Coverage Report

Created: 2026-08-08 07:07

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/bloaty/third_party/capstone/arch/X86/X86IntelInstPrinter.c
Line
Count
Source
1
//===-- X86IntelInstPrinter.cpp - Intel assembly instruction printing -----===//
2
//
3
//                     The LLVM Compiler Infrastructure
4
//
5
// This file is distributed under the University of Illinois Open Source
6
// License. See LICENSE.TXT for details.
7
//
8
//===----------------------------------------------------------------------===//
9
//
10
// This file includes code for rendering MCInst instances as Intel-style
11
// assembly.
12
//
13
//===----------------------------------------------------------------------===//
14
15
/* Capstone Disassembly Engine */
16
/* By Nguyen Anh Quynh <aquynh@gmail.com>, 2013-2019 */
17
18
#ifdef CAPSTONE_HAS_X86
19
20
#if defined (WIN32) || defined (WIN64) || defined (_WIN32) || defined (_WIN64)
21
#pragma warning(disable:4996)     // disable MSVC's warning on strncpy()
22
#pragma warning(disable:28719)    // disable MSVC's warning on strncpy()
23
#endif
24
25
#if !defined(CAPSTONE_HAS_OSXKERNEL)
26
#include <ctype.h>
27
#endif
28
#include <capstone/platform.h>
29
30
#if defined(CAPSTONE_HAS_OSXKERNEL)
31
#include <Availability.h>
32
#include <libkern/libkern.h>
33
#else
34
#include <stdio.h>
35
#include <stdlib.h>
36
#endif
37
#include <string.h>
38
39
#include "../../utils.h"
40
#include "../../MCInst.h"
41
#include "../../SStream.h"
42
#include "../../MCRegisterInfo.h"
43
44
#include "X86InstPrinter.h"
45
#include "X86Mapping.h"
46
#include "X86InstPrinterCommon.h"
47
48
#define GET_INSTRINFO_ENUM
49
#ifdef CAPSTONE_X86_REDUCE
50
#include "X86GenInstrInfo_reduce.inc"
51
#else
52
#include "X86GenInstrInfo.inc"
53
#endif
54
55
#define GET_REGINFO_ENUM
56
#include "X86GenRegisterInfo.inc"
57
58
#include "X86BaseInfo.h"
59
60
static void printMemReference(MCInst *MI, unsigned Op, SStream *O);
61
static void printOperand(MCInst *MI, unsigned OpNo, SStream *O);
62
63
64
static void set_mem_access(MCInst *MI, bool status)
65
4.33M
{
66
4.33M
  if (MI->csh->detail != CS_OPT_ON)
67
0
    return;
68
69
4.33M
  MI->csh->doing_mem = status;
70
4.33M
  if (!status)
71
    // done, create the next operand slot
72
2.16M
    MI->flat_insn->detail->x86.op_count++;
73
74
4.33M
}
75
76
static void printopaquemem(MCInst *MI, unsigned OpNo, SStream *O)
77
38.7k
{
78
  // FIXME: do this with autogen
79
  // printf(">>> ID = %u\n", MI->flat_insn->id);
80
38.7k
  switch(MI->flat_insn->id) {
81
29.3k
    default:
82
29.3k
      SStream_concat0(O, "ptr ");
83
29.3k
      break;
84
1.02k
    case X86_INS_SGDT:
85
5.06k
    case X86_INS_SIDT:
86
5.78k
    case X86_INS_LGDT:
87
7.47k
    case X86_INS_LIDT:
88
7.55k
    case X86_INS_FXRSTOR:
89
9.12k
    case X86_INS_FXSAVE:
90
9.39k
    case X86_INS_LJMP:
91
9.49k
    case X86_INS_LCALL:
92
      // do not print "ptr"
93
9.49k
      break;
94
38.7k
  }
95
96
38.7k
  switch(MI->csh->mode) {
97
0
    case CS_MODE_16:
98
0
      switch(MI->flat_insn->id) {
99
0
        default:
100
0
          MI->x86opsize = 2;
101
0
          break;
102
0
        case X86_INS_LJMP:
103
0
        case X86_INS_LCALL:
104
0
          MI->x86opsize = 4;
105
0
          break;
106
0
        case X86_INS_SGDT:
107
0
        case X86_INS_SIDT:
108
0
        case X86_INS_LGDT:
109
0
        case X86_INS_LIDT:
110
0
          MI->x86opsize = 6;
111
0
          break;
112
0
      }
113
0
      break;
114
36.1k
    case CS_MODE_32:
115
36.1k
      switch(MI->flat_insn->id) {
116
24.8k
        default:
117
24.8k
          MI->x86opsize = 4;
118
24.8k
          break;
119
107
        case X86_INS_LJMP:
120
4.36k
        case X86_INS_JMP:
121
4.36k
        case X86_INS_LCALL:
122
5.26k
        case X86_INS_SGDT:
123
9.06k
        case X86_INS_SIDT:
124
9.63k
        case X86_INS_LGDT:
125
11.2k
        case X86_INS_LIDT:
126
11.2k
          MI->x86opsize = 6;
127
11.2k
          break;
128
36.1k
      }
129
36.1k
      break;
130
36.1k
    case CS_MODE_64:
131
2.67k
      switch(MI->flat_insn->id) {
132
1.81k
        default:
133
1.81k
          MI->x86opsize = 8;
134
1.81k
          break;
135
162
        case X86_INS_LJMP:
136
254
        case X86_INS_LCALL:
137
373
        case X86_INS_SGDT:
138
613
        case X86_INS_SIDT:
139
766
        case X86_INS_LGDT:
140
857
        case X86_INS_LIDT:
141
857
          MI->x86opsize = 10;
142
857
          break;
143
2.67k
      }
144
2.67k
      break;
145
2.67k
    default:  // never reach
146
0
      break;
147
38.7k
  }
148
149
38.7k
  printMemReference(MI, OpNo, O);
150
38.7k
}
151
152
static void printi8mem(MCInst *MI, unsigned OpNo, SStream *O)
153
35.2M
{
154
35.2M
  SStream_concat0(O, "byte ptr ");
155
35.2M
  MI->x86opsize = 1;
156
35.2M
