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i386.h revision 1.1.1.1
      1  1.1  mrg /* Definitions of target machine for GCC for IA-32.
      2  1.1  mrg    Copyright (C) 1988, 1992, 1994, 1995, 1996, 1997, 1998, 1999, 2000,
      3  1.1  mrg    2001, 2002, 2003, 2004, 2005, 2006, 2007, 2008, 2009, 2010
      4  1.1  mrg    Free Software Foundation, Inc.
      5  1.1  mrg 
      6  1.1  mrg This file is part of GCC.
      7  1.1  mrg 
      8  1.1  mrg GCC is free software; you can redistribute it and/or modify
      9  1.1  mrg it under the terms of the GNU General Public License as published by
     10  1.1  mrg the Free Software Foundation; either version 3, or (at your option)
     11  1.1  mrg any later version.
     12  1.1  mrg 
     13  1.1  mrg GCC is distributed in the hope that it will be useful,
     14  1.1  mrg but WITHOUT ANY WARRANTY; without even the implied warranty of
     15  1.1  mrg MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
     16  1.1  mrg GNU General Public License for more details.
     17  1.1  mrg 
     18  1.1  mrg Under Section 7 of GPL version 3, you are granted additional
     19  1.1  mrg permissions described in the GCC Runtime Library Exception, version
     20  1.1  mrg 3.1, as published by the Free Software Foundation.
     21  1.1  mrg 
     22  1.1  mrg You should have received a copy of the GNU General Public License and
     23  1.1  mrg a copy of the GCC Runtime Library Exception along with this program;
     24  1.1  mrg see the files COPYING3 and COPYING.RUNTIME respectively.  If not, see
     25  1.1  mrg <http://www.gnu.org/licenses/>.  */
     26  1.1  mrg 
     27  1.1  mrg /* The purpose of this file is to define the characteristics of the i386,
     28  1.1  mrg    independent of assembler syntax or operating system.
     29  1.1  mrg 
     30  1.1  mrg    Three other files build on this one to describe a specific assembler syntax:
     31  1.1  mrg    bsd386.h, att386.h, and sun386.h.
     32  1.1  mrg 
     33  1.1  mrg    The actual tm.h file for a particular system should include
     34  1.1  mrg    this file, and then the file for the appropriate assembler syntax.
     35  1.1  mrg 
     36  1.1  mrg    Many macros that specify assembler syntax are omitted entirely from
     37  1.1  mrg    this file because they really belong in the files for particular
     38  1.1  mrg    assemblers.  These include RP, IP, LPREFIX, PUT_OP_SIZE, USE_STAR,
     39  1.1  mrg    ADDR_BEG, ADDR_END, PRINT_IREG, PRINT_SCALE, PRINT_B_I_S, and many
     40  1.1  mrg    that start with ASM_ or end in ASM_OP.  */
     41  1.1  mrg 
     42  1.1  mrg /* Redefines for option macros.  */
     43  1.1  mrg 
     44  1.1  mrg #define TARGET_64BIT	OPTION_ISA_64BIT
     45  1.1  mrg #define TARGET_MMX	OPTION_ISA_MMX
     46  1.1  mrg #define TARGET_3DNOW	OPTION_ISA_3DNOW
     47  1.1  mrg #define TARGET_3DNOW_A	OPTION_ISA_3DNOW_A
     48  1.1  mrg #define TARGET_SSE	OPTION_ISA_SSE
     49  1.1  mrg #define TARGET_SSE2	OPTION_ISA_SSE2
     50  1.1  mrg #define TARGET_SSE3	OPTION_ISA_SSE3
     51  1.1  mrg #define TARGET_SSSE3	OPTION_ISA_SSSE3
     52  1.1  mrg #define TARGET_SSE4_1	OPTION_ISA_SSE4_1
     53  1.1  mrg #define TARGET_SSE4_2	OPTION_ISA_SSE4_2
     54  1.1  mrg #define TARGET_AVX	OPTION_ISA_AVX
     55  1.1  mrg #define TARGET_FMA	OPTION_ISA_FMA
     56  1.1  mrg #define TARGET_SSE4A	OPTION_ISA_SSE4A
     57  1.1  mrg #define TARGET_FMA4	OPTION_ISA_FMA4
     58  1.1  mrg #define TARGET_XOP	OPTION_ISA_XOP
     59  1.1  mrg #define TARGET_LWP	OPTION_ISA_LWP
     60  1.1  mrg #define TARGET_ROUND	OPTION_ISA_ROUND
     61  1.1  mrg #define TARGET_ABM	OPTION_ISA_ABM
     62  1.1  mrg #define TARGET_POPCNT	OPTION_ISA_POPCNT
     63  1.1  mrg #define TARGET_SAHF	OPTION_ISA_SAHF
     64  1.1  mrg #define TARGET_MOVBE	OPTION_ISA_MOVBE
     65  1.1  mrg #define TARGET_CRC32	OPTION_ISA_CRC32
     66  1.1  mrg #define TARGET_AES	OPTION_ISA_AES
     67  1.1  mrg #define TARGET_PCLMUL	OPTION_ISA_PCLMUL
     68  1.1  mrg #define TARGET_CMPXCHG16B OPTION_ISA_CX16
     69  1.1  mrg 
     70  1.1  mrg 
     71  1.1  mrg /* SSE4.1 defines round instructions */
     72  1.1  mrg #define	OPTION_MASK_ISA_ROUND	OPTION_MASK_ISA_SSE4_1
     73  1.1  mrg #define	OPTION_ISA_ROUND	((ix86_isa_flags & OPTION_MASK_ISA_ROUND) != 0)
     74  1.1  mrg 
     75  1.1  mrg #include "config/vxworks-dummy.h"
     76  1.1  mrg 
     77  1.1  mrg /* Algorithm to expand string function with.  */
     78  1.1  mrg enum stringop_alg
     79  1.1  mrg {
     80  1.1  mrg    no_stringop,
     81  1.1  mrg    libcall,
     82  1.1  mrg    rep_prefix_1_byte,
     83  1.1  mrg    rep_prefix_4_byte,
     84  1.1  mrg    rep_prefix_8_byte,
     85  1.1  mrg    loop_1_byte,
     86  1.1  mrg    loop,
     87  1.1  mrg    unrolled_loop
     88  1.1  mrg };
     89  1.1  mrg 
     90  1.1  mrg #define NAX_STRINGOP_ALGS 4
     91  1.1  mrg 
     92  1.1  mrg /* Specify what algorithm to use for stringops on known size.
     93  1.1  mrg    When size is unknown, the UNKNOWN_SIZE alg is used.  When size is
     94  1.1  mrg    known at compile time or estimated via feedback, the SIZE array
     95  1.1  mrg    is walked in order until MAX is greater then the estimate (or -1
     96  1.1  mrg    means infinity).  Corresponding ALG is used then.
     97  1.1  mrg    For example initializer:
     98  1.1  mrg     {{256, loop}, {-1, rep_prefix_4_byte}}
     99  1.1  mrg    will use loop for blocks smaller or equal to 256 bytes, rep prefix will
    100  1.1  mrg    be used otherwise.  */
    101  1.1  mrg struct stringop_algs
    102  1.1  mrg {
    103  1.1  mrg   const enum stringop_alg unknown_size;
    104  1.1  mrg   const struct stringop_strategy {
    105  1.1  mrg     const int max;
    106  1.1  mrg     const enum stringop_alg alg;
    107  1.1  mrg   } size [NAX_STRINGOP_ALGS];
    108  1.1  mrg };
    109  1.1  mrg 
    110  1.1  mrg /* Define the specific costs for a given cpu */
    111  1.1  mrg 
    112  1.1  mrg struct processor_costs {
    113  1.1  mrg   const int add;		/* cost of an add instruction */
    114  1.1  mrg   const int lea;		/* cost of a lea instruction */
    115  1.1  mrg   const int shift_var;		/* variable shift costs */
    116  1.1  mrg   const int shift_const;	/* constant shift costs */
    117  1.1  mrg   const int mult_init[5];	/* cost of starting a multiply
    118  1.1  mrg 				   in QImode, HImode, SImode, DImode, TImode*/
    119  1.1  mrg   const int mult_bit;		/* cost of multiply per each bit set */
    120  1.1  mrg   const int divide[5];		/* cost of a divide/mod
    121  1.1  mrg 				   in QImode, HImode, SImode, DImode, TImode*/
    122  1.1  mrg   int movsx;			/* The cost of movsx operation.  */
    123  1.1  mrg   int movzx;			/* The cost of movzx operation.  */
    124  1.1  mrg   const int large_insn;		/* insns larger than this cost more */
    125  1.1  mrg   const int move_ratio;		/* The threshold of number of scalar
    126  1.1  mrg 				   memory-to-memory move insns.  */
    127  1.1  mrg   const int movzbl_load;	/* cost of loading using movzbl */
    128  1.1  mrg   const int int_load[3];	/* cost of loading integer registers
    129  1.1  mrg 				   in QImode, HImode and SImode relative
    130  1.1  mrg 				   to reg-reg move (2).  */
    131  1.1  mrg   const int int_store[3];	/* cost of storing integer register
    132  1.1  mrg 				   in QImode, HImode and SImode */
    133  1.1  mrg   const int fp_move;		/* cost of reg,reg fld/fst */
    134  1.1  mrg   const int fp_load[3];		/* cost of loading FP register
    135  1.1  mrg 				   in SFmode, DFmode and XFmode */
    136  1.1  mrg   const int fp_store[3];	/* cost of storing FP register
    137  1.1  mrg 				   in SFmode, DFmode and XFmode */
    138  1.1  mrg   const int mmx_move;		/* cost of moving MMX register.  */
    139  1.1  mrg   const int mmx_load[2];	/* cost of loading MMX register
    140  1.1  mrg 				   in SImode and DImode */
    141  1.1  mrg   const int mmx_store[2];	/* cost of storing MMX register
    142  1.1  mrg 				   in SImode and DImode */
    143  1.1  mrg   const int sse_move;		/* cost of moving SSE register.  */
    144  1.1  mrg   const int sse_load[3];	/* cost of loading SSE register
    145  1.1  mrg 				   in SImode, DImode and TImode*/
    146  1.1  mrg   const int sse_store[3];	/* cost of storing SSE register
    147  1.1  mrg 				   in SImode, DImode and TImode*/
    148  1.1  mrg   const int mmxsse_to_integer;	/* cost of moving mmxsse register to
    149  1.1  mrg 				   integer and vice versa.  */
    150  1.1  mrg   const int l1_cache_size;	/* size of l1 cache, in kilobytes.  */
    151  1.1  mrg   const int l2_cache_size;	/* size of l2 cache, in kilobytes.  */
    152  1.1  mrg   const int prefetch_block;	/* bytes moved to cache for prefetch.  */
    153  1.1  mrg   const int simultaneous_prefetches; /* number of parallel prefetch
    154  1.1  mrg 				   operations.  */
    155  1.1  mrg   const int branch_cost;	/* Default value for BRANCH_COST.  */
    156  1.1  mrg   const int fadd;		/* cost of FADD and FSUB instructions.  */
    157  1.1  mrg   const int fmul;		/* cost of FMUL instruction.  */
    158  1.1  mrg   const int fdiv;		/* cost of FDIV instruction.  */
    159  1.1  mrg   const int fabs;		/* cost of FABS instruction.  */
    160  1.1  mrg   const int fchs;		/* cost of FCHS instruction.  */
    161  1.1  mrg   const int fsqrt;		/* cost of FSQRT instruction.  */
    162  1.1  mrg 				/* Specify what algorithm
    163  1.1  mrg 				   to use for stringops on unknown size.  */
    164  1.1  mrg   struct stringop_algs memcpy[2], memset[2];
    165  1.1  mrg   const int scalar_stmt_cost;   /* Cost of any scalar operation, excluding
    166  1.1  mrg 				   load and store.  */
    167  1.1  mrg   const int scalar_load_cost;   /* Cost of scalar load.  */
    168  1.1  mrg   const int scalar_store_cost;  /* Cost of scalar store.  */
    169  1.1  mrg   const int vec_stmt_cost;      /* Cost of any vector operation, excluding
    170  1.1  mrg                                    load, store, vector-to-scalar and
    171  1.1  mrg                                    scalar-to-vector operation.  */
    172  1.1  mrg   const int vec_to_scalar_cost;    /* Cost of vect-to-scalar operation.  */
    173  1.1  mrg   const int scalar_to_vec_cost;    /* Cost of scalar-to-vector operation.  */
    174  1.1  mrg   const int vec_align_load_cost;   /* Cost of aligned vector load.  */
    175  1.1  mrg   const int vec_unalign_load_cost; /* Cost of unaligned vector load.  */
    176  1.1  mrg   const int vec_store_cost;        /* Cost of vector store.  */
    177  1.1  mrg   const int cond_taken_branch_cost;    /* Cost of taken branch for vectorizer
    178  1.1  mrg 					  cost model.  */
    179  1.1  mrg   const int cond_not_taken_branch_cost;/* Cost of not taken branch for
    180  1.1  mrg 					  vectorizer cost model.  */
    181  1.1  mrg };
    182  1.1  mrg 
    183  1.1  mrg extern const struct processor_costs *ix86_cost;
    184  1.1  mrg extern const struct processor_costs ix86_size_cost;
    185  1.1  mrg 
    186  1.1  mrg #define ix86_cur_cost() \
    187  1.1  mrg   (optimize_insn_for_size_p () ? &ix86_size_cost: ix86_cost)
    188  1.1  mrg 
    189  1.1  mrg /* Macros used in the machine description to test the flags.  */
    190  1.1  mrg 
    191  1.1  mrg /* configure can arrange to make this 2, to force a 486.  */
    192  1.1  mrg 
    193  1.1  mrg #ifndef TARGET_CPU_DEFAULT
    194  1.1  mrg #define TARGET_CPU_DEFAULT TARGET_CPU_DEFAULT_generic
    195  1.1  mrg #endif
    196  1.1  mrg 
    197  1.1  mrg #ifndef TARGET_FPMATH_DEFAULT
    198  1.1  mrg #define TARGET_FPMATH_DEFAULT \
    199  1.1  mrg   (TARGET_64BIT && TARGET_SSE ? FPMATH_SSE : FPMATH_387)
    200  1.1  mrg #endif
    201  1.1  mrg 
    202  1.1  mrg #define TARGET_FLOAT_RETURNS_IN_80387 TARGET_FLOAT_RETURNS
    203  1.1  mrg 
    204  1.1  mrg /* 64bit Sledgehammer mode.  For libgcc2 we make sure this is a
    205  1.1  mrg    compile-time constant.  */
    206  1.1  mrg #ifdef IN_LIBGCC2
    207  1.1  mrg #undef TARGET_64BIT
    208  1.1  mrg #ifdef __x86_64__
    209  1.1  mrg #define TARGET_64BIT 1
    210  1.1  mrg #else
    211  1.1  mrg #define TARGET_64BIT 0
    212  1.1  mrg #endif
    213  1.1  mrg #else
    214  1.1  mrg #ifndef TARGET_BI_ARCH
    215  1.1  mrg #undef TARGET_64BIT
    216  1.1  mrg #if TARGET_64BIT_DEFAULT
    217  1.1  mrg #define TARGET_64BIT 1
    218  1.1  mrg #else
    219  1.1  mrg #define TARGET_64BIT 0
    220  1.1  mrg #endif
    221  1.1  mrg #endif
    222  1.1  mrg #endif
    223  1.1  mrg 
    224  1.1  mrg #define HAS_LONG_COND_BRANCH 1
    225  1.1  mrg #define HAS_LONG_UNCOND_BRANCH 1
    226  1.1  mrg 
    227  1.1  mrg #define TARGET_386 (ix86_tune == PROCESSOR_I386)
    228  1.1  mrg #define TARGET_486 (ix86_tune == PROCESSOR_I486)
    229  1.1  mrg #define TARGET_PENTIUM (ix86_tune == PROCESSOR_PENTIUM)
    230  1.1  mrg #define TARGET_PENTIUMPRO (ix86_tune == PROCESSOR_PENTIUMPRO)
    231  1.1  mrg #define TARGET_GEODE (ix86_tune == PROCESSOR_GEODE)
    232  1.1  mrg #define TARGET_K6 (ix86_tune == PROCESSOR_K6)
    233  1.1  mrg #define TARGET_ATHLON (ix86_tune == PROCESSOR_ATHLON)
    234  1.1  mrg #define TARGET_PENTIUM4 (ix86_tune == PROCESSOR_PENTIUM4)
    235  1.1  mrg #define TARGET_K8 (ix86_tune == PROCESSOR_K8)
    236  1.1  mrg #define TARGET_ATHLON_K8 (TARGET_K8 || TARGET_ATHLON)
    237  1.1  mrg #define TARGET_NOCONA (ix86_tune == PROCESSOR_NOCONA)
    238  1.1  mrg #define TARGET_CORE2 (ix86_tune == PROCESSOR_CORE2)
    239  1.1  mrg #define TARGET_GENERIC32 (ix86_tune == PROCESSOR_GENERIC32)
    240  1.1  mrg #define TARGET_GENERIC64 (ix86_tune == PROCESSOR_GENERIC64)
    241  1.1  mrg #define TARGET_GENERIC (TARGET_GENERIC32 || TARGET_GENERIC64)
    242  1.1  mrg #define TARGET_AMDFAM10 (ix86_tune == PROCESSOR_AMDFAM10)
    243  1.1  mrg #define TARGET_ATOM (ix86_tune == PROCESSOR_ATOM)
    244  1.1  mrg 
    245  1.1  mrg /* Feature tests against the various tunings.  */
    246  1.1  mrg enum ix86_tune_indices {
    247  1.1  mrg   X86_TUNE_USE_LEAVE,
    248  1.1  mrg   X86_TUNE_PUSH_MEMORY,
    249  1.1  mrg   X86_TUNE_ZERO_EXTEND_WITH_AND,
    250  1.1  mrg   X86_TUNE_UNROLL_STRLEN,
    251  1.1  mrg   X86_TUNE_DEEP_BRANCH_PREDICTION,
    252  1.1  mrg   X86_TUNE_BRANCH_PREDICTION_HINTS,
    253  1.1  mrg   X86_TUNE_DOUBLE_WITH_ADD,
    254  1.1  mrg   X86_TUNE_USE_SAHF,
    255  1.1  mrg   X86_TUNE_MOVX,
    256  1.1  mrg   X86_TUNE_PARTIAL_REG_STALL,
    257  1.1  mrg   X86_TUNE_PARTIAL_FLAG_REG_STALL,
    258  1.1  mrg   X86_TUNE_USE_HIMODE_FIOP,
    259  1.1  mrg   X86_TUNE_USE_SIMODE_FIOP,
    260  1.1  mrg   X86_TUNE_USE_MOV0,
    261  1.1  mrg   X86_TUNE_USE_CLTD,
    262  1.1  mrg   X86_TUNE_USE_XCHGB,
    263  1.1  mrg   X86_TUNE_SPLIT_LONG_MOVES,
    264  1.1  mrg   X86_TUNE_READ_MODIFY_WRITE,
    265  1.1  mrg   X86_TUNE_READ_MODIFY,
    266  1.1  mrg   X86_TUNE_PROMOTE_QIMODE,
    267  1.1  mrg   X86_TUNE_FAST_PREFIX,
    268  1.1  mrg   X86_TUNE_SINGLE_STRINGOP,
    269  1.1  mrg   X86_TUNE_QIMODE_MATH,
    270  1.1  mrg   X86_TUNE_HIMODE_MATH,
    271  1.1  mrg   X86_TUNE_PROMOTE_QI_REGS,
    272  1.1  mrg   X86_TUNE_PROMOTE_HI_REGS,
    273  1.1  mrg   X86_TUNE_ADD_ESP_4,
    274  1.1  mrg   X86_TUNE_ADD_ESP_8,
    275  1.1  mrg   X86_TUNE_SUB_ESP_4,
    276  1.1  mrg   X86_TUNE_SUB_ESP_8,
    277  1.1  mrg   X86_TUNE_INTEGER_DFMODE_MOVES,
    278  1.1  mrg   X86_TUNE_PARTIAL_REG_DEPENDENCY,
    279  1.1  mrg   X86_TUNE_SSE_PARTIAL_REG_DEPENDENCY,
    280  1.1  mrg   X86_TUNE_SSE_UNALIGNED_MOVE_OPTIMAL,
    281  1.1  mrg   X86_TUNE_SSE_SPLIT_REGS,
    282  1.1  mrg   X86_TUNE_SSE_TYPELESS_STORES,
    283  1.1  mrg   X86_TUNE_SSE_LOAD0_BY_PXOR,
    284  1.1  mrg   X86_TUNE_MEMORY_MISMATCH_STALL,
    285  1.1  mrg   X86_TUNE_PROLOGUE_USING_MOVE,
    286  1.1  mrg   X86_TUNE_EPILOGUE_USING_MOVE,
    287  1.1  mrg   X86_TUNE_SHIFT1,
    288  1.1  mrg   X86_TUNE_USE_FFREEP,
    289  1.1  mrg   X86_TUNE_INTER_UNIT_MOVES,
    290  1.1  mrg   X86_TUNE_INTER_UNIT_CONVERSIONS,
    291  1.1  mrg   X86_TUNE_FOUR_JUMP_LIMIT,
    292  1.1  mrg   X86_TUNE_SCHEDULE,
    293  1.1  mrg   X86_TUNE_USE_BT,
    294  1.1  mrg   X86_TUNE_USE_INCDEC,
    295  1.1  mrg   X86_TUNE_PAD_RETURNS,
    296  1.1  mrg   X86_TUNE_EXT_80387_CONSTANTS,
    297  1.1  mrg   X86_TUNE_SHORTEN_X87_SSE,
    298  1.1  mrg   X86_TUNE_AVOID_VECTOR_DECODE,
    299  1.1  mrg   X86_TUNE_PROMOTE_HIMODE_IMUL,
    300  1.1  mrg   X86_TUNE_SLOW_IMUL_IMM32_MEM,
    301  1.1  mrg   X86_TUNE_SLOW_IMUL_IMM8,
    302  1.1  mrg   X86_TUNE_MOVE_M1_VIA_OR,
    303  1.1  mrg   X86_TUNE_NOT_UNPAIRABLE,
    304  1.1  mrg   X86_TUNE_NOT_VECTORMODE,
    305  1.1  mrg   X86_TUNE_USE_VECTOR_FP_CONVERTS,
    306  1.1  mrg   X86_TUNE_USE_VECTOR_CONVERTS,
    307  1.1  mrg   X86_TUNE_FUSE_CMP_AND_BRANCH,
    308  1.1  mrg   X86_TUNE_OPT_AGU,
