1//===---- SMInstructions.td - Scalar Memory 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
9def smrd_offset_8 : NamedOperandU32<"SMRDOffset8",
10                                  NamedMatchClass<"SMRDOffset8">> {
11  let OperandType = "OPERAND_IMMEDIATE";
12}
13
14def smem_offset : NamedOperandU32<"SMEMOffset",
15                                  NamedMatchClass<"SMEMOffset">> {
16  let OperandType = "OPERAND_IMMEDIATE";
17  let EncoderMethod = "getSMEMOffsetEncoding";
18  let DecoderMethod = "decodeSMEMOffset";
19}
20
21//===----------------------------------------------------------------------===//
22// Scalar Memory classes
23//===----------------------------------------------------------------------===//
24
25class SM_Pseudo <string opName, dag outs, dag ins, string asmOps, list<dag> pattern=[]> :
26  InstSI <outs, ins, "", pattern>,
27  SIMCInstr<opName, SIEncodingFamily.NONE> {
28  let isPseudo = 1;
29  let isCodeGenOnly = 1;
30
31  let LGKM_CNT = 1;
32  let SMRD = 1;
33  let mayStore = 0;
34  let mayLoad = 1;
35  let hasSideEffects = 0;
36  let UseNamedOperandTable = 1;
37  let SchedRW = [WriteSMEM];
38
39  string Mnemonic = opName;
40  string AsmOperands = asmOps;
41
42  bits<1> has_sbase = 1;
43  bits<1> has_sdst = 1;
44  bit has_glc = 0;
45  bit has_dlc = 0;
46  bits<1> has_offset = 1;
47  bits<1> offset_is_imm = 0;
48  bit is_buffer = 0;
49}
50
51class SM_Real <SM_Pseudo ps>
52  : InstSI<ps.OutOperandList, ps.InOperandList, ps.Mnemonic # ps.AsmOperands, []> {
53
54  let isPseudo = 0;
55  let isCodeGenOnly = 0;
56
57  Instruction Opcode = !cast<Instruction>(NAME);
58
59  // copy relevant pseudo op flags
60  let SubtargetPredicate   = ps.SubtargetPredicate;
61  let AsmMatchConverter    = ps.AsmMatchConverter;
62  let UseNamedOperandTable = ps.UseNamedOperandTable;
63  let SMRD                 = ps.SMRD;
64  let SchedRW              = ps.SchedRW;
65
66  let TSFlags = ps.TSFlags;
67
68  bit is_buffer = ps.is_buffer;
69
70  // encoding
71  bits<7>  sbase;
72  bits<7>  sdst;
73  bits<32> offset;
74  bits<1> imm = !if(ps.has_offset, ps.offset_is_imm, 0);
75  bits<5> cpol;
76}
77
78class SM_Probe_Pseudo <string opName, dag ins, bit isImm>
79  : SM_Pseudo<opName, (outs), ins, " $sdata, $sbase, $offset"> {
80  let mayLoad = 0;
81  let mayStore = 0;
82  let has_glc = 0;
83  let LGKM_CNT = 0;
84  let ScalarStore = 0;
85  let hasSideEffects = 1;
86  let offset_is_imm = isImm;
87  let PseudoInstr = opName # !if(isImm, "_IMM", "_SGPR");
88}
89
90class SM_Load_Pseudo <string opName, dag outs, dag ins, string asmOps, list<dag> pattern=[]>
91  : SM_Pseudo<opName, outs, ins, asmOps, pattern> {
92  RegisterClass BaseClass;
93  let mayLoad = 1;
94  let mayStore = 0;
95  let has_glc = 1;
96  let has_dlc = 1;
97}
98
99class SM_Store_Pseudo <string opName, dag ins, string asmOps, list<dag> pattern = []>
100  : SM_Pseudo<opName, (outs), ins, asmOps, pattern> {
101  RegisterClass BaseClass;
102  RegisterClass SrcClass;
103  let mayLoad = 0;
104  let mayStore = 1;
105  let has_glc = 1;
106  let has_dlc = 1;
107  let ScalarStore = 1;
108}
109
110class SM_Discard_Pseudo <string opName, dag ins, bit isImm>
111  : SM_Pseudo<opName, (outs), ins, " $sbase, $offset"> {
112  let mayLoad = 0;
113  let mayStore = 0;
114  let has_glc = 0;
115  let has_sdst = 0;
116  let ScalarStore = 0;
117  let hasSideEffects = 1;
118  let offset_is_imm = isImm;
119  let PseudoInstr = opName # !if(isImm, "_IMM", "_SGPR");
120}
121
122multiclass SM_Pseudo_Loads<string opName,
123                           RegisterClass baseClass,
124                           RegisterClass dstClass> {
125  def _IMM  : SM_Load_Pseudo <opName,
126                              (outs dstClass:$sdst),
127                              (ins baseClass:$sbase, i32imm:$offset, CPol:$cpol),
128                              " $sdst, $sbase, $offset$cpol", []> {
129    let offset_is_imm = 1;
130    let BaseClass = baseClass;
131    let PseudoInstr = opName # "_IMM";
132    let has_glc = 1;
133    let has_dlc = 1;
134  }
135
136  def _SGPR  : SM_Load_Pseudo <opName,
137                              (outs dstClass:$sdst),
138                              (ins baseClass:$sbase, SReg_32:$soff, CPol:$cpol),
139                              " $sdst, $sbase, $offset$cpol", []> {
140    let BaseClass = baseClass;
141    let PseudoInstr = opName # "_SGPR";
142    let has_glc = 1;
143    let has_dlc = 1;
144  }
145}
146
147multiclass SM_Pseudo_Stores<string opName,
148                           RegisterClass baseClass,
149                           RegisterClass srcClass> {
150  def _IMM  : SM_Store_Pseudo <opName,
151    (ins srcClass:$sdata, baseClass:$sbase, i32imm:$offset, CPol:$cpol),
152    " $sdata, $sbase, $offset$cpol", []> {
153    let offset_is_imm = 1;
154    let BaseClass = baseClass;
155    let SrcClass = srcClass;
156    let PseudoInstr = opName # "_IMM";
157  }
158
159  def _SGPR  : SM_Store_Pseudo <opName,
160    (ins srcClass:$sdata, baseClass:$sbase, SReg_32:$soff, CPol:$cpol),
161    " $sdata, $sbase, $offset$cpol", []> {
162    let BaseClass = baseClass;
163    let SrcClass = srcClass;
164    let PseudoInstr = opName # "_SGPR";
165  }
166}
167
168multiclass SM_Pseudo_Discards<string opName> {
169  def _IMM  : SM_Discard_Pseudo <opName, (ins SReg_64:$sbase, smem_offset:$offset), 1>;
170  def _SGPR : SM_Discard_Pseudo <opName, (ins SReg_64:$sbase, SReg_32:$offset), 0>;
171}
172
173class SM_Time_Pseudo<string opName, SDPatternOperator node = null_frag> : SM_Pseudo<
174  opName, (outs SReg_64_XEXEC:$sdst), (ins),
175  " $sdst", [(set i64:$sdst, (node))]> {
176  let hasSideEffects = 1;
177
178  // FIXME: This should be definitively mayStore = 0. TableGen
179  // brokenly tries to infer these based on the intrinsic properties
180  // corresponding to the IR attributes. The target intrinsics are
181  // considered as writing to memory for IR dependency purposes, but
182  // those can be modeled with hasSideEffects here. These also end up
183  // inferring differently for llvm.readcyclecounter and the amdgcn
184  // intrinsics.
185  let mayStore = ?;
186  let mayLoad = 1;
187  let has_sbase = 0;
188  let has_offset = 0;
189}
190
191class SM_Inval_Pseudo <string opName, SDPatternOperator node = null_frag> : SM_Pseudo<
192  opName, (outs), (ins), "", [(node)]> {
193  let hasSideEffects = 1;
194  let mayStore = 0;
195  let has_sdst = 0;
196  let has_sbase = 0;
197  let has_offset = 0;
198}
199
200multiclass SM_Pseudo_Probe<string opName, RegisterClass baseClass> {
201  def _IMM  : SM_Probe_Pseudo <opName, (ins i8imm:$sdata, baseClass:$sbase, smem_offset:$offset), 1>;
202  def _SGPR : SM_Probe_Pseudo <opName, (ins i8imm:$sdata, baseClass:$sbase, SReg_32:$offset), 0>;
203}
204
205class SM_WaveId_Pseudo<string opName, SDPatternOperator node> : SM_Pseudo<
206  opName, (outs SReg_32_XM0_XEXEC:$sdst), (ins),
207  " $sdst", [(set i32:$sdst, (node))]> {
208  let hasSideEffects = 1;
209  let mayStore = 0;
210  let mayLoad = 1;
211  let has_sbase = 0;
212  let has_offset = 0;
213}
214
215//===----------------------------------------------------------------------===//
216// Scalar Atomic Memory Classes
217//===----------------------------------------------------------------------===//
218
219class SM_Atomic_Pseudo <string opName,
220                        dag outs, dag ins, string asmOps, bit isRet>
221  : SM_Pseudo<opName, outs, ins, asmOps, []> {
222
223  bit glc = isRet;
224
225  let mayLoad = 1;
226  let mayStore = 1;
227  let has_glc = 1;
228  let has_dlc = 1;
229
230  // Should these be set?
