Coverage Report

Created: 2026-03-10 08:46

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/binutils-gdb/opcodes/vax-dis.c
Line
Count
Source
1
/* Print VAX instructions.
2
   Copyright (C) 1995-2026 Free Software Foundation, Inc.
3
   Contributed by Pauline Middelink <middelin@polyware.iaf.nl>
4
5
   This file is part of the GNU opcodes library.
6
7
   This library is free software; you can redistribute it and/or modify
8
   it under the terms of the GNU General Public License as published by
9
   the Free Software Foundation; either version 3, or (at your option)
10
   any later version.
11
12
   It is distributed in the hope that it will be useful, but WITHOUT
13
   ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
14
   or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public
15
   License for more details.
16
17
   You should have received a copy of the GNU General Public License
18
   along with this program; if not, write to the Free Software
19
   Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
20
   MA 02110-1301, USA.  */
21
22
#include "sysdep.h"
23
#include <setjmp.h>
24
#include <string.h>
25
#include "opcode/vax.h"
26
#include "disassemble.h"
27
28
static char *reg_names[] =
29
{
30
  "r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7",
31
  "r8", "r9", "r10", "r11", "ap", "fp", "sp", "pc"
32
};
33
34
/* Definitions for the function entry mask bits.  */
35
static char *entry_mask_bit[] =
36
{
37
  /* Registers 0 and 1 shall not be saved, since they're used to pass back
38
     a function's result to its caller...  */
39
  "~r0~", "~r1~",
40
  /* Registers 2 .. 11 are normal registers.  */
41
  "r2", "r3", "r4", "r5", "r6", "r7", "r8", "r9", "r10", "r11",
42
  /* Registers 12 and 13 are argument and frame pointer and must not
43
     be saved by using the entry mask.  */
44
  "~ap~", "~fp~",
45
  /* Bits 14 and 15 control integer and decimal overflow.  */
46
  "IntOvfl", "DecOvfl",
47
};
48
49
/* Sign-extend an (unsigned char). */
50
69.7k
#define COERCE_SIGNED_CHAR(ch) ((signed char)(ch))
51
52
/* Get a 1 byte signed integer.  */
53
#define NEXTBYTE(p)  \
54
69.7k
  (p += 1, FETCH_DATA (info, p), \
55
69.7k
  COERCE_SIGNED_CHAR(p[-1]))
56
57
/* Get a 2 byte signed integer.  */
58
4.95k
#define COERCE16(x) ((int) (((x) ^ 0x8000) - 0x8000))
59
#define NEXTWORD(p)  \
60
4.95k
  (p += 2, FETCH_DATA (info, p), \
61
4.95k
   COERCE16 ((p[-1] << 8) + p[-2]))
62
63
/* Get a 4 byte signed integer.  */
64
5.94k
#define COERCE32(x) ((int) (((x) ^ 0x80000000) - 0x80000000))
65
#define NEXTLONG(p)  \
66
5.94k
  (p += 4, FETCH_DATA (info, p), \
67
5.94k
   (COERCE32 (((((((unsigned) p[-1] << 8) + p[-2]) << 8) + p[-3]) << 8) + p[-4])))
68
69
/* Maximum length of an instruction.  */
70
#define MAXLEN 25
71
72
struct private
73
{
74
  /* Points to first byte not fetched.  */
75
  bfd_byte * max_fetched;
76
  bfd_byte   the_buffer[MAXLEN];
77
  bfd_vma    insn_start;
78
  OPCODES_SIGJMP_BUF    bailout;
79
};
80
81
/* Make sure that bytes from INFO->PRIVATE_DATA->BUFFER (inclusive)
82
   to ADDR (exclusive) are valid.  Returns 1 for success, longjmps
83
   on error.  */
84
#define FETCH_DATA(info, addr) \
85
186k
  ((addr) <= ((struct private *)(info->private_data))->max_fetched \
86
186k
   ? 1 : fetch_data ((info), (addr)))
87
88
static int
89
fetch_data (struct disassemble_info *info, bfd_byte *addr)
90
109k
{
91
109k
  int status;
92
109k
  struct private *priv = (struct private *) info->private_data;
93
109k
  bfd_vma start = priv->insn_start + (priv->max_fetched - priv->the_buffer);
94
95
109k
  status = (*info->read_memory_func) (start,
96
109k
              priv->max_fetched,
97
109k
              addr - priv->max_fetched,
98
109k
              info);
99
109k
  if (status != 0)
100
139
    {
101
