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1
/*
2
 * QEMU System Emulator
3
 *
4
 * Copyright (c) 2003-2008 Fabrice Bellard
5
 *
6
 * Permission is hereby granted, free of charge, to any person obtaining a copy
7
 * of this software and associated documentation files (the "Software"), to deal
8
 * in the Software without restriction, including without limitation the rights
9
 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
10
 * copies of the Software, and to permit persons to whom the Software is
11
 * furnished to do so, subject to the following conditions:
12
 *
13
 * The above copyright notice and this permission notice shall be included in
14
 * all copies or substantial portions of the Software.
15
 *
16
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
19
 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
20
 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
21
 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
22
 * THE SOFTWARE.
23
 */
24
#include <unistd.h>
25
#include <fcntl.h>
26
#include <signal.h>
27
#include <time.h>
28
#include <errno.h>
29
#include <sys/time.h>
30
#include <zlib.h>
31

    
32
/* Needed early for HOST_BSD etc. */
33
#include "config-host.h"
34

    
35
#ifndef _WIN32
36
#include <sys/times.h>
37
#include <sys/wait.h>
38
#include <termios.h>
39
#include <sys/mman.h>
40
#include <sys/ioctl.h>
41
#include <sys/resource.h>
42
#include <sys/socket.h>
43
#include <netinet/in.h>
44
#include <net/if.h>
45
#ifdef __NetBSD__
46
#include <net/if_tap.h>
47
#endif
48
#ifdef __linux__
49
#include <linux/if_tun.h>
50
#endif
51
#include <arpa/inet.h>
52
#include <dirent.h>
53
#include <netdb.h>
54
#include <sys/select.h>
55
#ifdef HOST_BSD
56
#include <sys/stat.h>
57
#if defined(__FreeBSD__) || defined(__DragonFly__)
58
#include <libutil.h>
59
#else
60
#include <util.h>
61
#endif
62
#elif defined (__GLIBC__) && defined (__FreeBSD_kernel__)
63
#include <freebsd/stdlib.h>
64
#else
65
#ifdef __linux__
66
#include <pty.h>
67
#include <malloc.h>
68
#include <linux/rtc.h>
69

    
70
/* For the benefit of older linux systems which don't supply it,
71
   we use a local copy of hpet.h. */
72
/* #include <linux/hpet.h> */
73
#include "hpet.h"
74

    
75
#include <linux/ppdev.h>
76
#include <linux/parport.h>
77
#endif
78
#ifdef __sun__
79
#include <sys/stat.h>
80
#include <sys/ethernet.h>
81
#include <sys/sockio.h>
82
#include <netinet/arp.h>
83
#include <netinet/in.h>
84
#include <netinet/in_systm.h>
85
#include <netinet/ip.h>
86
#include <netinet/ip_icmp.h> // must come after ip.h
87
#include <netinet/udp.h>
88
#include <netinet/tcp.h>
89
#include <net/if.h>
90
#include <syslog.h>
91
#include <stropts.h>
92
#endif
93
#endif
94
#endif
95

    
96
#if defined(__OpenBSD__)
97
#include <util.h>
98
#endif
99

    
100
#if defined(CONFIG_VDE)
101
#include <libvdeplug.h>
102
#endif
103

    
104
#ifdef _WIN32
105
#include <windows.h>
106
#include <malloc.h>
107
#include <sys/timeb.h>
108
#include <mmsystem.h>
109
#define getopt_long_only getopt_long
110
#define memalign(align, size) malloc(size)
111
#endif
112

    
113
#include "qemu-common.h"
114
#include "net.h"
115
#include "monitor.h"
116
#include "sysemu.h"
117
#include "qemu-timer.h"
118
#include "qemu-char.h"
119
#include "audio/audio.h"
120
#include "qemu_socket.h"
121
#include "qemu-log.h"
122

    
123
#include "slirp/libslirp.h"
124

    
125

    
126
static VLANState *first_vlan;
127

    
128
/***********************************************************/
129
/* network device redirectors */
130

    
131
#if defined(DEBUG_NET) || defined(DEBUG_SLIRP)
132
static void hex_dump(FILE *f, const uint8_t *buf, int size)
133
{
134
    int len, i, j, c;
135

    
136
    for(i=0;i<size;i+=16) {
137
        len = size - i;
138
        if (len > 16)
139
            len = 16;
140
        fprintf(f, "%08x ", i);
141
        for(j=0;j<16;j++) {
142
            if (j < len)
143
                fprintf(f, " %02x", buf[i+j]);
144
            else
145
                fprintf(f, "   ");
146
        }
147
        fprintf(f, " ");
148
        for(j=0;j<len;j++) {
149
            c = buf[i+j];
150
            if (c < ' ' || c > '~')
151
                c = '.';
152
            fprintf(f, "%c", c);
153
        }
154
        fprintf(f, "\n");
155
    }
156
}
157
#endif
158

    
159
static int parse_macaddr(uint8_t *macaddr, const char *p)
160
{
161
    int i;
162
    char *last_char;
163
    long int offset;
164

    
165
    errno = 0;
166
    offset = strtol(p, &last_char, 0);    
167
    if (0 == errno && '\0' == *last_char &&
168
            offset >= 0 && offset <= 0xFFFFFF) {
169
        macaddr[3] = (offset & 0xFF0000) >> 16;
170
        macaddr[4] = (offset & 0xFF00) >> 8;
171
        macaddr[5] = offset & 0xFF;
172
        return 0;
173
    } else {
174
        for(i = 0; i < 6; i++) {
175
            macaddr[i] = strtol(p, (char **)&p, 16);
176
            if (i == 5) {
177
                if (*p != '\0')
178
                    return -1;
179
            } else {
180
                if (*p != ':' && *p != '-')
181
                    return -1;
182
                p++;
183
            }
184
        }
185
        return 0;    
186
    }
187

    
188
    return -1;
189
}
190

    
191
static int get_str_sep(char *buf, int buf_size, const char **pp, int sep)
192
{
193
    const char *p, *p1;
194
    int len;
195
    p = *pp;
196
    p1 = strchr(p, sep);
197
    if (!p1)
198
        return -1;
199
    len = p1 - p;
200
    p1++;
201
    if (buf_size > 0) {
202
        if (len > buf_size - 1)
203
            len = buf_size - 1;
204
        memcpy(buf, p, len);
205
        buf[len] = '\0';
206
    }
207
    *pp = p1;
208
    return 0;
209
}
210

    
211
int parse_host_src_port(struct sockaddr_in *haddr,
212
                        struct sockaddr_in *saddr,
213
                        const char *input_str)
214
{
215
    char *str = strdup(input_str);
216
    char *host_str = str;
217
    char *src_str;
218
    const char *src_str2;
219
    char *ptr;
220

    
221
    /*
222
     * Chop off any extra arguments at the end of the string which
223
     * would start with a comma, then fill in the src port information
224
     * if it was provided else use the "any address" and "any port".
225
     */
226
    if ((ptr = strchr(str,',')))
227
        *ptr = '\0';
228

    
229
    if ((src_str = strchr(input_str,'@'))) {
230
        *src_str = '\0';
231
        src_str++;
232
    }
233

    
234
    if (parse_host_port(haddr, host_str) < 0)
235
        goto fail;
236

    
237
    src_str2 = src_str;
238
    if (!src_str || *src_str == '\0')
239
        src_str2 = ":0";
240

    
241
    if (parse_host_port(saddr, src_str2) < 0)
242
        goto fail;
243

    
244
    free(str);
245
    return(0);
246

    
247
fail:
248
    free(str);
249
    return -1;
250
}
251

    
252
int parse_host_port(struct sockaddr_in *saddr, const char *str)
253
{
254
    char buf[512];
255
    struct hostent *he;
256
    const char *p, *r;
257
    int port;
258

    
259
    p = str;
260
    if (get_str_sep(buf, sizeof(buf), &p, ':') < 0)
261
        return -1;
262
    saddr->sin_family = AF_INET;
263
    if (buf[0] == '\0') {
264
        saddr->sin_addr.s_addr = 0;
265
    } else {
266
        if (qemu_isdigit(buf[0])) {
267
            if (!inet_aton(buf, &saddr->sin_addr))
268
                return -1;
269
        } else {
270
            if ((he = gethostbyname(buf)) == NULL)
271
                return - 1;
272
            saddr->sin_addr = *(struct in_addr *)he->h_addr;
273
        }
274
    }
275
    port = strtol(p, (char **)&r, 0);
276
    if (r == p)
277
        return -1;
278
    saddr->sin_port = htons(port);
279
    return 0;
280
}
281

    
282
#if !defined(_WIN32) && 0
283
static int parse_unix_path(struct sockaddr_un *uaddr, const char *str)
284
{
285
    const char *p;
286
    int len;
287

    
288
    len = MIN(108, strlen(str));
289
    p = strchr(str, ',');
290
    if (p)
291
        len = MIN(len, p - str);
292

    
293
    memset(uaddr, 0, sizeof(*uaddr));
294

    
295
    uaddr->sun_family = AF_UNIX;
296
    memcpy(uaddr->sun_path, str, len);
297

    
298
    return 0;
299
}
300
#endif
301

    
302
void qemu_format_nic_info_str(VLANClientState *vc, uint8_t macaddr[6])
303
{
304
    snprintf(vc->info_str, sizeof(vc->info_str),
305
             "model=%s,macaddr=%02x:%02x:%02x:%02x:%02x:%02x",
306
             vc->model,
307
             macaddr[0], macaddr[1], macaddr[2],
308
             macaddr[3], macaddr[4], macaddr[5]);
309
}
310

    
311
static char *assign_name(VLANClientState *vc1, const char *model)
312
{
313
    VLANState *vlan;
314
    char buf[256];
315
    int id = 0;
316

    
317
    for (vlan = first_vlan; vlan; vlan = vlan->next) {
318
        VLANClientState *vc;
319

    
320
        for (vc = vlan->first_client; vc; vc = vc->next)
321
            if (vc != vc1 && strcmp(vc->model, model) == 0)
322
                id++;
323
    }
324

    
325
    snprintf(buf, sizeof(buf), "%s.%d", model, id);
326

    
327
    return strdup(buf);
328
}
329

    
330
VLANClientState *qemu_new_vlan_client(VLANState *vlan,
331
                                      const char *model,
332
                                      const char *name,
333
                                      NetCanReceive *can_receive,
334
                                      NetReceive *receive,
335
                                      NetReceiveIOV *receive_iov,
336
                                      NetCleanup *cleanup,
337
                                      void *opaque)
338
{
339
    VLANClientState *vc, **pvc;
340
    vc = qemu_mallocz(sizeof(VLANClientState));
341
    vc->model = strdup(model);
342
    if (name)
343
        vc->name = strdup(name);
344
    else
345
        vc->name = assign_name(vc, model);
346
    vc->can_receive = can_receive;
347
    vc->receive = receive;
348
    vc->receive_iov = receive_iov;
349
    vc->cleanup = cleanup;
350
    vc->opaque = opaque;
351
    vc->vlan = vlan;
352

    
353
    vc->next = NULL;
354
    pvc = &vlan->first_client;
355
    while (*pvc != NULL)
356
        pvc = &(*pvc)->next;
357
    *pvc = vc;
358
    return vc;
359
}
360

    
361
void qemu_del_vlan_client(VLANClientState *vc)
362
{
363
    VLANClientState **pvc = &vc->vlan->first_client;
364

    
365
    while (*pvc != NULL)
366
        if (*pvc == vc) {
367
            *pvc = vc->next;
368
            if (vc->cleanup) {
369
                vc->cleanup(vc);
370
            }
371
            free(vc->name);
372
            free(vc->model);
373
            qemu_free(vc);
374
            break;
375
        } else
376
            pvc = &(*pvc)->next;
377
}
378

    
379
VLANClientState *qemu_find_vlan_client(VLANState *vlan, void *opaque)
380
{
381
    VLANClientState **pvc = &vlan->first_client;
382

    
383
    while (*pvc != NULL)
384
        if ((*pvc)->opaque == opaque)
385
            return *pvc;
386
        else
387
            pvc = &(*pvc)->next;
388

    
389
    return NULL;
390
}
391

    
392
int qemu_can_send_packet(VLANClientState *sender)
393
{
394
    VLANState *vlan = sender->vlan;
395
    VLANClientState *vc;
396

    
397
    for (vc = vlan->first_client; vc != NULL; vc = vc->next) {
398
        if (vc == sender) {
399
            continue;
400
        }
401

    
402
        /* no can_receive() handler, they can always receive */
403
        if (!vc->can_receive || vc->can_receive(vc)) {
404
            return 1;
405
        }
406
    }
407
    return 0;
408
}
409

    
410
static int
411
qemu_deliver_packet(VLANClientState *sender, const uint8_t *buf, int size)
412
{
413
    VLANClientState *vc;
414
    int ret = -1;
415

    
416
    sender->vlan->delivering = 1;
417

    
418
    for (vc = sender->vlan->first_client; vc != NULL; vc = vc->next) {
419
        ssize_t len;
420

    
421
        if (vc == sender) {
422
            continue;
423
        }
424

    
425
        if (vc->link_down) {
426
            ret = size;
427
            continue;
428
        }
429

    
430
        len = vc->receive(vc, buf, size);
431

    
432
        ret = (ret >= 0) ? ret : len;
433
    }
434

    
435
    sender->vlan->delivering = 0;
436

    
437
    return ret;
438
}
439

    
440
void qemu_purge_queued_packets(VLANClientState *vc)
441
{
442
    VLANPacket **pp = &vc->vlan->send_queue;
443

