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1
/*
2
 *  i386 micro operations
3
 * 
4
 *  Copyright (c) 2003 Fabrice Bellard
5
 *
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 * This library is free software; you can redistribute it and/or
7
 * modify it under the terms of the GNU Lesser General Public
8
 * License as published by the Free Software Foundation; either
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 * version 2 of the License, or (at your option) any later version.
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 *
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 * This library is distributed in the hope that it will be useful,
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 * but WITHOUT ANY WARRANTY; without even the implied warranty of
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 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
14
 * Lesser General Public License for more details.
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 *
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 * You should have received a copy of the GNU Lesser General Public
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 * License along with this library; if not, write to the Free Software
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 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
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 */
20

    
21
#define ASM_SOFTMMU
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#include "exec.h"
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/* n must be a constant to be efficient */
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static inline target_long lshift(target_long x, int n)
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{
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    if (n >= 0)
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        return x << n;
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    else
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        return x >> (-n);
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}
32

    
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/* we define the various pieces of code used by the JIT */
34

    
35
#define REG EAX
36
#define REGNAME _EAX
37
#include "opreg_template.h"
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#undef REG
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#undef REGNAME
40

    
41
#define REG ECX
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#define REGNAME _ECX
43
#include "opreg_template.h"
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#undef REG
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#undef REGNAME
46

    
47
#define REG EDX
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#define REGNAME _EDX
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#include "opreg_template.h"
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#undef REG
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#undef REGNAME
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#define REG EBX
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#define REGNAME _EBX
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#include "opreg_template.h"
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#undef REG
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#undef REGNAME
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#define REG ESP
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#define REGNAME _ESP
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#include "opreg_template.h"
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#undef REG
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#undef REGNAME
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#define REG EBP
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#define REGNAME _EBP
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#include "opreg_template.h"
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#undef REG
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#undef REGNAME
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#define REG ESI
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#define REGNAME _ESI
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#include "opreg_template.h"
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#undef REG
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#undef REGNAME
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#define REG EDI
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#define REGNAME _EDI
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#include "opreg_template.h"
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#undef REG
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#undef REGNAME
82

    
83
#ifdef TARGET_X86_64
84

    
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#define REG (env->regs[8])
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#define REGNAME _R8
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#include "opreg_template.h"
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#undef REG
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#undef REGNAME
90

    
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#define REG (env->regs[9])
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#define REGNAME _R9
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#include "opreg_template.h"
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#undef REG
95
#undef REGNAME
96

    
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#define REG (env->regs[10])
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#define REGNAME _R10
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#include "opreg_template.h"
100
#undef REG
101
#undef REGNAME
102

    
103
#define REG (env->regs[11])
104
#define REGNAME _R11
105
#include "opreg_template.h"
106
#undef REG
107
#undef REGNAME
108

    
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#define REG (env->regs[12])
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#define REGNAME _R12
111
#include "opreg_template.h"
112
#undef REG
113
#undef REGNAME
114

    
115
#define REG (env->regs[13])
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#define REGNAME _R13
117
#include "opreg_template.h"
118
#undef REG
119
#undef REGNAME
120

    
121
#define REG (env->regs[14])
122
#define REGNAME _R14
123
#include "opreg_template.h"
124
#undef REG
125
#undef REGNAME
126

    
127
#define REG (env->regs[15])
128
#define REGNAME _R15
129
#include "opreg_template.h"
130
#undef REG
131
#undef REGNAME
132

    
133
#endif
134

    
135
/* operations with flags */
136

    
137
/* update flags with T0 and T1 (add/sub case) */
138
void OPPROTO op_update2_cc(void)
139
{
140
    CC_SRC = T1;
141
    CC_DST = T0;
142
}
143

    
144
/* update flags with T0 (logic operation case) */
145
void OPPROTO op_update1_cc(void)
146
{
147
    CC_DST = T0;
148
}
149

    
150
void OPPROTO op_update_neg_cc(void)
151
{
152
    CC_SRC = -T0;
153
    CC_DST = T0;
154
}
155

    
156
void OPPROTO op_cmpl_T0_T1_cc(void)
157
{
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    CC_SRC = T1;
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    CC_DST = T0 - T1;
160
}
161

    
162
void OPPROTO op_update_inc_cc(void)
163
{
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    CC_SRC = cc_table[CC_OP].compute_c();
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    CC_DST = T0;
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}
167

    
168
void OPPROTO op_testl_T0_T1_cc(void)
169
{
170
    CC_DST = T0 & T1;
171
}
172

    
173
/* operations without flags */
174

    
175
void OPPROTO op_addl_T0_T1(void)
176
{
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    T0 += T1;
178
}
179

    
180
void OPPROTO op_orl_T0_T1(void)
181
{
182
    T0 |= T1;
183
}
184

    
185
void OPPROTO op_andl_T0_T1(void)
186
{
187
    T0 &= T1;
188
}
189

    
190
void OPPROTO op_subl_T0_T1(void)
191
{
192
    T0 -= T1;
193
}
194

    
195
void OPPROTO op_xorl_T0_T1(void)
196
{
197
    T0 ^= T1;
198
}
199

    
200
void OPPROTO op_negl_T0(void)
201
{
202
    T0 = -T0;
203
}
204

    
205
void OPPROTO op_incl_T0(void)
206
{
207
    T0++;
208
}
209

    
210
void OPPROTO op_decl_T0(void)
211
{
212
    T0--;
213
}
214

    
215
void OPPROTO op_notl_T0(void)
216
{
217
    T0 = ~T0;
218
}
219

    
220
void OPPROTO op_bswapl_T0(void)
221
{
222
    T0 = bswap32(T0);
223
}
224

    
225
#ifdef TARGET_X86_64
226
void OPPROTO op_bswapq_T0(void)
227
{
228
    T0 = bswap64(T0);
229
}
230
#endif
231

    
232
/* multiply/divide */
233

    
234
/* XXX: add eflags optimizations */
235
/* XXX: add non P4 style flags */
236

    
237
void OPPROTO op_mulb_AL_T0(void)
238
{
239
    unsigned int res;
240
    res = (uint8_t)EAX * (uint8_t)T0;
241
    EAX = (EAX & ~0xffff) | res;
242
    CC_DST = res;
243
    CC_SRC = (res & 0xff00);
244
}
245

    
246
void OPPROTO op_imulb_AL_T0(void)
247
{
248
    int res;
249
    res = (int8_t)EAX * (int8_t)T0;
250
    EAX = (EAX & ~0xffff) | (res & 0xffff);
251
    CC_DST = res;
252
    CC_SRC = (res != (int8_t)res);
253
}
254

    
255
void OPPROTO op_mulw_AX_T0(void)
256
{
257
    unsigned int res;
258
    res = (uint16_t)EAX * (uint16_t)T0;
259
    EAX = (EAX & ~0xffff) | (res & 0xffff);
260
    EDX = (EDX & ~0xffff) | ((res >> 16) & 0xffff);
261
    CC_DST = res;
262
    CC_SRC = res >> 16;
263
}
264

    
265
void OPPROTO op_imulw_AX_T0(void)
266
{
267
    int res;
268
    res = (int16_t)EAX * (int16_t)T0;
269
    EAX = (EAX & ~0xffff) | (res & 0xffff);
270
    EDX = (EDX & ~0xffff) | ((res >> 16) & 0xffff);
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    CC_DST = res;
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    CC_SRC = (res != (int16_t)res);
273
}
274

    
275
void OPPROTO op_mull_EAX_T0(void)
276
{
277
    uint64_t res;
278
    res = (uint64_t)((uint32_t)EAX) * (uint64_t)((uint32_t)T0);
279
    EAX = (uint32_t)res;
280
    EDX = (uint32_t)(res >> 32);
281
    CC_DST = (uint32_t)res;
282
    CC_SRC = (uint32_t)(res >> 32);
283
}
284

    
285
void OPPROTO op_imull_EAX_T0(void)
286
{
287
    int64_t res;
288
    res = (int64_t)((int32_t)EAX) * (int64_t)((int32_t)T0);
289
    EAX = res;
290
    EDX = res >> 32;
291
    CC_DST = res;
292
    CC_SRC = (res != (int32_t)res);
293
}
294

    
295
void OPPROTO op_imulw_T0_T1(void)
296
{
297
    int res;
298
    res = (int16_t)T0 * (int16_t)T1;
299
    T0 = res;
300
    CC_DST = res;
301
    CC_SRC = (res != (int16_t)res);
302
}
303

    
304
void OPPROTO op_imull_T0_T1(void)
305
{
306
    int64_t res;
307
    res = (int64_t)((int32_t)T0) * (int64_t)((int32_t)T1);
308
    T0 = res;
309
    CC_DST = res;
310
    CC_SRC = (res != (int32_t)res);
311
}
312

    
313
#ifdef TARGET_X86_64
314
void OPPROTO op_mulq_EAX_T0(void)
315
{
316
    helper_mulq_EAX_T0();
317
}
318

    
319
void OPPROTO op_imulq_EAX_T0(void)
320
{
321
    helper_imulq_EAX_T0();
322
}
323

    
324
void OPPROTO op_imulq_T0_T1(void)
325
{
326
    helper_imulq_T0_T1();
327
}
328
#endif
329

    
330
/* division, flags are undefined */
331
/* XXX: add exceptions for overflow */
332

    
333
void OPPROTO op_divb_AL_T0(void)
334
{
335
    unsigned int num, den, q, r;
336

    
337
    num = (EAX & 0xffff);
338
    den = (T0 & 0xff);
339
    if (den == 0) {
340
        raise_exception(EXCP00_DIVZ);
341
    }
342
    q = (num / den) & 0xff;
343
    r = (num % den) & 0xff;
344
    EAX = (EAX & ~0xffff) | (r << 8) | q;
345
}
346

