1//===-- SIInstructions.td - SI Instruction Definitions --------------------===//
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// This file was originally auto-generated from a GPU register header file and
9// all the instruction definitions were originally commented out.  Instructions
10// that are not yet supported remain commented out.
11//===----------------------------------------------------------------------===//
12
13class GCNPat<dag pattern, dag result> : Pat<pattern, result>, GCNPredicateControl {
14
15}
16
17include "SOPInstructions.td"
18include "VOPInstructions.td"
19include "SMInstructions.td"
20include "FLATInstructions.td"
21include "BUFInstructions.td"
22include "EXPInstructions.td"
23
24//===----------------------------------------------------------------------===//
25// VINTRP Instructions
26//===----------------------------------------------------------------------===//
27
28// Used to inject printing of "_e32" suffix for VI (there are "_e64" variants for VI)
29def VINTRPDst : VINTRPDstOperand <VGPR_32>;
30
31let Uses = [MODE, M0, EXEC] in {
32
33// FIXME: Specify SchedRW for VINTRP instructions.
34
35multiclass V_INTERP_P1_F32_m : VINTRP_m <
36  0x00000000,
37  (outs VINTRPDst:$vdst),
38  (ins VGPR_32:$vsrc, Attr:$attr, AttrChan:$attrchan),
39  "v_interp_p1_f32$vdst, $vsrc, $attr$attrchan",
40  [(set f32:$vdst, (int_amdgcn_interp_p1 f32:$vsrc,
41                   (i32 timm:$attrchan), (i32 timm:$attr), M0))]
42>;
43
44let OtherPredicates = [has32BankLDS, isNotGFX90APlus] in {
45
46defm V_INTERP_P1_F32 : V_INTERP_P1_F32_m;
47
48} // End OtherPredicates = [has32BankLDS, isNotGFX90APlus]
49
50let OtherPredicates = [has16BankLDS, isNotGFX90APlus],
51    Constraints = "@earlyclobber $vdst", isAsmParserOnly=1 in {
52
53defm V_INTERP_P1_F32_16bank : V_INTERP_P1_F32_m;
54
55} // End OtherPredicates = [has32BankLDS, isNotGFX90APlus],
56  //     Constraints = "@earlyclobber $vdst", isAsmParserOnly=1
57
58let OtherPredicates = [isNotGFX90APlus] in {
59let DisableEncoding = "$src0", Constraints = "$src0 = $vdst" in {
60
61defm V_INTERP_P2_F32 : VINTRP_m <
62  0x00000001,
63  (outs VINTRPDst:$vdst),
64  (ins VGPR_32:$src0, VGPR_32:$vsrc, Attr:$attr, AttrChan:$attrchan),
65  "v_interp_p2_f32$vdst, $vsrc, $attr$attrchan",
66  [(set f32:$vdst, (int_amdgcn_interp_p2 f32:$src0, f32:$vsrc,
67                   (i32 timm:$attrchan), (i32 timm:$attr), M0))]>;
68
69} // End DisableEncoding = "$src0", Constraints = "$src0 = $vdst"
70
71defm V_INTERP_MOV_F32 : VINTRP_m <
72  0x00000002,
73  (outs VINTRPDst:$vdst),
74  (ins InterpSlot:$vsrc, Attr:$attr, AttrChan:$attrchan),
75  "v_interp_mov_f32$vdst, $vsrc, $attr$attrchan",
76  [(set f32:$vdst, (int_amdgcn_interp_mov (i32 timm:$vsrc),
77                   (i32 timm:$attrchan), (i32 timm:$attr), M0))]>;
78
79} // End OtherPredicates = [isNotGFX90APlus]
80
81} // End Uses = [MODE, M0, EXEC]
82
83//===----------------------------------------------------------------------===//
84// Pseudo Instructions
85//===----------------------------------------------------------------------===//
86def ATOMIC_FENCE : SPseudoInstSI<
87  (outs), (ins i32imm:$ordering, i32imm:$scope),
88  [(atomic_fence (i32 timm:$ordering), (i32 timm:$scope))],
89  "ATOMIC_FENCE $ordering, $scope"> {
90  let hasSideEffects = 1;
91  let maybeAtomic = 1;
92}
93
94let hasSideEffects = 0, mayLoad = 0, mayStore = 0, Uses = [EXEC] in {
95
96// For use in patterns
97def V_CNDMASK_B64_PSEUDO : VOP3Common <(outs VReg_64:$vdst),
98  (ins VSrc_b64:$src0, VSrc_b64:$src1, SSrc_b64:$src2), "", []> {
99  let isPseudo = 1;
100  let isCodeGenOnly = 1;
101  let usesCustomInserter = 1;
102}
103
104// 64-bit vector move instruction. This is mainly used by the
105// SIFoldOperands pass to enable folding of inline immediates.
106def V_MOV_B64_PSEUDO : VPseudoInstSI <(outs VReg_64:$vdst),
107                                      (ins VSrc_b64:$src0)>;
108
109// 64-bit vector move with dpp. Expanded post-RA.
110def V_MOV_B64_DPP_PSEUDO : VOP_DPP_Pseudo <"v_mov_b64_dpp", VOP_I64_I64> {
111  let Size = 16; // Requires two 8-byte v_mov_b32_dpp to complete.
112}
113
114// Pseudoinstruction for @llvm.amdgcn.wqm. It is turned into a copy after the
115// WQM pass processes it.
116def WQM : PseudoInstSI <(outs unknown:$vdst), (ins unknown:$src0)>;
117
118// Pseudoinstruction for @llvm.amdgcn.softwqm. Like @llvm.amdgcn.wqm it is
119// turned into a copy by WQM pass, but does not seed WQM requirements.
120def SOFT_WQM : PseudoInstSI <(outs unknown:$vdst), (ins unknown:$src0)>;
121
122// Pseudoinstruction for @llvm.amdgcn.strict.wwm. It is turned into a copy post-RA, so
123// that the @earlyclobber is respected. The @earlyclobber is to make sure that
124// the instruction that defines $src0 (which is run in Whole Wave Mode) doesn't
125// accidentally clobber inactive channels of $vdst.
126let Constraints = "@earlyclobber $vdst" in {
127def STRICT_WWM : PseudoInstSI <(outs unknown:$vdst), (ins unknown:$src0)>;
128def STRICT_WQM : PseudoInstSI <(outs unknown:$vdst), (ins unknown:$src0)>;
129}
130
131} // End let hasSideEffects = 0, mayLoad = 0, mayStore = 0, Uses = [EXEC]
132
133def ENTER_STRICT_WWM : SPseudoInstSI <(outs SReg_1:$sdst), (ins i64imm:$src0)> {
134  let Uses = [EXEC];
135  let Defs = [EXEC, SCC];
136  let hasSideEffects = 0;
137  let mayLoad = 0;
138  let mayStore = 0;
139}
140
141def EXIT_STRICT_WWM : SPseudoInstSI <(outs SReg_1:$sdst), (ins SReg_1:$src0)> {
142  let hasSideEffects = 0;
143  let mayLoad = 0;
144  let mayStore = 0;
145}
146
147def ENTER_STRICT_WQM : SPseudoInstSI <(outs SReg_1:$sdst), (ins i64imm:$src0)> {
148  let Uses = [EXEC];
149  let Defs = [EXEC, SCC];
150  let hasSideEffects = 0;
151  let mayLoad = 0;
152  let mayStore = 0;
153}
154
155def EXIT_STRICT_WQM : SPseudoInstSI <(outs SReg_1:$sdst), (ins SReg_1:$src0)> {
156  let hasSideEffects = 0;
157  let mayLoad = 0;
158  let mayStore = 0;
159}
160
161// Invert the exec mask and overwrite the inactive lanes of dst with inactive,
162// restoring it after we're done.
163let Defs = [SCC] in {
164def V_SET_INACTIVE_B32 : VPseudoInstSI <(outs VGPR_32:$vdst),
165  (ins VGPR_32: $src, VSrc_b32:$inactive),
166  [(set i32:$vdst, (int_amdgcn_set_inactive i32:$src, i32:$inactive))]> {
167  let Constraints = "$src = $vdst";
168}
169
170def V_SET_INACTIVE_B64 : VPseudoInstSI <(outs VReg_64:$vdst),
171  (ins VReg_64: $src, VSrc_b64:$inactive),
172  [(set i64:$vdst, (int_amdgcn_set_inactive i64:$src, i64:$inactive))]> {
173  let Constraints = "$src = $vdst";
174}
175} // End Defs = [SCC]
176
177let usesCustomInserter = 1, Defs = [VCC, EXEC] in {
178def V_ADD_U64_PSEUDO : VPseudoInstSI <
179  (outs VReg_64:$vdst), (ins VSrc_b64:$src0, VSrc_b64:$src1),
180  [(set VReg_64:$vdst, (getDivergentFrag<add>.ret i64:$src0, i64:$src1))]
181>;
182
183def V_SUB_U64_PSEUDO : VPseudoInstSI <
184  (outs VReg_64:$vdst), (ins VSrc_b64:$src0, VSrc_b64:$src1),
185  [(set VReg_64:$vdst, (getDivergentFrag<sub>.ret i64:$src0, i64:$src1))]
186>;
187} // End usesCustomInserter = 1, Defs = [VCC, EXEC]
188
189let usesCustomInserter = 1, Defs = [SCC] in {
190def S_ADD_U64_PSEUDO : SPseudoInstSI <
191  (outs SReg_64:$sdst), (ins SSrc_b64:$src0, SSrc_b64:$src1),
192  [(set SReg_64:$sdst, (UniformBinFrag<add> i64:$src0, i64:$src1))]
193>;
194
195def S_SUB_U64_PSEUDO : SPseudoInstSI <
196  (outs SReg_64:$sdst), (ins SSrc_b64:$src0, SSrc_b64:$src1),
197  [(set SReg_64:$sdst, (UniformBinFrag<sub> i64:$src0, i64:$src1))]
198>;
199
200def S_ADD_U64_CO_PSEUDO : SPseudoInstSI <
201  (outs SReg_64:$vdst, VOPDstS64orS32:$sdst), (ins SSrc_b64:$src0, SSrc_b64:$src1)
202>;
203
204def S_SUB_U64_CO_PSEUDO : SPseudoInstSI <
205  (outs SReg_64:$vdst, VOPDstS64orS32:$sdst), (ins SSrc_b64:$src0, SSrc_b64:$src1)
206>;
207
208def S_ADD_CO_PSEUDO : SPseudoInstSI <
209  (outs SReg_32:$sdst, SSrc_i1:$scc_out), (ins SSrc_b32:$src0, SSrc_b32:$src1, SSrc_i1:$scc_in)
210>;
211
212def S_SUB_CO_PSEUDO : SPseudoInstSI <
213  (outs SReg_32:$sdst, SSrc_i1:$scc_out), (ins SSrc_b32:$src0, SSrc_b32:$src1, SSrc_i1:$scc_in)
214>;
215
216def S_UADDO_PSEUDO : SPseudoInstSI <
217  (outs SReg_32:$sdst, SSrc_i1:$scc_out), (ins SSrc_b32:$src0, SSrc_b32:$src1)
218>;
219
220def S_USUBO_PSEUDO : SPseudoInstSI <
221  (outs SReg_32:$sdst, SSrc_i1:$scc_out), (ins SSrc_b32:$src0, SSrc_b32:$src1)
222>;
223
224} // End usesCustomInserter = 1, Defs = [SCC]
225
226let usesCustomInserter = 1 in {
227def GET_GROUPSTATICSIZE : SPseudoInstSI <(outs SReg_32:$sdst), (ins),
228  [(set SReg_32:$sdst, (int_amdgcn_groupstaticsize))]>;
229} // End let usesCustomInserter = 1, SALU = 1
230
231// Wrap an instruction by duplicating it, except for setting isTerminator.
232class WrapTerminatorInst<SOP_Pseudo base_inst> : SPseudoInstSI<
233      base_inst.OutOperandList,
234      base_inst.InOperandList> {
235  let Uses = base_inst.Uses;
236  let Defs = base_inst.Defs;
237  let isTerminator = 1;
238  let isAsCheapAsAMove = base_inst.isAsCheapAsAMove;
239  let hasSideEffects = base_inst.hasSideEffects;
240  let UseNamedOperandTable = base_inst.UseNamedOperandTable;
241  let CodeSize = base_inst.CodeSize;
242  let SchedRW = base_inst.SchedRW;
243}
244
245let WaveSizePredicate = isWave64 in {
246def S_MOV_B64_term : WrapTerminatorInst<S_MOV_B64>;
247def S_XOR_B64_term : WrapTerminatorInst<S_XOR_B64>;
248def S_OR_B64_term : WrapTerminatorInst<S_OR_B64>;
249def S_ANDN2_B64_term : WrapTerminatorInst<S_ANDN2_B64>;
250def S_AND_B64_term : WrapTerminatorInst<S_AND_B64>;
251}
252
253let WaveSizePredicate = isWave32 in {
254def S_MOV_B32_term : WrapTerminatorInst<S_MOV_B32>;
255def S_XOR_B32_term : WrapTerminatorInst<S_XOR_B32>;
256def S_OR_B32_term : WrapTerminatorInst<S_OR_B32>;
257def S_ANDN2_B32_term : WrapTerminatorInst<S_ANDN2_B32>;
258def S_AND_B32_term : WrapTerminatorInst<S_AND_B32>;
259}
260
261
262def WAVE_BARRIER : SPseudoInstSI<(outs), (ins),
263  [(int_amdgcn_wave_barrier)]> {
264  let SchedRW = [];
265  let hasNoSchedulingInfo = 1;
266  let hasSideEffects = 1;
267  let mayLoad = 0;
268  let mayStore = 0;
269  let isConvergent = 1;
270  let FixedSize = 1;
271  let Size = 0;
272}
273
274// SI pseudo instructions. These are used by the CFG structurizer pass
275// and should be lowered to ISA instructions prior to codegen.
276
277let isTerminator = 1 in {
278
279let OtherPredicates = [EnableLateCFGStructurize] in {
280 def SI_NON_UNIFORM_BRCOND_PSEUDO : CFPseudoInstSI <
281  (outs),
282  (ins SReg_1:$vcc, brtarget:$target),
283  [(brcond i1:$vcc, bb:$target)]> {
284    let Size = 12;
285}
286}
287
288def SI_IF: CFPseudoInstSI <
289  (outs SReg_1:$dst), (ins SReg_1:$vcc, brtarget:$target),
290  [(set i1:$dst, (AMDGPUif i1:$vcc, bb:$target))], 1, 1> {
291  let Constraints = "";
292  let Size = 12;
293  let hasSideEffects = 1;
294}
295
296def SI_ELSE : CFPseudoInstSI <
297  (outs SReg_1:$dst),
298  (ins SReg_1:$src, brtarget:$target), [], 1, 1> {
299  let Size = 12;
300  let hasSideEffects = 1;
301}
302
303def SI_LOOP : CFPseudoInstSI <
304  (outs), (ins SReg_1:$saved, brtarget:$target),
305  [(AMDGPUloop i1:$saved, bb:$target)], 1, 1> {
306  let Size = 8;
307  let isBranch = 1;
308  let hasSideEffects = 1;
309}
310
311} // End isTerminator = 1
312
313def SI_END_CF : CFPseudoInstSI <
314  (outs), (ins SReg_1:$saved), [], 1, 1> {
315  let Size = 4;
316  let isAsCheapAsAMove = 1;
317  let isReMaterializable = 1;
318  let hasSideEffects = 1;
319  let mayLoad = 1; // FIXME: Should not need memory flags
320  let mayStore = 1;
321}
322
323def SI_IF_BREAK : CFPseudoInstSI <
324  (outs SReg_1:$dst), (ins SReg_1:$vcc, SReg_1:$src), []> {
325  let Size = 4;
326  let isAsCheapAsAMove = 1;
327  let isReMaterializable = 1;
328}
329
330// Branch to the early termination block of the shader if SCC is 0.
331// This uses SCC from a previous SALU operation, i.e. the update of
332// a mask of live lanes after a kill/demote operation.
333// Only valid in pixel shaders.
334def SI_EARLY_TERMINATE_SCC0 : SPseudoInstSI <(outs), (ins)> {
335  let Uses = [EXEC,SCC];
336}
337
338let Uses = [EXEC] in {
339
340multiclass PseudoInstKill <dag ins> {
341  // Even though this pseudo can usually be expanded without an SCC def, we
342  // conservatively assume that it has an SCC def, both because it is sometimes
343  // required in degenerate cases (when V_CMPX cannot be used due to constant
344  // bus limitations) and because it allows us to avoid having to track SCC
345  // liveness across basic blocks.