    
444
    while (*pp != NULL) {
445
        VLANPacket *packet = *pp;
446

    
447
        if (packet->sender == vc) {
448
            *pp = packet->next;
449
            qemu_free(packet);
450
        } else {
451
            pp = &packet->next;
452
        }
453
    }
454
}
455

    
456
void qemu_flush_queued_packets(VLANClientState *vc)
457
{
458
    VLANPacket *packet;
459

    
460
    while ((packet = vc->vlan->send_queue) != NULL) {
461
        int ret;
462

    
463
        vc->vlan->send_queue = packet->next;
464

    
465
        ret = qemu_deliver_packet(packet->sender, packet->data, packet->size);
466
        if (ret == 0 && packet->sent_cb != NULL) {
467
            packet->next = vc->vlan->send_queue;
468
            vc->vlan->send_queue = packet;
469
            break;
470
        }
471

    
472
        if (packet->sent_cb)
473
            packet->sent_cb(packet->sender, ret);
474

    
475
        qemu_free(packet);
476
    }
477
}
478

    
479
static void qemu_enqueue_packet(VLANClientState *sender,
480
                                const uint8_t *buf, int size,
481
                                NetPacketSent *sent_cb)
482
{
483
    VLANPacket *packet;
484

    
485
    packet = qemu_malloc(sizeof(VLANPacket) + size);
486
    packet->next = sender->vlan->send_queue;
487
    packet->sender = sender;
488
    packet->size = size;
489
    packet->sent_cb = sent_cb;
490
    memcpy(packet->data, buf, size);
491
    sender->vlan->send_queue = packet;
492
}
493

    
494
ssize_t qemu_send_packet_async(VLANClientState *sender,
495
                               const uint8_t *buf, int size,
496
                               NetPacketSent *sent_cb)
497
{
498
    int ret;
499

    
500
    if (sender->link_down) {
501
        return size;
502
    }
503

    
504
#ifdef DEBUG_NET
505
    printf("vlan %d send:\n", sender->vlan->id);
506
    hex_dump(stdout, buf, size);
507
#endif
508

    
509
    if (sender->vlan->delivering) {
510
        qemu_enqueue_packet(sender, buf, size, NULL);
511
        return size;
512
    }
513

    
514
    ret = qemu_deliver_packet(sender, buf, size);
515
    if (ret == 0 && sent_cb != NULL) {
516
        qemu_enqueue_packet(sender, buf, size, sent_cb);
517
        return 0;
518
    }
519

    
520
    qemu_flush_queued_packets(sender);
521

    
522
    return ret;
523
}
524

    
525
void qemu_send_packet(VLANClientState *vc, const uint8_t *buf, int size)
526
{
527
    qemu_send_packet_async(vc, buf, size, NULL);
528
}
529

    
530
static ssize_t vc_sendv_compat(VLANClientState *vc, const struct iovec *iov,
531
                               int iovcnt)
532
{
533
    uint8_t buffer[4096];
534
    size_t offset = 0;
535
    int i;
536

    
537
    for (i = 0; i < iovcnt; i++) {
538
        size_t len;
539

    
540
        len = MIN(sizeof(buffer) - offset, iov[i].iov_len);
541
        memcpy(buffer + offset, iov[i].iov_base, len);
542
        offset += len;
543
    }
544

    
545
    return vc->receive(vc, buffer, offset);
546
}
547

    
548
static ssize_t calc_iov_length(const struct iovec *iov, int iovcnt)
549
{
550
    size_t offset = 0;
551
    int i;
552

    
553
    for (i = 0; i < iovcnt; i++)
554
        offset += iov[i].iov_len;
555
    return offset;
556
}
557

    
558
static int qemu_deliver_packet_iov(VLANClientState *sender,
559
                                   const struct iovec *iov, int iovcnt)
560
{
561
    VLANClientState *vc;
562
    int ret = -1;
563

    
564
    sender->vlan->delivering = 1;
565

    
566
    for (vc = sender->vlan->first_client; vc != NULL; vc = vc->next) {
567
        ssize_t len;
568

    
569
        if (vc == sender) {
570
            continue;
571
        }
572

    
573
        if (vc->link_down) {
574
            ret = calc_iov_length(iov, iovcnt);
575
            continue;
576
        }
577

    
578
        if (vc->receive_iov) {
579
            len = vc->receive_iov(vc, iov, iovcnt);
580
        } else {
581
            len = vc_sendv_compat(vc, iov, iovcnt);
582
        }
583

    
584
        ret = (ret >= 0) ? ret : len;
585
    }
586

    
587
    sender->vlan->delivering = 0;
588

    
589
    return ret;
590
}
591

    
592
static ssize_t qemu_enqueue_packet_iov(VLANClientState *sender,
593
                                       const struct iovec *iov, int iovcnt,
594
                                       NetPacketSent *sent_cb)
595
{
596
    VLANPacket *packet;
597
    size_t max_len = 0;
598
    int i;
599

    
600
    max_len = calc_iov_length(iov, iovcnt);
601

    
602
    packet = qemu_malloc(sizeof(VLANPacket) + max_len);
603
    packet->next = sender->vlan->send_queue;
604
    packet->sender = sender;
605
    packet->sent_cb = sent_cb;
606
    packet->size = 0;
607

    
608
    for (i = 0; i < iovcnt; i++) {
609
        size_t len = iov[i].iov_len;
610

    
611
        memcpy(packet->data + packet->size, iov[i].iov_base, len);
612
        packet->size += len;
613
    }
614

    
615
    sender->vlan->send_queue = packet;
616

    
617
    return packet->size;
618
}
619

    
620
ssize_t qemu_sendv_packet_async(VLANClientState *sender,
621
                                const struct iovec *iov, int iovcnt,
622
                                NetPacketSent *sent_cb)
623
{
624
    int ret;
625

    
626
    if (sender->link_down) {
627
        return calc_iov_length(iov, iovcnt);
628
    }
629

    
630
    if (sender->vlan->delivering) {
631
        return qemu_enqueue_packet_iov(sender, iov, iovcnt, NULL);
632
    }
633

    
634
    ret = qemu_deliver_packet_iov(sender, iov, iovcnt);
635
    if (ret == 0 && sent_cb != NULL) {
636
        qemu_enqueue_packet_iov(sender, iov, iovcnt, sent_cb);
637
        return 0;
638
    }
639

    
640
    qemu_flush_queued_packets(sender);
641

    
642
    return ret;
643
}
644

    
645
ssize_t
646
qemu_sendv_packet(VLANClientState *vc, const struct iovec *iov, int iovcnt)
647
{
648
    return qemu_sendv_packet_async(vc, iov, iovcnt, NULL);
649
}
650

    
651
static void config_error(Monitor *mon, const char *fmt, ...)
652
{
653
    va_list ap;
654

    
655
    va_start(ap, fmt);
656
    if (mon) {
657
        monitor_vprintf(mon, fmt, ap);
658
    } else {
659
        fprintf(stderr, "qemu: ");
660
        vfprintf(stderr, fmt, ap);
661
        exit(1);
662
    }
663
    va_end(ap);
664
}
665

    
666
#if defined(CONFIG_SLIRP)
667

    
668
/* slirp network adapter */
669

    
670
#define SLIRP_CFG_HOSTFWD 1
671
#define SLIRP_CFG_LEGACY  2
672

    
673
struct slirp_config_str {
674
    struct slirp_config_str *next;
675
    int flags;
676
    char str[1024];
677
    int legacy_format;
678
};
679

    
680
typedef struct SlirpState {
681
    TAILQ_ENTRY(SlirpState) entry;
682
    VLANClientState *vc;
683
    Slirp *slirp;
684
} SlirpState;
685

    
686
static struct slirp_config_str *slirp_configs;
687
const char *legacy_tftp_prefix;
688
const char *legacy_bootp_filename;
689
static TAILQ_HEAD(slirp_stacks, SlirpState) slirp_stacks =
690
    TAILQ_HEAD_INITIALIZER(slirp_stacks);
691

    
692
static void slirp_hostfwd(SlirpState *s, Monitor *mon, const char *redir_str,
693
                          int legacy_format);
694
static void slirp_guestfwd(SlirpState *s, Monitor *mon, const char *config_str,
695
                           int legacy_format);
696

    
697
#ifndef _WIN32
698
static const char *legacy_smb_export;
699

    
700
static void slirp_smb(SlirpState *s, const char *exported_dir,
701
                      struct in_addr vserver_addr);
702
#endif
703

    
704
int slirp_can_output(void *opaque)
705
{
706
    SlirpState *s = opaque;
707

    
708
    return qemu_can_send_packet(s->vc);
709
}
710

    
711
void slirp_output(void *opaque, const uint8_t *pkt, int pkt_len)
712
{
713
    SlirpState *s = opaque;
714

    
715
#ifdef DEBUG_SLIRP
716
    printf("slirp output:\n");
717
    hex_dump(stdout, pkt, pkt_len);
718
#endif
719
    qemu_send_packet(s->vc, pkt, pkt_len);
720
}
721

    
722
static ssize_t slirp_receive(VLANClientState *vc, const uint8_t *buf, size_t size)
723
{
724
    SlirpState *s = vc->opaque;
725

    
726
#ifdef DEBUG_SLIRP
727
    printf("slirp input:\n");
728
    hex_dump(stdout, buf, size);
729
#endif
730
    slirp_input(s->slirp, buf, size);
731
    return size;
732
}
733

    
734
static void net_slirp_cleanup(VLANClientState *vc)
735
{
736
    SlirpState *s = vc->opaque;
737

    
738
    slirp_cleanup(s->slirp);
739
    TAILQ_REMOVE(&slirp_stacks, s, entry);
740
    qemu_free(s);
741
}
742

    
743
static int net_slirp_init(Monitor *mon, VLANState *vlan, const char *model,
744
                          const char *name, int restricted,
745
                          const char *vnetwork, const char *vhost,
746
                          const char *vhostname, const char *tftp_export,
747
                          const char *bootfile, const char *vdhcp_start,
748
                          const char *vnameserver, const char *smb_export,
749
                          const char *vsmbserver)
750
{
751
    /* default settings according to historic slirp */
752
    struct in_addr net  = { .s_addr = htonl(0x0a000000) }; /* 10.0.0.0 */
753
    struct in_addr mask = { .s_addr = htonl(0xff000000) }; /* 255.0.0.0 */
754
    struct in_addr host = { .s_addr = htonl(0x0a000202) }; /* 10.0.2.2 */
755
    struct in_addr dhcp = { .s_addr = htonl(0x0a00020f) }; /* 10.0.2.15 */
756
    struct in_addr dns  = { .s_addr = htonl(0x0a000203) }; /* 10.0.2.3 */
757
#ifndef _WIN32
758
    struct in_addr smbsrv = { .s_addr = 0 };
759
#endif
760
    SlirpState *s;
761
    char buf[20];
762
    uint32_t addr;
763
    int shift;
764
    char *end;
765

    
766
    if (!tftp_export) {
767
        tftp_export = legacy_tftp_prefix;
768
    }
769
    if (!bootfile) {
770
        bootfile = legacy_bootp_filename;
771
    }
772

    
773
    if (vnetwork) {
774
        if (get_str_sep(buf, sizeof(buf), &vnetwork, '/') < 0) {
775
            if (!inet_aton(vnetwork, &net)) {
776
                return -1;
777
            }
778
            addr = ntohl(net.s_addr);
779
            if (!(addr & 0x80000000)) {
780
                mask.s_addr = htonl(0xff000000); /* class A */
781
            } else if ((addr & 0xfff00000) == 0xac100000) {
782
                mask.s_addr = htonl(0xfff00000); /* priv. 172.16.0.0/12 */
783
            } else if ((addr & 0xc0000000) == 0x80000000) {
784
                mask.s_addr = htonl(0xffff0000); /* class B */
785
            } else if ((addr & 0xffff0000) == 0xc0a80000) {
786
                mask.s_addr = htonl(0xffff0000); /* priv. 192.168.0.0/16 */
787
            } else if ((addr & 0xffff0000) == 0xc6120000) {
788
                mask.s_addr = htonl(0xfffe0000); /* tests 198.18.0.0/15 */
789
            } else if ((addr & 0xe0000000) == 0xe0000000) {
790
                mask.s_addr = htonl(0xffffff00); /* class C */
791
            } else {
792
                mask.s_addr = htonl(0xfffffff0); /* multicast/reserved */
793
            }
794
        } else {
795
            if (!inet_aton(buf, &net)) {
796
                return -1;
797
            }
798
            shift = strtol(vnetwork, &end, 10);
799
            if (*end != '\0') {
800
                if (!inet_aton(vnetwork, &mask)) {
801
                    return -1;
802
                }
803
            } else if (shift < 4 || shift > 32) {
804
                return -1;
805
            } else {
806
                mask.s_addr = htonl(0xffffffff << (32 - shift));
807
            }
808
        }
809
        net.s_addr &= mask.s_addr;
810
        host.s_addr = net.s_addr | (htonl(0x0202) & ~mask.s_addr);
811
        dhcp.s_addr = net.s_addr | (htonl(0x020f) & ~mask.s_addr);
812
        dns.s_addr  = net.s_addr | (htonl(0x0203) & ~mask.s_addr);
813
    }
814

    
815
    if (vhost && !inet_aton(vhost, &host)) {
816
        return -1;
817
    }
818
    if ((host.s_addr & mask.s_addr) != net.s_addr) {
819
        return -1;
820
    }
821

