1//===-- ARMInstrMVE.td - MVE support for ARM ---------------*- tablegen -*-===//
2//
3// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4// See https://llvm.org/LICENSE.txt for license information.
5// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6//
7//===----------------------------------------------------------------------===//
8//
9// This file describes the ARM MVE instruction set.
10//
11//===----------------------------------------------------------------------===//
12
13// VPT condition mask
14def vpt_mask : Operand<i32> {
15  let PrintMethod = "printVPTMask";
16  let ParserMatchClass = it_mask_asmoperand;
17  let EncoderMethod = "getVPTMaskOpValue";
18  let DecoderMethod = "DecodeVPTMaskOperand";
19}
20
21// VPT/VCMP restricted predicate for sign invariant types
22def pred_restricted_i_asmoperand : AsmOperandClass {
23  let Name = "CondCodeRestrictedI";
24  let RenderMethod = "addITCondCodeOperands";
25  let PredicateMethod = "isITCondCodeRestrictedI";
26  let ParserMethod = "parseITCondCode";
27  let DiagnosticString = "condition code for sign-independent integer "#
28                         "comparison must be EQ or NE";
29}
30
31// VPT/VCMP restricted predicate for signed types
32def pred_restricted_s_asmoperand : AsmOperandClass {
33  let Name = "CondCodeRestrictedS";
34  let RenderMethod = "addITCondCodeOperands";
35  let PredicateMethod = "isITCondCodeRestrictedS";
36  let ParserMethod = "parseITCondCode";
37  let DiagnosticString = "condition code for signed integer "#
38                         "comparison must be EQ, NE, LT, GT, LE or GE";
39}
40
41// VPT/VCMP restricted predicate for unsigned types
42def pred_restricted_u_asmoperand : AsmOperandClass {
43  let Name = "CondCodeRestrictedU";
44  let RenderMethod = "addITCondCodeOperands";
45  let PredicateMethod = "isITCondCodeRestrictedU";
46  let ParserMethod = "parseITCondCode";
47  let DiagnosticString = "condition code for unsigned integer "#
48                         "comparison must be EQ, NE, HS or HI";
49}
50
51// VPT/VCMP restricted predicate for floating point
52def pred_restricted_fp_asmoperand : AsmOperandClass {
53  let Name = "CondCodeRestrictedFP";
54  let RenderMethod = "addITCondCodeOperands";
55  let PredicateMethod = "isITCondCodeRestrictedFP";
56  let ParserMethod = "parseITCondCode";
57  let DiagnosticString = "condition code for floating-point "#
58                         "comparison must be EQ, NE, LT, GT, LE or GE";
59}
60
61class VCMPPredicateOperand : Operand<i32>;
62
63def pred_basic_i : VCMPPredicateOperand {
64  let PrintMethod = "printMandatoryRestrictedPredicateOperand";
65  let ParserMatchClass = pred_restricted_i_asmoperand;
66  let DecoderMethod = "DecodeRestrictedIPredicateOperand";
67  let EncoderMethod = "getRestrictedCondCodeOpValue";
68}
69
70def pred_basic_u : VCMPPredicateOperand {
71  let PrintMethod = "printMandatoryRestrictedPredicateOperand";
72  let ParserMatchClass = pred_restricted_u_asmoperand;
73  let DecoderMethod = "DecodeRestrictedUPredicateOperand";
74  let EncoderMethod = "getRestrictedCondCodeOpValue";
75}
76
77def pred_basic_s : VCMPPredicateOperand {
78  let PrintMethod = "printMandatoryRestrictedPredicateOperand";
79  let ParserMatchClass = pred_restricted_s_asmoperand;
80  let DecoderMethod = "DecodeRestrictedSPredicateOperand";
81  let EncoderMethod = "getRestrictedCondCodeOpValue";
82}
83
84def pred_basic_fp : VCMPPredicateOperand {
85  let PrintMethod = "printMandatoryRestrictedPredicateOperand";
86  let ParserMatchClass = pred_restricted_fp_asmoperand;
87  let DecoderMethod = "DecodeRestrictedFPPredicateOperand";
88  let EncoderMethod = "getRestrictedCondCodeOpValue";
89}
90
91// Register list operands for interleaving load/stores
92def VecList2QAsmOperand : AsmOperandClass {
93  let Name = "VecListTwoMQ";
94  let ParserMethod = "parseVectorList";
95  let RenderMethod = "addMVEVecListOperands";
96  let DiagnosticString = "operand must be a list of two consecutive "#
97                         "q-registers in range [q0,q7]";
98}
99
100def VecList2Q : RegisterOperand<QQPR, "printMVEVectorListTwoQ"> {
101  let ParserMatchClass = VecList2QAsmOperand;
102  let PrintMethod = "printMVEVectorList<2>";
103}
104
105def VecList4QAsmOperand : AsmOperandClass {
106  let Name = "VecListFourMQ";
107  let ParserMethod = "parseVectorList";
108  let RenderMethod = "addMVEVecListOperands";
109  let DiagnosticString = "operand must be a list of four consecutive "#
110                         "q-registers in range [q0,q7]";
111}
112
113def VecList4Q : RegisterOperand<QQQQPR, "printMVEVectorListFourQ"> {
114  let ParserMatchClass = VecList4QAsmOperand;
115  let PrintMethod = "printMVEVectorList<4>";
116}
117
118// taddrmode_imm7  := reg[r0-r7] +/- (imm7 << shift)
119class TMemImm7ShiftOffsetAsmOperand<int shift> : AsmOperandClass {
120  let Name = "TMemImm7Shift"#shift#"Offset";
121  let PredicateMethod = "isMemImm7ShiftedOffset<"#shift#",ARM::tGPRRegClassID>";
122  let RenderMethod = "addMemImmOffsetOperands";
123}
124
125class taddrmode_imm7<int shift> : MemOperand,
126    ComplexPattern<i32, 2, "SelectTAddrModeImm7<"#shift#">", []>  {
127  let ParserMatchClass = TMemImm7ShiftOffsetAsmOperand<shift>;
128  // They are printed the same way as the T2 imm8 version
129  let PrintMethod = "printT2AddrModeImm8Operand<false>";
130  // This can also be the same as the T2 version.
131  let EncoderMethod = "getT2AddrModeImmOpValue<7,"#shift#">";
132  let DecoderMethod = "DecodeTAddrModeImm7<"#shift#">";
133  let MIOperandInfo = (ops tGPR:$base, i32imm:$offsimm);
134}
135
136// t2addrmode_imm7  := reg +/- (imm7)
137class MemImm7ShiftOffsetAsmOperand<int shift> : AsmOperandClass {
138  let Name = "MemImm7Shift"#shift#"Offset";
139  let PredicateMethod = "isMemImm7ShiftedOffset<" # shift #
140                        ",ARM::GPRnopcRegClassID>";
141  let RenderMethod = "addMemImmOffsetOperands";
142}
143
144def MemImm7Shift0OffsetAsmOperand : MemImm7ShiftOffsetAsmOperand<0>;
145def MemImm7Shift1OffsetAsmOperand : MemImm7ShiftOffsetAsmOperand<1>;
146def MemImm7Shift2OffsetAsmOperand : MemImm7ShiftOffsetAsmOperand<2>;
147class T2AddrMode_Imm7<int shift> : MemOperand,
148      ComplexPattern<i32, 2, "SelectT2AddrModeImm7<"#shift#">", []> {
149  let EncoderMethod = "getT2AddrModeImmOpValue<7,"#shift#">";
150  let DecoderMethod = "DecodeT2AddrModeImm7<"#shift#", 0>";
151  let ParserMatchClass =
152    !cast<AsmOperandClass>("MemImm7Shift"#shift#"OffsetAsmOperand");
153  let MIOperandInfo = (ops GPRnopc:$base, i32imm:$offsimm);
154}
155
156class t2addrmode_imm7<int shift> : T2AddrMode_Imm7<shift> {
157  // They are printed the same way as the imm8 version
158  let PrintMethod = "printT2AddrModeImm8Operand<false>";
159}
160
161class MemImm7ShiftOffsetWBAsmOperand<int shift> : AsmOperandClass {
162  let Name = "MemImm7Shift"#shift#"OffsetWB";
163  let PredicateMethod = "isMemImm7ShiftedOffset<" # shift #
164                        ",ARM::rGPRRegClassID>";
165  let RenderMethod = "addMemImmOffsetOperands";
166}
167
168def MemImm7Shift0OffsetWBAsmOperand : MemImm7ShiftOffsetWBAsmOperand<0>;
169def MemImm7Shift1OffsetWBAsmOperand : MemImm7ShiftOffsetWBAsmOperand<1>;
170def MemImm7Shift2OffsetWBAsmOperand : MemImm7ShiftOffsetWBAsmOperand<2>;
171
172class t2addrmode_imm7_pre<int shift> : T2AddrMode_Imm7<shift> {
173  // They are printed the same way as the imm8 version
174  let PrintMethod = "printT2AddrModeImm8Operand<true>";
175  let ParserMatchClass =
176    !cast<AsmOperandClass>("MemImm7Shift"#shift#"OffsetWBAsmOperand");
177  let DecoderMethod = "DecodeT2AddrModeImm7<"#shift#", 1>";
178  let MIOperandInfo = (ops rGPR:$base, i32imm:$offsim);
179}
180
181class t2am_imm7shiftOffsetAsmOperand<int shift>
182  : AsmOperandClass { let Name = "Imm7Shift"#shift; }
183def t2am_imm7shift0OffsetAsmOperand : t2am_imm7shiftOffsetAsmOperand<0>;
184def t2am_imm7shift1OffsetAsmOperand : t2am_imm7shiftOffsetAsmOperand<1>;
185def t2am_imm7shift2OffsetAsmOperand : t2am_imm7shiftOffsetAsmOperand<2>;
186
187class t2am_imm7_offset<int shift> : MemOperand,
188      ComplexPattern<i32, 1, "SelectT2AddrModeImm7Offset<"#shift#">",
189                     [], [SDNPWantRoot]> {
190  // They are printed the same way as the imm8 version
191  let PrintMethod = "printT2AddrModeImm8OffsetOperand";
192  let ParserMatchClass =
193    !cast<AsmOperandClass>("t2am_imm7shift"#shift#"OffsetAsmOperand");
194  let EncoderMethod = "getT2ScaledImmOpValue<7,"#shift#">";
195  let DecoderMethod = "DecodeT2Imm7<"#shift#">";
196}
197
198// Operands for gather/scatter loads of the form [Rbase, Qoffsets]
199class MemRegRQOffsetAsmOperand<int shift> : AsmOperandClass {
200  let Name = "MemRegRQS"#shift#"Offset";
201  let PredicateMethod = "isMemRegRQOffset<"#shift#">";
202  let RenderMethod = "addMemRegRQOffsetOperands";
203}
204
205def MemRegRQS0OffsetAsmOperand : MemRegRQOffsetAsmOperand<0>;
206def MemRegRQS1OffsetAsmOperand : MemRegRQOffsetAsmOperand<1>;
207def MemRegRQS2OffsetAsmOperand : MemRegRQOffsetAsmOperand<2>;
208def MemRegRQS3OffsetAsmOperand : MemRegRQOffsetAsmOperand<3>;
209
210// mve_addr_rq_shift  := reg + vreg{ << UXTW #shift}
211class mve_addr_rq_shift<int shift> : MemOperand {
212  let EncoderMethod = "getMveAddrModeRQOpValue";
213  let PrintMethod = "printMveAddrModeRQOperand<"#shift#">";
214  let ParserMatchClass =
215    !cast<AsmOperandClass>("MemRegRQS"#shift#"OffsetAsmOperand");
216  let DecoderMethod = "DecodeMveAddrModeRQ";
217  let MIOperandInfo = (ops GPRnopc:$base, MQPR:$offsreg);
218}
219
220class MemRegQOffsetAsmOperand<int shift> : AsmOperandClass {
221  let Name = "MemRegQS"#shift#"Offset";
222  let PredicateMethod = "isMemRegQOffset<"#shift#">";
223  let RenderMethod = "addMemImmOffsetOperands";
224}
225
226def MemRegQS2OffsetAsmOperand : MemRegQOffsetAsmOperand<2>;
227def MemRegQS3OffsetAsmOperand : MemRegQOffsetAsmOperand<3>;
228
229// mve_addr_q_shift  := vreg {+ #imm7s2/4}
230class mve_addr_q_shift<int shift> : MemOperand {
231  let EncoderMethod = "getMveAddrModeQOpValue<"#shift#">";
232  // Can be printed same way as other reg + imm operands
233  let PrintMethod = "printT2AddrModeImm8Operand<false>";
234  let ParserMatchClass =
235    !cast<AsmOperandClass>("MemRegQS"#shift#"OffsetAsmOperand");
236  let DecoderMethod = "DecodeMveAddrModeQ<"#shift#">";
237  let MIOperandInfo = (ops MQPR:$base, i32imm:$imm);
238}
239
240// A family of classes wrapping up information about the vector types
241// used by MVE.
242class MVEVectorVTInfo<ValueType vec, ValueType dblvec,
243                      ValueType pred, ValueType dblpred,
244                      bits<2> size, string suffixletter, bit unsigned> {
245  // The LLVM ValueType representing the vector, so we can use it in
246  // ISel patterns.
247  ValueType Vec = vec;
248
249  // The LLVM ValueType representing a vector with elements double the size
250  // of those in Vec, so we can use it in ISel patterns. It is up to the
251  // invoker of this class to ensure that this is a correct choice.
252  ValueType DblVec = dblvec;
253
254  // An LLVM ValueType representing a corresponding vector of
255  // predicate bits, for use in ISel patterns that handle an IR
256  // intrinsic describing the predicated form of the instruction.
257  //
258  // Usually, for a vector of N things, this will be vNi1. But for
259  // vectors of 2 values, we make an exception, and use v4i1 instead
260  // of v2i1. Rationale: MVE codegen doesn't support doing all the
261  // auxiliary operations on v2i1 (vector shuffles etc), and also,
262  // there's no MVE compare instruction that will _generate_ v2i1
263  // directly.
264  ValueType Pred = pred;
265
266  // Same as Pred but for DblVec rather than Vec.
267  ValueType DblPred = dblpred;
268
269  // The most common representation of the vector element size in MVE
270  // instruction encodings: a 2-bit value V representing an (8<<V)-bit
271  // vector element.
272  bits<2> Size = size;
273
274  // For vectors explicitly mentioning a signedness of integers: 0 for
275  // signed and 1 for unsigned. For anything else, undefined.
276  bit Unsigned = unsigned;
277
278  // The number of bits in a vector element, in integer form.
279  int LaneBits = !shl(8, Size);
280
281  // The suffix used in assembly language on an instruction operating
282  // on this lane if it only cares about number of bits.
283  string BitsSuffix = !if(!eq(suffixletter, "p"),
284                          !if(!eq(unsigned, 0b0), "8", "16"),
285                          !cast<string>(LaneBits));
286
287  // The suffix used on an instruction that mentions the whole type.
288  string Suffix = suffixletter # BitsSuffix;
289
290  // The letter part of the suffix only.
291  string SuffixLetter = suffixletter;
292}
293
294// Integer vector types that don't treat signed and unsigned differently.
295def MVE_v16i8 : MVEVectorVTInfo<v16i8, v8i16, v16i1, v8i1, 0b00, "i", ?>;
296def MVE_v8i16 : MVEVectorVTInfo<v8i16, v4i32, v8i1,  v4i1, 0b01, "i", ?>;
297def MVE_v4i32 : MVEVectorVTInfo<v4i32, v2i64, v4i1,  v4i1, 0b10, "i", ?>;
298def MVE_v2i64 : MVEVectorVTInfo<v2i64, ?,     v4i1,  ?,    0b11, "i", ?>;
299
300// Explicitly signed and unsigned integer vectors. They map to the
301// same set of LLVM ValueTypes as above, but are represented
302// differently in assembly and instruction encodings.
303def MVE_v16s8 : MVEVectorVTInfo<v16i8, v8i16, v16i1, v8i1, 0b00, "s", 0b0>;
304def MVE_v8s16 : MVEVectorVTInfo<v8i16, v4i32, v8i1,  v4i1, 0b01, "s", 0b0>;
305def MVE_v4s32 : MVEVectorVTInfo<v4i32, v2i64, v4i1,  v4i1, 0b10, "s", 0b0>;
306def MVE_v2s64 : MVEVectorVTInfo<v2i64, ?,     v4i1,  ?,    0b11, "s", 0b0>;
307def MVE_v16u8 : MVEVectorVTInfo<v16i8, v8i16, v16i1, v8i1, 0b00, "u", 0b1>;
308def MVE_v8u16 : MVEVectorVTInfo<v8i16, v4i32, v8i1,  v4i1, 0b01, "u", 0b1>;
309def MVE_v4u32 : MVEVectorVTInfo<v4i32, v2i64, v4i1,  v4i1, 0b10, "u", 0b1>;
310def MVE_v2u64 : MVEVectorVTInfo<v2i64, ?,     v4i1,  ?,    0b11, "u", 0b1>;
311
312// FP vector types.
313def MVE_v8f16 : MVEVectorVTInfo<v8f16, v4f32, v8i1,  v4i1, 0b01, "f", ?>;
314def MVE_v4f32 : MVEVectorVTInfo<v4f32, v2f64, v4i1,  v4i1, 0b10, "f", ?>;
315def MVE_v2f64 : MVEVectorVTInfo<v2f64, ?,     v4i1,  ?,    0b11, "f", ?>;
316
317// Polynomial vector types.
318def MVE_v16p8 : MVEVectorVTInfo<v16i8, v8i16, v16i1, v8i1, 0b11, "p", 0b0>;
319def MVE_v8p16 : MVEVectorVTInfo<v8i16, v4i32, v8i1,  v4i1, 0b11, "p", 0b1>;
320
321multiclass MVE_TwoOpPattern<MVEVectorVTInfo VTI, SDPatternOperator Op, Intrinsic PredInt,
322                            dag PredOperands, Instruction Inst,
323                            SDPatternOperator IdentityVec = null_frag> {
324  // Unpredicated
325  def : Pat<(VTI.Vec (Op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn))),
326            (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>;
327
328  // Predicated with select
329  if !ne(VTI.Size, 0b11) then {
330    def : Pat<(VTI.Vec (vselect (VTI.Pred VCCR:$mask),
331                                (VTI.Vec (Op (VTI.Vec MQPR:$Qm),
332                                             (VTI.Vec MQPR:$Qn))),
333                                (VTI.Vec MQPR:$inactive))),
334              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
335                              ARMVCCThen, (VTI.Pred VCCR:$mask),
336                              (VTI.Vec MQPR:$inactive)))>;
337
338    // Optionally with the select folded through the op
339    def : Pat<(VTI.Vec (Op (VTI.Vec MQPR:$Qm),
340                           (VTI.Vec (vselect (VTI.Pred VCCR:$mask),
341                                             (VTI.Vec MQPR:$Qn),
342                                             (VTI.Vec IdentityVec))))),
343              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
344                              ARMVCCThen, (VTI.Pred VCCR:$mask),
345                              (VTI.Vec MQPR:$Qm)))>;
346  }
347
348  // Predicated with intrinsic
349  def : Pat<(VTI.Vec !con((PredInt (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)),
350                          PredOperands,
351                          (? (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive)))),
352            (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
353                            ARMVCCThen, (VTI.Pred VCCR:$mask),
354                            (VTI.Vec MQPR:$inactive)))>;
355}
356
357multiclass MVE_TwoOpPatternDup<MVEVectorVTInfo VTI, SDPatternOperator Op, Intrinsic PredInt,
358                               dag PredOperands, Instruction Inst,
359                               SDPatternOperator IdentityVec = null_frag> {
360  // Unpredicated
361  def : Pat<(VTI.Vec (Op (VTI.Vec MQPR:$Qm), (VTI.Vec (ARMvdup rGPR:$Rn)))),
362            (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), rGPR:$Rn))>;
363
364  // Predicated with select
365  if !ne(VTI.Size, 0b11) then {
366    def : Pat<(VTI.Vec (vselect (VTI.Pred VCCR:$mask),
367                                (VTI.Vec (Op (VTI.Vec MQPR:$Qm),
368                                             (VTI.Vec (ARMvdup rGPR:$Rn)))),
369                                (VTI.Vec MQPR:$inactive))),
370              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), rGPR:$Rn,
371                              ARMVCCThen, (VTI.Pred VCCR:$mask),
372                              (VTI.Vec MQPR:$inactive)))>;
373
374    // Optionally with the select folded through the op
375    def : Pat<(VTI.Vec (Op (VTI.Vec MQPR:$Qm),
376                           (VTI.Vec (vselect (VTI.Pred VCCR:$mask),
377                                             (ARMvdup rGPR:$Rn),
378                                             (VTI.Vec IdentityVec))))),
379              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), rGPR:$Rn,
380                              ARMVCCThen, (VTI.Pred VCCR:$mask),
381                              (VTI.Vec MQPR:$Qm)))>;
382  }
383
384  // Predicated with intrinsic
385  def : Pat<(VTI.Vec !con((PredInt (VTI.Vec MQPR:$Qm), (VTI.Vec (ARMvdup rGPR:$Rn))),
386                          PredOperands,
387                          (? (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive)))),
388            (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), rGPR:$Rn,
389                            ARMVCCThen, (VTI.Pred VCCR:$mask),
390                            (VTI.Vec MQPR:$inactive)))>;
391}
392
393// --------- Start of base classes for the instructions themselves
394
395class MVE_MI<dag oops, dag iops, InstrItinClass itin, string asm,
396             string ops, string cstr, list<dag> pattern>
397  : Thumb2XI<oops, iops, AddrModeNone, 4, itin, !strconcat(asm, "\t", ops), cstr,
398             pattern>,
399    Requires<[HasMVEInt]> {
400  let D = MVEDomain;
401  let DecoderNamespace = "MVE";
402}
403
404// MVE_p is used for most predicated instructions, to add the cluster
405// of input operands that provides the VPT suffix (none, T or E) and
406// the input predicate register.
407class MVE_p<dag oops, dag iops, InstrItinClass itin, string iname,
408            string suffix, string ops, vpred_ops vpred, string cstr,
409            list<dag> pattern=[]>
410  : MVE_MI<oops, !con(iops, (ins vpred:$vp)), itin,
411           // If the instruction has a suffix, like vadd.f32, then the
412           // VPT predication suffix goes before the dot, so the full
413           // name has to be "vadd${vp}.f32".
414           !strconcat(iname, "${vp}",
415                      !if(!eq(suffix, ""), "", !strconcat(".", suffix))),
416           ops, !strconcat(cstr, vpred.vpred_constraint), pattern> {
417  let Inst{31-29} = 0b111;
418  let Inst{27-26} = 0b11;
419}
420
421class MVE_f<dag oops, dag iops, InstrItinClass itin, string iname,
422            string suffix, string ops, vpred_ops vpred, string cstr,
423            list<dag> pattern=[]>
424  : MVE_p<oops, iops, itin, iname, suffix, ops, vpred, cstr, pattern> {
425  let Predicates = [HasMVEFloat];
426}
427
428class MVE_MI_with_pred<dag oops, dag iops, InstrItinClass itin, string asm,
429                       string ops, string cstr, list<dag> pattern>
430  : Thumb2I<oops, iops, AddrModeNone, 4, itin, asm, !strconcat("\t", ops), cstr,
431             pattern>,
432    Requires<[HasV8_1MMainline, HasMVEInt]> {
433  let D = MVEDomain;
434  let DecoderNamespace = "MVE";
435}
436
437class MVE_VMOV_lane_base<dag oops, dag iops, InstrItinClass itin, string asm,
438                         string suffix, string ops, string cstr,
439                         list<dag> pattern>
440  : Thumb2I<oops, iops, AddrModeNone, 4, itin, asm,
441            !if(!eq(suffix, ""), "", "." # suffix) # "\t" # ops,
442            cstr, pattern>,
443    Requires<[HasV8_1MMainline, HasMVEInt]> {
444  let D = MVEDomain;
445  let DecoderNamespace = "MVE";
446}
447
448class MVE_ScalarShift<string iname, dag oops, dag iops, string asm, string cstr,
449            list<dag> pattern=[]>
450  : MVE_MI_with_pred<oops, iops, NoItinerary, iname, asm, cstr, pattern> {
451  let Inst{31-20} = 0b111010100101;
452  let Inst{8} = 0b1;
453  let validForTailPredication=1;
454}
455
456class MVE_ScalarShiftSingleReg<string iname, dag iops, string asm, string cstr,
457                    list<dag> pattern=[]>
458  : MVE_ScalarShift<iname, (outs rGPR:$RdaDest), iops, asm, cstr, pattern> {
459  bits<4> RdaDest;
460
461  let Inst{19-16} = RdaDest{3-0};
462}
463
464class MVE_ScalarShiftSRegImm<string iname, bits<2> op5_4>
465  : MVE_ScalarShiftSingleReg<iname, (ins rGPR:$RdaSrc, long_shift:$imm),
466                     "$RdaSrc, $imm", "$RdaDest = $RdaSrc",
467                     [(set rGPR:$RdaDest,
468                          (i32 (!cast<Intrinsic>("int_arm_mve_" # iname)
469                                    (i32 rGPR:$RdaSrc), (i32 imm:$imm))))]> {
470  bits<5> imm;
471
472  let Inst{15} = 0b0;
473  let Inst{14-12} = imm{4-2};
474  let Inst{11-8} = 0b1111;
475  let Inst{7-6} = imm{1-0};
476  let Inst{5-4} = op5_4{1-0};
477  let Inst{3-0} = 0b1111;
478}
479
480def MVE_SQSHL : MVE_ScalarShiftSRegImm<"sqshl", 0b11>;
481def MVE_SRSHR : MVE_ScalarShiftSRegImm<"srshr", 0b10>;
482def MVE_UQSHL : MVE_ScalarShiftSRegImm<"uqshl", 0b00>;
483def MVE_URSHR : MVE_ScalarShiftSRegImm<"urshr", 0b01>;
484
485class MVE_ScalarShiftSRegReg<string iname, bits<2> op5_4>
486  : MVE_ScalarShiftSingleReg<iname, (ins rGPR:$RdaSrc, rGPR:$Rm),
487                     "$RdaSrc, $Rm", "$RdaDest = $RdaSrc",
488                     [(set rGPR:$RdaDest,
489                         (i32 (!cast<Intrinsic>("int_arm_mve_" # iname)
490                                   (i32 rGPR:$RdaSrc), (i32 rGPR:$Rm))))]> {
491  bits<4> Rm;
492
493  let Inst{15-12} = Rm{3-0};
494  let Inst{11-8} = 0b1111;
495  let Inst{7-6} = 0b00;
496  let Inst{5-4} = op5_4{1-0};
497  let Inst{3-0} = 0b1101;
498
499  let Unpredictable{8-6} = 0b111;
500}
501
502def MVE_SQRSHR : MVE_ScalarShiftSRegReg<"sqrshr", 0b10>;
503def MVE_UQRSHL : MVE_ScalarShiftSRegReg<"uqrshl", 0b00>;
504
505class MVE_ScalarShiftDoubleReg<string iname, dag iops, string asm,
506                               string cstr, list<dag> pattern=[]>
507  : MVE_ScalarShift<iname, (outs tGPREven:$RdaLo, tGPROdd:$RdaHi),
508                    iops, asm, cstr, pattern> {
509  bits<4> RdaLo;
510  bits<4> RdaHi;
511
512  let Inst{19-17} = RdaLo{3-1};
513  let Inst{11-9} = RdaHi{3-1};
514
515  let hasSideEffects = 0;
516}
517
518class MVE_ScalarShiftDRegImm<string iname, bits<2> op5_4, bit op16,
519                             list<dag> pattern=[]>
520  : MVE_ScalarShiftDoubleReg<
521      iname, (ins tGPREven:$RdaLo_src, tGPROdd:$RdaHi_src, long_shift:$imm),
522      "$RdaLo, $RdaHi, $imm", "$RdaLo = $RdaLo_src,$RdaHi = $RdaHi_src",
523      pattern> {
524  bits<5> imm;
525
526  let Inst{16} = op16;
527  let Inst{15} = 0b0;
528  let Inst{14-12} = imm{4-2};
529  let Inst{7-6} = imm{1-0};
530  let Inst{5-4} = op5_4{1-0};
531  let Inst{3-0} = 0b1111;
532}
533
534class MVE_ScalarShiftDRegRegBase<string iname, dag iops, string asm,
535                                 bit op5, bit op16, list<dag> pattern=[]>
536  : MVE_ScalarShiftDoubleReg<
537     iname, iops, asm, "@earlyclobber $RdaHi,@earlyclobber $RdaLo,"
538                       "$RdaLo = $RdaLo_src,$RdaHi = $RdaHi_src",
539     pattern> {
540  bits<4> Rm;
541
542  let Inst{16} = op16;
543  let Inst{15-12} = Rm{3-0};
544  let Inst{6} = 0b0;
545  let Inst{5} = op5;
546  let Inst{4} = 0b0;
547  let Inst{3-0} = 0b1101;
548
549  // Custom decoder method because of the following overlapping encodings:
550  // ASRL and SQRSHR
551  // LSLL and UQRSHL
552  // SQRSHRL and SQRSHR
553  // UQRSHLL and UQRSHL
554  let DecoderMethod = "DecodeMVEOverlappingLongShift";
555}
556
557class MVE_ScalarShiftDRegReg<string iname, bit op5, list<dag> pattern=[]>
558  : MVE_ScalarShiftDRegRegBase<
559     iname, (ins tGPREven:$RdaLo_src, tGPROdd:$RdaHi_src, rGPR:$Rm),
560     "$RdaLo, $RdaHi, $Rm", op5, 0b0, pattern> {
561
562  let Inst{7} = 0b0;
563}
564
565class MVE_ScalarShiftDRegRegWithSat<string iname, bit op5, list<dag> pattern=[]>
566  : MVE_ScalarShiftDRegRegBase<
567     iname, (ins tGPREven:$RdaLo_src, tGPROdd:$RdaHi_src, rGPR:$Rm, saturateop:$sat),
568     "$RdaLo, $RdaHi, $sat, $Rm", op5, 0b1, pattern> {
569  bit sat;
570
571  let Inst{7} = sat;
572}
573
574def MVE_ASRLr   : MVE_ScalarShiftDRegReg<"asrl",    0b1,  [(set tGPREven:$RdaLo, tGPROdd:$RdaHi,
575                                        (ARMasrl tGPREven:$RdaLo_src,
576                                        tGPROdd:$RdaHi_src, rGPR:$Rm))]>;
577def MVE_ASRLi   : MVE_ScalarShiftDRegImm<"asrl",    0b10, ?, [(set tGPREven:$RdaLo, tGPROdd:$RdaHi,
578                                        (ARMasrl tGPREven:$RdaLo_src,
579                                        tGPROdd:$RdaHi_src, (i32 long_shift:$imm)))]>;
580def MVE_LSLLr   : MVE_ScalarShiftDRegReg<"lsll",    0b0,  [(set tGPREven:$RdaLo, tGPROdd:$RdaHi,
581                                        (ARMlsll tGPREven:$RdaLo_src,
582                                        tGPROdd:$RdaHi_src, rGPR:$Rm))]>;
583def MVE_LSLLi   : MVE_ScalarShiftDRegImm<"lsll",    0b00, ?, [(set tGPREven:$RdaLo, tGPROdd:$RdaHi,
584                                        (ARMlsll tGPREven:$RdaLo_src,
585                                        tGPROdd:$RdaHi_src, (i32 long_shift:$imm)))]>;
586def MVE_LSRL    : MVE_ScalarShiftDRegImm<"lsrl",    0b01, ?, [(set tGPREven:$RdaLo, tGPROdd:$RdaHi,
587                                        (ARMlsrl tGPREven:$RdaLo_src,
588                                        tGPROdd:$RdaHi_src, (i32 long_shift:$imm)))]>;
589
590def MVE_SQRSHRL : MVE_ScalarShiftDRegRegWithSat<"sqrshrl", 0b1>;
591def MVE_SQSHLL  : MVE_ScalarShiftDRegImm<"sqshll",  0b11, 0b1>;
592def MVE_SRSHRL  : MVE_ScalarShiftDRegImm<"srshrl",  0b10, 0b1>;
593
594def MVE_UQRSHLL : MVE_ScalarShiftDRegRegWithSat<"uqrshll", 0b0>;
595def MVE_UQSHLL  : MVE_ScalarShiftDRegImm<"uqshll",  0b00, 0b1>;
596def MVE_URSHRL  : MVE_ScalarShiftDRegImm<"urshrl",  0b01, 0b1>;
597
598// start of mve_rDest instructions
599
600class MVE_rDest<dag oops, dag iops, InstrItinClass itin,
601                string iname, string suffix,
602                string ops, string cstr, list<dag> pattern=[]>
603// Always use vpred_n and not vpred_r: with the output register being
604// a GPR and not a vector register, there can't be any question of
605// what to put in its inactive lanes.
606  : MVE_p<oops, iops, itin, iname, suffix, ops, vpred_n, cstr, pattern> {
607
608  let Inst{25-23} = 0b101;
609  let Inst{11-9} = 0b111;
610  let Inst{4} = 0b0;
611}
612
613class MVE_VABAV<string suffix, bit U, bits<2> size>
614  : MVE_rDest<(outs rGPR:$Rda), (ins rGPR:$Rda_src, MQPR:$Qn, MQPR:$Qm),
615              NoItinerary, "vabav", suffix, "$Rda, $Qn, $Qm", "$Rda = $Rda_src",
616              []> {
617  bits<4> Qm;
618  bits<4> Qn;
619  bits<4> Rda;
620
621  let Inst{28} = U;
622  let Inst{22} = 0b0;
623  let Inst{21-20} = size{1-0};
624  let Inst{19-17} = Qn{2-0};
625  let Inst{16} = 0b0;
626  let Inst{15-12} = Rda{3-0};
627  let Inst{8} = 0b1;
628  let Inst{7} = Qn{3};
629  let Inst{6} = 0b0;
630  let Inst{5} = Qm{3};
631  let Inst{3-1} = Qm{2-0};
632  let Inst{0} = 0b1;
633  let horizontalReduction = 1;
634}
635
636multiclass MVE_VABAV_m<MVEVectorVTInfo VTI> {
637  def "" : MVE_VABAV<VTI.Suffix, VTI.Unsigned, VTI.Size>;
638  defvar Inst = !cast<Instruction>(NAME);
639
640  let Predicates = [HasMVEInt] in {
641    def : Pat<(i32 (int_arm_mve_vabav
642                         (i32 VTI.Unsigned),
643                         (i32 rGPR:$Rda_src),
644                         (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))),
645              (i32 (Inst (i32 rGPR:$Rda_src),
646                         (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm)))>;
647
648    def : Pat<(i32 (int_arm_mve_vabav_predicated
649                         (i32 VTI.Unsigned),
650                         (i32 rGPR:$Rda_src),
651                         (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
652                         (VTI.Pred VCCR:$mask))),
653              (i32 (Inst (i32 rGPR:$Rda_src),
654                         (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
655                         ARMVCCThen, (VTI.Pred VCCR:$mask)))>;
656  }
657}
658
659defm MVE_VABAVs8  : MVE_VABAV_m<MVE_v16s8>;
660defm MVE_VABAVs16 : MVE_VABAV_m<MVE_v8s16>;
661defm MVE_VABAVs32 : MVE_VABAV_m<MVE_v4s32>;
662defm MVE_VABAVu8  : MVE_VABAV_m<MVE_v16u8>;
663defm MVE_VABAVu16 : MVE_VABAV_m<MVE_v8u16>;
664defm MVE_VABAVu32 : MVE_VABAV_m<MVE_v4u32>;
665
666class MVE_VADDV<string iname, string suffix, dag iops, string cstr,
667              bit A, bit U, bits<2> size, list<dag> pattern=[]>
668  : MVE_rDest<(outs tGPREven:$Rda), iops, NoItinerary,
669              iname, suffix, "$Rda, $Qm", cstr, pattern> {
670  bits<3> Qm;
671  bits<4> Rda;
672
673  let Inst{28} = U;
674  let Inst{22-20} = 0b111;
675  let Inst{19-18} = size{1-0};
676  let Inst{17-16} = 0b01;
677  let Inst{15-13} = Rda{3-1};
678  let Inst{12} = 0b0;
679  let Inst{8-6} = 0b100;
680  let Inst{5} = A;
681  let Inst{3-1} = Qm{2-0};
682  let Inst{0} = 0b0;
683  let horizontalReduction = 1;
684  let validForTailPredication = 1;
685}
686
687def SDTVecReduceP : SDTypeProfile<1, 2, [    // VADDLVp
688  SDTCisInt<0>, SDTCisVec<1>, SDTCisVec<2>
689]>;
690def ARMVADDVs       : SDNode<"ARMISD::VADDVs", SDTVecReduce>;
691def ARMVADDVu       : SDNode<"ARMISD::VADDVu", SDTVecReduce>;
692def ARMVADDVps      : SDNode<"ARMISD::VADDVps", SDTVecReduceP>;
693def ARMVADDVpu      : SDNode<"ARMISD::VADDVpu", SDTVecReduceP>;
694
695multiclass MVE_VADDV_A<MVEVectorVTInfo VTI> {
696  def acc    : MVE_VADDV<"vaddva", VTI.Suffix,
697                         (ins tGPREven:$Rda_src, MQPR:$Qm), "$Rda = $Rda_src",
698                         0b1, VTI.Unsigned, VTI.Size>;
699  def no_acc : MVE_VADDV<"vaddv", VTI.Suffix,
700                         (ins MQPR:$Qm), "",
701                         0b0, VTI.Unsigned, VTI.Size>;
702
703  defvar InstA = !cast<Instruction>(NAME # "acc");
704  defvar InstN = !cast<Instruction>(NAME # "no_acc");
705
706  let Predicates = [HasMVEInt] in {
707    if VTI.Unsigned then {
708      def : Pat<(i32 (vecreduce_add (VTI.Vec MQPR:$vec))),
709                (i32 (InstN $vec))>;
710      def : Pat<(i32 (vecreduce_add (VTI.Vec (vselect (VTI.Pred VCCR:$pred),
711                                                      (VTI.Vec MQPR:$vec),
712                                                      (VTI.Vec ARMimmAllZerosV))))),
713                (i32 (InstN $vec, ARMVCCThen, $pred))>;
714      def : Pat<(i32 (ARMVADDVu (VTI.Vec MQPR:$vec))),
715                (i32 (InstN $vec))>;
716      def : Pat<(i32 (ARMVADDVpu (VTI.Vec MQPR:$vec), (VTI.Pred VCCR:$pred))),
717                (i32 (InstN $vec, ARMVCCThen, $pred))>;
718      def : Pat<(i32 (add (i32 (vecreduce_add (VTI.Vec MQPR:$vec))),
719                          (i32 tGPREven:$acc))),
720                (i32 (InstA $acc, $vec))>;
721      def : Pat<(i32 (add (i32 (vecreduce_add (VTI.Vec (vselect (VTI.Pred VCCR:$pred),
722                                                                (VTI.Vec MQPR:$vec),
723                                                                (VTI.Vec ARMimmAllZerosV))))),
724                          (i32 tGPREven:$acc))),
725                (i32 (InstA $acc, $vec, ARMVCCThen, $pred))>;
726      def : Pat<(i32 (add (i32 (ARMVADDVu (VTI.Vec MQPR:$vec))),
727                          (i32 tGPREven:$acc))),
728                (i32 (InstA $acc, $vec))>;
729      def : Pat<(i32 (add (i32 (ARMVADDVpu (VTI.Vec MQPR:$vec), (VTI.Pred VCCR:$pred))),
730                          (i32 tGPREven:$acc))),
731                (i32 (InstA $acc, $vec, ARMVCCThen, $pred))>;
732    } else {
733      def : Pat<(i32 (ARMVADDVs (VTI.Vec MQPR:$vec))),
734                (i32 (InstN $vec))>;
735      def : Pat<(i32 (add (i32 (ARMVADDVs (VTI.Vec MQPR:$vec))),
736                          (i32 tGPREven:$acc))),
737                (i32 (InstA $acc, $vec))>;
738      def : Pat<(i32 (ARMVADDVps (VTI.Vec MQPR:$vec), (VTI.Pred VCCR:$pred))),
739                (i32 (InstN $vec, ARMVCCThen, $pred))>;
740      def : Pat<(i32 (add (i32 (ARMVADDVps (VTI.Vec MQPR:$vec), (VTI.Pred VCCR:$pred))),
741                          (i32 tGPREven:$acc))),
742                (i32 (InstA $acc, $vec, ARMVCCThen, $pred))>;
743    }
744
745    def : Pat<(i32 (int_arm_mve_addv_predicated (VTI.Vec MQPR:$vec),
746                                                (i32 VTI.Unsigned),
747                                                (VTI.Pred VCCR:$pred))),
748              (i32 (InstN $vec, ARMVCCThen, $pred))>;
749    def : Pat<(i32 (add (int_arm_mve_addv_predicated (VTI.Vec MQPR:$vec),
750                                                     (i32 VTI.Unsigned),
751                                                     (VTI.Pred VCCR:$pred)),
752                        (i32 tGPREven:$acc))),
753              (i32 (InstA $acc, $vec, ARMVCCThen, $pred))>;
754  }
755}
756
757defm MVE_VADDVs8  : MVE_VADDV_A<MVE_v16s8>;
758defm MVE_VADDVs16 : MVE_VADDV_A<MVE_v8s16>;
759defm MVE_VADDVs32 : MVE_VADDV_A<MVE_v4s32>;
760defm MVE_VADDVu8  : MVE_VADDV_A<MVE_v16u8>;
761defm MVE_VADDVu16 : MVE_VADDV_A<MVE_v8u16>;
762defm MVE_VADDVu32 : MVE_VADDV_A<MVE_v4u32>;
763
764class MVE_VADDLV<string iname, string suffix, dag iops, string cstr,
765               bit A, bit U, list<dag> pattern=[]>
766  : MVE_rDest<(outs tGPREven:$RdaLo, tGPROdd:$RdaHi), iops, NoItinerary, iname,
767              suffix, "$RdaLo, $RdaHi, $Qm", cstr, pattern> {
768  bits<3> Qm;
769  bits<4> RdaLo;
770  bits<4> RdaHi;
771
772  let Inst{28} = U;
773  let Inst{22-20} = RdaHi{3-1};
774  let Inst{19-18} = 0b10;
775  let Inst{17-16} = 0b01;
776  let Inst{15-13} = RdaLo{3-1};
777  let Inst{12} = 0b0;
778  let Inst{8-6} = 0b100;
779  let Inst{5} = A;
780  let Inst{3-1} = Qm{2-0};
781  let Inst{0} = 0b0;
782  let horizontalReduction = 1;
783}
784
785def SDTVecReduceL : SDTypeProfile<2, 1, [    // VADDLV
786  SDTCisInt<0>, SDTCisInt<1>, SDTCisVec<2>
787]>;
788def SDTVecReduceLA : SDTypeProfile<2, 3, [    // VADDLVA
789  SDTCisInt<0>, SDTCisInt<1>, SDTCisInt<2>, SDTCisInt<3>,
790  SDTCisVec<4>
791]>;
792def SDTVecReduceLP : SDTypeProfile<2, 2, [    // VADDLVp
793  SDTCisInt<0>, SDTCisInt<1>, SDTCisVec<2>, SDTCisVec<2>
794]>;
795def SDTVecReduceLPA : SDTypeProfile<2, 4, [    // VADDLVAp
796  SDTCisInt<0>, SDTCisInt<1>, SDTCisInt<2>, SDTCisInt<3>,
797  SDTCisVec<4>, SDTCisVec<5>
798]>;
799
800multiclass MVE_VADDLV_A<MVEVectorVTInfo VTI> {
801  def acc    : MVE_VADDLV<"vaddlva", VTI.Suffix,
802                        (ins tGPREven:$RdaLo_src, tGPROdd:$RdaHi_src, MQPR:$Qm),
803                        "$RdaLo = $RdaLo_src,$RdaHi = $RdaHi_src",
804                        0b1, VTI.Unsigned>;
805  def no_acc : MVE_VADDLV<"vaddlv", VTI.Suffix,
806                        (ins MQPR:$Qm), "",
807                        0b0, VTI.Unsigned>;
808
809  defvar InstA = !cast<Instruction>(NAME # "acc");
810  defvar InstN = !cast<Instruction>(NAME # "no_acc");
811
812  defvar letter = VTI.SuffixLetter;
813  defvar ARMVADDLV = SDNode<"ARMISD::VADDLV" # letter, SDTVecReduceL>;
814  defvar ARMVADDLVA = SDNode<"ARMISD::VADDLVA" # letter, SDTVecReduceLA>;
815  defvar ARMVADDLVp = SDNode<"ARMISD::VADDLVp" # letter, SDTVecReduceLP>;
816  defvar ARMVADDLVAp = SDNode<"ARMISD::VADDLVAp" # letter, SDTVecReduceLPA>;
817
818  let Predicates = [HasMVEInt] in {
819    def : Pat<(ARMVADDLV (v4i32 MQPR:$vec)),
820              (InstN (v4i32 MQPR:$vec))>;
821    def : Pat<(ARMVADDLVA tGPREven:$acclo, tGPROdd:$acchi, (v4i32 MQPR:$vec)),
822              (InstA tGPREven:$acclo, tGPROdd:$acchi, (v4i32 MQPR:$vec))>;
823    def : Pat<(ARMVADDLVp (v4i32 MQPR:$vec), (VTI.Pred VCCR:$pred)),
824              (InstN (v4i32 MQPR:$vec), ARMVCCThen, (VTI.Pred VCCR:$pred))>;
825    def : Pat<(ARMVADDLVAp tGPREven:$acclo, tGPROdd:$acchi, (v4i32 MQPR:$vec),
826                           (VTI.Pred VCCR:$pred)),
827              (InstA tGPREven:$acclo, tGPROdd:$acchi, (v4i32 MQPR:$vec),
828                     ARMVCCThen, (VTI.Pred VCCR:$pred))>;
829  }
830}
831
832defm MVE_VADDLVs32 : MVE_VADDLV_A<MVE_v4s32>;
833defm MVE_VADDLVu32 : MVE_VADDLV_A<MVE_v4u32>;
834
835class MVE_VMINMAXNMV<string iname, string suffix, bit sz,
836                     bit bit_17, bit bit_7, list<dag> pattern=[]>
837  : MVE_rDest<(outs rGPR:$RdaDest), (ins rGPR:$RdaSrc, MQPR:$Qm),
838              NoItinerary, iname, suffix, "$RdaSrc, $Qm",
839              "$RdaDest = $RdaSrc", pattern> {
840  bits<3> Qm;
841  bits<4> RdaDest;
842
843  let Inst{28} = sz;
844  let Inst{22-20} = 0b110;
845  let Inst{19-18} = 0b11;
846  let Inst{17} = bit_17;
847  let Inst{16} = 0b0;
848  let Inst{15-12} = RdaDest{3-0};
849  let Inst{8} = 0b1;
850  let Inst{7} = bit_7;
851  let Inst{6-5} = 0b00;
852  let Inst{3-1} = Qm{2-0};
853  let Inst{0} = 0b0;
854  let horizontalReduction = 1;
855
856  let Predicates = [HasMVEFloat];
857  let hasSideEffects = 0;
858}
859
860multiclass MVE_VMINMAXNMV_p<string iname, bit notAbs, bit isMin,
861                            MVEVectorVTInfo VTI, string intrBaseName,
862                            ValueType Scalar, RegisterClass ScalarReg> {
863  def "": MVE_VMINMAXNMV<iname, VTI.Suffix, VTI.Size{0}, notAbs, isMin>;
864  defvar Inst        = !cast<Instruction>(NAME);
865  defvar unpred_intr = !cast<Intrinsic>(intrBaseName);
866  defvar pred_intr   = !cast<Intrinsic>(intrBaseName#"_predicated");
867
868  let Predicates = [HasMVEFloat] in {
869    def : Pat<(Scalar (unpred_intr (Scalar ScalarReg:$prev),
870                                   (VTI.Vec MQPR:$vec))),
871           (COPY_TO_REGCLASS (Inst (COPY_TO_REGCLASS ScalarReg:$prev, rGPR),
872                                   (VTI.Vec MQPR:$vec)),
873                              ScalarReg)>;
874    def : Pat<(Scalar (pred_intr   (Scalar ScalarReg:$prev),
875                                   (VTI.Vec MQPR:$vec),
876                                   (VTI.Pred VCCR:$pred))),
877           (COPY_TO_REGCLASS (Inst (COPY_TO_REGCLASS ScalarReg:$prev, rGPR),
878                                   (VTI.Vec MQPR:$vec),
879                                   ARMVCCThen, (VTI.Pred VCCR:$pred)),
880                              ScalarReg)>;
881  }
882}
883
884multiclass MVE_VMINMAXNMV_fty<string iname, bit notAbs, bit isMin,
885                              string intrBase> {
886  defm f32 : MVE_VMINMAXNMV_p<iname, notAbs, isMin, MVE_v4f32, intrBase,
887                              f32, SPR>;
888  defm f16 : MVE_VMINMAXNMV_p<iname, notAbs, isMin, MVE_v8f16, intrBase,
889                              f16, HPR>;
890}
891
892defm MVE_VMINNMV : MVE_VMINMAXNMV_fty<"vminnmv",  1, 1, "int_arm_mve_minnmv">;
893defm MVE_VMAXNMV : MVE_VMINMAXNMV_fty<"vmaxnmv",  1, 0, "int_arm_mve_maxnmv">;
894defm MVE_VMINNMAV: MVE_VMINMAXNMV_fty<"vminnmav", 0, 1, "int_arm_mve_minnmav">;
895defm MVE_VMAXNMAV: MVE_VMINMAXNMV_fty<"vmaxnmav", 0, 0, "int_arm_mve_maxnmav">;
896
897class MVE_VMINMAXV<string iname, string suffix, bit U, bits<2> size,
898                 bit bit_17, bit bit_7, list<dag> pattern=[]>
899  : MVE_rDest<(outs rGPR:$RdaDest), (ins rGPR:$RdaSrc, MQPR:$Qm), NoItinerary,
900              iname, suffix, "$RdaSrc, $Qm", "$RdaDest = $RdaSrc", pattern> {
901  bits<3> Qm;
902  bits<4> RdaDest;
903
904  let Inst{28} = U;
905  let Inst{22-20} = 0b110;
906  let Inst{19-18} = size{1-0};
907  let Inst{17} = bit_17;
908  let Inst{16} = 0b0;
909  let Inst{15-12} = RdaDest{3-0};
910  let Inst{8} = 0b1;
911  let Inst{7} = bit_7;
912  let Inst{6-5} = 0b00;
913  let Inst{3-1} = Qm{2-0};
914  let Inst{0} = 0b0;
915  let horizontalReduction = 1;
916}
917
918multiclass MVE_VMINMAXV_p<string iname, bit notAbs, bit isMin,
919                          MVEVectorVTInfo VTI, string intrBaseName> {
920  def "": MVE_VMINMAXV<iname, VTI.Suffix, VTI.Unsigned, VTI.Size,
921                       notAbs, isMin>;
922  defvar Inst        = !cast<Instruction>(NAME);
923  defvar unpred_intr = !cast<Intrinsic>(intrBaseName);
924  defvar pred_intr   = !cast<Intrinsic>(intrBaseName#"_predicated");
925  defvar base_args   = (? (i32 rGPR:$prev), (VTI.Vec MQPR:$vec));
926  defvar args        = !if(notAbs, !con(base_args, (? (i32 VTI.Unsigned))),
927                           base_args);
928
929  let Predicates = [HasMVEInt] in {
930    def : Pat<(i32 !con(args, (unpred_intr))),
931              (i32 (Inst (i32 rGPR:$prev), (VTI.Vec MQPR:$vec)))>;
932    def : Pat<(i32 !con(args, (pred_intr (VTI.Pred VCCR:$pred)))),
933              (i32 (Inst (i32 rGPR:$prev), (VTI.Vec MQPR:$vec),
934                         ARMVCCThen, (VTI.Pred VCCR:$pred)))>;
935  }
936}
937
938multiclass MVE_VMINMAXV_ty<string iname, bit isMin, string intrBaseName> {
939  defm s8 : MVE_VMINMAXV_p<iname, 1, isMin, MVE_v16s8, intrBaseName>;
940  defm s16: MVE_VMINMAXV_p<iname, 1, isMin, MVE_v8s16, intrBaseName>;
941  defm s32: MVE_VMINMAXV_p<iname, 1, isMin, MVE_v4s32, intrBaseName>;
942  defm u8 : MVE_VMINMAXV_p<iname, 1, isMin, MVE_v16u8, intrBaseName>;
943  defm u16: MVE_VMINMAXV_p<iname, 1, isMin, MVE_v8u16, intrBaseName>;
944  defm u32: MVE_VMINMAXV_p<iname, 1, isMin, MVE_v4u32, intrBaseName>;
945}
946
947def SDTVecReduceR : SDTypeProfile<1, 2, [   // Reduction of an integer and vector into an integer
948  SDTCisInt<0>, SDTCisInt<1>, SDTCisVec<2>
949]>;
950def ARMVMINVu       : SDNode<"ARMISD::VMINVu", SDTVecReduceR>;
951def ARMVMINVs       : SDNode<"ARMISD::VMINVs", SDTVecReduceR>;
952def ARMVMAXVu       : SDNode<"ARMISD::VMAXVu", SDTVecReduceR>;
953def ARMVMAXVs       : SDNode<"ARMISD::VMAXVs", SDTVecReduceR>;
954
955defm MVE_VMINV : MVE_VMINMAXV_ty<"vminv", 1, "int_arm_mve_minv">;
956defm MVE_VMAXV : MVE_VMINMAXV_ty<"vmaxv", 0, "int_arm_mve_maxv">;
957
958let Predicates = [HasMVEInt] in {
959  def : Pat<(i32 (vecreduce_smax (v16i8 MQPR:$src))),
960            (i32 (MVE_VMAXVs8 (t2MVNi (i32 127)), $src))>;
961  def : Pat<(i32 (vecreduce_smax (v8i16 MQPR:$src))),
962            (i32 (MVE_VMAXVs16 (t2MOVi32imm (i32 -32768)), $src))>;
963  def : Pat<(i32 (vecreduce_smax (v4i32 MQPR:$src))),
964            (i32 (MVE_VMAXVs32 (t2MOVi (i32 -2147483648)), $src))>;
965  def : Pat<(i32 (vecreduce_umax (v16i8 MQPR:$src))),
966            (i32 (MVE_VMAXVu8 (t2MOVi (i32 0)), $src))>;
967  def : Pat<(i32 (vecreduce_umax (v8i16 MQPR:$src))),
968            (i32 (MVE_VMAXVu16 (t2MOVi (i32 0)), $src))>;
969  def : Pat<(i32 (vecreduce_umax (v4i32 MQPR:$src))),
970            (i32 (MVE_VMAXVu32 (t2MOVi (i32 0)), $src))>;
971
972  def : Pat<(i32 (vecreduce_smin (v16i8 MQPR:$src))),
973            (i32 (MVE_VMINVs8 (t2MOVi (i32 127)), $src))>;
974  def : Pat<(i32 (vecreduce_smin (v8i16 MQPR:$src))),
975            (i32 (MVE_VMINVs16 (t2MOVi16 (i32 32767)), $src))>;
976  def : Pat<(i32 (vecreduce_smin (v4i32 MQPR:$src))),
977            (i32 (MVE_VMINVs32 (t2MVNi (i32 -2147483648)), $src))>;
978  def : Pat<(i32 (vecreduce_umin (v16i8 MQPR:$src))),
979            (i32 (MVE_VMINVu8 (t2MOVi (i32 255)), $src))>;
980  def : Pat<(i32 (vecreduce_umin (v8i16 MQPR:$src))),
981            (i32 (MVE_VMINVu16 (t2MOVi16 (i32 65535)), $src))>;
982  def : Pat<(i32 (vecreduce_umin (v4i32 MQPR:$src))),
983            (i32 (MVE_VMINVu32 (t2MOVi (i32 4294967295)), $src))>;
984
985  def : Pat<(i32 (ARMVMINVu (i32 rGPR:$x), (v16i8 MQPR:$src))),
986            (i32 (MVE_VMINVu8 $x, $src))>;
987  def : Pat<(i32 (ARMVMINVu (i32 rGPR:$x), (v8i16 MQPR:$src))),
988            (i32 (MVE_VMINVu16 $x, $src))>;
989  def : Pat<(i32 (ARMVMINVu (i32 rGPR:$x), (v4i32 MQPR:$src))),
990            (i32 (MVE_VMINVu32 $x, $src))>;
991  def : Pat<(i32 (ARMVMINVs (i32 rGPR:$x), (v16i8 MQPR:$src))),
992            (i32 (MVE_VMINVs8 $x, $src))>;
993  def : Pat<(i32 (ARMVMINVs (i32 rGPR:$x), (v8i16 MQPR:$src))),
994            (i32 (MVE_VMINVs16 $x, $src))>;
995  def : Pat<(i32 (ARMVMINVs (i32 rGPR:$x), (v4i32 MQPR:$src))),
996            (i32 (MVE_VMINVs32 $x, $src))>;
997
998  def : Pat<(i32 (ARMVMAXVu (i32 rGPR:$x), (v16i8 MQPR:$src))),
999            (i32 (MVE_VMAXVu8 $x, $src))>;
1000  def : Pat<(i32 (ARMVMAXVu (i32 rGPR:$x), (v8i16 MQPR:$src))),
1001            (i32 (MVE_VMAXVu16 $x, $src))>;
1002  def : Pat<(i32 (ARMVMAXVu (i32 rGPR:$x), (v4i32 MQPR:$src))),
1003            (i32 (MVE_VMAXVu32 $x, $src))>;
1004  def : Pat<(i32 (ARMVMAXVs (i32 rGPR:$x), (v16i8 MQPR:$src))),
1005            (i32 (MVE_VMAXVs8 $x, $src))>;
1006  def : Pat<(i32 (ARMVMAXVs (i32 rGPR:$x), (v8i16 MQPR:$src))),
1007            (i32 (MVE_VMAXVs16 $x, $src))>;
1008  def : Pat<(i32 (ARMVMAXVs (i32 rGPR:$x), (v4i32 MQPR:$src))),
1009            (i32 (MVE_VMAXVs32 $x, $src))>;
1010
1011}
1012
1013multiclass MVE_VMINMAXAV_ty<string iname, bit isMin, string intrBaseName> {
1014  defm s8 : MVE_VMINMAXV_p<iname, 0, isMin, MVE_v16s8, intrBaseName>;
1015  defm s16: MVE_VMINMAXV_p<iname, 0, isMin, MVE_v8s16, intrBaseName>;
1016  defm s32: MVE_VMINMAXV_p<iname, 0, isMin, MVE_v4s32, intrBaseName>;
1017}
1018
1019defm MVE_VMINAV : MVE_VMINMAXAV_ty<"vminav", 1, "int_arm_mve_minav">;
1020defm MVE_VMAXAV : MVE_VMINMAXAV_ty<"vmaxav", 0, "int_arm_mve_maxav">;
1021
1022class MVE_VMLAMLSDAV<string iname, string suffix, dag iops, string cstr,
1023                   bit sz, bit bit_28, bit A, bit X, bit bit_8, bit bit_0>
1024  : MVE_rDest<(outs tGPREven:$RdaDest), iops, NoItinerary, iname, suffix,
1025              "$RdaDest, $Qn, $Qm", cstr, []> {
1026  bits<4> RdaDest;
1027  bits<3> Qm;
1028  bits<3> Qn;
1029
1030  let Inst{28} = bit_28;
1031  let Inst{22-20} = 0b111;
1032  let Inst{19-17} = Qn{2-0};
1033  let Inst{16} = sz;
1034  let Inst{15-13} = RdaDest{3-1};
1035  let Inst{12} = X;
1036  let Inst{8} = bit_8;
1037  let Inst{7-6} = 0b00;
1038  let Inst{5} = A;
1039  let Inst{3-1} = Qm{2-0};
1040  let Inst{0} = bit_0;
1041  let horizontalReduction = 1;
1042  // Allow tail predication for non-exchanging versions. As this is also a
1043  // horizontalReduction, ARMLowOverheadLoops will also have to check that
1044  // the vector operands contain zeros in their false lanes for the instruction
1045  // to be properly valid.