139
      (*info->memory_error_func) (status, start, info);
102
139
      OPCODES_SIGLONGJMP (priv->bailout, 1);
103
139
    }
104
109k
  else
105
109k
    priv->max_fetched = addr;
106
107
109k
  return 1;
108
109k
}
109
110
/* Entry mask handling.  */
111
static unsigned int  entry_addr_occupied_slots = 0;
112
static unsigned int  entry_addr_total_slots = 0;
113
static bfd_vma *     entry_addr = NULL;
114
115
/* Parse the VAX specific disassembler options.  These contain function
116
   entry addresses, which can be useful to disassemble ROM images, since
117
   there's no symbol table.  Returns TRUE upon success, FALSE otherwise.  */
118
119
static bool
120
parse_disassembler_options (const char *options)
121
0
{
122
0
  const char * entry_switch = "entry:";
123
124
0
  while ((options = strstr (options, entry_switch)))
125
0
    {
126
0
      options += strlen (entry_switch);
127
128
      /* The greater-than part of the test below is paranoia.  */
129
0
      if (entry_addr_occupied_slots >= entry_addr_total_slots)
130
0
  {
131
    /* A guesstimate of the number of entries we will have to create.  */
132
0
    entry_addr_total_slots
133
0
      += 1 + strlen (options) / (strlen (entry_switch) + 5);
134
135
0
    entry_addr = realloc (entry_addr, sizeof (bfd_vma)
136
0
        * entry_addr_total_slots);
137
0
  }
138
139
0
      if (entry_addr == NULL)
140
0
  return false;
141
142
0
      entry_addr[entry_addr_occupied_slots] = bfd_scan_vma (options, NULL, 0);
143
0
      entry_addr_occupied_slots ++;
144
0
    }
145
146
0
  return true;
147
0
}
148
149
#if 0 /* FIXME:  Ideally the disassembler should have target specific
150
   initialisation and termination function pointers.  Then
151
   parse_disassembler_options could be the init function and
152
   free_entry_array (below) could be the termination routine.
153
   Until then there is no way for the disassembler to tell us
154
   that it has finished and that we no longer need the entry
155
   array, so this routine is suppressed for now.  It does mean
156
   that we leak memory, but only to the extent that we do not
157
   free it just before the disassembler is about to terminate
158
   anyway.  */
159
160
/* Free memory allocated to our entry array.  */
161
162
static void
163
free_entry_array (void)
164
{
165
  if (entry_addr)
166
    {
167
      free (entry_addr);
168
      entry_addr = NULL;
169
      entry_addr_occupied_slots = entry_addr_total_slots = 0;
170
    }
171
}
172
#endif
173
/* Check if the given address is a known function entry point.  This is
174
   the case if there is a symbol of the function type at this address.
175
   We also check for synthetic symbols as these are used for PLT entries
176
   (weak undefined symbols may not have the function type set).  Finally
177
   the address may have been forced to be treated as an entry point.  The
178
   latter helps in disassembling ROM images, because there's no symbol
179
   table at all.  Forced entry points can be given by supplying several
180
   -M options to objdump: -M entry:0xffbb7730.  */
181
182
static bool
183
is_function_entry (struct disassemble_info *info, bfd_vma addr)
184
54.3k
{
185
54.3k
  unsigned int i;
186
187
  /* Check if there's a function or PLT symbol at our address.  */
188
54.3k
  if (info->symbols
189
0
      && info->symbols[0]
190
0
      && (info->symbols[0]->flags & (BSF_FUNCTION | BSF_SYNTHETIC))
191
0
      && addr == bfd_asymbol_value (info->symbols[0]))
192
0
    return true;
193
194
  /* Check for forced function entry address.  */
195
54.3k
  for (i = entry_addr_occupied_slots; i--;)
196
0
    if (entry_addr[i] == addr)
197
0
      return true;
198
199
54.3k
  return false;
200
54.3k
}
201
202
/* Check if the given address is the last longword of a PLT entry.
