1//===-- MipsInstrFPU.td - Mips FPU Instruction Information -*- 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 describes the Mips FPU instruction set.
11//
12//===----------------------------------------------------------------------===//
13
14//===----------------------------------------------------------------------===//
15// Floating Point Instructions
16// ------------------------
17// * 64bit fp:
18//    - 32 64-bit registers (default mode)
19//    - 16 even 32-bit registers (32-bit compatible mode) for
20//      single and double access.
21// * 32bit fp:
22//    - 16 even 32-bit registers - single and double (aliased)
23//    - 32 32-bit registers (within single-only mode)
24//===----------------------------------------------------------------------===//
25
26// Floating Point Compare and Branch
27def SDT_MipsFPBrcond : SDTypeProfile<0, 3, [SDTCisInt<0>,
28                                            SDTCisVT<1, i32>,
29                                            SDTCisVT<2, OtherVT>]>;
30def SDT_MipsFPCmp : SDTypeProfile<0, 3, [SDTCisSameAs<0, 1>, SDTCisFP<1>,
31                                         SDTCisVT<2, i32>]>;
32def SDT_MipsCMovFP : SDTypeProfile<1, 3, [SDTCisSameAs<0, 1>, SDTCisVT<2, i32>,
33                                          SDTCisSameAs<1, 3>]>;
34def SDT_MipsTruncIntFP : SDTypeProfile<1, 1, [SDTCisFP<0>, SDTCisFP<1>]>;
35def SDT_MipsBuildPairF64 : SDTypeProfile<1, 2, [SDTCisVT<0, f64>,
36                                                SDTCisVT<1, i32>,
37                                                SDTCisSameAs<1, 2>]>;
38def SDT_MipsExtractElementF64 : SDTypeProfile<1, 2, [SDTCisVT<0, i32>,
39                                                     SDTCisVT<1, f64>,
40                                                     SDTCisVT<2, i32>]>;
41
42def MipsFPCmp : SDNode<"MipsISD::FPCmp", SDT_MipsFPCmp, [SDNPOutGlue]>;
43def MipsCMovFP_T : SDNode<"MipsISD::CMovFP_T", SDT_MipsCMovFP, [SDNPInGlue]>;
44def MipsCMovFP_F : SDNode<"MipsISD::CMovFP_F", SDT_MipsCMovFP, [SDNPInGlue]>;
45def MipsFPBrcond : SDNode<"MipsISD::FPBrcond", SDT_MipsFPBrcond,
46                          [SDNPHasChain, SDNPOptInGlue]>;
47def MipsTruncIntFP : SDNode<"MipsISD::TruncIntFP", SDT_MipsTruncIntFP>;
48def MipsBuildPairF64 : SDNode<"MipsISD::BuildPairF64", SDT_MipsBuildPairF64>;
49def MipsExtractElementF64 : SDNode<"MipsISD::ExtractElementF64",
50                                   SDT_MipsExtractElementF64>;
51
52// Operand for printing out a condition code.
53let PrintMethod = "printFCCOperand", DecoderMethod = "DecodeCondCode" in
54  def condcode : Operand<i32>;
55
56//===----------------------------------------------------------------------===//
57// Feature predicates.
58//===----------------------------------------------------------------------===//
59
60def IsFP64bit        : Predicate<"Subtarget->isFP64bit()">,
61                       AssemblerPredicate<"FeatureFP64Bit">;
62def NotFP64bit       : Predicate<"!Subtarget->isFP64bit()">,
63                       AssemblerPredicate<"!FeatureFP64Bit">;
64def IsSingleFloat    : Predicate<"Subtarget->isSingleFloat()">,
65                       AssemblerPredicate<"FeatureSingleFloat">;
66def IsNotSingleFloat : Predicate<"!Subtarget->isSingleFloat()">,
67                       AssemblerPredicate<"!FeatureSingleFloat">;
68def IsNotSoftFloat   : Predicate<"!Subtarget->useSoftFloat()">,
69                       AssemblerPredicate<"!FeatureSoftFloat">;
70
71//===----------------------------------------------------------------------===//
72// Mips FGR size adjectives.
73// They are mutually exclusive.
74//===----------------------------------------------------------------------===//
75
76class FGR_32 { list<Predicate> FGRPredicates = [NotFP64bit]; }
77class FGR_64 { list<Predicate> FGRPredicates = [IsFP64bit]; }
78class HARDFLOAT { list<Predicate> HardFloatPredicate = [IsNotSoftFloat]; }
79
80//===----------------------------------------------------------------------===//
81
82// FP immediate patterns.
83def fpimm0 : PatLeaf<(fpimm), [{
84  return N->isExactlyValue(+0.0);
85}]>;
86
87def fpimm0neg : PatLeaf<(fpimm), [{
88  return N->isExactlyValue(-0.0);
89}]>;
90
91//===----------------------------------------------------------------------===//
92// Instruction Class Templates
93//
94// A set of multiclasses is used to address the register usage.
95//
96// S32 - single precision in 16 32bit even fp registers
97//       single precision in 32 32bit fp registers in SingleOnly mode
98// S64 - single precision in 32 64bit fp registers (In64BitMode)
99// D32 - double precision in 16 32bit even fp registers
100// D64 - double precision in 32 64bit fp registers (In64BitMode)
101//
102// Only S32 and D32 are supported right now.
