1//===-- AMDGPUInstructions.td - Common instruction defs ---*- tablegen -*-===//
2//
3// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4// See https://llvm.org/LICENSE.txt for license information.
5// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6//
7//===----------------------------------------------------------------------===//
8//
9// This file contains instruction defs that are common to all hw codegen
10// targets.
11//
12//===----------------------------------------------------------------------===//
13
14class AddressSpacesImpl {
15  int Flat = 0;
16  int Global = 1;
17  int Region = 2;
18  int Local = 3;
19  int Constant = 4;
20  int Private = 5;
21}
22
23def AddrSpaces : AddressSpacesImpl;
24
25
26class AMDGPUInst <dag outs, dag ins, string asm = "",
27  list<dag> pattern = []> : Instruction {
28  field bit isRegisterLoad = 0;
29  field bit isRegisterStore = 0;
30
31  let Namespace = "AMDGPU";
32  let OutOperandList = outs;
33  let InOperandList = ins;
34  let AsmString = asm;
35  let Pattern = pattern;
36  let Itinerary = NullALU;
37
38  // SoftFail is a field the disassembler can use to provide a way for
39  // instructions to not match without killing the whole decode process. It is
40  // mainly used for ARM, but Tablegen expects this field to exist or it fails
41  // to build the decode table.
42  field bits<64> SoftFail = 0;
43
44  let DecoderNamespace = Namespace;
45
46  let TSFlags{63} = isRegisterLoad;
47  let TSFlags{62} = isRegisterStore;
48}
49
50class AMDGPUShaderInst <dag outs, dag ins, string asm = "",
51  list<dag> pattern = []> : AMDGPUInst<outs, ins, asm, pattern> {
52
53  field bits<32> Inst = 0xffffffff;
54}
55
56//===---------------------------------------------------------------------===//
57// Return instruction
58//===---------------------------------------------------------------------===//
59
60class ILFormat<dag outs, dag ins, string asmstr, list<dag> pattern>
61: Instruction {
62
63     let Namespace = "AMDGPU";
64     dag OutOperandList = outs;
65     dag InOperandList = ins;
66     let Pattern = pattern;
67     let AsmString = !strconcat(asmstr, "\n");
68     let isPseudo = 1;
69     let Itinerary = NullALU;
70     bit hasIEEEFlag = 0;
71     bit hasZeroOpFlag = 0;
72     let mayLoad = 0;
73     let mayStore = 0;
74     let hasSideEffects = 0;
75     let isCodeGenOnly = 1;
76}
77
78def TruePredicate : Predicate<"">;
79
80// Add a predicate to the list if does not already exist to deduplicate it.
81class PredConcat<list<Predicate> lst, Predicate pred> {
82  list<Predicate> ret =
83    !foldl([pred], lst, acc, cur,
84           !listconcat(acc, !if(!eq(!cast<string>(cur),!cast<string>(pred)),
85                                [], [cur])));
86}
87
88class PredicateControl {
89  Predicate SubtargetPredicate = TruePredicate;
90  Predicate AssemblerPredicate = TruePredicate;
91  Predicate WaveSizePredicate = TruePredicate;
92  list<Predicate> OtherPredicates = [];
93  list<Predicate> Predicates = PredConcat<
94                                 PredConcat<PredConcat<OtherPredicates,
95                                                       SubtargetPredicate>.ret,
96                                            AssemblerPredicate>.ret,
97                                 WaveSizePredicate>.ret;
98}
99
100class AMDGPUPat<dag pattern, dag result> : Pat<pattern, result>,
101      PredicateControl;
102
103let RecomputePerFunction = 1 in {
104def FP16Denormals : Predicate<"MF->getInfo<SIMachineFunctionInfo>()->getMode().allFP64FP16Denormals()">;
105def FP32Denormals : Predicate<"MF->getInfo<SIMachineFunctionInfo>()->getMode().allFP32Denormals()">;
106def FP64Denormals : Predicate<"MF->getInfo<SIMachineFunctionInfo>()->getMode().allFP64FP16Denormals()">;