  printMemReference(MI, OpNo, O);
157
35.2M
}
158
159
static void printi16mem(MCInst *MI, unsigned OpNo, SStream *O)
160
609k
{
161
609k
  MI->x86opsize = 2;
162
609k
  SStream_concat0(O, "word ptr ");
163
609k
  printMemReference(MI, OpNo, O);
164
609k
}
165
166
static void printi32mem(MCInst *MI, unsigned OpNo, SStream *O)
167
5.70M
{
168
5.70M
  MI->x86opsize = 4;
169
5.70M
  SStream_concat0(O, "dword ptr ");
170
5.70M
  printMemReference(MI, OpNo, O);
171
5.70M
}
172
173
static void printi64mem(MCInst *MI, unsigned OpNo, SStream *O)
174
535k
{
175
535k
  SStream_concat0(O, "qword ptr ");
176
535k
  MI->x86opsize = 8;
177
535k
  printMemReference(MI, OpNo, O);
178
535k
}
179
180
static void printi128mem(MCInst *MI, unsigned OpNo, SStream *O)
181
26.8k
{
182
26.8k
  SStream_concat0(O, "xmmword ptr ");
183
26.8k
  MI->x86opsize = 16;
184
26.8k
  printMemReference(MI, OpNo, O);
185
26.8k
}
186
187
static void printi512mem(MCInst *MI, unsigned OpNo, SStream *O)
188
13.4k
{
189
13.4k
  SStream_concat0(O, "zmmword ptr ");
190
13.4k
  MI->x86opsize = 64;
191
13.4k
  printMemReference(MI, OpNo, O);
192
13.4k
}
193
194
#ifndef CAPSTONE_X86_REDUCE
195
static void printi256mem(MCInst *MI, unsigned OpNo, SStream *O)
196
43.2k
{
197
43.2k
  SStream_concat0(O, "ymmword ptr ");
198
43.2k
  MI->x86opsize = 32;
199
43.2k
  printMemReference(MI, OpNo, O);
200
43.2k
}
201
202
static void printf32mem(MCInst *MI, unsigned OpNo, SStream *O)
203
56.8k
{
204
56.8k
  switch(MCInst_getOpcode(MI)) {
205
48.6k
    default:
206
48.6k
      SStream_concat0(O, "dword ptr ");
207
48.6k
      MI->x86opsize = 4;
208
48.6k
      break;
209
3.48k
    case X86_FSTENVm:
210
8.26k
    case X86_FLDENVm:
211
      // TODO: fix this in tablegen instead
212
8.26k
      switch(MI->csh->mode) {
213
0
        default:    // never reach
214
0
          break;
215
0
        case CS_MODE_16:
216
0
          MI->x86opsize = 14;
217
0
          break;
218
7.40k
        case CS_MODE_32:
219
8.26k
        case CS_MODE_64:
220
8.26k
          MI->x86opsize = 28;
221
8.26k
          break;
222
8.26k
      }
223
8.26k
      break;
224
56.8k
  }
225
226
56.8k
  printMemReference(MI, OpNo, O);
227
56.8k
}
228
229
static void printf64mem(MCInst *MI, unsigned OpNo, SStream *O)
230
98.9k
{
231
  // TODO: fix COMISD in Tablegen instead (#1456)
232
98.9k
  if (MI->op1_size == 16) {
233
    // printf("printf64mem id = %u\n", MCInst_getOpcode(MI));
234
46.8k
    switch(MCInst_getOpcode(MI)) {
235
44.1k
      default:
236
44.1k
        SStream_concat0(O, "qword ptr ");
237
44.1k
        MI->x86opsize = 8;
238
44.1k
        break;
239
0
      case X86_MOVPQI2QImr:
240
2.71k
      case X86_COMISDrm:
241
2.71k
        SStream_concat0(O, "xmmword ptr ");
242
2.71k
        MI->x86opsize = 16;
243
2.71k
        break;
244
46.8k
    }
245
52.0k
  } else {
246
52.0k
    SStream_concat0(O, "qword ptr ");
247
52.0k
    MI->x86opsize = 8;
248
52.0k
  }
249
250
98.9k
  printMemReference(MI, OpNo, O);
251
98.9k
}
252
253
static void printf80mem(MCInst *MI, unsigned OpNo, SStream *O)
254
11.0k
{
255
11.0k
  switch(MCInst_getOpcode(MI)) {
256
1.28k
    default:
257
1.28k
      SStream_concat0(O, "xword ptr ");
258
1.28k
      break;
259
6.51k
    case X86_FBLDm:
260
9.78k
    case X86_FBSTPm:
261
9.78k
      break;
262
11.0k
  }
263
264
11.0k
  MI->x86opsize = 10;
265
11.0k
  printMemReference(MI, OpNo, O);
266
11.0k
}
267
268
static void printf128mem(MCInst *MI, unsigned OpNo, SStream *O)
269
23.8k
{
270
23.8k
  SStream_concat0(O, "xmmword ptr ");
271
23.8k
  MI->x86opsize = 16;
272
23.8k
  printMemReference(MI, OpNo, O);
273
23.8k
}
274
275
static void printf256mem(MCInst *MI, unsigned OpNo, SStream *O)
276
18.4k
{
277
18.4k
  SStream_concat0(O, "ymmword ptr ");
278
18.4k
  MI->x86opsize = 32;
279
18.4k
  printMemReference(MI, OpNo, O);
280
18.4k
}
281
282
static void printf512mem(MCInst *MI, unsigned OpNo, SStream *O)
283
21.7k
{
284
21.7k
  SStream_concat0(O, "zmmword ptr ");
285
21.7k
  MI->x86opsize = 64;
286
21.7k
  printMemReference(MI, OpNo, O);
287
21.7k
}
288
#endif
289
290
static const char *getRegisterName(unsigned RegNo);
291
static void printRegName(SStream *OS, unsigned RegNo)
292
96.7M
{
293
96.7M
  SStream_concat0(OS, getRegisterName(RegNo));
294
96.7M
}
295
296
// for MASM syntax, 0x123 = 123h, 0xA123 = 0A123h
297
// this function tell us if we need to have prefix 0 in front of a number
298
static bool need_zero_prefix(uint64_t imm)
299
0
{
300
  // find the first hex letter representing imm
301
0
  while(imm >= 0x10)
302
0
    imm >>= 4;
303
304
0
  if (imm < 0xa)
305
0
    return false;
306
0
  else  // this need 0 prefix
307
0
    return true;
308
0
}
309
310
static void printImm(MCInst *MI, SStream *O, int64_t imm, bool positive)
311
13.1M
{
312
13.1M
  if (positive) {
313
