Coverage Report

Created: 2026-10-02 09:53

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/binutils-gdb/opcodes/arc-dis.c
Line
Count
Source
1
/* Instruction printing code for the ARC.
2
   Copyright (C) 1994-2026 Free Software Foundation, Inc.
3
4
   Contributed by Claudiu Zissulescu (claziss@synopsys.com)
5
6
   This file is part of libopcodes.
7
8
   This library is free software; you can redistribute it and/or modify
9
   it under the terms of the GNU General Public License as published by
10
   the Free Software Foundation; either version 3, or (at your option)
11
   any later version.
12
13
   It is distributed in the hope that it will be useful, but WITHOUT
14
   ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
15
   or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public
16
   License for more details.
17
18
   You should have received a copy of the GNU General Public License
19
   along with this program; if not, write to the Free Software
20
   Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
21
   MA 02110-1301, USA.  */
22
23
#include "sysdep.h"
24
#include <stdio.h>
25
#include <assert.h>
26
#include "dis-asm.h"
27
#include "opcode/arc.h"
28
#include "elf/arc.h"
29
#include "arc-dis.h"
30
#include "arc-ext.h"
31
#include "elf-bfd.h"
32
#include "libiberty.h"
33
#include "opintl.h"
34
35
/* Structure used to iterate over, and extract the values for, operands of
36
   an opcode.  */
37
38
struct arc_operand_iterator
39
{
40
  /* The complete instruction value to extract operands from.  */
41
  unsigned long long insn;
42
43
  /* The LIMM if this is being tracked separately.  This field is only
44
     valid if we find the LIMM operand in the operand list.  */
45
  unsigned limm;
46
47
  /* The opcode this iterator is operating on.  */
48
  const struct arc_opcode *opcode;
49
50
  /* The index into the opcodes operand index list.  */
51
  const unsigned char *opidx;
52
};
53
54
/* A private data used by ARC decoder.  */
55
struct arc_disassemble_info
56
{
57
  /* The current disassembled arc opcode.  */
58
  const struct arc_opcode *opcode;
59
60
  /* Instruction length w/o limm field.  */
61
  unsigned insn_len;
62
63
  /* TRUE if we have limm.  */
64
  bool limm_p;
65
66
  /* LIMM value, if exists.  */
67
  unsigned limm;
68
69
  /* Condition code, if exists.  */
70
  unsigned condition_code;
71
72
  /* Writeback mode.  */
73
  unsigned writeback_mode;
74
75
  /* Number of operands.  */
76
  unsigned operands_count;
77
78
  struct arc_insn_operand operands[MAX_INSN_ARGS];
79
80
  /* Classes of extension instructions to be considered.  */
81
#define MAX_DECODES 25
82
  struct
83
  {
84
    insn_class_t insn_class;
85
    insn_subclass_t subclass;
86
  } decode[MAX_DECODES];
87
88
  /* Current size of the above array.  */
89
  unsigned decode_count;
90
91
  /* ISA mask value via disassembler info options, or bfd.  */
92
  unsigned isa_mask;
93
94
  /* True if we want to print using only hex numbers.  */
95
  bool print_hex;
96
};
97
98
/* Globals variables.  */
99
100
static const char * const regnames[64] =
101
{
102
  "r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7",
103
  "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15",
104
  "r16", "r17", "r18", "r19", "r20", "r21", "r22", "r23",
105
  "r24", "r25", "gp", "fp", "sp", "ilink", "r30", "blink",
106
107
  "r32", "r33", "r34", "r35", "r36", "r37", "r38", "r39",
108
  "r40", "r41", "r42", "r43", "r44", "r45", "r46", "r47",
109
  "r48", "r49", "r50", "r51", "r52", "r53", "r54", "r55",
110
  "r56", "r57", "r58", "r59", "lp_count", "reserved", "LIMM", "pcl"
111
};
112
113
static const char * const addrtypenames[ARC_NUM_ADDRTYPES] =
114
{
115
  "bd", "jid", "lbd", "mbd", "sd", "sm", "xa", "xd",
116
  "cd", "cbd", "cjid", "clbd", "cm", "csd", "cxa", "cxd"
117
};
118
119
/* Macros section.  */
120
121
#ifdef DEBUG
122
# define pr_debug(fmt, args...) fprintf (stderr, fmt, ##args)
123
#else
124
# define pr_debug(fmt, args...)
125
#endif
126
127
#define ARRANGE_ENDIAN(info, buf)         \
128
386k
  (info->endian == BFD_ENDIAN_LITTLE ? bfd_getm32 (bfd_getl32 (buf))  \
129
386k
   : bfd_getb32 (buf))
130
131
917k
#define BITS(word,s,e)  (((word) >> (s)) & ((1ull << ((e) - (s)) << 1) - 1))
132
917k
#define OPCODE_32BIT_INSN(word) (BITS ((word), 27, 31))
133
134
/* Functions implementation.  */
135
136
/* Initialize private data.  */
137
static bool
138
init_arc_disasm_info (struct disassemble_info *info)
139
3.75k
{
140
3.75k
  struct arc_disassemble_info *arc_infop = calloc (1, sizeof (*arc_infop));
141
142
3.75k
  info->private_data = arc_infop;
143
3.75k
  return arc_infop != NULL;
144
3.75k
}
145
146
/* Add a new element to the decode list.  */
147
148
static void
149
add_to_decode (struct arc_disassemble_info *arc_infop,
150
         insn_class_t insn_class,
151
         insn_subclass_t subclass)
152
14.8k
{
153
14.8k
  unsigned int i;
154
125k
  for (i = 0; i < arc_infop->decode_count; i++)
155
118k
    if (arc_infop->decode[i].insn_class == insn_class
156
17.2k
  && arc_infop->decode[i].subclass == subclass)
157
8.69k
      return;
158
159
14.8k
  assert (i < MAX_DECODES);
160
6.19k
  arc_infop->decode[i].insn_class = insn_class;
161
6.19k
  arc_infop->decode[i].subclass = subclass;
162
6.19k
  arc_infop->decode_count = i + 1;
163
6.19k
}
164
165
/* Return TRUE if we need to skip the opcode from being
166
   disassembled.  */
167
168
static bool
169
skip_this_opcode (struct disassemble_info *info, const struct arc_opcode *opcode)
170
287k
{
171
  /* Check opcode for major 0x06, return if it is not in.  */
172
287k
  if (arc_opcode_len (opcode) == 4
173
287k
      && (OPCODE_32BIT_INSN (opcode->opcode) != 0x06
174
    /* Can be an APEX extensions.  */
175
272k
    && OPCODE_32BIT_INSN (opcode->opcode) != 0x07))
176
267k
    return false;
177
178
  /* or not a known truble class.  */
179
19.6k
  switch (opcode->insn_class)
180
19.6k
    {
181
10.1k
    case FLOAT:
182
13.2k
    case DSP:
183
15.7k
    case ARITH:
184
16.4k
    case MPY:
185
16.4k
      break;
186
3.25k
    default:
187
3.25k
      return false;
188
19.6k
    }
189
190
16.4k
  struct arc_disassemble_info *arc_infop = info->private_data;
191
23.7k
  for (unsigned int i = 0; i < arc_infop->decode_count; i++)
192
8.09k
    if (arc_infop->decode[i].insn_class == opcode->insn_class
193
2.67k
  && arc_infop->decode[i].subclass == opcode->subclass)
194
751
      return false;
195
196
15.6k
  return true;
197