    
822
    if (vdhcp_start && !inet_aton(vdhcp_start, &dhcp)) {
823
        return -1;
824
    }
825
    if ((dhcp.s_addr & mask.s_addr) != net.s_addr ||
826
        dhcp.s_addr == host.s_addr || dhcp.s_addr == dns.s_addr) {
827
        return -1;
828
    }
829

    
830
    if (vnameserver && !inet_aton(vnameserver, &dns)) {
831
        return -1;
832
    }
833
    if ((dns.s_addr & mask.s_addr) != net.s_addr ||
834
        dns.s_addr == host.s_addr) {
835
        return -1;
836
    }
837

    
838
#ifndef _WIN32
839
    if (vsmbserver && !inet_aton(vsmbserver, &smbsrv)) {
840
        return -1;
841
    }
842
#endif
843

    
844
    s = qemu_mallocz(sizeof(SlirpState));
845
    s->slirp = slirp_init(restricted, net, mask, host, vhostname,
846
                          tftp_export, bootfile, dhcp, dns, s);
847
    TAILQ_INSERT_TAIL(&slirp_stacks, s, entry);
848

    
849
    while (slirp_configs) {
850
        struct slirp_config_str *config = slirp_configs;
851

    
852
        if (config->flags & SLIRP_CFG_HOSTFWD) {
853
            slirp_hostfwd(s, mon, config->str,
854
                          config->flags & SLIRP_CFG_LEGACY);
855
        } else {
856
            slirp_guestfwd(s, mon, config->str,
857
                           config->flags & SLIRP_CFG_LEGACY);
858
        }
859
        slirp_configs = config->next;
860
        qemu_free(config);
861
    }
862
#ifndef _WIN32
863
    if (!smb_export) {
864
        smb_export = legacy_smb_export;
865
    }
866
    if (smb_export) {
867
        slirp_smb(s, smb_export, smbsrv);
868
    }
869
#endif
870

    
871
    s->vc = qemu_new_vlan_client(vlan, model, name, NULL, slirp_receive, NULL,
872
                                 net_slirp_cleanup, s);
873
    s->vc->info_str[0] = '\0';
874
    return 0;
875
}
876

    
877
void net_slirp_hostfwd_remove(Monitor *mon, const char *src_str)
878
{
879
    struct in_addr host_addr = { .s_addr = INADDR_ANY };
880
    int host_port;
881
    char buf[256] = "";
882
    const char *p = src_str;
883
    int is_udp = 0;
884
    int err;
885

    
886
    if (TAILQ_EMPTY(&slirp_stacks)) {
887
        monitor_printf(mon, "user mode network stack not in use\n");
888
        return;
889
    }
890

    
891
    if (!src_str || !src_str[0])
892
        goto fail_syntax;
893

    
894
    get_str_sep(buf, sizeof(buf), &p, ':');
895

    
896
    if (!strcmp(buf, "tcp") || buf[0] == '\0') {
897
        is_udp = 0;
898
    } else if (!strcmp(buf, "udp")) {
899
        is_udp = 1;
900
    } else {
901
        goto fail_syntax;
902
    }
903

    
904
    if (get_str_sep(buf, sizeof(buf), &p, ':') < 0) {
905
        goto fail_syntax;
906
    }
907
    if (buf[0] != '\0' && !inet_aton(buf, &host_addr)) {
908
        goto fail_syntax;
909
    }
910

    
911
    host_port = atoi(p);
912

    
913
    err = slirp_remove_hostfwd(TAILQ_FIRST(&slirp_stacks)->slirp, is_udp,
914
                               host_addr, host_port);
915

    
916
    monitor_printf(mon, "host forwarding rule for %s %s\n", src_str,
917
                   err ? "removed" : "not found");
918
    return;
919

    
920
 fail_syntax:
921
    monitor_printf(mon, "invalid format\n");
922
}
923

    
924
static void slirp_hostfwd(SlirpState *s, Monitor *mon, const char *redir_str,
925
                          int legacy_format)
926
{
927
    struct in_addr host_addr = { .s_addr = INADDR_ANY };
928
    struct in_addr guest_addr = { .s_addr = 0 };
929
    int host_port, guest_port;
930
    const char *p;
931
    char buf[256];
932
    int is_udp;
933
    char *end;
934

    
935
    p = redir_str;
936
    if (get_str_sep(buf, sizeof(buf), &p, ':') < 0) {
937
        goto fail_syntax;
938
    }
939
    if (!strcmp(buf, "tcp") || buf[0] == '\0') {
940
        is_udp = 0;
941
    } else if (!strcmp(buf, "udp")) {
942
        is_udp = 1;
943
    } else {
944
        goto fail_syntax;
945
    }
946

    
947
    if (!legacy_format) {
948
        if (get_str_sep(buf, sizeof(buf), &p, ':') < 0) {
949
            goto fail_syntax;
950
        }
951
        if (buf[0] != '\0' && !inet_aton(buf, &host_addr)) {
952
            goto fail_syntax;
953
        }
954
    }
955

    
956
    if (get_str_sep(buf, sizeof(buf), &p, legacy_format ? ':' : '-') < 0) {
957
        goto fail_syntax;
958
    }
959
    host_port = strtol(buf, &end, 0);
960
    if (*end != '\0' || host_port < 1 || host_port > 65535) {
961
        goto fail_syntax;
962
    }
963

    
964
    if (get_str_sep(buf, sizeof(buf), &p, ':') < 0) {
965
        goto fail_syntax;
966
    }
967
    if (buf[0] != '\0' && !inet_aton(buf, &guest_addr)) {
968
        goto fail_syntax;
969
    }
970

    
971
    guest_port = strtol(p, &end, 0);
972
    if (*end != '\0' || guest_port < 1 || guest_port > 65535) {
973
        goto fail_syntax;
974
    }
975

    
976
    if (slirp_add_hostfwd(s->slirp, is_udp, host_addr, host_port, guest_addr,
977
                          guest_port) < 0) {
978
        config_error(mon, "could not set up host forwarding rule '%s'\n",
979
                     redir_str);
980
    }
981
    return;
982

    
983
 fail_syntax:
984
    config_error(mon, "invalid host forwarding rule '%s'\n", redir_str);
985
}
986

    
987
void net_slirp_hostfwd_add(Monitor *mon, const char *redir_str)
988
{
989
    if (TAILQ_EMPTY(&slirp_stacks)) {
990
        monitor_printf(mon, "user mode network stack not in use\n");
991
        return;
992
    }
993

    
994
    slirp_hostfwd(TAILQ_FIRST(&slirp_stacks), mon, redir_str, 0);
995
}
996

    
997
void net_slirp_redir(const char *redir_str)
998
{
999
    struct slirp_config_str *config;
1000

    
1001
    if (TAILQ_EMPTY(&slirp_stacks)) {
1002
        config = qemu_malloc(sizeof(*config));
1003
        pstrcpy(config->str, sizeof(config->str), redir_str);
1004
        config->flags = SLIRP_CFG_HOSTFWD | SLIRP_CFG_LEGACY;
1005
        config->next = slirp_configs;
1006
        slirp_configs = config;
1007
        return;
1008
    }
1009

    
1010
    slirp_hostfwd(TAILQ_FIRST(&slirp_stacks), NULL, redir_str, 1);
1011
}
1012

    
1013
#ifndef _WIN32
1014

    
1015
static char smb_dir[1024];
1016

    
1017
static void erase_dir(char *dir_name)
1018
{
1019
    DIR *d;
1020
    struct dirent *de;
1021
    char filename[1024];
1022

    
1023
    /* erase all the files in the directory */
1024
    if ((d = opendir(dir_name)) != NULL) {
1025
        for(;;) {
1026
            de = readdir(d);
1027
            if (!de)
1028
                break;
1029
            if (strcmp(de->d_name, ".") != 0 &&
1030
                strcmp(de->d_name, "..") != 0) {
1031
                snprintf(filename, sizeof(filename), "%s/%s",
1032
                         smb_dir, de->d_name);
1033
                if (unlink(filename) != 0)  /* is it a directory? */
1034
                    erase_dir(filename);
1035
            }
1036
        }
1037
        closedir(d);
1038
        rmdir(dir_name);
1039
    }
1040
}
1041

    
1042
/* automatic user mode samba server configuration */
1043
static void smb_exit(void)
1044
{
1045
    erase_dir(smb_dir);
1046
}
1047

    
1048
static void slirp_smb(SlirpState* s, const char *exported_dir,
1049
                      struct in_addr vserver_addr)
1050
{
1051
    char smb_conf[1024];
1052
    char smb_cmdline[1024];
1053
    FILE *f;
1054

    
1055
    /* XXX: better tmp dir construction */
1056
    snprintf(smb_dir, sizeof(smb_dir), "/tmp/qemu-smb.%ld", (long)getpid());
1057
    if (mkdir(smb_dir, 0700) < 0) {
1058
        fprintf(stderr, "qemu: could not create samba server dir '%s'\n", smb_dir);
1059
        exit(1);
1060
    }
1061
    snprintf(smb_conf, sizeof(smb_conf), "%s/%s", smb_dir, "smb.conf");
1062

    
1063
    f = fopen(smb_conf, "w");
1064
    if (!f) {
1065
        fprintf(stderr, "qemu: could not create samba server configuration file '%s'\n", smb_conf);
1066
        exit(1);
1067
    }
1068
    fprintf(f,
1069
            "[global]\n"
1070
            "private dir=%s\n"
1071
            "smb ports=0\n"
1072
            "socket address=127.0.0.1\n"
1073
            "pid directory=%s\n"
1074
            "lock directory=%s\n"
1075
            "log file=%s/log.smbd\n"
1076
            "smb passwd file=%s/smbpasswd\n"
1077
            "security = share\n"
1078
            "[qemu]\n"
1079
            "path=%s\n"
1080
            "read only=no\n"
1081
            "guest ok=yes\n",
1082
            smb_dir,
1083
            smb_dir,
1084
            smb_dir,
1085
            smb_dir,
1086
            smb_dir,
1087
            exported_dir
1088
            );
1089
    fclose(f);
1090
    atexit(smb_exit);
1091

    
1092
    snprintf(smb_cmdline, sizeof(smb_cmdline), "%s -s %s",
1093
             SMBD_COMMAND, smb_conf);
1094

    
1095
    if (slirp_add_exec(s->slirp, 0, smb_cmdline, vserver_addr, 139) < 0) {
1096
        fprintf(stderr, "conflicting/invalid smbserver address\n");
1097
        exit(1);
1098
    }
1099
}
1100

    
1101
/* automatic user mode samba server configuration (legacy interface) */
1102
void net_slirp_smb(const char *exported_dir)
1103
{
1104
    struct in_addr vserver_addr = { .s_addr = 0 };
1105

    
1106
    if (legacy_smb_export) {
1107
        fprintf(stderr, "-smb given twice\n");
1108
        exit(1);
1109
    }
1110
    legacy_smb_export = exported_dir;
1111
    if (!TAILQ_EMPTY(&slirp_stacks)) {
1112
        slirp_smb(TAILQ_FIRST(&slirp_stacks), exported_dir, vserver_addr);
1113
    }
1114
}
1115

    
1116
#endif /* !defined(_WIN32) */
1117

    
1118
struct GuestFwd {
1119
    CharDriverState *hd;
1120
    struct in_addr server;
1121
    int port;
1122
    Slirp *slirp;
1123
};
1124

    
1125
static int guestfwd_can_read(void *opaque)
1126
{
1127
    struct GuestFwd *fwd = opaque;
1128
    return slirp_socket_can_recv(fwd->slirp, fwd->server, fwd->port);
1129
}
1130

    
1131
static void guestfwd_read(void *opaque, const uint8_t *buf, int size)
1132
{
1133
    struct GuestFwd *fwd = opaque;
1134
    slirp_socket_recv(fwd->slirp, fwd->server, fwd->port, buf, size);
1135
}
1136

    
1137
static void slirp_guestfwd(SlirpState *s, Monitor *mon, const char *config_str,
1138
                           int legacy_format)
1139
{
1140
    struct in_addr server = { .s_addr = 0 };
1141
    struct GuestFwd *fwd;
1142
    const char *p;
1143
    char buf[128];
1144
    char *end;
1145
    int port;
1146

    
1147
    p = config_str;
1148
    if (legacy_format) {
1149
        if (get_str_sep(buf, sizeof(buf), &p, ':') < 0) {
1150
            goto fail_syntax;
1151
        }
1152
    } else {
1153
        if (get_str_sep(buf, sizeof(buf), &p, ':') < 0) {
1154
            goto fail_syntax;
1155
        }
1156
        if (strcmp(buf, "tcp") && buf[0] != '\0') {
1157
            goto fail_syntax;
1158
        }
1159
        if (get_str_sep(buf, sizeof(buf), &p, ':') < 0) {
1160
            goto fail_syntax;
1161
        }
1162
        if (buf[0] != '\0' && !inet_aton(buf, &server)) {
1163
            goto fail_syntax;
1164
        }
1165
        if (get_str_sep(buf, sizeof(buf), &p, '-') < 0) {
1166
            goto fail_syntax;
1167
        }
1168
    }
1169
    port = strtol(buf, &end, 10);
1170
    if (*end != '\0' || port < 1 || port > 65535) {
1171
        goto fail_syntax;
1172
    }
1173

    
1174
    fwd = qemu_malloc(sizeof(struct GuestFwd));
1175
    snprintf(buf, sizeof(buf), "guestfwd.tcp:%d", port);
1176
    fwd->hd = qemu_chr_open(buf, p, NULL);
1177
    if (!fwd->hd) {
1178
        config_error(mon, "could not open guest forwarding device '%s'\n",
1179
                     buf);
1180
        qemu_free(fwd);
1181
        return;
1182
    }
1183
    fwd->server = server;
1184
    fwd->port = port;
1185
    fwd->slirp = s->slirp;
1186