    309  1.1  mrg 
    310  1.1  mrg   X86_TUNE_LAST
    311  1.1  mrg };
    312  1.1  mrg 
    313  1.1  mrg extern unsigned char ix86_tune_features[X86_TUNE_LAST];
    314  1.1  mrg 
    315  1.1  mrg #define TARGET_USE_LEAVE	ix86_tune_features[X86_TUNE_USE_LEAVE]
    316  1.1  mrg #define TARGET_PUSH_MEMORY	ix86_tune_features[X86_TUNE_PUSH_MEMORY]
    317  1.1  mrg #define TARGET_ZERO_EXTEND_WITH_AND \
    318  1.1  mrg 	ix86_tune_features[X86_TUNE_ZERO_EXTEND_WITH_AND]
    319  1.1  mrg #define TARGET_UNROLL_STRLEN	ix86_tune_features[X86_TUNE_UNROLL_STRLEN]
    320  1.1  mrg #define TARGET_DEEP_BRANCH_PREDICTION \
    321  1.1  mrg 	ix86_tune_features[X86_TUNE_DEEP_BRANCH_PREDICTION]
    322  1.1  mrg #define TARGET_BRANCH_PREDICTION_HINTS \
    323  1.1  mrg 	ix86_tune_features[X86_TUNE_BRANCH_PREDICTION_HINTS]
    324  1.1  mrg #define TARGET_DOUBLE_WITH_ADD	ix86_tune_features[X86_TUNE_DOUBLE_WITH_ADD]
    325  1.1  mrg #define TARGET_USE_SAHF		ix86_tune_features[X86_TUNE_USE_SAHF]
    326  1.1  mrg #define TARGET_MOVX		ix86_tune_features[X86_TUNE_MOVX]
    327  1.1  mrg #define TARGET_PARTIAL_REG_STALL ix86_tune_features[X86_TUNE_PARTIAL_REG_STALL]
    328  1.1  mrg #define TARGET_PARTIAL_FLAG_REG_STALL \
    329  1.1  mrg 	ix86_tune_features[X86_TUNE_PARTIAL_FLAG_REG_STALL]
    330  1.1  mrg #define TARGET_USE_HIMODE_FIOP	ix86_tune_features[X86_TUNE_USE_HIMODE_FIOP]
    331  1.1  mrg #define TARGET_USE_SIMODE_FIOP	ix86_tune_features[X86_TUNE_USE_SIMODE_FIOP]
    332  1.1  mrg #define TARGET_USE_MOV0		ix86_tune_features[X86_TUNE_USE_MOV0]
    333  1.1  mrg #define TARGET_USE_CLTD		ix86_tune_features[X86_TUNE_USE_CLTD]
    334  1.1  mrg #define TARGET_USE_XCHGB	ix86_tune_features[X86_TUNE_USE_XCHGB]
    335  1.1  mrg #define TARGET_SPLIT_LONG_MOVES	ix86_tune_features[X86_TUNE_SPLIT_LONG_MOVES]
    336  1.1  mrg #define TARGET_READ_MODIFY_WRITE ix86_tune_features[X86_TUNE_READ_MODIFY_WRITE]
    337  1.1  mrg #define TARGET_READ_MODIFY	ix86_tune_features[X86_TUNE_READ_MODIFY]
    338  1.1  mrg #define TARGET_PROMOTE_QImode	ix86_tune_features[X86_TUNE_PROMOTE_QIMODE]
    339  1.1  mrg #define TARGET_FAST_PREFIX	ix86_tune_features[X86_TUNE_FAST_PREFIX]
    340  1.1  mrg #define TARGET_SINGLE_STRINGOP	ix86_tune_features[X86_TUNE_SINGLE_STRINGOP]
    341  1.1  mrg #define TARGET_QIMODE_MATH	ix86_tune_features[X86_TUNE_QIMODE_MATH]
    342  1.1  mrg #define TARGET_HIMODE_MATH	ix86_tune_features[X86_TUNE_HIMODE_MATH]
    343  1.1  mrg #define TARGET_PROMOTE_QI_REGS	ix86_tune_features[X86_TUNE_PROMOTE_QI_REGS]
    344  1.1  mrg #define TARGET_PROMOTE_HI_REGS	ix86_tune_features[X86_TUNE_PROMOTE_HI_REGS]
    345  1.1  mrg #define TARGET_ADD_ESP_4	ix86_tune_features[X86_TUNE_ADD_ESP_4]
    346  1.1  mrg #define TARGET_ADD_ESP_8	ix86_tune_features[X86_TUNE_ADD_ESP_8]
    347  1.1  mrg #define TARGET_SUB_ESP_4	ix86_tune_features[X86_TUNE_SUB_ESP_4]
    348  1.1  mrg #define TARGET_SUB_ESP_8	ix86_tune_features[X86_TUNE_SUB_ESP_8]
    349  1.1  mrg #define TARGET_INTEGER_DFMODE_MOVES \
    350  1.1  mrg 	ix86_tune_features[X86_TUNE_INTEGER_DFMODE_MOVES]
    351  1.1  mrg #define TARGET_PARTIAL_REG_DEPENDENCY \
    352  1.1  mrg 	ix86_tune_features[X86_TUNE_PARTIAL_REG_DEPENDENCY]
    353  1.1  mrg #define TARGET_SSE_PARTIAL_REG_DEPENDENCY \
    354  1.1  mrg 	ix86_tune_features[X86_TUNE_SSE_PARTIAL_REG_DEPENDENCY]
    355  1.1  mrg #define TARGET_SSE_UNALIGNED_MOVE_OPTIMAL \
    356  1.1  mrg 	ix86_tune_features[X86_TUNE_SSE_UNALIGNED_MOVE_OPTIMAL]
    357  1.1  mrg #define TARGET_SSE_SPLIT_REGS	ix86_tune_features[X86_TUNE_SSE_SPLIT_REGS]
    358  1.1  mrg #define TARGET_SSE_TYPELESS_STORES \
    359  1.1  mrg 	ix86_tune_features[X86_TUNE_SSE_TYPELESS_STORES]
    360  1.1  mrg #define TARGET_SSE_LOAD0_BY_PXOR ix86_tune_features[X86_TUNE_SSE_LOAD0_BY_PXOR]
    361  1.1  mrg #define TARGET_MEMORY_MISMATCH_STALL \
    362  1.1  mrg 	ix86_tune_features[X86_TUNE_MEMORY_MISMATCH_STALL]
    363  1.1  mrg #define TARGET_PROLOGUE_USING_MOVE \
    364  1.1  mrg 	ix86_tune_features[X86_TUNE_PROLOGUE_USING_MOVE]
    365  1.1  mrg #define TARGET_EPILOGUE_USING_MOVE \
    366  1.1  mrg 	ix86_tune_features[X86_TUNE_EPILOGUE_USING_MOVE]
    367  1.1  mrg #define TARGET_SHIFT1		ix86_tune_features[X86_TUNE_SHIFT1]
    368  1.1  mrg #define TARGET_USE_FFREEP	ix86_tune_features[X86_TUNE_USE_FFREEP]
    369  1.1  mrg #define TARGET_INTER_UNIT_MOVES	ix86_tune_features[X86_TUNE_INTER_UNIT_MOVES]
    370  1.1  mrg #define TARGET_INTER_UNIT_CONVERSIONS\
    371  1.1  mrg 	ix86_tune_features[X86_TUNE_INTER_UNIT_CONVERSIONS]
    372  1.1  mrg #define TARGET_FOUR_JUMP_LIMIT	ix86_tune_features[X86_TUNE_FOUR_JUMP_LIMIT]
    373  1.1  mrg #define TARGET_SCHEDULE		ix86_tune_features[X86_TUNE_SCHEDULE]
    374  1.1  mrg #define TARGET_USE_BT		ix86_tune_features[X86_TUNE_USE_BT]
    375  1.1  mrg #define TARGET_USE_INCDEC	ix86_tune_features[X86_TUNE_USE_INCDEC]
    376  1.1  mrg #define TARGET_PAD_RETURNS	ix86_tune_features[X86_TUNE_PAD_RETURNS]
    377  1.1  mrg #define TARGET_EXT_80387_CONSTANTS \
    378  1.1  mrg 	ix86_tune_features[X86_TUNE_EXT_80387_CONSTANTS]
    379  1.1  mrg #define TARGET_SHORTEN_X87_SSE	ix86_tune_features[X86_TUNE_SHORTEN_X87_SSE]
    380  1.1  mrg #define TARGET_AVOID_VECTOR_DECODE \
    381  1.1  mrg 	ix86_tune_features[X86_TUNE_AVOID_VECTOR_DECODE]
    382  1.1  mrg #define TARGET_TUNE_PROMOTE_HIMODE_IMUL \
    383  1.1  mrg 	ix86_tune_features[X86_TUNE_PROMOTE_HIMODE_IMUL]
    384  1.1  mrg #define TARGET_SLOW_IMUL_IMM32_MEM \
    385  1.1  mrg 	ix86_tune_features[X86_TUNE_SLOW_IMUL_IMM32_MEM]
    386  1.1  mrg #define TARGET_SLOW_IMUL_IMM8	ix86_tune_features[X86_TUNE_SLOW_IMUL_IMM8]
    387  1.1  mrg #define	TARGET_MOVE_M1_VIA_OR	ix86_tune_features[X86_TUNE_MOVE_M1_VIA_OR]
    388  1.1  mrg #define TARGET_NOT_UNPAIRABLE	ix86_tune_features[X86_TUNE_NOT_UNPAIRABLE]
    389  1.1  mrg #define TARGET_NOT_VECTORMODE	ix86_tune_features[X86_TUNE_NOT_VECTORMODE]
    390  1.1  mrg #define TARGET_USE_VECTOR_FP_CONVERTS \
    391  1.1  mrg 	ix86_tune_features[X86_TUNE_USE_VECTOR_FP_CONVERTS]
    392  1.1  mrg #define TARGET_USE_VECTOR_CONVERTS \
    393  1.1  mrg 	ix86_tune_features[X86_TUNE_USE_VECTOR_CONVERTS]
    394  1.1  mrg #define TARGET_FUSE_CMP_AND_BRANCH \
    395  1.1  mrg 	ix86_tune_features[X86_TUNE_FUSE_CMP_AND_BRANCH]
    396  1.1  mrg #define TARGET_OPT_AGU ix86_tune_features[X86_TUNE_OPT_AGU]
    397  1.1  mrg 
    398  1.1  mrg /* Feature tests against the various architecture variations.  */
    399  1.1  mrg enum ix86_arch_indices {
    400  1.1  mrg   X86_ARCH_CMOV,
    401  1.1  mrg   X86_ARCH_CMPXCHG,
    402  1.1  mrg   X86_ARCH_CMPXCHG8B,
    403  1.1  mrg   X86_ARCH_XADD,
    404  1.1  mrg   X86_ARCH_BSWAP,
    405  1.1  mrg 
    406  1.1  mrg   X86_ARCH_LAST
    407  1.1  mrg };
    408  1.1  mrg 
    409  1.1  mrg extern unsigned char ix86_arch_features[X86_ARCH_LAST];
    410  1.1  mrg 
    411  1.1  mrg #define TARGET_CMOV		ix86_arch_features[X86_ARCH_CMOV]
    412  1.1  mrg #define TARGET_CMPXCHG		ix86_arch_features[X86_ARCH_CMPXCHG]
    413  1.1  mrg #define TARGET_CMPXCHG8B	ix86_arch_features[X86_ARCH_CMPXCHG8B]
    414  1.1  mrg #define TARGET_XADD		ix86_arch_features[X86_ARCH_XADD]
    415  1.1  mrg #define TARGET_BSWAP		ix86_arch_features[X86_ARCH_BSWAP]
    416  1.1  mrg 
    417  1.1  mrg /* For sane SSE instruction set generation we need fcomi instruction.
    418  1.1  mrg    It is safe to enable all CMOVE instructions.  */
    419  1.1  mrg #define TARGET_CMOVE		(TARGET_CMOV || TARGET_SSE)
    420  1.1  mrg 
    421  1.1  mrg #define TARGET_FISTTP		(TARGET_SSE3 && TARGET_80387)
    422  1.1  mrg 
    423  1.1  mrg extern int x86_prefetch_sse;
    424  1.1  mrg 
    425  1.1  mrg #define TARGET_PREFETCH_SSE	x86_prefetch_sse
    426  1.1  mrg 
    427  1.1  mrg #define ASSEMBLER_DIALECT	(ix86_asm_dialect)
    428  1.1  mrg 
    429  1.1  mrg #define TARGET_SSE_MATH		((ix86_fpmath & FPMATH_SSE) != 0)
    430  1.1  mrg #define TARGET_MIX_SSE_I387 \
    431  1.1  mrg  ((ix86_fpmath & (FPMATH_SSE | FPMATH_387)) == (FPMATH_SSE | FPMATH_387))
    432  1.1  mrg 
    433  1.1  mrg #define TARGET_GNU_TLS		(ix86_tls_dialect == TLS_DIALECT_GNU)
    434  1.1  mrg #define TARGET_GNU2_TLS		(ix86_tls_dialect == TLS_DIALECT_GNU2)
    435  1.1  mrg #define TARGET_ANY_GNU_TLS	(TARGET_GNU_TLS || TARGET_GNU2_TLS)
    436  1.1  mrg #define TARGET_SUN_TLS		0
    437  1.1  mrg 
    438  1.1  mrg extern int ix86_isa_flags;
    439  1.1  mrg 
    440  1.1  mrg #ifndef TARGET_64BIT_DEFAULT
    441  1.1  mrg #define TARGET_64BIT_DEFAULT 0
    442  1.1  mrg #endif
    443  1.1  mrg #ifndef TARGET_TLS_DIRECT_SEG_REFS_DEFAULT
    444  1.1  mrg #define TARGET_TLS_DIRECT_SEG_REFS_DEFAULT 0
    445  1.1  mrg #endif
    446  1.1  mrg 
    447  1.1  mrg /* Fence to use after loop using storent.  */
    448  1.1  mrg 
    449  1.1  mrg extern tree x86_mfence;
    450  1.1  mrg #define FENCE_FOLLOWING_MOVNT x86_mfence
    451  1.1  mrg 
    452  1.1  mrg /* Once GDB has been enhanced to deal with functions without frame
    453  1.1  mrg    pointers, we can change this to allow for elimination of
    454  1.1  mrg    the frame pointer in leaf functions.  */
    455  1.1  mrg #define TARGET_DEFAULT 0
    456  1.1  mrg 
    457  1.1  mrg /* Extra bits to force.  */
    458  1.1  mrg #define TARGET_SUBTARGET_DEFAULT 0
    459  1.1  mrg #define TARGET_SUBTARGET_ISA_DEFAULT 0
    460  1.1  mrg 
    461  1.1  mrg /* Extra bits to force on w/ 32-bit mode.  */
    462  1.1  mrg #define TARGET_SUBTARGET32_DEFAULT 0
    463  1.1  mrg #define TARGET_SUBTARGET32_ISA_DEFAULT 0
    464  1.1  mrg 
    465  1.1  mrg /* Extra bits to force on w/ 64-bit mode.  */
    466  1.1  mrg #define TARGET_SUBTARGET64_DEFAULT 0
    467  1.1  mrg #define TARGET_SUBTARGET64_ISA_DEFAULT 0
    468  1.1  mrg 
    469  1.1  mrg /* This is not really a target flag, but is done this way so that
    470  1.1  mrg    it's analogous to similar code for Mach-O on PowerPC.  darwin.h
    471  1.1  mrg    redefines this to 1.  */
    472  1.1  mrg #define TARGET_MACHO 0
    473  1.1  mrg 
    474  1.1  mrg /* Likewise, for the Windows 64-bit ABI.  */
    475  1.1  mrg #define TARGET_64BIT_MS_ABI (TARGET_64BIT && ix86_cfun_abi () == MS_ABI)
    476  1.1  mrg 
    477  1.1  mrg /* Available call abi.  */
    478  1.1  mrg enum calling_abi
    479  1.1  mrg {
    480  1.1  mrg   SYSV_ABI = 0,
    481  1.1  mrg   MS_ABI = 1
    482  1.1  mrg };
    483  1.1  mrg 
    484  1.1  mrg /* The abi used by target.  */
    485  1.1  mrg extern enum calling_abi ix86_abi;
    486  1.1  mrg 
    487  1.1  mrg /* The default abi used by target.  */
    488  1.1  mrg #define DEFAULT_ABI SYSV_ABI
    489  1.1  mrg 
    490  1.1  mrg /* Subtargets may reset this to 1 in order to enable 96-bit long double
    491  1.1  mrg    with the rounding mode forced to 53 bits.  */
    492  1.1  mrg #define TARGET_96_ROUND_53_LONG_DOUBLE 0
    493  1.1  mrg 
    494  1.1  mrg /* Sometimes certain combinations of command options do not make
    495  1.1  mrg    sense on a particular target machine.  You can define a macro
    496  1.1  mrg    `OVERRIDE_OPTIONS' to take account of this.  This macro, if
    497  1.1  mrg    defined, is executed once just after all the command options have
    498  1.1  mrg    been parsed.
    499  1.1  mrg 
    500  1.1  mrg    Don't use this macro to turn on various extra optimizations for
    501  1.1  mrg    `-O'.  That is what `OPTIMIZATION_OPTIONS' is for.  */
    502  1.1  mrg 
    503  1.1  mrg #define OVERRIDE_OPTIONS override_options (true)
    504  1.1  mrg 
    505  1.1  mrg /* Define this to change the optimizations performed by default.  */
    506  1.1  mrg #define OPTIMIZATION_OPTIONS(LEVEL, SIZE) \
    507  1.1  mrg   optimization_options ((LEVEL), (SIZE))
    508  1.1  mrg 
    509  1.1  mrg /* -march=native handling only makes sense with compiler running on
    510  1.1  mrg    an x86 or x86_64 chip.  If changing this condition, also change
    511  1.1  mrg    the condition in driver-i386.c.  */
    512  1.1  mrg #if defined(__i386__) || defined(__x86_64__)
    513  1.1  mrg /* In driver-i386.c.  */
    514  1.1  mrg extern const char *host_detect_local_cpu (int argc, const char **argv);
    515  1.1  mrg #define EXTRA_SPEC_FUNCTIONS \
    516  1.1  mrg   { "local_cpu_detect", host_detect_local_cpu },
    517  1.1  mrg #define HAVE_LOCAL_CPU_DETECT
    518  1.1  mrg #endif
    519  1.1  mrg 
    520  1.1  mrg #if TARGET_64BIT_DEFAULT
    521  1.1  mrg #define OPT_ARCH64 "!m32"
    522  1.1  mrg #define OPT_ARCH32 "m32"
    523  1.1  mrg #else
    524  1.1  mrg #define OPT_ARCH64 "m64"
    525  1.1  mrg #define OPT_ARCH32 "!m64"
    526  1.1  mrg #endif
    527  1.1  mrg 
    528  1.1  mrg /* Support for configure-time defaults of some command line options.
    529  1.1  mrg    The order here is important so that -march doesn't squash the
    530  1.1  mrg    tune or cpu values.  */
    531  1.1  mrg #define OPTION_DEFAULT_SPECS					   \
    532  1.1  mrg   {"tune", "%{!mtune=*:%{!mcpu=*:%{!march=*:-mtune=%(VALUE)}}}" }, \
    533  1.1  mrg   {"tune_32", "%{" OPT_ARCH32 ":%{!mtune=*:%{!mcpu=*:%{!march=*:-mtune=%(VALUE)}}}}" }, \
    534  1.1  mrg   {"tune_64", "%{" OPT_ARCH64 ":%{!mtune=*:%{!mcpu=*:%{!march=*:-mtune=%(VALUE)}}}}" }, \
    535  1.1  mrg   {"cpu", "%{!mtune=*:%{!mcpu=*:%{!march=*:-mtune=%(VALUE)}}}" },  \
    536  1.1  mrg   {"cpu_32", "%{" OPT_ARCH32 ":%{!mtune=*:%{!mcpu=*:%{!march=*:-mtune=%(VALUE)}}}}" }, \
    537  1.1  mrg   {"cpu_64", "%{" OPT_ARCH64 ":%{!mtune=*:%{!mcpu=*:%{!march=*:-mtune=%(VALUE)}}}}" }, \
    538  1.1  mrg   {"arch", "%{!march=*:-march=%(VALUE)}"},			   \
    539  1.1  mrg   {"arch_32", "%{" OPT_ARCH32 ":%{!march=*:-march=%(VALUE)}}"},	   \
    540  1.1  mrg   {"arch_64", "%{" OPT_ARCH64 ":%{!march=*:-march=%(VALUE)}}"},
    541  1.1  mrg 
    542  1.1  mrg /* Specs for the compiler proper */
    543  1.1  mrg 
    544  1.1  mrg #ifndef CC1_CPU_SPEC
    545  1.1  mrg #define CC1_CPU_SPEC_1 "\
    546  1.1  mrg %{mcpu=*:-mtune=%* \
    547  1.1  mrg %n`-mcpu=' is deprecated. Use `-mtune=' or '-march=' instead.\n} \
    548  1.1  mrg %<mcpu=* \
    549  1.1  mrg %{mintel-syntax:-masm=intel \
    550  1.1  mrg %n`-mintel-syntax' is deprecated. Use `-masm=intel' instead.\n} \
    551  1.1  mrg %{msse5:-mavx \
    552  1.1  mrg %n'-msse5' was removed.\n} \
    553  1.1  mrg %{mno-intel-syntax:-masm=att \
    554  1.1  mrg %n`-mno-intel-syntax' is deprecated. Use `-masm=att' instead.\n}"
    555  1.1  mrg 
    556  1.1  mrg #ifndef HAVE_LOCAL_CPU_DETECT
    557  1.1  mrg #define CC1_CPU_SPEC CC1_CPU_SPEC_1
    558  1.1  mrg #else
    559  1.1  mrg #define CC1_CPU_SPEC CC1_CPU_SPEC_1 \
    560  1.1  mrg "%{march=native:%<march=native %:local_cpu_detect(arch) \
    561  1.1  mrg   %{!mtune=*:%<mtune=native %:local_cpu_detect(tune)}} \
    562  1.1  mrg %{mtune=native:%<mtune=native %:local_cpu_detect(tune)}"
    563  1.1  mrg #endif
    564  1.1  mrg #endif
    565  1.1  mrg 
    566  1.1  mrg /* Target CPU builtins.  */
    568  1.1  mrg #define TARGET_CPU_CPP_BUILTINS() ix86_target_macros ()
    569  1.1  mrg 
    570  1.1  mrg /* Target Pragmas.  */
    571  1.1  mrg #define REGISTER_TARGET_PRAGMAS() ix86_register_pragmas ()
    572  1.1  mrg 
    573  1.1  mrg enum target_cpu_default
    574  1.1  mrg {
    575  1.1  mrg   TARGET_CPU_DEFAULT_generic = 0,
    576  1.1  mrg 
    577  1.1  mrg   TARGET_CPU_DEFAULT_i386,
    578  1.1  mrg   TARGET_CPU_DEFAULT_i486,
    579  1.1  mrg   TARGET_CPU_DEFAULT_pentium,
    580  1.1  mrg   TARGET_CPU_DEFAULT_pentium_mmx,
    581  1.1  mrg   TARGET_CPU_DEFAULT_pentiumpro,
    582  1.1  mrg   TARGET_CPU_DEFAULT_pentium2,
    583  1.1  mrg   TARGET_CPU_DEFAULT_pentium3,
    584  1.1  mrg   TARGET_CPU_DEFAULT_pentium4,
    585  1.1  mrg   TARGET_CPU_DEFAULT_pentium_m,
    586  1.1  mrg   TARGET_CPU_DEFAULT_prescott,
    587  1.1  mrg   TARGET_CPU_DEFAULT_nocona,
    588  1.1  mrg   TARGET_CPU_DEFAULT_core2,
    589  1.1  mrg   TARGET_CPU_DEFAULT_atom,
    590  1.1  mrg 
    591  1.1  mrg   TARGET_CPU_DEFAULT_geode,
    592  1.1  mrg   TARGET_CPU_DEFAULT_k6,
    593  1.1  mrg   TARGET_CPU_DEFAULT_k6_2,
    594  1.1  mrg   TARGET_CPU_DEFAULT_k6_3,
    595  1.1  mrg   TARGET_CPU_DEFAULT_athlon,
    596  1.1  mrg   TARGET_CPU_DEFAULT_athlon_sse,
    597  1.1  mrg   TARGET_CPU_DEFAULT_k8,
    598  1.1  mrg   TARGET_CPU_DEFAULT_amdfam10,
    599  1.1  mrg 
    600  1.1  mrg   TARGET_CPU_DEFAULT_max
    601  1.1  mrg };
    602  1.1  mrg 
    603  1.1  mrg #ifndef CC1_SPEC
    604  1.1  mrg #define CC1_SPEC "%(cc1_cpu) "
    605  1.1  mrg #endif
    606  1.1  mrg 
    607  1.1  mrg /* This macro defines names of additional specifications to put in the
    608  1.1  mrg    specs that can be used in various specifications like CC1_SPEC.  Its
    609  1.1  mrg    definition is an initializer with a subgrouping for each command option.
