Coverage Report

Created: 2026-09-01 07:20

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/capstonenext/arch/M680X/M680XDisassembler.c
Line
Count
Source
1
/* Capstone Disassembly Engine */
2
/* M680X Backend by Wolfgang Schwotzer <wolfgang.schwotzer@gmx.net> 2017 */
3
4
/* ======================================================================== */
5
/* ================================ INCLUDES ============================== */
6
/* ======================================================================== */
7
8
#include <stdlib.h>
9
#include <stdio.h>
10
#include <string.h>
11
12
#include "../../cs_priv.h"
13
#include "../../utils.h"
14
15
#include "../../MCInst.h"
16
#include "../../MCInstrDesc.h"
17
#include "../../MCRegisterInfo.h"
18
#include "M680XInstPrinter.h"
19
#include "M680XDisassembler.h"
20
#include "M680XDisassemblerInternals.h"
21
22
#ifdef CAPSTONE_HAS_M680X
23
24
#ifndef DECL_SPEC
25
#ifdef _MSC_VER
26
#define DECL_SPEC __cdecl
27
#else
28
#define DECL_SPEC
29
#endif // _MSC_VER
30
#endif // DECL_SPEC
31
32
/* ======================================================================== */
33
/* ============================ GENERAL DEFINES =========================== */
34
/* ======================================================================== */
35
36
/* ======================================================================== */
37
/* =============================== PROTOTYPES ============================= */
38
/* ======================================================================== */
39
40
typedef enum insn_hdlr_id {
41
  illgl_hid,
42
  rel8_hid,
43
  rel16_hid,
44
  imm8_hid,
45
  imm16_hid,
46
  imm32_hid,
47
  dir_hid,
48
  ext_hid,
49
  idxX_hid,
50
  idxY_hid,
51
  idx09_hid,
52
  inh_hid,
53
  rr09_hid,
54
  rbits_hid,
55
  bitmv_hid,
56
  tfm_hid,
57
  opidx_hid,
58
  opidxdr_hid,
59
  idxX0_hid,
60
  idxX16_hid,
61
  imm8rel_hid,
62
  idxS_hid,
63
  idxS16_hid,
64
  idxXp_hid,
65
  idxX0p_hid,
66
  idx12_hid,
67
  idx12s_hid,
68
  rr12_hid,
69
  loop_hid,
70
  index_hid,
71
  imm8i12x_hid,
72
  imm16i12x_hid,
73
  exti12x_hid,
74
  srt_hid,
75
  tny_hid,
76
  dirdir_hid,
77
  immdir_hid,
78
  HANDLER_ID_ENDING,
79
} insn_hdlr_id;
80
81
// Access modes for the first 4 operands. If there are more than
82
// four operands they use the same access mode as the 4th operand.
83
//
84
// u: unchanged
85
// r: (r)read access
86
// w: (w)write access
87
// m: (m)odify access (= read + write)
88
//
89
typedef enum e_access_mode {
90
91
  uuuu,
92
  rrrr,
93
  wwww,
94
  rwww,
95
  rrrm,
96
  rmmm,
97
  wrrr,
98
  mrrr,
99
  mwww,
100
  mmmm,
101
  mwrr,
102
  mmrr,
103
  wmmm,
104
  rruu,
105
  muuu,
106
  ACCESS_MODE_ENDING,
107
} e_access_mode;
108
109
// Access type values are compatible with enum cs_ac_type:
110
typedef cs_ac_type e_access;
111
0
#define UNCHANGED CS_AC_INVALID
112
238k
#define READ CS_AC_READ
113
326k
#define WRITE CS_AC_WRITE
114
385k
#define MODIFY CS_AC_READ_WRITE
115
116
/* Properties of one instruction in PAGE1 (without prefix) */
117
typedef struct inst_page1 {
118
  unsigned insn : 9; // A value of type m680x_insn
119
  unsigned handler_id1 : 6; // Type insn_hdlr_id, first instr. handler id
120
  unsigned handler_id2 : 6; // Type insn_hdlr_id, second instr. handler id
121
} inst_page1;
122
123
/* Properties of one instruction in any other PAGE X */
124
typedef struct inst_pageX {
125
  unsigned opcode : 8; // The opcode byte
126
  unsigned insn : 9; // A value of type m680x_insn
127
  unsigned handler_id1 : 6; // Type insn_hdlr_id, first instr. handler id
128
  unsigned handler_id2 : 6; // Type insn_hdlr_id, second instr. handler id
129
} inst_pageX;
130
131
typedef struct insn_props {
132
  unsigned group : 4;
133
  unsigned access_mode : 5; // A value of type e_access_mode
134
  unsigned reg0 : 5; // A value of type m680x_reg
135
  unsigned reg1 : 5; // A value of type m680x_reg
136
  bool cc_modified : 1;
137
  bool update_reg_access : 1;
138
} insn_props;
139
140
#include "m6800.inc"
141
#include "m6801.inc"
142
#include "hd6301.inc"
143
#include "m6811.inc"
144
#include "cpu12.inc"
145
#include "m6805.inc"
146
#include "m6808.inc"
147
#include "hcs08.inc"
148
#include "m6809.inc"
149
#include "hd6309.inc"
150
#include "rs08.inc"
151
#include "hcs12x.inc"
152
153
#include "insn_props.inc"
154
155
//////////////////////////////////////////////////////////////////////////////
156
157
// M680X instructions have 1 up to 8 bytes (CPU12: MOVW IDX2,IDX2).
158
// A reader is needed to read a byte or word from a given memory address.
159
// See also X86 reader(...)
160
static bool read_byte(const m680x_info *info, uint8_t *byte, uint16_t address)
161
591k
{
162
591k
  if (address < info->offset ||
163
591k
      (uint32_t)(address - info->offset) >= info->size)
164
    // out of code buffer range
165
987
    return false;
166
167
590k
  *byte = info->code[address - info->offset];
168
169
590k
  return true;
170
591k
}
171
172
static bool read_byte_sign_extended(const m680x_info *info, int16_t *word,
173
            uint16_t address)
174
37.7k
{
175
37.7k
  if (address < info->offset ||
176
37.7k
      (uint32_t)(address - info->offset) >= info->size)
177
    // out of code buffer range
178
0
    return false;
179
180
37.7k
  *word = (int16_t)info->code[address - info->offset];
181
182
37.7k
  if (*word & 0x80)
183
15.8k
    *word |= 0xFF00;
184
185
37.7k
  return true;
186
37.7k
}
187
188
static bool read_word(const m680x_info *info, uint16_t *word, uint16_t address)
189
44.9k
{
190
44.9k
  if (address < info->offset ||
191
44.9k
      (uint32_t)(address + 1 - info->offset) >= info->size)
192
    // out of code buffer range
193
4
    return false;
194
195
44.9k
  *word = (uint16_t)info->code[address - info->offset] << 8;
196
44.9k
  *word |= (uint16_t)info->code[address + 1 - info->offset];
197
198
44.9k
  return true;
199
44.9k
}
200
201
static bool read_sdword(const m680x_info *info, int32_t *sdword,
202
      uint16_t address)
203
99
{
204
99
  if (address < info->offset ||
205
99
      (uint32_t)(address + 3 - info->offset) >= info->size)
206
    // out of code buffer range
207
0
    return false;
208
209
99
  *sdword = (uint32_t)info->code[address - info->offset] << 24;
210
99
  *sdword |= (uint32_t)info->code[address + 1 - info->offset] << 16;
211
99
  *sdword |= (uint32_t)info->code[address + 2 - info->offset] << 8;
212
99
  *sdword |= (uint32_t)info->code[address + 3 - info->offset];
213
214
99
  return true;
215
99
}
216
217
// For PAGE2 and PAGE3 opcodes when using an array of inst_page1 most
218
// entries have M680X_INS_ILLGL. To avoid wasting memory an inst_pageX is
219
// used which contains the opcode. Using a binary search for the right opcode
220
// is much faster (= O(log n) ) in comparison to a linear search ( = O(n) ).
221
static int binary_search(const inst_pageX *const inst_pageX_table,
222
       size_t table_size, unsigned int opcode)
223
80.2k
{
224
  // As part of the algorithm last may get negative.
225
  // => signed integer has to be used.
226
80.2k
  int first = 0;
227
80.2k
  int last = (int)table_size - 1;
228
80.2k
  int middle = (first + last) / 2;
229
230
428k
  while (first <= last) {
231
397k
    if (inst_pageX_table[middle].opcode < opcode) {
232
110k
      first = middle + 1;
233
286k
    } else if (inst_pageX_table[middle].opcode == opcode) {
234
49.1k
      return middle; /* item found */
235
49.1k
    } else
236
236k
      last = middle - 1;
237
238
347k
    middle = (first + last) / 2;
239
347k
  }
240
241
31.0k
  if (first > last)
242
31.0k
    return -1; /* item not found */
243
244
0
  return -2;
245
31.0k
}
246
247
void M680X_get_insn_id(cs_struct *handle, cs_insn *insn, unsigned int id)
248
249k
{
249
249k
  const m680x_info *const info = (const m680x_info *)handle->printer_info;
250
249k
  const cpu_tables *cpu = info->cpu;
251
249k
  uint8_t insn_prefix = (id >> 8) & 0xff;
252
  // opcode is the first instruction byte without the prefix.
253
249k
  uint8_t opcode = id & 0xff;
254
249k
  int index;
255
249k
  int i;
256
257
249k
  insn->id = M680X_INS_ILLGL;
258
259
578k
  for (i = 0; i < ARR_SIZE(cpu->pageX_prefix); ++i) {
260
566k
    if (cpu->pageX_table_size[i] == 0 ||
261
350k
        (cpu->inst_pageX_table[i] == NULL))
262
216k
      break;
263
264
350k
    if (cpu->pageX_prefix[i] == insn_prefix) {
265
21.4k
      index = binary_search(cpu->inst_pageX_table[i],
266
21.4k
                cpu->pageX_table_size[i], opcode);
267
21.4k
      insn->id =
268
21.4k
        (index >= 0) ?