203
   This longword is data and depending on the value it may interfere
204
   with disassembly of further PLT entries.  We make use of the fact
205
   PLT symbols are marked BSF_SYNTHETIC.  */
206
static bool
207
is_plt_tail (struct disassemble_info *info, bfd_vma addr)
208
54.3k
{
209
54.3k
  if (info->symbols
210
0
      && info->symbols[0]
211
0
      && (info->symbols[0]->flags & BSF_SYNTHETIC)
212
0
      && addr == bfd_asymbol_value (info->symbols[0]) + 8)
213
0
    return true;
214
215
54.3k
  return false;
216
54.3k
}
217
218
static int
219
print_insn_mode (const char *d,
220
     int size,
221
     unsigned char *p0,
222
     bfd_vma addr,  /* PC for this arg to be relative to.  */
223
     disassemble_info *info)
224
59.8k
{
225
59.8k
  unsigned char *p = p0;
226
59.8k
  unsigned char mode, reg;
227
228
  /* Fetch and interpret mode byte.  */
229
59.8k
  mode = (unsigned char) NEXTBYTE (p);
230
59.8k
  reg = mode & 0xF;
231
59.8k
  switch (mode & 0xF0)
232
59.8k
    {
233
15.4k
    case 0x00:
234
17.2k
    case 0x10:
235
22.0k
    case 0x20:
236
26.1k
    case 0x30: /* Literal mode      $number.  */
237
26.1k
      if (d[1] == 'd' || d[1] == 'f' || d[1] == 'g' || d[1] == 'h')
238
4.39k
  (*info->fprintf_func) (info->stream, "$0x%x [%c-float]", mode, d[1]);
239
21.7k
      else
240
21.7k
        (*info->fprintf_func) (info->stream, "$0x%x", mode);
241
26.1k
      break;
242
2.52k
    case 0x40: /* Index:      base-addr[Rn] */
243
2.52k
      {
244
2.52k
  unsigned char *q = p0 + 1;
245
2.52k
  unsigned char nextmode = NEXTBYTE (q);
246
2.52k
  if (nextmode < 0x60 || nextmode == 0x8f)
247
    /* Literal, index, register, or immediate is invalid.  In
248
       particular don't recurse into another index mode which
249
       might overflow the_buffer.   */
250
1.71k
    (*info->fprintf_func) (info->stream, "[invalid base]");
251
811
  else
252
811
    p += print_insn_mode (d, size, p0 + 1, addr + 1, info);
253
2.52k
  (*info->fprintf_func) (info->stream, "[%s]", reg_names[reg]);
254
2.52k
      }
255
2.52k
      break;
256
2.27k
    case 0x50: /* Register:     Rn */
257
2.27k
      (*info->fprintf_func) (info->stream, "%s", reg_names[reg]);
258
2.27k
      break;
259
6.32k
    case 0x60: /* Register deferred:    (Rn) */
260
6.32k
      (*info->fprintf_func) (info->stream, "(%s)", reg_names[reg]);
261
6.32k
      break;
262
3.89k
    case 0x70: /* Autodecrement:    -(Rn) */
263
3.89k
      (*info->fprintf_func) (info->stream, "-(%s)", reg_names[reg]);
264
3.89k
      break;
265
3.19k
    case 0x80: /* Autoincrement:    (Rn)+ */
266
3.19k
      if (reg == 0xF)
267
1.53k
  { /* Immediate?  */
268
1.53k
    int i;
269
270
1.53k
    FETCH_DATA (info, p + size);
271
1.53k
    (*info->fprintf_func) (info->stream, "$0x");
272
1.53k
    if (d[1] == 'd' || d[1] == 'f' || d[1] == 'g' || d[1] == 'h')
273
993
      {
274
993
        int float_word;
275
276
993
        float_word = p[0] | (p[1] << 8);
277
993
        if ((d[1] == 'd' || d[1] == 'f')
278
626
      && (float_word & 0xff80) == 0x8000)
279
93
    {
280
93
      (*info->fprintf_func) (info->stream, "[invalid %c-float]",
281
93
           d[1]);
282
93
    }
283
900
        else
284
900
    {
285
8.81k
            for (i = 0; i < size; i++)
286
7.91k
        (*info->fprintf_func) (info->stream, "%02x",
287
7.91k
                               p[size - i - 1]);
288
900
            (*info->fprintf_func) (info->stream, " [%c-float]", d[1]);
289
900
    }
290
993
      }
291
545
    else
292
545
      {
293
1.39k
        for (i = 0; i < size; i++)
294
849
          (*info->fprintf_func) (info->stream, "%02x", p[size - i - 1]);