    610  1.1  mrg 
    611  1.1  mrg    Each subgrouping contains a string constant, that defines the
    612  1.1  mrg    specification name, and a string constant that used by the GCC driver
    613  1.1  mrg    program.
    614  1.1  mrg 
    615  1.1  mrg    Do not define this macro if it does not need to do anything.  */
    616  1.1  mrg 
    617  1.1  mrg #ifndef SUBTARGET_EXTRA_SPECS
    618  1.1  mrg #define SUBTARGET_EXTRA_SPECS
    619  1.1  mrg #endif
    620  1.1  mrg 
    621  1.1  mrg #define EXTRA_SPECS							\
    622  1.1  mrg   { "cc1_cpu",  CC1_CPU_SPEC },						\
    623  1.1  mrg   SUBTARGET_EXTRA_SPECS
    624  1.1  mrg 
    625  1.1  mrg 
    627  1.1  mrg /* Set the value of FLT_EVAL_METHOD in float.h.  When using only the
    628  1.1  mrg    FPU, assume that the fpcw is set to extended precision; when using
    629  1.1  mrg    only SSE, rounding is correct; when using both SSE and the FPU,
    630  1.1  mrg    the rounding precision is indeterminate, since either may be chosen
    631  1.1  mrg    apparently at random.  */
    632  1.1  mrg #define TARGET_FLT_EVAL_METHOD \
    633  1.1  mrg   (TARGET_MIX_SSE_I387 ? -1 : TARGET_SSE_MATH ? 0 : 2)
    634  1.1  mrg 
    635  1.1  mrg /* Whether to allow x87 floating-point arithmetic on MODE (one of
    636  1.1  mrg    SFmode, DFmode and XFmode) in the current excess precision
    637  1.1  mrg    configuration.  */
    638  1.1  mrg #define X87_ENABLE_ARITH(MODE) \
    639  1.1  mrg   (flag_excess_precision == EXCESS_PRECISION_FAST || (MODE) == XFmode)
    640  1.1  mrg 
    641  1.1  mrg /* Likewise, whether to allow direct conversions from integer mode
    642  1.1  mrg    IMODE (HImode, SImode or DImode) to MODE.  */
    643  1.1  mrg #define X87_ENABLE_FLOAT(MODE, IMODE)			\
    644  1.1  mrg   (flag_excess_precision == EXCESS_PRECISION_FAST	\
    645  1.1  mrg    || (MODE) == XFmode					\
    646  1.1  mrg    || ((MODE) == DFmode && (IMODE) == SImode)		\
    647  1.1  mrg    || (IMODE) == HImode)
    648  1.1  mrg 
    649  1.1  mrg /* target machine storage layout */
    650  1.1  mrg 
    651  1.1  mrg #define SHORT_TYPE_SIZE 16
    652  1.1  mrg #define INT_TYPE_SIZE 32
    653  1.1  mrg #define FLOAT_TYPE_SIZE 32
    654  1.1  mrg #define LONG_TYPE_SIZE BITS_PER_WORD
    655  1.1  mrg #define DOUBLE_TYPE_SIZE 64
    656  1.1  mrg #define LONG_LONG_TYPE_SIZE 64
    657  1.1  mrg #define LONG_DOUBLE_TYPE_SIZE 80
    658  1.1  mrg 
    659  1.1  mrg #define WIDEST_HARDWARE_FP_SIZE LONG_DOUBLE_TYPE_SIZE
    660  1.1  mrg 
    661  1.1  mrg #if defined (TARGET_BI_ARCH) || TARGET_64BIT_DEFAULT
    662  1.1  mrg #define MAX_BITS_PER_WORD 64
    663  1.1  mrg #else
    664  1.1  mrg #define MAX_BITS_PER_WORD 32
    665  1.1  mrg #endif
    666  1.1  mrg 
    667  1.1  mrg /* Define this if most significant byte of a word is the lowest numbered.  */
    668  1.1  mrg /* That is true on the 80386.  */
    669  1.1  mrg 
    670  1.1  mrg #define BITS_BIG_ENDIAN 0
    671  1.1  mrg 
    672  1.1  mrg /* Define this if most significant byte of a word is the lowest numbered.  */
    673  1.1  mrg /* That is not true on the 80386.  */
    674  1.1  mrg #define BYTES_BIG_ENDIAN 0
    675  1.1  mrg 
    676  1.1  mrg /* Define this if most significant word of a multiword number is the lowest
    677  1.1  mrg    numbered.  */
    678  1.1  mrg /* Not true for 80386 */
    679  1.1  mrg #define WORDS_BIG_ENDIAN 0
    680  1.1  mrg 
    681  1.1  mrg /* Width of a word, in units (bytes).  */
    682  1.1  mrg #define UNITS_PER_WORD		(TARGET_64BIT ? 8 : 4)
    683  1.1  mrg #ifdef IN_LIBGCC2
    684  1.1  mrg #define MIN_UNITS_PER_WORD	(TARGET_64BIT ? 8 : 4)
    685  1.1  mrg #else
    686  1.1  mrg #define MIN_UNITS_PER_WORD	4
    687  1.1  mrg #endif
    688  1.1  mrg 
    689  1.1  mrg /* Allocation boundary (in *bits*) for storing arguments in argument list.  */
    690  1.1  mrg #define PARM_BOUNDARY BITS_PER_WORD
    691  1.1  mrg 
    692  1.1  mrg /* Boundary (in *bits*) on which stack pointer should be aligned.  */
    693  1.1  mrg #define STACK_BOUNDARY \
    694  1.1  mrg  (TARGET_64BIT && ix86_abi == MS_ABI ? 128 : BITS_PER_WORD)
    695  1.1  mrg 
    696  1.1  mrg /* Stack boundary of the main function guaranteed by OS.  */
    697  1.1  mrg #define MAIN_STACK_BOUNDARY (TARGET_64BIT ? 128 : 32)
    698  1.1  mrg 
    699  1.1  mrg /* Minimum stack boundary.  */
    700  1.1  mrg #define MIN_STACK_BOUNDARY (TARGET_64BIT ? 128 : 32)
    701  1.1  mrg 
    702  1.1  mrg /* Boundary (in *bits*) on which the stack pointer prefers to be
    703  1.1  mrg    aligned; the compiler cannot rely on having this alignment.  */
    704  1.1  mrg #define PREFERRED_STACK_BOUNDARY ix86_preferred_stack_boundary
    705  1.1  mrg 
    706  1.1  mrg /* It should be MIN_STACK_BOUNDARY.  But we set it to 128 bits for
    707  1.1  mrg    both 32bit and 64bit, to support codes that need 128 bit stack
    708  1.1  mrg    alignment for SSE instructions, but can't realign the stack.  */
    709  1.1  mrg #define PREFERRED_STACK_BOUNDARY_DEFAULT 128
    710  1.1  mrg 
    711  1.1  mrg /* 1 if -mstackrealign should be turned on by default.  It will
    712  1.1  mrg    generate an alternate prologue and epilogue that realigns the
    713  1.1  mrg    runtime stack if nessary.  This supports mixing codes that keep a
    714  1.1  mrg    4-byte aligned stack, as specified by i386 psABI, with codes that
    715  1.1  mrg    need a 16-byte aligned stack, as required by SSE instructions.  */
    716  1.1  mrg #define STACK_REALIGN_DEFAULT 0
    717  1.1  mrg 
    718  1.1  mrg /* Boundary (in *bits*) on which the incoming stack is aligned.  */
    719  1.1  mrg #define INCOMING_STACK_BOUNDARY ix86_incoming_stack_boundary
    720  1.1  mrg 
    721  1.1  mrg /* Target OS keeps a vector-aligned (128-bit, 16-byte) stack.  This is
    722  1.1  mrg    mandatory for the 64-bit ABI, and may or may not be true for other
    723  1.1  mrg    operating systems.  */
    724  1.1  mrg #define TARGET_KEEPS_VECTOR_ALIGNED_STACK TARGET_64BIT
    725  1.1  mrg 
    726  1.1  mrg /* Minimum allocation boundary for the code of a function.  */
    727  1.1  mrg #define FUNCTION_BOUNDARY 8
    728  1.1  mrg 
    729  1.1  mrg /* C++ stores the virtual bit in the lowest bit of function pointers.  */
    730  1.1  mrg #define TARGET_PTRMEMFUNC_VBIT_LOCATION ptrmemfunc_vbit_in_pfn
    731  1.1  mrg 
    732  1.1  mrg /* Alignment of field after `int : 0' in a structure.  */
    733  1.1  mrg 
    734  1.1  mrg #define EMPTY_FIELD_BOUNDARY BITS_PER_WORD
    735  1.1  mrg 
    736  1.1  mrg /* Minimum size in bits of the largest boundary to which any
    737  1.1  mrg    and all fundamental data types supported by the hardware
    738  1.1  mrg    might need to be aligned. No data type wants to be aligned
    739  1.1  mrg    rounder than this.
    740  1.1  mrg 
    741  1.1  mrg    Pentium+ prefers DFmode values to be aligned to 64 bit boundary
    742  1.1  mrg    and Pentium Pro XFmode values at 128 bit boundaries.  */
    743  1.1  mrg 
    744  1.1  mrg #define BIGGEST_ALIGNMENT (TARGET_AVX ? 256: 128)
    745  1.1  mrg 
    746  1.1  mrg /* Maximum stack alignment.  */
    747  1.1  mrg #define MAX_STACK_ALIGNMENT MAX_OFILE_ALIGNMENT
    748  1.1  mrg 
    749  1.1  mrg /* Alignment value for attribute ((aligned)).  It is a constant since
    750  1.1  mrg    it is the part of the ABI.  We shouldn't change it with -mavx.  */
    751  1.1  mrg #define ATTRIBUTE_ALIGNED_VALUE 128
    752  1.1  mrg 
    753  1.1  mrg /* Decide whether a variable of mode MODE should be 128 bit aligned.  */
    754  1.1  mrg #define ALIGN_MODE_128(MODE) \
    755  1.1  mrg  ((MODE) == XFmode || SSE_REG_MODE_P (MODE))
    756  1.1  mrg 
    757  1.1  mrg /* The published ABIs say that doubles should be aligned on word
    758  1.1  mrg    boundaries, so lower the alignment for structure fields unless
    759  1.1  mrg    -malign-double is set.  */
    760  1.1  mrg 
    761  1.1  mrg /* ??? Blah -- this macro is used directly by libobjc.  Since it
    762  1.1  mrg    supports no vector modes, cut out the complexity and fall back
    763  1.1  mrg    on BIGGEST_FIELD_ALIGNMENT.  */
    764  1.1  mrg #ifdef IN_TARGET_LIBS
    765  1.1  mrg #ifdef __x86_64__
    766  1.1  mrg #define BIGGEST_FIELD_ALIGNMENT 128
    767  1.1  mrg #else
    768  1.1  mrg #define BIGGEST_FIELD_ALIGNMENT 32
    769  1.1  mrg #endif
    770  1.1  mrg #else
    771  1.1  mrg #define ADJUST_FIELD_ALIGN(FIELD, COMPUTED) \
    772  1.1  mrg    x86_field_alignment (FIELD, COMPUTED)
    773  1.1  mrg #endif
    774  1.1  mrg 
    775  1.1  mrg /* If defined, a C expression to compute the alignment given to a
    776  1.1  mrg    constant that is being placed in memory.  EXP is the constant
    777  1.1  mrg    and ALIGN is the alignment that the object would ordinarily have.
    778  1.1  mrg    The value of this macro is used instead of that alignment to align
    779  1.1  mrg    the object.
    780  1.1  mrg 
    781  1.1  mrg    If this macro is not defined, then ALIGN is used.
    782  1.1  mrg 
    783  1.1  mrg    The typical use of this macro is to increase alignment for string
    784  1.1  mrg    constants to be word aligned so that `strcpy' calls that copy
    785  1.1  mrg    constants can be done inline.  */
    786  1.1  mrg 
    787  1.1  mrg #define CONSTANT_ALIGNMENT(EXP, ALIGN) ix86_constant_alignment ((EXP), (ALIGN))
    788  1.1  mrg 
    789  1.1  mrg /* If defined, a C expression to compute the alignment for a static
    790  1.1  mrg    variable.  TYPE is the data type, and ALIGN is the alignment that
    791  1.1  mrg    the object would ordinarily have.  The value of this macro is used
    792  1.1  mrg    instead of that alignment to align the object.
    793  1.1  mrg 
    794  1.1  mrg    If this macro is not defined, then ALIGN is used.
    795  1.1  mrg 
    796  1.1  mrg    One use of this macro is to increase alignment of medium-size
    797  1.1  mrg    data to make it all fit in fewer cache lines.  Another is to
    798  1.1  mrg    cause character arrays to be word-aligned so that `strcpy' calls
    799  1.1  mrg    that copy constants to character arrays can be done inline.  */
    800  1.1  mrg 
    801  1.1  mrg #define DATA_ALIGNMENT(TYPE, ALIGN) ix86_data_alignment ((TYPE), (ALIGN))
    802  1.1  mrg 
    803  1.1  mrg /* If defined, a C expression to compute the alignment for a local
    804  1.1  mrg    variable.  TYPE is the data type, and ALIGN is the alignment that
    805  1.1  mrg    the object would ordinarily have.  The value of this macro is used
    806  1.1  mrg    instead of that alignment to align the object.
    807  1.1  mrg 
    808  1.1  mrg    If this macro is not defined, then ALIGN is used.
    809  1.1  mrg 
    810  1.1  mrg    One use of this macro is to increase alignment of medium-size
    811  1.1  mrg    data to make it all fit in fewer cache lines.  */
    812  1.1  mrg 
    813  1.1  mrg #define LOCAL_ALIGNMENT(TYPE, ALIGN) \
    814  1.1  mrg   ix86_local_alignment ((TYPE), VOIDmode, (ALIGN))
    815  1.1  mrg 
    816  1.1  mrg /* If defined, a C expression to compute the alignment for stack slot.
    817  1.1  mrg    TYPE is the data type, MODE is the widest mode available, and ALIGN
    818  1.1  mrg    is the alignment that the slot would ordinarily have.  The value of
    819  1.1  mrg    this macro is used instead of that alignment to align the slot.
    820  1.1  mrg 
    821  1.1  mrg    If this macro is not defined, then ALIGN is used when TYPE is NULL,
    822  1.1  mrg    Otherwise, LOCAL_ALIGNMENT will be used.
    823  1.1  mrg 
    824  1.1  mrg    One use of this macro is to set alignment of stack slot to the
    825  1.1  mrg    maximum alignment of all possible modes which the slot may have.  */
    826  1.1  mrg 
    827  1.1  mrg #define STACK_SLOT_ALIGNMENT(TYPE, MODE, ALIGN) \
    828  1.1  mrg   ix86_local_alignment ((TYPE), (MODE), (ALIGN))
    829  1.1  mrg 
    830  1.1  mrg /* If defined, a C expression to compute the alignment for a local
    831  1.1  mrg    variable DECL.
    832  1.1  mrg 
    833  1.1  mrg    If this macro is not defined, then
    834  1.1  mrg    LOCAL_ALIGNMENT (TREE_TYPE (DECL), DECL_ALIGN (DECL)) will be used.
    835  1.1  mrg 
    836  1.1  mrg    One use of this macro is to increase alignment of medium-size
    837  1.1  mrg    data to make it all fit in fewer cache lines.  */
    838  1.1  mrg 
    839  1.1  mrg #define LOCAL_DECL_ALIGNMENT(DECL) \
    840  1.1  mrg   ix86_local_alignment ((DECL), VOIDmode, DECL_ALIGN (DECL))
    841  1.1  mrg 
    842  1.1  mrg /* If defined, a C expression to compute the minimum required alignment
    843  1.1  mrg    for dynamic stack realignment purposes for EXP (a TYPE or DECL),
    844  1.1  mrg    MODE, assuming normal alignment ALIGN.
    845  1.1  mrg 
    846  1.1  mrg    If this macro is not defined, then (ALIGN) will be used.  */
    847  1.1  mrg 
    848  1.1  mrg #define MINIMUM_ALIGNMENT(EXP, MODE, ALIGN) \
    849  1.1  mrg   ix86_minimum_alignment (EXP, MODE, ALIGN)
    850  1.1  mrg 
    851  1.1  mrg 
    852  1.1  mrg /* If defined, a C expression that gives the alignment boundary, in
    853  1.1  mrg    bits, of an argument with the specified mode and type.  If it is
    854  1.1  mrg    not defined, `PARM_BOUNDARY' is used for all arguments.  */
    855  1.1  mrg 
    856  1.1  mrg #define FUNCTION_ARG_BOUNDARY(MODE, TYPE) \
    857  1.1  mrg   ix86_function_arg_boundary ((MODE), (TYPE))
    858  1.1  mrg 
    859  1.1  mrg /* Set this nonzero if move instructions will actually fail to work
    860  1.1  mrg    when given unaligned data.  */
    861  1.1  mrg #define STRICT_ALIGNMENT 0
    862  1.1  mrg 
    863  1.1  mrg /* If bit field type is int, don't let it cross an int,
    864  1.1  mrg    and give entire struct the alignment of an int.  */
    865  1.1  mrg /* Required on the 386 since it doesn't have bit-field insns.  */
    866  1.1  mrg #define PCC_BITFIELD_TYPE_MATTERS 1
    867  1.1  mrg 
    868  1.1  mrg /* Standard register usage.  */
    870  1.1  mrg 
    871  1.1  mrg /* This processor has special stack-like registers.  See reg-stack.c
    872  1.1  mrg    for details.  */
    873  1.1  mrg 
    874  1.1  mrg #define STACK_REGS
    875  1.1  mrg 
    876  1.1  mrg #define IS_STACK_MODE(MODE)					\
    877  1.1  mrg   (((MODE) == SFmode && (!TARGET_SSE || !TARGET_SSE_MATH))	\
    878  1.1  mrg    || ((MODE) == DFmode && (!TARGET_SSE2 || !TARGET_SSE_MATH))  \
    879  1.1  mrg    || (MODE) == XFmode)
    880  1.1  mrg 
    881  1.1  mrg /* Cover class containing the stack registers.  */
    882  1.1  mrg #define STACK_REG_COVER_CLASS FLOAT_REGS
    883  1.1  mrg 
    884  1.1  mrg /* Number of actual hardware registers.
    885  1.1  mrg    The hardware registers are assigned numbers for the compiler
    886  1.1  mrg    from 0 to just below FIRST_PSEUDO_REGISTER.
    887  1.1  mrg    All registers that the compiler knows about must be given numbers,
    888  1.1  mrg    even those that are not normally considered general registers.
    889  1.1  mrg 
    890  1.1  mrg    In the 80386 we give the 8 general purpose registers the numbers 0-7.
    891  1.1  mrg    We number the floating point registers 8-15.
    892  1.1  mrg    Note that registers 0-7 can be accessed as a  short or int,
    893  1.1  mrg    while only 0-3 may be used with byte `mov' instructions.
    894  1.1  mrg 
    895  1.1  mrg    Reg 16 does not correspond to any hardware register, but instead
    896  1.1  mrg    appears in the RTL as an argument pointer prior to reload, and is
    897  1.1  mrg    eliminated during reloading in favor of either the stack or frame
    898  1.1  mrg    pointer.  */
    899  1.1  mrg 
    900  1.1  mrg #define FIRST_PSEUDO_REGISTER 53
    901  1.1  mrg 
    902  1.1  mrg /* Number of hardware registers that go into the DWARF-2 unwind info.
    903  1.1  mrg    If not defined, equals FIRST_PSEUDO_REGISTER.  */
    904  1.1  mrg 
    905  1.1  mrg #define DWARF_FRAME_REGISTERS 17
    906  1.1  mrg 
    907  1.1  mrg /* 1 for registers that have pervasive standard uses
    908  1.1  mrg    and are not available for the register allocator.
    909  1.1  mrg    On the 80386, the stack pointer is such, as is the arg pointer.
    910  1.1  mrg 
    911  1.1  mrg    The value is zero if the register is not fixed on either 32 or
    912  1.1  mrg    64 bit targets, one if the register if fixed on both 32 and 64
    913  1.1  mrg    bit targets, two if it is only fixed on 32bit targets and three
    914  1.1  mrg    if its only fixed on 64bit targets.
    915  1.1  mrg    Proper values are computed in the CONDITIONAL_REGISTER_USAGE.
    916  1.1  mrg  */
    917  1.1  mrg #define FIXED_REGISTERS						\
    918  1.1  mrg /*ax,dx,cx,bx,si,di,bp,sp,st,st1,st2,st3,st4,st5,st6,st7*/	\
    919  1.1  mrg {  0, 0, 0, 0, 0, 0, 0, 1, 0,  0,  0,  0,  0,  0,  0,  0,	\
    920  1.1  mrg /*arg,flags,fpsr,fpcr,frame*/					\
    921  1.1  mrg     1,    1,   1,   1,    1,					\
    922  1.1  mrg /*xmm0,xmm1,xmm2,xmm3,xmm4,xmm5,xmm6,xmm7*/			\
    923  1.1  mrg      0,   0,   0,   0,   0,   0,   0,   0,			\
    924  1.1  mrg /* mm0, mm1, mm2, mm3, mm4, mm5, mm6, mm7*/			\
    925  1.1  mrg      0,   0,   0,   0,   0,   0,   0,   0,			\
    926  1.1  mrg /*  r8,  r9, r10, r11, r12, r13, r14, r15*/			\
    927  1.1  mrg      2,   2,   2,   2,   2,   2,   2,   2,			\
    928  1.1  mrg /*xmm8,xmm9,xmm10,xmm11,xmm12,xmm13,xmm14,xmm15*/		\
    929  1.1  mrg      2,   2,    2,    2,    2,    2,    2,    2 }
    930  1.1  mrg 
    931  1.1  mrg 
    932  1.1  mrg /* 1 for registers not available across function calls.
