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Chris Lattnerdbdbf0c2005-11-15 00:40:23 +00001//===-- X86ISelLowering.h - X86 DAG Lowering Interface ----------*- C++ -*-===//
2//
3// 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.
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +00007//
8//===----------------------------------------------------------------------===//
9//
10// This file defines the interfaces that X86 uses to lower LLVM code into a
11// selection DAG.
12//
13//===----------------------------------------------------------------------===//
14
15#ifndef X86ISELLOWERING_H
16#define X86ISELLOWERING_H
17
Evan Cheng559806f2006-01-27 08:10:46 +000018#include "X86Subtarget.h"
Anton Korobeynikov2365f512007-07-14 14:06:15 +000019#include "X86RegisterInfo.h"
Gordon Henriksen86737662008-01-05 16:56:59 +000020#include "X86MachineFunctionInfo.h"
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +000021#include "llvm/Target/TargetLowering.h"
22#include "llvm/CodeGen/SelectionDAG.h"
Rafael Espindola1b5dcc32007-08-31 15:06:30 +000023#include "llvm/CodeGen/CallingConvLower.h"
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +000024
25namespace llvm {
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +000026 namespace X86ISD {
Evan Chengd9558e02006-01-06 00:43:03 +000027 // X86 Specific DAG Nodes
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +000028 enum NodeType {
29 // Start the numbering where the builtin ops leave off.
Evan Cheng7df96d62005-12-17 01:21:05 +000030 FIRST_NUMBER = ISD::BUILTIN_OP_END+X86::INSTRUCTION_LIST_END,
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +000031
Evan Cheng18efe262007-12-14 02:13:44 +000032 /// BSF - Bit scan forward.
33 /// BSR - Bit scan reverse.
34 BSF,
35 BSR,
36
Evan Chenge3413162006-01-09 18:33:28 +000037 /// SHLD, SHRD - Double shift instructions. These correspond to
38 /// X86::SHLDxx and X86::SHRDxx instructions.
39 SHLD,
40 SHRD,
41
Evan Chengef6ffb12006-01-31 03:14:29 +000042 /// FAND - Bitwise logical AND of floating point values. This corresponds
43 /// to X86::ANDPS or X86::ANDPD.
44 FAND,
45
Evan Cheng68c47cb2007-01-05 07:55:56 +000046 /// FOR - Bitwise logical OR of floating point values. This corresponds
47 /// to X86::ORPS or X86::ORPD.
48 FOR,
49
Evan Cheng223547a2006-01-31 22:28:30 +000050 /// FXOR - Bitwise logical XOR of floating point values. This corresponds
51 /// to X86::XORPS or X86::XORPD.
52 FXOR,
53
Evan Cheng73d6cf12007-01-05 21:37:56 +000054 /// FSRL - Bitwise logical right shift of floating point values. These
55 /// corresponds to X86::PSRLDQ.
Evan Cheng68c47cb2007-01-05 07:55:56 +000056 FSRL,
57
Evan Chenge3de85b2006-02-04 02:20:30 +000058 /// FILD, FILD_FLAG - This instruction implements SINT_TO_FP with the
59 /// integer source in memory and FP reg result. This corresponds to the
60 /// X86::FILD*m instructions. It has three inputs (token chain, address,
61 /// and source type) and two outputs (FP value and token chain). FILD_FLAG
62 /// also produces a flag).
Evan Chenga3195e82006-01-12 22:54:21 +000063 FILD,
Evan Chenge3de85b2006-02-04 02:20:30 +000064 FILD_FLAG,
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +000065
66 /// FP_TO_INT*_IN_MEM - This instruction implements FP_TO_SINT with the
67 /// integer destination in memory and a FP reg source. This corresponds
68 /// to the X86::FIST*m instructions and the rounding mode change stuff. It
Chris Lattner91897772006-10-18 18:26:48 +000069 /// has two inputs (token chain and address) and two outputs (int value
70 /// and token chain).
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +000071 FP_TO_INT16_IN_MEM,
72 FP_TO_INT32_IN_MEM,
73 FP_TO_INT64_IN_MEM,
74
Evan Chengb077b842005-12-21 02:39:21 +000075 /// FLD - This instruction implements an extending load to FP stack slots.
76 /// This corresponds to the X86::FLD32m / X86::FLD64m. It takes a chain
Evan Cheng38bcbaf2005-12-23 07:31:11 +000077 /// operand, ptr to load from, and a ValueType node indicating the type
78 /// to load to.
Evan Chengb077b842005-12-21 02:39:21 +000079 FLD,
80
Evan Chengd90eb7f2006-01-05 00:27:02 +000081 /// FST - This instruction implements a truncating store to FP stack
82 /// slots. This corresponds to the X86::FST32m / X86::FST64m. It takes a
83 /// chain operand, value to store, address, and a ValueType to store it
84 /// as.
85 FST,
86
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +000087 /// CALL/TAILCALL - These operations represent an abstract X86 call
88 /// instruction, which includes a bunch of information. In particular the
89 /// operands of these node are:
90 ///
91 /// #0 - The incoming token chain
92 /// #1 - The callee
93 /// #2 - The number of arg bytes the caller pushes on the stack.
94 /// #3 - The number of arg bytes the callee pops off the stack.
