]> git.proxmox.com Git - mirror_ovs.git/blob - lib/netdev-bsd.c
netdev: Add reconfigure request mechanism.
[mirror_ovs.git] / lib / netdev-bsd.c
1 /*
2 * Copyright (c) 2011, 2013, 2014 Gaetano Catalli.
3 * Copyright (c) 2013, 2014 YAMAMOTO Takashi.
4 *
5 * Licensed under the Apache License, Version 2.0 (the "License");
6 * you may not use this file except in compliance with the License.
7 * You may obtain a copy of the License at:
8 *
9 * http://www.apache.org/licenses/LICENSE-2.0
10 *
11 * Unless required by applicable law or agreed to in writing, software
12 * distributed under the License is distributed on an "AS IS" BASIS,
13 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
14 * See the License for the specific language governing permissions and
15 * limitations under the License.
16 */
17
18 #if !defined(__MACH__)
19 #include <config.h>
20
21 #include "netdev-provider.h"
22 #include <stdlib.h>
23 #include <errno.h>
24 #include <fcntl.h>
25 #include <sys/types.h>
26 #include <sys/time.h>
27 #include <sys/ioctl.h>
28 #include <sys/socket.h>
29 #include <sys/sockio.h>
30 #include <net/bpf.h>
31 #include <ifaddrs.h>
32 #include <pcap/pcap.h>
33 #include <net/if.h>
34 #include <net/if_dl.h>
35 #include <net/if_media.h>
36 #include <net/if_tap.h>
37 #include <netinet/in.h>
38 #ifdef HAVE_NET_IF_MIB_H
39 #include <net/if_mib.h>
40 #endif
41 #include <poll.h>
42 #include <string.h>
43 #include <unistd.h>
44 #include <sys/sysctl.h>
45 #if defined(__NetBSD__)
46 #include <net/route.h>
47 #include <netinet/if_inarp.h>
48 #endif
49
50 #include "rtbsd.h"
51 #include "coverage.h"
52 #include "dp-packet.h"
53 #include "dpif-netdev.h"
54 #include "openvswitch/dynamic-string.h"
55 #include "fatal-signal.h"
56 #include "openflow/openflow.h"
57 #include "ovs-thread.h"
58 #include "packets.h"
59 #include "poll-loop.h"
60 #include "shash.h"
61 #include "socket-util.h"
62 #include "svec.h"
63 #include "util.h"
64 #include "openvswitch/vlog.h"
65
66 VLOG_DEFINE_THIS_MODULE(netdev_bsd);
67
68 \f
69 struct netdev_rxq_bsd {
70 struct netdev_rxq up;
71
72 /* Packet capture descriptor for a system network device.
73 * For a tap device this is NULL. */
74 pcap_t *pcap_handle;
75
76 /* Selectable file descriptor for the network device.
77 * This descriptor will be used for polling operations. */
78 int fd;
79 };
80
81 struct netdev_bsd {
82 struct netdev up;
83
84 /* Never changes after initialization. */
85 char *kernel_name;
86
87 /* Protects all members below. */
88 struct ovs_mutex mutex;
89
90 unsigned int cache_valid;
91
92 int ifindex;
93 struct eth_addr etheraddr;
94 int mtu;
95 int carrier;
96
97 int tap_fd; /* TAP character device, if any, otherwise -1. */
98
99 /* Used for sending packets on non-tap devices. */
100 pcap_t *pcap;
101 int fd;
102 };
103
104
105 enum {
106 VALID_IFINDEX = 1 << 0,
107 VALID_ETHERADDR = 1 << 1,
108 VALID_IN = 1 << 2,
109 VALID_MTU = 1 << 3,
110 VALID_CARRIER = 1 << 4
111 };
112
113 #define PCAP_SNAPLEN 2048
114
115
116 /*
117 * Notifier used to invalidate device informations in case of status change.
118 *
119 * It will be registered with a 'rtbsd_notifier_register()' when the first
120 * device will be created with the call of either 'netdev_bsd_tap_create()' or
121 * 'netdev_bsd_system_create()'.
122 *
123 * The callback associated with this notifier ('netdev_bsd_cache_cb()') will
124 * invalidate cached information about the device.
125 */
126 static struct rtbsd_notifier netdev_bsd_cache_notifier;
127 static int cache_notifier_refcount;
128
129 static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(5, 20);
130
131 static void destroy_tap(int fd, const char *name);
132 static int get_flags(const struct netdev *, int *flagsp);
133 static int set_flags(const char *, int flags);
134 static int do_set_addr(struct netdev *netdev,
135 unsigned long ioctl_nr, const char *ioctl_name,
136 struct in_addr addr);
137 static int get_etheraddr(const char *netdev_name, struct eth_addr *ea);
138 static int set_etheraddr(const char *netdev_name, int hwaddr_family,
139 int hwaddr_len, const struct eth_addr);
140 static int get_ifindex(const struct netdev *, int *ifindexp);
141
142 static int ifr_get_flags(const struct ifreq *);
143 static void ifr_set_flags(struct ifreq *, int flags);
144
145 #ifdef __NetBSD__
146 static int af_link_ioctl(unsigned long command, const void *arg);
147 #endif
148
149 static void netdev_bsd_run(void);
150 static int netdev_bsd_get_mtu(const struct netdev *netdev_, int *mtup);
151
152 static bool
153 is_netdev_bsd_class(const struct netdev_class *netdev_class)
154 {
155 return netdev_class->run == netdev_bsd_run;
156 }
157
158 static struct netdev_bsd *
159 netdev_bsd_cast(const struct netdev *netdev)
160 {
161 ovs_assert(is_netdev_bsd_class(netdev_get_class(netdev)));
162 return CONTAINER_OF(netdev, struct netdev_bsd, up);
163 }
164
165 static struct netdev_rxq_bsd *
166 netdev_rxq_bsd_cast(const struct netdev_rxq *rxq)
167 {
168 ovs_assert(is_netdev_bsd_class(netdev_get_class(rxq->netdev)));
169 return CONTAINER_OF(rxq, struct netdev_rxq_bsd, up);
170 }
171
172 static const char *
173 netdev_get_kernel_name(const struct netdev *netdev)
174 {
175 return netdev_bsd_cast(netdev)->kernel_name;
176 }
177
178 /*
179 * Perform periodic work needed by netdev. In BSD netdevs it checks for any
180 * interface status changes, and eventually calls all the user callbacks.
181 */
182 static void
183 netdev_bsd_run(void)
184 {
185 rtbsd_notifier_run();
186 }
187
188 /*
189 * Arranges for poll_block() to wake up if the "run" member function needs to
190 * be called.
191 */
192 static void
193 netdev_bsd_wait(void)
194 {
195 rtbsd_notifier_wait();
196 }
197
198 /* Invalidate cache in case of interface status change. */
199 static void
200 netdev_bsd_cache_cb(const struct rtbsd_change *change,
201 void *aux OVS_UNUSED)
202 {
203 struct netdev_bsd *dev;
204
205 if (change) {
206 struct netdev *base_dev = netdev_from_name(change->if_name);
207
208 if (base_dev) {
209 const struct netdev_class *netdev_class =
210 netdev_get_class(base_dev);
211
212 if (is_netdev_bsd_class(netdev_class)) {
213 dev = netdev_bsd_cast(base_dev);
214 dev->cache_valid = 0;
215 netdev_change_seq_changed(base_dev);
216 }
217 netdev_close(base_dev);
218 }
219 } else {
220 /*
221 * XXX the API is lacking, we should be able to iterate on the list of
222 * netdevs without having to store the info in a temp shash.
