dn_dev.c 31 KB

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  1. /*
  2. * DECnet An implementation of the DECnet protocol suite for the LINUX
  3. * operating system. DECnet is implemented using the BSD Socket
  4. * interface as the means of communication with the user level.
  5. *
  6. * DECnet Device Layer
  7. *
  8. * Authors: Steve Whitehouse <SteveW@ACM.org>
  9. * Eduardo Marcelo Serrat <emserrat@geocities.com>
  10. *
  11. * Changes:
  12. * Steve Whitehouse : Devices now see incoming frames so they
  13. * can mark on who it came from.
  14. * Steve Whitehouse : Fixed bug in creating neighbours. Each neighbour
  15. * can now have a device specific setup func.
  16. * Steve Whitehouse : Added /proc/sys/net/decnet/conf/<dev>/
  17. * Steve Whitehouse : Fixed bug which sometimes killed timer
  18. * Steve Whitehouse : Multiple ifaddr support
  19. * Steve Whitehouse : SIOCGIFCONF is now a compile time option
  20. * Steve Whitehouse : /proc/sys/net/decnet/conf/<sys>/forwarding
  21. * Steve Whitehouse : Removed timer1 - it's a user space issue now
  22. * Patrick Caulfield : Fixed router hello message format
  23. * Steve Whitehouse : Got rid of constant sizes for blksize for
  24. * devices. All mtu based now.
  25. */
  26. #include <linux/capability.h>
  27. #include <linux/module.h>
  28. #include <linux/moduleparam.h>
  29. #include <linux/init.h>
  30. #include <linux/net.h>
  31. #include <linux/netdevice.h>
  32. #include <linux/proc_fs.h>
  33. #include <linux/seq_file.h>
  34. #include <linux/timer.h>
  35. #include <linux/string.h>
  36. #include <linux/if_addr.h>
  37. #include <linux/if_arp.h>
  38. #include <linux/if_ether.h>
  39. #include <linux/skbuff.h>
  40. #include <linux/sysctl.h>
  41. #include <linux/notifier.h>
  42. #include <linux/slab.h>
  43. #include <asm/uaccess.h>
  44. #include <asm/system.h>
  45. #include <net/net_namespace.h>
  46. #include <net/neighbour.h>
  47. #include <net/dst.h>
  48. #include <net/flow.h>
  49. #include <net/fib_rules.h>
  50. #include <net/netlink.h>
  51. #include <net/dn.h>
  52. #include <net/dn_dev.h>
  53. #include <net/dn_route.h>
  54. #include <net/dn_neigh.h>
  55. #include <net/dn_fib.h>
  56. #define DN_IFREQ_SIZE (sizeof(struct ifreq) - sizeof(struct sockaddr) + sizeof(struct sockaddr_dn))
  57. static char dn_rt_all_end_mcast[ETH_ALEN] = {0xAB,0x00,0x00,0x04,0x00,0x00};
  58. static char dn_rt_all_rt_mcast[ETH_ALEN] = {0xAB,0x00,0x00,0x03,0x00,0x00};
  59. static char dn_hiord[ETH_ALEN] = {0xAA,0x00,0x04,0x00,0x00,0x00};
  60. static unsigned char dn_eco_version[3] = {0x02,0x00,0x00};
  61. extern struct neigh_table dn_neigh_table;
  62. /*
  63. * decnet_address is kept in network order.