269
13.1k
          cpu->inst_pageX_table[i][index].insn :
270
21.4k
          M680X_INS_ILLGL;
271
21.4k
      return;
272
21.4k
    }
273
350k
  }
274
275
228k
  if (insn_prefix != 0)
276
0
    return;
277
278
228k
  insn->id = cpu->inst_page1_table[id].insn;
279
280
228k
  if (insn->id != M680X_INS_ILLGL)
281
207k
    return;
282
283
  // Check if opcode byte is present in an overlay table
284
27.6k
  for (i = 0; i < ARR_SIZE(cpu->overlay_table_size); ++i) {
285
26.8k
    if (cpu->overlay_table_size[i] == 0 ||
286
18.6k
        (cpu->inst_overlay_table[i] == NULL))
287
8.15k
      break;
288
289
18.6k
    if ((index = binary_search(cpu->inst_overlay_table[i],
290
18.6k
             cpu->overlay_table_size[i],
291
18.6k
             opcode)) >= 0) {
292
11.4k
      insn->id = cpu->inst_overlay_table[i][index].insn;
293
11.4k
      return;
294
11.4k
    }
295
18.6k
  }
296
20.5k
}
297
298
static void add_insn_group(cs_detail *detail, m680x_group_type group)
299
246k
{
300
246k
  if (detail != NULL && (group != M680X_GRP_INVALID) &&
301
59.3k
      (group != M680X_GRP_ENDING))
302
59.3k
    detail->groups[detail->groups_count++] = (uint8_t)group;
303
246k
}
304
305
static bool exists_reg_list(uint16_t *regs, uint8_t count, m680x_reg reg)
306
695k
{
307
695k
  uint8_t i;
308
309
1.13M
  for (i = 0; i < count; ++i) {
310
455k
    if (regs[i] == (uint16_t)reg)
311
17.6k
      return true;
312
455k
  }
313
314
677k
  return false;
315
695k
}
316
317
static void add_reg_to_rw_list(MCInst *MI, m680x_reg reg, e_access access)
318
456k
{
319
456k
  cs_detail *detail = MI->flat_insn->detail;
320
321
456k
  if (detail == NULL || (reg == M680X_REG_INVALID))
322
0
    return;
323
324
456k
  switch (access) {
325
238k
  case MODIFY:
326
238k
    if (!exists_reg_list(detail->regs_read, detail->regs_read_count,
327
238k
             reg))
328
233k
      detail->regs_read[detail->regs_read_count++] =
329
233k
        (uint16_t)reg;
330
331
    // intentionally fall through
332
333
308k
  case WRITE:
334
308k
    if (!exists_reg_list(detail->regs_write,
335
308k
             detail->regs_write_count, reg))
336
303k
      detail->regs_write[detail->regs_write_count++] =
337
303k
        (uint16_t)reg;
338
339
308k
    break;
340
341
148k
  case READ:
342
148k
    if (!exists_reg_list(detail->regs_read, detail->regs_read_count,
343
148k
             reg))
344
140k
      detail->regs_read[detail->regs_read_count++] =
345
140k
        (uint16_t)reg;
346
347
148k
    break;
348
349
0
  case UNCHANGED:
350
0
  default:
351
0
    break;
352
456k
  }
353
456k
}
354
355
static void update_am_reg_list(MCInst *MI, m680x_info *info, cs_m680x_op *op,
356
             e_access access)
357
332k
{
358
332k
  if (MI->flat_insn->detail == NULL)
359
0
    return;
360
361
332k
  switch (op->type) {
362
146k
  case M680X_OP_REGISTER:
363
146k
    add_reg_to_rw_list(MI, op->reg, access);
364
146k
    break;
365
366
59.6k
  case M680X_OP_INDEXED:
367
59.6k
    add_reg_to_rw_list(MI, op->idx.base_reg, READ);
368
369
59.6k
    if (op->idx.base_reg == M680X_REG_X &&
370
25.7k
        info->cpu->reg_byte_size[M680X_REG_H])
371
8.86k
      add_reg_to_rw_list(MI, M680X_REG_H, READ);
372
373
59.6k
    if (op->idx.offset_reg != M680X_REG_INVALID)
374
5.17k
      add_reg_to_rw_list(MI, op->idx.offset_reg, READ);
375
376
59.6k
    if (op->idx.inc_dec) {
377
15.1k
      add_reg_to_rw_list(MI, op->idx.base_reg, WRITE);
378
379
15.1k
      if (op->idx.base_reg == M680X_REG_X &&
380
5.76k
          info->cpu->reg_byte_size[M680X_REG_H])
381
2.49k
        add_reg_to_rw_list(MI, M680X_REG_H, WRITE);
382
15.1k
    }
383
384
59.6k
    break;
385
386
126k
  default:
387
126k
    break;
388
332k
  }
389
332k
}
390
391
static const e_access g_access_mode_to_access[4][15] = {
392
  {
393
    UNCHANGED,
394
    READ,
395
    WRITE,
396
    READ,
397
    READ,
398
    READ,
399
    WRITE,
400
    MODIFY,
401
    MODIFY,
402
    MODIFY,
403
    MODIFY,
404
    MODIFY,
405
    WRITE,
406
    READ,
407
    MODIFY,
408
  },
409
  {
410
    UNCHANGED,
411
    READ,
412
    WRITE,
413
    WRITE,
414
    READ,
415
    MODIFY,
416
    READ,
417
    READ,
418
    WRITE,
419
    MODIFY,
420
    WRITE,
421
    MODIFY,
422
    MODIFY,
423
    READ,
424
    UNCHANGED,
425
  },
426
  {
427
    UNCHANGED,
428
    READ,
429
    WRITE,
430
    WRITE,
431
    READ,
432
    MODIFY,
433
    READ,
434
    READ,
435
    WRITE,
436
    MODIFY,
437
    READ,
438
    READ,
439
    MODIFY,
440
    UNCHANGED,
441
    UNCHANGED,
442
  },
443
  {
444
    UNCHANGED,
445
    READ,
446
    WRITE,
447
    WRITE,
448
    MODIFY,
449
    MODIFY,
450
    READ,
451
    READ,
452
    WRITE,
453
    MODIFY,
454
    READ,
455
    READ,
456
    MODIFY,
457
    UNCHANGED,
458
    UNCHANGED,
459
  },
460
};
461
462
static e_access get_access(int operator_index, e_access_mode access_mode)
463
698k
{
464
698k
  int idx = (operator_index > 3) ? 3 : operator_index;
465
466
698k
  return g_access_mode_to_access[idx][access_mode];
467
698k
}
468
469
static void build_regs_read_write_counts(MCInst *MI, m680x_info *info,
470
           e_access_mode access_mode)
471
224k
{
472
224k
  cs_m680x *m680x = &info->m680x;
473
224k
  int i;
474
475
224k
  if (MI->flat_insn->detail == NULL || (!m680x->op_count))
476
27.3k
    return;
477
478
530k
  for (i = 0; i < m680x->op_count; ++i) {
479
332k
    e_access access = get_access(i, access_mode);
480
332k
    update_am_reg_list(MI, info, &m680x->operands[i], access);
481
332k
  }
482
197k
}
483
484
static void add_operators_access(MCInst *MI, m680x_info *info,
485
         e_access_mode access_mode)
486
224k
{
487
224k
  cs_m680x *m680x = &info->m680x;
488
224k
  int offset = 0;
489
224k
  int i;
490
491
224k
  if (MI->flat_insn->detail == NULL || (!m680x->op_count) ||
492
197k
      (access_mode == uuuu))
493
49.9k
    return;
494
495
484k
  for (i = 0; i < m680x->op_count; ++i) {
496
309k
    e_access access;
497
498
    // Ugly fix: MULD has a register operand, an immediate operand
499
    // AND an implicitly changed register W
500
309k
    if (info->insn == M680X_INS_MULD && (i == 1))
501
360
      offset = 1;
502
503
309k
    access = get_access(i + offset, access_mode);
504
309k
    m680x->operands[i].access = access;
505
309k
  }
506
174k
}
507
508
typedef struct insn_to_changed_regs {
509
  m680x_insn insn;
510
  e_access_mode access_mode;
511
  m680x_reg regs[10];
512
} insn_to_changed_regs;
513
514
static void set_changed_regs_read_write_counts(MCInst *MI, m680x_info *info)
515
21.9k
{
516
  //TABLE
517
1.20M
#define EOL M680X_REG_INVALID
518
21.9k
  static const insn_to_changed_regs changed_regs[] = {
519
21.9k
    { M680X_INS_BSR, mmmm, { M680X_REG_S, EOL } },
520
21.9k
    { M680X_INS_CALL, mmmm, { M680X_REG_S, EOL } },
521
21.9k
    {
522
21.9k
      M680X_INS_CWAI,
523
21.9k
      mrrr,
524
21.9k
      { M680X_REG_S, M680X_REG_PC, M680X_REG_U, M680X_REG_Y,
525
21.9k
        M680X_REG_X, M680X_REG_DP, M680X_REG_D, M680X_REG_CC,
526
21.9k
        EOL },
527
21.9k
    },
528
21.9k
    { M680X_INS_DAA, mrrr, { M680X_REG_A, EOL } },
529
21.9k
    { M680X_INS_DIV,
530
21.9k
      mmrr,
531
21.9k
      { M680X_REG_A, M680X_REG_H, M680X_REG_X, EOL } },
532
21.9k
    { M680X_INS_EDIV,
533
21.9k
      mmrr,
534
21.9k
      { M680X_REG_D, M680X_REG_Y, M680X_REG_X, EOL } },
535
21.9k
    { M680X_INS_EDIVS,
536
21.9k
      mmrr,
537
21.9k
      { M680X_REG_D, M680X_REG_Y, M680X_REG_X, EOL } },
538
21.9k
    { M680X_INS_EMACS, mrrr, { M680X_REG_X, M680X_REG_Y, EOL } },
539
21.9k
    { M680X_INS_EMAXM, rrrr, { M680X_REG_D, EOL } },
540
21.9k
    { M680X_INS_EMINM, rrrr, { M680X_REG_D, EOL } },
541
21.9k
    { M680X_INS_EMUL, mmrr, { M680X_REG_D, M680X_REG_Y, EOL } },
542
21.9k
    { M680X_INS_EMULS, mmrr, { M680X_REG_D, M680X_REG_Y, EOL } },
543
21.9k
    { M680X_INS_ETBL, wmmm, { M680X_REG_A, M680X_REG_B, EOL } },
544
21.9k
    { M680X_INS_FDIV, mmmm, { M680X_REG_D, M680X_REG_X, EOL } },
545
21.9k
    { M680X_INS_IDIV, mmmm, { M680X_REG_D, M680X_REG_X, EOL } },
546
21.9k
    { M680X_INS_IDIVS, mmmm, { M680X_REG_D, M680X_REG_X, EOL } },
547
21.9k
    { M680X_INS_JSR, mmmm, { M680X_REG_S, EOL } },
548
21.9k
    { M680X_INS_LBSR, mmmm, { M680X_REG_S, EOL } },
549
21.9k
    { M680X_INS_MAXM, rrrr, { M680X_REG_A, EOL } },
550
21.9k
    { M680X_INS_MINM, rrrr, { M680X_REG_A, EOL } },
551
21.9k
    { M680X_INS_MEM,
552
21.9k
      mmrr,
553
21.9k
      { M680X_REG_X, M680X_REG_Y, M680X_REG_A, EOL } },
554
21.9k
    { M680X_INS_MUL, mmmm, { M680X_REG_A, M680X_REG_B, EOL } },
555
21.9k
    { M680X_INS_MULD, mwrr, { M680X_REG_D, M680X_REG_W, EOL } },
556
21.9k
    { M680X_INS_PSHA, rmmm, { M680X_REG_A, M680X_REG_S, EOL } },
557
21.9k
    { M680X_INS_PSHB, rmmm, { M680X_REG_B, M680X_REG_S, EOL } },
558
21.9k
    { M680X_INS_PSHC, rmmm, { M680X_REG_CC, M680X_REG_S, EOL } },
559
21.9k
    { M680X_INS_PSHD, rmmm, { M680X_REG_D, M680X_REG_S, EOL } },
560
21.9k
    { M680X_INS_PSHH, rmmm, { M680X_REG_H, M680X_REG_S, EOL } },
561
21.9k
    { M680X_INS_PSHX, rmmm, { M680X_REG_X, M680X_REG_S, EOL } },
562
21.9k
    { M680X_INS_PSHY, rmmm, { M680X_REG_Y, M680X_REG_S, EOL } },
563
21.9k
    { M680X_INS_PULA, wmmm, { M680X_REG_A, M680X_REG_S, EOL } },
564
21.9k
    { M680X_INS_PULB, wmmm, { M680X_REG_B, M680X_REG_S, EOL } },
565
21.9k
    { M680X_INS_PULC, wmmm, { M680X_REG_CC, M680X_REG_S, EOL } },
566
21.9k
    { M680X_INS_PULD, wmmm, { M680X_REG_D, M680X_REG_S, EOL } },
567
21.9k
    { M680X_INS_PULH, wmmm, { M680X_REG_H, M680X_REG_S, EOL } },
568
21.9k
    { M680X_INS_PULX, wmmm, { M680X_REG_X, M680X_REG_S, EOL } },
569
21.9k
    { M680X_INS_PULY, wmmm, { M680X_REG_Y, M680X_REG_S, EOL } },
570
21.9k
    { M680X_INS_REV,
571
21.9k
      mmrr,
572
21.9k
      { M680X_REG_A, M680X_REG_X, M680X_REG_Y, EOL } },
573
21.9k
    { M680X_INS_REVW,
574
21.9k
      mmmm,
575
21.9k
      { M680X_REG_A, M680X_REG_X, M680X_REG_Y, EOL } },
576
21.9k
    { M680X_INS_RTC, mwww, { M680X_REG_S, M680X_REG_PC, EOL } },
577
21.9k
    {
578
21.9k
      M680X_INS_RTI,
579
21.9k
      mwww,
580
21.9k
      { M680X_REG_S, M680X_REG_CC, M680X_REG_B, M680X_REG_A,
581
21.9k
        M680X_REG_DP, M680X_REG_X, M680X_REG_Y, M680X_REG_U,
582
21.9k
        M680X_REG_PC, EOL },
583
21.9k
    },
584
21.9k
    { M680X_INS_RTS, mwww, { M680X_REG_S, M680X_REG_PC, EOL } },
585
21.9k
    { M680X_INS_SEX, wrrr, { M680X_REG_A, M680X_REG_B, EOL } },
586
21.9k
    { M680X_INS_SEXW, rwww, { M680X_REG_W, M680X_REG_D, EOL } },
587
21.9k
    { M680X_INS_SWI,
588
21.9k
      mmrr,
589
21.9k
      { M680X_REG_S, M680X_REG_PC, M680X_REG_U, M680X_REG_Y,
590
21.9k
        M680X_REG_X, M680X_REG_DP, M680X_REG_A, M680X_REG_B,
591
21.9k
        M680X_REG_CC, EOL } },
592
21.9k
    {
593
21.9k
      M680X_INS_SWI2,
594
21.9k
      mmrr,
595
21.9k
      { M680X_REG_S, M680X_REG_PC, M680X_REG_U, M680X_REG_Y,
596
21.9k
        M680X_REG_X, M680X_REG_DP, M680X_REG_A, M680X_REG_B,
597
21.9k
        M680X_REG_CC, EOL },
598
21.9k
    },
599
21.9k
    {
600
21.9k
      M680X_INS_SWI3,
601
21.9k
      mmrr,
602
21.9k
      { M680X_REG_S, M680X_REG_PC, M680X_REG_U, M680X_REG_Y,
603
21.9k
        M680X_REG_X, M680X_REG_DP, M680X_REG_A, M680X_REG_B,
604
21.9k
        M680X_REG_CC, EOL },
605
21.9k
    },
606
21.9k
    { M680X_INS_TBL, wrrr, { M680X_REG_A, M680X_REG_B, EOL } },
607
21.9k
    { M680X_INS_WAI,
608
21.9k
      mrrr,
609
21.9k
      { M680X_REG_S, M680X_REG_PC, M680X_REG_X, M680X_REG_A,
610
21.9k
        M680X_REG_B, M680X_REG_CC, EOL } },
611
21.9k
    { M680X_INS_WAV,
612
21.9k
      rmmm,
613
21.9k
      { M680X_REG_A, M680X_REG_B, M680X_REG_X, M680X_REG_Y, EOL } },
614
21.9k
    { M680X_INS_WAVR,
615
21.9k
      rmmm,
616
21.9k
      { M680X_REG_A, M680X_REG_B, M680X_REG_X, M680X_REG_Y, EOL } },
617
21.9k
  };
618
619
21.9k
  int i, j;
620
621
21.9k
  if (MI->flat_insn->detail == NULL)
622
0
    return;
623
624
1.14M
  for (i = 0; i < ARR_SIZE(changed_regs); ++i) {
625
1.11M
    if (info->insn == changed_regs[i].insn) {
626
21.8k
      e_access_mode access_mode = changed_regs[i].access_mode;
627
628
81.0k
      for (j = 0; changed_regs[i].regs[j] != EOL; ++j) {
629
59.2k
        e_access access;
630
631
59.2k
        m680x_reg reg = changed_regs[i].regs[j];
632
633
59.2k
        if (!info->cpu->reg_byte_size[reg]) {
634
3.15k
          if (info->insn != M680X_INS_MUL)
635
2.79k
            continue;
636
637
          // Hack for M68HC05: MUL uses reg. A,X
638
361
          reg = M680X_REG_X;
639
361
        }
640
641
56.4k
        access = get_access(j, access_mode);
642
56.4k
        add_reg_to_rw_list(MI, reg, access);
643
56.4k
      }
644
21.8k
    }
645
1.11M
  }
646
647
21.9k
#undef EOL
648
21.9k
}
649
650
typedef struct insn_desc {
651
  uint32_t opcode;
652
  m680x_insn insn;
653
  insn_hdlr_id hid[2];
654
  uint16_t insn_size;
655
} insn_desc;
656
657
// If successful return the additional byte size needed for M6809
658
// indexed addressing mode (including the indexed addressing post_byte).