231  let ScalarStore = 1;
232  let hasSideEffects = 1;
233  let maybeAtomic = 1;
234
235  let IsAtomicNoRet = !not(isRet);
236  let IsAtomicRet = isRet;
237
238  let AsmMatchConverter = "cvtSMEMAtomic";
239}
240
241class SM_Pseudo_Atomic<string opName,
242                       RegisterClass baseClass,
243                       RegisterClass dataClass,
244                       bit isImm,
245                       bit isRet,
246                       string opNameWithSuffix = opName # !if(isImm,
247                                 !if(isRet, "_IMM_RTN", "_IMM"),
248                                 !if(isRet, "_SGPR_RTN", "_SGPR")),
249                       Operand CPolTy = !if(isRet, CPol_GLC1, CPol)> :
250  SM_Atomic_Pseudo<opName,
251                   !if(isRet, (outs dataClass:$sdst), (outs)),
252                   !if(isImm,
253                       (ins dataClass:$sdata, baseClass:$sbase, smem_offset:$offset, CPolTy:$cpol),
254                       (ins dataClass:$sdata, baseClass:$sbase, SReg_32:$offset, CPolTy:$cpol)),
255                   !if(isRet, " $sdst", " $sdata") # ", $sbase, $offset$cpol",
256                   isRet>,
257  AtomicNoRet <opNameWithSuffix, isRet> {
258  let offset_is_imm = isImm;
259  let PseudoInstr = opNameWithSuffix;
260
261  let Constraints = !if(isRet, "$sdst = $sdata", "");
262  let DisableEncoding = !if(isRet, "$sdata", "");
263}
264
265multiclass SM_Pseudo_Atomics<string opName,
266                             RegisterClass baseClass,
267                             RegisterClass dataClass> {
268  def _IMM      : SM_Pseudo_Atomic <opName, baseClass, dataClass, 1, 0>;
269  def _SGPR     : SM_Pseudo_Atomic <opName, baseClass, dataClass, 0, 0>;
270  def _IMM_RTN  : SM_Pseudo_Atomic <opName, baseClass, dataClass, 1, 1>;
271  def _SGPR_RTN : SM_Pseudo_Atomic <opName, baseClass, dataClass, 0, 1>;
272}
273
274//===----------------------------------------------------------------------===//
275// Scalar Memory Instructions
276//===----------------------------------------------------------------------===//
277
278// We are using the SReg_32_XM0 and not the SReg_32 register class for 32-bit
279// SMRD instructions, because the SReg_32_XM0 register class does not include M0
280// and writing to M0 from an SMRD instruction will hang the GPU.
281
282// XXX - SMEM instructions do not allow exec for data operand, but
283// does sdst for SMRD on SI/CI?
284defm S_LOAD_DWORD    : SM_Pseudo_Loads <"s_load_dword", SReg_64, SReg_32_XM0_XEXEC>;
285defm S_LOAD_DWORDX2  : SM_Pseudo_Loads <"s_load_dwordx2", SReg_64, SReg_64_XEXEC>;
286defm S_LOAD_DWORDX4  : SM_Pseudo_Loads <"s_load_dwordx4", SReg_64, SReg_128>;
287defm S_LOAD_DWORDX8  : SM_Pseudo_Loads <"s_load_dwordx8", SReg_64, SReg_256>;
288defm S_LOAD_DWORDX16 : SM_Pseudo_Loads <"s_load_dwordx16", SReg_64, SReg_512>;
289
290let is_buffer = 1 in {
291defm S_BUFFER_LOAD_DWORD : SM_Pseudo_Loads <
292  "s_buffer_load_dword", SReg_128, SReg_32_XM0_XEXEC
293>;
294
295// FIXME: exec_lo/exec_hi appear to be allowed for SMRD loads on
296// SI/CI, bit disallowed for SMEM on VI.
297defm S_BUFFER_LOAD_DWORDX2 : SM_Pseudo_Loads <
298  "s_buffer_load_dwordx2", SReg_128, SReg_64_XEXEC
299>;
300
301defm S_BUFFER_LOAD_DWORDX4 : SM_Pseudo_Loads <
302  "s_buffer_load_dwordx4", SReg_128, SReg_128
303>;
304
305defm S_BUFFER_LOAD_DWORDX8 : SM_Pseudo_Loads <
306  "s_buffer_load_dwordx8", SReg_128, SReg_256
307>;
308
309defm S_BUFFER_LOAD_DWORDX16 : SM_Pseudo_Loads <
310  "s_buffer_load_dwordx16", SReg_128, SReg_512
311>;
312}
313
314let SubtargetPredicate = HasScalarStores in {
315defm S_STORE_DWORD : SM_Pseudo_Stores <"s_store_dword", SReg_64, SReg_32_XM0_XEXEC>;
316defm S_STORE_DWORDX2 : SM_Pseudo_Stores <"s_store_dwordx2", SReg_64, SReg_64_XEXEC>;
317defm S_STORE_DWORDX4 : SM_Pseudo_Stores <"s_store_dwordx4", SReg_64, SReg_128>;
318
319let is_buffer = 1 in {
320defm S_BUFFER_STORE_DWORD : SM_Pseudo_Stores <
321  "s_buffer_store_dword", SReg_128, SReg_32_XM0_XEXEC
322>;
323
324defm S_BUFFER_STORE_DWORDX2 : SM_Pseudo_Stores <
325  "s_buffer_store_dwordx2", SReg_128, SReg_64_XEXEC
326>;
327
328defm S_BUFFER_STORE_DWORDX4 : SM_Pseudo_Stores <
329  "s_buffer_store_dwordx4", SReg_128, SReg_128
330>;
331}
332} // End SubtargetPredicate = HasScalarStores
333
334let SubtargetPredicate = HasSMemTimeInst in
335def S_MEMTIME : SM_Time_Pseudo <"s_memtime", int_amdgcn_s_memtime>;
336def S_DCACHE_INV : SM_Inval_Pseudo <"s_dcache_inv", int_amdgcn_s_dcache_inv>;
337
338let SubtargetPredicate = isGFX7GFX8GFX9 in {
339def S_DCACHE_INV_VOL : SM_Inval_Pseudo <"s_dcache_inv_vol", int_amdgcn_s_dcache_inv_vol>;
340} // let SubtargetPredicate = isGFX7GFX8GFX9
341
342let SubtargetPredicate = isGFX8Plus in {
343let OtherPredicates = [HasScalarStores] in {
344def S_DCACHE_WB     : SM_Inval_Pseudo <"s_dcache_wb", int_amdgcn_s_dcache_wb>;
345def S_DCACHE_WB_VOL : SM_Inval_Pseudo <"s_dcache_wb_vol", int_amdgcn_s_dcache_wb_vol>;
346} // End OtherPredicates = [HasScalarStores]
347
348defm S_ATC_PROBE        : SM_Pseudo_Probe <"s_atc_probe", SReg_64>;
349let is_buffer = 1 in {
350defm S_ATC_PROBE_BUFFER : SM_Pseudo_Probe <"s_atc_probe_buffer", SReg_128>;
351}
352} // SubtargetPredicate = isGFX8Plus
353
354let SubtargetPredicate = HasSMemRealTime in
355def S_MEMREALTIME   : SM_Time_Pseudo <"s_memrealtime", int_amdgcn_s_memrealtime>;
356
357let SubtargetPredicate = isGFX10Plus in
358def S_GL1_INV : SM_Inval_Pseudo<"s_gl1_inv">;
359let SubtargetPredicate = HasGetWaveIdInst in
360def S_GET_WAVEID_IN_WORKGROUP : SM_WaveId_Pseudo <"s_get_waveid_in_workgroup", int_amdgcn_s_get_waveid_in_workgroup>;
361
362
363let SubtargetPredicate = HasScalarFlatScratchInsts, Uses = [FLAT_SCR] in {
364defm S_SCRATCH_LOAD_DWORD    : SM_Pseudo_Loads <"s_scratch_load_dword",   SReg_64, SReg_32_XM0_XEXEC>;
365defm S_SCRATCH_LOAD_DWORDX2  : SM_Pseudo_Loads <"s_scratch_load_dwordx2", SReg_64, SReg_64_XEXEC>;
366defm S_SCRATCH_LOAD_DWORDX4  : SM_Pseudo_Loads <"s_scratch_load_dwordx4", SReg_64, SReg_128>;
367
368defm S_SCRATCH_STORE_DWORD   : SM_Pseudo_Stores <"s_scratch_store_dword",   SReg_64, SReg_32_XM0_XEXEC>;
369defm S_SCRATCH_STORE_DWORDX2 : SM_Pseudo_Stores <"s_scratch_store_dwordx2", SReg_64, SReg_64_XEXEC>;
370defm S_SCRATCH_STORE_DWORDX4 : SM_Pseudo_Stores <"s_scratch_store_dwordx4", SReg_64, SReg_128>;
371} // SubtargetPredicate = HasScalarFlatScratchInsts
372
373let SubtargetPredicate = HasScalarAtomics in {
374
375let is_buffer = 1 in {
376defm S_BUFFER_ATOMIC_SWAP         : SM_Pseudo_Atomics <"s_buffer_atomic_swap", SReg_128, SReg_32_XM0_XEXEC>;
