Coverage Report

Created: 2026-08-31 06:58

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/capstonenext/arch/X86/X86Mapping.c
Line
Count
Source
1
/* Capstone Disassembly Engine */
2
/* By Nguyen Anh Quynh <aquynh@gmail.com>, 2013-2019 */
3
4
#ifdef CAPSTONE_HAS_X86
5
6
#if defined(CAPSTONE_HAS_OSXKERNEL)
7
#include <Availability.h>
8
#endif
9
10
#include <string.h>
11
#ifndef CAPSTONE_HAS_OSXKERNEL
12
#include <stdlib.h>
13
#endif
14
15
#include "../../Mapping.h"
16
#include "../../MCInstPrinter.h"
17
#include "X86Mapping.h"
18
#include "X86DisassemblerDecoder.h"
19
20
#include "../../utils.h"
21
22
const uint64_t arch_masks[9] = {
23
  0,
24
  0xff,
25
  0xffff, // 16bit
26
  0,
27
  0xffffffff, // 32bit
28
  0,
29
  0,
30
  0,
31
  0xffffffffffffffffLL // 64bit
32
};
33
34
static const x86_reg sib_base_map[] = { X86_REG_INVALID,
35
#define ENTRY(x) X86_REG_##x,
36
          ALL_SIB_BASES
37
#undef ENTRY
38
};
39
40
// Fill-ins to make the compiler happy.  These constants are never actually
41
// assigned; they are just filler to make an automatically-generated switch
42
// statement work.
43
enum {
44
  X86_REG_BX_SI = 500,
45
  X86_REG_BX_DI = 501,
46
  X86_REG_BP_SI = 502,
47
  X86_REG_BP_DI = 503,
48
  X86_REG_sib = 504,
49
  X86_REG_sib64 = 505
50
};
51
52
static const x86_reg sib_index_map[] = { X86_REG_INVALID,
53
#define ENTRY(x) X86_REG_##x,
54
           ALL_EA_BASES REGS_XMM REGS_YMM REGS_ZMM
55
#undef ENTRY
56
};
57
58
static const x86_reg segment_map[] = {
59
  X86_REG_INVALID, X86_REG_CS, X86_REG_SS, X86_REG_DS,
60
  X86_REG_ES,  X86_REG_FS, X86_REG_GS,
61
};
62
63
x86_reg x86_map_sib_base(int r)
64
1.10M
{
65
1.10M
  return sib_base_map[r];
66
1.10M
}
67
68
x86_reg x86_map_sib_index(int r)
69
1.10M
{
70
1.10M
  return sib_index_map[r];
71
1.10M
}
72
73
x86_reg x86_map_segment(int r)
74
0
{
75
0
  return segment_map[r];
76
0
}
77
78
#ifndef CAPSTONE_DIET
79
static const name_map reg_name_maps[] = {
80
  { X86_REG_INVALID, NULL },
81
82
  { X86_REG_AH, "ah" },      { X86_REG_AL, "al" },
83
  { X86_REG_AX, "ax" },      { X86_REG_BH, "bh" },
84
  { X86_REG_BL, "bl" },      { X86_REG_BP, "bp" },
85
  { X86_REG_BPL, "bpl" },      { X86_REG_BX, "bx" },
86
  { X86_REG_CH, "ch" },      { X86_REG_CL, "cl" },
87
  { X86_REG_CS, "cs" },      { X86_REG_CX, "cx" },
88
  { X86_REG_DH, "dh" },      { X86_REG_DI, "di" },
89
  { X86_REG_DIL, "dil" },      { X86_REG_DL, "dl" },
90
  { X86_REG_DS, "ds" },      { X86_REG_DX, "dx" },
91
  { X86_REG_EAX, "eax" },      { X86_REG_EBP, "ebp" },
92
  { X86_REG_EBX, "ebx" },      { X86_REG_ECX, "ecx" },
93
  { X86_REG_EDI, "edi" },      { X86_REG_EDX, "edx" },
94
  { X86_REG_EFLAGS, "flags" }, { X86_REG_EIP, "eip" },
95
  { X86_REG_EIZ, "eiz" },      { X86_REG_ES, "es" },
96
  { X86_REG_ESI, "esi" },      { X86_REG_ESP, "esp" },
97
  { X86_REG_FPSW, "fpsw" },    { X86_REG_FS, "fs" },
98
  { X86_REG_GS, "gs" },      { X86_REG_IP, "ip" },
99
  { X86_REG_RAX, "rax" },      { X86_REG_RBP, "rbp" },
100
  { X86_REG_RBX, "rbx" },      { X86_REG_RCX, "rcx" },
101
  { X86_REG_RDI, "rdi" },      { X86_REG_RDX, "rdx" },
102
  { X86_REG_RIP, "rip" },      { X86_REG_RIZ, "riz" },
103
  { X86_REG_RSI, "rsi" },      { X86_REG_RSP, "rsp" },
104
  { X86_REG_SI, "si" },      { X86_REG_SIL, "sil" },
105
  { X86_REG_SP, "sp" },      { X86_REG_SPL, "spl" },
106
  { X86_REG_SS, "ss" },      { X86_REG_CR0, "cr0" },
107
  { X86_REG_CR1, "cr1" },      { X86_REG_CR2, "cr2" },
108
  { X86_REG_CR3, "cr3" },      { X86_REG_CR4, "cr4" },
109
  { X86_REG_CR5, "cr5" },      { X86_REG_CR6, "cr6" },
110
  { X86_REG_CR7, "cr7" },      { X86_REG_CR8, "cr8" },
111
  { X86_REG_CR9, "cr9" },      { X86_REG_CR10, "cr10" },
112
  { X86_REG_CR11, "cr11" },    { X86_REG_CR12, "cr12" },
113
  { X86_REG_CR13, "cr13" },    { X86_REG_CR14, "cr14" },
114
  { X86_REG_CR15, "cr15" },    { X86_REG_DR0, "dr0" },
115
  { X86_REG_DR1, "dr1" },      { X86_REG_DR2, "dr2" },
116
  { X86_REG_DR3, "dr3" },      { X86_REG_DR4, "dr4" },
117
  { X86_REG_DR5, "dr5" },      { X86_REG_DR6, "dr6" },
118
  { X86_REG_DR7, "dr7" },      { X86_REG_DR8, "dr8" },
119
  { X86_REG_DR9, "dr9" },      { X86_REG_DR10, "dr10" },
120
  { X86_REG_DR11, "dr11" },    { X86_REG_DR12, "dr12" },
121
  { X86_REG_DR13, "dr13" },    { X86_REG_DR14, "dr14" },
122
  { X86_REG_DR15, "dr15" },    { X86_REG_FP0, "fp0" },
123
  { X86_REG_FP1, "fp1" },      { X86_REG_FP2, "fp2" },
124
  { X86_REG_FP3, "fp3" },      { X86_REG_FP4, "fp4" },
125
  { X86_REG_FP5, "fp5" },      { X86_REG_FP6, "fp6" },
126
  { X86_REG_FP7, "fp7" },      { X86_REG_K0, "k0" },
127
  { X86_REG_K1, "k1" },      { X86_REG_K2, "k2" },
128
  { X86_REG_K3, "k3" },      { X86_REG_K4, "k4" },
129
  { X86_REG_K5, "k5" },      { X86_REG_K6, "k6" },
130
  { X86_REG_K7, "k7" },      { X86_REG_MM0, "mm0" },
131
  { X86_REG_MM1, "mm1" },      { X86_REG_MM2, "mm2" },
132
  { X86_REG_MM3, "mm3" },      { X86_REG_MM4, "mm4" },
133
  { X86_REG_MM5, "mm5" },      { X86_REG_MM6, "mm6" },
134
  { X86_REG_MM7, "mm7" },      { X86_REG_R8, "r8" },
135
  { X86_REG_R9, "r9" },      { X86_REG_R10, "r10" },
136
  { X86_REG_R11, "r11" },      { X86_REG_R12, "r12" },
137
  { X86_REG_R13, "r13" },      { X86_REG_R14, "r14" },
138
  { X86_REG_R15, "r15" },      { X86_REG_ST0, "st(0)" },
139
  { X86_REG_ST1, "st(1)" },    { X86_REG_ST2, "st(2)" },
140
  { X86_REG_ST3, "st(3)" },    { X86_REG_ST4, "st(4)" },
141
  { X86_REG_ST5, "st(5)" },    { X86_REG_ST6, "st(6)" },
142
  { X86_REG_ST7, "st(7)" },    { X86_REG_XMM0, "xmm0" },
143
  { X86_REG_XMM1, "xmm1" },    { X86_REG_XMM2, "xmm2" },
144
  { X86_REG_XMM3, "xmm3" },    { X86_REG_XMM4, "xmm4" },
145
  { X86_REG_XMM5, "xmm5" },    { X86_REG_XMM6, "xmm6" },
146
  { X86_REG_XMM7, "xmm7" },    { X86_REG_XMM8, "xmm8" },
147
  { X86_REG_XMM9, "xmm9" },    { X86_REG_XMM10, "xmm10" },
148
  { X86_REG_XMM11, "xmm11" },  { X86_REG_XMM12, "xmm12" },
149
  { X86_REG_XMM13, "xmm13" },  { X86_REG_XMM14, "xmm14" },
150
  { X86_REG_XMM15, "xmm15" },  { X86_REG_XMM16, "xmm16" },
151
  { X86_REG_XMM17, "xmm17" },  { X86_REG_XMM18, "xmm18" },
152
  { X86_REG_XMM19, "xmm19" },  { X86_REG_XMM20, "xmm20" },
153
  { X86_REG_XMM21, "xmm21" },  { X86_REG_XMM22, "xmm22" },
154
  { X86_REG_XMM23, "xmm23" },  { X86_REG_XMM24, "xmm24" },
155
  { X86_REG_XMM25, "xmm25" },  { X86_REG_XMM26, "xmm26" },
156
  { X86_REG_XMM27, "xmm27" },  { X86_REG_XMM28, "xmm28" },
157
  { X86_REG_XMM29, "xmm29" },  { X86_REG_XMM30, "xmm30" },
158
  { X86_REG_XMM31, "xmm31" },  { X86_REG_YMM0, "ymm0" },
159
  { X86_REG_YMM1, "ymm1" },    { X86_REG_YMM2, "ymm2" },
160
  { X86_REG_YMM3, "ymm3" },    { X86_REG_YMM4, "ymm4" },
161
  { X86_REG_YMM5, "ymm5" },    { X86_REG_YMM6, "ymm6" },
162
  { X86_REG_YMM7, "ymm7" },    { X86_REG_YMM8, "ymm8" },
163
  { X86_REG_YMM9, "ymm9" },    { X86_REG_YMM10, "ymm10" },
164
  { X86_REG_YMM11, "ymm11" },  { X86_REG_YMM12, "ymm12" },
165
  { X86_REG_YMM13, "ymm13" },  { X86_REG_YMM14, "ymm14" },
166
  { X86_REG_YMM15, "ymm15" },  { X86_REG_YMM16, "ymm16" },
167
  { X86_REG_YMM17, "ymm17" },  { X86_REG_YMM18, "ymm18" },
168
  { X86_REG_YMM19, "ymm19" },  { X86_REG_YMM20, "ymm20" },
169
  { X86_REG_YMM21, "ymm21" },  { X86_REG_YMM22, "ymm22" },
170
  { X86_REG_YMM23, "ymm23" },  { X86_REG_YMM24, "ymm24" },
171
  { X86_REG_YMM25, "ymm25" },  { X86_REG_YMM26, "ymm26" },
172
  { X86_REG_YMM27, "ymm27" },  { X86_REG_YMM28, "ymm28" },
173
  { X86_REG_YMM29, "ymm29" },  { X86_REG_YMM30, "ymm30" },
174
  { X86_REG_YMM31, "ymm31" },  { X86_REG_ZMM0, "zmm0" },
175
  { X86_REG_ZMM1, "zmm1" },    { X86_REG_ZMM2, "zmm2" },
176
  { X86_REG_ZMM3, "zmm3" },    { X86_REG_ZMM4, "zmm4" },
177
  { X86_REG_ZMM5, "zmm5" },    { X86_REG_ZMM6, "zmm6" },
178
  { X86_REG_ZMM7, "zmm7" },    { X86_REG_ZMM8, "zmm8" },
179
  { X86_REG_ZMM9, "zmm9" },    { X86_REG_ZMM10, "zmm10" },
180
  { X86_REG_ZMM11, "zmm11" },  { X86_REG_ZMM12, "zmm12" },
181
  { X86_REG_ZMM13, "zmm13" },  { X86_REG_ZMM14, "zmm14" },
182
  { X86_REG_ZMM15, "zmm15" },  { X86_REG_ZMM16, "zmm16" },
183
  { X86_REG_ZMM17, "zmm17" },  { X86_REG_ZMM18, "zmm18" },
184
  { X86_REG_ZMM19, "zmm19" },  { X86_REG_ZMM20, "zmm20" },
185
  { X86_REG_ZMM21, "zmm21" },  { X86_REG_ZMM22, "zmm22" },
186
  { X86_REG_ZMM23, "zmm23" },  { X86_REG_ZMM24, "zmm24" },
187
  { X86_REG_ZMM25, "zmm25" },  { X86_REG_ZMM26, "zmm26" },
188
  { X86_REG_ZMM27, "zmm27" },  { X86_REG_ZMM28, "zmm28" },
189
  { X86_REG_ZMM29, "zmm29" },  { X86_REG_ZMM30, "zmm30" },
190
  { X86_REG_ZMM31, "zmm31" },  { X86_REG_R8B, "r8b" },
191
  { X86_REG_R9B, "r9b" },      { X86_REG_R10B, "r10b" },
192
  { X86_REG_R11B, "r11b" },    { X86_REG_R12B, "r12b" },
193
  { X86_REG_R13B, "r13b" },    { X86_REG_R14B, "r14b" },
194
  { X86_REG_R15B, "r15b" },    { X86_REG_R8D, "r8d" },
195
  { X86_REG_R9D, "r9d" },      { X86_REG_R10D, "r10d" },
196
  { X86_REG_R11D, "r11d" },    { X86_REG_R12D, "r12d" },
197
  { X86_REG_R13D, "r13d" },    { X86_REG_R14D, "r14d" },
198
  { X86_REG_R15D, "r15d" },    { X86_REG_R8W, "r8w" },
199
  { X86_REG_R9W, "r9w" },      { X86_REG_R10W, "r10w" },
200
  { X86_REG_R11W, "r11w" },    { X86_REG_R12W, "r12w" },
201
  { X86_REG_R13W, "r13w" },    { X86_REG_R14W, "r14w" },
202
  { X86_REG_R15W, "r15w" },
203
204
  { X86_REG_BND0, "bnd0" },    { X86_REG_BND1, "bnd1" },
205
  { X86_REG_BND2, "bnd2" },    { X86_REG_BND3, "bnd3" },
206
};
207
#endif
208
209
// register size in non-64bit mode
210
const uint8_t regsize_map_32[] = {
211
  0, //   { X86_REG_INVALID, NULL },
212
  1, // { X86_REG_AH, "ah" },
213
  1, // { X86_REG_AL, "al" },
214
  2, // { X86_REG_AX, "ax" },
215
  1, // { X86_REG_BH, "bh" },
216
  1, // { X86_REG_BL, "bl" },
217
  2, // { X86_REG_BP, "bp" },
218
  1, // { X86_REG_BPL, "bpl" },
219
  2, // { X86_REG_BX, "bx" },
220
  1, // { X86_REG_CH, "ch" },
221
  1, // { X86_REG_CL, "cl" },
222
  2, // { X86_REG_CS, "cs" },
223
  2, // { X86_REG_CX, "cx" },
224
  1, // { X86_REG_DH, "dh" },
225
  2, // { X86_REG_DI, "di" },
226
  1, // { X86_REG_DIL, "dil" },
227
  1, // { X86_REG_DL, "dl" },
228
  2, // { X86_REG_DS, "ds" },
229
  2, // { X86_REG_DX, "dx" },
230
  4, // { X86_REG_EAX, "eax" },
231
  4, // { X86_REG_EBP, "ebp" },
232
  4, // { X86_REG_EBX, "ebx" },
233
  4, // { X86_REG_ECX, "ecx" },
234
  4, // { X86_REG_EDI, "edi" },
235
  4, // { X86_REG_EDX, "edx" },
236
  4, // { X86_REG_EFLAGS, "flags" },
237
  4, // { X86_REG_EIP, "eip" },
238
  4, // { X86_REG_EIZ, "eiz" },
239
  2, // { X86_REG_ES, "es" },
240
  4, // { X86_REG_ESI, "esi" },
241
  4, // { X86_REG_ESP, "esp" },
242
  10, // { X86_REG_FPSW, "fpsw" },
243
  2, // { X86_REG_FS, "fs" },
244
  2, // { X86_REG_GS, "gs" },
245
  2, // { X86_REG_IP, "ip" },
246
  8, // { X86_REG_RAX, "rax" },
247
  8, // { X86_REG_RBP, "rbp" },
248
  8, // { X86_REG_RBX, "rbx" },
249
  8, // { X86_REG_RCX, "rcx" },
250
  8, // { X86_REG_RDI, "rdi" },
251
  8, // { X86_REG_RDX, "rdx" },
252
  8, // { X86_REG_RIP, "rip" },
253
  8, // { X86_REG_RIZ, "riz" },
254
  8, // { X86_REG_RSI, "rsi" },
255
  8, // { X86_REG_RSP, "rsp" },
256
  2, // { X86_REG_SI, "si" },
257
  1, // { X86_REG_SIL, "sil" },
258
  2, // { X86_REG_SP, "sp" },
259
  1, // { X86_REG_SPL, "spl" },
260
  2, // { X86_REG_SS, "ss" },
261
  4, // { X86_REG_CR0, "cr0" },
262
  4, // { X86_REG_CR1, "cr1" },
263
  4, // { X86_REG_CR2, "cr2" },
264
  4, // { X86_REG_CR3, "cr3" },
265
  4, // { X86_REG_CR4, "cr4" },
266
  8, // { X86_REG_CR5, "cr5" },
267
  8, // { X86_REG_CR6, "cr6" },
268
  8, // { X86_REG_CR7, "cr7" },
269
  8, // { X86_REG_CR8, "cr8" },
270
  8, // { X86_REG_CR9, "cr9" },
271
  8, // { X86_REG_CR10, "cr10" },
272
  8, // { X86_REG_CR11, "cr11" },
273
  8, // { X86_REG_CR12, "cr12" },
274
  8, // { X86_REG_CR13, "cr13" },
275
  8, // { X86_REG_CR14, "cr14" },
276
  8, // { X86_REG_CR15, "cr15" },
277
  4, // { X86_REG_DR0, "dr0" },
278
  4, // { X86_REG_DR1, "dr1" },
279
  4, // { X86_REG_DR2, "dr2" },
280
  4, // { X86_REG_DR3, "dr3" },
