   if (!PTy)
2435     return false;
2436 
2437   if (!context)
2438     return false;
2439 
2440   auto *STy = dyn_cast<StructType>(PTy->getElementType());
2441   if (!STy || STy->isLiteral())
2442     return false;
2443 
2444   return std::find(std::begin(specialTypes), std::end(specialTypes),
2445                    STy->getName()) != std::end(specialTypes);
2446 }
2447 
2448 SDValue NVPTXTargetLowering::LowerFormalArguments(
2449     SDValue Chain, CallingConv::ID CallConv, bool isVarArg,
2450     const SmallVectorImpl<ISD::InputArg> &Ins, const SDLoc &dl,
2451     SelectionDAG &DAG, SmallVectorImpl<SDValue> &InVals) const {
2452   MachineFunction &MF = DAG.getMachineFunction();
2453   const DataLayout &DL = DAG.getDataLayout();
2454   auto PtrVT = getPointerTy(DAG.getDataLayout());
2455 
2456   const Function *F = &MF.getFunction();
2457   const AttributeList &PAL = F->getAttributes();
2458   const TargetLowering *TLI = STI.getTargetLowering();
2459 
2460   SDValue Root = DAG.getRoot();
2461   std::vector<SDValue> OutChains;
2462 
2463   bool isABI = (STI.getSmVersion() >= 20);
2464   assert(isABI && "Non-ABI compilation is not supported");
2465   if (!isABI)
2466     return Chain;
2467 
2468   std::vector<Type *> argTypes;
2469   std::vector<const Argument *> theArgs;
2470   for (const Argument &I : F->args()) {
2471     theArgs.push_back(&I);
2472     argTypes.push_back(I.getType());
2473   }
2474   // argTypes.size() (or theArgs.size()) and Ins.size() need not match.
2475   // Ins.size() will be larger
2476   //   * if there is an aggregate argument with multiple fields (each field
2477   //     showing up separately in Ins)
2478   //   * if there is a vector argument with more than typical vector-length
2479   //     elements (generally if more than 4) where each vector element is
2480   //     individually present in Ins.
2481   // So a different index should be used for indexing into Ins.
2482   // See similar issue in LowerCall.
2483   unsigned InsIdx = 0;
2484 
2485   int idx = 0;
2486   for (unsigned i = 0, e = theArgs.size(); i != e; ++i, ++idx, ++InsIdx) {
2487     Type *Ty = argTypes[i];
2488 
2489     // If the kernel argument is image*_t or sampler_t, convert it to
2490     // a i32 constant holding the parameter position. This can later
2491     // matched in the AsmPrinter to output the correct mangled name.
2492     if (isImageOrSamplerVal(
2493             theArgs[i],
2494             (theArgs[i]->getParent() ? theArgs[i]->getParent()->getParent()
2495                                      : nullptr))) {
2496       assert(isKernelFunction(*F) &&
2497              "Only kernels can have image/sampler params");
2498       InVals.push_back(DAG.getConstant(i + 1, dl, MVT::i32));
2499       continue;
2500     }
2501 
2502     if (theArgs[i]->use_empty()) {
2503       // argument is dead
2504       if (Ty->isAggregateType() || Ty->isIntegerTy(128)) {
2505         SmallVector<EVT, 16> vtparts;
2506 
2507         ComputePTXValueVTs(*this, DAG.getDataLayout(), Ty, vtparts);
2508         assert(vtparts.size() > 0 && "empty aggregate type not expected");
2509         for (unsigned parti = 0, parte = vtparts.size(); parti != parte;
2510              ++parti) {
2511           InVals.push_back(DAG.getNode(ISD::UNDEF, dl, Ins[InsIdx].VT));
2512           ++InsIdx;
2513         }
2514         if (vtparts.size() > 0)
2515           --InsIdx;
2516         continue;
2517       }
2518       if (Ty->isVectorTy()) {
2519         EVT ObjectVT = getValueType(DL, Ty);
2520         unsigned NumRegs = TLI->getNumRegisters(F->getContext(), ObjectVT);
2521         for (unsigned parti = 0; parti < NumRegs; ++parti) {
2522           InVals.push_back(DAG.getNode(ISD::UNDEF, dl, Ins[InsIdx].VT));
2523           ++InsIdx;
2524         }
2525         if (NumRegs > 0)
2526           --InsIdx;
2527         continue;
2528       }
2529       InVals.push_back(DAG.getNode(ISD::UNDEF, dl, Ins[InsIdx].VT));
2530       continue;
2531     }
2532 
2533     // In the following cases, assign a node order of "idx+1"
2534     // to newly created nodes. The SDNodes for params have to
2535     // appear in the same order as their order of appearance
2536     // in the original function. "idx+1" holds that order.
2537     if (!PAL.hasParamAttribute(i, Attribute::ByVal)) {
2538       bool aggregateIsPacked = false;
2539       if (StructType *STy = dyn_cast<StructType>(Ty))
2540         aggregateIsPacked = STy->isPacked();
2541 
2542       SmallVector<EVT, 16> VTs;
2543       SmallVector<uint64_t, 16> Offsets;
2544       ComputePTXValueVTs(*this, DL, Ty, VTs, &Offsets, 0);
2545       assert(VTs.size() > 0 && "Unexpected empty type.");
2546       auto VectorInfo =
2547           VectorizePTXValueVTs(VTs, Offsets, DL.getABITypeAlign(Ty));
2548 
2549       SDValue Arg = getParamSymbol(DAG, idx, PtrVT);
2550       int VecIdx = -1; // Index of the first element of the current vector.
2551       for (unsigned parti = 0, parte = VTs.size(); parti != parte; ++parti) {
2552         if (VectorInfo[parti] & PVF_FIRST) {
2553           assert(VecIdx == -1 && "Orphaned vector.");
2554           VecIdx = parti;
2555         }
2556 
2557         // That's the last element of this store op.
2558         if (VectorInfo[parti] & PVF_LAST) {
2559           unsigned NumElts = parti - VecIdx + 1;
2560           EVT EltVT = VTs[parti];
2561           // i1 is loaded/stored as i8.
2562           EVT LoadVT = EltVT;
2563           if (EltVT == MVT::i1)
2564             LoadVT = MVT::i8;
2565           else if (EltVT == MVT::v2f16)
2566             // getLoad needs a vector type, but it can't handle
2567             // vectors which contain v2f16 elements. So we must load
2568             // using i32 here and then bitcast back.
2569             LoadVT = MVT::i32;
2570 
2571           EVT VecVT = EVT::getVectorVT(F->getContext(), LoadVT, NumElts);
2572           SDValue VecAddr =
2573               DAG.getNode(ISD::ADD, dl, PtrVT, Arg,
2574                           DAG.getConstant(Offsets[VecIdx], dl, PtrVT));
2575           Value *srcValue = Constant::getNullValue(PointerType::get(
2576               EltVT.getTypeForEVT(F->getContext()), ADDRESS_SPACE_PARAM));
2577           SDValue P =
2578               DAG.getLoad(VecVT, dl, Root, VecAddr,
2579                           MachinePointerInfo(srcValue), aggregateIsPacked,
2580                           MachineMemOperand::MODereferenceable |
2581                               MachineMemOperand::MOInvariant);
2582           if (P.getNode())
2583             P.getNode()->setIROrder(idx + 1);
2584           for (unsigned j = 0; j < NumElts; ++j) {
2585             SDValue Elt = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, dl, LoadVT, P,
2586                                       DAG.getIntPtrConstant(j, dl));
2587             // We've loaded i1 as an i8 and now must truncate it back to i1
2588             if (EltVT == MVT::i1)
2589               Elt = DAG.getNode(ISD::TRUNCATE, dl, MVT::i1, Elt);
2590             // v2f16 was loaded as an i32. Now we must bitcast it back.
2591             else if (EltVT == MVT::v2f16)
2592               Elt = DAG.getNode(ISD::BITCAST, dl, MVT::v2f16, Elt);
2593             // Extend the element if necessary (e.g. an i8 is loaded
2594             // into an i16 register)
2595             if (Ins[InsIdx].VT.isInteger() &&
2596                 Ins[InsIdx].VT.getSizeInBits() > LoadVT.getSizeInBits()) {
2597               unsigned Extend = Ins[InsIdx].Flags.isSExt() ? ISD::SIGN_EXTEND
2598                                                            : ISD::ZERO_EXTEND;
2599               Elt = DAG.getNode(Extend, dl, Ins[InsIdx].VT, Elt);
2600             }
2601             InVals.push_back(Elt);
2602           }
2603 
2604           // Reset vector tracking state.
2605           VecIdx = -1;
2606         }
2607         ++InsIdx;
2608       }
2609       if (VTs.size() > 0)
2610         --InsIdx;
2611       continue;
2612     }
2613 
2614     // Param has ByVal attribute
2615     // Return MoveParam(param symbol).
2616     // Ideally, the param symbol can be returned directly,
2617     // but when SDNode builder decides to use it in a CopyToReg(),
2618     // machine instruction fails because TargetExternalSymbol
2619     // (not lowered) is target dependent, and CopyToReg assumes
2620     // the source is lowered.
2621     EVT ObjectVT = getValueType(DL, Ty);
2622     assert(ObjectVT == Ins[InsIdx].VT &&
2623            "Ins type did not match function type");
2624     SDValue Arg = getParamSymbol(DAG, idx, PtrVT);
2625     SDValue p = DAG.getNode(NVPTXISD::MoveParam, dl, ObjectVT, Arg);
2626     if (p.getNode())
2627       p.getNode()->setIROrder(idx + 1);
2628     InVals.push_back(p);
2629   }
2630 
2631   // Clang will check explicit VarArg and issue error if any. However, Clang
2632   // will let code with
2633   // implicit var arg like f() pass. See bug 617733.
2634   // We treat this case as if the arg list is empty.
2635   // if (F.isVarArg()) {
2636   // assert(0 && "VarArg not supported yet!");
2637   //}
2638 
2639   if (!OutChains.empty())
2640     DAG.setRoot(DAG.getNode(ISD::TokenFactor, dl, MVT::Other, OutChains));
2641 
2642   return Chain;
2643 }
2644 
2645 SDValue
2646 NVPTXTargetLowering::LowerReturn(SDValue Chain, CallingConv::ID CallConv,
2647                                  bool isVarArg,
2648                                  const SmallVectorImpl<ISD::OutputArg> &Outs,
2649                                  const SmallVectorImpl<SDValue> &OutVals,
2650                                  const SDLoc &dl, SelectionDAG &DAG) const {
2651   MachineFunction &MF = DAG.getMachineFunction();
2652   Type *RetTy = MF.getFunction().getReturnType();
2653 
2654   bool isABI = (STI.getSmVersion() >= 20);
2655   assert(isABI && "Non-ABI compilation is not supported");
2656   if (!isABI)
2657     return Chain;
2658 
2659   const DataLayout DL = DAG.getDataLayout();
2660   SmallVector<EVT, 16> VTs;
2661   SmallVector<uint64_t, 16> Offsets;
2662   ComputePTXValueVTs(*this, DL, RetTy, VTs, &Offsets);
2663   assert(VTs.size() == OutVals.size() && "Bad return value decomposition");
2664 
2665   auto VectorInfo = VectorizePTXValueVTs(
2666       VTs, Offsets, RetTy->isSized() ? DL.getABITypeAlign(RetTy) : Align(1));
2667 
2668   // PTX Interoperability Guide 3.3(A): [Integer] Values shorter than
2669   // 32-bits are sign extended or zero extended, depending on whether
2670   // they are signed or unsigned types.
2671   bool ExtendIntegerRetVal =
2672       RetTy->isIntegerTy() && DL.getTypeAllocSizeInBits(RetTy) < 32;
2673 
2674   SmallVector<SDValue, 6> StoreOperands;
2675   for (unsigned i = 0, e = VTs.size(); i != e; ++i) {
2676     // New load/store. Record chain and offset operands.
2677     if (VectorInfo[i] & PVF_FIRST) {
2678       assert(StoreOperands.empty() && "Orphaned operand list.");
2679       StoreOperands.push_back(Chain);
2680       StoreOperands.push_back(DAG.getConstant(Offsets[i], dl, MVT::i32));
2681     }
2682 
2683     SDValue RetVal = OutVals[i];
2684     if (ExtendIntegerRetVal) {
2685       RetVal = DAG.getNode(Outs[i].Flags.isSExt() ? ISD::SIGN_EXTEND
2686                                                   : ISD::ZERO_EXTEND,
2687                            dl, MVT::i32, RetVal);
2688     } else if (RetVal.getValueSizeInBits() < 16) {
2689       // Use 16-bit registers for small load-stores as it's the
2690       // smallest general purpose register size supported by NVPTX.
2691       RetVal = DAG.getNode(ISD::ANY_EXTEND, dl, MVT::i16, RetVal);
2692     }
2693 
2694     // Record the value to return.
2695     StoreOperands.push_back(RetVal);
2696 
2697     // That's the last element of this store op.
2698     if (VectorInfo[i] & PVF_LAST) {
2699       NVPTXISD::NodeType Op;
2700       unsigned NumElts = StoreOperands.size() - 2;
2701       switch (NumElts) {
2702       case 1:
2703         Op = NVPTXISD::StoreRetval;
2704         break;
2705       case 2:
2706         Op = NVPTXISD::StoreRetvalV2;
2707         break;
2708       case 4:
2709         Op = NVPTXISD::StoreRetvalV4;
2710         break;
2711       default:
2712         llvm_unreachable("Invalid vector info.");
2713       }
2714 
2715       // Adjust type of load/store op if we've extended the scalar
2716       // return value.
2717       EVT TheStoreType = ExtendIntegerRetVal ? MVT::i32 : VTs[i];
2718       Chain = DAG.getMemIntrinsicNode(
2719           Op, dl, DAG.getVTList(MVT::Other), StoreOperands, TheStoreType,
2720           MachinePointerInfo(), Align(1), MachineMemOperand::MOStore);
2721       // Cleanup vector state.
