1//===- MipsInstrInfo.td - Target Description for Mips Target -*- tablegen -*-=//
2//
3//                     The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// This file contains the Mips implementation of the TargetInstrInfo class.
11//
12//===----------------------------------------------------------------------===//
13
14
15//===----------------------------------------------------------------------===//
16// Mips profiles and nodes
17//===----------------------------------------------------------------------===//
18
19def SDT_MipsJmpLink      : SDTypeProfile<0, 1, [SDTCisVT<0, iPTR>]>;
20def SDT_MipsCMov         : SDTypeProfile<1, 4, [SDTCisSameAs<0, 1>,
21                                                SDTCisSameAs<1, 2>,
22                                                SDTCisSameAs<3, 4>,
23                                                SDTCisInt<4>]>;
24def SDT_MipsCallSeqStart : SDCallSeqStart<[SDTCisVT<0, i32>]>;
25def SDT_MipsCallSeqEnd   : SDCallSeqEnd<[SDTCisVT<0, i32>, SDTCisVT<1, i32>]>;
26def SDT_MFLOHI : SDTypeProfile<1, 1, [SDTCisInt<0>, SDTCisVT<1, untyped>]>;
27def SDT_MTLOHI : SDTypeProfile<1, 2, [SDTCisVT<0, untyped>,
28                                      SDTCisInt<1>, SDTCisSameAs<1, 2>]>;
29def SDT_MipsMultDiv : SDTypeProfile<1, 2, [SDTCisVT<0, untyped>, SDTCisInt<1>,
30                                    SDTCisSameAs<1, 2>]>;
31def SDT_MipsMAddMSub : SDTypeProfile<1, 3,
32                                     [SDTCisVT<0, untyped>, SDTCisSameAs<0, 3>,
33                                      SDTCisVT<1, i32>, SDTCisSameAs<1, 2>]>;
34def SDT_MipsDivRem16 : SDTypeProfile<0, 2, [SDTCisInt<0>, SDTCisSameAs<0, 1>]>;
35
36def SDT_MipsThreadPointer : SDTypeProfile<1, 0, [SDTCisPtrTy<0>]>;
37
38def SDT_Sync             : SDTypeProfile<0, 1, [SDTCisVT<0, i32>]>;
39
40def SDT_Ext : SDTypeProfile<1, 3, [SDTCisInt<0>, SDTCisSameAs<0, 1>,
41                                   SDTCisVT<2, i32>, SDTCisSameAs<2, 3>]>;
42def SDT_Ins : SDTypeProfile<1, 4, [SDTCisInt<0>, SDTCisSameAs<0, 1>,
43                                   SDTCisVT<2, i32>, SDTCisSameAs<2, 3>,
44                                   SDTCisSameAs<0, 4>]>;
45
46def SDTMipsLoadLR  : SDTypeProfile<1, 2,
47                                   [SDTCisInt<0>, SDTCisPtrTy<1>,
48                                    SDTCisSameAs<0, 2>]>;
49
50// Call
51def MipsJmpLink : SDNode<"MipsISD::JmpLink",SDT_MipsJmpLink,
52                         [SDNPHasChain, SDNPOutGlue, SDNPOptInGlue,
53                          SDNPVariadic]>;
54
55// Tail call
56def MipsTailCall : SDNode<"MipsISD::TailCall", SDT_MipsJmpLink,
57                          [SDNPHasChain, SDNPOptInGlue, SDNPVariadic]>;
58
59// Hi and Lo nodes are used to handle global addresses. Used on
60// MipsISelLowering to lower stuff like GlobalAddress, ExternalSymbol
61// static model. (nothing to do with Mips Registers Hi and Lo)
62def MipsHi    : SDNode<"MipsISD::Hi", SDTIntUnaryOp>;
63def MipsLo    : SDNode<"MipsISD::Lo", SDTIntUnaryOp>;
64def MipsGPRel : SDNode<"MipsISD::GPRel", SDTIntUnaryOp>;
65
66// TlsGd node is used to handle General Dynamic TLS
67def MipsTlsGd : SDNode<"MipsISD::TlsGd", SDTIntUnaryOp>;
68
69// TprelHi and TprelLo nodes are used to handle Local Exec TLS
70def MipsTprelHi    : SDNode<"MipsISD::TprelHi", SDTIntUnaryOp>;
71def MipsTprelLo    : SDNode<"MipsISD::TprelLo", SDTIntUnaryOp>;
72
73// Thread pointer
74def MipsThreadPointer: SDNode<"MipsISD::ThreadPointer", SDT_MipsThreadPointer>;
75
76// Return
77def MipsRet : SDNode<"MipsISD::Ret", SDTNone,
78                     [SDNPHasChain, SDNPOptInGlue, SDNPVariadic]>;
79
80def MipsERet : SDNode<"MipsISD::ERet", SDTNone,
81                      [SDNPHasChain, SDNPOptInGlue, SDNPSideEffect]>;
82
83// These are target-independent nodes, but have target-specific formats.
84def callseq_start : SDNode<"ISD::CALLSEQ_START", SDT_MipsCallSeqStart,
85                           [SDNPHasChain, SDNPSideEffect, SDNPOutGlue]>;
86def callseq_end   : SDNode<"ISD::CALLSEQ_END", SDT_MipsCallSeqEnd,
87                           [SDNPHasChain, SDNPSideEffect,
88                            SDNPOptInGlue, SDNPOutGlue]>;
89
90// Nodes used to extract LO/HI registers.
91def MipsMFHI : SDNode<"MipsISD::MFHI", SDT_MFLOHI>;
92def MipsMFLO : SDNode<"MipsISD::MFLO", SDT_MFLOHI>;
93
94// Node used to insert 32-bit integers to LOHI register pair.
95def MipsMTLOHI : SDNode<"MipsISD::MTLOHI", SDT_MTLOHI>;
96
97// Mult nodes.
98def MipsMult  : SDNode<"MipsISD::Mult", SDT_MipsMultDiv>;
99def MipsMultu : SDNode<"MipsISD::Multu", SDT_MipsMultDiv>;
100
101// MAdd*/MSub* nodes
102def MipsMAdd  : SDNode<"MipsISD::MAdd", SDT_MipsMAddMSub>;
103def MipsMAddu : SDNode<"MipsISD::MAddu", SDT_MipsMAddMSub>;
104def MipsMSub  : SDNode<"MipsISD::MSub", SDT_MipsMAddMSub>;
105def MipsMSubu : SDNode<"MipsISD::MSubu", SDT_MipsMAddMSub>;
106
107// DivRem(u) nodes
108def MipsDivRem    : SDNode<"MipsISD::DivRem", SDT_MipsMultDiv>;
109def MipsDivRemU   : SDNode<"MipsISD::DivRemU", SDT_MipsMultDiv>;
110def MipsDivRem16  : SDNode<"MipsISD::DivRem16", SDT_MipsDivRem16,
111                           [SDNPOutGlue]>;
112def MipsDivRemU16 : SDNode<"MipsISD::DivRemU16", SDT_MipsDivRem16,
113                           [SDNPOutGlue]>;
114
115// Target constant nodes that are not part of any isel patterns and remain
116// unchanged can cause instructions with illegal operands to be emitted.
117// Wrapper node patterns give the instruction selector a chance to replace
118// target constant nodes that would otherwise remain unchanged with ADDiu
119// nodes. Without these wrapper node patterns, the following conditional move
120// instruction is emitted when function cmov2 in test/CodeGen/Mips/cmov.ll is
121// compiled:
122//  movn  %got(d)($gp), %got(c)($gp), $4
123// This instruction is illegal since movn can take only register operands.
124
125def MipsWrapper    : SDNode<"MipsISD::Wrapper", SDTIntBinOp>;
126
127def MipsSync : SDNode<"MipsISD::Sync", SDT_Sync, [SDNPHasChain,SDNPSideEffect]>;
128
129def MipsExt :  SDNode<"MipsISD::Ext", SDT_Ext>;
130def MipsIns :  SDNode<"MipsISD::Ins", SDT_Ins>;
131
132def MipsLWL : SDNode<"MipsISD::LWL", SDTMipsLoadLR,
133                     [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>;
134def MipsLWR : SDNode<"MipsISD::LWR", SDTMipsLoadLR,
135                     [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>;
136def MipsSWL : SDNode<"MipsISD::SWL", SDTStore,
137                     [SDNPHasChain, SDNPMayStore, SDNPMemOperand]>;
138def MipsSWR : SDNode<"MipsISD::SWR", SDTStore,
139                     [SDNPHasChain, SDNPMayStore, SDNPMemOperand]>;
140def MipsLDL : SDNode<"MipsISD::LDL", SDTMipsLoadLR,
141                     [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>;
142def MipsLDR : SDNode<"MipsISD::LDR", SDTMipsLoadLR,
143                     [SDNPHasChain, SDNPMayLoad, SDNPMemOperand]>;
144def MipsSDL : SDNode<"MipsISD::SDL", SDTStore,
145                     [SDNPHasChain, SDNPMayStore, SDNPMemOperand]>;
146def MipsSDR : SDNode<"MipsISD::SDR", SDTStore,
147                     [SDNPHasChain, SDNPMayStore, SDNPMemOperand]>;
148
149//===----------------------------------------------------------------------===//
150// Mips Instruction Predicate Definitions.
151//===----------------------------------------------------------------------===//
152def HasMips2     :    Predicate<"Subtarget->hasMips2()">,
153                      AssemblerPredicate<"FeatureMips2">;
154def HasMips3_32  :    Predicate<"Subtarget->hasMips3_32()">,
155                      AssemblerPredicate<"FeatureMips3_32">;
156def HasMips3_32r2 :   Predicate<"Subtarget->hasMips3_32r2()">,
157                      AssemblerPredicate<"FeatureMips3_32r2">;
158def HasMips3     :    Predicate<"Subtarget->hasMips3()">,
159                      AssemblerPredicate<"FeatureMips3">;
160def HasMips4_32  :    Predicate<"Subtarget->hasMips4_32()">,
161                      AssemblerPredicate<"FeatureMips4_32">;
162def NotMips4_32  :    Predicate<"!Subtarget->hasMips4_32()">,
163                      AssemblerPredicate<"!FeatureMips4_32">;
164def HasMips4_32r2 :   Predicate<"Subtarget->hasMips4_32r2()">,
165                      AssemblerPredicate<"FeatureMips4_32r2">;
166def HasMips5_32r2 :   Predicate<"Subtarget->hasMips5_32r2()">,
167                      AssemblerPredicate<"FeatureMips5_32r2">;
168def HasMips32    :    Predicate<"Subtarget->hasMips32()">,
169                      AssemblerPredicate<"FeatureMips32">;
170def HasMips32r2  :    Predicate<"Subtarget->hasMips32r2()">,
171                      AssemblerPredicate<"FeatureMips32r2">;
172def HasMips32r5  :    Predicate<"Subtarget->hasMips32r5()">,
173                      AssemblerPredicate<"FeatureMips32r5">;
174def HasMips32r6  :    Predicate<"Subtarget->hasMips32r6()">,
175                      AssemblerPredicate<"FeatureMips32r6">;
176def NotMips32r6  :    Predicate<"!Subtarget->hasMips32r6()">,
177                      AssemblerPredicate<"!FeatureMips32r6">;
178def IsGP64bit    :    Predicate<"Subtarget->isGP64bit()">,
179                      AssemblerPredicate<"FeatureGP64Bit">;
180def IsGP32bit    :    Predicate<"!Subtarget->isGP64bit()">,
181                      AssemblerPredicate<"!FeatureGP64Bit">;
182def IsPTR64bit    :   Predicate<"Subtarget->isABI_N64()">,
183                      AssemblerPredicate<"FeaturePTR64Bit">;
184def IsPTR32bit    :   Predicate<"!Subtarget->isABI_N64()">,
185                      AssemblerPredicate<"!FeaturePTR64Bit">;
186def HasMips64    :    Predicate<"Subtarget->hasMips64()">,
187                      AssemblerPredicate<"FeatureMips64">;
188def NotMips64    :    Predicate<"!Subtarget->hasMips64()">,
189                      AssemblerPredicate<"!FeatureMips64">;
190def HasMips64r2  :    Predicate<"Subtarget->hasMips64r2()">,
191                      AssemblerPredicate<"FeatureMips64r2">;
192def HasMips64r6  :    Predicate<"Subtarget->hasMips64r6()">,
193                      AssemblerPredicate<"FeatureMips64r6">;
194def NotMips64r6  :    Predicate<"!Subtarget->hasMips64r6()">,
195                      AssemblerPredicate<"!FeatureMips64r6">;
196def HasMicroMips32r6 : Predicate<"Subtarget->inMicroMips32r6Mode()">,
197                       AssemblerPredicate<"FeatureMicroMips,FeatureMips32r6">;
198def HasMicroMips64r6 : Predicate<"Subtarget->inMicroMips64r6Mode()">,
199                       AssemblerPredicate<"FeatureMicroMips,FeatureMips64r6">;
200def InMips16Mode :    Predicate<"Subtarget->inMips16Mode()">,
201                      AssemblerPredicate<"FeatureMips16">;
202def HasCnMips    :    Predicate<"Subtarget->hasCnMips()">,
203                      AssemblerPredicate<"FeatureCnMips">;
204def RelocNotPIC :     Predicate<"!TM.isPositionIndependent()">;
205def RelocPIC    :     Predicate<"TM.isPositionIndependent()">;
206def NoNaNsFPMath :    Predicate<"TM.Options.NoNaNsFPMath">;
207def HasStdEnc :       Predicate<"Subtarget->hasStandardEncoding()">,
208                      AssemblerPredicate<"!FeatureMips16">;
209def NotDSP :          Predicate<"!Subtarget->hasDSP()">;
210def InMicroMips    :  Predicate<"Subtarget->inMicroMipsMode()">,
211                      AssemblerPredicate<"FeatureMicroMips">;
212def NotInMicroMips :  Predicate<"!Subtarget->inMicroMipsMode()">,
213                      AssemblerPredicate<"!FeatureMicroMips">;
214def IsLE           :  Predicate<"Subtarget->isLittle()">;
215def IsBE           :  Predicate<"!Subtarget->isLittle()">;
216def IsNotNaCl    :    Predicate<"!Subtarget->isTargetNaCl()">;
217def UseTCCInDIV    :  AssemblerPredicate<"FeatureUseTCCInDIV">;
218def HasEVA       :    Predicate<"Subtarget->hasEVA()">,
219                      AssemblerPredicate<"FeatureEVA,FeatureMips32r2">;
220def HasMSA : Predicate<"Subtarget->hasMSA()">,
221             AssemblerPredicate<"FeatureMSA">;
222
223
224//===----------------------------------------------------------------------===//
225// Mips GPR size adjectives.
226// They are mutually exclusive.
227//===----------------------------------------------------------------------===//
228
229class GPR_32 { list<Predicate> GPRPredicates = [IsGP32bit]; }
230class GPR_64 { list<Predicate> GPRPredicates = [IsGP64bit]; }
231
232class PTR_32 { list<Predicate> PTRPredicates = [IsPTR32bit]; }
233class PTR_64 { list<Predicate> PTRPredicates = [IsPTR64bit]; }
234
235//===----------------------------------------------------------------------===//
236// Mips ISA/ASE membership and instruction group membership adjectives.
237// They are mutually exclusive.
238//===----------------------------------------------------------------------===//
239
240// FIXME: I'd prefer to use additive predicates to build the instruction sets
241//        but we are short on assembler feature bits at the moment. Using a
242//        subtractive predicate will hopefully keep us under the 32 predicate
243//        limit long enough to develop an alternative way to handle P1||P2
244//        predicates.
245class ISA_MIPS1_NOT_4_32 {
246  list<Predicate> InsnPredicates = [NotMips4_32];
247}
248class ISA_MIPS1_NOT_32R6_64R6 {
249  list<Predicate> InsnPredicates = [NotMips32r6, NotMips64r6];
250}
251class ISA_MIPS2    { list<Predicate> InsnPredicates = [HasMips2]; }
252class ISA_MIPS2_NOT_32R6_64R6 {
253  list<Predicate> InsnPredicates = [HasMips2, NotMips32r6, NotMips64r6];
254}
255class ISA_MIPS3    { list<Predicate> InsnPredicates = [HasMips3]; }
256class ISA_MIPS3_NOT_32R6_64R6 {
257  list<Predicate> InsnPredicates = [HasMips3, NotMips32r6, NotMips64r6];
258}
259class ISA_MIPS32   { list<Predicate> InsnPredicates = [HasMips32]; }
260class ISA_MIPS32_NOT_32R6_64R6 {
261  list<Predicate> InsnPredicates = [HasMips32, NotMips32r6, NotMips64r6];
262}
263class ISA_MIPS32R2 { list<Predicate> InsnPredicates = [HasMips32r2]; }
264class ISA_MIPS32R2_NOT_32R6_64R6 {
265  list<Predicate> InsnPredicates = [HasMips32r2, NotMips32r6, NotMips64r6];
266}
267class ISA_MIPS32R5 { list<Predicate> InsnPredicates = [HasMips32r5]; }
268class ISA_MIPS64   { list<Predicate> InsnPredicates = [HasMips64]; }
269class ISA_MIPS64_NOT_64R6 {
270  list<Predicate> InsnPredicates = [HasMips64, NotMips64r6];
271}
272class ISA_MIPS64R2 { list<Predicate> InsnPredicates = [HasMips64r2]; }
273class ISA_MIPS32R6 { list<Predicate> InsnPredicates = [HasMips32r6]; }
274class ISA_MIPS64R6 { list<Predicate> InsnPredicates = [HasMips64r6]; }
275class ISA_MICROMIPS { list<Predicate> InsnPredicates = [InMicroMips]; }
276class ISA_MICROMIPS32R6 {
277  list<Predicate> InsnPredicates = [HasMicroMips32r6];
278}
279class ISA_MICROMIPS64R6 {
280  list<Predicate> InsnPredicates = [HasMicroMips64r6];
281}
282class ISA_MICROMIPS32_NOT_MIPS32R6 {
283  list<Predicate> InsnPredicates = [InMicroMips, NotMips32r6];
284}
285
286class INSN_EVA { list<Predicate> InsnPredicates = [HasEVA]; }
287class INSN_EVA_NOT_32R6_64R6 {
288  list<Predicate> InsnPredicates = [NotMips32r6, NotMips64r6, HasEVA];
289}
290
291// The portions of MIPS-III that were also added to MIPS32
292class INSN_MIPS3_32 { list<Predicate> InsnPredicates = [HasMips3_32]; }
293
294// The portions of MIPS-III that were also added to MIPS32 but were removed in
295// MIPS32r6 and MIPS64r6.
296class INSN_MIPS3_32_NOT_32R6_64R6 {
297  list<Predicate> InsnPredicates = [HasMips3_32, NotMips32r6, NotMips64r6];
298}
299
300// The portions of MIPS-III that were also added to MIPS32
301class INSN_MIPS3_32R2 { list<Predicate> InsnPredicates = [HasMips3_32r2]; }
302
303// The portions of MIPS-IV that were also added to MIPS32.
304class INSN_MIPS4_32 { list <Predicate> InsnPredicates = [HasMips4_32]; }
305
306// The portions of MIPS-IV that were also added to MIPS32 but were removed in
307// MIPS32r6 and MIPS64r6.
308class INSN_MIPS4_32_NOT_32R6_64R6 {
309  list<Predicate> InsnPredicates = [HasMips4_32, NotMips32r6, NotMips64r6];
310}
311
312// The portions of MIPS-IV that were also added to MIPS32r2 but were removed in
313// MIPS32r6 and MIPS64r6.
314class INSN_MIPS4_32R2_NOT_32R6_64R6 {
315  list<Predicate> InsnPredicates = [HasMips4_32r2, NotMips32r6, NotMips64r6];
316}
317
318// The portions of MIPS-IV that were also added to MIPS32r2.
319class INSN_MIPS4_32R2 {
320  list<Predicate> InsnPredicates = [HasMips4_32r2];
321}
322
323// The portions of MIPS-V that were also added to MIPS32r2 but were removed in
324// MIPS32r6 and MIPS64r6.
325class INSN_MIPS5_32R2_NOT_32R6_64R6 {
326  list<Predicate> InsnPredicates = [HasMips5_32r2, NotMips32r6, NotMips64r6];
327}
328
329class ASE_CNMIPS {
330  list<Predicate> InsnPredicates = [HasCnMips];
331}
332
333class ASE_MIPS64_CNMIPS {
334  list<Predicate> InsnPredicates = [HasMips64, HasCnMips];
335}
336
337class ASE_MSA {
338  list<Predicate> InsnPredicates = [HasMSA];
339}
340
341class ASE_MSA_NOT_MSA64 {
342  list<Predicate> InsnPredicates = [HasMSA, NotMips64];
343}
344
345class ASE_MSA64 {
346  list<Predicate> InsnPredicates = [HasMSA, HasMips64];
347}
348
349// Class used for separating microMIPSr6 and microMIPS (r3) instruction.
