i386.h revision 1.1.1.6 1 /* Definitions of target machine for GCC for IA-32.
2 Copyright (C) 1988-2016 Free Software Foundation, Inc.
3
4 This file is part of GCC.
5
6 GCC is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 3, or (at your option)
9 any later version.
10
11 GCC is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 Under Section 7 of GPL version 3, you are granted additional
17 permissions described in the GCC Runtime Library Exception, version
18 3.1, as published by the Free Software Foundation.
19
20 You should have received a copy of the GNU General Public License and
21 a copy of the GCC Runtime Library Exception along with this program;
22 see the files COPYING3 and COPYING.RUNTIME respectively. If not, see
23 <http://www.gnu.org/licenses/>. */
24
25 /* The purpose of this file is to define the characteristics of the i386,
26 independent of assembler syntax or operating system.
27
28 Three other files build on this one to describe a specific assembler syntax:
29 bsd386.h, att386.h, and sun386.h.
30
31 The actual tm.h file for a particular system should include
32 this file, and then the file for the appropriate assembler syntax.
33
34 Many macros that specify assembler syntax are omitted entirely from
35 this file because they really belong in the files for particular
36 assemblers. These include RP, IP, LPREFIX, PUT_OP_SIZE, USE_STAR,
37 ADDR_BEG, ADDR_END, PRINT_IREG, PRINT_SCALE, PRINT_B_I_S, and many
38 that start with ASM_ or end in ASM_OP. */
39
40 /* Redefines for option macros. */
41
42 #define TARGET_64BIT TARGET_ISA_64BIT
43 #define TARGET_64BIT_P(x) TARGET_ISA_64BIT_P(x)
44 #define TARGET_MMX TARGET_ISA_MMX
45 #define TARGET_MMX_P(x) TARGET_ISA_MMX_P(x)
46 #define TARGET_3DNOW TARGET_ISA_3DNOW
47 #define TARGET_3DNOW_P(x) TARGET_ISA_3DNOW_P(x)
48 #define TARGET_3DNOW_A TARGET_ISA_3DNOW_A
49 #define TARGET_3DNOW_A_P(x) TARGET_ISA_3DNOW_A_P(x)
50 #define TARGET_SSE TARGET_ISA_SSE
51 #define TARGET_SSE_P(x) TARGET_ISA_SSE_P(x)
52 #define TARGET_SSE2 TARGET_ISA_SSE2
53 #define TARGET_SSE2_P(x) TARGET_ISA_SSE2_P(x)
54 #define TARGET_SSE3 TARGET_ISA_SSE3
55 #define TARGET_SSE3_P(x) TARGET_ISA_SSE3_P(x)
56 #define TARGET_SSSE3 TARGET_ISA_SSSE3
57 #define TARGET_SSSE3_P(x) TARGET_ISA_SSSE3_P(x)
58 #define TARGET_SSE4_1 TARGET_ISA_SSE4_1
59 #define TARGET_SSE4_1_P(x) TARGET_ISA_SSE4_1_P(x)
60 #define TARGET_SSE4_2 TARGET_ISA_SSE4_2
61 #define TARGET_SSE4_2_P(x) TARGET_ISA_SSE4_2_P(x)
62 #define TARGET_AVX TARGET_ISA_AVX
63 #define TARGET_AVX_P(x) TARGET_ISA_AVX_P(x)
64 #define TARGET_AVX2 TARGET_ISA_AVX2
65 #define TARGET_AVX2_P(x) TARGET_ISA_AVX2_P(x)
66 #define TARGET_AVX512F TARGET_ISA_AVX512F
67 #define TARGET_AVX512F_P(x) TARGET_ISA_AVX512F_P(x)
68 #define TARGET_AVX512PF TARGET_ISA_AVX512PF
69 #define TARGET_AVX512PF_P(x) TARGET_ISA_AVX512PF_P(x)
70 #define TARGET_AVX512ER TARGET_ISA_AVX512ER
71 #define TARGET_AVX512ER_P(x) TARGET_ISA_AVX512ER_P(x)
72 #define TARGET_AVX512CD TARGET_ISA_AVX512CD
73 #define TARGET_AVX512CD_P(x) TARGET_ISA_AVX512CD_P(x)
74 #define TARGET_AVX512DQ TARGET_ISA_AVX512DQ
75 #define TARGET_AVX512DQ_P(x) TARGET_ISA_AVX512DQ_P(x)
76 #define TARGET_AVX512BW TARGET_ISA_AVX512BW
77 #define TARGET_AVX512BW_P(x) TARGET_ISA_AVX512BW_P(x)
78 #define TARGET_AVX512VL TARGET_ISA_AVX512VL
79 #define TARGET_AVX512VL_P(x) TARGET_ISA_AVX512VL_P(x)
80 #define TARGET_AVX512VBMI TARGET_ISA_AVX512VBMI
81 #define TARGET_AVX512VBMI_P(x) TARGET_ISA_AVX512VBMI_P(x)
82 #define TARGET_AVX512IFMA TARGET_ISA_AVX512IFMA
83 #define TARGET_AVX512IFMA_P(x) TARGET_ISA_AVX512IFMA_P(x)
84 #define TARGET_FMA TARGET_ISA_FMA
85 #define TARGET_FMA_P(x) TARGET_ISA_FMA_P(x)
86 #define TARGET_SSE4A TARGET_ISA_SSE4A
87 #define TARGET_SSE4A_P(x) TARGET_ISA_SSE4A_P(x)
88 #define TARGET_FMA4 TARGET_ISA_FMA4
89 #define TARGET_FMA4_P(x) TARGET_ISA_FMA4_P(x)
90 #define TARGET_XOP TARGET_ISA_XOP
91 #define TARGET_XOP_P(x) TARGET_ISA_XOP_P(x)
92 #define TARGET_LWP TARGET_ISA_LWP
93 #define TARGET_LWP_P(x) TARGET_ISA_LWP_P(x)
94 #define TARGET_ROUND TARGET_ISA_ROUND
95 #define TARGET_ABM TARGET_ISA_ABM
96 #define TARGET_ABM_P(x) TARGET_ISA_ABM_P(x)
97 #define TARGET_BMI TARGET_ISA_BMI
98 #define TARGET_BMI_P(x) TARGET_ISA_BMI_P(x)
99 #define TARGET_BMI2 TARGET_ISA_BMI2
100 #define TARGET_BMI2_P(x) TARGET_ISA_BMI2_P(x)
101 #define TARGET_LZCNT TARGET_ISA_LZCNT
102 #define TARGET_LZCNT_P(x) TARGET_ISA_LZCNT_P(x)
103 #define TARGET_TBM TARGET_ISA_TBM
104 #define TARGET_TBM_P(x) TARGET_ISA_TBM_P(x)
105 #define TARGET_POPCNT TARGET_ISA_POPCNT
106 #define TARGET_POPCNT_P(x) TARGET_ISA_POPCNT_P(x)
107 #define TARGET_SAHF TARGET_ISA_SAHF
108 #define TARGET_SAHF_P(x) TARGET_ISA_SAHF_P(x)
109 #define TARGET_MOVBE TARGET_ISA_MOVBE
110 #define TARGET_MOVBE_P(x) TARGET_ISA_MOVBE_P(x)
111 #define TARGET_CRC32 TARGET_ISA_CRC32
112 #define TARGET_CRC32_P(x) TARGET_ISA_CRC32_P(x)
113 #define TARGET_AES TARGET_ISA_AES
114 #define TARGET_AES_P(x) TARGET_ISA_AES_P(x)
115 #define TARGET_SHA TARGET_ISA_SHA
116 #define TARGET_SHA_P(x) TARGET_ISA_SHA_P(x)
117 #define TARGET_CLFLUSHOPT TARGET_ISA_CLFLUSHOPT
118 #define TARGET_CLFLUSHOPT_P(x) TARGET_ISA_CLFLUSHOPT_P(x)
119 #define TARGET_CLZERO TARGET_ISA_CLZERO
120 #define TARGET_CLZERO_P(x) TARGET_ISA_CLZERO_P(x)
121 #define TARGET_XSAVEC TARGET_ISA_XSAVEC
122 #define TARGET_XSAVEC_P(x) TARGET_ISA_XSAVEC_P(x)
123 #define TARGET_XSAVES TARGET_ISA_XSAVES
124 #define TARGET_XSAVES_P(x) TARGET_ISA_XSAVES_P(x)
125 #define TARGET_PCLMUL TARGET_ISA_PCLMUL
126 #define TARGET_PCLMUL_P(x) TARGET_ISA_PCLMUL_P(x)
127 #define TARGET_CMPXCHG16B TARGET_ISA_CX16
128 #define TARGET_CMPXCHG16B_P(x) TARGET_ISA_CX16_P(x)
129 #define TARGET_FSGSBASE TARGET_ISA_FSGSBASE
130 #define TARGET_FSGSBASE_P(x) TARGET_ISA_FSGSBASE_P(x)
131 #define TARGET_RDRND TARGET_ISA_RDRND
132 #define TARGET_RDRND_P(x) TARGET_ISA_RDRND_P(x)
133 #define TARGET_F16C TARGET_ISA_F16C
134 #define TARGET_F16C_P(x) TARGET_ISA_F16C_P(x)
135 #define TARGET_RTM TARGET_ISA_RTM
136 #define TARGET_RTM_P(x) TARGET_ISA_RTM_P(x)
137 #define TARGET_HLE TARGET_ISA_HLE
138 #define TARGET_HLE_P(x) TARGET_ISA_HLE_P(x)
139 #define TARGET_RDSEED TARGET_ISA_RDSEED
140 #define TARGET_RDSEED_P(x) TARGET_ISA_RDSEED_P(x)
141 #define TARGET_PRFCHW TARGET_ISA_PRFCHW
142 #define TARGET_PRFCHW_P(x) TARGET_ISA_PRFCHW_P(x)
143 #define TARGET_ADX TARGET_ISA_ADX
144 #define TARGET_ADX_P(x) TARGET_ISA_ADX_P(x)
145 #define TARGET_FXSR TARGET_ISA_FXSR
146 #define TARGET_FXSR_P(x) TARGET_ISA_FXSR_P(x)
147 #define TARGET_XSAVE TARGET_ISA_XSAVE
148 #define TARGET_XSAVE_P(x) TARGET_ISA_XSAVE_P(x)
149 #define TARGET_XSAVEOPT TARGET_ISA_XSAVEOPT
150 #define TARGET_XSAVEOPT_P(x) TARGET_ISA_XSAVEOPT_P(x)
151 #define TARGET_PREFETCHWT1 TARGET_ISA_PREFETCHWT1
152 #define TARGET_PREFETCHWT1_P(x) TARGET_ISA_PREFETCHWT1_P(x)
153 #define TARGET_MPX TARGET_ISA_MPX
154 #define TARGET_MPX_P(x) TARGET_ISA_MPX_P(x)
155 #define TARGET_CLWB TARGET_ISA_CLWB
156 #define TARGET_CLWB_P(x) TARGET_ISA_CLWB_P(x)
157 #define TARGET_MWAITX TARGET_ISA_MWAITX
158 #define TARGET_MWAITX_P(x) TARGET_ISA_MWAITX_P(x)
159 #define TARGET_PKU TARGET_ISA_PKU
160 #define TARGET_PKU_P(x) TARGET_ISA_PKU_P(x)
161
162
163 #define TARGET_LP64 TARGET_ABI_64
164 #define TARGET_LP64_P(x) TARGET_ABI_64_P(x)
165 #define TARGET_X32 TARGET_ABI_X32
166 #define TARGET_X32_P(x) TARGET_ABI_X32_P(x)
167 #define TARGET_16BIT TARGET_CODE16
168 #define TARGET_16BIT_P(x) TARGET_CODE16_P(x)
169
170 /* SSE4.1 defines round instructions */
171 #define OPTION_MASK_ISA_ROUND OPTION_MASK_ISA_SSE4_1
172 #define TARGET_ISA_ROUND ((ix86_isa_flags & OPTION_MASK_ISA_ROUND) != 0)
173
174 #include "config/vxworks-dummy.h"
175
176 #include "config/i386/i386-opts.h"
177
178 #define MAX_STRINGOP_ALGS 4
179
180 /* Specify what algorithm to use for stringops on known size.
181 When size is unknown, the UNKNOWN_SIZE alg is used. When size is
182 known at compile time or estimated via feedback, the SIZE array
183 is walked in order until MAX is greater then the estimate (or -1
184 means infinity). Corresponding ALG is used then.
185 When NOALIGN is true the code guaranting the alignment of the memory
186 block is skipped.
187
188 For example initializer:
189 {{256, loop}, {-1, rep_prefix_4_byte}}
190 will use loop for blocks smaller or equal to 256 bytes, rep prefix will
191 be used otherwise. */
192 struct stringop_algs
193 {
194 const enum stringop_alg unknown_size;
195 const struct stringop_strategy {
196 const int max;
197 const enum stringop_alg alg;
198 int noalign;
199 } size [MAX_STRINGOP_ALGS];
200 };
201
202 /* Define the specific costs for a given cpu */
203
204 struct processor_costs {
205 const int add; /* cost of an add instruction */
206 const int lea; /* cost of a lea instruction */
207 const int shift_var; /* variable shift costs */
208 const int shift_const; /* constant shift costs */
209 const int mult_init[5]; /* cost of starting a multiply
210 in QImode, HImode, SImode, DImode, TImode*/
211 const int mult_bit; /* cost of multiply per each bit set */
212 const int divide[5]; /* cost of a divide/mod
213 in QImode, HImode, SImode, DImode, TImode*/
214 int movsx; /* The cost of movsx operation. */
215 int movzx; /* The cost of movzx operation. */
216 const int large_insn; /* insns larger than this cost more */
217 const int move_ratio; /* The threshold of number of scalar
218 memory-to-memory move insns. */
219 const int movzbl_load; /* cost of loading using movzbl */
220 const int int_load[3]; /* cost of loading integer registers
221 in QImode, HImode and SImode relative
222 to reg-reg move (2). */
223 const int int_store[3]; /* cost of storing integer register
224 in QImode, HImode and SImode */
225 const int fp_move; /* cost of reg,reg fld/fst */
226 const int fp_load[3]; /* cost of loading FP register
227 in SFmode, DFmode and XFmode */
228 const int fp_store[3]; /* cost of storing FP register
229 in SFmode, DFmode and XFmode */
230 const int mmx_move; /* cost of moving MMX register. */
231 const int mmx_load[2]; /* cost of loading MMX register
232 in SImode and DImode */
233 const int mmx_store[2]; /* cost of storing MMX register
234 in SImode and DImode */
235 const int sse_move; /* cost of moving SSE register. */
236 const int sse_load[3]; /* cost of loading SSE register
237 in SImode, DImode and TImode*/
238 const int sse_store[3]; /* cost of storing SSE register
239 in SImode, DImode and TImode*/
240 const int mmxsse_to_integer; /* cost of moving mmxsse register to
241 integer and vice versa. */
242 const int l1_cache_size; /* size of l1 cache, in kilobytes. */
243 const int l2_cache_size; /* size of l2 cache, in kilobytes. */
244 const int prefetch_block; /* bytes moved to cache for prefetch. */
245 const int simultaneous_prefetches; /* number of parallel prefetch
246 operations. */
247 const int branch_cost; /* Default value for BRANCH_COST. */
248 const int fadd; /* cost of FADD and FSUB instructions. */
249 const int fmul; /* cost of FMUL instruction. */
250 const int fdiv; /* cost of FDIV instruction. */
251 const int fabs; /* cost of FABS instruction. */
252 const int fchs; /* cost of FCHS instruction. */
253 const int fsqrt; /* cost of FSQRT instruction. */
254 /* Specify what algorithm
255 to use for stringops on unknown size. */
256 struct stringop_algs *memcpy, *memset;
257 const int scalar_stmt_cost; /* Cost of any scalar operation, excluding
258 load and store. */
259 const int scalar_load_cost; /* Cost of scalar load. */
260 const int scalar_store_cost; /* Cost of scalar store. */
261 const int vec_stmt_cost; /* Cost of any vector operation, excluding
262 load, store, vector-to-scalar and
263 scalar-to-vector operation. */
264 const int vec_to_scalar_cost; /* Cost of vect-to-scalar operation. */
265 const int scalar_to_vec_cost; /* Cost of scalar-to-vector operation. */
266 const int vec_align_load_cost; /* Cost of aligned vector load. */
267 const int vec_unalign_load_cost; /* Cost of unaligned vector load. */
268 const int vec_store_cost; /* Cost of vector store. */