281
  4, // { X86_REG_DR4, "dr4" },
282
  4, // { X86_REG_DR5, "dr5" },
283
  4, // { X86_REG_DR6, "dr6" },
284
  4, // { X86_REG_DR7, "dr7" },
285
  4, // { X86_REG_DR8, "dr8" },
286
  4, // { X86_REG_DR9, "dr9" },
287
  4, // { X86_REG_DR10, "dr10" },
288
  4, // { X86_REG_DR11, "dr11" },
289
  4, // { X86_REG_DR12, "dr12" },
290
  4, // { X86_REG_DR13, "dr13" },
291
  4, // { X86_REG_DR14, "dr14" },
292
  4, // { X86_REG_DR15, "dr15" },
293
  10, // { X86_REG_FP0, "fp0" },
294
  10, // { X86_REG_FP1, "fp1" },
295
  10, // { X86_REG_FP2, "fp2" },
296
  10, // { X86_REG_FP3, "fp3" },
297
  10, // { X86_REG_FP4, "fp4" },
298
  10, // { X86_REG_FP5, "fp5" },
299
  10, // { X86_REG_FP6, "fp6" },
300
  10, // { X86_REG_FP7, "fp7" },
301
  2, // { X86_REG_K0, "k0" },
302
  2, // { X86_REG_K1, "k1" },
303
  2, // { X86_REG_K2, "k2" },
304
  2, // { X86_REG_K3, "k3" },
305
  2, // { X86_REG_K4, "k4" },
306
  2, // { X86_REG_K5, "k5" },
307
  2, // { X86_REG_K6, "k6" },
308
  2, // { X86_REG_K7, "k7" },
309
  8, // { X86_REG_MM0, "mm0" },
310
  8, // { X86_REG_MM1, "mm1" },
311
  8, // { X86_REG_MM2, "mm2" },
312
  8, // { X86_REG_MM3, "mm3" },
313
  8, // { X86_REG_MM4, "mm4" },
314
  8, // { X86_REG_MM5, "mm5" },
315
  8, // { X86_REG_MM6, "mm6" },
316
  8, // { X86_REG_MM7, "mm7" },
317
  8, // { X86_REG_R8, "r8" },
318
  8, // { X86_REG_R9, "r9" },
319
  8, // { X86_REG_R10, "r10" },
320
  8, // { X86_REG_R11, "r11" },
321
  8, // { X86_REG_R12, "r12" },
322
  8, // { X86_REG_R13, "r13" },
323
  8, // { X86_REG_R14, "r14" },
324
  8, // { X86_REG_R15, "r15" },
325
  10, // { X86_REG_ST0, "st0" },
326
  10, // { X86_REG_ST1, "st1" },
327
  10, // { X86_REG_ST2, "st2" },
328
  10, // { X86_REG_ST3, "st3" },
329
  10, // { X86_REG_ST4, "st4" },
330
  10, // { X86_REG_ST5, "st5" },
331
  10, // { X86_REG_ST6, "st6" },
332
  10, // { X86_REG_ST7, "st7" },
333
  16, // { X86_REG_XMM0, "xmm0" },
334
  16, // { X86_REG_XMM1, "xmm1" },
335
  16, // { X86_REG_XMM2, "xmm2" },
336
  16, // { X86_REG_XMM3, "xmm3" },
337
  16, // { X86_REG_XMM4, "xmm4" },
338
  16, // { X86_REG_XMM5, "xmm5" },
339
  16, // { X86_REG_XMM6, "xmm6" },
340
  16, // { X86_REG_XMM7, "xmm7" },
341
  16, // { X86_REG_XMM8, "xmm8" },
342
  16, // { X86_REG_XMM9, "xmm9" },
343
  16, // { X86_REG_XMM10, "xmm10" },
344
  16, // { X86_REG_XMM11, "xmm11" },
345
  16, // { X86_REG_XMM12, "xmm12" },
346
  16, // { X86_REG_XMM13, "xmm13" },
347
  16, // { X86_REG_XMM14, "xmm14" },
348
  16, // { X86_REG_XMM15, "xmm15" },
349
  16, // { X86_REG_XMM16, "xmm16" },
350
  16, // { X86_REG_XMM17, "xmm17" },
351
  16, // { X86_REG_XMM18, "xmm18" },
352
  16, // { X86_REG_XMM19, "xmm19" },
353
  16, // { X86_REG_XMM20, "xmm20" },
354
  16, // { X86_REG_XMM21, "xmm21" },
355
  16, // { X86_REG_XMM22, "xmm22" },
356
  16, // { X86_REG_XMM23, "xmm23" },
357
  16, // { X86_REG_XMM24, "xmm24" },
358
  16, // { X86_REG_XMM25, "xmm25" },
359
  16, // { X86_REG_XMM26, "xmm26" },
360
  16, // { X86_REG_XMM27, "xmm27" },
361
  16, // { X86_REG_XMM28, "xmm28" },
362
  16, // { X86_REG_XMM29, "xmm29" },
363
  16, // { X86_REG_XMM30, "xmm30" },
364
  16, // { X86_REG_XMM31, "xmm31" },
365
  32, // { X86_REG_YMM0, "ymm0" },
366
  32, // { X86_REG_YMM1, "ymm1" },
367
  32, // { X86_REG_YMM2, "ymm2" },
368
  32, // { X86_REG_YMM3, "ymm3" },
369
  32, // { X86_REG_YMM4, "ymm4" },
370
  32, // { X86_REG_YMM5, "ymm5" },
371
  32, // { X86_REG_YMM6, "ymm6" },
372
  32, // { X86_REG_YMM7, "ymm7" },
373
  32, // { X86_REG_YMM8, "ymm8" },
374
  32, // { X86_REG_YMM9, "ymm9" },
375
  32, // { X86_REG_YMM10, "ymm10" },
376
  32, // { X86_REG_YMM11, "ymm11" },
377
  32, // { X86_REG_YMM12, "ymm12" },
378
  32, // { X86_REG_YMM13, "ymm13" },
379
  32, // { X86_REG_YMM14, "ymm14" },
380
  32, // { X86_REG_YMM15, "ymm15" },
381
  32, // { X86_REG_YMM16, "ymm16" },
382
  32, // { X86_REG_YMM17, "ymm17" },
383
  32, // { X86_REG_YMM18, "ymm18" },
384
  32, // { X86_REG_YMM19, "ymm19" },
385
  32, // { X86_REG_YMM20, "ymm20" },
386
  32, // { X86_REG_YMM21, "ymm21" },
387
  32, // { X86_REG_YMM22, "ymm22" },
388
  32, // { X86_REG_YMM23, "ymm23" },
389
  32, // { X86_REG_YMM24, "ymm24" },
390
  32, // { X86_REG_YMM25, "ymm25" },
391
  32, // { X86_REG_YMM26, "ymm26" },
392
  32, // { X86_REG_YMM27, "ymm27" },
393
  32, // { X86_REG_YMM28, "ymm28" },
394
  32, // { X86_REG_YMM29, "ymm29" },
395
  32, // { X86_REG_YMM30, "ymm30" },
396
  32, // { X86_REG_YMM31, "ymm31" },
397
  64, // { X86_REG_ZMM0, "zmm0" },
398
  64, // { X86_REG_ZMM1, "zmm1" },
399
  64, // { X86_REG_ZMM2, "zmm2" },
400
  64, // { X86_REG_ZMM3, "zmm3" },
401
  64, // { X86_REG_ZMM4, "zmm4" },
402
  64, // { X86_REG_ZMM5, "zmm5" },
403
  64, // { X86_REG_ZMM6, "zmm6" },
404
  64, // { X86_REG_ZMM7, "zmm7" },
405
  64, // { X86_REG_ZMM8, "zmm8" },
406
  64, // { X86_REG_ZMM9, "zmm9" },
407
  64, // { X86_REG_ZMM10, "zmm10" },
408
  64, // { X86_REG_ZMM11, "zmm11" },
409
  64, // { X86_REG_ZMM12, "zmm12" },
410
  64, // { X86_REG_ZMM13, "zmm13" },
411
  64, // { X86_REG_ZMM14, "zmm14" },
412
  64, // { X86_REG_ZMM15, "zmm15" },
413
  64, // { X86_REG_ZMM16, "zmm16" },
414
  64, // { X86_REG_ZMM17, "zmm17" },
415
  64, // { X86_REG_ZMM18, "zmm18" },
416
  64, // { X86_REG_ZMM19, "zmm19" },
417
  64, // { X86_REG_ZMM20, "zmm20" },
418
  64, // { X86_REG_ZMM21, "zmm21" },
419
  64, // { X86_REG_ZMM22, "zmm22" },
420
  64, // { X86_REG_ZMM23, "zmm23" },
421
  64, // { X86_REG_ZMM24, "zmm24" },
422
  64, // { X86_REG_ZMM25, "zmm25" },
423
  64, // { X86_REG_ZMM26, "zmm26" },
424
  64, // { X86_REG_ZMM27, "zmm27" },
425
  64, // { X86_REG_ZMM28, "zmm28" },
426
  64, // { X86_REG_ZMM29, "zmm29" },
427
  64, // { X86_REG_ZMM30, "zmm30" },
428
  64, // { X86_REG_ZMM31, "zmm31" },
429
  1, // { X86_REG_R8B, "r8b" },
430
  1, // { X86_REG_R9B, "r9b" },
431
  1, // { X86_REG_R10B, "r10b" },
432
  1, // { X86_REG_R11B, "r11b" },
433
  1, // { X86_REG_R12B, "r12b" },
434
  1, // { X86_REG_R13B, "r13b" },
435
  1, // { X86_REG_R14B, "r14b" },
436
  1, // { X86_REG_R15B, "r15b" },
437
  4, // { X86_REG_R8D, "r8d" },
438
  4, // { X86_REG_R9D, "r9d" },
439
  4, // { X86_REG_R10D, "r10d" },
440
  4, // { X86_REG_R11D, "r11d" },
441
  4, // { X86_REG_R12D, "r12d" },
442
  4, // { X86_REG_R13D, "r13d" },
443
  4, // { X86_REG_R14D, "r14d" },
444
  4, // { X86_REG_R15D, "r15d" },
445
  2, // { X86_REG_R8W, "r8w" },
446
  2, // { X86_REG_R9W, "r9w" },
447
  2, // { X86_REG_R10W, "r10w" },
448
  2, // { X86_REG_R11W, "r11w" },
449
  2, // { X86_REG_R12W, "r12w" },
450
  2, // { X86_REG_R13W, "r13w" },
451
  2, // { X86_REG_R14W, "r14w" },
452
  2, // { X86_REG_R15W, "r15w" },
453
  16, // { X86_REG_BND0, "bnd0" },
454
  16, // { X86_REG_BND1, "bnd0" },
455
  16, // { X86_REG_BND2, "bnd0" },
456
  16, // { X86_REG_BND3, "bnd0" },
457
};
458
459
// register size in 64bit mode
460
const uint8_t regsize_map_64[] = {
461
  0, //   { X86_REG_INVALID, NULL },
462
  1, // { X86_REG_AH, "ah" },
463
  1, // { X86_REG_AL, "al" },
464
  2, // { X86_REG_AX, "ax" },
465
  1, // { X86_REG_BH, "bh" },
466
  1, // { X86_REG_BL, "bl" },
467
  2, // { X86_REG_BP, "bp" },
468
  1, // { X86_REG_BPL, "bpl" },
469
  2, // { X86_REG_BX, "bx" },
470
  1, // { X86_REG_CH, "ch" },
471
  1, // { X86_REG_CL, "cl" },
472
  2, // { X86_REG_CS, "cs" },
473
  2, // { X86_REG_CX, "cx" },
474
  1, // { X86_REG_DH, "dh" },
475
  2, // { X86_REG_DI, "di" },
476
  1, // { X86_REG_DIL, "dil" },
477
  1, // { X86_REG_DL, "dl" },
478
  2, // { X86_REG_DS, "ds" },
479
  2, // { X86_REG_DX, "dx" },
480
  4, // { X86_REG_EAX, "eax" },
481
  4, // { X86_REG_EBP, "ebp" },
482
  4, // { X86_REG_EBX, "ebx" },
483
  4, // { X86_REG_ECX, "ecx" },
484
  4, // { X86_REG_EDI, "edi" },
485
  4, // { X86_REG_EDX, "edx" },
486
  8, // { X86_REG_EFLAGS, "flags" },
487
  4, // { X86_REG_EIP, "eip" },
488
  4, // { X86_REG_EIZ, "eiz" },
489
  2, // { X86_REG_ES, "es" },
490
  4, // { X86_REG_ESI, "esi" },
491
  4, // { X86_REG_ESP, "esp" },
492
  10, // { X86_REG_FPSW, "fpsw" },
493
  2, // { X86_REG_FS, "fs" },
494
  2, // { X86_REG_GS, "gs" },
495
  2, // { X86_REG_IP, "ip" },
496
  8, // { X86_REG_RAX, "rax" },
497
  8, // { X86_REG_RBP, "rbp" },
498
  8, // { X86_REG_RBX, "rbx" },
499
  8, // { X86_REG_RCX, "rcx" },
500
  8, // { X86_REG_RDI, "rdi" },
501
  8, // { X86_REG_RDX, "rdx" },
502
  8, // { X86_REG_RIP, "rip" },
503
  8, // { X86_REG_RIZ, "riz" },
504
  8, // { X86_REG_RSI, "rsi" },
505
  8, // { X86_REG_RSP, "rsp" },
506
  2, // { X86_REG_SI, "si" },
507
  1, // { X86_REG_SIL, "sil" },
508
  2, // { X86_REG_SP, "sp" },
509
  1, // { X86_REG_SPL, "spl" },
510
  2, // { X86_REG_SS, "ss" },
511
  8, // { X86_REG_CR0, "cr0" },
512
  8, // { X86_REG_CR1, "cr1" },
513
  8, // { X86_REG_CR2, "cr2" },
514
  8, // { X86_REG_CR3, "cr3" },
515
  8, // { X86_REG_CR4, "cr4" },
516
  8, // { X86_REG_CR5, "cr5" },
517
  8, // { X86_REG_CR6, "cr6" },
518
  8, // { X86_REG_CR7, "cr7" },
519
  8, // { X86_REG_CR8, "cr8" },
520
  8, // { X86_REG_CR9, "cr9" },
521
  8, // { X86_REG_CR10, "cr10" },
522
  8, // { X86_REG_CR11, "cr11" },
523
  8, // { X86_REG_CR12, "cr12" },
524
  8, // { X86_REG_CR13, "cr13" },
525
  8, // { X86_REG_CR14, "cr14" },
526
  8, // { X86_REG_CR15, "cr15" },
527
  8, // { X86_REG_DR0, "dr0" },
528
  8, // { X86_REG_DR1, "dr1" },
529
  8, // { X86_REG_DR2, "dr2" },
530
  8, // { X86_REG_DR3, "dr3" },
531
  8, // { X86_REG_DR4, "dr4" },
532
  8, // { X86_REG_DR5, "dr5" },
533
  8, // { X86_REG_DR6, "dr6" },
534
  8, // { X86_REG_DR7, "dr7" },
535
  8, // { X86_REG_DR8, "dr8" },
536
  8, // { X86_REG_DR9, "dr9" },
537
  8, // { X86_REG_DR10, "dr10" },
538
  8, // { X86_REG_DR11, "dr11" },
539
  8, // { X86_REG_DR12, "dr12" },
540
  8, // { X86_REG_DR13, "dr13" },
541
  8, // { X86_REG_DR14, "dr14" },
542
  8, // { X86_REG_DR15, "dr15" },
543
  10, // { X86_REG_FP0, "fp0" },
544
  10, // { X86_REG_FP1, "fp1" },
545
  10, // { X86_REG_FP2, "fp2" },
546
  10, // { X86_REG_FP3, "fp3" },
547
  10, // { X86_REG_FP4, "fp4" },
548
  10, // { X86_REG_FP5, "fp5" },
549
  10, // { X86_REG_FP6, "fp6" },
550
  10, // { X86_REG_FP7, "fp7" },
551
  2, // { X86_REG_K0, "k0" },
552
  2, // { X86_REG_K1, "k1" },
553
  2, // { X86_REG_K2, "k2" },
554
  2, // { X86_REG_K3, "k3" },
555
  2, // { X86_REG_K4, "k4" },
556
  2, // { X86_REG_K5, "k5" },
557
  2, // { X86_REG_K6, "k6" },
558
  2, // { X86_REG_K7, "k7" },
559
  8, // { X86_REG_MM0, "mm0" },
560
  8, // { X86_REG_MM1, "mm1" },
561
  8, // { X86_REG_MM2, "mm2" },
562
  8, // { X86_REG_MM3, "mm3" },
563
  8, // { X86_REG_MM4, "mm4" },
564
  8, // { X86_REG_MM5, "mm5" },
565
  8, // { X86_REG_MM6, "mm6" },
566
  8, // { X86_REG_MM7, "mm7" },
567
  8, // { X86_REG_R8, "r8" },
568
  8, // { X86_REG_R9, "r9" },
569
  8, // { X86_REG_R10, "r10" },
570
  8, // { X86_REG_R11, "r11" },
571
  8, // { X86_REG_R12, "r12" },
572
  8, // { X86_REG_R13, "r13" },
573
  8, // { X86_REG_R14, "r14" },
574
  8, // { X86_REG_R15, "r15" },
575
  10, // { X86_REG_ST0, "st0" },
576
  10, // { X86_REG_ST1, "st1" },
577
  10, // { X86_REG_ST2, "st2" },
578
  10, // { X86_REG_ST3, "st3" },
579
  10, // { X86_REG_ST4, "st4" },
580
  10, // { X86_REG_ST5, "st5" },
581
  10, // { X86_REG_ST6, "st6" },
582
  10, // { X86_REG_ST7, "st7" },
583
  16, // { X86_REG_XMM0, "xmm0" },
584
  16, // { X86_REG_XMM1, "xmm1" },
585
  16, // { X86_REG_XMM2, "xmm2" },
586
  16, // { X86_REG_XMM3, "xmm3" },
587
  16, // { X86_REG_XMM4, "xmm4" },
588
  16, // { X86_REG_XMM5, "xmm5" },
589
  16, // { X86_REG_XMM6, "xmm6" },
590
  16, // { X86_REG_XMM7, "xmm7" },
591
  16, // { X86_REG_XMM8, "xmm8" },
592
  16, // { X86_REG_XMM9, "xmm9" },
593
  16, // { X86_REG_XMM10, "xmm10" },
594
  16, // { X86_REG_XMM11, "xmm11" },
595
  16, // { X86_REG_XMM12, "xmm12" },
596
  16, // { X86_REG_XMM13, "xmm13" },
597
  16, // { X86_REG_XMM14, "xmm14" },
598
  16, // { X86_REG_XMM15, "xmm15" },
599