1046  let validForTailPredication = !eq(X, 0);
1047}
1048
1049multiclass MVE_VMLAMLSDAV_A<string iname, string x, MVEVectorVTInfo VTI,
1050                            bit sz, bit bit_28, bit X, bit bit_8, bit bit_0> {
1051  def ""#x#VTI.Suffix : MVE_VMLAMLSDAV<iname # x, VTI.Suffix,
1052                                   (ins MQPR:$Qn, MQPR:$Qm), "",
1053                                   sz, bit_28, 0b0, X, bit_8, bit_0>;
1054  def "a"#x#VTI.Suffix : MVE_VMLAMLSDAV<iname # "a" # x, VTI.Suffix,
1055                                    (ins tGPREven:$RdaSrc, MQPR:$Qn, MQPR:$Qm),
1056                                    "$RdaDest = $RdaSrc",
1057                                    sz, bit_28, 0b1, X, bit_8, bit_0>;
1058  let Predicates = [HasMVEInt] in {
1059    def : Pat<(i32 (int_arm_mve_vmldava
1060                            (i32 VTI.Unsigned),
1061                            (i32 bit_0) /* subtract */,
1062                            (i32 X) /* exchange */,
1063                            (i32 0) /* accumulator */,
1064                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))),
1065              (i32 (!cast<Instruction>(NAME # x # VTI.Suffix)
1066                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm)))>;
1067
1068    def : Pat<(i32 (int_arm_mve_vmldava_predicated
1069                            (i32 VTI.Unsigned),
1070                            (i32 bit_0) /* subtract */,
1071                            (i32 X) /* exchange */,
1072                            (i32 0) /* accumulator */,
1073                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
1074                            (VTI.Pred VCCR:$mask))),
1075              (i32 (!cast<Instruction>(NAME # x # VTI.Suffix)
1076                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
1077                             ARMVCCThen, (VTI.Pred VCCR:$mask)))>;
1078
1079    def : Pat<(i32 (int_arm_mve_vmldava
1080                            (i32 VTI.Unsigned),
1081                            (i32 bit_0) /* subtract */,
1082                            (i32 X) /* exchange */,
1083                            (i32 tGPREven:$RdaSrc),
1084                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))),
1085              (i32 (!cast<Instruction>(NAME # "a" # x # VTI.Suffix)
1086                            (i32 tGPREven:$RdaSrc),
1087                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm)))>;
1088
1089    def : Pat<(i32 (int_arm_mve_vmldava_predicated
1090                            (i32 VTI.Unsigned),
1091                            (i32 bit_0) /* subtract */,
1092                            (i32 X) /* exchange */,
1093                            (i32 tGPREven:$RdaSrc),
1094                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
1095                            (VTI.Pred VCCR:$mask))),
1096              (i32 (!cast<Instruction>(NAME # "a" # x # VTI.Suffix)
1097                            (i32 tGPREven:$RdaSrc),
1098                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
1099                             ARMVCCThen, (VTI.Pred VCCR:$mask)))>;
1100  }
1101}
1102
1103multiclass MVE_VMLAMLSDAV_AX<string iname, MVEVectorVTInfo VTI, bit sz,
1104                             bit bit_28, bit bit_8, bit bit_0> {
1105  defm "" : MVE_VMLAMLSDAV_A<iname, "", VTI, sz, bit_28,
1106                             0b0, bit_8, bit_0>;
1107  defm "" : MVE_VMLAMLSDAV_A<iname, "x", VTI, sz, bit_28,
1108                             0b1, bit_8, bit_0>;
1109}
1110
1111multiclass MVE_VMLADAV_multi<MVEVectorVTInfo SVTI, MVEVectorVTInfo UVTI,
1112                             bit sz, bit bit_8> {
1113  defm "" : MVE_VMLAMLSDAV_AX<"vmladav", SVTI,
1114                              sz, 0b0, bit_8, 0b0>;
1115  defm "" : MVE_VMLAMLSDAV_A<"vmladav", "", UVTI,
1116                             sz, 0b1, 0b0, bit_8, 0b0>;
1117}
1118
1119multiclass MVE_VMLSDAV_multi<MVEVectorVTInfo VTI, bit sz, bit bit_28> {
1120  defm "" : MVE_VMLAMLSDAV_AX<"vmlsdav", VTI,
1121                              sz, bit_28, 0b0, 0b1>;
1122}
1123
1124defm MVE_VMLADAV : MVE_VMLADAV_multi<MVE_v16s8, MVE_v16u8, 0b0, 0b1>;
1125defm MVE_VMLADAV : MVE_VMLADAV_multi<MVE_v8s16, MVE_v8u16, 0b0, 0b0>;
1126defm MVE_VMLADAV : MVE_VMLADAV_multi<MVE_v4s32, MVE_v4u32, 0b1, 0b0>;
1127
1128defm MVE_VMLSDAV : MVE_VMLSDAV_multi<MVE_v16s8, 0b0, 0b1>;
1129defm MVE_VMLSDAV : MVE_VMLSDAV_multi<MVE_v8s16, 0b0, 0b0>;
1130defm MVE_VMLSDAV : MVE_VMLSDAV_multi<MVE_v4s32, 0b1, 0b0>;
1131
1132def SDTVecReduce2 : SDTypeProfile<1, 2, [    // VMLAV
1133  SDTCisInt<0>, SDTCisVec<1>, SDTCisVec<2>
1134]>;
1135def SDTVecReduce2L : SDTypeProfile<2, 2, [    // VMLALV
1136  SDTCisInt<0>, SDTCisInt<1>, SDTCisVec<2>, SDTCisVec<3>
1137]>;
1138def SDTVecReduce2LA : SDTypeProfile<2, 4, [    // VMLALVA
1139  SDTCisInt<0>, SDTCisInt<1>, SDTCisInt<2>, SDTCisInt<3>,
1140  SDTCisVec<4>, SDTCisVec<5>
1141]>;
1142def SDTVecReduce2P : SDTypeProfile<1, 3, [    // VMLAV
1143  SDTCisInt<0>, SDTCisVec<1>, SDTCisVec<2>, SDTCisVec<3>
1144]>;
1145def SDTVecReduce2LP : SDTypeProfile<2, 3, [    // VMLALV
1146  SDTCisInt<0>, SDTCisInt<1>, SDTCisVec<2>, SDTCisVec<3>, SDTCisVec<4>
1147]>;
1148def SDTVecReduce2LAP : SDTypeProfile<2, 5, [    // VMLALVA
1149  SDTCisInt<0>, SDTCisInt<1>, SDTCisInt<2>, SDTCisInt<3>,
1150  SDTCisVec<4>, SDTCisVec<5>, SDTCisVec<6>
1151]>;
1152def ARMVMLAVs       : SDNode<"ARMISD::VMLAVs", SDTVecReduce2>;
1153def ARMVMLAVu       : SDNode<"ARMISD::VMLAVu", SDTVecReduce2>;
1154def ARMVMLALVs      : SDNode<"ARMISD::VMLALVs", SDTVecReduce2L>;
1155def ARMVMLALVu      : SDNode<"ARMISD::VMLALVu", SDTVecReduce2L>;
1156def ARMVMLALVAs     : SDNode<"ARMISD::VMLALVAs", SDTVecReduce2LA>;
1157def ARMVMLALVAu     : SDNode<"ARMISD::VMLALVAu", SDTVecReduce2LA>;
1158def ARMVMLAVps      : SDNode<"ARMISD::VMLAVps", SDTVecReduce2P>;
1159def ARMVMLAVpu      : SDNode<"ARMISD::VMLAVpu", SDTVecReduce2P>;
1160def ARMVMLALVps     : SDNode<"ARMISD::VMLALVps", SDTVecReduce2LP>;
1161def ARMVMLALVpu     : SDNode<"ARMISD::VMLALVpu", SDTVecReduce2LP>;
1162def ARMVMLALVAps    : SDNode<"ARMISD::VMLALVAps", SDTVecReduce2LAP>;
1163def ARMVMLALVApu    : SDNode<"ARMISD::VMLALVApu", SDTVecReduce2LAP>;
1164
1165let Predicates = [HasMVEInt] in {
1166  def : Pat<(i32 (vecreduce_add (mul (v4i32 MQPR:$src1), (v4i32 MQPR:$src2)))),
1167            (i32 (MVE_VMLADAVu32 $src1, $src2))>;
1168  def : Pat<(i32 (vecreduce_add (mul (v8i16 MQPR:$src1), (v8i16 MQPR:$src2)))),
1169            (i32 (MVE_VMLADAVu16 $src1, $src2))>;
1170  def : Pat<(i32 (ARMVMLAVs (v8i16 MQPR:$val1), (v8i16 MQPR:$val2))),
1171            (i32 (MVE_VMLADAVs16 (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)))>;
1172  def : Pat<(i32 (ARMVMLAVu (v8i16 MQPR:$val1), (v8i16 MQPR:$val2))),
1173            (i32 (MVE_VMLADAVu16 (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)))>;
1174  def : Pat<(i32 (vecreduce_add (mul (v16i8 MQPR:$src1), (v16i8 MQPR:$src2)))),
1175            (i32 (MVE_VMLADAVu8 $src1, $src2))>;
1176  def : Pat<(i32 (ARMVMLAVs (v16i8 MQPR:$val1), (v16i8 MQPR:$val2))),
1177            (i32 (MVE_VMLADAVs8 (v16i8 MQPR:$val1), (v16i8 MQPR:$val2)))>;
1178  def : Pat<(i32 (ARMVMLAVu (v16i8 MQPR:$val1), (v16i8 MQPR:$val2))),
1179            (i32 (MVE_VMLADAVu8 (v16i8 MQPR:$val1), (v16i8 MQPR:$val2)))>;
1180
1181  def : Pat<(i32 (add (i32 (vecreduce_add (mul (v4i32 MQPR:$src1), (v4i32 MQPR:$src2)))),
1182                      (i32 tGPREven:$src3))),
1183            (i32 (MVE_VMLADAVau32 $src3, $src1, $src2))>;
1184  def : Pat<(i32 (add (i32 (vecreduce_add (mul (v8i16 MQPR:$src1), (v8i16 MQPR:$src2)))),
1185                      (i32 tGPREven:$src3))),
1186            (i32 (MVE_VMLADAVau16 $src3, $src1, $src2))>;
1187  def : Pat<(i32 (add (ARMVMLAVs (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)), tGPREven:$Rd)),
1188            (i32 (MVE_VMLADAVas16 tGPREven:$Rd, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)))>;
1189  def : Pat<(i32 (add (ARMVMLAVu (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)), tGPREven:$Rd)),
1190            (i32 (MVE_VMLADAVau16 tGPREven:$Rd, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)))>;
1191  def : Pat<(i32 (add (i32 (vecreduce_add (mul (v16i8 MQPR:$src1), (v16i8 MQPR:$src2)))),
1192                      (i32 tGPREven:$src3))),
1193            (i32 (MVE_VMLADAVau8 $src3, $src1, $src2))>;
1194  def : Pat<(i32 (add (ARMVMLAVs (v16i8 MQPR:$val1), (v16i8 MQPR:$val2)), tGPREven:$Rd)),
1195            (i32 (MVE_VMLADAVas8 tGPREven:$Rd, (v16i8 MQPR:$val1), (v16i8 MQPR:$val2)))>;
1196  def : Pat<(i32 (add (ARMVMLAVu (v16i8 MQPR:$val1), (v16i8 MQPR:$val2)), tGPREven:$Rd)),
1197            (i32 (MVE_VMLADAVau8 tGPREven:$Rd, (v16i8 MQPR:$val1), (v16i8 MQPR:$val2)))>;
1198
1199  // Predicated
1200  def : Pat<(i32 (vecreduce_add (vselect (v4i1 VCCR:$pred),
1201                                         (mul (v4i32 MQPR:$src1), (v4i32 MQPR:$src2)),
1202                                         (v4i32 ARMimmAllZerosV)))),
1203            (i32 (MVE_VMLADAVu32 $src1, $src2, ARMVCCThen, $pred))>;
1204  def : Pat<(i32 (vecreduce_add (vselect (v8i1 VCCR:$pred),
1205                                         (mul (v8i16 MQPR:$src1), (v8i16 MQPR:$src2)),
1206                                         (v8i16 ARMimmAllZerosV)))),
1207            (i32 (MVE_VMLADAVu16 $src1, $src2, ARMVCCThen, $pred))>;
1208  def : Pat<(i32 (ARMVMLAVps (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), (v8i1 VCCR:$pred))),
1209            (i32 (MVE_VMLADAVs16 (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), ARMVCCThen, $pred))>;
1210  def : Pat<(i32 (ARMVMLAVpu (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), (v8i1 VCCR:$pred))),
1211            (i32 (MVE_VMLADAVu16 (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), ARMVCCThen, $pred))>;
1212  def : Pat<(i32 (vecreduce_add (vselect (v16i1 VCCR:$pred),
1213                                         (mul (v16i8 MQPR:$src1), (v16i8 MQPR:$src2)),
1214                                         (v16i8 ARMimmAllZerosV)))),
1215            (i32 (MVE_VMLADAVu8 $src1, $src2, ARMVCCThen, $pred))>;
1216  def : Pat<(i32 (ARMVMLAVps (v16i8 MQPR:$val1), (v16i8 MQPR:$val2), (v16i1 VCCR:$pred))),
1217            (i32 (MVE_VMLADAVs8 (v16i8 MQPR:$val1), (v16i8 MQPR:$val2), ARMVCCThen, $pred))>;
1218  def : Pat<(i32 (ARMVMLAVpu (v16i8 MQPR:$val1), (v16i8 MQPR:$val2), (v16i1 VCCR:$pred))),
1219            (i32 (MVE_VMLADAVu8 (v16i8 MQPR:$val1), (v16i8 MQPR:$val2), ARMVCCThen, $pred))>;
1220
1221  def : Pat<(i32 (add (i32 (vecreduce_add (vselect (v4i1 VCCR:$pred),
1222                                                   (mul (v4i32 MQPR:$src1), (v4i32 MQPR:$src2)),
1223                                                   (v4i32 ARMimmAllZerosV)))),
1224                      (i32 tGPREven:$src3))),
1225            (i32 (MVE_VMLADAVau32 $src3, $src1, $src2, ARMVCCThen, $pred))>;
1226  def : Pat<(i32 (add (i32 (vecreduce_add (vselect (v8i1 VCCR:$pred),
1227                                                   (mul (v8i16 MQPR:$src1), (v8i16 MQPR:$src2)),
1228                                                   (v8i16 ARMimmAllZerosV)))),
1229                      (i32 tGPREven:$src3))),
1230            (i32 (MVE_VMLADAVau16 $src3, $src1, $src2, ARMVCCThen, $pred))>;
1231  def : Pat<(i32 (add (ARMVMLAVps (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), (v8i1 VCCR:$pred)), tGPREven:$Rd)),
1232            (i32 (MVE_VMLADAVas16 tGPREven:$Rd, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), ARMVCCThen, $pred))>;
1233  def : Pat<(i32 (add (ARMVMLAVpu (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), (v8i1 VCCR:$pred)), tGPREven:$Rd)),
1234            (i32 (MVE_VMLADAVau16 tGPREven:$Rd, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), ARMVCCThen, $pred))>;
1235  def : Pat<(i32 (add (i32 (vecreduce_add (vselect (v16i1 VCCR:$pred),
1236                                                   (mul (v16i8 MQPR:$src1), (v16i8 MQPR:$src2)),
1237                                                   (v16i8 ARMimmAllZerosV)))),
1238                      (i32 tGPREven:$src3))),
1239            (i32 (MVE_VMLADAVau8 $src3, $src1, $src2, ARMVCCThen, $pred))>;
1240  def : Pat<(i32 (add (ARMVMLAVps (v16i8 MQPR:$val1), (v16i8 MQPR:$val2), (v16i1 VCCR:$pred)), tGPREven:$Rd)),
1241            (i32 (MVE_VMLADAVas8 tGPREven:$Rd, (v16i8 MQPR:$val1), (v16i8 MQPR:$val2), ARMVCCThen, $pred))>;
1242  def : Pat<(i32 (add (ARMVMLAVpu (v16i8 MQPR:$val1), (v16i8 MQPR:$val2), (v16i1 VCCR:$pred)), tGPREven:$Rd)),
1243            (i32 (MVE_VMLADAVau8 tGPREven:$Rd, (v16i8 MQPR:$val1), (v16i8 MQPR:$val2), ARMVCCThen, $pred))>;
1244}
1245
1246// vmlav aliases vmladav
1247foreach acc = ["", "a"] in {
1248  foreach suffix = ["s8", "s16", "s32", "u8", "u16", "u32"] in {
1249    def : MVEInstAlias<"vmlav"#acc#"${vp}."#suffix#"\t$RdaDest, $Qn, $Qm",
1250                       (!cast<Instruction>("MVE_VMLADAV"#acc#suffix)
1251                        tGPREven:$RdaDest, MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>;
1252  }
1253}
1254
1255// Base class for VMLALDAV and VMLSLDAV, VRMLALDAVH, VRMLSLDAVH
1256class MVE_VMLALDAVBase<string iname, string suffix, dag iops, string cstr,
1257                       bit sz, bit bit_28, bit A, bit X, bit bit_8, bit bit_0,
1258                       list<dag> pattern=[]>
1259  : MVE_rDest<(outs tGPREven:$RdaLoDest, tGPROdd:$RdaHiDest), iops, NoItinerary,
1260              iname, suffix, "$RdaLoDest, $RdaHiDest, $Qn, $Qm", cstr, pattern> {
1261  bits<4> RdaLoDest;
1262  bits<4> RdaHiDest;
1263  bits<3> Qm;
1264  bits<3> Qn;
1265
1266  let Inst{28} = bit_28;
1267  let Inst{22-20} = RdaHiDest{3-1};
1268  let Inst{19-17} = Qn{2-0};
1269  let Inst{16} = sz;
1270  let Inst{15-13} = RdaLoDest{3-1};
1271  let Inst{12} = X;
1272  let Inst{8} = bit_8;
1273  let Inst{7-6} = 0b00;
1274  let Inst{5} = A;
1275  let Inst{3-1} = Qm{2-0};
1276  let Inst{0} = bit_0;
1277  let horizontalReduction = 1;
1278  // Allow tail predication for non-exchanging versions. As this is also a
1279  // horizontalReduction, ARMLowOverheadLoops will also have to check that
1280  // the vector operands contain zeros in their false lanes for the instruction
1281  // to be properly valid.
1282  let validForTailPredication = !eq(X, 0);
1283
1284  let hasSideEffects = 0;
1285}
1286
1287multiclass MVE_VMLALDAVBase_A<string iname, string x, string suffix,
1288                               bit sz, bit bit_28, bit X, bit bit_8, bit bit_0,
1289                               list<dag> pattern=[]> {
1290  def ""#x#suffix : MVE_VMLALDAVBase<
1291     iname # x, suffix, (ins MQPR:$Qn, MQPR:$Qm), "",
1292     sz, bit_28, 0b0, X, bit_8, bit_0, pattern>;
1293  def "a"#x#suffix : MVE_VMLALDAVBase<
1294     iname # "a" # x, suffix,
1295     (ins tGPREven:$RdaLoSrc, tGPROdd:$RdaHiSrc, MQPR:$Qn, MQPR:$Qm),
1296     "$RdaLoDest = $RdaLoSrc,$RdaHiDest = $RdaHiSrc",
1297     sz, bit_28, 0b1, X, bit_8, bit_0, pattern>;
1298}
1299
1300
1301multiclass MVE_VMLALDAVBase_AX<string iname, string suffix, bit sz, bit bit_28,
1302                               bit bit_8, bit bit_0, list<dag> pattern=[]> {
1303  defm "" : MVE_VMLALDAVBase_A<iname, "", suffix, sz,
1304                               bit_28, 0b0, bit_8, bit_0, pattern>;
1305  defm "" : MVE_VMLALDAVBase_A<iname, "x", suffix, sz,
1306                               bit_28, 0b1, bit_8, bit_0, pattern>;
1307}
1308
1309multiclass MVE_VRMLALDAVH_multi<string suffix, list<dag> pattern=[]> {
1310  defm "" : MVE_VMLALDAVBase_AX<"vrmlaldavh", "s"#suffix,
1311                                0b0, 0b0, 0b1, 0b0, pattern>;
1312  defm "" : MVE_VMLALDAVBase_A<"vrmlaldavh", "", "u"#suffix,
1313                               0b0, 0b1, 0b0, 0b1, 0b0, pattern>;
1314}
1315
1316defm MVE_VRMLALDAVH : MVE_VRMLALDAVH_multi<"32">;
1317
1318// vrmlalvh aliases for vrmlaldavh
1319def : MVEInstAlias<"vrmlalvh${vp}.s32\t$RdaLo, $RdaHi, $Qn, $Qm",
1320                  (MVE_VRMLALDAVHs32
1321                   tGPREven:$RdaLo, tGPROdd:$RdaHi,
1322                   MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>;
1323def : MVEInstAlias<"vrmlalvha${vp}.s32\t$RdaLo, $RdaHi, $Qn, $Qm",
1324                  (MVE_VRMLALDAVHas32
1325                   tGPREven:$RdaLo, tGPROdd:$RdaHi,
1326                   MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>;
1327def : MVEInstAlias<"vrmlalvh${vp}.u32\t$RdaLo, $RdaHi, $Qn, $Qm",
1328                  (MVE_VRMLALDAVHu32
1329                   tGPREven:$RdaLo, tGPROdd:$RdaHi,
1330                   MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>;
1331def : MVEInstAlias<"vrmlalvha${vp}.u32\t$RdaLo, $RdaHi, $Qn, $Qm",
1332                  (MVE_VRMLALDAVHau32
1333                   tGPREven:$RdaLo, tGPROdd:$RdaHi,
1334                   MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>;
1335
1336multiclass MVE_VMLALDAV_multi<string suffix, bit sz, list<dag> pattern=[]> {
1337  defm "" : MVE_VMLALDAVBase_AX<"vmlaldav", "s"#suffix, sz, 0b0, 0b0, 0b0, pattern>;
1338  defm "" : MVE_VMLALDAVBase_A<"vmlaldav", "", "u"#suffix,
1339                               sz, 0b1, 0b0, 0b0, 0b0, pattern>;
1340}
1341
1342defm MVE_VMLALDAV : MVE_VMLALDAV_multi<"16", 0b0>;
1343defm MVE_VMLALDAV : MVE_VMLALDAV_multi<"32", 0b1>;
1344
1345let Predicates = [HasMVEInt] in {
1346  def : Pat<(ARMVMLALVs (v4i32 MQPR:$val1), (v4i32 MQPR:$val2)),
1347            (MVE_VMLALDAVs32 (v4i32 MQPR:$val1), (v4i32 MQPR:$val2))>;
1348  def : Pat<(ARMVMLALVu (v4i32 MQPR:$val1), (v4i32 MQPR:$val2)),
1349            (MVE_VMLALDAVu32 (v4i32 MQPR:$val1), (v4i32 MQPR:$val2))>;
1350  def : Pat<(ARMVMLALVs (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)),
1351            (MVE_VMLALDAVs16 (v8i16 MQPR:$val1), (v8i16 MQPR:$val2))>;
1352  def : Pat<(ARMVMLALVu (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)),
1353            (MVE_VMLALDAVu16 (v8i16 MQPR:$val1), (v8i16 MQPR:$val2))>;
1354
1355  def : Pat<(ARMVMLALVAs tGPREven:$Rda, tGPROdd:$Rdb, (v4i32 MQPR:$val1), (v4i32 MQPR:$val2)),
1356            (MVE_VMLALDAVas32 tGPREven:$Rda, tGPROdd:$Rdb, (v4i32 MQPR:$val1), (v4i32 MQPR:$val2))>;
1357  def : Pat<(ARMVMLALVAu tGPREven:$Rda, tGPROdd:$Rdb, (v4i32 MQPR:$val1), (v4i32 MQPR:$val2)),
1358            (MVE_VMLALDAVau32 tGPREven:$Rda, tGPROdd:$Rdb, (v4i32 MQPR:$val1), (v4i32 MQPR:$val2))>;
1359  def : Pat<(ARMVMLALVAs tGPREven:$Rda, tGPROdd:$Rdb, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)),
1360            (MVE_VMLALDAVas16 tGPREven:$Rda, tGPROdd:$Rdb, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2))>;
1361  def : Pat<(ARMVMLALVAu tGPREven:$Rda, tGPROdd:$Rdb, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2)),
1362            (MVE_VMLALDAVau16 tGPREven:$Rda, tGPROdd:$Rdb, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2))>;
1363
1364  // Predicated
1365  def : Pat<(ARMVMLALVps (v4i32 MQPR:$val1), (v4i32 MQPR:$val2), (v4i1 VCCR:$pred)),
1366            (MVE_VMLALDAVs32 (v4i32 MQPR:$val1), (v4i32 MQPR:$val2), ARMVCCThen, $pred)>;
1367  def : Pat<(ARMVMLALVpu (v4i32 MQPR:$val1), (v4i32 MQPR:$val2), (v4i1 VCCR:$pred)),
1368            (MVE_VMLALDAVu32 (v4i32 MQPR:$val1), (v4i32 MQPR:$val2), ARMVCCThen, $pred)>;
1369  def : Pat<(ARMVMLALVps (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), (v8i1 VCCR:$pred)),
1370            (MVE_VMLALDAVs16 (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), ARMVCCThen, $pred)>;
1371  def : Pat<(ARMVMLALVpu (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), (v8i1 VCCR:$pred)),
1372            (MVE_VMLALDAVu16 (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), ARMVCCThen, $pred)>;
1373
1374  def : Pat<(ARMVMLALVAps tGPREven:$Rda, tGPROdd:$Rdb, (v4i32 MQPR:$val1), (v4i32 MQPR:$val2), (v4i1 VCCR:$pred)),
1375            (MVE_VMLALDAVas32 tGPREven:$Rda, tGPROdd:$Rdb, (v4i32 MQPR:$val1), (v4i32 MQPR:$val2), ARMVCCThen, $pred)>;
1376  def : Pat<(ARMVMLALVApu tGPREven:$Rda, tGPROdd:$Rdb, (v4i32 MQPR:$val1), (v4i32 MQPR:$val2), (v4i1 VCCR:$pred)),
1377            (MVE_VMLALDAVau32 tGPREven:$Rda, tGPROdd:$Rdb, (v4i32 MQPR:$val1), (v4i32 MQPR:$val2), ARMVCCThen, $pred)>;
1378  def : Pat<(ARMVMLALVAps tGPREven:$Rda, tGPROdd:$Rdb, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), (v8i1 VCCR:$pred)),
1379            (MVE_VMLALDAVas16 tGPREven:$Rda, tGPROdd:$Rdb, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), ARMVCCThen, $pred)>;
1380  def : Pat<(ARMVMLALVApu tGPREven:$Rda, tGPROdd:$Rdb, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), (v8i1 VCCR:$pred)),
1381            (MVE_VMLALDAVau16 tGPREven:$Rda, tGPROdd:$Rdb, (v8i16 MQPR:$val1), (v8i16 MQPR:$val2), ARMVCCThen, $pred)>;
1382}
1383
1384// vmlalv aliases vmlaldav
1385foreach acc = ["", "a"] in {
1386  foreach suffix = ["s16", "s32", "u16", "u32"] in {
1387    def : MVEInstAlias<"vmlalv" # acc # "${vp}." # suffix #
1388                          "\t$RdaLoDest, $RdaHiDest, $Qn, $Qm",
1389                       (!cast<Instruction>("MVE_VMLALDAV"#acc#suffix)
1390                       tGPREven:$RdaLoDest, tGPROdd:$RdaHiDest,
1391                       MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>;
1392  }
1393}
1394
1395multiclass MVE_VMLSLDAV_multi<string iname, string suffix, bit sz,
1396                              bit bit_28, list<dag> pattern=[]> {
1397  defm "" : MVE_VMLALDAVBase_AX<iname, suffix, sz, bit_28, 0b0, 0b1, pattern>;
1398}
1399
1400defm MVE_VMLSLDAV   : MVE_VMLSLDAV_multi<"vmlsldav", "s16", 0b0, 0b0>;
1401defm MVE_VMLSLDAV   : MVE_VMLSLDAV_multi<"vmlsldav", "s32", 0b1, 0b0>;
1402defm MVE_VRMLSLDAVH : MVE_VMLSLDAV_multi<"vrmlsldavh", "s32", 0b0, 0b1>;
1403
1404// end of mve_rDest instructions
1405
1406// start of mve_comp instructions
1407
1408class MVE_comp<InstrItinClass itin, string iname, string suffix,
1409               string cstr, list<dag> pattern=[]>
1410  : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qn, MQPR:$Qm), itin, iname, suffix,
1411           "$Qd, $Qn, $Qm", vpred_r, cstr, pattern> {
1412  bits<4> Qd;
1413  bits<4> Qn;
1414  bits<4> Qm;
1415
1416  let Inst{22} = Qd{3};
1417  let Inst{19-17} = Qn{2-0};
1418  let Inst{16} = 0b0;
1419  let Inst{15-13} = Qd{2-0};
1420  let Inst{12} = 0b0;
1421  let Inst{10-9} = 0b11;
1422  let Inst{7} = Qn{3};
1423  let Inst{5} = Qm{3};
1424  let Inst{3-1} = Qm{2-0};
1425  let Inst{0} = 0b0;
1426}
1427
1428class MVE_VMINMAXNM<string iname, string suffix, bit sz, bit bit_21,
1429                    list<dag> pattern=[]>
1430  : MVE_comp<NoItinerary, iname, suffix, "", pattern> {
1431
1432  let Inst{28} = 0b1;
1433  let Inst{25-24} = 0b11;
1434  let Inst{23} = 0b0;
1435  let Inst{21} = bit_21;
1436  let Inst{20} = sz;
1437  let Inst{11} = 0b1;
1438  let Inst{8} = 0b1;
1439  let Inst{6} = 0b1;
1440  let Inst{4} = 0b1;
1441
1442  let Predicates = [HasMVEFloat];
1443}
1444
1445multiclass MVE_VMINMAXNM_m<string iname, bit bit_4, MVEVectorVTInfo VTI, SDNode Op, Intrinsic PredInt> {
1446  def "" : MVE_VMINMAXNM<iname, VTI.Suffix, VTI.Size{0}, bit_4>;
1447
1448  let Predicates = [HasMVEFloat] in {
1449    defm : MVE_TwoOpPattern<VTI, Op, PredInt, (? (i32 0)), !cast<Instruction>(NAME)>;
1450  }
1451}
1452
1453defm MVE_VMAXNMf32 : MVE_VMINMAXNM_m<"vmaxnm", 0b0, MVE_v4f32, fmaxnum, int_arm_mve_max_predicated>;
1454defm MVE_VMAXNMf16 : MVE_VMINMAXNM_m<"vmaxnm", 0b0, MVE_v8f16, fmaxnum, int_arm_mve_max_predicated>;
1455defm MVE_VMINNMf32 : MVE_VMINMAXNM_m<"vminnm", 0b1, MVE_v4f32, fminnum, int_arm_mve_min_predicated>;
1456defm MVE_VMINNMf16 : MVE_VMINMAXNM_m<"vminnm", 0b1, MVE_v8f16, fminnum, int_arm_mve_min_predicated>;
1457
1458
1459class MVE_VMINMAX<string iname, string suffix, bit U, bits<2> size,
1460              bit bit_4, list<dag> pattern=[]>
1461  : MVE_comp<NoItinerary, iname, suffix, "", pattern> {
1462
1463  let Inst{28} = U;
1464  let Inst{25-24} = 0b11;
1465  let Inst{23} = 0b0;
1466  let Inst{21-20} = size{1-0};
1467  let Inst{11} = 0b0;
1468  let Inst{8} = 0b0;
1469  let Inst{6} = 0b1;
1470  let Inst{4} = bit_4;
1471  let validForTailPredication = 1;
1472}
1473
1474multiclass MVE_VMINMAX_m<string iname, bit bit_4, MVEVectorVTInfo VTI,
1475                      SDNode Op, Intrinsic PredInt> {
1476  def "" : MVE_VMINMAX<iname, VTI.Suffix, VTI.Unsigned, VTI.Size, bit_4>;
1477
1478  let Predicates = [HasMVEInt] in {
1479    defm : MVE_TwoOpPattern<VTI, Op, PredInt, (? (i32 VTI.Unsigned)), !cast<Instruction>(NAME)>;
1480  }
1481}
1482
1483multiclass MVE_VMAX<MVEVectorVTInfo VTI>
1484  : MVE_VMINMAX_m<"vmax", 0b0, VTI, !if(VTI.Unsigned, umax, smax), int_arm_mve_max_predicated>;
1485multiclass MVE_VMIN<MVEVectorVTInfo VTI>
1486  : MVE_VMINMAX_m<"vmin", 0b1, VTI, !if(VTI.Unsigned, umin, smin), int_arm_mve_min_predicated>;
1487
1488defm MVE_VMINs8   : MVE_VMIN<MVE_v16s8>;
1489defm MVE_VMINs16  : MVE_VMIN<MVE_v8s16>;
1490defm MVE_VMINs32  : MVE_VMIN<MVE_v4s32>;
1491defm MVE_VMINu8   : MVE_VMIN<MVE_v16u8>;
1492defm MVE_VMINu16  : MVE_VMIN<MVE_v8u16>;
1493defm MVE_VMINu32  : MVE_VMIN<MVE_v4u32>;
1494
1495defm MVE_VMAXs8   : MVE_VMAX<MVE_v16s8>;
1496defm MVE_VMAXs16  : MVE_VMAX<MVE_v8s16>;
1497defm MVE_VMAXs32  : MVE_VMAX<MVE_v4s32>;
1498defm MVE_VMAXu8   : MVE_VMAX<MVE_v16u8>;
1499defm MVE_VMAXu16  : MVE_VMAX<MVE_v8u16>;
1500defm MVE_VMAXu32  : MVE_VMAX<MVE_v4u32>;
1501
1502// end of mve_comp instructions
1503
1504// start of mve_bit instructions
1505
1506class MVE_bit_arith<dag oops, dag iops, string iname, string suffix,
1507                    string ops, string cstr, list<dag> pattern=[]>
1508  : MVE_p<oops, iops, NoItinerary, iname, suffix, ops, vpred_r, cstr, pattern> {
1509  bits<4> Qd;
1510  bits<4> Qm;
1511
1512  let Inst{22} = Qd{3};
1513  let Inst{15-13} = Qd{2-0};
1514  let Inst{5} = Qm{3};
1515  let Inst{3-1} = Qm{2-0};
1516}
1517
1518def MVE_VBIC : MVE_bit_arith<(outs MQPR:$Qd), (ins MQPR:$Qn, MQPR:$Qm),
1519                             "vbic", "", "$Qd, $Qn, $Qm", ""> {
1520  bits<4> Qn;
1521
1522  let Inst{28} = 0b0;
1523  let Inst{25-23} = 0b110;
1524  let Inst{21-20} = 0b01;
1525  let Inst{19-17} = Qn{2-0};
1526  let Inst{16} = 0b0;
1527  let Inst{12-8} = 0b00001;
1528  let Inst{7} = Qn{3};
1529  let Inst{6} = 0b1;
1530  let Inst{4} = 0b1;
1531  let Inst{0} = 0b0;
1532  let validForTailPredication = 1;
1533}
1534
1535class MVE_VREV<string iname, string suffix, bits<2> size, bits<2> bit_8_7, string cstr="">
1536  : MVE_bit_arith<(outs MQPR:$Qd), (ins MQPR:$Qm), iname,
1537                  suffix, "$Qd, $Qm", cstr> {
1538
1539  let Inst{28} = 0b1;
1540  let Inst{25-23} = 0b111;
1541  let Inst{21-20} = 0b11;
1542  let Inst{19-18} = size;
1543  let Inst{17-16} = 0b00;
1544  let Inst{12-9} = 0b0000;
1545  let Inst{8-7} = bit_8_7;
1546  let Inst{6} = 0b1;
1547  let Inst{4} = 0b0;
1548  let Inst{0} = 0b0;
1549}
1550
1551def MVE_VREV64_8  : MVE_VREV<"vrev64", "8", 0b00, 0b00, "@earlyclobber $Qd">;
1552def MVE_VREV64_16 : MVE_VREV<"vrev64", "16", 0b01, 0b00, "@earlyclobber $Qd">;
1553def MVE_VREV64_32 : MVE_VREV<"vrev64", "32", 0b10, 0b00, "@earlyclobber $Qd">;
1554
1555def MVE_VREV32_8  : MVE_VREV<"vrev32", "8", 0b00, 0b01>;
1556def MVE_VREV32_16 : MVE_VREV<"vrev32", "16", 0b01, 0b01>;
1557
1558def MVE_VREV16_8  : MVE_VREV<"vrev16", "8", 0b00, 0b10>;
1559
1560let Predicates = [HasMVEInt] in {
1561  def : Pat<(v8i16 (bswap (v8i16 MQPR:$src))),
1562            (v8i16 (MVE_VREV16_8 (v8i16 MQPR:$src)))>;
1563  def : Pat<(v4i32 (bswap (v4i32 MQPR:$src))),
1564            (v4i32 (MVE_VREV32_8 (v4i32 MQPR:$src)))>;
1565}
1566
1567multiclass MVE_VREV_basic_patterns<int revbits, list<MVEVectorVTInfo> VTIs,
1568                                   Instruction Inst> {
1569  defvar unpred_op = !cast<SDNode>("ARMvrev" # revbits);
1570
1571  foreach VTI = VTIs in {
1572    def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$src))),
1573              (VTI.Vec (Inst (VTI.Vec MQPR:$src)))>;
1574    def : Pat<(VTI.Vec (int_arm_mve_vrev_predicated (VTI.Vec MQPR:$src),
1575                  revbits, (VTI.Pred VCCR:$pred), (VTI.Vec MQPR:$inactive))),
1576              (VTI.Vec (Inst (VTI.Vec MQPR:$src), ARMVCCThen,
1577                  (VTI.Pred VCCR:$pred), (VTI.Vec MQPR:$inactive)))>;
1578  }
1579}
1580
1581let Predicates = [HasMVEInt] in {
1582  defm: MVE_VREV_basic_patterns<64, [MVE_v4i32, MVE_v4f32], MVE_VREV64_32>;
1583  defm: MVE_VREV_basic_patterns<64, [MVE_v8i16, MVE_v8f16], MVE_VREV64_16>;
1584  defm: MVE_VREV_basic_patterns<64, [MVE_v16i8           ], MVE_VREV64_8>;
1585
1586  defm: MVE_VREV_basic_patterns<32, [MVE_v8i16, MVE_v8f16], MVE_VREV32_16>;
1587  defm: MVE_VREV_basic_patterns<32, [MVE_v16i8           ], MVE_VREV32_8>;
1588
1589  defm: MVE_VREV_basic_patterns<16, [MVE_v16i8           ], MVE_VREV16_8>;
1590}
1591
1592def MVE_VMVN : MVE_bit_arith<(outs MQPR:$Qd), (ins MQPR:$Qm),
1593                             "vmvn", "", "$Qd, $Qm", ""> {
1594  let Inst{28} = 0b1;
1595  let Inst{25-23} = 0b111;
1596  let Inst{21-16} = 0b110000;
1597  let Inst{12-6} = 0b0010111;
1598  let Inst{4} = 0b0;
1599  let Inst{0} = 0b0;
1600  let validForTailPredication = 1;
1601}
1602
1603let Predicates = [HasMVEInt] in {
1604  foreach VTI = [ MVE_v16i8, MVE_v8i16, MVE_v4i32, MVE_v2i64 ] in {
1605    def : Pat<(VTI.Vec (vnotq    (VTI.Vec MQPR:$val1))),
1606              (VTI.Vec (MVE_VMVN (VTI.Vec MQPR:$val1)))>;
1607    def : Pat<(VTI.Vec (int_arm_mve_mvn_predicated (VTI.Vec MQPR:$val1),
1608                       (VTI.Pred VCCR:$pred), (VTI.Vec MQPR:$inactive))),
1609              (VTI.Vec (MVE_VMVN (VTI.Vec MQPR:$val1), ARMVCCThen,
1610                       (VTI.Pred VCCR:$pred), (VTI.Vec MQPR:$inactive)))>;
1611  }
1612}
1613
1614class MVE_bit_ops<string iname, bits<2> bit_21_20, bit bit_28>
1615  : MVE_bit_arith<(outs MQPR:$Qd), (ins MQPR:$Qn, MQPR:$Qm),
1616                  iname, "", "$Qd, $Qn, $Qm", ""> {
1617  bits<4> Qn;
1618
1619  let Inst{28} = bit_28;
1620  let Inst{25-23} = 0b110;
1621  let Inst{21-20} = bit_21_20;
1622  let Inst{19-17} = Qn{2-0};
1623  let Inst{16} = 0b0;
1624  let Inst{12-8} = 0b00001;
1625  let Inst{7} = Qn{3};
1626  let Inst{6} = 0b1;
1627  let Inst{4} = 0b1;
1628  let Inst{0} = 0b0;
1629  let validForTailPredication = 1;
1630}
1631
1632def MVE_VEOR : MVE_bit_ops<"veor", 0b00, 0b1>;
1633def MVE_VORN : MVE_bit_ops<"vorn", 0b11, 0b0>;
1634def MVE_VORR : MVE_bit_ops<"vorr", 0b10, 0b0>;
1635def MVE_VAND : MVE_bit_ops<"vand", 0b00, 0b0>;
1636
1637// add ignored suffixes as aliases
1638
1639foreach s=["s8", "s16", "s32", "u8", "u16", "u32", "i8", "i16", "i32", "f16", "f32"] in {
1640  def : MVEInstAlias<"vbic${vp}." # s # "\t$QdSrc, $QnSrc, $QmSrc",
1641        (MVE_VBIC MQPR:$QdSrc, MQPR:$QnSrc, MQPR:$QmSrc, vpred_r:$vp)>;
1642  def : MVEInstAlias<"veor${vp}." # s # "\t$QdSrc, $QnSrc, $QmSrc",
1643        (MVE_VEOR MQPR:$QdSrc, MQPR:$QnSrc, MQPR:$QmSrc, vpred_r:$vp)>;
1644  def : MVEInstAlias<"vorn${vp}." # s # "\t$QdSrc, $QnSrc, $QmSrc",
1645        (MVE_VORN MQPR:$QdSrc, MQPR:$QnSrc, MQPR:$QmSrc, vpred_r:$vp)>;
1646  def : MVEInstAlias<"vorr${vp}." # s # "\t$QdSrc, $QnSrc, $QmSrc",
1647        (MVE_VORR MQPR:$QdSrc, MQPR:$QnSrc, MQPR:$QmSrc, vpred_r:$vp)>;
1648  def : MVEInstAlias<"vand${vp}." # s # "\t$QdSrc, $QnSrc, $QmSrc",
1649        (MVE_VAND MQPR:$QdSrc, MQPR:$QnSrc, MQPR:$QmSrc, vpred_r:$vp)>;
1650}
1651
1652let Predicates = [HasMVEInt] in {
1653  defm : MVE_TwoOpPattern<MVE_v16i8, and, int_arm_mve_and_predicated, (? ), MVE_VAND, ARMimmAllOnesV>;
1654  defm : MVE_TwoOpPattern<MVE_v8i16, and, int_arm_mve_and_predicated, (? ), MVE_VAND, ARMimmAllOnesV>;
1655  defm : MVE_TwoOpPattern<MVE_v4i32, and, int_arm_mve_and_predicated, (? ), MVE_VAND, ARMimmAllOnesV>;
1656  defm : MVE_TwoOpPattern<MVE_v2i64, and, int_arm_mve_and_predicated, (? ), MVE_VAND, ARMimmAllOnesV>;
1657
1658  defm : MVE_TwoOpPattern<MVE_v16i8, or, int_arm_mve_orr_predicated, (? ), MVE_VORR, ARMimmAllZerosV>;
1659  defm : MVE_TwoOpPattern<MVE_v8i16, or, int_arm_mve_orr_predicated, (? ), MVE_VORR, ARMimmAllZerosV>;
1660  defm : MVE_TwoOpPattern<MVE_v4i32, or, int_arm_mve_orr_predicated, (? ), MVE_VORR, ARMimmAllZerosV>;
1661  defm : MVE_TwoOpPattern<MVE_v2i64, or, int_arm_mve_orr_predicated, (? ), MVE_VORR, ARMimmAllZerosV>;
1662
1663  defm : MVE_TwoOpPattern<MVE_v16i8, xor, int_arm_mve_eor_predicated, (? ), MVE_VEOR, ARMimmAllZerosV>;
1664  defm : MVE_TwoOpPattern<MVE_v8i16, xor, int_arm_mve_eor_predicated, (? ), MVE_VEOR, ARMimmAllZerosV>;
1665  defm : MVE_TwoOpPattern<MVE_v4i32, xor, int_arm_mve_eor_predicated, (? ), MVE_VEOR, ARMimmAllZerosV>;
1666  defm : MVE_TwoOpPattern<MVE_v2i64, xor, int_arm_mve_eor_predicated, (? ), MVE_VEOR, ARMimmAllZerosV>;
1667
1668  defm : MVE_TwoOpPattern<MVE_v16i8, BinOpFrag<(and node:$LHS, (vnotq node:$RHS))>,
1669                          int_arm_mve_bic_predicated, (? ), MVE_VBIC>;
1670  defm : MVE_TwoOpPattern<MVE_v8i16, BinOpFrag<(and node:$LHS, (vnotq node:$RHS))>,
1671                          int_arm_mve_bic_predicated, (? ), MVE_VBIC>;
1672  defm : MVE_TwoOpPattern<MVE_v4i32, BinOpFrag<(and node:$LHS, (vnotq node:$RHS))>,
1673                          int_arm_mve_bic_predicated, (? ), MVE_VBIC>;
1674  defm : MVE_TwoOpPattern<MVE_v2i64, BinOpFrag<(and node:$LHS, (vnotq node:$RHS))>,
1675                          int_arm_mve_bic_predicated, (? ), MVE_VBIC>;
1676
1677  defm : MVE_TwoOpPattern<MVE_v16i8, BinOpFrag<(or node:$LHS, (vnotq node:$RHS))>,
1678                          int_arm_mve_orn_predicated, (? ), MVE_VORN>;
1679  defm : MVE_TwoOpPattern<MVE_v8i16, BinOpFrag<(or node:$LHS, (vnotq node:$RHS))>,
1680                          int_arm_mve_orn_predicated, (? ), MVE_VORN>;
1681  defm : MVE_TwoOpPattern<MVE_v4i32, BinOpFrag<(or node:$LHS, (vnotq node:$RHS))>,
1682                          int_arm_mve_orn_predicated, (? ), MVE_VORN>;
1683  defm : MVE_TwoOpPattern<MVE_v2i64, BinOpFrag<(or node:$LHS, (vnotq node:$RHS))>,
1684                          int_arm_mve_orn_predicated, (? ), MVE_VORN>;
1685}
1686
1687class MVE_bit_cmode<string iname, string suffix, bit halfword, dag inOps>
1688  : MVE_p<(outs MQPR:$Qd), inOps, NoItinerary,
1689          iname, suffix, "$Qd, $imm", vpred_n, "$Qd = $Qd_src"> {
1690  bits<12> imm;
1691  bits<4> Qd;
1692
1693  let Inst{28} = imm{7};
1694  let Inst{27-23} = 0b11111;
1695  let Inst{22} = Qd{3};
1696  let Inst{21-19} = 0b000;
1697  let Inst{18-16} = imm{6-4};
1698  let Inst{15-13} = Qd{2-0};
1699  let Inst{12} = 0b0;
1700  let Inst{11} = halfword;
1701  let Inst{10} = !if(halfword, 0, imm{10});
1702  let Inst{9} = imm{9};
1703  let Inst{8} = 0b1;
1704  let Inst{7-6} = 0b01;
1705  let Inst{4} = 0b1;
1706  let Inst{3-0} = imm{3-0};
1707}
1708
1709multiclass MVE_bit_cmode_p<string iname, bit opcode,
1710                           MVEVectorVTInfo VTI, Operand imm_type, SDNode op> {
1711  def "" : MVE_bit_cmode<iname, VTI.Suffix, VTI.Size{0},
1712                         (ins MQPR:$Qd_src, imm_type:$imm)> {
1713    let Inst{5} = opcode;
1714    let validForTailPredication = 1;
1715  }
1716
1717  defvar Inst = !cast<Instruction>(NAME);
1718  defvar UnpredPat = (VTI.Vec (op (VTI.Vec MQPR:$src), timm:$simm));
1719
1720  let Predicates = [HasMVEInt] in {
1721    def : Pat<UnpredPat,
1722              (VTI.Vec (Inst (VTI.Vec MQPR:$src), imm_type:$simm))>;
1723    def : Pat<(VTI.Vec (vselect (VTI.Pred VCCR:$pred),
1724                          UnpredPat, (VTI.Vec MQPR:$src))),
1725              (VTI.Vec (Inst (VTI.Vec MQPR:$src), imm_type:$simm,
1726                             ARMVCCThen, (VTI.Pred VCCR:$pred)))>;
1727  }
1728}
1729
1730multiclass MVE_VORRimm<MVEVectorVTInfo VTI, Operand imm_type> {
1731  defm "": MVE_bit_cmode_p<"vorr", 0, VTI, imm_type, ARMvorrImm>;
1732}
1733multiclass MVE_VBICimm<MVEVectorVTInfo VTI, Operand imm_type> {
1734  defm "": MVE_bit_cmode_p<"vbic", 1, VTI, imm_type, ARMvbicImm>;
1735}
1736
1737defm MVE_VORRimmi16 : MVE_VORRimm<MVE_v8i16, nImmSplatI16>;
1738defm MVE_VORRimmi32 : MVE_VORRimm<MVE_v4i32, nImmSplatI32>;
1739defm MVE_VBICimmi16 : MVE_VBICimm<MVE_v8i16, nImmSplatI16>;
1740defm MVE_VBICimmi32 : MVE_VBICimm<MVE_v4i32, nImmSplatI32>;
1741
1742def MVE_VORNimmi16 : MVEInstAlias<"vorn${vp}.i16\t$Qd, $imm",
1743    (MVE_VORRimmi16 MQPR:$Qd, nImmSplatNotI16:$imm, vpred_n:$vp), 0>;
1744def MVE_VORNimmi32 : MVEInstAlias<"vorn${vp}.i32\t$Qd, $imm",
1745    (MVE_VORRimmi32 MQPR:$Qd, nImmSplatNotI32:$imm, vpred_n:$vp), 0>;
1746
1747def MVE_VANDimmi16 : MVEInstAlias<"vand${vp}.i16\t$Qd, $imm",
1748    (MVE_VBICimmi16 MQPR:$Qd, nImmSplatNotI16:$imm, vpred_n:$vp), 0>;
1749def MVE_VANDimmi32 : MVEInstAlias<"vand${vp}.i32\t$Qd, $imm",
1750    (MVE_VBICimmi32 MQPR:$Qd, nImmSplatNotI32:$imm, vpred_n:$vp), 0>;
1751
1752def MVE_VMOV : MVEInstAlias<"vmov${vp}\t$Qd, $Qm",
1753    (MVE_VORR MQPR:$Qd, MQPR:$Qm, MQPR:$Qm, vpred_r:$vp)>;
1754
1755class MVE_VMOV_lane_direction {
1756  bit bit_20;
1757  dag oops;
1758  dag iops;
1759  string ops;
1760  string cstr;
1761}
1762def MVE_VMOV_from_lane : MVE_VMOV_lane_direction {
1763  let bit_20 = 0b1;
1764  let oops = (outs rGPR:$Rt);
1765  let iops = (ins MQPR:$Qd);
1766  let ops = "$Rt, $Qd$Idx";
1767  let cstr = "";
1768}
1769def MVE_VMOV_to_lane : MVE_VMOV_lane_direction {
1770  let bit_20 = 0b0;
1771  let oops = (outs MQPR:$Qd);
1772  let iops = (ins MQPR:$Qd_src, rGPR:$Rt);
1773  let ops = "$Qd$Idx, $Rt";
1774  let cstr = "$Qd = $Qd_src";
1775}
1776
1777class MVE_VMOV_lane<string suffix, bit U, dag indexop,
1778                    MVE_VMOV_lane_direction dir>
1779  : MVE_VMOV_lane_base<dir.oops, !con(dir.iops, indexop), NoItinerary,
1780                       "vmov", suffix, dir.ops, dir.cstr, []> {
1781  bits<4> Qd;
1782  bits<4> Rt;
1783
1784  let Inst{31-24} = 0b11101110;
1785  let Inst{23} = U;
1786  let Inst{20} = dir.bit_20;
1787  let Inst{19-17} = Qd{2-0};
1788  let Inst{15-12} = Rt{3-0};
1789  let Inst{11-8} = 0b1011;
1790  let Inst{7} = Qd{3};
1791  let Inst{4-0} = 0b10000;
1792
1793  let hasSideEffects = 0;
1794}
1795
1796class MVE_VMOV_lane_32<MVE_VMOV_lane_direction dir>
1797    : MVE_VMOV_lane<"32", 0b0, (ins MVEVectorIndex<4>:$Idx), dir> {
1798  bits<2> Idx;
1799  let Inst{22} = 0b0;
1800  let Inst{6-5} = 0b00;
1801  let Inst{16} = Idx{1};
1802  let Inst{21} = Idx{0};
1803
1804  let Predicates = [HasFPRegsV8_1M];
1805}
1806
1807class MVE_VMOV_lane_16<string suffix, bit U, MVE_VMOV_lane_direction dir>
1808  : MVE_VMOV_lane<suffix, U, (ins MVEVectorIndex<8>:$Idx), dir> {
1809  bits<3> Idx;
1810  let Inst{22} = 0b0;
1811  let Inst{5} = 0b1;
1812  let Inst{16} = Idx{2};
1813  let Inst{21} = Idx{1};
1814  let Inst{6} = Idx{0};
1815}
1816
1817class MVE_VMOV_lane_8<string suffix, bit U, MVE_VMOV_lane_direction dir>
1818  : MVE_VMOV_lane<suffix, U, (ins MVEVectorIndex<16>:$Idx), dir> {
1819  bits<4> Idx;
1820  let Inst{22} = 0b1;
1821  let Inst{16} = Idx{3};
1822  let Inst{21} = Idx{2};
1823  let Inst{6} = Idx{1};
1824  let Inst{5} = Idx{0};
1825}
1826
1827def MVE_VMOV_from_lane_32  : MVE_VMOV_lane_32<            MVE_VMOV_from_lane>;
1828def MVE_VMOV_from_lane_s16 : MVE_VMOV_lane_16<"s16", 0b0, MVE_VMOV_from_lane>;
1829def MVE_VMOV_from_lane_u16 : MVE_VMOV_lane_16<"u16", 0b1, MVE_VMOV_from_lane>;
1830def MVE_VMOV_from_lane_s8  : MVE_VMOV_lane_8 < "s8", 0b0, MVE_VMOV_from_lane>;
1831def MVE_VMOV_from_lane_u8  : MVE_VMOV_lane_8 < "u8", 0b1, MVE_VMOV_from_lane>;
1832let isInsertSubreg = 1 in
1833def MVE_VMOV_to_lane_32    : MVE_VMOV_lane_32<            MVE_VMOV_to_lane>;
1834def MVE_VMOV_to_lane_16    : MVE_VMOV_lane_16< "16", 0b0, MVE_VMOV_to_lane>;
1835def MVE_VMOV_to_lane_8     : MVE_VMOV_lane_8 <  "8", 0b0, MVE_VMOV_to_lane>;
1836
1837// This is the same as insertelt but allows the inserted value to be an i32 as
1838// will be used when it is the only legal type.
1839def ARMVecInsert : SDTypeProfile<1, 3, [
1840  SDTCisVT<2, i32>, SDTCisSameAs<0, 1>, SDTCisPtrTy<3>
1841]>;
1842def ARMinsertelt  : SDNode<"ISD::INSERT_VECTOR_ELT", ARMVecInsert>;
1843
1844let Predicates = [HasMVEInt] in {
1845  def : Pat<(extractelt (v2f64 MQPR:$src), imm:$lane),
1846            (f64 (EXTRACT_SUBREG MQPR:$src, (DSubReg_f64_reg imm:$lane)))>;
1847  def : Pat<(insertelt (v2f64 MQPR:$src1), DPR:$src2, imm:$lane),
1848            (INSERT_SUBREG (v2f64 (COPY_TO_REGCLASS MQPR:$src1, MQPR)), DPR:$src2, (DSubReg_f64_reg imm:$lane))>;
1849
1850  def : Pat<(extractelt (v4i32 MQPR:$src), imm:$lane),
1851            (COPY_TO_REGCLASS
1852              (i32 (EXTRACT_SUBREG MQPR:$src, (SSubReg_f32_reg imm:$lane))), rGPR)>;
1853  def : Pat<(insertelt (v4i32 MQPR:$src1), rGPR:$src2, imm:$lane),
1854            (MVE_VMOV_to_lane_32 MQPR:$src1, rGPR:$src2, imm:$lane)>;
1855  // This tries to copy from one lane to another, without going via GPR regs
1856  def : Pat<(insertelt (v4i32 MQPR:$src1), (extractelt (v4i32 MQPR:$src2), imm:$extlane), imm:$inslane),
1857            (v4i32 (COPY_TO_REGCLASS
1858                     (INSERT_SUBREG (v4f32 (COPY_TO_REGCLASS (v4i32 MQPR:$src1), MQPR)),
1859                                    (f32 (EXTRACT_SUBREG (v4f32 (COPY_TO_REGCLASS (v4i32 MQPR:$src2), MQPR)),
1860                                                         (SSubReg_f32_reg imm:$extlane))),
1861                                    (SSubReg_f32_reg imm:$inslane)),
1862                      MQPR))>;
1863
1864  def : Pat<(vector_insert (v16i8 MQPR:$src1), rGPR:$src2, imm:$lane),
1865            (MVE_VMOV_to_lane_8  MQPR:$src1, rGPR:$src2, imm:$lane)>;
1866  def : Pat<(vector_insert (v8i16 MQPR:$src1), rGPR:$src2, imm:$lane),
1867            (MVE_VMOV_to_lane_16 MQPR:$src1, rGPR:$src2, imm:$lane)>;
1868
1869  def : Pat<(ARMvgetlanes (v16i8 MQPR:$src), imm:$lane),
1870            (MVE_VMOV_from_lane_s8 MQPR:$src, imm:$lane)>;
1871  def : Pat<(ARMvgetlanes (v8i16 MQPR:$src), imm:$lane),
1872            (MVE_VMOV_from_lane_s16 MQPR:$src, imm:$lane)>;
1873  def : Pat<(ARMvgetlanes (v8f16 MQPR:$src), imm:$lane),
1874            (MVE_VMOV_from_lane_s16 MQPR:$src, imm:$lane)>;
1875  def : Pat<(ARMvgetlaneu (v16i8 MQPR:$src), imm:$lane),
1876            (MVE_VMOV_from_lane_u8 MQPR:$src, imm:$lane)>;
1877  def : Pat<(ARMvgetlaneu (v8i16 MQPR:$src), imm:$lane),
1878            (MVE_VMOV_from_lane_u16 MQPR:$src, imm:$lane)>;
1879  def : Pat<(ARMvgetlaneu (v8f16 MQPR:$src), imm:$lane),
1880            (MVE_VMOV_from_lane_u16 MQPR:$src, imm:$lane)>;
1881  // For i16's inserts being extracted from low lanes, then may use VINS.