    // always print this number in positive form
314
10.3M
    if (MI->csh->syntax == CS_OPT_SYNTAX_MASM) {
315
0
      if (imm < 0) {
316
0
        if (MI->op1_size) {
317
0
          switch(MI->op1_size) {
318
0
            default:
319
0
              break;
320
0
            case 1:
321
0
              imm &= 0xff;
322
0
              break;
323
0
            case 2:
324
0
              imm &= 0xffff;
325
0
              break;
326
0
            case 4:
327
0
              imm &= 0xffffffff;
328
0
              break;
329
0
          }
330
0
        }
331
332
0
        if (imm == 0x8000000000000000LL)  // imm == -imm
333
0
          SStream_concat0(O, "8000000000000000h");
334
0
        else if (need_zero_prefix(imm))
335
0
          SStream_concat(O, "0%"PRIx64"h", imm);
336
0
        else
337
0
          SStream_concat(O, "%"PRIx64"h", imm);
338
0
      } else {
339
0
        if (imm > HEX_THRESHOLD) {
340
0
          if (need_zero_prefix(imm))
341
0
            SStream_concat(O, "0%"PRIx64"h", imm);
342
0
          else
343
0
            SStream_concat(O, "%"PRIx64"h", imm);
344
0
        } else
345
0
          SStream_concat(O, "%"PRIu64, imm);
346
0
      }
347
10.3M
    } else { // Intel syntax
348
10.3M
      if (imm < 0) {
349
125k
        if (MI->op1_size) {
350
38.1k
          switch(MI->op1_size) {
351
38.1k
            default:
352
38.1k
              break;
353
38.1k
            case 1:
354
0
              imm &= 0xff;
355
0
              break;
356
0
            case 2:
357
0
              imm &= 0xffff;
358
0
              break;
359
0
            case 4:
360
0
              imm &= 0xffffffff;
361
0
              break;
362
38.1k
          }
363
38.1k
        }
364
365
125k
        SStream_concat(O, "0x%"PRIx64, imm);
366
10.2M
      } else {
367
10.2M
        if (imm > HEX_THRESHOLD)
368
9.44M
          SStream_concat(O, "0x%"PRIx64, imm);
369
773k
        else
370
773k
          SStream_concat(O, "%"PRIu64, imm);
371
10.2M
      }
372
10.3M
    }
373
10.3M
  } else {
374
2.78M
    if (MI->csh->syntax == CS_OPT_SYNTAX_MASM) {
375
0
      if (imm < 0) {
376
0
        if (imm == 0x8000000000000000LL)  // imm == -imm
377
0
          SStream_concat0(O, "8000000000000000h");
378
0
        else if (imm < -HEX_THRESHOLD) {
379
0
          if (need_zero_prefix(imm))
380
0
            SStream_concat(O, "-0%"PRIx64"h", -imm);
381
0
          else
382
0
            SStream_concat(O, "-%"PRIx64"h", -imm);
383
0
        } else
384
0
          SStream_concat(O, "-%"PRIu64, -imm);
385
0
      } else {
386
0
        if (imm > HEX_THRESHOLD) {
387
0
          if (need_zero_prefix(imm))
388
0
            SStream_concat(O, "0%"PRIx64"h", imm);
389
0
          else
390
0
            SStream_concat(O, "%"PRIx64"h", imm);
391
0
        } else
392
0
          SStream_concat(O, "%"PRIu64, imm);
393
0
      }
394
2.78M
    } else { // Intel syntax
395
2.78M
      if (imm < 0) {
396
59.2k
        if (imm == 0x8000000000000000LL)  // imm == -imm
397
0
          SStream_concat0(O, "0x8000000000000000");
398
59.2k
        else if (imm < -HEX_THRESHOLD)
399
29.0k
          SStream_concat(O, "-0x%"PRIx64, -imm);
400
30.1k
        else
401
30.1k
          SStream_concat(O, "-%"PRIu64, -imm);
402
403
2.72M
      } else {
404
2.72M
        if (imm > HEX_THRESHOLD)
405
1.51M
          SStream_concat(O, "0x%"PRIx64, imm);
406
1.21M
        else
407
1.21M
          SStream_concat(O, "%"PRIu64, imm);
408
2.72M
      }
409
2.78M
    }
410
2.78M
  }
411
13.1M
}
412
413
// local printOperand, without updating public operands
414
static void _printOperand(MCInst *MI, unsigned OpNo, SStream *O)
415
43.9M
{
416
43.9M
  MCOperand *Op  = MCInst_getOperand(MI, OpNo);
417
43.9M
  if (MCOperand_isReg(Op)) {
418
43.9M
    printRegName(O, MCOperand_getReg(Op));
419
43.9M
  } else if (MCOperand_isImm(Op)) {
420
0
    int64_t imm = MCOperand_getImm(Op);
421
0
    printImm(MI, O, imm, MI->csh->imm_unsigned);
422
0
  }
423
43.9M
}
424
425
#ifndef CAPSTONE_DIET
426
// copy & normalize access info
427
static void get_op_access(cs_struct *h, unsigned int id, uint8_t *access, uint64_t *eflags)
428
167M
{
429
167M
#ifndef CAPSTONE_DIET
430
167M
  uint8_t i;
431
167M
  const uint8_t *arr = X86_get_op_access(h, id, eflags);
432
433
167M
  if (!arr) {
434
0
    access[0] = 0;
435
0
    return;
436
0
  }
437
438
  // copy to access but zero out CS_AC_IGNORE
439
478M
  for(i = 0; arr[i]; i++) {
440
311M
    if (arr[i] != CS_AC_IGNORE)
441
288M
      access[i] = arr[i];
442
23.8M
    else
443
23.8M
      access[i] = 0;
444
311M
  }
445
446
  // mark the end of array
447
167M
  access[i] = 0;
448
167M
#endif
449
167M
}
450
#endif
451
452
static void printSrcIdx(MCInst *MI, unsigned Op, SStream *O)
453
850k
{
454
850k
  MCOperand *SegReg;
455
850k
  int reg;
456
457
850k