    
347
void OPPROTO op_idivb_AL_T0(void)
348
{
349
    int num, den, q, r;
350

    
351
    num = (int16_t)EAX;
352
    den = (int8_t)T0;
353
    if (den == 0) {
354
        raise_exception(EXCP00_DIVZ);
355
    }
356
    q = (num / den) & 0xff;
357
    r = (num % den) & 0xff;
358
    EAX = (EAX & ~0xffff) | (r << 8) | q;
359
}
360

    
361
void OPPROTO op_divw_AX_T0(void)
362
{
363
    unsigned int num, den, q, r;
364

    
365
    num = (EAX & 0xffff) | ((EDX & 0xffff) << 16);
366
    den = (T0 & 0xffff);
367
    if (den == 0) {
368
        raise_exception(EXCP00_DIVZ);
369
    }
370
    q = (num / den) & 0xffff;
371
    r = (num % den) & 0xffff;
372
    EAX = (EAX & ~0xffff) | q;
373
    EDX = (EDX & ~0xffff) | r;
374
}
375

    
376
void OPPROTO op_idivw_AX_T0(void)
377
{
378
    int num, den, q, r;
379

    
380
    num = (EAX & 0xffff) | ((EDX & 0xffff) << 16);
381
    den = (int16_t)T0;
382
    if (den == 0) {
383
        raise_exception(EXCP00_DIVZ);
384
    }
385
    q = (num / den) & 0xffff;
386
    r = (num % den) & 0xffff;
387
    EAX = (EAX & ~0xffff) | q;
388
    EDX = (EDX & ~0xffff) | r;
389
}
390

    
391
void OPPROTO op_divl_EAX_T0(void)
392
{
393
    helper_divl_EAX_T0();
394
}
395

    
396
void OPPROTO op_idivl_EAX_T0(void)
397
{
398
    helper_idivl_EAX_T0();
399
}
400

    
401
#ifdef TARGET_X86_64
402
void OPPROTO op_divq_EAX_T0(void)
403
{
404
    helper_divq_EAX_T0();
405
}
406

    
407
void OPPROTO op_idivq_EAX_T0(void)
408
{
409
    helper_idivq_EAX_T0();
410
}
411
#endif
412

    
413
/* constant load & misc op */
414

    
415
/* XXX: consistent names */
416
void OPPROTO op_movl_T0_imu(void)
417
{
418
    T0 = (uint32_t)PARAM1;
419
}
420

    
421
void OPPROTO op_movl_T0_im(void)
422
{
423
    T0 = (int32_t)PARAM1;
424
}
425

    
426
void OPPROTO op_addl_T0_im(void)
427
{
428
    T0 += PARAM1;
429
}
430

    
431
void OPPROTO op_andl_T0_ffff(void)
432
{
433
    T0 = T0 & 0xffff;
434
}
435

    
436
void OPPROTO op_andl_T0_im(void)
437
{
438
    T0 = T0 & PARAM1;
439
}
440

    
441
void OPPROTO op_movl_T0_T1(void)
442
{
443
    T0 = T1;
444
}
445

    
446
void OPPROTO op_movl_T1_imu(void)
447
{
448
    T1 = (uint32_t)PARAM1;
449
}
450

    
451
void OPPROTO op_movl_T1_im(void)
452
{
453
    T1 = (int32_t)PARAM1;
454
}
455

    
456
void OPPROTO op_addl_T1_im(void)
457
{
458
    T1 += PARAM1;
459
}
460

    
461
void OPPROTO op_movl_T1_A0(void)
462
{
463
    T1 = A0;
464
}
465

    
466
void OPPROTO op_movl_A0_im(void)
467
{
468
    A0 = (uint32_t)PARAM1;
469
}
470

    
471
void OPPROTO op_addl_A0_im(void)
472
{
473
    A0 = (uint32_t)(A0 + PARAM1);
474
}
475

    
476
void OPPROTO op_movl_A0_seg(void)
477
{
478
    A0 = (uint32_t)*(target_ulong *)((char *)env + PARAM1);
479
}
480

    
481
void OPPROTO op_addl_A0_seg(void)
482
{
483
    A0 = (uint32_t)(A0 + *(target_ulong *)((char *)env + PARAM1));
484
}
485

    
486
void OPPROTO op_addl_A0_AL(void)
487
{
488
    A0 = (uint32_t)(A0 + (EAX & 0xff));
489
}
490

    
491
#ifdef WORDS_BIGENDIAN
492
typedef union UREG64 {
493
    struct { uint16_t v3, v2, v1, v0; } w;
494
    struct { uint32_t v1, v0; } l;
495
    uint64_t q;
496
} UREG64;
497
#else
498
typedef union UREG64 {
499
    struct { uint16_t v0, v1, v2, v3; } w;
500
    struct { uint32_t v0, v1; } l;
501
    uint64_t q;
502
} UREG64;
503
#endif
504

    
505
#ifdef TARGET_X86_64
506

    
507
#define PARAMQ1 \
508
({\
509
    UREG64 __p;\
510
    __p.l.v1 = PARAM1;\
511
    __p.l.v0 = PARAM2;\
512
    __p.q;\
513
}) 
514

    
515
void OPPROTO op_movq_T0_im64(void)
516
{
517
    T0 = PARAMQ1;
518
}
519

    
520
void OPPROTO op_movq_A0_im(void)
521
{
522
    A0 = (int32_t)PARAM1;
523
}
524

    
525
void OPPROTO op_movq_A0_im64(void)
526
{
527
    A0 = PARAMQ1;
528
}
529

    
530
void OPPROTO op_addq_A0_im(void)
531
{
532
    A0 = (A0 + (int32_t)PARAM1);
533
}
534

    
535
void OPPROTO op_addq_A0_im64(void)
536
{
537
    A0 = (A0 + PARAMQ1);
538
}
539

    
540
void OPPROTO op_movq_A0_seg(void)
541
{
542
    A0 = *(target_ulong *)((char *)env + PARAM1);
543
}
544

    
545
void OPPROTO op_addq_A0_seg(void)
546
{
547
    A0 += *(target_ulong *)((char *)env + PARAM1);
548
}
549

    
550
void OPPROTO op_addq_A0_AL(void)
551
{
552
    A0 = (A0 + (EAX & 0xff));
553
}
554

    
555
#endif
556

    
557
void OPPROTO op_andl_A0_ffff(void)
558
{
559
    A0 = A0 & 0xffff;
560
}
561

    
562
/* memory access */
563

    
564
#define MEMSUFFIX _raw
565
#include "ops_mem.h"
566

    
567
#if !defined(CONFIG_USER_ONLY)
568
#define MEMSUFFIX _kernel
569
#include "ops_mem.h"
570

    
571
#define MEMSUFFIX _user
572
#include "ops_mem.h"
573
#endif
574

    
575
/* indirect jump */
576

    
577
void OPPROTO op_jmp_T0(void)
578
{
579
    EIP = T0;
580
}
581

    
582
void OPPROTO op_movl_eip_im(void)
583
{
584
    EIP = (uint32_t)PARAM1;
585
}
586

    
587
#ifdef TARGET_X86_64
588
void OPPROTO op_movq_eip_im(void)
589
{
590
    EIP = (int32_t)PARAM1;
591
}
592

    
593
void OPPROTO op_movq_eip_im64(void)
594
{
595
    EIP = PARAMQ1;
596
}
597
#endif
598

    
599
void OPPROTO op_hlt(void)
600
{
601
    env->hflags &= ~HF_INHIBIT_IRQ_MASK; /* needed if sti is just before */
602
    env->exception_index = EXCP_HLT;
603
    cpu_loop_exit();
604
}
605

    
606
void OPPROTO op_debug(void)
607
{
608
    env->exception_index = EXCP_DEBUG;
609
    cpu_loop_exit();
610
}
611

    
612
void OPPROTO op_raise_interrupt(void)
613
{
614
    int intno, next_eip_addend;
615
    intno = PARAM1;
616
    next_eip_addend = PARAM2;
617
    raise_interrupt(intno, 1, 0, next_eip_addend);
618
}
619

    
620
void OPPROTO op_raise_exception(void)
621
{
622
    int exception_index;
623
    exception_index = PARAM1;
624
    raise_exception(exception_index);
625
}
626

    
627
void OPPROTO op_into(void)
628
{
629
    int eflags;
630
    eflags = cc_table[CC_OP].compute_all();
631
    if (eflags & CC_O) {
632
        raise_interrupt(EXCP04_INTO, 1, 0, PARAM1);
633
    }
634
    FORCE_RET();
635
}
636

    
637
void OPPROTO op_cli(void)
638
{
639
    env->eflags &= ~IF_MASK;
640
}
641

    
642
void OPPROTO op_sti(void)
643
{
644
    env->eflags |= IF_MASK;
645
}
646

    
647
void OPPROTO op_set_inhibit_irq(void)
648
{
649
    env->hflags |= HF_INHIBIT_IRQ_MASK;
650
}
651

    
652
void OPPROTO op_reset_inhibit_irq(void)
653
{
654
    env->hflags &= ~HF_INHIBIT_IRQ_MASK;
655
}
656

    
657
#if 0
658
/* vm86plus instructions */
659
void OPPROTO op_cli_vm(void)
660
{
661
    env->eflags &= ~VIF_MASK;
662
}
663

664
void OPPROTO op_sti_vm(void)
665
{
666
    env->eflags |= VIF_MASK;
667
    if (env->eflags & VIP_MASK) {
668
        EIP = PARAM1;
669
        raise_exception(EXCP0D_GPF);
670
    }
671
    FORCE_RET();
672
}
673
#endif
674