350// It can be used only on instructions that doesn't inherit PredicateControl.
351class ISA_MICROMIPS_NOT_32R6_64R6 : PredicateControl {
352  let InsnPredicates = [InMicroMips, NotMips32r6, NotMips64r6];
353}
354
355class ASE_NOT_DSP {
356  list<Predicate> InsnPredicates = [NotDSP];
357}
358
359//===----------------------------------------------------------------------===//
360
361class MipsPat<dag pattern, dag result> : Pat<pattern, result>, PredicateControl {
362  let EncodingPredicates = [HasStdEnc];
363}
364
365class MipsInstAlias<string Asm, dag Result, bit Emit = 0b1> :
366  InstAlias<Asm, Result, Emit>, PredicateControl;
367
368class IsCommutable {
369  bit isCommutable = 1;
370}
371
372class IsBranch {
373  bit isBranch = 1;
374  bit isCTI = 1;
375}
376
377class IsReturn {
378  bit isReturn = 1;
379  bit isCTI = 1;
380}
381
382class IsCall {
383  bit isCall = 1;
384  bit isCTI = 1;
385}
386
387class IsTailCall {
388  bit isCall = 1;
389  bit isTerminator = 1;
390  bit isReturn = 1;
391  bit isBarrier = 1;
392  bit hasExtraSrcRegAllocReq = 1;
393  bit isCodeGenOnly = 1;
394  bit isCTI = 1;
395}
396
397class IsAsCheapAsAMove {
398  bit isAsCheapAsAMove = 1;
399}
400
401class NeverHasSideEffects {
402  bit hasSideEffects = 0;
403}
404
405//===----------------------------------------------------------------------===//
406// Instruction format superclass
407//===----------------------------------------------------------------------===//
408
409include "MipsInstrFormats.td"
410
411//===----------------------------------------------------------------------===//
412// Mips Operand, Complex Patterns and Transformations Definitions.
413//===----------------------------------------------------------------------===//
414
415class ConstantSImmAsmOperandClass<int Bits, list<AsmOperandClass> Supers = [],
416                                  int Offset = 0> : AsmOperandClass {
417  let Name = "ConstantSImm" # Bits # "_" # Offset;
418  let RenderMethod = "addConstantSImmOperands<" # Bits # ", " # Offset # ">";
419  let PredicateMethod = "isConstantSImm<" # Bits # ", " # Offset # ">";
420  let SuperClasses = Supers;
421  let DiagnosticType = "SImm" # Bits # "_" # Offset;
422}
423
424class SimmLslAsmOperandClass<int Bits, list<AsmOperandClass> Supers = [],
425                                  int Shift = 0> : AsmOperandClass {
426  let Name = "Simm" # Bits # "_Lsl" # Shift;
427  let RenderMethod = "addImmOperands";
428  let PredicateMethod = "isScaledSImm<" # Bits # ", " # Shift # ">";
429  let SuperClasses = Supers;
430  let DiagnosticType = "SImm" # Bits # "_Lsl" # Shift;
431}
432
433class ConstantUImmAsmOperandClass<int Bits, list<AsmOperandClass> Supers = [],
434                                  int Offset = 0> : AsmOperandClass {
435  let Name = "ConstantUImm" # Bits # "_" # Offset;
436  let RenderMethod = "addConstantUImmOperands<" # Bits # ", " # Offset # ">";
437  let PredicateMethod = "isConstantUImm<" # Bits # ", " # Offset # ">";
438  let SuperClasses = Supers;
439  let DiagnosticType = "UImm" # Bits # "_" # Offset;
440}
441
442class ConstantUImmRangeAsmOperandClass<int Bottom, int Top,
443                                       list<AsmOperandClass> Supers = []>
444    : AsmOperandClass {
445  let Name = "ConstantUImmRange" # Bottom # "_" # Top;
446  let RenderMethod = "addImmOperands";
447  let PredicateMethod = "isConstantUImmRange<" # Bottom # ", " # Top # ">";
448  let SuperClasses = Supers;
449  let DiagnosticType = "UImmRange" # Bottom # "_" # Top;
450}
451
452class SImmAsmOperandClass<int Bits, list<AsmOperandClass> Supers = []>
453    : AsmOperandClass {
454  let Name = "SImm" # Bits;
455  let RenderMethod = "addSImmOperands<" # Bits # ">";
456  let PredicateMethod = "isSImm<" # Bits # ">";
457  let SuperClasses = Supers;
458  let DiagnosticType = "SImm" # Bits;
459}
460
461class UImmAsmOperandClass<int Bits, list<AsmOperandClass> Supers = []>
462    : AsmOperandClass {
463  let Name = "UImm" # Bits;
464  let RenderMethod = "addUImmOperands<" # Bits # ">";
465  let PredicateMethod = "isUImm<" # Bits # ">";
466  let SuperClasses = Supers;
467  let DiagnosticType = "UImm" # Bits;
468}
469
470// Generic case - only to support certain assembly pseudo instructions.
471class UImmAnyAsmOperandClass<int Bits, list<AsmOperandClass> Supers = []>
472    : AsmOperandClass {
473  let Name = "ImmAny";
474  let RenderMethod = "addConstantUImmOperands<32>";
475  let PredicateMethod = "isSImm<" # Bits # ">";
476  let SuperClasses = Supers;
477  let DiagnosticType = "ImmAny";
478}
479
480// AsmOperandClasses require a strict ordering which is difficult to manage
481// as a hierarchy. Instead, we use a linear ordering and impose an order that
482// is in some places arbitrary.
483//
484// Here the rules that are in use:
485// * Wider immediates are a superset of narrower immediates:
486//     uimm4 < uimm5 < uimm6
487// * For the same bit-width, unsigned immediates are a superset of signed
488//   immediates::
489//     simm4 < uimm4 < simm5 < uimm5
490// * For the same upper-bound, signed immediates are a superset of unsigned
491//   immediates:
492//     uimm3 < simm4 < uimm4 < simm4
493// * Modified immediates are a superset of ordinary immediates:
494//     uimm5 < uimm5_plus1 (1..32) < uimm5_plus32 (32..63) < uimm6
495//   The term 'superset' starts to break down here since the uimm5_plus* classes
496//   are not true supersets of uimm5 (but they are still subsets of uimm6).
497// * 'Relaxed' immediates are supersets of the corresponding unsigned immediate.
498//     uimm16 < uimm16_relaxed
499// * The codeGen pattern type is arbitrarily ordered.
500//     uimm5 < uimm5_64, and uimm5 < vsplat_uimm5
501//   This is entirely arbitrary. We need an ordering and what we pick is
502//   unimportant since only one is possible for a given mnemonic.
503
504def UImm32CoercedAsmOperandClass : UImmAnyAsmOperandClass<33, []> {
505  let Name = "UImm32_Coerced";
506  let DiagnosticType = "UImm32_Coerced";
507}
508def SImm32RelaxedAsmOperandClass
509    : SImmAsmOperandClass<32, [UImm32CoercedAsmOperandClass]> {
510  let Name = "SImm32_Relaxed";
511  let PredicateMethod = "isAnyImm<32>";
512  let DiagnosticType = "SImm32_Relaxed";
513}
514def SImm32AsmOperandClass
515    : SImmAsmOperandClass<32, [SImm32RelaxedAsmOperandClass]>;
516def ConstantUImm26AsmOperandClass
517    : ConstantUImmAsmOperandClass<26, [SImm32AsmOperandClass]>;
518def ConstantUImm20AsmOperandClass
519    : ConstantUImmAsmOperandClass<20, [ConstantUImm26AsmOperandClass]>;
520def ConstantSImm19Lsl2AsmOperandClass : AsmOperandClass {
521  let Name = "SImm19Lsl2";
522  let RenderMethod = "addImmOperands";
523  let PredicateMethod = "isScaledSImm<19, 2>";
524  let SuperClasses = [ConstantUImm20AsmOperandClass];
525  let DiagnosticType = "SImm19_Lsl2";
526}
527def UImm16RelaxedAsmOperandClass
528    : UImmAsmOperandClass<16, [ConstantUImm20AsmOperandClass]> {
529  let Name = "UImm16_Relaxed";
530  let PredicateMethod = "isAnyImm<16>";
531  let DiagnosticType = "UImm16_Relaxed";
532}
533// Similar to the relaxed classes which take an SImm and render it as
534// an UImm, this takes a UImm and renders it as an SImm.
535def UImm16AltRelaxedAsmOperandClass
536    : SImmAsmOperandClass<16, [UImm16RelaxedAsmOperandClass]> {
537  let Name = "UImm16_AltRelaxed";
538  let PredicateMethod = "isUImm<16>";
539  let DiagnosticType = "UImm16_AltRelaxed";
540}
541// FIXME: One of these should probably have UImm16AsmOperandClass as the
542//        superclass instead of UImm16RelaxedasmOPerandClass.
543def UImm16AsmOperandClass
544    : UImmAsmOperandClass<16, [UImm16RelaxedAsmOperandClass]>;
545def SImm16RelaxedAsmOperandClass
546    : SImmAsmOperandClass<16, [UImm16RelaxedAsmOperandClass]> {
547  let Name = "SImm16_Relaxed";
548  let PredicateMethod = "isAnyImm<16>";
549  let DiagnosticType = "SImm16_Relaxed";
550}
551def SImm16AsmOperandClass
552    : SImmAsmOperandClass<16, [SImm16RelaxedAsmOperandClass]>;
553def ConstantSImm10Lsl3AsmOperandClass : AsmOperandClass {
554  let Name = "SImm10Lsl3";
555  let RenderMethod = "addImmOperands";
556  let PredicateMethod = "isScaledSImm<10, 3>";
557  let SuperClasses = [SImm16AsmOperandClass];
558  let DiagnosticType = "SImm10_Lsl3";
559}
560def ConstantSImm10Lsl2AsmOperandClass : AsmOperandClass {
561  let Name = "SImm10Lsl2";
562  let RenderMethod = "addImmOperands";
563  let PredicateMethod = "isScaledSImm<10, 2>";
564  let SuperClasses = [ConstantSImm10Lsl3AsmOperandClass];
565  let DiagnosticType = "SImm10_Lsl2";
566}
567def ConstantSImm11AsmOperandClass
568    : ConstantSImmAsmOperandClass<11, [ConstantSImm10Lsl2AsmOperandClass]>;
569def ConstantSImm10Lsl1AsmOperandClass : AsmOperandClass {
570  let Name = "SImm10Lsl1";
571  let RenderMethod = "addImmOperands";
572  let PredicateMethod = "isScaledSImm<10, 1>";
573  let SuperClasses = [ConstantSImm11AsmOperandClass];
574  let DiagnosticType = "SImm10_Lsl1";
575}
576def ConstantUImm10AsmOperandClass
577    : ConstantUImmAsmOperandClass<10, [ConstantSImm10Lsl1AsmOperandClass]>;
578def ConstantSImm10AsmOperandClass
579    : ConstantSImmAsmOperandClass<10, [ConstantUImm10AsmOperandClass]>;
580def ConstantSImm9AsmOperandClass
581    : ConstantSImmAsmOperandClass<9, [ConstantSImm10AsmOperandClass]>;
582def ConstantSImm7Lsl2AsmOperandClass : AsmOperandClass {
583  let Name = "SImm7Lsl2";
584  let RenderMethod = "addImmOperands";
585  let PredicateMethod = "isScaledSImm<7, 2>";
586  let SuperClasses = [ConstantSImm9AsmOperandClass];
587  let DiagnosticType = "SImm7_Lsl2";
588}
589def ConstantUImm8AsmOperandClass
590    : ConstantUImmAsmOperandClass<8, [ConstantSImm7Lsl2AsmOperandClass]>;
591def ConstantUImm7Sub1AsmOperandClass
592    : ConstantUImmAsmOperandClass<7, [ConstantUImm8AsmOperandClass], -1> {
593  // Specify the names since the -1 offset causes invalid identifiers otherwise.
594  let Name = "UImm7_N1";
595  let DiagnosticType = "UImm7_N1";
596}
597def ConstantUImm7AsmOperandClass
598    : ConstantUImmAsmOperandClass<7, [ConstantUImm7Sub1AsmOperandClass]>;
599def ConstantUImm6Lsl2AsmOperandClass : AsmOperandClass {
600  let Name = "UImm6Lsl2";
601  let RenderMethod = "addImmOperands";
602  let PredicateMethod = "isScaledUImm<6, 2>";
603  let SuperClasses = [ConstantUImm7AsmOperandClass];
604  let DiagnosticType = "UImm6_Lsl2";
605}
606def ConstantUImm6AsmOperandClass
607    : ConstantUImmAsmOperandClass<6, [ConstantUImm6Lsl2AsmOperandClass]>;
608def ConstantSImm6AsmOperandClass
609    : ConstantSImmAsmOperandClass<6, [ConstantUImm6AsmOperandClass]>;
610def ConstantUImm5Lsl2AsmOperandClass : AsmOperandClass {
611  let Name = "UImm5Lsl2";
612  let RenderMethod = "addImmOperands";
613  let PredicateMethod = "isScaledUImm<5, 2>";
614  let SuperClasses = [ConstantSImm6AsmOperandClass];
615  let DiagnosticType = "UImm5_Lsl2";
616}
617def ConstantUImm5_Range2_64AsmOperandClass
618    : ConstantUImmRangeAsmOperandClass<2, 64, [ConstantUImm5Lsl2AsmOperandClass]>;
619def ConstantUImm5Plus33AsmOperandClass
620    : ConstantUImmAsmOperandClass<5, [ConstantUImm5_Range2_64AsmOperandClass],
621                                  33>;
622def ConstantUImm5ReportUImm6AsmOperandClass
623    : ConstantUImmAsmOperandClass<5, [ConstantUImm5Plus33AsmOperandClass]> {
624  let Name = "ConstantUImm5_0_Report_UImm6";
625  let DiagnosticType = "UImm5_0_Report_UImm6";
626}
627def ConstantUImm5Plus32AsmOperandClass
628    : ConstantUImmAsmOperandClass<
629          5, [ConstantUImm5ReportUImm6AsmOperandClass], 32>;
630def ConstantUImm5Plus32NormalizeAsmOperandClass
631    : ConstantUImmAsmOperandClass<5, [ConstantUImm5Plus32AsmOperandClass], 32> {
632  let Name = "ConstantUImm5_32_Norm";
633  // We must also subtract 32 when we render the operand.
634  let RenderMethod = "addConstantUImmOperands<5, 32, -32>";
635}
636def ConstantUImm5Plus1AsmOperandClass
637    : ConstantUImmAsmOperandClass<
638          5, [ConstantUImm5Plus32NormalizeAsmOperandClass], 1>;
639def ConstantUImm5AsmOperandClass
640    : ConstantUImmAsmOperandClass<5, [ConstantUImm5Plus1AsmOperandClass]>;
641def ConstantSImm5AsmOperandClass
642    : ConstantSImmAsmOperandClass<5, [ConstantUImm5AsmOperandClass]>;
643def ConstantUImm4AsmOperandClass
644    : ConstantUImmAsmOperandClass<4, [ConstantSImm5AsmOperandClass]>;
645def ConstantSImm4AsmOperandClass
646    : ConstantSImmAsmOperandClass<4, [ConstantUImm4AsmOperandClass]>;
647def ConstantUImm3AsmOperandClass
648    : ConstantUImmAsmOperandClass<3, [ConstantSImm4AsmOperandClass]>;
649def ConstantUImm2Plus1AsmOperandClass
650    : ConstantUImmAsmOperandClass<2, [ConstantUImm3AsmOperandClass], 1>;
651def ConstantUImm2AsmOperandClass
652    : ConstantUImmAsmOperandClass<2, [ConstantUImm3AsmOperandClass]>;
653def ConstantUImm1AsmOperandClass
654    : ConstantUImmAsmOperandClass<1, [ConstantUImm2AsmOperandClass]>;
655def ConstantImmzAsmOperandClass : AsmOperandClass {
656  let Name = "ConstantImmz";
657  let RenderMethod = "addConstantUImmOperands<1>";
658  let PredicateMethod = "isConstantImmz";
659  let SuperClasses = [ConstantUImm1AsmOperandClass];
660  let DiagnosticType = "Immz";
661}
662
663def Simm19Lsl2AsmOperand
664    : SimmLslAsmOperandClass<19, [], 2>;
665
666def MipsJumpTargetAsmOperand : AsmOperandClass {
667  let Name = "JumpTarget";
668  let ParserMethod = "parseJumpTarget";
669  let PredicateMethod = "isImm";
670  let RenderMethod = "addImmOperands";
671}
672
673// Instruction operand types
674def jmptarget   : Operand<OtherVT> {
675  let EncoderMethod = "getJumpTargetOpValue";
676  let ParserMatchClass = MipsJumpTargetAsmOperand;
677}
678def brtarget    : Operand<OtherVT> {
679  let EncoderMethod = "getBranchTargetOpValue";
680  let OperandType = "OPERAND_PCREL";
681  let DecoderMethod = "DecodeBranchTarget";
682  let ParserMatchClass = MipsJumpTargetAsmOperand;
683}
684def brtarget1SImm16 : Operand<OtherVT> {
685  let EncoderMethod = "getBranchTargetOpValue1SImm16";
686  let OperandType = "OPERAND_PCREL";
687  let DecoderMethod = "DecodeBranchTarget1SImm16";
688  let ParserMatchClass = MipsJumpTargetAsmOperand;
689}
690def calltarget  : Operand<iPTR> {
691  let EncoderMethod = "getJumpTargetOpValue";
692  let ParserMatchClass = MipsJumpTargetAsmOperand;
693}
694
695def imm64: Operand<i64>;
696
697def simm19_lsl2 : Operand<i32> {
698  let EncoderMethod = "getSimm19Lsl2Encoding";
699  let DecoderMethod = "DecodeSimm19Lsl2";
700  let ParserMatchClass = Simm19Lsl2AsmOperand;
701}
702
703def simm18_lsl3 : Operand<i32> {
704  let EncoderMethod = "getSimm18Lsl3Encoding";
705  let DecoderMethod = "DecodeSimm18Lsl3";
706  let ParserMatchClass = MipsJumpTargetAsmOperand;
707}
708
709// Zero
710def uimmz       : Operand<i32> {
711  let PrintMethod = "printUImm<0>";
712  let ParserMatchClass = ConstantImmzAsmOperandClass;
713}
714
715// size operand of ins instruction
716def uimm_range_2_64 : Operand<i32> {
717  let PrintMethod = "printUImm<6, 2>";
718  let EncoderMethod = "getSizeInsEncoding";
719  let DecoderMethod = "DecodeInsSize";
720  let ParserMatchClass = ConstantUImm5_Range2_64AsmOperandClass;
721}
722
723// Unsigned Operands
724foreach I = {1, 2, 3, 4, 5, 6, 7, 8, 10, 20, 26} in
725  def uimm # I : Operand<i32> {
726    let PrintMethod = "printUImm<" # I # ">";
727    let ParserMatchClass =
728        !cast<AsmOperandClass>("ConstantUImm" # I # "AsmOperandClass");
729  }
730
731def uimm2_plus1 : Operand<i32> {
732  let PrintMethod = "printUImm<2, 1>";
733  let EncoderMethod = "getUImmWithOffsetEncoding<2, 1>";
734  let DecoderMethod = "DecodeUImmWithOffset<2, 1>";
735  let ParserMatchClass = ConstantUImm2Plus1AsmOperandClass;
736}
737
738def uimm5_plus1 : Operand<i32> {
739  let PrintMethod = "printUImm<5, 1>";
740  let EncoderMethod = "getUImmWithOffsetEncoding<5, 1>";
741  let DecoderMethod = "DecodeUImmWithOffset<5, 1>";
742  let ParserMatchClass = ConstantUImm5Plus1AsmOperandClass;
743}
744
745def uimm5_plus32 : Operand<i32> {
746  let PrintMethod = "printUImm<5, 32>";
747  let ParserMatchClass = ConstantUImm5Plus32AsmOperandClass;
748}
749
750def uimm5_plus33 : Operand<i32> {
751  let PrintMethod = "printUImm<5, 33>";
752  let EncoderMethod = "getUImmWithOffsetEncoding<5, 1>";
753  let DecoderMethod = "DecodeUImmWithOffset<5, 1>";
754  let ParserMatchClass = ConstantUImm5Plus33AsmOperandClass;
755}
756
757def uimm5_inssize_plus1 : Operand<i32> {
758  let PrintMethod = "printUImm<6>";
759  let ParserMatchClass = ConstantUImm5Plus1AsmOperandClass;
760  let EncoderMethod = "getSizeInsEncoding";
761  let DecoderMethod = "DecodeInsSize";
762}
763
764def uimm5_plus32_normalize : Operand<i32> {
765  let PrintMethod = "printUImm<5>";
766  let ParserMatchClass = ConstantUImm5Plus32NormalizeAsmOperandClass;
767}
768
769def uimm5_lsl2 : Operand<OtherVT> {
770  let EncoderMethod = "getUImm5Lsl2Encoding";
771  let DecoderMethod = "DecodeUImmWithOffsetAndScale<5, 0, 4>";
772  let ParserMatchClass = ConstantUImm5Lsl2AsmOperandClass;
773}
774
775def uimm5_plus32_normalize_64 : Operand<i64> {
776  let PrintMethod = "printUImm<5>";
777  let ParserMatchClass = ConstantUImm5Plus32NormalizeAsmOperandClass;
778}
779
780def uimm6_lsl2 : Operand<OtherVT> {
781  let EncoderMethod = "getUImm6Lsl2Encoding";
782  let DecoderMethod = "DecodeUImmWithOffsetAndScale<6, 0, 4>";
783  let ParserMatchClass = ConstantUImm6Lsl2AsmOperandClass;
784}
785
786foreach I = {16} in
787  def uimm # I : Operand<i32> {
788    let PrintMethod = "printUImm<" # I # ">";
789    let ParserMatchClass =
790        !cast<AsmOperandClass>("UImm" # I # "AsmOperandClass");
791  }
792
793// Like uimm16_64 but coerces simm16 to uimm16.
