x86: drop Rex64 attribute
[deliverable/binutils-gdb.git] / gas / config / tc-i386.c
1 /* tc-i386.c -- Assemble code for the Intel 80386
2 Copyright (C) 1989-2020 Free Software Foundation, Inc.
3
4 This file is part of GAS, the GNU Assembler.
5
6 GAS is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 3, or (at your option)
9 any later version.
10
11 GAS is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with GAS; see the file COPYING. If not, write to the Free
18 Software Foundation, 51 Franklin Street - Fifth Floor, Boston, MA
19 02110-1301, USA. */
20
21 /* Intel 80386 machine specific gas.
22 Written by Eliot Dresselhaus (eliot@mgm.mit.edu).
23 x86_64 support by Jan Hubicka (jh@suse.cz)
24 VIA PadLock support by Michal Ludvig (mludvig@suse.cz)
25 Bugs & suggestions are completely welcome. This is free software.
26 Please help us make it better. */
27
28 #include "as.h"
29 #include "safe-ctype.h"
30 #include "subsegs.h"
31 #include "dwarf2dbg.h"
32 #include "dw2gencfi.h"
33 #include "elf/x86-64.h"
34 #include "opcodes/i386-init.h"
35
36 #ifdef HAVE_LIMITS_H
37 #include <limits.h>
38 #else
39 #ifdef HAVE_SYS_PARAM_H
40 #include <sys/param.h>
41 #endif
42 #ifndef INT_MAX
43 #define INT_MAX (int) (((unsigned) (-1)) >> 1)
44 #endif
45 #endif
46
47 #ifndef INFER_ADDR_PREFIX
48 #define INFER_ADDR_PREFIX 1
49 #endif
50
51 #ifndef DEFAULT_ARCH
52 #define DEFAULT_ARCH "i386"
53 #endif
54
55 #ifndef INLINE
56 #if __GNUC__ >= 2
57 #define INLINE __inline__
58 #else
59 #define INLINE
60 #endif
61 #endif
62
63 /* Prefixes will be emitted in the order defined below.
64 WAIT_PREFIX must be the first prefix since FWAIT is really is an
65 instruction, and so must come before any prefixes.
66 The preferred prefix order is SEG_PREFIX, ADDR_PREFIX, DATA_PREFIX,
67 REP_PREFIX/HLE_PREFIX, LOCK_PREFIX. */
68 #define WAIT_PREFIX 0
69 #define SEG_PREFIX 1
70 #define ADDR_PREFIX 2
71 #define DATA_PREFIX 3
72 #define REP_PREFIX 4
73 #define HLE_PREFIX REP_PREFIX
74 #define BND_PREFIX REP_PREFIX
75 #define LOCK_PREFIX 5
76 #define REX_PREFIX 6 /* must come last. */
77 #define MAX_PREFIXES 7 /* max prefixes per opcode */
78
79 /* we define the syntax here (modulo base,index,scale syntax) */
80 #define REGISTER_PREFIX '%'
81 #define IMMEDIATE_PREFIX '$'
82 #define ABSOLUTE_PREFIX '*'
83
84 /* these are the instruction mnemonic suffixes in AT&T syntax or
85 memory operand size in Intel syntax. */
86 #define WORD_MNEM_SUFFIX 'w'
87 #define BYTE_MNEM_SUFFIX 'b'
88 #define SHORT_MNEM_SUFFIX 's'
89 #define LONG_MNEM_SUFFIX 'l'
90 #define QWORD_MNEM_SUFFIX 'q'
91 /* Intel Syntax. Use a non-ascii letter since since it never appears
92 in instructions. */
93 #define LONG_DOUBLE_MNEM_SUFFIX '\1'
94
95 #define END_OF_INSN '\0'
96
97 /* This matches the C -> StaticRounding alias in the opcode table. */
98 #define commutative staticrounding
99
100 /*
101 'templates' is for grouping together 'template' structures for opcodes
102 of the same name. This is only used for storing the insns in the grand
103 ole hash table of insns.
104 The templates themselves start at START and range up to (but not including)
105 END.
106 */
107 typedef struct
108 {
109 const insn_template *start;
110 const insn_template *end;
111 }
112 templates;
113
114 /* 386 operand encoding bytes: see 386 book for details of this. */
115 typedef struct
116 {
117 unsigned int regmem; /* codes register or memory operand */
118 unsigned int reg; /* codes register operand (or extended opcode) */
119 unsigned int mode; /* how to interpret regmem & reg */
120 }
121 modrm_byte;
122
123 /* x86-64 extension prefix. */
124 typedef int rex_byte;
125
126 /* 386 opcode byte to code indirect addressing. */
127 typedef struct
128 {
129 unsigned base;
130 unsigned index;
131 unsigned scale;
132 }
133 sib_byte;
134
135 /* x86 arch names, types and features */
136 typedef struct
137 {
138 const char *name; /* arch name */
139 unsigned int len; /* arch string length */
140 enum processor_type type; /* arch type */
141 i386_cpu_flags flags; /* cpu feature flags */
142 unsigned int skip; /* show_arch should skip this. */
143 }
144 arch_entry;
145
146 /* Used to turn off indicated flags. */
147 typedef struct
148 {
149 const char *name; /* arch name */
150 unsigned int len; /* arch string length */
151 i386_cpu_flags flags; /* cpu feature flags */
152 }
153 noarch_entry;
154
155 static void update_code_flag (int, int);
156 static void set_code_flag (int);
157 static void set_16bit_gcc_code_flag (int);
158 static void set_intel_syntax (int);
159 static void set_intel_mnemonic (int);
160 static void set_allow_index_reg (int);
161 static void set_check (int);
162 static void set_cpu_arch (int);
163 #ifdef TE_PE
164 static void pe_directive_secrel (int);
165 #endif
166 static void signed_cons (int);
167 static char *output_invalid (int c);
168 static int i386_finalize_immediate (segT, expressionS *, i386_operand_type,
169 const char *);
170 static int i386_finalize_displacement (segT, expressionS *, i386_operand_type,
171 const char *);
172 static int i386_att_operand (char *);
173 static int i386_intel_operand (char *, int);
174 static int i386_intel_simplify (expressionS *);
175 static int i386_intel_parse_name (const char *, expressionS *);
176 static const reg_entry *parse_register (char *, char **);
177 static char *parse_insn (char *, char *);
178 static char *parse_operands (char *, const char *);
179 static void swap_operands (void);
180 static void swap_2_operands (int, int);
181 static enum flag_code i386_addressing_mode (void);
182 static void optimize_imm (void);
183 static void optimize_disp (void);
184 static const insn_template *match_template (char);
185 static int check_string (void);
186 static int process_suffix (void);
187 static int check_byte_reg (void);
188 static int check_long_reg (void);
189 static int check_qword_reg (void);
190 static int check_word_reg (void);
191 static int finalize_imm (void);
192 static int process_operands (void);
193 static const seg_entry *build_modrm_byte (void);
194 static void output_insn (void);
195 static void output_imm (fragS *, offsetT);
196 static void output_disp (fragS *, offsetT);
197 #ifndef I386COFF
198 static void s_bss (int);
199 #endif
200 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
201 static void handle_large_common (int small ATTRIBUTE_UNUSED);
202
203 /* GNU_PROPERTY_X86_ISA_1_USED. */
204 static unsigned int x86_isa_1_used;
205 /* GNU_PROPERTY_X86_FEATURE_2_USED. */
206 static unsigned int x86_feature_2_used;
207 /* Generate x86 used ISA and feature properties. */
208 static unsigned int x86_used_note = DEFAULT_X86_USED_NOTE;
209 #endif
210
211 static const char *default_arch = DEFAULT_ARCH;
212
213 /* This struct describes rounding control and SAE in the instruction. */
214 struct RC_Operation
215 {
216 enum rc_type
217 {
218 rne = 0,
219 rd,
220 ru,
221 rz,
222 saeonly
223 } type;
224 int operand;
225 };
226
227 static struct RC_Operation rc_op;
228
229 /* The struct describes masking, applied to OPERAND in the instruction.
230 MASK is a pointer to the corresponding mask register. ZEROING tells
231 whether merging or zeroing mask is used. */
232 struct Mask_Operation
233 {
234 const reg_entry *mask;
235 unsigned int zeroing;
236 /* The operand where this operation is associated. */
237 int operand;
238 };
239
240 static struct Mask_Operation mask_op;
241
242 /* The struct describes broadcasting, applied to OPERAND. FACTOR is
243 broadcast factor. */
244 struct Broadcast_Operation
245 {
246 /* Type of broadcast: {1to2}, {1to4}, {1to8}, or {1to16}. */
247 int type;
248
249 /* Index of broadcasted operand. */
250 int operand;
251
252 /* Number of bytes to broadcast. */
253 int bytes;
254 };
255
256 static struct Broadcast_Operation broadcast_op;
257
258 /* VEX prefix. */
259 typedef struct
260 {
261 /* VEX prefix is either 2 byte or 3 byte. EVEX is 4 byte. */
262 unsigned char bytes[4];
263 unsigned int length;
264 /* Destination or source register specifier. */
265 const reg_entry *register_specifier;
266 } vex_prefix;
267
268 /* 'md_assemble ()' gathers together information and puts it into a
269 i386_insn. */
270
271 union i386_op
272 {
273 expressionS *disps;
274 expressionS *imms;
275 const reg_entry *regs;
276 };
277
278 enum i386_error
279 {
280 operand_size_mismatch,
281 operand_type_mismatch,
282 register_type_mismatch,
283 number_of_operands_mismatch,
284 invalid_instruction_suffix,
285 bad_imm4,
286 unsupported_with_intel_mnemonic,
287 unsupported_syntax,
288 unsupported,
289 invalid_vsib_address,
290 invalid_vector_register_set,
291 unsupported_vector_index_register,
292 unsupported_broadcast,
293 broadcast_needed,
294 unsupported_masking,
295 mask_not_on_destination,
296 no_default_mask,
297 unsupported_rc_sae,
298 rc_sae_operand_not_last_imm,
299 invalid_register_operand,
300 };
301
302 struct _i386_insn
303 {
304 /* TM holds the template for the insn were currently assembling. */
305 insn_template tm;
306
307 /* SUFFIX holds the instruction size suffix for byte, word, dword
308 or qword, if given. */
309 char suffix;
310
311 /* OPERANDS gives the number of given operands. */
312 unsigned int operands;
313
314 /* REG_OPERANDS, DISP_OPERANDS, MEM_OPERANDS, IMM_OPERANDS give the number
315 of given register, displacement, memory operands and immediate
316 operands. */
317 unsigned int reg_operands, disp_operands, mem_operands, imm_operands;
318
319 /* TYPES [i] is the type (see above #defines) which tells us how to
320 use OP[i] for the corresponding operand. */
321 i386_operand_type types[MAX_OPERANDS];
322
323 /* Displacement expression, immediate expression, or register for each
324 operand. */
325 union i386_op op[MAX_OPERANDS];
326
327 /* Flags for operands. */
328 unsigned int flags[MAX_OPERANDS];
329 #define Operand_PCrel 1
330 #define Operand_Mem 2
331
332 /* Relocation type for operand */
333 enum bfd_reloc_code_real reloc[MAX_OPERANDS];
334
335 /* BASE_REG, INDEX_REG, and LOG2_SCALE_FACTOR are used to encode
336 the base index byte below. */
337 const reg_entry *base_reg;
338 const reg_entry *index_reg;
339 unsigned int log2_scale_factor;
340
341 /* SEG gives the seg_entries of this insn. They are zero unless
342 explicit segment overrides are given. */
343 const seg_entry *seg[2];
344
345 /* Copied first memory operand string, for re-checking. */
346 char *memop1_string;
347
348 /* PREFIX holds all the given prefix opcodes (usually null).
349 PREFIXES is the number of prefix opcodes. */
350 unsigned int prefixes;
351 unsigned char prefix[MAX_PREFIXES];
352
353 /* Register is in low 3 bits of opcode. */
354 bfd_boolean short_form;
355
356 /* The operand to a branch insn indicates an absolute branch. */
357 bfd_boolean jumpabsolute;
358
359 /* Has MMX register operands. */
360 bfd_boolean has_regmmx;
361
362 /* Has XMM register operands. */
363 bfd_boolean has_regxmm;
364
365 /* Has YMM register operands. */
366 bfd_boolean has_regymm;
367
368 /* Has ZMM register operands. */
369 bfd_boolean has_regzmm;
370
371 /* Has GOTPC or TLS relocation. */
372 bfd_boolean has_gotpc_tls_reloc;
373
374 /* RM and SIB are the modrm byte and the sib byte where the
375 addressing modes of this insn are encoded. */
376 modrm_byte rm;
377 rex_byte rex;
378 rex_byte vrex;
379 sib_byte sib;
380 vex_prefix vex;
381
382 /* Masking attributes. */
383 struct Mask_Operation *mask;
384
385 /* Rounding control and SAE attributes. */
386 struct RC_Operation *rounding;
387
388 /* Broadcasting attributes. */
389 struct Broadcast_Operation *broadcast;
390
391 /* Compressed disp8*N attribute. */
392 unsigned int memshift;
393
394 /* Prefer load or store in encoding. */
395 enum
396 {
397 dir_encoding_default = 0,
398 dir_encoding_load,
399 dir_encoding_store,
400 dir_encoding_swap
401 } dir_encoding;
402
403 /* Prefer 8bit or 32bit displacement in encoding. */
404 enum
405 {
406 disp_encoding_default = 0,
407 disp_encoding_8bit,
408 disp_encoding_32bit
409 } disp_encoding;
410
411 /* Prefer the REX byte in encoding. */
412 bfd_boolean rex_encoding;
413
414 /* Disable instruction size optimization. */
415 bfd_boolean no_optimize;
416
417 /* How to encode vector instructions. */
418 enum
419 {
420 vex_encoding_default = 0,
421 vex_encoding_vex,
422 vex_encoding_vex3,
423 vex_encoding_evex
424 } vec_encoding;
425
426 /* REP prefix. */
427 const char *rep_prefix;
428
429 /* HLE prefix. */
430 const char *hle_prefix;
431
432 /* Have BND prefix. */
433 const char *bnd_prefix;
434
435 /* Have NOTRACK prefix. */
436 const char *notrack_prefix;
437
438 /* Error message. */
439 enum i386_error error;
440 };
441
442 typedef struct _i386_insn i386_insn;
443
444 /* Link RC type with corresponding string, that'll be looked for in
445 asm. */
446 struct RC_name
447 {
448 enum rc_type type;
449 const char *name;
450 unsigned int len;
451 };
452
453 static const struct RC_name RC_NamesTable[] =
454 {
455 { rne, STRING_COMMA_LEN ("rn-sae") },
456 { rd, STRING_COMMA_LEN ("rd-sae") },
457 { ru, STRING_COMMA_LEN ("ru-sae") },
458 { rz, STRING_COMMA_LEN ("rz-sae") },
459 { saeonly, STRING_COMMA_LEN ("sae") },
460 };
461
462 /* List of chars besides those in app.c:symbol_chars that can start an
463 operand. Used to prevent the scrubber eating vital white-space. */
464 const char extra_symbol_chars[] = "*%-([{}"
465 #ifdef LEX_AT
466 "@"
467 #endif
468 #ifdef LEX_QM
469 "?"
470 #endif
471 ;
472
473 #if (defined (TE_I386AIX) \
474 || ((defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)) \
475 && !defined (TE_GNU) \
476 && !defined (TE_LINUX) \
477 && !defined (TE_NACL) \
478 && !defined (TE_FreeBSD) \
479 && !defined (TE_DragonFly) \
480 && !defined (TE_NetBSD)))
481 /* This array holds the chars that always start a comment. If the
482 pre-processor is disabled, these aren't very useful. The option
483 --divide will remove '/' from this list. */
484 const char *i386_comment_chars = "#/";
485 #define SVR4_COMMENT_CHARS 1
486 #define PREFIX_SEPARATOR '\\'
487
488 #else
489 const char *i386_comment_chars = "#";
490 #define PREFIX_SEPARATOR '/'
491 #endif
492
493 /* This array holds the chars that only start a comment at the beginning of
494 a line. If the line seems to have the form '# 123 filename'
495 .line and .file directives will appear in the pre-processed output.
496 Note that input_file.c hand checks for '#' at the beginning of the
497 first line of the input file. This is because the compiler outputs
498 #NO_APP at the beginning of its output.
499 Also note that comments started like this one will always work if
500 '/' isn't otherwise defined. */
501 const char line_comment_chars[] = "#/";
502
503 const char line_separator_chars[] = ";";
504
505 /* Chars that can be used to separate mant from exp in floating point
506 nums. */
507 const char EXP_CHARS[] = "eE";
508
509 /* Chars that mean this number is a floating point constant
510 As in 0f12.456
511 or 0d1.2345e12. */
512 const char FLT_CHARS[] = "fFdDxX";
513
514 /* Tables for lexical analysis. */
515 static char mnemonic_chars[256];
516 static char register_chars[256];
517 static char operand_chars[256];
518 static char identifier_chars[256];
519 static char digit_chars[256];
520
521 /* Lexical macros. */
522 #define is_mnemonic_char(x) (mnemonic_chars[(unsigned char) x])
523 #define is_operand_char(x) (operand_chars[(unsigned char) x])
524 #define is_register_char(x) (register_chars[(unsigned char) x])
525 #define is_space_char(x) ((x) == ' ')
526 #define is_identifier_char(x) (identifier_chars[(unsigned char) x])
527 #define is_digit_char(x) (digit_chars[(unsigned char) x])
528
529 /* All non-digit non-letter characters that may occur in an operand. */
530 static char operand_special_chars[] = "%$-+(,)*._~/<>|&^!:[@]";
531
532 /* md_assemble() always leaves the strings it's passed unaltered. To
533 effect this we maintain a stack of saved characters that we've smashed
534 with '\0's (indicating end of strings for various sub-fields of the
535 assembler instruction). */
536 static char save_stack[32];
537 static char *save_stack_p;
538 #define END_STRING_AND_SAVE(s) \
539 do { *save_stack_p++ = *(s); *(s) = '\0'; } while (0)
540 #define RESTORE_END_STRING(s) \
541 do { *(s) = *--save_stack_p; } while (0)
542
543 /* The instruction we're assembling. */
544 static i386_insn i;
545
546 /* Possible templates for current insn. */
547 static const templates *current_templates;
548
549 /* Per instruction expressionS buffers: max displacements & immediates. */
550 static expressionS disp_expressions[MAX_MEMORY_OPERANDS];
551 static expressionS im_expressions[MAX_IMMEDIATE_OPERANDS];
552
553 /* Current operand we are working on. */
554 static int this_operand = -1;
555
556 /* We support four different modes. FLAG_CODE variable is used to distinguish
557 these. */
558
559 enum flag_code {
560 CODE_32BIT,
561 CODE_16BIT,
562 CODE_64BIT };
563
564 static enum flag_code flag_code;
565 static unsigned int object_64bit;
566 static unsigned int disallow_64bit_reloc;
567 static int use_rela_relocations = 0;
568 /* __tls_get_addr/___tls_get_addr symbol for TLS. */
569 static const char *tls_get_addr;
570
571 #if ((defined (OBJ_MAYBE_COFF) && defined (OBJ_MAYBE_AOUT)) \
572 || defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF) \
573 || defined (TE_PE) || defined (TE_PEP) || defined (OBJ_MACH_O))
574
575 /* The ELF ABI to use. */
576 enum x86_elf_abi
577 {
578 I386_ABI,
579 X86_64_ABI,
580 X86_64_X32_ABI
581 };
582
583 static enum x86_elf_abi x86_elf_abi = I386_ABI;
584 #endif
585
586 #if defined (TE_PE) || defined (TE_PEP)
587 /* Use big object file format. */
588 static int use_big_obj = 0;
589 #endif
590
591 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
592 /* 1 if generating code for a shared library. */
593 static int shared = 0;
594 #endif
595
596 /* 1 for intel syntax,
597 0 if att syntax. */
598 static int intel_syntax = 0;
599
600 static enum x86_64_isa
601 {
602 amd64 = 1, /* AMD64 ISA. */
603 intel64 /* Intel64 ISA. */
604 } isa64;
605
606 /* 1 for intel mnemonic,
607 0 if att mnemonic. */
608 static int intel_mnemonic = !SYSV386_COMPAT;
609
610 /* 1 if pseudo registers are permitted. */
611 static int allow_pseudo_reg = 0;
612
613 /* 1 if register prefix % not required. */
614 static int allow_naked_reg = 0;
615
616 /* 1 if the assembler should add BND prefix for all control-transferring
617 instructions supporting it, even if this prefix wasn't specified
618 explicitly. */
619 static int add_bnd_prefix = 0;
620
621 /* 1 if pseudo index register, eiz/riz, is allowed . */
622 static int allow_index_reg = 0;
623
624 /* 1 if the assembler should ignore LOCK prefix, even if it was
625 specified explicitly. */
626 static int omit_lock_prefix = 0;
627
628 /* 1 if the assembler should encode lfence, mfence, and sfence as
629 "lock addl $0, (%{re}sp)". */
630 static int avoid_fence = 0;
631
632 /* Type of the previous instruction. */
633 static struct
634 {
635 segT seg;
636 const char *file;
637 const char *name;
638 unsigned int line;
639 enum last_insn_kind
640 {
641 last_insn_other = 0,
642 last_insn_directive,
643 last_insn_prefix
644 } kind;
645 } last_insn;
646
647 /* 1 if the assembler should generate relax relocations. */
648
649 static int generate_relax_relocations
650 = DEFAULT_GENERATE_X86_RELAX_RELOCATIONS;
651
652 static enum check_kind
653 {
654 check_none = 0,
655 check_warning,
656 check_error
657 }
658 sse_check, operand_check = check_warning;
659
660 /* Non-zero if branches should be aligned within power of 2 boundary. */
661 static int align_branch_power = 0;
662
663 /* Types of branches to align. */
664 enum align_branch_kind
665 {
666 align_branch_none = 0,
667 align_branch_jcc = 1,
668 align_branch_fused = 2,
669 align_branch_jmp = 3,
670 align_branch_call = 4,
671 align_branch_indirect = 5,
672 align_branch_ret = 6
673 };
674
675 /* Type bits of branches to align. */
676 enum align_branch_bit
677 {
678 align_branch_jcc_bit = 1 << align_branch_jcc,
679 align_branch_fused_bit = 1 << align_branch_fused,
680 align_branch_jmp_bit = 1 << align_branch_jmp,
681 align_branch_call_bit = 1 << align_branch_call,
682 align_branch_indirect_bit = 1 << align_branch_indirect,
683 align_branch_ret_bit = 1 << align_branch_ret
684 };
685
686 static unsigned int align_branch = (align_branch_jcc_bit
687 | align_branch_fused_bit
688 | align_branch_jmp_bit);
689
690 /* Types of condition jump used by macro-fusion. */
691 enum mf_jcc_kind
692 {
693 mf_jcc_jo = 0, /* base opcode 0x70 */
694 mf_jcc_jc, /* base opcode 0x72 */
695 mf_jcc_je, /* base opcode 0x74 */
696 mf_jcc_jna, /* base opcode 0x76 */
697 mf_jcc_js, /* base opcode 0x78 */
698 mf_jcc_jp, /* base opcode 0x7a */
699 mf_jcc_jl, /* base opcode 0x7c */
700 mf_jcc_jle, /* base opcode 0x7e */
701 };
702
703 /* Types of compare flag-modifying insntructions used by macro-fusion. */
704 enum mf_cmp_kind
705 {
706 mf_cmp_test_and, /* test/cmp */
707 mf_cmp_alu_cmp, /* add/sub/cmp */
708 mf_cmp_incdec /* inc/dec */
709 };
710
711 /* The maximum padding size for fused jcc. CMP like instruction can
712 be 9 bytes and jcc can be 6 bytes. Leave room just in case for
713 prefixes. */
714 #define MAX_FUSED_JCC_PADDING_SIZE 20
715
716 /* The maximum number of prefixes added for an instruction. */
717 static unsigned int align_branch_prefix_size = 5;
718
719 /* Optimization:
720 1. Clear the REX_W bit with register operand if possible.
721 2. Above plus use 128bit vector instruction to clear the full vector
722 register.
723 */
724 static int optimize = 0;
725
726 /* Optimization:
727 1. Clear the REX_W bit with register operand if possible.
728 2. Above plus use 128bit vector instruction to clear the full vector
729 register.
730 3. Above plus optimize "test{q,l,w} $imm8,%r{64,32,16}" to
731 "testb $imm7,%r8".
732 */
733 static int optimize_for_space = 0;
734
735 /* Register prefix used for error message. */
736 static const char *register_prefix = "%";
737
738 /* Used in 16 bit gcc mode to add an l suffix to call, ret, enter,
739 leave, push, and pop instructions so that gcc has the same stack
740 frame as in 32 bit mode. */
741 static char stackop_size = '\0';
742
743 /* Non-zero to optimize code alignment. */
744 int optimize_align_code = 1;
745
746 /* Non-zero to quieten some warnings. */
747 static int quiet_warnings = 0;
748
749 /* CPU name. */
750 static const char *cpu_arch_name = NULL;
751 static char *cpu_sub_arch_name = NULL;
752
753 /* CPU feature flags. */
754 static i386_cpu_flags cpu_arch_flags = CPU_UNKNOWN_FLAGS;
755
756 /* If we have selected a cpu we are generating instructions for. */
757 static int cpu_arch_tune_set = 0;
758
759 /* Cpu we are generating instructions for. */
760 enum processor_type cpu_arch_tune = PROCESSOR_UNKNOWN;
761
762 /* CPU feature flags of cpu we are generating instructions for. */
763 static i386_cpu_flags cpu_arch_tune_flags;
764
765 /* CPU instruction set architecture used. */
766 enum processor_type cpu_arch_isa = PROCESSOR_UNKNOWN;
767
768 /* CPU feature flags of instruction set architecture used. */
769 i386_cpu_flags cpu_arch_isa_flags;
770
771 /* If set, conditional jumps are not automatically promoted to handle
772 larger than a byte offset. */
773 static unsigned int no_cond_jump_promotion = 0;
774
775 /* Encode SSE instructions with VEX prefix. */
776 static unsigned int sse2avx;
777
778 /* Encode scalar AVX instructions with specific vector length. */
779 static enum
780 {
781 vex128 = 0,
782 vex256
783 } avxscalar;
784
785 /* Encode VEX WIG instructions with specific vex.w. */
786 static enum
787 {
788 vexw0 = 0,
789 vexw1
790 } vexwig;
791
792 /* Encode scalar EVEX LIG instructions with specific vector length. */
793 static enum
794 {
795 evexl128 = 0,
796 evexl256,
797 evexl512
798 } evexlig;
799
800 /* Encode EVEX WIG instructions with specific evex.w. */
801 static enum
802 {
803 evexw0 = 0,
804 evexw1
805 } evexwig;
806
807 /* Value to encode in EVEX RC bits, for SAE-only instructions. */
808 static enum rc_type evexrcig = rne;
809
810 /* Pre-defined "_GLOBAL_OFFSET_TABLE_". */
811 static symbolS *GOT_symbol;
812
813 /* The dwarf2 return column, adjusted for 32 or 64 bit. */
814 unsigned int x86_dwarf2_return_column;
815
816 /* The dwarf2 data alignment, adjusted for 32 or 64 bit. */
817 int x86_cie_data_alignment;
818
819 /* Interface to relax_segment.
820 There are 3 major relax states for 386 jump insns because the
821 different types of jumps add different sizes to frags when we're
822 figuring out what sort of jump to choose to reach a given label.
823
824 BRANCH_PADDING, BRANCH_PREFIX and FUSED_JCC_PADDING are used to align
825 branches which are handled by md_estimate_size_before_relax() and
826 i386_generic_table_relax_frag(). */
827
828 /* Types. */
829 #define UNCOND_JUMP 0
830 #define COND_JUMP 1
831 #define COND_JUMP86 2
832 #define BRANCH_PADDING 3
833 #define BRANCH_PREFIX 4
834 #define FUSED_JCC_PADDING 5
835
836 /* Sizes. */
837 #define CODE16 1
838 #define SMALL 0
839 #define SMALL16 (SMALL | CODE16)
840 #define BIG 2
841 #define BIG16 (BIG | CODE16)
842
843 #ifndef INLINE
844 #ifdef __GNUC__
845 #define INLINE __inline__
846 #else
847 #define INLINE
848 #endif
849 #endif
850
851 #define ENCODE_RELAX_STATE(type, size) \
852 ((relax_substateT) (((type) << 2) | (size)))
853 #define TYPE_FROM_RELAX_STATE(s) \
854 ((s) >> 2)
855 #define DISP_SIZE_FROM_RELAX_STATE(s) \
856 ((((s) & 3) == BIG ? 4 : (((s) & 3) == BIG16 ? 2 : 1)))
857
858 /* This table is used by relax_frag to promote short jumps to long
859 ones where necessary. SMALL (short) jumps may be promoted to BIG
860 (32 bit long) ones, and SMALL16 jumps to BIG16 (16 bit long). We
861 don't allow a short jump in a 32 bit code segment to be promoted to
862 a 16 bit offset jump because it's slower (requires data size
863 prefix), and doesn't work, unless the destination is in the bottom
864 64k of the code segment (The top 16 bits of eip are zeroed). */
865
866 const relax_typeS md_relax_table[] =
867 {
868 /* The fields are:
869 1) most positive reach of this state,
870 2) most negative reach of this state,
871 3) how many bytes this mode will have in the variable part of the frag
872 4) which index into the table to try if we can't fit into this one. */
873
874 /* UNCOND_JUMP states. */
875 {127 + 1, -128 + 1, 1, ENCODE_RELAX_STATE (UNCOND_JUMP, BIG)},
876 {127 + 1, -128 + 1, 1, ENCODE_RELAX_STATE (UNCOND_JUMP, BIG16)},
877 /* dword jmp adds 4 bytes to frag:
878 0 extra opcode bytes, 4 displacement bytes. */
879 {0, 0, 4, 0},
880 /* word jmp adds 2 byte2 to frag:
881 0 extra opcode bytes, 2 displacement bytes. */
882 {0, 0, 2, 0},
883
884 /* COND_JUMP states. */
885 {127 + 1, -128 + 1, 1, ENCODE_RELAX_STATE (COND_JUMP, BIG)},
886 {127 + 1, -128 + 1, 1, ENCODE_RELAX_STATE (COND_JUMP, BIG16)},
887 /* dword conditionals adds 5 bytes to frag:
888 1 extra opcode byte, 4 displacement bytes. */
889 {0, 0, 5, 0},
890 /* word conditionals add 3 bytes to frag:
891 1 extra opcode byte, 2 displacement bytes. */
892 {0, 0, 3, 0},
893
894 /* COND_JUMP86 states. */
895 {127 + 1, -128 + 1, 1, ENCODE_RELAX_STATE (COND_JUMP86, BIG)},
896 {127 + 1, -128 + 1, 1, ENCODE_RELAX_STATE (COND_JUMP86, BIG16)},
897 /* dword conditionals adds 5 bytes to frag:
898 1 extra opcode byte, 4 displacement bytes. */
899 {0, 0, 5, 0},
900 /* word conditionals add 4 bytes to frag:
901 1 displacement byte and a 3 byte long branch insn. */
902 {0, 0, 4, 0}
903 };
904
905 static const arch_entry cpu_arch[] =
906 {
907 /* Do not replace the first two entries - i386_target_format()
908 relies on them being there in this order. */
909 { STRING_COMMA_LEN ("generic32"), PROCESSOR_GENERIC32,
910 CPU_GENERIC32_FLAGS, 0 },
911 { STRING_COMMA_LEN ("generic64"), PROCESSOR_GENERIC64,
912 CPU_GENERIC64_FLAGS, 0 },
913 { STRING_COMMA_LEN ("i8086"), PROCESSOR_UNKNOWN,
914 CPU_NONE_FLAGS, 0 },
915 { STRING_COMMA_LEN ("i186"), PROCESSOR_UNKNOWN,
916 CPU_I186_FLAGS, 0 },
917 { STRING_COMMA_LEN ("i286"), PROCESSOR_UNKNOWN,
918 CPU_I286_FLAGS, 0 },
919 { STRING_COMMA_LEN ("i386"), PROCESSOR_I386,
920 CPU_I386_FLAGS, 0 },
921 { STRING_COMMA_LEN ("i486"), PROCESSOR_I486,
922 CPU_I486_FLAGS, 0 },
923 { STRING_COMMA_LEN ("i586"), PROCESSOR_PENTIUM,
924 CPU_I586_FLAGS, 0 },
925 { STRING_COMMA_LEN ("i686"), PROCESSOR_PENTIUMPRO,
926 CPU_I686_FLAGS, 0 },
927 { STRING_COMMA_LEN ("pentium"), PROCESSOR_PENTIUM,
928 CPU_I586_FLAGS, 0 },
929 { STRING_COMMA_LEN ("pentiumpro"), PROCESSOR_PENTIUMPRO,
930 CPU_PENTIUMPRO_FLAGS, 0 },
931 { STRING_COMMA_LEN ("pentiumii"), PROCESSOR_PENTIUMPRO,
932 CPU_P2_FLAGS, 0 },
933 { STRING_COMMA_LEN ("pentiumiii"),PROCESSOR_PENTIUMPRO,
934 CPU_P3_FLAGS, 0 },
935 { STRING_COMMA_LEN ("pentium4"), PROCESSOR_PENTIUM4,
936 CPU_P4_FLAGS, 0 },
937 { STRING_COMMA_LEN ("prescott"), PROCESSOR_NOCONA,
938 CPU_CORE_FLAGS, 0 },
939 { STRING_COMMA_LEN ("nocona"), PROCESSOR_NOCONA,
940 CPU_NOCONA_FLAGS, 0 },
941 { STRING_COMMA_LEN ("yonah"), PROCESSOR_CORE,
942 CPU_CORE_FLAGS, 1 },
943 { STRING_COMMA_LEN ("core"), PROCESSOR_CORE,
944 CPU_CORE_FLAGS, 0 },
945 { STRING_COMMA_LEN ("merom"), PROCESSOR_CORE2,
946 CPU_CORE2_FLAGS, 1 },
947 { STRING_COMMA_LEN ("core2"), PROCESSOR_CORE2,
948 CPU_CORE2_FLAGS, 0 },
949 { STRING_COMMA_LEN ("corei7"), PROCESSOR_COREI7,
950 CPU_COREI7_FLAGS, 0 },
951 { STRING_COMMA_LEN ("l1om"), PROCESSOR_L1OM,
952 CPU_L1OM_FLAGS, 0 },
953 { STRING_COMMA_LEN ("k1om"), PROCESSOR_K1OM,
954 CPU_K1OM_FLAGS, 0 },
955 { STRING_COMMA_LEN ("iamcu"), PROCESSOR_IAMCU,
956 CPU_IAMCU_FLAGS, 0 },
957 { STRING_COMMA_LEN ("k6"), PROCESSOR_K6,
958 CPU_K6_FLAGS, 0 },
959 { STRING_COMMA_LEN ("k6_2"), PROCESSOR_K6,
960 CPU_K6_2_FLAGS, 0 },
961 { STRING_COMMA_LEN ("athlon"), PROCESSOR_ATHLON,
962 CPU_ATHLON_FLAGS, 0 },
963 { STRING_COMMA_LEN ("sledgehammer"), PROCESSOR_K8,
964 CPU_K8_FLAGS, 1 },
965 { STRING_COMMA_LEN ("opteron"), PROCESSOR_K8,
966 CPU_K8_FLAGS, 0 },
967 { STRING_COMMA_LEN ("k8"), PROCESSOR_K8,
968 CPU_K8_FLAGS, 0 },
969 { STRING_COMMA_LEN ("amdfam10"), PROCESSOR_AMDFAM10,
970 CPU_AMDFAM10_FLAGS, 0 },
971 { STRING_COMMA_LEN ("bdver1"), PROCESSOR_BD,
972 CPU_BDVER1_FLAGS, 0 },
973 { STRING_COMMA_LEN ("bdver2"), PROCESSOR_BD,
974 CPU_BDVER2_FLAGS, 0 },
975 { STRING_COMMA_LEN ("bdver3"), PROCESSOR_BD,
976 CPU_BDVER3_FLAGS, 0 },
977 { STRING_COMMA_LEN ("bdver4"), PROCESSOR_BD,
978 CPU_BDVER4_FLAGS, 0 },
979 { STRING_COMMA_LEN ("znver1"), PROCESSOR_ZNVER,
980 CPU_ZNVER1_FLAGS, 0 },
981 { STRING_COMMA_LEN ("znver2"), PROCESSOR_ZNVER,
982 CPU_ZNVER2_FLAGS, 0 },
983 { STRING_COMMA_LEN ("btver1"), PROCESSOR_BT,
984 CPU_BTVER1_FLAGS, 0 },
985 { STRING_COMMA_LEN ("btver2"), PROCESSOR_BT,
986 CPU_BTVER2_FLAGS, 0 },
987 { STRING_COMMA_LEN (".8087"), PROCESSOR_UNKNOWN,
988 CPU_8087_FLAGS, 0 },
989 { STRING_COMMA_LEN (".287"), PROCESSOR_UNKNOWN,
990 CPU_287_FLAGS, 0 },
991 { STRING_COMMA_LEN (".387"), PROCESSOR_UNKNOWN,
992 CPU_387_FLAGS, 0 },
993 { STRING_COMMA_LEN (".687"), PROCESSOR_UNKNOWN,
994 CPU_687_FLAGS, 0 },
995 { STRING_COMMA_LEN (".cmov"), PROCESSOR_UNKNOWN,
996 CPU_CMOV_FLAGS, 0 },
997 { STRING_COMMA_LEN (".fxsr"), PROCESSOR_UNKNOWN,
998 CPU_FXSR_FLAGS, 0 },
999 { STRING_COMMA_LEN (".mmx"), PROCESSOR_UNKNOWN,
1000 CPU_MMX_FLAGS, 0 },
1001 { STRING_COMMA_LEN (".sse"), PROCESSOR_UNKNOWN,
1002 CPU_SSE_FLAGS, 0 },
1003 { STRING_COMMA_LEN (".sse2"), PROCESSOR_UNKNOWN,
1004 CPU_SSE2_FLAGS, 0 },
1005 { STRING_COMMA_LEN (".sse3"), PROCESSOR_UNKNOWN,
1006 CPU_SSE3_FLAGS, 0 },
1007 { STRING_COMMA_LEN (".sse4a"), PROCESSOR_UNKNOWN,
1008 CPU_SSE4A_FLAGS, 0 },
1009 { STRING_COMMA_LEN (".ssse3"), PROCESSOR_UNKNOWN,
1010 CPU_SSSE3_FLAGS, 0 },
1011 { STRING_COMMA_LEN (".sse4.1"), PROCESSOR_UNKNOWN,
1012 CPU_SSE4_1_FLAGS, 0 },
1013 { STRING_COMMA_LEN (".sse4.2"), PROCESSOR_UNKNOWN,
1014 CPU_SSE4_2_FLAGS, 0 },
1015 { STRING_COMMA_LEN (".sse4"), PROCESSOR_UNKNOWN,
1016 CPU_SSE4_2_FLAGS, 0 },
1017 { STRING_COMMA_LEN (".avx"), PROCESSOR_UNKNOWN,
1018 CPU_AVX_FLAGS, 0 },
1019 { STRING_COMMA_LEN (".avx2"), PROCESSOR_UNKNOWN,
1020 CPU_AVX2_FLAGS, 0 },
1021 { STRING_COMMA_LEN (".avx512f"), PROCESSOR_UNKNOWN,
1022 CPU_AVX512F_FLAGS, 0 },
1023 { STRING_COMMA_LEN (".avx512cd"), PROCESSOR_UNKNOWN,
1024 CPU_AVX512CD_FLAGS, 0 },
1025 { STRING_COMMA_LEN (".avx512er"), PROCESSOR_UNKNOWN,
1026 CPU_AVX512ER_FLAGS, 0 },
1027 { STRING_COMMA_LEN (".avx512pf"), PROCESSOR_UNKNOWN,
1028 CPU_AVX512PF_FLAGS, 0 },
1029 { STRING_COMMA_LEN (".avx512dq"), PROCESSOR_UNKNOWN,
1030 CPU_AVX512DQ_FLAGS, 0 },
1031 { STRING_COMMA_LEN (".avx512bw"), PROCESSOR_UNKNOWN,
1032 CPU_AVX512BW_FLAGS, 0 },
1033 { STRING_COMMA_LEN (".avx512vl"), PROCESSOR_UNKNOWN,
1034 CPU_AVX512VL_FLAGS, 0 },
1035 { STRING_COMMA_LEN (".vmx"), PROCESSOR_UNKNOWN,
1036 CPU_VMX_FLAGS, 0 },
1037 { STRING_COMMA_LEN (".vmfunc"), PROCESSOR_UNKNOWN,
1038 CPU_VMFUNC_FLAGS, 0 },
1039 { STRING_COMMA_LEN (".smx"), PROCESSOR_UNKNOWN,
1040 CPU_SMX_FLAGS, 0 },
1041 { STRING_COMMA_LEN (".xsave"), PROCESSOR_UNKNOWN,
1042 CPU_XSAVE_FLAGS, 0 },
1043 { STRING_COMMA_LEN (".xsaveopt"), PROCESSOR_UNKNOWN,
1044 CPU_XSAVEOPT_FLAGS, 0 },
1045 { STRING_COMMA_LEN (".xsavec"), PROCESSOR_UNKNOWN,
1046 CPU_XSAVEC_FLAGS, 0 },
1047 { STRING_COMMA_LEN (".xsaves"), PROCESSOR_UNKNOWN,
1048 CPU_XSAVES_FLAGS, 0 },
1049 { STRING_COMMA_LEN (".aes"), PROCESSOR_UNKNOWN,
1050 CPU_AES_FLAGS, 0 },
1051 { STRING_COMMA_LEN (".pclmul"), PROCESSOR_UNKNOWN,
1052 CPU_PCLMUL_FLAGS, 0 },
1053 { STRING_COMMA_LEN (".clmul"), PROCESSOR_UNKNOWN,
1054 CPU_PCLMUL_FLAGS, 1 },
1055 { STRING_COMMA_LEN (".fsgsbase"), PROCESSOR_UNKNOWN,
1056 CPU_FSGSBASE_FLAGS, 0 },
1057 { STRING_COMMA_LEN (".rdrnd"), PROCESSOR_UNKNOWN,
1058 CPU_RDRND_FLAGS, 0 },
1059 { STRING_COMMA_LEN (".f16c"), PROCESSOR_UNKNOWN,
1060 CPU_F16C_FLAGS, 0 },
1061 { STRING_COMMA_LEN (".bmi2"), PROCESSOR_UNKNOWN,
1062 CPU_BMI2_FLAGS, 0 },
1063 { STRING_COMMA_LEN (".fma"), PROCESSOR_UNKNOWN,
1064 CPU_FMA_FLAGS, 0 },
1065 { STRING_COMMA_LEN (".fma4"), PROCESSOR_UNKNOWN,
1066 CPU_FMA4_FLAGS, 0 },
1067 { STRING_COMMA_LEN (".xop"), PROCESSOR_UNKNOWN,
1068 CPU_XOP_FLAGS, 0 },
1069 { STRING_COMMA_LEN (".lwp"), PROCESSOR_UNKNOWN,
1070 CPU_LWP_FLAGS, 0 },
1071 { STRING_COMMA_LEN (".movbe"), PROCESSOR_UNKNOWN,
1072 CPU_MOVBE_FLAGS, 0 },
1073 { STRING_COMMA_LEN (".cx16"), PROCESSOR_UNKNOWN,
1074 CPU_CX16_FLAGS, 0 },
1075 { STRING_COMMA_LEN (".ept"), PROCESSOR_UNKNOWN,
1076 CPU_EPT_FLAGS, 0 },
1077 { STRING_COMMA_LEN (".lzcnt"), PROCESSOR_UNKNOWN,
1078 CPU_LZCNT_FLAGS, 0 },
1079 { STRING_COMMA_LEN (".popcnt"), PROCESSOR_UNKNOWN,
1080 CPU_POPCNT_FLAGS, 0 },
1081 { STRING_COMMA_LEN (".hle"), PROCESSOR_UNKNOWN,
1082 CPU_HLE_FLAGS, 0 },
1083 { STRING_COMMA_LEN (".rtm"), PROCESSOR_UNKNOWN,
1084 CPU_RTM_FLAGS, 0 },
1085 { STRING_COMMA_LEN (".invpcid"), PROCESSOR_UNKNOWN,
1086 CPU_INVPCID_FLAGS, 0 },
1087 { STRING_COMMA_LEN (".clflush"), PROCESSOR_UNKNOWN,
1088 CPU_CLFLUSH_FLAGS, 0 },
1089 { STRING_COMMA_LEN (".nop"), PROCESSOR_UNKNOWN,
1090 CPU_NOP_FLAGS, 0 },
1091 { STRING_COMMA_LEN (".syscall"), PROCESSOR_UNKNOWN,
1092 CPU_SYSCALL_FLAGS, 0 },
1093 { STRING_COMMA_LEN (".rdtscp"), PROCESSOR_UNKNOWN,
1094 CPU_RDTSCP_FLAGS, 0 },
1095 { STRING_COMMA_LEN (".3dnow"), PROCESSOR_UNKNOWN,
1096 CPU_3DNOW_FLAGS, 0 },
1097 { STRING_COMMA_LEN (".3dnowa"), PROCESSOR_UNKNOWN,
1098 CPU_3DNOWA_FLAGS, 0 },
1099 { STRING_COMMA_LEN (".padlock"), PROCESSOR_UNKNOWN,
1100 CPU_PADLOCK_FLAGS, 0 },
1101 { STRING_COMMA_LEN (".pacifica"), PROCESSOR_UNKNOWN,
1102 CPU_SVME_FLAGS, 1 },
1103 { STRING_COMMA_LEN (".svme"), PROCESSOR_UNKNOWN,
1104 CPU_SVME_FLAGS, 0 },
1105 { STRING_COMMA_LEN (".sse4a"), PROCESSOR_UNKNOWN,
1106 CPU_SSE4A_FLAGS, 0 },
1107 { STRING_COMMA_LEN (".abm"), PROCESSOR_UNKNOWN,
1108 CPU_ABM_FLAGS, 0 },
1109 { STRING_COMMA_LEN (".bmi"), PROCESSOR_UNKNOWN,
1110 CPU_BMI_FLAGS, 0 },
1111 { STRING_COMMA_LEN (".tbm"), PROCESSOR_UNKNOWN,
1112 CPU_TBM_FLAGS, 0 },
1113 { STRING_COMMA_LEN (".adx"), PROCESSOR_UNKNOWN,
1114 CPU_ADX_FLAGS, 0 },
1115 { STRING_COMMA_LEN (".rdseed"), PROCESSOR_UNKNOWN,
1116 CPU_RDSEED_FLAGS, 0 },
1117 { STRING_COMMA_LEN (".prfchw"), PROCESSOR_UNKNOWN,
1118 CPU_PRFCHW_FLAGS, 0 },
1119 { STRING_COMMA_LEN (".smap"), PROCESSOR_UNKNOWN,
1120 CPU_SMAP_FLAGS, 0 },
1121 { STRING_COMMA_LEN (".mpx"), PROCESSOR_UNKNOWN,
1122 CPU_MPX_FLAGS, 0 },
1123 { STRING_COMMA_LEN (".sha"), PROCESSOR_UNKNOWN,
1124 CPU_SHA_FLAGS, 0 },
1125 { STRING_COMMA_LEN (".clflushopt"), PROCESSOR_UNKNOWN,
1126 CPU_CLFLUSHOPT_FLAGS, 0 },
1127 { STRING_COMMA_LEN (".prefetchwt1"), PROCESSOR_UNKNOWN,
1128 CPU_PREFETCHWT1_FLAGS, 0 },
1129 { STRING_COMMA_LEN (".se1"), PROCESSOR_UNKNOWN,
1130 CPU_SE1_FLAGS, 0 },
1131 { STRING_COMMA_LEN (".clwb"), PROCESSOR_UNKNOWN,
1132 CPU_CLWB_FLAGS, 0 },
1133 { STRING_COMMA_LEN (".avx512ifma"), PROCESSOR_UNKNOWN,
1134 CPU_AVX512IFMA_FLAGS, 0 },
1135 { STRING_COMMA_LEN (".avx512vbmi"), PROCESSOR_UNKNOWN,
1136 CPU_AVX512VBMI_FLAGS, 0 },
1137 { STRING_COMMA_LEN (".avx512_4fmaps"), PROCESSOR_UNKNOWN,
1138 CPU_AVX512_4FMAPS_FLAGS, 0 },
1139 { STRING_COMMA_LEN (".avx512_4vnniw"), PROCESSOR_UNKNOWN,
1140 CPU_AVX512_4VNNIW_FLAGS, 0 },
1141 { STRING_COMMA_LEN (".avx512_vpopcntdq"), PROCESSOR_UNKNOWN,
1142 CPU_AVX512_VPOPCNTDQ_FLAGS, 0 },
1143 { STRING_COMMA_LEN (".avx512_vbmi2"), PROCESSOR_UNKNOWN,
1144 CPU_AVX512_VBMI2_FLAGS, 0 },
1145 { STRING_COMMA_LEN (".avx512_vnni"), PROCESSOR_UNKNOWN,
1146 CPU_AVX512_VNNI_FLAGS, 0 },
1147 { STRING_COMMA_LEN (".avx512_bitalg"), PROCESSOR_UNKNOWN,
1148 CPU_AVX512_BITALG_FLAGS, 0 },
1149 { STRING_COMMA_LEN (".clzero"), PROCESSOR_UNKNOWN,
1150 CPU_CLZERO_FLAGS, 0 },
1151 { STRING_COMMA_LEN (".mwaitx"), PROCESSOR_UNKNOWN,
1152 CPU_MWAITX_FLAGS, 0 },
1153 { STRING_COMMA_LEN (".ospke"), PROCESSOR_UNKNOWN,
1154 CPU_OSPKE_FLAGS, 0 },
1155 { STRING_COMMA_LEN (".rdpid"), PROCESSOR_UNKNOWN,
1156 CPU_RDPID_FLAGS, 0 },
1157 { STRING_COMMA_LEN (".ptwrite"), PROCESSOR_UNKNOWN,
1158 CPU_PTWRITE_FLAGS, 0 },
1159 { STRING_COMMA_LEN (".ibt"), PROCESSOR_UNKNOWN,
1160 CPU_IBT_FLAGS, 0 },
1161 { STRING_COMMA_LEN (".shstk"), PROCESSOR_UNKNOWN,
1162 CPU_SHSTK_FLAGS, 0 },
1163 { STRING_COMMA_LEN (".gfni"), PROCESSOR_UNKNOWN,
1164 CPU_GFNI_FLAGS, 0 },
1165 { STRING_COMMA_LEN (".vaes"), PROCESSOR_UNKNOWN,
1166 CPU_VAES_FLAGS, 0 },
1167 { STRING_COMMA_LEN (".vpclmulqdq"), PROCESSOR_UNKNOWN,
1168 CPU_VPCLMULQDQ_FLAGS, 0 },
1169 { STRING_COMMA_LEN (".wbnoinvd"), PROCESSOR_UNKNOWN,
1170 CPU_WBNOINVD_FLAGS, 0 },
1171 { STRING_COMMA_LEN (".pconfig"), PROCESSOR_UNKNOWN,
1172 CPU_PCONFIG_FLAGS, 0 },
1173 { STRING_COMMA_LEN (".waitpkg"), PROCESSOR_UNKNOWN,
1174 CPU_WAITPKG_FLAGS, 0 },
1175 { STRING_COMMA_LEN (".cldemote"), PROCESSOR_UNKNOWN,
1176 CPU_CLDEMOTE_FLAGS, 0 },
1177 { STRING_COMMA_LEN (".movdiri"), PROCESSOR_UNKNOWN,
1178 CPU_MOVDIRI_FLAGS, 0 },
1179 { STRING_COMMA_LEN (".movdir64b"), PROCESSOR_UNKNOWN,
1180 CPU_MOVDIR64B_FLAGS, 0 },
1181 { STRING_COMMA_LEN (".avx512_bf16"), PROCESSOR_UNKNOWN,
1182 CPU_AVX512_BF16_FLAGS, 0 },
1183 { STRING_COMMA_LEN (".avx512_vp2intersect"), PROCESSOR_UNKNOWN,
1184 CPU_AVX512_VP2INTERSECT_FLAGS, 0 },
1185 { STRING_COMMA_LEN (".enqcmd"), PROCESSOR_UNKNOWN,
1186 CPU_ENQCMD_FLAGS, 0 },
1187 { STRING_COMMA_LEN (".rdpru"), PROCESSOR_UNKNOWN,
1188 CPU_RDPRU_FLAGS, 0 },
1189 { STRING_COMMA_LEN (".mcommit"), PROCESSOR_UNKNOWN,
1190 CPU_MCOMMIT_FLAGS, 0 },
1191 { STRING_COMMA_LEN (".sev_es"), PROCESSOR_UNKNOWN,
1192 CPU_SEV_ES_FLAGS, 0 },
1193 };
1194
1195 static const noarch_entry cpu_noarch[] =
1196 {
1197 { STRING_COMMA_LEN ("no87"), CPU_ANY_X87_FLAGS },
1198 { STRING_COMMA_LEN ("no287"), CPU_ANY_287_FLAGS },
1199 { STRING_COMMA_LEN ("no387"), CPU_ANY_387_FLAGS },
1200 { STRING_COMMA_LEN ("no687"), CPU_ANY_687_FLAGS },
1201 { STRING_COMMA_LEN ("nocmov"), CPU_ANY_CMOV_FLAGS },
1202 { STRING_COMMA_LEN ("nofxsr"), CPU_ANY_FXSR_FLAGS },
1203 { STRING_COMMA_LEN ("nommx"), CPU_ANY_MMX_FLAGS },
1204 { STRING_COMMA_LEN ("nosse"), CPU_ANY_SSE_FLAGS },
1205 { STRING_COMMA_LEN ("nosse2"), CPU_ANY_SSE2_FLAGS },
1206 { STRING_COMMA_LEN ("nosse3"), CPU_ANY_SSE3_FLAGS },
1207 { STRING_COMMA_LEN ("nosse4a"), CPU_ANY_SSE4A_FLAGS },
1208 { STRING_COMMA_LEN ("nossse3"), CPU_ANY_SSSE3_FLAGS },
1209 { STRING_COMMA_LEN ("nosse4.1"), CPU_ANY_SSE4_1_FLAGS },
1210 { STRING_COMMA_LEN ("nosse4.2"), CPU_ANY_SSE4_2_FLAGS },
1211 { STRING_COMMA_LEN ("nosse4"), CPU_ANY_SSE4_1_FLAGS },
1212 { STRING_COMMA_LEN ("noavx"), CPU_ANY_AVX_FLAGS },
1213 { STRING_COMMA_LEN ("noavx2"), CPU_ANY_AVX2_FLAGS },
1214 { STRING_COMMA_LEN ("noavx512f"), CPU_ANY_AVX512F_FLAGS },
1215 { STRING_COMMA_LEN ("noavx512cd"), CPU_ANY_AVX512CD_FLAGS },
1216 { STRING_COMMA_LEN ("noavx512er"), CPU_ANY_AVX512ER_FLAGS },
1217 { STRING_COMMA_LEN ("noavx512pf"), CPU_ANY_AVX512PF_FLAGS },
1218 { STRING_COMMA_LEN ("noavx512dq"), CPU_ANY_AVX512DQ_FLAGS },
1219 { STRING_COMMA_LEN ("noavx512bw"), CPU_ANY_AVX512BW_FLAGS },
1220 { STRING_COMMA_LEN ("noavx512vl"), CPU_ANY_AVX512VL_FLAGS },
1221 { STRING_COMMA_LEN ("noavx512ifma"), CPU_ANY_AVX512IFMA_FLAGS },
1222 { STRING_COMMA_LEN ("noavx512vbmi"), CPU_ANY_AVX512VBMI_FLAGS },
1223 { STRING_COMMA_LEN ("noavx512_4fmaps"), CPU_ANY_AVX512_4FMAPS_FLAGS },
1224 { STRING_COMMA_LEN ("noavx512_4vnniw"), CPU_ANY_AVX512_4VNNIW_FLAGS },
1225 { STRING_COMMA_LEN ("noavx512_vpopcntdq"), CPU_ANY_AVX512_VPOPCNTDQ_FLAGS },
1226 { STRING_COMMA_LEN ("noavx512_vbmi2"), CPU_ANY_AVX512_VBMI2_FLAGS },
1227 { STRING_COMMA_LEN ("noavx512_vnni"), CPU_ANY_AVX512_VNNI_FLAGS },
1228 { STRING_COMMA_LEN ("noavx512_bitalg"), CPU_ANY_AVX512_BITALG_FLAGS },
1229 { STRING_COMMA_LEN ("noibt"), CPU_ANY_IBT_FLAGS },
1230 { STRING_COMMA_LEN ("noshstk"), CPU_ANY_SHSTK_FLAGS },
1231 { STRING_COMMA_LEN ("nomovdiri"), CPU_ANY_MOVDIRI_FLAGS },
1232 { STRING_COMMA_LEN ("nomovdir64b"), CPU_ANY_MOVDIR64B_FLAGS },
1233 { STRING_COMMA_LEN ("noavx512_bf16"), CPU_ANY_AVX512_BF16_FLAGS },
1234 { STRING_COMMA_LEN ("noavx512_vp2intersect"), CPU_ANY_SHSTK_FLAGS },
1235 { STRING_COMMA_LEN ("noenqcmd"), CPU_ANY_ENQCMD_FLAGS },
1236 };
1237
1238 #ifdef I386COFF
1239 /* Like s_lcomm_internal in gas/read.c but the alignment string
1240 is allowed to be optional. */
1241
1242 static symbolS *
1243 pe_lcomm_internal (int needs_align, symbolS *symbolP, addressT size)
1244 {
1245 addressT align = 0;
1246
1247 SKIP_WHITESPACE ();
1248
1249 if (needs_align
1250 && *input_line_pointer == ',')
1251 {
1252 align = parse_align (needs_align - 1);
1253
1254 if (align == (addressT) -1)
1255 return NULL;
1256 }
1257 else
1258 {
1259 if (size >= 8)
1260 align = 3;
1261 else if (size >= 4)
1262 align = 2;
1263 else if (size >= 2)
1264 align = 1;
1265 else
1266 align = 0;
1267 }
1268
1269 bss_alloc (symbolP, size, align);
1270 return symbolP;
1271 }
1272
1273 static void
1274 pe_lcomm (int needs_align)
1275 {
1276 s_comm_internal (needs_align * 2, pe_lcomm_internal);
1277 }
1278 #endif
1279
1280 const pseudo_typeS md_pseudo_table[] =
1281 {
1282 #if !defined(OBJ_AOUT) && !defined(USE_ALIGN_PTWO)
1283 {"align", s_align_bytes, 0},
1284 #else
1285 {"align", s_align_ptwo, 0},
1286 #endif
1287 {"arch", set_cpu_arch, 0},
1288 #ifndef I386COFF
1289 {"bss", s_bss, 0},
1290 #else
1291 {"lcomm", pe_lcomm, 1},
1292 #endif
1293 {"ffloat", float_cons, 'f'},
1294 {"dfloat", float_cons, 'd'},
1295 {"tfloat", float_cons, 'x'},
1296 {"value", cons, 2},
1297 {"slong", signed_cons, 4},
1298 {"noopt", s_ignore, 0},
1299 {"optim", s_ignore, 0},
1300 {"code16gcc", set_16bit_gcc_code_flag, CODE_16BIT},
1301 {"code16", set_code_flag, CODE_16BIT},
1302 {"code32", set_code_flag, CODE_32BIT},
1303 #ifdef BFD64
1304 {"code64", set_code_flag, CODE_64BIT},
1305 #endif
1306 {"intel_syntax", set_intel_syntax, 1},
1307 {"att_syntax", set_intel_syntax, 0},
1308 {"intel_mnemonic", set_intel_mnemonic, 1},
1309 {"att_mnemonic", set_intel_mnemonic, 0},
1310 {"allow_index_reg", set_allow_index_reg, 1},
1311 {"disallow_index_reg", set_allow_index_reg, 0},
1312 {"sse_check", set_check, 0},
1313 {"operand_check", set_check, 1},
1314 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
1315 {"largecomm", handle_large_common, 0},
1316 #else
1317 {"file", dwarf2_directive_file, 0},
1318 {"loc", dwarf2_directive_loc, 0},
1319 {"loc_mark_labels", dwarf2_directive_loc_mark_labels, 0},
1320 #endif
1321 #ifdef TE_PE
1322 {"secrel32", pe_directive_secrel, 0},
1323 #endif
1324 {0, 0, 0}
1325 };
1326
1327 /* For interface with expression (). */
1328 extern char *input_line_pointer;
1329
1330 /* Hash table for instruction mnemonic lookup. */
1331 static struct hash_control *op_hash;
1332
1333 /* Hash table for register lookup. */
1334 static struct hash_control *reg_hash;
1335 \f
1336 /* Various efficient no-op patterns for aligning code labels.
1337 Note: Don't try to assemble the instructions in the comments.
1338 0L and 0w are not legal. */
1339 static const unsigned char f32_1[] =
1340 {0x90}; /* nop */
1341 static const unsigned char f32_2[] =
1342 {0x66,0x90}; /* xchg %ax,%ax */
1343 static const unsigned char f32_3[] =
1344 {0x8d,0x76,0x00}; /* leal 0(%esi),%esi */
1345 static const unsigned char f32_4[] =
1346 {0x8d,0x74,0x26,0x00}; /* leal 0(%esi,1),%esi */
1347 static const unsigned char f32_6[] =
1348 {0x8d,0xb6,0x00,0x00,0x00,0x00}; /* leal 0L(%esi),%esi */
1349 static const unsigned char f32_7[] =
1350 {0x8d,0xb4,0x26,0x00,0x00,0x00,0x00}; /* leal 0L(%esi,1),%esi */
1351 static const unsigned char f16_3[] =
1352 {0x8d,0x74,0x00}; /* lea 0(%si),%si */
1353 static const unsigned char f16_4[] =
1354 {0x8d,0xb4,0x00,0x00}; /* lea 0W(%si),%si */
1355 static const unsigned char jump_disp8[] =
1356 {0xeb}; /* jmp disp8 */
1357 static const unsigned char jump32_disp32[] =
1358 {0xe9}; /* jmp disp32 */
1359 static const unsigned char jump16_disp32[] =
1360 {0x66,0xe9}; /* jmp disp32 */
1361 /* 32-bit NOPs patterns. */
1362 static const unsigned char *const f32_patt[] = {
1363 f32_1, f32_2, f32_3, f32_4, NULL, f32_6, f32_7
1364 };
1365 /* 16-bit NOPs patterns. */
1366 static const unsigned char *const f16_patt[] = {
1367 f32_1, f32_2, f16_3, f16_4
1368 };
1369 /* nopl (%[re]ax) */
1370 static const unsigned char alt_3[] =
1371 {0x0f,0x1f,0x00};
1372 /* nopl 0(%[re]ax) */
1373 static const unsigned char alt_4[] =
1374 {0x0f,0x1f,0x40,0x00};
1375 /* nopl 0(%[re]ax,%[re]ax,1) */
1376 static const unsigned char alt_5[] =
1377 {0x0f,0x1f,0x44,0x00,0x00};
1378 /* nopw 0(%[re]ax,%[re]ax,1) */
1379 static const unsigned char alt_6[] =
1380 {0x66,0x0f,0x1f,0x44,0x00,0x00};
1381 /* nopl 0L(%[re]ax) */
1382 static const unsigned char alt_7[] =
1383 {0x0f,0x1f,0x80,0x00,0x00,0x00,0x00};
1384 /* nopl 0L(%[re]ax,%[re]ax,1) */
1385 static const unsigned char alt_8[] =
1386 {0x0f,0x1f,0x84,0x00,0x00,0x00,0x00,0x00};
1387 /* nopw 0L(%[re]ax,%[re]ax,1) */
1388 static const unsigned char alt_9[] =
1389 {0x66,0x0f,0x1f,0x84,0x00,0x00,0x00,0x00,0x00};
1390 /* nopw %cs:0L(%[re]ax,%[re]ax,1) */
1391 static const unsigned char alt_10[] =
1392 {0x66,0x2e,0x0f,0x1f,0x84,0x00,0x00,0x00,0x00,0x00};
1393 /* data16 nopw %cs:0L(%eax,%eax,1) */
1394 static const unsigned char alt_11[] =
1395 {0x66,0x66,0x2e,0x0f,0x1f,0x84,0x00,0x00,0x00,0x00,0x00};
1396 /* 32-bit and 64-bit NOPs patterns. */
1397 static const unsigned char *const alt_patt[] = {
1398 f32_1, f32_2, alt_3, alt_4, alt_5, alt_6, alt_7, alt_8,
1399 alt_9, alt_10, alt_11
1400 };
1401
1402 /* Genenerate COUNT bytes of NOPs to WHERE from PATT with the maximum
1403 size of a single NOP instruction MAX_SINGLE_NOP_SIZE. */
1404
1405 static void
1406 i386_output_nops (char *where, const unsigned char *const *patt,
1407 int count, int max_single_nop_size)
1408
1409 {
1410 /* Place the longer NOP first. */
1411 int last;
1412 int offset;
1413 const unsigned char *nops;
1414
1415 if (max_single_nop_size < 1)
1416 {
1417 as_fatal (_("i386_output_nops called to generate nops of at most %d bytes!"),
1418 max_single_nop_size);
1419 return;
1420 }
1421
1422 nops = patt[max_single_nop_size - 1];
1423
1424 /* Use the smaller one if the requsted one isn't available. */
1425 if (nops == NULL)
1426 {
1427 max_single_nop_size--;
1428 nops = patt[max_single_nop_size - 1];
1429 }
1430
1431 last = count % max_single_nop_size;
1432
1433 count -= last;
1434 for (offset = 0; offset < count; offset += max_single_nop_size)
1435 memcpy (where + offset, nops, max_single_nop_size);
1436
1437 if (last)
1438 {
1439 nops = patt[last - 1];
1440 if (nops == NULL)
1441 {
1442 /* Use the smaller one plus one-byte NOP if the needed one
1443 isn't available. */
1444 last--;
1445 nops = patt[last - 1];
1446 memcpy (where + offset, nops, last);
1447 where[offset + last] = *patt[0];
1448 }
1449 else
1450 memcpy (where + offset, nops, last);
1451 }
1452 }
1453
1454 static INLINE int
1455 fits_in_imm7 (offsetT num)
1456 {
1457 return (num & 0x7f) == num;
1458 }
1459
1460 static INLINE int
1461 fits_in_imm31 (offsetT num)
1462 {
1463 return (num & 0x7fffffff) == num;
1464 }
1465
1466 /* Genenerate COUNT bytes of NOPs to WHERE with the maximum size of a
1467 single NOP instruction LIMIT. */
1468
1469 void
1470 i386_generate_nops (fragS *fragP, char *where, offsetT count, int limit)
1471 {
1472 const unsigned char *const *patt = NULL;
1473 int max_single_nop_size;
1474 /* Maximum number of NOPs before switching to jump over NOPs. */
1475 int max_number_of_nops;
1476
1477 switch (fragP->fr_type)
1478 {
1479 case rs_fill_nop:
1480 case rs_align_code:
1481 break;
1482 case rs_machine_dependent:
1483 /* Allow NOP padding for jumps and calls. */
1484 if (TYPE_FROM_RELAX_STATE (fragP->fr_subtype) == BRANCH_PADDING
1485 || TYPE_FROM_RELAX_STATE (fragP->fr_subtype) == FUSED_JCC_PADDING)
1486 break;
1487 /* Fall through. */
1488 default:
1489 return;
1490 }
1491
1492 /* We need to decide which NOP sequence to use for 32bit and
1493 64bit. When -mtune= is used:
1494
1495 1. For PROCESSOR_I386, PROCESSOR_I486, PROCESSOR_PENTIUM and
1496 PROCESSOR_GENERIC32, f32_patt will be used.
1497 2. For the rest, alt_patt will be used.
