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1
/*
2
 *  Emulation of Linux signals
3
 *
4
 *  Copyright (c) 2003 Fabrice Bellard
5
 *
6
 *  This program is free software; you can redistribute it and/or modify
7
 *  it under the terms of the GNU General Public License as published by
8
 *  the Free Software Foundation; either version 2 of the License, or
9
 *  (at your option) any later version.
10
 *
11
 *  This program 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
14
 *  GNU General Public License for more details.
15
 *
16
 *  You should have received a copy of the GNU General Public License
17
 *  along with this program; if not, write to the Free Software
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 *  Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
19
 */
20
#include <stdlib.h>
21
#include <stdio.h>
22
#include <string.h>
23
#include <stdarg.h>
24
#include <unistd.h>
25
#include <signal.h>
26
#include <errno.h>
27
#include <sys/ucontext.h>
28

    
29
#include "qemu.h"
30
#include "target_signal.h"
31

    
32
//#define DEBUG_SIGNAL
33

    
34
#define MAX_SIGQUEUE_SIZE 1024
35

    
36
struct sigqueue {
37
    struct sigqueue *next;
38
    target_siginfo_t info;
39
};
40

    
41
struct emulated_sigaction {
42
    struct target_sigaction sa;
43
    int pending; /* true if signal is pending */
44
    struct sigqueue *first;
45
    struct sigqueue info; /* in order to always have memory for the
46
                             first signal, we put it here */
47
};
48

    
49
struct target_sigaltstack target_sigaltstack_used = {
50
    .ss_sp = 0,
51
    .ss_size = 0,
52
    .ss_flags = TARGET_SS_DISABLE,
53
};
54

    
55
static struct emulated_sigaction sigact_table[TARGET_NSIG];
56
static struct sigqueue sigqueue_table[MAX_SIGQUEUE_SIZE]; /* siginfo queue */
57
static struct sigqueue *first_free; /* first free siginfo queue entry */
58
static int signal_pending; /* non zero if a signal may be pending */
59

    
60
static void host_signal_handler(int host_signum, siginfo_t *info,
61
                                void *puc);
62

    
63
static uint8_t host_to_target_signal_table[65] = {
64
    [SIGHUP] = TARGET_SIGHUP,
65
    [SIGINT] = TARGET_SIGINT,
66
    [SIGQUIT] = TARGET_SIGQUIT,
67
    [SIGILL] = TARGET_SIGILL,
68
    [SIGTRAP] = TARGET_SIGTRAP,
69
    [SIGABRT] = TARGET_SIGABRT,
70
/*    [SIGIOT] = TARGET_SIGIOT,*/
71
    [SIGBUS] = TARGET_SIGBUS,
72
    [SIGFPE] = TARGET_SIGFPE,
73
    [SIGKILL] = TARGET_SIGKILL,
74
    [SIGUSR1] = TARGET_SIGUSR1,
75
    [SIGSEGV] = TARGET_SIGSEGV,
76
    [SIGUSR2] = TARGET_SIGUSR2,
77
    [SIGPIPE] = TARGET_SIGPIPE,
78
    [SIGALRM] = TARGET_SIGALRM,
79
    [SIGTERM] = TARGET_SIGTERM,
80
#ifdef SIGSTKFLT
81
    [SIGSTKFLT] = TARGET_SIGSTKFLT,
82
#endif
83
    [SIGCHLD] = TARGET_SIGCHLD,
84
    [SIGCONT] = TARGET_SIGCONT,
85
    [SIGSTOP] = TARGET_SIGSTOP,
86
    [SIGTSTP] = TARGET_SIGTSTP,
87
    [SIGTTIN] = TARGET_SIGTTIN,
88
    [SIGTTOU] = TARGET_SIGTTOU,
89
    [SIGURG] = TARGET_SIGURG,
90
    [SIGXCPU] = TARGET_SIGXCPU,
91
    [SIGXFSZ] = TARGET_SIGXFSZ,
92
    [SIGVTALRM] = TARGET_SIGVTALRM,
93
    [SIGPROF] = TARGET_SIGPROF,
94
    [SIGWINCH] = TARGET_SIGWINCH,
95
    [SIGIO] = TARGET_SIGIO,
96
    [SIGPWR] = TARGET_SIGPWR,
97
    [SIGSYS] = TARGET_SIGSYS,
98
    /* next signals stay the same */
99
};
100
static uint8_t target_to_host_signal_table[65];
101

    
102
static inline int on_sig_stack(unsigned long sp)
103
{
104
    return (sp - target_sigaltstack_used.ss_sp
105
            < target_sigaltstack_used.ss_size);
106
}
107

    
108
static inline int sas_ss_flags(unsigned long sp)
109
{
110
    return (target_sigaltstack_used.ss_size == 0 ? SS_DISABLE
111
            : on_sig_stack(sp) ? SS_ONSTACK : 0);
112
}
113

    
114
static inline int host_to_target_signal(int sig)
115
{
116
    return host_to_target_signal_table[sig];
117
}
118

    
119
static inline int target_to_host_signal(int sig)
120
{
121
    return target_to_host_signal_table[sig];
122
}
123

    
124
static void host_to_target_sigset_internal(target_sigset_t *d,
125
                                           const sigset_t *s)
126
{
127
    int i;
128
    unsigned long sigmask;
129
    uint32_t target_sigmask;
130

    
131
    sigmask = ((unsigned long *)s)[0];
132
    target_sigmask = 0;
133
    for(i = 0; i < 32; i++) {
134
        if (sigmask & (1 << i))
135
            target_sigmask |= 1 << (host_to_target_signal(i + 1) - 1);
136
    }
137
#if TARGET_ABI_BITS == 32 && HOST_LONG_BITS == 32
138
    d->sig[0] = target_sigmask;
139
    for(i = 1;i < TARGET_NSIG_WORDS; i++) {
140
        d->sig[i] = ((unsigned long *)s)[i];
141
    }
142
#elif TARGET_ABI_BITS == 32 && HOST_LONG_BITS == 64 && TARGET_NSIG_WORDS == 2
143
    d->sig[0] = target_sigmask;
144
    d->sig[1] = sigmask >> 32;
145
#else
146
    /* XXX: do it */
147
#endif
148
}
149

    
150
void host_to_target_sigset(target_sigset_t *d, const sigset_t *s)
151
{
152
    target_sigset_t d1;
153
    int i;
154

    
155
    host_to_target_sigset_internal(&d1, s);
156
    for(i = 0;i < TARGET_NSIG_WORDS; i++)
157
        d->sig[i] = tswapl(d1.sig[i]);
158
}
159

    
160
void target_to_host_sigset_internal(sigset_t *d, const target_sigset_t *s)
161
{
162
    int i;
163
    unsigned long sigmask;
164
    abi_ulong target_sigmask;
165

    
166
    target_sigmask = s->sig[0];
167
    sigmask = 0;
168
    for(i = 0; i < 32; i++) {
169
        if (target_sigmask & (1 << i))
170
            sigmask |= 1 << (target_to_host_signal(i + 1) - 1);
171
    }
172
#if TARGET_ABI_BITS == 32 && HOST_LONG_BITS == 32
173
    ((unsigned long *)d)[0] = sigmask;
174
    for(i = 1;i < TARGET_NSIG_WORDS; i++) {
175
        ((unsigned long *)d)[i] = s->sig[i];
176
    }
177
#elif TARGET_ABI_BITS == 32 && HOST_LONG_BITS == 64 && TARGET_NSIG_WORDS == 2
178
    ((unsigned long *)d)[0] = sigmask | ((unsigned long)(s->sig[1]) << 32);
179
#else
180
    /* XXX: do it */
181
#endif /* TARGET_ABI_BITS */
182
}
183

    
184
void target_to_host_sigset(sigset_t *d, const target_sigset_t *s)
185
{
186
    target_sigset_t s1;
187
    int i;
188

    
189
    for(i = 0;i < TARGET_NSIG_WORDS; i++)
190
        s1.sig[i] = tswapl(s->sig[i]);
191
    target_to_host_sigset_internal(d, &s1);
192
}
193

    
194
void host_to_target_old_sigset(abi_ulong *old_sigset,
195
                               const sigset_t *sigset)
196
{
197
    target_sigset_t d;
198
    host_to_target_sigset(&d, sigset);
199
    *old_sigset = d.sig[0];
200
}
201

    
202
void target_to_host_old_sigset(sigset_t *sigset,
203
                               const abi_ulong *old_sigset)
204
{
205
    target_sigset_t d;
206
    int i;
207

    
208
    d.sig[0] = *old_sigset;
209
    for(i = 1;i < TARGET_NSIG_WORDS; i++)
210
        d.sig[i] = 0;
211
    target_to_host_sigset(sigset, &d);
212
}
213

    
214
/* siginfo conversion */
215

    
216
static inline void host_to_target_siginfo_noswap(target_siginfo_t *tinfo,
217
                                                 const siginfo_t *info)
218
{
219
    int sig;
220
    sig = host_to_target_signal(info->si_signo);
221
    tinfo->si_signo = sig;
222
    tinfo->si_errno = 0;
223
    tinfo->si_code = 0;
224
    if (sig == SIGILL || sig == SIGFPE || sig == SIGSEGV ||
225
        sig == SIGBUS || sig == SIGTRAP) {
226
        /* should never come here, but who knows. The information for
227
           the target is irrelevant */
228
        tinfo->_sifields._sigfault._addr = 0;
229
    } else if (sig == SIGIO) {
230
        tinfo->_sifields._sigpoll._fd = info->si_fd;
231
    } else if (sig >= TARGET_SIGRTMIN) {
232
        tinfo->_sifields._rt._pid = info->si_pid;
233
        tinfo->_sifields._rt._uid = info->si_uid;
234
        /* XXX: potential problem if 64 bit */
235
        tinfo->_sifields._rt._sigval.sival_ptr =
236
            (abi_ulong)(unsigned long)info->si_value.sival_ptr;
237
    }
238
}
239

    
240
static void tswap_siginfo(target_siginfo_t *tinfo,
241
                          const target_siginfo_t *info)
242
{
243
    int sig;
244
    sig = info->si_signo;
245
    tinfo->si_signo = tswap32(sig);
246
    tinfo->si_errno = tswap32(info->si_errno);
247
    tinfo->si_code = tswap32(info->si_code);
248
    if (sig == SIGILL || sig == SIGFPE || sig == SIGSEGV ||
249
        sig == SIGBUS || sig == SIGTRAP) {
250
        tinfo->_sifields._sigfault._addr =
251
            tswapl(info->_sifields._sigfault._addr);
252
    } else if (sig == SIGIO) {
253
        tinfo->_sifields._sigpoll._fd = tswap32(info->_sifields._sigpoll._fd);
254
    } else if (sig >= TARGET_SIGRTMIN) {
255
        tinfo->_sifields._rt._pid = tswap32(info->_sifields._rt._pid);
256
        tinfo->_sifields._rt._uid = tswap32(info->_sifields._rt._uid);
257
        tinfo->_sifields._rt._sigval.sival_ptr =
258
            tswapl(info->_sifields._rt._sigval.sival_ptr);
259
    }
260
}
261

    
262

    
263
void host_to_target_siginfo(target_siginfo_t *tinfo, const siginfo_t *info)
264
{
265
    host_to_target_siginfo_noswap(tinfo, info);
266
    tswap_siginfo(tinfo, tinfo);
267
}
268

    
269
/* XXX: we support only POSIX RT signals are used. */
270
/* XXX: find a solution for 64 bit (additional malloced data is needed) */
271
void target_to_host_siginfo(siginfo_t *info, const target_siginfo_t *tinfo)
272
{
273
    info->si_signo = tswap32(tinfo->si_signo);
274
    info->si_errno = tswap32(tinfo->si_errno);
275
    info->si_code = tswap32(tinfo->si_code);
276
    info->si_pid = tswap32(tinfo->_sifields._rt._pid);
277
    info->si_uid = tswap32(tinfo->_sifields._rt._uid);
278
    info->si_value.sival_ptr =
279
            (void *)(long)tswapl(tinfo->_sifields._rt._sigval.sival_ptr);
280
}
281

    
282
void signal_init(void)
283
{
284
    struct sigaction act;
285
    int i, j;
286

    
287
    /* generate signal conversion tables */
288
    for(i = 1; i <= 64; i++) {
289
        if (host_to_target_signal_table[i] == 0)
290
            host_to_target_signal_table[i] = i;
291
    }
292
    for(i = 1; i <= 64; i++) {
293
        j = host_to_target_signal_table[i];
294
        target_to_host_signal_table[j] = i;
295
    }
296

    
297
    /* set all host signal handlers. ALL signals are blocked during
298
       the handlers to serialize them. */
299
    sigfillset(&act.sa_mask);
300
    act.sa_flags = SA_SIGINFO;
301
    act.sa_sigaction = host_signal_handler;
302
    for(i = 1; i < NSIG; i++) {
303
        sigaction(i, &act, NULL);
304
    }
305

    
306
    memset(sigact_table, 0, sizeof(sigact_table));
307

    
308
    first_free = &sigqueue_table[0];
309
    for(i = 0; i < MAX_SIGQUEUE_SIZE - 1; i++)
310
        sigqueue_table[i].next = &sigqueue_table[i + 1];
311
    sigqueue_table[MAX_SIGQUEUE_SIZE - 1].next = NULL;
312
}
313

    
314
/* signal queue handling */
315

    
316
static inline struct sigqueue *alloc_sigqueue(void)
317
{
318
    struct sigqueue *q = first_free;
319
    if (!q)
320
        return NULL;
321
    first_free = q->next;
322
    return q;
323
}
324

