slirp: replace DEBUG_ARGS with DEBUG_ARG
[qemu/armbru.git] / slirp / slirp.c
blob851462a4cd3a5fee7e166b99dc975b9a2f364bd3
1 /*
2 * libslirp glue
4 * Copyright (c) 2004-2008 Fabrice Bellard
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:
13 * The above copyright notice and this permission notice shall be included in
14 * all copies or substantial portions of the Software.
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.
24 #include "qemu/osdep.h"
25 #include "qemu-common.h"
26 #include "qemu/timer.h"
27 #include "qemu/error-report.h"
28 #include "chardev/char-fe.h"
29 #include "migration/register.h"
30 #include "slirp.h"
31 #include "hw/hw.h"
32 #include "qemu/cutils.h"
34 #ifndef _WIN32
35 #include <net/if.h>
36 #endif
38 int slirp_debug;
40 /* Define to 1 if you want KEEPALIVE timers */
41 bool slirp_do_keepalive;
43 /* host loopback address */
44 struct in_addr loopback_addr;
45 /* host loopback network mask */
46 unsigned long loopback_mask;
48 /* emulated hosts use the MAC addr 52:55:IP:IP:IP:IP */
49 static const uint8_t special_ethaddr[ETH_ALEN] = {
50 0x52, 0x55, 0x00, 0x00, 0x00, 0x00
53 u_int curtime;
55 static QTAILQ_HEAD(, Slirp) slirp_instances =
56 QTAILQ_HEAD_INITIALIZER(slirp_instances);
58 static struct in_addr dns_addr;
59 #ifndef _WIN32
60 static struct in6_addr dns6_addr;
61 #endif
62 static u_int dns_addr_time;
63 #ifndef _WIN32
64 static u_int dns6_addr_time;
65 #endif
67 #define TIMEOUT_FAST 2 /* milliseconds */
68 #define TIMEOUT_SLOW 499 /* milliseconds */
69 /* for the aging of certain requests like DNS */
70 #define TIMEOUT_DEFAULT 1000 /* milliseconds */
72 #ifdef _WIN32
74 int get_dns_addr(struct in_addr *pdns_addr)
76 FIXED_INFO *FixedInfo=NULL;
77 ULONG BufLen;
78 DWORD ret;
79 IP_ADDR_STRING *pIPAddr;
80 struct in_addr tmp_addr;
82 if (dns_addr.s_addr != 0 && (curtime - dns_addr_time) < TIMEOUT_DEFAULT) {
83 *pdns_addr = dns_addr;
84 return 0;
87 FixedInfo = (FIXED_INFO *)GlobalAlloc(GPTR, sizeof(FIXED_INFO));
88 BufLen = sizeof(FIXED_INFO);
90 if (ERROR_BUFFER_OVERFLOW == GetNetworkParams(FixedInfo, &BufLen)) {
91 if (FixedInfo) {
92 GlobalFree(FixedInfo);
93 FixedInfo = NULL;
95 FixedInfo = GlobalAlloc(GPTR, BufLen);
98 if ((ret = GetNetworkParams(FixedInfo, &BufLen)) != ERROR_SUCCESS) {
99 printf("GetNetworkParams failed. ret = %08x\n", (u_int)ret );
100 if (FixedInfo) {
101 GlobalFree(FixedInfo);
102 FixedInfo = NULL;
104 return -1;
107 pIPAddr = &(FixedInfo->DnsServerList);
108 inet_aton(pIPAddr->IpAddress.String, &tmp_addr);
109 *pdns_addr = tmp_addr;
110 dns_addr = tmp_addr;
111 dns_addr_time = curtime;
112 if (FixedInfo) {
113 GlobalFree(FixedInfo);
114 FixedInfo = NULL;
116 return 0;
119 int get_dns6_addr(struct in6_addr *pdns6_addr, uint32_t *scope_id)
121 return -1;
124 static void winsock_cleanup(void)
126 WSACleanup();
129 #else
131 static int get_dns_addr_cached(void *pdns_addr, void *cached_addr,
132 socklen_t addrlen,
133 struct stat *cached_stat, u_int *cached_time)
135 struct stat old_stat;
136 if (curtime - *cached_time < TIMEOUT_DEFAULT) {
137 memcpy(pdns_addr, cached_addr, addrlen);
138 return 0;
140 old_stat = *cached_stat;
141 if (stat("/etc/resolv.conf", cached_stat) != 0) {
142 return -1;
144 if (cached_stat->st_dev == old_stat.st_dev
145 && cached_stat->st_ino == old_stat.st_ino
146 && cached_stat->st_size == old_stat.st_size
147 && cached_stat->st_mtime == old_stat.st_mtime) {
148 memcpy(pdns_addr, cached_addr, addrlen);
149 return 0;
151 return 1;
154 static int get_dns_addr_resolv_conf(int af, void *pdns_addr, void *cached_addr,
155 socklen_t addrlen, uint32_t *scope_id,
156 u_int *cached_time)
158 char buff[512];
159 char buff2[257];
160 FILE *f;
161 int found = 0;
162 void *tmp_addr = alloca(addrlen);
163 unsigned if_index;
165 f = fopen("/etc/resolv.conf", "r");
166 if (!f)
167 return -1;
169 DEBUG_MISC("IP address of your DNS(s): ");
170 while (fgets(buff, 512, f) != NULL) {
171 if (sscanf(buff, "nameserver%*[ \t]%256s", buff2) == 1) {
172 char *c = strchr(buff2, '%');
173 if (c) {
174 if_index = if_nametoindex(c + 1);
175 *c = '\0';
176 } else {
177 if_index = 0;
180 if (!inet_pton(af, buff2, tmp_addr)) {
181 continue;
183 /* If it's the first one, set it to dns_addr */
184 if (!found) {
185 memcpy(pdns_addr, tmp_addr, addrlen);
186 memcpy(cached_addr, tmp_addr, addrlen);
187 if (scope_id) {
188 *scope_id = if_index;
190 *cached_time = curtime;
191 } else {
192 DEBUG_MISC(", ");
195 if (++found > 3) {
196 DEBUG_MISC("(more)");
197 break;
198 } else if (slirp_debug & DBG_MISC) {
199 char s[INET6_ADDRSTRLEN];
200 const char *res = inet_ntop(af, tmp_addr, s, sizeof(s));
201 if (!res) {