1498
1499 When -mtune= isn't used, alt_patt will be used if
1500 cpu_arch_isa_flags has CpuNop. Otherwise, f32_patt will
1501 be used.
1502
1503 When -march= or .arch is used, we can't use anything beyond
1504 cpu_arch_isa_flags. */
1505
1506 if (flag_code == CODE_16BIT)
1507 {
1508 patt = f16_patt;
1509 max_single_nop_size = sizeof (f16_patt) / sizeof (f16_patt[0]);
1510 /* Limit number of NOPs to 2 in 16-bit mode. */
1511 max_number_of_nops = 2;
1512 }
1513 else
1514 {
1515 if (fragP->tc_frag_data.isa == PROCESSOR_UNKNOWN)
1516 {
1517 /* PROCESSOR_UNKNOWN means that all ISAs may be used. */
1518 switch (cpu_arch_tune)
1519 {
1520 case PROCESSOR_UNKNOWN:
1521 /* We use cpu_arch_isa_flags to check if we SHOULD
1522 optimize with nops. */
1523 if (fragP->tc_frag_data.isa_flags.bitfield.cpunop)
1524 patt = alt_patt;
1525 else
1526 patt = f32_patt;
1527 break;
1528 case PROCESSOR_PENTIUM4:
1529 case PROCESSOR_NOCONA:
1530 case PROCESSOR_CORE:
1531 case PROCESSOR_CORE2:
1532 case PROCESSOR_COREI7:
1533 case PROCESSOR_L1OM:
1534 case PROCESSOR_K1OM:
1535 case PROCESSOR_GENERIC64:
1536 case PROCESSOR_K6:
1537 case PROCESSOR_ATHLON:
1538 case PROCESSOR_K8:
1539 case PROCESSOR_AMDFAM10:
1540 case PROCESSOR_BD:
1541 case PROCESSOR_ZNVER:
1542 case PROCESSOR_BT:
1543 patt = alt_patt;
1544 break;
1545 case PROCESSOR_I386:
1546 case PROCESSOR_I486:
1547 case PROCESSOR_PENTIUM:
1548 case PROCESSOR_PENTIUMPRO:
1549 case PROCESSOR_IAMCU:
1550 case PROCESSOR_GENERIC32:
1551 patt = f32_patt;
1552 break;
1553 }
1554 }
1555 else
1556 {
1557 switch (fragP->tc_frag_data.tune)
1558 {
1559 case PROCESSOR_UNKNOWN:
1560 /* When cpu_arch_isa is set, cpu_arch_tune shouldn't be
1561 PROCESSOR_UNKNOWN. */
1562 abort ();
1563 break;
1564
1565 case PROCESSOR_I386:
1566 case PROCESSOR_I486:
1567 case PROCESSOR_PENTIUM:
1568 case PROCESSOR_IAMCU:
1569 case PROCESSOR_K6:
1570 case PROCESSOR_ATHLON:
1571 case PROCESSOR_K8:
1572 case PROCESSOR_AMDFAM10:
1573 case PROCESSOR_BD:
1574 case PROCESSOR_ZNVER:
1575 case PROCESSOR_BT:
1576 case PROCESSOR_GENERIC32:
1577 /* We use cpu_arch_isa_flags to check if we CAN optimize
1578 with nops. */
1579 if (fragP->tc_frag_data.isa_flags.bitfield.cpunop)
1580 patt = alt_patt;
1581 else
1582 patt = f32_patt;
1583 break;
1584 case PROCESSOR_PENTIUMPRO:
1585 case PROCESSOR_PENTIUM4:
1586 case PROCESSOR_NOCONA:
1587 case PROCESSOR_CORE:
1588 case PROCESSOR_CORE2:
1589 case PROCESSOR_COREI7:
1590 case PROCESSOR_L1OM:
1591 case PROCESSOR_K1OM:
1592 if (fragP->tc_frag_data.isa_flags.bitfield.cpunop)
1593 patt = alt_patt;
1594 else
1595 patt = f32_patt;
1596 break;
1597 case PROCESSOR_GENERIC64:
1598 patt = alt_patt;
1599 break;
1600 }
1601 }
1602
1603 if (patt == f32_patt)
1604 {
1605 max_single_nop_size = sizeof (f32_patt) / sizeof (f32_patt[0]);
1606 /* Limit number of NOPs to 2 for older processors. */
1607 max_number_of_nops = 2;
1608 }
1609 else
1610 {
1611 max_single_nop_size = sizeof (alt_patt) / sizeof (alt_patt[0]);
1612 /* Limit number of NOPs to 7 for newer processors. */
1613 max_number_of_nops = 7;
1614 }
1615 }
1616
1617 if (limit == 0)
1618 limit = max_single_nop_size;
1619
1620 if (fragP->fr_type == rs_fill_nop)
1621 {
1622 /* Output NOPs for .nop directive. */
1623 if (limit > max_single_nop_size)
1624 {
1625 as_bad_where (fragP->fr_file, fragP->fr_line,
1626 _("invalid single nop size: %d "
1627 "(expect within [0, %d])"),
1628 limit, max_single_nop_size);
1629 return;
1630 }
1631 }
1632 else if (fragP->fr_type != rs_machine_dependent)
1633 fragP->fr_var = count;
1634
1635 if ((count / max_single_nop_size) > max_number_of_nops)
1636 {
1637 /* Generate jump over NOPs. */
1638 offsetT disp = count - 2;
1639 if (fits_in_imm7 (disp))
1640 {
1641 /* Use "jmp disp8" if possible. */
1642 count = disp;
1643 where[0] = jump_disp8[0];
1644 where[1] = count;
1645 where += 2;
1646 }
1647 else
1648 {
1649 unsigned int size_of_jump;
1650
1651 if (flag_code == CODE_16BIT)
1652 {
1653 where[0] = jump16_disp32[0];
1654 where[1] = jump16_disp32[1];
1655 size_of_jump = 2;
1656 }
1657 else
1658 {
1659 where[0] = jump32_disp32[0];
1660 size_of_jump = 1;
1661 }
1662
1663 count -= size_of_jump + 4;
1664 if (!fits_in_imm31 (count))
1665 {
1666 as_bad_where (fragP->fr_file, fragP->fr_line,
1667 _("jump over nop padding out of range"));
1668 return;
1669 }
1670
1671 md_number_to_chars (where + size_of_jump, count, 4);
1672 where += size_of_jump + 4;
1673 }
1674 }
1675
1676 /* Generate multiple NOPs. */
1677 i386_output_nops (where, patt, count, limit);
1678 }
1679
1680 static INLINE int
1681 operand_type_all_zero (const union i386_operand_type *x)
1682 {
1683 switch (ARRAY_SIZE(x->array))
1684 {
1685 case 3:
1686 if (x->array[2])
1687 return 0;
1688 /* Fall through. */
1689 case 2:
1690 if (x->array[1])
1691 return 0;
1692 /* Fall through. */
1693 case 1:
1694 return !x->array[0];
1695 default:
1696 abort ();
1697 }
1698 }
1699
1700 static INLINE void
1701 operand_type_set (union i386_operand_type *x, unsigned int v)
1702 {
1703 switch (ARRAY_SIZE(x->array))
1704 {
1705 case 3:
1706 x->array[2] = v;
1707 /* Fall through. */
1708 case 2:
1709 x->array[1] = v;
1710 /* Fall through. */
1711 case 1:
1712 x->array[0] = v;
1713 /* Fall through. */
1714 break;
1715 default:
1716 abort ();
1717 }
1718
1719 x->bitfield.class = ClassNone;
1720 x->bitfield.instance = InstanceNone;
1721 }
1722
1723 static INLINE int
1724 operand_type_equal (const union i386_operand_type *x,
1725 const union i386_operand_type *y)
1726 {
1727 switch (ARRAY_SIZE(x->array))
1728 {
1729 case 3:
1730 if (x->array[2] != y->array[2])
1731 return 0;
1732 /* Fall through. */
1733 case 2:
1734 if (x->array[1] != y->array[1])
1735 return 0;
1736 /* Fall through. */
1737 case 1:
1738 return x->array[0] == y->array[0];
1739 break;
1740 default:
1741 abort ();
1742 }
1743 }
1744
1745 static INLINE int
1746 cpu_flags_all_zero (const union i386_cpu_flags *x)
1747 {
1748 switch (ARRAY_SIZE(x->array))
1749 {
1750 case 4:
1751 if (x->array[3])
1752 return 0;
1753 /* Fall through. */
1754 case 3:
1755 if (x->array[2])
1756 return 0;
1757 /* Fall through. */
1758 case 2:
1759 if (x->array[1])
1760 return 0;
1761 /* Fall through. */
1762 case 1:
1763 return !x->array[0];
1764 default:
1765 abort ();
1766 }
1767 }
1768
1769 static INLINE int
1770 cpu_flags_equal (const union i386_cpu_flags *x,
1771 const union i386_cpu_flags *y)
1772 {
1773 switch (ARRAY_SIZE(x->array))
1774 {
1775 case 4:
1776 if (x->array[3] != y->array[3])
1777 return 0;
1778 /* Fall through. */
1779 case 3:
1780 if (x->array[2] != y->array[2])
1781 return 0;
1782 /* Fall through. */
1783 case 2:
1784 if (x->array[1] != y->array[1])
1785 return 0;
1786 /* Fall through. */
1787 case 1:
1788 return x->array[0] == y->array[0];
1789 break;
1790 default:
1791 abort ();
1792 }
1793 }
1794
1795 static INLINE int
1796 cpu_flags_check_cpu64 (i386_cpu_flags f)
1797 {
1798 return !((flag_code == CODE_64BIT && f.bitfield.cpuno64)
1799 || (flag_code != CODE_64BIT && f.bitfield.cpu64));
1800 }
1801
1802 static INLINE i386_cpu_flags
1803 cpu_flags_and (i386_cpu_flags x, i386_cpu_flags y)
1804 {
1805 switch (ARRAY_SIZE (x.array))
1806 {
1807 case 4:
1808 x.array [3] &= y.array [3];
1809 /* Fall through. */
1810 case 3:
1811 x.array [2] &= y.array [2];
1812 /* Fall through. */
1813 case 2:
1814 x.array [1] &= y.array [1];
1815 /* Fall through. */
1816 case 1:
1817 x.array [0] &= y.array [0];
1818 break;
1819 default:
1820 abort ();
1821 }
1822 return x;
1823 }
1824
1825 static INLINE i386_cpu_flags
1826 cpu_flags_or (i386_cpu_flags x, i386_cpu_flags y)
1827 {
1828 switch (ARRAY_SIZE (x.array))
1829 {
1830 case 4:
1831 x.array [3] |= y.array [3];
1832 /* Fall through. */
1833 case 3:
1834 x.array [2] |= y.array [2];
1835 /* Fall through. */
1836 case 2:
1837 x.array [1] |= y.array [1];
1838 /* Fall through. */
1839 case 1:
1840 x.array [0] |= y.array [0];
1841 break;
1842 default:
1843 abort ();
1844 }
1845 return x;
1846 }
1847
1848 static INLINE i386_cpu_flags
1849 cpu_flags_and_not (i386_cpu_flags x, i386_cpu_flags y)
1850 {
1851 switch (ARRAY_SIZE (x.array))
1852 {
1853 case 4:
1854 x.array [3] &= ~y.array [3];
1855 /* Fall through. */
1856 case 3:
1857 x.array [2] &= ~y.array [2];
1858 /* Fall through. */
1859 case 2:
1860 x.array [1] &= ~y.array [1];
1861 /* Fall through. */
1862 case 1:
1863 x.array [0] &= ~y.array [0];
1864 break;
1865 default:
1866 abort ();
1867 }
1868 return x;
1869 }
1870
1871 static const i386_cpu_flags avx512 = CPU_ANY_AVX512F_FLAGS;
1872
1873 #define CPU_FLAGS_ARCH_MATCH 0x1
1874 #define CPU_FLAGS_64BIT_MATCH 0x2
1875
1876 #define CPU_FLAGS_PERFECT_MATCH \
1877 (CPU_FLAGS_ARCH_MATCH | CPU_FLAGS_64BIT_MATCH)
1878
1879 /* Return CPU flags match bits. */
1880
1881 static int
1882 cpu_flags_match (const insn_template *t)
1883 {
1884 i386_cpu_flags x = t->cpu_flags;
1885 int match = cpu_flags_check_cpu64 (x) ? CPU_FLAGS_64BIT_MATCH : 0;
1886
1887 x.bitfield.cpu64 = 0;
1888 x.bitfield.cpuno64 = 0;
1889
1890 if (cpu_flags_all_zero (&x))
1891 {
1892 /* This instruction is available on all archs. */
1893 match |= CPU_FLAGS_ARCH_MATCH;
1894 }
1895 else
1896 {
1897 /* This instruction is available only on some archs. */
1898 i386_cpu_flags cpu = cpu_arch_flags;
1899
1900 /* AVX512VL is no standalone feature - match it and then strip it. */
1901 if (x.bitfield.cpuavx512vl && !cpu.bitfield.cpuavx512vl)
1902 return match;
1903 x.bitfield.cpuavx512vl = 0;
1904
1905 cpu = cpu_flags_and (x, cpu);
1906 if (!cpu_flags_all_zero (&cpu))
1907 {
1908 if (x.bitfield.cpuavx)
1909 {
1910 /* We need to check a few extra flags with AVX. */
1911 if (cpu.bitfield.cpuavx
1912 && (!t->opcode_modifier.sse2avx || sse2avx)
1913 && (!x.bitfield.cpuaes || cpu.bitfield.cpuaes)
1914 && (!x.bitfield.cpugfni || cpu.bitfield.cpugfni)
1915 && (!x.bitfield.cpupclmul || cpu.bitfield.cpupclmul))
1916 match |= CPU_FLAGS_ARCH_MATCH;
1917 }
1918 else if (x.bitfield.cpuavx512f)
1919 {
1920 /* We need to check a few extra flags with AVX512F. */
1921 if (cpu.bitfield.cpuavx512f
1922 && (!x.bitfield.cpugfni || cpu.bitfield.cpugfni)
1923 && (!x.bitfield.cpuvaes || cpu.bitfield.cpuvaes)
1924 && (!x.bitfield.cpuvpclmulqdq || cpu.bitfield.cpuvpclmulqdq))
1925 match |= CPU_FLAGS_ARCH_MATCH;
1926 }
1927 else
1928 match |= CPU_FLAGS_ARCH_MATCH;
1929 }
1930 }
1931 return match;
1932 }
1933
1934 static INLINE i386_operand_type
1935 operand_type_and (i386_operand_type x, i386_operand_type y)
1936 {
1937 if (x.bitfield.class != y.bitfield.class)
1938 x.bitfield.class = ClassNone;
1939 if (x.bitfield.instance != y.bitfield.instance)
1940 x.bitfield.instance = InstanceNone;
1941
1942 switch (ARRAY_SIZE (x.array))
1943 {
1944 case 3:
1945 x.array [2] &= y.array [2];
1946 /* Fall through. */
1947 case 2:
1948 x.array [1] &= y.array [1];
1949 /* Fall through. */
1950 case 1:
1951 x.array [0] &= y.array [0];
1952 break;
1953 default:
1954 abort ();
1955 }
1956 return x;
1957 }
1958
1959 static INLINE i386_operand_type
1960 operand_type_and_not (i386_operand_type x, i386_operand_type y)
1961 {
1962 gas_assert (y.bitfield.class == ClassNone);
1963 gas_assert (y.bitfield.instance == InstanceNone);
1964
1965 switch (ARRAY_SIZE (x.array))
1966 {
1967 case 3:
1968 x.array [2] &= ~y.array [2];
1969 /* Fall through. */
1970 case 2:
1971 x.array [1] &= ~y.array [1];
1972 /* Fall through. */
1973 case 1:
1974 x.array [0] &= ~y.array [0];
1975 break;
1976 default:
1977 abort ();
1978 }
1979 return x;
1980 }
1981
1982 static INLINE i386_operand_type
1983 operand_type_or (i386_operand_type x, i386_operand_type y)
1984 {
1985 gas_assert (x.bitfield.class == ClassNone ||
1986 y.bitfield.class == ClassNone ||
1987 x.bitfield.class == y.bitfield.class);
1988 gas_assert (x.bitfield.instance == InstanceNone ||
1989 y.bitfield.instance == InstanceNone ||
1990 x.bitfield.instance == y.bitfield.instance);
1991
1992 switch (ARRAY_SIZE (x.array))
1993 {
1994 case 3:
1995 x.array [2] |= y.array [2];
1996 /* Fall through. */
1997 case 2:
1998 x.array [1] |= y.array [1];
1999 /* Fall through. */
2000 case 1:
2001 x.array [0] |= y.array [0];
2002 break;
2003 default:
2004 abort ();
2005 }
2006 return x;
2007 }
2008
2009 static INLINE i386_operand_type
2010 operand_type_xor (i386_operand_type x, i386_operand_type y)
2011 {
2012 gas_assert (y.bitfield.class == ClassNone);
2013 gas_assert (y.bitfield.instance == InstanceNone);
2014
2015 switch (ARRAY_SIZE (x.array))
2016 {
2017 case 3:
2018 x.array [2] ^= y.array [2];
2019 /* Fall through. */
2020 case 2:
2021 x.array [1] ^= y.array [1];
2022 /* Fall through. */
2023 case 1:
2024 x.array [0] ^= y.array [0];
2025 break;
2026 default:
2027 abort ();
2028 }
2029 return x;
2030 }
2031
2032 static const i386_operand_type disp16 = OPERAND_TYPE_DISP16;
2033 static const i386_operand_type disp32 = OPERAND_TYPE_DISP32;
2034 static const i386_operand_type disp32s = OPERAND_TYPE_DISP32S;
2035 static const i386_operand_type disp16_32 = OPERAND_TYPE_DISP16_32;
2036 static const i386_operand_type anydisp = OPERAND_TYPE_ANYDISP;
2037 static const i386_operand_type anyimm = OPERAND_TYPE_ANYIMM;
2038 static const i386_operand_type regxmm = OPERAND_TYPE_REGXMM;
2039 static const i386_operand_type regmask = OPERAND_TYPE_REGMASK;
2040 static const i386_operand_type imm8 = OPERAND_TYPE_IMM8;
2041 static const i386_operand_type imm8s = OPERAND_TYPE_IMM8S;
2042 static const i386_operand_type imm16 = OPERAND_TYPE_IMM16;
2043 static const i386_operand_type imm32 = OPERAND_TYPE_IMM32;
2044 static const i386_operand_type imm32s = OPERAND_TYPE_IMM32S;
2045 static const i386_operand_type imm64 = OPERAND_TYPE_IMM64;
2046 static const i386_operand_type imm16_32 = OPERAND_TYPE_IMM16_32;
2047 static const i386_operand_type imm16_32s = OPERAND_TYPE_IMM16_32S;
2048 static const i386_operand_type imm16_32_32s = OPERAND_TYPE_IMM16_32_32S;
2049
2050 enum operand_type
2051 {
2052 reg,
2053 imm,
2054 disp,
2055 anymem
2056 };
2057
2058 static INLINE int
2059 operand_type_check (i386_operand_type t, enum operand_type c)
2060 {
2061 switch (c)
2062 {
2063 case reg:
2064 return t.bitfield.class == Reg;
2065
2066 case imm:
2067 return (t.bitfield.imm8
2068 || t.bitfield.imm8s
2069 || t.bitfield.imm16
2070 || t.bitfield.imm32
2071 || t.bitfield.imm32s
2072 || t.bitfield.imm64);
2073
2074 case disp:
2075 return (t.bitfield.disp8
2076 || t.bitfield.disp16
2077 || t.bitfield.disp32
2078 || t.bitfield.disp32s
2079 || t.bitfield.disp64);
2080
2081 case anymem:
2082 return (t.bitfield.disp8
2083 || t.bitfield.disp16
2084 || t.bitfield.disp32
2085 || t.bitfield.disp32s
2086 || t.bitfield.disp64
2087 || t.bitfield.baseindex);
2088
2089 default:
2090 abort ();
2091 }
2092
2093 return 0;
2094 }
2095
2096 /* Return 1 if there is no conflict in 8bit/16bit/32bit/64bit/80bit size
2097 between operand GIVEN and opeand WANTED for instruction template T. */
2098
2099 static INLINE int
2100 match_operand_size (const insn_template *t, unsigned int wanted,
2101 unsigned int given)
2102 {
2103 return !((i.types[given].bitfield.byte
2104 && !t->operand_types[wanted].bitfield.byte)
2105 || (i.types[given].bitfield.word
2106 && !t->operand_types[wanted].bitfield.word)
2107 || (i.types[given].bitfield.dword
2108 && !t->operand_types[wanted].bitfield.dword)
2109 || (i.types[given].bitfield.qword
2110 && !t->operand_types[wanted].bitfield.qword)
2111 || (i.types[given].bitfield.tbyte
2112 && !t->operand_types[wanted].bitfield.tbyte));
2113 }
2114
2115 /* Return 1 if there is no conflict in SIMD register between operand
2116 GIVEN and opeand WANTED for instruction template T. */
2117
2118 static INLINE int
2119 match_simd_size (const insn_template *t, unsigned int wanted,
2120 unsigned int given)
2121 {
2122 return !((i.types[given].bitfield.xmmword
2123 && !t->operand_types[wanted].bitfield.xmmword)
2124 || (i.types[given].bitfield.ymmword
2125 && !t->operand_types[wanted].bitfield.ymmword)
2126 || (i.types[given].bitfield.zmmword
2127 && !t->operand_types[wanted].bitfield.zmmword));
2128 }
2129
2130 /* Return 1 if there is no conflict in any size between operand GIVEN
2131 and opeand WANTED for instruction template T. */
2132
2133 static INLINE int
2134 match_mem_size (const insn_template *t, unsigned int wanted,
2135 unsigned int given)
2136 {
2137 return (match_operand_size (t, wanted, given)
2138 && !((i.types[given].bitfield.unspecified
2139 && !i.broadcast
2140 && !t->operand_types[wanted].bitfield.unspecified)
2141 || (i.types[given].bitfield.fword
2142 && !t->operand_types[wanted].bitfield.fword)
2143 /* For scalar opcode templates to allow register and memory
2144 operands at the same time, some special casing is needed
2145 here. Also for v{,p}broadcast*, {,v}pmov{s,z}*, and
2146 down-conversion vpmov*. */
2147 || ((t->operand_types[wanted].bitfield.class == RegSIMD
2148 && !t->opcode_modifier.broadcast
2149 && (t->operand_types[wanted].bitfield.byte
2150 || t->operand_types[wanted].bitfield.word
2151 || t->operand_types[wanted].bitfield.dword
2152 || t->operand_types[wanted].bitfield.qword))
2153 ? (i.types[given].bitfield.xmmword
2154 || i.types[given].bitfield.ymmword
2155 || i.types[given].bitfield.zmmword)
2156 : !match_simd_size(t, wanted, given))));
2157 }
2158
2159 /* Return value has MATCH_STRAIGHT set if there is no size conflict on any
2160 operands for instruction template T, and it has MATCH_REVERSE set if there
2161 is no size conflict on any operands for the template with operands reversed
2162 (and the template allows for reversing in the first place). */
2163
2164 #define MATCH_STRAIGHT 1
2165 #define MATCH_REVERSE 2
2166
2167 static INLINE unsigned int
2168 operand_size_match (const insn_template *t)
2169 {
2170 unsigned int j, match = MATCH_STRAIGHT;
2171
2172 /* Don't check non-absolute jump instructions. */
2173 if (t->opcode_modifier.jump
2174 && t->opcode_modifier.jump != JUMP_ABSOLUTE)
2175 return match;
2176
2177 /* Check memory and accumulator operand size. */
2178 for (j = 0; j < i.operands; j++)
2179 {
2180 if (i.types[j].bitfield.class != Reg
2181 && i.types[j].bitfield.class != RegSIMD
2182 && t->opcode_modifier.anysize)
2183 continue;
2184
2185 if (t->operand_types[j].bitfield.class == Reg
2186 && !match_operand_size (t, j, j))
2187 {
2188 match = 0;
2189 break;
2190 }
2191
2192 if (t->operand_types[j].bitfield.class == RegSIMD
2193 && !match_simd_size (t, j, j))
2194 {
2195 match = 0;
2196 break;
2197 }
2198
2199 if (t->operand_types[j].bitfield.instance == Accum
2200 && (!match_operand_size (t, j, j) || !match_simd_size (t, j, j)))
2201 {
2202 match = 0;
2203 break;
2204 }
2205
2206 if ((i.flags[j] & Operand_Mem) && !match_mem_size (t, j, j))
2207 {
2208 match = 0;
2209 break;
2210 }
2211 }
2212
2213 if (!t->opcode_modifier.d)
2214 {
2215 mismatch:
2216 if (!match)
2217 i.error = operand_size_mismatch;
2218 return match;
2219 }
2220
2221 /* Check reverse. */
2222 gas_assert (i.operands >= 2 && i.operands <= 3);
2223
2224 for (j = 0; j < i.operands; j++)
2225 {
2226 unsigned int given = i.operands - j - 1;
2227
2228 if (t->operand_types[j].bitfield.class == Reg
2229 && !match_operand_size (t, j, given))
2230 goto mismatch;
2231
2232 if (t->operand_types[j].bitfield.class == RegSIMD
2233 && !match_simd_size (t, j, given))
2234 goto mismatch;
2235
2236 if (t->operand_types[j].bitfield.instance == Accum
2237 && (!match_operand_size (t, j, given)
2238 || !match_simd_size (t, j, given)))
2239 goto mismatch;
2240
2241 if ((i.flags[given] & Operand_Mem) && !match_mem_size (t, j, given))
2242 goto mismatch;
2243 }
2244
2245 return match | MATCH_REVERSE;
2246 }
2247
2248 static INLINE int
2249 operand_type_match (i386_operand_type overlap,
2250 i386_operand_type given)
2251 {
2252 i386_operand_type temp = overlap;
2253
2254 temp.bitfield.unspecified = 0;
2255 temp.bitfield.byte = 0;
2256 temp.bitfield.word = 0;
2257 temp.bitfield.dword = 0;
2258 temp.bitfield.fword = 0;
2259 temp.bitfield.qword = 0;
2260 temp.bitfield.tbyte = 0;
2261 temp.bitfield.xmmword = 0;
2262 temp.bitfield.ymmword = 0;
2263 temp.bitfield.zmmword = 0;
2264 if (operand_type_all_zero (&temp))
2265 goto mismatch;
2266
2267 if (given.bitfield.baseindex == overlap.bitfield.baseindex)
2268 return 1;
2269
2270 mismatch:
2271 i.error = operand_type_mismatch;
2272 return 0;
2273 }
2274
2275 /* If given types g0 and g1 are registers they must be of the same type
2276 unless the expected operand type register overlap is null.
2277 Some Intel syntax memory operand size checking also happens here. */
2278
2279 static INLINE int
2280 operand_type_register_match (i386_operand_type g0,
2281 i386_operand_type t0,
2282 i386_operand_type g1,
2283 i386_operand_type t1)
2284 {
2285 if (g0.bitfield.class != Reg
2286 && g0.bitfield.class != RegSIMD
2287 && (!operand_type_check (g0, anymem)
2288 || g0.bitfield.unspecified
2289 || (t0.bitfield.class != Reg
2290 && t0.bitfield.class != RegSIMD)))
2291 return 1;
2292
2293 if (g1.bitfield.class != Reg
2294 && g1.bitfield.class != RegSIMD
2295 && (!operand_type_check (g1, anymem)
2296 || g1.bitfield.unspecified
2297 || (t1.bitfield.class != Reg
2298 && t1.bitfield.class != RegSIMD)))
2299 return 1;
2300
2301 if (g0.bitfield.byte == g1.bitfield.byte
2302 && g0.bitfield.word == g1.bitfield.word
2303 && g0.bitfield.dword == g1.bitfield.dword
2304 && g0.bitfield.qword == g1.bitfield.qword
2305 && g0.bitfield.xmmword == g1.bitfield.xmmword
2306 && g0.bitfield.ymmword == g1.bitfield.ymmword
2307 && g0.bitfield.zmmword == g1.bitfield.zmmword)
2308 return 1;
2309
2310 if (!(t0.bitfield.byte & t1.bitfield.byte)
2311 && !(t0.bitfield.word & t1.bitfield.word)
2312 && !(t0.bitfield.dword & t1.bitfield.dword)
2313 && !(t0.bitfield.qword & t1.bitfield.qword)
2314 && !(t0.bitfield.xmmword & t1.bitfield.xmmword)
2315 && !(t0.bitfield.ymmword & t1.bitfield.ymmword)
2316 && !(t0.bitfield.zmmword & t1.bitfield.zmmword))
2317 return 1;
2318
2319 i.error = register_type_mismatch;
2320
2321 return 0;
2322 }
2323
2324 static INLINE unsigned int
2325 register_number (const reg_entry *r)
2326 {
2327 unsigned int nr = r->reg_num;
2328
2329 if (r->reg_flags & RegRex)
2330 nr += 8;
2331
2332 if (r->reg_flags & RegVRex)
2333 nr += 16;
2334
2335 return nr;
2336 }
2337
2338 static INLINE unsigned int
2339 mode_from_disp_size (i386_operand_type t)
2340 {
2341 if (t.bitfield.disp8)
2342 return 1;
2343 else if (t.bitfield.disp16
2344 || t.bitfield.disp32
2345 || t.bitfield.disp32s)
2346 return 2;
2347 else
2348 return 0;
2349 }
2350
2351 static INLINE int
2352 fits_in_signed_byte (addressT num)
2353 {
2354 return num + 0x80 <= 0xff;
2355 }
2356
2357 static INLINE int
2358 fits_in_unsigned_byte (addressT num)
2359 {
2360 return num <= 0xff;
2361 }
2362
2363 static INLINE int
2364 fits_in_unsigned_word (addressT num)
2365 {
2366 return num <= 0xffff;
2367 }
2368
2369 static INLINE int
2370 fits_in_signed_word (addressT num)
2371 {
2372 return num + 0x8000 <= 0xffff;
2373 }
2374
2375 static INLINE int
2376 fits_in_signed_long (addressT num ATTRIBUTE_UNUSED)
2377 {
2378 #ifndef BFD64
2379 return 1;
2380 #else
2381 return num + 0x80000000 <= 0xffffffff;
2382 #endif
2383 } /* fits_in_signed_long() */
2384
2385 static INLINE int
2386 fits_in_unsigned_long (addressT num ATTRIBUTE_UNUSED)
2387 {
2388 #ifndef BFD64
2389 return 1;
2390 #else
2391 return num <= 0xffffffff;
2392 #endif
2393 } /* fits_in_unsigned_long() */
2394
2395 static INLINE int
2396 fits_in_disp8 (offsetT num)
2397 {
2398 int shift = i.memshift;
2399 unsigned int mask;
2400
2401 if (shift == -1)
2402 abort ();
2403
2404 mask = (1 << shift) - 1;
2405
2406 /* Return 0 if NUM isn't properly aligned. */
2407 if ((num & mask))
2408 return 0;
2409
2410 /* Check if NUM will fit in 8bit after shift. */
2411 return fits_in_signed_byte (num >> shift);
2412 }
2413
2414 static INLINE int
2415 fits_in_imm4 (offsetT num)
2416 {
2417 return (num & 0xf) == num;
2418 }
2419
2420 static i386_operand_type
2421 smallest_imm_type (offsetT num)
2422 {
2423 i386_operand_type t;
2424
2425 operand_type_set (&t, 0);
2426 t.bitfield.imm64 = 1;
2427
2428 if (cpu_arch_tune != PROCESSOR_I486 && num == 1)
2429 {
2430 /* This code is disabled on the 486 because all the Imm1 forms
2431 in the opcode table are slower on the i486. They're the
2432 versions with the implicitly specified single-position
2433 displacement, which has another syntax if you really want to
2434 use that form. */
2435 t.bitfield.imm1 = 1;
2436 t.bitfield.imm8 = 1;
2437 t.bitfield.imm8s = 1;
2438 t.bitfield.imm16 = 1;
2439 t.bitfield.imm32 = 1;
2440 t.bitfield.imm32s = 1;
2441 }
2442 else if (fits_in_signed_byte (num))
2443 {
2444 t.bitfield.imm8 = 1;
2445 t.bitfield.imm8s = 1;
2446 t.bitfield.imm16 = 1;
2447 t.bitfield.imm32 = 1;
2448 t.bitfield.imm32s = 1;
2449 }
2450 else if (fits_in_unsigned_byte (num))
2451 {
2452 t.bitfield.imm8 = 1;
2453 t.bitfield.imm16 = 1;
2454 t.bitfield.imm32 = 1;
2455 t.bitfield.imm32s = 1;
2456 }
2457 else if (fits_in_signed_word (num) || fits_in_unsigned_word (num))
2458 {
2459 t.bitfield.imm16 = 1;
2460 t.bitfield.imm32 = 1;
2461 t.bitfield.imm32s = 1;
2462 }
2463 else if (fits_in_signed_long (num))
2464 {
2465 t.bitfield.imm32 = 1;
2466 t.bitfield.imm32s = 1;
2467 }
2468 else if (fits_in_unsigned_long (num))
2469 t.bitfield.imm32 = 1;
2470
2471 return t;
2472 }
2473
2474 static offsetT
2475 offset_in_range (offsetT val, int size)
2476 {
2477 addressT mask;
2478
2479 switch (size)
2480 {
2481 case 1: mask = ((addressT) 1 << 8) - 1; break;
2482 case 2: mask = ((addressT) 1 << 16) - 1; break;
2483 case 4: mask = ((addressT) 2 << 31) - 1; break;
2484 #ifdef BFD64
2485 case 8: mask = ((addressT) 2 << 63) - 1; break;
2486 #endif
2487 default: abort ();
2488 }
2489
2490 #ifdef BFD64
2491 /* If BFD64, sign extend val for 32bit address mode. */
2492 if (flag_code != CODE_64BIT
2493 || i.prefix[ADDR_PREFIX])
2494 if ((val & ~(((addressT) 2 << 31) - 1)) == 0)
2495 val = (val ^ ((addressT) 1 << 31)) - ((addressT) 1 << 31);
2496 #endif
2497
2498 if ((val & ~mask) != 0 && (val & ~mask) != ~mask)
2499 {
2500 char buf1[40], buf2[40];
2501
2502 sprint_value (buf1, val);
2503 sprint_value (buf2, val & mask);
2504 as_warn (_("%s shortened to %s"), buf1, buf2);
2505 }
2506 return val & mask;
2507 }
2508
2509 enum PREFIX_GROUP
2510 {
2511 PREFIX_EXIST = 0,
2512 PREFIX_LOCK,
2513 PREFIX_REP,
2514 PREFIX_DS,
2515 PREFIX_OTHER
2516 };
2517
2518 /* Returns
2519 a. PREFIX_EXIST if attempting to add a prefix where one from the
2520 same class already exists.
2521 b. PREFIX_LOCK if lock prefix is added.
2522 c. PREFIX_REP if rep/repne prefix is added.
2523 d. PREFIX_DS if ds prefix is added.
2524 e. PREFIX_OTHER if other prefix is added.
2525 */
2526
2527 static enum PREFIX_GROUP
2528 add_prefix (unsigned int prefix)
2529 {
2530 enum PREFIX_GROUP ret = PREFIX_OTHER;
2531 unsigned int q;
2532
2533 if (prefix >= REX_OPCODE && prefix < REX_OPCODE + 16
2534 && flag_code == CODE_64BIT)
2535 {
2536 if ((i.prefix[REX_PREFIX] & prefix & REX_W)
2537 || (i.prefix[REX_PREFIX] & prefix & REX_R)
2538 || (i.prefix[REX_PREFIX] & prefix & REX_X)
2539 || (i.prefix[REX_PREFIX] & prefix & REX_B))
2540 ret = PREFIX_EXIST;
2541 q = REX_PREFIX;
2542 }
2543 else
2544 {
2545 switch (prefix)
2546 {
2547 default:
2548 abort ();
2549
2550 case DS_PREFIX_OPCODE:
2551 ret = PREFIX_DS;
2552 /* Fall through. */
2553 case CS_PREFIX_OPCODE:
2554 case ES_PREFIX_OPCODE:
2555 case FS_PREFIX_OPCODE:
2556 case GS_PREFIX_OPCODE:
2557 case SS_PREFIX_OPCODE:
2558 q = SEG_PREFIX;
2559 break;
2560
2561 case REPNE_PREFIX_OPCODE:
2562 case REPE_PREFIX_OPCODE:
2563 q = REP_PREFIX;
2564 ret = PREFIX_REP;
2565 break;
2566
2567 case LOCK_PREFIX_OPCODE:
2568 q = LOCK_PREFIX;
2569 ret = PREFIX_LOCK;
2570 break;
2571
2572 case FWAIT_OPCODE:
2573 q = WAIT_PREFIX;
2574 break;
2575
2576 case ADDR_PREFIX_OPCODE:
2577 q = ADDR_PREFIX;
2578 break;
2579
2580 case DATA_PREFIX_OPCODE:
2581 q = DATA_PREFIX;
2582 break;
2583 }
2584 if (i.prefix[q] != 0)
2585 ret = PREFIX_EXIST;
2586 }
2587
2588 if (ret)
2589 {
2590 if (!i.prefix[q])
2591 ++i.prefixes;
2592 i.prefix[q] |= prefix;
2593 }
2594 else
2595 as_bad (_("same type of prefix used twice"));
2596
2597 return ret;
2598 }
2599
2600 static void
2601 update_code_flag (int value, int check)
2602 {
2603 PRINTF_LIKE ((*as_error));
2604
2605 flag_code = (enum flag_code) value;
2606 if (flag_code == CODE_64BIT)
2607 {
2608 cpu_arch_flags.bitfield.cpu64 = 1;
2609 cpu_arch_flags.bitfield.cpuno64 = 0;
2610 }
2611 else
2612 {
2613 cpu_arch_flags.bitfield.cpu64 = 0;
2614 cpu_arch_flags.bitfield.cpuno64 = 1;
2615 }
2616 if (value == CODE_64BIT && !cpu_arch_flags.bitfield.cpulm )
2617 {
2618 if (check)
2619 as_error = as_fatal;
2620 else
2621 as_error = as_bad;
2622 (*as_error) (_("64bit mode not supported on `%s'."),
2623 cpu_arch_name ? cpu_arch_name : default_arch);
2624 }
2625 if (value == CODE_32BIT && !cpu_arch_flags.bitfield.cpui386)
2626 {
2627 if (check)
2628 as_error = as_fatal;
2629 else
2630 as_error = as_bad;
2631 (*as_error) (_("32bit mode not supported on `%s'."),
2632 cpu_arch_name ? cpu_arch_name : default_arch);
2633 }
2634 stackop_size = '\0';
2635 }
2636
2637 static void
2638 set_code_flag (int value)
2639 {
2640 update_code_flag (value, 0);
2641 }
2642
2643 static void
2644 set_16bit_gcc_code_flag (int new_code_flag)
2645 {
2646 flag_code = (enum flag_code) new_code_flag;
2647 if (flag_code != CODE_16BIT)
2648 abort ();
2649 cpu_arch_flags.bitfield.cpu64 = 0;
2650 cpu_arch_flags.bitfield.cpuno64 = 1;
2651 stackop_size = LONG_MNEM_SUFFIX;
2652 }
2653
2654 static void
2655 set_intel_syntax (int syntax_flag)
2656 {
2657 /* Find out if register prefixing is specified. */
2658 int ask_naked_reg = 0;
2659
2660 SKIP_WHITESPACE ();
2661 if (!is_end_of_line[(unsigned char) *input_line_pointer])
2662 {
2663 char *string;
2664 int e = get_symbol_name (&string);
2665
2666 if (strcmp (string, "prefix") == 0)
2667 ask_naked_reg = 1;
2668 else if (strcmp (string, "noprefix") == 0)
2669 ask_naked_reg = -1;
2670 else
2671 as_bad (_("bad argument to syntax directive."));
2672 (void) restore_line_pointer (e);
2673 }
2674 demand_empty_rest_of_line ();
2675
2676 intel_syntax = syntax_flag;
2677
2678 if (ask_naked_reg == 0)
2679 allow_naked_reg = (intel_syntax
2680 && (bfd_get_symbol_leading_char (stdoutput) != '\0'));
2681 else
2682 allow_naked_reg = (ask_naked_reg < 0);
2683
2684 expr_set_rank (O_full_ptr, syntax_flag ? 10 : 0);
2685
2686 identifier_chars['%'] = intel_syntax && allow_naked_reg ? '%' : 0;
2687 identifier_chars['$'] = intel_syntax ? '$' : 0;
2688 register_prefix = allow_naked_reg ? "" : "%";
2689 }
2690
2691 static void
2692 set_intel_mnemonic (int mnemonic_flag)
2693 {
2694 intel_mnemonic = mnemonic_flag;
2695 }
2696
2697 static void
2698 set_allow_index_reg (int flag)
2699 {
2700 allow_index_reg = flag;
2701 }
2702
2703 static void
2704 set_check (int what)
2705 {
2706 enum check_kind *kind;
2707 const char *str;
2708
2709 if (what)
2710 {
2711 kind = &operand_check;
2712 str = "operand";
2713 }
2714 else
2715 {
2716 kind = &sse_check;
2717 str = "sse";
2718 }
2719
2720 SKIP_WHITESPACE ();
2721
2722 if (!is_end_of_line[(unsigned char) *input_line_pointer])
2723 {
2724 char *string;
2725 int e = get_symbol_name (&string);
2726
2727 if (strcmp (string, "none") == 0)
2728 *kind = check_none;
2729 else if (strcmp (string, "warning") == 0)
2730 *kind = check_warning;
2731 else if (strcmp (string, "error") == 0)
2732 *kind = check_error;
2733 else
2734 as_bad (_("bad argument to %s_check directive."), str);
2735 (void) restore_line_pointer (e);
2736 }
2737 else
2738 as_bad (_("missing argument for %s_check directive"), str);
2739
2740 demand_empty_rest_of_line ();
2741 }
2742
2743 static void
2744 check_cpu_arch_compatible (const char *name ATTRIBUTE_UNUSED,
2745 i386_cpu_flags new_flag ATTRIBUTE_UNUSED)
2746 {
2747 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
2748 static const char *arch;
2749
2750 /* Intel LIOM is only supported on ELF. */
2751 if (!IS_ELF)
2752 return;
2753
2754 if (!arch)
2755 {
2756 /* Use cpu_arch_name if it is set in md_parse_option. Otherwise
2757 use default_arch. */
2758 arch = cpu_arch_name;
2759 if (!arch)
2760 arch = default_arch;
2761 }
2762
2763 /* If we are targeting Intel MCU, we must enable it. */
2764 if (get_elf_backend_data (stdoutput)->elf_machine_code != EM_IAMCU
2765 || new_flag.bitfield.cpuiamcu)
2766 return;
2767
2768 /* If we are targeting Intel L1OM, we must enable it. */
2769 if (get_elf_backend_data (stdoutput)->elf_machine_code != EM_L1OM
2770 || new_flag.bitfield.cpul1om)
2771 return;
2772
2773 /* If we are targeting Intel K1OM, we must enable it. */
2774 if (get_elf_backend_data (stdoutput)->elf_machine_code != EM_K1OM
2775 || new_flag.bitfield.cpuk1om)
2776 return;
2777
2778 as_bad (_("`%s' is not supported on `%s'"), name, arch);
2779 #endif
2780 }
2781
2782 static void
2783 set_cpu_arch (int dummy ATTRIBUTE_UNUSED)
2784 {
2785 SKIP_WHITESPACE ();
2786
2787 if (!is_end_of_line[(unsigned char) *input_line_pointer])
2788 {
2789 char *string;
2790 int e = get_symbol_name (&string);
2791 unsigned int j;
2792 i386_cpu_flags flags;
2793
2794 for (j = 0; j < ARRAY_SIZE (cpu_arch); j++)
2795 {
2796 if (strcmp (string, cpu_arch[j].name) == 0)
2797 {
2798 check_cpu_arch_compatible (string, cpu_arch[j].flags);
2799
2800 if (*string != '.')
