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
24 #include "qemu/osdep.h"
25 #include "qemu-common.h"
26 #include "qemu/timer.h"
27 #include "qemu/error-report.h"
28 #include "sysemu/char.h"
31 #include "qemu/cutils.h"
33 /* host loopback address */
34 struct in_addr loopback_addr
;
35 /* host loopback network mask */
36 unsigned long loopback_mask
;
38 /* emulated hosts use the MAC addr 52:55:IP:IP:IP:IP */
39 static const uint8_t special_ethaddr
[ETH_ALEN
] = {
40 0x52, 0x55, 0x00, 0x00, 0x00, 0x00
45 static QTAILQ_HEAD(slirp_instances
, Slirp
) slirp_instances
=
46 QTAILQ_HEAD_INITIALIZER(slirp_instances
);
48 static struct in_addr dns_addr
;
49 static u_int dns_addr_time
;
51 #define TIMEOUT_FAST 2 /* milliseconds */
52 #define TIMEOUT_SLOW 499 /* milliseconds */
53 /* for the aging of certain requests like DNS */
54 #define TIMEOUT_DEFAULT 1000 /* milliseconds */
58 int get_dns_addr(struct in_addr
*pdns_addr
)
60 FIXED_INFO
*FixedInfo
=NULL
;
63 IP_ADDR_STRING
*pIPAddr
;
64 struct in_addr tmp_addr
;
66 if (dns_addr
.s_addr
!= 0 && (curtime
- dns_addr_time
) < TIMEOUT_DEFAULT
) {
67 *pdns_addr
= dns_addr
;
71 FixedInfo
= (FIXED_INFO
*)GlobalAlloc(GPTR
, sizeof(FIXED_INFO
));
72 BufLen
= sizeof(FIXED_INFO
);
74 if (ERROR_BUFFER_OVERFLOW
== GetNetworkParams(FixedInfo
, &BufLen
)) {
76 GlobalFree(FixedInfo
);
79 FixedInfo
= GlobalAlloc(GPTR
, BufLen
);
82 if ((ret
= GetNetworkParams(FixedInfo
, &BufLen
)) != ERROR_SUCCESS
) {
83 printf("GetNetworkParams failed. ret = %08x\n", (u_int
)ret
);
85 GlobalFree(FixedInfo
);
91 pIPAddr
= &(FixedInfo
->DnsServerList
);
92 inet_aton(pIPAddr
->IpAddress
.String
, &tmp_addr
);
93 *pdns_addr
= tmp_addr
;
95 dns_addr_time
= curtime
;
97 GlobalFree(FixedInfo
);
103 static void winsock_cleanup(void)
110 static struct stat dns_addr_stat
;
112 int get_dns_addr(struct in_addr
*pdns_addr
)
118 struct in_addr tmp_addr
;
120 if (dns_addr
.s_addr
!= 0) {
121 struct stat old_stat
;
122 if ((curtime
- dns_addr_time
) < TIMEOUT_DEFAULT
) {
123 *pdns_addr
= dns_addr
;
126 old_stat
= dns_addr_stat
;
127 if (stat("/etc/resolv.conf", &dns_addr_stat
) != 0)
129 if ((dns_addr_stat
.st_dev
== old_stat
.st_dev
)
130 && (dns_addr_stat
.st_ino
== old_stat
.st_ino
)
131 && (dns_addr_stat
.st_size
== old_stat
.st_size
)
132 && (dns_addr_stat
.st_mtime
== old_stat
.st_mtime
)) {
133 *pdns_addr
= dns_addr
;
138 f
= fopen("/etc/resolv.conf", "r");
143 fprintf(stderr
, "IP address of your DNS(s): ");
145 while (fgets(buff
, 512, f
) != NULL
) {
146 if (sscanf(buff
, "nameserver%*[ \t]%256s", buff2
) == 1) {
147 if (!inet_aton(buff2
, &tmp_addr
))
149 /* If it's the first one, set it to dns_addr */
151 *pdns_addr
= tmp_addr
;
153 dns_addr_time
= curtime
;
157 fprintf(stderr
, ", ");
161 fprintf(stderr
, "(more)");
167 fprintf(stderr
, "%s", inet_ntoa(tmp_addr
));
179 static void slirp_init_once(void)
181 static int initialized
;
192 WSAStartup(MAKEWORD(2,0), &Data
);
193 atexit(winsock_cleanup
);
196 loopback_addr
.s_addr
= htonl(INADDR_LOOPBACK
);
197 loopback_mask
= htonl(IN_CLASSA_NET
);
200 static void slirp_state_save(QEMUFile
*f
, void *opaque
);
201 static int slirp_state_load(QEMUFile
*f
, void *opaque
, int version_id
);
203 Slirp
*slirp_init(int restricted
, bool in_enabled
, struct in_addr vnetwork
,
204 struct in_addr vnetmask
, struct in_addr vhost
,
206 struct in6_addr vprefix_addr6
, uint8_t vprefix_len
,
207 struct in6_addr vhost6
, const char *vhostname
,
208 const char *tftp_path
, const char *bootfile
,
209 struct in_addr vdhcp_start
, struct in_addr vnameserver
,
210 struct in6_addr vnameserver6