107def NoFP16Denormals : Predicate<"!MF->getInfo<SIMachineFunctionInfo>()->getMode().allFP64FP16Denormals()">;
108def NoFP32Denormals : Predicate<"!MF->getInfo<SIMachineFunctionInfo>()->getMode().allFP32Denormals()">;
109def NoFP64Denormals : Predicate<"!MF->getInfo<SIMachineFunctionInfo>()->getMode().allFP64FP16Denormals()">;
110def UnsafeFPMath : Predicate<"TM.Options.UnsafeFPMath">;
111}
112
113def FMA : Predicate<"Subtarget->hasFMA()">;
114
115def InstFlag : OperandWithDefaultOps <i32, (ops (i32 0))>;
116
117def u16ImmTarget : AsmOperandClass {
118  let Name = "U16Imm";
119  let RenderMethod = "addImmOperands";
120}
121
122def s16ImmTarget : AsmOperandClass {
123  let Name = "S16Imm";
124  let RenderMethod = "addImmOperands";
125}
126
127let OperandType = "OPERAND_IMMEDIATE" in {
128
129def u32imm : Operand<i32> {
130  let PrintMethod = "printU32ImmOperand";
131}
132
133def u16imm : Operand<i16> {
134  let PrintMethod = "printU16ImmOperand";
135  let ParserMatchClass = u16ImmTarget;
136}
137
138def s16imm : Operand<i16> {
139  let PrintMethod = "printU16ImmOperand";
140  let ParserMatchClass = s16ImmTarget;
141}
142
143def u8imm : Operand<i8> {
144  let PrintMethod = "printU8ImmOperand";
145}
146
147} // End OperandType = "OPERAND_IMMEDIATE"
148
149//===--------------------------------------------------------------------===//
150// Custom Operands
151//===--------------------------------------------------------------------===//
152def brtarget   : Operand<OtherVT>;
153
154//===----------------------------------------------------------------------===//
155// Misc. PatFrags
156//===----------------------------------------------------------------------===//
157
158class HasOneUseUnaryOp<SDPatternOperator op> : PatFrag<
159  (ops node:$src0),
160  (op $src0),
161  [{ return N->hasOneUse(); }]> {
162
163  let GISelPredicateCode = [{
164    return MRI.hasOneNonDBGUse(MI.getOperand(0).getReg());
165  }];
166}
167
168class HasOneUseBinOp<SDPatternOperator op> : PatFrag<
169  (ops node:$src0, node:$src1),
170  (op $src0, $src1),
171  [{ return N->hasOneUse(); }]> {
172  let GISelPredicateCode = [{
173    return MRI.hasOneNonDBGUse(MI.getOperand(0).getReg());
174  }];
175}
176
177class HasOneUseTernaryOp<SDPatternOperator op> : PatFrag<
178  (ops node:$src0, node:$src1, node:$src2),
179  (op $src0, $src1, $src2),
180  [{ return N->hasOneUse(); }]> {
181  let GISelPredicateCode = [{
182    return MRI.hasOneNonDBGUse(MI.getOperand(0).getReg());
183  }];
184}
185
186let Properties = [SDNPCommutative, SDNPAssociative] in {
187def smax_oneuse : HasOneUseBinOp<smax>;
188def smin_oneuse : HasOneUseBinOp<smin>;
189def umax_oneuse : HasOneUseBinOp<umax>;
190def umin_oneuse : HasOneUseBinOp<umin>;
191
192def fminnum_oneuse : HasOneUseBinOp<fminnum>;
193def fmaxnum_oneuse : HasOneUseBinOp<fmaxnum>;
194
195def fminnum_ieee_oneuse : HasOneUseBinOp<fminnum_ieee>;
196def fmaxnum_ieee_oneuse : HasOneUseBinOp<fmaxnum_ieee>;
197
198
199def and_oneuse : HasOneUseBinOp<and>;
200def or_oneuse : HasOneUseBinOp<or>;
201def xor_oneuse : HasOneUseBinOp<xor>;
202} // Properties = [SDNPCommutative, SDNPAssociative]
203
204def not_oneuse : HasOneUseUnaryOp<not>;
205
206def add_oneuse : HasOneUseBinOp<add>;
207def sub_oneuse : HasOneUseBinOp<sub>;
208
209def srl_oneuse : HasOneUseBinOp<srl>;
210def shl_oneuse : HasOneUseBinOp<shl>;
211
212def select_oneuse : HasOneUseTernaryOp<select>;
213
214def AMDGPUmul_u24_oneuse : HasOneUseBinOp<AMDGPUmul_u24>;
215def AMDGPUmul_i24_oneuse : HasOneUseBinOp<AMDGPUmul_i24>;
216
217def srl_16 : PatFrag<
218  (ops node:$src0), (srl_oneuse node:$src0, (i32 16))
219>;
220
221
222def hi_i16_elt : PatFrag<
223  (ops node:$src0), (i16 (trunc (i32 (srl_16 node:$src0))))
