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Misha Brukmana85d6bc2002-11-22 22:42:50 +00001//===- X86InstrInfo.cpp - X86 Instruction Information -----------*- C++ -*-===//
Misha Brukman0e0a7a452005-04-21 23:38:14 +00002//
John Criswellb576c942003-10-20 19:43:21 +00003// The LLVM Compiler Infrastructure
4//
Chris Lattner4ee451d2007-12-29 20:36:04 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Misha Brukman0e0a7a452005-04-21 23:38:14 +00007//
John Criswellb576c942003-10-20 19:43:21 +00008//===----------------------------------------------------------------------===//
Chris Lattner72614082002-10-25 22:55:53 +00009//
Chris Lattner3501fea2003-01-14 22:00:31 +000010// This file contains the X86 implementation of the TargetInstrInfo class.
Chris Lattner72614082002-10-25 22:55:53 +000011//
12//===----------------------------------------------------------------------===//
13
Chris Lattner055c9652002-10-29 21:05:24 +000014#include "X86InstrInfo.h"
Chris Lattner4ce42a72002-12-03 05:42:53 +000015#include "X86.h"
Chris Lattnerabf05b22003-08-03 21:55:55 +000016#include "X86GenInstrInfo.inc"
Evan Chengaa3c1412006-05-30 21:45:53 +000017#include "X86InstrBuilder.h"
Owen Andersond94b6a12008-01-04 23:57:37 +000018#include "X86MachineFunctionInfo.h"
Evan Chengaa3c1412006-05-30 21:45:53 +000019#include "X86Subtarget.h"
20#include "X86TargetMachine.h"
Dan Gohmand68a0762009-01-05 17:59:02 +000021#include "llvm/DerivedTypes.h"
Owen Anderson0a5372e2009-07-13 04:09:18 +000022#include "llvm/LLVMContext.h"
Owen Anderson718cb662007-09-07 04:06:50 +000023#include "llvm/ADT/STLExtras.h"
Dan Gohman62c939d2008-12-03 05:21:24 +000024#include "llvm/CodeGen/MachineConstantPool.h"
Owen Andersond94b6a12008-01-04 23:57:37 +000025#include "llvm/CodeGen/MachineFrameInfo.h"
Evan Chengaa3c1412006-05-30 21:45:53 +000026#include "llvm/CodeGen/MachineInstrBuilder.h"
Chris Lattner84bc5422007-12-31 04:13:23 +000027#include "llvm/CodeGen/MachineRegisterInfo.h"
Evan Cheng258ff672006-12-01 21:52:41 +000028#include "llvm/CodeGen/LiveVariables.h"
David Greeneb87bc952009-11-12 20:55:29 +000029#include "llvm/CodeGen/PseudoSourceValue.h"
Owen Anderson43dbe052008-01-07 01:35:02 +000030#include "llvm/Support/CommandLine.h"
David Greene5b901322010-01-05 01:29:29 +000031#include "llvm/Support/Debug.h"
Torok Edwinab7c09b2009-07-08 18:01:40 +000032#include "llvm/Support/ErrorHandling.h"
33#include "llvm/Support/raw_ostream.h"
Evan Cheng0488db92007-09-25 01:57:46 +000034#include "llvm/Target/TargetOptions.h"
Chris Lattneraf76e592009-08-22 20:48:53 +000035#include "llvm/MC/MCAsmInfo.h"
David Greeneb87bc952009-11-12 20:55:29 +000036
37#include <limits>
38
Brian Gaeked0fde302003-11-11 22:41:34 +000039using namespace llvm;
40
Chris Lattner705e07f2009-08-23 03:41:05 +000041static cl::opt<bool>
42NoFusing("disable-spill-fusing",
43 cl::desc("Disable fusing of spill code into instructions"));
44static cl::opt<bool>
45PrintFailedFusing("print-failed-fuse-candidates",
46 cl::desc("Print instructions that the allocator wants to"
47 " fuse, but the X86 backend currently can't"),
48 cl::Hidden);
49static cl::opt<bool>
50ReMatPICStubLoad("remat-pic-stub-load",
51 cl::desc("Re-materialize load from stub in PIC mode"),
52 cl::init(false), cl::Hidden);
Owen Anderson43dbe052008-01-07 01:35:02 +000053
Evan Chengaa3c1412006-05-30 21:45:53 +000054X86InstrInfo::X86InstrInfo(X86TargetMachine &tm)
Chris Lattner64105522008-01-01 01:03:04 +000055 : TargetInstrInfoImpl(X86Insts, array_lengthof(X86Insts)),
Evan Cheng25ab6902006-09-08 06:48:29 +000056 TM(tm), RI(tm, *this) {
Owen Anderson43dbe052008-01-07 01:35:02 +000057 SmallVector<unsigned,16> AmbEntries;
58 static const unsigned OpTbl2Addr[][2] = {
59 { X86::ADC32ri, X86::ADC32mi },
60 { X86::ADC32ri8, X86::ADC32mi8 },
61 { X86::ADC32rr, X86::ADC32mr },
62 { X86::ADC64ri32, X86::ADC64mi32 },
63 { X86::ADC64ri8, X86::ADC64mi8 },
64 { X86::ADC64rr, X86::ADC64mr },
65 { X86::ADD16ri, X86::ADD16mi },
66 { X86::ADD16ri8, X86::ADD16mi8 },
67 { X86::ADD16rr, X86::ADD16mr },
68 { X86::ADD32ri, X86::ADD32mi },
69 { X86::ADD32ri8, X86::ADD32mi8 },
70 { X86::ADD32rr, X86::ADD32mr },
71 { X86::ADD64ri32, X86::ADD64mi32 },
72 { X86::ADD64ri8, X86::ADD64mi8 },
73 { X86::ADD64rr, X86::ADD64mr },
74 { X86::ADD8ri, X86::ADD8mi },
75 { X86::ADD8rr, X86::ADD8mr },
76 { X86::AND16ri, X86::AND16mi },
77 { X86::AND16ri8, X86::AND16mi8 },
78 { X86::AND16rr, X86::AND16mr },
79 { X86::AND32ri, X86::AND32mi },
80 { X86::AND32ri8, X86::AND32mi8 },
81 { X86::AND32rr, X86::AND32mr },
82 { X86::AND64ri32, X86::AND64mi32 },
83 { X86::AND64ri8, X86::AND64mi8 },
84 { X86::AND64rr, X86::AND64mr },
85 { X86::AND8ri, X86::AND8mi },
86 { X86::AND8rr, X86::AND8mr },
87 { X86::DEC16r, X86::DEC16m },
88 { X86::DEC32r, X86::DEC32m },
89 { X86::DEC64_16r, X86::DEC64_16m },
90 { X86::DEC64_32r, X86::DEC64_32m },
91 { X86::DEC64r, X86::DEC64m },
92 { X86::DEC8r, X86::DEC8m },
93 { X86::INC16r, X86::INC16m },
94 { X86::INC32r, X86::INC32m },
95 { X86::INC64_16r, X86::INC64_16m },
96 { X86::INC64_32r, X86::INC64_32m },
97 { X86::INC64r, X86::INC64m },
98 { X86::INC8r, X86::INC8m },
99 { X86::NEG16r, X86::NEG16m },
100 { X86::NEG32r, X86::NEG32m },
101 { X86::NEG64r, X86::NEG64m },
102 { X86::NEG8r, X86::NEG8m },
103 { X86::NOT16r, X86::NOT16m },
104 { X86::NOT32r, X86::NOT32m },
105 { X86::NOT64r, X86::NOT64m },
106 { X86::NOT8r, X86::NOT8m },
107 { X86::OR16ri, X86::OR16mi },
108 { X86::OR16ri8, X86::OR16mi8 },
109 { X86::OR16rr, X86::OR16mr },
110 { X86::OR32ri, X86::OR32mi },
111 { X86::OR32ri8, X86::OR32mi8 },
112 { X86::OR32rr, X86::OR32mr },
113 { X86::OR64ri32, X86::OR64mi32 },
114 { X86::OR64ri8, X86::OR64mi8 },
115 { X86::OR64rr, X86::OR64mr },
116 { X86::OR8ri, X86::OR8mi },
117 { X86::OR8rr, X86::OR8mr },
118 { X86::ROL16r1, X86::ROL16m1 },
119 { X86::ROL16rCL, X86::ROL16mCL },
120 { X86::ROL16ri, X86::ROL16mi },
121 { X86::ROL32r1, X86::ROL32m1 },
122 { X86::ROL32rCL, X86::ROL32mCL },
123 { X86::ROL32ri, X86::ROL32mi },
124 { X86::ROL64r1, X86::ROL64m1 },
125 { X86::ROL64rCL, X86::ROL64mCL },
126 { X86::ROL64ri, X86::ROL64mi },
127 { X86::ROL8r1, X86::ROL8m1 },
128 { X86::ROL8rCL, X86::ROL8mCL },
129 { X86::ROL8ri, X86::ROL8mi },
130 { X86::ROR16r1, X86::ROR16m1 },
131 { X86::ROR16rCL, X86::ROR16mCL },
132 { X86::ROR16ri, X86::ROR16mi },
133 { X86::ROR32r1, X86::ROR32m1 },
134 { X86::ROR32rCL, X86::ROR32mCL },
135 { X86::ROR32ri, X86::ROR32mi },
136 { X86::ROR64r1, X86::ROR64m1 },
137 { X86::ROR64rCL, X86::ROR64mCL },
138 { X86::ROR64ri, X86::ROR64mi },
139 { X86::ROR8r1, X86::ROR8m1 },
140 { X86::ROR8rCL, X86::ROR8mCL },
141 { X86::ROR8ri, X86::ROR8mi },
142 { X86::SAR16r1, X86::SAR16m1 },
143 { X86::SAR16rCL, X86::SAR16mCL },
144 { X86::SAR16ri, X86::SAR16mi },
145 { X86::SAR32r1, X86::SAR32m1 },
146 { X86::SAR32rCL, X86::SAR32mCL },
147 { X86::SAR32ri, X86::SAR32mi },
148 { X86::SAR64r1, X86::SAR64m1 },
149 { X86::SAR64rCL, X86::SAR64mCL },
150 { X86::SAR64ri, X86::SAR64mi },
151 { X86::SAR8r1, X86::SAR8m1 },
152 { X86::SAR8rCL, X86::SAR8mCL },
153 { X86::SAR8ri, X86::SAR8mi },
154 { X86::SBB32ri, X86::SBB32mi },
155 { X86::SBB32ri8, X86::SBB32mi8 },
156 { X86::SBB32rr, X86::SBB32mr },
157 { X86::SBB64ri32, X86::SBB64mi32 },
158 { X86::SBB64ri8, X86::SBB64mi8 },
159 { X86::SBB64rr, X86::SBB64mr },
Owen Anderson43dbe052008-01-07 01:35:02 +0000160 { X86::SHL16rCL, X86::SHL16mCL },
161 { X86::SHL16ri, X86::SHL16mi },
Owen Anderson43dbe052008-01-07 01:35:02 +0000162 { X86::SHL32rCL, X86::SHL32mCL },
163 { X86::SHL32ri, X86::SHL32mi },
Owen Anderson43dbe052008-01-07 01:35:02 +0000164 { X86::SHL64rCL, X86::SHL64mCL },
165 { X86::SHL64ri, X86::SHL64mi },
Owen Anderson43dbe052008-01-07 01:35:02 +0000166 { X86::SHL8rCL, X86::SHL8mCL },
167 { X86::SHL8ri, X86::SHL8mi },
168 { X86::SHLD16rrCL, X86::SHLD16mrCL },
169 { X86::SHLD16rri8, X86::SHLD16mri8 },
170 { X86::SHLD32rrCL, X86::SHLD32mrCL },
171 { X86::SHLD32rri8, X86::SHLD32mri8 },
172 { X86::SHLD64rrCL, X86::SHLD64mrCL },
173 { X86::SHLD64rri8, X86::SHLD64mri8 },
174 { X86::SHR16r1, X86::SHR16m1 },
175 { X86::SHR16rCL, X86::SHR16mCL },
176 { X86::SHR16ri, X86::SHR16mi },
177 { X86::SHR32r1, X86::SHR32m1 },
178 { X86::SHR32rCL, X86::SHR32mCL },
179 { X86::SHR32ri, X86::SHR32mi },
180 { X86::SHR64r1, X86::SHR64m1 },
181 { X86::SHR64rCL, X86::SHR64mCL },
182 { X86::SHR64ri, X86::SHR64mi },
183 { X86::SHR8r1, X86::SHR8m1 },
184 { X86::SHR8rCL, X86::SHR8mCL },
185 { X86::SHR8ri, X86::SHR8mi },
186 { X86::SHRD16rrCL, X86::SHRD16mrCL },
187 { X86::SHRD16rri8, X86::SHRD16mri8 },
188 { X86::SHRD32rrCL, X86::SHRD32mrCL },
189 { X86::SHRD32rri8, X86::SHRD32mri8 },
190 { X86::SHRD64rrCL, X86::SHRD64mrCL },
191 { X86::SHRD64rri8, X86::SHRD64mri8 },
192 { X86::SUB16ri, X86::SUB16mi },
193 { X86::SUB16ri8, X86::SUB16mi8 },
194 { X86::SUB16rr, X86::SUB16mr },
195 { X86::SUB32ri, X86::SUB32mi },
196 { X86::SUB32ri8, X86::SUB32mi8 },
197 { X86::SUB32rr, X86::SUB32mr },
198 { X86::SUB64ri32, X86::SUB64mi32 },
199 { X86::SUB64ri8, X86::SUB64mi8 },
200 { X86::SUB64rr, X86::SUB64mr },
201 { X86::SUB8ri, X86::SUB8mi },
202 { X86::SUB8rr, X86::SUB8mr },
203 { X86::XOR16ri, X86::XOR16mi },
204 { X86::XOR16ri8, X86::XOR16mi8 },
205 { X86::XOR16rr, X86::XOR16mr },
206 { X86::XOR32ri, X86::XOR32mi },
207 { X86::XOR32ri8, X86::XOR32mi8 },
208 { X86::XOR32rr, X86::XOR32mr },
209 { X86::XOR64ri32, X86::XOR64mi32 },
210 { X86::XOR64ri8, X86::XOR64mi8 },
211 { X86::XOR64rr, X86::XOR64mr },
212 { X86::XOR8ri, X86::XOR8mi },
213 { X86::XOR8rr, X86::XOR8mr }
214 };
215
216 for (unsigned i = 0, e = array_lengthof(OpTbl2Addr); i != e; ++i) {
217 unsigned RegOp = OpTbl2Addr[i][0];
218 unsigned MemOp = OpTbl2Addr[i][1];
Dan Gohman6b345ee2008-07-07 17:46:23 +0000219 if (!RegOp2MemOpTable2Addr.insert(std::make_pair((unsigned*)RegOp,
Evan Chengf9b36f02009-07-15 06:10:07 +0000220 std::make_pair(MemOp,0))).second)
Owen Anderson43dbe052008-01-07 01:35:02 +0000221 assert(false && "Duplicated entries?");
Evan Chengf9b36f02009-07-15 06:10:07 +0000222 // Index 0, folded load and store, no alignment requirement.
223 unsigned AuxInfo = 0 | (1 << 4) | (1 << 5);
Owen Anderson43dbe052008-01-07 01:35:02 +0000224 if (!MemOp2RegOpTable.insert(std::make_pair((unsigned*)MemOp,
Dan Gohman6b345ee2008-07-07 17:46:23 +0000225 std::make_pair(RegOp,
226 AuxInfo))).second)
Owen Anderson43dbe052008-01-07 01:35:02 +0000227 AmbEntries.push_back(MemOp);
228 }
229
230 // If the third value is 1, then it's folding either a load or a store.
Evan Chengf9b36f02009-07-15 06:10:07 +0000231 static const unsigned OpTbl0[][4] = {
232 { X86::BT16ri8, X86::BT16mi8, 1, 0 },
233 { X86::BT32ri8, X86::BT32mi8, 1, 0 },
234 { X86::BT64ri8, X86::BT64mi8, 1, 0 },
235 { X86::CALL32r, X86::CALL32m, 1, 0 },
236 { X86::CALL64r, X86::CALL64m, 1, 0 },
237 { X86::CMP16ri, X86::CMP16mi, 1, 0 },
238 { X86::CMP16ri8, X86::CMP16mi8, 1, 0 },
239 { X86::CMP16rr, X86::CMP16mr, 1, 0 },
240 { X86::CMP32ri, X86::CMP32mi, 1, 0 },
241 { X86::CMP32ri8, X86::CMP32mi8, 1, 0 },
242 { X86::CMP32rr, X86::CMP32mr, 1, 0 },
243 { X86::CMP64ri32, X86::CMP64mi32, 1, 0 },
244 { X86::CMP64ri8, X86::CMP64mi8, 1, 0 },
245 { X86::CMP64rr, X86::CMP64mr, 1, 0 },
246 { X86::CMP8ri, X86::CMP8mi, 1, 0 },
247 { X86::CMP8rr, X86::CMP8mr, 1, 0 },
248 { X86::DIV16r, X86::DIV16m, 1, 0 },
249 { X86::DIV32r, X86::DIV32m, 1, 0 },
250 { X86::DIV64r, X86::DIV64m, 1, 0 },
251 { X86::DIV8r, X86::DIV8m, 1, 0 },
252 { X86::EXTRACTPSrr, X86::EXTRACTPSmr, 0, 16 },
253 { X86::FsMOVAPDrr, X86::MOVSDmr, 0, 0 },
254 { X86::FsMOVAPSrr, X86::MOVSSmr, 0, 0 },
255 { X86::IDIV16r, X86::IDIV16m, 1, 0 },
256 { X86::IDIV32r, X86::IDIV32m, 1, 0 },
257 { X86::IDIV64r, X86::IDIV64m, 1, 0 },
258 { X86::IDIV8r, X86::IDIV8m, 1, 0 },
259 { X86::IMUL16r, X86::IMUL16m, 1, 0 },
260 { X86::IMUL32r, X86::IMUL32m, 1, 0 },
261 { X86::IMUL64r, X86::IMUL64m, 1, 0 },
262 { X86::IMUL8r, X86::IMUL8m, 1, 0 },
263 { X86::JMP32r, X86::JMP32m, 1, 0 },
264 { X86::JMP64r, X86::JMP64m, 1, 0 },
265 { X86::MOV16ri, X86::MOV16mi, 0, 0 },
266 { X86::MOV16rr, X86::MOV16mr, 0, 0 },
267 { X86::MOV32ri, X86::MOV32mi, 0, 0 },
268 { X86::MOV32rr, X86::MOV32mr, 0, 0 },
Evan Chengf48ef032010-03-14 03:48:46 +0000269 { X86::MOV32rr_TC, X86::MOV32mr_TC, 0, 0 },
Evan Chengf9b36f02009-07-15 06:10:07 +0000270 { X86::MOV64ri32, X86::MOV64mi32, 0, 0 },
271 { X86::MOV64rr, X86::MOV64mr, 0, 0 },
272 { X86::MOV8ri, X86::MOV8mi, 0, 0 },
273 { X86::MOV8rr, X86::MOV8mr, 0, 0 },
274 { X86::MOV8rr_NOREX, X86::MOV8mr_NOREX, 0, 0 },
275 { X86::MOVAPDrr, X86::MOVAPDmr, 0, 16 },
276 { X86::MOVAPSrr, X86::MOVAPSmr, 0, 16 },
277 { X86::MOVDQArr, X86::MOVDQAmr, 0, 16 },
278 { X86::MOVPDI2DIrr, X86::MOVPDI2DImr, 0, 0 },
279 { X86::MOVPQIto64rr,X86::MOVPQI2QImr, 0, 0 },
Evan Chengf9b36f02009-07-15 06:10:07 +0000280 { X86::MOVSDto64rr, X86::MOVSDto64mr, 0, 0 },
281 { X86::MOVSS2DIrr, X86::MOVSS2DImr, 0, 0 },
Evan Chengf9b36f02009-07-15 06:10:07 +0000282 { X86::MOVUPDrr, X86::MOVUPDmr, 0, 0 },
283 { X86::MOVUPSrr, X86::MOVUPSmr, 0, 0 },
284 { X86::MUL16r, X86::MUL16m, 1, 0 },
285 { X86::MUL32r, X86::MUL32m, 1, 0 },
286 { X86::MUL64r, X86::MUL64m, 1, 0 },
287 { X86::MUL8r, X86::MUL8m, 1, 0 },
288 { X86::SETAEr, X86::SETAEm, 0, 0 },
289 { X86::SETAr, X86::SETAm, 0, 0 },
290 { X86::SETBEr, X86::SETBEm, 0, 0 },
291 { X86::SETBr, X86::SETBm, 0, 0 },
292 { X86::SETEr, X86::SETEm, 0, 0 },
293 { X86::SETGEr, X86::SETGEm, 0, 0 },
294 { X86::SETGr, X86::SETGm, 0, 0 },
295 { X86::SETLEr, X86::SETLEm, 0, 0 },
296 { X86::SETLr, X86::SETLm, 0, 0 },
297 { X86::SETNEr, X86::SETNEm, 0, 0 },
298 { X86::SETNOr, X86::SETNOm, 0, 0 },
299 { X86::SETNPr, X86::SETNPm, 0, 0 },
300 { X86::SETNSr, X86::SETNSm, 0, 0 },
301 { X86::SETOr, X86::SETOm, 0, 0 },
302 { X86::SETPr, X86::SETPm, 0, 0 },
303 { X86::SETSr, X86::SETSm, 0, 0 },
304 { X86::TAILJMPr, X86::TAILJMPm, 1, 0 },
Evan Chengf48ef032010-03-14 03:48:46 +0000305 { X86::TAILJMPr64, X86::TAILJMPm64, 1, 0 },
Evan Chengf9b36f02009-07-15 06:10:07 +0000306 { X86::TEST16ri, X86::TEST16mi, 1, 0 },
307 { X86::TEST32ri, X86::TEST32mi, 1, 0 },
308 { X86::TEST64ri32, X86::TEST64mi32, 1, 0 },
309 { X86::TEST8ri, X86::TEST8mi, 1, 0 }
Owen Anderson43dbe052008-01-07 01:35:02 +0000310 };
311
312 for (unsigned i = 0, e = array_lengthof(OpTbl0); i != e; ++i) {
313 unsigned RegOp = OpTbl0[i][0];
314 unsigned MemOp = OpTbl0[i][1];
Evan Chengf9b36f02009-07-15 06:10:07 +0000315 unsigned Align = OpTbl0[i][3];
Dan Gohman6b345ee2008-07-07 17:46:23 +0000316 if (!RegOp2MemOpTable0.insert(std::make_pair((unsigned*)RegOp,
Evan Chengf9b36f02009-07-15 06:10:07 +0000317 std::make_pair(MemOp,Align))).second)
Owen Anderson43dbe052008-01-07 01:35:02 +0000318 assert(false && "Duplicated entries?");
319 unsigned FoldedLoad = OpTbl0[i][2];
320 // Index 0, folded load or store.