202 res = "(string conversion error)";
204 DEBUG_MISC("%s", res);
208 fclose(f);
209 if (!found)
210 return -1;
211 return 0;
214 int get_dns_addr(struct in_addr *pdns_addr)
216 static struct stat dns_addr_stat;
218 if (dns_addr.s_addr != 0) {
219 int ret;
220 ret = get_dns_addr_cached(pdns_addr, &dns_addr, sizeof(dns_addr),
221 &dns_addr_stat, &dns_addr_time);
222 if (ret <= 0) {
223 return ret;
226 return get_dns_addr_resolv_conf(AF_INET, pdns_addr, &dns_addr,
227 sizeof(dns_addr), NULL, &dns_addr_time);
230 int get_dns6_addr(struct in6_addr *pdns6_addr, uint32_t *scope_id)
232 static struct stat dns6_addr_stat;
234 if (!in6_zero(&dns6_addr)) {
235 int ret;
236 ret = get_dns_addr_cached(pdns6_addr, &dns6_addr, sizeof(dns6_addr),
237 &dns6_addr_stat, &dns6_addr_time);
238 if (ret <= 0) {
239 return ret;
242 return get_dns_addr_resolv_conf(AF_INET6, pdns6_addr, &dns6_addr,
243 sizeof(dns6_addr),
244 scope_id, &dns6_addr_time);
247 #endif
249 static void slirp_init_once(void)
251 static int initialized;
252 const char *debug;
253 #ifdef _WIN32
254 WSADATA Data;
255 #endif
257 if (initialized) {
258 return;
260 initialized = 1;
262 #ifdef _WIN32
263 WSAStartup(MAKEWORD(2,0), &Data);
264 atexit(winsock_cleanup);
265 #endif
267 loopback_addr.s_addr = htonl(INADDR_LOOPBACK);
268 loopback_mask = htonl(IN_CLASSA_NET);
270 debug = g_getenv("SLIRP_DEBUG");
271 if (debug) {
272 const GDebugKey keys[] = {
273 { "call", DBG_CALL },
274 { "misc", DBG_MISC },
275 { "error", DBG_ERROR },
277 slirp_debug = g_parse_debug_string(debug, keys, G_N_ELEMENTS(keys));
283 static void slirp_state_save(QEMUFile *f, void *opaque);
284 static int slirp_state_load(QEMUFile *f, void *opaque, int version_id);
286 static SaveVMHandlers savevm_slirp_state = {
287 .save_state = slirp_state_save,
288 .load_state = slirp_state_load,
291 Slirp *slirp_init(int restricted, bool in_enabled, struct in_addr vnetwork,
292 struct in_addr vnetmask, struct in_addr vhost,
293 bool in6_enabled,
294 struct in6_addr vprefix_addr6, uint8_t vprefix_len,
295 struct in6_addr vhost6, const char *vhostname,
296 const char *tftp_server_name,
297 const char *tftp_path, const char *bootfile,
298 struct in_addr vdhcp_start, struct in_addr vnameserver,
299 struct in6_addr vnameserver6, const char **vdnssearch,
300 const char *vdomainname,
301 const SlirpCb *callbacks,
302 void *opaque)
304 Slirp *slirp = g_malloc0(sizeof(Slirp));
306 slirp_init_once();
308 slirp->cb = callbacks;
309 slirp->grand = g_rand_new();
310 slirp->restricted = restricted;
312 slirp->in_enabled = in_enabled;
313 slirp->in6_enabled = in6_enabled;
315 if_init(slirp);
316 ip_init(slirp);
317 ip6_init(slirp);
319 /* Initialise mbufs *after* setting the MTU */
320 m_init(slirp);
322 slirp->vnetwork_addr = vnetwork;
323 slirp->vnetwork_mask = vnetmask;
324 slirp->vhost_addr = vhost;
325 slirp->vprefix_addr6 = vprefix_addr6;
326 slirp->vprefix_len = vprefix_len;
327 slirp->vhost_addr6 = vhost6;
328 if (vhostname) {
329 pstrcpy(slirp->client_hostname, sizeof(slirp->client_hostname),
330 vhostname);
332 slirp->tftp_prefix = g_strdup(tftp_path);
333 slirp->bootp_filename = g_strdup(bootfile);
334 slirp->vdomainname = g_strdup(vdomainname);
335 slirp->vdhcp_startaddr = vdhcp_start;
336 slirp->vnameserver_addr = vnameserver;
337 slirp->vnameserver_addr6 = vnameserver6;
338 slirp->tftp_server_name = g_strdup(tftp_server_name);
340 if (vdnssearch) {
341 translate_dnssearch(slirp, vdnssearch);
344 slirp->opaque = opaque;
346 register_savevm_live(NULL, "slirp", 0, 4, &savevm_slirp_state, slirp);
348 QTAILQ_INSERT_TAIL(&slirp_instances, slirp, entry);
350 return slirp;
353 void slirp_cleanup(Slirp *slirp)
355 struct gfwd_list *e, *next;
357 for (e = slirp->guestfwd_list; e; e = next) {
358 next = e->ex_next;
359 g_free(e->ex_exec);
360 g_free(e);
363 QTAILQ_REMOVE(&slirp_instances, slirp, entry);
365 unregister_savevm(NULL, "slirp", slirp);
367 ip_cleanup(slirp);
368 ip6_cleanup(slirp);
369 m_cleanup(slirp);
371 g_rand_free(slirp->grand);
373 g_free(slirp->vdnssearch);
374 g_free(slirp->tftp_prefix);
375 g_free(slirp->bootp_filename);
376 g_free(slirp->vdomainname);
377 g_free(slirp);
380 #define CONN_CANFSEND(so) (((so)->so_state & (SS_FCANTSENDMORE|SS_ISFCONNECTED)) == SS_ISFCONNECTED)
381 #define CONN_CANFRCV(so) (((so)->so_state & (SS_FCANTRCVMORE|SS_ISFCONNECTED)) == SS_ISFCONNECTED)
383 static void slirp_update_timeout(uint32_t *timeout)
385 Slirp *slirp;
386 uint32_t t;
388 if (*timeout <= TIMEOUT_FAST) {
389 return;
392 t = MIN(1000, *timeout);
394 /* If we have tcp timeout with slirp, then we will fill @timeout with
395 * more precise value.