  if (MI->csh->detail) {
458
850k
#ifndef CAPSTONE_DIET
459
850k
    uint8_t access[6];
460
850k
#endif
461
462
850k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].type = X86_OP_MEM;
463
850k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size = MI->x86opsize;
464
850k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.segment = X86_REG_INVALID;
465
850k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.base = X86_REG_INVALID;
466
850k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.index = X86_REG_INVALID;
467
850k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.scale = 1;
468
850k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.disp = 0;
469
470
850k
#ifndef CAPSTONE_DIET
471
850k
    get_op_access(MI->csh, MCInst_getOpcode(MI), access, &MI->flat_insn->detail->x86.eflags);
472
850k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].access = access[MI->flat_insn->detail->x86.op_count];
473
850k
#endif
474
850k
  }
475
476
850k
  SegReg = MCInst_getOperand(MI, Op + 1);
477
850k
  reg = MCOperand_getReg(SegReg);
478
479
  // If this has a segment register, print it.
480
850k
  if (reg) {
481
62.2k
    _printOperand(MI, Op + 1, O);
482
62.2k
    if (MI->csh->detail) {
483
62.2k
      MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.segment = X86_register_map(reg);
484
62.2k
    }
485
62.2k
    SStream_concat0(O, ":");
486
62.2k
  }
487
488
850k
  SStream_concat0(O, "[");
489
850k
  set_mem_access(MI, true);
490
850k
  printOperand(MI, Op, O);
491
850k
  SStream_concat0(O, "]");
492
850k
  set_mem_access(MI, false);
493
850k
}
494
495
static void printDstIdx(MCInst *MI, unsigned Op, SStream *O)
496
1.31M
{
497
1.31M
  if (MI->csh->detail) {
498
1.31M
#ifndef CAPSTONE_DIET
499
1.31M
    uint8_t access[6];
500
1.31M
#endif
501
502
1.31M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].type = X86_OP_MEM;
503
1.31M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size = MI->x86opsize;
504
1.31M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.segment = X86_REG_INVALID;
505
1.31M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.base = X86_REG_INVALID;
506
1.31M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.index = X86_REG_INVALID;
507
1.31M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.scale = 1;
508
1.31M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.disp = 0;
509
510
1.31M
#ifndef CAPSTONE_DIET
511
1.31M
    get_op_access(MI->csh, MCInst_getOpcode(MI), access, &MI->flat_insn->detail->x86.eflags);
512
1.31M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].access = access[MI->flat_insn->detail->x86.op_count];
513
1.31M
#endif
514
1.31M
  }
515
516
  // DI accesses are always ES-based on non-64bit mode
517
1.31M
  if (MI->csh->mode != CS_MODE_64) {
518
1.16M
    SStream_concat0(O, "es:[");
519
1.16M
    if (MI->csh->detail) {
520
1.16M
      MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.segment = X86_REG_ES;
521
1.16M
    }
522
1.16M
  } else
523
155k
    SStream_concat0(O, "[");
524
525
1.31M
  set_mem_access(MI, true);
526
1.31M
  printOperand(MI, Op, O);
527
1.31M
  SStream_concat0(O, "]");
528
1.31M
  set_mem_access(MI, false);
529
1.31M
}
530
531
static void printSrcIdx8(MCInst *MI, unsigned OpNo, SStream *O)
532
311k
{
533
311k
  SStream_concat0(O, "byte ptr ");
534
311k
  MI->x86opsize = 1;
535
311k
  printSrcIdx(MI, OpNo, O);
536
311k
}
537
538
static void printSrcIdx16(MCInst *MI, unsigned OpNo, SStream *O)
539
9.34k
{
540
9.34k
  SStream_concat0(O, "word ptr ");
541
9.34k
  MI->x86opsize = 2;
542
9.34k
  printSrcIdx(MI, OpNo, O);
543
9.34k
}
544
545
static void printSrcIdx32(MCInst *MI, unsigned OpNo, SStream *O)
546
518k
{
547
518k
  SStream_concat0(O, "dword ptr ");
548
518k
  MI->x86opsize = 4;
549
518k
  printSrcIdx(MI, OpNo, O);
550
518k
}
551
552
static void printSrcIdx64(MCInst *MI, unsigned OpNo, SStream *O)
553
11.1k
{
554
11.1k
  SStream_concat0(O, "qword ptr ");
555
11.1k
  MI->x86opsize = 8;
556
11.1k
  printSrcIdx(MI, OpNo, O);
557
11.1k
}
558
559
static void printDstIdx8(MCInst *MI, unsigned OpNo, SStream *O)
560
648k
{
561
648k
  SStream_concat0(O, "byte ptr ");
562
648k
  MI->x86opsize = 1;
563
648k
  printDstIdx(MI, OpNo, O);
564
648k
}
565
566
static void printDstIdx16(MCInst *MI, unsigned OpNo, SStream *O)
567
14.1k
{
568
14.1k
  SStream_concat0(O, "word ptr ");
569
14.1k
  MI->x86opsize = 2;
570
14.1k
  printDstIdx(MI, OpNo, O);
571
14.1k
}
572
573
static void printDstIdx32(MCInst *MI, unsigned OpNo, SStream *O)
574
645k
{
575
645k
  SStream_concat0(O, "dword ptr ");
576
645k
  MI->x86opsize = 4;
577
645k
  printDstIdx(MI, OpNo, O);
578
645k
}
579
580
static void printDstIdx64(MCInst *MI, unsigned OpNo, SStream *O)
581
8.11k
{
582
8.11k
  SStream_concat0(O, "qword ptr ");
583
8.11k
  MI->x86opsize = 8;
584
8.11k
