Statistics
| Branch: | Revision:

root / gdbstub.c @ 36d23958

History | View | Annotate | Download (30.3 kB)

1
/*
2
 * gdb server stub
3
 * 
4
 * Copyright (c) 2003-2005 Fabrice Bellard
5
 *
6
 * 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
9
 * version 2 of the License, or (at your option) any later version.
10
 *
11
 * This library is distributed in the hope that it will be useful,
12
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
14
 * Lesser General Public License for more details.
15
 *
16
 * You should have received a copy of the GNU Lesser General Public
17
 * License along with this library; if not, write to the Free Software
18
 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
19
 */
20
#include "config.h"
21
#ifdef CONFIG_USER_ONLY
22
#include <stdlib.h>
23
#include <stdio.h>
24
#include <stdarg.h>
25
#include <string.h>
26
#include <errno.h>
27
#include <unistd.h>
28
#include <fcntl.h>
29

    
30
#include "qemu.h"
31
#else
32
#include "vl.h"
33
#endif
34

    
35
#include "qemu_socket.h"
36
#ifdef _WIN32
37
/* XXX: these constants may be independent of the host ones even for Unix */
38
#ifndef SIGTRAP
39
#define SIGTRAP 5
40
#endif
41
#ifndef SIGINT
42
#define SIGINT 2
43
#endif
44
#else
45
#include <signal.h>
46
#endif
47

    
48
//#define DEBUG_GDB
49

    
50
enum RSState {
51
    RS_IDLE,
52
    RS_GETLINE,
53
    RS_CHKSUM1,
54
    RS_CHKSUM2,
55
    RS_SYSCALL,
56
};
57
typedef struct GDBState {
58
    CPUState *env; /* current CPU */
59
    enum RSState state; /* parsing state */
60
    char line_buf[4096];
61
    int line_buf_index;
62
    int line_csum;
63
    char last_packet[4100];
64
    int last_packet_len;
65
#ifdef CONFIG_USER_ONLY
66
    int fd;
67
    int running_state;
68
#else
69
    CharDriverState *chr;
70
#endif
71
} GDBState;
72

    
73
#ifdef CONFIG_USER_ONLY
74
/* XXX: This is not thread safe.  Do we care?  */
75
static int gdbserver_fd = -1;
76

    
77
/* XXX: remove this hack.  */
78
static GDBState gdbserver_state;
79

    
80
static int get_char(GDBState *s)
81
{
82
    uint8_t ch;
83
    int ret;
84

    
85
    for(;;) {
86
        ret = recv(s->fd, &ch, 1, 0);
87
        if (ret < 0) {
88
            if (errno != EINTR && errno != EAGAIN)
89
                return -1;
90
        } else if (ret == 0) {
91
            return -1;
92
        } else {
93
            break;
94
        }
95
    }
96
    return ch;
97
}
98
#endif
99

    
100
/* GDB stub state for use by semihosting syscalls.  */
101
static GDBState *gdb_syscall_state;
102
static gdb_syscall_complete_cb gdb_current_syscall_cb;
103

    
104
enum {
105
    GDB_SYS_UNKNOWN,
106
    GDB_SYS_ENABLED,
107
    GDB_SYS_DISABLED,
108
} gdb_syscall_mode;
109

    
110
/* If gdb is connected when the first semihosting syscall occurs then use
111
   remote gdb syscalls.  Otherwise use native file IO.  */
112
int use_gdb_syscalls(void)
113
{
114
    if (gdb_syscall_mode == GDB_SYS_UNKNOWN) {
115
        gdb_syscall_mode = (gdb_syscall_state ? GDB_SYS_ENABLED
116
                                              : GDB_SYS_DISABLED);
117
    }
118
    return gdb_syscall_mode == GDB_SYS_ENABLED;
119
}
120

    
121
static void put_buffer(GDBState *s, const uint8_t *buf, int len)
122
{
123
#ifdef CONFIG_USER_ONLY
124
    int ret;
125

    
126
    while (len > 0) {
127
        ret = send(s->fd, buf, len, 0);
128
        if (ret < 0) {
129
            if (errno != EINTR && errno != EAGAIN)
130
                return;
131
        } else {
132
            buf += ret;
133
            len -= ret;
134
        }
135
    }
136
#else
137
    qemu_chr_write(s->chr, buf, len);
138
#endif
139
}
140

    
141
static inline int fromhex(int v)
142
{
143
    if (v >= '0' && v <= '9')
144
        return v - '0';
145
    else if (v >= 'A' && v <= 'F')
146
        return v - 'A' + 10;
147
    else if (v >= 'a' && v <= 'f')
148
        return v - 'a' + 10;
149
    else
150
        return 0;
151
}
152

    
153
static inline int tohex(int v)
154
{
155
    if (v < 10)
156
        return v + '0';
157
    else
158
        return v - 10 + 'a';
159
}
160

    
161
static void memtohex(char *buf, const uint8_t *mem, int len)
162
{
163
    int i, c;
164
    char *q;
165
    q = buf;
166
    for(i = 0; i < len; i++) {
167
        c = mem[i];
168
        *q++ = tohex(c >> 4);
169
        *q++ = tohex(c & 0xf);
170
    }
171
    *q = '\0';
172
}
173

    
174
static void hextomem(uint8_t *mem, const char *buf, int len)
175
{
176
    int i;
177

    
178
    for(i = 0; i < len; i++) {
179
        mem[i] = (fromhex(buf[0]) << 4) | fromhex(buf[1]);
180
        buf += 2;
181
    }
182
}
183

    
184
/* return -1 if error, 0 if OK */
185
static int put_packet(GDBState *s, char *buf)
186
{
187
    int len, csum, i;
188
    char *p;
189