269 const int cond_taken_branch_cost; /* Cost of taken branch for vectorizer
270 cost model. */
271 const int cond_not_taken_branch_cost;/* Cost of not taken branch for
272 vectorizer cost model. */
273 };
274
275 extern const struct processor_costs *ix86_cost;
276 extern const struct processor_costs ix86_size_cost;
277
278 #define ix86_cur_cost() \
279 (optimize_insn_for_size_p () ? &ix86_size_cost: ix86_cost)
280
281 /* Macros used in the machine description to test the flags. */
282
283 /* configure can arrange to change it. */
284
285 #ifndef TARGET_CPU_DEFAULT
286 #define TARGET_CPU_DEFAULT PROCESSOR_GENERIC
287 #endif
288
289 #ifndef TARGET_FPMATH_DEFAULT
290 #define TARGET_FPMATH_DEFAULT \
291 (TARGET_64BIT && TARGET_SSE ? FPMATH_SSE : FPMATH_387)
292 #endif
293
294 #ifndef TARGET_FPMATH_DEFAULT_P
295 #define TARGET_FPMATH_DEFAULT_P(x) \
296 (TARGET_64BIT_P(x) && TARGET_SSE_P(x) ? FPMATH_SSE : FPMATH_387)
297 #endif
298
299 /* If the i387 is disabled or -miamcu is used , then do not return
300 values in it. */
301 #define TARGET_FLOAT_RETURNS_IN_80387 \
302 (TARGET_FLOAT_RETURNS && TARGET_80387 && !TARGET_IAMCU)
303 #define TARGET_FLOAT_RETURNS_IN_80387_P(x) \
304 (TARGET_FLOAT_RETURNS_P(x) && TARGET_80387_P(x) && !TARGET_IAMCU_P(x))
305
306 /* 64bit Sledgehammer mode. For libgcc2 we make sure this is a
307 compile-time constant. */
308 #ifdef IN_LIBGCC2
309 #undef TARGET_64BIT
310 #ifdef __x86_64__
311 #define TARGET_64BIT 1
312 #else
313 #define TARGET_64BIT 0
314 #endif
315 #else
316 #ifndef TARGET_BI_ARCH
317 #undef TARGET_64BIT
318 #undef TARGET_64BIT_P
319 #if TARGET_64BIT_DEFAULT
320 #define TARGET_64BIT 1
321 #define TARGET_64BIT_P(x) 1
322 #else
323 #define TARGET_64BIT 0
324 #define TARGET_64BIT_P(x) 0
325 #endif
326 #endif
327 #endif
328
329 #define HAS_LONG_COND_BRANCH 1
330 #define HAS_LONG_UNCOND_BRANCH 1
331
332 #define TARGET_386 (ix86_tune == PROCESSOR_I386)
333 #define TARGET_486 (ix86_tune == PROCESSOR_I486)
334 #define TARGET_PENTIUM (ix86_tune == PROCESSOR_PENTIUM)
335 #define TARGET_PENTIUMPRO (ix86_tune == PROCESSOR_PENTIUMPRO)
336 #define TARGET_GEODE (ix86_tune == PROCESSOR_GEODE)
337 #define TARGET_K6 (ix86_tune == PROCESSOR_K6)
338 #define TARGET_ATHLON (ix86_tune == PROCESSOR_ATHLON)
339 #define TARGET_PENTIUM4 (ix86_tune == PROCESSOR_PENTIUM4)
340 #define TARGET_K8 (ix86_tune == PROCESSOR_K8)
341 #define TARGET_ATHLON_K8 (TARGET_K8 || TARGET_ATHLON)
342 #define TARGET_NOCONA (ix86_tune == PROCESSOR_NOCONA)
343 #define TARGET_CORE2 (ix86_tune == PROCESSOR_CORE2)
344 #define TARGET_NEHALEM (ix86_tune == PROCESSOR_NEHALEM)
345 #define TARGET_SANDYBRIDGE (ix86_tune == PROCESSOR_SANDYBRIDGE)
346 #define TARGET_HASWELL (ix86_tune == PROCESSOR_HASWELL)
347 #define TARGET_BONNELL (ix86_tune == PROCESSOR_BONNELL)
348 #define TARGET_SILVERMONT (ix86_tune == PROCESSOR_SILVERMONT)
349 #define TARGET_KNL (ix86_tune == PROCESSOR_KNL)
350 #define TARGET_SKYLAKE_AVX512 (ix86_tune == PROCESSOR_SKYLAKE_AVX512)
351 #define TARGET_INTEL (ix86_tune == PROCESSOR_INTEL)
352 #define TARGET_GENERIC (ix86_tune == PROCESSOR_GENERIC)
353 #define TARGET_AMDFAM10 (ix86_tune == PROCESSOR_AMDFAM10)
354 #define TARGET_BDVER1 (ix86_tune == PROCESSOR_BDVER1)
355 #define TARGET_BDVER2 (ix86_tune == PROCESSOR_BDVER2)
356 #define TARGET_BDVER3 (ix86_tune == PROCESSOR_BDVER3)
357 #define TARGET_BDVER4 (ix86_tune == PROCESSOR_BDVER4)
358 #define TARGET_BTVER1 (ix86_tune == PROCESSOR_BTVER1)
359 #define TARGET_BTVER2 (ix86_tune == PROCESSOR_BTVER2)
360 #define TARGET_ZNVER1 (ix86_tune == PROCESSOR_ZNVER1)
361
362 /* Feature tests against the various tunings. */
363 enum ix86_tune_indices {
364 #undef DEF_TUNE
365 #define DEF_TUNE(tune, name, selector) tune,
366 #include "x86-tune.def"
367 #undef DEF_TUNE
368 X86_TUNE_LAST
369 };
370
371 extern unsigned char ix86_tune_features[X86_TUNE_LAST];
372
373 #define TARGET_USE_LEAVE ix86_tune_features[X86_TUNE_USE_LEAVE]
374 #define TARGET_PUSH_MEMORY ix86_tune_features[X86_TUNE_PUSH_MEMORY]
375 #define TARGET_ZERO_EXTEND_WITH_AND \
376 ix86_tune_features[X86_TUNE_ZERO_EXTEND_WITH_AND]
377 #define TARGET_UNROLL_STRLEN ix86_tune_features[X86_TUNE_UNROLL_STRLEN]
378 #define TARGET_BRANCH_PREDICTION_HINTS \
379 ix86_tune_features[X86_TUNE_BRANCH_PREDICTION_HINTS]
380 #define TARGET_DOUBLE_WITH_ADD ix86_tune_features[X86_TUNE_DOUBLE_WITH_ADD]
381 #define TARGET_USE_SAHF ix86_tune_features[X86_TUNE_USE_SAHF]
382 #define TARGET_MOVX ix86_tune_features[X86_TUNE_MOVX]
383 #define TARGET_PARTIAL_REG_STALL ix86_tune_features[X86_TUNE_PARTIAL_REG_STALL]
384 #define TARGET_PARTIAL_FLAG_REG_STALL \
385 ix86_tune_features[X86_TUNE_PARTIAL_FLAG_REG_STALL]
386 #define TARGET_LCP_STALL \
387 ix86_tune_features[X86_TUNE_LCP_STALL]
388 #define TARGET_USE_HIMODE_FIOP ix86_tune_features[X86_TUNE_USE_HIMODE_FIOP]
389 #define TARGET_USE_SIMODE_FIOP ix86_tune_features[X86_TUNE_USE_SIMODE_FIOP]
390 #define TARGET_USE_MOV0 ix86_tune_features[X86_TUNE_USE_MOV0]
391 #define TARGET_USE_CLTD ix86_tune_features[X86_TUNE_USE_CLTD]
392 #define TARGET_USE_XCHGB ix86_tune_features[X86_TUNE_USE_XCHGB]
393 #define TARGET_SPLIT_LONG_MOVES ix86_tune_features[X86_TUNE_SPLIT_LONG_MOVES]
394 #define TARGET_READ_MODIFY_WRITE ix86_tune_features[X86_TUNE_READ_MODIFY_WRITE]
395 #define TARGET_READ_MODIFY ix86_tune_features[X86_TUNE_READ_MODIFY]
396 #define TARGET_PROMOTE_QImode ix86_tune_features[X86_TUNE_PROMOTE_QIMODE]
397 #define TARGET_FAST_PREFIX ix86_tune_features[X86_TUNE_FAST_PREFIX]
398 #define TARGET_SINGLE_STRINGOP ix86_tune_features[X86_TUNE_SINGLE_STRINGOP]
399 #define TARGET_MISALIGNED_MOVE_STRING_PRO_EPILOGUES \
400 ix86_tune_features[X86_TUNE_MISALIGNED_MOVE_STRING_PRO_EPILOGUES]
401 #define TARGET_QIMODE_MATH ix86_tune_features[X86_TUNE_QIMODE_MATH]
402 #define TARGET_HIMODE_MATH ix86_tune_features[X86_TUNE_HIMODE_MATH]
403 #define TARGET_PROMOTE_QI_REGS ix86_tune_features[X86_TUNE_PROMOTE_QI_REGS]
404 #define TARGET_PROMOTE_HI_REGS ix86_tune_features[X86_TUNE_PROMOTE_HI_REGS]
405 #define TARGET_SINGLE_POP ix86_tune_features[X86_TUNE_SINGLE_POP]
406 #define TARGET_DOUBLE_POP ix86_tune_features[X86_TUNE_DOUBLE_POP]
407 #define TARGET_SINGLE_PUSH ix86_tune_features[X86_TUNE_SINGLE_PUSH]
408 #define TARGET_DOUBLE_PUSH ix86_tune_features[X86_TUNE_DOUBLE_PUSH]
409 #define TARGET_INTEGER_DFMODE_MOVES \
410 ix86_tune_features[X86_TUNE_INTEGER_DFMODE_MOVES]
411 #define TARGET_PARTIAL_REG_DEPENDENCY \
412 ix86_tune_features[X86_TUNE_PARTIAL_REG_DEPENDENCY]
413 #define TARGET_SSE_PARTIAL_REG_DEPENDENCY \
414 ix86_tune_features[X86_TUNE_SSE_PARTIAL_REG_DEPENDENCY]
415 #define TARGET_SSE_UNALIGNED_LOAD_OPTIMAL \
416 ix86_tune_features[X86_TUNE_SSE_UNALIGNED_LOAD_OPTIMAL]
417 #define TARGET_SSE_UNALIGNED_STORE_OPTIMAL \
418 ix86_tune_features[X86_TUNE_SSE_UNALIGNED_STORE_OPTIMAL]
419 #define TARGET_SSE_PACKED_SINGLE_INSN_OPTIMAL \
420 ix86_tune_features[X86_TUNE_SSE_PACKED_SINGLE_INSN_OPTIMAL]
421 #define TARGET_SSE_SPLIT_REGS ix86_tune_features[X86_TUNE_SSE_SPLIT_REGS]
422 #define TARGET_SSE_TYPELESS_STORES \
423 ix86_tune_features[X86_TUNE_SSE_TYPELESS_STORES]
424 #define TARGET_SSE_LOAD0_BY_PXOR ix86_tune_features[X86_TUNE_SSE_LOAD0_BY_PXOR]
425 #define TARGET_MEMORY_MISMATCH_STALL \
426 ix86_tune_features[X86_TUNE_MEMORY_MISMATCH_STALL]
427 #define TARGET_PROLOGUE_USING_MOVE \
428 ix86_tune_features[X86_TUNE_PROLOGUE_USING_MOVE]
429 #define TARGET_EPILOGUE_USING_MOVE \
430 ix86_tune_features[X86_TUNE_EPILOGUE_USING_MOVE]
431 #define TARGET_SHIFT1 ix86_tune_features[X86_TUNE_SHIFT1]
432 #define TARGET_USE_FFREEP ix86_tune_features[X86_TUNE_USE_FFREEP]
433 #define TARGET_INTER_UNIT_MOVES_TO_VEC \
434 ix86_tune_features[X86_TUNE_INTER_UNIT_MOVES_TO_VEC]
435 #define TARGET_INTER_UNIT_MOVES_FROM_VEC \
436 ix86_tune_features[X86_TUNE_INTER_UNIT_MOVES_FROM_VEC]
437 #define TARGET_INTER_UNIT_CONVERSIONS \
438 ix86_tune_features[X86_TUNE_INTER_UNIT_CONVERSIONS]
439 #define TARGET_FOUR_JUMP_LIMIT ix86_tune_features[X86_TUNE_FOUR_JUMP_LIMIT]
440 #define TARGET_SCHEDULE ix86_tune_features[X86_TUNE_SCHEDULE]
441 #define TARGET_USE_BT ix86_tune_features[X86_TUNE_USE_BT]
442 #define TARGET_USE_INCDEC ix86_tune_features[X86_TUNE_USE_INCDEC]
443 #define TARGET_PAD_RETURNS ix86_tune_features[X86_TUNE_PAD_RETURNS]
444 #define TARGET_PAD_SHORT_FUNCTION \
445 ix86_tune_features[X86_TUNE_PAD_SHORT_FUNCTION]
446 #define TARGET_EXT_80387_CONSTANTS \
447 ix86_tune_features[X86_TUNE_EXT_80387_CONSTANTS]
448 #define TARGET_AVOID_VECTOR_DECODE \
449 ix86_tune_features[X86_TUNE_AVOID_VECTOR_DECODE]
450 #define TARGET_TUNE_PROMOTE_HIMODE_IMUL \
451 ix86_tune_features[X86_TUNE_PROMOTE_HIMODE_IMUL]
452 #define TARGET_SLOW_IMUL_IMM32_MEM \
453 ix86_tune_features[X86_TUNE_SLOW_IMUL_IMM32_MEM]
454 #define TARGET_SLOW_IMUL_IMM8 ix86_tune_features[X86_TUNE_SLOW_IMUL_IMM8]
455 #define TARGET_MOVE_M1_VIA_OR ix86_tune_features[X86_TUNE_MOVE_M1_VIA_OR]
456 #define TARGET_NOT_UNPAIRABLE ix86_tune_features[X86_TUNE_NOT_UNPAIRABLE]
457 #define TARGET_NOT_VECTORMODE ix86_tune_features[X86_TUNE_NOT_VECTORMODE]
458 #define TARGET_USE_VECTOR_FP_CONVERTS \
459 ix86_tune_features[X86_TUNE_USE_VECTOR_FP_CONVERTS]
460 #define TARGET_USE_VECTOR_CONVERTS \
461 ix86_tune_features[X86_TUNE_USE_VECTOR_CONVERTS]
462 #define TARGET_SLOW_PSHUFB \
463 ix86_tune_features[X86_TUNE_SLOW_PSHUFB]
464 #define TARGET_VECTOR_PARALLEL_EXECUTION \
465 ix86_tune_features[X86_TUNE_VECTOR_PARALLEL_EXECUTION]
466 #define TARGET_AVOID_4BYTE_PREFIXES \
467 ix86_tune_features[X86_TUNE_AVOID_4BYTE_PREFIXES]
468 #define TARGET_FUSE_CMP_AND_BRANCH_32 \
469 ix86_tune_features[X86_TUNE_FUSE_CMP_AND_BRANCH_32]
470 #define TARGET_FUSE_CMP_AND_BRANCH_64 \
471 ix86_tune_features[X86_TUNE_FUSE_CMP_AND_BRANCH_64]
472 #define TARGET_FUSE_CMP_AND_BRANCH \
473 (TARGET_64BIT ? TARGET_FUSE_CMP_AND_BRANCH_64 \
474 : TARGET_FUSE_CMP_AND_BRANCH_32)
475 #define TARGET_FUSE_CMP_AND_BRANCH_SOFLAGS \
476 ix86_tune_features[X86_TUNE_FUSE_CMP_AND_BRANCH_SOFLAGS]
477 #define TARGET_FUSE_ALU_AND_BRANCH \
478 ix86_tune_features[X86_TUNE_FUSE_ALU_AND_BRANCH]
479 #define TARGET_OPT_AGU ix86_tune_features[X86_TUNE_OPT_AGU]
480 #define TARGET_AVOID_LEA_FOR_ADDR \
481 ix86_tune_features[X86_TUNE_AVOID_LEA_FOR_ADDR]
482 #define TARGET_VECTORIZE_DOUBLE \
483 ix86_tune_features[X86_TUNE_VECTORIZE_DOUBLE]
484 #define TARGET_SOFTWARE_PREFETCHING_BENEFICIAL \
485 ix86_tune_features[X86_TUNE_SOFTWARE_PREFETCHING_BENEFICIAL]
486 #define TARGET_AVX128_OPTIMAL \
487 ix86_tune_features[X86_TUNE_AVX128_OPTIMAL]
488 #define TARGET_REASSOC_INT_TO_PARALLEL \
489 ix86_tune_features[X86_TUNE_REASSOC_INT_TO_PARALLEL]
490 #define TARGET_REASSOC_FP_TO_PARALLEL \
491 ix86_tune_features[X86_TUNE_REASSOC_FP_TO_PARALLEL]
492 #define TARGET_GENERAL_REGS_SSE_SPILL \
493 ix86_tune_features[X86_TUNE_GENERAL_REGS_SSE_SPILL]
494 #define TARGET_AVOID_MEM_OPND_FOR_CMOVE \
495 ix86_tune_features[X86_TUNE_AVOID_MEM_OPND_FOR_CMOVE]
496 #define TARGET_SPLIT_MEM_OPND_FOR_FP_CONVERTS \
497 ix86_tune_features[X86_TUNE_SPLIT_MEM_OPND_FOR_FP_CONVERTS]
498 #define TARGET_ADJUST_UNROLL \
499 ix86_tune_features[X86_TUNE_ADJUST_UNROLL]
500 #define TARGET_AVOID_FALSE_DEP_FOR_BMI \
501 ix86_tune_features[X86_TUNE_AVOID_FALSE_DEP_FOR_BMI]
502 #define TARGET_ONE_IF_CONV_INSN \
503 ix86_tune_features[X86_TUNE_ONE_IF_CONV_INSN]
504 #define TARGET_EMIT_VZEROUPPER \
505 ix86_tune_features[X86_TUNE_EMIT_VZEROUPPER]
506
507 /* Feature tests against the various architecture variations. */
508 enum ix86_arch_indices {
509 X86_ARCH_CMOV,
510 X86_ARCH_CMPXCHG,
511 X86_ARCH_CMPXCHG8B,
512 X86_ARCH_XADD,
513 X86_ARCH_BSWAP,
514
515 X86_ARCH_LAST
516 };
517
518 extern unsigned char ix86_arch_features[X86_ARCH_LAST];
519
520 #define TARGET_CMOV ix86_arch_features[X86_ARCH_CMOV]
521 #define TARGET_CMPXCHG ix86_arch_features[X86_ARCH_CMPXCHG]
522 #define TARGET_CMPXCHG8B ix86_arch_features[X86_ARCH_CMPXCHG8B]
523 #define TARGET_XADD ix86_arch_features[X86_ARCH_XADD]
524 #define TARGET_BSWAP ix86_arch_features[X86_ARCH_BSWAP]
525
526 /* For sane SSE instruction set generation we need fcomi instruction.