321 unsigned AuxInfo = 0 | (FoldedLoad << 4) | ((FoldedLoad^1) << 5);
322 if (RegOp != X86::FsMOVAPDrr && RegOp != X86::FsMOVAPSrr)
323 if (!MemOp2RegOpTable.insert(std::make_pair((unsigned*)MemOp,
Dan Gohman6b345ee2008-07-07 17:46:23 +0000324 std::make_pair(RegOp, AuxInfo))).second)
Owen Anderson43dbe052008-01-07 01:35:02 +0000325 AmbEntries.push_back(MemOp);
326 }
327
Evan Chengf9b36f02009-07-15 06:10:07 +0000328 static const unsigned OpTbl1[][3] = {
329 { X86::CMP16rr, X86::CMP16rm, 0 },
330 { X86::CMP32rr, X86::CMP32rm, 0 },
331 { X86::CMP64rr, X86::CMP64rm, 0 },
332 { X86::CMP8rr, X86::CMP8rm, 0 },
333 { X86::CVTSD2SSrr, X86::CVTSD2SSrm, 0 },
334 { X86::CVTSI2SD64rr, X86::CVTSI2SD64rm, 0 },
335 { X86::CVTSI2SDrr, X86::CVTSI2SDrm, 0 },
336 { X86::CVTSI2SS64rr, X86::CVTSI2SS64rm, 0 },
337 { X86::CVTSI2SSrr, X86::CVTSI2SSrm, 0 },
338 { X86::CVTSS2SDrr, X86::CVTSS2SDrm, 0 },
339 { X86::CVTTSD2SI64rr, X86::CVTTSD2SI64rm, 0 },
340 { X86::CVTTSD2SIrr, X86::CVTTSD2SIrm, 0 },
341 { X86::CVTTSS2SI64rr, X86::CVTTSS2SI64rm, 0 },
342 { X86::CVTTSS2SIrr, X86::CVTTSS2SIrm, 0 },
343 { X86::FsMOVAPDrr, X86::MOVSDrm, 0 },
344 { X86::FsMOVAPSrr, X86::MOVSSrm, 0 },
345 { X86::IMUL16rri, X86::IMUL16rmi, 0 },
346 { X86::IMUL16rri8, X86::IMUL16rmi8, 0 },
347 { X86::IMUL32rri, X86::IMUL32rmi, 0 },
348 { X86::IMUL32rri8, X86::IMUL32rmi8, 0 },
349 { X86::IMUL64rri32, X86::IMUL64rmi32, 0 },
350 { X86::IMUL64rri8, X86::IMUL64rmi8, 0 },
351 { X86::Int_CMPSDrr, X86::Int_CMPSDrm, 0 },
352 { X86::Int_CMPSSrr, X86::Int_CMPSSrm, 0 },
353 { X86::Int_COMISDrr, X86::Int_COMISDrm, 0 },
354 { X86::Int_COMISSrr, X86::Int_COMISSrm, 0 },
355 { X86::Int_CVTDQ2PDrr, X86::Int_CVTDQ2PDrm, 16 },
356 { X86::Int_CVTDQ2PSrr, X86::Int_CVTDQ2PSrm, 16 },
357 { X86::Int_CVTPD2DQrr, X86::Int_CVTPD2DQrm, 16 },
358 { X86::Int_CVTPD2PSrr, X86::Int_CVTPD2PSrm, 16 },
359 { X86::Int_CVTPS2DQrr, X86::Int_CVTPS2DQrm, 16 },
360 { X86::Int_CVTPS2PDrr, X86::Int_CVTPS2PDrm, 0 },
361 { X86::Int_CVTSD2SI64rr,X86::Int_CVTSD2SI64rm, 0 },
362 { X86::Int_CVTSD2SIrr, X86::Int_CVTSD2SIrm, 0 },
363 { X86::Int_CVTSD2SSrr, X86::Int_CVTSD2SSrm, 0 },
364 { X86::Int_CVTSI2SD64rr,X86::Int_CVTSI2SD64rm, 0 },
365 { X86::Int_CVTSI2SDrr, X86::Int_CVTSI2SDrm, 0 },
366 { X86::Int_CVTSI2SS64rr,X86::Int_CVTSI2SS64rm, 0 },
367 { X86::Int_CVTSI2SSrr, X86::Int_CVTSI2SSrm, 0 },
368 { X86::Int_CVTSS2SDrr, X86::Int_CVTSS2SDrm, 0 },
369 { X86::Int_CVTSS2SI64rr,X86::Int_CVTSS2SI64rm, 0 },
370 { X86::Int_CVTSS2SIrr, X86::Int_CVTSS2SIrm, 0 },
371 { X86::Int_CVTTPD2DQrr, X86::Int_CVTTPD2DQrm, 16 },
372 { X86::Int_CVTTPS2DQrr, X86::Int_CVTTPS2DQrm, 16 },
373 { X86::Int_CVTTSD2SI64rr,X86::Int_CVTTSD2SI64rm, 0 },
374 { X86::Int_CVTTSD2SIrr, X86::Int_CVTTSD2SIrm, 0 },
375 { X86::Int_CVTTSS2SI64rr,X86::Int_CVTTSS2SI64rm, 0 },
376 { X86::Int_CVTTSS2SIrr, X86::Int_CVTTSS2SIrm, 0 },
377 { X86::Int_UCOMISDrr, X86::Int_UCOMISDrm, 0 },
378 { X86::Int_UCOMISSrr, X86::Int_UCOMISSrm, 0 },
379 { X86::MOV16rr, X86::MOV16rm, 0 },
380 { X86::MOV32rr, X86::MOV32rm, 0 },
Evan Chengf48ef032010-03-14 03:48:46 +0000381 { X86::MOV32rr_TC, X86::MOV32rm_TC, 0 },
Evan Chengf9b36f02009-07-15 06:10:07 +0000382 { X86::MOV64rr, X86::MOV64rm, 0 },
383 { X86::MOV64toPQIrr, X86::MOVQI2PQIrm, 0 },
384 { X86::MOV64toSDrr, X86::MOV64toSDrm, 0 },
385 { X86::MOV8rr, X86::MOV8rm, 0 },
386 { X86::MOVAPDrr, X86::MOVAPDrm, 16 },
387 { X86::MOVAPSrr, X86::MOVAPSrm, 16 },
388 { X86::MOVDDUPrr, X86::MOVDDUPrm, 0 },
389 { X86::MOVDI2PDIrr, X86::MOVDI2PDIrm, 0 },
390 { X86::MOVDI2SSrr, X86::MOVDI2SSrm, 0 },
391 { X86::MOVDQArr, X86::MOVDQArm, 16 },
Evan Chengf9b36f02009-07-15 06:10:07 +0000392 { X86::MOVSHDUPrr, X86::MOVSHDUPrm, 16 },
393 { X86::MOVSLDUPrr, X86::MOVSLDUPrm, 16 },
Evan Chengf9b36f02009-07-15 06:10:07 +0000394 { X86::MOVSX16rr8, X86::MOVSX16rm8, 0 },
395 { X86::MOVSX32rr16, X86::MOVSX32rm16, 0 },
396 { X86::MOVSX32rr8, X86::MOVSX32rm8, 0 },
397 { X86::MOVSX64rr16, X86::MOVSX64rm16, 0 },
398 { X86::MOVSX64rr32, X86::MOVSX64rm32, 0 },
399 { X86::MOVSX64rr8, X86::MOVSX64rm8, 0 },
400 { X86::MOVUPDrr, X86::MOVUPDrm, 16 },
Evan Cheng94da7212010-01-21 00:55:14 +0000401 { X86::MOVUPSrr, X86::MOVUPSrm, 0 },
Evan Chengf9b36f02009-07-15 06:10:07 +0000402 { X86::MOVZDI2PDIrr, X86::MOVZDI2PDIrm, 0 },
403 { X86::MOVZQI2PQIrr, X86::MOVZQI2PQIrm, 0 },
404 { X86::MOVZPQILo2PQIrr, X86::MOVZPQILo2PQIrm, 16 },
405 { X86::MOVZX16rr8, X86::MOVZX16rm8, 0 },
406 { X86::MOVZX32rr16, X86::MOVZX32rm16, 0 },
407 { X86::MOVZX32_NOREXrr8, X86::MOVZX32_NOREXrm8, 0 },
408 { X86::MOVZX32rr8, X86::MOVZX32rm8, 0 },
409 { X86::MOVZX64rr16, X86::MOVZX64rm16, 0 },
410 { X86::MOVZX64rr32, X86::MOVZX64rm32, 0 },
411 { X86::MOVZX64rr8, X86::MOVZX64rm8, 0 },
412 { X86::PSHUFDri, X86::PSHUFDmi, 16 },
413 { X86::PSHUFHWri, X86::PSHUFHWmi, 16 },
414 { X86::PSHUFLWri, X86::PSHUFLWmi, 16 },
415 { X86::RCPPSr, X86::RCPPSm, 16 },
416 { X86::RCPPSr_Int, X86::RCPPSm_Int, 16 },
417 { X86::RSQRTPSr, X86::RSQRTPSm, 16 },
418 { X86::RSQRTPSr_Int, X86::RSQRTPSm_Int, 16 },
419 { X86::RSQRTSSr, X86::RSQRTSSm, 0 },
420 { X86::RSQRTSSr_Int, X86::RSQRTSSm_Int, 0 },
421 { X86::SQRTPDr, X86::SQRTPDm, 16 },
422 { X86::SQRTPDr_Int, X86::SQRTPDm_Int, 16 },
423 { X86::SQRTPSr, X86::SQRTPSm, 16 },
424 { X86::SQRTPSr_Int, X86::SQRTPSm_Int, 16 },
425 { X86::SQRTSDr, X86::SQRTSDm, 0 },
426 { X86::SQRTSDr_Int, X86::SQRTSDm_Int, 0 },
427 { X86::SQRTSSr, X86::SQRTSSm, 0 },
428 { X86::SQRTSSr_Int, X86::SQRTSSm_Int, 0 },
429 { X86::TEST16rr, X86::TEST16rm, 0 },
430 { X86::TEST32rr, X86::TEST32rm, 0 },
431 { X86::TEST64rr, X86::TEST64rm, 0 },
432 { X86::TEST8rr, X86::TEST8rm, 0 },
Owen Anderson43dbe052008-01-07 01:35:02 +0000433 // FIXME: TEST*rr EAX,EAX ---> CMP [mem], 0
Evan Chengf9b36f02009-07-15 06:10:07 +0000434 { X86::UCOMISDrr, X86::UCOMISDrm, 0 },
435 { X86::UCOMISSrr, X86::UCOMISSrm, 0 }
Owen Anderson43dbe052008-01-07 01:35:02 +0000436 };
437
438 for (unsigned i = 0, e = array_lengthof(OpTbl1); i != e; ++i) {
439 unsigned RegOp = OpTbl1[i][0];
440 unsigned MemOp = OpTbl1[i][1];
Evan Chengf9b36f02009-07-15 06:10:07 +0000441 unsigned Align = OpTbl1[i][2];
Dan Gohman6b345ee2008-07-07 17:46:23 +0000442 if (!RegOp2MemOpTable1.insert(std::make_pair((unsigned*)RegOp,
Evan Chengf9b36f02009-07-15 06:10:07 +0000443 std::make_pair(MemOp,Align))).second)
Owen Anderson43dbe052008-01-07 01:35:02 +0000444 assert(false && "Duplicated entries?");
Evan Chengf9b36f02009-07-15 06:10:07 +0000445 // Index 1, folded load
446 unsigned AuxInfo = 1 | (1 << 4);
Owen Anderson43dbe052008-01-07 01:35:02 +0000447 if (RegOp != X86::FsMOVAPDrr && RegOp != X86::FsMOVAPSrr)
448 if (!MemOp2RegOpTable.insert(std::make_pair((unsigned*)MemOp,
Dan Gohman6b345ee2008-07-07 17:46:23 +0000449 std::make_pair(RegOp, AuxInfo))).second)
Owen Anderson43dbe052008-01-07 01:35:02 +0000450 AmbEntries.push_back(MemOp);
451 }
452
Evan Chengf9b36f02009-07-15 06:10:07 +0000453 static const unsigned OpTbl2[][3] = {
454 { X86::ADC32rr, X86::ADC32rm, 0 },
455 { X86::ADC64rr, X86::ADC64rm, 0 },
456 { X86::ADD16rr, X86::ADD16rm, 0 },
457 { X86::ADD32rr, X86::ADD32rm, 0 },
458 { X86::ADD64rr, X86::ADD64rm, 0 },
459 { X86::ADD8rr, X86::ADD8rm, 0 },
460 { X86::ADDPDrr, X86::ADDPDrm, 16 },
461 { X86::ADDPSrr, X86::ADDPSrm, 16 },
462 { X86::ADDSDrr, X86::ADDSDrm, 0 },
463 { X86::ADDSSrr, X86::ADDSSrm, 0 },
464 { X86::ADDSUBPDrr, X86::ADDSUBPDrm, 16 },
465 { X86::ADDSUBPSrr, X86::ADDSUBPSrm, 16 },
466 { X86::AND16rr, X86::AND16rm, 0 },
467 { X86::AND32rr, X86::AND32rm, 0 },
468 { X86::AND64rr, X86::AND64rm, 0 },
469 { X86::AND8rr, X86::AND8rm, 0 },
470 { X86::ANDNPDrr, X86::ANDNPDrm, 16 },
471 { X86::ANDNPSrr, X86::ANDNPSrm, 16 },
472 { X86::ANDPDrr, X86::ANDPDrm, 16 },
473 { X86::ANDPSrr, X86::ANDPSrm, 16 },
474 { X86::CMOVA16rr, X86::CMOVA16rm, 0 },
475 { X86::CMOVA32rr, X86::CMOVA32rm, 0 },
476 { X86::CMOVA64rr, X86::CMOVA64rm, 0 },
477 { X86::CMOVAE16rr, X86::CMOVAE16rm, 0 },
478 { X86::CMOVAE32rr, X86::CMOVAE32rm, 0 },
479 { X86::CMOVAE64rr, X86::CMOVAE64rm, 0 },
480 { X86::CMOVB16rr, X86::CMOVB16rm, 0 },
481 { X86::CMOVB32rr, X86::CMOVB32rm, 0 },
482 { X86::CMOVB64rr, X86::CMOVB64rm, 0 },
483 { X86::CMOVBE16rr, X86::CMOVBE16rm, 0 },
484 { X86::CMOVBE32rr, X86::CMOVBE32rm, 0 },
485 { X86::CMOVBE64rr, X86::CMOVBE64rm, 0 },
486 { X86::CMOVE16rr, X86::CMOVE16rm, 0 },
487 { X86::CMOVE32rr, X86::CMOVE32rm, 0 },
488 { X86::CMOVE64rr, X86::CMOVE64rm, 0 },
489 { X86::CMOVG16rr, X86::CMOVG16rm, 0 },
490 { X86::CMOVG32rr, X86::CMOVG32rm, 0 },
491 { X86::CMOVG64rr, X86::CMOVG64rm, 0 },
492 { X86::CMOVGE16rr, X86::CMOVGE16rm, 0 },
493 { X86::CMOVGE32rr, X86::CMOVGE32rm, 0 },
494 { X86::CMOVGE64rr, X86::CMOVGE64rm, 0 },
495 { X86::CMOVL16rr, X86::CMOVL16rm, 0 },
496 { X86::CMOVL32rr, X86::CMOVL32rm, 0 },
497 { X86::CMOVL64rr, X86::CMOVL64rm, 0 },
498 { X86::CMOVLE16rr, X86::CMOVLE16rm, 0 },
499 { X86::CMOVLE32rr, X86::CMOVLE32rm, 0 },
500 { X86::CMOVLE64rr, X86::CMOVLE64rm, 0 },
501 { X86::CMOVNE16rr, X86::CMOVNE16rm, 0 },
502 { X86::CMOVNE32rr, X86::CMOVNE32rm, 0 },
503 { X86::CMOVNE64rr, X86::CMOVNE64rm, 0 },
504 { X86::CMOVNO16rr, X86::CMOVNO16rm, 0 },
505 { X86::CMOVNO32rr, X86::CMOVNO32rm, 0 },
506 { X86::CMOVNO64rr, X86::CMOVNO64rm, 0 },
507 { X86::CMOVNP16rr, X86::CMOVNP16rm, 0 },
508 { X86::CMOVNP32rr, X86::CMOVNP32rm, 0 },
509 { X86::CMOVNP64rr, X86::CMOVNP64rm, 0 },
510 { X86::CMOVNS16rr, X86::CMOVNS16rm, 0 },
511 { X86::CMOVNS32rr, X86::CMOVNS32rm, 0 },
512 { X86::CMOVNS64rr, X86::CMOVNS64rm, 0 },
513 { X86::CMOVO16rr, X86::CMOVO16rm, 0 },
514 { X86::CMOVO32rr, X86::CMOVO32rm, 0 },
515 { X86::CMOVO64rr, X86::CMOVO64rm, 0 },
516 { X86::CMOVP16rr, X86::CMOVP16rm, 0 },
517 { X86::CMOVP32rr, X86::CMOVP32rm, 0 },
518 { X86::CMOVP64rr, X86::CMOVP64rm, 0 },
519 { X86::CMOVS16rr, X86::CMOVS16rm, 0 },
520 { X86::CMOVS32rr, X86::CMOVS32rm, 0 },
521 { X86::CMOVS64rr, X86::CMOVS64rm, 0 },
522 { X86::CMPPDrri, X86::CMPPDrmi, 16 },
523 { X86::CMPPSrri, X86::CMPPSrmi, 16 },
524 { X86::CMPSDrr, X86::CMPSDrm, 0 },
525 { X86::CMPSSrr, X86::CMPSSrm, 0 },
526 { X86::DIVPDrr, X86::DIVPDrm, 16 },
527 { X86::DIVPSrr, X86::DIVPSrm, 16 },
528 { X86::DIVSDrr, X86::DIVSDrm, 0 },
529 { X86::DIVSSrr, X86::DIVSSrm, 0 },
530 { X86::FsANDNPDrr, X86::FsANDNPDrm, 16 },
531 { X86::FsANDNPSrr, X86::FsANDNPSrm, 16 },
532 { X86::FsANDPDrr, X86::FsANDPDrm, 16 },
533 { X86::FsANDPSrr, X86::FsANDPSrm, 16 },
534 { X86::FsORPDrr, X86::FsORPDrm, 16 },
535 { X86::FsORPSrr, X86::FsORPSrm, 16 },
536 { X86::FsXORPDrr, X86::FsXORPDrm, 16 },
537 { X86::FsXORPSrr, X86::FsXORPSrm, 16 },
538 { X86::HADDPDrr, X86::HADDPDrm, 16 },
539 { X86::HADDPSrr, X86::HADDPSrm, 16 },
540 { X86::HSUBPDrr, X86::HSUBPDrm, 16 },
541 { X86::HSUBPSrr, X86::HSUBPSrm, 16 },
542 { X86::IMUL16rr, X86::IMUL16rm, 0 },
543 { X86::IMUL32rr, X86::IMUL32rm, 0 },
544 { X86::IMUL64rr, X86::IMUL64rm, 0 },
545 { X86::MAXPDrr, X86::MAXPDrm, 16 },
546 { X86::MAXPDrr_Int, X86::MAXPDrm_Int, 16 },
547 { X86::MAXPSrr, X86::MAXPSrm, 16 },
548 { X86::MAXPSrr_Int, X86::MAXPSrm_Int, 16 },
549 { X86::MAXSDrr, X86::MAXSDrm, 0 },
550 { X86::MAXSDrr_Int, X86::MAXSDrm_Int, 0 },
551 { X86::MAXSSrr, X86::MAXSSrm, 0 },
552 { X86::MAXSSrr_Int, X86::MAXSSrm_Int, 0 },
553 { X86::MINPDrr, X86::MINPDrm, 16 },
554 { X86::MINPDrr_Int, X86::MINPDrm_Int, 16 },
555 { X86::MINPSrr, X86::MINPSrm, 16 },
556 { X86::MINPSrr_Int, X86::MINPSrm_Int, 16 },
557 { X86::MINSDrr, X86::MINSDrm, 0 },
558 { X86::MINSDrr_Int, X86::MINSDrm_Int, 0 },
559 { X86::MINSSrr, X86::MINSSrm, 0 },
560 { X86::MINSSrr_Int, X86::MINSSrm_Int, 0 },
561 { X86::MULPDrr, X86::MULPDrm, 16 },
562 { X86::MULPSrr, X86::MULPSrm, 16 },
563 { X86::MULSDrr, X86::MULSDrm, 0 },
564 { X86::MULSSrr, X86::MULSSrm, 0 },
565 { X86::OR16rr, X86::OR16rm, 0 },
566 { X86::OR32rr, X86::OR32rm, 0 },
567 { X86::OR64rr, X86::OR64rm, 0 },
568 { X86::OR8rr, X86::OR8rm, 0 },
569 { X86::ORPDrr, X86::ORPDrm, 16 },
570 { X86::ORPSrr, X86::ORPSrm, 16 },
571 { X86::PACKSSDWrr, X86::PACKSSDWrm, 16 },
572 { X86::PACKSSWBrr, X86::PACKSSWBrm, 16 },
573 { X86::PACKUSWBrr, X86::PACKUSWBrm, 16 },
574 { X86::PADDBrr, X86::PADDBrm, 16 },
575 { X86::PADDDrr, X86::PADDDrm, 16 },
576 { X86::PADDQrr, X86::PADDQrm, 16 },
577 { X86::PADDSBrr, X86::PADDSBrm, 16 },
578 { X86::PADDSWrr, X86::PADDSWrm, 16 },
579 { X86::PADDWrr, X86::PADDWrm, 16 },
580 { X86::PANDNrr, X86::PANDNrm, 16 },
581 { X86::PANDrr, X86::PANDrm, 16 },
582 { X86::PAVGBrr, X86::PAVGBrm, 16 },
583 { X86::PAVGWrr, X86::PAVGWrm, 16 },
584 { X86::PCMPEQBrr, X86::PCMPEQBrm, 16 },
585 { X86::PCMPEQDrr, X86::PCMPEQDrm, 16 },
586 { X86::PCMPEQWrr, X86::PCMPEQWrm, 16 },
587 { X86::PCMPGTBrr, X86::PCMPGTBrm, 16 },
588 { X86::PCMPGTDrr, X86::PCMPGTDrm, 16 },
589 { X86::PCMPGTWrr, X86::PCMPGTWrm, 16 },
590 { X86::PINSRWrri, X86::PINSRWrmi, 16 },
591 { X86::PMADDWDrr, X86::PMADDWDrm, 16 },
592 { X86::PMAXSWrr, X86::PMAXSWrm, 16 },
593 { X86::PMAXUBrr, X86::PMAXUBrm, 16 },
594 { X86::PMINSWrr, X86::PMINSWrm, 16 },
595 { X86::PMINUBrr, X86::PMINUBrm, 16 },
596 { X86::PMULDQrr, X86::PMULDQrm, 16 },
597 { X86::PMULHUWrr, X86::PMULHUWrm, 16 },
598 { X86::PMULHWrr, X86::PMULHWrm, 16 },
599 { X86::PMULLDrr, X86::PMULLDrm, 16 },
Evan Chengf9b36f02009-07-15 06:10:07 +0000600 { X86::PMULLWrr, X86::PMULLWrm, 16 },
601 { X86::PMULUDQrr, X86::PMULUDQrm, 16 },
602 { X86::PORrr, X86::PORrm, 16 },
603 { X86::PSADBWrr, X86::PSADBWrm, 16 },
604 { X86::PSLLDrr, X86::PSLLDrm, 16 },
605 { X86::PSLLQrr, X86::PSLLQrm, 16 },
606 { X86::PSLLWrr, X86::PSLLWrm, 16 },
607 { X86::PSRADrr, X86::PSRADrm, 16 },
608 { X86::PSRAWrr, X86::PSRAWrm, 16 },
609 { X86::PSRLDrr, X86::PSRLDrm, 16 },
610 { X86::PSRLQrr, X86::PSRLQrm, 16 },
611 { X86::PSRLWrr, X86::PSRLWrm, 16 },
612 { X86::PSUBBrr, X86::PSUBBrm, 16 },
613 { X86::PSUBDrr, X86::PSUBDrm, 16 },
614 { X86::PSUBSBrr, X86::PSUBSBrm, 16 },
615 { X86::PSUBSWrr, X86::PSUBSWrm, 16 },
616 { X86::PSUBWrr, X86::PSUBWrm, 16 },
617 { X86::PUNPCKHBWrr, X86::PUNPCKHBWrm, 16 },
618 { X86::PUNPCKHDQrr, X86::PUNPCKHDQrm, 16 },
619 { X86::PUNPCKHQDQrr, X86::PUNPCKHQDQrm, 16 },
620 { X86::PUNPCKHWDrr, X86::PUNPCKHWDrm, 16 },
621 { X86::PUNPCKLBWrr, X86::PUNPCKLBWrm, 16 },
622 { X86::PUNPCKLDQrr, X86::PUNPCKLDQrm, 16 },
623 { X86::PUNPCKLQDQrr, X86::PUNPCKLQDQrm, 16 },
624 { X86::PUNPCKLWDrr, X86::PUNPCKLWDrm, 16 },
625 { X86::PXORrr, X86::PXORrm, 16 },
626 { X86::SBB32rr, X86::SBB32rm, 0 },
627 { X86::SBB64rr, X86::SBB64rm, 0 },
628 { X86::SHUFPDrri, X86::SHUFPDrmi, 16 },
629 { X86::SHUFPSrri, X86::SHUFPSrmi, 16 },
630 { X86::SUB16rr, X86::SUB16rm, 0 },
631 { X86::SUB32rr, X86::SUB32rm, 0 },
632 { X86::SUB64rr, X86::SUB64rm, 0 },
633 { X86::SUB8rr, X86::SUB8rm, 0 },
634 { X86::SUBPDrr, X86::SUBPDrm, 16 },
635 { X86::SUBPSrr, X86::SUBPSrm, 16 },
636 { X86::SUBSDrr, X86::SUBSDrm, 0 },
637 { X86::SUBSSrr, X86::SUBSSrm, 0 },
Owen Anderson43dbe052008-01-07 01:35:02 +0000638 // FIXME: TEST*rr -> swapped operand of TEST*mr.
Evan Chengf9b36f02009-07-15 06:10:07 +0000639 { X86::UNPCKHPDrr, X86::UNPCKHPDrm, 16 },
640 { X86::UNPCKHPSrr, X86::UNPCKHPSrm, 16 },
641 { X86::UNPCKLPDrr, X86::UNPCKLPDrm, 16 },
642 { X86::UNPCKLPSrr, X86::UNPCKLPSrm, 16 },
643 { X86::XOR16rr, X86::XOR16rm, 0 },
644 { X86::XOR32rr, X86::XOR32rm, 0 },
645 { X86::XOR64rr, X86::XOR64rm, 0 },
646 { X86::XOR8rr, X86::XOR8rm, 0 },
647 { X86::XORPDrr, X86::XORPDrm, 16 },
648 { X86::XORPSrr, X86::XORPSrm, 16 }
Owen Anderson43dbe052008-01-07 01:35:02 +0000649 };
650
651 for (unsigned i = 0, e = array_lengthof(OpTbl2); i != e; ++i) {
652 unsigned RegOp = OpTbl2[i][0];
653 unsigned MemOp = OpTbl2[i][1];
Evan Chengf9b36f02009-07-15 06:10:07 +0000654 unsigned Align = OpTbl2[i][2];
Dan Gohman6b345ee2008-07-07 17:46:23 +0000655 if (!RegOp2MemOpTable2.insert(std::make_pair((unsigned*)RegOp,
Evan Chengf9b36f02009-07-15 06:10:07 +0000656 std::make_pair(MemOp,Align))).second)
Owen Anderson43dbe052008-01-07 01:35:02 +0000657 assert(false && "Duplicated entries?");
Evan Chengf9b36f02009-07-15 06:10:07 +0000658 // Index 2, folded load
659 unsigned AuxInfo = 2 | (1 << 4);
Owen Anderson43dbe052008-01-07 01:35:02 +0000660 if (!MemOp2RegOpTable.insert(std::make_pair((unsigned*)MemOp,
Dan Gohman6b345ee2008-07-07 17:46:23 +0000661 std::make_pair(RegOp, AuxInfo))).second)
Owen Anderson43dbe052008-01-07 01:35:02 +0000662 AmbEntries.push_back(MemOp);
663 }
664
665 // Remove ambiguous entries.
666 assert(AmbEntries.empty() && "Duplicated entries in unfolding maps?");
Chris Lattner72614082002-10-25 22:55:53 +0000667}
668
Alkis Evlogimenos5e300022003-12-28 17:35:08 +0000669bool X86InstrInfo::isMoveInstr(const MachineInstr& MI,
Evan Cheng04ee5a12009-01-20 19:12:24 +0000670 unsigned &SrcReg, unsigned &DstReg,
671 unsigned &SrcSubIdx, unsigned &DstSubIdx) const {
Chris Lattner07f7cc32008-03-11 19:28:17 +0000672 switch (MI.getOpcode()) {
673 default:
674 return false;
675 case X86::MOV8rr:
Bill Wendling18247732009-04-17 22:40:38 +0000676 case X86::MOV8rr_NOREX:
Chris Lattner07f7cc32008-03-11 19:28:17 +0000677 case X86::MOV16rr:
678 case X86::MOV32rr:
679 case X86::MOV64rr:
Evan Chengf48ef032010-03-14 03:48:46 +0000680 case X86::MOV32rr_TC:
681 case X86::MOV64rr_TC:
Chris Lattner1d386772008-03-11 19:30:09 +0000682
683 // FP Stack register class copies
684 case X86::MOV_Fp3232: case X86::MOV_Fp6464: case X86::MOV_Fp8080:
685 case X86::MOV_Fp3264: case X86::MOV_Fp3280:
686 case X86::MOV_Fp6432: case X86::MOV_Fp8032:
Dan Gohman874cada2010-02-28 00:17:42 +0000687
688 // Note that MOVSSrr and MOVSDrr are not considered copies. FR32 and FR64
689 // copies are done with FsMOVAPSrr and FsMOVAPDrr.
690
Chris Lattner07f7cc32008-03-11 19:28:17 +0000691 case X86::FsMOVAPSrr:
692 case X86::FsMOVAPDrr:
693 case X86::MOVAPSrr:
694 case X86::MOVAPDrr:
Dan Gohman54462742009-01-09 02:40:34 +0000695 case X86::MOVDQArr:
Chris Lattner07f7cc32008-03-11 19:28:17 +0000696 case X86::MMX_MOVQ64rr:
697 assert(MI.getNumOperands() >= 2 &&
Dan Gohmand735b802008-10-03 15:45:36 +0000698 MI.getOperand(0).isReg() &&
699 MI.getOperand(1).isReg() &&
Chris Lattner07f7cc32008-03-11 19:28:17 +0000700 "invalid register-register move instruction");
Evan Cheng04ee5a12009-01-20 19:12:24 +0000701 SrcReg = MI.getOperand(1).getReg();
702 DstReg = MI.getOperand(0).getReg();
703 SrcSubIdx = MI.getOperand(1).getSubReg();
704 DstSubIdx = MI.getOperand(0).getSubReg();
Chris Lattner07f7cc32008-03-11 19:28:17 +0000705 return true;
Alkis Evlogimenos5e300022003-12-28 17:35:08 +0000706 }
Alkis Evlogimenos5e300022003-12-28 17:35:08 +0000707}
Alkis Evlogimenos36f506e2004-07-31 09:38:47 +0000708
Evan Chenga5a81d72010-01-12 00:09:37 +0000709bool
Evan Cheng7da9ecf2010-01-13 00:30:23 +0000710X86InstrInfo::isCoalescableExtInstr(const MachineInstr &MI,
711 unsigned &SrcReg, unsigned &DstReg,
712 unsigned &SubIdx) const {
Evan Chenga5a81d72010-01-12 00:09:37 +0000713 switch (MI.getOpcode()) {
714 default: break;
715 case X86::MOVSX16rr8:
716 case X86::MOVZX16rr8:
717 case X86::MOVSX32rr8:
718 case X86::MOVZX32rr8:
719 case X86::MOVSX64rr8:
720 case X86::MOVZX64rr8:
Evan Cheng57d1d932010-01-13 08:01:32 +0000721 if (!TM.getSubtarget<X86Subtarget>().is64Bit())
722 // It's not always legal to reference the low 8-bit of the larger
723 // register in 32-bit mode.
724 return false;
Evan Chenga5a81d72010-01-12 00:09:37 +0000725 case X86::MOVSX32rr16:
726 case X86::MOVZX32rr16:
727 case X86::MOVSX64rr16:
728 case X86::MOVZX64rr16:
729 case X86::MOVSX64rr32:
730 case X86::MOVZX64rr32: {
731 if (MI.getOperand(0).getSubReg() || MI.getOperand(1).getSubReg())
732 // Be conservative.
733 return false;
Evan Chenga5a81d72010-01-12 00:09:37 +0000734 SrcReg = MI.getOperand(1).getReg();
735 DstReg = MI.getOperand(0).getReg();
Evan Chenga5a81d72010-01-12 00:09:37 +0000736 switch (MI.getOpcode()) {
737 default:
738 llvm_unreachable(0);
739 break;
740 case X86::MOVSX16rr8:
741 case X86::MOVZX16rr8:
742 case X86::MOVSX32rr8:
743 case X86::MOVZX32rr8:
744 case X86::MOVSX64rr8:
745 case X86::MOVZX64rr8:
Evan Cheng7da9ecf2010-01-13 00:30:23 +0000746 SubIdx = 1;
Evan Chenga5a81d72010-01-12 00:09:37 +0000747 break;
748 case X86::MOVSX32rr16:
749 case X86::MOVZX32rr16:
750 case X86::MOVSX64rr16:
751 case X86::MOVZX64rr16:
Evan Cheng7da9ecf2010-01-13 00:30:23 +0000752 SubIdx = 3;
Evan Chenga5a81d72010-01-12 00:09:37 +0000753 break;
754 case X86::MOVSX64rr32:
755 case X86::MOVZX64rr32:
Evan Cheng7da9ecf2010-01-13 00:30:23 +0000756 SubIdx = 4;
Evan Chenga5a81d72010-01-12 00:09:37 +0000757 break;
758 }
Evan Cheng7da9ecf2010-01-13 00:30:23 +0000759 return true;
Evan Chenga5a81d72010-01-12 00:09:37 +0000760 }
761 }
Evan Cheng7da9ecf2010-01-13 00:30:23 +0000762 return false;
Evan Chenga5a81d72010-01-12 00:09:37 +0000763}
764
David Greeneb87bc952009-11-12 20:55:29 +0000765/// isFrameOperand - Return true and the FrameIndex if the specified
766/// operand and follow operands form a reference to the stack frame.
767bool X86InstrInfo::isFrameOperand(const MachineInstr *MI, unsigned int Op,
768 int &FrameIndex) const {
769 if (MI->getOperand(Op).isFI() && MI->getOperand(Op+1).isImm() &&
770 MI->getOperand(Op+2).isReg() && MI->getOperand(Op+3).isImm() &&
771 MI->getOperand(Op+1).getImm() == 1 &&
772 MI->getOperand(Op+2).getReg() == 0 &&
773 MI->getOperand(Op+3).getImm() == 0) {
774 FrameIndex = MI->getOperand(Op).getIndex();
775 return true;
776 }
777 return false;
778}
779
David Greenedda39782009-11-13 00:29:53 +0000780static bool isFrameLoadOpcode(int Opcode) {
781 switch (Opcode) {
Chris Lattner40839602006-02-02 20:12:32 +0000782 default: break;
783 case X86::MOV8rm:
784 case X86::MOV16rm:
785 case X86::MOV32rm:
Evan Cheng25ab6902006-09-08 06:48:29 +0000786 case X86::MOV64rm:
Dale Johannesene377d4d2007-07-04 21:07:47 +0000787 case X86::LD_Fp64m:
Chris Lattner40839602006-02-02 20:12:32 +0000788 case X86::MOVSSrm:
789 case X86::MOVSDrm:
Chris Lattner993c8972006-04-18 16:44:51 +0000790 case X86::MOVAPSrm:
791 case X86::MOVAPDrm:
Dan Gohman54462742009-01-09 02:40:34 +0000792 case X86::MOVDQArm:
Bill Wendling823efee2007-04-03 06:00:37 +0000793 case X86::MMX_MOVD64rm:
794 case X86::MMX_MOVQ64rm:
David Greenedda39782009-11-13 00:29:53 +0000795 return true;
796 break;
797 }
798 return false;
799}
800
801static bool isFrameStoreOpcode(int Opcode) {
802 switch (Opcode) {
803 default: break;
804 case X86::MOV8mr:
805 case X86::MOV16mr:
806 case X86::MOV32mr:
807 case X86::MOV64mr:
808 case X86::ST_FpP64m:
809 case X86::MOVSSmr:
810 case X86::MOVSDmr:
811 case X86::MOVAPSmr:
812 case X86::MOVAPDmr:
813 case X86::MOVDQAmr:
814 case X86::MMX_MOVD64mr:
815 case X86::MMX_MOVQ64mr:
816 case X86::MMX_MOVNTQmr:
817 return true;
818 }
819 return false;
820}
821
822unsigned X86InstrInfo::isLoadFromStackSlot(const MachineInstr *MI,
823 int &FrameIndex) const {
824 if (isFrameLoadOpcode(MI->getOpcode()))
825 if (isFrameOperand(MI, 1, FrameIndex))
Chris Lattner40839602006-02-02 20:12:32 +0000826 return MI->getOperand(0).getReg();
David Greenedda39782009-11-13 00:29:53 +0000827 return 0;
828}
829
830unsigned X86InstrInfo::isLoadFromStackSlotPostFE(const MachineInstr *MI,
831 int &FrameIndex) const {
832 if (isFrameLoadOpcode(MI->getOpcode())) {
833 unsigned Reg;
834 if ((Reg = isLoadFromStackSlot(MI, FrameIndex)))
835 return Reg;
David Greeneb87bc952009-11-12 20:55:29 +0000836 // Check for post-frame index elimination operations
David Greene29dbf502009-12-04 22:38:46 +0000837 const MachineMemOperand *Dummy;
838 return hasLoadFromStackSlot(MI, Dummy, FrameIndex);
Chris Lattner40839602006-02-02 20:12:32 +0000839 }
840 return 0;
841}
842
David Greeneb87bc952009-11-12 20:55:29 +0000843bool X86InstrInfo::hasLoadFromStackSlot(const MachineInstr *MI,
David Greene29dbf502009-12-04 22:38:46 +0000844 const MachineMemOperand *&MMO,
David Greeneb87bc952009-11-12 20:55:29 +0000845 int &FrameIndex) const {
846 for (MachineInstr::mmo_iterator o = MI->memoperands_begin(),
847 oe = MI->memoperands_end();
848 o != oe;
849 ++o) {
850 if ((*o)->isLoad() && (*o)->getValue())
851 if (const FixedStackPseudoSourceValue *Value =
852 dyn_cast<const FixedStackPseudoSourceValue>((*o)->getValue())) {
853 FrameIndex = Value->getFrameIndex();
David Greene29dbf502009-12-04 22:38:46 +0000854 MMO = *o;
David Greeneb87bc952009-11-12 20:55:29 +0000855 return true;
856 }
857 }
858 return false;
859}
860
Dan Gohmancbad42c2008-11-18 19:49:32 +0000861unsigned X86InstrInfo::isStoreToStackSlot(const MachineInstr *MI,
Chris Lattner40839602006-02-02 20:12:32 +0000862 int &FrameIndex) const {
David Greenedda39782009-11-13 00:29:53 +0000863 if (isFrameStoreOpcode(MI->getOpcode()))
864 if (isFrameOperand(MI, 0, FrameIndex))
Rafael Espindolab449a682009-03-28 17:03:24 +0000865 return MI->getOperand(X86AddrNumOperands).getReg();
David Greenedda39782009-11-13 00:29:53 +0000866 return 0;
867}
868
869unsigned X86InstrInfo::isStoreToStackSlotPostFE(const MachineInstr *MI,
870 int &FrameIndex) const {
871 if (isFrameStoreOpcode(MI->getOpcode())) {
872 unsigned Reg;
873 if ((Reg = isStoreToStackSlot(MI, FrameIndex)))
874 return Reg;
David Greeneb87bc952009-11-12 20:55:29 +0000875 // Check for post-frame index elimination operations
David Greene29dbf502009-12-04 22:38:46 +0000876 const MachineMemOperand *Dummy;
877 return hasStoreToStackSlot(MI, Dummy, FrameIndex);
Chris Lattner40839602006-02-02 20:12:32 +0000878 }
879 return 0;
880}
881
David Greeneb87bc952009-11-12 20:55:29 +0000882bool X86InstrInfo::hasStoreToStackSlot(const MachineInstr *MI,
David Greene29dbf502009-12-04 22:38:46 +0000883 const MachineMemOperand *&MMO,
David Greeneb87bc952009-11-12 20:55:29 +0000884 int &FrameIndex) const {
885 for (MachineInstr::mmo_iterator o = MI->memoperands_begin(),
886 oe = MI->memoperands_end();
887 o != oe;
888 ++o) {
889 if ((*o)->isStore() && (*o)->getValue())
890 if (const FixedStackPseudoSourceValue *Value =
891 dyn_cast<const FixedStackPseudoSourceValue>((*o)->getValue())) {
892 FrameIndex = Value->getFrameIndex();
David Greene29dbf502009-12-04 22:38:46 +0000893 MMO = *o;
David Greeneb87bc952009-11-12 20:55:29 +0000894 return true;
895 }
896 }
897 return false;
898}
899
Evan Chenge3d8dbf2008-03-27 01:45:11 +0000900/// regIsPICBase - Return true if register is PIC base (i.e.g defined by
901/// X86::MOVPC32r.