2801 {
2802 cpu_arch_name = cpu_arch[j].name;
2803 cpu_sub_arch_name = NULL;
2804 cpu_arch_flags = cpu_arch[j].flags;
2805 if (flag_code == CODE_64BIT)
2806 {
2807 cpu_arch_flags.bitfield.cpu64 = 1;
2808 cpu_arch_flags.bitfield.cpuno64 = 0;
2809 }
2810 else
2811 {
2812 cpu_arch_flags.bitfield.cpu64 = 0;
2813 cpu_arch_flags.bitfield.cpuno64 = 1;
2814 }
2815 cpu_arch_isa = cpu_arch[j].type;
2816 cpu_arch_isa_flags = cpu_arch[j].flags;
2817 if (!cpu_arch_tune_set)
2818 {
2819 cpu_arch_tune = cpu_arch_isa;
2820 cpu_arch_tune_flags = cpu_arch_isa_flags;
2821 }
2822 break;
2823 }
2824
2825 flags = cpu_flags_or (cpu_arch_flags,
2826 cpu_arch[j].flags);
2827
2828 if (!cpu_flags_equal (&flags, &cpu_arch_flags))
2829 {
2830 if (cpu_sub_arch_name)
2831 {
2832 char *name = cpu_sub_arch_name;
2833 cpu_sub_arch_name = concat (name,
2834 cpu_arch[j].name,
2835 (const char *) NULL);
2836 free (name);
2837 }
2838 else
2839 cpu_sub_arch_name = xstrdup (cpu_arch[j].name);
2840 cpu_arch_flags = flags;
2841 cpu_arch_isa_flags = flags;
2842 }
2843 else
2844 cpu_arch_isa_flags
2845 = cpu_flags_or (cpu_arch_isa_flags,
2846 cpu_arch[j].flags);
2847 (void) restore_line_pointer (e);
2848 demand_empty_rest_of_line ();
2849 return;
2850 }
2851 }
2852
2853 if (*string == '.' && j >= ARRAY_SIZE (cpu_arch))
2854 {
2855 /* Disable an ISA extension. */
2856 for (j = 0; j < ARRAY_SIZE (cpu_noarch); j++)
2857 if (strcmp (string + 1, cpu_noarch [j].name) == 0)
2858 {
2859 flags = cpu_flags_and_not (cpu_arch_flags,
2860 cpu_noarch[j].flags);
2861 if (!cpu_flags_equal (&flags, &cpu_arch_flags))
2862 {
2863 if (cpu_sub_arch_name)
2864 {
2865 char *name = cpu_sub_arch_name;
2866 cpu_sub_arch_name = concat (name, string,
2867 (const char *) NULL);
2868 free (name);
2869 }
2870 else
2871 cpu_sub_arch_name = xstrdup (string);
2872 cpu_arch_flags = flags;
2873 cpu_arch_isa_flags = flags;
2874 }
2875 (void) restore_line_pointer (e);
2876 demand_empty_rest_of_line ();
2877 return;
2878 }
2879
2880 j = ARRAY_SIZE (cpu_arch);
2881 }
2882
2883 if (j >= ARRAY_SIZE (cpu_arch))
2884 as_bad (_("no such architecture: `%s'"), string);
2885
2886 *input_line_pointer = e;
2887 }
2888 else
2889 as_bad (_("missing cpu architecture"));
2890
2891 no_cond_jump_promotion = 0;
2892 if (*input_line_pointer == ','
2893 && !is_end_of_line[(unsigned char) input_line_pointer[1]])
2894 {
2895 char *string;
2896 char e;
2897
2898 ++input_line_pointer;
2899 e = get_symbol_name (&string);
2900
2901 if (strcmp (string, "nojumps") == 0)
2902 no_cond_jump_promotion = 1;
2903 else if (strcmp (string, "jumps") == 0)
2904 ;
2905 else
2906 as_bad (_("no such architecture modifier: `%s'"), string);
2907
2908 (void) restore_line_pointer (e);
2909 }
2910
2911 demand_empty_rest_of_line ();
2912 }
2913
2914 enum bfd_architecture
2915 i386_arch (void)
2916 {
2917 if (cpu_arch_isa == PROCESSOR_L1OM)
2918 {
2919 if (OUTPUT_FLAVOR != bfd_target_elf_flavour
2920 || flag_code != CODE_64BIT)
2921 as_fatal (_("Intel L1OM is 64bit ELF only"));
2922 return bfd_arch_l1om;
2923 }
2924 else if (cpu_arch_isa == PROCESSOR_K1OM)
2925 {
2926 if (OUTPUT_FLAVOR != bfd_target_elf_flavour
2927 || flag_code != CODE_64BIT)
2928 as_fatal (_("Intel K1OM is 64bit ELF only"));
2929 return bfd_arch_k1om;
2930 }
2931 else if (cpu_arch_isa == PROCESSOR_IAMCU)
2932 {
2933 if (OUTPUT_FLAVOR != bfd_target_elf_flavour
2934 || flag_code == CODE_64BIT)
2935 as_fatal (_("Intel MCU is 32bit ELF only"));
2936 return bfd_arch_iamcu;
2937 }
2938 else
2939 return bfd_arch_i386;
2940 }
2941
2942 unsigned long
2943 i386_mach (void)
2944 {
2945 if (!strncmp (default_arch, "x86_64", 6))
2946 {
2947 if (cpu_arch_isa == PROCESSOR_L1OM)
2948 {
2949 if (OUTPUT_FLAVOR != bfd_target_elf_flavour
2950 || default_arch[6] != '\0')
2951 as_fatal (_("Intel L1OM is 64bit ELF only"));
2952 return bfd_mach_l1om;
2953 }
2954 else if (cpu_arch_isa == PROCESSOR_K1OM)
2955 {
2956 if (OUTPUT_FLAVOR != bfd_target_elf_flavour
2957 || default_arch[6] != '\0')
2958 as_fatal (_("Intel K1OM is 64bit ELF only"));
2959 return bfd_mach_k1om;
2960 }
2961 else if (default_arch[6] == '\0')
2962 return bfd_mach_x86_64;
2963 else
2964 return bfd_mach_x64_32;
2965 }
2966 else if (!strcmp (default_arch, "i386")
2967 || !strcmp (default_arch, "iamcu"))
2968 {
2969 if (cpu_arch_isa == PROCESSOR_IAMCU)
2970 {
2971 if (OUTPUT_FLAVOR != bfd_target_elf_flavour)
2972 as_fatal (_("Intel MCU is 32bit ELF only"));
2973 return bfd_mach_i386_iamcu;
2974 }
2975 else
2976 return bfd_mach_i386_i386;
2977 }
2978 else
2979 as_fatal (_("unknown architecture"));
2980 }
2981 \f
2982 void
2983 md_begin (void)
2984 {
2985 const char *hash_err;
2986
2987 /* Support pseudo prefixes like {disp32}. */
2988 lex_type ['{'] = LEX_BEGIN_NAME;
2989
2990 /* Initialize op_hash hash table. */
2991 op_hash = hash_new ();
2992
2993 {
2994 const insn_template *optab;
2995 templates *core_optab;
2996
2997 /* Setup for loop. */
2998 optab = i386_optab;
2999 core_optab = XNEW (templates);
3000 core_optab->start = optab;
3001
3002 while (1)
3003 {
3004 ++optab;
3005 if (optab->name == NULL
3006 || strcmp (optab->name, (optab - 1)->name) != 0)
3007 {
3008 /* different name --> ship out current template list;
3009 add to hash table; & begin anew. */
3010 core_optab->end = optab;
3011 hash_err = hash_insert (op_hash,
3012 (optab - 1)->name,
3013 (void *) core_optab);
3014 if (hash_err)
3015 {
3016 as_fatal (_("can't hash %s: %s"),
3017 (optab - 1)->name,
3018 hash_err);
3019 }
3020 if (optab->name == NULL)
3021 break;
3022 core_optab = XNEW (templates);
3023 core_optab->start = optab;
3024 }
3025 }
3026 }
3027
3028 /* Initialize reg_hash hash table. */
3029 reg_hash = hash_new ();
3030 {
3031 const reg_entry *regtab;
3032 unsigned int regtab_size = i386_regtab_size;
3033
3034 for (regtab = i386_regtab; regtab_size--; regtab++)
3035 {
3036 hash_err = hash_insert (reg_hash, regtab->reg_name, (void *) regtab);
3037 if (hash_err)
3038 as_fatal (_("can't hash %s: %s"),
3039 regtab->reg_name,
3040 hash_err);
3041 }
3042 }
3043
3044 /* Fill in lexical tables: mnemonic_chars, operand_chars. */
3045 {
3046 int c;
3047 char *p;
3048
3049 for (c = 0; c < 256; c++)
3050 {
3051 if (ISDIGIT (c))
3052 {
3053 digit_chars[c] = c;
3054 mnemonic_chars[c] = c;
3055 register_chars[c] = c;
3056 operand_chars[c] = c;
3057 }
3058 else if (ISLOWER (c))
3059 {
3060 mnemonic_chars[c] = c;
3061 register_chars[c] = c;
3062 operand_chars[c] = c;
3063 }
3064 else if (ISUPPER (c))
3065 {
3066 mnemonic_chars[c] = TOLOWER (c);
3067 register_chars[c] = mnemonic_chars[c];
3068 operand_chars[c] = c;
3069 }
3070 else if (c == '{' || c == '}')
3071 {
3072 mnemonic_chars[c] = c;
3073 operand_chars[c] = c;
3074 }
3075
3076 if (ISALPHA (c) || ISDIGIT (c))
3077 identifier_chars[c] = c;
3078 else if (c >= 128)
3079 {
3080 identifier_chars[c] = c;
3081 operand_chars[c] = c;
3082 }
3083 }
3084
3085 #ifdef LEX_AT
3086 identifier_chars['@'] = '@';
3087 #endif
3088 #ifdef LEX_QM
3089 identifier_chars['?'] = '?';
3090 operand_chars['?'] = '?';
3091 #endif
3092 digit_chars['-'] = '-';
3093 mnemonic_chars['_'] = '_';
3094 mnemonic_chars['-'] = '-';
3095 mnemonic_chars['.'] = '.';
3096 identifier_chars['_'] = '_';
3097 identifier_chars['.'] = '.';
3098
3099 for (p = operand_special_chars; *p != '\0'; p++)
3100 operand_chars[(unsigned char) *p] = *p;
3101 }
3102
3103 if (flag_code == CODE_64BIT)
3104 {
3105 #if defined (OBJ_COFF) && defined (TE_PE)
3106 x86_dwarf2_return_column = (OUTPUT_FLAVOR == bfd_target_coff_flavour
3107 ? 32 : 16);
3108 #else
3109 x86_dwarf2_return_column = 16;
3110 #endif
3111 x86_cie_data_alignment = -8;
3112 }
3113 else
3114 {
3115 x86_dwarf2_return_column = 8;
3116 x86_cie_data_alignment = -4;
3117 }
3118
3119 /* NB: FUSED_JCC_PADDING frag must have sufficient room so that it
3120 can be turned into BRANCH_PREFIX frag. */
3121 if (align_branch_prefix_size > MAX_FUSED_JCC_PADDING_SIZE)
3122 abort ();
3123 }
3124
3125 void
3126 i386_print_statistics (FILE *file)
3127 {
3128 hash_print_statistics (file, "i386 opcode", op_hash);
3129 hash_print_statistics (file, "i386 register", reg_hash);
3130 }
3131 \f
3132 #ifdef DEBUG386
3133
3134 /* Debugging routines for md_assemble. */
3135 static void pte (insn_template *);
3136 static void pt (i386_operand_type);
3137 static void pe (expressionS *);
3138 static void ps (symbolS *);
3139
3140 static void
3141 pi (const char *line, i386_insn *x)
3142 {
3143 unsigned int j;
3144
3145 fprintf (stdout, "%s: template ", line);
3146 pte (&x->tm);
3147 fprintf (stdout, " address: base %s index %s scale %x\n",
3148 x->base_reg ? x->base_reg->reg_name : "none",
3149 x->index_reg ? x->index_reg->reg_name : "none",
3150 x->log2_scale_factor);
3151 fprintf (stdout, " modrm: mode %x reg %x reg/mem %x\n",
3152 x->rm.mode, x->rm.reg, x->rm.regmem);
3153 fprintf (stdout, " sib: base %x index %x scale %x\n",
3154 x->sib.base, x->sib.index, x->sib.scale);
3155 fprintf (stdout, " rex: 64bit %x extX %x extY %x extZ %x\n",
3156 (x->rex & REX_W) != 0,
3157 (x->rex & REX_R) != 0,
3158 (x->rex & REX_X) != 0,
3159 (x->rex & REX_B) != 0);
3160 for (j = 0; j < x->operands; j++)
3161 {
3162 fprintf (stdout, " #%d: ", j + 1);
3163 pt (x->types[j]);
3164 fprintf (stdout, "\n");
3165 if (x->types[j].bitfield.class == Reg
3166 || x->types[j].bitfield.class == RegMMX
3167 || x->types[j].bitfield.class == RegSIMD
3168 || x->types[j].bitfield.class == SReg
3169 || x->types[j].bitfield.class == RegCR
3170 || x->types[j].bitfield.class == RegDR
3171 || x->types[j].bitfield.class == RegTR)
3172 fprintf (stdout, "%s\n", x->op[j].regs->reg_name);
3173 if (operand_type_check (x->types[j], imm))
3174 pe (x->op[j].imms);
3175 if (operand_type_check (x->types[j], disp))
3176 pe (x->op[j].disps);
3177 }
3178 }
3179
3180 static void
3181 pte (insn_template *t)
3182 {
3183 unsigned int j;
3184 fprintf (stdout, " %d operands ", t->operands);
3185 fprintf (stdout, "opcode %x ", t->base_opcode);
3186 if (t->extension_opcode != None)
3187 fprintf (stdout, "ext %x ", t->extension_opcode);
3188 if (t->opcode_modifier.d)
3189 fprintf (stdout, "D");
3190 if (t->opcode_modifier.w)
3191 fprintf (stdout, "W");
3192 fprintf (stdout, "\n");
3193 for (j = 0; j < t->operands; j++)
3194 {
3195 fprintf (stdout, " #%d type ", j + 1);
3196 pt (t->operand_types[j]);
3197 fprintf (stdout, "\n");
3198 }
3199 }
3200
3201 static void
3202 pe (expressionS *e)
3203 {
3204 fprintf (stdout, " operation %d\n", e->X_op);
3205 fprintf (stdout, " add_number %ld (%lx)\n",
3206 (long) e->X_add_number, (long) e->X_add_number);
3207 if (e->X_add_symbol)
3208 {
3209 fprintf (stdout, " add_symbol ");
3210 ps (e->X_add_symbol);
3211 fprintf (stdout, "\n");
3212 }
3213 if (e->X_op_symbol)
3214 {
3215 fprintf (stdout, " op_symbol ");
3216 ps (e->X_op_symbol);
3217 fprintf (stdout, "\n");
3218 }
3219 }
3220
3221 static void
3222 ps (symbolS *s)
3223 {
3224 fprintf (stdout, "%s type %s%s",
3225 S_GET_NAME (s),
3226 S_IS_EXTERNAL (s) ? "EXTERNAL " : "",
3227 segment_name (S_GET_SEGMENT (s)));
3228 }
3229
3230 static struct type_name
3231 {
3232 i386_operand_type mask;
3233 const char *name;
3234 }
3235 const type_names[] =
3236 {
3237 { OPERAND_TYPE_REG8, "r8" },
3238 { OPERAND_TYPE_REG16, "r16" },
3239 { OPERAND_TYPE_REG32, "r32" },
3240 { OPERAND_TYPE_REG64, "r64" },
3241 { OPERAND_TYPE_ACC8, "acc8" },
3242 { OPERAND_TYPE_ACC16, "acc16" },
3243 { OPERAND_TYPE_ACC32, "acc32" },
3244 { OPERAND_TYPE_ACC64, "acc64" },
3245 { OPERAND_TYPE_IMM8, "i8" },
3246 { OPERAND_TYPE_IMM8, "i8s" },
3247 { OPERAND_TYPE_IMM16, "i16" },
3248 { OPERAND_TYPE_IMM32, "i32" },
3249 { OPERAND_TYPE_IMM32S, "i32s" },
3250 { OPERAND_TYPE_IMM64, "i64" },
3251 { OPERAND_TYPE_IMM1, "i1" },
3252 { OPERAND_TYPE_BASEINDEX, "BaseIndex" },
3253 { OPERAND_TYPE_DISP8, "d8" },
3254 { OPERAND_TYPE_DISP16, "d16" },
3255 { OPERAND_TYPE_DISP32, "d32" },
3256 { OPERAND_TYPE_DISP32S, "d32s" },
3257 { OPERAND_TYPE_DISP64, "d64" },
3258 { OPERAND_TYPE_INOUTPORTREG, "InOutPortReg" },
3259 { OPERAND_TYPE_SHIFTCOUNT, "ShiftCount" },
3260 { OPERAND_TYPE_CONTROL, "control reg" },
3261 { OPERAND_TYPE_TEST, "test reg" },
3262 { OPERAND_TYPE_DEBUG, "debug reg" },
3263 { OPERAND_TYPE_FLOATREG, "FReg" },
3264 { OPERAND_TYPE_FLOATACC, "FAcc" },
3265 { OPERAND_TYPE_SREG, "SReg" },
3266 { OPERAND_TYPE_REGMMX, "rMMX" },
3267 { OPERAND_TYPE_REGXMM, "rXMM" },
3268 { OPERAND_TYPE_REGYMM, "rYMM" },
3269 { OPERAND_TYPE_REGZMM, "rZMM" },
3270 { OPERAND_TYPE_REGMASK, "Mask reg" },
3271 };
3272
3273 static void
3274 pt (i386_operand_type t)
3275 {
3276 unsigned int j;
3277 i386_operand_type a;
3278
3279 for (j = 0; j < ARRAY_SIZE (type_names); j++)
3280 {
3281 a = operand_type_and (t, type_names[j].mask);
3282 if (operand_type_equal (&a, &type_names[j].mask))
3283 fprintf (stdout, "%s, ", type_names[j].name);
3284 }
3285 fflush (stdout);
3286 }
3287
3288 #endif /* DEBUG386 */
3289 \f
3290 static bfd_reloc_code_real_type
3291 reloc (unsigned int size,
3292 int pcrel,
3293 int sign,
3294 bfd_reloc_code_real_type other)
3295 {
3296 if (other != NO_RELOC)
3297 {
3298 reloc_howto_type *rel;
3299
3300 if (size == 8)
3301 switch (other)
3302 {
3303 case BFD_RELOC_X86_64_GOT32:
3304 return BFD_RELOC_X86_64_GOT64;
3305 break;
3306 case BFD_RELOC_X86_64_GOTPLT64:
3307 return BFD_RELOC_X86_64_GOTPLT64;
3308 break;
3309 case BFD_RELOC_X86_64_PLTOFF64:
3310 return BFD_RELOC_X86_64_PLTOFF64;
3311 break;
3312 case BFD_RELOC_X86_64_GOTPC32:
3313 other = BFD_RELOC_X86_64_GOTPC64;
3314 break;
3315 case BFD_RELOC_X86_64_GOTPCREL:
3316 other = BFD_RELOC_X86_64_GOTPCREL64;
3317 break;
3318 case BFD_RELOC_X86_64_TPOFF32:
3319 other = BFD_RELOC_X86_64_TPOFF64;
3320 break;
3321 case BFD_RELOC_X86_64_DTPOFF32:
3322 other = BFD_RELOC_X86_64_DTPOFF64;
3323 break;
3324 default:
3325 break;
3326 }
3327
3328 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
3329 if (other == BFD_RELOC_SIZE32)
3330 {
3331 if (size == 8)
3332 other = BFD_RELOC_SIZE64;
3333 if (pcrel)
3334 {
3335 as_bad (_("there are no pc-relative size relocations"));
3336 return NO_RELOC;
3337 }
3338 }
3339 #endif
3340
3341 /* Sign-checking 4-byte relocations in 16-/32-bit code is pointless. */
3342 if (size == 4 && (flag_code != CODE_64BIT || disallow_64bit_reloc))
3343 sign = -1;
3344
3345 rel = bfd_reloc_type_lookup (stdoutput, other);
3346 if (!rel)
3347 as_bad (_("unknown relocation (%u)"), other);
3348 else if (size != bfd_get_reloc_size (rel))
3349 as_bad (_("%u-byte relocation cannot be applied to %u-byte field"),
3350 bfd_get_reloc_size (rel),
3351 size);
3352 else if (pcrel && !rel->pc_relative)
3353 as_bad (_("non-pc-relative relocation for pc-relative field"));
3354 else if ((rel->complain_on_overflow == complain_overflow_signed
3355 && !sign)
3356 || (rel->complain_on_overflow == complain_overflow_unsigned
3357 && sign > 0))
3358 as_bad (_("relocated field and relocation type differ in signedness"));
3359 else
3360 return other;
3361 return NO_RELOC;
3362 }
3363
3364 if (pcrel)
3365 {
3366 if (!sign)
3367 as_bad (_("there are no unsigned pc-relative relocations"));
3368 switch (size)
3369 {
3370 case 1: return BFD_RELOC_8_PCREL;
3371 case 2: return BFD_RELOC_16_PCREL;
3372 case 4: return BFD_RELOC_32_PCREL;
3373 case 8: return BFD_RELOC_64_PCREL;
3374 }
3375 as_bad (_("cannot do %u byte pc-relative relocation"), size);
3376 }
3377 else
3378 {
3379 if (sign > 0)
3380 switch (size)
3381 {
3382 case 4: return BFD_RELOC_X86_64_32S;
3383 }
3384 else
3385 switch (size)
3386 {
3387 case 1: return BFD_RELOC_8;
3388 case 2: return BFD_RELOC_16;
3389 case 4: return BFD_RELOC_32;
3390 case 8: return BFD_RELOC_64;
3391 }
3392 as_bad (_("cannot do %s %u byte relocation"),
3393 sign > 0 ? "signed" : "unsigned", size);
3394 }
3395
3396 return NO_RELOC;
3397 }
3398
3399 /* Here we decide which fixups can be adjusted to make them relative to
3400 the beginning of the section instead of the symbol. Basically we need
3401 to make sure that the dynamic relocations are done correctly, so in
3402 some cases we force the original symbol to be used. */
3403
3404 int
3405 tc_i386_fix_adjustable (fixS *fixP ATTRIBUTE_UNUSED)
3406 {
3407 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
3408 if (!IS_ELF)
3409 return 1;
3410
3411 /* Don't adjust pc-relative references to merge sections in 64-bit
3412 mode. */
3413 if (use_rela_relocations
3414 && (S_GET_SEGMENT (fixP->fx_addsy)->flags & SEC_MERGE) != 0
3415 && fixP->fx_pcrel)
3416 return 0;
3417
3418 /* The x86_64 GOTPCREL are represented as 32bit PCrel relocations
3419 and changed later by validate_fix. */
3420 if (GOT_symbol && fixP->fx_subsy == GOT_symbol
3421 && fixP->fx_r_type == BFD_RELOC_32_PCREL)
3422 return 0;
3423
3424 /* Adjust_reloc_syms doesn't know about the GOT. Need to keep symbol
3425 for size relocations. */
3426 if (fixP->fx_r_type == BFD_RELOC_SIZE32
3427 || fixP->fx_r_type == BFD_RELOC_SIZE64
3428 || fixP->fx_r_type == BFD_RELOC_386_GOTOFF
3429 || fixP->fx_r_type == BFD_RELOC_386_GOT32
3430 || fixP->fx_r_type == BFD_RELOC_386_GOT32X
3431 || fixP->fx_r_type == BFD_RELOC_386_TLS_GD
3432 || fixP->fx_r_type == BFD_RELOC_386_TLS_LDM
3433 || fixP->fx_r_type == BFD_RELOC_386_TLS_LDO_32
3434 || fixP->fx_r_type == BFD_RELOC_386_TLS_IE_32
3435 || fixP->fx_r_type == BFD_RELOC_386_TLS_IE
3436 || fixP->fx_r_type == BFD_RELOC_386_TLS_GOTIE
3437 || fixP->fx_r_type == BFD_RELOC_386_TLS_LE_32
3438 || fixP->fx_r_type == BFD_RELOC_386_TLS_LE
3439 || fixP->fx_r_type == BFD_RELOC_386_TLS_GOTDESC
3440 || fixP->fx_r_type == BFD_RELOC_386_TLS_DESC_CALL
3441 || fixP->fx_r_type == BFD_RELOC_X86_64_GOT32
3442 || fixP->fx_r_type == BFD_RELOC_X86_64_GOTPCREL
3443 || fixP->fx_r_type == BFD_RELOC_X86_64_GOTPCRELX
3444 || fixP->fx_r_type == BFD_RELOC_X86_64_REX_GOTPCRELX
3445 || fixP->fx_r_type == BFD_RELOC_X86_64_TLSGD
3446 || fixP->fx_r_type == BFD_RELOC_X86_64_TLSLD
3447 || fixP->fx_r_type == BFD_RELOC_X86_64_DTPOFF32
3448 || fixP->fx_r_type == BFD_RELOC_X86_64_DTPOFF64
3449 || fixP->fx_r_type == BFD_RELOC_X86_64_GOTTPOFF
3450 || fixP->fx_r_type == BFD_RELOC_X86_64_TPOFF32
3451 || fixP->fx_r_type == BFD_RELOC_X86_64_TPOFF64
3452 || fixP->fx_r_type == BFD_RELOC_X86_64_GOTOFF64
3453 || fixP->fx_r_type == BFD_RELOC_X86_64_GOTPC32_TLSDESC
3454 || fixP->fx_r_type == BFD_RELOC_X86_64_TLSDESC_CALL
3455 || fixP->fx_r_type == BFD_RELOC_VTABLE_INHERIT
3456 || fixP->fx_r_type == BFD_RELOC_VTABLE_ENTRY)
3457 return 0;
3458 #endif
3459 return 1;
3460 }
3461
3462 static int
3463 intel_float_operand (const char *mnemonic)
3464 {
3465 /* Note that the value returned is meaningful only for opcodes with (memory)
3466 operands, hence the code here is free to improperly handle opcodes that
3467 have no operands (for better performance and smaller code). */
3468
3469 if (mnemonic[0] != 'f')
3470 return 0; /* non-math */
3471
3472 switch (mnemonic[1])
3473 {
3474 /* fclex, fdecstp, fdisi, femms, feni, fincstp, finit, fsetpm, and
3475 the fs segment override prefix not currently handled because no
3476 call path can make opcodes without operands get here */
3477 case 'i':
3478 return 2 /* integer op */;
3479 case 'l':
3480 if (mnemonic[2] == 'd' && (mnemonic[3] == 'c' || mnemonic[3] == 'e'))
3481 return 3; /* fldcw/fldenv */
3482 break;
3483 case 'n':
3484 if (mnemonic[2] != 'o' /* fnop */)
3485 return 3; /* non-waiting control op */
3486 break;
3487 case 'r':
3488 if (mnemonic[2] == 's')
3489 return 3; /* frstor/frstpm */
3490 break;
3491 case 's':
3492 if (mnemonic[2] == 'a')
3493 return 3; /* fsave */
3494 if (mnemonic[2] == 't')
3495 {
3496 switch (mnemonic[3])
3497 {
3498 case 'c': /* fstcw */
3499 case 'd': /* fstdw */
3500 case 'e': /* fstenv */
3501 case 's': /* fsts[gw] */
3502 return 3;
3503 }
3504 }
3505 break;
3506 case 'x':
3507 if (mnemonic[2] == 'r' || mnemonic[2] == 's')
3508 return 0; /* fxsave/fxrstor are not really math ops */
3509 break;
3510 }
3511
3512 return 1;
3513 }
3514
3515 /* Build the VEX prefix. */
3516
3517 static void
3518 build_vex_prefix (const insn_template *t)
3519 {
3520 unsigned int register_specifier;
3521 unsigned int implied_prefix;
3522 unsigned int vector_length;
3523 unsigned int w;
3524
3525 /* Check register specifier. */
3526 if (i.vex.register_specifier)
3527 {
3528 register_specifier =
3529 ~register_number (i.vex.register_specifier) & 0xf;
3530 gas_assert ((i.vex.register_specifier->reg_flags & RegVRex) == 0);
3531 }
3532 else
3533 register_specifier = 0xf;
3534
3535 /* Use 2-byte VEX prefix by swapping destination and source operand
3536 if there are more than 1 register operand. */
3537 if (i.reg_operands > 1
3538 && i.vec_encoding != vex_encoding_vex3
3539 && i.dir_encoding == dir_encoding_default
3540 && i.operands == i.reg_operands
3541 && operand_type_equal (&i.types[0], &i.types[i.operands - 1])
3542 && i.tm.opcode_modifier.vexopcode == VEX0F
3543 && (i.tm.opcode_modifier.load || i.tm.opcode_modifier.d)
3544 && i.rex == REX_B)
3545 {
3546 unsigned int xchg = i.operands - 1;
3547 union i386_op temp_op;
3548 i386_operand_type temp_type;
3549
3550 temp_type = i.types[xchg];
3551 i.types[xchg] = i.types[0];
3552 i.types[0] = temp_type;
3553 temp_op = i.op[xchg];
3554 i.op[xchg] = i.op[0];
3555 i.op[0] = temp_op;
3556
3557 gas_assert (i.rm.mode == 3);
3558
3559 i.rex = REX_R;
3560 xchg = i.rm.regmem;
3561 i.rm.regmem = i.rm.reg;
3562 i.rm.reg = xchg;
3563
3564 if (i.tm.opcode_modifier.d)
3565 i.tm.base_opcode ^= (i.tm.base_opcode & 0xee) != 0x6e
3566 ? Opcode_SIMD_FloatD : Opcode_SIMD_IntD;
3567 else /* Use the next insn. */
3568 i.tm = t[1];
3569 }
3570
3571 /* Use 2-byte VEX prefix by swapping commutative source operands if there
3572 are no memory operands and at least 3 register ones. */
3573 if (i.reg_operands >= 3
3574 && i.vec_encoding != vex_encoding_vex3
3575 && i.reg_operands == i.operands - i.imm_operands
3576 && i.tm.opcode_modifier.vex
3577 && i.tm.opcode_modifier.commutative
3578 && (i.tm.opcode_modifier.sse2avx || optimize > 1)
3579 && i.rex == REX_B
3580 && i.vex.register_specifier
3581 && !(i.vex.register_specifier->reg_flags & RegRex))
3582 {
3583 unsigned int xchg = i.operands - i.reg_operands;
3584 union i386_op temp_op;
3585 i386_operand_type temp_type;
3586
3587 gas_assert (i.tm.opcode_modifier.vexopcode == VEX0F);
3588 gas_assert (!i.tm.opcode_modifier.sae);
3589 gas_assert (operand_type_equal (&i.types[i.operands - 2],
3590 &i.types[i.operands - 3]));
3591 gas_assert (i.rm.mode == 3);
3592
3593 temp_type = i.types[xchg];
3594 i.types[xchg] = i.types[xchg + 1];
3595 i.types[xchg + 1] = temp_type;
3596 temp_op = i.op[xchg];
3597 i.op[xchg] = i.op[xchg + 1];
3598 i.op[xchg + 1] = temp_op;
3599
3600 i.rex = 0;
3601 xchg = i.rm.regmem | 8;
3602 i.rm.regmem = ~register_specifier & 0xf;
3603 gas_assert (!(i.rm.regmem & 8));
3604 i.vex.register_specifier += xchg - i.rm.regmem;
3605 register_specifier = ~xchg & 0xf;
3606 }
3607
3608 if (i.tm.opcode_modifier.vex == VEXScalar)
3609 vector_length = avxscalar;
3610 else if (i.tm.opcode_modifier.vex == VEX256)
3611 vector_length = 1;
3612 else
3613 {
3614 unsigned int op;
3615
3616 /* Determine vector length from the last multi-length vector
3617 operand. */
3618 vector_length = 0;
3619 for (op = t->operands; op--;)
3620 if (t->operand_types[op].bitfield.xmmword
3621 && t->operand_types[op].bitfield.ymmword
3622 && i.types[op].bitfield.ymmword)
3623 {
3624 vector_length = 1;
3625 break;
3626 }
3627 }
3628
3629 switch ((i.tm.base_opcode >> 8) & 0xff)
3630 {
3631 case 0:
3632 implied_prefix = 0;
3633 break;
3634 case DATA_PREFIX_OPCODE:
3635 implied_prefix = 1;
3636 break;
3637 case REPE_PREFIX_OPCODE:
3638 implied_prefix = 2;
3639 break;
3640 case REPNE_PREFIX_OPCODE:
3641 implied_prefix = 3;
3642 break;
3643 default:
3644 abort ();
3645 }
3646
3647 /* Check the REX.W bit and VEXW. */
3648 if (i.tm.opcode_modifier.vexw == VEXWIG)
3649 w = (vexwig == vexw1 || (i.rex & REX_W)) ? 1 : 0;
3650 else if (i.tm.opcode_modifier.vexw)
3651 w = i.tm.opcode_modifier.vexw == VEXW1 ? 1 : 0;
3652 else
3653 w = (flag_code == CODE_64BIT ? i.rex & REX_W : vexwig == vexw1) ? 1 : 0;
3654
3655 /* Use 2-byte VEX prefix if possible. */
3656 if (w == 0
3657 && i.vec_encoding != vex_encoding_vex3
3658 && i.tm.opcode_modifier.vexopcode == VEX0F
3659 && (i.rex & (REX_W | REX_X | REX_B)) == 0)
3660 {
3661 /* 2-byte VEX prefix. */
3662 unsigned int r;
3663
3664 i.vex.length = 2;
3665 i.vex.bytes[0] = 0xc5;
3666
3667 /* Check the REX.R bit. */
3668 r = (i.rex & REX_R) ? 0 : 1;
3669 i.vex.bytes[1] = (r << 7
3670 | register_specifier << 3
3671 | vector_length << 2
3672 | implied_prefix);
3673 }
3674 else
3675 {
3676 /* 3-byte VEX prefix. */
3677 unsigned int m;
3678
3679 i.vex.length = 3;
3680
3681 switch (i.tm.opcode_modifier.vexopcode)
3682 {
3683 case VEX0F:
3684 m = 0x1;
3685 i.vex.bytes[0] = 0xc4;
3686 break;
3687 case VEX0F38:
3688 m = 0x2;
3689 i.vex.bytes[0] = 0xc4;
3690 break;
3691 case VEX0F3A:
3692 m = 0x3;
3693 i.vex.bytes[0] = 0xc4;
3694 break;
3695 case XOP08:
3696 m = 0x8;
3697 i.vex.bytes[0] = 0x8f;
3698 break;
3699 case XOP09:
3700 m = 0x9;
3701 i.vex.bytes[0] = 0x8f;
3702 break;
3703 case XOP0A:
3704 m = 0xa;
3705 i.vex.bytes[0] = 0x8f;
3706 break;
3707 default:
3708 abort ();
3709 }
3710
3711 /* The high 3 bits of the second VEX byte are 1's compliment
3712 of RXB bits from REX. */
3713 i.vex.bytes[1] = (~i.rex & 0x7) << 5 | m;
3714
3715 i.vex.bytes[2] = (w << 7
3716 | register_specifier << 3
3717 | vector_length << 2
3718 | implied_prefix);
3719 }
3720 }
3721
3722 static INLINE bfd_boolean
3723 is_evex_encoding (const insn_template *t)
3724 {
3725 return t->opcode_modifier.evex || t->opcode_modifier.disp8memshift
3726 || t->opcode_modifier.broadcast || t->opcode_modifier.masking
3727 || t->opcode_modifier.sae;
3728 }
3729
3730 static INLINE bfd_boolean
3731 is_any_vex_encoding (const insn_template *t)
3732 {
3733 return t->opcode_modifier.vex || t->opcode_modifier.vexopcode
3734 || is_evex_encoding (t);
3735 }
3736
3737 /* Build the EVEX prefix. */
3738
3739 static void
3740 build_evex_prefix (void)
3741 {
3742 unsigned int register_specifier;
3743 unsigned int implied_prefix;
3744 unsigned int m, w;
3745 rex_byte vrex_used = 0;
3746
3747 /* Check register specifier. */
3748 if (i.vex.register_specifier)
3749 {
3750 gas_assert ((i.vrex & REX_X) == 0);
3751
3752 register_specifier = i.vex.register_specifier->reg_num;
3753 if ((i.vex.register_specifier->reg_flags & RegRex))
3754 register_specifier += 8;
3755 /* The upper 16 registers are encoded in the fourth byte of the
3756 EVEX prefix. */
3757 if (!(i.vex.register_specifier->reg_flags & RegVRex))
3758 i.vex.bytes[3] = 0x8;
3759 register_specifier = ~register_specifier & 0xf;
3760 }
3761 else
3762 {
3763 register_specifier = 0xf;
3764
3765 /* Encode upper 16 vector index register in the fourth byte of
3766 the EVEX prefix. */
3767 if (!(i.vrex & REX_X))
3768 i.vex.bytes[3] = 0x8;
3769 else
3770 vrex_used |= REX_X;
3771 }
3772
3773 switch ((i.tm.base_opcode >> 8) & 0xff)
3774 {
3775 case 0:
3776 implied_prefix = 0;
3777 break;
3778 case DATA_PREFIX_OPCODE:
3779 implied_prefix = 1;
3780 break;
3781 case REPE_PREFIX_OPCODE:
3782 implied_prefix = 2;
3783 break;
3784 case REPNE_PREFIX_OPCODE:
3785 implied_prefix = 3;
3786 break;
3787 default:
3788 abort ();
3789 }
3790
3791 /* 4 byte EVEX prefix. */
3792 i.vex.length = 4;
3793 i.vex.bytes[0] = 0x62;
3794
3795 /* mmmm bits. */
3796 switch (i.tm.opcode_modifier.vexopcode)
3797 {
3798 case VEX0F:
3799 m = 1;
3800 break;
3801 case VEX0F38:
3802 m = 2;
3803 break;
3804 case VEX0F3A:
3805 m = 3;
3806 break;
3807 default:
3808 abort ();
3809 break;
3810 }
3811
3812 /* The high 3 bits of the second EVEX byte are 1's compliment of RXB
3813 bits from REX. */
3814 i.vex.bytes[1] = (~i.rex & 0x7) << 5 | m;
3815
3816 /* The fifth bit of the second EVEX byte is 1's compliment of the
3817 REX_R bit in VREX. */
3818 if (!(i.vrex & REX_R))
3819 i.vex.bytes[1] |= 0x10;
3820 else
3821 vrex_used |= REX_R;
3822
3823 if ((i.reg_operands + i.imm_operands) == i.operands)
3824 {
3825 /* When all operands are registers, the REX_X bit in REX is not
3826 used. We reuse it to encode the upper 16 registers, which is
3827 indicated by the REX_B bit in VREX. The REX_X bit is encoded
3828 as 1's compliment. */
3829 if ((i.vrex & REX_B))
3830 {
3831 vrex_used |= REX_B;
3832 i.vex.bytes[1] &= ~0x40;
3833 }
3834 }
3835
3836 /* EVEX instructions shouldn't need the REX prefix. */
3837 i.vrex &= ~vrex_used;
3838 gas_assert (i.vrex == 0);
3839
3840 /* Check the REX.W bit and VEXW. */
3841 if (i.tm.opcode_modifier.vexw == VEXWIG)
3842 w = (evexwig == evexw1 || (i.rex & REX_W)) ? 1 : 0;
3843 else if (i.tm.opcode_modifier.vexw)
3844 w = i.tm.opcode_modifier.vexw == VEXW1 ? 1 : 0;
3845 else
3846 w = (flag_code == CODE_64BIT ? i.rex & REX_W : evexwig == evexw1) ? 1 : 0;
3847
3848 /* Encode the U bit. */
3849 implied_prefix |= 0x4;
3850
3851 /* The third byte of the EVEX prefix. */
3852 i.vex.bytes[2] = (w << 7 | register_specifier << 3 | implied_prefix);
3853
3854 /* The fourth byte of the EVEX prefix. */
3855 /* The zeroing-masking bit. */
3856 if (i.mask && i.mask->zeroing)
3857 i.vex.bytes[3] |= 0x80;
3858
3859 /* Don't always set the broadcast bit if there is no RC. */
3860 if (!i.rounding)
3861 {
3862 /* Encode the vector length. */
3863 unsigned int vec_length;
3864
3865 if (!i.tm.opcode_modifier.evex
3866 || i.tm.opcode_modifier.evex == EVEXDYN)
3867 {
3868 unsigned int op;
3869
3870 /* Determine vector length from the last multi-length vector
3871 operand. */
3872 vec_length = 0;
3873 for (op = i.operands; op--;)
3874 if (i.tm.operand_types[op].bitfield.xmmword
3875 + i.tm.operand_types[op].bitfield.ymmword
3876 + i.tm.operand_types[op].bitfield.zmmword > 1)
3877 {
3878 if (i.types[op].bitfield.zmmword)
3879 {
3880 i.tm.opcode_modifier.evex = EVEX512;
3881 break;
3882 }
3883 else if (i.types[op].bitfield.ymmword)
3884 {
3885 i.tm.opcode_modifier.evex = EVEX256;
3886 break;
3887 }
3888 else if (i.types[op].bitfield.xmmword)
3889 {
3890 i.tm.opcode_modifier.evex = EVEX128;
3891 break;
3892 }
3893 else if (i.broadcast && (int) op == i.broadcast->operand)
3894 {
3895 switch (i.broadcast->bytes)
3896 {
3897 case 64:
3898 i.tm.opcode_modifier.evex = EVEX512;
3899 break;
3900 case 32:
3901 i.tm.opcode_modifier.evex = EVEX256;
3902 break;
3903 case 16:
3904 i.tm.opcode_modifier.evex = EVEX128;
3905 break;
3906 default:
3907 abort ();
3908 }
3909 break;
3910 }
3911 }
3912
3913 if (op >= MAX_OPERANDS)
3914 abort ();
3915 }
3916
3917 switch (i.tm.opcode_modifier.evex)
3918 {
3919 case EVEXLIG: /* LL' is ignored */
3920 vec_length = evexlig << 5;
3921 break;
3922 case EVEX128:
3923 vec_length = 0 << 5;
3924 break;
3925 case EVEX256:
3926 vec_length = 1 << 5;
3927 break;
3928 case EVEX512:
3929 vec_length = 2 << 5;
3930 break;
3931 default:
3932 abort ();
3933 break;
3934 }
3935 i.vex.bytes[3] |= vec_length;
3936 /* Encode the broadcast bit. */
3937 if (i.broadcast)
3938 i.vex.bytes[3] |= 0x10;
3939 }
3940 else
3941 {
3942 if (i.rounding->type != saeonly)
3943 i.vex.bytes[3] |= 0x10 | (i.rounding->type << 5);
3944 else
3945 i.vex.bytes[3] |= 0x10 | (evexrcig << 5);
3946 }
3947
3948 if (i.mask && i.mask->mask)
3949 i.vex.bytes[3] |= i.mask->mask->reg_num;
3950 }
3951
3952 static void
3953 process_immext (void)
3954 {
3955 expressionS *exp;
3956
3957 /* These AMD 3DNow! and SSE2 instructions have an opcode suffix
3958 which is coded in the same place as an 8-bit immediate field
3959 would be. Here we fake an 8-bit immediate operand from the
3960 opcode suffix stored in tm.extension_opcode.
3961
3962 AVX instructions also use this encoding, for some of
3963 3 argument instructions. */
3964
3965 gas_assert (i.imm_operands <= 1
3966 && (i.operands <= 2
3967 || (is_any_vex_encoding (&i.tm)
3968 && i.operands <= 4)));
3969
3970 exp = &im_expressions[i.imm_operands++];
3971 i.op[i.operands].imms = exp;
3972 i.types[i.operands] = imm8;
3973 i.operands++;
3974 exp->X_op = O_constant;
3975 exp->X_add_number = i.tm.extension_opcode;
3976 i.tm.extension_opcode = None;
3977 }
3978
3979
3980 static int
3981 check_hle (void)
3982 {
3983 switch (i.tm.opcode_modifier.hleprefixok)
3984 {
3985 default:
3986 abort ();
3987 case HLEPrefixNone:
3988 as_bad (_("invalid instruction `%s' after `%s'"),
3989 i.tm.name, i.hle_prefix);
3990 return 0;
3991 case HLEPrefixLock:
3992 if (i.prefix[LOCK_PREFIX])
3993 return 1;
3994 as_bad (_("missing `lock' with `%s'"), i.hle_prefix);
3995 return 0;
3996 case HLEPrefixAny:
3997 return 1;
3998 case HLEPrefixRelease:
3999 if (i.prefix[HLE_PREFIX] != XRELEASE_PREFIX_OPCODE)
4000 {
4001 as_bad (_("instruction `%s' after `xacquire' not allowed"),
4002 i.tm.name);
4003 return 0;
4004 }
4005 if (i.mem_operands == 0 || !(i.flags[i.operands - 1] & Operand_Mem))
4006 {
4007 as_bad (_("memory destination needed for instruction `%s'"
4008 " after `xrelease'"), i.tm.name);
4009 return 0;
4010 }
4011 return 1;
4012 }
4013 }
4014
4015 /* Try the shortest encoding by shortening operand size. */
4016
4017 static void
4018 optimize_encoding (void)
4019 {
4020 unsigned int j;
4021
4022 if (optimize_for_space
4023 && !is_any_vex_encoding (&i.tm)
4024 && i.reg_operands == 1
4025 && i.imm_operands == 1
4026 && !i.types[1].bitfield.byte
4027 && i.op[0].imms->X_op == O_constant
4028 && fits_in_imm7 (i.op[0].imms->X_add_number)
4029 && (i.tm.base_opcode == 0xa8
4030 || (i.tm.base_opcode == 0xf6
4031 && i.tm.extension_opcode == 0x0)))
4032 {
4033 /* Optimize: -Os:
4034 test $imm7, %r64/%r32/%r16 -> test $imm7, %r8
4035 */
4036 unsigned int base_regnum = i.op[1].regs->reg_num;
4037 if (flag_code == CODE_64BIT || base_regnum < 4)
4038 {
4039 i.types[1].bitfield.byte = 1;
4040 /* Ignore the suffix. */
4041 i.suffix = 0;
4042 /* Convert to byte registers. */
4043 if (i.types[1].bitfield.word)
4044 j = 16;
4045 else if (i.types[1].bitfield.dword)
4046 j = 32;
4047 else
4048 j = 48;
4049 if (!(i.op[1].regs->reg_flags & RegRex) && base_regnum < 4)
4050 j += 8;
4051 i.op[1].regs -= j;
4052 }
4053 }
4054 else if (flag_code == CODE_64BIT
4055 && !is_any_vex_encoding (&i.tm)
4056 && ((i.types[1].bitfield.qword
4057 && i.reg_operands == 1
4058 && i.imm_operands == 1
4059 && i.op[0].imms->X_op == O_constant
4060 && ((i.tm.base_opcode == 0xb8
4061 && i.tm.extension_opcode == None
4062 && fits_in_unsigned_long (i.op[0].imms->X_add_number))
4063 || (fits_in_imm31 (i.op[0].imms->X_add_number)
4064 && ((i.tm.base_opcode == 0x24
4065 || i.tm.base_opcode == 0xa8)
4066 || (i.tm.base_opcode == 0x80
4067 && i.tm.extension_opcode == 0x4)
4068 || ((i.tm.base_opcode == 0xf6
4069 || (i.tm.base_opcode | 1) == 0xc7)
4070 && i.tm.extension_opcode == 0x0)))
4071 || (fits_in_imm7 (i.op[0].imms->X_add_number)
4072 && i.tm.base_opcode == 0x83
4073 && i.tm.extension_opcode == 0x4)))
4074 || (i.types[0].bitfield.qword
4075 && ((i.reg_operands == 2
4076 && i.op[0].regs == i.op[1].regs
4077 && (i.tm.base_opcode == 0x30
4078 || i.tm.base_opcode == 0x28))
4079 || (i.reg_operands == 1
4080 && i.operands == 1
4081 && i.tm.base_opcode == 0x30)))))
4082 {
4083 /* Optimize: -O:
4084 andq $imm31, %r64 -> andl $imm31, %r32
4085 andq $imm7, %r64 -> andl $imm7, %r32
4086 testq $imm31, %r64 -> testl $imm31, %r32
4087 xorq %r64, %r64 -> xorl %r32, %r32
4088 subq %r64, %r64 -> subl %r32, %r32
4089 movq $imm31, %r64 -> movl $imm31, %r32
4090 movq $imm32, %r64 -> movl $imm32, %r32
4091 */
4092 i.tm.opcode_modifier.norex64 = 1;
4093 if (i.tm.base_opcode == 0xb8 || (i.tm.base_opcode | 1) == 0xc7)
4094 {
4095 /* Handle
4096 movq $imm31, %r64 -> movl $imm31, %r32
4097 movq $imm32, %r64 -> movl $imm32, %r32
4098 */
4099 i.tm.operand_types[0].bitfield.imm32 = 1;
4100 i.tm.operand_types[0].bitfield.imm32s = 0;
4101 i.tm.operand_types[0].bitfield.imm64 = 0;
4102 i.types[0].bitfield.imm32 = 1;
4103 i.types[0].bitfield.imm32s = 0;
4104 i.types[0].bitfield.imm64 = 0;
4105 i.types[1].bitfield.dword = 1;
4106 i.types[1].bitfield.qword = 0;
4107 if ((i.tm.base_opcode | 1) == 0xc7)
4108 {
4109 /* Handle
4110 movq $imm31, %r64 -> movl $imm31, %r32
4111 */
4112 i.tm.base_opcode = 0xb8;
4113 i.tm.extension_opcode = None;
4114 i.tm.opcode_modifier.w = 0;
4115 i.tm.opcode_modifier.modrm = 0;
4116 }
4117 }
4118 }
4119 else if (optimize > 1
4120 && !optimize_for_space
4121 && !is_any_vex_encoding (&i.tm)
4122 && i.reg_operands == 2
4123 && i.op[0].regs == i.op[1].regs
4124 && ((i.tm.base_opcode & ~(Opcode_D | 1)) == 0x8
4125 || (i.tm.base_opcode & ~(Opcode_D | 1)) == 0x20)
4126 && (flag_code != CODE_64BIT || !i.types[0].bitfield.dword))
4127 {
4128 /* Optimize: -O2:
4129 andb %rN, %rN -> testb %rN, %rN
4130 andw %rN, %rN -> testw %rN, %rN
4131 andq %rN, %rN -> testq %rN, %rN
4132 orb %rN, %rN -> testb %rN, %rN
4133 orw %rN, %rN -> testw %rN, %rN
4134 orq %rN, %rN -> testq %rN, %rN
4135
4136 and outside of 64-bit mode
4137
4138 andl %rN, %rN -> testl %rN, %rN
4139 orl %rN, %rN -> testl %rN, %rN
4140 */
4141 i.tm.base_opcode = 0x84 | (i.tm.base_opcode & 1);
4142 }
4143 else if (i.reg_operands == 3
4144 && i.op[0].regs == i.op[1].regs
4145 && !i.types[2].bitfield.xmmword
4146 && (i.tm.opcode_modifier.vex
4147 || ((!i.mask || i.mask->zeroing)
4148 && !i.rounding
4149 && is_evex_encoding (&i.tm)
4150 && (i.vec_encoding != vex_encoding_evex
4151 || cpu_arch_isa_flags.bitfield.cpuavx512vl
4152 || i.tm.cpu_flags.bitfield.cpuavx512vl
4153 || (i.tm.operand_types[2].bitfield.zmmword
4154 && i.types[2].bitfield.ymmword))))
4155 && ((i.tm.base_opcode == 0x55
4156 || i.tm.base_opcode == 0x6655
4157 || i.tm.base_opcode == 0x66df
4158 || i.tm.base_opcode == 0x57
4159 || i.tm.base_opcode == 0x6657
4160 || i.tm.base_opcode == 0x66ef
4161 || i.tm.base_opcode == 0x66f8
4162 || i.tm.base_opcode == 0x66f9
4163 || i.tm.base_opcode == 0x66fa
4164 || i.tm.base_opcode == 0x66fb
4165 || i.tm.base_opcode == 0x42
4166 || i.tm.base_opcode == 0x6642
4167 || i.tm.base_opcode == 0x47
4168 || i.tm.base_opcode == 0x6647)
4169 && i.tm.extension_opcode == None))
4170 {
4171 /* Optimize: -O1:
4172 VOP, one of vandnps, vandnpd, vxorps, vxorpd, vpsubb, vpsubd,
4173 vpsubq and vpsubw:
4174 EVEX VOP %zmmM, %zmmM, %zmmN
4175 -> VEX VOP %xmmM, %xmmM, %xmmN (M and N < 16)
4176 -> EVEX VOP %xmmM, %xmmM, %xmmN (M || N >= 16) (-O2)
4177 EVEX VOP %ymmM, %ymmM, %ymmN
4178 -> VEX VOP %xmmM, %xmmM, %xmmN (M and N < 16)
4179 -> EVEX VOP %xmmM, %xmmM, %xmmN (M || N >= 16) (-O2)
4180 VEX VOP %ymmM, %ymmM, %ymmN
4181 -> VEX VOP %xmmM, %xmmM, %xmmN
4182 VOP, one of vpandn and vpxor:
4183 VEX VOP %ymmM, %ymmM, %ymmN
4184 -> VEX VOP %xmmM, %xmmM, %xmmN
4185 VOP, one of vpandnd and vpandnq:
4186 EVEX VOP %zmmM, %zmmM, %zmmN
4187 -> VEX vpandn %xmmM, %xmmM, %xmmN (M and N < 16)
4188 -> EVEX VOP %xmmM, %xmmM, %xmmN (M || N >= 16) (-O2)
4189 EVEX VOP %ymmM, %ymmM, %ymmN
4190 -> VEX vpandn %xmmM, %xmmM, %xmmN (M and N < 16)
4191 -> EVEX VOP %xmmM, %xmmM, %xmmN (M || N >= 16) (-O2)
4192 VOP, one of vpxord and vpxorq:
4193 EVEX VOP %zmmM, %zmmM, %zmmN
4194 -> VEX vpxor %xmmM, %xmmM, %xmmN (M and N < 16)
4195 -> EVEX VOP %xmmM, %xmmM, %xmmN (M || N >= 16) (-O2)
4196 EVEX VOP %ymmM, %ymmM, %ymmN
4197 -> VEX vpxor %xmmM, %xmmM, %xmmN (M and N < 16)
4198 -> EVEX VOP %xmmM, %xmmM, %xmmN (M || N >= 16) (-O2)
4199 VOP, one of kxord and kxorq:
4200 VEX VOP %kM, %kM, %kN
4201 -> VEX kxorw %kM, %kM, %kN
4202 VOP, one of kandnd and kandnq:
4203 VEX VOP %kM, %kM, %kN
4204 -> VEX kandnw %kM, %kM, %kN
4205 */
4206 if (is_evex_encoding (&i.tm))
4207 {
4208 if (i.vec_encoding != vex_encoding_evex)
4209 {
4210 i.tm.opcode_modifier.vex = VEX128;
4211 i.tm.opcode_modifier.vexw = VEXW0;
4212 i.tm.opcode_modifier.evex = 0;
4213 }
4214 else if (optimize > 1)
4215 i.tm.opcode_modifier.evex = EVEX128;
4216 else
4217 return;
4218 }
4219 else if (i.tm.operand_types[0].bitfield.class == RegMask)
4220 {
4221 i.tm.base_opcode &= 0xff;
4222 i.tm.opcode_modifier.vexw = VEXW0;
4223 }
4224 else
4225 i.tm.opcode_modifier.vex = VEX128;
4226
4227 if (i.tm.opcode_modifier.vex)
4228 for (j = 0; j < 3; j++)
4229 {
4230 i.types[j].bitfield.xmmword = 1;
4231 i.types[j].bitfield.ymmword = 0;
4232 }
4233 }
4234 else if (i.vec_encoding != vex_encoding_evex
4235 && !i.types[0].bitfield.zmmword
4236 && !i.types[1].bitfield.zmmword
4237 && !i.mask
4238 && !i.broadcast
4239 && is_evex_encoding (&i.tm)
4240 && ((i.tm.base_opcode & ~Opcode_SIMD_IntD) == 0x666f
4241 || (i.tm.base_opcode & ~Opcode_SIMD_IntD) == 0xf36f
4242 || (i.tm.base_opcode & ~Opcode_SIMD_IntD) == 0xf26f
4243 || (i.tm.base_opcode & ~4) == 0x66db
4244 || (i.tm.base_opcode & ~4) == 0x66eb)
4245 && i.tm.extension_opcode == None)
4246 {
4247 /* Optimize: -O1:
4248 VOP, one of vmovdqa32, vmovdqa64, vmovdqu8, vmovdqu16,
4249 vmovdqu32 and vmovdqu64:
4250 EVEX VOP %xmmM, %xmmN
4251 -> VEX vmovdqa|vmovdqu %xmmM, %xmmN (M and N < 16)
4252 EVEX VOP %ymmM, %ymmN
4253 -> VEX vmovdqa|vmovdqu %ymmM, %ymmN (M and N < 16)
4254 EVEX VOP %xmmM, mem
4255 -> VEX vmovdqa|vmovdqu %xmmM, mem (M < 16)
4256 EVEX VOP %ymmM, mem
4257 -> VEX vmovdqa|vmovdqu %ymmM, mem (M < 16)
4258 EVEX VOP mem, %xmmN
4259 -> VEX mvmovdqa|vmovdquem, %xmmN (N < 16)
4260 EVEX VOP mem, %ymmN
4261 -> VEX vmovdqa|vmovdqu mem, %ymmN (N < 16)
4262 VOP, one of vpand, vpandn, vpor, vpxor:
4263 EVEX VOP{d,q} %xmmL, %xmmM, %xmmN
4264 -> VEX VOP %xmmL, %xmmM, %xmmN (L, M, and N < 16)
4265 EVEX VOP{d,q} %ymmL, %ymmM, %ymmN
4266 -> VEX VOP %ymmL, %ymmM, %ymmN (L, M, and N < 16)
4267 EVEX VOP{d,q} mem, %xmmM, %xmmN
4268 -> VEX VOP mem, %xmmM, %xmmN (M and N < 16)
4269 EVEX VOP{d,q} mem, %ymmM, %ymmN
4270 -> VEX VOP mem, %ymmM, %ymmN (M and N < 16)
4271 */
4272 for (j = 0; j < i.operands; j++)
4273 if (operand_type_check (i.types[j], disp)
4274 && i.op[j].disps->X_op == O_constant)
4275 {
4276 /* Since the VEX prefix has 2 or 3 bytes, the EVEX prefix
4277 has 4 bytes, EVEX Disp8 has 1 byte and VEX Disp32 has 4
4278 bytes, we choose EVEX Disp8 over VEX Disp32. */
4279 int evex_disp8, vex_disp8;
4280 unsigned int memshift = i.memshift;
4281 offsetT n = i.op[j].disps->X_add_number;
4282
4283 evex_disp8 = fits_in_disp8 (n);
4284 i.memshift = 0;
4285 vex_disp8 = fits_in_disp8 (n);
4286 if (evex_disp8 != vex_disp8)
4287 {
4288 i.memshift = memshift;
4289 return;
4290 }
4291
4292 i.types[j].bitfield.disp8 = vex_disp8;
4293 break;
4294 }
4295 if ((i.tm.base_opcode & ~Opcode_SIMD_IntD) == 0xf26f)
4296 i.tm.base_opcode ^= 0xf36f ^ 0xf26f;
4297 i.tm.opcode_modifier.vex
4298 = i.types[0].bitfield.ymmword ? VEX256 : VEX128;
4299 i.tm.opcode_modifier.vexw = VEXW0;
4300 /* VPAND, VPOR, and VPXOR are commutative. */
4301 if (i.reg_operands == 3 && i.tm.base_opcode != 0x66df)
4302 i.tm.opcode_modifier.commutative = 1;
4303 i.tm.opcode_modifier.evex = 0;
4304 i.tm.opcode_modifier.masking = 0;
4305 i.tm.opcode_modifier.broadcast = 0;
4306 i.tm.opcode_modifier.disp8memshift = 0;
4307 i.memshift = 0;
4308 if (j < i.operands)
4309 i.types[j].bitfield.disp8
4310 = fits_in_disp8 (i.op[j].disps->X_add_number);
4311 }
4312 }
4313
4314 /* This is the guts of the machine-dependent assembler. LINE points to a
4315 machine dependent instruction. This function is supposed to emit
4316 the frags/bytes it assembles to. */
4317
4318 void
4319 md_assemble (char *line)
4320 {
4321 unsigned int j;
4322 char mnemonic[MAX_MNEM_SIZE], mnem_suffix;
4323 const insn_template *t;
4324
4325 /* Initialize globals. */
4326 memset (&i, '\0', sizeof (i));
4327 for (j = 0; j < MAX_OPERANDS; j++)
4328 i.reloc[j] = NO_RELOC;
4329 memset (disp_expressions, '\0', sizeof (disp_expressions));
4330 memset (im_expressions, '\0', sizeof (im_expressions));
4331 save_stack_p = save_stack;
4332
4333 /* First parse an instruction mnemonic & call i386_operand for the operands.
4334 We assume that the scrubber has arranged it so that line[0] is the valid
4335 start of a (possibly prefixed) mnemonic. */
4336
4337 line = parse_insn (line, mnemonic);
4338 if (line == NULL)
4339 return;
4340 mnem_suffix = i.suffix;
4341
4342 line = parse_operands (line, mnemonic);
4343 this_operand = -1;
4344 xfree (i.memop1_string);
4345 i.memop1_string = NULL;
4346 if (line == NULL)
4347 return;
4348
4349 /* Now we've parsed the mnemonic into a set of templates, and have the
4350 operands at hand. */
4351
4352 /* All Intel opcodes have reversed operands except for "bound", "enter",
4353 "monitor*", "mwait*", "tpause", and "umwait". We also don't reverse
4354 intersegment "jmp" and "call" instructions with 2 immediate operands so
4355 that the immediate segment precedes the offset, as it does when in AT&T
4356 mode. */
4357 if (intel_syntax
4358 && i.operands > 1
4359 && (strcmp (mnemonic, "bound") != 0)
4360 && (strcmp (mnemonic, "invlpga") != 0)
4361 && (strncmp (mnemonic, "monitor", 7) != 0)
4362 && (strncmp (mnemonic, "mwait", 5) != 0)
4363 && (strcmp (mnemonic, "tpause") != 0)
4364 && (strcmp (mnemonic, "umwait") != 0)
4365 && !(operand_type_check (i.types[0], imm)
4366 && operand_type_check (i.types[1], imm)))
4367 swap_operands ();
4368
4369 /* The order of the immediates should be reversed
4370 for 2 immediates extrq and insertq instructions */
4371 if (i.imm_operands == 2
4372 && (strcmp (mnemonic, "extrq") == 0
4373 || strcmp (mnemonic, "insertq") == 0))
4374 swap_2_operands (0, 1);
4375
4376 if (i.imm_operands)
4377 optimize_imm ();
4378
4379 /* Don't optimize displacement for movabs since it only takes 64bit
4380 displacement. */
4381 if (i.disp_operands
4382 && i.disp_encoding != disp_encoding_32bit
4383 && (flag_code != CODE_64BIT
4384 || strcmp (mnemonic, "movabs") != 0))
4385 optimize_disp ();
4386
4387 /* Next, we find a template that matches the given insn,
4388 making sure the overlap of the given operands types is consistent
4389 with the template operand types. */
4390
4391 if (!(t = match_template (mnem_suffix)))
4392 return;
4393
4394 if (sse_check != check_none
4395 && !i.tm.opcode_modifier.noavx
4396 && !i.tm.cpu_flags.bitfield.cpuavx
4397 && !i.tm.cpu_flags.bitfield.cpuavx512f
4398 && (i.tm.cpu_flags.bitfield.cpusse
4399 || i.tm.cpu_flags.bitfield.cpusse2
4400 || i.tm.cpu_flags.bitfield.cpusse3
4401 || i.tm.cpu_flags.bitfield.cpussse3
4402 || i.tm.cpu_flags.bitfield.cpusse4_1
4403 || i.tm.cpu_flags.bitfield.cpusse4_2
4404 || i.tm.cpu_flags.bitfield.cpusse4a
4405 || i.tm.cpu_flags.bitfield.cpupclmul
4406 || i.tm.cpu_flags.bitfield.cpuaes
4407 || i.tm.cpu_flags.bitfield.cpusha
4408 || i.tm.cpu_flags.bitfield.cpugfni))
4409 {
4410 (sse_check == check_warning
4411 ? as_warn
4412 : as_bad) (_("SSE instruction `%s' is used"), i.tm.name);
4413 }
4414
4415 if (i.tm.opcode_modifier.fwait)
4416 if (!add_prefix (FWAIT_OPCODE))
4417 return;
4418
4419 /* Check if REP prefix is OK. */
4420 if (i.rep_prefix && !i.tm.opcode_modifier.repprefixok)
4421 {
4422 as_bad (_("invalid instruction `%s' after `%s'"),
4423 i.tm.name, i.rep_prefix);
4424 return;
4425 }
4426
4427 /* Check for lock without a lockable instruction. Destination operand
4428 must be memory unless it is xchg (0x86). */
4429 if (i.prefix[LOCK_PREFIX]
4430 && (!i.tm.opcode_modifier.islockable
4431 || i.mem_operands == 0
4432 || (i.tm.base_opcode != 0x86
4433 && !(i.flags[i.operands - 1] & Operand_Mem))))
4434 {
4435 as_bad (_("expecting lockable instruction after `lock'"));
4436 return;
4437 }
4438
4439 /* Check for data size prefix on VEX/XOP/EVEX encoded insns. */
4440 if (i.prefix[DATA_PREFIX] && is_any_vex_encoding (&i.tm))
4441 {
4442 as_bad (_("data size prefix invalid with `%s'"), i.tm.name);
4443 return;
4444 }
4445
4446 /* Check if HLE prefix is OK. */
4447 if (i.hle_prefix && !check_hle ())
4448 return;
4449
4450 /* Check BND prefix. */
4451 if (i.bnd_prefix && !i.tm.opcode_modifier.bndprefixok)
4452 as_bad (_("expecting valid branch instruction after `bnd'"));
4453
4454 /* Check NOTRACK prefix. */
4455 if (i.notrack_prefix && !i.tm.opcode_modifier.notrackprefixok)
4456 as_bad (_("expecting indirect branch instruction after `notrack'"));
4457
4458 if (i.tm.cpu_flags.bitfield.cpumpx)
4459 {
4460 if (flag_code == CODE_64BIT && i.prefix[ADDR_PREFIX])
4461 as_bad (_("32-bit address isn't allowed in 64-bit MPX instructions."));
4462 else if (flag_code != CODE_16BIT
4463 ? i.prefix[ADDR_PREFIX]
4464 : i.mem_operands && !i.prefix[ADDR_PREFIX])
4465 as_bad (_("16-bit address isn't allowed in MPX instructions"));
4466 }
4467
4468 /* Insert BND prefix. */
4469 if (add_bnd_prefix && i.tm.opcode_modifier.bndprefixok)
4470 {
4471 if (!i.prefix[BND_PREFIX])
4472 add_prefix (BND_PREFIX_OPCODE);
4473 else if (i.prefix[BND_PREFIX] != BND_PREFIX_OPCODE)
4474 {
4475 as_warn (_("replacing `rep'/`repe' prefix by `bnd'"));
4476 i.prefix[BND_PREFIX] = BND_PREFIX_OPCODE;
4477 }
4478 }
4479
4480 /* Check string instruction segment overrides. */
4481 if (i.tm.opcode_modifier.isstring >= IS_STRING_ES_OP0)
4482 {
4483 gas_assert (i.mem_operands);
4484 if (!check_string ())
4485 return;
4486 i.disp_operands = 0;
4487 }
4488
4489 if (optimize && !i.no_optimize && i.tm.opcode_modifier.optimize)
4490 optimize_encoding ();
4491
4492 if (!process_suffix ())
4493 return;
4494
4495 /* Update operand types. */
4496 for (j = 0; j < i.operands; j++)
4497 i.types[j] = operand_type_and (i.types[j], i.tm.operand_types[j]);
4498
4499 /* Make still unresolved immediate matches conform to size of immediate
4500 given in i.suffix. */
4501 if (!finalize_imm ())
4502 return;
4503
4504 if (i.types[0].bitfield.imm1)
4505 i.imm_operands = 0; /* kludge for shift insns. */
4506
4507 /* We only need to check those implicit registers for instructions
4508 with 3 operands or less. */
4509 if (i.operands <= 3)
4510 for (j = 0; j < i.operands; j++)
4511 if (i.types[j].bitfield.instance != InstanceNone
4512 && !i.types[j].bitfield.xmmword)
4513 i.reg_operands--;
4514
4515 /* ImmExt should be processed after SSE2AVX. */
4516 if (!i.tm.opcode_modifier.sse2avx
4517 && i.tm.opcode_modifier.immext)
4518 process_immext ();
4519
4520 /* For insns with operands there are more diddles to do to the opcode. */
4521 if (i.operands)
4522 {
4523 if (!process_operands ())
4524 return;
4525 }
4526 else if (!quiet_warnings && i.tm.opcode_modifier.ugh)
4527 {
4528 /* UnixWare fsub no args is alias for fsubp, fadd -> faddp, etc. */
4529 as_warn (_("translating to `%sp'"), i.tm.name);
4530 }
4531
4532 if (is_any_vex_encoding (&i.tm))
4533 {
4534 if (!cpu_arch_flags.bitfield.cpui286)
4535 {
4536 as_bad (_("instruction `%s' isn't supported outside of protected mode."),
4537 i.tm.name);
4538 return;
4539 }
4540
4541 if (i.tm.opcode_modifier.vex)
4542 build_vex_prefix (t);
4543 else
4544 build_evex_prefix ();
4545 }
4546
4547 /* Handle conversion of 'int $3' --> special int3 insn. XOP or FMA4
4548 instructions may define INT_OPCODE as well, so avoid this corner
4549 case for those instructions that use MODRM. */
4550 if (i.tm.base_opcode == INT_OPCODE
4551 && !i.tm.opcode_modifier.modrm
4552 && i.op[0].imms->X_add_number == 3)
4553 {
4554 i.tm.base_opcode = INT3_OPCODE;
4555 i.imm_operands = 0;
4556 }
4557
4558 if ((i.tm.opcode_modifier.jump == JUMP
4559 || i.tm.opcode_modifier.jump == JUMP_BYTE
4560 || i.tm.opcode_modifier.jump == JUMP_DWORD)
4561 && i.op[0].disps->X_op == O_constant)
4562 {
4563 /* Convert "jmp constant" (and "call constant") to a jump (call) to
4564 the absolute address given by the constant. Since ix86 jumps and
4565 calls are pc relative, we need to generate a reloc. */
4566 i.op[0].disps->X_add_symbol = &abs_symbol;
4567 i.op[0].disps->X_op = O_symbol;
4568 }
4569
4570 /* For 8 bit registers we need an empty rex prefix. Also if the
4571 instruction already has a prefix, we need to convert old
4572 registers to new ones. */
4573
4574 if ((i.types[0].bitfield.class == Reg && i.types[0].bitfield.byte
4575 && (i.op[0].regs->reg_flags & RegRex64) != 0)
4576 || (i.types[1].bitfield.class == Reg && i.types[1].bitfield.byte
4577 && (i.op[1].regs->reg_flags & RegRex64) != 0)
4578 || (((i.types[0].bitfield.class == Reg && i.types[0].bitfield.byte)
4579 || (i.types[1].bitfield.class == Reg && i.types[1].bitfield.byte))
4580 && i.rex != 0))
4581 {
4582 int x;
4583
4584 i.rex |= REX_OPCODE;
4585 for (x = 0; x < 2; x++)
4586 {
4587 /* Look for 8 bit operand that uses old registers. */
4588 if (i.types[x].bitfield.class == Reg && i.types[x].bitfield.byte
4589 && (i.op[x].regs->reg_flags & RegRex64) == 0)
4590 {
4591 gas_assert (!(i.op[x].regs->reg_flags & RegRex));
4592 /* In case it is "hi" register, give up. */
4593 if (i.op[x].regs->reg_num > 3)
4594 as_bad (_("can't encode register '%s%s' in an "
4595 "instruction requiring REX prefix."),
4596 register_prefix, i.op[x].regs->reg_name);
4597
4598 /* Otherwise it is equivalent to the extended register.
4599 Since the encoding doesn't change this is merely
4600 cosmetic cleanup for debug output. */
4601
4602 i.op[x].regs = i.op[x].regs + 8;
4603 }
4604 }
4605 }
4606
4607 if (i.rex == 0 && i.rex_encoding)
4608 {
4609 /* Check if we can add a REX_OPCODE byte. Look for 8 bit operand
4610 that uses legacy register. If it is "hi" register, don't add
4611 the REX_OPCODE byte. */
4612 int x;
4613 for (x = 0; x < 2; x++)
4614 if (i.types[x].bitfield.class == Reg
4615 && i.types[x].bitfield.byte
4616 && (i.op[x].regs->reg_flags & RegRex64) == 0
4617 && i.op[x].regs->reg_num > 3)
4618 {
4619 gas_assert (!(i.op[x].regs->reg_flags & RegRex));
4620 i.rex_encoding = FALSE;
4621 break;
4622 }
4623
4624 if (i.rex_encoding)
4625 i.rex = REX_OPCODE;
4626 }
4627
4628 if (i.rex != 0)
4629 add_prefix (REX_OPCODE | i.rex);
4630
4631 /* We are ready to output the insn. */
4632 output_insn ();
4633
4634 last_insn.seg = now_seg;
4635
4636 if (i.tm.opcode_modifier.isprefix)
4637 {
4638 last_insn.kind = last_insn_prefix;
4639 last_insn.name = i.tm.name;
4640 last_insn.file = as_where (&last_insn.line);
4641 }
4642 else
4643 last_insn.kind = last_insn_other;
4644 }
4645
4646 static char *
4647 parse_insn (char *line, char *mnemonic)
4648 {
4649 char *l = line;
4650 char *token_start = l;
4651 char *mnem_p;
4652 int supported;
4653 const insn_template *t;
4654 char *dot_p = NULL;
4655
4656 while (1)
4657 {
4658 mnem_p = mnemonic;
4659 while ((*mnem_p = mnemonic_chars[(unsigned char) *l]) != 0)
4660 {
4661 if (*mnem_p == '.')
4662 dot_p = mnem_p;
4663 mnem_p++;
4664 if (mnem_p >= mnemonic + MAX_MNEM_SIZE)
4665 {
4666 as_bad (_("no such instruction: `%s'"), token_start);
4667 return NULL;
4668 }
4669 l++;
4670 }
4671 if (!is_space_char (*l)
4672 && *l != END_OF_INSN
4673 && (intel_syntax
4674 || (*l != PREFIX_SEPARATOR
4675 && *l != ',')))
4676 {
4677 as_bad (_("invalid character %s in mnemonic"),
4678 output_invalid (*l));
4679 return NULL;
4680 }
4681 if (token_start == l)
4682 {
4683 if (!intel_syntax && *l == PREFIX_SEPARATOR)
4684 as_bad (_("expecting prefix; got nothing"));
4685 else
4686 as_bad (_("expecting mnemonic; got nothing"));
4687 return NULL;
4688 }
4689
4690 /* Look up instruction (or prefix) via hash table. */
4691 current_templates = (const templates *) hash_find (op_hash, mnemonic);
4692
4693 if (*l != END_OF_INSN
4694 && (!is_space_char (*l) || l[1] != END_OF_INSN)
4695 && current_templates
4696 && current_templates->start->opcode_modifier.isprefix)
4697 {
4698 if (!cpu_flags_check_cpu64 (current_templates->start->cpu_flags))
4699 {
4700 as_bad ((flag_code != CODE_64BIT
4701 ? _("`%s' is only supported in 64-bit mode")
4702 : _("`%s' is not supported in 64-bit mode")),
4703 current_templates->start->name);
4704 return NULL;
4705 }
4706 /* If we are in 16-bit mode, do not allow addr16 or data16.
4707 Similarly, in 32-bit mode, do not allow addr32 or data32. */
4708 if ((current_templates->start->opcode_modifier.size == SIZE16
4709 || current_templates->start->opcode_modifier.size == SIZE32)
4710 && flag_code != CODE_64BIT
4711 && ((current_templates->start->opcode_modifier.size == SIZE32)
4712 ^ (flag_code == CODE_16BIT)))
4713 {
4714 as_bad (_("redundant %s prefix"),
4715 current_templates->start->name);
4716 return NULL;
4717 }
4718 if (current_templates->start->opcode_length == 0)
4719 {
4720 /* Handle pseudo prefixes. */
4721 switch (current_templates->start->base_opcode)
4722 {
4723 case 0x0:
4724 /* {disp8} */
4725 i.disp_encoding = disp_encoding_8bit;
4726 break;
4727 case 0x1:
4728 /* {disp32} */
4729 i.disp_encoding = disp_encoding_32bit;
4730 break;
4731 case 0x2:
4732 /* {load} */
4733 i.dir_encoding = dir_encoding_load;
4734 break;
4735 case 0x3:
4736 /* {store} */
4737 i.dir_encoding = dir_encoding_store;
4738 break;
4739 case 0x4:
4740 /* {vex} */
4741 i.vec_encoding = vex_encoding_vex;
4742 break;
4743 case 0x5:
4744 /* {vex3} */
4745 i.vec_encoding = vex_encoding_vex3;
4746 break;
4747 case 0x6:
4748 /* {evex} */
4749 i.vec_encoding = vex_encoding_evex;
4750 break;
4751 case 0x7:
4752 /* {rex} */
4753 i.rex_encoding = TRUE;
4754 break;
4755 case 0x8:
4756 /* {nooptimize} */
4757 i.no_optimize = TRUE;
4758 break;
4759 default:
4760 abort ();
4761 }
4762 }
4763 else
4764 {
4765 /* Add prefix, checking for repeated prefixes. */
4766 switch (add_prefix (current_templates->start->base_opcode))
4767 {
4768 case PREFIX_EXIST:
4769 return NULL;
4770 case PREFIX_DS:
4771 if (current_templates->start->cpu_flags.bitfield.cpuibt)
4772 i.notrack_prefix = current_templates->start->name;
4773 break;
4774 case PREFIX_REP:
4775 if (current_templates->start->cpu_flags.bitfield.cpuhle)
4776 i.hle_prefix = current_templates->start->name;
4777 else if (current_templates->start->cpu_flags.bitfield.cpumpx)
4778 i.bnd_prefix = current_templates->start->name;
4779 else
4780 i.rep_prefix = current_templates->start->name;
4781 break;
4782 default:
4783 break;
4784 }
4785 }
4786 /* Skip past PREFIX_SEPARATOR and reset token_start. */
4787 token_start = ++l;
4788 }
4789 else
4790 break;
4791 }
4792
4793 if (!current_templates)
4794 {
4795 /* Deprecated functionality (new code should use pseudo-prefixes instead):
4796 Check if we should swap operand or force 32bit displacement in
4797 encoding. */
4798 if (mnem_p - 2 == dot_p && dot_p[1] == 's')
4799 i.dir_encoding = dir_encoding_swap;
4800 else if (mnem_p - 3 == dot_p
4801 && dot_p[1] == 'd'
4802 && dot_p[2] == '8')
4803 i.disp_encoding = disp_encoding_8bit;
4804 else if (mnem_p - 4 == dot_p
4805 && dot_p[1] == 'd'
4806 && dot_p[2] == '3'
4807 && dot_p[3] == '2')
4808 i.disp_encoding = disp_encoding_32bit;
4809 else
4810 goto check_suffix;
4811 mnem_p = dot_p;
4812 *dot_p = '\0';
4813 current_templates = (const templates *) hash_find (op_hash, mnemonic);
4814 }
4815
4816 if (!current_templates)
4817 {
4818 check_suffix:
4819 if (mnem_p > mnemonic)
4820 {
4821 /* See if we can get a match by trimming off a suffix. */
4822 switch (mnem_p[-1])
4823 {
4824 case WORD_MNEM_SUFFIX:
4825 if (intel_syntax && (intel_float_operand (mnemonic) & 2))
4826 i.suffix = SHORT_MNEM_SUFFIX;
4827 else
4828 /* Fall through. */
4829 case BYTE_MNEM_SUFFIX:
4830 case QWORD_MNEM_SUFFIX:
4831 i.suffix = mnem_p[-1];
4832 mnem_p[-1] = '\0';
4833 current_templates = (const templates *) hash_find (op_hash,
4834 mnemonic);
4835 break;
4836 case SHORT_MNEM_SUFFIX:
4837 case LONG_MNEM_SUFFIX:
4838 if (!intel_syntax)
4839 {
4840 i.suffix = mnem_p[-1];
4841 mnem_p[-1] = '\0';
4842 current_templates = (const templates *) hash_find (op_hash,
4843 mnemonic);
4844 }
4845 break;
4846
4847 /* Intel Syntax. */
4848 case 'd':
4849 if (intel_syntax)
4850 {
4851 if (intel_float_operand (mnemonic) == 1)
4852 i.suffix = SHORT_MNEM_SUFFIX;
4853 else
4854 i.suffix = LONG_MNEM_SUFFIX;
4855 mnem_p[-1] = '\0';
4856 current_templates = (const templates *) hash_find (op_hash,
4857 mnemonic);
4858 }
4859 break;
4860 }
4861 }
4862
4863 if (!current_templates)
4864 {
4865 as_bad (_("no such instruction: `%s'"), token_start);
4866 return NULL;
4867 }
4868 }
4869
4870 if (current_templates->start->opcode_modifier.jump == JUMP
4871 || current_templates->start->opcode_modifier.jump == JUMP_BYTE)
4872 {
4873 /* Check for a branch hint. We allow ",pt" and ",pn" for
4874 predict taken and predict not taken respectively.