659
// On error return -1.
660
static int get_indexed09_post_byte_size(const m680x_info *info,
661
          uint16_t address)
662
25.6k
{
663
25.6k
  uint8_t ir = 0;
664
25.6k
  uint8_t post_byte;
665
666
  // Read the indexed addressing post byte.
667
25.6k
  if (!read_byte(info, &post_byte, address))
668
87
    return -1;
669
670
  // Depending on the indexed addressing mode more bytes have to be read.
671
25.5k
  switch (post_byte & 0x9F) {
672
680
  case 0x87:
673
1.01k
  case 0x8A:
674
1.44k
  case 0x8E:
675
2.00k
  case 0x8F:
676
2.61k
  case 0x90:
677
2.84k
  case 0x92:
678
3.12k
  case 0x97:
679
3.23k
  case 0x9A:
680
3.52k
  case 0x9E:
681
3.52k
    return -1; // illegal indexed post bytes
682
683
477
  case 0x88: // n8,R
684
1.01k
  case 0x8C: // n8,PCR
685
1.39k
  case 0x98: // [n8,R]
686
1.70k
  case 0x9C: // [n8,PCR]
687
1.70k
    if (!read_byte(info, &ir, address + 1))
688
18
      return -1;
689
1.68k
    return 2;
690
691
933
  case 0x89: // n16,R
692
2.78k
  case 0x8D: // n16,PCR
693
3.11k
  case 0x99: // [n16,R]
694
3.29k
  case 0x9D: // [n16,PCR]
695
3.29k
    if (!read_byte(info, &ir, address + 2))
696
22
      return -1;
697
3.27k
    return 3;
698
699
932
  case 0x9F: // [n]
700
932
    if ((post_byte & 0x60) != 0 ||
701
495
        !read_byte(info, &ir, address + 2))
702
441
      return -1;
703
491
    return 3;
704
25.5k
  }
705
706
  // Any other indexed post byte is valid and
707
  // no additional bytes have to be read.
708
16.1k
  return 1;
709
25.5k
}
710
711
// If successful return the additional byte size needed for CPU12
712
// indexed addressing mode (including the indexed addressing post_byte).
713
// On error return -1.
714
static int get_indexed12_post_byte_size(const m680x_info *info,
715
          uint16_t address, bool is_subset)
716
24.2k
{
717
24.2k
  uint8_t ir;
718
24.2k
  uint8_t post_byte;
719
720
  // Read the indexed addressing post byte.
721
24.2k
  if (!read_byte(info, &post_byte, address))
722
71
    return -1;
723
724
  // Depending on the indexed addressing mode more bytes have to be read.
725
24.1k
  if (!(post_byte & 0x20)) // n5,R
726
7.79k
    return 1;
727
728
16.3k
  switch (post_byte & 0xe7) {
729
1.38k
  case 0xe0:
730
2.27k
  case 0xe1: // n9,R
731
2.27k
    if (is_subset)
732
89
      return -1;
733
734
2.19k
    if (!read_byte(info, &ir, address))
735
0
      return -1;
736
2.19k
    return 2;
737
738
1.11k
  case 0xe2: // n16,R
739
2.86k
  case 0xe3: // [n16,R]
740
2.86k
    if (is_subset)
741
337
      return -1;
742
743
2.53k
    if (!read_byte(info, &ir, address + 1))
744
11
      return -1;
745
2.52k
    return 3;
746
747
365
  case 0xe4: // A,R
748
590
  case 0xe5: // B,R
749
866
  case 0xe6: // D,R
750
2.37k
  case 0xe7: // [D,R]
751
11.2k
  default: // n,-r n,+r n,r- n,r+
752
11.2k
    break;
753
16.3k
  }
754
755
11.2k
  return 1;
756
16.3k
}
757
758
// Check for M6809/HD6309 TFR/EXG instruction for valid register
759
static bool is_tfr09_reg_valid(const m680x_info *info, uint8_t reg_nibble)
760
6.37k
{
761
6.37k
  if (info->cpu->tfr_reg_valid != NULL)
762
2.35k
    return info->cpu->tfr_reg_valid[reg_nibble];
763
764
4.02k
  return true; // e.g. for the M6309 all registers are valid
765
6.37k
}
766
767
// Check for CPU12 TFR/EXG instruction for valid register
768
static bool is_exg_tfr12_post_byte_valid(const m680x_info *info,
769
           uint8_t post_byte)
770
1.33k
{
771
1.33k
  return !(post_byte & 0x08);
772
1.33k
}
773
774
static bool is_tfm_reg_valid(const m680x_info *info, uint8_t reg_nibble)
775
1.27k
{
776
  // HD6809 TFM instruction: Only register X,Y,U,S,D is allowed
777
1.27k
  return reg_nibble <= 4;
778
1.27k
}
779
780
// If successful return the additional byte size needed for CPU12
781
// loop instructions DBEQ/DBNE/IBEQ/IBNE/TBEQ/TBNE (including the post byte).
782
// On error return -1.
783
static int get_loop_post_byte_size(const m680x_info *info, uint16_t address)
784
2.10k
{
785
2.10k
  uint8_t post_byte;
786
2.10k
  uint8_t rr;
787
788
2.10k
  if (!read_byte(info, &post_byte, address))
789
8
    return -1;
790
791
  // According to documentation bit 3 is don't care and not checked here.
792
2.09k
  if ((post_byte >= 0xc0) || ((post_byte & 0x07) == 2) ||
793
1.69k
      ((post_byte & 0x07) == 3))
794
488
    return -1;
795
796
1.61k
  if (!read_byte(info, &rr, address + 1))
797
6
    return -1;
798
799
1.60k
  return 2;
800
1.61k
}
801
802
// If successful return the additional byte size needed for HD6309
803
// bit move instructions BAND/BEOR/BIAND/BIEOR/BIOR/BOR/LDBT/STBT
804
// (including the post byte).
805
// On error return -1.
806
static int get_bitmv_post_byte_size(const m680x_info *info, uint16_t address)
807
474
{
808
474
  uint8_t post_byte;
809
474
  uint8_t rr;
810
811
474
  if (!read_byte(info, &post_byte, address))
812
2
    return -1;
813
814
472
  if ((post_byte & 0xc0) == 0xc0)
815
158
    return -1; // Invalid register specified
816
314
  else {
817
314
    if (!read_byte(info, &rr, address + 1))
818
0
      return -1;
819
314
  }
820
821
314
  return 2;
822
472
}
823
824
static bool is_sufficient_code_size(const m680x_info *info, uint16_t address,
825
            insn_desc *insn_description)
826
232k
{
827
232k
  int i;
828
232k
  bool retval = true;
829
232k
  uint16_t size = 0;
830
232k
  int sz;
831
832
682k
  for (i = 0; i < 2; i++) {
833
458k
    uint8_t ir = 0;
834
458k
    bool is_subset = false;
835
836
458k
    switch (insn_description->hid[i]) {
837
110
    case imm32_hid:
838
110
      if ((retval = read_byte(info, &ir, address + size + 3)))
839
99
        size += 4;
840
110
      break;
841
842
32.6k
    case ext_hid:
843
34.4k
    case imm16_hid:
844
35.4k
    case rel16_hid:
845
37.7k
    case imm8rel_hid:
846
41.1k
    case opidxdr_hid:
847
42.1k
    case idxX16_hid:
848
42.2k
    case idxS16_hid:
849
42.6k
    case dirdir_hid:
850
42.7k
    case immdir_hid:
851
42.7k
      if ((retval = read_byte(info, &ir, address + size + 1)))
852
42.3k
        size += 2;
853
42.7k
      break;
854
855
13.5k
    case rel8_hid:
856
46.9k
    case dir_hid:
857
49.7k
    case rbits_hid:
858
65.0k
    case imm8_hid:
859
69.6k
    case idxX_hid:
860
70.1k
    case idxXp_hid:
861
71.0k
    case idxY_hid:
862
71.3k
    case idxS_hid:
863
71.9k
    case index_hid:
864
71.9k
      if ((retval = read_byte(info, &ir, address + size)))
865
71.6k
        size++;
866
71.9k
      break;
867
868
0
    case illgl_hid:
869
272k
    case inh_hid:
870
277k
    case idxX0_hid:
871
279k
    case idxX0p_hid:
872
280k
    case opidx_hid:
873
282k
    case srt_hid:
874
285k
    case tny_hid:
875
285k
      retval = true;
876
285k
      break;
877
878
25.6k
    case idx09_hid:
879
25.6k
      sz = get_indexed09_post_byte_size(info, address + size);
880
25.6k
      if (sz >= 0)
881
21.5k
        size += sz;
882
4.08k
      else
883
4.08k
        retval = false;
884
25.6k
      break;
885
886
817
    case idx12s_hid:
887
817
      is_subset = true;
888
889
      // intentionally fall through
890
891
19.0k
    case idx12_hid:
892
19.0k
      sz = get_indexed12_post_byte_size(info, address + size,
893
19.0k
                is_subset);
894
19.0k
      if (sz >= 0)
895
18.5k
        size += sz;
896
490
      else
897
490
        retval = false;
898
19.0k
      break;
899
900
1.21k
    case exti12x_hid:
901
2.40k
    case imm16i12x_hid:
902
2.40k
      sz = get_indexed12_post_byte_size(info, address + size,
903
2.40k
                false);
904
2.40k
      if (sz >= 0) {
905
2.39k
        size += sz;
906
2.39k
        if ((retval = read_byte(info, &ir,
907
2.39k
              address + size + 1)))
908
2.38k
          size += 2;
909
2.39k
      } else
910
12
        retval = false;
911
2.40k
      break;
912
913
2.82k
    case imm8i12x_hid:
914
2.82k
      sz = get_indexed12_post_byte_size(info, address + size,
915
2.82k
                false);
916
2.82k
      if (sz >= 0) {
917
2.82k
        size += sz;
918
2.82k
        if ((retval = read_byte(info, &ir,
919
2.82k
              address + size)))
920
2.81k
          size++;
921
2.82k
      } else
922
6
        retval = false;
923
2.82k
      break;
924
925
700
    case tfm_hid:
926
700
      if ((retval = read_byte(info, &ir, address + size))) {
927
699
        size++;
928
699
        retval = is_tfm_reg_valid(info,
929
699
                (ir >> 4) & 0x0F) &&
930
580
           is_tfm_reg_valid(info, ir & 0x0F);
931
699
      }
932
700
      break;
933
934
3.32k
    case rr09_hid:
935
3.32k
      if ((retval = read_byte(info, &ir, address + size))) {
936
3.32k
        size++;
937
3.32k
        retval = is_tfr09_reg_valid(info,
938
3.32k
                  (ir >> 4) & 0x0F) &&
939
3.05k
           is_tfr09_reg_valid(info, ir & 0x0F);
940
3.32k
      }
941
3.32k
      break;
942
943
1.34k
    case rr12_hid:
944
1.34k
      if ((retval = read_byte(info, &ir, address + size))) {
945
1.33k
        size++;
946
1.33k
        retval = is_exg_tfr12_post_byte_valid(info, ir);
947
1.33k
      }
948
1.34k
      break;
949
950
474
    case bitmv_hid:
951
474
      sz = get_bitmv_post_byte_size(info, address + size);
952
474
      if (sz >= 0)
953
314
        size += sz;
954
160
      else
955
160
        retval = false;
956
474
      break;
957
958
2.10k
    case loop_hid:
959
2.10k
      sz = get_loop_post_byte_size(info, address + size);
960
2.10k
      if (sz >= 0)
961
1.60k
        size += sz;
962
502
      else
963
502
        retval = false;
964
2.10k
      break;
965
966
0
    default:
967
0
      CS_ASSERT(0 && "Unexpected instruction handler id");
968
0
      retval = false;
969
0
      break;
970
458k
    }
971
972
458k
    if (!retval)
973
7.68k
      return false;
974
458k
  }
975
976
224k
  insn_description->insn_size += size;
977
978
224k
  return retval;
979
232k
}
980
981
// Check for a valid M680X instruction AND for enough bytes in the code buffer
982
// Return an instruction description in insn_desc.