Dan Gohman8e5f2c62008-07-07 23:14:23 +0000902static bool regIsPICBase(unsigned BaseReg, const MachineRegisterInfo &MRI) {
Evan Chenge3d8dbf2008-03-27 01:45:11 +0000903 bool isPICBase = false;
904 for (MachineRegisterInfo::def_iterator I = MRI.def_begin(BaseReg),
905 E = MRI.def_end(); I != E; ++I) {
906 MachineInstr *DefMI = I.getOperand().getParent();
907 if (DefMI->getOpcode() != X86::MOVPC32r)
908 return false;
909 assert(!isPICBase && "More than one PIC base?");
910 isPICBase = true;
911 }
912 return isPICBase;
913}
Evan Cheng9d15abe2008-03-31 07:54:19 +0000914
Bill Wendling9f8fea32008-05-12 20:54:26 +0000915bool
Dan Gohman3731bc02009-10-10 00:34:18 +0000916X86InstrInfo::isReallyTriviallyReMaterializable(const MachineInstr *MI,
917 AliasAnalysis *AA) const {
Dan Gohmanc101e952007-06-14 20:50:44 +0000918 switch (MI->getOpcode()) {
919 default: break;
Evan Chenge771ebd2008-03-27 01:41:09 +0000920 case X86::MOV8rm:
921 case X86::MOV16rm:
Evan Chenge771ebd2008-03-27 01:41:09 +0000922 case X86::MOV32rm:
Evan Chenge771ebd2008-03-27 01:41:09 +0000923 case X86::MOV64rm:
924 case X86::LD_Fp64m:
925 case X86::MOVSSrm:
926 case X86::MOVSDrm:
927 case X86::MOVAPSrm:
Evan Cheng600c0432009-11-16 21:56:03 +0000928 case X86::MOVUPSrm:
Evan Chengd15ac2f2009-11-17 09:51:18 +0000929 case X86::MOVUPSrm_Int:
Evan Chenge771ebd2008-03-27 01:41:09 +0000930 case X86::MOVAPDrm:
Dan Gohman54462742009-01-09 02:40:34 +0000931 case X86::MOVDQArm:
Evan Chenge771ebd2008-03-27 01:41:09 +0000932 case X86::MMX_MOVD64rm:
Evan Chengd15ac2f2009-11-17 09:51:18 +0000933 case X86::MMX_MOVQ64rm:
934 case X86::FsMOVAPSrm:
935 case X86::FsMOVAPDrm: {
Evan Chenge771ebd2008-03-27 01:41:09 +0000936 // Loads from constant pools are trivially rematerializable.
Dan Gohmand735b802008-10-03 15:45:36 +0000937 if (MI->getOperand(1).isReg() &&
938 MI->getOperand(2).isImm() &&
939 MI->getOperand(3).isReg() && MI->getOperand(3).getReg() == 0 &&
Dan Gohman3731bc02009-10-10 00:34:18 +0000940 MI->isInvariantLoad(AA)) {
Evan Chenge771ebd2008-03-27 01:41:09 +0000941 unsigned BaseReg = MI->getOperand(1).getReg();
Chris Lattner18c59872009-06-27 04:16:01 +0000942 if (BaseReg == 0 || BaseReg == X86::RIP)
Evan Chenge771ebd2008-03-27 01:41:09 +0000943 return true;
944 // Allow re-materialization of PIC load.
Dan Gohmand735b802008-10-03 15:45:36 +0000945 if (!ReMatPICStubLoad && MI->getOperand(4).isGlobal())
Evan Chengffe2eb02008-04-01 23:26:12 +0000946 return false;
Dan Gohman8e5f2c62008-07-07 23:14:23 +0000947 const MachineFunction &MF = *MI->getParent()->getParent();
948 const MachineRegisterInfo &MRI = MF.getRegInfo();
Evan Chenge771ebd2008-03-27 01:41:09 +0000949 bool isPICBase = false;
950 for (MachineRegisterInfo::def_iterator I = MRI.def_begin(BaseReg),
951 E = MRI.def_end(); I != E; ++I) {
952 MachineInstr *DefMI = I.getOperand().getParent();
953 if (DefMI->getOpcode() != X86::MOVPC32r)
954 return false;
955 assert(!isPICBase && "More than one PIC base?");
956 isPICBase = true;
957 }
958 return isPICBase;
959 }
960 return false;
Evan Chengd8850a52008-02-22 09:25:47 +0000961 }
Evan Chenge771ebd2008-03-27 01:41:09 +0000962
963 case X86::LEA32r:
964 case X86::LEA64r: {
Dan Gohmand735b802008-10-03 15:45:36 +0000965 if (MI->getOperand(2).isImm() &&
966 MI->getOperand(3).isReg() && MI->getOperand(3).getReg() == 0 &&
967 !MI->getOperand(4).isReg()) {
Evan Chenge771ebd2008-03-27 01:41:09 +0000968 // lea fi#, lea GV, etc. are all rematerializable.
Dan Gohmand735b802008-10-03 15:45:36 +0000969 if (!MI->getOperand(1).isReg())
Dan Gohman83ccd142008-09-26 21:30:20 +0000970 return true;
Evan Chenge771ebd2008-03-27 01:41:09 +0000971 unsigned BaseReg = MI->getOperand(1).getReg();
972 if (BaseReg == 0)
973 return true;
974 // Allow re-materialization of lea PICBase + x.
Dan Gohman8e5f2c62008-07-07 23:14:23 +0000975 const MachineFunction &MF = *MI->getParent()->getParent();
976 const MachineRegisterInfo &MRI = MF.getRegInfo();
Evan Chenge3d8dbf2008-03-27 01:45:11 +0000977 return regIsPICBase(BaseReg, MRI);
Evan Chenge771ebd2008-03-27 01:41:09 +0000978 }
979 return false;
980 }
Dan Gohmanc101e952007-06-14 20:50:44 +0000981 }
Evan Chenge771ebd2008-03-27 01:41:09 +0000982
Dan Gohmand45eddd2007-06-26 00:48:07 +0000983 // All other instructions marked M_REMATERIALIZABLE are always trivially
984 // rematerializable.
985 return true;
Dan Gohmanc101e952007-06-14 20:50:44 +0000986}
987
Evan Cheng9ef4ca22008-06-24 07:10:51 +0000988/// isSafeToClobberEFLAGS - Return true if it's safe insert an instruction that
989/// would clobber the EFLAGS condition register. Note the result may be
990/// conservative. If it cannot definitely determine the safety after visiting
Dan Gohman1b1764b2009-10-14 00:08:59 +0000991/// a few instructions in each direction it assumes it's not safe.
Evan Cheng9ef4ca22008-06-24 07:10:51 +0000992static bool isSafeToClobberEFLAGS(MachineBasicBlock &MBB,
993 MachineBasicBlock::iterator I) {
Evan Cheng8d1f0dd2010-03-23 20:35:45 +0000994 MachineBasicBlock::iterator E = MBB.end();
995
Dan Gohman3afda6e2008-10-21 03:24:31 +0000996 // It's always safe to clobber EFLAGS at the end of a block.
Evan Cheng8d1f0dd2010-03-23 20:35:45 +0000997 if (I == E)
Dan Gohman3afda6e2008-10-21 03:24:31 +0000998 return true;
999
Evan Cheng9ef4ca22008-06-24 07:10:51 +00001000 // For compile time consideration, if we are not able to determine the
Dan Gohman1b1764b2009-10-14 00:08:59 +00001001 // safety after visiting 4 instructions in each direction, we will assume
1002 // it's not safe.
1003 MachineBasicBlock::iterator Iter = I;
1004 for (unsigned i = 0; i < 4; ++i) {
Evan Cheng9ef4ca22008-06-24 07:10:51 +00001005 bool SeenDef = false;
Dan Gohman1b1764b2009-10-14 00:08:59 +00001006 for (unsigned j = 0, e = Iter->getNumOperands(); j != e; ++j) {
1007 MachineOperand &MO = Iter->getOperand(j);
Dan Gohmand735b802008-10-03 15:45:36 +00001008 if (!MO.isReg())
Evan Cheng9ef4ca22008-06-24 07:10:51 +00001009 continue;
1010 if (MO.getReg() == X86::EFLAGS) {
1011 if (MO.isUse())
1012 return false;
1013 SeenDef = true;
1014 }
1015 }
1016
1017 if (SeenDef)
1018 // This instruction defines EFLAGS, no need to look any further.
1019 return true;
Dan Gohman1b1764b2009-10-14 00:08:59 +00001020 ++Iter;
Evan Cheng8d1f0dd2010-03-23 20:35:45 +00001021 // Skip over DBG_VALUE.
1022 while (Iter != E && Iter->isDebugValue())
1023 ++Iter;
Dan Gohman3afda6e2008-10-21 03:24:31 +00001024
1025 // If we make it to the end of the block, it's safe to clobber EFLAGS.
Evan Cheng8d1f0dd2010-03-23 20:35:45 +00001026 if (Iter == E)
Dan Gohman1b1764b2009-10-14 00:08:59 +00001027 return true;
1028 }
1029
Evan Cheng8d1f0dd2010-03-23 20:35:45 +00001030 MachineBasicBlock::iterator B = MBB.begin();
Dan Gohman1b1764b2009-10-14 00:08:59 +00001031 Iter = I;
1032 for (unsigned i = 0; i < 4; ++i) {
1033 // If we make it to the beginning of the block, it's safe to clobber
1034 // EFLAGS iff EFLAGS is not live-in.
Evan Cheng8d1f0dd2010-03-23 20:35:45 +00001035 if (Iter == B)
Dan Gohman1b1764b2009-10-14 00:08:59 +00001036 return !MBB.isLiveIn(X86::EFLAGS);
1037
1038 --Iter;
Evan Cheng8d1f0dd2010-03-23 20:35:45 +00001039 // Skip over DBG_VALUE.
1040 while (Iter != B && Iter->isDebugValue())
1041 --Iter;
1042
Dan Gohman1b1764b2009-10-14 00:08:59 +00001043 bool SawKill = false;
1044 for (unsigned j = 0, e = Iter->getNumOperands(); j != e; ++j) {
1045 MachineOperand &MO = Iter->getOperand(j);
1046 if (MO.isReg() && MO.getReg() == X86::EFLAGS) {
1047 if (MO.isDef()) return MO.isDead();
1048 if (MO.isKill()) SawKill = true;
1049 }
1050 }
1051
1052 if (SawKill)
1053 // This instruction kills EFLAGS and doesn't redefine it, so
1054 // there's no need to look further.
Dan Gohman3afda6e2008-10-21 03:24:31 +00001055 return true;
Evan Cheng9ef4ca22008-06-24 07:10:51 +00001056 }
1057
1058 // Conservative answer.
1059 return false;
1060}
1061
Evan Chengca1267c2008-03-31 20:40:39 +00001062void X86InstrInfo::reMaterialize(MachineBasicBlock &MBB,
1063 MachineBasicBlock::iterator I,
Evan Cheng37844532009-07-16 09:20:10 +00001064 unsigned DestReg, unsigned SubIdx,
Evan Chengd57cdd52009-11-14 02:55:43 +00001065 const MachineInstr *Orig,
1066 const TargetRegisterInfo *TRI) const {
Dale Johannesen6ec25f52010-01-26 00:03:12 +00001067 DebugLoc DL = MBB.findDebugLoc(I);
Bill Wendlingfbef3102009-02-11 21:51:19 +00001068
Evan Cheng03eb3882008-04-16 23:44:44 +00001069 if (SubIdx && TargetRegisterInfo::isPhysicalRegister(DestReg)) {
Evan Chengd57cdd52009-11-14 02:55:43 +00001070 DestReg = TRI->getSubReg(DestReg, SubIdx);
Evan Cheng03eb3882008-04-16 23:44:44 +00001071 SubIdx = 0;
1072 }
1073
Evan Chengca1267c2008-03-31 20:40:39 +00001074 // MOV32r0 etc. are implemented with xor which clobbers condition code.
1075 // Re-materialize them as movri instructions to avoid side effects.
Evan Cheng37844532009-07-16 09:20:10 +00001076 bool Clone = true;
1077 unsigned Opc = Orig->getOpcode();
1078 switch (Opc) {
Evan Cheng9ef4ca22008-06-24 07:10:51 +00001079 default: break;
Evan Chengca1267c2008-03-31 20:40:39 +00001080 case X86::MOV8r0:
Dan Gohmanf1b4d262010-01-12 04:42:54 +00001081 case X86::MOV16r0:
1082 case X86::MOV32r0:
1083 case X86::MOV64r0: {
Evan Cheng9ef4ca22008-06-24 07:10:51 +00001084 if (!isSafeToClobberEFLAGS(MBB, I)) {
Evan Cheng37844532009-07-16 09:20:10 +00001085 switch (Opc) {
Evan Cheng9ef4ca22008-06-24 07:10:51 +00001086 default: break;
1087 case X86::MOV8r0: Opc = X86::MOV8ri; break;
Dan Gohmanf1b4d262010-01-12 04:42:54 +00001088 case X86::MOV16r0: Opc = X86::MOV16ri; break;
Evan Cheng9ef4ca22008-06-24 07:10:51 +00001089 case X86::MOV32r0: Opc = X86::MOV32ri; break;
Dan Gohman6fe0df22010-02-26 16:49:27 +00001090 case X86::MOV64r0: Opc = X86::MOV64ri64i32; break;
Evan Cheng9ef4ca22008-06-24 07:10:51 +00001091 }
Evan Cheng37844532009-07-16 09:20:10 +00001092 Clone = false;
Evan Cheng9ef4ca22008-06-24 07:10:51 +00001093 }
Evan Chengca1267c2008-03-31 20:40:39 +00001094 break;
Evan Cheng9ef4ca22008-06-24 07:10:51 +00001095 }
1096 }
1097
Evan Cheng37844532009-07-16 09:20:10 +00001098 if (Clone) {
Dan Gohman8e5f2c62008-07-07 23:14:23 +00001099 MachineInstr *MI = MBB.getParent()->CloneMachineInstr(Orig);
Evan Chengca1267c2008-03-31 20:40:39 +00001100 MI->getOperand(0).setReg(DestReg);
1101 MBB.insert(I, MI);
Evan Cheng37844532009-07-16 09:20:10 +00001102 } else {
1103 BuildMI(MBB, I, DL, get(Opc), DestReg).addImm(0);
Evan Chengca1267c2008-03-31 20:40:39 +00001104 }
Evan Cheng03eb3882008-04-16 23:44:44 +00001105
Evan Cheng37844532009-07-16 09:20:10 +00001106 MachineInstr *NewMI = prior(I);
1107 NewMI->getOperand(0).setSubReg(SubIdx);
Evan Chengca1267c2008-03-31 20:40:39 +00001108}
1109
Evan Cheng3f411c72007-10-05 08:04:01 +00001110/// hasLiveCondCodeDef - True if MI has a condition code def, e.g. EFLAGS, that
1111/// is not marked dead.
1112static bool hasLiveCondCodeDef(MachineInstr *MI) {
Evan Cheng3f411c72007-10-05 08:04:01 +00001113 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) {
1114 MachineOperand &MO = MI->getOperand(i);
Dan Gohmand735b802008-10-03 15:45:36 +00001115 if (MO.isReg() && MO.isDef() &&
Evan Cheng3f411c72007-10-05 08:04:01 +00001116 MO.getReg() == X86::EFLAGS && !MO.isDead()) {
1117 return true;
1118 }
1119 }
1120 return false;
1121}
1122
Evan Chengdd99f3a2009-12-12 20:03:14 +00001123/// convertToThreeAddressWithLEA - Helper for convertToThreeAddress when
Evan Cheng656e5142009-12-11 06:01:48 +00001124/// 16-bit LEA is disabled, use 32-bit LEA to form 3-address code by promoting
1125/// to a 32-bit superregister and then truncating back down to a 16-bit
1126/// subregister.
1127MachineInstr *
1128X86InstrInfo::convertToThreeAddressWithLEA(unsigned MIOpc,
1129 MachineFunction::iterator &MFI,
1130 MachineBasicBlock::iterator &MBBI,
1131 LiveVariables *LV) const {
1132 MachineInstr *MI = MBBI;
1133 unsigned Dest = MI->getOperand(0).getReg();
1134 unsigned Src = MI->getOperand(1).getReg();
1135 bool isDead = MI->getOperand(0).isDead();
1136 bool isKill = MI->getOperand(1).isKill();
1137
1138 unsigned Opc = TM.getSubtarget<X86Subtarget>().is64Bit()
1139 ? X86::LEA64_32r : X86::LEA32r;
1140 MachineRegisterInfo &RegInfo = MFI->getParent()->getRegInfo();
1141 unsigned leaInReg = RegInfo.createVirtualRegister(&X86::GR32RegClass);
1142 unsigned leaOutReg = RegInfo.createVirtualRegister(&X86::GR32RegClass);
1143
1144 // Build and insert into an implicit UNDEF value. This is OK because
1145 // well be shifting and then extracting the lower 16-bits.
Evan Chengdd99f3a2009-12-12 20:03:14 +00001146 // This has the potential to cause partial register stall. e.g.
Evan Cheng04ab19c2009-12-12 18:55:26 +00001147 // movw (%rbp,%rcx,2), %dx
1148 // leal -65(%rdx), %esi
Evan Chengdd99f3a2009-12-12 20:03:14 +00001149 // But testing has shown this *does* help performance in 64-bit mode (at
1150 // least on modern x86 machines).
Evan Cheng656e5142009-12-11 06:01:48 +00001151 BuildMI(*MFI, MBBI, MI->getDebugLoc(), get(X86::IMPLICIT_DEF), leaInReg);
1152 MachineInstr *InsMI =
1153 BuildMI(*MFI, MBBI, MI->getDebugLoc(), get(X86::INSERT_SUBREG),leaInReg)
1154 .addReg(leaInReg)
1155 .addReg(Src, getKillRegState(isKill))
1156 .addImm(X86::SUBREG_16BIT);
1157
1158 MachineInstrBuilder MIB = BuildMI(*MFI, MBBI, MI->getDebugLoc(),
1159 get(Opc), leaOutReg);
1160 switch (MIOpc) {
1161 default:
1162 llvm_unreachable(0);
1163 break;
1164 case X86::SHL16ri: {
1165 unsigned ShAmt = MI->getOperand(2).getImm();
1166 MIB.addReg(0).addImm(1 << ShAmt)
1167 .addReg(leaInReg, RegState::Kill).addImm(0);
1168 break;
1169 }
1170 case X86::INC16r:
1171 case X86::INC64_16r:
1172 addLeaRegOffset(MIB, leaInReg, true, 1);
1173 break;
1174 case X86::DEC16r:
1175 case X86::DEC64_16r:
1176 addLeaRegOffset(MIB, leaInReg, true, -1);
1177 break;
1178 case X86::ADD16ri:
1179 case X86::ADD16ri8:
1180 addLeaRegOffset(MIB, leaInReg, true, MI->getOperand(2).getImm());
1181 break;
1182 case X86::ADD16rr: {
1183 unsigned Src2 = MI->getOperand(2).getReg();
1184 bool isKill2 = MI->getOperand(2).isKill();
1185 unsigned leaInReg2 = 0;
1186 MachineInstr *InsMI2 = 0;
1187 if (Src == Src2) {
1188 // ADD16rr %reg1028<kill>, %reg1028
1189 // just a single insert_subreg.
1190 addRegReg(MIB, leaInReg, true, leaInReg, false);
1191 } else {
1192 leaInReg2 = RegInfo.createVirtualRegister(&X86::GR32RegClass);
1193 // Build and insert into an implicit UNDEF value. This is OK because
1194 // well be shifting and then extracting the lower 16-bits.
1195 BuildMI(*MFI, MIB, MI->getDebugLoc(), get(X86::IMPLICIT_DEF), leaInReg2);
1196 InsMI2 =
1197 BuildMI(*MFI, MIB, MI->getDebugLoc(), get(X86::INSERT_SUBREG),leaInReg2)
1198 .addReg(leaInReg2)
1199 .addReg(Src2, getKillRegState(isKill2))
1200 .addImm(X86::SUBREG_16BIT);
1201 addRegReg(MIB, leaInReg, true, leaInReg2, true);
1202 }
1203 if (LV && isKill2 && InsMI2)
1204 LV->replaceKillInstruction(Src2, MI, InsMI2);
1205 break;
1206 }
1207 }
1208
1209 MachineInstr *NewMI = MIB;
1210 MachineInstr *ExtMI =
1211 BuildMI(*MFI, MBBI, MI->getDebugLoc(), get(X86::EXTRACT_SUBREG))
1212 .addReg(Dest, RegState::Define | getDeadRegState(isDead))
1213 .addReg(leaOutReg, RegState::Kill)
1214 .addImm(X86::SUBREG_16BIT);
1215
1216 if (LV) {
1217 // Update live variables
1218 LV->getVarInfo(leaInReg).Kills.push_back(NewMI);
1219 LV->getVarInfo(leaOutReg).Kills.push_back(ExtMI);
1220 if (isKill)
1221 LV->replaceKillInstruction(Src, MI, InsMI);
1222 if (isDead)
1223 LV->replaceKillInstruction(Dest, MI, ExtMI);
1224 }
1225
1226 return ExtMI;
1227}
1228
Chris Lattnerbcea4d62005-01-02 02:37:07 +00001229/// convertToThreeAddress - This method must be implemented by targets that
1230/// set the M_CONVERTIBLE_TO_3_ADDR flag. When this flag is set, the target
1231/// may be able to convert a two-address instruction into a true
1232/// three-address instruction on demand. This allows the X86 target (for
1233/// example) to convert ADD and SHL instructions into LEA instructions if they
1234/// would require register copies due to two-addressness.
1235///
1236/// This method returns a null pointer if the transformation cannot be
1237/// performed, otherwise it returns the new instruction.
1238///
Evan Cheng258ff672006-12-01 21:52:41 +00001239MachineInstr *
1240X86InstrInfo::convertToThreeAddress(MachineFunction::iterator &MFI,
1241 MachineBasicBlock::iterator &MBBI,
Owen Andersonf660c172008-07-02 23:41:07 +00001242 LiveVariables *LV) const {
Evan Cheng258ff672006-12-01 21:52:41 +00001243 MachineInstr *MI = MBBI;
Dan Gohman8e5f2c62008-07-07 23:14:23 +00001244 MachineFunction &MF = *MI->getParent()->getParent();
Chris Lattnerbcea4d62005-01-02 02:37:07 +00001245 // All instructions input are two-addr instructions. Get the known operands.
1246 unsigned Dest = MI->getOperand(0).getReg();
1247 unsigned Src = MI->getOperand(1).getReg();
Evan Cheng9f1c8312008-07-03 09:09:37 +00001248 bool isDead = MI->getOperand(0).isDead();
1249 bool isKill = MI->getOperand(1).isKill();
Chris Lattnerbcea4d62005-01-02 02:37:07 +00001250
Evan Cheng6ce7dc22006-11-15 20:58:11 +00001251 MachineInstr *NewMI = NULL;
Evan Cheng258ff672006-12-01 21:52:41 +00001252 // FIXME: 16-bit LEA's are really slow on Athlons, but not bad on P4's. When
Chris Lattnera16b7cb2007-03-20 06:08:29 +00001253 // we have better subtarget support, enable the 16-bit LEA generation here.
Evan Chengdd99f3a2009-12-12 20:03:14 +00001254 // 16-bit LEA is also slow on Core2.
Evan Cheng258ff672006-12-01 21:52:41 +00001255 bool DisableLEA16 = true;
Evan Chengdd99f3a2009-12-12 20:03:14 +00001256 bool is64Bit = TM.getSubtarget<X86Subtarget>().is64Bit();
Evan Cheng258ff672006-12-01 21:52:41 +00001257
Evan Cheng559dc462007-10-05 20:34:26 +00001258 unsigned MIOpc = MI->getOpcode();
1259 switch (MIOpc) {
Evan Chengccba76b2006-05-30 20:26:50 +00001260 case X86::SHUFPSrri: {
1261 assert(MI->getNumOperands() == 4 && "Unknown shufps instruction!");
Chris Lattnera16b7cb2007-03-20 06:08:29 +00001262 if (!TM.getSubtarget<X86Subtarget>().hasSSE2()) return 0;
1263
Evan Chengaa3c1412006-05-30 21:45:53 +00001264 unsigned B = MI->getOperand(1).getReg();
1265 unsigned C = MI->getOperand(2).getReg();
Chris Lattnera16b7cb2007-03-20 06:08:29 +00001266 if (B != C) return 0;
Evan Cheng9f1c8312008-07-03 09:09:37 +00001267 unsigned A = MI->getOperand(0).getReg();
1268 unsigned M = MI->getOperand(3).getImm();
Bill Wendlingfbef3102009-02-11 21:51:19 +00001269 NewMI = BuildMI(MF, MI->getDebugLoc(), get(X86::PSHUFDri))
Bill Wendling587daed2009-05-13 21:33:08 +00001270 .addReg(A, RegState::Define | getDeadRegState(isDead))
1271 .addReg(B, getKillRegState(isKill)).addImm(M);
Chris Lattnera16b7cb2007-03-20 06:08:29 +00001272 break;
1273 }
Chris Lattner995f5502007-03-28 18:12:31 +00001274 case X86::SHL64ri: {
Evan Cheng24f2ea32007-09-14 21:48:26 +00001275 assert(MI->getNumOperands() >= 3 && "Unknown shift instruction!");
Chris Lattner995f5502007-03-28 18:12:31 +00001276 // NOTE: LEA doesn't produce flags like shift does, but LLVM never uses
1277 // the flags produced by a shift yet, so this is safe.
Chris Lattner995f5502007-03-28 18:12:31 +00001278 unsigned ShAmt = MI->getOperand(2).getImm();
1279 if (ShAmt == 0 || ShAmt >= 4) return 0;
Evan Cheng9f1c8312008-07-03 09:09:37 +00001280
Bill Wendlingfbef3102009-02-11 21:51:19 +00001281 NewMI = BuildMI(MF, MI->getDebugLoc(), get(X86::LEA64r))
Bill Wendling587daed2009-05-13 21:33:08 +00001282 .addReg(Dest, RegState::Define | getDeadRegState(isDead))
1283 .addReg(0).addImm(1 << ShAmt)
1284 .addReg(Src, getKillRegState(isKill))
1285 .addImm(0);
Chris Lattner995f5502007-03-28 18:12:31 +00001286 break;
1287 }
Chris Lattnera16b7cb2007-03-20 06:08:29 +00001288 case X86::SHL32ri: {
Evan Cheng24f2ea32007-09-14 21:48:26 +00001289 assert(MI->getNumOperands() >= 3 && "Unknown shift instruction!");
Chris Lattnera16b7cb2007-03-20 06:08:29 +00001290 // NOTE: LEA doesn't produce flags like shift does, but LLVM never uses
1291 // the flags produced by a shift yet, so this is safe.
Chris Lattnera16b7cb2007-03-20 06:08:29 +00001292 unsigned ShAmt = MI->getOperand(2).getImm();
1293 if (ShAmt == 0 || ShAmt >= 4) return 0;
Evan Cheng9f1c8312008-07-03 09:09:37 +00001294
Evan Chengdd99f3a2009-12-12 20:03:14 +00001295 unsigned Opc = is64Bit ? X86::LEA64_32r : X86::LEA32r;
Bill Wendlingfbef3102009-02-11 21:51:19 +00001296 NewMI = BuildMI(MF, MI->getDebugLoc(), get(Opc))
Bill Wendling587daed2009-05-13 21:33:08 +00001297 .addReg(Dest, RegState::Define | getDeadRegState(isDead))
Evan Cheng9f1c8312008-07-03 09:09:37 +00001298 .addReg(0).addImm(1 << ShAmt)
Bill Wendling587daed2009-05-13 21:33:08 +00001299 .addReg(Src, getKillRegState(isKill)).addImm(0);
Chris Lattnera16b7cb2007-03-20 06:08:29 +00001300 break;
1301 }
1302 case X86::SHL16ri: {
Evan Cheng24f2ea32007-09-14 21:48:26 +00001303 assert(MI->getNumOperands() >= 3 && "Unknown shift instruction!");
Evan Cheng61d9c862007-09-06 00:14:41 +00001304 // NOTE: LEA doesn't produce flags like shift does, but LLVM never uses
1305 // the flags produced by a shift yet, so this is safe.
Evan Cheng61d9c862007-09-06 00:14:41 +00001306 unsigned ShAmt = MI->getOperand(2).getImm();
1307 if (ShAmt == 0 || ShAmt >= 4) return 0;
Evan Cheng9f1c8312008-07-03 09:09:37 +00001308
Evan Cheng656e5142009-12-11 06:01:48 +00001309 if (DisableLEA16)
Evan Chengdd99f3a2009-12-12 20:03:14 +00001310 return is64Bit ? convertToThreeAddressWithLEA(MIOpc, MFI, MBBI, LV) : 0;
Evan Cheng656e5142009-12-11 06:01:48 +00001311 NewMI = BuildMI(MF, MI->getDebugLoc(), get(X86::LEA16r))
1312 .addReg(Dest, RegState::Define | getDeadRegState(isDead))
1313 .addReg(0).addImm(1 << ShAmt)
1314 .addReg(Src, getKillRegState(isKill))
1315 .addImm(0);
Chris Lattnera16b7cb2007-03-20 06:08:29 +00001316 break;
Evan Chengccba76b2006-05-30 20:26:50 +00001317 }
Evan Cheng559dc462007-10-05 20:34:26 +00001318 default: {
1319 // The following opcodes also sets the condition code register(s). Only
1320 // convert them to equivalent lea if the condition code register def's
1321 // are dead!