    
1187
    if (slirp_add_exec(s->slirp, 3, fwd->hd, server, port) < 0) {
1188
        config_error(mon, "conflicting/invalid host:port in guest forwarding "
1189
                     "rule '%s'\n", config_str);
1190
        qemu_free(fwd);
1191
        return;
1192
    }
1193
    qemu_chr_add_handlers(fwd->hd, guestfwd_can_read, guestfwd_read,
1194
                          NULL, fwd);
1195
    return;
1196

    
1197
 fail_syntax:
1198
    config_error(mon, "invalid guest forwarding rule '%s'\n", config_str);
1199
}
1200

    
1201
void do_info_usernet(Monitor *mon)
1202
{
1203
    SlirpState *s;
1204

    
1205
    TAILQ_FOREACH(s, &slirp_stacks, entry) {
1206
        monitor_printf(mon, "VLAN %d (%s):\n", s->vc->vlan->id, s->vc->name);
1207
        slirp_connection_info(s->slirp, mon);
1208
    }
1209
}
1210

    
1211
#endif /* CONFIG_SLIRP */
1212

    
1213
#if !defined(_WIN32)
1214

    
1215
typedef struct TAPState {
1216
    VLANClientState *vc;
1217
    int fd;
1218
    char down_script[1024];
1219
    char down_script_arg[128];
1220
    uint8_t buf[4096];
1221
    unsigned int read_poll : 1;
1222
    unsigned int write_poll : 1;
1223
} TAPState;
1224

    
1225
static int launch_script(const char *setup_script, const char *ifname, int fd);
1226

    
1227
static int tap_can_send(void *opaque);
1228
static void tap_send(void *opaque);
1229
static void tap_writable(void *opaque);
1230

    
1231
static void tap_update_fd_handler(TAPState *s)
1232
{
1233
    qemu_set_fd_handler2(s->fd,
1234
                         s->read_poll  ? tap_can_send : NULL,
1235
                         s->read_poll  ? tap_send     : NULL,
1236
                         s->write_poll ? tap_writable : NULL,
1237
                         s);
1238
}
1239

    
1240
static void tap_read_poll(TAPState *s, int enable)
1241
{
1242
    s->read_poll = !!enable;
1243
    tap_update_fd_handler(s);
1244
}
1245

    
1246
static void tap_write_poll(TAPState *s, int enable)
1247
{
1248
    s->write_poll = !!enable;
1249
    tap_update_fd_handler(s);
1250
}
1251

    
1252
static void tap_writable(void *opaque)
1253
{
1254
    TAPState *s = opaque;
1255

    
1256
    tap_write_poll(s, 0);
1257

    
1258
    qemu_flush_queued_packets(s->vc);
1259
}
1260

    
1261
static ssize_t tap_receive_iov(VLANClientState *vc, const struct iovec *iov,
1262
                               int iovcnt)
1263
{
1264
    TAPState *s = vc->opaque;
1265
    ssize_t len;
1266

    
1267
    do {
1268
        len = writev(s->fd, iov, iovcnt);
1269
    } while (len == -1 && errno == EINTR);
1270

    
1271
    if (len == -1 && errno == EAGAIN) {
1272
        tap_write_poll(s, 1);
1273
        return 0;
1274
    }
1275

    
1276
    return len;
1277
}
1278

    
1279
static ssize_t tap_receive(VLANClientState *vc, const uint8_t *buf, size_t size)
1280
{
1281
    TAPState *s = vc->opaque;
1282
    ssize_t len;
1283

    
1284
    do {
1285
        len = write(s->fd, buf, size);
1286
    } while (len == -1 && (errno == EINTR || errno == EAGAIN));
1287

    
1288
    return len;
1289
}
1290

    
1291
static int tap_can_send(void *opaque)
1292
{
1293
    TAPState *s = opaque;
1294

    
1295
    return qemu_can_send_packet(s->vc);
1296
}
1297

    
1298
#ifdef __sun__
1299
static ssize_t tap_read_packet(int tapfd, uint8_t *buf, int maxlen)
1300
{
1301
    struct strbuf sbuf;
1302
    int f = 0;
1303

    
1304
    sbuf.maxlen = maxlen;
1305
    sbuf.buf = (char *)buf;
1306

    
1307
    return getmsg(tapfd, NULL, &sbuf, &f) >= 0 ? sbuf.len : -1;
1308
}
1309
#else
1310
static ssize_t tap_read_packet(int tapfd, uint8_t *buf, int maxlen)
1311
{
1312
    return read(tapfd, buf, maxlen);
1313
}
1314
#endif
1315

    
1316
static void tap_send_completed(VLANClientState *vc, ssize_t len)
1317
{
1318
    TAPState *s = vc->opaque;
1319
    tap_read_poll(s, 1);
1320
}
1321

    
1322
static void tap_send(void *opaque)
1323
{
1324
    TAPState *s = opaque;
1325
    int size;
1326

    
1327
    do {
1328
        size = tap_read_packet(s->fd, s->buf, sizeof(s->buf));
1329
        if (size <= 0) {
1330
            break;
1331
        }
1332

    
1333
        size = qemu_send_packet_async(s->vc, s->buf, size, tap_send_completed);
1334
        if (size == 0) {
1335
            tap_read_poll(s, 0);
1336
        }
1337
    } while (size > 0);
1338
}
1339

    
1340
static void tap_set_sndbuf(TAPState *s, int sndbuf, Monitor *mon)
1341
{
1342
#ifdef TUNSETSNDBUF
1343
    if (ioctl(s->fd, TUNSETSNDBUF, &sndbuf) == -1) {
1344
        config_error(mon, "TUNSETSNDBUF ioctl failed: %s\n",
1345
                     strerror(errno));
1346
    }
1347
#else
1348
    config_error(mon, "No '-net tap,sndbuf=<nbytes>' support available\n");
1349
#endif
1350
}
1351

    
1352
static void tap_cleanup(VLANClientState *vc)
1353
{
1354
    TAPState *s = vc->opaque;
1355

    
1356
    qemu_purge_queued_packets(vc);
1357

    
1358
    if (s->down_script[0])
1359
        launch_script(s->down_script, s->down_script_arg, s->fd);
1360

    
1361
    tap_read_poll(s, 0);
1362
    tap_write_poll(s, 0);
1363
    close(s->fd);
1364
    qemu_free(s);
1365
}
1366

    
1367
/* fd support */
1368

    
1369
static TAPState *net_tap_fd_init(VLANState *vlan,
1370
                                 const char *model,
1371
                                 const char *name,
1372
                                 int fd)
1373
{
1374
    TAPState *s;
1375

    
1376
    s = qemu_mallocz(sizeof(TAPState));
1377
    s->fd = fd;
1378
    s->vc = qemu_new_vlan_client(vlan, model, name, NULL, tap_receive,
1379
                                 tap_receive_iov, tap_cleanup, s);
1380
    tap_read_poll(s, 1);
1381
    snprintf(s->vc->info_str, sizeof(s->vc->info_str), "fd=%d", fd);
1382
    return s;
1383
}
1384

    
1385
#if defined (HOST_BSD) || defined (__FreeBSD_kernel__)
1386
static int tap_open(char *ifname, int ifname_size)
1387
{
1388
    int fd;
1389
    char *dev;
1390
    struct stat s;
1391

    
1392
    TFR(fd = open("/dev/tap", O_RDWR));
1393
    if (fd < 0) {
1394
        fprintf(stderr, "warning: could not open /dev/tap: no virtual network emulation\n");
1395
        return -1;
1396
    }
1397

    
1398
    fstat(fd, &s);
1399
    dev = devname(s.st_rdev, S_IFCHR);
1400
    pstrcpy(ifname, ifname_size, dev);
1401

    
1402
    fcntl(fd, F_SETFL, O_NONBLOCK);
1403
    return fd;
1404
}
1405
#elif defined(__sun__)
1406
#define TUNNEWPPA       (('T'<<16) | 0x0001)
1407
/*
1408
 * Allocate TAP device, returns opened fd.
1409
 * Stores dev name in the first arg(must be large enough).
1410
 */
1411
static int tap_alloc(char *dev, size_t dev_size)
1412
{
1413
    int tap_fd, if_fd, ppa = -1;
1414
    static int ip_fd = 0;
1415
    char *ptr;
1416

    
1417
    static int arp_fd = 0;
1418
    int ip_muxid, arp_muxid;
1419
    struct strioctl  strioc_if, strioc_ppa;
1420
    int link_type = I_PLINK;;
1421
    struct lifreq ifr;
1422
    char actual_name[32] = "";
1423

    
1424
    memset(&ifr, 0x0, sizeof(ifr));
1425

    
1426
    if( *dev ){
1427
       ptr = dev;
1428
       while( *ptr && !qemu_isdigit((int)*ptr) ) ptr++;
1429
       ppa = atoi(ptr);
1430
    }
1431

    
1432
    /* Check if IP device was opened */
1433
    if( ip_fd )
1434
       close(ip_fd);
1435

    
1436
    TFR(ip_fd = open("/dev/udp", O_RDWR, 0));
1437
    if (ip_fd < 0) {
1438
       syslog(LOG_ERR, "Can't open /dev/ip (actually /dev/udp)");
1439
       return -1;
1440
    }
1441

    
1442
    TFR(tap_fd = open("/dev/tap", O_RDWR, 0));
1443
    if (tap_fd < 0) {
1444
       syslog(LOG_ERR, "Can't open /dev/tap");
1445
       return -1;
1446
    }
1447

    
1448
    /* Assign a new PPA and get its unit number. */
1449
    strioc_ppa.ic_cmd = TUNNEWPPA;
1450
    strioc_ppa.ic_timout = 0;
1451
    strioc_ppa.ic_len = sizeof(ppa);
1452
    strioc_ppa.ic_dp = (char *)&ppa;
1453
    if ((ppa = ioctl (tap_fd, I_STR, &strioc_ppa)) < 0)
1454
       syslog (LOG_ERR, "Can't assign new interface");
1455

    
1456
    TFR(if_fd = open("/dev/tap", O_RDWR, 0));
1457
    if (if_fd < 0) {
1458
       syslog(LOG_ERR, "Can't open /dev/tap (2)");
1459
       return -1;
1460
    }
1461
    if(ioctl(if_fd, I_PUSH, "ip") < 0){
1462
       syslog(LOG_ERR, "Can't push IP module");
1463
       return -1;
1464
    }
1465

    
1466
    if (ioctl(if_fd, SIOCGLIFFLAGS, &ifr) < 0)
1467
        syslog(LOG_ERR, "Can't get flags\n");
1468

    
1469
    snprintf (actual_name, 32, "tap%d", ppa);
1470
    pstrcpy(ifr.lifr_name, sizeof(ifr.lifr_name), actual_name);
1471

    
1472
    ifr.lifr_ppa = ppa;
1473
    /* Assign ppa according to the unit number returned by tun device */
1474

    
1475
    if (ioctl (if_fd, SIOCSLIFNAME, &ifr) < 0)
1476
        syslog (LOG_ERR, "Can't set PPA %d", ppa);
1477
    if (ioctl(if_fd, SIOCGLIFFLAGS, &ifr) <0)
1478
        syslog (LOG_ERR, "Can't get flags\n");
1479
    /* Push arp module to if_fd */
1480
    if (ioctl (if_fd, I_PUSH, "arp") < 0)
1481
        syslog (LOG_ERR, "Can't push ARP module (2)");
1482

    
1483
    /* Push arp module to ip_fd */
1484
    if (ioctl (ip_fd, I_POP, NULL) < 0)
1485
        syslog (LOG_ERR, "I_POP failed\n");
1486
    if (ioctl (ip_fd, I_PUSH, "arp") < 0)
1487
        syslog (LOG_ERR, "Can't push ARP module (3)\n");
1488
    /* Open arp_fd */
1489
    TFR(arp_fd = open ("/dev/tap", O_RDWR, 0));
1490
    if (arp_fd < 0)
1491
       syslog (LOG_ERR, "Can't open %s\n", "/dev/tap");
1492

    
1493
    /* Set ifname to arp */
1494
    strioc_if.ic_cmd = SIOCSLIFNAME;
1495
    strioc_if.ic_timout = 0;
1496
    strioc_if.ic_len = sizeof(ifr);
1497
    strioc_if.ic_dp = (char *)&ifr;
1498
    if (ioctl(arp_fd, I_STR, &strioc_if) < 0){
1499
        syslog (LOG_ERR, "Can't set ifname to arp\n");
1500
    }
1501

    
1502
    if((ip_muxid = ioctl(ip_fd, I_LINK, if_fd)) < 0){
1503
       syslog(LOG_ERR, "Can't link TAP device to IP");
1504
       return -1;
1505
    }
1506

    
1507
    if ((arp_muxid = ioctl (ip_fd, link_type, arp_fd)) < 0)
1508
        syslog (LOG_ERR, "Can't link TAP device to ARP");
1509

    
1510
    close (if_fd);
1511

    
1512
    memset(&ifr, 0x0, sizeof(ifr));
1513
    pstrcpy(ifr.lifr_name, sizeof(ifr.lifr_name), actual_name);
1514
    ifr.lifr_ip_muxid  = ip_muxid;
1515
    ifr.lifr_arp_muxid = arp_muxid;
1516