983
static bool decode_insn(const m680x_info *info, uint16_t address,
984
      insn_desc *insn_description)
985
249k
{
986
249k
  const inst_pageX *inst_table = NULL;
987
249k
  const cpu_tables *cpu = info->cpu;
988
249k
  size_t table_size = 0;
989
249k
  uint16_t base_address = address;
990
249k
  uint8_t ir; // instruction register
991
249k
  int i;
992
249k
  int index;
993
994
249k
  if (!read_byte(info, &ir, address++))
995
0
    return false;
996
997
249k
  insn_description->insn = M680X_INS_ILLGL;
998
249k
  insn_description->opcode = ir;
999
1000
  // Check if a page prefix byte is present
1001
578k
  for (i = 0; i < ARR_SIZE(cpu->pageX_table_size); ++i) {
1002
566k
    if (cpu->pageX_table_size[i] == 0 ||
1003
350k
        (cpu->inst_pageX_table[i] == NULL))
1004
216k
      break;
1005
1006
350k
    if ((cpu->pageX_prefix[i] == ir)) {
1007
      // Get pageX instruction and handler id.
1008
      // Abort for illegal instr.
1009
21.4k
      inst_table = cpu->inst_pageX_table[i];
1010
21.4k
      table_size = cpu->pageX_table_size[i];
1011
1012
21.4k
      if (!read_byte(info, &ir, address++))
1013
26
        return false;
1014
1015
21.4k
      insn_description->opcode =
1016
21.4k
        (insn_description->opcode << 8) | ir;
1017
1018
21.4k
      if ((index = binary_search(inst_table, table_size,
1019
21.4k
               ir)) < 0)
1020
8.34k
        return false;
1021
1022
13.1k
      insn_description->hid[0] =
1023
13.1k
        inst_table[index].handler_id1;
1024
13.1k
      insn_description->hid[1] =
1025
13.1k
        inst_table[index].handler_id2;
1026
13.1k
      insn_description->insn = inst_table[index].insn;
1027
13.1k
      break;
1028
21.4k
    }
1029
350k
  }
1030
1031
241k
  if (insn_description->insn == M680X_INS_ILLGL) {
1032
    // Get page1 insn description
1033
228k
    insn_description->insn = cpu->inst_page1_table[ir].insn;
1034
228k
    insn_description->hid[0] =
1035
228k
      cpu->inst_page1_table[ir].handler_id1;
1036
228k
    insn_description->hid[1] =
1037
228k
      cpu->inst_page1_table[ir].handler_id2;
1038
228k
  }
1039
1040
241k
  if (insn_description->insn == M680X_INS_ILLGL) {
1041
    // Check if opcode byte is present in an overlay table
1042
27.6k
    for (i = 0; i < ARR_SIZE(cpu->overlay_table_size); ++i) {
1043
26.7k
      if (cpu->overlay_table_size[i] == 0 ||
1044
18.6k
          (cpu->inst_overlay_table[i] == NULL))
1045
8.13k
        break;
1046
1047
18.6k
      inst_table = cpu->inst_overlay_table[i];
1048
18.6k
      table_size = cpu->overlay_table_size[i];
1049
1050
18.6k
      if ((index = binary_search(inst_table, table_size,
1051
18.6k
               ir)) >= 0) {
1052
11.4k
        insn_description->hid[0] =
1053
11.4k
          inst_table[index].handler_id1;
1054
11.4k
        insn_description->hid[1] =
1055
11.4k
          inst_table[index].handler_id2;
1056
11.4k
        insn_description->insn = inst_table[index].insn;
1057
11.4k
        break;
1058
11.4k
      }
1059
18.6k
    }
1060
20.4k
  }
1061
1062
241k
  insn_description->insn_size = address - base_address;
1063
1064
241k
  return (insn_description->insn != M680X_INS_ILLGL) &&
1065
232k
         (insn_description->insn != M680X_INS_INVLD) &&
1066
232k
         is_sufficient_code_size(info, address, insn_description);
1067
249k
}
1068
1069
static void illegal_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1070
25.0k
{
1071
25.0k
  cs_m680x_op *op0 = &info->m680x.operands[info->m680x.op_count++];
1072
25.0k
  uint8_t temp8 = 0;
1073
1074
25.0k
  info->insn = M680X_INS_ILLGL;
1075
25.0k
  read_byte(info, &temp8, (*address)++);
1076
25.0k
  op0->imm = (int32_t)temp8 & 0xff;
1077
25.0k
  op0->type = M680X_OP_IMMEDIATE;
1078
25.0k
  op0->size = 1;
1079
25.0k
}
1080
1081
static void inherent_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1082
272k
{
1083
  // There is nothing to do here :-)
1084
272k
}
1085
1086
static void add_reg_operand(m680x_info *info, m680x_reg reg)
1087
146k
{
1088
146k
  cs_m680x *m680x = &info->m680x;
1089
146k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1090
1091
146k
  op->type = M680X_OP_REGISTER;
1092
146k
  op->reg = reg;
1093
146k
  op->size = info->cpu->reg_byte_size[reg];
1094
146k
}
1095
1096
static void set_operand_size(m680x_info *info, cs_m680x_op *op,
1097
           uint8_t default_size)
1098
154k
{
1099
154k
  cs_m680x *m680x = &info->m680x;
1100
1101
154k
  if (info->insn == M680X_INS_JMP || info->insn == M680X_INS_JSR)
1102
8.41k
    op->size = 0;
1103
145k
  else if (info->insn == M680X_INS_DIVD ||
1104
144k
     ((info->insn == M680X_INS_AIS ||
1105
144k
       info->insn == M680X_INS_AIX) &&
1106
360
      op->type != M680X_OP_REGISTER))
1107
1.73k
    op->size = 1;
1108
144k
  else if (info->insn == M680X_INS_DIVQ || info->insn == M680X_INS_MOVW)
1109
5.21k
    op->size = 2;
1110
138k
  else if (info->insn == M680X_INS_EMACS)
1111
179
    op->size = 4;
1112
138k
  else if ((m680x->op_count > 0) &&
1113
138k
     (m680x->operands[0].type == M680X_OP_REGISTER))
1114
83.6k
    op->size = m680x->operands[0].size;
1115
55.0k
  else
1116
55.0k
    op->size = default_size;
1117
154k
}
1118
1119
static const m680x_reg reg_s_reg_ids[] = {
1120
  M680X_REG_CC, M680X_REG_A, M680X_REG_B, M680X_REG_DP,
1121
  M680X_REG_X,  M680X_REG_Y, M680X_REG_U, M680X_REG_PC,
1122
};
1123
1124
static const m680x_reg reg_u_reg_ids[] = {
1125
  M680X_REG_CC, M680X_REG_A, M680X_REG_B, M680X_REG_DP,
1126
  M680X_REG_X,  M680X_REG_Y, M680X_REG_S, M680X_REG_PC,
1127
};
1128
1129
static void reg_bits_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1130
2.79k
{
1131
2.79k
  cs_m680x_op *op0 = &info->m680x.operands[0];
1132
2.79k
  uint8_t reg_bits = 0;
1133
2.79k
  uint16_t bit_index;
1134
2.79k
  const m680x_reg *reg_to_reg_ids = NULL;
1135
1136
2.79k
  read_byte(info, &reg_bits, (*address)++);
1137
1138
2.79k
  switch (op0->reg) {
1139
1.11k
  case M680X_REG_U:
1140
1.11k
    reg_to_reg_ids = &reg_u_reg_ids[0];
1141
1.11k
    break;
1142
1143
1.68k
  case M680X_REG_S:
1144
1.68k
    reg_to_reg_ids = &reg_s_reg_ids[0];
1145
1.68k
    break;
1146
1147
0
  default:
1148
0
    CS_ASSERT(0 && "Unexpected operand0 register");
1149
0
    break;
1150
2.79k
  }
1151
1152
2.79k
  if ((info->insn == M680X_INS_PULU || (info->insn == M680X_INS_PULS)) &&
1153
933
      ((reg_bits & 0x80) != 0))
1154
    // PULS xxx,PC or PULU xxx,PC which is like return from
1155
    // subroutine (RTS)
1156
152
    add_insn_group(MI->flat_insn->detail, M680X_GRP_RET);
1157
1158
25.1k
  for (bit_index = 0; bit_index < 8; ++bit_index) {
1159
22.3k
    if (reg_bits & (1 << bit_index) && reg_to_reg_ids)
1160
10.1k
      add_reg_operand(info, reg_to_reg_ids[bit_index]);
1161
22.3k
  }
1162
2.79k
}
1163
1164
static const m680x_reg g_tfr_exg_reg_ids[] = {
1165
  /* 16-bit registers */
1166
  M680X_REG_D,
1167
  M680X_REG_X,
1168
  M680X_REG_Y,
1169
  M680X_REG_U,
1170
  M680X_REG_S,
1171
  M680X_REG_PC,
1172
  M680X_REG_W,
1173
  M680X_REG_V,
1174
  /* 8-bit registers */
1175
  M680X_REG_A,
1176
  M680X_REG_B,
1177
  M680X_REG_CC,
1178
  M680X_REG_DP,
1179
  M680X_REG_0,
1180
  M680X_REG_0,
1181
  M680X_REG_E,
1182
  M680X_REG_F,
1183
};
1184
1185
static void reg_reg09_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1186
2.44k
{
1187
2.44k
  uint8_t regs = 0;
1188
1189
2.44k
  read_byte(info, &regs, (*address)++);
1190
1191
2.44k
  add_reg_operand(info, g_tfr_exg_reg_ids[regs >> 4]);
1192
2.44k
  add_reg_operand(info, g_tfr_exg_reg_ids[regs & 0x0f]);
1193
1194
2.44k
  if ((regs & 0x0f) == 0x05) {
1195
    // EXG xxx,PC or TFR xxx,PC which is like a JMP
1196
361
    add_insn_group(MI->flat_insn->detail, M680X_GRP_JUMP);
1197
361
  }
1198
2.44k
}
1199
1200
static void reg_reg12_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1201
851
{
1202
851
  static const m680x_reg g_tfr_exg12_reg0_ids[] = {
1203
851
    M680X_REG_A, M680X_REG_B, M680X_REG_CC, M680X_REG_TMP3,
1204
851
    M680X_REG_D, M680X_REG_X, M680X_REG_Y,  M680X_REG_S,
1205
851
  };
1206
851
  static const m680x_reg g_tfr_exg12_reg1_ids[] = {
1207
851
    M680X_REG_A, M680X_REG_B, M680X_REG_CC, M680X_REG_TMP2,
1208
851
    M680X_REG_D, M680X_REG_X, M680X_REG_Y,  M680X_REG_S,
1209
851
  };
1210
851
  uint8_t regs = 0;
1211
1212
851
  read_byte(info, &regs, (*address)++);
1213
1214
  // The opcode of this instruction depends on
1215
  // the msb of its post byte.