    
325
static inline void free_sigqueue(struct sigqueue *q)
326
{
327
    q->next = first_free;
328
    first_free = q;
329
}
330

    
331
/* abort execution with signal */
332
void __attribute((noreturn)) force_sig(int sig)
333
{
334
    int host_sig;
335
    host_sig = target_to_host_signal(sig);
336
    fprintf(stderr, "qemu: uncaught target signal %d (%s) - exiting\n",
337
            sig, strsignal(host_sig));
338
#if 1
339
    _exit(-host_sig);
340
#else
341
    {
342
        struct sigaction act;
343
        sigemptyset(&act.sa_mask);
344
        act.sa_flags = SA_SIGINFO;
345
        act.sa_sigaction = SIG_DFL;
346
        sigaction(SIGABRT, &act, NULL);
347
        abort();
348
    }
349
#endif
350
}
351

    
352
/* queue a signal so that it will be send to the virtual CPU as soon
353
   as possible */
354
int queue_signal(int sig, target_siginfo_t *info)
355
{
356
    struct emulated_sigaction *k;
357
    struct sigqueue *q, **pq;
358
    abi_ulong handler;
359

    
360
#if defined(DEBUG_SIGNAL)
361
    fprintf(stderr, "queue_signal: sig=%d\n",
362
            sig);
363
#endif
364
    k = &sigact_table[sig - 1];
365
    handler = k->sa._sa_handler;
366
    if (handler == TARGET_SIG_DFL) {
367
        /* default handler : ignore some signal. The other are fatal */
368
        if (sig != TARGET_SIGCHLD &&
369
            sig != TARGET_SIGURG &&
370
            sig != TARGET_SIGWINCH) {
371
            force_sig(sig);
372
        } else {
373
            return 0; /* indicate ignored */
374
        }
375
    } else if (handler == TARGET_SIG_IGN) {
376
        /* ignore signal */
377
        return 0;
378
    } else if (handler == TARGET_SIG_ERR) {
379
        force_sig(sig);
380
    } else {
381
        pq = &k->first;
382
        if (sig < TARGET_SIGRTMIN) {
383
            /* if non real time signal, we queue exactly one signal */
384
            if (!k->pending)
385
                q = &k->info;
386
            else
387
                return 0;
388
        } else {
389
            if (!k->pending) {
390
                /* first signal */
391
                q = &k->info;
392
            } else {
393
                q = alloc_sigqueue();
394
                if (!q)
395
                    return -EAGAIN;
396
                while (*pq != NULL)
397
                    pq = &(*pq)->next;
398
            }
399
        }
400
        *pq = q;
401
        q->info = *info;
402
        q->next = NULL;
403
        k->pending = 1;
404
        /* signal that a new signal is pending */
405
        signal_pending = 1;
406
        return 1; /* indicates that the signal was queued */
407
    }
408
}
409

    
410
static void host_signal_handler(int host_signum, siginfo_t *info,
411
                                void *puc)
412
{
413
    int sig;
414
    target_siginfo_t tinfo;
415

    
416
    /* the CPU emulator uses some host signals to detect exceptions,
417
       we we forward to it some signals */
418
    if (host_signum == SIGSEGV || host_signum == SIGBUS) {
419
        if (cpu_signal_handler(host_signum, info, puc))
420
            return;
421
    }
422

    
423
    /* get target signal number */
424
    sig = host_to_target_signal(host_signum);
425
    if (sig < 1 || sig > TARGET_NSIG)
426
        return;
427
#if defined(DEBUG_SIGNAL)
428
    fprintf(stderr, "qemu: got signal %d\n", sig);
429
#endif
430
    host_to_target_siginfo_noswap(&tinfo, info);
431
    if (queue_signal(sig, &tinfo) == 1) {
432
        /* interrupt the virtual CPU as soon as possible */
433
        cpu_interrupt(global_env, CPU_INTERRUPT_EXIT);
434
    }
435
}
436

    
437
/* do_sigaltstack() returns target values and errnos. */
438
/* compare linux/kernel/signal.c:do_sigaltstack() */
439
abi_long do_sigaltstack(abi_ulong uss_addr, abi_ulong uoss_addr, abi_ulong sp)
440
{
441
    int ret;
442
    struct target_sigaltstack oss;
443

    
444
    /* XXX: test errors */
445
    if(uoss_addr)
446
    {
447
        __put_user(target_sigaltstack_used.ss_sp, &oss.ss_sp);
448
        __put_user(target_sigaltstack_used.ss_size, &oss.ss_size);
449
        __put_user(sas_ss_flags(sp), &oss.ss_flags);
450
    }
451

    
452
    if(uss_addr)
453
    {
454
        struct target_sigaltstack *uss;
455
        struct target_sigaltstack ss;
456

    
457
        ret = -TARGET_EFAULT;
458
        if (!lock_user_struct(VERIFY_READ, uss, uss_addr, 1)
459
            || __get_user(ss.ss_sp, &uss->ss_sp)
460
            || __get_user(ss.ss_size, &uss->ss_size)
461
            || __get_user(ss.ss_flags, &uss->ss_flags))
462
            goto out;
463
        unlock_user_struct(uss, uss_addr, 0);
464

    
465
        ret = -TARGET_EPERM;
466
        if (on_sig_stack(sp))
467
            goto out;
468

    
469
        ret = -TARGET_EINVAL;
470
        if (ss.ss_flags != TARGET_SS_DISABLE
471
            && ss.ss_flags != TARGET_SS_ONSTACK
472
            && ss.ss_flags != 0)
473
            goto out;
474

    
475
        if (ss.ss_flags == TARGET_SS_DISABLE) {
476
            ss.ss_size = 0;
477
            ss.ss_sp = 0;
478
        } else {
479
            ret = -TARGET_ENOMEM;
480
            if (ss.ss_size < MINSIGSTKSZ)
481
                goto out;
482
        }
483

    
484
        target_sigaltstack_used.ss_sp = ss.ss_sp;
485
        target_sigaltstack_used.ss_size = ss.ss_size;
486
    }
487

    
488
    if (uoss_addr) {
489
        ret = -TARGET_EFAULT;
490
        if (copy_to_user(uoss_addr, &oss, sizeof(oss)))
491
            goto out;
492
    }
493

    
494
    ret = 0;
495
out:
496
    return ret;
497
}
498

    
499
/* do_sigaction() return host values and errnos */
500
int do_sigaction(int sig, const struct target_sigaction *act,
501
                 struct target_sigaction *oact)
502
{
503
    struct emulated_sigaction *k;
504
    struct sigaction act1;
505
    int host_sig;
506
    int ret = 0;
507

    
508
    if (sig < 1 || sig > TARGET_NSIG || sig == SIGKILL || sig == SIGSTOP)
509
        return -EINVAL;
510
    k = &sigact_table[sig - 1];
511
#if defined(DEBUG_SIGNAL)
512
    fprintf(stderr, "sigaction sig=%d act=0x%08x, oact=0x%08x\n",
513
            sig, (int)act, (int)oact);
514
#endif
515
    if (oact) {
516
        oact->_sa_handler = tswapl(k->sa._sa_handler);
517
        oact->sa_flags = tswapl(k->sa.sa_flags);
518
#if !defined(TARGET_MIPS)
519
        oact->sa_restorer = tswapl(k->sa.sa_restorer);
520
#endif
521
        oact->sa_mask = k->sa.sa_mask;
522
    }
523
    if (act) {
524
        k->sa._sa_handler = tswapl(act->_sa_handler);
525
        k->sa.sa_flags = tswapl(act->sa_flags);
526
#if !defined(TARGET_MIPS)
527
        k->sa.sa_restorer = tswapl(act->sa_restorer);
528
#endif
529
        k->sa.sa_mask = act->sa_mask;
530

    
531
        /* we update the host linux signal state */
532
        host_sig = target_to_host_signal(sig);
533
        if (host_sig != SIGSEGV && host_sig != SIGBUS) {
534
            sigfillset(&act1.sa_mask);
535
            act1.sa_flags = SA_SIGINFO;
536
            if (k->sa.sa_flags & TARGET_SA_RESTART)
537
                act1.sa_flags |= SA_RESTART;
538
            /* NOTE: it is important to update the host kernel signal
539
               ignore state to avoid getting unexpected interrupted
540
               syscalls */
541
            if (k->sa._sa_handler == TARGET_SIG_IGN) {
542
                act1.sa_sigaction = (void *)SIG_IGN;
543
            } else if (k->sa._sa_handler == TARGET_SIG_DFL) {
544
                act1.sa_sigaction = (void *)SIG_DFL;
545
            } else {
546
                act1.sa_sigaction = host_signal_handler;
547
            }
548
            ret = sigaction(host_sig, &act1, NULL);
549
        }
550
    }
551
    return ret;
552
}
553

    
554
#ifndef offsetof
555
#define offsetof(type, field) ((size_t) &((type *)0)->field)
556
#endif
557

    
558
static inline int copy_siginfo_to_user(target_siginfo_t *tinfo,
559
                                       const target_siginfo_t *info)
560
{
561
    tswap_siginfo(tinfo, info);
562
    return 0;
563
}
564

    
565
#if defined(TARGET_I386) && TARGET_ABI_BITS == 32
566

    
567
/* from the Linux kernel */
568

    
569
struct target_fpreg {
570
        uint16_t significand[4];
571
        uint16_t exponent;
572
};
573

    
574
struct target_fpxreg {
575
        uint16_t significand[4];
576
        uint16_t exponent;
577
        uint16_t padding[3];
578
};
579

    
580
struct target_xmmreg {
581
        abi_ulong element[4];
582
};
583

    
584
struct target_fpstate {
585
        /* Regular FPU environment */
586
        abi_ulong       cw;
587
        abi_ulong       sw;
588
        abi_ulong       tag;
589
        abi_ulong       ipoff;
590
        abi_ulong       cssel;
591
        abi_ulong       dataoff;
592
        abi_ulong       datasel;
593
        struct target_fpreg        _st[8];
594
        uint16_t        status;
595
        uint16_t        magic;                /* 0xffff = regular FPU data only */
596

    
597
        /* FXSR FPU environment */
598
        abi_ulong       _fxsr_env[6];   /* FXSR FPU env is ignored */
599
        abi_ulong       mxcsr;
600
        abi_ulong       reserved;
601
        struct target_fpxreg        _fxsr_st[8];        /* FXSR FPU reg data is ignored */
602
        struct target_xmmreg        _xmm[8];
603
        abi_ulong       padding[56];
604
};
605

    
606
#define X86_FXSR_MAGIC                0x0000
607

    
608
struct target_sigcontext {
609
        uint16_t gs, __gsh;
610
        uint16_t fs, __fsh;
611
        uint16_t es, __esh;
612
        uint16_t ds, __dsh;
613
        abi_ulong edi;
614
        abi_ulong esi;
615
        abi_ulong ebp;
616
        abi_ulong esp;
617
        abi_ulong ebx;
618
        abi_ulong edx;
619
        abi_ulong ecx;
620
        abi_ulong eax;
621
        abi_ulong trapno;
622
        abi_ulong err;
623
        abi_ulong eip;
624
        uint16_t cs, __csh;
625
        abi_ulong eflags;
626
        abi_ulong esp_at_signal;
627
        uint16_t ss, __ssh;
628
        abi_ulong fpstate; /* pointer */
629
        abi_ulong oldmask;
630
        abi_ulong cr2;
631
};
632

    
633
struct target_ucontext {
634
        abi_ulong         tuc_flags;
635
        abi_ulong         tuc_link;
636
        target_stack_t          tuc_stack;
637
        struct target_sigcontext tuc_mcontext;
638
        target_sigset_t          tuc_sigmask;        /* mask last for extensibility */
639
};
640

    
641
struct sigframe
642
{
643
    abi_ulong pretcode;
644
    int sig;
645
    struct target_sigcontext sc;
646
    struct target_fpstate fpstate;
647
    abi_ulong extramask[TARGET_NSIG_WORDS-1];
648
    char retcode[8];
649
};
650

    
651
struct rt_sigframe
652
{
653
    abi_ulong pretcode;
654
    int sig;
655
    abi_ulong pinfo;
656
    abi_ulong puc;
657
    struct target_siginfo info;
658
    struct target_ucontext uc;
659
    struct target_fpstate fpstate;
660
    char retcode[8];
661
};
662

    
663
/*
664
 * Set up a signal frame.
665
 */
666

    
667
/* XXX: save x87 state */
668
static int
669
setup_sigcontext(struct target_sigcontext *sc, struct target_fpstate *fpstate,
670
                 CPUX86State *env, unsigned long mask)
671
{
672
        int err = 0;
673
        uint16_t magic;
674

    
675
        /* already locked in setup_frame() */
676
        err |= __put_user(env->segs[R_GS].selector, (unsigned int *)&sc->gs);
677
        err |= __put_user(env->segs[R_FS].selector, (unsigned int *)&sc->fs);
678
        err |= __put_user(env->segs[R_ES].selector, (unsigned int *)&sc->es);
679
        err |= __put_user(env->segs[R_DS].selector, (unsigned int *)&sc->ds);
680
        err |= __put_user(env->regs[R_EDI], &sc->edi);
681
        err |= __put_user(env->regs[R_ESI], &sc->esi);
682
        err |= __put_user(env->regs[R_EBP], &sc->ebp);
683
        err |= __put_user(env->regs[R_ESP], &sc->esp);
684
        err |= __put_user(env->regs[R_EBX], &sc->ebx);
685
        err |= __put_user(env->regs[R_EDX], &sc->edx);
686
        err |= __put_user(env->regs[R_ECX], &sc->ecx);
687
        err |= __put_user(env->regs[R_EAX], &sc->eax);
688
        err |= __put_user(env->exception_index, &sc->trapno);
689
        err |= __put_user(env->error_code, &sc->err);
690
        err |= __put_user(env->eip, &sc->eip);
691
        err |= __put_user(env->segs[R_CS].selector, (unsigned int *)&sc->cs);
692
        err |= __put_user(env->eflags, &sc->eflags);
693
        err |= __put_user(env->regs[R_ESP], &sc->esp_at_signal);
694
        err |= __put_user(env->segs[R_SS].selector, (unsigned int *)&sc->ss);
695