527 It is safe to enable all CMOVE instructions. Also, RDRAND intrinsic
528 expands to a sequence that includes conditional move. */
529 #define TARGET_CMOVE (TARGET_CMOV || TARGET_SSE || TARGET_RDRND)
530
531 #define TARGET_FISTTP (TARGET_SSE3 && TARGET_80387)
532
533 extern unsigned char x86_prefetch_sse;
534 #define TARGET_PREFETCH_SSE x86_prefetch_sse
535
536 #define ASSEMBLER_DIALECT (ix86_asm_dialect)
537
538 #define TARGET_SSE_MATH ((ix86_fpmath & FPMATH_SSE) != 0)
539 #define TARGET_MIX_SSE_I387 \
540 ((ix86_fpmath & (FPMATH_SSE | FPMATH_387)) == (FPMATH_SSE | FPMATH_387))
541
542 #define TARGET_HARD_SF_REGS (TARGET_80387 || TARGET_MMX || TARGET_SSE)
543 #define TARGET_HARD_DF_REGS (TARGET_80387 || TARGET_SSE)
544 #define TARGET_HARD_XF_REGS (TARGET_80387)
545
546 #define TARGET_GNU_TLS (ix86_tls_dialect == TLS_DIALECT_GNU)
547 #define TARGET_GNU2_TLS (ix86_tls_dialect == TLS_DIALECT_GNU2)
548 #define TARGET_ANY_GNU_TLS (TARGET_GNU_TLS || TARGET_GNU2_TLS)
549 #define TARGET_SUN_TLS 0
550
551 #ifndef TARGET_64BIT_DEFAULT
552 #define TARGET_64BIT_DEFAULT 0
553 #endif
554 #ifndef TARGET_TLS_DIRECT_SEG_REFS_DEFAULT
555 #define TARGET_TLS_DIRECT_SEG_REFS_DEFAULT 0
556 #endif
557
558 #define TARGET_SSP_GLOBAL_GUARD (ix86_stack_protector_guard == SSP_GLOBAL)
559 #define TARGET_SSP_TLS_GUARD (ix86_stack_protector_guard == SSP_TLS)
560
561 /* Fence to use after loop using storent. */
562
563 extern tree x86_mfence;
564 #define FENCE_FOLLOWING_MOVNT x86_mfence
565
566 /* Once GDB has been enhanced to deal with functions without frame
567 pointers, we can change this to allow for elimination of
568 the frame pointer in leaf functions. */
569 #define TARGET_DEFAULT 0
570
571 /* Extra bits to force. */
572 #define TARGET_SUBTARGET_DEFAULT 0
573 #define TARGET_SUBTARGET_ISA_DEFAULT 0
574
575 /* Extra bits to force on w/ 32-bit mode. */
576 #define TARGET_SUBTARGET32_DEFAULT 0
577 #define TARGET_SUBTARGET32_ISA_DEFAULT 0
578
579 /* Extra bits to force on w/ 64-bit mode. */
580 #define TARGET_SUBTARGET64_DEFAULT 0
581 #define TARGET_SUBTARGET64_ISA_DEFAULT 0
582
583 /* Replace MACH-O, ifdefs by in-line tests, where possible.
584 (a) Macros defined in config/i386/darwin.h */
585 #define TARGET_MACHO 0
586 #define TARGET_MACHO_BRANCH_ISLANDS 0
587 #define MACHOPIC_ATT_STUB 0
588 /* (b) Macros defined in config/darwin.h */
589 #define MACHO_DYNAMIC_NO_PIC_P 0
590 #define MACHOPIC_INDIRECT 0
591 #define MACHOPIC_PURE 0
592
593 /* For the RDOS */
594 #define TARGET_RDOS 0
595
596 /* For the Windows 64-bit ABI. */
597 #define TARGET_64BIT_MS_ABI (TARGET_64BIT && ix86_cfun_abi () == MS_ABI)
598
599 /* For the Windows 32-bit ABI. */
600 #define TARGET_32BIT_MS_ABI (!TARGET_64BIT && ix86_cfun_abi () == MS_ABI)
601
602 /* This is re-defined by cygming.h. */
603 #define TARGET_SEH 0
604
605 /* The default abi used by target. */
606 #define DEFAULT_ABI SYSV_ABI
607
608 /* The default TLS segment register used by target. */
609 #define DEFAULT_TLS_SEG_REG \
610 (TARGET_64BIT ? ADDR_SPACE_SEG_FS : ADDR_SPACE_SEG_GS)
611
612 /* Subtargets may reset this to 1 in order to enable 96-bit long double
613 with the rounding mode forced to 53 bits. */
614 #define TARGET_96_ROUND_53_LONG_DOUBLE 0
615
616 /* -march=native handling only makes sense with compiler running on
617 an x86 or x86_64 chip. If changing this condition, also change
618 the condition in driver-i386.c. */
619 #if defined(__i386__) || defined(__x86_64__)
620 /* In driver-i386.c. */
621 extern const char *host_detect_local_cpu (int argc, const char **argv);
622 #define EXTRA_SPEC_FUNCTIONS \
623 { "local_cpu_detect", host_detect_local_cpu },
624 #define HAVE_LOCAL_CPU_DETECT
625 #endif
626
627 #if TARGET_64BIT_DEFAULT
628 #define OPT_ARCH64 "!m32"
629 #define OPT_ARCH32 "m32"
630 #else
631 #define OPT_ARCH64 "m64|mx32"
632 #define OPT_ARCH32 "m64|mx32:;"
633 #endif
634
635 /* Support for configure-time defaults of some command line options.
636 The order here is important so that -march doesn't squash the
637 tune or cpu values. */
638 #define OPTION_DEFAULT_SPECS \
639 {"tune", "%{!mtune=*:%{!mcpu=*:%{!march=*:-mtune=%(VALUE)}}}" }, \
640 {"tune_32", "%{" OPT_ARCH32 ":%{!mtune=*:%{!mcpu=*:%{!march=*:-mtune=%(VALUE)}}}}" }, \
641 {"tune_64", "%{" OPT_ARCH64 ":%{!mtune=*:%{!mcpu=*:%{!march=*:-mtune=%(VALUE)}}}}" }, \
642 {"cpu", "%{!mtune=*:%{!mcpu=*:%{!march=*:-mtune=%(VALUE)}}}" }, \
643 {"cpu_32", "%{" OPT_ARCH32 ":%{!mtune=*:%{!mcpu=*:%{!march=*:-mtune=%(VALUE)}}}}" }, \
644 {"cpu_64", "%{" OPT_ARCH64 ":%{!mtune=*:%{!mcpu=*:%{!march=*:-mtune=%(VALUE)}}}}" }, \
645 {"arch", "%{!march=*:-march=%(VALUE)}"}, \
646 {"arch_32", "%{" OPT_ARCH32 ":%{!march=*:-march=%(VALUE)}}"}, \
647 {"arch_64", "%{" OPT_ARCH64 ":%{!march=*:-march=%(VALUE)}}"},
648
649 /* Specs for the compiler proper */
650
651 #ifndef CC1_CPU_SPEC
652 #define CC1_CPU_SPEC_1 ""
653
654 #ifndef HAVE_LOCAL_CPU_DETECT
655 #define CC1_CPU_SPEC CC1_CPU_SPEC_1
656 #else
657 #define CC1_CPU_SPEC CC1_CPU_SPEC_1 \
658 "%{march=native:%>march=native %:local_cpu_detect(arch) \
659 %{!mtune=*:%>mtune=native %:local_cpu_detect(tune)}} \
660 %{mtune=native:%>mtune=native %:local_cpu_detect(tune)}"
661 #endif
662 #endif
663
664 /* Target CPU builtins. */
666 #define TARGET_CPU_CPP_BUILTINS() ix86_target_macros ()
667
668 /* Target Pragmas. */
669 #define REGISTER_TARGET_PRAGMAS() ix86_register_pragmas ()
670
671 #ifndef CC1_SPEC
672 #define CC1_SPEC "%(cc1_cpu) "
673 #endif
674
675 /* This macro defines names of additional specifications to put in the
676 specs that can be used in various specifications like CC1_SPEC. Its
677 definition is an initializer with a subgrouping for each command option.
678
679 Each subgrouping contains a string constant, that defines the
680 specification name, and a string constant that used by the GCC driver
681 program.
682
683 Do not define this macro if it does not need to do anything. */
684
685 #ifndef SUBTARGET_EXTRA_SPECS
686 #define SUBTARGET_EXTRA_SPECS
687 #endif
688
689 #define EXTRA_SPECS \
690 { "cc1_cpu", CC1_CPU_SPEC }, \
691 SUBTARGET_EXTRA_SPECS
692
693
695 /* Set the value of FLT_EVAL_METHOD in float.h. When using only the
696 FPU, assume that the fpcw is set to extended precision; when using
697 only SSE, rounding is correct; when using both SSE and the FPU,
698 the rounding precision is indeterminate, since either may be chosen
699 apparently at random. */
700 #define TARGET_FLT_EVAL_METHOD \
701 (TARGET_80387 \
702 ? (TARGET_MIX_SSE_I387 ? -1 \
703 : (TARGET_SSE_MATH ? (TARGET_SSE2 ? 0 : -1) : 2)) \
704 : 0)
705
706 /* Whether to allow x87 floating-point arithmetic on MODE (one of
707 SFmode, DFmode and XFmode) in the current excess precision
708 configuration. */
709 #define X87_ENABLE_ARITH(MODE) \
710 (flag_excess_precision == EXCESS_PRECISION_FAST || (MODE) == XFmode)
711
712 /* Likewise, whether to allow direct conversions from integer mode
713 IMODE (HImode, SImode or DImode) to MODE. */
714 #define X87_ENABLE_FLOAT(MODE, IMODE) \
715 (flag_excess_precision == EXCESS_PRECISION_FAST \
716 || (MODE) == XFmode \
717 || ((MODE) == DFmode && (IMODE) == SImode) \
718 || (IMODE) == HImode)
719
720 /* target machine storage layout */
721
722 #define SHORT_TYPE_SIZE 16
723 #define INT_TYPE_SIZE 32
724 #define LONG_TYPE_SIZE (TARGET_X32 ? 32 : BITS_PER_WORD)
725 #define POINTER_SIZE (TARGET_X32 ? 32 : BITS_PER_WORD)
726 #define LONG_LONG_TYPE_SIZE 64
727 #define FLOAT_TYPE_SIZE 32
728 #define DOUBLE_TYPE_SIZE 64
729 #define LONG_DOUBLE_TYPE_SIZE \
730 (TARGET_LONG_DOUBLE_64 ? 64 : (TARGET_LONG_DOUBLE_128 ? 128 : 80))
731
732 #define WIDEST_HARDWARE_FP_SIZE 80
733
734 #if defined (TARGET_BI_ARCH) || TARGET_64BIT_DEFAULT
735 #define MAX_BITS_PER_WORD 64
736 #else
737 #define MAX_BITS_PER_WORD 32
738 #endif
739
740 /* Define this if most significant byte of a word is the lowest numbered. */
741 /* That is true on the 80386. */
742
743 #define BITS_BIG_ENDIAN 0
744
745 /* Define this if most significant byte of a word is the lowest numbered. */
746 /* That is not true on the 80386. */
747 #define BYTES_BIG_ENDIAN 0
748
749 /* Define this if most significant word of a multiword number is the lowest
750 numbered. */
751 /* Not true for 80386 */
752 #define WORDS_BIG_ENDIAN 0
753
754 /* Width of a word, in units (bytes). */
755 #define UNITS_PER_WORD (TARGET_64BIT ? 8 : 4)
756
757 #ifndef IN_LIBGCC2
758 #define MIN_UNITS_PER_WORD 4
759 #endif
760
761 /* Allocation boundary (in *bits*) for storing arguments in argument list. */
762 #define PARM_BOUNDARY BITS_PER_WORD
763
764 /* Boundary (in *bits*) on which stack pointer should be aligned. */
765 #define STACK_BOUNDARY \
766 (TARGET_64BIT && ix86_abi == MS_ABI ? 128 : BITS_PER_WORD)
767
768 /* Stack boundary of the main function guaranteed by OS. */
769 #define MAIN_STACK_BOUNDARY (TARGET_64BIT ? 128 : 32)
770
771 /* Minimum stack boundary. */
772 #define MIN_STACK_BOUNDARY BITS_PER_WORD
773
774 /* Boundary (in *bits*) on which the stack pointer prefers to be
775 aligned; the compiler cannot rely on having this alignment. */
776 #define PREFERRED_STACK_BOUNDARY ix86_preferred_stack_boundary
777
778 /* It should be MIN_STACK_BOUNDARY. But we set it to 128 bits for
779 both 32bit and 64bit, to support codes that need 128 bit stack
780 alignment for SSE instructions, but can't realign the stack. */
781 #define PREFERRED_STACK_BOUNDARY_DEFAULT \
782 (TARGET_IAMCU ? MIN_STACK_BOUNDARY : 128)
783
784 /* 1 if -mstackrealign should be turned on by default. It will
785 generate an alternate prologue and epilogue that realigns the
786 runtime stack if nessary. This supports mixing codes that keep a
787 4-byte aligned stack, as specified by i386 psABI, with codes that
788 need a 16-byte aligned stack, as required by SSE instructions. */
789 #define STACK_REALIGN_DEFAULT 0
790
791 /* Boundary (in *bits*) on which the incoming stack is aligned. */
792 #define INCOMING_STACK_BOUNDARY ix86_incoming_stack_boundary
793
794 /* According to Windows x64 software convention, the maximum stack allocatable
795 in the prologue is 4G - 8 bytes. Furthermore, there is a limited set of
796 instructions allowed to adjust the stack pointer in the epilog, forcing the
797 use of frame pointer for frames larger than 2 GB. This theorical limit
798 is reduced by 256, an over-estimated upper bound for the stack use by the
799 prologue.
800 We define only one threshold for both the prolog and the epilog. When the
801 frame size is larger than this threshold, we allocate the area to save SSE
802 regs, then save them, and then allocate the remaining. There is no SEH
803 unwind info for this later allocation. */
804 #define SEH_MAX_FRAME_SIZE ((2U << 30) - 256)
805
806 /* Target OS keeps a vector-aligned (128-bit, 16-byte) stack. This is
807 mandatory for the 64-bit ABI, and may or may not be true for other
808 operating systems. */
809 #define TARGET_KEEPS_VECTOR_ALIGNED_STACK TARGET_64BIT
810
811 /* Minimum allocation boundary for the code of a function. */
812 #define FUNCTION_BOUNDARY 8
813
814 /* C++ stores the virtual bit in the lowest bit of function pointers. */
815 #define TARGET_PTRMEMFUNC_VBIT_LOCATION ptrmemfunc_vbit_in_pfn
816
817 /* Minimum size in bits of the largest boundary to which any
818 and all fundamental data types supported by the hardware
819 might need to be aligned. No data type wants to be aligned
820 rounder than this.
821
822 Pentium+ prefers DFmode values to be aligned to 64 bit boundary
823 and Pentium Pro XFmode values at 128 bit boundaries.
824
825 When increasing the maximum, also update
826 TARGET_ABSOLUTE_BIGGEST_ALIGNMENT. */
827
828 #define BIGGEST_ALIGNMENT \
829 (TARGET_IAMCU ? 32 : (TARGET_AVX512F ? 512 : (TARGET_AVX ? 256 : 128)))
830
831 /* Maximum stack alignment. */
832 #define MAX_STACK_ALIGNMENT MAX_OFILE_ALIGNMENT
833
834 /* Alignment value for attribute ((aligned)). It is a constant since
835 it is the part of the ABI. We shouldn't change it with -mavx. */
836 #define ATTRIBUTE_ALIGNED_VALUE (TARGET_IAMCU ? 32 : 128)
837
838 /* Decide whether a variable of mode MODE should be 128 bit aligned. */
839 #define ALIGN_MODE_128(MODE) \
840 ((MODE) == XFmode || SSE_REG_MODE_P (MODE))
841
842 /* The published ABIs say that doubles should be aligned on word
843 boundaries, so lower the alignment for structure fields unless
844 -malign-double is set. */
845
846 /* ??? Blah -- this macro is used directly by libobjc. Since it
847 supports no vector modes, cut out the complexity and fall back
848 on BIGGEST_FIELD_ALIGNMENT. */
849 #ifdef IN_TARGET_LIBS
850 #ifdef __x86_64__
851 #define BIGGEST_FIELD_ALIGNMENT 128
852 #else
853 #define BIGGEST_FIELD_ALIGNMENT 32
854 #endif
855 #else
856 #define ADJUST_FIELD_ALIGN(FIELD, COMPUTED) \
857 x86_field_alignment ((FIELD), (COMPUTED))
858 #endif
859
860 /* If defined, a C expression to compute the alignment given to a
861 constant that is being placed in memory. EXP is the constant
862 and ALIGN is the alignment that the object would ordinarily have.
863 The value of this macro is used instead of that alignment to align
864 the object.
865
866 If this macro is not defined, then ALIGN is used.
867
868 The typical use of this macro is to increase alignment for string
869 constants to be word aligned so that `strcpy' calls that copy
870 constants can be done inline. */
871
872 #define CONSTANT_ALIGNMENT(EXP, ALIGN) ix86_constant_alignment ((EXP), (ALIGN))
873
874 /* If defined, a C expression to compute the alignment for a static
875 variable. TYPE is the data type, and ALIGN is the alignment that
876 the object would ordinarily have. The value of this macro is used
877 instead of that alignment to align the object.
878
879 If this macro is not defined, then ALIGN is used.
880
881 One use of this macro is to increase alignment of medium-size
882 data to make it all fit in fewer cache lines. Another is to
883 cause character arrays to be word-aligned so that `strcpy' calls
884 that copy constants to character arrays can be done inline. */
885
886 #define DATA_ALIGNMENT(TYPE, ALIGN) \
887 ix86_data_alignment ((TYPE), (ALIGN), true)
888
889 /* Similar to DATA_ALIGNMENT, but for the cases where the ABI mandates
890 some alignment increase, instead of optimization only purposes. E.g.
891 AMD x86-64 psABI says that variables with array type larger than 15 bytes
892 must be aligned to 16 byte boundaries.
893
894 If this macro is not defined, then ALIGN is used. */
895
896 #define DATA_ABI_ALIGNMENT(TYPE, ALIGN) \
897 ix86_data_alignment ((TYPE), (ALIGN), false)
898
899 /* If defined, a C expression to compute the alignment for a local
900 variable. TYPE is the data type, and ALIGN is the alignment that
901 the object would ordinarily have. The value of this macro is used
902 instead of that alignment to align the object.
903
904 If this macro is not defined, then ALIGN is used.
905
906 One use of this macro is to increase alignment of medium-size
907 data to make it all fit in fewer cache lines. */
908
909 #define LOCAL_ALIGNMENT(TYPE, ALIGN) \
910 ix86_local_alignment ((TYPE), VOIDmode, (ALIGN))
911
912 /* If defined, a C expression to compute the alignment for stack slot.
913 TYPE is the data type, MODE is the widest mode available, and ALIGN
914 is the alignment that the slot would ordinarily have. The value of
915 this macro is used instead of that alignment to align the slot.
916
917 If this macro is not defined, then ALIGN is used when TYPE is NULL,
918 Otherwise, LOCAL_ALIGNMENT will be used.
919
920 One use of this macro is to set alignment of stack slot to the
921 maximum alignment of all possible modes which the slot may have. */
922
923 #define STACK_SLOT_ALIGNMENT(TYPE, MODE, ALIGN) \
924 ix86_local_alignment ((TYPE), (MODE), (ALIGN))
925
926 /* If defined, a C expression to compute the alignment for a local
927 variable DECL.