794def uimm16_relaxed : Operand<i32> {
795  let PrintMethod = "printUImm<16>";
796  let ParserMatchClass =
797      !cast<AsmOperandClass>("UImm16RelaxedAsmOperandClass");
798}
799
800foreach I = {5} in
801  def uimm # I # _64 : Operand<i64> {
802    let PrintMethod = "printUImm<" # I # ">";
803    let ParserMatchClass =
804        !cast<AsmOperandClass>("ConstantUImm" # I # "AsmOperandClass");
805  }
806
807foreach I = {16} in
808  def uimm # I # _64 : Operand<i64> {
809    let PrintMethod = "printUImm<" # I # ">";
810    let ParserMatchClass =
811        !cast<AsmOperandClass>("UImm" # I # "AsmOperandClass");
812  }
813
814// Like uimm16_64 but coerces simm16 to uimm16.
815def uimm16_64_relaxed : Operand<i64> {
816  let PrintMethod = "printUImm<16>";
817  let ParserMatchClass =
818      !cast<AsmOperandClass>("UImm16RelaxedAsmOperandClass");
819}
820
821def uimm16_altrelaxed : Operand<i32> {
822  let PrintMethod = "printUImm<16>";
823  let ParserMatchClass =
824      !cast<AsmOperandClass>("UImm16AltRelaxedAsmOperandClass");
825}
826// Like uimm5 but reports a less confusing error for 32-63 when
827// an instruction alias permits that.
828def uimm5_report_uimm6 : Operand<i32> {
829  let PrintMethod = "printUImm<5>";
830  let ParserMatchClass = ConstantUImm5ReportUImm6AsmOperandClass;
831}
832
833// Like uimm5_64 but reports a less confusing error for 32-63 when
834// an instruction alias permits that.
835def uimm5_64_report_uimm6 : Operand<i64> {
836  let PrintMethod = "printUImm<5>";
837  let ParserMatchClass = ConstantUImm5ReportUImm6AsmOperandClass;
838}
839
840foreach I = {1, 2, 3, 4} in
841  def uimm # I # _ptr : Operand<iPTR> {
842    let PrintMethod = "printUImm<" # I # ">";
843    let ParserMatchClass =
844        !cast<AsmOperandClass>("ConstantUImm" # I # "AsmOperandClass");
845  }
846
847foreach I = {1, 2, 3, 4, 5, 6, 8} in
848  def vsplat_uimm # I : Operand<vAny> {
849    let PrintMethod = "printUImm<" # I # ">";
850    let ParserMatchClass =
851        !cast<AsmOperandClass>("ConstantUImm" # I # "AsmOperandClass");
852  }
853
854// Signed operands
855foreach I = {4, 5, 6, 9, 10, 11} in
856  def simm # I : Operand<i32> {
857    let DecoderMethod = "DecodeSImmWithOffsetAndScale<" # I # ">";
858    let ParserMatchClass =
859        !cast<AsmOperandClass>("ConstantSImm" # I # "AsmOperandClass");
860  }
861
862foreach I = {1, 2, 3} in
863  def simm10_lsl # I : Operand<i32> {
864    let DecoderMethod = "DecodeSImmWithOffsetAndScale<10, " # I # ">";
865    let ParserMatchClass =
866        !cast<AsmOperandClass>("ConstantSImm10Lsl" # I # "AsmOperandClass");
867  }
868
869foreach I = {10} in
870  def simm # I # _64 : Operand<i64> {
871    let DecoderMethod = "DecodeSImmWithOffsetAndScale<" # I # ">";
872    let ParserMatchClass =
873        !cast<AsmOperandClass>("ConstantSImm" # I # "AsmOperandClass");
874  }
875
876foreach I = {5, 10} in
877  def vsplat_simm # I : Operand<vAny> {
878    let ParserMatchClass =
879        !cast<AsmOperandClass>("ConstantSImm" # I # "AsmOperandClass");
880  }
881
882def simm7_lsl2 : Operand<OtherVT> {
883  let EncoderMethod = "getSImm7Lsl2Encoding";
884  let DecoderMethod = "DecodeSImmWithOffsetAndScale<" # I # ", 0, 4>";
885  let ParserMatchClass = ConstantSImm7Lsl2AsmOperandClass;
886}
887
888foreach I = {16, 32} in
889  def simm # I : Operand<i32> {
890    let DecoderMethod = "DecodeSImmWithOffsetAndScale<" # I # ">";
891    let ParserMatchClass = !cast<AsmOperandClass>("SImm" # I # "AsmOperandClass");
892  }
893
894// Like simm16 but coerces uimm16 to simm16.
895def simm16_relaxed : Operand<i32> {
896  let DecoderMethod = "DecodeSImmWithOffsetAndScale<16>";
897  let ParserMatchClass = !cast<AsmOperandClass>("SImm16RelaxedAsmOperandClass");
898}
899
900def simm16_64 : Operand<i64> {
901  let DecoderMethod = "DecodeSImmWithOffsetAndScale<16>";
902  let ParserMatchClass = !cast<AsmOperandClass>("SImm16AsmOperandClass");
903}
904
905// like simm32 but coerces simm32 to uimm32.
906def uimm32_coerced : Operand<i32> {
907  let ParserMatchClass = !cast<AsmOperandClass>("UImm32CoercedAsmOperandClass");
908}
909// Like simm32 but coerces uimm32 to simm32.
910def simm32_relaxed : Operand<i32> {
911  let DecoderMethod = "DecodeSImmWithOffsetAndScale<32>";
912  let ParserMatchClass = !cast<AsmOperandClass>("SImm32RelaxedAsmOperandClass");
913}
914
915// This is almost the same as a uimm7 but 0x7f is interpreted as -1.
916def li16_imm : Operand<i32> {
917  let DecoderMethod = "DecodeLi16Imm";
918  let ParserMatchClass = ConstantUImm7Sub1AsmOperandClass;
919}
920
921def MipsMemAsmOperand : AsmOperandClass {
922  let Name = "Mem";
923  let ParserMethod = "parseMemOperand";
924}
925
926def MipsMemSimm9AsmOperand : AsmOperandClass {
927  let Name = "MemOffsetSimm9";
928  let SuperClasses = [MipsMemAsmOperand];
929  let RenderMethod = "addMemOperands";
930  let ParserMethod = "parseMemOperand";
931  let PredicateMethod = "isMemWithSimmOffset<9>";
932  let DiagnosticType = "MemSImm9";
933}
934
935def MipsMemSimm10AsmOperand : AsmOperandClass {
936  let Name = "MemOffsetSimm10";
937  let SuperClasses = [MipsMemAsmOperand];
938  let RenderMethod = "addMemOperands";
939  let ParserMethod = "parseMemOperand";
940  let PredicateMethod = "isMemWithSimmOffset<10>";
941  let DiagnosticType = "MemSImm10";
942}
943
944def MipsMemSimm12AsmOperand : AsmOperandClass {
945  let Name = "MemOffsetSimm12";
946  let SuperClasses = [MipsMemAsmOperand];
947  let RenderMethod = "addMemOperands";
948  let ParserMethod = "parseMemOperand";
949  let PredicateMethod = "isMemWithSimmOffset<12>";
950  let DiagnosticType = "MemSImm12";
951}
952
953foreach I = {1, 2, 3} in
954  def MipsMemSimm10Lsl # I # AsmOperand : AsmOperandClass {
955    let Name = "MemOffsetSimm10_" # I;
956    let SuperClasses = [MipsMemAsmOperand];
957    let RenderMethod = "addMemOperands";
958    let ParserMethod = "parseMemOperand";
959    let PredicateMethod = "isMemWithSimmOffset<10, " # I # ">";
960    let DiagnosticType = "MemSImm10Lsl" # I;
961  }
962
963def MipsMemSimm11AsmOperand : AsmOperandClass {
964  let Name = "MemOffsetSimm11";
965  let SuperClasses = [MipsMemAsmOperand];
966  let RenderMethod = "addMemOperands";
967  let ParserMethod = "parseMemOperand";
968  let PredicateMethod = "isMemWithSimmOffset<11>";
969  let DiagnosticType = "MemSImm11";
970}
971
972def MipsMemSimm16AsmOperand : AsmOperandClass {
973  let Name = "MemOffsetSimm16";
974  let SuperClasses = [MipsMemAsmOperand];
975  let RenderMethod = "addMemOperands";
976  let ParserMethod = "parseMemOperand";
977  let PredicateMethod = "isMemWithSimmOffset<16>";
978  let DiagnosticType = "MemSImm16";
979}
980
981def MipsInvertedImmoperand : AsmOperandClass {
982  let Name = "InvNum";
983  let RenderMethod = "addImmOperands";
984  let ParserMethod = "parseInvNum";
985}
986
987def InvertedImOperand : Operand<i32> {
988  let ParserMatchClass = MipsInvertedImmoperand;
989}
990
991def InvertedImOperand64 : Operand<i64> {
992  let ParserMatchClass = MipsInvertedImmoperand;
993}
994
995class mem_generic : Operand<iPTR> {
996  let PrintMethod = "printMemOperand";
997  let MIOperandInfo = (ops ptr_rc, simm16);
998  let EncoderMethod = "getMemEncoding";
999  let ParserMatchClass = MipsMemAsmOperand;
1000  let OperandType = "OPERAND_MEMORY";
1001}
1002
1003// Address operand
1004def mem : mem_generic;
1005
1006// MSA specific address operand
1007def mem_msa : mem_generic {
1008  let MIOperandInfo = (ops ptr_rc, simm10);
1009  let EncoderMethod = "getMSAMemEncoding";
1010}
1011
1012def simm12 : Operand<i32> {
1013  let DecoderMethod = "DecodeSimm12";
1014}
1015
1016def mem_simm9 : mem_generic {
1017  let MIOperandInfo = (ops ptr_rc, simm9);
1018  let EncoderMethod = "getMemEncoding";
1019  let ParserMatchClass = MipsMemSimm9AsmOperand;
1020}
1021
1022def mem_simm10 : mem_generic {
1023  let MIOperandInfo = (ops ptr_rc, simm10);
1024  let EncoderMethod = "getMemEncoding";
1025  let ParserMatchClass = MipsMemSimm10AsmOperand;
1026}
1027
1028foreach I = {1, 2, 3} in
1029  def mem_simm10_lsl # I : mem_generic {
1030    let MIOperandInfo = (ops ptr_rc, !cast<Operand>("simm10_lsl" # I));
1031    let EncoderMethod = "getMemEncoding<" # I  # ">";
1032    let ParserMatchClass =
1033            !cast<AsmOperandClass>("MipsMemSimm10Lsl" # I # "AsmOperand");
1034  }
1035
1036def mem_simm11 : mem_generic {
1037  let MIOperandInfo = (ops ptr_rc, simm11);
1038  let EncoderMethod = "getMemEncoding";
1039  let ParserMatchClass = MipsMemSimm11AsmOperand;
1040}
1041
1042def mem_simm12 : mem_generic {
1043  let MIOperandInfo = (ops ptr_rc, simm12);
1044  let EncoderMethod = "getMemEncoding";
1045  let ParserMatchClass = MipsMemSimm12AsmOperand;
1046}
1047
1048def mem_simm16 : mem_generic {
1049  let MIOperandInfo = (ops ptr_rc, simm16);
1050  let EncoderMethod = "getMemEncoding";
1051  let ParserMatchClass = MipsMemSimm16AsmOperand;
1052}
1053
1054def mem_ea : Operand<iPTR> {
1055  let PrintMethod = "printMemOperandEA";
1056  let MIOperandInfo = (ops ptr_rc, simm16);
1057  let EncoderMethod = "getMemEncoding";
1058  let OperandType = "OPERAND_MEMORY";
1059}
1060
1061def PtrRC : Operand<iPTR> {
1062  let MIOperandInfo = (ops ptr_rc);
1063  let DecoderMethod = "DecodePtrRegisterClass";
1064  let ParserMatchClass = GPR32AsmOperand;
1065}
1066
1067// size operand of ins instruction
1068def size_ins : Operand<i32> {
1069  let EncoderMethod = "getSizeInsEncoding";
1070  let DecoderMethod = "DecodeInsSize";
1071}
1072
1073// Transformation Function - get the lower 16 bits.
1074def LO16 : SDNodeXForm<imm, [{
1075  return getImm(N, N->getZExtValue() & 0xFFFF);
1076}]>;
1077
1078// Transformation Function - get the higher 16 bits.
1079def HI16 : SDNodeXForm<imm, [{
1080  return getImm(N, (N->getZExtValue() >> 16) & 0xFFFF);
1081}]>;
1082
1083// Plus 1.
1084def Plus1 : SDNodeXForm<imm, [{ return getImm(N, N->getSExtValue() + 1); }]>;
1085
1086// Node immediate is zero (e.g. insve.d)
1087def immz : PatLeaf<(imm), [{ return N->getSExtValue() == 0; }]>;
1088
1089// Node immediate fits as 16-bit sign extended on target immediate.
1090// e.g. addi, andi
1091def immSExt8  : PatLeaf<(imm), [{ return isInt<8>(N->getSExtValue()); }]>;
1092
1093// Node immediate fits as 16-bit sign extended on target immediate.
1094// e.g. addi, andi
1095def immSExt16  : PatLeaf<(imm), [{ return isInt<16>(N->getSExtValue()); }]>;
1096
1097// Node immediate fits as 7-bit zero extended on target immediate.
1098def immZExt7 : PatLeaf<(imm), [{ return isUInt<7>(N->getZExtValue()); }]>;
1099
1100// Node immediate fits as 16-bit zero extended on target immediate.
1101// The LO16 param means that only the lower 16 bits of the node
1102// immediate are caught.
1103// e.g. addiu, sltiu
1104def immZExt16  : PatLeaf<(imm), [{
1105  if (N->getValueType(0) == MVT::i32)
1106    return (uint32_t)N->getZExtValue() == (unsigned short)N->getZExtValue();
1107  else
1108    return (uint64_t)N->getZExtValue() == (unsigned short)N->getZExtValue();
1109}], LO16>;
1110
1111// Immediate can be loaded with LUi (32-bit int with lower 16-bit cleared).
1112def immSExt32Low16Zero : PatLeaf<(imm), [{
1113  int64_t Val = N->getSExtValue();
1114  return isInt<32>(Val) && !(Val & 0xffff);
1115}]>;
1116
1117// Zero-extended 32-bit unsigned int with lower 16-bit cleared.
1118def immZExt32Low16Zero : PatLeaf<(imm), [{
1119  uint64_t Val = N->getZExtValue();
1120  return isUInt<32>(Val) && !(Val & 0xffff);
1121}]>;
1122
1123// Note immediate fits as a 32 bit signed extended on target immediate.
1124def immSExt32  : PatLeaf<(imm), [{ return isInt<32>(N->getSExtValue()); }]>;
1125
1126// Note immediate fits as a 32 bit zero extended on target immediate.
1127def immZExt32  : PatLeaf<(imm), [{ return isUInt<32>(N->getZExtValue()); }]>;
1128
1129// shamt field must fit in 5 bits.
1130def immZExt5 : ImmLeaf<i32, [{return Imm == (Imm & 0x1f);}]>;
1131
1132def immZExt5Plus1 : PatLeaf<(imm), [{
1133  return isUInt<5>(N->getZExtValue() - 1);
1134}]>;
1135def immZExt5Plus32 : PatLeaf<(imm), [{
1136  return isUInt<5>(N->getZExtValue() - 32);
1137}]>;
1138def immZExt5Plus33 : PatLeaf<(imm), [{
1139  return isUInt<5>(N->getZExtValue() - 33);
1140}]>;
1141
1142// True if (N + 1) fits in 16-bit field.
1143def immSExt16Plus1 : PatLeaf<(imm), [{
1144  return isInt<17>(N->getSExtValue()) && isInt<16>(N->getSExtValue() + 1);
1145}]>;
1146
1147// Mips Address Mode! SDNode frameindex could possibily be a match
1148// since load and store instructions from stack used it.
1149def addr :
1150  ComplexPattern<iPTR, 2, "selectIntAddr", [frameindex]>;
1151
1152def addrRegImm :
1153  ComplexPattern<iPTR, 2, "selectAddrRegImm", [frameindex]>;
1154
1155def addrDefault :
1156  ComplexPattern<iPTR, 2, "selectAddrDefault", [frameindex]>;
1157
1158def addrimm10 : ComplexPattern<iPTR, 2, "selectIntAddrSImm10", [frameindex]>;
1159def addrimm10lsl1 : ComplexPattern<iPTR, 2, "selectIntAddrSImm10Lsl1",
1160                                   [frameindex]>;
1161def addrimm10lsl2 : ComplexPattern<iPTR, 2, "selectIntAddrSImm10Lsl2",
1162                                   [frameindex]>;
1163def addrimm10lsl3 : ComplexPattern<iPTR, 2, "selectIntAddrSImm10Lsl3",
1164                                   [frameindex]>;
1165
1166//===----------------------------------------------------------------------===//
1167// Instructions specific format
1168//===----------------------------------------------------------------------===//
1169
1170// Arithmetic and logical instructions with 3 register operands.
1171class ArithLogicR<string opstr, RegisterOperand RO, bit isComm = 0,
1172                  InstrItinClass Itin = NoItinerary,
1173                  SDPatternOperator OpNode = null_frag>:
1174  InstSE<(outs RO:$rd), (ins RO:$rs, RO:$rt),
1175         !strconcat(opstr, "\t$rd, $rs, $rt"),
1176         [(set RO:$rd, (OpNode RO:$rs, RO:$rt))], Itin, FrmR, opstr> {
1177  let isCommutable = isComm;
1178  let isReMaterializable = 1;
1179  let TwoOperandAliasConstraint = "$rd = $rs";
1180}
1181
1182// Arithmetic and logical instructions with 2 register operands.