  64. */
  65. __le16 decnet_address = 0;
  66. static DEFINE_SPINLOCK(dndev_lock);
  67. static struct net_device *decnet_default_device;
  68. static BLOCKING_NOTIFIER_HEAD(dnaddr_chain);
  69. static struct dn_dev *dn_dev_create(struct net_device *dev, int *err);
  70. static void dn_dev_delete(struct net_device *dev);
  71. static void dn_ifaddr_notify(int event, struct dn_ifaddr *ifa);
  72. static int dn_eth_up(struct net_device *);
  73. static void dn_eth_down(struct net_device *);
  74. static void dn_send_brd_hello(struct net_device *dev, struct dn_ifaddr *ifa);
  75. static void dn_send_ptp_hello(struct net_device *dev, struct dn_ifaddr *ifa);
  76. static struct dn_dev_parms dn_dev_list[] = {
  77. {
  78. .type = ARPHRD_ETHER, /* Ethernet */
  79. .mode = DN_DEV_BCAST,
  80. .state = DN_DEV_S_RU,
  81. .t2 = 1,
  82. .t3 = 10,
  83. .name = "ethernet",
  84. .up = dn_eth_up,
  85. .down = dn_eth_down,
  86. .timer3 = dn_send_brd_hello,
  87. },
  88. {
  89. .type = ARPHRD_IPGRE, /* DECnet tunneled over GRE in IP */
  90. .mode = DN_DEV_BCAST,
  91. .state = DN_DEV_S_RU,
  92. .t2 = 1,
  93. .t3 = 10,
  94. .name = "ipgre",
  95. .timer3 = dn_send_brd_hello,
  96. },
  97. #if 0
  98. {
  99. .type = ARPHRD_X25, /* Bog standard X.25 */
  100. .mode = DN_DEV_UCAST,
  101. .state = DN_DEV_S_DS,
  102. .t2 = 1,
  103. .t3 = 120,
  104. .name = "x25",
  105. .timer3 = dn_send_ptp_hello,
  106. },
  107. #endif
  108. #if 0
  109. {
  110. .type = ARPHRD_PPP, /* DECnet over PPP */
  111. .mode = DN_DEV_BCAST,
  112. .state = DN_DEV_S_RU,
  113. .t2 = 1,
  114. .t3 = 10,
  115. .name = "ppp",
  116. .timer3 = dn_send_brd_hello,
  117. },
  118. #endif
  119. {
  120. .type = ARPHRD_DDCMP, /* DECnet over DDCMP */
  121. .mode = DN_DEV_UCAST,
  122. .state = DN_DEV_S_DS,
  123. .t2 = 1,
  124. .t3 = 120,
  125. .name = "ddcmp",
  126. .timer3 = dn_send_ptp_hello,
  127. },
  128. {
  129. .type = ARPHRD_LOOPBACK, /* Loopback interface - always last */
  130. .mode = DN_DEV_BCAST,
  131. .state = DN_DEV_S_RU,
  132. .t2 = 1,
  133. .t3 = 10,
  134. .name = "loopback",
  135. .timer3 = dn_send_brd_hello,
  136. }
  137. };
  138. #define DN_DEV_LIST_SIZE ARRAY_SIZE(dn_dev_list)
  139. #define DN_DEV_PARMS_OFFSET(x) offsetof(struct dn_dev_parms, x)
  140. #ifdef CONFIG_SYSCTL
  141. static int min_t2[] = { 1 };
  142. static int max_t2[] = { 60 }; /* No max specified, but this seems sensible */
  143. static int min_t3[] = { 1 };
  144. static int max_t3[] = { 8191 }; /* Must fit in 16 bits when multiplied by BCT3MULT or T3MULT */
  145. static int min_priority[1];
  146. static int max_priority[] = { 127 }; /* From DECnet spec */
  147. static int dn_forwarding_proc(ctl_table *, int,
  148. void __user *, size_t *, loff_t *);
  149. static struct dn_dev_sysctl_table {
  150. struct ctl_table_header *sysctl_header;
  151. ctl_table dn_dev_vars[5];
  152. } dn_dev_sysctl = {