2722       StoreOperands.clear();
2723     }
2724   }
2725 
2726   return DAG.getNode(NVPTXISD::RET_FLAG, dl, MVT::Other, Chain);
2727 }
2728 
2729 void NVPTXTargetLowering::LowerAsmOperandForConstraint(
2730     SDValue Op, std::string &Constraint, std::vector<SDValue> &Ops,
2731     SelectionDAG &DAG) const {
2732   if (Constraint.length() > 1)
2733     return;
2734   else
2735     TargetLowering::LowerAsmOperandForConstraint(Op, Constraint, Ops, DAG);
2736 }
2737 
2738 static unsigned getOpcForTextureInstr(unsigned Intrinsic) {
2739   switch (Intrinsic) {
2740   default:
2741     return 0;
2742 
2743   case Intrinsic::nvvm_tex_1d_v4f32_s32:
2744     return NVPTXISD::Tex1DFloatS32;
2745   case Intrinsic::nvvm_tex_1d_v4f32_f32:
2746     return NVPTXISD::Tex1DFloatFloat;
2747   case Intrinsic::nvvm_tex_1d_level_v4f32_f32:
2748     return NVPTXISD::Tex1DFloatFloatLevel;
2749   case Intrinsic::nvvm_tex_1d_grad_v4f32_f32:
2750     return NVPTXISD::Tex1DFloatFloatGrad;
2751   case Intrinsic::nvvm_tex_1d_v4s32_s32:
2752     return NVPTXISD::Tex1DS32S32;
2753   case Intrinsic::nvvm_tex_1d_v4s32_f32:
2754     return NVPTXISD::Tex1DS32Float;
2755   case Intrinsic::nvvm_tex_1d_level_v4s32_f32:
2756     return NVPTXISD::Tex1DS32FloatLevel;
2757   case Intrinsic::nvvm_tex_1d_grad_v4s32_f32:
2758     return NVPTXISD::Tex1DS32FloatGrad;
2759   case Intrinsic::nvvm_tex_1d_v4u32_s32:
2760     return NVPTXISD::Tex1DU32S32;
2761   case Intrinsic::nvvm_tex_1d_v4u32_f32:
2762     return NVPTXISD::Tex1DU32Float;
2763   case Intrinsic::nvvm_tex_1d_level_v4u32_f32:
2764     return NVPTXISD::Tex1DU32FloatLevel;
2765   case Intrinsic::nvvm_tex_1d_grad_v4u32_f32:
2766     return NVPTXISD::Tex1DU32FloatGrad;
2767 
2768   case Intrinsic::nvvm_tex_1d_array_v4f32_s32:
2769     return NVPTXISD::Tex1DArrayFloatS32;
2770   case Intrinsic::nvvm_tex_1d_array_v4f32_f32:
2771     return NVPTXISD::Tex1DArrayFloatFloat;
2772   case Intrinsic::nvvm_tex_1d_array_level_v4f32_f32:
2773     return NVPTXISD::Tex1DArrayFloatFloatLevel;
2774   case Intrinsic::nvvm_tex_1d_array_grad_v4f32_f32:
2775     return NVPTXISD::Tex1DArrayFloatFloatGrad;
2776   case Intrinsic::nvvm_tex_1d_array_v4s32_s32:
2777     return NVPTXISD::Tex1DArrayS32S32;
2778   case Intrinsic::nvvm_tex_1d_array_v4s32_f32:
2779     return NVPTXISD::Tex1DArrayS32Float;
2780   case Intrinsic::nvvm_tex_1d_array_level_v4s32_f32:
2781     return NVPTXISD::Tex1DArrayS32FloatLevel;
2782   case Intrinsic::nvvm_tex_1d_array_grad_v4s32_f32:
2783     return NVPTXISD::Tex1DArrayS32FloatGrad;
2784   case Intrinsic::nvvm_tex_1d_array_v4u32_s32:
2785     return NVPTXISD::Tex1DArrayU32S32;
2786   case Intrinsic::nvvm_tex_1d_array_v4u32_f32:
2787     return NVPTXISD::Tex1DArrayU32Float;
2788   case Intrinsic::nvvm_tex_1d_array_level_v4u32_f32:
2789     return NVPTXISD::Tex1DArrayU32FloatLevel;
2790   case Intrinsic::nvvm_tex_1d_array_grad_v4u32_f32:
2791     return NVPTXISD::Tex1DArrayU32FloatGrad;
2792 
2793   case Intrinsic::nvvm_tex_2d_v4f32_s32:
2794     return NVPTXISD::Tex2DFloatS32;
2795   case Intrinsic::nvvm_tex_2d_v4f32_f32:
2796     return NVPTXISD::Tex2DFloatFloat;
2797   case Intrinsic::nvvm_tex_2d_level_v4f32_f32:
2798     return NVPTXISD::Tex2DFloatFloatLevel;
2799   case Intrinsic::nvvm_tex_2d_grad_v4f32_f32:
2800     return NVPTXISD::Tex2DFloatFloatGrad;
2801   case Intrinsic::nvvm_tex_2d_v4s32_s32:
2802     return NVPTXISD::Tex2DS32S32;
2803   case Intrinsic::nvvm_tex_2d_v4s32_f32:
2804     return NVPTXISD::Tex2DS32Float;
2805   case Intrinsic::nvvm_tex_2d_level_v4s32_f32:
2806     return NVPTXISD::Tex2DS32FloatLevel;
2807   case Intrinsic::nvvm_tex_2d_grad_v4s32_f32:
2808     return NVPTXISD::Tex2DS32FloatGrad;
2809   case Intrinsic::nvvm_tex_2d_v4u32_s32:
2810     return NVPTXISD::Tex2DU32S32;
2811   case Intrinsic::nvvm_tex_2d_v4u32_f32:
2812     return NVPTXISD::Tex2DU32Float;
2813   case Intrinsic::nvvm_tex_2d_level_v4u32_f32:
2814     return NVPTXISD::Tex2DU32FloatLevel;
2815   case Intrinsic::nvvm_tex_2d_grad_v4u32_f32:
2816     return NVPTXISD::Tex2DU32FloatGrad;
2817 
2818   case Intrinsic::nvvm_tex_2d_array_v4f32_s32:
2819     return NVPTXISD::Tex2DArrayFloatS32;
2820   case Intrinsic::nvvm_tex_2d_array_v4f32_f32:
2821     return NVPTXISD::Tex2DArrayFloatFloat;
2822   case Intrinsic::nvvm_tex_2d_array_level_v4f32_f32:
2823     return NVPTXISD::Tex2DArrayFloatFloatLevel;
2824   case Intrinsic::nvvm_tex_2d_array_grad_v4f32_f32:
2825     return NVPTXISD::Tex2DArrayFloatFloatGrad;
2826   case Intrinsic::nvvm_tex_2d_array_v4s32_s32:
2827     return NVPTXISD::Tex2DArrayS32S32;
2828   case Intrinsic::nvvm_tex_2d_array_v4s32_f32:
2829     return NVPTXISD::Tex2DArrayS32Float;
2830   case Intrinsic::nvvm_tex_2d_array_level_v4s32_f32:
2831     return NVPTXISD::Tex2DArrayS32FloatLevel;
2832   case Intrinsic::nvvm_tex_2d_array_grad_v4s32_f32:
2833     return NVPTXISD::Tex2DArrayS32FloatGrad;
2834   case Intrinsic::nvvm_tex_2d_array_v4u32_s32:
2835     return NVPTXISD::Tex2DArrayU32S32;
2836   case Intrinsic::nvvm_tex_2d_array_v4u32_f32:
2837     return NVPTXISD::Tex2DArrayU32Float;
2838   case Intrinsic::nvvm_tex_2d_array_level_v4u32_f32:
2839     return NVPTXISD::Tex2DArrayU32FloatLevel;
2840   case Intrinsic::nvvm_tex_2d_array_grad_v4u32_f32:
2841     return NVPTXISD::Tex2DArrayU32FloatGrad;
2842 
2843   case Intrinsic::nvvm_tex_3d_v4f32_s32:
2844     return NVPTXISD::Tex3DFloatS32;
2845   case Intrinsic::nvvm_tex_3d_v4f32_f32:
2846     return NVPTXISD::Tex3DFloatFloat;
2847   case Intrinsic::nvvm_tex_3d_level_v4f32_f32:
2848     return NVPTXISD::Tex3DFloatFloatLevel;
2849   case Intrinsic::nvvm_tex_3d_grad_v4f32_f32:
2850     return NVPTXISD::Tex3DFloatFloatGrad;
2851   case Intrinsic::nvvm_tex_3d_v4s32_s32:
2852     return NVPTXISD::Tex3DS32S32;
2853   case Intrinsic::nvvm_tex_3d_v4s32_f32:
2854     return NVPTXISD::Tex3DS32Float;
2855   case Intrinsic::nvvm_tex_3d_level_v4s32_f32:
2856     return NVPTXISD::Tex3DS32FloatLevel;
2857   case Intrinsic::nvvm_tex_3d_grad_v4s32_f32:
2858     return NVPTXISD::Tex3DS32FloatGrad;
2859   case Intrinsic::nvvm_tex_3d_v4u32_s32:
2860     return NVPTXISD::Tex3DU32S32;
2861   case Intrinsic::nvvm_tex_3d_v4u32_f32:
2862     return NVPTXISD::Tex3DU32Float;
2863   case Intrinsic::nvvm_tex_3d_level_v4u32_f32:
2864     return NVPTXISD::Tex3DU32FloatLevel;
2865   case Intrinsic::nvvm_tex_3d_grad_v4u32_f32:
2866     return NVPTXISD::Tex3DU32FloatGrad;
2867 
2868   case Intrinsic::nvvm_tex_cube_v4f32_f32:
2869     return NVPTXISD::TexCubeFloatFloat;
2870   case Intrinsic::nvvm_tex_cube_level_v4f32_f32:
2871     return NVPTXISD::TexCubeFloatFloatLevel;
2872   case Intrinsic::nvvm_tex_cube_v4s32_f32:
2873     return NVPTXISD::TexCubeS32Float;
2874   case Intrinsic::nvvm_tex_cube_level_v4s32_f32:
2875     return NVPTXISD::TexCubeS32FloatLevel;
2876   case Intrinsic::nvvm_tex_cube_v4u32_f32:
2877     return NVPTXISD::TexCubeU32Float;
2878   case Intrinsic::nvvm_tex_cube_level_v4u32_f32:
2879     return NVPTXISD::TexCubeU32FloatLevel;
2880 
2881   case Intrinsic::nvvm_tex_cube_array_v4f32_f32:
2882     return NVPTXISD::TexCubeArrayFloatFloat;
2883   case Intrinsic::nvvm_tex_cube_array_level_v4f32_f32:
2884     return NVPTXISD::TexCubeArrayFloatFloatLevel;
2885   case Intrinsic::nvvm_tex_cube_array_v4s32_f32:
2886     return NVPTXISD::TexCubeArrayS32Float;
2887   case Intrinsic::nvvm_tex_cube_array_level_v4s32_f32:
2888     return NVPTXISD::TexCubeArrayS32FloatLevel;
2889   case Intrinsic::nvvm_tex_cube_array_v4u32_f32:
2890     return NVPTXISD::TexCubeArrayU32Float;
2891   case Intrinsic::nvvm_tex_cube_array_level_v4u32_f32:
2892     return NVPTXISD::TexCubeArrayU32FloatLevel;
2893 
2894   case Intrinsic::nvvm_tld4_r_2d_v4f32_f32:
2895     return NVPTXISD::Tld4R2DFloatFloat;
2896   case Intrinsic::nvvm_tld4_g_2d_v4f32_f32:
2897     return NVPTXISD::Tld4G2DFloatFloat;
2898   case Intrinsic::nvvm_tld4_b_2d_v4f32_f32:
2899     return NVPTXISD::Tld4B2DFloatFloat;
2900   case Intrinsic::nvvm_tld4_a_2d_v4f32_f32:
2901     return NVPTXISD::Tld4A2DFloatFloat;
2902   case Intrinsic::nvvm_tld4_r_2d_v4s32_f32:
2903     return NVPTXISD::Tld4R2DS64Float;
2904   case Intrinsic::nvvm_tld4_g_2d_v4s32_f32:
2905     return NVPTXISD::Tld4G2DS64Float;
2906   case Intrinsic::nvvm_tld4_b_2d_v4s32_f32:
2907     return NVPTXISD::Tld4B2DS64Float;
2908   case Intrinsic::nvvm_tld4_a_2d_v4s32_f32:
2909     return NVPTXISD::Tld4A2DS64Float;
2910   case Intrinsic::nvvm_tld4_r_2d_v4u32_f32:
2911     return NVPTXISD::Tld4R2DU64Float;
2912   case Intrinsic::nvvm_tld4_g_2d_v4u32_f32:
2913     return NVPTXISD::Tld4G2DU64Float;
2914   case Intrinsic::nvvm_tld4_b_2d_v4u32_f32:
2915     return NVPTXISD::Tld4B2DU64Float;
2916   case Intrinsic::nvvm_tld4_a_2d_v4u32_f32:
2917     return NVPTXISD::Tld4A2DU64Float;
2918 
2919   case Intrinsic::nvvm_tex_unified_1d_v4f32_s32:
2920     return NVPTXISD::TexUnified1DFloatS32;
2921   case Intrinsic::nvvm_tex_unified_1d_v4f32_f32:
2922     return NVPTXISD::TexUnified1DFloatFloat;
2923   case Intrinsic::nvvm_tex_unified_1d_level_v4f32_f32:
2924     return NVPTXISD::TexUnified1DFloatFloatLevel;
2925   case Intrinsic::nvvm_tex_unified_1d_grad_v4f32_f32:
2926     return NVPTXISD::TexUnified1DFloatFloatGrad;
2927   case Intrinsic::nvvm_tex_unified_1d_v4s32_s32:
2928     return NVPTXISD::TexUnified1DS32S32;
2929   case Intrinsic::nvvm_tex_unified_1d_v4s32_f32:
2930     return NVPTXISD::TexUnified1DS32Float;
2931   case Intrinsic::nvvm_tex_unified_1d_level_v4s32_f32:
2932     return NVPTXISD::TexUnified1DS32FloatLevel;
2933   case Intrinsic::nvvm_tex_unified_1d_grad_v4s32_f32:
2934     return NVPTXISD::TexUnified1DS32FloatGrad;
2935   case Intrinsic::nvvm_tex_unified_1d_v4u32_s32:
2936     return NVPTXISD::TexUnified1DU32S32;
2937   case Intrinsic::nvvm_tex_unified_1d_v4u32_f32:
2938     return NVPTXISD::TexUnified1DU32Float;
2939   case Intrinsic::nvvm_tex_unified_1d_level_v4u32_f32:
2940     return NVPTXISD::TexUnified1DU32FloatLevel;
2941   case Intrinsic::nvvm_tex_unified_1d_grad_v4u32_f32:
2942     return NVPTXISD::TexUnified1DU32FloatGrad;
2943 
2944   case Intrinsic::nvvm_tex_unified_1d_array_v4f32_s32:
2945     return NVPTXISD::TexUnified1DArrayFloatS32;
2946   case Intrinsic::nvvm_tex_unified_1d_array_v4f32_f32:
2947     return NVPTXISD::TexUnified1DArrayFloatFloat;
2948   case Intrinsic::nvvm_tex_unified_1d_array_level_v4f32_f32:
2949     return NVPTXISD::TexUnified1DArrayFloatFloatLevel;
2950   case Intrinsic::nvvm_tex_unified_1d_array_grad_v4f32_f32:
2951     return NVPTXISD::TexUnified1DArrayFloatFloatGrad;
2952   case Intrinsic::nvvm_tex_unified_1d_array_v4s32_s32:
2953     return NVPTXISD::TexUnified1DArrayS32S32;
2954   case Intrinsic::nvvm_tex_unified_1d_array_v4s32_f32:
2955     return NVPTXISD::TexUnified1DArrayS32Float;
2956   case Intrinsic::nvvm_tex_unified_1d_array_level_v4s32_f32:
2957     return NVPTXISD::TexUnified1DArrayS32FloatLevel;
2958   case Intrinsic::nvvm_tex_unified_1d_array_grad_v4s32_f32:
2959     return NVPTXISD::TexUnified1DArrayS32FloatGrad;
2960   case Intrinsic::nvvm_tex_unified_1d_array_v4u32_s32:
2961     return NVPTXISD::TexUnified1DArrayU32S32;
2962   case Intrinsic::nvvm_tex_unified_1d_array_v4u32_f32:
2963     return NVPTXISD::TexUnified1DArrayU32Float;
2964   case Intrinsic::nvvm_tex_unified_1d_array_level_v4u32_f32:
2965     return NVPTXISD::TexUnified1DArrayU32FloatLevel;
2966   case Intrinsic::nvvm_tex_unified_1d_array_grad_v4u32_f32:
2967     return NVPTXISD::TexUnified1DArrayU32FloatGrad;
2968 
2969   case Intrinsic::nvvm_tex_unified_2d_v4f32_s32:
2970     return NVPTXISD::TexUnified2DFloatS32;
2971   case Intrinsic::nvvm_tex_unified_2d_v4f32_f32:
2972     return NVPTXISD::TexUnified2DFloatFloat;
2973   case Intrinsic::nvvm_tex_unified_2d_level_v4f32_f32:
2974     return NVPTXISD::TexUnified2DFloatFloatLevel;
2975   case Intrinsic::nvvm_tex_unified_2d_grad_v4f32_f32:
2976     return NVPTXISD::TexUnified2DFloatFloatGrad;
2977   case Intrinsic::nvvm_tex_unified_2d_v4s32_s32:
2978     return NVPTXISD::TexUnified2DS32S32;
2979   case Intrinsic::nvvm_tex_unified_2d_v4s32_f32:
2980     return NVPTXISD::TexUnified2DS32Float;
2981   case Intrinsic::nvvm_tex_unified_2d_level_v4s32_f32:
2982     return NVPTXISD::TexUnified2DS32FloatLevel;
2983   case Intrinsic::nvvm_tex_unified_2d_grad_v4s32_f32:
2984     return NVPTXISD::TexUnified2DS32FloatGrad;
2985   case Intrinsic::nvvm_tex_unified_2d_v4u32_s32:
2986     return NVPTXISD::TexUnified2DU32S32;
2987   case Intrinsic::nvvm_tex_unified_2d_v4u32_f32:
2988     return NVPTXISD::TexUnified2DU32Float;
2989   case Intrinsic::nvvm_tex_unified_2d_level_v4u32_f32:
2990     return NVPTXISD::TexUnified2DU32FloatLevel;
2991   case Intrinsic::nvvm_tex_unified_2d_grad_v4u32_f32:
2992     return NVPTXISD::TexUnified2DU32FloatGrad;
2993 
2994   case Intrinsic::nvvm_tex_unified_2d_array_v4f32_s32:
2995     return NVPTXISD::TexUnified2DArrayFloatS32;
2996   case Intrinsic::nvvm_tex_unified_2d_array_v4f32_f32:
2997     return NVPTXISD::TexUnified2DArrayFloatFloat;
2998   case Intrinsic::nvvm_tex_unified_2d_array_level_v4f32_f32:
2999     return NVPTXISD::TexUnified2DArrayFloatFloatLevel;
3000   case Intrinsic::nvvm_tex_unified_2d_array_grad_v4f32_f32:
3001     return NVPTXISD::TexUnified2DArrayFloatFloatGrad;
3002   case Intrinsic::nvvm_tex_unified_2d_array_v4s32_s32:
3003     return NVPTXISD::TexUnified2DArrayS32S32;
3004   case Intrinsic::nvvm_tex_unified_2d_array_v4s32_f32:
3005     return NVPTXISD::TexUnified2DArrayS32Float;
3006   case Intrinsic::nvvm_tex_unified_2d_array_level_v4s32_f32:
3007     return NVPTXISD::TexUnified2DArrayS32FloatLevel;
3008   case Intrinsic::nvvm_tex_unified_2d_array_grad_v4s32_f32:
3009     return NVPTXISD::TexUnified2DArrayS32FloatGrad;
3010   case Intrinsic::nvvm_tex_unified_2d_array_v4u32_s32:
3011     return NVPTXISD::TexUnified2DArrayU32S32;
3012   case Intrinsic::nvvm_tex_unified_2d_array_v4u32_f32:
3013     return NVPTXISD::TexUnified2DArrayU32Float;
3014   case Intrinsic::nvvm_tex_unified_2d_array_level_v4u32_f32:
3015     return NVPTXISD::TexUnified2DArrayU32FloatLevel;
3016   case Intrinsic::nvvm_tex_unified_2d_array_grad_v4u32_f32:
3017     return NVPTXISD::TexUnified2DArrayU32FloatGrad;