1322 if (hasLiveCondCodeDef(MI))
1323 return 0;
Evan Chengccba76b2006-05-30 20:26:50 +00001324
Evan Cheng559dc462007-10-05 20:34:26 +00001325 switch (MIOpc) {
1326 default: return 0;
1327 case X86::INC64r:
Dan Gohmancca29832009-01-06 23:34:46 +00001328 case X86::INC32r:
1329 case X86::INC64_32r: {
Evan Cheng559dc462007-10-05 20:34:26 +00001330 assert(MI->getNumOperands() >= 2 && "Unknown inc instruction!");
Evan Chengb76143c2007-10-09 07:14:53 +00001331 unsigned Opc = MIOpc == X86::INC64r ? X86::LEA64r
1332 : (is64Bit ? X86::LEA64_32r : X86::LEA32r);
Rafael Espindola094fad32009-04-08 21:14:34 +00001333 NewMI = addLeaRegOffset(BuildMI(MF, MI->getDebugLoc(), get(Opc))
Bill Wendling587daed2009-05-13 21:33:08 +00001334 .addReg(Dest, RegState::Define |
1335 getDeadRegState(isDead)),
Rafael Espindola094fad32009-04-08 21:14:34 +00001336 Src, isKill, 1);
Evan Cheng559dc462007-10-05 20:34:26 +00001337 break;
Chris Lattnerbcea4d62005-01-02 02:37:07 +00001338 }
Evan Cheng559dc462007-10-05 20:34:26 +00001339 case X86::INC16r:
1340 case X86::INC64_16r:
Evan Cheng656e5142009-12-11 06:01:48 +00001341 if (DisableLEA16)
Evan Chengdd99f3a2009-12-12 20:03:14 +00001342 return is64Bit ? convertToThreeAddressWithLEA(MIOpc, MFI, MBBI, LV) : 0;
Evan Cheng559dc462007-10-05 20:34:26 +00001343 assert(MI->getNumOperands() >= 2 && "Unknown inc instruction!");
Bill Wendlingfbef3102009-02-11 21:51:19 +00001344 NewMI = addRegOffset(BuildMI(MF, MI->getDebugLoc(), get(X86::LEA16r))
Bill Wendling587daed2009-05-13 21:33:08 +00001345 .addReg(Dest, RegState::Define |
1346 getDeadRegState(isDead)),
Evan Cheng9f1c8312008-07-03 09:09:37 +00001347 Src, isKill, 1);
Evan Cheng559dc462007-10-05 20:34:26 +00001348 break;
1349 case X86::DEC64r:
Dan Gohmancca29832009-01-06 23:34:46 +00001350 case X86::DEC32r:
1351 case X86::DEC64_32r: {
Evan Cheng559dc462007-10-05 20:34:26 +00001352 assert(MI->getNumOperands() >= 2 && "Unknown dec instruction!");
Evan Chengb76143c2007-10-09 07:14:53 +00001353 unsigned Opc = MIOpc == X86::DEC64r ? X86::LEA64r
1354 : (is64Bit ? X86::LEA64_32r : X86::LEA32r);
Rafael Espindola094fad32009-04-08 21:14:34 +00001355 NewMI = addLeaRegOffset(BuildMI(MF, MI->getDebugLoc(), get(Opc))
Bill Wendling587daed2009-05-13 21:33:08 +00001356 .addReg(Dest, RegState::Define |
1357 getDeadRegState(isDead)),
Rafael Espindola094fad32009-04-08 21:14:34 +00001358 Src, isKill, -1);
Evan Cheng559dc462007-10-05 20:34:26 +00001359 break;
1360 }
1361 case X86::DEC16r:
1362 case X86::DEC64_16r:
Evan Cheng656e5142009-12-11 06:01:48 +00001363 if (DisableLEA16)
Evan Chengdd99f3a2009-12-12 20:03:14 +00001364 return is64Bit ? convertToThreeAddressWithLEA(MIOpc, MFI, MBBI, LV) : 0;
Evan Cheng559dc462007-10-05 20:34:26 +00001365 assert(MI->getNumOperands() >= 2 && "Unknown dec instruction!");
Bill Wendlingfbef3102009-02-11 21:51:19 +00001366 NewMI = addRegOffset(BuildMI(MF, MI->getDebugLoc(), get(X86::LEA16r))
Bill Wendling587daed2009-05-13 21:33:08 +00001367 .addReg(Dest, RegState::Define |
1368 getDeadRegState(isDead)),
Evan Cheng9f1c8312008-07-03 09:09:37 +00001369 Src, isKill, -1);
Evan Cheng559dc462007-10-05 20:34:26 +00001370 break;
1371 case X86::ADD64rr:
1372 case X86::ADD32rr: {
1373 assert(MI->getNumOperands() >= 3 && "Unknown add instruction!");
Evan Chengb76143c2007-10-09 07:14:53 +00001374 unsigned Opc = MIOpc == X86::ADD64rr ? X86::LEA64r
1375 : (is64Bit ? X86::LEA64_32r : X86::LEA32r);
Evan Cheng9f1c8312008-07-03 09:09:37 +00001376 unsigned Src2 = MI->getOperand(2).getReg();
1377 bool isKill2 = MI->getOperand(2).isKill();
Bill Wendlingfbef3102009-02-11 21:51:19 +00001378 NewMI = addRegReg(BuildMI(MF, MI->getDebugLoc(), get(Opc))
Bill Wendling587daed2009-05-13 21:33:08 +00001379 .addReg(Dest, RegState::Define |
1380 getDeadRegState(isDead)),
Evan Cheng9f1c8312008-07-03 09:09:37 +00001381 Src, isKill, Src2, isKill2);
1382 if (LV && isKill2)
1383 LV->replaceKillInstruction(Src2, MI, NewMI);
Evan Cheng559dc462007-10-05 20:34:26 +00001384 break;
1385 }
Evan Cheng9f1c8312008-07-03 09:09:37 +00001386 case X86::ADD16rr: {
Evan Cheng656e5142009-12-11 06:01:48 +00001387 if (DisableLEA16)
Evan Chengdd99f3a2009-12-12 20:03:14 +00001388 return is64Bit ? convertToThreeAddressWithLEA(MIOpc, MFI, MBBI, LV) : 0;
Evan Cheng559dc462007-10-05 20:34:26 +00001389 assert(MI->getNumOperands() >= 3 && "Unknown add instruction!");
Evan Cheng9f1c8312008-07-03 09:09:37 +00001390 unsigned Src2 = MI->getOperand(2).getReg();
1391 bool isKill2 = MI->getOperand(2).isKill();
Bill Wendlingfbef3102009-02-11 21:51:19 +00001392 NewMI = addRegReg(BuildMI(MF, MI->getDebugLoc(), get(X86::LEA16r))
Bill Wendling587daed2009-05-13 21:33:08 +00001393 .addReg(Dest, RegState::Define |
1394 getDeadRegState(isDead)),
Evan Cheng9f1c8312008-07-03 09:09:37 +00001395 Src, isKill, Src2, isKill2);
1396 if (LV && isKill2)
1397 LV->replaceKillInstruction(Src2, MI, NewMI);
Evan Cheng559dc462007-10-05 20:34:26 +00001398 break;
Evan Cheng9f1c8312008-07-03 09:09:37 +00001399 }
Evan Cheng559dc462007-10-05 20:34:26 +00001400 case X86::ADD64ri32:
1401 case X86::ADD64ri8:
1402 assert(MI->getNumOperands() >= 3 && "Unknown add instruction!");
Evan Cheng656e5142009-12-11 06:01:48 +00001403 NewMI = addLeaRegOffset(BuildMI(MF, MI->getDebugLoc(), get(X86::LEA64r))
1404 .addReg(Dest, RegState::Define |
1405 getDeadRegState(isDead)),
1406 Src, isKill, MI->getOperand(2).getImm());
Evan Cheng559dc462007-10-05 20:34:26 +00001407 break;
1408 case X86::ADD32ri:
Evan Cheng656e5142009-12-11 06:01:48 +00001409 case X86::ADD32ri8: {
Evan Cheng559dc462007-10-05 20:34:26 +00001410 assert(MI->getNumOperands() >= 3 && "Unknown add instruction!");
Evan Cheng656e5142009-12-11 06:01:48 +00001411 unsigned Opc = is64Bit ? X86::LEA64_32r : X86::LEA32r;
1412 NewMI = addLeaRegOffset(BuildMI(MF, MI->getDebugLoc(), get(Opc))
1413 .addReg(Dest, RegState::Define |
1414 getDeadRegState(isDead)),
Rafael Espindola094fad32009-04-08 21:14:34 +00001415 Src, isKill, MI->getOperand(2).getImm());
Evan Cheng559dc462007-10-05 20:34:26 +00001416 break;
1417 }
Evan Cheng656e5142009-12-11 06:01:48 +00001418 case X86::ADD16ri:
1419 case X86::ADD16ri8:
1420 if (DisableLEA16)
Evan Chengdd99f3a2009-12-12 20:03:14 +00001421 return is64Bit ? convertToThreeAddressWithLEA(MIOpc, MFI, MBBI, LV) : 0;
Evan Cheng656e5142009-12-11 06:01:48 +00001422 assert(MI->getNumOperands() >= 3 && "Unknown add instruction!");
1423 NewMI = addLeaRegOffset(BuildMI(MF, MI->getDebugLoc(), get(X86::LEA16r))
1424 .addReg(Dest, RegState::Define |
1425 getDeadRegState(isDead)),
1426 Src, isKill, MI->getOperand(2).getImm());
1427 break;
Evan Cheng559dc462007-10-05 20:34:26 +00001428 }
1429 }
Chris Lattnerbcea4d62005-01-02 02:37:07 +00001430 }
1431
Evan Cheng15246732008-02-07 08:29:53 +00001432 if (!NewMI) return 0;
1433
Evan Cheng9f1c8312008-07-03 09:09:37 +00001434 if (LV) { // Update live variables
1435 if (isKill)
1436 LV->replaceKillInstruction(Src, MI, NewMI);
1437 if (isDead)
1438 LV->replaceKillInstruction(Dest, MI, NewMI);
1439 }
1440
Evan Cheng559dc462007-10-05 20:34:26 +00001441 MFI->insert(MBBI, NewMI); // Insert the new inst
Evan Cheng6ce7dc22006-11-15 20:58:11 +00001442 return NewMI;
Chris Lattnerbcea4d62005-01-02 02:37:07 +00001443}
1444
Chris Lattner41e431b2005-01-19 07:11:01 +00001445/// commuteInstruction - We have a few instructions that must be hacked on to
1446/// commute them.
1447///
Evan Cheng58dcb0e2008-06-16 07:33:11 +00001448MachineInstr *
1449X86InstrInfo::commuteInstruction(MachineInstr *MI, bool NewMI) const {
Chris Lattner41e431b2005-01-19 07:11:01 +00001450 switch (MI->getOpcode()) {
Chris Lattner0df53d22005-01-19 07:31:24 +00001451 case X86::SHRD16rri8: // A = SHRD16rri8 B, C, I -> A = SHLD16rri8 C, B, (16-I)
1452 case X86::SHLD16rri8: // A = SHLD16rri8 B, C, I -> A = SHRD16rri8 C, B, (16-I)
Chris Lattner41e431b2005-01-19 07:11:01 +00001453 case X86::SHRD32rri8: // A = SHRD32rri8 B, C, I -> A = SHLD32rri8 C, B, (32-I)
Dan Gohmane47f1f92007-09-14 23:17:45 +00001454 case X86::SHLD32rri8: // A = SHLD32rri8 B, C, I -> A = SHRD32rri8 C, B, (32-I)
1455 case X86::SHRD64rri8: // A = SHRD64rri8 B, C, I -> A = SHLD64rri8 C, B, (64-I)
1456 case X86::SHLD64rri8:{// A = SHLD64rri8 B, C, I -> A = SHRD64rri8 C, B, (64-I)
Chris Lattner0df53d22005-01-19 07:31:24 +00001457 unsigned Opc;
1458 unsigned Size;
1459 switch (MI->getOpcode()) {
Torok Edwinc23197a2009-07-14 16:55:14 +00001460 default: llvm_unreachable("Unreachable!");
Chris Lattner0df53d22005-01-19 07:31:24 +00001461 case X86::SHRD16rri8: Size = 16; Opc = X86::SHLD16rri8; break;
1462 case X86::SHLD16rri8: Size = 16; Opc = X86::SHRD16rri8; break;
1463 case X86::SHRD32rri8: Size = 32; Opc = X86::SHLD32rri8; break;
1464 case X86::SHLD32rri8: Size = 32; Opc = X86::SHRD32rri8; break;
Dan Gohmane47f1f92007-09-14 23:17:45 +00001465 case X86::SHRD64rri8: Size = 64; Opc = X86::SHLD64rri8; break;
1466 case X86::SHLD64rri8: Size = 64; Opc = X86::SHRD64rri8; break;
Chris Lattner0df53d22005-01-19 07:31:24 +00001467 }
Chris Lattner9a1ceae2007-12-30 20:49:49 +00001468 unsigned Amt = MI->getOperand(3).getImm();
Dan Gohman74feef22008-10-17 01:23:35 +00001469 if (NewMI) {
1470 MachineFunction &MF = *MI->getParent()->getParent();
1471 MI = MF.CloneMachineInstr(MI);
1472 NewMI = false;
Evan Chenga4d16a12008-02-13 02:46:49 +00001473 }
Dan Gohman74feef22008-10-17 01:23:35 +00001474 MI->setDesc(get(Opc));
1475 MI->getOperand(3).setImm(Size-Amt);
1476 return TargetInstrInfoImpl::commuteInstruction(MI, NewMI);
Chris Lattner41e431b2005-01-19 07:11:01 +00001477 }
Evan Cheng7ad42d92007-10-05 23:13:21 +00001478 case X86::CMOVB16rr:
1479 case X86::CMOVB32rr:
1480 case X86::CMOVB64rr:
1481 case X86::CMOVAE16rr:
1482 case X86::CMOVAE32rr:
1483 case X86::CMOVAE64rr:
1484 case X86::CMOVE16rr:
1485 case X86::CMOVE32rr:
1486 case X86::CMOVE64rr:
1487 case X86::CMOVNE16rr:
1488 case X86::CMOVNE32rr:
1489 case X86::CMOVNE64rr:
1490 case X86::CMOVBE16rr:
1491 case X86::CMOVBE32rr:
1492 case X86::CMOVBE64rr:
1493 case X86::CMOVA16rr:
1494 case X86::CMOVA32rr:
1495 case X86::CMOVA64rr:
1496 case X86::CMOVL16rr:
1497 case X86::CMOVL32rr:
1498 case X86::CMOVL64rr:
1499 case X86::CMOVGE16rr:
1500 case X86::CMOVGE32rr:
1501 case X86::CMOVGE64rr:
1502 case X86::CMOVLE16rr:
1503 case X86::CMOVLE32rr:
1504 case X86::CMOVLE64rr:
1505 case X86::CMOVG16rr:
1506 case X86::CMOVG32rr:
1507 case X86::CMOVG64rr:
1508 case X86::CMOVS16rr:
1509 case X86::CMOVS32rr:
1510 case X86::CMOVS64rr:
1511 case X86::CMOVNS16rr:
1512 case X86::CMOVNS32rr:
1513 case X86::CMOVNS64rr:
1514 case X86::CMOVP16rr:
1515 case X86::CMOVP32rr:
1516 case X86::CMOVP64rr:
1517 case X86::CMOVNP16rr:
1518 case X86::CMOVNP32rr:
Dan Gohman305fceb2009-01-07 00:35:10 +00001519 case X86::CMOVNP64rr:
1520 case X86::CMOVO16rr:
1521 case X86::CMOVO32rr:
1522 case X86::CMOVO64rr:
1523 case X86::CMOVNO16rr:
1524 case X86::CMOVNO32rr:
1525 case X86::CMOVNO64rr: {
Evan Cheng7ad42d92007-10-05 23:13:21 +00001526 unsigned Opc = 0;
1527 switch (MI->getOpcode()) {
1528 default: break;
1529 case X86::CMOVB16rr: Opc = X86::CMOVAE16rr; break;
1530 case X86::CMOVB32rr: Opc = X86::CMOVAE32rr; break;
1531 case X86::CMOVB64rr: Opc = X86::CMOVAE64rr; break;
1532 case X86::CMOVAE16rr: Opc = X86::CMOVB16rr; break;
1533 case X86::CMOVAE32rr: Opc = X86::CMOVB32rr; break;
1534 case X86::CMOVAE64rr: Opc = X86::CMOVB64rr; break;
1535 case X86::CMOVE16rr: Opc = X86::CMOVNE16rr; break;
1536 case X86::CMOVE32rr: Opc = X86::CMOVNE32rr; break;
1537 case X86::CMOVE64rr: Opc = X86::CMOVNE64rr; break;
1538 case X86::CMOVNE16rr: Opc = X86::CMOVE16rr; break;
1539 case X86::CMOVNE32rr: Opc = X86::CMOVE32rr; break;
1540 case X86::CMOVNE64rr: Opc = X86::CMOVE64rr; break;
1541 case X86::CMOVBE16rr: Opc = X86::CMOVA16rr; break;
1542 case X86::CMOVBE32rr: Opc = X86::CMOVA32rr; break;
1543 case X86::CMOVBE64rr: Opc = X86::CMOVA64rr; break;
1544 case X86::CMOVA16rr: Opc = X86::CMOVBE16rr; break;
1545 case X86::CMOVA32rr: Opc = X86::CMOVBE32rr; break;
1546 case X86::CMOVA64rr: Opc = X86::CMOVBE64rr; break;
1547 case X86::CMOVL16rr: Opc = X86::CMOVGE16rr; break;
1548 case X86::CMOVL32rr: Opc = X86::CMOVGE32rr; break;
1549 case X86::CMOVL64rr: Opc = X86::CMOVGE64rr; break;
1550 case X86::CMOVGE16rr: Opc = X86::CMOVL16rr; break;
1551 case X86::CMOVGE32rr: Opc = X86::CMOVL32rr; break;
1552 case X86::CMOVGE64rr: Opc = X86::CMOVL64rr; break;
1553 case X86::CMOVLE16rr: Opc = X86::CMOVG16rr; break;
1554 case X86::CMOVLE32rr: Opc = X86::CMOVG32rr; break;
1555 case X86::CMOVLE64rr: Opc = X86::CMOVG64rr; break;
1556 case X86::CMOVG16rr: Opc = X86::CMOVLE16rr; break;
1557 case X86::CMOVG32rr: Opc = X86::CMOVLE32rr; break;
1558 case X86::CMOVG64rr: Opc = X86::CMOVLE64rr; break;
1559 case X86::CMOVS16rr: Opc = X86::CMOVNS16rr; break;
1560 case X86::CMOVS32rr: Opc = X86::CMOVNS32rr; break;
Mon P Wang0bd07fc2009-04-18 05:16:01 +00001561 case X86::CMOVS64rr: Opc = X86::CMOVNS64rr; break;
Evan Cheng7ad42d92007-10-05 23:13:21 +00001562 case X86::CMOVNS16rr: Opc = X86::CMOVS16rr; break;
1563 case X86::CMOVNS32rr: Opc = X86::CMOVS32rr; break;
1564 case X86::CMOVNS64rr: Opc = X86::CMOVS64rr; break;
1565 case X86::CMOVP16rr: Opc = X86::CMOVNP16rr; break;
1566 case X86::CMOVP32rr: Opc = X86::CMOVNP32rr; break;
Mon P Wang0bd07fc2009-04-18 05:16:01 +00001567 case X86::CMOVP64rr: Opc = X86::CMOVNP64rr; break;
Evan Cheng7ad42d92007-10-05 23:13:21 +00001568 case X86::CMOVNP16rr: Opc = X86::CMOVP16rr; break;
1569 case X86::CMOVNP32rr: Opc = X86::CMOVP32rr; break;
1570 case X86::CMOVNP64rr: Opc = X86::CMOVP64rr; break;
Dan Gohman305fceb2009-01-07 00:35:10 +00001571 case X86::CMOVO16rr: Opc = X86::CMOVNO16rr; break;
1572 case X86::CMOVO32rr: Opc = X86::CMOVNO32rr; break;
Mon P Wang0bd07fc2009-04-18 05:16:01 +00001573 case X86::CMOVO64rr: Opc = X86::CMOVNO64rr; break;
Dan Gohman305fceb2009-01-07 00:35:10 +00001574 case X86::CMOVNO16rr: Opc = X86::CMOVO16rr; break;
1575 case X86::CMOVNO32rr: Opc = X86::CMOVO32rr; break;
1576 case X86::CMOVNO64rr: Opc = X86::CMOVO64rr; break;
Evan Cheng7ad42d92007-10-05 23:13:21 +00001577 }
Dan Gohman74feef22008-10-17 01:23:35 +00001578 if (NewMI) {
1579 MachineFunction &MF = *MI->getParent()->getParent();
1580 MI = MF.CloneMachineInstr(MI);
1581 NewMI = false;
1582 }
Chris Lattner5080f4d2008-01-11 18:10:50 +00001583 MI->setDesc(get(Opc));
Evan Cheng7ad42d92007-10-05 23:13:21 +00001584 // Fallthrough intended.
1585 }
Chris Lattner41e431b2005-01-19 07:11:01 +00001586 default:
Evan Cheng58dcb0e2008-06-16 07:33:11 +00001587 return TargetInstrInfoImpl::commuteInstruction(MI, NewMI);
Chris Lattner41e431b2005-01-19 07:11:01 +00001588 }
1589}
1590
Chris Lattner7fbe9722006-10-20 17:42:20 +00001591static X86::CondCode GetCondFromBranchOpc(unsigned BrOpc) {
1592 switch (BrOpc) {
1593 default: return X86::COND_INVALID;
Chris Lattnerbd13fb62010-02-11 19:25:55 +00001594 case X86::JE_4: return X86::COND_E;
1595 case X86::JNE_4: return X86::COND_NE;
1596 case X86::JL_4: return X86::COND_L;
1597 case X86::JLE_4: return X86::COND_LE;
1598 case X86::JG_4: return X86::COND_G;
1599 case X86::JGE_4: return X86::COND_GE;
1600 case X86::JB_4: return X86::COND_B;
1601 case X86::JBE_4: return X86::COND_BE;
1602 case X86::JA_4: return X86::COND_A;
1603 case X86::JAE_4: return X86::COND_AE;
1604 case X86::JS_4: return X86::COND_S;
1605 case X86::JNS_4: return X86::COND_NS;
1606 case X86::JP_4: return X86::COND_P;
1607 case X86::JNP_4: return X86::COND_NP;
1608 case X86::JO_4: return X86::COND_O;
1609 case X86::JNO_4: return X86::COND_NO;
Chris Lattner7fbe9722006-10-20 17:42:20 +00001610 }
1611}
1612
1613unsigned X86::GetCondBranchFromCond(X86::CondCode CC) {
1614 switch (CC) {
Torok Edwinc23197a2009-07-14 16:55:14 +00001615 default: llvm_unreachable("Illegal condition code!");
Chris Lattnerbd13fb62010-02-11 19:25:55 +00001616 case X86::COND_E: return X86::JE_4;
1617 case X86::COND_NE: return X86::JNE_4;
1618 case X86::COND_L: return X86::JL_4;
1619 case X86::COND_LE: return X86::JLE_4;
1620 case X86::COND_G: return X86::JG_4;
1621 case X86::COND_GE: return X86::JGE_4;
1622 case X86::COND_B: return X86::JB_4;
1623 case X86::COND_BE: return X86::JBE_4;
1624 case X86::COND_A: return X86::JA_4;
1625 case X86::COND_AE: return X86::JAE_4;
1626 case X86::COND_S: return X86::JS_4;
1627 case X86::COND_NS: return X86::JNS_4;
1628 case X86::COND_P: return X86::JP_4;
1629 case X86::COND_NP: return X86::JNP_4;
1630 case X86::COND_O: return X86::JO_4;
1631 case X86::COND_NO: return X86::JNO_4;
Chris Lattner7fbe9722006-10-20 17:42:20 +00001632 }
1633}
1634
Chris Lattner9cd68752006-10-21 05:52:40 +00001635/// GetOppositeBranchCondition - Return the inverse of the specified condition,
1636/// e.g. turning COND_E to COND_NE.
1637X86::CondCode X86::GetOppositeBranchCondition(X86::CondCode CC) {
1638 switch (CC) {
Torok Edwinc23197a2009-07-14 16:55:14 +00001639 default: llvm_unreachable("Illegal condition code!");
Chris Lattner9cd68752006-10-21 05:52:40 +00001640 case X86::COND_E: return X86::COND_NE;
1641 case X86::COND_NE: return X86::COND_E;
1642 case X86::COND_L: return X86::COND_GE;
1643 case X86::COND_LE: return X86::COND_G;
1644 case X86::COND_G: return X86::COND_LE;
1645 case X86::COND_GE: return X86::COND_L;
1646 case X86::COND_B: return X86::COND_AE;
1647 case X86::COND_BE: return X86::COND_A;
1648 case X86::COND_A: return X86::COND_BE;
1649 case X86::COND_AE: return X86::COND_B;
1650 case X86::COND_S: return X86::COND_NS;
1651 case X86::COND_NS: return X86::COND_S;
1652 case X86::COND_P: return X86::COND_NP;
1653 case X86::COND_NP: return X86::COND_P;
1654 case X86::COND_O: return X86::COND_NO;
1655 case X86::COND_NO: return X86::COND_O;
1656 }
1657}
1658
Dale Johannesen318093b2007-06-14 22:03:45 +00001659bool X86InstrInfo::isUnpredicatedTerminator(const MachineInstr *MI) const {
Chris Lattner749c6f62008-01-07 07:27:27 +00001660 const TargetInstrDesc &TID = MI->getDesc();
1661 if (!TID.isTerminator()) return false;
Chris Lattner69244302008-01-07 01:56:04 +00001662
1663 // Conditional branch is a special case.
Chris Lattner749c6f62008-01-07 07:27:27 +00001664 if (TID.isBranch() && !TID.isBarrier())
Chris Lattner69244302008-01-07 01:56:04 +00001665 return true;
Chris Lattner749c6f62008-01-07 07:27:27 +00001666 if (!TID.isPredicable())
Chris Lattner69244302008-01-07 01:56:04 +00001667 return true;
1668 return !isPredicated(MI);
Dale Johannesen318093b2007-06-14 22:03:45 +00001669}
Chris Lattner9cd68752006-10-21 05:52:40 +00001670
Evan Cheng85dce6c2007-07-26 17:32:14 +00001671// For purposes of branch analysis do not count FP_REG_KILL as a terminator.
1672static bool isBrAnalysisUnpredicatedTerminator(const MachineInstr *MI,
1673 const X86InstrInfo &TII) {
1674 if (MI->getOpcode() == X86::FP_REG_KILL)
1675 return false;
1676 return TII.isUnpredicatedTerminator(MI);
1677}
1678
Chris Lattner7fbe9722006-10-20 17:42:20 +00001679bool X86InstrInfo::AnalyzeBranch(MachineBasicBlock &MBB,
1680 MachineBasicBlock *&TBB,
1681 MachineBasicBlock *&FBB,
Evan Chengdc54d312009-02-09 07:14:22 +00001682 SmallVectorImpl<MachineOperand> &Cond,
1683 bool AllowModify) const {
Dan Gohman279c22e2008-10-21 03:29:32 +00001684 // Start from the bottom of the block and work up, examining the
1685 // terminator instructions.
Chris Lattner7fbe9722006-10-20 17:42:20 +00001686 MachineBasicBlock::iterator I = MBB.end();
Dan Gohman279c22e2008-10-21 03:29:32 +00001687 while (I != MBB.begin()) {
1688 --I;
Bill Wendling85de1e52009-12-14 06:51:19 +00001689
1690 // Working from the bottom, when we see a non-terminator instruction, we're
1691 // done.
Dan Gohman279c22e2008-10-21 03:29:32 +00001692 if (!isBrAnalysisUnpredicatedTerminator(I, *this))
1693 break;
Bill Wendling85de1e52009-12-14 06:51:19 +00001694
1695 // A terminator that isn't a branch can't easily be handled by this
1696 // analysis.
Dan Gohman279c22e2008-10-21 03:29:32 +00001697 if (!I->getDesc().isBranch())
Chris Lattner7fbe9722006-10-20 17:42:20 +00001698 return true;
Bill Wendling85de1e52009-12-14 06:51:19 +00001699
Dan Gohman279c22e2008-10-21 03:29:32 +00001700 // Handle unconditional branches.
Chris Lattnerbd13fb62010-02-11 19:25:55 +00001701 if (I->getOpcode() == X86::JMP_4) {
Evan Chengdc54d312009-02-09 07:14:22 +00001702 if (!AllowModify) {
1703 TBB = I->getOperand(0).getMBB();
Evan Cheng45e00102009-05-08 06:34:09 +00001704 continue;
Evan Chengdc54d312009-02-09 07:14:22 +00001705 }
1706
Dan Gohman279c22e2008-10-21 03:29:32 +00001707 // If the block has any instructions after a JMP, delete them.
Chris Lattner7896c9f2009-12-03 00:50:42 +00001708 while (llvm::next(I) != MBB.end())
1709 llvm::next(I)->eraseFromParent();
Bill Wendling85de1e52009-12-14 06:51:19 +00001710
Dan Gohman279c22e2008-10-21 03:29:32 +00001711 Cond.clear();
1712 FBB = 0;
Bill Wendling85de1e52009-12-14 06:51:19 +00001713
Dan Gohman279c22e2008-10-21 03:29:32 +00001714 // Delete the JMP if it's equivalent to a fall-through.
1715 if (MBB.isLayoutSuccessor(I->getOperand(0).getMBB())) {
1716 TBB = 0;
1717 I->eraseFromParent();
1718 I = MBB.end();
1719 continue;
1720 }
Bill Wendling85de1e52009-12-14 06:51:19 +00001721
Dan Gohman279c22e2008-10-21 03:29:32 +00001722 // TBB is used to indicate the unconditinal destination.
1723 TBB = I->getOperand(0).getMBB();
1724 continue;
Chris Lattner7fbe9722006-10-20 17:42:20 +00001725 }
Bill Wendling85de1e52009-12-14 06:51:19 +00001726
Dan Gohman279c22e2008-10-21 03:29:32 +00001727 // Handle conditional branches.
1728 X86::CondCode BranchCode = GetCondFromBranchOpc(I->getOpcode());
Chris Lattner7fbe9722006-10-20 17:42:20 +00001729 if (BranchCode == X86::COND_INVALID)
1730 return true; // Can't handle indirect branch.
Bill Wendling85de1e52009-12-14 06:51:19 +00001731
Dan Gohman279c22e2008-10-21 03:29:32 +00001732 // Working from the bottom, handle the first conditional branch.
1733 if (Cond.empty()) {
1734 FBB = TBB;
1735 TBB = I->getOperand(0).getMBB();
1736 Cond.push_back(MachineOperand::CreateImm(BranchCode));
1737 continue;
1738 }
Bill Wendling85de1e52009-12-14 06:51:19 +00001739
1740 // Handle subsequent conditional branches. Only handle the case where all
1741 // conditional branches branch to the same destination and their condition
1742 // opcodes fit one of the special multi-branch idioms.
Dan Gohman279c22e2008-10-21 03:29:32 +00001743 assert(Cond.size() == 1);
1744 assert(TBB);
Bill Wendling85de1e52009-12-14 06:51:19 +00001745
1746 // Only handle the case where all conditional branches branch to the same
1747 // destination.
Dan Gohman279c22e2008-10-21 03:29:32 +00001748 if (TBB != I->getOperand(0).getMBB())
1749 return true;
Bill Wendling85de1e52009-12-14 06:51:19 +00001750
Dan Gohman279c22e2008-10-21 03:29:32 +00001751 // If the conditions are the same, we can leave them alone.
Bill Wendling85de1e52009-12-14 06:51:19 +00001752 X86::CondCode OldBranchCode = (X86::CondCode)Cond[0].getImm();
Dan Gohman279c22e2008-10-21 03:29:32 +00001753 if (OldBranchCode == BranchCode)
1754 continue;
Bill Wendling85de1e52009-12-14 06:51:19 +00001755
1756 // If they differ, see if they fit one of the known patterns. Theoretically,
1757 // we could handle more patterns here, but we shouldn't expect to see them
1758 // if instruction selection has done a reasonable job.
Dan Gohman279c22e2008-10-21 03:29:32 +00001759 if ((OldBranchCode == X86::COND_NP &&
1760 BranchCode == X86::COND_E) ||
1761 (OldBranchCode == X86::COND_E &&
1762 BranchCode == X86::COND_NP))
1763 BranchCode = X86::COND_NP_OR_E;
1764 else if ((OldBranchCode == X86::COND_P &&
1765 BranchCode == X86::COND_NE) ||
1766 (OldBranchCode == X86::COND_NE &&
1767 BranchCode == X86::COND_P))
1768 BranchCode = X86::COND_NE_OR_P;
1769 else
1770 return true;
Bill Wendling85de1e52009-12-14 06:51:19 +00001771
Dan Gohman279c22e2008-10-21 03:29:32 +00001772 // Update the MachineOperand.
1773 Cond[0].setImm(BranchCode);
Chris Lattner6ce64432006-10-30 22:27:23 +00001774 }
Chris Lattner7fbe9722006-10-20 17:42:20 +00001775
Dan Gohman279c22e2008-10-21 03:29:32 +00001776 return false;
Chris Lattner7fbe9722006-10-20 17:42:20 +00001777}
1778
Evan Cheng6ae36262007-05-18 00:18:17 +00001779unsigned X86InstrInfo::RemoveBranch(MachineBasicBlock &MBB) const {
Chris Lattner7fbe9722006-10-20 17:42:20 +00001780 MachineBasicBlock::iterator I = MBB.end();
Dan Gohman279c22e2008-10-21 03:29:32 +00001781 unsigned Count = 0;
1782
1783 while (I != MBB.begin()) {
1784 --I;
Chris Lattnerbd13fb62010-02-11 19:25:55 +00001785 if (I->getOpcode() != X86::JMP_4 &&
Dan Gohman279c22e2008-10-21 03:29:32 +00001786 GetCondFromBranchOpc(I->getOpcode()) == X86::COND_INVALID)
1787 break;
1788 // Remove the branch.