95 /// #4 - The value to pass in AL/AX/EAX (optional)
96 /// #5 - The value to pass in DL/DX/EDX (optional)
97 ///
98 /// The result values of these nodes are:
99 ///
100 /// #0 - The outgoing token chain
101 /// #1 - The first register result value (optional)
102 /// #2 - The second register result value (optional)
103 ///
104 /// The CALL vs TAILCALL distinction boils down to whether the callee is
105 /// known not to modify the caller's stack frame, as is standard with
106 /// LLVM.
107 CALL,
108 TAILCALL,
Andrew Lenharthb873ff32005-11-20 21:41:10 +0000109
110 /// RDTSC_DAG - This operation implements the lowering for
111 /// readcyclecounter
112 RDTSC_DAG,
Evan Cheng7df96d62005-12-17 01:21:05 +0000113
114 /// X86 compare and logical compare instructions.
Evan Cheng7d6ff3a2007-09-17 17:42:53 +0000115 CMP, COMI, UCOMI,
Evan Cheng7df96d62005-12-17 01:21:05 +0000116
Evan Chengd5781fc2005-12-21 20:21:51 +0000117 /// X86 SetCC. Operand 1 is condition code, and operand 2 is the flag
118 /// operand produced by a CMP instruction.
119 SETCC,
120
121 /// X86 conditional moves. Operand 1 and operand 2 are the two values
Chris Lattner91897772006-10-18 18:26:48 +0000122 /// to select from (operand 1 is a R/W operand). Operand 3 is the
123 /// condition code, and operand 4 is the flag operand produced by a CMP
124 /// or TEST instruction. It also writes a flag result.
Evan Cheng7df96d62005-12-17 01:21:05 +0000125 CMOV,
Evan Cheng898101c2005-12-19 23:12:38 +0000126
Evan Chengd5781fc2005-12-21 20:21:51 +0000127 /// X86 conditional branches. Operand 1 is the chain operand, operand 2
128 /// is the block to branch if condition is true, operand 3 is the
129 /// condition code, and operand 4 is the flag operand produced by a CMP
130 /// or TEST instruction.
Evan Cheng898101c2005-12-19 23:12:38 +0000131 BRCOND,
Evan Chengb077b842005-12-21 02:39:21 +0000132
Evan Cheng67f92a72006-01-11 22:15:48 +0000133 /// Return with a flag operand. Operand 1 is the chain operand, operand
134 /// 2 is the number of bytes of stack to pop.
Evan Chengb077b842005-12-21 02:39:21 +0000135 RET_FLAG,
Evan Cheng67f92a72006-01-11 22:15:48 +0000136
137 /// REP_STOS - Repeat fill, corresponds to X86::REP_STOSx.
138 REP_STOS,
139
140 /// REP_MOVS - Repeat move, corresponds to X86::REP_MOVSx.
141 REP_MOVS,
Evan Cheng223547a2006-01-31 22:28:30 +0000142
Evan Cheng7ccced62006-02-18 00:15:05 +0000143 /// GlobalBaseReg - On Darwin, this node represents the result of the popl
144 /// at function entry, used for PIC code.
145 GlobalBaseReg,
Evan Chenga0ea0532006-02-23 02:43:52 +0000146
Chris Lattner6458f182006-09-28 23:33:12 +0000147 /// Wrapper - A wrapper node for TargetConstantPool,
Evan Cheng020d2e82006-02-23 20:41:18 +0000148 /// TargetExternalSymbol, and TargetGlobalAddress.
149 Wrapper,
Evan Cheng48090aa2006-03-21 23:01:21 +0000150
Evan Cheng0085a282006-11-30 21:55:46 +0000151 /// WrapperRIP - Special wrapper used under X86-64 PIC mode for RIP
152 /// relative displacements.
153 WrapperRIP,
154
Nate Begeman14d12ca2008-02-11 04:19:36 +0000155 /// PEXTRB - Extract an 8-bit value from a vector and zero extend it to
156 /// i32, corresponds to X86::PEXTRB.
157 PEXTRB,
158
Evan Chengb067a1e2006-03-31 19:22:53 +0000159 /// PEXTRW - Extract a 16-bit value from a vector and zero extend it to
Evan Cheng653159f2006-03-31 21:55:24 +0000160 /// i32, corresponds to X86::PEXTRW.
Evan Chengb067a1e2006-03-31 19:22:53 +0000161 PEXTRW,
Evan Cheng653159f2006-03-31 21:55:24 +0000162
Nate Begeman14d12ca2008-02-11 04:19:36 +0000163 /// INSERTPS - Insert any element of a 4 x float vector into any element
164 /// of a destination 4 x floatvector.
165 INSERTPS,
166
167 /// PINSRB - Insert the lower 8-bits of a 32-bit value to a vector,
168 /// corresponds to X86::PINSRB.
169 PINSRB,
170
Evan Cheng653159f2006-03-31 21:55:24 +0000171 /// PINSRW - Insert the lower 16-bits of a 32-bit value to a vector,
172 /// corresponds to X86::PINSRW.
Evan Cheng8ca29322006-11-10 21:43:37 +0000173 PINSRW,
174
175 /// FMAX, FMIN - Floating point max and min.
176 ///
Lauro Ramos Venanciob3a04172007-04-20 21:38:10 +0000177 FMAX, FMIN,
Dan Gohman20382522007-07-10 00:05:58 +0000178
179 /// FRSQRT, FRCP - Floating point reciprocal-sqrt and reciprocal
180 /// approximation. Note that these typically require refinement
181 /// in order to obtain suitable precision.