397 QTAILQ_FOREACH(slirp, &slirp_instances, entry) {
398 if (slirp->time_fasttimo) {
399 *timeout = TIMEOUT_FAST;
400 return;
402 if (slirp->do_slowtimo) {
403 t = MIN(TIMEOUT_SLOW, t);
406 *timeout = t;
409 void slirp_pollfds_fill(GArray *pollfds, uint32_t *timeout)
411 Slirp *slirp;
412 struct socket *so, *so_next;
414 if (QTAILQ_EMPTY(&slirp_instances)) {
415 return;
419 * First, TCP sockets
422 QTAILQ_FOREACH(slirp, &slirp_instances, entry) {
424 * *_slowtimo needs calling if there are IP fragments
425 * in the fragment queue, or there are TCP connections active
427 slirp->do_slowtimo = ((slirp->tcb.so_next != &slirp->tcb) ||
428 (&slirp->ipq.ip_link != slirp->ipq.ip_link.next));
430 for (so = slirp->tcb.so_next; so != &slirp->tcb;
431 so = so_next) {
432 int events = 0;
434 so_next = so->so_next;
436 so->pollfds_idx = -1;
439 * See if we need a tcp_fasttimo
441 if (slirp->time_fasttimo == 0 &&
442 so->so_tcpcb->t_flags & TF_DELACK) {
443 slirp->time_fasttimo = curtime; /* Flag when want a fasttimo */
447 * NOFDREF can include still connecting to local-host,
448 * newly socreated() sockets etc. Don't want to select these.
450 if (so->so_state & SS_NOFDREF || so->s == -1) {
451 continue;
455 * Set for reading sockets which are accepting
457 if (so->so_state & SS_FACCEPTCONN) {
458 GPollFD pfd = {
459 .fd = so->s,
460 .events = G_IO_IN | G_IO_HUP | G_IO_ERR,
462 so->pollfds_idx = pollfds->len;
463 g_array_append_val(pollfds, pfd);
464 continue;
468 * Set for writing sockets which are connecting
470 if (so->so_state & SS_ISFCONNECTING) {
471 GPollFD pfd = {
472 .fd = so->s,
473 .events = G_IO_OUT | G_IO_ERR,
475 so->pollfds_idx = pollfds->len;
476 g_array_append_val(pollfds, pfd);
477 continue;
481 * Set for writing if we are connected, can send more, and
482 * we have something to send
484 if (CONN_CANFSEND(so) && so->so_rcv.sb_cc) {
485 events |= G_IO_OUT | G_IO_ERR;
489 * Set for reading (and urgent data) if we are connected, can
490 * receive more, and we have room for it XXX /2 ?
492 if (CONN_CANFRCV(so) &&
493 (so->so_snd.sb_cc < (so->so_snd.sb_datalen/2))) {
494 events |= G_IO_IN | G_IO_HUP | G_IO_ERR | G_IO_PRI;
497 if (events) {
498 GPollFD pfd = {
499 .fd = so->s,
500 .events = events,
502 so->pollfds_idx = pollfds->len;
503 g_array_append_val(pollfds, pfd);
508 * UDP sockets
510 for (so = slirp->udb.so_next; so != &slirp->udb;
511 so = so_next) {
512 so_next = so->so_next;
514 so->pollfds_idx = -1;
517 * See if it's timed out
519 if (so->so_expire) {
520 if (so->so_expire <= curtime) {
521 udp_detach(so);
522 continue;
523 } else {
524 slirp->do_slowtimo = true; /* Let socket expire */
529 * When UDP packets are received from over the
530 * link, they're sendto()'d straight away, so
531 * no need for setting for writing
532 * Limit the number of packets queued by this session
533 * to 4. Note that even though we try and limit this
534 * to 4 packets, the session could have more queued
535 * if the packets needed to be fragmented
536 * (XXX <= 4 ?)
538 if ((so->so_state & SS_ISFCONNECTED) && so->so_queued <= 4) {
539 GPollFD pfd = {
540 .fd = so->s,
541 .events = G_IO_IN | G_IO_HUP | G_IO_ERR,
543 so->pollfds_idx = pollfds->len;
544 g_array_append_val(pollfds, pfd);
549 * ICMP sockets
551 for (so = slirp->icmp.so_next; so != &slirp->icmp;
552 so = so_next) {
553 so_next = so->so_next;
555 so->pollfds_idx = -1;
558 * See if it's timed out
560 if (so->so_expire) {
561 if (so->so_expire <= curtime) {
562 icmp_detach(so);
563 continue;
564 } else {
565 slirp->do_slowtimo = true; /* Let socket expire */
569 if (so->so_state & SS_ISFCONNECTED) {
570 GPollFD pfd = {
571 .fd = so->s,
572 .events = G_IO_IN | G_IO_HUP | G_IO_ERR,
574 so->pollfds_idx = pollfds->len;
575 g_array_append_val(pollfds, pfd);
579 slirp_update_timeout(timeout);
582 void slirp_pollfds_poll(GArray *pollfds, int select_error)
584 Slirp *slirp;
585 struct socket *so, *so_next;
586 int ret;
588 if (QTAILQ_EMPTY(&slirp_instances)) {
589 return;
592 curtime = qemu_clock_get_ms(QEMU_CLOCK_VIRTUAL);
594 QTAILQ_FOREACH(slirp, &slirp_instances, entry) {
596 * See if anything has timed out
598 if (slirp->time_fasttimo &&
599 ((curtime - slirp->time_fasttimo) >= TIMEOUT_FAST)) {
600 tcp_fasttimo(slirp);
601 slirp->time_fasttimo = 0;
603 if (slirp->do_slowtimo &&
604 ((curtime - slirp->last_slowtimo) >= TIMEOUT_SLOW)) {
605 ip_slowtimo(slirp);
606 tcp_slowtimo(slirp);
607 slirp->last_slowtimo = curtime;
611 * Check sockets
613 if (!select_error) {
615 * Check TCP sockets
617 for (so = slirp->tcb.so_next; so != &slirp->tcb;
618 so = so_next) {
619 int revents;
621 so_next = so->so_next;
623 revents = 0;
624 if (so->pollfds_idx != -1) {
625 revents = g_array_index(pollfds, GPollFD,
626 so->pollfds_idx).revents;
629 if (so->so_state & SS_NOFDREF || so->s == -1) {
630 continue;
634 * Check for URG data
635 * This will soread as well, so no need to
636 * test for G_IO_IN below if this succeeds
638 if (revents & G_IO_PRI) {
639 ret = sorecvoob(so);
640 if (ret < 0) {
641 /* Socket error might have resulted in the socket being
642 * removed, do not try to do anything more with it. */
643 continue;
647 * Check sockets for reading
649 else if (revents & (G_IO_IN | G_IO_HUP | G_IO_ERR)) {
651 * Check for incoming connections
653 if (so->so_state & SS_FACCEPTCONN) {
654 tcp_connect(so);
655 continue;
656 } /* else */
657 ret = soread(so);
659 /* Output it if we read something */
660 if (ret > 0) {
661 tcp_output(sototcpcb(so));
663 if (ret < 0) {
664 /* Socket error might have resulted in the socket being
665 * removed, do not try to do anything more with it. */
666 continue;
671 * Check sockets for writing
673 if (!(so->so_state & SS_NOFDREF) &&
674 (revents & (G_IO_OUT | G_IO_ERR))) {
676 * Check for non-blocking, still-connecting sockets
678 if (so->so_state & SS_ISFCONNECTING) {
679 /* Connected */
680 so->so_state &= ~SS_ISFCONNECTING;
682 ret = send(so->s, (const void *) &ret, 0, 0);
683 if (ret < 0) {
684 /* XXXXX Must fix, zero bytes is a NOP */
685 if (errno == EAGAIN || errno == EWOULDBLOCK ||
686 errno == EINPROGRESS || errno == ENOTCONN) {
687 continue;
690 /* else failed */
691 so->so_state &= SS_PERSISTENT_MASK;
692 so->so_state |= SS_NOFDREF;
694 /* else so->so_state &= ~SS_ISFCONNECTING; */
697 * Continue tcp_input
699 tcp_input((struct mbuf *)NULL, sizeof(struct ip), so,
700 so->so_ffamily);
701 /* continue; */
702 } else {
703 ret = sowrite(so);
704 if (ret > 0) {
705 /* Call tcp_output in case we need to send a window
706 * update to the guest, otherwise it will be stuck
707 * until it sends a window probe. */
708 tcp_output(sototcpcb(so));
715 * Now UDP sockets.