1789 I->eraseFromParent();
1790 I = MBB.end();
1791 ++Count;
1792 }
Chris Lattner7fbe9722006-10-20 17:42:20 +00001793
Dan Gohman279c22e2008-10-21 03:29:32 +00001794 return Count;
Chris Lattner7fbe9722006-10-20 17:42:20 +00001795}
1796
Evan Cheng6ae36262007-05-18 00:18:17 +00001797unsigned
1798X86InstrInfo::InsertBranch(MachineBasicBlock &MBB, MachineBasicBlock *TBB,
1799 MachineBasicBlock *FBB,
Owen Anderson44eb65c2008-08-14 22:49:33 +00001800 const SmallVectorImpl<MachineOperand> &Cond) const {
Dale Johannesen8d13f8f2009-02-13 02:33:27 +00001801 // FIXME this should probably have a DebugLoc operand
1802 DebugLoc dl = DebugLoc::getUnknownLoc();
Chris Lattner7fbe9722006-10-20 17:42:20 +00001803 // Shouldn't be a fall through.
1804 assert(TBB && "InsertBranch must not be told to insert a fallthrough");
Chris Lattner34a84ac2006-10-21 05:34:23 +00001805 assert((Cond.size() == 1 || Cond.size() == 0) &&
1806 "X86 branch conditions have one component!");
1807
Dan Gohman279c22e2008-10-21 03:29:32 +00001808 if (Cond.empty()) {
1809 // Unconditional branch?
1810 assert(!FBB && "Unconditional branch with multiple successors!");
Chris Lattnerbd13fb62010-02-11 19:25:55 +00001811 BuildMI(&MBB, dl, get(X86::JMP_4)).addMBB(TBB);
Evan Cheng6ae36262007-05-18 00:18:17 +00001812 return 1;
Chris Lattner7fbe9722006-10-20 17:42:20 +00001813 }
Dan Gohman279c22e2008-10-21 03:29:32 +00001814
1815 // Conditional branch.
1816 unsigned Count = 0;
1817 X86::CondCode CC = (X86::CondCode)Cond[0].getImm();
1818 switch (CC) {
1819 case X86::COND_NP_OR_E:
1820 // Synthesize NP_OR_E with two branches.
Bill Wendling18ce64e2010-03-05 00:33:59 +00001821 BuildMI(&MBB, dl, get(X86::JNP_4)).addMBB(TBB);
1822 ++Count;
1823 BuildMI(&MBB, dl, get(X86::JE_4)).addMBB(TBB);
1824 ++Count;
Dan Gohman279c22e2008-10-21 03:29:32 +00001825 break;
1826 case X86::COND_NE_OR_P:
1827 // Synthesize NE_OR_P with two branches.
Bill Wendling18ce64e2010-03-05 00:33:59 +00001828 BuildMI(&MBB, dl, get(X86::JNE_4)).addMBB(TBB);
1829 ++Count;
1830 BuildMI(&MBB, dl, get(X86::JP_4)).addMBB(TBB);
1831 ++Count;
Dan Gohman279c22e2008-10-21 03:29:32 +00001832 break;
Bill Wendling18ce64e2010-03-05 00:33:59 +00001833 default: {
1834 unsigned Opc = GetCondBranchFromCond(CC);
1835 BuildMI(&MBB, dl, get(Opc)).addMBB(TBB);
1836 ++Count;
Dan Gohman279c22e2008-10-21 03:29:32 +00001837 }
Bill Wendling18ce64e2010-03-05 00:33:59 +00001838 }
Dan Gohman279c22e2008-10-21 03:29:32 +00001839 if (FBB) {
1840 // Two-way Conditional branch. Insert the second branch.
Chris Lattnerbd13fb62010-02-11 19:25:55 +00001841 BuildMI(&MBB, dl, get(X86::JMP_4)).addMBB(FBB);
Dan Gohman279c22e2008-10-21 03:29:32 +00001842 ++Count;
1843 }
1844 return Count;
Chris Lattner7fbe9722006-10-20 17:42:20 +00001845}
1846
Dan Gohman6d9305c2009-04-15 00:04:23 +00001847/// isHReg - Test if the given register is a physical h register.
1848static bool isHReg(unsigned Reg) {
Dan Gohman4af325d2009-04-27 16:41:36 +00001849 return X86::GR8_ABCD_HRegClass.contains(Reg);
Dan Gohman6d9305c2009-04-15 00:04:23 +00001850}
1851
Owen Anderson940f83e2008-08-26 18:03:31 +00001852bool X86InstrInfo::copyRegToReg(MachineBasicBlock &MBB,
Chris Lattner5c927502008-03-09 08:46:19 +00001853 MachineBasicBlock::iterator MI,
1854 unsigned DestReg, unsigned SrcReg,
1855 const TargetRegisterClass *DestRC,
1856 const TargetRegisterClass *SrcRC) const {
Dale Johannesen6ec25f52010-01-26 00:03:12 +00001857 DebugLoc DL = MBB.findDebugLoc(MI);
Bill Wendlingfbef3102009-02-11 21:51:19 +00001858
Dan Gohman70bc17d2009-04-20 22:54:34 +00001859 // Determine if DstRC and SrcRC have a common superclass in common.
1860 const TargetRegisterClass *CommonRC = DestRC;
1861 if (DestRC == SrcRC)
1862 /* Source and destination have the same register class. */;
1863 else if (CommonRC->hasSuperClass(SrcRC))
1864 CommonRC = SrcRC;
Dan Gohmana4714e02009-07-30 01:56:29 +00001865 else if (!DestRC->hasSubClass(SrcRC)) {
1866 // Neither of GR64_NOREX or GR64_NOSP is a superclass of the other,
Dan Gohmanb4e8aab2010-02-22 04:09:26 +00001867 // but we want to copy them as GR64. Similarly, for GR32_NOREX and
Dan Gohman59e34922009-08-05 22:18:26 +00001868 // GR32_NOSP, copy as GR32.
Dan Gohman31082222009-08-11 15:59:48 +00001869 if (SrcRC->hasSuperClass(&X86::GR64RegClass) &&
1870 DestRC->hasSuperClass(&X86::GR64RegClass))
Dan Gohmana4714e02009-07-30 01:56:29 +00001871 CommonRC = &X86::GR64RegClass;
Dan Gohman31082222009-08-11 15:59:48 +00001872 else if (SrcRC->hasSuperClass(&X86::GR32RegClass) &&
1873 DestRC->hasSuperClass(&X86::GR32RegClass))
Dan Gohman59e34922009-08-05 22:18:26 +00001874 CommonRC = &X86::GR32RegClass;
Dan Gohmana4714e02009-07-30 01:56:29 +00001875 else
1876 CommonRC = 0;
1877 }
Dan Gohman70bc17d2009-04-20 22:54:34 +00001878
1879 if (CommonRC) {
Chris Lattner90b347d2008-03-09 07:58:04 +00001880 unsigned Opc;
Dan Gohmana4714e02009-07-30 01:56:29 +00001881 if (CommonRC == &X86::GR64RegClass || CommonRC == &X86::GR64_NOSPRegClass) {
Chris Lattner90b347d2008-03-09 07:58:04 +00001882 Opc = X86::MOV64rr;
Dan Gohmana4714e02009-07-30 01:56:29 +00001883 } else if (CommonRC == &X86::GR32RegClass ||
1884 CommonRC == &X86::GR32_NOSPRegClass) {
Chris Lattner90b347d2008-03-09 07:58:04 +00001885 Opc = X86::MOV32rr;
Dan Gohman70bc17d2009-04-20 22:54:34 +00001886 } else if (CommonRC == &X86::GR16RegClass) {
Chris Lattner90b347d2008-03-09 07:58:04 +00001887 Opc = X86::MOV16rr;
Dan Gohman70bc17d2009-04-20 22:54:34 +00001888 } else if (CommonRC == &X86::GR8RegClass) {
Dan Gohman4af325d2009-04-27 16:41:36 +00001889 // Copying to or from a physical H register on x86-64 requires a NOREX
Bill Wendling18247732009-04-17 22:40:38 +00001890 // move. Otherwise use a normal move.
1891 if ((isHReg(DestReg) || isHReg(SrcReg)) &&
1892 TM.getSubtarget<X86Subtarget>().is64Bit())
Dan Gohman6d9305c2009-04-15 00:04:23 +00001893 Opc = X86::MOV8rr_NOREX;
1894 else
1895 Opc = X86::MOV8rr;
Dan Gohman62417622009-04-27 16:33:14 +00001896 } else if (CommonRC == &X86::GR64_ABCDRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00001897 Opc = X86::MOV64rr;
Dan Gohman62417622009-04-27 16:33:14 +00001898 } else if (CommonRC == &X86::GR32_ABCDRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00001899 Opc = X86::MOV32rr;
Dan Gohman62417622009-04-27 16:33:14 +00001900 } else if (CommonRC == &X86::GR16_ABCDRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00001901 Opc = X86::MOV16rr;
Dan Gohman4af325d2009-04-27 16:41:36 +00001902 } else if (CommonRC == &X86::GR8_ABCD_LRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00001903 Opc = X86::MOV8rr;
Dan Gohman4af325d2009-04-27 16:41:36 +00001904 } else if (CommonRC == &X86::GR8_ABCD_HRegClass) {
1905 if (TM.getSubtarget<X86Subtarget>().is64Bit())
1906 Opc = X86::MOV8rr_NOREX;
1907 else
1908 Opc = X86::MOV8rr;
Dan Gohmana4714e02009-07-30 01:56:29 +00001909 } else if (CommonRC == &X86::GR64_NOREXRegClass ||
1910 CommonRC == &X86::GR64_NOREX_NOSPRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00001911 Opc = X86::MOV64rr;
Dan Gohman70bc17d2009-04-20 22:54:34 +00001912 } else if (CommonRC == &X86::GR32_NOREXRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00001913 Opc = X86::MOV32rr;
Dan Gohman70bc17d2009-04-20 22:54:34 +00001914 } else if (CommonRC == &X86::GR16_NOREXRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00001915 Opc = X86::MOV16rr;
Dan Gohman70bc17d2009-04-20 22:54:34 +00001916 } else if (CommonRC == &X86::GR8_NOREXRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00001917 Opc = X86::MOV8rr;
Evan Chengf48ef032010-03-14 03:48:46 +00001918 } else if (CommonRC == &X86::GR64_TCRegClass) {
1919 Opc = X86::MOV64rr_TC;
1920 } else if (CommonRC == &X86::GR32_TCRegClass) {
1921 Opc = X86::MOV32rr_TC;
Dan Gohman70bc17d2009-04-20 22:54:34 +00001922 } else if (CommonRC == &X86::RFP32RegClass) {
Chris Lattner90b347d2008-03-09 07:58:04 +00001923 Opc = X86::MOV_Fp3232;
Dan Gohman70bc17d2009-04-20 22:54:34 +00001924 } else if (CommonRC == &X86::RFP64RegClass || CommonRC == &X86::RSTRegClass) {
Chris Lattner90b347d2008-03-09 07:58:04 +00001925 Opc = X86::MOV_Fp6464;
Dan Gohman70bc17d2009-04-20 22:54:34 +00001926 } else if (CommonRC == &X86::RFP80RegClass) {
Chris Lattner90b347d2008-03-09 07:58:04 +00001927 Opc = X86::MOV_Fp8080;
Dan Gohman70bc17d2009-04-20 22:54:34 +00001928 } else if (CommonRC == &X86::FR32RegClass) {
Chris Lattner90b347d2008-03-09 07:58:04 +00001929 Opc = X86::FsMOVAPSrr;
Dan Gohman70bc17d2009-04-20 22:54:34 +00001930 } else if (CommonRC == &X86::FR64RegClass) {
Chris Lattner90b347d2008-03-09 07:58:04 +00001931 Opc = X86::FsMOVAPDrr;
Dan Gohman70bc17d2009-04-20 22:54:34 +00001932 } else if (CommonRC == &X86::VR128RegClass) {
Chris Lattner90b347d2008-03-09 07:58:04 +00001933 Opc = X86::MOVAPSrr;
Dan Gohman70bc17d2009-04-20 22:54:34 +00001934 } else if (CommonRC == &X86::VR64RegClass) {
Chris Lattner90b347d2008-03-09 07:58:04 +00001935 Opc = X86::MMX_MOVQ64rr;
1936 } else {
Owen Anderson940f83e2008-08-26 18:03:31 +00001937 return false;
Owen Andersond10fd972007-12-31 06:32:00 +00001938 }
Bill Wendlingfbef3102009-02-11 21:51:19 +00001939 BuildMI(MBB, MI, DL, get(Opc), DestReg).addReg(SrcReg);
Owen Anderson940f83e2008-08-26 18:03:31 +00001940 return true;
Owen Andersond10fd972007-12-31 06:32:00 +00001941 }
Dan Gohmana4714e02009-07-30 01:56:29 +00001942
Chris Lattner90b347d2008-03-09 07:58:04 +00001943 // Moving EFLAGS to / from another register requires a push and a pop.
1944 if (SrcRC == &X86::CCRRegClass) {
Owen Andersona3177672008-08-26 18:50:40 +00001945 if (SrcReg != X86::EFLAGS)
1946 return false;
Dan Gohmana4714e02009-07-30 01:56:29 +00001947 if (DestRC == &X86::GR64RegClass || DestRC == &X86::GR64_NOSPRegClass) {
Sean Callanan108934c2009-12-18 00:01:26 +00001948 BuildMI(MBB, MI, DL, get(X86::PUSHFQ64));
Bill Wendlingfbef3102009-02-11 21:51:19 +00001949 BuildMI(MBB, MI, DL, get(X86::POP64r), DestReg);
Owen Anderson940f83e2008-08-26 18:03:31 +00001950 return true;
Dan Gohmana4714e02009-07-30 01:56:29 +00001951 } else if (DestRC == &X86::GR32RegClass ||
1952 DestRC == &X86::GR32_NOSPRegClass) {
Bill Wendlingfbef3102009-02-11 21:51:19 +00001953 BuildMI(MBB, MI, DL, get(X86::PUSHFD));
1954 BuildMI(MBB, MI, DL, get(X86::POP32r), DestReg);
Owen Anderson940f83e2008-08-26 18:03:31 +00001955 return true;
Chris Lattner90b347d2008-03-09 07:58:04 +00001956 }
1957 } else if (DestRC == &X86::CCRRegClass) {
Owen Andersona3177672008-08-26 18:50:40 +00001958 if (DestReg != X86::EFLAGS)
1959 return false;
Dan Gohmana4714e02009-07-30 01:56:29 +00001960 if (SrcRC == &X86::GR64RegClass || DestRC == &X86::GR64_NOSPRegClass) {
Bill Wendlingfbef3102009-02-11 21:51:19 +00001961 BuildMI(MBB, MI, DL, get(X86::PUSH64r)).addReg(SrcReg);
1962 BuildMI(MBB, MI, DL, get(X86::POPFQ));
Owen Anderson940f83e2008-08-26 18:03:31 +00001963 return true;
Dan Gohmana4714e02009-07-30 01:56:29 +00001964 } else if (SrcRC == &X86::GR32RegClass ||
1965 DestRC == &X86::GR32_NOSPRegClass) {
Bill Wendlingfbef3102009-02-11 21:51:19 +00001966 BuildMI(MBB, MI, DL, get(X86::PUSH32r)).addReg(SrcReg);
1967 BuildMI(MBB, MI, DL, get(X86::POPFD));
Owen Anderson940f83e2008-08-26 18:03:31 +00001968 return true;
Chris Lattner90b347d2008-03-09 07:58:04 +00001969 }
Owen Andersond10fd972007-12-31 06:32:00 +00001970 }
Dan Gohman21e3dfb2009-04-13 16:09:41 +00001971
Chris Lattnerf30e1cf2008-03-09 09:15:31 +00001972 // Moving from ST(0) turns into FpGET_ST0_32 etc.
Chris Lattner5c927502008-03-09 08:46:19 +00001973 if (SrcRC == &X86::RSTRegClass) {
Chris Lattner24e0a542008-03-21 06:38:26 +00001974 // Copying from ST(0)/ST(1).
Owen Anderson940f83e2008-08-26 18:03:31 +00001975 if (SrcReg != X86::ST0 && SrcReg != X86::ST1)
1976 // Can only copy from ST(0)/ST(1) right now
1977 return false;
Chris Lattner24e0a542008-03-21 06:38:26 +00001978 bool isST0 = SrcReg == X86::ST0;
Chris Lattner5c927502008-03-09 08:46:19 +00001979 unsigned Opc;
1980 if (DestRC == &X86::RFP32RegClass)
Chris Lattner24e0a542008-03-21 06:38:26 +00001981 Opc = isST0 ? X86::FpGET_ST0_32 : X86::FpGET_ST1_32;
Chris Lattner5c927502008-03-09 08:46:19 +00001982 else if (DestRC == &X86::RFP64RegClass)
Chris Lattner24e0a542008-03-21 06:38:26 +00001983 Opc = isST0 ? X86::FpGET_ST0_64 : X86::FpGET_ST1_64;
Chris Lattner5c927502008-03-09 08:46:19 +00001984 else {
Owen Andersona3177672008-08-26 18:50:40 +00001985 if (DestRC != &X86::RFP80RegClass)
1986 return false;
Chris Lattner24e0a542008-03-21 06:38:26 +00001987 Opc = isST0 ? X86::FpGET_ST0_80 : X86::FpGET_ST1_80;
Chris Lattner5c927502008-03-09 08:46:19 +00001988 }
Bill Wendlingfbef3102009-02-11 21:51:19 +00001989 BuildMI(MBB, MI, DL, get(Opc), DestReg);
Owen Anderson940f83e2008-08-26 18:03:31 +00001990 return true;
Chris Lattner5c927502008-03-09 08:46:19 +00001991 }
Chris Lattnerf30e1cf2008-03-09 09:15:31 +00001992
1993 // Moving to ST(0) turns into FpSET_ST0_32 etc.
1994 if (DestRC == &X86::RSTRegClass) {
Evan Chenga0eedac2009-02-09 23:32:07 +00001995 // Copying to ST(0) / ST(1).
1996 if (DestReg != X86::ST0 && DestReg != X86::ST1)
Owen Anderson940f83e2008-08-26 18:03:31 +00001997 // Can only copy to TOS right now
1998 return false;
Evan Chenga0eedac2009-02-09 23:32:07 +00001999 bool isST0 = DestReg == X86::ST0;
Chris Lattnerf30e1cf2008-03-09 09:15:31 +00002000 unsigned Opc;
2001 if (SrcRC == &X86::RFP32RegClass)
Evan Chenga0eedac2009-02-09 23:32:07 +00002002 Opc = isST0 ? X86::FpSET_ST0_32 : X86::FpSET_ST1_32;
Chris Lattnerf30e1cf2008-03-09 09:15:31 +00002003 else if (SrcRC == &X86::RFP64RegClass)
Evan Chenga0eedac2009-02-09 23:32:07 +00002004 Opc = isST0 ? X86::FpSET_ST0_64 : X86::FpSET_ST1_64;
Chris Lattnerf30e1cf2008-03-09 09:15:31 +00002005 else {
Owen Andersona3177672008-08-26 18:50:40 +00002006 if (SrcRC != &X86::RFP80RegClass)
2007 return false;
Evan Chenga0eedac2009-02-09 23:32:07 +00002008 Opc = isST0 ? X86::FpSET_ST0_80 : X86::FpSET_ST1_80;
Chris Lattnerf30e1cf2008-03-09 09:15:31 +00002009 }
Bill Wendlingfbef3102009-02-11 21:51:19 +00002010 BuildMI(MBB, MI, DL, get(Opc)).addReg(SrcReg);
Owen Anderson940f83e2008-08-26 18:03:31 +00002011 return true;
Chris Lattnerf30e1cf2008-03-09 09:15:31 +00002012 }
Chris Lattner5c927502008-03-09 08:46:19 +00002013
Owen Anderson940f83e2008-08-26 18:03:31 +00002014 // Not yet supported!
2015 return false;
Owen Andersond10fd972007-12-31 06:32:00 +00002016}
2017
Dan Gohman4af325d2009-04-27 16:41:36 +00002018static unsigned getStoreRegOpcode(unsigned SrcReg,
2019 const TargetRegisterClass *RC,
2020 bool isStackAligned,
2021 TargetMachine &TM) {
Owen Andersonf6372aa2008-01-01 21:11:32 +00002022 unsigned Opc = 0;
Dan Gohmana4714e02009-07-30 01:56:29 +00002023 if (RC == &X86::GR64RegClass || RC == &X86::GR64_NOSPRegClass) {
Owen Andersonf6372aa2008-01-01 21:11:32 +00002024 Opc = X86::MOV64mr;
Dan Gohmana4714e02009-07-30 01:56:29 +00002025 } else if (RC == &X86::GR32RegClass || RC == &X86::GR32_NOSPRegClass) {
Owen Andersonf6372aa2008-01-01 21:11:32 +00002026 Opc = X86::MOV32mr;
2027 } else if (RC == &X86::GR16RegClass) {
2028 Opc = X86::MOV16mr;
2029 } else if (RC == &X86::GR8RegClass) {
Dan Gohman4af325d2009-04-27 16:41:36 +00002030 // Copying to or from a physical H register on x86-64 requires a NOREX
2031 // move. Otherwise use a normal move.
2032 if (isHReg(SrcReg) &&
2033 TM.getSubtarget<X86Subtarget>().is64Bit())
2034 Opc = X86::MOV8mr_NOREX;
2035 else
2036 Opc = X86::MOV8mr;
Dan Gohman62417622009-04-27 16:33:14 +00002037 } else if (RC == &X86::GR64_ABCDRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00002038 Opc = X86::MOV64mr;
Dan Gohman62417622009-04-27 16:33:14 +00002039 } else if (RC == &X86::GR32_ABCDRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00002040 Opc = X86::MOV32mr;
Dan Gohman62417622009-04-27 16:33:14 +00002041 } else if (RC == &X86::GR16_ABCDRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00002042 Opc = X86::MOV16mr;
Dan Gohman4af325d2009-04-27 16:41:36 +00002043 } else if (RC == &X86::GR8_ABCD_LRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00002044 Opc = X86::MOV8mr;
Dan Gohman4af325d2009-04-27 16:41:36 +00002045 } else if (RC == &X86::GR8_ABCD_HRegClass) {
2046 if (TM.getSubtarget<X86Subtarget>().is64Bit())
2047 Opc = X86::MOV8mr_NOREX;
2048 else
2049 Opc = X86::MOV8mr;
Dan Gohmana4714e02009-07-30 01:56:29 +00002050 } else if (RC == &X86::GR64_NOREXRegClass ||
2051 RC == &X86::GR64_NOREX_NOSPRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00002052 Opc = X86::MOV64mr;
2053 } else if (RC == &X86::GR32_NOREXRegClass) {
2054 Opc = X86::MOV32mr;
2055 } else if (RC == &X86::GR16_NOREXRegClass) {
2056 Opc = X86::MOV16mr;
2057 } else if (RC == &X86::GR8_NOREXRegClass) {
2058 Opc = X86::MOV8mr;
Evan Chengf48ef032010-03-14 03:48:46 +00002059 } else if (RC == &X86::GR64_TCRegClass) {
2060 Opc = X86::MOV64mr_TC;
2061 } else if (RC == &X86::GR32_TCRegClass) {
2062 Opc = X86::MOV32mr_TC;
Owen Andersonf6372aa2008-01-01 21:11:32 +00002063 } else if (RC == &X86::RFP80RegClass) {
2064 Opc = X86::ST_FpP80m; // pops
2065 } else if (RC == &X86::RFP64RegClass) {
2066 Opc = X86::ST_Fp64m;
2067 } else if (RC == &X86::RFP32RegClass) {
2068 Opc = X86::ST_Fp32m;
2069 } else if (RC == &X86::FR32RegClass) {
2070 Opc = X86::MOVSSmr;
2071 } else if (RC == &X86::FR64RegClass) {
2072 Opc = X86::MOVSDmr;
2073 } else if (RC == &X86::VR128RegClass) {
Anton Korobeynikov88bbf692008-07-19 06:30:51 +00002074 // If stack is realigned we can use aligned stores.
2075 Opc = isStackAligned ? X86::MOVAPSmr : X86::MOVUPSmr;
Owen Andersonf6372aa2008-01-01 21:11:32 +00002076 } else if (RC == &X86::VR64RegClass) {
2077 Opc = X86::MMX_MOVQ64mr;
2078 } else {
Torok Edwinc23197a2009-07-14 16:55:14 +00002079 llvm_unreachable("Unknown regclass");
Owen Andersonf6372aa2008-01-01 21:11:32 +00002080 }
2081
2082 return Opc;
2083}
2084
2085void X86InstrInfo::storeRegToStackSlot(MachineBasicBlock &MBB,
2086 MachineBasicBlock::iterator MI,
2087 unsigned SrcReg, bool isKill, int FrameIdx,
2088 const TargetRegisterClass *RC) const {
Anton Korobeynikov88bbf692008-07-19 06:30:51 +00002089 const MachineFunction &MF = *MBB.getParent();
Jim Grosbache45ab8a2010-01-19 18:31:11 +00002090 bool isAligned = (RI.getStackAlignment() >= 16) || RI.canRealignStack(MF);
Dan Gohman4af325d2009-04-27 16:41:36 +00002091 unsigned Opc = getStoreRegOpcode(SrcReg, RC, isAligned, TM);
Dale Johannesen6ec25f52010-01-26 00:03:12 +00002092 DebugLoc DL = MBB.findDebugLoc(MI);
Bill Wendlingfbef3102009-02-11 21:51:19 +00002093 addFrameReference(BuildMI(MBB, MI, DL, get(Opc)), FrameIdx)
Bill Wendling587daed2009-05-13 21:33:08 +00002094 .addReg(SrcReg, getKillRegState(isKill));
Owen Andersonf6372aa2008-01-01 21:11:32 +00002095}
2096
2097void X86InstrInfo::storeRegToAddr(MachineFunction &MF, unsigned SrcReg,
2098 bool isKill,
2099 SmallVectorImpl<MachineOperand> &Addr,
2100 const TargetRegisterClass *RC,
Dan Gohman91e69c32009-10-09 18:10:05 +00002101 MachineInstr::mmo_iterator MMOBegin,
2102 MachineInstr::mmo_iterator MMOEnd,
Owen Andersonf6372aa2008-01-01 21:11:32 +00002103 SmallVectorImpl<MachineInstr*> &NewMIs) const {
Evan Cheng600c0432009-11-16 21:56:03 +00002104 bool isAligned = (*MMOBegin)->getAlignment() >= 16;
Dan Gohman4af325d2009-04-27 16:41:36 +00002105 unsigned Opc = getStoreRegOpcode(SrcReg, RC, isAligned, TM);
Dale Johannesen21b55412009-02-12 23:08:38 +00002106 DebugLoc DL = DebugLoc::getUnknownLoc();
2107 MachineInstrBuilder MIB = BuildMI(MF, DL, get(Opc));
Owen Andersonf6372aa2008-01-01 21:11:32 +00002108 for (unsigned i = 0, e = Addr.size(); i != e; ++i)
Dan Gohman97357612009-02-18 05:45:50 +00002109 MIB.addOperand(Addr[i]);
Bill Wendling587daed2009-05-13 21:33:08 +00002110 MIB.addReg(SrcReg, getKillRegState(isKill));
Dan Gohman91e69c32009-10-09 18:10:05 +00002111 (*MIB).setMemRefs(MMOBegin, MMOEnd);
Owen Andersonf6372aa2008-01-01 21:11:32 +00002112 NewMIs.push_back(MIB);
2113}
2114
Dan Gohman4af325d2009-04-27 16:41:36 +00002115static unsigned getLoadRegOpcode(unsigned DestReg,
2116 const TargetRegisterClass *RC,
2117 bool isStackAligned,
2118 const TargetMachine &TM) {
Owen Andersonf6372aa2008-01-01 21:11:32 +00002119 unsigned Opc = 0;
Dan Gohmana4714e02009-07-30 01:56:29 +00002120 if (RC == &X86::GR64RegClass || RC == &X86::GR64_NOSPRegClass) {
Owen Andersonf6372aa2008-01-01 21:11:32 +00002121 Opc = X86::MOV64rm;
Dan Gohmana4714e02009-07-30 01:56:29 +00002122 } else if (RC == &X86::GR32RegClass || RC == &X86::GR32_NOSPRegClass) {
Owen Andersonf6372aa2008-01-01 21:11:32 +00002123 Opc = X86::MOV32rm;
2124 } else if (RC == &X86::GR16RegClass) {
2125 Opc = X86::MOV16rm;
2126 } else if (RC == &X86::GR8RegClass) {
Dan Gohman4af325d2009-04-27 16:41:36 +00002127 // Copying to or from a physical H register on x86-64 requires a NOREX
2128 // move. Otherwise use a normal move.
2129 if (isHReg(DestReg) &&
2130 TM.getSubtarget<X86Subtarget>().is64Bit())
2131 Opc = X86::MOV8rm_NOREX;
2132 else
2133 Opc = X86::MOV8rm;
Dan Gohman62417622009-04-27 16:33:14 +00002134 } else if (RC == &X86::GR64_ABCDRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00002135 Opc = X86::MOV64rm;
Dan Gohman62417622009-04-27 16:33:14 +00002136 } else if (RC == &X86::GR32_ABCDRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00002137 Opc = X86::MOV32rm;
Dan Gohman62417622009-04-27 16:33:14 +00002138 } else if (RC == &X86::GR16_ABCDRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00002139 Opc = X86::MOV16rm;
Dan Gohman4af325d2009-04-27 16:41:36 +00002140 } else if (RC == &X86::GR8_ABCD_LRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00002141 Opc = X86::MOV8rm;
Dan Gohman4af325d2009-04-27 16:41:36 +00002142 } else if (RC == &X86::GR8_ABCD_HRegClass) {
2143 if (TM.getSubtarget<X86Subtarget>().is64Bit())
2144 Opc = X86::MOV8rm_NOREX;
2145 else
2146 Opc = X86::MOV8rm;
Dan Gohmana4714e02009-07-30 01:56:29 +00002147 } else if (RC == &X86::GR64_NOREXRegClass ||
2148 RC == &X86::GR64_NOREX_NOSPRegClass) {
Dan Gohman21e3dfb2009-04-13 16:09:41 +00002149 Opc = X86::MOV64rm;
2150 } else if (RC == &X86::GR32_NOREXRegClass) {
2151 Opc = X86::MOV32rm;
2152 } else if (RC == &X86::GR16_NOREXRegClass) {
2153 Opc = X86::MOV16rm;
2154 } else if (RC == &X86::GR8_NOREXRegClass) {
2155 Opc = X86::MOV8rm;
Evan Chengf48ef032010-03-14 03:48:46 +00002156 } else if (RC == &X86::GR64_TCRegClass) {
2157 Opc = X86::MOV64rm_TC;
2158 } else if (RC == &X86::GR32_TCRegClass) {
2159 Opc = X86::MOV32rm_TC;
Owen Andersonf6372aa2008-01-01 21:11:32 +00002160 } else if (RC == &X86::RFP80RegClass) {
2161 Opc = X86::LD_Fp80m;
2162 } else if (RC == &X86::RFP64RegClass) {
2163 Opc = X86::LD_Fp64m;
2164 } else if (RC == &X86::RFP32RegClass) {
2165 Opc = X86::LD_Fp32m;
2166 } else if (RC == &X86::FR32RegClass) {
2167 Opc = X86::MOVSSrm;
2168 } else if (RC == &X86::FR64RegClass) {
2169 Opc = X86::MOVSDrm;
2170 } else if (RC == &X86::VR128RegClass) {
Anton Korobeynikov88bbf692008-07-19 06:30:51 +00002171 // If stack is realigned we can use aligned loads.