223 */
224 struct shash device_shash;
225 struct shash_node *node;
226
227 shash_init(&device_shash);
228 netdev_get_devices(&netdev_bsd_class, &device_shash);
229 SHASH_FOR_EACH (node, &device_shash) {
230 struct netdev *netdev = node->data;
231 dev = netdev_bsd_cast(netdev);
232 dev->cache_valid = 0;
233 netdev_change_seq_changed(netdev);
234 netdev_close(netdev);
235 }
236 shash_destroy(&device_shash);
237 }
238 }
239
240 static int
241 cache_notifier_ref(void)
242 {
243 int ret = 0;
244
245 if (!cache_notifier_refcount) {
246 ret = rtbsd_notifier_register(&netdev_bsd_cache_notifier,
247 netdev_bsd_cache_cb, NULL);
248 if (ret) {
249 return ret;
250 }
251 }
252 cache_notifier_refcount++;
253 return 0;
254 }
255
256 static int
257 cache_notifier_unref(void)
258 {
259 cache_notifier_refcount--;
260 if (cache_notifier_refcount == 0) {
261 rtbsd_notifier_unregister(&netdev_bsd_cache_notifier);
262 }
263 return 0;
264 }
265
266 static struct netdev *
267 netdev_bsd_alloc(void)
268 {
269 struct netdev_bsd *netdev = xzalloc(sizeof *netdev);
270 return &netdev->up;
271 }
272
273 static int
274 netdev_bsd_construct_system(struct netdev *netdev_)
275 {
276 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
277 enum netdev_flags flags;
278 int error;
279
280 error = cache_notifier_ref();
281 if (error) {
282 return error;
283 }
284
285 ovs_mutex_init(&netdev->mutex);
286 netdev->tap_fd = -1;
287 netdev->kernel_name = xstrdup(netdev_->name);
288
289 /* Verify that the netdev really exists by attempting to read its flags */
290 error = netdev_get_flags(netdev_, &flags);
291 if (error == ENXIO) {
292 free(netdev->kernel_name);
293 cache_notifier_unref();
294 ovs_mutex_destroy(&netdev->mutex);
295 return error;
296 }
297
298 return 0;
299 }
300
301 static int
302 netdev_bsd_construct_tap(struct netdev *netdev_)
303 {
304 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
305 const char *name = netdev_->name;
306 int error = 0;
307 struct ifreq ifr;
308 char *kernel_name = NULL;
309
310 error = cache_notifier_ref();
311 if (error) {
312 goto error;
313 }
314
315 memset(&ifr, 0, sizeof(ifr));
316
317 /* Create a tap device by opening /dev/tap. The TAPGIFNAME ioctl is used
318 * to retrieve the name of the tap device. */
319 ovs_mutex_init(&netdev->mutex);
320 netdev->tap_fd = open("/dev/tap", O_RDWR);
321 if (netdev->tap_fd < 0) {
322 error = errno;
323 VLOG_WARN("opening \"/dev/tap\" failed: %s", ovs_strerror(error));
324 goto error_unref_notifier;
325 }
326
327 /* Retrieve tap name (e.g. tap0) */
328 if (ioctl(netdev->tap_fd, TAPGIFNAME, &ifr) == -1) {
329 /* XXX Need to destroy the device? */
330 error = errno;
331 close(netdev->tap_fd);
332 goto error_unref_notifier;
333 }
334
335 /* Change the name of the tap device */
336 #if defined(SIOCSIFNAME)
337 ifr.ifr_data = (void *)name;
338 error = af_inet_ioctl(SIOCSIFNAME, &ifr);
339 if (error) {
340 destroy_tap(netdev->tap_fd, ifr.ifr_name);
341 goto error_unref_notifier;
342 }
343 kernel_name = xstrdup(name);
344 #else
345 /*
346 * NetBSD doesn't support inteface renaming.
347 */
348 VLOG_INFO("tap %s is created for bridge %s", ifr.ifr_name, name);
349 kernel_name = xstrdup(ifr.ifr_name);
350 #endif
351
352 /* set non-blocking. */
353 error = set_nonblocking(netdev->tap_fd);
354 if (error) {
355 destroy_tap(netdev->tap_fd, kernel_name);
356 goto error_unref_notifier;
357 }
358
359 /* Turn device UP */
360 ifr_set_flags(&ifr, IFF_UP);
361 ovs_strlcpy(ifr.ifr_name, kernel_name, sizeof ifr.ifr_name);
362 error = af_inet_ioctl(SIOCSIFFLAGS, &ifr);
363 if (error) {
364 destroy_tap(netdev->tap_fd, kernel_name);
365 goto error_unref_notifier;
366 }
367
368 netdev->kernel_name = kernel_name;
369
370 return 0;
371
372 error_unref_notifier:
373 ovs_mutex_destroy(&netdev->mutex);
374 cache_notifier_unref();
375 error:
376 free(kernel_name);
377 return error;
378 }
379
380 static void
381 netdev_bsd_destruct(struct netdev *netdev_)
382 {
383 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
384
385 cache_notifier_unref();
386
387 if (netdev->tap_fd >= 0) {
388 destroy_tap(netdev->tap_fd, netdev_get_kernel_name(netdev_));
389 }
390 if (netdev->pcap) {
391 pcap_close(netdev->pcap);
392 }
393 free(netdev->kernel_name);
394 ovs_mutex_destroy(&netdev->mutex);
395 }
396
397 static void
398 netdev_bsd_dealloc(struct netdev *netdev_)
399 {
400 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
401
402 free(netdev);
403 }
404
405 static int
406 netdev_bsd_open_pcap(const char *name, pcap_t **pcapp, int *fdp)
407 {
408 char errbuf[PCAP_ERRBUF_SIZE];
409 pcap_t *pcap = NULL;
410 int one = 1;
411 int error;
412 int fd;
413
414 /* Open the pcap device. The device is opened in non-promiscuous mode
415 * because the interface flags are manually set by the caller. */
416 errbuf[0] = '\0';
417 pcap = pcap_open_live(name, PCAP_SNAPLEN, 0, 1000, errbuf);
418 if (!pcap) {
419 VLOG_ERR_RL(&rl, "%s: pcap_open_live failed: %s", name, errbuf);
420 error = EIO;
421 goto error;
422 }
423 if (errbuf[0] != '\0') {
424 VLOG_WARN_RL(&rl, "%s: pcap_open_live: %s", name, errbuf);
425 }
426
427 /* Get the underlying fd. */
428 fd = pcap_get_selectable_fd(pcap);
429 if (fd == -1) {
430 VLOG_WARN_RL(&rl, "%s: no selectable file descriptor", name);
431 error = errno;
432 goto error;
433 }
434
435 /* Set non-blocking mode. Also the BIOCIMMEDIATE ioctl must be called
436 * on the file descriptor returned by pcap_get_selectable_fd to achieve
437 * a real non-blocking behaviour.*/
438 error = pcap_setnonblock(pcap, 1, errbuf);
439 if (error == -1) {
440 error = errno;
441 goto error;
442 }
443
444 /* This call assure that reads return immediately upon packet
445 * reception. Otherwise, a read will block until either the kernel
446 * buffer becomes full or a timeout occurs. */
447 if (ioctl(fd, BIOCIMMEDIATE, &one) < 0 ) {
448 VLOG_ERR_RL(&rl, "ioctl(BIOCIMMEDIATE) on %s device failed: %s",
449 name, ovs_strerror(errno));
450 error = errno;
451 goto error;
452 }
453
454 /* Capture only incoming packets. */
455 error = pcap_setdirection(pcap, PCAP_D_IN);
456 if (error == -1) {
457 error = errno;
458 goto error;
459 }
460
461 *pcapp = pcap;
462 *fdp = fd;
463 return 0;
464
465 error:
466 if (pcap) {
467 pcap_close(pcap);
468 }
469 *pcapp = NULL;
470 *fdp = -1;
471 return error;
472 }
473
474 static struct netdev_rxq *
475 netdev_bsd_rxq_alloc(void)
476 {
477 struct netdev_rxq_bsd *rxq = xzalloc(sizeof *rxq);
478 return &rxq->up;
479 }
480
481 static int
482 netdev_bsd_rxq_construct(struct netdev_rxq *rxq_)
483 {
484 struct netdev_rxq_bsd *rxq = netdev_rxq_bsd_cast(rxq_);
485 struct netdev *netdev_ = rxq->up.netdev;
486 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
487 int error;
488
489 if (!strcmp(netdev_get_type(netdev_), "tap")) {
490 rxq->pcap_handle = NULL;
491 rxq->fd = netdev->tap_fd;
492 error = 0;
493 } else {
494 ovs_mutex_lock(&netdev->mutex);
495 error = netdev_bsd_open_pcap(netdev_get_kernel_name(netdev_),
496 &rxq->pcap_handle, &rxq->fd);
497 ovs_mutex_unlock(&netdev->mutex);
498 }
499
500 return error;
501 }
502
503 static void
504 netdev_bsd_rxq_destruct(struct netdev_rxq *rxq_)
505 {
506 struct netdev_rxq_bsd *rxq = netdev_rxq_bsd_cast(rxq_);
507
508 if (rxq->pcap_handle) {
509 pcap_close(rxq->pcap_handle);
510 }
511 }
512
513 static void
514 netdev_bsd_rxq_dealloc(struct netdev_rxq *rxq_)
515 {
516 struct netdev_rxq_bsd *rxq = netdev_rxq_bsd_cast(rxq_);
517
518 free(rxq);
519 }
520
521 /* The recv callback of the netdev class returns the number of bytes of the
522 * received packet.