  16, // { X86_REG_XMM16, "xmm16" },
600
  16, // { X86_REG_XMM17, "xmm17" },
601
  16, // { X86_REG_XMM18, "xmm18" },
602
  16, // { X86_REG_XMM19, "xmm19" },
603
  16, // { X86_REG_XMM20, "xmm20" },
604
  16, // { X86_REG_XMM21, "xmm21" },
605
  16, // { X86_REG_XMM22, "xmm22" },
606
  16, // { X86_REG_XMM23, "xmm23" },
607
  16, // { X86_REG_XMM24, "xmm24" },
608
  16, // { X86_REG_XMM25, "xmm25" },
609
  16, // { X86_REG_XMM26, "xmm26" },
610
  16, // { X86_REG_XMM27, "xmm27" },
611
  16, // { X86_REG_XMM28, "xmm28" },
612
  16, // { X86_REG_XMM29, "xmm29" },
613
  16, // { X86_REG_XMM30, "xmm30" },
614
  16, // { X86_REG_XMM31, "xmm31" },
615
  32, // { X86_REG_YMM0, "ymm0" },
616
  32, // { X86_REG_YMM1, "ymm1" },
617
  32, // { X86_REG_YMM2, "ymm2" },
618
  32, // { X86_REG_YMM3, "ymm3" },
619
  32, // { X86_REG_YMM4, "ymm4" },
620
  32, // { X86_REG_YMM5, "ymm5" },
621
  32, // { X86_REG_YMM6, "ymm6" },
622
  32, // { X86_REG_YMM7, "ymm7" },
623
  32, // { X86_REG_YMM8, "ymm8" },
624
  32, // { X86_REG_YMM9, "ymm9" },
625
  32, // { X86_REG_YMM10, "ymm10" },
626
  32, // { X86_REG_YMM11, "ymm11" },
627
  32, // { X86_REG_YMM12, "ymm12" },
628
  32, // { X86_REG_YMM13, "ymm13" },
629
  32, // { X86_REG_YMM14, "ymm14" },
630
  32, // { X86_REG_YMM15, "ymm15" },
631
  32, // { X86_REG_YMM16, "ymm16" },
632
  32, // { X86_REG_YMM17, "ymm17" },
633
  32, // { X86_REG_YMM18, "ymm18" },
634
  32, // { X86_REG_YMM19, "ymm19" },
635
  32, // { X86_REG_YMM20, "ymm20" },
636
  32, // { X86_REG_YMM21, "ymm21" },
637
  32, // { X86_REG_YMM22, "ymm22" },
638
  32, // { X86_REG_YMM23, "ymm23" },
639
  32, // { X86_REG_YMM24, "ymm24" },
640
  32, // { X86_REG_YMM25, "ymm25" },
641
  32, // { X86_REG_YMM26, "ymm26" },
642
  32, // { X86_REG_YMM27, "ymm27" },
643
  32, // { X86_REG_YMM28, "ymm28" },
644
  32, // { X86_REG_YMM29, "ymm29" },
645
  32, // { X86_REG_YMM30, "ymm30" },
646
  32, // { X86_REG_YMM31, "ymm31" },
647
  64, // { X86_REG_ZMM0, "zmm0" },
648
  64, // { X86_REG_ZMM1, "zmm1" },
649
  64, // { X86_REG_ZMM2, "zmm2" },
650
  64, // { X86_REG_ZMM3, "zmm3" },
651
  64, // { X86_REG_ZMM4, "zmm4" },
652
  64, // { X86_REG_ZMM5, "zmm5" },
653
  64, // { X86_REG_ZMM6, "zmm6" },
654
  64, // { X86_REG_ZMM7, "zmm7" },
655
  64, // { X86_REG_ZMM8, "zmm8" },
656
  64, // { X86_REG_ZMM9, "zmm9" },
657
  64, // { X86_REG_ZMM10, "zmm10" },
658
  64, // { X86_REG_ZMM11, "zmm11" },
659
  64, // { X86_REG_ZMM12, "zmm12" },
660
  64, // { X86_REG_ZMM13, "zmm13" },
661
  64, // { X86_REG_ZMM14, "zmm14" },
662
  64, // { X86_REG_ZMM15, "zmm15" },
663
  64, // { X86_REG_ZMM16, "zmm16" },
664
  64, // { X86_REG_ZMM17, "zmm17" },
665
  64, // { X86_REG_ZMM18, "zmm18" },
666
  64, // { X86_REG_ZMM19, "zmm19" },
667
  64, // { X86_REG_ZMM20, "zmm20" },
668
  64, // { X86_REG_ZMM21, "zmm21" },
669
  64, // { X86_REG_ZMM22, "zmm22" },
670
  64, // { X86_REG_ZMM23, "zmm23" },
671
  64, // { X86_REG_ZMM24, "zmm24" },
672
  64, // { X86_REG_ZMM25, "zmm25" },
673
  64, // { X86_REG_ZMM26, "zmm26" },
674
  64, // { X86_REG_ZMM27, "zmm27" },
675
  64, // { X86_REG_ZMM28, "zmm28" },
676
  64, // { X86_REG_ZMM29, "zmm29" },
677
  64, // { X86_REG_ZMM30, "zmm30" },
678
  64, // { X86_REG_ZMM31, "zmm31" },
679
  1, // { X86_REG_R8B, "r8b" },
680
  1, // { X86_REG_R9B, "r9b" },
681
  1, // { X86_REG_R10B, "r10b" },
682
  1, // { X86_REG_R11B, "r11b" },
683
  1, // { X86_REG_R12B, "r12b" },
684
  1, // { X86_REG_R13B, "r13b" },
685
  1, // { X86_REG_R14B, "r14b" },
686
  1, // { X86_REG_R15B, "r15b" },
687
  4, // { X86_REG_R8D, "r8d" },
688
  4, // { X86_REG_R9D, "r9d" },
689
  4, // { X86_REG_R10D, "r10d" },
690
  4, // { X86_REG_R11D, "r11d" },
691
  4, // { X86_REG_R12D, "r12d" },
692
  4, // { X86_REG_R13D, "r13d" },
693
  4, // { X86_REG_R14D, "r14d" },
694
  4, // { X86_REG_R15D, "r15d" },
695
  2, // { X86_REG_R8W, "r8w" },
696
  2, // { X86_REG_R9W, "r9w" },
697
  2, // { X86_REG_R10W, "r10w" },
698
  2, // { X86_REG_R11W, "r11w" },
699
  2, // { X86_REG_R12W, "r12w" },
700
  2, // { X86_REG_R13W, "r13w" },
701
  2, // { X86_REG_R14W, "r14w" },
702
  2, // { X86_REG_R15W, "r15w" },
703
  16, // { X86_REG_BND0, "bnd0" },
704
  16, // { X86_REG_BND1, "bnd0" },
705
  16, // { X86_REG_BND2, "bnd0" },
706
  16, // { X86_REG_BND3, "bnd0" },
707
};
708
709
const char *X86_reg_name(csh handle, unsigned int reg)
710
1.80M
{
711
1.80M
#ifndef CAPSTONE_DIET
712
1.80M
  cs_struct *ud = (cs_struct *)handle;
713
714
1.80M
  if (reg >= ARR_SIZE(reg_name_maps))
715
0
    return NULL;
716
717
1.80M
  if (reg == X86_REG_EFLAGS) {
718
760k
    if (ud->mode & CS_MODE_32)
719
243k
      return "eflags";
720
517k
    if (ud->mode & CS_MODE_64)
721
259k
      return "rflags";
722
517k
  }
723
724
1.30M
  return reg_name_maps[reg].name;
725
#else
726
  return NULL;
727
#endif
728
1.80M
}
729
730
#ifndef CAPSTONE_DIET
731
static const char *const insn_name_maps[] = {
732
  NULL, // X86_INS_INVALID
733
#ifndef CAPSTONE_X86_REDUCE
734
#include "X86MappingInsnName.inc"
735
#else
736
#include "X86MappingInsnName_reduce.inc"
737
#endif
738
};
739
#endif
740
741
// NOTE: insn_name_maps[] is sorted in order
742
const char *X86_insn_name(csh handle, unsigned int id)
743
1.10M
{
744
1.10M
#ifndef CAPSTONE_DIET
745
1.10M
  if (id >= ARR_SIZE(insn_name_maps))
746
0
    return NULL;
747
748
1.10M
  return insn_name_maps[id];
749
#else
750
  return NULL;
751
#endif
752
1.10M
}
753
754
#ifndef CAPSTONE_DIET
755
static const name_map group_name_maps[] = {
756
  // generic groups
757
  { X86_GRP_INVALID, NULL },
758
  { X86_GRP_JUMP, "jump" },
759
  { X86_GRP_CALL, "call" },
760
  { X86_GRP_RET, "ret" },
761
  { X86_GRP_INT, "int" },
762
  { X86_GRP_IRET, "iret" },
763
  { X86_GRP_PRIVILEGE, "privilege" },
764
  { X86_GRP_BRANCH_RELATIVE, "branch_relative" },
765
766
  // architecture-specific groups
767
  { X86_GRP_VM, "vm" },
768
  { X86_GRP_3DNOW, "3dnow" },
769
  { X86_GRP_AES, "aes" },
770
  { X86_GRP_ADX, "adx" },
771
  { X86_GRP_AVX, "avx" },
772
  { X86_GRP_AVX2, "avx2" },
773
  { X86_GRP_AVX512, "avx512" },
774
  { X86_GRP_BMI, "bmi" },
775
  { X86_GRP_BMI2, "bmi2" },
776
  { X86_GRP_CMOV, "cmov" },
777
  { X86_GRP_F16C, "fc16" },
778
  { X86_GRP_FMA, "fma" },
779
  { X86_GRP_FMA4, "fma4" },
780
  { X86_GRP_FSGSBASE, "fsgsbase" },
781
  { X86_GRP_HLE, "hle" },
782
  { X86_GRP_MMX, "mmx" },
783
  { X86_GRP_MODE32, "mode32" },
784
  { X86_GRP_MODE64, "mode64" },
785
  { X86_GRP_RTM, "rtm" },
786
  { X86_GRP_SHA, "sha" },
787
  { X86_GRP_SSE1, "sse1" },
788
  { X86_GRP_SSE2, "sse2" },
789
  { X86_GRP_SSE3, "sse3" },
790
  { X86_GRP_SSE41, "sse41" },
791
  { X86_GRP_SSE42, "sse42" },
792
  { X86_GRP_SSE4A, "sse4a" },
793
  { X86_GRP_SSSE3, "ssse3" },
794
  { X86_GRP_PCLMUL, "pclmul" },
795
  { X86_GRP_XOP, "xop" },
796
  { X86_GRP_CDI, "cdi" },
797
  { X86_GRP_ERI, "eri" },
798
  { X86_GRP_TBM, "tbm" },
799
  { X86_GRP_16BITMODE, "16bitmode" },
800
  { X86_GRP_NOT64BITMODE, "not64bitmode" },
801
  { X86_GRP_SGX, "sgx" },
802
  { X86_GRP_DQI, "dqi" },
803
  { X86_GRP_BWI, "bwi" },
804
  { X86_GRP_PFI, "pfi" },
805
  { X86_GRP_VLX, "vlx" },
806
  { X86_GRP_SMAP, "smap" },
807
  { X86_GRP_NOVLX, "novlx" },
808
  { X86_GRP_FPU, "fpu" },
809
};
810
#endif
811
812
const char *X86_group_name(csh handle, unsigned int id)
813
483k
{
814
483k
#ifndef CAPSTONE_DIET
815
483k
  return id2name(group_name_maps, ARR_SIZE(group_name_maps), id);
816
#else
817
  return NULL;
818
#endif
819
483k
}
820
821
#define GET_INSTRINFO_ENUM
822
#ifdef CAPSTONE_X86_REDUCE
823
#include "X86GenInstrInfo_reduce.inc"
824
825
/// reduce x86 instructions
826
const insn_map_x86 insns[] = {
827
#include "X86MappingInsn_reduce.inc"
828
};
829
#else
830
#include "X86GenInstrInfo.inc"
831
832
/// full x86 instructions
833
const insn_map_x86 insns[] = {
834
#include "X86MappingInsn.inc"
835
};
836
#endif
837
838
#ifndef CAPSTONE_DIET
839
// in arr, replace r1 = r2
840
static void arr_replace(uint16_t *arr, uint8_t max, x86_reg r1, x86_reg r2)
841
336k
{
842
336k
  uint8_t i;
843
844
514k
  for (i = 0; i < max; i++) {
845
463k
    if (arr[i] == r1) {
846
285k
      arr[i] = r2;
847
285k
      break;
848
285k
    }
849
463k
  }
850
336k
}
851
#endif
852
853
// look for @id in @insns
854
// return -1 if not found
855
unsigned int find_insn(unsigned int id)
856
17.8k
{
857
  // binary searching since the IDs are sorted in order
858
17.8k
  unsigned int left, right, m;
859
17.8k
  unsigned int max = ARR_SIZE(insns);
860
861
17.8k
  right = max - 1;
862
863
17.8k
  if (id < insns[0].id || id > insns[right].id)
864
    // not found
865
104
    return -1;
866
867
17.7k
  left = 0;
868
869
232k
  while (left <= right) {
870
232k
    m = (left + right) / 2;
871
232k
    if (id == insns[m].id) {
872
17.7k
      return m;
873
17.7k
    }
874
875
214k
    if (id < insns[m].id)
876
87.3k
      right = m - 1;
877
127k
    else
878
127k
      left = m + 1;
879
214k
  }
880
881
  // not found
882
  // printf("NOT FOUNDDDDDDDDDDDDDDD id = %u\n", id);
883
0
  return -1;
884
17.7k
}
885
886
static inline unsigned int find_insn_h(cs_struct *h, unsigned int id)
887
3.81M
{
888
3.81M
  if (h && h->x86_insn_lut && id <= h->x86_insn_lut_max)
889
3.81M
    return (unsigned int)(int16_t)h->x86_insn_lut[id];
890
891
0
  return find_insn(id);
892
3.81M
}
893
894
// given internal insn id, return public instruction info
895
void X86_get_insn_id(cs_struct *h, cs_insn *insn, unsigned int id)
896
1.10M
{
897
1.10M
  unsigned int i = find_insn_h(h, id);
898
1.10M
  if (i != -1) {
899
1.10M
    insn->id = insns[i].mapid;
900
901
1.10M
    if (h->detail_opt) {
902
1.10M
#ifndef CAPSTONE_DIET
903
1.10M
      memcpy(insn->detail->regs_read, insns[i].regs_use,
904
1.10M
             sizeof(insns[i].regs_use));
905
1.10M
      insn->detail->regs_read_count =
906
1.10M
        (uint8_t)count_positive(insns[i].regs_use);
907
908
      // special cases when regs_write[] depends on arch
909
1.10M
      switch (id) {
910
1.10M
      default:
911
1.10M
        memcpy(insn->detail->regs_write,
912
1.10M
               insns[i].regs_mod,
913
1.10M
               sizeof(insns[i].regs_mod));
914
1.10M
        insn->detail->regs_write_count =
915
1.10M
          (uint8_t)count_positive(
916
1.10M
            insns[i].regs_mod);
917
1.10M
        break;
918
927
      case X86_RDTSC:
919
927
        if (h->mode == CS_MODE_64) {
920
574
          memcpy(insn->detail->regs_write,
921
574
                 insns[i].regs_mod,
922
574
                 sizeof(insns[i].regs_mod));
923
574
          insn->detail->regs_write_count =
924
574
            (uint8_t)count_positive(
925
574
              insns[i].regs_mod);
926
574
        } else {
927
353
          insn->detail->regs_write[0] =
928
353
            X86_REG_EAX;
929
353
          insn->detail->regs_write[1] =
930
353
            X86_REG_EDX;
931
353
          insn->detail->regs_write_count = 2;
932
353
        }
933
927
        break;
934
840
      case X86_RDTSCP:
935
840
        if (h->mode == CS_MODE_64) {
936
302
          memcpy(insn->detail->regs_write,
937
302
                 insns[i].regs_mod,
938
302
                 sizeof(insns[i].regs_mod));
939
302
          insn->detail->regs_write_count =
940
302
            (uint8_t)count_positive(
941
302
              insns[i].regs_mod);
942
538
        } else {
943
538
          insn->detail->regs_write[0] =
944
538
            X86_REG_EAX;
945
538
          insn->detail->regs_write[1] =
946
538
            X86_REG_ECX;
947
538
          insn->detail->regs_write[2] =
948
538
            X86_REG_EDX;
949
538
          insn->detail->regs_write_count = 3;
950
538
        }
951
840
        break;
952
1.10M
      }
953
1.10M
      switch (insn->id) {
954
1.09M
      default:
955
1.09M
        break;
956
957
1.09M
      case X86_INS_LOOP:
958
5.63k
      case X86_INS_LOOPE:
959
8.80k
      case X86_INS_LOOPNE:
960
        // The instruction pointer register follows the mode.