    933  1.1  mrg    These must include the FIXED_REGISTERS and also any
    934  1.1  mrg    registers that can be used without being saved.
    935  1.1  mrg    The latter must include the registers where values are returned
    936  1.1  mrg    and the register where structure-value addresses are passed.
    937  1.1  mrg    Aside from that, you can include as many other registers as you like.
    938  1.1  mrg 
    939  1.1  mrg    The value is zero if the register is not call used on either 32 or
    940  1.1  mrg    64 bit targets, one if the register if call used on both 32 and 64
    941  1.1  mrg    bit targets, two if it is only call used on 32bit targets and three
    942  1.1  mrg    if its only call used on 64bit targets.
    943  1.1  mrg    Proper values are computed in the CONDITIONAL_REGISTER_USAGE.
    944  1.1  mrg */
    945  1.1  mrg #define CALL_USED_REGISTERS					\
    946  1.1  mrg /*ax,dx,cx,bx,si,di,bp,sp,st,st1,st2,st3,st4,st5,st6,st7*/	\
    947  1.1  mrg {  1, 1, 1, 0, 3, 3, 0, 1, 1,  1,  1,  1,  1,  1,  1,  1,	\
    948  1.1  mrg /*arg,flags,fpsr,fpcr,frame*/					\
    949  1.1  mrg     1,   1,    1,   1,    1,					\
    950  1.1  mrg /*xmm0,xmm1,xmm2,xmm3,xmm4,xmm5,xmm6,xmm7*/			\
    951  1.1  mrg      1,   1,   1,   1,   1,   1,   1,   1,			\
    952  1.1  mrg /* mm0, mm1, mm2, mm3, mm4, mm5, mm6, mm7*/			\
    953  1.1  mrg      1,   1,   1,   1,   1,   1,   1,   1,			\
    954  1.1  mrg /*  r8,  r9, r10, r11, r12, r13, r14, r15*/			\
    955  1.1  mrg      1,   1,   1,   1,   2,   2,   2,   2,			\
    956  1.1  mrg /*xmm8,xmm9,xmm10,xmm11,xmm12,xmm13,xmm14,xmm15*/		\
    957  1.1  mrg      1,   1,    1,    1,    1,    1,    1,    1 }
    958  1.1  mrg 
    959  1.1  mrg /* Order in which to allocate registers.  Each register must be
    960  1.1  mrg    listed once, even those in FIXED_REGISTERS.  List frame pointer
    961  1.1  mrg    late and fixed registers last.  Note that, in general, we prefer
    962  1.1  mrg    registers listed in CALL_USED_REGISTERS, keeping the others
    963  1.1  mrg    available for storage of persistent values.
    964  1.1  mrg 
    965  1.1  mrg    The ORDER_REGS_FOR_LOCAL_ALLOC actually overwrite the order,
    966  1.1  mrg    so this is just empty initializer for array.  */
    967  1.1  mrg 
    968  1.1  mrg #define REG_ALLOC_ORDER 					\
    969  1.1  mrg {  0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17,\
    970  1.1  mrg    18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32,	\
    971  1.1  mrg    33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47,  \
    972  1.1  mrg    48, 49, 50, 51, 52 }
    973  1.1  mrg 
    974  1.1  mrg /* ORDER_REGS_FOR_LOCAL_ALLOC is a macro which permits reg_alloc_order
    975  1.1  mrg    to be rearranged based on a particular function.  When using sse math,
    976  1.1  mrg    we want to allocate SSE before x87 registers and vice versa.  */
    977  1.1  mrg 
    978  1.1  mrg #define ORDER_REGS_FOR_LOCAL_ALLOC x86_order_regs_for_local_alloc ()
    979  1.1  mrg 
    980  1.1  mrg 
    981  1.1  mrg #define OVERRIDE_ABI_FORMAT(FNDECL) ix86_call_abi_override (FNDECL)
    982  1.1  mrg 
    983  1.1  mrg /* Macro to conditionally modify fixed_regs/call_used_regs.  */
    984  1.1  mrg #define CONDITIONAL_REGISTER_USAGE  ix86_conditional_register_usage ()
    985  1.1  mrg 
    986  1.1  mrg /* Return number of consecutive hard regs needed starting at reg REGNO
    987  1.1  mrg    to hold something of mode MODE.
    988  1.1  mrg    This is ordinarily the length in words of a value of mode MODE
    989  1.1  mrg    but can be less for certain modes in special long registers.
    990  1.1  mrg 
    991  1.1  mrg    Actually there are no two word move instructions for consecutive
    992  1.1  mrg    registers.  And only registers 0-3 may have mov byte instructions
    993  1.1  mrg    applied to them.
    994  1.1  mrg    */
    995  1.1  mrg 
    996  1.1  mrg #define HARD_REGNO_NREGS(REGNO, MODE)					\
    997  1.1  mrg   (FP_REGNO_P (REGNO) || SSE_REGNO_P (REGNO) || MMX_REGNO_P (REGNO)	\
    998  1.1  mrg    ? (COMPLEX_MODE_P (MODE) ? 2 : 1)					\
    999  1.1  mrg    : ((MODE) == XFmode							\
   1000  1.1  mrg       ? (TARGET_64BIT ? 2 : 3)						\
   1001  1.1  mrg       : (MODE) == XCmode						\
   1002  1.1  mrg       ? (TARGET_64BIT ? 4 : 6)						\
   1003  1.1  mrg       : ((GET_MODE_SIZE (MODE) + UNITS_PER_WORD - 1) / UNITS_PER_WORD)))
   1004  1.1  mrg 
   1005  1.1  mrg #define HARD_REGNO_NREGS_HAS_PADDING(REGNO, MODE)			\
   1006  1.1  mrg   ((TARGET_128BIT_LONG_DOUBLE && !TARGET_64BIT)				\
   1007  1.1  mrg    ? (FP_REGNO_P (REGNO) || SSE_REGNO_P (REGNO) || MMX_REGNO_P (REGNO)	\
   1008  1.1  mrg       ? 0								\
   1009  1.1  mrg       : ((MODE) == XFmode || (MODE) == XCmode))				\
   1010  1.1  mrg    : 0)
   1011  1.1  mrg 
   1012  1.1  mrg #define HARD_REGNO_NREGS_WITH_PADDING(REGNO, MODE) ((MODE) == XFmode ? 4 : 8)
   1013  1.1  mrg 
   1014  1.1  mrg #define VALID_AVX256_REG_MODE(MODE)					\
   1015  1.1  mrg   ((MODE) == V32QImode || (MODE) == V16HImode || (MODE) == V8SImode	\
   1016  1.1  mrg    || (MODE) == V4DImode || (MODE) == V8SFmode || (MODE) == V4DFmode)
   1017  1.1  mrg 
   1018  1.1  mrg #define VALID_SSE2_REG_MODE(MODE)					\
   1019  1.1  mrg   ((MODE) == V16QImode || (MODE) == V8HImode || (MODE) == V2DFmode	\
   1020  1.1  mrg    || (MODE) == V2DImode || (MODE) == DFmode)
   1021  1.1  mrg 
   1022  1.1  mrg #define VALID_SSE_REG_MODE(MODE)					\
   1023  1.1  mrg   ((MODE) == V1TImode || (MODE) == TImode				\
   1024  1.1  mrg    || (MODE) == V4SFmode || (MODE) == V4SImode				\
   1025  1.1  mrg    || (MODE) == SFmode || (MODE) == TFmode)
   1026  1.1  mrg 
   1027  1.1  mrg #define VALID_MMX_REG_MODE_3DNOW(MODE) \
   1028  1.1  mrg   ((MODE) == V2SFmode || (MODE) == SFmode)
   1029  1.1  mrg 
   1030  1.1  mrg #define VALID_MMX_REG_MODE(MODE)					\
   1031  1.1  mrg   ((MODE == V1DImode) || (MODE) == DImode				\
   1032  1.1  mrg    || (MODE) == V2SImode || (MODE) == SImode				\
   1033  1.1  mrg    || (MODE) == V4HImode || (MODE) == V8QImode)
   1034  1.1  mrg 
   1035  1.1  mrg /* ??? No autovectorization into MMX or 3DNOW until we can reliably
   1036  1.1  mrg    place emms and femms instructions.
   1037  1.1  mrg    FIXME: AVX has 32byte floating point vector operations and 16byte
   1038  1.1  mrg    integer vector operations.  But vectorizer doesn't support
   1039  1.1  mrg    different sizes for integer and floating point vectors.  We limit
   1040  1.1  mrg    vector size to 16byte.  */
   1041  1.1  mrg #define UNITS_PER_SIMD_WORD(MODE)					\
   1042  1.1  mrg   (TARGET_AVX ? (((MODE) == DFmode || (MODE) == SFmode) ? 16 : 16)	\
   1043  1.1  mrg    	      : (TARGET_SSE ? 16 : UNITS_PER_WORD))
   1044  1.1  mrg 
   1045  1.1  mrg #define VALID_DFP_MODE_P(MODE) \
   1046  1.1  mrg   ((MODE) == SDmode || (MODE) == DDmode || (MODE) == TDmode)
   1047  1.1  mrg 
   1048  1.1  mrg #define VALID_FP_MODE_P(MODE)						\
   1049  1.1  mrg   ((MODE) == SFmode || (MODE) == DFmode || (MODE) == XFmode		\
   1050  1.1  mrg    || (MODE) == SCmode || (MODE) == DCmode || (MODE) == XCmode)		\
   1051  1.1  mrg 
   1052  1.1  mrg #define VALID_INT_MODE_P(MODE)						\
   1053  1.1  mrg   ((MODE) == QImode || (MODE) == HImode || (MODE) == SImode		\
   1054  1.1  mrg    || (MODE) == DImode							\
   1055  1.1  mrg    || (MODE) == CQImode || (MODE) == CHImode || (MODE) == CSImode	\
   1056  1.1  mrg    || (MODE) == CDImode							\
   1057  1.1  mrg    || (TARGET_64BIT && ((MODE) == TImode || (MODE) == CTImode		\
   1058  1.1  mrg 			|| (MODE) == TFmode || (MODE) == TCmode)))
   1059  1.1  mrg 
   1060  1.1  mrg /* Return true for modes passed in SSE registers.  */
   1061  1.1  mrg #define SSE_REG_MODE_P(MODE)						\
   1062  1.1  mrg   ((MODE) == V1TImode || (MODE) == TImode || (MODE) == V16QImode	\
   1063  1.1  mrg    || (MODE) == TFmode || (MODE) == V8HImode || (MODE) == V2DFmode	\
   1064  1.1  mrg    || (MODE) == V2DImode || (MODE) == V4SFmode || (MODE) == V4SImode	\
   1065  1.1  mrg    || (MODE) == V32QImode || (MODE) == V16HImode || (MODE) == V8SImode	\
   1066  1.1  mrg    || (MODE) == V4DImode || (MODE) == V8SFmode || (MODE) == V4DFmode)
   1067  1.1  mrg 
   1068  1.1  mrg /* Value is 1 if hard register REGNO can hold a value of machine-mode MODE.  */
   1069  1.1  mrg 
   1070  1.1  mrg #define HARD_REGNO_MODE_OK(REGNO, MODE)	\
   1071  1.1  mrg    ix86_hard_regno_mode_ok ((REGNO), (MODE))
   1072  1.1  mrg 
   1073  1.1  mrg /* Value is 1 if it is a good idea to tie two pseudo registers
   1074  1.1  mrg    when one has mode MODE1 and one has mode MODE2.
   1075  1.1  mrg    If HARD_REGNO_MODE_OK could produce different values for MODE1 and MODE2,
   1076  1.1  mrg    for any hard reg, then this must be 0 for correct output.  */
   1077  1.1  mrg 
   1078  1.1  mrg #define MODES_TIEABLE_P(MODE1, MODE2)  ix86_modes_tieable_p (MODE1, MODE2)
   1079  1.1  mrg 
   1080  1.1  mrg /* It is possible to write patterns to move flags; but until someone
   1081  1.1  mrg    does it,  */
   1082  1.1  mrg #define AVOID_CCMODE_COPIES
   1083  1.1  mrg 
   1084  1.1  mrg /* Specify the modes required to caller save a given hard regno.
   1085  1.1  mrg    We do this on i386 to prevent flags from being saved at all.
   1086  1.1  mrg 
   1087  1.1  mrg    Kill any attempts to combine saving of modes.  */
   1088  1.1  mrg 
   1089  1.1  mrg #define HARD_REGNO_CALLER_SAVE_MODE(REGNO, NREGS, MODE)			\
   1090  1.1  mrg   (CC_REGNO_P (REGNO) ? VOIDmode					\
   1091  1.1  mrg    : MMX_REGNO_P (REGNO) ? V8QImode					\
   1092  1.1  mrg    : (MODE) == VOIDmode && (NREGS) != 1 ? VOIDmode			\
   1093  1.1  mrg    : (MODE) == VOIDmode ? choose_hard_reg_mode ((REGNO), (NREGS), false) \
   1094  1.1  mrg    : (MODE) == HImode && !TARGET_PARTIAL_REG_STALL ? SImode		\
   1095  1.1  mrg    : (MODE) == QImode && (REGNO) > BX_REG && !TARGET_64BIT ? SImode 	\
   1096  1.1  mrg    : (MODE))
   1097  1.1  mrg 
   1098  1.1  mrg /* Specify the registers used for certain standard purposes.
   1099  1.1  mrg    The values of these macros are register numbers.  */
   1100  1.1  mrg 
   1101  1.1  mrg /* on the 386 the pc register is %eip, and is not usable as a general
   1102  1.1  mrg    register.  The ordinary mov instructions won't work */
   1103  1.1  mrg /* #define PC_REGNUM  */
   1104  1.1  mrg 
   1105  1.1  mrg /* Register to use for pushing function arguments.  */
   1106  1.1  mrg #define STACK_POINTER_REGNUM 7
   1107  1.1  mrg 
   1108  1.1  mrg /* Base register for access to local variables of the function.  */
   1109  1.1  mrg #define HARD_FRAME_POINTER_REGNUM 6
   1110  1.1  mrg 
   1111  1.1  mrg /* Base register for access to local variables of the function.  */
   1112  1.1  mrg #define FRAME_POINTER_REGNUM 20
   1113  1.1  mrg 
   1114  1.1  mrg /* First floating point reg */
   1115  1.1  mrg #define FIRST_FLOAT_REG 8
   1116  1.1  mrg 
   1117  1.1  mrg /* First & last stack-like regs */
   1118  1.1  mrg #define FIRST_STACK_REG FIRST_FLOAT_REG
   1119  1.1  mrg #define LAST_STACK_REG (FIRST_FLOAT_REG + 7)
   1120  1.1  mrg 
   1121  1.1  mrg #define FIRST_SSE_REG (FRAME_POINTER_REGNUM + 1)
   1122  1.1  mrg #define LAST_SSE_REG  (FIRST_SSE_REG + 7)
   1123  1.1  mrg 
   1124  1.1  mrg #define FIRST_MMX_REG  (LAST_SSE_REG + 1)
   1125  1.1  mrg #define LAST_MMX_REG   (FIRST_MMX_REG + 7)
   1126  1.1  mrg 
   1127  1.1  mrg #define FIRST_REX_INT_REG  (LAST_MMX_REG + 1)
   1128  1.1  mrg #define LAST_REX_INT_REG   (FIRST_REX_INT_REG + 7)
   1129  1.1  mrg 
   1130  1.1  mrg #define FIRST_REX_SSE_REG  (LAST_REX_INT_REG + 1)
   1131  1.1  mrg #define LAST_REX_SSE_REG   (FIRST_REX_SSE_REG + 7)
   1132  1.1  mrg 
   1133  1.1  mrg /* Override this in other tm.h files to cope with various OS lossage
   1134  1.1  mrg    requiring a frame pointer.  */
   1135  1.1  mrg #ifndef SUBTARGET_FRAME_POINTER_REQUIRED
   1136  1.1  mrg #define SUBTARGET_FRAME_POINTER_REQUIRED 0
   1137  1.1  mrg #endif
   1138  1.1  mrg 
   1139  1.1  mrg /* Make sure we can access arbitrary call frames.  */
   1140  1.1  mrg #define SETUP_FRAME_ADDRESSES()  ix86_setup_frame_addresses ()
   1141  1.1  mrg 
   1142  1.1  mrg /* Base register for access to arguments of the function.  */
   1143  1.1  mrg #define ARG_POINTER_REGNUM 16
   1144  1.1  mrg 
   1145  1.1  mrg /* Register to hold the addressing base for position independent
   1146  1.1  mrg    code access to data items.  We don't use PIC pointer for 64bit
   1147  1.1  mrg    mode.  Define the regnum to dummy value to prevent gcc from
   1148  1.1  mrg    pessimizing code dealing with EBX.
   1149  1.1  mrg 
   1150  1.1  mrg    To avoid clobbering a call-saved register unnecessarily, we renumber
   1151  1.1  mrg    the pic register when possible.  The change is visible after the
   1152  1.1  mrg    prologue has been emitted.  */
   1153  1.1  mrg 
   1154  1.1  mrg #define REAL_PIC_OFFSET_TABLE_REGNUM  BX_REG
   1155  1.1  mrg 
   1156  1.1  mrg #define PIC_OFFSET_TABLE_REGNUM				\
   1157  1.1  mrg   ((TARGET_64BIT && ix86_cmodel == CM_SMALL_PIC)	\
   1158  1.1  mrg    || !flag_pic ? INVALID_REGNUM			\
   1159  1.1  mrg    : reload_completed ? REGNO (pic_offset_table_rtx)	\
   1160  1.1  mrg    : REAL_PIC_OFFSET_TABLE_REGNUM)
   1161  1.1  mrg 
   1162  1.1  mrg #define GOT_SYMBOL_NAME "_GLOBAL_OFFSET_TABLE_"
   1163  1.1  mrg 
   1164  1.1  mrg /* This is overridden by <cygwin.h>.  */
   1165  1.1  mrg #define MS_AGGREGATE_RETURN 0
   1166  1.1  mrg 
   1167  1.1  mrg /* This is overridden by <netware.h>.  */
   1168  1.1  mrg #define KEEP_AGGREGATE_RETURN_POINTER 0
   1169  1.1  mrg 
   1170  1.1  mrg /* Define the classes of registers for register constraints in the
   1172  1.1  mrg    machine description.  Also define ranges of constants.
   1173  1.1  mrg 
   1174  1.1  mrg    One of the classes must always be named ALL_REGS and include all hard regs.
   1175  1.1  mrg    If there is more than one class, another class must be named NO_REGS
   1176  1.1  mrg    and contain no registers.
   1177  1.1  mrg 
   1178  1.1  mrg    The name GENERAL_REGS must be the name of a class (or an alias for
   1179  1.1  mrg    another name such as ALL_REGS).  This is the class of registers
   1180  1.1  mrg    that is allowed by "g" or "r" in a register constraint.
   1181  1.1  mrg    Also, registers outside this class are allocated only when
   1182  1.1  mrg    instructions express preferences for them.
   1183  1.1  mrg 
   1184  1.1  mrg    The classes must be numbered in nondecreasing order; that is,
   1185  1.1  mrg    a larger-numbered class must never be contained completely
   1186  1.1  mrg    in a smaller-numbered class.
   1187  1.1  mrg 
   1188  1.1  mrg    For any two classes, it is very desirable that there be another
   1189  1.1  mrg    class that represents their union.
   1190  1.1  mrg 
   1191  1.1  mrg    It might seem that class BREG is unnecessary, since no useful 386
   1192  1.1  mrg    opcode needs reg %ebx.  But some systems pass args to the OS in ebx,
   1193  1.1  mrg    and the "b" register constraint is useful in asms for syscalls.
   1194  1.1  mrg 
   1195  1.1  mrg    The flags, fpsr and fpcr registers are in no class.  */
   1196  1.1  mrg 
   1197  1.1  mrg enum reg_class
   1198  1.1  mrg {
   1199  1.1  mrg   NO_REGS,
   1200  1.1  mrg   AREG, DREG, CREG, BREG, SIREG, DIREG,
   1201  1.1  mrg   AD_REGS,			/* %eax/%edx for DImode */
   1202  1.1  mrg   CLOBBERED_REGS,		/* call-clobbered integers */
   1203  1.1  mrg   Q_REGS,			/* %eax %ebx %ecx %edx */
   1204  1.1  mrg   NON_Q_REGS,			/* %esi %edi %ebp %esp */
   1205  1.1  mrg   INDEX_REGS,			/* %eax %ebx %ecx %edx %esi %edi %ebp */
   1206  1.1  mrg   LEGACY_REGS,			/* %eax %ebx %ecx %edx %esi %edi %ebp %esp */
   1207  1.1  mrg   GENERAL_REGS,			/* %eax %ebx %ecx %edx %esi %edi %ebp %esp %r8 - %r15*/
   1208  1.1  mrg   FP_TOP_REG, FP_SECOND_REG,	/* %st(0) %st(1) */
   1209  1.1  mrg   FLOAT_REGS,
   1210  1.1  mrg   SSE_FIRST_REG,
   1211  1.1  mrg   SSE_REGS,
   1212  1.1  mrg   MMX_REGS,
   1213  1.1  mrg   FP_TOP_SSE_REGS,
   1214  1.1  mrg   FP_SECOND_SSE_REGS,
   1215  1.1  mrg   FLOAT_SSE_REGS,
   1216  1.1  mrg   FLOAT_INT_REGS,
   1217  1.1  mrg   INT_SSE_REGS,
   1218  1.1  mrg   FLOAT_INT_SSE_REGS,
   1219  1.1  mrg   ALL_REGS, LIM_REG_CLASSES
   1220  1.1  mrg };
   1221  1.1  mrg 
   1222  1.1  mrg #define N_REG_CLASSES ((int) LIM_REG_CLASSES)
   1223  1.1  mrg 
   1224  1.1  mrg #define INTEGER_CLASS_P(CLASS) \
   1225  1.1  mrg   reg_class_subset_p ((CLASS), GENERAL_REGS)
   1226  1.1  mrg #define FLOAT_CLASS_P(CLASS) \
   1227  1.1  mrg   reg_class_subset_p ((CLASS), FLOAT_REGS)
   1228  1.1  mrg #define SSE_CLASS_P(CLASS) \
   1229  1.1  mrg   reg_class_subset_p ((CLASS), SSE_REGS)
   1230  1.1  mrg #define MMX_CLASS_P(CLASS) \
   1231  1.1  mrg   ((CLASS) == MMX_REGS)
   1232  1.1  mrg #define MAYBE_INTEGER_CLASS_P(CLASS) \
   1233  1.1  mrg   reg_classes_intersect_p ((CLASS), GENERAL_REGS)
   1234  1.1  mrg #define MAYBE_FLOAT_CLASS_P(CLASS) \
   1235  1.1  mrg   reg_classes_intersect_p ((CLASS), FLOAT_REGS)
   1236  1.1  mrg #define MAYBE_SSE_CLASS_P(CLASS) \
   1237  1.1  mrg   reg_classes_intersect_p (SSE_REGS, (CLASS))
   1238  1.1  mrg #define MAYBE_MMX_CLASS_P(CLASS) \
   1239  1.1  mrg   reg_classes_intersect_p (MMX_REGS, (CLASS))
   1240  1.1  mrg 
   1241  1.1  mrg #define Q_CLASS_P(CLASS) \
   1242  1.1  mrg   reg_class_subset_p ((CLASS), Q_REGS)
   1243  1.1  mrg 
   1244  1.1  mrg /* Give names of register classes as strings for dump file.  */
   1245  1.1  mrg 
   1246  1.1  mrg #define REG_CLASS_NAMES \
   1247  1.1  mrg {  "NO_REGS",				\
   1248  1.1  mrg    "AREG", "DREG", "CREG", "BREG",	\
   1249  1.1  mrg    "SIREG", "DIREG",			\
   1250  1.1  mrg    "AD_REGS",				\
   1251  1.1  mrg    "CLOBBERED_REGS",			\
   1252  1.1  mrg    "Q_REGS", "NON_Q_REGS",		\
   1253  1.1  mrg    "INDEX_REGS",			\
   1254  1.1  mrg    "LEGACY_REGS",			\
   1255  1.1  mrg    "GENERAL_REGS",			\
   1256  1.1  mrg    "FP_TOP_REG", "FP_SECOND_REG",	\
   1257  1.1  mrg    "FLOAT_REGS",			\
   1258  1.1  mrg    "SSE_FIRST_REG",			\
   1259  1.1  mrg    "SSE_REGS",				\
   1260  1.1  mrg    "MMX_REGS",				\
   1261  1.1  mrg    "FP_TOP_SSE_REGS",			\
   1262  1.1  mrg    "FP_SECOND_SSE_REGS",		\
   1263  1.1  mrg    "FLOAT_SSE_REGS",			\
   1264  1.1  mrg    "FLOAT_INT_REGS",			\
   1265  1.1  mrg    "INT_SSE_REGS",			\
   1266  1.1  mrg    "FLOAT_INT_SSE_REGS",		\
   1267  1.1  mrg    "ALL_REGS" }
   1268  1.1  mrg 
   1269  1.1  mrg /* Define which registers fit in which classes.  This is an initializer
   1270  1.1  mrg    for a vector of HARD_REG_SET of length N_REG_CLASSES.