182 FRSQRT, FRCP,
183
Evan Cheng7e2ff772008-05-08 00:57:18 +0000184 // TLSADDR, THREAThread - Thread Local Storage.
Anton Korobeynikov2365f512007-07-14 14:06:15 +0000185 TLSADDR, THREAD_POINTER,
186
Evan Cheng7e2ff772008-05-08 00:57:18 +0000187 // EH_RETURN - Exception Handling helpers.
Arnold Schwaighoferc85e1712007-10-11 19:40:01 +0000188 EH_RETURN,
189
Arnold Schwaighofer4fe30732008-03-19 16:39:45 +0000190 /// TC_RETURN - Tail call return.
191 /// operand #0 chain
192 /// operand #1 callee (register or absolute)
193 /// operand #2 stack adjustment
194 /// operand #3 optional in flag
Anton Korobeynikov45b22fa2007-11-16 01:31:51 +0000195 TC_RETURN,
196
Evan Cheng7e2ff772008-05-08 00:57:18 +0000197 // LCMPXCHG_DAG, LCMPXCHG8_DAG - Compare and swap.
Andrew Lenharth26ed8692008-03-01 21:52:34 +0000198 LCMPXCHG_DAG,
Andrew Lenharthd19189e2008-03-05 01:15:49 +0000199 LCMPXCHG8_DAG,
Andrew Lenharth26ed8692008-03-01 21:52:34 +0000200
Evan Cheng7e2ff772008-05-08 00:57:18 +0000201 // FNSTCW16m - Store FP control world into i16 memory.
202 FNSTCW16m,
203
204 // ZEXT_VMOVL - Vector move low and zero extend.
205 ZEXT_VMOVL
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +0000206 };
207 }
208
Evan Cheng0d9e9762008-01-29 19:34:22 +0000209 /// Define some predicates that are used for node matching.
210 namespace X86 {
211 /// isPSHUFDMask - Return true if the specified VECTOR_SHUFFLE operand
212 /// specifies a shuffle of elements that is suitable for input to PSHUFD.
213 bool isPSHUFDMask(SDNode *N);
Evan Cheng0188ecb2006-03-22 18:59:22 +0000214
Evan Cheng0d9e9762008-01-29 19:34:22 +0000215 /// isPSHUFHWMask - Return true if the specified VECTOR_SHUFFLE operand
216 /// specifies a shuffle of elements that is suitable for input to PSHUFD.
217 bool isPSHUFHWMask(SDNode *N);
Evan Cheng506d3df2006-03-29 23:07:14 +0000218
Evan Cheng0d9e9762008-01-29 19:34:22 +0000219 /// isPSHUFLWMask - Return true if the specified VECTOR_SHUFFLE operand
220 /// specifies a shuffle of elements that is suitable for input to PSHUFD.
221 bool isPSHUFLWMask(SDNode *N);
Evan Cheng506d3df2006-03-29 23:07:14 +0000222
Evan Cheng0d9e9762008-01-29 19:34:22 +0000223 /// isSHUFPMask - Return true if the specified VECTOR_SHUFFLE operand
224 /// specifies a shuffle of elements that is suitable for input to SHUFP*.
225 bool isSHUFPMask(SDNode *N);
Evan Cheng14aed5e2006-03-24 01:18:28 +0000226
Evan Cheng0d9e9762008-01-29 19:34:22 +0000227 /// isMOVHLPSMask - Return true if the specified VECTOR_SHUFFLE operand
228 /// specifies a shuffle of elements that is suitable for input to MOVHLPS.
229 bool isMOVHLPSMask(SDNode *N);
Evan Cheng2c0dbd02006-03-24 02:58:06 +0000230
Evan Cheng0d9e9762008-01-29 19:34:22 +0000231 /// isMOVHLPS_v_undef_Mask - Special case of isMOVHLPSMask for canonical form
232 /// of vector_shuffle v, v, <2, 3, 2, 3>, i.e. vector_shuffle v, undef,
233 /// <2, 3, 2, 3>
234 bool isMOVHLPS_v_undef_Mask(SDNode *N);
Evan Cheng6e56e2c2006-11-07 22:14:24 +0000235
Evan Cheng0d9e9762008-01-29 19:34:22 +0000236 /// isMOVLPMask - Return true if the specified VECTOR_SHUFFLE operand
237 /// specifies a shuffle of elements that is suitable for input to MOVLP{S|D}.
238 bool isMOVLPMask(SDNode *N);
Evan Cheng5ced1d82006-04-06 23:23:56 +0000239
Evan Cheng0d9e9762008-01-29 19:34:22 +0000240 /// isMOVHPMask - Return true if the specified VECTOR_SHUFFLE operand
241 /// specifies a shuffle of elements that is suitable for input to MOVHP{S|D}
242 /// as well as MOVLHPS.
243 bool isMOVHPMask(SDNode *N);
Evan Cheng5ced1d82006-04-06 23:23:56 +0000244
Evan Cheng0d9e9762008-01-29 19:34:22 +0000245 /// isUNPCKLMask - Return true if the specified VECTOR_SHUFFLE operand
246 /// specifies a shuffle of elements that is suitable for input to UNPCKL.
247 bool isUNPCKLMask(SDNode *N, bool V2IsSplat = false);
Evan Cheng0038e592006-03-28 00:39:58 +0000248
Evan Cheng0d9e9762008-01-29 19:34:22 +0000249 /// isUNPCKHMask - Return true if the specified VECTOR_SHUFFLE operand
250 /// specifies a shuffle of elements that is suitable for input to UNPCKH.