    
696
        cpu_x86_fsave(env, (void *)fpstate, 1);
697
        fpstate->status = fpstate->sw;
698
        magic = 0xffff;
699
        err |= __put_user(magic, &fpstate->magic);
700
        err |= __put_user(fpstate, &sc->fpstate);
701

    
702
        /* non-iBCS2 extensions.. */
703
        err |= __put_user(mask, &sc->oldmask);
704
        err |= __put_user(env->cr[2], &sc->cr2);
705
        return err;
706
}
707

    
708
/*
709
 * Determine which stack to use..
710
 */
711

    
712
static inline abi_ulong
713
get_sigframe(struct emulated_sigaction *ka, CPUX86State *env, size_t frame_size)
714
{
715
        unsigned long esp;
716

    
717
        /* Default to using normal stack */
718
        esp = env->regs[R_ESP];
719
        /* This is the X/Open sanctioned signal stack switching.  */
720
        if (ka->sa.sa_flags & TARGET_SA_ONSTACK) {
721
            if (sas_ss_flags(esp) == 0)
722
                esp = target_sigaltstack_used.ss_sp + target_sigaltstack_used.ss_size;
723
        }
724

    
725
        /* This is the legacy signal stack switching. */
726
        else
727
        if ((env->segs[R_SS].selector & 0xffff) != __USER_DS &&
728
            !(ka->sa.sa_flags & TARGET_SA_RESTORER) &&
729
            ka->sa.sa_restorer) {
730
            esp = (unsigned long) ka->sa.sa_restorer;
731
        }
732
        return (esp - frame_size) & -8ul;
733
}
734

    
735
/* compare linux/arch/i386/kernel/signal.c:setup_frame() */
736
static void setup_frame(int sig, struct emulated_sigaction *ka,
737
                        target_sigset_t *set, CPUX86State *env)
738
{
739
        abi_ulong frame_addr;
740
        struct sigframe *frame;
741
        int i, err = 0;
742

    
743
        frame_addr = get_sigframe(ka, env, sizeof(*frame));
744

    
745
        if (!lock_user_struct(VERIFY_WRITE, frame, frame_addr, 0))
746
                goto give_sigsegv;
747

    
748
        err |= __put_user((/*current->exec_domain
749
                           && current->exec_domain->signal_invmap
750
                           && sig < 32
751
                           ? current->exec_domain->signal_invmap[sig]
752
                           : */ sig),
753
                          &frame->sig);
754
        if (err)
755
                goto give_sigsegv;
756

    
757
        setup_sigcontext(&frame->sc, &frame->fpstate, env, set->sig[0]);
758
        if (err)
759
                goto give_sigsegv;
760

    
761
        for(i = 1; i < TARGET_NSIG_WORDS; i++) {
762
            if (__put_user(set->sig[i], &frame->extramask[i - 1]))
763
                goto give_sigsegv;
764
        }
765

    
766
        /* Set up to return from userspace.  If provided, use a stub
767
           already in userspace.  */
768
        if (ka->sa.sa_flags & TARGET_SA_RESTORER) {
769
                err |= __put_user(ka->sa.sa_restorer, &frame->pretcode);
770
        } else {
771
                uint16_t val16;
772
                err |= __put_user(frame->retcode, &frame->pretcode);
773
                /* This is popl %eax ; movl $,%eax ; int $0x80 */
774
                val16 = 0xb858;
775
                err |= __put_user(val16, (uint16_t *)(frame->retcode+0));
776
                err |= __put_user(TARGET_NR_sigreturn, (int *)(frame->retcode+2));
777
                val16 = 0x80cd;
778
                err |= __put_user(val16, (uint16_t *)(frame->retcode+6));
779
        }
780

    
781
        if (err)
782
                goto give_sigsegv;
783

    
784
        /* Set up registers for signal handler */
785
        env->regs[R_ESP] = h2g(frame);
786
        env->eip = (unsigned long) ka->sa._sa_handler;
787

    
788
        cpu_x86_load_seg(env, R_DS, __USER_DS);
789
        cpu_x86_load_seg(env, R_ES, __USER_DS);
790
        cpu_x86_load_seg(env, R_SS, __USER_DS);
791
        cpu_x86_load_seg(env, R_CS, __USER_CS);
792
        env->eflags &= ~TF_MASK;
793

    
794
        unlock_user_struct(frame, frame_addr, 1);
795

    
796
        return;
797

    
798
give_sigsegv:
799
        unlock_user_struct(frame, frame_addr, 1);
800
        if (sig == TARGET_SIGSEGV)
801
                ka->sa._sa_handler = TARGET_SIG_DFL;
802
        force_sig(TARGET_SIGSEGV /* , current */);
803
}
804

    
805
/* compare linux/arch/i386/kernel/signal.c:setup_rt_frame() */
806
static void setup_rt_frame(int sig, struct emulated_sigaction *ka,
807
                           target_siginfo_t *info,
808
                           target_sigset_t *set, CPUX86State *env)
809
{
810
        abi_ulong frame_addr;
811
        struct rt_sigframe *frame;
812
        int i, err = 0;
813

    
814
        frame_addr = get_sigframe(ka, env, sizeof(*frame));
815

    
816
        if (!lock_user_struct(VERIFY_WRITE, frame, frame_addr, 0))
817
                goto give_sigsegv;
818

    
819
        err |= __put_user((/*current->exec_domain
820
                               && current->exec_domain->signal_invmap
821
                               && sig < 32
822
                               ? current->exec_domain->signal_invmap[sig]
823
                           : */sig),
824
                          &frame->sig);
825
        err |= __put_user((abi_ulong)&frame->info, &frame->pinfo);
826
        err |= __put_user((abi_ulong)&frame->uc, &frame->puc);
827
        err |= copy_siginfo_to_user(&frame->info, info);
828
        if (err)
829
                goto give_sigsegv;
830

    
831
        /* Create the ucontext.  */
832
        err |= __put_user(0, &frame->uc.tuc_flags);
833
        err |= __put_user(0, &frame->uc.tuc_link);
834
        err |= __put_user(target_sigaltstack_used.ss_sp,
835
                          &frame->uc.tuc_stack.ss_sp);
836
        err |= __put_user(sas_ss_flags(get_sp_from_cpustate(env)),
837
                          &frame->uc.tuc_stack.ss_flags);
838
        err |= __put_user(target_sigaltstack_used.ss_size,
839
                          &frame->uc.tuc_stack.ss_size);
840
        err |= setup_sigcontext(&frame->uc.tuc_mcontext, &frame->fpstate,
841
                                env, set->sig[0]);
842
        for(i = 0; i < TARGET_NSIG_WORDS; i++) {
843
            if (__put_user(set->sig[i], &frame->uc.tuc_sigmask.sig[i]))
844
                goto give_sigsegv;
845
        }
846

    
847
        /* Set up to return from userspace.  If provided, use a stub
848
           already in userspace.  */
849
        if (ka->sa.sa_flags & TARGET_SA_RESTORER) {
850
                err |= __put_user(ka->sa.sa_restorer, &frame->pretcode);
851
        } else {
852
                uint16_t val16;
853
                
854
                err |= __put_user(frame->retcode, &frame->pretcode);
855
                /* This is movl $,%eax ; int $0x80 */
856
                err |= __put_user(0xb8, (char *)(frame->retcode+0));
857
                err |= __put_user(TARGET_NR_rt_sigreturn, (int *)(frame->retcode+1));
858
                val16 = 0x80cd;
859
                err |= __put_user(val16, (uint16_t *)(frame->retcode+5));
860
        }
861

    
862
        if (err)
863
                goto give_sigsegv;
864

    
865
        /* Set up registers for signal handler */
866
        env->regs[R_ESP] = (unsigned long) frame;
867
        env->eip = (unsigned long) ka->sa._sa_handler;
868

    
869
        cpu_x86_load_seg(env, R_DS, __USER_DS);
870
        cpu_x86_load_seg(env, R_ES, __USER_DS);
871
        cpu_x86_load_seg(env, R_SS, __USER_DS);
872
        cpu_x86_load_seg(env, R_CS, __USER_CS);
873
        env->eflags &= ~TF_MASK;
874

    
875
        unlock_user_struct(frame, frame_addr, 1);
876

    
877
        return;
878

    
879
give_sigsegv:
880
        unlock_user_struct(frame, frame_addr, 1);
881
        if (sig == TARGET_SIGSEGV)
882
                ka->sa._sa_handler = TARGET_SIG_DFL;
883
        force_sig(TARGET_SIGSEGV /* , current */);
884
}
885

    
886
static int
887
restore_sigcontext(CPUX86State *env, struct target_sigcontext *sc, int *peax)
888
{
889
        unsigned int err = 0;
890

    
891
        cpu_x86_load_seg(env, R_GS, lduw(&sc->gs));
892
        cpu_x86_load_seg(env, R_FS, lduw(&sc->fs));
893
        cpu_x86_load_seg(env, R_ES, lduw(&sc->es));
894
        cpu_x86_load_seg(env, R_DS, lduw(&sc->ds));
895

    
896
        env->regs[R_EDI] = ldl(&sc->edi);
897
        env->regs[R_ESI] = ldl(&sc->esi);
898
        env->regs[R_EBP] = ldl(&sc->ebp);
899
        env->regs[R_ESP] = ldl(&sc->esp);
900
        env->regs[R_EBX] = ldl(&sc->ebx);
901
        env->regs[R_EDX] = ldl(&sc->edx);
902
        env->regs[R_ECX] = ldl(&sc->ecx);
903
        env->eip = ldl(&sc->eip);
904

    
905
        cpu_x86_load_seg(env, R_CS, lduw(&sc->cs) | 3);
906
        cpu_x86_load_seg(env, R_SS, lduw(&sc->ss) | 3);
907

    
908
        {
909
                unsigned int tmpflags;
910
                tmpflags = ldl(&sc->eflags);
911
                env->eflags = (env->eflags & ~0x40DD5) | (tmpflags & 0x40DD5);
912
                //                regs->orig_eax = -1;                /* disable syscall checks */
913
        }
914

    
915
        {
916
                struct _fpstate * buf;
917
                buf = (void *)ldl(&sc->fpstate);
918
                if (buf) {
919
#if 0
920
                        if (verify_area(VERIFY_READ, buf, sizeof(*buf)))
921
                                goto badframe;
922
#endif
923
                        cpu_x86_frstor(env, (void *)buf, 1);
924
                }
925
        }
926

    
927
        *peax = ldl(&sc->eax);
928
        return err;
929
#if 0
930
badframe:
931
        return 1;
932
#endif
933
}
934

    
935
long do_sigreturn(CPUX86State *env)
936
{
937
    struct sigframe *frame;
938
    abi_ulong frame_addr = env->regs[R_ESP] - 8;
939
    target_sigset_t target_set;
940
    sigset_t set;
941
    int eax, i;
942

    
943
#if defined(DEBUG_SIGNAL)
944
    fprintf(stderr, "do_sigreturn\n");
945
#endif
946
    if (!lock_user_struct(VERIFY_READ, frame, frame_addr, 1))
947
        goto badframe;
948
    /* set blocked signals */
949
    if (__get_user(target_set.sig[0], &frame->sc.oldmask))
950
        goto badframe;
951
    for(i = 1; i < TARGET_NSIG_WORDS; i++) {
952
        if (__get_user(target_set.sig[i], &frame->extramask[i - 1]))
953
            goto badframe;
954
    }
955

    
956
    target_to_host_sigset_internal(&set, &target_set);
957
    sigprocmask(SIG_SETMASK, &set, NULL);
958

    
959
    /* restore registers */
960
    if (restore_sigcontext(env, &frame->sc, &eax))
961
        goto badframe;
962
    unlock_user_struct(frame, frame_addr, 0);
963
    return eax;
964

    
965
badframe:
966
    unlock_user_struct(frame, frame_addr, 0);
967
    force_sig(TARGET_SIGSEGV);
968
    return 0;
969
}
970

    
971
long do_rt_sigreturn(CPUX86State *env)
972
{
973
        struct rt_sigframe *frame = (struct rt_sigframe *)g2h(env->regs[R_ESP] - 4);
974
        sigset_t set;
975
        int eax;
976

    
977
#if 0
978
        if (verify_area(VERIFY_READ, frame, sizeof(*frame)))
979
                goto badframe;
980
#endif
981
        target_to_host_sigset(&set, &frame->uc.tuc_sigmask);
982
        sigprocmask(SIG_SETMASK, &set, NULL);
983

    
984
        if (restore_sigcontext(env, &frame->uc.tuc_mcontext, &eax))
985
                goto badframe;
986

    
987
        if (do_sigaltstack(h2g(&frame->uc.tuc_stack), 0, get_sp_from_cpustate(env)) == -EFAULT)
988
                goto badframe;
989

    
990
        return eax;
991

    
992
badframe:
993
        force_sig(TARGET_SIGSEGV);
994
        return 0;
995
}
996