377defm S_BUFFER_ATOMIC_CMPSWAP      : SM_Pseudo_Atomics <"s_buffer_atomic_cmpswap", SReg_128, SReg_64_XEXEC>;
378defm S_BUFFER_ATOMIC_ADD          : SM_Pseudo_Atomics <"s_buffer_atomic_add", SReg_128, SReg_32_XM0_XEXEC>;
379defm S_BUFFER_ATOMIC_SUB          : SM_Pseudo_Atomics <"s_buffer_atomic_sub", SReg_128, SReg_32_XM0_XEXEC>;
380defm S_BUFFER_ATOMIC_SMIN         : SM_Pseudo_Atomics <"s_buffer_atomic_smin", SReg_128, SReg_32_XM0_XEXEC>;
381defm S_BUFFER_ATOMIC_UMIN         : SM_Pseudo_Atomics <"s_buffer_atomic_umin", SReg_128, SReg_32_XM0_XEXEC>;
382defm S_BUFFER_ATOMIC_SMAX         : SM_Pseudo_Atomics <"s_buffer_atomic_smax", SReg_128, SReg_32_XM0_XEXEC>;
383defm S_BUFFER_ATOMIC_UMAX         : SM_Pseudo_Atomics <"s_buffer_atomic_umax", SReg_128, SReg_32_XM0_XEXEC>;
384defm S_BUFFER_ATOMIC_AND          : SM_Pseudo_Atomics <"s_buffer_atomic_and", SReg_128, SReg_32_XM0_XEXEC>;
385defm S_BUFFER_ATOMIC_OR           : SM_Pseudo_Atomics <"s_buffer_atomic_or", SReg_128, SReg_32_XM0_XEXEC>;
386defm S_BUFFER_ATOMIC_XOR          : SM_Pseudo_Atomics <"s_buffer_atomic_xor", SReg_128, SReg_32_XM0_XEXEC>;
387defm S_BUFFER_ATOMIC_INC          : SM_Pseudo_Atomics <"s_buffer_atomic_inc", SReg_128, SReg_32_XM0_XEXEC>;
388defm S_BUFFER_ATOMIC_DEC          : SM_Pseudo_Atomics <"s_buffer_atomic_dec", SReg_128, SReg_32_XM0_XEXEC>;
389
390defm S_BUFFER_ATOMIC_SWAP_X2      : SM_Pseudo_Atomics <"s_buffer_atomic_swap_x2", SReg_128, SReg_64_XEXEC>;
391defm S_BUFFER_ATOMIC_CMPSWAP_X2   : SM_Pseudo_Atomics <"s_buffer_atomic_cmpswap_x2", SReg_128, SReg_128>;
392defm S_BUFFER_ATOMIC_ADD_X2       : SM_Pseudo_Atomics <"s_buffer_atomic_add_x2", SReg_128, SReg_64_XEXEC>;
393defm S_BUFFER_ATOMIC_SUB_X2       : SM_Pseudo_Atomics <"s_buffer_atomic_sub_x2", SReg_128, SReg_64_XEXEC>;
394defm S_BUFFER_ATOMIC_SMIN_X2      : SM_Pseudo_Atomics <"s_buffer_atomic_smin_x2", SReg_128, SReg_64_XEXEC>;
395defm S_BUFFER_ATOMIC_UMIN_X2      : SM_Pseudo_Atomics <"s_buffer_atomic_umin_x2", SReg_128, SReg_64_XEXEC>;
396defm S_BUFFER_ATOMIC_SMAX_X2      : SM_Pseudo_Atomics <"s_buffer_atomic_smax_x2", SReg_128, SReg_64_XEXEC>;
397defm S_BUFFER_ATOMIC_UMAX_X2      : SM_Pseudo_Atomics <"s_buffer_atomic_umax_x2", SReg_128, SReg_64_XEXEC>;
398defm S_BUFFER_ATOMIC_AND_X2       : SM_Pseudo_Atomics <"s_buffer_atomic_and_x2", SReg_128, SReg_64_XEXEC>;
399defm S_BUFFER_ATOMIC_OR_X2        : SM_Pseudo_Atomics <"s_buffer_atomic_or_x2", SReg_128, SReg_64_XEXEC>;
400defm S_BUFFER_ATOMIC_XOR_X2       : SM_Pseudo_Atomics <"s_buffer_atomic_xor_x2", SReg_128, SReg_64_XEXEC>;
401defm S_BUFFER_ATOMIC_INC_X2       : SM_Pseudo_Atomics <"s_buffer_atomic_inc_x2", SReg_128, SReg_64_XEXEC>;
402defm S_BUFFER_ATOMIC_DEC_X2       : SM_Pseudo_Atomics <"s_buffer_atomic_dec_x2", SReg_128, SReg_64_XEXEC>;
403}
404
405defm S_ATOMIC_SWAP                : SM_Pseudo_Atomics <"s_atomic_swap", SReg_64, SReg_32_XM0_XEXEC>;
406defm S_ATOMIC_CMPSWAP             : SM_Pseudo_Atomics <"s_atomic_cmpswap", SReg_64, SReg_64_XEXEC>;
407defm S_ATOMIC_ADD                 : SM_Pseudo_Atomics <"s_atomic_add", SReg_64, SReg_32_XM0_XEXEC>;
408defm S_ATOMIC_SUB                 : SM_Pseudo_Atomics <"s_atomic_sub", SReg_64, SReg_32_XM0_XEXEC>;
409defm S_ATOMIC_SMIN                : SM_Pseudo_Atomics <"s_atomic_smin", SReg_64, SReg_32_XM0_XEXEC>;
410defm S_ATOMIC_UMIN                : SM_Pseudo_Atomics <"s_atomic_umin", SReg_64, SReg_32_XM0_XEXEC>;
411defm S_ATOMIC_SMAX                : SM_Pseudo_Atomics <"s_atomic_smax", SReg_64, SReg_32_XM0_XEXEC>;
412defm S_ATOMIC_UMAX                : SM_Pseudo_Atomics <"s_atomic_umax", SReg_64, SReg_32_XM0_XEXEC>;
413defm S_ATOMIC_AND                 : SM_Pseudo_Atomics <"s_atomic_and", SReg_64, SReg_32_XM0_XEXEC>;
414defm S_ATOMIC_OR                  : SM_Pseudo_Atomics <"s_atomic_or", SReg_64, SReg_32_XM0_XEXEC>;
415defm S_ATOMIC_XOR                 : SM_Pseudo_Atomics <"s_atomic_xor", SReg_64, SReg_32_XM0_XEXEC>;
416defm S_ATOMIC_INC                 : SM_Pseudo_Atomics <"s_atomic_inc", SReg_64, SReg_32_XM0_XEXEC>;
417defm S_ATOMIC_DEC                 : SM_Pseudo_Atomics <"s_atomic_dec", SReg_64, SReg_32_XM0_XEXEC>;
418
419defm S_ATOMIC_SWAP_X2             : SM_Pseudo_Atomics <"s_atomic_swap_x2", SReg_64, SReg_64_XEXEC>;
420defm S_ATOMIC_CMPSWAP_X2          : SM_Pseudo_Atomics <"s_atomic_cmpswap_x2", SReg_64, SReg_128>;
421defm S_ATOMIC_ADD_X2              : SM_Pseudo_Atomics <"s_atomic_add_x2", SReg_64, SReg_64_XEXEC>;
422defm S_ATOMIC_SUB_X2              : SM_Pseudo_Atomics <"s_atomic_sub_x2", SReg_64, SReg_64_XEXEC>;
423defm S_ATOMIC_SMIN_X2             : SM_Pseudo_Atomics <"s_atomic_smin_x2", SReg_64, SReg_64_XEXEC>;
424defm S_ATOMIC_UMIN_X2             : SM_Pseudo_Atomics <"s_atomic_umin_x2", SReg_64, SReg_64_XEXEC>;
425defm S_ATOMIC_SMAX_X2             : SM_Pseudo_Atomics <"s_atomic_smax_x2", SReg_64, SReg_64_XEXEC>;
426defm S_ATOMIC_UMAX_X2             : SM_Pseudo_Atomics <"s_atomic_umax_x2", SReg_64, SReg_64_XEXEC>;
427defm S_ATOMIC_AND_X2              : SM_Pseudo_Atomics <"s_atomic_and_x2", SReg_64, SReg_64_XEXEC>;
428defm S_ATOMIC_OR_X2               : SM_Pseudo_Atomics <"s_atomic_or_x2", SReg_64, SReg_64_XEXEC>;
429defm S_ATOMIC_XOR_X2              : SM_Pseudo_Atomics <"s_atomic_xor_x2", SReg_64, SReg_64_XEXEC>;
430defm S_ATOMIC_INC_X2              : SM_Pseudo_Atomics <"s_atomic_inc_x2", SReg_64, SReg_64_XEXEC>;
431defm S_ATOMIC_DEC_X2              : SM_Pseudo_Atomics <"s_atomic_dec_x2", SReg_64, SReg_64_XEXEC>;
432
433} // let SubtargetPredicate = HasScalarAtomics
434
435let SubtargetPredicate = HasScalarAtomics in {
436defm S_DCACHE_DISCARD    : SM_Pseudo_Discards <"s_dcache_discard">;
437defm S_DCACHE_DISCARD_X2 : SM_Pseudo_Discards <"s_dcache_discard_x2">;
438}
439
440//===----------------------------------------------------------------------===//
441// Targets
442//===----------------------------------------------------------------------===//
443
444//===----------------------------------------------------------------------===//
445// SI
446//===----------------------------------------------------------------------===//
447
448class SMRD_Real_si <bits<5> op, SM_Pseudo ps>
449  : SM_Real<ps>
450  , SIMCInstr<ps.PseudoInstr, SIEncodingFamily.SI>
451  , Enc32 {
452
453  let AssemblerPredicate = isGFX6GFX7;
454  let DecoderNamespace = "GFX6GFX7";
455
456  let Inst{7-0}   = !if(ps.has_offset, offset{7-0}, ?);
457  let Inst{8}     = imm;
458  let Inst{14-9}  = !if(ps.has_sbase, sbase{6-1}, ?);
459  let Inst{21-15} = !if(ps.has_sdst, sdst{6-0}, ?);
460  let Inst{26-22} = op;
461  let Inst{31-27} = 0x18; //encoding
462}
463
464// FIXME: Assembler should reject trying to use glc on SMRD
465// instructions on SI.