1216
851
  if (regs & 0x80)
1217
326
    info->insn = M680X_INS_EXG;
1218
525
  else
1219
525
    info->insn = M680X_INS_TFR;
1220
1221
851
  add_reg_operand(info, g_tfr_exg12_reg0_ids[(regs >> 4) & 0x07]);
1222
851
  add_reg_operand(info, g_tfr_exg12_reg1_ids[regs & 0x07]);
1223
851
}
1224
1225
static void add_rel_operand(m680x_info *info, int16_t offset, uint16_t address)
1226
20.0k
{
1227
20.0k
  cs_m680x *m680x = &info->m680x;
1228
20.0k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1229
1230
20.0k
  op->type = M680X_OP_RELATIVE;
1231
20.0k
  op->size = 0;
1232
20.0k
  op->rel.offset = offset;
1233
20.0k
  op->rel.address = address;
1234
20.0k
}
1235
1236
static void relative8_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1237
19.0k
{
1238
19.0k
  int16_t offset = 0;
1239
1240
19.0k
  read_byte_sign_extended(info, &offset, (*address)++);
1241
19.0k
  add_rel_operand(info, offset, *address + offset);
1242
19.0k
  add_insn_group(MI->flat_insn->detail, M680X_GRP_BRAREL);
1243
1244
19.0k
  if ((info->insn != M680X_INS_BRA) && (info->insn != M680X_INS_BSR) &&
1245
16.5k
      (info->insn != M680X_INS_BRN))
1246
15.3k
    add_reg_to_rw_list(MI, M680X_REG_CC, READ);
1247
19.0k
}
1248
1249
static void relative16_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1250
970
{
1251
970
  uint16_t offset = 0;
1252
1253
970
  read_word(info, &offset, *address);
1254
970
  *address += 2;
1255
970
  add_rel_operand(info, (int16_t)offset, *address + offset);
1256
970
  add_insn_group(MI->flat_insn->detail, M680X_GRP_BRAREL);
1257
1258
970
  if ((info->insn != M680X_INS_LBRA) && (info->insn != M680X_INS_LBSR) &&
1259
424
      (info->insn != M680X_INS_LBRN))
1260
346
    add_reg_to_rw_list(MI, M680X_REG_CC, READ);
1261
970
}
1262
1263
static const m680x_reg g_rr5_to_reg_ids[] = {
1264
  M680X_REG_X,
1265
  M680X_REG_Y,
1266
  M680X_REG_U,
1267
  M680X_REG_S,
1268
};
1269
1270
static void add_indexed_operand(m680x_info *info, m680x_reg base_reg,
1271
        bool post_inc_dec, uint8_t inc_dec,
1272
        uint8_t offset_bits, uint16_t offset,
1273
        bool no_comma)
1274
14.8k
{
1275
14.8k
  cs_m680x *m680x = &info->m680x;
1276
14.8k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1277
1278
14.8k
  op->type = M680X_OP_INDEXED;
1279
14.8k
  set_operand_size(info, op, 1);
1280
14.8k
  op->idx.base_reg = base_reg;
1281
14.8k
  op->idx.offset_reg = M680X_REG_INVALID;
1282
14.8k
  op->idx.inc_dec = inc_dec;
1283
1284
14.8k
  if (inc_dec && post_inc_dec)
1285
2.90k
    op->idx.flags |= M680X_IDX_POST_INC_DEC;
1286
1287
14.8k
  if (offset_bits != M680X_OFFSET_NONE) {
1288
7.34k
    op->idx.offset = offset;
1289
7.34k
    op->idx.offset_addr = 0;
1290
7.34k
  }
1291
1292
14.8k
  op->idx.offset_bits = offset_bits;
1293
14.8k
  op->idx.flags |= (no_comma ? M680X_IDX_NO_COMMA : 0);
1294
14.8k
}
1295
1296
// M6800/1/2/3 indexed mode handler
1297
static void indexedX_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1298
4.49k
{
1299
4.49k
  uint8_t offset = 0;
1300
1301
4.49k
  read_byte(info, &offset, (*address)++);
1302
1303
4.49k
  add_indexed_operand(info, M680X_REG_X, false, 0, M680X_OFFSET_BITS_8,
1304
4.49k
          (uint16_t)offset, false);
1305
4.49k
}
1306
1307
static void indexedY_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1308
844
{
1309
844
  uint8_t offset = 0;
1310
1311
844
  read_byte(info, &offset, (*address)++);
1312
1313
844
  add_indexed_operand(info, M680X_REG_Y, false, 0, M680X_OFFSET_BITS_8,
1314
844
          (uint16_t)offset, false);
1315
844
}
1316
1317
// M6809/M6309 indexed mode handler
1318
static void indexed09_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1319
21.5k
{
1320
21.5k
  cs_m680x *m680x = &info->m680x;
1321
21.5k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1322
21.5k
  uint8_t post_byte = 0;
1323
21.5k
  uint16_t offset = 0;
1324
21.5k
  int16_t soffset = 0;
1325
1326
21.5k
  read_byte(info, &post_byte, (*address)++);
1327
1328
21.5k
  op->type = M680X_OP_INDEXED;
1329
21.5k
  set_operand_size(info, op, 1);
1330
21.5k
  op->idx.base_reg = g_rr5_to_reg_ids[(post_byte >> 5) & 0x03];
1331
21.5k
  op->idx.offset_reg = M680X_REG_INVALID;
1332
1333
21.5k
  if (!(post_byte & 0x80)) {
1334
    // n5,R
1335
9.47k
    if ((post_byte & 0x10) == 0x10)
1336
4.31k
      op->idx.offset = post_byte | 0xfff0;
1337
5.15k
    else
1338
5.15k
      op->idx.offset = post_byte & 0x0f;
1339
1340
9.47k
    op->idx.offset_addr = op->idx.offset + *address;
1341
9.47k
    op->idx.offset_bits = M680X_OFFSET_BITS_5;
1342
12.1k
  } else {
1343
12.1k
    if ((post_byte & 0x10) == 0x10)
1344
4.15k
      op->idx.flags |= M680X_IDX_INDIRECT;
1345
1346
    // indexed addressing
1347
12.1k
    switch (post_byte & 0x1f) {
1348
345
    case 0x00: // ,R+
1349
345
      op->idx.inc_dec = 1;
1350
345
      op->idx.flags |= M680X_IDX_POST_INC_DEC;
1351
345
      break;
1352
1353
70
    case 0x11: // [,R++]
1354
886
    case 0x01: // ,R++
1355
886
      op->idx.inc_dec = 2;
1356
886
      op->idx.flags |= M680X_IDX_POST_INC_DEC;
1357
886
      break;
1358
1359
372
    case 0x02: // ,-R
1360
372
      op->idx.inc_dec = -1;
1361
372
      break;
1362
1363
1.13k
    case 0x13: // [,--R]
1364
1.81k
    case 0x03: // ,--R
1365
1.81k
      op->idx.inc_dec = -2;
1366
1.81k
      break;
1367
1368
64
    case 0x14: // [,R]
1369
434
    case 0x04: // ,R
1370
434
      break;
1371
1372
165
    case 0x15: // [B,R]
1373
724
    case 0x05: // B,R
1374
724
      op->idx.offset_reg = M680X_REG_B;
1375
724
      break;
1376
1377
672
    case 0x16: // [A,R]
1378
1.36k
    case 0x06: // A,R
1379
1.36k
      op->idx.offset_reg = M680X_REG_A;
1380
1.36k
      break;
1381
1382
301
    case 0x1c: // [n8,PCR]
1383
836
    case 0x0c: // n8,PCR
1384
836
      op->idx.base_reg = M680X_REG_PC;
1385
836
      read_byte_sign_extended(info, &soffset, (*address)++);
1386
836
      op->idx.offset_addr = offset + *address;
1387
836
      op->idx.offset = soffset;
1388
836
      op->idx.offset_bits = M680X_OFFSET_BITS_8;
1389
836
      break;
1390
1391
379
    case 0x18: // [n8,R]
1392
847
    case 0x08: // n8,R
1393
847
      read_byte_sign_extended(info, &soffset, (*address)++);
1394
847
      op->idx.offset = soffset;
1395
847
      op->idx.offset_bits = M680X_OFFSET_BITS_8;
1396
847
      break;
1397
1398
176
    case 0x1d: // [n16,PCR]
1399
2.01k
    case 0x0d: // n16,PCR
1400
2.01k
      op->idx.base_reg = M680X_REG_PC;
1401
2.01k
      read_word(info, &offset, *address);
1402
2.01k
      *address += 2;
1403
2.01k
      op->idx.offset_addr = offset + *address;
1404
2.01k
      op->idx.offset = (int16_t)offset;
1405
2.01k
      op->idx.offset_bits = M680X_OFFSET_BITS_16;
1406
2.01k
      break;
1407
1408
332
    case 0x19: // [n16,R]
1409
1.25k
    case 0x09: // n16,R
1410
1.25k
      read_word(info, &offset, *address);
1411
1.25k
      *address += 2;
1412
1.25k
      op->idx.offset = (int16_t)offset;
1413
1.25k
      op->idx.offset_bits = M680X_OFFSET_BITS_16;
1414
1.25k
      break;
1415
1416
371
    case 0x1b: // [D,R]
1417
712
    case 0x0b: // D,R
1418
712
      op->idx.offset_reg = M680X_REG_D;
1419
712
      break;
1420
1421
491
    case 0x1f: // [n16]
1422
491
      op->type = M680X_OP_EXTENDED;
1423
491
      op->ext.indirect = true;
1424
491
      read_word(info, &op->ext.address, *address);
1425
491
      *address += 2;
1426
491
      break;
1427
1428
0
    default:
1429
0
      op->idx.base_reg = M680X_REG_INVALID;
1430
0
      break;
1431
12.1k
    }
1432
12.1k
  }
1433
1434
21.5k
  if (((info->insn == M680X_INS_LEAU) || (info->insn == M680X_INS_LEAS) ||
1435
20.1k
       (info->insn == M680X_INS_LEAX) ||
1436
19.0k
       (info->insn == M680X_INS_LEAY)) &&
1437
3.35k
      (m680x->operands[0].reg == M680X_REG_X ||
1438
2.16k
       (m680x->operands[0].reg == M680X_REG_Y)))
1439
    // Only LEAX and LEAY modify CC register
1440
1.98k
    add_reg_to_rw_list(MI, M680X_REG_CC, MODIFY);
1441
21.5k
}
1442
1443
static const m680x_reg g_idx12_to_reg_ids[4] = {
1444
  M680X_REG_X,
1445
  M680X_REG_Y,
1446
  M680X_REG_S,
1447
  M680X_REG_PC,
1448
};
1449
1450
static const m680x_reg g_or12_to_reg_ids[3] = { M680X_REG_A, M680X_REG_B,
1451
            M680X_REG_D };
1452
1453
// CPU12 indexed mode handler
1454
static void indexed12_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1455
23.7k
{
1456
23.7k
  cs_m680x *m680x = &info->m680x;
1457
23.7k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1458
23.7k
  uint8_t post_byte = 0;
1459
23.7k
  uint8_t offset8 = 0;
1460
1461
23.7k
  read_byte(info, &post_byte, (*address)++);
1462
1463
23.7k
  op->type = M680X_OP_INDEXED;
1464
23.7k
  set_operand_size(info, op, 1);
1465
23.7k
  op->idx.offset_reg = M680X_REG_INVALID;
1466
1467
23.7k
  if (!(post_byte & 0x20)) {
1468
    // n5,R      n5 is a 5-bit signed offset
1469
7.79k
    op->idx.base_reg = g_idx12_to_reg_ids[(post_byte >> 6) & 0x03];
1470
1471
7.79k
    if ((post_byte & 0x10) == 0x10)
1472
3.41k
      op->idx.offset = post_byte | 0xfff0;
1473
4.37k
    else
1474
4.37k
      op->idx.offset = post_byte & 0x0f;
1475
1476
7.79k
    op->idx.offset_addr = op->idx.offset + *address;
1477
7.79k
    op->idx.offset_bits = M680X_OFFSET_BITS_5;
1478
15.9k
  } else {
1479
15.9k
    if ((post_byte & 0xe0) == 0xe0)
1480
7.07k
      op->idx.base_reg =
1481
7.07k
        g_idx12_to_reg_ids[(post_byte >> 3) & 0x03];
1482
1483
15.9k
    switch (post_byte & 0xe7) {
1484
1.30k
    case 0xe0:
1485
2.18k
    case 0xe1: // n9,R
1486
2.18k
      read_byte(info, &offset8, (*address)++);
1487
2.18k
      op->idx.offset = offset8;
1488
1489
2.18k
      if (post_byte & 0x01) // sign extension
1490
880
        op->idx.offset |= 0xff00;
1491
1492
2.18k
      op->idx.offset_bits = M680X_OFFSET_BITS_9;
1493
1494
2.18k
      if (op->idx.base_reg == M680X_REG_PC)
1495
375
        op->idx.offset_addr = op->idx.offset + *address;
1496
1497
2.18k
      break;
1498
1499
1.74k
    case 0xe3: // [n16,R]
1500
1.74k
      op->idx.flags |= M680X_IDX_INDIRECT;
1501
1502
    // intentionally fall through
1503
2.51k
    case 0xe2: // n16,R
1504
2.51k
      read_word(info, (uint16_t *)&op->idx.offset, *address);
1505
2.51k
      (*address) += 2;
1506
2.51k
      op->idx.offset_bits = M680X_OFFSET_BITS_16;
1507
1508
2.51k
      if (op->idx.base_reg == M680X_REG_PC)