    
1517
    if (ioctl (ip_fd, SIOCSLIFMUXID, &ifr) < 0)
1518
    {
1519
      ioctl (ip_fd, I_PUNLINK , arp_muxid);
1520
      ioctl (ip_fd, I_PUNLINK, ip_muxid);
1521
      syslog (LOG_ERR, "Can't set multiplexor id");
1522
    }
1523

    
1524
    snprintf(dev, dev_size, "tap%d", ppa);
1525
    return tap_fd;
1526
}
1527

    
1528
static int tap_open(char *ifname, int ifname_size)
1529
{
1530
    char  dev[10]="";
1531
    int fd;
1532
    if( (fd = tap_alloc(dev, sizeof(dev))) < 0 ){
1533
       fprintf(stderr, "Cannot allocate TAP device\n");
1534
       return -1;
1535
    }
1536
    pstrcpy(ifname, ifname_size, dev);
1537
    fcntl(fd, F_SETFL, O_NONBLOCK);
1538
    return fd;
1539
}
1540
#elif defined (_AIX)
1541
static int tap_open(char *ifname, int ifname_size)
1542
{
1543
    fprintf (stderr, "no tap on AIX\n");
1544
    return -1;
1545
}
1546
#else
1547
static int tap_open(char *ifname, int ifname_size)
1548
{
1549
    struct ifreq ifr;
1550
    int fd, ret;
1551

    
1552
    TFR(fd = open("/dev/net/tun", O_RDWR));
1553
    if (fd < 0) {
1554
        fprintf(stderr, "warning: could not open /dev/net/tun: no virtual network emulation\n");
1555
        return -1;
1556
    }
1557
    memset(&ifr, 0, sizeof(ifr));
1558
    ifr.ifr_flags = IFF_TAP | IFF_NO_PI;
1559
    if (ifname[0] != '\0')
1560
        pstrcpy(ifr.ifr_name, IFNAMSIZ, ifname);
1561
    else
1562
        pstrcpy(ifr.ifr_name, IFNAMSIZ, "tap%d");
1563
    ret = ioctl(fd, TUNSETIFF, (void *) &ifr);
1564
    if (ret != 0) {
1565
        fprintf(stderr, "warning: could not configure /dev/net/tun: no virtual network emulation\n");
1566
        close(fd);
1567
        return -1;
1568
    }
1569
    pstrcpy(ifname, ifname_size, ifr.ifr_name);
1570
    fcntl(fd, F_SETFL, O_NONBLOCK);
1571
    return fd;
1572
}
1573
#endif
1574

    
1575
static int launch_script(const char *setup_script, const char *ifname, int fd)
1576
{
1577
    sigset_t oldmask, mask;
1578
    int pid, status;
1579
    char *args[3];
1580
    char **parg;
1581

    
1582
    sigemptyset(&mask);
1583
    sigaddset(&mask, SIGCHLD);
1584
    sigprocmask(SIG_BLOCK, &mask, &oldmask);
1585

    
1586
    /* try to launch network script */
1587
    pid = fork();
1588
    if (pid == 0) {
1589
        int open_max = sysconf(_SC_OPEN_MAX), i;
1590

    
1591
        for (i = 0; i < open_max; i++) {
1592
            if (i != STDIN_FILENO &&
1593
                i != STDOUT_FILENO &&
1594
                i != STDERR_FILENO &&
1595
                i != fd) {
1596
                close(i);
1597
            }
1598
        }
1599
        parg = args;
1600
        *parg++ = (char *)setup_script;
1601
        *parg++ = (char *)ifname;
1602
        *parg++ = NULL;
1603
        execv(setup_script, args);
1604
        _exit(1);
1605
    } else if (pid > 0) {
1606
        while (waitpid(pid, &status, 0) != pid) {
1607
            /* loop */
1608
        }
1609
        sigprocmask(SIG_SETMASK, &oldmask, NULL);
1610

    
1611
        if (WIFEXITED(status) && WEXITSTATUS(status) == 0) {
1612
            return 0;
1613
        }
1614
    }
1615
    fprintf(stderr, "%s: could not launch network script\n", setup_script);
1616
    return -1;
1617
}
1618

    
1619
static TAPState *net_tap_init(VLANState *vlan, const char *model,
1620
                              const char *name, const char *ifname1,
1621
                              const char *setup_script, const char *down_script)
1622
{
1623
    TAPState *s;
1624
    int fd;
1625
    char ifname[128];
1626

    
1627
    if (ifname1 != NULL)
1628
        pstrcpy(ifname, sizeof(ifname), ifname1);
1629
    else
1630
        ifname[0] = '\0';
1631
    TFR(fd = tap_open(ifname, sizeof(ifname)));
1632
    if (fd < 0)
1633
        return NULL;
1634

    
1635
    if (!setup_script || !strcmp(setup_script, "no"))
1636
        setup_script = "";
1637
    if (setup_script[0] != '\0' &&
1638
        launch_script(setup_script, ifname, fd)) {
1639
        return NULL;
1640
    }
1641
    s = net_tap_fd_init(vlan, model, name, fd);
1642
    snprintf(s->vc->info_str, sizeof(s->vc->info_str),
1643
             "ifname=%s,script=%s,downscript=%s",
1644
             ifname, setup_script, down_script);
1645
    if (down_script && strcmp(down_script, "no")) {
1646
        snprintf(s->down_script, sizeof(s->down_script), "%s", down_script);
1647
        snprintf(s->down_script_arg, sizeof(s->down_script_arg), "%s", ifname);
1648
    }
1649
    return s;
1650
}
1651

    
1652
#endif /* !_WIN32 */
1653

    
1654
#if defined(CONFIG_VDE)
1655
typedef struct VDEState {
1656
    VLANClientState *vc;
1657
    VDECONN *vde;
1658
} VDEState;
1659

    
1660
static void vde_to_qemu(void *opaque)
1661
{
1662
    VDEState *s = opaque;
1663
    uint8_t buf[4096];
1664
    int size;
1665

    
1666
    size = vde_recv(s->vde, (char *)buf, sizeof(buf), 0);
1667
    if (size > 0) {
1668
        qemu_send_packet(s->vc, buf, size);
1669
    }
1670
}
1671

    
1672
static ssize_t vde_receive(VLANClientState *vc, const uint8_t *buf, size_t size)
1673
{
1674
    VDEState *s = vc->opaque;
1675
    ssize_t ret;
1676

    
1677
    do {
1678
      ret = vde_send(s->vde, (const char *)buf, size, 0);
1679
    } while (ret < 0 && errno == EINTR);
1680

    
1681
    return ret;
1682
}
1683

    
1684
static void vde_cleanup(VLANClientState *vc)
1685
{
1686
    VDEState *s = vc->opaque;
1687
    qemu_set_fd_handler(vde_datafd(s->vde), NULL, NULL, NULL);
1688
    vde_close(s->vde);
1689
    qemu_free(s);
1690
}
1691

    
1692
static int net_vde_init(VLANState *vlan, const char *model,
1693
                        const char *name, const char *sock,
1694
                        int port, const char *group, int mode)
1695
{
1696
    VDEState *s;
1697
    char *init_group = strlen(group) ? (char *)group : NULL;
1698
    char *init_sock = strlen(sock) ? (char *)sock : NULL;
1699

    
1700
    struct vde_open_args args = {
1701
        .port = port,
1702
        .group = init_group,
1703
        .mode = mode,
1704
    };
1705

    
1706
    s = qemu_mallocz(sizeof(VDEState));
1707
    s->vde = vde_open(init_sock, (char *)"QEMU", &args);
1708
    if (!s->vde){
1709
        free(s);
1710
        return -1;
1711
    }
1712
    s->vc = qemu_new_vlan_client(vlan, model, name, NULL, vde_receive,
1713
                                 NULL, vde_cleanup, s);
1714
    qemu_set_fd_handler(vde_datafd(s->vde), vde_to_qemu, NULL, s);
1715
    snprintf(s->vc->info_str, sizeof(s->vc->info_str), "sock=%s,fd=%d",
1716
             sock, vde_datafd(s->vde));
1717
    return 0;
1718
}
1719
#endif
1720

    
1721
/* network connection */
1722
typedef struct NetSocketState {
1723
    VLANClientState *vc;
1724
    int fd;
1725
    int state; /* 0 = getting length, 1 = getting data */
1726
    unsigned int index;
1727
    unsigned int packet_len;
1728
    uint8_t buf[4096];
1729
    struct sockaddr_in dgram_dst; /* contains inet host and port destination iff connectionless (SOCK_DGRAM) */
1730
} NetSocketState;
1731

    
1732
typedef struct NetSocketListenState {
1733
    VLANState *vlan;
1734
    char *model;
1735
    char *name;
1736
    int fd;
1737
} NetSocketListenState;
1738

    
1739
/* XXX: we consider we can send the whole packet without blocking */
1740
static ssize_t net_socket_receive(VLANClientState *vc, const uint8_t *buf, size_t size)
1741
{
1742
    NetSocketState *s = vc->opaque;
1743
    uint32_t len;
1744
    len = htonl(size);
1745

    
1746
    send_all(s->fd, (const uint8_t *)&len, sizeof(len));
1747
    return send_all(s->fd, buf, size);
1748
}
1749

    
1750
static ssize_t net_socket_receive_dgram(VLANClientState *vc, const uint8_t *buf, size_t size)
1751
{
1752
    NetSocketState *s = vc->opaque;
1753

    
1754
    return sendto(s->fd, (const void *)buf, size, 0,
1755
                  (struct sockaddr *)&s->dgram_dst, sizeof(s->dgram_dst));
1756
}
1757

    
1758
static void net_socket_send(void *opaque)
1759
{
1760
    NetSocketState *s = opaque;
1761
    int size, err;
1762
    unsigned l;
1763
    uint8_t buf1[4096];
1764
    const uint8_t *buf;
1765

    
1766
    size = recv(s->fd, (void *)buf1, sizeof(buf1), 0);
1767
    if (size < 0) {
1768
        err = socket_error();
1769
        if (err != EWOULDBLOCK)
1770
            goto eoc;
1771
    } else if (size == 0) {
1772
        /* end of connection */
1773
    eoc:
1774
        qemu_set_fd_handler(s->fd, NULL, NULL, NULL);
1775
        closesocket(s->fd);
1776
        return;
1777
    }
1778
    buf = buf1;
1779
    while (size > 0) {
1780
        /* reassemble a packet from the network */
1781
        switch(s->state) {
1782
        case 0:
1783
            l = 4 - s->index;
1784
            if (l > size)
1785
                l = size;
1786
            memcpy(s->buf + s->index, buf, l);
1787
            buf += l;
1788
            size -= l;
1789
            s->index += l;
1790
            if (s->index == 4) {
1791
                /* got length */
1792
                s->packet_len = ntohl(*(uint32_t *)s->buf);
1793
                s->index = 0;
1794
                s->state = 1;
1795
            }
1796
            break;
1797
        case 1:
1798
            l = s->packet_len - s->index;
1799
            if (l > size)
1800
                l = size;
1801
            if (s->index + l <= sizeof(s->buf)) {
1802
                memcpy(s->buf + s->index, buf, l);
1803
            } else {
1804
                fprintf(stderr, "serious error: oversized packet received,"
1805
                    "connection terminated.\n");
1806
                s->state = 0;
1807
                goto eoc;
1808
            }
1809

    
1810
            s->index += l;
1811
            buf += l;
1812
            size -= l;
1813
            if (s->index >= s->packet_len) {
1814
                qemu_send_packet(s->vc, s->buf, s->packet_len);
1815
                s->index = 0;
1816
                s->state = 0;
1817
            }
1818
            break;
1819
        }
1820
    }
1821
}
1822

    
1823
static void net_socket_send_dgram(void *opaque)
1824
{
1825
    NetSocketState *s = opaque;
1826
    int size;
1827

    
1828
    size = recv(s->fd, (void *)s->buf, sizeof(s->buf), 0);
1829
    if (size < 0)
1830
        return;
1831
    if (size == 0) {
1832
        /* end of connection */
1833
        qemu_set_fd_handler(s->fd, NULL, NULL, NULL);
1834
        return;
1835
    }
1836
    qemu_send_packet(s->vc, s->buf, size);
1837
}
1838

    
1839
static int net_socket_mcast_create(struct sockaddr_in *mcastaddr)
1840
{
1841
    struct ip_mreq imr;
1842
    int fd;
1843
    int val, ret;
1844
    if (!IN_MULTICAST(ntohl(mcastaddr->sin_addr.s_addr))) {
1845
        fprintf(stderr, "qemu: error: specified mcastaddr \"%s\" (0x%08x) does not contain a multicast address\n",
1846
                inet_ntoa(mcastaddr->sin_addr),
1847
                (int)ntohl(mcastaddr->sin_addr.s_addr));
1848
        return -1;
1849

    
1850
    }
1851
    fd = socket(PF_INET, SOCK_DGRAM, 0);
1852
    if (fd < 0) {
1853
        perror("socket(PF_INET, SOCK_DGRAM)");
1854
        return -1;
1855
    }
1856

    
1857
    val = 1;
1858
    ret=setsockopt(fd, SOL_SOCKET, SO_REUSEADDR,
1859
                   (const char *)&val, sizeof(val));
1860
    if (ret < 0) {
1861
        perror("setsockopt(SOL_SOCKET, SO_REUSEADDR)");
1862
        goto fail;
1863
    }
1864

    
1865
    ret = bind(fd, (struct sockaddr *)mcastaddr, sizeof(*mcastaddr));
1866
    if (ret < 0) {
1867
        perror("bind");
1868
        goto fail;
1869
    }
1870