103//===----------------------------------------------------------------------===//
104class ADDS_FT<string opstr, RegisterOperand RC, InstrItinClass Itin, bit IsComm,
105              SDPatternOperator OpNode= null_frag> :
106  InstSE<(outs RC:$fd), (ins RC:$fs, RC:$ft),
107         !strconcat(opstr, "\t$fd, $fs, $ft"),
108         [(set RC:$fd, (OpNode RC:$fs, RC:$ft))], Itin, FrmFR, opstr>,
109  HARDFLOAT {
110  let isCommutable = IsComm;
111}
112
113multiclass ADDS_M<string opstr, InstrItinClass Itin, bit IsComm,
114                  SDPatternOperator OpNode = null_frag> {
115  def _D32 : MMRel, ADDS_FT<opstr, AFGR64Opnd, Itin, IsComm, OpNode>, FGR_32;
116  def _D64 : ADDS_FT<opstr, FGR64Opnd, Itin, IsComm, OpNode>, FGR_64 {
117    string DecoderNamespace = "Mips64";
118  }
119}
120
121class ABSS_FT<string opstr, RegisterOperand DstRC, RegisterOperand SrcRC,
122              InstrItinClass Itin, SDPatternOperator OpNode= null_frag> :
123  InstSE<(outs DstRC:$fd), (ins SrcRC:$fs), !strconcat(opstr, "\t$fd, $fs"),
124         [(set DstRC:$fd, (OpNode SrcRC:$fs))], Itin, FrmFR, opstr>,
125  HARDFLOAT,
126  NeverHasSideEffects;
127
128multiclass ABSS_M<string opstr, InstrItinClass Itin,
129                  SDPatternOperator OpNode= null_frag> {
130  def _D32 : MMRel, ABSS_FT<opstr, AFGR64Opnd, AFGR64Opnd, Itin, OpNode>,
131             FGR_32;
132  def _D64 : ABSS_FT<opstr, FGR64Opnd, FGR64Opnd, Itin, OpNode>, FGR_64 {
133    string DecoderNamespace = "Mips64";
134  }
135}
136
137multiclass ROUND_M<string opstr, InstrItinClass Itin> {
138  def _D32 : MMRel, ABSS_FT<opstr, FGR32Opnd, AFGR64Opnd, Itin>, FGR_32;
139  def _D64 : StdMMR6Rel, ABSS_FT<opstr, FGR32Opnd, FGR64Opnd, Itin>, FGR_64 {
140    let DecoderNamespace = "Mips64";
141  }
142}
143
144class MFC1_FT<string opstr, RegisterOperand DstRC, RegisterOperand SrcRC,
145              InstrItinClass Itin, SDPatternOperator OpNode= null_frag> :
146  InstSE<(outs DstRC:$rt), (ins SrcRC:$fs), !strconcat(opstr, "\t$rt, $fs"),
147         [(set DstRC:$rt, (OpNode SrcRC:$fs))], Itin, FrmFR, opstr>, HARDFLOAT;
148
149class MTC1_FT<string opstr, RegisterOperand DstRC, RegisterOperand SrcRC,
150              InstrItinClass Itin, SDPatternOperator OpNode= null_frag> :
151  InstSE<(outs DstRC:$fs), (ins SrcRC:$rt), !strconcat(opstr, "\t$rt, $fs"),
152         [(set DstRC:$fs, (OpNode SrcRC:$rt))], Itin, FrmFR, opstr>, HARDFLOAT;
153
154class MTC1_64_FT<string opstr, RegisterOperand DstRC, RegisterOperand SrcRC,
155                 InstrItinClass Itin> :
156  InstSE<(outs DstRC:$fs), (ins DstRC:$fs_in, SrcRC:$rt),
157         !strconcat(opstr, "\t$rt, $fs"), [], Itin, FrmFR, opstr>, HARDFLOAT {
158  // $fs_in is part of a white lie to work around a widespread bug in the FPU
159  // implementation. See expandBuildPairF64 for details.
160  let Constraints = "$fs = $fs_in";
161}
162
163class LW_FT<string opstr, RegisterOperand RC, DAGOperand MO,
164            InstrItinClass Itin, SDPatternOperator OpNode = null_frag> :
165  InstSE<(outs RC:$rt), (ins MO:$addr), !strconcat(opstr, "\t$rt, $addr"),
166         [(set RC:$rt, (OpNode addrDefault:$addr))], Itin, FrmFI, opstr>,
167  HARDFLOAT {
168  let DecoderMethod = "DecodeFMem";
169  let mayLoad = 1;
170}
171
172class SW_FT<string opstr, RegisterOperand RC, DAGOperand MO,
173            InstrItinClass Itin, SDPatternOperator OpNode = null_frag> :
174  InstSE<(outs), (ins RC:$rt, MO:$addr), !strconcat(opstr, "\t$rt, $addr"),
175         [(OpNode RC:$rt, addrDefault:$addr)], Itin, FrmFI, opstr>, HARDFLOAT {
176  let DecoderMethod = "DecodeFMem";
177  let mayStore = 1;
178}
179
180class MADDS_FT<string opstr, RegisterOperand RC, InstrItinClass Itin,
181               SDPatternOperator OpNode = null_frag> :
182  InstSE<(outs RC:$fd), (ins RC:$fr, RC:$fs, RC:$ft),
183         !strconcat(opstr, "\t$fd, $fr, $fs, $ft"),
184         [(set RC:$fd, (OpNode (fmul RC:$fs, RC:$ft), RC:$fr))], Itin,
185         FrmFR, opstr>, HARDFLOAT;
186
187class NMADDS_FT<string opstr, RegisterOperand RC, InstrItinClass Itin,
188                SDPatternOperator OpNode = null_frag> :
189  InstSE<(outs RC:$fd), (ins RC:$fr, RC:$fs, RC:$ft),
190         !strconcat(opstr, "\t$fd, $fr, $fs, $ft"),
191         [(set RC:$fd, (fsub fpimm0, (OpNode (fmul RC:$fs, RC:$ft), RC:$fr)))],
192         Itin, FrmFR, opstr>, HARDFLOAT;
193
194class LWXC1_FT<string opstr, RegisterOperand DRC,
195               InstrItinClass Itin, SDPatternOperator OpNode = null_frag> :
196  InstSE<(outs DRC:$fd), (ins PtrRC:$base, PtrRC:$index),