1882  def : Pat<(ARMinsertelt (v8i16 MQPR:$src1),
1883                          (ARMvgetlaneu (v8i16 MQPR:$src2), imm_even:$extlane),
1884                          imm_odd:$inslane),
1885            (COPY_TO_REGCLASS (INSERT_SUBREG (v4f32 (COPY_TO_REGCLASS MQPR:$src1, MQPR)),
1886                                (VINSH (EXTRACT_SUBREG MQPR:$src1, (SSubReg_f16_reg imm_odd:$inslane)),
1887                                       (EXTRACT_SUBREG MQPR:$src2, (SSubReg_f16_reg imm_even:$extlane))),
1888                                (SSubReg_f16_reg imm_odd:$inslane)), MQPR)>;
1889
1890  def : Pat<(v16i8 (scalar_to_vector GPR:$src)),
1891            (MVE_VMOV_to_lane_8  (v16i8 (IMPLICIT_DEF)), rGPR:$src, (i32 0))>;
1892  def : Pat<(v8i16 (scalar_to_vector GPR:$src)),
1893            (MVE_VMOV_to_lane_16 (v8i16 (IMPLICIT_DEF)), rGPR:$src, (i32 0))>;
1894  def : Pat<(v4i32 (scalar_to_vector GPR:$src)),
1895            (MVE_VMOV_to_lane_32 (v4i32 (IMPLICIT_DEF)), rGPR:$src, (i32 0))>;
1896
1897  // Floating point patterns, still enabled under HasMVEInt
1898  def : Pat<(extractelt (v4f32 MQPR:$src), imm:$lane),
1899            (COPY_TO_REGCLASS (f32 (EXTRACT_SUBREG MQPR:$src, (SSubReg_f32_reg imm:$lane))), SPR)>;
1900  def : Pat<(insertelt (v4f32 MQPR:$src1), (f32 SPR:$src2), imm:$lane),
1901            (INSERT_SUBREG (v4f32 (COPY_TO_REGCLASS MQPR:$src1, MQPR)), SPR:$src2, (SSubReg_f32_reg imm:$lane))>;
1902
1903  def : Pat<(insertelt (v8f16 MQPR:$src1), (f16 HPR:$src2), imm:$lane),
1904            (MVE_VMOV_to_lane_16 MQPR:$src1, (COPY_TO_REGCLASS (f16 HPR:$src2), rGPR), imm:$lane)>;
1905  def : Pat<(extractelt (v8f16 MQPR:$src), imm_even:$lane),
1906            (EXTRACT_SUBREG MQPR:$src, (SSubReg_f16_reg imm_even:$lane))>;
1907  def : Pat<(extractelt (v8f16 MQPR:$src), imm_odd:$lane),
1908            (COPY_TO_REGCLASS
1909              (VMOVH (EXTRACT_SUBREG MQPR:$src, (SSubReg_f16_reg imm_odd:$lane))),
1910              HPR)>;
1911
1912  def : Pat<(v2f64 (scalar_to_vector (f64 DPR:$src))),
1913            (INSERT_SUBREG (v2f64 (IMPLICIT_DEF)), DPR:$src, dsub_0)>;
1914  def : Pat<(v4f32 (scalar_to_vector SPR:$src)),
1915            (INSERT_SUBREG (v4f32 (IMPLICIT_DEF)), SPR:$src, ssub_0)>;
1916  def : Pat<(v4f32 (scalar_to_vector GPR:$src)),
1917            (MVE_VMOV_to_lane_32 (v4f32 (IMPLICIT_DEF)), rGPR:$src, (i32 0))>;
1918  def : Pat<(v8f16 (scalar_to_vector (f16 HPR:$src))),
1919            (INSERT_SUBREG (v8f16 (IMPLICIT_DEF)), (f16 HPR:$src), ssub_0)>;
1920  def : Pat<(v8f16 (scalar_to_vector GPR:$src)),
1921            (MVE_VMOV_to_lane_16 (v8f16 (IMPLICIT_DEF)), rGPR:$src, (i32 0))>;
1922
1923  foreach LANE = [0, 2, 4, 6] in {
1924    defvar SSUB = !cast<SubRegIndex>("ssub_"#!srl(LANE, 1));
1925
1926    // v8f16 pattern for inserting two lanes using a VINS
1927    def : Pat<(insertelt (insertelt (v8f16 MQPR:$srcV), (f16 HPR:$src1), LANE),
1928                         (f16 HPR:$src2), !add(LANE,1)),
1929              (COPY_TO_REGCLASS (INSERT_SUBREG (v4f32 (COPY_TO_REGCLASS MQPR:$srcV, MQPR)),
1930                                  (VINSH (COPY_TO_REGCLASS HPR:$src1, SPR),
1931                                         (COPY_TO_REGCLASS HPR:$src2, SPR)),
1932                                 SSUB), MQPR)>;
1933
1934    // v8i16 pattern for extracting 2 even lane elements and inserting them using a VINS
1935    def : Pat<(ARMinsertelt (ARMinsertelt (v8i16 MQPR:$srcV),
1936                                          (ARMvgetlaneu (v8i16 MQPR:$src1), imm_even:$lane1),
1937                                          LANE),
1938                           (ARMvgetlaneu (v8i16 MQPR:$src2), imm_even:$lane2),
1939                           !add(LANE,1)),
1940              (COPY_TO_REGCLASS (INSERT_SUBREG (v4f32 (COPY_TO_REGCLASS MQPR:$srcV, MQPR)),
1941                                  (VINSH (EXTRACT_SUBREG (v8f16 (COPY_TO_REGCLASS MQPR:$src1, MQPR)),
1942                                                         (SSubReg_f16_reg imm_even:$lane1)),
1943                                         (EXTRACT_SUBREG (v8f16 (COPY_TO_REGCLASS MQPR:$src2, MQPR)),
1944                                                         (SSubReg_f16_reg imm_even:$lane2))),
1945                                 SSUB), MQPR)>;
1946
1947    // v8i16 pattern for extracting an element using VMOVX and inserting another using a VINS
1948    def : Pat<(ARMinsertelt (ARMinsertelt (v8i16 MQPR:$srcV),
1949                                          (ARMvgetlaneu (v8i16 MQPR:$src1), imm_odd:$lane1),
1950                                          LANE),
1951                            (ARMvgetlaneu (v8i16 MQPR:$src2), imm_even:$lane2),
1952                            !add(LANE,1)),
1953              (COPY_TO_REGCLASS (INSERT_SUBREG (v4f32 (COPY_TO_REGCLASS MQPR:$srcV, MQPR)),
1954                                  (VINSH (VMOVH (EXTRACT_SUBREG (v8f16 (COPY_TO_REGCLASS MQPR:$src1, MQPR)),
1955                                                                (SSubReg_f16_reg imm_odd:$lane1))),
1956                                                (EXTRACT_SUBREG (v8f16 (COPY_TO_REGCLASS MQPR:$src2, MQPR)),
1957                                                                (SSubReg_f16_reg imm_even:$lane2))),
1958                                 SSUB), MQPR)>;
1959  }
1960}
1961
1962// end of mve_bit instructions
1963
1964// start of MVE Integer instructions
1965
1966class MVE_int<string iname, string suffix, bits<2> size, list<dag> pattern=[]>
1967  : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qn, MQPR:$Qm), NoItinerary,
1968          iname, suffix, "$Qd, $Qn, $Qm", vpred_r, "", pattern> {
1969  bits<4> Qd;
1970  bits<4> Qn;
1971  bits<4> Qm;
1972
1973  let Inst{22} = Qd{3};
1974  let Inst{21-20} = size;
1975  let Inst{19-17} = Qn{2-0};
1976  let Inst{15-13} = Qd{2-0};
1977  let Inst{7} = Qn{3};
1978  let Inst{6} = 0b1;
1979  let Inst{5} = Qm{3};
1980  let Inst{3-1} = Qm{2-0};
1981}
1982
1983class MVE_VMULt1<string iname, string suffix, bits<2> size,
1984                   list<dag> pattern=[]>
1985  : MVE_int<iname, suffix, size, pattern> {
1986
1987  let Inst{28} = 0b0;
1988  let Inst{25-23} = 0b110;
1989  let Inst{16} = 0b0;
1990  let Inst{12-8} = 0b01001;
1991  let Inst{4} = 0b1;
1992  let Inst{0} = 0b0;
1993  let validForTailPredication = 1;
1994}
1995
1996multiclass MVE_VMUL_m<MVEVectorVTInfo VTI> {
1997  def "" : MVE_VMULt1<"vmul", VTI.Suffix, VTI.Size>;
1998
1999  let Predicates = [HasMVEInt] in {
2000    defm : MVE_TwoOpPattern<VTI, mul, int_arm_mve_mul_predicated, (? ),
2001                            !cast<Instruction>(NAME), ARMimmOneV>;
2002  }
2003}
2004
2005defm MVE_VMULi8  : MVE_VMUL_m<MVE_v16i8>;
2006defm MVE_VMULi16 : MVE_VMUL_m<MVE_v8i16>;
2007defm MVE_VMULi32 : MVE_VMUL_m<MVE_v4i32>;
2008
2009class MVE_VQxDMULH_Base<string iname, string suffix, bits<2> size, bit rounding,
2010                  list<dag> pattern=[]>
2011  : MVE_int<iname, suffix, size, pattern> {
2012
2013  let Inst{28} = rounding;
2014  let Inst{25-23} = 0b110;
2015  let Inst{16} = 0b0;
2016  let Inst{12-8} = 0b01011;
2017  let Inst{4} = 0b0;
2018  let Inst{0} = 0b0;
2019  let validForTailPredication = 1;
2020}
2021
2022def MVEvqdmulh : SDNode<"ARMISD::VQDMULH", SDTIntBinOp>;
2023
2024multiclass MVE_VQxDMULH_m<string iname, MVEVectorVTInfo VTI,
2025                      SDNode Op, Intrinsic unpred_int, Intrinsic pred_int,
2026                      bit rounding> {
2027  def "" : MVE_VQxDMULH_Base<iname, VTI.Suffix, VTI.Size, rounding>;
2028  defvar Inst = !cast<Instruction>(NAME);
2029
2030  let Predicates = [HasMVEInt] in {
2031    defm : MVE_TwoOpPattern<VTI, Op, pred_int, (? ), Inst>;
2032
2033    // Extra unpredicated multiply intrinsic patterns
2034    def : Pat<(VTI.Vec (unpred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn))),
2035              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>;
2036  }
2037}
2038
2039multiclass MVE_VQxDMULH<string iname, MVEVectorVTInfo VTI, bit rounding>
2040  : MVE_VQxDMULH_m<iname, VTI, !if(rounding, null_frag,
2041                                             MVEvqdmulh),
2042                               !if(rounding, int_arm_mve_vqrdmulh,
2043                                             int_arm_mve_vqdmulh),
2044                               !if(rounding, int_arm_mve_qrdmulh_predicated,
2045                                             int_arm_mve_qdmulh_predicated),
2046                   rounding>;
2047
2048defm MVE_VQDMULHi8  : MVE_VQxDMULH<"vqdmulh", MVE_v16s8, 0b0>;
2049defm MVE_VQDMULHi16 : MVE_VQxDMULH<"vqdmulh", MVE_v8s16, 0b0>;
2050defm MVE_VQDMULHi32 : MVE_VQxDMULH<"vqdmulh", MVE_v4s32, 0b0>;
2051
2052defm MVE_VQRDMULHi8  : MVE_VQxDMULH<"vqrdmulh", MVE_v16s8, 0b1>;
2053defm MVE_VQRDMULHi16 : MVE_VQxDMULH<"vqrdmulh", MVE_v8s16, 0b1>;
2054defm MVE_VQRDMULHi32 : MVE_VQxDMULH<"vqrdmulh", MVE_v4s32, 0b1>;
2055
2056class MVE_VADDSUB<string iname, string suffix, bits<2> size, bit subtract,
2057                    list<dag> pattern=[]>
2058  : MVE_int<iname, suffix, size, pattern> {
2059
2060  let Inst{28} = subtract;
2061  let Inst{25-23} = 0b110;
2062  let Inst{16} = 0b0;
2063  let Inst{12-8} = 0b01000;
2064  let Inst{4} = 0b0;
2065  let Inst{0} = 0b0;
2066  let validForTailPredication = 1;
2067}
2068
2069multiclass MVE_VADDSUB_m<string iname, MVEVectorVTInfo VTI, bit subtract,
2070                         SDNode Op, Intrinsic PredInt> {
2071  def "" : MVE_VADDSUB<iname, VTI.Suffix, VTI.Size, subtract>;
2072  defvar Inst = !cast<Instruction>(NAME);
2073
2074  let Predicates = [HasMVEInt] in {
2075    defm : MVE_TwoOpPattern<VTI, Op, PredInt, (? ), !cast<Instruction>(NAME), ARMimmAllZerosV>;
2076  }
2077}
2078
2079multiclass MVE_VADD<MVEVectorVTInfo VTI>
2080  : MVE_VADDSUB_m<"vadd", VTI, 0b0, add, int_arm_mve_add_predicated>;
2081multiclass MVE_VSUB<MVEVectorVTInfo VTI>
2082  : MVE_VADDSUB_m<"vsub", VTI, 0b1, sub, int_arm_mve_sub_predicated>;
2083
2084defm MVE_VADDi8  : MVE_VADD<MVE_v16i8>;
2085defm MVE_VADDi16 : MVE_VADD<MVE_v8i16>;
2086defm MVE_VADDi32 : MVE_VADD<MVE_v4i32>;
2087
2088defm MVE_VSUBi8  : MVE_VSUB<MVE_v16i8>;
2089defm MVE_VSUBi16 : MVE_VSUB<MVE_v8i16>;
2090defm MVE_VSUBi32 : MVE_VSUB<MVE_v4i32>;
2091
2092class MVE_VQADDSUB<string iname, string suffix, bit U, bit subtract,
2093                   bits<2> size>
2094  : MVE_int<iname, suffix, size, []> {
2095
2096  let Inst{28} = U;
2097  let Inst{25-23} = 0b110;
2098  let Inst{16} = 0b0;
2099  let Inst{12-10} = 0b000;
2100  let Inst{9} = subtract;
2101  let Inst{8} = 0b0;
2102  let Inst{4} = 0b1;
2103  let Inst{0} = 0b0;
2104  let validForTailPredication = 1;
2105}
2106
2107class MVE_VQADD_<string suffix, bit U, bits<2> size>
2108  : MVE_VQADDSUB<"vqadd", suffix, U, 0b0, size>;
2109class MVE_VQSUB_<string suffix, bit U, bits<2> size>
2110  : MVE_VQADDSUB<"vqsub", suffix, U, 0b1, size>;
2111
2112multiclass MVE_VQADD_m<MVEVectorVTInfo VTI,
2113                      SDNode Op, Intrinsic PredInt> {
2114  def "" : MVE_VQADD_<VTI.Suffix, VTI.Unsigned, VTI.Size>;
2115  defvar Inst = !cast<Instruction>(NAME);
2116
2117  let Predicates = [HasMVEInt] in {
2118    defm : MVE_TwoOpPattern<VTI, Op, PredInt, (? (i32 VTI.Unsigned)),
2119                            !cast<Instruction>(NAME)>;
2120  }
2121}
2122
2123multiclass MVE_VQADD<MVEVectorVTInfo VTI, SDNode unpred_op>
2124  : MVE_VQADD_m<VTI, unpred_op, int_arm_mve_qadd_predicated>;
2125
2126defm MVE_VQADDs8  : MVE_VQADD<MVE_v16s8, saddsat>;
2127defm MVE_VQADDs16 : MVE_VQADD<MVE_v8s16, saddsat>;
2128defm MVE_VQADDs32 : MVE_VQADD<MVE_v4s32, saddsat>;
2129defm MVE_VQADDu8  : MVE_VQADD<MVE_v16u8, uaddsat>;
2130defm MVE_VQADDu16 : MVE_VQADD<MVE_v8u16, uaddsat>;
2131defm MVE_VQADDu32 : MVE_VQADD<MVE_v4u32, uaddsat>;
2132
2133multiclass MVE_VQSUB_m<MVEVectorVTInfo VTI,
2134                      SDNode Op, Intrinsic PredInt> {
2135  def "" : MVE_VQSUB_<VTI.Suffix, VTI.Unsigned, VTI.Size>;
2136  defvar Inst = !cast<Instruction>(NAME);
2137
2138  let Predicates = [HasMVEInt] in {
2139    defm : MVE_TwoOpPattern<VTI, Op, PredInt, (? (i32 VTI.Unsigned)),
2140                            !cast<Instruction>(NAME)>;
2141  }
2142}
2143
2144multiclass MVE_VQSUB<MVEVectorVTInfo VTI, SDNode unpred_op>
2145  : MVE_VQSUB_m<VTI, unpred_op, int_arm_mve_qsub_predicated>;
2146
2147defm MVE_VQSUBs8  : MVE_VQSUB<MVE_v16s8, ssubsat>;
2148defm MVE_VQSUBs16 : MVE_VQSUB<MVE_v8s16, ssubsat>;
2149defm MVE_VQSUBs32 : MVE_VQSUB<MVE_v4s32, ssubsat>;
2150defm MVE_VQSUBu8  : MVE_VQSUB<MVE_v16u8, usubsat>;
2151defm MVE_VQSUBu16 : MVE_VQSUB<MVE_v8u16, usubsat>;
2152defm MVE_VQSUBu32 : MVE_VQSUB<MVE_v4u32, usubsat>;
2153
2154class MVE_VABD_int<string suffix, bit U, bits<2> size,
2155                     list<dag> pattern=[]>
2156  : MVE_int<"vabd", suffix, size, pattern> {
2157
2158  let Inst{28} = U;
2159  let Inst{25-23} = 0b110;
2160  let Inst{16} = 0b0;
2161  let Inst{12-8} = 0b00111;
2162  let Inst{4} = 0b0;
2163  let Inst{0} = 0b0;
2164  let validForTailPredication = 1;
2165}
2166
2167multiclass MVE_VABD_m<MVEVectorVTInfo VTI,
2168                      Intrinsic unpred_int, Intrinsic pred_int> {
2169  def "" : MVE_VABD_int<VTI.Suffix, VTI.Unsigned, VTI.Size>;
2170  defvar Inst = !cast<Instruction>(NAME);
2171
2172  let Predicates = [HasMVEInt] in {
2173    // Unpredicated absolute difference
2174    def : Pat<(VTI.Vec (unpred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
2175                            (i32 VTI.Unsigned))),
2176              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>;
2177
2178    // Predicated absolute difference
2179    def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
2180                            (i32 VTI.Unsigned), (VTI.Pred VCCR:$mask),
2181                            (VTI.Vec MQPR:$inactive))),
2182              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
2183                             ARMVCCThen, (VTI.Pred VCCR:$mask),
2184                             (VTI.Vec MQPR:$inactive)))>;
2185  }
2186}
2187
2188multiclass MVE_VABD<MVEVectorVTInfo VTI>
2189  : MVE_VABD_m<VTI, int_arm_mve_vabd, int_arm_mve_abd_predicated>;
2190
2191defm MVE_VABDs8  : MVE_VABD<MVE_v16s8>;
2192defm MVE_VABDs16 : MVE_VABD<MVE_v8s16>;
2193defm MVE_VABDs32 : MVE_VABD<MVE_v4s32>;
2194defm MVE_VABDu8  : MVE_VABD<MVE_v16u8>;
2195defm MVE_VABDu16 : MVE_VABD<MVE_v8u16>;
2196defm MVE_VABDu32 : MVE_VABD<MVE_v4u32>;
2197
2198class MVE_VRHADD_Base<string suffix, bit U, bits<2> size, list<dag> pattern=[]>
2199  : MVE_int<"vrhadd", suffix, size, pattern> {
2200
2201  let Inst{28} = U;
2202  let Inst{25-23} = 0b110;
2203  let Inst{16} = 0b0;
2204  let Inst{12-8} = 0b00001;
2205  let Inst{4} = 0b0;
2206  let Inst{0} = 0b0;
2207  let validForTailPredication = 1;
2208}
2209
2210def addnuw : PatFrag<(ops node:$lhs, node:$rhs),
2211                     (add node:$lhs, node:$rhs), [{
2212  return N->getFlags().hasNoUnsignedWrap();
2213}]>;
2214
2215def addnsw : PatFrag<(ops node:$lhs, node:$rhs),
2216                     (add node:$lhs, node:$rhs), [{
2217  return N->getFlags().hasNoSignedWrap();
2218}]>;
2219
2220def subnuw : PatFrag<(ops node:$lhs, node:$rhs),
2221                     (sub node:$lhs, node:$rhs), [{
2222  return N->getFlags().hasNoUnsignedWrap();
2223}]>;
2224
2225def subnsw : PatFrag<(ops node:$lhs, node:$rhs),
2226                     (sub node:$lhs, node:$rhs), [{
2227  return N->getFlags().hasNoSignedWrap();
2228}]>;
2229
2230multiclass MVE_VRHADD_m<MVEVectorVTInfo VTI,
2231                      SDNode unpred_op, Intrinsic pred_int> {
2232  def "" : MVE_VRHADD_Base<VTI.Suffix, VTI.Unsigned, VTI.Size>;
2233  defvar Inst = !cast<Instruction>(NAME);
2234
2235  let Predicates = [HasMVEInt] in {
2236    // Unpredicated rounding add-with-divide-by-two
2237    def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
2238                            (i32 VTI.Unsigned))),
2239              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>;
2240
2241    // Predicated add-with-divide-by-two
2242    def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
2243                            (i32 VTI.Unsigned), (VTI.Pred VCCR:$mask),
2244                            (VTI.Vec MQPR:$inactive))),
2245              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
2246                             ARMVCCThen, (VTI.Pred VCCR:$mask),
2247                             (VTI.Vec MQPR:$inactive)))>;
2248  }
2249}
2250
2251multiclass MVE_VRHADD<MVEVectorVTInfo VTI>
2252  : MVE_VRHADD_m<VTI, int_arm_mve_vrhadd, int_arm_mve_rhadd_predicated>;
2253
2254defm MVE_VRHADDs8  : MVE_VRHADD<MVE_v16s8>;
2255defm MVE_VRHADDs16 : MVE_VRHADD<MVE_v8s16>;
2256defm MVE_VRHADDs32 : MVE_VRHADD<MVE_v4s32>;
2257defm MVE_VRHADDu8  : MVE_VRHADD<MVE_v16u8>;
2258defm MVE_VRHADDu16 : MVE_VRHADD<MVE_v8u16>;
2259defm MVE_VRHADDu32 : MVE_VRHADD<MVE_v4u32>;
2260
2261// Rounding Halving Add perform the arithemtic operation with an extra bit of
2262// precision, before performing the shift, to void clipping errors. We're not
2263// modelling that here with these patterns, but we're using no wrap forms of
2264// add to ensure that the extra bit of information is not needed for the
2265// arithmetic or the rounding.
2266let Predicates = [HasMVEInt] in {
2267  def : Pat<(v16i8 (ARMvshrsImm (addnsw (addnsw (v16i8 MQPR:$Qm), (v16i8 MQPR:$Qn)),
2268                                        (v16i8 (ARMvmovImm (i32 3585)))),
2269                                (i32 1))),
2270            (MVE_VRHADDs8 MQPR:$Qm, MQPR:$Qn)>;
2271  def : Pat<(v8i16 (ARMvshrsImm (addnsw (addnsw (v8i16 MQPR:$Qm), (v8i16 MQPR:$Qn)),
2272                                        (v8i16 (ARMvmovImm (i32 2049)))),
2273                                (i32 1))),
2274            (MVE_VRHADDs16 MQPR:$Qm, MQPR:$Qn)>;
2275  def : Pat<(v4i32 (ARMvshrsImm (addnsw (addnsw (v4i32 MQPR:$Qm), (v4i32 MQPR:$Qn)),
2276                                        (v4i32 (ARMvmovImm (i32 1)))),
2277                                (i32 1))),
2278            (MVE_VRHADDs32 MQPR:$Qm, MQPR:$Qn)>;
2279  def : Pat<(v16i8 (ARMvshruImm (addnuw (addnuw (v16i8 MQPR:$Qm), (v16i8 MQPR:$Qn)),
2280                                        (v16i8 (ARMvmovImm (i32 3585)))),
2281                                (i32 1))),
2282            (MVE_VRHADDu8 MQPR:$Qm, MQPR:$Qn)>;
2283  def : Pat<(v8i16 (ARMvshruImm (addnuw (addnuw (v8i16 MQPR:$Qm), (v8i16 MQPR:$Qn)),
2284                                        (v8i16 (ARMvmovImm (i32 2049)))),
2285                                (i32 1))),
2286            (MVE_VRHADDu16 MQPR:$Qm, MQPR:$Qn)>;
2287  def : Pat<(v4i32 (ARMvshruImm (addnuw (addnuw (v4i32 MQPR:$Qm), (v4i32 MQPR:$Qn)),
2288                                        (v4i32 (ARMvmovImm (i32 1)))),
2289                                (i32 1))),
2290            (MVE_VRHADDu32 MQPR:$Qm, MQPR:$Qn)>;
2291}
2292
2293
2294class MVE_VHADDSUB<string iname, string suffix, bit U, bit subtract,
2295                   bits<2> size, list<dag> pattern=[]>
2296  : MVE_int<iname, suffix, size, pattern> {
2297
2298  let Inst{28} = U;
2299  let Inst{25-23} = 0b110;
2300  let Inst{16} = 0b0;
2301  let Inst{12-10} = 0b000;
2302  let Inst{9} = subtract;
2303  let Inst{8} = 0b0;
2304  let Inst{4} = 0b0;
2305  let Inst{0} = 0b0;
2306  let validForTailPredication = 1;
2307}
2308
2309class MVE_VHADD_<string suffix, bit U, bits<2> size,
2310              list<dag> pattern=[]>
2311  : MVE_VHADDSUB<"vhadd", suffix, U, 0b0, size, pattern>;
2312class MVE_VHSUB_<string suffix, bit U, bits<2> size,
2313              list<dag> pattern=[]>
2314  : MVE_VHADDSUB<"vhsub", suffix, U, 0b1, size, pattern>;
2315
2316multiclass MVE_VHADD_m<MVEVectorVTInfo VTI,
2317                      SDNode unpred_op, Intrinsic pred_int, PatFrag add_op,
2318                      SDNode shift_op> {
2319  def "" : MVE_VHADD_<VTI.Suffix, VTI.Unsigned, VTI.Size>;
2320  defvar Inst = !cast<Instruction>(NAME);
2321
2322  let Predicates = [HasMVEInt] in {
2323    // Unpredicated add-and-divide-by-two
2324    def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), (i32 VTI.Unsigned))),
2325              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>;
2326
2327    def : Pat<(VTI.Vec (shift_op (add_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)), (i32 1))),
2328              (Inst MQPR:$Qm, MQPR:$Qn)>;
2329
2330    // Predicated add-and-divide-by-two
2331    def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn), (i32 VTI.Unsigned),
2332                            (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive))),
2333              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
2334                             ARMVCCThen, (VTI.Pred VCCR:$mask),
2335                             (VTI.Vec MQPR:$inactive)))>;
2336  }
2337}
2338
2339multiclass MVE_VHADD<MVEVectorVTInfo VTI, PatFrag add_op, SDNode shift_op>
2340  : MVE_VHADD_m<VTI, int_arm_mve_vhadd, int_arm_mve_hadd_predicated, add_op,
2341                shift_op>;
2342
2343// Halving add/sub perform the arithemtic operation with an extra bit of
2344// precision, before performing the shift, to void clipping errors. We're not
2345// modelling that here with these patterns, but we're using no wrap forms of
2346// add/sub to ensure that the extra bit of information is not needed.
2347defm MVE_VHADDs8  : MVE_VHADD<MVE_v16s8, addnsw, ARMvshrsImm>;
2348defm MVE_VHADDs16 : MVE_VHADD<MVE_v8s16, addnsw, ARMvshrsImm>;
2349defm MVE_VHADDs32 : MVE_VHADD<MVE_v4s32, addnsw, ARMvshrsImm>;
2350defm MVE_VHADDu8  : MVE_VHADD<MVE_v16u8, addnuw, ARMvshruImm>;
2351defm MVE_VHADDu16 : MVE_VHADD<MVE_v8u16, addnuw, ARMvshruImm>;
2352defm MVE_VHADDu32 : MVE_VHADD<MVE_v4u32, addnuw, ARMvshruImm>;
2353
2354multiclass MVE_VHSUB_m<MVEVectorVTInfo VTI,
2355                      SDNode unpred_op, Intrinsic pred_int, PatFrag sub_op,
2356                      SDNode shift_op> {
2357  def "" : MVE_VHSUB_<VTI.Suffix, VTI.Unsigned, VTI.Size>;
2358  defvar Inst = !cast<Instruction>(NAME);
2359
2360  let Predicates = [HasMVEInt] in {
2361    // Unpredicated subtract-and-divide-by-two
2362    def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
2363                            (i32 VTI.Unsigned))),
2364              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>;
2365
2366    def : Pat<(VTI.Vec (shift_op (sub_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)), (i32 1))),
2367              (Inst MQPR:$Qm, MQPR:$Qn)>;
2368
2369
2370    // Predicated subtract-and-divide-by-two
2371    def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
2372                            (i32 VTI.Unsigned), (VTI.Pred VCCR:$mask),
2373                            (VTI.Vec MQPR:$inactive))),
2374              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
2375                             ARMVCCThen, (VTI.Pred VCCR:$mask),
2376                             (VTI.Vec MQPR:$inactive)))>;
2377  }
2378}
2379
2380multiclass MVE_VHSUB<MVEVectorVTInfo VTI, PatFrag sub_op, SDNode shift_op>
2381  : MVE_VHSUB_m<VTI, int_arm_mve_vhsub, int_arm_mve_hsub_predicated, sub_op,
2382                shift_op>;
2383
2384defm MVE_VHSUBs8  : MVE_VHSUB<MVE_v16s8, subnsw, ARMvshrsImm>;
2385defm MVE_VHSUBs16 : MVE_VHSUB<MVE_v8s16, subnsw, ARMvshrsImm>;
2386defm MVE_VHSUBs32 : MVE_VHSUB<MVE_v4s32, subnsw, ARMvshrsImm>;
2387defm MVE_VHSUBu8  : MVE_VHSUB<MVE_v16u8, subnuw, ARMvshruImm>;
2388defm MVE_VHSUBu16 : MVE_VHSUB<MVE_v8u16, subnuw, ARMvshruImm>;
2389defm MVE_VHSUBu32 : MVE_VHSUB<MVE_v4u32, subnuw, ARMvshruImm>;
2390
2391class MVE_VDUP<string suffix, bit B, bit E, list<dag> pattern=[]>
2392  : MVE_p<(outs MQPR:$Qd), (ins rGPR:$Rt), NoItinerary,
2393          "vdup", suffix, "$Qd, $Rt", vpred_r, "", pattern> {
2394  bits<4> Qd;
2395  bits<4> Rt;
2396
2397  let Inst{28} = 0b0;
2398  let Inst{25-23} = 0b101;
2399  let Inst{22} = B;
2400  let Inst{21-20} = 0b10;
2401  let Inst{19-17} = Qd{2-0};
2402  let Inst{16} = 0b0;
2403  let Inst{15-12} = Rt;
2404  let Inst{11-8} = 0b1011;
2405  let Inst{7} = Qd{3};
2406  let Inst{6} = 0b0;
2407  let Inst{5} = E;
2408  let Inst{4-0} = 0b10000;
2409  let validForTailPredication = 1;
2410}
2411
2412def MVE_VDUP32 : MVE_VDUP<"32", 0b0, 0b0>;
2413def MVE_VDUP16 : MVE_VDUP<"16", 0b0, 0b1>;
2414def MVE_VDUP8  : MVE_VDUP<"8",  0b1, 0b0>;
2415
2416let Predicates = [HasMVEInt] in {
2417  def : Pat<(v16i8 (ARMvdup (i32 rGPR:$elem))),
2418            (MVE_VDUP8  rGPR:$elem)>;
2419  def : Pat<(v8i16 (ARMvdup (i32 rGPR:$elem))),
2420            (MVE_VDUP16 rGPR:$elem)>;
2421  def : Pat<(v4i32 (ARMvdup (i32 rGPR:$elem))),
2422            (MVE_VDUP32 rGPR:$elem)>;
2423
2424  def : Pat<(v8f16 (ARMvdup (i32 rGPR:$elem))),
2425            (MVE_VDUP16 rGPR:$elem)>;
2426  def : Pat<(v4f32 (ARMvdup (i32 rGPR:$elem))),
2427            (MVE_VDUP32 rGPR:$elem)>;
2428
2429  // Match a vselect with an ARMvdup as a predicated MVE_VDUP
2430  def : Pat<(v16i8 (vselect (v16i1 VCCR:$pred),
2431                            (v16i8 (ARMvdup (i32 rGPR:$elem))),
2432                            (v16i8 MQPR:$inactive))),
2433            (MVE_VDUP8  rGPR:$elem, ARMVCCThen, (v16i1 VCCR:$pred),
2434                        (v16i8 MQPR:$inactive))>;
2435  def : Pat<(v8i16 (vselect (v8i1 VCCR:$pred),
2436                            (v8i16 (ARMvdup (i32 rGPR:$elem))),
2437                            (v8i16 MQPR:$inactive))),
2438            (MVE_VDUP16 rGPR:$elem, ARMVCCThen, (v8i1 VCCR:$pred),
2439                            (v8i16 MQPR:$inactive))>;
2440  def : Pat<(v4i32 (vselect (v4i1 VCCR:$pred),
2441                            (v4i32 (ARMvdup (i32 rGPR:$elem))),
2442                            (v4i32 MQPR:$inactive))),
2443            (MVE_VDUP32 rGPR:$elem, ARMVCCThen, (v4i1 VCCR:$pred),
2444                            (v4i32 MQPR:$inactive))>;
2445  def : Pat<(v4f32 (vselect (v4i1 VCCR:$pred),
2446                            (v4f32 (ARMvdup (i32 rGPR:$elem))),
2447                            (v4f32 MQPR:$inactive))),
2448            (MVE_VDUP32 rGPR:$elem, ARMVCCThen, (v4i1 VCCR:$pred),
2449                            (v4f32 MQPR:$inactive))>;
2450  def : Pat<(v8f16 (vselect (v8i1 VCCR:$pred),
2451                            (v8f16 (ARMvdup (i32 rGPR:$elem))),
2452                            (v8f16 MQPR:$inactive))),
2453            (MVE_VDUP16 rGPR:$elem, ARMVCCThen, (v8i1 VCCR:$pred),
2454                            (v8f16 MQPR:$inactive))>;
2455}
2456
2457
2458class MVEIntSingleSrc<string iname, string suffix, bits<2> size,
2459                         list<dag> pattern=[]>
2460  : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qm), NoItinerary,
2461          iname, suffix, "$Qd, $Qm", vpred_r, "", pattern> {
2462  bits<4> Qd;
2463  bits<4> Qm;
2464
2465  let Inst{22} = Qd{3};
2466  let Inst{19-18} = size{1-0};
2467  let Inst{15-13} = Qd{2-0};
2468  let Inst{5} = Qm{3};
2469  let Inst{3-1} = Qm{2-0};
2470}
2471
2472class MVE_VCLSCLZ<string iname, string suffix, bits<2> size,
2473                   bit count_zeroes, list<dag> pattern=[]>
2474  : MVEIntSingleSrc<iname, suffix, size, pattern> {
2475
2476  let Inst{28} = 0b1;
2477  let Inst{25-23} = 0b111;
2478  let Inst{21-20} = 0b11;
2479  let Inst{17-16} = 0b00;
2480  let Inst{12-8} = 0b00100;
2481  let Inst{7} = count_zeroes;
2482  let Inst{6} = 0b1;
2483  let Inst{4} = 0b0;
2484  let Inst{0} = 0b0;
2485  let validForTailPredication = 1;
2486}
2487
2488multiclass MVE_VCLSCLZ_p<string opname, bit opcode, MVEVectorVTInfo VTI,
2489                         SDPatternOperator unpred_op> {
2490  def "": MVE_VCLSCLZ<"v"#opname, VTI.Suffix, VTI.Size, opcode>;
2491
2492  defvar Inst     = !cast<Instruction>(NAME);
2493  defvar pred_int = !cast<Intrinsic>("int_arm_mve_"#opname#"_predicated");
2494
2495  let Predicates = [HasMVEInt] in {
2496    def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$val))),
2497              (VTI.Vec (Inst (VTI.Vec MQPR:$val)))>;
2498    def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$val), (VTI.Pred VCCR:$pred),
2499                                 (VTI.Vec MQPR:$inactive))),
2500              (VTI.Vec (Inst (VTI.Vec MQPR:$val), ARMVCCThen,
2501                             (VTI.Pred VCCR:$pred), (VTI.Vec MQPR:$inactive)))>;
2502  }
2503}
2504
2505defm MVE_VCLSs8  : MVE_VCLSCLZ_p<"cls", 0, MVE_v16s8, int_arm_mve_vcls>;
2506defm MVE_VCLSs16 : MVE_VCLSCLZ_p<"cls", 0, MVE_v8s16, int_arm_mve_vcls>;
2507defm MVE_VCLSs32 : MVE_VCLSCLZ_p<"cls", 0, MVE_v4s32, int_arm_mve_vcls>;
2508
2509defm MVE_VCLZs8  : MVE_VCLSCLZ_p<"clz", 1, MVE_v16i8, ctlz>;
2510defm MVE_VCLZs16 : MVE_VCLSCLZ_p<"clz", 1, MVE_v8i16, ctlz>;
2511defm MVE_VCLZs32 : MVE_VCLSCLZ_p<"clz", 1, MVE_v4i32, ctlz>;
2512
2513class MVE_VABSNEG_int<string iname, string suffix, bits<2> size, bit negate,
2514                      bit saturate, list<dag> pattern=[]>
2515  : MVEIntSingleSrc<iname, suffix, size, pattern> {
2516
2517  let Inst{28} = 0b1;
2518  let Inst{25-23} = 0b111;
2519  let Inst{21-20} = 0b11;
2520  let Inst{17} = 0b0;
2521  let Inst{16} = !eq(saturate, 0);
2522  let Inst{12-11} = 0b00;
2523  let Inst{10} = saturate;
2524  let Inst{9-8} = 0b11;
2525  let Inst{7} = negate;
2526  let Inst{6} = 0b1;
2527  let Inst{4} = 0b0;
2528  let Inst{0} = 0b0;
2529  let validForTailPredication = 1;
2530}
2531
2532multiclass MVE_VABSNEG_int_m<string iname, bit negate, bit saturate,
2533                             SDPatternOperator unpred_op, Intrinsic pred_int,
2534                             MVEVectorVTInfo VTI> {
2535  def "" : MVE_VABSNEG_int<iname, VTI.Suffix, VTI.Size, negate, saturate>;
2536  defvar Inst = !cast<Instruction>(NAME);
2537
2538  let Predicates = [HasMVEInt] in {
2539    // VQABS and VQNEG have more difficult isel patterns defined elsewhere
2540    if !not(saturate) then {
2541      def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$v))),
2542                (VTI.Vec (Inst $v))>;
2543    }
2544
2545    def : Pat<(VTI.Vec (pred_int  (VTI.Vec MQPR:$v), (VTI.Pred VCCR:$mask),
2546                                  (VTI.Vec MQPR:$inactive))),
2547              (VTI.Vec (Inst $v, ARMVCCThen, $mask, $inactive))>;
2548  }
2549}
2550
2551foreach VTI = [ MVE_v16s8, MVE_v8s16, MVE_v4s32 ] in {
2552  defm "MVE_VABS" # VTI.Suffix : MVE_VABSNEG_int_m<
2553     "vabs",  0, 0, abs,   int_arm_mve_abs_predicated,  VTI>;
2554  defm "MVE_VQABS" # VTI.Suffix : MVE_VABSNEG_int_m<
2555     "vqabs", 0, 1, ?,     int_arm_mve_qabs_predicated, VTI>;
2556  defm "MVE_VNEG" # VTI.Suffix : MVE_VABSNEG_int_m<
2557     "vneg",  1, 0, vnegq, int_arm_mve_neg_predicated,  VTI>;
2558  defm "MVE_VQNEG" # VTI.Suffix : MVE_VABSNEG_int_m<
2559     "vqneg", 1, 1, ?,     int_arm_mve_qneg_predicated, VTI>;
2560}
2561
2562// int_min/int_max: vector containing INT_MIN/INT_MAX VTI.Size times
2563// zero_vec: v4i32-initialized zero vector, potentially wrapped in a bitconvert
2564multiclass vqabsneg_pattern<MVEVectorVTInfo VTI, dag int_min, dag int_max,
2565                         dag zero_vec,  MVE_VABSNEG_int vqabs_instruction,
2566                         MVE_VABSNEG_int vqneg_instruction> {
2567  let Predicates = [HasMVEInt] in {
2568    // The below tree can be replaced by a vqabs instruction, as it represents
2569    // the following vectorized expression (r being the value in $reg):
2570    // r > 0 ? r : (r == INT_MIN ? INT_MAX : -r)
2571    def : Pat<(VTI.Vec (vselect
2572                      (VTI.Pred (ARMvcmpz (VTI.Vec MQPR:$reg), ARMCCgt)),
2573                      (VTI.Vec MQPR:$reg),
2574                      (VTI.Vec (vselect
2575                                (VTI.Pred (ARMvcmp (VTI.Vec MQPR:$reg), int_min, ARMCCeq)),
2576                                int_max,
2577                                (sub (VTI.Vec zero_vec), (VTI.Vec MQPR:$reg)))))),
2578            (VTI.Vec (vqabs_instruction (VTI.Vec MQPR:$reg)))>;
2579    // Similarly, this tree represents vqneg, i.e. the following vectorized expression:
2580    // r == INT_MIN ? INT_MAX : -r
2581    def : Pat<(VTI.Vec (vselect
2582                        (VTI.Pred (ARMvcmp (VTI.Vec MQPR:$reg), int_min, ARMCCeq)),
2583                        int_max,
2584                        (sub (VTI.Vec zero_vec), (VTI.Vec MQPR:$reg)))),
2585               (VTI.Vec (vqneg_instruction (VTI.Vec MQPR:$reg)))>;
2586  }
2587}
2588
2589defm MVE_VQABSNEG_Ps8  : vqabsneg_pattern<MVE_v16i8,
2590                                    (v16i8 (ARMvmovImm (i32 3712))),
2591                                    (v16i8 (ARMvmovImm (i32 3711))),
2592                                    (bitconvert (v4i32 (ARMvmovImm (i32 0)))),
2593                                    MVE_VQABSs8, MVE_VQNEGs8>;
2594defm MVE_VQABSNEG_Ps16 : vqabsneg_pattern<MVE_v8i16,
2595                                    (v8i16 (ARMvmovImm (i32 2688))),
2596                                    (v8i16 (ARMvmvnImm (i32 2688))),
2597                                    (bitconvert (v4i32 (ARMvmovImm (i32 0)))),
2598                                    MVE_VQABSs16, MVE_VQNEGs16>;
2599defm MVE_VQABSNEG_Ps32 : vqabsneg_pattern<MVE_v4i32,
2600                                    (v4i32 (ARMvmovImm (i32 1664))),
2601                                    (v4i32 (ARMvmvnImm (i32 1664))),
2602                                    (ARMvmovImm (i32 0)),
2603                                    MVE_VQABSs32, MVE_VQNEGs32>;
2604
2605class MVE_mod_imm<string iname, string suffix, bits<4> cmode, bit op,
2606                  dag iops, list<dag> pattern=[]>
2607  : MVE_p<(outs MQPR:$Qd), iops, NoItinerary, iname, suffix, "$Qd, $imm",
2608          vpred_r, "", pattern> {
2609  bits<13> imm;
2610  bits<4> Qd;
2611
2612  let Inst{28} = imm{7};
2613  let Inst{25-23} = 0b111;
2614  let Inst{22} = Qd{3};
2615  let Inst{21-19} = 0b000;
2616  let Inst{18-16} = imm{6-4};
2617  let Inst{15-13} = Qd{2-0};
2618  let Inst{12} = 0b0;
2619  let Inst{11-8} = cmode{3-0};
2620  let Inst{7-6} = 0b01;
2621  let Inst{5} = op;
2622  let Inst{4} = 0b1;
2623  let Inst{3-0} = imm{3-0};
2624
2625  let DecoderMethod = "DecodeMVEModImmInstruction";
2626  let validForTailPredication = 1;
2627}
2628
2629let isReMaterializable = 1 in {
2630let isAsCheapAsAMove = 1 in {
2631def MVE_VMOVimmi8  : MVE_mod_imm<"vmov", "i8",  {1,1,1,0}, 0b0, (ins nImmSplatI8:$imm)>;
2632def MVE_VMOVimmi16 : MVE_mod_imm<"vmov", "i16", {1,0,?,0}, 0b0, (ins nImmSplatI16:$imm)> {
2633  let Inst{9} = imm{9};
2634}
2635def MVE_VMOVimmi32 : MVE_mod_imm<"vmov", "i32", {?,?,?,?}, 0b0, (ins nImmVMOVI32:$imm)> {
2636  let Inst{11-8} = imm{11-8};
2637}
2638def MVE_VMOVimmi64 : MVE_mod_imm<"vmov", "i64", {1,1,1,0}, 0b1, (ins nImmSplatI64:$imm)>;
2639def MVE_VMOVimmf32 : MVE_mod_imm<"vmov", "f32", {1,1,1,1}, 0b0, (ins nImmVMOVF32:$imm)>;
2640} // let isAsCheapAsAMove = 1
2641
2642def MVE_VMVNimmi16 : MVE_mod_imm<"vmvn", "i16", {1,0,?,0}, 0b1, (ins nImmSplatI16:$imm)> {
2643  let Inst{9} = imm{9};
2644}
2645def MVE_VMVNimmi32 : MVE_mod_imm<"vmvn", "i32", {?,?,?,?}, 0b1, (ins nImmVMOVI32:$imm)> {
2646  let Inst{11-8} = imm{11-8};
2647}
2648} // let isReMaterializable = 1
2649
2650let Predicates = [HasMVEInt] in {
2651  def : Pat<(v16i8 (ARMvmovImm timm:$simm)),
2652            (v16i8 (MVE_VMOVimmi8  nImmSplatI8:$simm))>;
2653  def : Pat<(v8i16 (ARMvmovImm timm:$simm)),
2654            (v8i16 (MVE_VMOVimmi16 nImmSplatI16:$simm))>;
2655  def : Pat<(v4i32 (ARMvmovImm timm:$simm)),
2656            (v4i32 (MVE_VMOVimmi32 nImmVMOVI32:$simm))>;
2657  def : Pat<(v2i64 (ARMvmovImm timm:$simm)),
2658            (v2i64 (MVE_VMOVimmi64 nImmSplatI64:$simm))>;
2659
2660  def : Pat<(v8i16 (ARMvmvnImm timm:$simm)),
2661            (v8i16 (MVE_VMVNimmi16 nImmSplatI16:$simm))>;
2662  def : Pat<(v4i32 (ARMvmvnImm timm:$simm)),
2663            (v4i32 (MVE_VMVNimmi32 nImmVMOVI32:$simm))>;
2664
2665  def : Pat<(v4f32 (ARMvmovFPImm timm:$simm)),
2666            (v4f32 (MVE_VMOVimmf32 nImmVMOVF32:$simm))>;
2667
2668  def : Pat<(v8i16 (vselect (v8i1 VCCR:$pred), (ARMvmvnImm timm:$simm),
2669                            MQPR:$inactive)),
2670            (v8i16 (MVE_VMVNimmi16 nImmSplatI16:$simm,
2671                            ARMVCCThen, VCCR:$pred, MQPR:$inactive))>;
2672  def : Pat<(v4i32 (vselect (v4i1 VCCR:$pred), (ARMvmvnImm timm:$simm),
2673                            MQPR:$inactive)),
2674            (v4i32 (MVE_VMVNimmi32 nImmSplatI32:$simm,
2675                            ARMVCCThen, VCCR:$pred, MQPR:$inactive))>;
2676}
2677
2678class MVE_VMINMAXA<string iname, string suffix, bits<2> size,
2679                   bit bit_12, list<dag> pattern=[]>
2680  : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qd_src, MQPR:$Qm),
2681          NoItinerary, iname, suffix, "$Qd, $Qm", vpred_n, "$Qd = $Qd_src",
2682          pattern> {
2683  bits<4> Qd;
2684  bits<4> Qm;
2685
2686  let Inst{28} = 0b0;
2687  let Inst{25-23} = 0b100;
2688  let Inst{22} = Qd{3};
2689  let Inst{21-20} = 0b11;
2690  let Inst{19-18} = size;
2691  let Inst{17-16} = 0b11;
2692  let Inst{15-13} = Qd{2-0};
2693  let Inst{12} = bit_12;
2694  let Inst{11-6} = 0b111010;
2695  let Inst{5} = Qm{3};
2696  let Inst{4} = 0b0;
2697  let Inst{3-1} = Qm{2-0};
2698  let Inst{0} = 0b1;
2699  let validForTailPredication = 1;
2700}
2701
2702multiclass MVE_VMINMAXA_m<string iname, MVEVectorVTInfo VTI,
2703                      SDNode unpred_op, Intrinsic pred_int, bit bit_12> {
2704  def "" : MVE_VMINMAXA<iname, VTI.Suffix, VTI.Size, bit_12>;
2705  defvar Inst = !cast<Instruction>(NAME);
2706
2707  let Predicates = [HasMVEInt] in {
2708    // Unpredicated v(min|max)a
2709    def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qd), (abs (VTI.Vec MQPR:$Qm)))),
2710              (VTI.Vec (Inst (VTI.Vec MQPR:$Qd), (VTI.Vec MQPR:$Qm)))>;
2711
2712    // Predicated v(min|max)a
2713    def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qd), (VTI.Vec MQPR:$Qm),
2714                            (VTI.Pred VCCR:$mask))),
2715              (VTI.Vec (Inst (VTI.Vec MQPR:$Qd), (VTI.Vec MQPR:$Qm),
2716                            ARMVCCThen, (VTI.Pred VCCR:$mask)))>;
2717  }
2718}
2719
2720multiclass MVE_VMINA<MVEVectorVTInfo VTI>
2721  : MVE_VMINMAXA_m<"vmina", VTI, umin, int_arm_mve_vmina_predicated, 0b1>;
2722
2723defm MVE_VMINAs8  : MVE_VMINA<MVE_v16s8>;
2724defm MVE_VMINAs16 : MVE_VMINA<MVE_v8s16>;
2725defm MVE_VMINAs32 : MVE_VMINA<MVE_v4s32>;
2726
2727multiclass MVE_VMAXA<MVEVectorVTInfo VTI>
2728  : MVE_VMINMAXA_m<"vmaxa", VTI, umax, int_arm_mve_vmaxa_predicated, 0b0>;
2729
2730defm MVE_VMAXAs8  : MVE_VMAXA<MVE_v16s8>;
2731defm MVE_VMAXAs16 : MVE_VMAXA<MVE_v8s16>;
2732defm MVE_VMAXAs32 : MVE_VMAXA<MVE_v4s32>;
2733
2734// end of MVE Integer instructions
2735
2736// start of mve_imm_shift instructions
2737
2738def MVE_VSHLC : MVE_p<(outs rGPR:$RdmDest, MQPR:$Qd),
2739                      (ins MQPR:$QdSrc, rGPR:$RdmSrc, long_shift:$imm),
2740                      NoItinerary, "vshlc", "", "$QdSrc, $RdmSrc, $imm",
2741                      vpred_n, "$RdmDest = $RdmSrc,$Qd = $QdSrc"> {
2742  bits<5> imm;
2743  bits<4> Qd;
2744  bits<4> RdmDest;
2745
2746  let Inst{28} = 0b0;
2747  let Inst{25-23} = 0b101;
2748  let Inst{22} = Qd{3};
2749  let Inst{21} = 0b1;
2750  let Inst{20-16} = imm{4-0};
2751  let Inst{15-13} = Qd{2-0};
2752  let Inst{12-4} = 0b011111100;
2753  let Inst{3-0} = RdmDest{3-0};
2754}
2755
2756class MVE_shift_imm<dag oops, dag iops, string iname, string suffix,
2757                    string ops, vpred_ops vpred, string cstr,
2758                    list<dag> pattern=[]>
2759  : MVE_p<oops, iops, NoItinerary, iname, suffix, ops, vpred, cstr, pattern> {
2760  bits<4> Qd;
2761  bits<4> Qm;
2762
2763  let Inst{22} = Qd{3};
2764  let Inst{15-13} = Qd{2-0};
2765  let Inst{5} = Qm{3};
2766  let Inst{3-1} = Qm{2-0};
2767}
2768
2769class MVE_VMOVL<string iname, string suffix, bits<2> sz, bit U, bit top,
2770              list<dag> pattern=[]>
2771  : MVE_shift_imm<(outs MQPR:$Qd), (ins MQPR:$Qm),
2772                  iname, suffix, "$Qd, $Qm", vpred_r, "",
2773                  pattern> {
2774  let Inst{28} = U;
2775  let Inst{25-23} = 0b101;
2776  let Inst{21} = 0b1;
2777  let Inst{20-19} = sz{1-0};
2778  let Inst{18-16} = 0b000;
2779  let Inst{12} = top;
2780  let Inst{11-6} = 0b111101;
2781  let Inst{4} = 0b0;
2782  let Inst{0} = 0b0;
2783  let doubleWidthResult = 1;
2784}
2785
2786multiclass MVE_VMOVL_m<bit top, string chr, MVEVectorVTInfo OutVTI,
2787                       MVEVectorVTInfo InVTI> {
2788  def "": MVE_VMOVL<"vmovl" # chr, InVTI.Suffix, OutVTI.Size,
2789                    InVTI.Unsigned, top>;
2790  defvar Inst = !cast<Instruction>(NAME);
2791
2792  def : Pat<(OutVTI.Vec (int_arm_mve_vmovl_predicated (InVTI.Vec MQPR:$src),
2793                            (i32 InVTI.Unsigned), (i32 top),
2794                            (OutVTI.Pred VCCR:$pred),
2795                            (OutVTI.Vec MQPR:$inactive))),
2796            (OutVTI.Vec (Inst (InVTI.Vec MQPR:$src), ARMVCCThen,
2797                            (OutVTI.Pred VCCR:$pred),
2798                            (OutVTI.Vec MQPR:$inactive)))>;
2799}
2800
2801defm MVE_VMOVLs8bh  : MVE_VMOVL_m<0, "b", MVE_v8s16, MVE_v16s8>;
2802defm MVE_VMOVLs8th  : MVE_VMOVL_m<1, "t", MVE_v8s16, MVE_v16s8>;
2803defm MVE_VMOVLu8bh  : MVE_VMOVL_m<0, "b", MVE_v8u16, MVE_v16u8>;
2804defm MVE_VMOVLu8th  : MVE_VMOVL_m<1, "t", MVE_v8u16, MVE_v16u8>;
2805defm MVE_VMOVLs16bh : MVE_VMOVL_m<0, "b", MVE_v4s32, MVE_v8s16>;
2806defm MVE_VMOVLs16th : MVE_VMOVL_m<1, "t", MVE_v4s32, MVE_v8s16>;
2807defm MVE_VMOVLu16bh : MVE_VMOVL_m<0, "b", MVE_v4s32, MVE_v8u16>;
2808defm MVE_VMOVLu16th : MVE_VMOVL_m<1, "t", MVE_v4s32, MVE_v8u16>;
2809
2810let Predicates = [HasMVEInt] in {
2811  def : Pat<(sext_inreg (v4i32 MQPR:$src), v4i16),
2812            (MVE_VMOVLs16bh MQPR:$src)>;
2813  def : Pat<(sext_inreg (v8i16 MQPR:$src), v8i8),
2814            (MVE_VMOVLs8bh MQPR:$src)>;
2815  def : Pat<(sext_inreg (v4i32 MQPR:$src), v4i8),
2816            (MVE_VMOVLs16bh (MVE_VMOVLs8bh MQPR:$src))>;
2817
2818  def : Pat<(sext_inreg (v8i16 (ARMVectorRegCast (ARMvrev16 (v16i8 MQPR:$src)))), v8i8),
2819            (MVE_VMOVLs8th MQPR:$src)>;
2820  def : Pat<(sext_inreg (v4i32 (ARMVectorRegCast (ARMvrev32 (v8i16 MQPR:$src)))), v4i16),
2821            (MVE_VMOVLs16th MQPR:$src)>;
2822
2823  // zext_inreg 8 -> 16
2824  def : Pat<(ARMvbicImm (v8i16 MQPR:$src), (i32 0xAFF)),
2825            (MVE_VMOVLu8bh MQPR:$src)>;
2826  // zext_inreg 16 -> 32
2827  def : Pat<(and (v4i32 MQPR:$src), (v4i32 (ARMvmovImm (i32 0xCFF)))),
2828            (MVE_VMOVLu16bh MQPR:$src)>;
2829  // Same zext_inreg with vrevs, picking the top half
2830  def : Pat<(ARMvbicImm (v8i16 (ARMVectorRegCast (ARMvrev16 (v16i8 MQPR:$src)))), (i32 0xAFF)),
2831            (MVE_VMOVLu8th MQPR:$src)>;
2832  def : Pat<(and (v4i32 (ARMVectorRegCast (ARMvrev32 (v8i16 MQPR:$src)))),
2833                 (v4i32 (ARMvmovImm (i32 0xCFF)))),
2834            (MVE_VMOVLu16th MQPR:$src)>;
2835}
2836
2837
2838class MVE_VSHLL_imm<string iname, string suffix, bit U, bit th,
2839                    Operand immtype, list<dag> pattern=[]>
2840  : MVE_shift_imm<(outs MQPR:$Qd), (ins MQPR:$Qm, immtype:$imm),
2841                  iname, suffix, "$Qd, $Qm, $imm", vpred_r, "", pattern> {
2842  let Inst{28} = U;
2843  let Inst{25-23} = 0b101;
2844  let Inst{21} = 0b1;
2845  let Inst{12} = th;
2846  let Inst{11-6} = 0b111101;
2847  let Inst{4} = 0b0;
2848  let Inst{0} = 0b0;
2849
2850  // For the MVE_VSHLL_patterns multiclass to refer to
2851  Operand immediateType = immtype;
2852
2853  let doubleWidthResult = 1;
2854}
2855
2856// The immediate VSHLL instructions accept shift counts from 1 up to
2857// the lane width (8 or 16), but the full-width shifts have an
2858// entirely separate encoding, given below with 'lw' in the name.