    
190
#ifdef DEBUG_GDB
191
    printf("reply='%s'\n", buf);
192
#endif
193

    
194
    for(;;) {
195
        p = s->last_packet;
196
        *(p++) = '$';
197
        len = strlen(buf);
198
        memcpy(p, buf, len);
199
        p += len;
200
        csum = 0;
201
        for(i = 0; i < len; i++) {
202
            csum += buf[i];
203
        }
204
        *(p++) = '#';
205
        *(p++) = tohex((csum >> 4) & 0xf);
206
        *(p++) = tohex((csum) & 0xf);
207

    
208
        s->last_packet_len = p - s->last_packet;
209
        put_buffer(s, s->last_packet, s->last_packet_len);
210

    
211
#ifdef CONFIG_USER_ONLY
212
        i = get_char(s);
213
        if (i < 0)
214
            return -1;
215
        if (i == '+')
216
            break;
217
#else
218
        break;
219
#endif
220
    }
221
    return 0;
222
}
223

    
224
#if defined(TARGET_I386)
225

    
226
static int cpu_gdb_read_registers(CPUState *env, uint8_t *mem_buf)
227
{
228
    uint32_t *registers = (uint32_t *)mem_buf;
229
    int i, fpus;
230

    
231
    for(i = 0; i < 8; i++) {
232
        registers[i] = env->regs[i];
233
    }
234
    registers[8] = env->eip;
235
    registers[9] = env->eflags;
236
    registers[10] = env->segs[R_CS].selector;
237
    registers[11] = env->segs[R_SS].selector;
238
    registers[12] = env->segs[R_DS].selector;
239
    registers[13] = env->segs[R_ES].selector;
240
    registers[14] = env->segs[R_FS].selector;
241
    registers[15] = env->segs[R_GS].selector;
242
    /* XXX: convert floats */
243
    for(i = 0; i < 8; i++) {
244
        memcpy(mem_buf + 16 * 4 + i * 10, &env->fpregs[i], 10);
245
    }
246
    registers[36] = env->fpuc;
247
    fpus = (env->fpus & ~0x3800) | (env->fpstt & 0x7) << 11;
248
    registers[37] = fpus;
249
    registers[38] = 0; /* XXX: convert tags */
250
    registers[39] = 0; /* fiseg */
251
    registers[40] = 0; /* fioff */
252
    registers[41] = 0; /* foseg */
253
    registers[42] = 0; /* fooff */
254
    registers[43] = 0; /* fop */
255
    
256
    for(i = 0; i < 16; i++)
257
        tswapls(&registers[i]);
258
    for(i = 36; i < 44; i++)
259
        tswapls(&registers[i]);
260
    return 44 * 4;
261
}
262

    
263
static void cpu_gdb_write_registers(CPUState *env, uint8_t *mem_buf, int size)
264
{
265
    uint32_t *registers = (uint32_t *)mem_buf;
266
    int i;
267

    
268
    for(i = 0; i < 8; i++) {
269
        env->regs[i] = tswapl(registers[i]);
270
    }
271
    env->eip = tswapl(registers[8]);
272
    env->eflags = tswapl(registers[9]);
273
#if defined(CONFIG_USER_ONLY)
274
#define LOAD_SEG(index, sreg)\
275
            if (tswapl(registers[index]) != env->segs[sreg].selector)\
276
                cpu_x86_load_seg(env, sreg, tswapl(registers[index]));
277
            LOAD_SEG(10, R_CS);
278
            LOAD_SEG(11, R_SS);
279
            LOAD_SEG(12, R_DS);
280
            LOAD_SEG(13, R_ES);
281
            LOAD_SEG(14, R_FS);
282
            LOAD_SEG(15, R_GS);
283
#endif
284
}
285

    
286
#elif defined (TARGET_PPC)
287
static int cpu_gdb_read_registers(CPUState *env, uint8_t *mem_buf)
288
{
289
    uint32_t *registers = (uint32_t *)mem_buf, tmp;
290
    int i;
291

    
292
    /* fill in gprs */
293
    for(i = 0; i < 32; i++) {
294
        registers[i] = tswapl(env->gpr[i]);
295
    }
296
    /* fill in fprs */
297
    for (i = 0; i < 32; i++) {
298
        registers[(i * 2) + 32] = tswapl(*((uint32_t *)&env->fpr[i]));
299
        registers[(i * 2) + 33] = tswapl(*((uint32_t *)&env->fpr[i] + 1));
300
    }
301
    /* nip, msr, ccr, lnk, ctr, xer, mq */
302
    registers[96] = tswapl(env->nip);
303
    registers[97] = tswapl(do_load_msr(env));
304
    tmp = 0;
305
    for (i = 0; i < 8; i++)
306
        tmp |= env->crf[i] << (32 - ((i + 1) * 4));
307
    registers[98] = tswapl(tmp);
308
    registers[99] = tswapl(env->lr);
309
    registers[100] = tswapl(env->ctr);
310
    registers[101] = tswapl(do_load_xer(env));
311
    registers[102] = 0;
312

    
313
    return 103 * 4;
314
}
315

    
316
static void cpu_gdb_write_registers(CPUState *env, uint8_t *mem_buf, int size)
317
{
318
    uint32_t *registers = (uint32_t *)mem_buf;
319
    int i;
320