466multiclass SM_Real_Loads_si<bits<5> op, string ps,
467                            SM_Load_Pseudo immPs = !cast<SM_Load_Pseudo>(ps#_IMM),
468                            SM_Load_Pseudo sgprPs = !cast<SM_Load_Pseudo>(ps#_SGPR)> {
469
470  def _IMM_si : SMRD_Real_si <op, immPs> {
471    let InOperandList = (ins immPs.BaseClass:$sbase, smrd_offset_8:$offset, CPol:$cpol);
472  }
473
474  // FIXME: The operand name $offset is inconsistent with $soff used
475  // in the pseudo
476  def _SGPR_si : SMRD_Real_si <op, sgprPs> {
477    let InOperandList = (ins sgprPs.BaseClass:$sbase, SReg_32:$offset, CPol:$cpol);
478  }
479
480}
481
482defm S_LOAD_DWORD           : SM_Real_Loads_si <0x00, "S_LOAD_DWORD">;
483defm S_LOAD_DWORDX2         : SM_Real_Loads_si <0x01, "S_LOAD_DWORDX2">;
484defm S_LOAD_DWORDX4         : SM_Real_Loads_si <0x02, "S_LOAD_DWORDX4">;
485defm S_LOAD_DWORDX8         : SM_Real_Loads_si <0x03, "S_LOAD_DWORDX8">;
486defm S_LOAD_DWORDX16        : SM_Real_Loads_si <0x04, "S_LOAD_DWORDX16">;
487defm S_BUFFER_LOAD_DWORD    : SM_Real_Loads_si <0x08, "S_BUFFER_LOAD_DWORD">;
488defm S_BUFFER_LOAD_DWORDX2  : SM_Real_Loads_si <0x09, "S_BUFFER_LOAD_DWORDX2">;
489defm S_BUFFER_LOAD_DWORDX4  : SM_Real_Loads_si <0x0a, "S_BUFFER_LOAD_DWORDX4">;
490defm S_BUFFER_LOAD_DWORDX8  : SM_Real_Loads_si <0x0b, "S_BUFFER_LOAD_DWORDX8">;
491defm S_BUFFER_LOAD_DWORDX16 : SM_Real_Loads_si <0x0c, "S_BUFFER_LOAD_DWORDX16">;
492
493def S_MEMTIME_si    : SMRD_Real_si <0x1e, S_MEMTIME>;
494def S_DCACHE_INV_si : SMRD_Real_si <0x1f, S_DCACHE_INV>;
495
496
497//===----------------------------------------------------------------------===//
498// VI
499//===----------------------------------------------------------------------===//
500
501class SMEM_Real_vi <bits<8> op, SM_Pseudo ps>
502  : SM_Real<ps>
503  , SIMCInstr<ps.PseudoInstr, SIEncodingFamily.VI>
504  , Enc64 {
505  let AssemblerPredicate = isGFX8GFX9;
506  let DecoderNamespace = "GFX8";
507
508  let Inst{5-0}   = !if(ps.has_sbase, sbase{6-1}, ?);
509  let Inst{12-6}  = !if(ps.has_sdst, sdst{6-0}, ?);
510
511  let Inst{16} = !if(ps.has_glc, cpol{CPolBit.GLC}, ?);
512  let Inst{17} = imm;
513  let Inst{25-18} = op;
514  let Inst{31-26} = 0x30; //encoding
515
516  // VI supports 20-bit unsigned offsets while GFX9+ supports 21-bit signed.
517  // Offset value is corrected accordingly when offset is encoded/decoded.
518  let Inst{52-32} = !if(ps.has_offset, offset{20-0}, ?);
519}
520
521multiclass SM_Real_Loads_vi<bits<8> op, string ps,
522                            SM_Load_Pseudo immPs = !cast<SM_Load_Pseudo>(ps#_IMM),
523                            SM_Load_Pseudo sgprPs = !cast<SM_Load_Pseudo>(ps#_SGPR)> {
524  def _IMM_vi : SMEM_Real_vi <op, immPs> {
525    let InOperandList = (ins immPs.BaseClass:$sbase, smem_offset:$offset, CPol:$cpol);
526  }
527  def _SGPR_vi : SMEM_Real_vi <op, sgprPs> {
528    let InOperandList = (ins sgprPs.BaseClass:$sbase, SReg_32:$offset, CPol:$cpol);
529  }
530}
531
532class SMEM_Real_Store_vi <bits<8> op, SM_Pseudo ps> : SMEM_Real_vi <op, ps> {
533  // encoding
534  bits<7> sdata;
535
536  let sdst = ?;
537  let Inst{12-6}  = !if(ps.has_sdst, sdata{6-0}, ?);
538}
539
540multiclass SM_Real_Stores_vi<bits<8> op, string ps,
541                            SM_Store_Pseudo immPs = !cast<SM_Store_Pseudo>(ps#_IMM),
542                            SM_Store_Pseudo sgprPs = !cast<SM_Store_Pseudo>(ps#_SGPR)> {
543  // FIXME: The operand name $offset is inconsistent with $soff used
544  // in the pseudo
545  def _IMM_vi : SMEM_Real_Store_vi <op, immPs> {
546    let InOperandList = (ins immPs.SrcClass:$sdata, immPs.BaseClass:$sbase, smem_offset:$offset, CPol:$cpol);
547  }
548
549  def _SGPR_vi : SMEM_Real_Store_vi <op, sgprPs> {
550    let InOperandList = (ins sgprPs.SrcClass:$sdata, sgprPs.BaseClass:$sbase, SReg_32:$offset, CPol:$cpol);
551  }
552}
553
554multiclass SM_Real_Probe_vi<bits<8> op, string ps> {
555  def _IMM_vi  : SMEM_Real_Store_vi <op, !cast<SM_Probe_Pseudo>(ps#_IMM)>;
556  def _SGPR_vi : SMEM_Real_Store_vi <op, !cast<SM_Probe_Pseudo>(ps#_SGPR)>;
557}
558
559defm S_LOAD_DWORD           : SM_Real_Loads_vi <0x00, "S_LOAD_DWORD">;
560defm S_LOAD_DWORDX2         : SM_Real_Loads_vi <0x01, "S_LOAD_DWORDX2">;
561defm S_LOAD_DWORDX4         : SM_Real_Loads_vi <0x02, "S_LOAD_DWORDX4">;
562defm S_LOAD_DWORDX8         : SM_Real_Loads_vi <0x03, "S_LOAD_DWORDX8">;
563defm S_LOAD_DWORDX16        : SM_Real_Loads_vi <0x04, "S_LOAD_DWORDX16">;
564defm S_BUFFER_LOAD_DWORD    : SM_Real_Loads_vi <0x08, "S_BUFFER_LOAD_DWORD">;
565defm S_BUFFER_LOAD_DWORDX2  : SM_Real_Loads_vi <0x09, "S_BUFFER_LOAD_DWORDX2">;
566defm S_BUFFER_LOAD_DWORDX4  : SM_Real_Loads_vi <0x0a, "S_BUFFER_LOAD_DWORDX4">;
567defm S_BUFFER_LOAD_DWORDX8  : SM_Real_Loads_vi <0x0b, "S_BUFFER_LOAD_DWORDX8">;
568defm S_BUFFER_LOAD_DWORDX16 : SM_Real_Loads_vi <0x0c, "S_BUFFER_LOAD_DWORDX16">;
569
570defm S_STORE_DWORD : SM_Real_Stores_vi <0x10, "S_STORE_DWORD">;
571defm S_STORE_DWORDX2 : SM_Real_Stores_vi <0x11, "S_STORE_DWORDX2">;
572defm S_STORE_DWORDX4 : SM_Real_Stores_vi <0x12, "S_STORE_DWORDX4">;
573
574defm S_BUFFER_STORE_DWORD    : SM_Real_Stores_vi <0x18, "S_BUFFER_STORE_DWORD">;
575defm S_BUFFER_STORE_DWORDX2  : SM_Real_Stores_vi <0x19, "S_BUFFER_STORE_DWORDX2">;
576defm S_BUFFER_STORE_DWORDX4  : SM_Real_Stores_vi <0x1a, "S_BUFFER_STORE_DWORDX4">;
577
578// These instructions use same encoding
579def S_DCACHE_INV_vi         : SMEM_Real_vi <0x20, S_DCACHE_INV>;
580def S_DCACHE_WB_vi          : SMEM_Real_vi <0x21, S_DCACHE_WB>;
581def S_DCACHE_INV_VOL_vi     : SMEM_Real_vi <0x22, S_DCACHE_INV_VOL>;
582def S_DCACHE_WB_VOL_vi      : SMEM_Real_vi <0x23, S_DCACHE_WB_VOL>;
583def S_MEMTIME_vi            : SMEM_Real_vi <0x24, S_MEMTIME>;
584def S_MEMREALTIME_vi        : SMEM_Real_vi <0x25, S_MEMREALTIME>;
585
586defm S_SCRATCH_LOAD_DWORD    : SM_Real_Loads_vi <0x05, "S_SCRATCH_LOAD_DWORD">;
587defm S_SCRATCH_LOAD_DWORDX2  : SM_Real_Loads_vi <0x06, "S_SCRATCH_LOAD_DWORDX2">;
588defm S_SCRATCH_LOAD_DWORDX4  : SM_Real_Loads_vi <0x07, "S_SCRATCH_LOAD_DWORDX4">;
589
590defm S_SCRATCH_STORE_DWORD   : SM_Real_Stores_vi <0x15, "S_SCRATCH_STORE_DWORD">;
591defm S_SCRATCH_STORE_DWORDX2 : SM_Real_Stores_vi <0x16, "S_SCRATCH_STORE_DWORDX2">;
592defm S_SCRATCH_STORE_DWORDX4 : SM_Real_Stores_vi <0x17, "S_SCRATCH_STORE_DWORDX4">;
593
594defm S_ATC_PROBE        : SM_Real_Probe_vi <0x26, "S_ATC_PROBE">;
595defm S_ATC_PROBE_BUFFER : SM_Real_Probe_vi <0x27, "S_ATC_PROBE_BUFFER">;
596
597//===----------------------------------------------------------------------===//