2172 Opc = isStackAligned ? X86::MOVAPSrm : X86::MOVUPSrm;
Owen Andersonf6372aa2008-01-01 21:11:32 +00002173 } else if (RC == &X86::VR64RegClass) {
2174 Opc = X86::MMX_MOVQ64rm;
2175 } else {
Torok Edwinc23197a2009-07-14 16:55:14 +00002176 llvm_unreachable("Unknown regclass");
Owen Andersonf6372aa2008-01-01 21:11:32 +00002177 }
2178
2179 return Opc;
2180}
2181
2182void X86InstrInfo::loadRegFromStackSlot(MachineBasicBlock &MBB,
Anton Korobeynikov88bbf692008-07-19 06:30:51 +00002183 MachineBasicBlock::iterator MI,
2184 unsigned DestReg, int FrameIdx,
2185 const TargetRegisterClass *RC) const{
2186 const MachineFunction &MF = *MBB.getParent();
Jim Grosbache45ab8a2010-01-19 18:31:11 +00002187 bool isAligned = (RI.getStackAlignment() >= 16) || RI.canRealignStack(MF);
Dan Gohman4af325d2009-04-27 16:41:36 +00002188 unsigned Opc = getLoadRegOpcode(DestReg, RC, isAligned, TM);
Dale Johannesen6ec25f52010-01-26 00:03:12 +00002189 DebugLoc DL = MBB.findDebugLoc(MI);
Bill Wendlingfbef3102009-02-11 21:51:19 +00002190 addFrameReference(BuildMI(MBB, MI, DL, get(Opc), DestReg), FrameIdx);
Owen Andersonf6372aa2008-01-01 21:11:32 +00002191}
2192
2193void X86InstrInfo::loadRegFromAddr(MachineFunction &MF, unsigned DestReg,
Evan Cheng9f1c8312008-07-03 09:09:37 +00002194 SmallVectorImpl<MachineOperand> &Addr,
2195 const TargetRegisterClass *RC,
Dan Gohman91e69c32009-10-09 18:10:05 +00002196 MachineInstr::mmo_iterator MMOBegin,
2197 MachineInstr::mmo_iterator MMOEnd,
Owen Andersonf6372aa2008-01-01 21:11:32 +00002198 SmallVectorImpl<MachineInstr*> &NewMIs) const {
Evan Cheng600c0432009-11-16 21:56:03 +00002199 bool isAligned = (*MMOBegin)->getAlignment() >= 16;
Dan Gohman4af325d2009-04-27 16:41:36 +00002200 unsigned Opc = getLoadRegOpcode(DestReg, RC, isAligned, TM);
Dale Johannesen21b55412009-02-12 23:08:38 +00002201 DebugLoc DL = DebugLoc::getUnknownLoc();
2202 MachineInstrBuilder MIB = BuildMI(MF, DL, get(Opc), DestReg);
Owen Andersonf6372aa2008-01-01 21:11:32 +00002203 for (unsigned i = 0, e = Addr.size(); i != e; ++i)
Dan Gohman97357612009-02-18 05:45:50 +00002204 MIB.addOperand(Addr[i]);
Dan Gohman91e69c32009-10-09 18:10:05 +00002205 (*MIB).setMemRefs(MMOBegin, MMOEnd);
Owen Andersonf6372aa2008-01-01 21:11:32 +00002206 NewMIs.push_back(MIB);
2207}
2208
Owen Andersond94b6a12008-01-04 23:57:37 +00002209bool X86InstrInfo::spillCalleeSavedRegisters(MachineBasicBlock &MBB,
Bill Wendlingfbef3102009-02-11 21:51:19 +00002210 MachineBasicBlock::iterator MI,
Owen Andersond94b6a12008-01-04 23:57:37 +00002211 const std::vector<CalleeSavedInfo> &CSI) const {
2212 if (CSI.empty())
2213 return false;
2214
Dale Johannesen73e884b2010-01-20 21:36:02 +00002215 DebugLoc DL = MBB.findDebugLoc(MI);
Bill Wendlingfbef3102009-02-11 21:51:19 +00002216
Evan Chenga67f32a2008-09-26 19:14:21 +00002217 bool is64Bit = TM.getSubtarget<X86Subtarget>().is64Bit();
Anton Korobeynikov6f9bb6f2009-08-28 16:06:41 +00002218 bool isWin64 = TM.getSubtarget<X86Subtarget>().isTargetWin64();
Anton Korobeynikovc4e8bec2008-10-04 11:09:36 +00002219 unsigned SlotSize = is64Bit ? 8 : 4;
2220
2221 MachineFunction &MF = *MBB.getParent();
Evan Cheng910139f2009-07-09 06:53:48 +00002222 unsigned FPReg = RI.getFrameRegister(MF);
Anton Korobeynikovc4e8bec2008-10-04 11:09:36 +00002223 X86MachineFunctionInfo *X86FI = MF.getInfo<X86MachineFunctionInfo>();
Eli Friedmanbccf4b32009-06-04 02:32:04 +00002224 unsigned CalleeFrameSize = 0;
Anton Korobeynikovc4e8bec2008-10-04 11:09:36 +00002225
Owen Andersond94b6a12008-01-04 23:57:37 +00002226 unsigned Opc = is64Bit ? X86::PUSH64r : X86::PUSH32r;
2227 for (unsigned i = CSI.size(); i != 0; --i) {
2228 unsigned Reg = CSI[i-1].getReg();
Eli Friedmanbccf4b32009-06-04 02:32:04 +00002229 const TargetRegisterClass *RegClass = CSI[i-1].getRegClass();
Owen Andersond94b6a12008-01-04 23:57:37 +00002230 // Add the callee-saved register as live-in. It's killed at the spill.
2231 MBB.addLiveIn(Reg);
Evan Cheng910139f2009-07-09 06:53:48 +00002232 if (Reg == FPReg)
2233 // X86RegisterInfo::emitPrologue will handle spilling of frame register.
2234 continue;
Anton Korobeynikov6f9bb6f2009-08-28 16:06:41 +00002235 if (RegClass != &X86::VR128RegClass && !isWin64) {
Eli Friedmanbccf4b32009-06-04 02:32:04 +00002236 CalleeFrameSize += SlotSize;
Evan Cheng910139f2009-07-09 06:53:48 +00002237 BuildMI(MBB, MI, DL, get(Opc)).addReg(Reg, RegState::Kill);
Eli Friedmanbccf4b32009-06-04 02:32:04 +00002238 } else {
2239 storeRegToStackSlot(MBB, MI, Reg, true, CSI[i-1].getFrameIdx(), RegClass);
2240 }
Owen Andersond94b6a12008-01-04 23:57:37 +00002241 }
Eli Friedmanbccf4b32009-06-04 02:32:04 +00002242
2243 X86FI->setCalleeSavedFrameSize(CalleeFrameSize);
Owen Andersond94b6a12008-01-04 23:57:37 +00002244 return true;
2245}
2246
2247bool X86InstrInfo::restoreCalleeSavedRegisters(MachineBasicBlock &MBB,
Bill Wendlingfbef3102009-02-11 21:51:19 +00002248 MachineBasicBlock::iterator MI,
Owen Andersond94b6a12008-01-04 23:57:37 +00002249 const std::vector<CalleeSavedInfo> &CSI) const {
2250 if (CSI.empty())
2251 return false;
Bill Wendlingfbef3102009-02-11 21:51:19 +00002252
Dale Johannesen73e884b2010-01-20 21:36:02 +00002253 DebugLoc DL = MBB.findDebugLoc(MI);
Bill Wendlingfbef3102009-02-11 21:51:19 +00002254
Evan Cheng910139f2009-07-09 06:53:48 +00002255 MachineFunction &MF = *MBB.getParent();
2256 unsigned FPReg = RI.getFrameRegister(MF);
Owen Andersond94b6a12008-01-04 23:57:37 +00002257 bool is64Bit = TM.getSubtarget<X86Subtarget>().is64Bit();
Anton Korobeynikov6f9bb6f2009-08-28 16:06:41 +00002258 bool isWin64 = TM.getSubtarget<X86Subtarget>().isTargetWin64();
Owen Andersond94b6a12008-01-04 23:57:37 +00002259 unsigned Opc = is64Bit ? X86::POP64r : X86::POP32r;
2260 for (unsigned i = 0, e = CSI.size(); i != e; ++i) {
2261 unsigned Reg = CSI[i].getReg();
Evan Cheng910139f2009-07-09 06:53:48 +00002262 if (Reg == FPReg)
2263 // X86RegisterInfo::emitEpilogue will handle restoring of frame register.
2264 continue;
Eli Friedmanbccf4b32009-06-04 02:32:04 +00002265 const TargetRegisterClass *RegClass = CSI[i].getRegClass();
Anton Korobeynikov6f9bb6f2009-08-28 16:06:41 +00002266 if (RegClass != &X86::VR128RegClass && !isWin64) {
Eli Friedmanbccf4b32009-06-04 02:32:04 +00002267 BuildMI(MBB, MI, DL, get(Opc), Reg);
2268 } else {
2269 loadRegFromStackSlot(MBB, MI, Reg, CSI[i].getFrameIdx(), RegClass);
2270 }
Owen Andersond94b6a12008-01-04 23:57:37 +00002271 }
2272 return true;
2273}
2274
Dan Gohman8e5f2c62008-07-07 23:14:23 +00002275static MachineInstr *FuseTwoAddrInst(MachineFunction &MF, unsigned Opcode,
Dan Gohmand68a0762009-01-05 17:59:02 +00002276 const SmallVectorImpl<MachineOperand> &MOs,
Bill Wendling9bc96a52009-02-03 00:55:04 +00002277 MachineInstr *MI,
2278 const TargetInstrInfo &TII) {
Owen Anderson43dbe052008-01-07 01:35:02 +00002279 // Create the base instruction with the memory operand as the first part.
Bill Wendling9bc96a52009-02-03 00:55:04 +00002280 MachineInstr *NewMI = MF.CreateMachineInstr(TII.get(Opcode),
2281 MI->getDebugLoc(), true);
Owen Anderson43dbe052008-01-07 01:35:02 +00002282 MachineInstrBuilder MIB(NewMI);
2283 unsigned NumAddrOps = MOs.size();
2284 for (unsigned i = 0; i != NumAddrOps; ++i)
Dan Gohman97357612009-02-18 05:45:50 +00002285 MIB.addOperand(MOs[i]);
Owen Anderson43dbe052008-01-07 01:35:02 +00002286 if (NumAddrOps < 4) // FrameIndex only
Rafael Espindola094fad32009-04-08 21:14:34 +00002287 addOffset(MIB, 0);
Owen Anderson43dbe052008-01-07 01:35:02 +00002288
2289 // Loop over the rest of the ri operands, converting them over.
Chris Lattner749c6f62008-01-07 07:27:27 +00002290 unsigned NumOps = MI->getDesc().getNumOperands()-2;
Owen Anderson43dbe052008-01-07 01:35:02 +00002291 for (unsigned i = 0; i != NumOps; ++i) {
2292 MachineOperand &MO = MI->getOperand(i+2);
Dan Gohman97357612009-02-18 05:45:50 +00002293 MIB.addOperand(MO);
Owen Anderson43dbe052008-01-07 01:35:02 +00002294 }
2295 for (unsigned i = NumOps+2, e = MI->getNumOperands(); i != e; ++i) {
2296 MachineOperand &MO = MI->getOperand(i);
Dan Gohman97357612009-02-18 05:45:50 +00002297 MIB.addOperand(MO);
Owen Anderson43dbe052008-01-07 01:35:02 +00002298 }
2299 return MIB;
2300}
2301
Dan Gohman8e5f2c62008-07-07 23:14:23 +00002302static MachineInstr *FuseInst(MachineFunction &MF,
2303 unsigned Opcode, unsigned OpNo,
Dan Gohmand68a0762009-01-05 17:59:02 +00002304 const SmallVectorImpl<MachineOperand> &MOs,
Owen Anderson43dbe052008-01-07 01:35:02 +00002305 MachineInstr *MI, const TargetInstrInfo &TII) {
Bill Wendling9bc96a52009-02-03 00:55:04 +00002306 MachineInstr *NewMI = MF.CreateMachineInstr(TII.get(Opcode),
2307 MI->getDebugLoc(), true);
Owen Anderson43dbe052008-01-07 01:35:02 +00002308 MachineInstrBuilder MIB(NewMI);
2309
2310 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) {
2311 MachineOperand &MO = MI->getOperand(i);
2312 if (i == OpNo) {
Dan Gohmand735b802008-10-03 15:45:36 +00002313 assert(MO.isReg() && "Expected to fold into reg operand!");
Owen Anderson43dbe052008-01-07 01:35:02 +00002314 unsigned NumAddrOps = MOs.size();
2315 for (unsigned i = 0; i != NumAddrOps; ++i)
Dan Gohman97357612009-02-18 05:45:50 +00002316 MIB.addOperand(MOs[i]);
Owen Anderson43dbe052008-01-07 01:35:02 +00002317 if (NumAddrOps < 4) // FrameIndex only
Rafael Espindola094fad32009-04-08 21:14:34 +00002318 addOffset(MIB, 0);
Owen Anderson43dbe052008-01-07 01:35:02 +00002319 } else {
Dan Gohman97357612009-02-18 05:45:50 +00002320 MIB.addOperand(MO);
Owen Anderson43dbe052008-01-07 01:35:02 +00002321 }
2322 }
2323 return MIB;
2324}
2325
2326static MachineInstr *MakeM0Inst(const TargetInstrInfo &TII, unsigned Opcode,
Dan Gohmand68a0762009-01-05 17:59:02 +00002327 const SmallVectorImpl<MachineOperand> &MOs,
Owen Anderson43dbe052008-01-07 01:35:02 +00002328 MachineInstr *MI) {
Dan Gohman8e5f2c62008-07-07 23:14:23 +00002329 MachineFunction &MF = *MI->getParent()->getParent();
Bill Wendlingfbef3102009-02-11 21:51:19 +00002330 MachineInstrBuilder MIB = BuildMI(MF, MI->getDebugLoc(), TII.get(Opcode));
Owen Anderson43dbe052008-01-07 01:35:02 +00002331
2332 unsigned NumAddrOps = MOs.size();
2333 for (unsigned i = 0; i != NumAddrOps; ++i)
Dan Gohman97357612009-02-18 05:45:50 +00002334 MIB.addOperand(MOs[i]);
Owen Anderson43dbe052008-01-07 01:35:02 +00002335 if (NumAddrOps < 4) // FrameIndex only
Rafael Espindola094fad32009-04-08 21:14:34 +00002336 addOffset(MIB, 0);
Owen Anderson43dbe052008-01-07 01:35:02 +00002337 return MIB.addImm(0);
2338}
2339
2340MachineInstr*
Dan Gohmanc54baa22008-12-03 18:43:12 +00002341X86InstrInfo::foldMemoryOperandImpl(MachineFunction &MF,
2342 MachineInstr *MI, unsigned i,
Evan Chengf9b36f02009-07-15 06:10:07 +00002343 const SmallVectorImpl<MachineOperand> &MOs,
Evan Cheng9cef48e2009-09-11 00:39:26 +00002344 unsigned Size, unsigned Align) const {
Evan Chengf9b36f02009-07-15 06:10:07 +00002345 const DenseMap<unsigned*, std::pair<unsigned,unsigned> > *OpcodeTablePtr=NULL;
Owen Anderson43dbe052008-01-07 01:35:02 +00002346 bool isTwoAddrFold = false;
Chris Lattner749c6f62008-01-07 07:27:27 +00002347 unsigned NumOps = MI->getDesc().getNumOperands();
Owen Anderson43dbe052008-01-07 01:35:02 +00002348 bool isTwoAddr = NumOps > 1 &&
Chris Lattner749c6f62008-01-07 07:27:27 +00002349 MI->getDesc().getOperandConstraint(1, TOI::TIED_TO) != -1;
Owen Anderson43dbe052008-01-07 01:35:02 +00002350
2351 MachineInstr *NewMI = NULL;
2352 // Folding a memory location into the two-address part of a two-address
2353 // instruction is different than folding it other places. It requires
2354 // replacing the *two* registers with the memory location.
2355 if (isTwoAddr && NumOps >= 2 && i < 2 &&
Dan Gohmand735b802008-10-03 15:45:36 +00002356 MI->getOperand(0).isReg() &&
2357 MI->getOperand(1).isReg() &&
Owen Anderson43dbe052008-01-07 01:35:02 +00002358 MI->getOperand(0).getReg() == MI->getOperand(1).getReg()) {
2359 OpcodeTablePtr = &RegOp2MemOpTable2Addr;
2360 isTwoAddrFold = true;
2361 } else if (i == 0) { // If operand 0
Dan Gohmanf1b4d262010-01-12 04:42:54 +00002362 if (MI->getOpcode() == X86::MOV64r0)
2363 NewMI = MakeM0Inst(*this, X86::MOV64mi32, MOs, MI);
2364 else if (MI->getOpcode() == X86::MOV32r0)
Owen Anderson43dbe052008-01-07 01:35:02 +00002365 NewMI = MakeM0Inst(*this, X86::MOV32mi, MOs, MI);
Dan Gohmanf1b4d262010-01-12 04:42:54 +00002366 else if (MI->getOpcode() == X86::MOV16r0)
2367 NewMI = MakeM0Inst(*this, X86::MOV16mi, MOs, MI);
Owen Anderson43dbe052008-01-07 01:35:02 +00002368 else if (MI->getOpcode() == X86::MOV8r0)
2369 NewMI = MakeM0Inst(*this, X86::MOV8mi, MOs, MI);
Evan Cheng9f1c8312008-07-03 09:09:37 +00002370 if (NewMI)
Owen Anderson43dbe052008-01-07 01:35:02 +00002371 return NewMI;
Owen Anderson43dbe052008-01-07 01:35:02 +00002372
2373 OpcodeTablePtr = &RegOp2MemOpTable0;
2374 } else if (i == 1) {
2375 OpcodeTablePtr = &RegOp2MemOpTable1;
2376 } else if (i == 2) {
2377 OpcodeTablePtr = &RegOp2MemOpTable2;
2378 }
2379
2380 // If table selected...
2381 if (OpcodeTablePtr) {
2382 // Find the Opcode to fuse
Jeffrey Yasskin81cf4322009-11-10 01:02:17 +00002383 DenseMap<unsigned*, std::pair<unsigned,unsigned> >::const_iterator I =
Owen Anderson43dbe052008-01-07 01:35:02 +00002384 OpcodeTablePtr->find((unsigned*)MI->getOpcode());
2385 if (I != OpcodeTablePtr->end()) {
Evan Cheng9cef48e2009-09-11 00:39:26 +00002386 unsigned Opcode = I->second.first;
Evan Chengf9b36f02009-07-15 06:10:07 +00002387 unsigned MinAlign = I->second.second;
2388 if (Align < MinAlign)
2389 return NULL;
Evan Cheng879caea2009-09-11 01:01:31 +00002390 bool NarrowToMOV32rm = false;
Evan Cheng9cef48e2009-09-11 00:39:26 +00002391 if (Size) {
2392 unsigned RCSize = MI->getDesc().OpInfo[i].getRegClass(&RI)->getSize();
2393 if (Size < RCSize) {
2394 // Check if it's safe to fold the load. If the size of the object is
2395 // narrower than the load width, then it's not.
2396 if (Opcode != X86::MOV64rm || RCSize != 8 || Size != 4)
2397 return NULL;
2398 // If this is a 64-bit load, but the spill slot is 32, then we can do
2399 // a 32-bit load which is implicitly zero-extended. This likely is due
2400 // to liveintervalanalysis remat'ing a load from stack slot.
Evan Cheng879caea2009-09-11 01:01:31 +00002401 if (MI->getOperand(0).getSubReg() || MI->getOperand(1).getSubReg())
2402 return NULL;
Evan Cheng9cef48e2009-09-11 00:39:26 +00002403 Opcode = X86::MOV32rm;
Evan Cheng879caea2009-09-11 01:01:31 +00002404 NarrowToMOV32rm = true;
Evan Cheng9cef48e2009-09-11 00:39:26 +00002405 }
2406 }
2407
Owen Anderson43dbe052008-01-07 01:35:02 +00002408 if (isTwoAddrFold)
Evan Cheng9cef48e2009-09-11 00:39:26 +00002409 NewMI = FuseTwoAddrInst(MF, Opcode, MOs, MI, *this);
Owen Anderson43dbe052008-01-07 01:35:02 +00002410 else
Evan Cheng9cef48e2009-09-11 00:39:26 +00002411 NewMI = FuseInst(MF, Opcode, i, MOs, MI, *this);
Evan Cheng879caea2009-09-11 01:01:31 +00002412
2413 if (NarrowToMOV32rm) {
2414 // If this is the special case where we use a MOV32rm to load a 32-bit
2415 // value and zero-extend the top bits. Change the destination register
2416 // to a 32-bit one.
2417 unsigned DstReg = NewMI->getOperand(0).getReg();
2418 if (TargetRegisterInfo::isPhysicalRegister(DstReg))
2419 NewMI->getOperand(0).setReg(RI.getSubReg(DstReg,
2420 4/*x86_subreg_32bit*/));
2421 else
2422 NewMI->getOperand(0).setSubReg(4/*x86_subreg_32bit*/);
2423 }
Owen Anderson43dbe052008-01-07 01:35:02 +00002424 return NewMI;
2425 }
2426 }
2427
2428 // No fusion
2429 if (PrintFailedFusing)
David Greene5b901322010-01-05 01:29:29 +00002430 dbgs() << "We failed to fuse operand " << i << " in " << *MI;
Owen Anderson43dbe052008-01-07 01:35:02 +00002431 return NULL;
2432}
2433
2434
Dan Gohmanc54baa22008-12-03 18:43:12 +00002435MachineInstr* X86InstrInfo::foldMemoryOperandImpl(MachineFunction &MF,
2436 MachineInstr *MI,
Evan Chengf9b36f02009-07-15 06:10:07 +00002437 const SmallVectorImpl<unsigned> &Ops,
Dan Gohmanc54baa22008-12-03 18:43:12 +00002438 int FrameIndex) const {
Owen Anderson43dbe052008-01-07 01:35:02 +00002439 // Check switch flag
2440 if (NoFusing) return NULL;
2441
Evan Chengb1f49812009-12-22 17:47:23 +00002442 if (!MF.getFunction()->hasFnAttr(Attribute::OptimizeForSize))
Evan Cheng400073d2009-12-18 07:40:29 +00002443 switch (MI->getOpcode()) {
2444 case X86::CVTSD2SSrr:
2445 case X86::Int_CVTSD2SSrr:
2446 case X86::CVTSS2SDrr:
2447 case X86::Int_CVTSS2SDrr:
2448 case X86::RCPSSr:
2449 case X86::RCPSSr_Int:
2450 case X86::ROUNDSDr_Int:
2451 case X86::ROUNDSSr_Int:
2452 case X86::RSQRTSSr:
2453 case X86::RSQRTSSr_Int:
2454 case X86::SQRTSSr:
2455 case X86::SQRTSSr_Int:
2456 return 0;
2457 }
2458
Evan Cheng5fd79d02008-02-08 21:20:40 +00002459 const MachineFrameInfo *MFI = MF.getFrameInfo();
Evan Cheng9cef48e2009-09-11 00:39:26 +00002460 unsigned Size = MFI->getObjectSize(FrameIndex);
Evan Cheng5fd79d02008-02-08 21:20:40 +00002461 unsigned Alignment = MFI->getObjectAlignment(FrameIndex);
Owen Anderson43dbe052008-01-07 01:35:02 +00002462 if (Ops.size() == 2 && Ops[0] == 0 && Ops[1] == 1) {
2463 unsigned NewOpc = 0;
Evan Cheng9cef48e2009-09-11 00:39:26 +00002464 unsigned RCSize = 0;
Owen Anderson43dbe052008-01-07 01:35:02 +00002465 switch (MI->getOpcode()) {
2466 default: return NULL;
Evan Cheng9cef48e2009-09-11 00:39:26 +00002467 case X86::TEST8rr: NewOpc = X86::CMP8ri; RCSize = 1; break;
2468 case X86::TEST16rr: NewOpc = X86::CMP16ri; RCSize = 2; break;
2469 case X86::TEST32rr: NewOpc = X86::CMP32ri; RCSize = 4; break;
2470 case X86::TEST64rr: NewOpc = X86::CMP64ri32; RCSize = 8; break;
Owen Anderson43dbe052008-01-07 01:35:02 +00002471 }
Evan Cheng9cef48e2009-09-11 00:39:26 +00002472 // Check if it's safe to fold the load. If the size of the object is
2473 // narrower than the load width, then it's not.
2474 if (Size < RCSize)
2475 return NULL;
Owen Anderson43dbe052008-01-07 01:35:02 +00002476 // Change to CMPXXri r, 0 first.
Chris Lattner5080f4d2008-01-11 18:10:50 +00002477 MI->setDesc(get(NewOpc));
Owen Anderson43dbe052008-01-07 01:35:02 +00002478 MI->getOperand(1).ChangeToImmediate(0);
2479 } else if (Ops.size() != 1)
2480 return NULL;
2481
2482 SmallVector<MachineOperand,4> MOs;
2483 MOs.push_back(MachineOperand::CreateFI(FrameIndex));
Evan Cheng9cef48e2009-09-11 00:39:26 +00002484 return foldMemoryOperandImpl(MF, MI, Ops[0], MOs, Size, Alignment);
Owen Anderson43dbe052008-01-07 01:35:02 +00002485}
2486
Dan Gohmanc54baa22008-12-03 18:43:12 +00002487MachineInstr* X86InstrInfo::foldMemoryOperandImpl(MachineFunction &MF,
2488 MachineInstr *MI,
Evan Chengf9b36f02009-07-15 06:10:07 +00002489 const SmallVectorImpl<unsigned> &Ops,
Dan Gohmanc54baa22008-12-03 18:43:12 +00002490 MachineInstr *LoadMI) const {
Owen Anderson43dbe052008-01-07 01:35:02 +00002491 // Check switch flag
2492 if (NoFusing) return NULL;
2493
Evan Chengb1f49812009-12-22 17:47:23 +00002494 if (!MF.getFunction()->hasFnAttr(Attribute::OptimizeForSize))
Evan Cheng400073d2009-12-18 07:40:29 +00002495 switch (MI->getOpcode()) {
2496 case X86::CVTSD2SSrr:
2497 case X86::Int_CVTSD2SSrr:
2498 case X86::CVTSS2SDrr:
2499 case X86::Int_CVTSS2SDrr:
2500 case X86::RCPSSr:
2501 case X86::RCPSSr_Int:
2502 case X86::ROUNDSDr_Int:
2503 case X86::ROUNDSSr_Int:
2504 case X86::RSQRTSSr:
2505 case X86::RSQRTSSr_Int:
2506 case X86::SQRTSSr:
2507 case X86::SQRTSSr_Int:
2508 return 0;
2509 }
2510
Dan Gohmancddc11e2008-07-12 00:10:52 +00002511 // Determine the alignment of the load.
Evan Cheng5fd79d02008-02-08 21:20:40 +00002512 unsigned Alignment = 0;
Dan Gohmancddc11e2008-07-12 00:10:52 +00002513 if (LoadMI->hasOneMemOperand())
Dan Gohmanc76909a2009-09-25 20:36:54 +00002514 Alignment = (*LoadMI->memoperands_begin())->getAlignment();
Dan Gohman4a0b3e12009-09-21 18:30:38 +00002515 else
2516 switch (LoadMI->getOpcode()) {
2517 case X86::V_SET0:
2518 case X86::V_SETALLONES:
2519 Alignment = 16;
2520 break;
2521 case X86::FsFLD0SD:
2522 Alignment = 8;
2523 break;
2524 case X86::FsFLD0SS:
2525 Alignment = 4;
2526 break;
2527 default:
2528 llvm_unreachable("Don't know how to fold this instruction!");
2529 }
Owen Anderson43dbe052008-01-07 01:35:02 +00002530 if (Ops.size() == 2 && Ops[0] == 0 && Ops[1] == 1) {
2531 unsigned NewOpc = 0;
2532 switch (MI->getOpcode()) {
2533 default: return NULL;
2534 case X86::TEST8rr: NewOpc = X86::CMP8ri; break;
2535 case X86::TEST16rr: NewOpc = X86::CMP16ri; break;
2536 case X86::TEST32rr: NewOpc = X86::CMP32ri; break;
2537 case X86::TEST64rr: NewOpc = X86::CMP64ri32; break;
2538 }
2539 // Change to CMPXXri r, 0 first.
Chris Lattner5080f4d2008-01-11 18:10:50 +00002540 MI->setDesc(get(NewOpc));
Owen Anderson43dbe052008-01-07 01:35:02 +00002541 MI->getOperand(1).ChangeToImmediate(0);
2542 } else if (Ops.size() != 1)
2543 return NULL;
2544
Rafael Espindola094fad32009-04-08 21:14:34 +00002545 SmallVector<MachineOperand,X86AddrNumOperands> MOs;
Dan Gohman4a0b3e12009-09-21 18:30:38 +00002546 switch (LoadMI->getOpcode()) {
2547 case X86::V_SET0:
2548 case X86::V_SETALLONES:
2549 case X86::FsFLD0SD:
2550 case X86::FsFLD0SS: {
Dan Gohman62c939d2008-12-03 05:21:24 +00002551 // Folding a V_SET0 or V_SETALLONES as a load, to ease register pressure.
2552 // Create a constant-pool entry and operands to load from it.
2553
Dan Gohman81d0c362010-03-09 03:01:40 +00002554 // Medium and large mode can't fold loads this way.
2555 if (TM.getCodeModel() != CodeModel::Small &&
2556 TM.getCodeModel() != CodeModel::Kernel)
2557 return NULL;
2558
Dan Gohman62c939d2008-12-03 05:21:24 +00002559 // x86-32 PIC requires a PIC base register for constant pools.
2560 unsigned PICBase = 0;
Jakob Stoklund Olesen93e55de2009-07-16 21:24:13 +00002561 if (TM.getRelocationModel() == Reloc::PIC_) {
Evan Cheng2b48ab92009-07-16 18:44:05 +00002562 if (TM.getSubtarget<X86Subtarget>().is64Bit())
2563 PICBase = X86::RIP;
Jakob Stoklund Olesen93e55de2009-07-16 21:24:13 +00002564 else
Evan Cheng2b48ab92009-07-16 18:44:05 +00002565 // FIXME: PICBase = TM.getInstrInfo()->getGlobalBaseReg(&MF);
2566 // This doesn't work for several reasons.
2567 // 1. GlobalBaseReg may have been spilled.
2568 // 2. It may not be live at MI.
Dan Gohman4a0b3e12009-09-21 18:30:38 +00002569 return NULL;
Jakob Stoklund Olesen93e55de2009-07-16 21:24:13 +00002570 }
Dan Gohman62c939d2008-12-03 05:21:24 +00002571
Dan Gohman4a0b3e12009-09-21 18:30:38 +00002572 // Create a constant-pool entry.
Dan Gohman62c939d2008-12-03 05:21:24 +00002573 MachineConstantPool &MCP = *MF.getConstantPool();
Dan Gohman4a0b3e12009-09-21 18:30:38 +00002574 const Type *Ty;
2575 if (LoadMI->getOpcode() == X86::FsFLD0SS)
2576 Ty = Type::getFloatTy(MF.getFunction()->getContext());
2577 else if (LoadMI->getOpcode() == X86::FsFLD0SD)
2578 Ty = Type::getDoubleTy(MF.getFunction()->getContext());
2579 else
2580 Ty = VectorType::get(Type::getInt32Ty(MF.getFunction()->getContext()), 4);
2581 Constant *C = LoadMI->getOpcode() == X86::V_SETALLONES ?
2582 Constant::getAllOnesValue(Ty) :
2583 Constant::getNullValue(Ty);
2584 unsigned CPI = MCP.getConstantPoolIndex(C, Alignment);
Dan Gohman62c939d2008-12-03 05:21:24 +00002585
2586 // Create operands to load from the constant pool entry.
2587 MOs.push_back(MachineOperand::CreateReg(PICBase, false));
2588 MOs.push_back(MachineOperand::CreateImm(1));
2589 MOs.push_back(MachineOperand::CreateReg(0, false));
2590 MOs.push_back(MachineOperand::CreateCPI(CPI, 0));
Rafael Espindola094fad32009-04-08 21:14:34 +00002591 MOs.push_back(MachineOperand::CreateReg(0, false));
Dan Gohman4a0b3e12009-09-21 18:30:38 +00002592 break;
2593 }
2594 default: {
Dan Gohman62c939d2008-12-03 05:21:24 +00002595 // Folding a normal load. Just copy the load's address operands.