3018 
3019   case Intrinsic::nvvm_tex_unified_3d_v4f32_s32:
3020     return NVPTXISD::TexUnified3DFloatS32;
3021   case Intrinsic::nvvm_tex_unified_3d_v4f32_f32:
3022     return NVPTXISD::TexUnified3DFloatFloat;
3023   case Intrinsic::nvvm_tex_unified_3d_level_v4f32_f32:
3024     return NVPTXISD::TexUnified3DFloatFloatLevel;
3025   case Intrinsic::nvvm_tex_unified_3d_grad_v4f32_f32:
3026     return NVPTXISD::TexUnified3DFloatFloatGrad;
3027   case Intrinsic::nvvm_tex_unified_3d_v4s32_s32:
3028     return NVPTXISD::TexUnified3DS32S32;
3029   case Intrinsic::nvvm_tex_unified_3d_v4s32_f32:
3030     return NVPTXISD::TexUnified3DS32Float;
3031   case Intrinsic::nvvm_tex_unified_3d_level_v4s32_f32:
3032     return NVPTXISD::TexUnified3DS32FloatLevel;
3033   case Intrinsic::nvvm_tex_unified_3d_grad_v4s32_f32:
3034     return NVPTXISD::TexUnified3DS32FloatGrad;
3035   case Intrinsic::nvvm_tex_unified_3d_v4u32_s32:
3036     return NVPTXISD::TexUnified3DU32S32;
3037   case Intrinsic::nvvm_tex_unified_3d_v4u32_f32:
3038     return NVPTXISD::TexUnified3DU32Float;
3039   case Intrinsic::nvvm_tex_unified_3d_level_v4u32_f32:
3040     return NVPTXISD::TexUnified3DU32FloatLevel;
3041   case Intrinsic::nvvm_tex_unified_3d_grad_v4u32_f32:
3042     return NVPTXISD::TexUnified3DU32FloatGrad;
3043 
3044   case Intrinsic::nvvm_tex_unified_cube_v4f32_f32:
3045     return NVPTXISD::TexUnifiedCubeFloatFloat;
3046   case Intrinsic::nvvm_tex_unified_cube_level_v4f32_f32:
3047     return NVPTXISD::TexUnifiedCubeFloatFloatLevel;
3048   case Intrinsic::nvvm_tex_unified_cube_v4s32_f32:
3049     return NVPTXISD::TexUnifiedCubeS32Float;
3050   case Intrinsic::nvvm_tex_unified_cube_level_v4s32_f32:
3051     return NVPTXISD::TexUnifiedCubeS32FloatLevel;
3052   case Intrinsic::nvvm_tex_unified_cube_v4u32_f32:
3053     return NVPTXISD::TexUnifiedCubeU32Float;
3054   case Intrinsic::nvvm_tex_unified_cube_level_v4u32_f32:
3055     return NVPTXISD::TexUnifiedCubeU32FloatLevel;
3056 
3057   case Intrinsic::nvvm_tex_unified_cube_array_v4f32_f32:
3058     return NVPTXISD::TexUnifiedCubeArrayFloatFloat;
3059   case Intrinsic::nvvm_tex_unified_cube_array_level_v4f32_f32:
3060     return NVPTXISD::TexUnifiedCubeArrayFloatFloatLevel;
3061   case Intrinsic::nvvm_tex_unified_cube_array_v4s32_f32:
3062     return NVPTXISD::TexUnifiedCubeArrayS32Float;
3063   case Intrinsic::nvvm_tex_unified_cube_array_level_v4s32_f32:
3064     return NVPTXISD::TexUnifiedCubeArrayS32FloatLevel;
3065   case Intrinsic::nvvm_tex_unified_cube_array_v4u32_f32:
3066     return NVPTXISD::TexUnifiedCubeArrayU32Float;
3067   case Intrinsic::nvvm_tex_unified_cube_array_level_v4u32_f32:
3068     return NVPTXISD::TexUnifiedCubeArrayU32FloatLevel;
3069 
3070   case Intrinsic::nvvm_tld4_unified_r_2d_v4f32_f32:
3071     return NVPTXISD::Tld4UnifiedR2DFloatFloat;
3072   case Intrinsic::nvvm_tld4_unified_g_2d_v4f32_f32:
3073     return NVPTXISD::Tld4UnifiedG2DFloatFloat;
3074   case Intrinsic::nvvm_tld4_unified_b_2d_v4f32_f32:
3075     return NVPTXISD::Tld4UnifiedB2DFloatFloat;
3076   case Intrinsic::nvvm_tld4_unified_a_2d_v4f32_f32:
3077     return NVPTXISD::Tld4UnifiedA2DFloatFloat;
3078   case Intrinsic::nvvm_tld4_unified_r_2d_v4s32_f32:
3079     return NVPTXISD::Tld4UnifiedR2DS64Float;
3080   case Intrinsic::nvvm_tld4_unified_g_2d_v4s32_f32:
3081     return NVPTXISD::Tld4UnifiedG2DS64Float;
3082   case Intrinsic::nvvm_tld4_unified_b_2d_v4s32_f32:
3083     return NVPTXISD::Tld4UnifiedB2DS64Float;
3084   case Intrinsic::nvvm_tld4_unified_a_2d_v4s32_f32:
3085     return NVPTXISD::Tld4UnifiedA2DS64Float;
3086   case Intrinsic::nvvm_tld4_unified_r_2d_v4u32_f32:
3087     return NVPTXISD::Tld4UnifiedR2DU64Float;
3088   case Intrinsic::nvvm_tld4_unified_g_2d_v4u32_f32:
3089     return NVPTXISD::Tld4UnifiedG2DU64Float;
3090   case Intrinsic::nvvm_tld4_unified_b_2d_v4u32_f32:
3091     return NVPTXISD::Tld4UnifiedB2DU64Float;
3092   case Intrinsic::nvvm_tld4_unified_a_2d_v4u32_f32:
3093     return NVPTXISD::Tld4UnifiedA2DU64Float;
3094   }
3095 }
3096 
3097 static unsigned getOpcForSurfaceInstr(unsigned Intrinsic) {
3098   switch (Intrinsic) {
3099   default:
3100     return 0;
3101   case Intrinsic::nvvm_suld_1d_i8_clamp:
3102     return NVPTXISD::Suld1DI8Clamp;
3103   case Intrinsic::nvvm_suld_1d_i16_clamp:
3104     return NVPTXISD::Suld1DI16Clamp;
3105   case Intrinsic::nvvm_suld_1d_i32_clamp:
3106     return NVPTXISD::Suld1DI32Clamp;
3107   case Intrinsic::nvvm_suld_1d_i64_clamp:
3108     return NVPTXISD::Suld1DI64Clamp;
3109   case Intrinsic::nvvm_suld_1d_v2i8_clamp:
3110     return NVPTXISD::Suld1DV2I8Clamp;
3111   case Intrinsic::nvvm_suld_1d_v2i16_clamp:
3112     return NVPTXISD::Suld1DV2I16Clamp;
3113   case Intrinsic::nvvm_suld_1d_v2i32_clamp:
3114     return NVPTXISD::Suld1DV2I32Clamp;
3115   case Intrinsic::nvvm_suld_1d_v2i64_clamp:
3116     return NVPTXISD::Suld1DV2I64Clamp;
3117   case Intrinsic::nvvm_suld_1d_v4i8_clamp:
3118     return NVPTXISD::Suld1DV4I8Clamp;
3119   case Intrinsic::nvvm_suld_1d_v4i16_clamp:
3120     return NVPTXISD::Suld1DV4I16Clamp;
3121   case Intrinsic::nvvm_suld_1d_v4i32_clamp:
3122     return NVPTXISD::Suld1DV4I32Clamp;
3123   case Intrinsic::nvvm_suld_1d_array_i8_clamp:
3124     return NVPTXISD::Suld1DArrayI8Clamp;
3125   case Intrinsic::nvvm_suld_1d_array_i16_clamp:
3126     return NVPTXISD::Suld1DArrayI16Clamp;
3127   case Intrinsic::nvvm_suld_1d_array_i32_clamp:
3128     return NVPTXISD::Suld1DArrayI32Clamp;
3129   case Intrinsic::nvvm_suld_1d_array_i64_clamp:
3130     return NVPTXISD::Suld1DArrayI64Clamp;
3131   case Intrinsic::nvvm_suld_1d_array_v2i8_clamp:
3132     return NVPTXISD::Suld1DArrayV2I8Clamp;
3133   case Intrinsic::nvvm_suld_1d_array_v2i16_clamp:
3134     return NVPTXISD::Suld1DArrayV2I16Clamp;
3135   case Intrinsic::nvvm_suld_1d_array_v2i32_clamp:
3136     return NVPTXISD::Suld1DArrayV2I32Clamp;
3137   case Intrinsic::nvvm_suld_1d_array_v2i64_clamp:
3138     return NVPTXISD::Suld1DArrayV2I64Clamp;
3139   case Intrinsic::nvvm_suld_1d_array_v4i8_clamp:
3140     return NVPTXISD::Suld1DArrayV4I8Clamp;
3141   case Intrinsic::nvvm_suld_1d_array_v4i16_clamp:
3142     return NVPTXISD::Suld1DArrayV4I16Clamp;
3143   case Intrinsic::nvvm_suld_1d_array_v4i32_clamp:
3144     return NVPTXISD::Suld1DArrayV4I32Clamp;
3145   case Intrinsic::nvvm_suld_2d_i8_clamp:
3146     return NVPTXISD::Suld2DI8Clamp;
3147   case Intrinsic::nvvm_suld_2d_i16_clamp:
3148     return NVPTXISD::Suld2DI16Clamp;
3149   case Intrinsic::nvvm_suld_2d_i32_clamp:
3150     return NVPTXISD::Suld2DI32Clamp;
3151   case Intrinsic::nvvm_suld_2d_i64_clamp:
3152     return NVPTXISD::Suld2DI64Clamp;
3153   case Intrinsic::nvvm_suld_2d_v2i8_clamp:
3154     return NVPTXISD::Suld2DV2I8Clamp;
3155   case Intrinsic::nvvm_suld_2d_v2i16_clamp:
3156     return NVPTXISD::Suld2DV2I16Clamp;
3157   case Intrinsic::nvvm_suld_2d_v2i32_clamp:
3158     return NVPTXISD::Suld2DV2I32Clamp;
3159   case Intrinsic::nvvm_suld_2d_v2i64_clamp:
3160     return NVPTXISD::Suld2DV2I64Clamp;
3161   case Intrinsic::nvvm_suld_2d_v4i8_clamp:
3162     return NVPTXISD::Suld2DV4I8Clamp;
3163   case Intrinsic::nvvm_suld_2d_v4i16_clamp:
3164     return NVPTXISD::Suld2DV4I16Clamp;
3165   case Intrinsic::nvvm_suld_2d_v4i32_clamp:
3166     return NVPTXISD::Suld2DV4I32Clamp;
3167   case Intrinsic::nvvm_suld_2d_array_i8_clamp:
3168     return NVPTXISD::Suld2DArrayI8Clamp;
3169   case Intrinsic::nvvm_suld_2d_array_i16_clamp:
3170     return NVPTXISD::Suld2DArrayI16Clamp;
3171   case Intrinsic::nvvm_suld_2d_array_i32_clamp:
3172     return NVPTXISD::Suld2DArrayI32Clamp;
3173   case Intrinsic::nvvm_suld_2d_array_i64_clamp:
3174     return NVPTXISD::Suld2DArrayI64Clamp;
3175   case Intrinsic::nvvm_suld_2d_array_v2i8_clamp:
3176     return NVPTXISD::Suld2DArrayV2I8Clamp;
3177   case Intrinsic::nvvm_suld_2d_array_v2i16_clamp:
3178     return NVPTXISD::Suld2DArrayV2I16Clamp;
3179   case Intrinsic::nvvm_suld_2d_array_v2i32_clamp:
3180     return NVPTXISD::Suld2DArrayV2I32Clamp;
3181   case Intrinsic::nvvm_suld_2d_array_v2i64_clamp:
3182     return NVPTXISD::Suld2DArrayV2I64Clamp;
3183   case Intrinsic::nvvm_suld_2d_array_v4i8_clamp:
3184     return NVPTXISD::Suld2DArrayV4I8Clamp;
3185   case Intrinsic::nvvm_suld_2d_array_v4i16_clamp:
3186     return NVPTXISD::Suld2DArrayV4I16Clamp;
3187   case Intrinsic::nvvm_suld_2d_array_v4i32_clamp:
3188     return NVPTXISD::Suld2DArrayV4I32Clamp;
3189   case Intrinsic::nvvm_suld_3d_i8_clamp:
3190     return NVPTXISD::Suld3DI8Clamp;
3191   case Intrinsic::nvvm_suld_3d_i16_clamp:
3192     return NVPTXISD::Suld3DI16Clamp;
3193   case Intrinsic::nvvm_suld_3d_i32_clamp:
3194     return NVPTXISD::Suld3DI32Clamp;
3195   case Intrinsic::nvvm_suld_3d_i64_clamp:
3196     return NVPTXISD::Suld3DI64Clamp;
3197   case Intrinsic::nvvm_suld_3d_v2i8_clamp:
3198     return NVPTXISD::Suld3DV2I8Clamp;
3199   case Intrinsic::nvvm_suld_3d_v2i16_clamp:
3200     return NVPTXISD::Suld3DV2I16Clamp;
3201   case Intrinsic::nvvm_suld_3d_v2i32_clamp:
3202     return NVPTXISD::Suld3DV2I32Clamp;
3203   case Intrinsic::nvvm_suld_3d_v2i64_clamp:
3204     return NVPTXISD::Suld3DV2I64Clamp;
3205   case Intrinsic::nvvm_suld_3d_v4i8_clamp:
3206     return NVPTXISD::Suld3DV4I8Clamp;
3207   case Intrinsic::nvvm_suld_3d_v4i16_clamp:
3208     return NVPTXISD::Suld3DV4I16Clamp;
3209   case Intrinsic::nvvm_suld_3d_v4i32_clamp:
3210     return NVPTXISD::Suld3DV4I32Clamp;
3211   case Intrinsic::nvvm_suld_1d_i8_trap:
3212     return NVPTXISD::Suld1DI8Trap;
3213   case Intrinsic::nvvm_suld_1d_i16_trap:
3214     return NVPTXISD::Suld1DI16Trap;
3215   case Intrinsic::nvvm_suld_1d_i32_trap:
3216     return NVPTXISD::Suld1DI32Trap;
3217   case Intrinsic::nvvm_suld_1d_i64_trap:
3218     return NVPTXISD::Suld1DI64Trap;
3219   case Intrinsic::nvvm_suld_1d_v2i8_trap:
3220     return NVPTXISD::Suld1DV2I8Trap;
3221   case Intrinsic::nvvm_suld_1d_v2i16_trap:
3222     return NVPTXISD::Suld1DV2I16Trap;
3223   case Intrinsic::nvvm_suld_1d_v2i32_trap:
3224     return NVPTXISD::Suld1DV2I32Trap;
3225   case Intrinsic::nvvm_suld_1d_v2i64_trap:
3226     return NVPTXISD::Suld1DV2I64Trap;
3227   case Intrinsic::nvvm_suld_1d_v4i8_trap:
3228     return NVPTXISD::Suld1DV4I8Trap;
3229   case Intrinsic::nvvm_suld_1d_v4i16_trap:
3230     return NVPTXISD::Suld1DV4I16Trap;
3231   case Intrinsic::nvvm_suld_1d_v4i32_trap:
3232     return NVPTXISD::Suld1DV4I32Trap;
3233   case Intrinsic::nvvm_suld_1d_array_i8_trap:
3234     return NVPTXISD::Suld1DArrayI8Trap;
3235   case Intrinsic::nvvm_suld_1d_array_i16_trap:
3236     return NVPTXISD::Suld1DArrayI16Trap;
3237   case Intrinsic::nvvm_suld_1d_array_i32_trap:
3238     return NVPTXISD::Suld1DArrayI32Trap;
3239   case Intrinsic::nvvm_suld_1d_array_i64_trap:
3240     return NVPTXISD::Suld1DArrayI64Trap;
3241   case Intrinsic::nvvm_suld_1d_array_v2i8_trap:
3242     return NVPTXISD::Suld1DArrayV2I8Trap;
3243   case Intrinsic::nvvm_suld_1d_array_v2i16_trap:
3244     return NVPTXISD::Suld1DArrayV2I16Trap;
3245   case Intrinsic::nvvm_suld_1d_array_v2i32_trap:
3246     return NVPTXISD::Suld1DArrayV2I32Trap;
3247   case Intrinsic::nvvm_suld_1d_array_v2i64_trap:
3248     return NVPTXISD::Suld1DArrayV2I64Trap;
3249   case Intrinsic::nvvm_suld_1d_array_v4i8_trap:
3250     return NVPTXISD::Suld1DArrayV4I8Trap;
3251   case Intrinsic::nvvm_suld_1d_array_v4i16_trap:
3252     return NVPTXISD::Suld1DArrayV4I16Trap;
3253   case Intrinsic::nvvm_suld_1d_array_v4i32_trap:
3254     return NVPTXISD::Suld1DArrayV4I32Trap;
3255   case Intrinsic::nvvm_suld_2d_i8_trap:
3256     return NVPTXISD::Suld2DI8Trap;
3257   case Intrinsic::nvvm_suld_2d_i16_trap:
3258     return NVPTXISD::Suld2DI16Trap;
3259   case Intrinsic::nvvm_suld_2d_i32_trap:
3260     return NVPTXISD::Suld2DI32Trap;
3261   case Intrinsic::nvvm_suld_2d_i64_trap:
3262     return NVPTXISD::Suld2DI64Trap;
3263   case Intrinsic::nvvm_suld_2d_v2i8_trap:
3264     return NVPTXISD::Suld2DV2I8Trap;
3265   case Intrinsic::nvvm_suld_2d_v2i16_trap:
3266     return NVPTXISD::Suld2DV2I16Trap;
3267   case Intrinsic::nvvm_suld_2d_v2i32_trap:
3268     return NVPTXISD::Suld2DV2I32Trap;
3269   case Intrinsic::nvvm_suld_2d_v2i64_trap:
3270     return NVPTXISD::Suld2DV2I64Trap;
3271   case Intrinsic::nvvm_suld_2d_v4i8_trap:
3272     return NVPTXISD::Suld2DV4I8Trap;
3273   case Intrinsic::nvvm_suld_2d_v4i16_trap:
3274     return NVPTXISD::Suld2DV4I16Trap;
3275   case Intrinsic::nvvm_suld_2d_v4i32_trap:
3276     return NVPTXISD::Suld2DV4I32Trap;
3277   case Intrinsic::nvvm_suld_2d_array_i8_trap:
3278     return NVPTXISD::Suld2DArrayI8Trap;
3279   case Intrinsic::nvvm_suld_2d_array_i16_trap:
3280     return NVPTXISD::Suld2DArrayI16Trap;
3281   case Intrinsic::nvvm_suld_2d_array_i32_trap:
3282     return NVPTXISD::Suld2DArrayI32Trap;
3283   case Intrinsic::nvvm_suld_2d_array_i64_trap:
3284     return NVPTXISD::Suld2DArrayI64Trap;
3285   case Intrinsic::nvvm_suld_2d_array_v2i8_trap:
3286     return NVPTXISD::Suld2DArrayV2I8Trap;
3287   case Intrinsic::nvvm_suld_2d_array_v2i16_trap:
3288     return NVPTXISD::Suld2DArrayV2I16Trap;
3289   case Intrinsic::nvvm_suld_2d_array_v2i32_trap:
3290     return NVPTXISD::Suld2DArrayV2I32Trap;
3291   case Intrinsic::nvvm_suld_2d_array_v2i64_trap:
3292     return NVPTXISD::Suld2DArrayV2I64Trap;
3293   case Intrinsic::nvvm_suld_2d_array_v4i8_trap:
3294     return NVPTXISD::Suld2DArrayV4I8Trap;
3295   case Intrinsic::nvvm_suld_2d_array_v4i16_trap:
3296     return NVPTXISD::Suld2DArrayV4I16Trap;
3297   case Intrinsic::nvvm_suld_2d_array_v4i32_trap:
3298     return NVPTXISD::Suld2DArrayV4I32Trap;
3299   case Intrinsic::nvvm_suld_3d_i8_trap:
3300     return NVPTXISD::Suld3DI8Trap;
3301   case Intrinsic::nvvm_suld_3d_i16_trap:
3302     return NVPTXISD::Suld3DI16Trap;
3303   case Intrinsic::nvvm_suld_3d_i32_trap:
3304     return NVPTXISD::Suld3DI32Trap;
3305   case Intrinsic::nvvm_suld_3d_i64_trap:
3306     return NVPTXISD::Suld3DI64Trap;
3307   case Intrinsic::nvvm_suld_3d_v2i8_trap:
3308     return NVPTXISD::Suld3DV2I8Trap;
3309   case Intrinsic::nvvm_suld_3d_v2i16_trap:
3310     return NVPTXISD::Suld3DV2I16Trap;
3311   case Intrinsic::nvvm_suld_3d_v2i32_trap:
3312     return NVPTXISD::Suld3DV2I32Trap;
3313   case Intrinsic::nvvm_suld_3d_v2i64_trap:
3314     return NVPTXISD::Suld3DV2I64Trap;
3315   case Intrinsic::nvvm_suld_3d_v4i8_trap:
3316     return NVPTXISD::Suld3DV4I8Trap;
3317   case Intrinsic::nvvm_suld_3d_v4i16_trap:
3318     return NVPTXISD::Suld3DV4I16Trap;
3319   case Intrinsic::nvvm_suld_3d_v4i32_trap:
3320     return NVPTXISD::Suld3DV4I32Trap;
3321   case Intrinsic::nvvm_suld_1d_i8_zero:
3322     return NVPTXISD::Suld1DI8Zero;
3323   case Intrinsic::nvvm_suld_1d_i16_zero:
3324     return NVPTXISD::Suld1DI16Zero;
3325   case Intrinsic::nvvm_suld_1d_i32_zero:
3326     return NVPTXISD::Suld1DI32Zero;
3327   case Intrinsic::nvvm_suld_1d_i64_zero:
3328     return NVPTXISD::Suld1DI64Zero;
3329   case Intrinsic::nvvm_suld_1d_v2i8_zero:
3330     return NVPTXISD::Suld1DV2I8Zero;
3331   case Intrinsic::nvvm_suld_1d_v2i16_zero:
3332     return NVPTXISD::Suld1DV2I16Zero;
3333   case Intrinsic::nvvm_suld_1d_v2i32_zero:
3334     return NVPTXISD::Suld1DV2I32Zero;
3335   case Intrinsic::nvvm_suld_1d_v2i64_zero:
3336     return NVPTXISD::Suld1DV2I64Zero;
3337   case Intrinsic::nvvm_suld_1d_v4i8_zero:
3338     return NVPTXISD::Suld1DV4I8Zero;
3339   case Intrinsic::nvvm_suld_1d_v4i16_zero:
3340     return NVPTXISD::Suld1DV4I16Zero;
3341   case Intrinsic::nvvm_suld_1d_v4i32_zero:
3342     return NVPTXISD::Suld1DV4I32Zero;
3343   case Intrinsic::nvvm_suld_1d_array_i8_zero:
3344     return NVPTXISD::Suld1DArrayI8Zero;
3345   case Intrinsic::nvvm_suld_1d_array_i16_zero:
3346     return NVPTXISD::Suld1DArrayI16Zero;
3347   case Intrinsic::nvvm_suld_1d_array_i32_zero:
3348     return NVPTXISD::Suld1DArrayI32Zero;
3349   case Intrinsic::nvvm_suld_1d_array_i64_zero:
3350     return NVPTXISD::Suld1DArrayI64Zero;
3351   case Intrinsic::nvvm_suld_1d_array_v2i8_zero:
3352     return NVPTXISD::Suld1DArrayV2I8Zero;
3353   case Intrinsic::nvvm_suld_1d_array_v2i16_zero:
3354     return NVPTXISD::Suld1DArrayV2I16Zero;
3355   case Intrinsic::nvvm_suld_1d_array_v2i32_zero:
3356     return NVPTXISD::Suld1DArrayV2I32Zero;
3357   case Intrinsic::nvvm_suld_1d_array_v2i64_zero:
3358     return NVPTXISD::Suld1DArrayV2I64Zero;
3359   case Intrinsic::nvvm_suld_1d_array_v4i8_zero:
3360     return NVPTXISD::Suld1DArrayV4I8Zero;
3361   case Intrinsic::nvvm_suld_1d_array_v4i16_zero:
3362     return NVPTXISD::Suld1DArrayV4I16Zero;
3363   case Intrinsic::nvvm_suld_1d_array_v4i32_zero:
3364     return NVPTXISD::Suld1DArrayV4I32Zero;
3365   case Intrinsic::nvvm_suld_2d_i8_zero:
3366     return NVPTXISD::Suld2DI8Zero;
3367   case Intrinsic::nvvm_suld_2d_i16_zero:
3368     return NVPTXISD::Suld2DI16Zero;
3369   case Intrinsic::nvvm_suld_2d_i32_zero:
3370     return NVPTXISD::Suld2DI32Zero;
3371   case Intrinsic::nvvm_suld_2d_i64_zero:
3372     return NVPTXISD::Suld2DI64Zero;
3373   case Intrinsic::nvvm_suld_2d_v2i8_zero:
3374     return NVPTXISD::Suld2DV2I8Zero;
3375   case Intrinsic::nvvm_suld_2d_v2i16_zero:
3376     return NVPTXISD::Suld2DV2I16Zero;
3377   case Intrinsic::nvvm_suld_2d_v2i32_zero:
3378     return NVPTXISD::Suld2DV2I32Zero;
3379   case Intrinsic::nvvm_suld_2d_v2i64_zero:
3380     return NVPTXISD::Suld2DV2I64Zero;
3381   case Intrinsic::nvvm_suld_2d_v4i8_zero:
3382     return NVPTXISD::Suld2DV4I8Zero;
3383   case Intrinsic::nvvm_suld_2d_v4i16_zero:
3384     return NVPTXISD::Suld2DV4I16Zero;
3385   case Intrinsic::nvvm_suld_2d_v4i32_zero:
3386     return NVPTXISD::Suld2DV4I32Zero;
3387   case Intrinsic::nvvm_suld_2d_array_i8_zero:
3388     return NVPTXISD::Suld2DArrayI8Zero;
3389   case Intrinsic::nvvm_suld_2d_array_i16_zero:
3390     return NVPTXISD::Suld2DArrayI16Zero;
3391   case Intrinsic::nvvm_suld_2d_array_i32_zero:
3392     return NVPTXISD::Suld2DArrayI32Zero;
3393   case Intrinsic::nvvm_suld_2d_array_i64_zero:
3394     return NVPTXISD::Suld2DArrayI64Zero;
3395   case Intrinsic::nvvm_suld_2d_array_v2i8_zero:
3396     return NVPTXISD::Suld2DArrayV2I8Zero;
3397   case Intrinsic::nvvm_suld_2d_array_v2i16_zero:
3398     return NVPTXISD::Suld2DArrayV2I16Zero;
3399   case Intrinsic::nvvm_suld_2d_array_v2i32_zero:
3400     return NVPTXISD::Suld2DArrayV2I32Zero;
3401   case Intrinsic::nvvm_suld_2d_array_v2i64_zero:
3402     return NVPTXISD::Suld2DArrayV2I64Zero;
3403   case Intrinsic::nvvm_suld_2d_array_v4i8_zero:
3404     return NVPTXISD::Suld2DArrayV4I8Zero;
3405   case Intrinsic::nvvm_suld_2d_array_v4i16_zero:
3406     return NVPTXISD::Suld2DArrayV4I16Zero;
3407   case Intrinsic::nvvm_suld_2d_array_v4i32_zero:
3408     return NVPTXISD::Suld2DArrayV4I32Zero;
3409   case Intrinsic::nvvm_suld_3d_i8_zero:
3410     return NVPTXISD::Suld3DI8Zero;
3411   case Intrinsic::nvvm_suld_3d_i16_zero:
3412     return NVPTXISD::Suld3DI16Zero;
3413   case Intrinsic::nvvm_suld_3d_i32_zero:
3414     return NVPTXISD::Suld3DI32Zero;
3415   case Intrinsic::nvvm_suld_3d_i64_zero:
3416     return NVPTXISD::Suld3DI64Zero;
3417   case Intrinsic::nvvm_suld_3d_v2i8_zero:
3418     return NVPTXISD::Suld3DV2I8Zero;
3419   case Intrinsic::nvvm_suld_3d_v2i16_zero:
3420     return NVPTXISD::Suld3DV2I16Zero;
3421   case Intrinsic::nvvm_suld_3d_v2i32_zero:
3422     return NVPTXISD::Suld3DV2I32Zero;
3423   case Intrinsic::nvvm_suld_3d_v2i64_zero:
3424     return NVPTXISD::Suld3DV2I64Zero;
3425   case Intrinsic::nvvm_suld_3d_v4i8_zero:
3426     return NVPTXISD::Suld3DV4I8Zero;
3427   case Intrinsic::nvvm_suld_3d_v4i16_zero:
3428     return NVPTXISD::Suld3DV4I16Zero;
3429   case Intrinsic::nvvm_suld_3d_v4i32_zero:
3430     return NVPTXISD::Suld3DV4I32Zero;
3431   }
3432 }
3433 
3434 // llvm.ptx.memcpy.const and llvm.ptx.memmove.const need to be modeled as
3435 // TgtMemIntrinsic
3436 // because we need the information that is only available in the "Value" type
3437 // of destination
3438 // pointer. In particular, the address space information.
3439 bool NVPTXTargetLowering::getTgtMemIntrinsic(
3440     IntrinsicInfo &Info, const CallInst &I,
3441     MachineFunction &MF, unsigned Intrinsic) const {
3442   switch (Intrinsic) {
3443   default:
3444     return false;
3445   case Intrinsic::nvvm_match_all_sync_i32p:
3446   case Intrinsic::nvvm_match_all_sync_i64p:
3447     Info.opc = ISD::INTRINSIC_W_CHAIN;
3448     // memVT is bogus. These intrinsics have IntrInaccessibleMemOnly attribute
3449     // in order to model data exchange with other threads, but perform no real
3450     // memory accesses.
3451     Info.memVT = MVT::i1;
3452 
3453     // Our result depends on both our and other thread's arguments.
3454     Info.flags = MachineMemOperand::MOLoad | MachineMemOperand::MOStore;
3455     return true;
3456   case Intrinsic::nvvm_wmma_m16n16k16_load_a_f16_col:
3457   case Intrinsic::nvvm_wmma_m16n16k16_load_a_f16_row:
3458   case Intrinsic::nvvm_wmma_m16n16k16_load_a_f16_col_stride:
3459   case Intrinsic::nvvm_wmma_m16n16k16_load_a_f16_row_stride:
3460   case Intrinsic::nvvm_wmma_m16n16k16_load_b_f16_col:
3461   case Intrinsic::nvvm_wmma_m16n16k16_load_b_f16_row:
3462   case Intrinsic::nvvm_wmma_m16n16k16_load_b_f16_col_stride:
3463   case Intrinsic::nvvm_wmma_m16n16k16_load_b_f16_row_stride:
3464   case Intrinsic::nvvm_wmma_m32n8k16_load_a_f16_col:
3465   case Intrinsic::nvvm_wmma_m32n8k16_load_a_f16_row:
3466   case Intrinsic::nvvm_wmma_m32n8k16_load_a_f16_col_stride:
3467   case Intrinsic::nvvm_wmma_m32n8k16_load_a_f16_row_stride:
3468   case Intrinsic::nvvm_wmma_m32n8k16_load_b_f16_col:
3469   case Intrinsic::nvvm_wmma_m32n8k16_load_b_f16_row:
3470   case Intrinsic::nvvm_wmma_m32n8k16_load_b_f16_col_stride:
3471   case Intrinsic::nvvm_wmma_m32n8k16_load_b_f16_row_stride:
3472   case Intrinsic::nvvm_wmma_m8n32k16_load_a_f16_col:
3473   case Intrinsic::nvvm_wmma_m8n32k16_load_a_f16_row:
3474   case Intrinsic::nvvm_wmma_m8n32k16_load_a_f16_col_stride:
3475   case Intrinsic::nvvm_wmma_m8n32k16_load_a_f16_row_stride:
3476   case Intrinsic::nvvm_wmma_m8n32k16_load_b_f16_col:
3477   case Intrinsic::nvvm_wmma_m8n32k16_load_b_f16_row:
3478   case Intrinsic::nvvm_wmma_m8n32k16_load_b_f16_col_stride:
3479   case Intrinsic::nvvm_wmma_m8n32k16_load_b_f16_row_stride: {
3480     Info.opc = ISD::INTRINSIC_W_CHAIN;
3481     Info.memVT = MVT::v8f16;
3482     Info.ptrVal = I.getArgOperand(0);
3483     Info.offset = 0;
3484     Info.flags = MachineMemOperand::MOLoad;
3485     Info.align = Align(16);
3486     return true;
3487   }
3488   case Intrinsic::nvvm_wmma_m16n16k16_load_a_s8_col:
3489   case Intrinsic::nvvm_wmma_m16n16k16_load_a_s8_col_stride:
3490   case Intrinsic::nvvm_wmma_m16n16k16_load_a_u8_col_stride:
3491   case Intrinsic::nvvm_wmma_m16n16k16_load_a_u8_col:
3492   case Intrinsic::nvvm_wmma_m16n16k16_load_a_s8_row:
3493   case Intrinsic::nvvm_wmma_m16n16k16_load_a_s8_row_stride:
3494   case Intrinsic::nvvm_wmma_m16n16k16_load_a_u8_row_stride:
3495   case Intrinsic::nvvm_wmma_m16n16k16_load_a_u8_row:
3496   case Intrinsic::nvvm_wmma_m16n16k16_load_b_s8_col:
3497   case Intrinsic::nvvm_wmma_m16n16k16_load_b_s8_col_stride:
3498   case Intrinsic::nvvm_wmma_m16n16k16_load_b_u8_col_stride:
3499   case Intrinsic::nvvm_wmma_m16n16k16_load_b_u8_col:
3500   case Intrinsic::nvvm_wmma_m16n16k16_load_b_s8_row:
3501   case Intrinsic::nvvm_wmma_m16n16k16_load_b_s8_row_stride:
3502   case Intrinsic::nvvm_wmma_m16n16k16_load_b_u8_row_stride:
3503   case Intrinsic::nvvm_wmma_m16n16k16_load_b_u8_row: {
3504     Info.opc = ISD::INTRINSIC_W_CHAIN;
3505     Info.memVT = MVT::v2i32;
3506     Info.ptrVal = I.getArgOperand(0);
3507     Info.offset = 0;
3508     Info.flags = MachineMemOperand::MOLoad;
3509     Info.align = Align(8);
3510     return true;
3511   }
3512 
3513   case Intrinsic::nvvm_wmma_m32n8k16_load_a_s8_col:
3514   case Intrinsic::nvvm_wmma_m32n8k16_load_a_s8_col_stride:
3515   case Intrinsic::nvvm_wmma_m32n8k16_load_a_u8_col_stride:
3516   case Intrinsic::nvvm_wmma_m32n8k16_load_a_u8_col:
3517   case Intrinsic::nvvm_wmma_m32n8k16_load_a_s8_row:
3518   case Intrinsic::nvvm_wmma_m32n8k16_load_a_s8_row_stride:
3519   case Intrinsic::nvvm_wmma_m32n8k16_load_a_u8_row_stride:
3520   case Intrinsic::nvvm_wmma_m32n8k16_load_a_u8_row:
3521 
3522   case Intrinsic::nvvm_wmma_m8n32k16_load_b_s8_col:
3523   case Intrinsic::nvvm_wmma_m8n32k16_load_b_s8_col_stride:
3524   case Intrinsic::nvvm_wmma_m8n32k16_load_b_u8_col_stride:
3525   case Intrinsic::nvvm_wmma_m8n32k16_load_b_u8_col:
3526   case Intrinsic::nvvm_wmma_m8n32k16_load_b_s8_row:
3527   case Intrinsic::nvvm_wmma_m8n32k16_load_b_s8_row_stride:
3528   case Intrinsic::nvvm_wmma_m8n32k16_load_b_u8_row_stride:
3529   case Intrinsic::nvvm_wmma_m8n32k16_load_b_u8_row: {
3530     Info.opc = ISD::INTRINSIC_W_CHAIN;
3531     Info.memVT = MVT::v4i32;
3532     Info.ptrVal = I.getArgOperand(0);
3533     Info.offset = 0;
3534     Info.flags = MachineMemOperand::MOLoad;
3535     Info.align = Align(16);
3536     return true;
3537   }
3538 
3539   case Intrinsic::nvvm_wmma_m32n8k16_load_b_s8_col:
3540   case Intrinsic::nvvm_wmma_m32n8k16_load_b_s8_col_stride:
3541   case Intrinsic::nvvm_wmma_m32n8k16_load_b_u8_col_stride:
3542   case Intrinsic::nvvm_wmma_m32n8k16_load_b_u8_col:
3543   case Intrinsic::nvvm_wmma_m32n8k16_load_b_s8_row:
3544   case Intrinsic::nvvm_wmma_m32n8k16_load_b_s8_row_stride:
3545   case Intrinsic::nvvm_wmma_m32n8k16_load_b_u8_row_stride:
3546   case Intrinsic::nvvm_wmma_m32n8k16_load_b_u8_row:
3547 
3548   case Intrinsic::nvvm_wmma_m8n32k16_load_a_s8_col:
3549   case Intrinsic::nvvm_wmma_m8n32k16_load_a_s8_col_stride:
3550   case Intrinsic::nvvm_wmma_m8n32k16_load_a_u8_col_stride:
3551   case Intrinsic::nvvm_wmma_m8n32k16_load_a_u8_col:
3552   case Intrinsic::nvvm_wmma_m8n32k16_load_a_s8_row:
3553   case Intrinsic::nvvm_wmma_m8n32k16_load_a_s8_row_stride:
3554   case Intrinsic::nvvm_wmma_m8n32k16_load_a_u8_row_stride:
3555   case Intrinsic::nvvm_wmma_m8n32k16_load_a_u8_row:
3556   case Intrinsic::nvvm_wmma_m8n8k128_load_a_b1_row:
3557   case Intrinsic::nvvm_wmma_m8n8k128_load_a_b1_row_stride:
3558   case Intrinsic::nvvm_wmma_m8n8k128_load_b_b1_col:
3559   case Intrinsic::nvvm_wmma_m8n8k128_load_b_b1_col_stride:
3560   case Intrinsic::nvvm_wmma_m8n8k32_load_a_s4_row:
3561   case Intrinsic::nvvm_wmma_m8n8k32_load_a_s4_row_stride:
3562   case Intrinsic::nvvm_wmma_m8n8k32_load_a_u4_row_stride:
3563   case Intrinsic::nvvm_wmma_m8n8k32_load_a_u4_row:
3564   case Intrinsic::nvvm_wmma_m8n8k32_load_b_s4_col:
3565   case Intrinsic::nvvm_wmma_m8n8k32_load_b_s4_col_stride:
3566   case Intrinsic::nvvm_wmma_m8n8k32_load_b_u4_col_stride:
3567   case Intrinsic::nvvm_wmma_m8n8k32_load_b_u4_col: {
3568     Info.opc = ISD::INTRINSIC_W_CHAIN;
3569     Info.memVT = MVT::i32;
3570     Info.ptrVal = I.getArgOperand(0);
3571     Info.offset = 0;
3572     Info.flags = MachineMemOperand::MOLoad;
3573     Info.align = Align(4);
3574     return true;
3575   }
3576 
3577   case Intrinsic::nvvm_wmma_m16n16k16_load_c_f16_col:
3578   case Intrinsic::nvvm_wmma_m16n16k16_load_c_f16_row:
3579   case Intrinsic::nvvm_wmma_m16n16k16_load_c_f16_col_stride:
3580   case Intrinsic::nvvm_wmma_m16n16k16_load_c_f16_row_stride:
3581   case Intrinsic::nvvm_wmma_m32n8k16_load_c_f16_col:
3582   case Intrinsic::nvvm_wmma_m32n8k16_load_c_f16_row:
3583   case Intrinsic::nvvm_wmma_m32n8k16_load_c_f16_col_stride:
3584   case Intrinsic::nvvm_wmma_m32n8k16_load_c_f16_row_stride:
3585   case Intrinsic::nvvm_wmma_m8n32k16_load_c_f16_col:
3586   case Intrinsic::nvvm_wmma_m8n32k16_load_c_f16_row:
3587   case Intrinsic::nvvm_wmma_m8n32k16_load_c_f16_col_stride:
3588   case Intrinsic::nvvm_wmma_m8n32k16_load_c_f16_row_stride: {
3589     Info.opc = ISD::INTRINSIC_W_CHAIN;
3590     Info.memVT = MVT::v4f16;
3591     Info.ptrVal = I.getArgOperand(0);
3592     Info.offset = 0;
3593     Info.flags = MachineMemOperand::MOLoad;
3594     Info.align = Align(16);
3595     return true;
3596   }
3597 
3598   case Intrinsic::nvvm_wmma_m16n16k16_load_c_f32_col:
3599   case Intrinsic::nvvm_wmma_m16n16k16_load_c_f32_row:
3600   case Intrinsic::nvvm_wmma_m16n16k16_load_c_f32_col_stride:
3601   case Intrinsic::nvvm_wmma_m16n16k16_load_c_f32_row_stride:
3602   case Intrinsic::nvvm_wmma_m32n8k16_load_c_f32_col:
3603   case Intrinsic::nvvm_wmma_m32n8k16_load_c_f32_row:
3604   case Intrinsic::nvvm_wmma_m32n8k16_load_c_f32_col_stride:
3605   case Intrinsic::nvvm_wmma_m32n8k16_load_c_f32_row_stride:
3606   case Intrinsic::nvvm_wmma_m8n32k16_load_c_f32_col:
3607   case Intrinsic::nvvm_wmma_m8n32k16_load_c_f32_row:
3608   case Intrinsic::nvvm_wmma_m8n32k16_load_c_f32_col_stride:
3609   case Intrinsic::nvvm_wmma_m8n32k16_load_c_f32_row_stride: {
3610     Info.opc = ISD::INTRINSIC_W_CHAIN;
3611     Info.memVT = MVT::v8f32;
3612     Info.ptrVal = I.getArgOperand(0);
3613     Info.offset = 0;
3614     Info.flags = MachineMemOperand::MOLoad;
3615     Info.align = Align(16);
3616     return true;
3617   }
3618 
3619   case Intrinsic::nvvm_wmma_m16n16k16_load_c_s32_col:
3620   case Intrinsic::nvvm_wmma_m16n16k16_load_c_s32_col_stride:
3621   case Intrinsic::nvvm_wmma_m16n16k16_load_c_s32_row:
3622   case Intrinsic::nvvm_wmma_m16n16k16_load_c_s32_row_stride:
3623   case Intrinsic::nvvm_wmma_m32n8k16_load_c_s32_col:
3624   case Intrinsic::nvvm_wmma_m32n8k16_load_c_s32_col_stride:
3625   case Intrinsic::nvvm_wmma_m32n8k16_load_c_s32_row:
3626   case Intrinsic::nvvm_wmma_m32n8k16_load_c_s32_row_stride:
3627   case Intrinsic::nvvm_wmma_m8n32k16_load_c_s32_col:
3628   case Intrinsic::nvvm_wmma_m8n32k16_load_c_s32_col_stride:
3629   case Intrinsic::nvvm_wmma_m8n32k16_load_c_s32_row:
3630   case Intrinsic::nvvm_wmma_m8n32k16_load_c_s32_row_stride: {
3631     Info.opc = ISD::INTRINSIC_W_CHAIN;
3632     Info.memVT = MVT::v8i32;
3633     Info.ptrVal = I.getArgOperand(0);
3634     Info.offset = 0;
3635     Info.flags = MachineMemOperand::MOLoad;
3636     Info.align = Align(16);
3637     return true;
3638   }
3639 
3640   case Intrinsic::nvvm_wmma_m8n8k128_load_c_s32_col:
3641   case Intrinsic::nvvm_wmma_m8n8k128_load_c_s32_col_stride:
3642   case Intrinsic::nvvm_wmma_m8n8k128_load_c_s32_row:
3643   case Intrinsic::nvvm_wmma_m8n8k128_load_c_s32_row_stride:
3644   case Intrinsic::nvvm_wmma_m8n8k32_load_c_s32_col:
3645   case Intrinsic::nvvm_wmma_m8n8k32_load_c_s32_col_stride:
3646   case Intrinsic::nvvm_wmma_m8n8k32_load_c_s32_row:
3647   case Intrinsic::nvvm_wmma_m8n8k32_load_c_s32_row_stride: {
3648     Info.opc = ISD::INTRINSIC_W_CHAIN;
3649     Info.memVT = MVT::v2i32;
3650     Info.ptrVal = I.getArgOperand(0);
3651     Info.offset = 0;
3652     Info.flags = MachineMemOperand::MOLoad;
3653     Info.align = Align(8);
3654     return true;
3655   }
3656 
3657   case Intrinsic::nvvm_wmma_m16n16k16_store_d_f16_col:
3658   case Intrinsic::nvvm_wmma_m16n16k16_store_d_f16_row:
3659   case Intrinsic::nvvm_wmma_m16n16k16_store_d_f16_col_stride:
3660   case Intrinsic::nvvm_wmma_m16n16k16_store_d_f16_row_stride:
3661   case Intrinsic::nvvm_wmma_m32n8k16_store_d_f16_col:
3662   case Intrinsic::nvvm_wmma_m32n8k16_store_d_f16_row:
3663   case Intrinsic::nvvm_wmma_m32n8k16_store_d_f16_col_stride:
3664   case Intrinsic::nvvm_wmma_m32n8k16_store_d_f16_row_stride:
3665   case Intrinsic::nvvm_wmma_m8n32k16_store_d_f16_col:
3666   case Intrinsic::nvvm_wmma_m8n32k16_store_d_f16_row:
3667   case Intrinsic::nvvm_wmma_m8n32k16_store_d_f16_col_stride:
3668   case Intrinsic::nvvm_wmma_m8n32k16_store_d_f16_row_stride: {
3669     Info.opc = ISD::INTRINSIC_VOID;
3670     Info.memVT = MVT::v4f16;
3671     Info.ptrVal = I.getArgOperand(0);
3672     Info.offset = 0;
3673     Info.flags = MachineMemOperand::MOStore;
3674     Info.align = Align(16);
3675     return true;
3676   }
3677 
3678   case Intrinsic::nvvm_wmma_m16n16k16_store_d_f32_col:
3679   case Intrinsic::nvvm_wmma_m16n16k16_store_d_f32_row:
3680   case Intrinsic::nvvm_wmma_m16n16k16_store_d_f32_col_stride:
3681   case Intrinsic::nvvm_wmma_m16n16k16_store_d_f32_row_stride:
3682   case Intrinsic::nvvm_wmma_m32n8k16_store_d_f32_col:
3683   case Intrinsic::nvvm_wmma_m32n8k16_store_d_f32_row:
3684   case Intrinsic::nvvm_wmma_m32n8k16_store_d_f32_col_stride:
3685   case Intrinsic::nvvm_wmma_m32n8k16_store_d_f32_row_stride:
3686   case Intrinsic::nvvm_wmma_m8n32k16_store_d_f32_col:
3687   case Intrinsic::nvvm_wmma_m8n32k16_store_d_f32_row:
3688   case Intrinsic::nvvm_wmma_m8n32k16_store_d_f32_col_stride:
3689   case Intrinsic::nvvm_wmma_m8n32k16_store_d_f32_row_stride: {
3690     Info.opc = ISD::INTRINSIC_VOID;
3691     Info.memVT = MVT::v8f32;
3692     Info.ptrVal = I.getArgOperand(0);
3693     Info.offset = 0;
3694     Info.flags = MachineMemOperand::MOStore;
3695     Info.align = Align(16);
3696     return true;
3697   }
3698 
3699   case Intrinsic::nvvm_wmma_m16n16k16_store_d_s32_col:
3700   case Intrinsic::nvvm_wmma_m16n16k16_store_d_s32_col_stride:
3701   case Intrinsic::nvvm_wmma_m16n16k16_store_d_s32_row:
3702   case Intrinsic::nvvm_wmma_m16n16k16_store_d_s32_row_stride:
3703   case Intrinsic::nvvm_wmma_m32n8k16_store_d_s32_col:
3704   case Intrinsic::nvvm_wmma_m32n8k16_store_d_s32_col_stride:
3705   case Intrinsic::nvvm_wmma_m32n8k16_store_d_s32_row:
3706   case Intrinsic::nvvm_wmma_m32n8k16_store_d_s32_row_stride:
3707   case Intrinsic::nvvm_wmma_m8n32k16_store_d_s32_col:
3708   case Intrinsic::nvvm_wmma_m8n32k16_store_d_s32_col_stride:
3709   case Intrinsic::nvvm_wmma_m8n32k16_store_d_s32_row:
3710   case Intrinsic::nvvm_wmma_m8n32k16_store_d_s32_row_stride: {
3711     Info.opc = ISD::INTRINSIC_VOID;
3712     Info.memVT = MVT::v8i32;
3713     Info.ptrVal = I.getArgOperand(0);
3714     Info.offset = 0;
3715     Info.flags = MachineMemOperand::MOStore;
3716     Info.align = Align(16);
3717     return true;
3718   }
3719 
3720   case Intrinsic::nvvm_wmma_m8n8k128_store_d_s32_col:
3721   case Intrinsic::nvvm_wmma_m8n8k128_store_d_s32_col_stride:
3722   case Intrinsic::nvvm_wmma_m8n8k128_store_d_s32_row:
3723   case Intrinsic::nvvm_wmma_m8n8k128_store_d_s32_row_stride:
3724   case Intrinsic::nvvm_wmma_m8n8k32_store_d_s32_col:
3725   case Intrinsic::nvvm_wmma_m8n8k32_store_d_s32_col_stride:
3726   case Intrinsic::nvvm_wmma_m8n8k32_store_d_s32_row:
3727   case Intrinsic::nvvm_wmma_m8n8k32_store_d_s32_row_stride: {
3728     Info.opc = ISD::INTRINSIC_VOID;
3729     Info.memVT = MVT::v2i32;
3730     Info.ptrVal = I.getArgOperand(0);
3731     Info.offset = 0;
3732     Info.flags = MachineMemOperand::MOStore;
3733     Info.align = Align(8);
3734     return true;
3735   }
3736 
3737   case Intrinsic::nvvm_atomic_load_inc_32:
3738   case Intrinsic::nvvm_atomic_load_dec_32:
3739 
3740   case Intrinsic::nvvm_atomic_add_gen_f_cta:
3741   case Intrinsic::nvvm_atomic_add_gen_f_sys:
3742   case Intrinsic::nvvm_atomic_add_gen_i_cta:
3743   case Intrinsic::nvvm_atomic_add_gen_i_sys:
3744   case Intrinsic::nvvm_atomic_and_gen_i_cta:
3745   case Intrinsic::nvvm_atomic_and_gen_i_sys:
3746   case Intrinsic::nvvm_atomic_cas_gen_i_cta:
3747   case Intrinsic::nvvm_atomic_cas_gen_i_sys:
3748   case Intrinsic::nvvm_atomic_dec_gen_i_cta:
3749   case Intrinsic::nvvm_atomic_dec_gen_i_sys:
3750   case Intrinsic::nvvm_atomic_inc_gen_i_cta:
3751   case Intrinsic::nvvm_atomic_inc_gen_i_sys:
3752   case Intrinsic::nvvm_atomic_max_gen_i_cta:
3753   case Intrinsic::nvvm_atomic_max_gen_i_sys:
3754   case Intrinsic::nvvm_atomic_min_gen_i_cta:
3755   case Intrinsic::nvvm_atomic_min_gen_i_sys:
3756   case Intrinsic::nvvm_atomic_or_gen_i_cta:
3757   case Intrinsic::nvvm_atomic_or_gen_i_sys:
3758   case Intrinsic::nvvm_atomic_exch_gen_i_cta:
3759   case Intrinsic::nvvm_atomic_exch_gen_i_sys:
3760   case Intrinsic::nvvm_atomic_xor_gen_i_cta:
3761   case Intrinsic::nvvm_atomic_xor_gen_i_sys: {
3762     auto &DL = I.getModule()->getDataLayout();
3763     Info.opc = ISD::INTRINSIC_W_CHAIN;
3764     Info.memVT = getValueType(DL, I.getType());
3765     Info.ptrVal = I.getArgOperand(0);
3766     Info.offset = 0;
3767     Info.flags = MachineMemOperand::MOLoad | MachineMemOperand::MOStore;
3768     Info.align.reset();
3769     return true;
3770   }
3771 
3772   case Intrinsic::nvvm_ldu_global_i:
3773   case Intrinsic::nvvm_ldu_global_f:
3774   case Intrinsic::nvvm_ldu_global_p: {
3775     auto &DL = I.getModule()->getDataLayout();
3776     Info.opc = ISD::INTRINSIC_W_CHAIN;
3777     if (Intrinsic == Intrinsic::nvvm_ldu_global_i)
3778       Info.memVT = getValueType(DL, I.getType());
3779     else if(Intrinsic == Intrinsic::nvvm_ldu_global_p)
3780       Info.memVT = getPointerTy(DL);
3781     else
3782       Info.memVT = getValueType(DL, I.getType());
3783     Info.ptrVal = I.getArgOperand(0);
3784     Info.offset = 0;
3785     Info.flags = MachineMemOperand::MOLoad;
3786     Info.align =
3787         MaybeAlign(cast<ConstantInt>(I.getArgOperand(1))->getZExtValue());
3788 
3789     return true;
3790   }
3791   case Intrinsic::nvvm_ldg_global_i:
3792   case Intrinsic::nvvm_ldg_global_f:
3793   case Intrinsic::nvvm_ldg_global_p: {
3794     auto &DL = I.getModule()->getDataLayout();
3795 
3796     Info.opc = ISD::INTRINSIC_W_CHAIN;
3797     if (Intrinsic == Intrinsic::nvvm_ldg_global_i)
3798       Info.memVT = getValueType(DL, I.getType());
3799     else if(Intrinsic == Intrinsic::nvvm_ldg_global_p)
3800       Info.memVT = getPointerTy(DL);
3801     else
3802       Info.memVT = getValueType(DL, I.getType());
3803     Info.ptrVal = I.getArgOperand(0);
3804     Info.offset = 0;
3805     Info.flags = MachineMemOperand::MOLoad;
3806     Info.align =
3807         MaybeAlign(cast<ConstantInt>(I.getArgOperand(1))->getZExtValue());
3808 
3809     return true;
3810   }
3811 
3812   case Intrinsic::nvvm_tex_1d_v4f32_s32:
3813   case Intrinsic::nvvm_tex_1d_v4f32_f32:
3814   case Intrinsic::nvvm_tex_1d_level_v4f32_f32:
3815   case Intrinsic::nvvm_tex_1d_grad_v4f32_f32:
3816   case Intrinsic::nvvm_tex_1d_array_v4f32_s32:
3817   case Intrinsic::nvvm_tex_1d_array_v4f32_f32:
3818   case Intrinsic::nvvm_tex_1d_array_level_v4f32_f32:
3819   case Intrinsic::nvvm_tex_1d_array_grad_v4f32_f32:
3820   case Intrinsic::nvvm_tex_2d_v4f32_s32:
3821   case Intrinsic::nvvm_tex_2d_v4f32_f32:
3822   case Intrinsic::nvvm_tex_2d_level_v4f32_f32:
3823   case Intrinsic::nvvm_tex_2d_grad_v4f32_f32:
3824   case Intrinsic::nvvm_tex_2d_array_v4f32_s32:
3825   case Intrinsic::nvvm_tex_2d_array_v4f32_f32:
3826   case Intrinsic::nvvm_tex_2d_array_level_v4f32_f32:
3827   case Intrinsic::nvvm_tex_2d_array_grad_v4f32_f32:
3828   case Intrinsic::nvvm_tex_3d_v4f32_s32:
3829   case Intrinsic::nvvm_tex_3d_v4f32_f32:
3830   case Intrinsic::nvvm_tex_3d_level_v4f32_f32:
3831   case Intrinsic::nvvm_tex_3d_grad_v4f32_f32:
3832   case Intrinsic::nvvm_tex_cube_v4f32_f32:
3833   case Intrinsic::nvvm_tex_cube_level_v4f32_f32:
3834   case Intrinsic::nvvm_tex_cube_array_v4f32_f32:
3835   case Intrinsic::nvvm_tex_cube_array_level_v4f32_f32:
3836   case Intrinsic::nvvm_tld4_r_2d_v4f32_f32:
3837   case Intrinsic::nvvm_tld4_g_2d_v4f32_f32:
3838   case Intrinsic::nvvm_tld4_b_2d_v4f32_f32:
3839   case Intrinsic::nvvm_tld4_a_2d_v4f32_f32:
3840   case Intrinsic::nvvm_tex_unified_1d_v4f32_s32:
3841   case Intrinsic::nvvm_tex_unified_1d_v4f32_f32:
3842   case Intrinsic::nvvm_tex_unified_1d_level_v4f32_f32:
3843   case Intrinsic::nvvm_tex_unified_1d_grad_v4f32_f32:
3844   case Intrinsic::nvvm_tex_unified_1d_array_v4f32_s32:
3845   case Intrinsic::nvvm_tex_unified_1d_array_v4f32_f32:
3846   case Intrinsic::nvvm_tex_unified_1d_array_level_v4f32_f32:
3847   case Intrinsic::nvvm_tex_unified_1d_array_grad_v4f32_f32:
3848   case Intrinsic::nvvm_tex_unified_2d_v4f32_s32:
3849   case Intrinsic::nvvm_tex_unified_2d_v4f32_f32:
3850   case Intrinsic::nvvm_tex_unified_2d_level_v4f32_f32:
3851   case Intrinsic::nvvm_tex_unified_2d_grad_v4f32_f32:
3852   case Intrinsic::nvvm_tex_unified_2d_array_v4f32_s32:
3853   case Intrinsic::nvvm_tex_unified_2d_array_v4f32_f32:
3854   case Intrinsic::nvvm_tex_unified_2d_array_level_v4f32_f32:
3855   case Intrinsic::nvvm_tex_unified_2d_array_grad_v4f32_f32:
3856   case Intrinsic::nvvm_tex_unified_3d_v4f32_s32:
3857   case Intrinsic::nvvm_tex_unified_3d_v4f32_f32:
3858   case Intrinsic::nvvm_tex_unified_3d_level_v4f32_f32:
3859   case Intrinsic::nvvm_tex_unified_3d_grad_v4f32_f32:
3860   case Intrinsic::nvvm_tex_unified_cube_v4f32_f32:
3861   case Intrinsic::nvvm_tex_unified_cube_level_v4f32_f32:
3862   case Intrinsic::nvvm_tex_unified_cube_array_v4f32_f32:
3863   case Intrinsic::nvvm_tex_unified_cube_array_level_v4f32_f32:
3864   case Intrinsic::nvvm_tld4_unified_r_2d_v4f32_f32:
3865   case Intrinsic::nvvm_tld4_unified_g_2d_v4f32_f32:
3866   case Intrinsic::nvvm_tld4_unified_b_2d_v4f32_f32:
3867   case Intrinsic::nvvm_tld4_unified_a_2d_v4f32_f32:
3868     Info.opc = getOpcForTextureInstr(Intrinsic);
3869     Info.memVT = MVT::v4f32;
3870     Info.ptrVal = nullptr;
3871     Info.offset = 0;
3872     Info.flags = MachineMemOperand::MOLoad;
3873     Info.align = Align(16);
3874     return true;
3875 
3876   case Intrinsic::nvvm_tex_1d_v4s32_s32:
3877   case Intrinsic::nvvm_tex_1d_v4s32_f32:
3878   case Intrinsic::nvvm_tex_1d_level_v4s32_f32:
3879   case Intrinsic::nvvm_tex_1d_grad_v4s32_f32:
3880   case Intrinsic::nvvm_tex_1d_array_v4s32_s32:
3881   case Intrinsic::nvvm_tex_1d_array_v4s32_f32:
3882   case Intrinsic::nvvm_tex_1d_array_level_v4s32_f32:
3883   case Intrinsic::nvvm_tex_1d_array_grad_v4s32_f32:
3884   case Intrinsic::nvvm_tex_2d_v4s32_s32:
3885   case Intrinsic::nvvm_tex_2d_v4s32_f32:
3886   case Intrinsic::nvvm_tex_2d_level_v4s32_f32:
3887   case Intrinsic::nvvm_tex_2d_grad_v4s32_f32:
3888   case Intrinsic::nvvm_tex_2d_array_v4s32_s32:
3889   case Intrinsic::nvvm_tex_2d_array_v4s32_f32:
3890   case Intrinsic::nvvm_tex_2d_array_level_v4s32_f32:
3891   case Intrinsic::nvvm_tex_2d_array_grad_v4s32_f32:
3892   case Intrinsic::nvvm_tex_3d_v4s32_s32:
3893   case Intrinsic::nvvm_tex_3d_v4s32_f32:
3894   case Intrinsic::nvvm_tex_3d_level_v4s32_f32:
3895   case Intrinsic::nvvm_tex_3d_grad_v4s32_f32:
3896   case Intrinsic::nvvm_tex_cube_v4s32_f32:
3897   case Intrinsic::nvvm_tex_cube_level_v4s32_f32:
3898   case Intrinsic::nvvm_tex_cube_array_v4s32_f32:
3899   case Intrinsic::nvvm_tex_cube_array_level_v4s32_f32:
3900   case Intrinsic::nvvm_tex_cube_v4u32_f32:
3901   case Intrinsic::nvvm_tex_cube_level_v4u32_f32:
3902   case Intrinsic::nvvm_tex_cube_array_v4u32_f32:
3903   case Intrinsic::nvvm_tex_cube_array_level_v4u32_f32:
3904   case Intrinsic::nvvm_tex_1d_v4u32_s32:
3905   case Intrinsic::nvvm_tex_1d_v4u32_f32:
3906   case Intrinsic::nvvm_tex_1d_level_v4u32_f32:
3907   case Intrinsic::nvvm_tex_1d_grad_v4u32_f32:
3908   case Intrinsic::nvvm_tex_1d_array_v4u32_s32:
3909   case Intrinsic::nvvm_tex_1d_array_v4u32_f32:
3910   case Intrinsic::nvvm_tex_1d_array_level_v4u32_f32:
3911   case Intrinsic::nvvm_tex_1d_array_grad_v4u32_f32:
3912   case Intrinsic::nvvm_tex_2d_v4u32_s32:
3913   case Intrinsic::nvvm_tex_2d_v4u32_f32:
3914   case Intrinsic::nvvm_tex_2d_level_v4u32_f32:
3915   case Intrinsic::nvvm_tex_2d_grad_v4u32_f32:
3916   case Intrinsic::nvvm_tex_2d_array_v4u32_s32:
3917   case Intrinsic::nvvm_tex_2d_array_v4u32_f32:
3918   case Intrinsic::nvvm_tex_2d_array_level_v4u32_f32:
3919   case Intrinsic::nvvm_tex_2d_array_grad_v4u32_f32:
3920   case Intrinsic::nvvm_tex_3d_v4u32_s32:
3921   case Intrinsic::nvvm_tex_3d_v4u32_f32:
3922   case Intrinsic::nvvm_tex_3d_level_v4u32_f32:
3923   case Intrinsic::nvvm_tex_3d_grad_v4u32_f32:
3924   case Intrinsic::nvvm_tld4_r_2d_v4s32_f32:
3925   case Intrinsic::nvvm_tld4_g_2d_v4s32_f32:
3926   case Intrinsic::nvvm_tld4_b_2d_v4s32_f32:
3927   case Intrinsic::nvvm_tld4_a_2d_v4s32_f32:
3928   case Intrinsic::nvvm_tld4_r_2d_v4u32_f32:
3929   case Intrinsic::nvvm_tld4_g_2d_v4u32_f32:
3930   case Intrinsic::nvvm_tld4_b_2d_v4u32_f32:
3931   case Intrinsic::nvvm_tld4_a_2d_v4u32_f32:
3932   case Intrinsic::nvvm_tex_unified_1d_v4s32_s32:
3933   case Intrinsic::nvvm_tex_unified_1d_v4s32_f32:
3934   case Intrinsic::nvvm_tex_unified_1d_level_v4s32_f32:
3935   case Intrinsic::nvvm_tex_unified_1d_grad_v4s32_f32:
3936   case Intrinsic::nvvm_tex_unified_1d_array_v4s32_s32:
3937   case Intrinsic::nvvm_tex_unified_1d_array_v4s32_f32:
3938   case Intrinsic::nvvm_tex_unified_1d_array_level_v4s32_f32:
3939   case Intrinsic::nvvm_tex_unified_1d_array_grad_v4s32_f32:
3940   case Intrinsic::nvvm_tex_unified_2d_v4s32_s32:
3941   case Intrinsic::nvvm_tex_unified_2d_v4s32_f32:
3942   case Intrinsic::nvvm_tex_unified_2d_level_v4s32_f32:
3943   case Intrinsic::nvvm_tex_unified_2d_grad_v4s32_f32:
3944   case Intrinsic::nvvm_tex_unified_2d_array_v4s32_s32:
3945   case Intrinsic::nvvm_tex_unified_2d_array_v4s32_f32:
3946   case Intrinsic::nvvm_tex_unified_2d_array_level_v4s32_f32:
3947   case Intrinsic::nvvm_tex_unified_2d_array_grad_v4s32_f32:
3948   case Intrinsic::nvvm_tex_unified_3d_v4s32_s32:
3949   case Intrinsic::nvvm_tex_unified_3d_v4s32_f32:
3950   case Intrinsic::nvvm_tex_unified_3d_level_v4s32_f32:
3951   case Intrinsic::nvvm_tex_unified_3d_grad_v4s32_f32:
3952   case Intrinsic::nvvm_tex_unified_1d_v4u32_s32:
3953   case Intrinsic::nvvm_tex_unified_1d_v4u32_f32:
3954   case Intrinsic::nvvm_tex_unified_1d_level_v4u32_f32:
3955   case Intrinsic::nvvm_tex_unified_1d_grad_v4u32_f32:
3956   case Intrinsic::nvvm_tex_unified_1d_array_v4u32_s32:
3957   case Intrinsic::nvvm_tex_unified_1d_array_v4u32_f32:
3958   case Intrinsic::nvvm_tex_unified_1d_array_level_v4u32_f32:
3959   case Intrinsic::nvvm_tex_unified_1d_array_grad_v4u32_f32:
3960   case Intrinsic::nvvm_tex_unified_2d_v4u32_s32:
3961   case Intrinsic::nvvm_tex_unified_2d_v4u32_f32:
3962   case Intrinsic::nvvm_tex_unified_2d_level_v4u32_f32:
3963   case Intrinsic::nvvm_tex_unified_2d_grad_v4u32_f32:
3964   case Intrinsic::nvvm_tex_unified_2d_array_v4u32_s32:
3965   case Intrinsic::nvvm_tex_unified_2d_array_v4u32_f32:
3966   case Intrinsic::nvvm_tex_unified_2d_array_level_v4u32_f32:
3967   case Intrinsic::nvvm_tex_unified_2d_array_grad_v4u32_f32:
3968   case Intrinsic::nvvm_tex_unified_3d_v4u32_s32:
3969   case Intrinsic::nvvm_tex_unified_3d_v4u32_f32:
3970   case Intrinsic::nvvm_tex_unified_3d_level_v4u32_f32:
3971   case Intrinsic::nvvm_tex_unified_3d_grad_v4u32_f32:
3972   case Intrinsic::nvvm_tex_unified_cube_v4s32_f32:
3973   case Intrinsic::nvvm_tex_unified_cube_level_v4s32_f32:
3974   case Intrinsic::nvvm_tex_unified_cube_array_v4s32_f32:
3975   case Intrinsic::nvvm_tex_unified_cube_array_level_v4s32_f32:
3976   case Intrinsic::nvvm_tex_unified_cube_v4u32_f32:
3977   case Intrinsic::nvvm_tex_unified_cube_level_v4u32_f32:
3978   case Intrinsic::nvvm_tex_unified_cube_array_v4u32_f32:
3979   case Intrinsic::nvvm_tex_unified_cube_array_level_v4u32_f32:
3980   case Intrinsic::nvvm_tld4_unified_r_2d_v4s32_f32:
3981   case Intrinsic::nvvm_tld4_unified_g_2d_v4s32_f32:
3982   case Intrinsic::nvvm_tld4_unified_b_2d_v4s32_f32:
3983   case Intrinsic::nvvm_tld4_unified_a_2d_v4s32_f32:
3984   case Intrinsic::nvvm_tld4_unified_r_2d_v4u32_f32:
3985   case Intrinsic::nvvm_tld4_unified_g_2d_v4u32_f32:
3986   case Intrinsic::nvvm_tld4_unified_b_2d_v4u32_f32:
3987   case Intrinsic::nvvm_tld4_unified_a_2d_v4u32_f32:
3988     Info.opc = getOpcForTextureInstr(Intrinsic);
3989     Info.memVT = MVT::v4i32;
3990     Info.ptrVal = nullptr;
3991     Info.offset = 0;
3992     Info.flags = MachineMemOperand::MOLoad;
3993     Info.align = Align(16);
3994     return true;
3995 
3996   case Intrinsic::nvvm_suld_1d_i8_clamp:
3997   case Intrinsic::nvvm_suld_1d_v2i8_clamp:
3998   case Intrinsic::nvvm_suld_1d_v4i8_clamp:
3999   case Intrinsic::nvvm_suld_1d_array_i8_clamp:
4000   case Intrinsic::nvvm_suld_1d_array_v2i8_clamp:
4001   case Intrinsic::nvvm_suld_1d_array_v4i8_clamp:
4002   case Intrinsic::nvvm_suld_2d_i8_clamp:
4003   case Intrinsic::nvvm_suld_2d_v2i8_clamp:
4004   case Intrinsic::nvvm_suld_2d_v4i8_clamp:
4005   case Intrinsic::nvvm_suld_2d_array_i8_clamp:
4006   case Intrinsic::nvvm_suld_2d_array_v2i8_clamp:
4007   case Intrinsic::nvvm_suld_2d_array_v4i8_clamp:
4008   case Intrinsic::nvvm_suld_3d_i8_clamp:
4009   case Intrinsic::nvvm_suld_3d_v2i8_clamp:
4010   case Intrinsic::nvvm_suld_3d_v4i8_clamp:
4011   case Intrinsic::nvvm_suld_1d_i8_trap:
4012   case Intrinsic::nvvm_suld_1d_v2i8_trap:
4013   case Intrinsic::nvvm_suld_1d_v4i8_trap:
4014   case Intrinsic::nvvm_suld_1d_array_i8_trap:
4015   case Intrinsic::nvvm_suld_1d_array_v2i8_trap:
4016   case Intrinsic::nvvm_suld_1d_array_v4i8_trap:
4017   case Intrinsic::nvvm_suld_2d_i8_trap:
4018   case Intrinsic::nvvm_suld_2d_v2i8_trap:
4019   case Intrinsic::nvvm_suld_2d_v4i8_trap:
4020   case Intrinsic::nvvm_suld_2d_array_i8_trap:
4021   case Intrinsic::nvvm_suld_2d_array_v2i8_trap:
4022   case Intrinsic::nvvm_suld_2d_array_v4i8_trap:
4023   case Intrinsic::nvvm_suld_3d_i8_trap:
4024   case Intrinsic::nvvm_suld_3d_v2i8_trap:
4025   case Intrinsic::nvvm_suld_3d_v4i8_trap:
4026   case Intrinsic::nvvm_suld_1d_i8_zero:
4027   case Intrinsic::nvvm_suld_1d_v2i8_zero:
4028   case Intrinsic::nvvm_suld_1d_v4i8_zero:
4029   case Intrinsic::nvvm_suld_1d_array_i8_zero:
4030   case Intrinsic::nvvm_suld_1d_array_v2i8_zero:
4031   case Intrinsic::nvvm_suld_1d_array_v4i8_zero:
4032   case Intrinsic::nvvm_suld_2d_i8_zero:
4033   case Intrinsic::nvvm_suld_2d_v2i8_zero:
4034   case Intrinsic::nvvm_suld_2d_v4i8_zero:
4035   case Intrinsic::nvvm_suld_2d_array_i8_zero:
4036   case Intrinsic::nvvm_suld_2d_array_v2i8_zero:
4037   case Intrinsic::nvvm_suld_2d_array_v4i8_zero:
4038   case Intrinsic::nvvm_suld_3d_i8_zero:
4039   case Intrinsic::nvvm_suld_3d_v2i8_zero:
4040   case Intrinsic::nvvm_suld_3d_v4i8_zero:
4041     Info.opc = getOpcForSurfaceInstr(Intrinsic);
4042     Info.memVT = MVT::i8;
4043     Info.ptrVal = nullptr;
4044     Info.offset = 0;
4045     Info.flags = MachineMemOperand::MOLoad;
4046     Info.align = Align(16);
4047     return true;
4048 
4049   case Intrinsic::nvvm_suld_1d_i16_clamp:
4050   case Intrinsic::nvvm_suld_1d_v2i16_clamp:
4051   case Intrinsic::nvvm_suld_1d_v4i16_clamp:
4052   case Intrinsic::nvvm_suld_1d_array_i16_clamp:
4053   case Intrinsic::nvvm_suld_1d_array_v2i16_clamp:
4054   case Intrinsic::nvvm_suld_1d_array_v4i16_clamp:
4055   case Intrinsic::nvvm_suld_2d_i16_clamp:
4056   case Intrinsic::nvvm_suld_2d_v2i16_clamp:
4057   case Intrinsic::nvvm_suld_2d_v4i16_clamp:
4058   case Intrinsic::nvvm_suld_2d_array_i16_clamp:
4059   case Intrinsic::nvvm_suld_2d_array_v2i16_clamp:
4060   case Intrinsic::nvvm_suld_2d_array_v4i16_clamp:
4061   case Intrinsic::nvvm_suld_3d_i16_clamp:
4062   case Intrinsic::nvvm_suld_3d_v2i16_clamp:
4063   case Intrinsic::nvvm_suld_3d_v4i16_clamp:
4064   case Intrinsic::nvvm_suld_1d_i16_trap:
4065   case Intrinsic::nvvm_suld_1d_v2i16_trap:
4066   case Intrinsic::nvvm_suld_1d_v4i16_trap:
4067   case Intrinsic::nvvm_suld_1d_array_i16_trap:
4068   case Intrinsic::nvvm_suld_1d_array_v2i16_trap:
4069   case Intrinsic::nvvm_suld_1d_array_v4i16_trap:
4070   case Intrinsic::nvvm_suld_2d_i16_trap:
4071   case Intrinsic::nvvm_suld_2d_v2i16_trap:
4072   case Intrinsic::nvvm_suld_2d_v4i16_trap:
4073   case Intrinsic::nvvm_suld_2d_array_i16_trap:
4074   case Intrinsic::nvvm_suld_2d_array_v2i16_trap:
4075   case Intrinsic::nvvm_suld_2d_array_v4i16_trap:
4076   case Intrinsic::nvvm_suld_3d_i16_trap:
4077   case Intrinsic::nvvm_suld_3d_v2i16_trap:
4078   case Intrinsic::nvvm_suld_3d_v4i16_trap:
4079   case Intrinsic::nvvm_suld_1d_i16_zero:
4080   case Intrinsic::nvvm_suld_1d_v2i16_zero:
4081   case Intrinsic::nvvm_suld_1d_v4i16_zero:
4082   case Intrinsic::nvvm_suld_1d_array_i16_zero:
4083   case Intrinsic::nvvm_suld_1d_array_v2i16_zero:
4084   case Intrinsic::nvvm_suld_1d_array_v4i16_zero:
4085   case Intrinsic::nvvm_suld_2d_i16_zero:
4086   case Intrinsic::nvvm_suld_2d_v2i16_zero:
4087   case Intrinsic::nvvm_suld_2d_v4i16_zero:
4088   case Intrinsic::nvvm_suld_2d_array_i16_zero:
4089   case Intrinsic::nvvm_suld_2d_array_v2i16_zero:
4090   case Intrinsic::nvvm_suld_2d_array_v4i16_zero:
4091   case Intrinsic::nvvm_suld_3d_i16_zero:
4092   case Intrinsic::nvvm_suld_3d_v2i16_zero:
4093   case Intrinsic::nvvm_suld_3d_v4i16_zero:
4094     Info.opc = getOpcForSurfaceInstr(Intrinsic);
4095     Info.memVT = MVT::i16;
4096     Info.ptrVal = nullptr;
4097     Info.offset = 0;
4098     Info.flags = MachineMemOperand::MOLoad;
4099     Info.align = Align(16);
4100     return true;
4101 
4102   case Intrinsic::nvvm_suld_1d_i32_clamp:
4103   case Intrinsic::nvvm_suld_1d_v2i32_clamp:
4104   case Intrinsic::nvvm_suld_1d_v4i32_clamp:
4105   case Intrinsic::nvvm_suld_1d_array_i32_clamp:
4106   case Intrinsic::nvvm_suld_1d_array_v2i32_clamp:
4107   case Intrinsic::nvvm_suld_1d_array_v4i32_clamp:
4108   case Intrinsic::nvvm_suld_2d_i32_clamp:
4109   case Intrinsic::nvvm_suld_2d_v2i32_clamp:
4110   case Intrinsic::nvvm_suld_2d_v4i32_clamp:
4111   case Intrinsic::nvvm_suld_2d_array_i32_clamp:
4112   case Intrinsic::nvvm_suld_2d_array_v2i32_clamp:
4113   case Intrinsic::nvvm_suld_2d_array_v4i32_clamp:
4114   case Intrinsic::nvvm_suld_3d_i32_clamp:
4115   case Intrinsic::nvvm_suld_3d_v2i32_clamp:
4116   case Intrinsic::nvvm_suld_3d_v4i32_clamp:
4117   case Intrinsic::nvvm_suld_1d_i32_trap:
4118   case Intrinsic::nvvm_suld_1d_v2i32_trap:
4119   case Intrinsic::nvvm_suld_1d_v4i32_trap:
4120   case Intrinsic::nvvm_suld_1d_array_i32_trap:
4121   case Intrinsic::nvvm_suld_1d_array_v2i32_trap:
4122   case Intrinsic::nvvm_suld_1d_array_v4i32_trap:
4123   case Intrinsic::nvvm_suld_2d_i32_trap:
4124   case Intrinsic::nvvm_suld_2d_v2i32_trap:
4125   case Intrinsic::nvvm_suld_2d_v4i32_trap:
4126   case Intrinsic::nvvm_suld_2d_array_i32_trap:
4127   case Intrinsic::nvvm_suld_2d_array_v2i32_trap:
4128   case Intrinsic::nvvm_suld_2d_array_v4i32_trap:
4129   case Intrinsic::nvvm_suld_3d_i32_trap:
4130   case Intrinsic::nvvm_suld_3d_v2i32_trap:
4131   case Intrinsic::nvvm_suld_3d_v4i32_trap:
4132   case Intrinsic::nvvm_suld_1d_i32_zero:
4133   case Intrinsic::nvvm_suld_1d_v2i32_zero:
4134   case Intrinsic::nvvm_suld_1d_v4i32_zero:
4135   case Intrinsic::nvvm_suld_1d_array_i32_zero:
4136   case Intrinsic::nvvm_suld_1d_array_v2i32_zero:
4137   case Intrinsic::nvvm_suld_1d_array_v4i32_zero:
4138   case Intrinsic::nvvm_suld_2d_i32_zero:
4139   case Intrinsic::nvvm_suld_2d_v2i32_zero:
4140   case Intrinsic::nvvm_suld_2d_v4i32_zero:
4141   case Intrinsic::nvvm_suld_2d_array_i32_zero:
4142   case Intrinsic::nvvm_suld_2d_array_v2i32_zero:
4143   case Intrinsic::nvvm_suld_2d_array_v4i32_zero:
4144   case Intrinsic::nvvm_suld_3d_i32_zero:
4145   case Intrinsic::nvvm_suld_3d_v2i32_zero:
4146   case Intrinsic::nvvm_suld_3d_v4i32_zero:
4147     Info.opc = getOpcForSurfaceInstr(Intrinsic);
4148     Info.memVT = MVT::i32;
4149     Info.ptrVal = nullptr;
4150     Info.offset = 0;
4151     Info.flags = MachineMemOperand::MOLoad;
4152     Info.align = Align(16);
4153     return true;
4154 
4155   case Intrinsic::nvvm_suld_1d_i64_clamp:
4156   case Intrinsic::nvvm_suld_1d_v2i64_clamp:
4157   case Intrinsic::nvvm_suld_1d_array_i64_clamp:
4158   case Intrinsic::nvvm_suld_1d_array_v2i64_clamp:
4159   case Intrinsic::nvvm_suld_2d_i64_clamp:
4160   case Intrinsic::nvvm_suld_2d_v2i64_clamp:
4161   case Intrinsic::nvvm_suld_2d_array_i64_clamp:
4162   case Intrinsic::nvvm_suld_2d_array_v2i64_clamp:
4163   case Intrinsic::nvvm_suld_3d_i64_clamp:
4164   case Intrinsic::nvvm_suld_3d_v2i64_clamp:
4165   case Intrinsic::nvvm_suld_1d_i64_trap:
4166   case Intrinsic::nvvm_suld_1d_v2i64_trap:
4167   case Intrinsic::nvvm_suld_1d_array_i64_trap:
4168   case Intrinsic::nvvm_suld_1d_array_v2i64_trap:
4169   case Intrinsic::nvvm_suld_2d_i64_trap:
4170   case Intrinsic::nvvm_suld_2d_v2i64_trap:
4171   case Intrinsic::nvvm_suld_2d_array_i64_trap:
4172   case Intrinsic::nvvm_suld_2d_array_v2i64_trap:
4173   case Intrinsic::nvvm_suld_3d_i64_trap:
4174   case Intrinsic::nvvm_suld_3d_v2i64_trap:
4175   case Intrinsic::nvvm_suld_1d_i64_zero:
4176   case Intrinsic::nvvm_suld_1d_v2i64_zero:
4177   case Intrinsic::nvvm_suld_1d_array_i64_zero:
4178   case Intrinsic::nvvm_suld_1d_array_v2i64_zero:
4179   case Intrinsic::nvvm_suld_2d_i64_zero:
4180   case Intrinsic::nvvm_suld_2d_v2i64_zero:
4181   case Intrinsic::nvvm_suld_2d_array_i64_zero:
4182   case Intrinsic::nvvm_suld_2d_array_v2i64_zero:
4183   case Intrinsic::nvvm_suld_3d_i64_zero:
4184   case Intrinsic::nvvm_suld_3d_v2i64_zero:
4185     Info.opc = getOpcForSurfaceInstr(Intrinsic);
4186     Info.memVT = MVT::i64;
4187     Info.ptrVal = nullptr;
4188     Info.offset = 0;
4189     Info.flags = MachineMemOperand::MOLoad;
4190     Info.align = Align(16);
4191     return true;
4192   }
4193   return false;
4194 }
4195 
4196 /// isLegalAddressingMode - Return true if the addressing mode represented
4197 /// by AM is legal for this target, for a load/store of the specified type.