295
545
      }
296
1.53k
    p += size;
297
1.53k
  }
298
1.65k
      else
299
1.65k
  (*info->fprintf_func) (info->stream, "(%s)+", reg_names[reg]);
300
3.19k
      break;
301
1.71k
    case 0x90: /* Autoincrement deferred: @(Rn)+ */
302
1.71k
      if (reg == 0xF)
303
202
  (*info->fprintf_func) (info->stream, "*0x%x", NEXTLONG (p));
304
1.51k
      else
305
1.51k
  (*info->fprintf_func) (info->stream, "@(%s)+", reg_names[reg]);
306
1.71k
      break;
307
1.61k
    case 0xB0: /* Displacement byte deferred: *displ(Rn).  */
308
1.61k
      (*info->fprintf_func) (info->stream, "*");
309
      /* Fall through.  */
310
4.08k
    case 0xA0: /* Displacement byte:    displ(Rn).  */
311
4.08k
      if (reg == 0xF)
312
315
  (*info->print_address_func) (addr + 2 + NEXTBYTE (p), info);
313
3.76k
      else
314
3.76k
  (*info->fprintf_func) (info->stream, "0x%x(%s)", NEXTBYTE (p),
315
3.76k
             reg_names[reg]);
316
4.08k
      break;
317
1.58k
    case 0xD0: /* Displacement word deferred: *displ(Rn).  */
318
1.58k
      (*info->fprintf_func) (info->stream, "*");
319
      /* Fall through.  */
320
3.83k
    case 0xC0: /* Displacement word:    displ(Rn).  */
321
3.83k
      if (reg == 0xF)
322
642
  (*info->print_address_func) (addr + 3 + NEXTWORD (p), info);
323
3.19k
      else
324
3.19k
  (*info->fprintf_func) (info->stream, "0x%x(%s)", NEXTWORD (p),
325
3.19k
             reg_names[reg]);
326
3.83k
      break;
327
3.30k
    case 0xF0: /* Displacement long deferred: *displ(Rn).  */
328
3.30k
      (*info->fprintf_func) (info->stream, "*");
329
      /* Fall through.  */
330
5.73k
    case 0xE0: /* Displacement long:    displ(Rn).  */
331
5.73k
      if (reg == 0xF)
332
1.66k
  (*info->print_address_func) (addr + 5 + NEXTLONG (p), info);
333
4.07k
      else
334
4.07k
  (*info->fprintf_func) (info->stream, "0x%x(%s)", NEXTLONG (p),
335
4.07k
             reg_names[reg]);
336
5.73k
      break;
337
59.8k
    }
338
339
59.7k
  return p - p0;
340
59.8k
}
341
342
/* Returns number of bytes "eaten" by the operand, or return -1 if an
343
   invalid operand was found, or -2 if an opcode tabel error was
344
   found. */
345
346
static int
347
print_insn_arg (const char *d,
348
    unsigned char *p0,
349
    bfd_vma addr, /* PC for this arg to be relative to.  */
350
    disassemble_info *info)
351
63.4k
{
352
63.4k
  int arg_len;
353
354
  /* Check validity of addressing length.  */
355
63.4k
  switch (d[1])
356
63.4k
    {
357
19.0k
    case 'b' : arg_len = 1; break;
358
8.45k
    case 'd' : arg_len = 8; break;
359
4.20k
    case 'f' : arg_len = 4; break;
360
500
    case 'g' : arg_len = 8; break;
361
605
    case 'h' : arg_len = 16;  break;
362
12.7k
    case 'l' : arg_len = 4; break;
363
288
    case 'o' : arg_len = 16;  break;
364
16.1k
    case 'w' : arg_len = 2; break;
365
1.49k
    case 'q' : arg_len = 8; break;
366
0
    default  : abort ();
367
63.4k
    }
368
369
  /* Branches have no mode byte.  */
370
63.4k
  if (d[0] == 'b')
371
4.45k
    {
372
4.45k
      unsigned char *p = p0;
373
374
4.45k
      if (arg_len == 1)
375
3.33k
  (*info->print_address_func) (addr + 1 + NEXTBYTE (p), info);
376
1.12k
      else
377
1.12k
  (*info->print_address_func) (addr + 2 + NEXTWORD (p), info);
378
379
4.45k
      return p - p0;
380
4.45k
    }
381
382
59.0k
  return print_insn_mode (d, arg_len, p0, addr, info);
383
63.4k
}
384
385
/* Print the vax instruction at address MEMADDR in debugged memory,
386
   on INFO->STREAM.  Returns length of the instruction, in bytes.  */
387
388
int
389
print_insn_vax (bfd_vma memaddr, disassemble_info *info)
390
54.3k
{
391
54.3k