16.4k
}
198
199
static bfd_vma
200
bfd_getm32 (unsigned int data)
201
261k
{
202
261k
  bfd_vma value = 0;
203
204
261k
  value = ((data & 0xff00) | (data & 0xff)) << 16;
205
261k
  value |= ((data & 0xff0000) | (data & 0xff000000)) >> 16;
206
261k
  return value;
207
261k
}
208
209
static bool
210
special_flag_p (const char *opname,
211
    const char *flgname)
212
182k
{
213
182k
  const struct arc_flag_special *flg_spec;
214
182k
  unsigned i, j, flgidx;
215
216
1.48M
  for (i = 0; i < arc_num_flag_special; i++)
217
1.35M
    {
218
1.35M
      flg_spec = &arc_flag_special_cases[i];
219
220
1.35M
      if (strcmp (opname, flg_spec->name))
221
1.22M
  continue;
222
223
      /* Found potential special case instruction.  */
224
1.88M
      for (j=0;; ++j)
225
2.01M
  {
226
2.01M
    flgidx = flg_spec->flags[j];
227
2.01M
    if (flgidx == 0)
228
75.6k
      break; /* End of the array.  */
229
230
1.93M
    if (strcmp (flgname, arc_flag_operands[flgidx].name) == 0)
231
52.4k
      return true;
232
1.93M
  }
233
128k
    }
234
130k
  return false;
235
182k
}
236
237
/* Find opcode from ARC_TABLE given the instruction described by INSN and
238
   INSNLEN.  The ISA_MASK restricts the possible matches in ARC_TABLE.  */
239
240
static const struct arc_opcode *
241
find_format_from_table (struct disassemble_info *info,
242
      const struct arc_opcode *arc_table,
243
                        unsigned long long insn,
244
      unsigned int insn_len,
245
                        unsigned isa_mask,
246
      bool *has_limm,
247
      bool overlaps)
248
824k
{
249
824k
  unsigned int i = 0;
250
824k
  const struct arc_opcode *opcode = NULL;
251
824k
  const struct arc_opcode *t_op = NULL;
252
824k
  const unsigned char *opidx;
253
824k
  const unsigned char *flgidx;
254
824k
  bool warn_p = false;
255
256
824k
  do
257
2.29G
    {
258
2.29G
      bool invalid = false;
259
260
2.29G
      opcode = &arc_table[i++];
261
262
2.29G
      if (!(opcode->cpu & isa_mask))
263
1.16G
  continue;
264
265
1.12G
      if (arc_opcode_len (opcode) != (int) insn_len)
266
622M
  continue;
267
268
507M
      if ((insn & opcode->mask) != opcode->opcode)
269
506M
  continue;
270
271
764k
      *has_limm = false;
272
273
      /* Possible candidate, check the operands.  */
274
3.00M
      for (opidx = opcode->operands; *opidx; opidx++)
275
2.25M
  {
276
2.25M
    int value, limmind;
277
2.25M
    const struct arc_operand *operand = &arc_operands[*opidx];
278
279
2.25M
    if (operand->flags & ARC_OPERAND_FAKE)
280
488k
      continue;
281
282
1.76M
    if (operand->extract)
283
1.51M
      value = (*operand->extract) (insn, &invalid);
284
256k
    else
285
256k
      value = (insn >> operand->shift) & ((1ull << operand->bits) - 1);
286
287
    /* Check for LIMM indicator.  If it is there, then make sure
288
       we pick the right format.  */
289
1.76M
    limmind = (isa_mask & ARC_OPCODE_ARCV2) ? 0x1E : 0x3E;
290
1.76M
    if (operand->flags & ARC_OPERAND_IR
291
963k
        && !(operand->flags & ARC_OPERAND_LIMM))
292
963k
      {
293
963k
        if ((value == 0x3E && insn_len == 4)
294
950k
      || (value == limmind && insn_len == 2))
295
14.1k
    {
296
14.1k
      invalid = true;
297
14.1k
      break;
298
14.1k
    }
299
963k
      }
300
301
1.75M
    if (operand->flags & ARC_OPERAND_LIMM
302
10.9k
        && !(operand->flags & ARC_OPERAND_DUPLICATE))
303
8.61k
      *has_limm = true;
304
1.75M
  }
305
306
      /* Check the flags.  */
307
1.41M
      for (flgidx = opcode->flags; *flgidx; flgidx++)
308
661k
  {
309
    /* Get a valid flag class.  */
310
661k
    const struct arc_flag_class *cl_flags = &arc_flag_classes[*flgidx];
311
661k
    const unsigned *flgopridx;
312
661k
    int foundA = 0, foundB = 0;
313
661k
    unsigned int value;
314
315
    /* Check first the extensions.  */
316
661k
    if (cl_flags->flag_class & F_CLASS_EXTEND)
317
133k
      {
318
133k
        value = (insn & 0x1F);
319
133k
        if (arcExtMap_condCodeName (value))
320
0
    continue;
321
133k
      }
322
323
    /* Check for the implicit flags.  */
324
661k
    if (cl_flags->flag_class & F_CLASS_IMPLICIT)
325
131k
      continue;
326
327
5.30M
    for (flgopridx = cl_flags->flags; *flgopridx; ++flgopridx)
328
4.78M
      {
329
4.78M
        const struct arc_flag_operand *flg_operand =
330
4.78M
    &arc_flag_operands[*flgopridx];
331
332
4.78M
        value = (insn >> flg_operand->shift)
333
4.78M
    & ((1 << flg_operand->bits) - 1);
334
4.78M
        if (value == flg_operand->code)
335
640k
    foundA = 1;
336
4.78M
        if (value)
337
2.18M
    foundB = 1;
338
4.78M
      }
339
340
529k
    if (!foundA && foundB)
341
8.68k
      {
342
8.68k
        invalid = true;
343
8.68k
        break;
344
8.68k
      }
345
529k
  }
346
347
764k
      if (invalid)
348
29.3k
  continue;
349
350
735k
      if (insn_len == 4
351
287k
    && overlaps)
352
287k
  {
353
287k
    warn_p = true;
354
287k
    t_op = opcode;
355
287k
    if (skip_this_opcode (info, opcode))
356
15.6k
      continue;
357
287k
  }
358
359
      /* The instruction is valid.  */
360
719k
      return opcode;
361
735k
    }
362
2.29G
  while (opcode->mask);
363
364
104k
  if (warn_p)
365
13.4k
    {
366
13.4k
      info->fprintf_styled_func
367
13.4k
  (info->stream, dis_style_text,
368
13.4k
   _("\nWarning: disassembly may be wrong due to "
369
13.4k
     "guessed opcode class choice.\n"
370
13.4k
     "Use -M<class[,class]> to select the correct "
371
13.4k
     "opcode class(es).\n\t\t\t\t"));
372
13.4k
      return t_op;
373
13.4k
    }
374
375
91.4k
  return NULL;
376
104k
}
377
378
/* Find opcode for INSN, trying various different sources.  The instruction
379
   length in INSN_LEN will be updated if the instruction requires a LIMM
380
   extension.
381
382
   A pointer to the opcode is placed into OPCODE_RESULT, and ITER is
383
   initialised, ready to iterate over the operands of the found opcode.  If
384
   the found opcode requires a LIMM then the LIMM value will be loaded into a
385
   field of ITER.
386
387
   This function returns TRUE in almost all cases, FALSE is reserved to
388
   indicate an error (failing to find an opcode is not an error) a returned
389
   result of FALSE would indicate that the disassembler can't continue.
390
391
   If no matching opcode is found then the returned result will be TRUE, the
392
   value placed into OPCODE_RESULT will be NULL, ITER will be undefined, and
393
   INSN_LEN will be unchanged.