598// GFX9
599//===----------------------------------------------------------------------===//
600
601class SMEM_Atomic_Real_vi <bits<8> op, SM_Atomic_Pseudo ps>
602  : SMEM_Real_vi <op, ps>,
603    AtomicNoRet <!subst("_RTN","",NAME), ps.glc> {
604
605  bits<7> sdata;
606
607  let Constraints = ps.Constraints;
608  let DisableEncoding = ps.DisableEncoding;
609
610  let cpol{CPolBit.GLC} = ps.glc;
611  let Inst{12-6} = !if(ps.glc, sdst{6-0}, sdata{6-0});
612}
613
614multiclass SM_Real_Atomics_vi<bits<8> op, string ps> {
615  def _IMM_vi       : SMEM_Atomic_Real_vi <op, !cast<SM_Atomic_Pseudo>(ps#_IMM)>;
616  def _SGPR_vi      : SMEM_Atomic_Real_vi <op, !cast<SM_Atomic_Pseudo>(ps#_SGPR)>;
617  def _IMM_RTN_vi   : SMEM_Atomic_Real_vi <op, !cast<SM_Atomic_Pseudo>(ps#_IMM_RTN)>;
618  def _SGPR_RTN_vi  : SMEM_Atomic_Real_vi <op, !cast<SM_Atomic_Pseudo>(ps#_SGPR_RTN)>;
619}
620
621defm S_BUFFER_ATOMIC_SWAP         : SM_Real_Atomics_vi <0x40, "S_BUFFER_ATOMIC_SWAP">;
622defm S_BUFFER_ATOMIC_CMPSWAP      : SM_Real_Atomics_vi <0x41, "S_BUFFER_ATOMIC_CMPSWAP">;
623defm S_BUFFER_ATOMIC_ADD          : SM_Real_Atomics_vi <0x42, "S_BUFFER_ATOMIC_ADD">;
624defm S_BUFFER_ATOMIC_SUB          : SM_Real_Atomics_vi <0x43, "S_BUFFER_ATOMIC_SUB">;
625defm S_BUFFER_ATOMIC_SMIN         : SM_Real_Atomics_vi <0x44, "S_BUFFER_ATOMIC_SMIN">;
626defm S_BUFFER_ATOMIC_UMIN         : SM_Real_Atomics_vi <0x45, "S_BUFFER_ATOMIC_UMIN">;
627defm S_BUFFER_ATOMIC_SMAX         : SM_Real_Atomics_vi <0x46, "S_BUFFER_ATOMIC_SMAX">;
628defm S_BUFFER_ATOMIC_UMAX         : SM_Real_Atomics_vi <0x47, "S_BUFFER_ATOMIC_UMAX">;
629defm S_BUFFER_ATOMIC_AND          : SM_Real_Atomics_vi <0x48, "S_BUFFER_ATOMIC_AND">;
630defm S_BUFFER_ATOMIC_OR           : SM_Real_Atomics_vi <0x49, "S_BUFFER_ATOMIC_OR">;
631defm S_BUFFER_ATOMIC_XOR          : SM_Real_Atomics_vi <0x4a, "S_BUFFER_ATOMIC_XOR">;
632defm S_BUFFER_ATOMIC_INC          : SM_Real_Atomics_vi <0x4b, "S_BUFFER_ATOMIC_INC">;
633defm S_BUFFER_ATOMIC_DEC          : SM_Real_Atomics_vi <0x4c, "S_BUFFER_ATOMIC_DEC">;
634
635defm S_BUFFER_ATOMIC_SWAP_X2      : SM_Real_Atomics_vi <0x60, "S_BUFFER_ATOMIC_SWAP_X2">;
636defm S_BUFFER_ATOMIC_CMPSWAP_X2   : SM_Real_Atomics_vi <0x61, "S_BUFFER_ATOMIC_CMPSWAP_X2">;
637defm S_BUFFER_ATOMIC_ADD_X2       : SM_Real_Atomics_vi <0x62, "S_BUFFER_ATOMIC_ADD_X2">;
638defm S_BUFFER_ATOMIC_SUB_X2       : SM_Real_Atomics_vi <0x63, "S_BUFFER_ATOMIC_SUB_X2">;
639defm S_BUFFER_ATOMIC_SMIN_X2      : SM_Real_Atomics_vi <0x64, "S_BUFFER_ATOMIC_SMIN_X2">;
640defm S_BUFFER_ATOMIC_UMIN_X2      : SM_Real_Atomics_vi <0x65, "S_BUFFER_ATOMIC_UMIN_X2">;
641defm S_BUFFER_ATOMIC_SMAX_X2      : SM_Real_Atomics_vi <0x66, "S_BUFFER_ATOMIC_SMAX_X2">;
642defm S_BUFFER_ATOMIC_UMAX_X2      : SM_Real_Atomics_vi <0x67, "S_BUFFER_ATOMIC_UMAX_X2">;
643defm S_BUFFER_ATOMIC_AND_X2       : SM_Real_Atomics_vi <0x68, "S_BUFFER_ATOMIC_AND_X2">;
644defm S_BUFFER_ATOMIC_OR_X2        : SM_Real_Atomics_vi <0x69, "S_BUFFER_ATOMIC_OR_X2">;
645defm S_BUFFER_ATOMIC_XOR_X2       : SM_Real_Atomics_vi <0x6a, "S_BUFFER_ATOMIC_XOR_X2">;
646defm S_BUFFER_ATOMIC_INC_X2       : SM_Real_Atomics_vi <0x6b, "S_BUFFER_ATOMIC_INC_X2">;
647defm S_BUFFER_ATOMIC_DEC_X2       : SM_Real_Atomics_vi <0x6c, "S_BUFFER_ATOMIC_DEC_X2">;
648
649defm S_ATOMIC_SWAP                : SM_Real_Atomics_vi <0x80, "S_ATOMIC_SWAP">;
650defm S_ATOMIC_CMPSWAP             : SM_Real_Atomics_vi <0x81, "S_ATOMIC_CMPSWAP">;
651defm S_ATOMIC_ADD                 : SM_Real_Atomics_vi <0x82, "S_ATOMIC_ADD">;
652defm S_ATOMIC_SUB                 : SM_Real_Atomics_vi <0x83, "S_ATOMIC_SUB">;
653defm S_ATOMIC_SMIN                : SM_Real_Atomics_vi <0x84, "S_ATOMIC_SMIN">;
654defm S_ATOMIC_UMIN                : SM_Real_Atomics_vi <0x85, "S_ATOMIC_UMIN">;
655defm S_ATOMIC_SMAX                : SM_Real_Atomics_vi <0x86, "S_ATOMIC_SMAX">;
656defm S_ATOMIC_UMAX                : SM_Real_Atomics_vi <0x87, "S_ATOMIC_UMAX">;
657defm S_ATOMIC_AND                 : SM_Real_Atomics_vi <0x88, "S_ATOMIC_AND">;
658defm S_ATOMIC_OR                  : SM_Real_Atomics_vi <0x89, "S_ATOMIC_OR">;
659defm S_ATOMIC_XOR                 : SM_Real_Atomics_vi <0x8a, "S_ATOMIC_XOR">;
660defm S_ATOMIC_INC                 : SM_Real_Atomics_vi <0x8b, "S_ATOMIC_INC">;
661defm S_ATOMIC_DEC                 : SM_Real_Atomics_vi <0x8c, "S_ATOMIC_DEC">;
662
663defm S_ATOMIC_SWAP_X2             : SM_Real_Atomics_vi <0xa0, "S_ATOMIC_SWAP_X2">;
664defm S_ATOMIC_CMPSWAP_X2          : SM_Real_Atomics_vi <0xa1, "S_ATOMIC_CMPSWAP_X2">;
665defm S_ATOMIC_ADD_X2              : SM_Real_Atomics_vi <0xa2, "S_ATOMIC_ADD_X2">;
666defm S_ATOMIC_SUB_X2              : SM_Real_Atomics_vi <0xa3, "S_ATOMIC_SUB_X2">;
667defm S_ATOMIC_SMIN_X2             : SM_Real_Atomics_vi <0xa4, "S_ATOMIC_SMIN_X2">;
668defm S_ATOMIC_UMIN_X2             : SM_Real_Atomics_vi <0xa5, "S_ATOMIC_UMIN_X2">;
669defm S_ATOMIC_SMAX_X2             : SM_Real_Atomics_vi <0xa6, "S_ATOMIC_SMAX_X2">;
670defm S_ATOMIC_UMAX_X2             : SM_Real_Atomics_vi <0xa7, "S_ATOMIC_UMAX_X2">;
671defm S_ATOMIC_AND_X2              : SM_Real_Atomics_vi <0xa8, "S_ATOMIC_AND_X2">;
672defm S_ATOMIC_OR_X2               : SM_Real_Atomics_vi <0xa9, "S_ATOMIC_OR_X2">;
673defm S_ATOMIC_XOR_X2              : SM_Real_Atomics_vi <0xaa, "S_ATOMIC_XOR_X2">;
674defm S_ATOMIC_INC_X2              : SM_Real_Atomics_vi <0xab, "S_ATOMIC_INC_X2">;
675defm S_ATOMIC_DEC_X2              : SM_Real_Atomics_vi <0xac, "S_ATOMIC_DEC_X2">;
676
677multiclass SM_Real_Discard_vi<bits<8> op, string ps> {
678  def _IMM_vi  : SMEM_Real_vi <op, !cast<SM_Discard_Pseudo>(ps#_IMM)>;
679  def _SGPR_vi : SMEM_Real_vi <op, !cast<SM_Discard_Pseudo>(ps#_SGPR)>;
680}
681
682defm S_DCACHE_DISCARD    : SM_Real_Discard_vi <0x28, "S_DCACHE_DISCARD">;
683defm S_DCACHE_DISCARD_X2 : SM_Real_Discard_vi <0x29, "S_DCACHE_DISCARD_X2">;
684
685//===----------------------------------------------------------------------===//
686// CI
687//===----------------------------------------------------------------------===//
688
689def smrd_literal_offset : NamedOperandU32<"SMRDLiteralOffset",
690                                          NamedMatchClass<"SMRDLiteralOffset">> {
691  let OperandType = "OPERAND_IMMEDIATE";
692}
693
694class SMRD_Real_Load_IMM_ci <bits<5> op, SM_Load_Pseudo ps> :
695  SM_Real<ps>,
696  Enc64 {
697
698  let AssemblerPredicate = isGFX7Only;
699  let DecoderNamespace = "GFX7";
700  let InOperandList = (ins ps.BaseClass:$sbase, smrd_literal_offset:$offset, CPol:$cpol);
701
702  let LGKM_CNT = ps.LGKM_CNT;