928
929 If this macro is not defined, then
930 LOCAL_ALIGNMENT (TREE_TYPE (DECL), DECL_ALIGN (DECL)) will be used.
931
932 One use of this macro is to increase alignment of medium-size
933 data to make it all fit in fewer cache lines. */
934
935 #define LOCAL_DECL_ALIGNMENT(DECL) \
936 ix86_local_alignment ((DECL), VOIDmode, DECL_ALIGN (DECL))
937
938 /* If defined, a C expression to compute the minimum required alignment
939 for dynamic stack realignment purposes for EXP (a TYPE or DECL),
940 MODE, assuming normal alignment ALIGN.
941
942 If this macro is not defined, then (ALIGN) will be used. */
943
944 #define MINIMUM_ALIGNMENT(EXP, MODE, ALIGN) \
945 ix86_minimum_alignment ((EXP), (MODE), (ALIGN))
946
947
948 /* Set this nonzero if move instructions will actually fail to work
949 when given unaligned data. */
950 #define STRICT_ALIGNMENT 0
951
952 /* If bit field type is int, don't let it cross an int,
953 and give entire struct the alignment of an int. */
954 /* Required on the 386 since it doesn't have bit-field insns. */
955 #define PCC_BITFIELD_TYPE_MATTERS 1
956
957 /* Standard register usage. */
959
960 /* This processor has special stack-like registers. See reg-stack.c
961 for details. */
962
963 #define STACK_REGS
964
965 #define IS_STACK_MODE(MODE) \
966 (((MODE) == SFmode && !(TARGET_SSE && TARGET_SSE_MATH)) \
967 || ((MODE) == DFmode && !(TARGET_SSE2 && TARGET_SSE_MATH)) \
968 || (MODE) == XFmode)
969
970 /* Number of actual hardware registers.
971 The hardware registers are assigned numbers for the compiler
972 from 0 to just below FIRST_PSEUDO_REGISTER.
973 All registers that the compiler knows about must be given numbers,
974 even those that are not normally considered general registers.
975
976 In the 80386 we give the 8 general purpose registers the numbers 0-7.
977 We number the floating point registers 8-15.
978 Note that registers 0-7 can be accessed as a short or int,
979 while only 0-3 may be used with byte `mov' instructions.
980
981 Reg 16 does not correspond to any hardware register, but instead
982 appears in the RTL as an argument pointer prior to reload, and is
983 eliminated during reloading in favor of either the stack or frame
984 pointer. */
985
986 #define FIRST_PSEUDO_REGISTER FIRST_PSEUDO_REG
987
988 /* Number of hardware registers that go into the DWARF-2 unwind info.
989 If not defined, equals FIRST_PSEUDO_REGISTER. */
990
991 #define DWARF_FRAME_REGISTERS 17
992
993 /* 1 for registers that have pervasive standard uses
994 and are not available for the register allocator.
995 On the 80386, the stack pointer is such, as is the arg pointer.
996
997 REX registers are disabled for 32bit targets in
998 TARGET_CONDITIONAL_REGISTER_USAGE. */
999
1000 #define FIXED_REGISTERS \
1001 /*ax,dx,cx,bx,si,di,bp,sp,st,st1,st2,st3,st4,st5,st6,st7*/ \
1002 { 0, 0, 0, 0, 0, 0, 0, 1, 0, 0, 0, 0, 0, 0, 0, 0, \
1003 /*arg,flags,fpsr,fpcr,frame*/ \
1004 1, 1, 1, 1, 1, \
1005 /*xmm0,xmm1,xmm2,xmm3,xmm4,xmm5,xmm6,xmm7*/ \
1006 0, 0, 0, 0, 0, 0, 0, 0, \
1007 /* mm0, mm1, mm2, mm3, mm4, mm5, mm6, mm7*/ \
1008 0, 0, 0, 0, 0, 0, 0, 0, \
1009 /* r8, r9, r10, r11, r12, r13, r14, r15*/ \
1010 0, 0, 0, 0, 0, 0, 0, 0, \
1011 /*xmm8,xmm9,xmm10,xmm11,xmm12,xmm13,xmm14,xmm15*/ \
1012 0, 0, 0, 0, 0, 0, 0, 0, \
1013 /*xmm16,xmm17,xmm18,xmm19,xmm20,xmm21,xmm22,xmm23*/ \
1014 0, 0, 0, 0, 0, 0, 0, 0, \
1015 /*xmm24,xmm25,xmm26,xmm27,xmm28,xmm29,xmm30,xmm31*/ \
1016 0, 0, 0, 0, 0, 0, 0, 0, \
1017 /* k0, k1, k2, k3, k4, k5, k6, k7*/ \
1018 0, 0, 0, 0, 0, 0, 0, 0, \
1019 /* b0, b1, b2, b3*/ \
1020 0, 0, 0, 0 }
1021
1022 /* 1 for registers not available across function calls.
1023 These must include the FIXED_REGISTERS and also any
1024 registers that can be used without being saved.
1025 The latter must include the registers where values are returned
1026 and the register where structure-value addresses are passed.
1027 Aside from that, you can include as many other registers as you like.
1028
1029 Value is set to 1 if the register is call used unconditionally.
1030 Bit one is set if the register is call used on TARGET_32BIT ABI.
1031 Bit two is set if the register is call used on TARGET_64BIT ABI.
1032 Bit three is set if the register is call used on TARGET_64BIT_MS_ABI.
1033
1034 Proper values are computed in TARGET_CONDITIONAL_REGISTER_USAGE. */
1035
1036 #define CALL_USED_REGISTERS_MASK(IS_64BIT_MS_ABI) \
1037 ((IS_64BIT_MS_ABI) ? (1 << 3) : TARGET_64BIT ? (1 << 2) : (1 << 1))
1038
1039 #define CALL_USED_REGISTERS \
1040 /*ax,dx,cx,bx,si,di,bp,sp,st,st1,st2,st3,st4,st5,st6,st7*/ \
1041 { 1, 1, 1, 0, 4, 4, 0, 1, 1, 1, 1, 1, 1, 1, 1, 1, \
1042 /*arg,flags,fpsr,fpcr,frame*/ \
1043 1, 1, 1, 1, 1, \
1044 /*xmm0,xmm1,xmm2,xmm3,xmm4,xmm5,xmm6,xmm7*/ \
1045 1, 1, 1, 1, 1, 1, 6, 6, \
1046 /* mm0, mm1, mm2, mm3, mm4, mm5, mm6, mm7*/ \
1047 1, 1, 1, 1, 1, 1, 1, 1, \
1048 /* r8, r9, r10, r11, r12, r13, r14, r15*/ \
1049 1, 1, 1, 1, 2, 2, 2, 2, \
1050 /*xmm8,xmm9,xmm10,xmm11,xmm12,xmm13,xmm14,xmm15*/ \
1051 6, 6, 6, 6, 6, 6, 6, 6, \
1052 /*xmm16,xmm17,xmm18,xmm19,xmm20,xmm21,xmm22,xmm23*/ \
1053 6, 6, 6, 6, 6, 6, 6, 6, \
1054 /*xmm24,xmm25,xmm26,xmm27,xmm28,xmm29,xmm30,xmm31*/ \
1055 6, 6, 6, 6, 6, 6, 6, 6, \
1056 /* k0, k1, k2, k3, k4, k5, k6, k7*/ \
1057 1, 1, 1, 1, 1, 1, 1, 1, \
1058 /* b0, b1, b2, b3*/ \
1059 1, 1, 1, 1 }
1060
1061 /* Order in which to allocate registers. Each register must be
1062 listed once, even those in FIXED_REGISTERS. List frame pointer
1063 late and fixed registers last. Note that, in general, we prefer
1064 registers listed in CALL_USED_REGISTERS, keeping the others
1065 available for storage of persistent values.
1066
1067 The ADJUST_REG_ALLOC_ORDER actually overwrite the order,
1068 so this is just empty initializer for array. */
1069
1070 #define REG_ALLOC_ORDER \
1071 { 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17,\
1072 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, \
1073 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, \
1074 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, \
1075 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, \
1076 78, 79, 80 }
1077
1078 /* ADJUST_REG_ALLOC_ORDER is a macro which permits reg_alloc_order
1079 to be rearranged based on a particular function. When using sse math,
1080 we want to allocate SSE before x87 registers and vice versa. */
1081
1082 #define ADJUST_REG_ALLOC_ORDER x86_order_regs_for_local_alloc ()
1083
1084
1085 #define OVERRIDE_ABI_FORMAT(FNDECL) ix86_call_abi_override (FNDECL)
1086
1087 /* Return number of consecutive hard regs needed starting at reg REGNO
1088 to hold something of mode MODE.
1089 This is ordinarily the length in words of a value of mode MODE
1090 but can be less for certain modes in special long registers.
1091
1092 Actually there are no two word move instructions for consecutive
1093 registers. And only registers 0-3 may have mov byte instructions
1094 applied to them. */
1095
1096 #define HARD_REGNO_NREGS(REGNO, MODE) \
1097 (STACK_REGNO_P (REGNO) || SSE_REGNO_P (REGNO) || MMX_REGNO_P (REGNO) \
1098 || MASK_REGNO_P (REGNO) || BND_REGNO_P (REGNO) \
1099 ? (COMPLEX_MODE_P (MODE) ? 2 : 1) \
1100 : ((MODE) == XFmode \
1101 ? (TARGET_64BIT ? 2 : 3) \
1102 : ((MODE) == XCmode \
1103 ? (TARGET_64BIT ? 4 : 6) \
1104 : CEIL (GET_MODE_SIZE (MODE), UNITS_PER_WORD))))
1105
1106 #define HARD_REGNO_NREGS_HAS_PADDING(REGNO, MODE) \
1107 ((TARGET_128BIT_LONG_DOUBLE && !TARGET_64BIT) \
1108 ? (STACK_REGNO_P (REGNO) || SSE_REGNO_P (REGNO) || MMX_REGNO_P (REGNO) \
1109 ? 0 \
1110 : ((MODE) == XFmode || (MODE) == XCmode)) \
1111 : 0)
1112
1113 #define HARD_REGNO_NREGS_WITH_PADDING(REGNO, MODE) ((MODE) == XFmode ? 4 : 8)
1114
1115 #define VALID_AVX256_REG_MODE(MODE) \
1116 ((MODE) == V32QImode || (MODE) == V16HImode || (MODE) == V8SImode \
1117 || (MODE) == V4DImode || (MODE) == V2TImode || (MODE) == V8SFmode \
1118 || (MODE) == V4DFmode)
1119
1120 #define VALID_AVX256_REG_OR_OI_MODE(MODE) \
1121 (VALID_AVX256_REG_MODE (MODE) || (MODE) == OImode)
1122
1123 #define VALID_AVX512F_SCALAR_MODE(MODE) \
1124 ((MODE) == DImode || (MODE) == DFmode || (MODE) == SImode \
1125 || (MODE) == SFmode)
1126
1127 #define VALID_AVX512F_REG_MODE(MODE) \
1128 ((MODE) == V8DImode || (MODE) == V8DFmode || (MODE) == V64QImode \
1129 || (MODE) == V16SImode || (MODE) == V16SFmode || (MODE) == V32HImode \
1130 || (MODE) == V4TImode)
1131
1132 #define VALID_AVX512F_REG_OR_XI_MODE(MODE) \
1133 (VALID_AVX512F_REG_MODE (MODE) || (MODE) == XImode)
1134
1135 #define VALID_AVX512VL_128_REG_MODE(MODE) \
1136 ((MODE) == V2DImode || (MODE) == V2DFmode || (MODE) == V16QImode \
1137 || (MODE) == V4SImode || (MODE) == V4SFmode || (MODE) == V8HImode)
1138
1139 #define VALID_SSE2_REG_MODE(MODE) \
1140 ((MODE) == V16QImode || (MODE) == V8HImode || (MODE) == V2DFmode \
1141 || (MODE) == V2DImode || (MODE) == DFmode)
1142
1143 #define VALID_SSE_REG_MODE(MODE) \
1144 ((MODE) == V1TImode || (MODE) == TImode \
1145 || (MODE) == V4SFmode || (MODE) == V4SImode \
1146 || (MODE) == SFmode || (MODE) == TFmode)
1147
1148 #define VALID_MMX_REG_MODE_3DNOW(MODE) \
1149 ((MODE) == V2SFmode || (MODE) == SFmode)
1150
1151 #define VALID_MMX_REG_MODE(MODE) \
1152 ((MODE == V1DImode) || (MODE) == DImode \
1153 || (MODE) == V2SImode || (MODE) == SImode \
1154 || (MODE) == V4HImode || (MODE) == V8QImode)
1155
1156 #define VALID_MASK_REG_MODE(MODE) ((MODE) == HImode || (MODE) == QImode)
1157
1158 #define VALID_MASK_AVX512BW_MODE(MODE) ((MODE) == SImode || (MODE) == DImode)
1159
1160 #define VALID_BND_REG_MODE(MODE) \
1161 (TARGET_64BIT ? (MODE) == BND64mode : (MODE) == BND32mode)
1162
1163 #define VALID_DFP_MODE_P(MODE) \
1164 ((MODE) == SDmode || (MODE) == DDmode || (MODE) == TDmode)
1165
1166 #define VALID_FP_MODE_P(MODE) \
1167 ((MODE) == SFmode || (MODE) == DFmode || (MODE) == XFmode \
1168 || (MODE) == SCmode || (MODE) == DCmode || (MODE) == XCmode) \
1169
1170 #define VALID_INT_MODE_P(MODE) \
1171 ((MODE) == QImode || (MODE) == HImode || (MODE) == SImode \
1172 || (MODE) == DImode \
1173 || (MODE) == CQImode || (MODE) == CHImode || (MODE) == CSImode \
1174 || (MODE) == CDImode \
1175 || (TARGET_64BIT && ((MODE) == TImode || (MODE) == CTImode \
1176 || (MODE) == TFmode || (MODE) == TCmode)))
1177
1178 /* Return true for modes passed in SSE registers. */
1179 #define SSE_REG_MODE_P(MODE) \
1180 ((MODE) == V1TImode || (MODE) == TImode || (MODE) == V16QImode \
1181 || (MODE) == TFmode || (MODE) == V8HImode || (MODE) == V2DFmode \
1182 || (MODE) == V2DImode || (MODE) == V4SFmode || (MODE) == V4SImode \
1183 || (MODE) == V32QImode || (MODE) == V16HImode || (MODE) == V8SImode \
1184 || (MODE) == V4DImode || (MODE) == V8SFmode || (MODE) == V4DFmode \
1185 || (MODE) == V2TImode || (MODE) == V8DImode || (MODE) == V64QImode \
1186 || (MODE) == V16SImode || (MODE) == V32HImode || (MODE) == V8DFmode \
1187 || (MODE) == V16SFmode)
1188
1189 #define X87_FLOAT_MODE_P(MODE) \
1190 (TARGET_80387 && ((MODE) == SFmode || (MODE) == DFmode || (MODE) == XFmode))
1191
1192 #define SSE_FLOAT_MODE_P(MODE) \
1193 ((TARGET_SSE && (MODE) == SFmode) || (TARGET_SSE2 && (MODE) == DFmode))
1194
1195 #define FMA4_VEC_FLOAT_MODE_P(MODE) \
1196 (TARGET_FMA4 && ((MODE) == V4SFmode || (MODE) == V2DFmode \
1197 || (MODE) == V8SFmode || (MODE) == V4DFmode))
1198
1199 /* Value is 1 if hard register REGNO can hold a value of machine-mode MODE. */
1200
1201 #define HARD_REGNO_MODE_OK(REGNO, MODE) \
1202 ix86_hard_regno_mode_ok ((REGNO), (MODE))
1203
1204 /* Value is 1 if it is a good idea to tie two pseudo registers
1205 when one has mode MODE1 and one has mode MODE2.
1206 If HARD_REGNO_MODE_OK could produce different values for MODE1 and MODE2,
1207 for any hard reg, then this must be 0 for correct output. */
1208
1209 #define MODES_TIEABLE_P(MODE1, MODE2) \
1210 ix86_modes_tieable_p ((MODE1), (MODE2))
1211
1212 /* It is possible to write patterns to move flags; but until someone
1213 does it, */
1214 #define AVOID_CCMODE_COPIES
1215
1216 /* Specify the modes required to caller save a given hard regno.
1217 We do this on i386 to prevent flags from being saved at all.
1218
1219 Kill any attempts to combine saving of modes. */
1220
1221 #define HARD_REGNO_CALLER_SAVE_MODE(REGNO, NREGS, MODE) \
1222 (CC_REGNO_P (REGNO) ? VOIDmode \
1223 : MMX_REGNO_P (REGNO) ? V8QImode \
1224 : (MODE) == VOIDmode && (NREGS) != 1 ? VOIDmode \
1225 : (MODE) == VOIDmode ? choose_hard_reg_mode ((REGNO), (NREGS), false) \
1226 : (MODE) == HImode && !(TARGET_PARTIAL_REG_STALL \
1227 || MASK_REGNO_P (REGNO)) ? SImode \
1228 : (MODE) == QImode && !(TARGET_64BIT || QI_REGNO_P (REGNO) \
1229 || MASK_REGNO_P (REGNO)) ? SImode \
1230 : (MODE))
1231
1232 /* The only ABI that saves SSE registers across calls is Win64 (thus no
1233 need to check the current ABI here), and with AVX enabled Win64 only
1234 guarantees that the low 16 bytes are saved. */
1235 #define HARD_REGNO_CALL_PART_CLOBBERED(REGNO, MODE) \
1236 (SSE_REGNO_P (REGNO) && GET_MODE_SIZE (MODE) > 16)
1237
1238 /* Specify the registers used for certain standard purposes.