  printDstIdx(MI, OpNo, O);
585
8.11k
}
586
587
static void printMemOffset(MCInst *MI, unsigned Op, SStream *O)
588
479k
{
589
479k
  MCOperand *DispSpec = MCInst_getOperand(MI, Op);
590
479k
  MCOperand *SegReg = MCInst_getOperand(MI, Op + 1);
591
479k
  int reg;
592
593
479k
  if (MI->csh->detail) {
594
479k
#ifndef CAPSTONE_DIET
595
479k
    uint8_t access[6];
596
479k
#endif
597
598
479k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].type = X86_OP_MEM;
599
479k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size = MI->x86opsize;
600
479k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.segment = X86_REG_INVALID;
601
479k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.base = X86_REG_INVALID;
602
479k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.index = X86_REG_INVALID;
603
479k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.scale = 1;
604
479k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.disp = 0;
605
606
479k
#ifndef CAPSTONE_DIET
607
479k
    get_op_access(MI->csh, MCInst_getOpcode(MI), access, &MI->flat_insn->detail->x86.eflags);
608
479k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].access = access[MI->flat_insn->detail->x86.op_count];
609
479k
#endif
610
479k
  }
611
612
  // If this has a segment register, print it.
613
479k
  reg = MCOperand_getReg(SegReg);
614
479k
  if (reg) {
615
68.5k
    _printOperand(MI, Op + 1, O);
616
68.5k
    SStream_concat0(O, ":");
617
68.5k
    if (MI->csh->detail) {
618
68.5k
      MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.segment = X86_register_map(reg);
619
68.5k
    }
620
68.5k
  }
621
622
479k
  SStream_concat0(O, "[");
623
624
479k
  if (MCOperand_isImm(DispSpec)) {
625
479k
    int64_t imm = MCOperand_getImm(DispSpec);
626
479k
    if (MI->csh->detail)
627
479k
      MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.disp = imm;
628
629
479k
    if (imm < 0)
630
87.3k
      printImm(MI, O, arch_masks[MI->csh->mode] & imm, true);
631
391k
    else
632
391k
      printImm(MI, O, imm, true);
633
479k
  }
634
635
479k
  SStream_concat0(O, "]");
636
637
479k
  if (MI->csh->detail)
638
479k
    MI->flat_insn->detail->x86.op_count++;
639
640
479k
  if (MI->op1_size == 0)
641
479k
    MI->op1_size = MI->x86opsize;
642
479k
}
643
644
static void printU8Imm(MCInst *MI, unsigned Op, SStream *O)
645
300k
{
646
300k
  uint8_t val = MCOperand_getImm(MCInst_getOperand(MI, Op)) & 0xff;
647
648
300k
  printImm(MI, O, val, true);
649
650
300k
  if (MI->csh->detail) {
651
300k
#ifndef CAPSTONE_DIET
652
300k
    uint8_t access[6];
653
300k
#endif
654
655
300k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].type = X86_OP_IMM;
656
300k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].imm = val;
657
300k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size = 1;
658
659
300k
#ifndef CAPSTONE_DIET
660
300k
    get_op_access(MI->csh, MCInst_getOpcode(MI), access, &MI->flat_insn->detail->x86.eflags);
661
300k
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].access = access[MI->flat_insn->detail->x86.op_count];
662
300k
#endif
663
664
300k
    MI->flat_insn->detail->x86.op_count++;
665
300k
  }
666
300k
}
667
668
static void printMemOffs8(MCInst *MI, unsigned OpNo, SStream *O)
669
271k
{
670
271k
  SStream_concat0(O, "byte ptr ");
671
271k
  MI->x86opsize = 1;
672
271k
  printMemOffset(MI, OpNo, O);
673
271k
}
674
675
static void printMemOffs16(MCInst *MI, unsigned OpNo, SStream *O)
676
52.3k
{
677
52.3k
  SStream_concat0(O, "word ptr ");
678
52.3k
  MI->x86opsize = 2;
679
52.3k
  printMemOffset(MI, OpNo, O);
680
52.3k
}
681
682
static void printMemOffs32(MCInst *MI, unsigned OpNo, SStream *O)
683
154k
{
684
154k
  SStream_concat0(O, "dword ptr ");
685
154k
  MI->x86opsize = 4;
686
154k
  printMemOffset(MI, OpNo, O);
687
154k
}
688
689
static void printMemOffs64(MCInst *MI, unsigned OpNo, SStream *O)
690
414
{
691
414
  SStream_concat0(O, "qword ptr ");
692
414
  MI->x86opsize = 8;
693
414
  printMemOffset(MI, OpNo, O);
694
414
}
695
696
static void printInstruction(MCInst *MI, SStream *O);
697
698
void X86_Intel_printInst(MCInst *MI, SStream *O, void *Info)
699
62.8M
{
700
62.8M
  x86_reg reg, reg2;
701
62.8M
  enum cs_ac_type access1, access2;
702
703
  // printf("opcode = %u\n", MCInst_getOpcode(MI));
704
705
  // perhaps this instruction does not need printer
706
62.8M
  if (MI->assembly[0]) {
707
0
    strncpy(O->buffer, MI->assembly, sizeof(O->buffer));
708
0
    return;
709
0
  }
710
711
62.8M
  X86_lockrep(MI, O);
712
62.8M
  printInstruction(MI, O);
713
714
62.8M
  reg = X86_insn_reg_intel(MCInst_getOpcode(MI), &access1);
715
62.8M
  if (MI->csh->detail) {
716
62.8M
#ifndef CAPSTONE_DIET
717
62.8M
    uint8_t access[6] = {0};
718
62.8M
#endif
719
720
    // first op can be embedded in the asm by llvm.