346  let Defs = [EXEC,SCC] in
347  def _PSEUDO : PseudoInstSI <(outs), ins> {
348    let isConvergent = 1;
349    let usesCustomInserter = 1;
350  }
351
352  let Defs = [EXEC,SCC] in
353  def _TERMINATOR : SPseudoInstSI <(outs), ins> {
354    let isTerminator = 1;
355  }
356}
357
358defm SI_KILL_I1 : PseudoInstKill <(ins SCSrc_i1:$src, i1imm:$killvalue)>;
359let Defs = [VCC] in
360defm SI_KILL_F32_COND_IMM : PseudoInstKill <(ins VSrc_b32:$src0, i32imm:$src1, i32imm:$cond)>;
361
362let Defs = [EXEC,VCC] in
363def SI_ILLEGAL_COPY : SPseudoInstSI <
364  (outs unknown:$dst), (ins unknown:$src),
365  [], " ; illegal copy $src to $dst">;
366
367} // End Uses = [EXEC], Defs = [EXEC,VCC]
368
369// Branch on undef scc. Used to avoid intermediate copy from
370// IMPLICIT_DEF to SCC.
371def SI_BR_UNDEF : SPseudoInstSI <(outs), (ins sopp_brtarget:$simm16)> {
372  let isTerminator = 1;
373  let usesCustomInserter = 1;
374  let isBranch = 1;
375}
376
377def SI_PS_LIVE : PseudoInstSI <
378  (outs SReg_1:$dst), (ins),
379  [(set i1:$dst, (int_amdgcn_ps_live))]> {
380  let SALU = 1;
381}
382
383let Uses = [EXEC] in {
384def SI_LIVE_MASK : PseudoInstSI <
385  (outs SReg_1:$dst), (ins),
386  [(set i1:$dst, (int_amdgcn_live_mask))]> {
387  let SALU = 1;
388}
389let Defs = [EXEC,SCC] in {
390// Demote: Turn a pixel shader thread into a helper lane.
391def SI_DEMOTE_I1 : SPseudoInstSI <(outs), (ins SCSrc_i1:$src, i1imm:$killvalue)>;
392} // End Defs = [EXEC,SCC]
393} // End Uses = [EXEC]
394
395def SI_MASKED_UNREACHABLE : SPseudoInstSI <(outs), (ins),
396  [(int_amdgcn_unreachable)],
397  "; divergent unreachable"> {
398  let Size = 0;
399  let hasNoSchedulingInfo = 1;
400  let FixedSize = 1;
401}
402
403// Used as an isel pseudo to directly emit initialization with an
404// s_mov_b32 rather than a copy of another initialized
405// register. MachineCSE skips copies, and we don't want to have to
406// fold operands before it runs.
407def SI_INIT_M0 : SPseudoInstSI <(outs), (ins SSrc_b32:$src)> {
408  let Defs = [M0];
409  let usesCustomInserter = 1;
410  let isAsCheapAsAMove = 1;
411  let isReMaterializable = 1;
412}
413
414def SI_INIT_EXEC : SPseudoInstSI <
415  (outs), (ins i64imm:$src),
416  [(int_amdgcn_init_exec (i64 timm:$src))]> {
417  let Defs = [EXEC];
418  let isAsCheapAsAMove = 1;
419}
420
421def SI_INIT_EXEC_FROM_INPUT : SPseudoInstSI <
422  (outs), (ins SSrc_b32:$input, i32imm:$shift),
423  [(int_amdgcn_init_exec_from_input i32:$input, (i32 timm:$shift))]> {
424  let Defs = [EXEC];
425}
426
427// Return for returning shaders to a shader variant epilog.
428def SI_RETURN_TO_EPILOG : SPseudoInstSI <
429  (outs), (ins variable_ops), [(AMDGPUreturn_to_epilog)]> {
430  let isTerminator = 1;
431  let isBarrier = 1;
432  let isReturn = 1;
433  let hasNoSchedulingInfo = 1;
434  let DisableWQM = 1;
435  let FixedSize = 1;
436}
437
438// Return for returning function calls.
439def SI_RETURN : SPseudoInstSI <
440  (outs), (ins), [],
441  "; return"> {
442  let isTerminator = 1;
443  let isBarrier = 1;
444  let isReturn = 1;
445  let SchedRW = [WriteBranch];
446}
447
448// Return for returning function calls without output register.
449//
450// This version is only needed so we can fill in the output register
451// in the custom inserter.
452def SI_CALL_ISEL : SPseudoInstSI <
453  (outs), (ins SSrc_b64:$src0, unknown:$callee),
454  [(AMDGPUcall i64:$src0, tglobaladdr:$callee)]> {
455  let Size = 4;
456  let isCall = 1;
457  let SchedRW = [WriteBranch];
458  let usesCustomInserter = 1;
459  // TODO: Should really base this on the call target
460  let isConvergent = 1;
461}
462
463def : GCNPat<
464  (AMDGPUcall i64:$src0, (i64 0)),
465  (SI_CALL_ISEL $src0, (i64 0))
466>;
467
468// Wrapper around s_swappc_b64 with extra $callee parameter to track
469// the called function after regalloc.
470def SI_CALL : SPseudoInstSI <
471  (outs SReg_64:$dst), (ins SSrc_b64:$src0, unknown:$callee)> {
472  let Size = 4;
473  let isCall = 1;
474  let UseNamedOperandTable = 1;
475  let SchedRW = [WriteBranch];
476  // TODO: Should really base this on the call target
477  let isConvergent = 1;
478}
479
480// Tail call handling pseudo
481def SI_TCRETURN : SPseudoInstSI <(outs),
482  (ins SReg_64:$src0, unknown:$callee, i32imm:$fpdiff),
483  [(AMDGPUtc_return i64:$src0, tglobaladdr:$callee, i32:$fpdiff)]> {
484  let Size = 4;
485  let isCall = 1;
486  let isTerminator = 1;
487  let isReturn = 1;
488  let isBarrier = 1;
489  let UseNamedOperandTable = 1;
490  let SchedRW = [WriteBranch];
491  // TODO: Should really base this on the call target
492  let isConvergent = 1;
493}
494
495
496def ADJCALLSTACKUP : SPseudoInstSI<
497  (outs), (ins i32imm:$amt0, i32imm:$amt1),
498  [(callseq_start timm:$amt0, timm:$amt1)],
499  "; adjcallstackup $amt0 $amt1"> {
500  let Size = 8; // Worst case. (s_add_u32 + constant)
501  let FixedSize = 1;
502  let hasSideEffects = 1;
503  let usesCustomInserter = 1;
504  let SchedRW = [WriteSALU];
505  let Defs = [SCC];
506}
507
508def ADJCALLSTACKDOWN : SPseudoInstSI<
509  (outs), (ins i32imm:$amt1, i32imm:$amt2),
510  [(callseq_end timm:$amt1, timm:$amt2)],
511  "; adjcallstackdown $amt1"> {
512  let Size = 8; // Worst case. (s_add_u32 + constant)
513  let hasSideEffects = 1;
514  let usesCustomInserter = 1;
515  let SchedRW = [WriteSALU];
516  let Defs = [SCC];
517}
518
519let Defs = [M0, EXEC, SCC],
520  UseNamedOperandTable = 1 in {
521
522// SI_INDIRECT_SRC/DST are only used by legacy SelectionDAG indirect
523// addressing implementation.
524class SI_INDIRECT_SRC<RegisterClass rc> : VPseudoInstSI <
525  (outs VGPR_32:$vdst),
526  (ins rc:$src, VS_32:$idx, i32imm:$offset)> {
527  let usesCustomInserter = 1;
528}
529
530class SI_INDIRECT_DST<RegisterClass rc> : VPseudoInstSI <
531  (outs rc:$vdst),
532  (ins rc:$src, VS_32:$idx, i32imm:$offset, VGPR_32:$val)> {
533  let Constraints = "$src = $vdst";
534  let usesCustomInserter = 1;
535}
536
537def SI_INDIRECT_SRC_V1 : SI_INDIRECT_SRC<VGPR_32>;
538def SI_INDIRECT_SRC_V2 : SI_INDIRECT_SRC<VReg_64>;
539def SI_INDIRECT_SRC_V4 : SI_INDIRECT_SRC<VReg_128>;
540def SI_INDIRECT_SRC_V8 : SI_INDIRECT_SRC<VReg_256>;
541def SI_INDIRECT_SRC_V16 : SI_INDIRECT_SRC<VReg_512>;
542def SI_INDIRECT_SRC_V32 : SI_INDIRECT_SRC<VReg_1024>;
543
544def SI_INDIRECT_DST_V1 : SI_INDIRECT_DST<VGPR_32>;
545def SI_INDIRECT_DST_V2 : SI_INDIRECT_DST<VReg_64>;
546def SI_INDIRECT_DST_V4 : SI_INDIRECT_DST<VReg_128>;
547def SI_INDIRECT_DST_V8 : SI_INDIRECT_DST<VReg_256>;
548def SI_INDIRECT_DST_V16 : SI_INDIRECT_DST<VReg_512>;
549def SI_INDIRECT_DST_V32 : SI_INDIRECT_DST<VReg_1024>;
550
551} // End Uses = [EXEC], Defs = [M0, EXEC]
552
553// This is a pseudo variant of the v_movreld_b32 instruction in which the
554// vector operand appears only twice, once as def and once as use. Using this
555// pseudo avoids problems with the Two Address instructions pass.
556class INDIRECT_REG_WRITE_MOVREL_pseudo<RegisterClass rc,
557                                RegisterOperand val_ty> : PseudoInstSI <
558  (outs rc:$vdst), (ins rc:$vsrc, val_ty:$val, i32imm:$subreg)> {
559  let Constraints = "$vsrc = $vdst";
560  let Uses = [M0];
561}
562
563class V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<RegisterClass rc> :
564  INDIRECT_REG_WRITE_MOVREL_pseudo<rc, VSrc_b32> {
565  let VALU = 1;
566  let VOP1 = 1;
567  let Uses = [M0, EXEC];
568}
569
570class S_INDIRECT_REG_WRITE_MOVREL_pseudo<RegisterClass rc,
571                                  RegisterOperand val_ty> :
572  INDIRECT_REG_WRITE_MOVREL_pseudo<rc, val_ty> {
573  let SALU = 1;
574  let SOP1 = 1;
575  let Uses = [M0];
576}
577
578class S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<RegisterClass rc> :
579  S_INDIRECT_REG_WRITE_MOVREL_pseudo<rc, SSrc_b32>;
580class S_INDIRECT_REG_WRITE_MOVREL_B64_pseudo<RegisterClass rc> :
581  S_INDIRECT_REG_WRITE_MOVREL_pseudo<rc, SSrc_b64>;
582
583def V_INDIRECT_REG_WRITE_MOVREL_B32_V1 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VGPR_32>;
584def V_INDIRECT_REG_WRITE_MOVREL_B32_V2 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_64>;
585def V_INDIRECT_REG_WRITE_MOVREL_B32_V3 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_96>;
586def V_INDIRECT_REG_WRITE_MOVREL_B32_V4 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_128>;
587def V_INDIRECT_REG_WRITE_MOVREL_B32_V5 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_160>;
588def V_INDIRECT_REG_WRITE_MOVREL_B32_V8 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_256>;
589def V_INDIRECT_REG_WRITE_MOVREL_B32_V16 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_512>;
590def V_INDIRECT_REG_WRITE_MOVREL_B32_V32 : V_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<VReg_1024>;
591
592def S_INDIRECT_REG_WRITE_MOVREL_B32_V1 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_32>;
593def S_INDIRECT_REG_WRITE_MOVREL_B32_V2 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_64>;
594def S_INDIRECT_REG_WRITE_MOVREL_B32_V3 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_96>;
595def S_INDIRECT_REG_WRITE_MOVREL_B32_V4 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_128>;
596def S_INDIRECT_REG_WRITE_MOVREL_B32_V5 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_160>;
597def S_INDIRECT_REG_WRITE_MOVREL_B32_V8 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_256>;
598def S_INDIRECT_REG_WRITE_MOVREL_B32_V16 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_512>;
599def S_INDIRECT_REG_WRITE_MOVREL_B32_V32 : S_INDIRECT_REG_WRITE_MOVREL_B32_pseudo<SReg_1024>;
600
601def S_INDIRECT_REG_WRITE_MOVREL_B64_V1 : S_INDIRECT_REG_WRITE_MOVREL_B64_pseudo<SReg_64>;
602def S_INDIRECT_REG_WRITE_MOVREL_B64_V2 : S_INDIRECT_REG_WRITE_MOVREL_B64_pseudo<SReg_128>;
603def S_INDIRECT_REG_WRITE_MOVREL_B64_V4 : S_INDIRECT_REG_WRITE_MOVREL_B64_pseudo<SReg_256>;
604def S_INDIRECT_REG_WRITE_MOVREL_B64_V8 : S_INDIRECT_REG_WRITE_MOVREL_B64_pseudo<SReg_512>;
605def S_INDIRECT_REG_WRITE_MOVREL_B64_V16 : S_INDIRECT_REG_WRITE_MOVREL_B64_pseudo<SReg_1024>;
606
607// These variants of V_INDIRECT_REG_READ/WRITE use VGPR indexing. By using these
608// pseudos we avoid spills or copies being inserted within indirect sequences
609// that switch the VGPR indexing mode. Spills to accvgprs could be effected by
610// this mode switching.
611
612class V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<RegisterClass rc> : PseudoInstSI <
613  (outs rc:$vdst), (ins rc:$vsrc, VSrc_b32:$val, SSrc_b32:$idx, i32imm:$subreg)> {
614  let Constraints = "$vsrc = $vdst";
615  let VALU = 1;
616  let Uses = [M0, EXEC];
617  let Defs = [M0];
618}
619
620def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V1 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VGPR_32>;
621def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V2 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_64>;
622def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V3 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_96>;
623def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V4 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_128>;
624def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V5 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_160>;
625def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V8 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_256>;
626def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V16 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_512>;
627def V_INDIRECT_REG_WRITE_GPR_IDX_B32_V32 : V_INDIRECT_REG_WRITE_GPR_IDX_pseudo<VReg_1024>;
628
629class V_INDIRECT_REG_READ_GPR_IDX_pseudo<RegisterClass rc> : PseudoInstSI <
630  (outs VGPR_32:$vdst), (ins rc:$vsrc, SSrc_b32:$idx, i32imm:$subreg)> {
631  let VALU = 1;
632  let Uses = [M0, EXEC];
633  let Defs = [M0];
634}
635
636def V_INDIRECT_REG_READ_GPR_IDX_B32_V1 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VGPR_32>;
637def V_INDIRECT_REG_READ_GPR_IDX_B32_V2 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_64>;
638def V_INDIRECT_REG_READ_GPR_IDX_B32_V3 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_96>;
639def V_INDIRECT_REG_READ_GPR_IDX_B32_V4 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_128>;
640def V_INDIRECT_REG_READ_GPR_IDX_B32_V5 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_160>;
641def V_INDIRECT_REG_READ_GPR_IDX_B32_V8 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_256>;
642def V_INDIRECT_REG_READ_GPR_IDX_B32_V16 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_512>;
643def V_INDIRECT_REG_READ_GPR_IDX_B32_V32 : V_INDIRECT_REG_READ_GPR_IDX_pseudo<VReg_1024>;
644
645multiclass SI_SPILL_SGPR <RegisterClass sgpr_class> {
646  let UseNamedOperandTable = 1, SGPRSpill = 1, Uses = [EXEC] in {
647    def _SAVE : PseudoInstSI <
648      (outs),
649      (ins sgpr_class:$data, i32imm:$addr)> {
650      let mayStore = 1;
651      let mayLoad = 0;
652    }
653
654    def _RESTORE : PseudoInstSI <
655      (outs sgpr_class:$data),
656      (ins i32imm:$addr)> {
657      let mayStore = 0;
658      let mayLoad = 1;
659    }
660  } // End UseNamedOperandTable = 1
661}
662
663// You cannot use M0 as the output of v_readlane_b32 instructions or
664// use it in the sdata operand of SMEM instructions. We still need to
665// be able to spill the physical register m0, so allow it for
666// SI_SPILL_32_* instructions.
667defm SI_SPILL_S32  : SI_SPILL_SGPR <SReg_32>;
668defm SI_SPILL_S64  : SI_SPILL_SGPR <SReg_64>;
669defm SI_SPILL_S96  : SI_SPILL_SGPR <SReg_96>;
670defm SI_SPILL_S128 : SI_SPILL_SGPR <SReg_128>;
671defm SI_SPILL_S160 : SI_SPILL_SGPR <SReg_160>;
672defm SI_SPILL_S192 : SI_SPILL_SGPR <SReg_192>;
673defm SI_SPILL_S256 : SI_SPILL_SGPR <SReg_256>;
674defm SI_SPILL_S512 : SI_SPILL_SGPR <SReg_512>;
675defm SI_SPILL_S1024 : SI_SPILL_SGPR <SReg_1024>;
676
677// VGPR or AGPR spill instructions. In case of AGPR spilling a temp register
678// needs to be used and an extra instruction to move between VGPR and AGPR.
679// UsesTmp adds to the total size of an expanded spill in this case.