394
395
   If a matching opcode is found, then the returned result will be TRUE, the
396
   opcode pointer is placed into OPCODE_RESULT, INSN_LEN will be increased by
397
   4 if the instruction requires a LIMM, and the LIMM value will have been
398
   loaded into a field of ITER.  Finally, ITER will have been initialised so
399
   that calls to OPERAND_ITERATOR_NEXT will iterate over the opcode's
400
   operands.  */
401
402
static bool
403
find_format (bfd_vma                       memaddr,
404
       unsigned long long            insn,
405
       unsigned int *                insn_len,
406
             unsigned                      isa_mask,
407
       struct disassemble_info *     info,
408
             const struct arc_opcode **    opcode_result,
409
             struct arc_operand_iterator * iter)
410
824k
{
411
824k
  const struct arc_opcode *opcode = NULL;
412
824k
  bool needs_limm = false;
413
824k
  const extInstruction_t *einsn, *i;
414
824k
  unsigned limm = 0;
415
824k
  struct arc_disassemble_info *arc_infop = info->private_data;
416
417
  /* First, try the extension instructions.  */
418
824k
  if (*insn_len == 4)
419
358k
    {
420
358k
      einsn = arcExtMap_insn (OPCODE_32BIT_INSN (insn), insn);
421
358k
      for (i = einsn; (i != NULL) && (opcode == NULL); i = i->next)
422
0
  {
423
0
    const char *errmsg = NULL;
424
425
0
    opcode = arcExtMap_genOpcode (i, isa_mask, &errmsg);
426
0
    if (opcode == NULL)
427
0
      {
428
0
        (*info->fprintf_styled_func)
429
0
    (info->stream, dis_style_text,
430
0
     _("An error occurred while generating "
431
0
       "the extension instruction operations"));
432
0
        *opcode_result = NULL;
433
0
        return false;
434
0
      }
435
436
0
    opcode = find_format_from_table (info, opcode, insn, *insn_len,
437
0
             isa_mask, &needs_limm, false);
438
0
  }
439
358k
    }
440
441
  /* Then, try finding the first match in the opcode table.  */
442
824k
  if (opcode == NULL)
443
824k
    opcode = find_format_from_table (info, arc_opcodes, insn, *insn_len,
444
824k
             isa_mask, &needs_limm, true);
445
446
824k
  if (opcode != NULL && needs_limm)
447
5.66k
    {
448
5.66k
      bfd_byte buffer[4];
449
5.66k
      int status;
450
451
5.66k
      status = (*info->read_memory_func) (memaddr + *insn_len, buffer,
452
5.66k
                                          4, info);
453
5.66k
      if (status != 0)
454
154
        {
455
154
          opcode = NULL;
456
154
        }
457
5.51k
      else
458
5.51k
        {
459
5.51k
          limm = ARRANGE_ENDIAN (info, buffer);
460
5.51k
          *insn_len += 4;
461
5.51k
        }
462
5.66k
    }
463
464
824k
  if (opcode != NULL)
465
732k
    {
466
732k
      iter->insn = insn;
467
732k
      iter->limm = limm;
468
732k
      iter->opcode = opcode;
469
732k
      iter->opidx = opcode->operands;
470
732k
    }
471
472
824k
  *opcode_result = opcode;
473
474
  /* Update private data.  */
475
824k
  arc_infop->opcode = opcode;
476
824k
  arc_infop->limm = limm;
477
824k
  arc_infop->limm_p = needs_limm;
478
479
824k
  return true;
480
824k
}
481
482
static void
483
print_flags (const struct arc_opcode *opcode,
484
       unsigned long long *insn,
485
       struct disassemble_info *info)
486
732k
{
487
732k
  const unsigned char *flgidx;
488
732k
  unsigned int value;
489
732k
  struct arc_disassemble_info *arc_infop = info->private_data;
490
491
  /* Now extract and print the flags.  */
492
1.36M
  for (flgidx = opcode->flags; *flgidx; flgidx++)
493
635k
    {
494
      /* Get a valid flag class.  */
495
635k
      const struct arc_flag_class *cl_flags = &arc_flag_classes[*flgidx];
496
635k
      const unsigned *flgopridx;
497
498
      /* Check first the extensions.  */
499
635k
      if (cl_flags->flag_class & F_CLASS_EXTEND)
500
131k
  {
501
131k
    const char *name;
502
131k
    value = (insn[0] & 0x1F);
503
504
131k
    name = arcExtMap_condCodeName (value);
505
131k
    if (name)
506
0
      {
507
0
        (*info->fprintf_styled_func) (info->stream, dis_style_mnemonic,
508
0
              ".%s", name);
509
0
        continue;
510
0
      }
511
131k
  }
512
513
5.41M
      for (flgopridx = cl_flags->flags; *flgopridx; ++flgopridx)
514
4.78M
  {
515
4.78M
    const struct arc_flag_operand *flg_operand =
516
4.78M
      &arc_flag_operands[*flgopridx];
517
518
    /* Implicit flags are only used for the insn decoder.  */
519
4.78M
    if (cl_flags->flag_class & F_CLASS_IMPLICIT)
520
131k
      {
521
131k
        if (cl_flags->flag_class & F_CLASS_COND)
522
36.1k
    arc_infop->condition_code = flg_operand->code;
523
95.1k
        else if (cl_flags->flag_class & F_CLASS_WB)
524
1.97k
    arc_infop->writeback_mode = flg_operand->code;
525
93.2k
        else if (cl_flags->flag_class & F_CLASS_ZZ)
526
93.2k
    info->data_size = flg_operand->code;
527
131k
        continue;
528
131k
      }
529
530
4.65M
    if (!flg_operand->favail)
531
1.81M
      continue;
532
533
2.83M
    value = (insn[0] >> flg_operand->shift)
534
2.83M
      & ((1 << flg_operand->bits) - 1);
535
2.83M
    if (value == flg_operand->code)
536
182k
      {
537
         /* FIXME!: print correctly nt/t flag.  */
538
182k
        if (!special_flag_p (opcode->name, flg_operand->name))
539
130k
    (*info->fprintf_styled_func) (info->stream,
540
130k
                dis_style_mnemonic, ".");
541
52.4k
        else if (info->insn_type == dis_dref)
542
15.9k
    {
543
15.9k
      switch (flg_operand->name[0])
544
15.9k
        {
545
6.11k
        case 'b':
546
6.11k
          info->data_size = 1;
547
6.11k
          break;
548
9.86k
        case 'h':
549
9.86k
        case 'w':
550
9.86k
          info->data_size = 2;
551
9.86k
          break;
552
0
        default:
553
0
          info->data_size = 4;
554
0
          break;
555
15.9k
        }
556
15.9k
    }
557
182k
        if (flg_operand->name[0] == 'd'
558
53.9k
      && flg_operand->name[1] == 0)
559
43.0k
    info->branch_delay_insns = 1;
560
561
        /* Check if it is a conditional flag.  */
562
182k
        if (cl_flags->flag_class & F_CLASS_COND)
563
40.2k
    {
564
40.2k
      if (info->insn_type == dis_jsr)
565
5.69k
        info->insn_type = dis_condjsr;
566
34.5k
      else if (info->insn_type == dis_branch)
567
30.9k
        info->insn_type = dis_condbranch;
568
40.2k
      arc_infop->condition_code = flg_operand->code;
569
40.2k
    }
570
571
        /* Check for the write back modes.  */
572
182k
        if (cl_flags->flag_class & F_CLASS_WB)
573
18.4k
    arc_infop->writeback_mode = flg_operand->code;
574
575
182k
        (*info->fprintf_styled_func) (info->stream, dis_style_mnemonic,
576
182k
              "%s", flg_operand->name);
577
182k
      }
578
2.83M
  }
579
635k
    }
580
732k
}
581
582
static const char *
583
get_auxreg (const struct arc_opcode *opcode,
584
      int value,
585
      unsigned isa_mask)
586
742k
{
587
742k
  const char *name;
588
742k
  unsigned int i;
589
742k
  const struct arc_aux_reg *auxr = &arc_aux_regs[0];
590
591
742k
  if (opcode->insn_class != AUXREG)
592
736k
    return NULL;
593
594
6.48k
  name = arcExtMap_auxRegName (value);
595
6.48k
  if (name)
596
0
    return name;
597
598
957k
  for (i = 0; i < arc_num_aux_regs; i++, auxr++)
599
956k
    {
600
956k
      if (!(auxr->cpu & isa_mask))
601
344k
  continue;
602
603
611k
      if (auxr->subclass != NONE)
604
1.95k
  return NULL;
605
606
609k
      if (auxr->address == value)
607
3.75k
  return auxr->name;
608
609k
    }
609
766
  return NULL;
610
6.48k
}
611
612
/* Convert a value representing an address type to a string used to refer to
613
   the address type in assembly code.  */
614
615
static const char *
616
get_addrtype (unsigned int value)
617
4.17k
{
618
4.17k
  if (value >= ARC_NUM_ADDRTYPES)
619
0
    return "unknown";
620
621
4.17k
  return addrtypenames[value];
622
4.17k
}
623
624
/* Calculate the instruction length for an instruction starting with MSB
625
   and LSB, the most and least significant byte.  The ISA_MASK is used to
626
   filter the instructions considered to only those that are part of the
627
   current architecture.