4875 I'm not sure that branch hints actually do anything on loop
4876 and jcxz insns (JumpByte) for current Pentium4 chips. They
4877 may work in the future and it doesn't hurt to accept them
4878 now. */
4879 if (l[0] == ',' && l[1] == 'p')
4880 {
4881 if (l[2] == 't')
4882 {
4883 if (!add_prefix (DS_PREFIX_OPCODE))
4884 return NULL;
4885 l += 3;
4886 }
4887 else if (l[2] == 'n')
4888 {
4889 if (!add_prefix (CS_PREFIX_OPCODE))
4890 return NULL;
4891 l += 3;
4892 }
4893 }
4894 }
4895 /* Any other comma loses. */
4896 if (*l == ',')
4897 {
4898 as_bad (_("invalid character %s in mnemonic"),
4899 output_invalid (*l));
4900 return NULL;
4901 }
4902
4903 /* Check if instruction is supported on specified architecture. */
4904 supported = 0;
4905 for (t = current_templates->start; t < current_templates->end; ++t)
4906 {
4907 supported |= cpu_flags_match (t);
4908 if (supported == CPU_FLAGS_PERFECT_MATCH)
4909 {
4910 if (!cpu_arch_flags.bitfield.cpui386 && (flag_code != CODE_16BIT))
4911 as_warn (_("use .code16 to ensure correct addressing mode"));
4912
4913 return l;
4914 }
4915 }
4916
4917 if (!(supported & CPU_FLAGS_64BIT_MATCH))
4918 as_bad (flag_code == CODE_64BIT
4919 ? _("`%s' is not supported in 64-bit mode")
4920 : _("`%s' is only supported in 64-bit mode"),
4921 current_templates->start->name);
4922 else
4923 as_bad (_("`%s' is not supported on `%s%s'"),
4924 current_templates->start->name,
4925 cpu_arch_name ? cpu_arch_name : default_arch,
4926 cpu_sub_arch_name ? cpu_sub_arch_name : "");
4927
4928 return NULL;
4929 }
4930
4931 static char *
4932 parse_operands (char *l, const char *mnemonic)
4933 {
4934 char *token_start;
4935
4936 /* 1 if operand is pending after ','. */
4937 unsigned int expecting_operand = 0;
4938
4939 /* Non-zero if operand parens not balanced. */
4940 unsigned int paren_not_balanced;
4941
4942 while (*l != END_OF_INSN)
4943 {
4944 /* Skip optional white space before operand. */
4945 if (is_space_char (*l))
4946 ++l;
4947 if (!is_operand_char (*l) && *l != END_OF_INSN && *l != '"')
4948 {
4949 as_bad (_("invalid character %s before operand %d"),
4950 output_invalid (*l),
4951 i.operands + 1);
4952 return NULL;
4953 }
4954 token_start = l; /* After white space. */
4955 paren_not_balanced = 0;
4956 while (paren_not_balanced || *l != ',')
4957 {
4958 if (*l == END_OF_INSN)
4959 {
4960 if (paren_not_balanced)
4961 {
4962 if (!intel_syntax)
4963 as_bad (_("unbalanced parenthesis in operand %d."),
4964 i.operands + 1);
4965 else
4966 as_bad (_("unbalanced brackets in operand %d."),
4967 i.operands + 1);
4968 return NULL;
4969 }
4970 else
4971 break; /* we are done */
4972 }
4973 else if (!is_operand_char (*l) && !is_space_char (*l) && *l != '"')
4974 {
4975 as_bad (_("invalid character %s in operand %d"),
4976 output_invalid (*l),
4977 i.operands + 1);
4978 return NULL;
4979 }
4980 if (!intel_syntax)
4981 {
4982 if (*l == '(')
4983 ++paren_not_balanced;
4984 if (*l == ')')
4985 --paren_not_balanced;
4986 }
4987 else
4988 {
4989 if (*l == '[')
4990 ++paren_not_balanced;
4991 if (*l == ']')
4992 --paren_not_balanced;
4993 }
4994 l++;
4995 }
4996 if (l != token_start)
4997 { /* Yes, we've read in another operand. */
4998 unsigned int operand_ok;
4999 this_operand = i.operands++;
5000 if (i.operands > MAX_OPERANDS)
5001 {
5002 as_bad (_("spurious operands; (%d operands/instruction max)"),
5003 MAX_OPERANDS);
5004 return NULL;
5005 }
5006 i.types[this_operand].bitfield.unspecified = 1;
5007 /* Now parse operand adding info to 'i' as we go along. */
5008 END_STRING_AND_SAVE (l);
5009
5010 if (i.mem_operands > 1)
5011 {
5012 as_bad (_("too many memory references for `%s'"),
5013 mnemonic);
5014 return 0;
5015 }
5016
5017 if (intel_syntax)
5018 operand_ok =
5019 i386_intel_operand (token_start,
5020 intel_float_operand (mnemonic));
5021 else
5022 operand_ok = i386_att_operand (token_start);
5023
5024 RESTORE_END_STRING (l);
5025 if (!operand_ok)
5026 return NULL;
5027 }
5028 else
5029 {
5030 if (expecting_operand)
5031 {
5032 expecting_operand_after_comma:
5033 as_bad (_("expecting operand after ','; got nothing"));
5034 return NULL;
5035 }
5036 if (*l == ',')
5037 {
5038 as_bad (_("expecting operand before ','; got nothing"));
5039 return NULL;
5040 }
5041 }
5042
5043 /* Now *l must be either ',' or END_OF_INSN. */
5044 if (*l == ',')
5045 {
5046 if (*++l == END_OF_INSN)
5047 {
5048 /* Just skip it, if it's \n complain. */
5049 goto expecting_operand_after_comma;
5050 }
5051 expecting_operand = 1;
5052 }
5053 }
5054 return l;
5055 }
5056
5057 static void
5058 swap_2_operands (int xchg1, int xchg2)
5059 {
5060 union i386_op temp_op;
5061 i386_operand_type temp_type;
5062 unsigned int temp_flags;
5063 enum bfd_reloc_code_real temp_reloc;
5064
5065 temp_type = i.types[xchg2];
5066 i.types[xchg2] = i.types[xchg1];
5067 i.types[xchg1] = temp_type;
5068
5069 temp_flags = i.flags[xchg2];
5070 i.flags[xchg2] = i.flags[xchg1];
5071 i.flags[xchg1] = temp_flags;
5072
5073 temp_op = i.op[xchg2];
5074 i.op[xchg2] = i.op[xchg1];
5075 i.op[xchg1] = temp_op;
5076
5077 temp_reloc = i.reloc[xchg2];
5078 i.reloc[xchg2] = i.reloc[xchg1];
5079 i.reloc[xchg1] = temp_reloc;
5080
5081 if (i.mask)
5082 {
5083 if (i.mask->operand == xchg1)
5084 i.mask->operand = xchg2;
5085 else if (i.mask->operand == xchg2)
5086 i.mask->operand = xchg1;
5087 }
5088 if (i.broadcast)
5089 {
5090 if (i.broadcast->operand == xchg1)
5091 i.broadcast->operand = xchg2;
5092 else if (i.broadcast->operand == xchg2)
5093 i.broadcast->operand = xchg1;
5094 }
5095 if (i.rounding)
5096 {
5097 if (i.rounding->operand == xchg1)
5098 i.rounding->operand = xchg2;
5099 else if (i.rounding->operand == xchg2)
5100 i.rounding->operand = xchg1;
5101 }
5102 }
5103
5104 static void
5105 swap_operands (void)
5106 {
5107 switch (i.operands)
5108 {
5109 case 5:
5110 case 4:
5111 swap_2_operands (1, i.operands - 2);
5112 /* Fall through. */
5113 case 3:
5114 case 2:
5115 swap_2_operands (0, i.operands - 1);
5116 break;
5117 default:
5118 abort ();
5119 }
5120
5121 if (i.mem_operands == 2)
5122 {
5123 const seg_entry *temp_seg;
5124 temp_seg = i.seg[0];
5125 i.seg[0] = i.seg[1];
5126 i.seg[1] = temp_seg;
5127 }
5128 }
5129
5130 /* Try to ensure constant immediates are represented in the smallest
5131 opcode possible. */
5132 static void
5133 optimize_imm (void)
5134 {
5135 char guess_suffix = 0;
5136 int op;
5137
5138 if (i.suffix)
5139 guess_suffix = i.suffix;
5140 else if (i.reg_operands)
5141 {
5142 /* Figure out a suffix from the last register operand specified.
5143 We can't do this properly yet, i.e. excluding special register
5144 instances, but the following works for instructions with
5145 immediates. In any case, we can't set i.suffix yet. */
5146 for (op = i.operands; --op >= 0;)
5147 if (i.types[op].bitfield.class != Reg)
5148 continue;
5149 else if (i.types[op].bitfield.byte)
5150 {
5151 guess_suffix = BYTE_MNEM_SUFFIX;
5152 break;
5153 }
5154 else if (i.types[op].bitfield.word)
5155 {
5156 guess_suffix = WORD_MNEM_SUFFIX;
5157 break;
5158 }
5159 else if (i.types[op].bitfield.dword)
5160 {
5161 guess_suffix = LONG_MNEM_SUFFIX;
5162 break;
5163 }
5164 else if (i.types[op].bitfield.qword)
5165 {
5166 guess_suffix = QWORD_MNEM_SUFFIX;
5167 break;
5168 }
5169 }
5170 else if ((flag_code == CODE_16BIT) ^ (i.prefix[DATA_PREFIX] != 0))
5171 guess_suffix = WORD_MNEM_SUFFIX;
5172
5173 for (op = i.operands; --op >= 0;)
5174 if (operand_type_check (i.types[op], imm))
5175 {
5176 switch (i.op[op].imms->X_op)
5177 {
5178 case O_constant:
5179 /* If a suffix is given, this operand may be shortened. */
5180 switch (guess_suffix)
5181 {
5182 case LONG_MNEM_SUFFIX:
5183 i.types[op].bitfield.imm32 = 1;
5184 i.types[op].bitfield.imm64 = 1;
5185 break;
5186 case WORD_MNEM_SUFFIX:
5187 i.types[op].bitfield.imm16 = 1;
5188 i.types[op].bitfield.imm32 = 1;
5189 i.types[op].bitfield.imm32s = 1;
5190 i.types[op].bitfield.imm64 = 1;
5191 break;
5192 case BYTE_MNEM_SUFFIX:
5193 i.types[op].bitfield.imm8 = 1;
5194 i.types[op].bitfield.imm8s = 1;
5195 i.types[op].bitfield.imm16 = 1;
5196 i.types[op].bitfield.imm32 = 1;
5197 i.types[op].bitfield.imm32s = 1;
5198 i.types[op].bitfield.imm64 = 1;
5199 break;
5200 }
5201
5202 /* If this operand is at most 16 bits, convert it
5203 to a signed 16 bit number before trying to see
5204 whether it will fit in an even smaller size.
5205 This allows a 16-bit operand such as $0xffe0 to
5206 be recognised as within Imm8S range. */
5207 if ((i.types[op].bitfield.imm16)
5208 && (i.op[op].imms->X_add_number & ~(offsetT) 0xffff) == 0)
5209 {
5210 i.op[op].imms->X_add_number =
5211 (((i.op[op].imms->X_add_number & 0xffff) ^ 0x8000) - 0x8000);
5212 }
5213 #ifdef BFD64
5214 /* Store 32-bit immediate in 64-bit for 64-bit BFD. */
5215 if ((i.types[op].bitfield.imm32)
5216 && ((i.op[op].imms->X_add_number & ~(((offsetT) 2 << 31) - 1))
5217 == 0))
5218 {
5219 i.op[op].imms->X_add_number = ((i.op[op].imms->X_add_number
5220 ^ ((offsetT) 1 << 31))
5221 - ((offsetT) 1 << 31));
5222 }
5223 #endif
5224 i.types[op]
5225 = operand_type_or (i.types[op],
5226 smallest_imm_type (i.op[op].imms->X_add_number));
5227
5228 /* We must avoid matching of Imm32 templates when 64bit
5229 only immediate is available. */
5230 if (guess_suffix == QWORD_MNEM_SUFFIX)
5231 i.types[op].bitfield.imm32 = 0;
5232 break;
5233
5234 case O_absent:
5235 case O_register:
5236 abort ();
5237
5238 /* Symbols and expressions. */
5239 default:
5240 /* Convert symbolic operand to proper sizes for matching, but don't
5241 prevent matching a set of insns that only supports sizes other
5242 than those matching the insn suffix. */
5243 {
5244 i386_operand_type mask, allowed;
5245 const insn_template *t;
5246
5247 operand_type_set (&mask, 0);
5248 operand_type_set (&allowed, 0);
5249
5250 for (t = current_templates->start;
5251 t < current_templates->end;
5252 ++t)
5253 {
5254 allowed = operand_type_or (allowed, t->operand_types[op]);
5255 allowed = operand_type_and (allowed, anyimm);
5256 }
5257 switch (guess_suffix)
5258 {
5259 case QWORD_MNEM_SUFFIX:
5260 mask.bitfield.imm64 = 1;
5261 mask.bitfield.imm32s = 1;
5262 break;
5263 case LONG_MNEM_SUFFIX:
5264 mask.bitfield.imm32 = 1;
5265 break;
5266 case WORD_MNEM_SUFFIX:
5267 mask.bitfield.imm16 = 1;
5268 break;
5269 case BYTE_MNEM_SUFFIX:
5270 mask.bitfield.imm8 = 1;
5271 break;
5272 default:
5273 break;
5274 }
5275 allowed = operand_type_and (mask, allowed);
5276 if (!operand_type_all_zero (&allowed))
5277 i.types[op] = operand_type_and (i.types[op], mask);
5278 }
5279 break;
5280 }
5281 }
5282 }
5283
5284 /* Try to use the smallest displacement type too. */
5285 static void
5286 optimize_disp (void)
5287 {
5288 int op;
5289
5290 for (op = i.operands; --op >= 0;)
5291 if (operand_type_check (i.types[op], disp))
5292 {
5293 if (i.op[op].disps->X_op == O_constant)
5294 {
5295 offsetT op_disp = i.op[op].disps->X_add_number;
5296
5297 if (i.types[op].bitfield.disp16
5298 && (op_disp & ~(offsetT) 0xffff) == 0)
5299 {
5300 /* If this operand is at most 16 bits, convert
5301 to a signed 16 bit number and don't use 64bit
5302 displacement. */
5303 op_disp = (((op_disp & 0xffff) ^ 0x8000) - 0x8000);
5304 i.types[op].bitfield.disp64 = 0;
5305 }
5306 #ifdef BFD64
5307 /* Optimize 64-bit displacement to 32-bit for 64-bit BFD. */
5308 if (i.types[op].bitfield.disp32
5309 && (op_disp & ~(((offsetT) 2 << 31) - 1)) == 0)
5310 {
5311 /* If this operand is at most 32 bits, convert
5312 to a signed 32 bit number and don't use 64bit
5313 displacement. */
5314 op_disp &= (((offsetT) 2 << 31) - 1);
5315 op_disp = (op_disp ^ ((offsetT) 1 << 31)) - ((addressT) 1 << 31);
5316 i.types[op].bitfield.disp64 = 0;
5317 }
5318 #endif
5319 if (!op_disp && i.types[op].bitfield.baseindex)
5320 {
5321 i.types[op].bitfield.disp8 = 0;
5322 i.types[op].bitfield.disp16 = 0;
5323 i.types[op].bitfield.disp32 = 0;
5324 i.types[op].bitfield.disp32s = 0;
5325 i.types[op].bitfield.disp64 = 0;
5326 i.op[op].disps = 0;
5327 i.disp_operands--;
5328 }
5329 else if (flag_code == CODE_64BIT)
5330 {
5331 if (fits_in_signed_long (op_disp))
5332 {
5333 i.types[op].bitfield.disp64 = 0;
5334 i.types[op].bitfield.disp32s = 1;
5335 }
5336 if (i.prefix[ADDR_PREFIX]
5337 && fits_in_unsigned_long (op_disp))
5338 i.types[op].bitfield.disp32 = 1;
5339 }
5340 if ((i.types[op].bitfield.disp32
5341 || i.types[op].bitfield.disp32s
5342 || i.types[op].bitfield.disp16)
5343 && fits_in_disp8 (op_disp))
5344 i.types[op].bitfield.disp8 = 1;
5345 }
5346 else if (i.reloc[op] == BFD_RELOC_386_TLS_DESC_CALL
5347 || i.reloc[op] == BFD_RELOC_X86_64_TLSDESC_CALL)
5348 {
5349 fix_new_exp (frag_now, frag_more (0) - frag_now->fr_literal, 0,
5350 i.op[op].disps, 0, i.reloc[op]);
5351 i.types[op].bitfield.disp8 = 0;
5352 i.types[op].bitfield.disp16 = 0;
5353 i.types[op].bitfield.disp32 = 0;
5354 i.types[op].bitfield.disp32s = 0;
5355 i.types[op].bitfield.disp64 = 0;
5356 }
5357 else
5358 /* We only support 64bit displacement on constants. */
5359 i.types[op].bitfield.disp64 = 0;
5360 }
5361 }
5362
5363 /* Return 1 if there is a match in broadcast bytes between operand
5364 GIVEN and instruction template T. */
5365
5366 static INLINE int
5367 match_broadcast_size (const insn_template *t, unsigned int given)
5368 {
5369 return ((t->opcode_modifier.broadcast == BYTE_BROADCAST
5370 && i.types[given].bitfield.byte)
5371 || (t->opcode_modifier.broadcast == WORD_BROADCAST
5372 && i.types[given].bitfield.word)
5373 || (t->opcode_modifier.broadcast == DWORD_BROADCAST
5374 && i.types[given].bitfield.dword)
5375 || (t->opcode_modifier.broadcast == QWORD_BROADCAST
5376 && i.types[given].bitfield.qword));
5377 }
5378
5379 /* Check if operands are valid for the instruction. */
5380
5381 static int
5382 check_VecOperands (const insn_template *t)
5383 {
5384 unsigned int op;
5385 i386_cpu_flags cpu;
5386
5387 /* Templates allowing for ZMMword as well as YMMword and/or XMMword for
5388 any one operand are implicity requiring AVX512VL support if the actual
5389 operand size is YMMword or XMMword. Since this function runs after
5390 template matching, there's no need to check for YMMword/XMMword in
5391 the template. */
5392 cpu = cpu_flags_and (t->cpu_flags, avx512);
5393 if (!cpu_flags_all_zero (&cpu)
5394 && !t->cpu_flags.bitfield.cpuavx512vl
5395 && !cpu_arch_flags.bitfield.cpuavx512vl)
5396 {
5397 for (op = 0; op < t->operands; ++op)
5398 {
5399 if (t->operand_types[op].bitfield.zmmword
5400 && (i.types[op].bitfield.ymmword
5401 || i.types[op].bitfield.xmmword))
5402 {
5403 i.error = unsupported;
5404 return 1;
5405 }
5406 }
5407 }
5408
5409 /* Without VSIB byte, we can't have a vector register for index. */
5410 if (!t->opcode_modifier.vecsib
5411 && i.index_reg
5412 && (i.index_reg->reg_type.bitfield.xmmword
5413 || i.index_reg->reg_type.bitfield.ymmword
5414 || i.index_reg->reg_type.bitfield.zmmword))
5415 {
5416 i.error = unsupported_vector_index_register;
5417 return 1;
5418 }
5419
5420 /* Check if default mask is allowed. */
5421 if (t->opcode_modifier.nodefmask
5422 && (!i.mask || i.mask->mask->reg_num == 0))
5423 {
5424 i.error = no_default_mask;
5425 return 1;
5426 }
5427
5428 /* For VSIB byte, we need a vector register for index, and all vector
5429 registers must be distinct. */
5430 if (t->opcode_modifier.vecsib)
5431 {
5432 if (!i.index_reg
5433 || !((t->opcode_modifier.vecsib == VecSIB128
5434 && i.index_reg->reg_type.bitfield.xmmword)
5435 || (t->opcode_modifier.vecsib == VecSIB256
5436 && i.index_reg->reg_type.bitfield.ymmword)
5437 || (t->opcode_modifier.vecsib == VecSIB512
5438 && i.index_reg->reg_type.bitfield.zmmword)))
5439 {
5440 i.error = invalid_vsib_address;
5441 return 1;
5442 }
5443
5444 gas_assert (i.reg_operands == 2 || i.mask);
5445 if (i.reg_operands == 2 && !i.mask)
5446 {
5447 gas_assert (i.types[0].bitfield.class == RegSIMD);
5448 gas_assert (i.types[0].bitfield.xmmword
5449 || i.types[0].bitfield.ymmword);
5450 gas_assert (i.types[2].bitfield.class == RegSIMD);
5451 gas_assert (i.types[2].bitfield.xmmword
5452 || i.types[2].bitfield.ymmword);
5453 if (operand_check == check_none)
5454 return 0;
5455 if (register_number (i.op[0].regs)
5456 != register_number (i.index_reg)
5457 && register_number (i.op[2].regs)
5458 != register_number (i.index_reg)
5459 && register_number (i.op[0].regs)
5460 != register_number (i.op[2].regs))
5461 return 0;
5462 if (operand_check == check_error)
5463 {
5464 i.error = invalid_vector_register_set;
5465 return 1;
5466 }
5467 as_warn (_("mask, index, and destination registers should be distinct"));
5468 }
5469 else if (i.reg_operands == 1 && i.mask)
5470 {
5471 if (i.types[1].bitfield.class == RegSIMD
5472 && (i.types[1].bitfield.xmmword
5473 || i.types[1].bitfield.ymmword
5474 || i.types[1].bitfield.zmmword)
5475 && (register_number (i.op[1].regs)
5476 == register_number (i.index_reg)))
5477 {
5478 if (operand_check == check_error)
5479 {
5480 i.error = invalid_vector_register_set;
5481 return 1;
5482 }
5483 if (operand_check != check_none)
5484 as_warn (_("index and destination registers should be distinct"));
5485 }
5486 }
5487 }
5488
5489 /* Check if broadcast is supported by the instruction and is applied
5490 to the memory operand. */
5491 if (i.broadcast)
5492 {
5493 i386_operand_type type, overlap;
5494
5495 /* Check if specified broadcast is supported in this instruction,
5496 and its broadcast bytes match the memory operand. */
5497 op = i.broadcast->operand;
5498 if (!t->opcode_modifier.broadcast
5499 || !(i.flags[op] & Operand_Mem)
5500 || (!i.types[op].bitfield.unspecified
5501 && !match_broadcast_size (t, op)))
5502 {
5503 bad_broadcast:
5504 i.error = unsupported_broadcast;
5505 return 1;
5506 }
5507
5508 i.broadcast->bytes = ((1 << (t->opcode_modifier.broadcast - 1))
5509 * i.broadcast->type);
5510 operand_type_set (&type, 0);
5511 switch (i.broadcast->bytes)
5512 {
5513 case 2:
5514 type.bitfield.word = 1;
5515 break;
5516 case 4:
5517 type.bitfield.dword = 1;
5518 break;
5519 case 8:
5520 type.bitfield.qword = 1;
5521 break;
5522 case 16:
5523 type.bitfield.xmmword = 1;
5524 break;
5525 case 32:
5526 type.bitfield.ymmword = 1;
5527 break;
5528 case 64:
5529 type.bitfield.zmmword = 1;
5530 break;
5531 default:
5532 goto bad_broadcast;
5533 }
5534
5535 overlap = operand_type_and (type, t->operand_types[op]);
5536 if (operand_type_all_zero (&overlap))
5537 goto bad_broadcast;
5538
5539 if (t->opcode_modifier.checkregsize)
5540 {
5541 unsigned int j;
5542
5543 type.bitfield.baseindex = 1;
5544 for (j = 0; j < i.operands; ++j)
5545 {
5546 if (j != op
5547 && !operand_type_register_match(i.types[j],
5548 t->operand_types[j],
5549 type,
5550 t->operand_types[op]))
5551 goto bad_broadcast;
5552 }
5553 }
5554 }
5555 /* If broadcast is supported in this instruction, we need to check if
5556 operand of one-element size isn't specified without broadcast. */
5557 else if (t->opcode_modifier.broadcast && i.mem_operands)
5558 {
5559 /* Find memory operand. */
5560 for (op = 0; op < i.operands; op++)
5561 if (i.flags[op] & Operand_Mem)
5562 break;
5563 gas_assert (op < i.operands);
5564 /* Check size of the memory operand. */
5565 if (match_broadcast_size (t, op))
5566 {
5567 i.error = broadcast_needed;
5568 return 1;
5569 }
5570 }
5571 else
5572 op = MAX_OPERANDS - 1; /* Avoid uninitialized variable warning. */
5573
5574 /* Check if requested masking is supported. */
5575 if (i.mask)
5576 {
5577 switch (t->opcode_modifier.masking)
5578 {
5579 case BOTH_MASKING:
5580 break;
5581 case MERGING_MASKING:
5582 if (i.mask->zeroing)
5583 {
5584 case 0:
5585 i.error = unsupported_masking;
5586 return 1;
5587 }
5588 break;
5589 case DYNAMIC_MASKING:
5590 /* Memory destinations allow only merging masking. */
5591 if (i.mask->zeroing && i.mem_operands)
5592 {
5593 /* Find memory operand. */
5594 for (op = 0; op < i.operands; op++)
5595 if (i.flags[op] & Operand_Mem)
5596 break;
5597 gas_assert (op < i.operands);
5598 if (op == i.operands - 1)
5599 {
5600 i.error = unsupported_masking;
5601 return 1;
5602 }
5603 }
5604 break;
5605 default:
5606 abort ();
5607 }
5608 }
5609
5610 /* Check if masking is applied to dest operand. */
5611 if (i.mask && (i.mask->operand != (int) (i.operands - 1)))
5612 {
5613 i.error = mask_not_on_destination;
5614 return 1;
5615 }
5616
5617 /* Check RC/SAE. */
5618 if (i.rounding)
5619 {
5620 if (!t->opcode_modifier.sae
5621 || (i.rounding->type != saeonly && !t->opcode_modifier.staticrounding))
5622 {
5623 i.error = unsupported_rc_sae;
5624 return 1;
5625 }
5626 /* If the instruction has several immediate operands and one of
5627 them is rounding, the rounding operand should be the last
5628 immediate operand. */
5629 if (i.imm_operands > 1
5630 && i.rounding->operand != (int) (i.imm_operands - 1))
5631 {
5632 i.error = rc_sae_operand_not_last_imm;
5633 return 1;
5634 }
5635 }
5636
5637 /* Check vector Disp8 operand. */
5638 if (t->opcode_modifier.disp8memshift
5639 && i.disp_encoding != disp_encoding_32bit)
5640 {
5641 if (i.broadcast)
5642 i.memshift = t->opcode_modifier.broadcast - 1;
5643 else if (t->opcode_modifier.disp8memshift != DISP8_SHIFT_VL)
5644 i.memshift = t->opcode_modifier.disp8memshift;
5645 else
5646 {
5647 const i386_operand_type *type = NULL;
5648
5649 i.memshift = 0;
5650 for (op = 0; op < i.operands; op++)
5651 if (i.flags[op] & Operand_Mem)
5652 {
5653 if (t->opcode_modifier.evex == EVEXLIG)
5654 i.memshift = 2 + (i.suffix == QWORD_MNEM_SUFFIX);
5655 else if (t->operand_types[op].bitfield.xmmword
5656 + t->operand_types[op].bitfield.ymmword
5657 + t->operand_types[op].bitfield.zmmword <= 1)
5658 type = &t->operand_types[op];
5659 else if (!i.types[op].bitfield.unspecified)
5660 type = &i.types[op];
5661 }
5662 else if (i.types[op].bitfield.class == RegSIMD
5663 && t->opcode_modifier.evex != EVEXLIG)
5664 {
5665 if (i.types[op].bitfield.zmmword)
5666 i.memshift = 6;
5667 else if (i.types[op].bitfield.ymmword && i.memshift < 5)
5668 i.memshift = 5;
5669 else if (i.types[op].bitfield.xmmword && i.memshift < 4)
5670 i.memshift = 4;
5671 }
5672
5673 if (type)
5674 {
5675 if (type->bitfield.zmmword)
5676 i.memshift = 6;
5677 else if (type->bitfield.ymmword)
5678 i.memshift = 5;
5679 else if (type->bitfield.xmmword)
5680 i.memshift = 4;
5681 }
5682
5683 /* For the check in fits_in_disp8(). */
5684 if (i.memshift == 0)
5685 i.memshift = -1;
5686 }
5687
5688 for (op = 0; op < i.operands; op++)
5689 if (operand_type_check (i.types[op], disp)
5690 && i.op[op].disps->X_op == O_constant)
5691 {
5692 if (fits_in_disp8 (i.op[op].disps->X_add_number))
5693 {
5694 i.types[op].bitfield.disp8 = 1;
5695 return 0;
5696 }
5697 i.types[op].bitfield.disp8 = 0;
5698 }
5699 }
5700
5701 i.memshift = 0;
5702
5703 return 0;
5704 }
5705
5706 /* Check if operands are valid for the instruction. Update VEX
5707 operand types. */
5708
5709 static int
5710 VEX_check_operands (const insn_template *t)
5711 {
5712 if (i.vec_encoding == vex_encoding_evex)
5713 {
5714 /* This instruction must be encoded with EVEX prefix. */
5715 if (!is_evex_encoding (t))
5716 {
5717 i.error = unsupported;
5718 return 1;
5719 }
5720 return 0;
5721 }
5722
5723 if (!t->opcode_modifier.vex)
5724 {
5725 /* This instruction template doesn't have VEX prefix. */
5726 if (i.vec_encoding != vex_encoding_default)
5727 {
5728 i.error = unsupported;
5729 return 1;
5730 }
5731 return 0;
5732 }
5733
5734 /* Check the special Imm4 cases; must be the first operand. */
5735 if (t->cpu_flags.bitfield.cpuxop && t->operands == 5)
5736 {
5737 if (i.op[0].imms->X_op != O_constant
5738 || !fits_in_imm4 (i.op[0].imms->X_add_number))
5739 {
5740 i.error = bad_imm4;
5741 return 1;
5742 }
5743
5744 /* Turn off Imm<N> so that update_imm won't complain. */
5745 operand_type_set (&i.types[0], 0);
5746 }
5747
5748 return 0;
5749 }
5750
5751 static const insn_template *
5752 match_template (char mnem_suffix)
5753 {
5754 /* Points to template once we've found it. */
5755 const insn_template *t;
5756 i386_operand_type overlap0, overlap1, overlap2, overlap3;
5757 i386_operand_type overlap4;
5758 unsigned int found_reverse_match;
5759 i386_opcode_modifier suffix_check;
5760 i386_operand_type operand_types [MAX_OPERANDS];
5761 int addr_prefix_disp;
5762 unsigned int j, size_match, check_register;
5763 enum i386_error specific_error = 0;
5764
5765 #if MAX_OPERANDS != 5
5766 # error "MAX_OPERANDS must be 5."
5767 #endif
5768
5769 found_reverse_match = 0;
5770 addr_prefix_disp = -1;
5771
5772 /* Prepare for mnemonic suffix check. */
5773 memset (&suffix_check, 0, sizeof (suffix_check));
5774 switch (mnem_suffix)
5775 {
5776 case BYTE_MNEM_SUFFIX:
5777 suffix_check.no_bsuf = 1;
5778 break;
5779 case WORD_MNEM_SUFFIX:
5780 suffix_check.no_wsuf = 1;
5781 break;
5782 case SHORT_MNEM_SUFFIX:
5783 suffix_check.no_ssuf = 1;
5784 break;
5785 case LONG_MNEM_SUFFIX:
5786 suffix_check.no_lsuf = 1;
5787 break;
5788 case QWORD_MNEM_SUFFIX:
5789 suffix_check.no_qsuf = 1;
5790 break;
5791 default:
5792 /* NB: In Intel syntax, normally we can check for memory operand
5793 size when there is no mnemonic suffix. But jmp and call have
5794 2 different encodings with Dword memory operand size, one with
5795 No_ldSuf and the other without. i.suffix is set to
5796 LONG_DOUBLE_MNEM_SUFFIX to skip the one with No_ldSuf. */
5797 if (i.suffix == LONG_DOUBLE_MNEM_SUFFIX)
5798 suffix_check.no_ldsuf = 1;
5799 }
5800
5801 /* Must have right number of operands. */
5802 i.error = number_of_operands_mismatch;
5803
5804 for (t = current_templates->start; t < current_templates->end; t++)
5805 {
5806 addr_prefix_disp = -1;
5807 found_reverse_match = 0;
5808
5809 if (i.operands != t->operands)
5810 continue;
5811
5812 /* Check processor support. */
5813 i.error = unsupported;
5814 if (cpu_flags_match (t) != CPU_FLAGS_PERFECT_MATCH)
5815 continue;
5816
5817 /* Check AT&T mnemonic. */
5818 i.error = unsupported_with_intel_mnemonic;
5819 if (intel_mnemonic && t->opcode_modifier.attmnemonic)
5820 continue;
5821
5822 /* Check AT&T/Intel syntax. */
5823 i.error = unsupported_syntax;
5824 if ((intel_syntax && t->opcode_modifier.attsyntax)
5825 || (!intel_syntax && t->opcode_modifier.intelsyntax))
5826 continue;
5827
5828 /* Check Intel64/AMD64 ISA. */
5829 switch (isa64)
5830 {
5831 default:
5832 /* Default: Don't accept Intel64. */
5833 if (t->opcode_modifier.isa64 == INTEL64)
5834 continue;
5835 break;
5836 case amd64:
5837 /* -mamd64: Don't accept Intel64 and Intel64 only. */
5838 if (t->opcode_modifier.isa64 >= INTEL64)
5839 continue;
5840 break;
5841 case intel64:
5842 /* -mintel64: Don't accept AMD64. */
5843 if (t->opcode_modifier.isa64 == AMD64 && flag_code == CODE_64BIT)
5844 continue;
5845 break;
5846 }
5847
5848 /* Check the suffix. */
5849 i.error = invalid_instruction_suffix;
5850 if ((t->opcode_modifier.no_bsuf && suffix_check.no_bsuf)
5851 || (t->opcode_modifier.no_wsuf && suffix_check.no_wsuf)
5852 || (t->opcode_modifier.no_lsuf && suffix_check.no_lsuf)
5853 || (t->opcode_modifier.no_ssuf && suffix_check.no_ssuf)
5854 || (t->opcode_modifier.no_qsuf && suffix_check.no_qsuf)
5855 || (t->opcode_modifier.no_ldsuf && suffix_check.no_ldsuf))
5856 continue;
5857
5858 size_match = operand_size_match (t);
5859 if (!size_match)
5860 continue;
5861
5862 /* This is intentionally not
5863
5864 if (i.jumpabsolute != (t->opcode_modifier.jump == JUMP_ABSOLUTE))
5865
5866 as the case of a missing * on the operand is accepted (perhaps with
5867 a warning, issued further down). */
5868 if (i.jumpabsolute && t->opcode_modifier.jump != JUMP_ABSOLUTE)
5869 {
5870 i.error = operand_type_mismatch;
5871 continue;
5872 }
5873
5874 for (j = 0; j < MAX_OPERANDS; j++)
5875 operand_types[j] = t->operand_types[j];
5876
5877 /* In general, don't allow 64-bit operands in 32-bit mode. */
5878 if (i.suffix == QWORD_MNEM_SUFFIX
5879 && flag_code != CODE_64BIT
5880 && (intel_syntax
5881 ? (t->opcode_modifier.mnemonicsize != IGNORESIZE
5882 && !t->opcode_modifier.broadcast
5883 && !intel_float_operand (t->name))
5884 : intel_float_operand (t->name) != 2)
5885 && ((operand_types[0].bitfield.class != RegMMX
5886 && operand_types[0].bitfield.class != RegSIMD)
5887 || (operand_types[t->operands > 1].bitfield.class != RegMMX
5888 && operand_types[t->operands > 1].bitfield.class != RegSIMD))
5889 && (t->base_opcode != 0x0fc7
5890 || t->extension_opcode != 1 /* cmpxchg8b */))
5891 continue;
5892
5893 /* In general, don't allow 32-bit operands on pre-386. */
5894 else if (i.suffix == LONG_MNEM_SUFFIX
5895 && !cpu_arch_flags.bitfield.cpui386
5896 && (intel_syntax
5897 ? (t->opcode_modifier.mnemonicsize != IGNORESIZE
5898 && !intel_float_operand (t->name))
5899 : intel_float_operand (t->name) != 2)
5900 && ((operand_types[0].bitfield.class != RegMMX
5901 && operand_types[0].bitfield.class != RegSIMD)
5902 || (operand_types[t->operands > 1].bitfield.class != RegMMX
5903 && operand_types[t->operands > 1].bitfield.class
5904 != RegSIMD)))
5905 continue;
5906
5907 /* Do not verify operands when there are none. */
5908 else
5909 {
5910 if (!t->operands)
5911 /* We've found a match; break out of loop. */
5912 break;
5913 }
5914
5915 if (!t->opcode_modifier.jump
5916 || t->opcode_modifier.jump == JUMP_ABSOLUTE)
5917 {
5918 /* There should be only one Disp operand. */
5919 for (j = 0; j < MAX_OPERANDS; j++)
5920 if (operand_type_check (operand_types[j], disp))
5921 break;
5922 if (j < MAX_OPERANDS)
5923 {
5924 bfd_boolean override = (i.prefix[ADDR_PREFIX] != 0);
5925
5926 addr_prefix_disp = j;
5927
5928 /* Address size prefix will turn Disp64/Disp32S/Disp32/Disp16
5929 operand into Disp32/Disp32/Disp16/Disp32 operand. */
5930 switch (flag_code)
5931 {
5932 case CODE_16BIT:
5933 override = !override;
5934 /* Fall through. */
5935 case CODE_32BIT:
5936 if (operand_types[j].bitfield.disp32
5937 && operand_types[j].bitfield.disp16)
5938 {
5939 operand_types[j].bitfield.disp16 = override;
5940 operand_types[j].bitfield.disp32 = !override;
5941 }
5942 operand_types[j].bitfield.disp32s = 0;
5943 operand_types[j].bitfield.disp64 = 0;
5944 break;
5945
5946 case CODE_64BIT:
5947 if (operand_types[j].bitfield.disp32s
5948 || operand_types[j].bitfield.disp64)
5949 {
5950 operand_types[j].bitfield.disp64 &= !override;
5951 operand_types[j].bitfield.disp32s &= !override;
5952 operand_types[j].bitfield.disp32 = override;
5953 }
5954 operand_types[j].bitfield.disp16 = 0;
5955 break;
5956 }
5957 }
5958 }
5959
5960 /* Force 0x8b encoding for "mov foo@GOT, %eax". */
5961 if (i.reloc[0] == BFD_RELOC_386_GOT32 && t->base_opcode == 0xa0)
5962 continue;
5963
5964 /* We check register size if needed. */
5965 if (t->opcode_modifier.checkregsize)
5966 {
5967 check_register = (1 << t->operands) - 1;
5968 if (i.broadcast)
5969 check_register &= ~(1 << i.broadcast->operand);
5970 }
5971 else
5972 check_register = 0;
5973
5974 overlap0 = operand_type_and (i.types[0], operand_types[0]);
5975 switch (t->operands)
5976 {
5977 case 1:
5978 if (!operand_type_match (overlap0, i.types[0]))
5979 continue;
5980 break;
5981 case 2:
5982 /* xchg %eax, %eax is a special case. It is an alias for nop
5983 only in 32bit mode and we can use opcode 0x90. In 64bit
5984 mode, we can't use 0x90 for xchg %eax, %eax since it should
5985 zero-extend %eax to %rax. */
5986 if (flag_code == CODE_64BIT
5987 && t->base_opcode == 0x90
5988 && i.types[0].bitfield.instance == Accum
5989 && i.types[0].bitfield.dword
5990 && i.types[1].bitfield.instance == Accum
5991 && i.types[1].bitfield.dword)
5992 continue;
5993 /* xrelease mov %eax, <disp> is another special case. It must not
5994 match the accumulator-only encoding of mov. */
5995 if (flag_code != CODE_64BIT
5996 && i.hle_prefix
5997 && t->base_opcode == 0xa0
5998 && i.types[0].bitfield.instance == Accum
5999 && (i.flags[1] & Operand_Mem))
6000 continue;
6001 /* Fall through. */
6002
6003 case 3:
6004 if (!(size_match & MATCH_STRAIGHT))
6005 goto check_reverse;
6006 /* Reverse direction of operands if swapping is possible in the first
6007 place (operands need to be symmetric) and
6008 - the load form is requested, and the template is a store form,
6009 - the store form is requested, and the template is a load form,
6010 - the non-default (swapped) form is requested. */
6011 overlap1 = operand_type_and (operand_types[0], operand_types[1]);
6012 if (t->opcode_modifier.d && i.reg_operands == i.operands
6013 && !operand_type_all_zero (&overlap1))
6014 switch (i.dir_encoding)
6015 {
6016 case dir_encoding_load:
6017 if (operand_type_check (operand_types[i.operands - 1], anymem)
6018 || t->opcode_modifier.regmem)
6019 goto check_reverse;
6020 break;
6021
6022 case dir_encoding_store:
6023 if (!operand_type_check (operand_types[i.operands - 1], anymem)
6024 && !t->opcode_modifier.regmem)
6025 goto check_reverse;
6026 break;
6027
6028 case dir_encoding_swap:
6029 goto check_reverse;
6030
6031 case dir_encoding_default:
6032 break;
6033 }
6034 /* If we want store form, we skip the current load. */
6035 if ((i.dir_encoding == dir_encoding_store
6036 || i.dir_encoding == dir_encoding_swap)
6037 && i.mem_operands == 0
6038 && t->opcode_modifier.load)
6039 continue;
6040 /* Fall through. */
6041 case 4:
6042 case 5:
6043 overlap1 = operand_type_and (i.types[1], operand_types[1]);
6044 if (!operand_type_match (overlap0, i.types[0])
6045 || !operand_type_match (overlap1, i.types[1])
6046 || ((check_register & 3) == 3
6047 && !operand_type_register_match (i.types[0],
6048 operand_types[0],
6049 i.types[1],
6050 operand_types[1])))
6051 {
6052 /* Check if other direction is valid ... */
6053 if (!t->opcode_modifier.d)
6054 continue;
6055
6056 check_reverse:
6057 if (!(size_match & MATCH_REVERSE))
6058 continue;
6059 /* Try reversing direction of operands. */
6060 overlap0 = operand_type_and (i.types[0], operand_types[i.operands - 1]);
6061 overlap1 = operand_type_and (i.types[i.operands - 1], operand_types[0]);
6062 if (!operand_type_match (overlap0, i.types[0])
6063 || !operand_type_match (overlap1, i.types[i.operands - 1])
6064 || (check_register
6065 && !operand_type_register_match (i.types[0],
6066 operand_types[i.operands - 1],
6067 i.types[i.operands - 1],
6068 operand_types[0])))
6069 {
6070 /* Does not match either direction. */
6071 continue;
6072 }
6073 /* found_reverse_match holds which of D or FloatR
6074 we've found. */
6075 if (!t->opcode_modifier.d)
6076 found_reverse_match = 0;
6077 else if (operand_types[0].bitfield.tbyte)
6078 found_reverse_match = Opcode_FloatD;
6079 else if (operand_types[0].bitfield.xmmword
6080 || operand_types[i.operands - 1].bitfield.xmmword
6081 || operand_types[0].bitfield.class == RegMMX
6082 || operand_types[i.operands - 1].bitfield.class == RegMMX
6083 || is_any_vex_encoding(t))
6084 found_reverse_match = (t->base_opcode & 0xee) != 0x6e
6085 ? Opcode_SIMD_FloatD : Opcode_SIMD_IntD;
6086 else
6087 found_reverse_match = Opcode_D;
6088 if (t->opcode_modifier.floatr)
6089 found_reverse_match |= Opcode_FloatR;
6090 }
6091 else
6092 {
6093 /* Found a forward 2 operand match here. */
6094 switch (t->operands)
6095 {
6096 case 5:
6097 overlap4 = operand_type_and (i.types[4],
6098 operand_types[4]);
6099 /* Fall through. */
6100 case 4:
6101 overlap3 = operand_type_and (i.types[3],
6102 operand_types[3]);
6103 /* Fall through. */
6104 case 3:
6105 overlap2 = operand_type_and (i.types[2],
6106 operand_types[2]);
6107 break;
6108 }
6109
6110 switch (t->operands)
6111 {
6112 case 5:
6113 if (!operand_type_match (overlap4, i.types[4])
6114 || !operand_type_register_match (i.types[3],
6115 operand_types[3],
6116 i.types[4],
6117 operand_types[4]))
6118 continue;
6119 /* Fall through. */
6120 case 4:
6121 if (!operand_type_match (overlap3, i.types[3])
6122 || ((check_register & 0xa) == 0xa
6123 && !operand_type_register_match (i.types[1],
6124 operand_types[1],
6125 i.types[3],
6126 operand_types[3]))
6127 || ((check_register & 0xc) == 0xc
6128 && !operand_type_register_match (i.types[2],
6129 operand_types[2],
6130 i.types[3],
6131 operand_types[3])))
6132 continue;
6133 /* Fall through. */
6134 case 3:
6135 /* Here we make use of the fact that there are no
6136 reverse match 3 operand instructions. */
6137 if (!operand_type_match (overlap2, i.types[2])
6138 || ((check_register & 5) == 5
6139 && !operand_type_register_match (i.types[0],
6140 operand_types[0],
6141 i.types[2],
6142 operand_types[2]))
6143 || ((check_register & 6) == 6
6144 && !operand_type_register_match (i.types[1],
6145 operand_types[1],
6146 i.types[2],
6147 operand_types[2])))
6148 continue;
6149 break;
6150 }
6151 }
6152 /* Found either forward/reverse 2, 3 or 4 operand match here:
6153 slip through to break. */
6154 }
6155
6156 /* Check if vector and VEX operands are valid. */
6157 if (check_VecOperands (t) || VEX_check_operands (t))
6158 {
6159 specific_error = i.error;
6160 continue;
6161 }
6162
6163 /* We've found a match; break out of loop. */
6164 break;
6165 }
6166
6167 if (t == current_templates->end)
6168 {
6169 /* We found no match. */
6170 const char *err_msg;
6171 switch (specific_error ? specific_error : i.error)
6172 {
6173 default:
6174 abort ();
6175 case operand_size_mismatch:
6176 err_msg = _("operand size mismatch");
6177 break;
6178 case operand_type_mismatch:
6179 err_msg = _("operand type mismatch");
6180 break;
6181 case register_type_mismatch:
6182 err_msg = _("register type mismatch");
6183 break;
6184 case number_of_operands_mismatch:
6185 err_msg = _("number of operands mismatch");
6186 break;
6187 case invalid_instruction_suffix:
6188 err_msg = _("invalid instruction suffix");
6189 break;
6190 case bad_imm4:
6191 err_msg = _("constant doesn't fit in 4 bits");
6192 break;
6193 case unsupported_with_intel_mnemonic:
6194 err_msg = _("unsupported with Intel mnemonic");
6195 break;
6196 case unsupported_syntax:
6197 err_msg = _("unsupported syntax");
6198 break;
6199 case unsupported:
6200 as_bad (_("unsupported instruction `%s'"),
6201 current_templates->start->name);
6202 return NULL;
6203 case invalid_vsib_address:
6204 err_msg = _("invalid VSIB address");
6205 break;
6206 case invalid_vector_register_set:
6207 err_msg = _("mask, index, and destination registers must be distinct");
6208 break;
6209 case unsupported_vector_index_register:
6210 err_msg = _("unsupported vector index register");
6211 break;
6212 case unsupported_broadcast:
6213 err_msg = _("unsupported broadcast");
6214 break;
6215 case broadcast_needed:
6216 err_msg = _("broadcast is needed for operand of such type");
6217 break;
6218 case unsupported_masking:
6219 err_msg = _("unsupported masking");
6220 break;
6221 case mask_not_on_destination:
6222 err_msg = _("mask not on destination operand");
6223 break;
6224 case no_default_mask:
6225 err_msg = _("default mask isn't allowed");
6226 break;
6227 case unsupported_rc_sae:
6228 err_msg = _("unsupported static rounding/sae");
6229 break;
6230 case rc_sae_operand_not_last_imm:
6231 if (intel_syntax)
6232 err_msg = _("RC/SAE operand must precede immediate operands");
6233 else
6234 err_msg = _("RC/SAE operand must follow immediate operands");
6235 break;
6236 case invalid_register_operand:
6237 err_msg = _("invalid register operand");
6238 break;
6239 }
6240 as_bad (_("%s for `%s'"), err_msg,
6241 current_templates->start->name);
6242 return NULL;
6243 }
6244
6245 if (!quiet_warnings)
6246 {
6247 if (!intel_syntax
6248 && (i.jumpabsolute != (t->opcode_modifier.jump == JUMP_ABSOLUTE)))
6249 as_warn (_("indirect %s without `*'"), t->name);
6250
6251 if (t->opcode_modifier.isprefix
6252 && t->opcode_modifier.mnemonicsize == IGNORESIZE)
6253 {
6254 /* Warn them that a data or address size prefix doesn't
6255 affect assembly of the next line of code. */
6256 as_warn (_("stand-alone `%s' prefix"), t->name);
6257 }
6258 }
6259
6260 /* Copy the template we found. */
6261 i.tm = *t;
6262
6263 if (addr_prefix_disp != -1)
6264 i.tm.operand_types[addr_prefix_disp]
6265 = operand_types[addr_prefix_disp];
6266
6267 if (found_reverse_match)
6268 {
6269 /* If we found a reverse match we must alter the opcode direction
6270 bit and clear/flip the regmem modifier one. found_reverse_match
6271 holds bits to change (different for int & float insns). */
6272
6273 i.tm.base_opcode ^= found_reverse_match;
6274
6275 i.tm.operand_types[0] = operand_types[i.operands - 1];
6276 i.tm.operand_types[i.operands - 1] = operand_types[0];
6277
6278 /* Certain SIMD insns have their load forms specified in the opcode
6279 table, and hence we need to _set_ RegMem instead of clearing it.
6280 We need to avoid setting the bit though on insns like KMOVW. */
6281 i.tm.opcode_modifier.regmem
6282 = i.tm.opcode_modifier.modrm && i.tm.opcode_modifier.d
6283 && i.tm.operands > 2U - i.tm.opcode_modifier.sse2avx
6284 && !i.tm.opcode_modifier.regmem;
6285 }
6286
6287 return t;
6288 }
6289
6290 static int
6291 check_string (void)
6292 {
6293 unsigned int es_op = i.tm.opcode_modifier.isstring - IS_STRING_ES_OP0;
6294 unsigned int op = i.tm.operand_types[0].bitfield.baseindex ? es_op : 0;
6295
6296 if (i.seg[op] != NULL && i.seg[op] != &es)
6297 {
6298 as_bad (_("`%s' operand %u must use `%ses' segment"),
6299 i.tm.name,
6300 intel_syntax ? i.tm.operands - es_op : es_op + 1,
6301 register_prefix);
6302 return 0;
6303 }
6304
6305 /* There's only ever one segment override allowed per instruction.
6306 This instruction possibly has a legal segment override on the
6307 second operand, so copy the segment to where non-string
6308 instructions store it, allowing common code. */
6309 i.seg[op] = i.seg[1];
6310
6311 return 1;
6312 }
6313
6314 static int
6315 process_suffix (void)
6316 {
6317 /* If matched instruction specifies an explicit instruction mnemonic
6318 suffix, use it. */
6319 if (i.tm.opcode_modifier.size == SIZE16)
6320 i.suffix = WORD_MNEM_SUFFIX;
6321 else if (i.tm.opcode_modifier.size == SIZE32)
6322 i.suffix = LONG_MNEM_SUFFIX;
6323 else if (i.tm.opcode_modifier.size == SIZE64)
6324 i.suffix = QWORD_MNEM_SUFFIX;
6325 else if (i.reg_operands
6326 && (i.operands > 1 || i.types[0].bitfield.class == Reg)
6327 && !i.tm.opcode_modifier.addrprefixopreg)
6328 {
6329 unsigned int numop = i.operands;
6330
6331 /* movsx/movzx want only their source operand considered here, for the
6332 ambiguity checking below. The suffix will be replaced afterwards
6333 to represent the destination (register). */
6334 if (((i.tm.base_opcode | 8) == 0xfbe && i.tm.opcode_modifier.w)
6335 || (i.tm.base_opcode == 0x63 && i.tm.cpu_flags.bitfield.cpu64))
6336 --i.operands;
6337
6338 /* crc32 needs REX.W set regardless of suffix / source operand size. */
6339 if (i.tm.base_opcode == 0xf20f38f0
6340 && i.tm.operand_types[1].bitfield.qword)
6341 i.rex |= REX_W;
6342
6343 /* If there's no instruction mnemonic suffix we try to invent one
6344 based on GPR operands. */
6345 if (!i.suffix)
6346 {
6347 /* We take i.suffix from the last register operand specified,
6348 Destination register type is more significant than source
6349 register type. crc32 in SSE4.2 prefers source register
6350 type. */
6351 unsigned int op = i.tm.base_opcode != 0xf20f38f0 ? i.operands : 1;
6352
6353 while (op--)
6354 if (i.tm.operand_types[op].bitfield.instance == InstanceNone
6355 || i.tm.operand_types[op].bitfield.instance == Accum)
6356 {
6357 if (i.types[op].bitfield.class != Reg)
6358 continue;
6359 if (i.types[op].bitfield.byte)
6360 i.suffix = BYTE_MNEM_SUFFIX;
6361 else if (i.types[op].bitfield.word)
6362 i.suffix = WORD_MNEM_SUFFIX;
6363 else if (i.types[op].bitfield.dword)
6364 i.suffix = LONG_MNEM_SUFFIX;
6365 else if (i.types[op].bitfield.qword)
6366 i.suffix = QWORD_MNEM_SUFFIX;
6367 else
6368 continue;
6369 break;
6370 }
6371
6372 /* As an exception, movsx/movzx silently default to a byte source
6373 in AT&T mode. */
6374 if ((i.tm.base_opcode | 8) == 0xfbe && i.tm.opcode_modifier.w
6375 && !i.suffix && !intel_syntax)
6376 i.suffix = BYTE_MNEM_SUFFIX;
6377 }
6378 else if (i.suffix == BYTE_MNEM_SUFFIX)
6379 {
6380 if (intel_syntax
6381 && i.tm.opcode_modifier.mnemonicsize == IGNORESIZE
6382 && i.tm.opcode_modifier.no_bsuf)
6383 i.suffix = 0;
6384 else if (!check_byte_reg ())
6385 return 0;
6386 }
6387 else if (i.suffix == LONG_MNEM_SUFFIX)
6388 {
6389 if (intel_syntax
6390 && i.tm.opcode_modifier.mnemonicsize == IGNORESIZE
6391 && i.tm.opcode_modifier.no_lsuf
6392 && !i.tm.opcode_modifier.todword
6393 && !i.tm.opcode_modifier.toqword)
6394 i.suffix = 0;
6395 else if (!check_long_reg ())
6396 return 0;
6397 }
6398 else if (i.suffix == QWORD_MNEM_SUFFIX)
6399 {
6400 if (intel_syntax
6401 && i.tm.opcode_modifier.mnemonicsize == IGNORESIZE
6402 && i.tm.opcode_modifier.no_qsuf
6403 && !i.tm.opcode_modifier.todword
6404 && !i.tm.opcode_modifier.toqword)
6405 i.suffix = 0;
6406 else if (!check_qword_reg ())
6407 return 0;
6408 }
6409 else if (i.suffix == WORD_MNEM_SUFFIX)
6410 {
6411 if (intel_syntax
6412 && i.tm.opcode_modifier.mnemonicsize == IGNORESIZE
6413 && i.tm.opcode_modifier.no_wsuf)
6414 i.suffix = 0;
6415 else if (!check_word_reg ())
6416 return 0;
6417 }
6418 else if (intel_syntax
6419 && i.tm.opcode_modifier.mnemonicsize == IGNORESIZE)
6420 /* Do nothing if the instruction is going to ignore the prefix. */
6421 ;
6422 else
6423 abort ();
6424
6425 /* Undo the movsx/movzx change done above. */
6426 i.operands = numop;
6427 }
6428 else if (i.tm.opcode_modifier.mnemonicsize == DEFAULTSIZE
6429 && !i.suffix)
6430 {
6431 i.suffix = stackop_size;
6432 if (stackop_size == LONG_MNEM_SUFFIX)
6433 {
6434 /* stackop_size is set to LONG_MNEM_SUFFIX for the
6435 .code16gcc directive to support 16-bit mode with
6436 32-bit address. For IRET without a suffix, generate
6437 16-bit IRET (opcode 0xcf) to return from an interrupt
6438 handler. */
6439 if (i.tm.base_opcode == 0xcf)
6440 {
6441 i.suffix = WORD_MNEM_SUFFIX;
6442 as_warn (_("generating 16-bit `iret' for .code16gcc directive"));
6443 }
6444 /* Warn about changed behavior for segment register push/pop. */
6445 else if ((i.tm.base_opcode | 1) == 0x07)
6446 as_warn (_("generating 32-bit `%s', unlike earlier gas versions"),
6447 i.tm.name);
6448 }
6449 }
6450 else if (!i.suffix
6451 && (i.tm.opcode_modifier.jump == JUMP_ABSOLUTE
6452 || i.tm.opcode_modifier.jump == JUMP_BYTE
6453 || i.tm.opcode_modifier.jump == JUMP_INTERSEGMENT
6454 || (i.tm.base_opcode == 0x0f01 /* [ls][gi]dt */
6455 && i.tm.extension_opcode <= 3)))
6456 {
6457 switch (flag_code)
6458 {
6459 case CODE_64BIT:
6460 if (!i.tm.opcode_modifier.no_qsuf)
6461 {
6462 i.suffix = QWORD_MNEM_SUFFIX;
6463 break;
6464 }
6465 /* Fall through. */
6466 case CODE_32BIT:
6467 if (!i.tm.opcode_modifier.no_lsuf)
6468 i.suffix = LONG_MNEM_SUFFIX;
6469 break;
6470 case CODE_16BIT:
6471 if (!i.tm.opcode_modifier.no_wsuf)
6472 i.suffix = WORD_MNEM_SUFFIX;
6473 break;
6474 }
6475 }
6476
6477 if (!i.suffix
6478 && (i.tm.opcode_modifier.mnemonicsize != DEFAULTSIZE
6479 /* Also cover lret/retf/iret in 64-bit mode. */
6480 || (flag_code == CODE_64BIT
6481 && !i.tm.opcode_modifier.no_lsuf
6482 && !i.tm.opcode_modifier.no_qsuf))
6483 && i.tm.opcode_modifier.mnemonicsize != IGNORESIZE
6484 /* Accept FLDENV et al without suffix. */
6485 && (i.tm.opcode_modifier.no_ssuf || i.tm.opcode_modifier.floatmf))
6486 {
6487 unsigned int suffixes, evex = 0;
6488
6489 suffixes = !i.tm.opcode_modifier.no_bsuf;
6490 if (!i.tm.opcode_modifier.no_wsuf)
6491 suffixes |= 1 << 1;
6492 if (!i.tm.opcode_modifier.no_lsuf)
6493 suffixes |= 1 << 2;
6494 if (!i.tm.opcode_modifier.no_ldsuf)
6495 suffixes |= 1 << 3;
6496 if (!i.tm.opcode_modifier.no_ssuf)
6497 suffixes |= 1 << 4;
6498 if (flag_code == CODE_64BIT && !i.tm.opcode_modifier.no_qsuf)
6499 suffixes |= 1 << 5;
6500
6501 /* For [XYZ]MMWORD operands inspect operand sizes. While generally
6502 also suitable for AT&T syntax mode, it was requested that this be
6503 restricted to just Intel syntax. */
6504 if (intel_syntax && is_any_vex_encoding (&i.tm) && !i.broadcast)
6505 {
6506 unsigned int op;
6507
6508 for (op = 0; op < i.tm.operands; ++op)
6509 {
6510 if (is_evex_encoding (&i.tm)
6511 && !cpu_arch_flags.bitfield.cpuavx512vl)
6512 {
6513 if (i.tm.operand_types[op].bitfield.ymmword)
6514 i.tm.operand_types[op].bitfield.xmmword = 0;
6515 if (i.tm.operand_types[op].bitfield.zmmword)
6516 i.tm.operand_types[op].bitfield.ymmword = 0;
6517 if (!i.tm.opcode_modifier.evex
6518 || i.tm.opcode_modifier.evex == EVEXDYN)
6519 i.tm.opcode_modifier.evex = EVEX512;
6520 }
6521
6522 if (i.tm.operand_types[op].bitfield.xmmword
6523 + i.tm.operand_types[op].bitfield.ymmword
6524 + i.tm.operand_types[op].bitfield.zmmword < 2)
6525 continue;
6526
6527 /* Any properly sized operand disambiguates the insn. */
6528 if (i.types[op].bitfield.xmmword
6529 || i.types[op].bitfield.ymmword
6530 || i.types[op].bitfield.zmmword)
6531 {
6532 suffixes &= ~(7 << 6);
6533 evex = 0;
6534 break;
6535 }
6536
6537 if ((i.flags[op] & Operand_Mem)
6538 && i.tm.operand_types[op].bitfield.unspecified)
6539 {
6540 if (i.tm.operand_types[op].bitfield.xmmword)
6541 suffixes |= 1 << 6;
6542 if (i.tm.operand_types[op].bitfield.ymmword)
6543 suffixes |= 1 << 7;
6544 if (i.tm.operand_types[op].bitfield.zmmword)
6545 suffixes |= 1 << 8;
6546 if (is_evex_encoding (&i.tm))
6547 evex = EVEX512;
6548 }
6549 }
6550 }
6551
6552 /* Are multiple suffixes / operand sizes allowed? */
6553 if (suffixes & (suffixes - 1))
6554 {
6555 if (intel_syntax
6556 && (i.tm.opcode_modifier.mnemonicsize != DEFAULTSIZE
6557 || operand_check == check_error))
6558 {
6559 as_bad (_("ambiguous operand size for `%s'"), i.tm.name);
6560 return 0;
6561 }
6562 if (operand_check == check_error)
6563 {
6564 as_bad (_("no instruction mnemonic suffix given and "
6565 "no register operands; can't size `%s'"), i.tm.name);
6566 return 0;
6567 }
6568 if (operand_check == check_warning)
6569 as_warn (_("%s; using default for `%s'"),
6570 intel_syntax
6571 ? _("ambiguous operand size")
6572 : _("no instruction mnemonic suffix given and "
6573 "no register operands"),
6574 i.tm.name);
6575
6576 if (i.tm.opcode_modifier.floatmf)
6577 i.suffix = SHORT_MNEM_SUFFIX;
6578 else if ((i.tm.base_opcode | 8) == 0xfbe
6579 || (i.tm.base_opcode == 0x63
6580 && i.tm.cpu_flags.bitfield.cpu64))
6581 /* handled below */;
6582 else if (evex)
6583 i.tm.opcode_modifier.evex = evex;
6584 else if (flag_code == CODE_16BIT)
6585 i.suffix = WORD_MNEM_SUFFIX;
6586 else if (!i.tm.opcode_modifier.no_lsuf)
6587 i.suffix = LONG_MNEM_SUFFIX;
6588 else
6589 i.suffix = QWORD_MNEM_SUFFIX;
6590 }
6591 }
6592
6593 if ((i.tm.base_opcode | 8) == 0xfbe
6594 || (i.tm.base_opcode == 0x63 && i.tm.cpu_flags.bitfield.cpu64))
6595 {
6596 /* In Intel syntax, movsx/movzx must have a "suffix" (checked above).