197         !strconcat(opstr, "\t$fd, ${index}(${base})"),
198         [(set DRC:$fd, (OpNode (add iPTR:$base, iPTR:$index)))], Itin,
199         FrmFI, opstr>, HARDFLOAT {
200  let AddedComplexity = 20;
201}
202
203class SWXC1_FT<string opstr, RegisterOperand DRC,
204               InstrItinClass Itin, SDPatternOperator OpNode = null_frag> :
205  InstSE<(outs), (ins DRC:$fs, PtrRC:$base, PtrRC:$index),
206         !strconcat(opstr, "\t$fs, ${index}(${base})"),
207         [(OpNode DRC:$fs, (add iPTR:$base, iPTR:$index))], Itin,
208         FrmFI, opstr>, HARDFLOAT {
209  let AddedComplexity = 20;
210}
211
212class BC1F_FT<string opstr, DAGOperand opnd, InstrItinClass Itin,
213              SDPatternOperator Op = null_frag, bit DelaySlot = 1> :
214  InstSE<(outs), (ins FCCRegsOpnd:$fcc, opnd:$offset),
215         !strconcat(opstr, "\t$fcc, $offset"),
216         [(MipsFPBrcond Op, FCCRegsOpnd:$fcc, bb:$offset)], Itin,
217         FrmFI, opstr>, HARDFLOAT {
218  let isBranch = 1;
219  let isTerminator = 1;
220  let hasDelaySlot = DelaySlot;
221  let Defs = [AT];
222}
223
224class CEQS_FT<string typestr, RegisterClass RC, InstrItinClass Itin,
225              SDPatternOperator OpNode = null_frag>  :
226  InstSE<(outs), (ins RC:$fs, RC:$ft, condcode:$cond),
227         !strconcat("c.$cond.", typestr, "\t$fs, $ft"),
228         [(OpNode RC:$fs, RC:$ft, imm:$cond)], Itin, FrmFR,
229         !strconcat("c.$cond.", typestr)>, HARDFLOAT {
230  let Defs = [FCC0];
231  let isCodeGenOnly = 1;
232}
233
234class C_COND_FT<string CondStr, string Typestr, RegisterOperand RC,
235                InstrItinClass itin>  :
236   InstSE<(outs), (ins RC:$fs, RC:$ft),
237          !strconcat("c.", CondStr, ".", Typestr, "\t$fs, $ft"), [], itin,
238          FrmFR>, HARDFLOAT;
239
240multiclass C_COND_M<string TypeStr, RegisterOperand RC, bits<5> fmt,
241                    InstrItinClass itin> {
242  def C_F_#NAME : C_COND_FT<"f", TypeStr, RC, itin>, C_COND_FM<fmt, 0>;
243  def C_UN_#NAME : C_COND_FT<"un", TypeStr, RC, itin>, C_COND_FM<fmt, 1>;
244  def C_EQ_#NAME : C_COND_FT<"eq", TypeStr, RC, itin>, C_COND_FM<fmt, 2>;
245  def C_UEQ_#NAME : C_COND_FT<"ueq", TypeStr, RC, itin>, C_COND_FM<fmt, 3>;
246  def C_OLT_#NAME : C_COND_FT<"olt", TypeStr, RC, itin>, C_COND_FM<fmt, 4>;
247  def C_ULT_#NAME : C_COND_FT<"ult", TypeStr, RC, itin>, C_COND_FM<fmt, 5>;
248  def C_OLE_#NAME : C_COND_FT<"ole", TypeStr, RC, itin>, C_COND_FM<fmt, 6>;
249  def C_ULE_#NAME : C_COND_FT<"ule", TypeStr, RC, itin>, C_COND_FM<fmt, 7>;
250  def C_SF_#NAME : C_COND_FT<"sf", TypeStr, RC, itin>, C_COND_FM<fmt, 8>;
251  def C_NGLE_#NAME : C_COND_FT<"ngle", TypeStr, RC, itin>, C_COND_FM<fmt, 9>;
252  def C_SEQ_#NAME : C_COND_FT<"seq", TypeStr, RC, itin>, C_COND_FM<fmt, 10>;
253  def C_NGL_#NAME : C_COND_FT<"ngl", TypeStr, RC, itin>, C_COND_FM<fmt, 11>;
254  def C_LT_#NAME : C_COND_FT<"lt", TypeStr, RC, itin>, C_COND_FM<fmt, 12>;
255  def C_NGE_#NAME : C_COND_FT<"nge", TypeStr, RC, itin>, C_COND_FM<fmt, 13>;
256  def C_LE_#NAME : C_COND_FT<"le", TypeStr, RC, itin>, C_COND_FM<fmt, 14>;
257  def C_NGT_#NAME : C_COND_FT<"ngt", TypeStr, RC, itin>, C_COND_FM<fmt, 15>;
258}
259
260defm S : C_COND_M<"s", FGR32Opnd, 16, II_C_CC_S>, ISA_MIPS1_NOT_32R6_64R6;
261defm D32 : C_COND_M<"d", AFGR64Opnd, 17, II_C_CC_D>, ISA_MIPS1_NOT_32R6_64R6,
262           FGR_32;
263let DecoderNamespace = "Mips64" in
264defm D64 : C_COND_M<"d", FGR64Opnd, 17, II_C_CC_D>, ISA_MIPS1_NOT_32R6_64R6,
265           FGR_64;
266
267//===----------------------------------------------------------------------===//
268// Floating Point Instructions
269//===----------------------------------------------------------------------===//
270def ROUND_W_S  : MMRel, StdMMR6Rel, ABSS_FT<"round.w.s", FGR32Opnd, FGR32Opnd, II_ROUND>,
271                 ABSS_FM<0xc, 16>, ISA_MIPS2;
272defm ROUND_W : ROUND_M<"round.w.d", II_ROUND>, ABSS_FM<0xc, 17>, ISA_MIPS2;
273def TRUNC_W_S  : MMRel, StdMMR6Rel, ABSS_FT<"trunc.w.s", FGR32Opnd, FGR32Opnd, II_TRUNC>,
274                 ABSS_FM<0xd, 16>, ISA_MIPS2;
275def CEIL_W_S   : MMRel, StdMMR6Rel, ABSS_FT<"ceil.w.s", FGR32Opnd, FGR32Opnd, II_CEIL>,
276                 ABSS_FM<0xe, 16>, ISA_MIPS2;
277def FLOOR_W_S  : MMRel, StdMMR6Rel, ABSS_FT<"floor.w.s", FGR32Opnd, FGR32Opnd, II_FLOOR>,
278                 ABSS_FM<0xf, 16>, ISA_MIPS2;
279def CVT_W_S    : MMRel, ABSS_FT<"cvt.w.s", FGR32Opnd, FGR32Opnd, II_CVT>,
280                 ABSS_FM<0x24, 16>;
281
282defm TRUNC_W : ROUND_M<"trunc.w.d", II_TRUNC>, ABSS_FM<0xd, 17>, ISA_MIPS2;