    
321
    /* fill in gprs */
322
    for (i = 0; i < 32; i++) {
323
        env->gpr[i] = tswapl(registers[i]);
324
    }
325
    /* fill in fprs */
326
    for (i = 0; i < 32; i++) {
327
        *((uint32_t *)&env->fpr[i]) = tswapl(registers[(i * 2) + 32]);
328
        *((uint32_t *)&env->fpr[i] + 1) = tswapl(registers[(i * 2) + 33]);
329
    }
330
    /* nip, msr, ccr, lnk, ctr, xer, mq */
331
    env->nip = tswapl(registers[96]);
332
    do_store_msr(env, tswapl(registers[97]));
333
    registers[98] = tswapl(registers[98]);
334
    for (i = 0; i < 8; i++)
335
        env->crf[i] = (registers[98] >> (32 - ((i + 1) * 4))) & 0xF;
336
    env->lr = tswapl(registers[99]);
337
    env->ctr = tswapl(registers[100]);
338
    do_store_xer(env, tswapl(registers[101]));
339
}
340
#elif defined (TARGET_SPARC)
341
static int cpu_gdb_read_registers(CPUState *env, uint8_t *mem_buf)
342
{
343
    target_ulong *registers = (target_ulong *)mem_buf;
344
    int i;
345

    
346
    /* fill in g0..g7 */
347
    for(i = 0; i < 8; i++) {
348
        registers[i] = tswapl(env->gregs[i]);
349
    }
350
    /* fill in register window */
351
    for(i = 0; i < 24; i++) {
352
        registers[i + 8] = tswapl(env->regwptr[i]);
353
    }
354
#ifndef TARGET_SPARC64
355
    /* fill in fprs */
356
    for (i = 0; i < 32; i++) {
357
        registers[i + 32] = tswapl(*((uint32_t *)&env->fpr[i]));
358
    }
359
    /* Y, PSR, WIM, TBR, PC, NPC, FPSR, CPSR */
360
    registers[64] = tswapl(env->y);
361
    {
362
        target_ulong tmp;
363

    
364
        tmp = GET_PSR(env);
365
        registers[65] = tswapl(tmp);
366
    }
367
    registers[66] = tswapl(env->wim);
368
    registers[67] = tswapl(env->tbr);
369
    registers[68] = tswapl(env->pc);
370
    registers[69] = tswapl(env->npc);
371
    registers[70] = tswapl(env->fsr);
372
    registers[71] = 0; /* csr */
373
    registers[72] = 0;
374
    return 73 * sizeof(target_ulong);
375
#else
376
    /* fill in fprs */
377
    for (i = 0; i < 64; i += 2) {
378
        uint64_t tmp;
379

    
380
        tmp = (uint64_t)tswap32(*((uint32_t *)&env->fpr[i])) << 32;
381
        tmp |= tswap32(*((uint32_t *)&env->fpr[i + 1]));
382
        registers[i/2 + 32] = tmp;
383
    }
384
    registers[64] = tswapl(env->pc);
385
    registers[65] = tswapl(env->npc);
386
    registers[66] = tswapl(env->tstate[env->tl]);
387
    registers[67] = tswapl(env->fsr);
388
    registers[68] = tswapl(env->fprs);
389
    registers[69] = tswapl(env->y);
390
    return 70 * sizeof(target_ulong);
391
#endif
392
}
393

    
394
static void cpu_gdb_write_registers(CPUState *env, uint8_t *mem_buf, int size)
395
{
396
    target_ulong *registers = (target_ulong *)mem_buf;
397
    int i;
398

    
399
    /* fill in g0..g7 */
400
    for(i = 0; i < 7; i++) {
401
        env->gregs[i] = tswapl(registers[i]);
402
    }
403
    /* fill in register window */
404
    for(i = 0; i < 24; i++) {
405
        env->regwptr[i] = tswapl(registers[i + 8]);
406
    }
407
#ifndef TARGET_SPARC64
408
    /* fill in fprs */
409
    for (i = 0; i < 32; i++) {
410
        *((uint32_t *)&env->fpr[i]) = tswapl(registers[i + 32]);
411
    }
412
    /* Y, PSR, WIM, TBR, PC, NPC, FPSR, CPSR */
413
    env->y = tswapl(registers[64]);
414
    PUT_PSR(env, tswapl(registers[65]));
415
    env->wim = tswapl(registers[66]);
416
    env->tbr = tswapl(registers[67]);
417
    env->pc = tswapl(registers[68]);
418
    env->npc = tswapl(registers[69]);
419
    env->fsr = tswapl(registers[70]);
420
#else
421
    for (i = 0; i < 64; i += 2) {
422
        *((uint32_t *)&env->fpr[i]) = tswap32(registers[i/2 + 32] >> 32);
423
        *((uint32_t *)&env->fpr[i + 1]) = tswap32(registers[i/2 + 32] & 0xffffffff);
424
    }
425
    env->pc = tswapl(registers[64]);
426
    env->npc = tswapl(registers[65]);
427
    env->tstate[env->tl] = tswapl(registers[66]);
428
    env->fsr = tswapl(registers[67]);
429
    env->fprs = tswapl(registers[68]);
430
    env->y = tswapl(registers[69]);
431
#endif
432
}
433
#elif defined (TARGET_ARM)
434
static int cpu_gdb_read_registers(CPUState *env, uint8_t *mem_buf)
435
{
436
    int i;
437
    uint8_t *ptr;
438

    
439
    ptr = mem_buf;
440
    /* 16 core integer registers (4 bytes each).  */
441
    for (i = 0; i < 16; i++)
442
      {
443
        *(uint32_t *)ptr = tswapl(env->regs[i]);
444
        ptr += 4;
445
      }
446
    /* 8 FPA registers (12 bytes each), FPS (4 bytes).
447
       Not yet implemented.  */
448
    memset (ptr, 0, 8 * 12 + 4);
449
    ptr += 8 * 12 + 4;
450
    /* CPSR (4 bytes).  */
451
    *(uint32_t *)ptr = tswapl (cpsr_read(env));
452
    ptr += 4;
453