1509
89
        op->idx.offset_addr = op->idx.offset + *address;
1510
1511
2.51k
      break;
1512
1513
365
    case 0xe4: // A,R
1514
589
    case 0xe5: // B,R
1515
864
    case 0xe6: // D,R
1516
864
      op->idx.offset_reg =
1517
864
        g_or12_to_reg_ids[post_byte & 0x03];
1518
864
      break;
1519
1520
1.51k
    case 0xe7: // [D,R]
1521
1.51k
      op->idx.offset_reg = M680X_REG_D;
1522
1.51k
      op->idx.flags |= M680X_IDX_INDIRECT;
1523
1.51k
      break;
1524
1525
8.83k
    default: // n,-r n,+r n,r- n,r+
1526
      // PC is not allowed in this mode
1527
8.83k
      op->idx.base_reg =
1528
8.83k
        g_idx12_to_reg_ids[(post_byte >> 6) & 0x03];
1529
8.83k
      op->idx.inc_dec = post_byte & 0x0f;
1530
1531
8.83k
      if (op->idx.inc_dec & 0x08) // evtl. sign extend value
1532
4.48k
        op->idx.inc_dec |= 0xf0;
1533
1534
8.83k
      if (op->idx.inc_dec >= 0)
1535
4.34k
        op->idx.inc_dec++;
1536
1537
8.83k
      if (post_byte & 0x10)
1538
3.13k
        op->idx.flags |= M680X_IDX_POST_INC_DEC;
1539
1540
8.83k
      break;
1541
15.9k
    }
1542
15.9k
  }
1543
23.7k
}
1544
1545
static void index_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1546
615
{
1547
615
  cs_m680x *m680x = &info->m680x;
1548
615
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1549
1550
615
  op->type = M680X_OP_CONSTANT;
1551
615
  read_byte(info, &op->const_val, (*address)++);
1552
615
};
1553
1554
static void direct_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1555
37.7k
{
1556
37.7k
  cs_m680x *m680x = &info->m680x;
1557
37.7k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1558
1559
37.7k
  op->type = M680X_OP_DIRECT;
1560
37.7k
  set_operand_size(info, op, 1);
1561
37.7k
  read_byte(info, &op->direct_addr, (*address)++);
1562
37.7k
};
1563
1564
static void extended_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1565
32.3k
{
1566
32.3k
  cs_m680x *m680x = &info->m680x;
1567
32.3k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1568
1569
32.3k
  op->type = M680X_OP_EXTENDED;
1570
32.3k
  set_operand_size(info, op, 1);
1571
32.3k
  read_word(info, &op->ext.address, *address);
1572
32.3k
  *address += 2;
1573
32.3k
}
1574
1575
static void immediate_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1576
18.9k
{
1577
18.9k
  cs_m680x *m680x = &info->m680x;
1578
18.9k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1579
18.9k
  uint16_t word = 0;
1580
18.9k
  int16_t sword = 0;
1581
1582
18.9k
  op->type = M680X_OP_IMMEDIATE;
1583
18.9k
  set_operand_size(info, op, 1);
1584
1585
18.9k
  switch (op->size) {
1586
16.9k
  case 1:
1587
16.9k
    read_byte_sign_extended(info, &sword, *address);
1588
16.9k
    op->imm = sword;
1589
16.9k
    break;
1590
1591
1.82k
  case 2:
1592
1.82k
    read_word(info, &word, *address);
1593
1.82k
    op->imm = (int16_t)word;
1594
1.82k
    break;
1595
1596
99
  case 4:
1597
99
    read_sdword(info, &op->imm, *address);
1598
99
    break;
1599
1600
0
  default:
1601
0
    op->imm = 0;
1602
0
    CS_ASSERT(0 && "Unexpected immediate byte size");
1603
18.9k
  }
1604
1605
18.9k
  *address += op->size;
1606
18.9k
}
1607
1608
// handler for bit move instructions, e.g: BAND A,5,1,$40  Used by HD6309
1609
static void bit_move_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1610
314
{
1611
314
  static const m680x_reg m680x_reg[] = {
1612
314
    M680X_REG_CC,
1613
314
    M680X_REG_A,
1614
314
    M680X_REG_B,
1615
314
    M680X_REG_INVALID,
1616
314
  };
1617
1618
314
  uint8_t post_byte = 0;
1619
314
  cs_m680x *m680x = &info->m680x;
1620
314
  cs_m680x_op *op;
1621
1622
314
  read_byte(info, &post_byte, *address);
1623
314
  (*address)++;
1624
1625
  // operand[0] = register
1626
314
  add_reg_operand(info, m680x_reg[post_byte >> 6]);
1627
1628
  // operand[1] = bit index in source operand
1629
314
  op = &m680x->operands[m680x->op_count++];
1630
314
  op->type = M680X_OP_CONSTANT;
1631
314
  op->const_val = (post_byte >> 3) & 0x07;
1632
1633
  // operand[2] = bit index in destination operand
1634
314
  op = &m680x->operands[m680x->op_count++];
1635
314
  op->type = M680X_OP_CONSTANT;
1636
314
  op->const_val = post_byte & 0x07;
1637
1638
314
  direct_hdlr(MI, info, address);
1639
314
}
1640
1641
// handler for TFM instruction, e.g: TFM X+,Y+  Used by HD6309
1642
static void tfm_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1643
360
{
1644
360
  static const uint8_t inc_dec_r0[] = {
1645
360
    1,
1646
360
    -1,
1647
360
    1,
1648
360
    0,
1649
360
  };
1650
360
  static const uint8_t inc_dec_r1[] = {
1651
360
    1,
1652
360
    -1,
1653
360
    0,
1654
360
    1,
1655
360
  };
1656
360
  uint8_t regs = 0;
1657
360
  uint8_t index = (MI->Opcode & 0xff) - 0x38;
1658
1659
360
  read_byte(info, &regs, *address);
1660
1661
360
  add_indexed_operand(info, g_tfr_exg_reg_ids[regs >> 4], true,
1662
360
          inc_dec_r0[index], M680X_OFFSET_NONE, 0, true);
1663
360
  add_indexed_operand(info, g_tfr_exg_reg_ids[regs & 0x0f], true,
1664
360
          inc_dec_r1[index], M680X_OFFSET_NONE, 0, true);
1665
1666
360
  add_reg_to_rw_list(MI, M680X_REG_W, READ | WRITE);
1667
360
}
1668
1669
static void opidx_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1670
1.12k
{
1671
1.12k
  cs_m680x *m680x = &info->m680x;
1672
1.12k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1673
1674
  // bit index is coded in Opcode
1675
1.12k
  op->type = M680X_OP_CONSTANT;
1676
1.12k
  op->const_val = (MI->Opcode & 0x0e) >> 1;
1677
1.12k
}
1678
1679
// handler for bit test and branch instruction. Used by M6805.
1680
// The bit index is part of the opcode.
1681
// Example: BRSET 3,<$40,LOOP
1682
static void opidx_dir_rel_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1683
3.31k
{
1684
3.31k
  cs_m680x *m680x = &info->m680x;
1685
3.31k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1686
1687
  // bit index is coded in Opcode
1688
3.31k
  op->type = M680X_OP_CONSTANT;
1689
3.31k
  op->const_val = (MI->Opcode & 0x0e) >> 1;
1690
3.31k
  direct_hdlr(MI, info, address);
1691
3.31k
  relative8_hdlr(MI, info, address);
1692
1693
3.31k
  add_reg_to_rw_list(MI, M680X_REG_CC, MODIFY);
1694
3.31k
}
1695
1696
static void indexedX0_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1697
4.81k
{
1698
4.81k
  add_indexed_operand(info, M680X_REG_X, false, 0, M680X_OFFSET_NONE, 0,
1699
4.81k
          false);
1700
4.81k
}
1701
1702
static void indexedX16_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1703
1.06k
{
1704
1.06k
  uint16_t offset = 0;
1705
1706
1.06k
  read_word(info, &offset, *address);
1707
1.06k
  *address += 2;
1708
1.06k
  add_indexed_operand(info, M680X_REG_X, false, 0, M680X_OFFSET_BITS_16,
1709
1.06k
          offset, false);
1710
1.06k
}
1711
1712
static void imm_rel_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1713
2.30k
{
1714
2.30k
  immediate_hdlr(MI, info, address);
1715
2.30k
  relative8_hdlr(MI, info, address);
1716
2.30k
}
1717
1718
static void indexedS_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1719
336
{
1720
336
  uint8_t offset = 0;
1721
1722
336
  read_byte(info, &offset, (*address)++);
1723
1724
336
  add_indexed_operand(info, M680X_REG_S, false, 0, M680X_OFFSET_BITS_8,
1725
336
          (uint16_t)offset, false);
1726
336
}
1727
1728
static void indexedS16_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1729
44
{
1730
44
  uint16_t offset = 0;
1731
1732
44
  read_word(info, &offset, *address);
1733
44
  *address += 2;
1734
1735
44
  add_indexed_operand(info, M680X_REG_S, false, 0, M680X_OFFSET_BITS_16,
1736
44
          offset, false);
1737
44
}
1738
1739
static void indexedX0p_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1740
1.93k
{
1741
1.93k
  add_indexed_operand(info, M680X_REG_X, true, 1, M680X_OFFSET_NONE, 0,
1742
1.93k
          true);
1743
1.93k
}
1744
1745
static void indexedXp_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1746
552
{
1747
552
  uint8_t offset = 0;
1748
1749
552
  read_byte(info, &offset, (*address)++);
1750
1751
552
  add_indexed_operand(info, M680X_REG_X, true, 1, M680X_OFFSET_BITS_8,
1752
552
          (uint16_t)offset, false);
1753
552
}
1754
1755
static void imm_idx12_x_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1756
3.99k
{
1757
3.99k
  cs_m680x *m680x = &info->m680x;
1758
3.99k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1759
1760
3.99k
  indexed12_hdlr(MI, info, address);
1761
3.99k
  op->type = M680X_OP_IMMEDIATE;
1762
1763
3.99k
  if (info->insn == M680X_INS_MOVW) {
1764
1.17k
    uint16_t imm16 = 0;
1765
1766
1.17k
    read_word(info, &imm16, *address);
1767
1.17k
    op->imm = (int16_t)imm16;
1768
1.17k
    op->size = 2;
1769
2.81k
  } else {
1770
2.81k
    uint8_t imm8 = 0;
1771
1772
2.81k
    read_byte(info, &imm8, *address);
1773
2.81k
    op->imm = (int8_t)imm8;
1774
2.81k
    op->size = 1;
1775
2.81k
  }
1776
1777
3.99k
  set_operand_size(info, op, 1);
1778
3.99k
}
1779
1780
static void ext_idx12_x_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1781
1.20k
{
1782
1.20k
  cs_m680x *m680x = &info->m680x;
1783
1.20k
  cs_m680x_op *op0 = &m680x->operands[m680x->op_count++];
1784
1.20k
  uint16_t imm16 = 0;
1785
1786
1.20k
  indexed12_hdlr(MI, info, address);
1787
1.20k
  read_word(info, &imm16, *address);
1788
1.20k
  op0->type = M680X_OP_EXTENDED;
1789
1.20k
  op0->ext.address = (int16_t)imm16;
1790
1.20k
  set_operand_size(info, op0, 1);
1791
1.20k
}
1792
1793
// handler for CPU12 DBEQ/DNBE/IBEQ/IBNE/TBEQ/TBNE instructions.
1794
// Example: DBNE X,$1000
1795
static void loop_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1796
1.60k
{
1797
1.60k
  static const m680x_reg index_to_reg_id[] = {
1798
1.60k
    M680X_REG_A, M680X_REG_B, M680X_REG_INVALID, M680X_REG_INVALID,
1799
1.60k
    M680X_REG_D, M680X_REG_X, M680X_REG_Y,       M680X_REG_S,
1800
1.60k
  };
1801
1.60k
  static const m680x_insn index_to_insn_id[] = {
1802
1.60k
    M680X_INS_DBEQ, M680X_INS_DBNE, M680X_INS_TBEQ,  M680X_INS_TBNE,
1803
1.60k
    M680X_INS_IBEQ, M680X_INS_IBNE, M680X_INS_ILLGL, M680X_INS_ILLGL
1804
1.60k
  };
1805
1.60k
  cs_m680x *m680x = &info->m680x;
1806
1.60k
  uint8_t post_byte = 0;
1807
1.60k
  uint8_t rel = 0;
1808
1.60k
  cs_m680x_op *op;
1809
1810
1.60k
  read_byte(info, &post_byte, (*address)++);
1811
1812