2859
2860class MVE_VSHLL_imm8<string iname, string suffix,
2861                     bit U, bit th, list<dag> pattern=[]>
2862  : MVE_VSHLL_imm<iname, suffix, U, th, mve_shift_imm1_7, pattern> {
2863  bits<3> imm;
2864  let Inst{20-19} = 0b01;
2865  let Inst{18-16} = imm;
2866}
2867
2868class MVE_VSHLL_imm16<string iname, string suffix,
2869                      bit U, bit th, list<dag> pattern=[]>
2870  : MVE_VSHLL_imm<iname, suffix, U, th, mve_shift_imm1_15, pattern> {
2871  bits<4> imm;
2872  let Inst{20} = 0b1;
2873  let Inst{19-16} = imm;
2874}
2875
2876def MVE_VSHLL_imms8bh  : MVE_VSHLL_imm8 <"vshllb", "s8", 0b0, 0b0>;
2877def MVE_VSHLL_imms8th  : MVE_VSHLL_imm8 <"vshllt", "s8", 0b0, 0b1>;
2878def MVE_VSHLL_immu8bh  : MVE_VSHLL_imm8 <"vshllb", "u8", 0b1, 0b0>;
2879def MVE_VSHLL_immu8th  : MVE_VSHLL_imm8 <"vshllt", "u8", 0b1, 0b1>;
2880def MVE_VSHLL_imms16bh : MVE_VSHLL_imm16<"vshllb", "s16", 0b0, 0b0>;
2881def MVE_VSHLL_imms16th : MVE_VSHLL_imm16<"vshllt", "s16", 0b0, 0b1>;
2882def MVE_VSHLL_immu16bh : MVE_VSHLL_imm16<"vshllb", "u16", 0b1, 0b0>;
2883def MVE_VSHLL_immu16th : MVE_VSHLL_imm16<"vshllt", "u16", 0b1, 0b1>;
2884
2885class MVE_VSHLL_by_lane_width<string iname, string suffix, bits<2> size,
2886                              bit U, string ops, list<dag> pattern=[]>
2887  : MVE_shift_imm<(outs MQPR:$Qd), (ins MQPR:$Qm),
2888                  iname, suffix, ops, vpred_r, "", pattern> {
2889  let Inst{28} = U;
2890  let Inst{25-23} = 0b100;
2891  let Inst{21-20} = 0b11;
2892  let Inst{19-18} = size{1-0};
2893  let Inst{17-16} = 0b01;
2894  let Inst{11-6} = 0b111000;
2895  let Inst{4} = 0b0;
2896  let Inst{0} = 0b1;
2897  let doubleWidthResult = 1;
2898}
2899
2900multiclass MVE_VSHLL_lw<string iname, string suffix, bits<2> sz, bit U,
2901                              string ops, list<dag> pattern=[]> {
2902  def bh : MVE_VSHLL_by_lane_width<iname#"b", suffix, sz, U, ops, pattern> {
2903    let Inst{12} = 0b0;
2904  }
2905  def th : MVE_VSHLL_by_lane_width<iname#"t", suffix, sz, U, ops, pattern> {
2906    let Inst{12} = 0b1;
2907  }
2908}
2909
2910defm MVE_VSHLL_lws8  : MVE_VSHLL_lw<"vshll", "s8",  0b00, 0b0, "$Qd, $Qm, #8">;
2911defm MVE_VSHLL_lws16 : MVE_VSHLL_lw<"vshll", "s16", 0b01, 0b0, "$Qd, $Qm, #16">;
2912defm MVE_VSHLL_lwu8  : MVE_VSHLL_lw<"vshll", "u8",  0b00, 0b1, "$Qd, $Qm, #8">;
2913defm MVE_VSHLL_lwu16 : MVE_VSHLL_lw<"vshll", "u16", 0b01, 0b1, "$Qd, $Qm, #16">;
2914
2915multiclass MVE_VSHLL_patterns<MVEVectorVTInfo VTI, int top> {
2916  defvar suffix     = !strconcat(VTI.Suffix, !if(top, "th", "bh"));
2917  defvar inst_imm   = !cast<MVE_VSHLL_imm>("MVE_VSHLL_imm" # suffix);
2918  defvar inst_lw    = !cast<MVE_VSHLL_by_lane_width>("MVE_VSHLL_lw" # suffix);
2919  defvar unpred_int = int_arm_mve_vshll_imm;
2920  defvar pred_int   = int_arm_mve_vshll_imm_predicated;
2921  defvar imm        = inst_imm.immediateType;
2922
2923  def : Pat<(VTI.DblVec (unpred_int (VTI.Vec MQPR:$src), imm:$imm,
2924                                    (i32 VTI.Unsigned), (i32 top))),
2925            (VTI.DblVec (inst_imm   (VTI.Vec MQPR:$src), imm:$imm))>;
2926  def : Pat<(VTI.DblVec (unpred_int (VTI.Vec MQPR:$src), (i32 VTI.LaneBits),
2927                                    (i32 VTI.Unsigned), (i32 top))),
2928            (VTI.DblVec (inst_lw    (VTI.Vec MQPR:$src)))>;
2929
2930  def : Pat<(VTI.DblVec (pred_int   (VTI.Vec MQPR:$src), imm:$imm,
2931                                    (i32 VTI.Unsigned), (i32 top),
2932                                    (VTI.DblPred VCCR:$mask),
2933                                    (VTI.DblVec MQPR:$inactive))),
2934            (VTI.DblVec (inst_imm   (VTI.Vec MQPR:$src), imm:$imm,
2935                                    ARMVCCThen, (VTI.DblPred VCCR:$mask),
2936                                    (VTI.DblVec MQPR:$inactive)))>;
2937  def : Pat<(VTI.DblVec (pred_int   (VTI.Vec MQPR:$src), (i32 VTI.LaneBits),
2938                                    (i32 VTI.Unsigned), (i32 top),
2939                                    (VTI.DblPred VCCR:$mask),
2940                                    (VTI.DblVec MQPR:$inactive))),
2941            (VTI.DblVec (inst_lw    (VTI.Vec MQPR:$src), ARMVCCThen,
2942                                    (VTI.DblPred VCCR:$mask),
2943                                    (VTI.DblVec MQPR:$inactive)))>;
2944}
2945
2946foreach VTI = [MVE_v16s8, MVE_v8s16, MVE_v16u8, MVE_v8u16] in
2947  foreach top = [0, 1] in
2948    defm : MVE_VSHLL_patterns<VTI, top>;
2949
2950class MVE_shift_imm_partial<Operand imm, string iname, string suffix>
2951  : MVE_shift_imm<(outs MQPR:$Qd), (ins MQPR:$QdSrc, MQPR:$Qm, imm:$imm),
2952                  iname, suffix, "$Qd, $Qm, $imm", vpred_n, "$Qd = $QdSrc"> {
2953  Operand immediateType = imm;
2954}
2955
2956class MVE_VxSHRN<string iname, string suffix, bit bit_12, bit bit_28,
2957                 Operand imm, list<dag> pattern=[]>
2958  : MVE_shift_imm_partial<imm, iname, suffix> {
2959  bits<5> imm;
2960
2961  let Inst{28} = bit_28;
2962  let Inst{25-23} = 0b101;
2963  let Inst{21} = 0b0;
2964  let Inst{20-16} = imm{4-0};
2965  let Inst{12} = bit_12;
2966  let Inst{11-6} = 0b111111;
2967  let Inst{4} = 0b0;
2968  let Inst{0} = 0b1;
2969  let validForTailPredication = 1;
2970  let retainsPreviousHalfElement = 1;
2971}
2972
2973def MVE_VRSHRNi16bh : MVE_VxSHRN<"vrshrnb", "i16", 0b0, 0b1, shr_imm8> {
2974  let Inst{20-19} = 0b01;
2975}
2976def MVE_VRSHRNi16th : MVE_VxSHRN<"vrshrnt", "i16", 0b1, 0b1, shr_imm8> {
2977  let Inst{20-19} = 0b01;
2978}
2979def MVE_VRSHRNi32bh : MVE_VxSHRN<"vrshrnb", "i32", 0b0, 0b1, shr_imm16> {
2980  let Inst{20} = 0b1;
2981}
2982def MVE_VRSHRNi32th : MVE_VxSHRN<"vrshrnt", "i32", 0b1, 0b1, shr_imm16> {
2983  let Inst{20} = 0b1;
2984}
2985
2986def MVE_VSHRNi16bh : MVE_VxSHRN<"vshrnb", "i16", 0b0, 0b0, shr_imm8> {
2987  let Inst{20-19} = 0b01;
2988}
2989def MVE_VSHRNi16th : MVE_VxSHRN<"vshrnt", "i16", 0b1, 0b0, shr_imm8> {
2990  let Inst{20-19} = 0b01;
2991}
2992def MVE_VSHRNi32bh : MVE_VxSHRN<"vshrnb", "i32", 0b0, 0b0, shr_imm16> {
2993  let Inst{20} = 0b1;
2994}
2995def MVE_VSHRNi32th : MVE_VxSHRN<"vshrnt", "i32", 0b1, 0b0, shr_imm16> {
2996  let Inst{20} = 0b1;
2997}
2998
2999class MVE_VxQRSHRUN<string iname, string suffix, bit bit_28, bit bit_12,
3000                    Operand imm, list<dag> pattern=[]>
3001  : MVE_shift_imm_partial<imm, iname, suffix> {
3002  bits<5> imm;
3003
3004  let Inst{28} = bit_28;
3005  let Inst{25-23} = 0b101;
3006  let Inst{21} = 0b0;
3007  let Inst{20-16} = imm{4-0};
3008  let Inst{12} = bit_12;
3009  let Inst{11-6} = 0b111111;
3010  let Inst{4} = 0b0;
3011  let Inst{0} = 0b0;
3012  let validForTailPredication = 1;
3013  let retainsPreviousHalfElement = 1;
3014}
3015
3016def MVE_VQRSHRUNs16bh : MVE_VxQRSHRUN<
3017    "vqrshrunb", "s16", 0b1, 0b0, shr_imm8> {
3018  let Inst{20-19} = 0b01;
3019}
3020def MVE_VQRSHRUNs16th : MVE_VxQRSHRUN<
3021    "vqrshrunt", "s16", 0b1, 0b1, shr_imm8> {
3022  let Inst{20-19} = 0b01;
3023}
3024def MVE_VQRSHRUNs32bh : MVE_VxQRSHRUN<
3025    "vqrshrunb", "s32", 0b1, 0b0, shr_imm16> {
3026  let Inst{20} = 0b1;
3027}
3028def MVE_VQRSHRUNs32th : MVE_VxQRSHRUN<
3029    "vqrshrunt", "s32", 0b1, 0b1, shr_imm16> {
3030  let Inst{20} = 0b1;
3031}
3032
3033def MVE_VQSHRUNs16bh : MVE_VxQRSHRUN<
3034    "vqshrunb", "s16", 0b0, 0b0, shr_imm8> {
3035  let Inst{20-19} = 0b01;
3036}
3037def MVE_VQSHRUNs16th : MVE_VxQRSHRUN<
3038    "vqshrunt", "s16", 0b0, 0b1, shr_imm8> {
3039  let Inst{20-19} = 0b01;
3040}
3041def MVE_VQSHRUNs32bh : MVE_VxQRSHRUN<
3042    "vqshrunb", "s32", 0b0, 0b0, shr_imm16> {
3043  let Inst{20} = 0b1;
3044}
3045def MVE_VQSHRUNs32th : MVE_VxQRSHRUN<
3046    "vqshrunt", "s32", 0b0, 0b1, shr_imm16> {
3047  let Inst{20} = 0b1;
3048}
3049
3050class MVE_VxQRSHRN<string iname, string suffix, bit bit_0, bit bit_12,
3051                   Operand imm, list<dag> pattern=[]>
3052  : MVE_shift_imm_partial<imm, iname, suffix> {
3053  bits<5> imm;
3054
3055  let Inst{25-23} = 0b101;
3056  let Inst{21} = 0b0;
3057  let Inst{20-16} = imm{4-0};
3058  let Inst{12} = bit_12;
3059  let Inst{11-6} = 0b111101;
3060  let Inst{4} = 0b0;
3061  let Inst{0} = bit_0;
3062  let validForTailPredication = 1;
3063  let retainsPreviousHalfElement = 1;
3064}
3065
3066multiclass MVE_VxQRSHRN_types<string iname, bit bit_0, bit bit_12> {
3067  def s16 : MVE_VxQRSHRN<iname, "s16", bit_0, bit_12, shr_imm8> {
3068    let Inst{28} = 0b0;
3069    let Inst{20-19} = 0b01;
3070  }
3071  def u16 : MVE_VxQRSHRN<iname, "u16", bit_0, bit_12, shr_imm8> {
3072    let Inst{28} = 0b1;
3073    let Inst{20-19} = 0b01;
3074  }
3075  def s32 : MVE_VxQRSHRN<iname, "s32", bit_0, bit_12, shr_imm16> {
3076    let Inst{28} = 0b0;
3077    let Inst{20} = 0b1;
3078  }
3079  def u32 : MVE_VxQRSHRN<iname, "u32", bit_0, bit_12, shr_imm16> {
3080    let Inst{28} = 0b1;
3081    let Inst{20} = 0b1;
3082  }
3083}
3084
3085defm MVE_VQRSHRNbh : MVE_VxQRSHRN_types<"vqrshrnb", 0b1, 0b0>;
3086defm MVE_VQRSHRNth : MVE_VxQRSHRN_types<"vqrshrnt", 0b1, 0b1>;
3087defm MVE_VQSHRNbh  : MVE_VxQRSHRN_types<"vqshrnb", 0b0, 0b0>;
3088defm MVE_VQSHRNth  : MVE_VxQRSHRN_types<"vqshrnt", 0b0, 0b1>;
3089
3090multiclass MVE_VSHRN_patterns<MVE_shift_imm_partial inst,
3091                              MVEVectorVTInfo OutVTI, MVEVectorVTInfo InVTI,
3092                              bit q, bit r, bit top> {
3093  defvar inparams = (? (OutVTI.Vec MQPR:$QdSrc), (InVTI.Vec MQPR:$Qm),
3094                       (inst.immediateType:$imm), (i32 q), (i32 r),
3095                       (i32 OutVTI.Unsigned), (i32 InVTI.Unsigned), (i32 top));
3096  defvar outparams = (inst (OutVTI.Vec MQPR:$QdSrc), (InVTI.Vec MQPR:$Qm),
3097                           (imm:$imm));
3098
3099  def : Pat<(OutVTI.Vec !setdagop(inparams, int_arm_mve_vshrn)),
3100            (OutVTI.Vec outparams)>;
3101  def : Pat<(OutVTI.Vec !con(inparams, (int_arm_mve_vshrn_predicated
3102                                           (InVTI.Pred VCCR:$pred)))),
3103            (OutVTI.Vec !con(outparams, (? ARMVCCThen, VCCR:$pred)))>;
3104}
3105
3106defm : MVE_VSHRN_patterns<MVE_VSHRNi16bh,    MVE_v16s8, MVE_v8s16, 0,0,0>;
3107defm : MVE_VSHRN_patterns<MVE_VSHRNi16th,    MVE_v16s8, MVE_v8s16, 0,0,1>;
3108defm : MVE_VSHRN_patterns<MVE_VSHRNi32bh,    MVE_v8s16, MVE_v4s32, 0,0,0>;
3109defm : MVE_VSHRN_patterns<MVE_VSHRNi32th,    MVE_v8s16, MVE_v4s32, 0,0,1>;
3110defm : MVE_VSHRN_patterns<MVE_VSHRNi16bh,    MVE_v16u8, MVE_v8u16, 0,0,0>;
3111defm : MVE_VSHRN_patterns<MVE_VSHRNi16th,    MVE_v16u8, MVE_v8u16, 0,0,1>;
3112defm : MVE_VSHRN_patterns<MVE_VSHRNi32bh,    MVE_v8u16, MVE_v4u32, 0,0,0>;
3113defm : MVE_VSHRN_patterns<MVE_VSHRNi32th,    MVE_v8u16, MVE_v4u32, 0,0,1>;
3114defm : MVE_VSHRN_patterns<MVE_VRSHRNi16bh,   MVE_v16s8, MVE_v8s16, 0,1,0>;
3115defm : MVE_VSHRN_patterns<MVE_VRSHRNi16th,   MVE_v16s8, MVE_v8s16, 0,1,1>;
3116defm : MVE_VSHRN_patterns<MVE_VRSHRNi32bh,   MVE_v8s16, MVE_v4s32, 0,1,0>;
3117defm : MVE_VSHRN_patterns<MVE_VRSHRNi32th,   MVE_v8s16, MVE_v4s32, 0,1,1>;
3118defm : MVE_VSHRN_patterns<MVE_VRSHRNi16bh,   MVE_v16u8, MVE_v8u16, 0,1,0>;
3119defm : MVE_VSHRN_patterns<MVE_VRSHRNi16th,   MVE_v16u8, MVE_v8u16, 0,1,1>;
3120defm : MVE_VSHRN_patterns<MVE_VRSHRNi32bh,   MVE_v8u16, MVE_v4u32, 0,1,0>;
3121defm : MVE_VSHRN_patterns<MVE_VRSHRNi32th,   MVE_v8u16, MVE_v4u32, 0,1,1>;
3122defm : MVE_VSHRN_patterns<MVE_VQSHRNbhs16,   MVE_v16s8, MVE_v8s16, 1,0,0>;
3123defm : MVE_VSHRN_patterns<MVE_VQSHRNths16,   MVE_v16s8, MVE_v8s16, 1,0,1>;
3124defm : MVE_VSHRN_patterns<MVE_VQSHRNbhs32,   MVE_v8s16, MVE_v4s32, 1,0,0>;
3125defm : MVE_VSHRN_patterns<MVE_VQSHRNths32,   MVE_v8s16, MVE_v4s32, 1,0,1>;
3126defm : MVE_VSHRN_patterns<MVE_VQSHRNbhu16,   MVE_v16u8, MVE_v8u16, 1,0,0>;
3127defm : MVE_VSHRN_patterns<MVE_VQSHRNthu16,   MVE_v16u8, MVE_v8u16, 1,0,1>;
3128defm : MVE_VSHRN_patterns<MVE_VQSHRNbhu32,   MVE_v8u16, MVE_v4u32, 1,0,0>;
3129defm : MVE_VSHRN_patterns<MVE_VQSHRNthu32,   MVE_v8u16, MVE_v4u32, 1,0,1>;
3130defm : MVE_VSHRN_patterns<MVE_VQRSHRNbhs16,  MVE_v16s8, MVE_v8s16, 1,1,0>;
3131defm : MVE_VSHRN_patterns<MVE_VQRSHRNths16,  MVE_v16s8, MVE_v8s16, 1,1,1>;
3132defm : MVE_VSHRN_patterns<MVE_VQRSHRNbhs32,  MVE_v8s16, MVE_v4s32, 1,1,0>;
3133defm : MVE_VSHRN_patterns<MVE_VQRSHRNths32,  MVE_v8s16, MVE_v4s32, 1,1,1>;
3134defm : MVE_VSHRN_patterns<MVE_VQRSHRNbhu16,  MVE_v16u8, MVE_v8u16, 1,1,0>;
3135defm : MVE_VSHRN_patterns<MVE_VQRSHRNthu16,  MVE_v16u8, MVE_v8u16, 1,1,1>;
3136defm : MVE_VSHRN_patterns<MVE_VQRSHRNbhu32,  MVE_v8u16, MVE_v4u32, 1,1,0>;
3137defm : MVE_VSHRN_patterns<MVE_VQRSHRNthu32,  MVE_v8u16, MVE_v4u32, 1,1,1>;
3138defm : MVE_VSHRN_patterns<MVE_VQSHRUNs16bh,  MVE_v16u8, MVE_v8s16, 1,0,0>;
3139defm : MVE_VSHRN_patterns<MVE_VQSHRUNs16th,  MVE_v16u8, MVE_v8s16, 1,0,1>;
3140defm : MVE_VSHRN_patterns<MVE_VQSHRUNs32bh,  MVE_v8u16, MVE_v4s32, 1,0,0>;
3141defm : MVE_VSHRN_patterns<MVE_VQSHRUNs32th,  MVE_v8u16, MVE_v4s32, 1,0,1>;
3142defm : MVE_VSHRN_patterns<MVE_VQRSHRUNs16bh, MVE_v16u8, MVE_v8s16, 1,1,0>;
3143defm : MVE_VSHRN_patterns<MVE_VQRSHRUNs16th, MVE_v16u8, MVE_v8s16, 1,1,1>;
3144defm : MVE_VSHRN_patterns<MVE_VQRSHRUNs32bh, MVE_v8u16, MVE_v4s32, 1,1,0>;
3145defm : MVE_VSHRN_patterns<MVE_VQRSHRUNs32th, MVE_v8u16, MVE_v4s32, 1,1,1>;
3146
3147// end of mve_imm_shift instructions
3148
3149// start of mve_shift instructions
3150
3151class MVE_shift_by_vec<string iname, string suffix, bit U,
3152                       bits<2> size, bit bit_4, bit bit_8>
3153  : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qm, MQPR:$Qn), NoItinerary,
3154           iname, suffix, "$Qd, $Qm, $Qn", vpred_r, "", []> {
3155  // Shift instructions which take a vector of shift counts
3156  bits<4> Qd;
3157  bits<4> Qm;
3158  bits<4> Qn;
3159
3160  let Inst{28} = U;
3161  let Inst{25-24} = 0b11;
3162  let Inst{23} = 0b0;
3163  let Inst{22} = Qd{3};
3164  let Inst{21-20} = size;
3165  let Inst{19-17} = Qn{2-0};
3166  let Inst{16} = 0b0;
3167  let Inst{15-13} = Qd{2-0};
3168  let Inst{12-9} = 0b0010;
3169  let Inst{8} = bit_8;
3170  let Inst{7} = Qn{3};
3171  let Inst{6} = 0b1;
3172  let Inst{5} = Qm{3};
3173  let Inst{4} = bit_4;
3174  let Inst{3-1} = Qm{2-0};
3175  let Inst{0} = 0b0;
3176  let validForTailPredication = 1;
3177}
3178
3179multiclass MVE_shift_by_vec_p<string iname, MVEVectorVTInfo VTI, bit q, bit r> {
3180  def "" : MVE_shift_by_vec<iname, VTI.Suffix, VTI.Unsigned, VTI.Size, q, r>;
3181  defvar Inst = !cast<Instruction>(NAME);
3182
3183  def : Pat<(VTI.Vec (int_arm_mve_vshl_vector
3184                         (VTI.Vec MQPR:$in), (VTI.Vec MQPR:$sh),
3185                         (i32 q), (i32 r), (i32 VTI.Unsigned))),
3186            (VTI.Vec (Inst (VTI.Vec MQPR:$in), (VTI.Vec MQPR:$sh)))>;
3187
3188  def : Pat<(VTI.Vec (int_arm_mve_vshl_vector_predicated
3189                         (VTI.Vec MQPR:$in), (VTI.Vec MQPR:$sh),
3190                         (i32 q), (i32 r), (i32 VTI.Unsigned),
3191                         (VTI.Pred VCCR:$mask), (VTI.Vec MQPR:$inactive))),
3192            (VTI.Vec (Inst (VTI.Vec MQPR:$in), (VTI.Vec MQPR:$sh),
3193                           ARMVCCThen, (VTI.Pred VCCR:$mask),
3194                           (VTI.Vec MQPR:$inactive)))>;
3195}
3196
3197multiclass mve_shift_by_vec_multi<string iname, bit bit_4, bit bit_8> {
3198  defm s8  : MVE_shift_by_vec_p<iname, MVE_v16s8, bit_4, bit_8>;
3199  defm s16 : MVE_shift_by_vec_p<iname, MVE_v8s16, bit_4, bit_8>;
3200  defm s32 : MVE_shift_by_vec_p<iname, MVE_v4s32, bit_4, bit_8>;
3201  defm u8  : MVE_shift_by_vec_p<iname, MVE_v16u8, bit_4, bit_8>;
3202  defm u16 : MVE_shift_by_vec_p<iname, MVE_v8u16, bit_4, bit_8>;
3203  defm u32 : MVE_shift_by_vec_p<iname, MVE_v4u32, bit_4, bit_8>;
3204}
3205
3206defm MVE_VSHL_by_vec   : mve_shift_by_vec_multi<"vshl",   0b0, 0b0>;
3207defm MVE_VQSHL_by_vec  : mve_shift_by_vec_multi<"vqshl",  0b1, 0b0>;
3208defm MVE_VQRSHL_by_vec : mve_shift_by_vec_multi<"vqrshl", 0b1, 0b1>;
3209defm MVE_VRSHL_by_vec  : mve_shift_by_vec_multi<"vrshl",  0b0, 0b1>;
3210
3211let Predicates = [HasMVEInt] in {
3212  def : Pat<(v4i32 (ARMvshlu (v4i32 MQPR:$Qm), (v4i32 MQPR:$Qn))),
3213            (v4i32 (MVE_VSHL_by_vecu32 (v4i32 MQPR:$Qm), (v4i32 MQPR:$Qn)))>;
3214  def : Pat<(v8i16 (ARMvshlu (v8i16 MQPR:$Qm), (v8i16 MQPR:$Qn))),
3215            (v8i16 (MVE_VSHL_by_vecu16 (v8i16 MQPR:$Qm), (v8i16 MQPR:$Qn)))>;
3216  def : Pat<(v16i8 (ARMvshlu (v16i8 MQPR:$Qm), (v16i8 MQPR:$Qn))),
3217            (v16i8 (MVE_VSHL_by_vecu8 (v16i8 MQPR:$Qm), (v16i8 MQPR:$Qn)))>;
3218
3219  def : Pat<(v4i32 (ARMvshls (v4i32 MQPR:$Qm), (v4i32 MQPR:$Qn))),
3220            (v4i32 (MVE_VSHL_by_vecs32 (v4i32 MQPR:$Qm), (v4i32 MQPR:$Qn)))>;
3221  def : Pat<(v8i16 (ARMvshls (v8i16 MQPR:$Qm), (v8i16 MQPR:$Qn))),
3222            (v8i16 (MVE_VSHL_by_vecs16 (v8i16 MQPR:$Qm), (v8i16 MQPR:$Qn)))>;
3223  def : Pat<(v16i8 (ARMvshls (v16i8 MQPR:$Qm), (v16i8 MQPR:$Qn))),
3224            (v16i8 (MVE_VSHL_by_vecs8 (v16i8 MQPR:$Qm), (v16i8 MQPR:$Qn)))>;
3225}
3226
3227class MVE_shift_with_imm<string iname, string suffix, dag oops, dag iops,
3228                         string ops, vpred_ops vpred, string cstr,
3229                         list<dag> pattern=[]>
3230  : MVE_p<oops, iops, NoItinerary, iname, suffix, ops, vpred, cstr, pattern> {
3231  bits<4> Qd;
3232  bits<4> Qm;
3233
3234  let Inst{23} = 0b1;
3235  let Inst{22} = Qd{3};
3236  let Inst{15-13} = Qd{2-0};
3237  let Inst{12-11} = 0b00;
3238  let Inst{7-6} = 0b01;
3239  let Inst{5} = Qm{3};
3240  let Inst{4} = 0b1;
3241  let Inst{3-1} = Qm{2-0};
3242  let Inst{0} = 0b0;
3243  let validForTailPredication = 1;
3244
3245  // For the MVE_shift_imm_patterns multiclass to refer to
3246  MVEVectorVTInfo VTI;
3247  Operand immediateType;
3248  Intrinsic unpred_int;
3249  Intrinsic pred_int;
3250  dag unsignedFlag = (?);
3251}
3252
3253class MVE_VSxI_imm<string iname, string suffix, bit bit_8, Operand immType>
3254  : MVE_shift_with_imm<iname, suffix, (outs MQPR:$Qd),
3255                       (ins MQPR:$Qd_src, MQPR:$Qm, immType:$imm),
3256                       "$Qd, $Qm, $imm", vpred_n, "$Qd = $Qd_src"> {
3257  bits<6> imm;
3258  let Inst{28} = 0b1;
3259  let Inst{25-24} = 0b11;
3260  let Inst{21-16} = imm;
3261  let Inst{10-9} = 0b10;
3262  let Inst{8} = bit_8;
3263  let validForTailPredication = 1;
3264
3265  Operand immediateType = immType;
3266}
3267
3268def MVE_VSRIimm8 : MVE_VSxI_imm<"vsri", "8", 0b0, shr_imm8> {
3269  let Inst{21-19} = 0b001;
3270}
3271
3272def MVE_VSRIimm16 : MVE_VSxI_imm<"vsri", "16", 0b0, shr_imm16> {
3273  let Inst{21-20} = 0b01;
3274}
3275
3276def MVE_VSRIimm32 : MVE_VSxI_imm<"vsri", "32", 0b0, shr_imm32> {
3277  let Inst{21} = 0b1;
3278}
3279
3280def MVE_VSLIimm8 : MVE_VSxI_imm<"vsli", "8", 0b1, imm0_7> {
3281  let Inst{21-19} = 0b001;
3282}
3283
3284def MVE_VSLIimm16 : MVE_VSxI_imm<"vsli", "16", 0b1, imm0_15> {
3285  let Inst{21-20} = 0b01;
3286}
3287
3288def MVE_VSLIimm32 : MVE_VSxI_imm<"vsli", "32", 0b1,imm0_31> {
3289  let Inst{21} = 0b1;
3290}
3291
3292multiclass MVE_VSxI_patterns<MVE_VSxI_imm inst, string name,
3293                              MVEVectorVTInfo VTI> {
3294  defvar inparams = (? (VTI.Vec MQPR:$QdSrc), (VTI.Vec MQPR:$Qm),
3295                       (inst.immediateType:$imm));
3296  defvar outparams = (inst (VTI.Vec MQPR:$QdSrc), (VTI.Vec MQPR:$Qm),
3297                           (inst.immediateType:$imm));
3298  defvar unpred_int = !cast<Intrinsic>("int_arm_mve_" # name);
3299  defvar pred_int = !cast<Intrinsic>("int_arm_mve_" # name # "_predicated");
3300
3301  def : Pat<(VTI.Vec !setdagop(inparams, unpred_int)),
3302            (VTI.Vec outparams)>;
3303  def : Pat<(VTI.Vec !con(inparams, (pred_int (VTI.Pred VCCR:$pred)))),
3304            (VTI.Vec !con(outparams, (? ARMVCCThen, VCCR:$pred)))>;
3305}
3306
3307defm : MVE_VSxI_patterns<MVE_VSLIimm8,  "vsli", MVE_v16i8>;
3308defm : MVE_VSxI_patterns<MVE_VSLIimm16, "vsli", MVE_v8i16>;
3309defm : MVE_VSxI_patterns<MVE_VSLIimm32, "vsli", MVE_v4i32>;
3310defm : MVE_VSxI_patterns<MVE_VSRIimm8,  "vsri", MVE_v16i8>;
3311defm : MVE_VSxI_patterns<MVE_VSRIimm16, "vsri", MVE_v8i16>;
3312defm : MVE_VSxI_patterns<MVE_VSRIimm32, "vsri", MVE_v4i32>;
3313
3314class MVE_VQSHL_imm<MVEVectorVTInfo VTI_, Operand immType>
3315  : MVE_shift_with_imm<"vqshl", VTI_.Suffix, (outs MQPR:$Qd),
3316                       (ins MQPR:$Qm, immType:$imm), "$Qd, $Qm, $imm",
3317                       vpred_r, ""> {
3318  bits<6> imm;
3319
3320  let Inst{28} = VTI_.Unsigned;
3321  let Inst{25-24} = 0b11;
3322  let Inst{21-16} = imm;
3323  let Inst{10-8} = 0b111;
3324
3325  let VTI = VTI_;
3326  let immediateType = immType;
3327  let unsignedFlag = (? (i32 VTI.Unsigned));
3328}
3329
3330let unpred_int = int_arm_mve_vqshl_imm,
3331    pred_int = int_arm_mve_vqshl_imm_predicated in {
3332  def MVE_VQSHLimms8 : MVE_VQSHL_imm<MVE_v16s8, imm0_7> {
3333    let Inst{21-19} = 0b001;
3334  }
3335  def MVE_VQSHLimmu8 : MVE_VQSHL_imm<MVE_v16u8, imm0_7> {
3336    let Inst{21-19} = 0b001;
3337  }
3338
3339  def MVE_VQSHLimms16 : MVE_VQSHL_imm<MVE_v8s16, imm0_15> {
3340    let Inst{21-20} = 0b01;
3341  }
3342  def MVE_VQSHLimmu16 : MVE_VQSHL_imm<MVE_v8u16, imm0_15> {
3343    let Inst{21-20} = 0b01;
3344  }
3345
3346  def MVE_VQSHLimms32 : MVE_VQSHL_imm<MVE_v4s32, imm0_31> {
3347    let Inst{21} = 0b1;
3348  }
3349  def MVE_VQSHLimmu32 : MVE_VQSHL_imm<MVE_v4u32, imm0_31> {
3350    let Inst{21} = 0b1;
3351  }
3352}
3353
3354class MVE_VQSHLU_imm<MVEVectorVTInfo VTI_, Operand immType>
3355  : MVE_shift_with_imm<"vqshlu", VTI_.Suffix, (outs MQPR:$Qd),
3356                       (ins MQPR:$Qm, immType:$imm), "$Qd, $Qm, $imm",
3357                       vpred_r, ""> {
3358  bits<6> imm;
3359
3360  let Inst{28} = 0b1;
3361  let Inst{25-24} = 0b11;
3362  let Inst{21-16} = imm;
3363  let Inst{10-8} = 0b110;
3364
3365  let VTI = VTI_;
3366  let immediateType = immType;
3367}
3368
3369let unpred_int = int_arm_mve_vqshlu_imm,
3370    pred_int = int_arm_mve_vqshlu_imm_predicated in {
3371  def MVE_VQSHLU_imms8 : MVE_VQSHLU_imm<MVE_v16s8, imm0_7> {
3372    let Inst{21-19} = 0b001;
3373  }
3374
3375  def MVE_VQSHLU_imms16 : MVE_VQSHLU_imm<MVE_v8s16, imm0_15> {
3376    let Inst{21-20} = 0b01;
3377  }
3378
3379  def MVE_VQSHLU_imms32 : MVE_VQSHLU_imm<MVE_v4s32, imm0_31> {
3380    let Inst{21} = 0b1;
3381  }
3382}
3383
3384class MVE_VRSHR_imm<MVEVectorVTInfo VTI_, Operand immType>
3385  : MVE_shift_with_imm<"vrshr", VTI_.Suffix, (outs MQPR:$Qd),
3386                       (ins MQPR:$Qm, immType:$imm), "$Qd, $Qm, $imm",
3387                       vpred_r, ""> {
3388  bits<6> imm;
3389
3390  let Inst{28} = VTI_.Unsigned;
3391  let Inst{25-24} = 0b11;
3392  let Inst{21-16} = imm;
3393  let Inst{10-8} = 0b010;
3394
3395  let VTI = VTI_;
3396  let immediateType = immType;
3397  let unsignedFlag = (? (i32 VTI.Unsigned));
3398}
3399
3400let unpred_int = int_arm_mve_vrshr_imm,
3401    pred_int = int_arm_mve_vrshr_imm_predicated in {
3402  def MVE_VRSHR_imms8 : MVE_VRSHR_imm<MVE_v16s8, shr_imm8> {
3403    let Inst{21-19} = 0b001;
3404  }
3405
3406  def MVE_VRSHR_immu8 : MVE_VRSHR_imm<MVE_v16u8, shr_imm8> {
3407    let Inst{21-19} = 0b001;
3408  }
3409
3410  def MVE_VRSHR_imms16 : MVE_VRSHR_imm<MVE_v8s16, shr_imm16> {
3411    let Inst{21-20} = 0b01;
3412  }
3413
3414  def MVE_VRSHR_immu16 : MVE_VRSHR_imm<MVE_v8u16, shr_imm16> {
3415    let Inst{21-20} = 0b01;
3416  }
3417
3418  def MVE_VRSHR_imms32 : MVE_VRSHR_imm<MVE_v4s32, shr_imm32> {
3419    let Inst{21} = 0b1;
3420  }
3421
3422  def MVE_VRSHR_immu32 : MVE_VRSHR_imm<MVE_v4u32, shr_imm32> {
3423    let Inst{21} = 0b1;
3424  }
3425}
3426
3427multiclass MVE_shift_imm_patterns<MVE_shift_with_imm inst> {
3428  def : Pat<(inst.VTI.Vec !con((inst.unpred_int (inst.VTI.Vec MQPR:$src),
3429                                                inst.immediateType:$imm),
3430                               inst.unsignedFlag)),
3431            (inst.VTI.Vec (inst (inst.VTI.Vec MQPR:$src),
3432                                inst.immediateType:$imm))>;
3433
3434  def : Pat<(inst.VTI.Vec !con((inst.pred_int (inst.VTI.Vec MQPR:$src),
3435                                              inst.immediateType:$imm),
3436                               inst.unsignedFlag,
3437                               (? (inst.VTI.Pred VCCR:$mask),
3438                                  (inst.VTI.Vec MQPR:$inactive)))),
3439            (inst.VTI.Vec (inst (inst.VTI.Vec MQPR:$src),
3440                                inst.immediateType:$imm,
3441                                ARMVCCThen, (inst.VTI.Pred VCCR:$mask),
3442                                (inst.VTI.Vec MQPR:$inactive)))>;
3443}
3444
3445defm : MVE_shift_imm_patterns<MVE_VQSHLimms8>;
3446defm : MVE_shift_imm_patterns<MVE_VQSHLimmu8>;
3447defm : MVE_shift_imm_patterns<MVE_VQSHLimms16>;
3448defm : MVE_shift_imm_patterns<MVE_VQSHLimmu16>;
3449defm : MVE_shift_imm_patterns<MVE_VQSHLimms32>;
3450defm : MVE_shift_imm_patterns<MVE_VQSHLimmu32>;
3451defm : MVE_shift_imm_patterns<MVE_VQSHLU_imms8>;
3452defm : MVE_shift_imm_patterns<MVE_VQSHLU_imms16>;
3453defm : MVE_shift_imm_patterns<MVE_VQSHLU_imms32>;
3454defm : MVE_shift_imm_patterns<MVE_VRSHR_imms8>;
3455defm : MVE_shift_imm_patterns<MVE_VRSHR_immu8>;
3456defm : MVE_shift_imm_patterns<MVE_VRSHR_imms16>;
3457defm : MVE_shift_imm_patterns<MVE_VRSHR_immu16>;
3458defm : MVE_shift_imm_patterns<MVE_VRSHR_imms32>;
3459defm : MVE_shift_imm_patterns<MVE_VRSHR_immu32>;
3460
3461class MVE_VSHR_imm<string suffix, dag imm>
3462  : MVE_shift_with_imm<"vshr", suffix, (outs MQPR:$Qd),
3463                       !con((ins MQPR:$Qm), imm), "$Qd, $Qm, $imm",
3464                       vpred_r, ""> {
3465  bits<6> imm;
3466
3467  let Inst{25-24} = 0b11;
3468  let Inst{21-16} = imm;
3469  let Inst{10-8} = 0b000;
3470}
3471
3472def MVE_VSHR_imms8 : MVE_VSHR_imm<"s8", (ins shr_imm8:$imm)> {
3473  let Inst{28} = 0b0;
3474  let Inst{21-19} = 0b001;
3475}
3476
3477def MVE_VSHR_immu8 : MVE_VSHR_imm<"u8", (ins shr_imm8:$imm)> {
3478  let Inst{28} = 0b1;
3479  let Inst{21-19} = 0b001;
3480}
3481
3482def MVE_VSHR_imms16 : MVE_VSHR_imm<"s16", (ins shr_imm16:$imm)> {
3483  let Inst{28} = 0b0;
3484  let Inst{21-20} = 0b01;
3485}
3486
3487def MVE_VSHR_immu16 : MVE_VSHR_imm<"u16", (ins shr_imm16:$imm)> {
3488  let Inst{28} = 0b1;
3489  let Inst{21-20} = 0b01;
3490}
3491
3492def MVE_VSHR_imms32 : MVE_VSHR_imm<"s32", (ins shr_imm32:$imm)> {
3493  let Inst{28} = 0b0;
3494  let Inst{21} = 0b1;
3495}
3496
3497def MVE_VSHR_immu32 : MVE_VSHR_imm<"u32", (ins shr_imm32:$imm)> {
3498  let Inst{28} = 0b1;
3499  let Inst{21} = 0b1;
3500}
3501
3502class MVE_VSHL_imm<string suffix, dag imm>
3503  : MVE_shift_with_imm<"vshl", suffix, (outs MQPR:$Qd),
3504                       !con((ins MQPR:$Qm), imm), "$Qd, $Qm, $imm",
3505                       vpred_r, ""> {
3506  bits<6> imm;
3507
3508  let Inst{28} = 0b0;
3509  let Inst{25-24} = 0b11;
3510  let Inst{21-16} = imm;
3511  let Inst{10-8} = 0b101;
3512}
3513
3514def MVE_VSHL_immi8 : MVE_VSHL_imm<"i8", (ins imm0_7:$imm)> {
3515  let Inst{21-19} = 0b001;
3516}
3517
3518def MVE_VSHL_immi16 : MVE_VSHL_imm<"i16", (ins imm0_15:$imm)> {
3519  let Inst{21-20} = 0b01;
3520}
3521
3522def MVE_VSHL_immi32 : MVE_VSHL_imm<"i32", (ins imm0_31:$imm)> {
3523  let Inst{21} = 0b1;
3524}
3525
3526multiclass MVE_immediate_shift_patterns_inner<
3527    MVEVectorVTInfo VTI, Operand imm_operand_type, SDNode unpred_op,
3528    Intrinsic pred_int, Instruction inst, list<int> unsignedFlag = []> {
3529
3530  def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$src), imm_operand_type:$imm)),
3531            (VTI.Vec (inst (VTI.Vec MQPR:$src), imm_operand_type:$imm))>;
3532
3533  def : Pat<(VTI.Vec !con((pred_int (VTI.Vec MQPR:$src), imm_operand_type:$imm),
3534                          !dag(pred_int, unsignedFlag, ?),
3535                          (pred_int (VTI.Pred VCCR:$mask),
3536                                   (VTI.Vec MQPR:$inactive)))),
3537            (VTI.Vec (inst (VTI.Vec MQPR:$src), imm_operand_type:$imm,
3538                           ARMVCCThen, (VTI.Pred VCCR:$mask),
3539                           (VTI.Vec MQPR:$inactive)))>;
3540}
3541
3542multiclass MVE_immediate_shift_patterns<MVEVectorVTInfo VTI,
3543                                        Operand imm_operand_type> {
3544  defm : MVE_immediate_shift_patterns_inner<VTI, imm_operand_type,
3545      ARMvshlImm, int_arm_mve_shl_imm_predicated,
3546      !cast<Instruction>("MVE_VSHL_immi" # VTI.BitsSuffix)>;
3547  defm : MVE_immediate_shift_patterns_inner<VTI, imm_operand_type,
3548      ARMvshruImm, int_arm_mve_shr_imm_predicated,
3549      !cast<Instruction>("MVE_VSHR_immu" # VTI.BitsSuffix), [1]>;
3550  defm : MVE_immediate_shift_patterns_inner<VTI, imm_operand_type,
3551      ARMvshrsImm, int_arm_mve_shr_imm_predicated,
3552      !cast<Instruction>("MVE_VSHR_imms" # VTI.BitsSuffix), [0]>;
3553}
3554
3555let Predicates = [HasMVEInt] in {
3556  defm : MVE_immediate_shift_patterns<MVE_v16i8, imm0_7>;
3557  defm : MVE_immediate_shift_patterns<MVE_v8i16, imm0_15>;
3558  defm : MVE_immediate_shift_patterns<MVE_v4i32, imm0_31>;
3559}
3560
3561// end of mve_shift instructions
3562
3563// start of MVE Floating Point instructions
3564
3565class MVE_float<string iname, string suffix, dag oops, dag iops, string ops,
3566                vpred_ops vpred, string cstr, list<dag> pattern=[]>
3567  : MVE_f<oops, iops, NoItinerary, iname, suffix, ops, vpred, cstr, pattern> {
3568  bits<4> Qm;
3569
3570  let Inst{12} = 0b0;
3571  let Inst{6} = 0b1;
3572  let Inst{5} = Qm{3};
3573  let Inst{3-1} = Qm{2-0};
3574  let Inst{0} = 0b0;
3575}
3576
3577class MVE_VRINT<string rmode, bits<3> op, string suffix, bits<2> size,
3578                list<dag> pattern=[]>
3579  : MVE_float<!strconcat("vrint", rmode), suffix, (outs MQPR:$Qd),
3580              (ins MQPR:$Qm), "$Qd, $Qm", vpred_r, "", pattern> {
3581  bits<4> Qd;
3582
3583  let Inst{28} = 0b1;
3584  let Inst{25-23} = 0b111;
3585  let Inst{22} = Qd{3};
3586  let Inst{21-20} = 0b11;
3587  let Inst{19-18} = size;
3588  let Inst{17-16} = 0b10;
3589  let Inst{15-13} = Qd{2-0};
3590  let Inst{11-10} = 0b01;
3591  let Inst{9-7} = op{2-0};
3592  let Inst{4} = 0b0;
3593  let validForTailPredication = 1;
3594
3595}
3596
3597multiclass MVE_VRINT_m<MVEVectorVTInfo VTI, string suffix, bits<3> opcode,
3598                       SDPatternOperator unpred_op> {
3599  def "": MVE_VRINT<suffix, opcode, VTI.Suffix, VTI.Size>;
3600  defvar Inst = !cast<Instruction>(NAME);
3601  defvar pred_int = !cast<Intrinsic>("int_arm_mve_vrint"#suffix#"_predicated");
3602
3603  let Predicates = [HasMVEFloat] in {
3604    def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$val))),
3605              (VTI.Vec (Inst (VTI.Vec MQPR:$val)))>;
3606    def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$val), (VTI.Pred VCCR:$pred),
3607                                 (VTI.Vec MQPR:$inactive))),
3608              (VTI.Vec (Inst (VTI.Vec MQPR:$val), ARMVCCThen,
3609                             (VTI.Pred VCCR:$pred), (VTI.Vec MQPR:$inactive)))>;
3610  }
3611}
3612
3613multiclass MVE_VRINT_ops<MVEVectorVTInfo VTI> {
3614  defm N : MVE_VRINT_m<VTI, "n", 0b000, int_arm_mve_vrintn>;
3615  defm X : MVE_VRINT_m<VTI, "x", 0b001, frint>;
3616  defm A : MVE_VRINT_m<VTI, "a", 0b010, fround>;
3617  defm Z : MVE_VRINT_m<VTI, "z", 0b011, ftrunc>;
3618  defm M : MVE_VRINT_m<VTI, "m", 0b101, ffloor>;
3619  defm P : MVE_VRINT_m<VTI, "p", 0b111, fceil>;
3620}
3621
3622defm MVE_VRINTf16 : MVE_VRINT_ops<MVE_v8f16>;
3623defm MVE_VRINTf32 : MVE_VRINT_ops<MVE_v4f32>;
3624
3625class MVEFloatArithNeon<string iname, string suffix, bit size,
3626                           dag oops, dag iops, string ops,
3627                           vpred_ops vpred, string cstr, list<dag> pattern=[]>
3628  : MVE_float<iname, suffix, oops, iops, ops, vpred, cstr, pattern> {
3629  let Inst{20} = size;
3630  let Inst{16} = 0b0;
3631}
3632
3633class MVE_VMUL_fp<string iname, string suffix, bit size, list<dag> pattern=[]>
3634  : MVEFloatArithNeon<iname, suffix, size, (outs MQPR:$Qd),
3635                      (ins MQPR:$Qn, MQPR:$Qm), "$Qd, $Qn, $Qm", vpred_r, "",
3636                      pattern> {
3637  bits<4> Qd;
3638  bits<4> Qn;
3639
3640  let Inst{28} = 0b1;
3641  let Inst{25-23} = 0b110;
3642  let Inst{22} = Qd{3};
3643  let Inst{21} = 0b0;
3644  let Inst{19-17} = Qn{2-0};
3645  let Inst{15-13} = Qd{2-0};
3646  let Inst{12-8} = 0b01101;
3647  let Inst{7} = Qn{3};
3648  let Inst{4} = 0b1;
3649  let validForTailPredication = 1;
3650}
3651
3652multiclass MVE_VMULT_fp_m<string iname, bit bit_21, MVEVectorVTInfo VTI,
3653                            SDNode Op, Intrinsic PredInt> {
3654  def "" : MVE_VMUL_fp<iname, VTI.Suffix, VTI.Size{0}>;
3655  defvar Inst = !cast<Instruction>(NAME);
3656
3657  let Predicates = [HasMVEFloat] in {
3658    defm : MVE_TwoOpPattern<VTI, Op, PredInt, (? ), !cast<Instruction>(NAME)>;
3659  }
3660}
3661
3662multiclass MVE_VMUL_fp_m<MVEVectorVTInfo VTI>
3663  : MVE_VMULT_fp_m<"vmul", 0, VTI, fmul, int_arm_mve_mul_predicated>;
3664
3665defm MVE_VMULf32 : MVE_VMUL_fp_m<MVE_v4f32>;
3666defm MVE_VMULf16 : MVE_VMUL_fp_m<MVE_v8f16>;
3667
3668class MVE_VCMLA<string suffix, bit size>
3669  : MVEFloatArithNeon<"vcmla", suffix, size, (outs MQPR:$Qd),
3670                         (ins MQPR:$Qd_src, MQPR:$Qn, MQPR:$Qm, complexrotateop:$rot),
3671                         "$Qd, $Qn, $Qm, $rot", vpred_n, "$Qd = $Qd_src", []> {
3672  bits<4> Qd;
3673  bits<4> Qn;
3674  bits<2> rot;
3675
3676  let Inst{28} = 0b1;
3677  let Inst{25} = 0b0;
3678  let Inst{24-23} = rot;
3679  let Inst{22} = Qd{3};
3680  let Inst{21} = 0b1;
3681  let Inst{19-17} = Qn{2-0};
3682  let Inst{15-13} = Qd{2-0};
3683  let Inst{12-8} = 0b01000;
3684  let Inst{7} = Qn{3};
3685  let Inst{4} = 0b0;
3686}
3687
3688multiclass MVE_VCMLA_m<MVEVectorVTInfo VTI, bit size> {
3689  def "" : MVE_VCMLA<VTI.Suffix, size>;
3690  defvar Inst = !cast<Instruction>(NAME);
3691
3692  let Predicates = [HasMVEFloat] in {
3693    def : Pat<(VTI.Vec (int_arm_mve_vcmlaq
3694                            imm:$rot, (VTI.Vec MQPR:$Qd_src),
3695                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))),
3696              (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src),
3697                             (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
3698                             imm:$rot))>;
3699
3700    def : Pat<(VTI.Vec (int_arm_mve_vcmlaq_predicated
3701                            imm:$rot, (VTI.Vec MQPR:$Qd_src),
3702                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
3703                            (VTI.Pred VCCR:$mask))),
3704              (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src), (VTI.Vec MQPR:$Qn),
3705                             (VTI.Vec MQPR:$Qm), imm:$rot,
3706                             ARMVCCThen, (VTI.Pred VCCR:$mask)))>;
3707
3708  }
3709}
3710
3711defm MVE_VCMLAf16 : MVE_VCMLA_m<MVE_v8f16, 0b0>;
3712defm MVE_VCMLAf32 : MVE_VCMLA_m<MVE_v4f32, 0b1>;
3713
3714class MVE_VADDSUBFMA_fp<string iname, string suffix, bit size, bit bit_4,
3715                        bit bit_8, bit bit_21, dag iops=(ins),
3716                        vpred_ops vpred=vpred_r, string cstr="",
3717                        list<dag> pattern=[]>
3718  : MVEFloatArithNeon<iname, suffix, size, (outs MQPR:$Qd),
3719                      !con(iops, (ins MQPR:$Qn, MQPR:$Qm)), "$Qd, $Qn, $Qm",
3720                      vpred, cstr, pattern> {
3721  bits<4> Qd;
3722  bits<4> Qn;
3723
3724  let Inst{28} = 0b0;
3725  let Inst{25-23} = 0b110;
3726  let Inst{22} = Qd{3};
3727  let Inst{21} = bit_21;
3728  let Inst{19-17} = Qn{2-0};
3729  let Inst{15-13} = Qd{2-0};
3730  let Inst{11-9} = 0b110;
3731  let Inst{8} = bit_8;
3732  let Inst{7} = Qn{3};
3733  let Inst{4} = bit_4;
3734  let validForTailPredication = 1;
3735}
3736
3737multiclass MVE_VFMA_fp_multi<string iname, bit fms, MVEVectorVTInfo VTI> {
3738  def "" : MVE_VADDSUBFMA_fp<iname, VTI.Suffix, VTI.Size{0}, 0b1, 0b0, fms,
3739                             (ins MQPR:$Qd_src), vpred_n, "$Qd = $Qd_src">;
3740  defvar Inst = !cast<Instruction>(NAME);
3741  defvar pred_int = int_arm_mve_fma_predicated;
3742  defvar m1   = (VTI.Vec MQPR:$m1);
3743  defvar m2   = (VTI.Vec MQPR:$m2);
3744  defvar add  = (VTI.Vec MQPR:$add);
3745  defvar pred = (VTI.Pred VCCR:$pred);
3746
3747  let Predicates = [HasMVEFloat] in {
3748    if fms then {
3749      def : Pat<(VTI.Vec (fma (fneg m1), m2, add)),
3750                (Inst $add, $m1, $m2)>;
3751      def : Pat<(VTI.Vec (vselect (VTI.Pred VCCR:$pred),
3752                                  (VTI.Vec (fma (fneg m1), m2, add)),
3753                                  add)),
3754                (Inst $add, $m1, $m2, ARMVCCThen, $pred)>;
3755      def : Pat<(VTI.Vec (pred_int (fneg m1), m2, add, pred)),
3756                (Inst $add, $m1, $m2, ARMVCCThen, $pred)>;
3757      def : Pat<(VTI.Vec (pred_int m1, (fneg m2), add, pred)),
3758                (Inst $add, $m1, $m2, ARMVCCThen, $pred)>;
3759    } else {
3760      def : Pat<(VTI.Vec (fma m1, m2, add)),
3761                (Inst $add, $m1, $m2)>;
3762      def : Pat<(VTI.Vec (vselect (VTI.Pred VCCR:$pred),
3763                                  (VTI.Vec (fma m1, m2, add)),
3764                                  add)),
3765                (Inst $add, $m1, $m2, ARMVCCThen, $pred)>;
3766      def : Pat<(VTI.Vec (pred_int m1, m2, add, pred)),
3767                (Inst $add, $m1, $m2, ARMVCCThen, $pred)>;
3768    }
3769  }
3770}
3771
3772defm MVE_VFMAf32 : MVE_VFMA_fp_multi<"vfma", 0, MVE_v4f32>;
3773defm MVE_VFMAf16 : MVE_VFMA_fp_multi<"vfma", 0, MVE_v8f16>;
3774defm MVE_VFMSf32 : MVE_VFMA_fp_multi<"vfms", 1, MVE_v4f32>;
3775defm MVE_VFMSf16 : MVE_VFMA_fp_multi<"vfms", 1, MVE_v8f16>;
3776
3777multiclass MVE_VADDSUB_fp_m<string iname, bit bit_21, MVEVectorVTInfo VTI,
3778                            SDNode Op, Intrinsic PredInt> {
3779  def "" : MVE_VADDSUBFMA_fp<iname, VTI.Suffix, VTI.Size{0}, 0, 1, bit_21> {
3780    let validForTailPredication = 1;
3781  }
3782  defvar Inst = !cast<Instruction>(NAME);
3783
3784  let Predicates = [HasMVEFloat] in {
3785    defm : MVE_TwoOpPattern<VTI, Op, PredInt, (? ), !cast<Instruction>(NAME)>;
3786  }
3787}
3788
3789multiclass MVE_VADD_fp_m<MVEVectorVTInfo VTI>
3790  : MVE_VADDSUB_fp_m<"vadd", 0, VTI, fadd, int_arm_mve_add_predicated>;
3791multiclass MVE_VSUB_fp_m<MVEVectorVTInfo VTI>
3792  : MVE_VADDSUB_fp_m<"vsub", 1, VTI, fsub, int_arm_mve_sub_predicated>;
3793
3794defm MVE_VADDf32 : MVE_VADD_fp_m<MVE_v4f32>;
3795defm MVE_VADDf16 : MVE_VADD_fp_m<MVE_v8f16>;
3796
3797defm MVE_VSUBf32 : MVE_VSUB_fp_m<MVE_v4f32>;
3798defm MVE_VSUBf16 : MVE_VSUB_fp_m<MVE_v8f16>;
3799
3800class MVE_VCADD<string suffix, bit size, string cstr="">
3801  : MVEFloatArithNeon<"vcadd", suffix, size, (outs MQPR:$Qd),
3802                         (ins MQPR:$Qn, MQPR:$Qm, complexrotateopodd:$rot),
3803                         "$Qd, $Qn, $Qm, $rot", vpred_r, cstr, []> {
3804  bits<4> Qd;
3805  bits<4> Qn;
3806  bit rot;
3807
3808  let Inst{28} = 0b1;
3809  let Inst{25} = 0b0;
3810  let Inst{24} = rot;
3811  let Inst{23} = 0b1;
3812  let Inst{22} = Qd{3};
3813  let Inst{21} = 0b0;
3814  let Inst{19-17} = Qn{2-0};
3815  let Inst{15-13} = Qd{2-0};
3816  let Inst{12-8} = 0b01000;
3817  let Inst{7} = Qn{3};
3818  let Inst{4} = 0b0;
3819}
3820
3821multiclass MVE_VCADD_m<MVEVectorVTInfo VTI, bit size, string cstr=""> {
3822  def "" : MVE_VCADD<VTI.Suffix, size, cstr>;
3823  defvar Inst = !cast<Instruction>(NAME);
3824
3825  let Predicates = [HasMVEFloat] in {
3826    def : Pat<(VTI.Vec (int_arm_mve_vcaddq (i32 1),
3827                            imm:$rot, (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))),
3828              (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
3829                             imm:$rot))>;
3830
3831    def : Pat<(VTI.Vec (int_arm_mve_vcaddq_predicated (i32 1),
3832                            imm:$rot, (VTI.Vec MQPR:$inactive),
3833                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
3834                            (VTI.Pred VCCR:$mask))),
3835              (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
3836                             imm:$rot, ARMVCCThen, (VTI.Pred VCCR:$mask),
3837                             (VTI.Vec MQPR:$inactive)))>;
3838
3839  }
3840}
3841
3842defm MVE_VCADDf16 : MVE_VCADD_m<MVE_v8f16, 0b0>;
3843defm MVE_VCADDf32 : MVE_VCADD_m<MVE_v4f32, 0b1, "@earlyclobber $Qd">;
3844
3845class MVE_VABD_fp<string suffix, bit size>
3846  : MVE_float<"vabd", suffix, (outs MQPR:$Qd), (ins MQPR:$Qn, MQPR:$Qm),
3847              "$Qd, $Qn, $Qm", vpred_r, ""> {
3848  bits<4> Qd;
3849  bits<4> Qn;
3850
3851  let Inst{28} = 0b1;
3852  let Inst{25-23} = 0b110;
3853  let Inst{22} = Qd{3};
3854  let Inst{21} = 0b1;
3855  let Inst{20} = size;
3856  let Inst{19-17} = Qn{2-0};
3857  let Inst{16} = 0b0;
3858  let Inst{15-13} = Qd{2-0};
3859  let Inst{11-8} = 0b1101;
3860  let Inst{7} = Qn{3};
3861  let Inst{4} = 0b0;
3862  let validForTailPredication = 1;
3863}
3864
3865multiclass MVE_VABDT_fp_m<MVEVectorVTInfo VTI,
3866                            Intrinsic unpred_int, Intrinsic pred_int> {
3867  def "" : MVE_VABD_fp<VTI.Suffix, VTI.Size{0}>;
3868  defvar Inst = !cast<Instruction>(NAME);
3869
3870  let Predicates = [HasMVEFloat] in {
3871    def : Pat<(VTI.Vec (unpred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
3872                            (i32 0))),
3873              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>;
3874    def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
3875                            (i32 0), (VTI.Pred VCCR:$mask),
3876                            (VTI.Vec MQPR:$inactive))),
3877              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
3878                             ARMVCCThen, (VTI.Pred VCCR:$mask),
3879                             (VTI.Vec MQPR:$inactive)))>;
3880  }
3881}
3882
3883multiclass MVE_VABD_fp_m<MVEVectorVTInfo VTI>
3884  : MVE_VABDT_fp_m<VTI, int_arm_mve_vabd, int_arm_mve_abd_predicated>;
3885
3886defm MVE_VABDf32 : MVE_VABD_fp_m<MVE_v4f32>;
3887defm MVE_VABDf16 : MVE_VABD_fp_m<MVE_v8f16>;
3888
3889let Predicates = [HasMVEFloat] in {
3890  def : Pat<(v8f16 (fabs (fsub (v8f16 MQPR:$Qm), (v8f16 MQPR:$Qn)))),
3891            (MVE_VABDf16 MQPR:$Qm, MQPR:$Qn)>;
3892  def : Pat<(v4f32 (fabs (fsub (v4f32 MQPR:$Qm), (v4f32 MQPR:$Qn)))),
3893            (MVE_VABDf32 MQPR:$Qm, MQPR:$Qn)>;
3894}
3895
3896class MVE_VCVT_fix<string suffix, bit fsi, bit U, bit op,
3897                   Operand imm_operand_type>
3898  : MVE_float<"vcvt", suffix,
3899              (outs MQPR:$Qd), (ins MQPR:$Qm, imm_operand_type:$imm6),
3900              "$Qd, $Qm, $imm6", vpred_r, "", []> {
3901  bits<4> Qd;
3902  bits<6> imm6;
3903
3904  let Inst{28} = U;
3905  let Inst{25-23} = 0b111;
3906  let Inst{22} = Qd{3};
3907  let Inst{21} = 0b1;
3908  let Inst{19-16} = imm6{3-0};
3909  let Inst{15-13} = Qd{2-0};
3910  let Inst{11-10} = 0b11;
3911  let Inst{9} = fsi;
3912  let Inst{8} = op;
3913  let Inst{7} = 0b0;
3914  let Inst{4} = 0b1;
3915
3916  let DecoderMethod = "DecodeMVEVCVTt1fp";
3917  let validForTailPredication = 1;
3918}
3919
3920class MVE_VCVT_imm_asmop<int Bits> : AsmOperandClass {
3921  let PredicateMethod = "isImmediate<1," # Bits # ">";
3922  let DiagnosticString =
3923      "MVE fixed-point immediate operand must be between 1 and " # Bits;
3924  let Name = "MVEVcvtImm" # Bits;
3925  let RenderMethod = "addImmOperands";
3926}
3927class MVE_VCVT_imm<int Bits>: Operand<i32> {
3928  let ParserMatchClass = MVE_VCVT_imm_asmop<Bits>;
3929  let EncoderMethod = "getNEONVcvtImm32OpValue";
3930  let DecoderMethod = "DecodeVCVTImmOperand";
3931}
3932
3933class MVE_VCVT_fix_f32<string suffix, bit U, bit op>
3934    : MVE_VCVT_fix<suffix, 0b1, U, op, MVE_VCVT_imm<32>> {
3935  let Inst{20} = imm6{4};
3936}
3937class MVE_VCVT_fix_f16<string suffix, bit U, bit op>
3938    : MVE_VCVT_fix<suffix, 0b0, U, op, MVE_VCVT_imm<16>> {
3939  let Inst{20} = 0b1;
3940}
3941
3942multiclass MVE_VCVT_fix_patterns<Instruction Inst, bit U, MVEVectorVTInfo DestVTI,
3943                                 MVEVectorVTInfo SrcVTI> {
3944  let Predicates = [HasMVEFloat] in {
3945    def : Pat<(DestVTI.Vec (int_arm_mve_vcvt_fix
3946                              (i32 U), (SrcVTI.Vec MQPR:$Qm), imm:$scale)),
3947              (DestVTI.Vec (Inst (SrcVTI.Vec MQPR:$Qm), imm:$scale))>;
3948    def : Pat<(DestVTI.Vec (int_arm_mve_vcvt_fix_predicated (i32 U),
3949                              (DestVTI.Vec MQPR:$inactive),
3950                              (SrcVTI.Vec MQPR:$Qm),
3951                              imm:$scale,
3952                              (DestVTI.Pred VCCR:$mask))),
3953              (DestVTI.Vec (Inst (SrcVTI.Vec MQPR:$Qm), imm:$scale,
3954                             ARMVCCThen, (DestVTI.Pred VCCR:$mask),
3955                             (DestVTI.Vec MQPR:$inactive)))>;
3956  }
3957}
3958
3959multiclass MVE_VCVT_fix_f32_m<bit U, bit op,
3960                              MVEVectorVTInfo DestVTI, MVEVectorVTInfo SrcVTI> {
3961  def "" : MVE_VCVT_fix_f32<DestVTI.Suffix#"."#SrcVTI.Suffix, U, op>;
3962  defm : MVE_VCVT_fix_patterns<!cast<Instruction>(NAME), U, DestVTI, SrcVTI>;
3963}
3964
3965multiclass MVE_VCVT_fix_f16_m<bit U, bit op,
3966                              MVEVectorVTInfo DestVTI, MVEVectorVTInfo SrcVTI> {
3967  def "" : MVE_VCVT_fix_f16<DestVTI.Suffix#"."#SrcVTI.Suffix, U, op>;
3968  defm : MVE_VCVT_fix_patterns<!cast<Instruction>(NAME), U, DestVTI, SrcVTI>;
3969}
3970
3971defm MVE_VCVTf16s16_fix : MVE_VCVT_fix_f16_m<0b0, 0b0, MVE_v8f16, MVE_v8s16>;
3972defm MVE_VCVTs16f16_fix : MVE_VCVT_fix_f16_m<0b0, 0b1, MVE_v8s16, MVE_v8f16>;
3973defm MVE_VCVTf16u16_fix : MVE_VCVT_fix_f16_m<0b1, 0b0, MVE_v8f16, MVE_v8u16>;
3974defm MVE_VCVTu16f16_fix : MVE_VCVT_fix_f16_m<0b1, 0b1, MVE_v8u16, MVE_v8f16>;
3975defm MVE_VCVTf32s32_fix : MVE_VCVT_fix_f32_m<0b0, 0b0, MVE_v4f32, MVE_v4s32>;
3976defm MVE_VCVTs32f32_fix : MVE_VCVT_fix_f32_m<0b0, 0b1, MVE_v4s32, MVE_v4f32>;
3977defm MVE_VCVTf32u32_fix : MVE_VCVT_fix_f32_m<0b1, 0b0, MVE_v4f32, MVE_v4u32>;
3978defm MVE_VCVTu32f32_fix : MVE_VCVT_fix_f32_m<0b1, 0b1, MVE_v4u32, MVE_v4f32>;
3979
3980class MVE_VCVT_fp_int_anpm<string suffix, bits<2> size, bit op, string anpm,
3981                bits<2> rm, list<dag> pattern=[]>
3982  : MVE_float<!strconcat("vcvt", anpm), suffix, (outs MQPR:$Qd),
3983              (ins MQPR:$Qm), "$Qd, $Qm", vpred_r, "", pattern> {
3984  bits<4> Qd;
3985
3986  let Inst{28} = 0b1;
3987  let Inst{25-23} = 0b111;
3988  let Inst{22} = Qd{3};
3989  let Inst{21-20} = 0b11;
3990  let Inst{19-18} = size;
3991  let Inst{17-16} = 0b11;
3992  let Inst{15-13} = Qd{2-0};
3993  let Inst{12-10} = 0b000;
3994  let Inst{9-8} = rm;
3995  let Inst{7} = op;
3996  let Inst{4} = 0b0;
3997  let validForTailPredication = 1;
3998}
3999
4000multiclass MVE_VCVT_fp_int_anpm_inner<MVEVectorVTInfo Int, MVEVectorVTInfo Flt,
4001                                      string anpm, bits<2> rm> {
4002  def "": MVE_VCVT_fp_int_anpm<Int.Suffix # "." # Flt.Suffix, Int.Size,
4003                               Int.Unsigned, anpm, rm>;
4004
4005  defvar Inst         = !cast<Instruction>(NAME);
4006  defvar IntrBaseName = "int_arm_mve_vcvt" # anpm;
4007  defvar UnpredIntr   = !cast<Intrinsic>(IntrBaseName);
4008  defvar PredIntr     = !cast<Intrinsic>(IntrBaseName # "_predicated");
4009
4010  let Predicates = [HasMVEFloat] in {
4011    def : Pat<(Int.Vec (UnpredIntr (i32 Int.Unsigned), (Flt.Vec MQPR:$in))),
4012              (Int.Vec (Inst (Flt.Vec MQPR:$in)))>;
4013
4014    def : Pat<(Int.Vec (PredIntr (i32 Int.Unsigned), (Int.Vec MQPR:$inactive),
4015                                 (Flt.Vec MQPR:$in), (Flt.Pred VCCR:$pred))),
4016              (Int.Vec (Inst (Flt.Vec MQPR:$in), ARMVCCThen,
4017                             (Flt.Pred VCCR:$pred), (Int.Vec MQPR:$inactive)))>;
4018  }
4019}
4020
4021multiclass MVE_VCVT_fp_int_anpm_outer<MVEVectorVTInfo Int,
4022                                      MVEVectorVTInfo Flt> {
4023  defm a : MVE_VCVT_fp_int_anpm_inner<Int, Flt, "a", 0b00>;
4024  defm n : MVE_VCVT_fp_int_anpm_inner<Int, Flt, "n", 0b01>;
4025  defm p : MVE_VCVT_fp_int_anpm_inner<Int, Flt, "p", 0b10>;
4026  defm m : MVE_VCVT_fp_int_anpm_inner<Int, Flt, "m", 0b11>;
4027}
4028
4029// This defines instructions such as MVE_VCVTu16f16a, with an explicit
4030// rounding-mode suffix on the mnemonic. The class below will define
4031// the bare MVE_VCVTu16f16 (with implied rounding toward zero).