1183class ArithLogicI<string opstr, Operand Od, RegisterOperand RO,
1184                  InstrItinClass Itin = NoItinerary,
1185                  SDPatternOperator imm_type = null_frag,
1186                  SDPatternOperator OpNode = null_frag> :
1187  InstSE<(outs RO:$rt), (ins RO:$rs, Od:$imm16),
1188         !strconcat(opstr, "\t$rt, $rs, $imm16"),
1189         [(set RO:$rt, (OpNode RO:$rs, imm_type:$imm16))],
1190         Itin, FrmI, opstr> {
1191  let isReMaterializable = 1;
1192  let TwoOperandAliasConstraint = "$rs = $rt";
1193}
1194
1195// Arithmetic Multiply ADD/SUB
1196class MArithR<string opstr, InstrItinClass itin, bit isComm = 0> :
1197  InstSE<(outs), (ins GPR32Opnd:$rs, GPR32Opnd:$rt),
1198         !strconcat(opstr, "\t$rs, $rt"), [], itin, FrmR, opstr> {
1199  let Defs = [HI0, LO0];
1200  let Uses = [HI0, LO0];
1201  let isCommutable = isComm;
1202}
1203
1204//  Logical
1205class LogicNOR<string opstr, RegisterOperand RO>:
1206  InstSE<(outs RO:$rd), (ins RO:$rs, RO:$rt),
1207         !strconcat(opstr, "\t$rd, $rs, $rt"),
1208         [(set RO:$rd, (not (or RO:$rs, RO:$rt)))], II_NOR, FrmR, opstr> {
1209  let isCommutable = 1;
1210}
1211
1212// Shifts
1213class shift_rotate_imm<string opstr, Operand ImmOpnd,
1214                       RegisterOperand RO, InstrItinClass itin,
1215                       SDPatternOperator OpNode = null_frag,
1216                       SDPatternOperator PF = null_frag> :
1217  InstSE<(outs RO:$rd), (ins RO:$rt, ImmOpnd:$shamt),
1218         !strconcat(opstr, "\t$rd, $rt, $shamt"),
1219         [(set RO:$rd, (OpNode RO:$rt, PF:$shamt))], itin, FrmR, opstr> {
1220  let TwoOperandAliasConstraint = "$rt = $rd";
1221}
1222
1223class shift_rotate_reg<string opstr, RegisterOperand RO, InstrItinClass itin,
1224                       SDPatternOperator OpNode = null_frag>:
1225  InstSE<(outs RO:$rd), (ins RO:$rt, GPR32Opnd:$rs),
1226         !strconcat(opstr, "\t$rd, $rt, $rs"),
1227         [(set RO:$rd, (OpNode RO:$rt, GPR32Opnd:$rs))], itin, FrmR,
1228         opstr>;
1229
1230// Load Upper Immediate
1231class LoadUpper<string opstr, RegisterOperand RO, Operand Imm>:
1232  InstSE<(outs RO:$rt), (ins Imm:$imm16), !strconcat(opstr, "\t$rt, $imm16"),
1233         [], II_LUI, FrmI, opstr>, IsAsCheapAsAMove {
1234  let hasSideEffects = 0;
1235  let isReMaterializable = 1;
1236}
1237
1238// Memory Load/Store
1239class LoadMemory<string opstr, DAGOperand RO, DAGOperand MO,
1240                 SDPatternOperator OpNode = null_frag,
1241                 InstrItinClass Itin = NoItinerary,
1242                 ComplexPattern Addr = addr> :
1243  InstSE<(outs RO:$rt), (ins MO:$addr), !strconcat(opstr, "\t$rt, $addr"),
1244         [(set RO:$rt, (OpNode Addr:$addr))], Itin, FrmI, opstr> {
1245  let DecoderMethod = "DecodeMem";
1246  let canFoldAsLoad = 1;
1247  let mayLoad = 1;
1248}
1249
1250class Load<string opstr, DAGOperand RO, SDPatternOperator OpNode = null_frag,
1251           InstrItinClass Itin = NoItinerary, ComplexPattern Addr = addr> :
1252  LoadMemory<opstr, RO, mem, OpNode, Itin, Addr>;
1253
1254class StoreMemory<string opstr, DAGOperand RO, DAGOperand MO,
1255            SDPatternOperator OpNode = null_frag,
1256            InstrItinClass Itin = NoItinerary, ComplexPattern Addr = addr> :
1257  InstSE<(outs), (ins RO:$rt, MO:$addr), !strconcat(opstr, "\t$rt, $addr"),
1258         [(OpNode RO:$rt, Addr:$addr)], Itin, FrmI, opstr> {
1259  let DecoderMethod = "DecodeMem";
1260  let mayStore = 1;
1261}
1262
1263class Store<string opstr, DAGOperand RO, SDPatternOperator OpNode = null_frag,
1264            InstrItinClass Itin = NoItinerary, ComplexPattern Addr = addr,
1265            DAGOperand MO = mem> :
1266  StoreMemory<opstr, RO, MO, OpNode, Itin, Addr>;
1267
1268// Load/Store Left/Right
1269let canFoldAsLoad = 1 in
1270class LoadLeftRight<string opstr, SDNode OpNode, RegisterOperand RO,
1271                    InstrItinClass Itin> :
1272  InstSE<(outs RO:$rt), (ins mem:$addr, RO:$src),
1273         !strconcat(opstr, "\t$rt, $addr"),
1274         [(set RO:$rt, (OpNode addr:$addr, RO:$src))], Itin, FrmI> {
1275  let DecoderMethod = "DecodeMem";
1276  string Constraints = "$src = $rt";
1277}
1278
1279class StoreLeftRight<string opstr, SDNode OpNode, RegisterOperand RO,
1280                     InstrItinClass Itin> :
1281  InstSE<(outs), (ins RO:$rt, mem:$addr), !strconcat(opstr, "\t$rt, $addr"),
1282         [(OpNode RO:$rt, addr:$addr)], Itin, FrmI> {
1283  let DecoderMethod = "DecodeMem";
1284}
1285
1286// COP2 Load/Store
1287class LW_FT2<string opstr, RegisterOperand RC, InstrItinClass Itin,
1288             SDPatternOperator OpNode= null_frag> :
1289  InstSE<(outs RC:$rt), (ins mem_simm16:$addr),
1290         !strconcat(opstr, "\t$rt, $addr"),
1291         [(set RC:$rt, (OpNode addrDefault:$addr))], Itin, FrmFI, opstr> {
1292  let DecoderMethod = "DecodeFMem2";
1293  let mayLoad = 1;
1294}
1295
1296class SW_FT2<string opstr, RegisterOperand RC, InstrItinClass Itin,
1297             SDPatternOperator OpNode= null_frag> :
1298  InstSE<(outs), (ins RC:$rt, mem_simm16:$addr),
1299         !strconcat(opstr, "\t$rt, $addr"),
1300         [(OpNode RC:$rt, addrDefault:$addr)], Itin, FrmFI, opstr> {
1301  let DecoderMethod = "DecodeFMem2";
1302  let mayStore = 1;
1303}
1304
1305// COP3 Load/Store
1306class LW_FT3<string opstr, RegisterOperand RC, InstrItinClass Itin,
1307             SDPatternOperator OpNode= null_frag> :
1308  InstSE<(outs RC:$rt), (ins mem:$addr), !strconcat(opstr, "\t$rt, $addr"),
1309         [(set RC:$rt, (OpNode addrDefault:$addr))], Itin, FrmFI, opstr> {
1310  let DecoderMethod = "DecodeFMem3";
1311  let mayLoad = 1;
1312}
1313
1314class SW_FT3<string opstr, RegisterOperand RC, InstrItinClass Itin,
1315             SDPatternOperator OpNode= null_frag> :
1316  InstSE<(outs), (ins RC:$rt, mem:$addr), !strconcat(opstr, "\t$rt, $addr"),
1317         [(OpNode RC:$rt, addrDefault:$addr)], Itin, FrmFI, opstr> {
1318  let DecoderMethod = "DecodeFMem3";
1319  let mayStore = 1;
1320}
1321
1322// Conditional Branch
1323class CBranch<string opstr, DAGOperand opnd, PatFrag cond_op,
1324              RegisterOperand RO, bit DelaySlot = 1> :
1325  InstSE<(outs), (ins RO:$rs, RO:$rt, opnd:$offset),
1326         !strconcat(opstr, "\t$rs, $rt, $offset"),
1327         [(brcond (i32 (cond_op RO:$rs, RO:$rt)), bb:$offset)], II_BCC,
1328         FrmI, opstr> {
1329  let isBranch = 1;
1330  let isTerminator = 1;
1331  let hasDelaySlot = DelaySlot;
1332  let Defs = [AT];
1333  bit isCTI = 1;
1334}
1335
1336class CBranchZero<string opstr, DAGOperand opnd, PatFrag cond_op,
1337                  RegisterOperand RO, bit DelaySlot = 1> :
1338  InstSE<(outs), (ins RO:$rs, opnd:$offset),
1339         !strconcat(opstr, "\t$rs, $offset"),
1340         [(brcond (i32 (cond_op RO:$rs, 0)), bb:$offset)], II_BCCZ,
1341         FrmI, opstr> {
1342  let isBranch = 1;
1343  let isTerminator = 1;
1344  let hasDelaySlot = DelaySlot;
1345  let Defs = [AT];
1346  bit isCTI = 1;
1347}
1348
1349// SetCC
1350class SetCC_R<string opstr, PatFrag cond_op, RegisterOperand RO> :
1351  InstSE<(outs GPR32Opnd:$rd), (ins RO:$rs, RO:$rt),
1352         !strconcat(opstr, "\t$rd, $rs, $rt"),
1353         [(set GPR32Opnd:$rd, (cond_op RO:$rs, RO:$rt))],
1354         II_SLT_SLTU, FrmR, opstr>;
1355
1356class SetCC_I<string opstr, PatFrag cond_op, Operand Od, PatLeaf imm_type,
1357              RegisterOperand RO>:
1358  InstSE<(outs GPR32Opnd:$rt), (ins RO:$rs, Od:$imm16),
1359         !strconcat(opstr, "\t$rt, $rs, $imm16"),
1360         [(set GPR32Opnd:$rt, (cond_op RO:$rs, imm_type:$imm16))],
1361         II_SLTI_SLTIU, FrmI, opstr>;
1362
1363// Jump
1364class JumpFJ<DAGOperand opnd, string opstr, SDPatternOperator operator,
1365             SDPatternOperator targetoperator, string bopstr> :
1366  InstSE<(outs), (ins opnd:$target), !strconcat(opstr, "\t$target"),
1367         [(operator targetoperator:$target)], II_J, FrmJ, bopstr> {
1368  let isTerminator=1;
1369  let isBarrier=1;
1370  let hasDelaySlot = 1;
1371  let DecoderMethod = "DecodeJumpTarget";
1372  let Defs = [AT];
1373  bit isCTI = 1;
1374}
1375
1376// Unconditional branch
1377class UncondBranch<Instruction BEQInst> :
1378  PseudoSE<(outs), (ins brtarget:$offset), [(br bb:$offset)], II_B>,
1379  PseudoInstExpansion<(BEQInst ZERO, ZERO, brtarget:$offset)> {
1380  let isBranch = 1;
1381  let isTerminator = 1;
1382  let isBarrier = 1;
1383  let hasDelaySlot = 1;
1384  let AdditionalPredicates = [RelocPIC];
1385  let Defs = [AT];
1386  bit isCTI = 1;
1387}
1388
1389// Base class for indirect branch and return instruction classes.
1390let isTerminator=1, isBarrier=1, hasDelaySlot = 1, isCTI = 1 in
1391class JumpFR<string opstr, RegisterOperand RO,
1392             SDPatternOperator operator = null_frag>:
1393  InstSE<(outs), (ins RO:$rs), "jr\t$rs", [(operator RO:$rs)], II_JR,
1394         FrmR, opstr>;
1395
1396// Indirect branch
1397class IndirectBranch<string opstr, RegisterOperand RO> : JumpFR<opstr, RO> {
1398  let isBranch = 1;
1399  let isIndirectBranch = 1;
1400}
1401
1402// Jump and Link (Call)
1403let isCall=1, hasDelaySlot=1, isCTI=1, Defs = [RA] in {
1404  class JumpLink<string opstr, DAGOperand opnd> :
1405    InstSE<(outs), (ins opnd:$target), !strconcat(opstr, "\t$target"),
1406           [(MipsJmpLink tglobaladdr:$target)], II_JAL, FrmJ, opstr> {
1407    let DecoderMethod = "DecodeJumpTarget";
1408  }
1409
1410  class JumpLinkRegPseudo<RegisterOperand RO, Instruction JALRInst,
1411                          Register RetReg, RegisterOperand ResRO = RO>:
1412    PseudoSE<(outs), (ins RO:$rs), [(MipsJmpLink RO:$rs)], II_JALR>,
1413    PseudoInstExpansion<(JALRInst RetReg, ResRO:$rs)>;
1414
1415  class JumpLinkReg<string opstr, RegisterOperand RO>:
1416    InstSE<(outs RO:$rd), (ins RO:$rs), !strconcat(opstr, "\t$rd, $rs"),
1417           [], II_JALR, FrmR, opstr>;
1418
1419  class BGEZAL_FT<string opstr, DAGOperand opnd,
1420                  RegisterOperand RO, bit DelaySlot = 1> :
1421    InstSE<(outs), (ins RO:$rs, opnd:$offset),
1422           !strconcat(opstr, "\t$rs, $offset"), [], II_BCCZAL, FrmI, opstr> {
1423    let hasDelaySlot = DelaySlot;
1424  }
1425
1426}
1427
1428let isCall = 1, isTerminator = 1, isReturn = 1, isBarrier = 1, hasDelaySlot = 1,
1429    hasExtraSrcRegAllocReq = 1, isCTI = 1, Defs = [AT] in {
1430  class TailCall<Instruction JumpInst, DAGOperand Opnd> :
1431    PseudoSE<(outs), (ins calltarget:$target), [], II_J>,
1432    PseudoInstExpansion<(JumpInst Opnd:$target)>;
1433
1434  class TailCallReg<RegisterOperand RO> :
1435    MipsPseudo<(outs), (ins RO:$rs), [(MipsTailCall RO:$rs)], II_JR>;
1436}
1437
1438class BAL_BR_Pseudo<Instruction RealInst> :
1439  PseudoSE<(outs), (ins brtarget:$offset), [], II_BCCZAL>,
1440  PseudoInstExpansion<(RealInst ZERO, brtarget:$offset)> {
1441  let isBranch = 1;
1442  let isTerminator = 1;
1443  let isBarrier = 1;
1444  let hasDelaySlot = 1;
1445  let Defs = [RA];
1446  bit isCTI = 1;
1447}
1448
1449let isCTI = 1 in {
1450// Syscall
1451class SYS_FT<string opstr, Operand ImmOp, InstrItinClass itin = NoItinerary> :
1452  InstSE<(outs), (ins ImmOp:$code_),
1453         !strconcat(opstr, "\t$code_"), [], itin, FrmI, opstr>;
1454// Break
1455class BRK_FT<string opstr> :
1456  InstSE<(outs), (ins uimm10:$code_1, uimm10:$code_2),
1457         !strconcat(opstr, "\t$code_1, $code_2"), [], II_BREAK,
1458         FrmOther, opstr>;
1459
1460// (D)Eret
1461class ER_FT<string opstr, InstrItinClass itin = NoItinerary> :
1462  InstSE<(outs), (ins),
1463         opstr, [], itin, FrmOther, opstr>;
1464
1465// Wait
1466class WAIT_FT<string opstr> :
1467  InstSE<(outs), (ins), opstr, [], II_WAIT, FrmOther, opstr>;
1468}
1469
1470// Interrupts
1471class DEI_FT<string opstr, RegisterOperand RO,
1472             InstrItinClass itin = NoItinerary> :
1473  InstSE<(outs RO:$rt), (ins),
1474         !strconcat(opstr, "\t$rt"), [], itin, FrmOther, opstr>;
1475
1476// Sync
1477let hasSideEffects = 1 in
1478class SYNC_FT<string opstr> :
1479  InstSE<(outs), (ins uimm5:$stype), "sync $stype",
1480         [(MipsSync immZExt5:$stype)], II_SYNC, FrmOther, opstr>;
1481
1482class SYNCI_FT<string opstr> :
1483  InstSE<(outs), (ins mem_simm16:$addr), !strconcat(opstr, "\t$addr"), [],
1484         II_SYNCI, FrmOther, opstr> {
1485  let hasSideEffects = 1;
1486  let DecoderMethod = "DecodeSyncI";
1487}
1488
1489let hasSideEffects = 1, isCTI = 1 in {
1490class TEQ_FT<string opstr, RegisterOperand RO, Operand ImmOp,
1491             InstrItinClass itin = NoItinerary> :
1492  InstSE<(outs), (ins RO:$rs, RO:$rt, ImmOp:$code_),
1493         !strconcat(opstr, "\t$rs, $rt, $code_"), [], itin, FrmI, opstr>;
1494
1495class TEQI_FT<string opstr, RegisterOperand RO,
1496              InstrItinClass itin = NoItinerary> :
1497  InstSE<(outs), (ins RO:$rs, simm16:$imm16),
1498         !strconcat(opstr, "\t$rs, $imm16"), [], itin, FrmOther, opstr>;
1499}
1500
1501// Mul, Div
1502class Mult<string opstr, InstrItinClass itin, RegisterOperand RO,
1503           list<Register> DefRegs> :
1504  InstSE<(outs), (ins RO:$rs, RO:$rt), !strconcat(opstr, "\t$rs, $rt"), [],
1505         itin, FrmR, opstr> {
1506  let isCommutable = 1;
1507  let Defs = DefRegs;
1508  let hasSideEffects = 0;
1509}
1510
1511// Pseudo multiply/divide instruction with explicit accumulator register
1512// operands.
1513class MultDivPseudo<Instruction RealInst, RegisterClass R0, RegisterOperand R1,
1514                    SDPatternOperator OpNode, InstrItinClass Itin,
1515                    bit IsComm = 1, bit HasSideEffects = 0,
1516                    bit UsesCustomInserter = 0> :
1517  PseudoSE<(outs R0:$ac), (ins R1:$rs, R1:$rt),
1518           [(set R0:$ac, (OpNode R1:$rs, R1:$rt))], Itin>,
1519  PseudoInstExpansion<(RealInst R1:$rs, R1:$rt)> {
1520  let isCommutable = IsComm;
1521  let hasSideEffects = HasSideEffects;
1522  let usesCustomInserter = UsesCustomInserter;
1523}
1524
1525// Pseudo multiply add/sub instruction with explicit accumulator register
1526// operands.
1527class MAddSubPseudo<Instruction RealInst, SDPatternOperator OpNode,
1528                    InstrItinClass itin>
1529  : PseudoSE<(outs ACC64:$ac),
1530             (ins GPR32Opnd:$rs, GPR32Opnd:$rt, ACC64:$acin),
1531             [(set ACC64:$ac,
1532              (OpNode GPR32Opnd:$rs, GPR32Opnd:$rt, ACC64:$acin))],
1533             itin>,
1534    PseudoInstExpansion<(RealInst GPR32Opnd:$rs, GPR32Opnd:$rt)> {
1535  string Constraints = "$acin = $ac";
1536}
1537
1538class Div<string opstr, InstrItinClass itin, RegisterOperand RO,
1539          list<Register> DefRegs> :
1540  InstSE<(outs), (ins RO:$rs, RO:$rt), !strconcat(opstr, "\t$$zero, $rs, $rt"),
1541         [], itin, FrmR, opstr> {
1542  let Defs = DefRegs;
1543}
1544
1545// Move from Hi/Lo
1546class PseudoMFLOHI<RegisterClass DstRC, RegisterClass SrcRC, SDNode OpNode>
1547  : PseudoSE<(outs DstRC:$rd), (ins SrcRC:$hilo),
1548             [(set DstRC:$rd, (OpNode SrcRC:$hilo))], II_MFHI_MFLO>;
1549
1550class MoveFromLOHI<string opstr, RegisterOperand RO, Register UseReg>:
1551  InstSE<(outs RO:$rd), (ins), !strconcat(opstr, "\t$rd"), [], II_MFHI_MFLO,
1552         FrmR, opstr> {
1553  let Uses = [UseReg];
1554  let hasSideEffects = 0;
1555}
1556
1557class PseudoMTLOHI<RegisterClass DstRC, RegisterClass SrcRC>
1558  : PseudoSE<(outs DstRC:$lohi), (ins SrcRC:$lo, SrcRC:$hi),
1559             [(set DstRC:$lohi, (MipsMTLOHI SrcRC:$lo, SrcRC:$hi))],
1560             II_MTHI_MTLO>;
1561
1562class MoveToLOHI<string opstr, RegisterOperand RO, list<Register> DefRegs>:
1563  InstSE<(outs), (ins RO:$rs), !strconcat(opstr, "\t$rs"), [], II_MTHI_MTLO,
1564  FrmR, opstr> {
1565  let Defs = DefRegs;
1566  let hasSideEffects = 0;
1567}
1568
1569class EffectiveAddress<string opstr, RegisterOperand RO> :
1570  InstSE<(outs RO:$rt), (ins mem_ea:$addr), !strconcat(opstr, "\t$rt, $addr"),
1571         [(set RO:$rt, addr:$addr)], II_ADDIU, FrmI,
1572         !strconcat(opstr, "_lea")> {
1573  let isCodeGenOnly = 1;
1574  let hasNoSchedulingInfo = 1;
1575  let DecoderMethod = "DecodeMem";
1576}
1577
1578// Count Leading Ones/Zeros in Word
1579class CountLeading0<string opstr, RegisterOperand RO,
1580                  InstrItinClass itin = NoItinerary>:
1581  InstSE<(outs RO:$rd), (ins RO:$rs), !strconcat(opstr, "\t$rd, $rs"),
1582         [(set RO:$rd, (ctlz RO:$rs))], itin, FrmR, opstr>;
1583
1584class CountLeading1<string opstr, RegisterOperand RO,
1585                  InstrItinClass itin = NoItinerary>:
1586  InstSE<(outs RO:$rd), (ins RO:$rs), !strconcat(opstr, "\t$rd, $rs"),
1587         [(set RO:$rd, (ctlz (not RO:$rs)))], itin, FrmR, opstr>;
1588
1589// Sign Extend in Register.