2596 unsigned NumOps = LoadMI->getDesc().getNumOperands();
Rafael Espindola705d8002009-03-27 15:57:50 +00002597 for (unsigned i = NumOps - X86AddrNumOperands; i != NumOps; ++i)
Dan Gohman62c939d2008-12-03 05:21:24 +00002598 MOs.push_back(LoadMI->getOperand(i));
Dan Gohman4a0b3e12009-09-21 18:30:38 +00002599 break;
2600 }
Dan Gohman62c939d2008-12-03 05:21:24 +00002601 }
Evan Cheng9cef48e2009-09-11 00:39:26 +00002602 return foldMemoryOperandImpl(MF, MI, Ops[0], MOs, 0, Alignment);
Owen Anderson43dbe052008-01-07 01:35:02 +00002603}
2604
2605
Dan Gohman8e8b8a22008-10-16 01:49:15 +00002606bool X86InstrInfo::canFoldMemoryOperand(const MachineInstr *MI,
2607 const SmallVectorImpl<unsigned> &Ops) const {
Owen Anderson43dbe052008-01-07 01:35:02 +00002608 // Check switch flag
2609 if (NoFusing) return 0;
2610
2611 if (Ops.size() == 2 && Ops[0] == 0 && Ops[1] == 1) {
2612 switch (MI->getOpcode()) {
2613 default: return false;
2614 case X86::TEST8rr:
2615 case X86::TEST16rr:
2616 case X86::TEST32rr:
2617 case X86::TEST64rr:
2618 return true;
2619 }
2620 }
2621
2622 if (Ops.size() != 1)
2623 return false;
2624
2625 unsigned OpNum = Ops[0];
2626 unsigned Opc = MI->getOpcode();
Chris Lattner749c6f62008-01-07 07:27:27 +00002627 unsigned NumOps = MI->getDesc().getNumOperands();
Owen Anderson43dbe052008-01-07 01:35:02 +00002628 bool isTwoAddr = NumOps > 1 &&
Chris Lattner749c6f62008-01-07 07:27:27 +00002629 MI->getDesc().getOperandConstraint(1, TOI::TIED_TO) != -1;
Owen Anderson43dbe052008-01-07 01:35:02 +00002630
2631 // Folding a memory location into the two-address part of a two-address
2632 // instruction is different than folding it other places. It requires
2633 // replacing the *two* registers with the memory location.
Evan Chengf9b36f02009-07-15 06:10:07 +00002634 const DenseMap<unsigned*, std::pair<unsigned,unsigned> > *OpcodeTablePtr=NULL;
Owen Anderson43dbe052008-01-07 01:35:02 +00002635 if (isTwoAddr && NumOps >= 2 && OpNum < 2) {
2636 OpcodeTablePtr = &RegOp2MemOpTable2Addr;
2637 } else if (OpNum == 0) { // If operand 0
2638 switch (Opc) {
Chris Lattner9ac75422009-07-14 20:19:57 +00002639 case X86::MOV8r0:
Dan Gohmanf1b4d262010-01-12 04:42:54 +00002640 case X86::MOV16r0:
Owen Anderson43dbe052008-01-07 01:35:02 +00002641 case X86::MOV32r0:
Dan Gohmanf1b4d262010-01-12 04:42:54 +00002642 case X86::MOV64r0:
Owen Anderson43dbe052008-01-07 01:35:02 +00002643 return true;
2644 default: break;
2645 }
2646 OpcodeTablePtr = &RegOp2MemOpTable0;
2647 } else if (OpNum == 1) {
2648 OpcodeTablePtr = &RegOp2MemOpTable1;
2649 } else if (OpNum == 2) {
2650 OpcodeTablePtr = &RegOp2MemOpTable2;
2651 }
2652
2653 if (OpcodeTablePtr) {
2654 // Find the Opcode to fuse
Jeffrey Yasskin81cf4322009-11-10 01:02:17 +00002655 DenseMap<unsigned*, std::pair<unsigned,unsigned> >::const_iterator I =
Owen Anderson43dbe052008-01-07 01:35:02 +00002656 OpcodeTablePtr->find((unsigned*)Opc);
2657 if (I != OpcodeTablePtr->end())
2658 return true;
2659 }
2660 return false;
2661}
2662
2663bool X86InstrInfo::unfoldMemoryOperand(MachineFunction &MF, MachineInstr *MI,
2664 unsigned Reg, bool UnfoldLoad, bool UnfoldStore,
Bill Wendlingfbef3102009-02-11 21:51:19 +00002665 SmallVectorImpl<MachineInstr*> &NewMIs) const {
Jeffrey Yasskin81cf4322009-11-10 01:02:17 +00002666 DenseMap<unsigned*, std::pair<unsigned,unsigned> >::const_iterator I =
Owen Anderson43dbe052008-01-07 01:35:02 +00002667 MemOp2RegOpTable.find((unsigned*)MI->getOpcode());
2668 if (I == MemOp2RegOpTable.end())
2669 return false;
2670 unsigned Opc = I->second.first;
2671 unsigned Index = I->second.second & 0xf;
2672 bool FoldedLoad = I->second.second & (1 << 4);
2673 bool FoldedStore = I->second.second & (1 << 5);
2674 if (UnfoldLoad && !FoldedLoad)
2675 return false;
2676 UnfoldLoad &= FoldedLoad;
2677 if (UnfoldStore && !FoldedStore)
2678 return false;
2679 UnfoldStore &= FoldedStore;
2680
Chris Lattner749c6f62008-01-07 07:27:27 +00002681 const TargetInstrDesc &TID = get(Opc);
Owen Anderson43dbe052008-01-07 01:35:02 +00002682 const TargetOperandInfo &TOI = TID.OpInfo[Index];
Chris Lattnercb778a82009-07-29 21:10:12 +00002683 const TargetRegisterClass *RC = TOI.getRegClass(&RI);
Rafael Espindola705d8002009-03-27 15:57:50 +00002684 SmallVector<MachineOperand, X86AddrNumOperands> AddrOps;
Owen Anderson43dbe052008-01-07 01:35:02 +00002685 SmallVector<MachineOperand,2> BeforeOps;
2686 SmallVector<MachineOperand,2> AfterOps;
2687 SmallVector<MachineOperand,4> ImpOps;
2688 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) {
2689 MachineOperand &Op = MI->getOperand(i);
Rafael Espindola705d8002009-03-27 15:57:50 +00002690 if (i >= Index && i < Index + X86AddrNumOperands)
Owen Anderson43dbe052008-01-07 01:35:02 +00002691 AddrOps.push_back(Op);
Dan Gohmand735b802008-10-03 15:45:36 +00002692 else if (Op.isReg() && Op.isImplicit())
Owen Anderson43dbe052008-01-07 01:35:02 +00002693 ImpOps.push_back(Op);
2694 else if (i < Index)
2695 BeforeOps.push_back(Op);
2696 else if (i > Index)
2697 AfterOps.push_back(Op);
2698 }
2699
2700 // Emit the load instruction.
2701 if (UnfoldLoad) {
Dan Gohman91e69c32009-10-09 18:10:05 +00002702 std::pair<MachineInstr::mmo_iterator,
2703 MachineInstr::mmo_iterator> MMOs =
2704 MF.extractLoadMemRefs(MI->memoperands_begin(),
2705 MI->memoperands_end());
2706 loadRegFromAddr(MF, Reg, AddrOps, RC, MMOs.first, MMOs.second, NewMIs);
Owen Anderson43dbe052008-01-07 01:35:02 +00002707 if (UnfoldStore) {
2708 // Address operands cannot be marked isKill.
Rafael Espindola705d8002009-03-27 15:57:50 +00002709 for (unsigned i = 1; i != 1 + X86AddrNumOperands; ++i) {
Owen Anderson43dbe052008-01-07 01:35:02 +00002710 MachineOperand &MO = NewMIs[0]->getOperand(i);
Dan Gohmand735b802008-10-03 15:45:36 +00002711 if (MO.isReg())
Owen Anderson43dbe052008-01-07 01:35:02 +00002712 MO.setIsKill(false);
2713 }
2714 }
2715 }
2716
2717 // Emit the data processing instruction.
Bill Wendling9bc96a52009-02-03 00:55:04 +00002718 MachineInstr *DataMI = MF.CreateMachineInstr(TID, MI->getDebugLoc(), true);
Owen Anderson43dbe052008-01-07 01:35:02 +00002719 MachineInstrBuilder MIB(DataMI);
2720
2721 if (FoldedStore)
Bill Wendling587daed2009-05-13 21:33:08 +00002722 MIB.addReg(Reg, RegState::Define);
Owen Anderson43dbe052008-01-07 01:35:02 +00002723 for (unsigned i = 0, e = BeforeOps.size(); i != e; ++i)
Dan Gohman97357612009-02-18 05:45:50 +00002724 MIB.addOperand(BeforeOps[i]);
Owen Anderson43dbe052008-01-07 01:35:02 +00002725 if (FoldedLoad)
2726 MIB.addReg(Reg);
2727 for (unsigned i = 0, e = AfterOps.size(); i != e; ++i)
Dan Gohman97357612009-02-18 05:45:50 +00002728 MIB.addOperand(AfterOps[i]);
Owen Anderson43dbe052008-01-07 01:35:02 +00002729 for (unsigned i = 0, e = ImpOps.size(); i != e; ++i) {
2730 MachineOperand &MO = ImpOps[i];
Bill Wendling587daed2009-05-13 21:33:08 +00002731 MIB.addReg(MO.getReg(),
2732 getDefRegState(MO.isDef()) |
2733 RegState::Implicit |
2734 getKillRegState(MO.isKill()) |
Evan Cheng4784f1f2009-06-30 08:49:04 +00002735 getDeadRegState(MO.isDead()) |
2736 getUndefRegState(MO.isUndef()));
Owen Anderson43dbe052008-01-07 01:35:02 +00002737 }
2738 // Change CMP32ri r, 0 back to TEST32rr r, r, etc.
2739 unsigned NewOpc = 0;
2740 switch (DataMI->getOpcode()) {
2741 default: break;
2742 case X86::CMP64ri32:
2743 case X86::CMP32ri:
2744 case X86::CMP16ri:
2745 case X86::CMP8ri: {
2746 MachineOperand &MO0 = DataMI->getOperand(0);
2747 MachineOperand &MO1 = DataMI->getOperand(1);
2748 if (MO1.getImm() == 0) {
2749 switch (DataMI->getOpcode()) {
2750 default: break;
2751 case X86::CMP64ri32: NewOpc = X86::TEST64rr; break;
2752 case X86::CMP32ri: NewOpc = X86::TEST32rr; break;
2753 case X86::CMP16ri: NewOpc = X86::TEST16rr; break;
2754 case X86::CMP8ri: NewOpc = X86::TEST8rr; break;
2755 }
Chris Lattner5080f4d2008-01-11 18:10:50 +00002756 DataMI->setDesc(get(NewOpc));
Owen Anderson43dbe052008-01-07 01:35:02 +00002757 MO1.ChangeToRegister(MO0.getReg(), false);
2758 }
2759 }
2760 }
2761 NewMIs.push_back(DataMI);
2762
2763 // Emit the store instruction.
2764 if (UnfoldStore) {
Chris Lattnercb778a82009-07-29 21:10:12 +00002765 const TargetRegisterClass *DstRC = TID.OpInfo[0].getRegClass(&RI);
Dan Gohman91e69c32009-10-09 18:10:05 +00002766 std::pair<MachineInstr::mmo_iterator,
2767 MachineInstr::mmo_iterator> MMOs =
2768 MF.extractStoreMemRefs(MI->memoperands_begin(),
2769 MI->memoperands_end());
2770 storeRegToAddr(MF, Reg, true, AddrOps, DstRC, MMOs.first, MMOs.second, NewMIs);
Owen Anderson43dbe052008-01-07 01:35:02 +00002771 }
2772
2773 return true;
2774}
2775
2776bool
2777X86InstrInfo::unfoldMemoryOperand(SelectionDAG &DAG, SDNode *N,
Bill Wendlingfbef3102009-02-11 21:51:19 +00002778 SmallVectorImpl<SDNode*> &NewNodes) const {
Dan Gohmane8be6c62008-07-17 19:10:17 +00002779 if (!N->isMachineOpcode())
Owen Anderson43dbe052008-01-07 01:35:02 +00002780 return false;
2781
Jeffrey Yasskin81cf4322009-11-10 01:02:17 +00002782 DenseMap<unsigned*, std::pair<unsigned,unsigned> >::const_iterator I =
Dan Gohmane8be6c62008-07-17 19:10:17 +00002783 MemOp2RegOpTable.find((unsigned*)N->getMachineOpcode());
Owen Anderson43dbe052008-01-07 01:35:02 +00002784 if (I == MemOp2RegOpTable.end())
2785 return false;
2786 unsigned Opc = I->second.first;
2787 unsigned Index = I->second.second & 0xf;
2788 bool FoldedLoad = I->second.second & (1 << 4);
2789 bool FoldedStore = I->second.second & (1 << 5);
Chris Lattner749c6f62008-01-07 07:27:27 +00002790 const TargetInstrDesc &TID = get(Opc);
Chris Lattnercb778a82009-07-29 21:10:12 +00002791 const TargetRegisterClass *RC = TID.OpInfo[Index].getRegClass(&RI);
Dan Gohmanb37a8202009-03-04 19:23:38 +00002792 unsigned NumDefs = TID.NumDefs;
Dan Gohman475871a2008-07-27 21:46:04 +00002793 std::vector<SDValue> AddrOps;
2794 std::vector<SDValue> BeforeOps;
2795 std::vector<SDValue> AfterOps;
Dale Johannesened2eee62009-02-06 01:31:28 +00002796 DebugLoc dl = N->getDebugLoc();
Owen Anderson43dbe052008-01-07 01:35:02 +00002797 unsigned NumOps = N->getNumOperands();
Dan Gohmanc76909a2009-09-25 20:36:54 +00002798 for (unsigned i = 0; i != NumOps-1; ++i) {
Dan Gohman475871a2008-07-27 21:46:04 +00002799 SDValue Op = N->getOperand(i);
Rafael Espindola705d8002009-03-27 15:57:50 +00002800 if (i >= Index-NumDefs && i < Index-NumDefs + X86AddrNumOperands)
Owen Anderson43dbe052008-01-07 01:35:02 +00002801 AddrOps.push_back(Op);
Dan Gohmanb37a8202009-03-04 19:23:38 +00002802 else if (i < Index-NumDefs)
Owen Anderson43dbe052008-01-07 01:35:02 +00002803 BeforeOps.push_back(Op);
Dan Gohmanb37a8202009-03-04 19:23:38 +00002804 else if (i > Index-NumDefs)
Owen Anderson43dbe052008-01-07 01:35:02 +00002805 AfterOps.push_back(Op);
2806 }
Dan Gohman475871a2008-07-27 21:46:04 +00002807 SDValue Chain = N->getOperand(NumOps-1);
Owen Anderson43dbe052008-01-07 01:35:02 +00002808 AddrOps.push_back(Chain);
2809
2810 // Emit the load instruction.
2811 SDNode *Load = 0;
Dan Gohman91e69c32009-10-09 18:10:05 +00002812 MachineFunction &MF = DAG.getMachineFunction();
Owen Anderson43dbe052008-01-07 01:35:02 +00002813 if (FoldedLoad) {
Owen Andersone50ed302009-08-10 22:56:29 +00002814 EVT VT = *RC->vt_begin();
Evan Cheng600c0432009-11-16 21:56:03 +00002815 std::pair<MachineInstr::mmo_iterator,
2816 MachineInstr::mmo_iterator> MMOs =
2817 MF.extractLoadMemRefs(cast<MachineSDNode>(N)->memoperands_begin(),
2818 cast<MachineSDNode>(N)->memoperands_end());
2819 bool isAligned = (*MMOs.first)->getAlignment() >= 16;
Dan Gohman602b0c82009-09-25 18:54:59 +00002820 Load = DAG.getMachineNode(getLoadRegOpcode(0, RC, isAligned, TM), dl,
2821 VT, MVT::Other, &AddrOps[0], AddrOps.size());
Owen Anderson43dbe052008-01-07 01:35:02 +00002822 NewNodes.push_back(Load);
Dan Gohman91e69c32009-10-09 18:10:05 +00002823
2824 // Preserve memory reference information.
Dan Gohman91e69c32009-10-09 18:10:05 +00002825 cast<MachineSDNode>(Load)->setMemRefs(MMOs.first, MMOs.second);
Owen Anderson43dbe052008-01-07 01:35:02 +00002826 }
2827
2828 // Emit the data processing instruction.
Owen Andersone50ed302009-08-10 22:56:29 +00002829 std::vector<EVT> VTs;
Owen Anderson43dbe052008-01-07 01:35:02 +00002830 const TargetRegisterClass *DstRC = 0;
Chris Lattner349c4952008-01-07 03:13:06 +00002831 if (TID.getNumDefs() > 0) {
Chris Lattnercb778a82009-07-29 21:10:12 +00002832 DstRC = TID.OpInfo[0].getRegClass(&RI);
Owen Anderson43dbe052008-01-07 01:35:02 +00002833 VTs.push_back(*DstRC->vt_begin());
2834 }
2835 for (unsigned i = 0, e = N->getNumValues(); i != e; ++i) {
Owen Andersone50ed302009-08-10 22:56:29 +00002836 EVT VT = N->getValueType(i);
Owen Anderson825b72b2009-08-11 20:47:22 +00002837 if (VT != MVT::Other && i >= (unsigned)TID.getNumDefs())
Owen Anderson43dbe052008-01-07 01:35:02 +00002838 VTs.push_back(VT);
2839 }
2840 if (Load)
Dan Gohman475871a2008-07-27 21:46:04 +00002841 BeforeOps.push_back(SDValue(Load, 0));
Owen Anderson43dbe052008-01-07 01:35:02 +00002842 std::copy(AfterOps.begin(), AfterOps.end(), std::back_inserter(BeforeOps));
Dan Gohman602b0c82009-09-25 18:54:59 +00002843 SDNode *NewNode= DAG.getMachineNode(Opc, dl, VTs, &BeforeOps[0],
2844 BeforeOps.size());
Owen Anderson43dbe052008-01-07 01:35:02 +00002845 NewNodes.push_back(NewNode);
2846
2847 // Emit the store instruction.
2848 if (FoldedStore) {
2849 AddrOps.pop_back();
Dan Gohman475871a2008-07-27 21:46:04 +00002850 AddrOps.push_back(SDValue(NewNode, 0));
Owen Anderson43dbe052008-01-07 01:35:02 +00002851 AddrOps.push_back(Chain);
Evan Cheng600c0432009-11-16 21:56:03 +00002852 std::pair<MachineInstr::mmo_iterator,
2853 MachineInstr::mmo_iterator> MMOs =
2854 MF.extractStoreMemRefs(cast<MachineSDNode>(N)->memoperands_begin(),
2855 cast<MachineSDNode>(N)->memoperands_end());
2856 bool isAligned = (*MMOs.first)->getAlignment() >= 16;
Dan Gohman602b0c82009-09-25 18:54:59 +00002857 SDNode *Store = DAG.getMachineNode(getStoreRegOpcode(0, DstRC,
2858 isAligned, TM),
2859 dl, MVT::Other,
2860 &AddrOps[0], AddrOps.size());
Owen Anderson43dbe052008-01-07 01:35:02 +00002861 NewNodes.push_back(Store);
Dan Gohman91e69c32009-10-09 18:10:05 +00002862
2863 // Preserve memory reference information.
Dan Gohman91e69c32009-10-09 18:10:05 +00002864 cast<MachineSDNode>(Load)->setMemRefs(MMOs.first, MMOs.second);
Owen Anderson43dbe052008-01-07 01:35:02 +00002865 }
2866
2867 return true;
2868}
2869
2870unsigned X86InstrInfo::getOpcodeAfterMemoryUnfold(unsigned Opc,
Dan Gohman0115e162009-10-30 22:18:41 +00002871 bool UnfoldLoad, bool UnfoldStore,
2872 unsigned *LoadRegIndex) const {
Jeffrey Yasskin81cf4322009-11-10 01:02:17 +00002873 DenseMap<unsigned*, std::pair<unsigned,unsigned> >::const_iterator I =
Owen Anderson43dbe052008-01-07 01:35:02 +00002874 MemOp2RegOpTable.find((unsigned*)Opc);
2875 if (I == MemOp2RegOpTable.end())
2876 return 0;
2877 bool FoldedLoad = I->second.second & (1 << 4);
2878 bool FoldedStore = I->second.second & (1 << 5);
2879 if (UnfoldLoad && !FoldedLoad)
2880 return 0;
2881 if (UnfoldStore && !FoldedStore)
2882 return 0;
Dan Gohman0115e162009-10-30 22:18:41 +00002883 if (LoadRegIndex)
2884 *LoadRegIndex = I->second.second & 0xf;
Owen Anderson43dbe052008-01-07 01:35:02 +00002885 return I->second.first;
2886}
2887
Evan Cheng96dc1152010-01-22 03:34:51 +00002888bool
2889X86InstrInfo::areLoadsFromSameBasePtr(SDNode *Load1, SDNode *Load2,
2890 int64_t &Offset1, int64_t &Offset2) const {
2891 if (!Load1->isMachineOpcode() || !Load2->isMachineOpcode())
2892 return false;
2893 unsigned Opc1 = Load1->getMachineOpcode();
2894 unsigned Opc2 = Load2->getMachineOpcode();
2895 switch (Opc1) {
2896 default: return false;
2897 case X86::MOV8rm:
2898 case X86::MOV16rm:
2899 case X86::MOV32rm:
2900 case X86::MOV64rm:
2901 case X86::LD_Fp32m:
2902 case X86::LD_Fp64m:
2903 case X86::LD_Fp80m:
2904 case X86::MOVSSrm:
2905 case X86::MOVSDrm:
2906 case X86::MMX_MOVD64rm:
2907 case X86::MMX_MOVQ64rm:
2908 case X86::FsMOVAPSrm:
2909 case X86::FsMOVAPDrm:
2910 case X86::MOVAPSrm:
2911 case X86::MOVUPSrm:
2912 case X86::MOVUPSrm_Int:
2913 case X86::MOVAPDrm:
2914 case X86::MOVDQArm:
2915 case X86::MOVDQUrm:
2916 case X86::MOVDQUrm_Int:
2917 break;
2918 }
2919 switch (Opc2) {
2920 default: return false;
2921 case X86::MOV8rm:
2922 case X86::MOV16rm:
2923 case X86::MOV32rm:
2924 case X86::MOV64rm:
2925 case X86::LD_Fp32m:
2926 case X86::LD_Fp64m:
2927 case X86::LD_Fp80m:
2928 case X86::MOVSSrm:
2929 case X86::MOVSDrm:
2930 case X86::MMX_MOVD64rm:
2931 case X86::MMX_MOVQ64rm:
2932 case X86::FsMOVAPSrm:
2933 case X86::FsMOVAPDrm:
2934 case X86::MOVAPSrm:
2935 case X86::MOVUPSrm:
2936 case X86::MOVUPSrm_Int:
2937 case X86::MOVAPDrm:
2938 case X86::MOVDQArm:
2939 case X86::MOVDQUrm:
2940 case X86::MOVDQUrm_Int:
2941 break;
2942 }
2943
2944 // Check if chain operands and base addresses match.
2945 if (Load1->getOperand(0) != Load2->getOperand(0) ||
2946 Load1->getOperand(5) != Load2->getOperand(5))
2947 return false;
2948 // Segment operands should match as well.
2949 if (Load1->getOperand(4) != Load2->getOperand(4))
2950 return false;
2951 // Scale should be 1, Index should be Reg0.
2952 if (Load1->getOperand(1) == Load2->getOperand(1) &&
2953 Load1->getOperand(2) == Load2->getOperand(2)) {
2954 if (cast<ConstantSDNode>(Load1->getOperand(1))->getZExtValue() != 1)
2955 return false;
2956 SDValue Op2 = Load1->getOperand(2);
2957 if (!isa<RegisterSDNode>(Op2) ||
2958 cast<RegisterSDNode>(Op2)->getReg() != 0)
2959 return 0;
2960
2961 // Now let's examine the displacements.
2962 if (isa<ConstantSDNode>(Load1->getOperand(3)) &&
2963 isa<ConstantSDNode>(Load2->getOperand(3))) {
2964 Offset1 = cast<ConstantSDNode>(Load1->getOperand(3))->getSExtValue();
2965 Offset2 = cast<ConstantSDNode>(Load2->getOperand(3))->getSExtValue();
2966 return true;
2967 }
2968 }
2969 return false;
2970}
2971
2972bool X86InstrInfo::shouldScheduleLoadsNear(SDNode *Load1, SDNode *Load2,
2973 int64_t Offset1, int64_t Offset2,
2974 unsigned NumLoads) const {
2975 assert(Offset2 > Offset1);
2976 if ((Offset2 - Offset1) / 8 > 64)
2977 return false;
2978
2979 unsigned Opc1 = Load1->getMachineOpcode();
2980 unsigned Opc2 = Load2->getMachineOpcode();
2981 if (Opc1 != Opc2)
2982 return false; // FIXME: overly conservative?
2983
2984 switch (Opc1) {
2985 default: break;
2986 case X86::LD_Fp32m:
2987 case X86::LD_Fp64m:
2988 case X86::LD_Fp80m:
2989 case X86::MMX_MOVD64rm:
2990 case X86::MMX_MOVQ64rm:
2991 return false;
2992 }
2993
2994 EVT VT = Load1->getValueType(0);
2995 switch (VT.getSimpleVT().SimpleTy) {
2996 default: {
2997 // XMM registers. In 64-bit mode we can be a bit more aggressive since we
2998 // have 16 of them to play with.
2999 if (TM.getSubtargetImpl()->is64Bit()) {
3000 if (NumLoads >= 3)
3001 return false;
3002 } else if (NumLoads)
3003 return false;
3004 break;
3005 }
3006 case MVT::i8:
3007 case MVT::i16:
3008 case MVT::i32:
3009 case MVT::i64:
Evan Chengafc36732010-01-22 23:49:11 +00003010 case MVT::f32:
3011 case MVT::f64:
Evan Cheng96dc1152010-01-22 03:34:51 +00003012 if (NumLoads)
3013 return false;
3014 }
3015
3016 return true;
3017}
3018
3019
Chris Lattner7fbe9722006-10-20 17:42:20 +00003020bool X86InstrInfo::
Owen Anderson44eb65c2008-08-14 22:49:33 +00003021ReverseBranchCondition(SmallVectorImpl<MachineOperand> &Cond) const {
Chris Lattner9cd68752006-10-21 05:52:40 +00003022 assert(Cond.size() == 1 && "Invalid X86 branch condition!");
Evan Cheng97af60b2008-08-29 23:21:31 +00003023 X86::CondCode CC = static_cast<X86::CondCode>(Cond[0].getImm());
Dan Gohman279c22e2008-10-21 03:29:32 +00003024 if (CC == X86::COND_NE_OR_P || CC == X86::COND_NP_OR_E)
3025 return true;
Evan Cheng97af60b2008-08-29 23:21:31 +00003026 Cond[0].setImm(GetOppositeBranchCondition(CC));
Chris Lattner9cd68752006-10-21 05:52:40 +00003027 return false;
Chris Lattner7fbe9722006-10-20 17:42:20 +00003028}
3029
Evan Cheng23066282008-10-27 07:14:50 +00003030bool X86InstrInfo::
Evan Cheng4350eb82009-02-06 17:17:30 +00003031isSafeToMoveRegClassDefs(const TargetRegisterClass *RC) const {
3032 // FIXME: Return false for x87 stack register classes for now. We can't
Evan Cheng23066282008-10-27 07:14:50 +00003033 // allow any loads of these registers before FpGet_ST0_80.
Evan Cheng4350eb82009-02-06 17:17:30 +00003034 return !(RC == &X86::CCRRegClass || RC == &X86::RFP32RegClass ||
3035 RC == &X86::RFP64RegClass || RC == &X86::RFP80RegClass);
Evan Cheng23066282008-10-27 07:14:50 +00003036}
3037
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003038
Chris Lattner39a612e2010-02-05 22:10:22 +00003039/// isX86_64ExtendedReg - Is the MachineOperand a x86-64 extended (r8 or higher)
3040/// register? e.g. r8, xmm8, xmm13, etc.
3041bool X86InstrInfo::isX86_64ExtendedReg(unsigned RegNo) {
3042 switch (RegNo) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003043 default: break;
3044 case X86::R8: case X86::R9: case X86::R10: case X86::R11:
3045 case X86::R12: case X86::R13: case X86::R14: case X86::R15:
3046 case X86::R8D: case X86::R9D: case X86::R10D: case X86::R11D:
3047 case X86::R12D: case X86::R13D: case X86::R14D: case X86::R15D:
3048 case X86::R8W: case X86::R9W: case X86::R10W: case X86::R11W:
3049 case X86::R12W: case X86::R13W: case X86::R14W: case X86::R15W:
3050 case X86::R8B: case X86::R9B: case X86::R10B: case X86::R11B:
3051 case X86::R12B: case X86::R13B: case X86::R14B: case X86::R15B:
3052 case X86::XMM8: case X86::XMM9: case X86::XMM10: case X86::XMM11:
3053 case X86::XMM12: case X86::XMM13: case X86::XMM14: case X86::XMM15:
3054 return true;
3055 }
3056 return false;
3057}
3058
3059
3060/// determineREX - Determine if the MachineInstr has to be encoded with a X86-64
3061/// REX prefix which specifies 1) 64-bit instructions, 2) non-default operand
3062/// size, and 3) use of X86-64 extended registers.
3063unsigned X86InstrInfo::determineREX(const MachineInstr &MI) {
3064 unsigned REX = 0;
3065 const TargetInstrDesc &Desc = MI.getDesc();
3066
3067 // Pseudo instructions do not need REX prefix byte.
3068 if ((Desc.TSFlags & X86II::FormMask) == X86II::Pseudo)
3069 return 0;
3070 if (Desc.TSFlags & X86II::REX_W)
3071 REX |= 1 << 3;
3072
3073 unsigned NumOps = Desc.getNumOperands();
3074 if (NumOps) {
3075 bool isTwoAddr = NumOps > 1 &&
3076 Desc.getOperandConstraint(1, TOI::TIED_TO) != -1;
3077
3078 // If it accesses SPL, BPL, SIL, or DIL, then it requires a 0x40 REX prefix.