716 * Incoming packets are sent straight away, they're not buffered.
717 * Incoming UDP data isn't buffered either.
719 for (so = slirp->udb.so_next; so != &slirp->udb;
720 so = so_next) {
721 int revents;
723 so_next = so->so_next;
725 revents = 0;
726 if (so->pollfds_idx != -1) {
727 revents = g_array_index(pollfds, GPollFD,
728 so->pollfds_idx).revents;
731 if (so->s != -1 &&
732 (revents & (G_IO_IN | G_IO_HUP | G_IO_ERR))) {
733 sorecvfrom(so);
738 * Check incoming ICMP relies.
740 for (so = slirp->icmp.so_next; so != &slirp->icmp;
741 so = so_next) {
742 int revents;
744 so_next = so->so_next;
746 revents = 0;
747 if (so->pollfds_idx != -1) {
748 revents = g_array_index(pollfds, GPollFD,
749 so->pollfds_idx).revents;
752 if (so->s != -1 &&
753 (revents & (G_IO_IN | G_IO_HUP | G_IO_ERR))) {
754 icmp_receive(so);
759 if_start(slirp);
763 static void arp_input(Slirp *slirp, const uint8_t *pkt, int pkt_len)
765 struct slirp_arphdr *ah = (struct slirp_arphdr *)(pkt + ETH_HLEN);
766 uint8_t arp_reply[MAX(ETH_HLEN + sizeof(struct slirp_arphdr), 64)];
767 struct ethhdr *reh = (struct ethhdr *)arp_reply;
768 struct slirp_arphdr *rah = (struct slirp_arphdr *)(arp_reply + ETH_HLEN);
769 int ar_op;
770 struct gfwd_list *ex_ptr;
772 if (!slirp->in_enabled) {
773 return;
776 ar_op = ntohs(ah->ar_op);
777 switch(ar_op) {
778 case ARPOP_REQUEST:
779 if (ah->ar_tip == ah->ar_sip) {
780 /* Gratuitous ARP */
781 arp_table_add(slirp, ah->ar_sip, ah->ar_sha);
782 return;
785 if ((ah->ar_tip & slirp->vnetwork_mask.s_addr) ==
786 slirp->vnetwork_addr.s_addr) {
787 if (ah->ar_tip == slirp->vnameserver_addr.s_addr ||
788 ah->ar_tip == slirp->vhost_addr.s_addr)
789 goto arp_ok;
790 for (ex_ptr = slirp->guestfwd_list; ex_ptr; ex_ptr = ex_ptr->ex_next) {
791 if (ex_ptr->ex_addr.s_addr == ah->ar_tip)
792 goto arp_ok;
794 return;
795 arp_ok:
796 memset(arp_reply, 0, sizeof(arp_reply));
798 arp_table_add(slirp, ah->ar_sip, ah->ar_sha);
800 /* ARP request for alias/dns mac address */
801 memcpy(reh->h_dest, pkt + ETH_ALEN, ETH_ALEN);
802 memcpy(reh->h_source, special_ethaddr, ETH_ALEN - 4);
803 memcpy(&reh->h_source[2], &ah->ar_tip, 4);
804 reh->h_proto = htons(ETH_P_ARP);
806 rah->ar_hrd = htons(1);
807 rah->ar_pro = htons(ETH_P_IP);
808 rah->ar_hln = ETH_ALEN;
809 rah->ar_pln = 4;
810 rah->ar_op = htons(ARPOP_REPLY);
811 memcpy(rah->ar_sha, reh->h_source, ETH_ALEN);
812 rah->ar_sip = ah->ar_tip;
813 memcpy(rah->ar_tha, ah->ar_sha, ETH_ALEN);
814 rah->ar_tip = ah->ar_sip;
815 slirp->cb->output(slirp->opaque, arp_reply, sizeof(arp_reply));
817 break;
818 case ARPOP_REPLY:
819 arp_table_add(slirp, ah->ar_sip, ah->ar_sha);
820 break;
821 default:
822 break;
826 void slirp_input(Slirp *slirp, const uint8_t *pkt, int pkt_len)
828 struct mbuf *m;
829 int proto;
831 if (pkt_len < ETH_HLEN)
832 return;
834 proto = ntohs(*(uint16_t *)(pkt + 12));
835 switch(proto) {
836 case ETH_P_ARP:
837 arp_input(slirp, pkt, pkt_len);
838 break;
839 case ETH_P_IP:
840 case ETH_P_IPV6:
841 m = m_get(slirp);
842 if (!m)
843 return;
844 /* Note: we add 2 to align the IP header on 4 bytes,
845 * and add the margin for the tcpiphdr overhead */
846 if (M_FREEROOM(m) < pkt_len + TCPIPHDR_DELTA + 2) {
847 m_inc(m, pkt_len + TCPIPHDR_DELTA + 2);
849 m->m_len = pkt_len + TCPIPHDR_DELTA + 2;
850 memcpy(m->m_data + TCPIPHDR_DELTA + 2, pkt, pkt_len);
852 m->m_data += TCPIPHDR_DELTA + 2 + ETH_HLEN;
853 m->m_len -= TCPIPHDR_DELTA + 2 + ETH_HLEN;
855 if (proto == ETH_P_IP) {
856 ip_input(m);
857 } else if (proto == ETH_P_IPV6) {
858 ip6_input(m);
860 break;
862 case ETH_P_NCSI:
863 ncsi_input(slirp, pkt, pkt_len);
864 break;
866 default:
867 break;
871 /* Prepare the IPv4 packet to be sent to the ethernet device. Returns 1 if no
872 * packet should be sent, 0 if the packet must be re-queued, 2 if the packet
873 * is ready to go.