721
    // so we have to add the missing register as the first operand
722
62.8M
    if (reg) {
723
      // shift all the ops right to leave 1st slot for this new register op
724
4.87M
      memmove(&(MI->flat_insn->detail->x86.operands[1]), &(MI->flat_insn->detail->x86.operands[0]),
725
4.87M
          sizeof(MI->flat_insn->detail->x86.operands[0]) * (ARR_SIZE(MI->flat_insn->detail->x86.operands) - 1));
726
4.87M
      MI->flat_insn->detail->x86.operands[0].type = X86_OP_REG;
727
4.87M
      MI->flat_insn->detail->x86.operands[0].reg = reg;
728
4.87M
      MI->flat_insn->detail->x86.operands[0].size = MI->csh->regsize_map[reg];
729
4.87M
      MI->flat_insn->detail->x86.operands[0].access = access1;
730
4.87M
      MI->flat_insn->detail->x86.op_count++;
731
58.0M
    } else {
732
58.0M
      if (X86_insn_reg_intel2(MCInst_getOpcode(MI), &reg, &access1, &reg2, &access2)) {
733
350k
        MI->flat_insn->detail->x86.operands[0].type = X86_OP_REG;
734
350k
        MI->flat_insn->detail->x86.operands[0].reg = reg;
735
350k
        MI->flat_insn->detail->x86.operands[0].size = MI->csh->regsize_map[reg];
736
350k
        MI->flat_insn->detail->x86.operands[0].access = access1;
737
350k
        MI->flat_insn->detail->x86.operands[1].type = X86_OP_REG;
738
350k
        MI->flat_insn->detail->x86.operands[1].reg = reg2;
739
350k
        MI->flat_insn->detail->x86.operands[1].size = MI->csh->regsize_map[reg2];
740
350k
        MI->flat_insn->detail->x86.operands[1].access = access2;
741
350k
        MI->flat_insn->detail->x86.op_count = 2;
742
350k
      }
743
58.0M
    }
744
745
62.8M
#ifndef CAPSTONE_DIET
746
62.8M
    get_op_access(MI->csh, MCInst_getOpcode(MI), access, &MI->flat_insn->detail->x86.eflags);
747
62.8M
    MI->flat_insn->detail->x86.operands[0].access = access[0];
748
62.8M
    MI->flat_insn->detail->x86.operands[1].access = access[1];
749
62.8M
#endif
750
62.8M
  }
751
752
62.8M
  if (MI->op1_size == 0 && reg)
753
4.29M
    MI->op1_size = MI->csh->regsize_map[reg];
754
62.8M
}
755
756
/// printPCRelImm - This is used to print an immediate value that ends up
757
/// being encoded as a pc-relative value.
758
static void printPCRelImm(MCInst *MI, unsigned OpNo, SStream *O)
759
3.11M
{
760
3.11M
  MCOperand *Op = MCInst_getOperand(MI, OpNo);
761
3.11M
  if (MCOperand_isImm(Op)) {
762
3.11M
    int64_t imm = MCOperand_getImm(Op) + MI->flat_insn->size + MI->address;
763
3.11M
    uint8_t opsize = X86_immediate_size(MI->Opcode, NULL);
764
765
    // truncat imm for non-64bit
766
3.11M
    if (MI->csh->mode != CS_MODE_64) {
767
2.69M
      imm = imm & 0xffffffff;
768
2.69M
    }
769
770
3.11M
    printImm(MI, O, imm, true);
771
772
3.11M
    if (MI->csh->detail) {
773
3.11M
#ifndef CAPSTONE_DIET
774
3.11M
      uint8_t access[6];
775
3.11M
#endif
776
777
3.11M
      MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].type = X86_OP_IMM;
778
      // if op_count > 0, then this operand's size is taken from the destination op
779
3.11M
      if (MI->flat_insn->detail->x86.op_count > 0)
780
0
        MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size = MI->flat_insn->detail->x86.operands[0].size;
781
3.11M
      else if (opsize > 0)
782
51.0k
        MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size = opsize;
783
3.06M
      else
784
3.06M
        MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size = MI->imm_size;
785
3.11M
      MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].imm = imm;
786
787
3.11M
#ifndef CAPSTONE_DIET
788
3.11M
      get_op_access(MI->csh, MCInst_getOpcode(MI), access, &MI->flat_insn->detail->x86.eflags);
789
3.11M
      MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].access = access[MI->flat_insn->detail->x86.op_count];
790
3.11M
#endif
791
792
3.11M
      MI->flat_insn->detail->x86.op_count++;
793
3.11M
    }
794
795
3.11M
    if (MI->op1_size == 0)
796
3.11M
      MI->op1_size = MI->imm_size;
797
3.11M
  }
798
3.11M
}
799
800
static void printOperand(MCInst *MI, unsigned OpNo, SStream *O)
801
57.6M
{
802
57.6M
  MCOperand *Op  = MCInst_getOperand(MI, OpNo);
803
804
57.6M
  if (MCOperand_isReg(Op)) {
805
52.8M
    unsigned int reg = MCOperand_getReg(Op);
806
807
52.8M
    printRegName(O, reg);
808
52.8M
    if (MI->csh->detail) {
809
52.8M
      if (MI->csh->doing_mem) {
810
2.16M
        MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.base = X86_register_map(reg);
811
50.6M
      } else {
812
50.6M
#ifndef CAPSTONE_DIET
813
50.6M
        uint8_t access[6];
814
50.6M
#endif
815
816
50.6M
        MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].type = X86_OP_REG;
817
50.6M
        MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].reg = X86_register_map(reg);
818
50.6M
        MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size = MI->csh->regsize_map[X86_register_map(reg)];
819
820
50.6M
#ifndef CAPSTONE_DIET
821
50.6M
        get_op_access(MI->csh, MCInst_getOpcode(MI), access, &MI->flat_insn->detail->x86.eflags);
822
50.6M
        MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].access = access[MI->flat_insn->detail->x86.op_count];
823
50.6M
#endif
824
825
50.6M
        MI->flat_insn->detail->x86.op_count++;
826
50.6M
      }
827
52.8M
    }
828
829
52.8M
    if (MI->op1_size == 0)
830
15.4M
      MI->op1_size = MI->csh->regsize_map[X86_register_map(reg)];
831
52.8M
  } else if (MCOperand_isImm(Op)) {
832
4.81M
    uint8_t encsize;
833
4.81M
    int64_t imm = MCOperand_getImm(Op);