, const char **vdnssearch
,
213 Slirp
*slirp
= g_malloc0(sizeof(Slirp
));
217 slirp
->grand
= g_rand_new();
218 slirp
->restricted
= restricted
;
220 slirp
->in_enabled
= in_enabled
;
221 slirp
->in6_enabled
= in6_enabled
;
227 /* Initialise mbufs *after* setting the MTU */
230 slirp
->vnetwork_addr
= vnetwork
;
231 slirp
->vnetwork_mask
= vnetmask
;
232 slirp
->vhost_addr
= vhost
;
233 slirp
->vprefix_addr6
= vprefix_addr6
;
234 slirp
->vprefix_len
= vprefix_len
;
235 slirp
->vhost_addr6
= vhost6
;
237 pstrcpy(slirp
->client_hostname
, sizeof(slirp
->client_hostname
),
240 slirp
->tftp_prefix
= g_strdup(tftp_path
);
241 slirp
->bootp_filename
= g_strdup(bootfile
);
242 slirp
->vdhcp_startaddr
= vdhcp_start
;
243 slirp
->vnameserver_addr
= vnameserver
;
244 slirp
->vnameserver_addr6
= vnameserver6
;
247 translate_dnssearch(slirp
, vdnssearch
);
250 slirp
->opaque
= opaque
;
252 register_savevm(NULL
, "slirp", 0, 4,
253 slirp_state_save
, slirp_state_load
, slirp
);
255 QTAILQ_INSERT_TAIL(&slirp_instances
, slirp
, entry
);
260 void slirp_cleanup(Slirp
*slirp
)
262 QTAILQ_REMOVE(&slirp_instances
, slirp
, entry
);
264 unregister_savevm(NULL
, "slirp", slirp
);
270 g_rand_free(slirp
->grand
);
272 g_free(slirp
->vdnssearch
);
273 g_free(slirp
->tftp_prefix
);
274 g_free(slirp
->bootp_filename
);
278 #define CONN_CANFSEND(so) (((so)->so_state & (SS_FCANTSENDMORE|SS_ISFCONNECTED)) == SS_ISFCONNECTED)
279 #define CONN_CANFRCV(so) (((so)->so_state & (SS_FCANTRCVMORE|SS_ISFCONNECTED)) == SS_ISFCONNECTED)
281 static void slirp_update_timeout(uint32_t *timeout
)
286 if (*timeout
<= TIMEOUT_FAST
) {
290 t
= MIN(1000, *timeout
);
292 /* If we have tcp timeout with slirp, then we will fill @timeout with
293 * more precise value.
295 QTAILQ_FOREACH(slirp
, &slirp_instances
, entry
) {
296 if (slirp
->time_fasttimo
) {
297 *timeout
= TIMEOUT_FAST
;
300 if (slirp
->do_slowtimo
) {
301 t
= MIN(TIMEOUT_SLOW
, t
);
307 void slirp_pollfds_fill(GArray
*pollfds
, uint32_t *timeout
)
310 struct socket
*so
, *so_next
;
312 if (QTAILQ_EMPTY(&slirp_instances
)) {
320 QTAILQ_FOREACH(slirp
, &slirp_instances
, entry
) {
322 * *_slowtimo needs calling if there are IP fragments
323 * in the fragment queue, or there are TCP connections active
325 slirp
->do_slowtimo
= ((slirp
->tcb
.so_next
!= &slirp
->tcb
) ||
326 (&slirp
->ipq
.ip_link
!= slirp
->ipq
.ip_link
.next
));
328 for (so
= slirp
->tcb
.so_next
; so
!= &slirp
->tcb
;
332 so_next
= so
->so_next
;
334 so
->pollfds_idx
= -1;
337 * See if we need a tcp_fasttimo
339 if (slirp
->time_fasttimo
== 0 &&
340 so
->so_tcpcb
->t_flags
& TF_DELACK
) {
341 slirp
->time_fasttimo
= curtime
; /* Flag when want a fasttimo */
345 * NOFDREF can include still connecting to local-host,
346 * newly socreated() sockets etc. Don't want to select these.
348 if (so
->so_state
& SS_NOFDREF
|| so
->s
== -1) {
353 * Set for reading sockets which are accepting
355 if (so
->so_state
& SS_FACCEPTCONN
) {
358 .events
= G_IO_IN
| G_IO_HUP
| G_IO_ERR
,
360 so
->pollfds_idx
= pollfds
->len
;
361 g_array_append_val(pollfds
, pfd
);
366 * Set for writing sockets which are connecting
368 if (so
->so_state
& SS_ISFCONNECTING
) {
371 .events
= G_IO_OUT
| G_IO_ERR
,
373 so
->pollfds_idx
= pollfds
->len
;
374 g_array_append_val(pollfds
, pfd
);
379 * Set for writing if we are connected, can send more, and
380 * we have something to send
382 if (CONN_CANFSEND(so
) && so
->so_rcv
.sb_cc
) {
383 events
|= G_IO_OUT
| G_IO_ERR
;
387 * Set for reading (and urgent data) if we are connected, can
388 * receive more, and we have room for it XXX /2 ?