961
8.80k
        switch (h->mode) {
962
2.85k
        default:
963
2.85k
          break;
964
3.10k
        case CS_MODE_16:
965
3.10k
          arr_replace(
966
3.10k
            insn->detail->regs_read,
967
3.10k
            insn->detail->regs_read_count,
968
3.10k
            X86_REG_EIP, X86_REG_IP);
969
3.10k
          arr_replace(
970
3.10k
            insn->detail->regs_write,
971
3.10k
            insn->detail->regs_write_count,
972
3.10k
            X86_REG_EIP, X86_REG_IP);
973
3.10k
          break;
974
2.84k
        case CS_MODE_64:
975
2.84k
          arr_replace(
976
2.84k
            insn->detail->regs_read,
977
2.84k
            insn->detail->regs_read_count,
978
2.84k
            X86_REG_EIP, X86_REG_RIP);
979
2.84k
          arr_replace(
980
2.84k
            insn->detail->regs_write,
981
2.84k
            insn->detail->regs_write_count,
982
2.84k
            X86_REG_EIP, X86_REG_RIP);
983
2.84k
          break;
984
8.80k
        }
985
        // The loop counter register follows the effective address
986
        // size, which a 0x67 address-size prefix can override.
987
8.80k
        if (insn->detail->x86.addr_size == 2) {
988
3.10k
          arr_replace(
989
3.10k
            insn->detail->regs_read,
990
3.10k
            insn->detail->regs_read_count,
991
3.10k
            X86_REG_ECX, X86_REG_CX);
992
3.10k
          arr_replace(
993
3.10k
            insn->detail->regs_write,
994
3.10k
            insn->detail->regs_write_count,
995
3.10k
            X86_REG_ECX, X86_REG_CX);
996
5.69k
        } else if (insn->detail->x86.addr_size == 8) {
997
2.84k
          arr_replace(
998
2.84k
            insn->detail->regs_read,
999
2.84k
            insn->detail->regs_read_count,
1000
2.84k
            X86_REG_ECX, X86_REG_RCX);
1001
2.84k
          arr_replace(
1002
2.84k
            insn->detail->regs_write,
1003
2.84k
            insn->detail->regs_write_count,
1004
2.84k
            X86_REG_ECX, X86_REG_RCX);
1005
2.84k
        }
1006
1.10M
      }
1007
1008
1.10M
      switch (insn->id) {
1009
1.01M
      default:
1010
1.01M
        break;
1011
1.01M
      case X86_INS_LODSB:
1012
8.07k
      case X86_INS_LODSD:
1013
8.96k
      case X86_INS_LODSQ:
1014
10.4k
      case X86_INS_LODSW:
1015
10.4k
        switch (h->mode) {
1016
2.22k
        default:
1017
2.22k
          break;
1018
2.22k
        case CS_MODE_16:
1019
2.13k
          arr_replace(
1020
2.13k
            insn->detail->regs_read,
1021
2.13k
            insn->detail->regs_read_count,
1022
2.13k
            X86_REG_ESI, X86_REG_SI);
1023
2.13k
          arr_replace(
1024
2.13k
            insn->detail->regs_write,
1025
2.13k
            insn->detail->regs_write_count,
1026
2.13k
            X86_REG_ESI, X86_REG_SI);
1027
2.13k
          break;
1028
6.08k
        case CS_MODE_64:
1029
6.08k
          arr_replace(
1030
6.08k
            insn->detail->regs_read,
1031
6.08k
            insn->detail->regs_read_count,
1032
6.08k
            X86_REG_ESI, X86_REG_RSI);
1033
6.08k
          arr_replace(
1034
6.08k
            insn->detail->regs_write,
1035
6.08k
            insn->detail->regs_write_count,
1036
6.08k
            X86_REG_ESI, X86_REG_RSI);
1037
6.08k
          break;
1038
10.4k
        }
1039
10.4k
        break;
1040
1041
10.4k
      case X86_INS_SCASB:
1042
7.85k
      case X86_INS_SCASD:
1043
9.83k
      case X86_INS_SCASW:
1044
11.9k
      case X86_INS_SCASQ:
1045
14.8k
      case X86_INS_STOSB:
1046
16.8k
      case X86_INS_STOSD:
1047
17.2k
      case X86_INS_STOSQ:
1048
19.7k
      case X86_INS_STOSW:
1049
19.7k
        switch (h->mode) {
1050
4.97k
        default:
1051
4.97k
          break;
1052
7.26k
        case CS_MODE_16:
1053
7.26k
          arr_replace(
1054
7.26k
            insn->detail->regs_read,
1055
7.26k
            insn->detail->regs_read_count,
1056
7.26k
            X86_REG_EDI, X86_REG_DI);
1057
7.26k
          arr_replace(
1058
7.26k
            insn->detail->regs_write,
1059
7.26k
            insn->detail->regs_write_count,
1060
7.26k
            X86_REG_EDI, X86_REG_DI);
1061
7.26k
          break;
1062
7.51k
        case CS_MODE_64:
1063
7.51k
          arr_replace(
1064
7.51k
            insn->detail->regs_read,
1065
7.51k
            insn->detail->regs_read_count,
1066
7.51k
            X86_REG_EDI, X86_REG_RDI);
1067
7.51k
          arr_replace(
1068
7.51k
            insn->detail->regs_write,
1069
7.51k
            insn->detail->regs_write_count,
1070
7.51k
            X86_REG_EDI, X86_REG_RDI);
1071
7.51k
          break;
1072
19.7k
        }
1073
19.7k
        break;
1074
1075
19.7k
      case X86_INS_CMPSB:
1076
8.65k
      case X86_INS_CMPSD:
1077
9.77k
      case X86_INS_CMPSQ:
1078
15.5k
      case X86_INS_CMPSW:
1079
20.0k
      case X86_INS_MOVSB:
1080
22.8k
      case X86_INS_MOVSW:
1081
27.9k
      case X86_INS_MOVSD:
1082
30.5k
      case X86_INS_MOVSQ:
1083
30.5k
        switch (h->mode) {
1084
7.43k
        default:
1085
7.43k
          break;
1086
12.9k
        case CS_MODE_16:
1087
12.9k
          arr_replace(
1088
12.9k
            insn->detail->regs_read,
1089
12.9k
            insn->detail->regs_read_count,
1090
12.9k
            X86_REG_EDI, X86_REG_DI);
1091
12.9k
          arr_replace(
1092
12.9k
            insn->detail->regs_write,
1093
12.9k
            insn->detail->regs_write_count,
1094
12.9k
            X86_REG_EDI, X86_REG_DI);
1095
12.9k
          arr_replace(
1096
12.9k
            insn->detail->regs_read,
1097
12.9k
            insn->detail->regs_read_count,
1098
12.9k
            X86_REG_ESI, X86_REG_SI);
1099
12.9k
          arr_replace(
1100
12.9k
            insn->detail->regs_write,
1101
12.9k
            insn->detail->regs_write_count,
1102
12.9k
            X86_REG_ESI, X86_REG_SI);
1103
12.9k
          break;
1104
10.1k
        case CS_MODE_64:
1105
10.1k
          arr_replace(
1106
10.1k
            insn->detail->regs_read,
1107
10.1k
            insn->detail->regs_read_count,
1108
10.1k
            X86_REG_EDI, X86_REG_RDI);
1109
10.1k
          arr_replace(
1110
10.1k
            insn->detail->regs_write,
1111
10.1k
            insn->detail->regs_write_count,
1112
10.1k
            X86_REG_EDI, X86_REG_RDI);
1113
10.1k
          arr_replace(
1114
10.1k
            insn->detail->regs_read,
1115
10.1k
            insn->detail->regs_read_count,
1116
10.1k
            X86_REG_ESI, X86_REG_RSI);
1117
10.1k
          arr_replace(
1118
10.1k
            insn->detail->regs_write,
1119
10.1k
            insn->detail->regs_write_count,
1120
10.1k
            X86_REG_ESI, X86_REG_RSI);
1121
10.1k
          break;
1122
30.5k
        }
1123
30.5k
        break;
1124
1125
30.5k
      case X86_INS_ENTER:
1126
9.29k
      case X86_INS_LEAVE:
1127
9.29k
        switch (h->mode) {
1128
2.75k
        default:
1129
2.75k
          break;
1130
2.76k
        case CS_MODE_16:
1131
2.76k
          arr_replace(
1132
2.76k
            insn->detail->regs_read,
1133
2.76k
            insn->detail->regs_read_count,
1134
2.76k
            X86_REG_EBP, X86_REG_BP);
1135
2.76k
          arr_replace(
1136
2.76k
            insn->detail->regs_read,
1137
2.76k
            insn->detail->regs_read_count,
1138
2.76k
            X86_REG_ESP, X86_REG_SP);
1139
2.76k
          arr_replace(
1140
2.76k
            insn->detail->regs_write,
1141
2.76k
            insn->detail->regs_write_count,
1142
2.76k
            X86_REG_EBP, X86_REG_BP);
1143
2.76k
          arr_replace(
1144
2.76k
            insn->detail->regs_write,
1145
2.76k
            insn->detail->regs_write_count,
1146
2.76k
            X86_REG_ESP, X86_REG_SP);
1147
2.76k
          break;
1148
3.76k
        case CS_MODE_64:
1149
3.76k
          arr_replace(
1150
3.76k
            insn->detail->regs_read,
1151
3.76k
            insn->detail->regs_read_count,
1152
3.76k
            X86_REG_EBP, X86_REG_RBP);
1153
3.76k
          arr_replace(
1154
3.76k
            insn->detail->regs_read,
1155
3.76k
            insn->detail->regs_read_count,
1156
3.76k
            X86_REG_ESP, X86_REG_RSP);
1157
3.76k
          arr_replace(
1158
3.76k
            insn->detail->regs_write,
1159
3.76k
            insn->detail->regs_write_count,
1160
3.76k
            X86_REG_EBP, X86_REG_RBP);
1161
3.76k
          arr_replace(
1162
3.76k
            insn->detail->regs_write,
1163
3.76k
            insn->detail->regs_write_count,
1164
3.76k
            X86_REG_ESP, X86_REG_RSP);
1165
9.29k
        }
1166
9.29k
        break;
1167
1168
9.29k
      case X86_INS_INSB:
1169
10.1k
      case X86_INS_INSW:
1170
14.0k
      case X86_INS_INSD:
1171
14.0k
        switch (h->mode) {
1172
4.39k
        default:
1173
4.39k
          break;
1174
4.39k
        case CS_MODE_16:
1175
4.27k
          arr_replace(
1176
4.27k
            insn->detail->regs_read,
1177
4.27k
            insn->detail->regs_read_count,
1178
4.27k
            X86_REG_EDI, X86_REG_DI);
1179
4.27k
          arr_replace(
1180
4.27k
            insn->detail->regs_write,
1181
4.27k
            insn->detail->regs_write_count,
1182
4.27k
            X86_REG_EDI, X86_REG_DI);
1183
4.27k
          break;
1184
5.40k
        case CS_MODE_64:
1185
5.40k
          arr_replace(
1186
5.40k
            insn->detail->regs_read,
1187
5.40k
            insn->detail->regs_read_count,
1188
5.40k
            X86_REG_EDI, X86_REG_RDI);
1189
5.40k
          arr_replace(
1190
5.40k
            insn->detail->regs_write,
1191
5.40k
            insn->detail->regs_write_count,
1192
5.40k
            X86_REG_EDI, X86_REG_RDI);
1193
5.40k
          break;
1194
14.0k
        }
1195
14.0k
        break;
1196
1197
14.0k
      case X86_INS_OUTSB:
1198
9.58k
      case X86_INS_OUTSW:
1199
13.2k
      case X86_INS_OUTSD:
1200
13.2k
        switch (h->mode) {
1201
3.51k
        default:
1202
3.51k
          break;
1203
5.38k
        case CS_MODE_64:
1204
5.38k
          arr_replace(
1205
5.38k
            insn->detail->regs_read,
1206
5.38k
            insn->detail->regs_read_count,
1207
5.38k
            X86_REG_ESI, X86_REG_RSI);
1208
5.38k
          arr_replace(
1209
5.38k
            insn->detail->regs_write,
1210
5.38k
            insn->detail->regs_write_count,
1211
5.38k
            X86_REG_ESI, X86_REG_RSI);
1212
5.38k
          break;
1213
4.37k
        case CS_MODE_16:
1214
4.37k
          arr_replace(
1215
4.37k
            insn->detail->regs_read,
1216
4.37k
            insn->detail->regs_read_count,
1217
4.37k
            X86_REG_ESI, X86_REG_SI);
1218
4.37k
          arr_replace(
1219
4.37k
            insn->detail->regs_write,
1220
4.37k
            insn->detail->regs_write_count,
1221
4.37k
            X86_REG_ESI, X86_REG_SI);
1222
4.37k
          break;
1223
13.2k
        }
1224
13.2k
        break;
1225
1.10M
      }
1226
1227
1.10M
      switch (insn->id) {
1228
1.04M
      default:
1229
1.04M
        break;
1230
1.04M
      case X86_INS_LODSB:
1231
8.07k
      case X86_INS_LODSD:
1232
9.55k
      case X86_INS_LODSW:
1233
13.2k
      case X86_INS_CMPSB:
1234
18.2k
      case X86_INS_CMPSD:
1235
23.9k
      case X86_INS_CMPSW:
1236
28.4k
      case X86_INS_MOVSB:
1237
31.2k
      case X86_INS_MOVSW:
1238
36.3k
      case X86_INS_MOVSD:
1239
42.6k
      case X86_INS_OUTSB:
1240
45.9k
      case X86_INS_OUTSW:
1241
49.6k
      case X86_INS_OUTSD:
1242
49.6k
        switch (h->mode) {
1243
17.0k
        default:
1244
17.0k
          break;
1245
19.4k
        case CS_MODE_16:
1246
32.6k
        case CS_MODE_32: {
1247
32.6k
          int pos = insn->detail->regs_read_count;
1248
32.6k
          insn->detail->regs_read[pos] =
1249
32.6k
            X86_REG_DS;
1250
32.6k
          insn->detail->regs_read_count += 1;
1251
32.6k
        } break;
1252
49.6k
        }
1253
49.6k
        break;
1254
1255
49.6k
      case X86_INS_JMP:
1256
15.8k
      case X86_INS_LJMP:
1257
15.8k
        switch (h->mode) {
1258
5.98k
        default:
1259
5.98k
          break;
1260
5.98k
        case CS_MODE_16:
1261
4.65k
          arr_replace(
1262
4.65k
            insn->detail->regs_read,
1263
4.65k
            insn->detail->regs_read_count,
1264
4.65k
            X86_REG_EIP, X86_REG_IP);