    
675
void OPPROTO op_boundw(void)
676
{
677
    int low, high, v;
678
    low = ldsw(A0);
679
    high = ldsw(A0 + 2);
680
    v = (int16_t)T0;
681
    if (v < low || v > high) {
682
        raise_exception(EXCP05_BOUND);
683
    }
684
    FORCE_RET();
685
}
686

    
687
void OPPROTO op_boundl(void)
688
{
689
    int low, high, v;
690
    low = ldl(A0);
691
    high = ldl(A0 + 4);
692
    v = T0;
693
    if (v < low || v > high) {
694
        raise_exception(EXCP05_BOUND);
695
    }
696
    FORCE_RET();
697
}
698

    
699
void OPPROTO op_cmpxchg8b(void)
700
{
701
    helper_cmpxchg8b();
702
}
703

    
704
void OPPROTO op_movl_T0_0(void)
705
{
706
    T0 = 0;
707
}
708

    
709
void OPPROTO op_exit_tb(void)
710
{
711
    EXIT_TB();
712
}
713

    
714
/* multiple size ops */
715

    
716
#define ldul ldl
717

    
718
#define SHIFT 0
719
#include "ops_template.h"
720
#undef SHIFT
721

    
722
#define SHIFT 1
723
#include "ops_template.h"
724
#undef SHIFT
725

    
726
#define SHIFT 2
727
#include "ops_template.h"
728
#undef SHIFT
729

    
730
#ifdef TARGET_X86_64
731

    
732
#define SHIFT 3
733
#include "ops_template.h"
734
#undef SHIFT
735

    
736
#endif
737

    
738
/* sign extend */
739

    
740
void OPPROTO op_movsbl_T0_T0(void)
741
{
742
    T0 = (int8_t)T0;
743
}
744

    
745
void OPPROTO op_movzbl_T0_T0(void)
746
{
747
    T0 = (uint8_t)T0;
748
}
749

    
750
void OPPROTO op_movswl_T0_T0(void)
751
{
752
    T0 = (int16_t)T0;
753
}
754

    
755
void OPPROTO op_movzwl_T0_T0(void)
756
{
757
    T0 = (uint16_t)T0;
758
}
759

    
760
void OPPROTO op_movswl_EAX_AX(void)
761
{
762
    EAX = (int16_t)EAX;
763
}
764

    
765
#ifdef TARGET_X86_64
766
void OPPROTO op_movslq_T0_T0(void)
767
{
768
    T0 = (int32_t)T0;
769
}
770

    
771
void OPPROTO op_movslq_RAX_EAX(void)
772
{
773
    EAX = (int32_t)EAX;
774
}
775
#endif
776

    
777
void OPPROTO op_movsbw_AX_AL(void)
778
{
779
    EAX = (EAX & ~0xffff) | ((int8_t)EAX & 0xffff);
780
}
781

    
782
void OPPROTO op_movslq_EDX_EAX(void)
783
{
784
    EDX = (int32_t)EAX >> 31;
785
}
786

    
787
void OPPROTO op_movswl_DX_AX(void)
788
{
789
    EDX = (EDX & ~0xffff) | (((int16_t)EAX >> 15) & 0xffff);
790
}
791

    
792
#ifdef TARGET_X86_64
793
void OPPROTO op_movsqo_RDX_RAX(void)
794
{
795
    EDX = (int64_t)EAX >> 63;
796
}
797
#endif
798

    
799
/* string ops helpers */
800

    
801
void OPPROTO op_addl_ESI_T0(void)
802
{
803
    ESI = (uint32_t)(ESI + T0);
804
}
805

    
806
void OPPROTO op_addw_ESI_T0(void)
807
{
808
    ESI = (ESI & ~0xffff) | ((ESI + T0) & 0xffff);
809
}
810

    
811
void OPPROTO op_addl_EDI_T0(void)
812
{
813
    EDI = (uint32_t)(EDI + T0);
814
}
815

    
816
void OPPROTO op_addw_EDI_T0(void)
817
{
818
    EDI = (EDI & ~0xffff) | ((EDI + T0) & 0xffff);
819
}
820

    
821
void OPPROTO op_decl_ECX(void)
822
{
823
    ECX = (uint32_t)(ECX - 1);
824
}
825

    
826
void OPPROTO op_decw_ECX(void)
827
{
828
    ECX = (ECX & ~0xffff) | ((ECX - 1) & 0xffff);
829
}
830

    
831
#ifdef TARGET_X86_64
832
void OPPROTO op_addq_ESI_T0(void)
833
{
834
    ESI = (ESI + T0);
835
}
836

    
837
void OPPROTO op_addq_EDI_T0(void)
838
{
839
    EDI = (EDI + T0);
840
}
841

    
842
void OPPROTO op_decq_ECX(void)
843
{
844
    ECX--;
845
}
846
#endif
847

    
848
/* push/pop utils */
849

    
850
void op_addl_A0_SS(void)
851
{
852
    A0 += (long)env->segs[R_SS].base;
853
}
854

    
855
void op_subl_A0_2(void)
856
{
857
    A0 = (uint32_t)(A0 - 2);
858
}
859

    
860
void op_subl_A0_4(void)
861
{
862
    A0 = (uint32_t)(A0 - 4);
863
}
864

    
865
void op_addl_ESP_4(void)
866
{
867
    ESP = (uint32_t)(ESP + 4);
868
}
869

    
870
void op_addl_ESP_2(void)
871
{
872
    ESP = (uint32_t)(ESP + 2);
873
}
874

    
875
void op_addw_ESP_4(void)
876
{
877
    ESP = (ESP & ~0xffff) | ((ESP + 4) & 0xffff);
878
}
879

    
880
void op_addw_ESP_2(void)
881
{
882
    ESP = (ESP & ~0xffff) | ((ESP + 2) & 0xffff);
883
}
884

    
885
void op_addl_ESP_im(void)
886
{
887
    ESP = (uint32_t)(ESP + PARAM1);
888
}
889

    
890
void op_addw_ESP_im(void)
891
{
892
    ESP = (ESP & ~0xffff) | ((ESP + PARAM1) & 0xffff);
893
}
894

    
895
#ifdef TARGET_X86_64
896
void op_subq_A0_8(void)
897
{
898
    A0 -= 8;
899
}
900

    
901
void op_addq_ESP_8(void)
902
{
903
    ESP += 8;
904
}
905

    
906
void op_addq_ESP_im(void)
907
{
908
    ESP += PARAM1;
909
}
910
#endif
911

    
912
void OPPROTO op_rdtsc(void)
913
{
914
    helper_rdtsc();
915
}
916

    
917
void OPPROTO op_cpuid(void)
918
{
919
    helper_cpuid();
920
}
921

    
922
void OPPROTO op_enter_level(void)
923
{
924
    helper_enter_level(PARAM1, PARAM2);
925
}
926

    
927
void OPPROTO op_sysenter(void)
928
{
929
    helper_sysenter();
930
}
931

    
932
void OPPROTO op_sysexit(void)
933
{
934
    helper_sysexit();
935
}
936

    
937
#ifdef TARGET_X86_64
938
void OPPROTO op_syscall(void)
939
{
940
    helper_syscall(PARAM1);
941
}
942

    
943
void OPPROTO op_sysret(void)
944
{
945
    helper_sysret(PARAM1);
946
}
947
#endif
948

    
949
void OPPROTO op_rdmsr(void)
950
{
951
    helper_rdmsr();
952
}
953

    
954
void OPPROTO op_wrmsr(void)
955
{
956
    helper_wrmsr();
957
}
958

    
959
/* bcd */
960

    
961
/* XXX: exception */
962
void OPPROTO op_aam(void)
963
{
964
    int base = PARAM1;
965
    int al, ah;
966
    al = EAX & 0xff;
967
    ah = al / base;
968
    al = al % base;
969
    EAX = (EAX & ~0xffff) | al | (ah << 8);
970
    CC_DST = al;
971
}
972

    
973
void OPPROTO op_aad(void)
974
{
975
    int base = PARAM1;
976
    int al, ah;
977
    al = EAX & 0xff;
978
    ah = (EAX >> 8) & 0xff;
979
    al = ((ah * base) + al) & 0xff;
980
    EAX = (EAX & ~0xffff) | al;
981
    CC_DST = al;
982
}
983

    
984
void OPPROTO op_aaa(void)
985
{
986
    int icarry;
987
    int al, ah, af;
988
    int eflags;
989

    
990
    eflags = cc_table[CC_OP].compute_all();
991
    af = eflags & CC_A;
992
    al = EAX & 0xff;
993
    ah = (EAX >> 8) & 0xff;
994

    
995
    icarry = (al > 0xf9);
996
    if (((al & 0x0f) > 9 ) || af) {
997
        al = (al + 6) & 0x0f;
998
        ah = (ah + 1 + icarry) & 0xff;
999
        eflags |= CC_C | CC_A;
1000
    } else {
1001
        eflags &= ~(CC_C | CC_A);
1002
        al &= 0x0f;
1003
    }
1004
    EAX = (EAX & ~0xffff) | al | (ah << 8);
1005
    CC_SRC = eflags;
1006
}
1007

    
1008
void OPPROTO op_aas(void)
1009
{
1010
    int icarry;
1011
    int al, ah, af;
1012
    int eflags;
1013

    
1014
    eflags = cc_table[CC_OP].compute_all();
1015
    af = eflags & CC_A;
1016
    al = EAX & 0xff;
1017
    ah = (EAX >> 8) & 0xff;
1018

    
1019
    icarry = (al < 6);
1020
    if (((al & 0x0f) > 9 ) || af) {
1021
        al = (al - 6) & 0x0f;
1022
        ah = (ah - 1 - icarry) & 0xff;
1023
        eflags |= CC_C | CC_A;
1024
    } else {
1025
        eflags &= ~(CC_C | CC_A);
1026
        al &= 0x0f;
1027
    }
1028
    EAX = (EAX & ~0xffff) | al | (ah << 8);
1029
    CC_SRC = eflags;
1030
}
1031