1239 The values of these macros are register numbers. */
1240
1241 /* on the 386 the pc register is %eip, and is not usable as a general
1242 register. The ordinary mov instructions won't work */
1243 /* #define PC_REGNUM */
1244
1245 /* Base register for access to arguments of the function. */
1246 #define ARG_POINTER_REGNUM ARGP_REG
1247
1248 /* Register to use for pushing function arguments. */
1249 #define STACK_POINTER_REGNUM SP_REG
1250
1251 /* Base register for access to local variables of the function. */
1252 #define FRAME_POINTER_REGNUM FRAME_REG
1253 #define HARD_FRAME_POINTER_REGNUM BP_REG
1254
1255 #define FIRST_INT_REG AX_REG
1256 #define LAST_INT_REG SP_REG
1257
1258 #define FIRST_QI_REG AX_REG
1259 #define LAST_QI_REG BX_REG
1260
1261 /* First & last stack-like regs */
1262 #define FIRST_STACK_REG ST0_REG
1263 #define LAST_STACK_REG ST7_REG
1264
1265 #define FIRST_SSE_REG XMM0_REG
1266 #define LAST_SSE_REG XMM7_REG
1267
1268 #define FIRST_MMX_REG MM0_REG
1269 #define LAST_MMX_REG MM7_REG
1270
1271 #define FIRST_REX_INT_REG R8_REG
1272 #define LAST_REX_INT_REG R15_REG
1273
1274 #define FIRST_REX_SSE_REG XMM8_REG
1275 #define LAST_REX_SSE_REG XMM15_REG
1276
1277 #define FIRST_EXT_REX_SSE_REG XMM16_REG
1278 #define LAST_EXT_REX_SSE_REG XMM31_REG
1279
1280 #define FIRST_MASK_REG MASK0_REG
1281 #define LAST_MASK_REG MASK7_REG
1282
1283 #define FIRST_BND_REG BND0_REG
1284 #define LAST_BND_REG BND3_REG
1285
1286 /* Override this in other tm.h files to cope with various OS lossage
1287 requiring a frame pointer. */
1288 #ifndef SUBTARGET_FRAME_POINTER_REQUIRED
1289 #define SUBTARGET_FRAME_POINTER_REQUIRED 0
1290 #endif
1291
1292 /* Make sure we can access arbitrary call frames. */
1293 #define SETUP_FRAME_ADDRESSES() ix86_setup_frame_addresses ()
1294
1295 /* Register to hold the addressing base for position independent
1296 code access to data items. We don't use PIC pointer for 64bit
1297 mode. Define the regnum to dummy value to prevent gcc from
1298 pessimizing code dealing with EBX.
1299
1300 To avoid clobbering a call-saved register unnecessarily, we renumber
1301 the pic register when possible. The change is visible after the
1302 prologue has been emitted. */
1303
1304 #define REAL_PIC_OFFSET_TABLE_REGNUM (TARGET_64BIT ? R15_REG : BX_REG)
1305
1306 #define PIC_OFFSET_TABLE_REGNUM \
1307 (ix86_use_pseudo_pic_reg () \
1308 ? (pic_offset_table_rtx \
1309 ? INVALID_REGNUM \
1310 : REAL_PIC_OFFSET_TABLE_REGNUM) \
1311 : INVALID_REGNUM)
1312
1313 #define GOT_SYMBOL_NAME "_GLOBAL_OFFSET_TABLE_"
1314
1315 /* This is overridden by <cygwin.h>. */
1316 #define MS_AGGREGATE_RETURN 0
1317
1318 #define KEEP_AGGREGATE_RETURN_POINTER 0
1319
1320 /* Define the classes of registers for register constraints in the
1322 machine description. Also define ranges of constants.
1323
1324 One of the classes must always be named ALL_REGS and include all hard regs.
1325 If there is more than one class, another class must be named NO_REGS
1326 and contain no registers.
1327
1328 The name GENERAL_REGS must be the name of a class (or an alias for
1329 another name such as ALL_REGS). This is the class of registers
1330 that is allowed by "g" or "r" in a register constraint.
1331 Also, registers outside this class are allocated only when
1332 instructions express preferences for them.
1333
1334 The classes must be numbered in nondecreasing order; that is,
1335 a larger-numbered class must never be contained completely
1336 in a smaller-numbered class. This is why CLOBBERED_REGS class
1337 is listed early, even though in 64-bit mode it contains more
1338 registers than just %eax, %ecx, %edx.
1339
1340 For any two classes, it is very desirable that there be another
1341 class that represents their union.
1342
1343 It might seem that class BREG is unnecessary, since no useful 386
1344 opcode needs reg %ebx. But some systems pass args to the OS in ebx,
1345 and the "b" register constraint is useful in asms for syscalls.
1346
1347 The flags, fpsr and fpcr registers are in no class. */
1348
1349 enum reg_class
1350 {
1351 NO_REGS,
1352 AREG, DREG, CREG, BREG, SIREG, DIREG,
1353 AD_REGS, /* %eax/%edx for DImode */
1354 CLOBBERED_REGS, /* call-clobbered integer registers */
1355 Q_REGS, /* %eax %ebx %ecx %edx */
1356 NON_Q_REGS, /* %esi %edi %ebp %esp */
1357 INDEX_REGS, /* %eax %ebx %ecx %edx %esi %edi %ebp */
1358 LEGACY_REGS, /* %eax %ebx %ecx %edx %esi %edi %ebp %esp */
1359 GENERAL_REGS, /* %eax %ebx %ecx %edx %esi %edi %ebp %esp
1360 %r8 %r9 %r10 %r11 %r12 %r13 %r14 %r15 */
1361 FP_TOP_REG, FP_SECOND_REG, /* %st(0) %st(1) */
1362 FLOAT_REGS,
1363 SSE_FIRST_REG,
1364 NO_REX_SSE_REGS,
1365 SSE_REGS,
1366 EVEX_SSE_REGS,
1367 BND_REGS,
1368 ALL_SSE_REGS,
1369 MMX_REGS,
1370 FP_TOP_SSE_REGS,
1371 FP_SECOND_SSE_REGS,
1372 FLOAT_SSE_REGS,
1373 FLOAT_INT_REGS,
1374 INT_SSE_REGS,
1375 FLOAT_INT_SSE_REGS,
1376 MASK_EVEX_REGS,
1377 MASK_REGS,
1378 ALL_REGS, LIM_REG_CLASSES
1379 };
1380
1381 #define N_REG_CLASSES ((int) LIM_REG_CLASSES)
1382
1383 #define INTEGER_CLASS_P(CLASS) \
1384 reg_class_subset_p ((CLASS), GENERAL_REGS)
1385 #define FLOAT_CLASS_P(CLASS) \
1386 reg_class_subset_p ((CLASS), FLOAT_REGS)
1387 #define SSE_CLASS_P(CLASS) \
1388 reg_class_subset_p ((CLASS), ALL_SSE_REGS)
1389 #define MMX_CLASS_P(CLASS) \
1390 ((CLASS) == MMX_REGS)
1391 #define MAYBE_INTEGER_CLASS_P(CLASS) \
1392 reg_classes_intersect_p ((CLASS), GENERAL_REGS)
1393 #define MAYBE_FLOAT_CLASS_P(CLASS) \
1394 reg_classes_intersect_p ((CLASS), FLOAT_REGS)
1395 #define MAYBE_SSE_CLASS_P(CLASS) \
1396 reg_classes_intersect_p ((CLASS), ALL_SSE_REGS)
1397 #define MAYBE_MMX_CLASS_P(CLASS) \
1398 reg_classes_intersect_p ((CLASS), MMX_REGS)
1399 #define MAYBE_MASK_CLASS_P(CLASS) \
1400 reg_classes_intersect_p ((CLASS), MASK_REGS)
1401
1402 #define Q_CLASS_P(CLASS) \
1403 reg_class_subset_p ((CLASS), Q_REGS)
1404
1405 #define MAYBE_NON_Q_CLASS_P(CLASS) \
1406 reg_classes_intersect_p ((CLASS), NON_Q_REGS)
1407
1408 /* Give names of register classes as strings for dump file. */
1409
1410 #define REG_CLASS_NAMES \
1411 { "NO_REGS", \
1412 "AREG", "DREG", "CREG", "BREG", \
1413 "SIREG", "DIREG", \
1414 "AD_REGS", \
1415 "CLOBBERED_REGS", \
1416 "Q_REGS", "NON_Q_REGS", \
1417 "INDEX_REGS", \
1418 "LEGACY_REGS", \
1419 "GENERAL_REGS", \
1420 "FP_TOP_REG", "FP_SECOND_REG", \
1421 "FLOAT_REGS", \
1422 "SSE_FIRST_REG", \
1423 "NO_REX_SSE_REGS", \
1424 "SSE_REGS", \
1425 "EVEX_SSE_REGS", \
1426 "BND_REGS", \
1427 "ALL_SSE_REGS", \
1428 "MMX_REGS", \
1429 "FP_TOP_SSE_REGS", \
1430 "FP_SECOND_SSE_REGS", \
1431 "FLOAT_SSE_REGS", \
1432 "FLOAT_INT_REGS", \
1433 "INT_SSE_REGS", \
1434 "FLOAT_INT_SSE_REGS", \
1435 "MASK_EVEX_REGS", \
1436 "MASK_REGS", \
1437 "ALL_REGS" }
1438
1439 /* Define which registers fit in which classes. This is an initializer
1440 for a vector of HARD_REG_SET of length N_REG_CLASSES.
1441
1442 Note that CLOBBERED_REGS are calculated by
1443 TARGET_CONDITIONAL_REGISTER_USAGE. */
1444
1445 #define REG_CLASS_CONTENTS \
1446 { { 0x00, 0x0, 0x0 }, \
1447 { 0x01, 0x0, 0x0 }, /* AREG */ \
1448 { 0x02, 0x0, 0x0 }, /* DREG */ \
1449 { 0x04, 0x0, 0x0 }, /* CREG */ \
1450 { 0x08, 0x0, 0x0 }, /* BREG */ \
1451 { 0x10, 0x0, 0x0 }, /* SIREG */ \
1452 { 0x20, 0x0, 0x0 }, /* DIREG */ \
1453 { 0x03, 0x0, 0x0 }, /* AD_REGS */ \
1454 { 0x07, 0x0, 0x0 }, /* CLOBBERED_REGS */ \
1455 { 0x0f, 0x0, 0x0 }, /* Q_REGS */ \
1456 { 0x1100f0, 0x1fe0, 0x0 }, /* NON_Q_REGS */ \
1457 { 0x7f, 0x1fe0, 0x0 }, /* INDEX_REGS */ \
1458 { 0x1100ff, 0x0, 0x0 }, /* LEGACY_REGS */ \
1459 { 0x1100ff, 0x1fe0, 0x0 }, /* GENERAL_REGS */ \
1460 { 0x100, 0x0, 0x0 }, /* FP_TOP_REG */ \
1461 { 0x0200, 0x0, 0x0 }, /* FP_SECOND_REG */ \
1462 { 0xff00, 0x0, 0x0 }, /* FLOAT_REGS */ \
1463 { 0x200000, 0x0, 0x0 }, /* SSE_FIRST_REG */ \
1464 { 0x1fe00000, 0x000000, 0x0 }, /* NO_REX_SSE_REGS */ \
1465 { 0x1fe00000, 0x1fe000, 0x0 }, /* SSE_REGS */ \
1466 { 0x0,0xffe00000, 0x1f }, /* EVEX_SSE_REGS */ \
1467 { 0x0, 0x0,0x1e000 }, /* BND_REGS */ \
1468 { 0x1fe00000,0xffffe000, 0x1f }, /* ALL_SSE_REGS */ \
1469 { 0xe0000000, 0x1f, 0x0 }, /* MMX_REGS */ \
1470 { 0x1fe00100,0xffffe000, 0x1f }, /* FP_TOP_SSE_REG */ \
1471 { 0x1fe00200,0xffffe000, 0x1f }, /* FP_SECOND_SSE_REG */ \
1472 { 0x1fe0ff00,0xffffe000, 0x1f }, /* FLOAT_SSE_REGS */ \
1473 { 0x11ffff, 0x1fe0, 0x0 }, /* FLOAT_INT_REGS */ \
1474 { 0x1ff100ff,0xffffffe0, 0x1f }, /* INT_SSE_REGS */ \
1475 { 0x1ff1ffff,0xffffffe0, 0x1f }, /* FLOAT_INT_SSE_REGS */ \
1476 { 0x0, 0x0, 0x1fc0 }, /* MASK_EVEX_REGS */ \
1477 { 0x0, 0x0, 0x1fe0 }, /* MASK_REGS */ \
1478 { 0xffffffff,0xffffffff,0x1ffff } \
1479 }
1480
1481 /* The same information, inverted:
1482 Return the class number of the smallest class containing
1483 reg number REGNO. This could be a conditional expression
1484 or could index an array. */
1485
1486 #define REGNO_REG_CLASS(REGNO) (regclass_map[(REGNO)])
1487
1488 /* When this hook returns true for MODE, the compiler allows
1489 registers explicitly used in the rtl to be used as spill registers
1490 but prevents the compiler from extending the lifetime of these
1491 registers. */
1492 #define TARGET_SMALL_REGISTER_CLASSES_FOR_MODE_P hook_bool_mode_true
1493
1494 #define QI_REG_P(X) (REG_P (X) && QI_REGNO_P (REGNO (X)))
1495 #define QI_REGNO_P(N) IN_RANGE ((N), FIRST_QI_REG, LAST_QI_REG)
1496
1497 #define LEGACY_INT_REG_P(X) (REG_P (X) && LEGACY_INT_REGNO_P (REGNO (X)))
1498 #define LEGACY_INT_REGNO_P(N) (IN_RANGE ((N), FIRST_INT_REG, LAST_INT_REG))
1499
1500 #define REX_INT_REG_P(X) (REG_P (X) && REX_INT_REGNO_P (REGNO (X)))
1501 #define REX_INT_REGNO_P(N) \
1502 IN_RANGE ((N), FIRST_REX_INT_REG, LAST_REX_INT_REG)
1503
1504 #define GENERAL_REG_P(X) (REG_P (X) && GENERAL_REGNO_P (REGNO (X)))
1505 #define GENERAL_REGNO_P(N) \
1506 (LEGACY_INT_REGNO_P (N) || REX_INT_REGNO_P (N))
1507
1508 #define ANY_QI_REG_P(X) (REG_P (X) && ANY_QI_REGNO_P (REGNO (X)))
1509 #define ANY_QI_REGNO_P(N) \
1510 (TARGET_64BIT ? GENERAL_REGNO_P (N) : QI_REGNO_P (N))
1511
1512 #define STACK_REG_P(X) (REG_P (X) && STACK_REGNO_P (REGNO (X)))
1513 #define STACK_REGNO_P(N) IN_RANGE ((N), FIRST_STACK_REG, LAST_STACK_REG)
1514
1515 #define SSE_REG_P(X) (REG_P (X) && SSE_REGNO_P (REGNO (X)))
1516 #define SSE_REGNO_P(N) \
1517 (IN_RANGE ((N), FIRST_SSE_REG, LAST_SSE_REG) \
1518 || REX_SSE_REGNO_P (N) \
1519 || EXT_REX_SSE_REGNO_P (N))
1520
1521 #define REX_SSE_REGNO_P(N) \
1522 IN_RANGE ((N), FIRST_REX_SSE_REG, LAST_REX_SSE_REG)
1523
1524 #define EXT_REX_SSE_REG_P(X) (REG_P (X) && EXT_REX_SSE_REGNO_P (REGNO (X)))
1525
1526 #define EXT_REX_SSE_REGNO_P(N) \
1527 IN_RANGE ((N), FIRST_EXT_REX_SSE_REG, LAST_EXT_REX_SSE_REG)
1528
1529 #define ANY_FP_REG_P(X) (REG_P (X) && ANY_FP_REGNO_P (REGNO (X)))
1530 #define ANY_FP_REGNO_P(N) (STACK_REGNO_P (N) || SSE_REGNO_P (N))
1531
1532 #define MASK_REG_P(X) (REG_P (X) && MASK_REGNO_P (REGNO (X)))
1533 #define MASK_REGNO_P(N) IN_RANGE ((N), FIRST_MASK_REG, LAST_MASK_REG)
1534
1535 #define MMX_REG_P(X) (REG_P (X) && MMX_REGNO_P (REGNO (X)))
1536 #define MMX_REGNO_P(N) IN_RANGE ((N), FIRST_MMX_REG, LAST_MMX_REG)
1537
1538 #define CC_REG_P(X) (REG_P (X) && CC_REGNO_P (REGNO (X)))
1539 #define CC_REGNO_P(X) ((X) == FLAGS_REG || (X) == FPSR_REG)
1540
1541 #define BND_REG_P(X) (REG_P (X) && BND_REGNO_P (REGNO (X)))
1542 #define BND_REGNO_P(N) IN_RANGE ((N), FIRST_BND_REG, LAST_BND_REG)
1543
1544 /* First floating point reg */
1545 #define FIRST_FLOAT_REG FIRST_STACK_REG
1546 #define STACK_TOP_P(X) (REG_P (X) && REGNO (X) == FIRST_FLOAT_REG)
1547
1548 #define SSE_REGNO(N) \
1549 ((N) < 8 ? FIRST_SSE_REG + (N) \
1550 : (N) <= LAST_REX_SSE_REG ? (FIRST_REX_SSE_REG + (N) - 8) \
1551 : (FIRST_EXT_REX_SSE_REG + (N) - 16))
1552
1553 /* The class value for index registers, and the one for base regs. */
1554
1555 #define INDEX_REG_CLASS INDEX_REGS
1556 #define BASE_REG_CLASS GENERAL_REGS
1557
1558 /* Place additional restrictions on the register class to use when it
1559 is necessary to be able to hold a value of mode MODE in a reload
1560 register for which class CLASS would ordinarily be used.
1561
1562 We avoid classes containing registers from multiple units due to
1563 the limitation in ix86_secondary_memory_needed. We limit these
1564 classes to their "natural mode" single unit register class, depending
1565 on the unit availability.
1566
1567 Please note that reg_class_subset_p is not commutative, so these
1568 conditions mean "... if (CLASS) includes ALL registers from the
1569 register set." */
1570
1571 #define LIMIT_RELOAD_CLASS(MODE, CLASS) \
1572 (((MODE) == QImode && !TARGET_64BIT \
1573 && reg_class_subset_p (Q_REGS, (CLASS))) ? Q_REGS \
1574 : (((MODE) == SImode || (MODE) == DImode) \
1575 && reg_class_subset_p (GENERAL_REGS, (CLASS))) ? GENERAL_REGS \
1576 : (SSE_FLOAT_MODE_P (MODE) && TARGET_SSE_MATH \
1577 && reg_class_subset_p (SSE_REGS, (CLASS))) ? SSE_REGS \
1578 : (X87_FLOAT_MODE_P (MODE) \
1579 && reg_class_subset_p (FLOAT_REGS, (CLASS))) ? FLOAT_REGS \
1580 : (CLASS))
1581
1582 /* If we are copying between general and FP registers, we need a memory
1583 location. The same is true for SSE and MMX registers. */
1584 #define SECONDARY_MEMORY_NEEDED(CLASS1, CLASS2, MODE) \
1585 ix86_secondary_memory_needed ((CLASS1), (CLASS2), (MODE), 1)
1586
1587 /* Get_secondary_mem widens integral modes to BITS_PER_WORD.