224>;
225
226
227def hi_f16_elt : PatLeaf<
228  (vt), [{
229  if (N->getOpcode() != ISD::BITCAST)
230    return false;
231  SDValue Tmp = N->getOperand(0);
232
233  if (Tmp.getOpcode() != ISD::SRL)
234    return false;
235    if (const auto *RHS = dyn_cast<ConstantSDNode>(Tmp.getOperand(1))
236      return RHS->getZExtValue() == 16;
237    return false;
238}]>;
239
240//===----------------------------------------------------------------------===//
241// PatLeafs for floating-point comparisons
242//===----------------------------------------------------------------------===//
243
244def COND_OEQ : PatFrags<(ops), [(OtherVT SETOEQ), (OtherVT SETEQ)]>;
245def COND_ONE : PatFrags<(ops), [(OtherVT SETONE), (OtherVT SETNE)]>;
246def COND_OGT : PatFrags<(ops), [(OtherVT SETOGT), (OtherVT SETGT)]>;
247def COND_OGE : PatFrags<(ops), [(OtherVT SETOGE), (OtherVT SETGE)]>;
248def COND_OLT : PatFrags<(ops), [(OtherVT SETOLT), (OtherVT SETLT)]>;
249def COND_OLE : PatFrags<(ops), [(OtherVT SETOLE), (OtherVT SETLE)]>;
250def COND_O   : PatFrags<(ops), [(OtherVT SETO)]>;
251def COND_UO  : PatFrags<(ops), [(OtherVT SETUO)]>;
252
253//===----------------------------------------------------------------------===//
254// PatLeafs for unsigned / unordered comparisons
255//===----------------------------------------------------------------------===//
256
257def COND_UEQ : PatFrag<(ops), (OtherVT SETUEQ)>;
258def COND_UNE : PatFrag<(ops), (OtherVT SETUNE)>;
259def COND_UGT : PatFrag<(ops), (OtherVT SETUGT)>;
260def COND_UGE : PatFrag<(ops), (OtherVT SETUGE)>;
261def COND_ULT : PatFrag<(ops), (OtherVT SETULT)>;
262def COND_ULE : PatFrag<(ops), (OtherVT SETULE)>;
263
264// XXX - For some reason R600 version is preferring to use unordered
265// for setne?
266def COND_UNE_NE  : PatFrags<(ops), [(OtherVT SETUNE), (OtherVT SETNE)]>;
267
268//===----------------------------------------------------------------------===//
269// PatLeafs for signed comparisons
270//===----------------------------------------------------------------------===//
271
272def COND_SGT : PatFrag<(ops), (OtherVT SETGT)>;
273def COND_SGE : PatFrag<(ops), (OtherVT SETGE)>;
274def COND_SLT : PatFrag<(ops), (OtherVT SETLT)>;
275def COND_SLE : PatFrag<(ops), (OtherVT SETLE)>;
276
277//===----------------------------------------------------------------------===//
278// PatLeafs for integer equality
279//===----------------------------------------------------------------------===//
280
281def COND_EQ : PatFrags<(ops), [(OtherVT SETEQ), (OtherVT SETUEQ)]>;
282def COND_NE : PatFrags<(ops), [(OtherVT SETNE), (OtherVT SETUNE)]>;
283
284// FIXME: Should not need code predicate
285//def COND_NULL : PatLeaf<(OtherVT null_frag)>;
286def COND_NULL : PatLeaf <
287  (cond),
288  [{(void)N; return false;}]
289>;
290
291//===----------------------------------------------------------------------===//
292// PatLeafs for Texture Constants
293//===----------------------------------------------------------------------===//
294
295def TEX_ARRAY : PatLeaf<
296  (imm),
297  [{uint32_t TType = (uint32_t)N->getZExtValue();
298    return TType == 9 || TType == 10 || TType == 16;
299  }]
300>;
301
302def TEX_RECT : PatLeaf<
303  (imm),
304  [{uint32_t TType = (uint32_t)N->getZExtValue();
305    return TType == 5;
306  }]
307>;
308
309def TEX_SHADOW : PatLeaf<
310  (imm),
311  [{uint32_t TType = (uint32_t)N->getZExtValue();
312    return (TType >= 6 && TType <= 8) || TType == 13;
313  }]
314>;
315
316def TEX_SHADOW_ARRAY : PatLeaf<
317  (imm),
318  [{uint32_t TType = (uint32_t)N->getZExtValue();
319    return TType == 11 || TType == 12 || TType == 17;
320  }]
321>;
322
323//===----------------------------------------------------------------------===//