1265
4.65k
          arr_replace(
1266
4.65k
            insn->detail->regs_write,
1267
4.65k
            insn->detail->regs_write_count,
1268
4.65k
            X86_REG_EIP, X86_REG_IP);
1269
4.65k
          break;
1270
5.19k
        case CS_MODE_64:
1271
5.19k
          arr_replace(
1272
5.19k
            insn->detail->regs_read,
1273
5.19k
            insn->detail->regs_read_count,
1274
5.19k
            X86_REG_EIP, X86_REG_RIP);
1275
5.19k
          arr_replace(
1276
5.19k
            insn->detail->regs_write,
1277
5.19k
            insn->detail->regs_write_count,
1278
5.19k
            X86_REG_EIP, X86_REG_RIP);
1279
5.19k
          break;
1280
15.8k
        }
1281
15.8k
        break;
1282
1283
15.8k
      case X86_INS_SYSENTER: {
1284
741
        switch (h->mode) {
1285
246
        default:
1286
246
          break;
1287
246
        case CS_MODE_16:
1288
193
          arr_replace(
1289
193
            insn->detail->regs_write,
1290
193
            insn->detail->regs_write_count,
1291
193
            X86_REG_EIP, X86_REG_IP);
1292
193
          arr_replace(
1293
193
            insn->detail->regs_write,
1294
193
            insn->detail->regs_write_count,
1295
193
            X86_REG_ESP, X86_REG_SP);
1296
193
          break;
1297
302
        case CS_MODE_64:
1298
302
          arr_replace(
1299
302
            insn->detail->regs_write,
1300
302
            insn->detail->regs_write_count,
1301
302
            X86_REG_EIP, X86_REG_RIP);
1302
302
          arr_replace(
1303
302
            insn->detail->regs_write,
1304
302
            insn->detail->regs_write_count,
1305
302
            X86_REG_ESP, X86_REG_RSP);
1306
302
          break;
1307
741
        }
1308
741
        break;
1309
741
      } break;
1310
887
      case X86_INS_SYSEXIT: {
1311
887
        switch (h->mode) {
1312
269
        default:
1313
269
          break;
1314
378
        case CS_MODE_16:
1315
378
          arr_replace(
1316
378
            insn->detail->regs_read,
1317
378
            insn->detail->regs_read_count,
1318
378
            X86_REG_ECX, X86_REG_CX);
1319
378
          arr_replace(
1320
378
            insn->detail->regs_read,
1321
378
            insn->detail->regs_read_count,
1322
378
            X86_REG_EDX, X86_REG_DX);
1323
378
          arr_replace(
1324
378
            insn->detail->regs_write,
1325
378
            insn->detail->regs_write_count,
1326
378
            X86_REG_EIP, X86_REG_IP);
1327
378
          arr_replace(
1328
378
            insn->detail->regs_write,
1329
378
            insn->detail->regs_write_count,
1330
378
            X86_REG_ESP, X86_REG_SP);
1331
378
          break;
1332
240
        case CS_MODE_64:
1333
240
          arr_replace(
1334
240
            insn->detail->regs_read,
1335
240
            insn->detail->regs_read_count,
1336
240
            X86_REG_ECX, X86_REG_RCX);
1337
240
          arr_replace(
1338
240
            insn->detail->regs_read,
1339
240
            insn->detail->regs_read_count,
1340
240
            X86_REG_EDX, X86_REG_RDX);
1341
240
          arr_replace(
1342
240
            insn->detail->regs_write,
1343
240
            insn->detail->regs_write_count,
1344
240
            X86_REG_EIP, X86_REG_RIP);
1345
240
          arr_replace(
1346
240
            insn->detail->regs_write,
1347
240
            insn->detail->regs_write_count,
1348
240
            X86_REG_ESP, X86_REG_RSP);
1349
240
          break;
1350
887
        }
1351
887
        break;
1352
887
      } break;
1353
1.10M
      }
1354
1355
1.10M
      memcpy(insn->detail->groups, insns[i].groups,
1356
1.10M
             sizeof(insns[i].groups));
1357
1.10M
      insn->detail->groups_count =
1358
1.10M
        (uint8_t)count_positive8(insns[i].groups);
1359
1360
1.10M
      if (insns[i].branch || insns[i].indirect_branch) {
1361
        // this insn also belongs to JUMP group. add JUMP group
1362
66.3k
        insn->detail
1363
66.3k
          ->groups[insn->detail->groups_count] =
1364
66.3k
          X86_GRP_JUMP;
1365
66.3k
        insn->detail->groups_count++;
1366
1367
66.3k
        switch (h->mode) {
1368
23.4k
        default:
1369
23.4k
          break;
1370
23.4k
        case CS_MODE_16:
1371
19.6k
          arr_replace(
1372
19.6k
            insn->detail->regs_read,
1373
19.6k
            insn->detail->regs_read_count,
1374
19.6k
            X86_REG_EIP, X86_REG_IP);
1375
19.6k
          arr_replace(
1376
19.6k
            insn->detail->regs_write,
1377
19.6k
            insn->detail->regs_write_count,
1378
19.6k
            X86_REG_EIP, X86_REG_IP);
1379
19.6k
          break;
1380
23.2k
        case CS_MODE_64:
1381
23.2k
          arr_replace(
1382
23.2k
            insn->detail->regs_read,
1383
23.2k
            insn->detail->regs_read_count,
1384
23.2k
            X86_REG_EIP, X86_REG_RIP);
1385
23.2k
          arr_replace(
1386
23.2k
            insn->detail->regs_write,
1387
23.2k
            insn->detail->regs_write_count,
1388
23.2k
            X86_REG_EIP, X86_REG_RIP);
1389
23.2k
          break;
1390
66.3k
        }
1391
66.3k
      }
1392
1393
1.10M
      switch (insns[i].id) {
1394
1.95k
      case X86_OUT8ir:
1395
2.90k
      case X86_OUT16ir:
1396
4.04k
      case X86_OUT32ir:
1397
4.04k
        if (insn->detail->x86.operands[0].imm == -78) {
1398
          // Writing to port 0xb2 causes an SMI on most platforms
1399
          // See: http://cs.gmu.edu/~tr-admin/papers/GMU-CS-TR-2011-8.pdf
1400
0
          insn->detail->groups
1401
0
            [insn->detail->groups_count] =
1402
0
            X86_GRP_INT;
1403
0
          insn->detail->groups_count++;
1404
0
        }
1405
4.04k
        break;
1406
1407
1.10M
      default:
1408
1.10M
        break;
1409
1.10M
      }
1410
1.10M
#endif
1411
1.10M
    }
1412
1.10M
  }
1413
1.10M
}
1414
1415
// map special instructions with accumulate registers.
1416
// this is needed because LLVM embeds these register names into AsmStrs[],
1417
// but not separately in operands
1418
struct insn_reg {
1419
  uint16_t insn;
1420
  x86_reg reg;
1421
  enum cs_ac_type access;
1422
};
1423
1424
struct insn_reg2 {
1425
  uint16_t insn;
1426
  x86_reg reg1, reg2;
1427
  enum cs_ac_type access1, access2;
1428
};
1429
1430
static inline uint16_t pack_insn_reg(x86_reg reg, enum cs_ac_type access)
1431
2.23M
{
1432
2.23M
  return (uint16_t)(((unsigned int)access << 12) |
1433
2.23M
        ((unsigned int)reg & 0x0fff));
1434
2.23M
}
1435
1436
static inline x86_reg unpack_insn_reg(uint16_t value, enum cs_ac_type *access)
1437
90.8k
{
1438
90.8k
  if (access)
1439
90.8k
    *access = (enum cs_ac_type)(value >> 12);
1440
90.8k
  return (x86_reg)(value & 0x0fff);
1441
90.8k
}
1442
1443
static const struct insn_reg insn_regs_att[] = {
1444
  { X86_INSB, X86_REG_DX, CS_AC_READ },
1445
  { X86_INSL, X86_REG_DX, CS_AC_READ },
1446
  { X86_INSW, X86_REG_DX, CS_AC_READ },
1447
  { X86_MOV16o16a, X86_REG_AX, CS_AC_READ },
1448
  { X86_MOV16o32a, X86_REG_AX, CS_AC_READ },
1449
  { X86_MOV16o64a, X86_REG_AX, CS_AC_READ },
1450
  { X86_MOV32o16a, X86_REG_EAX, CS_AC_READ },
1451
  { X86_MOV32o32a, X86_REG_EAX, CS_AC_READ },
1452
  { X86_MOV32o64a, X86_REG_EAX, CS_AC_READ },
1453
  { X86_MOV64o32a, X86_REG_RAX, CS_AC_READ },
1454
  { X86_MOV64o64a, X86_REG_RAX, CS_AC_READ },
1455
  { X86_MOV8o16a, X86_REG_AL, CS_AC_READ },
1456
  { X86_MOV8o32a, X86_REG_AL, CS_AC_READ },
1457
  { X86_MOV8o64a, X86_REG_AL, CS_AC_READ },
1458
  { X86_OUT16ir, X86_REG_AX, CS_AC_READ },
1459
  { X86_OUT32ir, X86_REG_EAX, CS_AC_READ },
1460
  { X86_OUT8ir, X86_REG_AL, CS_AC_READ },
1461
  { X86_POPDS16, X86_REG_DS, CS_AC_WRITE },
1462
  { X86_POPDS32, X86_REG_DS, CS_AC_WRITE },
1463
  { X86_POPES16, X86_REG_ES, CS_AC_WRITE },
1464
  { X86_POPES32, X86_REG_ES, CS_AC_WRITE },
1465
  { X86_POPFS16, X86_REG_FS, CS_AC_WRITE },
1466
  { X86_POPFS32, X86_REG_FS, CS_AC_WRITE },
1467
  { X86_POPFS64, X86_REG_FS, CS_AC_WRITE },
1468
  { X86_POPGS16, X86_REG_GS, CS_AC_WRITE },
1469
  { X86_POPGS32, X86_REG_GS, CS_AC_WRITE },
1470
  { X86_POPGS64, X86_REG_GS, CS_AC_WRITE },
1471
  { X86_POPSS16, X86_REG_SS, CS_AC_WRITE },
1472
  { X86_POPSS32, X86_REG_SS, CS_AC_WRITE },
1473
  { X86_PUSHCS16, X86_REG_CS, CS_AC_READ },
1474
  { X86_PUSHCS32, X86_REG_CS, CS_AC_READ },
1475
  { X86_PUSHDS16, X86_REG_DS, CS_AC_READ },
1476
  { X86_PUSHDS32, X86_REG_DS, CS_AC_READ },
1477
  { X86_PUSHES16, X86_REG_ES, CS_AC_READ },
1478
  { X86_PUSHES32, X86_REG_ES, CS_AC_READ },
1479
  { X86_PUSHFS16, X86_REG_FS, CS_AC_READ },
1480
  { X86_PUSHFS32, X86_REG_FS, CS_AC_READ },
1481
  { X86_PUSHFS64, X86_REG_FS, CS_AC_READ },
1482
  { X86_PUSHGS16, X86_REG_GS, CS_AC_READ },
1483
  { X86_PUSHGS32, X86_REG_GS, CS_AC_READ },
1484
  { X86_PUSHGS64, X86_REG_GS, CS_AC_READ },
1485
  { X86_PUSHSS16, X86_REG_SS, CS_AC_READ },
1486
  { X86_PUSHSS32, X86_REG_SS, CS_AC_READ },
1487
  { X86_RCL16mCL, X86_REG_CL, CS_AC_READ },
1488
  { X86_RCL16rCL, X86_REG_CL, CS_AC_READ },
1489
  { X86_RCL32mCL, X86_REG_CL, CS_AC_READ },
1490
  { X86_RCL32rCL, X86_REG_CL, CS_AC_READ },
1491
  { X86_RCL64mCL, X86_REG_CL, CS_AC_READ },
1492
  { X86_RCL64rCL, X86_REG_CL, CS_AC_READ },
1493
  { X86_RCL8mCL, X86_REG_CL, CS_AC_READ },
1494
  { X86_RCL8rCL, X86_REG_CL, CS_AC_READ },
1495
  { X86_RCR16mCL, X86_REG_CL, CS_AC_READ },
1496
  { X86_RCR16rCL, X86_REG_CL, CS_AC_READ },
1497
  { X86_RCR32mCL, X86_REG_CL, CS_AC_READ },
1498
  { X86_RCR32rCL, X86_REG_CL, CS_AC_READ },
1499
  { X86_RCR64mCL, X86_REG_CL, CS_AC_READ },
1500
  { X86_RCR64rCL, X86_REG_CL, CS_AC_READ },
1501
  { X86_RCR8mCL, X86_REG_CL, CS_AC_READ },
1502
  { X86_RCR8rCL, X86_REG_CL, CS_AC_READ },
1503
  { X86_ROL16mCL, X86_REG_CL, CS_AC_READ },
1504
  { X86_ROL16rCL, X86_REG_CL, CS_AC_READ },
1505
  { X86_ROL32mCL, X86_REG_CL, CS_AC_READ },
1506
  { X86_ROL32rCL, X86_REG_CL, CS_AC_READ },
1507
  { X86_ROL64mCL, X86_REG_CL, CS_AC_READ },
1508
  { X86_ROL64rCL, X86_REG_CL, CS_AC_READ },
1509
  { X86_ROL8mCL, X86_REG_CL, CS_AC_READ },
1510
  { X86_ROL8rCL, X86_REG_CL, CS_AC_READ },
1511
  { X86_ROR16mCL, X86_REG_CL, CS_AC_READ },
1512
  { X86_ROR16rCL, X86_REG_CL, CS_AC_READ },
1513
  { X86_ROR32mCL, X86_REG_CL, CS_AC_READ },
1514
  { X86_ROR32rCL, X86_REG_CL, CS_AC_READ },
1515
  { X86_ROR64mCL, X86_REG_CL, CS_AC_READ },
1516
  { X86_ROR64rCL, X86_REG_CL, CS_AC_READ },
1517
  { X86_ROR8mCL, X86_REG_CL, CS_AC_READ },
1518
  { X86_ROR8rCL, X86_REG_CL, CS_AC_READ },
1519
  { X86_SAL16mCL, X86_REG_CL, CS_AC_READ },
1520
  { X86_SAL16rCL, X86_REG_CL, CS_AC_READ },
1521
  { X86_SAL32mCL, X86_REG_CL, CS_AC_READ },
1522
  { X86_SAL32rCL, X86_REG_CL, CS_AC_READ },
1523
  { X86_SAL64mCL, X86_REG_CL, CS_AC_READ },
1524
  { X86_SAL64rCL, X86_REG_CL, CS_AC_READ },
1525
  { X86_SAL8mCL, X86_REG_CL, CS_AC_READ },
1526
  { X86_SAL8rCL, X86_REG_CL, CS_AC_READ },
1527
  { X86_SAR16mCL, X86_REG_CL, CS_AC_READ },
1528
  { X86_SAR16rCL, X86_REG_CL, CS_AC_READ },
1529
  { X86_SAR32mCL, X86_REG_CL, CS_AC_READ },
1530
  { X86_SAR32rCL, X86_REG_CL, CS_AC_READ },
1531
  { X86_SAR64mCL, X86_REG_CL, CS_AC_READ },
1532
  { X86_SAR64rCL, X86_REG_CL, CS_AC_READ },
1533
  { X86_SAR8mCL, X86_REG_CL, CS_AC_READ },
1534
  { X86_SAR8rCL, X86_REG_CL, CS_AC_READ },
1535
  { X86_SHL16mCL, X86_REG_CL, CS_AC_READ },
1536
  { X86_SHL16rCL, X86_REG_CL, CS_AC_READ },
1537
  { X86_SHL32mCL, X86_REG_CL, CS_AC_READ },
1538
  { X86_SHL32rCL, X86_REG_CL, CS_AC_READ },
1539
  { X86_SHL64mCL, X86_REG_CL, CS_AC_READ },
1540
  { X86_SHL64rCL, X86_REG_CL, CS_AC_READ },
1541
  { X86_SHL8mCL, X86_REG_CL, CS_AC_READ },
1542
  { X86_SHL8rCL, X86_REG_CL, CS_AC_READ },
1543
  { X86_SHLD16mrCL, X86_REG_CL, CS_AC_READ },
1544
  { X86_SHLD16rrCL, X86_REG_CL, CS_AC_READ },
1545
  { X86_SHLD32mrCL, X86_REG_CL, CS_AC_READ },
1546
  { X86_SHLD32rrCL, X86_REG_CL, CS_AC_READ },
1547
  { X86_SHLD64mrCL, X86_REG_CL, CS_AC_READ },
1548
  { X86_SHLD64rrCL, X86_REG_CL, CS_AC_READ },
1549
  { X86_SHR16mCL, X86_REG_CL, CS_AC_READ },
1550
  { X86_SHR16rCL, X86_REG_CL, CS_AC_READ },
1551
  { X86_SHR32mCL, X86_REG_CL, CS_AC_READ },
1552
  { X86_SHR32rCL, X86_REG_CL, CS_AC_READ },
1553