1590class SignExtInReg<string opstr, ValueType vt, RegisterOperand RO,
1591                   InstrItinClass itin> :
1592  InstSE<(outs RO:$rd), (ins RO:$rt), !strconcat(opstr, "\t$rd, $rt"),
1593         [(set RO:$rd, (sext_inreg RO:$rt, vt))], itin, FrmR, opstr>;
1594
1595// Subword Swap
1596class SubwordSwap<string opstr, RegisterOperand RO,
1597                  InstrItinClass itin = NoItinerary>:
1598  InstSE<(outs RO:$rd), (ins RO:$rt), !strconcat(opstr, "\t$rd, $rt"), [], itin,
1599         FrmR, opstr> {
1600  let hasSideEffects = 0;
1601}
1602
1603// Read Hardware
1604class ReadHardware<RegisterOperand CPURegOperand, RegisterOperand RO> :
1605  InstSE<(outs CPURegOperand:$rt), (ins RO:$rd), "rdhwr\t$rt, $rd", [],
1606         II_RDHWR, FrmR, "rdhwr">;
1607
1608// Ext and Ins
1609class ExtBase<string opstr, RegisterOperand RO, Operand PosOpnd,
1610              Operand SizeOpnd, PatFrag PosImm, PatFrag SizeImm,
1611              SDPatternOperator Op = null_frag> :
1612  InstSE<(outs RO:$rt), (ins RO:$rs, PosOpnd:$pos, SizeOpnd:$size),
1613         !strconcat(opstr, " $rt, $rs, $pos, $size"),
1614         [(set RO:$rt, (Op RO:$rs, PosImm:$pos, SizeImm:$size))], II_EXT,
1615         FrmR, opstr>, ISA_MIPS32R2;
1616
1617class InsBase<string opstr, RegisterOperand RO, Operand PosOpnd,
1618              Operand SizeOpnd, SDPatternOperator Op = null_frag>:
1619  InstSE<(outs RO:$rt), (ins RO:$rs, PosOpnd:$pos, SizeOpnd:$size, RO:$src),
1620         !strconcat(opstr, " $rt, $rs, $pos, $size"),
1621         [(set RO:$rt, (Op RO:$rs, imm:$pos, imm:$size, RO:$src))],
1622         II_INS, FrmR, opstr>, ISA_MIPS32R2 {
1623  let Constraints = "$src = $rt";
1624}
1625
1626// Atomic instructions with 2 source operands (ATOMIC_SWAP & ATOMIC_LOAD_*).
1627class Atomic2Ops<PatFrag Op, RegisterClass DRC> :
1628  PseudoSE<(outs DRC:$dst), (ins PtrRC:$ptr, DRC:$incr),
1629           [(set DRC:$dst, (Op iPTR:$ptr, DRC:$incr))]>;
1630
1631// Atomic Compare & Swap.
1632class AtomicCmpSwap<PatFrag Op, RegisterClass DRC> :
1633  PseudoSE<(outs DRC:$dst), (ins PtrRC:$ptr, DRC:$cmp, DRC:$swap),
1634           [(set DRC:$dst, (Op iPTR:$ptr, DRC:$cmp, DRC:$swap))]>;
1635
1636class LLBase<string opstr, RegisterOperand RO, DAGOperand MO = mem> :
1637  InstSE<(outs RO:$rt), (ins MO:$addr), !strconcat(opstr, "\t$rt, $addr"),
1638         [], II_LL, FrmI, opstr> {
1639  let DecoderMethod = "DecodeMem";
1640  let mayLoad = 1;
1641}
1642
1643class SCBase<string opstr, RegisterOperand RO> :
1644  InstSE<(outs RO:$dst), (ins RO:$rt, mem:$addr),
1645         !strconcat(opstr, "\t$rt, $addr"), [], II_SC, FrmI> {
1646  let DecoderMethod = "DecodeMem";
1647  let mayStore = 1;
1648  let Constraints = "$rt = $dst";
1649}
1650
1651class MFC3OP<string asmstr, RegisterOperand RO, RegisterOperand RD,
1652             InstrItinClass itin> :
1653  InstSE<(outs RO:$rt), (ins RD:$rd, uimm3:$sel),
1654         !strconcat(asmstr, "\t$rt, $rd, $sel"), [], itin, FrmFR>;
1655
1656class MTC3OP<string asmstr, RegisterOperand RO, RegisterOperand RD,
1657             InstrItinClass itin> :
1658  InstSE<(outs RO:$rd), (ins RD:$rt, uimm3:$sel),
1659         !strconcat(asmstr, "\t$rt, $rd, $sel"), [], itin, FrmFR>;
1660
1661class TrapBase<Instruction RealInst>
1662  : PseudoSE<(outs), (ins), [(trap)], II_TRAP>,
1663    PseudoInstExpansion<(RealInst 0, 0)> {
1664  let isBarrier = 1;
1665  let isTerminator = 1;
1666  let isCodeGenOnly = 1;
1667  let isCTI = 1;
1668}
1669
1670//===----------------------------------------------------------------------===//
1671// Pseudo instructions
1672//===----------------------------------------------------------------------===//
1673
1674// Return RA.
1675let isReturn=1, isTerminator=1, isBarrier=1, hasCtrlDep=1, isCTI=1 in {
1676  let hasDelaySlot=1 in
1677  def RetRA : PseudoSE<(outs), (ins), [(MipsRet)]>;
1678
1679  let hasSideEffects=1 in
1680  def ERet : PseudoSE<(outs), (ins), [(MipsERet)]>;
1681}
1682
1683let Defs = [SP], Uses = [SP], hasSideEffects = 1 in {
1684def ADJCALLSTACKDOWN : MipsPseudo<(outs), (ins i32imm:$amt),
1685                                  [(callseq_start timm:$amt)]>;
1686def ADJCALLSTACKUP   : MipsPseudo<(outs), (ins i32imm:$amt1, i32imm:$amt2),
1687                                  [(callseq_end timm:$amt1, timm:$amt2)]>;
1688}
1689
1690let usesCustomInserter = 1 in {
1691  def ATOMIC_LOAD_ADD_I8   : Atomic2Ops<atomic_load_add_8, GPR32>;
1692  def ATOMIC_LOAD_ADD_I16  : Atomic2Ops<atomic_load_add_16, GPR32>;
1693  def ATOMIC_LOAD_ADD_I32  : Atomic2Ops<atomic_load_add_32, GPR32>;
1694  def ATOMIC_LOAD_SUB_I8   : Atomic2Ops<atomic_load_sub_8, GPR32>;
1695  def ATOMIC_LOAD_SUB_I16  : Atomic2Ops<atomic_load_sub_16, GPR32>;
1696  def ATOMIC_LOAD_SUB_I32  : Atomic2Ops<atomic_load_sub_32, GPR32>;
1697  def ATOMIC_LOAD_AND_I8   : Atomic2Ops<atomic_load_and_8, GPR32>;
1698  def ATOMIC_LOAD_AND_I16  : Atomic2Ops<atomic_load_and_16, GPR32>;
1699  def ATOMIC_LOAD_AND_I32  : Atomic2Ops<atomic_load_and_32, GPR32>;
1700  def ATOMIC_LOAD_OR_I8    : Atomic2Ops<atomic_load_or_8, GPR32>;
1701  def ATOMIC_LOAD_OR_I16   : Atomic2Ops<atomic_load_or_16, GPR32>;
1702  def ATOMIC_LOAD_OR_I32   : Atomic2Ops<atomic_load_or_32, GPR32>;
1703  def ATOMIC_LOAD_XOR_I8   : Atomic2Ops<atomic_load_xor_8, GPR32>;
1704  def ATOMIC_LOAD_XOR_I16  : Atomic2Ops<atomic_load_xor_16, GPR32>;
1705  def ATOMIC_LOAD_XOR_I32  : Atomic2Ops<atomic_load_xor_32, GPR32>;
1706  def ATOMIC_LOAD_NAND_I8  : Atomic2Ops<atomic_load_nand_8, GPR32>;
1707  def ATOMIC_LOAD_NAND_I16 : Atomic2Ops<atomic_load_nand_16, GPR32>;
1708  def ATOMIC_LOAD_NAND_I32 : Atomic2Ops<atomic_load_nand_32, GPR32>;
1709
1710  def ATOMIC_SWAP_I8       : Atomic2Ops<atomic_swap_8, GPR32>;
1711  def ATOMIC_SWAP_I16      : Atomic2Ops<atomic_swap_16, GPR32>;
1712  def ATOMIC_SWAP_I32      : Atomic2Ops<atomic_swap_32, GPR32>;
1713
1714  def ATOMIC_CMP_SWAP_I8   : AtomicCmpSwap<atomic_cmp_swap_8, GPR32>;
1715  def ATOMIC_CMP_SWAP_I16  : AtomicCmpSwap<atomic_cmp_swap_16, GPR32>;
1716  def ATOMIC_CMP_SWAP_I32  : AtomicCmpSwap<atomic_cmp_swap_32, GPR32>;
1717}
1718
1719/// Pseudo instructions for loading and storing accumulator registers.
1720let isPseudo = 1, isCodeGenOnly = 1, hasNoSchedulingInfo = 1 in {
1721  def LOAD_ACC64  : Load<"", ACC64>;
1722  def STORE_ACC64 : Store<"", ACC64>;
1723}
1724
1725// We need these two pseudo instructions to avoid offset calculation for long
1726// branches.  See the comment in file MipsLongBranch.cpp for detailed
1727// explanation.
1728
1729// Expands to: lui $dst, %hi($tgt - $baltgt)
1730def LONG_BRANCH_LUi : PseudoSE<(outs GPR32Opnd:$dst),
1731  (ins brtarget:$tgt, brtarget:$baltgt), []>;
1732
1733// Expands to: addiu $dst, $src, %lo($tgt - $baltgt)
1734def LONG_BRANCH_ADDiu : PseudoSE<(outs GPR32Opnd:$dst),
1735  (ins GPR32Opnd:$src, brtarget:$tgt, brtarget:$baltgt), []>;
1736
1737//===----------------------------------------------------------------------===//
1738// Instruction definition
1739//===----------------------------------------------------------------------===//
1740//===----------------------------------------------------------------------===//
1741// MipsI Instructions
1742//===----------------------------------------------------------------------===//
1743
1744/// Arithmetic Instructions (ALU Immediate)
1745let AdditionalPredicates = [NotInMicroMips] in {
1746  def ADDiu : MMRel, StdMMR6Rel, ArithLogicI<"addiu", simm16_relaxed, GPR32Opnd,
1747                                             II_ADDIU, immSExt16, add>,
1748              ADDI_FM<0x9>, IsAsCheapAsAMove;
1749
1750  def ANDi : MMRel, StdMMR6Rel,
1751             ArithLogicI<"andi", uimm16, GPR32Opnd, II_ANDI, immZExt16, and>,
1752             ADDI_FM<0xc>;
1753  def ORi  : MMRel, StdMMR6Rel,
1754             ArithLogicI<"ori", uimm16, GPR32Opnd, II_ORI, immZExt16, or>,
1755             ADDI_FM<0xd>;
1756  def XORi : MMRel, StdMMR6Rel,
1757             ArithLogicI<"xori", uimm16, GPR32Opnd, II_XORI, immZExt16, xor>,
1758             ADDI_FM<0xe>;
1759}
1760def ADDi  : MMRel, ArithLogicI<"addi", simm16_relaxed, GPR32Opnd, II_ADDI>, ADDI_FM<0x8>,
1761            ISA_MIPS1_NOT_32R6_64R6;
1762let AdditionalPredicates = [NotInMicroMips] in {
1763  def SLTi  : MMRel, SetCC_I<"slti", setlt, simm16, immSExt16, GPR32Opnd>,
1764              SLTI_FM<0xa>;
1765  def SLTiu : MMRel, SetCC_I<"sltiu", setult, simm16, immSExt16, GPR32Opnd>,
1766              SLTI_FM<0xb>;
1767}
1768def LUi   : MMRel, LoadUpper<"lui", GPR32Opnd, uimm16_relaxed>, LUI_FM;
1769let AdditionalPredicates = [NotInMicroMips] in {
1770  /// Arithmetic Instructions (3-Operand, R-Type)
1771  def ADDu  : MMRel, StdMMR6Rel, ArithLogicR<"addu", GPR32Opnd, 1, II_ADDU, add>,
1772              ADD_FM<0, 0x21>;
1773  def SUBu  : MMRel, StdMMR6Rel, ArithLogicR<"subu", GPR32Opnd, 0, II_SUBU, sub>,
1774              ADD_FM<0, 0x23>;
1775}
1776let Defs = [HI0, LO0] in
1777def MUL   : MMRel, ArithLogicR<"mul", GPR32Opnd, 1, II_MUL, mul>,
1778            ADD_FM<0x1c, 2>, ISA_MIPS32_NOT_32R6_64R6;
1779def ADD   : MMRel, StdMMR6Rel, ArithLogicR<"add", GPR32Opnd, 1, II_ADD>, ADD_FM<0, 0x20>;
1780def SUB   : MMRel, StdMMR6Rel, ArithLogicR<"sub", GPR32Opnd, 0, II_SUB>, ADD_FM<0, 0x22>;
1781let AdditionalPredicates = [NotInMicroMips] in {
1782  def SLT   : MMRel, SetCC_R<"slt", setlt, GPR32Opnd>, ADD_FM<0, 0x2a>;
1783  def SLTu  : MMRel, SetCC_R<"sltu", setult, GPR32Opnd>, ADD_FM<0, 0x2b>;
1784  def AND   : MMRel, StdMMR6Rel, ArithLogicR<"and", GPR32Opnd, 1, II_AND, and>,
1785              ADD_FM<0, 0x24>;
1786  def OR    : MMRel, StdMMR6Rel, ArithLogicR<"or", GPR32Opnd, 1, II_OR, or>,
1787              ADD_FM<0, 0x25>;
1788  def XOR   : MMRel, StdMMR6Rel, ArithLogicR<"xor", GPR32Opnd, 1, II_XOR, xor>,
1789              ADD_FM<0, 0x26>;
1790  def NOR   : MMRel, StdMMR6Rel, LogicNOR<"nor", GPR32Opnd>, ADD_FM<0, 0x27>;
1791}
1792
1793/// Shift Instructions
1794let AdditionalPredicates = [NotInMicroMips] in {
1795def SLL  : MMRel, shift_rotate_imm<"sll", uimm5, GPR32Opnd, II_SLL, shl,
1796                                   immZExt5>, SRA_FM<0, 0>;
1797def SRL  : MMRel, shift_rotate_imm<"srl", uimm5, GPR32Opnd, II_SRL, srl,
1798                                   immZExt5>, SRA_FM<2, 0>;
1799def SRA  : MMRel, shift_rotate_imm<"sra", uimm5, GPR32Opnd, II_SRA, sra,
1800                                   immZExt5>, SRA_FM<3, 0>;
1801def SLLV : MMRel, shift_rotate_reg<"sllv", GPR32Opnd, II_SLLV, shl>,
1802           SRLV_FM<4, 0>;
1803def SRLV : MMRel, shift_rotate_reg<"srlv", GPR32Opnd, II_SRLV, srl>,
1804           SRLV_FM<6, 0>;
1805def SRAV : MMRel, shift_rotate_reg<"srav", GPR32Opnd, II_SRAV, sra>,
1806           SRLV_FM<7, 0>;
1807}
1808
1809// Rotate Instructions
1810let AdditionalPredicates = [NotInMicroMips] in {
1811  def ROTR  : MMRel, shift_rotate_imm<"rotr", uimm5, GPR32Opnd, II_ROTR, rotr,
1812                                      immZExt5>,
1813              SRA_FM<2, 1>, ISA_MIPS32R2;
1814  def ROTRV : MMRel, shift_rotate_reg<"rotrv", GPR32Opnd, II_ROTRV, rotr>,
1815              SRLV_FM<6, 1>, ISA_MIPS32R2;
1816}
1817
1818/// Load and Store Instructions
1819///  aligned
1820def LB  : LoadMemory<"lb", GPR32Opnd, mem_simm16, sextloadi8, II_LB>, MMRel,
1821          LW_FM<0x20>;
1822def LBu : LoadMemory<"lbu", GPR32Opnd, mem_simm16, zextloadi8, II_LBU,
1823                     addrDefault>, MMRel, LW_FM<0x24>;
1824let AdditionalPredicates = [NotInMicroMips] in {
1825  def LH  : LoadMemory<"lh", GPR32Opnd, mem_simm16, sextloadi16, II_LH,
1826                       addrDefault>, MMRel, LW_FM<0x21>;
1827  def LHu : LoadMemory<"lhu", GPR32Opnd, mem_simm16, zextloadi16, II_LHU>,
1828            MMRel, LW_FM<0x25>;
1829  def LW  : StdMMR6Rel, Load<"lw", GPR32Opnd, load, II_LW, addrDefault>, MMRel,
1830            LW_FM<0x23>;
1831}
1832def SB  : StdMMR6Rel, Store<"sb", GPR32Opnd, truncstorei8, II_SB>, MMRel,
1833          LW_FM<0x28>;
1834def SH  : Store<"sh", GPR32Opnd, truncstorei16, II_SH>, MMRel, LW_FM<0x29>;
1835let AdditionalPredicates = [NotInMicroMips] in {
1836def SW  : Store<"sw", GPR32Opnd, store, II_SW>, MMRel, LW_FM<0x2b>;
1837}
1838
1839/// load/store left/right
1840let EncodingPredicates = []<Predicate>, // FIXME: Lack of HasStdEnc is probably a bug
1841    AdditionalPredicates = [NotInMicroMips] in {
1842def LWL : LoadLeftRight<"lwl", MipsLWL, GPR32Opnd, II_LWL>, LW_FM<0x22>,
1843          ISA_MIPS1_NOT_32R6_64R6;
1844def LWR : LoadLeftRight<"lwr", MipsLWR, GPR32Opnd, II_LWR>, LW_FM<0x26>,
1845          ISA_MIPS1_NOT_32R6_64R6;
1846def SWL : StoreLeftRight<"swl", MipsSWL, GPR32Opnd, II_SWL>, LW_FM<0x2a>,
1847          ISA_MIPS1_NOT_32R6_64R6;
1848def SWR : StoreLeftRight<"swr", MipsSWR, GPR32Opnd, II_SWR>, LW_FM<0x2e>,
1849          ISA_MIPS1_NOT_32R6_64R6;
1850}
1851
1852let AdditionalPredicates = [NotInMicroMips] in {
1853// COP2 Memory Instructions
1854def LWC2 : StdMMR6Rel, LW_FT2<"lwc2", COP2Opnd, II_LWC2, load>, LW_FM<0x32>,
1855           ISA_MIPS1_NOT_32R6_64R6;
1856def SWC2 : StdMMR6Rel, SW_FT2<"swc2", COP2Opnd, II_SWC2, store>,
1857           LW_FM<0x3a>, ISA_MIPS1_NOT_32R6_64R6;
1858def LDC2 : StdMMR6Rel, LW_FT2<"ldc2", COP2Opnd, II_LDC2, load>, LW_FM<0x36>,
1859           ISA_MIPS2_NOT_32R6_64R6;
1860def SDC2 : StdMMR6Rel, SW_FT2<"sdc2", COP2Opnd, II_SDC2, store>,
1861           LW_FM<0x3e>, ISA_MIPS2_NOT_32R6_64R6;
1862
1863// COP3 Memory Instructions
1864let DecoderNamespace = "COP3_" in {
1865  def LWC3 : LW_FT3<"lwc3", COP3Opnd, II_LWC3, load>, LW_FM<0x33>;
1866  def SWC3 : SW_FT3<"swc3", COP3Opnd, II_SWC3, store>, LW_FM<0x3b>;
1867  def LDC3 : LW_FT3<"ldc3", COP3Opnd, II_LDC3, load>, LW_FM<0x37>,
1868             ISA_MIPS2;
1869  def SDC3 : SW_FT3<"sdc3", COP3Opnd, II_SDC3, store>, LW_FM<0x3f>,
1870             ISA_MIPS2;
1871}
1872}
1873
1874def SYNC : MMRel, StdMMR6Rel, SYNC_FT<"sync">, SYNC_FM,
1875           ISA_MIPS32;