680multiclass SI_SPILL_VGPR <RegisterClass vgpr_class, bit UsesTmp = 0> {
681  let UseNamedOperandTable = 1, VGPRSpill = 1,
682       SchedRW = [WriteVMEM] in {
683    def _SAVE : VPseudoInstSI <
684      (outs),
685      (ins vgpr_class:$vdata, i32imm:$vaddr,
686           SReg_32:$soffset, i32imm:$offset)> {
687      let mayStore = 1;
688      let mayLoad = 0;
689      // (2 * 4) + (8 * num_subregs) bytes maximum
690      int MaxSize = !add(!shl(!srl(vgpr_class.Size, 5), !add(UsesTmp, 3)), 8);
691      // Size field is unsigned char and cannot fit more.
692      let Size = !if(!le(MaxSize, 256), MaxSize, 252);
693    }
694
695    def _RESTORE : VPseudoInstSI <
696      (outs vgpr_class:$vdata),
697      (ins i32imm:$vaddr,
698           SReg_32:$soffset, i32imm:$offset)> {
699      let mayStore = 0;
700      let mayLoad = 1;
701
702      // (2 * 4) + (8 * num_subregs) bytes maximum
703      int MaxSize = !add(!shl(!srl(vgpr_class.Size, 5), !add(UsesTmp, 3)), 8);
704      // Size field is unsigned char and cannot fit more.
705      let Size = !if(!le(MaxSize, 256), MaxSize, 252);
706    }
707  } // End UseNamedOperandTable = 1, VGPRSpill = 1, SchedRW = [WriteVMEM]
708}
709
710defm SI_SPILL_V32  : SI_SPILL_VGPR <VGPR_32>;
711defm SI_SPILL_V64  : SI_SPILL_VGPR <VReg_64>;
712defm SI_SPILL_V96  : SI_SPILL_VGPR <VReg_96>;
713defm SI_SPILL_V128 : SI_SPILL_VGPR <VReg_128>;
714defm SI_SPILL_V160 : SI_SPILL_VGPR <VReg_160>;
715defm SI_SPILL_V192 : SI_SPILL_VGPR <VReg_192>;
716defm SI_SPILL_V256 : SI_SPILL_VGPR <VReg_256>;
717defm SI_SPILL_V512 : SI_SPILL_VGPR <VReg_512>;
718defm SI_SPILL_V1024 : SI_SPILL_VGPR <VReg_1024>;
719
720defm SI_SPILL_A32  : SI_SPILL_VGPR <AGPR_32, 1>;
721defm SI_SPILL_A64  : SI_SPILL_VGPR <AReg_64, 1>;
722defm SI_SPILL_A96  : SI_SPILL_VGPR <AReg_96, 1>;
723defm SI_SPILL_A128 : SI_SPILL_VGPR <AReg_128, 1>;
724defm SI_SPILL_A160 : SI_SPILL_VGPR <AReg_160, 1>;
725defm SI_SPILL_A192 : SI_SPILL_VGPR <AReg_192, 1>;
726defm SI_SPILL_A256 : SI_SPILL_VGPR <AReg_256, 1>;
727defm SI_SPILL_A512 : SI_SPILL_VGPR <AReg_512, 1>;
728defm SI_SPILL_A1024 : SI_SPILL_VGPR <AReg_1024, 1>;
729
730def SI_PC_ADD_REL_OFFSET : SPseudoInstSI <
731  (outs SReg_64:$dst),
732  (ins si_ga:$ptr_lo, si_ga:$ptr_hi),
733  [(set SReg_64:$dst,
734      (i64 (SIpc_add_rel_offset tglobaladdr:$ptr_lo, tglobaladdr:$ptr_hi)))]> {
735  let Defs = [SCC];
736}
737
738def : GCNPat <
739  (SIpc_add_rel_offset tglobaladdr:$ptr_lo, 0),
740  (SI_PC_ADD_REL_OFFSET $ptr_lo, (i32 0))
741>;
742
743def : GCNPat<
744  (AMDGPUtrap timm:$trapid),
745  (S_TRAP $trapid)
746>;
747
748def : GCNPat<
749  (AMDGPUelse i1:$src, bb:$target),
750  (SI_ELSE $src, $target)
751>;
752
753def : Pat <
754  (int_amdgcn_kill i1:$src),
755  (SI_KILL_I1_PSEUDO SCSrc_i1:$src, 0)
756>;
757
758def : Pat <
759  (int_amdgcn_kill (i1 (not i1:$src))),
760  (SI_KILL_I1_PSEUDO SCSrc_i1:$src, -1)
761>;
762
763def : Pat <
764  (int_amdgcn_kill (i1 (setcc f32:$src, InlineImmFP32:$imm, cond:$cond))),
765  (SI_KILL_F32_COND_IMM_PSEUDO VSrc_b32:$src, (bitcast_fpimm_to_i32 $imm), (cond_as_i32imm $cond))
766>;
767
768def : Pat <
769  (int_amdgcn_wqm_demote i1:$src),
770  (SI_DEMOTE_I1 SCSrc_i1:$src, 0)
771>;
772
773def : Pat <
774  (int_amdgcn_wqm_demote (i1 (not i1:$src))),
775  (SI_DEMOTE_I1 SCSrc_i1:$src, -1)
776>;
777
778  // TODO: we could add more variants for other types of conditionals
779
780def : Pat <
781  (i64 (int_amdgcn_icmp i1:$src, (i1 0), (i32 33))),
782  (COPY $src) // Return the SGPRs representing i1 src
783>;
784
785def : Pat <
786  (i32 (int_amdgcn_icmp i1:$src, (i1 0), (i32 33))),
787  (COPY $src) // Return the SGPRs representing i1 src
788>;
789
790//===----------------------------------------------------------------------===//
791// VOP1 Patterns
792//===----------------------------------------------------------------------===//
793
794let OtherPredicates = [UnsafeFPMath] in {
795
796//defm : RsqPat<V_RSQ_F32_e32, f32>;
797
798def : RsqPat<V_RSQ_F32_e32, f32>;
799
800// Convert (x - floor(x)) to fract(x)
801def : GCNPat <
802  (f32 (fsub (f32 (VOP3Mods f32:$x, i32:$mods)),
803             (f32 (ffloor (f32 (VOP3Mods f32:$x, i32:$mods)))))),
804  (V_FRACT_F32_e64 $mods, $x)
805>;
806
807// Convert (x + (-floor(x))) to fract(x)
808def : GCNPat <
809  (f64 (fadd (f64 (VOP3Mods f64:$x, i32:$mods)),
810             (f64 (fneg (f64 (ffloor (f64 (VOP3Mods f64:$x, i32:$mods)))))))),
811  (V_FRACT_F64_e64 $mods, $x)
812>;
813
814} // End OtherPredicates = [UnsafeFPMath]
815
816
817// f16_to_fp patterns
818def : GCNPat <
819  (f32 (f16_to_fp i32:$src0)),
820  (V_CVT_F32_F16_e64 SRCMODS.NONE, $src0)
821>;
822
823def : GCNPat <
824  (f32 (f16_to_fp (and_oneuse i32:$src0, 0x7fff))),
825  (V_CVT_F32_F16_e64 SRCMODS.ABS, $src0)
826>;
827
828def : GCNPat <
829  (f32 (f16_to_fp (i32 (srl_oneuse (and_oneuse i32:$src0, 0x7fff0000), (i32 16))))),
830  (V_CVT_F32_F16_e64 SRCMODS.ABS, (i32 (V_LSHRREV_B32_e64 (i32 16), i32:$src0)))
831>;
832
833def : GCNPat <
834  (f32 (f16_to_fp (or_oneuse i32:$src0, 0x8000))),
835  (V_CVT_F32_F16_e64 SRCMODS.NEG_ABS, $src0)
836>;
837
838def : GCNPat <
839  (f32 (f16_to_fp (xor_oneuse i32:$src0, 0x8000))),
840  (V_CVT_F32_F16_e64 SRCMODS.NEG, $src0)
841>;
842
843def : GCNPat <
844  (f64 (fpextend f16:$src)),
845  (V_CVT_F64_F32_e32 (V_CVT_F32_F16_e32 $src))
846>;
847
848// fp_to_fp16 patterns
849def : GCNPat <
850  (i32 (AMDGPUfp_to_f16 (f32 (VOP3Mods f32:$src0, i32:$src0_modifiers)))),
851  (V_CVT_F16_F32_e64 $src0_modifiers, f32:$src0)
852>;
853
854def : GCNPat <
855  (i32 (fp_to_sint f16:$src)),
856  (V_CVT_I32_F32_e32 (V_CVT_F32_F16_e32 VSrc_b32:$src))
857>;
858
859def : GCNPat <
860  (i32 (fp_to_uint f16:$src)),
861  (V_CVT_U32_F32_e32 (V_CVT_F32_F16_e32 VSrc_b32:$src))
862>;
863
864def : GCNPat <
865  (f16 (sint_to_fp i32:$src)),
866  (V_CVT_F16_F32_e32 (V_CVT_F32_I32_e32 VSrc_b32:$src))
867>;
868
869def : GCNPat <
870  (f16 (uint_to_fp i32:$src)),
871  (V_CVT_F16_F32_e32 (V_CVT_F32_U32_e32 VSrc_b32:$src))
872>;
873
874//===----------------------------------------------------------------------===//
875// VOP2 Patterns
876//===----------------------------------------------------------------------===//
877
878// NoMods pattern used for mac. If there are any source modifiers then it's
879// better to select mad instead of mac.
880class FMADPat <ValueType vt, Instruction inst, SDPatternOperator node>
881  : GCNPat <(vt (node (vt (VOP3NoMods vt:$src0)),
882                      (vt (VOP3NoMods vt:$src1)),
883                      (vt (VOP3NoMods vt:$src2)))),
884    (inst SRCMODS.NONE, $src0, SRCMODS.NONE, $src1,
885          SRCMODS.NONE, $src2, DSTCLAMP.NONE, DSTOMOD.NONE)
886>;
887
888// Prefer mac form when there are no modifiers.
889let AddedComplexity = 9 in {
890let OtherPredicates = [HasMadMacF32Insts] in {
891def : FMADPat <f32, V_MAC_F32_e64, fmad>;
892def : FMADPat <f32, V_MAC_F32_e64, AMDGPUfmad_ftz>;
893} // OtherPredicates = [HasMadMacF32Insts]
894
895// Don't allow source modifiers. If there are any source modifiers then it's
896// better to select mad instead of mac.
897let SubtargetPredicate = isGFX6GFX7GFX10,
898    OtherPredicates = [HasMadMacF32Insts, NoFP32Denormals] in
899def : GCNPat <
900      (f32 (fadd (AMDGPUfmul_legacy (VOP3NoMods f32:$src0),
901                                    (VOP3NoMods f32:$src1)),
902                 (VOP3NoMods f32:$src2))),
903      (V_MAC_LEGACY_F32_e64 SRCMODS.NONE, $src0, SRCMODS.NONE, $src1,
904                            SRCMODS.NONE, $src2, DSTCLAMP.NONE, DSTOMOD.NONE)
905>;
906
907// Don't allow source modifiers. If there are any source modifiers then it's
908// better to select fma instead of fmac.
909let SubtargetPredicate = HasFmaLegacy32 in
910def : GCNPat <
911      (f32 (int_amdgcn_fma_legacy (VOP3NoMods f32:$src0),
912                                  (VOP3NoMods f32:$src1),
913                                  (VOP3NoMods f32:$src2))),
914      (V_FMAC_LEGACY_F32_e64 SRCMODS.NONE, $src0, SRCMODS.NONE, $src1,
915                             SRCMODS.NONE, $src2, DSTCLAMP.NONE, DSTOMOD.NONE)
916>;
917
918let SubtargetPredicate = Has16BitInsts in {
919def : FMADPat <f16, V_MAC_F16_e64, fmad>;
920def : FMADPat <f16, V_MAC_F16_e64, AMDGPUfmad_ftz>;
921} // SubtargetPredicate = Has16BitInsts
922} // AddedComplexity = 9
923
924class FMADModsPat<ValueType Ty, Instruction inst, SDPatternOperator mad_opr>
925  : GCNPat<
926  (Ty (mad_opr (Ty (VOP3Mods Ty:$src0, i32:$src0_mod)),
927               (Ty (VOP3Mods Ty:$src1, i32:$src1_mod)),
928               (Ty (VOP3Mods Ty:$src2, i32:$src2_mod)))),
929  (inst $src0_mod, $src0, $src1_mod, $src1,
930  $src2_mod, $src2, DSTCLAMP.NONE, DSTOMOD.NONE)
931>;
932
933let OtherPredicates = [HasMadMacF32Insts] in
934def : FMADModsPat<f32, V_MAD_F32_e64, AMDGPUfmad_ftz>;
935
936let OtherPredicates = [HasMadMacF32Insts, NoFP32Denormals] in
937def : GCNPat <
938      (f32 (fadd (AMDGPUfmul_legacy (VOP3Mods f32:$src0, i32:$src0_mod),
939                                    (VOP3Mods f32:$src1, i32:$src1_mod)),
940                 (VOP3Mods f32:$src2, i32:$src2_mod))),
941      (V_MAD_LEGACY_F32_e64 $src0_mod, $src0, $src1_mod, $src1,
942                        $src2_mod, $src2, DSTCLAMP.NONE, DSTOMOD.NONE)
943>;
944
945let SubtargetPredicate = Has16BitInsts in
946def : FMADModsPat<f16, V_MAD_F16_e64, AMDGPUfmad_ftz>;
947
948class VOPSelectModsPat <ValueType vt> : GCNPat <
949  (vt (select i1:$src0, (VOP3Mods vt:$src1, i32:$src1_mods),
950                        (VOP3Mods vt:$src2, i32:$src2_mods))),
951  (V_CNDMASK_B32_e64 FP32InputMods:$src2_mods, VSrc_b32:$src2,
952                     FP32InputMods:$src1_mods, VSrc_b32:$src1, SSrc_i1:$src0)
953>;
954
955class VOPSelectPat <ValueType vt> : GCNPat <
956  (vt (select i1:$src0, vt:$src1, vt:$src2)),
957  (V_CNDMASK_B32_e64 0, VSrc_b32:$src2, 0, VSrc_b32:$src1, SSrc_i1:$src0)
958>;
959
960def : VOPSelectModsPat <i32>;
961def : VOPSelectModsPat <f32>;
962def : VOPSelectPat <f16>;
963def : VOPSelectPat <i16>;
964
965let AddedComplexity = 1 in {
966def : GCNPat <
967  (i32 (add (i32 (getDivergentFrag<ctpop>.ret i32:$popcnt)), i32:$val)),
968  (V_BCNT_U32_B32_e64 $popcnt, $val)
969>;
970}
971
972def : GCNPat <
973  (i32 (ctpop i32:$popcnt)),
974  (V_BCNT_U32_B32_e64 VSrc_b32:$popcnt, (i32 0))
975>;
976
977def : GCNPat <
978  (i16 (add (i16 (trunc (i32 (getDivergentFrag<ctpop>.ret i32:$popcnt)))), i16:$val)),
979  (V_BCNT_U32_B32_e64 $popcnt, $val)
980>;
981
982/********** ============================================ **********/
983/********** Extraction, Insertion, Building and Casting  **********/
984/********** ============================================ **********/
985
986foreach Index = 0-2 in {
987  def Extract_Element_v2i32_#Index : Extract_Element <
988    i32, v2i32, Index, !cast<SubRegIndex>(sub#Index)
989  >;
990  def Insert_Element_v2i32_#Index : Insert_Element <
991    i32, v2i32, Index, !cast<SubRegIndex>(sub#Index)
992  >;
993
994  def Extract_Element_v2f32_#Index : Extract_Element <
995    f32, v2f32, Index, !cast<SubRegIndex>(sub#Index)
996  >;
997  def Insert_Element_v2f32_#Index : Insert_Element <
998    f32, v2f32, Index, !cast<SubRegIndex>(sub#Index)
999  >;
1000}
1001
1002foreach Index = 0-2 in {
1003  def Extract_Element_v3i32_#Index : Extract_Element <
1004    i32, v3i32, Index, !cast<SubRegIndex>(sub#Index)
1005  >;
1006  def Insert_Element_v3i32_#Index : Insert_Element <
1007    i32, v3i32, Index, !cast<SubRegIndex>(sub#Index)
1008  >;
1009
1010  def Extract_Element_v3f32_#Index : Extract_Element <
1011    f32, v3f32, Index, !cast<SubRegIndex>(sub#Index)
1012  >;
1013  def Insert_Element_v3f32_#Index : Insert_Element <
1014    f32, v3f32, Index, !cast<SubRegIndex>(sub#Index)
1015  >;
1016}
1017
1018foreach Index = 0-3 in {
1019  def Extract_Element_v4i32_#Index : Extract_Element <
1020    i32, v4i32, Index, !cast<SubRegIndex>(sub#Index)
1021  >;
1022  def Insert_Element_v4i32_#Index : Insert_Element <
1023    i32, v4i32, Index, !cast<SubRegIndex>(sub#Index)
1024  >;
1025
1026  def Extract_Element_v4f32_#Index : Extract_Element <
1027    f32, v4f32, Index, !cast<SubRegIndex>(sub#Index)
1028  >;
1029  def Insert_Element_v4f32_#Index : Insert_Element <
1030    f32, v4f32, Index, !cast<SubRegIndex>(sub#Index)
1031  >;
1032}
1033
1034foreach Index = 0-4 in {
1035  def Extract_Element_v5i32_#Index : Extract_Element <
1036    i32, v5i32, Index, !cast<SubRegIndex>(sub#Index)
1037  >;
1038  def Insert_Element_v5i32_#Index : Insert_Element <
1039    i32, v5i32, Index, !cast<SubRegIndex>(sub#Index)
1040  >;
1041
1042  def Extract_Element_v5f32_#Index : Extract_Element <
1043    f32, v5f32, Index, !cast<SubRegIndex>(sub#Index)
1044  >;
1045  def Insert_Element_v5f32_#Index : Insert_Element <
1046    f32, v5f32, Index, !cast<SubRegIndex>(sub#Index)
1047  >;
1048}
1049
1050foreach Index = 0-7 in {
1051  def Extract_Element_v8i32_#Index : Extract_Element <
1052    i32, v8i32, Index, !cast<SubRegIndex>(sub#Index)
1053  >;
1054  def Insert_Element_v8i32_#Index : Insert_Element <
1055    i32, v8i32, Index, !cast<SubRegIndex>(sub#Index)
1056  >;
1057
1058  def Extract_Element_v8f32_#Index : Extract_Element <
1059    f32, v8f32, Index, !cast<SubRegIndex>(sub#Index)
1060  >;
1061  def Insert_Element_v8f32_#Index : Insert_Element <
1062    f32, v8f32, Index, !cast<SubRegIndex>(sub#Index)
1063  >;
1064}
1065
1066foreach Index = 0-15 in {
1067  def Extract_Element_v16i32_#Index : Extract_Element <
1068    i32, v16i32, Index, !cast<SubRegIndex>(sub#Index)
1069  >;
1070  def Insert_Element_v16i32_#Index : Insert_Element <
1071    i32, v16i32, Index, !cast<SubRegIndex>(sub#Index)
1072  >;
1073
1074  def Extract_Element_v16f32_#Index : Extract_Element <
1075    f32, v16f32, Index, !cast<SubRegIndex>(sub#Index)
1076  >;
1077  def Insert_Element_v16f32_#Index : Insert_Element <
1078    f32, v16f32, Index, !cast<SubRegIndex>(sub#Index)
1079  >;
1080}
1081
1082
1083def : Pat <
1084  (extract_subvector v4i16:$vec, (i32 0)),
1085  (v2i16 (EXTRACT_SUBREG v4i16:$vec, sub0))
1086>;
1087
1088def : Pat <
1089  (extract_subvector v4i16:$vec, (i32 2)),
1090  (v2i16 (EXTRACT_SUBREG v4i16:$vec, sub1))
1091>;
1092
1093def : Pat <
1094  (extract_subvector v4f16:$vec, (i32 0)),
1095  (v2f16 (EXTRACT_SUBREG v4f16:$vec, sub0))
1096>;
1097
1098def : Pat <
1099  (extract_subvector v4f16:$vec, (i32 2)),
1100  (v2f16 (EXTRACT_SUBREG v4f16:$vec, sub1))
1101>;
1102
1103foreach Index = 0-31 in {
1104  def Extract_Element_v32i32_#Index : Extract_Element <
1105    i32, v32i32, Index, !cast<SubRegIndex>(sub#Index)
1106  >;
1107
1108  def Insert_Element_v32i32_#Index : Insert_Element <
1109    i32, v32i32, Index, !cast<SubRegIndex>(sub#Index)
1110  >;
1111
1112  def Extract_Element_v32f32_#Index : Extract_Element <
1113    f32, v32f32, Index, !cast<SubRegIndex>(sub#Index)
1114  >;
1115
1116  def Insert_Element_v32f32_#Index : Insert_Element <
1117    f32, v32f32, Index, !cast<SubRegIndex>(sub#Index)
1118  >;
1119}
1120
1121// FIXME: Why do only some of these type combinations for SReg and
1122// VReg?