390 if (CONN_CANFRCV(so
) &&
391 (so
->so_snd
.sb_cc
< (so
->so_snd
.sb_datalen
/2))) {
392 events
|= G_IO_IN
| G_IO_HUP
| G_IO_ERR
| G_IO_PRI
;
400 so
->pollfds_idx
= pollfds
->len
;
401 g_array_append_val(pollfds
, pfd
);
408 for (so
= slirp
->udb
.so_next
; so
!= &slirp
->udb
;
410 so_next
= so
->so_next
;
412 so
->pollfds_idx
= -1;
415 * See if it's timed out
418 if (so
->so_expire
<= curtime
) {
422 slirp
->do_slowtimo
= true; /* Let socket expire */
427 * When UDP packets are received from over the
428 * link, they're sendto()'d straight away, so
429 * no need for setting for writing
430 * Limit the number of packets queued by this session
431 * to 4. Note that even though we try and limit this
432 * to 4 packets, the session could have more queued
433 * if the packets needed to be fragmented
436 if ((so
->so_state
& SS_ISFCONNECTED
) && so
->so_queued
<= 4) {
439 .events
= G_IO_IN
| G_IO_HUP
| G_IO_ERR
,
441 so
->pollfds_idx
= pollfds
->len
;
442 g_array_append_val(pollfds
, pfd
);
449 for (so
= slirp
->icmp
.so_next
; so
!= &slirp
->icmp
;
451 so_next
= so
->so_next
;
453 so
->pollfds_idx
= -1;
456 * See if it's timed out
459 if (so
->so_expire
<= curtime
) {
463 slirp
->do_slowtimo
= true; /* Let socket expire */
467 if (so
->so_state
& SS_ISFCONNECTED
) {
470 .events
= G_IO_IN
| G_IO_HUP
| G_IO_ERR
,
472 so
->pollfds_idx
= pollfds
->len
;
473 g_array_append_val(pollfds
, pfd
);
477 slirp_update_timeout(timeout
);
480 void slirp_pollfds_poll(GArray
*pollfds
, int select_error
)
483 struct socket
*so
, *so_next
;
486 if (QTAILQ_EMPTY(&slirp_instances
)) {
490 curtime
= qemu_clock_get_ms(QEMU_CLOCK_REALTIME
);
492 QTAILQ_FOREACH(slirp
, &slirp_instances
, entry
) {
494 * See if anything has timed out
496 if (slirp
->time_fasttimo
&&
497 ((curtime
- slirp
->time_fasttimo
) >= TIMEOUT_FAST
)) {
499 slirp
->time_fasttimo
= 0;
501 if (slirp
->do_slowtimo
&&
502 ((curtime
- slirp
->last_slowtimo
) >= TIMEOUT_SLOW
)) {
505 slirp
->last_slowtimo
= curtime
;
515 for (so
= slirp
->tcb
.so_next
; so
!= &slirp
->tcb
;
519 so_next
= so
->so_next
;
522 if (so
->pollfds_idx
!= -1) {
523 revents
= g_array_index(pollfds
, GPollFD
,
524 so
->pollfds_idx
).revents
;
527 if (so
->so_state
& SS_NOFDREF
|| so
->s
== -1) {
533 * This will soread as well, so no need to
534 * test for G_IO_IN below if this succeeds
536 if (revents
& G_IO_PRI
) {
540 * Check sockets for reading
542 else if (revents
& (G_IO_IN
| G_IO_HUP
| G_IO_ERR
)) {
544 * Check for incoming connections
546 if (so
->so_state
& SS_FACCEPTCONN
) {
552 /* Output it if we read something */
554 tcp_output(sototcpcb(so
));
559 * Check sockets for writing
561 if (!(so
->so_state
& SS_NOFDREF
) &&
562 (revents
& (G_IO_OUT
| G_IO_ERR
))) {
564 * Check for non-blocking, still-connecting sockets
566 if (so
->so_state
& SS_ISFCONNECTING
) {
568 so
->so_state
&= ~SS_ISFCONNECTING
;
570 ret
= send(so
->s
, (const void *) &ret
, 0, 0);
572 /* XXXXX Must fix, zero bytes is a NOP */
573 if (errno
== EAGAIN
|| errno
== EWOULDBLOCK
||
574 errno
== EINPROGRESS
|| errno
== ENOTCONN
) {
579 so
->so_state
&= SS_PERSISTENT_MASK
;
580 so
->so_state
|= SS_NOFDREF
;
582 /* else so->so_state &= ~SS_ISFCONNECTING; */
587 tcp_input((struct mbuf
*)NULL
, sizeof(struct ip
), so
,
594 * XXXXX If we wrote something (a lot), there
595 * could be a need for a window update.
596 * In the worst case, the remote will send
597 * a window probe to get things going again
602 * Probe a still-connecting, non-blocking socket
603 * to check if it's still alive
606 if (so
->so_state
& SS_ISFCONNECTING
) {
607 ret
= qemu_recv(so
->s
, &ret
, 0, 0);
611 if (errno
== EAGAIN
|| errno
== EWOULDBLOCK
||
612 errno
== EINPROGRESS
|| errno
== ENOTCONN
) {
613 continue; /* Still connecting, continue */
617 so
->so_state
&= SS_PERSISTENT_MASK
;
618 so
->so_state
|= SS_NOFDREF
;
620 /* tcp_input will take care of it */
622 ret
= send(so
->s
, &ret
, 0, 0);
625 if (errno
== EAGAIN
|| errno
== EWOULDBLOCK
||
626 errno
== EINPROGRESS
|| errno
== ENOTCONN
) {
630 so
->so_state
&= SS_PERSISTENT_MASK
;
631 so
->so_state
|= SS_NOFDREF
;
633 so
->so_state
&= ~SS_ISFCONNECTING
;
637 tcp_input((struct mbuf
*)NULL
, sizeof(struct ip
), so
,
639 } /* SS_ISFCONNECTING */
645 * Incoming packets are sent straight away, they're not buffered.
646 * Incoming UDP data isn't buffered either.