251 bool isUNPCKHMask(SDNode *N, bool V2IsSplat = false);
Evan Cheng4fcb9222006-03-28 02:43:26 +0000252
Evan Cheng0d9e9762008-01-29 19:34:22 +0000253 /// isUNPCKL_v_undef_Mask - Special case of isUNPCKLMask for canonical form
254 /// of vector_shuffle v, v, <0, 4, 1, 5>, i.e. vector_shuffle v, undef,
255 /// <0, 0, 1, 1>
256 bool isUNPCKL_v_undef_Mask(SDNode *N);
Evan Cheng1d5a8cc2006-04-05 07:20:06 +0000257
Evan Cheng0d9e9762008-01-29 19:34:22 +0000258 /// isUNPCKH_v_undef_Mask - Special case of isUNPCKHMask for canonical form
259 /// of vector_shuffle v, v, <2, 6, 3, 7>, i.e. vector_shuffle v, undef,
260 /// <2, 2, 3, 3>
261 bool isUNPCKH_v_undef_Mask(SDNode *N);
Bill Wendling2f9bb1a2007-04-24 21:16:55 +0000262
Evan Cheng0d9e9762008-01-29 19:34:22 +0000263 /// isMOVLMask - Return true if the specified VECTOR_SHUFFLE operand
264 /// specifies a shuffle of elements that is suitable for input to MOVSS,
265 /// MOVSD, and MOVD, i.e. setting the lowest element.
266 bool isMOVLMask(SDNode *N);
Evan Chengd6d1cbd2006-04-11 00:19:04 +0000267
Evan Cheng0d9e9762008-01-29 19:34:22 +0000268 /// isMOVSHDUPMask - Return true if the specified VECTOR_SHUFFLE operand
269 /// specifies a shuffle of elements that is suitable for input to MOVSHDUP.
270 bool isMOVSHDUPMask(SDNode *N);
Evan Chengd9539472006-04-14 21:59:03 +0000271
Evan Cheng0d9e9762008-01-29 19:34:22 +0000272 /// isMOVSLDUPMask - Return true if the specified VECTOR_SHUFFLE operand
273 /// specifies a shuffle of elements that is suitable for input to MOVSLDUP.
274 bool isMOVSLDUPMask(SDNode *N);
Evan Chengd9539472006-04-14 21:59:03 +0000275
Evan Cheng0d9e9762008-01-29 19:34:22 +0000276 /// isSplatMask - Return true if the specified VECTOR_SHUFFLE operand
277 /// specifies a splat of a single element.
278 bool isSplatMask(SDNode *N);
Evan Chengb9df0ca2006-03-22 02:53:00 +0000279
Evan Cheng0d9e9762008-01-29 19:34:22 +0000280 /// isSplatLoMask - Return true if the specified VECTOR_SHUFFLE operand
281 /// specifies a splat of zero element.
282 bool isSplatLoMask(SDNode *N);
Evan Chengf686d9b2006-10-27 21:08:32 +0000283
Evan Cheng0d9e9762008-01-29 19:34:22 +0000284 /// getShuffleSHUFImmediate - Return the appropriate immediate to shuffle
285 /// the specified isShuffleMask VECTOR_SHUFFLE mask with PSHUF* and SHUFP*
286 /// instructions.
287 unsigned getShuffleSHUFImmediate(SDNode *N);
Evan Cheng506d3df2006-03-29 23:07:14 +0000288
Evan Cheng0d9e9762008-01-29 19:34:22 +0000289 /// getShufflePSHUFHWImmediate - Return the appropriate immediate to shuffle
290 /// the specified isShuffleMask VECTOR_SHUFFLE mask with PSHUFHW
291 /// instructions.
292 unsigned getShufflePSHUFHWImmediate(SDNode *N);
Evan Cheng506d3df2006-03-29 23:07:14 +0000293
Evan Cheng0d9e9762008-01-29 19:34:22 +0000294 /// getShufflePSHUFKWImmediate - Return the appropriate immediate to shuffle
295 /// the specified isShuffleMask VECTOR_SHUFFLE mask with PSHUFLW
296 /// instructions.
297 unsigned getShufflePSHUFLWImmediate(SDNode *N);
298 }
299
Chris Lattner91897772006-10-18 18:26:48 +0000300 //===--------------------------------------------------------------------===//
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +0000301 // X86TargetLowering - X86 Implementation of the TargetLowering interface
302 class X86TargetLowering : public TargetLowering {
303 int VarArgsFrameIndex; // FrameIndex for start of varargs area.
Evan Cheng25ab6902006-09-08 06:48:29 +0000304 int RegSaveFrameIndex; // X86-64 vararg func register save area.
305 unsigned VarArgsGPOffset; // X86-64 vararg func int reg offset.
306 unsigned VarArgsFPOffset; // X86-64 vararg func fp reg offset.
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +0000307 int BytesToPopOnReturn; // Number of arg bytes ret should pop.
308 int BytesCallerReserves; // Number of arg bytes caller makes.
Arnold Schwaighoferc85e1712007-10-11 19:40:01 +0000309
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +0000310 public:
Dan Gohman61e729e2007-08-02 21:21:54 +0000311 explicit X86TargetLowering(TargetMachine &TM);
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +0000312
Evan Chengcc415862007-11-09 01:32:10 +0000313 /// getPICJumpTableRelocaBase - Returns relocation base for the given PIC
314 /// jumptable.