  153. NULL,
  154. {
  155. {
  156. .procname = "forwarding",
  157. .data = (void *)DN_DEV_PARMS_OFFSET(forwarding),
  158. .maxlen = sizeof(int),
  159. .mode = 0644,
  160. .proc_handler = dn_forwarding_proc,
  161. },
  162. {
  163. .procname = "priority",
  164. .data = (void *)DN_DEV_PARMS_OFFSET(priority),
  165. .maxlen = sizeof(int),
  166. .mode = 0644,
  167. .proc_handler = proc_dointvec_minmax,
  168. .extra1 = &min_priority,
  169. .extra2 = &max_priority
  170. },
  171. {
  172. .procname = "t2",
  173. .data = (void *)DN_DEV_PARMS_OFFSET(t2),
  174. .maxlen = sizeof(int),
  175. .mode = 0644,
  176. .proc_handler = proc_dointvec_minmax,
  177. .extra1 = &min_t2,
  178. .extra2 = &max_t2
  179. },
  180. {
  181. .procname = "t3",
  182. .data = (void *)DN_DEV_PARMS_OFFSET(t3),
  183. .maxlen = sizeof(int),
  184. .mode = 0644,
  185. .proc_handler = proc_dointvec_minmax,
  186. .extra1 = &min_t3,
  187. .extra2 = &max_t3
  188. },
  189. {0}
  190. },
  191. };
  192. static void dn_dev_sysctl_register(struct net_device *dev, struct dn_dev_parms *parms)
  193. {
  194. struct dn_dev_sysctl_table *t;
  195. int i;
  196. #define DN_CTL_PATH_DEV 3
  197. struct ctl_path dn_ctl_path[] = {
  198. { .procname = "net", },
  199. { .procname = "decnet", },
  200. { .procname = "conf", },
  201. { /* to be set */ },
  202. { },
  203. };
  204. t = kmemdup(&dn_dev_sysctl, sizeof(*t), GFP_KERNEL);
  205. if (t == NULL)
  206. return;
  207. for(i = 0; i < ARRAY_SIZE(t->dn_dev_vars) - 1; i++) {
  208. long offset = (long)t->dn_dev_vars[i].data;
  209. t->dn_dev_vars[i].data = ((char *)parms) + offset;
  210. }
  211. if (dev) {
  212. dn_ctl_path[DN_CTL_PATH_DEV].procname = dev->name;
  213. } else {
  214. dn_ctl_path[DN_CTL_PATH_DEV].procname = parms->name;
  215. }
  216. t->dn_dev_vars[0].extra1 = (void *)dev;
  217. t->sysctl_header = register_sysctl_paths(dn_ctl_path, t->dn_dev_vars);
  218. if (t->sysctl_header == NULL)
  219. kfree(t);
  220. else
  221. parms->sysctl = t;
  222. }
  223. static void dn_dev_sysctl_unregister(struct dn_dev_parms *parms)
  224. {
  225. if (parms->sysctl) {
  226. struct dn_dev_sysctl_table *t = parms->sysctl;
  227. parms->sysctl = NULL;
  228. unregister_sysctl_table(t->sysctl_header);
  229. kfree(t);
  230. }
  231. }
  232. static int dn_forwarding_proc(ctl_table *table, int write,
  233. void __user *buffer,
  234. size_t *lenp, loff_t *ppos)
  235. {
  236. #ifdef CONFIG_DECNET_ROUTER
  237. struct net_device *dev = table->extra1;
  238. struct dn_dev *dn_db;
  239. int err;
  240. int tmp, old;
  241. if (table->extra1 == NULL)
  242. return -EINVAL;
  243. dn_db = dev->dn_ptr;
  244. old = dn_db->parms.forwarding;
  245. err = proc_dointvec(table, write, buffer, lenp, ppos);
  246. if ((err >= 0) && write) {
  247. if (dn_db->parms.forwarding < 0)
  248. dn_db->parms.forwarding = 0;
  249. if (dn_db->parms.forwarding > 2)