1123// 16-bit bitcast
1124def : BitConvert <i16, f16, VGPR_32>;
1125def : BitConvert <f16, i16, VGPR_32>;
1126def : BitConvert <i16, f16, SReg_32>;
1127def : BitConvert <f16, i16, SReg_32>;
1128
1129// 32-bit bitcast
1130def : BitConvert <i32, f32, VGPR_32>;
1131def : BitConvert <f32, i32, VGPR_32>;
1132def : BitConvert <i32, f32, SReg_32>;
1133def : BitConvert <f32, i32, SReg_32>;
1134def : BitConvert <v2i16, i32, SReg_32>;
1135def : BitConvert <i32, v2i16, SReg_32>;
1136def : BitConvert <v2f16, i32, SReg_32>;
1137def : BitConvert <i32, v2f16, SReg_32>;
1138def : BitConvert <v2i16, v2f16, SReg_32>;
1139def : BitConvert <v2f16, v2i16, SReg_32>;
1140def : BitConvert <v2f16, f32, SReg_32>;
1141def : BitConvert <f32, v2f16, SReg_32>;
1142def : BitConvert <v2i16, f32, SReg_32>;
1143def : BitConvert <f32, v2i16, SReg_32>;
1144
1145// 64-bit bitcast
1146def : BitConvert <i64, f64, VReg_64>;
1147def : BitConvert <f64, i64, VReg_64>;
1148def : BitConvert <v2i32, v2f32, VReg_64>;
1149def : BitConvert <v2f32, v2i32, VReg_64>;
1150def : BitConvert <i64, v2i32, VReg_64>;
1151def : BitConvert <v2i32, i64, VReg_64>;
1152def : BitConvert <i64, v2f32, VReg_64>;
1153def : BitConvert <v2f32, i64, VReg_64>;
1154def : BitConvert <f64, v2f32, VReg_64>;
1155def : BitConvert <v2f32, f64, VReg_64>;
1156def : BitConvert <f64, v2i32, VReg_64>;
1157def : BitConvert <v2i32, f64, VReg_64>;
1158def : BitConvert <v4i16, v4f16, VReg_64>;
1159def : BitConvert <v4f16, v4i16, VReg_64>;
1160
1161// FIXME: Make SGPR
1162def : BitConvert <v2i32, v4f16, VReg_64>;
1163def : BitConvert <v4f16, v2i32, VReg_64>;
1164def : BitConvert <v2i32, v4f16, VReg_64>;
1165def : BitConvert <v2i32, v4i16, VReg_64>;
1166def : BitConvert <v4i16, v2i32, VReg_64>;
1167def : BitConvert <v2f32, v4f16, VReg_64>;
1168def : BitConvert <v4f16, v2f32, VReg_64>;
1169def : BitConvert <v2f32, v4i16, VReg_64>;
1170def : BitConvert <v4i16, v2f32, VReg_64>;
1171def : BitConvert <v4i16, f64, VReg_64>;
1172def : BitConvert <v4f16, f64, VReg_64>;
1173def : BitConvert <f64, v4i16, VReg_64>;
1174def : BitConvert <f64, v4f16, VReg_64>;
1175def : BitConvert <v4i16, i64, VReg_64>;
1176def : BitConvert <v4f16, i64, VReg_64>;
1177def : BitConvert <i64, v4i16, VReg_64>;
1178def : BitConvert <i64, v4f16, VReg_64>;
1179
1180def : BitConvert <v4i32, v4f32, VReg_128>;
1181def : BitConvert <v4f32, v4i32, VReg_128>;
1182
1183// 96-bit bitcast
1184def : BitConvert <v3i32, v3f32, SGPR_96>;
1185def : BitConvert <v3f32, v3i32, SGPR_96>;
1186
1187// 128-bit bitcast
1188def : BitConvert <v2i64, v4i32, SReg_128>;
1189def : BitConvert <v4i32, v2i64, SReg_128>;
1190def : BitConvert <v2f64, v4f32, VReg_128>;
1191def : BitConvert <v2f64, v4i32, VReg_128>;
1192def : BitConvert <v4f32, v2f64, VReg_128>;
1193def : BitConvert <v4i32, v2f64, VReg_128>;
1194def : BitConvert <v2i64, v2f64, VReg_128>;
1195def : BitConvert <v2f64, v2i64, VReg_128>;
1196def : BitConvert <v4f32, v2i64, VReg_128>;
1197def : BitConvert <v2i64, v4f32, VReg_128>;
1198
1199// 160-bit bitcast
1200def : BitConvert <v5i32, v5f32, SGPR_160>;
1201def : BitConvert <v5f32, v5i32, SGPR_160>;
1202
1203// 256-bit bitcast
1204def : BitConvert <v8i32, v8f32, SReg_256>;
1205def : BitConvert <v8f32, v8i32, SReg_256>;
1206def : BitConvert <v8i32, v8f32, VReg_256>;
1207def : BitConvert <v8f32, v8i32, VReg_256>;
1208def : BitConvert <v4i64, v4f64, VReg_256>;
1209def : BitConvert <v4f64, v4i64, VReg_256>;
1210def : BitConvert <v4i64, v8i32, VReg_256>;
1211def : BitConvert <v4i64, v8f32, VReg_256>;
1212def : BitConvert <v4f64, v8i32, VReg_256>;
1213def : BitConvert <v4f64, v8f32, VReg_256>;
1214def : BitConvert <v8i32, v4i64, VReg_256>;
1215def : BitConvert <v8f32, v4i64, VReg_256>;
1216def : BitConvert <v8i32, v4f64, VReg_256>;
1217def : BitConvert <v8f32, v4f64, VReg_256>;
1218
1219
1220// 512-bit bitcast
1221def : BitConvert <v16i32, v16f32, VReg_512>;
1222def : BitConvert <v16f32, v16i32, VReg_512>;
1223def : BitConvert <v8i64,  v8f64,  VReg_512>;
1224def : BitConvert <v8f64,  v8i64,  VReg_512>;
1225def : BitConvert <v8i64,  v16i32, VReg_512>;
1226def : BitConvert <v8f64,  v16i32, VReg_512>;
1227def : BitConvert <v16i32, v8i64,  VReg_512>;
1228def : BitConvert <v16i32, v8f64,  VReg_512>;
1229def : BitConvert <v8i64,  v16f32, VReg_512>;
1230def : BitConvert <v8f64,  v16f32, VReg_512>;
1231def : BitConvert <v16f32, v8i64,  VReg_512>;
1232def : BitConvert <v16f32, v8f64,  VReg_512>;
1233
1234// 1024-bit bitcast
1235def : BitConvert <v32i32, v32f32, VReg_1024>;
1236def : BitConvert <v32f32, v32i32, VReg_1024>;
1237def : BitConvert <v16i64, v16f64, VReg_1024>;
1238def : BitConvert <v16f64, v16i64, VReg_1024>;
1239def : BitConvert <v16i64, v32i32, VReg_1024>;
1240def : BitConvert <v32i32, v16i64, VReg_1024>;
1241def : BitConvert <v16f64, v32f32, VReg_1024>;
1242def : BitConvert <v32f32, v16f64, VReg_1024>;
1243def : BitConvert <v16i64, v32f32, VReg_1024>;
1244def : BitConvert <v32i32, v16f64, VReg_1024>;
1245def : BitConvert <v16f64, v32i32, VReg_1024>;
1246def : BitConvert <v32f32, v16i64, VReg_1024>;
1247
1248
1249/********** =================== **********/
1250/********** Src & Dst modifiers **********/
1251/********** =================== **********/
1252
1253
1254// If denormals are not enabled, it only impacts the compare of the
1255// inputs. The output result is not flushed.
1256class ClampPat<Instruction inst, ValueType vt> : GCNPat <
1257  (vt (AMDGPUclamp (VOP3Mods vt:$src0, i32:$src0_modifiers))),
1258  (inst i32:$src0_modifiers, vt:$src0,
1259        i32:$src0_modifiers, vt:$src0, DSTCLAMP.ENABLE, DSTOMOD.NONE)
1260>;
1261
1262def : ClampPat<V_MAX_F32_e64, f32>;
1263def : ClampPat<V_MAX_F64_e64, f64>;
1264def : ClampPat<V_MAX_F16_e64, f16>;
1265
1266let SubtargetPredicate = HasVOP3PInsts in {
1267def : GCNPat <
1268  (v2f16 (AMDGPUclamp (VOP3PMods v2f16:$src0, i32:$src0_modifiers))),
1269  (V_PK_MAX_F16 $src0_modifiers, $src0,
1270                $src0_modifiers, $src0, DSTCLAMP.ENABLE)
1271>;
1272}
1273
1274/********** ================================ **********/
1275/********** Floating point absolute/negative **********/
1276/********** ================================ **********/
1277
1278// Prevent expanding both fneg and fabs.
1279// TODO: Add IgnoredBySelectionDAG bit?
1280let AddedComplexity = 1 in { // Prefer SALU to VALU patterns for DAG
1281
1282def : GCNPat <
1283  (fneg (fabs (f32 SReg_32:$src))),
1284  (S_OR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x80000000))) // Set sign bit
1285>;
1286
1287def : GCNPat <
1288  (fabs (f32 SReg_32:$src)),
1289  (S_AND_B32 SReg_32:$src, (S_MOV_B32 (i32 0x7fffffff)))
1290>;
1291
1292def : GCNPat <
1293  (fneg (f32 SReg_32:$src)),
1294  (S_XOR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x80000000)))
1295>;
1296
1297def : GCNPat <
1298  (fneg (f16 SReg_32:$src)),
1299  (S_XOR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x00008000)))
1300>;
1301
1302def : GCNPat <
1303  (fneg (f16 VGPR_32:$src)),
1304  (V_XOR_B32_e32 (S_MOV_B32 (i32 0x00008000)), VGPR_32:$src)
1305>;
1306
1307def : GCNPat <
1308  (fabs (f16 SReg_32:$src)),
1309  (S_AND_B32 SReg_32:$src, (S_MOV_B32 (i32 0x00007fff)))
1310>;
1311
1312def : GCNPat <
1313  (fneg (fabs (f16 SReg_32:$src))),
1314  (S_OR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x00008000))) // Set sign bit
1315>;
1316
1317def : GCNPat <
1318  (fneg (fabs (f16 VGPR_32:$src))),
1319  (V_OR_B32_e32 (S_MOV_B32 (i32 0x00008000)), VGPR_32:$src) // Set sign bit
1320>;
1321
1322def : GCNPat <
1323  (fneg (v2f16 SReg_32:$src)),
1324  (S_XOR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x80008000)))
1325>;
1326
1327def : GCNPat <
1328  (fabs (v2f16 SReg_32:$src)),
1329  (S_AND_B32 SReg_32:$src, (S_MOV_B32 (i32 0x7fff7fff)))
1330>;
1331
1332// This is really (fneg (fabs v2f16:$src))
1333//
1334// fabs is not reported as free because there is modifier for it in
1335// VOP3P instructions, so it is turned into the bit op.
1336def : GCNPat <
1337  (fneg (v2f16 (bitconvert (and_oneuse (i32 SReg_32:$src), 0x7fff7fff)))),
1338  (S_OR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x80008000))) // Set sign bit
1339>;
1340
1341def : GCNPat <
1342  (fneg (v2f16 (fabs SReg_32:$src))),
1343  (S_OR_B32 SReg_32:$src, (S_MOV_B32 (i32 0x80008000))) // Set sign bit
1344>;
1345
1346// FIXME: The implicit-def of scc from S_[X]OR/AND_B32 is mishandled
1347 // def : GCNPat <
1348//   (fneg (f64 SReg_64:$src)),
1349//   (REG_SEQUENCE SReg_64,
1350//     (i32 (EXTRACT_SUBREG SReg_64:$src, sub0)),
1351//     sub0,
1352//     (S_XOR_B32 (i32 (EXTRACT_SUBREG SReg_64:$src, sub1)),
1353//                (i32 (S_MOV_B32 (i32 0x80000000)))),
1354//     sub1)
1355// >;
1356
1357// def : GCNPat <
1358//   (fneg (fabs (f64 SReg_64:$src))),
1359//   (REG_SEQUENCE SReg_64,
1360//     (i32 (EXTRACT_SUBREG SReg_64:$src, sub0)),
1361//     sub0,
1362//     (S_OR_B32 (i32 (EXTRACT_SUBREG SReg_64:$src, sub1)),
1363//               (S_MOV_B32 (i32 0x80000000))), // Set sign bit.
1364//     sub1)
1365// >;
1366
1367// FIXME: Use S_BITSET0_B32/B64?
1368// def : GCNPat <
1369//   (fabs (f64 SReg_64:$src)),
1370//   (REG_SEQUENCE SReg_64,
1371//     (i32 (EXTRACT_SUBREG SReg_64:$src, sub0)),
1372//     sub0,
1373//     (S_AND_B32 (i32 (EXTRACT_SUBREG SReg_64:$src, sub1)),
1374//                (i32 (S_MOV_B32 (i32 0x7fffffff)))),
1375//     sub1)
1376// >;
1377
1378// COPY_TO_REGCLASS is needed to avoid using SCC from S_XOR_B32 instead
1379// of the real value.