648 for (so
= slirp
->udb
.so_next
; so
!= &slirp
->udb
;
652 so_next
= so
->so_next
;
655 if (so
->pollfds_idx
!= -1) {
656 revents
= g_array_index(pollfds
, GPollFD
,
657 so
->pollfds_idx
).revents
;
661 (revents
& (G_IO_IN
| G_IO_HUP
| G_IO_ERR
))) {
667 * Check incoming ICMP relies.
669 for (so
= slirp
->icmp
.so_next
; so
!= &slirp
->icmp
;
673 so_next
= so
->so_next
;
676 if (so
->pollfds_idx
!= -1) {
677 revents
= g_array_index(pollfds
, GPollFD
,
678 so
->pollfds_idx
).revents
;
682 (revents
& (G_IO_IN
| G_IO_HUP
| G_IO_ERR
))) {
692 static void arp_input(Slirp
*slirp
, const uint8_t *pkt
, int pkt_len
)
694 struct arphdr
*ah
= (struct arphdr
*)(pkt
+ ETH_HLEN
);
695 uint8_t arp_reply
[max(ETH_HLEN
+ sizeof(struct arphdr
), 64)];
696 struct ethhdr
*reh
= (struct ethhdr
*)arp_reply
;
697 struct arphdr
*rah
= (struct arphdr
*)(arp_reply
+ ETH_HLEN
);
699 struct ex_list
*ex_ptr
;
701 if (!slirp
->in_enabled
) {
705 ar_op
= ntohs(ah
->ar_op
);
708 if (ah
->ar_tip
== ah
->ar_sip
) {
710 arp_table_add(slirp
, ah
->ar_sip
, ah
->ar_sha
);
714 if ((ah
->ar_tip
& slirp
->vnetwork_mask
.s_addr
) ==
715 slirp
->vnetwork_addr
.s_addr
) {
716 if (ah
->ar_tip
== slirp
->vnameserver_addr
.s_addr
||
717 ah
->ar_tip
== slirp
->vhost_addr
.s_addr
)
719 for (ex_ptr
= slirp
->exec_list
; ex_ptr
; ex_ptr
= ex_ptr
->ex_next
) {
720 if (ex_ptr
->ex_addr
.s_addr
== ah
->ar_tip
)
725 memset(arp_reply
, 0, sizeof(arp_reply
));
727 arp_table_add(slirp
, ah
->ar_sip
, ah
->ar_sha
);
729 /* ARP request for alias/dns mac address */
730 memcpy(reh
->h_dest
, pkt
+ ETH_ALEN
, ETH_ALEN
);
731 memcpy(reh
->h_source
, special_ethaddr
, ETH_ALEN
- 4);
732 memcpy(&reh
->h_source
[2], &ah
->ar_tip
, 4);
733 reh
->h_proto
= htons(ETH_P_ARP
);
735 rah
->ar_hrd
= htons(1);
736 rah
->ar_pro
= htons(ETH_P_IP
);
737 rah
->ar_hln
= ETH_ALEN
;
739 rah
->ar_op
= htons(ARPOP_REPLY
);
740 memcpy(rah
->ar_sha
, reh
->h_source
, ETH_ALEN
);
741 rah
->ar_sip
= ah
->ar_tip
;
742 memcpy(rah
->ar_tha
, ah
->ar_sha
, ETH_ALEN
);
743 rah
->ar_tip
= ah
->ar_sip
;
744 slirp_output(slirp
->opaque
, arp_reply
, sizeof(arp_reply
));
748 arp_table_add(slirp
, ah
->ar_sip
, ah
->ar_sha
);
755 void slirp_input(Slirp
*slirp
, const uint8_t *pkt
, int pkt_len
)
760 if (pkt_len
< ETH_HLEN
)
763 proto
= ntohs(*(uint16_t *)(pkt
+ 12));
766 arp_input(slirp
, pkt
, pkt_len
);
773 /* Note: we add 2 to align the IP header on 4 bytes,
774 * and add the margin for the tcpiphdr overhead */
775 if (M_FREEROOM(m
) < pkt_len
+ TCPIPHDR_DELTA
+ 2) {
776 m_inc(m
, pkt_len
+ TCPIPHDR_DELTA
+ 2);
778 m
->m_len
= pkt_len
+ TCPIPHDR_DELTA
+ 2;
779 memcpy(m
->m_data
+ TCPIPHDR_DELTA
+ 2, pkt
, pkt_len
);
781 m
->m_data
+= TCPIPHDR_DELTA
+ 2 + ETH_HLEN
;
782 m
->m_len
-= TCPIPHDR_DELTA
+ 2 + ETH_HLEN
;
784 if (proto
== ETH_P_IP
) {
786 } else if (proto
== ETH_P_IPV6
) {
796 /* Prepare the IPv4 packet to be sent to the ethernet device. Returns 1 if no
797 * packet should be sent, 0 if the packet must be re-queued, 2 if the packet
800 static int if_encap4(Slirp
*slirp
, struct mbuf
*ifm
, struct ethhdr
*eh
,
801 uint8_t ethaddr
[ETH_ALEN
])
803 const struct ip
*iph
= (const struct ip
*)ifm
->m_data
;
805 if (iph
->ip_dst
.s_addr
== 0) {
806 /* 0.0.0.0 can not be a destination address, something went wrong,
807 * avoid making it worse */
810 if (!arp_table_search(slirp
, iph
->ip_dst
.s_addr
, ethaddr
)) {
811 uint8_t arp_req
[ETH_HLEN
+ sizeof(struct arphdr
)];
812 struct ethhdr
*reh