6597 In AT&T syntax, if there is no suffix (warned about above), the default
6598 will be byte extension. */
6599 if (i.tm.opcode_modifier.w && i.suffix && i.suffix != BYTE_MNEM_SUFFIX)
6600 i.tm.base_opcode |= 1;
6601
6602 /* For further processing, the suffix should represent the destination
6603 (register). This is already the case when one was used with
6604 mov[sz][bw]*, but we need to replace it for mov[sz]x, or if there was
6605 no suffix to begin with. */
6606 if (i.tm.opcode_modifier.w || i.tm.base_opcode == 0x63 || !i.suffix)
6607 {
6608 if (i.types[1].bitfield.word)
6609 i.suffix = WORD_MNEM_SUFFIX;
6610 else if (i.types[1].bitfield.qword)
6611 i.suffix = QWORD_MNEM_SUFFIX;
6612 else
6613 i.suffix = LONG_MNEM_SUFFIX;
6614
6615 i.tm.opcode_modifier.w = 0;
6616 }
6617 }
6618
6619 if (!i.tm.opcode_modifier.modrm && i.reg_operands && i.tm.operands < 3)
6620 i.short_form = (i.tm.operand_types[0].bitfield.class == Reg)
6621 != (i.tm.operand_types[1].bitfield.class == Reg);
6622
6623 /* Change the opcode based on the operand size given by i.suffix. */
6624 switch (i.suffix)
6625 {
6626 /* Size floating point instruction. */
6627 case LONG_MNEM_SUFFIX:
6628 if (i.tm.opcode_modifier.floatmf)
6629 {
6630 i.tm.base_opcode ^= 4;
6631 break;
6632 }
6633 /* fall through */
6634 case WORD_MNEM_SUFFIX:
6635 case QWORD_MNEM_SUFFIX:
6636 /* It's not a byte, select word/dword operation. */
6637 if (i.tm.opcode_modifier.w)
6638 {
6639 if (i.short_form)
6640 i.tm.base_opcode |= 8;
6641 else
6642 i.tm.base_opcode |= 1;
6643 }
6644 /* fall through */
6645 case SHORT_MNEM_SUFFIX:
6646 /* Now select between word & dword operations via the operand
6647 size prefix, except for instructions that will ignore this
6648 prefix anyway. */
6649 if (i.suffix != QWORD_MNEM_SUFFIX
6650 && i.tm.opcode_modifier.mnemonicsize != IGNORESIZE
6651 && !i.tm.opcode_modifier.floatmf
6652 && !is_any_vex_encoding (&i.tm)
6653 && ((i.suffix == LONG_MNEM_SUFFIX) == (flag_code == CODE_16BIT)
6654 || (flag_code == CODE_64BIT
6655 && i.tm.opcode_modifier.jump == JUMP_BYTE)))
6656 {
6657 unsigned int prefix = DATA_PREFIX_OPCODE;
6658
6659 if (i.tm.opcode_modifier.jump == JUMP_BYTE) /* jcxz, loop */
6660 prefix = ADDR_PREFIX_OPCODE;
6661
6662 if (!add_prefix (prefix))
6663 return 0;
6664 }
6665
6666 /* Set mode64 for an operand. */
6667 if (i.suffix == QWORD_MNEM_SUFFIX
6668 && flag_code == CODE_64BIT
6669 && !i.tm.opcode_modifier.norex64
6670 /* Special case for xchg %rax,%rax. It is NOP and doesn't
6671 need rex64. */
6672 && ! (i.operands == 2
6673 && i.tm.base_opcode == 0x90
6674 && i.tm.extension_opcode == None
6675 && i.types[0].bitfield.instance == Accum
6676 && i.types[0].bitfield.qword
6677 && i.types[1].bitfield.instance == Accum
6678 && i.types[1].bitfield.qword))
6679 i.rex |= REX_W;
6680
6681 break;
6682 }
6683
6684 if (i.tm.opcode_modifier.addrprefixopreg)
6685 {
6686 gas_assert (!i.suffix);
6687 gas_assert (i.reg_operands);
6688
6689 if (i.tm.operand_types[0].bitfield.instance == Accum
6690 || i.operands == 1)
6691 {
6692 /* The address size override prefix changes the size of the
6693 first operand. */
6694 if (flag_code == CODE_64BIT
6695 && i.op[0].regs->reg_type.bitfield.word)
6696 {
6697 as_bad (_("16-bit addressing unavailable for `%s'"),
6698 i.tm.name);
6699 return 0;
6700 }
6701
6702 if ((flag_code == CODE_32BIT
6703 ? i.op[0].regs->reg_type.bitfield.word
6704 : i.op[0].regs->reg_type.bitfield.dword)
6705 && !add_prefix (ADDR_PREFIX_OPCODE))
6706 return 0;
6707 }
6708 else
6709 {
6710 /* Check invalid register operand when the address size override
6711 prefix changes the size of register operands. */
6712 unsigned int op;
6713 enum { need_word, need_dword, need_qword } need;
6714
6715 if (flag_code == CODE_32BIT)
6716 need = i.prefix[ADDR_PREFIX] ? need_word : need_dword;
6717 else if (i.prefix[ADDR_PREFIX])
6718 need = need_dword;
6719 else
6720 need = flag_code == CODE_64BIT ? need_qword : need_word;
6721
6722 for (op = 0; op < i.operands; op++)
6723 {
6724 if (i.types[op].bitfield.class != Reg)
6725 continue;
6726
6727 switch (need)
6728 {
6729 case need_word:
6730 if (i.op[op].regs->reg_type.bitfield.word)
6731 continue;
6732 break;
6733 case need_dword:
6734 if (i.op[op].regs->reg_type.bitfield.dword)
6735 continue;
6736 break;
6737 case need_qword:
6738 if (i.op[op].regs->reg_type.bitfield.qword)
6739 continue;
6740 break;
6741 }
6742
6743 as_bad (_("invalid register operand size for `%s'"),
6744 i.tm.name);
6745 return 0;
6746 }
6747 }
6748 }
6749
6750 return 1;
6751 }
6752
6753 static int
6754 check_byte_reg (void)
6755 {
6756 int op;
6757
6758 for (op = i.operands; --op >= 0;)
6759 {
6760 /* Skip non-register operands. */
6761 if (i.types[op].bitfield.class != Reg)
6762 continue;
6763
6764 /* If this is an eight bit register, it's OK. If it's the 16 or
6765 32 bit version of an eight bit register, we will just use the
6766 low portion, and that's OK too. */
6767 if (i.types[op].bitfield.byte)
6768 continue;
6769
6770 /* I/O port address operands are OK too. */
6771 if (i.tm.operand_types[op].bitfield.instance == RegD
6772 && i.tm.operand_types[op].bitfield.word)
6773 continue;
6774
6775 /* crc32 only wants its source operand checked here. */
6776 if (i.tm.base_opcode == 0xf20f38f0 && op)
6777 continue;
6778
6779 /* Any other register is bad. */
6780 if (i.types[op].bitfield.class == Reg
6781 || i.types[op].bitfield.class == RegMMX
6782 || i.types[op].bitfield.class == RegSIMD
6783 || i.types[op].bitfield.class == SReg
6784 || i.types[op].bitfield.class == RegCR
6785 || i.types[op].bitfield.class == RegDR
6786 || i.types[op].bitfield.class == RegTR)
6787 {
6788 as_bad (_("`%s%s' not allowed with `%s%c'"),
6789 register_prefix,
6790 i.op[op].regs->reg_name,
6791 i.tm.name,
6792 i.suffix);
6793 return 0;
6794 }
6795 }
6796 return 1;
6797 }
6798
6799 static int
6800 check_long_reg (void)
6801 {
6802 int op;
6803
6804 for (op = i.operands; --op >= 0;)
6805 /* Skip non-register operands. */
6806 if (i.types[op].bitfield.class != Reg)
6807 continue;
6808 /* Reject eight bit registers, except where the template requires
6809 them. (eg. movzb) */
6810 else if (i.types[op].bitfield.byte
6811 && (i.tm.operand_types[op].bitfield.class == Reg
6812 || i.tm.operand_types[op].bitfield.instance == Accum)
6813 && (i.tm.operand_types[op].bitfield.word
6814 || i.tm.operand_types[op].bitfield.dword))
6815 {
6816 as_bad (_("`%s%s' not allowed with `%s%c'"),
6817 register_prefix,
6818 i.op[op].regs->reg_name,
6819 i.tm.name,
6820 i.suffix);
6821 return 0;
6822 }
6823 /* Error if the e prefix on a general reg is missing. */
6824 else if (i.types[op].bitfield.word
6825 && (i.tm.operand_types[op].bitfield.class == Reg
6826 || i.tm.operand_types[op].bitfield.instance == Accum)
6827 && i.tm.operand_types[op].bitfield.dword)
6828 {
6829 as_bad (_("incorrect register `%s%s' used with `%c' suffix"),
6830 register_prefix, i.op[op].regs->reg_name,
6831 i.suffix);
6832 return 0;
6833 }
6834 /* Warn if the r prefix on a general reg is present. */
6835 else if (i.types[op].bitfield.qword
6836 && (i.tm.operand_types[op].bitfield.class == Reg
6837 || i.tm.operand_types[op].bitfield.instance == Accum)
6838 && i.tm.operand_types[op].bitfield.dword)
6839 {
6840 if (intel_syntax
6841 && i.tm.opcode_modifier.toqword
6842 && i.types[0].bitfield.class != RegSIMD)
6843 {
6844 /* Convert to QWORD. We want REX byte. */
6845 i.suffix = QWORD_MNEM_SUFFIX;
6846 }
6847 else
6848 {
6849 as_bad (_("incorrect register `%s%s' used with `%c' suffix"),
6850 register_prefix, i.op[op].regs->reg_name,
6851 i.suffix);
6852 return 0;
6853 }
6854 }
6855 return 1;
6856 }
6857
6858 static int
6859 check_qword_reg (void)
6860 {
6861 int op;
6862
6863 for (op = i.operands; --op >= 0; )
6864 /* Skip non-register operands. */
6865 if (i.types[op].bitfield.class != Reg)
6866 continue;
6867 /* Reject eight bit registers, except where the template requires
6868 them. (eg. movzb) */
6869 else if (i.types[op].bitfield.byte
6870 && (i.tm.operand_types[op].bitfield.class == Reg
6871 || i.tm.operand_types[op].bitfield.instance == Accum)
6872 && (i.tm.operand_types[op].bitfield.word
6873 || i.tm.operand_types[op].bitfield.dword))
6874 {
6875 as_bad (_("`%s%s' not allowed with `%s%c'"),
6876 register_prefix,
6877 i.op[op].regs->reg_name,
6878 i.tm.name,
6879 i.suffix);
6880 return 0;
6881 }
6882 /* Warn if the r prefix on a general reg is missing. */
6883 else if ((i.types[op].bitfield.word
6884 || i.types[op].bitfield.dword)
6885 && (i.tm.operand_types[op].bitfield.class == Reg
6886 || i.tm.operand_types[op].bitfield.instance == Accum)
6887 && i.tm.operand_types[op].bitfield.qword)
6888 {
6889 /* Prohibit these changes in the 64bit mode, since the
6890 lowering is more complicated. */
6891 if (intel_syntax
6892 && i.tm.opcode_modifier.todword
6893 && i.types[0].bitfield.class != RegSIMD)
6894 {
6895 /* Convert to DWORD. We don't want REX byte. */
6896 i.suffix = LONG_MNEM_SUFFIX;
6897 }
6898 else
6899 {
6900 as_bad (_("incorrect register `%s%s' used with `%c' suffix"),
6901 register_prefix, i.op[op].regs->reg_name,
6902 i.suffix);
6903 return 0;
6904 }
6905 }
6906 return 1;
6907 }
6908
6909 static int
6910 check_word_reg (void)
6911 {
6912 int op;
6913 for (op = i.operands; --op >= 0;)
6914 /* Skip non-register operands. */
6915 if (i.types[op].bitfield.class != Reg)
6916 continue;
6917 /* Reject eight bit registers, except where the template requires
6918 them. (eg. movzb) */
6919 else if (i.types[op].bitfield.byte
6920 && (i.tm.operand_types[op].bitfield.class == Reg
6921 || i.tm.operand_types[op].bitfield.instance == Accum)
6922 && (i.tm.operand_types[op].bitfield.word
6923 || i.tm.operand_types[op].bitfield.dword))
6924 {
6925 as_bad (_("`%s%s' not allowed with `%s%c'"),
6926 register_prefix,
6927 i.op[op].regs->reg_name,
6928 i.tm.name,
6929 i.suffix);
6930 return 0;
6931 }
6932 /* Error if the e or r prefix on a general reg is present. */
6933 else if ((i.types[op].bitfield.dword
6934 || i.types[op].bitfield.qword)
6935 && (i.tm.operand_types[op].bitfield.class == Reg
6936 || i.tm.operand_types[op].bitfield.instance == Accum)
6937 && i.tm.operand_types[op].bitfield.word)
6938 {
6939 as_bad (_("incorrect register `%s%s' used with `%c' suffix"),
6940 register_prefix, i.op[op].regs->reg_name,
6941 i.suffix);
6942 return 0;
6943 }
6944 return 1;
6945 }
6946
6947 static int
6948 update_imm (unsigned int j)
6949 {
6950 i386_operand_type overlap = i.types[j];
6951 if ((overlap.bitfield.imm8
6952 || overlap.bitfield.imm8s
6953 || overlap.bitfield.imm16
6954 || overlap.bitfield.imm32
6955 || overlap.bitfield.imm32s
6956 || overlap.bitfield.imm64)
6957 && !operand_type_equal (&overlap, &imm8)
6958 && !operand_type_equal (&overlap, &imm8s)
6959 && !operand_type_equal (&overlap, &imm16)
6960 && !operand_type_equal (&overlap, &imm32)
6961 && !operand_type_equal (&overlap, &imm32s)
6962 && !operand_type_equal (&overlap, &imm64))
6963 {
6964 if (i.suffix)
6965 {
6966 i386_operand_type temp;
6967
6968 operand_type_set (&temp, 0);
6969 if (i.suffix == BYTE_MNEM_SUFFIX)
6970 {
6971 temp.bitfield.imm8 = overlap.bitfield.imm8;
6972 temp.bitfield.imm8s = overlap.bitfield.imm8s;
6973 }
6974 else if (i.suffix == WORD_MNEM_SUFFIX)
6975 temp.bitfield.imm16 = overlap.bitfield.imm16;
6976 else if (i.suffix == QWORD_MNEM_SUFFIX)
6977 {
6978 temp.bitfield.imm64 = overlap.bitfield.imm64;
6979 temp.bitfield.imm32s = overlap.bitfield.imm32s;
6980 }
6981 else
6982 temp.bitfield.imm32 = overlap.bitfield.imm32;
6983 overlap = temp;
6984 }
6985 else if (operand_type_equal (&overlap, &imm16_32_32s)
6986 || operand_type_equal (&overlap, &imm16_32)
6987 || operand_type_equal (&overlap, &imm16_32s))
6988 {
6989 if ((flag_code == CODE_16BIT) ^ (i.prefix[DATA_PREFIX] != 0))
6990 overlap = imm16;
6991 else
6992 overlap = imm32s;
6993 }
6994 if (!operand_type_equal (&overlap, &imm8)
6995 && !operand_type_equal (&overlap, &imm8s)
6996 && !operand_type_equal (&overlap, &imm16)
6997 && !operand_type_equal (&overlap, &imm32)
6998 && !operand_type_equal (&overlap, &imm32s)
6999 && !operand_type_equal (&overlap, &imm64))
7000 {
7001 as_bad (_("no instruction mnemonic suffix given; "
7002 "can't determine immediate size"));
7003 return 0;
7004 }
7005 }
7006 i.types[j] = overlap;
7007
7008 return 1;
7009 }
7010
7011 static int
7012 finalize_imm (void)
7013 {
7014 unsigned int j, n;
7015
7016 /* Update the first 2 immediate operands. */
7017 n = i.operands > 2 ? 2 : i.operands;
7018 if (n)
7019 {
7020 for (j = 0; j < n; j++)
7021 if (update_imm (j) == 0)
7022 return 0;
7023
7024 /* The 3rd operand can't be immediate operand. */
7025 gas_assert (operand_type_check (i.types[2], imm) == 0);
7026 }
7027
7028 return 1;
7029 }
7030
7031 static int
7032 process_operands (void)
7033 {
7034 /* Default segment register this instruction will use for memory
7035 accesses. 0 means unknown. This is only for optimizing out
7036 unnecessary segment overrides. */
7037 const seg_entry *default_seg = 0;
7038
7039 if (i.tm.opcode_modifier.sse2avx && i.tm.opcode_modifier.vexvvvv)
7040 {
7041 unsigned int dupl = i.operands;
7042 unsigned int dest = dupl - 1;
7043 unsigned int j;
7044
7045 /* The destination must be an xmm register. */
7046 gas_assert (i.reg_operands
7047 && MAX_OPERANDS > dupl
7048 && operand_type_equal (&i.types[dest], &regxmm));
7049
7050 if (i.tm.operand_types[0].bitfield.instance == Accum
7051 && i.tm.operand_types[0].bitfield.xmmword)
7052 {
7053 if (i.tm.opcode_modifier.vexsources == VEX3SOURCES)
7054 {
7055 /* Keep xmm0 for instructions with VEX prefix and 3
7056 sources. */
7057 i.tm.operand_types[0].bitfield.instance = InstanceNone;
7058 i.tm.operand_types[0].bitfield.class = RegSIMD;
7059 goto duplicate;
7060 }
7061 else
7062 {
7063 /* We remove the first xmm0 and keep the number of
7064 operands unchanged, which in fact duplicates the
7065 destination. */
7066 for (j = 1; j < i.operands; j++)
7067 {
7068 i.op[j - 1] = i.op[j];
7069 i.types[j - 1] = i.types[j];
7070 i.tm.operand_types[j - 1] = i.tm.operand_types[j];
7071 i.flags[j - 1] = i.flags[j];
7072 }
7073 }
7074 }
7075 else if (i.tm.opcode_modifier.implicit1stxmm0)
7076 {
7077 gas_assert ((MAX_OPERANDS - 1) > dupl
7078 && (i.tm.opcode_modifier.vexsources
7079 == VEX3SOURCES));
7080
7081 /* Add the implicit xmm0 for instructions with VEX prefix
7082 and 3 sources. */
7083 for (j = i.operands; j > 0; j--)
7084 {
7085 i.op[j] = i.op[j - 1];
7086 i.types[j] = i.types[j - 1];
7087 i.tm.operand_types[j] = i.tm.operand_types[j - 1];
7088 i.flags[j] = i.flags[j - 1];
7089 }
7090 i.op[0].regs
7091 = (const reg_entry *) hash_find (reg_hash, "xmm0");
7092 i.types[0] = regxmm;
7093 i.tm.operand_types[0] = regxmm;
7094
7095 i.operands += 2;
7096 i.reg_operands += 2;
7097 i.tm.operands += 2;
7098
7099 dupl++;
7100 dest++;
7101 i.op[dupl] = i.op[dest];
7102 i.types[dupl] = i.types[dest];
7103 i.tm.operand_types[dupl] = i.tm.operand_types[dest];
7104 i.flags[dupl] = i.flags[dest];
7105 }
7106 else
7107 {
7108 duplicate:
7109 i.operands++;
7110 i.reg_operands++;
7111 i.tm.operands++;
7112
7113 i.op[dupl] = i.op[dest];
7114 i.types[dupl] = i.types[dest];
7115 i.tm.operand_types[dupl] = i.tm.operand_types[dest];
7116 i.flags[dupl] = i.flags[dest];
7117 }
7118
7119 if (i.tm.opcode_modifier.immext)
7120 process_immext ();
7121 }
7122 else if (i.tm.operand_types[0].bitfield.instance == Accum
7123 && i.tm.operand_types[0].bitfield.xmmword)
7124 {
7125 unsigned int j;
7126
7127 for (j = 1; j < i.operands; j++)
7128 {
7129 i.op[j - 1] = i.op[j];
7130 i.types[j - 1] = i.types[j];
7131
7132 /* We need to adjust fields in i.tm since they are used by
7133 build_modrm_byte. */
7134 i.tm.operand_types [j - 1] = i.tm.operand_types [j];
7135
7136 i.flags[j - 1] = i.flags[j];
7137 }
7138
7139 i.operands--;
7140 i.reg_operands--;
7141 i.tm.operands--;
7142 }
7143 else if (i.tm.opcode_modifier.implicitquadgroup)
7144 {
7145 unsigned int regnum, first_reg_in_group, last_reg_in_group;
7146
7147 /* The second operand must be {x,y,z}mmN, where N is a multiple of 4. */
7148 gas_assert (i.operands >= 2 && i.types[1].bitfield.class == RegSIMD);
7149 regnum = register_number (i.op[1].regs);
7150 first_reg_in_group = regnum & ~3;
7151 last_reg_in_group = first_reg_in_group + 3;
7152 if (regnum != first_reg_in_group)
7153 as_warn (_("source register `%s%s' implicitly denotes"
7154 " `%s%.3s%u' to `%s%.3s%u' source group in `%s'"),
7155 register_prefix, i.op[1].regs->reg_name,
7156 register_prefix, i.op[1].regs->reg_name, first_reg_in_group,
7157 register_prefix, i.op[1].regs->reg_name, last_reg_in_group,
7158 i.tm.name);
7159 }
7160 else if (i.tm.opcode_modifier.regkludge)
7161 {
7162 /* The imul $imm, %reg instruction is converted into
7163 imul $imm, %reg, %reg, and the clr %reg instruction
7164 is converted into xor %reg, %reg. */
7165
7166 unsigned int first_reg_op;
7167
7168 if (operand_type_check (i.types[0], reg))
7169 first_reg_op = 0;
7170 else
7171 first_reg_op = 1;
7172 /* Pretend we saw the extra register operand. */
7173 gas_assert (i.reg_operands == 1
7174 && i.op[first_reg_op + 1].regs == 0);
7175 i.op[first_reg_op + 1].regs = i.op[first_reg_op].regs;
7176 i.types[first_reg_op + 1] = i.types[first_reg_op];
7177 i.operands++;
7178 i.reg_operands++;
7179 }
7180
7181 if (i.tm.opcode_modifier.modrm)
7182 {
7183 /* The opcode is completed (modulo i.tm.extension_opcode which
7184 must be put into the modrm byte). Now, we make the modrm and
7185 index base bytes based on all the info we've collected. */
7186
7187 default_seg = build_modrm_byte ();
7188 }
7189 else if (i.types[0].bitfield.class == SReg)
7190 {
7191 if (flag_code != CODE_64BIT
7192 ? i.tm.base_opcode == POP_SEG_SHORT
7193 && i.op[0].regs->reg_num == 1
7194 : (i.tm.base_opcode | 1) == POP_SEG386_SHORT
7195 && i.op[0].regs->reg_num < 4)
7196 {
7197 as_bad (_("you can't `%s %s%s'"),
7198 i.tm.name, register_prefix, i.op[0].regs->reg_name);
7199 return 0;
7200 }
7201 if ( i.op[0].regs->reg_num > 3 && i.tm.opcode_length == 1 )
7202 {
7203 i.tm.base_opcode ^= POP_SEG_SHORT ^ POP_SEG386_SHORT;
7204 i.tm.opcode_length = 2;
7205 }
7206 i.tm.base_opcode |= (i.op[0].regs->reg_num << 3);
7207 }
7208 else if ((i.tm.base_opcode & ~0x3) == MOV_AX_DISP32)
7209 {
7210 default_seg = &ds;
7211 }
7212 else if (i.tm.opcode_modifier.isstring)
7213 {
7214 /* For the string instructions that allow a segment override
7215 on one of their operands, the default segment is ds. */
7216 default_seg = &ds;
7217 }
7218 else if (i.short_form)
7219 {
7220 /* The register or float register operand is in operand
7221 0 or 1. */
7222 unsigned int op = i.tm.operand_types[0].bitfield.class != Reg;
7223
7224 /* Register goes in low 3 bits of opcode. */
7225 i.tm.base_opcode |= i.op[op].regs->reg_num;
7226 if ((i.op[op].regs->reg_flags & RegRex) != 0)
7227 i.rex |= REX_B;
7228 if (!quiet_warnings && i.tm.opcode_modifier.ugh)
7229 {
7230 /* Warn about some common errors, but press on regardless.
7231 The first case can be generated by gcc (<= 2.8.1). */
7232 if (i.operands == 2)
7233 {
7234 /* Reversed arguments on faddp, fsubp, etc. */
7235 as_warn (_("translating to `%s %s%s,%s%s'"), i.tm.name,
7236 register_prefix, i.op[!intel_syntax].regs->reg_name,
7237 register_prefix, i.op[intel_syntax].regs->reg_name);
7238 }
7239 else
7240 {
7241 /* Extraneous `l' suffix on fp insn. */
7242 as_warn (_("translating to `%s %s%s'"), i.tm.name,
7243 register_prefix, i.op[0].regs->reg_name);
7244 }
7245 }
7246 }
7247
7248 if ((i.seg[0] || i.prefix[SEG_PREFIX])
7249 && i.tm.base_opcode == 0x8d /* lea */
7250 && !is_any_vex_encoding(&i.tm))
7251 {
7252 if (!quiet_warnings)
7253 as_warn (_("segment override on `%s' is ineffectual"), i.tm.name);
7254 if (optimize)
7255 {
7256 i.seg[0] = NULL;
7257 i.prefix[SEG_PREFIX] = 0;
7258 }
7259 }
7260
7261 /* If a segment was explicitly specified, and the specified segment
7262 is neither the default nor the one already recorded from a prefix,
7263 use an opcode prefix to select it. If we never figured out what
7264 the default segment is, then default_seg will be zero at this
7265 point, and the specified segment prefix will always be used. */
7266 if (i.seg[0]
7267 && i.seg[0] != default_seg
7268 && i.seg[0]->seg_prefix != i.prefix[SEG_PREFIX])
7269 {
7270 if (!add_prefix (i.seg[0]->seg_prefix))
7271 return 0;
7272 }
7273 return 1;
7274 }
7275
7276 static const seg_entry *
7277 build_modrm_byte (void)
7278 {
7279 const seg_entry *default_seg = 0;
7280 unsigned int source, dest;
7281 int vex_3_sources;
7282
7283 vex_3_sources = i.tm.opcode_modifier.vexsources == VEX3SOURCES;
7284 if (vex_3_sources)
7285 {
7286 unsigned int nds, reg_slot;
7287 expressionS *exp;
7288
7289 dest = i.operands - 1;
7290 nds = dest - 1;
7291
7292 /* There are 2 kinds of instructions:
7293 1. 5 operands: 4 register operands or 3 register operands
7294 plus 1 memory operand plus one Imm4 operand, VexXDS, and
7295 VexW0 or VexW1. The destination must be either XMM, YMM or
7296 ZMM register.
7297 2. 4 operands: 4 register operands or 3 register operands
7298 plus 1 memory operand, with VexXDS. */
7299 gas_assert ((i.reg_operands == 4
7300 || (i.reg_operands == 3 && i.mem_operands == 1))
7301 && i.tm.opcode_modifier.vexvvvv == VEXXDS
7302 && i.tm.opcode_modifier.vexw
7303 && i.tm.operand_types[dest].bitfield.class == RegSIMD);
7304
7305 /* If VexW1 is set, the first non-immediate operand is the source and
7306 the second non-immediate one is encoded in the immediate operand. */
7307 if (i.tm.opcode_modifier.vexw == VEXW1)
7308 {
7309 source = i.imm_operands;
7310 reg_slot = i.imm_operands + 1;
7311 }
7312 else
7313 {
7314 source = i.imm_operands + 1;
7315 reg_slot = i.imm_operands;
7316 }
7317
7318 if (i.imm_operands == 0)
7319 {
7320 /* When there is no immediate operand, generate an 8bit
7321 immediate operand to encode the first operand. */
7322 exp = &im_expressions[i.imm_operands++];
7323 i.op[i.operands].imms = exp;
7324 i.types[i.operands] = imm8;
7325 i.operands++;
7326
7327 gas_assert (i.tm.operand_types[reg_slot].bitfield.class == RegSIMD);
7328 exp->X_op = O_constant;
7329 exp->X_add_number = register_number (i.op[reg_slot].regs) << 4;
7330 gas_assert ((i.op[reg_slot].regs->reg_flags & RegVRex) == 0);
7331 }
7332 else
7333 {
7334 gas_assert (i.imm_operands == 1);
7335 gas_assert (fits_in_imm4 (i.op[0].imms->X_add_number));
7336 gas_assert (!i.tm.opcode_modifier.immext);
7337
7338 /* Turn on Imm8 again so that output_imm will generate it. */
7339 i.types[0].bitfield.imm8 = 1;
7340
7341 gas_assert (i.tm.operand_types[reg_slot].bitfield.class == RegSIMD);
7342 i.op[0].imms->X_add_number
7343 |= register_number (i.op[reg_slot].regs) << 4;
7344 gas_assert ((i.op[reg_slot].regs->reg_flags & RegVRex) == 0);
7345 }
7346
7347 gas_assert (i.tm.operand_types[nds].bitfield.class == RegSIMD);
7348 i.vex.register_specifier = i.op[nds].regs;
7349 }
7350 else
7351 source = dest = 0;
7352
7353 /* i.reg_operands MUST be the number of real register operands;
7354 implicit registers do not count. If there are 3 register
7355 operands, it must be a instruction with VexNDS. For a
7356 instruction with VexNDD, the destination register is encoded
7357 in VEX prefix. If there are 4 register operands, it must be
7358 a instruction with VEX prefix and 3 sources. */
7359 if (i.mem_operands == 0
7360 && ((i.reg_operands == 2
7361 && i.tm.opcode_modifier.vexvvvv <= VEXXDS)
7362 || (i.reg_operands == 3
7363 && i.tm.opcode_modifier.vexvvvv == VEXXDS)
7364 || (i.reg_operands == 4 && vex_3_sources)))
7365 {
7366 switch (i.operands)
7367 {
7368 case 2:
7369 source = 0;
7370 break;
7371 case 3:
7372 /* When there are 3 operands, one of them may be immediate,
7373 which may be the first or the last operand. Otherwise,
7374 the first operand must be shift count register (cl) or it
7375 is an instruction with VexNDS. */
7376 gas_assert (i.imm_operands == 1
7377 || (i.imm_operands == 0
7378 && (i.tm.opcode_modifier.vexvvvv == VEXXDS
7379 || (i.types[0].bitfield.instance == RegC
7380 && i.types[0].bitfield.byte))));
7381 if (operand_type_check (i.types[0], imm)
7382 || (i.types[0].bitfield.instance == RegC
7383 && i.types[0].bitfield.byte))
7384 source = 1;
7385 else
7386 source = 0;
7387 break;
7388 case 4:
7389 /* When there are 4 operands, the first two must be 8bit
7390 immediate operands. The source operand will be the 3rd
7391 one.
7392
7393 For instructions with VexNDS, if the first operand
7394 an imm8, the source operand is the 2nd one. If the last
7395 operand is imm8, the source operand is the first one. */
7396 gas_assert ((i.imm_operands == 2
7397 && i.types[0].bitfield.imm8
7398 && i.types[1].bitfield.imm8)
7399 || (i.tm.opcode_modifier.vexvvvv == VEXXDS
7400 && i.imm_operands == 1
7401 && (i.types[0].bitfield.imm8
7402 || i.types[i.operands - 1].bitfield.imm8
7403 || i.rounding)));
7404 if (i.imm_operands == 2)
7405 source = 2;
7406 else
7407 {
7408 if (i.types[0].bitfield.imm8)
7409 source = 1;
7410 else
7411 source = 0;
7412 }
7413 break;
7414 case 5:
7415 if (is_evex_encoding (&i.tm))
7416 {
7417 /* For EVEX instructions, when there are 5 operands, the
7418 first one must be immediate operand. If the second one
7419 is immediate operand, the source operand is the 3th
7420 one. If the last one is immediate operand, the source
7421 operand is the 2nd one. */
7422 gas_assert (i.imm_operands == 2
7423 && i.tm.opcode_modifier.sae
7424 && operand_type_check (i.types[0], imm));
7425 if (operand_type_check (i.types[1], imm))
7426 source = 2;
7427 else if (operand_type_check (i.types[4], imm))
7428 source = 1;
7429 else
7430 abort ();
7431 }
7432 break;
7433 default:
7434 abort ();
7435 }
7436
7437 if (!vex_3_sources)
7438 {
7439 dest = source + 1;
7440
7441 /* RC/SAE operand could be between DEST and SRC. That happens
7442 when one operand is GPR and the other one is XMM/YMM/ZMM
7443 register. */
7444 if (i.rounding && i.rounding->operand == (int) dest)
7445 dest++;
7446
7447 if (i.tm.opcode_modifier.vexvvvv == VEXXDS)
7448 {
7449 /* For instructions with VexNDS, the register-only source
7450 operand must be a 32/64bit integer, XMM, YMM, ZMM, or mask
7451 register. It is encoded in VEX prefix. */
7452
7453 i386_operand_type op;
7454 unsigned int vvvv;
7455
7456 /* Check register-only source operand when two source
7457 operands are swapped. */
7458 if (!i.tm.operand_types[source].bitfield.baseindex
7459 && i.tm.operand_types[dest].bitfield.baseindex)
7460 {
7461 vvvv = source;
7462 source = dest;
7463 }
7464 else
7465 vvvv = dest;
7466
7467 op = i.tm.operand_types[vvvv];
7468 if ((dest + 1) >= i.operands
7469 || ((op.bitfield.class != Reg
7470 || (!op.bitfield.dword && !op.bitfield.qword))
7471 && op.bitfield.class != RegSIMD
7472 && !operand_type_equal (&op, &regmask)))
7473 abort ();
7474 i.vex.register_specifier = i.op[vvvv].regs;
7475 dest++;
7476 }
7477 }
7478
7479 i.rm.mode = 3;
7480 /* One of the register operands will be encoded in the i.rm.reg
7481 field, the other in the combined i.rm.mode and i.rm.regmem
7482 fields. If no form of this instruction supports a memory
7483 destination operand, then we assume the source operand may
7484 sometimes be a memory operand and so we need to store the
7485 destination in the i.rm.reg field. */
7486 if (!i.tm.opcode_modifier.regmem
7487 && operand_type_check (i.tm.operand_types[dest], anymem) == 0)
7488 {
7489 i.rm.reg = i.op[dest].regs->reg_num;
7490 i.rm.regmem = i.op[source].regs->reg_num;
7491 if (i.op[dest].regs->reg_type.bitfield.class == RegMMX
7492 || i.op[source].regs->reg_type.bitfield.class == RegMMX)
7493 i.has_regmmx = TRUE;
7494 else if (i.op[dest].regs->reg_type.bitfield.class == RegSIMD
7495 || i.op[source].regs->reg_type.bitfield.class == RegSIMD)
7496 {
7497 if (i.types[dest].bitfield.zmmword
7498 || i.types[source].bitfield.zmmword)
7499 i.has_regzmm = TRUE;
7500 else if (i.types[dest].bitfield.ymmword
7501 || i.types[source].bitfield.ymmword)
7502 i.has_regymm = TRUE;
7503 else
7504 i.has_regxmm = TRUE;
7505 }
7506 if ((i.op[dest].regs->reg_flags & RegRex) != 0)
7507 i.rex |= REX_R;
7508 if ((i.op[dest].regs->reg_flags & RegVRex) != 0)
7509 i.vrex |= REX_R;
7510 if ((i.op[source].regs->reg_flags & RegRex) != 0)
7511 i.rex |= REX_B;
7512 if ((i.op[source].regs->reg_flags & RegVRex) != 0)
7513 i.vrex |= REX_B;
7514 }
7515 else
7516 {
7517 i.rm.reg = i.op[source].regs->reg_num;
7518 i.rm.regmem = i.op[dest].regs->reg_num;
7519 if ((i.op[dest].regs->reg_flags & RegRex) != 0)
7520 i.rex |= REX_B;
7521 if ((i.op[dest].regs->reg_flags & RegVRex) != 0)
7522 i.vrex |= REX_B;
7523 if ((i.op[source].regs->reg_flags & RegRex) != 0)
7524 i.rex |= REX_R;
7525 if ((i.op[source].regs->reg_flags & RegVRex) != 0)
7526 i.vrex |= REX_R;
7527 }
7528 if (flag_code != CODE_64BIT && (i.rex & REX_R))
7529 {
7530 if (i.types[!i.tm.opcode_modifier.regmem].bitfield.class != RegCR)
7531 abort ();
7532 i.rex &= ~REX_R;
7533 add_prefix (LOCK_PREFIX_OPCODE);
7534 }
7535 }
7536 else
7537 { /* If it's not 2 reg operands... */
7538 unsigned int mem;
7539
7540 if (i.mem_operands)
7541 {
7542 unsigned int fake_zero_displacement = 0;
7543 unsigned int op;
7544
7545 for (op = 0; op < i.operands; op++)
7546 if (i.flags[op] & Operand_Mem)
7547 break;
7548 gas_assert (op < i.operands);
7549
7550 if (i.tm.opcode_modifier.vecsib)
7551 {
7552 if (i.index_reg->reg_num == RegIZ)
7553 abort ();
7554
7555 i.rm.regmem = ESCAPE_TO_TWO_BYTE_ADDRESSING;
7556 if (!i.base_reg)
7557 {
7558 i.sib.base = NO_BASE_REGISTER;
7559 i.sib.scale = i.log2_scale_factor;
7560 i.types[op].bitfield.disp8 = 0;
7561 i.types[op].bitfield.disp16 = 0;
7562 i.types[op].bitfield.disp64 = 0;
7563 if (flag_code != CODE_64BIT || i.prefix[ADDR_PREFIX])
7564 {
7565 /* Must be 32 bit */
7566 i.types[op].bitfield.disp32 = 1;
7567 i.types[op].bitfield.disp32s = 0;
7568 }
7569 else
7570 {
7571 i.types[op].bitfield.disp32 = 0;
7572 i.types[op].bitfield.disp32s = 1;
7573 }
7574 }
7575 i.sib.index = i.index_reg->reg_num;
7576 if ((i.index_reg->reg_flags & RegRex) != 0)
7577 i.rex |= REX_X;
7578 if ((i.index_reg->reg_flags & RegVRex) != 0)
7579 i.vrex |= REX_X;
7580 }
7581
7582 default_seg = &ds;
7583
7584 if (i.base_reg == 0)
7585 {
7586 i.rm.mode = 0;
7587 if (!i.disp_operands)
7588 fake_zero_displacement = 1;
7589 if (i.index_reg == 0)
7590 {
7591 i386_operand_type newdisp;
7592
7593 gas_assert (!i.tm.opcode_modifier.vecsib);
7594 /* Operand is just <disp> */
7595 if (flag_code == CODE_64BIT)
7596 {
7597 /* 64bit mode overwrites the 32bit absolute
7598 addressing by RIP relative addressing and
7599 absolute addressing is encoded by one of the
7600 redundant SIB forms. */
7601 i.rm.regmem = ESCAPE_TO_TWO_BYTE_ADDRESSING;
7602 i.sib.base = NO_BASE_REGISTER;
7603 i.sib.index = NO_INDEX_REGISTER;
7604 newdisp = (!i.prefix[ADDR_PREFIX] ? disp32s : disp32);
7605 }
7606 else if ((flag_code == CODE_16BIT)
7607 ^ (i.prefix[ADDR_PREFIX] != 0))
7608 {
7609 i.rm.regmem = NO_BASE_REGISTER_16;
7610 newdisp = disp16;
7611 }
7612 else
7613 {
7614 i.rm.regmem = NO_BASE_REGISTER;
7615 newdisp = disp32;
7616 }
7617 i.types[op] = operand_type_and_not (i.types[op], anydisp);
7618 i.types[op] = operand_type_or (i.types[op], newdisp);
7619 }
7620 else if (!i.tm.opcode_modifier.vecsib)
7621 {
7622 /* !i.base_reg && i.index_reg */
7623 if (i.index_reg->reg_num == RegIZ)
7624 i.sib.index = NO_INDEX_REGISTER;
7625 else
7626 i.sib.index = i.index_reg->reg_num;
7627 i.sib.base = NO_BASE_REGISTER;
7628 i.sib.scale = i.log2_scale_factor;
7629 i.rm.regmem = ESCAPE_TO_TWO_BYTE_ADDRESSING;
7630 i.types[op].bitfield.disp8 = 0;
7631 i.types[op].bitfield.disp16 = 0;
7632 i.types[op].bitfield.disp64 = 0;
7633 if (flag_code != CODE_64BIT || i.prefix[ADDR_PREFIX])
7634 {
7635 /* Must be 32 bit */
7636 i.types[op].bitfield.disp32 = 1;
7637 i.types[op].bitfield.disp32s = 0;
7638 }
7639 else
7640 {
7641 i.types[op].bitfield.disp32 = 0;
7642 i.types[op].bitfield.disp32s = 1;
7643 }
7644 if ((i.index_reg->reg_flags & RegRex) != 0)
7645 i.rex |= REX_X;
7646 }
7647 }
7648 /* RIP addressing for 64bit mode. */
7649 else if (i.base_reg->reg_num == RegIP)
7650 {
7651 gas_assert (!i.tm.opcode_modifier.vecsib);
7652 i.rm.regmem = NO_BASE_REGISTER;
7653 i.types[op].bitfield.disp8 = 0;
7654 i.types[op].bitfield.disp16 = 0;
7655 i.types[op].bitfield.disp32 = 0;
7656 i.types[op].bitfield.disp32s = 1;
7657 i.types[op].bitfield.disp64 = 0;
7658 i.flags[op] |= Operand_PCrel;
7659 if (! i.disp_operands)
7660 fake_zero_displacement = 1;
7661 }
7662 else if (i.base_reg->reg_type.bitfield.word)
7663 {
7664 gas_assert (!i.tm.opcode_modifier.vecsib);
7665 switch (i.base_reg->reg_num)
7666 {
7667 case 3: /* (%bx) */
7668 if (i.index_reg == 0)
7669 i.rm.regmem = 7;
7670 else /* (%bx,%si) -> 0, or (%bx,%di) -> 1 */
7671 i.rm.regmem = i.index_reg->reg_num - 6;
7672 break;
7673 case 5: /* (%bp) */
7674 default_seg = &ss;
7675 if (i.index_reg == 0)
7676 {
7677 i.rm.regmem = 6;
7678 if (operand_type_check (i.types[op], disp) == 0)
7679 {
7680 /* fake (%bp) into 0(%bp) */
7681 i.types[op].bitfield.disp8 = 1;
7682 fake_zero_displacement = 1;
7683 }
7684 }
7685 else /* (%bp,%si) -> 2, or (%bp,%di) -> 3 */
7686 i.rm.regmem = i.index_reg->reg_num - 6 + 2;
7687 break;
7688 default: /* (%si) -> 4 or (%di) -> 5 */
7689 i.rm.regmem = i.base_reg->reg_num - 6 + 4;
7690 }
7691 i.rm.mode = mode_from_disp_size (i.types[op]);
7692 }
7693 else /* i.base_reg and 32/64 bit mode */
7694 {
7695 if (flag_code == CODE_64BIT
7696 && operand_type_check (i.types[op], disp))
7697 {
7698 i.types[op].bitfield.disp16 = 0;
7699 i.types[op].bitfield.disp64 = 0;
7700 if (i.prefix[ADDR_PREFIX] == 0)
7701 {
7702 i.types[op].bitfield.disp32 = 0;
7703 i.types[op].bitfield.disp32s = 1;
7704 }
7705 else
7706 {
7707 i.types[op].bitfield.disp32 = 1;
7708 i.types[op].bitfield.disp32s = 0;
7709 }
7710 }
7711
7712 if (!i.tm.opcode_modifier.vecsib)
7713 i.rm.regmem = i.base_reg->reg_num;
7714 if ((i.base_reg->reg_flags & RegRex) != 0)
7715 i.rex |= REX_B;
7716 i.sib.base = i.base_reg->reg_num;
7717 /* x86-64 ignores REX prefix bit here to avoid decoder
7718 complications. */
7719 if (!(i.base_reg->reg_flags & RegRex)
7720 && (i.base_reg->reg_num == EBP_REG_NUM
7721 || i.base_reg->reg_num == ESP_REG_NUM))
7722 default_seg = &ss;
7723 if (i.base_reg->reg_num == 5 && i.disp_operands == 0)
7724 {
7725 fake_zero_displacement = 1;
7726 i.types[op].bitfield.disp8 = 1;
7727 }
7728 i.sib.scale = i.log2_scale_factor;
7729 if (i.index_reg == 0)
7730 {
7731 gas_assert (!i.tm.opcode_modifier.vecsib);
7732 /* <disp>(%esp) becomes two byte modrm with no index
7733 register. We've already stored the code for esp
7734 in i.rm.regmem ie. ESCAPE_TO_TWO_BYTE_ADDRESSING.
7735 Any base register besides %esp will not use the
7736 extra modrm byte. */
7737 i.sib.index = NO_INDEX_REGISTER;
7738 }
7739 else if (!i.tm.opcode_modifier.vecsib)
7740 {
7741 if (i.index_reg->reg_num == RegIZ)
7742 i.sib.index = NO_INDEX_REGISTER;
7743 else
7744 i.sib.index = i.index_reg->reg_num;
7745 i.rm.regmem = ESCAPE_TO_TWO_BYTE_ADDRESSING;
7746 if ((i.index_reg->reg_flags & RegRex) != 0)
7747 i.rex |= REX_X;
7748 }
7749
7750 if (i.disp_operands
7751 && (i.reloc[op] == BFD_RELOC_386_TLS_DESC_CALL
7752 || i.reloc[op] == BFD_RELOC_X86_64_TLSDESC_CALL))
7753 i.rm.mode = 0;
7754 else
7755 {
7756 if (!fake_zero_displacement
7757 && !i.disp_operands
7758 && i.disp_encoding)
7759 {
7760 fake_zero_displacement = 1;
7761 if (i.disp_encoding == disp_encoding_8bit)
7762 i.types[op].bitfield.disp8 = 1;
7763 else
7764 i.types[op].bitfield.disp32 = 1;
7765 }
7766 i.rm.mode = mode_from_disp_size (i.types[op]);
7767 }
7768 }
7769
7770 if (fake_zero_displacement)
7771 {
7772 /* Fakes a zero displacement assuming that i.types[op]
7773 holds the correct displacement size. */
7774 expressionS *exp;
7775
7776 gas_assert (i.op[op].disps == 0);
7777 exp = &disp_expressions[i.disp_operands++];
7778 i.op[op].disps = exp;
7779 exp->X_op = O_constant;
7780 exp->X_add_number = 0;
7781 exp->X_add_symbol = (symbolS *) 0;
7782 exp->X_op_symbol = (symbolS *) 0;
7783 }
7784
7785 mem = op;
7786 }
7787 else
7788 mem = ~0;
7789
7790 if (i.tm.opcode_modifier.vexsources == XOP2SOURCES)
7791 {
7792 if (operand_type_check (i.types[0], imm))
7793 i.vex.register_specifier = NULL;
7794 else
7795 {
7796 /* VEX.vvvv encodes one of the sources when the first
7797 operand is not an immediate. */
7798 if (i.tm.opcode_modifier.vexw == VEXW0)
7799 i.vex.register_specifier = i.op[0].regs;
7800 else
7801 i.vex.register_specifier = i.op[1].regs;
7802 }
7803
7804 /* Destination is a XMM register encoded in the ModRM.reg
7805 and VEX.R bit. */
7806 i.rm.reg = i.op[2].regs->reg_num;
7807 if ((i.op[2].regs->reg_flags & RegRex) != 0)
7808 i.rex |= REX_R;
7809
7810 /* ModRM.rm and VEX.B encodes the other source. */
7811 if (!i.mem_operands)
7812 {
7813 i.rm.mode = 3;
7814
7815 if (i.tm.opcode_modifier.vexw == VEXW0)
7816 i.rm.regmem = i.op[1].regs->reg_num;
7817 else
7818 i.rm.regmem = i.op[0].regs->reg_num;
7819
7820 if ((i.op[1].regs->reg_flags & RegRex) != 0)
7821 i.rex |= REX_B;
7822 }
7823 }
7824 else if (i.tm.opcode_modifier.vexvvvv == VEXLWP)
7825 {
7826 i.vex.register_specifier = i.op[2].regs;
7827 if (!i.mem_operands)
7828 {
7829 i.rm.mode = 3;
7830 i.rm.regmem = i.op[1].regs->reg_num;
7831 if ((i.op[1].regs->reg_flags & RegRex) != 0)
7832 i.rex |= REX_B;
7833 }
7834 }
7835 /* Fill in i.rm.reg or i.rm.regmem field with register operand
7836 (if any) based on i.tm.extension_opcode. Again, we must be
7837 careful to make sure that segment/control/debug/test/MMX
7838 registers are coded into the i.rm.reg field. */
7839 else if (i.reg_operands)
7840 {
7841 unsigned int op;
7842 unsigned int vex_reg = ~0;
7843
7844 for (op = 0; op < i.operands; op++)
7845 {
7846 if (i.types[op].bitfield.class == Reg
7847 || i.types[op].bitfield.class == RegBND
7848 || i.types[op].bitfield.class == RegMask
7849 || i.types[op].bitfield.class == SReg
7850 || i.types[op].bitfield.class == RegCR
7851 || i.types[op].bitfield.class == RegDR
7852 || i.types[op].bitfield.class == RegTR)
7853 break;
7854 if (i.types[op].bitfield.class == RegSIMD)
7855 {
7856 if (i.types[op].bitfield.zmmword)
7857 i.has_regzmm = TRUE;
7858 else if (i.types[op].bitfield.ymmword)
7859 i.has_regymm = TRUE;
7860 else
7861 i.has_regxmm = TRUE;
7862 break;
7863 }
7864 if (i.types[op].bitfield.class == RegMMX)
7865 {
7866 i.has_regmmx = TRUE;
7867 break;
7868 }
7869 }
7870
7871 if (vex_3_sources)
7872 op = dest;
7873 else if (i.tm.opcode_modifier.vexvvvv == VEXXDS)
7874 {
7875 /* For instructions with VexNDS, the register-only
7876 source operand is encoded in VEX prefix. */
7877 gas_assert (mem != (unsigned int) ~0);
7878
7879 if (op > mem)
7880 {
7881 vex_reg = op++;
7882 gas_assert (op < i.operands);
7883 }
7884 else
7885 {
7886 /* Check register-only source operand when two source
7887 operands are swapped. */
7888 if (!i.tm.operand_types[op].bitfield.baseindex
7889 && i.tm.operand_types[op + 1].bitfield.baseindex)
7890 {
7891 vex_reg = op;
7892 op += 2;
7893 gas_assert (mem == (vex_reg + 1)
7894 && op < i.operands);
7895 }
7896 else
7897 {
7898 vex_reg = op + 1;
7899 gas_assert (vex_reg < i.operands);
7900 }
7901 }
7902 }
7903 else if (i.tm.opcode_modifier.vexvvvv == VEXNDD)
7904 {
7905 /* For instructions with VexNDD, the register destination
7906 is encoded in VEX prefix. */
7907 if (i.mem_operands == 0)
7908 {
7909 /* There is no memory operand. */
7910 gas_assert ((op + 2) == i.operands);
7911 vex_reg = op + 1;
7912 }
7913 else
7914 {
7915 /* There are only 2 non-immediate operands. */
7916 gas_assert (op < i.imm_operands + 2
7917 && i.operands == i.imm_operands + 2);
7918 vex_reg = i.imm_operands + 1;
7919 }
7920 }
7921 else
7922 gas_assert (op < i.operands);
7923
7924 if (vex_reg != (unsigned int) ~0)
7925 {
7926 i386_operand_type *type = &i.tm.operand_types[vex_reg];
7927
7928 if ((type->bitfield.class != Reg
7929 || (!type->bitfield.dword && !type->bitfield.qword))
7930 && type->bitfield.class != RegSIMD
7931 && !operand_type_equal (type, &regmask))
7932 abort ();
7933
7934 i.vex.register_specifier = i.op[vex_reg].regs;
7935 }
7936
7937 /* Don't set OP operand twice. */
7938 if (vex_reg != op)
7939 {
7940 /* If there is an extension opcode to put here, the
7941 register number must be put into the regmem field. */
7942 if (i.tm.extension_opcode != None)
7943 {
7944 i.rm.regmem = i.op[op].regs->reg_num;
7945 if ((i.op[op].regs->reg_flags & RegRex) != 0)
7946 i.rex |= REX_B;
7947 if ((i.op[op].regs->reg_flags & RegVRex) != 0)
7948 i.vrex |= REX_B;
7949 }
7950 else
7951 {
7952 i.rm.reg = i.op[op].regs->reg_num;
7953 if ((i.op[op].regs->reg_flags & RegRex) != 0)
7954 i.rex |= REX_R;
7955 if ((i.op[op].regs->reg_flags & RegVRex) != 0)
7956 i.vrex |= REX_R;
7957 }
7958 }
7959
7960 /* Now, if no memory operand has set i.rm.mode = 0, 1, 2 we
7961 must set it to 3 to indicate this is a register operand
7962 in the regmem field. */
7963 if (!i.mem_operands)
7964 i.rm.mode = 3;
7965 }
7966
7967 /* Fill in i.rm.reg field with extension opcode (if any). */
7968 if (i.tm.extension_opcode != None)
7969 i.rm.reg = i.tm.extension_opcode;
7970 }
7971 return default_seg;
7972 }
7973
7974 static unsigned int
7975 flip_code16 (unsigned int code16)
7976 {
7977 gas_assert (i.tm.operands == 1);
7978
7979 return !(i.prefix[REX_PREFIX] & REX_W)
7980 && (code16 ? i.tm.operand_types[0].bitfield.disp32
7981 || i.tm.operand_types[0].bitfield.disp32s
7982 : i.tm.operand_types[0].bitfield.disp16)
7983 ? CODE16 : 0;
7984 }
7985
7986 static void
7987 output_branch (void)
7988 {
7989 char *p;
7990 int size;
7991 int code16;
7992 int prefix;
7993 relax_substateT subtype;
7994 symbolS *sym;
7995 offsetT off;
7996
7997 code16 = flag_code == CODE_16BIT ? CODE16 : 0;
7998 size = i.disp_encoding == disp_encoding_32bit ? BIG : SMALL;
7999
8000 prefix = 0;
8001 if (i.prefix[DATA_PREFIX] != 0)
8002 {
8003 prefix = 1;
8004 i.prefixes -= 1;
8005 code16 ^= flip_code16(code16);
8006 }
8007 /* Pentium4 branch hints. */
8008 if (i.prefix[SEG_PREFIX] == CS_PREFIX_OPCODE /* not taken */
8009 || i.prefix[SEG_PREFIX] == DS_PREFIX_OPCODE /* taken */)
8010 {
8011 prefix++;
8012 i.prefixes--;
8013 }
8014 if (i.prefix[REX_PREFIX] != 0)
8015 {
8016 prefix++;
8017 i.prefixes--;
8018 }
8019
8020 /* BND prefixed jump. */
8021 if (i.prefix[BND_PREFIX] != 0)
8022 {
8023 prefix++;
8024 i.prefixes--;
8025 }
8026
8027 if (i.prefixes != 0)
8028 as_warn (_("skipping prefixes on `%s'"), i.tm.name);
8029
8030 /* It's always a symbol; End frag & setup for relax.
8031 Make sure there is enough room in this frag for the largest
8032 instruction we may generate in md_convert_frag. This is 2
8033 bytes for the opcode and room for the prefix and largest
8034 displacement. */
8035 frag_grow (prefix + 2 + 4);
8036 /* Prefix and 1 opcode byte go in fr_fix. */
8037 p = frag_more (prefix + 1);
8038 if (i.prefix[DATA_PREFIX] != 0)
8039 *p++ = DATA_PREFIX_OPCODE;
8040 if (i.prefix[SEG_PREFIX] == CS_PREFIX_OPCODE
8041 || i.prefix[SEG_PREFIX] == DS_PREFIX_OPCODE)
8042 *p++ = i.prefix[SEG_PREFIX];
8043 if (i.prefix[BND_PREFIX] != 0)
8044 *p++ = BND_PREFIX_OPCODE;
8045 if (i.prefix[REX_PREFIX] != 0)
8046 *p++ = i.prefix[REX_PREFIX];
8047 *p = i.tm.base_opcode;
8048
8049 if ((unsigned char) *p == JUMP_PC_RELATIVE)
8050 subtype = ENCODE_RELAX_STATE (UNCOND_JUMP, size);
8051 else if (cpu_arch_flags.bitfield.cpui386)
8052 subtype = ENCODE_RELAX_STATE (COND_JUMP, size);
8053 else
8054 subtype = ENCODE_RELAX_STATE (COND_JUMP86, size);
8055 subtype |= code16;
8056
8057 sym = i.op[0].disps->X_add_symbol;
8058 off = i.op[0].disps->X_add_number;
8059
8060 if (i.op[0].disps->X_op != O_constant
8061 && i.op[0].disps->X_op != O_symbol)
8062 {
8063 /* Handle complex expressions. */
8064 sym = make_expr_symbol (i.op[0].disps);
8065 off = 0;
8066 }
8067
8068 /* 1 possible extra opcode + 4 byte displacement go in var part.
8069 Pass reloc in fr_var. */
8070 frag_var (rs_machine_dependent, 5, i.reloc[0], subtype, sym, off, p);
8071 }
8072
8073 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
8074 /* Return TRUE iff PLT32 relocation should be used for branching to
8075 symbol S. */
8076
8077 static bfd_boolean
8078 need_plt32_p (symbolS *s)
8079 {
8080 /* PLT32 relocation is ELF only. */
8081 if (!IS_ELF)
8082 return FALSE;
8083
8084 #ifdef TE_SOLARIS
8085 /* Don't emit PLT32 relocation on Solaris: neither native linker nor
8086 krtld support it. */
8087 return FALSE;
8088 #endif
8089
8090 /* Since there is no need to prepare for PLT branch on x86-64, we
8091 can generate R_X86_64_PLT32, instead of R_X86_64_PC32, which can
8092 be used as a marker for 32-bit PC-relative branches. */
8093 if (!object_64bit)
8094 return FALSE;
8095
8096 /* Weak or undefined symbol need PLT32 relocation. */
8097 if (S_IS_WEAK (s) || !S_IS_DEFINED (s))
8098 return TRUE;
8099
8100 /* Non-global symbol doesn't need PLT32 relocation. */
8101 if (! S_IS_EXTERNAL (s))
8102 return FALSE;
8103
8104 /* Other global symbols need PLT32 relocation. NB: Symbol with
8105 non-default visibilities are treated as normal global symbol
8106 so that PLT32 relocation can be used as a marker for 32-bit
8107 PC-relative branches. It is useful for linker relaxation. */
8108 return TRUE;
8109 }
8110 #endif
8111
8112 static void
8113 output_jump (void)
8114 {
8115 char *p;
8116 int size;
8117 fixS *fixP;
8118 bfd_reloc_code_real_type jump_reloc = i.reloc[0];
8119
8120 if (i.tm.opcode_modifier.jump == JUMP_BYTE)
8121 {
8122 /* This is a loop or jecxz type instruction. */
8123 size = 1;
8124 if (i.prefix[ADDR_PREFIX] != 0)
8125 {
8126 FRAG_APPEND_1_CHAR (ADDR_PREFIX_OPCODE);
8127 i.prefixes -= 1;
8128 }
8129 /* Pentium4 branch hints. */
8130 if (i.prefix[SEG_PREFIX] == CS_PREFIX_OPCODE /* not taken */
8131 || i.prefix[SEG_PREFIX] == DS_PREFIX_OPCODE /* taken */)
8132 {
8133 FRAG_APPEND_1_CHAR (i.prefix[SEG_PREFIX]);
8134 i.prefixes--;
8135 }
8136 }
8137 else
8138 {
8139 int code16;
8140
8141 code16 = 0;
8142 if (flag_code == CODE_16BIT)
8143 code16 = CODE16;
8144
8145 if (i.prefix[DATA_PREFIX] != 0)
8146 {
8147 FRAG_APPEND_1_CHAR (DATA_PREFIX_OPCODE);
8148 i.prefixes -= 1;
8149 code16 ^= flip_code16(code16);
8150 }
8151
8152 size = 4;
8153 if (code16)
8154 size = 2;
8155 }
8156
8157 /* BND prefixed jump. */
8158 if (i.prefix[BND_PREFIX] != 0)
8159 {
8160 FRAG_APPEND_1_CHAR (i.prefix[BND_PREFIX]);
8161 i.prefixes -= 1;
8162 }
8163
8164 if (i.prefix[REX_PREFIX] != 0)
8165 {
8166 FRAG_APPEND_1_CHAR (i.prefix[REX_PREFIX]);
8167 i.prefixes -= 1;
8168 }
8169
8170 if (i.prefixes != 0)
8171 as_warn (_("skipping prefixes on `%s'"), i.tm.name);
8172
8173 p = frag_more (i.tm.opcode_length + size);
8174 switch (i.tm.opcode_length)
8175 {
8176 case 2:
8177 *p++ = i.tm.base_opcode >> 8;
8178 /* Fall through. */
8179 case 1:
8180 *p++ = i.tm.base_opcode;
8181 break;
8182 default:
8183 abort ();
8184 }
8185
8186 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
8187 if (size == 4
8188 && jump_reloc == NO_RELOC
8189 && need_plt32_p (i.op[0].disps->X_add_symbol))
8190 jump_reloc = BFD_RELOC_X86_64_PLT32;
8191 #endif
8192
8193 jump_reloc = reloc (size, 1, 1, jump_reloc);
8194
8195 fixP = fix_new_exp (frag_now, p - frag_now->fr_literal, size,
8196 i.op[0].disps, 1, jump_reloc);
8197
8198 /* All jumps handled here are signed, but don't use a signed limit
8199 check for 32 and 16 bit jumps as we want to allow wrap around at
8200 4G and 64k respectively. */
8201 if (size == 1)
8202 fixP->fx_signed = 1;
8203 }
8204
8205 static void
8206 output_interseg_jump (void)
8207 {
8208 char *p;
8209 int size;
8210 int prefix;
8211 int code16;
8212
8213 code16 = 0;
8214 if (flag_code == CODE_16BIT)
8215 code16 = CODE16;
8216
8217 prefix = 0;
8218 if (i.prefix[DATA_PREFIX] != 0)
8219 {
8220 prefix = 1;
8221 i.prefixes -= 1;
8222 code16 ^= CODE16;
8223 }
8224
8225 gas_assert (!i.prefix[REX_PREFIX]);
8226
8227 size = 4;
8228 if (code16)
8229 size = 2;
8230
8231 if (i.prefixes != 0)
8232 as_warn (_("skipping prefixes on `%s'"), i.tm.name);
8233
8234 /* 1 opcode; 2 segment; offset */
8235 p = frag_more (prefix + 1 + 2 + size);
8236
8237 if (i.prefix[DATA_PREFIX] != 0)
8238 *p++ = DATA_PREFIX_OPCODE;
8239
8240 if (i.prefix[REX_PREFIX] != 0)
8241 *p++ = i.prefix[REX_PREFIX];
8242
8243 *p++ = i.tm.base_opcode;
8244 if (i.op[1].imms->X_op == O_constant)
8245 {
8246 offsetT n = i.op[1].imms->X_add_number;
8247
8248 if (size == 2
8249 && !fits_in_unsigned_word (n)
8250 && !fits_in_signed_word (n))
8251 {
8252 as_bad (_("16-bit jump out of range"));
8253 return;
8254 }
8255 md_number_to_chars (p, n, size);
8256 }
8257 else
8258 fix_new_exp (frag_now, p - frag_now->fr_literal, size,
8259 i.op[1].imms, 0, reloc (size, 0, 0, i.reloc[1]));
8260 if (i.op[0].imms->X_op != O_constant)
8261 as_bad (_("can't handle non absolute segment in `%s'"),
8262 i.tm.name);
8263 md_number_to_chars (p + size, (valueT) i.op[0].imms->X_add_number, 2);
8264 }
8265
8266 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
8267 void
8268 x86_cleanup (void)
8269 {
8270 char *p;
8271 asection *seg = now_seg;
8272 subsegT subseg = now_subseg;
8273 asection *sec;
8274 unsigned int alignment, align_size_1;
8275 unsigned int isa_1_descsz, feature_2_descsz, descsz;
8276 unsigned int isa_1_descsz_raw, feature_2_descsz_raw;
8277 unsigned int padding;
8278
8279 if (!IS_ELF || !x86_used_note)
8280 return;
8281
8282 x86_feature_2_used |= GNU_PROPERTY_X86_FEATURE_2_X86;
8283
8284 /* The .note.gnu.property section layout:
8285
8286 Field Length Contents
8287 ---- ---- ----
8288 n_namsz 4 4
8289 n_descsz 4 The note descriptor size
8290 n_type 4 NT_GNU_PROPERTY_TYPE_0
8291 n_name 4 "GNU"
8292 n_desc n_descsz The program property array
8293 .... .... ....
8294 */
8295
8296 /* Create the .note.gnu.property section. */
8297 sec = subseg_new (NOTE_GNU_PROPERTY_SECTION_NAME, 0);
8298 bfd_set_section_flags (sec,
8299 (SEC_ALLOC
8300 | SEC_LOAD
8301 | SEC_DATA
8302 | SEC_HAS_CONTENTS
8303 | SEC_READONLY));
8304
8305 if (get_elf_backend_data (stdoutput)->s->elfclass == ELFCLASS64)
8306 {
8307 align_size_1 = 7;
8308 alignment = 3;
8309 }
8310 else
8311 {
8312 align_size_1 = 3;
8313 alignment = 2;
8314 }
8315
8316 bfd_set_section_alignment (sec, alignment);
8317 elf_section_type (sec) = SHT_NOTE;
8318
8319 /* GNU_PROPERTY_X86_ISA_1_USED: 4-byte type + 4-byte data size
8320 + 4-byte data */
8321 isa_1_descsz_raw = 4 + 4 + 4;
8322 /* Align GNU_PROPERTY_X86_ISA_1_USED. */
8323 isa_1_descsz = (isa_1_descsz_raw + align_size_1) & ~align_size_1;
8324
8325 feature_2_descsz_raw = isa_1_descsz;
8326 /* GNU_PROPERTY_X86_FEATURE_2_USED: 4-byte type + 4-byte data size
8327 + 4-byte data */
8328 feature_2_descsz_raw += 4 + 4 + 4;
8329 /* Align GNU_PROPERTY_X86_FEATURE_2_USED. */
8330 feature_2_descsz = ((feature_2_descsz_raw + align_size_1)
8331 & ~align_size_1);
8332
8333 descsz = feature_2_descsz;
8334 /* Section size: n_namsz + n_descsz + n_type + n_name + n_descsz. */
8335 p = frag_more (4 + 4 + 4 + 4 + descsz);
8336
8337 /* Write n_namsz. */
8338 md_number_to_chars (p, (valueT) 4, 4);
8339
8340 /* Write n_descsz. */
8341 md_number_to_chars (p + 4, (valueT) descsz, 4);
8342
8343 /* Write n_type. */
8344 md_number_to_chars (p + 4 * 2, (valueT) NT_GNU_PROPERTY_TYPE_0, 4);
8345
8346 /* Write n_name. */
8347 memcpy (p + 4 * 3, "GNU", 4);
8348
8349 /* Write 4-byte type. */
8350 md_number_to_chars (p + 4 * 4,
8351 (valueT) GNU_PROPERTY_X86_ISA_1_USED, 4);
8352
8353 /* Write 4-byte data size. */
8354 md_number_to_chars (p + 4 * 5, (valueT) 4, 4);
8355
8356 /* Write 4-byte data. */
8357 md_number_to_chars (p + 4 * 6, (valueT) x86_isa_1_used, 4);
8358
8359 /* Zero out paddings. */
8360 padding = isa_1_descsz - isa_1_descsz_raw;
8361 if (padding)
8362 memset (p + 4 * 7, 0, padding);
8363
8364 /* Write 4-byte type. */
8365 md_number_to_chars (p + isa_1_descsz + 4 * 4,
8366 (valueT) GNU_PROPERTY_X86_FEATURE_2_USED, 4);
8367
8368 /* Write 4-byte data size. */
8369 md_number_to_chars (p + isa_1_descsz + 4 * 5, (valueT) 4, 4);
8370
8371 /* Write 4-byte data. */
8372 md_number_to_chars (p + isa_1_descsz + 4 * 6,
8373 (valueT) x86_feature_2_used, 4);
8374
8375 /* Zero out paddings. */
8376 padding = feature_2_descsz - feature_2_descsz_raw;
8377 if (padding)
8378 memset (p + isa_1_descsz + 4 * 7, 0, padding);
8379
8380 /* We probably can't restore the current segment, for there likely
8381 isn't one yet... */
8382 if (seg && subseg)
8383 subseg_set (seg, subseg);
8384 }
8385 #endif
8386
8387 static unsigned int
8388 encoding_length (const fragS *start_frag, offsetT start_off,
8389 const char *frag_now_ptr)
8390 {
8391 unsigned int len = 0;
8392
8393 if (start_frag != frag_now)
8394 {
8395 const fragS *fr = start_frag;
8396
8397 do {
8398 len += fr->fr_fix;
8399 fr = fr->fr_next;
8400 } while (fr && fr != frag_now);
8401 }
8402
8403 return len - start_off + (frag_now_ptr - frag_now->fr_literal);
8404 }
8405
8406 /* Return 1 for test, and, cmp, add, sub, inc and dec which may
8407 be macro-fused with conditional jumps.