523 *
524 * This can be done by the pcap_next() function. Unfortunately pcap_next() does
525 * not make difference between a missing packet on the capture interface and
526 * an error during the file capture. We can use the pcap_dispatch() function
527 * instead, which is able to distinguish between errors and null packet.
528 *
529 * To make pcap_dispatch() returns the number of bytes read from the interface
530 * we need to define the following callback and argument.
531 */
532 struct pcap_arg {
533 void *data;
534 int size;
535 int retval;
536 };
537
538 /*
539 * This callback will be executed on every captured packet.
540 *
541 * If the packet captured by pcap_dispatch() does not fit the pcap buffer,
542 * pcap returns a truncated packet and we follow this behavior.
543 *
544 * The argument args->retval is the packet size in bytes.
545 */
546 static void
547 proc_pkt(u_char *args_, const struct pcap_pkthdr *hdr, const u_char *packet)
548 {
549 struct pcap_arg *args = ALIGNED_CAST(struct pcap_arg *, args_);
550
551 if (args->size < hdr->len) {
552 VLOG_WARN_RL(&rl, "packet truncated");
553 args->retval = args->size;
554 } else {
555 args->retval = hdr->len;
556 }
557
558 /* copy the packet to our buffer */
559 memcpy(args->data, packet, args->retval);
560 }
561
562 /*
563 * This function attempts to receive a packet from the specified network
564 * device. It is assumed that the network device is a system device or a tap
565 * device opened as a system one. In this case the read operation is performed
566 * from rxq->pcap.
567 */
568 static int
569 netdev_rxq_bsd_recv_pcap(struct netdev_rxq_bsd *rxq, struct dp_packet *buffer)
570 {
571 struct pcap_arg arg;
572 int ret;
573
574 /* prepare the pcap argument to store the packet */
575 arg.size = dp_packet_tailroom(buffer);
576 arg.data = dp_packet_data(buffer);
577
578 for (;;) {
579 ret = pcap_dispatch(rxq->pcap_handle, 1, proc_pkt, (u_char *) &arg);
580
581 if (ret > 0) {
582 dp_packet_set_size(buffer, dp_packet_size(buffer) + arg.retval);
583 return 0;
584 }
585 if (ret == -1) {
586 if (errno == EINTR) {
587 continue;
588 }
589 }
590
591 return EAGAIN;
592 }
593 }
594
595 /*
596 * This function attempts to receive a packet from the specified network
597 * device. It is assumed that the network device is a tap device and
598 * 'rxq->fd' is initialized with the tap file descriptor.
599 */
600 static int
601 netdev_rxq_bsd_recv_tap(struct netdev_rxq_bsd *rxq, struct dp_packet *buffer)
602 {
603 size_t size = dp_packet_tailroom(buffer);
604
605 for (;;) {
606 ssize_t retval = read(rxq->fd, dp_packet_data(buffer), size);
607 if (retval >= 0) {
608 dp_packet_set_size(buffer, dp_packet_size(buffer) + retval);
609 return 0;
610 } else if (errno != EINTR) {
611 if (errno != EAGAIN) {
612 VLOG_WARN_RL(&rl, "error receiving Ethernet packet on %s: %s",
613 ovs_strerror(errno), netdev_rxq_get_name(&rxq->up));
614 }
615 return errno;
616 }
617 }
618 }
619
620 static int
621 netdev_bsd_rxq_recv(struct netdev_rxq *rxq_, struct dp_packet **packets,
622 int *c)
623 {
624 struct netdev_rxq_bsd *rxq = netdev_rxq_bsd_cast(rxq_);
625 struct netdev *netdev = rxq->up.netdev;
626 struct dp_packet *packet;
627 ssize_t retval;
628 int mtu;
629
630 if (netdev_bsd_get_mtu(netdev, &mtu)) {
631 mtu = ETH_PAYLOAD_MAX;
632 }
633
634 packet = dp_packet_new_with_headroom(VLAN_ETH_HEADER_LEN + mtu,
635 DP_NETDEV_HEADROOM);
636 retval = (rxq->pcap_handle
637 ? netdev_rxq_bsd_recv_pcap(rxq, packet)
638 : netdev_rxq_bsd_recv_tap(rxq, packet));
639
640 if (retval) {
641 dp_packet_delete(packet);
642 } else {
643 dp_packet_pad(packet);
644 packets[0] = packet;
645 *c = 1;
646 }
647 return retval;
648 }
649
650 /*
651 * Registers with the poll loop to wake up from the next call to poll_block()
652 * when a packet is ready to be received with netdev_rxq_recv() on 'rxq'.
653 */
654 static void
655 netdev_bsd_rxq_wait(struct netdev_rxq *rxq_)
656 {
657 struct netdev_rxq_bsd *rxq = netdev_rxq_bsd_cast(rxq_);
658
659 poll_fd_wait(rxq->fd, POLLIN);
660 }
661
662 /* Discards all packets waiting to be received from 'rxq'. */
663 static int
664 netdev_bsd_rxq_drain(struct netdev_rxq *rxq_)
665 {
666 struct ifreq ifr;
667 struct netdev_rxq_bsd *rxq = netdev_rxq_bsd_cast(rxq_);
668
669 strcpy(ifr.ifr_name, netdev_get_kernel_name(netdev_rxq_get_netdev(rxq_)));
670 if (ioctl(rxq->fd, BIOCFLUSH, &ifr) == -1) {
671 VLOG_DBG_RL(&rl, "%s: ioctl(BIOCFLUSH) failed: %s",
672 netdev_rxq_get_name(rxq_), ovs_strerror(errno));
673 return errno;
674 }
675 return 0;
676 }
677
678 /*
679 * Send a packet on the specified network device. The device could be either a
680 * system or a tap device.
681 */
682 static int
683 netdev_bsd_send(struct netdev *netdev_, int qid OVS_UNUSED,
684 struct dp_packet **pkts, int cnt, bool may_steal)
685 {
686 struct netdev_bsd *dev = netdev_bsd_cast(netdev_);
687 const char *name = netdev_get_name(netdev_);
688 int error;
689 int i;
690
691 ovs_mutex_lock(&dev->mutex);
692 if (dev->tap_fd < 0 && !dev->pcap) {
693 error = netdev_bsd_open_pcap(name, &dev->pcap, &dev->fd);
694 } else {
695 error = 0;
696 }
697
698 for (i = 0; i < cnt; i++) {
699 const void *data = dp_packet_data(pkts[i]);
700 size_t size = dp_packet_size(pkts[i]);
701
702 while (!error) {
703 ssize_t retval;
704 if (dev->tap_fd >= 0) {
705 retval = write(dev->tap_fd, data, size);
706 } else {
707 retval = pcap_inject(dev->pcap, data, size);
708 }
709 if (retval < 0) {
710 if (errno == EINTR) {
711 continue;
712 } else {
713 error = errno;
714 if (error != EAGAIN) {
715 VLOG_WARN_RL(&rl, "error sending Ethernet packet on"
716 " %s: %s", name, ovs_strerror(error));
717 }
718 }
719 } else if (retval != size) {
720 VLOG_WARN_RL(&rl, "sent partial Ethernet packet "
721 "(%"PRIuSIZE" bytes of "
722 "%"PRIuSIZE") on %s", retval, size, name);
723 error = EMSGSIZE;
724 } else {
725 break;
726 }
727 }
728 }
729
730 ovs_mutex_unlock(&dev->mutex);
731 if (may_steal) {
732 for (i = 0; i < cnt; i++) {
733 dp_packet_delete(pkts[i]);
734 }
735 }
736
737 return error;
738 }
739
740 /*
741 * Registers with the poll loop to wake up from the next call to poll_block()
742 * when the packet transmission queue has sufficient room to transmit a packet
743 * with netdev_send().