= (struct ethhdr
*)arp_req
;
813 struct arphdr
*rah
= (struct arphdr
*)(arp_req
+ ETH_HLEN
);
815 if (!ifm
->resolution_requested
) {
816 /* If the client addr is not known, send an ARP request */
817 memset(reh
->h_dest
, 0xff, ETH_ALEN
);
818 memcpy(reh
->h_source
, special_ethaddr
, ETH_ALEN
- 4);
819 memcpy(&reh
->h_source
[2], &slirp
->vhost_addr
, 4);
820 reh
->h_proto
= htons(ETH_P_ARP
);
821 rah
->ar_hrd
= htons(1);
822 rah
->ar_pro
= htons(ETH_P_IP
);
823 rah
->ar_hln
= ETH_ALEN
;
825 rah
->ar_op
= htons(ARPOP_REQUEST
);
828 memcpy(rah
->ar_sha
, special_ethaddr
, ETH_ALEN
- 4);
829 memcpy(&rah
->ar_sha
[2], &slirp
->vhost_addr
, 4);
832 rah
->ar_sip
= slirp
->vhost_addr
.s_addr
;
834 /* target hw addr (none) */
835 memset(rah
->ar_tha
, 0, ETH_ALEN
);
838 rah
->ar_tip
= iph
->ip_dst
.s_addr
;
839 slirp
->client_ipaddr
= iph
->ip_dst
;
840 slirp_output(slirp
->opaque
, arp_req
, sizeof(arp_req
));
841 ifm
->resolution_requested
= true;
843 /* Expire request and drop outgoing packet after 1 second */
844 ifm
->expiration_date
= qemu_clock_get_ns(QEMU_CLOCK_REALTIME
) + 1000000000ULL;
848 memcpy(eh
->h_source
, special_ethaddr
, ETH_ALEN
- 4);
849 /* XXX: not correct */
850 memcpy(&eh
->h_source
[2], &slirp
->vhost_addr
, 4);
851 eh
->h_proto
= htons(ETH_P_IP
);
858 /* Prepare the IPv6 packet to be sent to the ethernet device. Returns 1 if no
859 * packet should be sent, 0 if the packet must be re-queued, 2 if the packet
862 static int if_encap6(Slirp
*slirp
, struct mbuf
*ifm
, struct ethhdr
*eh
,
863 uint8_t ethaddr
[ETH_ALEN
])
865 const struct ip6
*ip6h
= mtod(ifm
, const struct ip6
*);
866 if (!ndp_table_search(slirp
, ip6h
->ip_dst
, ethaddr
)) {
867 if (!ifm
->resolution_requested
) {
868 ndp_send_ns(slirp
, ip6h
->ip_dst
);
869 ifm
->resolution_requested
= true;
870 ifm
->expiration_date
=
871 qemu_clock_get_ns(QEMU_CLOCK_REALTIME
) + 1000000000ULL;
875 eh
->h_proto
= htons(ETH_P_IPV6
);
876 in6_compute_ethaddr(ip6h
->ip_src
, eh
->h_source
);
883 /* Output the IP packet to the ethernet device. Returns 0 if the packet must be
886 int if_encap(Slirp
*slirp
, struct mbuf
*ifm
)
889 struct ethhdr
*eh
= (struct ethhdr
*)buf
;
890 uint8_t ethaddr
[ETH_ALEN
];
891 const struct ip
*iph
= (const struct ip
*)ifm
->m_data
;
894 if (ifm
->m_len
+ ETH_HLEN
> sizeof(buf
)) {
900 ret
= if_encap4(slirp
, ifm
, eh
, ethaddr
);
907 ret
= if_encap6(slirp
, ifm
, eh
, ethaddr
);
914 g_assert_not_reached();
918 memcpy(eh
->h_dest
, ethaddr
, ETH_ALEN
);
919 DEBUG_ARGS((dfd
, " src = %02x:%02x:%02x:%02x:%02x:%02x\n",
920 eh
->h_source
[0], eh
->h_source
[1], eh
->h_source
[2],
921 eh
->h_source
[3], eh
->h_source
[4], eh
->h_source
[5]));
922 DEBUG_ARGS((dfd
, " dst = %02x:%02x:%02x:%02x:%02x:%02x\n",
923 eh
->h_dest
[0], eh
->h_dest
[1], eh
->h_dest
[2],
924 eh
->h_dest
[3], eh
->h_dest
[4], eh
->h_dest
[5]));
925 memcpy(buf
+ sizeof(struct ethhdr
), ifm
->m_data
, ifm
->m_len
);
926 slirp_output(slirp
->opaque
, buf
, ifm
->m_len
+ ETH_HLEN
);
930 /* Drop host forwarding rule, return 0 if found. */
931 int slirp_remove_hostfwd(Slirp
*slirp
, int is_udp
, struct in_addr host_addr
,
935 struct socket
*head
= (is_udp
? &slirp
->udb
: &slirp
->tcb
);
936 struct sockaddr_in addr
;
937 int port
= htons(host_port
);
940 for (so
= head
->so_next
; so
!= head
; so
= so
->so_next
) {
941 addr_len
= sizeof(addr
);
942 if ((so
->so_state
& SS_HOSTFWD
) &&
943 getsockname(so
->s
, (struct sockaddr
*)&addr
, &addr_len