1876def SYNCI : MMRel, StdMMR6Rel, SYNCI_FT<"synci">, SYNCI_FM, ISA_MIPS32R2;
1877
1878let AdditionalPredicates = [NotInMicroMips] in {
1879  def TEQ : MMRel, TEQ_FT<"teq", GPR32Opnd, uimm10, II_TEQ>, TEQ_FM<0x34>, ISA_MIPS2;
1880  def TGE : MMRel, TEQ_FT<"tge", GPR32Opnd, uimm10, II_TGE>, TEQ_FM<0x30>, ISA_MIPS2;
1881  def TGEU : MMRel, TEQ_FT<"tgeu", GPR32Opnd, uimm10, II_TGEU>, TEQ_FM<0x31>, ISA_MIPS2;
1882  def TLT : MMRel, TEQ_FT<"tlt", GPR32Opnd, uimm10, II_TLT>, TEQ_FM<0x32>, ISA_MIPS2;
1883  def TLTU : MMRel, TEQ_FT<"tltu", GPR32Opnd, uimm10, II_TLTU>, TEQ_FM<0x33>, ISA_MIPS2;
1884  def TNE : MMRel, TEQ_FT<"tne", GPR32Opnd, uimm10, II_TNE>, TEQ_FM<0x36>, ISA_MIPS2;
1885}
1886
1887def TEQI : MMRel, TEQI_FT<"teqi", GPR32Opnd, II_TEQI>, TEQI_FM<0xc>,
1888           ISA_MIPS2_NOT_32R6_64R6;
1889def TGEI : MMRel, TEQI_FT<"tgei", GPR32Opnd, II_TGEI>, TEQI_FM<0x8>,
1890           ISA_MIPS2_NOT_32R6_64R6;
1891def TGEIU : MMRel, TEQI_FT<"tgeiu", GPR32Opnd, II_TGEIU>, TEQI_FM<0x9>,
1892           ISA_MIPS2_NOT_32R6_64R6;
1893def TLTI : MMRel, TEQI_FT<"tlti", GPR32Opnd, II_TLTI>, TEQI_FM<0xa>,
1894           ISA_MIPS2_NOT_32R6_64R6;
1895def TTLTIU : MMRel, TEQI_FT<"tltiu", GPR32Opnd, II_TTLTIU>, TEQI_FM<0xb>,
1896           ISA_MIPS2_NOT_32R6_64R6;
1897def TNEI : MMRel, TEQI_FT<"tnei", GPR32Opnd, II_TNEI>, TEQI_FM<0xe>,
1898           ISA_MIPS2_NOT_32R6_64R6;
1899
1900let AdditionalPredicates = [NotInMicroMips] in {
1901def BREAK : MMRel, StdMMR6Rel, BRK_FT<"break">, BRK_FM<0xd>;
1902def SYSCALL : MMRel, SYS_FT<"syscall", uimm20, II_SYSCALL>, SYS_FM<0xc>;
1903}
1904def TRAP : TrapBase<BREAK>;
1905let AdditionalPredicates = [NotInMicroMips] in {
1906def SDBBP : MMRel, SYS_FT<"sdbbp", uimm20, II_SDBBP>, SDBBP_FM, ISA_MIPS32_NOT_32R6_64R6;
1907}
1908
1909let AdditionalPredicates = [NotInMicroMips] in {
1910  def ERET : MMRel, ER_FT<"eret", II_ERET>, ER_FM<0x18, 0x0>, INSN_MIPS3_32;
1911  def ERETNC : MMRel, ER_FT<"eretnc", II_ERETNC>, ER_FM<0x18, 0x1>, ISA_MIPS32R5;
1912  def DERET : MMRel, ER_FT<"deret", II_DERET>, ER_FM<0x1f, 0x0>, ISA_MIPS32;
1913}
1914
1915let AdditionalPredicates = [NotInMicroMips] in {
1916  def EI : MMRel, StdMMR6Rel, DEI_FT<"ei", GPR32Opnd, II_EI>, EI_FM<1>, ISA_MIPS32R2;
1917  def DI : MMRel, StdMMR6Rel, DEI_FT<"di", GPR32Opnd, II_DI>, EI_FM<0>, ISA_MIPS32R2;
1918}
1919
1920let EncodingPredicates = []<Predicate>, // FIXME: Lack of HasStdEnc is probably a bug
1921    AdditionalPredicates = [NotInMicroMips] in {
1922def WAIT : WAIT_FT<"wait">, WAIT_FM;
1923}
1924
1925let AdditionalPredicates = [NotInMicroMips] in {
1926/// Load-linked, Store-conditional
1927def LL : LLBase<"ll", GPR32Opnd>, LW_FM<0x30>, PTR_32, ISA_MIPS2_NOT_32R6_64R6;
1928def SC : SCBase<"sc", GPR32Opnd>, LW_FM<0x38>, PTR_32, ISA_MIPS2_NOT_32R6_64R6;
1929}
1930
1931/// Jump and Branch Instructions
1932def J       : MMRel, JumpFJ<jmptarget, "j", br, bb, "j">, FJ<2>,
1933              AdditionalRequires<[RelocNotPIC]>, IsBranch;
1934def JR      : MMRel, IndirectBranch<"jr", GPR32Opnd>, MTLO_FM<8>, ISA_MIPS1_NOT_32R6_64R6;
1935def BEQ     : MMRel, CBranch<"beq", brtarget, seteq, GPR32Opnd>, BEQ_FM<4>;
1936def BEQL    : MMRel, CBranch<"beql", brtarget, seteq, GPR32Opnd, 0>,
1937              BEQ_FM<20>, ISA_MIPS2_NOT_32R6_64R6;
1938def BNE     : MMRel, CBranch<"bne", brtarget, setne, GPR32Opnd>, BEQ_FM<5>;
1939def BNEL    : MMRel, CBranch<"bnel", brtarget, setne, GPR32Opnd, 0>,
1940              BEQ_FM<21>, ISA_MIPS2_NOT_32R6_64R6;
1941def BGEZ    : MMRel, CBranchZero<"bgez", brtarget, setge, GPR32Opnd>,
1942              BGEZ_FM<1, 1>;
1943def BGEZL   : MMRel, CBranchZero<"bgezl", brtarget, setge, GPR32Opnd, 0>,
1944              BGEZ_FM<1, 3>, ISA_MIPS2_NOT_32R6_64R6;
1945def BGTZ    : MMRel, CBranchZero<"bgtz", brtarget, setgt, GPR32Opnd>,
1946              BGEZ_FM<7, 0>;
1947def BGTZL   : MMRel, CBranchZero<"bgtzl", brtarget, setgt, GPR32Opnd, 0>,
1948              BGEZ_FM<23, 0>, ISA_MIPS2_NOT_32R6_64R6;
1949def BLEZ    : MMRel, CBranchZero<"blez", brtarget, setle, GPR32Opnd>,
1950              BGEZ_FM<6, 0>;
1951def BLEZL   : MMRel, CBranchZero<"blezl", brtarget, setle, GPR32Opnd, 0>,
1952              BGEZ_FM<22, 0>, ISA_MIPS2_NOT_32R6_64R6;
1953def BLTZ    : MMRel, CBranchZero<"bltz", brtarget, setlt, GPR32Opnd>,
1954              BGEZ_FM<1, 0>;
1955def BLTZL   : MMRel, CBranchZero<"bltzl", brtarget, setlt, GPR32Opnd, 0>,
1956              BGEZ_FM<1, 2>, ISA_MIPS2_NOT_32R6_64R6;
1957def B       : UncondBranch<BEQ>;
1958
1959def JAL  : MMRel, JumpLink<"jal", calltarget>, FJ<3>;
1960let AdditionalPredicates = [NotInMicroMips] in {
1961  def JALR : JumpLinkReg<"jalr", GPR32Opnd>, JALR_FM;
1962  def JALRPseudo : JumpLinkRegPseudo<GPR32Opnd, JALR, RA>;
1963}
1964
1965def JALX : MMRel, JumpLink<"jalx", calltarget>, FJ<0x1D>,
1966           ISA_MIPS32_NOT_32R6_64R6;
1967def BGEZAL : MMRel, BGEZAL_FT<"bgezal", brtarget, GPR32Opnd>, BGEZAL_FM<0x11>,
1968             ISA_MIPS1_NOT_32R6_64R6;
1969def BGEZALL : MMRel, BGEZAL_FT<"bgezall", brtarget, GPR32Opnd, 0>,
1970              BGEZAL_FM<0x13>, ISA_MIPS2_NOT_32R6_64R6;
1971def BLTZAL : MMRel, BGEZAL_FT<"bltzal", brtarget, GPR32Opnd>, BGEZAL_FM<0x10>,
1972             ISA_MIPS1_NOT_32R6_64R6;
1973def BLTZALL : MMRel, BGEZAL_FT<"bltzall", brtarget, GPR32Opnd, 0>,
1974              BGEZAL_FM<0x12>, ISA_MIPS2_NOT_32R6_64R6;
1975def BAL_BR : BAL_BR_Pseudo<BGEZAL>;
1976
1977let Predicates = [NotInMicroMips] in {
1978  def TAILCALL : TailCall<J, jmptarget>;
1979}
1980
1981def TAILCALLREG : TailCallReg<GPR32Opnd>;
1982
1983// Indirect branches are matched as PseudoIndirectBranch/PseudoIndirectBranch64
1984// then are expanded to JR, JR64, JALR, or JALR64 depending on the ISA.
1985class PseudoIndirectBranchBase<RegisterOperand RO> :
1986    MipsPseudo<(outs), (ins RO:$rs), [(brind RO:$rs)],
1987               II_IndirectBranchPseudo> {
1988  let isTerminator=1;
1989  let isBarrier=1;
1990  let hasDelaySlot = 1;
1991  let isBranch = 1;
1992  let isIndirectBranch = 1;
1993  bit isCTI = 1;
1994}
1995
1996def PseudoIndirectBranch : PseudoIndirectBranchBase<GPR32Opnd>;
1997
1998// Return instructions are matched as a RetRA instruction, then are expanded
1999// into PseudoReturn/PseudoReturn64 after register allocation. Finally,
2000// MipsAsmPrinter expands this into JR, JR64, JALR, or JALR64 depending on the
2001// ISA.
2002class PseudoReturnBase<RegisterOperand RO> : MipsPseudo<(outs), (ins RO:$rs),
2003                                                        [], II_ReturnPseudo> {
2004  let isTerminator = 1;
2005  let isBarrier = 1;
2006  let hasDelaySlot = 1;
2007  let isReturn = 1;
2008  let isCodeGenOnly = 1;
2009  let hasCtrlDep = 1;
2010  let hasExtraSrcRegAllocReq = 1;
2011  bit isCTI = 1;
2012}
2013
2014def PseudoReturn : PseudoReturnBase<GPR32Opnd>;
2015
2016// Exception handling related node and instructions.
2017// The conversion sequence is:
2018// ISD::EH_RETURN -> MipsISD::EH_RETURN ->
2019// MIPSeh_return -> (stack change + indirect branch)
2020//
2021// MIPSeh_return takes the place of regular return instruction
2022// but takes two arguments (V1, V0) which are used for storing
2023// the offset and return address respectively.
2024def SDT_MipsEHRET : SDTypeProfile<0, 2, [SDTCisInt<0>, SDTCisPtrTy<1>]>;
2025
2026def MIPSehret : SDNode<"MipsISD::EH_RETURN", SDT_MipsEHRET,
2027                      [SDNPHasChain, SDNPOptInGlue, SDNPVariadic]>;
2028
2029let Uses = [V0, V1], isTerminator = 1, isReturn = 1, isBarrier = 1, isCTI = 1 in {
2030  def MIPSeh_return32 : MipsPseudo<(outs), (ins GPR32:$spoff, GPR32:$dst),
2031                                [(MIPSehret GPR32:$spoff, GPR32:$dst)]>;
2032  def MIPSeh_return64 : MipsPseudo<(outs), (ins GPR64:$spoff,
2033                                                GPR64:$dst),
2034                                [(MIPSehret GPR64:$spoff, GPR64:$dst)]>;
2035}
2036
2037/// Multiply and Divide Instructions.
2038def MULT  : MMRel, Mult<"mult", II_MULT, GPR32Opnd, [HI0, LO0]>,
2039            MULT_FM<0, 0x18>, ISA_MIPS1_NOT_32R6_64R6;
2040def MULTu : MMRel, Mult<"multu", II_MULTU, GPR32Opnd, [HI0, LO0]>,
2041            MULT_FM<0, 0x19>, ISA_MIPS1_NOT_32R6_64R6;
2042let AdditionalPredicates = [NotInMicroMips] in {
2043  def SDIV  : MMRel, Div<"div", II_DIV, GPR32Opnd, [HI0, LO0]>,
2044              MULT_FM<0, 0x1a>, ISA_MIPS1_NOT_32R6_64R6;
2045  def UDIV  : MMRel, Div<"divu", II_DIVU, GPR32Opnd, [HI0, LO0]>,
2046              MULT_FM<0, 0x1b>, ISA_MIPS1_NOT_32R6_64R6;
2047}
2048def MTHI : MMRel, MoveToLOHI<"mthi", GPR32Opnd, [HI0]>, MTLO_FM<0x11>,
2049           ISA_MIPS1_NOT_32R6_64R6;
2050def MTLO : MMRel, MoveToLOHI<"mtlo", GPR32Opnd, [LO0]>, MTLO_FM<0x13>,
2051           ISA_MIPS1_NOT_32R6_64R6;
2052let EncodingPredicates = []<Predicate>, // FIXME: Lack of HasStdEnc is probably a bug
2053    AdditionalPredicates = [NotInMicroMips] in {
2054def MFHI : MMRel, MoveFromLOHI<"mfhi", GPR32Opnd, AC0>, MFLO_FM<0x10>,
2055           ISA_MIPS1_NOT_32R6_64R6;
2056def MFLO : MMRel, MoveFromLOHI<"mflo", GPR32Opnd, AC0>, MFLO_FM<0x12>,
2057           ISA_MIPS1_NOT_32R6_64R6;
2058}
2059
2060/// Sign Ext In Register Instructions.
2061def SEB : MMRel, StdMMR6Rel, SignExtInReg<"seb", i8, GPR32Opnd, II_SEB>,
2062          SEB_FM<0x10, 0x20>, ISA_MIPS32R2;
2063def SEH : MMRel, StdMMR6Rel, SignExtInReg<"seh", i16, GPR32Opnd, II_SEH>,
2064          SEB_FM<0x18, 0x20>, ISA_MIPS32R2;
2065
2066/// Count Leading
2067def CLZ : MMRel, CountLeading0<"clz", GPR32Opnd, II_CLZ>, CLO_FM<0x20>,
2068          ISA_MIPS32_NOT_32R6_64R6;
2069def CLO : MMRel, CountLeading1<"clo", GPR32Opnd, II_CLO>, CLO_FM<0x21>,
2070          ISA_MIPS32_NOT_32R6_64R6;
2071
2072let AdditionalPredicates = [NotInMicroMips] in {
2073  /// Word Swap Bytes Within Halfwords
2074  def WSBH : MMRel, SubwordSwap<"wsbh", GPR32Opnd, II_WSBH>, SEB_FM<2, 0x20>,
2075             ISA_MIPS32R2;
2076}
2077
2078/// No operation.
2079def NOP : PseudoSE<(outs), (ins), []>, PseudoInstExpansion<(SLL ZERO, ZERO, 0)>;
2080
2081// FrameIndexes are legalized when they are operands from load/store
2082// instructions. The same not happens for stack address copies, so an
2083// add op with mem ComplexPattern is used and the stack address copy
2084// can be matched. It's similar to Sparc LEA_ADDRi
2085def LEA_ADDiu : MMRel, EffectiveAddress<"addiu", GPR32Opnd>, LW_FM<9>;
2086
2087// MADD*/MSUB*
2088def MADD  : MMRel, MArithR<"madd", II_MADD, 1>, MULT_FM<0x1c, 0>,
2089            ISA_MIPS32_NOT_32R6_64R6;
2090def MADDU : MMRel, MArithR<"maddu", II_MADDU, 1>, MULT_FM<0x1c, 1>,
2091            ISA_MIPS32_NOT_32R6_64R6;
2092def MSUB  : MMRel, MArithR<"msub", II_MSUB>, MULT_FM<0x1c, 4>,
2093            ISA_MIPS32_NOT_32R6_64R6;
2094def MSUBU : MMRel, MArithR<"msubu", II_MSUBU>, MULT_FM<0x1c, 5>,
2095            ISA_MIPS32_NOT_32R6_64R6;
2096
2097let AdditionalPredicates = [NotDSP] in {
2098def PseudoMULT  : MultDivPseudo<MULT, ACC64, GPR32Opnd, MipsMult, II_MULT>,
2099                  ISA_MIPS1_NOT_32R6_64R6;
2100def PseudoMULTu : MultDivPseudo<MULTu, ACC64, GPR32Opnd, MipsMultu, II_MULTU>,
2101                  ISA_MIPS1_NOT_32R6_64R6;
2102def PseudoMFHI : PseudoMFLOHI<GPR32, ACC64, MipsMFHI>, ISA_MIPS1_NOT_32R6_64R6;
2103def PseudoMFLO : PseudoMFLOHI<GPR32, ACC64, MipsMFLO>, ISA_MIPS1_NOT_32R6_64R6;
2104def PseudoMTLOHI : PseudoMTLOHI<ACC64, GPR32>, ISA_MIPS1_NOT_32R6_64R6;
2105def PseudoMADD  : MAddSubPseudo<MADD, MipsMAdd, II_MADD>,
2106                  ISA_MIPS32_NOT_32R6_64R6;
2107def PseudoMADDU : MAddSubPseudo<MADDU, MipsMAddu, II_MADDU>,
2108                  ISA_MIPS32_NOT_32R6_64R6;
2109def PseudoMSUB  : MAddSubPseudo<MSUB, MipsMSub, II_MSUB>,
2110                  ISA_MIPS32_NOT_32R6_64R6;
2111def PseudoMSUBU : MAddSubPseudo<MSUBU, MipsMSubu, II_MSUBU>,
2112                  ISA_MIPS32_NOT_32R6_64R6;
2113}
2114
2115let AdditionalPredicates = [NotInMicroMips] in {
2116  def PseudoSDIV : MultDivPseudo<SDIV, ACC64, GPR32Opnd, MipsDivRem, II_DIV,
2117                                 0, 1, 1>, ISA_MIPS1_NOT_32R6_64R6;
2118  def PseudoUDIV : MultDivPseudo<UDIV, ACC64, GPR32Opnd, MipsDivRemU, II_DIVU,
2119                                 0, 1, 1>, ISA_MIPS1_NOT_32R6_64R6;
2120  def RDHWR : MMRel, ReadHardware<GPR32Opnd, HWRegsOpnd>, RDHWR_FM;
2121  // TODO: Add '0 < pos+size <= 32' constraint check to ext instruction
2122  def EXT : MMRel, StdMMR6Rel, ExtBase<"ext", GPR32Opnd, uimm5, uimm5_plus1,
2123                                       immZExt5, immZExt5Plus1, MipsExt>,
2124            EXT_FM<0>;
2125  def INS : MMRel, StdMMR6Rel, InsBase<"ins", GPR32Opnd, uimm5,
2126                                       uimm5_inssize_plus1, MipsIns>,
2127            EXT_FM<4>;
2128}
2129/// Move Control Registers From/To CPU Registers
2130let AdditionalPredicates = [NotInMicroMips] in {
2131  def MTC0 : MTC3OP<"mtc0", COP0Opnd, GPR32Opnd, II_MTC0>, MFC3OP_FM<0x10, 4>,
2132             ISA_MIPS32;
2133  def MFC0 : MFC3OP<"mfc0", GPR32Opnd, COP0Opnd, II_MFC0>, MFC3OP_FM<0x10, 0>,
2134             ISA_MIPS32;
2135}
2136def MFC2 : MFC3OP<"mfc2", GPR32Opnd, COP2Opnd, II_MFC2>, MFC3OP_FM<0x12, 0>;
2137def MTC2 : MTC3OP<"mtc2", COP2Opnd, GPR32Opnd, II_MTC2>, MFC3OP_FM<0x12, 4>;
2138
2139class Barrier<string asmstr, InstrItinClass itin = NoItinerary> :
2140  InstSE<(outs), (ins), asmstr, [], itin, FrmOther, asmstr>;
2141
2142def SSNOP : MMRel, StdMMR6Rel, Barrier<"ssnop", II_SSNOP>, BARRIER_FM<1>;
2143def EHB : MMRel, Barrier<"ehb", II_EHB>, BARRIER_FM<3>;
2144
2145let isCTI = 1 in
2146def PAUSE : MMRel, StdMMR6Rel, Barrier<"pause", II_PAUSE>, BARRIER_FM<5>,
2147            ISA_MIPS32R2;
2148
2149// JR_HB and JALR_HB are defined here using the new style naming
2150// scheme because some of this code is shared with Mips32r6InstrInfo.td
2151// and because of that it doesn't follow the naming convention of the
2152// rest of the file. To avoid a mixture of old vs new style, the new
2153// style was chosen.