315 SDOperand getPICJumpTableRelocBase(SDOperand Table,
316 SelectionDAG &DAG) const;
317
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +0000318 // Return the number of bytes that a function should pop when it returns (in
319 // addition to the space used by the return address).
320 //
321 unsigned getBytesToPopOnReturn() const { return BytesToPopOnReturn; }
322
323 // Return the number of bytes that the caller reserves for arguments passed
324 // to this function.
325 unsigned getBytesCallerReserves() const { return BytesCallerReserves; }
326
Chris Lattner54e3efd2007-02-26 04:01:25 +0000327 /// getStackPtrReg - Return the stack pointer register we are using: either
328 /// ESP or RSP.
329 unsigned getStackPtrReg() const { return X86StackPtr; }
Evan Cheng29286502008-01-23 23:17:41 +0000330
331 /// getByValTypeAlignment - Return the desired alignment for ByVal aggregate
332 /// function arguments in the caller parameter area. For X86, aggregates
333 /// that contains are placed at 16-byte boundaries while the rest are at
334 /// 4-byte boundaries.
335 virtual unsigned getByValTypeAlignment(const Type *Ty) const;
Chris Lattner54e3efd2007-02-26 04:01:25 +0000336
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +0000337 /// LowerOperation - Provide custom lowering hooks for some operations.
338 ///
339 virtual SDOperand LowerOperation(SDOperand Op, SelectionDAG &DAG);
340
Chris Lattner27a6c732007-11-24 07:07:01 +0000341 /// ExpandOperation - Custom lower the specified operation, splitting the
342 /// value into two pieces.
343 ///
344 virtual SDNode *ExpandOperationResult(SDNode *N, SelectionDAG &DAG);
345
346
Evan Cheng206ee9d2006-07-07 08:33:52 +0000347 virtual SDOperand PerformDAGCombine(SDNode *N, DAGCombinerInfo &DCI) const;
348
Evan Chengff9b3732008-01-30 18:18:23 +0000349 virtual MachineBasicBlock *EmitInstrWithCustomInserter(MachineInstr *MI,
350 MachineBasicBlock *MBB);
Evan Cheng4a460802006-01-11 00:33:36 +0000351
Mon P Wang63307c32008-05-05 19:05:59 +0000352
Evan Cheng72261582005-12-20 06:22:03 +0000353 /// getTargetNodeName - This method returns the name of a target specific
354 /// DAG node.
355 virtual const char *getTargetNodeName(unsigned Opcode) const;
356
Scott Michel5b8f82e2008-03-10 15:42:14 +0000357 /// getSetCCResultType - Return the ISD::SETCC ValueType
358 virtual MVT::ValueType getSetCCResultType(const SDOperand &) const;
359
Nate Begeman368e18d2006-02-16 21:11:51 +0000360 /// computeMaskedBitsForTargetNode - Determine which of the bits specified
361 /// in Mask are known to be either zero or one and return them in the
362 /// KnownZero/KnownOne bitsets.
363 virtual void computeMaskedBitsForTargetNode(const SDOperand Op,
Dan Gohman977a76f2008-02-13 22:28:48 +0000364 const APInt &Mask,
Dan Gohmanfd29e0e2008-02-13 00:35:47 +0000365 APInt &KnownZero,
366 APInt &KnownOne,
Dan Gohmanea859be2007-06-22 14:59:07 +0000367 const SelectionDAG &DAG,
Nate Begeman368e18d2006-02-16 21:11:51 +0000368 unsigned Depth = 0) const;
369
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +0000370 SDOperand getReturnAddressFrameIndex(SelectionDAG &DAG);
371
Chris Lattner4234f572007-03-25 02:14:49 +0000372 ConstraintType getConstraintType(const std::string &Constraint) const;
Chris Lattnerf4dff842006-07-11 02:54:03 +0000373
Chris Lattner259e97c2006-01-31 19:43:35 +0000374 std::vector<unsigned>
Chris Lattner1efa40f2006-02-22 00:56:39 +0000375 getRegClassForInlineAsmConstraint(const std::string &Constraint,
376 MVT::ValueType VT) const;
Chris Lattner48884cd2007-08-25 00:47:38 +0000377
Chris Lattner5e764232008-04-26 23:02:14 +0000378 virtual const char *LowerXConstraint(MVT::ValueType ConstraintVT) const;
Dale Johannesenba2a0b92008-01-29 02:21:21 +0000379
Chris Lattner48884cd2007-08-25 00:47:38 +0000380 /// LowerAsmOperandForConstraint - Lower the specified operand into the Ops
381 /// vector. If it is invalid, don't add anything to Ops.
382 virtual void LowerAsmOperandForConstraint(SDOperand Op,
383 char ConstraintLetter,
384 std::vector<SDOperand> &Ops,
Chris Lattner5e764232008-04-26 23:02:14 +0000385 SelectionDAG &DAG) const;
Chris Lattner22aaf1d2006-10-31 20:13:11 +0000386
Chris Lattner91897772006-10-18 18:26:48 +0000387 /// getRegForInlineAsmConstraint - Given a physical register constraint
388 /// (e.g. {edx}), return the register number and the register class for the
389 /// register. This should only be used for C_Register constraints. On
390 /// error, this returns a register number of 0.