875 static int if_encap4(Slirp *slirp, struct mbuf *ifm, struct ethhdr *eh,
876 uint8_t ethaddr[ETH_ALEN])
878 const struct ip *iph = (const struct ip *)ifm->m_data;
880 if (iph->ip_dst.s_addr == 0) {
881 /* 0.0.0.0 can not be a destination address, something went wrong,
882 * avoid making it worse */
883 return 1;
885 if (!arp_table_search(slirp, iph->ip_dst.s_addr, ethaddr)) {
886 uint8_t arp_req[ETH_HLEN + sizeof(struct slirp_arphdr)];
887 struct ethhdr *reh = (struct ethhdr *)arp_req;
888 struct slirp_arphdr *rah = (struct slirp_arphdr *)(arp_req + ETH_HLEN);
890 if (!ifm->resolution_requested) {
891 /* If the client addr is not known, send an ARP request */
892 memset(reh->h_dest, 0xff, ETH_ALEN);
893 memcpy(reh->h_source, special_ethaddr, ETH_ALEN - 4);
894 memcpy(&reh->h_source[2], &slirp->vhost_addr, 4);
895 reh->h_proto = htons(ETH_P_ARP);
896 rah->ar_hrd = htons(1);
897 rah->ar_pro = htons(ETH_P_IP);
898 rah->ar_hln = ETH_ALEN;
899 rah->ar_pln = 4;
900 rah->ar_op = htons(ARPOP_REQUEST);
902 /* source hw addr */
903 memcpy(rah->ar_sha, special_ethaddr, ETH_ALEN - 4);
904 memcpy(&rah->ar_sha[2], &slirp->vhost_addr, 4);
906 /* source IP */
907 rah->ar_sip = slirp->vhost_addr.s_addr;
909 /* target hw addr (none) */
910 memset(rah->ar_tha, 0, ETH_ALEN);
912 /* target IP */
913 rah->ar_tip = iph->ip_dst.s_addr;
914 slirp->client_ipaddr = iph->ip_dst;
915 slirp->cb->output(slirp->opaque, arp_req, sizeof(arp_req));
916 ifm->resolution_requested = true;
918 /* Expire request and drop outgoing packet after 1 second */
919 ifm->expiration_date =
920 qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL) + 1000000000ULL;
922 return 0;
923 } else {
924 memcpy(eh->h_source, special_ethaddr, ETH_ALEN - 4);
925 /* XXX: not correct */
926 memcpy(&eh->h_source[2], &slirp->vhost_addr, 4);
927 eh->h_proto = htons(ETH_P_IP);
929 /* Send this */
930 return 2;
934 /* Prepare the IPv6 packet to be sent to the ethernet device. Returns 1 if no
935 * packet should be sent, 0 if the packet must be re-queued, 2 if the packet
936 * is ready to go.
938 static int if_encap6(Slirp *slirp, struct mbuf *ifm, struct ethhdr *eh,
939 uint8_t ethaddr[ETH_ALEN])
941 const struct ip6 *ip6h = mtod(ifm, const struct ip6 *);
942 if (!ndp_table_search(slirp, ip6h->ip_dst, ethaddr)) {
943 if (!ifm->resolution_requested) {
944 ndp_send_ns(slirp, ip6h->ip_dst);
945 ifm->resolution_requested = true;
946 ifm->expiration_date =
947 qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL) + 1000000000ULL;
949 return 0;
950 } else {
951 eh->h_proto = htons(ETH_P_IPV6);
952 in6_compute_ethaddr(ip6h->ip_src, eh->h_source);
954 /* Send this */
955 return 2;
959 /* Output the IP packet to the ethernet device. Returns 0 if the packet must be
960 * re-queued.
962 int if_encap(Slirp *slirp, struct mbuf *ifm)
964 uint8_t buf[1600];
965 struct ethhdr *eh = (struct ethhdr *)buf;
966 uint8_t ethaddr[ETH_ALEN];
967 const struct ip *iph = (const struct ip *)ifm->m_data;
968 int ret;
970 if (ifm->m_len + ETH_HLEN > sizeof(buf)) {
971 return 1;
974 switch (iph->ip_v) {
975 case IPVERSION:
976 ret = if_encap4(slirp, ifm, eh, ethaddr);
977 if (ret < 2) {
978 return ret;
980 break;
982 case IP6VERSION:
983 ret = if_encap6(slirp, ifm, eh, ethaddr);
984 if (ret < 2) {
985 return ret;
987 break;
989 default:
990 g_assert_not_reached();
991 break;
994 memcpy(eh->h_dest, ethaddr, ETH_ALEN);
995 DEBUG_ARG("src = %02x:%02x:%02x:%02x:%02x:%02x",
996 eh->h_source[0], eh->h_source[1], eh->h_source[2],
997 eh->h_source[3], eh->h_source[4], eh->h_source[5]);
998 DEBUG_ARG("dst = %02x:%02x:%02x:%02x:%02x:%02x",
999 eh->h_dest[0], eh->h_dest[1], eh->h_dest[2],
1000 eh->h_dest[3], eh->h_dest[4], eh->h_dest[5]);
1001 memcpy(buf + sizeof(struct ethhdr), ifm->m_data, ifm->m_len);
1002 slirp->cb->output(slirp->opaque, buf, ifm->m_len + ETH_HLEN);
1003 return 1;
1006 /* Drop host forwarding rule, return 0 if found. */
1007 int slirp_remove_hostfwd(Slirp *slirp, int is_udp, struct in_addr host_addr,
1008 int host_port)
1010 struct socket *so;
1011 struct socket *head = (is_udp ? &slirp->udb : &slirp->tcb);
1012 struct sockaddr_in addr;
1013 int port = htons(host_port);
1014 socklen_t addr_len;
1016 for (so = head->so_next; so != head; so = so->so_next) {
1017 addr_len = sizeof(addr);
1018 if ((so->so_state & SS_HOSTFWD) &&
1019 getsockname(so->s, (struct sockaddr *)&addr, &addr_len) == 0 &&
1020 addr.sin_addr.s_addr == host_addr.s_addr &&
1021 addr.sin_port == port) {
1022 close(so->s);
1023 sofree(so);
1024 return 0;
1028 return -1;
1031 int slirp_add_hostfwd(Slirp *slirp, int is_udp, struct in_addr host_addr,
1032 int host_port, struct in_addr guest_addr, int guest_port)
1034 if (!guest_addr.s_addr) {
1035 guest_addr = slirp->vdhcp_startaddr;
1037 if (is_udp) {
1038 if (!udp_listen(slirp, host_addr.s_addr, htons(host_port),