703  let mayLoad = ps.mayLoad;
704  let mayStore = ps.mayStore;
705  let hasSideEffects = ps.hasSideEffects;
706  let SchedRW = ps.SchedRW;
707
708  let Inst{7-0}   = 0xff;
709  let Inst{8}     = 0;
710  let Inst{14-9}  = sbase{6-1};
711  let Inst{21-15} = sdst{6-0};
712  let Inst{26-22} = op;
713  let Inst{31-27} = 0x18; //encoding
714  let Inst{63-32} = offset{31-0};
715}
716
717def S_LOAD_DWORD_IMM_ci           : SMRD_Real_Load_IMM_ci <0x00, S_LOAD_DWORD_IMM>;
718def S_LOAD_DWORDX2_IMM_ci         : SMRD_Real_Load_IMM_ci <0x01, S_LOAD_DWORDX2_IMM>;
719def S_LOAD_DWORDX4_IMM_ci         : SMRD_Real_Load_IMM_ci <0x02, S_LOAD_DWORDX4_IMM>;
720def S_LOAD_DWORDX8_IMM_ci         : SMRD_Real_Load_IMM_ci <0x03, S_LOAD_DWORDX8_IMM>;
721def S_LOAD_DWORDX16_IMM_ci        : SMRD_Real_Load_IMM_ci <0x04, S_LOAD_DWORDX16_IMM>;
722def S_BUFFER_LOAD_DWORD_IMM_ci    : SMRD_Real_Load_IMM_ci <0x08, S_BUFFER_LOAD_DWORD_IMM>;
723def S_BUFFER_LOAD_DWORDX2_IMM_ci  : SMRD_Real_Load_IMM_ci <0x09, S_BUFFER_LOAD_DWORDX2_IMM>;
724def S_BUFFER_LOAD_DWORDX4_IMM_ci  : SMRD_Real_Load_IMM_ci <0x0a, S_BUFFER_LOAD_DWORDX4_IMM>;
725def S_BUFFER_LOAD_DWORDX8_IMM_ci  : SMRD_Real_Load_IMM_ci <0x0b, S_BUFFER_LOAD_DWORDX8_IMM>;
726def S_BUFFER_LOAD_DWORDX16_IMM_ci : SMRD_Real_Load_IMM_ci <0x0c, S_BUFFER_LOAD_DWORDX16_IMM>;
727
728class SMRD_Real_ci <bits<5> op, SM_Pseudo ps>
729  : SM_Real<ps>
730  , SIMCInstr<ps.PseudoInstr, SIEncodingFamily.SI>
731  , Enc32 {
732
733  let AssemblerPredicate = isGFX7Only;
734  let DecoderNamespace = "GFX7";
735
736  let Inst{7-0}   = !if(ps.has_offset, offset{7-0}, ?);
737  let Inst{8}     = imm;
738  let Inst{14-9}  = !if(ps.has_sbase, sbase{6-1}, ?);
739  let Inst{21-15} = !if(ps.has_sdst, sdst{6-0}, ?);
740  let Inst{26-22} = op;
741  let Inst{31-27} = 0x18; //encoding
742}
743
744def S_DCACHE_INV_VOL_ci : SMRD_Real_ci <0x1d, S_DCACHE_INV_VOL>;
745
746//===----------------------------------------------------------------------===//
747// Scalar Memory Patterns
748//===----------------------------------------------------------------------===//
749
750def smrd_load : PatFrag <(ops node:$ptr), (load node:$ptr), [{ return isUniformLoad(N);}]> {
751  let GISelPredicateCode = [{
752    if (!MI.hasOneMemOperand())
753      return false;
754    if (!isInstrUniform(MI))
755      return false;
756
757    // FIXME: We should probably be caching this.
758    SmallVector<GEPInfo, 4> AddrInfo;
759    getAddrModeInfo(MI, MRI, AddrInfo);
760
761    if (hasVgprParts(AddrInfo))
762      return false;
763    return true;
764  }];
765}
766
767def SMRDImm         : ComplexPattern<i64, 2, "SelectSMRDImm">;
768def SMRDImm32       : ComplexPattern<i64, 2, "SelectSMRDImm32">;
769def SMRDSgpr        : ComplexPattern<i64, 2, "SelectSMRDSgpr">;
770def SMRDBufferImm   : ComplexPattern<i32, 1, "SelectSMRDBufferImm">;
771def SMRDBufferImm32 : ComplexPattern<i32, 1, "SelectSMRDBufferImm32">;
772
773multiclass SMRD_Pattern <string Instr, ValueType vt> {
774
775  // 1. IMM offset
776  def : GCNPat <
777    (smrd_load (SMRDImm i64:$sbase, i32:$offset)),
778    (vt (!cast<SM_Pseudo>(Instr#"_IMM") $sbase, $offset, 0))
779  >;
780
781  // 2. 32-bit IMM offset on CI
782  def : GCNPat <
783    (smrd_load (SMRDImm32 i64:$sbase, i32:$offset)),
784    (vt (!cast<InstSI>(Instr#"_IMM_ci") $sbase, $offset, 0))> {
785    let OtherPredicates = [isGFX7Only];
786  }
787
788  // 3. SGPR offset
789  def : GCNPat <
790    (smrd_load (SMRDSgpr i64:$sbase, i32:$offset)),
791    (vt (!cast<SM_Pseudo>(Instr#"_SGPR") $sbase, $offset, 0))
792  >;
793
794  // 4. No offset
795  def : GCNPat <
796    (vt (smrd_load (i64 SReg_64:$sbase))),
797    (vt (!cast<SM_Pseudo>(Instr#"_IMM") i64:$sbase, 0, 0))
798  >;
799}
800
801multiclass SMLoad_Pattern <string Instr, ValueType vt> {
802  // 1. Offset as an immediate
803  def : GCNPat <
804    (SIsbuffer_load v4i32:$sbase, (SMRDBufferImm i32:$offset), timm:$cachepolicy),
805    (vt (!cast<SM_Pseudo>(Instr#"_IMM") SReg_128:$sbase, i32imm:$offset, (extract_cpol $cachepolicy)))> {
806    let AddedComplexity = 2;
807  }
808
809  // 2. 32-bit IMM offset on CI
810  def : GCNPat <
811    (vt (SIsbuffer_load v4i32:$sbase, (SMRDBufferImm32 i32:$offset), timm:$cachepolicy)),
812    (!cast<InstSI>(Instr#"_IMM_ci") SReg_128:$sbase, smrd_literal_offset:$offset,
813                                    (extract_cpol $cachepolicy))> {
814    let OtherPredicates = [isGFX7Only];
815    let AddedComplexity = 1;
816  }
817
818  // 3. Offset loaded in an 32bit SGPR
819  def : GCNPat <
820    (SIsbuffer_load v4i32:$sbase, i32:$offset, timm:$cachepolicy),
821    (vt (!cast<SM_Pseudo>(Instr#"_SGPR") SReg_128:$sbase, SReg_32:$offset, (extract_cpol $cachepolicy)))
822  >;
823}
824
825// Global and constant loads can be selected to either MUBUF or SMRD
826// instructions, but SMRD instructions are faster so we want the instruction
827// selector to prefer those.
828let AddedComplexity = 100 in {
829
830foreach vt = Reg32Types.types in {
831defm : SMRD_Pattern <"S_LOAD_DWORD", vt>;
832}
833
834foreach vt = SReg_64.RegTypes in {
835defm : SMRD_Pattern <"S_LOAD_DWORDX2", vt>;
836}
837
838foreach vt = SReg_128.RegTypes in {
839defm : SMRD_Pattern <"S_LOAD_DWORDX4", vt>;
840}
841
842foreach vt = SReg_256.RegTypes in {
843defm : SMRD_Pattern <"S_LOAD_DWORDX8", vt>;
844}
845
846foreach vt = SReg_512.RegTypes in {
847defm : SMRD_Pattern <"S_LOAD_DWORDX16", vt>;
848}
849
850defm : SMLoad_Pattern <"S_BUFFER_LOAD_DWORD",     i32>;
851defm : SMLoad_Pattern <"S_BUFFER_LOAD_DWORDX2",   v2i32>;
852defm : SMLoad_Pattern <"S_BUFFER_LOAD_DWORDX4",   v4i32>;
853defm : SMLoad_Pattern <"S_BUFFER_LOAD_DWORDX8",   v8i32>;
854defm : SMLoad_Pattern <"S_BUFFER_LOAD_DWORDX16",  v16i32>;
855
856defm : SMLoad_Pattern <"S_BUFFER_LOAD_DWORD",     f32>;
857defm : SMLoad_Pattern <"S_BUFFER_LOAD_DWORDX2",   v2f32>;
858defm : SMLoad_Pattern <"S_BUFFER_LOAD_DWORDX4",   v4f32>;
859defm : SMLoad_Pattern <"S_BUFFER_LOAD_DWORDX8",   v8f32>;
860defm : SMLoad_Pattern <"S_BUFFER_LOAD_DWORDX16",  v16f32>;
861} // End let AddedComplexity = 100
862
863let OtherPredicates = [HasSMemTimeInst] in {
864def : GCNPat <
865  (i64 (readcyclecounter)),
866  (S_MEMTIME)
867>;
868} // let OtherPredicates = [HasSMemTimeInst]
869
870let OtherPredicates = [HasShaderCyclesRegister] in {
871def : GCNPat <
872  (i64 (readcyclecounter)),
873  (REG_SEQUENCE SReg_64,
874    (S_GETREG_B32 getHwRegImm<HWREG.SHADER_CYCLES, 0, -12>.ret), sub0,
875    (S_MOV_B32 (i32 0)), sub1)> {
876  // Prefer this to s_memtime because it has lower and more predictable latency.