Chris Lattnerf76d1802006-07-31 23:26:50 +0000391 std::pair<unsigned, const TargetRegisterClass*>
392 getRegForInlineAsmConstraint(const std::string &Constraint,
393 MVT::ValueType VT) const;
394
Chris Lattnerc9addb72007-03-30 23:15:24 +0000395 /// isLegalAddressingMode - Return true if the addressing mode represented
396 /// by AM is legal for this target, for a load/store of the specified type.
397 virtual bool isLegalAddressingMode(const AddrMode &AM, const Type *Ty)const;
398
Evan Cheng2bd122c2007-10-26 01:56:11 +0000399 /// isTruncateFree - Return true if it's free to truncate a value of
400 /// type Ty1 to type Ty2. e.g. On x86 it's free to truncate a i32 value in
401 /// register EAX to i16 by referencing its sub-register AX.
402 virtual bool isTruncateFree(const Type *Ty1, const Type *Ty2) const;
Evan Cheng3c3ddb32007-10-29 19:58:20 +0000403 virtual bool isTruncateFree(MVT::ValueType VT1, MVT::ValueType VT2) const;
Evan Cheng2bd122c2007-10-26 01:56:11 +0000404
Evan Cheng0188ecb2006-03-22 18:59:22 +0000405 /// isShuffleMaskLegal - Targets can use this to indicate that they only
406 /// support *some* VECTOR_SHUFFLE operations, those with specific masks.
Chris Lattner91897772006-10-18 18:26:48 +0000407 /// By default, if a target supports the VECTOR_SHUFFLE node, all mask
408 /// values are assumed to be legal.
Evan Chengca6e8ea2006-03-22 22:07:06 +0000409 virtual bool isShuffleMaskLegal(SDOperand Mask, MVT::ValueType VT) const;
Evan Cheng39623da2006-04-20 08:58:49 +0000410
411 /// isVectorClearMaskLegal - Similar to isShuffleMaskLegal. This is
412 /// used by Targets can use this to indicate if there is a suitable
413 /// VECTOR_SHUFFLE that can be used to replace a VAND with a constant
414 /// pool entry.
Dan Gohman7d8143f2008-04-09 20:09:42 +0000415 virtual bool isVectorClearMaskLegal(const std::vector<SDOperand> &BVOps,
Evan Cheng39623da2006-04-20 08:58:49 +0000416 MVT::ValueType EVT,
417 SelectionDAG &DAG) const;
Evan Cheng6fd599f2008-03-05 01:30:59 +0000418
419 /// ShouldShrinkFPConstant - If true, then instruction selection should
420 /// seek to shrink the FP constant of the specified type to a smaller type
421 /// in order to save space and / or reduce runtime.
422 virtual bool ShouldShrinkFPConstant(MVT::ValueType VT) const {
423 // Don't shrink FP constpool if SSE2 is available since cvtss2sd is more
424 // expensive than a straight movsd. On the other hand, it's important to
425 // shrink long double fp constant since fldt is very slow.
426 return !X86ScalarSSEf64 || VT == MVT::f80;
427 }
Arnold Schwaighoferc85e1712007-10-11 19:40:01 +0000428
429 /// IsEligibleForTailCallOptimization - Check whether the call is eligible
430 /// for tail call optimization. Target which want to do tail call
431 /// optimization should implement this function.
432 virtual bool IsEligibleForTailCallOptimization(SDOperand Call,
433 SDOperand Ret,
434 SelectionDAG &DAG) const;
435
Dan Gohman707e0182008-04-12 04:36:06 +0000436 virtual const X86Subtarget* getSubtarget() {
437 return Subtarget;
Rafael Espindolaf1ba1ca2007-11-05 23:12:20 +0000438 }
439
Chris Lattner3d661852008-01-18 06:52:41 +0000440 /// isScalarFPTypeInSSEReg - Return true if the specified scalar FP type is
441 /// computed in an SSE register, not on the X87 floating point stack.
442 bool isScalarFPTypeInSSEReg(MVT::ValueType VT) const {
443 return (VT == MVT::f64 && X86ScalarSSEf64) || // f64 is when SSE2
444 (VT == MVT::f32 && X86ScalarSSEf32); // f32 is when SSE1
445 }
446
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +0000447 private:
Evan Cheng0db9fe62006-04-25 20:13:52 +0000448 /// Subtarget - Keep a pointer to the X86Subtarget around so that we can
449 /// make the right decision when generating code for different targets.
450 const X86Subtarget *Subtarget;
Dan Gohman6f0d0242008-02-10 18:45:23 +0000451 const TargetRegisterInfo *RegInfo;
Evan Cheng0db9fe62006-04-25 20:13:52 +0000452
Evan Cheng25ab6902006-09-08 06:48:29 +0000453 /// X86StackPtr - X86 physical register used as stack ptr.
454 unsigned X86StackPtr;
Arnold Schwaighoferc85e1712007-10-11 19:40:01 +0000455
Dale Johannesenf1fc3a82007-09-23 14:52:20 +0000456 /// X86ScalarSSEf32, X86ScalarSSEf64 - Select between SSE or x87
457 /// floating point ops.
458 /// When SSE is available, use it for f32 operations.
459 /// When SSE2 is available, use it for f64 operations.