1039 guest_addr.s_addr, htons(guest_port), SS_HOSTFWD))
1040 return -1;
1041 } else {
1042 if (!tcp_listen(slirp, host_addr.s_addr, htons(host_port),
1043 guest_addr.s_addr, htons(guest_port), SS_HOSTFWD))
1044 return -1;
1046 return 0;
1049 int slirp_add_exec(Slirp *slirp, void *chardev, const char *cmdline,
1050 struct in_addr *guest_addr, int guest_port)
1052 if (!guest_addr->s_addr) {
1053 guest_addr->s_addr = slirp->vnetwork_addr.s_addr |
1054 (htonl(0x0204) & ~slirp->vnetwork_mask.s_addr);
1056 if ((guest_addr->s_addr & slirp->vnetwork_mask.s_addr) !=
1057 slirp->vnetwork_addr.s_addr ||
1058 guest_addr->s_addr == slirp->vhost_addr.s_addr ||
1059 guest_addr->s_addr == slirp->vnameserver_addr.s_addr) {
1060 return -1;
1063 return add_exec(&slirp->guestfwd_list, chardev, cmdline, *guest_addr,
1064 htons(guest_port));
1067 ssize_t slirp_send(struct socket *so, const void *buf, size_t len, int flags)
1069 if (so->s == -1 && so->chardev) {
1070 /* XXX this blocks entire thread. Rewrite to use
1071 * qemu_chr_fe_write and background I/O callbacks */
1072 qemu_chr_fe_write_all(so->chardev, buf, len);
1073 return len;
1076 if (so->s == -1) {
1078 * This should in theory not happen but it is hard to be
1079 * sure because some code paths will end up with so->s == -1
1080 * on a failure but don't dispose of the struct socket.
1081 * Check specifically, so we don't pass -1 to send().
1083 errno = EBADF;
1084 return -1;
1087 return send(so->s, buf, len, flags);
1090 static struct socket *
1091 slirp_find_ctl_socket(Slirp *slirp, struct in_addr guest_addr, int guest_port)
1093 struct socket *so;
1095 for (so = slirp->tcb.so_next; so != &slirp->tcb; so = so->so_next) {
1096 if (so->so_faddr.s_addr == guest_addr.s_addr &&
1097 htons(so->so_fport) == guest_port) {
1098 return so;
1101 return NULL;
1104 size_t slirp_socket_can_recv(Slirp *slirp, struct in_addr guest_addr,
1105 int guest_port)
1107 struct iovec iov[2];
1108 struct socket *so;
1110 so = slirp_find_ctl_socket(slirp, guest_addr, guest_port);
1112 if (!so || so->so_state & SS_NOFDREF) {
1113 return 0;
1116 if (!CONN_CANFRCV(so) || so->so_snd.sb_cc >= (so->so_snd.sb_datalen/2)) {
1117 return 0;
1120 return sopreprbuf(so, iov, NULL);
1123 void slirp_socket_recv(Slirp *slirp, struct in_addr guest_addr, int guest_port,
1124 const uint8_t *buf, int size)
1126 int ret;
1127 struct socket *so = slirp_find_ctl_socket(slirp, guest_addr, guest_port);
1129 if (!so)
1130 return;
1132 ret = soreadbuf(so, (const char *)buf, size);
1134 if (ret > 0)
1135 tcp_output(sototcpcb(so));
1138 static int slirp_tcp_post_load(void *opaque, int version)
1140 tcp_template((struct tcpcb *)opaque);
1142 return 0;
1145 static const VMStateDescription vmstate_slirp_tcp = {
1146 .name = "slirp-tcp",
1147 .version_id = 0,
1148 .post_load = slirp_tcp_post_load,
1149 .fields = (VMStateField[]) {
1150 VMSTATE_INT16(t_state, struct tcpcb),
1151 VMSTATE_INT16_ARRAY(t_timer, struct tcpcb, TCPT_NTIMERS),
1152 VMSTATE_INT16(t_rxtshift, struct tcpcb),
1153 VMSTATE_INT16(t_rxtcur, struct tcpcb),
1154 VMSTATE_INT16(t_dupacks, struct tcpcb),
1155 VMSTATE_UINT16(t_maxseg, struct tcpcb),
1156 VMSTATE_UINT8(t_force, struct tcpcb),
1157 VMSTATE_UINT16(t_flags, struct tcpcb),
1158 VMSTATE_UINT32(snd_una, struct tcpcb),
1159 VMSTATE_UINT32(snd_nxt, struct tcpcb),
1160 VMSTATE_UINT32(snd_up, struct tcpcb),
1161 VMSTATE_UINT32(snd_wl1, struct tcpcb),
1162 VMSTATE_UINT32(snd_wl2, struct tcpcb),
1163 VMSTATE_UINT32(iss, struct tcpcb),
1164 VMSTATE_UINT32(snd_wnd, struct tcpcb),
1165 VMSTATE_UINT32(rcv_wnd, struct tcpcb),
1166 VMSTATE_UINT32(rcv_nxt, struct tcpcb),
1167 VMSTATE_UINT32(rcv_up, struct tcpcb),
1168 VMSTATE_UINT32(irs, struct tcpcb),
1169 VMSTATE_UINT32(rcv_adv, struct tcpcb),
1170 VMSTATE_UINT32(snd_max, struct tcpcb),
1171 VMSTATE_UINT32(snd_cwnd, struct tcpcb),
1172 VMSTATE_UINT32(snd_ssthresh, struct tcpcb),
1173 VMSTATE_INT16(t_idle, struct tcpcb),
1174 VMSTATE_INT16(t_rtt, struct tcpcb),
1175 VMSTATE_UINT32(t_rtseq, struct tcpcb),
1176 VMSTATE_INT16(t_srtt, struct tcpcb),
1177 VMSTATE_INT16(t_rttvar, struct tcpcb),
1178 VMSTATE_UINT16(t_rttmin, struct tcpcb),
1179 VMSTATE_UINT32(max_sndwnd, struct tcpcb),
1180 VMSTATE_UINT8(t_oobflags, struct tcpcb),
1181 VMSTATE_UINT8(t_iobc, struct tcpcb),
1182 VMSTATE_INT16(t_softerror, struct tcpcb),
1183 VMSTATE_UINT8(snd_scale, struct tcpcb),
1184 VMSTATE_UINT8(rcv_scale, struct tcpcb),
1185 VMSTATE_UINT8(request_r_scale, struct tcpcb),
1186 VMSTATE_UINT8(requested_s_scale, struct tcpcb),
1187 VMSTATE_UINT32(ts_recent, struct tcpcb),
1188 VMSTATE_UINT32(ts_recent_age, struct tcpcb),
1189 VMSTATE_UINT32(last_ack_sent, struct tcpcb),
1190 VMSTATE_END_OF_LIST()
1194 /* The sbuf has a pair of pointers that are migrated as offsets;
1195 * we calculate the offsets and restore the pointers using
1196 * pre_save/post_load on a tmp structure.