877  let AddedComplexity = 1;
878}
879} // let OtherPredicates = [HasShaderCyclesRegister]
880
881//===----------------------------------------------------------------------===//
882// GFX10.
883//===----------------------------------------------------------------------===//
884
885class SMEM_Real_gfx10<bits<8> op, SM_Pseudo ps> :
886    SM_Real<ps>, SIMCInstr<ps.PseudoInstr, SIEncodingFamily.GFX10>, Enc64 {
887  let AssemblerPredicate = isGFX10Plus;
888  let DecoderNamespace = "GFX10";
889
890  let Inst{5-0}   = !if(ps.has_sbase, sbase{6-1}, ?);
891  let Inst{12-6}  = !if(ps.has_sdst, sdst{6-0}, ?);
892  let Inst{14}    = !if(ps.has_dlc, cpol{CPolBit.DLC}, ?);
893  let Inst{16}    = !if(ps.has_glc, cpol{CPolBit.GLC}, ?);
894  let Inst{25-18} = op;
895  let Inst{31-26} = 0x3d;
896  let Inst{52-32} = !if(ps.offset_is_imm, !if(ps.has_offset, offset{20-0}, ?), ?);
897  let Inst{63-57} = !if(ps.offset_is_imm, !cast<int>(SGPR_NULL.HWEncoding),
898                                          !if(ps.has_offset, offset{6-0}, ?));
899}
900
901multiclass SM_Real_Loads_gfx10<bits<8> op, string ps,
902                               SM_Load_Pseudo immPs = !cast<SM_Load_Pseudo>(ps#_IMM),
903                               SM_Load_Pseudo sgprPs = !cast<SM_Load_Pseudo>(ps#_SGPR)> {
904  def _IMM_gfx10 : SMEM_Real_gfx10<op, immPs> {
905    let InOperandList = (ins immPs.BaseClass:$sbase, smem_offset:$offset, CPol:$cpol);
906  }
907  def _SGPR_gfx10 : SMEM_Real_gfx10<op, sgprPs> {
908    let InOperandList = (ins sgprPs.BaseClass:$sbase, SReg_32:$offset, CPol:$cpol);
909  }
910}
911
912class SMEM_Real_Store_gfx10<bits<8> op, SM_Pseudo ps> : SMEM_Real_gfx10<op, ps> {
913  bits<7> sdata;
914
915  let sdst = ?;
916  let Inst{12-6} = !if(ps.has_sdst, sdata{6-0}, ?);
917}
918
919multiclass SM_Real_Stores_gfx10<bits<8> op, string ps,
920                                SM_Store_Pseudo immPs = !cast<SM_Store_Pseudo>(ps#_IMM),
921                                SM_Store_Pseudo sgprPs = !cast<SM_Store_Pseudo>(ps#_SGPR)> {
922  // FIXME: The operand name $offset is inconsistent with $soff used
923  // in the pseudo
924  def _IMM_gfx10 : SMEM_Real_Store_gfx10 <op, immPs> {
925    let InOperandList = (ins immPs.SrcClass:$sdata, immPs.BaseClass:$sbase, smem_offset:$offset, CPol:$cpol);
926  }
927
928  def _SGPR_gfx10 : SMEM_Real_Store_gfx10 <op, sgprPs> {
929    let InOperandList = (ins sgprPs.SrcClass:$sdata, sgprPs.BaseClass:$sbase, SReg_32:$offset, CPol:$cpol);
930  }
931}
932
933defm S_LOAD_DWORD            : SM_Real_Loads_gfx10<0x000, "S_LOAD_DWORD">;
934defm S_LOAD_DWORDX2          : SM_Real_Loads_gfx10<0x001, "S_LOAD_DWORDX2">;
935defm S_LOAD_DWORDX4          : SM_Real_Loads_gfx10<0x002, "S_LOAD_DWORDX4">;
936defm S_LOAD_DWORDX8          : SM_Real_Loads_gfx10<0x003, "S_LOAD_DWORDX8">;
937defm S_LOAD_DWORDX16         : SM_Real_Loads_gfx10<0x004, "S_LOAD_DWORDX16">;
938
939let SubtargetPredicate = HasScalarFlatScratchInsts in {
940defm S_SCRATCH_LOAD_DWORD    : SM_Real_Loads_gfx10<0x005, "S_SCRATCH_LOAD_DWORD">;
941defm S_SCRATCH_LOAD_DWORDX2  : SM_Real_Loads_gfx10<0x006, "S_SCRATCH_LOAD_DWORDX2">;
942defm S_SCRATCH_LOAD_DWORDX4  : SM_Real_Loads_gfx10<0x007, "S_SCRATCH_LOAD_DWORDX4">;
943} // End SubtargetPredicate = HasScalarFlatScratchInsts
944
945defm S_BUFFER_LOAD_DWORD     : SM_Real_Loads_gfx10<0x008, "S_BUFFER_LOAD_DWORD">;
946defm S_BUFFER_LOAD_DWORDX2   : SM_Real_Loads_gfx10<0x009, "S_BUFFER_LOAD_DWORDX2">;
947defm S_BUFFER_LOAD_DWORDX4   : SM_Real_Loads_gfx10<0x00a, "S_BUFFER_LOAD_DWORDX4">;
948defm S_BUFFER_LOAD_DWORDX8   : SM_Real_Loads_gfx10<0x00b, "S_BUFFER_LOAD_DWORDX8">;
949defm S_BUFFER_LOAD_DWORDX16  : SM_Real_Loads_gfx10<0x00c, "S_BUFFER_LOAD_DWORDX16">;
950
951let SubtargetPredicate = HasScalarStores in {
952defm S_STORE_DWORD           : SM_Real_Stores_gfx10<0x010, "S_STORE_DWORD">;
953defm S_STORE_DWORDX2         : SM_Real_Stores_gfx10<0x011, "S_STORE_DWORDX2">;
954defm S_STORE_DWORDX4         : SM_Real_Stores_gfx10<0x012, "S_STORE_DWORDX4">;
955let OtherPredicates = [HasScalarFlatScratchInsts] in {
956defm S_SCRATCH_STORE_DWORD   : SM_Real_Stores_gfx10<0x015, "S_SCRATCH_STORE_DWORD">;
957defm S_SCRATCH_STORE_DWORDX2 : SM_Real_Stores_gfx10<0x016, "S_SCRATCH_STORE_DWORDX2">;
958defm S_SCRATCH_STORE_DWORDX4 : SM_Real_Stores_gfx10<0x017, "S_SCRATCH_STORE_DWORDX4">;
959} // End OtherPredicates = [HasScalarFlatScratchInsts]
960defm S_BUFFER_STORE_DWORD    : SM_Real_Stores_gfx10<0x018, "S_BUFFER_STORE_DWORD">;
961defm S_BUFFER_STORE_DWORDX2  : SM_Real_Stores_gfx10<0x019, "S_BUFFER_STORE_DWORDX2">;
962defm S_BUFFER_STORE_DWORDX4  : SM_Real_Stores_gfx10<0x01a, "S_BUFFER_STORE_DWORDX4">;
963} // End SubtargetPredicate = HasScalarStores
964
965def S_MEMREALTIME_gfx10              : SMEM_Real_gfx10<0x025, S_MEMREALTIME>;
966def S_MEMTIME_gfx10                  : SMEM_Real_gfx10<0x024, S_MEMTIME>;
967def S_GL1_INV_gfx10                  : SMEM_Real_gfx10<0x01f, S_GL1_INV>;
968def S_GET_WAVEID_IN_WORKGROUP_gfx10  : SMEM_Real_gfx10<0x02a, S_GET_WAVEID_IN_WORKGROUP>;
969def S_DCACHE_INV_gfx10               : SMEM_Real_gfx10<0x020, S_DCACHE_INV>;
970
971let SubtargetPredicate = HasScalarStores in {
972def S_DCACHE_WB_gfx10                : SMEM_Real_gfx10<0x021, S_DCACHE_WB>;
973} // End SubtargetPredicate = HasScalarStores
974
975multiclass SM_Real_Probe_gfx10<bits<8> op, string ps> {
976  def _IMM_gfx10  : SMEM_Real_Store_gfx10 <op, !cast<SM_Pseudo>(ps#_IMM)>;
977  def _SGPR_gfx10 : SMEM_Real_Store_gfx10 <op, !cast<SM_Pseudo>(ps#_SGPR)>;
978}
979
980defm S_ATC_PROBE        : SM_Real_Probe_gfx10 <0x26, "S_ATC_PROBE">;
981defm S_ATC_PROBE_BUFFER : SM_Real_Probe_gfx10 <0x27, "S_ATC_PROBE_BUFFER">;
982
983class SMEM_Atomic_Real_gfx10 <bits<8> op, SM_Atomic_Pseudo ps>
984  : SMEM_Real_gfx10 <op, ps>,
985    AtomicNoRet <!subst("_RTN","",NAME), ps.glc> {
986
987  bits<7> sdata;
988
989  let Constraints = ps.Constraints;
990  let DisableEncoding = ps.DisableEncoding;
991
992  let cpol{CPolBit.GLC} = ps.glc;
993
994  let Inst{14} = !if(ps.has_dlc, cpol{CPolBit.DLC}, 0);