1588 There is no need to emit full 64 bit move on 64 bit targets
1589 for integral modes that can be moved using 32 bit move. */
1590 #define SECONDARY_MEMORY_NEEDED_MODE(MODE) \
1591 (GET_MODE_BITSIZE (MODE) < 32 && INTEGRAL_MODE_P (MODE) \
1592 ? mode_for_size (32, GET_MODE_CLASS (MODE), 0) \
1593 : MODE)
1594
1595 /* Return a class of registers that cannot change FROM mode to TO mode. */
1596
1597 #define CANNOT_CHANGE_MODE_CLASS(FROM, TO, CLASS) \
1598 ix86_cannot_change_mode_class (FROM, TO, CLASS)
1599
1600 /* Stack layout; function entry, exit and calling. */
1602
1603 /* Define this if pushing a word on the stack
1604 makes the stack pointer a smaller address. */
1605 #define STACK_GROWS_DOWNWARD 1
1606
1607 /* Define this to nonzero if the nominal address of the stack frame
1608 is at the high-address end of the local variables;
1609 that is, each additional local variable allocated
1610 goes at a more negative offset in the frame. */
1611 #define FRAME_GROWS_DOWNWARD 1
1612
1613 /* Offset within stack frame to start allocating local variables at.
1614 If FRAME_GROWS_DOWNWARD, this is the offset to the END of the
1615 first local allocated. Otherwise, it is the offset to the BEGINNING
1616 of the first local allocated. */
1617 #define STARTING_FRAME_OFFSET 0
1618
1619 /* If we generate an insn to push BYTES bytes, this says how many the stack
1620 pointer really advances by. On 386, we have pushw instruction that
1621 decrements by exactly 2 no matter what the position was, there is no pushb.
1622
1623 But as CIE data alignment factor on this arch is -4 for 32bit targets
1624 and -8 for 64bit targets, we need to make sure all stack pointer adjustments
1625 are in multiple of 4 for 32bit targets and 8 for 64bit targets. */
1626
1627 #define PUSH_ROUNDING(BYTES) ROUND_UP ((BYTES), UNITS_PER_WORD)
1628
1629 /* If defined, the maximum amount of space required for outgoing arguments
1630 will be computed and placed into the variable `crtl->outgoing_args_size'.
1631 No space will be pushed onto the stack for each call; instead, the
1632 function prologue should increase the stack frame size by this amount.
1633
1634 In 32bit mode enabling argument accumulation results in about 5% code size
1635 growth because move instructions are less compact than push. In 64bit
1636 mode the difference is less drastic but visible.
1637
1638 FIXME: Unlike earlier implementations, the size of unwind info seems to
1639 actually grow with accumulation. Is that because accumulated args
1640 unwind info became unnecesarily bloated?
1641
1642 With the 64-bit MS ABI, we can generate correct code with or without
1643 accumulated args, but because of OUTGOING_REG_PARM_STACK_SPACE the code
1644 generated without accumulated args is terrible.
1645
1646 If stack probes are required, the space used for large function
1647 arguments on the stack must also be probed, so enable
1648 -maccumulate-outgoing-args so this happens in the prologue. */
1649
1650 #define ACCUMULATE_OUTGOING_ARGS \
1651 ((TARGET_ACCUMULATE_OUTGOING_ARGS && optimize_function_for_speed_p (cfun)) \
1652 || TARGET_STACK_PROBE || TARGET_64BIT_MS_ABI \
1653 || (TARGET_MACHO && crtl->profile))
1654
1655 /* If defined, a C expression whose value is nonzero when we want to use PUSH
1656 instructions to pass outgoing arguments. */
1657
1658 #define PUSH_ARGS (TARGET_PUSH_ARGS && !ACCUMULATE_OUTGOING_ARGS)
1659
1660 /* We want the stack and args grow in opposite directions, even if
1661 PUSH_ARGS is 0. */
1662 #define PUSH_ARGS_REVERSED 1
1663
1664 /* Offset of first parameter from the argument pointer register value. */
1665 #define FIRST_PARM_OFFSET(FNDECL) 0
1666
1667 /* Define this macro if functions should assume that stack space has been
1668 allocated for arguments even when their values are passed in registers.
1669
1670 The value of this macro is the size, in bytes, of the area reserved for
1671 arguments passed in registers for the function represented by FNDECL.
1672
1673 This space can be allocated by the caller, or be a part of the
1674 machine-dependent stack frame: `OUTGOING_REG_PARM_STACK_SPACE' says
1675 which. */
1676 #define REG_PARM_STACK_SPACE(FNDECL) ix86_reg_parm_stack_space (FNDECL)
1677
1678 #define OUTGOING_REG_PARM_STACK_SPACE(FNTYPE) \
1679 (TARGET_64BIT && ix86_function_type_abi (FNTYPE) == MS_ABI)
1680
1681 /* Define how to find the value returned by a library function
1682 assuming the value has mode MODE. */
1683
1684 #define LIBCALL_VALUE(MODE) ix86_libcall_value (MODE)
1685
1686 /* Define the size of the result block used for communication between
1687 untyped_call and untyped_return. The block contains a DImode value
1688 followed by the block used by fnsave and frstor. */
1689
1690 #define APPLY_RESULT_SIZE (8+108)
1691
1692 /* 1 if N is a possible register number for function argument passing. */
1693 #define FUNCTION_ARG_REGNO_P(N) ix86_function_arg_regno_p (N)
1694
1695 /* Define a data type for recording info about an argument list
1696 during the scan of that argument list. This data type should
1697 hold all necessary information about the function itself
1698 and about the args processed so far, enough to enable macros
1699 such as FUNCTION_ARG to determine where the next arg should go. */
1700
1701 typedef struct ix86_args {
1702 int words; /* # words passed so far */
1703 int nregs; /* # registers available for passing */
1704 int regno; /* next available register number */
1705 int fastcall; /* fastcall or thiscall calling convention
1706 is used */
1707 int sse_words; /* # sse words passed so far */
1708 int sse_nregs; /* # sse registers available for passing */
1709 int warn_avx512f; /* True when we want to warn
1710 about AVX512F ABI. */
1711 int warn_avx; /* True when we want to warn about AVX ABI. */
1712 int warn_sse; /* True when we want to warn about SSE ABI. */
1713 int warn_mmx; /* True when we want to warn about MMX ABI. */
1714 int sse_regno; /* next available sse register number */
1715 int mmx_words; /* # mmx words passed so far */
1716 int mmx_nregs; /* # mmx registers available for passing */
1717 int mmx_regno; /* next available mmx register number */
1718 int maybe_vaarg; /* true for calls to possibly vardic fncts. */
1719 int caller; /* true if it is caller. */
1720 int float_in_sse; /* Set to 1 or 2 for 32bit targets if
1721 SFmode/DFmode arguments should be passed
1722 in SSE registers. Otherwise 0. */
1723 int bnd_regno; /* next available bnd register number */
1724 int bnds_in_bt; /* number of bounds expected in BT. */
1725 int force_bnd_pass; /* number of bounds expected for stdarg arg. */
1726 int stdarg; /* Set to 1 if function is stdarg. */
1727 enum calling_abi call_abi; /* Set to SYSV_ABI for sysv abi. Otherwise
1728 MS_ABI for ms abi. */
1729 tree decl; /* Callee decl. */
1730 } CUMULATIVE_ARGS;
1731
1732 /* Initialize a variable CUM of type CUMULATIVE_ARGS
1733 for a call to a function whose data type is FNTYPE.
1734 For a library call, FNTYPE is 0. */
1735
1736 #define INIT_CUMULATIVE_ARGS(CUM, FNTYPE, LIBNAME, FNDECL, N_NAMED_ARGS) \
1737 init_cumulative_args (&(CUM), (FNTYPE), (LIBNAME), (FNDECL), \
1738 (N_NAMED_ARGS) != -1)
1739
1740 /* Output assembler code to FILE to increment profiler label # LABELNO
1741 for profiling a function entry. */
1742
1743 #define FUNCTION_PROFILER(FILE, LABELNO) \
1744 x86_function_profiler ((FILE), (LABELNO))
1745
1746 #define MCOUNT_NAME "_mcount"
1747
1748 #define MCOUNT_NAME_BEFORE_PROLOGUE "__fentry__"
1749
1750 #define PROFILE_COUNT_REGISTER "edx"
1751
1752 /* EXIT_IGNORE_STACK should be nonzero if, when returning from a function,
1753 the stack pointer does not matter. The value is tested only in
1754 functions that have frame pointers.
1755 No definition is equivalent to always zero. */
1756 /* Note on the 386 it might be more efficient not to define this since
1757 we have to restore it ourselves from the frame pointer, in order to
1758 use pop */
1759
1760 #define EXIT_IGNORE_STACK 1
1761
1762 /* Output assembler code for a block containing the constant parts
1763 of a trampoline, leaving space for the variable parts. */
1764
1765 /* On the 386, the trampoline contains two instructions:
1766 mov #STATIC,ecx
1767 jmp FUNCTION
1768 The trampoline is generated entirely at runtime. The operand of JMP
1769 is the address of FUNCTION relative to the instruction following the
1770 JMP (which is 5 bytes long). */
1771
1772 /* Length in units of the trampoline for entering a nested function. */
1773
1774 #define TRAMPOLINE_SIZE (TARGET_64BIT ? 24 : 10)
1775
1776 /* Definitions for register eliminations.
1778
1779 This is an array of structures. Each structure initializes one pair
1780 of eliminable registers. The "from" register number is given first,
1781 followed by "to". Eliminations of the same "from" register are listed
1782 in order of preference.
1783
1784 There are two registers that can always be eliminated on the i386.
1785 The frame pointer and the arg pointer can be replaced by either the
1786 hard frame pointer or to the stack pointer, depending upon the
1787 circumstances. The hard frame pointer is not used before reload and
1788 so it is not eligible for elimination. */
1789
1790 #define ELIMINABLE_REGS \
1791 {{ ARG_POINTER_REGNUM, STACK_POINTER_REGNUM}, \
1792 { ARG_POINTER_REGNUM, HARD_FRAME_POINTER_REGNUM}, \
1793 { FRAME_POINTER_REGNUM, STACK_POINTER_REGNUM}, \
1794 { FRAME_POINTER_REGNUM, HARD_FRAME_POINTER_REGNUM}} \
1795
1796 /* Define the offset between two registers, one to be eliminated, and the other
1797 its replacement, at the start of a routine. */
1798
1799 #define INITIAL_ELIMINATION_OFFSET(FROM, TO, OFFSET) \
1800 ((OFFSET) = ix86_initial_elimination_offset ((FROM), (TO)))
1801
1802 /* Addressing modes, and classification of registers for them. */
1804
1805 /* Macros to check register numbers against specific register classes. */
1806
1807 /* These assume that REGNO is a hard or pseudo reg number.
1808 They give nonzero only if REGNO is a hard reg of the suitable class
1809 or a pseudo reg currently allocated to a suitable hard reg.
1810 Since they use reg_renumber, they are safe only once reg_renumber
1811 has been allocated, which happens in reginfo.c during register
1812 allocation. */
1813
1814 #define REGNO_OK_FOR_INDEX_P(REGNO) \
1815 ((REGNO) < STACK_POINTER_REGNUM \
1816 || REX_INT_REGNO_P (REGNO) \
1817 || (unsigned) reg_renumber[(REGNO)] < STACK_POINTER_REGNUM \
1818 || REX_INT_REGNO_P ((unsigned) reg_renumber[(REGNO)]))
1819
1820 #define REGNO_OK_FOR_BASE_P(REGNO) \
1821 (GENERAL_REGNO_P (REGNO) \
1822 || (REGNO) == ARG_POINTER_REGNUM \
1823 || (REGNO) == FRAME_POINTER_REGNUM \
1824 || GENERAL_REGNO_P ((unsigned) reg_renumber[(REGNO)]))
1825
1826 /* The macros REG_OK_FOR..._P assume that the arg is a REG rtx
1827 and check its validity for a certain class.
1828 We have two alternate definitions for each of them.
1829 The usual definition accepts all pseudo regs; the other rejects
1830 them unless they have been allocated suitable hard regs.
1831 The symbol REG_OK_STRICT causes the latter definition to be used.
1832
1833 Most source files want to accept pseudo regs in the hope that
1834 they will get allocated to the class that the insn wants them to be in.
1835 Source files for reload pass need to be strict.
1836 After reload, it makes no difference, since pseudo regs have
1837 been eliminated by then. */
1838
1839
1840 /* Non strict versions, pseudos are ok. */
1841 #define REG_OK_FOR_INDEX_NONSTRICT_P(X) \
1842 (REGNO (X) < STACK_POINTER_REGNUM \
1843 || REX_INT_REGNO_P (REGNO (X)) \
1844 || REGNO (X) >= FIRST_PSEUDO_REGISTER)
1845
1846 #define REG_OK_FOR_BASE_NONSTRICT_P(X) \
1847 (GENERAL_REGNO_P (REGNO (X)) \
1848 || REGNO (X) == ARG_POINTER_REGNUM \
1849 || REGNO (X) == FRAME_POINTER_REGNUM \
1850 || REGNO (X) >= FIRST_PSEUDO_REGISTER)
1851
1852 /* Strict versions, hard registers only */
1853 #define REG_OK_FOR_INDEX_STRICT_P(X) REGNO_OK_FOR_INDEX_P (REGNO (X))
1854 #define REG_OK_FOR_BASE_STRICT_P(X) REGNO_OK_FOR_BASE_P (REGNO (X))
1855
1856 #ifndef REG_OK_STRICT
1857 #define REG_OK_FOR_INDEX_P(X) REG_OK_FOR_INDEX_NONSTRICT_P (X)
1858 #define REG_OK_FOR_BASE_P(X) REG_OK_FOR_BASE_NONSTRICT_P (X)
1859
1860 #else
1861 #define REG_OK_FOR_INDEX_P(X) REG_OK_FOR_INDEX_STRICT_P (X)
1862 #define REG_OK_FOR_BASE_P(X) REG_OK_FOR_BASE_STRICT_P (X)
1863 #endif
1864
1865 /* TARGET_LEGITIMATE_ADDRESS_P recognizes an RTL expression
1866 that is a valid memory address for an instruction.
1867 The MODE argument is the machine mode for the MEM expression
1868 that wants to use this address.
1869
1870 The other macros defined here are used only in TARGET_LEGITIMATE_ADDRESS_P,
1871 except for CONSTANT_ADDRESS_P which is usually machine-independent.
1872
1873 See legitimize_pic_address in i386.c for details as to what
1874 constitutes a legitimate address when -fpic is used. */
1875
1876 #define MAX_REGS_PER_ADDRESS 2
1877
1878 #define CONSTANT_ADDRESS_P(X) constant_address_p (X)
1879
1880 /* If defined, a C expression to determine the base term of address X.
1881 This macro is used in only one place: `find_base_term' in alias.c.
1882
1883 It is always safe for this macro to not be defined. It exists so
1884 that alias analysis can understand machine-dependent addresses.
1885
1886 The typical use of this macro is to handle addresses containing
1887 a label_ref or symbol_ref within an UNSPEC. */
1888
1889 #define FIND_BASE_TERM(X) ix86_find_base_term (X)
1890
1891 /* Nonzero if the constant value X is a legitimate general operand
1892 when generating PIC code. It is given that flag_pic is on and
1893 that X satisfies CONSTANT_P or is a CONST_DOUBLE. */
1894
1895 #define LEGITIMATE_PIC_OPERAND_P(X) legitimate_pic_operand_p (X)
1896
1897 #define SYMBOLIC_CONST(X) \
1898 (GET_CODE (X) == SYMBOL_REF \
1899 || GET_CODE (X) == LABEL_REF \
1900 || (GET_CODE (X) == CONST && symbolic_reference_mentioned_p (X)))
1901
1902 /* Max number of args passed in registers. If this is more than 3, we will
1904 have problems with ebx (register #4), since it is a caller save register and
1905 is also used as the pic register in ELF. So for now, don't allow more than
1906 3 registers to be passed in registers. */
1907
1908 /* Abi specific values for REGPARM_MAX and SSE_REGPARM_MAX */
1909 #define X86_64_REGPARM_MAX 6
1910 #define X86_64_MS_REGPARM_MAX 4
1911
1912 #define X86_32_REGPARM_MAX 3
1913
1914 #define REGPARM_MAX \
1915 (TARGET_64BIT \
1916 ? (TARGET_64BIT_MS_ABI \
1917 ? X86_64_MS_REGPARM_MAX \
1918 : X86_64_REGPARM_MAX) \
1919 : X86_32_REGPARM_MAX)
1920
1921 #define X86_64_SSE_REGPARM_MAX 8
1922 #define X86_64_MS_SSE_REGPARM_MAX 4
1923
1924 #define X86_32_SSE_REGPARM_MAX (TARGET_SSE ? (TARGET_MACHO ? 4 : 3) : 0)
1925
1926 #define SSE_REGPARM_MAX \
1927 (TARGET_64BIT \
1928 ? (TARGET_64BIT_MS_ABI \
1929 ? X86_64_MS_SSE_REGPARM_MAX \
1930 : X86_64_SSE_REGPARM_MAX) \
1931 : X86_32_SSE_REGPARM_MAX)
1932
1933 #define MMX_REGPARM_MAX (TARGET_64BIT ? 0 : (TARGET_MMX ? 3 : 0))
1934
1935 /* Specify the machine mode that this machine uses
1937 for the index in the tablejump instruction. */
1938 #define CASE_VECTOR_MODE \
1939 (!TARGET_LP64 || (flag_pic && ix86_cmodel != CM_LARGE_PIC) ? SImode : DImode)
1940
1941 /* Define this as 1 if `char' should by default be signed; else as 0. */
1942 #define DEFAULT_SIGNED_CHAR 1
1943
1944 /* Max number of bytes we can move from memory to memory
1945 in one reasonably fast instruction. */
1946 #define MOVE_MAX 16
1947
1948 /* MOVE_MAX_PIECES is the number of bytes at a time which we can
1949 move efficiently, as opposed to MOVE_MAX which is the maximum
1950 number of bytes we can move with a single instruction. */
1951 #define MOVE_MAX_PIECES UNITS_PER_WORD
1952
1953 /* If a memory-to-memory move would take MOVE_RATIO or more simple
1954 move-instruction pairs, we will do a movmem or libcall instead.
1955 Increasing the value will always make code faster, but eventually
1956 incurs high cost in increased code size.
1957
1958 If you don't define this, a reasonable default is used. */
1959
1960 #define MOVE_RATIO(speed) ((speed) ? ix86_cost->move_ratio : 3)
1961
1962 /* If a clear memory operation would take CLEAR_RATIO or more simple
1963 move-instruction sequences, we will do a clrmem or libcall instead. */
1964
1965 #define CLEAR_RATIO(speed) ((speed) ? MIN (6, ix86_cost->move_ratio) : 2)
1966
1967 /* Define if shifts truncate the shift count which implies one can
1968 omit a sign-extension or zero-extension of a shift count.