) == 0 &&
944 addr
.sin_addr
.s_addr
== host_addr
.s_addr
&&
945 addr
.sin_port
== port
) {
955 int slirp_add_hostfwd(Slirp
*slirp
, int is_udp
, struct in_addr host_addr
,
956 int host_port
, struct in_addr guest_addr
, int guest_port
)
958 if (!guest_addr
.s_addr
) {
959 guest_addr
= slirp
->vdhcp_startaddr
;
962 if (!udp_listen(slirp
, host_addr
.s_addr
, htons(host_port
),
963 guest_addr
.s_addr
, htons(guest_port
), SS_HOSTFWD
))
966 if (!tcp_listen(slirp
, host_addr
.s_addr
, htons(host_port
),
967 guest_addr
.s_addr
, htons(guest_port
), SS_HOSTFWD
))
973 int slirp_add_exec(Slirp
*slirp
, int do_pty
, const void *args
,
974 struct in_addr
*guest_addr
, int guest_port
)
976 if (!guest_addr
->s_addr
) {
977 guest_addr
->s_addr
= slirp
->vnetwork_addr
.s_addr
|
978 (htonl(0x0204) & ~slirp
->vnetwork_mask
.s_addr
);
980 if ((guest_addr
->s_addr
& slirp
->vnetwork_mask
.s_addr
) !=
981 slirp
->vnetwork_addr
.s_addr
||
982 guest_addr
->s_addr
== slirp
->vhost_addr
.s_addr
||
983 guest_addr
->s_addr
== slirp
->vnameserver_addr
.s_addr
) {
986 return add_exec(&slirp
->exec_list
, do_pty
, (char *)args
, *guest_addr
,
990 ssize_t
slirp_send(struct socket
*so
, const void *buf
, size_t len
, int flags
)
992 if (so
->s
== -1 && so
->extra
) {
993 qemu_chr_fe_write(so
->extra
, buf
, len
);
997 return send(so
->s
, buf
, len
, flags
);
1000 static struct socket
*
1001 slirp_find_ctl_socket(Slirp
*slirp
, struct in_addr guest_addr
, int guest_port
)
1005 for (so
= slirp
->tcb
.so_next
; so
!= &slirp
->tcb
; so
= so
->so_next
) {
1006 if (so
->so_faddr
.s_addr
== guest_addr
.s_addr
&&
1007 htons(so
->so_fport
) == guest_port
) {
1014 size_t slirp_socket_can_recv(Slirp
*slirp
, struct in_addr guest_addr
,
1017 struct iovec iov
[2];
1020 so
= slirp_find_ctl_socket(slirp
, guest_addr
, guest_port
);
1022 if (!so
|| so
->so_state
& SS_NOFDREF
) {
1026 if (!CONN_CANFRCV(so
) || so
->so_snd
.sb_cc
>= (so
->so_snd
.sb_datalen
/2)) {
1030 return sopreprbuf(so
, iov
, NULL
);
1033 void slirp_socket_recv(Slirp
*slirp
, struct in_addr guest_addr
, int guest_port
,
1034 const uint8_t *buf
, int size
)
1037 struct socket
*so
= slirp_find_ctl_socket(slirp
, guest_addr
, guest_port
);
1042 ret
= soreadbuf(so
, (const char *)buf
, size
);
1045 tcp_output(sototcpcb(so
));
1048 static void slirp_tcp_save(QEMUFile
*f
, struct tcpcb
*tp
)
1052 qemu_put_sbe16(f
, tp
->t_state
);
1053 for (i
= 0; i
< TCPT_NTIMERS
; i
++)
1054 qemu_put_sbe16(f
, tp
->t_timer
[i
]);
1055 qemu_put_sbe16(f
, tp
->t_rxtshift
);
1056 qemu_put_sbe16(f
, tp
->t_rxtcur
);
1057 qemu_put_sbe16(f
, tp
->t_dupacks
);
1058 qemu_put_be16(f
, tp
->t_maxseg
);
1059 qemu_put_sbyte(f
, tp
->t_force
);
1060 qemu_put_be16(f
, tp
->t_flags
);
1061 qemu_put_be32(f
, tp
->snd_una
);
1062 qemu_put_be32(f
, tp
->snd_nxt
);
1063 qemu_put_be32(f
, tp
->snd_up
);
1064 qemu_put_be32(f
, tp
->snd_wl1
);
1065 qemu_put_be32(f
, tp
->snd_wl2
);
1066 qemu_put_be32(f
, tp
->iss
);
1067 qemu_put_be32(f
, tp
->snd_wnd
);
1068 qemu_put_be32(f
, tp
->rcv_wnd
);
1069 qemu_put_be32(f
, tp
->rcv_nxt
);
1070 qemu_put_be32(f
, tp
->rcv_up
);
1071 qemu_put_be32(f
, tp
->irs
);
1072 qemu_put_be32(f
, tp
->rcv_adv
);
1073 qemu_put_be32(f
, tp
->snd_max
);
1074 qemu_put_be32(f
, tp
->snd_cwnd
);
1075 qemu_put_be32(f
, tp
->snd_ssthresh
);
1076 qemu_put_sbe16(f
, tp
->t_idle
);
1077 qemu_put_sbe16(f
, tp
->t_rtt
);
1078 qemu_put_be32(f
, tp
->t_rtseq
);
1079 qemu_put_sbe16(f
, tp
->t_srtt
);