   1271  1.1  mrg 
   1272  1.1  mrg    Note that the default setting of CLOBBERED_REGS is for 32-bit; this
   1273  1.1  mrg    is adjusted by CONDITIONAL_REGISTER_USAGE for the 64-bit ABI in effect.  */
   1274  1.1  mrg 
   1275  1.1  mrg #define REG_CLASS_CONTENTS						\
   1276  1.1  mrg {     { 0x00,     0x0 },						\
   1277  1.1  mrg       { 0x01,     0x0 }, { 0x02, 0x0 },	/* AREG, DREG */		\
   1278  1.1  mrg       { 0x04,     0x0 }, { 0x08, 0x0 },	/* CREG, BREG */		\
   1279  1.1  mrg       { 0x10,     0x0 }, { 0x20, 0x0 },	/* SIREG, DIREG */		\
   1280  1.1  mrg       { 0x03,     0x0 },		/* AD_REGS */			\
   1281  1.1  mrg       { 0x07,     0x0 },		/* CLOBBERED_REGS */		\
   1282  1.1  mrg       { 0x0f,     0x0 },		/* Q_REGS */			\
   1283  1.1  mrg   { 0x1100f0,  0x1fe0 },		/* NON_Q_REGS */		\
   1284  1.1  mrg       { 0x7f,  0x1fe0 },		/* INDEX_REGS */		\
   1285  1.1  mrg   { 0x1100ff,     0x0 },		/* LEGACY_REGS */		\
   1286  1.1  mrg   { 0x1100ff,  0x1fe0 },		/* GENERAL_REGS */		\
   1287  1.1  mrg      { 0x100,     0x0 }, { 0x0200, 0x0 },/* FP_TOP_REG, FP_SECOND_REG */\
   1288  1.1  mrg     { 0xff00,     0x0 },		/* FLOAT_REGS */		\
   1289  1.1  mrg   { 0x200000,     0x0 },		/* SSE_FIRST_REG */		\
   1290  1.1  mrg { 0x1fe00000,0x1fe000 },		/* SSE_REGS */			\
   1291  1.1  mrg { 0xe0000000,    0x1f },		/* MMX_REGS */			\
   1292  1.1  mrg { 0x1fe00100,0x1fe000 },		/* FP_TOP_SSE_REG */		\
   1293  1.1  mrg { 0x1fe00200,0x1fe000 },		/* FP_SECOND_SSE_REG */		\
   1294  1.1  mrg { 0x1fe0ff00,0x1fe000 },		/* FLOAT_SSE_REGS */		\
   1295  1.1  mrg    { 0x1ffff,  0x1fe0 },		/* FLOAT_INT_REGS */		\
   1296  1.1  mrg { 0x1fe100ff,0x1fffe0 },		/* INT_SSE_REGS */		\
   1297  1.1  mrg { 0x1fe1ffff,0x1fffe0 },		/* FLOAT_INT_SSE_REGS */	\
   1298  1.1  mrg { 0xffffffff,0x1fffff }							\
   1299  1.1  mrg }
   1300  1.1  mrg 
   1301  1.1  mrg /* The same information, inverted:
   1302  1.1  mrg    Return the class number of the smallest class containing
   1303  1.1  mrg    reg number REGNO.  This could be a conditional expression
   1304  1.1  mrg    or could index an array.  */
   1305  1.1  mrg 
   1306  1.1  mrg #define REGNO_REG_CLASS(REGNO) (regclass_map[REGNO])
   1307  1.1  mrg 
   1308  1.1  mrg /* When defined, the compiler allows registers explicitly used in the
   1309  1.1  mrg    rtl to be used as spill registers but prevents the compiler from
   1310  1.1  mrg    extending the lifetime of these registers.  */
   1311  1.1  mrg 
   1312  1.1  mrg #define SMALL_REGISTER_CLASSES 1
   1313  1.1  mrg 
   1314  1.1  mrg #define QI_REG_P(X) (REG_P (X) && REGNO (X) <= BX_REG)
   1315  1.1  mrg 
   1316  1.1  mrg #define GENERAL_REGNO_P(N) \
   1317  1.1  mrg   ((N) <= STACK_POINTER_REGNUM || REX_INT_REGNO_P (N))
   1318  1.1  mrg 
   1319  1.1  mrg #define GENERAL_REG_P(X) \
   1320  1.1  mrg   (REG_P (X) && GENERAL_REGNO_P (REGNO (X)))
   1321  1.1  mrg 
   1322  1.1  mrg #define ANY_QI_REG_P(X) (TARGET_64BIT ? GENERAL_REG_P(X) : QI_REG_P (X))
   1323  1.1  mrg 
   1324  1.1  mrg #define REX_INT_REGNO_P(N) \
   1325  1.1  mrg   IN_RANGE ((N), FIRST_REX_INT_REG, LAST_REX_INT_REG)
   1326  1.1  mrg #define REX_INT_REG_P(X) (REG_P (X) && REX_INT_REGNO_P (REGNO (X)))
   1327  1.1  mrg 
   1328  1.1  mrg #define FP_REG_P(X) (REG_P (X) && FP_REGNO_P (REGNO (X)))
   1329  1.1  mrg #define FP_REGNO_P(N) IN_RANGE ((N), FIRST_STACK_REG, LAST_STACK_REG)
   1330  1.1  mrg #define ANY_FP_REG_P(X) (REG_P (X) && ANY_FP_REGNO_P (REGNO (X)))
   1331  1.1  mrg #define ANY_FP_REGNO_P(N) (FP_REGNO_P (N) || SSE_REGNO_P (N))
   1332  1.1  mrg 
   1333  1.1  mrg #define X87_FLOAT_MODE_P(MODE)	\
   1334  1.1  mrg   (TARGET_80387 && ((MODE) == SFmode || (MODE) == DFmode || (MODE) == XFmode))
   1335  1.1  mrg 
   1336  1.1  mrg #define SSE_REG_P(N) (REG_P (N) && SSE_REGNO_P (REGNO (N)))
   1337  1.1  mrg #define SSE_REGNO_P(N)						\
   1338  1.1  mrg   (IN_RANGE ((N), FIRST_SSE_REG, LAST_SSE_REG)			\
   1339  1.1  mrg    || REX_SSE_REGNO_P (N))
   1340  1.1  mrg 
   1341  1.1  mrg #define REX_SSE_REGNO_P(N) \
   1342  1.1  mrg   IN_RANGE ((N), FIRST_REX_SSE_REG, LAST_REX_SSE_REG)
   1343  1.1  mrg 
   1344  1.1  mrg #define SSE_REGNO(N) \
   1345  1.1  mrg   ((N) < 8 ? FIRST_SSE_REG + (N) : FIRST_REX_SSE_REG + (N) - 8)
   1346  1.1  mrg 
   1347  1.1  mrg #define SSE_FLOAT_MODE_P(MODE) \
   1348  1.1  mrg   ((TARGET_SSE && (MODE) == SFmode) || (TARGET_SSE2 && (MODE) == DFmode))
   1349  1.1  mrg 
   1350  1.1  mrg #define SSE_VEC_FLOAT_MODE_P(MODE) \
   1351  1.1  mrg   ((TARGET_SSE && (MODE) == V4SFmode) || (TARGET_SSE2 && (MODE) == V2DFmode))
   1352  1.1  mrg 
   1353  1.1  mrg #define AVX_FLOAT_MODE_P(MODE) \
   1354  1.1  mrg   (TARGET_AVX && ((MODE) == SFmode || (MODE) == DFmode))
   1355  1.1  mrg 
   1356  1.1  mrg #define AVX128_VEC_FLOAT_MODE_P(MODE) \
   1357  1.1  mrg   (TARGET_AVX && ((MODE) == V4SFmode || (MODE) == V2DFmode))
   1358  1.1  mrg 
   1359  1.1  mrg #define AVX256_VEC_FLOAT_MODE_P(MODE) \
   1360  1.1  mrg   (TARGET_AVX && ((MODE) == V8SFmode || (MODE) == V4DFmode))
   1361  1.1  mrg 
   1362  1.1  mrg #define AVX_VEC_FLOAT_MODE_P(MODE) \
   1363  1.1  mrg   (TARGET_AVX && ((MODE) == V4SFmode || (MODE) == V2DFmode \
   1364  1.1  mrg 		  || (MODE) == V8SFmode || (MODE) == V4DFmode))
   1365  1.1  mrg 
   1366  1.1  mrg #define FMA4_VEC_FLOAT_MODE_P(MODE) \
   1367  1.1  mrg   (TARGET_FMA4 && ((MODE) == V4SFmode || (MODE) == V2DFmode \
   1368  1.1  mrg 		  || (MODE) == V8SFmode || (MODE) == V4DFmode))
   1369  1.1  mrg 
   1370  1.1  mrg #define MMX_REG_P(XOP) (REG_P (XOP) && MMX_REGNO_P (REGNO (XOP)))
   1371  1.1  mrg #define MMX_REGNO_P(N) IN_RANGE ((N), FIRST_MMX_REG, LAST_MMX_REG)
   1372  1.1  mrg 
   1373  1.1  mrg #define STACK_REG_P(XOP) (REG_P (XOP) && STACK_REGNO_P (REGNO (XOP)))
   1374  1.1  mrg #define STACK_REGNO_P(N) IN_RANGE ((N), FIRST_STACK_REG, LAST_STACK_REG)
   1375  1.1  mrg 
   1376  1.1  mrg #define STACK_TOP_P(XOP) (REG_P (XOP) && REGNO (XOP) == FIRST_STACK_REG)
   1377  1.1  mrg 
   1378  1.1  mrg #define CC_REG_P(X) (REG_P (X) && CC_REGNO_P (REGNO (X)))
   1379  1.1  mrg #define CC_REGNO_P(X) ((X) == FLAGS_REG || (X) == FPSR_REG)
   1380  1.1  mrg 
   1381  1.1  mrg /* The class value for index registers, and the one for base regs.  */
   1382  1.1  mrg 
   1383  1.1  mrg #define INDEX_REG_CLASS INDEX_REGS
   1384  1.1  mrg #define BASE_REG_CLASS GENERAL_REGS
   1385  1.1  mrg 
   1386  1.1  mrg /* Place additional restrictions on the register class to use when it
   1387  1.1  mrg    is necessary to be able to hold a value of mode MODE in a reload
   1388  1.1  mrg    register for which class CLASS would ordinarily be used.  */
   1389  1.1  mrg 
   1390  1.1  mrg #define LIMIT_RELOAD_CLASS(MODE, CLASS) 			\
   1391  1.1  mrg   ((MODE) == QImode && !TARGET_64BIT				\
   1392  1.1  mrg    && ((CLASS) == ALL_REGS || (CLASS) == GENERAL_REGS		\
   1393  1.1  mrg        || (CLASS) == LEGACY_REGS || (CLASS) == INDEX_REGS)	\
   1394  1.1  mrg    ? Q_REGS : (CLASS))
   1395  1.1  mrg 
   1396  1.1  mrg /* Given an rtx X being reloaded into a reg required to be
   1397  1.1  mrg    in class CLASS, return the class of reg to actually use.
   1398  1.1  mrg    In general this is just CLASS; but on some machines
   1399  1.1  mrg    in some cases it is preferable to use a more restrictive class.
   1400  1.1  mrg    On the 80386 series, we prevent floating constants from being
   1401  1.1  mrg    reloaded into floating registers (since no move-insn can do that)
   1402  1.1  mrg    and we ensure that QImodes aren't reloaded into the esi or edi reg.  */
   1403  1.1  mrg 
   1404  1.1  mrg /* Put float CONST_DOUBLE in the constant pool instead of fp regs.
   1405  1.1  mrg    QImode must go into class Q_REGS.
   1406  1.1  mrg    Narrow ALL_REGS to GENERAL_REGS.  This supports allowing movsf and
   1407  1.1  mrg    movdf to do mem-to-mem moves through integer regs.  */
   1408  1.1  mrg 
   1409  1.1  mrg #define PREFERRED_RELOAD_CLASS(X, CLASS) \
   1410  1.1  mrg    ix86_preferred_reload_class ((X), (CLASS))
   1411  1.1  mrg 
   1412  1.1  mrg /* Discourage putting floating-point values in SSE registers unless
   1413  1.1  mrg    SSE math is being used, and likewise for the 387 registers.  */
   1414  1.1  mrg 
   1415  1.1  mrg #define PREFERRED_OUTPUT_RELOAD_CLASS(X, CLASS) \
   1416  1.1  mrg    ix86_preferred_output_reload_class ((X), (CLASS))
   1417  1.1  mrg 
   1418  1.1  mrg /* If we are copying between general and FP registers, we need a memory
   1419  1.1  mrg    location. The same is true for SSE and MMX registers.  */
   1420  1.1  mrg #define SECONDARY_MEMORY_NEEDED(CLASS1, CLASS2, MODE) \
   1421  1.1  mrg   ix86_secondary_memory_needed ((CLASS1), (CLASS2), (MODE), 1)
   1422  1.1  mrg 
   1423  1.1  mrg /* Get_secondary_mem widens integral modes to BITS_PER_WORD.
   1424  1.1  mrg    There is no need to emit full 64 bit move on 64 bit targets
   1425  1.1  mrg    for integral modes that can be moved using 32 bit move.  */
   1426  1.1  mrg #define SECONDARY_MEMORY_NEEDED_MODE(MODE)			\
   1427  1.1  mrg   (GET_MODE_BITSIZE (MODE) < 32 && INTEGRAL_MODE_P (MODE)	\
   1428  1.1  mrg    ? mode_for_size (32, GET_MODE_CLASS (MODE), 0)		\
   1429  1.1  mrg    : MODE)
   1430  1.1  mrg 
   1431  1.1  mrg /* Return the maximum number of consecutive registers
   1432  1.1  mrg    needed to represent mode MODE in a register of class CLASS.  */
   1433  1.1  mrg /* On the 80386, this is the size of MODE in words,
   1434  1.1  mrg    except in the FP regs, where a single reg is always enough.  */
   1435  1.1  mrg #define CLASS_MAX_NREGS(CLASS, MODE)					\
   1436  1.1  mrg  (!MAYBE_INTEGER_CLASS_P (CLASS)					\
   1437  1.1  mrg   ? (COMPLEX_MODE_P (MODE) ? 2 : 1)					\
   1438  1.1  mrg   : (((((MODE) == XFmode ? 12 : GET_MODE_SIZE (MODE)))			\
   1439  1.1  mrg       + UNITS_PER_WORD - 1) / UNITS_PER_WORD))
   1440  1.1  mrg 
   1441  1.1  mrg /* A C expression whose value is nonzero if pseudos that have been
   1442  1.1  mrg    assigned to registers of class CLASS would likely be spilled
   1443  1.1  mrg    because registers of CLASS are needed for spill registers.
   1444  1.1  mrg 
   1445  1.1  mrg    The default value of this macro returns 1 if CLASS has exactly one
   1446  1.1  mrg    register and zero otherwise.  On most machines, this default
   1447  1.1  mrg    should be used.  Only define this macro to some other expression
   1448  1.1  mrg    if pseudo allocated by `local-alloc.c' end up in memory because
   1449  1.1  mrg    their hard registers were needed for spill registers.  If this
   1450  1.1  mrg    macro returns nonzero for those classes, those pseudos will only
   1451  1.1  mrg    be allocated by `global.c', which knows how to reallocate the
   1452  1.1  mrg    pseudo to another register.  If there would not be another
   1453  1.1  mrg    register available for reallocation, you should not change the
   1454  1.1  mrg    definition of this macro since the only effect of such a
   1455  1.1  mrg    definition would be to slow down register allocation.  */
   1456  1.1  mrg 
   1457  1.1  mrg #define CLASS_LIKELY_SPILLED_P(CLASS)					\
   1458  1.1  mrg   (((CLASS) == AREG)							\
   1459  1.1  mrg    || ((CLASS) == DREG)							\
   1460  1.1  mrg    || ((CLASS) == CREG)							\
   1461  1.1  mrg    || ((CLASS) == BREG)							\
   1462  1.1  mrg    || ((CLASS) == AD_REGS)						\
   1463  1.1  mrg    || ((CLASS) == SIREG)						\
   1464  1.1  mrg    || ((CLASS) == DIREG)						\
   1465  1.1  mrg    || ((CLASS) == SSE_FIRST_REG)					\
   1466  1.1  mrg    || ((CLASS) == FP_TOP_REG)						\
   1467  1.1  mrg    || ((CLASS) == FP_SECOND_REG))
   1468  1.1  mrg 
   1469  1.1  mrg /* Return a class of registers that cannot change FROM mode to TO mode.  */
   1470  1.1  mrg 
   1471  1.1  mrg #define CANNOT_CHANGE_MODE_CLASS(FROM, TO, CLASS) \
   1472  1.1  mrg   ix86_cannot_change_mode_class (FROM, TO, CLASS)
   1473  1.1  mrg 
   1474  1.1  mrg /* Stack layout; function entry, exit and calling.  */
   1476  1.1  mrg 
   1477  1.1  mrg /* Define this if pushing a word on the stack
   1478  1.1  mrg    makes the stack pointer a smaller address.  */
   1479  1.1  mrg #define STACK_GROWS_DOWNWARD
   1480  1.1  mrg 
   1481  1.1  mrg /* Define this to nonzero if the nominal address of the stack frame
   1482  1.1  mrg    is at the high-address end of the local variables;
   1483  1.1  mrg    that is, each additional local variable allocated
   1484  1.1  mrg    goes at a more negative offset in the frame.  */
   1485  1.1  mrg #define FRAME_GROWS_DOWNWARD 1
   1486  1.1  mrg 
   1487  1.1  mrg /* Offset within stack frame to start allocating local variables at.
   1488  1.1  mrg    If FRAME_GROWS_DOWNWARD, this is the offset to the END of the
   1489  1.1  mrg    first local allocated.  Otherwise, it is the offset to the BEGINNING
   1490  1.1  mrg    of the first local allocated.  */
   1491  1.1  mrg #define STARTING_FRAME_OFFSET 0
   1492  1.1  mrg 
   1493  1.1  mrg /* If we generate an insn to push BYTES bytes,
   1494  1.1  mrg    this says how many the stack pointer really advances by.
   1495  1.1  mrg    On 386, we have pushw instruction that decrements by exactly 2 no
   1496  1.1  mrg    matter what the position was, there is no pushb.
   1497  1.1  mrg    But as CIE data alignment factor on this arch is -4, we need to make
   1498  1.1  mrg    sure all stack pointer adjustments are in multiple of 4.
   1499  1.1  mrg 
   1500  1.1  mrg    For 64bit ABI we round up to 8 bytes.
   1501  1.1  mrg  */
   1502  1.1  mrg 
   1503  1.1  mrg #define PUSH_ROUNDING(BYTES) \
   1504  1.1  mrg   (TARGET_64BIT		     \
   1505  1.1  mrg    ? (((BYTES) + 7) & (-8))  \
   1506  1.1  mrg    : (((BYTES) + 3) & (-4)))
   1507  1.1  mrg 
   1508  1.1  mrg /* If defined, the maximum amount of space required for outgoing arguments will
   1509  1.1  mrg    be computed and placed into the variable
   1510  1.1  mrg    `crtl->outgoing_args_size'.  No space will be pushed onto the
   1511  1.1  mrg    stack for each call; instead, the function prologue should increase the stack
   1512  1.1  mrg    frame size by this amount.
   1513  1.1  mrg 
   1514  1.1  mrg    MS ABI seem to require 16 byte alignment everywhere except for function
   1515  1.1  mrg    prologue and apilogue.  This is not possible without
   1516  1.1  mrg    ACCUMULATE_OUTGOING_ARGS.  */
   1517  1.1  mrg 
   1518  1.1  mrg #define ACCUMULATE_OUTGOING_ARGS \
   1519  1.1  mrg   (TARGET_ACCUMULATE_OUTGOING_ARGS || ix86_cfun_abi () == MS_ABI)
   1520  1.1  mrg 
   1521  1.1  mrg /* If defined, a C expression whose value is nonzero when we want to use PUSH
   1522  1.1  mrg    instructions to pass outgoing arguments.  */
   1523  1.1  mrg 
   1524  1.1  mrg #define PUSH_ARGS (TARGET_PUSH_ARGS && !ACCUMULATE_OUTGOING_ARGS)
   1525  1.1  mrg 
   1526  1.1  mrg /* We want the stack and args grow in opposite directions, even if
   1527  1.1  mrg    PUSH_ARGS is 0.  */
   1528  1.1  mrg #define PUSH_ARGS_REVERSED 1
   1529  1.1  mrg 
   1530  1.1  mrg /* Offset of first parameter from the argument pointer register value.  */
   1531  1.1  mrg #define FIRST_PARM_OFFSET(FNDECL) 0
   1532  1.1  mrg 
   1533  1.1  mrg /* Define this macro if functions should assume that stack space has been
   1534  1.1  mrg    allocated for arguments even when their values are passed in registers.
   1535  1.1  mrg 
   1536  1.1  mrg    The value of this macro is the size, in bytes, of the area reserved for
   1537  1.1  mrg    arguments passed in registers for the function represented by FNDECL.