  { X86_SHR64mCL, X86_REG_CL, CS_AC_READ },
1554
  { X86_SHR64rCL, X86_REG_CL, CS_AC_READ },
1555
  { X86_SHR8mCL, X86_REG_CL, CS_AC_READ },
1556
  { X86_SHR8rCL, X86_REG_CL, CS_AC_READ },
1557
  { X86_SHRD16mrCL, X86_REG_CL, CS_AC_READ },
1558
  { X86_SHRD16rrCL, X86_REG_CL, CS_AC_READ },
1559
  { X86_SHRD32mrCL, X86_REG_CL, CS_AC_READ },
1560
  { X86_SHRD32rrCL, X86_REG_CL, CS_AC_READ },
1561
  { X86_SHRD64mrCL, X86_REG_CL, CS_AC_READ },
1562
  { X86_SHRD64rrCL, X86_REG_CL, CS_AC_READ },
1563
  { X86_XCHG16ar, X86_REG_AX, CS_AC_WRITE | CS_AC_READ },
1564
  { X86_XCHG32ar, X86_REG_EAX, CS_AC_WRITE | CS_AC_READ },
1565
  { X86_XCHG64ar, X86_REG_RAX, CS_AC_WRITE | CS_AC_READ },
1566
};
1567
1568
static const struct insn_reg insn_regs_att_extra[] = {
1569
  // dummy entry, to avoid empty array
1570
  { 0, 0 },
1571
#ifndef CAPSTONE_X86_REDUCE
1572
  { X86_ADD_FrST0, X86_REG_ST0, CS_AC_READ },
1573
  { X86_DIVR_FrST0, X86_REG_ST0, CS_AC_READ },
1574
  { X86_DIV_FrST0, X86_REG_ST0, CS_AC_READ },
1575
  { X86_FNSTSW16r, X86_REG_AX, CS_AC_READ },
1576
  { X86_MUL_FrST0, X86_REG_ST0, CS_AC_READ },
1577
  { X86_SKINIT, X86_REG_EAX, CS_AC_READ },
1578
  { X86_SUBR_FrST0, X86_REG_ST0, CS_AC_READ },
1579
  { X86_SUB_FrST0, X86_REG_ST0, CS_AC_READ },
1580
  { X86_VMLOAD32, X86_REG_EAX, CS_AC_READ },
1581
  { X86_VMLOAD64, X86_REG_RAX, CS_AC_READ },
1582
  { X86_VMRUN32, X86_REG_EAX, CS_AC_READ },
1583
  { X86_VMRUN64, X86_REG_RAX, CS_AC_READ },
1584
  { X86_VMSAVE32, X86_REG_EAX, CS_AC_READ },
1585
  { X86_VMSAVE64, X86_REG_RAX, CS_AC_READ },
1586
#endif
1587
};
1588
1589
static const struct insn_reg insn_regs_intel[] = {
1590
  { X86_ADC16i16, X86_REG_AX, CS_AC_WRITE | CS_AC_READ },
1591
  { X86_ADC32i32, X86_REG_EAX, CS_AC_WRITE | CS_AC_READ },
1592
  { X86_ADC64i32, X86_REG_RAX, CS_AC_WRITE | CS_AC_READ },
1593
  { X86_ADC8i8, X86_REG_AL, CS_AC_WRITE | CS_AC_READ },
1594
  { X86_ADD16i16, X86_REG_AX, CS_AC_WRITE | CS_AC_READ },
1595
  { X86_ADD32i32, X86_REG_EAX, CS_AC_WRITE | CS_AC_READ },
1596
  { X86_ADD64i32, X86_REG_RAX, CS_AC_WRITE | CS_AC_READ },
1597
  { X86_ADD8i8, X86_REG_AL, CS_AC_WRITE | CS_AC_READ },
1598
  { X86_AND16i16, X86_REG_AX, CS_AC_WRITE | CS_AC_READ },
1599
  { X86_AND32i32, X86_REG_EAX, CS_AC_WRITE | CS_AC_READ },
1600
  { X86_AND64i32, X86_REG_RAX, CS_AC_WRITE | CS_AC_READ },
1601
  { X86_AND8i8, X86_REG_AL, CS_AC_WRITE | CS_AC_READ },
1602
  { X86_CMP16i16, X86_REG_AX, CS_AC_WRITE | CS_AC_READ },
1603
  { X86_CMP32i32, X86_REG_EAX, CS_AC_WRITE | CS_AC_READ },
1604
  { X86_CMP64i32, X86_REG_RAX, CS_AC_WRITE | CS_AC_READ },
1605
  { X86_CMP8i8, X86_REG_AL, CS_AC_WRITE | CS_AC_READ },
1606
  { X86_IN16ri, X86_REG_AX, CS_AC_WRITE },
1607
  { X86_IN32ri, X86_REG_EAX, CS_AC_WRITE },
1608
  { X86_IN8ri, X86_REG_AL, CS_AC_WRITE },
1609
  { X86_LODSB, X86_REG_AL, CS_AC_WRITE },
1610
  { X86_LODSL, X86_REG_EAX, CS_AC_WRITE },
1611
  { X86_LODSQ, X86_REG_RAX, CS_AC_WRITE },
1612
  { X86_LODSW, X86_REG_AX, CS_AC_WRITE },
1613
  { X86_MOV16ao16, X86_REG_AX,
1614
    CS_AC_WRITE }, // 16-bit A1 1020                  // mov     ax, word ptr [0x2010]
1615
  { X86_MOV16ao32, X86_REG_AX,
1616
    CS_AC_WRITE }, // 32-bit A1 10203040              // mov     ax, word ptr [0x40302010]
1617
  { X86_MOV16ao64, X86_REG_AX,
1618
    CS_AC_WRITE }, // 64-bit 66 A1 1020304050607080   // movabs  ax, word ptr [0x8070605040302010]
1619
  { X86_MOV32ao16, X86_REG_EAX,
1620
    CS_AC_WRITE }, // 32-bit 67 A1 1020               // mov     eax, dword ptr [0x2010]
1621
  { X86_MOV32ao32, X86_REG_EAX,
1622
    CS_AC_WRITE }, // 32-bit A1 10203040              // mov     eax, dword ptr [0x40302010]
1623
  { X86_MOV32ao64, X86_REG_EAX,
1624
    CS_AC_WRITE }, // 64-bit A1 1020304050607080      // movabs  eax, dword ptr [0x8070605040302010]
1625
  { X86_MOV64ao32, X86_REG_RAX,
1626
    CS_AC_WRITE }, // 64-bit 48 8B04 10203040         // mov     rax, qword ptr [0x40302010]
1627
  { X86_MOV64ao64, X86_REG_RAX,
1628
    CS_AC_WRITE }, // 64-bit 48 A1 1020304050607080   // movabs  rax, qword ptr [0x8070605040302010]
1629
  { X86_MOV8ao16, X86_REG_AL,
1630
    CS_AC_WRITE }, // 16-bit A0 1020                  // mov     al, byte ptr [0x2010]
1631
  { X86_MOV8ao32, X86_REG_AL,
1632
    CS_AC_WRITE }, // 32-bit A0 10203040              // mov     al, byte ptr [0x40302010]
1633
  { X86_MOV8ao64, X86_REG_AL,
1634
    CS_AC_WRITE }, // 64-bit 66 A0 1020304050607080   // movabs  al, byte ptr [0x8070605040302010]
1635
  { X86_OR16i16, X86_REG_AX, CS_AC_WRITE | CS_AC_READ },
1636
  { X86_OR32i32, X86_REG_EAX, CS_AC_WRITE | CS_AC_READ },
1637
  { X86_OR64i32, X86_REG_RAX, CS_AC_WRITE | CS_AC_READ },
1638
  { X86_OR8i8, X86_REG_AL, CS_AC_WRITE | CS_AC_READ },
1639
  { X86_OUTSB, X86_REG_DX, CS_AC_WRITE },
1640
  { X86_OUTSL, X86_REG_DX, CS_AC_WRITE },
1641
  { X86_OUTSW, X86_REG_DX, CS_AC_WRITE },
1642
  { X86_POPDS16, X86_REG_DS, CS_AC_WRITE },
1643
  { X86_POPDS32, X86_REG_DS, CS_AC_WRITE },
1644
  { X86_POPES16, X86_REG_ES, CS_AC_WRITE },
1645
  { X86_POPES32, X86_REG_ES, CS_AC_WRITE },
1646
  { X86_POPFS16, X86_REG_FS, CS_AC_WRITE },
1647
  { X86_POPFS32, X86_REG_FS, CS_AC_WRITE },
1648
  { X86_POPFS64, X86_REG_FS, CS_AC_WRITE },
1649
  { X86_POPGS16, X86_REG_GS, CS_AC_WRITE },
1650
  { X86_POPGS32, X86_REG_GS, CS_AC_WRITE },
1651
  { X86_POPGS64, X86_REG_GS, CS_AC_WRITE },
1652
  { X86_POPSS16, X86_REG_SS, CS_AC_WRITE },
1653
  { X86_POPSS32, X86_REG_SS, CS_AC_WRITE },
1654
  { X86_PUSHCS16, X86_REG_CS, CS_AC_READ },
1655
  { X86_PUSHCS32, X86_REG_CS, CS_AC_READ },
1656
  { X86_PUSHDS16, X86_REG_DS, CS_AC_READ },
1657
  { X86_PUSHDS32, X86_REG_DS, CS_AC_READ },
1658
  { X86_PUSHES16, X86_REG_ES, CS_AC_READ },
1659
  { X86_PUSHES32, X86_REG_ES, CS_AC_READ },
1660
  { X86_PUSHFS16, X86_REG_FS, CS_AC_READ },
1661
  { X86_PUSHFS32, X86_REG_FS, CS_AC_READ },
1662
  { X86_PUSHFS64, X86_REG_FS, CS_AC_READ },
1663
  { X86_PUSHGS16, X86_REG_GS, CS_AC_READ },
1664
  { X86_PUSHGS32, X86_REG_GS, CS_AC_READ },
1665
  { X86_PUSHGS64, X86_REG_GS, CS_AC_READ },
1666
  { X86_PUSHSS16, X86_REG_SS, CS_AC_READ },
1667
  { X86_PUSHSS32, X86_REG_SS, CS_AC_READ },
1668
  { X86_SBB16i16, X86_REG_AX, CS_AC_WRITE | CS_AC_READ },
1669
  { X86_SBB32i32, X86_REG_EAX, CS_AC_WRITE | CS_AC_READ },
1670
  { X86_SBB64i32, X86_REG_RAX, CS_AC_WRITE | CS_AC_READ },
1671
  { X86_SBB8i8, X86_REG_AL, CS_AC_WRITE | CS_AC_READ },
1672
  { X86_SCASB, X86_REG_AL, CS_AC_WRITE | CS_AC_READ },
1673
  { X86_SCASL, X86_REG_EAX, CS_AC_WRITE | CS_AC_READ },
1674
  { X86_SCASQ, X86_REG_RAX, CS_AC_WRITE | CS_AC_READ },
1675
  { X86_SCASW, X86_REG_AX, CS_AC_WRITE | CS_AC_READ },
1676
  { X86_SUB16i16, X86_REG_AX, CS_AC_WRITE | CS_AC_READ },
1677
  { X86_SUB32i32, X86_REG_EAX, CS_AC_WRITE | CS_AC_READ },
1678
  { X86_SUB64i32, X86_REG_RAX, CS_AC_WRITE | CS_AC_READ },
1679
  { X86_SUB8i8, X86_REG_AL, CS_AC_WRITE | CS_AC_READ },
1680
  { X86_TEST16i16, X86_REG_AX, CS_AC_WRITE | CS_AC_READ },
1681
  { X86_TEST32i32, X86_REG_EAX, CS_AC_WRITE | CS_AC_READ },
1682
  { X86_TEST64i32, X86_REG_RAX, CS_AC_WRITE | CS_AC_READ },
1683
  { X86_TEST8i8, X86_REG_AL, CS_AC_WRITE | CS_AC_READ },
1684
  { X86_XOR16i16, X86_REG_AX, CS_AC_WRITE | CS_AC_READ },
1685
  { X86_XOR32i32, X86_REG_EAX, CS_AC_WRITE | CS_AC_READ },
1686
  { X86_XOR64i32, X86_REG_RAX, CS_AC_WRITE | CS_AC_READ },
1687
  { X86_XOR8i8, X86_REG_AL, CS_AC_WRITE | CS_AC_READ },
1688
};
1689
1690
static const struct insn_reg insn_regs_intel_extra[] = {
1691
  // dummy entry, to avoid empty array
1692
  { 0, 0, 0 },
1693
#ifndef CAPSTONE_X86_REDUCE
1694
  { X86_CMOVBE_F, X86_REG_ST0, CS_AC_WRITE },
1695
  { X86_CMOVB_F, X86_REG_ST0, CS_AC_WRITE },
1696
  { X86_CMOVE_F, X86_REG_ST0, CS_AC_WRITE },
1697
  { X86_CMOVNBE_F, X86_REG_ST0, CS_AC_WRITE },
1698
  { X86_CMOVNB_F, X86_REG_ST0, CS_AC_WRITE },
1699
  { X86_CMOVNE_F, X86_REG_ST0, CS_AC_WRITE },
1700
  { X86_CMOVNP_F, X86_REG_ST0, CS_AC_WRITE },
1701
  { X86_CMOVP_F, X86_REG_ST0, CS_AC_WRITE },
1702
  // { X86_COMP_FST0r, X86_REG_ST0, CS_AC_WRITE },
1703
  // { X86_COM_FST0r, X86_REG_ST0, CS_AC_WRITE },
1704
  { X86_FNSTSW16r, X86_REG_AX, CS_AC_WRITE },
1705
  { X86_SKINIT, X86_REG_EAX, CS_AC_WRITE },
1706
  { X86_VMLOAD32, X86_REG_EAX, CS_AC_WRITE },
1707
  { X86_VMLOAD64, X86_REG_RAX, CS_AC_WRITE },
1708
  { X86_VMRUN32, X86_REG_EAX, CS_AC_WRITE },
1709
  { X86_VMRUN64, X86_REG_RAX, CS_AC_WRITE },
1710
  { X86_VMSAVE32, X86_REG_EAX, CS_AC_READ },
1711
  { X86_VMSAVE64, X86_REG_RAX, CS_AC_READ },
1712
  { X86_XCH_F, X86_REG_ST0, CS_AC_WRITE },
1713
#endif
1714
};
1715
1716
static const struct insn_reg2 insn_regs_intel2[] = {
1717
  { X86_IN16rr, X86_REG_AX, X86_REG_DX, CS_AC_WRITE, CS_AC_READ },
1718
  { X86_IN32rr, X86_REG_EAX, X86_REG_DX, CS_AC_WRITE, CS_AC_READ },
1719
  { X86_IN8rr, X86_REG_AL, X86_REG_DX, CS_AC_WRITE, CS_AC_READ },
1720
  { X86_INVLPGA32, X86_REG_EAX, X86_REG_ECX, CS_AC_READ, CS_AC_READ },
1721
  { X86_INVLPGA64, X86_REG_RAX, X86_REG_ECX, CS_AC_READ, CS_AC_READ },
1722
  { X86_OUT16rr, X86_REG_DX, X86_REG_AX, CS_AC_READ, CS_AC_READ },
1723
  { X86_OUT32rr, X86_REG_DX, X86_REG_EAX, CS_AC_READ, CS_AC_READ },
1724
  { X86_OUT8rr, X86_REG_DX, X86_REG_AL, CS_AC_READ, CS_AC_READ },
1725
};
1726
1727
static int binary_search1(const struct insn_reg *insns, unsigned int max,
1728
        unsigned int id)
1729
0
{
1730
0
  unsigned int first, last, mid;
1731
1732
0
  first = 0;
1733
0
  last = max - 1;
1734
1735
0
  if (insns[0].insn > id || insns[last].insn < id) {
1736
    // not found
1737
0
    return -1;
1738
0
  }
1739
1740
0
  while (first <= last) {
1741
0
    mid = (first + last) / 2;
1742
0
    if (insns[mid].insn < id) {
1743
0
      first = mid + 1;
1744
0
    } else if (insns[mid].insn == id) {
1745
0
      return mid;
1746
0
    } else {
1747
0
      if (mid == 0)
1748
0
        break;
1749
0
      last = mid - 1;
1750
0
    }
1751
0
  }
1752
1753
  // not found
1754
0
  return -1;
1755
0
}
1756
1757
static int binary_search2(const struct insn_reg2 *insns, unsigned int max,
1758
        unsigned int id)
1759
1.01M
{
1760
1.01M
  unsigned int first, last, mid;
1761
1762
1.01M
  first = 0;
1763
1.01M
  last = max - 1;
1764
1765
1.01M
  if (insns[0].insn > id || insns[last].insn < id) {
1766
    // not found
1767
745k
    return -1;
1768
745k
  }
1769
1770
1.05M
  while (first <= last) {
1771
809k
    mid = (first + last) / 2;
1772
809k
    if (insns[mid].insn < id) {
1773
521k
      first = mid + 1;
1774
521k
    } else if (insns[mid].insn == id) {
1775
21.4k
      return mid;
1776
266k
    } else {
1777
266k
      if (mid == 0)
1778
0
        break;
1779
266k
      last = mid - 1;
1780
266k
    }
1781
809k
  }
1782
1783
  // not found
1784
249k
  return -1;
1785
271k
}
1786
1787
void X86_build_lookup_tables(cs_struct *h)
1788
9.31k
{
1789
9.31k
  unsigned int i;
1790
9.31k
  unsigned int max = ARR_SIZE(insns);
1791
9.31k
  unsigned int id_max;
1792
1793
9.31k
  CS_ASSERT_RET(h && !h->x86_insn_lut);
1794
1795
9.31k
  id_max = insns[max - 1].id;
1796
9.31k
  h->x86_insn_lut_max = id_max;
1797
9.31k
  h->x86_insn_lut =
1798
9.31k
    (uint16_t *)cs_mem_malloc((id_max + 1) * sizeof(uint16_t));
1799
9.31k
  CS_ASSERT_RET(h->x86_insn_lut);
1800
1801
9.31k
  memset(h->x86_insn_lut, 0xff, (id_max + 1) * sizeof(uint16_t));
1802
141M
  for (i = 0; i < max; i++)
1803
141M
    h->x86_insn_lut[insns[i].id] = (uint16_t)i;
1804
1805
9.31k
  h->x86_insn_reg_lut =
1806
9.31k
    (uint32_t *)cs_mem_calloc(id_max + 1, sizeof(uint32_t));
1807
9.31k
  if (!h->x86_insn_reg_lut)
1808
0
    return;
1809
1810
819k
  for (i = 0; i < ARR_SIZE(insn_regs_intel); i++) {
1811
810k
    unsigned int insn_id = insn_regs_intel[i].insn;
1812
810k
    if (insn_id <= id_max)
1813
810k
      h->x86_insn_reg_lut[insn_id] =
1814
810k
        (h->x86_insn_reg_lut[insn_id] & 0xffff0000) |
1815
810k
        pack_insn_reg(insn_regs_intel[i].reg,
1816
810k
                insn_regs_intel[i].access);
1817
810k
  }
1818
1819
176k
  for (i = 0; i < ARR_SIZE(insn_regs_intel_extra); i++) {
1820
167k
    unsigned int insn_id = insn_regs_intel_extra[i].insn;
1821
167k
    if (insn_id && insn_id <= id_max &&