744 */
745 static void
746 netdev_bsd_send_wait(struct netdev *netdev_, int qid OVS_UNUSED)
747 {
748 struct netdev_bsd *dev = netdev_bsd_cast(netdev_);
749
750 ovs_mutex_lock(&dev->mutex);
751 if (dev->tap_fd >= 0) {
752 /* TAP device always accepts packets. */
753 poll_immediate_wake();
754 } else if (dev->pcap) {
755 poll_fd_wait(dev->fd, POLLOUT);
756 } else {
757 /* We haven't even tried to send a packet yet. */
758 poll_immediate_wake();
759 }
760 ovs_mutex_unlock(&dev->mutex);
761 }
762
763 /*
764 * Attempts to set 'netdev''s MAC address to 'mac'. Returns 0 if successful,
765 * otherwise a positive errno value.
766 */
767 static int
768 netdev_bsd_set_etheraddr(struct netdev *netdev_,
769 const struct eth_addr mac)
770 {
771 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
772 int error = 0;
773
774 ovs_mutex_lock(&netdev->mutex);
775 if (!(netdev->cache_valid & VALID_ETHERADDR)
776 || !eth_addr_equals(netdev->etheraddr, mac)) {
777 error = set_etheraddr(netdev_get_kernel_name(netdev_), AF_LINK,
778 ETH_ADDR_LEN, mac);
779 if (!error) {
780 netdev->cache_valid |= VALID_ETHERADDR;
781 netdev->etheraddr = mac;
782 netdev_change_seq_changed(netdev_);
783 }
784 }
785 ovs_mutex_unlock(&netdev->mutex);
786
787 return error;
788 }
789
790 /*
791 * Returns a pointer to 'netdev''s MAC address. The caller must not modify or
792 * free the returned buffer.
793 */
794 static int
795 netdev_bsd_get_etheraddr(const struct netdev *netdev_, struct eth_addr *mac)
796 {
797 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
798 int error = 0;
799
800 ovs_mutex_lock(&netdev->mutex);
801 if (!(netdev->cache_valid & VALID_ETHERADDR)) {
802 error = get_etheraddr(netdev_get_kernel_name(netdev_),
803 &netdev->etheraddr);
804 if (!error) {
805 netdev->cache_valid |= VALID_ETHERADDR;
806 }
807 }
808 if (!error) {
809 *mac = netdev->etheraddr;
810 }
811 ovs_mutex_unlock(&netdev->mutex);
812
813 return error;
814 }
815
816 /*
817 * Returns the maximum size of transmitted (and received) packets on 'netdev',
818 * in bytes, not including the hardware header; thus, this is typically 1500
819 * bytes for Ethernet devices.
820 */
821 static int
822 netdev_bsd_get_mtu(const struct netdev *netdev_, int *mtup)
823 {
824 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
825 int error = 0;
826
827 ovs_mutex_lock(&netdev->mutex);
828 if (!(netdev->cache_valid & VALID_MTU)) {
829 struct ifreq ifr;
830
831 error = af_inet_ifreq_ioctl(netdev_get_kernel_name(netdev_), &ifr,
832 SIOCGIFMTU, "SIOCGIFMTU");
833 if (!error) {
834 netdev->mtu = ifr.ifr_mtu;
835 netdev->cache_valid |= VALID_MTU;
836 }
837 }
838 if (!error) {
839 *mtup = netdev->mtu;
840 }
841 ovs_mutex_unlock(&netdev->mutex);
842
843 return error;
844 }
845
846 static int
847 netdev_bsd_get_ifindex(const struct netdev *netdev_)
848 {
849 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
850 int ifindex, error;
851
852 ovs_mutex_lock(&netdev->mutex);
853 error = get_ifindex(netdev_, &ifindex);
854 ovs_mutex_unlock(&netdev->mutex);
855
856 return error ? -error : ifindex;
857 }
858
859 static int
860 netdev_bsd_get_carrier(const struct netdev *netdev_, bool *carrier)
861 {
862 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
863 int error = 0;
864
865 ovs_mutex_lock(&netdev->mutex);
866 if (!(netdev->cache_valid & VALID_CARRIER)) {
867 struct ifmediareq ifmr;
868
869 memset(&ifmr, 0, sizeof(ifmr));
870 ovs_strlcpy(ifmr.ifm_name, netdev_get_kernel_name(netdev_),
871 sizeof ifmr.ifm_name);
872
873 error = af_inet_ioctl(SIOCGIFMEDIA, &ifmr);
874 if (!error) {
875 netdev->carrier = (ifmr.ifm_status & IFM_ACTIVE) == IFM_ACTIVE;
876 netdev->cache_valid |= VALID_CARRIER;
877
878 /* If the interface doesn't report whether the media is active,
879 * just assume it is active. */
880 if ((ifmr.ifm_status & IFM_AVALID) == 0) {
881 netdev->carrier = true;
882 }
883 } else {
884 VLOG_DBG_RL(&rl, "%s: ioctl(SIOCGIFMEDIA) failed: %s",
885 netdev_get_name(netdev_), ovs_strerror(error));
886 }
887 }
888 if (!error) {
889 *carrier = netdev->carrier;
890 }
891 ovs_mutex_unlock(&netdev->mutex);
892
893 return error;
894 }
895
896 static void
897 convert_stats_system(struct netdev_stats *stats, const struct if_data *ifd)
898 {
899 /*
900 * note: UINT64_MAX means unsupported
901 */
902 stats->rx_packets = ifd->ifi_ipackets;
903 stats->tx_packets = ifd->ifi_opackets;
904 stats->rx_bytes = ifd->ifi_obytes;
905 stats->tx_bytes = ifd->ifi_ibytes;
906 stats->rx_errors = ifd->ifi_ierrors;
907 stats->tx_errors = ifd->ifi_oerrors;
908 stats->rx_dropped = ifd->ifi_iqdrops;
909 stats->tx_dropped = UINT64_MAX;
910 stats->multicast = ifd->ifi_imcasts;
911 stats->collisions = ifd->ifi_collisions;
912 stats->rx_length_errors = UINT64_MAX;
913 stats->rx_over_errors = UINT64_MAX;
914 stats->rx_crc_errors = UINT64_MAX;
915 stats->rx_frame_errors = UINT64_MAX;
916 stats->rx_fifo_errors = UINT64_MAX;
917 stats->rx_missed_errors = UINT64_MAX;
918 stats->tx_aborted_errors = UINT64_MAX;
919 stats->tx_carrier_errors = UINT64_MAX;
920 stats->tx_fifo_errors = UINT64_MAX;
921 stats->tx_heartbeat_errors = UINT64_MAX;
922 stats->tx_window_errors = UINT64_MAX;
923 }
924
925 static void
926 convert_stats_tap(struct netdev_stats *stats, const struct if_data *ifd)
927 {
928 /*
929 * Similar to convert_stats_system but swapping rxq and tx
930 * because 'ifd' is stats for the network interface side of the
931 * tap device and what the caller wants is one for the character
932 * device side.