   1538  1.1  mrg 
   1539  1.1  mrg    This space can be allocated by the caller, or be a part of the
   1540  1.1  mrg    machine-dependent stack frame: `OUTGOING_REG_PARM_STACK_SPACE' says
   1541  1.1  mrg    which.  */
   1542  1.1  mrg #define REG_PARM_STACK_SPACE(FNDECL) ix86_reg_parm_stack_space (FNDECL)
   1543  1.1  mrg 
   1544  1.1  mrg #define OUTGOING_REG_PARM_STACK_SPACE(FNTYPE) \
   1545  1.1  mrg   (ix86_function_type_abi (FNTYPE) == MS_ABI)
   1546  1.1  mrg 
   1547  1.1  mrg /* Value is the number of bytes of arguments automatically
   1548  1.1  mrg    popped when returning from a subroutine call.
   1549  1.1  mrg    FUNDECL is the declaration node of the function (as a tree),
   1550  1.1  mrg    FUNTYPE is the data type of the function (as a tree),
   1551  1.1  mrg    or for a library call it is an identifier node for the subroutine name.
   1552  1.1  mrg    SIZE is the number of bytes of arguments passed on the stack.
   1553  1.1  mrg 
   1554  1.1  mrg    On the 80386, the RTD insn may be used to pop them if the number
   1555  1.1  mrg      of args is fixed, but if the number is variable then the caller
   1556  1.1  mrg      must pop them all.  RTD can't be used for library calls now
   1557  1.1  mrg      because the library is compiled with the Unix compiler.
   1558  1.1  mrg    Use of RTD is a selectable option, since it is incompatible with
   1559  1.1  mrg    standard Unix calling sequences.  If the option is not selected,
   1560  1.1  mrg    the caller must always pop the args.
   1561  1.1  mrg 
   1562  1.1  mrg    The attribute stdcall is equivalent to RTD on a per module basis.  */
   1563  1.1  mrg 
   1564  1.1  mrg #define RETURN_POPS_ARGS(FUNDECL, FUNTYPE, SIZE) \
   1565  1.1  mrg   ix86_return_pops_args ((FUNDECL), (FUNTYPE), (SIZE))
   1566  1.1  mrg 
   1567  1.1  mrg #define FUNCTION_VALUE_REGNO_P(N) ix86_function_value_regno_p (N)
   1568  1.1  mrg 
   1569  1.1  mrg /* Define how to find the value returned by a library function
   1570  1.1  mrg    assuming the value has mode MODE.  */
   1571  1.1  mrg 
   1572  1.1  mrg #define LIBCALL_VALUE(MODE) ix86_libcall_value (MODE)
   1573  1.1  mrg 
   1574  1.1  mrg /* Define the size of the result block used for communication between
   1575  1.1  mrg    untyped_call and untyped_return.  The block contains a DImode value
   1576  1.1  mrg    followed by the block used by fnsave and frstor.  */
   1577  1.1  mrg 
   1578  1.1  mrg #define APPLY_RESULT_SIZE (8+108)
   1579  1.1  mrg 
   1580  1.1  mrg /* 1 if N is a possible register number for function argument passing.  */
   1581  1.1  mrg #define FUNCTION_ARG_REGNO_P(N) ix86_function_arg_regno_p (N)
   1582  1.1  mrg 
   1583  1.1  mrg /* Define a data type for recording info about an argument list
   1584  1.1  mrg    during the scan of that argument list.  This data type should
   1585  1.1  mrg    hold all necessary information about the function itself
   1586  1.1  mrg    and about the args processed so far, enough to enable macros
   1587  1.1  mrg    such as FUNCTION_ARG to determine where the next arg should go.  */
   1588  1.1  mrg 
   1589  1.1  mrg typedef struct ix86_args {
   1590  1.1  mrg   int words;			/* # words passed so far */
   1591  1.1  mrg   int nregs;			/* # registers available for passing */
   1592  1.1  mrg   int regno;			/* next available register number */
   1593  1.1  mrg   int fastcall;			/* fastcall calling convention is used */
   1594  1.1  mrg   int sse_words;		/* # sse words passed so far */
   1595  1.1  mrg   int sse_nregs;		/* # sse registers available for passing */
   1596  1.1  mrg   int warn_avx;			/* True when we want to warn about AVX ABI.  */
   1597  1.1  mrg   int warn_sse;			/* True when we want to warn about SSE ABI.  */
   1598  1.1  mrg   int warn_mmx;			/* True when we want to warn about MMX ABI.  */
   1599  1.1  mrg   int sse_regno;		/* next available sse register number */
   1600  1.1  mrg   int mmx_words;		/* # mmx words passed so far */
   1601  1.1  mrg   int mmx_nregs;		/* # mmx registers available for passing */
   1602  1.1  mrg   int mmx_regno;		/* next available mmx register number */
   1603  1.1  mrg   int maybe_vaarg;		/* true for calls to possibly vardic fncts.  */
   1604  1.1  mrg   int float_in_sse;		/* 1 if in 32-bit mode SFmode (2 for DFmode) should
   1605  1.1  mrg 				   be passed in SSE registers.  Otherwise 0.  */
   1606  1.1  mrg   enum calling_abi call_abi;	/* Set to SYSV_ABI for sysv abi. Otherwise
   1607  1.1  mrg  				   MS_ABI for ms abi.  */
   1608  1.1  mrg } CUMULATIVE_ARGS;
   1609  1.1  mrg 
   1610  1.1  mrg /* Initialize a variable CUM of type CUMULATIVE_ARGS
   1611  1.1  mrg    for a call to a function whose data type is FNTYPE.
   1612  1.1  mrg    For a library call, FNTYPE is 0.  */
   1613  1.1  mrg 
   1614  1.1  mrg #define INIT_CUMULATIVE_ARGS(CUM, FNTYPE, LIBNAME, FNDECL, N_NAMED_ARGS) \
   1615  1.1  mrg   init_cumulative_args (&(CUM), (FNTYPE), (LIBNAME), (FNDECL))
   1616  1.1  mrg 
   1617  1.1  mrg /* Update the data in CUM to advance over an argument
   1618  1.1  mrg    of mode MODE and data type TYPE.
   1619  1.1  mrg    (TYPE is null for libcalls where that information may not be available.)  */
   1620  1.1  mrg 
   1621  1.1  mrg #define FUNCTION_ARG_ADVANCE(CUM, MODE, TYPE, NAMED) \
   1622  1.1  mrg   function_arg_advance (&(CUM), (MODE), (TYPE), (NAMED))
   1623  1.1  mrg 
   1624  1.1  mrg /* Define where to put the arguments to a function.
   1625  1.1  mrg    Value is zero to push the argument on the stack,
   1626  1.1  mrg    or a hard register in which to store the argument.
   1627  1.1  mrg 
   1628  1.1  mrg    MODE is the argument's machine mode.
   1629  1.1  mrg    TYPE is the data type of the argument (as a tree).
   1630  1.1  mrg     This is null for libcalls where that information may
   1631  1.1  mrg     not be available.
   1632  1.1  mrg    CUM is a variable of type CUMULATIVE_ARGS which gives info about
   1633  1.1  mrg     the preceding args and about the function being called.
   1634  1.1  mrg    NAMED is nonzero if this argument is a named parameter
   1635  1.1  mrg     (otherwise it is an extra parameter matching an ellipsis).  */
   1636  1.1  mrg 
   1637  1.1  mrg #define FUNCTION_ARG(CUM, MODE, TYPE, NAMED) \
   1638  1.1  mrg   function_arg (&(CUM), (MODE), (TYPE), (NAMED))
   1639  1.1  mrg 
   1640  1.1  mrg /* Output assembler code to FILE to increment profiler label # LABELNO
   1641  1.1  mrg    for profiling a function entry.  */
   1642  1.1  mrg 
   1643  1.1  mrg #define FUNCTION_PROFILER(FILE, LABELNO) x86_function_profiler (FILE, LABELNO)
   1644  1.1  mrg 
   1645  1.1  mrg #define MCOUNT_NAME "_mcount"
   1646  1.1  mrg 
   1647  1.1  mrg #define PROFILE_COUNT_REGISTER "edx"
   1648  1.1  mrg 
   1649  1.1  mrg /* EXIT_IGNORE_STACK should be nonzero if, when returning from a function,
   1650  1.1  mrg    the stack pointer does not matter.  The value is tested only in
   1651  1.1  mrg    functions that have frame pointers.
   1652  1.1  mrg    No definition is equivalent to always zero.  */
   1653  1.1  mrg /* Note on the 386 it might be more efficient not to define this since
   1654  1.1  mrg    we have to restore it ourselves from the frame pointer, in order to
   1655  1.1  mrg    use pop */
   1656  1.1  mrg 
   1657  1.1  mrg #define EXIT_IGNORE_STACK 1
   1658  1.1  mrg 
   1659  1.1  mrg /* Output assembler code for a block containing the constant parts
   1660  1.1  mrg    of a trampoline, leaving space for the variable parts.  */
   1661  1.1  mrg 
   1662  1.1  mrg /* On the 386, the trampoline contains two instructions:
   1663  1.1  mrg      mov #STATIC,ecx
   1664  1.1  mrg      jmp FUNCTION
   1665  1.1  mrg    The trampoline is generated entirely at runtime.  The operand of JMP
   1666  1.1  mrg    is the address of FUNCTION relative to the instruction following the
   1667  1.1  mrg    JMP (which is 5 bytes long).  */
   1668  1.1  mrg 
   1669  1.1  mrg /* Length in units of the trampoline for entering a nested function.  */
   1670  1.1  mrg 
   1671  1.1  mrg #define TRAMPOLINE_SIZE (TARGET_64BIT ? 24 : 10)
   1672  1.1  mrg 
   1673  1.1  mrg /* Definitions for register eliminations.
   1675  1.1  mrg 
   1676  1.1  mrg    This is an array of structures.  Each structure initializes one pair
   1677  1.1  mrg    of eliminable registers.  The "from" register number is given first,
   1678  1.1  mrg    followed by "to".  Eliminations of the same "from" register are listed
   1679  1.1  mrg    in order of preference.
   1680  1.1  mrg 
   1681  1.1  mrg    There are two registers that can always be eliminated on the i386.
   1682  1.1  mrg    The frame pointer and the arg pointer can be replaced by either the
   1683  1.1  mrg    hard frame pointer or to the stack pointer, depending upon the
   1684  1.1  mrg    circumstances.  The hard frame pointer is not used before reload and
   1685  1.1  mrg    so it is not eligible for elimination.  */
   1686  1.1  mrg 
   1687  1.1  mrg #define ELIMINABLE_REGS					\
   1688  1.1  mrg {{ ARG_POINTER_REGNUM, STACK_POINTER_REGNUM},		\
   1689  1.1  mrg  { ARG_POINTER_REGNUM, HARD_FRAME_POINTER_REGNUM},	\
   1690  1.1  mrg  { FRAME_POINTER_REGNUM, STACK_POINTER_REGNUM},		\
   1691  1.1  mrg  { FRAME_POINTER_REGNUM, HARD_FRAME_POINTER_REGNUM}}	\
   1692  1.1  mrg 
   1693  1.1  mrg /* Define the offset between two registers, one to be eliminated, and the other
   1694  1.1  mrg    its replacement, at the start of a routine.  */
   1695  1.1  mrg 
   1696  1.1  mrg #define INITIAL_ELIMINATION_OFFSET(FROM, TO, OFFSET) \
   1697  1.1  mrg   ((OFFSET) = ix86_initial_elimination_offset ((FROM), (TO)))
   1698  1.1  mrg 
   1699  1.1  mrg /* Addressing modes, and classification of registers for them.  */
   1701  1.1  mrg 
   1702  1.1  mrg /* Macros to check register numbers against specific register classes.  */
   1703  1.1  mrg 
   1704  1.1  mrg /* These assume that REGNO is a hard or pseudo reg number.
   1705  1.1  mrg    They give nonzero only if REGNO is a hard reg of the suitable class
   1706  1.1  mrg    or a pseudo reg currently allocated to a suitable hard reg.
   1707  1.1  mrg    Since they use reg_renumber, they are safe only once reg_renumber
   1708  1.1  mrg    has been allocated, which happens in local-alloc.c.  */
   1709  1.1  mrg 
   1710  1.1  mrg #define REGNO_OK_FOR_INDEX_P(REGNO) 					\
   1711  1.1  mrg   ((REGNO) < STACK_POINTER_REGNUM 					\
   1712  1.1  mrg    || REX_INT_REGNO_P (REGNO)						\
   1713  1.1  mrg    || (unsigned) reg_renumber[(REGNO)] < STACK_POINTER_REGNUM		\
   1714  1.1  mrg    || REX_INT_REGNO_P ((unsigned) reg_renumber[(REGNO)]))
   1715  1.1  mrg 
   1716  1.1  mrg #define REGNO_OK_FOR_BASE_P(REGNO) 					\
   1717  1.1  mrg   (GENERAL_REGNO_P (REGNO)						\
   1718  1.1  mrg    || (REGNO) == ARG_POINTER_REGNUM 					\
   1719  1.1  mrg    || (REGNO) == FRAME_POINTER_REGNUM 					\
   1720  1.1  mrg    || GENERAL_REGNO_P ((unsigned) reg_renumber[(REGNO)]))
   1721  1.1  mrg 
   1722  1.1  mrg /* The macros REG_OK_FOR..._P assume that the arg is a REG rtx
   1723  1.1  mrg    and check its validity for a certain class.
   1724  1.1  mrg    We have two alternate definitions for each of them.
   1725  1.1  mrg    The usual definition accepts all pseudo regs; the other rejects
   1726  1.1  mrg    them unless they have been allocated suitable hard regs.
   1727  1.1  mrg    The symbol REG_OK_STRICT causes the latter definition to be used.
   1728  1.1  mrg 
   1729  1.1  mrg    Most source files want to accept pseudo regs in the hope that
   1730  1.1  mrg    they will get allocated to the class that the insn wants them to be in.
   1731  1.1  mrg    Source files for reload pass need to be strict.
   1732  1.1  mrg    After reload, it makes no difference, since pseudo regs have
   1733  1.1  mrg    been eliminated by then.  */
   1734  1.1  mrg 
   1735  1.1  mrg 
   1736  1.1  mrg /* Non strict versions, pseudos are ok.  */
   1737  1.1  mrg #define REG_OK_FOR_INDEX_NONSTRICT_P(X)					\
   1738  1.1  mrg   (REGNO (X) < STACK_POINTER_REGNUM					\
   1739  1.1  mrg    || REX_INT_REGNO_P (REGNO (X))					\
   1740  1.1  mrg    || REGNO (X) >= FIRST_PSEUDO_REGISTER)
   1741  1.1  mrg 
   1742  1.1  mrg #define REG_OK_FOR_BASE_NONSTRICT_P(X)					\
   1743  1.1  mrg   (GENERAL_REGNO_P (REGNO (X))						\
   1744  1.1  mrg    || REGNO (X) == ARG_POINTER_REGNUM					\
   1745  1.1  mrg    || REGNO (X) == FRAME_POINTER_REGNUM 				\
   1746  1.1  mrg    || REGNO (X) >= FIRST_PSEUDO_REGISTER)
   1747  1.1  mrg 
   1748  1.1  mrg /* Strict versions, hard registers only */
   1749  1.1  mrg #define REG_OK_FOR_INDEX_STRICT_P(X) REGNO_OK_FOR_INDEX_P (REGNO (X))
   1750  1.1  mrg #define REG_OK_FOR_BASE_STRICT_P(X)  REGNO_OK_FOR_BASE_P (REGNO (X))
   1751  1.1  mrg 
   1752  1.1  mrg #ifndef REG_OK_STRICT
   1753  1.1  mrg #define REG_OK_FOR_INDEX_P(X)  REG_OK_FOR_INDEX_NONSTRICT_P (X)
   1754  1.1  mrg #define REG_OK_FOR_BASE_P(X)   REG_OK_FOR_BASE_NONSTRICT_P (X)
   1755  1.1  mrg 
   1756  1.1  mrg #else
   1757  1.1  mrg #define REG_OK_FOR_INDEX_P(X)  REG_OK_FOR_INDEX_STRICT_P (X)
   1758  1.1  mrg #define REG_OK_FOR_BASE_P(X)   REG_OK_FOR_BASE_STRICT_P (X)
   1759  1.1  mrg #endif
   1760  1.1  mrg 
   1761  1.1  mrg /* TARGET_LEGITIMATE_ADDRESS_P recognizes an RTL expression
   1762  1.1  mrg    that is a valid memory address for an instruction.
   1763  1.1  mrg    The MODE argument is the machine mode for the MEM expression
   1764  1.1  mrg    that wants to use this address.
   1765  1.1  mrg 
   1766  1.1  mrg    The other macros defined here are used only in TARGET_LEGITIMATE_ADDRESS_P,
   1767  1.1  mrg    except for CONSTANT_ADDRESS_P which is usually machine-independent.
   1768  1.1  mrg 
   1769  1.1  mrg    See legitimize_pic_address in i386.c for details as to what
   1770  1.1  mrg    constitutes a legitimate address when -fpic is used.  */
   1771  1.1  mrg 
   1772  1.1  mrg #define MAX_REGS_PER_ADDRESS 2
   1773  1.1  mrg 
   1774  1.1  mrg #define CONSTANT_ADDRESS_P(X)  constant_address_p (X)
   1775  1.1  mrg 
   1776  1.1  mrg /* Nonzero if the constant value X is a legitimate general operand.
   1777  1.1  mrg    It is given that X satisfies CONSTANT_P or is a CONST_DOUBLE.  */
   1778  1.1  mrg 
   1779  1.1  mrg #define LEGITIMATE_CONSTANT_P(X)  legitimate_constant_p (X)
   1780  1.1  mrg 
   1781  1.1  mrg /* Try a machine-dependent way of reloading an illegitimate address
   1782  1.1  mrg    operand.  If we find one, push the reload and jump to WIN.  This
   1783  1.1  mrg    macro is used in only one place: `find_reloads_address' in reload.c.  */
   1784  1.1  mrg 
   1785  1.1  mrg #define LEGITIMIZE_RELOAD_ADDRESS(X, MODE, OPNUM, TYPE, INDL, WIN)	\
   1786  1.1  mrg do {									\
   1787  1.1  mrg   if (ix86_legitimize_reload_address ((X), (MODE), (OPNUM),		\
   1788  1.1  mrg 				      (int)(TYPE), (INDL)))		\
   1789  1.1  mrg     goto WIN;								\
   1790  1.1  mrg } while (0)
   1791  1.1  mrg 
   1792  1.1  mrg /* If defined, a C expression to determine the base term of address X.
   1793  1.1  mrg    This macro is used in only one place: `find_base_term' in alias.c.
   1794  1.1  mrg 
   1795  1.1  mrg    It is always safe for this macro to not be defined.  It exists so
   1796  1.1  mrg    that alias analysis can understand machine-dependent addresses.
   1797  1.1  mrg 
   1798  1.1  mrg    The typical use of this macro is to handle addresses containing
   1799  1.1  mrg    a label_ref or symbol_ref within an UNSPEC.  */
   1800  1.1  mrg 
   1801  1.1  mrg #define FIND_BASE_TERM(X) ix86_find_base_term (X)
   1802  1.1  mrg 
   1803  1.1  mrg /* Nonzero if the constant value X is a legitimate general operand
   1804  1.1  mrg    when generating PIC code.  It is given that flag_pic is on and
   1805  1.1  mrg    that X satisfies CONSTANT_P or is a CONST_DOUBLE.  */
   1806  1.1  mrg 
   1807  1.1  mrg #define LEGITIMATE_PIC_OPERAND_P(X) legitimate_pic_operand_p (X)
   1808  1.1  mrg 
   1809  1.1  mrg #define SYMBOLIC_CONST(X)	\
   1810  1.1  mrg   (GET_CODE (X) == SYMBOL_REF						\
   1811  1.1  mrg    || GET_CODE (X) == LABEL_REF						\
   1812  1.1  mrg    || (GET_CODE (X) == CONST && symbolic_reference_mentioned_p (X)))
   1813  1.1  mrg 
   1814  1.1  mrg /* Max number of args passed in registers.  If this is more than 3, we will
   1816  1.1  mrg    have problems with ebx (register #4), since it is a caller save register and
   1817  1.1  mrg    is also used as the pic register in ELF.  So for now, don't allow more than
   1818  1.1  mrg    3 registers to be passed in registers.  */
   1819  1.1  mrg 
   1820  1.1  mrg /* Abi specific values for REGPARM_MAX and SSE_REGPARM_MAX */
   1821  1.1  mrg #define X86_64_REGPARM_MAX 6
   1822  1.1  mrg #define X86_64_MS_REGPARM_MAX 4
   1823  1.1  mrg 
   1824  1.1  mrg #define X86_32_REGPARM_MAX 3
   1825  1.1  mrg 
   1826  1.1  mrg #define REGPARM_MAX							\
   1827  1.1  mrg   (TARGET_64BIT ? (TARGET_64BIT_MS_ABI ? X86_64_MS_REGPARM_MAX		\
   1828  1.1  mrg 		   : X86_64_REGPARM_MAX)				\
   1829  1.1  mrg    : X86_32_REGPARM_MAX)
   1830  1.1  mrg 
   1831  1.1  mrg #define X86_64_SSE_REGPARM_MAX 8
   1832  1.1  mrg #define X86_64_MS_SSE_REGPARM_MAX 4
   1833  1.1  mrg 
   1834  1.1  mrg #define X86_32_SSE_REGPARM_MAX (TARGET_SSE ? (TARGET_MACHO ? 4 : 3) : 0)
   1835  1.1  mrg 
   1836  1.1  mrg #define SSE_REGPARM_MAX							\
   1837  1.1  mrg   (TARGET_64BIT ? (TARGET_64BIT_MS_ABI ? X86_64_MS_SSE_REGPARM_MAX	\
   1838  1.1  mrg 		   : X86_64_SSE_REGPARM_MAX)				\
   1839  1.1  mrg    : X86_32_SSE_REGPARM_MAX)
   1840  1.1  mrg 
   1841  1.1  mrg #define MMX_REGPARM_MAX (TARGET_64BIT ? 0 : (TARGET_MMX ? 3 : 0))
   1842  1.1  mrg 
   1843  1.1  mrg 
   1844  1.1  mrg /* Specify the machine mode that this machine uses
   1846  1.1  mrg    for the index in the tablejump instruction.  */
   1847  1.1  mrg #define CASE_VECTOR_MODE \
   1848  1.1  mrg  (!TARGET_64BIT || (flag_pic && ix86_cmodel != CM_LARGE_PIC) ? SImode : DImode)
   1849  1.1  mrg 
   1850  1.1  mrg /* Define this as 1 if `char' should by default be signed; else as 0.  */
   1851  1.1  mrg #define DEFAULT_SIGNED_CHAR 1
   1852  1.1  mrg 
   1853  1.1  mrg /* Max number of bytes we can move from memory to memory
   1854  1.1  mrg    in one reasonably fast instruction.  */
   1855  1.1  mrg #define MOVE_MAX 16
   1856  1.1  mrg 
   1857  1.1  mrg /* MOVE_MAX_PIECES is the number of bytes at a time which we can
   1858  1.1  mrg    move efficiently, as opposed to  MOVE_MAX which is the maximum
   1859  1.1  mrg    number of bytes we can move with a single instruction.  */
   1860  1.1  mrg #define MOVE_MAX_PIECES (TARGET_64BIT ? 8 : 4)
   1861  1.1  mrg 
   1862  1.1  mrg /* If a memory-to-memory move would take MOVE_RATIO or more simple
   1863  1.1  mrg    move-instruction pairs, we will do a movmem or libcall instead.