324// Load/Store Pattern Fragments
325//===----------------------------------------------------------------------===//
326
327def atomic_cmp_swap_glue : SDNode <"ISD::ATOMIC_CMP_SWAP", SDTAtomic3,
328  [SDNPHasChain, SDNPMayStore, SDNPMayLoad, SDNPMemOperand, SDNPInGlue]
329>;
330
331class AddressSpaceList<list<int> AS> {
332  list<int> AddrSpaces = AS;
333}
334
335class Aligned<int Bytes> {
336  int MinAlignment = Bytes;
337}
338
339class StoreHi16<SDPatternOperator op> : PatFrag <
340  (ops node:$value, node:$ptr), (op (srl node:$value, (i32 16)), node:$ptr)> {
341  let IsStore = 1;
342}
343
344def LoadAddress_constant : AddressSpaceList<[  AddrSpaces.Constant ]>;
345def LoadAddress_global : AddressSpaceList<[  AddrSpaces.Global, AddrSpaces.Constant ]>;
346def StoreAddress_global : AddressSpaceList<[ AddrSpaces.Global ]>;
347
348def LoadAddress_flat : AddressSpaceList<[  AddrSpaces.Flat,
349                                           AddrSpaces.Global,
350                                           AddrSpaces.Constant ]>;
351def StoreAddress_flat : AddressSpaceList<[ AddrSpaces.Flat, AddrSpaces.Global ]>;
352
353def LoadAddress_private : AddressSpaceList<[ AddrSpaces.Private ]>;
354def StoreAddress_private : AddressSpaceList<[ AddrSpaces.Private ]>;
355
356def LoadAddress_local : AddressSpaceList<[ AddrSpaces.Local ]>;
357def StoreAddress_local : AddressSpaceList<[ AddrSpaces.Local ]>;
358
359def LoadAddress_region : AddressSpaceList<[ AddrSpaces.Region ]>;
360def StoreAddress_region : AddressSpaceList<[ AddrSpaces.Region ]>;
361
362
363
364foreach as = [ "global", "flat", "constant", "local", "private", "region" ] in {
365let AddressSpaces = !cast<AddressSpaceList>("LoadAddress_"#as).AddrSpaces in {
366
367def load_#as : PatFrag<(ops node:$ptr), (unindexedload node:$ptr)> {
368  let IsLoad = 1;
369  let IsNonExtLoad = 1;
370}
371
372def extloadi8_#as  : PatFrag<(ops node:$ptr), (extload node:$ptr)> {
373  let IsLoad = 1;
374  let MemoryVT = i8;
375}
376
377def extloadi16_#as : PatFrag<(ops node:$ptr), (extload node:$ptr)> {
378  let IsLoad = 1;
379  let MemoryVT = i16;
380}
381
382def sextloadi8_#as  : PatFrag<(ops node:$ptr), (sextload node:$ptr)> {
383  let IsLoad = 1;
384  let MemoryVT = i8;
385}
386
387def sextloadi16_#as : PatFrag<(ops node:$ptr), (sextload node:$ptr)> {
388  let IsLoad = 1;
389  let MemoryVT = i16;
390}
391
392def zextloadi8_#as  : PatFrag<(ops node:$ptr), (zextload node:$ptr)> {
393  let IsLoad = 1;
394  let MemoryVT = i8;
395}
396
397def zextloadi16_#as : PatFrag<(ops node:$ptr), (zextload node:$ptr)> {
398  let IsLoad = 1;
399  let MemoryVT = i16;
400}
401
402def atomic_load_32_#as : PatFrag<(ops node:$ptr), (atomic_load_32 node:$ptr)> {
403  let IsAtomic = 1;
404  let MemoryVT = i32;
405}
406
407def atomic_load_64_#as : PatFrag<(ops node:$ptr), (atomic_load_64 node:$ptr)> {
408  let IsAtomic = 1;
409  let MemoryVT = i64;
410}
411} // End let AddressSpaces
412} // End foreach as
413
414
415foreach as = [ "global", "flat", "local", "private", "region" ] in {
416let AddressSpaces = !cast<AddressSpaceList>("StoreAddress_"#as).AddrSpaces in {
417def store_#as : PatFrag<(ops node:$val, node:$ptr),
418                    (unindexedstore node:$val, node:$ptr)> {
419  let IsStore = 1;
420  let IsTruncStore = 0;
421}
422
423// truncstore fragments.
424def truncstore_#as : PatFrag<(ops node:$val, node:$ptr),
425                             (unindexedstore node:$val, node:$ptr)> {
426  let IsStore = 1;
427  let IsTruncStore = 1;
428}
429
430// TODO: We don't really need the truncstore here. We can use
431// unindexedstore with MemoryVT directly, which will save an
432// unnecessary check that the memory size is less than the value type
433// in the generated matcher table.