    
1871
    /* Add host to multicast group */
1872
    imr.imr_multiaddr = mcastaddr->sin_addr;
1873
    imr.imr_interface.s_addr = htonl(INADDR_ANY);
1874

    
1875
    ret = setsockopt(fd, IPPROTO_IP, IP_ADD_MEMBERSHIP,
1876
                     (const char *)&imr, sizeof(struct ip_mreq));
1877
    if (ret < 0) {
1878
        perror("setsockopt(IP_ADD_MEMBERSHIP)");
1879
        goto fail;
1880
    }
1881

    
1882
    /* Force mcast msgs to loopback (eg. several QEMUs in same host */
1883
    val = 1;
1884
    ret=setsockopt(fd, IPPROTO_IP, IP_MULTICAST_LOOP,
1885
                   (const char *)&val, sizeof(val));
1886
    if (ret < 0) {
1887
        perror("setsockopt(SOL_IP, IP_MULTICAST_LOOP)");
1888
        goto fail;
1889
    }
1890

    
1891
    socket_set_nonblock(fd);
1892
    return fd;
1893
fail:
1894
    if (fd >= 0)
1895
        closesocket(fd);
1896
    return -1;
1897
}
1898

    
1899
static void net_socket_cleanup(VLANClientState *vc)
1900
{
1901
    NetSocketState *s = vc->opaque;
1902
    qemu_set_fd_handler(s->fd, NULL, NULL, NULL);
1903
    close(s->fd);
1904
    qemu_free(s);
1905
}
1906

    
1907
static NetSocketState *net_socket_fd_init_dgram(VLANState *vlan,
1908
                                                const char *model,
1909
                                                const char *name,
1910
                                                int fd, int is_connected)
1911
{
1912
    struct sockaddr_in saddr;
1913
    int newfd;
1914
    socklen_t saddr_len;
1915
    NetSocketState *s;
1916

    
1917
    /* fd passed: multicast: "learn" dgram_dst address from bound address and save it
1918
     * Because this may be "shared" socket from a "master" process, datagrams would be recv()
1919
     * by ONLY ONE process: we must "clone" this dgram socket --jjo
1920
     */
1921

    
1922
    if (is_connected) {
1923
        if (getsockname(fd, (struct sockaddr *) &saddr, &saddr_len) == 0) {
1924
            /* must be bound */
1925
            if (saddr.sin_addr.s_addr==0) {
1926
                fprintf(stderr, "qemu: error: init_dgram: fd=%d unbound, cannot setup multicast dst addr\n",
1927
                        fd);
1928
                return NULL;
1929
            }
1930
            /* clone dgram socket */
1931
            newfd = net_socket_mcast_create(&saddr);
1932
            if (newfd < 0) {
1933
                /* error already reported by net_socket_mcast_create() */
1934
                close(fd);
1935
                return NULL;
1936
            }
1937
            /* clone newfd to fd, close newfd */
1938
            dup2(newfd, fd);
1939
            close(newfd);
1940

    
1941
        } else {
1942
            fprintf(stderr, "qemu: error: init_dgram: fd=%d failed getsockname(): %s\n",
1943
                    fd, strerror(errno));
1944
            return NULL;
1945
        }
1946
    }
1947

    
1948
    s = qemu_mallocz(sizeof(NetSocketState));
1949
    s->fd = fd;
1950

    
1951
    s->vc = qemu_new_vlan_client(vlan, model, name, NULL, net_socket_receive_dgram,
1952
                                 NULL, net_socket_cleanup, s);
1953
    qemu_set_fd_handler(s->fd, net_socket_send_dgram, NULL, s);
1954

    
1955
    /* mcast: save bound address as dst */
1956
    if (is_connected) s->dgram_dst=saddr;
1957

    
1958
    snprintf(s->vc->info_str, sizeof(s->vc->info_str),
1959
            "socket: fd=%d (%s mcast=%s:%d)",
1960
            fd, is_connected? "cloned" : "",
1961
            inet_ntoa(saddr.sin_addr), ntohs(saddr.sin_port));
1962
    return s;
1963
}
1964

    
1965
static void net_socket_connect(void *opaque)
1966
{
1967
    NetSocketState *s = opaque;
1968
    qemu_set_fd_handler(s->fd, net_socket_send, NULL, s);
1969
}
1970

    
1971
static NetSocketState *net_socket_fd_init_stream(VLANState *vlan,
1972
                                                 const char *model,
1973
                                                 const char *name,
1974
                                                 int fd, int is_connected)
1975
{
1976
    NetSocketState *s;
1977
    s = qemu_mallocz(sizeof(NetSocketState));
1978
    s->fd = fd;
1979
    s->vc = qemu_new_vlan_client(vlan, model, name, NULL, net_socket_receive,
1980
                                 NULL, net_socket_cleanup, s);
1981
    snprintf(s->vc->info_str, sizeof(s->vc->info_str),
1982
             "socket: fd=%d", fd);
1983
    if (is_connected) {
1984
        net_socket_connect(s);
1985
    } else {
1986
        qemu_set_fd_handler(s->fd, NULL, net_socket_connect, s);
1987
    }
1988
    return s;
1989
}
1990

    
1991
static NetSocketState *net_socket_fd_init(VLANState *vlan,
1992
                                          const char *model, const char *name,
1993
                                          int fd, int is_connected)
1994
{
1995
    int so_type=-1, optlen=sizeof(so_type);
1996

    
1997
    if(getsockopt(fd, SOL_SOCKET, SO_TYPE, (char *)&so_type,
1998
        (socklen_t *)&optlen)< 0) {
1999
        fprintf(stderr, "qemu: error: getsockopt(SO_TYPE) for fd=%d failed\n", fd);
2000
        return NULL;
2001
    }
2002
    switch(so_type) {
2003
    case SOCK_DGRAM:
2004
        return net_socket_fd_init_dgram(vlan, model, name, fd, is_connected);
2005
    case SOCK_STREAM:
2006
        return net_socket_fd_init_stream(vlan, model, name, fd, is_connected);
2007
    default:
2008
        /* who knows ... this could be a eg. a pty, do warn and continue as stream */
2009
        fprintf(stderr, "qemu: warning: socket type=%d for fd=%d is not SOCK_DGRAM or SOCK_STREAM\n", so_type, fd);
2010
        return net_socket_fd_init_stream(vlan, model, name, fd, is_connected);
2011
    }
2012
    return NULL;
2013
}
2014

    
2015
static void net_socket_accept(void *opaque)
2016
{
2017
    NetSocketListenState *s = opaque;
2018
    NetSocketState *s1;
2019
    struct sockaddr_in saddr;
2020
    socklen_t len;
2021
    int fd;
2022

    
2023
    for(;;) {
2024
        len = sizeof(saddr);
2025
        fd = accept(s->fd, (struct sockaddr *)&saddr, &len);
2026
        if (fd < 0 && errno != EINTR) {
2027
            return;
2028
        } else if (fd >= 0) {
2029
            break;
2030
        }
2031
    }
2032
    s1 = net_socket_fd_init(s->vlan, s->model, s->name, fd, 1);
2033
    if (!s1) {
2034
        closesocket(fd);
2035
    } else {
2036
        snprintf(s1->vc->info_str, sizeof(s1->vc->info_str),
2037
                 "socket: connection from %s:%d",
2038
                 inet_ntoa(saddr.sin_addr), ntohs(saddr.sin_port));
2039
    }
2040
}
2041

    
2042
static int net_socket_listen_init(VLANState *vlan,
2043
                                  const char *model,
2044
                                  const char *name,
2045
                                  const char *host_str)
2046
{
2047
    NetSocketListenState *s;
2048
    int fd, val, ret;
2049
    struct sockaddr_in saddr;
2050

    
2051
    if (parse_host_port(&saddr, host_str) < 0)
2052
        return -1;
2053

    
2054
    s = qemu_mallocz(sizeof(NetSocketListenState));
2055

    
2056
    fd = socket(PF_INET, SOCK_STREAM, 0);
2057
    if (fd < 0) {
2058
        perror("socket");
2059
        return -1;
2060
    }
2061
    socket_set_nonblock(fd);
2062

    
2063
    /* allow fast reuse */
2064
    val = 1;
2065
    setsockopt(fd, SOL_SOCKET, SO_REUSEADDR, (const char *)&val, sizeof(val));
2066

    
2067
    ret = bind(fd, (struct sockaddr *)&saddr, sizeof(saddr));
2068
    if (ret < 0) {
2069
        perror("bind");
2070
        return -1;
2071
    }
2072
    ret = listen(fd, 0);
2073
    if (ret < 0) {
2074
        perror("listen");
2075
        return -1;
2076
    }
2077
    s->vlan = vlan;
2078
    s->model = strdup(model);
2079
    s->name = name ? strdup(name) : NULL;
2080
    s->fd = fd;
2081
    qemu_set_fd_handler(fd, net_socket_accept, NULL, s);
2082
    return 0;
2083
}
2084

    
2085
static int net_socket_connect_init(VLANState *vlan,
2086
                                   const char *model,
2087
                                   const char *name,
2088
                                   const char *host_str)
2089
{
2090
    NetSocketState *s;
2091
    int fd, connected, ret, err;
2092
    struct sockaddr_in saddr;
2093

    
2094
    if (parse_host_port(&saddr, host_str) < 0)
2095
        return -1;
2096

    
2097
    fd = socket(PF_INET, SOCK_STREAM, 0);
2098
    if (fd < 0) {
2099
        perror("socket");
2100
        return -1;
2101
    }
2102
    socket_set_nonblock(fd);
2103

    
2104
    connected = 0;
2105
    for(;;) {
2106
        ret = connect(fd, (struct sockaddr *)&saddr, sizeof(saddr));
2107
        if (ret < 0) {
2108
            err = socket_error();
2109
            if (err == EINTR || err == EWOULDBLOCK) {
2110
            } else if (err == EINPROGRESS) {
2111
                break;
2112
#ifdef _WIN32
2113
            } else if (err == WSAEALREADY) {
2114
                break;
2115
#endif
2116
            } else {
2117
                perror("connect");
2118
                closesocket(fd);
2119
                return -1;
2120
            }
2121
        } else {
2122
            connected = 1;
2123
            break;
2124
        }
2125
    }
2126
    s = net_socket_fd_init(vlan, model, name, fd, connected);
2127
    if (!s)
2128
        return -1;
2129
    snprintf(s->vc->info_str, sizeof(s->vc->info_str),
2130
             "socket: connect to %s:%d",
2131
             inet_ntoa(saddr.sin_addr), ntohs(saddr.sin_port));
2132
    return 0;
2133
}
2134

    
2135
static int net_socket_mcast_init(VLANState *vlan,
2136
                                 const char *model,
2137
                                 const char *name,
2138
                                 const char *host_str)
2139
{
2140
    NetSocketState *s;
2141
    int fd;
2142
    struct sockaddr_in saddr;
2143

    
2144
    if (parse_host_port(&saddr, host_str) < 0)
2145
        return -1;
2146

    
2147

    
2148
    fd = net_socket_mcast_create(&saddr);
2149
    if (fd < 0)
2150
        return -1;
2151

    
2152
    s = net_socket_fd_init(vlan, model, name, fd, 0);
2153
    if (!s)
2154
        return -1;
2155

    
2156
    s->dgram_dst = saddr;
2157

    
2158
    snprintf(s->vc->info_str, sizeof(s->vc->info_str),
2159
             "socket: mcast=%s:%d",
2160
             inet_ntoa(saddr.sin_addr), ntohs(saddr.sin_port));
2161
    return 0;
2162

    
2163
}
2164

    
2165
typedef struct DumpState {
2166
    VLANClientState *pcap_vc;
2167
    int fd;
2168
    int pcap_caplen;
2169
} DumpState;
2170

    
2171
#define PCAP_MAGIC 0xa1b2c3d4
2172

    
2173
struct pcap_file_hdr {
2174
    uint32_t magic;
2175
    uint16_t version_major;
2176
    uint16_t version_minor;
2177
    int32_t thiszone;
2178
    uint32_t sigfigs;
2179
    uint32_t snaplen;
2180
    uint32_t linktype;
2181
};
2182

    
2183
struct pcap_sf_pkthdr {
2184
    struct {
2185
        int32_t tv_sec;
2186
        int32_t tv_usec;
2187
    } ts;
2188
    uint32_t caplen;
2189
    uint32_t len;
2190
};
2191

    
2192
static ssize_t dump_receive(VLANClientState *vc, const uint8_t *buf, size_t size)
2193
{
2194
    DumpState *s = vc->opaque;
2195
    struct pcap_sf_pkthdr hdr;
2196
    int64_t ts;
2197
    int caplen;
2198

    
2199
    /* Early return in case of previous error. */
2200
    if (s->fd < 0) {
2201
        return size;
2202
    }
2203

    
2204
    ts = muldiv64(qemu_get_clock(vm_clock), 1000000, ticks_per_sec);
2205
    caplen = size > s->pcap_caplen ? s->pcap_caplen : size;
2206

    
2207
    hdr.ts.tv_sec = ts / 1000000;
2208
    hdr.ts.tv_usec = ts % 1000000;
2209
    hdr.caplen = caplen;
2210
    hdr.len = size;
2211
    if (write(s->fd, &hdr, sizeof(hdr)) != sizeof(hdr) ||
2212
        write(s->fd, buf, caplen) != caplen) {
2213
        qemu_log("-net dump write error - stop dump\n");
2214
        close(s->fd);
2215
        s->fd = -1;
2216
    }
2217