  250. dn_db->parms.forwarding = 2;
  251. /*
  252. * What an ugly hack this is... its works, just. It
  253. * would be nice if sysctl/proc were just that little
  254. * bit more flexible so I don't have to write a special
  255. * routine, or suffer hacks like this - SJW
  256. */
  257. tmp = dn_db->parms.forwarding;
  258. dn_db->parms.forwarding = old;
  259. if (dn_db->parms.down)
  260. dn_db->parms.down(dev);
  261. dn_db->parms.forwarding = tmp;
  262. if (dn_db->parms.up)
  263. dn_db->parms.up(dev);
  264. }
  265. return err;
  266. #else
  267. return -EINVAL;
  268. #endif
  269. }
  270. #else /* CONFIG_SYSCTL */
  271. static void dn_dev_sysctl_unregister(struct dn_dev_parms *parms)
  272. {
  273. }
  274. static void dn_dev_sysctl_register(struct net_device *dev, struct dn_dev_parms *parms)
  275. {
  276. }
  277. #endif /* CONFIG_SYSCTL */
  278. static inline __u16 mtu2blksize(struct net_device *dev)
  279. {
  280. u32 blksize = dev->mtu;
  281. if (blksize > 0xffff)
  282. blksize = 0xffff;
  283. if (dev->type == ARPHRD_ETHER ||
  284. dev->type == ARPHRD_PPP ||
  285. dev->type == ARPHRD_IPGRE ||
  286. dev->type == ARPHRD_LOOPBACK)
  287. blksize -= 2;
  288. return (__u16)blksize;
  289. }
  290. static struct dn_ifaddr *dn_dev_alloc_ifa(void)
  291. {
  292. struct dn_ifaddr *ifa;
  293. ifa = kzalloc(sizeof(*ifa), GFP_KERNEL);
  294. return ifa;
  295. }
  296. static __inline__ void dn_dev_free_ifa(struct dn_ifaddr *ifa)
  297. {
  298. kfree(ifa);
  299. }
  300. static void dn_dev_del_ifa(struct dn_dev *dn_db, struct dn_ifaddr **ifap, int destroy)
  301. {
  302. struct dn_ifaddr *ifa1 = *ifap;
  303. unsigned char mac_addr[6];
  304. struct net_device *dev = dn_db->dev;
  305. ASSERT_RTNL();
  306. *ifap = ifa1->ifa_next;
  307. if (dn_db->dev->type == ARPHRD_ETHER) {
  308. if (ifa1->ifa_local != dn_eth2dn(dev->dev_addr)) {
  309. dn_dn2eth(mac_addr, ifa1->ifa_local);
  310. dev_mc_del(dev, mac_addr);
  311. }
  312. }
  313. dn_ifaddr_notify(RTM_DELADDR, ifa1);
  314. blocking_notifier_call_chain(&dnaddr_chain, NETDEV_DOWN, ifa1);
  315. if (destroy) {
  316. dn_dev_free_ifa(ifa1);
  317. if (dn_db->ifa_list == NULL)
  318. dn_dev_delete(dn_db->dev);
  319. }
  320. }
  321. static int dn_dev_insert_ifa(struct dn_dev *dn_db, struct dn_ifaddr *ifa)
  322. {
  323. struct net_device *dev = dn_db->dev;
  324. struct dn_ifaddr *ifa1;
  325. unsigned char mac_addr[6];
  326. ASSERT_RTNL();
  327. /* Check for duplicates */
  328. for(ifa1 = dn_db->ifa_list; ifa1; ifa1 = ifa1->ifa_next) {
  329. if (ifa1->ifa_local == ifa->ifa_local)
  330. return -EEXIST;
  331. }
  332. if (dev->type == ARPHRD_ETHER) {
  333. if (ifa->ifa_local != dn_eth2dn(dev->dev_addr)) {
  334. dn_dn2eth(mac_addr, ifa->ifa_local);
  335. dev_mc_add(dev, mac_addr);
  336. }
  337. }
  338. ifa->ifa_next = dn_db->ifa_list;
  339. dn_db->ifa_list = ifa;
  340. dn_ifaddr_notify(RTM_NEWADDR, ifa);