434def truncstorei8_#as : PatFrag<(ops node:$val, node:$ptr),
435                               (truncstore node:$val, node:$ptr)> {
436  let IsStore = 1;
437  let MemoryVT = i8;
438}
439
440def truncstorei16_#as : PatFrag<(ops node:$val, node:$ptr),
441                                (truncstore node:$val, node:$ptr)> {
442  let IsStore = 1;
443  let MemoryVT = i16;
444}
445
446def store_hi16_#as : StoreHi16 <truncstorei16>;
447def truncstorei8_hi16_#as : StoreHi16<truncstorei8>;
448def truncstorei16_hi16_#as : StoreHi16<truncstorei16>;
449
450defm atomic_store_#as : binary_atomic_op<atomic_store>;
451
452} // End let AddressSpaces
453} // End foreach as
454
455
456multiclass ret_noret_binary_atomic_op<SDNode atomic_op, bit IsInt = 1> {
457  foreach as = [ "global", "flat", "constant", "local", "private", "region" ] in {
458    let AddressSpaces = !cast<AddressSpaceList>("LoadAddress_"#as).AddrSpaces in {
459      defm "_"#as : binary_atomic_op<atomic_op, IsInt>;
460
461      let PredicateCode = [{return (SDValue(N, 0).use_empty());}] in {
462        defm "_"#as#"_noret" : binary_atomic_op<atomic_op, IsInt>;
463      }
464
465      let PredicateCode = [{return !(SDValue(N, 0).use_empty());}] in {
466        defm "_"#as#"_ret" : binary_atomic_op<atomic_op, IsInt>;
467      }
468    }
469  }
470}
471
472defm atomic_swap : ret_noret_binary_atomic_op<atomic_swap>;
473defm atomic_load_add : ret_noret_binary_atomic_op<atomic_load_add>;
474defm atomic_load_and : ret_noret_binary_atomic_op<atomic_load_and>;
475defm atomic_load_max : ret_noret_binary_atomic_op<atomic_load_max>;
476defm atomic_load_min : ret_noret_binary_atomic_op<atomic_load_min>;
477defm atomic_load_or : ret_noret_binary_atomic_op<atomic_load_or>;
478defm atomic_load_sub : ret_noret_binary_atomic_op<atomic_load_sub>;
479defm atomic_load_umax : ret_noret_binary_atomic_op<atomic_load_umax>;
480defm atomic_load_umin : ret_noret_binary_atomic_op<atomic_load_umin>;
481defm atomic_load_xor : ret_noret_binary_atomic_op<atomic_load_xor>;
482defm atomic_load_fadd : ret_noret_binary_atomic_op<atomic_load_fadd, 0>;
483defm AMDGPUatomic_cmp_swap : ret_noret_binary_atomic_op<AMDGPUatomic_cmp_swap>;
484
485
486def load_align8_local : PatFrag <(ops node:$ptr), (load_local node:$ptr)> {
487  let IsLoad = 1;
488  let IsNonExtLoad = 1;
489  let MinAlignment = 8;
490}
491
492def load_align16_local : PatFrag <(ops node:$ptr), (load_local node:$ptr)> {
493  let IsLoad = 1;
494  let IsNonExtLoad = 1;
495  let MinAlignment = 16;
496}
497
498def store_align8_local: PatFrag<(ops node:$val, node:$ptr),
499                                (store_local node:$val, node:$ptr)>, Aligned<8> {
500  let IsStore = 1;
501  let IsTruncStore = 0;
502}
503
504def store_align16_local: PatFrag<(ops node:$val, node:$ptr),
505                                (store_local node:$val, node:$ptr)>, Aligned<16> {
506  let IsStore = 1;
507  let IsTruncStore = 0;
508}
509
510let AddressSpaces = StoreAddress_local.AddrSpaces in {
511defm atomic_cmp_swap_local : ternary_atomic_op<atomic_cmp_swap>;
512defm atomic_cmp_swap_local_m0 : ternary_atomic_op<atomic_cmp_swap_glue>;
513}
514
515let AddressSpaces = StoreAddress_region.AddrSpaces in {
516defm atomic_cmp_swap_region : ternary_atomic_op<atomic_cmp_swap>;