4032defm MVE_VCVTs16f16 : MVE_VCVT_fp_int_anpm_outer<MVE_v8s16, MVE_v8f16>;
4033defm MVE_VCVTu16f16 : MVE_VCVT_fp_int_anpm_outer<MVE_v8u16, MVE_v8f16>;
4034defm MVE_VCVTs32f32 : MVE_VCVT_fp_int_anpm_outer<MVE_v4s32, MVE_v4f32>;
4035defm MVE_VCVTu32f32 : MVE_VCVT_fp_int_anpm_outer<MVE_v4u32, MVE_v4f32>;
4036
4037class MVE_VCVT_fp_int<string suffix, bits<2> size, bit toint, bit unsigned,
4038                      list<dag> pattern=[]>
4039  : MVE_float<"vcvt", suffix, (outs MQPR:$Qd),
4040              (ins MQPR:$Qm), "$Qd, $Qm", vpred_r, "", pattern> {
4041  bits<4> Qd;
4042
4043  let Inst{28} = 0b1;
4044  let Inst{25-23} = 0b111;
4045  let Inst{22} = Qd{3};
4046  let Inst{21-20} = 0b11;
4047  let Inst{19-18} = size;
4048  let Inst{17-16} = 0b11;
4049  let Inst{15-13} = Qd{2-0};
4050  let Inst{12-9} = 0b0011;
4051  let Inst{8} = toint;
4052  let Inst{7} = unsigned;
4053  let Inst{4} = 0b0;
4054  let validForTailPredication = 1;
4055}
4056
4057multiclass MVE_VCVT_fp_int_m<MVEVectorVTInfo Dest, MVEVectorVTInfo Src,
4058                             SDNode unpred_op> {
4059  defvar Unsigned = !or(!eq(Dest.SuffixLetter,"u"), !eq(Src.SuffixLetter,"u"));
4060  defvar ToInt = !eq(Src.SuffixLetter,"f");
4061
4062  def "" : MVE_VCVT_fp_int<Dest.Suffix # "." # Src.Suffix, Dest.Size,
4063                           ToInt, Unsigned>;
4064  defvar Inst = !cast<Instruction>(NAME);
4065
4066  let Predicates = [HasMVEFloat] in {
4067    def : Pat<(Dest.Vec (unpred_op (Src.Vec MQPR:$src))),
4068              (Dest.Vec (Inst (Src.Vec MQPR:$src)))>;
4069    def : Pat<(Dest.Vec (int_arm_mve_vcvt_fp_int_predicated
4070                             (Src.Vec MQPR:$src), (i32 Unsigned),
4071                             (Src.Pred VCCR:$mask), (Dest.Vec MQPR:$inactive))),
4072              (Dest.Vec (Inst (Src.Vec MQPR:$src), ARMVCCThen,
4073                              (Src.Pred VCCR:$mask),
4074                              (Dest.Vec MQPR:$inactive)))>;
4075  }
4076}
4077// The unsuffixed VCVT for float->int implicitly rounds toward zero,
4078// which I reflect here in the llvm instruction names
4079defm MVE_VCVTs16f16z : MVE_VCVT_fp_int_m<MVE_v8s16, MVE_v8f16, fp_to_sint>;
4080defm MVE_VCVTu16f16z : MVE_VCVT_fp_int_m<MVE_v8u16, MVE_v8f16, fp_to_uint>;
4081defm MVE_VCVTs32f32z : MVE_VCVT_fp_int_m<MVE_v4s32, MVE_v4f32, fp_to_sint>;
4082defm MVE_VCVTu32f32z : MVE_VCVT_fp_int_m<MVE_v4u32, MVE_v4f32, fp_to_uint>;
4083// Whereas VCVT for int->float rounds to nearest
4084defm MVE_VCVTf16s16n : MVE_VCVT_fp_int_m<MVE_v8f16, MVE_v8s16, sint_to_fp>;
4085defm MVE_VCVTf16u16n : MVE_VCVT_fp_int_m<MVE_v8f16, MVE_v8u16, uint_to_fp>;
4086defm MVE_VCVTf32s32n : MVE_VCVT_fp_int_m<MVE_v4f32, MVE_v4s32, sint_to_fp>;
4087defm MVE_VCVTf32u32n : MVE_VCVT_fp_int_m<MVE_v4f32, MVE_v4u32, uint_to_fp>;
4088
4089class MVE_VABSNEG_fp<string iname, string suffix, bits<2> size, bit negate,
4090                   list<dag> pattern=[]>
4091  : MVE_float<iname, suffix, (outs MQPR:$Qd),
4092              (ins MQPR:$Qm), "$Qd, $Qm", vpred_r, "", pattern> {
4093  bits<4> Qd;
4094
4095  let Inst{28} = 0b1;
4096  let Inst{25-23} = 0b111;
4097  let Inst{22} = Qd{3};
4098  let Inst{21-20} = 0b11;
4099  let Inst{19-18} = size;
4100  let Inst{17-16} = 0b01;
4101  let Inst{15-13} = Qd{2-0};
4102  let Inst{11-8} = 0b0111;
4103  let Inst{7} = negate;
4104  let Inst{4} = 0b0;
4105  let validForTailPredication = 1;
4106}
4107
4108multiclass MVE_VABSNEG_fp_m<string iname, SDNode unpred_op, Intrinsic pred_int,
4109                            MVEVectorVTInfo VTI, bit opcode> {
4110  def "" : MVE_VABSNEG_fp<iname, VTI.Suffix, VTI.Size, opcode>;
4111  defvar Inst = !cast<Instruction>(NAME);
4112
4113  let Predicates = [HasMVEInt] in {
4114    def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$v))),
4115              (VTI.Vec (Inst $v))>;
4116    def : Pat<(VTI.Vec (pred_int  (VTI.Vec MQPR:$v), (VTI.Pred VCCR:$mask),
4117                                  (VTI.Vec MQPR:$inactive))),
4118              (VTI.Vec (Inst $v, ARMVCCThen, $mask, $inactive))>;
4119  }
4120}
4121
4122defm MVE_VABSf16 : MVE_VABSNEG_fp_m<"vabs", fabs, int_arm_mve_abs_predicated,
4123                                    MVE_v8f16, 0>;
4124defm MVE_VABSf32 : MVE_VABSNEG_fp_m<"vabs", fabs, int_arm_mve_abs_predicated,
4125                                    MVE_v4f32, 0>;
4126defm MVE_VNEGf16 : MVE_VABSNEG_fp_m<"vneg", fneg, int_arm_mve_neg_predicated,
4127                                    MVE_v8f16, 1>;
4128defm MVE_VNEGf32 : MVE_VABSNEG_fp_m<"vneg", fneg, int_arm_mve_neg_predicated,
4129                                    MVE_v4f32, 1>;
4130
4131class MVE_VMAXMINNMA<string iname, string suffix, bit size, bit bit_12,
4132                     list<dag> pattern=[]>
4133  : MVE_f<(outs MQPR:$Qd), (ins MQPR:$Qd_src, MQPR:$Qm),
4134          NoItinerary, iname, suffix, "$Qd, $Qm", vpred_n, "$Qd = $Qd_src",
4135          pattern> {
4136  bits<4> Qd;
4137  bits<4> Qm;
4138
4139  let Inst{28} = size;
4140  let Inst{25-23} = 0b100;
4141  let Inst{22} = Qd{3};
4142  let Inst{21-16} = 0b111111;
4143  let Inst{15-13} = Qd{2-0};
4144  let Inst{12} = bit_12;
4145  let Inst{11-6} = 0b111010;
4146  let Inst{5} = Qm{3};
4147  let Inst{4} = 0b0;
4148  let Inst{3-1} = Qm{2-0};
4149  let Inst{0} = 0b1;
4150
4151  let isCommutable = 1;
4152}
4153
4154multiclass MVE_VMAXMINNMA_m<string iname, MVEVectorVTInfo VTI,
4155                      SDNode unpred_op, Intrinsic pred_int,
4156                      bit bit_12> {
4157  def "" : MVE_VMAXMINNMA<iname, VTI.Suffix, VTI.Size{0}, bit_12>;
4158  defvar Inst = !cast<Instruction>(NAME);
4159
4160  let Predicates = [HasMVEInt] in {
4161    // Unpredicated v(max|min)nma
4162    def : Pat<(VTI.Vec (unpred_op (fabs (VTI.Vec MQPR:$Qd)),
4163                                  (fabs (VTI.Vec MQPR:$Qm)))),
4164              (VTI.Vec (Inst (VTI.Vec MQPR:$Qd), (VTI.Vec MQPR:$Qm)))>;
4165
4166    // Predicated v(max|min)nma
4167    def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qd), (VTI.Vec MQPR:$Qm),
4168                            (VTI.Pred VCCR:$mask))),
4169              (VTI.Vec (Inst (VTI.Vec MQPR:$Qd), (VTI.Vec MQPR:$Qm),
4170                            ARMVCCThen, (VTI.Pred VCCR:$mask)))>;
4171  }
4172}
4173
4174multiclass MVE_VMAXNMA<MVEVectorVTInfo VTI, bit bit_12>
4175  : MVE_VMAXMINNMA_m<"vmaxnma", VTI, fmaxnum, int_arm_mve_vmaxnma_predicated, bit_12>;
4176
4177defm MVE_VMAXNMAf32 : MVE_VMAXNMA<MVE_v4f32, 0b0>;
4178defm MVE_VMAXNMAf16 : MVE_VMAXNMA<MVE_v8f16, 0b0>;
4179
4180multiclass MVE_VMINNMA<MVEVectorVTInfo VTI, bit bit_12>
4181  : MVE_VMAXMINNMA_m<"vminnma", VTI, fminnum, int_arm_mve_vminnma_predicated, bit_12>;
4182
4183defm MVE_VMINNMAf32 : MVE_VMINNMA<MVE_v4f32, 0b1>;
4184defm MVE_VMINNMAf16 : MVE_VMINNMA<MVE_v8f16, 0b1>;
4185
4186// end of MVE Floating Point instructions
4187
4188// start of MVE compares
4189
4190class MVE_VCMPqq<string suffix, bit bit_28, bits<2> bits_21_20,
4191                 VCMPPredicateOperand predtype, list<dag> pattern=[]>
4192  : MVE_p<(outs VCCR:$P0), (ins MQPR:$Qn, MQPR:$Qm, predtype:$fc),
4193           NoItinerary, "vcmp", suffix, "$fc, $Qn, $Qm", vpred_n, "", pattern> {
4194  // Base class for comparing two vector registers
4195  bits<3> fc;
4196  bits<4> Qn;
4197  bits<4> Qm;
4198
4199  let Inst{28} = bit_28;
4200  let Inst{25-22} = 0b1000;
4201  let Inst{21-20} = bits_21_20;
4202  let Inst{19-17} = Qn{2-0};
4203  let Inst{16-13} = 0b1000;
4204  let Inst{12} = fc{2};
4205  let Inst{11-8} = 0b1111;
4206  let Inst{7} = fc{0};
4207  let Inst{6} = 0b0;
4208  let Inst{5} = Qm{3};
4209  let Inst{4} = 0b0;
4210  let Inst{3-1} = Qm{2-0};
4211  let Inst{0} = fc{1};
4212
4213  let Constraints = "";
4214
4215  // We need a custom decoder method for these instructions because of
4216  // the output VCCR operand, which isn't encoded in the instruction
4217  // bits anywhere (there is only one choice for it) but has to be
4218  // included in the MC operands so that codegen will be able to track
4219  // its data flow between instructions, spill/reload it when
4220  // necessary, etc. There seems to be no way to get the Tablegen
4221  // decoder to emit an operand that isn't affected by any instruction
4222  // bit.
4223  let DecoderMethod = "DecodeMVEVCMP<false," # predtype.DecoderMethod # ">";
4224  let validForTailPredication = 1;
4225}
4226
4227class MVE_VCMPqqf<string suffix, bit size>
4228    : MVE_VCMPqq<suffix, size, 0b11, pred_basic_fp> {
4229  let Predicates = [HasMVEFloat];
4230}
4231
4232class MVE_VCMPqqi<string suffix, bits<2> size>
4233    : MVE_VCMPqq<suffix, 0b1, size, pred_basic_i> {
4234  let Inst{12} = 0b0;
4235  let Inst{0} = 0b0;
4236}
4237
4238class MVE_VCMPqqu<string suffix, bits<2> size>
4239    : MVE_VCMPqq<suffix, 0b1, size, pred_basic_u> {
4240  let Inst{12} = 0b0;
4241  let Inst{0} = 0b1;
4242}
4243
4244class MVE_VCMPqqs<string suffix, bits<2> size>
4245    : MVE_VCMPqq<suffix, 0b1, size, pred_basic_s> {
4246  let Inst{12} = 0b1;
4247}
4248
4249def MVE_VCMPf32 : MVE_VCMPqqf<"f32", 0b0>;
4250def MVE_VCMPf16 : MVE_VCMPqqf<"f16", 0b1>;
4251
4252def MVE_VCMPi8  : MVE_VCMPqqi<"i8",  0b00>;
4253def MVE_VCMPi16 : MVE_VCMPqqi<"i16", 0b01>;
4254def MVE_VCMPi32 : MVE_VCMPqqi<"i32", 0b10>;
4255
4256def MVE_VCMPu8  : MVE_VCMPqqu<"u8",  0b00>;
4257def MVE_VCMPu16 : MVE_VCMPqqu<"u16", 0b01>;
4258def MVE_VCMPu32 : MVE_VCMPqqu<"u32", 0b10>;
4259
4260def MVE_VCMPs8  : MVE_VCMPqqs<"s8",  0b00>;
4261def MVE_VCMPs16 : MVE_VCMPqqs<"s16", 0b01>;
4262def MVE_VCMPs32 : MVE_VCMPqqs<"s32", 0b10>;
4263
4264class MVE_VCMPqr<string suffix, bit bit_28, bits<2> bits_21_20,
4265                 VCMPPredicateOperand predtype, list<dag> pattern=[]>
4266  : MVE_p<(outs VCCR:$P0), (ins MQPR:$Qn, GPRwithZR:$Rm, predtype:$fc),
4267           NoItinerary, "vcmp", suffix, "$fc, $Qn, $Rm", vpred_n, "", pattern> {
4268  // Base class for comparing a vector register with a scalar
4269  bits<3> fc;
4270  bits<4> Qn;
4271  bits<4> Rm;
4272
4273  let Inst{28} = bit_28;
4274  let Inst{25-22} = 0b1000;
4275  let Inst{21-20} = bits_21_20;
4276  let Inst{19-17} = Qn{2-0};
4277  let Inst{16-13} = 0b1000;
4278  let Inst{12} = fc{2};
4279  let Inst{11-8} = 0b1111;
4280  let Inst{7} = fc{0};
4281  let Inst{6} = 0b1;
4282  let Inst{5} = fc{1};
4283  let Inst{4} = 0b0;
4284  let Inst{3-0} = Rm{3-0};
4285
4286  let Constraints = "";
4287  // Custom decoder method, for the same reason as MVE_VCMPqq
4288  let DecoderMethod = "DecodeMVEVCMP<true," # predtype.DecoderMethod # ">";
4289  let validForTailPredication = 1;
4290}
4291
4292class MVE_VCMPqrf<string suffix, bit size>
4293    : MVE_VCMPqr<suffix, size, 0b11, pred_basic_fp> {
4294  let Predicates = [HasMVEFloat];
4295}
4296
4297class MVE_VCMPqri<string suffix, bits<2> size>
4298    : MVE_VCMPqr<suffix, 0b1, size, pred_basic_i> {
4299  let Inst{12} = 0b0;
4300  let Inst{5} = 0b0;
4301}
4302
4303class MVE_VCMPqru<string suffix, bits<2> size>
4304    : MVE_VCMPqr<suffix, 0b1, size, pred_basic_u> {
4305  let Inst{12} = 0b0;
4306  let Inst{5} = 0b1;
4307}
4308
4309class MVE_VCMPqrs<string suffix, bits<2> size>
4310    : MVE_VCMPqr<suffix, 0b1, size, pred_basic_s> {
4311  let Inst{12} = 0b1;
4312}
4313
4314def MVE_VCMPf32r : MVE_VCMPqrf<"f32", 0b0>;
4315def MVE_VCMPf16r : MVE_VCMPqrf<"f16", 0b1>;
4316
4317def MVE_VCMPi8r  : MVE_VCMPqri<"i8",  0b00>;
4318def MVE_VCMPi16r : MVE_VCMPqri<"i16", 0b01>;
4319def MVE_VCMPi32r : MVE_VCMPqri<"i32", 0b10>;
4320
4321def MVE_VCMPu8r  : MVE_VCMPqru<"u8",  0b00>;
4322def MVE_VCMPu16r : MVE_VCMPqru<"u16", 0b01>;
4323def MVE_VCMPu32r : MVE_VCMPqru<"u32", 0b10>;
4324
4325def MVE_VCMPs8r  : MVE_VCMPqrs<"s8",  0b00>;
4326def MVE_VCMPs16r : MVE_VCMPqrs<"s16", 0b01>;
4327def MVE_VCMPs32r : MVE_VCMPqrs<"s32", 0b10>;
4328
4329multiclass unpred_vcmp_z<string suffix, PatLeaf fc> {
4330  def i8  : Pat<(v16i1 (ARMvcmpz (v16i8 MQPR:$v1), fc)),
4331                (v16i1 (!cast<Instruction>("MVE_VCMP"#suffix#"8r") (v16i8 MQPR:$v1), ZR, fc))>;
4332  def i16 : Pat<(v8i1 (ARMvcmpz (v8i16 MQPR:$v1), fc)),
4333                (v8i1 (!cast<Instruction>("MVE_VCMP"#suffix#"16r") (v8i16 MQPR:$v1), ZR, fc))>;
4334  def i32 : Pat<(v4i1 (ARMvcmpz (v4i32 MQPR:$v1), fc)),
4335                (v4i1 (!cast<Instruction>("MVE_VCMP"#suffix#"32r") (v4i32 MQPR:$v1), ZR, fc))>;
4336
4337  def : Pat<(v16i1 (and (v16i1 VCCR:$p1), (v16i1 (ARMvcmpz (v16i8 MQPR:$v1), fc)))),
4338            (v16i1 (!cast<Instruction>("MVE_VCMP"#suffix#"8r") (v16i8 MQPR:$v1), ZR, fc, ARMVCCThen, VCCR:$p1))>;
4339  def : Pat<(v8i1 (and (v8i1 VCCR:$p1), (v8i1 (ARMvcmpz (v8i16 MQPR:$v1), fc)))),
4340            (v8i1 (!cast<Instruction>("MVE_VCMP"#suffix#"16r") (v8i16 MQPR:$v1), ZR, fc, ARMVCCThen, VCCR:$p1))>;
4341  def : Pat<(v4i1 (and (v4i1 VCCR:$p1), (v4i1 (ARMvcmpz (v4i32 MQPR:$v1), fc)))),
4342            (v4i1 (!cast<Instruction>("MVE_VCMP"#suffix#"32r") (v4i32 MQPR:$v1), ZR, fc, ARMVCCThen, VCCR:$p1))>;
4343}
4344
4345multiclass unpred_vcmp_r<string suffix, PatLeaf fc> {
4346  def i8  : Pat<(v16i1 (ARMvcmp (v16i8 MQPR:$v1), (v16i8 MQPR:$v2), fc)),
4347                (v16i1 (!cast<Instruction>("MVE_VCMP"#suffix#"8") (v16i8 MQPR:$v1), (v16i8 MQPR:$v2), fc))>;
4348  def i16 : Pat<(v8i1 (ARMvcmp (v8i16 MQPR:$v1), (v8i16 MQPR:$v2), fc)),
4349                (v8i1 (!cast<Instruction>("MVE_VCMP"#suffix#"16") (v8i16 MQPR:$v1), (v8i16 MQPR:$v2), fc))>;
4350  def i32 : Pat<(v4i1 (ARMvcmp (v4i32 MQPR:$v1), (v4i32 MQPR:$v2), fc)),
4351                (v4i1 (!cast<Instruction>("MVE_VCMP"#suffix#"32") (v4i32 MQPR:$v1), (v4i32 MQPR:$v2), fc))>;
4352
4353  def i8r  : Pat<(v16i1 (ARMvcmp (v16i8 MQPR:$v1), (v16i8 (ARMvdup rGPR:$v2)), fc)),
4354                 (v16i1 (!cast<Instruction>("MVE_VCMP"#suffix#"8r") (v16i8 MQPR:$v1), (i32 rGPR:$v2), fc))>;
4355  def i16r : Pat<(v8i1 (ARMvcmp (v8i16 MQPR:$v1), (v8i16 (ARMvdup rGPR:$v2)), fc)),
4356                 (v8i1 (!cast<Instruction>("MVE_VCMP"#suffix#"16r") (v8i16 MQPR:$v1), (i32 rGPR:$v2), fc))>;
4357  def i32r : Pat<(v4i1 (ARMvcmp (v4i32 MQPR:$v1), (v4i32 (ARMvdup rGPR:$v2)), fc)),
4358                 (v4i1 (!cast<Instruction>("MVE_VCMP"#suffix#"32r") (v4i32 MQPR:$v1), (i32 rGPR:$v2), fc))>;
4359
4360  def : Pat<(v16i1 (and (v16i1 VCCR:$p1), (v16i1 (ARMvcmp (v16i8 MQPR:$v1), (v16i8 MQPR:$v2), fc)))),
4361            (v16i1 (!cast<Instruction>("MVE_VCMP"#suffix#"8") (v16i8 MQPR:$v1), (v16i8 MQPR:$v2), fc, ARMVCCThen, VCCR:$p1))>;
4362  def : Pat<(v8i1 (and (v8i1 VCCR:$p1), (v8i1 (ARMvcmp (v8i16 MQPR:$v1), (v8i16 MQPR:$v2), fc)))),
4363            (v8i1 (!cast<Instruction>("MVE_VCMP"#suffix#"16") (v8i16 MQPR:$v1), (v8i16 MQPR:$v2), fc, ARMVCCThen, VCCR:$p1))>;
4364  def : Pat<(v4i1 (and (v4i1 VCCR:$p1), (v4i1 (ARMvcmp (v4i32 MQPR:$v1), (v4i32 MQPR:$v2), fc)))),
4365            (v4i1 (!cast<Instruction>("MVE_VCMP"#suffix#"32") (v4i32 MQPR:$v1), (v4i32 MQPR:$v2), fc, ARMVCCThen, VCCR:$p1))>;
4366
4367  def : Pat<(v16i1 (and (v16i1 VCCR:$p1), (v16i1 (ARMvcmp (v16i8 MQPR:$v1), (v16i8 (ARMvdup rGPR:$v2)), fc)))),
4368            (v16i1 (!cast<Instruction>("MVE_VCMP"#suffix#"8r") (v16i8 MQPR:$v1), (i32 rGPR:$v2), fc, ARMVCCThen, VCCR:$p1))>;
4369  def : Pat<(v8i1 (and (v8i1 VCCR:$p1), (v8i1 (ARMvcmp (v8i16 MQPR:$v1), (v8i16 (ARMvdup rGPR:$v2)), fc)))),
4370            (v8i1 (!cast<Instruction>("MVE_VCMP"#suffix#"16r") (v8i16 MQPR:$v1), (i32 rGPR:$v2), fc, ARMVCCThen, VCCR:$p1))>;
4371  def : Pat<(v4i1 (and (v4i1 VCCR:$p1), (v4i1 (ARMvcmp (v4i32 MQPR:$v1), (v4i32 (ARMvdup rGPR:$v2)), fc)))),
4372            (v4i1 (!cast<Instruction>("MVE_VCMP"#suffix#"32r") (v4i32 MQPR:$v1), (i32 rGPR:$v2), fc, ARMVCCThen, VCCR:$p1))>;
4373}
4374
4375multiclass unpred_vcmpf_z<PatLeaf fc> {
4376  def f16 : Pat<(v8i1 (ARMvcmpz (v8f16 MQPR:$v1), fc)),
4377                (v8i1 (MVE_VCMPf16r (v8f16 MQPR:$v1), ZR, fc))>;
4378  def f32 : Pat<(v4i1 (ARMvcmpz (v4f32 MQPR:$v1), fc)),
4379                (v4i1 (MVE_VCMPf32r (v4f32 MQPR:$v1), ZR, fc))>;
4380
4381  def : Pat<(v8i1 (and (v8i1 VCCR:$p1), (v8i1 (ARMvcmpz (v8f16 MQPR:$v1), fc)))),
4382            (v8i1 (MVE_VCMPf16r (v8f16 MQPR:$v1), ZR, fc, ARMVCCThen, VCCR:$p1))>;
4383  def : Pat<(v4i1 (and (v4i1 VCCR:$p1), (v4i1 (ARMvcmpz (v4f32 MQPR:$v1), fc)))),
4384            (v4i1 (MVE_VCMPf32r (v4f32 MQPR:$v1), ZR, fc, ARMVCCThen, VCCR:$p1))>;
4385}
4386
4387multiclass unpred_vcmpf_r<PatLeaf fc> {
4388  def : Pat<(v8i1 (ARMvcmp (v8f16 MQPR:$v1), (v8f16 MQPR:$v2), fc)),
4389            (v8i1 (MVE_VCMPf16 (v8f16 MQPR:$v1), (v8f16 MQPR:$v2), fc))>;
4390  def : Pat<(v4i1 (ARMvcmp (v4f32 MQPR:$v1), (v4f32 MQPR:$v2), fc)),
4391            (v4i1 (MVE_VCMPf32 (v4f32 MQPR:$v1), (v4f32 MQPR:$v2), fc))>;
4392
4393  def : Pat<(v8i1 (ARMvcmp (v8f16 MQPR:$v1), (v8f16 (ARMvdup rGPR:$v2)), fc)),
4394            (v8i1 (MVE_VCMPf16r (v8f16 MQPR:$v1), (i32 rGPR:$v2), fc))>;
4395  def : Pat<(v4i1 (ARMvcmp (v4f32 MQPR:$v1), (v4f32 (ARMvdup rGPR:$v2)), fc)),
4396            (v4i1 (MVE_VCMPf32r (v4f32 MQPR:$v1), (i32 rGPR:$v2), fc))>;
4397
4398  def : Pat<(v8i1 (and (v8i1 VCCR:$p1), (v8i1 (ARMvcmp (v8f16 MQPR:$v1), (v8f16 MQPR:$v2), fc)))),
4399            (v8i1 (MVE_VCMPf16 (v8f16 MQPR:$v1), (v8f16 MQPR:$v2), fc, ARMVCCThen, VCCR:$p1))>;
4400  def : Pat<(v4i1 (and (v4i1 VCCR:$p1), (v4i1 (ARMvcmp (v4f32 MQPR:$v1), (v4f32 MQPR:$v2), fc)))),
4401            (v4i1 (MVE_VCMPf32 (v4f32 MQPR:$v1), (v4f32 MQPR:$v2), fc, ARMVCCThen, VCCR:$p1))>;
4402
4403  def : Pat<(v8i1 (and (v8i1 VCCR:$p1), (v8i1 (ARMvcmp (v8f16 MQPR:$v1), (v8f16 (ARMvdup rGPR:$v2)), fc)))),
4404            (v8i1 (MVE_VCMPf16r (v8f16 MQPR:$v1), (i32 rGPR:$v2), fc, ARMVCCThen, VCCR:$p1))>;
4405  def : Pat<(v4i1 (and (v4i1 VCCR:$p1), (v4i1 (ARMvcmp (v4f32 MQPR:$v1), (v4f32 (ARMvdup rGPR:$v2)), fc)))),
4406            (v4i1 (MVE_VCMPf32r (v4f32 MQPR:$v1), (i32 rGPR:$v2), fc, ARMVCCThen, VCCR:$p1))>;
4407}
4408
4409let Predicates = [HasMVEInt] in {
4410  defm MVE_VCEQZ  : unpred_vcmp_z<"i", ARMCCeq>;
4411  defm MVE_VCNEZ  : unpred_vcmp_z<"i", ARMCCne>;
4412  defm MVE_VCGEZ  : unpred_vcmp_z<"s", ARMCCge>;
4413  defm MVE_VCLTZ  : unpred_vcmp_z<"s", ARMCClt>;
4414  defm MVE_VCGTZ  : unpred_vcmp_z<"s", ARMCCgt>;
4415  defm MVE_VCLEZ  : unpred_vcmp_z<"s", ARMCCle>;
4416  defm MVE_VCGTUZ : unpred_vcmp_z<"u", ARMCChi>;
4417  defm MVE_VCGEUZ : unpred_vcmp_z<"u", ARMCChs>;
4418
4419  defm MVE_VCEQ   : unpred_vcmp_r<"i", ARMCCeq>;
4420  defm MVE_VCNE   : unpred_vcmp_r<"i", ARMCCne>;
4421  defm MVE_VCGE   : unpred_vcmp_r<"s", ARMCCge>;
4422  defm MVE_VCLT   : unpred_vcmp_r<"s", ARMCClt>;
4423  defm MVE_VCGT   : unpred_vcmp_r<"s", ARMCCgt>;
4424  defm MVE_VCLE   : unpred_vcmp_r<"s", ARMCCle>;
4425  defm MVE_VCGTU  : unpred_vcmp_r<"u", ARMCChi>;
4426  defm MVE_VCGEU  : unpred_vcmp_r<"u", ARMCChs>;
4427}
4428
4429let Predicates = [HasMVEFloat] in {
4430  defm MVE_VFCEQZ  : unpred_vcmpf_z<ARMCCeq>;
4431  defm MVE_VFCNEZ  : unpred_vcmpf_z<ARMCCne>;
4432  defm MVE_VFCGEZ  : unpred_vcmpf_z<ARMCCge>;
4433  defm MVE_VFCLTZ  : unpred_vcmpf_z<ARMCClt>;
4434  defm MVE_VFCGTZ  : unpred_vcmpf_z<ARMCCgt>;
4435  defm MVE_VFCLEZ  : unpred_vcmpf_z<ARMCCle>;
4436
4437  defm MVE_VFCEQ   : unpred_vcmpf_r<ARMCCeq>;
4438  defm MVE_VFCNE   : unpred_vcmpf_r<ARMCCne>;
4439  defm MVE_VFCGE   : unpred_vcmpf_r<ARMCCge>;
4440  defm MVE_VFCLT   : unpred_vcmpf_r<ARMCClt>;
4441  defm MVE_VFCGT   : unpred_vcmpf_r<ARMCCgt>;
4442  defm MVE_VFCLE   : unpred_vcmpf_r<ARMCCle>;
4443}
4444
4445
4446// Extra "worst case" and/or/xor patterns, going into and out of GRP
4447multiclass two_predops<SDPatternOperator opnode, Instruction insn> {
4448  def v16i1 : Pat<(v16i1 (opnode (v16i1 VCCR:$p1), (v16i1 VCCR:$p2))),
4449                  (v16i1 (COPY_TO_REGCLASS
4450                           (insn (i32 (COPY_TO_REGCLASS (v16i1 VCCR:$p1), rGPR)),
4451                                 (i32 (COPY_TO_REGCLASS (v16i1 VCCR:$p2), rGPR))),
4452                           VCCR))>;
4453  def v8i1  : Pat<(v8i1 (opnode (v8i1 VCCR:$p1), (v8i1 VCCR:$p2))),
4454                  (v8i1 (COPY_TO_REGCLASS
4455                          (insn (i32 (COPY_TO_REGCLASS (v8i1 VCCR:$p1), rGPR)),
4456                                (i32 (COPY_TO_REGCLASS (v8i1 VCCR:$p2), rGPR))),
4457                          VCCR))>;
4458  def v4i1  : Pat<(v4i1 (opnode (v4i1 VCCR:$p1), (v4i1 VCCR:$p2))),
4459                  (v4i1 (COPY_TO_REGCLASS
4460                          (insn (i32 (COPY_TO_REGCLASS (v4i1 VCCR:$p1), rGPR)),
4461                                (i32 (COPY_TO_REGCLASS (v4i1 VCCR:$p2), rGPR))),
4462                          VCCR))>;
4463}
4464
4465let Predicates = [HasMVEInt] in {
4466  defm POR    : two_predops<or,  t2ORRrr>;
4467  defm PAND   : two_predops<and, t2ANDrr>;
4468  defm PEOR   : two_predops<xor, t2EORrr>;
4469}
4470
4471// Occasionally we need to cast between a i32 and a boolean vector, for
4472// example when moving between rGPR and VPR.P0 as part of predicate vector
4473// shuffles. We also sometimes need to cast between different predicate
4474// vector types (v4i1<>v8i1, etc.) also as part of lowering vector shuffles.
4475def predicate_cast : SDNode<"ARMISD::PREDICATE_CAST", SDTUnaryOp>;
4476
4477def load_align4 : PatFrag<(ops node:$ptr), (load node:$ptr), [{
4478  return cast<LoadSDNode>(N)->getAlignment() >= 4;
4479}]>;
4480
4481let Predicates = [HasMVEInt] in {
4482  foreach VT = [ v4i1, v8i1, v16i1 ] in {
4483    def : Pat<(i32 (predicate_cast (VT VCCR:$src))),
4484              (i32 (COPY_TO_REGCLASS (VT VCCR:$src), VCCR))>;
4485    def : Pat<(VT  (predicate_cast (i32 VCCR:$src))),
4486              (VT  (COPY_TO_REGCLASS (i32 VCCR:$src), VCCR))>;
4487
4488    foreach VT2 = [ v4i1, v8i1, v16i1 ] in
4489      def : Pat<(VT  (predicate_cast (VT2 VCCR:$src))),
4490                (VT  (COPY_TO_REGCLASS (VT2 VCCR:$src), VCCR))>;
4491  }
4492
4493  // If we happen to be casting from a load we can convert that straight
4494  // into a predicate load, so long as the load is of the correct type.
4495  foreach VT = [ v4i1, v8i1, v16i1 ] in {
4496    def : Pat<(VT (predicate_cast (i32 (load_align4 taddrmode_imm7<2>:$addr)))),
4497              (VT (VLDR_P0_off taddrmode_imm7<2>:$addr))>;
4498  }
4499
4500  // Here we match the specific SDNode type 'ARMVectorRegCastImpl'
4501  // rather than the more general 'ARMVectorRegCast' which would also
4502  // match some bitconverts. If we use the latter in cases where the
4503  // input and output types are the same, the bitconvert gets elided
4504  // and we end up generating a nonsense match of nothing.
4505
4506  foreach VT = [ v16i8, v8i16, v8f16, v4i32, v4f32, v2i64, v2f64 ] in
4507    foreach VT2 = [ v16i8, v8i16, v8f16, v4i32, v4f32, v2i64, v2f64 ] in
4508      def : Pat<(VT (ARMVectorRegCastImpl (VT2 MQPR:$src))),
4509                (VT MQPR:$src)>;
4510}
4511
4512// end of MVE compares
4513
4514// start of MVE_qDest_qSrc
4515
4516class MVE_qDest_qSrc<string iname, string suffix, dag oops, dag iops,
4517                     string ops, vpred_ops vpred, string cstr,
4518                     list<dag> pattern=[]>
4519  : MVE_p<oops, iops, NoItinerary, iname, suffix,
4520          ops, vpred, cstr, pattern> {
4521  bits<4> Qd;
4522  bits<4> Qm;
4523
4524  let Inst{25-23} = 0b100;
4525  let Inst{22} = Qd{3};
4526  let Inst{15-13} = Qd{2-0};
4527  let Inst{11-9} = 0b111;
4528  let Inst{6} = 0b0;
4529  let Inst{5} = Qm{3};
4530  let Inst{4} = 0b0;
4531  let Inst{3-1} = Qm{2-0};
4532}
4533
4534class MVE_VQxDMLxDH<string iname, bit exch, bit round, bit subtract,
4535                    string suffix, bits<2> size, string cstr="", list<dag> pattern=[]>
4536  : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd),
4537                   (ins MQPR:$Qd_src, MQPR:$Qn, MQPR:$Qm), "$Qd, $Qn, $Qm",
4538                   vpred_n, "$Qd = $Qd_src"#cstr, pattern> {
4539  bits<4> Qn;
4540
4541  let Inst{28} = subtract;
4542  let Inst{21-20} = size;
4543  let Inst{19-17} = Qn{2-0};
4544  let Inst{16} = 0b0;
4545  let Inst{12} = exch;
4546  let Inst{8} = 0b0;
4547  let Inst{7} = Qn{3};
4548  let Inst{0} = round;
4549}
4550
4551multiclass MVE_VQxDMLxDH_p<string iname, bit exch, bit round, bit subtract,
4552                           MVEVectorVTInfo VTI> {
4553  def "": MVE_VQxDMLxDH<iname, exch, round, subtract, VTI.Suffix, VTI.Size,
4554                        !if(!eq(VTI.LaneBits, 32), ",@earlyclobber $Qd", "")>;
4555  defvar Inst = !cast<Instruction>(NAME);
4556  defvar ConstParams = (? (i32 exch), (i32 round), (i32 subtract));
4557  defvar unpred_intr = int_arm_mve_vqdmlad;
4558  defvar pred_intr = int_arm_mve_vqdmlad_predicated;
4559
4560  def : Pat<(VTI.Vec !con((unpred_intr (VTI.Vec MQPR:$a), (VTI.Vec MQPR:$b),
4561                                       (VTI.Vec MQPR:$c)), ConstParams)),
4562            (VTI.Vec (Inst (VTI.Vec MQPR:$a), (VTI.Vec MQPR:$b),
4563                           (VTI.Vec MQPR:$c)))>;
4564  def : Pat<(VTI.Vec !con((pred_intr (VTI.Vec MQPR:$a), (VTI.Vec MQPR:$b),
4565                                     (VTI.Vec MQPR:$c)), ConstParams,
4566                          (? (VTI.Pred VCCR:$pred)))),
4567            (VTI.Vec (Inst (VTI.Vec MQPR:$a), (VTI.Vec MQPR:$b),
4568                           (VTI.Vec MQPR:$c),
4569                           ARMVCCThen, (VTI.Pred VCCR:$pred)))>;
4570}
4571
4572multiclass MVE_VQxDMLxDH_multi<string iname, bit exch,
4573                               bit round, bit subtract> {
4574  defm s8  : MVE_VQxDMLxDH_p<iname, exch, round, subtract, MVE_v16s8>;
4575  defm s16 : MVE_VQxDMLxDH_p<iname, exch, round, subtract, MVE_v8s16>;
4576  defm s32 : MVE_VQxDMLxDH_p<iname, exch, round, subtract, MVE_v4s32>;
4577}
4578
4579defm MVE_VQDMLADH   : MVE_VQxDMLxDH_multi<"vqdmladh",   0b0, 0b0, 0b0>;
4580defm MVE_VQDMLADHX  : MVE_VQxDMLxDH_multi<"vqdmladhx",  0b1, 0b0, 0b0>;
4581defm MVE_VQRDMLADH  : MVE_VQxDMLxDH_multi<"vqrdmladh",  0b0, 0b1, 0b0>;
4582defm MVE_VQRDMLADHX : MVE_VQxDMLxDH_multi<"vqrdmladhx", 0b1, 0b1, 0b0>;
4583defm MVE_VQDMLSDH   : MVE_VQxDMLxDH_multi<"vqdmlsdh",   0b0, 0b0, 0b1>;
4584defm MVE_VQDMLSDHX  : MVE_VQxDMLxDH_multi<"vqdmlsdhx",  0b1, 0b0, 0b1>;
4585defm MVE_VQRDMLSDH  : MVE_VQxDMLxDH_multi<"vqrdmlsdh",  0b0, 0b1, 0b1>;
4586defm MVE_VQRDMLSDHX : MVE_VQxDMLxDH_multi<"vqrdmlsdhx", 0b1, 0b1, 0b1>;
4587
4588class MVE_VCMUL<string iname, string suffix, bit size, string cstr="">
4589  : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd),
4590                   (ins MQPR:$Qn, MQPR:$Qm, complexrotateop:$rot),
4591                   "$Qd, $Qn, $Qm, $rot", vpred_r, cstr, []> {
4592  bits<4> Qn;
4593  bits<2> rot;
4594
4595  let Inst{28} = size;
4596  let Inst{21-20} = 0b11;
4597  let Inst{19-17} = Qn{2-0};
4598  let Inst{16} = 0b0;
4599  let Inst{12} = rot{1};
4600  let Inst{8} = 0b0;
4601  let Inst{7} = Qn{3};
4602  let Inst{0} = rot{0};
4603
4604  let Predicates = [HasMVEFloat];
4605}
4606
4607multiclass MVE_VCMUL_m<string iname, MVEVectorVTInfo VTI,
4608                       bit size, string cstr=""> {
4609  def "" : MVE_VCMUL<iname, VTI.Suffix, size, cstr>;
4610  defvar Inst = !cast<Instruction>(NAME);
4611
4612  let Predicates = [HasMVEFloat] in {
4613    def : Pat<(VTI.Vec (int_arm_mve_vcmulq
4614                            imm:$rot, (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))),
4615              (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
4616                             imm:$rot))>;
4617
4618    def : Pat<(VTI.Vec (int_arm_mve_vcmulq_predicated
4619                            imm:$rot, (VTI.Vec MQPR:$inactive),
4620                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
4621                            (VTI.Pred VCCR:$mask))),
4622              (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
4623                             imm:$rot, ARMVCCThen, (VTI.Pred VCCR:$mask),
4624                             (VTI.Vec MQPR:$inactive)))>;
4625
4626  }
4627}
4628
4629defm MVE_VCMULf16 : MVE_VCMUL_m<"vcmul", MVE_v8f16, 0b0>;
4630defm MVE_VCMULf32 : MVE_VCMUL_m<"vcmul", MVE_v4f32, 0b1, "@earlyclobber $Qd">;
4631
4632class MVE_VMULL<string iname, string suffix, bit bit_28, bits<2> bits_21_20,
4633                bit T, string cstr, list<dag> pattern=[]>
4634  : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd),
4635                   (ins MQPR:$Qn, MQPR:$Qm), "$Qd, $Qn, $Qm",
4636                   vpred_r, cstr, pattern> {
4637  bits<4> Qd;
4638  bits<4> Qn;
4639  bits<4> Qm;
4640
4641  let Inst{28} = bit_28;
4642  let Inst{21-20} = bits_21_20;
4643  let Inst{19-17} = Qn{2-0};
4644  let Inst{16} = 0b1;
4645  let Inst{12} = T;
4646  let Inst{8} = 0b0;
4647  let Inst{7} = Qn{3};
4648  let Inst{0} = 0b0;
4649  let validForTailPredication = 1;
4650  let doubleWidthResult = 1;
4651}
4652
4653multiclass MVE_VMULL_m<MVEVectorVTInfo VTI,
4654                       SDPatternOperator unpred_op, Intrinsic pred_int,
4655                       bit Top, string cstr=""> {
4656  def "" : MVE_VMULL<"vmull" # !if(Top, "t", "b"), VTI.Suffix, VTI.Unsigned,
4657                     VTI.Size, Top, cstr>;
4658  defvar Inst = !cast<Instruction>(NAME);
4659
4660  let Predicates = [HasMVEInt] in {
4661    defvar uflag = !if(!eq(VTI.SuffixLetter, "p"), (?), (? (i32 VTI.Unsigned)));
4662
4663    // Unpredicated multiply
4664    def : Pat<(VTI.DblVec !con((unpred_op (VTI.Vec MQPR:$Qm),
4665                                          (VTI.Vec MQPR:$Qn)),
4666                               uflag, (? (i32 Top)))),
4667              (VTI.DblVec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>;
4668
4669    // Predicated multiply
4670    def : Pat<(VTI.DblVec !con((pred_int (VTI.Vec MQPR:$Qm),
4671                                         (VTI.Vec MQPR:$Qn)),
4672                               uflag, (? (i32 Top), (VTI.DblPred VCCR:$mask),
4673                                         (VTI.DblVec MQPR:$inactive)))),
4674              (VTI.DblVec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
4675                                ARMVCCThen, (VTI.DblPred VCCR:$mask),
4676                                (VTI.DblVec MQPR:$inactive)))>;
4677  }
4678}
4679
4680// For polynomial multiplies, the size bits take the unused value 0b11, and
4681// the unsigned bit switches to encoding the size.
4682
4683defm MVE_VMULLBs8  : MVE_VMULL_m<MVE_v16s8, int_arm_mve_vmull,
4684                                 int_arm_mve_mull_int_predicated, 0b0>;
4685defm MVE_VMULLTs8  : MVE_VMULL_m<MVE_v16s8, int_arm_mve_vmull,
4686                                 int_arm_mve_mull_int_predicated, 0b1>;
4687defm MVE_VMULLBs16 : MVE_VMULL_m<MVE_v8s16, int_arm_mve_vmull,
4688                                 int_arm_mve_mull_int_predicated, 0b0>;
4689defm MVE_VMULLTs16 : MVE_VMULL_m<MVE_v8s16, int_arm_mve_vmull,
4690                                 int_arm_mve_mull_int_predicated, 0b1>;
4691defm MVE_VMULLBs32 : MVE_VMULL_m<MVE_v4s32, int_arm_mve_vmull,
4692                                 int_arm_mve_mull_int_predicated, 0b0,
4693                                 "@earlyclobber $Qd">;
4694defm MVE_VMULLTs32 : MVE_VMULL_m<MVE_v4s32, int_arm_mve_vmull,
4695                                 int_arm_mve_mull_int_predicated, 0b1,
4696                                 "@earlyclobber $Qd">;
4697
4698defm MVE_VMULLBu8  : MVE_VMULL_m<MVE_v16u8, int_arm_mve_vmull,
4699                                 int_arm_mve_mull_int_predicated, 0b0>;
4700defm MVE_VMULLTu8  : MVE_VMULL_m<MVE_v16u8, int_arm_mve_vmull,
4701                                 int_arm_mve_mull_int_predicated, 0b1>;
4702defm MVE_VMULLBu16 : MVE_VMULL_m<MVE_v8u16, int_arm_mve_vmull,
4703                                 int_arm_mve_mull_int_predicated, 0b0>;
4704defm MVE_VMULLTu16 : MVE_VMULL_m<MVE_v8u16, int_arm_mve_vmull,
4705                                 int_arm_mve_mull_int_predicated, 0b1>;
4706defm MVE_VMULLBu32 : MVE_VMULL_m<MVE_v4u32, int_arm_mve_vmull,
4707                                 int_arm_mve_mull_int_predicated, 0b0,
4708                                 "@earlyclobber $Qd">;
4709defm MVE_VMULLTu32 : MVE_VMULL_m<MVE_v4u32, int_arm_mve_vmull,
4710                                 int_arm_mve_mull_int_predicated, 0b1,
4711                                 "@earlyclobber $Qd">;
4712
4713defm MVE_VMULLBp8  : MVE_VMULL_m<MVE_v16p8, int_arm_mve_vmull_poly,
4714                                 int_arm_mve_mull_poly_predicated, 0b0>;
4715defm MVE_VMULLTp8  : MVE_VMULL_m<MVE_v16p8, int_arm_mve_vmull_poly,
4716                                 int_arm_mve_mull_poly_predicated, 0b1>;
4717defm MVE_VMULLBp16 : MVE_VMULL_m<MVE_v8p16, int_arm_mve_vmull_poly,
4718                                 int_arm_mve_mull_poly_predicated, 0b0>;
4719defm MVE_VMULLTp16 : MVE_VMULL_m<MVE_v8p16, int_arm_mve_vmull_poly,
4720                                 int_arm_mve_mull_poly_predicated, 0b1>;
4721
4722let Predicates = [HasMVEInt] in {
4723  def : Pat<(v2i64 (ARMvmulls (v4i32 MQPR:$src1), (v4i32 MQPR:$src2))),
4724            (MVE_VMULLBs32 MQPR:$src1, MQPR:$src2)>;
4725  def : Pat<(v2i64 (ARMvmulls (v4i32 (ARMvrev64 (v4i32 MQPR:$src1))),
4726                              (v4i32 (ARMvrev64 (v4i32 MQPR:$src2))))),
4727            (MVE_VMULLTs32 MQPR:$src1, MQPR:$src2)>;
4728
4729  def : Pat<(mul (sext_inreg (v4i32 MQPR:$src1), v4i16),
4730                 (sext_inreg (v4i32 MQPR:$src2), v4i16)),
4731            (MVE_VMULLBs16 MQPR:$src1, MQPR:$src2)>;
4732  def : Pat<(mul (sext_inreg (v4i32 (ARMVectorRegCast (ARMvrev32 (v8i16 MQPR:$src1)))), v4i16),
4733                 (sext_inreg (v4i32 (ARMVectorRegCast (ARMvrev32 (v8i16 MQPR:$src2)))), v4i16)),
4734            (MVE_VMULLTs16 MQPR:$src1, MQPR:$src2)>;
4735
4736  def : Pat<(mul (sext_inreg (v8i16 MQPR:$src1), v8i8),
4737                 (sext_inreg (v8i16 MQPR:$src2), v8i8)),
4738            (MVE_VMULLBs8 MQPR:$src1, MQPR:$src2)>;
4739  def : Pat<(mul (sext_inreg (v8i16 (ARMVectorRegCast (ARMvrev16 (v16i8 MQPR:$src1)))), v8i8),
4740                 (sext_inreg (v8i16 (ARMVectorRegCast (ARMvrev16 (v16i8 MQPR:$src2)))), v8i8)),
4741            (MVE_VMULLTs8 MQPR:$src1, MQPR:$src2)>;
4742
4743  def : Pat<(v2i64 (ARMvmullu (v4i32 MQPR:$src1), (v4i32 MQPR:$src2))),
4744            (MVE_VMULLBu32 MQPR:$src1, MQPR:$src2)>;
4745  def : Pat<(v2i64 (ARMvmullu (v4i32 (ARMvrev64 (v4i32 MQPR:$src1))),
4746                              (v4i32 (ARMvrev64 (v4i32 MQPR:$src2))))),
4747            (MVE_VMULLTu32 MQPR:$src1, MQPR:$src2)>;
4748
4749  def : Pat<(mul (and (v4i32 MQPR:$src1), (v4i32 (ARMvmovImm (i32 0xCFF)))),
4750                 (and (v4i32 MQPR:$src2), (v4i32 (ARMvmovImm (i32 0xCFF))))),
4751            (MVE_VMULLBu16 MQPR:$src1, MQPR:$src2)>;
4752  def : Pat<(mul (and (v4i32 (ARMVectorRegCast (ARMvrev32 (v8i16 MQPR:$src1)))),
4753                      (v4i32 (ARMvmovImm (i32 0xCFF)))),
4754                 (and (v4i32 (ARMVectorRegCast (ARMvrev32 (v8i16 MQPR:$src2)))),
4755                      (v4i32 (ARMvmovImm (i32 0xCFF))))),
4756            (MVE_VMULLTu16 MQPR:$src1, MQPR:$src2)>;
4757
4758  def : Pat<(mul (ARMvbicImm (v8i16 MQPR:$src1), (i32 0xAFF)),
4759                 (ARMvbicImm (v8i16 MQPR:$src2), (i32 0xAFF))),
4760            (MVE_VMULLBu8 MQPR:$src1, MQPR:$src2)>;
4761  def : Pat<(mul (ARMvbicImm (v8i16 (ARMVectorRegCast (ARMvrev16 (v16i8 MQPR:$src1)))), (i32 0xAFF)),
4762                 (ARMvbicImm (v8i16 (ARMVectorRegCast (ARMvrev16 (v16i8 MQPR:$src2)))), (i32 0xAFF))),
4763            (MVE_VMULLTu8 MQPR:$src1, MQPR:$src2)>;
4764}
4765
4766class MVE_VxMULH<string iname, string suffix, bit U, bits<2> size, bit round,
4767                 list<dag> pattern=[]>
4768  : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd),
4769                   (ins MQPR:$Qn, MQPR:$Qm), "$Qd, $Qn, $Qm",
4770                   vpred_r, "", pattern> {
4771  bits<4> Qn;
4772
4773  let Inst{28} = U;
4774  let Inst{21-20} = size;
4775  let Inst{19-17} = Qn{2-0};
4776  let Inst{16} = 0b1;
4777  let Inst{12} = round;
4778  let Inst{8} = 0b0;
4779  let Inst{7} = Qn{3};
4780  let Inst{0} = 0b1;
4781}
4782
4783multiclass MVE_VxMULH_m<string iname, MVEVectorVTInfo VTI, SDNode unpred_op,
4784                        Intrinsic pred_int, bit round> {
4785  def "" : MVE_VxMULH<iname, VTI.Suffix, VTI.Unsigned, VTI.Size, round>;
4786  defvar Inst = !cast<Instruction>(NAME);
4787
4788  let Predicates = [HasMVEInt] in {
4789    // Unpredicated multiply returning high bits
4790    def : Pat<(VTI.Vec (unpred_op (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
4791                            (i32 VTI.Unsigned))),
4792              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>;
4793
4794    // Predicated multiply returning high bits
4795    def : Pat<(VTI.Vec (pred_int (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
4796                            (i32 VTI.Unsigned), (VTI.Pred VCCR:$mask),
4797                            (VTI.Vec MQPR:$inactive))),
4798              (VTI.Vec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
4799                             ARMVCCThen, (VTI.Pred VCCR:$mask),
4800                             (VTI.Vec MQPR:$inactive)))>;
4801  }
4802}
4803
4804multiclass MVE_VMULT<string iname, MVEVectorVTInfo VTI, bit round>
4805  : MVE_VxMULH_m<iname, VTI, !if(round, int_arm_mve_vrmulh, int_arm_mve_vmulh),
4806                 !if(round, int_arm_mve_rmulh_predicated,
4807                            int_arm_mve_mulh_predicated),
4808                 round>;
4809
4810defm MVE_VMULHs8   : MVE_VMULT<"vmulh",  MVE_v16s8, 0b0>;
4811defm MVE_VMULHs16  : MVE_VMULT<"vmulh",  MVE_v8s16, 0b0>;
4812defm MVE_VMULHs32  : MVE_VMULT<"vmulh",  MVE_v4s32, 0b0>;
4813defm MVE_VMULHu8   : MVE_VMULT<"vmulh",  MVE_v16u8, 0b0>;
4814defm MVE_VMULHu16  : MVE_VMULT<"vmulh",  MVE_v8u16, 0b0>;
4815defm MVE_VMULHu32  : MVE_VMULT<"vmulh",  MVE_v4u32, 0b0>;
4816
4817defm MVE_VRMULHs8  : MVE_VMULT<"vrmulh", MVE_v16s8, 0b1>;
4818defm MVE_VRMULHs16 : MVE_VMULT<"vrmulh", MVE_v8s16, 0b1>;
4819defm MVE_VRMULHs32 : MVE_VMULT<"vrmulh", MVE_v4s32, 0b1>;
4820defm MVE_VRMULHu8  : MVE_VMULT<"vrmulh", MVE_v16u8, 0b1>;
4821defm MVE_VRMULHu16 : MVE_VMULT<"vrmulh", MVE_v8u16, 0b1>;
4822defm MVE_VRMULHu32 : MVE_VMULT<"vrmulh", MVE_v4u32, 0b1>;
4823
4824class MVE_VxMOVxN<string iname, string suffix, bit bit_28, bit bit_17,
4825                  bits<2> size, bit T, list<dag> pattern=[]>
4826  : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd),
4827                   (ins MQPR:$Qd_src, MQPR:$Qm), "$Qd, $Qm",
4828                   vpred_n, "$Qd = $Qd_src", pattern> {
4829
4830  let Inst{28} = bit_28;
4831  let Inst{21-20} = 0b11;
4832  let Inst{19-18} = size;
4833  let Inst{17} = bit_17;
4834  let Inst{16} = 0b1;
4835  let Inst{12} = T;
4836  let Inst{8} = 0b0;
4837  let Inst{7} = !not(bit_17);
4838  let Inst{0} = 0b1;
4839  let validForTailPredication = 1;
4840  let retainsPreviousHalfElement = 1;
4841}
4842
4843multiclass MVE_VxMOVxN_halves<string iname, string suffix,
4844                              bit bit_28, bit bit_17, bits<2> size> {
4845  def bh : MVE_VxMOVxN<iname # "b", suffix, bit_28, bit_17, size, 0b0>;
4846  def th : MVE_VxMOVxN<iname # "t", suffix, bit_28, bit_17, size, 0b1>;
4847}
4848
4849defm MVE_VMOVNi16   : MVE_VxMOVxN_halves<"vmovn",   "i16", 0b1, 0b0, 0b00>;
4850defm MVE_VMOVNi32   : MVE_VxMOVxN_halves<"vmovn",   "i32", 0b1, 0b0, 0b01>;
4851defm MVE_VQMOVNs16  : MVE_VxMOVxN_halves<"vqmovn",  "s16", 0b0, 0b1, 0b00>;
4852defm MVE_VQMOVNs32  : MVE_VxMOVxN_halves<"vqmovn",  "s32", 0b0, 0b1, 0b01>;
4853defm MVE_VQMOVNu16  : MVE_VxMOVxN_halves<"vqmovn",  "u16", 0b1, 0b1, 0b00>;
4854defm MVE_VQMOVNu32  : MVE_VxMOVxN_halves<"vqmovn",  "u32", 0b1, 0b1, 0b01>;
4855defm MVE_VQMOVUNs16 : MVE_VxMOVxN_halves<"vqmovun", "s16", 0b0, 0b0, 0b00>;
4856defm MVE_VQMOVUNs32 : MVE_VxMOVxN_halves<"vqmovun", "s32", 0b0, 0b0, 0b01>;
4857
4858def MVEvmovn       : SDNode<"ARMISD::VMOVN", SDTARMVEXT>;
4859
4860multiclass MVE_VMOVN_p<Instruction Inst, bit top,
4861                       MVEVectorVTInfo VTI, MVEVectorVTInfo InVTI> {
4862  // Match the most obvious MVEvmovn(a,b,t), which overwrites the odd or even
4863  // lanes of a (depending on t) with the even lanes of b.