    
997
#elif defined(TARGET_ARM)
998

    
999
struct target_sigcontext {
1000
        abi_ulong trap_no;
1001
        abi_ulong error_code;
1002
        abi_ulong oldmask;
1003
        abi_ulong arm_r0;
1004
        abi_ulong arm_r1;
1005
        abi_ulong arm_r2;
1006
        abi_ulong arm_r3;
1007
        abi_ulong arm_r4;
1008
        abi_ulong arm_r5;
1009
        abi_ulong arm_r6;
1010
        abi_ulong arm_r7;
1011
        abi_ulong arm_r8;
1012
        abi_ulong arm_r9;
1013
        abi_ulong arm_r10;
1014
        abi_ulong arm_fp;
1015
        abi_ulong arm_ip;
1016
        abi_ulong arm_sp;
1017
        abi_ulong arm_lr;
1018
        abi_ulong arm_pc;
1019
        abi_ulong arm_cpsr;
1020
        abi_ulong fault_address;
1021
};
1022

    
1023
struct target_ucontext {
1024
    abi_ulong tuc_flags;
1025
    abi_ulong tuc_link;
1026
    target_stack_t tuc_stack;
1027
    struct target_sigcontext tuc_mcontext;
1028
    target_sigset_t  tuc_sigmask;        /* mask last for extensibility */
1029
};
1030

    
1031
struct sigframe
1032
{
1033
    struct target_sigcontext sc;
1034
    abi_ulong extramask[TARGET_NSIG_WORDS-1];
1035
    abi_ulong retcode;
1036
};
1037

    
1038
struct rt_sigframe
1039
{
1040
    struct target_siginfo *pinfo;
1041
    void *puc;
1042
    struct target_siginfo info;
1043
    struct target_ucontext uc;
1044
    abi_ulong retcode;
1045
};
1046

    
1047
#define TARGET_CONFIG_CPU_32 1
1048

    
1049
/*
1050
 * For ARM syscalls, we encode the syscall number into the instruction.
1051
 */
1052
#define SWI_SYS_SIGRETURN        (0xef000000|(TARGET_NR_sigreturn + ARM_SYSCALL_BASE))
1053
#define SWI_SYS_RT_SIGRETURN        (0xef000000|(TARGET_NR_rt_sigreturn + ARM_SYSCALL_BASE))
1054

    
1055
/*
1056
 * For Thumb syscalls, we pass the syscall number via r7.  We therefore
1057
 * need two 16-bit instructions.
1058
 */
1059
#define SWI_THUMB_SIGRETURN        (0xdf00 << 16 | 0x2700 | (TARGET_NR_sigreturn))
1060
#define SWI_THUMB_RT_SIGRETURN        (0xdf00 << 16 | 0x2700 | (TARGET_NR_rt_sigreturn))
1061

    
1062
static const abi_ulong retcodes[4] = {
1063
        SWI_SYS_SIGRETURN,        SWI_THUMB_SIGRETURN,
1064
        SWI_SYS_RT_SIGRETURN,        SWI_THUMB_RT_SIGRETURN
1065
};
1066

    
1067

    
1068
#define __put_user_error(x,p,e) __put_user(x, p)
1069
#define __get_user_error(x,p,e) __get_user(x, p)
1070

    
1071
static inline int valid_user_regs(CPUState *regs)
1072
{
1073
    return 1;
1074
}
1075

    
1076
static int
1077
setup_sigcontext(struct target_sigcontext *sc, /*struct _fpstate *fpstate,*/
1078
                 CPUState *env, unsigned long mask)
1079
{
1080
        int err = 0;
1081

    
1082
        __put_user_error(env->regs[0], &sc->arm_r0, err);
1083
        __put_user_error(env->regs[1], &sc->arm_r1, err);
1084
        __put_user_error(env->regs[2], &sc->arm_r2, err);
1085
        __put_user_error(env->regs[3], &sc->arm_r3, err);
1086
        __put_user_error(env->regs[4], &sc->arm_r4, err);
1087
        __put_user_error(env->regs[5], &sc->arm_r5, err);
1088
        __put_user_error(env->regs[6], &sc->arm_r6, err);
1089
        __put_user_error(env->regs[7], &sc->arm_r7, err);
1090
        __put_user_error(env->regs[8], &sc->arm_r8, err);
1091
        __put_user_error(env->regs[9], &sc->arm_r9, err);
1092
        __put_user_error(env->regs[10], &sc->arm_r10, err);
1093
        __put_user_error(env->regs[11], &sc->arm_fp, err);
1094
        __put_user_error(env->regs[12], &sc->arm_ip, err);
1095
        __put_user_error(env->regs[13], &sc->arm_sp, err);
1096
        __put_user_error(env->regs[14], &sc->arm_lr, err);
1097
        __put_user_error(env->regs[15], &sc->arm_pc, err);
1098
#ifdef TARGET_CONFIG_CPU_32
1099
        __put_user_error(cpsr_read(env), &sc->arm_cpsr, err);
1100
#endif
1101

    
1102
        __put_user_error(/* current->thread.trap_no */ 0, &sc->trap_no, err);
1103
        __put_user_error(/* current->thread.error_code */ 0, &sc->error_code, err);
1104
        __put_user_error(/* current->thread.address */ 0, &sc->fault_address, err);
1105
        __put_user_error(mask, &sc->oldmask, err);
1106

    
1107
        return err;
1108
}
1109

    
1110
static inline abi_ulong
1111
get_sigframe(struct emulated_sigaction *ka, CPUState *regs, int framesize)
1112
{
1113
        unsigned long sp = regs->regs[13];
1114

    
1115
        /*
1116
         * This is the X/Open sanctioned signal stack switching.
1117
         */
1118
        if ((ka->sa.sa_flags & TARGET_SA_ONSTACK) && !sas_ss_flags(sp))
1119
            sp = target_sigaltstack_used.ss_sp + target_sigaltstack_used.ss_size;
1120
        /*
1121
         * ATPCS B01 mandates 8-byte alignment
1122
         */
1123
        return (sp - framesize) & ~7;
1124
}
1125

    
1126
static int
1127
setup_return(CPUState *env, struct emulated_sigaction *ka,
1128
             abi_ulong *rc, void *frame, int usig)
1129
{
1130
        abi_ulong handler = (abi_ulong)ka->sa._sa_handler;
1131
        abi_ulong retcode;
1132
        int thumb = 0;
1133
#if defined(TARGET_CONFIG_CPU_32)
1134
#if 0
1135
        abi_ulong cpsr = env->cpsr;
1136

1137
        /*
1138
         * Maybe we need to deliver a 32-bit signal to a 26-bit task.
1139
         */
1140
        if (ka->sa.sa_flags & SA_THIRTYTWO)
1141
                cpsr = (cpsr & ~MODE_MASK) | USR_MODE;
1142

1143
#ifdef CONFIG_ARM_THUMB
1144
        if (elf_hwcap & HWCAP_THUMB) {
1145
                /*
1146
                 * The LSB of the handler determines if we're going to
1147
                 * be using THUMB or ARM mode for this signal handler.
1148
                 */
1149
                thumb = handler & 1;
1150

1151
                if (thumb)
1152
                        cpsr |= T_BIT;
1153
                else
1154
                        cpsr &= ~T_BIT;
1155
        }
1156
#endif /* CONFIG_ARM_THUMB */
1157
#endif /* 0 */
1158
#endif /* TARGET_CONFIG_CPU_32 */
1159

    
1160
        if (ka->sa.sa_flags & TARGET_SA_RESTORER) {
1161
                retcode = (abi_ulong)ka->sa.sa_restorer;
1162
        } else {
1163
                unsigned int idx = thumb;
1164

    
1165
                if (ka->sa.sa_flags & TARGET_SA_SIGINFO)
1166
                        idx += 2;
1167

    
1168
                if (__put_user(retcodes[idx], rc))
1169
                        return 1;
1170
#if 0
1171
                flush_icache_range((abi_ulong)rc,
1172
                                   (abi_ulong)(rc + 1));
1173
#endif
1174
                retcode = ((abi_ulong)rc) + thumb;
1175
        }
1176

    
1177
        env->regs[0] = usig;
1178
        env->regs[13] = h2g(frame);
1179
        env->regs[14] = retcode;
1180
        env->regs[15] = handler & (thumb ? ~1 : ~3);
1181

    
1182
#if 0
1183
#ifdef TARGET_CONFIG_CPU_32
1184
        env->cpsr = cpsr;
1185
#endif
1186
#endif
1187

    
1188
        return 0;
1189
}
1190

    
1191
/* compare linux/arch/arm/kernel/signal.c:setup_frame() */
1192
static void setup_frame(int usig, struct emulated_sigaction *ka,
1193
                        target_sigset_t *set, CPUState *regs)
1194
{
1195
        struct sigframe *frame;
1196
        abi_ulong frame_addr = get_sigframe(ka, regs, sizeof(*frame));
1197
        int i, err = 0;
1198

    
1199
        if (!lock_user_struct(VERIFY_WRITE, frame, frame_addr, 0))
1200
                return;
1201

    
1202
        err |= setup_sigcontext(&frame->sc, /*&frame->fpstate,*/ regs, set->sig[0]);
1203

    
1204
        for(i = 1; i < TARGET_NSIG_WORDS; i++) {
1205
            if (__put_user(set->sig[i], &frame->extramask[i - 1]))
1206
                goto end;
1207
        }
1208

    
1209
        if (err == 0)
1210
            err = setup_return(regs, ka, &frame->retcode, frame, usig);
1211

    
1212
end:
1213
        unlock_user_struct(frame, frame_addr, 1);
1214
        //        return err;
1215
}
1216

    
1217
/* compare linux/arch/arm/kernel/signal.c:setup_rt_frame() */
1218
static void setup_rt_frame(int usig, struct emulated_sigaction *ka,
1219
                           target_siginfo_t *info,
1220
                           target_sigset_t *set, CPUState *env)
1221
{
1222
        struct rt_sigframe *frame;
1223
        abi_ulong frame_addr = get_sigframe(ka, env, sizeof(*frame));
1224
        struct target_sigaltstack stack;
1225
        int i, err = 0;
1226

    
1227
        if (!lock_user_struct(VERIFY_WRITE, frame, frame_addr, 0))
1228
            return /* 1 */;
1229

    
1230
        __put_user_error(&frame->info, (abi_ulong *)&frame->pinfo, err);
1231
        __put_user_error(&frame->uc, (abi_ulong *)&frame->puc, err);
1232
        err |= copy_siginfo_to_user(&frame->info, info);
1233

    
1234
        /* Clear all the bits of the ucontext we don't use.  */
1235
        memset(&frame->uc, 0, offsetof(struct target_ucontext, tuc_mcontext));
1236

    
1237
        memset(&stack, 0, sizeof(stack));
1238
        __put_user(target_sigaltstack_used.ss_sp, &stack.ss_sp);
1239
        __put_user(target_sigaltstack_used.ss_size, &stack.ss_size);
1240
        __put_user(sas_ss_flags(get_sp_from_cpustate(env)), &stack.ss_flags);
1241
        memcpy(&frame->uc.tuc_stack, &stack, sizeof(stack));
1242

    
1243
        err |= setup_sigcontext(&frame->uc.tuc_mcontext, /*&frame->fpstate,*/
1244
                                env, set->sig[0]);
1245
        for(i = 0; i < TARGET_NSIG_WORDS; i++) {
1246
            if (__put_user(set->sig[i], &frame->uc.tuc_sigmask.sig[i]))
1247
                goto end;
1248
        }
1249

    
1250
        if (err == 0)
1251
                err = setup_return(env, ka, &frame->retcode, frame, usig);
1252

    
1253
        if (err == 0) {
1254
                /*
1255
                 * For realtime signals we must also set the second and third
1256
                 * arguments for the signal handler.
1257
                 *   -- Peter Maydell <pmaydell@chiark.greenend.org.uk> 2000-12-06
1258
                 */
1259
            env->regs[1] = (abi_ulong)frame->pinfo;
1260
            env->regs[2] = (abi_ulong)frame->puc;
1261
        }
1262

    
1263
end:
1264
        unlock_user_struct(frame, frame_addr, 1);
1265

    
1266
        //        return err;
1267
}
1268

    
1269
static int
1270
restore_sigcontext(CPUState *env, struct target_sigcontext *sc)
1271
{
1272
        int err = 0;
1273
        uint32_t cpsr;
1274

    
1275
        __get_user_error(env->regs[0], &sc->arm_r0, err);
1276
        __get_user_error(env->regs[1], &sc->arm_r1, err);
1277
        __get_user_error(env->regs[2], &sc->arm_r2, err);
1278
        __get_user_error(env->regs[3], &sc->arm_r3, err);
1279
        __get_user_error(env->regs[4], &sc->arm_r4, err);
1280
        __get_user_error(env->regs[5], &sc->arm_r5, err);
1281
        __get_user_error(env->regs[6], &sc->arm_r6, err);
1282
        __get_user_error(env->regs[7], &sc->arm_r7, err);
1283
        __get_user_error(env->regs[8], &sc->arm_r8, err);
1284
        __get_user_error(env->regs[9], &sc->arm_r9, err);
1285
        __get_user_error(env->regs[10], &sc->arm_r10, err);
1286
        __get_user_error(env->regs[11], &sc->arm_fp, err);
1287
        __get_user_error(env->regs[12], &sc->arm_ip, err);
1288
        __get_user_error(env->regs[13], &sc->arm_sp, err);
1289
        __get_user_error(env->regs[14], &sc->arm_lr, err);
1290
        __get_user_error(env->regs[15], &sc->arm_pc, err);
1291
#ifdef TARGET_CONFIG_CPU_32
1292
        __get_user_error(cpsr, &sc->arm_cpsr, err);
1293
        cpsr_write(env, cpsr, 0xffffffff);
1294
#endif
1295