517defm atomic_cmp_swap_region_m0 : ternary_atomic_op<atomic_cmp_swap_glue>;
518}
519
520//===----------------------------------------------------------------------===//
521// Misc Pattern Fragments
522//===----------------------------------------------------------------------===//
523
524class Constants {
525int TWO_PI = 0x40c90fdb;
526int PI = 0x40490fdb;
527int TWO_PI_INV = 0x3e22f983;
528int FP_UINT_MAX_PLUS_1 = 0x4f800000;    // 1 << 32 in floating point encoding
529int FP16_ONE = 0x3C00;
530int FP16_NEG_ONE = 0xBC00;
531int FP32_ONE = 0x3f800000;
532int FP32_NEG_ONE = 0xbf800000;
533int FP64_ONE = 0x3ff0000000000000;
534int FP64_NEG_ONE = 0xbff0000000000000;
535}
536def CONST : Constants;
537
538def FP_ZERO : PatLeaf <
539  (fpimm),
540  [{return N->getValueAPF().isZero();}]
541>;
542
543def FP_ONE : PatLeaf <
544  (fpimm),
545  [{return N->isExactlyValue(1.0);}]
546>;
547
548def FP_HALF : PatLeaf <
549  (fpimm),
550  [{return N->isExactlyValue(0.5);}]
551>;
552
553/* Generic helper patterns for intrinsics */
554/* -------------------------------------- */
555
556class POW_Common <AMDGPUInst log_ieee, AMDGPUInst exp_ieee, AMDGPUInst mul>
557  : AMDGPUPat <
558  (fpow f32:$src0, f32:$src1),
559  (exp_ieee (mul f32:$src1, (log_ieee f32:$src0)))
560>;
561
562/* Other helper patterns */
563/* --------------------- */
564
565/* Extract element pattern */
566class Extract_Element <ValueType sub_type, ValueType vec_type, int sub_idx,
567                       SubRegIndex sub_reg>
568  : AMDGPUPat<
569  (sub_type (extractelt vec_type:$src, sub_idx)),
570  (EXTRACT_SUBREG $src, sub_reg)
571>;
572
573/* Insert element pattern */
574class Insert_Element <ValueType elem_type, ValueType vec_type,
575                      int sub_idx, SubRegIndex sub_reg>
576  : AMDGPUPat <
577  (insertelt vec_type:$vec, elem_type:$elem, sub_idx),
578  (INSERT_SUBREG $vec, $elem, sub_reg)
579>;
580
581// XXX: Convert to new syntax and use COPY_TO_REG, once the DFAPacketizer
582// can handle COPY instructions.
583// bitconvert pattern
584class BitConvert <ValueType dt, ValueType st, RegisterClass rc> : AMDGPUPat <
585  (dt (bitconvert (st rc:$src0))),
586  (dt rc:$src0)
587>;
588
589// XXX: Convert to new syntax and use COPY_TO_REG, once the DFAPacketizer
590// can handle COPY instructions.
591class DwordAddrPat<ValueType vt, RegisterClass rc> : AMDGPUPat <
592  (vt (AMDGPUdwordaddr (vt rc:$addr))),
593  (vt rc:$addr)
594>;
595
596// BFI_INT patterns
597
598multiclass BFIPatterns <Instruction BFI_INT,
599                        Instruction LoadImm32,
600                        RegisterClass RC64> {
601  // Definition from ISA doc:
602  // (y & x) | (z & ~x)
603  def : AMDGPUPat <
604    (or (and i32:$y, i32:$x), (and i32:$z, (not i32:$x))),
605    (BFI_INT $x, $y, $z)
606  >;
607
608  // 64-bit version
609  def : AMDGPUPat <
610    (or (and i64:$y, i64:$x), (and i64:$z, (not i64:$x))),
611    (REG_SEQUENCE RC64,
612      (BFI_INT (i32 (EXTRACT_SUBREG RC64:$x, sub0)),
613               (i32 (EXTRACT_SUBREG RC64:$y, sub0)),
614               (i32 (EXTRACT_SUBREG RC64:$z, sub0))), sub0,
615      (BFI_INT (i32 (EXTRACT_SUBREG RC64:$x, sub1)),
616               (i32 (EXTRACT_SUBREG RC64:$y, sub1)),