628
629
   The instruction lengths are calculated from the ARC_OPCODE table, and
630
   cached for later use.  */
631
632
static unsigned int
633
arc_insn_length (bfd_byte msb, bfd_byte lsb, struct disassemble_info *info)
634
824k
{
635
824k
  bfd_byte major_opcode = msb >> 3;
636
637
824k
  switch (info->mach)
638
824k
    {
639
443k
    case bfd_mach_arc_arc700:
640
      /* The nps400 extension set requires this special casing of the
641
   instruction length calculation.  Right now this is not causing any
642
   problems as none of the known extensions overlap in opcode space,
643
   but, if they ever do then we might need to start carrying
644
   information around in the elf about which extensions are in use.  */
645
443k
      if (major_opcode == 0xb)
646
21.6k
        {
647
21.6k
          bfd_byte minor_opcode = lsb & 0x1f;
648
649
21.6k
    if (minor_opcode < 4)
650
4.14k
      return 6;
651
17.4k
    else if (minor_opcode == 0x10 || minor_opcode == 0x11)
652
3.43k
      return 8;
653
21.6k
        }
654
436k
      if (major_opcode == 0xa)
655
6.07k
        {
656
6.07k
          return 8;
657
6.07k
        }
658
      /* Fall through.  */
659
482k
    case bfd_mach_arc_arc600:
660
482k
      return (major_opcode > 0xb) ? 2 : 4;
661
0
      break;
662
663
328k
    case bfd_mach_arc_arcv2:
664
328k
      return (major_opcode > 0x7) ? 2 : 4;
665
0
      break;
666
667
7
    default:
668
7
      return 0;
669
824k
    }
670
824k
}
671
672
/* Extract and return the value of OPERAND from the instruction whose value
673
   is held in the array INSN.  */
674
675
static int
676
extract_operand_value (const struct arc_operand *operand,
677
           unsigned long long insn,
678
           unsigned limm)
679
2.12M
{
680
2.12M
  int value;
681
682
  /* Read the limm operand, if required.  */
683
2.12M
  if (operand->flags & ARC_OPERAND_LIMM)
684
    /* The second part of the instruction value will have been loaded as
685
       part of the find_format call made earlier.  */
686
7.49k
    value = limm;
687
2.11M
  else
688
2.11M
    {
689
2.11M
      if (operand->extract)
690
1.43M
  value = (*operand->extract) (insn, (bool *) NULL);
691
675k
      else
692
675k
        {
693
675k
          if (operand->flags & ARC_OPERAND_ALIGNED32)
694
0
            {
695
0
              value = (insn >> operand->shift)
696
0
                & ((1 << (operand->bits - 2)) - 1);
697
0
              value = value << 2;
698
0
            }
699
675k
          else
700
675k
            {
701
675k
              value = (insn >> operand->shift) & ((1 << operand->bits) - 1);
702
675k
            }
703
675k
          if (operand->flags & ARC_OPERAND_SIGNED)
704
2.23k
            {
705
2.23k
              int signbit = 1 << (operand->bits - 1);
706
2.23k
              value = (value ^ signbit) - signbit;
707
2.23k
            }
708
675k
        }
709
2.11M
    }
710
711
2.12M
  return value;
712
2.12M
}
713
714
/* Find the next operand, and the operands value from ITER.  Return TRUE if
715
   there is another operand, otherwise return FALSE.  If there is an
716
   operand returned then the operand is placed into OPERAND, and the value
717
   into VALUE.  If there is no operand returned then OPERAND and VALUE are
718
   unchanged.  */
719
720
static bool
721
operand_iterator_next (struct arc_operand_iterator *iter,
722
                       const struct arc_operand **operand,
723
                       int *value)
724
2.85M
{
725
2.85M
  if (*iter->opidx == 0)
726
732k
    {
727
732k
      *operand = NULL;
728
732k
      return false;
729
732k
    }
730
731
2.12M
  *operand = &arc_operands[*iter->opidx];
732
2.12M
  *value = extract_operand_value (*operand, iter->insn, iter->limm);
733
2.12M
  iter->opidx++;
734
735
2.12M
  return true;
736
2.85M
}
737
738
/* Helper for parsing the options.  */
739
740
static void
741
parse_option (struct arc_disassemble_info *arc_infop, const char *option)
742
13.6k
{
743
13.6k
  if (strcmp (option, "dsp") == 0)
744
374
    add_to_decode (arc_infop, DSP, NONE);
745
746
13.3k
  else if (strcmp (option, "spfp") == 0)
747
322
    add_to_decode (arc_infop, FLOAT, SPX);
748
749
12.9k
  else if (strcmp (option, "dpfp") == 0)
750
382
    add_to_decode (arc_infop, FLOAT, DPX);
751
752
12.5k
  else if (strcmp (option, "quarkse_em") == 0)
753
278
    {
754
278
      add_to_decode (arc_infop, FLOAT, DPX);
755
278
      add_to_decode (arc_infop, FLOAT, SPX);
756
278
      add_to_decode (arc_infop, FLOAT, QUARKSE1);
757
278
      add_to_decode (arc_infop, FLOAT, QUARKSE2);
758
278
    }
759
760
12.3k
  else if (strcmp (option, "fpuda") == 0)
761
292
    add_to_decode (arc_infop, FLOAT, DPA);
762
763
12.0k
  else if (strcmp (option, "nps400") == 0)
764
742
    {
765
742
      add_to_decode (arc_infop, ACL, NPS400);
766
742
      add_to_decode (arc_infop, ARITH, NPS400);
767
742
      add_to_decode (arc_infop, BITOP, NPS400);
768
742
      add_to_decode (arc_infop, BMU, NPS400);
769
742
      add_to_decode (arc_infop, CONTROL, NPS400);
770
742
      add_to_decode (arc_infop, DMA, NPS400);
771
742
      add_to_decode (arc_infop, DPI, NPS400);
772
742
      add_to_decode (arc_infop, MEMORY, NPS400);
773
742
      add_to_decode (arc_infop, MISC, NPS400);
774
742
      add_to_decode (arc_infop, NET, NPS400);
775
742
      add_to_decode (arc_infop, PMU, NPS400);
776
742
      add_to_decode (arc_infop, PROTOCOL_DECODE, NPS400);
777
742
      add_to_decode (arc_infop, ULTRAIP, NPS400);
778
742
    }
779
780
11.2k
  else if (strcmp (option, "fpus") == 0)
781
542
    {
782
542
      add_to_decode (arc_infop, FLOAT, SP);
783
542
      add_to_decode (arc_infop, FLOAT, CVT);
784
542
    }
785
786
10.7k
  else if (strcmp (option, "fpud") == 0)
787
456
    {
788
456
      add_to_decode (arc_infop, FLOAT, DP);
789
456
      add_to_decode (arc_infop, FLOAT, CVT);
790
456
    }
791
10.2k
  else if (startswith (option, "hex"))
792
174
    arc_infop->print_hex = true;
793
10.1k
  else
794
    /* xgettext:c-format */
795
10.1k
    opcodes_error_handler (_("unrecognised disassembler option: %s"), option);
796
13.6k
}
797
798
#define ARC_CPU_TYPE_A6xx(NAME,EXTRA)     \
799
  { #NAME, ARC_OPCODE_ARC600, "ARC600" }
800
#define ARC_CPU_TYPE_A7xx(NAME,EXTRA)     \
801
  { #NAME, ARC_OPCODE_ARC700, "ARC700" }
802
#define ARC_CPU_TYPE_AV2EM(NAME,EXTRA)      \
803
  { #NAME,  ARC_OPCODE_ARCv2EM, "ARC EM" }
804
#define ARC_CPU_TYPE_AV2HS(NAME,EXTRA)      \
805
  { #NAME,  ARC_OPCODE_ARCv2HS, "ARC HS" }
806
#define ARC_CPU_TYPE_NONE       \
807
  { 0, 0, 0 }
808
809
/* A table of CPU names and opcode sets.  */
810
static const struct cpu_type
811
{
812
  const char *name;
813
  unsigned flags;
814
  const char *isa;
815
}
816
  cpu_types[] =
817
{
818
  #include "elf/arc-cpu.def"
819
};
820
821
/* Helper for parsing the CPU options.  Accept any of the ARC architectures
822
   values.  OPTION should be a value passed to cpu=.  */
823
824
static unsigned
825
parse_cpu_option (const char *option)
826
1.05k
{
827
1.05k
  int i;
828
829
23.6k
  for (i = 0; cpu_types[i].name; ++i)
830
22.8k
    if (strcmp (cpu_types[i].name, option) == 0)
831
292
      return cpu_types[i].flags;
832
833
  /* xgettext:c-format */
834
762
  opcodes_error_handler (_("unrecognised disassembler CPU option: %s"), option);
835
762
  return ARC_OPCODE_NONE;
836
1.05k
}
837
838
static bool
839
arc_parse_option (const char *option, void *data)
840
14.7k
{
841
14.7k
  struct arc_disassemble_info *arc_infop = data;
842
843
14.7k
  if (strncmp (option, "cpu=", 4) == 0)
844
    /* Strip leading `cpu=`.  */
845
1.05k
    arc_infop->isa_mask = parse_cpu_option (option + 4);
846
13.6k
  else
847