    
1296
        err |= !valid_user_regs(env);
1297

    
1298
        return err;
1299
}
1300

    
1301
long do_sigreturn(CPUState *env)
1302
{
1303
        struct sigframe *frame;
1304
        target_sigset_t set;
1305
        sigset_t host_set;
1306
        int i;
1307

    
1308
        /*
1309
         * Since we stacked the signal on a 64-bit boundary,
1310
         * then 'sp' should be word aligned here.  If it's
1311
         * not, then the user is trying to mess with us.
1312
         */
1313
        if (env->regs[13] & 7)
1314
                goto badframe;
1315

    
1316
        frame = (struct sigframe *)g2h(env->regs[13]);
1317

    
1318
#if 0
1319
        if (verify_area(VERIFY_READ, frame, sizeof (*frame)))
1320
                goto badframe;
1321
#endif
1322
        if (__get_user(set.sig[0], &frame->sc.oldmask))
1323
            goto badframe;
1324
        for(i = 1; i < TARGET_NSIG_WORDS; i++) {
1325
            if (__get_user(set.sig[i], &frame->extramask[i - 1]))
1326
                goto badframe;
1327
        }
1328

    
1329
        target_to_host_sigset_internal(&host_set, &set);
1330
        sigprocmask(SIG_SETMASK, &host_set, NULL);
1331

    
1332
        if (restore_sigcontext(env, &frame->sc))
1333
                goto badframe;
1334

    
1335
#if 0
1336
        /* Send SIGTRAP if we're single-stepping */
1337
        if (ptrace_cancel_bpt(current))
1338
                send_sig(SIGTRAP, current, 1);
1339
#endif
1340
        return env->regs[0];
1341

    
1342
badframe:
1343
        force_sig(SIGSEGV /* , current */);
1344
        return 0;
1345
}
1346

    
1347
long do_rt_sigreturn(CPUState *env)
1348
{
1349
        struct rt_sigframe *frame;
1350
        sigset_t host_set;
1351

    
1352
        /*
1353
         * Since we stacked the signal on a 64-bit boundary,
1354
         * then 'sp' should be word aligned here.  If it's
1355
         * not, then the user is trying to mess with us.
1356
         */
1357
        if (env->regs[13] & 7)
1358
                goto badframe;
1359

    
1360
        frame = (struct rt_sigframe *)env->regs[13];
1361

    
1362
#if 0
1363
        if (verify_area(VERIFY_READ, frame, sizeof (*frame)))
1364
                goto badframe;
1365
#endif
1366
        target_to_host_sigset(&host_set, &frame->uc.tuc_sigmask);
1367
        sigprocmask(SIG_SETMASK, &host_set, NULL);
1368

    
1369
        if (restore_sigcontext(env, &frame->uc.tuc_mcontext))
1370
                goto badframe;
1371

    
1372
        if (do_sigaltstack(h2g(&frame->uc.tuc_stack), 0, get_sp_from_cpustate(env)) == -EFAULT)
1373
                goto badframe;
1374

    
1375
#if 0
1376
        /* Send SIGTRAP if we're single-stepping */
1377
        if (ptrace_cancel_bpt(current))
1378
                send_sig(SIGTRAP, current, 1);
1379
#endif
1380
        return env->regs[0];
1381

    
1382
badframe:
1383
        force_sig(SIGSEGV /* , current */);
1384
        return 0;
1385
}
1386

    
1387
#elif defined(TARGET_SPARC)
1388

    
1389
#define __SUNOS_MAXWIN   31
1390

    
1391
/* This is what SunOS does, so shall I. */
1392
struct target_sigcontext {
1393
        abi_ulong sigc_onstack;      /* state to restore */
1394

    
1395
        abi_ulong sigc_mask;         /* sigmask to restore */
1396
        abi_ulong sigc_sp;           /* stack pointer */
1397
        abi_ulong sigc_pc;           /* program counter */
1398
        abi_ulong sigc_npc;          /* next program counter */
1399
        abi_ulong sigc_psr;          /* for condition codes etc */
1400
        abi_ulong sigc_g1;           /* User uses these two registers */
1401
        abi_ulong sigc_o0;           /* within the trampoline code. */
1402

    
1403
        /* Now comes information regarding the users window set
1404
         * at the time of the signal.
1405
         */
1406
        abi_ulong sigc_oswins;       /* outstanding windows */
1407

    
1408
        /* stack ptrs for each regwin buf */
1409
        char *sigc_spbuf[__SUNOS_MAXWIN];
1410

    
1411
        /* Windows to restore after signal */
1412
        struct {
1413
                abi_ulong locals[8];
1414
                abi_ulong ins[8];
1415
        } sigc_wbuf[__SUNOS_MAXWIN];
1416
};
1417
/* A Sparc stack frame */
1418
struct sparc_stackf {
1419
        abi_ulong locals[8];
1420
        abi_ulong ins[6];
1421
        struct sparc_stackf *fp;
1422
        abi_ulong callers_pc;
1423
        char *structptr;
1424
        abi_ulong xargs[6];
1425
        abi_ulong xxargs[1];
1426
};
1427

    
1428
typedef struct {
1429
        struct {
1430
                abi_ulong psr;
1431
                abi_ulong pc;
1432
                abi_ulong npc;
1433
                abi_ulong y;
1434
                abi_ulong u_regs[16]; /* globals and ins */
1435
        }               si_regs;
1436
        int             si_mask;
1437
} __siginfo_t;
1438

    
1439
typedef struct {
1440
        unsigned   long si_float_regs [32];
1441
        unsigned   long si_fsr;
1442
        unsigned   long si_fpqdepth;
1443
        struct {
1444
                unsigned long *insn_addr;
1445
                unsigned long insn;
1446
        } si_fpqueue [16];
1447
} qemu_siginfo_fpu_t;
1448

    
1449

    
1450
struct target_signal_frame {
1451
        struct sparc_stackf        ss;
1452
        __siginfo_t                info;
1453
        qemu_siginfo_fpu_t         *fpu_save;
1454
        abi_ulong                insns[2] __attribute__ ((aligned (8)));
1455
        abi_ulong                extramask[TARGET_NSIG_WORDS - 1];
1456
        abi_ulong                extra_size; /* Should be 0 */
1457
        qemu_siginfo_fpu_t        fpu_state;
1458
};
1459
struct target_rt_signal_frame {
1460
        struct sparc_stackf        ss;
1461
        siginfo_t                info;
1462
        abi_ulong                regs[20];
1463
        sigset_t                mask;
1464
        qemu_siginfo_fpu_t         *fpu_save;
1465
        unsigned int                insns[2];
1466
        stack_t                        stack;
1467
        unsigned int                extra_size; /* Should be 0 */
1468
        qemu_siginfo_fpu_t        fpu_state;
1469
};
1470

    
1471
#define UREG_O0        16
1472
#define UREG_O6        22
1473
#define UREG_I0        0
1474
#define UREG_I1        1
1475
#define UREG_I2        2
1476
#define UREG_I3        3
1477
#define UREG_I4        4
1478
#define UREG_I5        5
1479
#define UREG_I6        6
1480
#define UREG_I7        7
1481
#define UREG_L0               8
1482
#define UREG_FP        UREG_I6
1483
#define UREG_SP        UREG_O6
1484

    
1485
static inline abi_ulong get_sigframe(struct emulated_sigaction *sa, 
1486
                                     CPUState *env, unsigned long framesize)
1487
{
1488
        abi_ulong sp;
1489

    
1490
        sp = env->regwptr[UREG_FP];
1491

    
1492
        /* This is the X/Open sanctioned signal stack switching.  */
1493
        if (sa->sa.sa_flags & TARGET_SA_ONSTACK) {
1494
            if (!on_sig_stack(sp)
1495
                && !((target_sigaltstack_used.ss_sp + target_sigaltstack_used.ss_size) & 7))
1496
                sp = target_sigaltstack_used.ss_sp + target_sigaltstack_used.ss_size;
1497
        }
1498
        return sp - framesize;
1499
}
1500

    
1501
static int
1502
setup___siginfo(__siginfo_t *si, CPUState *env, abi_ulong mask)
1503
{
1504
        int err = 0, i;
1505

    
1506
        err |= __put_user(env->psr, &si->si_regs.psr);
1507
        err |= __put_user(env->pc, &si->si_regs.pc);
1508
        err |= __put_user(env->npc, &si->si_regs.npc);
1509
        err |= __put_user(env->y, &si->si_regs.y);
1510
        for (i=0; i < 8; i++) {
1511
                err |= __put_user(env->gregs[i], &si->si_regs.u_regs[i]);
1512
        }
1513
        for (i=0; i < 8; i++) {
1514
                err |= __put_user(env->regwptr[UREG_I0 + i], &si->si_regs.u_regs[i+8]);
1515
        }
1516
        err |= __put_user(mask, &si->si_mask);
1517
        return err;
1518
}
1519

    
1520
#if 0
1521
static int
1522
setup_sigcontext(struct target_sigcontext *sc, /*struct _fpstate *fpstate,*/
1523
                 CPUState *env, unsigned long mask)
1524
{
1525
        int err = 0;
1526

1527
        err |= __put_user(mask, &sc->sigc_mask);
1528
        err |= __put_user(env->regwptr[UREG_SP], &sc->sigc_sp);
1529
        err |= __put_user(env->pc, &sc->sigc_pc);
1530
        err |= __put_user(env->npc, &sc->sigc_npc);
1531
        err |= __put_user(env->psr, &sc->sigc_psr);
1532
        err |= __put_user(env->gregs[1], &sc->sigc_g1);
1533
        err |= __put_user(env->regwptr[UREG_O0], &sc->sigc_o0);
1534

1535
        return err;
1536
}
1537
#endif
1538
#define NF_ALIGNEDSZ  (((sizeof(struct target_signal_frame) + 7) & (~7)))
1539

    
1540
static void setup_frame(int sig, struct emulated_sigaction *ka,
1541
                        target_sigset_t *set, CPUState *env)
1542
{
1543
        abi_ulong sf_addr;
1544
        struct target_signal_frame *sf;
1545
        int sigframe_size, err, i;
1546

    
1547
        /* 1. Make sure everything is clean */
1548
        //synchronize_user_stack();
1549

    
1550
        sigframe_size = NF_ALIGNEDSZ;
1551
        sf_addr = get_sigframe(ka, env, sigframe_size);
1552

    
1553
        sf = lock_user(VERIFY_WRITE, sf_addr, 
1554
                       sizeof(struct target_signal_frame), 0);
1555
        if (!sf)
1556
                goto sigsegv;
1557
                
1558
        //fprintf(stderr, "sf: %x pc %x fp %x sp %x\n", sf, env->pc, env->regwptr[UREG_FP], env->regwptr[UREG_SP]);
1559
#if 0
1560
        if (invalid_frame_pointer(sf, sigframe_size))
1561
                goto sigill_and_return;
1562
#endif
1563
        /* 2. Save the current process state */
1564
        err = setup___siginfo(&sf->info, env, set->sig[0]);
1565
        err |= __put_user(0, &sf->extra_size);
1566

    
1567
        //err |= save_fpu_state(regs, &sf->fpu_state);
1568
        //err |= __put_user(&sf->fpu_state, &sf->fpu_save);
1569

    
1570
        err |= __put_user(set->sig[0], &sf->info.si_mask);
1571
        for (i = 0; i < TARGET_NSIG_WORDS - 1; i++) {
1572
                err |= __put_user(set->sig[i + 1], &sf->extramask[i]);
1573
        }
1574

    
1575
        for (i = 0; i < 8; i++) {
1576
                  err |= __put_user(env->regwptr[i + UREG_L0], &sf->ss.locals[i]);
1577
        }
1578
        for (i = 0; i < 8; i++) {
1579
                  err |= __put_user(env->regwptr[i + UREG_I0], &sf->ss.ins[i]);
1580
        }
1581
        if (err)
1582
                goto sigsegv;
1583

    
1584
        /* 3. signal handler back-trampoline and parameters */
1585
        env->regwptr[UREG_FP] = sf_addr;
1586
        env->regwptr[UREG_I0] = sig;
1587
        env->regwptr[UREG_I1] = sf_addr + 
1588
                offsetof(struct target_signal_frame, info);
1589
        env->regwptr[UREG_I2] = sf_addr + 
1590
                offsetof(struct target_signal_frame, info);
1591

    
1592
        /* 4. signal handler */
1593
        env->pc = ka->sa._sa_handler;
1594
        env->npc = (env->pc + 4);
1595
        /* 5. return to kernel instructions */
1596
        if (ka->sa.sa_restorer)
1597
                env->regwptr[UREG_I7] = ka->sa.sa_restorer;
1598
        else {
1599
                uint32_t val32;
1600

    
1601
                env->regwptr[UREG_I7] = sf_addr + 
1602
                        offsetof(struct target_signal_frame, insns) - 2 * 4;
1603

    
1604
                /* mov __NR_sigreturn, %g1 */
1605
                val32 = 0x821020d8;
1606
                err |= __put_user(val32, &sf->insns[0]);
1607

    
1608
                /* t 0x10 */
1609
                val32 = 0x91d02010;
1610
                err |= __put_user(val32, &sf->insns[1]);
1611
                if (err)
1612
                        goto sigsegv;
1613