933 *
934 * note: UINT64_MAX means unsupported
935 */
936 stats->rx_packets = ifd->ifi_opackets;
937 stats->tx_packets = ifd->ifi_ipackets;
938 stats->rx_bytes = ifd->ifi_ibytes;
939 stats->tx_bytes = ifd->ifi_obytes;
940 stats->rx_errors = ifd->ifi_oerrors;
941 stats->tx_errors = ifd->ifi_ierrors;
942 stats->rx_dropped = UINT64_MAX;
943 stats->tx_dropped = ifd->ifi_iqdrops;
944 stats->multicast = ifd->ifi_omcasts;
945 stats->collisions = UINT64_MAX;
946 stats->rx_length_errors = UINT64_MAX;
947 stats->rx_over_errors = UINT64_MAX;
948 stats->rx_crc_errors = UINT64_MAX;
949 stats->rx_frame_errors = UINT64_MAX;
950 stats->rx_fifo_errors = UINT64_MAX;
951 stats->rx_missed_errors = UINT64_MAX;
952 stats->tx_aborted_errors = UINT64_MAX;
953 stats->tx_carrier_errors = UINT64_MAX;
954 stats->tx_fifo_errors = UINT64_MAX;
955 stats->tx_heartbeat_errors = UINT64_MAX;
956 stats->tx_window_errors = UINT64_MAX;
957 }
958
959 static void
960 convert_stats(const struct netdev *netdev, struct netdev_stats *stats,
961 const struct if_data *ifd)
962 {
963 if (netdev_bsd_cast(netdev)->tap_fd == -1) {
964 convert_stats_system(stats, ifd);
965 } else {
966 convert_stats_tap(stats, ifd);
967 }
968 }
969
970 /* Retrieves current device stats for 'netdev'. */
971 static int
972 netdev_bsd_get_stats(const struct netdev *netdev_, struct netdev_stats *stats)
973 {
974 #if defined(__FreeBSD__)
975 int if_count, i;
976 int mib[6];
977 size_t len;
978 struct ifmibdata ifmd;
979
980
981 mib[0] = CTL_NET;
982 mib[1] = PF_LINK;
983 mib[2] = NETLINK_GENERIC;
984 mib[3] = IFMIB_SYSTEM;
985 mib[4] = IFMIB_IFCOUNT;
986
987 len = sizeof(if_count);
988
989 if (sysctl(mib, 5, &if_count, &len, (void *)0, 0) == -1) {
990 VLOG_DBG_RL(&rl, "%s: sysctl failed: %s",
991 netdev_get_name(netdev_), ovs_strerror(errno));
992 return errno;
993 }
994
995 mib[5] = IFDATA_GENERAL;
996 mib[3] = IFMIB_IFDATA;
997 len = sizeof(ifmd);
998 for (i = 1; i <= if_count; i++) {
999 mib[4] = i; //row
1000 if (sysctl(mib, 6, &ifmd, &len, (void *)0, 0) == -1) {
1001 VLOG_DBG_RL(&rl, "%s: sysctl failed: %s",
1002 netdev_get_name(netdev_), ovs_strerror(errno));
1003 return errno;
1004 } else if (!strcmp(ifmd.ifmd_name, netdev_get_name(netdev_))) {
1005 convert_stats(netdev_, stats, &ifmd.ifmd_data);
1006 break;
1007 }
1008 }
1009
1010 return 0;
1011 #elif defined(__NetBSD__)
1012 struct ifdatareq ifdr;
1013 int error;
1014
1015 memset(&ifdr, 0, sizeof(ifdr));
1016 ovs_strlcpy(ifdr.ifdr_name, netdev_get_kernel_name(netdev_),
1017 sizeof(ifdr.ifdr_name));
1018 error = af_link_ioctl(SIOCGIFDATA, &ifdr);
1019 if (!error) {
1020 convert_stats(netdev_, stats, &ifdr.ifdr_data);
1021 }
1022 return error;
1023 #else
1024 #error not implemented
1025 #endif
1026 }
1027
1028 static uint32_t
1029 netdev_bsd_parse_media(int media)
1030 {
1031 uint32_t supported = 0;
1032 bool half_duplex = media & IFM_HDX ? true : false;
1033
1034 switch (IFM_SUBTYPE(media)) {
1035 case IFM_10_2:
1036 case IFM_10_5:
1037 case IFM_10_STP:
1038 case IFM_10_T:
1039 supported |= half_duplex ? NETDEV_F_10MB_HD : NETDEV_F_10MB_FD;
1040 supported |= NETDEV_F_COPPER;
1041 break;
1042
1043 case IFM_10_FL:
1044 supported |= half_duplex ? NETDEV_F_10MB_HD : NETDEV_F_10MB_FD;
1045 supported |= NETDEV_F_FIBER;
1046 break;
1047
1048 case IFM_100_T2:
1049 case IFM_100_T4:
1050 case IFM_100_TX:
1051 case IFM_100_VG:
1052 supported |= half_duplex ? NETDEV_F_100MB_HD : NETDEV_F_100MB_FD;
1053 supported |= NETDEV_F_COPPER;
1054 break;
1055
1056 case IFM_100_FX:
1057 supported |= half_duplex ? NETDEV_F_100MB_HD : NETDEV_F_100MB_FD;
1058 supported |= NETDEV_F_FIBER;
1059 break;
1060
1061 case IFM_1000_CX:
1062 case IFM_1000_T:
1063 supported |= half_duplex ? NETDEV_F_1GB_HD : NETDEV_F_1GB_FD;
1064 supported |= NETDEV_F_COPPER;
1065 break;
1066
1067 case IFM_1000_LX:
1068 case IFM_1000_SX:
1069 supported |= half_duplex ? NETDEV_F_1GB_HD : NETDEV_F_1GB_FD;
1070 supported |= NETDEV_F_FIBER;
1071 break;
1072
1073 case IFM_10G_CX4:
1074 supported |= NETDEV_F_10GB_FD;
1075 supported |= NETDEV_F_COPPER;
1076 break;
1077
1078 case IFM_10G_LR:
1079 case IFM_10G_SR:
1080 supported |= NETDEV_F_10GB_FD;
1081 supported |= NETDEV_F_FIBER;
1082 break;
1083
1084 default:
1085 return 0;
1086 }
1087
1088 if (IFM_SUBTYPE(media) == IFM_AUTO) {
1089 supported |= NETDEV_F_AUTONEG;
1090 }
1091 /*
1092 if (media & IFM_ETH_FMASK) {
1093 supported |= NETDEV_F_PAUSE;
1094 }
1095 */
1096
1097 return supported;
1098 }
1099
1100 /*
1101 * Stores the features supported by 'netdev' into each of '*current',
1102 * '*advertised', '*supported', and '*peer' that are non-null. Each value is a
1103 * bitmap of "enum ofp_port_features" bits, in host byte order. Returns 0 if
1104 * successful, otherwise a positive errno value. On failure, all of the
1105 * passed-in values are set to 0.
1106 */
1107 static int
1108 netdev_bsd_get_features(const struct netdev *netdev,
1109 enum netdev_features *current, uint32_t *advertised,
1110 enum netdev_features *supported, uint32_t *peer)
1111 {
1112 struct ifmediareq ifmr;
1113 int *media_list;
1114 int i;
1115 int error;
1116
1117
1118 /* XXX Look into SIOCGIFCAP instead of SIOCGIFMEDIA */
1119
1120 memset(&ifmr, 0, sizeof(ifmr));
1121 ovs_strlcpy(ifmr.ifm_name, netdev_get_name(netdev), sizeof ifmr.ifm_name);
1122
1123 /* We make two SIOCGIFMEDIA ioctl calls. The first to determine the
1124 * number of supported modes, and a second with a buffer to retrieve
1125 * them. */
1126 error = af_inet_ioctl(SIOCGIFMEDIA, &ifmr);
1127 if (error) {
1128 VLOG_DBG_RL(&rl, "%s: ioctl(SIOCGIFMEDIA) failed: %s",
1129 netdev_get_name(netdev), ovs_strerror(error));
1130 return error;
1131 }
1132
1133 media_list = xcalloc(ifmr.ifm_count, sizeof(int));
1134 ifmr.ifm_ulist = media_list;
1135
1136 if (IFM_TYPE(ifmr.ifm_current) != IFM_ETHER) {
1137 VLOG_DBG_RL(&rl, "%s: doesn't appear to be ethernet",
1138 netdev_get_name(netdev));
1139 error = EINVAL;
1140 goto cleanup;
1141 }
1142
1143 error = af_inet_ioctl(SIOCGIFMEDIA, &ifmr);
1144 if (error) {
1145 VLOG_DBG_RL(&rl, "%s: ioctl(SIOCGIFMEDIA) failed: %s",
1146 netdev_get_name(netdev), ovs_strerror(error));
1147 goto cleanup;
1148 }
1149
1150 /* Current settings. */
1151 *current = netdev_bsd_parse_media(ifmr.ifm_active);
1152
1153 /* Advertised features. */
1154 *advertised = netdev_bsd_parse_media(ifmr.ifm_current);
1155
1156 /* Supported features. */
1157 *supported = 0;
1158 for (i = 0; i < ifmr.ifm_count; i++) {
1159 *supported |= netdev_bsd_parse_media(ifmr.ifm_ulist[i]);
1160 }
1161
1162 /* Peer advertisements. */
1163 *peer = 0; /* XXX */
1164
1165 error = 0;
1166 cleanup:
1167 free(media_list);
1168 return error;
1169 }
1170
1171 /*
1172 * Assigns 'addr' as 'netdev''s IPv4 address and 'mask' as its netmask. If
1173 * 'addr' is INADDR_ANY, 'netdev''s IPv4 address is cleared. Returns a
1174 * positive errno value.