1822
158k
        !(h->x86_insn_reg_lut[insn_id] & 0xffff))
1823
158k
      h->x86_insn_reg_lut[insn_id] =
1824
158k
        (h->x86_insn_reg_lut[insn_id] & 0xffff0000) |
1825
158k
        pack_insn_reg(insn_regs_intel_extra[i].reg,
1826
158k
                insn_regs_intel_extra[i].access);
1827
167k
  }
1828
1829
1.14M
  for (i = 0; i < ARR_SIZE(insn_regs_att); i++) {
1830
1.13M
    unsigned int insn_id = insn_regs_att[i].insn;
1831
1.13M
    if (insn_id <= id_max)
1832
1.13M
      h->x86_insn_reg_lut[insn_id] =
1833
1.13M
        (h->x86_insn_reg_lut[insn_id] & 0x0000ffff) |
1834
1.13M
        ((uint32_t)pack_insn_reg(insn_regs_att[i].reg,
1835
1.13M
               insn_regs_att[i].access)
1836
1.13M
         << 16);
1837
1.13M
  }
1838
1839
149k
  for (i = 0; i < ARR_SIZE(insn_regs_att_extra); i++) {
1840
139k
    unsigned int insn_id = insn_regs_att_extra[i].insn;
1841
139k
    if (insn_id && insn_id <= id_max &&
1842
130k
        !(h->x86_insn_reg_lut[insn_id] >> 16))
1843
130k
      h->x86_insn_reg_lut[insn_id] =
1844
130k
        (h->x86_insn_reg_lut[insn_id] & 0x0000ffff) |
1845
130k
        ((uint32_t)pack_insn_reg(
1846
130k
           insn_regs_att_extra[i].reg,
1847
130k
           insn_regs_att_extra[i].access)
1848
130k
         << 16);
1849
139k
  }
1850
9.31k
}
1851
1852
// return register of given instruction id
1853
// return 0 if not found
1854
// this is to handle instructions embedding accumulate registers into AsmStrs[]
1855
x86_reg X86_insn_reg_intel(unsigned int id, enum cs_ac_type *access)
1856
0
{
1857
0
  int i;
1858
1859
0
  i = binary_search1(insn_regs_intel, ARR_SIZE(insn_regs_intel), id);
1860
0
  if (i != -1) {
1861
0
    if (access) {
1862
0
      *access = insn_regs_intel[i].access;
1863
0
    }
1864
0
    return insn_regs_intel[i].reg;
1865
0
  }
1866
1867
0
  i = binary_search1(insn_regs_intel_extra,
1868
0
         ARR_SIZE(insn_regs_intel_extra), id);
1869
0
  if (i != -1) {
1870
0
    if (access) {
1871
0
      *access = insn_regs_intel_extra[i].access;
1872
0
    }
1873
0
    return insn_regs_intel_extra[i].reg;
1874
0
  }
1875
1876
  // not found
1877
0
  return 0;
1878
0
}
1879
1880
x86_reg X86_insn_reg_intel_h(cs_struct *h, unsigned int id,
1881
           enum cs_ac_type *access)
1882
546k
{
1883
546k
  if (h && h->x86_insn_reg_lut && id <= h->x86_insn_lut_max) {
1884
546k
    uint16_t value = (uint16_t)(h->x86_insn_reg_lut[id] & 0xffff);
1885
546k
    if (value)
1886
60.3k
      return unpack_insn_reg(value, access);
1887
486k
    return 0;
1888
546k
  }
1889
1890
0
  return X86_insn_reg_intel(id, access);
1891
546k
}
1892
1893
bool X86_insn_reg_intel2(unsigned int id, x86_reg *reg1,
1894
       enum cs_ac_type *access1, x86_reg *reg2,
1895
       enum cs_ac_type *access2)
1896
486k
{
1897
486k
  int i = binary_search2(insn_regs_intel2, ARR_SIZE(insn_regs_intel2),
1898
486k
             id);
1899
486k
  if (i != -1) {
1900
9.00k
    *reg1 = insn_regs_intel2[i].reg1;
1901
9.00k
    *reg2 = insn_regs_intel2[i].reg2;
1902
9.00k
    if (access1)
1903
9.00k
      *access1 = insn_regs_intel2[i].access1;
1904
9.00k
    if (access2)
1905
9.00k
      *access2 = insn_regs_intel2[i].access2;
1906
9.00k
    return true;
1907
9.00k
  }
1908
1909
  // not found
1910
477k
  return false;
1911
486k
}
1912
1913
x86_reg X86_insn_reg_att(unsigned int id, enum cs_ac_type *access)
1914
0
{
1915
0
  int i;
1916
1917
0
  i = binary_search1(insn_regs_att, ARR_SIZE(insn_regs_att), id);
1918
0
  if (i != -1) {
1919
0
    if (access)
1920
0
      *access = insn_regs_att[i].access;
1921
0
    return insn_regs_att[i].reg;
1922
0
  }
1923
1924
0
  i = binary_search1(insn_regs_att_extra, ARR_SIZE(insn_regs_att_extra),
1925
0
         id);
1926
0
  if (i != -1) {
1927
0
    if (access)
1928
0
      *access = insn_regs_att_extra[i].access;
1929
0
    return insn_regs_att_extra[i].reg;
1930
0
  }
1931
1932
  // not found
1933
0
  return 0;
1934
0
}
1935
1936
x86_reg X86_insn_reg_att_h(cs_struct *h, unsigned int id,
1937
         enum cs_ac_type *access)
1938
560k
{
1939
560k
  if (h && h->x86_insn_reg_lut && id <= h->x86_insn_lut_max) {
1940
560k
    uint16_t value = (uint16_t)(h->x86_insn_reg_lut[id] >> 16);
1941
560k
    if (value)
1942
30.4k
      return unpack_insn_reg(value, access);
1943
530k
    return 0;
1944
560k
  }
1945
1946
0
  return X86_insn_reg_att(id, access);
1947
560k
}
1948
1949
// ATT just reuses Intel data, but with the order of registers reversed
1950
bool X86_insn_reg_att2(unsigned int id, x86_reg *reg1, enum cs_ac_type *access1,
1951
           x86_reg *reg2, enum cs_ac_type *access2)
1952
530k
{
1953
530k
  int i = binary_search2(insn_regs_intel2, ARR_SIZE(insn_regs_intel2),
1954
530k
             id);
1955
530k
  if (i != -1) {
1956
12.4k
    *reg1 = insn_regs_intel2[i].reg2;
1957
12.4k
    *reg2 = insn_regs_intel2[i].reg1;
1958
12.4k
    if (access1)
1959
12.4k
      *access1 = insn_regs_intel2[i].access2;
1960
12.4k
    if (access2)
1961
12.4k
      *access2 = insn_regs_intel2[i].access1;
1962
12.4k
    return true;
1963
12.4k
  }
1964
1965
  // not found
1966
518k
  return false;
1967
530k
}
1968
1969
// given MCInst's id, find out if this insn is valid for REPNE prefix
1970
static bool valid_repne(cs_struct *h, unsigned int opcode)
1971
32.0k
{
1972
32.0k
  unsigned int id;
1973
32.0k
  unsigned int i = find_insn_h(h, opcode);
1974
32.0k
  if (i != -1) {
1975
32.0k
    id = insns[i].mapid;
1976
32.0k
    switch (id) {
1977
21.1k
    default:
1978
21.1k
      return false;
1979
1980
208
    case X86_INS_CMPSB:
1981
208
    case X86_INS_CMPSS:
1982
569
    case X86_INS_CMPSW:
1983
1.00k
    case X86_INS_CMPSQ:
1984
1985
1.24k
    case X86_INS_SCASB:
1986
1.50k
    case X86_INS_SCASW:
1987
1.71k
    case X86_INS_SCASQ:
1988
1989
1.78k
    case X86_INS_MOVSB:
1990
1.78k
    case X86_INS_MOVSS:
1991
2.15k
    case X86_INS_MOVSW:
1992
2.80k
    case X86_INS_MOVSQ:
1993
1994
3.29k
    case X86_INS_LODSB:
1995
3.56k
    case X86_INS_LODSW:
1996
3.93k
    case X86_INS_LODSD:
1997
4.03k
    case X86_INS_LODSQ:
1998
1999
4.61k
    case X86_INS_STOSB:
2000
5.64k
    case X86_INS_STOSW:
2001
5.96k
    case X86_INS_STOSD:
2002
6.19k
    case X86_INS_STOSQ:
2003
2004
6.33k
    case X86_INS_INSB:
2005
6.56k
    case X86_INS_INSW:
2006
6.78k
    case X86_INS_INSD:
2007
2008
6.87k
    case X86_INS_OUTSB:
2009
7.12k
    case X86_INS_OUTSW:
2010
7.40k
    case X86_INS_OUTSD:
2011
2012
7.40k
      return true;
2013
2014
2.00k
    case X86_INS_MOVSD:
2015
2.00k
      if (opcode == X86_MOVSW) // REP MOVSB
2016
0
        return true;
2017
2.00k
      else if (opcode == X86_MOVSL) // REP MOVSD
2018
323
        return true;
2019
1.68k
      return false;
2020
2021
880
    case X86_INS_CMPSD:
2022
880
      if (opcode == X86_CMPSL) // REP CMPSD
2023
386
        return true;
2024
494
      return false;
2025
2026
517
    case X86_INS_SCASD:
2027
517
      if (opcode == X86_SCASL) // REP SCASD
2028
517
        return true;
2029
0
      return false;
2030
32.0k
    }
2031
32.0k
  }
2032
2033
  // not found
2034
0
  return false;
2035
32.0k
}
2036
2037
// given MCInst's id, find out if this insn is valid for BND prefix
2038
// BND prefix is valid for CALL/JMP/RET
2039
#ifndef CAPSTONE_DIET
2040
static bool valid_bnd(cs_struct *h, unsigned int opcode)
2041
23.3k
{
2042
23.3k
  unsigned int id;
2043
23.3k
  unsigned int i = find_insn_h(h, opcode);
2044
23.3k
  if (i != -1) {
2045
23.3k
    id = insns[i].mapid;
2046
23.3k
    switch (id) {
2047
17.4k
    default:
2048
17.4k
      return false;
2049
2050
110
    case X86_INS_JAE:
2051
247
    case X86_INS_JA:
2052
435
    case X86_INS_JBE:
2053
908
    case X86_INS_JB:
2054
1.16k
    case X86_INS_JCXZ:
2055
1.47k
    case X86_INS_JECXZ:
2056
1.64k
    case X86_INS_JE:
2057
1.94k
    case X86_INS_JGE:
2058
2.14k
    case X86_INS_JG:
2059
2.40k
    case X86_INS_JLE:
2060
2.66k
    case X86_INS_JL:
2061
2.96k
    case X86_INS_JMP:
2062
3.09k
    case X86_INS_JNE:
2063
3.19k
    case X86_INS_JNO:
2064
3.42k
    case X86_INS_JNP:
2065
3.51k
    case X86_INS_JNS:
2066
3.61k
    case X86_INS_JO:
2067
3.99k
    case X86_INS_JP:
2068
4.26k
    case X86_INS_JRCXZ:
2069
4.60k
    case X86_INS_JS:
2070
2071
4.77k
    case X86_INS_CALL:
2072
5.34k
    case X86_INS_RET:
2073
5.77k
    case X86_INS_RETF:
2074
5.88k
    case X86_INS_RETFQ:
2075
5.88k
      return true;
2076
23.3k
    }
2077
23.3k
  }
2078
2079
  // not found
2080
0
  return false;
2081
23.3k
}
2082
#endif
2083
2084
// given MCInst's id, find out if this insn is valid for REP prefix
2085
static bool valid_rep(cs_struct *h, unsigned int opcode)
2086
23.0k
{
2087
23.0k
  unsigned int id;
2088
23.0k
  unsigned int i = find_insn_h(h, opcode);
2089
23.0k
  if (i != -1) {
2090
23.0k
    id = insns[i].mapid;
2091
23.0k
    switch (id) {
2092
17.8k
    default:
2093
17.8k
      return false;
2094
2095
600
    case X86_INS_MOVSB:
2096
910
    case X86_INS_MOVSW:
2097
1.78k
    case X86_INS_MOVSQ:
2098
2099
2.02k
    case X86_INS_LODSB:
2100
2.11k
    case X86_INS_LODSW:
2101
2.29k
    case X86_INS_LODSQ:
2102
2103
2.39k
    case X86_INS_STOSB:
2104
2.49k
    case X86_INS_STOSW:
2105
2.62k
    case X86_INS_STOSQ:
2106
2107
2.98k
    case X86_INS_INSB:
2108
3.34k
    case X86_INS_INSW:
2109
3.57k
    case X86_INS_INSD:
2110
2111
3.67k
    case X86_INS_OUTSB:
2112
4.22k
    case X86_INS_OUTSW:
2113
4.36k
    case X86_INS_OUTSD:
2114
4.36k
      return true;
2115
2116
    // following are some confused instructions, which have the same
2117
    // mnemonics in 128bit media instructions. Intel is horribly crazy!
2118
327
    case X86_INS_MOVSD:
2119
327
      if (opcode == X86_MOVSL) // REP MOVSD
2120
327
        return true;
2121
0
      return false;
2122
2123
280
    case X86_INS_LODSD:
2124
280
      if (opcode == X86_LODSL) // REP LODSD
2125
280
        return true;
2126
0
      return false;
2127
2128
290
    case X86_INS_STOSD:
2129
290
      if (opcode == X86_STOSL) // REP STOSD
2130
290
        return true;
2131
0
      return false;
2132
23.0k
    }
2133
23.0k
  }
2134
2135
  // not found
2136
0
  return false;
2137
23.0k
}
2138
2139
#ifndef CAPSTONE_DIET
2140
// given MCInst's id, find if this is a "repz ret" instruction
2141
// gcc generates "repz ret" (f3 c3) instructions in some cases as an
2142
// optimization for AMD platforms, see:
2143
// https://gcc.gnu.org/legacy-ml/gcc-patches/2003-05/msg02117.html
2144
static bool valid_ret_repz(cs_struct *h, unsigned int opcode)
2145
14.6k
{
2146
14.6k
  unsigned int id;
2147
14.6k
  unsigned int i = find_insn_h(h, opcode);
2148
2149
14.6k
  if (i != -1) {
2150
14.6k
    id = insns[i].mapid;
2151
14.6k
    return id == X86_INS_RET;
2152
14.6k
  }
2153
2154
  // not found
2155
0
  return false;
2156
14.6k
}
2157
#endif
2158
2159
// given MCInst's id, find out if this insn is valid for REPE prefix
2160
static bool valid_repe(cs_struct *h, unsigned int opcode)
2161
17.8k
{
2162
17.8k
  unsigned int id;
2163
17.8k
  unsigned int i = find_insn_h(h, opcode);
2164
17.8k
  if (i != -1) {
2165
17.8k
    id = insns[i].mapid;
2166
17.8k
    switch (id) {
2167
14.6k
    default:
2168
14.6k
      return false;
2169
2170
280
    case X86_INS_CMPSB:
2171
838
    case X86_INS_CMPSW:
2172
1.21k
    case X86_INS_CMPSQ:
2173
2174
1.33k
    case X86_INS_SCASB:
2175
1.66k
    case X86_INS_SCASW:
2176
2.27k
    case X86_INS_SCASQ:
2177
2.27k
      return true;
2178
2179
    // following are some confused instructions, which have the same
2180
    // mnemonics in 128bit media instructions. Intel is horribly crazy!
2181
640
    case X86_INS_CMPSD:
2182
640
      if (opcode == X86_CMPSL) // REP CMPSD
2183
640
        return true;
2184
0
      return false;
2185
2186
272
    case X86_INS_SCASD:
2187
272
      if (opcode == X86_SCASL) // REP SCASD
2188
272
        return true;
2189
0
      return false;
2190
17.8k
    }
2191
17.8k
  }
2192
2193
  // not found
2194
0
  return false;
2195
17.8k
}
2196
2197
// Given MCInst's id, find out if this insn is valid for NOTRACK prefix.
2198
// NOTRACK prefix is valid for CALL/JMP.