    
1614
                /* Flush instruction space. */
1615
                //flush_sig_insns(current->mm, (unsigned long) &(sf->insns[0]));
1616
                //                tb_flush(env);
1617
        }
1618
        unlock_user(sf, sf_addr, sizeof(struct target_signal_frame));
1619
        return;
1620
#if 0
1621
sigill_and_return:
1622
        force_sig(TARGET_SIGILL);
1623
#endif
1624
sigsegv:
1625
        //fprintf(stderr, "force_sig\n");
1626
        unlock_user(sf, sf_addr, sizeof(struct target_signal_frame));
1627
        force_sig(TARGET_SIGSEGV);
1628
}
1629
static inline int
1630
restore_fpu_state(CPUState *env, qemu_siginfo_fpu_t *fpu)
1631
{
1632
        int err;
1633
#if 0
1634
#ifdef CONFIG_SMP
1635
        if (current->flags & PF_USEDFPU)
1636
                regs->psr &= ~PSR_EF;
1637
#else
1638
        if (current == last_task_used_math) {
1639
                last_task_used_math = 0;
1640
                regs->psr &= ~PSR_EF;
1641
        }
1642
#endif
1643
        current->used_math = 1;
1644
        current->flags &= ~PF_USEDFPU;
1645
#endif
1646
#if 0
1647
        if (verify_area (VERIFY_READ, fpu, sizeof(*fpu)))
1648
                return -EFAULT;
1649
#endif
1650

    
1651
#if 0
1652
        /* XXX: incorrect */
1653
        err = __copy_from_user(&env->fpr[0], &fpu->si_float_regs[0],
1654
                                     (sizeof(unsigned long) * 32));
1655
#endif
1656
        err |= __get_user(env->fsr, &fpu->si_fsr);
1657
#if 0
1658
        err |= __get_user(current->thread.fpqdepth, &fpu->si_fpqdepth);
1659
        if (current->thread.fpqdepth != 0)
1660
                err |= __copy_from_user(&current->thread.fpqueue[0],
1661
                                        &fpu->si_fpqueue[0],
1662
                                        ((sizeof(unsigned long) +
1663
                                        (sizeof(unsigned long *)))*16));
1664
#endif
1665
        return err;
1666
}
1667

    
1668

    
1669
static void setup_rt_frame(int sig, struct emulated_sigaction *ka,
1670
                           target_siginfo_t *info,
1671
                           target_sigset_t *set, CPUState *env)
1672
{
1673
    fprintf(stderr, "setup_rt_frame: not implemented\n");
1674
}
1675

    
1676
long do_sigreturn(CPUState *env)
1677
{
1678
        struct target_signal_frame *sf;
1679
        uint32_t up_psr, pc, npc;
1680
        target_sigset_t set;
1681
        sigset_t host_set;
1682
        abi_ulong fpu_save;
1683
        int err, i;
1684

    
1685
        sf = (struct target_signal_frame *)g2h(env->regwptr[UREG_FP]);
1686
#if 0
1687
        fprintf(stderr, "sigreturn\n");
1688
        fprintf(stderr, "sf: %x pc %x fp %x sp %x\n", sf, env->pc, env->regwptr[UREG_FP], env->regwptr[UREG_SP]);
1689
#endif
1690
        //cpu_dump_state(env, stderr, fprintf, 0);
1691

    
1692
        /* 1. Make sure we are not getting garbage from the user */
1693
#if 0
1694
        if (verify_area (VERIFY_READ, sf, sizeof (*sf)))
1695
                goto segv_and_exit;
1696
#endif
1697

    
1698
        if (((uint) sf) & 3)
1699
                goto segv_and_exit;
1700

    
1701
        err = __get_user(pc,  &sf->info.si_regs.pc);
1702
        err |= __get_user(npc, &sf->info.si_regs.npc);
1703

    
1704
        if ((pc | npc) & 3)
1705
                goto segv_and_exit;
1706

    
1707
        /* 2. Restore the state */
1708
        err |= __get_user(up_psr, &sf->info.si_regs.psr);
1709

    
1710
        /* User can only change condition codes and FPU enabling in %psr. */
1711
        env->psr = (up_psr & (PSR_ICC /* | PSR_EF */))
1712
                  | (env->psr & ~(PSR_ICC /* | PSR_EF */));
1713

    
1714
        env->pc = pc;
1715
        env->npc = npc;
1716
        err |= __get_user(env->y, &sf->info.si_regs.y);
1717
        for (i=0; i < 8; i++) {
1718
                err |= __get_user(env->gregs[i], &sf->info.si_regs.u_regs[i]);
1719
        }
1720
        for (i=0; i < 8; i++) {
1721
                err |= __get_user(env->regwptr[i + UREG_I0], &sf->info.si_regs.u_regs[i+8]);
1722
        }
1723

    
1724
        err |= __get_user(fpu_save, (abi_ulong *)&sf->fpu_save);
1725

    
1726
        //if (fpu_save)
1727
        //        err |= restore_fpu_state(env, fpu_save);
1728

    
1729
        /* This is pretty much atomic, no amount locking would prevent
1730
         * the races which exist anyways.
1731
         */
1732
        err |= __get_user(set.sig[0], &sf->info.si_mask);
1733
        for(i = 1; i < TARGET_NSIG_WORDS; i++) {
1734
            err |= (__get_user(set.sig[i], &sf->extramask[i - 1]));
1735
        }
1736

    
1737
        target_to_host_sigset_internal(&host_set, &set);
1738
        sigprocmask(SIG_SETMASK, &host_set, NULL);
1739

    
1740
        if (err)
1741
                goto segv_and_exit;
1742

    
1743
        return env->regwptr[0];
1744

    
1745
segv_and_exit:
1746
        force_sig(TARGET_SIGSEGV);
1747
}
1748

    
1749
long do_rt_sigreturn(CPUState *env)
1750
{
1751
    fprintf(stderr, "do_rt_sigreturn: not implemented\n");
1752
    return -ENOSYS;
1753
}
1754

    
1755
#if defined(TARGET_SPARC64) && !defined(TARGET_ABI32)
1756
#define MC_TSTATE 0
1757
#define MC_PC 1
1758
#define MC_NPC 2
1759
#define MC_Y 3
1760
#define MC_G1 4
1761
#define MC_G2 5
1762
#define MC_G3 6
1763
#define MC_G4 7
1764
#define MC_G5 8
1765
#define MC_G6 9
1766
#define MC_G7 10
1767
#define MC_O0 11
1768
#define MC_O1 12
1769
#define MC_O2 13
1770
#define MC_O3 14
1771
#define MC_O4 15
1772
#define MC_O5 16
1773
#define MC_O6 17
1774
#define MC_O7 18
1775
#define MC_NGREG 19
1776

    
1777
typedef abi_ulong target_mc_greg_t;
1778
typedef target_mc_greg_t target_mc_gregset_t[MC_NGREG];
1779

    
1780
struct target_mc_fq {
1781
    abi_ulong *mcfq_addr;
1782
    uint32_t mcfq_insn;
1783
};
1784

    
1785
struct target_mc_fpu {
1786
    union {
1787
        uint32_t sregs[32];
1788
        uint64_t dregs[32];
1789
        //uint128_t qregs[16];
1790
    } mcfpu_fregs;
1791
    abi_ulong mcfpu_fsr;
1792
    abi_ulong mcfpu_fprs;
1793
    abi_ulong mcfpu_gsr;
1794
    struct target_mc_fq *mcfpu_fq;
1795
    unsigned char mcfpu_qcnt;
1796
    unsigned char mcfpu_qentsz;
1797
    unsigned char mcfpu_enab;
1798
};
1799
typedef struct target_mc_fpu target_mc_fpu_t;
1800

    
1801
typedef struct {
1802
    target_mc_gregset_t mc_gregs;
1803
    target_mc_greg_t mc_fp;
1804
    target_mc_greg_t mc_i7;
1805
    target_mc_fpu_t mc_fpregs;
1806
} target_mcontext_t;
1807

    
1808
struct target_ucontext {
1809
    struct target_ucontext *uc_link;
1810
    abi_ulong uc_flags;
1811
    target_sigset_t uc_sigmask;
1812
    target_mcontext_t uc_mcontext;
1813
};
1814

    
1815
/* A V9 register window */
1816
struct target_reg_window {
1817
    abi_ulong locals[8];
1818
    abi_ulong ins[8];
1819
};
1820

    
1821
#define TARGET_STACK_BIAS 2047
1822

    
1823
/* {set, get}context() needed for 64-bit SparcLinux userland. */
1824
void sparc64_set_context(CPUSPARCState *env)
1825
{
1826
    abi_ulong ucp_addr;
1827
    struct target_ucontext *ucp;
1828
    target_mc_gregset_t *grp;
1829
    abi_ulong pc, npc, tstate;
1830
    abi_ulong fp, i7, w_addr;
1831
    unsigned char fenab;
1832
    int err;
1833
    unsigned int i;
1834

    
1835
    ucp_addr = env->regwptr[UREG_I0];
1836
    if (!lock_user_struct(VERIFY_READ, ucp, ucp_addr, 1))
1837
        goto do_sigsegv;
1838
    grp  = &ucp->uc_mcontext.mc_gregs;
1839
    err  = __get_user(pc, &((*grp)[MC_PC]));
1840
    err |= __get_user(npc, &((*grp)[MC_NPC]));
1841
    if (err || ((pc | npc) & 3))
1842
        goto do_sigsegv;
1843
    if (env->regwptr[UREG_I1]) {
1844
        target_sigset_t target_set;
1845
        sigset_t set;
1846

    
1847
        if (TARGET_NSIG_WORDS == 1) {
1848
            if (__get_user(target_set.sig[0], &ucp->uc_sigmask.sig[0]))
1849
                goto do_sigsegv;
1850
        } else {
1851
            abi_ulong *src, *dst;
1852
            src = ucp->uc_sigmask.sig;
1853
            dst = target_set.sig;
1854
            for (i = 0; i < sizeof(target_sigset_t) / sizeof(abi_ulong);
1855
                 i++, dst++, src++)
1856
                err |= __get_user(*dst, src);
1857
            if (err)
1858
                goto do_sigsegv;
1859
        }
1860
        target_to_host_sigset_internal(&set, &target_set);
1861
        sigprocmask(SIG_SETMASK, &set, NULL);
1862
    }
1863
    env->pc = pc;
1864
    env->npc = npc;
1865
    err |= __get_user(env->y, &((*grp)[MC_Y]));
1866
    err |= __get_user(tstate, &((*grp)[MC_TSTATE]));
1867
    env->asi = (tstate >> 24) & 0xff;
1868
    PUT_CCR(env, tstate >> 32);
1869
    PUT_CWP64(env, tstate & 0x1f);
1870
    err |= __get_user(env->gregs[1], (&(*grp)[MC_G1]));
1871
    err |= __get_user(env->gregs[2], (&(*grp)[MC_G2]));
1872
    err |= __get_user(env->gregs[3], (&(*grp)[MC_G3]));
1873
    err |= __get_user(env->gregs[4], (&(*grp)[MC_G4]));
1874
    err |= __get_user(env->gregs[5], (&(*grp)[MC_G5]));
1875
    err |= __get_user(env->gregs[6], (&(*grp)[MC_G6]));
1876
    err |= __get_user(env->gregs[7], (&(*grp)[MC_G7]));
1877
    err |= __get_user(env->regwptr[UREG_I0], (&(*grp)[MC_O0]));
1878
    err |= __get_user(env->regwptr[UREG_I1], (&(*grp)[MC_O1]));
1879
    err |= __get_user(env->regwptr[UREG_I2], (&(*grp)[MC_O2]));
1880
    err |= __get_user(env->regwptr[UREG_I3], (&(*grp)[MC_O3]));
1881
    err |= __get_user(env->regwptr[UREG_I4], (&(*grp)[MC_O4]));
1882
    err |= __get_user(env->regwptr[UREG_I5], (&(*grp)[MC_O5]));
1883
    err |= __get_user(env->regwptr[UREG_I6], (&(*grp)[MC_O6]));
1884
    err |= __get_user(env->regwptr[UREG_I7], (&(*grp)[MC_O7]));
1885

    
1886
    err |= __get_user(fp, &(ucp->uc_mcontext.mc_fp));
1887
    err |= __get_user(i7, &(ucp->uc_mcontext.mc_i7));
1888

    
1889
    w_addr = TARGET_STACK_BIAS+env->regwptr[UREG_I6];
1890
    if (put_user(fp, w_addr + offsetof(struct target_reg_window, ins[6]), 
1891
                 abi_ulong) != 0)
1892
        goto do_sigsegv;
1893
    if (put_user(i7, w_addr + offsetof(struct target_reg_window, ins[7]), 
1894
                 abi_ulong) != 0)
1895
        goto do_sigsegv;
1896
    err |= __get_user(fenab, &(ucp->uc_mcontext.mc_fpregs.mcfpu_enab));
1897
    err |= __get_user(env->fprs, &(ucp->uc_mcontext.mc_fpregs.mcfpu_fprs));
1898
    {
1899
        uint32_t *src, *dst;
1900
        src = ucp->uc_mcontext.mc_fpregs.mcfpu_fregs.sregs;
1901
        dst = env->fpr;
1902
        /* XXX: check that the CPU storage is the same as user context */
1903
        for (i = 0; i < 64; i++, dst++, src++)
1904
            err |= __get_user(*dst, src);
1905
    }
1906
    err |= __get_user(env->fsr,
1907
                      &(ucp->uc_mcontext.mc_fpregs.mcfpu_fsr));
1908
    err |= __get_user(env->gsr,
1909
                      &(ucp->uc_mcontext.mc_fpregs.mcfpu_gsr));
1910
    if (err)
1911
        goto do_sigsegv;
1912
    unlock_user_struct(ucp, ucp_addr, 0);
1913
    return;
1914
 do_sigsegv:
1915
    unlock_user_struct(ucp, ucp_addr, 0);
1916
    force_sig(SIGSEGV);
1917
}
1918