4864  def : Pat<(VTI.Vec (MVEvmovn (VTI.Vec MQPR:$Qd_src),
4865                               (VTI.Vec MQPR:$Qm), (i32 top))),
4866            (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src), (VTI.Vec MQPR:$Qm)))>;
4867
4868  if !not(top) then {
4869    // If we see MVEvmovn(a,ARMvrev(b),1), that wants to overwrite the odd
4870    // lanes of a with the odd lanes of b. In other words, the lanes we're
4871    // _keeping_ from a are the even ones. So we can flip it round and say that
4872    // this is the same as overwriting the even lanes of b with the even lanes
4873    // of a, i.e. it's a VMOVNB with the operands reversed.
4874    defvar vrev = !cast<SDNode>("ARMvrev" # InVTI.LaneBits);
4875    def : Pat<(VTI.Vec (MVEvmovn (VTI.Vec MQPR:$Qm),
4876                                 (VTI.Vec (vrev MQPR:$Qd_src)), (i32 1))),
4877              (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src), (VTI.Vec MQPR:$Qm)))>;
4878  }
4879
4880  // Match the IR intrinsic for a predicated VMOVN. This regards the Qm input
4881  // as having wider lanes that we're narrowing, instead of already-narrow
4882  // lanes that we're taking every other one of.
4883  def : Pat<(VTI.Vec (int_arm_mve_vmovn_predicated (VTI.Vec MQPR:$Qd_src),
4884                                  (InVTI.Vec MQPR:$Qm), (i32 top),
4885                                  (InVTI.Pred VCCR:$pred))),
4886            (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src),
4887                              (InVTI.Vec MQPR:$Qm),
4888                              ARMVCCThen, (InVTI.Pred VCCR:$pred)))>;
4889}
4890
4891defm : MVE_VMOVN_p<MVE_VMOVNi32bh, 0, MVE_v8i16, MVE_v4i32>;
4892defm : MVE_VMOVN_p<MVE_VMOVNi32th, 1, MVE_v8i16, MVE_v4i32>;
4893defm : MVE_VMOVN_p<MVE_VMOVNi16bh, 0, MVE_v16i8, MVE_v8i16>;
4894defm : MVE_VMOVN_p<MVE_VMOVNi16th, 1, MVE_v16i8, MVE_v8i16>;
4895
4896multiclass MVE_VQMOVN_p<Instruction Inst, bit outU, bit inU, bit top,
4897                        MVEVectorVTInfo VTI, MVEVectorVTInfo InVTI> {
4898  def : Pat<(VTI.Vec (int_arm_mve_vqmovn (VTI.Vec MQPR:$Qd_src),
4899                                  (InVTI.Vec MQPR:$Qm),
4900                                  (i32 outU), (i32 inU), (i32 top))),
4901            (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src),
4902                              (InVTI.Vec MQPR:$Qm)))>;
4903
4904  def : Pat<(VTI.Vec (int_arm_mve_vqmovn_predicated (VTI.Vec MQPR:$Qd_src),
4905                                  (InVTI.Vec MQPR:$Qm),
4906                                  (i32 outU), (i32 inU), (i32 top),
4907                                  (InVTI.Pred VCCR:$pred))),
4908            (VTI.Vec (Inst (VTI.Vec MQPR:$Qd_src),
4909                              (InVTI.Vec MQPR:$Qm),
4910                              ARMVCCThen, (InVTI.Pred VCCR:$pred)))>;
4911}
4912
4913defm : MVE_VQMOVN_p<MVE_VQMOVNs32bh,  0, 0, 0, MVE_v8i16, MVE_v4i32>;
4914defm : MVE_VQMOVN_p<MVE_VQMOVNs32th,  0, 0, 1, MVE_v8i16, MVE_v4i32>;
4915defm : MVE_VQMOVN_p<MVE_VQMOVNs16bh,  0, 0, 0, MVE_v16i8, MVE_v8i16>;
4916defm : MVE_VQMOVN_p<MVE_VQMOVNs16th,  0, 0, 1, MVE_v16i8, MVE_v8i16>;
4917defm : MVE_VQMOVN_p<MVE_VQMOVNu32bh,  1, 1, 0, MVE_v8i16, MVE_v4i32>;
4918defm : MVE_VQMOVN_p<MVE_VQMOVNu32th,  1, 1, 1, MVE_v8i16, MVE_v4i32>;
4919defm : MVE_VQMOVN_p<MVE_VQMOVNu16bh,  1, 1, 0, MVE_v16i8, MVE_v8i16>;
4920defm : MVE_VQMOVN_p<MVE_VQMOVNu16th,  1, 1, 1, MVE_v16i8, MVE_v8i16>;
4921defm : MVE_VQMOVN_p<MVE_VQMOVUNs32bh, 1, 0, 0, MVE_v8i16, MVE_v4i32>;
4922defm : MVE_VQMOVN_p<MVE_VQMOVUNs32th, 1, 0, 1, MVE_v8i16, MVE_v4i32>;
4923defm : MVE_VQMOVN_p<MVE_VQMOVUNs16bh, 1, 0, 0, MVE_v16i8, MVE_v8i16>;
4924defm : MVE_VQMOVN_p<MVE_VQMOVUNs16th, 1, 0, 1, MVE_v16i8, MVE_v8i16>;
4925
4926def SDTARMVMOVNQ : SDTypeProfile<1, 3, [SDTCisVec<0>, SDTCisSameAs<0, 1>,
4927                                        SDTCisVec<2>, SDTCisVT<3, i32>]>;
4928def MVEvqmovns   : SDNode<"ARMISD::VQMOVNs", SDTARMVMOVNQ>;
4929def MVEvqmovnu   : SDNode<"ARMISD::VQMOVNu", SDTARMVMOVNQ>;
4930
4931let Predicates = [HasMVEInt] in {
4932  def : Pat<(v8i16 (MVEvqmovns (v8i16 MQPR:$Qd_src), (v4i32 MQPR:$Qm), (i32 0))),
4933            (v8i16 (MVE_VQMOVNs32bh (v8i16 MQPR:$Qd_src), (v4i32 MQPR:$Qm)))>;
4934  def : Pat<(v8i16 (MVEvqmovns (v8i16 MQPR:$Qd_src), (v4i32 MQPR:$Qm), (i32 1))),
4935            (v8i16 (MVE_VQMOVNs32th (v8i16 MQPR:$Qd_src), (v4i32 MQPR:$Qm)))>;
4936  def : Pat<(v16i8 (MVEvqmovns (v16i8 MQPR:$Qd_src), (v8i16 MQPR:$Qm), (i32 0))),
4937            (v16i8 (MVE_VQMOVNs16bh (v16i8 MQPR:$Qd_src), (v8i16 MQPR:$Qm)))>;
4938  def : Pat<(v16i8 (MVEvqmovns (v16i8 MQPR:$Qd_src), (v8i16 MQPR:$Qm), (i32 1))),
4939            (v16i8 (MVE_VQMOVNs16th (v16i8 MQPR:$Qd_src), (v8i16 MQPR:$Qm)))>;
4940
4941  def : Pat<(v8i16 (MVEvqmovnu (v8i16 MQPR:$Qd_src), (v4i32 MQPR:$Qm), (i32 0))),
4942            (v8i16 (MVE_VQMOVNu32bh (v8i16 MQPR:$Qd_src), (v4i32 MQPR:$Qm)))>;
4943  def : Pat<(v8i16 (MVEvqmovnu (v8i16 MQPR:$Qd_src), (v4i32 MQPR:$Qm), (i32 1))),
4944            (v8i16 (MVE_VQMOVNu32th (v8i16 MQPR:$Qd_src), (v4i32 MQPR:$Qm)))>;
4945  def : Pat<(v16i8 (MVEvqmovnu (v16i8 MQPR:$Qd_src), (v8i16 MQPR:$Qm), (i32 0))),
4946            (v16i8 (MVE_VQMOVNu16bh (v16i8 MQPR:$Qd_src), (v8i16 MQPR:$Qm)))>;
4947  def : Pat<(v16i8 (MVEvqmovnu (v16i8 MQPR:$Qd_src), (v8i16 MQPR:$Qm), (i32 1))),
4948            (v16i8 (MVE_VQMOVNu16th (v16i8 MQPR:$Qd_src), (v8i16 MQPR:$Qm)))>;
4949
4950  def : Pat<(v8i16 (MVEvqmovns (v8i16 MQPR:$Qd_src), (v4i32 (ARMvshrsImm (v4i32 MQPR:$Qm), imm0_31:$imm)), (i32 0))),
4951            (v8i16 (MVE_VQSHRNbhs32 (v8i16 MQPR:$Qd_src), (v4i32 MQPR:$Qm), imm0_31:$imm))>;
4952  def : Pat<(v16i8 (MVEvqmovns (v16i8 MQPR:$Qd_src), (v8i16 (ARMvshrsImm (v8i16 MQPR:$Qm), imm0_15:$imm)), (i32 0))),
4953            (v16i8 (MVE_VQSHRNbhs16 (v16i8 MQPR:$Qd_src), (v8i16 MQPR:$Qm), imm0_15:$imm))>;
4954  def : Pat<(v8i16 (MVEvqmovns (v8i16 MQPR:$Qd_src), (v4i32 (ARMvshrsImm (v4i32 MQPR:$Qm), imm0_31:$imm)), (i32 1))),
4955            (v8i16 (MVE_VQSHRNths32 (v8i16 MQPR:$Qd_src), (v4i32 MQPR:$Qm), imm0_31:$imm))>;
4956  def : Pat<(v16i8 (MVEvqmovns (v16i8 MQPR:$Qd_src), (v8i16 (ARMvshrsImm (v8i16 MQPR:$Qm), imm0_15:$imm)), (i32 1))),
4957            (v16i8 (MVE_VQSHRNths16 (v16i8 MQPR:$Qd_src), (v8i16 MQPR:$Qm), imm0_15:$imm))>;
4958
4959  def : Pat<(v8i16 (MVEvqmovnu (v8i16 MQPR:$Qd_src), (v4i32 (ARMvshruImm (v4i32 MQPR:$Qm), imm0_31:$imm)), (i32 0))),
4960            (v8i16 (MVE_VQSHRNbhu32 (v8i16 MQPR:$Qd_src), (v4i32 MQPR:$Qm), imm0_31:$imm))>;
4961  def : Pat<(v16i8 (MVEvqmovnu (v16i8 MQPR:$Qd_src), (v8i16 (ARMvshruImm (v8i16 MQPR:$Qm), imm0_15:$imm)), (i32 0))),
4962            (v16i8 (MVE_VQSHRNbhu16 (v16i8 MQPR:$Qd_src), (v8i16 MQPR:$Qm), imm0_15:$imm))>;
4963  def : Pat<(v8i16 (MVEvqmovnu (v8i16 MQPR:$Qd_src), (v4i32 (ARMvshruImm (v4i32 MQPR:$Qm), imm0_31:$imm)), (i32 1))),
4964            (v8i16 (MVE_VQSHRNthu32 (v8i16 MQPR:$Qd_src), (v4i32 MQPR:$Qm), imm0_31:$imm))>;
4965  def : Pat<(v16i8 (MVEvqmovnu (v16i8 MQPR:$Qd_src), (v8i16 (ARMvshruImm (v8i16 MQPR:$Qm), imm0_15:$imm)), (i32 1))),
4966            (v16i8 (MVE_VQSHRNthu16 (v16i8 MQPR:$Qd_src), (v8i16 MQPR:$Qm), imm0_15:$imm))>;
4967}
4968
4969class MVE_VCVT_ff<string iname, string suffix, bit op, bit T,
4970                  dag iops_extra, vpred_ops vpred, string cstr>
4971  : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd),
4972                   !con(iops_extra, (ins MQPR:$Qm)), "$Qd, $Qm",
4973                   vpred, cstr, []> {
4974  let Inst{28} = op;
4975  let Inst{21-16} = 0b111111;
4976  let Inst{12} = T;
4977  let Inst{8-7} = 0b00;
4978  let Inst{0} = 0b1;
4979
4980  let Predicates = [HasMVEFloat];
4981  let retainsPreviousHalfElement = 1;
4982}
4983
4984def SDTARMVCVTL    : SDTypeProfile<1, 2, [SDTCisVec<0>, SDTCisVec<1>,
4985                                         SDTCisVT<2, i32>]>;
4986def MVEvcvtn       : SDNode<"ARMISD::VCVTN", SDTARMVMOVNQ>;
4987def MVEvcvtl       : SDNode<"ARMISD::VCVTL", SDTARMVCVTL>;
4988
4989multiclass MVE_VCVT_f2h_m<string iname, int half> {
4990  def "": MVE_VCVT_ff<iname, "f16.f32", 0b0, half,
4991                      (ins MQPR:$Qd_src), vpred_n, "$Qd = $Qd_src">;
4992  defvar Inst = !cast<Instruction>(NAME);
4993
4994  let Predicates = [HasMVEFloat] in {
4995    def : Pat<(v8f16 (int_arm_mve_vcvt_narrow
4996                         (v8f16 MQPR:$Qd_src), (v4f32 MQPR:$Qm), (i32 half))),
4997              (v8f16 (Inst (v8f16 MQPR:$Qd_src), (v4f32 MQPR:$Qm)))>;
4998    def : Pat<(v8f16 (int_arm_mve_vcvt_narrow_predicated
4999                         (v8f16 MQPR:$Qd_src), (v4f32 MQPR:$Qm), (i32 half),
5000                         (v4i1 VCCR:$mask))),
5001              (v8f16 (Inst (v8f16 MQPR:$Qd_src), (v4f32 MQPR:$Qm),
5002                           ARMVCCThen, (v4i1 VCCR:$mask)))>;
5003
5004    def : Pat<(v8f16 (MVEvcvtn (v8f16 MQPR:$Qd_src), (v4f32 MQPR:$Qm), (i32 half))),
5005              (v8f16 (Inst (v8f16 MQPR:$Qd_src), (v4f32 MQPR:$Qm)))>;
5006  }
5007}
5008
5009multiclass MVE_VCVT_h2f_m<string iname, int half> {
5010  def "": MVE_VCVT_ff<iname, "f32.f16", 0b1, half, (ins), vpred_r, "">;
5011  defvar Inst = !cast<Instruction>(NAME);
5012
5013  let Predicates = [HasMVEFloat] in {
5014    def : Pat<(v4f32 (int_arm_mve_vcvt_widen (v8f16 MQPR:$Qm), (i32 half))),
5015              (v4f32 (Inst (v8f16 MQPR:$Qm)))>;
5016    def : Pat<(v4f32 (int_arm_mve_vcvt_widen_predicated
5017                         (v4f32 MQPR:$inactive), (v8f16 MQPR:$Qm), (i32 half),
5018                         (v4i1 VCCR:$mask))),
5019              (v4f32 (Inst (v8f16 MQPR:$Qm), ARMVCCThen,
5020                           (v4i1 VCCR:$mask), (v4f32 MQPR:$inactive)))>;
5021
5022    def : Pat<(v4f32 (MVEvcvtl (v8f16 MQPR:$Qm), (i32 half))),
5023              (v4f32 (Inst (v8f16 MQPR:$Qm)))>;
5024  }
5025}
5026
5027defm MVE_VCVTf16f32bh : MVE_VCVT_f2h_m<"vcvtb", 0b0>;
5028defm MVE_VCVTf16f32th : MVE_VCVT_f2h_m<"vcvtt", 0b1>;
5029defm MVE_VCVTf32f16bh : MVE_VCVT_h2f_m<"vcvtb", 0b0>;
5030defm MVE_VCVTf32f16th : MVE_VCVT_h2f_m<"vcvtt", 0b1>;
5031
5032class MVE_VxCADD<string iname, string suffix, bits<2> size, bit halve,
5033                 string cstr="">
5034  : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd),
5035                   (ins MQPR:$Qn, MQPR:$Qm, complexrotateopodd:$rot),
5036                   "$Qd, $Qn, $Qm, $rot", vpred_r, cstr, []> {
5037  bits<4> Qn;
5038  bit rot;
5039
5040  let Inst{28} = halve;
5041  let Inst{21-20} = size;
5042  let Inst{19-17} = Qn{2-0};
5043  let Inst{16} = 0b0;
5044  let Inst{12} = rot;
5045  let Inst{8} = 0b1;
5046  let Inst{7} = Qn{3};
5047  let Inst{0} = 0b0;
5048}
5049
5050multiclass MVE_VxCADD_m<string iname, MVEVectorVTInfo VTI,
5051                        bit halve, string cstr=""> {
5052  def "" : MVE_VxCADD<iname, VTI.Suffix, VTI.Size, halve, cstr>;
5053  defvar Inst = !cast<Instruction>(NAME);
5054
5055  let Predicates = [HasMVEInt] in {
5056    def : Pat<(VTI.Vec (int_arm_mve_vcaddq halve,
5057                            imm:$rot, (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm))),
5058              (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
5059                             imm:$rot))>;
5060
5061    def : Pat<(VTI.Vec (int_arm_mve_vcaddq_predicated halve,
5062                            imm:$rot, (VTI.Vec MQPR:$inactive),
5063                            (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
5064                            (VTI.Pred VCCR:$mask))),
5065              (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (VTI.Vec MQPR:$Qm),
5066                             imm:$rot, ARMVCCThen, (VTI.Pred VCCR:$mask),
5067                             (VTI.Vec MQPR:$inactive)))>;
5068
5069  }
5070}
5071
5072defm MVE_VCADDi8   : MVE_VxCADD_m<"vcadd", MVE_v16i8, 0b1>;
5073defm MVE_VCADDi16  : MVE_VxCADD_m<"vcadd", MVE_v8i16, 0b1>;
5074defm MVE_VCADDi32  : MVE_VxCADD_m<"vcadd", MVE_v4i32, 0b1, "@earlyclobber $Qd">;
5075
5076defm MVE_VHCADDs8  : MVE_VxCADD_m<"vhcadd", MVE_v16s8, 0b0>;
5077defm MVE_VHCADDs16 : MVE_VxCADD_m<"vhcadd", MVE_v8s16, 0b0>;
5078defm MVE_VHCADDs32 : MVE_VxCADD_m<"vhcadd", MVE_v4s32, 0b0, "@earlyclobber $Qd">;
5079
5080class MVE_VADCSBC<string iname, bit I, bit subtract,
5081                  dag carryin, list<dag> pattern=[]>
5082  : MVE_qDest_qSrc<iname, "i32", (outs MQPR:$Qd, cl_FPSCR_NZCV:$carryout),
5083                   !con((ins MQPR:$Qn, MQPR:$Qm), carryin),
5084                   "$Qd, $Qn, $Qm", vpred_r, "", pattern> {
5085  bits<4> Qn;
5086
5087  let Inst{28} = subtract;
5088  let Inst{21-20} = 0b11;
5089  let Inst{19-17} = Qn{2-0};
5090  let Inst{16} = 0b0;
5091  let Inst{12} = I;
5092  let Inst{8} = 0b1;
5093  let Inst{7} = Qn{3};
5094  let Inst{0} = 0b0;
5095
5096  // Custom decoder method in order to add the FPSCR operand(s), which
5097  // Tablegen won't do right
5098  let DecoderMethod = "DecodeMVEVADCInstruction";
5099}
5100
5101def MVE_VADC  : MVE_VADCSBC<"vadc",  0b0, 0b0, (ins cl_FPSCR_NZCV:$carryin)>;
5102def MVE_VADCI : MVE_VADCSBC<"vadci", 0b1, 0b0, (ins)>;
5103
5104def MVE_VSBC  : MVE_VADCSBC<"vsbc",  0b0, 0b1, (ins cl_FPSCR_NZCV:$carryin)>;
5105def MVE_VSBCI : MVE_VADCSBC<"vsbci", 0b1, 0b1, (ins)>;
5106
5107class MVE_VQDMULL<string iname, string suffix, bit size, bit T,
5108                  string cstr="", list<dag> pattern=[]>
5109  : MVE_qDest_qSrc<iname, suffix, (outs MQPR:$Qd),
5110                   (ins MQPR:$Qn, MQPR:$Qm), "$Qd, $Qn, $Qm",
5111                   vpred_r, cstr, pattern> {
5112  bits<4> Qn;
5113
5114  let Inst{28} = size;
5115  let Inst{21-20} = 0b11;
5116  let Inst{19-17} = Qn{2-0};
5117  let Inst{16} = 0b0;
5118  let Inst{12} = T;
5119  let Inst{8} = 0b1;
5120  let Inst{7} = Qn{3};
5121  let Inst{0} = 0b1;
5122  let validForTailPredication = 1;
5123  let doubleWidthResult = 1;
5124}
5125
5126multiclass MVE_VQDMULL_m<string iname, MVEVectorVTInfo VTI, bit size, bit T,
5127                         string cstr> {
5128  def "" : MVE_VQDMULL<iname, VTI.Suffix, size, T, cstr>;
5129  defvar Inst = !cast<Instruction>(NAME);
5130
5131  let Predicates = [HasMVEInt] in {
5132    // Unpredicated saturating multiply
5133    def : Pat<(VTI.DblVec (int_arm_mve_vqdmull (VTI.Vec MQPR:$Qm),
5134                                               (VTI.Vec MQPR:$Qn), (i32 T))),
5135              (VTI.DblVec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn)))>;
5136    // Predicated saturating multiply
5137    def : Pat<(VTI.DblVec (int_arm_mve_vqdmull_predicated
5138                                    (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
5139                                    (i32 T), (VTI.DblPred VCCR:$mask),
5140                                    (VTI.DblVec MQPR:$inactive))),
5141              (VTI.DblVec (Inst (VTI.Vec MQPR:$Qm), (VTI.Vec MQPR:$Qn),
5142                                ARMVCCThen, (VTI.DblPred VCCR:$mask),
5143                                (VTI.DblVec MQPR:$inactive)))>;
5144  }
5145}
5146
5147multiclass MVE_VQDMULL_halves<MVEVectorVTInfo VTI, bit size, string cstr=""> {
5148  defm bh : MVE_VQDMULL_m<"vqdmullb", VTI, size, 0b0, cstr>;
5149  defm th : MVE_VQDMULL_m<"vqdmullt", VTI, size, 0b1, cstr>;
5150}
5151
5152defm MVE_VQDMULLs16 : MVE_VQDMULL_halves<MVE_v8s16, 0b0>;
5153defm MVE_VQDMULLs32 : MVE_VQDMULL_halves<MVE_v4s32, 0b1, "@earlyclobber $Qd">;
5154
5155// end of mve_qDest_qSrc
5156
5157// start of mve_qDest_rSrc
5158
5159class MVE_qr_base<dag oops, dag iops, InstrItinClass itin, string iname,
5160                  string suffix, string ops, vpred_ops vpred, string cstr,
5161                  list<dag> pattern=[]>
5162   : MVE_p<oops, iops, NoItinerary, iname, suffix, ops, vpred, cstr, pattern> {
5163  bits<4> Qd;
5164  bits<4> Qn;
5165  bits<4> Rm;
5166
5167  let Inst{25-23} = 0b100;
5168  let Inst{22} = Qd{3};
5169  let Inst{19-17} = Qn{2-0};
5170  let Inst{15-13} = Qd{2-0};
5171  let Inst{11-9} = 0b111;
5172  let Inst{7} = Qn{3};
5173  let Inst{6} = 0b1;
5174  let Inst{4} = 0b0;
5175  let Inst{3-0} = Rm{3-0};
5176}
5177
5178class MVE_qDest_rSrc<string iname, string suffix, string cstr="", list<dag> pattern=[]>
5179  : MVE_qr_base<(outs MQPR:$Qd), (ins MQPR:$Qn, rGPR:$Rm),
5180          NoItinerary, iname, suffix, "$Qd, $Qn, $Rm", vpred_r, cstr,
5181           pattern>;
5182
5183class MVE_qDestSrc_rSrc<string iname, string suffix, list<dag> pattern=[]>
5184  : MVE_qr_base<(outs MQPR:$Qd), (ins MQPR:$Qd_src, MQPR:$Qn, rGPR:$Rm),
5185          NoItinerary, iname, suffix, "$Qd, $Qn, $Rm", vpred_n, "$Qd = $Qd_src",
5186           pattern>;
5187
5188class MVE_qDest_single_rSrc<string iname, string suffix, list<dag> pattern=[]>
5189  : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qd_src, rGPR:$Rm), NoItinerary, iname,
5190          suffix, "$Qd, $Rm", vpred_n, "$Qd = $Qd_src", pattern> {
5191  bits<4> Qd;
5192  bits<4> Rm;
5193
5194  let Inst{22} = Qd{3};
5195  let Inst{15-13} = Qd{2-0};
5196  let Inst{3-0} = Rm{3-0};
5197}
5198
5199// Patterns for vector-scalar instructions with integer operands
5200multiclass MVE_vec_scalar_int_pat_m<Instruction inst, MVEVectorVTInfo VTI,
5201                                    SDPatternOperator unpred_op,
5202                                    SDPatternOperator pred_op,
5203                                    bit unpred_has_sign = 0,
5204                                    bit pred_has_sign = 0> {
5205  defvar UnpredSign = !if(unpred_has_sign, (? (i32 VTI.Unsigned)), (?));
5206  defvar PredSign = !if(pred_has_sign, (? (i32 VTI.Unsigned)), (?));
5207
5208  let Predicates = [HasMVEInt] in {
5209    // Unpredicated version
5210    def : Pat<(VTI.Vec !con((unpred_op (VTI.Vec MQPR:$Qm),
5211                                       (VTI.Vec (ARMvdup rGPR:$val))),
5212                            UnpredSign)),
5213              (VTI.Vec (inst (VTI.Vec MQPR:$Qm), (i32 rGPR:$val)))>;
5214    // Predicated version
5215    def : Pat<(VTI.Vec !con((pred_op (VTI.Vec MQPR:$Qm),
5216                                     (VTI.Vec (ARMvdup rGPR:$val))),
5217                            PredSign,
5218                            (pred_op (VTI.Pred VCCR:$mask),
5219                                     (VTI.Vec MQPR:$inactive)))),
5220              (VTI.Vec (inst (VTI.Vec MQPR:$Qm), (i32 rGPR:$val),
5221                             ARMVCCThen, (VTI.Pred VCCR:$mask),
5222                             (VTI.Vec MQPR:$inactive)))>;
5223  }
5224}
5225
5226class MVE_VADDSUB_qr<string iname, string suffix, bits<2> size,
5227                     bit bit_5, bit bit_12, bit bit_16, bit bit_28>
5228  : MVE_qDest_rSrc<iname, suffix, ""> {
5229
5230  let Inst{28} = bit_28;
5231  let Inst{21-20} = size;
5232  let Inst{16} = bit_16;
5233  let Inst{12} = bit_12;
5234  let Inst{8} = 0b1;
5235  let Inst{5} = bit_5;
5236  let validForTailPredication = 1;
5237}
5238
5239// Vector-scalar add/sub
5240multiclass MVE_VADDSUB_qr_m<string iname, MVEVectorVTInfo VTI, bit subtract,
5241                            SDNode Op, Intrinsic PredInt> {
5242  def "" : MVE_VADDSUB_qr<iname, VTI.Suffix, VTI.Size, 0b0, subtract, 0b1, 0b0>;
5243  let Predicates = [HasMVEInt] in {
5244    defm : MVE_TwoOpPatternDup<VTI, Op, PredInt, (? ), !cast<Instruction>(NAME), ARMimmAllZerosV>;
5245  }
5246}
5247
5248multiclass MVE_VADD_qr_m<MVEVectorVTInfo VTI>
5249  : MVE_VADDSUB_qr_m<"vadd", VTI, 0b0, add, int_arm_mve_add_predicated>;
5250
5251multiclass MVE_VSUB_qr_m<MVEVectorVTInfo VTI>
5252  : MVE_VADDSUB_qr_m<"vsub", VTI, 0b1, sub, int_arm_mve_sub_predicated>;
5253
5254defm MVE_VADD_qr_i8  : MVE_VADD_qr_m<MVE_v16i8>;
5255defm MVE_VADD_qr_i16 : MVE_VADD_qr_m<MVE_v8i16>;
5256defm MVE_VADD_qr_i32 : MVE_VADD_qr_m<MVE_v4i32>;
5257
5258defm MVE_VSUB_qr_i8  : MVE_VSUB_qr_m<MVE_v16i8>;
5259defm MVE_VSUB_qr_i16 : MVE_VSUB_qr_m<MVE_v8i16>;
5260defm MVE_VSUB_qr_i32 : MVE_VSUB_qr_m<MVE_v4i32>;
5261
5262// Vector-scalar saturating add/sub
5263multiclass MVE_VQADDSUB_qr_m<string iname, MVEVectorVTInfo VTI, bit subtract,
5264                             SDNode Op, Intrinsic PredInt> {
5265  def "" : MVE_VADDSUB_qr<iname, VTI.Suffix, VTI.Size, 0b1, subtract,
5266                          0b0, VTI.Unsigned>;
5267
5268  let Predicates = [HasMVEInt] in {
5269    defm : MVE_TwoOpPatternDup<VTI, Op, PredInt, (? (i32 VTI.Unsigned)),
5270                               !cast<Instruction>(NAME)>;
5271  }
5272}
5273
5274multiclass MVE_VQADD_qr_m<MVEVectorVTInfo VTI, SDNode Op>
5275  : MVE_VQADDSUB_qr_m<"vqadd", VTI, 0b0, Op, int_arm_mve_qadd_predicated>;
5276
5277multiclass MVE_VQSUB_qr_m<MVEVectorVTInfo VTI, SDNode Op>
5278  : MVE_VQADDSUB_qr_m<"vqsub", VTI, 0b1, Op, int_arm_mve_qsub_predicated>;
5279
5280defm MVE_VQADD_qr_s8  : MVE_VQADD_qr_m<MVE_v16s8, saddsat>;
5281defm MVE_VQADD_qr_s16 : MVE_VQADD_qr_m<MVE_v8s16, saddsat>;
5282defm MVE_VQADD_qr_s32 : MVE_VQADD_qr_m<MVE_v4s32, saddsat>;
5283defm MVE_VQADD_qr_u8  : MVE_VQADD_qr_m<MVE_v16u8, uaddsat>;
5284defm MVE_VQADD_qr_u16 : MVE_VQADD_qr_m<MVE_v8u16, uaddsat>;
5285defm MVE_VQADD_qr_u32 : MVE_VQADD_qr_m<MVE_v4u32, uaddsat>;
5286
5287defm MVE_VQSUB_qr_s8  : MVE_VQSUB_qr_m<MVE_v16s8, ssubsat>;
5288defm MVE_VQSUB_qr_s16 : MVE_VQSUB_qr_m<MVE_v8s16, ssubsat>;
5289defm MVE_VQSUB_qr_s32 : MVE_VQSUB_qr_m<MVE_v4s32, ssubsat>;
5290defm MVE_VQSUB_qr_u8  : MVE_VQSUB_qr_m<MVE_v16u8, usubsat>;
5291defm MVE_VQSUB_qr_u16 : MVE_VQSUB_qr_m<MVE_v8u16, usubsat>;
5292defm MVE_VQSUB_qr_u32 : MVE_VQSUB_qr_m<MVE_v4u32, usubsat>;
5293
5294class MVE_VQDMULL_qr<string iname, string suffix, bit size,
5295                     bit T, string cstr="", list<dag> pattern=[]>
5296  : MVE_qDest_rSrc<iname, suffix, cstr, pattern> {
5297
5298  let Inst{28} = size;
5299  let Inst{21-20} = 0b11;
5300  let Inst{16} = 0b0;
5301  let Inst{12} = T;
5302  let Inst{8} = 0b1;
5303  let Inst{5} = 0b1;
5304  let validForTailPredication = 1;
5305  let doubleWidthResult = 1;
5306}
5307
5308multiclass MVE_VQDMULL_qr_m<string iname, MVEVectorVTInfo VTI, bit size,
5309                            bit T, string cstr> {
5310  def "" : MVE_VQDMULL_qr<iname, VTI.Suffix, size, T, cstr>;
5311  defvar Inst = !cast<Instruction>(NAME);
5312
5313  let Predicates = [HasMVEInt] in {
5314    // Unpredicated saturating multiply
5315    def : Pat<(VTI.DblVec (int_arm_mve_vqdmull (VTI.Vec MQPR:$Qm),
5316                                               (VTI.Vec (ARMvdup rGPR:$val)),
5317                                               (i32 T))),
5318              (VTI.DblVec (Inst (VTI.Vec MQPR:$Qm), (i32 rGPR:$val)))>;
5319    // Predicated saturating multiply
5320    def : Pat<(VTI.DblVec (int_arm_mve_vqdmull_predicated
5321                                    (VTI.Vec MQPR:$Qm),
5322                                    (VTI.Vec (ARMvdup rGPR:$val)),
5323                                    (i32 T),
5324                                    (VTI.DblPred VCCR:$mask),
5325                                    (VTI.DblVec MQPR:$inactive))),
5326              (VTI.DblVec (Inst (VTI.Vec MQPR:$Qm), (i32 rGPR:$val),
5327                             ARMVCCThen, (VTI.DblPred VCCR:$mask),
5328                             (VTI.DblVec MQPR:$inactive)))>;
5329  }
5330}
5331
5332multiclass MVE_VQDMULL_qr_halves<MVEVectorVTInfo VTI, bit size, string cstr=""> {
5333  defm bh : MVE_VQDMULL_qr_m<"vqdmullb", VTI, size, 0b0, cstr>;
5334  defm th : MVE_VQDMULL_qr_m<"vqdmullt", VTI, size, 0b1, cstr>;
5335}
5336
5337defm MVE_VQDMULL_qr_s16 : MVE_VQDMULL_qr_halves<MVE_v8s16, 0b0>;
5338defm MVE_VQDMULL_qr_s32 : MVE_VQDMULL_qr_halves<MVE_v4s32, 0b1, "@earlyclobber $Qd">;
5339
5340class MVE_VxADDSUB_qr<string iname, string suffix,
5341                      bit bit_28, bits<2> bits_21_20, bit subtract,
5342                      list<dag> pattern=[]>
5343  : MVE_qDest_rSrc<iname, suffix, "", pattern> {
5344
5345  let Inst{28} = bit_28;
5346  let Inst{21-20} = bits_21_20;
5347  let Inst{16} = 0b0;
5348  let Inst{12} = subtract;
5349  let Inst{8} = 0b1;
5350  let Inst{5} = 0b0;
5351  let validForTailPredication = 1;
5352}
5353
5354multiclass MVE_VHADDSUB_qr_m<string iname, MVEVectorVTInfo VTI, bit subtract,
5355                             Intrinsic unpred_int, Intrinsic pred_int> {
5356  def "" : MVE_VxADDSUB_qr<iname, VTI.Suffix, VTI.Unsigned, VTI.Size, subtract>;
5357  defm : MVE_vec_scalar_int_pat_m<!cast<Instruction>(NAME),
5358                                  VTI, unpred_int, pred_int, 1, 1>;
5359}
5360
5361multiclass MVE_VHADD_qr_m<MVEVectorVTInfo VTI> :
5362  MVE_VHADDSUB_qr_m<"vhadd", VTI, 0b0, int_arm_mve_vhadd,
5363                                       int_arm_mve_hadd_predicated>;
5364
5365multiclass MVE_VHSUB_qr_m<MVEVectorVTInfo VTI> :
5366  MVE_VHADDSUB_qr_m<"vhsub", VTI, 0b1, int_arm_mve_vhsub,
5367                                       int_arm_mve_hsub_predicated>;
5368
5369defm MVE_VHADD_qr_s8  : MVE_VHADD_qr_m<MVE_v16s8>;
5370defm MVE_VHADD_qr_s16 : MVE_VHADD_qr_m<MVE_v8s16>;
5371defm MVE_VHADD_qr_s32 : MVE_VHADD_qr_m<MVE_v4s32>;
5372defm MVE_VHADD_qr_u8  : MVE_VHADD_qr_m<MVE_v16u8>;
5373defm MVE_VHADD_qr_u16 : MVE_VHADD_qr_m<MVE_v8u16>;
5374defm MVE_VHADD_qr_u32 : MVE_VHADD_qr_m<MVE_v4u32>;
5375
5376defm MVE_VHSUB_qr_s8  : MVE_VHSUB_qr_m<MVE_v16s8>;
5377defm MVE_VHSUB_qr_s16 : MVE_VHSUB_qr_m<MVE_v8s16>;
5378defm MVE_VHSUB_qr_s32 : MVE_VHSUB_qr_m<MVE_v4s32>;
5379defm MVE_VHSUB_qr_u8  : MVE_VHSUB_qr_m<MVE_v16u8>;
5380defm MVE_VHSUB_qr_u16 : MVE_VHSUB_qr_m<MVE_v8u16>;
5381defm MVE_VHSUB_qr_u32 : MVE_VHSUB_qr_m<MVE_v4u32>;
5382
5383multiclass MVE_VADDSUB_qr_f<string iname, MVEVectorVTInfo VTI, bit subtract,
5384                            SDNode Op, Intrinsic PredInt> {
5385  def "" : MVE_VxADDSUB_qr<iname, VTI.Suffix, VTI.Size{0}, 0b11, subtract>;
5386  defm : MVE_TwoOpPatternDup<VTI, Op, PredInt, (? ),
5387                              !cast<Instruction>(NAME)>;
5388}
5389
5390let Predicates = [HasMVEFloat] in {
5391  defm MVE_VADD_qr_f32 : MVE_VADDSUB_qr_f<"vadd", MVE_v4f32, 0b0, fadd,
5392                                          int_arm_mve_add_predicated>;
5393  defm MVE_VADD_qr_f16 : MVE_VADDSUB_qr_f<"vadd", MVE_v8f16, 0b0, fadd,
5394                                          int_arm_mve_add_predicated>;
5395
5396  defm MVE_VSUB_qr_f32 : MVE_VADDSUB_qr_f<"vsub", MVE_v4f32, 0b1, fsub,
5397                                          int_arm_mve_sub_predicated>;
5398  defm MVE_VSUB_qr_f16 : MVE_VADDSUB_qr_f<"vsub", MVE_v8f16, 0b1, fsub,
5399                                          int_arm_mve_sub_predicated>;
5400}
5401
5402class MVE_VxSHL_qr<string iname, string suffix, bit U, bits<2> size,
5403                   bit bit_7, bit bit_17, list<dag> pattern=[]>
5404  : MVE_qDest_single_rSrc<iname, suffix, pattern> {
5405
5406  let Inst{28} = U;
5407  let Inst{25-23} = 0b100;
5408  let Inst{21-20} = 0b11;
5409  let Inst{19-18} = size;
5410  let Inst{17} = bit_17;
5411  let Inst{16} = 0b1;
5412  let Inst{12-8} = 0b11110;
5413  let Inst{7} = bit_7;
5414  let Inst{6-4} = 0b110;
5415  let validForTailPredication = 1;
5416}
5417
5418multiclass MVE_VxSHL_qr_p<string iname, MVEVectorVTInfo VTI, bit q, bit r> {
5419  def "" : MVE_VxSHL_qr<iname, VTI.Suffix, VTI.Unsigned, VTI.Size, q, r>;
5420  defvar Inst = !cast<Instruction>(NAME);
5421
5422  def : Pat<(VTI.Vec (int_arm_mve_vshl_scalar
5423                         (VTI.Vec MQPR:$in), (i32 rGPR:$sh),
5424                         (i32 q), (i32 r), (i32 VTI.Unsigned))),
5425            (VTI.Vec (Inst (VTI.Vec MQPR:$in), (i32 rGPR:$sh)))>;
5426
5427  def : Pat<(VTI.Vec (int_arm_mve_vshl_scalar_predicated
5428                         (VTI.Vec MQPR:$in), (i32 rGPR:$sh),
5429                         (i32 q), (i32 r), (i32 VTI.Unsigned),
5430                         (VTI.Pred VCCR:$mask))),
5431            (VTI.Vec (Inst (VTI.Vec MQPR:$in), (i32 rGPR:$sh),
5432                           ARMVCCThen, (VTI.Pred VCCR:$mask)))>;
5433}
5434
5435multiclass MVE_VxSHL_qr_types<string iname, bit bit_7, bit bit_17> {
5436  defm s8  : MVE_VxSHL_qr_p<iname, MVE_v16s8, bit_7, bit_17>;
5437  defm s16 : MVE_VxSHL_qr_p<iname, MVE_v8s16, bit_7, bit_17>;
5438  defm s32 : MVE_VxSHL_qr_p<iname, MVE_v4s32, bit_7, bit_17>;
5439  defm u8  : MVE_VxSHL_qr_p<iname, MVE_v16u8, bit_7, bit_17>;
5440  defm u16 : MVE_VxSHL_qr_p<iname, MVE_v8u16, bit_7, bit_17>;
5441  defm u32 : MVE_VxSHL_qr_p<iname, MVE_v4u32, bit_7, bit_17>;
5442}
5443
5444defm MVE_VSHL_qr   : MVE_VxSHL_qr_types<"vshl",   0b0, 0b0>;
5445defm MVE_VRSHL_qr  : MVE_VxSHL_qr_types<"vrshl",  0b0, 0b1>;
5446defm MVE_VQSHL_qr  : MVE_VxSHL_qr_types<"vqshl",  0b1, 0b0>;
5447defm MVE_VQRSHL_qr : MVE_VxSHL_qr_types<"vqrshl", 0b1, 0b1>;
5448
5449let Predicates = [HasMVEInt] in {
5450  def : Pat<(v4i32 (ARMvshlu (v4i32 MQPR:$Qm), (v4i32 (ARMvdup rGPR:$Rm)))),
5451            (v4i32 (MVE_VSHL_qru32 (v4i32 MQPR:$Qm), rGPR:$Rm))>;
5452  def : Pat<(v8i16 (ARMvshlu (v8i16 MQPR:$Qm), (v8i16 (ARMvdup rGPR:$Rm)))),
5453            (v8i16 (MVE_VSHL_qru16 (v8i16 MQPR:$Qm), rGPR:$Rm))>;
5454  def : Pat<(v16i8 (ARMvshlu (v16i8 MQPR:$Qm), (v16i8 (ARMvdup rGPR:$Rm)))),
5455            (v16i8 (MVE_VSHL_qru8 (v16i8 MQPR:$Qm), rGPR:$Rm))>;
5456
5457  def : Pat<(v4i32 (ARMvshls (v4i32 MQPR:$Qm), (v4i32 (ARMvdup rGPR:$Rm)))),
5458            (v4i32 (MVE_VSHL_qrs32 (v4i32 MQPR:$Qm), rGPR:$Rm))>;
5459  def : Pat<(v8i16 (ARMvshls (v8i16 MQPR:$Qm), (v8i16 (ARMvdup rGPR:$Rm)))),
5460            (v8i16 (MVE_VSHL_qrs16 (v8i16 MQPR:$Qm), rGPR:$Rm))>;
5461  def : Pat<(v16i8 (ARMvshls (v16i8 MQPR:$Qm), (v16i8 (ARMvdup rGPR:$Rm)))),
5462            (v16i8 (MVE_VSHL_qrs8 (v16i8 MQPR:$Qm), rGPR:$Rm))>;
5463}
5464
5465class MVE_VBRSR<string iname, string suffix, bits<2> size, list<dag> pattern=[]>
5466  : MVE_qDest_rSrc<iname, suffix, "", pattern> {
5467
5468  let Inst{28} = 0b1;
5469  let Inst{21-20} = size;
5470  let Inst{16} = 0b1;
5471  let Inst{12} = 0b1;
5472  let Inst{8} = 0b0;
5473  let Inst{5} = 0b1;
5474  let validForTailPredication = 1;
5475}
5476
5477def MVE_VBRSR8  : MVE_VBRSR<"vbrsr", "8", 0b00>;
5478def MVE_VBRSR16 : MVE_VBRSR<"vbrsr", "16", 0b01>;
5479def MVE_VBRSR32 : MVE_VBRSR<"vbrsr", "32", 0b10>;
5480
5481multiclass MVE_VBRSR_pat_m<MVEVectorVTInfo VTI, Instruction Inst> {
5482  // Unpredicated
5483  def : Pat<(VTI.Vec (int_arm_mve_vbrsr (VTI.Vec MQPR:$Qn), (i32 rGPR:$Rm))),
5484            (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (i32 rGPR:$Rm)))>;
5485  // Predicated
5486  def : Pat<(VTI.Vec (int_arm_mve_vbrsr_predicated
5487                          (VTI.Vec MQPR:$inactive),
5488                          (VTI.Vec MQPR:$Qn), (i32 rGPR:$Rm),
5489                          (VTI.Pred VCCR:$mask))),
5490            (VTI.Vec (Inst (VTI.Vec MQPR:$Qn), (i32 rGPR:$Rm),
5491                          ARMVCCThen, (VTI.Pred VCCR:$mask),
5492                          (VTI.Vec MQPR:$inactive)))>;
5493}
5494
5495let Predicates = [HasMVEInt] in {
5496  def : Pat<(v16i8 ( bitreverse (v16i8 MQPR:$val1))),
5497            (v16i8 ( MVE_VBRSR8 (v16i8 MQPR:$val1), (t2MOVi (i32 8)) ))>;
5498
5499  def : Pat<(v4i32 ( bitreverse (v4i32 MQPR:$val1))),
5500            (v4i32 ( MVE_VBRSR32 (v4i32 MQPR:$val1), (t2MOVi (i32 32)) ))>;
5501
5502  def : Pat<(v8i16 ( bitreverse (v8i16 MQPR:$val1))),
5503            (v8i16 ( MVE_VBRSR16 (v8i16 MQPR:$val1), (t2MOVi (i32 16)) ))>;
5504
5505  defm : MVE_VBRSR_pat_m<MVE_v16i8, MVE_VBRSR8>;
5506  defm : MVE_VBRSR_pat_m<MVE_v8i16, MVE_VBRSR16>;
5507  defm : MVE_VBRSR_pat_m<MVE_v4i32, MVE_VBRSR32>;
5508}
5509
5510let Predicates = [HasMVEFloat] in {
5511  defm : MVE_VBRSR_pat_m<MVE_v8f16, MVE_VBRSR16>;
5512  defm : MVE_VBRSR_pat_m<MVE_v4f32, MVE_VBRSR32>;
5513}
5514
5515class MVE_VMUL_qr_int<string iname, string suffix, bits<2> size>
5516  : MVE_qDest_rSrc<iname, suffix, ""> {
5517
5518  let Inst{28} = 0b0;
5519  let Inst{21-20} = size;
5520  let Inst{16} = 0b1;
5521  let Inst{12} = 0b1;
5522  let Inst{8} = 0b0;
5523  let Inst{5} = 0b1;
5524  let validForTailPredication = 1;
5525}
5526
5527multiclass MVE_VMUL_qr_int_m<MVEVectorVTInfo VTI> {
5528  def "" : MVE_VMUL_qr_int<"vmul", VTI.Suffix, VTI.Size>;
5529  let Predicates = [HasMVEInt] in {
5530    defm : MVE_TwoOpPatternDup<VTI, mul, int_arm_mve_mul_predicated, (? ),
5531                               !cast<Instruction>(NAME), ARMimmOneV>;
5532  }
5533}
5534
5535defm MVE_VMUL_qr_i8  : MVE_VMUL_qr_int_m<MVE_v16i8>;
5536defm MVE_VMUL_qr_i16 : MVE_VMUL_qr_int_m<MVE_v8i16>;
5537defm MVE_VMUL_qr_i32 : MVE_VMUL_qr_int_m<MVE_v4i32>;
5538
5539class MVE_VxxMUL_qr<string iname, string suffix,
5540                    bit bit_28, bits<2> bits_21_20, list<dag> pattern=[]>
5541  : MVE_qDest_rSrc<iname, suffix, "", pattern> {
5542
5543  let Inst{28} = bit_28;
5544  let Inst{21-20} = bits_21_20;
5545  let Inst{16} = 0b1;
5546  let Inst{12} = 0b0;
5547  let Inst{8} = 0b0;
5548  let Inst{5} = 0b1;
5549  let validForTailPredication = 1;
5550}
5551
5552multiclass MVE_VxxMUL_qr_m<string iname, MVEVectorVTInfo VTI, bit bit_28,
5553                           PatFrag Op, Intrinsic int_unpred, Intrinsic int_pred> {
5554  def "" : MVE_VxxMUL_qr<iname, VTI.Suffix, bit_28, VTI.Size>;
5555
5556  let Predicates = [HasMVEInt] in {
5557    defm : MVE_TwoOpPatternDup<VTI, Op, int_pred, (? ), !cast<Instruction>(NAME)>;
5558  }
5559  defm : MVE_vec_scalar_int_pat_m<!cast<Instruction>(NAME), VTI, int_unpred, int_pred>;
5560}
5561
5562multiclass MVE_VQDMULH_qr_m<MVEVectorVTInfo VTI> :
5563  MVE_VxxMUL_qr_m<"vqdmulh", VTI, 0b0, MVEvqdmulh,
5564                  int_arm_mve_vqdmulh, int_arm_mve_qdmulh_predicated>;
5565
5566multiclass MVE_VQRDMULH_qr_m<MVEVectorVTInfo VTI> :
5567  MVE_VxxMUL_qr_m<"vqrdmulh", VTI, 0b1, null_frag,
5568                  int_arm_mve_vqrdmulh, int_arm_mve_qrdmulh_predicated>;
5569
5570defm MVE_VQDMULH_qr_s8    : MVE_VQDMULH_qr_m<MVE_v16s8>;
5571defm MVE_VQDMULH_qr_s16   : MVE_VQDMULH_qr_m<MVE_v8s16>;
5572defm MVE_VQDMULH_qr_s32   : MVE_VQDMULH_qr_m<MVE_v4s32>;
5573
5574defm MVE_VQRDMULH_qr_s8   : MVE_VQRDMULH_qr_m<MVE_v16s8>;
5575defm MVE_VQRDMULH_qr_s16  : MVE_VQRDMULH_qr_m<MVE_v8s16>;
5576defm MVE_VQRDMULH_qr_s32  : MVE_VQRDMULH_qr_m<MVE_v4s32>;
5577
5578multiclass MVE_VxxMUL_qr_f_m<MVEVectorVTInfo VTI> {
5579  let validForTailPredication = 1 in
5580  def "" : MVE_VxxMUL_qr<"vmul", VTI.Suffix, VTI.Size{0}, 0b11>;
5581  defm : MVE_TwoOpPatternDup<VTI, fmul, int_arm_mve_mul_predicated, (? ),
5582                             !cast<Instruction>(NAME)>;
5583}
5584
5585let Predicates = [HasMVEFloat] in {
5586  defm MVE_VMUL_qr_f16   : MVE_VxxMUL_qr_f_m<MVE_v8f16>;
5587  defm MVE_VMUL_qr_f32   : MVE_VxxMUL_qr_f_m<MVE_v4f32>;
5588}
5589
5590class MVE_VFMAMLA_qr<string iname, string suffix,
5591                     bit bit_28, bits<2> bits_21_20, bit S,
5592                     list<dag> pattern=[]>
5593  : MVE_qDestSrc_rSrc<iname, suffix, pattern> {
5594
5595  let Inst{28} = bit_28;
5596  let Inst{21-20} = bits_21_20;
5597  let Inst{16} = 0b1;
5598  let Inst{12} = S;
5599  let Inst{8} = 0b0;
5600  let Inst{5} = 0b0;
5601  let validForTailPredication = 1;
5602  let hasSideEffects = 0;
5603}
5604
5605multiclass MVE_VMLA_qr_multi<string iname, MVEVectorVTInfo VTI,
5606                             bit scalar_addend> {
5607  def "": MVE_VFMAMLA_qr<iname, VTI.Suffix, VTI.Unsigned, VTI.Size,
5608                         scalar_addend>;
5609  defvar Inst = !cast<Instruction>(NAME);
5610  defvar pred_int = !cast<Intrinsic>("int_arm_mve_" # iname # "_n_predicated");
5611  defvar v1   = (VTI.Vec MQPR:$v1);
5612  defvar v2   = (VTI.Vec MQPR:$v2);
5613  defvar vs   = (VTI.Vec (ARMvdup rGPR:$s));
5614  defvar s    = (i32 rGPR:$s);
5615  defvar pred = (VTI.Pred VCCR:$pred);
5616
5617  // The signed and unsigned variants of this instruction have different
5618  // encodings, but they're functionally identical. For the sake of
5619  // determinism, we generate only the unsigned variant.