995  let Inst{12-6} = !if(ps.glc, sdst{6-0}, sdata{6-0});
996}
997
998multiclass SM_Real_Atomics_gfx10<bits<8> op, string ps> {
999  def _IMM_gfx10       : SMEM_Atomic_Real_gfx10 <op, !cast<SM_Atomic_Pseudo>(ps#_IMM)>;
1000  def _SGPR_gfx10      : SMEM_Atomic_Real_gfx10 <op, !cast<SM_Atomic_Pseudo>(ps#_SGPR)>;
1001  def _IMM_RTN_gfx10   : SMEM_Atomic_Real_gfx10 <op, !cast<SM_Atomic_Pseudo>(ps#_IMM_RTN)>;
1002  def _SGPR_RTN_gfx10  : SMEM_Atomic_Real_gfx10 <op, !cast<SM_Atomic_Pseudo>(ps#_SGPR_RTN)>;
1003}
1004
1005let SubtargetPredicate = HasScalarAtomics in {
1006
1007defm S_BUFFER_ATOMIC_SWAP         : SM_Real_Atomics_gfx10 <0x40, "S_BUFFER_ATOMIC_SWAP">;
1008defm S_BUFFER_ATOMIC_CMPSWAP      : SM_Real_Atomics_gfx10 <0x41, "S_BUFFER_ATOMIC_CMPSWAP">;
1009defm S_BUFFER_ATOMIC_ADD          : SM_Real_Atomics_gfx10 <0x42, "S_BUFFER_ATOMIC_ADD">;
1010defm S_BUFFER_ATOMIC_SUB          : SM_Real_Atomics_gfx10 <0x43, "S_BUFFER_ATOMIC_SUB">;
1011defm S_BUFFER_ATOMIC_SMIN         : SM_Real_Atomics_gfx10 <0x44, "S_BUFFER_ATOMIC_SMIN">;
1012defm S_BUFFER_ATOMIC_UMIN         : SM_Real_Atomics_gfx10 <0x45, "S_BUFFER_ATOMIC_UMIN">;
1013defm S_BUFFER_ATOMIC_SMAX         : SM_Real_Atomics_gfx10 <0x46, "S_BUFFER_ATOMIC_SMAX">;
1014defm S_BUFFER_ATOMIC_UMAX         : SM_Real_Atomics_gfx10 <0x47, "S_BUFFER_ATOMIC_UMAX">;
1015defm S_BUFFER_ATOMIC_AND          : SM_Real_Atomics_gfx10 <0x48, "S_BUFFER_ATOMIC_AND">;
1016defm S_BUFFER_ATOMIC_OR           : SM_Real_Atomics_gfx10 <0x49, "S_BUFFER_ATOMIC_OR">;
1017defm S_BUFFER_ATOMIC_XOR          : SM_Real_Atomics_gfx10 <0x4a, "S_BUFFER_ATOMIC_XOR">;
1018defm S_BUFFER_ATOMIC_INC          : SM_Real_Atomics_gfx10 <0x4b, "S_BUFFER_ATOMIC_INC">;
1019defm S_BUFFER_ATOMIC_DEC          : SM_Real_Atomics_gfx10 <0x4c, "S_BUFFER_ATOMIC_DEC">;
1020
1021defm S_BUFFER_ATOMIC_SWAP_X2      : SM_Real_Atomics_gfx10 <0x60, "S_BUFFER_ATOMIC_SWAP_X2">;
1022defm S_BUFFER_ATOMIC_CMPSWAP_X2   : SM_Real_Atomics_gfx10 <0x61, "S_BUFFER_ATOMIC_CMPSWAP_X2">;
1023defm S_BUFFER_ATOMIC_ADD_X2       : SM_Real_Atomics_gfx10 <0x62, "S_BUFFER_ATOMIC_ADD_X2">;
1024defm S_BUFFER_ATOMIC_SUB_X2       : SM_Real_Atomics_gfx10 <0x63, "S_BUFFER_ATOMIC_SUB_X2">;
1025defm S_BUFFER_ATOMIC_SMIN_X2      : SM_Real_Atomics_gfx10 <0x64, "S_BUFFER_ATOMIC_SMIN_X2">;
1026defm S_BUFFER_ATOMIC_UMIN_X2      : SM_Real_Atomics_gfx10 <0x65, "S_BUFFER_ATOMIC_UMIN_X2">;
1027defm S_BUFFER_ATOMIC_SMAX_X2      : SM_Real_Atomics_gfx10 <0x66, "S_BUFFER_ATOMIC_SMAX_X2">;
1028defm S_BUFFER_ATOMIC_UMAX_X2      : SM_Real_Atomics_gfx10 <0x67, "S_BUFFER_ATOMIC_UMAX_X2">;
1029defm S_BUFFER_ATOMIC_AND_X2       : SM_Real_Atomics_gfx10 <0x68, "S_BUFFER_ATOMIC_AND_X2">;
1030defm S_BUFFER_ATOMIC_OR_X2        : SM_Real_Atomics_gfx10 <0x69, "S_BUFFER_ATOMIC_OR_X2">;
1031defm S_BUFFER_ATOMIC_XOR_X2       : SM_Real_Atomics_gfx10 <0x6a, "S_BUFFER_ATOMIC_XOR_X2">;
1032defm S_BUFFER_ATOMIC_INC_X2       : SM_Real_Atomics_gfx10 <0x6b, "S_BUFFER_ATOMIC_INC_X2">;
1033defm S_BUFFER_ATOMIC_DEC_X2       : SM_Real_Atomics_gfx10 <0x6c, "S_BUFFER_ATOMIC_DEC_X2">;
1034
1035defm S_ATOMIC_SWAP                : SM_Real_Atomics_gfx10 <0x80, "S_ATOMIC_SWAP">;
1036defm S_ATOMIC_CMPSWAP             : SM_Real_Atomics_gfx10 <0x81, "S_ATOMIC_CMPSWAP">;
1037defm S_ATOMIC_ADD                 : SM_Real_Atomics_gfx10 <0x82, "S_ATOMIC_ADD">;
1038defm S_ATOMIC_SUB                 : SM_Real_Atomics_gfx10 <0x83, "S_ATOMIC_SUB">;
1039defm S_ATOMIC_SMIN                : SM_Real_Atomics_gfx10 <0x84, "S_ATOMIC_SMIN">;
1040defm S_ATOMIC_UMIN                : SM_Real_Atomics_gfx10 <0x85, "S_ATOMIC_UMIN">;
1041defm S_ATOMIC_SMAX                : SM_Real_Atomics_gfx10 <0x86, "S_ATOMIC_SMAX">;
1042defm S_ATOMIC_UMAX                : SM_Real_Atomics_gfx10 <0x87, "S_ATOMIC_UMAX">;
1043defm S_ATOMIC_AND                 : SM_Real_Atomics_gfx10 <0x88, "S_ATOMIC_AND">;
1044defm S_ATOMIC_OR                  : SM_Real_Atomics_gfx10 <0x89, "S_ATOMIC_OR">;
1045defm S_ATOMIC_XOR                 : SM_Real_Atomics_gfx10 <0x8a, "S_ATOMIC_XOR">;
1046defm S_ATOMIC_INC                 : SM_Real_Atomics_gfx10 <0x8b, "S_ATOMIC_INC">;
1047defm S_ATOMIC_DEC                 : SM_Real_Atomics_gfx10 <0x8c, "S_ATOMIC_DEC">;
1048
1049defm S_ATOMIC_SWAP_X2             : SM_Real_Atomics_gfx10 <0xa0, "S_ATOMIC_SWAP_X2">;
1050defm S_ATOMIC_CMPSWAP_X2          : SM_Real_Atomics_gfx10 <0xa1, "S_ATOMIC_CMPSWAP_X2">;
1051defm S_ATOMIC_ADD_X2              : SM_Real_Atomics_gfx10 <0xa2, "S_ATOMIC_ADD_X2">;
1052defm S_ATOMIC_SUB_X2              : SM_Real_Atomics_gfx10 <0xa3, "S_ATOMIC_SUB_X2">;
1053defm S_ATOMIC_SMIN_X2             : SM_Real_Atomics_gfx10 <0xa4, "S_ATOMIC_SMIN_X2">;
1054defm S_ATOMIC_UMIN_X2             : SM_Real_Atomics_gfx10 <0xa5, "S_ATOMIC_UMIN_X2">;
1055defm S_ATOMIC_SMAX_X2             : SM_Real_Atomics_gfx10 <0xa6, "S_ATOMIC_SMAX_X2">;
1056defm S_ATOMIC_UMAX_X2             : SM_Real_Atomics_gfx10 <0xa7, "S_ATOMIC_UMAX_X2">;
1057defm S_ATOMIC_AND_X2              : SM_Real_Atomics_gfx10 <0xa8, "S_ATOMIC_AND_X2">;
1058defm S_ATOMIC_OR_X2               : SM_Real_Atomics_gfx10 <0xa9, "S_ATOMIC_OR_X2">;
1059defm S_ATOMIC_XOR_X2              : SM_Real_Atomics_gfx10 <0xaa, "S_ATOMIC_XOR_X2">;
1060defm S_ATOMIC_INC_X2              : SM_Real_Atomics_gfx10 <0xab, "S_ATOMIC_INC_X2">;
1061defm S_ATOMIC_DEC_X2              : SM_Real_Atomics_gfx10 <0xac, "S_ATOMIC_DEC_X2">;
1062
1063multiclass SM_Real_Discard_gfx10<bits<8> op, string ps> {
1064  def _IMM_gfx10  : SMEM_Real_gfx10 <op, !cast<SM_Pseudo>(ps#_IMM)>;
1065  def _SGPR_gfx10 : SMEM_Real_gfx10 <op, !cast<SM_Pseudo>(ps#_SGPR)>;
1066}
1067
1068defm S_DCACHE_DISCARD    : SM_Real_Discard_gfx10 <0x28, "S_DCACHE_DISCARD">;
1069defm S_DCACHE_DISCARD_X2 : SM_Real_Discard_gfx10 <0x29, "S_DCACHE_DISCARD_X2">;
1070
1071} // End SubtargetPredicate = HasScalarAtomics
1072
1073def SMInfoTable : GenericTable {
1074  let FilterClass = "SM_Real";
1075  let CppTypeName = "SMInfo";
1076  let Fields = ["Opcode", "is_buffer"];
1077
1078  let PrimaryKey = ["Opcode"];
1079  let PrimaryKeyName = "getSMEMOpcodeHelper";
1080}
1081