834
4.81M
    uint8_t opsize = X86_immediate_size(MCInst_getOpcode(MI), &encsize);
835
836
4.81M
    if (opsize == 1)    // print 1 byte immediate in positive form
837
2.21M
      imm = imm & 0xff;
838
839
    // printf(">>> id = %u\n", MI->flat_insn->id);
840
4.81M
    switch(MI->flat_insn->id) {
841
2.78M
      default:
842
2.78M
        printImm(MI, O, imm, MI->csh->imm_unsigned);
843
2.78M
        break;
844
845
21.6k
      case X86_INS_MOVABS:
846
838k
      case X86_INS_MOV:
847
        // do not print number in negative form
848
838k
        printImm(MI, O, imm, true);
849
838k
        break;
850
851
0
      case X86_INS_IN:
852
0
      case X86_INS_OUT:
853
0
      case X86_INS_INT:
854
        // do not print number in negative form
855
0
        imm = imm & 0xff;
856
0
        printImm(MI, O, imm, true);
857
0
        break;
858
859
109k
      case X86_INS_LCALL:
860
245k
      case X86_INS_LJMP:
861
245k
      case X86_INS_JMP:
862
        // always print address in positive form
863
245k
        if (OpNo == 1) { // ptr16 part
864
122k
          imm = imm & 0xffff;
865
122k
          opsize = 2;
866
122k
        } else
867
122k
          opsize = 4;
868
245k
        printImm(MI, O, imm, true);
869
245k
        break;
870
871
331k
      case X86_INS_AND:
872
580k
      case X86_INS_OR:
873
776k
      case X86_INS_XOR:
874
        // do not print number in negative form
875
776k
        if (imm >= 0 && imm <= HEX_THRESHOLD)
876
269k
          printImm(MI, O, imm, true);
877
506k
        else {
878
506k
          imm = arch_masks[opsize? opsize : MI->imm_size] & imm;
879
506k
          printImm(MI, O, imm, true);
880
506k
        }
881
776k
        break;
882
883
101k
      case X86_INS_RET:
884
163k
      case X86_INS_RETF:
885
        // RET imm16
886
163k
        if (imm >= 0 && imm <= HEX_THRESHOLD)
887
30.7k
          printImm(MI, O, imm, true);
888
132k
        else {
889
132k
          imm = 0xffff & imm;
890
132k
          printImm(MI, O, imm, true);
891
132k
        }
892
163k
        break;
893
4.81M
    }
894
895
4.81M
    if (MI->csh->detail) {
896
4.81M
      if (MI->csh->doing_mem) {
897
0
        MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.disp = imm;
898
4.81M
      } else {
899
4.81M
#ifndef CAPSTONE_DIET
900
4.81M
        uint8_t access[6];
901
4.81M
#endif
902
903
4.81M
        MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].type = X86_OP_IMM;
904
4.81M
        if (opsize > 0) {
905
4.18M
          MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size = opsize;
906
4.18M
          MI->flat_insn->detail->x86.encoding.imm_size = encsize;
907
4.18M
        } else if (MI->flat_insn->detail->x86.op_count > 0) {
908
366k
          if (MI->flat_insn->id != X86_INS_LCALL && MI->flat_insn->id != X86_INS_LJMP) {
909
366k
            MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size =
910
366k
              MI->flat_insn->detail->x86.operands[0].size;
911
366k
          } else
912
0
            MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size = MI->imm_size;
913
366k
        } else
914
255k
          MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size = MI->imm_size;
915
4.81M
        MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].imm = imm;
916
917
4.81M
#ifndef CAPSTONE_DIET
918
4.81M
        get_op_access(MI->csh, MCInst_getOpcode(MI), access, &MI->flat_insn->detail->x86.eflags);
919
4.81M
        MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].access = access[MI->flat_insn->detail->x86.op_count];
920
4.81M
#endif
921
922
4.81M
        MI->flat_insn->detail->x86.op_count++;
923
4.81M
      }
924
4.81M
    }
925
4.81M
  }
926
57.6M
}
927
928
static void printMemReference(MCInst *MI, unsigned Op, SStream *O)
929
42.5M
{
930
42.5M
  bool NeedPlus = false;
931
42.5M
  MCOperand *BaseReg  = MCInst_getOperand(MI, Op + X86_AddrBaseReg);
932
42.5M
  uint64_t ScaleVal = MCOperand_getImm(MCInst_getOperand(MI, Op + X86_AddrScaleAmt));
933
42.5M
  MCOperand *IndexReg  = MCInst_getOperand(MI, Op + X86_AddrIndexReg);
934
42.5M
  MCOperand *DispSpec = MCInst_getOperand(MI, Op + X86_AddrDisp);
935
42.5M
  MCOperand *SegReg = MCInst_getOperand(MI, Op + X86_AddrSegmentReg);
936
42.5M
  int reg;
937
938
42.5M
  if (MI->csh->detail) {
939
42.5M
#ifndef CAPSTONE_DIET
940
42.5M
    uint8_t access[6];
941
42.5M
#endif
942
943
42.5M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].type = X86_OP_MEM;
944
42.5M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].size = MI->x86opsize;
945
42.5M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.segment = X86_REG_INVALID;
946
42.5M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.base = X86_register_map(MCOperand_getReg(BaseReg));
947
42.5M
        if (MCOperand_getReg(IndexReg) != X86_EIZ) {
948
42.4M
            MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.index = X86_register_map(MCOperand_getReg(IndexReg));
949
42.4M
        }
950
42.5M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.scale = (int)ScaleVal;
951
42.5M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.disp = 0;
952
953
42.5M
#ifndef CAPSTONE_DIET
954
42.5M
    get_op_access(MI->csh, MCInst_getOpcode(MI), access, &MI->flat_insn->detail->x86.eflags);
955
42.5M
    MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].access = access[MI->flat_insn->detail->x86.op_count];
956
42.5M
#endif
957
42.5M
  }
958
959
  // If this has a segment register, print it.