1198 struct sbuf_tmp {
1199 struct sbuf *parent;
1200 uint32_t roff, woff;
1203 static int sbuf_tmp_pre_save(void *opaque)
1205 struct sbuf_tmp *tmp = opaque;
1206 tmp->woff = tmp->parent->sb_wptr - tmp->parent->sb_data;
1207 tmp->roff = tmp->parent->sb_rptr - tmp->parent->sb_data;
1209 return 0;
1212 static int sbuf_tmp_post_load(void *opaque, int version)
1214 struct sbuf_tmp *tmp = opaque;
1215 uint32_t requested_len = tmp->parent->sb_datalen;
1217 /* Allocate the buffer space used by the field after the tmp */
1218 sbreserve(tmp->parent, tmp->parent->sb_datalen);
1220 if (tmp->parent->sb_datalen != requested_len) {
1221 return -ENOMEM;
1223 if (tmp->woff >= requested_len ||
1224 tmp->roff >= requested_len) {
1225 g_critical("invalid sbuf offsets r/w=%u/%u len=%u",
1226 tmp->roff, tmp->woff, requested_len);
1227 return -EINVAL;
1230 tmp->parent->sb_wptr = tmp->parent->sb_data + tmp->woff;
1231 tmp->parent->sb_rptr = tmp->parent->sb_data + tmp->roff;
1233 return 0;
1237 static const VMStateDescription vmstate_slirp_sbuf_tmp = {
1238 .name = "slirp-sbuf-tmp",
1239 .post_load = sbuf_tmp_post_load,
1240 .pre_save = sbuf_tmp_pre_save,
1241 .version_id = 0,
1242 .fields = (VMStateField[]) {
1243 VMSTATE_UINT32(woff, struct sbuf_tmp),
1244 VMSTATE_UINT32(roff, struct sbuf_tmp),
1245 VMSTATE_END_OF_LIST()
1249 static const VMStateDescription vmstate_slirp_sbuf = {
1250 .name = "slirp-sbuf",
1251 .version_id = 0,
1252 .fields = (VMStateField[]) {
1253 VMSTATE_UINT32(sb_cc, struct sbuf),
1254 VMSTATE_UINT32(sb_datalen, struct sbuf),
1255 VMSTATE_WITH_TMP(struct sbuf, struct sbuf_tmp, vmstate_slirp_sbuf_tmp),
1256 VMSTATE_VBUFFER_UINT32(sb_data, struct sbuf, 0, NULL, sb_datalen),
1257 VMSTATE_END_OF_LIST()
1261 static bool slirp_older_than_v4(void *opaque, int version_id)
1263 return version_id < 4;
1266 static bool slirp_family_inet(void *opaque, int version_id)
1268 union slirp_sockaddr *ssa = (union slirp_sockaddr *)opaque;
1269 return ssa->ss.ss_family == AF_INET;
1272 static int slirp_socket_pre_load(void *opaque)
1274 struct socket *so = opaque;
1275 if (tcp_attach(so) < 0) {
1276 return -ENOMEM;
1278 /* Older versions don't load these fields */
1279 so->so_ffamily = AF_INET;
1280 so->so_lfamily = AF_INET;
1281 return 0;
1284 #ifndef _WIN32
1285 #define VMSTATE_SIN4_ADDR(f, s, t) VMSTATE_UINT32_TEST(f, s, t)
1286 #else
1287 /* Win uses u_long rather than uint32_t - but it's still 32bits long */
1288 #define VMSTATE_SIN4_ADDR(f, s, t) VMSTATE_SINGLE_TEST(f, s, t, 0, \
1289 vmstate_info_uint32, u_long)
1290 #endif
1292 /* The OS provided ss_family field isn't that portable; it's size
1293 * and type varies (16/8 bit, signed, unsigned)
1294 * and the values it contains aren't fully portable.