13.6k
    parse_option (arc_infop, option);
848
14.7k
  return true;
849
14.7k
}
850
851
/* Go over the options list and parse it.  */
852
853
static void
854
parse_disassembler_options (struct disassemble_info *info)
855
3.75k
{
856
3.75k
  struct arc_disassemble_info *arc_infop = info->private_data;
857
858
3.75k
  arc_infop->isa_mask = ARC_OPCODE_NONE;
859
860
3.75k
  for_each_disassembler_option (info, arc_parse_option, arc_infop);
861
862
  /* Figure out CPU type, unless it was enforced via disassembler options.  */
863
3.75k
  if (arc_infop->isa_mask == ARC_OPCODE_NONE)
864
3.53k
    {
865
3.53k
      switch (info->mach)
866
3.53k
  {
867
1.75k
  case bfd_mach_arc_arc700:
868
1.75k
    arc_infop->isa_mask = ARC_OPCODE_ARC700;
869
1.75k
    break;
870
871
270
  case bfd_mach_arc_arc600:
872
270
    arc_infop->isa_mask = ARC_OPCODE_ARC600;
873
270
    break;
874
875
1.20k
  case bfd_mach_arc_arcv2:
876
1.50k
  default:
877
1.50k
    {
878
1.50k
      Elf_Internal_Ehdr *header = NULL;
879
880
1.50k
      if (info->section && info->section->owner)
881
115
        header = elf_elfheader (info->section->owner);
882
1.50k
      arc_infop->isa_mask = ARC_OPCODE_ARCv2EM;
883
1.50k
      if (header != NULL
884
115
    && (header->e_flags & EF_ARC_MACH_MSK) == EF_ARC_CPU_ARCV2HS)
885
44
        arc_infop->isa_mask = ARC_OPCODE_ARCv2HS;
886
1.50k
    }
887
1.50k
    break;
888
3.53k
  }
889
3.53k
    }
890
891
3.75k
  if (arc_infop->isa_mask == ARC_OPCODE_ARCv2HS)
892
254
    {
893
      /* FPU instructions are not extensions for HS.  */
894
254
      add_to_decode (arc_infop, FLOAT, SP);
895
254
      add_to_decode (arc_infop, FLOAT, DP);
896
254
      add_to_decode (arc_infop, FLOAT, CVT);
897
254
    }
898
3.75k
}
899
900
/* Return the instruction type for an instruction described by OPCODE.  */
901
902
static enum dis_insn_type
903
arc_opcode_to_insn_type (const struct arc_opcode *opcode)
904
732k
{
905
732k
  enum dis_insn_type insn_type;
906
907
732k
  switch (opcode->insn_class)
908
732k
    {
909
265k
    case BRANCH:
910
267k
    case BBIT0:
911
271k
    case BBIT1:
912
272k
    case BI:
913
272k
    case BIH:
914
297k
    case BRCC:
915
297k
    case DBNZ:
916
306k
    case EI:
917
310k
    case JLI:
918
316k
    case JUMP:
919
317k
    case LOOP:
920
317k
      if (!strncmp (opcode->name, "bl", 2)
921
222k
    || !strncmp (opcode->name, "jl", 2))
922
100k
  {
923
100k
    if (opcode->subclass == COND)
924
2.48k
      insn_type = dis_condjsr;
925
98.3k
    else
926
98.3k
      insn_type = dis_jsr;
927
100k
  }
928
216k
      else
929
216k
  {
930
216k
    if (opcode->subclass == COND)
931
38.3k
      insn_type = dis_condbranch;
932
178k
    else
933
178k
      insn_type = dis_branch;
934
216k
  }
935
317k
      break;
936
146k
    case LOAD:
937
206k
    case STORE:
938
208k
    case MEMORY:
939
209k
    case ENTER:
940
209k
    case PUSH:
941
211k
    case POP:
942
211k
      insn_type = dis_dref;
943
211k
      break;
944
4.28k
    case LEAVE:
945
4.28k
      insn_type = dis_branch;
946
4.28k
      break;
947
200k
    default:
948
200k
      insn_type = dis_nonbranch;
949
200k
      break;
950
732k
    }
951
952
732k
  return insn_type;
953
732k
}
954
955
/* Disassemble ARC instructions.  */
956
957
static int
958
print_insn_arc (bfd_vma memaddr,
959
    struct disassemble_info *info)
960
835k
{
961
835k
  bfd_byte buffer[8];
962
835k
  unsigned int highbyte, lowbyte;
963
835k
  int status;
964
835k
  unsigned int insn_len;
965
835k
  unsigned long long insn = 0;
966
835k
  const struct arc_opcode *opcode;
967
835k
  bool need_comma;
968
835k
  bool open_braket;
969
835k
  int size;
970
835k
  const struct arc_operand *operand;
971
835k
  int value, vpcl;
972
835k
  struct arc_operand_iterator iter;
973
835k
  struct arc_disassemble_info *arc_infop;
974
835k
  bool rpcl = false, rset = false;
975
976
835k
  if (info->private_data == NULL)
977
3.75k
    {
978
3.75k
      if (!init_arc_disasm_info (info))
979
0
  return -1;
980
981
3.75k
      parse_disassembler_options (info);
982
3.75k
    }
983
984
835k
  memset (&iter, 0, sizeof (iter));
985
835k
  highbyte = info->endian == BFD_ENDIAN_LITTLE ? 1 : 0;
986
835k
  lowbyte = info->endian == BFD_ENDIAN_LITTLE ? 0 : 1;
987
988
  /* This variable may be set by the instruction decoder.  It suggests
989
     the number of bytes objdump should display on a single line.  If
990
     the instruction decoder sets this, it should always set it to
991
     the same value in order to get reasonable looking output.  */
992
835k
  info->bytes_per_line  = 8;
993
994
  /* In the next lines, we set two info variables control the way
995
     objdump displays the raw data.  For example, if bytes_per_line is
996
     8 and bytes_per_chunk is 4, the output will look like this:
997
     00:   00000000 00000000
998
     with the chunks displayed according to "display_endian".  */
999
835k
  if (info->section
1000
259k
      && !(info->section->flags & SEC_CODE))
1001
9.45k
    {
1002
      /* This is not a CODE section.  */
1003
9.45k
      switch (info->section->size)
1004
9.45k
  {
1005
3
  case 1:
1006
4
  case 2:
1007
6
  case 4:
1008
6
    size = info->section->size;
1009
6
    break;
1010
9.44k
  default:
1011
9.44k
    size = (info->section->size & 0x01) ? 1 : 4;
1012
9.44k
    break;
1013
9.45k
  }
1014
9.45k
      info->bytes_per_chunk = 1;
1015
9.45k
      info->display_endian = info->endian;
1016
9.45k
    }
1017
825k
  else
1018
825k
    {
1019
825k
      size = 2;
1020
825k
      info->bytes_per_chunk = 2;
1021
825k
      info->display_endian = info->endian;
1022
825k
    }
1023
1024
  /* Read the insn into a host word.  */
1025
835k
  status = (*info->read_memory_func) (memaddr, buffer, size, info);
1026
1027
835k
  if (status != 0)
1028
974
    {
1029
974
      (*info->memory_error_func) (status, memaddr, info);
1030
974
      return -1;
1031
974
    }
1032
1033
834k
  if (info->section
1034
259k
      && !(info->section->flags & SEC_CODE))
1035
9.45k
    {
1036
      /* Data section.  */
1037
9.45k
      unsigned long data;
1038
1039
9.45k
      data = bfd_get_bits (buffer, size * 8,
1040
9.45k
         info->display_endian == BFD_ENDIAN_BIG);
1041
9.45k
      switch (size)
1042
9.45k
  {
1043
6.72k
  case 1:
1044
6.72k
    (*info->fprintf_styled_func) (info->stream,
1045
6.72k
          dis_style_assembler_directive,
1046
6.72k
          ".byte");
1047
6.72k
    (*info->fprintf_styled_func) (info->stream, dis_style_text, "\t");
1048
6.72k
    (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1049
6.72k
          "0x%02lx", data);
1050
6.72k
    break;
1051
1
  case 2:
1052
1
    (*info->fprintf_styled_func) (info->stream,
1053
1
          dis_style_assembler_directive,
1054
1
          ".short");
1055
1
    (*info->fprintf_styled_func) (info->stream, dis_style_text, "\t");
1056
1
    (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1057
1
          "0x%04lx", data);
1058
1
    break;
1059
2.72k
  case 4:
1060
2.72k
    (*info->fprintf_styled_func) (info->stream,
1061
2.72k
          dis_style_assembler_directive,
1062
2.72k
          ".word");
1063
2.72k
    (*info->fprintf_styled_func) (info->stream, dis_style_text, "\t");
1064
2.72k
    (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1065
2.72k
          "0x%08lx", data);
1066
2.72k
    break;
1067
0
  default:
1068
0
    return -1;
1069
9.45k
  }
1070
9.45k
      return size;
1071
9.45k
    }
1072
1073
824k
  insn_len = arc_insn_length (buffer[highbyte], buffer[lowbyte], info);
1074
824k
  pr_debug ("instruction length = %d bytes\n", insn_len);
1075
824k
  if (insn_len == 0)
1076
7
    return -1;
1077