1969
1970 On i386, shifts do truncate the count. But bit test instructions
1971 take the modulo of the bit offset operand. */
1972
1973 /* #define SHIFT_COUNT_TRUNCATED */
1974
1975 /* Value is 1 if truncating an integer of INPREC bits to OUTPREC bits
1976 is done just by pretending it is already truncated. */
1977 #define TRULY_NOOP_TRUNCATION(OUTPREC, INPREC) 1
1978
1979 /* A macro to update M and UNSIGNEDP when an object whose type is
1980 TYPE and which has the specified mode and signedness is to be
1981 stored in a register. This macro is only called when TYPE is a
1982 scalar type.
1983
1984 On i386 it is sometimes useful to promote HImode and QImode
1985 quantities to SImode. The choice depends on target type. */
1986
1987 #define PROMOTE_MODE(MODE, UNSIGNEDP, TYPE) \
1988 do { \
1989 if (((MODE) == HImode && TARGET_PROMOTE_HI_REGS) \
1990 || ((MODE) == QImode && TARGET_PROMOTE_QI_REGS)) \
1991 (MODE) = SImode; \
1992 } while (0)
1993
1994 /* Specify the machine mode that pointers have.
1995 After generation of rtl, the compiler makes no further distinction
1996 between pointers and any other objects of this machine mode. */
1997 #define Pmode (ix86_pmode == PMODE_DI ? DImode : SImode)
1998
1999 /* Specify the machine mode that bounds have. */
2000 #define BNDmode (ix86_pmode == PMODE_DI ? BND64mode : BND32mode)
2001
2002 /* A C expression whose value is zero if pointers that need to be extended
2003 from being `POINTER_SIZE' bits wide to `Pmode' are sign-extended and
2004 greater then zero if they are zero-extended and less then zero if the
2005 ptr_extend instruction should be used. */
2006
2007 #define POINTERS_EXTEND_UNSIGNED 1
2008
2009 /* A function address in a call instruction
2010 is a byte address (for indexing purposes)
2011 so give the MEM rtx a byte's mode. */
2012 #define FUNCTION_MODE QImode
2013
2014
2016 /* A C expression for the cost of a branch instruction. A value of 1
2017 is the default; other values are interpreted relative to that. */
2018
2019 #define BRANCH_COST(speed_p, predictable_p) \
2020 (!(speed_p) ? 2 : (predictable_p) ? 0 : ix86_branch_cost)
2021
2022 /* An integer expression for the size in bits of the largest integer machine
2023 mode that should actually be used. We allow pairs of registers. */
2024 #define MAX_FIXED_MODE_SIZE GET_MODE_BITSIZE (TARGET_64BIT ? TImode : DImode)
2025
2026 /* Define this macro as a C expression which is nonzero if accessing
2027 less than a word of memory (i.e. a `char' or a `short') is no
2028 faster than accessing a word of memory, i.e., if such access
2029 require more than one instruction or if there is no difference in
2030 cost between byte and (aligned) word loads.
2031
2032 When this macro is not defined, the compiler will access a field by
2033 finding the smallest containing object; when it is defined, a
2034 fullword load will be used if alignment permits. Unless bytes
2035 accesses are faster than word accesses, using word accesses is
2036 preferable since it may eliminate subsequent memory access if
2037 subsequent accesses occur to other fields in the same word of the
2038 structure, but to different bytes. */
2039
2040 #define SLOW_BYTE_ACCESS 0
2041
2042 /* Nonzero if access to memory by shorts is slow and undesirable. */
2043 #define SLOW_SHORT_ACCESS 0
2044
2045 /* Define this macro to be the value 1 if unaligned accesses have a
2046 cost many times greater than aligned accesses, for example if they
2047 are emulated in a trap handler.
2048
2049 When this macro is nonzero, the compiler will act as if
2050 `STRICT_ALIGNMENT' were nonzero when generating code for block
2051 moves. This can cause significantly more instructions to be
2052 produced. Therefore, do not set this macro nonzero if unaligned
2053 accesses only add a cycle or two to the time for a memory access.
2054
2055 If the value of this macro is always zero, it need not be defined. */
2056
2057 /* #define SLOW_UNALIGNED_ACCESS(MODE, ALIGN) 0 */
2058
2059 /* Define this macro if it is as good or better to call a constant
2060 function address than to call an address kept in a register.
2061
2062 Desirable on the 386 because a CALL with a constant address is
2063 faster than one with a register address. */
2064
2065 #define NO_FUNCTION_CSE 1
2066
2067 /* Given a comparison code (EQ, NE, etc.) and the first operand of a COMPARE,
2069 return the mode to be used for the comparison.
2070
2071 For floating-point equality comparisons, CCFPEQmode should be used.
2072 VOIDmode should be used in all other cases.
2073
2074 For integer comparisons against zero, reduce to CCNOmode or CCZmode if
2075 possible, to allow for more combinations. */
2076
2077 #define SELECT_CC_MODE(OP, X, Y) ix86_cc_mode ((OP), (X), (Y))
2078
2079 /* Return nonzero if MODE implies a floating point inequality can be
2080 reversed. */
2081
2082 #define REVERSIBLE_CC_MODE(MODE) 1
2083
2084 /* A C expression whose value is reversed condition code of the CODE for
2085 comparison done in CC_MODE mode. */
2086 #define REVERSE_CONDITION(CODE, MODE) ix86_reverse_condition ((CODE), (MODE))
2087
2088
2089 /* Control the assembler format that we output, to the extent
2091 this does not vary between assemblers. */
2092
2093 /* How to refer to registers in assembler output.
2094 This sequence is indexed by compiler's hard-register-number (see above). */
2095
2096 /* In order to refer to the first 8 regs as 32-bit regs, prefix an "e".
2097 For non floating point regs, the following are the HImode names.
2098
2099 For float regs, the stack top is sometimes referred to as "%st(0)"
2100 instead of just "%st". TARGET_PRINT_OPERAND handles this with the
2101 "y" code. */
2102
2103 #define HI_REGISTER_NAMES \
2104 {"ax","dx","cx","bx","si","di","bp","sp", \
2105 "st","st(1)","st(2)","st(3)","st(4)","st(5)","st(6)","st(7)", \
2106 "argp", "flags", "fpsr", "fpcr", "frame", \
2107 "xmm0","xmm1","xmm2","xmm3","xmm4","xmm5","xmm6","xmm7", \
2108 "mm0", "mm1", "mm2", "mm3", "mm4", "mm5", "mm6", "mm7", \
2109 "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15", \
2110 "xmm8", "xmm9", "xmm10", "xmm11", "xmm12", "xmm13", "xmm14", "xmm15", \
2111 "xmm16", "xmm17", "xmm18", "xmm19", \
2112 "xmm20", "xmm21", "xmm22", "xmm23", \
2113 "xmm24", "xmm25", "xmm26", "xmm27", \
2114 "xmm28", "xmm29", "xmm30", "xmm31", \
2115 "k0", "k1", "k2", "k3", "k4", "k5", "k6", "k7", \
2116 "bnd0", "bnd1", "bnd2", "bnd3" }
2117
2118 #define REGISTER_NAMES HI_REGISTER_NAMES
2119
2120 /* Table of additional register names to use in user input. */
2121
2122 #define ADDITIONAL_REGISTER_NAMES \
2123 { { "eax", 0 }, { "edx", 1 }, { "ecx", 2 }, { "ebx", 3 }, \
2124 { "esi", 4 }, { "edi", 5 }, { "ebp", 6 }, { "esp", 7 }, \
2125 { "rax", 0 }, { "rdx", 1 }, { "rcx", 2 }, { "rbx", 3 }, \
2126 { "rsi", 4 }, { "rdi", 5 }, { "rbp", 6 }, { "rsp", 7 }, \
2127 { "al", 0 }, { "dl", 1 }, { "cl", 2 }, { "bl", 3 }, \
2128 { "ah", 0 }, { "dh", 1 }, { "ch", 2 }, { "bh", 3 }, \
2129 { "ymm0", 21}, { "ymm1", 22}, { "ymm2", 23}, { "ymm3", 24}, \
2130 { "ymm4", 25}, { "ymm5", 26}, { "ymm6", 27}, { "ymm7", 28}, \
2131 { "ymm8", 45}, { "ymm9", 46}, { "ymm10", 47}, { "ymm11", 48}, \
2132 { "ymm12", 49}, { "ymm13", 50}, { "ymm14", 51}, { "ymm15", 52}, \
2133 { "ymm16", 53}, { "ymm17", 54}, { "ymm18", 55}, { "ymm19", 56}, \
2134 { "ymm20", 57}, { "ymm21", 58}, { "ymm22", 59}, { "ymm23", 60}, \
2135 { "ymm24", 61}, { "ymm25", 62}, { "ymm26", 63}, { "ymm27", 64}, \
2136 { "ymm28", 65}, { "ymm29", 66}, { "ymm30", 67}, { "ymm31", 68}, \
2137 { "zmm0", 21}, { "zmm1", 22}, { "zmm2", 23}, { "zmm3", 24}, \
2138 { "zmm4", 25}, { "zmm5", 26}, { "zmm6", 27}, { "zmm7", 28}, \
2139 { "zmm8", 45}, { "zmm9", 46}, { "zmm10", 47}, { "zmm11", 48}, \
2140 { "zmm12", 49}, { "zmm13", 50}, { "zmm14", 51}, { "zmm15", 52}, \
2141 { "zmm16", 53}, { "zmm17", 54}, { "zmm18", 55}, { "zmm19", 56}, \
2142 { "zmm20", 57}, { "zmm21", 58}, { "zmm22", 59}, { "zmm23", 60}, \
2143 { "zmm24", 61}, { "zmm25", 62}, { "zmm26", 63}, { "zmm27", 64}, \
2144 { "zmm28", 65}, { "zmm29", 66}, { "zmm30", 67}, { "zmm31", 68} }
2145
2146 /* Note we are omitting these since currently I don't know how
2147 to get gcc to use these, since they want the same but different
2148 number as al, and ax.
2149 */
2150
2151 #define QI_REGISTER_NAMES \
2152 {"al", "dl", "cl", "bl", "sil", "dil", "bpl", "spl",}
2153
2154 /* These parallel the array above, and can be used to access bits 8:15
2155 of regs 0 through 3. */
2156
2157 #define QI_HIGH_REGISTER_NAMES \
2158 {"ah", "dh", "ch", "bh", }
2159
2160 /* How to renumber registers for dbx and gdb. */
2161
2162 #define DBX_REGISTER_NUMBER(N) \
2163 (TARGET_64BIT ? dbx64_register_map[(N)] : dbx_register_map[(N)])
2164
2165 extern int const dbx_register_map[FIRST_PSEUDO_REGISTER];
2166 extern int const dbx64_register_map[FIRST_PSEUDO_REGISTER];
2167 extern int const svr4_dbx_register_map[FIRST_PSEUDO_REGISTER];
2168
2169 extern int const x86_64_ms_sysv_extra_clobbered_registers[12];
2170
2171 /* Before the prologue, RA is at 0(%esp). */
2172 #define INCOMING_RETURN_ADDR_RTX \
2173 gen_rtx_MEM (VOIDmode, gen_rtx_REG (VOIDmode, STACK_POINTER_REGNUM))
2174
2175 /* After the prologue, RA is at -4(AP) in the current frame. */
2176 #define RETURN_ADDR_RTX(COUNT, FRAME) \
2177 ((COUNT) == 0 \
2178 ? gen_rtx_MEM (Pmode, plus_constant (Pmode, arg_pointer_rtx, \
2179 -UNITS_PER_WORD)) \
2180 : gen_rtx_MEM (Pmode, plus_constant (Pmode, (FRAME), UNITS_PER_WORD)))
2181
2182 /* PC is dbx register 8; let's use that column for RA. */
2183 #define DWARF_FRAME_RETURN_COLUMN (TARGET_64BIT ? 16 : 8)
2184
2185 /* Before the prologue, the top of the frame is at 4(%esp). */
2186 #define INCOMING_FRAME_SP_OFFSET UNITS_PER_WORD
2187
2188 /* Describe how we implement __builtin_eh_return. */
2189 #define EH_RETURN_DATA_REGNO(N) ((N) <= DX_REG ? (N) : INVALID_REGNUM)
2190 #define EH_RETURN_STACKADJ_RTX gen_rtx_REG (Pmode, CX_REG)
2191
2192
2193 /* Select a format to encode pointers in exception handling data. CODE
2194 is 0 for data, 1 for code labels, 2 for function pointers. GLOBAL is
2195 true if the symbol may be affected by dynamic relocations.
2196
2197 ??? All x86 object file formats are capable of representing this.
2198 After all, the relocation needed is the same as for the call insn.
2199 Whether or not a particular assembler allows us to enter such, I
2200 guess we'll have to see. */
2201 #define ASM_PREFERRED_EH_DATA_FORMAT(CODE, GLOBAL) \
2202 asm_preferred_eh_data_format ((CODE), (GLOBAL))
2203
2204 /* This is how to output an insn to push a register on the stack.
2205 It need not be very fast code. */
2206
2207 #define ASM_OUTPUT_REG_PUSH(FILE, REGNO) \
2208 do { \
2209 if (TARGET_64BIT) \
2210 asm_fprintf ((FILE), "\tpush{q}\t%%r%s\n", \
2211 reg_names[(REGNO)] + (REX_INT_REGNO_P (REGNO) != 0)); \
2212 else \
2213 asm_fprintf ((FILE), "\tpush{l}\t%%e%s\n", reg_names[(REGNO)]); \
2214 } while (0)
2215
2216 /* This is how to output an insn to pop a register from the stack.
2217 It need not be very fast code. */
2218
2219 #define ASM_OUTPUT_REG_POP(FILE, REGNO) \
2220 do { \
2221 if (TARGET_64BIT) \
2222 asm_fprintf ((FILE), "\tpop{q}\t%%r%s\n", \
2223 reg_names[(REGNO)] + (REX_INT_REGNO_P (REGNO) != 0)); \
2224 else \
2225 asm_fprintf ((FILE), "\tpop{l}\t%%e%s\n", reg_names[(REGNO)]); \
2226 } while (0)
2227
2228 /* This is how to output an element of a case-vector that is absolute. */
2229
2230 #define ASM_OUTPUT_ADDR_VEC_ELT(FILE, VALUE) \
2231 ix86_output_addr_vec_elt ((FILE), (VALUE))
2232
2233 /* This is how to output an element of a case-vector that is relative. */
2234
2235 #define ASM_OUTPUT_ADDR_DIFF_ELT(FILE, BODY, VALUE, REL) \
2236 ix86_output_addr_diff_elt ((FILE), (VALUE), (REL))
2237
2238 /* When we see %v, we will print the 'v' prefix if TARGET_AVX is true. */
2239
2240 #define ASM_OUTPUT_AVX_PREFIX(STREAM, PTR) \
2241 { \
2242 if ((PTR)[0] == '%' && (PTR)[1] == 'v') \
2243 (PTR) += TARGET_AVX ? 1 : 2; \
2244 }
2245
2246 /* A C statement or statements which output an assembler instruction
2247 opcode to the stdio stream STREAM. The macro-operand PTR is a
2248 variable of type `char *' which points to the opcode name in
2249 its "internal" form--the form that is written in the machine
2250 description. */
2251
2252 #define ASM_OUTPUT_OPCODE(STREAM, PTR) \
2253 ASM_OUTPUT_AVX_PREFIX ((STREAM), (PTR))
2254
2255 /* A C statement to output to the stdio stream FILE an assembler
2256 command to pad the location counter to a multiple of 1<<LOG
2257 bytes if it is within MAX_SKIP bytes. */
2258
2259 #ifdef HAVE_GAS_MAX_SKIP_P2ALIGN
2260 #undef ASM_OUTPUT_MAX_SKIP_PAD
2261 #define ASM_OUTPUT_MAX_SKIP_PAD(FILE, LOG, MAX_SKIP) \
2262 if ((LOG) != 0) \
2263 { \
2264 if ((MAX_SKIP) == 0) \
2265 fprintf ((FILE), "\t.p2align %d\n", (LOG)); \
2266 else \
2267 fprintf ((FILE), "\t.p2align %d,,%d\n", (LOG), (MAX_SKIP)); \
2268 }
2269 #endif
2270
2271 /* Write the extra assembler code needed to declare a function
2272 properly. */
2273
2274 #undef ASM_OUTPUT_FUNCTION_LABEL
2275 #define ASM_OUTPUT_FUNCTION_LABEL(FILE, NAME, DECL) \
2276 ix86_asm_output_function_label ((FILE), (NAME), (DECL))
2277
2278 /* Under some conditions we need jump tables in the text section,
2279 because the assembler cannot handle label differences between
2280 sections. This is the case for x86_64 on Mach-O for example. */
2281
2282 #define JUMP_TABLES_IN_TEXT_SECTION \
2283 (flag_pic && ((TARGET_MACHO && TARGET_64BIT) \
2284 || (!TARGET_64BIT && !HAVE_AS_GOTOFF_IN_DATA)))
2285
2286 /* Switch to init or fini section via SECTION_OP, emit a call to FUNC,
2287 and switch back. For x86 we do this only to save a few bytes that
2288 would otherwise be unused in the text section. */
2289 #define CRT_MKSTR2(VAL) #VAL
2290 #define CRT_MKSTR(x) CRT_MKSTR2(x)
2291
2292 #define CRT_CALL_STATIC_FUNCTION(SECTION_OP, FUNC) \
2293 asm (SECTION_OP "\n\t" \
2294 "call " CRT_MKSTR(__USER_LABEL_PREFIX__) #FUNC "\n" \
2295 TEXT_SECTION_ASM_OP);
2296
2297 /* Default threshold for putting data in large sections
2298 with x86-64 medium memory model */
2299 #define DEFAULT_LARGE_SECTION_THRESHOLD 65536
2300
2301 /* Adjust the length of the insn with the length of BND prefix. */
2302
2303 #define ADJUST_INSN_LENGTH(INSN, LENGTH) \
2304 do { \
2305 if (NONDEBUG_INSN_P (INSN) && INSN_CODE (INSN) >= 0 \
2306 && get_attr_maybe_prefix_bnd (INSN)) \
2307 LENGTH += ix86_bnd_prefixed_insn_p (INSN); \
2308 } while (0)
2309
2310 /* Which processor to tune code generation for. These must be in sync
2312 with processor_target_table in i386.c. */
2313
2314 enum processor_type
2315 {
2316 PROCESSOR_GENERIC = 0,
2317 PROCESSOR_I386, /* 80386 */
2318 PROCESSOR_I486, /* 80486DX, 80486SX, 80486DX[24] */
2319 PROCESSOR_PENTIUM,
2320 PROCESSOR_LAKEMONT,
2321 PROCESSOR_PENTIUMPRO,
2322 PROCESSOR_PENTIUM4,
2323 PROCESSOR_NOCONA,
2324 PROCESSOR_CORE2,
2325 PROCESSOR_NEHALEM,
2326 PROCESSOR_SANDYBRIDGE,
2327 PROCESSOR_HASWELL,
2328 PROCESSOR_BONNELL,
2329 PROCESSOR_SILVERMONT,
2330 PROCESSOR_KNL,
2331 PROCESSOR_SKYLAKE_AVX512,
2332 PROCESSOR_INTEL,
2333 PROCESSOR_GEODE,
2334 PROCESSOR_K6,
2335 PROCESSOR_ATHLON,
2336 PROCESSOR_K8,
2337 PROCESSOR_AMDFAM10,
2338 PROCESSOR_BDVER1,
2339 PROCESSOR_BDVER2,
2340 PROCESSOR_BDVER3,
2341 PROCESSOR_BDVER4,
2342 PROCESSOR_BTVER1,
2343 PROCESSOR_BTVER2,
2344 PROCESSOR_ZNVER1,
2345 PROCESSOR_max
2346 };
2347
2348 extern enum processor_type ix86_tune;
2349 extern enum processor_type ix86_arch;
2350
2351 /* Size of the RED_ZONE area. */
2352 #define RED_ZONE_SIZE 128
2353 /* Reserved area of the red zone for temporaries. */
2354 #define RED_ZONE_RESERVE 8
2355
2356 extern unsigned int ix86_preferred_stack_boundary;
2357 extern unsigned int ix86_incoming_stack_boundary;
2358
2359 /* Smallest class containing REGNO. */
2360 extern enum reg_class const regclass_map[FIRST_PSEUDO_REGISTER];
2361
2362 enum ix86_fpcmp_strategy {
2363 IX86_FPCMP_SAHF,
2364 IX86_FPCMP_COMI,
2365 IX86_FPCMP_ARITH
2366 };
2367
2368 /* To properly truncate FP values into integers, we need to set i387 control
2370 word. We can't emit proper mode switching code before reload, as spills
2371 generated by reload may truncate values incorrectly, but we still can avoid
2372 redundant computation of new control word by the mode switching pass.