    
1032
void OPPROTO op_daa(void)
1033
{
1034
    int al, af, cf;
1035
    int eflags;
1036

    
1037
    eflags = cc_table[CC_OP].compute_all();
1038
    cf = eflags & CC_C;
1039
    af = eflags & CC_A;
1040
    al = EAX & 0xff;
1041

    
1042
    eflags = 0;
1043
    if (((al & 0x0f) > 9 ) || af) {
1044
        al = (al + 6) & 0xff;
1045
        eflags |= CC_A;
1046
    }
1047
    if ((al > 0x9f) || cf) {
1048
        al = (al + 0x60) & 0xff;
1049
        eflags |= CC_C;
1050
    }
1051
    EAX = (EAX & ~0xff) | al;
1052
    /* well, speed is not an issue here, so we compute the flags by hand */
1053
    eflags |= (al == 0) << 6; /* zf */
1054
    eflags |= parity_table[al]; /* pf */
1055
    eflags |= (al & 0x80); /* sf */
1056
    CC_SRC = eflags;
1057
}
1058

    
1059
void OPPROTO op_das(void)
1060
{
1061
    int al, al1, af, cf;
1062
    int eflags;
1063

    
1064
    eflags = cc_table[CC_OP].compute_all();
1065
    cf = eflags & CC_C;
1066
    af = eflags & CC_A;
1067
    al = EAX & 0xff;
1068

    
1069
    eflags = 0;
1070
    al1 = al;
1071
    if (((al & 0x0f) > 9 ) || af) {
1072
        eflags |= CC_A;
1073
        if (al < 6 || cf)
1074
            eflags |= CC_C;
1075
        al = (al - 6) & 0xff;
1076
    }
1077
    if ((al1 > 0x99) || cf) {
1078
        al = (al - 0x60) & 0xff;
1079
        eflags |= CC_C;
1080
    }
1081
    EAX = (EAX & ~0xff) | al;
1082
    /* well, speed is not an issue here, so we compute the flags by hand */
1083
    eflags |= (al == 0) << 6; /* zf */
1084
    eflags |= parity_table[al]; /* pf */
1085
    eflags |= (al & 0x80); /* sf */
1086
    CC_SRC = eflags;
1087
}
1088

    
1089
/* segment handling */
1090

    
1091
/* never use it with R_CS */
1092
void OPPROTO op_movl_seg_T0(void)
1093
{
1094
    load_seg(PARAM1, T0);
1095
}
1096

    
1097
/* faster VM86 version */
1098
void OPPROTO op_movl_seg_T0_vm(void)
1099
{
1100
    int selector;
1101
    SegmentCache *sc;
1102
    
1103
    selector = T0 & 0xffff;
1104
    /* env->segs[] access */
1105
    sc = (SegmentCache *)((char *)env + PARAM1);
1106
    sc->selector = selector;
1107
    sc->base = (selector << 4);
1108
}
1109

    
1110
void OPPROTO op_movl_T0_seg(void)
1111
{
1112
    T0 = env->segs[PARAM1].selector;
1113
}
1114

    
1115
void OPPROTO op_lsl(void)
1116
{
1117
    helper_lsl();
1118
}
1119

    
1120
void OPPROTO op_lar(void)
1121
{
1122
    helper_lar();
1123
}
1124

    
1125
void OPPROTO op_verr(void)
1126
{
1127
    helper_verr();
1128
}
1129

    
1130
void OPPROTO op_verw(void)
1131
{
1132
    helper_verw();
1133
}
1134

    
1135
void OPPROTO op_arpl(void)
1136
{
1137
    if ((T0 & 3) < (T1 & 3)) {
1138
        /* XXX: emulate bug or 0xff3f0000 oring as in bochs ? */
1139
        T0 = (T0 & ~3) | (T1 & 3);
1140
        T1 = CC_Z;
1141
   } else {
1142
        T1 = 0;
1143
    }
1144
    FORCE_RET();
1145
}
1146
            
1147
void OPPROTO op_arpl_update(void)
1148
{
1149
    int eflags;
1150
    eflags = cc_table[CC_OP].compute_all();
1151
    CC_SRC = (eflags & ~CC_Z) | T1;
1152
}
1153
    
1154
/* T0: segment, T1:eip */
1155
void OPPROTO op_ljmp_protected_T0_T1(void)
1156
{
1157
    helper_ljmp_protected_T0_T1(PARAM1);
1158
}
1159

    
1160
void OPPROTO op_lcall_real_T0_T1(void)
1161
{
1162
    helper_lcall_real_T0_T1(PARAM1, PARAM2);
1163
}
1164

    
1165
void OPPROTO op_lcall_protected_T0_T1(void)
1166
{
1167
    helper_lcall_protected_T0_T1(PARAM1, PARAM2);
1168
}
1169

    
1170
void OPPROTO op_iret_real(void)
1171
{
1172
    helper_iret_real(PARAM1);
1173
}
1174

    
1175
void OPPROTO op_iret_protected(void)
1176
{
1177
    helper_iret_protected(PARAM1, PARAM2);
1178
}
1179

    
1180
void OPPROTO op_lret_protected(void)
1181
{
1182
    helper_lret_protected(PARAM1, PARAM2);
1183
}
1184

    
1185
void OPPROTO op_lldt_T0(void)
1186
{
1187
    helper_lldt_T0();
1188
}
1189

    
1190
void OPPROTO op_ltr_T0(void)
1191
{
1192
    helper_ltr_T0();
1193
}
1194

    
1195
/* CR registers access */
1196
void OPPROTO op_movl_crN_T0(void)
1197
{
1198
    helper_movl_crN_T0(PARAM1);
1199
}
1200

    
1201
void OPPROTO op_movtl_T0_cr8(void)
1202
{
1203
#if !defined(CONFIG_USER_ONLY) 
1204
    T0 = cpu_get_apic_tpr(env);
1205
#endif
1206
}
1207

    
1208
/* DR registers access */
1209
void OPPROTO op_movl_drN_T0(void)
1210
{
1211
    helper_movl_drN_T0(PARAM1);
1212
}
1213

    
1214
void OPPROTO op_lmsw_T0(void)
1215
{
1216
    /* only 4 lower bits of CR0 are modified. PE cannot be set to zero
1217
       if already set to one. */
1218
    T0 = (env->cr[0] & ~0xe) | (T0 & 0xf);
1219
    helper_movl_crN_T0(0);
1220
}
1221

    
1222
void OPPROTO op_invlpg_A0(void)
1223
{
1224
    helper_invlpg(A0);
1225
}
1226

    
1227
void OPPROTO op_movl_T0_env(void)
1228
{
1229
    T0 = *(uint32_t *)((char *)env + PARAM1);
1230
}
1231

    
1232
void OPPROTO op_movl_env_T0(void)
1233
{
1234
    *(uint32_t *)((char *)env + PARAM1) = T0;
1235
}
1236

    
1237
void OPPROTO op_movl_env_T1(void)
1238
{
1239
    *(uint32_t *)((char *)env + PARAM1) = T1;
1240
}
1241

    
1242
void OPPROTO op_movtl_T0_env(void)
1243
{
1244
    T0 = *(target_ulong *)((char *)env + PARAM1);
1245
}
1246

    
1247
void OPPROTO op_movtl_env_T0(void)
1248
{
1249
    *(target_ulong *)((char *)env + PARAM1) = T0;
1250
}
1251

    
1252
void OPPROTO op_movtl_T1_env(void)
1253
{
1254
    T1 = *(target_ulong *)((char *)env + PARAM1);
1255
}
1256

    
1257
void OPPROTO op_movtl_env_T1(void)
1258
{
1259
    *(target_ulong *)((char *)env + PARAM1) = T1;
1260
}
1261

    
1262
void OPPROTO op_clts(void)
1263
{
1264
    env->cr[0] &= ~CR0_TS_MASK;
1265
    env->hflags &= ~HF_TS_MASK;
1266
}
1267

    
1268
/* flags handling */
1269

    
1270
void OPPROTO op_goto_tb0(void)
1271
{
1272
    GOTO_TB(op_goto_tb0, PARAM1, 0);
1273
}
1274

    
1275
void OPPROTO op_goto_tb1(void)
1276
{
1277
    GOTO_TB(op_goto_tb1, PARAM1, 1);
1278
}
1279

    
1280
void OPPROTO op_jmp_label(void)
1281
{
1282
    GOTO_LABEL_PARAM(1);
1283
}
1284

    
1285
void OPPROTO op_jnz_T0_label(void)
1286
{
1287
    if (T0)
1288
        GOTO_LABEL_PARAM(1);
1289
    FORCE_RET();
1290
}
1291

    
1292
void OPPROTO op_jz_T0_label(void)
1293
{
1294
    if (!T0)
1295
        GOTO_LABEL_PARAM(1);
1296
    FORCE_RET();
1297
}
1298

    
1299
/* slow set cases (compute x86 flags) */
1300
void OPPROTO op_seto_T0_cc(void)
1301
{
1302
    int eflags;
1303
    eflags = cc_table[CC_OP].compute_all();
1304
    T0 = (eflags >> 11) & 1;
1305
}
1306

    
1307
void OPPROTO op_setb_T0_cc(void)
1308
{
1309
    T0 = cc_table[CC_OP].compute_c();
1310
}
1311

    
1312
void OPPROTO op_setz_T0_cc(void)
1313
{
1314
    int eflags;
1315
    eflags = cc_table[CC_OP].compute_all();
1316
    T0 = (eflags >> 6) & 1;
1317
}
1318