1078
824k
  arc_infop = info->private_data;
1079
824k
  arc_infop->insn_len = insn_len;
1080
1081
824k
  switch (insn_len)
1082
824k
    {
1083
452k
    case 2:
1084
452k
      insn = (buffer[highbyte] << 8) | buffer[lowbyte];
1085
452k
      break;
1086
1087
358k
    case 4:
1088
358k
      {
1089
  /* This is a long instruction: Read the remaning 2 bytes.  */
1090
358k
  status = (*info->read_memory_func) (memaddr + 2, &buffer[2], 2, info);
1091
358k
  if (status != 0)
1092
398
    {
1093
398
      (*info->memory_error_func) (status, memaddr + 2, info);
1094
398
      return -1;
1095
398
    }
1096
358k
  insn = (unsigned long long) ARRANGE_ENDIAN (info, buffer);
1097
358k
      }
1098
0
      break;
1099
1100
4.14k
    case 6:
1101
4.14k
      {
1102
4.14k
  status = (*info->read_memory_func) (memaddr + 2, &buffer[2], 4, info);
1103
4.14k
  if (status != 0)
1104
31
    {
1105
31
      (*info->memory_error_func) (status, memaddr + 2, info);
1106
31
      return -1;
1107
31
    }
1108
4.11k
  insn = (unsigned long long) ARRANGE_ENDIAN (info, &buffer[2]);
1109
4.11k
  insn |= ((unsigned long long) buffer[highbyte] << 40)
1110
4.11k
    | ((unsigned long long) buffer[lowbyte] << 32);
1111
4.11k
      }
1112
0
      break;
1113
1114
9.50k
    case 8:
1115
9.50k
      {
1116
9.50k
  status = (*info->read_memory_func) (memaddr + 2, &buffer[2], 6, info);
1117
9.50k
  if (status != 0)
1118
58
    {
1119
58
      (*info->memory_error_func) (status, memaddr + 2, info);
1120
58
      return -1;
1121
58
    }
1122
9.44k
  insn =
1123
9.44k
    ((((unsigned long long) ARRANGE_ENDIAN (info, buffer)) << 32)
1124
9.44k
     | ((unsigned long long) ARRANGE_ENDIAN (info, &buffer[4])));
1125
9.44k
      }
1126
0
      break;
1127
1128
0
    default:
1129
      /* There is no instruction whose length is not 2, 4, 6, or 8.  */
1130
0
      return -1;
1131
824k
    }
1132
1133
824k
  pr_debug ("instruction value = %llx\n", insn);
1134
1135
  /* Set some defaults for the insn info.  */
1136
824k
  info->insn_info_valid    = 1;
1137
824k
  info->branch_delay_insns = 0;
1138
824k
  info->data_size    = 4;
1139
824k
  info->insn_type    = dis_nonbranch;
1140
824k
  info->target       = 0;
1141
824k
  info->target2      = 0;
1142
1143
  /* FIXME to be moved in dissasemble_init_for_target.  */
1144
824k
  info->disassembler_needs_relocs = true;
1145
1146
  /* Find the first match in the opcode table.  */
1147
824k
  if (!find_format (memaddr, insn, &insn_len, arc_infop->isa_mask, info,
1148
824k
        &opcode, &iter))
1149
0
    return -1;
1150
1151
824k
  if (!opcode)
1152
91.5k
    {
1153
91.5k
      switch (insn_len)
1154
91.5k
  {
1155
11.6k
  case 2:
1156
11.6k
    (*info->fprintf_styled_func) (info->stream,
1157
11.6k
          dis_style_assembler_directive,
1158
11.6k
          ".short");
1159
11.6k
    (*info->fprintf_styled_func) (info->stream, dis_style_text, "\t");
1160
11.6k
    (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1161
11.6k
          "0x%04llx", insn & 0xffff);
1162
11.6k
    break;
1163
1164
73.3k
  case 4:
1165
73.3k
    (*info->fprintf_styled_func) (info->stream,
1166
73.3k
          dis_style_assembler_directive,
1167
73.3k
          ".word");
1168
73.3k
    (*info->fprintf_styled_func) (info->stream, dis_style_text, "\t");
1169
73.3k
    (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1170
73.3k
          "0x%08llx", insn & 0xffffffff);
1171
73.3k
    break;
1172
1173
722
  case 6:
1174
722
    (*info->fprintf_styled_func) (info->stream,
1175
722
          dis_style_assembler_directive,
1176
722
          ".long");
1177
722
    (*info->fprintf_styled_func) (info->stream, dis_style_text, "\t");
1178
722
    (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1179
722
               "0x%08llx", insn & 0xffffffff);
1180
722
    (*info->fprintf_styled_func) (info->stream, dis_style_text, " ");
1181
722
    (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1182
722
          "0x%04llx", (insn >> 32) & 0xffff);
1183
722
    break;
1184
1185
5.82k
  case 8:
1186
5.82k
    (*info->fprintf_styled_func) (info->stream,
1187
5.82k
          dis_style_assembler_directive,
1188
5.82k
          ".long");
1189
5.82k
    (*info->fprintf_styled_func) (info->stream, dis_style_text, "\t");
1190
5.82k
    (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1191
5.82k
          "0x%08llx", insn & 0xffffffff);
1192
5.82k
    (*info->fprintf_styled_func) (info->stream, dis_style_text, " ");
1193
5.82k
    (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1194
5.82k
          "0x%08llx", (insn >> 32));
1195
5.82k
    break;
1196
1197
0
  default:
1198
0
    return -1;
1199
91.5k
  }
1200
1201
91.5k
      info->insn_type = dis_noninsn;
1202
91.5k
      return insn_len;
1203
91.5k
    }
1204
1205
  /* Print the mnemonic.  */
1206
732k
  (*info->fprintf_styled_func) (info->stream, dis_style_mnemonic,
1207
732k
        "%s", opcode->name);
1208
1209
  /* Preselect the insn class.  */
1210
732k
  info->insn_type = arc_opcode_to_insn_type (opcode);
1211
1212
732k
  pr_debug ("%s: 0x%08llx\n", opcode->name, opcode->opcode);
1213
1214
732k
  print_flags (opcode, &insn, info);
1215
1216
732k
  if (opcode->operands[0] != 0)
1217
731k
    (*info->fprintf_styled_func) (info->stream, dis_style_text, "\t");
1218
1219
732k
  need_comma = false;
1220
732k
  open_braket = false;
1221
732k
  arc_infop->operands_count = 0;
1222
1223
  /* Now extract and print the operands.  */
1224
732k
  operand = NULL;
1225
732k
  vpcl = 0;
1226
2.85M
  while (operand_iterator_next (&iter, &operand, &value))
1227
2.12M
    {
1228
2.12M
      if (open_braket && (operand->flags & ARC_OPERAND_BRAKET))
1229
230k
  {
1230
230k
    (*info->fprintf_styled_func) (info->stream, dis_style_text, "]");
1231
230k
    open_braket = false;
1232
230k
    continue;
1233
230k
  }
1234
1235
      /* Only take input from real operands.  */
1236
1.89M
      if (ARC_OPERAND_IS_FAKE (operand))
1237
0
  continue;
1238
1239
1.89M
      if ((operand->flags & ARC_OPERAND_IGNORE)
1240
183k
    && (operand->flags & ARC_OPERAND_IR)
1241
13.7k
    && value == -1)
1242
8.52k
  continue;
1243
1244
1.88M
      if (operand->flags & ARC_OPERAND_COLON)
1245
4.17k
  {
1246
4.17k
    (*info->fprintf_styled_func) (info->stream, dis_style_text, ":");
1247
4.17k
    continue;
1248
4.17k
  }
1249
1250
1.87M
      if (need_comma)
1251
911k
  (*info->fprintf_styled_func) (info->stream, dis_style_text,",");
1252
1253
1.87M
      if (!open_braket && (operand->flags & ARC_OPERAND_BRAKET))
1254
230k
  {
1255
230k
    (*info->fprintf_styled_func) (info->stream, dis_style_text, "[");
1256
230k
    open_braket = true;
1257
230k
    need_comma = false;
1258
230k
    continue;
1259
230k
  }
1260
1261
1.64M
      need_comma = true;
1262
1263
1.64M
      if (operand->flags & ARC_OPERAND_PCREL)
1264
310k
  {
1265
310k
    rpcl = true;
1266
310k
    vpcl = value;
1267
310k
    rset = true;
1268
1269
310k
    info->target = (bfd_vma) (memaddr & ~3) + value;
1270
310k
  }
1271
1.33M
      else if (!(operand->flags & ARC_OPERAND_IR))
1272
441k
  {
1273
441k
    vpcl = value;
1274
441k
    rset = true;
1275
441k
  }
1276
1277
      /* Print the operand as directed by the flags.  */
1278
1.64M
      if (operand->flags & ARC_OPERAND_IR)
1279
895k
  {
1280
895k
    const char *rname;
1281
1282
895k
    assert (value >=0 && value < 64);
1283
895k
    rname = arcExtMap_coreRegName (value);
1284
895k
    if (!rname)
1285
895k
      rname = regnames[value];
1286
895k
    (*info->fprintf_styled_func) (info->stream, dis_style_register,
1287
895k
          "%s", rname);
1288
1289
    /* Check if we have a double register to print.  */