460 bool X86ScalarSSEf32;
461 bool X86ScalarSSEf64;
Evan Cheng0d9e9762008-01-29 19:34:22 +0000462
Chris Lattner3085e152007-02-25 08:59:22 +0000463 SDNode *LowerCallResult(SDOperand Chain, SDOperand InFlag, SDNode*TheCall,
464 unsigned CallingConv, SelectionDAG &DAG);
Evan Cheng0d9e9762008-01-29 19:34:22 +0000465
Rafael Espindola7effac52007-09-14 15:48:13 +0000466 SDOperand LowerMemArgument(SDOperand Op, SelectionDAG &DAG,
467 const CCValAssign &VA, MachineFrameInfo *MFI,
Arnold Schwaighofer865c6812008-02-26 09:19:59 +0000468 unsigned CC, SDOperand Root, unsigned i);
Rafael Espindola7effac52007-09-14 15:48:13 +0000469
Rafael Espindola1b5dcc32007-08-31 15:06:30 +0000470 SDOperand LowerMemOpCallTo(SDOperand Op, SelectionDAG &DAG,
471 const SDOperand &StackPtr,
472 const CCValAssign &VA, SDOperand Chain,
473 SDOperand Arg);
474
Gordon Henriksen86737662008-01-05 16:56:59 +0000475 // Call lowering helpers.
476 bool IsCalleePop(SDOperand Op);
Arnold Schwaighofer258bb1b2008-02-26 22:21:54 +0000477 bool CallRequiresGOTPtrInReg(bool Is64Bit, bool IsTailCall);
478 bool CallRequiresFnAddressInReg(bool Is64Bit, bool IsTailCall);
Arnold Schwaighofer4b5324a2008-04-12 18:11:06 +0000479 SDOperand EmitTailCallLoadRetAddr(SelectionDAG &DAG, SDOperand &OutRetAddr,
480 SDOperand Chain, bool IsTailCall, bool Is64Bit,
481 int FPDiff);
Arnold Schwaighofer4b5324a2008-04-12 18:11:06 +0000482
Gordon Henriksen86737662008-01-05 16:56:59 +0000483 CCAssignFn *CCAssignFnForNode(SDOperand Op) const;
484 NameDecorationStyle NameDecorationForFORMAL_ARGUMENTS(SDOperand Op);
Arnold Schwaighoferc85e1712007-10-11 19:40:01 +0000485 unsigned GetAlignedArgumentStackSize(unsigned StackSize, SelectionDAG &DAG);
Evan Cheng559806f2006-01-27 08:10:46 +0000486
Chris Lattner27a6c732007-11-24 07:07:01 +0000487 std::pair<SDOperand,SDOperand> FP_TO_SINTHelper(SDOperand Op,
488 SelectionDAG &DAG);
489
Evan Cheng0db9fe62006-04-25 20:13:52 +0000490 SDOperand LowerBUILD_VECTOR(SDOperand Op, SelectionDAG &DAG);
491 SDOperand LowerVECTOR_SHUFFLE(SDOperand Op, SelectionDAG &DAG);
492 SDOperand LowerEXTRACT_VECTOR_ELT(SDOperand Op, SelectionDAG &DAG);
Nate Begeman14d12ca2008-02-11 04:19:36 +0000493 SDOperand LowerEXTRACT_VECTOR_ELT_SSE4(SDOperand Op, SelectionDAG &DAG);
Evan Cheng0db9fe62006-04-25 20:13:52 +0000494 SDOperand LowerINSERT_VECTOR_ELT(SDOperand Op, SelectionDAG &DAG);
Nate Begeman14d12ca2008-02-11 04:19:36 +0000495 SDOperand LowerINSERT_VECTOR_ELT_SSE4(SDOperand Op, SelectionDAG &DAG);
Evan Cheng0db9fe62006-04-25 20:13:52 +0000496 SDOperand LowerSCALAR_TO_VECTOR(SDOperand Op, SelectionDAG &DAG);
497 SDOperand LowerConstantPool(SDOperand Op, SelectionDAG &DAG);
498 SDOperand LowerGlobalAddress(SDOperand Op, SelectionDAG &DAG);
Lauro Ramos Venanciob3a04172007-04-20 21:38:10 +0000499 SDOperand LowerGlobalTLSAddress(SDOperand Op, SelectionDAG &DAG);
Evan Cheng0db9fe62006-04-25 20:13:52 +0000500 SDOperand LowerExternalSymbol(SDOperand Op, SelectionDAG &DAG);
501 SDOperand LowerShift(SDOperand Op, SelectionDAG &DAG);
502 SDOperand LowerSINT_TO_FP(SDOperand Op, SelectionDAG &DAG);
503 SDOperand LowerFP_TO_SINT(SDOperand Op, SelectionDAG &DAG);
504 SDOperand LowerFABS(SDOperand Op, SelectionDAG &DAG);
505 SDOperand LowerFNEG(SDOperand Op, SelectionDAG &DAG);
Evan Cheng68c47cb2007-01-05 07:55:56 +0000506 SDOperand LowerFCOPYSIGN(SDOperand Op, SelectionDAG &DAG);
Evan Chenge5f62042007-09-29 00:00:36 +0000507 SDOperand LowerSETCC(SDOperand Op, SelectionDAG &DAG);
Evan Cheng0db9fe62006-04-25 20:13:52 +0000508 SDOperand LowerSELECT(SDOperand Op, SelectionDAG &DAG);
509 SDOperand LowerBRCOND(SDOperand Op, SelectionDAG &DAG);