   1864  1.1  mrg    Increasing the value will always make code faster, but eventually
   1865  1.1  mrg    incurs high cost in increased code size.
   1866  1.1  mrg 
   1867  1.1  mrg    If you don't define this, a reasonable default is used.  */
   1868  1.1  mrg 
   1869  1.1  mrg #define MOVE_RATIO(speed) ((speed) ? ix86_cost->move_ratio : 3)
   1870  1.1  mrg 
   1871  1.1  mrg /* If a clear memory operation would take CLEAR_RATIO or more simple
   1872  1.1  mrg    move-instruction sequences, we will do a clrmem or libcall instead.  */
   1873  1.1  mrg 
   1874  1.1  mrg #define CLEAR_RATIO(speed) ((speed) ? MIN (6, ix86_cost->move_ratio) : 2)
   1875  1.1  mrg 
   1876  1.1  mrg /* Define if shifts truncate the shift count
   1877  1.1  mrg    which implies one can omit a sign-extension or zero-extension
   1878  1.1  mrg    of a shift count.  */
   1879  1.1  mrg /* On i386, shifts do truncate the count.  But bit opcodes don't.  */
   1880  1.1  mrg 
   1881  1.1  mrg /* #define SHIFT_COUNT_TRUNCATED */
   1882  1.1  mrg 
   1883  1.1  mrg /* Value is 1 if truncating an integer of INPREC bits to OUTPREC bits
   1884  1.1  mrg    is done just by pretending it is already truncated.  */
   1885  1.1  mrg #define TRULY_NOOP_TRUNCATION(OUTPREC, INPREC) 1
   1886  1.1  mrg 
   1887  1.1  mrg /* A macro to update M and UNSIGNEDP when an object whose type is
   1888  1.1  mrg    TYPE and which has the specified mode and signedness is to be
   1889  1.1  mrg    stored in a register.  This macro is only called when TYPE is a
   1890  1.1  mrg    scalar type.
   1891  1.1  mrg 
   1892  1.1  mrg    On i386 it is sometimes useful to promote HImode and QImode
   1893  1.1  mrg    quantities to SImode.  The choice depends on target type.  */
   1894  1.1  mrg 
   1895  1.1  mrg #define PROMOTE_MODE(MODE, UNSIGNEDP, TYPE) 		\
   1896  1.1  mrg do {							\
   1897  1.1  mrg   if (((MODE) == HImode && TARGET_PROMOTE_HI_REGS)	\
   1898  1.1  mrg       || ((MODE) == QImode && TARGET_PROMOTE_QI_REGS))	\
   1899  1.1  mrg     (MODE) = SImode;					\
   1900  1.1  mrg } while (0)
   1901  1.1  mrg 
   1902  1.1  mrg /* Specify the machine mode that pointers have.
   1903  1.1  mrg    After generation of rtl, the compiler makes no further distinction
   1904  1.1  mrg    between pointers and any other objects of this machine mode.  */
   1905  1.1  mrg #define Pmode (TARGET_64BIT ? DImode : SImode)
   1906  1.1  mrg 
   1907  1.1  mrg /* A function address in a call instruction
   1908  1.1  mrg    is a byte address (for indexing purposes)
   1909  1.1  mrg    so give the MEM rtx a byte's mode.  */
   1910  1.1  mrg #define FUNCTION_MODE QImode
   1911  1.1  mrg 
   1912  1.1  mrg /* A C expression for the cost of moving data from a register in class FROM to
   1914  1.1  mrg    one in class TO.  The classes are expressed using the enumeration values
   1915  1.1  mrg    such as `GENERAL_REGS'.  A value of 2 is the default; other values are
   1916  1.1  mrg    interpreted relative to that.
   1917  1.1  mrg 
   1918  1.1  mrg    It is not required that the cost always equal 2 when FROM is the same as TO;
   1919  1.1  mrg    on some machines it is expensive to move between registers if they are not
   1920  1.1  mrg    general registers.  */
   1921  1.1  mrg 
   1922  1.1  mrg #define REGISTER_MOVE_COST(MODE, CLASS1, CLASS2) \
   1923  1.1  mrg    ix86_register_move_cost ((MODE), (CLASS1), (CLASS2))
   1924  1.1  mrg 
   1925  1.1  mrg /* A C expression for the cost of moving data of mode M between a
   1926  1.1  mrg    register and memory.  A value of 2 is the default; this cost is
   1927  1.1  mrg    relative to those in `REGISTER_MOVE_COST'.
   1928  1.1  mrg 
   1929  1.1  mrg    If moving between registers and memory is more expensive than
   1930  1.1  mrg    between two registers, you should define this macro to express the
   1931  1.1  mrg    relative cost.  */
   1932  1.1  mrg 
   1933  1.1  mrg #define MEMORY_MOVE_COST(MODE, CLASS, IN)	\
   1934  1.1  mrg   ix86_memory_move_cost ((MODE), (CLASS), (IN))
   1935  1.1  mrg 
   1936  1.1  mrg /* A C expression for the cost of a branch instruction.  A value of 1
   1937  1.1  mrg    is the default; other values are interpreted relative to that.  */
   1938  1.1  mrg 
   1939  1.1  mrg #define BRANCH_COST(speed_p, predictable_p) \
   1940  1.1  mrg   (!(speed_p) ? 2 : (predictable_p) ? 0 : ix86_branch_cost)
   1941  1.1  mrg 
   1942  1.1  mrg /* Define this macro as a C expression which is nonzero if accessing
   1943  1.1  mrg    less than a word of memory (i.e. a `char' or a `short') is no
   1944  1.1  mrg    faster than accessing a word of memory, i.e., if such access
   1945  1.1  mrg    require more than one instruction or if there is no difference in
   1946  1.1  mrg    cost between byte and (aligned) word loads.
   1947  1.1  mrg 
   1948  1.1  mrg    When this macro is not defined, the compiler will access a field by
   1949  1.1  mrg    finding the smallest containing object; when it is defined, a
   1950  1.1  mrg    fullword load will be used if alignment permits.  Unless bytes
   1951  1.1  mrg    accesses are faster than word accesses, using word accesses is
   1952  1.1  mrg    preferable since it may eliminate subsequent memory access if
   1953  1.1  mrg    subsequent accesses occur to other fields in the same word of the
   1954  1.1  mrg    structure, but to different bytes.  */
   1955  1.1  mrg 
   1956  1.1  mrg #define SLOW_BYTE_ACCESS 0
   1957  1.1  mrg 
   1958  1.1  mrg /* Nonzero if access to memory by shorts is slow and undesirable.  */
   1959  1.1  mrg #define SLOW_SHORT_ACCESS 0
   1960  1.1  mrg 
   1961  1.1  mrg /* Define this macro to be the value 1 if unaligned accesses have a
   1962  1.1  mrg    cost many times greater than aligned accesses, for example if they
   1963  1.1  mrg    are emulated in a trap handler.
   1964  1.1  mrg 
   1965  1.1  mrg    When this macro is nonzero, the compiler will act as if
   1966  1.1  mrg    `STRICT_ALIGNMENT' were nonzero when generating code for block
   1967  1.1  mrg    moves.  This can cause significantly more instructions to be
   1968  1.1  mrg    produced.  Therefore, do not set this macro nonzero if unaligned
   1969  1.1  mrg    accesses only add a cycle or two to the time for a memory access.
   1970  1.1  mrg 
   1971  1.1  mrg    If the value of this macro is always zero, it need not be defined.  */
   1972  1.1  mrg 
   1973  1.1  mrg /* #define SLOW_UNALIGNED_ACCESS(MODE, ALIGN) 0 */
   1974  1.1  mrg 
   1975  1.1  mrg /* Define this macro if it is as good or better to call a constant
   1976  1.1  mrg    function address than to call an address kept in a register.
   1977  1.1  mrg 
   1978  1.1  mrg    Desirable on the 386 because a CALL with a constant address is
   1979  1.1  mrg    faster than one with a register address.  */
   1980  1.1  mrg 
   1981  1.1  mrg #define NO_FUNCTION_CSE
   1982  1.1  mrg 
   1983  1.1  mrg /* Given a comparison code (EQ, NE, etc.) and the first operand of a COMPARE,
   1985  1.1  mrg    return the mode to be used for the comparison.
   1986  1.1  mrg 
   1987  1.1  mrg    For floating-point equality comparisons, CCFPEQmode should be used.
   1988  1.1  mrg    VOIDmode should be used in all other cases.
   1989  1.1  mrg 
   1990  1.1  mrg    For integer comparisons against zero, reduce to CCNOmode or CCZmode if
   1991  1.1  mrg    possible, to allow for more combinations.  */
   1992  1.1  mrg 
   1993  1.1  mrg #define SELECT_CC_MODE(OP, X, Y) ix86_cc_mode ((OP), (X), (Y))
   1994  1.1  mrg 
   1995  1.1  mrg /* Return nonzero if MODE implies a floating point inequality can be
   1996  1.1  mrg    reversed.  */
   1997  1.1  mrg 
   1998  1.1  mrg #define REVERSIBLE_CC_MODE(MODE) 1
   1999  1.1  mrg 
   2000  1.1  mrg /* A C expression whose value is reversed condition code of the CODE for
   2001  1.1  mrg    comparison done in CC_MODE mode.  */
   2002  1.1  mrg #define REVERSE_CONDITION(CODE, MODE) ix86_reverse_condition ((CODE), (MODE))
   2003  1.1  mrg 
   2004  1.1  mrg 
   2005  1.1  mrg /* Control the assembler format that we output, to the extent
   2007  1.1  mrg    this does not vary between assemblers.  */
   2008  1.1  mrg 
   2009  1.1  mrg /* How to refer to registers in assembler output.
   2010  1.1  mrg    This sequence is indexed by compiler's hard-register-number (see above).  */
   2011  1.1  mrg 
   2012  1.1  mrg /* In order to refer to the first 8 regs as 32-bit regs, prefix an "e".
   2013  1.1  mrg    For non floating point regs, the following are the HImode names.
   2014  1.1  mrg 
   2015  1.1  mrg    For float regs, the stack top is sometimes referred to as "%st(0)"
   2016  1.1  mrg    instead of just "%st".  PRINT_OPERAND handles this with the "y" code.  */
   2017  1.1  mrg 
   2018  1.1  mrg #define HI_REGISTER_NAMES						\
   2019  1.1  mrg {"ax","dx","cx","bx","si","di","bp","sp",				\
   2020  1.1  mrg  "st","st(1)","st(2)","st(3)","st(4)","st(5)","st(6)","st(7)",		\
   2021  1.1  mrg  "argp", "flags", "fpsr", "fpcr", "frame",				\
   2022  1.1  mrg  "xmm0","xmm1","xmm2","xmm3","xmm4","xmm5","xmm6","xmm7",		\
   2023  1.1  mrg  "mm0", "mm1", "mm2", "mm3", "mm4", "mm5", "mm6", "mm7",		\
   2024  1.1  mrg  "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15",			\
   2025  1.1  mrg  "xmm8", "xmm9", "xmm10", "xmm11", "xmm12", "xmm13", "xmm14", "xmm15"}
   2026  1.1  mrg 
   2027  1.1  mrg #define REGISTER_NAMES HI_REGISTER_NAMES
   2028  1.1  mrg 
   2029  1.1  mrg /* Table of additional register names to use in user input.  */
   2030  1.1  mrg 
   2031  1.1  mrg #define ADDITIONAL_REGISTER_NAMES \
   2032  1.1  mrg { { "eax", 0 }, { "edx", 1 }, { "ecx", 2 }, { "ebx", 3 },	\
   2033  1.1  mrg   { "esi", 4 }, { "edi", 5 }, { "ebp", 6 }, { "esp", 7 },	\
   2034  1.1  mrg   { "rax", 0 }, { "rdx", 1 }, { "rcx", 2 }, { "rbx", 3 },	\
   2035  1.1  mrg   { "rsi", 4 }, { "rdi", 5 }, { "rbp", 6 }, { "rsp", 7 },	\
   2036  1.1  mrg   { "al", 0 }, { "dl", 1 }, { "cl", 2 }, { "bl", 3 },		\
   2037  1.1  mrg   { "ah", 0 }, { "dh", 1 }, { "ch", 2 }, { "bh", 3 } }
   2038  1.1  mrg 
   2039  1.1  mrg /* Note we are omitting these since currently I don't know how
   2040  1.1  mrg to get gcc to use these, since they want the same but different
   2041  1.1  mrg number as al, and ax.
   2042  1.1  mrg */
   2043  1.1  mrg 
   2044  1.1  mrg #define QI_REGISTER_NAMES \
   2045  1.1  mrg {"al", "dl", "cl", "bl", "sil", "dil", "bpl", "spl",}
   2046  1.1  mrg 
   2047  1.1  mrg /* These parallel the array above, and can be used to access bits 8:15
   2048  1.1  mrg    of regs 0 through 3.  */
   2049  1.1  mrg 
   2050  1.1  mrg #define QI_HIGH_REGISTER_NAMES \
   2051  1.1  mrg {"ah", "dh", "ch", "bh", }
   2052  1.1  mrg 
   2053  1.1  mrg /* How to renumber registers for dbx and gdb.  */
   2054  1.1  mrg 
   2055  1.1  mrg #define DBX_REGISTER_NUMBER(N) \
   2056  1.1  mrg   (TARGET_64BIT ? dbx64_register_map[(N)] : dbx_register_map[(N)])
   2057  1.1  mrg 
   2058  1.1  mrg extern int const dbx_register_map[FIRST_PSEUDO_REGISTER];
   2059  1.1  mrg extern int const dbx64_register_map[FIRST_PSEUDO_REGISTER];
   2060  1.1  mrg extern int const svr4_dbx_register_map[FIRST_PSEUDO_REGISTER];
   2061  1.1  mrg 
   2062  1.1  mrg /* Before the prologue, RA is at 0(%esp).  */
   2063  1.1  mrg #define INCOMING_RETURN_ADDR_RTX \
   2064  1.1  mrg   gen_rtx_MEM (VOIDmode, gen_rtx_REG (VOIDmode, STACK_POINTER_REGNUM))
   2065  1.1  mrg 
   2066  1.1  mrg /* After the prologue, RA is at -4(AP) in the current frame.  */
   2067  1.1  mrg #define RETURN_ADDR_RTX(COUNT, FRAME)					   \
   2068  1.1  mrg   ((COUNT) == 0								   \
   2069  1.1  mrg    ? gen_rtx_MEM (Pmode, plus_constant (arg_pointer_rtx, -UNITS_PER_WORD)) \
   2070  1.1  mrg    : gen_rtx_MEM (Pmode, plus_constant (FRAME, UNITS_PER_WORD)))
   2071  1.1  mrg 
   2072  1.1  mrg /* PC is dbx register 8; let's use that column for RA.  */
   2073  1.1  mrg #define DWARF_FRAME_RETURN_COLUMN 	(TARGET_64BIT ? 16 : 8)
   2074  1.1  mrg 
   2075  1.1  mrg /* Before the prologue, the top of the frame is at 4(%esp).  */
   2076  1.1  mrg #define INCOMING_FRAME_SP_OFFSET UNITS_PER_WORD
   2077  1.1  mrg 
   2078  1.1  mrg /* Describe how we implement __builtin_eh_return.  */
   2079  1.1  mrg #define EH_RETURN_DATA_REGNO(N)	((N) < 2 ? (N) : INVALID_REGNUM)
   2080  1.1  mrg #define EH_RETURN_STACKADJ_RTX	gen_rtx_REG (Pmode, 2)
   2081  1.1  mrg 
   2082  1.1  mrg 
   2083  1.1  mrg /* Select a format to encode pointers in exception handling data.  CODE
   2084  1.1  mrg    is 0 for data, 1 for code labels, 2 for function pointers.  GLOBAL is
   2085  1.1  mrg    true if the symbol may be affected by dynamic relocations.
   2086  1.1  mrg 
   2087  1.1  mrg    ??? All x86 object file formats are capable of representing this.
   2088  1.1  mrg    After all, the relocation needed is the same as for the call insn.
   2089  1.1  mrg    Whether or not a particular assembler allows us to enter such, I
   2090  1.1  mrg    guess we'll have to see.  */
   2091  1.1  mrg #define ASM_PREFERRED_EH_DATA_FORMAT(CODE, GLOBAL)       		\
   2092  1.1  mrg   asm_preferred_eh_data_format ((CODE), (GLOBAL))
   2093  1.1  mrg 
   2094  1.1  mrg /* This is how to output an insn to push a register on the stack.
   2095  1.1  mrg    It need not be very fast code.  */
   2096  1.1  mrg 
   2097  1.1  mrg #define ASM_OUTPUT_REG_PUSH(FILE, REGNO)  \
   2098  1.1  mrg do {									\
   2099  1.1  mrg   if (TARGET_64BIT)							\
   2100  1.1  mrg     asm_fprintf ((FILE), "\tpush{q}\t%%r%s\n",				\
   2101  1.1  mrg 		 reg_names[(REGNO)] + (REX_INT_REGNO_P (REGNO) != 0));	\
   2102  1.1  mrg   else									\
   2103  1.1  mrg     asm_fprintf ((FILE), "\tpush{l}\t%%e%s\n", reg_names[(REGNO)]);	\
   2104  1.1  mrg } while (0)
   2105  1.1  mrg 
   2106  1.1  mrg /* This is how to output an insn to pop a register from the stack.
   2107  1.1  mrg    It need not be very fast code.  */
   2108  1.1  mrg 
   2109  1.1  mrg #define ASM_OUTPUT_REG_POP(FILE, REGNO)  \
   2110  1.1  mrg do {									\
   2111  1.1  mrg   if (TARGET_64BIT)							\
   2112  1.1  mrg     asm_fprintf ((FILE), "\tpop{q}\t%%r%s\n",				\
   2113  1.1  mrg 		 reg_names[(REGNO)] + (REX_INT_REGNO_P (REGNO) != 0));	\
   2114  1.1  mrg   else									\
   2115  1.1  mrg     asm_fprintf ((FILE), "\tpop{l}\t%%e%s\n", reg_names[(REGNO)]);	\
   2116  1.1  mrg } while (0)
   2117  1.1  mrg 
   2118  1.1  mrg /* This is how to output an element of a case-vector that is absolute.  */
   2119  1.1  mrg 
   2120  1.1  mrg #define ASM_OUTPUT_ADDR_VEC_ELT(FILE, VALUE)  \
   2121  1.1  mrg   ix86_output_addr_vec_elt ((FILE), (VALUE))
   2122  1.1  mrg 
   2123  1.1  mrg /* This is how to output an element of a case-vector that is relative.  */
   2124  1.1  mrg 
   2125  1.1  mrg #define ASM_OUTPUT_ADDR_DIFF_ELT(FILE, BODY, VALUE, REL) \
   2126  1.1  mrg   ix86_output_addr_diff_elt ((FILE), (VALUE), (REL))
   2127  1.1  mrg 
   2128  1.1  mrg /* When we see %v, we will print the 'v' prefix if TARGET_AVX is
   2129  1.1  mrg    true.  */
   2130  1.1  mrg 
   2131  1.1  mrg #define ASM_OUTPUT_AVX_PREFIX(STREAM, PTR)	\
   2132  1.1  mrg {						\
   2133  1.1  mrg   if ((PTR)[0] == '%' && (PTR)[1] == 'v')	\
   2134  1.1  mrg     {						\
   2135  1.1  mrg       if (TARGET_AVX)				\
   2136  1.1  mrg 	(PTR) += 1;				\
   2137  1.1  mrg       else					\
   2138  1.1  mrg 	(PTR) += 2;				\
   2139  1.1  mrg     }						\
   2140  1.1  mrg }
   2141  1.1  mrg 
   2142  1.1  mrg /* A C statement or statements which output an assembler instruction
   2143  1.1  mrg    opcode to the stdio stream STREAM.  The macro-operand PTR is a
   2144  1.1  mrg    variable of type `char *' which points to the opcode name in
   2145  1.1  mrg    its "internal" form--the form that is written in the machine
   2146  1.1  mrg    description.  */
   2147  1.1  mrg 
   2148  1.1  mrg #define ASM_OUTPUT_OPCODE(STREAM, PTR) \
   2149  1.1  mrg   ASM_OUTPUT_AVX_PREFIX ((STREAM), (PTR))
   2150  1.1  mrg 
   2151  1.1  mrg /* A C statement to output to the stdio stream FILE an assembler
   2152  1.1  mrg    command to pad the location counter to a multiple of 1<<LOG
   2153  1.1  mrg    bytes if it is within MAX_SKIP bytes.  */
   2154  1.1  mrg 
   2155  1.1  mrg #ifdef HAVE_GAS_MAX_SKIP_P2ALIGN
   2156  1.1  mrg #undef  ASM_OUTPUT_MAX_SKIP_PAD
   2157  1.1  mrg #define ASM_OUTPUT_MAX_SKIP_PAD(FILE, LOG, MAX_SKIP)			\
   2158  1.1  mrg   if ((LOG) != 0)							\
   2159  1.1  mrg     {									\
   2160  1.1  mrg       if ((MAX_SKIP) == 0)						\
   2161  1.1  mrg         fprintf ((FILE), "\t.p2align %d\n", (LOG));			\
   2162  1.1  mrg       else								\
   2163  1.1  mrg         fprintf ((FILE), "\t.p2align %d,,%d\n", (LOG), (MAX_SKIP));	\
   2164  1.1  mrg     }
   2165  1.1  mrg #endif
   2166  1.1  mrg 
   2167  1.1  mrg /* Under some conditions we need jump tables in the text section,
   2168  1.1  mrg    because the assembler cannot handle label differences between
   2169  1.1  mrg    sections.  This is the case for x86_64 on Mach-O for example.  */
   2170  1.1  mrg 
   2171  1.1  mrg #define JUMP_TABLES_IN_TEXT_SECTION \
   2172  1.1  mrg   (flag_pic && ((TARGET_MACHO && TARGET_64BIT) \
   2173  1.1  mrg    || (!TARGET_64BIT && !HAVE_AS_GOTOFF_IN_DATA)))
   2174  1.1  mrg 
   2175  1.1  mrg /* Switch to init or fini section via SECTION_OP, emit a call to FUNC,
   2176  1.1  mrg    and switch back.  For x86 we do this only to save a few bytes that
   2177  1.1  mrg    would otherwise be unused in the text section.  */
   2178  1.1  mrg #define CRT_MKSTR2(VAL) #VAL
   2179  1.1  mrg #define CRT_MKSTR(x) CRT_MKSTR2(x)
   2180  1.1  mrg 
   2181  1.1  mrg #define CRT_CALL_STATIC_FUNCTION(SECTION_OP, FUNC)		\
   2182  1.1  mrg    asm (SECTION_OP "\n\t"					\
   2183  1.1  mrg 	"call " CRT_MKSTR(__USER_LABEL_PREFIX__) #FUNC "\n"	\
   2184  1.1  mrg 	TEXT_SECTION_ASM_OP);
   2185  1.1  mrg 
   2186  1.1  mrg /* Print operand X (an rtx) in assembler syntax to file FILE.