    
454
    return ptr - mem_buf;
455
}
456

    
457
static void cpu_gdb_write_registers(CPUState *env, uint8_t *mem_buf, int size)
458
{
459
    int i;
460
    uint8_t *ptr;
461

    
462
    ptr = mem_buf;
463
    /* Core integer registers.  */
464
    for (i = 0; i < 16; i++)
465
      {
466
        env->regs[i] = tswapl(*(uint32_t *)ptr);
467
        ptr += 4;
468
      }
469
    /* Ignore FPA regs and scr.  */
470
    ptr += 8 * 12 + 4;
471
    cpsr_write (env, tswapl(*(uint32_t *)ptr), 0xffffffff);
472
}
473
#elif defined (TARGET_M68K)
474
static int cpu_gdb_read_registers(CPUState *env, uint8_t *mem_buf)
475
{
476
    int i;
477
    uint8_t *ptr;
478
    CPU_DoubleU u;
479

    
480
    ptr = mem_buf;
481
    /* D0-D7 */
482
    for (i = 0; i < 8; i++) {
483
        *(uint32_t *)ptr = tswapl(env->dregs[i]);
484
        ptr += 4;
485
    }
486
    /* A0-A7 */
487
    for (i = 0; i < 8; i++) {
488
        *(uint32_t *)ptr = tswapl(env->aregs[i]);
489
        ptr += 4;
490
    }
491
    *(uint32_t *)ptr = tswapl(env->sr);
492
    ptr += 4;
493
    *(uint32_t *)ptr = tswapl(env->pc);
494
    ptr += 4;
495
    /* F0-F7.  The 68881/68040 have 12-bit extended precision registers.
496
       ColdFire has 8-bit double precision registers.  */
497
    for (i = 0; i < 8; i++) {
498
        u.d = env->fregs[i];
499
        *(uint32_t *)ptr = tswap32(u.l.upper);
500
        *(uint32_t *)ptr = tswap32(u.l.lower);
501
    }
502
    /* FP control regs (not implemented).  */
503
    memset (ptr, 0, 3 * 4);
504
    ptr += 3 * 4;
505

    
506
    return ptr - mem_buf;
507
}
508

    
509
static void cpu_gdb_write_registers(CPUState *env, uint8_t *mem_buf, int size)
510
{
511
    int i;
512
    uint8_t *ptr;
513
    CPU_DoubleU u;
514

    
515
    ptr = mem_buf;
516
    /* D0-D7 */
517
    for (i = 0; i < 8; i++) {
518
        env->dregs[i] = tswapl(*(uint32_t *)ptr);
519
        ptr += 4;
520
    }
521
    /* A0-A7 */
522
    for (i = 0; i < 8; i++) {
523
        env->aregs[i] = tswapl(*(uint32_t *)ptr);
524
        ptr += 4;
525
    }
526
    env->sr = tswapl(*(uint32_t *)ptr);
527
    ptr += 4;
528
    env->pc = tswapl(*(uint32_t *)ptr);
529
    ptr += 4;
530
    /* F0-F7.  The 68881/68040 have 12-bit extended precision registers.
531
       ColdFire has 8-bit double precision registers.  */
532
    for (i = 0; i < 8; i++) {
533
        u.l.upper = tswap32(*(uint32_t *)ptr); 
534
        u.l.lower = tswap32(*(uint32_t *)ptr);
535
        env->fregs[i] = u.d;
536
    }
537
    /* FP control regs (not implemented).  */
538
    ptr += 3 * 4;
539
}
540
#elif defined (TARGET_MIPS)
541
static int cpu_gdb_read_registers(CPUState *env, uint8_t *mem_buf)
542
{
543
    int i;
544
    uint8_t *ptr;
545

    
546
    ptr = mem_buf;
547
    for (i = 0; i < 32; i++)
548
      {
549
        *(uint32_t *)ptr = tswapl(env->gpr[i]);
550
        ptr += 4;
551
      }
552

    
553
    *(uint32_t *)ptr = tswapl(env->CP0_Status);
554
    ptr += 4;
555

    
556
    *(uint32_t *)ptr = tswapl(env->LO);
557
    ptr += 4;
558

    
559
    *(uint32_t *)ptr = tswapl(env->HI);
560
    ptr += 4;
561

    
562
    *(uint32_t *)ptr = tswapl(env->CP0_BadVAddr);
563
    ptr += 4;
564

    
565
    *(uint32_t *)ptr = tswapl(env->CP0_Cause);
566
    ptr += 4;
567

    
568
    *(uint32_t *)ptr = tswapl(env->PC);
569
    ptr += 4;
570

    
571
    if (env->CP0_Config1 & (1 << CP0C1_FP))
572
      {
573
        for (i = 0; i < 32; i++)
574
          {
575
            *(uint32_t *)ptr = tswapl(FPR_W (env, i));
576
            ptr += 4;
577
          }
578

    
579
        *(uint32_t *)ptr = tswapl(env->fcr31);
580
        ptr += 4;
581

    
582
        *(uint32_t *)ptr = tswapl(env->fcr0);
583
        ptr += 4;
584
      }
585

    
586
    /* 32 FP registers, fsr, fir, fp.  Not yet implemented.  */
587
    /* what's 'fp' mean here?  */
588

    
589
    return ptr - mem_buf;
590
}
591

    
592
/* convert MIPS rounding mode in FCR31 to IEEE library */
593
static unsigned int ieee_rm[] =
594
  {
595
    float_round_nearest_even,
596
    float_round_to_zero,
597
    float_round_up,
598
    float_round_down
599
  };
600
#define RESTORE_ROUNDING_MODE \
601
    set_float_rounding_mode(ieee_rm[env->fcr31 & 3], &env->fp_status)
602