510 SDOperand LowerMEMSET(SDOperand Op, SelectionDAG &DAG);
Evan Cheng0db9fe62006-04-25 20:13:52 +0000511 SDOperand LowerJumpTable(SDOperand Op, SelectionDAG &DAG);
Evan Cheng32fe1032006-05-25 00:59:30 +0000512 SDOperand LowerCALL(SDOperand Op, SelectionDAG &DAG);
Evan Cheng0db9fe62006-04-25 20:13:52 +0000513 SDOperand LowerRET(SDOperand Op, SelectionDAG &DAG);
Anton Korobeynikov57fc00d2007-04-17 09:20:00 +0000514 SDOperand LowerDYNAMIC_STACKALLOC(SDOperand Op, SelectionDAG &DAG);
Evan Cheng1bc78042006-04-26 01:20:17 +0000515 SDOperand LowerFORMAL_ARGUMENTS(SDOperand Op, SelectionDAG &DAG);
Evan Cheng0db9fe62006-04-25 20:13:52 +0000516 SDOperand LowerVASTART(SDOperand Op, SelectionDAG &DAG);
Evan Chengae642192007-03-02 23:16:35 +0000517 SDOperand LowerVACOPY(SDOperand Op, SelectionDAG &DAG);
Evan Cheng0db9fe62006-04-25 20:13:52 +0000518 SDOperand LowerINTRINSIC_WO_CHAIN(SDOperand Op, SelectionDAG &DAG);
Nate Begemanbcc5f362007-01-29 22:58:52 +0000519 SDOperand LowerRETURNADDR(SDOperand Op, SelectionDAG &DAG);
520 SDOperand LowerFRAMEADDR(SDOperand Op, SelectionDAG &DAG);
Anton Korobeynikov2365f512007-07-14 14:06:15 +0000521 SDOperand LowerFRAME_TO_ARGS_OFFSET(SDOperand Op, SelectionDAG &DAG);
522 SDOperand LowerEH_RETURN(SDOperand Op, SelectionDAG &DAG);
Duncan Sandsb116fac2007-07-27 20:02:49 +0000523 SDOperand LowerTRAMPOLINE(SDOperand Op, SelectionDAG &DAG);
Dan Gohman1a024862008-01-31 00:41:03 +0000524 SDOperand LowerFLT_ROUNDS_(SDOperand Op, SelectionDAG &DAG);
Evan Cheng18efe262007-12-14 02:13:44 +0000525 SDOperand LowerCTLZ(SDOperand Op, SelectionDAG &DAG);
526 SDOperand LowerCTTZ(SDOperand Op, SelectionDAG &DAG);
Andrew Lenharthd19189e2008-03-05 01:15:49 +0000527 SDOperand LowerLCS(SDOperand Op, SelectionDAG &DAG);
Chris Lattner27a6c732007-11-24 07:07:01 +0000528 SDNode *ExpandFP_TO_SINT(SDNode *N, SelectionDAG &DAG);
529 SDNode *ExpandREADCYCLECOUNTER(SDNode *N, SelectionDAG &DAG);
Andrew Lenharthd19189e2008-03-05 01:15:49 +0000530 SDNode *ExpandATOMIC_LCS(SDNode *N, SelectionDAG &DAG);
Mon P Wang63307c32008-05-05 19:05:59 +0000531 SDNode *ExpandATOMIC_LSS(SDNode *N, SelectionDAG &DAG);
532
Dan Gohman707e0182008-04-12 04:36:06 +0000533 SDOperand EmitTargetCodeForMemset(SelectionDAG &DAG,
534 SDOperand Chain,
535 SDOperand Dst, SDOperand Src,
536 SDOperand Size, unsigned Align,
Dan Gohman1f13c682008-04-28 17:15:20 +0000537 const Value *DstSV, uint64_t DstSVOff);
Dan Gohman707e0182008-04-12 04:36:06 +0000538 SDOperand EmitTargetCodeForMemcpy(SelectionDAG &DAG,
539 SDOperand Chain,
540 SDOperand Dst, SDOperand Src,
541 SDOperand Size, unsigned Align,
542 bool AlwaysInline,
Dan Gohman1f13c682008-04-28 17:15:20 +0000543 const Value *DstSV, uint64_t DstSVOff,
544 const Value *SrcSV, uint64_t SrcSVOff);
Mon P Wang63307c32008-05-05 19:05:59 +0000545
546 /// Utility function to emit atomic bitwise operations (and, or, xor).
547 // It takes the bitwise instruction to expand, the associated machine basic
548 // block, and the associated X86 opcodes for reg/reg and reg/imm.
549 MachineBasicBlock *EmitAtomicBitwiseWithCustomInserter(
550 MachineInstr *BInstr,
551 MachineBasicBlock *BB,
552 unsigned regOpc,
553 unsigned immOpc);
554
555 /// Utility function to emit atomic min and max. It takes the min/max
556 // instruction to expand, the associated basic block, and the associated
557 // cmov opcode for moving the min or max value.
558 MachineBasicBlock *EmitAtomicMinMaxWithCustomInserter(MachineInstr *BInstr,
559 MachineBasicBlock *BB,
560 unsigned cmovOpc);
561
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +0000562 };
563}
564
Chris Lattnerdbdbf0c2005-11-15 00:40:23 +0000565#endif // X86ISELLOWERING_H