283defm CEIL_W  : ROUND_M<"ceil.w.d", II_CEIL>, ABSS_FM<0xe, 17>, ISA_MIPS2;
284defm FLOOR_W : ROUND_M<"floor.w.d", II_FLOOR>, ABSS_FM<0xf, 17>, ISA_MIPS2;
285defm CVT_W   : ROUND_M<"cvt.w.d", II_CVT>, ABSS_FM<0x24, 17>;
286
287let AdditionalPredicates = [NotInMicroMips] in {
288  def RECIP_S : MMRel, ABSS_FT<"recip.s", FGR32Opnd, FGR32Opnd, II_RECIP_S>,
289                ABSS_FM<0b010101, 0x10>, INSN_MIPS4_32R2;
290  def RECIP_D : MMRel, ABSS_FT<"recip.d", FGR64Opnd, FGR64Opnd, II_RECIP_D>,
291                ABSS_FM<0b010101, 0x11>, INSN_MIPS4_32R2;
292  def RSQRT_S : MMRel, ABSS_FT<"rsqrt.s", FGR32Opnd, FGR32Opnd, II_RSQRT_S>,
293                ABSS_FM<0b010110, 0x10>, INSN_MIPS4_32R2;
294  def RSQRT_D : MMRel, ABSS_FT<"rsqrt.d", FGR64Opnd, FGR64Opnd, II_RSQRT_D>,
295                ABSS_FM<0b010110, 0x11>, INSN_MIPS4_32R2;
296}
297let DecoderNamespace = "Mips64" in {
298  let AdditionalPredicates = [NotInMicroMips] in {
299  def ROUND_L_S : ABSS_FT<"round.l.s", FGR64Opnd, FGR32Opnd, II_ROUND>,
300                  ABSS_FM<0x8, 16>, FGR_64;
301  def ROUND_L_D64 : ABSS_FT<"round.l.d", FGR64Opnd, FGR64Opnd, II_ROUND>,
302                    ABSS_FM<0x8, 17>, FGR_64;
303  def TRUNC_L_S : ABSS_FT<"trunc.l.s", FGR64Opnd, FGR32Opnd, II_TRUNC>,
304                  ABSS_FM<0x9, 16>, FGR_64;
305  def TRUNC_L_D64 : ABSS_FT<"trunc.l.d", FGR64Opnd, FGR64Opnd, II_TRUNC>,
306                    ABSS_FM<0x9, 17>, FGR_64;
307  def CEIL_L_S  : ABSS_FT<"ceil.l.s", FGR64Opnd, FGR32Opnd, II_CEIL>,
308                  ABSS_FM<0xa, 16>, FGR_64;
309  def CEIL_L_D64 : ABSS_FT<"ceil.l.d", FGR64Opnd, FGR64Opnd, II_CEIL>,
310                   ABSS_FM<0xa, 17>, FGR_64;
311  def FLOOR_L_S : ABSS_FT<"floor.l.s", FGR64Opnd, FGR32Opnd, II_FLOOR>,
312                  ABSS_FM<0xb, 16>, FGR_64;
313  def FLOOR_L_D64 : ABSS_FT<"floor.l.d", FGR64Opnd, FGR64Opnd, II_FLOOR>,
314                    ABSS_FM<0xb, 17>, FGR_64;
315  }
316}
317
318def CVT_S_W : MMRel, ABSS_FT<"cvt.s.w", FGR32Opnd, FGR32Opnd, II_CVT>,
319              ABSS_FM<0x20, 20>;
320let AdditionalPredicates = [NotInMicroMips] in{
321  def CVT_L_S : MMRel, ABSS_FT<"cvt.l.s", FGR64Opnd, FGR32Opnd, II_CVT>,
322                ABSS_FM<0x25, 16>, INSN_MIPS3_32R2;
323  def CVT_L_D64: MMRel, ABSS_FT<"cvt.l.d", FGR64Opnd, FGR64Opnd, II_CVT>,
324                 ABSS_FM<0x25, 17>, INSN_MIPS3_32R2;
325}
326
327def CVT_S_D32 : MMRel, ABSS_FT<"cvt.s.d", FGR32Opnd, AFGR64Opnd, II_CVT>,
328                ABSS_FM<0x20, 17>, FGR_32;
329def CVT_D32_W : MMRel, ABSS_FT<"cvt.d.w", AFGR64Opnd, FGR32Opnd, II_CVT>,
330                ABSS_FM<0x21, 20>, FGR_32;
331def CVT_D32_S : MMRel, ABSS_FT<"cvt.d.s", AFGR64Opnd, FGR32Opnd, II_CVT>,
332                ABSS_FM<0x21, 16>, FGR_32;
333
334let DecoderNamespace = "Mips64" in {
335  def CVT_S_D64 : ABSS_FT<"cvt.s.d", FGR32Opnd, FGR64Opnd, II_CVT>,
336                  ABSS_FM<0x20, 17>, FGR_64;
337  let AdditionalPredicates = [NotInMicroMips] in{
338    def CVT_S_L   : ABSS_FT<"cvt.s.l", FGR32Opnd, FGR64Opnd, II_CVT>,
339                    ABSS_FM<0x20, 21>, FGR_64;
340  }
341  def CVT_D64_W : ABSS_FT<"cvt.d.w", FGR64Opnd, FGR32Opnd, II_CVT>,
342                  ABSS_FM<0x21, 20>, FGR_64;
343  def CVT_D64_S : ABSS_FT<"cvt.d.s", FGR64Opnd, FGR32Opnd, II_CVT>,
344                  ABSS_FM<0x21, 16>, FGR_64;
345  def CVT_D64_L : ABSS_FT<"cvt.d.l", FGR64Opnd, FGR64Opnd, II_CVT>,
346                  ABSS_FM<0x21, 21>, FGR_64;
347}
348
349let isPseudo = 1, isCodeGenOnly = 1 in {
350  def PseudoCVT_S_W : ABSS_FT<"", FGR32Opnd, GPR32Opnd, II_CVT>;
351  def PseudoCVT_D32_W : ABSS_FT<"", AFGR64Opnd, GPR32Opnd, II_CVT>;
352  def PseudoCVT_S_L : ABSS_FT<"", FGR64Opnd, GPR64Opnd, II_CVT>;
353  def PseudoCVT_D64_W : ABSS_FT<"", FGR64Opnd, GPR32Opnd, II_CVT>;
354  def PseudoCVT_D64_L : ABSS_FT<"", FGR64Opnd, GPR64Opnd, II_CVT>;
355}
356
357def FABS_S : MMRel, ABSS_FT<"abs.s", FGR32Opnd, FGR32Opnd, II_ABS, fabs>,
358             ABSS_FM<0x5, 16>;
359def FNEG_S : MMRel, ABSS_FT<"neg.s", FGR32Opnd, FGR32Opnd, II_NEG, fneg>,
360             ABSS_FM<0x7, 16>;
361defm FABS : ABSS_M<"abs.d", II_ABS, fabs>, ABSS_FM<0x5, 17>;
362defm FNEG : ABSS_M<"neg.d", II_NEG, fneg>, ABSS_FM<0x7, 17>;
363
364def FSQRT_S : MMRel, StdMMR6Rel, ABSS_FT<"sqrt.s", FGR32Opnd, FGR32Opnd,
365              II_SQRT_S, fsqrt>, ABSS_FM<0x4, 16>, ISA_MIPS2;
366defm FSQRT : ABSS_M<"sqrt.d", II_SQRT_D, fsqrt>, ABSS_FM<0x4, 17>, ISA_MIPS2;
367
368// The odd-numbered registers are only referenced when doing loads,
369// stores, and moves between floating-point and integer registers.