5620  if VTI.Unsigned then let Predicates = [HasMVEInt] in {
5621    if scalar_addend then {
5622      def : Pat<(VTI.Vec (add (mul v1, v2), vs)),
5623                (VTI.Vec (Inst v1, v2, s))>;
5624    } else {
5625      def : Pat<(VTI.Vec (add (mul v2, vs), v1)),
5626                (VTI.Vec (Inst v1, v2, s))>;
5627    }
5628
5629    def : Pat<(VTI.Vec (pred_int v1, v2, s, pred)),
5630              (VTI.Vec (Inst v1, v2, s, ARMVCCThen, pred))>;
5631  }
5632}
5633
5634defm MVE_VMLA_qr_s8   : MVE_VMLA_qr_multi<"vmla", MVE_v16s8, 0b0>;
5635defm MVE_VMLA_qr_s16  : MVE_VMLA_qr_multi<"vmla", MVE_v8s16, 0b0>;
5636defm MVE_VMLA_qr_s32  : MVE_VMLA_qr_multi<"vmla", MVE_v4s32, 0b0>;
5637defm MVE_VMLA_qr_u8   : MVE_VMLA_qr_multi<"vmla", MVE_v16u8, 0b0>;
5638defm MVE_VMLA_qr_u16  : MVE_VMLA_qr_multi<"vmla", MVE_v8u16, 0b0>;
5639defm MVE_VMLA_qr_u32  : MVE_VMLA_qr_multi<"vmla", MVE_v4u32, 0b0>;
5640
5641defm MVE_VMLAS_qr_s8  : MVE_VMLA_qr_multi<"vmlas", MVE_v16s8, 0b1>;
5642defm MVE_VMLAS_qr_s16 : MVE_VMLA_qr_multi<"vmlas", MVE_v8s16, 0b1>;
5643defm MVE_VMLAS_qr_s32 : MVE_VMLA_qr_multi<"vmlas", MVE_v4s32, 0b1>;
5644defm MVE_VMLAS_qr_u8  : MVE_VMLA_qr_multi<"vmlas", MVE_v16u8, 0b1>;
5645defm MVE_VMLAS_qr_u16 : MVE_VMLA_qr_multi<"vmlas", MVE_v8u16, 0b1>;
5646defm MVE_VMLAS_qr_u32 : MVE_VMLA_qr_multi<"vmlas", MVE_v4u32, 0b1>;
5647
5648multiclass MVE_VFMA_qr_multi<string iname, MVEVectorVTInfo VTI,
5649                             bit scalar_addend> {
5650  def "": MVE_VFMAMLA_qr<iname, VTI.Suffix, VTI.Size{0}, 0b11, scalar_addend>;
5651  defvar Inst = !cast<Instruction>(NAME);
5652  defvar pred_int = int_arm_mve_fma_predicated;
5653  defvar v1   = (VTI.Vec MQPR:$v1);
5654  defvar v2   = (VTI.Vec MQPR:$v2);
5655  defvar vs   = (VTI.Vec (ARMvdup (i32 rGPR:$s)));
5656  defvar is   = (i32 rGPR:$s);
5657  defvar pred = (VTI.Pred VCCR:$pred);
5658
5659  let Predicates = [HasMVEFloat] in {
5660    if scalar_addend then {
5661      def : Pat<(VTI.Vec (fma v1, v2, vs)),
5662                (VTI.Vec (Inst v1, v2, is))>;
5663      def : Pat<(VTI.Vec (vselect (VTI.Pred VCCR:$pred),
5664                                  (VTI.Vec (fma v1, v2, vs)),
5665                                  v1)),
5666                (VTI.Vec (Inst v1, v2, is, ARMVCCThen, $pred))>;
5667      def : Pat<(VTI.Vec (pred_int v1, v2, vs, pred)),
5668                (VTI.Vec (Inst v1, v2, is, ARMVCCThen, pred))>;
5669    } else {
5670      def : Pat<(VTI.Vec (fma v1, vs, v2)),
5671                (VTI.Vec (Inst v2, v1, is))>;
5672      def : Pat<(VTI.Vec (fma vs, v1, v2)),
5673                (VTI.Vec (Inst v2, v1, is))>;
5674      def : Pat<(VTI.Vec (vselect (VTI.Pred VCCR:$pred),
5675                                  (VTI.Vec (fma vs, v2, v1)),
5676                                  v1)),
5677                (VTI.Vec (Inst v1, v2, is, ARMVCCThen, $pred))>;
5678      def : Pat<(VTI.Vec (vselect (VTI.Pred VCCR:$pred),
5679                                  (VTI.Vec (fma v2, vs, v1)),
5680                                  v1)),
5681                (VTI.Vec (Inst v1, v2, is, ARMVCCThen, $pred))>;
5682      def : Pat<(VTI.Vec (pred_int v1, vs, v2, pred)),
5683                (VTI.Vec (Inst v2, v1, is, ARMVCCThen, pred))>;
5684      def : Pat<(VTI.Vec (pred_int vs, v1, v2, pred)),
5685                (VTI.Vec (Inst v2, v1, is, ARMVCCThen, pred))>;
5686    }
5687  }
5688}
5689
5690let Predicates = [HasMVEFloat] in {
5691  defm MVE_VFMA_qr_f16  : MVE_VFMA_qr_multi<"vfma",  MVE_v8f16, 0>;
5692  defm MVE_VFMA_qr_f32  : MVE_VFMA_qr_multi<"vfma",  MVE_v4f32, 0>;
5693  defm MVE_VFMA_qr_Sf16 : MVE_VFMA_qr_multi<"vfmas", MVE_v8f16, 1>;
5694  defm MVE_VFMA_qr_Sf32 : MVE_VFMA_qr_multi<"vfmas", MVE_v4f32, 1>;
5695}
5696
5697class MVE_VQDMLAH_qr<string iname, string suffix, bit U, bits<2> size,
5698                     bit bit_5, bit bit_12, list<dag> pattern=[]>
5699  : MVE_qDestSrc_rSrc<iname, suffix, pattern> {
5700
5701  let Inst{28} = U;
5702  let Inst{21-20} = size;
5703  let Inst{16} = 0b0;
5704  let Inst{12} = bit_12;
5705  let Inst{8} = 0b0;
5706  let Inst{5} = bit_5;
5707}
5708
5709multiclass MVE_VQDMLAH_qr_multi<string iname, MVEVectorVTInfo VTI,
5710                                bit bit_5, bit bit_12> {
5711  def "": MVE_VQDMLAH_qr<iname, VTI.Suffix, 0b0, VTI.Size, bit_5, bit_12>;
5712  defvar Inst = !cast<Instruction>(NAME);
5713  defvar unpred_int = !cast<Intrinsic>("int_arm_mve_" # iname);
5714  defvar pred_int = !cast<Intrinsic>("int_arm_mve_" # iname # "_predicated");
5715
5716  let Predicates = [HasMVEInt] in {
5717    def : Pat<(VTI.Vec (unpred_int (VTI.Vec MQPR:$v1), (VTI.Vec MQPR:$v2),
5718                                   (i32 rGPR:$s))),
5719              (VTI.Vec (Inst       (VTI.Vec MQPR:$v1), (VTI.Vec MQPR:$v2),
5720                                   (i32 rGPR:$s)))>;
5721    def : Pat<(VTI.Vec (pred_int   (VTI.Vec MQPR:$v1), (VTI.Vec MQPR:$v2),
5722                                   (i32 rGPR:$s), (VTI.Pred VCCR:$pred))),
5723              (VTI.Vec (Inst       (VTI.Vec MQPR:$v1), (VTI.Vec MQPR:$v2),
5724                                   (i32 rGPR:$s), ARMVCCThen,
5725                                   (VTI.Pred VCCR:$pred)))>;
5726  }
5727}
5728
5729multiclass MVE_VQDMLAH_qr_types<string iname, bit bit_5, bit bit_12> {
5730  defm s8  : MVE_VQDMLAH_qr_multi<iname, MVE_v16s8, bit_5, bit_12>;
5731  defm s16 : MVE_VQDMLAH_qr_multi<iname, MVE_v8s16, bit_5, bit_12>;
5732  defm s32 : MVE_VQDMLAH_qr_multi<iname, MVE_v4s32, bit_5, bit_12>;
5733}
5734
5735defm MVE_VQDMLAH_qr   : MVE_VQDMLAH_qr_types<"vqdmlah",   0b1, 0b0>;
5736defm MVE_VQRDMLAH_qr  : MVE_VQDMLAH_qr_types<"vqrdmlah",  0b0, 0b0>;
5737defm MVE_VQDMLASH_qr  : MVE_VQDMLAH_qr_types<"vqdmlash",  0b1, 0b1>;
5738defm MVE_VQRDMLASH_qr : MVE_VQDMLAH_qr_types<"vqrdmlash", 0b0, 0b1>;
5739
5740class MVE_VxDUP<string iname, string suffix, bits<2> size, bit bit_12,
5741              list<dag> pattern=[]>
5742  : MVE_p<(outs MQPR:$Qd, tGPREven:$Rn),
5743          (ins tGPREven:$Rn_src, MVE_VIDUP_imm:$imm), NoItinerary,
5744          iname, suffix, "$Qd, $Rn, $imm", vpred_r, "$Rn = $Rn_src",
5745          pattern> {
5746  bits<4> Qd;
5747  bits<4> Rn;
5748  bits<2> imm;
5749
5750  let Inst{28} = 0b0;
5751  let Inst{25-23} = 0b100;
5752  let Inst{22} = Qd{3};
5753  let Inst{21-20} = size;
5754  let Inst{19-17} = Rn{3-1};
5755  let Inst{16} = 0b1;
5756  let Inst{15-13} = Qd{2-0};
5757  let Inst{12} = bit_12;
5758  let Inst{11-8} = 0b1111;
5759  let Inst{7} = imm{1};
5760  let Inst{6-1} = 0b110111;
5761  let Inst{0} = imm{0};
5762  let validForTailPredication = 1;
5763  let hasSideEffects = 0;
5764}
5765
5766def MVE_VIDUPu8  : MVE_VxDUP<"vidup", "u8",  0b00, 0b0>;
5767def MVE_VIDUPu16 : MVE_VxDUP<"vidup", "u16", 0b01, 0b0>;
5768def MVE_VIDUPu32 : MVE_VxDUP<"vidup", "u32", 0b10, 0b0>;
5769
5770def MVE_VDDUPu8  : MVE_VxDUP<"vddup", "u8",  0b00, 0b1>;
5771def MVE_VDDUPu16 : MVE_VxDUP<"vddup", "u16", 0b01, 0b1>;
5772def MVE_VDDUPu32 : MVE_VxDUP<"vddup", "u32", 0b10, 0b1>;
5773
5774class MVE_VxWDUP<string iname, string suffix, bits<2> size, bit bit_12,
5775                 list<dag> pattern=[]>
5776  : MVE_p<(outs MQPR:$Qd, tGPREven:$Rn),
5777          (ins tGPREven:$Rn_src, tGPROdd:$Rm, MVE_VIDUP_imm:$imm), NoItinerary,
5778          iname, suffix, "$Qd, $Rn, $Rm, $imm", vpred_r, "$Rn = $Rn_src",
5779          pattern> {
5780  bits<4> Qd;
5781  bits<4> Rm;
5782  bits<4> Rn;
5783  bits<2> imm;
5784
5785  let Inst{28} = 0b0;
5786  let Inst{25-23} = 0b100;
5787  let Inst{22} = Qd{3};
5788  let Inst{21-20} = size;
5789  let Inst{19-17} = Rn{3-1};
5790  let Inst{16} = 0b1;
5791  let Inst{15-13} = Qd{2-0};
5792  let Inst{12} = bit_12;
5793  let Inst{11-8} = 0b1111;
5794  let Inst{7} = imm{1};
5795  let Inst{6-4} = 0b110;
5796  let Inst{3-1} = Rm{3-1};
5797  let Inst{0} = imm{0};
5798  let validForTailPredication = 1;
5799  let hasSideEffects = 0;
5800}
5801
5802def MVE_VIWDUPu8  : MVE_VxWDUP<"viwdup", "u8",  0b00, 0b0>;
5803def MVE_VIWDUPu16 : MVE_VxWDUP<"viwdup", "u16", 0b01, 0b0>;
5804def MVE_VIWDUPu32 : MVE_VxWDUP<"viwdup", "u32", 0b10, 0b0>;
5805
5806def MVE_VDWDUPu8  : MVE_VxWDUP<"vdwdup", "u8",  0b00, 0b1>;
5807def MVE_VDWDUPu16 : MVE_VxWDUP<"vdwdup", "u16", 0b01, 0b1>;
5808def MVE_VDWDUPu32 : MVE_VxWDUP<"vdwdup", "u32", 0b10, 0b1>;
5809
5810let isReMaterializable = 1 in
5811class MVE_VCTPInst<string suffix, bits<2> size, list<dag> pattern=[]>
5812  : MVE_p<(outs VCCR:$P0), (ins rGPR:$Rn), NoItinerary, "vctp", suffix,
5813          "$Rn", vpred_n, "", pattern> {
5814  bits<4> Rn;
5815
5816  let Inst{28-27} = 0b10;
5817  let Inst{26-22} = 0b00000;
5818  let Inst{21-20} = size;
5819  let Inst{19-16} = Rn{3-0};
5820  let Inst{15-11} = 0b11101;
5821  let Inst{10-0}  = 0b00000000001;
5822  let Unpredictable{10-0} = 0b11111111111;
5823
5824  let Constraints = "";
5825  let DecoderMethod = "DecodeMveVCTP";
5826  let validForTailPredication = 1;
5827}
5828
5829multiclass MVE_VCTP<MVEVectorVTInfo VTI, Intrinsic intr> {
5830  def "": MVE_VCTPInst<VTI.BitsSuffix, VTI.Size>;
5831  defvar Inst = !cast<Instruction>(NAME);
5832
5833  let Predicates = [HasMVEInt] in {
5834    def : Pat<(intr rGPR:$Rn),
5835              (VTI.Pred (Inst rGPR:$Rn))>;
5836    def : Pat<(and (intr rGPR:$Rn), (VTI.Pred VCCR:$mask)),
5837              (VTI.Pred (Inst rGPR:$Rn, ARMVCCThen, VCCR:$mask))>;
5838  }
5839}
5840
5841defm MVE_VCTP8  : MVE_VCTP<MVE_v16i8, int_arm_mve_vctp8>;
5842defm MVE_VCTP16 : MVE_VCTP<MVE_v8i16, int_arm_mve_vctp16>;
5843defm MVE_VCTP32 : MVE_VCTP<MVE_v4i32, int_arm_mve_vctp32>;
5844defm MVE_VCTP64 : MVE_VCTP<MVE_v2i64, int_arm_mve_vctp64>;
5845
5846// end of mve_qDest_rSrc
5847
5848// start of coproc mov
5849
5850class MVE_VMOV_64bit<dag oops, dag iops, bit to_qreg, string ops, string cstr>
5851  : MVE_VMOV_lane_base<oops, !con(iops, (ins MVEPairVectorIndex2:$idx,
5852                                             MVEPairVectorIndex0:$idx2)),
5853                       NoItinerary, "vmov", "", ops, cstr, []> {
5854  bits<5> Rt;
5855  bits<5> Rt2;
5856  bits<4> Qd;
5857  bit idx;
5858  bit idx2;
5859
5860  let Inst{31-23} = 0b111011000;
5861  let Inst{22} = Qd{3};
5862  let Inst{21} = 0b0;
5863  let Inst{20} = to_qreg;
5864  let Inst{19-16} = Rt2{3-0};
5865  let Inst{15-13} = Qd{2-0};
5866  let Inst{12-5} = 0b01111000;
5867  let Inst{4} = idx2;
5868  let Inst{3-0} = Rt{3-0};
5869
5870  let hasSideEffects = 0;
5871}
5872
5873// The assembly syntax for these instructions mentions the vector
5874// register name twice, e.g.
5875//
5876//    vmov q2[2], q2[0], r0, r1
5877//    vmov r0, r1, q2[2], q2[0]
5878//
5879// which needs a bit of juggling with MC operand handling.
5880//
5881// For the move _into_ a vector register, the MC operand list also has
5882// to mention the register name twice: once as the output, and once as
5883// an extra input to represent where the unchanged half of the output
5884// register comes from (when this instruction is used in code
5885// generation). So we arrange that the first mention of the vector reg
5886// in the instruction is considered by the AsmMatcher to be the output
5887// ($Qd), and the second one is the input ($QdSrc). Binding them
5888// together with the existing 'tie' constraint is enough to enforce at
5889// register allocation time that they have to be the same register.
5890//
5891// For the move _from_ a vector register, there's no way to get round
5892// the fact that both instances of that register name have to be
5893// inputs. They have to be the same register again, but this time, we
5894// can't use a tie constraint, because that has to be between an
5895// output and an input operand. So this time, we have to arrange that
5896// the q-reg appears just once in the MC operand list, in spite of
5897// being mentioned twice in the asm syntax - which needs a custom
5898// AsmMatchConverter.
5899
5900def MVE_VMOV_q_rr : MVE_VMOV_64bit<(outs MQPR:$Qd),
5901                                   (ins MQPR:$QdSrc, rGPR:$Rt, rGPR:$Rt2),
5902                                   0b1, "$Qd$idx, $QdSrc$idx2, $Rt, $Rt2",
5903                                   "$Qd = $QdSrc"> {
5904  let DecoderMethod = "DecodeMVEVMOVDRegtoQ";
5905}
5906
5907def MVE_VMOV_rr_q : MVE_VMOV_64bit<(outs rGPR:$Rt, rGPR:$Rt2), (ins MQPR:$Qd),
5908                                   0b0, "$Rt, $Rt2, $Qd$idx, $Qd$idx2", ""> {
5909  let DecoderMethod = "DecodeMVEVMOVQtoDReg";
5910  let AsmMatchConverter = "cvtMVEVMOVQtoDReg";
5911}
5912
5913let Predicates = [HasMVEInt] in {
5914  // Double lane moves. There are a number of patterns here. We know that the
5915  // insertelt's will be in descending order by index, and need to match the 5
5916  // patterns that might contain 2-0 or 3-1 pairs. These are:
5917  // 3 2 1 0    -> vmovqrr 31; vmovqrr 20
5918  // 3 2 1      -> vmovqrr 31; vmov 2
5919  // 3 1        -> vmovqrr 31
5920  // 2 1 0      -> vmovqrr 20; vmov 1
5921  // 2 0        -> vmovqrr 20
5922  // The other potential patterns will be handled by single lane inserts.
5923  def : Pat<(insertelt (insertelt (insertelt (insertelt (v4i32 MQPR:$src1),
5924                                                        rGPR:$srcA, (i32 0)),
5925                                             rGPR:$srcB, (i32 1)),
5926                                  rGPR:$srcC, (i32 2)),
5927                       rGPR:$srcD, (i32 3)),
5928            (MVE_VMOV_q_rr (MVE_VMOV_q_rr MQPR:$src1, rGPR:$srcA, rGPR:$srcC, (i32 2), (i32 0)),
5929                           rGPR:$srcB, rGPR:$srcD, (i32 3), (i32 1))>;
5930  def : Pat<(insertelt (insertelt (insertelt (v4i32 MQPR:$src1),
5931                                             rGPR:$srcB, (i32 1)),
5932                                  rGPR:$srcC, (i32 2)),
5933                       rGPR:$srcD, (i32 3)),
5934            (MVE_VMOV_q_rr (MVE_VMOV_to_lane_32 MQPR:$src1, rGPR:$srcC, (i32 2)),
5935                           rGPR:$srcB, rGPR:$srcD, (i32 3), (i32 1))>;
5936  def : Pat<(insertelt (insertelt (v4i32 MQPR:$src1), rGPR:$srcA, (i32 1)), rGPR:$srcB, (i32 3)),
5937            (MVE_VMOV_q_rr MQPR:$src1, rGPR:$srcA, rGPR:$srcB, (i32 3), (i32 1))>;
5938  def : Pat<(insertelt (insertelt (insertelt (v4i32 MQPR:$src1),
5939                                             rGPR:$srcB, (i32 0)),
5940                                  rGPR:$srcC, (i32 1)),
5941                       rGPR:$srcD, (i32 2)),
5942            (MVE_VMOV_q_rr (MVE_VMOV_to_lane_32 MQPR:$src1, rGPR:$srcC, (i32 1)),
5943                           rGPR:$srcB, rGPR:$srcD, (i32 2), (i32 0))>;
5944  def : Pat<(insertelt (insertelt (v4i32 MQPR:$src1), rGPR:$srcA, (i32 0)), rGPR:$srcB, (i32 2)),
5945            (MVE_VMOV_q_rr MQPR:$src1, rGPR:$srcA, rGPR:$srcB, (i32 2), (i32 0))>;
5946}
5947
5948// end of coproc mov
5949
5950// start of MVE interleaving load/store
5951
5952// Base class for the family of interleaving/deinterleaving
5953// load/stores with names like VLD20.8 and VST43.32.
5954class MVE_vldst24_base<bit writeback, bit fourregs, bits<2> stage, bits<2> size,
5955                       bit load, dag Oops, dag loadIops, dag wbIops,
5956                       string iname, string ops,
5957                       string cstr, list<dag> pattern=[]>
5958  : MVE_MI<Oops, !con(loadIops, wbIops), NoItinerary, iname, ops, cstr, pattern> {
5959  bits<4> VQd;
5960  bits<4> Rn;
5961
5962  let Inst{31-22} = 0b1111110010;
5963  let Inst{21} = writeback;
5964  let Inst{20} = load;
5965  let Inst{19-16} = Rn;
5966  let Inst{15-13} = VQd{2-0};
5967  let Inst{12-9} = 0b1111;
5968  let Inst{8-7} = size;
5969  let Inst{6-5} = stage;
5970  let Inst{4-1} = 0b0000;
5971  let Inst{0} = fourregs;
5972
5973  let mayLoad = load;
5974  let mayStore = !eq(load,0);
5975  let hasSideEffects = 0;
5976  let validForTailPredication = load;
5977}
5978
5979// A parameter class used to encapsulate all the ways the writeback
5980// variants of VLD20 and friends differ from the non-writeback ones.
5981class MVE_vldst24_writeback<bit b, dag Oo, dag Io,
5982                            string sy="", string c="", string n=""> {
5983  bit writeback = b;
5984  dag Oops = Oo;
5985  dag Iops = Io;
5986  string syntax = sy;
5987  string cstr = c;
5988  string id_suffix = n;
5989}
5990
5991// Another parameter class that encapsulates the differences between VLD2x
5992// and VLD4x.
5993class MVE_vldst24_nvecs<int n, list<int> s, bit b, RegisterOperand vl> {
5994  int nvecs = n;
5995  list<int> stages = s;
5996  bit bit0 = b;
5997  RegisterOperand VecList = vl;
5998}
5999
6000// A third parameter class that distinguishes VLDnn.8 from .16 from .32.
6001class MVE_vldst24_lanesize<int i, bits<2> b> {
6002  int lanesize = i;
6003  bits<2> sizebits = b;
6004}
6005
6006// A base class for each direction of transfer: one for load, one for
6007// store. I can't make these a fourth independent parametric tuple
6008// class, because they have to take the nvecs tuple class as a
6009// parameter, in order to find the right VecList operand type.
6010
6011class MVE_vld24_base<MVE_vldst24_nvecs n, bits<2> pat, bits<2> size,
6012                     MVE_vldst24_writeback wb, string iname,
6013                     list<dag> pattern=[]>
6014  : MVE_vldst24_base<wb.writeback, n.bit0, pat, size, 1,
6015                     !con((outs n.VecList:$VQd), wb.Oops),
6016                     (ins n.VecList:$VQdSrc), wb.Iops,
6017                     iname, "$VQd, $Rn" # wb.syntax,
6018                     wb.cstr # ",$VQdSrc = $VQd", pattern>;
6019
6020class MVE_vst24_base<MVE_vldst24_nvecs n, bits<2> pat, bits<2> size,
6021                     MVE_vldst24_writeback wb, string iname,
6022                     list<dag> pattern=[]>
6023  : MVE_vldst24_base<wb.writeback, n.bit0, pat, size, 0,
6024                     wb.Oops, (ins n.VecList:$VQd), wb.Iops,
6025                     iname, "$VQd, $Rn" # wb.syntax,
6026                     wb.cstr, pattern>;
6027
6028// Actually define all the interleaving loads and stores, by a series
6029// of nested foreaches over number of vectors (VLD2/VLD4); stage
6030// within one of those series (VLDx0/VLDx1/VLDx2/VLDx3); size of
6031// vector lane; writeback or no writeback.
6032foreach n = [MVE_vldst24_nvecs<2, [0,1],     0, VecList2Q>,
6033             MVE_vldst24_nvecs<4, [0,1,2,3], 1, VecList4Q>] in
6034foreach stage = n.stages in
6035foreach s = [MVE_vldst24_lanesize< 8, 0b00>,
6036             MVE_vldst24_lanesize<16, 0b01>,
6037             MVE_vldst24_lanesize<32, 0b10>] in
6038foreach wb = [MVE_vldst24_writeback<
6039                1, (outs rGPR:$wb), (ins t2_nosp_addr_offset_none:$Rn),
6040                "!", "$Rn.base = $wb", "_wb">,
6041              MVE_vldst24_writeback<0, (outs), (ins t2_addr_offset_none:$Rn)>] in {
6042
6043  // For each case within all of those foreaches, define the actual
6044  // instructions. The def names are made by gluing together pieces
6045  // from all the parameter classes, and will end up being things like
6046  // MVE_VLD20_8 and MVE_VST43_16_wb.
6047
6048  def "MVE_VLD" # n.nvecs # stage # "_" # s.lanesize # wb.id_suffix
6049    : MVE_vld24_base<n, stage, s.sizebits, wb,
6050                     "vld" # n.nvecs # stage # "." # s.lanesize>;
6051
6052  def "MVE_VST" # n.nvecs # stage # "_" # s.lanesize # wb.id_suffix
6053    : MVE_vst24_base<n, stage, s.sizebits, wb,
6054                     "vst" # n.nvecs # stage # "." # s.lanesize>;
6055}
6056
6057def SDTARMVST2    : SDTypeProfile<1, 5, [SDTCisPtrTy<0>, SDTCisPtrTy<1>, SDTCisVT<2, i32>, SDTCisVec<3>,
6058                                         SDTCisSameAs<3, 4>, SDTCisVT<5, i32>]>;
6059def SDTARMVST4    : SDTypeProfile<1, 7, [SDTCisPtrTy<0>, SDTCisPtrTy<1>, SDTCisVT<2, i32>, SDTCisVec<3>,
6060                                         SDTCisSameAs<3, 4>, SDTCisSameAs<3, 5>,
6061                                         SDTCisSameAs<3, 6>, SDTCisVT<7, i32>]>;
6062def MVEVST2UPD       : SDNode<"ARMISD::VST2_UPD", SDTARMVST2, [SDNPHasChain]>;
6063def MVEVST4UPD       : SDNode<"ARMISD::VST4_UPD", SDTARMVST4, [SDNPHasChain]>;
6064
6065multiclass MVE_vst24_patterns<int lanesize, ValueType VT> {
6066  foreach stage = [0,1] in
6067    def : Pat<(int_arm_mve_vst2q i32:$addr,
6068                (VT MQPR:$v0), (VT MQPR:$v1), (i32 stage)),
6069              (!cast<Instruction>("MVE_VST2"#stage#"_"#lanesize)
6070                (REG_SEQUENCE QQPR, VT:$v0, qsub_0, VT:$v1, qsub_1),
6071                t2_addr_offset_none:$addr)>;
6072  foreach stage = [0,1] in
6073    def : Pat<(i32 (MVEVST2UPD i32:$addr, (i32 32),
6074                (VT MQPR:$v0), (VT MQPR:$v1), (i32 stage))),
6075              (i32 (!cast<Instruction>("MVE_VST2"#stage#"_"#lanesize#_wb)
6076                (REG_SEQUENCE QQPR, VT:$v0, qsub_0, VT:$v1, qsub_1),
6077                t2_addr_offset_none:$addr))>;
6078
6079  foreach stage = [0,1,2,3] in
6080    def : Pat<(int_arm_mve_vst4q i32:$addr,
6081                (VT MQPR:$v0), (VT MQPR:$v1),
6082                (VT MQPR:$v2), (VT MQPR:$v3), (i32 stage)),
6083              (!cast<Instruction>("MVE_VST4"#stage#"_"#lanesize)
6084                (REG_SEQUENCE QQQQPR, VT:$v0, qsub_0, VT:$v1, qsub_1,
6085                                      VT:$v2, qsub_2, VT:$v3, qsub_3),
6086                t2_addr_offset_none:$addr)>;
6087  foreach stage = [0,1,2,3] in
6088    def : Pat<(i32 (MVEVST4UPD i32:$addr, (i32 64),
6089                (VT MQPR:$v0), (VT MQPR:$v1),
6090                (VT MQPR:$v2), (VT MQPR:$v3), (i32 stage))),
6091              (i32 (!cast<Instruction>("MVE_VST4"#stage#"_"#lanesize#_wb)
6092                (REG_SEQUENCE QQQQPR, VT:$v0, qsub_0, VT:$v1, qsub_1,
6093                                      VT:$v2, qsub_2, VT:$v3, qsub_3),
6094                t2_addr_offset_none:$addr))>;
6095}
6096defm : MVE_vst24_patterns<8, v16i8>;
6097defm : MVE_vst24_patterns<16, v8i16>;
6098defm : MVE_vst24_patterns<32, v4i32>;
6099defm : MVE_vst24_patterns<16, v8f16>;
6100defm : MVE_vst24_patterns<32, v4f32>;
6101
6102// end of MVE interleaving load/store
6103
6104// start of MVE predicable load/store
6105
6106// A parameter class for the direction of transfer.
6107class MVE_ldst_direction<bit b, dag Oo, dag Io, string c=""> {
6108  bit load = b;
6109  dag Oops = Oo;
6110  dag Iops = Io;
6111  string cstr = c;
6112}
6113def MVE_ld: MVE_ldst_direction<1, (outs MQPR:$Qd), (ins), ",@earlyclobber $Qd">;
6114def MVE_st: MVE_ldst_direction<0, (outs), (ins MQPR:$Qd)>;
6115
6116// A parameter class for the size of memory access in a load.
6117class MVE_memsz<bits<2> e, int s, AddrMode m, string mn, list<string> types> {
6118  bits<2> encoding = e;         // opcode bit(s) for encoding
6119  int shift = s;                // shift applied to immediate load offset
6120  AddrMode AM = m;
6121
6122  // For instruction aliases: define the complete list of type
6123  // suffixes at this size, and the canonical ones for loads and
6124  // stores.
6125  string MnemonicLetter = mn;
6126  int TypeBits = !shl(8, s);
6127  string CanonLoadSuffix = ".u" # TypeBits;
6128  string CanonStoreSuffix = "." # TypeBits;
6129  list<string> suffixes = !foreach(letter, types, "." # letter # TypeBits);
6130}
6131
6132// Instances of MVE_memsz.
6133//
6134// (memD doesn't need an AddrMode, because those are only for
6135// contiguous loads, and memD is only used by gather/scatters.)
6136def MVE_memB: MVE_memsz<0b00, 0, AddrModeT2_i7,   "b", ["", "u", "s"]>;
6137def MVE_memH: MVE_memsz<0b01, 1, AddrModeT2_i7s2, "h", ["", "u", "s", "f"]>;
6138def MVE_memW: MVE_memsz<0b10, 2, AddrModeT2_i7s4, "w", ["", "u", "s", "f"]>;
6139def MVE_memD: MVE_memsz<0b11, 3, ?,               "d", ["", "u", "s", "f"]>;
6140
6141// This is the base class for all the MVE loads and stores other than
6142// the interleaving ones. All the non-interleaving loads/stores share
6143// the characteristic that they operate on just one vector register,
6144// so they are VPT-predicable.
6145//
6146// The predication operand is vpred_n, for both loads and stores. For
6147// store instructions, the reason is obvious: if there is no output
6148// register, there can't be a need for an input parameter giving the
6149// output register's previous value. Load instructions also don't need
6150// that input parameter, because unlike MVE data processing
6151// instructions, predicated loads are defined to set the inactive
6152// lanes of the output register to zero, instead of preserving their
6153// input values.
6154class MVE_VLDRSTR_base<MVE_ldst_direction dir, bit U, bit P, bit W, bit opc,
6155                       dag oops, dag iops, string asm, string suffix,
6156                       string ops, string cstr, list<dag> pattern=[]>
6157 : MVE_p<oops, iops, NoItinerary, asm, suffix, ops, vpred_n, cstr, pattern> {
6158  bits<3> Qd;
6159
6160  let Inst{28} = U;
6161  let Inst{25} = 0b0;
6162  let Inst{24} = P;
6163  let Inst{22} = 0b0;
6164  let Inst{21} = W;
6165  let Inst{20} = dir.load;
6166  let Inst{15-13} = Qd{2-0};
6167  let Inst{12} = opc;
6168  let Inst{11-9} = 0b111;
6169
6170  let mayLoad = dir.load;
6171  let mayStore = !eq(dir.load,0);
6172  let hasSideEffects = 0;
6173  let validForTailPredication = 1;
6174}
6175
6176// Contiguous load and store instructions. These come in two main
6177// categories: same-size loads/stores in which 128 bits of vector
6178// register is transferred to or from 128 bits of memory in the most
6179// obvious way, and widening loads / narrowing stores, in which the
6180// size of memory accessed is less than the size of a vector register,
6181// so the load instructions sign- or zero-extend each memory value
6182// into a wider vector lane, and the store instructions truncate
6183// correspondingly.
6184//
6185// The instruction mnemonics for these two classes look reasonably
6186// similar, but the actual encodings are different enough to need two
6187// separate base classes.
6188
6189// Contiguous, same size
6190class MVE_VLDRSTR_cs<MVE_ldst_direction dir, MVE_memsz memsz, bit P, bit W,
6191                     dag oops, dag iops, string asm, string suffix,
6192                     IndexMode im, string ops, string cstr>
6193  : MVE_VLDRSTR_base<dir, 0, P, W, 1, oops, iops, asm, suffix, ops, cstr> {
6194  bits<12> addr;
6195  let Inst{23} = addr{7};
6196  let Inst{19-16} = addr{11-8};
6197  let Inst{8-7} = memsz.encoding;
6198  let Inst{6-0} = addr{6-0};
6199}
6200
6201// Contiguous, widening/narrowing
6202class MVE_VLDRSTR_cw<MVE_ldst_direction dir, MVE_memsz memsz, bit U,
6203                     bit P, bit W, bits<2> size, dag oops, dag iops,
6204                     string asm, string suffix, IndexMode im,
6205                     string ops, string cstr>
6206  : MVE_VLDRSTR_base<dir, U, P, W, 0, oops, iops, asm, suffix, ops, cstr> {
6207  bits<11> addr;
6208  let Inst{23} = addr{7};
6209  let Inst{19} = memsz.encoding{0}; // enough to tell 16- from 32-bit
6210  let Inst{18-16} = addr{10-8};
6211  let Inst{8-7} = size;
6212  let Inst{6-0} = addr{6-0};
6213
6214  let IM = im;
6215}
6216
6217// Multiclass wrapper on each of the _cw and _cs base classes, to
6218// generate three writeback modes (none, preindex, postindex).
6219
6220multiclass MVE_VLDRSTR_cw_m<MVE_ldst_direction dir, MVE_memsz memsz,
6221                            string asm, string suffix, bit U, bits<2> size> {
6222  let AM = memsz.AM in {
6223    def "" : MVE_VLDRSTR_cw<
6224        dir, memsz, U, 1, 0, size,
6225        dir.Oops, !con(dir.Iops, (ins taddrmode_imm7<memsz.shift>:$addr)),
6226        asm, suffix, IndexModeNone, "$Qd, $addr", "">;
6227
6228    def _pre : MVE_VLDRSTR_cw<
6229        dir, memsz, U, 1, 1, size,
6230        !con((outs tGPR:$wb), dir.Oops),
6231        !con(dir.Iops, (ins taddrmode_imm7<memsz.shift>:$addr)),
6232        asm, suffix, IndexModePre, "$Qd, $addr!", "$addr.base = $wb"> {
6233      let DecoderMethod = "DecodeMVE_MEM_1_pre<"#memsz.shift#">";
6234    }
6235
6236    def _post : MVE_VLDRSTR_cw<
6237        dir, memsz, U, 0, 1, size,
6238        !con((outs tGPR:$wb), dir.Oops),
6239        !con(dir.Iops, (ins t_addr_offset_none:$Rn,
6240                            t2am_imm7_offset<memsz.shift>:$addr)),
6241        asm, suffix, IndexModePost, "$Qd, $Rn$addr", "$Rn.base = $wb"> {
6242      bits<4> Rn;
6243      let Inst{18-16} = Rn{2-0};
6244    }
6245  }
6246}
6247
6248multiclass MVE_VLDRSTR_cs_m<MVE_ldst_direction dir, MVE_memsz memsz,
6249                            string asm, string suffix> {
6250  let AM = memsz.AM in {
6251    def "" : MVE_VLDRSTR_cs<
6252        dir, memsz, 1, 0,
6253        dir.Oops, !con(dir.Iops, (ins t2addrmode_imm7<memsz.shift>:$addr)),
6254        asm, suffix, IndexModeNone, "$Qd, $addr", "">;
6255
6256    def _pre : MVE_VLDRSTR_cs<
6257        dir, memsz, 1, 1,
6258        !con((outs rGPR:$wb), dir.Oops),
6259        !con(dir.Iops, (ins t2addrmode_imm7_pre<memsz.shift>:$addr)),
6260        asm, suffix, IndexModePre, "$Qd, $addr!", "$addr.base = $wb"> {
6261      let DecoderMethod = "DecodeMVE_MEM_2_pre<"#memsz.shift#">";
6262    }
6263
6264    def _post : MVE_VLDRSTR_cs<
6265        dir, memsz, 0, 1,
6266        !con((outs rGPR:$wb), dir.Oops),
6267        !con(dir.Iops, (ins t2_nosp_addr_offset_none:$Rn,
6268                            t2am_imm7_offset<memsz.shift>:$addr)),
6269        asm, suffix, IndexModePost, "$Qd, $Rn$addr", "$Rn.base = $wb"> {
6270      bits<4> Rn;
6271      let Inst{19-16} = Rn{3-0};
6272    }
6273  }
6274}
6275
6276// Now actually declare all the contiguous load/stores, via those
6277// multiclasses. The instruction ids coming out of this are the bare
6278// names shown in the defm, with _pre or _post appended for writeback,
6279// e.g. MVE_VLDRBS16, MVE_VSTRB16_pre, MVE_VSTRHU16_post.
6280
6281defm MVE_VLDRBS16: MVE_VLDRSTR_cw_m<MVE_ld, MVE_memB, "vldrb", "s16", 0, 0b01>;
6282defm MVE_VLDRBS32: MVE_VLDRSTR_cw_m<MVE_ld, MVE_memB, "vldrb", "s32", 0, 0b10>;
6283defm MVE_VLDRBU16: MVE_VLDRSTR_cw_m<MVE_ld, MVE_memB, "vldrb", "u16", 1, 0b01>;
6284defm MVE_VLDRBU32: MVE_VLDRSTR_cw_m<MVE_ld, MVE_memB, "vldrb", "u32", 1, 0b10>;
6285defm MVE_VLDRHS32: MVE_VLDRSTR_cw_m<MVE_ld, MVE_memH, "vldrh", "s32", 0, 0b10>;
6286defm MVE_VLDRHU32: MVE_VLDRSTR_cw_m<MVE_ld, MVE_memH, "vldrh", "u32", 1, 0b10>;
6287
6288defm MVE_VLDRBU8:  MVE_VLDRSTR_cs_m<MVE_ld, MVE_memB, "vldrb", "u8">;
6289defm MVE_VLDRHU16: MVE_VLDRSTR_cs_m<MVE_ld, MVE_memH, "vldrh", "u16">;
6290defm MVE_VLDRWU32: MVE_VLDRSTR_cs_m<MVE_ld, MVE_memW, "vldrw", "u32">;
6291
6292defm MVE_VSTRB16:  MVE_VLDRSTR_cw_m<MVE_st, MVE_memB, "vstrb", "16",  0, 0b01>;
6293defm MVE_VSTRB32:  MVE_VLDRSTR_cw_m<MVE_st, MVE_memB, "vstrb", "32",  0, 0b10>;
6294defm MVE_VSTRH32:  MVE_VLDRSTR_cw_m<MVE_st, MVE_memH, "vstrh", "32",  0, 0b10>;
6295
6296defm MVE_VSTRBU8 : MVE_VLDRSTR_cs_m<MVE_st, MVE_memB, "vstrb", "8">;
6297defm MVE_VSTRHU16: MVE_VLDRSTR_cs_m<MVE_st, MVE_memH, "vstrh", "16">;
6298defm MVE_VSTRWU32: MVE_VLDRSTR_cs_m<MVE_st, MVE_memW, "vstrw", "32">;
6299
6300// Gather loads / scatter stores whose address operand is of the form
6301// [Rn,Qm], i.e. a single GPR as the common base address, plus a
6302// vector of offset from it. ('Load/store this sequence of elements of
6303// the same array.')
6304//
6305// Like the contiguous family, these loads and stores can widen the
6306// loaded values / truncate the stored ones, or they can just
6307// load/store the same size of memory and vector lane. But unlike the
6308// contiguous family, there's no particular difference in encoding
6309// between those two cases.
6310//
6311// This family also comes with the option to scale the offset values
6312// in Qm by the size of the loaded memory (i.e. to treat them as array
6313// indices), or not to scale them (to treat them as plain byte offsets
6314// in memory, so that perhaps the loaded values are unaligned). The
6315// scaled instructions' address operand in assembly looks like
6316// [Rn,Qm,UXTW #2] or similar.
6317
6318// Base class.
6319class MVE_VLDRSTR_rq<MVE_ldst_direction dir, MVE_memsz memsz, bit U,
6320                     bits<2> size, bit os, string asm, string suffix, int shift>
6321  : MVE_VLDRSTR_base<dir, U, 0b0, 0b0, 0, dir.Oops,
6322                     !con(dir.Iops, (ins mve_addr_rq_shift<shift>:$addr)),
6323                     asm, suffix, "$Qd, $addr", dir.cstr> {
6324  bits<7> addr;
6325  let Inst{23} = 0b1;
6326  let Inst{19-16} = addr{6-3};
6327  let Inst{8-7} = size;
6328  let Inst{6} = memsz.encoding{1};
6329  let Inst{5} = 0;
6330  let Inst{4} = memsz.encoding{0};
6331  let Inst{3-1} = addr{2-0};
6332  let Inst{0} = os;
6333}
6334
6335// Multiclass that defines the scaled and unscaled versions of an
6336// instruction, when the memory size is wider than a byte. The scaled
6337// version gets the default name like MVE_VLDRBU16_rq; the unscaled /
6338// potentially unaligned version gets a "_u" suffix, e.g.
6339// MVE_VLDRBU16_rq_u.
6340multiclass MVE_VLDRSTR_rq_w<MVE_ldst_direction dir, MVE_memsz memsz,
6341                            string asm, string suffix, bit U, bits<2> size> {
6342  def _u : MVE_VLDRSTR_rq<dir, memsz, U, size, 0, asm, suffix, 0>;
6343  def "" : MVE_VLDRSTR_rq<dir, memsz, U, size, 1, asm, suffix, memsz.shift>;
6344}
6345
6346// Subclass of MVE_VLDRSTR_rq with the same API as that multiclass,
6347// for use when the memory size is one byte, so there's no 'scaled'
6348// version of the instruction at all. (This is encoded as if it were
6349// unscaled, but named in the default way with no _u suffix.)
6350class MVE_VLDRSTR_rq_b<MVE_ldst_direction dir, MVE_memsz memsz,
6351                       string asm, string suffix, bit U, bits<2> size>
6352  : MVE_VLDRSTR_rq<dir, memsz, U, size, 0, asm, suffix, 0>;
6353
6354// Multiclasses wrapping that to add ISel patterns for intrinsics.
6355multiclass MVE_VLDR_rq_w<MVE_memsz memsz, list<MVEVectorVTInfo> VTIs> {
6356  defm "": MVE_VLDRSTR_rq_w<MVE_ld, memsz, "vldr" # memsz.MnemonicLetter,
6357                            VTIs[0].Suffix, VTIs[0].Unsigned, VTIs[0].Size>;
6358  defvar Inst = !cast<Instruction>(NAME);
6359  defvar InstU = !cast<Instruction>(NAME # "_u");
6360
6361  foreach VTI = VTIs in
6362  foreach UnsignedFlag = !if(!eq(VTI.Size, memsz.encoding),
6363                             [0,1], [VTI.Unsigned]) in {
6364    def : Pat<(VTI.Vec (int_arm_mve_vldr_gather_offset GPR:$base, (VTIs[0].Vec MQPR:$offsets), memsz.TypeBits, 0, UnsignedFlag)),
6365              (VTI.Vec (InstU GPR:$base, MQPR:$offsets))>;
6366    def : Pat<(VTI.Vec (int_arm_mve_vldr_gather_offset GPR:$base, (VTIs[0].Vec MQPR:$offsets), memsz.TypeBits, memsz.shift, UnsignedFlag)),
6367              (VTI.Vec (Inst GPR:$base, MQPR:$offsets))>;
6368    def : Pat<(VTI.Vec (int_arm_mve_vldr_gather_offset_predicated GPR:$base, (VTIs[0].Vec MQPR:$offsets), memsz.TypeBits, 0, UnsignedFlag, (VTI.Pred VCCR:$pred))),
6369              (VTI.Vec (InstU GPR:$base, MQPR:$offsets, ARMVCCThen, VCCR:$pred))>;
6370    def : Pat<(VTI.Vec (int_arm_mve_vldr_gather_offset_predicated GPR:$base, (VTIs[0].Vec MQPR:$offsets), memsz.TypeBits, memsz.shift, UnsignedFlag, (VTI.Pred VCCR:$pred))),
6371              (VTI.Vec (Inst GPR:$base, MQPR:$offsets, ARMVCCThen, VCCR:$pred))>;
6372  }
6373}
6374multiclass MVE_VLDR_rq_b<list<MVEVectorVTInfo> VTIs> {
6375  def "": MVE_VLDRSTR_rq_b<MVE_ld, MVE_memB, "vldrb",
6376                           VTIs[0].Suffix, VTIs[0].Unsigned, VTIs[0].Size>;
6377  defvar Inst = !cast<Instruction>(NAME);
6378
6379  foreach VTI = VTIs in {
6380    def : Pat<(VTI.Vec (int_arm_mve_vldr_gather_offset GPR:$base, (VTIs[0].Vec MQPR:$offsets), 8, 0, VTI.Unsigned)),
6381              (VTI.Vec (Inst GPR:$base, MQPR:$offsets))>;
6382    def : Pat<(VTI.Vec (int_arm_mve_vldr_gather_offset_predicated GPR:$base, (VTIs[0].Vec MQPR:$offsets), 8, 0, VTI.Unsigned, (VTI.Pred VCCR:$pred))),
6383              (VTI.Vec (Inst GPR:$base, MQPR:$offsets, ARMVCCThen, VCCR:$pred))>;
6384  }
6385}
6386multiclass MVE_VSTR_rq_w<MVE_memsz memsz, list<MVEVectorVTInfo> VTIs> {
6387  defm "": MVE_VLDRSTR_rq_w<MVE_st, memsz, "vstr" # memsz.MnemonicLetter,
6388                            VTIs[0].BitsSuffix, 0, VTIs[0].Size>;
6389  defvar Inst = !cast<Instruction>(NAME);
6390  defvar InstU = !cast<Instruction>(NAME # "_u");
6391
6392  foreach VTI = VTIs in {
6393    def : Pat<(int_arm_mve_vstr_scatter_offset GPR:$base, (VTIs[0].Vec MQPR:$offsets), (VTI.Vec MQPR:$data), memsz.TypeBits, 0),
6394              (InstU MQPR:$data, GPR:$base, MQPR:$offsets)>;
6395    def : Pat<(int_arm_mve_vstr_scatter_offset GPR:$base, (VTIs[0].Vec MQPR:$offsets), (VTI.Vec MQPR:$data), memsz.TypeBits, memsz.shift),
6396              (Inst MQPR:$data, GPR:$base, MQPR:$offsets)>;
6397    def : Pat<(int_arm_mve_vstr_scatter_offset_predicated GPR:$base, (VTIs[0].Vec MQPR:$offsets), (VTI.Vec MQPR:$data), memsz.TypeBits, 0, (VTI.Pred VCCR:$pred)),
6398              (InstU MQPR:$data, GPR:$base, MQPR:$offsets, ARMVCCThen, VCCR:$pred)>;
6399    def : Pat<(int_arm_mve_vstr_scatter_offset_predicated GPR:$base, (VTIs[0].Vec MQPR:$offsets), (VTI.Vec MQPR:$data), memsz.TypeBits, memsz.shift, (VTI.Pred VCCR:$pred)),
6400              (Inst MQPR:$data, GPR:$base, MQPR:$offsets, ARMVCCThen, VCCR:$pred)>;
6401  }
6402}
6403multiclass MVE_VSTR_rq_b<list<MVEVectorVTInfo> VTIs> {
6404  def "": MVE_VLDRSTR_rq_b<MVE_st, MVE_memB, "vstrb",
6405                           VTIs[0].BitsSuffix, 0, VTIs[0].Size>;
6406  defvar Inst = !cast<Instruction>(NAME);
6407
6408  foreach VTI = VTIs in {
6409    def : Pat<(int_arm_mve_vstr_scatter_offset GPR:$base, (VTIs[0].Vec MQPR:$offsets), (VTI.Vec MQPR:$data), 8, 0),
6410              (Inst MQPR:$data, GPR:$base, MQPR:$offsets)>;
6411    def : Pat<(int_arm_mve_vstr_scatter_offset_predicated GPR:$base, (VTIs[0].Vec MQPR:$offsets), (VTI.Vec MQPR:$data), 8, 0, (VTI.Pred VCCR:$pred)),
6412              (Inst MQPR:$data, GPR:$base, MQPR:$offsets, ARMVCCThen, VCCR:$pred)>;
6413  }
6414}
6415
6416// Actually define all the loads and stores in this family.
6417
6418defm MVE_VLDRBU8_rq : MVE_VLDR_rq_b<[MVE_v16u8,MVE_v16s8]>;
6419defm MVE_VLDRBU16_rq: MVE_VLDR_rq_b<[MVE_v8u16]>;
6420defm MVE_VLDRBS16_rq: MVE_VLDR_rq_b<[MVE_v8s16]>;
6421defm MVE_VLDRBU32_rq: MVE_VLDR_rq_b<[MVE_v4u32]>;
6422defm MVE_VLDRBS32_rq: MVE_VLDR_rq_b<[MVE_v4s32]>;
6423
6424defm MVE_VLDRHU16_rq: MVE_VLDR_rq_w<MVE_memH, [MVE_v8u16,MVE_v8s16,MVE_v8f16]>;
6425defm MVE_VLDRHU32_rq: MVE_VLDR_rq_w<MVE_memH, [MVE_v4u32]>;
6426defm MVE_VLDRHS32_rq: MVE_VLDR_rq_w<MVE_memH, [MVE_v4s32]>;
6427defm MVE_VLDRWU32_rq: MVE_VLDR_rq_w<MVE_memW, [MVE_v4u32,MVE_v4s32,MVE_v4f32]>;
6428defm MVE_VLDRDU64_rq: MVE_VLDR_rq_w<MVE_memD, [MVE_v2u64,MVE_v2s64]>;
6429
6430defm MVE_VSTRB8_rq  : MVE_VSTR_rq_b<[MVE_v16i8]>;
6431defm MVE_VSTRB16_rq : MVE_VSTR_rq_b<[MVE_v8i16]>;
6432defm MVE_VSTRB32_rq : MVE_VSTR_rq_b<[MVE_v4i32]>;
6433
6434defm MVE_VSTRH16_rq : MVE_VSTR_rq_w<MVE_memH, [MVE_v8i16,MVE_v8f16]>;
6435defm MVE_VSTRH32_rq : MVE_VSTR_rq_w<MVE_memH, [MVE_v4i32]>;
6436defm MVE_VSTRW32_rq : MVE_VSTR_rq_w<MVE_memW, [MVE_v4i32,MVE_v4f32]>;
6437defm MVE_VSTRD64_rq : MVE_VSTR_rq_w<MVE_memD, [MVE_v2i64]>;
6438
6439// Gather loads / scatter stores whose address operand is of the form
6440// [Qm,#imm], i.e. a vector containing a full base address for each
6441// loaded item, plus an immediate offset applied consistently to all
6442// of them. ('Load/store the same field from this vector of pointers
6443// to a structure type.')
6444//
6445// This family requires the vector lane size to be at least 32 bits
6446// (so there's room for an address in each lane at all). It has no
6447// widening/narrowing variants. But it does support preindex
6448// writeback, in which the address vector is updated to hold the
6449// addresses actually loaded from.
6450
6451// Base class.
6452class MVE_VLDRSTR_qi<MVE_ldst_direction dir, MVE_memsz memsz, bit W, dag wbops,
6453                     string asm, string wbAsm, string suffix, string cstr = "">
6454  : MVE_VLDRSTR_base<dir, 1, 1, W, 1, !con(wbops, dir.Oops),
6455                     !con(dir.Iops, (ins mve_addr_q_shift<memsz.shift>:$addr)),
6456                     asm, suffix, "$Qd, $addr" # wbAsm, cstr # dir.cstr> {
6457  bits<11> addr;
6458  let Inst{23} = addr{7};
6459  let Inst{19-17} = addr{10-8};
6460  let Inst{16} = 0;
6461  let Inst{8} = memsz.encoding{0}; // enough to distinguish 32- from 64-bit
6462  let Inst{7} = 0;
6463  let Inst{6-0} = addr{6-0};
6464}
6465
6466// Multiclass that generates the non-writeback and writeback variants.
6467multiclass MVE_VLDRSTR_qi_m<MVE_ldst_direction dir, MVE_memsz memsz,
6468                            string asm, string suffix> {
6469  def ""   : MVE_VLDRSTR_qi<dir, memsz, 0, (outs),          asm, "",  suffix>;
6470  def _pre : MVE_VLDRSTR_qi<dir, memsz, 1, (outs MQPR:$wb), asm, "!", suffix,
6471                            "$addr.base = $wb"> {
6472    let DecoderMethod="DecodeMVE_MEM_3_pre<"#memsz.shift#">";
6473  }
6474}
6475
6476// Multiclasses wrapping that one, adding selection patterns for the
6477// non-writeback loads and all the stores. (The writeback loads must
6478// deliver multiple output values, so they have to be selected by C++
6479// code.)
6480multiclass MVE_VLDR_qi<MVE_memsz memsz, MVEVectorVTInfo AVTI,
6481                       list<MVEVectorVTInfo> DVTIs> {
6482  defm "" : MVE_VLDRSTR_qi_m<MVE_ld, memsz, "vldr" # memsz.MnemonicLetter,
6483                             "u" # memsz.TypeBits>;
6484  defvar Inst = !cast<Instruction>(NAME);
6485
6486  foreach DVTI = DVTIs in {
6487    def : Pat<(DVTI.Vec (int_arm_mve_vldr_gather_base
6488                 (AVTI.Vec MQPR:$addr), (i32 imm:$offset))),
6489              (DVTI.Vec (Inst (AVTI.Vec MQPR:$addr), (i32 imm:$offset)))>;
6490    def : Pat<(DVTI.Vec (int_arm_mve_vldr_gather_base_predicated
6491                 (AVTI.Vec MQPR:$addr), (i32 imm:$offset), (AVTI.Pred VCCR:$pred))),
6492              (DVTI.Vec (Inst (AVTI.Vec MQPR:$addr), (i32 imm:$offset),
6493                        ARMVCCThen, VCCR:$pred))>;
6494  }
6495}
6496multiclass MVE_VSTR_qi<MVE_memsz memsz, MVEVectorVTInfo AVTI,
6497                       list<MVEVectorVTInfo> DVTIs> {
6498  defm "" : MVE_VLDRSTR_qi_m<MVE_st, memsz, "vstr" # memsz.MnemonicLetter,
6499                             !cast<string>(memsz.TypeBits)>;
6500  defvar Inst = !cast<Instruction>(NAME);
6501  defvar InstPre = !cast<Instruction>(NAME # "_pre");
6502
6503  foreach DVTI = DVTIs in {
6504    def : Pat<(int_arm_mve_vstr_scatter_base
6505                (AVTI.Vec MQPR:$addr), (i32 imm:$offset), (DVTI.Vec MQPR:$data)),
6506              (Inst (DVTI.Vec MQPR:$data), (AVTI.Vec MQPR:$addr),
6507                    (i32 imm:$offset))>;
6508    def : Pat<(int_arm_mve_vstr_scatter_base_predicated
6509                (AVTI.Vec MQPR:$addr), (i32 imm:$offset), (DVTI.Vec MQPR:$data), (AVTI.Pred VCCR:$pred)),
6510              (Inst (DVTI.Vec MQPR:$data), (AVTI.Vec MQPR:$addr),
6511                    (i32 imm:$offset), ARMVCCThen, VCCR:$pred)>;
6512    def : Pat<(AVTI.Vec (int_arm_mve_vstr_scatter_base_wb
6513                (AVTI.Vec MQPR:$addr), (i32 imm:$offset), (DVTI.Vec MQPR:$data))),
6514              (AVTI.Vec (InstPre (DVTI.Vec MQPR:$data), (AVTI.Vec MQPR:$addr),
6515                                 (i32 imm:$offset)))>;
6516    def : Pat<(AVTI.Vec (int_arm_mve_vstr_scatter_base_wb_predicated
6517                (AVTI.Vec MQPR:$addr), (i32 imm:$offset), (DVTI.Vec MQPR:$data), (AVTI.Pred VCCR:$pred))),
6518              (AVTI.Vec (InstPre (DVTI.Vec MQPR:$data), (AVTI.Vec MQPR:$addr),
6519                                 (i32 imm:$offset), ARMVCCThen, VCCR:$pred))>;
6520  }
6521}
6522
6523// Actual instruction definitions.
6524defm MVE_VLDRWU32_qi: MVE_VLDR_qi<MVE_memW, MVE_v4i32, [MVE_v4i32,MVE_v4f32]>;
6525defm MVE_VLDRDU64_qi: MVE_VLDR_qi<MVE_memD, MVE_v2i64, [MVE_v2i64,MVE_v2f64]>;
6526defm MVE_VSTRW32_qi:  MVE_VSTR_qi<MVE_memW, MVE_v4i32, [MVE_v4i32,MVE_v4f32]>;
6527defm MVE_VSTRD64_qi:  MVE_VSTR_qi<MVE_memD, MVE_v2i64, [MVE_v2i64,MVE_v2f64]>;
6528
6529// Define aliases for all the instructions where memory size and
6530// vector lane size are the same. These are mnemonic aliases, so they
6531// apply consistently across all of the above families - contiguous
6532// loads, and both the rq and qi types of gather/scatter.
6533//
6534// Rationale: As long as you're loading (for example) 16-bit memory
6535// values into 16-bit vector lanes, you can think of them as signed or
6536// unsigned integers, fp16 or just raw 16-bit blobs and it makes no
6537// difference. So we permit all of vldrh.16, vldrh.u16, vldrh.s16,
6538// vldrh.f16 and treat them all as equivalent to the canonical
6539// spelling (which happens to be .u16 for loads, and just .16 for
6540// stores).
6541
6542foreach vpt_cond = ["", "t", "e"] in
6543foreach memsz = [MVE_memB, MVE_memH, MVE_memW, MVE_memD] in
6544foreach suffix = memsz.suffixes in {
6545  // Define an alias with every suffix in the list, except for the one
6546  // used by the real Instruction record (i.e. the one that all the
6547  // rest are aliases *for*).