2373 The fldcw instructions are still emitted redundantly, but this is probably
2374 not going to be noticeable problem, as most CPUs do have fast path for
2375 the sequence.
2376
2377 The machinery is to emit simple truncation instructions and split them
2378 before reload to instructions having USEs of two memory locations that
2379 are filled by this code to old and new control word.
2380
2381 Post-reload pass may be later used to eliminate the redundant fildcw if
2382 needed. */
2383
2384 enum ix86_entity
2385 {
2386 AVX_U128 = 0,
2387 I387_TRUNC,
2388 I387_FLOOR,
2389 I387_CEIL,
2390 I387_MASK_PM,
2391 MAX_386_ENTITIES
2392 };
2393
2394 enum ix86_stack_slot
2395 {
2396 SLOT_TEMP = 0,
2397 SLOT_CW_STORED,
2398 SLOT_CW_TRUNC,
2399 SLOT_CW_FLOOR,
2400 SLOT_CW_CEIL,
2401 SLOT_CW_MASK_PM,
2402 MAX_386_STACK_LOCALS
2403 };
2404
2405 enum avx_u128_state
2406 {
2407 AVX_U128_CLEAN,
2408 AVX_U128_DIRTY,
2409 AVX_U128_ANY
2410 };
2411
2412 /* Define this macro if the port needs extra instructions inserted
2413 for mode switching in an optimizing compilation. */
2414
2415 #define OPTIMIZE_MODE_SWITCHING(ENTITY) \
2416 ix86_optimize_mode_switching[(ENTITY)]
2417
2418 /* If you define `OPTIMIZE_MODE_SWITCHING', you have to define this as
2419 initializer for an array of integers. Each initializer element N
2420 refers to an entity that needs mode switching, and specifies the
2421 number of different modes that might need to be set for this
2422 entity. The position of the initializer in the initializer -
2423 starting counting at zero - determines the integer that is used to
2424 refer to the mode-switched entity in question. */
2425
2426 #define NUM_MODES_FOR_MODE_SWITCHING \
2427 { AVX_U128_ANY, I387_CW_ANY, I387_CW_ANY, I387_CW_ANY, I387_CW_ANY }
2428
2429
2430 /* Avoid renaming of stack registers, as doing so in combination with
2432 scheduling just increases amount of live registers at time and in
2433 the turn amount of fxch instructions needed.
2434
2435 ??? Maybe Pentium chips benefits from renaming, someone can try....
2436
2437 Don't rename evex to non-evex sse registers. */
2438
2439 #define HARD_REGNO_RENAME_OK(SRC, TARGET) \
2440 (!STACK_REGNO_P (SRC) \
2441 && EXT_REX_SSE_REGNO_P (SRC) == EXT_REX_SSE_REGNO_P (TARGET))
2442
2443
2444 #define FASTCALL_PREFIX '@'
2446
2447 #ifndef USED_FOR_TARGET
2449 /* Structure describing stack frame layout.
2450 Stack grows downward:
2451
2452 [arguments]
2453 <- ARG_POINTER
2454 saved pc
2455
2456 saved static chain if ix86_static_chain_on_stack
2457
2458 saved frame pointer if frame_pointer_needed
2459 <- HARD_FRAME_POINTER
2460 [saved regs]
2461 <- regs_save_offset
2462 [padding0]
2463
2464 [saved SSE regs]
2465 <- sse_regs_save_offset
2466 [padding1] |
2467 | <- FRAME_POINTER
2468 [va_arg registers] |
2469 |
2470 [frame] |
2471 |
2472 [padding2] | = to_allocate
2473 <- STACK_POINTER
2474 */
2475 struct GTY(()) ix86_frame
2476 {
2477 int nsseregs;
2478 int nregs;
2479 int va_arg_size;
2480 int red_zone_size;
2481 int outgoing_arguments_size;
2482
2483 /* The offsets relative to ARG_POINTER. */
2484 HOST_WIDE_INT frame_pointer_offset;
2485 HOST_WIDE_INT hard_frame_pointer_offset;
2486 HOST_WIDE_INT stack_pointer_offset;
2487 HOST_WIDE_INT hfp_save_offset;
2488 HOST_WIDE_INT reg_save_offset;
2489 HOST_WIDE_INT sse_reg_save_offset;
2490
2491 /* When save_regs_using_mov is set, emit prologue using
2492 move instead of push instructions. */
2493 bool save_regs_using_mov;
2494 };
2495
2496 /* Machine specific frame tracking during prologue/epilogue generation. */
2497
2498 struct GTY(()) machine_frame_state
2499 {
2500 /* This pair tracks the currently active CFA as reg+offset. When reg
2501 is drap_reg, we don't bother trying to record here the real CFA when
2502 it might really be a DW_CFA_def_cfa_expression. */
2503 rtx cfa_reg;
2504 HOST_WIDE_INT cfa_offset;
2505
2506 /* The current offset (canonically from the CFA) of ESP and EBP.
2507 When stack frame re-alignment is active, these may not be relative
2508 to the CFA. However, in all cases they are relative to the offsets
2509 of the saved registers stored in ix86_frame. */
2510 HOST_WIDE_INT sp_offset;
2511 HOST_WIDE_INT fp_offset;
2512
2513 /* The size of the red-zone that may be assumed for the purposes of
2514 eliding register restore notes in the epilogue. This may be zero
2515 if no red-zone is in effect, or may be reduced from the real
2516 red-zone value by a maximum runtime stack re-alignment value. */
2517 int red_zone_offset;
2518
2519 /* Indicate whether each of ESP, EBP or DRAP currently holds a valid
2520 value within the frame. If false then the offset above should be
2521 ignored. Note that DRAP, if valid, *always* points to the CFA and
2522 thus has an offset of zero. */
2523 BOOL_BITFIELD sp_valid : 1;
2524 BOOL_BITFIELD fp_valid : 1;
2525 BOOL_BITFIELD drap_valid : 1;
2526
2527 /* Indicate whether the local stack frame has been re-aligned. When
2528 set, the SP/FP offsets above are relative to the aligned frame
2529 and not the CFA. */
2530 BOOL_BITFIELD realigned : 1;
2531 };
2532
2533 /* Private to winnt.c. */
2534 struct seh_frame_state;
2535
2536 struct GTY(()) machine_function {
2537 struct stack_local_entry *stack_locals;
2538 const char *some_ld_name;
2539 int varargs_gpr_size;
2540 int varargs_fpr_size;
2541 int optimize_mode_switching[MAX_386_ENTITIES];
2542
2543 /* Cached initial frame layout for the current function. */
2544 struct ix86_frame frame;
2545
2546 /* Number of saved registers USE_FAST_PROLOGUE_EPILOGUE
2547 has been computed for. */
2548 int use_fast_prologue_epilogue_nregs;
2549
2550 /* For -fsplit-stack support: A stack local which holds a pointer to
2551 the stack arguments for a function with a variable number of
2552 arguments. This is set at the start of the function and is used
2553 to initialize the overflow_arg_area field of the va_list
2554 structure. */
2555 rtx split_stack_varargs_pointer;
2556
2557 /* This value is used for amd64 targets and specifies the current abi
2558 to be used. MS_ABI means ms abi. Otherwise SYSV_ABI means sysv abi. */
2559 ENUM_BITFIELD(calling_abi) call_abi : 8;
2560
2561 /* Nonzero if the function accesses a previous frame. */
2562 BOOL_BITFIELD accesses_prev_frame : 1;
2563
2564 /* Nonzero if the function requires a CLD in the prologue. */
2565 BOOL_BITFIELD needs_cld : 1;
2566
2567 /* Set by ix86_compute_frame_layout and used by prologue/epilogue
2568 expander to determine the style used. */
2569 BOOL_BITFIELD use_fast_prologue_epilogue : 1;
2570
2571 /* Nonzero if the current function calls pc thunk and
2572 must not use the red zone. */
2573 BOOL_BITFIELD pc_thunk_call_expanded : 1;
2574
2575 /* If true, the current function needs the default PIC register, not
2576 an alternate register (on x86) and must not use the red zone (on
2577 x86_64), even if it's a leaf function. We don't want the
2578 function to be regarded as non-leaf because TLS calls need not
2579 affect register allocation. This flag is set when a TLS call
2580 instruction is expanded within a function, and never reset, even
2581 if all such instructions are optimized away. Use the
2582 ix86_current_function_calls_tls_descriptor macro for a better
2583 approximation. */
2584 BOOL_BITFIELD tls_descriptor_call_expanded_p : 1;
2585
2586 /* If true, the current function has a STATIC_CHAIN is placed on the
2587 stack below the return address. */
2588 BOOL_BITFIELD static_chain_on_stack : 1;
2589
2590 /* If true, it is safe to not save/restore DRAP register. */
2591 BOOL_BITFIELD no_drap_save_restore : 1;
2592
2593 /* How to generate indirec branch. */
2594 ENUM_BITFIELD(indirect_branch) indirect_branch_type : 3;
2595
2596 /* If true, the current function has local indirect jumps, like
2597 "indirect_jump" or "tablejump". */
2598 BOOL_BITFIELD has_local_indirect_jump : 1;
2599
2600 /* How to generate function return. */
2601 ENUM_BITFIELD(indirect_branch) function_return_type : 3;
2602
2603 /* If true, there is register available for argument passing. This
2604 is used only in ix86_function_ok_for_sibcall by 32-bit to determine
2605 if there is scratch register available for indirect sibcall. In
2606 64-bit, rax, r10 and r11 are scratch registers which aren't used to
2607 pass arguments and can be used for indirect sibcall. */
2608 BOOL_BITFIELD arg_reg_available : 1;
2609
2610 /* During prologue/epilogue generation, the current frame state.
2611 Otherwise, the frame state at the end of the prologue. */
2612 struct machine_frame_state fs;
2613
2614 /* During SEH output, this is non-null. */
2615 struct seh_frame_state * GTY((skip(""))) seh;
2616 };
2617 #endif
2618
2619 #define ix86_stack_locals (cfun->machine->stack_locals)
2620 #define ix86_varargs_gpr_size (cfun->machine->varargs_gpr_size)
2621 #define ix86_varargs_fpr_size (cfun->machine->varargs_fpr_size)
2622 #define ix86_optimize_mode_switching (cfun->machine->optimize_mode_switching)
2623 #define ix86_current_function_needs_cld (cfun->machine->needs_cld)
2624 #define ix86_pc_thunk_call_expanded (cfun->machine->pc_thunk_call_expanded)
2625 #define ix86_tls_descriptor_calls_expanded_in_cfun \
2626 (cfun->machine->tls_descriptor_call_expanded_p)
2627 /* Since tls_descriptor_call_expanded is not cleared, even if all TLS
2628 calls are optimized away, we try to detect cases in which it was
2629 optimized away. Since such instructions (use (reg REG_SP)), we can
2630 verify whether there's any such instruction live by testing that
2631 REG_SP is live. */
2632 #define ix86_current_function_calls_tls_descriptor \
2633 (ix86_tls_descriptor_calls_expanded_in_cfun && df_regs_ever_live_p (SP_REG))
2634 #define ix86_static_chain_on_stack (cfun->machine->static_chain_on_stack)
2635 #define ix86_red_zone_size (cfun->machine->frame.red_zone_size)
2636
2637 /* Control behavior of x86_file_start. */
2638 #define X86_FILE_START_VERSION_DIRECTIVE false
2639 #define X86_FILE_START_FLTUSED false
2640
2641 /* Flag to mark data that is in the large address area. */
2642 #define SYMBOL_FLAG_FAR_ADDR (SYMBOL_FLAG_MACH_DEP << 0)
2643 #define SYMBOL_REF_FAR_ADDR_P(X) \
2644 ((SYMBOL_REF_FLAGS (X) & SYMBOL_FLAG_FAR_ADDR) != 0)
2645
2646 /* Flags to mark dllimport/dllexport. Used by PE ports, but handy to
2647 have defined always, to avoid ifdefing. */
2648 #define SYMBOL_FLAG_DLLIMPORT (SYMBOL_FLAG_MACH_DEP << 1)
2649 #define SYMBOL_REF_DLLIMPORT_P(X) \
2650 ((SYMBOL_REF_FLAGS (X) & SYMBOL_FLAG_DLLIMPORT) != 0)
2651
2652 #define SYMBOL_FLAG_DLLEXPORT (SYMBOL_FLAG_MACH_DEP << 2)
2653 #define SYMBOL_REF_DLLEXPORT_P(X) \
2654 ((SYMBOL_REF_FLAGS (X) & SYMBOL_FLAG_DLLEXPORT) != 0)
2655
2656 #define SYMBOL_FLAG_STUBVAR (SYMBOL_FLAG_MACH_DEP << 4)
2657 #define SYMBOL_REF_STUBVAR_P(X) \
2658 ((SYMBOL_REF_FLAGS (X) & SYMBOL_FLAG_STUBVAR) != 0)
2659
2660 extern void debug_ready_dispatch (void);
2661 extern void debug_dispatch_window (int);
2662
2663 /* The value at zero is only defined for the BMI instructions
2664 LZCNT and TZCNT, not the BSR/BSF insns in the original isa. */
2665 #define CTZ_DEFINED_VALUE_AT_ZERO(MODE, VALUE) \
2666 ((VALUE) = GET_MODE_BITSIZE (MODE), TARGET_BMI ? 1 : 0)
2667 #define CLZ_DEFINED_VALUE_AT_ZERO(MODE, VALUE) \
2668 ((VALUE) = GET_MODE_BITSIZE (MODE), TARGET_LZCNT ? 1 : 0)
2669
2670
2671 /* Flags returned by ix86_get_callcvt (). */
2672 #define IX86_CALLCVT_CDECL 0x1
2673 #define IX86_CALLCVT_STDCALL 0x2
2674 #define IX86_CALLCVT_FASTCALL 0x4
2675 #define IX86_CALLCVT_THISCALL 0x8
2676 #define IX86_CALLCVT_REGPARM 0x10
2677 #define IX86_CALLCVT_SSEREGPARM 0x20
2678
2679 #define IX86_BASE_CALLCVT(FLAGS) \
2680 ((FLAGS) & (IX86_CALLCVT_CDECL | IX86_CALLCVT_STDCALL \
2681 | IX86_CALLCVT_FASTCALL | IX86_CALLCVT_THISCALL))
2682
2683 #define RECIP_MASK_NONE 0x00
2684 #define RECIP_MASK_DIV 0x01
2685 #define RECIP_MASK_SQRT 0x02
2686 #define RECIP_MASK_VEC_DIV 0x04
2687 #define RECIP_MASK_VEC_SQRT 0x08
2688 #define RECIP_MASK_ALL (RECIP_MASK_DIV | RECIP_MASK_SQRT \
2689 | RECIP_MASK_VEC_DIV | RECIP_MASK_VEC_SQRT)
2690 #define RECIP_MASK_DEFAULT (RECIP_MASK_VEC_DIV | RECIP_MASK_VEC_SQRT)
2691
2692 #define TARGET_RECIP_DIV ((recip_mask & RECIP_MASK_DIV) != 0)
2693 #define TARGET_RECIP_SQRT ((recip_mask & RECIP_MASK_SQRT) != 0)
2694 #define TARGET_RECIP_VEC_DIV ((recip_mask & RECIP_MASK_VEC_DIV) != 0)
2695 #define TARGET_RECIP_VEC_SQRT ((recip_mask & RECIP_MASK_VEC_SQRT) != 0)
2696
2697
2698 #define TARGET_INDIRECT_BRANCH_REGISTER \
2699 (ix86_indirect_branch_register \
2700 || cfun->machine->indirect_branch_type != indirect_branch_keep)
2701
2702 #define IX86_HLE_ACQUIRE (1 << 16)
2703 #define IX86_HLE_RELEASE (1 << 17)
2704
2705 /* For switching between functions with different target attributes. */
2706 #define SWITCHABLE_TARGET 1
2707
2708 #define TARGET_SUPPORTS_WIDE_INT 1
2709
2710 /*
2711 Local variables:
2712 version-control: t
2713 End:
2714 */
2715