8408 NB: If TEST/AND/CMP/ADD/SUB/INC/DEC is of RIP relative address,
8409 or is one of the following format:
8410
8411 cmp m, imm
8412 add m, imm
8413 sub m, imm
8414 test m, imm
8415 and m, imm
8416 inc m
8417 dec m
8418
8419 it is unfusible. */
8420
8421 static int
8422 maybe_fused_with_jcc_p (enum mf_cmp_kind* mf_cmp_p)
8423 {
8424 /* No RIP address. */
8425 if (i.base_reg && i.base_reg->reg_num == RegIP)
8426 return 0;
8427
8428 /* No VEX/EVEX encoding. */
8429 if (is_any_vex_encoding (&i.tm))
8430 return 0;
8431
8432 /* add, sub without add/sub m, imm. */
8433 if (i.tm.base_opcode <= 5
8434 || (i.tm.base_opcode >= 0x28 && i.tm.base_opcode <= 0x2d)
8435 || ((i.tm.base_opcode | 3) == 0x83
8436 && (i.tm.extension_opcode == 0x5
8437 || i.tm.extension_opcode == 0x0)))
8438 {
8439 *mf_cmp_p = mf_cmp_alu_cmp;
8440 return !(i.mem_operands && i.imm_operands);
8441 }
8442
8443 /* and without and m, imm. */
8444 if ((i.tm.base_opcode >= 0x20 && i.tm.base_opcode <= 0x25)
8445 || ((i.tm.base_opcode | 3) == 0x83
8446 && i.tm.extension_opcode == 0x4))
8447 {
8448 *mf_cmp_p = mf_cmp_test_and;
8449 return !(i.mem_operands && i.imm_operands);
8450 }
8451
8452 /* test without test m imm. */
8453 if ((i.tm.base_opcode | 1) == 0x85
8454 || (i.tm.base_opcode | 1) == 0xa9
8455 || ((i.tm.base_opcode | 1) == 0xf7
8456 && i.tm.extension_opcode == 0))
8457 {
8458 *mf_cmp_p = mf_cmp_test_and;
8459 return !(i.mem_operands && i.imm_operands);
8460 }
8461
8462 /* cmp without cmp m, imm. */
8463 if ((i.tm.base_opcode >= 0x38 && i.tm.base_opcode <= 0x3d)
8464 || ((i.tm.base_opcode | 3) == 0x83
8465 && (i.tm.extension_opcode == 0x7)))
8466 {
8467 *mf_cmp_p = mf_cmp_alu_cmp;
8468 return !(i.mem_operands && i.imm_operands);
8469 }
8470
8471 /* inc, dec without inc/dec m. */
8472 if ((i.tm.cpu_flags.bitfield.cpuno64
8473 && (i.tm.base_opcode | 0xf) == 0x4f)
8474 || ((i.tm.base_opcode | 1) == 0xff
8475 && i.tm.extension_opcode <= 0x1))
8476 {
8477 *mf_cmp_p = mf_cmp_incdec;
8478 return !i.mem_operands;
8479 }
8480
8481 return 0;
8482 }
8483
8484 /* Return 1 if a FUSED_JCC_PADDING frag should be generated. */
8485
8486 static int
8487 add_fused_jcc_padding_frag_p (enum mf_cmp_kind* mf_cmp_p)
8488 {
8489 /* NB: Don't work with COND_JUMP86 without i386. */
8490 if (!align_branch_power
8491 || now_seg == absolute_section
8492 || !cpu_arch_flags.bitfield.cpui386
8493 || !(align_branch & align_branch_fused_bit))
8494 return 0;
8495
8496 if (maybe_fused_with_jcc_p (mf_cmp_p))
8497 {
8498 if (last_insn.kind == last_insn_other
8499 || last_insn.seg != now_seg)
8500 return 1;
8501 if (flag_debug)
8502 as_warn_where (last_insn.file, last_insn.line,
8503 _("`%s` skips -malign-branch-boundary on `%s`"),
8504 last_insn.name, i.tm.name);
8505 }
8506
8507 return 0;
8508 }
8509
8510 /* Return 1 if a BRANCH_PREFIX frag should be generated. */
8511
8512 static int
8513 add_branch_prefix_frag_p (void)
8514 {
8515 /* NB: Don't work with COND_JUMP86 without i386. Don't add prefix
8516 to PadLock instructions since they include prefixes in opcode. */
8517 if (!align_branch_power
8518 || !align_branch_prefix_size
8519 || now_seg == absolute_section
8520 || i.tm.cpu_flags.bitfield.cpupadlock
8521 || !cpu_arch_flags.bitfield.cpui386)
8522 return 0;
8523
8524 /* Don't add prefix if it is a prefix or there is no operand in case
8525 that segment prefix is special. */
8526 if (!i.operands || i.tm.opcode_modifier.isprefix)
8527 return 0;
8528
8529 if (last_insn.kind == last_insn_other
8530 || last_insn.seg != now_seg)
8531 return 1;
8532
8533 if (flag_debug)
8534 as_warn_where (last_insn.file, last_insn.line,
8535 _("`%s` skips -malign-branch-boundary on `%s`"),
8536 last_insn.name, i.tm.name);
8537
8538 return 0;
8539 }
8540
8541 /* Return 1 if a BRANCH_PADDING frag should be generated. */
8542
8543 static int
8544 add_branch_padding_frag_p (enum align_branch_kind *branch_p,
8545 enum mf_jcc_kind *mf_jcc_p)
8546 {
8547 int add_padding;
8548
8549 /* NB: Don't work with COND_JUMP86 without i386. */
8550 if (!align_branch_power
8551 || now_seg == absolute_section
8552 || !cpu_arch_flags.bitfield.cpui386)
8553 return 0;
8554
8555 add_padding = 0;
8556
8557 /* Check for jcc and direct jmp. */
8558 if (i.tm.opcode_modifier.jump == JUMP)
8559 {
8560 if (i.tm.base_opcode == JUMP_PC_RELATIVE)
8561 {
8562 *branch_p = align_branch_jmp;
8563 add_padding = align_branch & align_branch_jmp_bit;
8564 }
8565 else
8566 {
8567 /* Because J<cc> and JN<cc> share same group in macro-fusible table,
8568 igore the lowest bit. */
8569 *mf_jcc_p = (i.tm.base_opcode & 0x0e) >> 1;
8570 *branch_p = align_branch_jcc;
8571 if ((align_branch & align_branch_jcc_bit))
8572 add_padding = 1;
8573 }
8574 }
8575 else if (is_any_vex_encoding (&i.tm))
8576 return 0;
8577 else if ((i.tm.base_opcode | 1) == 0xc3)
8578 {
8579 /* Near ret. */
8580 *branch_p = align_branch_ret;
8581 if ((align_branch & align_branch_ret_bit))
8582 add_padding = 1;
8583 }
8584 else
8585 {
8586 /* Check for indirect jmp, direct and indirect calls. */
8587 if (i.tm.base_opcode == 0xe8)
8588 {
8589 /* Direct call. */
8590 *branch_p = align_branch_call;
8591 if ((align_branch & align_branch_call_bit))
8592 add_padding = 1;
8593 }
8594 else if (i.tm.base_opcode == 0xff
8595 && (i.tm.extension_opcode == 2
8596 || i.tm.extension_opcode == 4))
8597 {
8598 /* Indirect call and jmp. */
8599 *branch_p = align_branch_indirect;
8600 if ((align_branch & align_branch_indirect_bit))
8601 add_padding = 1;
8602 }
8603
8604 if (add_padding
8605 && i.disp_operands
8606 && tls_get_addr
8607 && (i.op[0].disps->X_op == O_symbol
8608 || (i.op[0].disps->X_op == O_subtract
8609 && i.op[0].disps->X_op_symbol == GOT_symbol)))
8610 {
8611 symbolS *s = i.op[0].disps->X_add_symbol;
8612 /* No padding to call to global or undefined tls_get_addr. */
8613 if ((S_IS_EXTERNAL (s) || !S_IS_DEFINED (s))
8614 && strcmp (S_GET_NAME (s), tls_get_addr) == 0)
8615 return 0;
8616 }
8617 }
8618
8619 if (add_padding
8620 && last_insn.kind != last_insn_other
8621 && last_insn.seg == now_seg)
8622 {
8623 if (flag_debug)
8624 as_warn_where (last_insn.file, last_insn.line,
8625 _("`%s` skips -malign-branch-boundary on `%s`"),
8626 last_insn.name, i.tm.name);
8627 return 0;
8628 }
8629
8630 return add_padding;
8631 }
8632
8633 static void
8634 output_insn (void)
8635 {
8636 fragS *insn_start_frag;
8637 offsetT insn_start_off;
8638 fragS *fragP = NULL;
8639 enum align_branch_kind branch = align_branch_none;
8640 /* The initializer is arbitrary just to avoid uninitialized error.
8641 it's actually either assigned in add_branch_padding_frag_p
8642 or never be used. */
8643 enum mf_jcc_kind mf_jcc = mf_jcc_jo;
8644
8645 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
8646 if (IS_ELF && x86_used_note)
8647 {
8648 if (i.tm.cpu_flags.bitfield.cpucmov)
8649 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_CMOV;
8650 if (i.tm.cpu_flags.bitfield.cpusse)
8651 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_SSE;
8652 if (i.tm.cpu_flags.bitfield.cpusse2)
8653 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_SSE2;
8654 if (i.tm.cpu_flags.bitfield.cpusse3)
8655 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_SSE3;
8656 if (i.tm.cpu_flags.bitfield.cpussse3)
8657 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_SSSE3;
8658 if (i.tm.cpu_flags.bitfield.cpusse4_1)
8659 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_SSE4_1;
8660 if (i.tm.cpu_flags.bitfield.cpusse4_2)
8661 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_SSE4_2;
8662 if (i.tm.cpu_flags.bitfield.cpuavx)
8663 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX;
8664 if (i.tm.cpu_flags.bitfield.cpuavx2)
8665 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX2;
8666 if (i.tm.cpu_flags.bitfield.cpufma)
8667 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_FMA;
8668 if (i.tm.cpu_flags.bitfield.cpuavx512f)
8669 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512F;
8670 if (i.tm.cpu_flags.bitfield.cpuavx512cd)
8671 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512CD;
8672 if (i.tm.cpu_flags.bitfield.cpuavx512er)
8673 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512ER;
8674 if (i.tm.cpu_flags.bitfield.cpuavx512pf)
8675 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512PF;
8676 if (i.tm.cpu_flags.bitfield.cpuavx512vl)
8677 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512VL;
8678 if (i.tm.cpu_flags.bitfield.cpuavx512dq)
8679 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512DQ;
8680 if (i.tm.cpu_flags.bitfield.cpuavx512bw)
8681 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512BW;
8682 if (i.tm.cpu_flags.bitfield.cpuavx512_4fmaps)
8683 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512_4FMAPS;
8684 if (i.tm.cpu_flags.bitfield.cpuavx512_4vnniw)
8685 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512_4VNNIW;
8686 if (i.tm.cpu_flags.bitfield.cpuavx512_bitalg)
8687 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512_BITALG;
8688 if (i.tm.cpu_flags.bitfield.cpuavx512ifma)
8689 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512_IFMA;
8690 if (i.tm.cpu_flags.bitfield.cpuavx512vbmi)
8691 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512_VBMI;
8692 if (i.tm.cpu_flags.bitfield.cpuavx512_vbmi2)
8693 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512_VBMI2;
8694 if (i.tm.cpu_flags.bitfield.cpuavx512_vnni)
8695 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512_VNNI;
8696 if (i.tm.cpu_flags.bitfield.cpuavx512_bf16)
8697 x86_isa_1_used |= GNU_PROPERTY_X86_ISA_1_AVX512_BF16;
8698
8699 if (i.tm.cpu_flags.bitfield.cpu8087
8700 || i.tm.cpu_flags.bitfield.cpu287
8701 || i.tm.cpu_flags.bitfield.cpu387
8702 || i.tm.cpu_flags.bitfield.cpu687
8703 || i.tm.cpu_flags.bitfield.cpufisttp)
8704 x86_feature_2_used |= GNU_PROPERTY_X86_FEATURE_2_X87;
8705 if (i.has_regmmx
8706 || i.tm.base_opcode == 0xf77 /* emms */
8707 || i.tm.base_opcode == 0xf0e /* femms */
8708 || i.tm.base_opcode == 0xf2a /* cvtpi2ps */
8709 || i.tm.base_opcode == 0x660f2a /* cvtpi2pd */)
8710 x86_feature_2_used |= GNU_PROPERTY_X86_FEATURE_2_MMX;
8711 if (i.has_regxmm)
8712 x86_feature_2_used |= GNU_PROPERTY_X86_FEATURE_2_XMM;
8713 if (i.has_regymm)
8714 x86_feature_2_used |= GNU_PROPERTY_X86_FEATURE_2_YMM;
8715 if (i.has_regzmm)
8716 x86_feature_2_used |= GNU_PROPERTY_X86_FEATURE_2_ZMM;
8717 if (i.tm.cpu_flags.bitfield.cpufxsr)
8718 x86_feature_2_used |= GNU_PROPERTY_X86_FEATURE_2_FXSR;
8719 if (i.tm.cpu_flags.bitfield.cpuxsave)
8720 x86_feature_2_used |= GNU_PROPERTY_X86_FEATURE_2_XSAVE;
8721 if (i.tm.cpu_flags.bitfield.cpuxsaveopt)
8722 x86_feature_2_used |= GNU_PROPERTY_X86_FEATURE_2_XSAVEOPT;
8723 if (i.tm.cpu_flags.bitfield.cpuxsavec)
8724 x86_feature_2_used |= GNU_PROPERTY_X86_FEATURE_2_XSAVEC;
8725 }
8726 #endif
8727
8728 /* Tie dwarf2 debug info to the address at the start of the insn.
8729 We can't do this after the insn has been output as the current
8730 frag may have been closed off. eg. by frag_var. */
8731 dwarf2_emit_insn (0);
8732
8733 insn_start_frag = frag_now;
8734 insn_start_off = frag_now_fix ();
8735
8736 if (add_branch_padding_frag_p (&branch, &mf_jcc))
8737 {
8738 char *p;
8739 /* Branch can be 8 bytes. Leave some room for prefixes. */
8740 unsigned int max_branch_padding_size = 14;
8741
8742 /* Align section to boundary. */
8743 record_alignment (now_seg, align_branch_power);
8744
8745 /* Make room for padding. */
8746 frag_grow (max_branch_padding_size);
8747
8748 /* Start of the padding. */
8749 p = frag_more (0);
8750
8751 fragP = frag_now;
8752
8753 frag_var (rs_machine_dependent, max_branch_padding_size, 0,
8754 ENCODE_RELAX_STATE (BRANCH_PADDING, 0),
8755 NULL, 0, p);
8756
8757 fragP->tc_frag_data.mf_type = mf_jcc;
8758 fragP->tc_frag_data.branch_type = branch;
8759 fragP->tc_frag_data.max_bytes = max_branch_padding_size;
8760 }
8761
8762 /* Output jumps. */
8763 if (i.tm.opcode_modifier.jump == JUMP)
8764 output_branch ();
8765 else if (i.tm.opcode_modifier.jump == JUMP_BYTE
8766 || i.tm.opcode_modifier.jump == JUMP_DWORD)
8767 output_jump ();
8768 else if (i.tm.opcode_modifier.jump == JUMP_INTERSEGMENT)
8769 output_interseg_jump ();
8770 else
8771 {
8772 /* Output normal instructions here. */
8773 char *p;
8774 unsigned char *q;
8775 unsigned int j;
8776 unsigned int prefix;
8777 enum mf_cmp_kind mf_cmp;
8778
8779 if (avoid_fence
8780 && (i.tm.base_opcode == 0xfaee8
8781 || i.tm.base_opcode == 0xfaef0
8782 || i.tm.base_opcode == 0xfaef8))
8783 {
8784 /* Encode lfence, mfence, and sfence as
8785 f0 83 04 24 00 lock addl $0x0, (%{re}sp). */
8786 offsetT val = 0x240483f0ULL;
8787 p = frag_more (5);
8788 md_number_to_chars (p, val, 5);
8789 return;
8790 }
8791
8792 /* Some processors fail on LOCK prefix. This options makes
8793 assembler ignore LOCK prefix and serves as a workaround. */
8794 if (omit_lock_prefix)
8795 {
8796 if (i.tm.base_opcode == LOCK_PREFIX_OPCODE)
8797 return;
8798 i.prefix[LOCK_PREFIX] = 0;
8799 }
8800
8801 if (branch)
8802 /* Skip if this is a branch. */
8803 ;
8804 else if (add_fused_jcc_padding_frag_p (&mf_cmp))
8805 {
8806 /* Make room for padding. */
8807 frag_grow (MAX_FUSED_JCC_PADDING_SIZE);
8808 p = frag_more (0);
8809
8810 fragP = frag_now;
8811
8812 frag_var (rs_machine_dependent, MAX_FUSED_JCC_PADDING_SIZE, 0,
8813 ENCODE_RELAX_STATE (FUSED_JCC_PADDING, 0),
8814 NULL, 0, p);
8815
8816 fragP->tc_frag_data.mf_type = mf_cmp;
8817 fragP->tc_frag_data.branch_type = align_branch_fused;
8818 fragP->tc_frag_data.max_bytes = MAX_FUSED_JCC_PADDING_SIZE;
8819 }
8820 else if (add_branch_prefix_frag_p ())
8821 {
8822 unsigned int max_prefix_size = align_branch_prefix_size;
8823
8824 /* Make room for padding. */
8825 frag_grow (max_prefix_size);
8826 p = frag_more (0);
8827
8828 fragP = frag_now;
8829
8830 frag_var (rs_machine_dependent, max_prefix_size, 0,
8831 ENCODE_RELAX_STATE (BRANCH_PREFIX, 0),
8832 NULL, 0, p);
8833
8834 fragP->tc_frag_data.max_bytes = max_prefix_size;
8835 }
8836
8837 /* Since the VEX/EVEX prefix contains the implicit prefix, we
8838 don't need the explicit prefix. */
8839 if (!i.tm.opcode_modifier.vex && !i.tm.opcode_modifier.evex)
8840 {
8841 switch (i.tm.opcode_length)
8842 {
8843 case 3:
8844 if (i.tm.base_opcode & 0xff000000)
8845 {
8846 prefix = (i.tm.base_opcode >> 24) & 0xff;
8847 if (!i.tm.cpu_flags.bitfield.cpupadlock
8848 || prefix != REPE_PREFIX_OPCODE
8849 || (i.prefix[REP_PREFIX] != REPE_PREFIX_OPCODE))
8850 add_prefix (prefix);
8851 }
8852 break;
8853 case 2:
8854 if ((i.tm.base_opcode & 0xff0000) != 0)
8855 {
8856 prefix = (i.tm.base_opcode >> 16) & 0xff;
8857 add_prefix (prefix);
8858 }
8859 break;
8860 case 1:
8861 break;
8862 case 0:
8863 /* Check for pseudo prefixes. */
8864 as_bad_where (insn_start_frag->fr_file,
8865 insn_start_frag->fr_line,
8866 _("pseudo prefix without instruction"));
8867 return;
8868 default:
8869 abort ();
8870 }
8871
8872 #if defined (OBJ_MAYBE_ELF) || defined (OBJ_ELF)
8873 /* For x32, add a dummy REX_OPCODE prefix for mov/add with
8874 R_X86_64_GOTTPOFF relocation so that linker can safely
8875 perform IE->LE optimization. A dummy REX_OPCODE prefix
8876 is also needed for lea with R_X86_64_GOTPC32_TLSDESC
8877 relocation for GDesc -> IE/LE optimization. */
8878 if (x86_elf_abi == X86_64_X32_ABI
8879 && i.operands == 2
8880 && (i.reloc[0] == BFD_RELOC_X86_64_GOTTPOFF
8881 || i.reloc[0] == BFD_RELOC_X86_64_GOTPC32_TLSDESC)
8882 && i.prefix[REX_PREFIX] == 0)
8883 add_prefix (REX_OPCODE);
8884 #endif
8885
8886 /* The prefix bytes. */
8887 for (j = ARRAY_SIZE (i.prefix), q = i.prefix; j > 0; j--, q++)
8888 if (*q)
8889 FRAG_APPEND_1_CHAR (*q);
8890 }
8891 else
8892 {
8893 for (j = 0, q = i.prefix; j < ARRAY_SIZE (i.prefix); j++, q++)
8894 if (*q)
8895 switch (j)
8896 {
8897 case REX_PREFIX:
8898 /* REX byte is encoded in VEX prefix. */
8899 break;
8900 case SEG_PREFIX:
8901 case ADDR_PREFIX:
8902 FRAG_APPEND_1_CHAR (*q);
8903 break;
8904 default:
8905 /* There should be no other prefixes for instructions
8906 with VEX prefix. */
8907 abort ();
8908 }
8909
8910 /* For EVEX instructions i.vrex should become 0 after
8911 build_evex_prefix. For VEX instructions upper 16 registers
8912 aren't available, so VREX should be 0. */
8913 if (i.vrex)
8914 abort ();
8915 /* Now the VEX prefix. */
8916 p = frag_more (i.vex.length);
8917 for (j = 0; j < i.vex.length; j++)
8918 p[j] = i.vex.bytes[j];
8919 }
8920
8921 /* Now the opcode; be careful about word order here! */
8922 if (i.tm.opcode_length == 1)
8923 {
8924 FRAG_APPEND_1_CHAR (i.tm.base_opcode);
8925 }
8926 else
8927 {
8928 switch (i.tm.opcode_length)
8929 {
8930 case 4:
8931 p = frag_more (4);
8932 *p++ = (i.tm.base_opcode >> 24) & 0xff;
8933 *p++ = (i.tm.base_opcode >> 16) & 0xff;
8934 break;
8935 case 3:
8936 p = frag_more (3);
8937 *p++ = (i.tm.base_opcode >> 16) & 0xff;
8938 break;
8939 case 2:
8940 p = frag_more (2);
8941 break;
8942 default:
8943 abort ();
8944 break;
8945 }
8946
8947 /* Put out high byte first: can't use md_number_to_chars! */
8948 *p++ = (i.tm.base_opcode >> 8) & 0xff;
8949 *p = i.tm.base_opcode & 0xff;
8950 }
8951
8952 /* Now the modrm byte and sib byte (if present). */
8953 if (i.tm.opcode_modifier.modrm)
8954 {
8955 FRAG_APPEND_1_CHAR ((i.rm.regmem << 0
8956 | i.rm.reg << 3
8957 | i.rm.mode << 6));
8958 /* If i.rm.regmem == ESP (4)
8959 && i.rm.mode != (Register mode)
8960 && not 16 bit
8961 ==> need second modrm byte. */
8962 if (i.rm.regmem == ESCAPE_TO_TWO_BYTE_ADDRESSING
8963 && i.rm.mode != 3
8964 && !(i.base_reg && i.base_reg->reg_type.bitfield.word))
8965 FRAG_APPEND_1_CHAR ((i.sib.base << 0
8966 | i.sib.index << 3
8967 | i.sib.scale << 6));
8968 }
8969
8970 if (i.disp_operands)
8971 output_disp (insn_start_frag, insn_start_off);
8972
8973 if (i.imm_operands)
8974 output_imm (insn_start_frag, insn_start_off);
8975
8976 /*
8977 * frag_now_fix () returning plain abs_section_offset when we're in the
8978 * absolute section, and abs_section_offset not getting updated as data
8979 * gets added to the frag breaks the logic below.
8980 */
8981 if (now_seg != absolute_section)
8982 {
8983 j = encoding_length (insn_start_frag, insn_start_off, frag_more (0));
8984 if (j > 15)
8985 as_warn (_("instruction length of %u bytes exceeds the limit of 15"),
8986 j);
8987 else if (fragP)
8988 {
8989 /* NB: Don't add prefix with GOTPC relocation since
8990 output_disp() above depends on the fixed encoding
8991 length. Can't add prefix with TLS relocation since
8992 it breaks TLS linker optimization. */
8993 unsigned int max = i.has_gotpc_tls_reloc ? 0 : 15 - j;
8994 /* Prefix count on the current instruction. */
8995 unsigned int count = i.vex.length;
8996 unsigned int k;
8997 for (k = 0; k < ARRAY_SIZE (i.prefix); k++)
8998 /* REX byte is encoded in VEX/EVEX prefix. */
8999 if (i.prefix[k] && (k != REX_PREFIX || !i.vex.length))
9000 count++;
9001
9002 /* Count prefixes for extended opcode maps. */
9003 if (!i.vex.length)
9004 switch (i.tm.opcode_length)
9005 {
9006 case 3:
9007 if (((i.tm.base_opcode >> 16) & 0xff) == 0xf)
9008 {
9009 count++;
9010 switch ((i.tm.base_opcode >> 8) & 0xff)
9011 {
9012 case 0x38:
9013 case 0x3a:
9014 count++;
9015 break;
9016 default:
9017 break;
9018 }
9019 }
9020 break;
9021 case 2:
9022 if (((i.tm.base_opcode >> 8) & 0xff) == 0xf)
9023 count++;
9024 break;
9025 case 1:
9026 break;
9027 default:
9028 abort ();
9029 }
9030
9031 if (TYPE_FROM_RELAX_STATE (fragP->fr_subtype)
9032 == BRANCH_PREFIX)
9033 {
9034 /* Set the maximum prefix size in BRANCH_PREFIX
9035 frag. */
9036 if (fragP->tc_frag_data.max_bytes > max)
9037 fragP->tc_frag_data.max_bytes = max;
9038 if (fragP->tc_frag_data.max_bytes > count)
9039 fragP->tc_frag_data.max_bytes -= count;
9040 else
9041 fragP->tc_frag_data.max_bytes = 0;
9042 }
9043 else
9044 {
9045 /* Remember the maximum prefix size in FUSED_JCC_PADDING
9046 frag. */
9047 unsigned int max_prefix_size;
9048 if (align_branch_prefix_size > max)
9049 max_prefix_size = max;
9050 else
9051 max_prefix_size = align_branch_prefix_size;
9052 if (max_prefix_size > count)
9053 fragP->tc_frag_data.max_prefix_length
9054 = max_prefix_size - count;
9055 }
9056
9057 /* Use existing segment prefix if possible. Use CS
9058 segment prefix in 64-bit mode. In 32-bit mode, use SS
9059 segment prefix with ESP/EBP base register and use DS
9060 segment prefix without ESP/EBP base register. */
9061 if (i.prefix[SEG_PREFIX])
9062 fragP->tc_frag_data.default_prefix = i.prefix[SEG_PREFIX];
9063 else if (flag_code == CODE_64BIT)
9064 fragP->tc_frag_data.default_prefix = CS_PREFIX_OPCODE;
9065 else if (i.base_reg
9066 && (i.base_reg->reg_num == 4
9067 || i.base_reg->reg_num == 5))
9068 fragP->tc_frag_data.default_prefix = SS_PREFIX_OPCODE;
9069 else
9070 fragP->tc_frag_data.default_prefix = DS_PREFIX_OPCODE;
9071 }
9072 }
9073 }
9074
9075 /* NB: Don't work with COND_JUMP86 without i386. */
9076 if (align_branch_power
9077 && now_seg != absolute_section
9078 && cpu_arch_flags.bitfield.cpui386)
9079 {
9080 /* Terminate each frag so that we can add prefix and check for
9081 fused jcc. */
9082 frag_wane (frag_now);
9083 frag_new (0);
9084 }
9085
9086 #ifdef DEBUG386
9087 if (flag_debug)
9088 {
9089 pi ("" /*line*/, &i);
9090 }
9091 #endif /* DEBUG386 */
9092 }
9093
9094 /* Return the size of the displacement operand N. */
9095
9096 static int
9097 disp_size (unsigned int n)
9098 {
9099 int size = 4;
9100
9101 if (i.types[n].bitfield.disp64)
9102 size = 8;
9103 else if (i.types[n].bitfield.disp8)
9104 size = 1;
9105 else if (i.types[n].bitfield.disp16)
9106 size = 2;
9107 return size;
9108 }
9109
9110 /* Return the size of the immediate operand N. */
9111
9112 static int
9113 imm_size (unsigned int n)
9114 {
9115 int size = 4;
9116 if (i.types[n].bitfield.imm64)
9117 size = 8;
9118 else if (i.types[n].bitfield.imm8 || i.types[n].bitfield.imm8s)
9119 size = 1;
9120 else if (i.types[n].bitfield.imm16)
9121 size = 2;
9122 return size;
9123 }
9124
9125 static void
9126 output_disp (fragS *insn_start_frag, offsetT insn_start_off)
9127 {
9128 char *p;
9129 unsigned int n;
9130
9131 for (n = 0; n < i.operands; n++)
9132 {
9133 if (operand_type_check (i.types[n], disp))
9134 {
9135 if (i.op[n].disps->X_op == O_constant)
9136 {
9137 int size = disp_size (n);
9138 offsetT val = i.op[n].disps->X_add_number;
9139
9140 val = offset_in_range (val >> (size == 1 ? i.memshift : 0),
9141 size);
9142 p = frag_more (size);
9143 md_number_to_chars (p, val, size);
9144 }
9145 else
9146 {
9147 enum bfd_reloc_code_real reloc_type;
9148 int size = disp_size (n);
9149 int sign = i.types[n].bitfield.disp32s;
9150 int pcrel = (i.flags[n] & Operand_PCrel) != 0;
9151 fixS *fixP;
9152
9153 /* We can't have 8 bit displacement here. */
9154 gas_assert (!i.types[n].bitfield.disp8);
9155
9156 /* The PC relative address is computed relative
9157 to the instruction boundary, so in case immediate
9158 fields follows, we need to adjust the value. */
9159 if (pcrel && i.imm_operands)
9160 {
9161 unsigned int n1;
9162 int sz = 0;
9163
9164 for (n1 = 0; n1 < i.operands; n1++)
9165 if (operand_type_check (i.types[n1], imm))
9166 {
9167 /* Only one immediate is allowed for PC
9168 relative address. */
9169 gas_assert (sz == 0);
9170 sz = imm_size (n1);
9171 i.op[n].disps->X_add_number -= sz;
9172 }
9173 /* We should find the immediate. */
9174 gas_assert (sz != 0);
9175 }
9176
9177 p = frag_more (size);
9178 reloc_type = reloc (size, pcrel, sign, i.reloc[n]);
9179 if (GOT_symbol
9180 && GOT_symbol == i.op[n].disps->X_add_symbol
9181 && (((reloc_type == BFD_RELOC_32
9182 || reloc_type == BFD_RELOC_X86_64_32S
9183 || (reloc_type == BFD_RELOC_64
9184 && object_64bit))
9185 && (i.op[n].disps->X_op == O_symbol
9186 || (i.op[n].disps->X_op == O_add
9187 && ((symbol_get_value_expression
9188 (i.op[n].disps->X_op_symbol)->X_op)
9189 == O_subtract))))
9190 || reloc_type == BFD_RELOC_32_PCREL))
9191 {
9192 if (!object_64bit)
9193 {
9194 reloc_type = BFD_RELOC_386_GOTPC;
9195 i.has_gotpc_tls_reloc = TRUE;
9196 i.op[n].imms->X_add_number +=
9197 encoding_length (insn_start_frag, insn_start_off, p);
9198 }
9199 else if (reloc_type == BFD_RELOC_64)
9200 reloc_type = BFD_RELOC_X86_64_GOTPC64;
9201 else
9202 /* Don't do the adjustment for x86-64, as there
9203 the pcrel addressing is relative to the _next_
9204 insn, and that is taken care of in other code. */
9205 reloc_type = BFD_RELOC_X86_64_GOTPC32;
9206 }
9207 else if (align_branch_power)
9208 {
9209 switch (reloc_type)
9210 {
9211 case BFD_RELOC_386_TLS_GD:
9212 case BFD_RELOC_386_TLS_LDM:
9213 case BFD_RELOC_386_TLS_IE:
9214 case BFD_RELOC_386_TLS_IE_32:
9215 case BFD_RELOC_386_TLS_GOTIE:
9216 case BFD_RELOC_386_TLS_GOTDESC:
9217 case BFD_RELOC_386_TLS_DESC_CALL:
9218 case BFD_RELOC_X86_64_TLSGD:
9219 case BFD_RELOC_X86_64_TLSLD:
9220 case BFD_RELOC_X86_64_GOTTPOFF:
9221 case BFD_RELOC_X86_64_GOTPC32_TLSDESC:
9222 case BFD_RELOC_X86_64_TLSDESC_CALL:
9223 i.has_gotpc_tls_reloc = TRUE;
9224 default:
9225 break;
9226 }
9227 }
9228 fixP = fix_new_exp (frag_now, p - frag_now->fr_literal,
9229 size, i.op[n].disps, pcrel,
9230 reloc_type);
9231 /* Check for "call/jmp *mem", "mov mem, %reg",
9232 "test %reg, mem" and "binop mem, %reg" where binop
9233 is one of adc, add, and, cmp, or, sbb, sub, xor
9234 instructions without data prefix. Always generate
9235 R_386_GOT32X for "sym*GOT" operand in 32-bit mode. */
9236 if (i.prefix[DATA_PREFIX] == 0
9237 && (generate_relax_relocations
9238 || (!object_64bit
9239 && i.rm.mode == 0
9240 && i.rm.regmem == 5))
9241 && (i.rm.mode == 2
9242 || (i.rm.mode == 0 && i.rm.regmem == 5))
9243 && !is_any_vex_encoding(&i.tm)
9244 && ((i.operands == 1
9245 && i.tm.base_opcode == 0xff
9246 && (i.rm.reg == 2 || i.rm.reg == 4))
9247 || (i.operands == 2
9248 && (i.tm.base_opcode == 0x8b
9249 || i.tm.base_opcode == 0x85
9250 || (i.tm.base_opcode & ~0x38) == 0x03))))
9251 {
9252 if (object_64bit)
9253 {
9254 fixP->fx_tcbit = i.rex != 0;
9255 if (i.base_reg
9256 && (i.base_reg->reg_num == RegIP))
9257 fixP->fx_tcbit2 = 1;
9258 }
9259 else
9260 fixP->fx_tcbit2 = 1;
9261 }
9262 }
9263 }
9264 }
9265 }
9266
9267 static void
9268 output_imm (fragS *insn_start_frag, offsetT insn_start_off)
9269 {
9270 char *p;
9271 unsigned int n;
9272
9273 for (n = 0; n < i.operands; n++)
9274 {
9275 /* Skip SAE/RC Imm operand in EVEX. They are already handled. */
9276 if (i.rounding && (int) n == i.rounding->operand)
9277 continue;
9278
9279 if (operand_type_check (i.types[n], imm))
9280 {
9281 if (i.op[n].imms->X_op == O_constant)
9282 {
9283 int size = imm_size (n);
9284 offsetT val;
9285
9286 val = offset_in_range (i.op[n].imms->X_add_number,
9287 size);
9288 p = frag_more (size);
9289 md_number_to_chars (p, val, size);
9290 }
9291 else
9292 {
9293 /* Not absolute_section.
9294 Need a 32-bit fixup (don't support 8bit
9295 non-absolute imms). Try to support other
9296 sizes ... */
9297 enum bfd_reloc_code_real reloc_type;
9298 int size = imm_size (n);
9299 int sign;
9300
9301 if (i.types[n].bitfield.imm32s
9302 && (i.suffix == QWORD_MNEM_SUFFIX
9303 || (!i.suffix && i.tm.opcode_modifier.no_lsuf)))
9304 sign = 1;
9305 else
9306 sign = 0;
9307
9308 p = frag_more (size);
9309 reloc_type = reloc (size, 0, sign, i.reloc[n]);
9310
9311 /* This is tough to explain. We end up with this one if we
9312 * have operands that look like
9313 * "_GLOBAL_OFFSET_TABLE_+[.-.L284]". The goal here is to
9314 * obtain the absolute address of the GOT, and it is strongly
9315 * preferable from a performance point of view to avoid using
9316 * a runtime relocation for this. The actual sequence of
9317 * instructions often look something like:
9318 *
9319 * call .L66
9320 * .L66:
9321 * popl %ebx
9322 * addl $_GLOBAL_OFFSET_TABLE_+[.-.L66],%ebx
9323 *
9324 * The call and pop essentially return the absolute address
9325 * of the label .L66 and store it in %ebx. The linker itself
9326 * will ultimately change the first operand of the addl so
9327 * that %ebx points to the GOT, but to keep things simple, the
9328 * .o file must have this operand set so that it generates not
9329 * the absolute address of .L66, but the absolute address of
9330 * itself. This allows the linker itself simply treat a GOTPC
9331 * relocation as asking for a pcrel offset to the GOT to be
9332 * added in, and the addend of the relocation is stored in the
9333 * operand field for the instruction itself.
9334 *
9335 * Our job here is to fix the operand so that it would add
9336 * the correct offset so that %ebx would point to itself. The
9337 * thing that is tricky is that .-.L66 will point to the
9338 * beginning of the instruction, so we need to further modify
9339 * the operand so that it will point to itself. There are
9340 * other cases where you have something like:
9341 *
9342 * .long $_GLOBAL_OFFSET_TABLE_+[.-.L66]
9343 *
9344 * and here no correction would be required. Internally in
9345 * the assembler we treat operands of this form as not being
9346 * pcrel since the '.' is explicitly mentioned, and I wonder
9347 * whether it would simplify matters to do it this way. Who
9348 * knows. In earlier versions of the PIC patches, the
9349 * pcrel_adjust field was used to store the correction, but
9350 * since the expression is not pcrel, I felt it would be
9351 * confusing to do it this way. */
9352
9353 if ((reloc_type == BFD_RELOC_32
9354 || reloc_type == BFD_RELOC_X86_64_32S
9355 || reloc_type == BFD_RELOC_64)
9356 && GOT_symbol
9357 && GOT_symbol == i.op[n].imms->X_add_symbol
9358 && (i.op[n].imms->X_op == O_symbol
9359 || (i.op[n].imms->X_op == O_add
9360 && ((symbol_get_value_expression
9361 (i.op[n].imms->X_op_symbol)->X_op)
9362 == O_subtract))))
9363 {
9364 if (!object_64bit)
9365 reloc_type = BFD_RELOC_386_GOTPC;
9366 else if (size == 4)
9367 reloc_type = BFD_RELOC_X86_64_GOTPC32;
9368 else if (size == 8)
9369 reloc_type = BFD_RELOC_X86_64_GOTPC64;
9370 i.has_gotpc_tls_reloc = TRUE;
9371 i.op[n].imms->X_add_number +=
9372 encoding_length (insn_start_frag, insn_start_off, p);
9373 }
9374 fix_new_exp (frag_now, p - frag_now->fr_literal, size,
9375 i.op[n].imms, 0, reloc_type);
9376 }
9377 }
9378 }
9379 }
9380 \f
9381 /* x86_cons_fix_new is called via the expression parsing code when a
9382 reloc is needed. We use this hook to get the correct .got reloc. */
9383 static int cons_sign = -1;
9384
9385 void
9386 x86_cons_fix_new (fragS *frag, unsigned int off, unsigned int len,
9387 expressionS *exp, bfd_reloc_code_real_type r)
9388 {
9389 r = reloc (len, 0, cons_sign, r);
9390
9391 #ifdef TE_PE
9392 if (exp->X_op == O_secrel)
9393 {
9394 exp->X_op = O_symbol;
9395 r = BFD_RELOC_32_SECREL;
9396 }
9397 #endif
9398
9399 fix_new_exp (frag, off, len, exp, 0, r);
9400 }
9401
9402 /* Export the ABI address size for use by TC_ADDRESS_BYTES for the
9403 purpose of the `.dc.a' internal pseudo-op. */
9404
9405 int
9406 x86_address_bytes (void)
9407 {
9408 if ((stdoutput->arch_info->mach & bfd_mach_x64_32))
9409 return 4;
9410 return stdoutput->arch_info->bits_per_address / 8;
9411 }
9412
9413 #if !(defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF) || defined (OBJ_MACH_O)) \
9414 || defined (LEX_AT)
9415 # define lex_got(reloc, adjust, types) NULL
9416 #else
9417 /* Parse operands of the form
9418 <symbol>@GOTOFF+<nnn>
9419 and similar .plt or .got references.
9420
9421 If we find one, set up the correct relocation in RELOC and copy the
9422 input string, minus the `@GOTOFF' into a malloc'd buffer for
9423 parsing by the calling routine. Return this buffer, and if ADJUST
9424 is non-null set it to the length of the string we removed from the
9425 input line. Otherwise return NULL. */
9426 static char *
9427 lex_got (enum bfd_reloc_code_real *rel,
9428 int *adjust,
9429 i386_operand_type *types)
9430 {
9431 /* Some of the relocations depend on the size of what field is to
9432 be relocated. But in our callers i386_immediate and i386_displacement
9433 we don't yet know the operand size (this will be set by insn
9434 matching). Hence we record the word32 relocation here,
9435 and adjust the reloc according to the real size in reloc(). */
9436 static const struct {
9437 const char *str;
9438 int len;
9439 const enum bfd_reloc_code_real rel[2];
9440 const i386_operand_type types64;
9441 } gotrel[] = {
9442 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
9443 { STRING_COMMA_LEN ("SIZE"), { BFD_RELOC_SIZE32,
9444 BFD_RELOC_SIZE32 },
9445 OPERAND_TYPE_IMM32_64 },
9446 #endif
9447 { STRING_COMMA_LEN ("PLTOFF"), { _dummy_first_bfd_reloc_code_real,
9448 BFD_RELOC_X86_64_PLTOFF64 },
9449 OPERAND_TYPE_IMM64 },
9450 { STRING_COMMA_LEN ("PLT"), { BFD_RELOC_386_PLT32,
9451 BFD_RELOC_X86_64_PLT32 },
9452 OPERAND_TYPE_IMM32_32S_DISP32 },
9453 { STRING_COMMA_LEN ("GOTPLT"), { _dummy_first_bfd_reloc_code_real,
9454 BFD_RELOC_X86_64_GOTPLT64 },
9455 OPERAND_TYPE_IMM64_DISP64 },
9456 { STRING_COMMA_LEN ("GOTOFF"), { BFD_RELOC_386_GOTOFF,
9457 BFD_RELOC_X86_64_GOTOFF64 },
9458 OPERAND_TYPE_IMM64_DISP64 },
9459 { STRING_COMMA_LEN ("GOTPCREL"), { _dummy_first_bfd_reloc_code_real,
9460 BFD_RELOC_X86_64_GOTPCREL },
9461 OPERAND_TYPE_IMM32_32S_DISP32 },
9462 { STRING_COMMA_LEN ("TLSGD"), { BFD_RELOC_386_TLS_GD,
9463 BFD_RELOC_X86_64_TLSGD },
9464 OPERAND_TYPE_IMM32_32S_DISP32 },
9465 { STRING_COMMA_LEN ("TLSLDM"), { BFD_RELOC_386_TLS_LDM,
9466 _dummy_first_bfd_reloc_code_real },
9467 OPERAND_TYPE_NONE },
9468 { STRING_COMMA_LEN ("TLSLD"), { _dummy_first_bfd_reloc_code_real,
9469 BFD_RELOC_X86_64_TLSLD },
9470 OPERAND_TYPE_IMM32_32S_DISP32 },
9471 { STRING_COMMA_LEN ("GOTTPOFF"), { BFD_RELOC_386_TLS_IE_32,
9472 BFD_RELOC_X86_64_GOTTPOFF },
9473 OPERAND_TYPE_IMM32_32S_DISP32 },
9474 { STRING_COMMA_LEN ("TPOFF"), { BFD_RELOC_386_TLS_LE_32,
9475 BFD_RELOC_X86_64_TPOFF32 },
9476 OPERAND_TYPE_IMM32_32S_64_DISP32_64 },
9477 { STRING_COMMA_LEN ("NTPOFF"), { BFD_RELOC_386_TLS_LE,
9478 _dummy_first_bfd_reloc_code_real },
9479 OPERAND_TYPE_NONE },
9480 { STRING_COMMA_LEN ("DTPOFF"), { BFD_RELOC_386_TLS_LDO_32,
9481 BFD_RELOC_X86_64_DTPOFF32 },
9482 OPERAND_TYPE_IMM32_32S_64_DISP32_64 },
9483 { STRING_COMMA_LEN ("GOTNTPOFF"),{ BFD_RELOC_386_TLS_GOTIE,
9484 _dummy_first_bfd_reloc_code_real },
9485 OPERAND_TYPE_NONE },
9486 { STRING_COMMA_LEN ("INDNTPOFF"),{ BFD_RELOC_386_TLS_IE,
9487 _dummy_first_bfd_reloc_code_real },
9488 OPERAND_TYPE_NONE },
9489 { STRING_COMMA_LEN ("GOT"), { BFD_RELOC_386_GOT32,
9490 BFD_RELOC_X86_64_GOT32 },
9491 OPERAND_TYPE_IMM32_32S_64_DISP32 },
9492 { STRING_COMMA_LEN ("TLSDESC"), { BFD_RELOC_386_TLS_GOTDESC,
9493 BFD_RELOC_X86_64_GOTPC32_TLSDESC },
9494 OPERAND_TYPE_IMM32_32S_DISP32 },
9495 { STRING_COMMA_LEN ("TLSCALL"), { BFD_RELOC_386_TLS_DESC_CALL,
9496 BFD_RELOC_X86_64_TLSDESC_CALL },
9497 OPERAND_TYPE_IMM32_32S_DISP32 },
9498 };
9499 char *cp;
9500 unsigned int j;
9501
9502 #if defined (OBJ_MAYBE_ELF)
9503 if (!IS_ELF)
9504 return NULL;
9505 #endif
9506
9507 for (cp = input_line_pointer; *cp != '@'; cp++)
9508 if (is_end_of_line[(unsigned char) *cp] || *cp == ',')
9509 return NULL;
9510
9511 for (j = 0; j < ARRAY_SIZE (gotrel); j++)
9512 {
9513 int len = gotrel[j].len;
9514 if (strncasecmp (cp + 1, gotrel[j].str, len) == 0)
9515 {
9516 if (gotrel[j].rel[object_64bit] != 0)
9517 {
9518 int first, second;
9519 char *tmpbuf, *past_reloc;
9520
9521 *rel = gotrel[j].rel[object_64bit];
9522
9523 if (types)
9524 {
9525 if (flag_code != CODE_64BIT)
9526 {
9527 types->bitfield.imm32 = 1;
9528 types->bitfield.disp32 = 1;
9529 }
9530 else
9531 *types = gotrel[j].types64;
9532 }
9533
9534 if (j != 0 && GOT_symbol == NULL)
9535 GOT_symbol = symbol_find_or_make (GLOBAL_OFFSET_TABLE_NAME);
9536
9537 /* The length of the first part of our input line. */
9538 first = cp - input_line_pointer;
9539
9540 /* The second part goes from after the reloc token until
9541 (and including) an end_of_line char or comma. */
9542 past_reloc = cp + 1 + len;
9543 cp = past_reloc;
9544 while (!is_end_of_line[(unsigned char) *cp] && *cp != ',')
9545 ++cp;
9546 second = cp + 1 - past_reloc;
9547
9548 /* Allocate and copy string. The trailing NUL shouldn't
9549 be necessary, but be safe. */
9550 tmpbuf = XNEWVEC (char, first + second + 2);
9551 memcpy (tmpbuf, input_line_pointer, first);
9552 if (second != 0 && *past_reloc != ' ')
9553 /* Replace the relocation token with ' ', so that
9554 errors like foo@GOTOFF1 will be detected. */
9555 tmpbuf[first++] = ' ';
9556 else
9557 /* Increment length by 1 if the relocation token is
9558 removed. */
9559 len++;
9560 if (adjust)
9561 *adjust = len;
9562 memcpy (tmpbuf + first, past_reloc, second);
9563 tmpbuf[first + second] = '\0';
9564 return tmpbuf;
9565 }
9566
9567 as_bad (_("@%s reloc is not supported with %d-bit output format"),
9568 gotrel[j].str, 1 << (5 + object_64bit));
9569 return NULL;
9570 }
9571 }
9572
9573 /* Might be a symbol version string. Don't as_bad here. */
9574 return NULL;
9575 }
9576 #endif
9577
9578 #ifdef TE_PE
9579 #ifdef lex_got
9580 #undef lex_got
9581 #endif
9582 /* Parse operands of the form
9583 <symbol>@SECREL32+<nnn>
9584
9585 If we find one, set up the correct relocation in RELOC and copy the
9586 input string, minus the `@SECREL32' into a malloc'd buffer for
9587 parsing by the calling routine. Return this buffer, and if ADJUST
9588 is non-null set it to the length of the string we removed from the
9589 input line. Otherwise return NULL.
9590
9591 This function is copied from the ELF version above adjusted for PE targets. */
9592
9593 static char *
9594 lex_got (enum bfd_reloc_code_real *rel ATTRIBUTE_UNUSED,
9595 int *adjust ATTRIBUTE_UNUSED,
9596 i386_operand_type *types)
9597 {
9598 static const struct
9599 {
9600 const char *str;
9601 int len;
9602 const enum bfd_reloc_code_real rel[2];
9603 const i386_operand_type types64;
9604 }
9605 gotrel[] =
9606 {
9607 { STRING_COMMA_LEN ("SECREL32"), { BFD_RELOC_32_SECREL,
9608 BFD_RELOC_32_SECREL },
9609 OPERAND_TYPE_IMM32_32S_64_DISP32_64 },
9610 };
9611
9612 char *cp;
9613 unsigned j;
9614
9615 for (cp = input_line_pointer; *cp != '@'; cp++)
9616 if (is_end_of_line[(unsigned char) *cp] || *cp == ',')
9617 return NULL;
9618
9619 for (j = 0; j < ARRAY_SIZE (gotrel); j++)
9620 {
9621 int len = gotrel[j].len;
9622
9623 if (strncasecmp (cp + 1, gotrel[j].str, len) == 0)
9624 {
9625 if (gotrel[j].rel[object_64bit] != 0)
9626 {
9627 int first, second;
9628 char *tmpbuf, *past_reloc;
9629
9630 *rel = gotrel[j].rel[object_64bit];
9631 if (adjust)
9632 *adjust = len;
9633
9634 if (types)
9635 {
9636 if (flag_code != CODE_64BIT)
9637 {
9638 types->bitfield.imm32 = 1;
9639 types->bitfield.disp32 = 1;
9640 }
9641 else
9642 *types = gotrel[j].types64;
9643 }
9644
9645 /* The length of the first part of our input line. */
9646 first = cp - input_line_pointer;
9647
9648 /* The second part goes from after the reloc token until
9649 (and including) an end_of_line char or comma. */
9650 past_reloc = cp + 1 + len;
9651 cp = past_reloc;
9652 while (!is_end_of_line[(unsigned char) *cp] && *cp != ',')
9653 ++cp;
9654 second = cp + 1 - past_reloc;
9655
9656 /* Allocate and copy string. The trailing NUL shouldn't
9657 be necessary, but be safe. */
9658 tmpbuf = XNEWVEC (char, first + second + 2);
9659 memcpy (tmpbuf, input_line_pointer, first);
9660 if (second != 0 && *past_reloc != ' ')
9661 /* Replace the relocation token with ' ', so that
9662 errors like foo@SECLREL321 will be detected. */
9663 tmpbuf[first++] = ' ';
9664 memcpy (tmpbuf + first, past_reloc, second);
9665 tmpbuf[first + second] = '\0';
9666 return tmpbuf;
9667 }
9668
9669 as_bad (_("@%s reloc is not supported with %d-bit output format"),
9670 gotrel[j].str, 1 << (5 + object_64bit));
9671 return NULL;
9672 }
9673 }
9674
9675 /* Might be a symbol version string. Don't as_bad here. */
9676 return NULL;
9677 }
9678
9679 #endif /* TE_PE */
9680
9681 bfd_reloc_code_real_type
9682 x86_cons (expressionS *exp, int size)
9683 {
9684 bfd_reloc_code_real_type got_reloc = NO_RELOC;
9685
9686 intel_syntax = -intel_syntax;
9687
9688 exp->X_md = 0;
9689 if (size == 4 || (object_64bit && size == 8))
9690 {
9691 /* Handle @GOTOFF and the like in an expression. */
9692 char *save;
9693 char *gotfree_input_line;
9694 int adjust = 0;
9695
9696 save = input_line_pointer;
9697 gotfree_input_line = lex_got (&got_reloc, &adjust, NULL);
9698 if (gotfree_input_line)
9699 input_line_pointer = gotfree_input_line;
9700
9701 expression (exp);
9702
9703 if (gotfree_input_line)
9704 {
9705 /* expression () has merrily parsed up to the end of line,
9706 or a comma - in the wrong buffer. Transfer how far
9707 input_line_pointer has moved to the right buffer. */
9708 input_line_pointer = (save
9709 + (input_line_pointer - gotfree_input_line)
9710 + adjust);
9711 free (gotfree_input_line);
9712 if (exp->X_op == O_constant
9713 || exp->X_op == O_absent
9714 || exp->X_op == O_illegal
9715 || exp->X_op == O_register
9716 || exp->X_op == O_big)
9717 {
9718 char c = *input_line_pointer;
9719 *input_line_pointer = 0;
9720 as_bad (_("missing or invalid expression `%s'"), save);
9721 *input_line_pointer = c;
9722 }
9723 else if ((got_reloc == BFD_RELOC_386_PLT32
9724 || got_reloc == BFD_RELOC_X86_64_PLT32)
9725 && exp->X_op != O_symbol)
9726 {
9727 char c = *input_line_pointer;
9728 *input_line_pointer = 0;
9729 as_bad (_("invalid PLT expression `%s'"), save);
9730 *input_line_pointer = c;
9731 }
9732 }
9733 }
9734 else
9735 expression (exp);
9736
9737 intel_syntax = -intel_syntax;
9738
9739 if (intel_syntax)
9740 i386_intel_simplify (exp);
9741
9742 return got_reloc;
9743 }
9744
9745 static void
9746 signed_cons (int size)
9747 {
9748 if (flag_code == CODE_64BIT)
9749 cons_sign = 1;
9750 cons (size);
9751 cons_sign = -1;
9752 }
9753
9754 #ifdef TE_PE
9755 static void
9756 pe_directive_secrel (int dummy ATTRIBUTE_UNUSED)
9757 {
9758 expressionS exp;
9759
9760 do
9761 {
9762 expression (&exp);
9763 if (exp.X_op == O_symbol)
9764 exp.X_op = O_secrel;
9765
9766 emit_expr (&exp, 4);
9767 }
9768 while (*input_line_pointer++ == ',');
9769
9770 input_line_pointer--;
9771 demand_empty_rest_of_line ();
9772 }
9773 #endif
9774
9775 /* Handle Vector operations. */
9776
9777 static char *
9778 check_VecOperations (char *op_string, char *op_end)
9779 {
9780 const reg_entry *mask;
9781 const char *saved;
9782 char *end_op;
9783
9784 while (*op_string
9785 && (op_end == NULL || op_string < op_end))
9786 {
9787 saved = op_string;
9788 if (*op_string == '{')
9789 {
9790 op_string++;
9791
9792 /* Check broadcasts. */
9793 if (strncmp (op_string, "1to", 3) == 0)
9794 {
9795 int bcst_type;
9796
9797 if (i.broadcast)
9798 goto duplicated_vec_op;
9799
9800 op_string += 3;
9801 if (*op_string == '8')
9802 bcst_type = 8;
9803 else if (*op_string == '4')
9804 bcst_type = 4;
9805 else if (*op_string == '2')
9806 bcst_type = 2;
9807 else if (*op_string == '1'
9808 && *(op_string+1) == '6')
9809 {
9810 bcst_type = 16;
9811 op_string++;
9812 }
9813 else
9814 {
9815 as_bad (_("Unsupported broadcast: `%s'"), saved);
9816 return NULL;
9817 }
9818 op_string++;
9819
9820 broadcast_op.type = bcst_type;
9821 broadcast_op.operand = this_operand;
9822 broadcast_op.bytes = 0;
9823 i.broadcast = &broadcast_op;
9824 }
9825 /* Check masking operation. */
9826 else if ((mask = parse_register (op_string, &end_op)) != NULL)
9827 {
9828 /* k0 can't be used for write mask. */
9829 if (mask->reg_type.bitfield.class != RegMask || !mask->reg_num)
9830 {
9831 as_bad (_("`%s%s' can't be used for write mask"),
9832 register_prefix, mask->reg_name);
9833 return NULL;
9834 }
9835
9836 if (!i.mask)
9837 {
9838 mask_op.mask = mask;
9839 mask_op.zeroing = 0;
9840 mask_op.operand = this_operand;
9841 i.mask = &mask_op;
9842 }
9843 else
9844 {
9845 if (i.mask->mask)
9846 goto duplicated_vec_op;
9847
9848 i.mask->mask = mask;
9849
9850 /* Only "{z}" is allowed here. No need to check
9851 zeroing mask explicitly. */
9852 if (i.mask->operand != this_operand)
9853 {
9854 as_bad (_("invalid write mask `%s'"), saved);
9855 return NULL;
9856 }
9857 }
9858
9859 op_string = end_op;
9860 }
9861 /* Check zeroing-flag for masking operation. */
9862 else if (*op_string == 'z')
9863 {
9864 if (!i.mask)
9865 {
9866 mask_op.mask = NULL;
9867 mask_op.zeroing = 1;
9868 mask_op.operand = this_operand;
9869 i.mask = &mask_op;
9870 }
9871 else
9872 {
9873 if (i.mask->zeroing)
9874 {
9875 duplicated_vec_op:
9876 as_bad (_("duplicated `%s'"), saved);
9877 return NULL;
9878 }
9879
9880 i.mask->zeroing = 1;
9881
9882 /* Only "{%k}" is allowed here. No need to check mask
9883 register explicitly. */
9884 if (i.mask->operand != this_operand)
9885 {
9886 as_bad (_("invalid zeroing-masking `%s'"),
9887 saved);
9888 return NULL;
9889 }
9890 }
9891
9892 op_string++;
9893 }
9894 else
9895 goto unknown_vec_op;
9896
9897 if (*op_string != '}')
9898 {
9899 as_bad (_("missing `}' in `%s'"), saved);
9900 return NULL;
9901 }
9902 op_string++;
9903
9904 /* Strip whitespace since the addition of pseudo prefixes
9905 changed how the scrubber treats '{'. */
9906 if (is_space_char (*op_string))
9907 ++op_string;
9908
9909 continue;
9910 }
9911 unknown_vec_op:
9912 /* We don't know this one. */
9913 as_bad (_("unknown vector operation: `%s'"), saved);
9914 return NULL;
9915 }
9916
9917 if (i.mask && i.mask->zeroing && !i.mask->mask)
9918 {
9919 as_bad (_("zeroing-masking only allowed with write mask"));
9920 return NULL;
9921 }
9922
9923 return op_string;
9924 }
9925
9926 static int
9927 i386_immediate (char *imm_start)
9928 {
9929 char *save_input_line_pointer;
9930 char *gotfree_input_line;
9931 segT exp_seg = 0;
9932 expressionS *exp;
9933 i386_operand_type types;
9934
9935 operand_type_set (&types, ~0);
9936
9937 if (i.imm_operands == MAX_IMMEDIATE_OPERANDS)
9938 {
9939 as_bad (_("at most %d immediate operands are allowed"),
9940 MAX_IMMEDIATE_OPERANDS);
9941 return 0;
9942 }
9943
9944 exp = &im_expressions[i.imm_operands++];
9945 i.op[this_operand].imms = exp;
9946
9947 if (is_space_char (*imm_start))
9948 ++imm_start;
9949
9950 save_input_line_pointer = input_line_pointer;
9951 input_line_pointer = imm_start;
9952
9953 gotfree_input_line = lex_got (&i.reloc[this_operand], NULL, &types);
9954 if (gotfree_input_line)
9955 input_line_pointer = gotfree_input_line;
9956
9957 exp_seg = expression (exp);
9958
9959 SKIP_WHITESPACE ();
9960
9961 /* Handle vector operations. */
9962 if (*input_line_pointer == '{')
9963 {
9964 input_line_pointer = check_VecOperations (input_line_pointer,
9965 NULL);
9966 if (input_line_pointer == NULL)
9967 return 0;
9968 }
9969
9970 if (*input_line_pointer)
9971 as_bad (_("junk `%s' after expression"), input_line_pointer);
9972
9973 input_line_pointer = save_input_line_pointer;
9974 if (gotfree_input_line)
9975 {
9976 free (gotfree_input_line);
9977
9978 if (exp->X_op == O_constant || exp->X_op == O_register)
9979 exp->X_op = O_illegal;
9980 }
9981
9982 return i386_finalize_immediate (exp_seg, exp, types, imm_start);
9983 }
9984
9985 static int
9986 i386_finalize_immediate (segT exp_seg ATTRIBUTE_UNUSED, expressionS *exp,
9987 i386_operand_type types, const char *imm_start)
9988 {
9989 if (exp->X_op == O_absent || exp->X_op == O_illegal || exp->X_op == O_big)
9990 {
9991 if (imm_start)
9992 as_bad (_("missing or invalid immediate expression `%s'"),
9993 imm_start);
9994 return 0;
9995 }
9996 else if (exp->X_op == O_constant)
9997 {
9998 /* Size it properly later. */
9999 i.types[this_operand].bitfield.imm64 = 1;
10000 /* If not 64bit, sign extend val. */
10001 if (flag_code != CODE_64BIT
10002 && (exp->X_add_number & ~(((addressT) 2 << 31) - 1)) == 0)
10003 exp->X_add_number
10004 = (exp->X_add_number ^ ((addressT) 1 << 31)) - ((addressT) 1 << 31);
10005 }
10006 #if (defined (OBJ_AOUT) || defined (OBJ_MAYBE_AOUT))
10007 else if (OUTPUT_FLAVOR == bfd_target_aout_flavour
10008 && exp_seg != absolute_section
10009 && exp_seg != text_section
10010 && exp_seg != data_section
10011 && exp_seg != bss_section
10012 && exp_seg != undefined_section
10013 && !bfd_is_com_section (exp_seg))
10014 {
10015 as_bad (_("unimplemented segment %s in operand"), exp_seg->name);
10016 return 0;
10017 }
10018 #endif
10019 else if (!intel_syntax && exp_seg == reg_section)
10020 {
10021 if (imm_start)
10022 as_bad (_("illegal immediate register operand %s"), imm_start);
10023 return 0;
10024 }
10025 else
10026 {
10027 /* This is an address. The size of the address will be
10028 determined later, depending on destination register,
10029 suffix, or the default for the section. */
10030 i.types[this_operand].bitfield.imm8 = 1;
10031 i.types[this_operand].bitfield.imm16 = 1;
10032 i.types[this_operand].bitfield.imm32 = 1;
10033 i.types[this_operand].bitfield.imm32s = 1;
10034 i.types[this_operand].bitfield.imm64 = 1;
10035 i.types[this_operand] = operand_type_and (i.types[this_operand],
10036 types);
10037 }
10038
10039 return 1;
10040 }
10041
10042 static char *
10043 i386_scale (char *scale)
10044 {
10045 offsetT val;
10046 char *save = input_line_pointer;
10047
10048 input_line_pointer = scale;
10049 val = get_absolute_expression ();
10050
10051 switch (val)
10052 {
10053 case 1:
10054 i.log2_scale_factor = 0;
10055 break;
10056 case 2:
10057 i.log2_scale_factor = 1;
10058 break;
10059 case 4:
10060 i.log2_scale_factor = 2;
10061 break;
10062 case 8:
10063 i.log2_scale_factor = 3;
10064 break;
10065 default:
10066 {
10067 char sep = *input_line_pointer;
10068
10069 *input_line_pointer = '\0';
10070 as_bad (_("expecting scale factor of 1, 2, 4, or 8: got `%s'"),
10071 scale);
10072 *input_line_pointer = sep;
10073 input_line_pointer = save;
10074 return NULL;
10075 }
10076 }
10077 if (i.log2_scale_factor != 0 && i.index_reg == 0)
10078 {
10079 as_warn (_("scale factor of %d without an index register"),
10080 1 << i.log2_scale_factor);
10081 i.log2_scale_factor = 0;
10082 }
10083 scale = input_line_pointer;
10084 input_line_pointer = save;
10085 return scale;
10086 }
10087
10088 static int
10089 i386_displacement (char *disp_start, char *disp_end)
10090 {
10091 expressionS *exp;
10092 segT exp_seg = 0;
10093 char *save_input_line_pointer;
10094 char *gotfree_input_line;
10095 int override;
10096 i386_operand_type bigdisp, types = anydisp;
10097 int ret;
10098
10099 if (i.disp_operands == MAX_MEMORY_OPERANDS)
10100 {
10101 as_bad (_("at most %d displacement operands are allowed"),
10102 MAX_MEMORY_OPERANDS);
10103 return 0;
10104 }
10105
10106 operand_type_set (&bigdisp, 0);
10107 if (i.jumpabsolute
10108 || i.types[this_operand].bitfield.baseindex
10109 || (current_templates->start->opcode_modifier.jump != JUMP
10110 && current_templates->start->opcode_modifier.jump != JUMP_DWORD))
10111 {
10112 i386_addressing_mode ();
10113 override = (i.prefix[ADDR_PREFIX] != 0);
10114 if (flag_code == CODE_64BIT)
10115 {
10116 if (!override)
10117 {
10118 bigdisp.bitfield.disp32s = 1;
10119 bigdisp.bitfield.disp64 = 1;
10120 }
10121 else
10122 bigdisp.bitfield.disp32 = 1;
10123 }
10124 else if ((flag_code == CODE_16BIT) ^ override)
10125 bigdisp.bitfield.disp16 = 1;
10126 else
10127 bigdisp.bitfield.disp32 = 1;
10128 }
10129 else
10130 {
10131 /* For PC-relative branches, the width of the displacement may be
10132 dependent upon data size, but is never dependent upon address size.
10133 Also make sure to not unintentionally match against a non-PC-relative
10134 branch template. */
10135 static templates aux_templates;
10136 const insn_template *t = current_templates->start;
10137 bfd_boolean has_intel64 = FALSE;
10138
10139 aux_templates.start = t;
10140 while (++t < current_templates->end)
10141 {
10142 if (t->opcode_modifier.jump
10143 != current_templates->start->opcode_modifier.jump)
10144 break;
10145 if ((t->opcode_modifier.isa64 >= INTEL64))
10146 has_intel64 = TRUE;
10147 }
10148 if (t < current_templates->end)
10149 {
10150 aux_templates.end = t;
10151 current_templates = &aux_templates;
10152 }
10153
10154 override = (i.prefix[DATA_PREFIX] != 0);
10155 if (flag_code == CODE_64BIT)
10156 {
10157 if ((override || i.suffix == WORD_MNEM_SUFFIX)
10158 && (!intel64 || !has_intel64))
10159 bigdisp.bitfield.disp16 = 1;
10160 else
10161 bigdisp.bitfield.disp32s = 1;
10162 }
10163 else
10164 {
10165 if (!override)
10166 override = (i.suffix == (flag_code != CODE_16BIT
10167 ? WORD_MNEM_SUFFIX
10168 : LONG_MNEM_SUFFIX));
10169 bigdisp.bitfield.disp32 = 1;
10170 if ((flag_code == CODE_16BIT) ^ override)
10171 {
10172 bigdisp.bitfield.disp32 = 0;
10173 bigdisp.bitfield.disp16 = 1;
10174 }
10175 }
10176 }
10177 i.types[this_operand] = operand_type_or (i.types[this_operand],
10178 bigdisp);
10179
10180 exp = &disp_expressions[i.disp_operands];
10181 i.op[this_operand].disps = exp;
10182 i.disp_operands++;
10183 save_input_line_pointer = input_line_pointer;
10184 input_line_pointer = disp_start;
10185 END_STRING_AND_SAVE (disp_end);
10186
10187 #ifndef GCC_ASM_O_HACK
10188 #define GCC_ASM_O_HACK 0
10189 #endif
10190 #if GCC_ASM_O_HACK
10191 END_STRING_AND_SAVE (disp_end + 1);
10192 if (i.types[this_operand].bitfield.baseIndex
10193 && displacement_string_end[-1] == '+')
10194 {
10195 /* This hack is to avoid a warning when using the "o"
10196 constraint within gcc asm statements.