    
1319
void OPPROTO op_setbe_T0_cc(void)
1320
{
1321
    int eflags;
1322
    eflags = cc_table[CC_OP].compute_all();
1323
    T0 = (eflags & (CC_Z | CC_C)) != 0;
1324
}
1325

    
1326
void OPPROTO op_sets_T0_cc(void)
1327
{
1328
    int eflags;
1329
    eflags = cc_table[CC_OP].compute_all();
1330
    T0 = (eflags >> 7) & 1;
1331
}
1332

    
1333
void OPPROTO op_setp_T0_cc(void)
1334
{
1335
    int eflags;
1336
    eflags = cc_table[CC_OP].compute_all();
1337
    T0 = (eflags >> 2) & 1;
1338
}
1339

    
1340
void OPPROTO op_setl_T0_cc(void)
1341
{
1342
    int eflags;
1343
    eflags = cc_table[CC_OP].compute_all();
1344
    T0 = ((eflags ^ (eflags >> 4)) >> 7) & 1;
1345
}
1346

    
1347
void OPPROTO op_setle_T0_cc(void)
1348
{
1349
    int eflags;
1350
    eflags = cc_table[CC_OP].compute_all();
1351
    T0 = (((eflags ^ (eflags >> 4)) & 0x80) || (eflags & CC_Z)) != 0;
1352
}
1353

    
1354
void OPPROTO op_xor_T0_1(void)
1355
{
1356
    T0 ^= 1;
1357
}
1358

    
1359
void OPPROTO op_set_cc_op(void)
1360
{
1361
    CC_OP = PARAM1;
1362
}
1363

    
1364
/* XXX: clear VIF/VIP in all ops ? */
1365

    
1366
void OPPROTO op_movl_eflags_T0(void)
1367
{
1368
    load_eflags(T0, (TF_MASK | AC_MASK | ID_MASK | NT_MASK));
1369
}
1370

    
1371
void OPPROTO op_movw_eflags_T0(void)
1372
{
1373
    load_eflags(T0, (TF_MASK | AC_MASK | ID_MASK | NT_MASK) & 0xffff);
1374
}
1375

    
1376
void OPPROTO op_movl_eflags_T0_io(void)
1377
{
1378
    load_eflags(T0, (TF_MASK | AC_MASK | ID_MASK | NT_MASK | IF_MASK));
1379
}
1380

    
1381
void OPPROTO op_movw_eflags_T0_io(void)
1382
{
1383
    load_eflags(T0, (TF_MASK | AC_MASK | ID_MASK | NT_MASK | IF_MASK) & 0xffff);
1384
}
1385

    
1386
void OPPROTO op_movl_eflags_T0_cpl0(void)
1387
{
1388
    load_eflags(T0, (TF_MASK | AC_MASK | ID_MASK | NT_MASK | IF_MASK | IOPL_MASK));
1389
}
1390

    
1391
void OPPROTO op_movw_eflags_T0_cpl0(void)
1392
{
1393
    load_eflags(T0, (TF_MASK | AC_MASK | ID_MASK | NT_MASK | IF_MASK | IOPL_MASK) & 0xffff);
1394
}
1395

    
1396
#if 0
1397
/* vm86plus version */
1398
void OPPROTO op_movw_eflags_T0_vm(void)
1399
{
1400
    int eflags;
1401
    eflags = T0;
1402
    CC_SRC = eflags & (CC_O | CC_S | CC_Z | CC_A | CC_P | CC_C);
1403
    DF = 1 - (2 * ((eflags >> 10) & 1));
1404
    /* we also update some system flags as in user mode */
1405
    env->eflags = (env->eflags & ~(FL_UPDATE_MASK16 | VIF_MASK)) |
1406
        (eflags & FL_UPDATE_MASK16);
1407
    if (eflags & IF_MASK) {
1408
        env->eflags |= VIF_MASK;
1409
        if (env->eflags & VIP_MASK) {
1410
            EIP = PARAM1;
1411
            raise_exception(EXCP0D_GPF);
1412
        }
1413
    }
1414
    FORCE_RET();
1415
}
1416

1417
void OPPROTO op_movl_eflags_T0_vm(void)
1418
{
1419
    int eflags;
1420
    eflags = T0;
1421
    CC_SRC = eflags & (CC_O | CC_S | CC_Z | CC_A | CC_P | CC_C);
1422
    DF = 1 - (2 * ((eflags >> 10) & 1));
1423
    /* we also update some system flags as in user mode */
1424
    env->eflags = (env->eflags & ~(FL_UPDATE_MASK32 | VIF_MASK)) |
1425
        (eflags & FL_UPDATE_MASK32);
1426
    if (eflags & IF_MASK) {
1427
        env->eflags |= VIF_MASK;
1428
        if (env->eflags & VIP_MASK) {
1429
            EIP = PARAM1;
1430
            raise_exception(EXCP0D_GPF);
1431
        }
1432
    }
1433
    FORCE_RET();
1434
}
1435
#endif
1436

    
1437
/* XXX: compute only O flag */
1438
void OPPROTO op_movb_eflags_T0(void)
1439
{
1440
    int of;
1441
    of = cc_table[CC_OP].compute_all() & CC_O;
1442
    CC_SRC = (T0 & (CC_S | CC_Z | CC_A | CC_P | CC_C)) | of;
1443
}
1444

    
1445
void OPPROTO op_movl_T0_eflags(void)
1446
{
1447
    int eflags;
1448
    eflags = cc_table[CC_OP].compute_all();
1449
    eflags |= (DF & DF_MASK);
1450
    eflags |= env->eflags & ~(VM_MASK | RF_MASK);
1451
    T0 = eflags;
1452
}
1453

    
1454
/* vm86plus version */
1455
#if 0
1456
void OPPROTO op_movl_T0_eflags_vm(void)
1457
{
1458
    int eflags;
1459
    eflags = cc_table[CC_OP].compute_all();
1460
    eflags |= (DF & DF_MASK);
1461
    eflags |= env->eflags & ~(VM_MASK | RF_MASK | IF_MASK);
1462
    if (env->eflags & VIF_MASK)
1463
        eflags |= IF_MASK;
1464
    T0 = eflags;
1465
}
1466
#endif
1467

    
1468
void OPPROTO op_cld(void)
1469
{
1470
    DF = 1;
1471
}
1472

    
1473
void OPPROTO op_std(void)
1474
{
1475
    DF = -1;
1476
}
1477

    
1478
void OPPROTO op_clc(void)
1479
{
1480
    int eflags;
1481
    eflags = cc_table[CC_OP].compute_all();
1482
    eflags &= ~CC_C;
1483
    CC_SRC = eflags;
1484
}
1485

    
1486
void OPPROTO op_stc(void)
1487
{
1488
    int eflags;
1489
    eflags = cc_table[CC_OP].compute_all();
1490
    eflags |= CC_C;
1491
    CC_SRC = eflags;
1492
}
1493

    
1494
void OPPROTO op_cmc(void)
1495
{
1496
    int eflags;
1497
    eflags = cc_table[CC_OP].compute_all();
1498
    eflags ^= CC_C;
1499
    CC_SRC = eflags;
1500
}
1501

    
1502
void OPPROTO op_salc(void)
1503
{
1504
    int cf;
1505
    cf = cc_table[CC_OP].compute_c();
1506
    EAX = (EAX & ~0xff) | ((-cf) & 0xff);
1507
}
1508

    
1509
static int compute_all_eflags(void)
1510
{
1511
    return CC_SRC;
1512
}
1513

    
1514
static int compute_c_eflags(void)
1515
{
1516
    return CC_SRC & CC_C;
1517
}
1518

    
1519
CCTable cc_table[CC_OP_NB] = {
1520
    [CC_OP_DYNAMIC] = { /* should never happen */ },
1521

    
1522
    [CC_OP_EFLAGS] = { compute_all_eflags, compute_c_eflags },
1523

    
1524
    [CC_OP_MULB] = { compute_all_mulb, compute_c_mull },
1525
    [CC_OP_MULW] = { compute_all_mulw, compute_c_mull },
1526
    [CC_OP_MULL] = { compute_all_mull, compute_c_mull },
1527

    
1528
    [CC_OP_ADDB] = { compute_all_addb, compute_c_addb },
1529
    [CC_OP_ADDW] = { compute_all_addw, compute_c_addw  },
1530
    [CC_OP_ADDL] = { compute_all_addl, compute_c_addl  },
1531

    
1532
    [CC_OP_ADCB] = { compute_all_adcb, compute_c_adcb },
1533
    [CC_OP_ADCW] = { compute_all_adcw, compute_c_adcw  },
1534
    [CC_OP_ADCL] = { compute_all_adcl, compute_c_adcl  },
1535

    
1536
    [CC_OP_SUBB] = { compute_all_subb, compute_c_subb  },
1537
    [CC_OP_SUBW] = { compute_all_subw, compute_c_subw  },
1538
    [CC_OP_SUBL] = { compute_all_subl, compute_c_subl  },
1539
    
1540
    [CC_OP_SBBB] = { compute_all_sbbb, compute_c_sbbb  },
1541
    [CC_OP_SBBW] = { compute_all_sbbw, compute_c_sbbw  },
1542
    [CC_OP_SBBL] = { compute_all_sbbl, compute_c_sbbl  },
1543
    
1544
    [CC_OP_LOGICB] = { compute_all_logicb, compute_c_logicb },
1545
    [CC_OP_LOGICW] = { compute_all_logicw, compute_c_logicw },
1546
    [CC_OP_LOGICL] = { compute_all_logicl, compute_c_logicl },
1547
    