370// When defining instructions, we reference all 32-bit registers,
371// regardless of register aliasing.
372
373/// Move Control Registers From/To CPU Registers
374let AdditionalPredicates = [NotInMicroMips] in {
375  def CFC1 : MMRel, MFC1_FT<"cfc1", GPR32Opnd, CCROpnd, II_CFC1>, MFC1_FM<2>;
376  def CTC1 : MMRel, MTC1_FT<"ctc1", CCROpnd, GPR32Opnd, II_CTC1>, MFC1_FM<6>;
377}
378def MFC1 : MMRel, MFC1_FT<"mfc1", GPR32Opnd, FGR32Opnd, II_MFC1,
379                          bitconvert>, MFC1_FM<0>;
380def MTC1 : MMRel, MTC1_FT<"mtc1", FGR32Opnd, GPR32Opnd, II_MTC1,
381                          bitconvert>, MFC1_FM<4>;
382let AdditionalPredicates = [NotInMicroMips] in {
383  def MFHC1_D32 : MMRel, MFC1_FT<"mfhc1", GPR32Opnd, AFGR64Opnd, II_MFHC1>,
384                  MFC1_FM<3>, ISA_MIPS32R2, FGR_32;
385  def MFHC1_D64 : MFC1_FT<"mfhc1", GPR32Opnd, FGR64Opnd, II_MFHC1>,
386                  MFC1_FM<3>, ISA_MIPS32R2, FGR_64 {
387    let DecoderNamespace = "Mips64";
388  }
389}
390let AdditionalPredicates = [NotInMicroMips] in {
391  def MTHC1_D32 : MMRel, StdMMR6Rel, MTC1_64_FT<"mthc1", AFGR64Opnd, GPR32Opnd, II_MTHC1>,
392                  MFC1_FM<7>, ISA_MIPS32R2, FGR_32;
393  def MTHC1_D64 : MTC1_64_FT<"mthc1", FGR64Opnd, GPR32Opnd, II_MTHC1>,
394                  MFC1_FM<7>, ISA_MIPS32R2, FGR_64 {
395    let DecoderNamespace = "Mips64";
396  }
397}
398let AdditionalPredicates = [NotInMicroMips] in {
399  def DMTC1 : MTC1_FT<"dmtc1", FGR64Opnd, GPR64Opnd, II_DMTC1,
400              bitconvert>, MFC1_FM<5>, ISA_MIPS3;
401  def DMFC1 : MFC1_FT<"dmfc1", GPR64Opnd, FGR64Opnd, II_DMFC1,
402                      bitconvert>, MFC1_FM<1>, ISA_MIPS3;
403}
404
405def FMOV_S   : MMRel, ABSS_FT<"mov.s", FGR32Opnd, FGR32Opnd, II_MOV_S>,
406               ABSS_FM<0x6, 16>;
407def FMOV_D32 : MMRel, ABSS_FT<"mov.d", AFGR64Opnd, AFGR64Opnd, II_MOV_D>,
408               ABSS_FM<0x6, 17>, FGR_32;
409def FMOV_D64 : ABSS_FT<"mov.d", FGR64Opnd, FGR64Opnd, II_MOV_D>,
410               ABSS_FM<0x6, 17>, FGR_64 {
411                 let DecoderNamespace = "Mips64";
412}
413
414/// Floating Point Memory Instructions
415let AdditionalPredicates = [NotInMicroMips] in {
416  def LWC1 : MMRel, LW_FT<"lwc1", FGR32Opnd, mem_simm16, II_LWC1, load>,
417             LW_FM<0x31>;
418  def SWC1 : MMRel, SW_FT<"swc1", FGR32Opnd, mem_simm16, II_SWC1, store>,
419             LW_FM<0x39>;
420}
421
422let DecoderNamespace = "Mips64", AdditionalPredicates = [NotInMicroMips] in {
423  def LDC164 : StdMMR6Rel, LW_FT<"ldc1", FGR64Opnd, mem_simm16, II_LDC1, load>,
424               LW_FM<0x35>, ISA_MIPS2, FGR_64 {
425    let BaseOpcode = "LDC164";
426  }
427  def SDC164 : StdMMR6Rel, SW_FT<"sdc1", FGR64Opnd, mem_simm16, II_SDC1, store>,
428               LW_FM<0x3d>, ISA_MIPS2, FGR_64;
429}
430
431let AdditionalPredicates = [NotInMicroMips] in {
432  def LDC1 : MMRel, StdMMR6Rel, LW_FT<"ldc1", AFGR64Opnd, mem_simm16, II_LDC1,
433                                      load>, LW_FM<0x35>, ISA_MIPS2, FGR_32 {
434    let BaseOpcode = "LDC132";
435  }
436  def SDC1 : MMRel, SW_FT<"sdc1", AFGR64Opnd, mem_simm16, II_SDC1, store>,
437             LW_FM<0x3d>, ISA_MIPS2, FGR_32;
438}
439
440// Indexed loads and stores.