    
1919
void sparc64_get_context(CPUSPARCState *env)
1920
{
1921
    abi_ulong ucp_addr;
1922
    struct target_ucontext *ucp;
1923
    target_mc_gregset_t *grp;
1924
    target_mcontext_t *mcp;
1925
    abi_ulong fp, i7, w_addr;
1926
    int err;
1927
    unsigned int i;
1928
    target_sigset_t target_set;
1929
    sigset_t set;
1930

    
1931
    ucp_addr = env->regwptr[UREG_I0];
1932
    if (!lock_user_struct(VERIFY_WRITE, ucp, ucp_addr, 0))
1933
        goto do_sigsegv;
1934
    
1935
    mcp = &ucp->uc_mcontext;
1936
    grp = &mcp->mc_gregs;
1937

    
1938
    /* Skip over the trap instruction, first. */
1939
    env->pc = env->npc;
1940
    env->npc += 4;
1941

    
1942
    err = 0;
1943

    
1944
    sigprocmask(0, NULL, &set);
1945
    host_to_target_sigset_internal(&target_set, &set);
1946
    if (TARGET_NSIG_WORDS == 1) {
1947
        err |= __put_user(target_set.sig[0],
1948
                          (abi_ulong *)&ucp->uc_sigmask);
1949
    } else {
1950
        abi_ulong *src, *dst;
1951
        src = target_set.sig;
1952
        dst = ucp->uc_sigmask.sig;
1953
        for (i = 0; i < sizeof(target_sigset_t) / sizeof(abi_ulong);
1954
             i++, dst++, src++)
1955
            err |= __put_user(*src, dst);
1956
        if (err)
1957
            goto do_sigsegv;
1958
    }
1959

    
1960
    /* XXX: tstate must be saved properly */
1961
    //    err |= __put_user(env->tstate, &((*grp)[MC_TSTATE]));
1962
    err |= __put_user(env->pc, &((*grp)[MC_PC]));
1963
    err |= __put_user(env->npc, &((*grp)[MC_NPC]));
1964
    err |= __put_user(env->y, &((*grp)[MC_Y]));
1965
    err |= __put_user(env->gregs[1], &((*grp)[MC_G1]));
1966
    err |= __put_user(env->gregs[2], &((*grp)[MC_G2]));
1967
    err |= __put_user(env->gregs[3], &((*grp)[MC_G3]));
1968
    err |= __put_user(env->gregs[4], &((*grp)[MC_G4]));
1969
    err |= __put_user(env->gregs[5], &((*grp)[MC_G5]));
1970
    err |= __put_user(env->gregs[6], &((*grp)[MC_G6]));
1971
    err |= __put_user(env->gregs[7], &((*grp)[MC_G7]));
1972
    err |= __put_user(env->regwptr[UREG_I0], &((*grp)[MC_O0]));
1973
    err |= __put_user(env->regwptr[UREG_I1], &((*grp)[MC_O1]));
1974
    err |= __put_user(env->regwptr[UREG_I2], &((*grp)[MC_O2]));
1975
    err |= __put_user(env->regwptr[UREG_I3], &((*grp)[MC_O3]));
1976
    err |= __put_user(env->regwptr[UREG_I4], &((*grp)[MC_O4]));
1977
    err |= __put_user(env->regwptr[UREG_I5], &((*grp)[MC_O5]));
1978
    err |= __put_user(env->regwptr[UREG_I6], &((*grp)[MC_O6]));
1979
    err |= __put_user(env->regwptr[UREG_I7], &((*grp)[MC_O7]));
1980

    
1981
    w_addr = TARGET_STACK_BIAS+env->regwptr[UREG_I6];
1982
    fp = i7 = 0;
1983
    if (get_user(fp, w_addr + offsetof(struct target_reg_window, ins[6]), 
1984
                 abi_ulong) != 0)
1985
        goto do_sigsegv;
1986
    if (get_user(i7, w_addr + offsetof(struct target_reg_window, ins[7]), 
1987
                 abi_ulong) != 0)
1988
        goto do_sigsegv;
1989
    err |= __put_user(fp, &(mcp->mc_fp));
1990
    err |= __put_user(i7, &(mcp->mc_i7));
1991

    
1992
    {
1993
        uint32_t *src, *dst;
1994
        src = env->fpr;
1995
        dst = ucp->uc_mcontext.mc_fpregs.mcfpu_fregs.sregs;
1996
        /* XXX: check that the CPU storage is the same as user context */
1997
        for (i = 0; i < 64; i++, dst++, src++)
1998
            err |= __put_user(*src, dst);
1999
    }
2000
    err |= __put_user(env->fsr, &(mcp->mc_fpregs.mcfpu_fsr));
2001
    err |= __put_user(env->gsr, &(mcp->mc_fpregs.mcfpu_gsr));
2002
    err |= __put_user(env->fprs, &(mcp->mc_fpregs.mcfpu_fprs));
2003

    
2004
    if (err)
2005
        goto do_sigsegv;
2006
    unlock_user_struct(ucp, ucp_addr, 1);
2007
    return;
2008
 do_sigsegv:
2009
    unlock_user_struct(ucp, ucp_addr, 1);
2010
    force_sig(SIGSEGV);
2011
}
2012
#endif
2013
#elif defined(TARGET_ABI_MIPSN64)
2014

    
2015
# warning signal handling not implemented
2016

    
2017
static void setup_frame(int sig, struct emulated_sigaction *ka,
2018
                        target_sigset_t *set, CPUState *env)
2019
{
2020
    fprintf(stderr, "setup_frame: not implemented\n");
2021
}
2022

    
2023
static void setup_rt_frame(int sig, struct emulated_sigaction *ka,
2024
                           target_siginfo_t *info,
2025
                           target_sigset_t *set, CPUState *env)
2026
{
2027
    fprintf(stderr, "setup_rt_frame: not implemented\n");
2028
}
2029

    
2030
long do_sigreturn(CPUState *env)
2031
{
2032
    fprintf(stderr, "do_sigreturn: not implemented\n");
2033
    return -ENOSYS;
2034
}
2035

    
2036
long do_rt_sigreturn(CPUState *env)
2037
{
2038
    fprintf(stderr, "do_rt_sigreturn: not implemented\n");
2039
    return -ENOSYS;
2040
}
2041

    
2042
#elif defined(TARGET_ABI_MIPSN32)
2043

    
2044
# warning signal handling not implemented
2045

    
2046
static void setup_frame(int sig, struct emulated_sigaction *ka,
2047
                        target_sigset_t *set, CPUState *env)
2048
{
2049
    fprintf(stderr, "setup_frame: not implemented\n");
2050
}
2051

    
2052
static void setup_rt_frame(int sig, struct emulated_sigaction *ka,
2053
                           target_siginfo_t *info,
2054
                           target_sigset_t *set, CPUState *env)
2055
{
2056
    fprintf(stderr, "setup_rt_frame: not implemented\n");
2057
}
2058

    
2059
long do_sigreturn(CPUState *env)
2060
{
2061
    fprintf(stderr, "do_sigreturn: not implemented\n");
2062
    return -ENOSYS;
2063
}
2064

    
2065
long do_rt_sigreturn(CPUState *env)
2066
{
2067
    fprintf(stderr, "do_rt_sigreturn: not implemented\n");
2068
    return -ENOSYS;
2069
}
2070

    
2071
#elif defined(TARGET_ABI_MIPSO32)
2072

    
2073
struct target_sigcontext {
2074
    uint32_t   sc_regmask;     /* Unused */
2075
    uint32_t   sc_status;
2076
    uint64_t   sc_pc;
2077
    uint64_t   sc_regs[32];
2078
    uint64_t   sc_fpregs[32];
2079
    uint32_t   sc_ownedfp;     /* Unused */
2080
    uint32_t   sc_fpc_csr;
2081
    uint32_t   sc_fpc_eir;     /* Unused */
2082
    uint32_t   sc_used_math;
2083
    uint32_t   sc_dsp;         /* dsp status, was sc_ssflags */
2084
    uint64_t   sc_mdhi;
2085
    uint64_t   sc_mdlo;
2086
    target_ulong   sc_hi1;         /* Was sc_cause */
2087
    target_ulong   sc_lo1;         /* Was sc_badvaddr */
2088
    target_ulong   sc_hi2;         /* Was sc_sigset[4] */
2089
    target_ulong   sc_lo2;
2090
    target_ulong   sc_hi3;
2091
    target_ulong   sc_lo3;
2092
};
2093

    
2094
struct sigframe {
2095
    uint32_t sf_ass[4];                        /* argument save space for o32 */
2096
    uint32_t sf_code[2];                        /* signal trampoline */
2097
    struct target_sigcontext sf_sc;
2098
    target_sigset_t sf_mask;
2099
};
2100

    
2101
/* Install trampoline to jump back from signal handler */
2102
static inline int install_sigtramp(unsigned int *tramp,   unsigned int syscall)
2103
{
2104
    int err;
2105

    
2106
    /*
2107
    * Set up the return code ...
2108
    *
2109
    *         li      v0, __NR__foo_sigreturn
2110
    *         syscall
2111
    */
2112

    
2113
    err = __put_user(0x24020000 + syscall, tramp + 0);
2114
    err |= __put_user(0x0000000c          , tramp + 1);
2115
    /* flush_cache_sigtramp((unsigned long) tramp); */
2116
    return err;
2117
}
2118

    
2119
static inline int
2120
setup_sigcontext(CPUState *regs, struct target_sigcontext *sc)
2121
{
2122
    int err = 0;
2123

    
2124
    err |= __put_user(regs->PC[regs->current_tc], &sc->sc_pc);
2125

    
2126
#define save_gp_reg(i) do {                                                           \
2127
        err |= __put_user(regs->gpr[i][regs->current_tc], &sc->sc_regs[i]);        \
2128
    } while(0)
2129
    __put_user(0, &sc->sc_regs[0]); save_gp_reg(1); save_gp_reg(2);
2130
    save_gp_reg(3); save_gp_reg(4); save_gp_reg(5); save_gp_reg(6);
2131
    save_gp_reg(7); save_gp_reg(8); save_gp_reg(9); save_gp_reg(10);
2132
    save_gp_reg(11); save_gp_reg(12); save_gp_reg(13); save_gp_reg(14);
2133
    save_gp_reg(15); save_gp_reg(16); save_gp_reg(17); save_gp_reg(18);
2134
    save_gp_reg(19); save_gp_reg(20); save_gp_reg(21); save_gp_reg(22);
2135
    save_gp_reg(23); save_gp_reg(24); save_gp_reg(25); save_gp_reg(26);
2136
    save_gp_reg(27); save_gp_reg(28); save_gp_reg(29); save_gp_reg(30);
2137
    save_gp_reg(31);
2138
#undef save_gp_reg
2139

    
2140
    err |= __put_user(regs->HI[0][regs->current_tc], &sc->sc_mdhi);
2141
    err |= __put_user(regs->LO[0][regs->current_tc], &sc->sc_mdlo);
2142

    
2143
    /* Not used yet, but might be useful if we ever have DSP suppport */
2144
#if 0
2145
    if (cpu_has_dsp) {
2146
        err |= __put_user(mfhi1(), &sc->sc_hi1);
2147
        err |= __put_user(mflo1(), &sc->sc_lo1);
2148
        err |= __put_user(mfhi2(), &sc->sc_hi2);
2149
        err |= __put_user(mflo2(), &sc->sc_lo2);
2150
        err |= __put_user(mfhi3(), &sc->sc_hi3);
2151
        err |= __put_user(mflo3(), &sc->sc_lo3);
2152
        err |= __put_user(rddsp(DSP_MASK), &sc->sc_dsp);
2153
    }
2154
    /* same with 64 bit */
2155
#ifdef CONFIG_64BIT
2156
    err |= __put_user(regs->hi, &sc->sc_hi[0]);
2157
    err |= __put_user(regs->lo, &sc->sc_lo[0]);
2158
    if (cpu_has_dsp) {
2159
        err |= __put_user(mfhi1(), &sc->sc_hi[1]);
2160
        err |= __put_user(mflo1(), &sc->sc_lo[1]);
2161
        err |= __put_user(mfhi2(), &sc->sc_hi[2]);
2162
        err |= __put_user(mflo2(), &sc->sc_lo[2]);
2163
        err |= __put_user(mfhi3(), &sc->sc_hi[3]);
2164
        err |= __put_user(mflo3(), &sc->sc_lo[3]);
2165
        err |= __put_user(rddsp(DSP_MASK), &sc->sc_dsp);
2166
    }
2167
#endif
2168
#endif
2169

    
2170
#if 0
2171
    err |= __put_user(!!used_math(), &sc->sc_used_math);
2172

2173
    if (!used_math())
2174
        goto out;
2175

2176
    /*
2177
    * Save FPU state to signal context.  Signal handler will "inherit"
2178
    * current FPU state.
2179
    */
2180
    preempt_disable();
2181

2182
    if (!is_fpu_owner()) {
2183
        own_fpu();
2184
        restore_fp(current);
2185
    }
2186
    err |= save_fp_context(sc);
2187

2188
    preempt_enable();
2189
    out:
2190
#endif
2191
    return err;
2192
}
2193

    
2194
static inline int
2195
restore_sigcontext(CPUState *regs, struct target_sigcontext *sc)
2196
{
2197
    int err = 0;
2198

    
2199
    err |= __get_user(regs->CP0_EPC, &sc->sc_pc);
2200

    
2201
    err |= __get_user(regs->HI[0][regs->current_tc], &sc->sc_mdhi);
2202
    err |= __get_user(regs->LO[0][regs->current_tc], &sc->sc_mdlo);
2203