1080 qemu_put_sbe16(f
, tp
->t_rttvar
);
1081 qemu_put_be16(f
, tp
->t_rttmin
);
1082 qemu_put_be32(f
, tp
->max_sndwnd
);
1083 qemu_put_byte(f
, tp
->t_oobflags
);
1084 qemu_put_byte(f
, tp
->t_iobc
);
1085 qemu_put_sbe16(f
, tp
->t_softerror
);
1086 qemu_put_byte(f
, tp
->snd_scale
);
1087 qemu_put_byte(f
, tp
->rcv_scale
);
1088 qemu_put_byte(f
, tp
->request_r_scale
);
1089 qemu_put_byte(f
, tp
->requested_s_scale
);
1090 qemu_put_be32(f
, tp
->ts_recent
);
1091 qemu_put_be32(f
, tp
->ts_recent_age
);
1092 qemu_put_be32(f
, tp
->last_ack_sent
);
1095 static void slirp_sbuf_save(QEMUFile
*f
, struct sbuf
*sbuf
)
1099 qemu_put_be32(f
, sbuf
->sb_cc
);
1100 qemu_put_be32(f
, sbuf
->sb_datalen
);
1101 off
= (uint32_t)(sbuf
->sb_wptr
- sbuf
->sb_data
);
1102 qemu_put_sbe32(f
, off
);
1103 off
= (uint32_t)(sbuf
->sb_rptr
- sbuf
->sb_data
);
1104 qemu_put_sbe32(f
, off
);
1105 qemu_put_buffer(f
, (unsigned char*)sbuf
->sb_data
, sbuf
->sb_datalen
);
1108 static void slirp_socket_save(QEMUFile
*f
, struct socket
*so
)
1110 qemu_put_be32(f
, so
->so_urgc
);
1111 qemu_put_be16(f
, so
->so_ffamily
);
1112 switch (so
->so_ffamily
) {
1114 qemu_put_be32(f
, so
->so_faddr
.s_addr
);
1115 qemu_put_be16(f
, so
->so_fport
);
1119 "so_ffamily unknown, unable to save so_faddr and so_fport\n");
1121 qemu_put_be16(f
, so
->so_lfamily
);
1122 switch (so
->so_lfamily
) {
1124 qemu_put_be32(f
, so
->so_laddr
.s_addr
);
1125 qemu_put_be16(f
, so
->so_lport
);
1129 "so_ffamily unknown, unable to save so_laddr and so_lport\n");
1131 qemu_put_byte(f
, so
->so_iptos
);
1132 qemu_put_byte(f
, so
->so_emu
);
1133 qemu_put_byte(f
, so
->so_type
);
1134 qemu_put_be32(f
, so
->so_state
);
1135 slirp_sbuf_save(f
, &so
->so_rcv
);
1136 slirp_sbuf_save(f
, &so
->so_snd
);
1137 slirp_tcp_save(f
, so
->so_tcpcb
);
1140 static void slirp_bootp_save(QEMUFile
*f
, Slirp
*slirp
)
1144 for (i
= 0; i
< NB_BOOTP_CLIENTS
; i
++) {
1145 qemu_put_be16(f
, slirp
->bootp_clients
[i
].allocated
);
1146 qemu_put_buffer(f
, slirp
->bootp_clients
[i
].macaddr
, 6);
1150 static void slirp_state_save(QEMUFile
*f
, void *opaque
)
1152 Slirp
*slirp
= opaque
;
1153 struct ex_list
*ex_ptr
;
1155 for (ex_ptr
= slirp
->exec_list
; ex_ptr
; ex_ptr
= ex_ptr
->ex_next
)
1156 if (ex_ptr
->ex_pty
== 3) {
1158 so
= slirp_find_ctl_socket(slirp
, ex_ptr
->ex_addr
,
1159 ntohs(ex_ptr
->ex_fport
));
1163 qemu_put_byte(f
, 42);
1164 slirp_socket_save(f
, so
);
1166 qemu_put_byte(f
, 0);
1168 qemu_put_be16(f
, slirp
->ip_id
);
1170 slirp_bootp_save(f
, slirp
);
1173 static void slirp_tcp_load(QEMUFile
*f
, struct tcpcb
*tp
)
1177 tp
->t_state
= qemu_get_sbe16(f
);
1178 for (i
= 0; i
< TCPT_NTIMERS
; i
++)
1179 tp
->t_timer
[i
] = qemu_get_sbe16(f
);
1180 tp
->t_rxtshift
= qemu_get_sbe16(f
);
1181 tp
->t_rxtcur
= qemu_get_sbe16(f
);
1182 tp
->t_dupacks
= qemu_get_sbe16(f
);
1183 tp
->t_maxseg
= qemu_get_be16(f
);
1184 tp
->t_force
= qemu_get_sbyte(f
);
1185 tp
->t_flags
= qemu_get_be16(f
);
1186 tp
->snd_una
= qemu_get_be32(f
);
1187 tp
->snd_nxt
= qemu_get_be32(f
);
1188 tp
->snd_up
= qemu_get_be32(f
);
1189 tp
->snd_wl1
= qemu_get_be32(f
);
1190 tp
->snd_wl2
= qemu_get_be32(f
);
1191 tp
->iss
= qemu_get_be32(f
);
1192 tp
->snd_wnd
= qemu_get_be32(f
);
1193 tp
->rcv_wnd
= qemu_get_be32(f
);
1194 tp
->rcv_nxt
= qemu_get_be32(f
);
1195 tp
->rcv_up
= qemu_get_be32(f
);
1196 tp
->irs
= qemu_get_be32(f
);
1197 tp
->rcv_adv
= qemu_get_be32(f
);
1198 tp
->snd_max
= qemu_get_be32(f