1380def : GCNPat <
1381  (fneg (v2f32 SReg_64:$src)),
1382  (v2f32 (REG_SEQUENCE SReg_64,
1383         (f32 (COPY_TO_REGCLASS (S_XOR_B32 (i32 (EXTRACT_SUBREG $src, sub0)),
1384                                           (i32 (S_MOV_B32 (i32 0x80000000)))),
1385                                 SReg_32)), sub0,
1386         (f32 (COPY_TO_REGCLASS (S_XOR_B32 (i32 (EXTRACT_SUBREG $src, sub1)),
1387                                           (i32 (S_MOV_B32 (i32 0x80000000)))),
1388                                 SReg_32)), sub1))
1389>;
1390
1391} // End let AddedComplexity = 1
1392
1393def : GCNPat <
1394  (fabs (f32 VGPR_32:$src)),
1395  (V_AND_B32_e32 (S_MOV_B32 (i32 0x7fffffff)), VGPR_32:$src)
1396>;
1397
1398def : GCNPat <
1399  (fneg (f32 VGPR_32:$src)),
1400  (V_XOR_B32_e32 (S_MOV_B32 (i32 0x80000000)), VGPR_32:$src)
1401>;
1402
1403def : GCNPat <
1404  (fabs (f16 VGPR_32:$src)),
1405  (V_AND_B32_e32 (S_MOV_B32 (i32 0x00007fff)), VGPR_32:$src)
1406>;
1407
1408def : GCNPat <
1409  (fneg (v2f16 VGPR_32:$src)),
1410  (V_XOR_B32_e32 (S_MOV_B32 (i32 0x80008000)), VGPR_32:$src)
1411>;
1412
1413def : GCNPat <
1414  (fabs (v2f16 VGPR_32:$src)),
1415  (V_AND_B32_e32 (S_MOV_B32 (i32 0x7fff7fff)), VGPR_32:$src)
1416>;
1417
1418def : GCNPat <
1419  (fneg (v2f16 (fabs VGPR_32:$src))),
1420  (V_OR_B32_e32 (S_MOV_B32 (i32 0x80008000)), VGPR_32:$src) // Set sign bit
1421>;
1422
1423def : GCNPat <
1424  (fabs (f64 VReg_64:$src)),
1425  (REG_SEQUENCE VReg_64,
1426    (i32 (EXTRACT_SUBREG VReg_64:$src, sub0)),
1427    sub0,
1428    (V_AND_B32_e64 (i32 (EXTRACT_SUBREG VReg_64:$src, sub1)),
1429                   (V_MOV_B32_e32 (i32 0x7fffffff))), // Set sign bit.
1430     sub1)
1431>;
1432
1433// TODO: Use SGPR for constant
1434def : GCNPat <
1435  (fneg (f64 VReg_64:$src)),
1436  (REG_SEQUENCE VReg_64,
1437    (i32 (EXTRACT_SUBREG VReg_64:$src, sub0)),
1438    sub0,
1439    (V_XOR_B32_e32 (i32 (EXTRACT_SUBREG VReg_64:$src, sub1)),
1440                   (i32 (V_MOV_B32_e32 (i32 0x80000000)))),
1441    sub1)
1442>;
1443
1444// TODO: Use SGPR for constant
1445def : GCNPat <
1446  (fneg (fabs (f64 VReg_64:$src))),
1447  (REG_SEQUENCE VReg_64,
1448    (i32 (EXTRACT_SUBREG VReg_64:$src, sub0)),
1449    sub0,
1450    (V_OR_B32_e32 (i32 (EXTRACT_SUBREG VReg_64:$src, sub1)),
1451                  (V_MOV_B32_e32 (i32 0x80000000))), // Set sign bit.
1452    sub1)
1453>;
1454
1455def : GCNPat <
1456  (getDivergentFrag<fneg>.ret (v2f32 VReg_64:$src)),
1457  (V_PK_ADD_F32 11 /* OP_SEL_1 | NEG_LO | HEG_HI */, VReg_64:$src,
1458                11 /* OP_SEL_1 | NEG_LO | HEG_HI */, 0,
1459                0, 0, 0, 0, 0)
1460> {
1461  let SubtargetPredicate = HasPackedFP32Ops;
1462}
1463
1464def : GCNPat <
1465  (fcopysign f16:$src0, f16:$src1),
1466  (V_BFI_B32_e64 (S_MOV_B32 (i32 0x00007fff)), $src0, $src1)
1467>;
1468
1469def : GCNPat <
1470  (fcopysign f32:$src0, f16:$src1),
1471  (V_BFI_B32_e64 (S_MOV_B32 (i32 0x7fffffff)), $src0,
1472             (V_LSHLREV_B32_e64 (i32 16), $src1))
1473>;
1474
1475def : GCNPat <
1476  (fcopysign f64:$src0, f16:$src1),
1477  (REG_SEQUENCE SReg_64,
1478    (i32 (EXTRACT_SUBREG $src0, sub0)), sub0,
1479    (V_BFI_B32_e64 (S_MOV_B32 (i32 0x7fffffff)), (i32 (EXTRACT_SUBREG $src0, sub1)),
1480               (V_LSHLREV_B32_e64 (i32 16), $src1)), sub1)
1481>;
1482
1483def : GCNPat <
1484  (fcopysign f16:$src0, f32:$src1),
1485  (V_BFI_B32_e64 (S_MOV_B32 (i32 0x00007fff)), $src0,
1486             (V_LSHRREV_B32_e64 (i32 16), $src1))
1487>;
1488
1489def : GCNPat <
1490  (fcopysign f16:$src0, f64:$src1),
1491  (V_BFI_B32_e64 (S_MOV_B32 (i32 0x00007fff)), $src0,
1492             (V_LSHRREV_B32_e64 (i32 16), (EXTRACT_SUBREG $src1, sub1)))
1493>;
1494
1495/********** ================== **********/
1496/********** Immediate Patterns **********/
1497/********** ================== **********/
1498
1499def : GCNPat <
1500  (VGPRImm<(i32 imm)>:$imm),
1501  (V_MOV_B32_e32 imm:$imm)
1502>;
1503
1504def : GCNPat <
1505  (VGPRImm<(f32 fpimm)>:$imm),
1506  (V_MOV_B32_e32 (f32 (bitcast_fpimm_to_i32 $imm)))
1507>;
1508
1509def : GCNPat <
1510  (i32 imm:$imm),
1511  (S_MOV_B32 imm:$imm)
1512>;
1513
1514def : GCNPat <
1515  (VGPRImm<(SIlds tglobaladdr:$ga)>),
1516  (V_MOV_B32_e32 $ga)
1517>;
1518
1519def : GCNPat <
1520  (SIlds tglobaladdr:$ga),
1521  (S_MOV_B32 $ga)
1522>;
1523
1524// FIXME: Workaround for ordering issue with peephole optimizer where
1525// a register class copy interferes with immediate folding.  Should
1526// use s_mov_b32, which can be shrunk to s_movk_i32
1527def : GCNPat <
1528  (VGPRImm<(f16 fpimm)>:$imm),
1529  (V_MOV_B32_e32 (f16 (bitcast_fpimm_to_i32 $imm)))
1530>;
1531
1532def : GCNPat <
1533  (f32 fpimm:$imm),
1534  (S_MOV_B32 (f32 (bitcast_fpimm_to_i32 $imm)))
1535>;
1536
1537def : GCNPat <
1538  (f16 fpimm:$imm),
1539  (S_MOV_B32 (i32 (bitcast_fpimm_to_i32 $imm)))
1540>;
1541
1542def : GCNPat <
1543  (p5 frameindex:$fi),
1544  (V_MOV_B32_e32 (p5 (frameindex_to_targetframeindex $fi)))
1545>;
1546
1547def : GCNPat <
1548  (p5 frameindex:$fi),
1549  (S_MOV_B32 (p5 (frameindex_to_targetframeindex $fi)))
1550>;
1551
1552def : GCNPat <
1553  (i64 InlineImm64:$imm),
1554  (S_MOV_B64 InlineImm64:$imm)
1555>;
1556
1557// XXX - Should this use a s_cmp to set SCC?
1558
1559// Set to sign-extended 64-bit value (true = -1, false = 0)
1560def : GCNPat <
1561  (i1 imm:$imm),
1562  (S_MOV_B64 (i64 (as_i64imm $imm)))
1563> {
1564  let WaveSizePredicate = isWave64;
1565}
1566
1567def : GCNPat <
1568  (i1 imm:$imm),
1569  (S_MOV_B32 (i32 (as_i32imm $imm)))
1570> {
1571  let WaveSizePredicate = isWave32;
1572}
1573
1574def : GCNPat <
1575  (f64 InlineImmFP64:$imm),
1576  (S_MOV_B64 (f64 (bitcast_fpimm_to_i64 InlineImmFP64:$imm)))
1577>;
1578
1579/********** ================== **********/
1580/********** Intrinsic Patterns **********/
1581/********** ================== **********/
1582
1583let OtherPredicates = [isNotGFX90APlus] in
1584// FIXME: Should use _e64 and select source modifiers.
1585def : POW_Common <V_LOG_F32_e32, V_EXP_F32_e32, V_MUL_LEGACY_F32_e32>;
1586
1587let OtherPredicates = [isGFX90APlus] in
1588def : GCNPat <
1589  (fpow f32:$src0, f32:$src1),
1590  (V_EXP_F32_e32 (V_MUL_LEGACY_F32_e64 0, f32:$src1, SRCMODS.NONE, (V_LOG_F32_e32 f32:$src0), 0, 0))
1591>;
1592
1593def : GCNPat <
1594  (i32 (sext i1:$src0)),
1595  (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0),
1596                     /*src1mod*/(i32 0), /*src1*/(i32 -1), $src0)
1597>;
1598
1599class Ext32Pat <SDNode ext> : GCNPat <
1600  (i32 (ext i1:$src0)),
1601  (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0),
1602                     /*src1mod*/(i32 0), /*src1*/(i32 1), $src0)
1603>;
1604
1605def : Ext32Pat <zext>;
1606def : Ext32Pat <anyext>;
1607
1608// The multiplication scales from [0,1) to the unsigned integer range,
1609// rounding down a bit to avoid unwanted overflow.
1610def : GCNPat <
1611  (AMDGPUurecip i32:$src0),
1612  (V_CVT_U32_F32_e32
1613    (V_MUL_F32_e32 (i32 CONST.FP_4294966784),
1614                   (V_RCP_IFLAG_F32_e32 (V_CVT_F32_U32_e32 $src0))))
1615>;
1616
1617//===----------------------------------------------------------------------===//
1618// VOP3 Patterns
1619//===----------------------------------------------------------------------===//
1620
1621def : IMad24Pat<V_MAD_I32_I24_e64, 1>;
1622def : UMad24Pat<V_MAD_U32_U24_e64, 1>;
1623
1624// BFI patterns
1625
1626def BFIImm32 : PatFrag<
1627  (ops node:$x, node:$y, node:$z),
1628  (i32 (DivergentBinFrag<or> (and node:$y, node:$x), (and node:$z, imm))),
1629  [{
1630    auto *X = dyn_cast<ConstantSDNode>(N->getOperand(0)->getOperand(1));
1631    auto *NotX = dyn_cast<ConstantSDNode>(N->getOperand(1)->getOperand(1));
1632    return X && NotX &&
1633      ~(unsigned)X->getZExtValue() == (unsigned)NotX->getZExtValue();
1634  }]
1635>;
1636
1637// Definition from ISA doc:
1638// (y & x) | (z & ~x)
1639def : AMDGPUPat <
1640  (DivergentBinFrag<or> (and i32:$y, i32:$x), (and i32:$z, (not i32:$x))),
1641  (V_BFI_B32_e64 $x, $y, $z)
1642>;
1643
1644// (y & C) | (z & ~C)
1645def : AMDGPUPat <
1646  (BFIImm32 i32:$x, i32:$y, i32:$z),
1647  (V_BFI_B32_e64 $x, $y, $z)
1648>;
1649
1650// 64-bit version
1651def : AMDGPUPat <
1652  (DivergentBinFrag<or> (and i64:$y, i64:$x), (and i64:$z, (not i64:$x))),
1653  (REG_SEQUENCE SReg_64,
1654    (V_BFI_B32_e64 (i32 (EXTRACT_SUBREG SReg_64:$x, sub0)),
1655               (i32 (EXTRACT_SUBREG SReg_64:$y, sub0)),
1656               (i32 (EXTRACT_SUBREG SReg_64:$z, sub0))), sub0,
1657    (V_BFI_B32_e64 (i32 (EXTRACT_SUBREG SReg_64:$x, sub1)),
1658               (i32 (EXTRACT_SUBREG SReg_64:$y, sub1)),
1659               (i32 (EXTRACT_SUBREG SReg_64:$z, sub1))), sub1)
1660>;
1661
1662// SHA-256 Ch function
1663// z ^ (x & (y ^ z))
1664def : AMDGPUPat <
1665  (DivergentBinFrag<xor> i32:$z, (and i32:$x, (xor i32:$y, i32:$z))),
1666  (V_BFI_B32_e64 $x, $y, $z)
1667>;
1668
1669// 64-bit version
1670def : AMDGPUPat <
1671  (DivergentBinFrag<xor> i64:$z, (and i64:$x, (xor i64:$y, i64:$z))),
1672  (REG_SEQUENCE SReg_64,
1673    (V_BFI_B32_e64 (i32 (EXTRACT_SUBREG SReg_64:$x, sub0)),
1674               (i32 (EXTRACT_SUBREG SReg_64:$y, sub0)),
1675               (i32 (EXTRACT_SUBREG SReg_64:$z, sub0))), sub0,
1676    (V_BFI_B32_e64 (i32 (EXTRACT_SUBREG SReg_64:$x, sub1)),
1677               (i32 (EXTRACT_SUBREG SReg_64:$y, sub1)),
1678               (i32 (EXTRACT_SUBREG SReg_64:$z, sub1))), sub1)
1679>;
1680
1681def : AMDGPUPat <
1682  (fcopysign f32:$src0, f32:$src1),
1683  (V_BFI_B32_e64 (S_MOV_B32 (i32 0x7fffffff)), $src0, $src1)
1684>;
1685
1686def : AMDGPUPat <
1687  (fcopysign f32:$src0, f64:$src1),
1688  (V_BFI_B32_e64 (S_MOV_B32 (i32 0x7fffffff)), $src0,
1689             (i32 (EXTRACT_SUBREG SReg_64:$src1, sub1)))
1690>;
1691
1692def : AMDGPUPat <
1693  (fcopysign f64:$src0, f64:$src1),
1694  (REG_SEQUENCE SReg_64,
1695    (i32 (EXTRACT_SUBREG $src0, sub0)), sub0,
1696    (V_BFI_B32_e64 (S_MOV_B32 (i32 0x7fffffff)),
1697               (i32 (EXTRACT_SUBREG SReg_64:$src0, sub1)),
1698               (i32 (EXTRACT_SUBREG SReg_64:$src1, sub1))), sub1)
1699>;
1700
1701def : AMDGPUPat <
1702  (fcopysign f64:$src0, f32:$src1),
1703  (REG_SEQUENCE SReg_64,
1704    (i32 (EXTRACT_SUBREG $src0, sub0)), sub0,
1705    (V_BFI_B32_e64 (S_MOV_B32 (i32 0x7fffffff)),
1706               (i32 (EXTRACT_SUBREG SReg_64:$src0, sub1)),
1707               $src1), sub1)
1708>;
1709
1710def : ROTRPattern <V_ALIGNBIT_B32_e64>;
1711
1712def : GCNPat<(i32 (trunc (srl i64:$src0, (and i32:$src1, (i32 31))))),
1713          (V_ALIGNBIT_B32_e64 (i32 (EXTRACT_SUBREG (i64 $src0), sub1)),
1714                          (i32 (EXTRACT_SUBREG (i64 $src0), sub0)), $src1)>;
1715
1716def : GCNPat<(i32 (trunc (srl i64:$src0, (i32 ShiftAmt32Imm:$src1)))),
1717          (V_ALIGNBIT_B32_e64 (i32 (EXTRACT_SUBREG (i64 $src0), sub1)),
1718                          (i32 (EXTRACT_SUBREG (i64 $src0), sub0)), $src1)>;
1719
1720/********** ====================== **********/
1721/**********   Indirect addressing  **********/
1722/********** ====================== **********/
1723
1724multiclass SI_INDIRECT_Pattern <ValueType vt, ValueType eltvt, string VecSize> {
1725  // Extract with offset
1726  def : GCNPat<
1727    (eltvt (extractelt vt:$src, (MOVRELOffset i32:$idx, (i32 imm:$offset)))),
1728    (!cast<Instruction>("SI_INDIRECT_SRC_"#VecSize) $src, $idx, imm:$offset)
1729  >;
1730
1731  // Insert with offset
1732  def : GCNPat<
1733    (insertelt vt:$src, eltvt:$val, (MOVRELOffset i32:$idx, (i32 imm:$offset))),
1734    (!cast<Instruction>("SI_INDIRECT_DST_"#VecSize) $src, $idx, imm:$offset, $val)
1735  >;
1736}
1737
1738defm : SI_INDIRECT_Pattern <v2f32, f32, "V2">;
1739defm : SI_INDIRECT_Pattern <v4f32, f32, "V4">;
1740defm : SI_INDIRECT_Pattern <v8f32, f32, "V8">;
1741defm : SI_INDIRECT_Pattern <v16f32, f32, "V16">;
1742defm : SI_INDIRECT_Pattern <v32f32, f32, "V32">;
1743
1744defm : SI_INDIRECT_Pattern <v2i32, i32, "V2">;
1745defm : SI_INDIRECT_Pattern <v4i32, i32, "V4">;
1746defm : SI_INDIRECT_Pattern <v8i32, i32, "V8">;
1747defm : SI_INDIRECT_Pattern <v16i32, i32, "V16">;
1748defm : SI_INDIRECT_Pattern <v32i32, i32, "V32">;
1749
1750//===----------------------------------------------------------------------===//
1751// SAD Patterns
1752//===----------------------------------------------------------------------===//
1753
1754def : GCNPat <
1755  (add (sub_oneuse (umax i32:$src0, i32:$src1),
1756                   (umin i32:$src0, i32:$src1)),
1757       i32:$src2),
1758  (V_SAD_U32_e64 $src0, $src1, $src2, (i1 0))
1759>;
1760
1761def : GCNPat <
1762  (add (select_oneuse (i1 (setugt i32:$src0, i32:$src1)),
1763                      (sub i32:$src0, i32:$src1),
1764                      (sub i32:$src1, i32:$src0)),
1765       i32:$src2),
1766  (V_SAD_U32_e64 $src0, $src1, $src2, (i1 0))
1767>;
1768
1769//===----------------------------------------------------------------------===//
1770// Conversion Patterns
1771//===----------------------------------------------------------------------===//
1772
1773def : GCNPat<(i32 (sext_inreg i32:$src, i1)),
1774  (S_BFE_I32 i32:$src, (i32 65536))>; // 0 | 1 << 16
1775
1776// Handle sext_inreg in i64
1777def : GCNPat <
1778  (i64 (sext_inreg i64:$src, i1)),
1779  (S_BFE_I64 i64:$src, (i32 0x10000)) // 0 | 1 << 16
1780>;
1781
1782def : GCNPat <
1783  (i16 (sext_inreg i16:$src, i1)),
1784  (S_BFE_I32 $src, (i32 0x00010000)) // 0 | 1 << 16
1785>;
1786
1787def : GCNPat <
1788  (i16 (sext_inreg i16:$src, i8)),
1789  (S_BFE_I32 $src, (i32 0x80000)) // 0 | 8 << 16
1790>;
1791
1792def : GCNPat <
1793  (i64 (sext_inreg i64:$src, i8)),
1794  (S_BFE_I64 i64:$src, (i32 0x80000)) // 0 | 8 << 16
1795>;
1796
1797def : GCNPat <
1798  (i64 (sext_inreg i64:$src, i16)),
1799  (S_BFE_I64 i64:$src, (i32 0x100000)) // 0 | 16 << 16
1800>;
1801
1802def : GCNPat <
1803  (i64 (sext_inreg i64:$src, i32)),
1804  (S_BFE_I64 i64:$src, (i32 0x200000)) // 0 | 32 << 16
1805>;
1806
1807def : GCNPat <
1808  (i64 (zext i32:$src)),
1809  (REG_SEQUENCE SReg_64, $src, sub0, (S_MOV_B32 (i32 0)), sub1)
1810>;
1811
1812def : GCNPat <
1813  (i64 (anyext i32:$src)),
1814  (REG_SEQUENCE SReg_64, $src, sub0, (i32 (IMPLICIT_DEF)), sub1)
1815>;
1816
1817class ZExt_i64_i1_Pat <SDNode ext> : GCNPat <
1818  (i64 (ext i1:$src)),
1819    (REG_SEQUENCE VReg_64,
1820      (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0),
1821                         /*src1mod*/(i32 0), /*src1*/(i32 1), $src),
1822      sub0, (S_MOV_B32 (i32 0)), sub1)
1823>;
1824
1825
1826def : ZExt_i64_i1_Pat<zext>;
1827def : ZExt_i64_i1_Pat<anyext>;
1828
1829// FIXME: We need to use COPY_TO_REGCLASS to work-around the fact that
1830// REG_SEQUENCE patterns don't support instructions with multiple outputs.