1548
    [CC_OP_INCB] = { compute_all_incb, compute_c_incl },
1549
    [CC_OP_INCW] = { compute_all_incw, compute_c_incl },
1550
    [CC_OP_INCL] = { compute_all_incl, compute_c_incl },
1551
    
1552
    [CC_OP_DECB] = { compute_all_decb, compute_c_incl },
1553
    [CC_OP_DECW] = { compute_all_decw, compute_c_incl },
1554
    [CC_OP_DECL] = { compute_all_decl, compute_c_incl },
1555
    
1556
    [CC_OP_SHLB] = { compute_all_shlb, compute_c_shlb },
1557
    [CC_OP_SHLW] = { compute_all_shlw, compute_c_shlw },
1558
    [CC_OP_SHLL] = { compute_all_shll, compute_c_shll },
1559

    
1560
    [CC_OP_SARB] = { compute_all_sarb, compute_c_sarl },
1561
    [CC_OP_SARW] = { compute_all_sarw, compute_c_sarl },
1562
    [CC_OP_SARL] = { compute_all_sarl, compute_c_sarl },
1563

    
1564
#ifdef TARGET_X86_64
1565
    [CC_OP_MULQ] = { compute_all_mulq, compute_c_mull },
1566

    
1567
    [CC_OP_ADDQ] = { compute_all_addq, compute_c_addq  },
1568

    
1569
    [CC_OP_ADCQ] = { compute_all_adcq, compute_c_adcq  },
1570

    
1571
    [CC_OP_SUBQ] = { compute_all_subq, compute_c_subq  },
1572
    
1573
    [CC_OP_SBBQ] = { compute_all_sbbq, compute_c_sbbq  },
1574
    
1575
    [CC_OP_LOGICQ] = { compute_all_logicq, compute_c_logicq },
1576
    
1577
    [CC_OP_INCQ] = { compute_all_incq, compute_c_incl },
1578

    
1579
    [CC_OP_DECQ] = { compute_all_decq, compute_c_incl },
1580

    
1581
    [CC_OP_SHLQ] = { compute_all_shlq, compute_c_shlq },
1582

    
1583
    [CC_OP_SARQ] = { compute_all_sarq, compute_c_sarl },
1584
#endif
1585
};
1586

    
1587
/* floating point support. Some of the code for complicated x87
1588
   functions comes from the LGPL'ed x86 emulator found in the Willows
1589
   TWIN windows emulator. */
1590

    
1591
#if defined(__powerpc__)
1592
extern CPU86_LDouble copysign(CPU86_LDouble, CPU86_LDouble);
1593

    
1594
/* correct (but slow) PowerPC rint() (glibc version is incorrect) */
1595
double qemu_rint(double x)
1596
{
1597
    double y = 4503599627370496.0;
1598
    if (fabs(x) >= y)
1599
        return x;
1600
    if (x < 0) 
1601
        y = -y;
1602
    y = (x + y) - y;
1603
    if (y == 0.0)
1604
        y = copysign(y, x);
1605
    return y;
1606
}
1607

    
1608
#define rint qemu_rint
1609
#endif
1610

    
1611
/* fp load FT0 */
1612

    
1613
void OPPROTO op_flds_FT0_A0(void)
1614
{
1615
#ifdef USE_FP_CONVERT
1616
    FP_CONVERT.i32 = ldl(A0);
1617
    FT0 = FP_CONVERT.f;
1618
#else
1619
    FT0 = ldfl(A0);
1620
#endif
1621
}
1622

    
1623
void OPPROTO op_fldl_FT0_A0(void)
1624
{
1625
#ifdef USE_FP_CONVERT
1626
    FP_CONVERT.i64 = ldq(A0);
1627
    FT0 = FP_CONVERT.d;
1628
#else
1629
    FT0 = ldfq(A0);
1630
#endif
1631
}
1632

    
1633
/* helpers are needed to avoid static constant reference. XXX: find a better way */
1634
#ifdef USE_INT_TO_FLOAT_HELPERS
1635

    
1636
void helper_fild_FT0_A0(void)
1637
{
1638
    FT0 = (CPU86_LDouble)ldsw(A0);
1639
}
1640

    
1641
void helper_fildl_FT0_A0(void)
1642
{
1643
    FT0 = (CPU86_LDouble)((int32_t)ldl(A0));
1644
}
1645

    
1646
void helper_fildll_FT0_A0(void)
1647
{
1648
    FT0 = (CPU86_LDouble)((int64_t)ldq(A0));
1649
}
1650

    
1651
void OPPROTO op_fild_FT0_A0(void)
1652
{
1653
    helper_fild_FT0_A0();
1654
}
1655

    
1656
void OPPROTO op_fildl_FT0_A0(void)
1657
{
1658
    helper_fildl_FT0_A0();
1659
}
1660

    
1661
void OPPROTO op_fildll_FT0_A0(void)
1662
{
1663
    helper_fildll_FT0_A0();
1664
}
1665

    
1666
#else
1667

    
1668
void OPPROTO op_fild_FT0_A0(void)
1669
{
1670
#ifdef USE_FP_CONVERT
1671
    FP_CONVERT.i32 = ldsw(A0);
1672
    FT0 = (CPU86_LDouble)FP_CONVERT.i32;
1673
#else
1674
    FT0 = (CPU86_LDouble)ldsw(A0);
1675
#endif
1676
}
1677

    
1678
void OPPROTO op_fildl_FT0_A0(void)
1679
{
1680
#ifdef USE_FP_CONVERT
1681
    FP_CONVERT.i32 = (int32_t) ldl(A0);
1682
    FT0 = (CPU86_LDouble)FP_CONVERT.i32;
1683
#else
1684
    FT0 = (CPU86_LDouble)((int32_t)ldl(A0));
1685
#endif
1686
}
1687

    
1688
void OPPROTO op_fildll_FT0_A0(void)
1689
{
1690
#ifdef USE_FP_CONVERT
1691
    FP_CONVERT.i64 = (int64_t) ldq(A0);
1692
    FT0 = (CPU86_LDouble)FP_CONVERT.i64;
1693
#else
1694
    FT0 = (CPU86_LDouble)((int64_t)ldq(A0));
1695
#endif
1696
}
1697
#endif
1698

    
1699
/* fp load ST0 */
1700

    
1701
void OPPROTO op_flds_ST0_A0(void)
1702
{
1703
    int new_fpstt;
1704
    new_fpstt = (env->fpstt - 1) & 7;
1705
#ifdef USE_FP_CONVERT
1706
    FP_CONVERT.i32 = ldl(A0);
1707
    env->fpregs[new_fpstt].d = FP_CONVERT.f;
1708
#else
1709
    env->fpregs[new_fpstt].d = ldfl(A0);
1710
#endif
1711
    env->fpstt = new_fpstt;
1712
    env->fptags[new_fpstt] = 0; /* validate stack entry */
1713
}
1714

    
1715
void OPPROTO op_fldl_ST0_A0(void)
1716
{
1717
    int new_fpstt;
1718
    new_fpstt = (env->fpstt - 1) & 7;
1719
#ifdef USE_FP_CONVERT
1720
    FP_CONVERT.i64 = ldq(A0);
1721
    env->fpregs[new_fpstt].d = FP_CONVERT.d;
1722
#else
1723
    env->fpregs[new_fpstt].d = ldfq(A0);
1724
#endif
1725
    env->fpstt = new_fpstt;
1726
    env->fptags[new_fpstt] = 0; /* validate stack entry */
1727
}
1728

    
1729
void OPPROTO op_fldt_ST0_A0(void)
1730
{
1731
    helper_fldt_ST0_A0();
1732
}
1733

    
1734
/* helpers are needed to avoid static constant reference. XXX: find a better way */
1735
#ifdef USE_INT_TO_FLOAT_HELPERS
1736

    
1737
void helper_fild_ST0_A0(void)
1738
{
1739
    int new_fpstt;
1740
    new_fpstt = (env->fpstt - 1) & 7;
1741
    env->fpregs[new_fpstt].d = (CPU86_LDouble)ldsw(A0);
1742
    env->fpstt = new_fpstt;
1743
    env->fptags[new_fpstt] = 0; /* validate stack entry */
1744
}
1745

    
1746
void helper_fildl_ST0_A0(void)
1747
{
1748
    int new_fpstt;
1749
    new_fpstt = (env->fpstt - 1) & 7;
1750
    env->fpregs[new_fpstt].d = (CPU86_LDouble)((int32_t)ldl(A0));
1751
    env->fpstt = new_fpstt;
1752
    env->fptags[new_fpstt] = 0; /* validate stack entry */
1753
}
1754

    
1755
void helper_fildll_ST0_A0(void)
1756
{
1757
    int new_fpstt;
1758
    new_fpstt = (env->fpstt - 1) & 7;
1759
    env->fpregs[new_fpstt].d = (CPU86_LDouble)((int64_t)ldq(A0));
1760
    env->fpstt = new_fpstt;
1761
    env->fptags[new_fpstt] = 0; /* validate stack entry */
1762
}
1763

    
1764
void OPPROTO op_fild_ST0_A0(void)
1765
{
1766
    helper_fild_ST0_A0();
1767
}
1768

    
1769
void OPPROTO op_fildl_ST0_A0(void)
1770
{
1771
    helper_fildl_ST0_A0();
1772
}
1773

    
1774
void OPPROTO op_fildll_ST0_A0(void)
1775
{
1776
    helper_fildll_ST0_A0();
1777
}
1778

    
1779
#else
1780

    
1781
void OPPROTO op_fild_ST0_A0(void)
1782
{
1783
    int new_fpstt;
1784
    new_fpstt = (env->fpstt - 1) & 7;
1785
#ifdef USE_FP_CONVERT
1786
    FP_CONVERT.i32 = ldsw(A0);
1787
    env->fpregs[new_fpstt].d = (CPU86_LDouble)FP_CONVERT.i32;
1788
#else
1789
    env->fpregs[new_fpstt].d = (CPU86_LDouble)ldsw(A0);
1790
#endif
1791
    env->fpstt = new_fpstt;
1792
    env->fptags[new_fpstt] = 0; /* validate stack entry */
1793
}
1794