   2188  1.1  mrg    CODE is a letter or dot (`z' in `%z0') or 0 if no letter was specified.
   2189  1.1  mrg    Effect of various CODE letters is described in i386.c near
   2190  1.1  mrg    print_operand function.  */
   2191  1.1  mrg 
   2192  1.1  mrg #define PRINT_OPERAND_PUNCT_VALID_P(CODE) \
   2193  1.1  mrg   ((CODE) == '*' || (CODE) == '+' || (CODE) == '&' || (CODE) == ';')
   2194  1.1  mrg 
   2195  1.1  mrg #define PRINT_OPERAND(FILE, X, CODE)  \
   2196  1.1  mrg   print_operand ((FILE), (X), (CODE))
   2197  1.1  mrg 
   2198  1.1  mrg #define PRINT_OPERAND_ADDRESS(FILE, ADDR)  \
   2199  1.1  mrg   print_operand_address ((FILE), (ADDR))
   2200  1.1  mrg 
   2201  1.1  mrg #define OUTPUT_ADDR_CONST_EXTRA(FILE, X, FAIL)	\
   2202  1.1  mrg do {						\
   2203  1.1  mrg   if (! output_addr_const_extra (FILE, (X)))	\
   2204  1.1  mrg     goto FAIL;					\
   2205  1.1  mrg } while (0);
   2206  1.1  mrg 
   2207  1.1  mrg /* Which processor to schedule for. The cpu attribute defines a list that
   2209  1.1  mrg    mirrors this list, so changes to i386.md must be made at the same time.  */
   2210  1.1  mrg 
   2211  1.1  mrg enum processor_type
   2212  1.1  mrg {
   2213  1.1  mrg   PROCESSOR_I386 = 0,			/* 80386 */
   2214  1.1  mrg   PROCESSOR_I486,			/* 80486DX, 80486SX, 80486DX[24] */
   2215  1.1  mrg   PROCESSOR_PENTIUM,
   2216  1.1  mrg   PROCESSOR_PENTIUMPRO,
   2217  1.1  mrg   PROCESSOR_GEODE,
   2218  1.1  mrg   PROCESSOR_K6,
   2219  1.1  mrg   PROCESSOR_ATHLON,
   2220  1.1  mrg   PROCESSOR_PENTIUM4,
   2221  1.1  mrg   PROCESSOR_K8,
   2222  1.1  mrg   PROCESSOR_NOCONA,
   2223  1.1  mrg   PROCESSOR_CORE2,
   2224  1.1  mrg   PROCESSOR_GENERIC32,
   2225  1.1  mrg   PROCESSOR_GENERIC64,
   2226  1.1  mrg   PROCESSOR_AMDFAM10,
   2227  1.1  mrg   PROCESSOR_ATOM,
   2228  1.1  mrg   PROCESSOR_max
   2229  1.1  mrg };
   2230  1.1  mrg 
   2231  1.1  mrg extern enum processor_type ix86_tune;
   2232  1.1  mrg extern enum processor_type ix86_arch;
   2233  1.1  mrg 
   2234  1.1  mrg enum fpmath_unit
   2235  1.1  mrg {
   2236  1.1  mrg   FPMATH_387 = 1,
   2237  1.1  mrg   FPMATH_SSE = 2
   2238  1.1  mrg };
   2239  1.1  mrg 
   2240  1.1  mrg extern enum fpmath_unit ix86_fpmath;
   2241  1.1  mrg 
   2242  1.1  mrg enum tls_dialect
   2243  1.1  mrg {
   2244  1.1  mrg   TLS_DIALECT_GNU,
   2245  1.1  mrg   TLS_DIALECT_GNU2,
   2246  1.1  mrg   TLS_DIALECT_SUN
   2247  1.1  mrg };
   2248  1.1  mrg 
   2249  1.1  mrg extern enum tls_dialect ix86_tls_dialect;
   2250  1.1  mrg 
   2251  1.1  mrg enum cmodel {
   2252  1.1  mrg   CM_32,	/* The traditional 32-bit ABI.  */
   2253  1.1  mrg   CM_SMALL,	/* Assumes all code and data fits in the low 31 bits.  */
   2254  1.1  mrg   CM_KERNEL,	/* Assumes all code and data fits in the high 31 bits.  */
   2255  1.1  mrg   CM_MEDIUM,	/* Assumes code fits in the low 31 bits; data unlimited.  */
   2256  1.1  mrg   CM_LARGE,	/* No assumptions.  */
   2257  1.1  mrg   CM_SMALL_PIC,	/* Assumes code+data+got/plt fits in a 31 bit region.  */
   2258  1.1  mrg   CM_MEDIUM_PIC,/* Assumes code+got/plt fits in a 31 bit region.  */
   2259  1.1  mrg   CM_LARGE_PIC	/* No assumptions.  */
   2260  1.1  mrg };
   2261  1.1  mrg 
   2262  1.1  mrg extern enum cmodel ix86_cmodel;
   2263  1.1  mrg 
   2264  1.1  mrg /* Size of the RED_ZONE area.  */
   2265  1.1  mrg #define RED_ZONE_SIZE 128
   2266  1.1  mrg /* Reserved area of the red zone for temporaries.  */
   2267  1.1  mrg #define RED_ZONE_RESERVE 8
   2268  1.1  mrg 
   2269  1.1  mrg enum asm_dialect {
   2270  1.1  mrg   ASM_ATT,
   2271  1.1  mrg   ASM_INTEL
   2272  1.1  mrg };
   2273  1.1  mrg 
   2274  1.1  mrg extern enum asm_dialect ix86_asm_dialect;
   2275  1.1  mrg extern unsigned int ix86_preferred_stack_boundary;
   2276  1.1  mrg extern unsigned int ix86_incoming_stack_boundary;
   2277  1.1  mrg extern int ix86_branch_cost, ix86_section_threshold;
   2278  1.1  mrg 
   2279  1.1  mrg /* Smallest class containing REGNO.  */
   2280  1.1  mrg extern enum reg_class const regclass_map[FIRST_PSEUDO_REGISTER];
   2281  1.1  mrg 
   2282  1.1  mrg extern rtx ix86_compare_op0;	/* operand 0 for comparisons */
   2283  1.1  mrg extern rtx ix86_compare_op1;	/* operand 1 for comparisons */
   2284  1.1  mrg 
   2285  1.1  mrg enum ix86_fpcmp_strategy {
   2286  1.1  mrg   IX86_FPCMP_SAHF,
   2287  1.1  mrg   IX86_FPCMP_COMI,
   2288  1.1  mrg   IX86_FPCMP_ARITH
   2289  1.1  mrg };
   2290  1.1  mrg 
   2291  1.1  mrg /* To properly truncate FP values into integers, we need to set i387 control
   2293  1.1  mrg    word.  We can't emit proper mode switching code before reload, as spills
   2294  1.1  mrg    generated by reload may truncate values incorrectly, but we still can avoid
   2295  1.1  mrg    redundant computation of new control word by the mode switching pass.
   2296  1.1  mrg    The fldcw instructions are still emitted redundantly, but this is probably
   2297  1.1  mrg    not going to be noticeable problem, as most CPUs do have fast path for
   2298  1.1  mrg    the sequence.
   2299  1.1  mrg 
   2300  1.1  mrg    The machinery is to emit simple truncation instructions and split them
   2301  1.1  mrg    before reload to instructions having USEs of two memory locations that
   2302  1.1  mrg    are filled by this code to old and new control word.
   2303  1.1  mrg 
   2304  1.1  mrg    Post-reload pass may be later used to eliminate the redundant fildcw if
   2305  1.1  mrg    needed.  */
   2306  1.1  mrg 
   2307  1.1  mrg enum ix86_entity
   2308  1.1  mrg {
   2309  1.1  mrg   I387_TRUNC = 0,
   2310  1.1  mrg   I387_FLOOR,
   2311  1.1  mrg   I387_CEIL,
   2312  1.1  mrg   I387_MASK_PM,
   2313  1.1  mrg   MAX_386_ENTITIES
   2314  1.1  mrg };
   2315  1.1  mrg 
   2316  1.1  mrg enum ix86_stack_slot
   2317  1.1  mrg {
   2318  1.1  mrg   SLOT_VIRTUAL = 0,
   2319  1.1  mrg   SLOT_TEMP,
   2320  1.1  mrg   SLOT_CW_STORED,
   2321  1.1  mrg   SLOT_CW_TRUNC,
   2322  1.1  mrg   SLOT_CW_FLOOR,
   2323  1.1  mrg   SLOT_CW_CEIL,
   2324  1.1  mrg   SLOT_CW_MASK_PM,
   2325  1.1  mrg   MAX_386_STACK_LOCALS
   2326  1.1  mrg };
   2327  1.1  mrg 
   2328  1.1  mrg /* Define this macro if the port needs extra instructions inserted
   2329  1.1  mrg    for mode switching in an optimizing compilation.  */
   2330  1.1  mrg 
   2331  1.1  mrg #define OPTIMIZE_MODE_SWITCHING(ENTITY) \
   2332  1.1  mrg    ix86_optimize_mode_switching[(ENTITY)]
   2333  1.1  mrg 
   2334  1.1  mrg /* If you define `OPTIMIZE_MODE_SWITCHING', you have to define this as
   2335  1.1  mrg    initializer for an array of integers.  Each initializer element N
   2336  1.1  mrg    refers to an entity that needs mode switching, and specifies the
   2337  1.1  mrg    number of different modes that might need to be set for this
   2338  1.1  mrg    entity.  The position of the initializer in the initializer -
   2339  1.1  mrg    starting counting at zero - determines the integer that is used to
   2340  1.1  mrg    refer to the mode-switched entity in question.  */
   2341  1.1  mrg 
   2342  1.1  mrg #define NUM_MODES_FOR_MODE_SWITCHING \
   2343  1.1  mrg    { I387_CW_ANY, I387_CW_ANY, I387_CW_ANY, I387_CW_ANY }
   2344  1.1  mrg 
   2345  1.1  mrg /* ENTITY is an integer specifying a mode-switched entity.  If
   2346  1.1  mrg    `OPTIMIZE_MODE_SWITCHING' is defined, you must define this macro to
   2347  1.1  mrg    return an integer value not larger than the corresponding element
   2348  1.1  mrg    in `NUM_MODES_FOR_MODE_SWITCHING', to denote the mode that ENTITY
   2349  1.1  mrg    must be switched into prior to the execution of INSN. */
   2350  1.1  mrg 
   2351  1.1  mrg #define MODE_NEEDED(ENTITY, I) ix86_mode_needed ((ENTITY), (I))
   2352  1.1  mrg 
   2353  1.1  mrg /* This macro specifies the order in which modes for ENTITY are
   2354  1.1  mrg    processed.  0 is the highest priority.  */
   2355  1.1  mrg 
   2356  1.1  mrg #define MODE_PRIORITY_TO_MODE(ENTITY, N) (N)
   2357  1.1  mrg 
   2358  1.1  mrg /* Generate one or more insns to set ENTITY to MODE.  HARD_REG_LIVE
   2359  1.1  mrg    is the set of hard registers live at the point where the insn(s)
   2360  1.1  mrg    are to be inserted.  */
   2361  1.1  mrg 
   2362  1.1  mrg #define EMIT_MODE_SET(ENTITY, MODE, HARD_REGS_LIVE) 			\
   2363  1.1  mrg   ((MODE) != I387_CW_ANY && (MODE) != I387_CW_UNINITIALIZED		\
   2364  1.1  mrg    ? emit_i387_cw_initialization (MODE), 0				\
   2365  1.1  mrg    : 0)
   2366  1.1  mrg 
   2367  1.1  mrg 
   2368  1.1  mrg /* Avoid renaming of stack registers, as doing so in combination with
   2370  1.1  mrg    scheduling just increases amount of live registers at time and in
   2371  1.1  mrg    the turn amount of fxch instructions needed.
   2372  1.1  mrg 
   2373  1.1  mrg    ??? Maybe Pentium chips benefits from renaming, someone can try....  */
   2374  1.1  mrg 
   2375  1.1  mrg #define HARD_REGNO_RENAME_OK(SRC, TARGET)  \
   2376  1.1  mrg   (! IN_RANGE ((SRC), FIRST_STACK_REG, LAST_STACK_REG))
   2377  1.1  mrg 
   2378  1.1  mrg 
   2379  1.1  mrg #define FASTCALL_PREFIX '@'
   2381  1.1  mrg 
   2382  1.1  mrg /* Machine specific CFA tracking during prologue/epilogue generation.  */
   2384  1.1  mrg 
   2385  1.1  mrg #ifndef USED_FOR_TARGET
   2386  1.1  mrg struct GTY(()) machine_cfa_state
   2387  1.1  mrg {
   2388  1.1  mrg   rtx reg;
   2389  1.1  mrg   HOST_WIDE_INT offset;
   2390  1.1  mrg };
   2391  1.1  mrg 
   2392  1.1  mrg struct GTY(()) machine_function {
   2393  1.1  mrg   struct stack_local_entry *stack_locals;
   2394  1.1  mrg   const char *some_ld_name;
   2395  1.1  mrg   int varargs_gpr_size;
   2396  1.1  mrg   int varargs_fpr_size;
   2397  1.1  mrg   int optimize_mode_switching[MAX_386_ENTITIES];
   2398  1.1  mrg 
   2399  1.1  mrg   /* Number of saved registers USE_FAST_PROLOGUE_EPILOGUE
   2400  1.1  mrg      has been computed for.  */
   2401  1.1  mrg   int use_fast_prologue_epilogue_nregs;
   2402  1.1  mrg 
   2403  1.1  mrg   /* The CFA state at the end of the prologue.  */
   2404  1.1  mrg   struct machine_cfa_state cfa;
   2405  1.1  mrg 
   2406  1.1  mrg   /* This value is used for amd64 targets and specifies the current abi
   2407  1.1  mrg      to be used. MS_ABI means ms abi. Otherwise SYSV_ABI means sysv abi.  */
   2408  1.1  mrg   enum calling_abi call_abi;
   2409  1.1  mrg 
   2410  1.1  mrg   /* Nonzero if the function accesses a previous frame.  */
   2411  1.1  mrg   BOOL_BITFIELD accesses_prev_frame : 1;
   2412  1.1  mrg 
   2413  1.1  mrg   /* Nonzero if the function requires a CLD in the prologue.  */
   2414  1.1  mrg   BOOL_BITFIELD needs_cld : 1;
   2415  1.1  mrg 
   2416  1.1  mrg   /* Set by ix86_compute_frame_layout and used by prologue/epilogue
   2417  1.1  mrg      expander to determine the style used.  */
   2418  1.1  mrg   BOOL_BITFIELD use_fast_prologue_epilogue : 1;
   2419  1.1  mrg 
   2420  1.1  mrg   /* If true, the current function needs the default PIC register, not
   2421  1.1  mrg      an alternate register (on x86) and must not use the red zone (on
   2422  1.1  mrg      x86_64), even if it's a leaf function.  We don't want the
   2423  1.1  mrg      function to be regarded as non-leaf because TLS calls need not
   2424  1.1  mrg      affect register allocation.  This flag is set when a TLS call
   2425  1.1  mrg      instruction is expanded within a function, and never reset, even
   2426  1.1  mrg      if all such instructions are optimized away.  Use the
   2427  1.1  mrg      ix86_current_function_calls_tls_descriptor macro for a better
   2428  1.1  mrg      approximation.  */
   2429  1.1  mrg   BOOL_BITFIELD tls_descriptor_call_expanded_p : 1;
   2430  1.1  mrg 
   2431  1.1  mrg   /* If true, the current function has a STATIC_CHAIN is placed on the
   2432  1.1  mrg      stack below the return address.  */
   2433  1.1  mrg   BOOL_BITFIELD static_chain_on_stack : 1;
   2434  1.1  mrg };
   2435  1.1  mrg #endif
   2436  1.1  mrg 
   2437  1.1  mrg #define ix86_stack_locals (cfun->machine->stack_locals)
   2438  1.1  mrg #define ix86_varargs_gpr_size (cfun->machine->varargs_gpr_size)
   2439  1.1  mrg #define ix86_varargs_fpr_size (cfun->machine->varargs_fpr_size)
   2440  1.1  mrg #define ix86_optimize_mode_switching (cfun->machine->optimize_mode_switching)
   2441  1.1  mrg #define ix86_current_function_needs_cld (cfun->machine->needs_cld)
   2442  1.1  mrg #define ix86_tls_descriptor_calls_expanded_in_cfun \
   2443  1.1  mrg   (cfun->machine->tls_descriptor_call_expanded_p)
   2444  1.1  mrg /* Since tls_descriptor_call_expanded is not cleared, even if all TLS
   2445  1.1  mrg    calls are optimized away, we try to detect cases in which it was
   2446  1.1  mrg    optimized away.  Since such instructions (use (reg REG_SP)), we can
   2447  1.1  mrg    verify whether there's any such instruction live by testing that
   2448  1.1  mrg    REG_SP is live.  */
   2449  1.1  mrg #define ix86_current_function_calls_tls_descriptor \
   2450  1.1  mrg   (ix86_tls_descriptor_calls_expanded_in_cfun && df_regs_ever_live_p (SP_REG))
   2451  1.1  mrg #define ix86_cfa_state (&cfun->machine->cfa)
   2452  1.1  mrg #define ix86_static_chain_on_stack (cfun->machine->static_chain_on_stack)
   2453  1.1  mrg 
   2454  1.1  mrg /* Control behavior of x86_file_start.  */
   2455  1.1  mrg #define X86_FILE_START_VERSION_DIRECTIVE false
   2456  1.1  mrg #define X86_FILE_START_FLTUSED false
   2457  1.1  mrg 
   2458  1.1  mrg /* Flag to mark data that is in the large address area.  */
   2459  1.1  mrg #define SYMBOL_FLAG_FAR_ADDR		(SYMBOL_FLAG_MACH_DEP << 0)
   2460  1.1  mrg #define SYMBOL_REF_FAR_ADDR_P(X)	\
   2461  1.1  mrg 	((SYMBOL_REF_FLAGS (X) & SYMBOL_FLAG_FAR_ADDR) != 0)
   2462  1.1  mrg 
   2463  1.1  mrg /* Flags to mark dllimport/dllexport.  Used by PE ports, but handy to
   2464  1.1  mrg    have defined always, to avoid ifdefing.  */
   2465  1.1  mrg #define SYMBOL_FLAG_DLLIMPORT		(SYMBOL_FLAG_MACH_DEP << 1)
   2466  1.1  mrg #define SYMBOL_REF_DLLIMPORT_P(X) \
   2467  1.1  mrg 	((SYMBOL_REF_FLAGS (X) & SYMBOL_FLAG_DLLIMPORT) != 0)
   2468  1.1  mrg 
   2469  1.1  mrg #define SYMBOL_FLAG_DLLEXPORT		(SYMBOL_FLAG_MACH_DEP << 2)
   2470  1.1  mrg #define SYMBOL_REF_DLLEXPORT_P(X) \
   2471  1.1  mrg 	((SYMBOL_REF_FLAGS (X) & SYMBOL_FLAG_DLLEXPORT) != 0)
   2472  1.1  mrg 
   2473  1.1  mrg /* Model costs for vectorizer.  */
   2474  1.1  mrg 
   2475  1.1  mrg /* Cost of conditional branch.  */
   2476  1.1  mrg #undef TARG_COND_BRANCH_COST
   2477  1.1  mrg #define TARG_COND_BRANCH_COST           ix86_cost->branch_cost
   2478  1.1  mrg 
   2479  1.1  mrg /* Enum through the target specific extra va_list types.
   2480  1.1  mrg    Please, do not iterate the base va_list type name.  */
   2481  1.1  mrg #define TARGET_ENUM_VA_LIST(IDX, PNAME, PTYPE) \
   2482  1.1  mrg   (TARGET_64BIT ? ix86_enum_va_list (IDX, PNAME, PTYPE) : 0)
   2483  1.1  mrg 
   2484  1.1  mrg /* Cost of any scalar operation, excluding load and store.  */
   2485  1.1  mrg #undef TARG_SCALAR_STMT_COST
   2486  1.1  mrg #define TARG_SCALAR_STMT_COST           ix86_cost->scalar_stmt_cost
   2487  1.1  mrg 
   2488  1.1  mrg /* Cost of scalar load.  */
   2489  1.1  mrg #undef TARG_SCALAR_LOAD_COST
   2490  1.1  mrg #define TARG_SCALAR_LOAD_COST           ix86_cost->scalar_load_cost
   2491  1.1  mrg 
   2492  1.1  mrg /* Cost of scalar store.  */
   2493  1.1  mrg #undef TARG_SCALAR_STORE_COST
   2494  1.1  mrg #define TARG_SCALAR_STORE_COST          ix86_cost->scalar_store_cost
   2495  1.1  mrg 
   2496  1.1  mrg /* Cost of any vector operation, excluding load, store or vector to scalar
   2497  1.1  mrg    operation.  */
   2498  1.1  mrg #undef TARG_VEC_STMT_COST
   2499  1.1  mrg #define TARG_VEC_STMT_COST              ix86_cost->vec_stmt_cost
   2500  1.1  mrg 
   2501  1.1  mrg /* Cost of vector to scalar operation.  */
   2502  1.1  mrg #undef TARG_VEC_TO_SCALAR_COST
   2503  1.1  mrg #define TARG_VEC_TO_SCALAR_COST         ix86_cost->vec_to_scalar_cost
   2504  1.1  mrg 
   2505  1.1  mrg /* Cost of scalar to vector operation.  */
   2506  1.1  mrg #undef TARG_SCALAR_TO_VEC_COST
   2507  1.1  mrg #define TARG_SCALAR_TO_VEC_COST         ix86_cost->scalar_to_vec_cost
   2508  1.1  mrg 
   2509  1.1  mrg /* Cost of aligned vector load.  */
   2510  1.1  mrg #undef TARG_VEC_LOAD_COST
   2511  1.1  mrg #define TARG_VEC_LOAD_COST              ix86_cost->vec_align_load_cost
   2512  1.1  mrg 
   2513  1.1  mrg /* Cost of misaligned vector load.  */
   2514  1.1  mrg #undef TARG_VEC_UNALIGNED_LOAD_COST
   2515  1.1  mrg #define TARG_VEC_UNALIGNED_LOAD_COST    ix86_cost->vec_unalign_load_cost
   2516           
   2517           /* Cost of vector store.  */
   2518           #undef TARG_VEC_STORE_COST
   2519           #define TARG_VEC_STORE_COST             ix86_cost->vec_store_cost
   2520           
   2521           /* Cost of conditional taken branch for vectorizer cost model.  */
   2522           #undef TARG_COND_TAKEN_BRANCH_COST
   2523           #define TARG_COND_TAKEN_BRANCH_COST     ix86_cost->cond_taken_branch_cost
   2524           
   2525           /* Cost of conditional not taken branch for vectorizer cost model.  */
   2526           #undef TARG_COND_NOT_TAKEN_BRANCH_COST
   2527           #define TARG_COND_NOT_TAKEN_BRANCH_COST ix86_cost->cond_not_taken_branch_cost
   2528           
   2529           /*
   2530           Local variables:
   2531           version-control: t
   2532           End:
   2533           */
   2534