2154class JR_HB_DESC_BASE<string instr_asm, RegisterOperand GPROpnd> {
2155  dag OutOperandList = (outs);
2156  dag InOperandList = (ins GPROpnd:$rs);
2157  string AsmString = !strconcat(instr_asm, "\t$rs");
2158  list<dag> Pattern = [];
2159}
2160
2161class JALR_HB_DESC_BASE<string instr_asm, RegisterOperand GPROpnd> {
2162  dag OutOperandList = (outs GPROpnd:$rd);
2163  dag InOperandList = (ins GPROpnd:$rs);
2164  string AsmString = !strconcat(instr_asm, "\t$rd, $rs");
2165  list<dag> Pattern = [];
2166}
2167
2168class JR_HB_DESC : InstSE<(outs), (ins), "", [], II_JR_HB, FrmJ>,
2169                   JR_HB_DESC_BASE<"jr.hb", GPR32Opnd> {
2170  let isBranch=1;
2171  let isIndirectBranch=1;
2172  let hasDelaySlot=1;
2173  let isTerminator=1;
2174  let isBarrier=1;
2175  bit isCTI = 1;
2176}
2177
2178class JALR_HB_DESC : InstSE<(outs), (ins), "", [], II_JALR_HB, FrmJ>,
2179                     JALR_HB_DESC_BASE<"jalr.hb", GPR32Opnd> {
2180  let isIndirectBranch=1;
2181  let hasDelaySlot=1;
2182  bit isCTI = 1;
2183}
2184
2185class JR_HB_ENC : JR_HB_FM<8>;
2186class JALR_HB_ENC : JALR_HB_FM<9>;
2187
2188def JR_HB : JR_HB_DESC, JR_HB_ENC, ISA_MIPS32_NOT_32R6_64R6;
2189def JALR_HB : JALR_HB_DESC, JALR_HB_ENC, ISA_MIPS32;
2190
2191class TLB<string asmstr, InstrItinClass itin = NoItinerary> :
2192  InstSE<(outs), (ins), asmstr, [], itin, FrmOther, asmstr>;
2193let AdditionalPredicates = [NotInMicroMips] in {
2194def TLBP : MMRel, TLB<"tlbp", II_TLBP>, COP0_TLB_FM<0x08>;
2195def TLBR : MMRel, TLB<"tlbr", II_TLBR>, COP0_TLB_FM<0x01>;
2196def TLBWI : MMRel, TLB<"tlbwi", II_TLBWI>, COP0_TLB_FM<0x02>;
2197def TLBWR : MMRel, TLB<"tlbwr", II_TLBWR>, COP0_TLB_FM<0x06>;
2198}
2199class CacheOp<string instr_asm, Operand MemOpnd,
2200              InstrItinClass itin = NoItinerary> :
2201    InstSE<(outs), (ins  MemOpnd:$addr, uimm5:$hint),
2202           !strconcat(instr_asm, "\t$hint, $addr"), [], itin, FrmOther,
2203           instr_asm> {
2204  let DecoderMethod = "DecodeCacheOp";
2205}
2206
2207def CACHE : MMRel, CacheOp<"cache", mem, II_CACHE>, CACHEOP_FM<0b101111>,
2208            INSN_MIPS3_32_NOT_32R6_64R6;
2209def PREF :  MMRel, CacheOp<"pref", mem, II_PREF>, CACHEOP_FM<0b110011>,
2210            INSN_MIPS3_32_NOT_32R6_64R6;
2211
2212def ROL : MipsAsmPseudoInst<(outs),
2213                            (ins GPR32Opnd:$rs, GPR32Opnd:$rt, GPR32Opnd:$rd),
2214                            "rol\t$rs, $rt, $rd">;
2215def ROLImm : MipsAsmPseudoInst<(outs),
2216                               (ins GPR32Opnd:$rs, GPR32Opnd:$rt, simm16:$imm),
2217                               "rol\t$rs, $rt, $imm">;
2218def : MipsInstAlias<"rol $rd, $rs",
2219                    (ROL GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rs), 0>;
2220def : MipsInstAlias<"rol $rd, $imm",
2221                    (ROLImm GPR32Opnd:$rd, GPR32Opnd:$rd, simm16:$imm), 0>;
2222
2223def ROR : MipsAsmPseudoInst<(outs),
2224                            (ins GPR32Opnd:$rs, GPR32Opnd:$rt, GPR32Opnd:$rd),
2225                            "ror\t$rs, $rt, $rd">;
2226def RORImm : MipsAsmPseudoInst<(outs),
2227                               (ins GPR32Opnd:$rs, GPR32Opnd:$rt, simm16:$imm),
2228                               "ror\t$rs, $rt, $imm">;
2229def : MipsInstAlias<"ror $rd, $rs",
2230                    (ROR GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rs), 0>;
2231def : MipsInstAlias<"ror $rd, $imm",
2232                    (RORImm GPR32Opnd:$rd, GPR32Opnd:$rd, simm16:$imm), 0>;
2233
2234def DROL : MipsAsmPseudoInst<(outs),
2235                             (ins GPR32Opnd:$rs, GPR32Opnd:$rt, GPR32Opnd:$rd),
2236                             "drol\t$rs, $rt, $rd">, ISA_MIPS64;
2237def DROLImm : MipsAsmPseudoInst<(outs),
2238                                (ins GPR32Opnd:$rs, GPR32Opnd:$rt, simm16:$imm),
2239                                "drol\t$rs, $rt, $imm">, ISA_MIPS64;
2240def : MipsInstAlias<"drol $rd, $rs",
2241                    (DROL GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rs), 0>, ISA_MIPS64;
2242def : MipsInstAlias<"drol $rd, $imm",
2243                    (DROLImm GPR32Opnd:$rd, GPR32Opnd:$rd, simm16:$imm), 0>, ISA_MIPS64;
2244
2245def DROR : MipsAsmPseudoInst<(outs),
2246                             (ins GPR32Opnd:$rs, GPR32Opnd:$rt, GPR32Opnd:$rd),
2247                             "dror\t$rs, $rt, $rd">, ISA_MIPS64;
2248def DRORImm : MipsAsmPseudoInst<(outs),
2249                                (ins GPR32Opnd:$rs, GPR32Opnd:$rt, simm16:$imm),
2250                                "dror\t$rs, $rt, $imm">, ISA_MIPS64;
2251def : MipsInstAlias<"dror $rd, $rs",
2252                    (DROR GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rs), 0>, ISA_MIPS64;
2253def : MipsInstAlias<"dror $rd, $imm",
2254                    (DRORImm GPR32Opnd:$rd, GPR32Opnd:$rd, simm16:$imm), 0>, ISA_MIPS64;
2255
2256def ABSMacro : MipsAsmPseudoInst<(outs GPR32Opnd:$rd), (ins GPR32Opnd:$rs),
2257                                 "abs\t$rd, $rs">;
2258
2259//===----------------------------------------------------------------------===//
2260// Instruction aliases
2261//===----------------------------------------------------------------------===//
2262def : MipsInstAlias<"move $dst, $src",
2263                    (OR GPR32Opnd:$dst, GPR32Opnd:$src, ZERO), 1>,
2264      GPR_32 {
2265  let AdditionalPredicates = [NotInMicroMips];
2266}
2267def : MipsInstAlias<"move $dst, $src",
2268                    (ADDu GPR32Opnd:$dst, GPR32Opnd:$src, ZERO), 1>,
2269      GPR_32 {
2270  let AdditionalPredicates = [NotInMicroMips];
2271}
2272def : MipsInstAlias<"bal $offset", (BGEZAL ZERO, brtarget:$offset), 0>,
2273      ISA_MIPS1_NOT_32R6_64R6;
2274def : MipsInstAlias<
2275          "addu $rs, $rt, $imm",
2276          (ADDiu GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>;
2277def : MipsInstAlias<
2278          "addu $rs, $imm",
2279          (ADDiu GPR32Opnd:$rs, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>;
2280def : MipsInstAlias<
2281          "add $rs, $rt, $imm",
2282          (ADDi GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>,
2283          ISA_MIPS1_NOT_32R6_64R6;
2284def : MipsInstAlias<
2285          "add $rs, $imm",
2286          (ADDi GPR32Opnd:$rs, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>,
2287          ISA_MIPS1_NOT_32R6_64R6;
2288def : MipsInstAlias<
2289          "and $rs, $rt, $imm",
2290          (ANDi GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>;
2291def : MipsInstAlias<
2292          "and $rs, $imm",
2293          (ANDi GPR32Opnd:$rs, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>;
2294def : MipsInstAlias<"j $rs", (JR GPR32Opnd:$rs), 0>;
2295let Predicates = [NotInMicroMips] in {
2296def : MipsInstAlias<"jalr $rs", (JALR RA, GPR32Opnd:$rs), 0>;
2297}
2298def : MipsInstAlias<"jalr.hb $rs", (JALR_HB RA, GPR32Opnd:$rs), 1>, ISA_MIPS32;
2299def : MipsInstAlias<"neg $rt, $rs",
2300                    (SUB GPR32Opnd:$rt, ZERO, GPR32Opnd:$rs), 1>;
2301def : MipsInstAlias<"neg $rt",
2302                    (SUB GPR32Opnd:$rt, ZERO, GPR32Opnd:$rt), 1>;
2303def : MipsInstAlias<"negu $rt, $rs",
2304                    (SUBu GPR32Opnd:$rt, ZERO, GPR32Opnd:$rs), 1>;
2305def : MipsInstAlias<"negu $rt",
2306                    (SUBu GPR32Opnd:$rt, ZERO, GPR32Opnd:$rt), 1>;
2307let AdditionalPredicates = [NotInMicroMips] in {
2308  def : MipsInstAlias<
2309          "sgt $rd, $rs, $rt",
2310          (SLT GPR32Opnd:$rd, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>;
2311  def : MipsInstAlias<
2312          "sgt $rs, $rt",
2313          (SLT GPR32Opnd:$rs, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>;
2314  def : MipsInstAlias<
2315          "sgtu $rd, $rs, $rt",
2316          (SLTu GPR32Opnd:$rd, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>;
2317  def : MipsInstAlias<
2318          "sgtu $$rs, $rt",
2319          (SLTu GPR32Opnd:$rs, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>;
2320  def : MipsInstAlias<
2321          "slt $rs, $rt, $imm",
2322          (SLTi GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>;
2323  def : MipsInstAlias<
2324          "sltu $rt, $rs, $imm",
2325          (SLTiu GPR32Opnd:$rt, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>;
2326  def : MipsInstAlias<
2327          "and $rs, $rt, $imm",
2328          (ANDi GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>;
2329  def : MipsInstAlias<
2330          "and $rs, $imm",
2331          (ANDi GPR32Opnd:$rs, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>;
2332  def : MipsInstAlias<
2333          "xor $rs, $rt, $imm",
2334          (XORi GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>;
2335  def : MipsInstAlias<
2336          "xor $rs, $imm",
2337          (XORi GPR32Opnd:$rs, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>;
2338  def : MipsInstAlias<
2339          "or $rs, $rt, $imm",
2340          (ORi GPR32Opnd:$rs, GPR32Opnd:$rt, simm32_relaxed:$imm), 0>;
2341  def : MipsInstAlias<
2342          "or $rs, $imm",
2343          (ORi GPR32Opnd:$rs, GPR32Opnd:$rs, simm32_relaxed:$imm), 0>;
2344  def : MipsInstAlias<
2345          "not $rt, $rs",
2346          (NOR GPR32Opnd:$rt, GPR32Opnd:$rs, ZERO), 0>;
2347  def : MipsInstAlias<"nop", (SLL ZERO, ZERO, 0), 1>;
2348}
2349def : MipsInstAlias<"mfc0 $rt, $rd", (MFC0 GPR32Opnd:$rt, COP0Opnd:$rd, 0), 0>;
2350def : MipsInstAlias<"mtc0 $rt, $rd", (MTC0 COP0Opnd:$rd, GPR32Opnd:$rt, 0), 0>;
2351def : MipsInstAlias<"mfc2 $rt, $rd", (MFC2 GPR32Opnd:$rt, COP2Opnd:$rd, 0), 0>;
2352def : MipsInstAlias<"mtc2 $rt, $rd", (MTC2 COP2Opnd:$rd, GPR32Opnd:$rt, 0), 0>;
2353let AdditionalPredicates = [NotInMicroMips] in {
2354def : MipsInstAlias<"b $offset", (BEQ ZERO, ZERO, brtarget:$offset), 0>;
2355}
2356def : MipsInstAlias<"bnez $rs,$offset",
2357                    (BNE GPR32Opnd:$rs, ZERO, brtarget:$offset), 0>;
2358def : MipsInstAlias<"bnezl $rs,$offset",
2359                    (BNEL GPR32Opnd:$rs, ZERO, brtarget:$offset), 0>;
2360def : MipsInstAlias<"beqz $rs,$offset",
2361                    (BEQ GPR32Opnd:$rs, ZERO, brtarget:$offset), 0>;
2362def : MipsInstAlias<"beqzl $rs,$offset",
2363                    (BEQL GPR32Opnd:$rs, ZERO, brtarget:$offset), 0>;
2364let AdditionalPredicates = [NotInMicroMips] in {
2365  def : MipsInstAlias<"syscall", (SYSCALL 0), 1>;
2366}
2367
2368def : MipsInstAlias<"break", (BREAK 0, 0), 1>;
2369def : MipsInstAlias<"break $imm", (BREAK uimm10:$imm, 0), 1>;
2370let AdditionalPredicates = [NotInMicroMips] in {
2371  def : MipsInstAlias<"ei", (EI ZERO), 1>, ISA_MIPS32R2;
2372  def : MipsInstAlias<"di", (DI ZERO), 1>, ISA_MIPS32R2;
2373}
2374let AdditionalPredicates = [NotInMicroMips] in {
2375  def : MipsInstAlias<"teq $rs, $rt",
2376                      (TEQ GPR32Opnd:$rs, GPR32Opnd:$rt, 0), 1>, ISA_MIPS2;
2377  def : MipsInstAlias<"tge $rs, $rt",
2378                      (TGE GPR32Opnd:$rs, GPR32Opnd:$rt, 0), 1>, ISA_MIPS2;
2379  def : MipsInstAlias<"tgeu $rs, $rt",
2380                      (TGEU GPR32Opnd:$rs, GPR32Opnd:$rt, 0), 1>, ISA_MIPS2;
2381  def : MipsInstAlias<"tlt $rs, $rt",
2382                      (TLT GPR32Opnd:$rs, GPR32Opnd:$rt, 0), 1>, ISA_MIPS2;
2383  def : MipsInstAlias<"tltu $rs, $rt",
2384                      (TLTU GPR32Opnd:$rs, GPR32Opnd:$rt, 0), 1>, ISA_MIPS2;
2385  def : MipsInstAlias<"tne $rs, $rt",
2386                      (TNE GPR32Opnd:$rs, GPR32Opnd:$rt, 0), 1>, ISA_MIPS2;
2387}
2388def : MipsInstAlias<"sub, $rd, $rs, $imm",
2389                    (ADDi GPR32Opnd:$rd, GPR32Opnd:$rs,
2390                          InvertedImOperand:$imm), 0>, ISA_MIPS1_NOT_32R6_64R6;
2391def : MipsInstAlias<"sub $rs, $imm",
2392                    (ADDi GPR32Opnd:$rs, GPR32Opnd:$rs, InvertedImOperand:$imm),
2393                    0>, ISA_MIPS1_NOT_32R6_64R6;
2394def : MipsInstAlias<"subu, $rd, $rs, $imm",
2395                    (ADDiu GPR32Opnd:$rd, GPR32Opnd:$rs,
2396                           InvertedImOperand:$imm), 0>;
2397def : MipsInstAlias<"subu $rs, $imm", (ADDiu GPR32Opnd:$rs, GPR32Opnd:$rs,
2398                                             InvertedImOperand:$imm), 0>;
2399let AdditionalPredicates = [NotInMicroMips] in {
2400  def : MipsInstAlias<"sll $rd, $rt, $rs",
2401                      (SLLV GPR32Opnd:$rd, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>;
2402  def : MipsInstAlias<"sra $rd, $rt, $rs",
2403                      (SRAV GPR32Opnd:$rd, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>;
2404  def : MipsInstAlias<"srl $rd, $rt, $rs",
2405                      (SRLV GPR32Opnd:$rd, GPR32Opnd:$rt, GPR32Opnd:$rs), 0>;
2406  def : MipsInstAlias<"sll $rd, $rt",
2407                      (SLLV GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rt), 0>;
2408  def : MipsInstAlias<"sra $rd, $rt",
2409                      (SRAV GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rt), 0>;
2410  def : MipsInstAlias<"srl $rd, $rt",
2411                      (SRLV GPR32Opnd:$rd, GPR32Opnd:$rd, GPR32Opnd:$rt), 0>;
2412}
2413def : MipsInstAlias<"sdbbp", (SDBBP 0)>, ISA_MIPS32_NOT_32R6_64R6;
2414def : MipsInstAlias<"sync",
2415                    (SYNC 0), 1>, ISA_MIPS2;
2416//===----------------------------------------------------------------------===//
2417// Assembler Pseudo Instructions
2418//===----------------------------------------------------------------------===//
2419
2420// We use uimm32_coerced to accept a 33 bit signed number that is rendered into
2421// a 32 bit number.
2422class LoadImmediate32<string instr_asm, Operand Od, RegisterOperand RO> :
2423  MipsAsmPseudoInst<(outs RO:$rt), (ins Od:$imm32),
2424                     !strconcat(instr_asm, "\t$rt, $imm32")> ;
2425def LoadImm32 : LoadImmediate32<"li", uimm32_coerced, GPR32Opnd>;
2426
2427class LoadAddressFromReg32<string instr_asm, Operand MemOpnd,
2428                           RegisterOperand RO> :
2429  MipsAsmPseudoInst<(outs RO:$rt), (ins MemOpnd:$addr),
2430                     !strconcat(instr_asm, "\t$rt, $addr")> ;
2431def LoadAddrReg32 : LoadAddressFromReg32<"la", mem, GPR32Opnd>;
2432
2433class LoadAddressFromImm32<string instr_asm, Operand Od, RegisterOperand RO> :
2434  MipsAsmPseudoInst<(outs RO:$rt), (ins Od:$imm32),
2435                     !strconcat(instr_asm, "\t$rt, $imm32")> ;
2436def LoadAddrImm32 : LoadAddressFromImm32<"la", i32imm, GPR32Opnd>;
2437
2438def JalTwoReg : MipsAsmPseudoInst<(outs GPR32Opnd:$rd), (ins GPR32Opnd:$rs),
2439                      "jal\t$rd, $rs"> ;
2440def JalOneReg : MipsAsmPseudoInst<(outs), (ins GPR32Opnd:$rs),
2441                      "jal\t$rs"> ;
2442
2443def NORImm : MipsAsmPseudoInst<
2444                 (outs), (ins GPR32Opnd:$rs, GPR32Opnd:$rt, simm32:$imm),
2445                 "nor\t$rs, $rt, $imm"> ;
2446
2447let hasDelaySlot = 1, isCTI = 1 in {
2448def BneImm : MipsAsmPseudoInst<(outs GPR32Opnd:$rt),
2449                               (ins imm64:$imm64, brtarget:$offset),
2450                               "bne\t$rt, $imm64, $offset">;
2451def BeqImm : MipsAsmPseudoInst<(outs GPR32Opnd:$rt),
2452                               (ins imm64:$imm64, brtarget:$offset),
2453                               "beq\t$rt, $imm64, $offset">;
2454
2455class CondBranchPseudo<string instr_asm> :
2456  MipsAsmPseudoInst<(outs), (ins GPR32Opnd:$rs, GPR32Opnd:$rt,
2457                                 brtarget:$offset),
2458                    !strconcat(instr_asm, "\t$rs, $rt, $offset")>;
2459}
2460
2461def BLT : CondBranchPseudo<"blt">;
2462def BLE : CondBranchPseudo<"ble">;
2463def BGE : CondBranchPseudo<"bge">;
2464def BGT : CondBranchPseudo<"bgt">;
2465def BLTU : CondBranchPseudo<"bltu">;
2466def BLEU : CondBranchPseudo<"bleu">;
2467def BGEU : CondBranchPseudo<"bgeu">;
2468def BGTU : CondBranchPseudo<"bgtu">;
2469def BLTL : CondBranchPseudo<"bltl">, ISA_MIPS2_NOT_32R6_64R6;
2470def BLEL : CondBranchPseudo<"blel">, ISA_MIPS2_NOT_32R6_64R6;
2471def BGEL : CondBranchPseudo<"bgel">, ISA_MIPS2_NOT_32R6_64R6;
2472def BGTL : CondBranchPseudo<"bgtl">, ISA_MIPS2_NOT_32R6_64R6;
2473def BLTUL: CondBranchPseudo<"bltul">, ISA_MIPS2_NOT_32R6_64R6;
2474def BLEUL: CondBranchPseudo<"bleul">, ISA_MIPS2_NOT_32R6_64R6;
2475def BGEUL: CondBranchPseudo<"bgeul">, ISA_MIPS2_NOT_32R6_64R6;
2476def BGTUL: CondBranchPseudo<"bgtul">, ISA_MIPS2_NOT_32R6_64R6;
2477
2478let isCTI = 1 in
2479class CondBranchImmPseudo<string instr_asm> :
2480  MipsAsmPseudoInst<(outs), (ins GPR32Opnd:$rs, imm64:$imm, brtarget:$offset),
2481                    !strconcat(instr_asm, "\t$rs, $imm, $offset")>;
2482
2483def BLTImmMacro  : CondBranchImmPseudo<"blt">;
2484def BLEImmMacro  : CondBranchImmPseudo<"ble">;
2485def BGEImmMacro  : CondBranchImmPseudo<"bge">;
2486def BGTImmMacro  : CondBranchImmPseudo<"bgt">;
2487def BLTUImmMacro : CondBranchImmPseudo<"bltu">;
2488def BLEUImmMacro : CondBranchImmPseudo<"bleu">;
2489def BGEUImmMacro : CondBranchImmPseudo<"bgeu">;
2490def BGTUImmMacro : CondBranchImmPseudo<"bgtu">;
2491def BLTLImmMacro : CondBranchImmPseudo<"bltl">, ISA_MIPS2_NOT_32R6_64R6;
2492def BLELImmMacro : CondBranchImmPseudo<"blel">, ISA_MIPS2_NOT_32R6_64R6;
2493def BGELImmMacro : CondBranchImmPseudo<"bgel">, ISA_MIPS2_NOT_32R6_64R6;
2494def BGTLImmMacro : CondBranchImmPseudo<"bgtl">, ISA_MIPS2_NOT_32R6_64R6;
2495def BLTULImmMacro : CondBranchImmPseudo<"bltul">, ISA_MIPS2_NOT_32R6_64R6;
2496def BLEULImmMacro : CondBranchImmPseudo<"bleul">, ISA_MIPS2_NOT_32R6_64R6;
2497def BGEULImmMacro : CondBranchImmPseudo<"bgeul">, ISA_MIPS2_NOT_32R6_64R6;
2498def BGTULImmMacro : CondBranchImmPseudo<"bgtul">, ISA_MIPS2_NOT_32R6_64R6;
2499
2500// FIXME: Predicates are removed because instructions are matched regardless of
2501// predicates, because PredicateControl was not in the hierarchy. This was
2502// done to emit more precise error message from expansion function.