441// Base register + offset register addressing mode (indicated by "x" in the
442// instruction mnemonic) is disallowed under NaCl.
443let AdditionalPredicates = [IsNotNaCl] in {
444  def LWXC1 : MMRel, LWXC1_FT<"lwxc1", FGR32Opnd, II_LWXC1, load>, LWXC1_FM<0>,
445              INSN_MIPS4_32R2_NOT_32R6_64R6;
446  def SWXC1 : MMRel, SWXC1_FT<"swxc1", FGR32Opnd, II_SWXC1, store>, SWXC1_FM<8>,
447              INSN_MIPS4_32R2_NOT_32R6_64R6;
448}
449
450let AdditionalPredicates = [NotInMicroMips, IsNotNaCl] in {
451  def LDXC1 : LWXC1_FT<"ldxc1", AFGR64Opnd, II_LDXC1, load>, LWXC1_FM<1>,
452              INSN_MIPS4_32R2_NOT_32R6_64R6, FGR_32;
453  def SDXC1 : SWXC1_FT<"sdxc1", AFGR64Opnd, II_SDXC1, store>, SWXC1_FM<9>,
454              INSN_MIPS4_32R2_NOT_32R6_64R6, FGR_32;
455}
456
457let DecoderNamespace="Mips64" in {
458  def LDXC164 : LWXC1_FT<"ldxc1", FGR64Opnd, II_LDXC1, load>, LWXC1_FM<1>,
459                INSN_MIPS4_32R2_NOT_32R6_64R6, FGR_64;
460  def SDXC164 : SWXC1_FT<"sdxc1", FGR64Opnd, II_SDXC1, store>, SWXC1_FM<9>,
461                INSN_MIPS4_32R2_NOT_32R6_64R6, FGR_64;
462}
463
464// Load/store doubleword indexed unaligned.
465let AdditionalPredicates = [IsNotNaCl] in {
466  def LUXC1 : MMRel, LWXC1_FT<"luxc1", AFGR64Opnd, II_LUXC1>, LWXC1_FM<0x5>,
467              INSN_MIPS5_32R2_NOT_32R6_64R6, FGR_32;
468  def SUXC1 : MMRel, SWXC1_FT<"suxc1", AFGR64Opnd, II_SUXC1>, SWXC1_FM<0xd>,
469              INSN_MIPS5_32R2_NOT_32R6_64R6, FGR_32;
470}
471
472let DecoderNamespace="Mips64" in {
473  def LUXC164 : LWXC1_FT<"luxc1", FGR64Opnd, II_LUXC1>, LWXC1_FM<0x5>,
474                INSN_MIPS5_32R2_NOT_32R6_64R6, FGR_64;
475  def SUXC164 : SWXC1_FT<"suxc1", FGR64Opnd, II_SUXC1>, SWXC1_FM<0xd>,
476                INSN_MIPS5_32R2_NOT_32R6_64R6, FGR_64;
477}
478
479/// Floating-point Aritmetic
480def FADD_S : MMRel, ADDS_FT<"add.s", FGR32Opnd, II_ADD_S, 1, fadd>,
481             ADDS_FM<0x00, 16>;
482defm FADD :  ADDS_M<"add.d", II_ADD_D, 1, fadd>, ADDS_FM<0x00, 17>;
483def FDIV_S : MMRel, ADDS_FT<"div.s", FGR32Opnd, II_DIV_S, 0, fdiv>,
484             ADDS_FM<0x03, 16>;
485defm FDIV :  ADDS_M<"div.d", II_DIV_D, 0, fdiv>, ADDS_FM<0x03, 17>;
486def FMUL_S : MMRel, ADDS_FT<"mul.s", FGR32Opnd, II_MUL_S, 1, fmul>,
487             ADDS_FM<0x02, 16>;
488defm FMUL :  ADDS_M<"mul.d", II_MUL_D, 1, fmul>, ADDS_FM<0x02, 17>;
489def FSUB_S : MMRel, ADDS_FT<"sub.s", FGR32Opnd, II_SUB_S, 0, fsub>,
490             ADDS_FM<0x01, 16>;
491defm FSUB :  ADDS_M<"sub.d", II_SUB_D, 0, fsub>, ADDS_FM<0x01, 17>;
492
493def MADD_S : MMRel, MADDS_FT<"madd.s", FGR32Opnd, II_MADD_S, fadd>,
494             MADDS_FM<4, 0>, INSN_MIPS4_32R2_NOT_32R6_64R6;
495def MSUB_S : MMRel, MADDS_FT<"msub.s", FGR32Opnd, II_MSUB_S, fsub>,
496             MADDS_FM<5, 0>, INSN_MIPS4_32R2_NOT_32R6_64R6;
497
498let AdditionalPredicates = [NoNaNsFPMath] in {
499  def NMADD_S : MMRel, NMADDS_FT<"nmadd.s", FGR32Opnd, II_NMADD_S, fadd>,
500                MADDS_FM<6, 0>, INSN_MIPS4_32R2_NOT_32R6_64R6;
501  def NMSUB_S : MMRel, NMADDS_FT<"nmsub.s", FGR32Opnd, II_NMSUB_S, fsub>,
502                MADDS_FM<7, 0>, INSN_MIPS4_32R2_NOT_32R6_64R6;
503}
504
505def MADD_D32 : MMRel, MADDS_FT<"madd.d", AFGR64Opnd, II_MADD_D, fadd>,
506               MADDS_FM<4, 1>, INSN_MIPS4_32R2_NOT_32R6_64R6, FGR_32;
507def MSUB_D32 : MMRel, MADDS_FT<"msub.d", AFGR64Opnd, II_MSUB_D, fsub>,
508               MADDS_FM<5, 1>, INSN_MIPS4_32R2_NOT_32R6_64R6, FGR_32;
509
510let AdditionalPredicates = [NoNaNsFPMath] in {
511  def NMADD_D32 : MMRel, NMADDS_FT<"nmadd.d", AFGR64Opnd, II_NMADD_D, fadd>,
512                  MADDS_FM<6, 1>, INSN_MIPS4_32R2_NOT_32R6_64R6, FGR_32;
513  def NMSUB_D32 : MMRel, NMADDS_FT<"nmsub.d", AFGR64Opnd, II_NMSUB_D, fsub>,
514                  MADDS_FM<7, 1>, INSN_MIPS4_32R2_NOT_32R6_64R6, FGR_32;
515}
516
517let DecoderNamespace = "Mips64" in {
518  def MADD_D64 : MADDS_FT<"madd.d", FGR64Opnd, II_MADD_D, fadd>,
519                 MADDS_FM<4, 1>, INSN_MIPS4_32R2_NOT_32R6_64R6, FGR_64;
520  def MSUB_D64 : MADDS_FT<"msub.d", FGR64Opnd, II_MSUB_D, fsub>,