1175 */
1176 static int
1177 netdev_bsd_set_in4(struct netdev *netdev_, struct in_addr addr,
1178 struct in_addr mask)
1179 {
1180 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
1181 int error;
1182
1183 ovs_mutex_lock(&netdev->mutex);
1184 error = do_set_addr(netdev_, SIOCSIFADDR, "SIOCSIFADDR", addr);
1185 if (!error) {
1186 if (addr.s_addr != INADDR_ANY) {
1187 error = do_set_addr(netdev_, SIOCSIFNETMASK,
1188 "SIOCSIFNETMASK", mask);
1189 }
1190 netdev_change_seq_changed(netdev_);
1191 }
1192 ovs_mutex_unlock(&netdev->mutex);
1193
1194 return error;
1195 }
1196
1197 static int
1198 netdev_bsd_get_addr_list(const struct netdev *netdev_,
1199 struct in6_addr **addr, struct in6_addr **mask, int *n_cnt)
1200 {
1201 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
1202 int error;
1203
1204 if (!(netdev->cache_valid & VALID_IN)) {
1205 netdev_get_addrs_list_flush();
1206 }
1207 error = netdev_get_addrs(netdev_get_name(netdev_), addr, mask, n_cnt);
1208 if (!error) {
1209 netdev->cache_valid |= VALID_IN;
1210 }
1211 return error;
1212 }
1213
1214 #if defined(__NetBSD__)
1215 static char *
1216 netdev_bsd_kernel_name_to_ovs_name(const char *kernel_name)
1217 {
1218 char *ovs_name = NULL;
1219 struct shash device_shash;
1220 struct shash_node *node;
1221
1222 shash_init(&device_shash);
1223 netdev_get_devices(&netdev_tap_class, &device_shash);
1224 SHASH_FOR_EACH(node, &device_shash) {
1225 struct netdev *netdev = node->data;
1226 struct netdev_bsd * const dev = netdev_bsd_cast(netdev);
1227
1228 if (!strcmp(dev->kernel_name, kernel_name)) {
1229 free(ovs_name);
1230 ovs_name = xstrdup(netdev_get_name(&dev->up));
1231 }
1232 netdev_close(netdev);
1233 }
1234 shash_destroy(&device_shash);
1235
1236 return ovs_name ? ovs_name : xstrdup(kernel_name);
1237 }
1238 #endif
1239
1240 static int
1241 netdev_bsd_get_next_hop(const struct in_addr *host OVS_UNUSED,
1242 struct in_addr *next_hop OVS_UNUSED,
1243 char **netdev_name OVS_UNUSED)
1244 {
1245 #if defined(__NetBSD__)
1246 static int seq = 0;
1247 struct sockaddr_in sin;
1248 struct sockaddr_dl sdl;
1249 int s;
1250 int i;
1251 struct {
1252 struct rt_msghdr h;
1253 char space[512];
1254 } buf;
1255 struct rt_msghdr *rtm = &buf.h;
1256 const pid_t pid = getpid();
1257 char *cp;
1258 ssize_t ssz;
1259 bool gateway = false;
1260 char *ifname = NULL;
1261 int saved_errno;
1262
1263 memset(next_hop, 0, sizeof(*next_hop));
1264 *netdev_name = NULL;
1265
1266 memset(&sin, 0, sizeof(sin));
1267 sin.sin_len = sizeof(sin);
1268 sin.sin_family = AF_INET;
1269 sin.sin_port = 0;
1270 sin.sin_addr = *host;
1271
1272 memset(&sdl, 0, sizeof(sdl));
1273 sdl.sdl_len = sizeof(sdl);
1274 sdl.sdl_family = AF_LINK;
1275
1276 s = socket(PF_ROUTE, SOCK_RAW, 0);
1277 memset(&buf, 0, sizeof(buf));
1278 rtm->rtm_flags = RTF_HOST|RTF_UP;
1279 rtm->rtm_version = RTM_VERSION;
1280 rtm->rtm_addrs = RTA_DST|RTA_IFP;
1281 cp = (void *)&buf.space;
1282 memcpy(cp, &sin, sizeof(sin));
1283 RT_ADVANCE(cp, (struct sockaddr *)(void *)&sin);
1284 memcpy(cp, &sdl, sizeof(sdl));
1285 RT_ADVANCE(cp, (struct sockaddr *)(void *)&sdl);
1286 rtm->rtm_msglen = cp - (char *)(void *)rtm;
1287 rtm->rtm_seq = ++seq;
1288 rtm->rtm_type = RTM_GET;
1289 rtm->rtm_pid = pid;
1290 write(s, rtm, rtm->rtm_msglen);
1291 memset(&buf, 0, sizeof(buf));
1292 do {
1293 ssz = read(s, &buf, sizeof(buf));
1294 } while (ssz > 0 && (rtm->rtm_seq != seq || rtm->rtm_pid != pid));
1295 saved_errno = errno;
1296 close(s);
1297 if (ssz <= 0) {
1298 if (ssz < 0) {
1299 return saved_errno;
1300 }
1301 return EPIPE; /* XXX */
1302 }
1303 cp = (void *)&buf.space;
1304 for (i = 1; i; i <<= 1) {
1305 if ((rtm->rtm_addrs & i) != 0) {
1306 const struct sockaddr *sa = (const void *)cp;
1307
1308 if ((i == RTA_GATEWAY) && sa->sa_family == AF_INET) {
1309 const struct sockaddr_in * const sin =
1310 ALIGNED_CAST(const struct sockaddr_in *, sa);
1311
1312 *next_hop = sin->sin_addr;
1313 gateway = true;
1314 }
1315 if ((i == RTA_IFP) && sa->sa_family == AF_LINK) {
1316 const struct sockaddr_dl * const sdl =
1317 ALIGNED_CAST(const struct sockaddr_dl *, sa);
1318 char *kernel_name;
1319
1320 kernel_name = xmemdup0(sdl->sdl_data, sdl->sdl_nlen);
1321 ifname = netdev_bsd_kernel_name_to_ovs_name(kernel_name);
1322 free(kernel_name);
1323 }
1324 RT_ADVANCE(cp, sa);
1325 }
1326 }
1327 if (ifname == NULL) {
1328 return ENXIO;
1329 }
1330 if (!gateway) {
1331 *next_hop = *host;
1332 }
1333 *netdev_name = ifname;
1334 VLOG_DBG("host " IP_FMT " next-hop " IP_FMT " if %s",
1335 IP_ARGS(host->s_addr), IP_ARGS(next_hop->s_addr), *netdev_name);
1336 return 0;
1337 #else
1338 return EOPNOTSUPP;
1339 #endif
1340 }
1341
1342 static int
1343 netdev_bsd_arp_lookup(const struct netdev *netdev OVS_UNUSED,
1344 ovs_be32 ip OVS_UNUSED,
1345 struct eth_addr *mac OVS_UNUSED)
1346 {
1347 #if defined(__NetBSD__)
1348 const struct rt_msghdr *rtm;
1349 size_t needed;
1350 char *buf;
1351 const char *cp;
1352 const char *ep;
1353 int mib[6];
1354 int error;
1355
1356 buf = NULL;
1357 mib[0] = CTL_NET;
1358 mib[1] = PF_ROUTE;
1359 mib[2] = 0;
1360 mib[3] = AF_INET;
1361 mib[4] = NET_RT_FLAGS;
1362 mib[5] = RTF_LLINFO;
1363 if (sysctl(mib, 6, NULL, &needed, NULL, 0) == -1) {
1364 error = errno;
1365 goto error;
1366 }