3079 unsigned i = isTwoAddr ? 1 : 0;
3080 for (unsigned e = NumOps; i != e; ++i) {
3081 const MachineOperand& MO = MI.getOperand(i);
Dan Gohmand735b802008-10-03 15:45:36 +00003082 if (MO.isReg()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003083 unsigned Reg = MO.getReg();
3084 if (isX86_64NonExtLowByteReg(Reg))
3085 REX |= 0x40;
3086 }
3087 }
3088
3089 switch (Desc.TSFlags & X86II::FormMask) {
3090 case X86II::MRMInitReg:
3091 if (isX86_64ExtendedReg(MI.getOperand(0)))
3092 REX |= (1 << 0) | (1 << 2);
3093 break;
3094 case X86II::MRMSrcReg: {
3095 if (isX86_64ExtendedReg(MI.getOperand(0)))
3096 REX |= 1 << 2;
3097 i = isTwoAddr ? 2 : 1;
3098 for (unsigned e = NumOps; i != e; ++i) {
3099 const MachineOperand& MO = MI.getOperand(i);
3100 if (isX86_64ExtendedReg(MO))
3101 REX |= 1 << 0;
3102 }
3103 break;
3104 }
3105 case X86II::MRMSrcMem: {
3106 if (isX86_64ExtendedReg(MI.getOperand(0)))
3107 REX |= 1 << 2;
3108 unsigned Bit = 0;
3109 i = isTwoAddr ? 2 : 1;
3110 for (; i != NumOps; ++i) {
3111 const MachineOperand& MO = MI.getOperand(i);
Dan Gohmand735b802008-10-03 15:45:36 +00003112 if (MO.isReg()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003113 if (isX86_64ExtendedReg(MO))
3114 REX |= 1 << Bit;
3115 Bit++;
3116 }
3117 }
3118 break;
3119 }
3120 case X86II::MRM0m: case X86II::MRM1m:
3121 case X86II::MRM2m: case X86II::MRM3m:
3122 case X86II::MRM4m: case X86II::MRM5m:
3123 case X86II::MRM6m: case X86II::MRM7m:
3124 case X86II::MRMDestMem: {
Dan Gohman8cc632f2009-04-13 15:04:25 +00003125 unsigned e = (isTwoAddr ? X86AddrNumOperands+1 : X86AddrNumOperands);
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003126 i = isTwoAddr ? 1 : 0;
3127 if (NumOps > e && isX86_64ExtendedReg(MI.getOperand(e)))
3128 REX |= 1 << 2;
3129 unsigned Bit = 0;
3130 for (; i != e; ++i) {
3131 const MachineOperand& MO = MI.getOperand(i);
Dan Gohmand735b802008-10-03 15:45:36 +00003132 if (MO.isReg()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003133 if (isX86_64ExtendedReg(MO))
3134 REX |= 1 << Bit;
3135 Bit++;
3136 }
3137 }
3138 break;
3139 }
3140 default: {
3141 if (isX86_64ExtendedReg(MI.getOperand(0)))
3142 REX |= 1 << 0;
3143 i = isTwoAddr ? 2 : 1;
3144 for (unsigned e = NumOps; i != e; ++i) {
3145 const MachineOperand& MO = MI.getOperand(i);
3146 if (isX86_64ExtendedReg(MO))
3147 REX |= 1 << 2;
3148 }
3149 break;
3150 }
3151 }
3152 }
3153 return REX;
3154}
3155
3156/// sizePCRelativeBlockAddress - This method returns the size of a PC
3157/// relative block address instruction
3158///
3159static unsigned sizePCRelativeBlockAddress() {
3160 return 4;
3161}
3162
3163/// sizeGlobalAddress - Give the size of the emission of this global address
3164///
3165static unsigned sizeGlobalAddress(bool dword) {
3166 return dword ? 8 : 4;
3167}
3168
3169/// sizeConstPoolAddress - Give the size of the emission of this constant
3170/// pool address
3171///
3172static unsigned sizeConstPoolAddress(bool dword) {
3173 return dword ? 8 : 4;
3174}
3175
3176/// sizeExternalSymbolAddress - Give the size of the emission of this external
3177/// symbol
3178///
3179static unsigned sizeExternalSymbolAddress(bool dword) {
3180 return dword ? 8 : 4;
3181}
3182
3183/// sizeJumpTableAddress - Give the size of the emission of this jump
3184/// table address
3185///
3186static unsigned sizeJumpTableAddress(bool dword) {
3187 return dword ? 8 : 4;
3188}
3189
3190static unsigned sizeConstant(unsigned Size) {
3191 return Size;
3192}
3193
3194static unsigned sizeRegModRMByte(){
3195 return 1;
3196}
3197
3198static unsigned sizeSIBByte(){
3199 return 1;
3200}
3201
3202static unsigned getDisplacementFieldSize(const MachineOperand *RelocOp) {
3203 unsigned FinalSize = 0;
3204 // If this is a simple integer displacement that doesn't require a relocation.
3205 if (!RelocOp) {
3206 FinalSize += sizeConstant(4);
3207 return FinalSize;
3208 }
3209
3210 // Otherwise, this is something that requires a relocation.
Dan Gohmand735b802008-10-03 15:45:36 +00003211 if (RelocOp->isGlobal()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003212 FinalSize += sizeGlobalAddress(false);
Dan Gohmand735b802008-10-03 15:45:36 +00003213 } else if (RelocOp->isCPI()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003214 FinalSize += sizeConstPoolAddress(false);
Dan Gohmand735b802008-10-03 15:45:36 +00003215 } else if (RelocOp->isJTI()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003216 FinalSize += sizeJumpTableAddress(false);
3217 } else {
Torok Edwinc23197a2009-07-14 16:55:14 +00003218 llvm_unreachable("Unknown value to relocate!");
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003219 }
3220 return FinalSize;
3221}
3222
3223static unsigned getMemModRMByteSize(const MachineInstr &MI, unsigned Op,
3224 bool IsPIC, bool Is64BitMode) {
3225 const MachineOperand &Op3 = MI.getOperand(Op+3);
3226 int DispVal = 0;
3227 const MachineOperand *DispForReloc = 0;
3228 unsigned FinalSize = 0;
3229
3230 // Figure out what sort of displacement we have to handle here.
Dan Gohmand735b802008-10-03 15:45:36 +00003231 if (Op3.isGlobal()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003232 DispForReloc = &Op3;
Dan Gohmand735b802008-10-03 15:45:36 +00003233 } else if (Op3.isCPI()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003234 if (Is64BitMode || IsPIC) {
3235 DispForReloc = &Op3;
3236 } else {
3237 DispVal = 1;
3238 }
Dan Gohmand735b802008-10-03 15:45:36 +00003239 } else if (Op3.isJTI()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003240 if (Is64BitMode || IsPIC) {
3241 DispForReloc = &Op3;
3242 } else {
3243 DispVal = 1;
3244 }
3245 } else {
3246 DispVal = 1;
3247 }
3248
3249 const MachineOperand &Base = MI.getOperand(Op);
3250 const MachineOperand &IndexReg = MI.getOperand(Op+2);
3251
3252 unsigned BaseReg = Base.getReg();
3253
3254 // Is a SIB byte needed?
Evan Cheng6ed34912009-05-12 00:07:35 +00003255 if ((!Is64BitMode || DispForReloc || BaseReg != 0) &&
3256 IndexReg.getReg() == 0 &&
Evan Chengb0030dd2009-05-04 22:49:16 +00003257 (BaseReg == 0 || X86RegisterInfo::getX86RegNum(BaseReg) != N86::ESP)) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003258 if (BaseReg == 0) { // Just a displacement?
3259 // Emit special case [disp32] encoding
3260 ++FinalSize;
3261 FinalSize += getDisplacementFieldSize(DispForReloc);
3262 } else {
3263 unsigned BaseRegNo = X86RegisterInfo::getX86RegNum(BaseReg);
3264 if (!DispForReloc && DispVal == 0 && BaseRegNo != N86::EBP) {
3265 // Emit simple indirect register encoding... [EAX] f.e.
3266 ++FinalSize;
3267 // Be pessimistic and assume it's a disp32, not a disp8
3268 } else {
3269 // Emit the most general non-SIB encoding: [REG+disp32]
3270 ++FinalSize;
3271 FinalSize += getDisplacementFieldSize(DispForReloc);
3272 }
3273 }
3274
3275 } else { // We need a SIB byte, so start by outputting the ModR/M byte first
3276 assert(IndexReg.getReg() != X86::ESP &&
3277 IndexReg.getReg() != X86::RSP && "Cannot use ESP as index reg!");
3278
3279 bool ForceDisp32 = false;
3280 if (BaseReg == 0 || DispForReloc) {
3281 // Emit the normal disp32 encoding.
3282 ++FinalSize;
3283 ForceDisp32 = true;
3284 } else {
3285 ++FinalSize;
3286 }
3287
3288 FinalSize += sizeSIBByte();
3289
3290 // Do we need to output a displacement?
3291 if (DispVal != 0 || ForceDisp32) {
3292 FinalSize += getDisplacementFieldSize(DispForReloc);
3293 }
3294 }
3295 return FinalSize;
3296}
3297
3298
3299static unsigned GetInstSizeWithDesc(const MachineInstr &MI,
3300 const TargetInstrDesc *Desc,
3301 bool IsPIC, bool Is64BitMode) {
3302
3303 unsigned Opcode = Desc->Opcode;
3304 unsigned FinalSize = 0;
3305
3306 // Emit the lock opcode prefix as needed.
3307 if (Desc->TSFlags & X86II::LOCK) ++FinalSize;
3308
Bill Wendling2265ba02009-05-28 23:40:46 +00003309 // Emit segment override opcode prefix as needed.
Anton Korobeynikovd21a6302008-10-12 10:30:11 +00003310 switch (Desc->TSFlags & X86II::SegOvrMask) {
3311 case X86II::FS:
3312 case X86II::GS:
3313 ++FinalSize;
3314 break;
Torok Edwinc23197a2009-07-14 16:55:14 +00003315 default: llvm_unreachable("Invalid segment!");
Anton Korobeynikovd21a6302008-10-12 10:30:11 +00003316 case 0: break; // No segment override!
3317 }
3318
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003319 // Emit the repeat opcode prefix as needed.
3320 if ((Desc->TSFlags & X86II::Op0Mask) == X86II::REP) ++FinalSize;
3321
3322 // Emit the operand size opcode prefix as needed.
3323 if (Desc->TSFlags & X86II::OpSize) ++FinalSize;
3324
3325 // Emit the address size opcode prefix as needed.
3326 if (Desc->TSFlags & X86II::AdSize) ++FinalSize;
3327
3328 bool Need0FPrefix = false;
3329 switch (Desc->TSFlags & X86II::Op0Mask) {
3330 case X86II::TB: // Two-byte opcode prefix
3331 case X86II::T8: // 0F 38
3332 case X86II::TA: // 0F 3A
3333 Need0FPrefix = true;
3334 break;
Eric Christopherb4dc13c2009-08-08 21:55:08 +00003335 case X86II::TF: // F2 0F 38
3336 ++FinalSize;
3337 Need0FPrefix = true;
3338 break;
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003339 case X86II::REP: break; // already handled.
3340 case X86II::XS: // F3 0F
3341 ++FinalSize;
3342 Need0FPrefix = true;
3343 break;
3344 case X86II::XD: // F2 0F
3345 ++FinalSize;
3346 Need0FPrefix = true;
3347 break;
3348 case X86II::D8: case X86II::D9: case X86II::DA: case X86II::DB:
3349 case X86II::DC: case X86II::DD: case X86II::DE: case X86II::DF:
3350 ++FinalSize;
3351 break; // Two-byte opcode prefix
Torok Edwinc23197a2009-07-14 16:55:14 +00003352 default: llvm_unreachable("Invalid prefix!");
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003353 case 0: break; // No prefix!
3354 }
3355
3356 if (Is64BitMode) {
3357 // REX prefix
3358 unsigned REX = X86InstrInfo::determineREX(MI);
3359 if (REX)
3360 ++FinalSize;
3361 }
3362
3363 // 0x0F escape code must be emitted just before the opcode.
3364 if (Need0FPrefix)
3365 ++FinalSize;
3366
3367 switch (Desc->TSFlags & X86II::Op0Mask) {
3368 case X86II::T8: // 0F 38
3369 ++FinalSize;
3370 break;
Bill Wendling2265ba02009-05-28 23:40:46 +00003371 case X86II::TA: // 0F 3A
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003372 ++FinalSize;
3373 break;
Eric Christopherb4dc13c2009-08-08 21:55:08 +00003374 case X86II::TF: // F2 0F 38
3375 ++FinalSize;
3376 break;
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003377 }
3378
3379 // If this is a two-address instruction, skip one of the register operands.
3380 unsigned NumOps = Desc->getNumOperands();
3381 unsigned CurOp = 0;
3382 if (NumOps > 1 && Desc->getOperandConstraint(1, TOI::TIED_TO) != -1)
3383 CurOp++;
Evan Chengb0030dd2009-05-04 22:49:16 +00003384 else if (NumOps > 2 && Desc->getOperandConstraint(NumOps-1, TOI::TIED_TO)== 0)
3385 // Skip the last source operand that is tied_to the dest reg. e.g. LXADD32
3386 --NumOps;
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003387
3388 switch (Desc->TSFlags & X86II::FormMask) {
Torok Edwinc23197a2009-07-14 16:55:14 +00003389 default: llvm_unreachable("Unknown FormMask value in X86 MachineCodeEmitter!");
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003390 case X86II::Pseudo:
3391 // Remember the current PC offset, this is the PIC relocation
3392 // base address.
3393 switch (Opcode) {
3394 default:
3395 break;
Chris Lattner518bb532010-02-09 19:54:29 +00003396 case TargetOpcode::INLINEASM: {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003397 const MachineFunction *MF = MI.getParent()->getParent();
Chris Lattnerd90183d2009-08-02 05:20:37 +00003398 const TargetInstrInfo &TII = *MF->getTarget().getInstrInfo();
3399 FinalSize += TII.getInlineAsmLength(MI.getOperand(0).getSymbolName(),
Chris Lattneraf76e592009-08-22 20:48:53 +00003400 *MF->getTarget().getMCAsmInfo());
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003401 break;
3402 }
Chris Lattner518bb532010-02-09 19:54:29 +00003403 case TargetOpcode::DBG_LABEL:
3404 case TargetOpcode::EH_LABEL:
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003405 break;
Chris Lattner518bb532010-02-09 19:54:29 +00003406 case TargetOpcode::IMPLICIT_DEF:
3407 case TargetOpcode::KILL:
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003408 case X86::FP_REG_KILL:
3409 break;
3410 case X86::MOVPC32r: {
3411 // This emits the "call" portion of this pseudo instruction.
3412 ++FinalSize;
Chris Lattner74a21512010-02-05 19:24:13 +00003413 FinalSize += sizeConstant(X86II::getSizeOfImm(Desc->TSFlags));
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003414 break;
3415 }
3416 }
3417 CurOp = NumOps;
3418 break;
3419 case X86II::RawFrm:
3420 ++FinalSize;
3421
3422 if (CurOp != NumOps) {
3423 const MachineOperand &MO = MI.getOperand(CurOp++);
Dan Gohmand735b802008-10-03 15:45:36 +00003424 if (MO.isMBB()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003425 FinalSize += sizePCRelativeBlockAddress();
Dan Gohmand735b802008-10-03 15:45:36 +00003426 } else if (MO.isGlobal()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003427 FinalSize += sizeGlobalAddress(false);
Dan Gohmand735b802008-10-03 15:45:36 +00003428 } else if (MO.isSymbol()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003429 FinalSize += sizeExternalSymbolAddress(false);
Dan Gohmand735b802008-10-03 15:45:36 +00003430 } else if (MO.isImm()) {
Chris Lattner74a21512010-02-05 19:24:13 +00003431 FinalSize += sizeConstant(X86II::getSizeOfImm(Desc->TSFlags));
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003432 } else {
Torok Edwinc23197a2009-07-14 16:55:14 +00003433 llvm_unreachable("Unknown RawFrm operand!");
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003434 }
3435 }
3436 break;
3437
3438 case X86II::AddRegFrm:
3439 ++FinalSize;
Nicolas Geoffray546e36a2008-04-20 23:36:47 +00003440 ++CurOp;
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003441
3442 if (CurOp != NumOps) {
3443 const MachineOperand &MO1 = MI.getOperand(CurOp++);
Chris Lattner74a21512010-02-05 19:24:13 +00003444 unsigned Size = X86II::getSizeOfImm(Desc->TSFlags);
Dan Gohmand735b802008-10-03 15:45:36 +00003445 if (MO1.isImm())
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003446 FinalSize += sizeConstant(Size);
3447 else {
3448 bool dword = false;
3449 if (Opcode == X86::MOV64ri)
3450 dword = true;
Dan Gohmand735b802008-10-03 15:45:36 +00003451 if (MO1.isGlobal()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003452 FinalSize += sizeGlobalAddress(dword);
Dan Gohmand735b802008-10-03 15:45:36 +00003453 } else if (MO1.isSymbol())
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003454 FinalSize += sizeExternalSymbolAddress(dword);
Dan Gohmand735b802008-10-03 15:45:36 +00003455 else if (MO1.isCPI())
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003456 FinalSize += sizeConstPoolAddress(dword);
Dan Gohmand735b802008-10-03 15:45:36 +00003457 else if (MO1.isJTI())
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003458 FinalSize += sizeJumpTableAddress(dword);
3459 }
3460 }
3461 break;
3462
3463 case X86II::MRMDestReg: {
3464 ++FinalSize;
3465 FinalSize += sizeRegModRMByte();
3466 CurOp += 2;
Nicolas Geoffray546e36a2008-04-20 23:36:47 +00003467 if (CurOp != NumOps) {
3468 ++CurOp;
Chris Lattner74a21512010-02-05 19:24:13 +00003469 FinalSize += sizeConstant(X86II::getSizeOfImm(Desc->TSFlags));
Nicolas Geoffray546e36a2008-04-20 23:36:47 +00003470 }
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003471 break;
3472 }
3473 case X86II::MRMDestMem: {
3474 ++FinalSize;
3475 FinalSize += getMemModRMByteSize(MI, CurOp, IsPIC, Is64BitMode);
Evan Chengb0030dd2009-05-04 22:49:16 +00003476 CurOp += X86AddrNumOperands + 1;
Nicolas Geoffray546e36a2008-04-20 23:36:47 +00003477 if (CurOp != NumOps) {
3478 ++CurOp;
Chris Lattner74a21512010-02-05 19:24:13 +00003479 FinalSize += sizeConstant(X86II::getSizeOfImm(Desc->TSFlags));
Nicolas Geoffray546e36a2008-04-20 23:36:47 +00003480 }
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003481 break;
3482 }
3483
3484 case X86II::MRMSrcReg:
3485 ++FinalSize;
3486 FinalSize += sizeRegModRMByte();
3487 CurOp += 2;
Nicolas Geoffray546e36a2008-04-20 23:36:47 +00003488 if (CurOp != NumOps) {
3489 ++CurOp;
Chris Lattner74a21512010-02-05 19:24:13 +00003490 FinalSize += sizeConstant(X86II::getSizeOfImm(Desc->TSFlags));
Nicolas Geoffray546e36a2008-04-20 23:36:47 +00003491 }
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003492 break;
3493
3494 case X86II::MRMSrcMem: {
Evan Chengb0030dd2009-05-04 22:49:16 +00003495 int AddrOperands;
3496 if (Opcode == X86::LEA64r || Opcode == X86::LEA64_32r ||
3497 Opcode == X86::LEA16r || Opcode == X86::LEA32r)
3498 AddrOperands = X86AddrNumOperands - 1; // No segment register
3499 else
3500 AddrOperands = X86AddrNumOperands;
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003501
3502 ++FinalSize;
3503 FinalSize += getMemModRMByteSize(MI, CurOp+1, IsPIC, Is64BitMode);
Evan Chengb0030dd2009-05-04 22:49:16 +00003504 CurOp += AddrOperands + 1;
Nicolas Geoffray546e36a2008-04-20 23:36:47 +00003505 if (CurOp != NumOps) {
3506 ++CurOp;
Chris Lattner74a21512010-02-05 19:24:13 +00003507 FinalSize += sizeConstant(X86II::getSizeOfImm(Desc->TSFlags));
Nicolas Geoffray546e36a2008-04-20 23:36:47 +00003508 }
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003509 break;
3510 }
3511
3512 case X86II::MRM0r: case X86II::MRM1r:
3513 case X86II::MRM2r: case X86II::MRM3r:
3514 case X86II::MRM4r: case X86II::MRM5r:
3515 case X86II::MRM6r: case X86II::MRM7r:
3516 ++FinalSize;
Evan Chengb0030dd2009-05-04 22:49:16 +00003517 if (Desc->getOpcode() == X86::LFENCE ||
Bill Wendling2265ba02009-05-28 23:40:46 +00003518 Desc->getOpcode() == X86::MFENCE) {
3519 // Special handling of lfence and mfence;
Evan Chengb0030dd2009-05-04 22:49:16 +00003520 FinalSize += sizeRegModRMByte();
Bill Wendling2265ba02009-05-28 23:40:46 +00003521 } else if (Desc->getOpcode() == X86::MONITOR ||
3522 Desc->getOpcode() == X86::MWAIT) {
3523 // Special handling of monitor and mwait.
3524 FinalSize += sizeRegModRMByte() + 1; // +1 for the opcode.
3525 } else {
Evan Chengb0030dd2009-05-04 22:49:16 +00003526 ++CurOp;
3527 FinalSize += sizeRegModRMByte();
3528 }
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003529
3530 if (CurOp != NumOps) {
3531 const MachineOperand &MO1 = MI.getOperand(CurOp++);
Chris Lattner74a21512010-02-05 19:24:13 +00003532 unsigned Size = X86II::getSizeOfImm(Desc->TSFlags);
Dan Gohmand735b802008-10-03 15:45:36 +00003533 if (MO1.isImm())
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003534 FinalSize += sizeConstant(Size);
3535 else {
3536 bool dword = false;
3537 if (Opcode == X86::MOV64ri32)
3538 dword = true;
Dan Gohmand735b802008-10-03 15:45:36 +00003539 if (MO1.isGlobal()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003540 FinalSize += sizeGlobalAddress(dword);
Dan Gohmand735b802008-10-03 15:45:36 +00003541 } else if (MO1.isSymbol())
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003542 FinalSize += sizeExternalSymbolAddress(dword);
Dan Gohmand735b802008-10-03 15:45:36 +00003543 else if (MO1.isCPI())
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003544 FinalSize += sizeConstPoolAddress(dword);
Dan Gohmand735b802008-10-03 15:45:36 +00003545 else if (MO1.isJTI())
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003546 FinalSize += sizeJumpTableAddress(dword);
3547 }
3548 }
3549 break;
3550
3551 case X86II::MRM0m: case X86II::MRM1m:
3552 case X86II::MRM2m: case X86II::MRM3m:
3553 case X86II::MRM4m: case X86II::MRM5m:
3554 case X86II::MRM6m: case X86II::MRM7m: {
3555
3556 ++FinalSize;
3557 FinalSize += getMemModRMByteSize(MI, CurOp, IsPIC, Is64BitMode);
Evan Chengb0030dd2009-05-04 22:49:16 +00003558 CurOp += X86AddrNumOperands;
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003559
3560 if (CurOp != NumOps) {
3561 const MachineOperand &MO = MI.getOperand(CurOp++);
Chris Lattner74a21512010-02-05 19:24:13 +00003562 unsigned Size = X86II::getSizeOfImm(Desc->TSFlags);
Dan Gohmand735b802008-10-03 15:45:36 +00003563 if (MO.isImm())
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003564 FinalSize += sizeConstant(Size);
3565 else {
3566 bool dword = false;
3567 if (Opcode == X86::MOV64mi32)
3568 dword = true;
Dan Gohmand735b802008-10-03 15:45:36 +00003569 if (MO.isGlobal()) {
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003570 FinalSize += sizeGlobalAddress(dword);
Dan Gohmand735b802008-10-03 15:45:36 +00003571 } else if (MO.isSymbol())
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003572 FinalSize += sizeExternalSymbolAddress(dword);
Dan Gohmand735b802008-10-03 15:45:36 +00003573 else if (MO.isCPI())
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003574 FinalSize += sizeConstPoolAddress(dword);
Dan Gohmand735b802008-10-03 15:45:36 +00003575 else if (MO.isJTI())
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003576 FinalSize += sizeJumpTableAddress(dword);
3577 }
3578 }
3579 break;
Chris Lattner0d8db8e2010-02-12 02:06:33 +00003580
3581 case X86II::MRM_C1:
3582 case X86II::MRM_C8:
3583 case X86II::MRM_C9:
3584 case X86II::MRM_E8:
3585 case X86II::MRM_F0:
3586 FinalSize += 2;
3587 break;
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003588 }
3589
3590 case X86II::MRMInitReg:
3591 ++FinalSize;
3592 // Duplicate register, used by things like MOV8r0 (aka xor reg,reg).
3593 FinalSize += sizeRegModRMByte();
3594 ++CurOp;
3595 break;
3596 }
3597
3598 if (!Desc->isVariadic() && CurOp != NumOps) {
Torok Edwinab7c09b2009-07-08 18:01:40 +00003599 std::string msg;
3600 raw_string_ostream Msg(msg);
3601 Msg << "Cannot determine size: " << MI;
3602 llvm_report_error(Msg.str());
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003603 }
3604
3605
3606 return FinalSize;
3607}
3608
3609
3610unsigned X86InstrInfo::GetInstSizeInBytes(const MachineInstr *MI) const {
3611 const TargetInstrDesc &Desc = MI->getDesc();
Chris Lattner84853a12009-07-10 20:53:38 +00003612 bool IsPIC = TM.getRelocationModel() == Reloc::PIC_;
Dan Gohmanc9f5f3f2008-05-14 01:58:56 +00003613 bool Is64BitMode = TM.getSubtargetImpl()->is64Bit();
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003614 unsigned Size = GetInstSizeWithDesc(*MI, &Desc, IsPIC, Is64BitMode);
Chris Lattnerb1fb84d2009-06-25 17:28:07 +00003615 if (Desc.getOpcode() == X86::MOVPC32r)
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003616 Size += GetInstSizeWithDesc(*MI, &get(X86::POP32r), IsPIC, Is64BitMode);
Nicolas Geoffray52e724a2008-04-16 20:10:13 +00003617 return Size;
3618}
Dan Gohman8b746962008-09-23 18:22:58 +00003619
Dan Gohman57c3dac2008-09-30 00:58:23 +00003620/// getGlobalBaseReg - Return a virtual register initialized with the
3621/// the global base register value. Output instructions required to
3622/// initialize the register in the function entry block, if necessary.
Dan Gohman8b746962008-09-23 18:22:58 +00003623///
Dan Gohman57c3dac2008-09-30 00:58:23 +00003624unsigned X86InstrInfo::getGlobalBaseReg(MachineFunction *MF) const {
3625 assert(!TM.getSubtarget<X86Subtarget>().is64Bit() &&
3626 "X86-64 PIC uses RIP relative addressing");
3627
3628 X86MachineFunctionInfo *X86FI = MF->getInfo<X86MachineFunctionInfo>();
3629 unsigned GlobalBaseReg = X86FI->getGlobalBaseReg();
3630 if (GlobalBaseReg != 0)
3631 return GlobalBaseReg;
3632
Dan Gohman8b746962008-09-23 18:22:58 +00003633 // Insert the set of GlobalBaseReg into the first MBB of the function
3634 MachineBasicBlock &FirstMBB = MF->front();
3635 MachineBasicBlock::iterator MBBI = FirstMBB.begin();
Dale Johannesen6ec25f52010-01-26 00:03:12 +00003636 DebugLoc DL = FirstMBB.findDebugLoc(MBBI);
Dan Gohman8b746962008-09-23 18:22:58 +00003637 MachineRegisterInfo &RegInfo = MF->getRegInfo();
3638 unsigned PC = RegInfo.createVirtualRegister(X86::GR32RegisterClass);
3639
3640 const TargetInstrInfo *TII = TM.getInstrInfo();
3641 // Operand of MovePCtoStack is completely ignored by asm printer. It's
3642 // only used in JIT code emission as displacement to pc.
Chris Lattnerac5e8872009-06-25 17:38:33 +00003643 BuildMI(FirstMBB, MBBI, DL, TII->get(X86::MOVPC32r), PC).addImm(0);
Dan Gohman8b746962008-09-23 18:22:58 +00003644
3645 // If we're using vanilla 'GOT' PIC style, we should use relative addressing
Chris Lattnerac5e8872009-06-25 17:38:33 +00003646 // not to pc, but to _GLOBAL_OFFSET_TABLE_ external.
Chris Lattner15a380a2009-07-09 04:39:06 +00003647 if (TM.getSubtarget<X86Subtarget>().isPICStyleGOT()) {
Chris Lattnerac5e8872009-06-25 17:38:33 +00003648 GlobalBaseReg = RegInfo.createVirtualRegister(X86::GR32RegisterClass);
3649 // Generate addl $__GLOBAL_OFFSET_TABLE_ + [.-piclabel], %some_register
Bill Wendlingfbef3102009-02-11 21:51:19 +00003650 BuildMI(FirstMBB, MBBI, DL, TII->get(X86::ADD32ri), GlobalBaseReg)
Daniel Dunbar31e2c7b2009-09-01 22:06:46 +00003651 .addReg(PC).addExternalSymbol("_GLOBAL_OFFSET_TABLE_",
Chris Lattnerac5e8872009-06-25 17:38:33 +00003652 X86II::MO_GOT_ABSOLUTE_ADDRESS);
Dan Gohman57c3dac2008-09-30 00:58:23 +00003653 } else {
3654 GlobalBaseReg = PC;
Dan Gohman8b746962008-09-23 18:22:58 +00003655 }
3656
Dan Gohman57c3dac2008-09-30 00:58:23 +00003657 X86FI->setGlobalBaseReg(GlobalBaseReg);
3658 return GlobalBaseReg;
Dan Gohman8b746962008-09-23 18:22:58 +00003659}
Jakob Stoklund Olesen352aa502010-03-25 17:25:00 +00003660
Jakob Stoklund Olesene4b94b42010-03-29 23:24:21 +00003661// These are the replaceable SSE instructions. Some of these have Int variants
3662// that we don't include here. We don't want to replace instructions selected
3663// by intrinsics.
3664static const unsigned ReplaceableInstrs[][3] = {
3665 //PackedInt PackedSingle PackedDouble
Jakob Stoklund Olesen357be7f2010-03-30 22:46:53 +00003666 { X86::MOVAPSmr, X86::MOVAPDmr, X86::MOVDQAmr },
3667 { X86::MOVAPSrm, X86::MOVAPDrm, X86::MOVDQArm },
3668 { X86::MOVAPSrr, X86::MOVAPDrr, X86::MOVDQArr },
3669 { X86::MOVUPSmr, X86::MOVUPDmr, X86::MOVDQUmr },
3670 { X86::MOVUPSrm, X86::MOVUPDrm, X86::MOVDQUrm },
3671 { X86::MOVNTPSmr, X86::MOVNTPDmr, X86::MOVNTDQmr },
3672 { X86::ANDNPSrm, X86::ANDNPDrm, X86::PANDNrm },
3673 { X86::ANDNPSrr, X86::ANDNPDrr, X86::PANDNrr },
3674 { X86::ANDPSrm, X86::ANDPDrm, X86::PANDrm },
3675 { X86::ANDPSrr, X86::ANDPDrr, X86::PANDrr },
3676 { X86::ORPSrm, X86::ORPDrm, X86::PORrm },
3677 { X86::ORPSrr, X86::ORPDrr, X86::PORrr },
3678 { X86::XORPSrm, X86::XORPDrm, X86::PXORrm },
3679 { X86::XORPSrr, X86::XORPDrr, X86::PXORrr },
Jakob Stoklund Olesene4b94b42010-03-29 23:24:21 +00003680};
Jakob Stoklund Olesen352aa502010-03-25 17:25:00 +00003681
Jakob Stoklund Olesene4b94b42010-03-29 23:24:21 +00003682// FIXME: Some shuffle and unpack instructions have equivalents in different
3683// domains, but they require a bit more work than just switching opcodes.
Jakob Stoklund Olesen352aa502010-03-25 17:25:00 +00003684
Jakob Stoklund Olesene4b94b42010-03-29 23:24:21 +00003685static const unsigned *lookup(unsigned opcode, unsigned domain) {
Jakob Stoklund Olesen352aa502010-03-25 17:25:00 +00003686 for (unsigned i = 0, e = array_lengthof(ReplaceableInstrs); i != e; ++i)
Jakob Stoklund Olesene4b94b42010-03-29 23:24:21 +00003687 if (ReplaceableInstrs[i][domain-1] == opcode)
3688 return ReplaceableInstrs[i];
3689 return 0;
3690}
3691
3692std::pair<uint16_t, uint16_t>
3693X86InstrInfo::GetSSEDomain(const MachineInstr *MI) const {
3694 uint16_t domain = (MI->getDesc().TSFlags >> X86II::SSEDomainShift) & 3;
Jakob Stoklund Olesen357be7f2010-03-30 22:46:53 +00003695 return std::make_pair(domain,
3696 domain && lookup(MI->getOpcode(), domain) ? 0xe : 0);
Jakob Stoklund Olesene4b94b42010-03-29 23:24:21 +00003697}
3698
3699void X86InstrInfo::SetSSEDomain(MachineInstr *MI, unsigned Domain) const {
3700 assert(Domain>0 && Domain<4 && "Invalid execution domain");
3701 uint16_t dom = (MI->getDesc().TSFlags >> X86II::SSEDomainShift) & 3;
3702 assert(dom && "Not an SSE instruction");
3703 const unsigned *table = lookup(MI->getOpcode(), dom);
3704 assert(table && "Cannot change domain");
3705 MI->setDesc(get(table[Domain-1]));
Jakob Stoklund Olesen352aa502010-03-25 17:25:00 +00003706}