1290
895k
    if (operand->flags & ARC_OPERAND_TRUNCATE)
1291
2.09k
      {
1292
2.09k
        if ((value & 0x01) == 0)
1293
1.20k
    {
1294
1.20k
      rname = arcExtMap_coreRegName (value + 1);
1295
1.20k
      if (!rname)
1296
1.20k
        rname = regnames[value + 1];
1297
1.20k
    }
1298
896
        else
1299
896
    rname = _("\nWarning: illegal use of double register "
1300
2.09k
        "pair.\n");
1301
2.09k
        (*info->fprintf_styled_func) (info->stream, dis_style_register,
1302
2.09k
              "%s", rname);
1303
2.09k
      }
1304
895k
    if (value == 63)
1305
20.3k
      rpcl = true;
1306
875k
    else
1307
875k
      rpcl = false;
1308
895k
  }
1309
751k
      else if (operand->flags & ARC_OPERAND_LIMM)
1310
7.49k
  {
1311
7.49k
    const char *rname = get_auxreg (opcode, value, arc_infop->isa_mask);
1312
1313
7.49k
    if (rname && open_braket)
1314
658
      (*info->fprintf_styled_func) (info->stream, dis_style_register,
1315
658
            "%s", rname);
1316
6.83k
    else
1317
6.83k
      {
1318
6.83k
        (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1319
6.83k
              "%#x", value);
1320
6.83k
        if (info->insn_type == dis_branch
1321
6.42k
      || info->insn_type == dis_jsr)
1322
1.16k
    info->target = (bfd_vma) value;
1323
6.83k
      }
1324
7.49k
  }
1325
744k
      else if (operand->flags & ARC_OPERAND_SIGNED)
1326
360k
  {
1327
360k
    const char *rname = get_auxreg (opcode, value, arc_infop->isa_mask);
1328
360k
    if (rname && open_braket)
1329
1.25k
      (*info->fprintf_styled_func) (info->stream, dis_style_register,
1330
1.25k
            "%s", rname);
1331
359k
    else
1332
359k
      {
1333
359k
        if (arc_infop->print_hex)
1334
14.4k
    (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1335
14.4k
                "%#x", value);
1336
344k
        else
1337
344k
    (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1338
344k
                "%d", value);
1339
359k
      }
1340
360k
  }
1341
383k
      else if (operand->flags & ARC_OPERAND_ADDRTYPE)
1342
4.17k
  {
1343
4.17k
    const char *addrtype = get_addrtype (value);
1344
4.17k
    (*info->fprintf_styled_func) (info->stream, dis_style_address,
1345
4.17k
          "%s", addrtype);
1346
    /* A colon follow an address type.  */
1347
4.17k
    need_comma = false;
1348
4.17k
  }
1349
379k
      else
1350
379k
  {
1351
379k
    if (operand->flags & ARC_OPERAND_TRUNCATE
1352
118k
        && !(operand->flags & ARC_OPERAND_ALIGNED32)
1353
53.7k
        && !(operand->flags & ARC_OPERAND_ALIGNED16)
1354
4.75k
        && value >= 0 && value <= 14)
1355
4.44k
      {
1356
        /* Leave/Enter mnemonics.  */
1357
4.44k
        switch (value)
1358
4.44k
    {
1359
1.17k
    case 0:
1360
1.17k
      need_comma = false;
1361
1.17k
      break;
1362
1.38k
    case 1:
1363
1.38k
      (*info->fprintf_styled_func) (info->stream,
1364
1.38k
            dis_style_register, "r13");
1365
1.38k
      break;
1366
1.89k
    default:
1367
1.89k
      (*info->fprintf_styled_func) (info->stream,
1368
1.89k
            dis_style_register, "r13");
1369
1.89k
      (*info->fprintf_styled_func) (info->stream,
1370
1.89k
            dis_style_text, "-");
1371
1.89k
      (*info->fprintf_styled_func) (info->stream,
1372
1.89k
            dis_style_register, "%s",
1373
1.89k
            regnames[13 + value - 1]);
1374
1.89k
      break;
1375
4.44k
    }
1376
4.44k
        rpcl = false;
1377
4.44k
        rset = false;
1378
4.44k
      }
1379
374k
    else
1380
374k
      {
1381
374k
        const char *rname = get_auxreg (opcode, value,
1382
374k
                arc_infop->isa_mask);
1383
374k
        if (rname && open_braket)
1384
599
    (*info->fprintf_styled_func) (info->stream, dis_style_register,
1385
599
                "%s", rname);
1386
374k
        else
1387
374k
    (*info->fprintf_styled_func) (info->stream, dis_style_immediate,
1388
374k
                "%#x", value);
1389
374k
      }
1390
379k
  }
1391
1392
1.64M
      if (operand->flags & ARC_OPERAND_LIMM)
1393
7.49k
  {
1394
7.49k
    arc_infop->operands[arc_infop->operands_count].kind
1395
7.49k
      = ARC_OPERAND_KIND_LIMM;
1396
    /* It is not important to have exactly the LIMM indicator
1397
       here.  */
1398
7.49k
    arc_infop->operands[arc_infop->operands_count].value = 63;
1399
7.49k
  }
1400
1.63M
      else
1401
1.63M
  {
1402
1.63M
    arc_infop->operands[arc_infop->operands_count].value = value;
1403
1.63M
    arc_infop->operands[arc_infop->operands_count].kind
1404
1.63M
      = (operand->flags & ARC_OPERAND_IR
1405
1.63M
         ? ARC_OPERAND_KIND_REG
1406
1.63M
         : ARC_OPERAND_KIND_SHIMM);
1407
1.63M
  }
1408
1.64M
      arc_infop->operands_count ++;
1409
1.64M
    }
1410
1411
  /* Pretty print extra info for pc-relative operands.  */
1412
732k
  if (rpcl && rset)
1413
311k
    {
1414
311k
      if (info->flags & INSN_HAS_RELOC)
1415
  /* If the instruction has a reloc associated with it, then the
1416
     offset field in the instruction will actually be the addend
1417
     for the reloc.  (We are using REL type relocs).  In such
1418
     cases, we can ignore the pc when computing addresses, since
1419
     the addend is not currently pc-relative.  */
1420
30
  memaddr = 0;
1421
1422
311k
      (*info->fprintf_styled_func) (info->stream,
1423
311k
            dis_style_comment_start, "\t;");
1424
311k
      (*info->print_address_func) ((memaddr & ~3) + vpcl, info);
1425
311k
    }
1426
1427
732k
  return insn_len;
1428
732k
}
1429
1430
1431
disassembler_ftype
1432
arc_get_disassembler (bfd *abfd)
1433
3.75k
{
1434
  /* BFD my be absent, if opcodes is invoked from the debugger that
1435
     has connected to remote target and doesn't have an ELF file.  */
1436
3.75k
  if (abfd != NULL)
1437
327
    {
1438
      /* Read the extension insns and registers, if any.  */
1439
327
      build_ARC_extmap (abfd);
1440
#ifdef DEBUG
1441
      dump_ARC_extmap ();
1442
#endif
1443
327
    }
1444
1445
3.75k
  return print_insn_arc;
1446
3.75k
}
1447
1448
/* Indices into option argument vector for options that do require
1449
   an argument.  Use ARC_OPTION_ARG_NONE for options that don't
1450
   expect an argument.  */
1451
typedef enum
1452
{
1453
  ARC_OPTION_ARG_NONE = -1,
1454
  ARC_OPTION_ARG_ARCH,
1455
  ARC_OPTION_ARG_SIZE
1456
} arc_option_arg_t;
1457
1458
/* Valid ARC disassembler options.  */
1459
static struct
1460
{
1461
  const char *name;
1462
  const char *description;
1463
  arc_option_arg_t arg;
1464
} arc_options[] =
1465
{
1466
  { "cpu=",       N_("Enforce the designated architecture while decoding."),
1467
      ARC_OPTION_ARG_ARCH },
1468
  { "dsp",    N_("Recognize DSP instructions."),
1469
      ARC_OPTION_ARG_NONE },
1470
  { "spfp",   N_("Recognize FPX SP instructions."),
1471
      ARC_OPTION_ARG_NONE },
1472
  { "dpfp",   N_("Recognize FPX DP instructions."),
1473
      ARC_OPTION_ARG_NONE },
1474
  { "quarkse_em", N_("Recognize FPU QuarkSE-EM instructions."),
1475
      ARC_OPTION_ARG_NONE },
1476
  { "fpuda",    N_("Recognize double assist FPU instructions."),
1477
      ARC_OPTION_ARG_NONE },
1478
  { "fpus",   N_("Recognize single precision FPU instructions."),
1479
      ARC_OPTION_ARG_NONE },
1480
  { "fpud",   N_("Recognize double precision FPU instructions."),
1481
      ARC_OPTION_ARG_NONE },
1482
  { "nps400",   N_("Recognize NPS400 instructions."),
1483
      ARC_OPTION_ARG_NONE },
1484
  { "hex",    N_("Use only hexadecimal number to print immediates."),
1485
      ARC_OPTION_ARG_NONE }
1486
};
1487
1488
/* Populate the structure for representing ARC's disassembly options.