617               (i32 (EXTRACT_SUBREG RC64:$z, sub1))), sub1)
618  >;
619
620  // SHA-256 Ch function
621  // z ^ (x & (y ^ z))
622  def : AMDGPUPat <
623    (xor i32:$z, (and i32:$x, (xor i32:$y, i32:$z))),
624    (BFI_INT $x, $y, $z)
625  >;
626
627  // 64-bit version
628  def : AMDGPUPat <
629    (xor i64:$z, (and i64:$x, (xor i64:$y, i64:$z))),
630    (REG_SEQUENCE RC64,
631      (BFI_INT (i32 (EXTRACT_SUBREG RC64:$x, sub0)),
632               (i32 (EXTRACT_SUBREG RC64:$y, sub0)),
633               (i32 (EXTRACT_SUBREG RC64:$z, sub0))), sub0,
634      (BFI_INT (i32 (EXTRACT_SUBREG RC64:$x, sub1)),
635               (i32 (EXTRACT_SUBREG RC64:$y, sub1)),
636               (i32 (EXTRACT_SUBREG RC64:$z, sub1))), sub1)
637  >;
638
639  def : AMDGPUPat <
640    (fcopysign f32:$src0, f32:$src1),
641    (BFI_INT (LoadImm32 (i32 0x7fffffff)), $src0, $src1)
642  >;
643
644  def : AMDGPUPat <
645    (f32 (fcopysign f32:$src0, f64:$src1)),
646    (BFI_INT (LoadImm32 (i32 0x7fffffff)), $src0,
647             (i32 (EXTRACT_SUBREG RC64:$src1, sub1)))
648  >;
649
650  def : AMDGPUPat <
651    (f64 (fcopysign f64:$src0, f64:$src1)),
652    (REG_SEQUENCE RC64,
653      (i32 (EXTRACT_SUBREG $src0, sub0)), sub0,
654      (BFI_INT (LoadImm32 (i32 0x7fffffff)),
655               (i32 (EXTRACT_SUBREG RC64:$src0, sub1)),
656               (i32 (EXTRACT_SUBREG RC64:$src1, sub1))), sub1)
657  >;
658
659  def : AMDGPUPat <
660    (f64 (fcopysign f64:$src0, f32:$src1)),
661    (REG_SEQUENCE RC64,
662      (i32 (EXTRACT_SUBREG $src0, sub0)), sub0,
663      (BFI_INT (LoadImm32 (i32 0x7fffffff)),
664               (i32 (EXTRACT_SUBREG RC64:$src0, sub1)),
665               $src1), sub1)
666  >;
667}
668
669// SHA-256 Ma patterns
670
671// ((x & z) | (y & (x | z))) -> BFI_INT (XOR x, y), z, y
672multiclass SHA256MaPattern <Instruction BFI_INT, Instruction XOR, RegisterClass RC64> {
673  def : AMDGPUPat <
674    (or (and i32:$x, i32:$z), (and i32:$y, (or i32:$x, i32:$z))),
675    (BFI_INT (XOR i32:$x, i32:$y), i32:$z, i32:$y)
676  >;
677
678  def : AMDGPUPat <
679    (or (and i64:$x, i64:$z), (and i64:$y, (or i64:$x, i64:$z))),
680    (REG_SEQUENCE RC64,
681      (BFI_INT (XOR (i32 (EXTRACT_SUBREG RC64:$x, sub0)),
682                    (i32 (EXTRACT_SUBREG RC64:$y, sub0))),
683               (i32 (EXTRACT_SUBREG RC64:$z, sub0)),
684               (i32 (EXTRACT_SUBREG RC64:$y, sub0))), sub0,
685      (BFI_INT (XOR (i32 (EXTRACT_SUBREG RC64:$x, sub1)),
686                    (i32 (EXTRACT_SUBREG RC64:$y, sub1))),
687               (i32 (EXTRACT_SUBREG RC64:$z, sub1)),
688               (i32 (EXTRACT_SUBREG RC64:$y, sub1))), sub1)
689  >;
690}
691
692// Bitfield extract patterns
693
694def IMMZeroBasedBitfieldMask : ImmLeaf <i32, [{
695  return isMask_32(Imm);
696}]>;
697
698def IMMPopCount : SDNodeXForm<imm, [{
699  return CurDAG->getTargetConstant(countPopulation(N->getZExtValue()), SDLoc(N),
700                                   MVT::i32);
701}]>;
702
703multiclass BFEPattern <Instruction UBFE, Instruction SBFE, Instruction MOV> {
704  def : AMDGPUPat <
705    (i32 (and (i32 (srl i32:$src, i32:$rshift)), IMMZeroBasedBitfieldMask:$mask)),
706    (UBFE $src, $rshift, (MOV (i32 (IMMPopCount $mask))))
707  >;
708
709  // x & ((1 << y) - 1)
710  def : AMDGPUPat <