    
603
static void cpu_gdb_write_registers(CPUState *env, uint8_t *mem_buf, int size)
604
{
605
    int i;
606
    uint8_t *ptr;
607

    
608
    ptr = mem_buf;
609
    for (i = 0; i < 32; i++)
610
      {
611
        env->gpr[i] = tswapl(*(uint32_t *)ptr);
612
        ptr += 4;
613
      }
614

    
615
    env->CP0_Status = tswapl(*(uint32_t *)ptr);
616
    ptr += 4;
617

    
618
    env->LO = tswapl(*(uint32_t *)ptr);
619
    ptr += 4;
620

    
621
    env->HI = tswapl(*(uint32_t *)ptr);
622
    ptr += 4;
623

    
624
    env->CP0_BadVAddr = tswapl(*(uint32_t *)ptr);
625
    ptr += 4;
626

    
627
    env->CP0_Cause = tswapl(*(uint32_t *)ptr);
628
    ptr += 4;
629

    
630
    env->PC = tswapl(*(uint32_t *)ptr);
631
    ptr += 4;
632

    
633
    if (env->CP0_Config1 & (1 << CP0C1_FP))
634
      {
635
        for (i = 0; i < 32; i++)
636
          {
637
            FPR_W (env, i) = tswapl(*(uint32_t *)ptr);
638
            ptr += 4;
639
          }
640

    
641
        env->fcr31 = tswapl(*(uint32_t *)ptr) & 0x0183FFFF;
642
        ptr += 4;
643

    
644
        env->fcr0 = tswapl(*(uint32_t *)ptr);
645
        ptr += 4;
646

    
647
        /* set rounding mode */
648
        RESTORE_ROUNDING_MODE;
649

    
650
#ifndef CONFIG_SOFTFLOAT
651
        /* no floating point exception for native float */
652
        SET_FP_ENABLE(env->fcr31, 0);
653
#endif
654
      }
655
}
656
#elif defined (TARGET_SH4)
657
static int cpu_gdb_read_registers(CPUState *env, uint8_t *mem_buf)
658
{
659
  uint32_t *ptr = (uint32_t *)mem_buf;
660
  int i;
661

    
662
#define SAVE(x) *ptr++=tswapl(x)
663
  if ((env->sr & (SR_MD | SR_RB)) == (SR_MD | SR_RB)) {
664
      for (i = 0; i < 8; i++) SAVE(env->gregs[i + 16]);
665
  } else {
666
      for (i = 0; i < 8; i++) SAVE(env->gregs[i]);
667
  }
668
  for (i = 8; i < 16; i++) SAVE(env->gregs[i]);
669
  SAVE (env->pc);
670
  SAVE (env->pr);
671
  SAVE (env->gbr);
672
  SAVE (env->vbr);
673
  SAVE (env->mach);
674
  SAVE (env->macl);
675
  SAVE (env->sr);
676
  SAVE (0); /* TICKS */
677
  SAVE (0); /* STALLS */
678
  SAVE (0); /* CYCLES */
679
  SAVE (0); /* INSTS */
680
  SAVE (0); /* PLR */
681

    
682
  return ((uint8_t *)ptr - mem_buf);
683
}
684

    
685
static void cpu_gdb_write_registers(CPUState *env, uint8_t *mem_buf, int size)
686
{
687
  uint32_t *ptr = (uint32_t *)mem_buf;
688
  int i;
689

    
690
#define LOAD(x) (x)=*ptr++;
691
  if ((env->sr & (SR_MD | SR_RB)) == (SR_MD | SR_RB)) {
692
      for (i = 0; i < 8; i++) LOAD(env->gregs[i + 16]);
693
  } else {
694
      for (i = 0; i < 8; i++) LOAD(env->gregs[i]);
695
  }
696
  for (i = 8; i < 16; i++) LOAD(env->gregs[i]);
697
  LOAD (env->pc);
698
  LOAD (env->pr);
699
  LOAD (env->gbr);
700
  LOAD (env->vbr);
701
  LOAD (env->mach);
702
  LOAD (env->macl);
703
  LOAD (env->sr);
704
}
705
#else
706
static int cpu_gdb_read_registers(CPUState *env, uint8_t *mem_buf)
707
{
708
    return 0;
709
}
710

    
711
static void cpu_gdb_write_registers(CPUState *env, uint8_t *mem_buf, int size)
712
{
713
}
714

    
715
#endif
716

    
717
static int gdb_handle_packet(GDBState *s, CPUState *env, const char *line_buf)
718
{
719
    const char *p;
720
    int ch, reg_size, type;
721
    char buf[4096];
722
    uint8_t mem_buf[2000];
723
    uint32_t *registers;
724
    target_ulong addr, len;
725
    