1831def : GCNPat <
1832  (i64 (sext i32:$src)),
1833    (REG_SEQUENCE SReg_64, $src, sub0,
1834    (i32 (COPY_TO_REGCLASS (S_ASHR_I32 $src, (i32 31)), SReg_32_XM0)), sub1)
1835>;
1836
1837def : GCNPat <
1838  (i64 (sext i1:$src)),
1839  (REG_SEQUENCE VReg_64,
1840    (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0),
1841                       /*src1mod*/(i32 0), /*src1*/(i32 -1), $src), sub0,
1842    (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0),
1843                       /*src1mod*/(i32 0), /*src1*/(i32 -1), $src), sub1)
1844>;
1845
1846class FPToI1Pat<Instruction Inst, int KOne, ValueType kone_type, ValueType vt, SDPatternOperator fp_to_int> : GCNPat <
1847  (i1 (fp_to_int (vt (VOP3Mods vt:$src0, i32:$src0_modifiers)))),
1848  (i1 (Inst 0, (kone_type KOne), $src0_modifiers, $src0, DSTCLAMP.NONE))
1849>;
1850
1851def : FPToI1Pat<V_CMP_EQ_F16_e64, CONST.FP16_ONE, i16, f16, fp_to_uint>;
1852def : FPToI1Pat<V_CMP_EQ_F16_e64, CONST.FP16_NEG_ONE, i16, f16, fp_to_sint>;
1853def : FPToI1Pat<V_CMP_EQ_F32_e64, CONST.FP32_ONE, i32, f32, fp_to_uint>;
1854def : FPToI1Pat<V_CMP_EQ_F32_e64, CONST.FP32_NEG_ONE, i32, f32, fp_to_sint>;
1855def : FPToI1Pat<V_CMP_EQ_F64_e64, CONST.FP64_ONE, i64, f64, fp_to_uint>;
1856def : FPToI1Pat<V_CMP_EQ_F64_e64, CONST.FP64_NEG_ONE, i64, f64, fp_to_sint>;
1857
1858// If we need to perform a logical operation on i1 values, we need to
1859// use vector comparisons since there is only one SCC register. Vector
1860// comparisons may write to a pair of SGPRs or a single SGPR, so treat
1861// these as 32 or 64-bit comparisons. When legalizing SGPR copies,
1862// instructions resulting in the copies from SCC to these instructions
1863// will be moved to the VALU.
1864
1865let WaveSizePredicate = isWave64 in {
1866def : GCNPat <
1867  (i1 (and i1:$src0, i1:$src1)),
1868  (S_AND_B64 $src0, $src1)
1869>;
1870
1871def : GCNPat <
1872  (i1 (or i1:$src0, i1:$src1)),
1873  (S_OR_B64 $src0, $src1)
1874>;
1875
1876def : GCNPat <
1877  (i1 (xor i1:$src0, i1:$src1)),
1878  (S_XOR_B64 $src0, $src1)
1879>;
1880
1881def : GCNPat <
1882  (i1 (add i1:$src0, i1:$src1)),
1883  (S_XOR_B64 $src0, $src1)
1884>;
1885
1886def : GCNPat <
1887  (i1 (sub i1:$src0, i1:$src1)),
1888  (S_XOR_B64 $src0, $src1)
1889>;
1890
1891let AddedComplexity = 1 in {
1892def : GCNPat <
1893  (i1 (add i1:$src0, (i1 -1))),
1894  (S_NOT_B64 $src0)
1895>;
1896
1897def : GCNPat <
1898  (i1 (sub i1:$src0, (i1 -1))),
1899  (S_NOT_B64 $src0)
1900>;
1901}
1902} // end isWave64
1903
1904let WaveSizePredicate = isWave32 in {
1905def : GCNPat <
1906  (i1 (and i1:$src0, i1:$src1)),
1907  (S_AND_B32 $src0, $src1)
1908>;
1909
1910def : GCNPat <
1911  (i1 (or i1:$src0, i1:$src1)),
1912  (S_OR_B32 $src0, $src1)
1913>;
1914
1915def : GCNPat <
1916  (i1 (xor i1:$src0, i1:$src1)),
1917  (S_XOR_B32 $src0, $src1)
1918>;
1919
1920def : GCNPat <
1921  (i1 (add i1:$src0, i1:$src1)),
1922  (S_XOR_B32 $src0, $src1)
1923>;
1924
1925def : GCNPat <
1926  (i1 (sub i1:$src0, i1:$src1)),
1927  (S_XOR_B32 $src0, $src1)
1928>;
1929
1930let AddedComplexity = 1 in {
1931def : GCNPat <
1932  (i1 (add i1:$src0, (i1 -1))),
1933  (S_NOT_B32 $src0)
1934>;
1935
1936def : GCNPat <
1937  (i1 (sub i1:$src0, (i1 -1))),
1938  (S_NOT_B32 $src0)
1939>;
1940}
1941} // end isWave32
1942
1943def : GCNPat <
1944  (f16 (sint_to_fp i1:$src)),
1945  (V_CVT_F16_F32_e32 (
1946      V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0),
1947                        /*src1mod*/(i32 0), /*src1*/(i32 CONST.FP32_NEG_ONE),
1948                        SSrc_i1:$src))
1949>;
1950
1951def : GCNPat <
1952  (f16 (uint_to_fp i1:$src)),
1953  (V_CVT_F16_F32_e32 (
1954      V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0),
1955                        /*src1mod*/(i32 0), /*src1*/(i32 CONST.FP32_ONE),
1956                        SSrc_i1:$src))
1957>;
1958
1959def : GCNPat <
1960  (f32 (sint_to_fp i1:$src)),
1961  (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0),
1962                        /*src1mod*/(i32 0), /*src1*/(i32 CONST.FP32_NEG_ONE),
1963                        SSrc_i1:$src)
1964>;
1965
1966def : GCNPat <
1967  (f32 (uint_to_fp i1:$src)),
1968  (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0),
1969                        /*src1mod*/(i32 0), /*src1*/(i32 CONST.FP32_ONE),
1970                        SSrc_i1:$src)
1971>;
1972
1973def : GCNPat <
1974  (f64 (sint_to_fp i1:$src)),
1975  (V_CVT_F64_I32_e32 (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0),
1976                                        /*src1mod*/(i32 0), /*src1*/(i32 -1),
1977                                        SSrc_i1:$src))
1978>;
1979
1980def : GCNPat <
1981  (f64 (uint_to_fp i1:$src)),
1982  (V_CVT_F64_U32_e32 (V_CNDMASK_B32_e64 /*src0mod*/(i32 0), /*src0*/(i32 0),
1983                                        /*src1mod*/(i32 0), /*src1*/(i32 1),
1984                                        SSrc_i1:$src))
1985>;
1986
1987//===----------------------------------------------------------------------===//
1988// Miscellaneous Patterns
1989//===----------------------------------------------------------------------===//
1990def : GCNPat <
1991  (i32 (AMDGPUfp16_zext f16:$src)),
1992  (COPY $src)
1993>;
1994
1995
1996def : GCNPat <
1997  (i32 (trunc i64:$a)),
1998  (EXTRACT_SUBREG $a, sub0)
1999>;
2000
2001def : GCNPat <
2002  (i1 (trunc i32:$a)),
2003  (V_CMP_EQ_U32_e64 (S_AND_B32 (i32 1), $a), (i32 1))
2004>;
2005
2006def : GCNPat <
2007  (i1 (trunc i16:$a)),
2008  (V_CMP_EQ_U32_e64 (S_AND_B32 (i32 1), $a), (i32 1))
2009>;
2010
2011def : GCNPat <
2012  (i1 (trunc i64:$a)),
2013  (V_CMP_EQ_U32_e64 (S_AND_B32 (i32 1),
2014                    (i32 (EXTRACT_SUBREG $a, sub0))), (i32 1))
2015>;
2016
2017def : GCNPat <
2018  (i32 (bswap i32:$a)),
2019  (V_BFI_B32_e64 (S_MOV_B32 (i32 0x00ff00ff)),
2020             (V_ALIGNBIT_B32_e64 VSrc_b32:$a, VSrc_b32:$a, (i32 24)),
2021             (V_ALIGNBIT_B32_e64 VSrc_b32:$a, VSrc_b32:$a, (i32 8)))
2022>;
2023
2024// FIXME: This should have been narrowed to i32 during legalization.
2025// This pattern should also be skipped for GlobalISel
2026def : GCNPat <
2027  (i64 (bswap i64:$a)),
2028  (REG_SEQUENCE VReg_64,
2029  (V_BFI_B32_e64 (S_MOV_B32 (i32 0x00ff00ff)),
2030             (V_ALIGNBIT_B32_e64 (i32 (EXTRACT_SUBREG VReg_64:$a, sub1)),
2031                             (i32 (EXTRACT_SUBREG VReg_64:$a, sub1)),
2032                             (i32 24)),
2033             (V_ALIGNBIT_B32_e64 (i32 (EXTRACT_SUBREG VReg_64:$a, sub1)),
2034                             (i32 (EXTRACT_SUBREG VReg_64:$a, sub1)),
2035                             (i32 8))),
2036  sub0,
2037  (V_BFI_B32_e64 (S_MOV_B32 (i32 0x00ff00ff)),
2038             (V_ALIGNBIT_B32_e64 (i32 (EXTRACT_SUBREG VReg_64:$a, sub0)),
2039                             (i32 (EXTRACT_SUBREG VReg_64:$a, sub0)),
2040                             (i32 24)),
2041             (V_ALIGNBIT_B32_e64 (i32 (EXTRACT_SUBREG VReg_64:$a, sub0)),
2042                             (i32 (EXTRACT_SUBREG VReg_64:$a, sub0)),
2043                             (i32 8))),
2044  sub1)
2045>;
2046
2047// FIXME: The AddedComplexity should not be needed, but in GlobalISel
2048// the BFI pattern ends up taking precedence without it.
2049let SubtargetPredicate = isGFX8Plus, AddedComplexity = 1 in {
2050// Magic number: 3 | (2 << 8) | (1 << 16) | (0 << 24)
2051//
2052// My reading of the manual suggests we should be using src0 for the
2053// register value, but this is what seems to work.
2054def : GCNPat <
2055  (i32 (bswap i32:$a)),
2056  (V_PERM_B32_e64 (i32 0), VSrc_b32:$a, (S_MOV_B32 (i32 0x00010203)))
2057>;
2058
2059// FIXME: This should have been narrowed to i32 during legalization.
2060// This pattern should also be skipped for GlobalISel
2061def : GCNPat <
2062  (i64 (bswap i64:$a)),
2063  (REG_SEQUENCE VReg_64,
2064  (V_PERM_B32_e64  (i32 0), (EXTRACT_SUBREG VReg_64:$a, sub1),
2065              (S_MOV_B32 (i32 0x00010203))),
2066  sub0,
2067  (V_PERM_B32_e64  (i32 0), (EXTRACT_SUBREG VReg_64:$a, sub0),
2068              (S_MOV_B32 (i32 0x00010203))),
2069  sub1)
2070>;
2071
2072// Magic number: 1 | (0 << 8) | (12 << 16) | (12 << 24)
2073// The 12s emit 0s.
2074def : GCNPat <
2075  (i16 (bswap i16:$a)),
2076  (V_PERM_B32_e64  (i32 0), VSrc_b32:$a, (S_MOV_B32 (i32 0x0c0c0001)))
2077>;
2078
2079def : GCNPat <
2080  (i32 (zext (bswap i16:$a))),
2081  (V_PERM_B32_e64  (i32 0), VSrc_b32:$a, (S_MOV_B32 (i32 0x0c0c0001)))
2082>;
2083
2084// Magic number: 1 | (0 << 8) | (3 << 16) | (2 << 24)
2085def : GCNPat <
2086  (v2i16 (bswap v2i16:$a)),
2087  (V_PERM_B32_e64  (i32 0), VSrc_b32:$a, (S_MOV_B32 (i32 0x02030001)))
2088>;
2089
2090}
2091
2092
2093// Prefer selecting to max when legal, but using mul is always valid.
2094let AddedComplexity = -5 in {
2095def : GCNPat<
2096  (fcanonicalize (f16 (VOP3Mods f16:$src, i32:$src_mods))),
2097  (V_MUL_F16_e64 0, (i32 CONST.FP16_ONE), $src_mods, $src)
2098>;
2099
2100def : GCNPat<
2101  (fcanonicalize (f16 (fneg (VOP3Mods f16:$src, i32:$src_mods)))),
2102  (V_MUL_F16_e64 0, (i32 CONST.FP16_NEG_ONE), $src_mods, $src)
2103>;
2104
2105def : GCNPat<
2106  (fcanonicalize (v2f16 (VOP3PMods v2f16:$src, i32:$src_mods))),
2107  (V_PK_MUL_F16 0, (i32 CONST.FP16_ONE), $src_mods, $src, DSTCLAMP.NONE)
2108>;
2109
2110def : GCNPat<
2111  (fcanonicalize (f32 (VOP3Mods f32:$src, i32:$src_mods))),
2112  (V_MUL_F32_e64 0, (i32 CONST.FP32_ONE), $src_mods, $src)
2113>;
2114
2115def : GCNPat<
2116  (fcanonicalize (f32 (fneg (VOP3Mods f32:$src, i32:$src_mods)))),
2117  (V_MUL_F32_e64 0, (i32 CONST.FP32_NEG_ONE), $src_mods, $src)
2118>;
2119
2120// TODO: Handle fneg like other types.