1.60k
  info->insn = index_to_insn_id[(post_byte >> 5) & 0x07];
1813
1814
1.60k
  if (info->insn == M680X_INS_ILLGL) {
1815
0
    illegal_hdlr(MI, info, address);
1816
0
  };
1817
1818
1.60k
  read_byte(info, &rel, (*address)++);
1819
1820
1.60k
  add_reg_operand(info, index_to_reg_id[post_byte & 0x07]);
1821
1822
1.60k
  op = &m680x->operands[m680x->op_count++];
1823
1824
1.60k
  op->type = M680X_OP_RELATIVE;
1825
1826
1.60k
  op->rel.offset = (post_byte & 0x10) ? (int16_t)(0xff00 | rel) : rel;
1827
1828
1.60k
  op->rel.address = *address + op->rel.offset;
1829
1830
1.60k
  add_insn_group(MI->flat_insn->detail, M680X_GRP_BRAREL);
1831
1.60k
}
1832
1833
// handler for RS08 specific TNY instruction
1834
// The operand address is embedded in the the least 4 significant bits of the opcode
1835
static void tny_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1836
2.45k
{
1837
2.45k
  cs_m680x *m680x = &info->m680x;
1838
2.45k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1839
1840
2.45k
  op->type = M680X_OP_DIRECT;
1841
2.45k
  op->direct_addr = (uint8_t)(MI->Opcode & 0x0F);
1842
2.45k
  op->size = 1;
1843
2.45k
}
1844
1845
// handler for RS08 specific SRT instruction
1846
// The operand address is embedded in the the least 5 significant bits of the opcode
1847
static void srt_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1848
2.37k
{
1849
2.37k
  cs_m680x *m680x = &info->m680x;
1850
2.37k
  cs_m680x_op *op = &m680x->operands[m680x->op_count++];
1851
1852
2.37k
  op->type = M680X_OP_DIRECT;
1853
2.37k
  op->direct_addr = (uint8_t)(MI->Opcode & 0x1F);
1854
2.37k
  op->size = 1;
1855
2.37k
}
1856
1857
static void dirdir_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1858
368
{
1859
368
  direct_hdlr(MI, info, address);
1860
368
  direct_hdlr(MI, info, address);
1861
368
}
1862
1863
static void immdir_hdlr(MCInst *MI, m680x_info *info, uint16_t *address)
1864
99
{
1865
99
  immediate_hdlr(MI, info, address);
1866
99
  direct_hdlr(MI, info, address);
1867
99
}
1868
1869
static void (*const g_insn_handler[])(MCInst *, m680x_info *, uint16_t *) = {
1870
  illegal_hdlr,   relative8_hdlr,   relative16_hdlr,
1871
  immediate_hdlr, // 8-bit
1872
  immediate_hdlr, // 16-bit
1873
  immediate_hdlr, // 32-bit
1874
  direct_hdlr,    extended_hdlr,    indexedX_hdlr,   indexedY_hdlr,
1875
  indexed09_hdlr,   inherent_hdlr,    reg_reg09_hdlr,  reg_bits_hdlr,
1876
  bit_move_hdlr,    tfm_hdlr,     opidx_hdlr,      opidx_dir_rel_hdlr,
1877
  indexedX0_hdlr,   indexedX16_hdlr,  imm_rel_hdlr,    indexedS_hdlr,
1878
  indexedS16_hdlr,  indexedXp_hdlr,   indexedX0p_hdlr, indexed12_hdlr,
1879
  indexed12_hdlr, // subset of indexed12
1880
  reg_reg12_hdlr,   loop_hdlr,      index_hdlr,      imm_idx12_x_hdlr,
1881
  imm_idx12_x_hdlr, ext_idx12_x_hdlr, srt_hdlr,      tny_hdlr,
1882
  dirdir_hdlr,    immdir_hdlr
1883
}; /* handler function pointers */
1884
1885
/* Disasemble one instruction at address and store in str_buff */
1886
static unsigned int m680x_disassemble(MCInst *MI, m680x_info *info,
1887
              uint16_t address)
1888
249k
{
1889
249k
  cs_m680x *m680x = &info->m680x;
1890
249k
  cs_detail *detail = MI->flat_insn->detail;
1891
249k
  uint16_t base_address = address;
1892
249k
  insn_desc insn_description;
1893
249k
  e_access_mode access_mode;
1894
1895
249k
  if (detail != NULL) {
1896
249k
    memset(detail, 0,
1897
249k
           offsetof(cs_detail, m680x) + sizeof(cs_m680x));
1898
249k
  }
1899
1900
249k
  memset(&insn_description, 0, sizeof(insn_description));
1901
249k
  memset(m680x, 0, sizeof(*m680x));
1902
249k
  info->insn_size = 1;
1903
1904
249k
  if (decode_insn(info, address, &insn_description)) {
1905
224k
    m680x_reg reg;
1906
1907
224k
    if (insn_description.opcode > 0xff)
1908
12.1k
      address += 2; // 8-bit opcode + page prefix
1909
212k
    else
1910
212k
      address++; // 8-bit opcode only
1911
1912
224k
    info->insn = insn_description.insn;
1913
1914
224k
    MCInst_setOpcode(MI, insn_description.opcode);
1915
1916
224k
    reg = g_insn_props[info->insn].reg0;
1917
1918
224k
    if (reg != M680X_REG_INVALID) {
1919
122k
      if (reg == M680X_REG_HX &&
1920
1.19k
          (!info->cpu->reg_byte_size[reg]))
1921
409
        reg = M680X_REG_X;
1922
1923
122k
      add_reg_operand(info, reg);
1924
      // First (or second) operand is a register which is
1925
      // part of the mnemonic
1926
122k
      m680x->flags |= M680X_FIRST_OP_IN_MNEM;
1927
122k
      reg = g_insn_props[info->insn].reg1;
1928
1929
122k
      if (reg != M680X_REG_INVALID) {
1930
5.00k
        if (reg == M680X_REG_HX &&
1931
599
            (!info->cpu->reg_byte_size[reg]))
1932
323
          reg = M680X_REG_X;
1933
1934
5.00k
        add_reg_operand(info, reg);
1935
5.00k
        m680x->flags |= M680X_SECOND_OP_IN_MNEM;
1936
5.00k
      }
1937
122k
    }
1938
1939
    // Call addressing mode specific instruction handler
1940
224k
    (g_insn_handler[insn_description.hid[0]])(MI, info, &address);
1941
224k
    (g_insn_handler[insn_description.hid[1]])(MI, info, &address);
1942
1943
224k
    add_insn_group(detail, g_insn_props[info->insn].group);
1944
1945
224k
    if (g_insn_props[info->insn].cc_modified &&
1946
142k
        (info->cpu->insn_cc_not_modified[0] != info->insn) &&
1947
142k
        (info->cpu->insn_cc_not_modified[1] != info->insn))
1948
141k
      add_reg_to_rw_list(MI, M680X_REG_CC, MODIFY);
1949
1950
224k
    access_mode = g_insn_props[info->insn].access_mode;
1951
1952
    // Fix for M6805 BSET/BCLR. It has a different operand order
1953
    // in comparison to the M6811
1954
224k
    if ((info->cpu->insn_cc_not_modified[0] == info->insn) ||
1955
224k
        (info->cpu->insn_cc_not_modified[1] == info->insn))
1956
1.12k
      access_mode = rmmm;
1957
1958
224k
    build_regs_read_write_counts(MI, info, access_mode);
1959
224k
    add_operators_access(MI, info, access_mode);
1960
1961
224k
    if (g_insn_props[info->insn].update_reg_access)
1962
21.9k
      set_changed_regs_read_write_counts(MI, info);
1963
1964
224k
    info->insn_size = (uint8_t)insn_description.insn_size;
1965
1966
224k
    return info->insn_size;
1967
224k
  } else
1968
25.0k
    MCInst_setOpcode(MI, insn_description.opcode);
1969
1970
  // Illegal instruction
1971
25.0k
  address = base_address;
1972
25.0k
  illegal_hdlr(MI, info, &address);
1973
25.0k
  return 1;
1974
249k
}
1975
1976
// Tables to get the byte size of a register on the CPU
1977
// based on an enum m680x_reg value defined in m680x.h
1978
// Invalid registers return 0.
1979
static const uint8_t g_m6800_reg_byte_size[23] = {
1980
  // A  B  E  F  0  D  W  CC DP MD HX H  X  Y  S  U  V  Q  PC SPC T2 T3
1981
  0, 1, 1, 0, 0, 0, 0, 0, 1, 0, 0, 0, 0, 2, 0, 2, 0, 0, 0, 2, 0, 0, 0
1982
};
1983
1984
static const uint8_t g_m6805_reg_byte_size[23] = {
1985
  // A  B  E  F  0  D  W  CC DP MD HX H  X  Y  S  U  V  Q  PC SPC T2 T3
1986
  0, 1, 0, 0, 0, 0, 0, 0, 1, 0, 0, 0, 0, 1, 0, 2, 0, 0, 0, 2, 0, 0, 0
1987
};
1988
1989
static const uint8_t g_m6808_reg_byte_size[23] = {
1990
  // A  B  E  F  0  D  W  CC DP MD HX H  X  Y  S  U  V  Q  PC SPC T2 T3
1991
  0, 1, 0, 0, 0, 0, 0, 0, 1, 0, 0, 2, 1, 1, 0, 2, 0, 0, 0, 2, 0, 0, 0
1992
};
1993
1994
static const uint8_t g_m6801_reg_byte_size[23] = {
1995
  // A  B  E  F  0  D  W  CC DP MD HX H  X  Y  S  U  V  Q  PC SPC T2 T3
1996
  0, 1, 1, 0, 0, 0, 2, 0, 1, 0, 0, 0, 0, 2, 0, 2, 0, 0, 0, 2, 0, 0, 0
1997
};
1998
1999
static const uint8_t g_m6811_reg_byte_size[23] = {
2000
  // A  B  E  F  0  D  W  CC DP MD HX H  X  Y  S  U  V  Q  PC SPC T2 T3
2001
  0, 1, 1, 0, 0, 0, 2, 0, 1, 0, 0, 0, 0, 2, 2, 2, 0, 0, 0, 2, 0, 0, 0
2002
};
2003
2004
static const uint8_t g_cpu12_reg_byte_size[23] = {
2005
  // A  B  E  F  0  D  W  CC DP MD HX H  X  Y  S  U  V  Q  PC SPC T2 T3
2006
  0, 1, 1, 0, 0, 0, 2, 0, 1, 0, 0, 0, 0, 2, 2, 2, 0, 0, 0, 2, 0, 2, 2
2007
};
2008
2009
static const uint8_t g_m6809_reg_byte_size[23] = {
2010
  // A  B  E  F  0  D  W  CC DP MD HX H  X  Y  S  U  V  Q  PC SPC T2 T3
2011
  0, 1, 1, 0, 0, 0, 2, 0, 1, 1, 0, 0, 0, 2, 2, 2, 2, 0, 0, 2, 0, 0, 0
2012
};
2013
2014
static const uint8_t g_hd6309_reg_byte_size[23] = {
2015
  // A  B  E  F  0  D  W  CC DP MD HX H  X  Y  S  U  V  Q  PC SPC T2 T3
2016
  0, 1, 1, 1, 1, 1, 2, 2, 1, 1, 1, 0, 0, 2, 2, 2, 2, 2, 4, 2, 0, 0, 0
2017
};
2018
2019
static const uint8_t g_rs08_reg_byte_size[23] = {
2020
  // A  B  E  F  0  D  W  CC DP MD HX H  X  Y  S  U  V  Q  PC SPC T2 T3
2021
  0, 1, 0, 0, 0, 0, 0, 0, 1, 0, 0, 2, 1, 1, 0, 2, 0, 0, 0, 2, 2, 0, 0
2022
};
2023
2024
static const uint8_t g_hcs12x_reg_byte_size[23] = {
2025
  // A  B  E  F  0  D  W  CC DP MD HX H  X  Y  S  U  V  Q  PC SPC T2 T3
2026
  0, 1, 1, 0, 0, 0, 2, 0, 1, 0, 0, 0, 0, 2, 2, 2, 0, 0, 0, 2, 0, 2, 2
2027
};
2028
2029
// Table to check for a valid register nibble on the M6809 CPU
2030
// used for TFR and EXG instruction.
2031
static const bool m6809_tfr_reg_valid[16] = {
2032
  true, true, true, true, true,  true,  false, false,
2033
  true, true, true, true, false, false, false, false,
2034
};
2035
2036
static const cpu_tables g_cpu_tables[] = {
2037
  { // M680X_CPU_TYPE_INVALID
2038
    NULL,
2039
    { NULL, NULL },
2040
    { 0, 0 },
2041
    { 0x00, 0x00, 0x00 },
2042
    { NULL, NULL, NULL },
2043
    { 0, 0, 0 },
2044
    NULL,
2045
    NULL,
2046
    { M680X_INS_INVLD, M680X_INS_INVLD } },
2047
  { // M680X_CPU_TYPE_6301
2048
    &g_m6800_inst_page1_table[0],
2049
    { &g_m6801_inst_overlay_table[0], &g_hd6301_inst_overlay_table[0] },
2050
    { ARR_SIZE(g_m6801_inst_overlay_table),
2051
      ARR_SIZE(g_hd6301_inst_overlay_table) },
2052
    { 0x00, 0x00, 0x00 },
2053
    { NULL, NULL, NULL },
2054
    { 0, 0, 0 },
2055
    &g_m6801_reg_byte_size[0],
2056
    NULL,
2057
    { M680X_INS_INVLD, M680X_INS_INVLD } },
2058
  { // M680X_CPU_TYPE_6309
2059
    &g_m6809_inst_page1_table[0],
2060
    { &g_hd6309_inst_overlay_table[0], NULL },
2061
    { ARR_SIZE(g_hd6309_inst_overlay_table), 0 },
2062
    { 0x10, 0x11, 0x00 },
2063
    { &g_hd6309_inst_page2_table[0], &g_hd6309_inst_page3_table[0],
2064
      NULL },
2065
    { ARR_SIZE(g_hd6309_inst_page2_table),
2066
      ARR_SIZE(g_hd6309_inst_page3_table), 0 },
2067
    &g_hd6309_reg_byte_size[0],
2068
    NULL,
2069
    { M680X_INS_INVLD, M680X_INS_INVLD } },