711    (and i32:$src, (add_oneuse (shl_oneuse 1, i32:$width), -1)),
712    (UBFE $src, (MOV (i32 0)), $width)
713  >;
714
715  // x & ~(-1 << y)
716  def : AMDGPUPat <
717    (and i32:$src, (xor_oneuse (shl_oneuse -1, i32:$width), -1)),
718    (UBFE $src, (MOV (i32 0)), $width)
719  >;
720
721  // x & (-1 >> (bitwidth - y))
722  def : AMDGPUPat <
723    (and i32:$src, (srl_oneuse -1, (sub 32, i32:$width))),
724    (UBFE $src, (MOV (i32 0)), $width)
725  >;
726
727  // x << (bitwidth - y) >> (bitwidth - y)
728  def : AMDGPUPat <
729    (srl (shl_oneuse i32:$src, (sub 32, i32:$width)), (sub 32, i32:$width)),
730    (UBFE $src, (MOV (i32 0)), $width)
731  >;
732
733  def : AMDGPUPat <
734    (sra (shl_oneuse i32:$src, (sub 32, i32:$width)), (sub 32, i32:$width)),
735    (SBFE $src, (MOV (i32 0)), $width)
736  >;
737}
738
739// fshr pattern
740class FSHRPattern <Instruction BIT_ALIGN> : AMDGPUPat <
741  (fshr i32:$src0, i32:$src1, i32:$src2),
742  (BIT_ALIGN $src0, $src1, $src2)
743>;
744
745// rotr pattern
746class ROTRPattern <Instruction BIT_ALIGN> : AMDGPUPat <
747  (rotr i32:$src0, i32:$src1),
748  (BIT_ALIGN $src0, $src0, $src1)
749>;
750
751// Special conversion patterns
752
753def cvt_rpi_i32_f32 : PatFrag <
754  (ops node:$src),
755  (fp_to_sint (ffloor (fadd $src, FP_HALF))),
756  [{ (void) N; return TM.Options.NoNaNsFPMath; }]
757>;
758
759def cvt_flr_i32_f32 : PatFrag <
760  (ops node:$src),
761  (fp_to_sint (ffloor $src)),
762  [{ (void)N; return TM.Options.NoNaNsFPMath; }]
763>;
764
765let AddedComplexity = 2 in {
766class IMad24Pat<Instruction Inst, bit HasClamp = 0> : AMDGPUPat <
767  (add (AMDGPUmul_i24 i32:$src0, i32:$src1), i32:$src2),
768  !if(HasClamp, (Inst $src0, $src1, $src2, (i1 0)),
769                (Inst $src0, $src1, $src2))
770>;
771
772class UMad24Pat<Instruction Inst, bit HasClamp = 0> : AMDGPUPat <
773  (add (AMDGPUmul_u24 i32:$src0, i32:$src1), i32:$src2),
774  !if(HasClamp, (Inst $src0, $src1, $src2, (i1 0)),
775                (Inst $src0, $src1, $src2))
776>;
777} // AddedComplexity.
778
779class RcpPat<Instruction RcpInst, ValueType vt> : AMDGPUPat <
780  (fdiv FP_ONE, vt:$src),
781  (RcpInst $src)
782>;
783
784class RsqPat<Instruction RsqInst, ValueType vt> : AMDGPUPat <
785  (AMDGPUrcp (fsqrt vt:$src)),
786  (RsqInst $src)
787>;
788
789// Instructions which select to the same v_min_f*
790def fminnum_like : PatFrags<(ops node:$src0, node:$src1),
791  [(fminnum_ieee node:$src0, node:$src1),
792   (fminnum node:$src0, node:$src1)]
793>;
794
795// Instructions which select to the same v_max_f*
796def fmaxnum_like : PatFrags<(ops node:$src0, node:$src1),
797  [(fmaxnum_ieee node:$src0, node:$src1),
798   (fmaxnum node:$src0, node:$src1)]
799>;
800
801def fminnum_like_oneuse : PatFrags<(ops node:$src0, node:$src1),
802  [(fminnum_ieee_oneuse node:$src0, node:$src1),
803   (fminnum_oneuse node:$src0, node:$src1)]
804>;
805
806def fmaxnum_like_oneuse : PatFrags<(ops node:$src0, node:$src1),
807  [(fmaxnum_ieee_oneuse node:$src0, node:$src1),
808   (fmaxnum_oneuse node:$src0, node:$src1)]
809>;
810
811def any_fmad : PatFrags<(ops node:$src0, node:$src1, node:$src2),
812  [(fmad node:$src0, node:$src1, node:$src2),
813   (AMDGPUfmad_ftz node:$src0, node:$src1, node:$src2)]
814>;
815