    
1795
void OPPROTO op_fildl_ST0_A0(void)
1796
{
1797
    int new_fpstt;
1798
    new_fpstt = (env->fpstt - 1) & 7;
1799
#ifdef USE_FP_CONVERT
1800
    FP_CONVERT.i32 = (int32_t) ldl(A0);
1801
    env->fpregs[new_fpstt].d = (CPU86_LDouble)FP_CONVERT.i32;
1802
#else
1803
    env->fpregs[new_fpstt].d = (CPU86_LDouble)((int32_t)ldl(A0));
1804
#endif
1805
    env->fpstt = new_fpstt;
1806
    env->fptags[new_fpstt] = 0; /* validate stack entry */
1807
}
1808

    
1809
void OPPROTO op_fildll_ST0_A0(void)
1810
{
1811
    int new_fpstt;
1812
    new_fpstt = (env->fpstt - 1) & 7;
1813
#ifdef USE_FP_CONVERT
1814
    FP_CONVERT.i64 = (int64_t) ldq(A0);
1815
    env->fpregs[new_fpstt].d = (CPU86_LDouble)FP_CONVERT.i64;
1816
#else
1817
    env->fpregs[new_fpstt].d = (CPU86_LDouble)((int64_t)ldq(A0));
1818
#endif
1819
    env->fpstt = new_fpstt;
1820
    env->fptags[new_fpstt] = 0; /* validate stack entry */
1821
}
1822

    
1823
#endif
1824

    
1825
/* fp store */
1826

    
1827
void OPPROTO op_fsts_ST0_A0(void)
1828
{
1829
#ifdef USE_FP_CONVERT
1830
    FP_CONVERT.f = (float)ST0;
1831
    stfl(A0, FP_CONVERT.f);
1832
#else
1833
    stfl(A0, (float)ST0);
1834
#endif
1835
}
1836

    
1837
void OPPROTO op_fstl_ST0_A0(void)
1838
{
1839
    stfq(A0, (double)ST0);
1840
}
1841

    
1842
void OPPROTO op_fstt_ST0_A0(void)
1843
{
1844
    helper_fstt_ST0_A0();
1845
}
1846

    
1847
void OPPROTO op_fist_ST0_A0(void)
1848
{
1849
#if defined(__sparc__) && !defined(__sparc_v9__)
1850
    register CPU86_LDouble d asm("o0");
1851
#else
1852
    CPU86_LDouble d;
1853
#endif
1854
    int val;
1855

    
1856
    d = ST0;
1857
    val = lrint(d);
1858
    if (val != (int16_t)val)
1859
        val = -32768;
1860
    stw(A0, val);
1861
}
1862

    
1863
void OPPROTO op_fistl_ST0_A0(void)
1864
{
1865
#if defined(__sparc__) && !defined(__sparc_v9__)
1866
    register CPU86_LDouble d asm("o0");
1867
#else
1868
    CPU86_LDouble d;
1869
#endif
1870
    int val;
1871

    
1872
    d = ST0;
1873
    val = lrint(d);
1874
    stl(A0, val);
1875
}
1876

    
1877
void OPPROTO op_fistll_ST0_A0(void)
1878
{
1879
#if defined(__sparc__) && !defined(__sparc_v9__)
1880
    register CPU86_LDouble d asm("o0");
1881
#else
1882
    CPU86_LDouble d;
1883
#endif
1884
    int64_t val;
1885

    
1886
    d = ST0;
1887
    val = llrint(d);
1888
    stq(A0, val);
1889
}
1890

    
1891
void OPPROTO op_fbld_ST0_A0(void)
1892
{
1893
    helper_fbld_ST0_A0();
1894
}
1895

    
1896
void OPPROTO op_fbst_ST0_A0(void)
1897
{
1898
    helper_fbst_ST0_A0();
1899
}
1900

    
1901
/* FPU move */
1902

    
1903
void OPPROTO op_fpush(void)
1904
{
1905
    fpush();
1906
}
1907

    
1908
void OPPROTO op_fpop(void)
1909
{
1910
    fpop();
1911
}
1912

    
1913
void OPPROTO op_fdecstp(void)
1914
{
1915
    env->fpstt = (env->fpstt - 1) & 7;
1916
    env->fpus &= (~0x4700);
1917
}
1918

    
1919
void OPPROTO op_fincstp(void)
1920
{
1921
    env->fpstt = (env->fpstt + 1) & 7;
1922
    env->fpus &= (~0x4700);
1923
}
1924

    
1925
void OPPROTO op_ffree_STN(void)
1926
{
1927
    env->fptags[(env->fpstt + PARAM1) & 7] = 1;
1928
}
1929

    
1930
void OPPROTO op_fmov_ST0_FT0(void)
1931
{
1932
    ST0 = FT0;
1933
}
1934

    
1935
void OPPROTO op_fmov_FT0_STN(void)
1936
{
1937
    FT0 = ST(PARAM1);
1938
}
1939

    
1940
void OPPROTO op_fmov_ST0_STN(void)
1941
{
1942
    ST0 = ST(PARAM1);
1943
}
1944

    
1945
void OPPROTO op_fmov_STN_ST0(void)
1946
{
1947
    ST(PARAM1) = ST0;
1948
}
1949

    
1950
void OPPROTO op_fxchg_ST0_STN(void)
1951
{
1952
    CPU86_LDouble tmp;
1953
    tmp = ST(PARAM1);
1954
    ST(PARAM1) = ST0;
1955
    ST0 = tmp;
1956
}
1957

    
1958
/* FPU operations */
1959

    
1960
/* XXX: handle nans */
1961
void OPPROTO op_fcom_ST0_FT0(void)
1962
{
1963
    env->fpus &= (~0x4500);        /* (C3,C2,C0) <-- 000 */
1964
    if (ST0 < FT0)
1965
        env->fpus |= 0x100;        /* (C3,C2,C0) <-- 001 */
1966
    else if (ST0 == FT0)
1967
        env->fpus |= 0x4000; /* (C3,C2,C0) <-- 100 */
1968
    FORCE_RET();
1969
}
1970

    
1971
/* XXX: handle nans */
1972
void OPPROTO op_fucom_ST0_FT0(void)
1973
{
1974
    env->fpus &= (~0x4500);        /* (C3,C2,C0) <-- 000 */
1975
    if (ST0 < FT0)
1976
        env->fpus |= 0x100;        /* (C3,C2,C0) <-- 001 */
1977
    else if (ST0 == FT0)
1978
        env->fpus |= 0x4000; /* (C3,C2,C0) <-- 100 */
1979
    FORCE_RET();
1980
}
1981

    
1982
/* XXX: handle nans */
1983
void OPPROTO op_fcomi_ST0_FT0(void)
1984
{
1985
    int eflags;
1986
    eflags = cc_table[CC_OP].compute_all();
1987
    eflags &= ~(CC_Z | CC_P | CC_C);
1988
    if (ST0 < FT0)
1989
        eflags |= CC_C;
1990
    else if (ST0 == FT0)
1991
        eflags |= CC_Z;
1992
    CC_SRC = eflags;
1993
    FORCE_RET();
1994
}
1995

    
1996
/* XXX: handle nans */
1997
void OPPROTO op_fucomi_ST0_FT0(void)
1998
{
1999
    int eflags;
2000
    eflags = cc_table[CC_OP].compute_all();
2001
    eflags &= ~(CC_Z | CC_P | CC_C);
2002
    if (ST0 < FT0)
2003
        eflags |= CC_C;
2004
    else if (ST0 == FT0)
2005
        eflags |= CC_Z;
2006
    CC_SRC = eflags;
2007
    FORCE_RET();
2008
}
2009

    
2010
void OPPROTO op_fcmov_ST0_STN_T0(void)
2011
{
2012
    if (T0) {
2013
        ST0 = ST(PARAM1);
2014
    }
2015
    FORCE_RET();
2016
}
2017

    
2018
void OPPROTO op_fadd_ST0_FT0(void)
2019
{
2020
    ST0 += FT0;
2021
}
2022

    
2023
void OPPROTO op_fmul_ST0_FT0(void)
2024
{
2025
    ST0 *= FT0;
2026
}
2027

    
2028
void OPPROTO op_fsub_ST0_FT0(void)
2029
{
2030
    ST0 -= FT0;
2031
}
2032

    
2033
void OPPROTO op_fsubr_ST0_FT0(void)
2034
{
2035
    ST0 = FT0 - ST0;
2036
}
2037

    
2038
void OPPROTO op_fdiv_ST0_FT0(void)
2039
{
2040
    ST0 = helper_fdiv(ST0, FT0);
2041
}
2042

    
2043
void OPPROTO op_fdivr_ST0_FT0(void)
2044
{
2045
    ST0 = helper_fdiv(FT0, ST0);
2046
}
2047

    
2048
/* fp operations between STN and ST0 */
2049

    
2050
void OPPROTO op_fadd_STN_ST0(void)
2051
{
2052
    ST(PARAM1) += ST0;
2053
}
2054

    
2055
void OPPROTO op_fmul_STN_ST0(void)
2056
{
2057
    ST(PARAM1) *= ST0;
2058
}
2059

    
2060
void OPPROTO op_fsub_STN_ST0(void)
2061
{
2062
    ST(PARAM1) -= ST0;
2063
}
2064

    
2065
void OPPROTO op_fsubr_STN_ST0(void)
2066
{
2067
    CPU86_LDouble *p;
2068
    p = &ST(PARAM1);
2069
    *p = ST0 - *p;
2070
}
2071