2070
  { // M680X_CPU_TYPE_6800
2071
    &g_m6800_inst_page1_table[0],
2072
    { NULL, NULL },
2073
    { 0, 0 },
2074
    { 0x00, 0x00, 0x00 },
2075
    { NULL, NULL, NULL },
2076
    { 0, 0, 0 },
2077
    &g_m6800_reg_byte_size[0],
2078
    NULL,
2079
    { M680X_INS_INVLD, M680X_INS_INVLD } },
2080
  { // M680X_CPU_TYPE_6801
2081
    &g_m6800_inst_page1_table[0],
2082
    { &g_m6801_inst_overlay_table[0], NULL },
2083
    { ARR_SIZE(g_m6801_inst_overlay_table), 0 },
2084
    { 0x00, 0x00, 0x00 },
2085
    { NULL, NULL, NULL },
2086
    { 0, 0, 0 },
2087
    &g_m6801_reg_byte_size[0],
2088
    NULL,
2089
    { M680X_INS_INVLD, M680X_INS_INVLD } },
2090
  { // M680X_CPU_TYPE_6805
2091
    &g_m6805_inst_page1_table[0],
2092
    { NULL, NULL },
2093
    { 0, 0 },
2094
    { 0x00, 0x00, 0x00 },
2095
    { NULL, NULL, NULL },
2096
    { 0, 0, 0 },
2097
    &g_m6805_reg_byte_size[0],
2098
    NULL,
2099
    { M680X_INS_BCLR, M680X_INS_BSET } },
2100
  { // M680X_CPU_TYPE_6808
2101
    &g_m6805_inst_page1_table[0],
2102
    { &g_m6808_inst_overlay_table[0], NULL },
2103
    { ARR_SIZE(g_m6808_inst_overlay_table), 0 },
2104
    { 0x9E, 0x00, 0x00 },
2105
    { &g_m6808_inst_page2_table[0], NULL, NULL },
2106
    { ARR_SIZE(g_m6808_inst_page2_table), 0, 0 },
2107
    &g_m6808_reg_byte_size[0],
2108
    NULL,
2109
    { M680X_INS_BCLR, M680X_INS_BSET } },
2110
  { // M680X_CPU_TYPE_6809
2111
    &g_m6809_inst_page1_table[0],
2112
    { NULL, NULL },
2113
    { 0, 0 },
2114
    { 0x10, 0x11, 0x00 },
2115
    { &g_m6809_inst_page2_table[0], &g_m6809_inst_page3_table[0], NULL },
2116
    { ARR_SIZE(g_m6809_inst_page2_table),
2117
      ARR_SIZE(g_m6809_inst_page3_table), 0 },
2118
    &g_m6809_reg_byte_size[0],
2119
    &m6809_tfr_reg_valid[0],
2120
    { M680X_INS_INVLD, M680X_INS_INVLD } },
2121
  { // M680X_CPU_TYPE_6811
2122
    &g_m6800_inst_page1_table[0],
2123
    { &g_m6801_inst_overlay_table[0], &g_m6811_inst_overlay_table[0] },
2124
    { ARR_SIZE(g_m6801_inst_overlay_table),
2125
      ARR_SIZE(g_m6811_inst_overlay_table) },
2126
    { 0x18, 0x1A, 0xCD },
2127
    { &g_m6811_inst_page2_table[0], &g_m6811_inst_page3_table[0],
2128
      &g_m6811_inst_page4_table[0] },
2129
    { ARR_SIZE(g_m6811_inst_page2_table),
2130
      ARR_SIZE(g_m6811_inst_page3_table),
2131
      ARR_SIZE(g_m6811_inst_page4_table) },
2132
    &g_m6811_reg_byte_size[0],
2133
    NULL,
2134
    { M680X_INS_INVLD, M680X_INS_INVLD } },
2135
  { // M680X_CPU_TYPE_CPU12
2136
    &g_cpu12_inst_page1_table[0],
2137
    { NULL, NULL },
2138
    { 0, 0 },
2139
    { 0x18, 0x00, 0x00 },
2140
    { &g_cpu12_inst_page2_table[0], NULL, NULL },
2141
    { ARR_SIZE(g_cpu12_inst_page2_table), 0, 0 },
2142
    &g_cpu12_reg_byte_size[0],
2143
    NULL,
2144
    { M680X_INS_INVLD, M680X_INS_INVLD } },
2145
  { // M680X_CPU_TYPE_HCS08
2146
    &g_m6805_inst_page1_table[0],
2147
    { &g_m6808_inst_overlay_table[0], &g_hcs08_inst_overlay_table[0] },
2148
    { ARR_SIZE(g_m6808_inst_overlay_table),
2149
      ARR_SIZE(g_hcs08_inst_overlay_table) },
2150
    { 0x9E, 0x00, 0x00 },
2151
    { &g_hcs08_inst_page2_table[0], NULL, NULL },
2152
    { ARR_SIZE(g_hcs08_inst_page2_table), 0, 0 },
2153
    &g_m6808_reg_byte_size[0],
2154
    NULL,
2155
    { M680X_INS_BCLR, M680X_INS_BSET } },
2156
  { // M680X_CPU_TYPE_RS08
2157
    &g_rs08_inst_page1_table[0],
2158
    { NULL, NULL },
2159
    { 0, 0 },
2160
    { 0x00, 0x00, 0x00 },
2161
    { NULL, NULL, NULL },
2162
    { 0, 0, 0 },
2163
    &g_rs08_reg_byte_size[0],
2164
    NULL,
2165
    { M680X_INS_INVLD, M680X_INS_INVLD } },
2166
  { // M680X_CPU_TYPE_HCS12X
2167
    &g_cpu12_inst_page1_table[0],
2168
    { NULL, NULL },
2169
    { 0, 0 },
2170
    { 0x18, 0x00, 0x00 },
2171
    { &g_hcs12x_inst_page2_table[0], NULL, NULL },
2172
    { ARR_SIZE(g_hcs12x_inst_page2_table), 0, 0 },
2173
    &g_hcs12x_reg_byte_size[0],
2174
    NULL,
2175
    { M680X_INS_INVLD, M680X_INS_INVLD } },
2176
};
2177
2178
static bool m680x_setup_internals(m680x_info *info, e_cpu_type cpu_type,
2179
          uint16_t address, const uint8_t *code,
2180
          uint16_t code_len)
2181
249k
{
2182
249k
  if (cpu_type == M680X_CPU_TYPE_INVALID) {
2183
0
    return false;
2184
0
  }
2185
2186
249k
  info->code = code;
2187
249k
  info->size = code_len;
2188
249k
  info->offset = address;
2189
249k
  info->cpu_type = cpu_type;
2190
2191
249k
  info->cpu = &g_cpu_tables[info->cpu_type];
2192
2193
249k
  return true;
2194
249k
}
2195
2196
bool M680X_getInstruction(csh ud, const uint8_t *code, size_t code_len,
2197
        MCInst *MI, uint16_t *size, uint64_t address,
2198
        void *inst_info)
2199
249k
{
2200
249k
  unsigned int insn_size = 0;
2201
249k
  e_cpu_type cpu_type = M680X_CPU_TYPE_INVALID; // No default CPU type
2202
249k
  cs_struct *handle = (cs_struct *)ud;
2203
249k
  m680x_info *info = (m680x_info *)handle->printer_info;
2204
2205
249k
  MCInst_clear(MI);
2206
2207
249k
  if (handle->mode & CS_MODE_M680X_6800)
2208
4.58k
    cpu_type = M680X_CPU_TYPE_6800;
2209
2210
245k
  else if (handle->mode & CS_MODE_M680X_6801)
2211
1.97k
    cpu_type = M680X_CPU_TYPE_6801;
2212
2213
243k
  else if (handle->mode & CS_MODE_M680X_6805)
2214
4.63k
    cpu_type = M680X_CPU_TYPE_6805;
2215
2216
238k
  else if (handle->mode & CS_MODE_M680X_6808)
2217
4.55k
    cpu_type = M680X_CPU_TYPE_6808;
2218
2219
234k
  else if (handle->mode & CS_MODE_M680X_HCS08)
2220
16.9k
    cpu_type = M680X_CPU_TYPE_HCS08;
2221
2222
217k
  else if (handle->mode & CS_MODE_M680X_6809)
2223
31.3k
    cpu_type = M680X_CPU_TYPE_6809;
2224
2225
185k
  else if (handle->mode & CS_MODE_M680X_6301)
2226
617
    cpu_type = M680X_CPU_TYPE_6301;
2227
2228
185k
  else if (handle->mode & CS_MODE_M680X_6309)
2229
65.7k
    cpu_type = M680X_CPU_TYPE_6309;
2230
2231
119k
  else if (handle->mode & CS_MODE_M680X_6811)
2232
16.0k
    cpu_type = M680X_CPU_TYPE_6811;
2233
2234
103k
  else if (handle->mode & CS_MODE_M680X_CPU12)
2235
46.3k
    cpu_type = M680X_CPU_TYPE_CPU12;
2236
2237
57.2k
  else if (handle->mode & CS_MODE_M680X_RS08)
2238
7.68k
    cpu_type = M680X_CPU_TYPE_RS08;
2239
2240
49.5k
  else if (handle->mode & CS_MODE_M680X_HCS12X)
2241
49.5k
    cpu_type = M680X_CPU_TYPE_HCS12X;
2242
2243
249k
  if (cpu_type != M680X_CPU_TYPE_INVALID &&
2244
249k
      m680x_setup_internals(info, cpu_type, (uint16_t)address, code,
2245
249k
          (uint16_t)code_len))
2246
249k
    insn_size = m680x_disassemble(MI, info, (uint16_t)address);
2247
2248
249k
  if (insn_size == 0) {
2249
0
    *size = 1;
2250
0
    return false;
2251
0
  }
2252
2253
  // Make sure we always stay within range
2254
249k
  if (insn_size > code_len) {
2255
9
    *size = (uint16_t)code_len;
2256
9
    return false;
2257
9
  } else
2258
249k
    *size = (uint16_t)insn_size;
2259
2260
249k
  return true;
2261
249k
}
2262
2263
cs_err M680X_disassembler_init(cs_struct *ud)
2264
1.70k
{
2265
1.70k
  if (M680X_REG_ENDING != ARR_SIZE(g_m6800_reg_byte_size)) {
2266
0
    CS_ASSERT(M680X_REG_ENDING == ARR_SIZE(g_m6800_reg_byte_size));
2267
2268
0
    return CS_ERR_MODE;
2269
0
  }
2270
2271
1.70k
  if (M680X_REG_ENDING != ARR_SIZE(g_m6801_reg_byte_size)) {
2272
0
    CS_ASSERT(M680X_REG_ENDING == ARR_SIZE(g_m6801_reg_byte_size));
2273
2274
0
    return CS_ERR_MODE;
2275
0
  }
2276
2277
1.70k
  if (M680X_REG_ENDING != ARR_SIZE(g_m6805_reg_byte_size)) {
2278
0
    CS_ASSERT(M680X_REG_ENDING == ARR_SIZE(g_m6805_reg_byte_size));
2279
2280
0
    return CS_ERR_MODE;
2281
0
  }
2282
2283
1.70k
  if (M680X_REG_ENDING != ARR_SIZE(g_m6808_reg_byte_size)) {
2284
0
    CS_ASSERT(M680X_REG_ENDING == ARR_SIZE(g_m6808_reg_byte_size));
2285
2286
0
    return CS_ERR_MODE;
2287
0
  }
2288
2289
1.70k
  if (M680X_REG_ENDING != ARR_SIZE(g_m6811_reg_byte_size)) {
2290
0
    CS_ASSERT(M680X_REG_ENDING == ARR_SIZE(g_m6811_reg_byte_size));
2291
2292
0
    return CS_ERR_MODE;
2293
0
  }
2294
2295
1.70k
  if (M680X_REG_ENDING != ARR_SIZE(g_cpu12_reg_byte_size)) {
2296
0
    CS_ASSERT(M680X_REG_ENDING == ARR_SIZE(g_cpu12_reg_byte_size));
2297
2298
0
    return CS_ERR_MODE;
2299
0
  }
2300
2301
1.70k
  if (M680X_REG_ENDING != ARR_SIZE(g_m6809_reg_byte_size)) {
2302
0
    CS_ASSERT(M680X_REG_ENDING == ARR_SIZE(g_m6809_reg_byte_size));
2303
2304
0
    return CS_ERR_MODE;
2305
0
  }
2306
2307
1.70k
  if (M680X_REG_ENDING != ARR_SIZE(g_rs08_reg_byte_size)) {
2308
0
    CS_ASSERT(M680X_REG_ENDING == ARR_SIZE(g_rs08_reg_byte_size));
2309
2310
0
    return CS_ERR_MODE;
2311
0
  }
2312
2313
1.70k
  if (M680X_REG_ENDING != ARR_SIZE(g_hcs12x_reg_byte_size)) {
2314
0
    CS_ASSERT(M680X_REG_ENDING == ARR_SIZE(g_hcs12x_reg_byte_size));
2315
2316
0
    return CS_ERR_MODE;
2317
0
  }
2318
2319
1.70k
  if (M680X_INS_ENDING != ARR_SIZE(g_insn_props)) {
2320
0
    CS_ASSERT(M680X_INS_ENDING == ARR_SIZE(g_insn_props));
2321
2322
0
    return CS_ERR_MODE;
2323
0
  }
2324
2325
1.70k
  if (M680X_CPU_TYPE_ENDING != ARR_SIZE(g_cpu_tables)) {
2326
0
    CS_ASSERT(M680X_CPU_TYPE_ENDING == ARR_SIZE(g_cpu_tables));
2327
2328
0
    return CS_ERR_MODE;
2329
0
  }
2330
2331
1.70k
  if (HANDLER_ID_ENDING != ARR_SIZE(g_insn_handler)) {
2332
0
    CS_ASSERT(HANDLER_ID_ENDING == ARR_SIZE(g_insn_handler));
2333
2334
0
    return CS_ERR_MODE;
2335
0
  }
2336
2337
1.70k
  if (ACCESS_MODE_ENDING != MATRIX_SIZE(g_access_mode_to_access)) {
2338
0
    CS_ASSERT(ACCESS_MODE_ENDING ==
2339
0
        MATRIX_SIZE(g_access_mode_to_access));
2340
2341
0
    return CS_ERR_MODE;
2342
0
  }
2343
2344
1.70k
  return CS_ERR_OK;
2345
1.70k
}
2346
2347
#ifndef CAPSTONE_DIET
2348
void M680X_reg_access(const cs_insn *insn, cs_regs regs_read,
2349
          uint8_t *regs_read_count, cs_regs regs_write,
2350
          uint8_t *regs_write_count)
2351
0
{
2352
0
  if (insn->detail == NULL) {
2353
0
    *regs_read_count = 0;
2354
0
    *regs_write_count = 0;
2355
0
  } else {
2356
0
    *regs_read_count = insn->detail->regs_read_count;
2357
0
    *regs_write_count = insn->detail->regs_write_count;
2358
2359
0
    memcpy(regs_read, insn->detail->regs_read,
2360
0
           *regs_read_count * sizeof(insn->detail->regs_read[0]));
2361
0
    memcpy(regs_write, insn->detail->regs_write,
2362
0
           *regs_write_count * sizeof(insn->detail->regs_write[0]));
2363
0
  }
2364
0
}
2365
#endif
2366
2367
#endif