2503// Once the tablegen-erated errors are made better, this needs to be fixed and
2504// predicates needs to be restored.
2505
2506def SDivMacro : MipsAsmPseudoInst<(outs GPR32Opnd:$rd),
2507                                  (ins GPR32Opnd:$rs, GPR32Opnd:$rt),
2508                                  "div\t$rd, $rs, $rt">,
2509                ISA_MIPS1_NOT_32R6_64R6;
2510def UDivMacro : MipsAsmPseudoInst<(outs GPR32Opnd:$rd),
2511                                  (ins GPR32Opnd:$rs, GPR32Opnd:$rt),
2512                                  "divu\t$rd, $rs, $rt">,
2513                ISA_MIPS1_NOT_32R6_64R6;
2514def : MipsInstAlias<"div $rt, $rs", (SDivMacro GPR32Opnd:$rt, GPR32Opnd:$rt,
2515                                               GPR32Opnd:$rs), 0>,
2516      ISA_MIPS1_NOT_32R6_64R6;
2517def : MipsInstAlias<"divu $rt, $rs", (UDivMacro GPR32Opnd:$rt, GPR32Opnd:$rt,
2518                                                GPR32Opnd:$rs), 0>,
2519      ISA_MIPS1_NOT_32R6_64R6;
2520def DSDivMacro : MipsAsmPseudoInst<(outs GPR32Opnd:$rd),
2521                                   (ins GPR32Opnd:$rs, GPR32Opnd:$rt),
2522                                   "ddiv\t$rd, $rs, $rt">,
2523                 ISA_MIPS64_NOT_64R6;
2524def DUDivMacro : MipsAsmPseudoInst<(outs GPR32Opnd:$rd),
2525                                   (ins GPR32Opnd:$rs, GPR32Opnd:$rt),
2526                                   "ddivu\t$rd, $rs, $rt">,
2527                 ISA_MIPS64_NOT_64R6;
2528def : MipsInstAlias<"ddiv $rt, $rs", (DSDivMacro GPR32Opnd:$rt, GPR32Opnd:$rt,
2529                                                 GPR32Opnd:$rs), 0>,
2530      ISA_MIPS64_NOT_64R6;
2531def : MipsInstAlias<"ddivu $rt, $rs", (DUDivMacro GPR32Opnd:$rt, GPR32Opnd:$rt,
2532                                                  GPR32Opnd:$rs), 0>,
2533      ISA_MIPS64_NOT_64R6;
2534
2535def Ulh : MipsAsmPseudoInst<(outs GPR32Opnd:$rt), (ins mem:$addr),
2536                            "ulh\t$rt, $addr">; //, ISA_MIPS1_NOT_32R6_64R6;
2537
2538def Ulhu : MipsAsmPseudoInst<(outs GPR32Opnd:$rt), (ins mem:$addr),
2539                             "ulhu\t$rt, $addr">; //, ISA_MIPS1_NOT_32R6_64R6;
2540
2541def Ulw : MipsAsmPseudoInst<(outs GPR32Opnd:$rt), (ins mem:$addr),
2542                            "ulw\t$rt, $addr">; //, ISA_MIPS1_NOT_32R6_64R6;
2543
2544//===----------------------------------------------------------------------===//
2545//  Arbitrary patterns that map to one or more instructions
2546//===----------------------------------------------------------------------===//
2547
2548// Load/store pattern templates.
2549class LoadRegImmPat<Instruction LoadInst, ValueType ValTy, PatFrag Node> :
2550  MipsPat<(ValTy (Node addrRegImm:$a)), (LoadInst addrRegImm:$a)>;
2551
2552class StoreRegImmPat<Instruction StoreInst, ValueType ValTy> :
2553  MipsPat<(store ValTy:$v, addrRegImm:$a), (StoreInst ValTy:$v, addrRegImm:$a)>;
2554
2555// Materialize constants.
2556multiclass MaterializeImms<ValueType VT, Register ZEROReg,
2557                           Instruction ADDiuOp, Instruction LUiOp,
2558                           Instruction ORiOp> {
2559
2560// Small immediates
2561def : MipsPat<(VT immSExt16:$imm), (ADDiuOp ZEROReg, imm:$imm)>;
2562def : MipsPat<(VT immZExt16:$imm), (ORiOp ZEROReg, imm:$imm)>;
2563
2564// Bits 32-16 set, sign/zero extended.
2565def : MipsPat<(VT immSExt32Low16Zero:$imm), (LUiOp (HI16 imm:$imm))>;
2566
2567// Arbitrary immediates
2568def : MipsPat<(VT immSExt32:$imm), (ORiOp (LUiOp (HI16 imm:$imm)), (LO16 imm:$imm))>;
2569}
2570
2571let AdditionalPredicates = [NotInMicroMips] in
2572  defm : MaterializeImms<i32, ZERO, ADDiu, LUi, ORi>;
2573
2574// Carry MipsPatterns
2575let AdditionalPredicates = [NotInMicroMips] in {
2576  def : MipsPat<(subc GPR32:$lhs, GPR32:$rhs),
2577                (SUBu GPR32:$lhs, GPR32:$rhs)>;
2578}
2579def : MipsPat<(addc GPR32:$lhs, GPR32:$rhs),
2580              (ADDu GPR32:$lhs, GPR32:$rhs)>, ASE_NOT_DSP;
2581def : MipsPat<(addc  GPR32:$src, immSExt16:$imm),
2582              (ADDiu GPR32:$src, imm:$imm)>, ASE_NOT_DSP;
2583
2584// Support multiplication for pre-Mips32 targets that don't have
2585// the MUL instruction.
2586def : MipsPat<(mul GPR32:$lhs, GPR32:$rhs),
2587              (PseudoMFLO (PseudoMULT GPR32:$lhs, GPR32:$rhs))>,
2588      ISA_MIPS1_NOT_32R6_64R6;
2589
2590// SYNC
2591def : MipsPat<(MipsSync (i32 immz)),
2592              (SYNC 0)>, ISA_MIPS2;
2593
2594// Call
2595def : MipsPat<(MipsJmpLink (i32 texternalsym:$dst)),
2596              (JAL texternalsym:$dst)>;
2597//def : MipsPat<(MipsJmpLink GPR32:$dst),
2598//              (JALR GPR32:$dst)>;
2599
2600// Tail call
2601def : MipsPat<(MipsTailCall (iPTR tglobaladdr:$dst)),
2602              (TAILCALL tglobaladdr:$dst)>;
2603def : MipsPat<(MipsTailCall (iPTR texternalsym:$dst)),
2604              (TAILCALL texternalsym:$dst)>;
2605// hi/lo relocs
2606def : MipsPat<(MipsHi tglobaladdr:$in), (LUi tglobaladdr:$in)>;
2607def : MipsPat<(MipsHi tblockaddress:$in), (LUi tblockaddress:$in)>;
2608def : MipsPat<(MipsHi tjumptable:$in), (LUi tjumptable:$in)>;
2609def : MipsPat<(MipsHi tconstpool:$in), (LUi tconstpool:$in)>;
2610def : MipsPat<(MipsHi tglobaltlsaddr:$in), (LUi tglobaltlsaddr:$in)>;
2611def : MipsPat<(MipsHi texternalsym:$in), (LUi texternalsym:$in)>;
2612
2613def : MipsPat<(MipsLo tglobaladdr:$in), (ADDiu ZERO, tglobaladdr:$in)>;
2614def : MipsPat<(MipsLo tblockaddress:$in), (ADDiu ZERO, tblockaddress:$in)>;
2615def : MipsPat<(MipsLo tjumptable:$in), (ADDiu ZERO, tjumptable:$in)>;
2616def : MipsPat<(MipsLo tconstpool:$in), (ADDiu ZERO, tconstpool:$in)>;
2617def : MipsPat<(MipsLo tglobaltlsaddr:$in), (ADDiu ZERO, tglobaltlsaddr:$in)>;
2618def : MipsPat<(MipsLo texternalsym:$in), (ADDiu ZERO, texternalsym:$in)>;
2619
2620def : MipsPat<(add GPR32:$hi, (MipsLo tglobaladdr:$lo)),
2621              (ADDiu GPR32:$hi, tglobaladdr:$lo)>;
2622def : MipsPat<(add GPR32:$hi, (MipsLo tblockaddress:$lo)),
2623              (ADDiu GPR32:$hi, tblockaddress:$lo)>;
2624def : MipsPat<(add GPR32:$hi, (MipsLo tjumptable:$lo)),
2625              (ADDiu GPR32:$hi, tjumptable:$lo)>;
2626def : MipsPat<(add GPR32:$hi, (MipsLo tconstpool:$lo)),
2627              (ADDiu GPR32:$hi, tconstpool:$lo)>;
2628def : MipsPat<(add GPR32:$hi, (MipsLo tglobaltlsaddr:$lo)),
2629              (ADDiu GPR32:$hi, tglobaltlsaddr:$lo)>;
2630
2631// gp_rel relocs
2632def : MipsPat<(add GPR32:$gp, (MipsGPRel tglobaladdr:$in)),
2633              (ADDiu GPR32:$gp, tglobaladdr:$in)>;
2634def : MipsPat<(add GPR32:$gp, (MipsGPRel tconstpool:$in)),
2635              (ADDiu GPR32:$gp, tconstpool:$in)>;
2636
2637// wrapper_pic
2638class WrapperPat<SDNode node, Instruction ADDiuOp, RegisterClass RC>:
2639      MipsPat<(MipsWrapper RC:$gp, node:$in),
2640              (ADDiuOp RC:$gp, node:$in)>;
2641
2642def : WrapperPat<tglobaladdr, ADDiu, GPR32>;
2643def : WrapperPat<tconstpool, ADDiu, GPR32>;
2644def : WrapperPat<texternalsym, ADDiu, GPR32>;
2645def : WrapperPat<tblockaddress, ADDiu, GPR32>;
2646def : WrapperPat<tjumptable, ADDiu, GPR32>;
2647def : WrapperPat<tglobaltlsaddr, ADDiu, GPR32>;
2648
2649let AdditionalPredicates = [NotInMicroMips] in {
2650// Mips does not have "not", so we expand our way
2651def : MipsPat<(not GPR32:$in),
2652              (NOR GPR32Opnd:$in, ZERO)>;
2653}
2654
2655// extended loads
2656def : MipsPat<(i32 (extloadi1  addr:$src)), (LBu addr:$src)>;
2657def : MipsPat<(i32 (extloadi8  addr:$src)), (LBu addr:$src)>;
2658let AdditionalPredicates = [NotInMicroMips] in {
2659  def : MipsPat<(i32 (extloadi16 addr:$src)), (LHu addr:$src)>;
2660}
2661
2662// peepholes
2663def : MipsPat<(store (i32 0), addr:$dst), (SW ZERO, addr:$dst)>;
2664
2665// brcond patterns
2666multiclass BrcondPats<RegisterClass RC, Instruction BEQOp, Instruction BEQOp1,
2667                      Instruction BNEOp, Instruction SLTOp, Instruction SLTuOp,
2668                      Instruction SLTiOp, Instruction SLTiuOp,
2669                      Register ZEROReg> {
2670def : MipsPat<(brcond (i32 (setne RC:$lhs, 0)), bb:$dst),
2671              (BNEOp RC:$lhs, ZEROReg, bb:$dst)>;
2672def : MipsPat<(brcond (i32 (seteq RC:$lhs, 0)), bb:$dst),
2673              (BEQOp RC:$lhs, ZEROReg, bb:$dst)>;
2674
2675def : MipsPat<(brcond (i32 (setge RC:$lhs, RC:$rhs)), bb:$dst),
2676              (BEQOp1 (SLTOp RC:$lhs, RC:$rhs), ZERO, bb:$dst)>;
2677def : MipsPat<(brcond (i32 (setuge RC:$lhs, RC:$rhs)), bb:$dst),
2678              (BEQOp1 (SLTuOp RC:$lhs, RC:$rhs), ZERO, bb:$dst)>;
2679def : MipsPat<(brcond (i32 (setge RC:$lhs, immSExt16:$rhs)), bb:$dst),
2680              (BEQOp1 (SLTiOp RC:$lhs, immSExt16:$rhs), ZERO, bb:$dst)>;
2681def : MipsPat<(brcond (i32 (setuge RC:$lhs, immSExt16:$rhs)), bb:$dst),
2682              (BEQOp1 (SLTiuOp RC:$lhs, immSExt16:$rhs), ZERO, bb:$dst)>;
2683def : MipsPat<(brcond (i32 (setgt RC:$lhs, immSExt16Plus1:$rhs)), bb:$dst),
2684              (BEQOp1 (SLTiOp RC:$lhs, (Plus1 imm:$rhs)), ZERO, bb:$dst)>;
2685def : MipsPat<(brcond (i32 (setugt RC:$lhs, immSExt16Plus1:$rhs)), bb:$dst),
2686              (BEQOp1 (SLTiuOp RC:$lhs, (Plus1 imm:$rhs)), ZERO, bb:$dst)>;
2687
2688def : MipsPat<(brcond (i32 (setle RC:$lhs, RC:$rhs)), bb:$dst),
2689              (BEQOp1 (SLTOp RC:$rhs, RC:$lhs), ZERO, bb:$dst)>;
2690def : MipsPat<(brcond (i32 (setule RC:$lhs, RC:$rhs)), bb:$dst),
2691              (BEQOp1 (SLTuOp RC:$rhs, RC:$lhs), ZERO, bb:$dst)>;
2692
2693def : MipsPat<(brcond RC:$cond, bb:$dst),
2694              (BNEOp RC:$cond, ZEROReg, bb:$dst)>;
2695}
2696let AdditionalPredicates = [NotInMicroMips] in {
2697  defm : BrcondPats<GPR32, BEQ, BEQ, BNE, SLT, SLTu, SLTi, SLTiu, ZERO>;
2698}
2699def : MipsPat<(brcond (i32 (setlt i32:$lhs, 1)), bb:$dst),
2700              (BLEZ i32:$lhs, bb:$dst)>;
2701def : MipsPat<(brcond (i32 (setgt i32:$lhs, -1)), bb:$dst),
2702              (BGEZ i32:$lhs, bb:$dst)>;
2703
2704// setcc patterns
2705multiclass SeteqPats<RegisterClass RC, Instruction SLTiuOp, Instruction XOROp,
2706                     Instruction SLTuOp, Register ZEROReg> {
2707  def : MipsPat<(seteq RC:$lhs, 0),
2708                (SLTiuOp RC:$lhs, 1)>;
2709  def : MipsPat<(setne RC:$lhs, 0),
2710                (SLTuOp ZEROReg, RC:$lhs)>;
2711  def : MipsPat<(seteq RC:$lhs, RC:$rhs),
2712                (SLTiuOp (XOROp RC:$lhs, RC:$rhs), 1)>;
2713  def : MipsPat<(setne RC:$lhs, RC:$rhs),
2714                (SLTuOp ZEROReg, (XOROp RC:$lhs, RC:$rhs))>;
2715}
2716
2717multiclass SetlePats<RegisterClass RC, Instruction XORiOp, Instruction SLTOp,
2718                     Instruction SLTuOp> {
2719  def : MipsPat<(setle RC:$lhs, RC:$rhs),
2720                (XORiOp (SLTOp RC:$rhs, RC:$lhs), 1)>;
2721  def : MipsPat<(setule RC:$lhs, RC:$rhs),
2722                (XORiOp (SLTuOp RC:$rhs, RC:$lhs), 1)>;
2723}
2724
2725multiclass SetgtPats<RegisterClass RC, Instruction SLTOp, Instruction SLTuOp> {
2726  def : MipsPat<(setgt RC:$lhs, RC:$rhs),
2727                (SLTOp RC:$rhs, RC:$lhs)>;
2728  def : MipsPat<(setugt RC:$lhs, RC:$rhs),
2729                (SLTuOp RC:$rhs, RC:$lhs)>;
2730}
2731
2732multiclass SetgePats<RegisterClass RC, Instruction XORiOp, Instruction SLTOp,
2733                     Instruction SLTuOp> {
2734  def : MipsPat<(setge RC:$lhs, RC:$rhs),
2735                (XORiOp (SLTOp RC:$lhs, RC:$rhs), 1)>;
2736  def : MipsPat<(setuge RC:$lhs, RC:$rhs),
2737                (XORiOp (SLTuOp RC:$lhs, RC:$rhs), 1)>;
2738}
2739
2740multiclass SetgeImmPats<RegisterClass RC, Instruction XORiOp,
2741                        Instruction SLTiOp, Instruction SLTiuOp> {
2742  def : MipsPat<(setge RC:$lhs, immSExt16:$rhs),
2743                (XORiOp (SLTiOp RC:$lhs, immSExt16:$rhs), 1)>;
2744  def : MipsPat<(setuge RC:$lhs, immSExt16:$rhs),
2745                (XORiOp (SLTiuOp RC:$lhs, immSExt16:$rhs), 1)>;
2746}
2747
2748let AdditionalPredicates = [NotInMicroMips] in {
2749  defm : SeteqPats<GPR32, SLTiu, XOR, SLTu, ZERO>;
2750  defm : SetlePats<GPR32, XORi, SLT, SLTu>;
2751  defm : SetgtPats<GPR32, SLT, SLTu>;
2752  defm : SetgePats<GPR32, XORi, SLT, SLTu>;
2753  defm : SetgeImmPats<GPR32, XORi, SLTi, SLTiu>;
2754}
2755
2756// bswap pattern
2757def : MipsPat<(bswap GPR32:$rt), (ROTR (WSBH GPR32:$rt), 16)>;
2758
2759// Load halfword/word patterns.
2760let AddedComplexity = 40 in {
2761  def : LoadRegImmPat<LBu, i32, zextloadi8>;
2762  let AdditionalPredicates = [NotInMicroMips] in {
2763    def : LoadRegImmPat<LH, i32, sextloadi16>;
2764    def : LoadRegImmPat<LW, i32, load>;
2765  }
2766}
2767
2768// Atomic load patterns.
2769def : MipsPat<(atomic_load_8 addr:$a), (LB addr:$a)>;
2770let AdditionalPredicates = [NotInMicroMips] in {
2771  def : MipsPat<(atomic_load_16 addr:$a), (LH addr:$a)>;
2772}
2773def : MipsPat<(atomic_load_32 addr:$a), (LW addr:$a)>;
2774
2775// Atomic store patterns.
2776def : MipsPat<(atomic_store_8 addr:$a, GPR32:$v), (SB GPR32:$v, addr:$a)>;
2777def : MipsPat<(atomic_store_16 addr:$a, GPR32:$v), (SH GPR32:$v, addr:$a)>;
2778def : MipsPat<(atomic_store_32 addr:$a, GPR32:$v), (SW GPR32:$v, addr:$a)>;
2779
2780//===----------------------------------------------------------------------===//
2781// Floating Point Support
2782//===----------------------------------------------------------------------===//
2783
2784include "MipsInstrFPU.td"
2785include "Mips64InstrInfo.td"
2786include "MipsCondMov.td"
2787
2788include "Mips32r6InstrInfo.td"
2789include "Mips64r6InstrInfo.td"
2790
2791//
2792// Mips16
2793
2794include "Mips16InstrFormats.td"
2795include "Mips16InstrInfo.td"
2796
2797// DSP
2798include "MipsDSPInstrFormats.td"
2799include "MipsDSPInstrInfo.td"
2800
2801// MSA
2802include "MipsMSAInstrFormats.td"
2803include "MipsMSAInstrInfo.td"
2804
2805// EVA
2806include "MipsEVAInstrFormats.td"
2807include "MipsEVAInstrInfo.td"
2808
2809// Micromips
2810include "MicroMipsInstrFormats.td"
2811include "MicroMipsInstrInfo.td"
2812include "MicroMipsInstrFPU.td"
2813
2814// Micromips r6
2815include "MicroMips32r6InstrFormats.td"
2816include "MicroMips32r6InstrInfo.td"
2817
2818// Micromips64 r6
2819include "MicroMips64r6InstrFormats.td"
2820include "MicroMips64r6InstrInfo.td"
2821
2822// Micromips DSP
2823include "MicroMipsDSPInstrFormats.td"
2824include "MicroMipsDSPInstrInfo.td"
2825