1367 buf = xmalloc(needed);
1368 if (sysctl(mib, 6, buf, &needed, NULL, 0) == -1) {
1369 error = errno;
1370 goto error;
1371 }
1372 ep = buf + needed;
1373 for (cp = buf; cp < ep; cp += rtm->rtm_msglen) {
1374 const struct sockaddr_inarp *sina;
1375 const struct sockaddr_dl *sdl;
1376
1377 rtm = (const void *)cp;
1378 sina = (const void *)(rtm + 1);
1379 if (ip != sina->sin_addr.s_addr) {
1380 continue;
1381 }
1382 sdl = (const void *)
1383 ((const char *)(const void *)sina + RT_ROUNDUP(sina->sin_len));
1384 if (sdl->sdl_alen == ETH_ADDR_LEN) {
1385 memcpy(mac, &sdl->sdl_data[sdl->sdl_nlen], ETH_ADDR_LEN);
1386 error = 0;
1387 goto error;
1388 }
1389 }
1390 error = ENXIO;
1391 error:
1392 free(buf);
1393 return error;
1394 #else
1395 return EOPNOTSUPP;
1396 #endif
1397 }
1398
1399 static void
1400 make_in4_sockaddr(struct sockaddr *sa, struct in_addr addr)
1401 {
1402 struct sockaddr_in sin;
1403 memset(&sin, 0, sizeof sin);
1404 sin.sin_family = AF_INET;
1405 sin.sin_addr = addr;
1406 sin.sin_port = 0;
1407
1408 memset(sa, 0, sizeof *sa);
1409 memcpy(sa, &sin, sizeof sin);
1410 }
1411
1412 static int
1413 do_set_addr(struct netdev *netdev,
1414 unsigned long ioctl_nr, const char *ioctl_name,
1415 struct in_addr addr)
1416 {
1417 struct ifreq ifr;
1418 make_in4_sockaddr(&ifr.ifr_addr, addr);
1419 return af_inet_ifreq_ioctl(netdev_get_kernel_name(netdev), &ifr, ioctl_nr,
1420 ioctl_name);
1421 }
1422
1423 static int
1424 nd_to_iff_flags(enum netdev_flags nd)
1425 {
1426 int iff = 0;
1427 if (nd & NETDEV_UP) {
1428 iff |= IFF_UP;
1429 }
1430 if (nd & NETDEV_PROMISC) {
1431 iff |= IFF_PROMISC;
1432 #if defined(IFF_PPROMISC)
1433 iff |= IFF_PPROMISC;
1434 #endif
1435 }
1436 if (nd & NETDEV_LOOPBACK) {
1437 iff |= IFF_LOOPBACK;
1438 }
1439 return iff;
1440 }
1441
1442 static int
1443 iff_to_nd_flags(int iff)
1444 {
1445 enum netdev_flags nd = 0;
1446 if (iff & IFF_UP) {
1447 nd |= NETDEV_UP;
1448 }
1449 if (iff & IFF_PROMISC) {
1450 nd |= NETDEV_PROMISC;
1451 }
1452 if (iff & IFF_LOOPBACK) {
1453 nd |= NETDEV_LOOPBACK;
1454 }
1455 return nd;
1456 }
1457
1458 static int
1459 netdev_bsd_update_flags(struct netdev *netdev_, enum netdev_flags off,
1460 enum netdev_flags on, enum netdev_flags *old_flagsp)
1461 {
1462 int old_flags, new_flags;
1463 int error;
1464
1465 error = get_flags(netdev_, &old_flags);
1466 if (!error) {
1467 *old_flagsp = iff_to_nd_flags(old_flags);
1468 new_flags = (old_flags & ~nd_to_iff_flags(off)) | nd_to_iff_flags(on);
1469 if (new_flags != old_flags) {
1470 error = set_flags(netdev_get_kernel_name(netdev_), new_flags);
1471 netdev_change_seq_changed(netdev_);
1472 }
1473 }
1474 return error;
1475 }
1476
1477 /* Linux has also different GET_STATS, SET_STATS,
1478 * GET_STATUS)
1479 */
1480 #define NETDEV_BSD_CLASS(NAME, CONSTRUCT, \
1481 GET_FEATURES) \
1482 { \
1483 NAME, \
1484 false, /* is_pmd */ \
1485 \
1486 NULL, /* init */ \
1487 netdev_bsd_run, \
1488 netdev_bsd_wait, \
1489 netdev_bsd_alloc, \
1490 CONSTRUCT, \
1491 netdev_bsd_destruct, \
1492 netdev_bsd_dealloc, \
1493 NULL, /* get_config */ \
1494 NULL, /* set_config */ \
1495 NULL, /* get_tunnel_config */ \
1496 NULL, /* build header */ \
1497 NULL, /* push header */ \
1498 NULL, /* pop header */ \
1499 NULL, /* get_numa_id */ \
1500 NULL, /* set_multiq */ \
1501 \
1502 netdev_bsd_send, \
1503 netdev_bsd_send_wait, \
1504 \
1505 netdev_bsd_set_etheraddr, \
1506 netdev_bsd_get_etheraddr, \
1507 netdev_bsd_get_mtu, \
1508 NULL, /* set_mtu */ \
1509 netdev_bsd_get_ifindex, \
1510 netdev_bsd_get_carrier, \
1511 NULL, /* get_carrier_resets */ \
1512 NULL, /* set_miimon_interval */ \
1513 netdev_bsd_get_stats, \
1514 \
1515 GET_FEATURES, \
1516 NULL, /* set_advertisement */ \
1517 NULL, /* set_policing */ \
1518 NULL, /* get_qos_type */ \
1519 NULL, /* get_qos_capabilities */ \
1520 NULL, /* get_qos */ \
1521 NULL, /* set_qos */ \
1522 NULL, /* get_queue */ \
1523 NULL, /* set_queue */ \
1524 NULL, /* delete_queue */ \
1525 NULL, /* get_queue_stats */ \
1526 NULL, /* queue_dump_start */ \
1527 NULL, /* queue_dump_next */ \
1528 NULL, /* queue_dump_done */ \
1529 NULL, /* dump_queue_stats */ \
1530 \
1531 netdev_bsd_set_in4, \
1532 netdev_bsd_get_addr_list, \
1533 NULL, /* add_router */ \
1534 netdev_bsd_get_next_hop, \
1535 NULL, /* get_status */ \
1536 netdev_bsd_arp_lookup, /* arp_lookup */ \
1537 \
1538 netdev_bsd_update_flags, \
1539 NULL, /* reconfigure */ \
1540 \
1541 netdev_bsd_rxq_alloc, \
1542 netdev_bsd_rxq_construct, \
1543 netdev_bsd_rxq_destruct, \
1544 netdev_bsd_rxq_dealloc, \
1545 netdev_bsd_rxq_recv, \
1546 netdev_bsd_rxq_wait, \
1547 netdev_bsd_rxq_drain, \
1548 }
1549
1550 const struct netdev_class netdev_bsd_class =
1551 NETDEV_BSD_CLASS(
1552 "system",
1553 netdev_bsd_construct_system,
1554 netdev_bsd_get_features);
1555
1556 const struct netdev_class netdev_tap_class =
1557 NETDEV_BSD_CLASS(
1558 "tap",
1559 netdev_bsd_construct_tap,
1560 netdev_bsd_get_features);
1561 \f
1562
1563 static void
1564 destroy_tap(int fd, const char *name)
1565 {
1566 struct ifreq ifr;
1567
1568 close(fd);
1569 strcpy(ifr.ifr_name, name);
1570 /* XXX What to do if this call fails? */
1571 af_inet_ioctl(SIOCIFDESTROY, &ifr);
1572 }
1573
1574 static int
1575 get_flags(const struct netdev *netdev, int *flags)