4198 /// Used to guide target specific optimizations, like loop strength reduction
4199 /// (LoopStrengthReduce.cpp) and memory optimization for address mode
4200 /// (CodeGenPrepare.cpp)
4201 bool NVPTXTargetLowering::isLegalAddressingMode(const DataLayout &DL,
4202                                                 const AddrMode &AM, Type *Ty,
4203                                                 unsigned AS, Instruction *I) const {
4204   // AddrMode - This represents an addressing mode of:
4205   //    BaseGV + BaseOffs + BaseReg + Scale*ScaleReg
4206   //
4207   // The legal address modes are
4208   // - [avar]
4209   // - [areg]
4210   // - [areg+immoff]
4211   // - [immAddr]
4212 
4213   if (AM.BaseGV) {
4214     return !AM.BaseOffs && !AM.HasBaseReg && !AM.Scale;
4215   }
4216 
4217   switch (AM.Scale) {
4218   case 0: // "r", "r+i" or "i" is allowed
4219     break;
4220   case 1:
4221     if (AM.HasBaseReg) // "r+r+i" or "r+r" is not allowed.
4222       return false;
4223     // Otherwise we have r+i.
4224     break;
4225   default:
4226     // No scale > 1 is allowed
4227     return false;
4228   }
4229   return true;
4230 }
4231 
4232 //===----------------------------------------------------------------------===//
4233 //                         NVPTX Inline Assembly Support
4234 //===----------------------------------------------------------------------===//
4235 
4236 /// getConstraintType - Given a constraint letter, return the type of
4237 /// constraint it is for this target.
4238 NVPTXTargetLowering::ConstraintType
4239 NVPTXTargetLowering::getConstraintType(StringRef Constraint) const {
4240   if (Constraint.size() == 1) {
4241     switch (Constraint[0]) {
4242     default:
4243       break;
4244     case 'b':
4245     case 'r':
4246     case 'h':
4247     case 'c':
4248     case 'l':
4249     case 'f':
4250     case 'd':
4251     case '0':
4252     case 'N':
4253       return C_RegisterClass;
4254     }
4255   }
4256   return TargetLowering::getConstraintType(Constraint);
4257 }
4258 
4259 std::pair<unsigned, const TargetRegisterClass *>
4260 NVPTXTargetLowering::getRegForInlineAsmConstraint(const TargetRegisterInfo *TRI,
4261                                                   StringRef Constraint,
4262                                                   MVT VT) const {
4263   if (Constraint.size() == 1) {
4264     switch (Constraint[0]) {
4265     case 'b':
4266       return std::make_pair(0U, &NVPTX::Int1RegsRegClass);
4267     case 'c':
4268       return std::make_pair(0U, &NVPTX::Int16RegsRegClass);
4269     case 'h':
4270       return std::make_pair(0U, &NVPTX::Int16RegsRegClass);
4271     case 'r':
4272       return std::make_pair(0U, &NVPTX::Int32RegsRegClass);
4273     case 'l':
4274     case 'N':
4275       return std::make_pair(0U, &NVPTX::Int64RegsRegClass);
4276     case 'f':
4277       return std::make_pair(0U, &NVPTX::Float32RegsRegClass);
4278     case 'd':
4279       return std::make_pair(0U, &NVPTX::Float64RegsRegClass);
4280     }
4281   }
4282   return TargetLowering::getRegForInlineAsmConstraint(TRI, Constraint, VT);
4283 }
4284 
4285 //===----------------------------------------------------------------------===//
4286 //                         NVPTX DAG Combining
4287 //===----------------------------------------------------------------------===//
4288 
4289 bool NVPTXTargetLowering::allowFMA(MachineFunction &MF,
4290                                    CodeGenOpt::Level OptLevel) const {
4291   // Always honor command-line argument
4292   if (FMAContractLevelOpt.getNumOccurrences() > 0)
4293     return FMAContractLevelOpt > 0;
4294 
4295   // Do not contract if we're not optimizing the code.
4296   if (OptLevel == 0)
4297     return false;
4298 
4299   // Honor TargetOptions flags that explicitly say fusion is okay.
4300   if (MF.getTarget().Options.AllowFPOpFusion == FPOpFusion::Fast)
4301     return true;
4302 
4303   return allowUnsafeFPMath(MF);
4304 }
4305 
4306 bool NVPTXTargetLowering::allowUnsafeFPMath(MachineFunction &MF) const {
4307   // Honor TargetOptions flags that explicitly say unsafe math is okay.
4308   if (MF.getTarget().Options.UnsafeFPMath)
4309     return true;
4310 
4311   // Allow unsafe math if unsafe-fp-math attribute explicitly says so.
4312   const Function &F = MF.getFunction();
4313   if (F.hasFnAttribute("unsafe-fp-math")) {
4314     Attribute Attr = F.getFnAttribute("unsafe-fp-math");
4315     StringRef Val = Attr.getValueAsString();
4316     if (Val == "true")
4317       return true;
4318   }
4319 
4320   return false;
4321 }
4322 
4323 /// PerformADDCombineWithOperands - Try DAG combinations for an ADD with
4324 /// operands N0 and N1.  This is a helper for PerformADDCombine that is
4325 /// called with the default operands, and if that fails, with commuted
4326 /// operands.
4327 static SDValue PerformADDCombineWithOperands(SDNode *N, SDValue N0, SDValue N1,
4328                                            TargetLowering::DAGCombinerInfo &DCI,
4329                                              const NVPTXSubtarget &Subtarget,
4330                                              CodeGenOpt::Level OptLevel) {
4331   SelectionDAG  &DAG = DCI.DAG;
4332   // Skip non-integer, non-scalar case
4333   EVT VT=N0.getValueType();
4334   if (VT.isVector())
4335     return SDValue();
4336 
4337   // fold (add (mul a, b), c) -> (mad a, b, c)
4338   //
4339   if (N0.getOpcode() == ISD::MUL) {
4340     assert (VT.isInteger());
4341     // For integer:
4342     // Since integer multiply-add costs the same as integer multiply
4343     // but is more costly than integer add, do the fusion only when
4344     // the mul is only used in the add.
4345     if (OptLevel==CodeGenOpt::None || VT != MVT::i32 ||
4346         !N0.getNode()->hasOneUse())
4347       return SDValue();
4348 
4349     // Do the folding
4350     return DAG.getNode(NVPTXISD::IMAD, SDLoc(N), VT,
4351                        N0.getOperand(0), N0.getOperand(1), N1);
4352   }
4353   else if (N0.getOpcode() == ISD::FMUL) {
4354     if (VT == MVT::f32 || VT == MVT::f64) {
4355       const auto *TLI = static_cast<const NVPTXTargetLowering *>(
4356           &DAG.getTargetLoweringInfo());
4357       if (!TLI->allowFMA(DAG.getMachineFunction(), OptLevel))
4358         return SDValue();
4359 
4360       // For floating point:
4361       // Do the fusion only when the mul has less than 5 uses and all
4362       // are add.
4363       // The heuristic is that if a use is not an add, then that use
4364       // cannot be fused into fma, therefore mul is still needed anyway.
4365       // If there are more than 4 uses, even if they are all add, fusing
4366       // them will increase register pressue.
4367       //
4368       int numUses = 0;
4369       int nonAddCount = 0;
4370       for (SDNode::use_iterator UI = N0.getNode()->use_begin(),
4371            UE = N0.getNode()->use_end();
4372            UI != UE; ++UI) {
4373         numUses++;
4374         SDNode *User = *UI;
4375         if (User->getOpcode() != ISD::FADD)
4376           ++nonAddCount;
4377       }
4378       if (numUses >= 5)
4379         return SDValue();
4380       if (nonAddCount) {
4381         int orderNo = N->getIROrder();
4382         int orderNo2 = N0.getNode()->getIROrder();
4383         // simple heuristics here for considering potential register
4384         // pressure, the logics here is that the differnce are used
4385         // to measure the distance between def and use, the longer distance
4386         // more likely cause register pressure.
4387         if (orderNo - orderNo2 < 500)
4388           return SDValue();
4389 
4390         // Now, check if at least one of the FMUL's operands is live beyond the node N,
4391         // which guarantees that the FMA will not increase register pressure at node N.
4392         bool opIsLive = false;
4393         const SDNode *left = N0.getOperand(0).getNode();
4394         const SDNode *right = N0.getOperand(1).getNode();
4395 
4396         if (isa<ConstantSDNode>(left) || isa<ConstantSDNode>(right))
4397           opIsLive = true;
4398 
4399         if (!opIsLive)
4400           for (SDNode::use_iterator UI = left->use_begin(), UE = left->use_end(); UI != UE; ++UI) {
4401             SDNode *User = *UI;
4402             int orderNo3 = User->getIROrder();
4403             if (orderNo3 > orderNo) {
4404               opIsLive = true;
4405               break;
4406             }
4407           }
4408 
4409         if (!opIsLive)
4410           for (SDNode::use_iterator UI = right->use_begin(), UE = right->use_end(); UI != UE; ++UI) {
4411             SDNode *User = *UI;
4412             int orderNo3 = User->getIROrder();
4413             if (orderNo3 > orderNo) {
4414               opIsLive = true;
4415               break;
4416             }
4417           }
4418 
4419         if (!opIsLive)
4420           return SDValue();
4421       }
4422 
4423       return DAG.getNode(ISD::FMA, SDLoc(N), VT,
4424                          N0.getOperand(0), N0.getOperand(1), N1);
4425     }
4426   }
4427 
4428   return SDValue();
4429 }
4430 
4431 /// PerformADDCombine - Target-specific dag combine xforms for ISD::ADD.
4432 ///
4433 static SDValue PerformADDCombine(SDNode *N,
4434                                  TargetLowering::DAGCombinerInfo &DCI,
4435                                  const NVPTXSubtarget &Subtarget,
4436                                  CodeGenOpt::Level OptLevel) {
4437   SDValue N0 = N->getOperand(0);
4438   SDValue N1 = N->getOperand(1);
4439 
4440   // First try with the default operand order.
4441   if (SDValue Result =
4442           PerformADDCombineWithOperands(N, N0, N1, DCI, Subtarget, OptLevel))
4443     return Result;
4444 
4445   // If that didn't work, try again with the operands commuted.
4446   return PerformADDCombineWithOperands(N, N1, N0, DCI, Subtarget, OptLevel);
4447 }
4448 
4449 static SDValue PerformANDCombine(SDNode *N,
4450                                  TargetLowering::DAGCombinerInfo &DCI) {
4451   // The type legalizer turns a vector load of i8 values into a zextload to i16
4452   // registers, optionally ANY_EXTENDs it (if target type is integer),
4453   // and ANDs off the high 8 bits. Since we turn this load into a
4454   // target-specific DAG node, the DAG combiner fails to eliminate these AND
4455   // nodes. Do that here.
4456   SDValue Val = N->getOperand(0);
4457   SDValue Mask = N->getOperand(1);
4458 
4459   if (isa<ConstantSDNode>(Val)) {
4460     std::swap(Val, Mask);
4461   }
4462 
4463   SDValue AExt;
4464   // Generally, we will see zextload -> IMOV16rr -> ANY_EXTEND -> and
4465   if (Val.getOpcode() == ISD::ANY_EXTEND) {
4466     AExt = Val;
4467     Val = Val->getOperand(0);
4468   }
4469 
4470   if (Val->isMachineOpcode() && Val->getMachineOpcode() == NVPTX::IMOV16rr) {
4471     Val = Val->getOperand(0);
4472   }
4473 
4474   if (Val->getOpcode() == NVPTXISD::LoadV2 ||
4475       Val->getOpcode() == NVPTXISD::LoadV4) {
4476     ConstantSDNode *MaskCnst = dyn_cast<ConstantSDNode>(Mask);
4477     if (!MaskCnst) {
4478       // Not an AND with a constant
4479       return SDValue();
4480     }
4481 
4482     uint64_t MaskVal = MaskCnst->getZExtValue();
4483     if (MaskVal != 0xff) {
4484       // Not an AND that chops off top 8 bits
4485       return SDValue();
4486     }
4487 
4488     MemSDNode *Mem = dyn_cast<MemSDNode>(Val);
4489     if (!Mem) {
4490       // Not a MemSDNode?!?
4491       return SDValue();
4492     }
4493 
4494     EVT MemVT = Mem->getMemoryVT();
4495     if (MemVT != MVT::v2i8 && MemVT != MVT::v4i8) {
4496       // We only handle the i8 case
4497       return SDValue();
4498     }
4499 
4500     unsigned ExtType =
4501       cast<ConstantSDNode>(Val->getOperand(Val->getNumOperands()-1))->
4502         getZExtValue();
4503     if (ExtType == ISD::SEXTLOAD) {
4504       // If for some reason the load is a sextload, the and is needed to zero
4505       // out the high 8 bits
4506       return SDValue();
4507     }
4508 
4509     bool AddTo = false;
4510     if (AExt.getNode() != nullptr) {
4511       // Re-insert the ext as a zext.
4512       Val = DCI.DAG.getNode(ISD::ZERO_EXTEND, SDLoc(N),
4513                             AExt.getValueType(), Val);
4514       AddTo = true;
4515     }
4516 
4517     // If we get here, the AND is unnecessary.  Just replace it with the load
4518     DCI.CombineTo(N, Val, AddTo);
4519   }
4520 
4521   return SDValue();
4522 }
4523 
4524 static SDValue PerformREMCombine(SDNode *N,
4525                                  TargetLowering::DAGCombinerInfo &DCI,
4526                                  CodeGenOpt::Level OptLevel) {
4527   assert(N->getOpcode() == ISD::SREM || N->getOpcode() == ISD::UREM);
4528 
4529   // Don't do anything at less than -O2.
4530   if (OptLevel < CodeGenOpt::Default)
4531     return SDValue();
4532 
4533   SelectionDAG &DAG = DCI.DAG;
4534   SDLoc DL(N);
4535   EVT VT = N->getValueType(0);
4536   bool IsSigned = N->getOpcode() == ISD::SREM;
4537   unsigned DivOpc = IsSigned ? ISD::SDIV : ISD::UDIV;
4538 
4539   const SDValue &Num = N->getOperand(0);
4540   const SDValue &Den = N->getOperand(1);
4541 
4542   for (const SDNode *U : Num->uses()) {
4543     if (U->getOpcode() == DivOpc && U->getOperand(0) == Num &&
4544         U->getOperand(1) == Den) {
4545       // Num % Den -> Num - (Num / Den) * Den
4546       return DAG.getNode(ISD::SUB, DL, VT, Num,
4547                          DAG.getNode(ISD::MUL, DL, VT,
4548                                      DAG.getNode(DivOpc, DL, VT, Num, Den),
4549                                      Den));
4550     }
4551   }
4552   return SDValue();
4553 }
4554 
4555 enum OperandSignedness {
4556   Signed = 0,
4557   Unsigned,
4558   Unknown
4559 };
4560 
4561 /// IsMulWideOperandDemotable - Checks if the provided DAG node is an operand
4562 /// that can be demoted to \p OptSize bits without loss of information. The
4563 /// signedness of the operand, if determinable, is placed in \p S.
4564 static bool IsMulWideOperandDemotable(SDValue Op,
4565                                       unsigned OptSize,
4566                                       OperandSignedness &S) {
4567   S = Unknown;
4568 
4569   if (Op.getOpcode() == ISD::SIGN_EXTEND ||
4570       Op.getOpcode() == ISD::SIGN_EXTEND_INREG) {
4571     EVT OrigVT = Op.getOperand(0).getValueType();
4572     if (OrigVT.getSizeInBits() <= OptSize) {
4573       S = Signed;
4574       return true;
4575     }
4576   } else if (Op.getOpcode() == ISD::ZERO_EXTEND) {
4577     EVT OrigVT = Op.getOperand(0).getValueType();
4578     if (OrigVT.getSizeInBits() <= OptSize) {
4579       S = Unsigned;
4580       return true;
4581     }
4582   }
4583 
4584   return false;
4585 }
4586 
4587 /// AreMulWideOperandsDemotable - Checks if the given LHS and RHS operands can
4588 /// be demoted to \p OptSize bits without loss of information. If the operands
4589 /// contain a constant, it should appear as the RHS operand. The signedness of
4590 /// the operands is placed in \p IsSigned.