  341. blocking_notifier_call_chain(&dnaddr_chain, NETDEV_UP, ifa);
  342. return 0;
  343. }
  344. static int dn_dev_set_ifa(struct net_device *dev, struct dn_ifaddr *ifa)
  345. {
  346. struct dn_dev *dn_db = dev->dn_ptr;
  347. int rv;
  348. if (dn_db == NULL) {
  349. int err;
  350. dn_db = dn_dev_create(dev, &err);
  351. if (dn_db == NULL)
  352. return err;
  353. }
  354. ifa->ifa_dev = dn_db;
  355. if (dev->flags & IFF_LOOPBACK)
  356. ifa->ifa_scope = RT_SCOPE_HOST;
  357. rv = dn_dev_insert_ifa(dn_db, ifa);
  358. if (rv)
  359. dn_dev_free_ifa(ifa);
  360. return rv;
  361. }
  362. int dn_dev_ioctl(unsigned int cmd, void __user *arg)
  363. {
  364. char buffer[DN_IFREQ_SIZE];
  365. struct ifreq *ifr = (struct ifreq *)buffer;
  366. struct sockaddr_dn *sdn = (struct sockaddr_dn *)&ifr->ifr_addr;
  367. struct dn_dev *dn_db;
  368. struct net_device *dev;
  369. struct dn_ifaddr *ifa = NULL, **ifap = NULL;
  370. int ret = 0;
  371. if (copy_from_user(ifr, arg, DN_IFREQ_SIZE))
  372. return -EFAULT;
  373. ifr->ifr_name[IFNAMSIZ-1] = 0;
  374. dev_load(&init_net, ifr->ifr_name);
  375. switch(cmd) {
  376. case SIOCGIFADDR:
  377. break;
  378. case SIOCSIFADDR:
  379. if (!capable(CAP_NET_ADMIN))
  380. return -EACCES;
  381. if (sdn->sdn_family != AF_DECnet)
  382. return -EINVAL;
  383. break;
  384. default:
  385. return -EINVAL;
  386. }
  387. rtnl_lock();
  388. if ((dev = __dev_get_by_name(&init_net, ifr->ifr_name)) == NULL) {
  389. ret = -ENODEV;
  390. goto done;
  391. }
  392. if ((dn_db = dev->dn_ptr) != NULL) {
  393. for (ifap = &dn_db->ifa_list; (ifa=*ifap) != NULL; ifap = &ifa->ifa_next)
  394. if (strcmp(ifr->ifr_name, ifa->ifa_label) == 0)
  395. break;
  396. }
  397. if (ifa == NULL && cmd != SIOCSIFADDR) {
  398. ret = -EADDRNOTAVAIL;
  399. goto done;
  400. }
  401. switch(cmd) {
  402. case SIOCGIFADDR:
  403. *((__le16 *)sdn->sdn_nodeaddr) = ifa->ifa_local;
  404. goto rarok;
  405. case SIOCSIFADDR:
  406. if (!ifa) {
  407. if ((ifa = dn_dev_alloc_ifa()) == NULL) {
  408. ret = -ENOBUFS;
  409. break;
  410. }
  411. memcpy(ifa->ifa_label, dev->name, IFNAMSIZ);
  412. } else {
  413. if (ifa->ifa_local == dn_saddr2dn(sdn))
  414. break;
  415. dn_dev_del_ifa(dn_db, ifap, 0);
  416. }
  417. ifa->ifa_local = ifa->ifa_address = dn_saddr2dn(sdn);
  418. ret = dn_dev_set_ifa(dev, ifa);
  419. }
  420. done:
  421. rtnl_unlock();
  422. return ret;
  423. rarok:
  424. if (copy_to_user(arg, ifr, DN_IFREQ_SIZE))
  425. ret = -EFAULT;
  426. goto done;
  427. }
  428. struct net_device *dn_dev_get_default(void)
  429. {
  430. struct net_device *dev;
  431. spin_lock(&dndev_lock);
  432. dev = decnet_default_device;
  433. if (dev) {
  434. if (dev->dn_ptr)
  435. dev_hold(dev);
  436. else
  437. dev = NULL;
  438. }
  439. spin_unlock(&dndev_lock);
  440. return dev;
  441. }
  442. int dn_dev_set_default(struct net_device *dev, int force)