    
2204
#define restore_gp_reg(i) do {                                                           \
2205
        err |= __get_user(regs->gpr[i][regs->current_tc], &sc->sc_regs[i]);                \
2206
    } while(0)
2207
    restore_gp_reg( 1); restore_gp_reg( 2); restore_gp_reg( 3);
2208
    restore_gp_reg( 4); restore_gp_reg( 5); restore_gp_reg( 6);
2209
    restore_gp_reg( 7); restore_gp_reg( 8); restore_gp_reg( 9);
2210
    restore_gp_reg(10); restore_gp_reg(11); restore_gp_reg(12);
2211
    restore_gp_reg(13); restore_gp_reg(14); restore_gp_reg(15);
2212
    restore_gp_reg(16); restore_gp_reg(17); restore_gp_reg(18);
2213
    restore_gp_reg(19); restore_gp_reg(20); restore_gp_reg(21);
2214
    restore_gp_reg(22); restore_gp_reg(23); restore_gp_reg(24);
2215
    restore_gp_reg(25); restore_gp_reg(26); restore_gp_reg(27);
2216
    restore_gp_reg(28); restore_gp_reg(29); restore_gp_reg(30);
2217
    restore_gp_reg(31);
2218
#undef restore_gp_reg
2219

    
2220
#if 0
2221
    if (cpu_has_dsp) {
2222
        err |= __get_user(treg, &sc->sc_hi1); mthi1(treg);
2223
        err |= __get_user(treg, &sc->sc_lo1); mtlo1(treg);
2224
        err |= __get_user(treg, &sc->sc_hi2); mthi2(treg);
2225
        err |= __get_user(treg, &sc->sc_lo2); mtlo2(treg);
2226
        err |= __get_user(treg, &sc->sc_hi3); mthi3(treg);
2227
        err |= __get_user(treg, &sc->sc_lo3); mtlo3(treg);
2228
        err |= __get_user(treg, &sc->sc_dsp); wrdsp(treg, DSP_MASK);
2229
    }
2230
#ifdef CONFIG_64BIT
2231
    err |= __get_user(regs->hi, &sc->sc_hi[0]);
2232
    err |= __get_user(regs->lo, &sc->sc_lo[0]);
2233
    if (cpu_has_dsp) {
2234
        err |= __get_user(treg, &sc->sc_hi[1]); mthi1(treg);
2235
        err |= __get_user(treg, &sc->sc_lo[1]); mthi1(treg);
2236
        err |= __get_user(treg, &sc->sc_hi[2]); mthi2(treg);
2237
        err |= __get_user(treg, &sc->sc_lo[2]); mthi2(treg);
2238
        err |= __get_user(treg, &sc->sc_hi[3]); mthi3(treg);
2239
        err |= __get_user(treg, &sc->sc_lo[3]); mthi3(treg);
2240
        err |= __get_user(treg, &sc->sc_dsp); wrdsp(treg, DSP_MASK);
2241
    }
2242
#endif
2243

    
2244
    err |= __get_user(used_math, &sc->sc_used_math);
2245
    conditional_used_math(used_math);
2246

    
2247
    preempt_disable();
2248

    
2249
    if (used_math()) {
2250
        /* restore fpu context if we have used it before */
2251
        own_fpu();
2252
        err |= restore_fp_context(sc);
2253
    } else {
2254
        /* signal handler may have used FPU.  Give it up. */
2255
        lose_fpu();
2256
    }
2257

    
2258
    preempt_enable();
2259
#endif
2260
    return err;
2261
}
2262
/*
2263
 * Determine which stack to use..
2264
 */
2265
static inline abi_ulong
2266
get_sigframe(struct emulated_sigaction *ka, CPUState *regs, size_t frame_size)
2267
{
2268
    unsigned long sp;
2269

    
2270
    /* Default to using normal stack */
2271
    sp = regs->gpr[29][regs->current_tc];
2272

    
2273
    /*
2274
     * FPU emulator may have it's own trampoline active just
2275
     * above the user stack, 16-bytes before the next lowest
2276
     * 16 byte boundary.  Try to avoid trashing it.
2277
     */
2278
    sp -= 32;
2279

    
2280
    /* This is the X/Open sanctioned signal stack switching.  */
2281
    if ((ka->sa.sa_flags & TARGET_SA_ONSTACK) && (sas_ss_flags (sp) == 0)) {
2282
        sp = target_sigaltstack_used.ss_sp + target_sigaltstack_used.ss_size;
2283
    }
2284

    
2285
    return (sp - frame_size) & ~7;
2286
}
2287

    
2288
/* compare linux/arch/mips/kernel/signal.c:setup_frame() */
2289
static void setup_frame(int sig, struct emulated_sigaction * ka,
2290
                        target_sigset_t *set, CPUState *regs)
2291
{
2292
    struct sigframe *frame;
2293
    abi_ulong frame_addr;
2294
    int i;
2295

    
2296
    frame_addr = get_sigframe(ka, regs, sizeof(*frame));
2297
    if (!lock_user_struct(VERIFY_WRITE, frame, frame_addr, 0))
2298
        goto give_sigsegv;
2299

    
2300
    install_sigtramp(frame->sf_code, TARGET_NR_sigreturn);
2301

    
2302
    if(setup_sigcontext(regs, &frame->sf_sc))
2303
        goto give_sigsegv;
2304

    
2305
    for(i = 0; i < TARGET_NSIG_WORDS; i++) {
2306
        if(__put_user(set->sig[i], &frame->sf_mask.sig[i]))
2307
            goto give_sigsegv;
2308
    }
2309

    
2310
    /*
2311
    * Arguments to signal handler:
2312
    *
2313
    *   a0 = signal number
2314
    *   a1 = 0 (should be cause)
2315
    *   a2 = pointer to struct sigcontext
2316
    *
2317
    * $25 and PC point to the signal handler, $29 points to the
2318
    * struct sigframe.
2319
    */
2320
    regs->gpr[ 4][regs->current_tc] = sig;
2321
    regs->gpr[ 5][regs->current_tc] = 0;
2322
    regs->gpr[ 6][regs->current_tc] = h2g(&frame->sf_sc);
2323
    regs->gpr[29][regs->current_tc] = h2g(frame);
2324
    regs->gpr[31][regs->current_tc] = h2g(frame->sf_code);
2325
    /* The original kernel code sets CP0_EPC to the handler
2326
    * since it returns to userland using eret
2327
    * we cannot do this here, and we must set PC directly */
2328
    regs->PC[regs->current_tc] = regs->gpr[25][regs->current_tc] = ka->sa._sa_handler;
2329
    unlock_user_struct(frame, frame_addr, 1);
2330
    return;
2331

    
2332
give_sigsegv:
2333
    unlock_user_struct(frame, frame_addr, 1);
2334
    force_sig(TARGET_SIGSEGV/*, current*/);
2335
    return;
2336
}
2337

    
2338
long do_sigreturn(CPUState *regs)
2339
{
2340
    struct sigframe *frame;
2341
    abi_ulong frame_addr;
2342
    sigset_t blocked;
2343
    target_sigset_t target_set;
2344
    int i;
2345

    
2346
#if defined(DEBUG_SIGNAL)
2347
    fprintf(stderr, "do_sigreturn\n");
2348
#endif
2349
    frame_addr = regs->gpr[29][regs->current_tc];
2350
    if (!lock_user_struct(VERIFY_READ, frame, frame_addr, 1))
2351
           goto badframe;
2352

    
2353
    for(i = 0; i < TARGET_NSIG_WORDS; i++) {
2354
           if(__get_user(target_set.sig[i], &frame->sf_mask.sig[i]))
2355
            goto badframe;
2356
    }
2357

    
2358
    target_to_host_sigset_internal(&blocked, &target_set);
2359
    sigprocmask(SIG_SETMASK, &blocked, NULL);
2360

    
2361
    if (restore_sigcontext(regs, &frame->sf_sc))
2362
           goto badframe;
2363

    
2364
#if 0
2365
    /*
2366
     * Don't let your children do this ...
2367
     */
2368
    __asm__ __volatile__(
2369
           "move\t$29, %0\n\t"
2370
           "j\tsyscall_exit"
2371
           :/* no outputs */
2372
           :"r" (&regs));
2373
    /* Unreached */
2374
#endif
2375

    
2376
    regs->PC[regs->current_tc] = regs->CP0_EPC;
2377
    /* I am not sure this is right, but it seems to work
2378
    * maybe a problem with nested signals ? */
2379
    regs->CP0_EPC = 0;
2380
    return 0;
2381

    
2382
badframe:
2383
    force_sig(TARGET_SIGSEGV/*, current*/);
2384
    return 0;
2385
}
2386

    
2387
static void setup_rt_frame(int sig, struct emulated_sigaction *ka,
2388
                           target_siginfo_t *info,
2389
                           target_sigset_t *set, CPUState *env)
2390
{
2391
    fprintf(stderr, "setup_rt_frame: not implemented\n");
2392
}
2393

    
2394
long do_rt_sigreturn(CPUState *env)
2395
{
2396
    fprintf(stderr, "do_rt_sigreturn: not implemented\n");
2397
    return -ENOSYS;
2398
}
2399

    
2400
#else
2401

    
2402
static void setup_frame(int sig, struct emulated_sigaction *ka,
2403
                        target_sigset_t *set, CPUState *env)
2404
{
2405
    fprintf(stderr, "setup_frame: not implemented\n");
2406
}
2407

    
2408
static void setup_rt_frame(int sig, struct emulated_sigaction *ka,
2409
                           target_siginfo_t *info,
2410
                           target_sigset_t *set, CPUState *env)
2411
{
2412
    fprintf(stderr, "setup_rt_frame: not implemented\n");
2413
}
2414

    
2415
long do_sigreturn(CPUState *env)
2416
{
2417
    fprintf(stderr, "do_sigreturn: not implemented\n");
2418
    return -ENOSYS;
2419
}
2420

    
2421
long do_rt_sigreturn(CPUState *env)
2422
{
2423
    fprintf(stderr, "do_rt_sigreturn: not implemented\n");
2424
    return -ENOSYS;
2425
}
2426

    
2427
#endif
2428

    
2429
void process_pending_signals(void *cpu_env)
2430
{
2431
    int sig;
2432
    abi_ulong handler;
2433
    sigset_t set, old_set;
2434
    target_sigset_t target_old_set;
2435
    struct emulated_sigaction *k;
2436
    struct sigqueue *q;
2437

    
2438
    if (!signal_pending)
2439
        return;
2440

    
2441
    k = sigact_table;
2442
    for(sig = 1; sig <= TARGET_NSIG; sig++) {
2443
        if (k->pending)
2444
            goto handle_signal;
2445
        k++;
2446
    }
2447
    /* if no signal is pending, just return */
2448
    signal_pending = 0;
2449
    return;
2450

    
2451
 handle_signal:
2452
#ifdef DEBUG_SIGNAL
2453
    fprintf(stderr, "qemu: process signal %d\n", sig);
2454
#endif
2455
    /* dequeue signal */
2456
    q = k->first;
2457
    k->first = q->next;
2458
    if (!k->first)
2459
        k->pending = 0;
2460

    
2461
    sig = gdb_handlesig (cpu_env, sig);
2462
    if (!sig) {
2463
        fprintf (stderr, "Lost signal\n");
2464
        abort();
2465
    }
2466

    
2467
    handler = k->sa._sa_handler;
2468
    if (handler == TARGET_SIG_DFL) {
2469
        /* default handler : ignore some signal. The other are fatal */
2470
        if (sig != TARGET_SIGCHLD &&
2471
            sig != TARGET_SIGURG &&
2472
            sig != TARGET_SIGWINCH) {
2473
            force_sig(sig);
2474
        }
2475
    } else if (handler == TARGET_SIG_IGN) {
2476
        /* ignore sig */
2477
    } else if (handler == TARGET_SIG_ERR) {
2478
        force_sig(sig);
2479
    } else {
2480
        /* compute the blocked signals during the handler execution */
2481
        target_to_host_sigset(&set, &k->sa.sa_mask);
2482
        /* SA_NODEFER indicates that the current signal should not be
2483
           blocked during the handler */
2484
        if (!(k->sa.sa_flags & TARGET_SA_NODEFER))
2485
            sigaddset(&set, target_to_host_signal(sig));
2486

    
2487
        /* block signals in the handler using Linux */
2488
        sigprocmask(SIG_BLOCK, &set, &old_set);
2489
        /* save the previous blocked signal state to restore it at the
2490
           end of the signal execution (see do_sigreturn) */
2491
        host_to_target_sigset_internal(&target_old_set, &old_set);
2492

    
2493
        /* if the CPU is in VM86 mode, we restore the 32 bit values */
2494
#if defined(TARGET_I386) && !defined(TARGET_X86_64)
2495
        {
2496
            CPUX86State *env = cpu_env;
2497
            if (env->eflags & VM_MASK)
2498
                save_v86_state(env);
2499
        }
2500
#endif
2501
        /* prepare the stack frame of the virtual CPU */
2502
        if (k->sa.sa_flags & TARGET_SA_SIGINFO)
2503
            setup_rt_frame(sig, k, &q->info, &target_old_set, cpu_env);
2504
        else
2505
            setup_frame(sig, k, &target_old_set, cpu_env);
2506
        if (k->sa.sa_flags & TARGET_SA_RESETHAND)
2507
            k->sa._sa_handler = TARGET_SIG_DFL;
2508
    }
2509
    if (q != &k->info)
2510
        free_sigqueue(q);
2511
}