    
2072
void OPPROTO op_fdiv_STN_ST0(void)
2073
{
2074
    CPU86_LDouble *p;
2075
    p = &ST(PARAM1);
2076
    *p = helper_fdiv(*p, ST0);
2077
}
2078

    
2079
void OPPROTO op_fdivr_STN_ST0(void)
2080
{
2081
    CPU86_LDouble *p;
2082
    p = &ST(PARAM1);
2083
    *p = helper_fdiv(ST0, *p);
2084
}
2085

    
2086
/* misc FPU operations */
2087
void OPPROTO op_fchs_ST0(void)
2088
{
2089
    ST0 = -ST0;
2090
}
2091

    
2092
void OPPROTO op_fabs_ST0(void)
2093
{
2094
    ST0 = fabs(ST0);
2095
}
2096

    
2097
void OPPROTO op_fxam_ST0(void)
2098
{
2099
    helper_fxam_ST0();
2100
}
2101

    
2102
void OPPROTO op_fld1_ST0(void)
2103
{
2104
    ST0 = f15rk[1];
2105
}
2106

    
2107
void OPPROTO op_fldl2t_ST0(void)
2108
{
2109
    ST0 = f15rk[6];
2110
}
2111

    
2112
void OPPROTO op_fldl2e_ST0(void)
2113
{
2114
    ST0 = f15rk[5];
2115
}
2116

    
2117
void OPPROTO op_fldpi_ST0(void)
2118
{
2119
    ST0 = f15rk[2];
2120
}
2121

    
2122
void OPPROTO op_fldlg2_ST0(void)
2123
{
2124
    ST0 = f15rk[3];
2125
}
2126

    
2127
void OPPROTO op_fldln2_ST0(void)
2128
{
2129
    ST0 = f15rk[4];
2130
}
2131

    
2132
void OPPROTO op_fldz_ST0(void)
2133
{
2134
    ST0 = f15rk[0];
2135
}
2136

    
2137
void OPPROTO op_fldz_FT0(void)
2138
{
2139
    FT0 = f15rk[0];
2140
}
2141

    
2142
/* associated heplers to reduce generated code length and to simplify
2143
   relocation (FP constants are usually stored in .rodata section) */
2144

    
2145
void OPPROTO op_f2xm1(void)
2146
{
2147
    helper_f2xm1();
2148
}
2149

    
2150
void OPPROTO op_fyl2x(void)
2151
{
2152
    helper_fyl2x();
2153
}
2154

    
2155
void OPPROTO op_fptan(void)
2156
{
2157
    helper_fptan();
2158
}
2159

    
2160
void OPPROTO op_fpatan(void)
2161
{
2162
    helper_fpatan();
2163
}
2164

    
2165
void OPPROTO op_fxtract(void)
2166
{
2167
    helper_fxtract();
2168
}
2169

    
2170
void OPPROTO op_fprem1(void)
2171
{
2172
    helper_fprem1();
2173
}
2174

    
2175

    
2176
void OPPROTO op_fprem(void)
2177
{
2178
    helper_fprem();
2179
}
2180

    
2181
void OPPROTO op_fyl2xp1(void)
2182
{
2183
    helper_fyl2xp1();
2184
}
2185

    
2186
void OPPROTO op_fsqrt(void)
2187
{
2188
    helper_fsqrt();
2189
}
2190

    
2191
void OPPROTO op_fsincos(void)
2192
{
2193
    helper_fsincos();
2194
}
2195

    
2196
void OPPROTO op_frndint(void)
2197
{
2198
    helper_frndint();
2199
}
2200

    
2201
void OPPROTO op_fscale(void)
2202
{
2203
    helper_fscale();
2204
}
2205

    
2206
void OPPROTO op_fsin(void)
2207
{
2208
    helper_fsin();
2209
}
2210

    
2211
void OPPROTO op_fcos(void)
2212
{
2213
    helper_fcos();
2214
}
2215

    
2216
void OPPROTO op_fnstsw_A0(void)
2217
{
2218
    int fpus;
2219
    fpus = (env->fpus & ~0x3800) | (env->fpstt & 0x7) << 11;
2220
    stw(A0, fpus);
2221
}
2222

    
2223
void OPPROTO op_fnstsw_EAX(void)
2224
{
2225
    int fpus;
2226
    fpus = (env->fpus & ~0x3800) | (env->fpstt & 0x7) << 11;
2227
    EAX = (EAX & ~0xffff) | fpus;
2228
}
2229

    
2230
void OPPROTO op_fnstcw_A0(void)
2231
{
2232
    stw(A0, env->fpuc);
2233
}
2234

    
2235
void OPPROTO op_fldcw_A0(void)
2236
{
2237
    int rnd_type;
2238
    env->fpuc = lduw(A0);
2239
    /* set rounding mode */
2240
    switch(env->fpuc & RC_MASK) {
2241
    default:
2242
    case RC_NEAR:
2243
        rnd_type = FE_TONEAREST;
2244
        break;
2245
    case RC_DOWN:
2246
        rnd_type = FE_DOWNWARD;
2247
        break;
2248
    case RC_UP:
2249
        rnd_type = FE_UPWARD;
2250
        break;
2251
    case RC_CHOP:
2252
        rnd_type = FE_TOWARDZERO;
2253
        break;
2254
    }
2255
    fesetround(rnd_type);
2256
}
2257

    
2258
void OPPROTO op_fclex(void)
2259
{
2260
    env->fpus &= 0x7f00;
2261
}
2262

    
2263
void OPPROTO op_fwait(void)
2264
{
2265
    if (env->fpus & FPUS_SE)
2266
        fpu_raise_exception();
2267
    FORCE_RET();
2268
}
2269

    
2270
void OPPROTO op_fninit(void)
2271
{
2272
    env->fpus = 0;
2273
    env->fpstt = 0;
2274
    env->fpuc = 0x37f;
2275
    env->fptags[0] = 1;
2276
    env->fptags[1] = 1;
2277
    env->fptags[2] = 1;
2278
    env->fptags[3] = 1;
2279
    env->fptags[4] = 1;
2280
    env->fptags[5] = 1;
2281
    env->fptags[6] = 1;
2282
    env->fptags[7] = 1;
2283
}
2284

    
2285
void OPPROTO op_fnstenv_A0(void)
2286
{
2287
    helper_fstenv(A0, PARAM1);
2288
}
2289

    
2290
void OPPROTO op_fldenv_A0(void)
2291
{
2292
    helper_fldenv(A0, PARAM1);
2293
}
2294

    
2295
void OPPROTO op_fnsave_A0(void)
2296
{
2297
    helper_fsave(A0, PARAM1);
2298
}
2299

    
2300
void OPPROTO op_frstor_A0(void)
2301
{
2302
    helper_frstor(A0, PARAM1);
2303
}
2304

    
2305
/* threading support */
2306
void OPPROTO op_lock(void)
2307
{
2308
    cpu_lock();
2309
}
2310

    
2311
void OPPROTO op_unlock(void)
2312
{
2313
    cpu_unlock();
2314
}
2315

    
2316
/* SSE support */
2317
static inline void memcpy16(void *d, void *s)
2318
{
2319
    ((uint32_t *)d)[0] = ((uint32_t *)s)[0];
2320
    ((uint32_t *)d)[1] = ((uint32_t *)s)[1];
2321
    ((uint32_t *)d)[2] = ((uint32_t *)s)[2];
2322
    ((uint32_t *)d)[3] = ((uint32_t *)s)[3];
2323
}
2324

    
2325
void OPPROTO op_movo(void)
2326
{
2327
    /* XXX: badly generated code */
2328
    XMMReg *d, *s;
2329
    d = (XMMReg *)((char *)env + PARAM1);
2330
    s = (XMMReg *)((char *)env + PARAM2);
2331
    memcpy16(d, s);
2332
}
2333

    
2334
void OPPROTO op_movq(void)
2335
{
2336
    uint64_t *d, *s;
2337
    d = (uint64_t *)((char *)env + PARAM1);
2338
    s = (uint64_t *)((char *)env + PARAM2);
2339
    *d = *s;
2340
}
2341

    
2342
void OPPROTO op_movl(void)
2343
{
2344
    uint32_t *d, *s;
2345
    d = (uint32_t *)((char *)env + PARAM1);
2346
    s = (uint32_t *)((char *)env + PARAM2);
2347
    *d = *s;
2348
}
2349

    
2350
void OPPROTO op_movq_env_0(void)
2351
{
2352
    uint64_t *d;
2353
    d = (uint64_t *)((char *)env + PARAM1);
2354
    *d = 0;
2355
}
2356

    
2357
void OPPROTO op_fxsave_A0(void)
2358
{
2359
    helper_fxsave(A0, PARAM1);
2360
}
2361

    
2362
void OPPROTO op_fxrstor_A0(void)
2363
{
2364
    helper_fxrstor(A0, PARAM1);
2365
}
2366

    
2367
/* XXX: optimize by storing fptt and fptags in the static cpu state */
2368
void OPPROTO op_enter_mmx(void)
2369
{
2370
    env->fpstt = 0;
2371
    *(uint32_t *)(env->fptags) = 0;
2372
    *(uint32_t *)(env->fptags + 4) = 0;
2373
}
2374

    
2375
void OPPROTO op_emms(void)
2376
{
2377
    /* set to empty state */
2378
    *(uint32_t *)(env->fptags) = 0x01010101;
2379
    *(uint32_t *)(env->fptags + 4) = 0x01010101;
2380
}
2381

    
2382
#define SHIFT 0
2383
#include "ops_sse.h"
2384

    
2385
#define SHIFT 1
2386
#include "ops_sse.h"