726
#ifdef DEBUG_GDB
727
    printf("command='%s'\n", line_buf);
728
#endif
729
    p = line_buf;
730
    ch = *p++;
731
    switch(ch) {
732
    case '?':
733
        /* TODO: Make this return the correct value for user-mode.  */
734
        snprintf(buf, sizeof(buf), "S%02x", SIGTRAP);
735
        put_packet(s, buf);
736
        break;
737
    case 'c':
738
        if (*p != '\0') {
739
            addr = strtoull(p, (char **)&p, 16);
740
#if defined(TARGET_I386)
741
            env->eip = addr;
742
#elif defined (TARGET_PPC)
743
            env->nip = addr;
744
#elif defined (TARGET_SPARC)
745
            env->pc = addr;
746
            env->npc = addr + 4;
747
#elif defined (TARGET_ARM)
748
            env->regs[15] = addr;
749
#elif defined (TARGET_SH4)
750
            env->pc = addr;
751
#endif
752
        }
753
#ifdef CONFIG_USER_ONLY
754
        s->running_state = 1;
755
#else
756
        vm_start();
757
#endif
758
        return RS_IDLE;
759
    case 's':
760
        if (*p != '\0') {
761
            addr = strtoul(p, (char **)&p, 16);
762
#if defined(TARGET_I386)
763
            env->eip = addr;
764
#elif defined (TARGET_PPC)
765
            env->nip = addr;
766
#elif defined (TARGET_SPARC)
767
            env->pc = addr;
768
            env->npc = addr + 4;
769
#elif defined (TARGET_ARM)
770
            env->regs[15] = addr;
771
#elif defined (TARGET_SH4)
772
            env->pc = addr;
773
#endif
774
        }
775
        cpu_single_step(env, 1);
776
#ifdef CONFIG_USER_ONLY
777
        s->running_state = 1;
778
#else
779
        vm_start();
780
#endif
781
        return RS_IDLE;
782
    case 'F':
783
        {
784
            target_ulong ret;
785
            target_ulong err;
786

    
787
            ret = strtoull(p, (char **)&p, 16);
788
            if (*p == ',') {
789
                p++;
790
                err = strtoull(p, (char **)&p, 16);
791
            } else {
792
                err = 0;
793
            }
794
            if (*p == ',')
795
                p++;
796
            type = *p;
797
            if (gdb_current_syscall_cb)
798
                gdb_current_syscall_cb(s->env, ret, err);
799
            if (type == 'C') {
800
                put_packet(s, "T02");
801
            } else {
802
#ifdef CONFIG_USER_ONLY
803
                s->running_state = 1;
804
#else
805
                vm_start();
806
#endif
807
            }
808
        }
809
        break;
810
    case 'g':
811
        reg_size = cpu_gdb_read_registers(env, mem_buf);
812
        memtohex(buf, mem_buf, reg_size);
813
        put_packet(s, buf);
814
        break;
815
    case 'G':
816
        registers = (void *)mem_buf;
817
        len = strlen(p) / 2;
818
        hextomem((uint8_t *)registers, p, len);
819
        cpu_gdb_write_registers(env, mem_buf, len);
820
        put_packet(s, "OK");
821
        break;
822
    case 'm':
823
        addr = strtoull(p, (char **)&p, 16);
824
        if (*p == ',')
825
            p++;
826
        len = strtoull(p, NULL, 16);
827
        if (cpu_memory_rw_debug(env, addr, mem_buf, len, 0) != 0) {
828
            put_packet (s, "E14");
829
        } else {
830
            memtohex(buf, mem_buf, len);
831
            put_packet(s, buf);
832
        }
833
        break;
834
    case 'M':
835
        addr = strtoull(p, (char **)&p, 16);
836
        if (*p == ',')
837
            p++;
838
        len = strtoull(p, (char **)&p, 16);
839
        if (*p == ':')
840
            p++;
841
        hextomem(mem_buf, p, len);
842
        if (cpu_memory_rw_debug(env, addr, mem_buf, len, 1) != 0)
843
            put_packet(s, "E14");
844
        else
845
            put_packet(s, "OK");
846
        break;
847
    case 'Z':
848
        type = strtoul(p, (char **)&p, 16);
849
        if (*p == ',')
850
            p++;
851
        addr = strtoull(p, (char **)&p, 16);
852
        if (*p == ',')
853
            p++;
854
        len = strtoull(p, (char **)&p, 16);
855
        if (type == 0 || type == 1) {
856
            if (cpu_breakpoint_insert(env, addr) < 0)
857
                goto breakpoint_error;
858
            put_packet(s, "OK");
859
        } else {
860
        breakpoint_error:
861
            put_packet(s, "E22");
862
        }
863
        break;
864
    case 'z':
865
        type = strtoul(p, (char **)&p, 16);
866
        if (*p == ',')
867
            p++;
868
        addr = strtoull(p, (char **)&p, 16);
869
        if (*p == ',')
870
            p++;
871
        len = strtoull(p, (char **)&p, 16);
872
        if (type == 0 || type == 1) {
873
            cpu_breakpoint_remove(env, addr);
874
            put_packet(s, "OK");
875
        } else {
876
            goto breakpoint_error;
877
        }
878
        break;
879
#ifdef CONFIG_LINUX_USER
880
    case 'q':
881
        if (strncmp(p, "Offsets", 7) == 0) {
882
            TaskState *ts = env->opaque;
883

    
884
            sprintf(buf, "Text=%x;Data=%x;Bss=%x", ts->info->code_offset,
885
                ts->info->data_offset, ts->info->data_offset);
886
            put_packet(s, buf);
887
            break;
888
        }
889
        /* Fall through.  */
890
#endif
891
    default:
892
        //        unknown_command:
893
        /* put empty packet */
894
        buf[0] = '\0';
895
        put_packet(s, buf);
896
        break;
897
    }
898
    return RS_IDLE;
899
}
900

    
901
extern void tb_flush(CPUState *env);
902

    
903
#ifndef CONFIG_USER_ONLY
904
static void gdb_vm_stopped(void *opaque, int reason)
905
{
906
    GDBState *s = opaque;
907
    char buf[256];
908
    int ret;
909

    
910
    if (s->state == RS_SYSCALL)
911
        return;
912

    
913
    /* disable single step if it was enable */
914
    cpu_single_step(s->env, 0);
915

    
916
    if (reason == EXCP_DEBUG) {
917
        tb_flush(s->env);
918
        ret = SIGTRAP;
919
    } else if (reason == EXCP_INTERRUPT) {
920
        ret = SIGINT;
921
    } else {
922
        ret = 0;
923
    }
924
    snprintf(buf, sizeof(buf), "S%02x", ret);
925
    put_packet(s, buf);
926
}
927
#endif
928