2121def : GCNPat<
2122  (fcanonicalize (f64 (VOP3Mods f64:$src, i32:$src_mods))),
2123  (V_MUL_F64_e64  0, CONST.FP64_ONE, $src_mods, $src)
2124>;
2125} // End AddedComplexity = -5
2126
2127multiclass SelectCanonicalizeAsMax<
2128  list<Predicate> f32_preds = [],
2129  list<Predicate> f64_preds = [],
2130  list<Predicate> f16_preds = []> {
2131  def : GCNPat<
2132    (fcanonicalize (f32 (VOP3Mods f32:$src, i32:$src_mods))),
2133    (V_MAX_F32_e64 $src_mods, $src, $src_mods, $src)> {
2134    let OtherPredicates = f32_preds;
2135  }
2136
2137  def : GCNPat<
2138    (fcanonicalize (f64 (VOP3Mods f64:$src, i32:$src_mods))),
2139    (V_MAX_F64_e64  $src_mods, $src, $src_mods, $src)> {
2140    let OtherPredicates = f64_preds;
2141  }
2142
2143  def : GCNPat<
2144    (fcanonicalize (f16 (VOP3Mods f16:$src, i32:$src_mods))),
2145    (V_MAX_F16_e64 $src_mods, $src, $src_mods, $src, 0, 0)> {
2146    // FIXME: Should have 16-bit inst subtarget predicate
2147    let OtherPredicates = f16_preds;
2148  }
2149
2150  def : GCNPat<
2151    (fcanonicalize (v2f16 (VOP3PMods v2f16:$src, i32:$src_mods))),
2152    (V_PK_MAX_F16 $src_mods, $src, $src_mods, $src, DSTCLAMP.NONE)> {
2153    // FIXME: Should have VOP3P subtarget predicate
2154    let OtherPredicates = f16_preds;
2155  }
2156}
2157
2158// On pre-gfx9 targets, v_max_*/v_min_* did not respect the denormal
2159// mode, and would never flush. For f64, it's faster to do implement
2160// this with a max. For f16/f32 it's a wash, but prefer max when
2161// valid.
2162//
2163// FIXME: Lowering f32/f16 with max is worse since we can use a
2164// smaller encoding if the input is fneg'd. It also adds an extra
2165// register use.
2166let SubtargetPredicate = HasMinMaxDenormModes in {
2167  defm : SelectCanonicalizeAsMax<[], [], []>;
2168} // End SubtargetPredicate = HasMinMaxDenormModes
2169
2170let SubtargetPredicate = NotHasMinMaxDenormModes in {
2171  // Use the max lowering if we don't need to flush.
2172
2173  // FIXME: We don't do use this for f32 as a workaround for the
2174  // library being compiled with the default ieee mode, but
2175  // potentially being called from flushing kernels. Really we should
2176  // not be mixing code expecting different default FP modes, but mul
2177  // works in any FP environment.
2178  defm : SelectCanonicalizeAsMax<[FalsePredicate], [FP64Denormals], [FP16Denormals]>;
2179} // End SubtargetPredicate = NotHasMinMaxDenormModes
2180
2181
2182let OtherPredicates = [HasDLInsts] in {
2183def : GCNPat <
2184  (fma (f32 (VOP3Mods f32:$src0, i32:$src0_modifiers)),
2185       (f32 (VOP3Mods f32:$src1, i32:$src1_modifiers)),
2186       (f32 (VOP3NoMods f32:$src2))),
2187  (V_FMAC_F32_e64 $src0_modifiers, $src0, $src1_modifiers, $src1,
2188                  SRCMODS.NONE, $src2)
2189>;
2190} // End OtherPredicates = [HasDLInsts]
2191
2192let SubtargetPredicate = isGFX10Plus in
2193def : GCNPat <
2194  (fma (f16 (VOP3Mods f32:$src0, i32:$src0_modifiers)),
2195       (f16 (VOP3Mods f32:$src1, i32:$src1_modifiers)),
2196       (f16 (VOP3NoMods f32:$src2))),
2197  (V_FMAC_F16_e64 $src0_modifiers, $src0, $src1_modifiers, $src1,
2198                  SRCMODS.NONE, $src2)
2199>;
2200
2201let SubtargetPredicate = isGFX90APlus in
2202def : GCNPat <
2203  (fma (f64 (VOP3Mods0 f64:$src0, i32:$src0_modifiers, i1:$clamp, i32:$omod)),
2204       (f64 (VOP3Mods f64:$src1, i32:$src1_modifiers)),
2205       (f64 (VOP3NoMods f64:$src2))),
2206  (V_FMAC_F64_e64 $src0_modifiers, $src0, $src1_modifiers, $src1,
2207                  SRCMODS.NONE, $src2, $clamp, $omod)
2208>;
2209
2210// COPY is workaround tablegen bug from multiple outputs
2211// from S_LSHL_B32's multiple outputs from implicit scc def.
2212def : GCNPat <
2213  (v2i16 (build_vector (i16 0), (i16 SReg_32:$src1))),
2214  (S_LSHL_B32 SReg_32:$src1, (i16 16))
2215>;
2216
2217def : GCNPat <
2218  (v2i16 (build_vector (i16 SReg_32:$src1), (i16 0))),
2219  (S_AND_B32 (S_MOV_B32 (i32 0xffff)), SReg_32:$src1)
2220>;
2221
2222def : GCNPat <
2223  (v2f16 (build_vector (f16 SReg_32:$src1), (f16 FP_ZERO))),
2224  (S_AND_B32 (S_MOV_B32 (i32 0xffff)), SReg_32:$src1)
2225>;
2226
2227def : GCNPat <
2228  (v2i16 (build_vector (i16 SReg_32:$src0), (i16 undef))),
2229  (COPY_TO_REGCLASS SReg_32:$src0, SReg_32)
2230>;
2231
2232def : GCNPat <
2233  (v2i16 (build_vector (i16 VGPR_32:$src0), (i16 undef))),
2234  (COPY_TO_REGCLASS VGPR_32:$src0, VGPR_32)
2235>;
2236
2237def : GCNPat <
2238  (v2f16 (build_vector f16:$src0, (f16 undef))),
2239  (COPY $src0)
2240>;
2241
2242def : GCNPat <
2243  (v2i16 (build_vector (i16 undef), (i16 SReg_32:$src1))),
2244  (S_LSHL_B32 SReg_32:$src1, (i32 16))
2245>;
2246
2247def : GCNPat <
2248  (v2f16 (build_vector (f16 undef), (f16 SReg_32:$src1))),
2249  (S_LSHL_B32 SReg_32:$src1, (i32 16))
2250>;
2251
2252let SubtargetPredicate = HasVOP3PInsts in {
2253def : GCNPat <
2254  (v2i16 (build_vector (i16 SReg_32:$src0), (i16 SReg_32:$src1))),
2255  (S_PACK_LL_B32_B16 SReg_32:$src0, SReg_32:$src1)
2256>;
2257
2258// With multiple uses of the shift, this will duplicate the shift and
2259// increase register pressure.
2260def : GCNPat <
2261  (v2i16 (build_vector (i16 SReg_32:$src0), (i16 (trunc (srl_oneuse SReg_32:$src1, (i32 16)))))),
2262  (v2i16 (S_PACK_LH_B32_B16 SReg_32:$src0, SReg_32:$src1))
2263>;
2264
2265
2266def : GCNPat <
2267  (v2i16 (build_vector (i16 (trunc (srl_oneuse SReg_32:$src0, (i32 16)))),
2268                       (i16 (trunc (srl_oneuse SReg_32:$src1, (i32 16)))))),
2269  (S_PACK_HH_B32_B16 SReg_32:$src0, SReg_32:$src1)
2270>;
2271
2272// TODO: Should source modifiers be matched to v_pack_b32_f16?
2273def : GCNPat <
2274  (v2f16 (build_vector (f16 SReg_32:$src0), (f16 SReg_32:$src1))),
2275  (S_PACK_LL_B32_B16 SReg_32:$src0, SReg_32:$src1)
2276>;
2277
2278} // End SubtargetPredicate = HasVOP3PInsts
2279
2280
2281def : GCNPat <
2282  (v2f16 (scalar_to_vector f16:$src0)),
2283  (COPY $src0)
2284>;
2285
2286def : GCNPat <
2287  (v2i16 (scalar_to_vector i16:$src0)),
2288  (COPY $src0)
2289>;
2290
2291def : GCNPat <
2292  (v4i16 (scalar_to_vector i16:$src0)),
2293  (INSERT_SUBREG (IMPLICIT_DEF), $src0, sub0)
2294>;
2295
2296def : GCNPat <
2297  (v4f16 (scalar_to_vector f16:$src0)),
2298  (INSERT_SUBREG (IMPLICIT_DEF), $src0, sub0)
2299>;
2300
2301def : GCNPat <
2302  (i64 (int_amdgcn_mov_dpp i64:$src, timm:$dpp_ctrl, timm:$row_mask,
2303                           timm:$bank_mask, timm:$bound_ctrl)),
2304  (V_MOV_B64_DPP_PSEUDO VReg_64_Align2:$src, VReg_64_Align2:$src,
2305                        (as_i32timm $dpp_ctrl), (as_i32timm $row_mask),
2306                        (as_i32timm $bank_mask),
2307                        (as_i1timm $bound_ctrl))
2308>;
2309
2310def : GCNPat <
2311  (i64 (int_amdgcn_update_dpp i64:$old, i64:$src, timm:$dpp_ctrl, timm:$row_mask,
2312                              timm:$bank_mask, timm:$bound_ctrl)),
2313  (V_MOV_B64_DPP_PSEUDO VReg_64_Align2:$old, VReg_64_Align2:$src, (as_i32timm $dpp_ctrl),
2314                        (as_i32timm $row_mask), (as_i32timm $bank_mask),
2315                        (as_i1timm $bound_ctrl))
2316>;
2317
2318//===----------------------------------------------------------------------===//
2319// Fract Patterns
2320//===----------------------------------------------------------------------===//
2321
2322let SubtargetPredicate = isGFX6 in {
2323
2324// V_FRACT is buggy on SI, so the F32 version is never used and (x-floor(x)) is
2325// used instead. However, SI doesn't have V_FLOOR_F64, so the most efficient
2326// way to implement it is using V_FRACT_F64.
2327// The workaround for the V_FRACT bug is:
2328//    fract(x) = isnan(x) ? x : min(V_FRACT(x), 0.99999999999999999)
2329
2330// Convert floor(x) to (x - fract(x))
2331
2332// Don't bother handling this for GlobalISel, it's handled during
2333// lowering.
2334//
2335// FIXME: DAG should also custom lower this.
2336def : GCNPat <
2337  (f64 (ffloor (f64 (VOP3Mods f64:$x, i32:$mods)))),
2338  (V_ADD_F64_e64
2339      $mods,
2340      $x,
2341      SRCMODS.NEG,
2342      (V_CNDMASK_B64_PSEUDO
2343         (V_MIN_F64_e64
2344             SRCMODS.NONE,
2345             (V_FRACT_F64_e64 $mods, $x),
2346             SRCMODS.NONE,
2347             (V_MOV_B64_PSEUDO 0x3fefffffffffffff)),
2348         $x,
2349         (V_CMP_CLASS_F64_e64 SRCMODS.NONE, $x, (i32 3 /*NaN*/))))
2350>;
2351
2352} // End SubtargetPredicates = isGFX6
2353
2354//============================================================================//
2355// Miscellaneous Optimization Patterns
2356//============================================================================//
2357
2358// Undo sub x, c -> add x, -c canonicalization since c is more likely
2359// an inline immediate than -c.
2360// TODO: Also do for 64-bit.
2361def : GCNPat<
2362  (add i32:$src0, (i32 NegSubInlineConst32:$src1)),
2363  (S_SUB_I32 SReg_32:$src0, NegSubInlineConst32:$src1)
2364>;
2365
2366def : GCNPat<
2367  (add i32:$src0, (i32 NegSubInlineConst32:$src1)),
2368  (V_SUB_U32_e64 VS_32:$src0, NegSubInlineConst32:$src1)> {
2369  let SubtargetPredicate = HasAddNoCarryInsts;
2370}
2371
2372def : GCNPat<
2373  (add i32:$src0, (i32 NegSubInlineConst32:$src1)),
2374  (V_SUB_CO_U32_e64 VS_32:$src0, NegSubInlineConst32:$src1)> {
2375  let SubtargetPredicate = NotHasAddNoCarryInsts;
2376}
2377
2378
2379// Avoid pointlessly materializing a constant in VGPR.
2380// FIXME: Should also do this for readlane, but tablegen crashes on
2381// the ignored src1.