1576 {
1577 struct ifreq ifr;
1578 int error;
1579
1580 error = af_inet_ifreq_ioctl(netdev_get_kernel_name(netdev), &ifr,
1581 SIOCGIFFLAGS, "SIOCGIFFLAGS");
1582
1583 *flags = ifr_get_flags(&ifr);
1584
1585 return error;
1586 }
1587
1588 static int
1589 set_flags(const char *name, int flags)
1590 {
1591 struct ifreq ifr;
1592
1593 ifr_set_flags(&ifr, flags);
1594
1595 return af_inet_ifreq_ioctl(name, &ifr, SIOCSIFFLAGS, "SIOCSIFFLAGS");
1596 }
1597
1598 static int
1599 get_ifindex(const struct netdev *netdev_, int *ifindexp)
1600 {
1601 struct netdev_bsd *netdev = netdev_bsd_cast(netdev_);
1602 *ifindexp = 0;
1603 if (!(netdev->cache_valid & VALID_IFINDEX)) {
1604 int ifindex = if_nametoindex(netdev_get_name(netdev_));
1605 if (ifindex <= 0) {
1606 return errno;
1607 }
1608 netdev->cache_valid |= VALID_IFINDEX;
1609 netdev->ifindex = ifindex;
1610 }
1611 *ifindexp = netdev->ifindex;
1612 return 0;
1613 }
1614
1615 static int
1616 get_etheraddr(const char *netdev_name, struct eth_addr *ea)
1617 {
1618 struct ifaddrs *head;
1619 struct ifaddrs *ifa;
1620 struct sockaddr_dl *sdl;
1621
1622 if (getifaddrs(&head) != 0) {
1623 VLOG_ERR("getifaddrs on %s device failed: %s", netdev_name,
1624 ovs_strerror(errno));
1625 return errno;
1626 }
1627
1628 for (ifa = head; ifa; ifa = ifa->ifa_next) {
1629 if (ifa->ifa_addr->sa_family == AF_LINK) {
1630 if (!strcmp(ifa->ifa_name, netdev_name)) {
1631 sdl = ALIGNED_CAST(struct sockaddr_dl *, ifa->ifa_addr);
1632 if (sdl) {
1633 memcpy(ea, LLADDR(sdl), sdl->sdl_alen);
1634 freeifaddrs(head);
1635 return 0;
1636 }
1637 }
1638 }
1639 }
1640
1641 VLOG_ERR("could not find ethernet address for %s device", netdev_name);
1642 freeifaddrs(head);
1643 return ENODEV;
1644 }
1645
1646 static int
1647 set_etheraddr(const char *netdev_name OVS_UNUSED, int hwaddr_family OVS_UNUSED,
1648 int hwaddr_len OVS_UNUSED,
1649 const struct eth_addr mac OVS_UNUSED)
1650 {
1651 #if defined(__FreeBSD__)
1652 struct ifreq ifr;
1653 int error;
1654
1655 memset(&ifr, 0, sizeof ifr);
1656 ovs_strlcpy(ifr.ifr_name, netdev_name, sizeof ifr.ifr_name);
1657 ifr.ifr_addr.sa_family = hwaddr_family;
1658 ifr.ifr_addr.sa_len = hwaddr_len;
1659 memcpy(ifr.ifr_addr.sa_data, &mac, hwaddr_len);
1660 error = af_inet_ioctl(SIOCSIFLLADDR, &ifr);
1661 if (error) {
1662 VLOG_ERR("ioctl(SIOCSIFLLADDR) on %s device failed: %s",
1663 netdev_name, ovs_strerror(error));
1664 return error;
1665 }
1666 return 0;
1667 #elif defined(__NetBSD__)
1668 struct if_laddrreq req;
1669 struct sockaddr_dl *sdl;
1670 struct sockaddr_storage oldaddr;
1671 int error;
1672
1673 /*
1674 * get the old address, add new one, and then remove old one.
1675 */
1676
1677 if (hwaddr_len != ETH_ADDR_LEN) {
1678 /* just to be safe about sockaddr storage size */
1679 return EOPNOTSUPP;
1680 }
1681 memset(&req, 0, sizeof(req));
1682 ovs_strlcpy(req.iflr_name, netdev_name, sizeof(req.iflr_name));
1683 req.addr.ss_len = sizeof(req.addr);
1684 req.addr.ss_family = hwaddr_family;
1685 sdl = (struct sockaddr_dl *)&req.addr;
1686 sdl->sdl_alen = hwaddr_len;
1687
1688 error = af_link_ioctl(SIOCGLIFADDR, &req);
1689 if (error) {
1690 return error;
1691 }
1692 if (!memcmp(&sdl->sdl_data[sdl->sdl_nlen], &mac, hwaddr_len)) {
1693 return 0;
1694 }
1695 oldaddr = req.addr;
1696
1697 memset(&req, 0, sizeof(req));
1698 ovs_strlcpy(req.iflr_name, netdev_name, sizeof(req.iflr_name));
1699 req.flags = IFLR_ACTIVE;
1700 sdl = (struct sockaddr_dl *)&req.addr;
1701 sdl->sdl_len = offsetof(struct sockaddr_dl, sdl_data) + hwaddr_len;
1702 sdl->sdl_alen = hwaddr_len;
1703 sdl->sdl_family = hwaddr_family;
1704 memcpy(sdl->sdl_data, &mac, hwaddr_len);
1705 error = af_link_ioctl(SIOCALIFADDR, &req);
1706 if (error) {
1707 return error;
1708 }
1709
1710 memset(&req, 0, sizeof(req));
1711 ovs_strlcpy(req.iflr_name, netdev_name, sizeof(req.iflr_name));
1712 req.addr = oldaddr;
1713 return af_link_ioctl(SIOCDLIFADDR, &req);
1714 #else
1715 #error not implemented
1716 #endif
1717 }
1718
1719 static int
1720 ifr_get_flags(const struct ifreq *ifr)
1721 {
1722 #ifdef HAVE_STRUCT_IFREQ_IFR_FLAGSHIGH
1723 return (ifr->ifr_flagshigh << 16) | (ifr->ifr_flags & 0xffff);
1724 #else
1725 return ifr->ifr_flags;
1726 #endif
1727 }
1728
1729 static void
1730 ifr_set_flags(struct ifreq *ifr, int flags)
1731 {
1732 #ifdef HAVE_STRUCT_IFREQ_IFR_FLAGSHIGH
1733 ifr->ifr_flags = flags & 0xffff;
1734 ifr->ifr_flagshigh = flags >> 16;
1735 #else
1736 ifr->ifr_flags = flags;
1737 #endif
1738 }
1739
1740 #if defined(__NetBSD__)
1741 /* Calls ioctl() on an AF_LINK sock, passing the specified 'command' and
1742 * 'arg'. Returns 0 if successful, otherwise a positive errno value. */
1743 int
1744 af_link_ioctl(unsigned long command, const void *arg)
1745 {
1746 static struct ovsthread_once once = OVSTHREAD_ONCE_INITIALIZER;
1747 static int sock;
1748
1749 if (ovsthread_once_start(&once)) {
1750 sock = socket(AF_LINK, SOCK_DGRAM, 0);
1751 if (sock < 0) {
1752 sock = -errno;
1753 VLOG_ERR("failed to create link socket: %s", ovs_strerror(errno));
1754 }
1755 ovsthread_once_done(&once);
1756 }
1757
1758 return (sock < 0 ? -sock
1759 : ioctl(sock, command, arg) == -1 ? errno
1760 : 0);
1761 }
1762 #endif
1763 #endif /* !defined(__MACH__) */