1296 typedef struct SS_FamilyTmpStruct {
1297 union slirp_sockaddr *parent;
1298 uint16_t portable_family;
1299 } SS_FamilyTmpStruct;
1301 #define SS_FAMILY_MIG_IPV4 2 /* Linux, BSD, Win... */
1302 #define SS_FAMILY_MIG_IPV6 10 /* Linux */
1303 #define SS_FAMILY_MIG_OTHER 0xffff
1305 static int ss_family_pre_save(void *opaque)
1307 SS_FamilyTmpStruct *tss = opaque;
1309 tss->portable_family = SS_FAMILY_MIG_OTHER;
1311 if (tss->parent->ss.ss_family == AF_INET) {
1312 tss->portable_family = SS_FAMILY_MIG_IPV4;
1313 } else if (tss->parent->ss.ss_family == AF_INET6) {
1314 tss->portable_family = SS_FAMILY_MIG_IPV6;
1317 return 0;
1320 static int ss_family_post_load(void *opaque, int version_id)
1322 SS_FamilyTmpStruct *tss = opaque;
1324 switch (tss->portable_family) {
1325 case SS_FAMILY_MIG_IPV4:
1326 tss->parent->ss.ss_family = AF_INET;
1327 break;
1328 case SS_FAMILY_MIG_IPV6:
1329 case 23: /* compatibility: AF_INET6 from mingw */
1330 case 28: /* compatibility: AF_INET6 from FreeBSD sys/socket.h */
1331 tss->parent->ss.ss_family = AF_INET6;
1332 break;
1333 default:
1334 g_critical("invalid ss_family type %x", tss->portable_family);
1335 return -EINVAL;
1338 return 0;
1341 static const VMStateDescription vmstate_slirp_ss_family = {
1342 .name = "slirp-socket-addr/ss_family",
1343 .pre_save = ss_family_pre_save,
1344 .post_load = ss_family_post_load,
1345 .fields = (VMStateField[]) {
1346 VMSTATE_UINT16(portable_family, SS_FamilyTmpStruct),
1347 VMSTATE_END_OF_LIST()
1351 static const VMStateDescription vmstate_slirp_socket_addr = {
1352 .name = "slirp-socket-addr",
1353 .version_id = 4,
1354 .fields = (VMStateField[]) {
1355 VMSTATE_WITH_TMP(union slirp_sockaddr, SS_FamilyTmpStruct,
1356 vmstate_slirp_ss_family),
1357 VMSTATE_SIN4_ADDR(sin.sin_addr.s_addr, union slirp_sockaddr,
1358 slirp_family_inet),
1359 VMSTATE_UINT16_TEST(sin.sin_port, union slirp_sockaddr,
1360 slirp_family_inet),
1362 #if 0
1363 /* Untested: Needs checking by someone with IPv6 test */
1364 VMSTATE_BUFFER_TEST(sin6.sin6_addr, union slirp_sockaddr,
1365 slirp_family_inet6),
1366 VMSTATE_UINT16_TEST(sin6.sin6_port, union slirp_sockaddr,
1367 slirp_family_inet6),
1368 VMSTATE_UINT32_TEST(sin6.sin6_flowinfo, union slirp_sockaddr,
1369 slirp_family_inet6),
1370 VMSTATE_UINT32_TEST(sin6.sin6_scope_id, union slirp_sockaddr,
1371 slirp_family_inet6),
1372 #endif
1374 VMSTATE_END_OF_LIST()
1378 static const VMStateDescription vmstate_slirp_socket = {
1379 .name = "slirp-socket",
1380 .version_id = 4,
1381 .pre_load = slirp_socket_pre_load,
1382 .fields = (VMStateField[]) {
1383 VMSTATE_UINT32(so_urgc, struct socket),
1384 /* Pre-v4 versions */
1385 VMSTATE_SIN4_ADDR(so_faddr.s_addr, struct socket,
1386 slirp_older_than_v4),
1387 VMSTATE_SIN4_ADDR(so_laddr.s_addr, struct socket,
1388 slirp_older_than_v4),
1389 VMSTATE_UINT16_TEST(so_fport, struct socket, slirp_older_than_v4),
1390 VMSTATE_UINT16_TEST(so_lport, struct socket, slirp_older_than_v4),
1391 /* v4 and newer */
1392 VMSTATE_STRUCT(fhost, struct socket, 4, vmstate_slirp_socket_addr,
1393 union slirp_sockaddr),
1394 VMSTATE_STRUCT(lhost, struct socket, 4, vmstate_slirp_socket_addr,
1395 union slirp_sockaddr),
1397 VMSTATE_UINT8(so_iptos, struct socket),
1398 VMSTATE_UINT8(so_emu, struct socket),
1399 VMSTATE_UINT8(so_type, struct socket),
1400 VMSTATE_INT32(so_state, struct socket),
1401 VMSTATE_STRUCT(so_rcv, struct socket, 0, vmstate_slirp_sbuf,
1402 struct sbuf),
1403 VMSTATE_STRUCT(so_snd, struct socket, 0, vmstate_slirp_sbuf,
1404 struct sbuf),
1405 VMSTATE_STRUCT_POINTER(so_tcpcb, struct socket, vmstate_slirp_tcp,
1406 struct tcpcb),
1407 VMSTATE_END_OF_LIST()
1411 static const VMStateDescription vmstate_slirp_bootp_client = {
1412 .name = "slirp_bootpclient",
1413 .fields = (VMStateField[]) {
1414 VMSTATE_UINT16(allocated, BOOTPClient),
1415 VMSTATE_BUFFER(macaddr, BOOTPClient),
1416 VMSTATE_END_OF_LIST()
1420 static const VMStateDescription vmstate_slirp = {
1421 .name = "slirp",
1422 .version_id = 4,
1423 .fields = (VMStateField[]) {
1424 VMSTATE_UINT16_V(ip_id, Slirp, 2),
1425 VMSTATE_STRUCT_ARRAY(bootp_clients, Slirp, NB_BOOTP_CLIENTS, 3,
1426 vmstate_slirp_bootp_client, BOOTPClient),
1427 VMSTATE_END_OF_LIST()
1431 static void slirp_state_save(QEMUFile *f, void *opaque)
1433 Slirp *slirp = opaque;
1434 struct gfwd_list *ex_ptr;
1436 for (ex_ptr = slirp->guestfwd_list; ex_ptr; ex_ptr = ex_ptr->ex_next)
1437 if (ex_ptr->ex_chardev) {
1438 struct socket *so;
1439 so = slirp_find_ctl_socket(slirp, ex_ptr->ex_addr,
1440 ntohs(ex_ptr->ex_fport));
1441 if (!so)
1442 continue;
1444 qemu_put_byte(f, 42);
1445 vmstate_save_state(f, &vmstate_slirp_socket, so, NULL);
1447 qemu_put_byte(f, 0);
1449 vmstate_save_state(f, &vmstate_slirp, slirp, NULL);
1453 static int slirp_state_load(QEMUFile *f, void *opaque, int version_id)
1455 Slirp *slirp = opaque;
1456 struct gfwd_list *ex_ptr;
1458 while (qemu_get_byte(f)) {
1459 int ret;
1460 struct socket *so = socreate(slirp);
1462 ret = vmstate_load_state(f, &vmstate_slirp_socket, so, version_id);
1464 if (ret < 0)
1465 return ret;
1467 if ((so->so_faddr.s_addr & slirp->vnetwork_mask.s_addr) !=
1468 slirp->vnetwork_addr.s_addr) {
1469 return -EINVAL;
1471 for (ex_ptr = slirp->guestfwd_list; ex_ptr; ex_ptr = ex_ptr->ex_next) {
1472 if (ex_ptr->ex_chardev &&
1473 so->so_faddr.s_addr == ex_ptr->ex_addr.s_addr &&
1474 so->so_fport == ex_ptr->ex_fport) {
1475 break;
1478 if (!ex_ptr)
1479 return -EINVAL;
1482 return vmstate_load_state(f, &vmstate_slirp, slirp, version_id);