);
1199 tp
->snd_cwnd
= qemu_get_be32(f
);
1200 tp
->snd_ssthresh
= qemu_get_be32(f
);
1201 tp
->t_idle
= qemu_get_sbe16(f
);
1202 tp
->t_rtt
= qemu_get_sbe16(f
);
1203 tp
->t_rtseq
= qemu_get_be32(f
);
1204 tp
->t_srtt
= qemu_get_sbe16(f
);
1205 tp
->t_rttvar
= qemu_get_sbe16(f
);
1206 tp
->t_rttmin
= qemu_get_be16(f
);
1207 tp
->max_sndwnd
= qemu_get_be32(f
);
1208 tp
->t_oobflags
= qemu_get_byte(f
);
1209 tp
->t_iobc
= qemu_get_byte(f
);
1210 tp
->t_softerror
= qemu_get_sbe16(f
);
1211 tp
->snd_scale
= qemu_get_byte(f
);
1212 tp
->rcv_scale
= qemu_get_byte(f
);
1213 tp
->request_r_scale
= qemu_get_byte(f
);
1214 tp
->requested_s_scale
= qemu_get_byte(f
);
1215 tp
->ts_recent
= qemu_get_be32(f
);
1216 tp
->ts_recent_age
= qemu_get_be32(f
);
1217 tp
->last_ack_sent
= qemu_get_be32(f
);
1221 static int slirp_sbuf_load(QEMUFile
*f
, struct sbuf
*sbuf
)
1223 uint32_t off
, sb_cc
, sb_datalen
;
1225 sb_cc
= qemu_get_be32(f
);
1226 sb_datalen
= qemu_get_be32(f
);
1228 sbreserve(sbuf
, sb_datalen
);
1230 if (sbuf
->sb_datalen
!= sb_datalen
)
1233 sbuf
->sb_cc
= sb_cc
;
1235 off
= qemu_get_sbe32(f
);
1236 sbuf
->sb_wptr
= sbuf
->sb_data
+ off
;
1237 off
= qemu_get_sbe32(f
);
1238 sbuf
->sb_rptr
= sbuf
->sb_data
+ off
;
1239 qemu_get_buffer(f
, (unsigned char*)sbuf
->sb_data
, sbuf
->sb_datalen
);
1244 static int slirp_socket_load(QEMUFile
*f
, struct socket
*so
, int version_id
)
1246 if (tcp_attach(so
) < 0)
1249 so
->so_urgc
= qemu_get_be32(f
);
1250 if (version_id
<= 3) {
1251 so
->so_ffamily
= AF_INET
;
1252 so
->so_faddr
.s_addr
= qemu_get_be32(f
);
1253 so
->so_laddr
.s_addr
= qemu_get_be32(f
);
1254 so
->so_fport
= qemu_get_be16(f
);
1255 so
->so_lport
= qemu_get_be16(f
);
1257 so
->so_ffamily
= qemu_get_be16(f
);
1258 switch (so
->so_ffamily
) {
1260 so
->so_faddr
.s_addr
= qemu_get_be32(f
);
1261 so
->so_fport
= qemu_get_be16(f
);
1265 "so_ffamily unknown, unable to restore so_faddr and so_lport");
1267 so
->so_lfamily
= qemu_get_be16(f
);
1268 switch (so
->so_lfamily
) {
1270 so
->so_laddr
.s_addr
= qemu_get_be32(f
);
1271 so
->so_lport
= qemu_get_be16(f
);
1275 "so_ffamily unknown, unable to restore so_laddr and so_lport");
1278 so
->so_iptos
= qemu_get_byte(f
);
1279 so
->so_emu
= qemu_get_byte(f
);
1280 so
->so_type
= qemu_get_byte(f
);
1281 so
->so_state
= qemu_get_be32(f
);
1282 if (slirp_sbuf_load(f
, &so
->so_rcv
) < 0)
1284 if (slirp_sbuf_load(f
, &so
->so_snd
) < 0)
1286 slirp_tcp_load(f
, so
->so_tcpcb
);
1291 static void slirp_bootp_load(QEMUFile
*f
, Slirp
*slirp
)
1295 for (i
= 0; i
< NB_BOOTP_CLIENTS
; i
++) {
1296 slirp
->bootp_clients
[i
].allocated
= qemu_get_be16(f
);
1297 qemu_get_buffer(f
, slirp
->bootp_clients
[i
].macaddr
, 6);
1301 static int slirp_state_load(QEMUFile
*f
, void *opaque
, int version_id
)
1303 Slirp
*slirp
= opaque
;
1304 struct ex_list
*ex_ptr
;
1306 while (qemu_get_byte(f
)) {
1308 struct socket
*so
= socreate(slirp
);
1313 ret
= slirp_socket_load(f
, so
, version_id
);
1318 if ((so
->so_faddr
.s_addr
& slirp
->vnetwork_mask
.s_addr
) !=
1319 slirp
->vnetwork_addr
.s_addr
) {
1322 for (ex_ptr
= slirp
->exec_list
; ex_ptr
; ex_ptr
= ex_ptr
->ex_next
) {
1323 if (ex_ptr
->ex_pty
== 3 &&
1324 so
->so_faddr
.s_addr
== ex_ptr
->ex_addr
.s_addr
&&
1325 so
->so_fport
== ex_ptr
->ex_fport
) {
1332 so
->extra
= (void *)ex_ptr
->ex_exec
;
1335 if (version_id
>= 2) {
1336 slirp
->ip_id
= qemu_get_be16(f
);
1339 if (version_id
>= 3) {
1340 slirp_bootp_load(f
, slirp
);