    
929
/* Send a gdb syscall request.
930
   This accepts limited printf-style format specifiers, specifically:
931
    %x - target_ulong argument printed in hex.
932
    %s - string pointer (target_ulong) and length (int) pair.  */
933
void gdb_do_syscall(gdb_syscall_complete_cb cb, char *fmt, ...)
934
{
935
    va_list va;
936
    char buf[256];
937
    char *p;
938
    target_ulong addr;
939
    GDBState *s;
940

    
941
    s = gdb_syscall_state;
942
    if (!s)
943
        return;
944
    gdb_current_syscall_cb = cb;
945
    s->state = RS_SYSCALL;
946
#ifndef CONFIG_USER_ONLY
947
    vm_stop(EXCP_DEBUG);
948
#endif
949
    s->state = RS_IDLE;
950
    va_start(va, fmt);
951
    p = buf;
952
    *(p++) = 'F';
953
    while (*fmt) {
954
        if (*fmt == '%') {
955
            fmt++;
956
            switch (*fmt++) {
957
            case 'x':
958
                addr = va_arg(va, target_ulong);
959
                p += sprintf(p, TARGET_FMT_lx, addr);
960
                break;
961
            case 's':
962
                addr = va_arg(va, target_ulong);
963
                p += sprintf(p, TARGET_FMT_lx "/%x", addr, va_arg(va, int));
964
                break;
965
            default:
966
                fprintf(stderr, "gdbstub: Bad syscall format string '%s'\n",
967
                        fmt - 1);
968
                break;
969
            }
970
        } else {
971
            *(p++) = *(fmt++);
972
        }
973
    }
974
    va_end(va);
975
    put_packet(s, buf);
976
#ifdef CONFIG_USER_ONLY
977
    gdb_handlesig(s->env, 0);
978
#else
979
    cpu_interrupt(s->env, CPU_INTERRUPT_EXIT);
980
#endif
981
}
982

    
983
static void gdb_read_byte(GDBState *s, int ch)
984
{
985
    CPUState *env = s->env;
986
    int i, csum;
987
    char reply[1];
988

    
989
#ifndef CONFIG_USER_ONLY
990
    if (s->last_packet_len) {
991
        /* Waiting for a response to the last packet.  If we see the start
992
           of a new command then abandon the previous response.  */
993
        if (ch == '-') {
994
#ifdef DEBUG_GDB
995
            printf("Got NACK, retransmitting\n");
996
#endif
997
            put_buffer(s, s->last_packet, s->last_packet_len);
998
        }
999
#ifdef DEBUG_GDB
1000
        else if (ch == '+')
1001
            printf("Got ACK\n");
1002
        else
1003
            printf("Got '%c' when expecting ACK/NACK\n", ch);
1004
#endif
1005
        if (ch == '+' || ch == '$')
1006
            s->last_packet_len = 0;
1007
        if (ch != '$')
1008
            return;
1009
    }
1010
    if (vm_running) {
1011
        /* when the CPU is running, we cannot do anything except stop
1012
           it when receiving a char */
1013
        vm_stop(EXCP_INTERRUPT);
1014
    } else 
1015
#endif
1016
    {
1017
        switch(s->state) {
1018
        case RS_IDLE:
1019
            if (ch == '$') {
1020
                s->line_buf_index = 0;
1021
                s->state = RS_GETLINE;
1022
            }
1023
            break;
1024
        case RS_GETLINE:
1025
            if (ch == '#') {
1026
            s->state = RS_CHKSUM1;
1027
            } else if (s->line_buf_index >= sizeof(s->line_buf) - 1) {
1028
                s->state = RS_IDLE;
1029
            } else {
1030
            s->line_buf[s->line_buf_index++] = ch;
1031
            }
1032
            break;
1033
        case RS_CHKSUM1:
1034
            s->line_buf[s->line_buf_index] = '\0';
1035
            s->line_csum = fromhex(ch) << 4;
1036
            s->state = RS_CHKSUM2;
1037
            break;
1038
        case RS_CHKSUM2:
1039
            s->line_csum |= fromhex(ch);
1040
            csum = 0;
1041
            for(i = 0; i < s->line_buf_index; i++) {
1042
                csum += s->line_buf[i];
1043
            }
1044
            if (s->line_csum != (csum & 0xff)) {
1045
                reply[0] = '-';
1046
                put_buffer(s, reply, 1);
1047
                s->state = RS_IDLE;
1048
            } else {
1049
                reply[0] = '+';
1050
                put_buffer(s, reply, 1);
1051
                s->state = gdb_handle_packet(s, env, s->line_buf);
1052
            }
1053
            break;
1054
        default:
1055
            abort();
1056
        }
1057
    }
1058
}
1059

    
1060
#ifdef CONFIG_USER_ONLY
1061
int
1062
gdb_handlesig (CPUState *env, int sig)
1063
{
1064
  GDBState *s;
1065
  char buf[256];
1066
  int n;
1067

    
1068
  if (gdbserver_fd < 0)
1069
    return sig;
1070

    
1071
  s = &gdbserver_state;
1072

    
1073
  /* disable single step if it was enabled */
1074
  cpu_single_step(env, 0);
1075
  tb_flush(env);
1076

    
1077
  if (sig != 0)
1078
    {
1079
      snprintf(buf, sizeof(buf), "S%02x", sig);
1080
      put_packet(s, buf);
1081
    }
1082