10197 For instance:
10198
10199 #define _set_tssldt_desc(n,addr,limit,type) \
10200 __asm__ __volatile__ ( \
10201 "movw %w2,%0\n\t" \
10202 "movw %w1,2+%0\n\t" \
10203 "rorl $16,%1\n\t" \
10204 "movb %b1,4+%0\n\t" \
10205 "movb %4,5+%0\n\t" \
10206 "movb $0,6+%0\n\t" \
10207 "movb %h1,7+%0\n\t" \
10208 "rorl $16,%1" \
10209 : "=o"(*(n)) : "q" (addr), "ri"(limit), "i"(type))
10210
10211 This works great except that the output assembler ends
10212 up looking a bit weird if it turns out that there is
10213 no offset. You end up producing code that looks like:
10214
10215 #APP
10216 movw $235,(%eax)
10217 movw %dx,2+(%eax)
10218 rorl $16,%edx
10219 movb %dl,4+(%eax)
10220 movb $137,5+(%eax)
10221 movb $0,6+(%eax)
10222 movb %dh,7+(%eax)
10223 rorl $16,%edx
10224 #NO_APP
10225
10226 So here we provide the missing zero. */
10227
10228 *displacement_string_end = '0';
10229 }
10230 #endif
10231 gotfree_input_line = lex_got (&i.reloc[this_operand], NULL, &types);
10232 if (gotfree_input_line)
10233 input_line_pointer = gotfree_input_line;
10234
10235 exp_seg = expression (exp);
10236
10237 SKIP_WHITESPACE ();
10238 if (*input_line_pointer)
10239 as_bad (_("junk `%s' after expression"), input_line_pointer);
10240 #if GCC_ASM_O_HACK
10241 RESTORE_END_STRING (disp_end + 1);
10242 #endif
10243 input_line_pointer = save_input_line_pointer;
10244 if (gotfree_input_line)
10245 {
10246 free (gotfree_input_line);
10247
10248 if (exp->X_op == O_constant || exp->X_op == O_register)
10249 exp->X_op = O_illegal;
10250 }
10251
10252 ret = i386_finalize_displacement (exp_seg, exp, types, disp_start);
10253
10254 RESTORE_END_STRING (disp_end);
10255
10256 return ret;
10257 }
10258
10259 static int
10260 i386_finalize_displacement (segT exp_seg ATTRIBUTE_UNUSED, expressionS *exp,
10261 i386_operand_type types, const char *disp_start)
10262 {
10263 i386_operand_type bigdisp;
10264 int ret = 1;
10265
10266 /* We do this to make sure that the section symbol is in
10267 the symbol table. We will ultimately change the relocation
10268 to be relative to the beginning of the section. */
10269 if (i.reloc[this_operand] == BFD_RELOC_386_GOTOFF
10270 || i.reloc[this_operand] == BFD_RELOC_X86_64_GOTPCREL
10271 || i.reloc[this_operand] == BFD_RELOC_X86_64_GOTOFF64)
10272 {
10273 if (exp->X_op != O_symbol)
10274 goto inv_disp;
10275
10276 if (S_IS_LOCAL (exp->X_add_symbol)
10277 && S_GET_SEGMENT (exp->X_add_symbol) != undefined_section
10278 && S_GET_SEGMENT (exp->X_add_symbol) != expr_section)
10279 section_symbol (S_GET_SEGMENT (exp->X_add_symbol));
10280 exp->X_op = O_subtract;
10281 exp->X_op_symbol = GOT_symbol;
10282 if (i.reloc[this_operand] == BFD_RELOC_X86_64_GOTPCREL)
10283 i.reloc[this_operand] = BFD_RELOC_32_PCREL;
10284 else if (i.reloc[this_operand] == BFD_RELOC_X86_64_GOTOFF64)
10285 i.reloc[this_operand] = BFD_RELOC_64;
10286 else
10287 i.reloc[this_operand] = BFD_RELOC_32;
10288 }
10289
10290 else if (exp->X_op == O_absent
10291 || exp->X_op == O_illegal
10292 || exp->X_op == O_big)
10293 {
10294 inv_disp:
10295 as_bad (_("missing or invalid displacement expression `%s'"),
10296 disp_start);
10297 ret = 0;
10298 }
10299
10300 else if (flag_code == CODE_64BIT
10301 && !i.prefix[ADDR_PREFIX]
10302 && exp->X_op == O_constant)
10303 {
10304 /* Since displacement is signed extended to 64bit, don't allow
10305 disp32 and turn off disp32s if they are out of range. */
10306 i.types[this_operand].bitfield.disp32 = 0;
10307 if (!fits_in_signed_long (exp->X_add_number))
10308 {
10309 i.types[this_operand].bitfield.disp32s = 0;
10310 if (i.types[this_operand].bitfield.baseindex)
10311 {
10312 as_bad (_("0x%lx out range of signed 32bit displacement"),
10313 (long) exp->X_add_number);
10314 ret = 0;
10315 }
10316 }
10317 }
10318
10319 #if (defined (OBJ_AOUT) || defined (OBJ_MAYBE_AOUT))
10320 else if (exp->X_op != O_constant
10321 && OUTPUT_FLAVOR == bfd_target_aout_flavour
10322 && exp_seg != absolute_section
10323 && exp_seg != text_section
10324 && exp_seg != data_section
10325 && exp_seg != bss_section
10326 && exp_seg != undefined_section
10327 && !bfd_is_com_section (exp_seg))
10328 {
10329 as_bad (_("unimplemented segment %s in operand"), exp_seg->name);
10330 ret = 0;
10331 }
10332 #endif
10333
10334 if (current_templates->start->opcode_modifier.jump == JUMP_BYTE
10335 /* Constants get taken care of by optimize_disp(). */
10336 && exp->X_op != O_constant)
10337 i.types[this_operand].bitfield.disp8 = 1;
10338
10339 /* Check if this is a displacement only operand. */
10340 bigdisp = i.types[this_operand];
10341 bigdisp.bitfield.disp8 = 0;
10342 bigdisp.bitfield.disp16 = 0;
10343 bigdisp.bitfield.disp32 = 0;
10344 bigdisp.bitfield.disp32s = 0;
10345 bigdisp.bitfield.disp64 = 0;
10346 if (operand_type_all_zero (&bigdisp))
10347 i.types[this_operand] = operand_type_and (i.types[this_operand],
10348 types);
10349
10350 return ret;
10351 }
10352
10353 /* Return the active addressing mode, taking address override and
10354 registers forming the address into consideration. Update the
10355 address override prefix if necessary. */
10356
10357 static enum flag_code
10358 i386_addressing_mode (void)
10359 {
10360 enum flag_code addr_mode;
10361
10362 if (i.prefix[ADDR_PREFIX])
10363 addr_mode = flag_code == CODE_32BIT ? CODE_16BIT : CODE_32BIT;
10364 else if (flag_code == CODE_16BIT
10365 && current_templates->start->cpu_flags.bitfield.cpumpx
10366 /* Avoid replacing the "16-bit addressing not allowed" diagnostic
10367 from md_assemble() by "is not a valid base/index expression"
10368 when there is a base and/or index. */
10369 && !i.types[this_operand].bitfield.baseindex)
10370 {
10371 /* MPX insn memory operands with neither base nor index must be forced
10372 to use 32-bit addressing in 16-bit mode. */
10373 addr_mode = CODE_32BIT;
10374 i.prefix[ADDR_PREFIX] = ADDR_PREFIX_OPCODE;
10375 ++i.prefixes;
10376 gas_assert (!i.types[this_operand].bitfield.disp16);
10377 gas_assert (!i.types[this_operand].bitfield.disp32);
10378 }
10379 else
10380 {
10381 addr_mode = flag_code;
10382
10383 #if INFER_ADDR_PREFIX
10384 if (i.mem_operands == 0)
10385 {
10386 /* Infer address prefix from the first memory operand. */
10387 const reg_entry *addr_reg = i.base_reg;
10388
10389 if (addr_reg == NULL)
10390 addr_reg = i.index_reg;
10391
10392 if (addr_reg)
10393 {
10394 if (addr_reg->reg_type.bitfield.dword)
10395 addr_mode = CODE_32BIT;
10396 else if (flag_code != CODE_64BIT
10397 && addr_reg->reg_type.bitfield.word)
10398 addr_mode = CODE_16BIT;
10399
10400 if (addr_mode != flag_code)
10401 {
10402 i.prefix[ADDR_PREFIX] = ADDR_PREFIX_OPCODE;
10403 i.prefixes += 1;
10404 /* Change the size of any displacement too. At most one
10405 of Disp16 or Disp32 is set.
10406 FIXME. There doesn't seem to be any real need for
10407 separate Disp16 and Disp32 flags. The same goes for
10408 Imm16 and Imm32. Removing them would probably clean
10409 up the code quite a lot. */
10410 if (flag_code != CODE_64BIT
10411 && (i.types[this_operand].bitfield.disp16
10412 || i.types[this_operand].bitfield.disp32))
10413 i.types[this_operand]
10414 = operand_type_xor (i.types[this_operand], disp16_32);
10415 }
10416 }
10417 }
10418 #endif
10419 }
10420
10421 return addr_mode;
10422 }
10423
10424 /* Make sure the memory operand we've been dealt is valid.
10425 Return 1 on success, 0 on a failure. */
10426
10427 static int
10428 i386_index_check (const char *operand_string)
10429 {
10430 const char *kind = "base/index";
10431 enum flag_code addr_mode = i386_addressing_mode ();
10432
10433 if (current_templates->start->opcode_modifier.isstring
10434 && !current_templates->start->cpu_flags.bitfield.cpupadlock
10435 && (current_templates->end[-1].opcode_modifier.isstring
10436 || i.mem_operands))
10437 {
10438 /* Memory operands of string insns are special in that they only allow
10439 a single register (rDI, rSI, or rBX) as their memory address. */
10440 const reg_entry *expected_reg;
10441 static const char *di_si[][2] =
10442 {
10443 { "esi", "edi" },
10444 { "si", "di" },
10445 { "rsi", "rdi" }
10446 };
10447 static const char *bx[] = { "ebx", "bx", "rbx" };
10448
10449 kind = "string address";
10450
10451 if (current_templates->start->opcode_modifier.repprefixok)
10452 {
10453 int es_op = current_templates->end[-1].opcode_modifier.isstring
10454 - IS_STRING_ES_OP0;
10455 int op = 0;
10456
10457 if (!current_templates->end[-1].operand_types[0].bitfield.baseindex
10458 || ((!i.mem_operands != !intel_syntax)
10459 && current_templates->end[-1].operand_types[1]
10460 .bitfield.baseindex))
10461 op = 1;
10462 expected_reg = hash_find (reg_hash, di_si[addr_mode][op == es_op]);
10463 }
10464 else
10465 expected_reg = hash_find (reg_hash, bx[addr_mode]);
10466
10467 if (i.base_reg != expected_reg
10468 || i.index_reg
10469 || operand_type_check (i.types[this_operand], disp))
10470 {
10471 /* The second memory operand must have the same size as
10472 the first one. */
10473 if (i.mem_operands
10474 && i.base_reg
10475 && !((addr_mode == CODE_64BIT
10476 && i.base_reg->reg_type.bitfield.qword)
10477 || (addr_mode == CODE_32BIT
10478 ? i.base_reg->reg_type.bitfield.dword
10479 : i.base_reg->reg_type.bitfield.word)))
10480 goto bad_address;
10481
10482 as_warn (_("`%s' is not valid here (expected `%c%s%s%c')"),
10483 operand_string,
10484 intel_syntax ? '[' : '(',
10485 register_prefix,
10486 expected_reg->reg_name,
10487 intel_syntax ? ']' : ')');
10488 return 1;
10489 }
10490 else
10491 return 1;
10492
10493 bad_address:
10494 as_bad (_("`%s' is not a valid %s expression"),
10495 operand_string, kind);
10496 return 0;
10497 }
10498 else
10499 {
10500 if (addr_mode != CODE_16BIT)
10501 {
10502 /* 32-bit/64-bit checks. */
10503 if ((i.base_reg
10504 && ((addr_mode == CODE_64BIT
10505 ? !i.base_reg->reg_type.bitfield.qword
10506 : !i.base_reg->reg_type.bitfield.dword)
10507 || (i.index_reg && i.base_reg->reg_num == RegIP)
10508 || i.base_reg->reg_num == RegIZ))
10509 || (i.index_reg
10510 && !i.index_reg->reg_type.bitfield.xmmword
10511 && !i.index_reg->reg_type.bitfield.ymmword
10512 && !i.index_reg->reg_type.bitfield.zmmword
10513 && ((addr_mode == CODE_64BIT
10514 ? !i.index_reg->reg_type.bitfield.qword
10515 : !i.index_reg->reg_type.bitfield.dword)
10516 || !i.index_reg->reg_type.bitfield.baseindex)))
10517 goto bad_address;
10518
10519 /* bndmk, bndldx, and bndstx have special restrictions. */
10520 if (current_templates->start->base_opcode == 0xf30f1b
10521 || (current_templates->start->base_opcode & ~1) == 0x0f1a)
10522 {
10523 /* They cannot use RIP-relative addressing. */
10524 if (i.base_reg && i.base_reg->reg_num == RegIP)
10525 {
10526 as_bad (_("`%s' cannot be used here"), operand_string);
10527 return 0;
10528 }
10529
10530 /* bndldx and bndstx ignore their scale factor. */
10531 if (current_templates->start->base_opcode != 0xf30f1b
10532 && i.log2_scale_factor)
10533 as_warn (_("register scaling is being ignored here"));
10534 }
10535 }
10536 else
10537 {
10538 /* 16-bit checks. */
10539 if ((i.base_reg
10540 && (!i.base_reg->reg_type.bitfield.word
10541 || !i.base_reg->reg_type.bitfield.baseindex))
10542 || (i.index_reg
10543 && (!i.index_reg->reg_type.bitfield.word
10544 || !i.index_reg->reg_type.bitfield.baseindex
10545 || !(i.base_reg
10546 && i.base_reg->reg_num < 6
10547 && i.index_reg->reg_num >= 6
10548 && i.log2_scale_factor == 0))))
10549 goto bad_address;
10550 }
10551 }
10552 return 1;
10553 }
10554
10555 /* Handle vector immediates. */
10556
10557 static int
10558 RC_SAE_immediate (const char *imm_start)
10559 {
10560 unsigned int match_found, j;
10561 const char *pstr = imm_start;
10562 expressionS *exp;
10563
10564 if (*pstr != '{')
10565 return 0;
10566
10567 pstr++;
10568 match_found = 0;
10569 for (j = 0; j < ARRAY_SIZE (RC_NamesTable); j++)
10570 {
10571 if (!strncmp (pstr, RC_NamesTable[j].name, RC_NamesTable[j].len))
10572 {
10573 if (!i.rounding)
10574 {
10575 rc_op.type = RC_NamesTable[j].type;
10576 rc_op.operand = this_operand;
10577 i.rounding = &rc_op;
10578 }
10579 else
10580 {
10581 as_bad (_("duplicated `%s'"), imm_start);
10582 return 0;
10583 }
10584 pstr += RC_NamesTable[j].len;
10585 match_found = 1;
10586 break;
10587 }
10588 }
10589 if (!match_found)
10590 return 0;
10591
10592 if (*pstr++ != '}')
10593 {
10594 as_bad (_("Missing '}': '%s'"), imm_start);
10595 return 0;
10596 }
10597 /* RC/SAE immediate string should contain nothing more. */;
10598 if (*pstr != 0)
10599 {
10600 as_bad (_("Junk after '}': '%s'"), imm_start);
10601 return 0;
10602 }
10603
10604 exp = &im_expressions[i.imm_operands++];
10605 i.op[this_operand].imms = exp;
10606
10607 exp->X_op = O_constant;
10608 exp->X_add_number = 0;
10609 exp->X_add_symbol = (symbolS *) 0;
10610 exp->X_op_symbol = (symbolS *) 0;
10611
10612 i.types[this_operand].bitfield.imm8 = 1;
10613 return 1;
10614 }
10615
10616 /* Only string instructions can have a second memory operand, so
10617 reduce current_templates to just those if it contains any. */
10618 static int
10619 maybe_adjust_templates (void)
10620 {
10621 const insn_template *t;
10622
10623 gas_assert (i.mem_operands == 1);
10624
10625 for (t = current_templates->start; t < current_templates->end; ++t)
10626 if (t->opcode_modifier.isstring)
10627 break;
10628
10629 if (t < current_templates->end)
10630 {
10631 static templates aux_templates;
10632 bfd_boolean recheck;
10633
10634 aux_templates.start = t;
10635 for (; t < current_templates->end; ++t)
10636 if (!t->opcode_modifier.isstring)
10637 break;
10638 aux_templates.end = t;
10639
10640 /* Determine whether to re-check the first memory operand. */
10641 recheck = (aux_templates.start != current_templates->start
10642 || t != current_templates->end);
10643
10644 current_templates = &aux_templates;
10645
10646 if (recheck)
10647 {
10648 i.mem_operands = 0;
10649 if (i.memop1_string != NULL
10650 && i386_index_check (i.memop1_string) == 0)
10651 return 0;
10652 i.mem_operands = 1;
10653 }
10654 }
10655
10656 return 1;
10657 }
10658
10659 /* Parse OPERAND_STRING into the i386_insn structure I. Returns zero
10660 on error. */
10661
10662 static int
10663 i386_att_operand (char *operand_string)
10664 {
10665 const reg_entry *r;
10666 char *end_op;
10667 char *op_string = operand_string;
10668
10669 if (is_space_char (*op_string))
10670 ++op_string;
10671
10672 /* We check for an absolute prefix (differentiating,
10673 for example, 'jmp pc_relative_label' from 'jmp *absolute_label'. */
10674 if (*op_string == ABSOLUTE_PREFIX)
10675 {
10676 ++op_string;
10677 if (is_space_char (*op_string))
10678 ++op_string;
10679 i.jumpabsolute = TRUE;
10680 }
10681
10682 /* Check if operand is a register. */
10683 if ((r = parse_register (op_string, &end_op)) != NULL)
10684 {
10685 i386_operand_type temp;
10686
10687 /* Check for a segment override by searching for ':' after a
10688 segment register. */
10689 op_string = end_op;
10690 if (is_space_char (*op_string))
10691 ++op_string;
10692 if (*op_string == ':' && r->reg_type.bitfield.class == SReg)
10693 {
10694 switch (r->reg_num)
10695 {
10696 case 0:
10697 i.seg[i.mem_operands] = &es;
10698 break;
10699 case 1:
10700 i.seg[i.mem_operands] = &cs;
10701 break;
10702 case 2:
10703 i.seg[i.mem_operands] = &ss;
10704 break;
10705 case 3:
10706 i.seg[i.mem_operands] = &ds;
10707 break;
10708 case 4:
10709 i.seg[i.mem_operands] = &fs;
10710 break;
10711 case 5:
10712 i.seg[i.mem_operands] = &gs;
10713 break;
10714 }
10715
10716 /* Skip the ':' and whitespace. */
10717 ++op_string;
10718 if (is_space_char (*op_string))
10719 ++op_string;
10720
10721 if (!is_digit_char (*op_string)
10722 && !is_identifier_char (*op_string)
10723 && *op_string != '('
10724 && *op_string != ABSOLUTE_PREFIX)
10725 {
10726 as_bad (_("bad memory operand `%s'"), op_string);
10727 return 0;
10728 }
10729 /* Handle case of %es:*foo. */
10730 if (*op_string == ABSOLUTE_PREFIX)
10731 {
10732 ++op_string;
10733 if (is_space_char (*op_string))
10734 ++op_string;
10735 i.jumpabsolute = TRUE;
10736 }
10737 goto do_memory_reference;
10738 }
10739
10740 /* Handle vector operations. */
10741 if (*op_string == '{')
10742 {
10743 op_string = check_VecOperations (op_string, NULL);
10744 if (op_string == NULL)
10745 return 0;
10746 }
10747
10748 if (*op_string)
10749 {
10750 as_bad (_("junk `%s' after register"), op_string);
10751 return 0;
10752 }
10753 temp = r->reg_type;
10754 temp.bitfield.baseindex = 0;
10755 i.types[this_operand] = operand_type_or (i.types[this_operand],
10756 temp);
10757 i.types[this_operand].bitfield.unspecified = 0;
10758 i.op[this_operand].regs = r;
10759 i.reg_operands++;
10760 }
10761 else if (*op_string == REGISTER_PREFIX)
10762 {
10763 as_bad (_("bad register name `%s'"), op_string);
10764 return 0;
10765 }
10766 else if (*op_string == IMMEDIATE_PREFIX)
10767 {
10768 ++op_string;
10769 if (i.jumpabsolute)
10770 {
10771 as_bad (_("immediate operand illegal with absolute jump"));
10772 return 0;
10773 }
10774 if (!i386_immediate (op_string))
10775 return 0;
10776 }
10777 else if (RC_SAE_immediate (operand_string))
10778 {
10779 /* If it is a RC or SAE immediate, do nothing. */
10780 ;
10781 }
10782 else if (is_digit_char (*op_string)
10783 || is_identifier_char (*op_string)
10784 || *op_string == '"'
10785 || *op_string == '(')
10786 {
10787 /* This is a memory reference of some sort. */
10788 char *base_string;
10789
10790 /* Start and end of displacement string expression (if found). */
10791 char *displacement_string_start;
10792 char *displacement_string_end;
10793 char *vop_start;
10794
10795 do_memory_reference:
10796 if (i.mem_operands == 1 && !maybe_adjust_templates ())
10797 return 0;
10798 if ((i.mem_operands == 1
10799 && !current_templates->start->opcode_modifier.isstring)
10800 || i.mem_operands == 2)
10801 {
10802 as_bad (_("too many memory references for `%s'"),
10803 current_templates->start->name);
10804 return 0;
10805 }
10806
10807 /* Check for base index form. We detect the base index form by
10808 looking for an ')' at the end of the operand, searching
10809 for the '(' matching it, and finding a REGISTER_PREFIX or ','
10810 after the '('. */
10811 base_string = op_string + strlen (op_string);
10812
10813 /* Handle vector operations. */
10814 vop_start = strchr (op_string, '{');
10815 if (vop_start && vop_start < base_string)
10816 {
10817 if (check_VecOperations (vop_start, base_string) == NULL)
10818 return 0;
10819 base_string = vop_start;
10820 }
10821
10822 --base_string;
10823 if (is_space_char (*base_string))
10824 --base_string;
10825
10826 /* If we only have a displacement, set-up for it to be parsed later. */
10827 displacement_string_start = op_string;
10828 displacement_string_end = base_string + 1;
10829
10830 if (*base_string == ')')
10831 {
10832 char *temp_string;
10833 unsigned int parens_balanced = 1;
10834 /* We've already checked that the number of left & right ()'s are
10835 equal, so this loop will not be infinite. */
10836 do
10837 {
10838 base_string--;
10839 if (*base_string == ')')
10840 parens_balanced++;
10841 if (*base_string == '(')
10842 parens_balanced--;
10843 }
10844 while (parens_balanced);
10845
10846 temp_string = base_string;
10847
10848 /* Skip past '(' and whitespace. */
10849 ++base_string;
10850 if (is_space_char (*base_string))
10851 ++base_string;
10852
10853 if (*base_string == ','
10854 || ((i.base_reg = parse_register (base_string, &end_op))
10855 != NULL))
10856 {
10857 displacement_string_end = temp_string;
10858
10859 i.types[this_operand].bitfield.baseindex = 1;
10860
10861 if (i.base_reg)
10862 {
10863 base_string = end_op;
10864 if (is_space_char (*base_string))
10865 ++base_string;
10866 }
10867
10868 /* There may be an index reg or scale factor here. */
10869 if (*base_string == ',')
10870 {
10871 ++base_string;
10872 if (is_space_char (*base_string))
10873 ++base_string;
10874
10875 if ((i.index_reg = parse_register (base_string, &end_op))
10876 != NULL)
10877 {
10878 base_string = end_op;
10879 if (is_space_char (*base_string))
10880 ++base_string;
10881 if (*base_string == ',')
10882 {
10883 ++base_string;
10884 if (is_space_char (*base_string))
10885 ++base_string;
10886 }
10887 else if (*base_string != ')')
10888 {
10889 as_bad (_("expecting `,' or `)' "
10890 "after index register in `%s'"),
10891 operand_string);
10892 return 0;
10893 }
10894 }
10895 else if (*base_string == REGISTER_PREFIX)
10896 {
10897 end_op = strchr (base_string, ',');
10898 if (end_op)
10899 *end_op = '\0';
10900 as_bad (_("bad register name `%s'"), base_string);
10901 return 0;
10902 }
10903
10904 /* Check for scale factor. */
10905 if (*base_string != ')')
10906 {
10907 char *end_scale = i386_scale (base_string);
10908
10909 if (!end_scale)
10910 return 0;
10911
10912 base_string = end_scale;
10913 if (is_space_char (*base_string))
10914 ++base_string;
10915 if (*base_string != ')')
10916 {
10917 as_bad (_("expecting `)' "
10918 "after scale factor in `%s'"),
10919 operand_string);
10920 return 0;
10921 }
10922 }
10923 else if (!i.index_reg)
10924 {
10925 as_bad (_("expecting index register or scale factor "
10926 "after `,'; got '%c'"),
10927 *base_string);
10928 return 0;
10929 }
10930 }
10931 else if (*base_string != ')')
10932 {
10933 as_bad (_("expecting `,' or `)' "
10934 "after base register in `%s'"),
10935 operand_string);
10936 return 0;
10937 }
10938 }
10939 else if (*base_string == REGISTER_PREFIX)
10940 {
10941 end_op = strchr (base_string, ',');
10942 if (end_op)
10943 *end_op = '\0';
10944 as_bad (_("bad register name `%s'"), base_string);
10945 return 0;
10946 }
10947 }
10948
10949 /* If there's an expression beginning the operand, parse it,
10950 assuming displacement_string_start and
10951 displacement_string_end are meaningful. */
10952 if (displacement_string_start != displacement_string_end)
10953 {
10954 if (!i386_displacement (displacement_string_start,
10955 displacement_string_end))
10956 return 0;
10957 }
10958
10959 /* Special case for (%dx) while doing input/output op. */
10960 if (i.base_reg
10961 && i.base_reg->reg_type.bitfield.instance == RegD
10962 && i.base_reg->reg_type.bitfield.word
10963 && i.index_reg == 0
10964 && i.log2_scale_factor == 0
10965 && i.seg[i.mem_operands] == 0
10966 && !operand_type_check (i.types[this_operand], disp))
10967 {
10968 i.types[this_operand] = i.base_reg->reg_type;
10969 return 1;
10970 }
10971
10972 if (i386_index_check (operand_string) == 0)
10973 return 0;
10974 i.flags[this_operand] |= Operand_Mem;
10975 if (i.mem_operands == 0)
10976 i.memop1_string = xstrdup (operand_string);
10977 i.mem_operands++;
10978 }
10979 else
10980 {
10981 /* It's not a memory operand; argh! */
10982 as_bad (_("invalid char %s beginning operand %d `%s'"),
10983 output_invalid (*op_string),
10984 this_operand + 1,
10985 op_string);
10986 return 0;
10987 }
10988 return 1; /* Normal return. */
10989 }
10990 \f
10991 /* Calculate the maximum variable size (i.e., excluding fr_fix)
10992 that an rs_machine_dependent frag may reach. */
10993
10994 unsigned int
10995 i386_frag_max_var (fragS *frag)
10996 {
10997 /* The only relaxable frags are for jumps.
10998 Unconditional jumps can grow by 4 bytes and others by 5 bytes. */
10999 gas_assert (frag->fr_type == rs_machine_dependent);
11000 return TYPE_FROM_RELAX_STATE (frag->fr_subtype) == UNCOND_JUMP ? 4 : 5;
11001 }
11002
11003 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
11004 static int
11005 elf_symbol_resolved_in_segment_p (symbolS *fr_symbol, offsetT fr_var)
11006 {
11007 /* STT_GNU_IFUNC symbol must go through PLT. */
11008 if ((symbol_get_bfdsym (fr_symbol)->flags
11009 & BSF_GNU_INDIRECT_FUNCTION) != 0)
11010 return 0;
11011
11012 if (!S_IS_EXTERNAL (fr_symbol))
11013 /* Symbol may be weak or local. */
11014 return !S_IS_WEAK (fr_symbol);
11015
11016 /* Global symbols with non-default visibility can't be preempted. */
11017 if (ELF_ST_VISIBILITY (S_GET_OTHER (fr_symbol)) != STV_DEFAULT)
11018 return 1;
11019
11020 if (fr_var != NO_RELOC)
11021 switch ((enum bfd_reloc_code_real) fr_var)
11022 {
11023 case BFD_RELOC_386_PLT32:
11024 case BFD_RELOC_X86_64_PLT32:
11025 /* Symbol with PLT relocation may be preempted. */
11026 return 0;
11027 default:
11028 abort ();
11029 }
11030
11031 /* Global symbols with default visibility in a shared library may be
11032 preempted by another definition. */
11033 return !shared;
11034 }
11035 #endif
11036
11037 /* Table 3-2. Macro-Fusible Instructions in Haswell Microarchitecture
11038 Note also work for Skylake and Cascadelake.
11039 ---------------------------------------------------------------------
11040 | JCC | ADD/SUB/CMP | INC/DEC | TEST/AND |
11041 | ------ | ----------- | ------- | -------- |
11042 | Jo | N | N | Y |
11043 | Jno | N | N | Y |
11044 | Jc/Jb | Y | N | Y |
11045 | Jae/Jnb | Y | N | Y |
11046 | Je/Jz | Y | Y | Y |
11047 | Jne/Jnz | Y | Y | Y |
11048 | Jna/Jbe | Y | N | Y |
11049 | Ja/Jnbe | Y | N | Y |
11050 | Js | N | N | Y |
11051 | Jns | N | N | Y |
11052 | Jp/Jpe | N | N | Y |
11053 | Jnp/Jpo | N | N | Y |
11054 | Jl/Jnge | Y | Y | Y |
11055 | Jge/Jnl | Y | Y | Y |
11056 | Jle/Jng | Y | Y | Y |
11057 | Jg/Jnle | Y | Y | Y |
11058 --------------------------------------------------------------------- */
11059 static int
11060 i386_macro_fusible_p (enum mf_cmp_kind mf_cmp, enum mf_jcc_kind mf_jcc)
11061 {
11062 if (mf_cmp == mf_cmp_alu_cmp)
11063 return ((mf_jcc >= mf_jcc_jc && mf_jcc <= mf_jcc_jna)
11064 || mf_jcc == mf_jcc_jl || mf_jcc == mf_jcc_jle);
11065 if (mf_cmp == mf_cmp_incdec)
11066 return (mf_jcc == mf_jcc_je || mf_jcc == mf_jcc_jl
11067 || mf_jcc == mf_jcc_jle);
11068 if (mf_cmp == mf_cmp_test_and)
11069 return 1;
11070 return 0;
11071 }
11072
11073 /* Return the next non-empty frag. */
11074
11075 static fragS *
11076 i386_next_non_empty_frag (fragS *fragP)
11077 {
11078 /* There may be a frag with a ".fill 0" when there is no room in
11079 the current frag for frag_grow in output_insn. */
11080 for (fragP = fragP->fr_next;
11081 (fragP != NULL
11082 && fragP->fr_type == rs_fill
11083 && fragP->fr_fix == 0);
11084 fragP = fragP->fr_next)
11085 ;
11086 return fragP;
11087 }
11088
11089 /* Return the next jcc frag after BRANCH_PADDING. */
11090
11091 static fragS *
11092 i386_next_fusible_jcc_frag (fragS *maybe_cmp_fragP, fragS *pad_fragP)
11093 {
11094 fragS *branch_fragP;
11095 if (!pad_fragP)
11096 return NULL;
11097
11098 if (pad_fragP->fr_type == rs_machine_dependent
11099 && (TYPE_FROM_RELAX_STATE (pad_fragP->fr_subtype)
11100 == BRANCH_PADDING))
11101 {
11102 branch_fragP = i386_next_non_empty_frag (pad_fragP);
11103 if (branch_fragP->fr_type != rs_machine_dependent)
11104 return NULL;
11105 if (TYPE_FROM_RELAX_STATE (branch_fragP->fr_subtype) == COND_JUMP
11106 && i386_macro_fusible_p (maybe_cmp_fragP->tc_frag_data.mf_type,
11107 pad_fragP->tc_frag_data.mf_type))
11108 return branch_fragP;
11109 }
11110
11111 return NULL;
11112 }
11113
11114 /* Classify BRANCH_PADDING, BRANCH_PREFIX and FUSED_JCC_PADDING frags. */
11115
11116 static void
11117 i386_classify_machine_dependent_frag (fragS *fragP)
11118 {
11119 fragS *cmp_fragP;
11120 fragS *pad_fragP;
11121 fragS *branch_fragP;
11122 fragS *next_fragP;
11123 unsigned int max_prefix_length;
11124
11125 if (fragP->tc_frag_data.classified)
11126 return;
11127
11128 /* First scan for BRANCH_PADDING and FUSED_JCC_PADDING. Convert
11129 FUSED_JCC_PADDING and merge BRANCH_PADDING. */
11130 for (next_fragP = fragP;
11131 next_fragP != NULL;
11132 next_fragP = next_fragP->fr_next)
11133 {
11134 next_fragP->tc_frag_data.classified = 1;
11135 if (next_fragP->fr_type == rs_machine_dependent)
11136 switch (TYPE_FROM_RELAX_STATE (next_fragP->fr_subtype))
11137 {
11138 case BRANCH_PADDING:
11139 /* The BRANCH_PADDING frag must be followed by a branch
11140 frag. */
11141 branch_fragP = i386_next_non_empty_frag (next_fragP);
11142 next_fragP->tc_frag_data.u.branch_fragP = branch_fragP;
11143 break;
11144 case FUSED_JCC_PADDING:
11145 /* Check if this is a fused jcc:
11146 FUSED_JCC_PADDING
11147 CMP like instruction
11148 BRANCH_PADDING
11149 COND_JUMP
11150 */
11151 cmp_fragP = i386_next_non_empty_frag (next_fragP);
11152 pad_fragP = i386_next_non_empty_frag (cmp_fragP);
11153 branch_fragP = i386_next_fusible_jcc_frag (next_fragP, pad_fragP);
11154 if (branch_fragP)
11155 {
11156 /* The BRANCH_PADDING frag is merged with the
11157 FUSED_JCC_PADDING frag. */
11158 next_fragP->tc_frag_data.u.branch_fragP = branch_fragP;
11159 /* CMP like instruction size. */
11160 next_fragP->tc_frag_data.cmp_size = cmp_fragP->fr_fix;
11161 frag_wane (pad_fragP);
11162 /* Skip to branch_fragP. */
11163 next_fragP = branch_fragP;
11164 }
11165 else if (next_fragP->tc_frag_data.max_prefix_length)
11166 {
11167 /* Turn FUSED_JCC_PADDING into BRANCH_PREFIX if it isn't
11168 a fused jcc. */
11169 next_fragP->fr_subtype
11170 = ENCODE_RELAX_STATE (BRANCH_PREFIX, 0);
11171 next_fragP->tc_frag_data.max_bytes
11172 = next_fragP->tc_frag_data.max_prefix_length;
11173 /* This will be updated in the BRANCH_PREFIX scan. */
11174 next_fragP->tc_frag_data.max_prefix_length = 0;
11175 }
11176 else
11177 frag_wane (next_fragP);
11178 break;
11179 }
11180 }
11181
11182 /* Stop if there is no BRANCH_PREFIX. */
11183 if (!align_branch_prefix_size)
11184 return;
11185
11186 /* Scan for BRANCH_PREFIX. */
11187 for (; fragP != NULL; fragP = fragP->fr_next)
11188 {
11189 if (fragP->fr_type != rs_machine_dependent
11190 || (TYPE_FROM_RELAX_STATE (fragP->fr_subtype)
11191 != BRANCH_PREFIX))
11192 continue;
11193
11194 /* Count all BRANCH_PREFIX frags before BRANCH_PADDING and
11195 COND_JUMP_PREFIX. */
11196 max_prefix_length = 0;
11197 for (next_fragP = fragP;
11198 next_fragP != NULL;
11199 next_fragP = next_fragP->fr_next)
11200 {
11201 if (next_fragP->fr_type == rs_fill)
11202 /* Skip rs_fill frags. */
11203 continue;
11204 else if (next_fragP->fr_type != rs_machine_dependent)
11205 /* Stop for all other frags. */
11206 break;
11207
11208 /* rs_machine_dependent frags. */
11209 if (TYPE_FROM_RELAX_STATE (next_fragP->fr_subtype)
11210 == BRANCH_PREFIX)
11211 {
11212 /* Count BRANCH_PREFIX frags. */
11213 if (max_prefix_length >= MAX_FUSED_JCC_PADDING_SIZE)
11214 {
11215 max_prefix_length = MAX_FUSED_JCC_PADDING_SIZE;
11216 frag_wane (next_fragP);
11217 }
11218 else
11219 max_prefix_length
11220 += next_fragP->tc_frag_data.max_bytes;
11221 }
11222 else if ((TYPE_FROM_RELAX_STATE (next_fragP->fr_subtype)
11223 == BRANCH_PADDING)
11224 || (TYPE_FROM_RELAX_STATE (next_fragP->fr_subtype)
11225 == FUSED_JCC_PADDING))
11226 {
11227 /* Stop at BRANCH_PADDING and FUSED_JCC_PADDING. */
11228 fragP->tc_frag_data.u.padding_fragP = next_fragP;
11229 break;
11230 }
11231 else
11232 /* Stop for other rs_machine_dependent frags. */
11233 break;
11234 }
11235
11236 fragP->tc_frag_data.max_prefix_length = max_prefix_length;
11237
11238 /* Skip to the next frag. */
11239 fragP = next_fragP;
11240 }
11241 }
11242
11243 /* Compute padding size for
11244
11245 FUSED_JCC_PADDING
11246 CMP like instruction
11247 BRANCH_PADDING
11248 COND_JUMP/UNCOND_JUMP
11249
11250 or
11251
11252 BRANCH_PADDING
11253 COND_JUMP/UNCOND_JUMP
11254 */
11255
11256 static int
11257 i386_branch_padding_size (fragS *fragP, offsetT address)
11258 {
11259 unsigned int offset, size, padding_size;
11260 fragS *branch_fragP = fragP->tc_frag_data.u.branch_fragP;
11261
11262 /* The start address of the BRANCH_PADDING or FUSED_JCC_PADDING frag. */
11263 if (!address)
11264 address = fragP->fr_address;
11265 address += fragP->fr_fix;
11266
11267 /* CMP like instrunction size. */
11268 size = fragP->tc_frag_data.cmp_size;
11269
11270 /* The base size of the branch frag. */
11271 size += branch_fragP->fr_fix;
11272
11273 /* Add opcode and displacement bytes for the rs_machine_dependent
11274 branch frag. */
11275 if (branch_fragP->fr_type == rs_machine_dependent)
11276 size += md_relax_table[branch_fragP->fr_subtype].rlx_length;
11277
11278 /* Check if branch is within boundary and doesn't end at the last
11279 byte. */
11280 offset = address & ((1U << align_branch_power) - 1);
11281 if ((offset + size) >= (1U << align_branch_power))
11282 /* Padding needed to avoid crossing boundary. */
11283 padding_size = (1U << align_branch_power) - offset;
11284 else
11285 /* No padding needed. */
11286 padding_size = 0;
11287
11288 /* The return value may be saved in tc_frag_data.length which is
11289 unsigned byte. */
11290 if (!fits_in_unsigned_byte (padding_size))
11291 abort ();
11292
11293 return padding_size;
11294 }
11295
11296 /* i386_generic_table_relax_frag()
11297
11298 Handle BRANCH_PADDING, BRANCH_PREFIX and FUSED_JCC_PADDING frags to
11299 grow/shrink padding to align branch frags. Hand others to
11300 relax_frag(). */
11301
11302 long
11303 i386_generic_table_relax_frag (segT segment, fragS *fragP, long stretch)
11304 {
11305 if (TYPE_FROM_RELAX_STATE (fragP->fr_subtype) == BRANCH_PADDING
11306 || TYPE_FROM_RELAX_STATE (fragP->fr_subtype) == FUSED_JCC_PADDING)
11307 {
11308 long padding_size = i386_branch_padding_size (fragP, 0);
11309 long grow = padding_size - fragP->tc_frag_data.length;
11310
11311 /* When the BRANCH_PREFIX frag is used, the computed address
11312 must match the actual address and there should be no padding. */
11313 if (fragP->tc_frag_data.padding_address
11314 && (fragP->tc_frag_data.padding_address != fragP->fr_address
11315 || padding_size))
11316 abort ();
11317
11318 /* Update the padding size. */
11319 if (grow)
11320 fragP->tc_frag_data.length = padding_size;
11321
11322 return grow;
11323 }
11324 else if (TYPE_FROM_RELAX_STATE (fragP->fr_subtype) == BRANCH_PREFIX)
11325 {
11326 fragS *padding_fragP, *next_fragP;
11327 long padding_size, left_size, last_size;
11328
11329 padding_fragP = fragP->tc_frag_data.u.padding_fragP;
11330 if (!padding_fragP)
11331 /* Use the padding set by the leading BRANCH_PREFIX frag. */
11332 return (fragP->tc_frag_data.length
11333 - fragP->tc_frag_data.last_length);
11334
11335 /* Compute the relative address of the padding frag in the very
11336 first time where the BRANCH_PREFIX frag sizes are zero. */
11337 if (!fragP->tc_frag_data.padding_address)
11338 fragP->tc_frag_data.padding_address
11339 = padding_fragP->fr_address - (fragP->fr_address - stretch);
11340
11341 /* First update the last length from the previous interation. */
11342 left_size = fragP->tc_frag_data.prefix_length;
11343 for (next_fragP = fragP;
11344 next_fragP != padding_fragP;
11345 next_fragP = next_fragP->fr_next)
11346 if (next_fragP->fr_type == rs_machine_dependent
11347 && (TYPE_FROM_RELAX_STATE (next_fragP->fr_subtype)
11348 == BRANCH_PREFIX))
11349 {
11350 if (left_size)
11351 {
11352 int max = next_fragP->tc_frag_data.max_bytes;
11353 if (max)
11354 {
11355 int size;
11356 if (max > left_size)
11357 size = left_size;
11358 else
11359 size = max;
11360 left_size -= size;
11361 next_fragP->tc_frag_data.last_length = size;
11362 }
11363 }
11364 else
11365 next_fragP->tc_frag_data.last_length = 0;
11366 }
11367
11368 /* Check the padding size for the padding frag. */
11369 padding_size = i386_branch_padding_size
11370 (padding_fragP, (fragP->fr_address
11371 + fragP->tc_frag_data.padding_address));
11372
11373 last_size = fragP->tc_frag_data.prefix_length;
11374 /* Check if there is change from the last interation. */
11375 if (padding_size == last_size)
11376 {
11377 /* Update the expected address of the padding frag. */
11378 padding_fragP->tc_frag_data.padding_address
11379 = (fragP->fr_address + padding_size
11380 + fragP->tc_frag_data.padding_address);
11381 return 0;
11382 }
11383
11384 if (padding_size > fragP->tc_frag_data.max_prefix_length)
11385 {
11386 /* No padding if there is no sufficient room. Clear the
11387 expected address of the padding frag. */
11388 padding_fragP->tc_frag_data.padding_address = 0;
11389 padding_size = 0;
11390 }
11391 else
11392 /* Store the expected address of the padding frag. */
11393 padding_fragP->tc_frag_data.padding_address
11394 = (fragP->fr_address + padding_size
11395 + fragP->tc_frag_data.padding_address);
11396
11397 fragP->tc_frag_data.prefix_length = padding_size;
11398
11399 /* Update the length for the current interation. */
11400 left_size = padding_size;
11401 for (next_fragP = fragP;
11402 next_fragP != padding_fragP;
11403 next_fragP = next_fragP->fr_next)
11404 if (next_fragP->fr_type == rs_machine_dependent
11405 && (TYPE_FROM_RELAX_STATE (next_fragP->fr_subtype)
11406 == BRANCH_PREFIX))
11407 {
11408 if (left_size)
11409 {
11410 int max = next_fragP->tc_frag_data.max_bytes;
11411 if (max)
11412 {
11413 int size;
11414 if (max > left_size)
11415 size = left_size;
11416 else
11417 size = max;
11418 left_size -= size;
11419 next_fragP->tc_frag_data.length = size;
11420 }
11421 }
11422 else
11423 next_fragP->tc_frag_data.length = 0;
11424 }
11425
11426 return (fragP->tc_frag_data.length
11427 - fragP->tc_frag_data.last_length);
11428 }
11429 return relax_frag (segment, fragP, stretch);
11430 }
11431
11432 /* md_estimate_size_before_relax()
11433
11434 Called just before relax() for rs_machine_dependent frags. The x86
11435 assembler uses these frags to handle variable size jump
11436 instructions.
11437
11438 Any symbol that is now undefined will not become defined.
11439 Return the correct fr_subtype in the frag.
11440 Return the initial "guess for variable size of frag" to caller.
11441 The guess is actually the growth beyond the fixed part. Whatever
11442 we do to grow the fixed or variable part contributes to our
11443 returned value. */
11444
11445 int
11446 md_estimate_size_before_relax (fragS *fragP, segT segment)
11447 {
11448 if (TYPE_FROM_RELAX_STATE (fragP->fr_subtype) == BRANCH_PADDING
11449 || TYPE_FROM_RELAX_STATE (fragP->fr_subtype) == BRANCH_PREFIX
11450 || TYPE_FROM_RELAX_STATE (fragP->fr_subtype) == FUSED_JCC_PADDING)
11451 {
11452 i386_classify_machine_dependent_frag (fragP);
11453 return fragP->tc_frag_data.length;
11454 }
11455
11456 /* We've already got fragP->fr_subtype right; all we have to do is
11457 check for un-relaxable symbols. On an ELF system, we can't relax
11458 an externally visible symbol, because it may be overridden by a
11459 shared library. */
11460 if (S_GET_SEGMENT (fragP->fr_symbol) != segment
11461 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
11462 || (IS_ELF
11463 && !elf_symbol_resolved_in_segment_p (fragP->fr_symbol,
11464 fragP->fr_var))
11465 #endif
11466 #if defined (OBJ_COFF) && defined (TE_PE)
11467 || (OUTPUT_FLAVOR == bfd_target_coff_flavour
11468 && S_IS_WEAK (fragP->fr_symbol))
11469 #endif
11470 )
11471 {
11472 /* Symbol is undefined in this segment, or we need to keep a
11473 reloc so that weak symbols can be overridden. */
11474 int size = (fragP->fr_subtype & CODE16) ? 2 : 4;
11475 enum bfd_reloc_code_real reloc_type;
11476 unsigned char *opcode;
11477 int old_fr_fix;
11478
11479 if (fragP->fr_var != NO_RELOC)
11480 reloc_type = (enum bfd_reloc_code_real) fragP->fr_var;
11481 else if (size == 2)
11482 reloc_type = BFD_RELOC_16_PCREL;
11483 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
11484 else if (need_plt32_p (fragP->fr_symbol))
11485 reloc_type = BFD_RELOC_X86_64_PLT32;
11486 #endif
11487 else
11488 reloc_type = BFD_RELOC_32_PCREL;
11489
11490 old_fr_fix = fragP->fr_fix;
11491 opcode = (unsigned char *) fragP->fr_opcode;
11492
11493 switch (TYPE_FROM_RELAX_STATE (fragP->fr_subtype))
11494 {
11495 case UNCOND_JUMP:
11496 /* Make jmp (0xeb) a (d)word displacement jump. */
11497 opcode[0] = 0xe9;
11498 fragP->fr_fix += size;
11499 fix_new (fragP, old_fr_fix, size,
11500 fragP->fr_symbol,
11501 fragP->fr_offset, 1,
11502 reloc_type);
11503 break;
11504
11505 case COND_JUMP86:
11506 if (size == 2
11507 && (!no_cond_jump_promotion || fragP->fr_var != NO_RELOC))
11508 {
11509 /* Negate the condition, and branch past an
11510 unconditional jump. */
11511 opcode[0] ^= 1;
11512 opcode[1] = 3;
11513 /* Insert an unconditional jump. */
11514 opcode[2] = 0xe9;
11515 /* We added two extra opcode bytes, and have a two byte
11516 offset. */
11517 fragP->fr_fix += 2 + 2;
11518 fix_new (fragP, old_fr_fix + 2, 2,
11519 fragP->fr_symbol,
11520 fragP->fr_offset, 1,
11521 reloc_type);
11522 break;
11523 }
11524 /* Fall through. */
11525
11526 case COND_JUMP:
11527 if (no_cond_jump_promotion && fragP->fr_var == NO_RELOC)
11528 {
11529 fixS *fixP;
11530
11531 fragP->fr_fix += 1;
11532 fixP = fix_new (fragP, old_fr_fix, 1,
11533 fragP->fr_symbol,
11534 fragP->fr_offset, 1,
11535 BFD_RELOC_8_PCREL);
11536 fixP->fx_signed = 1;
11537 break;
11538 }
11539
11540 /* This changes the byte-displacement jump 0x7N
11541 to the (d)word-displacement jump 0x0f,0x8N. */
11542 opcode[1] = opcode[0] + 0x10;
11543 opcode[0] = TWO_BYTE_OPCODE_ESCAPE;
11544 /* We've added an opcode byte. */
11545 fragP->fr_fix += 1 + size;
11546 fix_new (fragP, old_fr_fix + 1, size,
11547 fragP->fr_symbol,
11548 fragP->fr_offset, 1,
11549 reloc_type);
11550 break;
11551
11552 default:
11553 BAD_CASE (fragP->fr_subtype);
11554 break;
11555 }
11556 frag_wane (fragP);
11557 return fragP->fr_fix - old_fr_fix;
11558 }
11559
11560 /* Guess size depending on current relax state. Initially the relax
11561 state will correspond to a short jump and we return 1, because
11562 the variable part of the frag (the branch offset) is one byte
11563 long. However, we can relax a section more than once and in that
11564 case we must either set fr_subtype back to the unrelaxed state,
11565 or return the value for the appropriate branch. */
11566 return md_relax_table[fragP->fr_subtype].rlx_length;
11567 }
11568
11569 /* Called after relax() is finished.
11570
11571 In: Address of frag.
11572 fr_type == rs_machine_dependent.
11573 fr_subtype is what the address relaxed to.
11574
11575 Out: Any fixSs and constants are set up.
11576 Caller will turn frag into a ".space 0". */
11577
11578 void
11579 md_convert_frag (bfd *abfd ATTRIBUTE_UNUSED, segT sec ATTRIBUTE_UNUSED,
11580 fragS *fragP)
11581 {
11582 unsigned char *opcode;
11583 unsigned char *where_to_put_displacement = NULL;
11584 offsetT target_address;
11585 offsetT opcode_address;
11586 unsigned int extension = 0;
11587 offsetT displacement_from_opcode_start;
11588
11589 if (TYPE_FROM_RELAX_STATE (fragP->fr_subtype) == BRANCH_PADDING
11590 || TYPE_FROM_RELAX_STATE (fragP->fr_subtype) == FUSED_JCC_PADDING
11591 || TYPE_FROM_RELAX_STATE (fragP->fr_subtype) == BRANCH_PREFIX)
11592 {
11593 /* Generate nop padding. */
11594 unsigned int size = fragP->tc_frag_data.length;
11595 if (size)
11596 {
11597 if (size > fragP->tc_frag_data.max_bytes)
11598 abort ();
11599
11600 if (flag_debug)
11601 {
11602 const char *msg;
11603 const char *branch = "branch";
11604 const char *prefix = "";
11605 fragS *padding_fragP;
11606 if (TYPE_FROM_RELAX_STATE (fragP->fr_subtype)
11607 == BRANCH_PREFIX)
11608 {
11609 padding_fragP = fragP->tc_frag_data.u.padding_fragP;
11610 switch (fragP->tc_frag_data.default_prefix)
11611 {
11612 default:
11613 abort ();
11614 break;
11615 case CS_PREFIX_OPCODE:
11616 prefix = " cs";
11617 break;
11618 case DS_PREFIX_OPCODE:
11619 prefix = " ds";
11620 break;
11621 case ES_PREFIX_OPCODE:
11622 prefix = " es";
11623 break;
11624 case FS_PREFIX_OPCODE:
11625 prefix = " fs";
11626 break;
11627 case GS_PREFIX_OPCODE:
11628 prefix = " gs";
11629 break;
11630 case SS_PREFIX_OPCODE:
11631 prefix = " ss";
11632 break;
11633 }
11634 if (padding_fragP)
11635 msg = _("%s:%u: add %d%s at 0x%llx to align "
11636 "%s within %d-byte boundary\n");
11637 else
11638 msg = _("%s:%u: add additional %d%s at 0x%llx to "
11639 "align %s within %d-byte boundary\n");
11640 }
11641 else
11642 {
11643 padding_fragP = fragP;
11644 msg = _("%s:%u: add %d%s-byte nop at 0x%llx to align "
11645 "%s within %d-byte boundary\n");
11646 }
11647
11648 if (padding_fragP)
11649 switch (padding_fragP->tc_frag_data.branch_type)
11650 {
11651 case align_branch_jcc:
11652 branch = "jcc";
11653 break;
11654 case align_branch_fused:
11655 branch = "fused jcc";
11656 break;
11657 case align_branch_jmp:
11658 branch = "jmp";
11659 break;
11660 case align_branch_call:
11661 branch = "call";
11662 break;
11663 case align_branch_indirect:
11664 branch = "indiret branch";
11665 break;
11666 case align_branch_ret:
11667 branch = "ret";
11668 break;
11669 default:
11670 break;
11671 }
11672
11673 fprintf (stdout, msg,
11674 fragP->fr_file, fragP->fr_line, size, prefix,
11675 (long long) fragP->fr_address, branch,
11676 1 << align_branch_power);
11677 }
11678 if (TYPE_FROM_RELAX_STATE (fragP->fr_subtype) == BRANCH_PREFIX)
11679 memset (fragP->fr_opcode,
11680 fragP->tc_frag_data.default_prefix, size);
11681 else
11682 i386_generate_nops (fragP, (char *) fragP->fr_opcode,
11683 size, 0);
11684 fragP->fr_fix += size;
11685 }
11686 return;
11687 }
11688
11689 opcode = (unsigned char *) fragP->fr_opcode;
11690
11691 /* Address we want to reach in file space. */
11692 target_address = S_GET_VALUE (fragP->fr_symbol) + fragP->fr_offset;
11693
11694 /* Address opcode resides at in file space. */
11695 opcode_address = fragP->fr_address + fragP->fr_fix;
11696
11697 /* Displacement from opcode start to fill into instruction. */
11698 displacement_from_opcode_start = target_address - opcode_address;
11699
11700 if ((fragP->fr_subtype & BIG) == 0)
11701 {
11702 /* Don't have to change opcode. */
11703 extension = 1; /* 1 opcode + 1 displacement */
11704 where_to_put_displacement = &opcode[1];
11705 }
11706 else
11707 {
11708 if (no_cond_jump_promotion
11709 && TYPE_FROM_RELAX_STATE (fragP->fr_subtype) != UNCOND_JUMP)
11710 as_warn_where (fragP->fr_file, fragP->fr_line,
11711 _("long jump required"));
11712
11713 switch (fragP->fr_subtype)
11714 {
11715 case ENCODE_RELAX_STATE (UNCOND_JUMP, BIG):
11716 extension = 4; /* 1 opcode + 4 displacement */
11717 opcode[0] = 0xe9;
11718 where_to_put_displacement = &opcode[1];
11719 break;
11720
11721 case ENCODE_RELAX_STATE (UNCOND_JUMP, BIG16):
11722 extension = 2; /* 1 opcode + 2 displacement */
11723 opcode[0] = 0xe9;
11724 where_to_put_displacement = &opcode[1];
11725 break;
11726
11727 case ENCODE_RELAX_STATE (COND_JUMP, BIG):
11728 case ENCODE_RELAX_STATE (COND_JUMP86, BIG):
11729 extension = 5; /* 2 opcode + 4 displacement */
11730 opcode[1] = opcode[0] + 0x10;
11731 opcode[0] = TWO_BYTE_OPCODE_ESCAPE;
11732 where_to_put_displacement = &opcode[2];
11733 break;
11734
11735 case ENCODE_RELAX_STATE (COND_JUMP, BIG16):
11736 extension = 3; /* 2 opcode + 2 displacement */
11737 opcode[1] = opcode[0] + 0x10;
11738 opcode[0] = TWO_BYTE_OPCODE_ESCAPE;
11739 where_to_put_displacement = &opcode[2];
11740 break;
11741
11742 case ENCODE_RELAX_STATE (COND_JUMP86, BIG16):
11743 extension = 4;
11744 opcode[0] ^= 1;
11745 opcode[1] = 3;
11746 opcode[2] = 0xe9;
11747 where_to_put_displacement = &opcode[3];
11748 break;
11749
11750 default:
11751 BAD_CASE (fragP->fr_subtype);
11752 break;
11753 }
11754 }
11755
11756 /* If size if less then four we are sure that the operand fits,
11757 but if it's 4, then it could be that the displacement is larger
11758 then -/+ 2GB. */
11759 if (DISP_SIZE_FROM_RELAX_STATE (fragP->fr_subtype) == 4
11760 && object_64bit
11761 && ((addressT) (displacement_from_opcode_start - extension
11762 + ((addressT) 1 << 31))
11763 > (((addressT) 2 << 31) - 1)))
11764 {
11765 as_bad_where (fragP->fr_file, fragP->fr_line,
11766 _("jump target out of range"));
11767 /* Make us emit 0. */
11768 displacement_from_opcode_start = extension;
11769 }
11770 /* Now put displacement after opcode. */
11771 md_number_to_chars ((char *) where_to_put_displacement,
11772 (valueT) (displacement_from_opcode_start - extension),
11773 DISP_SIZE_FROM_RELAX_STATE (fragP->fr_subtype));
11774 fragP->fr_fix += extension;
11775 }
11776 \f
11777 /* Apply a fixup (fixP) to segment data, once it has been determined
11778 by our caller that we have all the info we need to fix it up.
11779
11780 Parameter valP is the pointer to the value of the bits.
11781
11782 On the 386, immediates, displacements, and data pointers are all in
11783 the same (little-endian) format, so we don't need to care about which
11784 we are handling. */
11785
11786 void
11787 md_apply_fix (fixS *fixP, valueT *valP, segT seg ATTRIBUTE_UNUSED)
11788 {
11789 char *p = fixP->fx_where + fixP->fx_frag->fr_literal;
11790 valueT value = *valP;
11791
11792 #if !defined (TE_Mach)
11793 if (fixP->fx_pcrel)
11794 {
11795 switch (fixP->fx_r_type)
11796 {
11797 default:
11798 break;
11799
11800 case BFD_RELOC_64:
11801 fixP->fx_r_type = BFD_RELOC_64_PCREL;
11802 break;
11803 case BFD_RELOC_32:
11804 case BFD_RELOC_X86_64_32S:
11805 fixP->fx_r_type = BFD_RELOC_32_PCREL;
11806 break;
11807 case BFD_RELOC_16:
11808 fixP->fx_r_type = BFD_RELOC_16_PCREL;
11809 break;
11810 case BFD_RELOC_8:
11811 fixP->fx_r_type = BFD_RELOC_8_PCREL;
11812 break;
11813 }
11814 }
11815
11816 if (fixP->fx_addsy != NULL
11817 && (fixP->fx_r_type == BFD_RELOC_32_PCREL
11818 || fixP->fx_r_type == BFD_RELOC_64_PCREL
11819 || fixP->fx_r_type == BFD_RELOC_16_PCREL
11820 || fixP->fx_r_type == BFD_RELOC_8_PCREL)
11821 && !use_rela_relocations)
11822 {
11823 /* This is a hack. There should be a better way to handle this.
11824 This covers for the fact that bfd_install_relocation will
11825 subtract the current location (for partial_inplace, PC relative
11826 relocations); see more below. */
11827 #ifndef OBJ_AOUT
11828 if (IS_ELF
11829 #ifdef TE_PE
11830 || OUTPUT_FLAVOR == bfd_target_coff_flavour
11831 #endif
11832 )
11833 value += fixP->fx_where + fixP->fx_frag->fr_address;
11834 #endif
11835 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
11836 if (IS_ELF)
11837 {
11838 segT sym_seg = S_GET_SEGMENT (fixP->fx_addsy);
11839
11840 if ((sym_seg == seg
11841 || (symbol_section_p (fixP->fx_addsy)
11842 && sym_seg != absolute_section))
11843 && !generic_force_reloc (fixP))
11844 {
11845 /* Yes, we add the values in twice. This is because
11846 bfd_install_relocation subtracts them out again. I think
11847 bfd_install_relocation is broken, but I don't dare change
11848 it. FIXME. */
11849 value += fixP->fx_where + fixP->fx_frag->fr_address;
11850 }
11851 }
11852 #endif
11853 #if defined (OBJ_COFF) && defined (TE_PE)
11854 /* For some reason, the PE format does not store a
11855 section address offset for a PC relative symbol. */
11856 if (S_GET_SEGMENT (fixP->fx_addsy) != seg
11857 || S_IS_WEAK (fixP->fx_addsy))
11858 value += md_pcrel_from (fixP);
11859 #endif
11860 }
11861 #if defined (OBJ_COFF) && defined (TE_PE)
11862 if (fixP->fx_addsy != NULL
11863 && S_IS_WEAK (fixP->fx_addsy)
11864 /* PR 16858: Do not modify weak function references. */
11865 && ! fixP->fx_pcrel)
11866 {
11867 #if !defined (TE_PEP)
11868 /* For x86 PE weak function symbols are neither PC-relative
11869 nor do they set S_IS_FUNCTION. So the only reliable way
11870 to detect them is to check the flags of their containing
11871 section. */
11872 if (S_GET_SEGMENT (fixP->fx_addsy) != NULL
11873 && S_GET_SEGMENT (fixP->fx_addsy)->flags & SEC_CODE)
11874 ;
11875 else
11876 #endif
11877 value -= S_GET_VALUE (fixP->fx_addsy);
11878 }
11879 #endif
11880
11881 /* Fix a few things - the dynamic linker expects certain values here,
11882 and we must not disappoint it. */
11883 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
11884 if (IS_ELF && fixP->fx_addsy)
11885 switch (fixP->fx_r_type)
11886 {
11887 case BFD_RELOC_386_PLT32:
11888 case BFD_RELOC_X86_64_PLT32:
11889 /* Make the jump instruction point to the address of the operand.
11890 At runtime we merely add the offset to the actual PLT entry.
11891 NB: Subtract the offset size only for jump instructions. */
11892 if (fixP->fx_pcrel)
11893 value = -4;
11894 break;
11895
11896 case BFD_RELOC_386_TLS_GD:
11897 case BFD_RELOC_386_TLS_LDM:
11898 case BFD_RELOC_386_TLS_IE_32:
11899 case BFD_RELOC_386_TLS_IE:
11900 case BFD_RELOC_386_TLS_GOTIE:
11901 case BFD_RELOC_386_TLS_GOTDESC:
11902 case BFD_RELOC_X86_64_TLSGD:
11903 case BFD_RELOC_X86_64_TLSLD:
11904 case BFD_RELOC_X86_64_GOTTPOFF:
11905 case BFD_RELOC_X86_64_GOTPC32_TLSDESC:
11906 value = 0; /* Fully resolved at runtime. No addend. */
11907 /* Fallthrough */
11908 case BFD_RELOC_386_TLS_LE:
11909 case BFD_RELOC_386_TLS_LDO_32:
11910 case BFD_RELOC_386_TLS_LE_32:
11911 case BFD_RELOC_X86_64_DTPOFF32:
11912 case BFD_RELOC_X86_64_DTPOFF64:
11913 case BFD_RELOC_X86_64_TPOFF32:
11914 case BFD_RELOC_X86_64_TPOFF64:
11915 S_SET_THREAD_LOCAL (fixP->fx_addsy);
11916 break;
11917
11918 case BFD_RELOC_386_TLS_DESC_CALL:
11919 case BFD_RELOC_X86_64_TLSDESC_CALL:
11920 value = 0; /* Fully resolved at runtime. No addend. */
11921 S_SET_THREAD_LOCAL (fixP->fx_addsy);
11922 fixP->fx_done = 0;
11923 return;
11924
11925 case BFD_RELOC_VTABLE_INHERIT:
11926 case BFD_RELOC_VTABLE_ENTRY:
11927 fixP->fx_done = 0;
11928 return;
11929
11930 default:
11931 break;
11932 }
11933 #endif /* defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF) */
11934 *valP = value;
11935 #endif /* !defined (TE_Mach) */
11936
11937 /* Are we finished with this relocation now? */
11938 if (fixP->fx_addsy == NULL)
11939 fixP->fx_done = 1;
11940 #if defined (OBJ_COFF) && defined (TE_PE)
11941 else if (fixP->fx_addsy != NULL && S_IS_WEAK (fixP->fx_addsy))
11942 {
11943 fixP->fx_done = 0;
11944 /* Remember value for tc_gen_reloc. */
11945 fixP->fx_addnumber = value;
11946 /* Clear out the frag for now. */
11947 value = 0;
11948 }
11949 #endif
11950 else if (use_rela_relocations)
11951 {
11952 fixP->fx_no_overflow = 1;
11953 /* Remember value for tc_gen_reloc. */
11954 fixP->fx_addnumber = value;
11955 value = 0;
11956 }
11957
11958 md_number_to_chars (p, value, fixP->fx_size);
11959 }
11960 \f
11961 const char *
11962 md_atof (int type, char *litP, int *sizeP)
11963 {
11964 /* This outputs the LITTLENUMs in REVERSE order;
11965 in accord with the bigendian 386. */
11966 return ieee_md_atof (type, litP, sizeP, FALSE);
11967 }
11968 \f
11969 static char output_invalid_buf[sizeof (unsigned char) * 2 + 6];
11970
11971 static char *
11972 output_invalid (int c)
11973 {
11974 if (ISPRINT (c))
11975 snprintf (output_invalid_buf, sizeof (output_invalid_buf),
11976 "'%c'", c);
11977 else
11978 snprintf (output_invalid_buf, sizeof (output_invalid_buf),
11979 "(0x%x)", (unsigned char) c);
11980 return output_invalid_buf;
11981 }
11982
11983 /* REG_STRING starts *before* REGISTER_PREFIX. */
11984
11985 static const reg_entry *
11986 parse_real_register (char *reg_string, char **end_op)
11987 {
11988 char *s = reg_string;
11989 char *p;
11990 char reg_name_given[MAX_REG_NAME_SIZE + 1];
11991 const reg_entry *r;
11992
11993 /* Skip possible REGISTER_PREFIX and possible whitespace. */
11994 if (*s == REGISTER_PREFIX)
11995 ++s;
11996
11997 if (is_space_char (*s))
11998 ++s;
11999
12000 p = reg_name_given;
12001 while ((*p++ = register_chars[(unsigned char) *s]) != '\0')
12002 {
12003 if (p >= reg_name_given + MAX_REG_NAME_SIZE)
12004 return (const reg_entry *) NULL;
12005 s++;
12006 }
12007
12008 /* For naked regs, make sure that we are not dealing with an identifier.