1489
   Such a dynamic initialization is desired, because it makes the maintenance
1490
   easier and also gdb uses this to enable the "disassembler-option".  */
1491
1492
const disasm_options_and_args_t *
1493
disassembler_options_arc (void)
1494
0
{
1495
0
  static disasm_options_and_args_t *opts_and_args;
1496
1497
0
  if (opts_and_args == NULL)
1498
0
    {
1499
0
      disasm_option_arg_t *args;
1500
0
      disasm_options_t *opts;
1501
0
      size_t i;
1502
0
      const size_t nr_of_options = ARRAY_SIZE (arc_options);
1503
      /* There is a null element at the end of CPU_TYPES, therefore
1504
   NR_OF_CPUS is actually 1 more and that is desired here too.  */
1505
0
      const size_t nr_of_cpus = ARRAY_SIZE (cpu_types);
1506
1507
0
      opts_and_args = XNEW (disasm_options_and_args_t);
1508
0
      opts_and_args->args
1509
0
  = XNEWVEC (disasm_option_arg_t, ARC_OPTION_ARG_SIZE + 1);
1510
0
      opts_and_args->options.name
1511
0
  = XNEWVEC (const char *, nr_of_options + 1);
1512
0
      opts_and_args->options.description
1513
0
  = XNEWVEC (const char *, nr_of_options + 1);
1514
0
      opts_and_args->options.arg
1515
0
  = XNEWVEC (const disasm_option_arg_t *, nr_of_options + 1);
1516
1517
      /* Populate the arguments for "cpu=" option.  */
1518
0
      args = opts_and_args->args;
1519
0
      args[ARC_OPTION_ARG_ARCH].name = "ARCH";
1520
0
      args[ARC_OPTION_ARG_ARCH].values = XNEWVEC (const char *, nr_of_cpus);
1521
0
      for (i = 0; i < nr_of_cpus; ++i)
1522
0
  args[ARC_OPTION_ARG_ARCH].values[i] = cpu_types[i].name;
1523
0
      args[ARC_OPTION_ARG_SIZE].name = NULL;
1524
0
      args[ARC_OPTION_ARG_SIZE].values = NULL;
1525
1526
      /* Populate the options.  */
1527
0
      opts = &opts_and_args->options;
1528
0
      for (i = 0; i < nr_of_options; ++i)
1529
0
  {
1530
0
    opts->name[i] = arc_options[i].name;
1531
0
    opts->description[i] = arc_options[i].description;
1532
0
    if (arc_options[i].arg != ARC_OPTION_ARG_NONE)
1533
0
      opts->arg[i] = &args[arc_options[i].arg];
1534
0
    else
1535
0
      opts->arg[i] = NULL;
1536
0
  }
1537
0
      opts->name[nr_of_options] = NULL;
1538
0
      opts->description[nr_of_options] = NULL;
1539
0
      opts->arg[nr_of_options] = NULL;
1540
0
    }
1541
1542
0
  return opts_and_args;
1543
0
}
1544
1545
1546
void
1547
print_arc_disassembler_options (FILE *stream)
1548
0
{
1549
0
  const disasm_options_and_args_t *opts_and_args;
1550
0
  const disasm_option_arg_t *args;
1551
0
  const disasm_options_t *opts;
1552
0
  size_t i, j;
1553
0
  size_t max_len = 0;
1554
1555
0
  opts_and_args = disassembler_options_arc ();
1556
0
  opts = &opts_and_args->options;
1557
0
  args = opts_and_args->args;
1558
1559
0
  fprintf (stream, _("\nThe following ARC specific disassembler options are"
1560
0
         " supported for use \nwith the -M switch (multiple"
1561
0
         " options should be separated by commas):\n"));
1562
1563
  /* Find the maximum length for printing options (and their arg name).  */
1564
0
  for (i = 0; opts->name[i] != NULL; ++i)
1565
0
    {
1566
0
      size_t len = strlen (opts->name[i]);
1567
0
      len += (opts->arg[i]) ? strlen (opts->arg[i]->name) : 0;
1568
0
      max_len = (len > max_len) ? len : max_len;
1569
0
    }
1570
1571
  /* Print the options, their arg and description, if any.  */
1572
0
  for (i = 0, ++max_len; opts->name[i] != NULL; ++i)
1573
0
    {
1574
0
      fprintf (stream, "  %s", opts->name[i]);
1575
0
      if (opts->arg[i] != NULL)
1576
0
  fprintf (stream, "%s", opts->arg[i]->name);
1577
0
      if (opts->description[i] != NULL)
1578
0
  {
1579
0
    size_t len = strlen (opts->name[i]);
1580
0
    len += (opts->arg[i]) ? strlen (opts->arg[i]->name) : 0;
1581
0
    fprintf (stream,
1582
0
       "%*c %s", (int) (max_len - len), ' ', opts->description[i]);
1583
0
  }
1584
0
      fprintf (stream, _("\n"));
1585
0
    }
1586
1587
  /* Print the possible values of an argument.  */
1588
0
  for (i = 0; args[i].name != NULL; ++i)
1589
0
    {
1590
0
      size_t len = 3;
1591
0
      if (args[i].values == NULL)
1592
0
  continue;
1593
0
      fprintf (stream, _("\n\
1594
0
  For the options above, the following values are supported for \"%s\":\n   "),
1595
0
         args[i].name);
1596
0
      for (j = 0; args[i].values[j] != NULL; ++j)
1597
0
  {
1598
0
    fprintf (stream, " %s", args[i].values[j]);
1599
0
    len += strlen (args[i].values[j]) + 1;
1600
    /* reset line if printed too long.  */
1601
0
    if (len >= 78)
1602
0
      {
1603
0
        fprintf (stream, _("\n   "));
1604
0
        len = 3;
1605
0
      }
1606
0
  }
1607
0
      fprintf (stream, _("\n"));
1608
0
    }
1609
1610
0
  fprintf (stream, _("\n"));
1611
0
}
1612
1613
void arc_insn_decode (bfd_vma addr,
1614
          struct disassemble_info *info,
1615
          disassembler_ftype disasm_func,
1616
          struct arc_instruction *insn)
1617
0
{
1618
0
  const struct arc_opcode *opcode;
1619
0
  struct arc_disassemble_info *arc_infop;
1620
1621
  /* Ensure that insn would be in the reset state.  */
1622
0
  memset (insn, 0, sizeof (struct arc_instruction));
1623
1624
  /* There was an error when disassembling, for example memory read error.  */
1625
0
  if (disasm_func (addr, info) < 0)
1626
0
    {
1627
0
      insn->valid = false;
1628
0
      return;
1629
0
    }
1630
1631
0
  assert (info->private_data != NULL);
1632
0
  arc_infop = info->private_data;
1633
1634
0
  insn->length  = arc_infop->insn_len;;
1635
0
  insn->address = addr;
1636
1637
  /* Quick exit if memory at this address is not an instruction.  */
1638
0
  if (info->insn_type == dis_noninsn)
1639
0
    {
1640
0
      insn->valid = false;
1641
0
      return;
1642
0
    }
1643
1644
0
  insn->valid = true;
1645
1646
0
  opcode = (const struct arc_opcode *) arc_infop->opcode;
1647
0
  insn->insn_class = opcode->insn_class;
1648
0
  insn->limm_value = arc_infop->limm;
1649
0
  insn->limm_p     = arc_infop->limm_p;
1650
1651
0
  insn->is_control_flow = (info->insn_type == dis_branch
1652
0
         || info->insn_type == dis_condbranch
1653
0
         || info->insn_type == dis_jsr
1654
0
         || info->insn_type == dis_condjsr);
1655
1656
0
  insn->has_delay_slot = info->branch_delay_insns;
1657
0
  insn->writeback_mode
1658
0
    = (enum arc_ldst_writeback_mode) arc_infop->writeback_mode;
1659
0
  insn->data_size_mode = info->data_size;
1660
0
  insn->condition_code = arc_infop->condition_code;
1661
0
  memcpy (insn->operands, arc_infop->operands,
1662
0
    sizeof (struct arc_insn_operand) * MAX_INSN_ARGS);
1663
0
  insn->operands_count = arc_infop->operands_count;
1664
0
}
1665
1666
/* Local variables:
1667
   eval: (c-set-style "gnu")
1668
   indent-tabs-mode: t
1669
   End:  */