    
1083
  sig = 0;
1084
  s->state = RS_IDLE;
1085
  s->running_state = 0;
1086
  while (s->running_state == 0) {
1087
      n = read (s->fd, buf, 256);
1088
      if (n > 0)
1089
        {
1090
          int i;
1091

    
1092
          for (i = 0; i < n; i++)
1093
            gdb_read_byte (s, buf[i]);
1094
        }
1095
      else if (n == 0 || errno != EAGAIN)
1096
        {
1097
          /* XXX: Connection closed.  Should probably wait for annother
1098
             connection before continuing.  */
1099
          return sig;
1100
        }
1101
  }
1102
  return sig;
1103
}
1104

    
1105
/* Tell the remote gdb that the process has exited.  */
1106
void gdb_exit(CPUState *env, int code)
1107
{
1108
  GDBState *s;
1109
  char buf[4];
1110

    
1111
  if (gdbserver_fd < 0)
1112
    return;
1113

    
1114
  s = &gdbserver_state;
1115

    
1116
  snprintf(buf, sizeof(buf), "W%02x", code);
1117
  put_packet(s, buf);
1118
}
1119

    
1120

    
1121
static void gdb_accept(void *opaque)
1122
{
1123
    GDBState *s;
1124
    struct sockaddr_in sockaddr;
1125
    socklen_t len;
1126
    int val, fd;
1127

    
1128
    for(;;) {
1129
        len = sizeof(sockaddr);
1130
        fd = accept(gdbserver_fd, (struct sockaddr *)&sockaddr, &len);
1131
        if (fd < 0 && errno != EINTR) {
1132
            perror("accept");
1133
            return;
1134
        } else if (fd >= 0) {
1135
            break;
1136
        }
1137
    }
1138

    
1139
    /* set short latency */
1140
    val = 1;
1141
    setsockopt(fd, IPPROTO_TCP, TCP_NODELAY, (char *)&val, sizeof(val));
1142
    
1143
    s = &gdbserver_state;
1144
    memset (s, 0, sizeof (GDBState));
1145
    s->env = first_cpu; /* XXX: allow to change CPU */
1146
    s->fd = fd;
1147

    
1148
    gdb_syscall_state = s;
1149

    
1150
    fcntl(fd, F_SETFL, O_NONBLOCK);
1151
}
1152

    
1153
static int gdbserver_open(int port)
1154
{
1155
    struct sockaddr_in sockaddr;
1156
    int fd, val, ret;
1157

    
1158
    fd = socket(PF_INET, SOCK_STREAM, 0);
1159
    if (fd < 0) {
1160
        perror("socket");
1161
        return -1;
1162
    }
1163

    
1164
    /* allow fast reuse */
1165
    val = 1;
1166
    setsockopt(fd, SOL_SOCKET, SO_REUSEADDR, (char *)&val, sizeof(val));
1167

    
1168
    sockaddr.sin_family = AF_INET;
1169
    sockaddr.sin_port = htons(port);
1170
    sockaddr.sin_addr.s_addr = 0;
1171
    ret = bind(fd, (struct sockaddr *)&sockaddr, sizeof(sockaddr));
1172
    if (ret < 0) {
1173
        perror("bind");
1174
        return -1;
1175
    }
1176
    ret = listen(fd, 0);
1177
    if (ret < 0) {
1178
        perror("listen");
1179
        return -1;
1180
    }
1181
    return fd;
1182
}
1183

    
1184
int gdbserver_start(int port)
1185
{
1186
    gdbserver_fd = gdbserver_open(port);
1187
    if (gdbserver_fd < 0)
1188
        return -1;
1189
    /* accept connections */
1190
    gdb_accept (NULL);
1191
    return 0;
1192
}
1193
#else
1194
static int gdb_chr_can_recieve(void *opaque)
1195
{
1196
  return 1;
1197
}
1198

    
1199
static void gdb_chr_recieve(void *opaque, const uint8_t *buf, int size)
1200
{
1201
    GDBState *s = opaque;
1202
    int i;
1203

    
1204
    for (i = 0; i < size; i++) {
1205
        gdb_read_byte(s, buf[i]);
1206
    }
1207
}
1208

    
1209
static void gdb_chr_event(void *opaque, int event)
1210
{
1211
    switch (event) {
1212
    case CHR_EVENT_RESET:
1213
        vm_stop(EXCP_INTERRUPT);
1214
        gdb_syscall_state = opaque;
1215
        break;
1216
    default:
1217
        break;
1218
    }
1219
}
1220

    
1221
int gdbserver_start(const char *port)
1222
{
1223
    GDBState *s;
1224
    char gdbstub_port_name[128];
1225
    int port_num;
1226
    char *p;
1227
    CharDriverState *chr;
1228

    
1229
    if (!port || !*port)
1230
      return -1;
1231

    
1232
    port_num = strtol(port, &p, 10);
1233
    if (*p == 0) {
1234
        /* A numeric value is interpreted as a port number.  */
1235
        snprintf(gdbstub_port_name, sizeof(gdbstub_port_name),
1236
                 "tcp::%d,nowait,nodelay,server", port_num);
1237
        port = gdbstub_port_name;
1238
    }
1239

    
1240
    chr = qemu_chr_open(port);
1241
    if (!chr)
1242
        return -1;
1243

    
1244
    s = qemu_mallocz(sizeof(GDBState));
1245
    if (!s) {
1246
        return -1;
1247
    }
1248
    s->env = first_cpu; /* XXX: allow to change CPU */
1249
    s->chr = chr;
1250
    qemu_chr_add_handlers(chr, gdb_chr_can_recieve, gdb_chr_recieve,
1251
                          gdb_chr_event, s);
1252
    qemu_add_vm_stop_handler(gdb_vm_stopped, s);
1253
    return 0;
1254
}
1255
#endif