960
42.5M
  reg = MCOperand_getReg(SegReg);
961
42.5M
  if (reg) {
962
730k
    _printOperand(MI, Op + X86_AddrSegmentReg, O);
963
730k
    if (MI->csh->detail) {
964
730k
      MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.segment = X86_register_map(reg);
965
730k
    }
966
730k
    SStream_concat0(O, ":");
967
730k
  }
968
969
42.5M
  SStream_concat0(O, "[");
970
971
42.5M
  if (MCOperand_getReg(BaseReg)) {
972
41.6M
    _printOperand(MI, Op + X86_AddrBaseReg, O);
973
41.6M
    NeedPlus = true;
974
41.6M
  }
975
976
42.5M
  if (MCOperand_getReg(IndexReg) && MCOperand_getReg(IndexReg) != X86_EIZ) {
977
1.43M
    if (NeedPlus) SStream_concat0(O, " + ");
978
1.43M
    _printOperand(MI, Op + X86_AddrIndexReg, O);
979
1.43M
    if (ScaleVal != 1)
980
525k
      SStream_concat(O, "*%u", ScaleVal);
981
1.43M
    NeedPlus = true;
982
1.43M
  }
983
984
42.5M
  if (MCOperand_isImm(DispSpec)) {
985
42.5M
    int64_t DispVal = MCOperand_getImm(DispSpec);
986
42.5M
    if (MI->csh->detail)
987
42.5M
      MI->flat_insn->detail->x86.operands[MI->flat_insn->detail->x86.op_count].mem.disp = DispVal;
988
42.5M
    if (DispVal) {
989
4.42M
      if (NeedPlus) {
990
3.67M
        if (DispVal < 0) {
991
713k
          SStream_concat0(O, " - ");
992
713k
          printImm(MI, O, -DispVal, true);
993
2.95M
        } else {
994
2.95M
          SStream_concat0(O, " + ");
995
2.95M
          printImm(MI, O, DispVal, true);
996
2.95M
        }
997
3.67M
      } else {
998
        // memory reference to an immediate address
999
755k
        if (MI->csh->mode == CS_MODE_64)
1000
1.70k
          MI->op1_size = 8;
1001
755k
        if (DispVal < 0) {
1002
83.5k
          printImm(MI, O, arch_masks[MI->csh->mode] & DispVal, true);
1003
671k
        } else {
1004
671k
          printImm(MI, O, DispVal, true);
1005
671k
        }
1006
755k
      }
1007
1008
38.1M
    } else {
1009
      // DispVal = 0
1010
38.1M
      if (!NeedPlus)  // [0]
1011
101k
        SStream_concat0(O, "0");
1012
38.1M
    }
1013
42.5M
  }
1014
1015
42.5M
  SStream_concat0(O, "]");
1016
1017
42.5M
  if (MI->csh->detail)
1018
42.5M
    MI->flat_insn->detail->x86.op_count++;
1019
1020
42.5M
  if (MI->op1_size == 0)
1021
36.1M
    MI->op1_size = MI->x86opsize;
1022
42.5M
}
1023
1024
static void printanymem(MCInst *MI, unsigned OpNo, SStream *O)
1025
136k
{
1026
136k
  switch(MI->Opcode) {
1027
89
    default: break;
1028
1.16k
    case X86_LEA16r:
1029
1.16k
         MI->x86opsize = 2;
1030
1.16k
         break;
1031
55.8k
    case X86_LEA32r:
1032
58.0k
    case X86_LEA64_32r:
1033
58.0k
         MI->x86opsize = 4;
1034
58.0k
         break;
1035
67.4k
    case X86_LEA64r:
1036
67.4k
         MI->x86opsize = 8;
1037
67.4k
         break;
1038
358
    case X86_BNDCL32rm:
1039
751
    case X86_BNDCN32rm:
1040
1.69k
    case X86_BNDCU32rm:
1041
5.03k
    case X86_BNDSTXmr:
1042
9.20k
    case X86_BNDLDXrm:
1043
9.21k
    case X86_BNDCL64rm:
1044
9.25k
    case X86_BNDCN64rm:
1045
9.25k
    case X86_BNDCU64rm:
1046
9.25k
         MI->x86opsize = 16;
1047
9.25k
         break;
1048
136k
  }
1049
1050
136k
  printMemReference(MI, OpNo, O);
1051
136k
}
1052
1053
#ifdef CAPSTONE_X86_REDUCE
1054
#include "X86GenAsmWriter1_reduce.inc"
1055
#else
1056
#include "X86GenAsmWriter1.inc"
1057
#endif
1058
1059
#include "X86GenRegisterName1.inc"
1060
1061
#endif