4591 static bool AreMulWideOperandsDemotable(SDValue LHS, SDValue RHS,
4592                                         unsigned OptSize,
4593                                         bool &IsSigned) {
4594   OperandSignedness LHSSign;
4595 
4596   // The LHS operand must be a demotable op
4597   if (!IsMulWideOperandDemotable(LHS, OptSize, LHSSign))
4598     return false;
4599 
4600   // We should have been able to determine the signedness from the LHS
4601   if (LHSSign == Unknown)
4602     return false;
4603 
4604   IsSigned = (LHSSign == Signed);
4605 
4606   // The RHS can be a demotable op or a constant
4607   if (ConstantSDNode *CI = dyn_cast<ConstantSDNode>(RHS)) {
4608     const APInt &Val = CI->getAPIntValue();
4609     if (LHSSign == Unsigned) {
4610       return Val.isIntN(OptSize);
4611     } else {
4612       return Val.isSignedIntN(OptSize);
4613     }
4614   } else {
4615     OperandSignedness RHSSign;
4616     if (!IsMulWideOperandDemotable(RHS, OptSize, RHSSign))
4617       return false;
4618 
4619     return LHSSign == RHSSign;
4620   }
4621 }
4622 
4623 /// TryMULWIDECombine - Attempt to replace a multiply of M bits with a multiply
4624 /// of M/2 bits that produces an M-bit result (i.e. mul.wide). This transform
4625 /// works on both multiply DAG nodes and SHL DAG nodes with a constant shift
4626 /// amount.
4627 static SDValue TryMULWIDECombine(SDNode *N,
4628                                  TargetLowering::DAGCombinerInfo &DCI) {
4629   EVT MulType = N->getValueType(0);
4630   if (MulType != MVT::i32 && MulType != MVT::i64) {
4631     return SDValue();
4632   }
4633 
4634   SDLoc DL(N);
4635   unsigned OptSize = MulType.getSizeInBits() >> 1;
4636   SDValue LHS = N->getOperand(0);
4637   SDValue RHS = N->getOperand(1);
4638 
4639   // Canonicalize the multiply so the constant (if any) is on the right
4640   if (N->getOpcode() == ISD::MUL) {
4641     if (isa<ConstantSDNode>(LHS)) {
4642       std::swap(LHS, RHS);
4643     }
4644   }
4645 
4646   // If we have a SHL, determine the actual multiply amount
4647   if (N->getOpcode() == ISD::SHL) {
4648     ConstantSDNode *ShlRHS = dyn_cast<ConstantSDNode>(RHS);
4649     if (!ShlRHS) {
4650       return SDValue();
4651     }
4652 
4653     APInt ShiftAmt = ShlRHS->getAPIntValue();
4654     unsigned BitWidth = MulType.getSizeInBits();
4655     if (ShiftAmt.sge(0) && ShiftAmt.slt(BitWidth)) {
4656       APInt MulVal = APInt(BitWidth, 1) << ShiftAmt;
4657       RHS = DCI.DAG.getConstant(MulVal, DL, MulType);
4658     } else {
4659       return SDValue();
4660     }
4661   }
4662 
4663   bool Signed;
4664   // Verify that our operands are demotable
4665   if (!AreMulWideOperandsDemotable(LHS, RHS, OptSize, Signed)) {
4666     return SDValue();
4667   }
4668 
4669   EVT DemotedVT;
4670   if (MulType == MVT::i32) {
4671     DemotedVT = MVT::i16;
4672   } else {
4673     DemotedVT = MVT::i32;
4674   }
4675 
4676   // Truncate the operands to the correct size. Note that these are just for
4677   // type consistency and will (likely) be eliminated in later phases.
4678   SDValue TruncLHS =
4679     DCI.DAG.getNode(ISD::TRUNCATE, DL, DemotedVT, LHS);
4680   SDValue TruncRHS =
4681     DCI.DAG.getNode(ISD::TRUNCATE, DL, DemotedVT, RHS);
4682 
4683   unsigned Opc;
4684   if (Signed) {
4685     Opc = NVPTXISD::MUL_WIDE_SIGNED;
4686   } else {
4687     Opc = NVPTXISD::MUL_WIDE_UNSIGNED;
4688   }
4689 
4690   return DCI.DAG.getNode(Opc, DL, MulType, TruncLHS, TruncRHS);
4691 }
4692 
4693 /// PerformMULCombine - Runs PTX-specific DAG combine patterns on MUL nodes.
4694 static SDValue PerformMULCombine(SDNode *N,
4695                                  TargetLowering::DAGCombinerInfo &DCI,
4696                                  CodeGenOpt::Level OptLevel) {
4697   if (OptLevel > 0) {
4698     // Try mul.wide combining at OptLevel > 0
4699     if (SDValue Ret = TryMULWIDECombine(N, DCI))
4700       return Ret;
4701   }
4702 
4703   return SDValue();
4704 }
4705 
4706 /// PerformSHLCombine - Runs PTX-specific DAG combine patterns on SHL nodes.
4707 static SDValue PerformSHLCombine(SDNode *N,
4708                                  TargetLowering::DAGCombinerInfo &DCI,
4709                                  CodeGenOpt::Level OptLevel) {
4710   if (OptLevel > 0) {
4711     // Try mul.wide combining at OptLevel > 0
4712     if (SDValue Ret = TryMULWIDECombine(N, DCI))
4713       return Ret;
4714   }
4715 
4716   return SDValue();
4717 }
4718 
4719 static SDValue PerformSETCCCombine(SDNode *N,
4720                                    TargetLowering::DAGCombinerInfo &DCI) {
4721   EVT CCType = N->getValueType(0);
4722   SDValue A = N->getOperand(0);
4723   SDValue B = N->getOperand(1);
4724 
4725   if (CCType != MVT::v2i1 || A.getValueType() != MVT::v2f16)
4726     return SDValue();
4727 
4728   SDLoc DL(N);
4729   // setp.f16x2 returns two scalar predicates, which we need to
4730   // convert back to v2i1. The returned result will be scalarized by
4731   // the legalizer, but the comparison will remain a single vector
4732   // instruction.
4733   SDValue CCNode = DCI.DAG.getNode(NVPTXISD::SETP_F16X2, DL,
4734                                    DCI.DAG.getVTList(MVT::i1, MVT::i1),
4735                                    {A, B, N->getOperand(2)});
4736   return DCI.DAG.getNode(ISD::BUILD_VECTOR, DL, CCType, CCNode.getValue(0),
4737                          CCNode.getValue(1));
4738 }
4739 
4740 SDValue NVPTXTargetLowering::PerformDAGCombine(SDNode *N,
4741                                                DAGCombinerInfo &DCI) const {
4742   CodeGenOpt::Level OptLevel = getTargetMachine().getOptLevel();
4743   switch (N->getOpcode()) {
4744     default: break;
4745     case ISD::ADD:
4746     case ISD::FADD:
4747       return PerformADDCombine(N, DCI, STI, OptLevel);
4748     case ISD::MUL:
4749       return PerformMULCombine(N, DCI, OptLevel);
4750     case ISD::SHL:
4751       return PerformSHLCombine(N, DCI, OptLevel);
4752     case ISD::AND:
4753       return PerformANDCombine(N, DCI);
4754     case ISD::UREM:
4755     case ISD::SREM:
4756       return PerformREMCombine(N, DCI, OptLevel);
4757     case ISD::SETCC:
4758       return PerformSETCCCombine(N, DCI);
4759   }
4760   return SDValue();
4761 }
4762 
4763 /// ReplaceVectorLoad - Convert vector loads into multi-output scalar loads.
4764 static void ReplaceLoadVector(SDNode *N, SelectionDAG &DAG,
4765                               SmallVectorImpl<SDValue> &Results) {
4766   EVT ResVT = N->getValueType(0);
4767   SDLoc DL(N);
4768 
4769   assert(ResVT.isVector() && "Vector load must have vector type");
4770 
4771   // We only handle "native" vector sizes for now, e.g. <4 x double> is not
4772   // legal.  We can (and should) split that into 2 loads of <2 x double> here
4773   // but I'm leaving that as a TODO for now.
4774   assert(ResVT.isSimple() && "Can only handle simple types");
4775   switch (ResVT.getSimpleVT().SimpleTy) {
4776   default:
4777     return;
4778   case MVT::v2i8:
4779   case MVT::v2i16:
4780   case MVT::v2i32:
4781   case MVT::v2i64:
4782   case MVT::v2f16:
4783   case MVT::v2f32:
4784   case MVT::v2f64:
4785   case MVT::v4i8:
4786   case MVT::v4i16:
4787   case MVT::v4i32:
4788   case MVT::v4f16:
4789   case MVT::v4f32:
4790   case MVT::v8f16: // <4 x f16x2>
4791     // This is a "native" vector type
4792     break;
4793   }
4794 
4795   LoadSDNode *LD = cast<LoadSDNode>(N);
4796 
4797   unsigned Align = LD->getAlignment();
4798   auto &TD = DAG.getDataLayout();
4799   unsigned PrefAlign =
4800       TD.getPrefTypeAlignment(ResVT.getTypeForEVT(*DAG.getContext()));
4801   if (Align < PrefAlign) {
4802     // This load is not sufficiently aligned, so bail out and let this vector
4803     // load be scalarized.  Note that we may still be able to emit smaller
4804     // vector loads.  For example, if we are loading a <4 x float> with an
4805     // alignment of 8, this check will fail but the legalizer will try again
4806     // with 2 x <2 x float>, which will succeed with an alignment of 8.
4807     return;
4808   }
4809 
4810   EVT EltVT = ResVT.getVectorElementType();
4811   unsigned NumElts = ResVT.getVectorNumElements();
4812 
4813   // Since LoadV2 is a target node, we cannot rely on DAG type legalization.
4814   // Therefore, we must ensure the type is legal.  For i1 and i8, we set the
4815   // loaded type to i16 and propagate the "real" type as the memory type.
4816   bool NeedTrunc = false;
4817   if (EltVT.getSizeInBits() < 16) {
4818     EltVT = MVT::i16;
4819     NeedTrunc = true;
4820   }
4821 
4822   unsigned Opcode = 0;
4823   SDVTList LdResVTs;
4824   bool LoadF16x2 = false;
4825 
4826   switch (NumElts) {
4827   default:
4828     return;
4829   case 2:
4830     Opcode = NVPTXISD::LoadV2;
4831     LdResVTs = DAG.getVTList(EltVT, EltVT, MVT::Other);
4832     break;
4833   case 4: {
4834     Opcode = NVPTXISD::LoadV4;
4835     EVT ListVTs[] = { EltVT, EltVT, EltVT, EltVT, MVT::Other };
4836     LdResVTs = DAG.getVTList(ListVTs);
4837     break;
4838   }
4839   case 8: {
4840     // v8f16 is a special case. PTX doesn't have ld.v8.f16
4841     // instruction. Instead, we split the vector into v2f16 chunks and
4842     // load them with ld.v4.b32.
4843     assert(EltVT == MVT::f16 && "Unsupported v8 vector type.");
4844     LoadF16x2 = true;
4845     Opcode = NVPTXISD::LoadV4;
4846     EVT ListVTs[] = {MVT::v2f16, MVT::v2f16, MVT::v2f16, MVT::v2f16,
4847                      MVT::Other};
4848     LdResVTs = DAG.getVTList(ListVTs);
4849     break;
4850   }
4851   }
4852 
4853   // Copy regular operands
4854   SmallVector<SDValue, 8> OtherOps(N->op_begin(), N->op_end());
4855 
4856   // The select routine does not have access to the LoadSDNode instance, so
4857   // pass along the extension information
4858   OtherOps.push_back(DAG.getIntPtrConstant(LD->getExtensionType(), DL));
4859 
4860   SDValue NewLD = DAG.getMemIntrinsicNode(Opcode, DL, LdResVTs, OtherOps,
4861                                           LD->getMemoryVT(),
4862                                           LD->getMemOperand());
4863 
4864   SmallVector<SDValue, 8> ScalarRes;
4865   if (LoadF16x2) {
4866     // Split v2f16 subvectors back into individual elements.
4867     NumElts /= 2;
4868     for (unsigned i = 0; i < NumElts; ++i) {
4869       SDValue SubVector = NewLD.getValue(i);
4870       SDValue E0 = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, DL, EltVT, SubVector,
4871                                DAG.getIntPtrConstant(0, DL));
4872       SDValue E1 = DAG.getNode(ISD::EXTRACT_VECTOR_ELT, DL, EltVT, SubVector,
4873                                DAG.getIntPtrConstant(1, DL));
4874       ScalarRes.push_back(E0);
4875       ScalarRes.push_back(E1);
4876     }
4877   } else {
4878     for (unsigned i = 0; i < NumElts; ++i) {
4879       SDValue Res = NewLD.getValue(i);
4880       if (NeedTrunc)
4881         Res = DAG.getNode(ISD::TRUNCATE, DL, ResVT.getVectorElementType(), Res);
4882       ScalarRes.push_back(Res);
4883     }
4884   }
4885 
4886   SDValue LoadChain = NewLD.getValue(NumElts);
4887 
4888   SDValue BuildVec = DAG.getBuildVector(ResVT, DL, ScalarRes);
4889 
4890   Results.push_back(BuildVec);
4891   Results.push_back(LoadChain);
4892 }
4893 
4894 static void ReplaceINTRINSIC_W_CHAIN(SDNode *N, SelectionDAG &DAG,
4895                                      SmallVectorImpl<SDValue> &Results) {
4896   SDValue Chain = N->getOperand(0);
4897   SDValue Intrin = N->getOperand(1);
4898   SDLoc DL(N);
4899 
4900   // Get the intrinsic ID
4901   unsigned IntrinNo = cast<ConstantSDNode>(Intrin.getNode())->getZExtValue();
4902   switch (IntrinNo) {
4903   default:
4904     return;
4905   case Intrinsic::nvvm_ldg_global_i:
4906   case Intrinsic::nvvm_ldg_global_f:
4907   case Intrinsic::nvvm_ldg_global_p:
4908   case Intrinsic::nvvm_ldu_global_i:
4909   case Intrinsic::nvvm_ldu_global_f:
4910   case Intrinsic::nvvm_ldu_global_p: {
4911     EVT ResVT = N->getValueType(0);
4912 
4913     if (ResVT.isVector()) {
4914       // Vector LDG/LDU
4915 
4916       unsigned NumElts = ResVT.getVectorNumElements();
4917       EVT EltVT = ResVT.getVectorElementType();
4918 
4919       // Since LDU/LDG are target nodes, we cannot rely on DAG type
4920       // legalization.
4921       // Therefore, we must ensure the type is legal.  For i1 and i8, we set the
4922       // loaded type to i16 and propagate the "real" type as the memory type.
4923       bool NeedTrunc = false;
4924       if (EltVT.getSizeInBits() < 16) {
4925         EltVT = MVT::i16;
4926         NeedTrunc = true;
4927       }
4928 
4929       unsigned Opcode = 0;
4930       SDVTList LdResVTs;
4931 
4932       switch (NumElts) {
4933       default:
4934         return;
4935       case 2:
4936         switch (IntrinNo) {
4937         default:
4938           return;
4939         case Intrinsic::nvvm_ldg_global_i:
4940         case Intrinsic::nvvm_ldg_global_f:
4941         case Intrinsic::nvvm_ldg_global_p:
4942           Opcode = NVPTXISD::LDGV2;
4943           break;
4944         case Intrinsic::nvvm_ldu_global_i:
4945         case Intrinsic::nvvm_ldu_global_f:
4946         case Intrinsic::nvvm_ldu_global_p:
4947           Opcode = NVPTXISD::LDUV2;
4948           break;
4949         }
4950         LdResVTs = DAG.getVTList(EltVT, EltVT, MVT::Other);
4951         break;
4952       case 4: {
4953         switch (IntrinNo) {
4954         default:
4955           return;
4956         case Intrinsic::nvvm_ldg_global_i:
4957         case Intrinsic::nvvm_ldg_global_f:
4958         case Intrinsic::nvvm_ldg_global_p:
4959           Opcode = NVPTXISD::LDGV4;
4960           break;
4961         case Intrinsic::nvvm_ldu_global_i:
4962         case Intrinsic::nvvm_ldu_global_f:
4963         case Intrinsic::nvvm_ldu_global_p:
4964           Opcode = NVPTXISD::LDUV4;
4965           break;
4966         }
4967         EVT ListVTs[] = { EltVT, EltVT, EltVT, EltVT, MVT::Other };
4968         LdResVTs = DAG.getVTList(ListVTs);
4969         break;
4970       }
4971       }
4972 
4973       SmallVector<SDValue, 8> OtherOps;
4974 
4975       // Copy regular operands
4976 
4977       OtherOps.push_back(Chain); // Chain
4978                                  // Skip operand 1 (intrinsic ID)
4979       // Others
4980       OtherOps.append(N->op_begin() + 2, N->op_end());
4981 
4982       MemIntrinsicSDNode *MemSD = cast<MemIntrinsicSDNode>(N);
4983 
4984       SDValue NewLD = DAG.getMemIntrinsicNode(Opcode, DL, LdResVTs, OtherOps,
4985                                               MemSD->getMemoryVT(),
4986                                               MemSD->getMemOperand());
4987 
4988       SmallVector<SDValue, 4> ScalarRes;
4989 
4990       for (unsigned i = 0; i < NumElts; ++i) {
4991         SDValue Res = NewLD.getValue(i);
4992         if (NeedTrunc)
4993           Res =
4994               DAG.getNode(ISD::TRUNCATE, DL, ResVT.getVectorElementType(), Res);
4995         ScalarRes.push_back(Res);
4996       }
4997 
4998       SDValue LoadChain = NewLD.getValue(NumElts);
4999 
5000       SDValue BuildVec =
5001           DAG.getBuildVector(ResVT, DL, ScalarRes);
5002 
5003       Results.push_back(BuildVec);
5004       Results.push_back(LoadChain);
5005     } else {
5006       // i8 LDG/LDU
5007       assert(ResVT.isSimple() && ResVT.getSimpleVT().SimpleTy == MVT::i8 &&
5008              "Custom handling of non-i8 ldu/ldg?");
5009 
5010       // Just copy all operands as-is
5011       SmallVector<SDValue, 4> Ops(N->op_begin(), N->op_end());
5012 
5013       // Force output to i16
5014       SDVTList LdResVTs = DAG.getVTList(MVT::i16, MVT::Other);
5015 
5016       MemIntrinsicSDNode *MemSD = cast<MemIntrinsicSDNode>(N);
5017 
5018       // We make sure the memory type is i8, which will be used during isel
5019       // to select the proper instruction.
5020       SDValue NewLD =
5021           DAG.getMemIntrinsicNode(ISD::INTRINSIC_W_CHAIN, DL, LdResVTs, Ops,
5022                                   MVT::i8, MemSD->getMemOperand());
5023 
5024       Results.push_back(DAG.getNode(ISD::TRUNCATE, DL, MVT::i8,
5025                                     NewLD.getValue(0)));
5026       Results.push_back(NewLD.getValue(1));
5027     }
5028   }
5029   }
5030 }
5031 
5032 void NVPTXTargetLowering::ReplaceNodeResults(
5033     SDNode *N, SmallVectorImpl<SDValue> &Results, SelectionDAG &DAG) const {
5034   switch (N->getOpcode()) {
5035   default:
5036     report_fatal_error("Unhandled custom legalization");
5037   case ISD::LOAD:
5038     ReplaceLoadVector(N, DAG, Results);
5039     return;
5040   case ISD::INTRINSIC_W_CHAIN:
5041     ReplaceINTRINSIC_W_CHAIN(N, DAG, Results);
5042     return;
5043   }
5044 }
5045 
5046 // Pin NVPTXTargetObjectFile's vtables to this file.
5047 NVPTXTargetObjectFile::~NVPTXTargetObjectFile() {}
5048 
5049 MCSection *NVPTXTargetObjectFile::SelectSectionForGlobal(
5050     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
5051   return getDataSection();
5052 }
5053