  static bool parsed_disassembler_options = false;
392
54.3k
  const struct vot *votp;
393
54.3k
  const char *argp;
394
54.3k
  unsigned char *arg;
395
54.3k
  struct private priv;
396
54.3k
  bfd_byte *buffer = priv.the_buffer;
397
398
54.3k
  info->private_data = & priv;
399
54.3k
  priv.max_fetched = priv.the_buffer;
400
54.3k
  priv.insn_start = memaddr;
401
402
54.3k
  if (! parsed_disassembler_options
403
54.3k
      && info->disassembler_options != NULL)
404
0
    {
405
0
      parse_disassembler_options (info->disassembler_options);
406
407
      /* To avoid repeated parsing of these options.  */
408
0
      parsed_disassembler_options = true;
409
0
    }
410
411
54.3k
  if (OPCODES_SIGSETJMP (priv.bailout) != 0)
412
    /* Error return.  */
413
139
    return -1;
414
415
54.1k
  argp = NULL;
416
  /* Check if the info buffer has more than one byte left since
417
     the last opcode might be a single byte with no argument data.  */
418
54.1k
  if (info->buffer_length - (memaddr - info->buffer_vma) > 1
419
54.2k
      && (info->stop_vma == 0 || memaddr < (info->stop_vma - 1)))
420
54.2k
    {
421
54.2k
      FETCH_DATA (info, buffer + 2);
422
54.2k
    }
423
18.4E
  else
424
18.4E
    {
425
18.4E
      FETCH_DATA (info, buffer + 1);
426
18.4E
      buffer[1] = 0;
427
18.4E
    }
428
429
  /* Decode function entry mask.  */
430
54.1k
  if (is_function_entry (info, memaddr))
431
0
    {
432
0
      int i = 0;
433
0
      int register_mask = buffer[1] << 8 | buffer[0];
434
435
0
      (*info->fprintf_func) (info->stream, ".word 0x%04x # Entry mask: <",
436
0
           register_mask);
437
438
0
      for (i = 15; i >= 0; i--)
439
0
  if (register_mask & (1 << i))
440
0
          (*info->fprintf_func) (info->stream, " %s", entry_mask_bit[i]);
441
442
0
      (*info->fprintf_func) (info->stream, " >");
443
444
0
      return 2;
445
0
    }
446
447
  /* Decode PLT entry offset longword.  */
448
54.1k
  if (is_plt_tail (info, memaddr))
449
0
    {
450
0
      int offset;
451
452
0
      FETCH_DATA (info, buffer + 4);
453
0
      offset = ((unsigned) buffer[3] << 24 | buffer[2] << 16
454
0
    | buffer[1] << 8 | buffer[0]);
455
0
      (*info->fprintf_func) (info->stream, ".long 0x%08x", offset);
456
457
0
      return 4;
458
0
    }
459
460
4.67M
  for (votp = &votstrs[0]; votp->name[0]; votp++)
461
4.67M
    {
462
4.67M
      vax_opcodeT opcode = votp->detail.code;
463
464
      /* 2 byte codes match 2 buffer pos. */
465
4.67M
      if ((bfd_byte) opcode == buffer[0]
466
87.2k
    && (opcode >> 8 == 0 || opcode >> 8 == buffer[1]))
467
49.9k
  {
468
49.9k
    argp = votp->detail.args;
469
49.9k
    break;
470
49.9k
  }
471
4.67M
    }
472
54.1k
  if (argp == NULL)
473
4.36k
    {
474
      /* Handle undefined instructions. */
475
4.36k
      (*info->fprintf_func) (info->stream, ".word 0x%x",
476
4.36k
           (buffer[0] << 8) + buffer[1]);
477
4.36k
      return 2;
478
4.36k
    }
479
480
  /* Point at first byte of argument data, and at descriptor for first
481
     argument.  */
482
49.8k
  arg = buffer + ((votp->detail.code >> 8) ? 2 : 1);
483
484
  /* Make sure we have it in mem */
485
49.8k
  FETCH_DATA (info, arg);
486
487
49.8k
  (*info->fprintf_func) (info->stream, "%s", votp->name);
488
49.8k
  if (*argp)
489
25.9k
    (*info->fprintf_func) (info->stream, " ");
490
491
113k
  while (*argp)
492
63.4k
    {
493
63.4k
      arg += print_insn_arg (argp, arg, memaddr + (arg - buffer), info);
494
63.4k
      argp += 2;
495
63.4k
      if (*argp)
496
37.5k
  (*info->fprintf_func) (info->stream, ",");
497
63.4k
    }
498
499
49.8k
  return arg - buffer;
500
54.1k
}
501