    
2218
    return size;
2219
}
2220

    
2221
static void net_dump_cleanup(VLANClientState *vc)
2222
{
2223
    DumpState *s = vc->opaque;
2224

    
2225
    close(s->fd);
2226
    qemu_free(s);
2227
}
2228

    
2229
static int net_dump_init(Monitor *mon, VLANState *vlan, const char *device,
2230
                         const char *name, const char *filename, int len)
2231
{
2232
    struct pcap_file_hdr hdr;
2233
    DumpState *s;
2234

    
2235
    s = qemu_malloc(sizeof(DumpState));
2236

    
2237
    s->fd = open(filename, O_CREAT | O_WRONLY | O_BINARY, 0644);
2238
    if (s->fd < 0) {
2239
        config_error(mon, "-net dump: can't open %s\n", filename);
2240
        return -1;
2241
    }
2242

    
2243
    s->pcap_caplen = len;
2244

    
2245
    hdr.magic = PCAP_MAGIC;
2246
    hdr.version_major = 2;
2247
    hdr.version_minor = 4;
2248
    hdr.thiszone = 0;
2249
    hdr.sigfigs = 0;
2250
    hdr.snaplen = s->pcap_caplen;
2251
    hdr.linktype = 1;
2252

    
2253
    if (write(s->fd, &hdr, sizeof(hdr)) < sizeof(hdr)) {
2254
        config_error(mon, "-net dump write error: %s\n", strerror(errno));
2255
        close(s->fd);
2256
        qemu_free(s);
2257
        return -1;
2258
    }
2259

    
2260
    s->pcap_vc = qemu_new_vlan_client(vlan, device, name, NULL, dump_receive, NULL,
2261
                                      net_dump_cleanup, s);
2262
    snprintf(s->pcap_vc->info_str, sizeof(s->pcap_vc->info_str),
2263
             "dump to %s (len=%d)", filename, len);
2264
    return 0;
2265
}
2266

    
2267
/* find or alloc a new VLAN */
2268
VLANState *qemu_find_vlan(int id)
2269
{
2270
    VLANState **pvlan, *vlan;
2271
    for(vlan = first_vlan; vlan != NULL; vlan = vlan->next) {
2272
        if (vlan->id == id)
2273
            return vlan;
2274
    }
2275
    vlan = qemu_mallocz(sizeof(VLANState));
2276
    vlan->id = id;
2277
    vlan->next = NULL;
2278
    pvlan = &first_vlan;
2279
    while (*pvlan != NULL)
2280
        pvlan = &(*pvlan)->next;
2281
    *pvlan = vlan;
2282
    return vlan;
2283
}
2284

    
2285
static int nic_get_free_idx(void)
2286
{
2287
    int index;
2288

    
2289
    for (index = 0; index < MAX_NICS; index++)
2290
        if (!nd_table[index].used)
2291
            return index;
2292
    return -1;
2293
}
2294

    
2295
void qemu_check_nic_model(NICInfo *nd, const char *model)
2296
{
2297
    const char *models[2];
2298

    
2299
    models[0] = model;
2300
    models[1] = NULL;
2301

    
2302
    qemu_check_nic_model_list(nd, models, model);
2303
}
2304

    
2305
void qemu_check_nic_model_list(NICInfo *nd, const char * const *models,
2306
                               const char *default_model)
2307
{
2308
    int i, exit_status = 0;
2309

    
2310
    if (!nd->model)
2311
        nd->model = strdup(default_model);
2312

    
2313
    if (strcmp(nd->model, "?") != 0) {
2314
        for (i = 0 ; models[i]; i++)
2315
            if (strcmp(nd->model, models[i]) == 0)
2316
                return;
2317

    
2318
        fprintf(stderr, "qemu: Unsupported NIC model: %s\n", nd->model);
2319
        exit_status = 1;
2320
    }
2321

    
2322
    fprintf(stderr, "qemu: Supported NIC models: ");
2323
    for (i = 0 ; models[i]; i++)
2324
        fprintf(stderr, "%s%c", models[i], models[i+1] ? ',' : '\n');
2325

    
2326
    exit(exit_status);
2327
}
2328

    
2329
int net_client_init(Monitor *mon, const char *device, const char *p)
2330
{
2331
    char buf[1024];
2332
    int vlan_id, ret;
2333
    VLANState *vlan;
2334
    char *name = NULL;
2335

    
2336
    vlan_id = 0;
2337
    if (get_param_value(buf, sizeof(buf), "vlan", p)) {
2338
        vlan_id = strtol(buf, NULL, 0);
2339
    }
2340
    vlan = qemu_find_vlan(vlan_id);
2341

    
2342
    if (get_param_value(buf, sizeof(buf), "name", p)) {
2343
        name = qemu_strdup(buf);
2344
    }
2345
    if (!strcmp(device, "nic")) {
2346
        static const char * const nic_params[] = {
2347
            "vlan", "name", "macaddr", "model", "addr", "vectors", NULL
2348
        };
2349
        NICInfo *nd;
2350
        uint8_t *macaddr;
2351
        int idx = nic_get_free_idx();
2352

    
2353
        if (check_params(buf, sizeof(buf), nic_params, p) < 0) {
2354
            config_error(mon, "invalid parameter '%s' in '%s'\n", buf, p);
2355
            ret = -1;
2356
            goto out;
2357
        }
2358
        if (idx == -1 || nb_nics >= MAX_NICS) {
2359
            config_error(mon, "Too Many NICs\n");
2360
            ret = -1;
2361
            goto out;
2362
        }
2363
        nd = &nd_table[idx];
2364
        macaddr = nd->macaddr;
2365
        macaddr[0] = 0x52;
2366
        macaddr[1] = 0x54;
2367
        macaddr[2] = 0x00;
2368
        macaddr[3] = 0x12;
2369
        macaddr[4] = 0x34;
2370
        macaddr[5] = 0x56 + idx;
2371

    
2372
        if (get_param_value(buf, sizeof(buf), "macaddr", p)) {
2373
            if (parse_macaddr(macaddr, buf) < 0) {
2374
                config_error(mon, "invalid syntax for ethernet address\n");
2375
                ret = -1;
2376
                goto out;
2377
            }
2378
        }
2379
        if (get_param_value(buf, sizeof(buf), "model", p)) {
2380
            nd->model = strdup(buf);
2381
        }
2382
        if (get_param_value(buf, sizeof(buf), "addr", p)) {
2383
            nd->devaddr = strdup(buf);
2384
        }
2385
        nd->nvectors = NIC_NVECTORS_UNSPECIFIED;
2386
        if (get_param_value(buf, sizeof(buf), "vectors", p)) {
2387
            char *endptr;
2388
            long vectors = strtol(buf, &endptr, 0);
2389
            if (*endptr) {
2390
                config_error(mon, "invalid syntax for # of vectors\n");
2391
                ret = -1;
2392
                goto out;
2393
            }
2394
            if (vectors < 0 || vectors > 0x7ffffff) {
2395
                config_error(mon, "invalid # of vectors\n");
2396
                ret = -1;
2397
                goto out;
2398
            }
2399
            nd->nvectors = vectors;
2400
        }
2401
        nd->vlan = vlan;
2402
        nd->name = name;
2403
        nd->used = 1;
2404
        name = NULL;
2405
        nb_nics++;
2406
        vlan->nb_guest_devs++;
2407
        ret = idx;
2408
    } else
2409
    if (!strcmp(device, "none")) {
2410
        if (*p != '\0') {
2411
            config_error(mon, "'none' takes no parameters\n");
2412
            ret = -1;
2413
            goto out;
2414
        }
2415
        /* does nothing. It is needed to signal that no network cards
2416
           are wanted */
2417
        ret = 0;
2418
    } else
2419
#ifdef CONFIG_SLIRP
2420
    if (!strcmp(device, "user")) {
2421
        static const char * const slirp_params[] = {
2422
            "vlan", "name", "hostname", "restrict", "ip", "net", "host",
2423
            "tftp", "bootfile", "dhcpstart", "dns", "smb", "smbserver",
2424
            "hostfwd", "guestfwd", NULL
2425
        };
2426
        struct slirp_config_str *config;
2427
        int restricted = 0;
2428
        char *vnet = NULL;
2429
        char *vhost = NULL;
2430
        char *vhostname = NULL;
2431
        char *tftp_export = NULL;
2432
        char *bootfile = NULL;
2433
        char *vdhcp_start = NULL;
2434
        char *vnamesrv = NULL;
2435
        char *smb_export = NULL;
2436
        char *vsmbsrv = NULL;
2437
        const char *q;
2438

    
2439
        if (check_params(buf, sizeof(buf), slirp_params, p) < 0) {
2440
            config_error(mon, "invalid parameter '%s' in '%s'\n", buf, p);
2441
            ret = -1;
2442
            goto out;
2443
        }
2444
        if (get_param_value(buf, sizeof(buf), "ip", p)) {
2445
            /* emulate legacy parameter */
2446
            vnet = qemu_malloc(strlen(buf) + strlen("/24") + 1);
2447
            strcpy(vnet, buf);
2448
            strcat(vnet, "/24");
2449
        }
2450
        if (get_param_value(buf, sizeof(buf), "net", p)) {
2451
            vnet = qemu_strdup(buf);
2452
        }
2453
        if (get_param_value(buf, sizeof(buf), "host", p)) {
2454
            vhost = qemu_strdup(buf);
2455
        }
2456
        if (get_param_value(buf, sizeof(buf), "hostname", p)) {
2457
            vhostname = qemu_strdup(buf);
2458
        }
2459
        if (get_param_value(buf, sizeof(buf), "restrict", p)) {
2460
            restricted = (buf[0] == 'y') ? 1 : 0;
2461
        }
2462
        if (get_param_value(buf, sizeof(buf), "dhcpstart", p)) {
2463
            vdhcp_start = qemu_strdup(buf);
2464
        }
2465
        if (get_param_value(buf, sizeof(buf), "dns", p)) {
2466
            vnamesrv = qemu_strdup(buf);
2467
        }
2468
        if (get_param_value(buf, sizeof(buf), "tftp", p)) {
2469
            tftp_export = qemu_strdup(buf);
2470
        }
2471
        if (get_param_value(buf, sizeof(buf), "bootfile", p)) {
2472
            bootfile = qemu_strdup(buf);
2473
        }
2474
        if (get_param_value(buf, sizeof(buf), "smb", p)) {
2475
            smb_export = qemu_strdup(buf);
2476
            if (get_param_value(buf, sizeof(buf), "smbserver", p)) {
2477
                vsmbsrv = qemu_strdup(buf);
2478
            }
2479
        }
2480
        q = p;
2481
        while (1) {
2482
            config = qemu_malloc(sizeof(*config));
2483
            if (!get_next_param_value(config->str, sizeof(config->str),
2484
                                      "hostfwd", &q)) {
2485
                break;
2486
            }
2487
            config->flags = SLIRP_CFG_HOSTFWD;
2488
            config->next = slirp_configs;
2489
            slirp_configs = config;
2490
            config = NULL;
2491
        }
2492
        q = p;
2493
        while (1) {
2494
            config = qemu_malloc(sizeof(*config));
2495
            if (!get_next_param_value(config->str, sizeof(config->str),
2496
                                      "guestfwd", &q)) {
2497
                break;
2498
            }
2499
            config->flags = 0;
2500
            config->next = slirp_configs;
2501
            slirp_configs = config;
2502
            config = NULL;
2503
        }
2504
        qemu_free(config);
2505
        vlan->nb_host_devs++;
2506
        ret = net_slirp_init(mon, vlan, device, name, restricted, vnet, vhost,
2507
                             vhostname, tftp_export, bootfile, vdhcp_start,
2508
                             vnamesrv, smb_export, vsmbsrv);
2509
        qemu_free(vnet);
2510
        qemu_free(vhost);
2511
        qemu_free(vhostname);
2512
        qemu_free(tftp_export);
2513
        qemu_free(bootfile);
2514
        qemu_free(vdhcp_start);
2515
        qemu_free(vnamesrv);
2516
        qemu_free(smb_export);
2517
        qemu_free(vsmbsrv);
2518
    } else if (!strcmp(device, "channel")) {
2519
        if (TAILQ_EMPTY(&slirp_stacks)) {
2520
            struct slirp_config_str *config;
2521

    
2522
            config = qemu_malloc(sizeof(*config));
2523
            pstrcpy(config->str, sizeof(config->str), p);
2524
            config->flags = SLIRP_CFG_LEGACY;
2525
            config->next = slirp_configs;
2526
            slirp_configs = config;
2527
        } else {
2528
            slirp_guestfwd(TAILQ_FIRST(&slirp_stacks), mon, p, 1);
2529
        }
2530
        ret = 0;
2531
    } else
2532
#endif
2533
#ifdef _WIN32
2534
    if (!strcmp(device, "tap")) {
2535
        static const char * const tap_params[] = {
2536
            "vlan", "name", "ifname", NULL
2537
        };
2538
        char ifname[64];
2539