12009 This prevents confusing an identifier like `eax_var' with register
12010 `eax'. */
12011 if (allow_naked_reg && identifier_chars[(unsigned char) *s])
12012 return (const reg_entry *) NULL;
12013
12014 *end_op = s;
12015
12016 r = (const reg_entry *) hash_find (reg_hash, reg_name_given);
12017
12018 /* Handle floating point regs, allowing spaces in the (i) part. */
12019 if (r == i386_regtab /* %st is first entry of table */)
12020 {
12021 if (!cpu_arch_flags.bitfield.cpu8087
12022 && !cpu_arch_flags.bitfield.cpu287
12023 && !cpu_arch_flags.bitfield.cpu387)
12024 return (const reg_entry *) NULL;
12025
12026 if (is_space_char (*s))
12027 ++s;
12028 if (*s == '(')
12029 {
12030 ++s;
12031 if (is_space_char (*s))
12032 ++s;
12033 if (*s >= '0' && *s <= '7')
12034 {
12035 int fpr = *s - '0';
12036 ++s;
12037 if (is_space_char (*s))
12038 ++s;
12039 if (*s == ')')
12040 {
12041 *end_op = s + 1;
12042 r = (const reg_entry *) hash_find (reg_hash, "st(0)");
12043 know (r);
12044 return r + fpr;
12045 }
12046 }
12047 /* We have "%st(" then garbage. */
12048 return (const reg_entry *) NULL;
12049 }
12050 }
12051
12052 if (r == NULL || allow_pseudo_reg)
12053 return r;
12054
12055 if (operand_type_all_zero (&r->reg_type))
12056 return (const reg_entry *) NULL;
12057
12058 if ((r->reg_type.bitfield.dword
12059 || (r->reg_type.bitfield.class == SReg && r->reg_num > 3)
12060 || r->reg_type.bitfield.class == RegCR
12061 || r->reg_type.bitfield.class == RegDR
12062 || r->reg_type.bitfield.class == RegTR)
12063 && !cpu_arch_flags.bitfield.cpui386)
12064 return (const reg_entry *) NULL;
12065
12066 if (r->reg_type.bitfield.class == RegMMX && !cpu_arch_flags.bitfield.cpummx)
12067 return (const reg_entry *) NULL;
12068
12069 if (!cpu_arch_flags.bitfield.cpuavx512f)
12070 {
12071 if (r->reg_type.bitfield.zmmword
12072 || r->reg_type.bitfield.class == RegMask)
12073 return (const reg_entry *) NULL;
12074
12075 if (!cpu_arch_flags.bitfield.cpuavx)
12076 {
12077 if (r->reg_type.bitfield.ymmword)
12078 return (const reg_entry *) NULL;
12079
12080 if (!cpu_arch_flags.bitfield.cpusse && r->reg_type.bitfield.xmmword)
12081 return (const reg_entry *) NULL;
12082 }
12083 }
12084
12085 if (r->reg_type.bitfield.class == RegBND && !cpu_arch_flags.bitfield.cpumpx)
12086 return (const reg_entry *) NULL;
12087
12088 /* Don't allow fake index register unless allow_index_reg isn't 0. */
12089 if (!allow_index_reg && r->reg_num == RegIZ)
12090 return (const reg_entry *) NULL;
12091
12092 /* Upper 16 vector registers are only available with VREX in 64bit
12093 mode, and require EVEX encoding. */
12094 if (r->reg_flags & RegVRex)
12095 {
12096 if (!cpu_arch_flags.bitfield.cpuavx512f
12097 || flag_code != CODE_64BIT)
12098 return (const reg_entry *) NULL;
12099
12100 i.vec_encoding = vex_encoding_evex;
12101 }
12102
12103 if (((r->reg_flags & (RegRex64 | RegRex)) || r->reg_type.bitfield.qword)
12104 && (!cpu_arch_flags.bitfield.cpulm || r->reg_type.bitfield.class != RegCR)
12105 && flag_code != CODE_64BIT)
12106 return (const reg_entry *) NULL;
12107
12108 if (r->reg_type.bitfield.class == SReg && r->reg_num == RegFlat
12109 && !intel_syntax)
12110 return (const reg_entry *) NULL;
12111
12112 return r;
12113 }
12114
12115 /* REG_STRING starts *before* REGISTER_PREFIX. */
12116
12117 static const reg_entry *
12118 parse_register (char *reg_string, char **end_op)
12119 {
12120 const reg_entry *r;
12121
12122 if (*reg_string == REGISTER_PREFIX || allow_naked_reg)
12123 r = parse_real_register (reg_string, end_op);
12124 else
12125 r = NULL;
12126 if (!r)
12127 {
12128 char *save = input_line_pointer;
12129 char c;
12130 symbolS *symbolP;
12131
12132 input_line_pointer = reg_string;
12133 c = get_symbol_name (&reg_string);
12134 symbolP = symbol_find (reg_string);
12135 if (symbolP && S_GET_SEGMENT (symbolP) == reg_section)
12136 {
12137 const expressionS *e = symbol_get_value_expression (symbolP);
12138
12139 know (e->X_op == O_register);
12140 know (e->X_add_number >= 0
12141 && (valueT) e->X_add_number < i386_regtab_size);
12142 r = i386_regtab + e->X_add_number;
12143 if ((r->reg_flags & RegVRex))
12144 i.vec_encoding = vex_encoding_evex;
12145 *end_op = input_line_pointer;
12146 }
12147 *input_line_pointer = c;
12148 input_line_pointer = save;
12149 }
12150 return r;
12151 }
12152
12153 int
12154 i386_parse_name (char *name, expressionS *e, char *nextcharP)
12155 {
12156 const reg_entry *r;
12157 char *end = input_line_pointer;
12158
12159 *end = *nextcharP;
12160 r = parse_register (name, &input_line_pointer);
12161 if (r && end <= input_line_pointer)
12162 {
12163 *nextcharP = *input_line_pointer;
12164 *input_line_pointer = 0;
12165 e->X_op = O_register;
12166 e->X_add_number = r - i386_regtab;
12167 return 1;
12168 }
12169 input_line_pointer = end;
12170 *end = 0;
12171 return intel_syntax ? i386_intel_parse_name (name, e) : 0;
12172 }
12173
12174 void
12175 md_operand (expressionS *e)
12176 {
12177 char *end;
12178 const reg_entry *r;
12179
12180 switch (*input_line_pointer)
12181 {
12182 case REGISTER_PREFIX:
12183 r = parse_real_register (input_line_pointer, &end);
12184 if (r)
12185 {
12186 e->X_op = O_register;
12187 e->X_add_number = r - i386_regtab;
12188 input_line_pointer = end;
12189 }
12190 break;
12191
12192 case '[':
12193 gas_assert (intel_syntax);
12194 end = input_line_pointer++;
12195 expression (e);
12196 if (*input_line_pointer == ']')
12197 {
12198 ++input_line_pointer;
12199 e->X_op_symbol = make_expr_symbol (e);
12200 e->X_add_symbol = NULL;
12201 e->X_add_number = 0;
12202 e->X_op = O_index;
12203 }
12204 else
12205 {
12206 e->X_op = O_absent;
12207 input_line_pointer = end;
12208 }
12209 break;
12210 }
12211 }
12212
12213 \f
12214 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
12215 const char *md_shortopts = "kVQ:sqnO::";
12216 #else
12217 const char *md_shortopts = "qnO::";
12218 #endif
12219
12220 #define OPTION_32 (OPTION_MD_BASE + 0)
12221 #define OPTION_64 (OPTION_MD_BASE + 1)
12222 #define OPTION_DIVIDE (OPTION_MD_BASE + 2)
12223 #define OPTION_MARCH (OPTION_MD_BASE + 3)
12224 #define OPTION_MTUNE (OPTION_MD_BASE + 4)
12225 #define OPTION_MMNEMONIC (OPTION_MD_BASE + 5)
12226 #define OPTION_MSYNTAX (OPTION_MD_BASE + 6)
12227 #define OPTION_MINDEX_REG (OPTION_MD_BASE + 7)
12228 #define OPTION_MNAKED_REG (OPTION_MD_BASE + 8)
12229 #define OPTION_MRELAX_RELOCATIONS (OPTION_MD_BASE + 9)
12230 #define OPTION_MSSE2AVX (OPTION_MD_BASE + 10)
12231 #define OPTION_MSSE_CHECK (OPTION_MD_BASE + 11)
12232 #define OPTION_MOPERAND_CHECK (OPTION_MD_BASE + 12)
12233 #define OPTION_MAVXSCALAR (OPTION_MD_BASE + 13)
12234 #define OPTION_X32 (OPTION_MD_BASE + 14)
12235 #define OPTION_MADD_BND_PREFIX (OPTION_MD_BASE + 15)
12236 #define OPTION_MEVEXLIG (OPTION_MD_BASE + 16)
12237 #define OPTION_MEVEXWIG (OPTION_MD_BASE + 17)
12238 #define OPTION_MBIG_OBJ (OPTION_MD_BASE + 18)
12239 #define OPTION_MOMIT_LOCK_PREFIX (OPTION_MD_BASE + 19)
12240 #define OPTION_MEVEXRCIG (OPTION_MD_BASE + 20)
12241 #define OPTION_MSHARED (OPTION_MD_BASE + 21)
12242 #define OPTION_MAMD64 (OPTION_MD_BASE + 22)
12243 #define OPTION_MINTEL64 (OPTION_MD_BASE + 23)
12244 #define OPTION_MFENCE_AS_LOCK_ADD (OPTION_MD_BASE + 24)
12245 #define OPTION_X86_USED_NOTE (OPTION_MD_BASE + 25)
12246 #define OPTION_MVEXWIG (OPTION_MD_BASE + 26)
12247 #define OPTION_MALIGN_BRANCH_BOUNDARY (OPTION_MD_BASE + 27)
12248 #define OPTION_MALIGN_BRANCH_PREFIX_SIZE (OPTION_MD_BASE + 28)
12249 #define OPTION_MALIGN_BRANCH (OPTION_MD_BASE + 29)
12250 #define OPTION_MBRANCHES_WITH_32B_BOUNDARIES (OPTION_MD_BASE + 30)
12251
12252 struct option md_longopts[] =
12253 {
12254 {"32", no_argument, NULL, OPTION_32},
12255 #if (defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF) \
12256 || defined (TE_PE) || defined (TE_PEP) || defined (OBJ_MACH_O))
12257 {"64", no_argument, NULL, OPTION_64},
12258 #endif
12259 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
12260 {"x32", no_argument, NULL, OPTION_X32},
12261 {"mshared", no_argument, NULL, OPTION_MSHARED},
12262 {"mx86-used-note", required_argument, NULL, OPTION_X86_USED_NOTE},
12263 #endif
12264 {"divide", no_argument, NULL, OPTION_DIVIDE},
12265 {"march", required_argument, NULL, OPTION_MARCH},
12266 {"mtune", required_argument, NULL, OPTION_MTUNE},
12267 {"mmnemonic", required_argument, NULL, OPTION_MMNEMONIC},
12268 {"msyntax", required_argument, NULL, OPTION_MSYNTAX},
12269 {"mindex-reg", no_argument, NULL, OPTION_MINDEX_REG},
12270 {"mnaked-reg", no_argument, NULL, OPTION_MNAKED_REG},
12271 {"msse2avx", no_argument, NULL, OPTION_MSSE2AVX},
12272 {"msse-check", required_argument, NULL, OPTION_MSSE_CHECK},
12273 {"moperand-check", required_argument, NULL, OPTION_MOPERAND_CHECK},
12274 {"mavxscalar", required_argument, NULL, OPTION_MAVXSCALAR},
12275 {"mvexwig", required_argument, NULL, OPTION_MVEXWIG},
12276 {"madd-bnd-prefix", no_argument, NULL, OPTION_MADD_BND_PREFIX},
12277 {"mevexlig", required_argument, NULL, OPTION_MEVEXLIG},
12278 {"mevexwig", required_argument, NULL, OPTION_MEVEXWIG},
12279 # if defined (TE_PE) || defined (TE_PEP)
12280 {"mbig-obj", no_argument, NULL, OPTION_MBIG_OBJ},
12281 #endif
12282 {"momit-lock-prefix", required_argument, NULL, OPTION_MOMIT_LOCK_PREFIX},
12283 {"mfence-as-lock-add", required_argument, NULL, OPTION_MFENCE_AS_LOCK_ADD},
12284 {"mrelax-relocations", required_argument, NULL, OPTION_MRELAX_RELOCATIONS},
12285 {"mevexrcig", required_argument, NULL, OPTION_MEVEXRCIG},
12286 {"malign-branch-boundary", required_argument, NULL, OPTION_MALIGN_BRANCH_BOUNDARY},
12287 {"malign-branch-prefix-size", required_argument, NULL, OPTION_MALIGN_BRANCH_PREFIX_SIZE},
12288 {"malign-branch", required_argument, NULL, OPTION_MALIGN_BRANCH},
12289 {"mbranches-within-32B-boundaries", no_argument, NULL, OPTION_MBRANCHES_WITH_32B_BOUNDARIES},
12290 {"mamd64", no_argument, NULL, OPTION_MAMD64},
12291 {"mintel64", no_argument, NULL, OPTION_MINTEL64},
12292 {NULL, no_argument, NULL, 0}
12293 };
12294 size_t md_longopts_size = sizeof (md_longopts);
12295
12296 int
12297 md_parse_option (int c, const char *arg)
12298 {
12299 unsigned int j;
12300 char *arch, *next, *saved, *type;
12301
12302 switch (c)
12303 {
12304 case 'n':
12305 optimize_align_code = 0;
12306 break;
12307
12308 case 'q':
12309 quiet_warnings = 1;
12310 break;
12311
12312 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
12313 /* -Qy, -Qn: SVR4 arguments controlling whether a .comment section
12314 should be emitted or not. FIXME: Not implemented. */
12315 case 'Q':
12316 if ((arg[0] != 'y' && arg[0] != 'n') || arg[1])
12317 return 0;
12318 break;
12319
12320 /* -V: SVR4 argument to print version ID. */
12321 case 'V':
12322 print_version_id ();
12323 break;
12324
12325 /* -k: Ignore for FreeBSD compatibility. */
12326 case 'k':
12327 break;
12328
12329 case 's':
12330 /* -s: On i386 Solaris, this tells the native assembler to use
12331 .stab instead of .stab.excl. We always use .stab anyhow. */
12332 break;
12333
12334 case OPTION_MSHARED:
12335 shared = 1;
12336 break;
12337
12338 case OPTION_X86_USED_NOTE:
12339 if (strcasecmp (arg, "yes") == 0)
12340 x86_used_note = 1;
12341 else if (strcasecmp (arg, "no") == 0)
12342 x86_used_note = 0;
12343 else
12344 as_fatal (_("invalid -mx86-used-note= option: `%s'"), arg);
12345 break;
12346
12347
12348 #endif
12349 #if (defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF) \
12350 || defined (TE_PE) || defined (TE_PEP) || defined (OBJ_MACH_O))
12351 case OPTION_64:
12352 {
12353 const char **list, **l;
12354
12355 list = bfd_target_list ();
12356 for (l = list; *l != NULL; l++)
12357 if (CONST_STRNEQ (*l, "elf64-x86-64")
12358 || strcmp (*l, "coff-x86-64") == 0
12359 || strcmp (*l, "pe-x86-64") == 0
12360 || strcmp (*l, "pei-x86-64") == 0
12361 || strcmp (*l, "mach-o-x86-64") == 0)
12362 {
12363 default_arch = "x86_64";
12364 break;
12365 }
12366 if (*l == NULL)
12367 as_fatal (_("no compiled in support for x86_64"));
12368 free (list);
12369 }
12370 break;
12371 #endif
12372
12373 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
12374 case OPTION_X32:
12375 if (IS_ELF)
12376 {
12377 const char **list, **l;
12378
12379 list = bfd_target_list ();
12380 for (l = list; *l != NULL; l++)
12381 if (CONST_STRNEQ (*l, "elf32-x86-64"))
12382 {
12383 default_arch = "x86_64:32";
12384 break;
12385 }
12386 if (*l == NULL)
12387 as_fatal (_("no compiled in support for 32bit x86_64"));
12388 free (list);
12389 }
12390 else
12391 as_fatal (_("32bit x86_64 is only supported for ELF"));
12392 break;
12393 #endif
12394
12395 case OPTION_32:
12396 default_arch = "i386";
12397 break;
12398
12399 case OPTION_DIVIDE:
12400 #ifdef SVR4_COMMENT_CHARS
12401 {
12402 char *n, *t;
12403 const char *s;
12404
12405 n = XNEWVEC (char, strlen (i386_comment_chars) + 1);
12406 t = n;
12407 for (s = i386_comment_chars; *s != '\0'; s++)
12408 if (*s != '/')
12409 *t++ = *s;
12410 *t = '\0';
12411 i386_comment_chars = n;
12412 }
12413 #endif
12414 break;
12415
12416 case OPTION_MARCH:
12417 saved = xstrdup (arg);
12418 arch = saved;
12419 /* Allow -march=+nosse. */
12420 if (*arch == '+')
12421 arch++;
12422 do
12423 {
12424 if (*arch == '.')
12425 as_fatal (_("invalid -march= option: `%s'"), arg);
12426 next = strchr (arch, '+');
12427 if (next)
12428 *next++ = '\0';
12429 for (j = 0; j < ARRAY_SIZE (cpu_arch); j++)
12430 {
12431 if (strcmp (arch, cpu_arch [j].name) == 0)
12432 {
12433 /* Processor. */
12434 if (! cpu_arch[j].flags.bitfield.cpui386)
12435 continue;
12436
12437 cpu_arch_name = cpu_arch[j].name;
12438 cpu_sub_arch_name = NULL;
12439 cpu_arch_flags = cpu_arch[j].flags;
12440 cpu_arch_isa = cpu_arch[j].type;
12441 cpu_arch_isa_flags = cpu_arch[j].flags;
12442 if (!cpu_arch_tune_set)
12443 {
12444 cpu_arch_tune = cpu_arch_isa;
12445 cpu_arch_tune_flags = cpu_arch_isa_flags;
12446 }
12447 break;
12448 }
12449 else if (*cpu_arch [j].name == '.'
12450 && strcmp (arch, cpu_arch [j].name + 1) == 0)
12451 {
12452 /* ISA extension. */
12453 i386_cpu_flags flags;
12454
12455 flags = cpu_flags_or (cpu_arch_flags,
12456 cpu_arch[j].flags);
12457
12458 if (!cpu_flags_equal (&flags, &cpu_arch_flags))
12459 {
12460 if (cpu_sub_arch_name)
12461 {
12462 char *name = cpu_sub_arch_name;
12463 cpu_sub_arch_name = concat (name,
12464 cpu_arch[j].name,
12465 (const char *) NULL);
12466 free (name);
12467 }
12468 else
12469 cpu_sub_arch_name = xstrdup (cpu_arch[j].name);
12470 cpu_arch_flags = flags;
12471 cpu_arch_isa_flags = flags;
12472 }
12473 else
12474 cpu_arch_isa_flags
12475 = cpu_flags_or (cpu_arch_isa_flags,
12476 cpu_arch[j].flags);
12477 break;
12478 }
12479 }
12480
12481 if (j >= ARRAY_SIZE (cpu_arch))
12482 {
12483 /* Disable an ISA extension. */
12484 for (j = 0; j < ARRAY_SIZE (cpu_noarch); j++)
12485 if (strcmp (arch, cpu_noarch [j].name) == 0)
12486 {
12487 i386_cpu_flags flags;
12488
12489 flags = cpu_flags_and_not (cpu_arch_flags,
12490 cpu_noarch[j].flags);
12491 if (!cpu_flags_equal (&flags, &cpu_arch_flags))
12492 {
12493 if (cpu_sub_arch_name)
12494 {
12495 char *name = cpu_sub_arch_name;
12496 cpu_sub_arch_name = concat (arch,
12497 (const char *) NULL);
12498 free (name);
12499 }
12500 else
12501 cpu_sub_arch_name = xstrdup (arch);
12502 cpu_arch_flags = flags;
12503 cpu_arch_isa_flags = flags;
12504 }
12505 break;
12506 }
12507
12508 if (j >= ARRAY_SIZE (cpu_noarch))
12509 j = ARRAY_SIZE (cpu_arch);
12510 }
12511
12512 if (j >= ARRAY_SIZE (cpu_arch))
12513 as_fatal (_("invalid -march= option: `%s'"), arg);
12514
12515 arch = next;
12516 }
12517 while (next != NULL);
12518 free (saved);
12519 break;
12520
12521 case OPTION_MTUNE:
12522 if (*arg == '.')
12523 as_fatal (_("invalid -mtune= option: `%s'"), arg);
12524 for (j = 0; j < ARRAY_SIZE (cpu_arch); j++)
12525 {
12526 if (strcmp (arg, cpu_arch [j].name) == 0)
12527 {
12528 cpu_arch_tune_set = 1;
12529 cpu_arch_tune = cpu_arch [j].type;
12530 cpu_arch_tune_flags = cpu_arch[j].flags;
12531 break;
12532 }
12533 }
12534 if (j >= ARRAY_SIZE (cpu_arch))
12535 as_fatal (_("invalid -mtune= option: `%s'"), arg);
12536 break;
12537
12538 case OPTION_MMNEMONIC:
12539 if (strcasecmp (arg, "att") == 0)
12540 intel_mnemonic = 0;
12541 else if (strcasecmp (arg, "intel") == 0)
12542 intel_mnemonic = 1;
12543 else
12544 as_fatal (_("invalid -mmnemonic= option: `%s'"), arg);
12545 break;
12546
12547 case OPTION_MSYNTAX:
12548 if (strcasecmp (arg, "att") == 0)
12549 intel_syntax = 0;
12550 else if (strcasecmp (arg, "intel") == 0)
12551 intel_syntax = 1;
12552 else
12553 as_fatal (_("invalid -msyntax= option: `%s'"), arg);
12554 break;
12555
12556 case OPTION_MINDEX_REG:
12557 allow_index_reg = 1;
12558 break;
12559
12560 case OPTION_MNAKED_REG:
12561 allow_naked_reg = 1;
12562 break;
12563
12564 case OPTION_MSSE2AVX:
12565 sse2avx = 1;
12566 break;
12567
12568 case OPTION_MSSE_CHECK:
12569 if (strcasecmp (arg, "error") == 0)
12570 sse_check = check_error;
12571 else if (strcasecmp (arg, "warning") == 0)
12572 sse_check = check_warning;
12573 else if (strcasecmp (arg, "none") == 0)
12574 sse_check = check_none;
12575 else
12576 as_fatal (_("invalid -msse-check= option: `%s'"), arg);
12577 break;
12578
12579 case OPTION_MOPERAND_CHECK:
12580 if (strcasecmp (arg, "error") == 0)
12581 operand_check = check_error;
12582 else if (strcasecmp (arg, "warning") == 0)
12583 operand_check = check_warning;
12584 else if (strcasecmp (arg, "none") == 0)
12585 operand_check = check_none;
12586 else
12587 as_fatal (_("invalid -moperand-check= option: `%s'"), arg);
12588 break;
12589
12590 case OPTION_MAVXSCALAR:
12591 if (strcasecmp (arg, "128") == 0)
12592 avxscalar = vex128;
12593 else if (strcasecmp (arg, "256") == 0)
12594 avxscalar = vex256;
12595 else
12596 as_fatal (_("invalid -mavxscalar= option: `%s'"), arg);
12597 break;
12598
12599 case OPTION_MVEXWIG:
12600 if (strcmp (arg, "0") == 0)
12601 vexwig = vexw0;
12602 else if (strcmp (arg, "1") == 0)
12603 vexwig = vexw1;
12604 else
12605 as_fatal (_("invalid -mvexwig= option: `%s'"), arg);
12606 break;
12607
12608 case OPTION_MADD_BND_PREFIX:
12609 add_bnd_prefix = 1;
12610 break;
12611
12612 case OPTION_MEVEXLIG:
12613 if (strcmp (arg, "128") == 0)
12614 evexlig = evexl128;
12615 else if (strcmp (arg, "256") == 0)
12616 evexlig = evexl256;
12617 else if (strcmp (arg, "512") == 0)
12618 evexlig = evexl512;
12619 else
12620 as_fatal (_("invalid -mevexlig= option: `%s'"), arg);
12621 break;
12622
12623 case OPTION_MEVEXRCIG:
12624 if (strcmp (arg, "rne") == 0)
12625 evexrcig = rne;
12626 else if (strcmp (arg, "rd") == 0)
12627 evexrcig = rd;
12628 else if (strcmp (arg, "ru") == 0)
12629 evexrcig = ru;
12630 else if (strcmp (arg, "rz") == 0)
12631 evexrcig = rz;
12632 else
12633 as_fatal (_("invalid -mevexrcig= option: `%s'"), arg);
12634 break;
12635
12636 case OPTION_MEVEXWIG:
12637 if (strcmp (arg, "0") == 0)
12638 evexwig = evexw0;
12639 else if (strcmp (arg, "1") == 0)
12640 evexwig = evexw1;
12641 else
12642 as_fatal (_("invalid -mevexwig= option: `%s'"), arg);
12643 break;
12644
12645 # if defined (TE_PE) || defined (TE_PEP)
12646 case OPTION_MBIG_OBJ:
12647 use_big_obj = 1;
12648 break;
12649 #endif
12650
12651 case OPTION_MOMIT_LOCK_PREFIX:
12652 if (strcasecmp (arg, "yes") == 0)
12653 omit_lock_prefix = 1;
12654 else if (strcasecmp (arg, "no") == 0)
12655 omit_lock_prefix = 0;
12656 else
12657 as_fatal (_("invalid -momit-lock-prefix= option: `%s'"), arg);
12658 break;
12659
12660 case OPTION_MFENCE_AS_LOCK_ADD:
12661 if (strcasecmp (arg, "yes") == 0)
12662 avoid_fence = 1;
12663 else if (strcasecmp (arg, "no") == 0)
12664 avoid_fence = 0;
12665 else
12666 as_fatal (_("invalid -mfence-as-lock-add= option: `%s'"), arg);
12667 break;
12668
12669 case OPTION_MRELAX_RELOCATIONS:
12670 if (strcasecmp (arg, "yes") == 0)
12671 generate_relax_relocations = 1;
12672 else if (strcasecmp (arg, "no") == 0)
12673 generate_relax_relocations = 0;
12674 else
12675 as_fatal (_("invalid -mrelax-relocations= option: `%s'"), arg);
12676 break;
12677
12678 case OPTION_MALIGN_BRANCH_BOUNDARY:
12679 {
12680 char *end;
12681 long int align = strtoul (arg, &end, 0);
12682 if (*end == '\0')
12683 {
12684 if (align == 0)
12685 {
12686 align_branch_power = 0;
12687 break;
12688 }
12689 else if (align >= 16)
12690 {
12691 int align_power;
12692 for (align_power = 0;
12693 (align & 1) == 0;
12694 align >>= 1, align_power++)
12695 continue;
12696 /* Limit alignment power to 31. */
12697 if (align == 1 && align_power < 32)
12698 {
12699 align_branch_power = align_power;
12700 break;
12701 }
12702 }
12703 }
12704 as_fatal (_("invalid -malign-branch-boundary= value: %s"), arg);
12705 }
12706 break;
12707
12708 case OPTION_MALIGN_BRANCH_PREFIX_SIZE:
12709 {
12710 char *end;
12711 int align = strtoul (arg, &end, 0);
12712 /* Some processors only support 5 prefixes. */
12713 if (*end == '\0' && align >= 0 && align < 6)
12714 {
12715 align_branch_prefix_size = align;
12716 break;
12717 }
12718 as_fatal (_("invalid -malign-branch-prefix-size= value: %s"),
12719 arg);
12720 }
12721 break;
12722
12723 case OPTION_MALIGN_BRANCH:
12724 align_branch = 0;
12725 saved = xstrdup (arg);
12726 type = saved;
12727 do
12728 {
12729 next = strchr (type, '+');
12730 if (next)
12731 *next++ = '\0';
12732 if (strcasecmp (type, "jcc") == 0)
12733 align_branch |= align_branch_jcc_bit;
12734 else if (strcasecmp (type, "fused") == 0)
12735 align_branch |= align_branch_fused_bit;
12736 else if (strcasecmp (type, "jmp") == 0)
12737 align_branch |= align_branch_jmp_bit;
12738 else if (strcasecmp (type, "call") == 0)
12739 align_branch |= align_branch_call_bit;
12740 else if (strcasecmp (type, "ret") == 0)
12741 align_branch |= align_branch_ret_bit;
12742 else if (strcasecmp (type, "indirect") == 0)
12743 align_branch |= align_branch_indirect_bit;
12744 else
12745 as_fatal (_("invalid -malign-branch= option: `%s'"), arg);
12746 type = next;
12747 }
12748 while (next != NULL);
12749 free (saved);
12750 break;
12751
12752 case OPTION_MBRANCHES_WITH_32B_BOUNDARIES:
12753 align_branch_power = 5;
12754 align_branch_prefix_size = 5;
12755 align_branch = (align_branch_jcc_bit
12756 | align_branch_fused_bit
12757 | align_branch_jmp_bit);
12758 break;
12759
12760 case OPTION_MAMD64:
12761 isa64 = amd64;
12762 break;
12763
12764 case OPTION_MINTEL64:
12765 isa64 = intel64;
12766 break;
12767
12768 case 'O':
12769 if (arg == NULL)
12770 {
12771 optimize = 1;
12772 /* Turn off -Os. */
12773 optimize_for_space = 0;
12774 }
12775 else if (*arg == 's')
12776 {
12777 optimize_for_space = 1;
12778 /* Turn on all encoding optimizations. */
12779 optimize = INT_MAX;
12780 }
12781 else
12782 {
12783 optimize = atoi (arg);
12784 /* Turn off -Os. */
12785 optimize_for_space = 0;
12786 }
12787 break;
12788
12789 default:
12790 return 0;
12791 }
12792 return 1;
12793 }
12794
12795 #define MESSAGE_TEMPLATE \
12796 " "
12797
12798 static char *
12799 output_message (FILE *stream, char *p, char *message, char *start,
12800 int *left_p, const char *name, int len)
12801 {
12802 int size = sizeof (MESSAGE_TEMPLATE);
12803 int left = *left_p;
12804
12805 /* Reserve 2 spaces for ", " or ",\0" */
12806 left -= len + 2;
12807
12808 /* Check if there is any room. */
12809 if (left >= 0)
12810 {
12811 if (p != start)
12812 {
12813 *p++ = ',';
12814 *p++ = ' ';
12815 }
12816 p = mempcpy (p, name, len);
12817 }
12818 else
12819 {
12820 /* Output the current message now and start a new one. */
12821 *p++ = ',';
12822 *p = '\0';
12823 fprintf (stream, "%s\n", message);
12824 p = start;
12825 left = size - (start - message) - len - 2;
12826
12827 gas_assert (left >= 0);
12828
12829 p = mempcpy (p, name, len);
12830 }
12831
12832 *left_p = left;
12833 return p;
12834 }
12835
12836 static void
12837 show_arch (FILE *stream, int ext, int check)
12838 {
12839 static char message[] = MESSAGE_TEMPLATE;
12840 char *start = message + 27;
12841 char *p;
12842 int size = sizeof (MESSAGE_TEMPLATE);
12843 int left;
12844 const char *name;
12845 int len;
12846 unsigned int j;
12847
12848 p = start;
12849 left = size - (start - message);
12850 for (j = 0; j < ARRAY_SIZE (cpu_arch); j++)
12851 {
12852 /* Should it be skipped? */
12853 if (cpu_arch [j].skip)
12854 continue;
12855
12856 name = cpu_arch [j].name;
12857 len = cpu_arch [j].len;
12858 if (*name == '.')
12859 {
12860 /* It is an extension. Skip if we aren't asked to show it. */
12861 if (ext)
12862 {
12863 name++;
12864 len--;
12865 }
12866 else
12867 continue;
12868 }
12869 else if (ext)
12870 {
12871 /* It is an processor. Skip if we show only extension. */
12872 continue;
12873 }
12874 else if (check && ! cpu_arch[j].flags.bitfield.cpui386)
12875 {
12876 /* It is an impossible processor - skip. */
12877 continue;
12878 }
12879
12880 p = output_message (stream, p, message, start, &left, name, len);
12881 }
12882
12883 /* Display disabled extensions. */
12884 if (ext)
12885 for (j = 0; j < ARRAY_SIZE (cpu_noarch); j++)
12886 {
12887 name = cpu_noarch [j].name;
12888 len = cpu_noarch [j].len;
12889 p = output_message (stream, p, message, start, &left, name,
12890 len);
12891 }
12892
12893 *p = '\0';
12894 fprintf (stream, "%s\n", message);
12895 }
12896
12897 void
12898 md_show_usage (FILE *stream)
12899 {
12900 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
12901 fprintf (stream, _("\
12902 -Qy, -Qn ignored\n\
12903 -V print assembler version number\n\
12904 -k ignored\n"));
12905 #endif
12906 fprintf (stream, _("\
12907 -n Do not optimize code alignment\n\
12908 -q quieten some warnings\n"));
12909 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
12910 fprintf (stream, _("\
12911 -s ignored\n"));
12912 #endif
12913 #if defined BFD64 && (defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF) \
12914 || defined (TE_PE) || defined (TE_PEP))
12915 fprintf (stream, _("\
12916 --32/--64/--x32 generate 32bit/64bit/x32 code\n"));
12917 #endif
12918 #ifdef SVR4_COMMENT_CHARS
12919 fprintf (stream, _("\
12920 --divide do not treat `/' as a comment character\n"));
12921 #else
12922 fprintf (stream, _("\
12923 --divide ignored\n"));
12924 #endif
12925 fprintf (stream, _("\
12926 -march=CPU[,+EXTENSION...]\n\
12927 generate code for CPU and EXTENSION, CPU is one of:\n"));
12928 show_arch (stream, 0, 1);
12929 fprintf (stream, _("\
12930 EXTENSION is combination of:\n"));
12931 show_arch (stream, 1, 0);
12932 fprintf (stream, _("\
12933 -mtune=CPU optimize for CPU, CPU is one of:\n"));
12934 show_arch (stream, 0, 0);
12935 fprintf (stream, _("\
12936 -msse2avx encode SSE instructions with VEX prefix\n"));
12937 fprintf (stream, _("\
12938 -msse-check=[none|error|warning] (default: warning)\n\
12939 check SSE instructions\n"));
12940 fprintf (stream, _("\
12941 -moperand-check=[none|error|warning] (default: warning)\n\
12942 check operand combinations for validity\n"));
12943 fprintf (stream, _("\
12944 -mavxscalar=[128|256] (default: 128)\n\
12945 encode scalar AVX instructions with specific vector\n\
12946 length\n"));
12947 fprintf (stream, _("\
12948 -mvexwig=[0|1] (default: 0)\n\
12949 encode VEX instructions with specific VEX.W value\n\
12950 for VEX.W bit ignored instructions\n"));
12951 fprintf (stream, _("\
12952 -mevexlig=[128|256|512] (default: 128)\n\
12953 encode scalar EVEX instructions with specific vector\n\
12954 length\n"));
12955 fprintf (stream, _("\
12956 -mevexwig=[0|1] (default: 0)\n\
12957 encode EVEX instructions with specific EVEX.W value\n\
12958 for EVEX.W bit ignored instructions\n"));
12959 fprintf (stream, _("\
12960 -mevexrcig=[rne|rd|ru|rz] (default: rne)\n\
12961 encode EVEX instructions with specific EVEX.RC value\n\
12962 for SAE-only ignored instructions\n"));
12963 fprintf (stream, _("\
12964 -mmnemonic=[att|intel] "));
12965 if (SYSV386_COMPAT)
12966 fprintf (stream, _("(default: att)\n"));
12967 else
12968 fprintf (stream, _("(default: intel)\n"));
12969 fprintf (stream, _("\
12970 use AT&T/Intel mnemonic\n"));
12971 fprintf (stream, _("\
12972 -msyntax=[att|intel] (default: att)\n\
12973 use AT&T/Intel syntax\n"));
12974 fprintf (stream, _("\
12975 -mindex-reg support pseudo index registers\n"));
12976 fprintf (stream, _("\
12977 -mnaked-reg don't require `%%' prefix for registers\n"));
12978 fprintf (stream, _("\
12979 -madd-bnd-prefix add BND prefix for all valid branches\n"));
12980 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
12981 fprintf (stream, _("\
12982 -mshared disable branch optimization for shared code\n"));
12983 fprintf (stream, _("\
12984 -mx86-used-note=[no|yes] "));
12985 if (DEFAULT_X86_USED_NOTE)
12986 fprintf (stream, _("(default: yes)\n"));
12987 else
12988 fprintf (stream, _("(default: no)\n"));
12989 fprintf (stream, _("\
12990 generate x86 used ISA and feature properties\n"));
12991 #endif
12992 #if defined (TE_PE) || defined (TE_PEP)
12993 fprintf (stream, _("\
12994 -mbig-obj generate big object files\n"));
12995 #endif
12996 fprintf (stream, _("\
12997 -momit-lock-prefix=[no|yes] (default: no)\n\
12998 strip all lock prefixes\n"));
12999 fprintf (stream, _("\
13000 -mfence-as-lock-add=[no|yes] (default: no)\n\
13001 encode lfence, mfence and sfence as\n\
13002 lock addl $0x0, (%%{re}sp)\n"));
13003 fprintf (stream, _("\
13004 -mrelax-relocations=[no|yes] "));
13005 if (DEFAULT_GENERATE_X86_RELAX_RELOCATIONS)
13006 fprintf (stream, _("(default: yes)\n"));
13007 else
13008 fprintf (stream, _("(default: no)\n"));
13009 fprintf (stream, _("\
13010 generate relax relocations\n"));
13011 fprintf (stream, _("\
13012 -malign-branch-boundary=NUM (default: 0)\n\
13013 align branches within NUM byte boundary\n"));
13014 fprintf (stream, _("\
13015 -malign-branch=TYPE[+TYPE...] (default: jcc+fused+jmp)\n\
13016 TYPE is combination of jcc, fused, jmp, call, ret,\n\
13017 indirect\n\
13018 specify types of branches to align\n"));
13019 fprintf (stream, _("\
13020 -malign-branch-prefix-size=NUM (default: 5)\n\
13021 align branches with NUM prefixes per instruction\n"));
13022 fprintf (stream, _("\
13023 -mbranches-within-32B-boundaries\n\
13024 align branches within 32 byte boundary\n"));
13025 fprintf (stream, _("\
13026 -mamd64 accept only AMD64 ISA [default]\n"));
13027 fprintf (stream, _("\
13028 -mintel64 accept only Intel64 ISA\n"));
13029 }
13030
13031 #if ((defined (OBJ_MAYBE_COFF) && defined (OBJ_MAYBE_AOUT)) \
13032 || defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF) \
13033 || defined (TE_PE) || defined (TE_PEP) || defined (OBJ_MACH_O))
13034
13035 /* Pick the target format to use. */
13036
13037 const char *
13038 i386_target_format (void)
13039 {
13040 if (!strncmp (default_arch, "x86_64", 6))
13041 {
13042 update_code_flag (CODE_64BIT, 1);
13043 if (default_arch[6] == '\0')
13044 x86_elf_abi = X86_64_ABI;
13045 else
13046 x86_elf_abi = X86_64_X32_ABI;
13047 }
13048 else if (!strcmp (default_arch, "i386"))
13049 update_code_flag (CODE_32BIT, 1);
13050 else if (!strcmp (default_arch, "iamcu"))
13051 {
13052 update_code_flag (CODE_32BIT, 1);
13053 if (cpu_arch_isa == PROCESSOR_UNKNOWN)
13054 {
13055 static const i386_cpu_flags iamcu_flags = CPU_IAMCU_FLAGS;
13056 cpu_arch_name = "iamcu";
13057 cpu_sub_arch_name = NULL;
13058 cpu_arch_flags = iamcu_flags;
13059 cpu_arch_isa = PROCESSOR_IAMCU;
13060 cpu_arch_isa_flags = iamcu_flags;
13061 if (!cpu_arch_tune_set)
13062 {
13063 cpu_arch_tune = cpu_arch_isa;
13064 cpu_arch_tune_flags = cpu_arch_isa_flags;
13065 }
13066 }
13067 else if (cpu_arch_isa != PROCESSOR_IAMCU)
13068 as_fatal (_("Intel MCU doesn't support `%s' architecture"),
13069 cpu_arch_name);
13070 }
13071 else
13072 as_fatal (_("unknown architecture"));
13073
13074 if (cpu_flags_all_zero (&cpu_arch_isa_flags))
13075 cpu_arch_isa_flags = cpu_arch[flag_code == CODE_64BIT].flags;
13076 if (cpu_flags_all_zero (&cpu_arch_tune_flags))
13077 cpu_arch_tune_flags = cpu_arch[flag_code == CODE_64BIT].flags;
13078
13079 switch (OUTPUT_FLAVOR)
13080 {
13081 #if defined (OBJ_MAYBE_AOUT) || defined (OBJ_AOUT)
13082 case bfd_target_aout_flavour:
13083 return AOUT_TARGET_FORMAT;
13084 #endif
13085 #if defined (OBJ_MAYBE_COFF) || defined (OBJ_COFF)
13086 # if defined (TE_PE) || defined (TE_PEP)
13087 case bfd_target_coff_flavour:
13088 if (flag_code == CODE_64BIT)
13089 return use_big_obj ? "pe-bigobj-x86-64" : "pe-x86-64";
13090 else
13091 return "pe-i386";
13092 # elif defined (TE_GO32)
13093 case bfd_target_coff_flavour:
13094 return "coff-go32";
13095 # else
13096 case bfd_target_coff_flavour:
13097 return "coff-i386";
13098 # endif
13099 #endif
13100 #if defined (OBJ_MAYBE_ELF) || defined (OBJ_ELF)
13101 case bfd_target_elf_flavour:
13102 {
13103 const char *format;
13104
13105 switch (x86_elf_abi)
13106 {
13107 default:
13108 format = ELF_TARGET_FORMAT;
13109 #ifndef TE_SOLARIS
13110 tls_get_addr = "___tls_get_addr";
13111 #endif
13112 break;
13113 case X86_64_ABI:
13114 use_rela_relocations = 1;
13115 object_64bit = 1;
13116 #ifndef TE_SOLARIS
13117 tls_get_addr = "__tls_get_addr";
13118 #endif
13119 format = ELF_TARGET_FORMAT64;
13120 break;
13121 case X86_64_X32_ABI:
13122 use_rela_relocations = 1;
13123 object_64bit = 1;
13124 #ifndef TE_SOLARIS
13125 tls_get_addr = "__tls_get_addr";
13126 #endif
13127 disallow_64bit_reloc = 1;
13128 format = ELF_TARGET_FORMAT32;
13129 break;
13130 }
13131 if (cpu_arch_isa == PROCESSOR_L1OM)
13132 {
13133 if (x86_elf_abi != X86_64_ABI)
13134 as_fatal (_("Intel L1OM is 64bit only"));
13135 return ELF_TARGET_L1OM_FORMAT;
13136 }
13137 else if (cpu_arch_isa == PROCESSOR_K1OM)
13138 {
13139 if (x86_elf_abi != X86_64_ABI)
13140 as_fatal (_("Intel K1OM is 64bit only"));
13141 return ELF_TARGET_K1OM_FORMAT;
13142 }
13143 else if (cpu_arch_isa == PROCESSOR_IAMCU)
13144 {
13145 if (x86_elf_abi != I386_ABI)
13146 as_fatal (_("Intel MCU is 32bit only"));
13147 return ELF_TARGET_IAMCU_FORMAT;
13148 }
13149 else
13150 return format;
13151 }
13152 #endif
13153 #if defined (OBJ_MACH_O)
13154 case bfd_target_mach_o_flavour:
13155 if (flag_code == CODE_64BIT)
13156 {
13157 use_rela_relocations = 1;
13158 object_64bit = 1;
13159 return "mach-o-x86-64";
13160 }
13161 else
13162 return "mach-o-i386";
13163 #endif
13164 default:
13165 abort ();
13166 return NULL;
13167 }
13168 }
13169
13170 #endif /* OBJ_MAYBE_ more than one */
13171 \f
13172 symbolS *
13173 md_undefined_symbol (char *name)
13174 {
13175 if (name[0] == GLOBAL_OFFSET_TABLE_NAME[0]
13176 && name[1] == GLOBAL_OFFSET_TABLE_NAME[1]
13177 && name[2] == GLOBAL_OFFSET_TABLE_NAME[2]
13178 && strcmp (name, GLOBAL_OFFSET_TABLE_NAME) == 0)
13179 {
13180 if (!GOT_symbol)
13181 {
13182 if (symbol_find (name))
13183 as_bad (_("GOT already in symbol table"));
13184 GOT_symbol = symbol_new (name, undefined_section,
13185 (valueT) 0, &zero_address_frag);
13186 };
13187 return GOT_symbol;
13188 }
13189 return 0;
13190 }
13191
13192 /* Round up a section size to the appropriate boundary. */
13193
13194 valueT
13195 md_section_align (segT segment ATTRIBUTE_UNUSED, valueT size)
13196 {
13197 #if (defined (OBJ_AOUT) || defined (OBJ_MAYBE_AOUT))
13198 if (OUTPUT_FLAVOR == bfd_target_aout_flavour)
13199 {
13200 /* For a.out, force the section size to be aligned. If we don't do
13201 this, BFD will align it for us, but it will not write out the
13202 final bytes of the section. This may be a bug in BFD, but it is
13203 easier to fix it here since that is how the other a.out targets
13204 work. */
13205 int align;
13206
13207 align = bfd_section_alignment (segment);
13208 size = ((size + (1 << align) - 1) & (-((valueT) 1 << align)));
13209 }
13210 #endif
13211
13212 return size;
13213 }
13214
13215 /* On the i386, PC-relative offsets are relative to the start of the
13216 next instruction. That is, the address of the offset, plus its
13217 size, since the offset is always the last part of the insn. */
13218
13219 long
13220 md_pcrel_from (fixS *fixP)
13221 {
13222 return fixP->fx_size + fixP->fx_where + fixP->fx_frag->fr_address;
13223 }
13224
13225 #ifndef I386COFF
13226
13227 static void
13228 s_bss (int ignore ATTRIBUTE_UNUSED)
13229 {
13230 int temp;
13231
13232 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
13233 if (IS_ELF)
13234 obj_elf_section_change_hook ();
13235 #endif
13236 temp = get_absolute_expression ();
13237 subseg_set (bss_section, (subsegT) temp);
13238 demand_empty_rest_of_line ();
13239 }
13240
13241 #endif
13242
13243 /* Remember constant directive. */
13244
13245 void
13246 i386_cons_align (int ignore ATTRIBUTE_UNUSED)
13247 {
13248 if (last_insn.kind != last_insn_directive
13249 && (bfd_section_flags (now_seg) & SEC_CODE))
13250 {
13251 last_insn.seg = now_seg;
13252 last_insn.kind = last_insn_directive;
13253 last_insn.name = "constant directive";
13254 last_insn.file = as_where (&last_insn.line);
13255 }
13256 }
13257
13258 void
13259 i386_validate_fix (fixS *fixp)
13260 {
13261 if (fixp->fx_subsy)
13262 {
13263 if (fixp->fx_subsy == GOT_symbol)
13264 {
13265 if (fixp->fx_r_type == BFD_RELOC_32_PCREL)
13266 {
13267 if (!object_64bit)
13268 abort ();
13269 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
13270 if (fixp->fx_tcbit2)
13271 fixp->fx_r_type = (fixp->fx_tcbit
13272 ? BFD_RELOC_X86_64_REX_GOTPCRELX
13273 : BFD_RELOC_X86_64_GOTPCRELX);
13274 else
13275 #endif
13276 fixp->fx_r_type = BFD_RELOC_X86_64_GOTPCREL;
13277 }
13278 else
13279 {
13280 if (!object_64bit)
13281 fixp->fx_r_type = BFD_RELOC_386_GOTOFF;
13282 else
13283 fixp->fx_r_type = BFD_RELOC_X86_64_GOTOFF64;
13284 }
13285 fixp->fx_subsy = 0;
13286 }
13287 }
13288 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
13289 else if (!object_64bit)
13290 {
13291 if (fixp->fx_r_type == BFD_RELOC_386_GOT32
13292 && fixp->fx_tcbit2)
13293 fixp->fx_r_type = BFD_RELOC_386_GOT32X;
13294 }
13295 #endif
13296 }
13297
13298 arelent *
13299 tc_gen_reloc (asection *section ATTRIBUTE_UNUSED, fixS *fixp)
13300 {
13301 arelent *rel;
13302 bfd_reloc_code_real_type code;
13303
13304 switch (fixp->fx_r_type)
13305 {
13306 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
13307 case BFD_RELOC_SIZE32:
13308 case BFD_RELOC_SIZE64:
13309 if (S_IS_DEFINED (fixp->fx_addsy)
13310 && !S_IS_EXTERNAL (fixp->fx_addsy))
13311 {
13312 /* Resolve size relocation against local symbol to size of
13313 the symbol plus addend. */
13314 valueT value = S_GET_SIZE (fixp->fx_addsy) + fixp->fx_offset;
13315 if (fixp->fx_r_type == BFD_RELOC_SIZE32
13316 && !fits_in_unsigned_long (value))
13317 as_bad_where (fixp->fx_file, fixp->fx_line,
13318 _("symbol size computation overflow"));
13319 fixp->fx_addsy = NULL;
13320 fixp->fx_subsy = NULL;
13321 md_apply_fix (fixp, (valueT *) &value, NULL);
13322 return NULL;
13323 }
13324 #endif
13325 /* Fall through. */
13326
13327 case BFD_RELOC_X86_64_PLT32:
13328 case BFD_RELOC_X86_64_GOT32:
13329 case BFD_RELOC_X86_64_GOTPCREL:
13330 case BFD_RELOC_X86_64_GOTPCRELX:
13331 case BFD_RELOC_X86_64_REX_GOTPCRELX:
13332 case BFD_RELOC_386_PLT32:
13333 case BFD_RELOC_386_GOT32:
13334 case BFD_RELOC_386_GOT32X:
13335 case BFD_RELOC_386_GOTOFF:
13336 case BFD_RELOC_386_GOTPC:
13337 case BFD_RELOC_386_TLS_GD:
13338 case BFD_RELOC_386_TLS_LDM:
13339 case BFD_RELOC_386_TLS_LDO_32:
13340 case BFD_RELOC_386_TLS_IE_32:
13341 case BFD_RELOC_386_TLS_IE:
13342 case BFD_RELOC_386_TLS_GOTIE:
13343 case BFD_RELOC_386_TLS_LE_32:
13344 case BFD_RELOC_386_TLS_LE:
13345 case BFD_RELOC_386_TLS_GOTDESC:
13346 case BFD_RELOC_386_TLS_DESC_CALL:
13347 case BFD_RELOC_X86_64_TLSGD:
13348 case BFD_RELOC_X86_64_TLSLD:
13349 case BFD_RELOC_X86_64_DTPOFF32:
13350 case BFD_RELOC_X86_64_DTPOFF64:
13351 case BFD_RELOC_X86_64_GOTTPOFF:
13352 case BFD_RELOC_X86_64_TPOFF32:
13353 case BFD_RELOC_X86_64_TPOFF64:
13354 case BFD_RELOC_X86_64_GOTOFF64:
13355 case BFD_RELOC_X86_64_GOTPC32:
13356 case BFD_RELOC_X86_64_GOT64:
13357 case BFD_RELOC_X86_64_GOTPCREL64:
13358 case BFD_RELOC_X86_64_GOTPC64:
13359 case BFD_RELOC_X86_64_GOTPLT64:
13360 case BFD_RELOC_X86_64_PLTOFF64:
13361 case BFD_RELOC_X86_64_GOTPC32_TLSDESC:
13362 case BFD_RELOC_X86_64_TLSDESC_CALL:
13363 case BFD_RELOC_RVA:
13364 case BFD_RELOC_VTABLE_ENTRY:
13365 case BFD_RELOC_VTABLE_INHERIT:
13366 #ifdef TE_PE
13367 case BFD_RELOC_32_SECREL:
13368 #endif
13369 code = fixp->fx_r_type;
13370 break;
13371 case BFD_RELOC_X86_64_32S:
13372 if (!fixp->fx_pcrel)
13373 {
13374 /* Don't turn BFD_RELOC_X86_64_32S into BFD_RELOC_32. */
13375 code = fixp->fx_r_type;
13376 break;
13377 }
13378 /* Fall through. */
13379 default:
13380 if (fixp->fx_pcrel)
13381 {
13382 switch (fixp->fx_size)
13383 {
13384 default:
13385 as_bad_where (fixp->fx_file, fixp->fx_line,
13386 _("can not do %d byte pc-relative relocation"),
13387 fixp->fx_size);
13388 code = BFD_RELOC_32_PCREL;
13389 break;
13390 case 1: code = BFD_RELOC_8_PCREL; break;
13391 case 2: code = BFD_RELOC_16_PCREL; break;
13392 case 4: code = BFD_RELOC_32_PCREL; break;
13393 #ifdef BFD64
13394 case 8: code = BFD_RELOC_64_PCREL; break;
13395 #endif
13396 }
13397 }
13398 else
13399 {
13400 switch (fixp->fx_size)
13401 {
13402 default:
13403 as_bad_where (fixp->fx_file, fixp->fx_line,
13404 _("can not do %d byte relocation"),
13405 fixp->fx_size);
13406 code = BFD_RELOC_32;
13407 break;
13408 case 1: code = BFD_RELOC_8; break;
13409 case 2: code = BFD_RELOC_16; break;
13410 case 4: code = BFD_RELOC_32; break;
13411 #ifdef BFD64
13412 case 8: code = BFD_RELOC_64; break;
13413 #endif
13414 }
13415 }
13416 break;
13417 }
13418
13419 if ((code == BFD_RELOC_32
13420 || code == BFD_RELOC_32_PCREL
13421 || code == BFD_RELOC_X86_64_32S)
13422 && GOT_symbol
13423 && fixp->fx_addsy == GOT_symbol)
13424 {
13425 if (!object_64bit)
13426 code = BFD_RELOC_386_GOTPC;
13427 else
13428 code = BFD_RELOC_X86_64_GOTPC32;
13429 }
13430 if ((code == BFD_RELOC_64 || code == BFD_RELOC_64_PCREL)
13431 && GOT_symbol
13432 && fixp->fx_addsy == GOT_symbol)
13433 {
13434 code = BFD_RELOC_X86_64_GOTPC64;
13435 }
13436
13437 rel = XNEW (arelent);
13438 rel->sym_ptr_ptr = XNEW (asymbol *);
13439 *rel->sym_ptr_ptr = symbol_get_bfdsym (fixp->fx_addsy);
13440
13441 rel->address = fixp->fx_frag->fr_address + fixp->fx_where;
13442
13443 if (!use_rela_relocations)
13444 {
13445 /* HACK: Since i386 ELF uses Rel instead of Rela, encode the
13446 vtable entry to be used in the relocation's section offset. */
13447 if (fixp->fx_r_type == BFD_RELOC_VTABLE_ENTRY)
13448 rel->address = fixp->fx_offset;
13449 #if defined (OBJ_COFF) && defined (TE_PE)
13450 else if (fixp->fx_addsy && S_IS_WEAK (fixp->fx_addsy))
13451 rel->addend = fixp->fx_addnumber - (S_GET_VALUE (fixp->fx_addsy) * 2);
13452 else
13453 #endif
13454 rel->addend = 0;
13455 }
13456 /* Use the rela in 64bit mode. */
13457 else
13458 {
13459 if (disallow_64bit_reloc)
13460 switch (code)
13461 {
13462 case BFD_RELOC_X86_64_DTPOFF64:
13463 case BFD_RELOC_X86_64_TPOFF64:
13464 case BFD_RELOC_64_PCREL:
13465 case BFD_RELOC_X86_64_GOTOFF64:
13466 case BFD_RELOC_X86_64_GOT64:
13467 case BFD_RELOC_X86_64_GOTPCREL64:
13468 case BFD_RELOC_X86_64_GOTPC64:
13469 case BFD_RELOC_X86_64_GOTPLT64:
13470 case BFD_RELOC_X86_64_PLTOFF64:
13471 as_bad_where (fixp->fx_file, fixp->fx_line,
13472 _("cannot represent relocation type %s in x32 mode"),
13473 bfd_get_reloc_code_name (code));
13474 break;
13475 default:
13476 break;
13477 }
13478
13479 if (!fixp->fx_pcrel)
13480 rel->addend = fixp->fx_offset;
13481 else
13482 switch (code)
13483 {
13484 case BFD_RELOC_X86_64_PLT32:
13485 case BFD_RELOC_X86_64_GOT32:
13486 case BFD_RELOC_X86_64_GOTPCREL:
13487 case BFD_RELOC_X86_64_GOTPCRELX:
13488 case BFD_RELOC_X86_64_REX_GOTPCRELX:
13489 case BFD_RELOC_X86_64_TLSGD:
13490 case BFD_RELOC_X86_64_TLSLD:
13491 case BFD_RELOC_X86_64_GOTTPOFF:
13492 case BFD_RELOC_X86_64_GOTPC32_TLSDESC:
13493 case BFD_RELOC_X86_64_TLSDESC_CALL:
13494 rel->addend = fixp->fx_offset - fixp->fx_size;
13495 break;
13496 default:
13497 rel->addend = (section->vma
13498 - fixp->fx_size
13499 + fixp->fx_addnumber
13500 + md_pcrel_from (fixp));
13501 break;
13502 }
13503 }
13504
13505 rel->howto = bfd_reloc_type_lookup (stdoutput, code);
13506 if (rel->howto == NULL)
13507 {
13508 as_bad_where (fixp->fx_file, fixp->fx_line,
13509 _("cannot represent relocation type %s"),
13510 bfd_get_reloc_code_name (code));
13511 /* Set howto to a garbage value so that we can keep going. */
13512 rel->howto = bfd_reloc_type_lookup (stdoutput, BFD_RELOC_32);
13513 gas_assert (rel->howto != NULL);
13514 }
13515
13516 return rel;
13517 }
13518
13519 #include "tc-i386-intel.c"
13520
13521 void
13522 tc_x86_parse_to_dw2regnum (expressionS *exp)
13523 {
13524 int saved_naked_reg;
13525 char saved_register_dot;
13526
13527 saved_naked_reg = allow_naked_reg;
13528 allow_naked_reg = 1;
13529 saved_register_dot = register_chars['.'];
13530 register_chars['.'] = '.';
13531 allow_pseudo_reg = 1;
13532 expression_and_evaluate (exp);
13533 allow_pseudo_reg = 0;
13534 register_chars['.'] = saved_register_dot;
13535 allow_naked_reg = saved_naked_reg;
13536
13537 if (exp->X_op == O_register && exp->X_add_number >= 0)
13538 {
13539 if ((addressT) exp->X_add_number < i386_regtab_size)
13540 {
13541 exp->X_op = O_constant;
13542 exp->X_add_number = i386_regtab[exp->X_add_number]
13543 .dw2_regnum[flag_code >> 1];
13544 }
13545 else
13546 exp->X_op = O_illegal;
13547 }
13548 }
13549
13550 void
13551 tc_x86_frame_initial_instructions (void)
13552 {
13553 static unsigned int sp_regno[2];
13554
13555 if (!sp_regno[flag_code >> 1])
13556 {
13557 char *saved_input = input_line_pointer;
13558 char sp[][4] = {"esp", "rsp"};
13559 expressionS exp;
13560
13561 input_line_pointer = sp[flag_code >> 1];
13562 tc_x86_parse_to_dw2regnum (&exp);
13563 gas_assert (exp.X_op == O_constant);
13564 sp_regno[flag_code >> 1] = exp.X_add_number;
13565 input_line_pointer = saved_input;
13566 }
13567
13568 cfi_add_CFA_def_cfa (sp_regno[flag_code >> 1], -x86_cie_data_alignment);
13569 cfi_add_CFA_offset (x86_dwarf2_return_column, x86_cie_data_alignment);
13570 }
13571
13572 int
13573 x86_dwarf2_addr_size (void)
13574 {
13575 #if defined (OBJ_MAYBE_ELF) || defined (OBJ_ELF)
13576 if (x86_elf_abi == X86_64_X32_ABI)
13577 return 4;
13578 #endif
13579 return bfd_arch_bits_per_address (stdoutput) / 8;
13580 }
13581
13582 int
13583 i386_elf_section_type (const char *str, size_t len)
13584 {
13585 if (flag_code == CODE_64BIT
13586 && len == sizeof ("unwind") - 1
13587 && strncmp (str, "unwind", 6) == 0)
13588 return SHT_X86_64_UNWIND;
13589
13590 return -1;
13591 }
13592
13593 #ifdef TE_SOLARIS
13594 void
13595 i386_solaris_fix_up_eh_frame (segT sec)
13596 {
13597 if (flag_code == CODE_64BIT)
13598 elf_section_type (sec) = SHT_X86_64_UNWIND;
13599 }
13600 #endif
13601
13602 #ifdef TE_PE
13603 void
13604 tc_pe_dwarf2_emit_offset (symbolS *symbol, unsigned int size)
13605 {
13606 expressionS exp;
13607
13608 exp.X_op = O_secrel;
13609 exp.X_add_symbol = symbol;
13610 exp.X_add_number = 0;
13611 emit_expr (&exp, size);
13612 }
13613 #endif
13614
13615 #if defined (OBJ_ELF) || defined (OBJ_MAYBE_ELF)
13616 /* For ELF on x86-64, add support for SHF_X86_64_LARGE. */
13617
13618 bfd_vma
13619 x86_64_section_letter (int letter, const char **ptr_msg)
13620 {
13621 if (flag_code == CODE_64BIT)
13622 {
13623 if (letter == 'l')
13624 return SHF_X86_64_LARGE;
13625
13626 *ptr_msg = _("bad .section directive: want a,l,w,x,M,S,G,T in string");
13627 }
13628 else
13629 *ptr_msg = _("bad .section directive: want a,w,x,M,S,G,T in string");
13630 return -1;
13631 }
13632
13633 bfd_vma
13634 x86_64_section_word (char *str, size_t len)
13635 {
13636 if (len == 5 && flag_code == CODE_64BIT && CONST_STRNEQ (str, "large"))
13637 return SHF_X86_64_LARGE;
13638
13639 return -1;
13640 }
13641
13642 static void
13643 handle_large_common (int small ATTRIBUTE_UNUSED)
13644 {
13645 if (flag_code != CODE_64BIT)
13646 {
13647 s_comm_internal (0, elf_common_parse);
13648 as_warn (_(".largecomm supported only in 64bit mode, producing .comm"));
13649 }
13650 else
13651 {
13652 static segT lbss_section;
13653 asection *saved_com_section_ptr = elf_com_section_ptr;
13654 asection *saved_bss_section = bss_section;
13655
13656 if (lbss_section == NULL)
13657 {
13658 flagword applicable;
13659 segT seg = now_seg;
13660 subsegT subseg = now_subseg;
13661
13662 /* The .lbss section is for local .largecomm symbols. */
13663 lbss_section = subseg_new (".lbss", 0);
13664 applicable = bfd_applicable_section_flags (stdoutput);
13665 bfd_set_section_flags (lbss_section, applicable & SEC_ALLOC);
13666 seg_info (lbss_section)->bss = 1;
13667
13668 subseg_set (seg, subseg);
13669 }
13670
13671 elf_com_section_ptr = &_bfd_elf_large_com_section;
13672 bss_section = lbss_section;
13673
13674 s_comm_internal (0, elf_common_parse);
13675
13676 elf_com_section_ptr = saved_com_section_ptr;
13677 bss_section = saved_bss_section;
13678 }
13679 }
13680 #endif /* OBJ_ELF || OBJ_MAYBE_ELF */
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