6548
6549  if !ne(suffix, memsz.CanonLoadSuffix) then {
6550    def : MnemonicAlias<
6551      "vldr" # memsz.MnemonicLetter # vpt_cond # suffix,
6552      "vldr" # memsz.MnemonicLetter # vpt_cond # memsz.CanonLoadSuffix>;
6553  }
6554
6555  if !ne(suffix, memsz.CanonStoreSuffix) then {
6556    def : MnemonicAlias<
6557      "vstr" # memsz.MnemonicLetter # vpt_cond # suffix,
6558      "vstr" # memsz.MnemonicLetter # vpt_cond # memsz.CanonStoreSuffix>;
6559  }
6560}
6561
6562// end of MVE predicable load/store
6563
6564class MVE_VPT<string suffix, bits<2> size, dag iops, string asm, list<dag> pattern=[]>
6565  : MVE_MI<(outs ), iops, NoItinerary, !strconcat("vpt", "${Mk}", ".", suffix), asm, "", pattern> {
6566  bits<3> fc;
6567  bits<4> Mk;
6568  bits<3> Qn;
6569
6570  let Inst{31-23} = 0b111111100;
6571  let Inst{22} = Mk{3};
6572  let Inst{21-20} = size;
6573  let Inst{19-17} = Qn{2-0};
6574  let Inst{16} = 0b1;
6575  let Inst{15-13} = Mk{2-0};
6576  let Inst{12} = fc{2};
6577  let Inst{11-8} = 0b1111;
6578  let Inst{7} = fc{0};
6579  let Inst{4} = 0b0;
6580
6581  let Defs = [VPR];
6582  let validForTailPredication=1;
6583}
6584
6585class MVE_VPTt1<string suffix, bits<2> size, dag iops>
6586  : MVE_VPT<suffix, size, iops, "$fc, $Qn, $Qm"> {
6587  bits<4> Qm;
6588  bits<4> Mk;
6589
6590  let Inst{6} = 0b0;
6591  let Inst{5} = Qm{3};
6592  let Inst{3-1} = Qm{2-0};
6593  let Inst{0} = fc{1};
6594}
6595
6596class MVE_VPTt1i<string suffix, bits<2> size>
6597 : MVE_VPTt1<suffix, size,
6598           (ins vpt_mask:$Mk, MQPR:$Qn, MQPR:$Qm, pred_basic_i:$fc)> {
6599  let Inst{12} = 0b0;
6600  let Inst{0} = 0b0;
6601}
6602
6603def MVE_VPTv4i32 : MVE_VPTt1i<"i32", 0b10>;
6604def MVE_VPTv8i16 : MVE_VPTt1i<"i16", 0b01>;
6605def MVE_VPTv16i8 : MVE_VPTt1i<"i8", 0b00>;
6606
6607class MVE_VPTt1u<string suffix, bits<2> size>
6608 : MVE_VPTt1<suffix, size,
6609           (ins vpt_mask:$Mk, MQPR:$Qn, MQPR:$Qm, pred_basic_u:$fc)> {
6610  let Inst{12} = 0b0;
6611  let Inst{0} = 0b1;
6612}
6613
6614def MVE_VPTv4u32 : MVE_VPTt1u<"u32", 0b10>;
6615def MVE_VPTv8u16 : MVE_VPTt1u<"u16", 0b01>;
6616def MVE_VPTv16u8 : MVE_VPTt1u<"u8", 0b00>;
6617
6618class MVE_VPTt1s<string suffix, bits<2> size>
6619 : MVE_VPTt1<suffix, size,
6620           (ins vpt_mask:$Mk, MQPR:$Qn, MQPR:$Qm, pred_basic_s:$fc)> {
6621  let Inst{12} = 0b1;
6622}
6623
6624def MVE_VPTv4s32 : MVE_VPTt1s<"s32", 0b10>;
6625def MVE_VPTv8s16 : MVE_VPTt1s<"s16", 0b01>;
6626def MVE_VPTv16s8 : MVE_VPTt1s<"s8", 0b00>;
6627
6628class MVE_VPTt2<string suffix, bits<2> size, dag iops>
6629  : MVE_VPT<suffix, size, iops,
6630          "$fc, $Qn, $Rm"> {
6631  bits<4> Rm;
6632  bits<3> fc;
6633  bits<4> Mk;
6634
6635  let Inst{6} = 0b1;
6636  let Inst{5} = fc{1};
6637  let Inst{3-0} = Rm{3-0};
6638}
6639
6640class MVE_VPTt2i<string suffix, bits<2> size>
6641  : MVE_VPTt2<suffix, size,
6642            (ins vpt_mask:$Mk, MQPR:$Qn, GPRwithZR:$Rm, pred_basic_i:$fc)> {
6643  let Inst{12} = 0b0;
6644  let Inst{5} = 0b0;
6645}
6646
6647def MVE_VPTv4i32r : MVE_VPTt2i<"i32", 0b10>;
6648def MVE_VPTv8i16r : MVE_VPTt2i<"i16", 0b01>;
6649def MVE_VPTv16i8r : MVE_VPTt2i<"i8", 0b00>;
6650
6651class MVE_VPTt2u<string suffix, bits<2> size>
6652  : MVE_VPTt2<suffix, size,
6653            (ins vpt_mask:$Mk, MQPR:$Qn, GPRwithZR:$Rm, pred_basic_u:$fc)> {
6654  let Inst{12} = 0b0;
6655  let Inst{5} = 0b1;
6656}
6657
6658def MVE_VPTv4u32r : MVE_VPTt2u<"u32", 0b10>;
6659def MVE_VPTv8u16r : MVE_VPTt2u<"u16", 0b01>;
6660def MVE_VPTv16u8r : MVE_VPTt2u<"u8", 0b00>;
6661
6662class MVE_VPTt2s<string suffix, bits<2> size>
6663  : MVE_VPTt2<suffix, size,
6664            (ins vpt_mask:$Mk, MQPR:$Qn, GPRwithZR:$Rm, pred_basic_s:$fc)> {
6665  let Inst{12} = 0b1;
6666}
6667
6668def MVE_VPTv4s32r : MVE_VPTt2s<"s32", 0b10>;
6669def MVE_VPTv8s16r : MVE_VPTt2s<"s16", 0b01>;
6670def MVE_VPTv16s8r : MVE_VPTt2s<"s8", 0b00>;
6671
6672
6673class MVE_VPTf<string suffix, bit size, dag iops, string asm, list<dag> pattern=[]>
6674  : MVE_MI<(outs ), iops, NoItinerary, !strconcat("vpt", "${Mk}", ".", suffix), asm,
6675            "", pattern> {
6676  bits<3> fc;
6677  bits<4> Mk;
6678  bits<3> Qn;
6679
6680  let Inst{31-29} = 0b111;
6681  let Inst{28} = size;
6682  let Inst{27-23} = 0b11100;
6683  let Inst{22} = Mk{3};
6684  let Inst{21-20} = 0b11;
6685  let Inst{19-17} = Qn{2-0};
6686  let Inst{16} = 0b1;
6687  let Inst{15-13} = Mk{2-0};
6688  let Inst{12} = fc{2};
6689  let Inst{11-8} = 0b1111;
6690  let Inst{7} = fc{0};
6691  let Inst{4} = 0b0;
6692
6693  let Defs = [VPR];
6694  let Predicates = [HasMVEFloat];
6695  let validForTailPredication=1;
6696}
6697
6698class MVE_VPTft1<string suffix, bit size>
6699  : MVE_VPTf<suffix, size, (ins vpt_mask:$Mk, MQPR:$Qn, MQPR:$Qm, pred_basic_fp:$fc),
6700          "$fc, $Qn, $Qm"> {
6701  bits<3> fc;
6702  bits<4> Qm;
6703
6704  let Inst{6} = 0b0;
6705  let Inst{5} = Qm{3};
6706  let Inst{3-1} = Qm{2-0};
6707  let Inst{0} = fc{1};
6708}
6709
6710def MVE_VPTv4f32         : MVE_VPTft1<"f32", 0b0>;
6711def MVE_VPTv8f16         : MVE_VPTft1<"f16", 0b1>;
6712
6713class MVE_VPTft2<string suffix, bit size>
6714  : MVE_VPTf<suffix, size, (ins vpt_mask:$Mk, MQPR:$Qn, GPRwithZR:$Rm, pred_basic_fp:$fc),
6715          "$fc, $Qn, $Rm"> {
6716  bits<3> fc;
6717  bits<4> Rm;
6718
6719  let Inst{6} = 0b1;
6720  let Inst{5} = fc{1};
6721  let Inst{3-0} = Rm{3-0};
6722}
6723
6724def MVE_VPTv4f32r        : MVE_VPTft2<"f32", 0b0>;
6725def MVE_VPTv8f16r        : MVE_VPTft2<"f16", 0b1>;
6726
6727def MVE_VPST : MVE_MI<(outs ), (ins vpt_mask:$Mk), NoItinerary,
6728       !strconcat("vpst", "${Mk}"), "", "", []> {
6729  bits<4> Mk;
6730
6731  let Inst{31-23} = 0b111111100;
6732  let Inst{22} = Mk{3};
6733  let Inst{21-16} = 0b110001;
6734  let Inst{15-13} = Mk{2-0};
6735  let Inst{12-0} = 0b0111101001101;
6736  let Unpredictable{12} = 0b1;
6737  let Unpredictable{7} = 0b1;
6738  let Unpredictable{5} = 0b1;
6739
6740  let Uses = [VPR];
6741  let validForTailPredication = 1;
6742}
6743
6744def MVE_VPSEL : MVE_p<(outs MQPR:$Qd), (ins MQPR:$Qn, MQPR:$Qm), NoItinerary,
6745                      "vpsel", "", "$Qd, $Qn, $Qm", vpred_n, "", []> {
6746  bits<4> Qn;
6747  bits<4> Qd;
6748  bits<4> Qm;
6749
6750  let Inst{28} = 0b1;
6751  let Inst{25-23} = 0b100;
6752  let Inst{22} = Qd{3};
6753  let Inst{21-20} = 0b11;
6754  let Inst{19-17} = Qn{2-0};
6755  let Inst{16} = 0b1;
6756  let Inst{15-13} = Qd{2-0};
6757  let Inst{12-9} = 0b0111;
6758  let Inst{8} = 0b1;
6759  let Inst{7} = Qn{3};
6760  let Inst{6} = 0b0;
6761  let Inst{5} = Qm{3};
6762  let Inst{4} = 0b0;
6763  let Inst{3-1} = Qm{2-0};
6764  let Inst{0} = 0b1;
6765}
6766
6767foreach suffix = ["s8", "s16", "s32", "u8", "u16", "u32",
6768                  "i8", "i16", "i32",       "f16", "f32"] in
6769def : MVEInstAlias<"vpsel${vp}." # suffix # "\t$Qd, $Qn, $Qm",
6770                   (MVE_VPSEL MQPR:$Qd, MQPR:$Qn, MQPR:$Qm, vpred_n:$vp)>;
6771
6772let Predicates = [HasMVEInt] in {
6773  def : Pat<(v16i8 (vselect (v16i1 VCCR:$pred), (v16i8 MQPR:$v1), (v16i8 MQPR:$v2))),
6774            (v16i8 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, VCCR:$pred))>;
6775  def : Pat<(v8i16 (vselect (v8i1 VCCR:$pred), (v8i16 MQPR:$v1), (v8i16 MQPR:$v2))),
6776            (v8i16 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, VCCR:$pred))>;
6777  def : Pat<(v4i32 (vselect (v4i1 VCCR:$pred), (v4i32 MQPR:$v1), (v4i32 MQPR:$v2))),
6778            (v4i32 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, VCCR:$pred))>;
6779
6780  def : Pat<(v8f16 (vselect (v8i1 VCCR:$pred), (v8f16 MQPR:$v1), (v8f16 MQPR:$v2))),
6781            (v8f16 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, VCCR:$pred))>;
6782  def : Pat<(v4f32 (vselect (v4i1 VCCR:$pred), (v4f32 MQPR:$v1), (v4f32 MQPR:$v2))),
6783            (v4f32 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone, VCCR:$pred))>;
6784
6785  def : Pat<(v16i8 (vselect (v16i8 MQPR:$pred), (v16i8 MQPR:$v1), (v16i8 MQPR:$v2))),
6786            (v16i8 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone,
6787                              (MVE_VCMPi8 (v16i8 MQPR:$pred), (MVE_VMOVimmi8 0), ARMCCne)))>;
6788  def : Pat<(v8i16 (vselect (v8i16 MQPR:$pred), (v8i16 MQPR:$v1), (v8i16 MQPR:$v2))),
6789            (v8i16 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone,
6790                              (MVE_VCMPi16 (v8i16 MQPR:$pred), (MVE_VMOVimmi16 0), ARMCCne)))>;
6791  def : Pat<(v4i32 (vselect (v4i32 MQPR:$pred), (v4i32 MQPR:$v1), (v4i32 MQPR:$v2))),
6792            (v4i32 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone,
6793                              (MVE_VCMPi32 (v4i32 MQPR:$pred), (MVE_VMOVimmi32 0), ARMCCne)))>;
6794
6795  def : Pat<(v8f16 (vselect (v8i16 MQPR:$pred), (v8f16 MQPR:$v1), (v8f16 MQPR:$v2))),
6796            (v8f16 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone,
6797                              (MVE_VCMPi16 (v8i16 MQPR:$pred), (MVE_VMOVimmi16 0), ARMCCne)))>;
6798  def : Pat<(v4f32 (vselect (v4i32 MQPR:$pred), (v4f32 MQPR:$v1), (v4f32 MQPR:$v2))),
6799            (v4f32 (MVE_VPSEL MQPR:$v1, MQPR:$v2, ARMVCCNone,
6800                              (MVE_VCMPi32 (v4i32 MQPR:$pred), (MVE_VMOVimmi32 0), ARMCCne)))>;
6801
6802  // Pred <-> Int
6803  def : Pat<(v16i8 (zext  (v16i1 VCCR:$pred))),
6804            (v16i8 (MVE_VPSEL (MVE_VMOVimmi8 1), (MVE_VMOVimmi8 0), ARMVCCNone, VCCR:$pred))>;
6805  def : Pat<(v8i16 (zext  (v8i1  VCCR:$pred))),
6806            (v8i16 (MVE_VPSEL (MVE_VMOVimmi16 1), (MVE_VMOVimmi16 0), ARMVCCNone, VCCR:$pred))>;
6807  def : Pat<(v4i32 (zext  (v4i1  VCCR:$pred))),
6808            (v4i32 (MVE_VPSEL (MVE_VMOVimmi32 1), (MVE_VMOVimmi32 0), ARMVCCNone, VCCR:$pred))>;
6809
6810  def : Pat<(v16i8 (sext  (v16i1 VCCR:$pred))),
6811            (v16i8 (MVE_VPSEL (MVE_VMOVimmi8 255), (MVE_VMOVimmi8 0), ARMVCCNone, VCCR:$pred))>;
6812  def : Pat<(v8i16 (sext  (v8i1  VCCR:$pred))),
6813            (v8i16 (MVE_VPSEL (MVE_VMOVimmi8 255), (MVE_VMOVimmi16 0), ARMVCCNone, VCCR:$pred))>;
6814  def : Pat<(v4i32 (sext  (v4i1  VCCR:$pred))),
6815            (v4i32 (MVE_VPSEL (MVE_VMOVimmi8 255), (MVE_VMOVimmi32 0), ARMVCCNone, VCCR:$pred))>;
6816
6817  def : Pat<(v16i8 (anyext  (v16i1 VCCR:$pred))),
6818            (v16i8 (MVE_VPSEL (MVE_VMOVimmi8 1), (MVE_VMOVimmi8 0), ARMVCCNone, VCCR:$pred))>;
6819  def : Pat<(v8i16 (anyext  (v8i1  VCCR:$pred))),
6820            (v8i16 (MVE_VPSEL (MVE_VMOVimmi16 1), (MVE_VMOVimmi16 0), ARMVCCNone, VCCR:$pred))>;
6821  def : Pat<(v4i32 (anyext  (v4i1  VCCR:$pred))),
6822            (v4i32 (MVE_VPSEL (MVE_VMOVimmi32 1), (MVE_VMOVimmi32 0), ARMVCCNone, VCCR:$pred))>;
6823}
6824
6825let Predicates = [HasMVEFloat] in {
6826  // Pred <-> Float
6827  // 112 is 1.0 in float
6828  def : Pat<(v4f32 (uint_to_fp (v4i1 VCCR:$pred))),
6829            (v4f32 (MVE_VPSEL (v4f32 (MVE_VMOVimmf32 112)), (v4f32 (MVE_VMOVimmi32 0)), ARMVCCNone, VCCR:$pred))>;
6830  // 2620 in 1.0 in half
6831  def : Pat<(v8f16 (uint_to_fp (v8i1 VCCR:$pred))),
6832            (v8f16 (MVE_VPSEL (v8f16 (MVE_VMOVimmi16 2620)), (v8f16 (MVE_VMOVimmi16 0)), ARMVCCNone, VCCR:$pred))>;
6833  // 240 is -1.0 in float
6834  def : Pat<(v4f32 (sint_to_fp (v4i1 VCCR:$pred))),
6835            (v4f32 (MVE_VPSEL (v4f32 (MVE_VMOVimmf32 240)), (v4f32 (MVE_VMOVimmi32 0)), ARMVCCNone, VCCR:$pred))>;
6836  // 2748 is -1.0 in half
6837  def : Pat<(v8f16 (sint_to_fp (v8i1 VCCR:$pred))),
6838            (v8f16 (MVE_VPSEL (v8f16 (MVE_VMOVimmi16 2748)), (v8f16 (MVE_VMOVimmi16 0)), ARMVCCNone, VCCR:$pred))>;
6839
6840  def : Pat<(v4i1 (fp_to_uint (v4f32 MQPR:$v1))),
6841            (v4i1 (MVE_VCMPf32r (v4f32 MQPR:$v1), ZR, ARMCCne))>;
6842  def : Pat<(v8i1 (fp_to_uint (v8f16 MQPR:$v1))),
6843            (v8i1 (MVE_VCMPf16r (v8f16 MQPR:$v1), ZR, ARMCCne))>;
6844  def : Pat<(v4i1 (fp_to_sint (v4f32 MQPR:$v1))),
6845            (v4i1 (MVE_VCMPf32r (v4f32 MQPR:$v1), ZR, ARMCCne))>;
6846  def : Pat<(v8i1 (fp_to_sint (v8f16 MQPR:$v1))),
6847            (v8i1 (MVE_VCMPf16r (v8f16 MQPR:$v1), ZR, ARMCCne))>;
6848}
6849
6850def MVE_VPNOT : MVE_p<(outs VCCR:$P0), (ins VCCR:$P0_in), NoItinerary,
6851                      "vpnot", "", "", vpred_n, "", []> {
6852  let Inst{31-0} = 0b11111110001100010000111101001101;
6853  let Unpredictable{19-17} = 0b111;
6854  let Unpredictable{12} = 0b1;
6855  let Unpredictable{7} = 0b1;
6856  let Unpredictable{5} = 0b1;
6857
6858  let Constraints = "";
6859  let DecoderMethod = "DecodeMVEVPNOT";
6860}
6861
6862let Predicates = [HasMVEInt] in {
6863  def : Pat<(v4i1 (xor (v4i1 VCCR:$pred), (v4i1 (predicate_cast (i32 65535))))),
6864            (v4i1 (MVE_VPNOT (v4i1 VCCR:$pred)))>;
6865  def : Pat<(v8i1 (xor (v8i1 VCCR:$pred), (v8i1 (predicate_cast (i32 65535))))),
6866            (v8i1 (MVE_VPNOT (v8i1 VCCR:$pred)))>;
6867  def : Pat<(v16i1 (xor (v16i1 VCCR:$pred), (v16i1 (predicate_cast (i32 65535))))),
6868            (v16i1 (MVE_VPNOT (v16i1 VCCR:$pred)))>;
6869}
6870
6871
6872class MVE_loltp_start<dag iops, string asm, string ops, bits<2> size>
6873  : t2LOL<(outs GPRlr:$LR), iops, asm, ops> {
6874  bits<4> Rn;
6875  let Predicates = [HasMVEInt];
6876  let Inst{22} = 0b0;
6877  let Inst{21-20} = size;
6878  let Inst{19-16} = Rn{3-0};
6879  let Inst{12} = 0b0;
6880}
6881
6882class MVE_DLSTP<string asm, bits<2> size>
6883  : MVE_loltp_start<(ins rGPR:$Rn), asm, "$LR, $Rn", size> {
6884  let Inst{13} = 0b1;
6885  let Inst{11-1} = 0b00000000000;
6886  let Unpredictable{10-1} = 0b1111111111;
6887}
6888
6889class MVE_WLSTP<string asm, bits<2> size>
6890  : MVE_loltp_start<(ins rGPR:$Rn, wlslabel_u11:$label),
6891                    asm, "$LR, $Rn, $label", size> {
6892  bits<11> label;
6893  let Inst{13} = 0b0;
6894  let Inst{11} = label{0};
6895  let Inst{10-1} = label{10-1};
6896  let isBranch = 1;
6897  let isTerminator = 1;
6898}
6899
6900def MVE_DLSTP_8  : MVE_DLSTP<"dlstp.8",  0b00>;
6901def MVE_DLSTP_16 : MVE_DLSTP<"dlstp.16", 0b01>;
6902def MVE_DLSTP_32 : MVE_DLSTP<"dlstp.32", 0b10>;
6903def MVE_DLSTP_64 : MVE_DLSTP<"dlstp.64", 0b11>;
6904
6905def MVE_WLSTP_8  : MVE_WLSTP<"wlstp.8",  0b00>;
6906def MVE_WLSTP_16 : MVE_WLSTP<"wlstp.16", 0b01>;
6907def MVE_WLSTP_32 : MVE_WLSTP<"wlstp.32", 0b10>;
6908def MVE_WLSTP_64 : MVE_WLSTP<"wlstp.64", 0b11>;
6909
6910class MVE_loltp_end<dag oops, dag iops, string asm, string ops>
6911  : t2LOL<oops, iops, asm, ops> {
6912  let Predicates = [HasMVEInt];
6913  let Inst{22-21} = 0b00;
6914  let Inst{19-16} = 0b1111;
6915  let Inst{12} = 0b0;
6916}
6917
6918def MVE_LETP : MVE_loltp_end<(outs GPRlr:$LRout),
6919                             (ins GPRlr:$LRin, lelabel_u11:$label),
6920                             "letp", "$LRin, $label"> {
6921  bits<11> label;
6922  let Inst{20} = 0b1;
6923  let Inst{13} = 0b0;
6924  let Inst{11} = label{0};
6925  let Inst{10-1} = label{10-1};
6926  let isBranch = 1;
6927  let isTerminator = 1;
6928}
6929
6930def MVE_LCTP : MVE_loltp_end<(outs), (ins pred:$p), "lctp${p}", ""> {
6931  let Inst{20} = 0b0;
6932  let Inst{13} = 0b1;
6933  let Inst{11-1} = 0b00000000000;
6934  let Unpredictable{21-20} = 0b11;
6935  let Unpredictable{11-1} = 0b11111111111;
6936}
6937
6938
6939//===----------------------------------------------------------------------===//
6940// Patterns
6941//===----------------------------------------------------------------------===//
6942
6943// PatFrags for loads and stores. Often trying to keep semi-consistent names.
6944
6945def aligned32_pre_store : PatFrag<(ops node:$val, node:$ptr, node:$offset),
6946                                  (pre_store node:$val, node:$ptr, node:$offset), [{
6947  return cast<StoreSDNode>(N)->getAlignment() >= 4;
6948}]>;
6949def aligned32_post_store : PatFrag<(ops node:$val, node:$ptr, node:$offset),
6950                                   (post_store node:$val, node:$ptr, node:$offset), [{
6951  return cast<StoreSDNode>(N)->getAlignment() >= 4;
6952}]>;
6953def aligned16_pre_store : PatFrag<(ops node:$val, node:$ptr, node:$offset),
6954                                  (pre_store node:$val, node:$ptr, node:$offset), [{
6955  return cast<StoreSDNode>(N)->getAlignment() >= 2;
6956}]>;
6957def aligned16_post_store : PatFrag<(ops node:$val, node:$ptr, node:$offset),
6958                                   (post_store node:$val, node:$ptr, node:$offset), [{
6959  return cast<StoreSDNode>(N)->getAlignment() >= 2;
6960}]>;
6961
6962
6963def aligned_maskedloadvi8 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru),
6964                                    (masked_ld node:$ptr, undef, node:$pred, node:$passthru), [{
6965  auto *Ld = cast<MaskedLoadSDNode>(N);
6966  return Ld->getMemoryVT().getScalarType() == MVT::i8;
6967}]>;
6968def aligned_sextmaskedloadvi8 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru),
6969                                        (aligned_maskedloadvi8 node:$ptr, node:$pred, node:$passthru), [{
6970  return cast<MaskedLoadSDNode>(N)->getExtensionType() == ISD::SEXTLOAD;
6971}]>;
6972def aligned_zextmaskedloadvi8 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru),
6973                                        (aligned_maskedloadvi8 node:$ptr, node:$pred, node:$passthru), [{
6974  return cast<MaskedLoadSDNode>(N)->getExtensionType() == ISD::ZEXTLOAD;
6975}]>;
6976def aligned_extmaskedloadvi8 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru),
6977                                       (aligned_maskedloadvi8 node:$ptr, node:$pred, node:$passthru), [{
6978  auto *Ld = cast<MaskedLoadSDNode>(N);
6979  EVT ScalarVT = Ld->getMemoryVT().getScalarType();
6980  return ScalarVT.isInteger() && Ld->getExtensionType() == ISD::EXTLOAD;
6981}]>;
6982def aligned_maskedloadvi16: PatFrag<(ops node:$ptr, node:$pred, node:$passthru),
6983                                    (masked_ld node:$ptr, undef, node:$pred, node:$passthru), [{
6984  auto *Ld = cast<MaskedLoadSDNode>(N);
6985  EVT ScalarVT = Ld->getMemoryVT().getScalarType();
6986  return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && Ld->getAlignment() >= 2;
6987}]>;
6988def aligned_sextmaskedloadvi16 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru),
6989                                         (aligned_maskedloadvi16 node:$ptr, node:$pred, node:$passthru), [{
6990  return cast<MaskedLoadSDNode>(N)->getExtensionType() == ISD::SEXTLOAD;
6991}]>;
6992def aligned_zextmaskedloadvi16 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru),
6993                                         (aligned_maskedloadvi16 node:$ptr, node:$pred, node:$passthru), [{
6994  return cast<MaskedLoadSDNode>(N)->getExtensionType() == ISD::ZEXTLOAD;
6995}]>;
6996def aligned_extmaskedloadvi16 : PatFrag<(ops node:$ptr, node:$pred, node:$passthru),
6997                                        (aligned_maskedloadvi16 node:$ptr, node:$pred, node:$passthru), [{
6998  auto *Ld = cast<MaskedLoadSDNode>(N);
6999  EVT ScalarVT = Ld->getMemoryVT().getScalarType();
7000  return ScalarVT.isInteger() && Ld->getExtensionType() == ISD::EXTLOAD;
7001}]>;
7002def aligned_maskedloadvi32: PatFrag<(ops node:$ptr, node:$pred, node:$passthru),
7003                                    (masked_ld node:$ptr, undef, node:$pred, node:$passthru), [{
7004  auto *Ld = cast<MaskedLoadSDNode>(N);
7005  EVT ScalarVT = Ld->getMemoryVT().getScalarType();
7006  return (ScalarVT == MVT::i32 || ScalarVT == MVT::f32) && Ld->getAlignment() >= 4;
7007}]>;
7008
7009def aligned_maskedstvi8 : PatFrag<(ops node:$val, node:$ptr, node:$pred),
7010                                  (masked_st node:$val, node:$ptr, undef, node:$pred), [{
7011  return cast<MaskedStoreSDNode>(N)->getMemoryVT().getScalarType() == MVT::i8;
7012}]>;
7013def aligned_maskedstvi16 : PatFrag<(ops node:$val, node:$ptr, node:$pred),
7014                                   (masked_st node:$val, node:$ptr, undef, node:$pred), [{
7015  auto *St = cast<MaskedStoreSDNode>(N);
7016  EVT ScalarVT = St->getMemoryVT().getScalarType();
7017  return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && St->getAlignment() >= 2;
7018}]>;
7019def aligned_maskedstvi32 : PatFrag<(ops node:$val, node:$ptr, node:$pred),
7020                                   (masked_st node:$val, node:$ptr, undef, node:$pred), [{
7021  auto *St = cast<MaskedStoreSDNode>(N);
7022  EVT ScalarVT = St->getMemoryVT().getScalarType();
7023  return (ScalarVT == MVT::i32 || ScalarVT == MVT::f32) && St->getAlignment() >= 4;
7024}]>;
7025
7026def pre_maskedstore : PatFrag<(ops node:$val, node:$base, node:$offset, node:$mask),
7027                              (masked_st node:$val, node:$base, node:$offset, node:$mask), [{
7028  ISD::MemIndexedMode AM = cast<MaskedStoreSDNode>(N)->getAddressingMode();
7029  return AM == ISD::PRE_INC || AM == ISD::PRE_DEC;
7030}]>;
7031def post_maskedstore : PatFrag<(ops node:$val, node:$base, node:$offset, node:$mask),
7032                               (masked_st node:$val, node:$base, node:$offset, node:$mask), [{
7033  ISD::MemIndexedMode AM = cast<MaskedStoreSDNode>(N)->getAddressingMode();
7034  return AM == ISD::POST_INC || AM == ISD::POST_DEC;
7035}]>;
7036def aligned_pre_maskedstorevi8 : PatFrag<(ops node:$val, node:$ptr, node:$offset, node:$mask),
7037                                         (pre_maskedstore node:$val, node:$ptr, node:$offset, node:$mask), [{
7038  return cast<MaskedStoreSDNode>(N)->getMemoryVT().getScalarType() == MVT::i8;
7039}]>;
7040def aligned_post_maskedstorevi8 : PatFrag<(ops node:$val, node:$ptr, node:$offset, node:$mask),
7041                                          (post_maskedstore node:$val, node:$ptr, node:$offset, node:$mask), [{
7042  return cast<MaskedStoreSDNode>(N)->getMemoryVT().getScalarType() == MVT::i8;
7043}]>;
7044def aligned_pre_maskedstorevi16 : PatFrag<(ops node:$val, node:$ptr, node:$offset, node:$mask),
7045                                          (pre_maskedstore node:$val, node:$ptr, node:$offset, node:$mask), [{
7046  auto *St = cast<MaskedStoreSDNode>(N);
7047  EVT ScalarVT = St->getMemoryVT().getScalarType();
7048  return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && St->getAlignment() >= 2;
7049}]>;
7050def aligned_post_maskedstorevi16 : PatFrag<(ops node:$val, node:$ptr, node:$offset, node:$mask),
7051                                           (post_maskedstore node:$val, node:$ptr, node:$offset, node:$mask), [{
7052  auto *St = cast<MaskedStoreSDNode>(N);
7053  EVT ScalarVT = St->getMemoryVT().getScalarType();
7054  return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && St->getAlignment() >= 2;
7055}]>;
7056def aligned_pre_maskedstorevi32 : PatFrag<(ops node:$val, node:$ptr, node:$offset, node:$mask),
7057                                          (pre_maskedstore node:$val, node:$ptr, node:$offset, node:$mask), [{
7058  auto *St = cast<MaskedStoreSDNode>(N);
7059  EVT ScalarVT = St->getMemoryVT().getScalarType();
7060  return (ScalarVT == MVT::i32 || ScalarVT == MVT::f32) && St->getAlignment() >= 4;
7061}]>;
7062def aligned_post_maskedstorevi32 : PatFrag<(ops node:$val, node:$ptr, node:$offset, node:$mask),
7063                                           (post_maskedstore node:$val, node:$ptr, node:$offset, node:$mask), [{
7064  auto *St = cast<MaskedStoreSDNode>(N);
7065  EVT ScalarVT = St->getMemoryVT().getScalarType();
7066  return (ScalarVT == MVT::i32 || ScalarVT == MVT::f32) && St->getAlignment() >= 4;
7067}]>;
7068
7069
7070// PatFrags for "Aligned" extending / truncating
7071
7072def aligned_extloadvi8  : PatFrag<(ops node:$ptr), (extloadvi8 node:$ptr)>;
7073def aligned_sextloadvi8 : PatFrag<(ops node:$ptr), (sextloadvi8 node:$ptr)>;
7074def aligned_zextloadvi8 : PatFrag<(ops node:$ptr), (zextloadvi8 node:$ptr)>;
7075
7076def aligned_truncstvi8 : PatFrag<(ops node:$val, node:$ptr),
7077                                 (truncstorevi8 node:$val, node:$ptr)>;
7078def aligned_post_truncstvi8 : PatFrag<(ops node:$val, node:$base, node:$offset),
7079                                      (post_truncstvi8 node:$val, node:$base, node:$offset)>;
7080def aligned_pre_truncstvi8 : PatFrag<(ops node:$val, node:$base, node:$offset),
7081                                     (pre_truncstvi8 node:$val, node:$base, node:$offset)>;
7082
7083let MinAlignment = 2 in {
7084  def aligned_extloadvi16  : PatFrag<(ops node:$ptr), (extloadvi16 node:$ptr)>;
7085  def aligned_sextloadvi16 : PatFrag<(ops node:$ptr), (sextloadvi16 node:$ptr)>;
7086  def aligned_zextloadvi16 : PatFrag<(ops node:$ptr), (zextloadvi16 node:$ptr)>;
7087
7088  def aligned_truncstvi16 : PatFrag<(ops node:$val, node:$ptr),
7089                                    (truncstorevi16 node:$val, node:$ptr)>;
7090  def aligned_post_truncstvi16 : PatFrag<(ops node:$val, node:$base, node:$offset),
7091                                         (post_truncstvi16 node:$val, node:$base, node:$offset)>;
7092  def aligned_pre_truncstvi16 : PatFrag<(ops node:$val, node:$base, node:$offset),
7093                                        (pre_truncstvi16 node:$val, node:$base, node:$offset)>;
7094}
7095
7096def truncmaskedst : PatFrag<(ops node:$val, node:$base, node:$pred),
7097                            (masked_st node:$val, node:$base, undef, node:$pred), [{
7098  return cast<MaskedStoreSDNode>(N)->isTruncatingStore();
7099}]>;
7100def aligned_truncmaskedstvi8 : PatFrag<(ops node:$val, node:$base, node:$pred),
7101                                       (truncmaskedst node:$val, node:$base, node:$pred), [{
7102  return cast<MaskedStoreSDNode>(N)->getMemoryVT().getScalarType() == MVT::i8;
7103}]>;
7104def aligned_truncmaskedstvi16 : PatFrag<(ops node:$val, node:$base, node:$pred),
7105                                        (truncmaskedst node:$val, node:$base, node:$pred), [{
7106  auto *St = cast<MaskedStoreSDNode>(N);
7107  EVT ScalarVT = St->getMemoryVT().getScalarType();
7108  return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && St->getAlignment() >= 2;
7109}]>;
7110def pre_truncmaskedst : PatFrag<(ops node:$val, node:$base, node:$offset, node:$pred),
7111                                (masked_st node:$val, node:$base, node:$offset, node:$pred), [{
7112  ISD::MemIndexedMode AM = cast<MaskedStoreSDNode>(N)->getAddressingMode();
7113  return cast<MaskedStoreSDNode>(N)->isTruncatingStore() && (AM == ISD::PRE_INC || AM == ISD::PRE_DEC);
7114}]>;
7115def aligned_pre_truncmaskedstvi8 : PatFrag<(ops node:$val, node:$base, node:$offset, node:$pred),
7116                                           (pre_truncmaskedst node:$val, node:$base, node:$offset, node:$pred), [{
7117  return cast<MaskedStoreSDNode>(N)->getMemoryVT().getScalarType() == MVT::i8;
7118}]>;
7119def aligned_pre_truncmaskedstvi16 : PatFrag<(ops node:$val, node:$base, node:$offset, node:$pred),
7120                                            (pre_truncmaskedst node:$val, node:$base, node:$offset, node:$pred), [{
7121  auto *St = cast<MaskedStoreSDNode>(N);
7122  EVT ScalarVT = St->getMemoryVT().getScalarType();
7123  return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && St->getAlignment() >= 2;
7124}]>;
7125def post_truncmaskedst : PatFrag<(ops node:$val, node:$base, node:$offset, node:$postd),
7126                                 (masked_st node:$val, node:$base, node:$offset, node:$postd), [{
7127  ISD::MemIndexedMode AM = cast<MaskedStoreSDNode>(N)->getAddressingMode();
7128  return cast<MaskedStoreSDNode>(N)->isTruncatingStore() && (AM == ISD::POST_INC || AM == ISD::POST_DEC);
7129}]>;
7130def aligned_post_truncmaskedstvi8 : PatFrag<(ops node:$val, node:$base, node:$offset, node:$postd),
7131                                            (post_truncmaskedst node:$val, node:$base, node:$offset, node:$postd), [{
7132  return cast<MaskedStoreSDNode>(N)->getMemoryVT().getScalarType() == MVT::i8;
7133}]>;
7134def aligned_post_truncmaskedstvi16 : PatFrag<(ops node:$val, node:$base, node:$offset, node:$postd),
7135                                             (post_truncmaskedst node:$val, node:$base, node:$offset, node:$postd), [{
7136  auto *St = cast<MaskedStoreSDNode>(N);
7137  EVT ScalarVT = St->getMemoryVT().getScalarType();
7138  return (ScalarVT == MVT::i16 || ScalarVT == MVT::f16) && St->getAlignment() >= 2;
7139}]>;
7140
7141// Load/store patterns
7142
7143class MVE_vector_store_typed<ValueType Ty, Instruction RegImmInst,
7144                             PatFrag StoreKind, int shift>
7145  : Pat<(StoreKind (Ty MQPR:$val), t2addrmode_imm7<shift>:$addr),
7146        (RegImmInst (Ty MQPR:$val), t2addrmode_imm7<shift>:$addr)>;
7147
7148class MVE_vector_maskedstore_typed<ValueType Ty, Instruction RegImmInst,
7149                                   PatFrag StoreKind, int shift>
7150  : Pat<(StoreKind (Ty MQPR:$val), t2addrmode_imm7<shift>:$addr, VCCR:$pred),
7151        (RegImmInst (Ty MQPR:$val), t2addrmode_imm7<shift>:$addr, ARMVCCThen, VCCR:$pred)>;
7152
7153multiclass MVE_vector_store<Instruction RegImmInst, PatFrag StoreKind,
7154                            int shift> {
7155  def : MVE_vector_store_typed<v16i8, RegImmInst, StoreKind, shift>;
7156  def : MVE_vector_store_typed<v8i16, RegImmInst, StoreKind, shift>;
7157  def : MVE_vector_store_typed<v8f16, RegImmInst, StoreKind, shift>;
7158  def : MVE_vector_store_typed<v4i32, RegImmInst, StoreKind, shift>;
7159  def : MVE_vector_store_typed<v4f32, RegImmInst, StoreKind, shift>;
7160  def : MVE_vector_store_typed<v2i64, RegImmInst, StoreKind, shift>;
7161  def : MVE_vector_store_typed<v2f64, RegImmInst, StoreKind, shift>;
7162}
7163
7164class MVE_vector_load_typed<ValueType Ty, Instruction RegImmInst,
7165                            PatFrag LoadKind, int shift>
7166  : Pat<(Ty (LoadKind t2addrmode_imm7<shift>:$addr)),
7167        (Ty (RegImmInst t2addrmode_imm7<shift>:$addr))>;
7168
7169class MVE_vector_maskedload_typed<ValueType Ty, Instruction RegImmInst,
7170                                  PatFrag LoadKind, int shift>
7171  : Pat<(Ty (LoadKind t2addrmode_imm7<shift>:$addr, VCCR:$pred, (Ty (ARMvmovImm (i32 0))))),
7172        (Ty (RegImmInst t2addrmode_imm7<shift>:$addr, ARMVCCThen, VCCR:$pred))>;
7173
7174multiclass MVE_vector_load<Instruction RegImmInst, PatFrag LoadKind,
7175                           int shift> {
7176  def : MVE_vector_load_typed<v16i8, RegImmInst, LoadKind, shift>;
7177  def : MVE_vector_load_typed<v8i16, RegImmInst, LoadKind, shift>;
7178  def : MVE_vector_load_typed<v8f16, RegImmInst, LoadKind, shift>;
7179  def : MVE_vector_load_typed<v4i32, RegImmInst, LoadKind, shift>;
7180  def : MVE_vector_load_typed<v4f32, RegImmInst, LoadKind, shift>;
7181  def : MVE_vector_load_typed<v2i64, RegImmInst, LoadKind, shift>;
7182  def : MVE_vector_load_typed<v2f64, RegImmInst, LoadKind, shift>;
7183}
7184
7185class MVE_vector_offset_store_typed<ValueType Ty, Instruction Opcode,
7186                                    PatFrag StoreKind, int shift>
7187  : Pat<(StoreKind (Ty MQPR:$Rt), tGPR:$Rn, t2am_imm7_offset<shift>:$addr),
7188        (Opcode MQPR:$Rt, tGPR:$Rn, t2am_imm7_offset<shift>:$addr)>;
7189
7190class MVE_vector_offset_maskedstore_typed<ValueType Ty, Instruction Opcode,
7191                                          PatFrag StoreKind, int shift>
7192  : Pat<(StoreKind (Ty MQPR:$Rt), tGPR:$Rn, t2am_imm7_offset<shift>:$addr, VCCR:$pred),
7193        (Opcode MQPR:$Rt, tGPR:$Rn, t2am_imm7_offset<shift>:$addr, ARMVCCThen, VCCR:$pred)>;
7194
7195multiclass MVE_vector_offset_store<Instruction RegImmInst, PatFrag StoreKind,
7196                                   int shift> {
7197  def : MVE_vector_offset_store_typed<v16i8, RegImmInst, StoreKind, shift>;
7198  def : MVE_vector_offset_store_typed<v8i16, RegImmInst, StoreKind, shift>;
7199  def : MVE_vector_offset_store_typed<v8f16, RegImmInst, StoreKind, shift>;
7200  def : MVE_vector_offset_store_typed<v4i32, RegImmInst, StoreKind, shift>;
7201  def : MVE_vector_offset_store_typed<v4f32, RegImmInst, StoreKind, shift>;
7202  def : MVE_vector_offset_store_typed<v2i64, RegImmInst, StoreKind, shift>;
7203  def : MVE_vector_offset_store_typed<v2f64, RegImmInst, StoreKind, shift>;
7204}
7205
7206
7207let Predicates = [HasMVEInt, IsLE] in {
7208  // Stores
7209  defm : MVE_vector_store<MVE_VSTRBU8, byte_alignedstore, 0>;
7210  defm : MVE_vector_store<MVE_VSTRHU16, hword_alignedstore, 1>;
7211  defm : MVE_vector_store<MVE_VSTRWU32, alignedstore32, 2>;
7212
7213  // Loads
7214  defm : MVE_vector_load<MVE_VLDRBU8, byte_alignedload, 0>;
7215  defm : MVE_vector_load<MVE_VLDRHU16, hword_alignedload, 1>;
7216  defm : MVE_vector_load<MVE_VLDRWU32, alignedload32, 2>;
7217
7218  // Pre/post inc stores
7219  defm : MVE_vector_offset_store<MVE_VSTRBU8_pre, pre_store, 0>;
7220  defm : MVE_vector_offset_store<MVE_VSTRBU8_post, post_store, 0>;
7221  defm : MVE_vector_offset_store<MVE_VSTRHU16_pre, aligned16_pre_store, 1>;
7222  defm : MVE_vector_offset_store<MVE_VSTRHU16_post, aligned16_post_store, 1>;
7223  defm : MVE_vector_offset_store<MVE_VSTRWU32_pre, aligned32_pre_store, 2>;
7224  defm : MVE_vector_offset_store<MVE_VSTRWU32_post, aligned32_post_store, 2>;
7225}
7226
7227let Predicates = [HasMVEInt, IsBE] in {
7228  // Aligned Stores
7229  def : MVE_vector_store_typed<v16i8, MVE_VSTRBU8, store, 0>;
7230  def : MVE_vector_store_typed<v8i16, MVE_VSTRHU16, alignedstore16, 1>;
7231  def : MVE_vector_store_typed<v8f16, MVE_VSTRHU16, alignedstore16, 1>;
7232  def : MVE_vector_store_typed<v4i32, MVE_VSTRWU32, alignedstore32, 2>;
7233  def : MVE_vector_store_typed<v4f32, MVE_VSTRWU32, alignedstore32, 2>;
7234
7235  // Aligned Loads
7236  def : MVE_vector_load_typed<v16i8, MVE_VLDRBU8, load, 0>;
7237  def : MVE_vector_load_typed<v8i16, MVE_VLDRHU16, alignedload16, 1>;
7238  def : MVE_vector_load_typed<v8f16, MVE_VLDRHU16, alignedload16, 1>;
7239  def : MVE_vector_load_typed<v4i32, MVE_VLDRWU32, alignedload32, 2>;
7240  def : MVE_vector_load_typed<v4f32, MVE_VLDRWU32, alignedload32, 2>;
7241
7242  // Other unaligned loads/stores need to go though a VREV
7243  def : Pat<(v2f64 (load t2addrmode_imm7<0>:$addr)),
7244            (v2f64 (MVE_VREV64_8 (MVE_VLDRBU8 t2addrmode_imm7<0>:$addr)))>;
7245  def : Pat<(v2i64 (load t2addrmode_imm7<0>:$addr)),
7246            (v2i64 (MVE_VREV64_8 (MVE_VLDRBU8 t2addrmode_imm7<0>:$addr)))>;
7247  def : Pat<(v4i32 (load t2addrmode_imm7<0>:$addr)),
7248            (v4i32 (MVE_VREV32_8 (MVE_VLDRBU8 t2addrmode_imm7<0>:$addr)))>;
7249  def : Pat<(v4f32 (load t2addrmode_imm7<0>:$addr)),
7250            (v4f32 (MVE_VREV32_8 (MVE_VLDRBU8 t2addrmode_imm7<0>:$addr)))>;
7251  def : Pat<(v8i16 (load t2addrmode_imm7<0>:$addr)),
7252            (v8i16 (MVE_VREV16_8 (MVE_VLDRBU8 t2addrmode_imm7<0>:$addr)))>;
7253  def : Pat<(v8f16 (load t2addrmode_imm7<0>:$addr)),
7254            (v8f16 (MVE_VREV16_8 (MVE_VLDRBU8 t2addrmode_imm7<0>:$addr)))>;
7255  def : Pat<(store (v2f64 MQPR:$val), t2addrmode_imm7<0>:$addr),
7256            (MVE_VSTRBU8 (MVE_VREV64_8 MQPR:$val), t2addrmode_imm7<0>:$addr)>;
7257  def : Pat<(store (v2i64 MQPR:$val), t2addrmode_imm7<0>:$addr),
7258            (MVE_VSTRBU8 (MVE_VREV64_8 MQPR:$val), t2addrmode_imm7<0>:$addr)>;
7259  def : Pat<(store (v4i32 MQPR:$val), t2addrmode_imm7<0>:$addr),
7260            (MVE_VSTRBU8 (MVE_VREV32_8 MQPR:$val), t2addrmode_imm7<0>:$addr)>;
7261  def : Pat<(store (v4f32 MQPR:$val), t2addrmode_imm7<0>:$addr),
7262            (MVE_VSTRBU8 (MVE_VREV32_8 MQPR:$val), t2addrmode_imm7<0>:$addr)>;
7263  def : Pat<(store (v8i16 MQPR:$val), t2addrmode_imm7<0>:$addr),
7264            (MVE_VSTRBU8 (MVE_VREV16_8 MQPR:$val), t2addrmode_imm7<0>:$addr)>;
7265  def : Pat<(store (v8f16 MQPR:$val), t2addrmode_imm7<0>:$addr),
7266            (MVE_VSTRBU8 (MVE_VREV16_8 MQPR:$val), t2addrmode_imm7<0>:$addr)>;
7267
7268  // Pre/Post inc stores
7269  def : MVE_vector_offset_store_typed<v16i8, MVE_VSTRBU8_pre, pre_store, 0>;
7270  def : MVE_vector_offset_store_typed<v16i8, MVE_VSTRBU8_post, post_store, 0>;
7271  def : MVE_vector_offset_store_typed<v8i16, MVE_VSTRHU16_pre, aligned16_pre_store, 1>;
7272  def : MVE_vector_offset_store_typed<v8i16, MVE_VSTRHU16_post, aligned16_post_store, 1>;
7273  def : MVE_vector_offset_store_typed<v8f16, MVE_VSTRHU16_pre, aligned16_pre_store, 1>;
7274  def : MVE_vector_offset_store_typed<v8f16, MVE_VSTRHU16_post, aligned16_post_store, 1>;
7275  def : MVE_vector_offset_store_typed<v4i32, MVE_VSTRWU32_pre, aligned32_pre_store, 2>;
7276  def : MVE_vector_offset_store_typed<v4i32, MVE_VSTRWU32_post, aligned32_post_store, 2>;
7277  def : MVE_vector_offset_store_typed<v4f32, MVE_VSTRWU32_pre, aligned32_pre_store, 2>;
7278  def : MVE_vector_offset_store_typed<v4f32, MVE_VSTRWU32_post, aligned32_post_store, 2>;
7279}
7280
7281let Predicates = [HasMVEInt] in {
7282  // Aligned masked store, shared between LE and BE
7283  def : MVE_vector_maskedstore_typed<v16i8, MVE_VSTRBU8, aligned_maskedstvi8, 0>;
7284  def : MVE_vector_maskedstore_typed<v8i16, MVE_VSTRHU16, aligned_maskedstvi16, 1>;
7285  def : MVE_vector_maskedstore_typed<v8f16, MVE_VSTRHU16, aligned_maskedstvi16, 1>;
7286  def : MVE_vector_maskedstore_typed<v4i32, MVE_VSTRWU32, aligned_maskedstvi32, 2>;
7287  def : MVE_vector_maskedstore_typed<v4f32, MVE_VSTRWU32, aligned_maskedstvi32, 2>;
7288
7289  // Pre/Post inc masked stores
7290  def : MVE_vector_offset_maskedstore_typed<v16i8, MVE_VSTRBU8_pre, aligned_pre_maskedstorevi8, 0>;
7291  def : MVE_vector_offset_maskedstore_typed<v16i8, MVE_VSTRBU8_post, aligned_post_maskedstorevi8, 0>;
7292  def : MVE_vector_offset_maskedstore_typed<v8i16, MVE_VSTRHU16_pre, aligned_pre_maskedstorevi16, 1>;
7293  def : MVE_vector_offset_maskedstore_typed<v8i16, MVE_VSTRHU16_post, aligned_post_maskedstorevi16, 1>;
7294  def : MVE_vector_offset_maskedstore_typed<v8f16, MVE_VSTRHU16_pre, aligned_pre_maskedstorevi16, 1>;
7295  def : MVE_vector_offset_maskedstore_typed<v8f16, MVE_VSTRHU16_post, aligned_post_maskedstorevi16, 1>;
7296  def : MVE_vector_offset_maskedstore_typed<v4i32, MVE_VSTRWU32_pre, aligned_pre_maskedstorevi32, 2>;
7297  def : MVE_vector_offset_maskedstore_typed<v4i32, MVE_VSTRWU32_post, aligned_post_maskedstorevi32, 2>;
7298  def : MVE_vector_offset_maskedstore_typed<v4f32, MVE_VSTRWU32_pre, aligned_pre_maskedstorevi32, 2>;
7299  def : MVE_vector_offset_maskedstore_typed<v4f32, MVE_VSTRWU32_post, aligned_post_maskedstorevi32, 2>;
7300
7301  // Aligned masked loads
7302  def : MVE_vector_maskedload_typed<v16i8, MVE_VLDRBU8, aligned_maskedloadvi8, 0>;
7303  def : MVE_vector_maskedload_typed<v8i16, MVE_VLDRHU16, aligned_maskedloadvi16, 1>;
7304  def : MVE_vector_maskedload_typed<v8f16, MVE_VLDRHU16, aligned_maskedloadvi16, 1>;
7305  def : MVE_vector_maskedload_typed<v4i32, MVE_VLDRWU32, aligned_maskedloadvi32, 2>;
7306  def : MVE_vector_maskedload_typed<v4f32, MVE_VLDRWU32, aligned_maskedloadvi32, 2>;
7307}
7308
7309// Widening/Narrowing Loads/Stores
7310
7311multiclass MVEExtLoadStore<Instruction LoadSInst, Instruction LoadUInst, string StoreInst,
7312                         string Amble, ValueType VT, int Shift> {
7313  // Trunc stores
7314  def : Pat<(!cast<PatFrag>("aligned_truncst"#Amble) (VT MQPR:$val), taddrmode_imm7<Shift>:$addr),
7315            (!cast<Instruction>(StoreInst) MQPR:$val, taddrmode_imm7<Shift>:$addr)>;
7316  def : Pat<(!cast<PatFrag>("aligned_post_truncst"#Amble) (VT MQPR:$Rt), tGPR:$Rn, t2am_imm7_offset<Shift>:$addr),
7317            (!cast<Instruction>(StoreInst#"_post") MQPR:$Rt, tGPR:$Rn, t2am_imm7_offset<Shift>:$addr)>;
7318  def : Pat<(!cast<PatFrag>("aligned_pre_truncst"#Amble) (VT MQPR:$Rt), tGPR:$Rn, t2am_imm7_offset<Shift>:$addr),
7319            (!cast<Instruction>(StoreInst#"_pre") MQPR:$Rt, tGPR:$Rn, t2am_imm7_offset<Shift>:$addr)>;
7320
7321  // Masked trunc stores
7322  def : Pat<(!cast<PatFrag>("aligned_truncmaskedst"#Amble) (VT MQPR:$val), taddrmode_imm7<Shift>:$addr, VCCR:$pred),
7323            (!cast<Instruction>(StoreInst) MQPR:$val, taddrmode_imm7<Shift>:$addr, ARMVCCThen, VCCR:$pred)>;
7324  def : Pat<(!cast<PatFrag>("aligned_post_truncmaskedst"#Amble) (VT MQPR:$Rt), tGPR:$Rn, t2am_imm7_offset<Shift>:$addr, VCCR:$pred),
7325            (!cast<Instruction>(StoreInst#"_post") MQPR:$Rt, tGPR:$Rn, t2am_imm7_offset<Shift>:$addr, ARMVCCThen, VCCR:$pred)>;
7326  def : Pat<(!cast<PatFrag>("aligned_pre_truncmaskedst"#Amble) (VT MQPR:$Rt), tGPR:$Rn, t2am_imm7_offset<Shift>:$addr, VCCR:$pred),
7327            (!cast<Instruction>(StoreInst#"_pre") MQPR:$Rt, tGPR:$Rn, t2am_imm7_offset<Shift>:$addr, ARMVCCThen, VCCR:$pred)>;
7328
7329  // Ext loads
7330  def : Pat<(VT (!cast<PatFrag>("aligned_extload"#Amble) taddrmode_imm7<Shift>:$addr)),
7331            (VT (LoadUInst taddrmode_imm7<Shift>:$addr))>;
7332  def : Pat<(VT (!cast<PatFrag>("aligned_sextload"#Amble) taddrmode_imm7<Shift>:$addr)),
7333            (VT (LoadSInst taddrmode_imm7<Shift>:$addr))>;
7334  def : Pat<(VT (!cast<PatFrag>("aligned_zextload"#Amble) taddrmode_imm7<Shift>:$addr)),
7335            (VT (LoadUInst taddrmode_imm7<Shift>:$addr))>;
7336
7337  // Masked ext loads
7338  def : Pat<(VT (!cast<PatFrag>("aligned_extmaskedload"#Amble) taddrmode_imm7<Shift>:$addr, VCCR:$pred, (VT (ARMvmovImm (i32 0))))),
7339            (VT (LoadUInst taddrmode_imm7<Shift>:$addr, ARMVCCThen, VCCR:$pred))>;
7340  def : Pat<(VT (!cast<PatFrag>("aligned_sextmaskedload"#Amble) taddrmode_imm7<Shift>:$addr, VCCR:$pred, (VT (ARMvmovImm (i32 0))))),
7341            (VT (LoadSInst taddrmode_imm7<Shift>:$addr, ARMVCCThen, VCCR:$pred))>;
7342  def : Pat<(VT (!cast<PatFrag>("aligned_zextmaskedload"#Amble) taddrmode_imm7<Shift>:$addr, VCCR:$pred, (VT (ARMvmovImm (i32 0))))),
7343            (VT (LoadUInst taddrmode_imm7<Shift>:$addr, ARMVCCThen, VCCR:$pred))>;
7344}
7345
7346let Predicates = [HasMVEInt] in {
7347  defm : MVEExtLoadStore<MVE_VLDRBS16, MVE_VLDRBU16, "MVE_VSTRB16", "vi8", v8i16, 0>;
7348  defm : MVEExtLoadStore<MVE_VLDRBS32, MVE_VLDRBU32, "MVE_VSTRB32", "vi8", v4i32, 0>;
7349  defm : MVEExtLoadStore<MVE_VLDRHS32, MVE_VLDRHU32, "MVE_VSTRH32", "vi16", v4i32, 1>;
7350}
7351
7352
7353// Bit convert patterns
7354
7355let Predicates = [HasMVEInt] in {
7356  def : Pat<(v2f64 (bitconvert (v2i64 MQPR:$src))), (v2f64 MQPR:$src)>;
7357  def : Pat<(v2i64 (bitconvert (v2f64 MQPR:$src))), (v2i64 MQPR:$src)>;
7358
7359  def : Pat<(v4i32 (bitconvert (v4f32 MQPR:$src))), (v4i32 MQPR:$src)>;
7360  def : Pat<(v4f32 (bitconvert (v4i32 MQPR:$src))), (v4f32 MQPR:$src)>;
7361
7362  def : Pat<(v8i16 (bitconvert (v8f16 MQPR:$src))), (v8i16  MQPR:$src)>;
7363  def : Pat<(v8f16 (bitconvert (v8i16 MQPR:$src))), (v8f16  MQPR:$src)>;
7364}
7365
7366let Predicates = [IsLE,HasMVEInt] in {
7367  def : Pat<(v2f64 (bitconvert (v4f32 MQPR:$src))), (v2f64 MQPR:$src)>;
7368  def : Pat<(v2f64 (bitconvert (v4i32 MQPR:$src))), (v2f64 MQPR:$src)>;
7369  def : Pat<(v2f64 (bitconvert (v8f16 MQPR:$src))), (v2f64 MQPR:$src)>;
7370  def : Pat<(v2f64 (bitconvert (v8i16 MQPR:$src))), (v2f64 MQPR:$src)>;
7371  def : Pat<(v2f64 (bitconvert (v16i8 MQPR:$src))), (v2f64 MQPR:$src)>;
7372
7373  def : Pat<(v2i64 (bitconvert (v4f32 MQPR:$src))), (v2i64 MQPR:$src)>;
7374  def : Pat<(v2i64 (bitconvert (v4i32 MQPR:$src))), (v2i64 MQPR:$src)>;
7375  def : Pat<(v2i64 (bitconvert (v8f16 MQPR:$src))), (v2i64 MQPR:$src)>;
7376  def : Pat<(v2i64 (bitconvert (v8i16 MQPR:$src))), (v2i64 MQPR:$src)>;
7377  def : Pat<(v2i64 (bitconvert (v16i8 MQPR:$src))), (v2i64 MQPR:$src)>;
7378
7379  def : Pat<(v4f32 (bitconvert (v2f64 MQPR:$src))), (v4f32 MQPR:$src)>;
7380  def : Pat<(v4f32 (bitconvert (v2i64 MQPR:$src))), (v4f32 MQPR:$src)>;
7381  def : Pat<(v4f32 (bitconvert (v8f16 MQPR:$src))), (v4f32 MQPR:$src)>;
7382  def : Pat<(v4f32 (bitconvert (v8i16 MQPR:$src))), (v4f32 MQPR:$src)>;
7383  def : Pat<(v4f32 (bitconvert (v16i8 MQPR:$src))), (v4f32 MQPR:$src)>;
7384
7385  def : Pat<(v4i32 (bitconvert (v2f64 MQPR:$src))), (v4i32 MQPR:$src)>;
7386  def : Pat<(v4i32 (bitconvert (v2i64 MQPR:$src))), (v4i32 MQPR:$src)>;
7387  def : Pat<(v4i32 (bitconvert (v8f16 MQPR:$src))), (v4i32 MQPR:$src)>;
7388  def : Pat<(v4i32 (bitconvert (v8i16 MQPR:$src))), (v4i32 MQPR:$src)>;
7389  def : Pat<(v4i32 (bitconvert (v16i8 MQPR:$src))), (v4i32 MQPR:$src)>;
7390
7391  def : Pat<(v8f16 (bitconvert (v2f64 MQPR:$src))), (v8f16 MQPR:$src)>;
7392  def : Pat<(v8f16 (bitconvert (v2i64 MQPR:$src))), (v8f16 MQPR:$src)>;
7393  def : Pat<(v8f16 (bitconvert (v4f32 MQPR:$src))), (v8f16 MQPR:$src)>;
7394  def : Pat<(v8f16 (bitconvert (v4i32 MQPR:$src))), (v8f16 MQPR:$src)>;
7395  def : Pat<(v8f16 (bitconvert (v16i8 MQPR:$src))), (v8f16 MQPR:$src)>;
7396
7397  def : Pat<(v8i16 (bitconvert (v2f64 MQPR:$src))), (v8i16 MQPR:$src)>;
7398  def : Pat<(v8i16 (bitconvert (v2i64 MQPR:$src))), (v8i16 MQPR:$src)>;
7399  def : Pat<(v8i16 (bitconvert (v4f32 MQPR:$src))), (v8i16 MQPR:$src)>;
7400  def : Pat<(v8i16 (bitconvert (v4i32 MQPR:$src))), (v8i16 MQPR:$src)>;
7401  def : Pat<(v8i16 (bitconvert (v16i8 MQPR:$src))), (v8i16 MQPR:$src)>;
7402
7403  def : Pat<(v16i8 (bitconvert (v2f64 MQPR:$src))), (v16i8 MQPR:$src)>;
7404  def : Pat<(v16i8 (bitconvert (v2i64 MQPR:$src))), (v16i8 MQPR:$src)>;
7405  def : Pat<(v16i8 (bitconvert (v4f32 MQPR:$src))), (v16i8 MQPR:$src)>;
7406  def : Pat<(v16i8 (bitconvert (v4i32 MQPR:$src))), (v16i8 MQPR:$src)>;
7407  def : Pat<(v16i8 (bitconvert (v8f16 MQPR:$src))), (v16i8 MQPR:$src)>;
7408  def : Pat<(v16i8 (bitconvert (v8i16 MQPR:$src))), (v16i8 MQPR:$src)>;
7409}
7410
7411let Predicates = [IsBE,HasMVEInt] in {
7412  def : Pat<(v2f64 (bitconvert (v4f32 MQPR:$src))), (v2f64 (MVE_VREV64_32 MQPR:$src))>;
7413  def : Pat<(v2f64 (bitconvert (v4i32 MQPR:$src))), (v2f64 (MVE_VREV64_32 MQPR:$src))>;
7414  def : Pat<(v2f64 (bitconvert (v8f16 MQPR:$src))), (v2f64 (MVE_VREV64_16 MQPR:$src))>;
7415  def : Pat<(v2f64 (bitconvert (v8i16 MQPR:$src))), (v2f64 (MVE_VREV64_16 MQPR:$src))>;
7416  def : Pat<(v2f64 (bitconvert (v16i8 MQPR:$src))), (v2f64 (MVE_VREV64_8 MQPR:$src))>;
7417
7418  def : Pat<(v2i64 (bitconvert (v4f32 MQPR:$src))), (v2i64 (MVE_VREV64_32 MQPR:$src))>;
7419  def : Pat<(v2i64 (bitconvert (v4i32 MQPR:$src))), (v2i64 (MVE_VREV64_32 MQPR:$src))>;
7420  def : Pat<(v2i64 (bitconvert (v8f16 MQPR:$src))), (v2i64 (MVE_VREV64_16 MQPR:$src))>;
7421  def : Pat<(v2i64 (bitconvert (v8i16 MQPR:$src))), (v2i64 (MVE_VREV64_16 MQPR:$src))>;
7422  def : Pat<(v2i64 (bitconvert (v16i8 MQPR:$src))), (v2i64 (MVE_VREV64_8 MQPR:$src))>;
7423
7424  def : Pat<(v4f32 (bitconvert (v2f64 MQPR:$src))), (v4f32 (MVE_VREV64_32 MQPR:$src))>;
7425  def : Pat<(v4f32 (bitconvert (v2i64 MQPR:$src))), (v4f32 (MVE_VREV64_32 MQPR:$src))>;
7426  def : Pat<(v4f32 (bitconvert (v8f16 MQPR:$src))), (v4f32 (MVE_VREV32_16 MQPR:$src))>;
7427  def : Pat<(v4f32 (bitconvert (v8i16 MQPR:$src))), (v4f32 (MVE_VREV32_16 MQPR:$src))>;
7428  def : Pat<(v4f32 (bitconvert (v16i8 MQPR:$src))), (v4f32 (MVE_VREV32_8 MQPR:$src))>;
7429
7430  def : Pat<(v4i32 (bitconvert (v2f64 MQPR:$src))), (v4i32 (MVE_VREV64_32 MQPR:$src))>;
7431  def : Pat<(v4i32 (bitconvert (v2i64 MQPR:$src))), (v4i32 (MVE_VREV64_32 MQPR:$src))>;
7432  def : Pat<(v4i32 (bitconvert (v8f16 MQPR:$src))), (v4i32 (MVE_VREV32_16 MQPR:$src))>;
7433  def : Pat<(v4i32 (bitconvert (v8i16 MQPR:$src))), (v4i32 (MVE_VREV32_16 MQPR:$src))>;
7434  def : Pat<(v4i32 (bitconvert (v16i8 MQPR:$src))), (v4i32 (MVE_VREV32_8 MQPR:$src))>;
7435
7436  def : Pat<(v8f16 (bitconvert (v2f64 MQPR:$src))), (v8f16 (MVE_VREV64_16 MQPR:$src))>;
7437  def : Pat<(v8f16 (bitconvert (v2i64 MQPR:$src))), (v8f16 (MVE_VREV64_16 MQPR:$src))>;
7438  def : Pat<(v8f16 (bitconvert (v4f32 MQPR:$src))), (v8f16 (MVE_VREV32_16 MQPR:$src))>;
7439  def : Pat<(v8f16 (bitconvert (v4i32 MQPR:$src))), (v8f16 (MVE_VREV32_16 MQPR:$src))>;
7440  def : Pat<(v8f16 (bitconvert (v16i8 MQPR:$src))), (v8f16 (MVE_VREV16_8 MQPR:$src))>;
7441
7442  def : Pat<(v8i16 (bitconvert (v2f64 MQPR:$src))), (v8i16 (MVE_VREV64_16 MQPR:$src))>;
7443  def : Pat<(v8i16 (bitconvert (v2i64 MQPR:$src))), (v8i16 (MVE_VREV64_16 MQPR:$src))>;
7444  def : Pat<(v8i16 (bitconvert (v4f32 MQPR:$src))), (v8i16 (MVE_VREV32_16 MQPR:$src))>;
7445  def : Pat<(v8i16 (bitconvert (v4i32 MQPR:$src))), (v8i16 (MVE_VREV32_16 MQPR:$src))>;
7446  def : Pat<(v8i16 (bitconvert (v16i8 MQPR:$src))), (v8i16 (MVE_VREV16_8 MQPR:$src))>;
7447
7448  def : Pat<(v16i8 (bitconvert (v2f64 MQPR:$src))), (v16i8 (MVE_VREV64_8 MQPR:$src))>;
7449  def : Pat<(v16i8 (bitconvert (v2i64 MQPR:$src))), (v16i8 (MVE_VREV64_8 MQPR:$src))>;
7450  def : Pat<(v16i8 (bitconvert (v4f32 MQPR:$src))), (v16i8 (MVE_VREV32_8 MQPR:$src))>;
7451  def : Pat<(v16i8 (bitconvert (v4i32 MQPR:$src))), (v16i8 (MVE_VREV32_8 MQPR:$src))>;
7452  def : Pat<(v16i8 (bitconvert (v8f16 MQPR:$src))), (v16i8 (MVE_VREV16_8 MQPR:$src))>;
7453  def : Pat<(v16i8 (bitconvert (v8i16 MQPR:$src))), (v16i8 (MVE_VREV16_8 MQPR:$src))>;
7454}
7455