    
2540
        if (check_params(buf, sizeof(buf), tap_params, p) < 0) {
2541
            config_error(mon, "invalid parameter '%s' in '%s'\n", buf, p);
2542
            ret = -1;
2543
            goto out;
2544
        }
2545
        if (get_param_value(ifname, sizeof(ifname), "ifname", p) <= 0) {
2546
            config_error(mon, "tap: no interface name\n");
2547
            ret = -1;
2548
            goto out;
2549
        }
2550
        vlan->nb_host_devs++;
2551
        ret = tap_win32_init(vlan, device, name, ifname);
2552
    } else
2553
#elif defined (_AIX)
2554
#else
2555
    if (!strcmp(device, "tap")) {
2556
        char ifname[64], chkbuf[64];
2557
        char setup_script[1024], down_script[1024];
2558
        TAPState *s;
2559
        int fd;
2560
        vlan->nb_host_devs++;
2561
        if (get_param_value(buf, sizeof(buf), "fd", p) > 0) {
2562
            static const char * const fd_params[] = {
2563
                "vlan", "name", "fd", "sndbuf", NULL
2564
            };
2565
            if (check_params(chkbuf, sizeof(chkbuf), fd_params, p) < 0) {
2566
                config_error(mon, "invalid parameter '%s' in '%s'\n", chkbuf, p);
2567
                ret = -1;
2568
                goto out;
2569
            }
2570
            fd = strtol(buf, NULL, 0);
2571
            fcntl(fd, F_SETFL, O_NONBLOCK);
2572
            s = net_tap_fd_init(vlan, device, name, fd);
2573
        } else {
2574
            static const char * const tap_params[] = {
2575
                "vlan", "name", "ifname", "script", "downscript", "sndbuf", NULL
2576
            };
2577
            if (check_params(chkbuf, sizeof(chkbuf), tap_params, p) < 0) {
2578
                config_error(mon, "invalid parameter '%s' in '%s'\n", chkbuf, p);
2579
                ret = -1;
2580
                goto out;
2581
            }
2582
            if (get_param_value(ifname, sizeof(ifname), "ifname", p) <= 0) {
2583
                ifname[0] = '\0';
2584
            }
2585
            if (get_param_value(setup_script, sizeof(setup_script), "script", p) == 0) {
2586
                pstrcpy(setup_script, sizeof(setup_script), DEFAULT_NETWORK_SCRIPT);
2587
            }
2588
            if (get_param_value(down_script, sizeof(down_script), "downscript", p) == 0) {
2589
                pstrcpy(down_script, sizeof(down_script), DEFAULT_NETWORK_DOWN_SCRIPT);
2590
            }
2591
            s = net_tap_init(vlan, device, name, ifname, setup_script, down_script);
2592
        }
2593
        if (s != NULL) {
2594
            if (get_param_value(buf, sizeof(buf), "sndbuf", p)) {
2595
                tap_set_sndbuf(s, atoi(buf), mon);
2596
            }
2597
            ret = 0;
2598
        } else {
2599
            ret = -1;
2600
        }
2601
    } else
2602
#endif
2603
    if (!strcmp(device, "socket")) {
2604
        char chkbuf[64];
2605
        if (get_param_value(buf, sizeof(buf), "fd", p) > 0) {
2606
            static const char * const fd_params[] = {
2607
                "vlan", "name", "fd", NULL
2608
            };
2609
            int fd;
2610
            if (check_params(chkbuf, sizeof(chkbuf), fd_params, p) < 0) {
2611
                config_error(mon, "invalid parameter '%s' in '%s'\n", chkbuf, p);
2612
                ret = -1;
2613
                goto out;
2614
            }
2615
            fd = strtol(buf, NULL, 0);
2616
            ret = -1;
2617
            if (net_socket_fd_init(vlan, device, name, fd, 1))
2618
                ret = 0;
2619
        } else if (get_param_value(buf, sizeof(buf), "listen", p) > 0) {
2620
            static const char * const listen_params[] = {
2621
                "vlan", "name", "listen", NULL
2622
            };
2623
            if (check_params(chkbuf, sizeof(chkbuf), listen_params, p) < 0) {
2624
                config_error(mon, "invalid parameter '%s' in '%s'\n", chkbuf, p);
2625
                ret = -1;
2626
                goto out;
2627
            }
2628
            ret = net_socket_listen_init(vlan, device, name, buf);
2629
        } else if (get_param_value(buf, sizeof(buf), "connect", p) > 0) {
2630
            static const char * const connect_params[] = {
2631
                "vlan", "name", "connect", NULL
2632
            };
2633
            if (check_params(chkbuf, sizeof(chkbuf), connect_params, p) < 0) {
2634
                config_error(mon, "invalid parameter '%s' in '%s'\n", chkbuf, p);
2635
                ret = -1;
2636
                goto out;
2637
            }
2638
            ret = net_socket_connect_init(vlan, device, name, buf);
2639
        } else if (get_param_value(buf, sizeof(buf), "mcast", p) > 0) {
2640
            static const char * const mcast_params[] = {
2641
                "vlan", "name", "mcast", NULL
2642
            };
2643
            if (check_params(chkbuf, sizeof(chkbuf), mcast_params, p) < 0) {
2644
                config_error(mon, "invalid parameter '%s' in '%s'\n", chkbuf, p);
2645
                ret = -1;
2646
                goto out;
2647
            }
2648
            ret = net_socket_mcast_init(vlan, device, name, buf);
2649
        } else {
2650
            config_error(mon, "Unknown socket options: %s\n", p);
2651
            ret = -1;
2652
            goto out;
2653
        }
2654
        vlan->nb_host_devs++;
2655
    } else
2656
#ifdef CONFIG_VDE
2657
    if (!strcmp(device, "vde")) {
2658
        static const char * const vde_params[] = {
2659
            "vlan", "name", "sock", "port", "group", "mode", NULL
2660
        };
2661
        char vde_sock[1024], vde_group[512];
2662
        int vde_port, vde_mode;
2663

    
2664
        if (check_params(buf, sizeof(buf), vde_params, p) < 0) {
2665
            config_error(mon, "invalid parameter '%s' in '%s'\n", buf, p);
2666
            ret = -1;
2667
            goto out;
2668
        }
2669
        vlan->nb_host_devs++;
2670
        if (get_param_value(vde_sock, sizeof(vde_sock), "sock", p) <= 0) {
2671
            vde_sock[0] = '\0';
2672
        }
2673
        if (get_param_value(buf, sizeof(buf), "port", p) > 0) {
2674
            vde_port = strtol(buf, NULL, 10);
2675
        } else {
2676
            vde_port = 0;
2677
        }
2678
        if (get_param_value(vde_group, sizeof(vde_group), "group", p) <= 0) {
2679
            vde_group[0] = '\0';
2680
        }
2681
        if (get_param_value(buf, sizeof(buf), "mode", p) > 0) {
2682
            vde_mode = strtol(buf, NULL, 8);
2683
        } else {
2684
            vde_mode = 0700;
2685
        }
2686
        ret = net_vde_init(vlan, device, name, vde_sock, vde_port, vde_group, vde_mode);
2687
    } else
2688
#endif
2689
    if (!strcmp(device, "dump")) {
2690
        int len = 65536;
2691

    
2692
        if (get_param_value(buf, sizeof(buf), "len", p) > 0) {
2693
            len = strtol(buf, NULL, 0);
2694
        }
2695
        if (!get_param_value(buf, sizeof(buf), "file", p)) {
2696
            snprintf(buf, sizeof(buf), "qemu-vlan%d.pcap", vlan_id);
2697
        }
2698
        ret = net_dump_init(mon, vlan, device, name, buf, len);
2699
    } else {
2700
        config_error(mon, "Unknown network device: %s\n", device);
2701
        ret = -1;
2702
        goto out;
2703
    }
2704
    if (ret < 0) {
2705
        config_error(mon, "Could not initialize device '%s'\n", device);
2706
    }
2707
out:
2708
    qemu_free(name);
2709
    return ret;
2710
}
2711

    
2712
void net_client_uninit(NICInfo *nd)
2713
{
2714
    nd->vlan->nb_guest_devs--;
2715
    nb_nics--;
2716
    nd->used = 0;
2717
    free((void *)nd->model);
2718
}
2719

    
2720
static int net_host_check_device(const char *device)
2721
{
2722
    int i;
2723
    const char *valid_param_list[] = { "tap", "socket", "dump"
2724
#ifdef CONFIG_SLIRP
2725
                                       ,"user"
2726
#endif
2727
#ifdef CONFIG_VDE
2728
                                       ,"vde"
2729
#endif
2730
    };
2731
    for (i = 0; i < sizeof(valid_param_list) / sizeof(char *); i++) {
2732
        if (!strncmp(valid_param_list[i], device,
2733
                     strlen(valid_param_list[i])))
2734
            return 1;
2735
    }
2736

    
2737
    return 0;
2738
}
2739

    
2740
void net_host_device_add(Monitor *mon, const char *device, const char *opts)
2741
{
2742
    if (!net_host_check_device(device)) {
2743
        monitor_printf(mon, "invalid host network device %s\n", device);
2744
        return;
2745
    }
2746
    if (net_client_init(mon, device, opts ? opts : "") < 0) {
2747
        monitor_printf(mon, "adding host network device %s failed\n", device);
2748
    }
2749
}
2750

    
2751
void net_host_device_remove(Monitor *mon, int vlan_id, const char *device)
2752
{
2753
    VLANState *vlan;
2754
    VLANClientState *vc;
2755

    
2756
    vlan = qemu_find_vlan(vlan_id);
2757

    
2758
    for (vc = vlan->first_client; vc != NULL; vc = vc->next) {
2759
        if (!strcmp(vc->name, device)) {
2760
            break;
2761
        }
2762
    }
2763

    
2764
    if (!vc) {
2765
        monitor_printf(mon, "can't find device %s\n", device);
2766
        return;
2767
    }
2768
    if (!net_host_check_device(vc->model)) {
2769
        monitor_printf(mon, "invalid host network device %s\n", device);
2770
        return;
2771
    }
2772
    qemu_del_vlan_client(vc);
2773
}
2774

    
2775
int net_client_parse(const char *str)
2776
{
2777
    const char *p;
2778
    char *q;
2779
    char device[64];
2780

    
2781
    p = str;
2782
    q = device;
2783
    while (*p != '\0' && *p != ',') {
2784
        if ((q - device) < sizeof(device) - 1)
2785
            *q++ = *p;
2786
        p++;
2787
    }
2788
    *q = '\0';
2789
    if (*p == ',')
2790
        p++;
2791

    
2792
    return net_client_init(NULL, device, p);
2793
}
2794

    
2795
void net_set_boot_mask(int net_boot_mask)
2796
{
2797
    int i;
2798

    
2799
    /* Only the first four NICs may be bootable */
2800
    net_boot_mask = net_boot_mask & 0xF;
2801

    
2802
    for (i = 0; i < nb_nics; i++) {
2803
        if (net_boot_mask & (1 << i)) {
2804
            nd_table[i].bootable = 1;
2805
            net_boot_mask &= ~(1 << i);
2806
        }
2807
    }
2808

    
2809
    if (net_boot_mask) {
2810
        fprintf(stderr, "Cannot boot from non-existent NIC\n");
2811
        exit(1);
2812
    }
2813
}
2814

    
2815
void do_info_network(Monitor *mon)
2816
{
2817
    VLANState *vlan;
2818
    VLANClientState *vc;
2819

    
2820
    for(vlan = first_vlan; vlan != NULL; vlan = vlan->next) {
2821
        monitor_printf(mon, "VLAN %d devices:\n", vlan->id);
2822
        for(vc = vlan->first_client; vc != NULL; vc = vc->next)
2823
            monitor_printf(mon, "  %s: %s\n", vc->name, vc->info_str);
2824
    }
2825
}
2826

    
2827
int do_set_link(Monitor *mon, const char *name, const char *up_or_down)
2828
{
2829
    VLANState *vlan;
2830
    VLANClientState *vc = NULL;
2831

    
2832
    for (vlan = first_vlan; vlan != NULL; vlan = vlan->next)
2833
        for (vc = vlan->first_client; vc != NULL; vc = vc->next)
2834
            if (strcmp(vc->name, name) == 0)
2835
                goto done;
2836
done:
2837

    
2838
    if (!vc) {
2839
        monitor_printf(mon, "could not find network device '%s'", name);
2840
        return 0;
2841
    }
2842

    
2843
    if (strcmp(up_or_down, "up") == 0)
2844
        vc->link_down = 0;
2845
    else if (strcmp(up_or_down, "down") == 0)
2846
        vc->link_down = 1;
2847
    else
2848
        monitor_printf(mon, "invalid link status '%s'; only 'up' or 'down' "
2849
                       "valid\n", up_or_down);
2850

    
2851
    if (vc->link_status_changed)
2852
        vc->link_status_changed(vc);
2853

    
2854
    return 1;
2855
}
2856

    
2857
void net_cleanup(void)
2858
{
2859
    VLANState *vlan;
2860

    
2861
    /* close network clients */
2862
    for(vlan = first_vlan; vlan != NULL; vlan = vlan->next) {
2863
        VLANClientState *vc = vlan->first_client;
2864

    
2865
        while (vc) {
2866
            VLANClientState *next = vc->next;
2867

    
2868
            qemu_del_vlan_client(vc);
2869

    
2870
            vc = next;
2871
        }
2872
    }
2873
}
2874

    
2875
void net_client_check(void)
2876
{
2877
    VLANState *vlan;
2878

    
2879
    for(vlan = first_vlan; vlan != NULL; vlan = vlan->next) {
2880
        if (vlan->nb_guest_devs == 0 && vlan->nb_host_devs == 0)
2881
            continue;
2882
        if (vlan->nb_guest_devs == 0)
2883
            fprintf(stderr, "Warning: vlan %d with no nics\n", vlan->id);
2884
        if (vlan->nb_host_devs == 0)
2885
            fprintf(stderr,
2886
                    "Warning: vlan %d is not connected to host network\n",
2887
                    vlan->id);
2888
    }
2889
}