2199
static bool valid_notrack(cs_struct *h, unsigned int opcode)
2200
2.16k
{
2201
2.16k
  unsigned int id;
2202
2.16k
  unsigned int i = find_insn_h(h, opcode);
2203
2.16k
  if (i != -1) {
2204
2.16k
    id = insns[i].mapid;
2205
2.16k
    switch (id) {
2206
1.69k
    default:
2207
1.69k
      return false;
2208
284
    case X86_INS_CALL:
2209
468
    case X86_INS_JMP:
2210
468
      return true;
2211
2.16k
    }
2212
2.16k
  }
2213
2214
  // not found
2215
0
  return false;
2216
2.16k
}
2217
2218
#ifndef CAPSTONE_DIET
2219
// add *CX register to regs_read[] & regs_write[]
2220
static void add_cx(MCInst *MI)
2221
17.0k
{
2222
17.0k
  if (MI->csh->detail_opt) {
2223
17.0k
    x86_reg cx;
2224
2225
17.0k
    if (MI->csh->mode & CS_MODE_16)
2226
5.65k
      cx = X86_REG_CX;
2227
11.4k
    else if (MI->csh->mode & CS_MODE_32)
2228
4.02k
      cx = X86_REG_ECX;
2229
7.39k
    else // 64-bit
2230
7.39k
      cx = X86_REG_RCX;
2231
2232
17.0k
    MI->flat_insn->detail
2233
17.0k
      ->regs_read[MI->flat_insn->detail->regs_read_count] =
2234
17.0k
      cx;
2235
17.0k
    MI->flat_insn->detail->regs_read_count++;
2236
2237
17.0k
    MI->flat_insn->detail
2238
17.0k
      ->regs_write[MI->flat_insn->detail->regs_write_count] =
2239
17.0k
      cx;
2240
17.0k
    MI->flat_insn->detail->regs_write_count++;
2241
17.0k
  }
2242
17.0k
}
2243
#endif
2244
2245
// return true if we patch the mnemonic
2246
bool X86_lockrep(MCInst *MI, SStream *O)
2247
1.10M
{
2248
1.10M
  unsigned int opcode;
2249
1.10M
  bool res = false;
2250
2251
1.10M
#ifndef CAPSTONE_DIET
2252
1.10M
  switch (MI->xAcquireRelease) {
2253
842
  case 0xF2:
2254
842
    SStream_concat(O, "xacquire|");
2255
842
    break;
2256
1.45k
  case 0xF3:
2257
1.45k
    SStream_concat(O, "xrelease|");
2258
1.45k
    break;
2259
1.10M
  default:
2260
1.10M
    break;
2261
1.10M
  }
2262
1.10M
#endif
2263
2264
1.10M
  if (MI->xAcquireRelease) {
2265
2.29k
    if (MI->x86Lock) {
2266
      // Force LOCK prefix as group 0 prefix for XACQUIRE and XRELEASE if a LOCK is also present.
2267
      // This is an arbitrary choice, since there are effectively two group 0 prefixes present.
2268
      // The Intel SDM is not clear on how we should interpret group 0 in this case. It states:
2269
      // "it is only useful to include up to one prefix code from each of the four groups"
2270
      // ...and then defines instructions where both an F2/F3 and F0 are useful anyway.
2271
1.20k
      MI->x86_prefix[0] = 0xF0;
2272
1.20k
    }
2273
1.10M
  } else {
2274
1.10M
    switch (MI->x86_prefix[0]) {
2275
32.0k
    case 0xF2:
2276
32.0k
      opcode = MCInst_getOpcode(MI);
2277
32.0k
#ifndef CAPSTONE_DIET
2278
32.0k
      if (valid_repne(MI->csh, opcode)) {
2279
8.63k
        SStream_concat(O, "repne|");
2280
8.63k
        add_cx(MI);
2281
23.3k
      } else if (valid_bnd(MI->csh, opcode)) {
2282
5.88k
        SStream_concat(O, "bnd|");
2283
17.4k
      } else {
2284
        // invalid prefix
2285
17.4k
        MI->x86_prefix[0] = 0;
2286
17.4k
      }
2287
#else
2288
      if (!valid_repne(MI->csh, opcode)) {
2289
        MI->x86_prefix[0] = 0;
2290
      }
2291
#endif
2292
32.0k
      break;
2293
23.0k
    case 0xF3:
2294
23.0k
      opcode = MCInst_getOpcode(MI);
2295
23.0k
#ifndef CAPSTONE_DIET
2296
23.0k
      if (valid_rep(MI->csh, opcode)) {
2297
5.25k
        SStream_concat(O, "rep|");
2298
5.25k
        add_cx(MI);
2299
17.8k
      } else if (valid_repe(MI->csh, opcode)) {
2300
3.18k
        SStream_concat(O, "repe|");
2301
3.18k
        add_cx(MI);
2302
14.6k
      } else if (valid_ret_repz(MI->csh, opcode)) {
2303
322
        SStream_concat(O, "repz|");
2304
14.3k
      } else {
2305
        // invalid prefix
2306
14.3k
        MI->x86_prefix[0] = 0;
2307
14.3k
      }
2308
#else
2309
      if (!valid_rep(MI->csh, opcode) &&
2310
          !valid_repe(MI->csh, opcode)) {
2311
        MI->x86_prefix[0] = 0;
2312
      }
2313
#endif
2314
23.0k
      break;
2315
1.05M
    default:
2316
1.05M
      break;
2317
1.10M
    }
2318
1.10M
  }
2319
2320
  // LOCK and F2/F3 may both be present (for XACQUIRE/XRELEASE).
2321
  // There are also XRELEASEs that can be LOCKless.
2322
1.10M
  if (MI->x86Lock) {
2323
37.9k
    SStream_concat(O, "lock|");
2324
37.9k
  }
2325
2326
1.10M
  switch (MI->x86_prefix[1]) {
2327
1.10M
  default:
2328
1.10M
    break;
2329
1.10M
  case 0x3e:
2330
2.16k
    opcode = MCInst_getOpcode(MI);
2331
2.16k
    if (valid_notrack(MI->csh, opcode)) {
2332
468
      SStream_concat(O, "notrack|");
2333
468
    }
2334
2.16k
    break;
2335
1.10M
  }
2336
2337
  // copy normalized prefix[] back to x86.prefix[]
2338
1.10M
  if (MI->csh->detail_opt)
2339
1.10M
    memcpy(MI->flat_insn->detail->x86.prefix, MI->x86_prefix,
2340
1.10M
           ARR_SIZE(MI->x86_prefix));
2341
2342
1.10M
  return res;
2343
1.10M
}
2344
2345
void op_addReg(MCInst *MI, int reg)
2346
80.3k
{
2347
80.3k
  if (MI->csh->detail_opt) {
2348
80.3k
    MI->flat_insn->detail->x86
2349
80.3k
      .operands[MI->flat_insn->detail->x86.op_count]
2350
80.3k
      .type = X86_OP_REG;
2351
80.3k
    MI->flat_insn->detail->x86
2352
80.3k
      .operands[MI->flat_insn->detail->x86.op_count]
2353
80.3k
      .reg = reg;
2354
80.3k
    MI->flat_insn->detail->x86
2355
80.3k
      .operands[MI->flat_insn->detail->x86.op_count]
2356
80.3k
      .size = MI->csh->regsize_map[reg];
2357
80.3k
    MI->flat_insn->detail->x86.op_count++;
2358
80.3k
  }
2359
2360
80.3k
  if (MI->op1_size == 0)
2361
54.2k
    MI->op1_size = MI->csh->regsize_map[reg];
2362
80.3k
}
2363
2364
void op_addImm(MCInst *MI, int v)
2365
6.25k
{
2366
6.25k
  if (MI->csh->detail_opt) {
2367
6.25k
    MI->flat_insn->detail->x86
2368
6.25k
      .operands[MI->flat_insn->detail->x86.op_count]
2369
6.25k
      .type = X86_OP_IMM;
2370
6.25k
    MI->flat_insn->detail->x86
2371
6.25k
      .operands[MI->flat_insn->detail->x86.op_count]
2372
6.25k
      .imm = v;
2373
    // if op_count > 0, then this operand's size is taken from the destination op
2374
6.25k
    if (MI->csh->syntax != CS_OPT_SYNTAX_ATT) {
2375
6.25k
      if (MI->flat_insn->detail->x86.op_count > 0)
2376
6.25k
        MI->flat_insn->detail->x86
2377
6.25k
          .operands[MI->flat_insn->detail->x86
2378
6.25k
                .op_count]
2379
6.25k
          .size =
2380
6.25k
          MI->flat_insn->detail->x86.operands[0]
2381
6.25k
            .size;
2382
0
      else
2383
0
        MI->flat_insn->detail->x86
2384
0
          .operands[MI->flat_insn->detail->x86
2385
0
                .op_count]
2386
0
          .size = MI->imm_size;
2387
6.25k
    } else
2388
0
      MI->has_imm = true;
2389
6.25k
    MI->flat_insn->detail->x86.op_count++;
2390
6.25k
  }
2391
2392
6.25k
  if (MI->op1_size == 0)
2393
0
    MI->op1_size = MI->imm_size;
2394
6.25k
}
2395
2396
void op_addXopCC(MCInst *MI, int v)
2397
2.52k
{
2398
2.52k
  if (MI->csh->detail_opt) {
2399
2.52k
    MI->flat_insn->detail->x86.xop_cc = v;
2400
2.52k
  }
2401
2.52k
}
2402
2403
void op_addSseCC(MCInst *MI, int v)
2404
0
{
2405
0
  if (MI->csh->detail_opt) {
2406
0
    MI->flat_insn->detail->x86.sse_cc = v;
2407
0
  }
2408
0
}
2409
2410
void op_addAvxCC(MCInst *MI, int v)
2411
10.3k
{
2412
10.3k
  if (MI->csh->detail_opt) {
2413
10.3k
    MI->flat_insn->detail->x86.avx_cc = v;
2414
10.3k
  }
2415
10.3k
}
2416
2417
void op_addAvxRoundingMode(MCInst *MI, int v)
2418
3.08k
{
2419
3.08k
  if (MI->csh->detail_opt) {
2420
3.08k
    MI->flat_insn->detail->x86.avx_rm = v;
2421
3.08k
  }
2422
3.08k
}
2423
2424
// below functions supply details to X86GenAsmWriter*.inc
2425
void op_addAvxZeroOpmask(MCInst *MI)
2426
5.87k
{
2427
5.87k
  if (MI->csh->detail_opt) {
2428
    // link with the previous operand
2429
5.87k
    MI->flat_insn->detail->x86
2430
5.87k
      .operands[MI->flat_insn->detail->x86.op_count - 1]
2431
5.87k
      .avx_zero_opmask = true;
2432
5.87k
  }
2433
5.87k
}
2434
2435
void op_addAvxSae(MCInst *MI)
2436
6.68k
{
2437
6.68k
  if (MI->csh->detail_opt) {
2438
6.68k
    MI->flat_insn->detail->x86.avx_sae = true;
2439
6.68k
  }
2440
6.68k
}
2441
2442
void op_addAvxBroadcast(MCInst *MI, x86_avx_bcast v)
2443
7.60k
{
2444
7.60k
  if (MI->csh->detail_opt) {
2445
    // link with the previous operand
2446
7.60k
    MI->flat_insn->detail->x86
2447
7.60k
      .operands[MI->flat_insn->detail->x86.op_count - 1]
2448
7.60k
      .avx_bcast = v;
2449
7.60k
  }
2450
7.60k
}
2451
2452
#ifndef CAPSTONE_DIET
2453
// map instruction to its characteristics
2454
typedef struct insn_op {
2455
  uint64_t flags; // how this instruction update EFLAGS(arithmetic instructions) of FPU FLAGS(for FPU instructions)
2456
  uint8_t access[6];
2457
} insn_op;
2458
2459
static const insn_op insn_ops[] = {
2460
#ifdef CAPSTONE_X86_REDUCE
2461
#include "X86MappingInsnOp_reduce.inc"
2462
#else
2463
#include "X86MappingInsnOp.inc"
2464
#endif
2465
};
2466
2467
// given internal insn id, return operand access info
2468
const uint8_t *X86_get_op_access(cs_struct *h, unsigned int id,
2469
         uint64_t *eflags)
2470
2.59M
{
2471
2.59M
  unsigned int i = find_insn_h(h, id);
2472
2.59M
  if (i != -1) {
2473
2.59M
    *eflags = insn_ops[i].flags;
2474
2.59M
    return insn_ops[i].access;
2475
2.59M
  }
2476
2477
0
  return NULL;
2478
2.59M
}
2479
2480
void X86_reg_access(const cs_insn *insn, cs_regs regs_read,
2481
        uint8_t *regs_read_count, cs_regs regs_write,
2482
        uint8_t *regs_write_count)
2483
0
{
2484
0
  uint8_t i;
2485
0
  uint8_t read_count, write_count;
2486
0
  cs_x86 *x86 = &(insn->detail->x86);
2487
2488
0
  read_count = insn->detail->regs_read_count;
2489
0
  write_count = insn->detail->regs_write_count;
2490
2491
  // implicit registers
2492
0
  memcpy(regs_read, insn->detail->regs_read,
2493
0
         read_count * sizeof(insn->detail->regs_read[0]));
2494
0
  memcpy(regs_write, insn->detail->regs_write,
2495
0
         write_count * sizeof(insn->detail->regs_write[0]));
2496
2497
  // explicit registers
2498
0
  for (i = 0; i < x86->op_count; i++) {
2499
0
    cs_x86_op *op = &(x86->operands[i]);
2500
0
    switch ((int)op->type) {
2501
0
    case X86_OP_REG:
2502
0
      if ((op->access & CS_AC_READ) &&
2503
0
          !arr_exist(regs_read, read_count, op->reg)) {
2504
0
        regs_read[read_count] = op->reg;
2505
0
        read_count++;
2506
0
      }
2507
0
      if ((op->access & CS_AC_WRITE) &&
2508
0
          !arr_exist(regs_write, write_count, op->reg)) {
2509
0
        regs_write[write_count] = op->reg;
2510
0
        write_count++;
2511
0
      }
2512
0
      break;
2513
0
    case X86_OP_MEM:
2514
      // registers appeared in memory references always being read
2515
0
      if ((op->mem.segment != X86_REG_INVALID)) {
2516
0
        regs_read[read_count] = op->mem.segment;
2517
0
        read_count++;
2518
0
      }
2519
0
      if ((op->mem.base != X86_REG_INVALID) &&
2520
0
          !arr_exist(regs_read, read_count, op->mem.base)) {
2521
0
        regs_read[read_count] = op->mem.base;
2522
0
        read_count++;
2523
0
      }
2524
0
      if ((op->mem.index != X86_REG_INVALID) &&
2525
0
          !arr_exist(regs_read, read_count, op->mem.index)) {
2526
0
        regs_read[read_count] = op->mem.index;
2527
0
        read_count++;
2528
0
      }
2529
0
    default:
2530
0
      break;
2531
0
    }
2532
0
  }
2533
2534
0
  *regs_read_count = read_count;
2535
0
  *regs_write_count = write_count;
2536
0
}
2537
#endif
2538
2539
// map immediate size to instruction id
2540
// this array is sorted for binary searching
2541
static const struct size_id {
2542
  uint8_t enc_size;
2543
  uint8_t size;
2544
  uint16_t id;
2545
} x86_imm_size[] = {
2546
#include "X86ImmSize.inc"
2547
};
2548
2549
// given the instruction name, return the size of its immediate operand (or 0)
2550
uint8_t X86_immediate_size(unsigned int id, uint8_t *enc_size)
2551
186k
{
2552
  // binary searching since the IDs are sorted in order
2553
186k
  unsigned int left, right, m;
2554
2555
186k
  right = ARR_SIZE(x86_imm_size) - 1;
2556
2557
186k
  if (id < x86_imm_size[0].id || id > x86_imm_size[right].id)
2558
    // not found
2559
0
    return 0;
2560
2561
186k
  left = 0;
2562
2563
1.44M
  while (left <= right) {
2564
1.37M
    m = (left + right) / 2;
2565
1.37M
    if (id == x86_imm_size[m].id) {
2566
121k
      if (enc_size != NULL)
2567
120k
        *enc_size = x86_imm_size[m].enc_size;
2568
2569
121k
      return x86_imm_size[m].size;
2570
121k
    }
2571
2572
1.25M
    if (id > x86_imm_size[m].id)
2573
601k
      left = m + 1;
2574
653k
    else {
2575
653k
      if (m == 0)
2576
0
        break;
2577
653k
      right = m - 1;
2578
653k
    }
2579
1.25M
  }
2580
2581
  // not found
2582
64.4k
  return 0;
2583
186k
}
2584
2585
#define GET_REGINFO_ENUM
2586
#include "X86GenRegisterInfo.inc"
2587
2588
// map internal register id to public register id
2589
static const struct register_map {
2590
  unsigned short id;
2591
  unsigned short pub_id;
2592
} reg_map[] = {
2593
  // first dummy map
2594
  { 0, 0 },
2595
#include "X86MappingReg.inc"
2596
};
2597
2598
// return 0 on invalid input, or public register ID otherwise
2599
// NOTE: reg_map is sorted in order of internal register
2600
unsigned short X86_register_map(unsigned short id)
2601
2.80M
{
2602
2.80M
  if (id < ARR_SIZE(reg_map))
2603
2.80M
    return reg_map[id].pub_id;
2604
2605
0
  return 0;
2606
2.80M
}
2607
2608
/// The post-printer function. Used to fixup flaws in the disassembly information
2609
/// of certain instructions.
2610
void X86_postprinter(csh handle, cs_insn *insn, SStream *mnem, MCInst *mci)
2611
1.10M
{
2612
1.10M
  if (!insn || !insn->detail) {
2613
0
    return;
2614
0
  }
2615
1.10M
  switch (insn->id) {
2616
1.09M
  default:
2617
1.09M
    break;
2618
1.09M
  case X86_INS_RCL:
2619
    // Addmissing 1 immediate
2620
17.2k
    if (insn->detail->x86.op_count > 1) {
2621
16.9k
      return;
2622
16.9k
    }
2623
347
    insn->detail->x86.operands[1].imm = 1;
2624
347
    insn->detail->x86.operands[1].type = X86_OP_IMM;
2625
347
    insn->detail->x86.operands[1].access = CS_AC_READ;
2626
347
    insn->detail->x86.op_count++;
2627
347
    break;
2628
1.10M
  }
2629
1.10M
}
2630
2631
#endif