521                 MADDS_FM<5, 1>, INSN_MIPS4_32R2_NOT_32R6_64R6, FGR_64;
522}
523
524let AdditionalPredicates = [NoNaNsFPMath],
525    DecoderNamespace = "Mips64" in {
526  def NMADD_D64 : NMADDS_FT<"nmadd.d", FGR64Opnd, II_NMADD_D, fadd>,
527                  MADDS_FM<6, 1>, INSN_MIPS4_32R2_NOT_32R6_64R6, FGR_64;
528  def NMSUB_D64 : NMADDS_FT<"nmsub.d", FGR64Opnd, II_NMSUB_D, fsub>,
529                  MADDS_FM<7, 1>, INSN_MIPS4_32R2_NOT_32R6_64R6, FGR_64;
530}
531
532//===----------------------------------------------------------------------===//
533// Floating Point Branch Codes
534//===----------------------------------------------------------------------===//
535// Mips branch codes. These correspond to condcode in MipsInstrInfo.h.
536// They must be kept in synch.
537def MIPS_BRANCH_F  : PatLeaf<(i32 0)>;
538def MIPS_BRANCH_T  : PatLeaf<(i32 1)>;
539
540def BC1F : MMRel, BC1F_FT<"bc1f", brtarget, II_BC1F, MIPS_BRANCH_F>,
541           BC1F_FM<0, 0>, ISA_MIPS1_NOT_32R6_64R6;
542def BC1FL : MMRel, BC1F_FT<"bc1fl", brtarget, II_BC1FL, MIPS_BRANCH_F, 0>,
543            BC1F_FM<1, 0>, ISA_MIPS2_NOT_32R6_64R6;
544def BC1T : MMRel, BC1F_FT<"bc1t", brtarget, II_BC1T, MIPS_BRANCH_T>,
545           BC1F_FM<0, 1>, ISA_MIPS1_NOT_32R6_64R6;
546def BC1TL : MMRel, BC1F_FT<"bc1tl", brtarget, II_BC1TL, MIPS_BRANCH_T, 0>,
547            BC1F_FM<1, 1>, ISA_MIPS2_NOT_32R6_64R6;
548
549/// Floating Point Compare
550let AdditionalPredicates = [NotInMicroMips] in {
551  def FCMP_S32 : MMRel, CEQS_FT<"s", FGR32, II_C_CC_S, MipsFPCmp>, CEQS_FM<16>,
552                 ISA_MIPS1_NOT_32R6_64R6;
553  def FCMP_D32 : MMRel, CEQS_FT<"d", AFGR64, II_C_CC_D, MipsFPCmp>, CEQS_FM<17>,
554                 ISA_MIPS1_NOT_32R6_64R6, FGR_32;
555}
556let DecoderNamespace = "Mips64" in
557def FCMP_D64 : CEQS_FT<"d", FGR64, II_C_CC_D, MipsFPCmp>, CEQS_FM<17>,
558               ISA_MIPS1_NOT_32R6_64R6, FGR_64;
559
560//===----------------------------------------------------------------------===//
561// Floating Point Pseudo-Instructions
562//===----------------------------------------------------------------------===//
563
564// This pseudo instr gets expanded into 2 mtc1 instrs after register
565// allocation.
566class BuildPairF64Base<RegisterOperand RO> :
567  PseudoSE<(outs RO:$dst), (ins GPR32Opnd:$lo, GPR32Opnd:$hi),
568           [(set RO:$dst, (MipsBuildPairF64 GPR32Opnd:$lo, GPR32Opnd:$hi))],
569           II_MTC1>;
570
571def BuildPairF64 : BuildPairF64Base<AFGR64Opnd>, FGR_32, HARDFLOAT;
572def BuildPairF64_64 : BuildPairF64Base<FGR64Opnd>, FGR_64, HARDFLOAT;
573
574// This pseudo instr gets expanded into 2 mfc1 instrs after register
575// allocation.
576// if n is 0, lower part of src is extracted.
577// if n is 1, higher part of src is extracted.
578// This node has associated scheduling information as the pre RA scheduler
579// asserts otherwise.
580class ExtractElementF64Base<RegisterOperand RO> :
581  PseudoSE<(outs GPR32Opnd:$dst), (ins RO:$src, i32imm:$n),
582           [(set GPR32Opnd:$dst, (MipsExtractElementF64 RO:$src, imm:$n))],
583           II_MFC1>;
584
585def ExtractElementF64 : ExtractElementF64Base<AFGR64Opnd>, FGR_32, HARDFLOAT;
586def ExtractElementF64_64 : ExtractElementF64Base<FGR64Opnd>, FGR_64, HARDFLOAT;
587
588def PseudoTRUNC_W_S : MipsAsmPseudoInst<(outs FGR32Opnd:$fd),
589                                        (ins FGR32Opnd:$fs, GPR32Opnd:$rs),
590                                        "trunc.w.s\t$fd, $fs, $rs">;
591
592def PseudoTRUNC_W_D32 : MipsAsmPseudoInst<(outs FGR32Opnd:$fd),
593                                          (ins AFGR64Opnd:$fs, GPR32Opnd:$rs),
594                                          "trunc.w.d\t$fd, $fs, $rs">,
595                        FGR_32, HARDFLOAT;
596
597def PseudoTRUNC_W_D : MipsAsmPseudoInst<(outs FGR32Opnd:$fd),
598                                        (ins FGR64Opnd:$fs, GPR32Opnd:$rs),
599                                        "trunc.w.d\t$fd, $fs, $rs">,
600                      FGR_64, HARDFLOAT;
601
602//===----------------------------------------------------------------------===//
603// InstAliases.