2382def : GCNPat<
2383  (int_amdgcn_readfirstlane (i32 imm:$src)),
2384  (S_MOV_B32 SReg_32:$src)
2385>;
2386
2387multiclass BFMPatterns <ValueType vt, InstSI BFM, InstSI MOV> {
2388  def : GCNPat <
2389    (vt (shl (vt (add (vt (shl 1, vt:$a)), -1)), vt:$b)),
2390    (BFM $a, $b)
2391  >;
2392
2393  def : GCNPat <
2394    (vt (add (vt (shl 1, vt:$a)), -1)),
2395    (BFM $a, (MOV (i32 0)))
2396  >;
2397}
2398
2399defm : BFMPatterns <i32, S_BFM_B32, S_MOV_B32>;
2400// FIXME: defm : BFMPatterns <i64, S_BFM_B64, S_MOV_B64>;
2401
2402// Bitfield extract patterns
2403
2404def IMMZeroBasedBitfieldMask : ImmLeaf <i32, [{
2405  return isMask_32(Imm);
2406}]>;
2407
2408def IMMPopCount : SDNodeXForm<imm, [{
2409  return CurDAG->getTargetConstant(countPopulation(N->getZExtValue()), SDLoc(N),
2410                                   MVT::i32);
2411}]>;
2412
2413def : AMDGPUPat <
2414  (DivergentBinFrag<and> (i32 (srl i32:$src, i32:$rshift)),
2415                         IMMZeroBasedBitfieldMask:$mask),
2416  (V_BFE_U32_e64 $src, $rshift, (i32 (IMMPopCount $mask)))
2417>;
2418
2419// x & ((1 << y) - 1)
2420def : AMDGPUPat <
2421  (DivergentBinFrag<and> i32:$src, (add_oneuse (shl_oneuse 1, i32:$width), -1)),
2422  (V_BFE_U32_e64 $src, (i32 0), $width)
2423>;
2424
2425// x & ~(-1 << y)
2426def : AMDGPUPat <
2427  (DivergentBinFrag<and> i32:$src,
2428                         (xor_oneuse (shl_oneuse -1, i32:$width), -1)),
2429  (V_BFE_U32_e64 $src, (i32 0), $width)
2430>;
2431
2432// x & (-1 >> (bitwidth - y))
2433def : AMDGPUPat <
2434  (DivergentBinFrag<and> i32:$src, (srl_oneuse -1, (sub 32, i32:$width))),
2435  (V_BFE_U32_e64 $src, (i32 0), $width)
2436>;
2437
2438// x << (bitwidth - y) >> (bitwidth - y)
2439def : AMDGPUPat <
2440  (DivergentBinFrag<srl> (shl_oneuse i32:$src, (sub 32, i32:$width)),
2441                         (sub 32, i32:$width)),
2442  (V_BFE_U32_e64 $src, (i32 0), $width)
2443>;
2444
2445def : AMDGPUPat <
2446  (DivergentBinFrag<sra> (shl_oneuse i32:$src, (sub 32, i32:$width)),
2447                         (sub 32, i32:$width)),
2448  (V_BFE_I32_e64 $src, (i32 0), $width)
2449>;
2450
2451// SHA-256 Ma patterns
2452
2453// ((x & z) | (y & (x | z))) -> BFI (XOR x, y), z, y
2454def : AMDGPUPat <
2455  (DivergentBinFrag<or> (and i32:$x, i32:$z),
2456                        (and i32:$y, (or i32:$x, i32:$z))),
2457  (V_BFI_B32_e64 (V_XOR_B32_e64 i32:$x, i32:$y), i32:$z, i32:$y)
2458>;
2459
2460def : AMDGPUPat <
2461  (DivergentBinFrag<or> (and i64:$x, i64:$z),
2462                        (and i64:$y, (or i64:$x, i64:$z))),
2463  (REG_SEQUENCE SReg_64,
2464    (V_BFI_B32_e64 (V_XOR_B32_e64 (i32 (EXTRACT_SUBREG SReg_64:$x, sub0)),
2465                    (i32 (EXTRACT_SUBREG SReg_64:$y, sub0))),
2466               (i32 (EXTRACT_SUBREG SReg_64:$z, sub0)),
2467               (i32 (EXTRACT_SUBREG SReg_64:$y, sub0))), sub0,
2468    (V_BFI_B32_e64 (V_XOR_B32_e64 (i32 (EXTRACT_SUBREG SReg_64:$x, sub1)),
2469                    (i32 (EXTRACT_SUBREG SReg_64:$y, sub1))),
2470               (i32 (EXTRACT_SUBREG SReg_64:$z, sub1)),
2471               (i32 (EXTRACT_SUBREG SReg_64:$y, sub1))), sub1)
2472>;
2473
2474multiclass IntMed3Pat<Instruction med3Inst,
2475                 SDPatternOperator min,
2476                 SDPatternOperator max,
2477                 SDPatternOperator min_oneuse,
2478                 SDPatternOperator max_oneuse> {
2479
2480  // This matches 16 permutations of
2481  // min(max(a, b), max(min(a, b), c))
2482  def : AMDGPUPat <
2483  (min (max_oneuse i32:$src0, i32:$src1),
2484       (max_oneuse (min_oneuse i32:$src0, i32:$src1), i32:$src2)),
2485  (med3Inst VSrc_b32:$src0, VSrc_b32:$src1, VSrc_b32:$src2)
2486>;
2487
2488  // This matches 16 permutations of
2489  // max(min(x, y), min(max(x, y), z))
2490  def : AMDGPUPat <
2491  (max (min_oneuse i32:$src0, i32:$src1),
2492       (min_oneuse (max_oneuse i32:$src0, i32:$src1), i32:$src2)),
2493  (med3Inst VSrc_b32:$src0, VSrc_b32:$src1, VSrc_b32:$src2)
2494>;
2495}
2496
2497defm : IntMed3Pat<V_MED3_I32_e64, smin, smax, smin_oneuse, smax_oneuse>;
2498defm : IntMed3Pat<V_MED3_U32_e64, umin, umax, umin_oneuse, umax_oneuse>;
2499
2500// This matches 16 permutations of
2501// max(min(x, y), min(max(x, y), z))
2502class FPMed3Pat<ValueType vt,
2503                //SDPatternOperator max, SDPatternOperator min,
2504                Instruction med3Inst> : GCNPat<
2505  (fmaxnum_like (fminnum_like_oneuse (VOP3Mods_nnan vt:$src0, i32:$src0_mods),
2506                           (VOP3Mods_nnan vt:$src1, i32:$src1_mods)),
2507           (fminnum_like_oneuse (fmaxnum_like_oneuse (VOP3Mods_nnan vt:$src0, i32:$src0_mods),
2508                                           (VOP3Mods_nnan vt:$src1, i32:$src1_mods)),
2509                           (vt (VOP3Mods_nnan vt:$src2, i32:$src2_mods)))),
2510  (med3Inst $src0_mods, $src0, $src1_mods, $src1, $src2_mods, $src2, DSTCLAMP.NONE, DSTOMOD.NONE)
2511>;
2512
2513class FP16Med3Pat<ValueType vt,
2514                Instruction med3Inst> : GCNPat<
2515  (fmaxnum_like (fminnum_like_oneuse (VOP3Mods_nnan vt:$src0, i32:$src0_mods),
2516                                     (VOP3Mods_nnan vt:$src1, i32:$src1_mods)),
2517           (fminnum_like_oneuse (fmaxnum_like_oneuse (VOP3Mods_nnan vt:$src0, i32:$src0_mods),
2518                                                     (VOP3Mods_nnan vt:$src1, i32:$src1_mods)),
2519                           (vt (VOP3Mods_nnan vt:$src2, i32:$src2_mods)))),
2520  (med3Inst $src0_mods, $src0, $src1_mods, $src1, $src2_mods, $src2, DSTCLAMP.NONE)
2521>;
2522
2523multiclass Int16Med3Pat<Instruction med3Inst,
2524                   SDPatternOperator min,
2525                   SDPatternOperator max,
2526                   SDPatternOperator max_oneuse,
2527                   SDPatternOperator min_oneuse> {
2528  // This matches 16 permutations of
2529  // max(min(x, y), min(max(x, y), z))
2530  def : GCNPat <
2531  (max (min_oneuse i16:$src0, i16:$src1),
2532       (min_oneuse (max_oneuse i16:$src0, i16:$src1), i16:$src2)),
2533  (med3Inst SRCMODS.NONE, VSrc_b16:$src0, SRCMODS.NONE, VSrc_b16:$src1, SRCMODS.NONE, VSrc_b16:$src2, DSTCLAMP.NONE)
2534>;
2535
2536  // This matches 16 permutations of
2537  // min(max(a, b), max(min(a, b), c))
2538  def : GCNPat <
2539  (min (max_oneuse i16:$src0, i16:$src1),
2540      (max_oneuse (min_oneuse i16:$src0, i16:$src1), i16:$src2)),
2541  (med3Inst SRCMODS.NONE, VSrc_b16:$src0, SRCMODS.NONE, VSrc_b16:$src1, SRCMODS.NONE, VSrc_b16:$src2, DSTCLAMP.NONE)
2542>;
2543}
2544
2545def : FPMed3Pat<f32, V_MED3_F32_e64>;
2546
2547let OtherPredicates = [isGFX9Plus] in {
2548def : FP16Med3Pat<f16, V_MED3_F16_e64>;
2549defm : Int16Med3Pat<V_MED3_I16_e64, smin, smax, smax_oneuse, smin_oneuse>;
2550defm : Int16Med3Pat<V_MED3_U16_e64, umin, umax, umax_oneuse, umin_oneuse>;
2551} // End Predicates = [isGFX9Plus]
2552
2553class AMDGPUGenericInstruction : GenericInstruction {
2554  let Namespace = "AMDGPU";
2555}
2556
2557def G_AMDGPU_FFBH_U32 : AMDGPUGenericInstruction {
2558  let OutOperandList = (outs type0:$dst);
2559  let InOperandList = (ins type1:$src);
2560  let hasSideEffects = 0;
2561}
2562
2563def G_AMDGPU_RCP_IFLAG : AMDGPUGenericInstruction {
2564  let OutOperandList = (outs type0:$dst);
2565  let InOperandList = (ins type1:$src);
2566  let hasSideEffects = 0;
2567}
2568
2569class BufferLoadGenericInstruction : AMDGPUGenericInstruction {
2570  let OutOperandList = (outs type0:$dst);
2571  let InOperandList = (ins type1:$rsrc, type2:$vindex, type2:$voffset,
2572                           type2:$soffset, untyped_imm_0:$offset,
2573                           untyped_imm_0:$cachepolicy, untyped_imm_0:$idxen);
2574  let hasSideEffects = 0;
2575  let mayLoad = 1;
2576}
2577
2578class TBufferLoadGenericInstruction : AMDGPUGenericInstruction {
2579  let OutOperandList = (outs type0:$dst);
2580  let InOperandList = (ins type1:$rsrc, type2:$vindex, type2:$voffset,
2581                           type2:$soffset, untyped_imm_0:$offset, untyped_imm_0:$format,
2582                           untyped_imm_0:$cachepolicy, untyped_imm_0:$idxen);
2583  let hasSideEffects = 0;
2584  let mayLoad = 1;
2585}
2586
2587def G_AMDGPU_BUFFER_LOAD_UBYTE : BufferLoadGenericInstruction;
2588def G_AMDGPU_BUFFER_LOAD_SBYTE : BufferLoadGenericInstruction;
2589def G_AMDGPU_BUFFER_LOAD_USHORT : BufferLoadGenericInstruction;
2590def G_AMDGPU_BUFFER_LOAD_SSHORT : BufferLoadGenericInstruction;
2591def G_AMDGPU_BUFFER_LOAD : BufferLoadGenericInstruction;
2592def G_AMDGPU_BUFFER_LOAD_FORMAT : BufferLoadGenericInstruction;
2593def G_AMDGPU_BUFFER_LOAD_FORMAT_D16 : BufferLoadGenericInstruction;
2594def G_AMDGPU_TBUFFER_LOAD_FORMAT : TBufferLoadGenericInstruction;
2595def G_AMDGPU_TBUFFER_LOAD_FORMAT_D16 : TBufferLoadGenericInstruction;
2596
2597class BufferStoreGenericInstruction : AMDGPUGenericInstruction {
2598  let OutOperandList = (outs);
2599  let InOperandList = (ins type0:$vdata, type1:$rsrc, type2:$vindex, type2:$voffset,
2600                           type2:$soffset, untyped_imm_0:$offset,
2601                           untyped_imm_0:$cachepolicy, untyped_imm_0:$idxen);
2602  let hasSideEffects = 0;
2603  let mayStore = 1;
2604}
2605
2606class TBufferStoreGenericInstruction : AMDGPUGenericInstruction {
2607  let OutOperandList = (outs);
2608  let InOperandList = (ins type0:$vdata, type1:$rsrc, type2:$vindex, type2:$voffset,
2609                           type2:$soffset, untyped_imm_0:$offset,
2610                           untyped_imm_0:$format,
2611                           untyped_imm_0:$cachepolicy, untyped_imm_0:$idxen);
2612  let hasSideEffects = 0;
2613  let mayStore = 1;
2614}
2615
2616def G_AMDGPU_BUFFER_STORE : BufferStoreGenericInstruction;
2617def G_AMDGPU_BUFFER_STORE_BYTE : BufferStoreGenericInstruction;
2618def G_AMDGPU_BUFFER_STORE_SHORT : BufferStoreGenericInstruction;
2619def G_AMDGPU_BUFFER_STORE_FORMAT : BufferStoreGenericInstruction;
2620def G_AMDGPU_BUFFER_STORE_FORMAT_D16 : BufferStoreGenericInstruction;
2621def G_AMDGPU_TBUFFER_STORE_FORMAT : TBufferStoreGenericInstruction;
2622def G_AMDGPU_TBUFFER_STORE_FORMAT_D16 : TBufferStoreGenericInstruction;
2623
2624def G_AMDGPU_FMIN_LEGACY : AMDGPUGenericInstruction {
2625  let OutOperandList = (outs type0:$dst);
2626  let InOperandList = (ins type0:$src0, type0:$src1);
2627  let hasSideEffects = 0;
2628}
2629
2630def G_AMDGPU_FMAX_LEGACY : AMDGPUGenericInstruction {
2631  let OutOperandList = (outs type0:$dst);
2632  let InOperandList = (ins type0:$src0, type0:$src1);
2633  let hasSideEffects = 0;
2634}
2635
2636foreach N = 0-3 in {
2637def G_AMDGPU_CVT_F32_UBYTE#N : AMDGPUGenericInstruction {
2638  let OutOperandList = (outs type0:$dst);
2639  let InOperandList = (ins type0:$src0);
2640  let hasSideEffects = 0;
2641}
2642}
2643
2644def G_AMDGPU_CVT_PK_I16_I32 : AMDGPUGenericInstruction {
2645  let OutOperandList = (outs type0:$dst);
2646  let InOperandList = (ins type0:$src0, type0:$src1);
2647  let hasSideEffects = 0;
2648}
2649
2650def G_AMDGPU_MED3 : AMDGPUGenericInstruction {
2651  let OutOperandList = (outs type0:$dst);
2652  let InOperandList = (ins type0:$src0, type0:$src1, type0:$src2);
2653  let hasSideEffects = 0;
2654}
2655
2656// Atomic cmpxchg. $cmpval ad $newval are packed in a single vector
2657// operand Expects a MachineMemOperand in addition to explicit
2658// operands.
2659def G_AMDGPU_ATOMIC_CMPXCHG : AMDGPUGenericInstruction {
2660  let OutOperandList = (outs type0:$oldval);
2661  let InOperandList = (ins ptype1:$addr, type0:$cmpval_newval);
2662  let hasSideEffects = 0;
2663  let mayLoad = 1;
2664  let mayStore = 1;
2665}
2666
2667let Namespace = "AMDGPU" in {
2668def G_AMDGPU_ATOMIC_INC : G_ATOMICRMW_OP;
2669def G_AMDGPU_ATOMIC_DEC : G_ATOMICRMW_OP;
2670def G_AMDGPU_ATOMIC_FMIN : G_ATOMICRMW_OP;
2671def G_AMDGPU_ATOMIC_FMAX : G_ATOMICRMW_OP;
2672}
2673
2674class BufferAtomicGenericInstruction<bit NoRtn = 0> : AMDGPUGenericInstruction {
2675  let OutOperandList = !if(NoRtn, (outs), (outs type0:$dst));
2676  let InOperandList = (ins type0:$vdata, type1:$rsrc, type2:$vindex, type2:$voffset,
2677                           type2:$soffset, untyped_imm_0:$offset,
2678                           untyped_imm_0:$cachepolicy, untyped_imm_0:$idxen);
2679  let hasSideEffects = 0;
2680  let mayLoad = 1;
2681  let mayStore = 1;
2682}
2683
2684def G_AMDGPU_BUFFER_ATOMIC_SWAP : BufferAtomicGenericInstruction;
2685def G_AMDGPU_BUFFER_ATOMIC_ADD : BufferAtomicGenericInstruction;
2686def G_AMDGPU_BUFFER_ATOMIC_SUB : BufferAtomicGenericInstruction;
2687def G_AMDGPU_BUFFER_ATOMIC_SMIN : BufferAtomicGenericInstruction;
2688def G_AMDGPU_BUFFER_ATOMIC_UMIN : BufferAtomicGenericInstruction;
2689def G_AMDGPU_BUFFER_ATOMIC_SMAX : BufferAtomicGenericInstruction;
2690def G_AMDGPU_BUFFER_ATOMIC_UMAX : BufferAtomicGenericInstruction;
2691def G_AMDGPU_BUFFER_ATOMIC_AND : BufferAtomicGenericInstruction;
2692def G_AMDGPU_BUFFER_ATOMIC_OR : BufferAtomicGenericInstruction;
2693def G_AMDGPU_BUFFER_ATOMIC_XOR : BufferAtomicGenericInstruction;
2694def G_AMDGPU_BUFFER_ATOMIC_INC : BufferAtomicGenericInstruction;
2695def G_AMDGPU_BUFFER_ATOMIC_DEC : BufferAtomicGenericInstruction;
2696def G_AMDGPU_BUFFER_ATOMIC_FADD : BufferAtomicGenericInstruction;
2697def G_AMDGPU_BUFFER_ATOMIC_FMIN : BufferAtomicGenericInstruction;
2698def G_AMDGPU_BUFFER_ATOMIC_FMAX : BufferAtomicGenericInstruction;
2699
2700def G_AMDGPU_BUFFER_ATOMIC_CMPSWAP : AMDGPUGenericInstruction {
2701  let OutOperandList = (outs type0:$dst);
2702  let InOperandList = (ins type0:$vdata, type0:$cmp, type1:$rsrc, type2:$vindex,
2703                           type2:$voffset, type2:$soffset, untyped_imm_0:$offset,
2704                           untyped_imm_0:$cachepolicy, untyped_imm_0:$idxen);
2705  let hasSideEffects = 0;
2706  let mayLoad = 1;
2707  let mayStore = 1;
2708}
2709
2710// Wrapper around llvm.amdgcn.s.buffer.load. This is mostly needed as
2711// a workaround for the intrinsic being defined as readnone, but
2712// really needs a memory operand.
2713def G_AMDGPU_S_BUFFER_LOAD : AMDGPUGenericInstruction {
2714  let OutOperandList = (outs type0:$dst);
2715  let InOperandList = (ins type1:$rsrc, type2:$offset, untyped_imm_0:$cachepolicy);
2716  let hasSideEffects = 0;
2717  let mayLoad = 1;
2718  let mayStore = 0;
2719}
2720
2721// This is equivalent to the G_INTRINSIC*, but the operands may have
2722// been legalized depending on the subtarget requirements.
2723def G_AMDGPU_INTRIN_IMAGE_LOAD : AMDGPUGenericInstruction {
2724  let OutOperandList = (outs type0:$dst);
2725  let InOperandList = (ins unknown:$intrin, variable_ops);
2726  let hasSideEffects = 0;
2727  let mayLoad = 1;
2728
2729  // FIXME: Use separate opcode for atomics.
2730  let mayStore = 1;
2731}
2732
2733// This is equivalent to the G_INTRINSIC*, but the operands may have
2734// been legalized depending on the subtarget requirements.
2735def G_AMDGPU_INTRIN_IMAGE_STORE : AMDGPUGenericInstruction {
2736  let OutOperandList = (outs);
2737  let InOperandList = (ins unknown:$intrin, variable_ops);
2738  let hasSideEffects = 0;
2739  let mayStore = 1;
2740}
2741
2742def G_AMDGPU_INTRIN_BVH_INTERSECT_RAY : AMDGPUGenericInstruction {
2743  let OutOperandList = (outs type0:$dst);
2744  let InOperandList = (ins unknown:$intrin, variable_ops);
2745  let hasSideEffects = 0;
2746  let mayLoad = 1;
2747  let mayStore = 0;
2748}
2749