604//===----------------------------------------------------------------------===//
605def : MipsInstAlias<"bc1t $offset", (BC1T FCC0, brtarget:$offset)>,
606      ISA_MIPS1_NOT_32R6_64R6, HARDFLOAT;
607def : MipsInstAlias<"bc1tl $offset", (BC1TL FCC0, brtarget:$offset)>,
608      ISA_MIPS2_NOT_32R6_64R6, HARDFLOAT;
609def : MipsInstAlias<"bc1f $offset", (BC1F FCC0, brtarget:$offset)>,
610      ISA_MIPS1_NOT_32R6_64R6, HARDFLOAT;
611def : MipsInstAlias<"bc1fl $offset", (BC1FL FCC0, brtarget:$offset)>,
612      ISA_MIPS2_NOT_32R6_64R6, HARDFLOAT;
613
614def : MipsInstAlias
615        <"s.s $fd, $addr", (SWC1 FGR32Opnd:$fd, mem_simm16:$addr), 0>,
616      ISA_MIPS2, HARDFLOAT;
617def : MipsInstAlias
618        <"s.d $fd, $addr", (SDC1 AFGR64Opnd:$fd, mem_simm16:$addr), 0>,
619      FGR_32, ISA_MIPS2, HARDFLOAT;
620def : MipsInstAlias
621        <"s.d $fd, $addr", (SDC164 FGR64Opnd:$fd, mem_simm16:$addr), 0>,
622      FGR_64, ISA_MIPS2, HARDFLOAT;
623
624def : MipsInstAlias
625        <"l.s $fd, $addr", (LWC1 FGR32Opnd:$fd, mem_simm16:$addr), 0>,
626      ISA_MIPS2, HARDFLOAT;
627def : MipsInstAlias
628        <"l.d $fd, $addr", (LDC1 AFGR64Opnd:$fd, mem_simm16:$addr), 0>,
629      FGR_32, ISA_MIPS2, HARDFLOAT;
630def : MipsInstAlias
631        <"l.d $fd, $addr", (LDC164 FGR64Opnd:$fd, mem_simm16:$addr), 0>,
632      FGR_64, ISA_MIPS2, HARDFLOAT;
633//===----------------------------------------------------------------------===//
634// Floating Point Patterns
635//===----------------------------------------------------------------------===//
636def : MipsPat<(f32 fpimm0), (MTC1 ZERO)>;
637def : MipsPat<(f32 fpimm0neg), (FNEG_S (MTC1 ZERO))>;
638
639def : MipsPat<(f32 (sint_to_fp GPR32Opnd:$src)),
640              (PseudoCVT_S_W GPR32Opnd:$src)>;
641def : MipsPat<(MipsTruncIntFP FGR32Opnd:$src),
642              (TRUNC_W_S FGR32Opnd:$src)>;
643
644def : MipsPat<(f64 (sint_to_fp GPR32Opnd:$src)),
645              (PseudoCVT_D32_W GPR32Opnd:$src)>, FGR_32;
646def : MipsPat<(MipsTruncIntFP AFGR64Opnd:$src),
647              (TRUNC_W_D32 AFGR64Opnd:$src)>, FGR_32;
648def : MipsPat<(f32 (fpround AFGR64Opnd:$src)),
649              (CVT_S_D32 AFGR64Opnd:$src)>, FGR_32;
650def : MipsPat<(f64 (fpextend FGR32Opnd:$src)),
651              (CVT_D32_S FGR32Opnd:$src)>, FGR_32;
652
653def : MipsPat<(f64 fpimm0), (DMTC1 ZERO_64)>, FGR_64;
654def : MipsPat<(f64 fpimm0neg), (FNEG_D64 (DMTC1 ZERO_64))>, FGR_64;
655
656def : MipsPat<(f64 (sint_to_fp GPR32Opnd:$src)),
657              (PseudoCVT_D64_W GPR32Opnd:$src)>, FGR_64;
658def : MipsPat<(f32 (sint_to_fp GPR64Opnd:$src)),
659              (EXTRACT_SUBREG (PseudoCVT_S_L GPR64Opnd:$src), sub_lo)>, FGR_64;
660def : MipsPat<(f64 (sint_to_fp GPR64Opnd:$src)),
661              (PseudoCVT_D64_L GPR64Opnd:$src)>, FGR_64;
662
663def : MipsPat<(MipsTruncIntFP FGR64Opnd:$src),
664              (TRUNC_W_D64 FGR64Opnd:$src)>, FGR_64;
665def : MipsPat<(MipsTruncIntFP FGR32Opnd:$src),
666              (TRUNC_L_S FGR32Opnd:$src)>, FGR_64;
667def : MipsPat<(MipsTruncIntFP FGR64Opnd:$src),
668              (TRUNC_L_D64 FGR64Opnd:$src)>, FGR_64;
669
670def : MipsPat<(f32 (fpround FGR64Opnd:$src)),
671              (CVT_S_D64 FGR64Opnd:$src)>, FGR_64;
672def : MipsPat<(f64 (fpextend FGR32Opnd:$src)),
673              (CVT_D64_S FGR32Opnd:$src)>, FGR_64;
674
675// Patterns for loads/stores with a reg+imm operand.
676let AdditionalPredicates = [NotInMicroMips] in {
677  let AddedComplexity = 40 in {
678    def : LoadRegImmPat<LWC1, f32, load>;
679    def : StoreRegImmPat<SWC1, f32>;
680
681    def : LoadRegImmPat<LDC164, f64, load>, FGR_64;
682    def : StoreRegImmPat<SDC164, f64>, FGR_64;
683
684    def : LoadRegImmPat<LDC1, f64, load>, FGR_32;
685    def : StoreRegImmPat<SDC1, f64>, FGR_32;
686  }
687}
688