  443. {
  444. struct net_device *old = NULL;
  445. int rv = -EBUSY;
  446. if (!dev->dn_ptr)
  447. return -ENODEV;
  448. spin_lock(&dndev_lock);
  449. if (force || decnet_default_device == NULL) {
  450. old = decnet_default_device;
  451. decnet_default_device = dev;
  452. rv = 0;
  453. }
  454. spin_unlock(&dndev_lock);
  455. if (old)
  456. dev_put(old);
  457. return rv;
  458. }
  459. static void dn_dev_check_default(struct net_device *dev)
  460. {
  461. spin_lock(&dndev_lock);
  462. if (dev == decnet_default_device) {
  463. decnet_default_device = NULL;
  464. } else {
  465. dev = NULL;
  466. }
  467. spin_unlock(&dndev_lock);
  468. if (dev)
  469. dev_put(dev);
  470. }
  471. /*
  472. * Called with RTNL
  473. */
  474. static struct dn_dev *dn_dev_by_index(int ifindex)
  475. {
  476. struct net_device *dev;
  477. struct dn_dev *dn_dev = NULL;
  478. dev = __dev_get_by_index(&init_net, ifindex);
  479. if (dev)
  480. dn_dev = dev->dn_ptr;
  481. return dn_dev;
  482. }
  483. static const struct nla_policy dn_ifa_policy[IFA_MAX+1] = {
  484. [IFA_ADDRESS] = { .type = NLA_U16 },
  485. [IFA_LOCAL] = { .type = NLA_U16 },
  486. [IFA_LABEL] = { .type = NLA_STRING,
  487. .len = IFNAMSIZ - 1 },
  488. };
  489. static int dn_nl_deladdr(struct sk_buff *skb, struct nlmsghdr *nlh, void *arg)
  490. {
  491. struct net *net = sock_net(skb->sk);
  492. struct nlattr *tb[IFA_MAX+1];
  493. struct dn_dev *dn_db;
  494. struct ifaddrmsg *ifm;
  495. struct dn_ifaddr *ifa, **ifap;
  496. int err = -EINVAL;
  497. if (!net_eq(net, &init_net))
  498. goto errout;
  499. err = nlmsg_parse(nlh, sizeof(*ifm), tb, IFA_MAX, dn_ifa_policy);
  500. if (err < 0)
  501. goto errout;
  502. err = -ENODEV;
  503. ifm = nlmsg_data(nlh);
  504. if ((dn_db = dn_dev_by_index(ifm->ifa_index)) == NULL)
  505. goto errout;
  506. err = -EADDRNOTAVAIL;
  507. for (ifap = &dn_db->ifa_list; (ifa = *ifap); ifap = &ifa->ifa_next) {
  508. if (tb[IFA_LOCAL] &&
  509. nla_memcmp(tb[IFA_LOCAL], &ifa->ifa_local, 2))
  510. continue;
  511. if (tb[IFA_LABEL] && nla_strcmp(tb[IFA_LABEL], ifa->ifa_label))
  512. continue;
  513. dn_dev_del_ifa(dn_db, ifap, 1);
  514. return 0;
  515. }
  516. errout:
  517. return err;
  518. }
  519. static int dn_nl_newaddr(struct sk_buff *skb, struct nlmsghdr *nlh, void *arg)
  520. {
  521. struct net *net = sock_net(skb->sk);
  522. struct nlattr *tb[IFA_MAX+1];
  523. struct net_device *dev;
  524. struct dn_dev *dn_db;
  525. struct ifaddrmsg *ifm;
  526. struct dn_ifaddr *ifa;
  527. int err;
  528. if (!net_eq(net, &init_net))
  529. return -EINVAL;
  530. err = nlmsg_parse(nlh, sizeof(*ifm), tb, IFA_MAX, dn_ifa_policy);
  531. if (err < 0)
  532. return err;
  533. if (tb[IFA_LOCAL] == NULL)
  534. return -EINVAL;
  535. ifm = nlmsg_data(nlh);
  536. if ((dev = __dev_get_by_index(&init_net, ifm->ifa_index)) == NULL)
  537. return -ENODEV;
  538. if ((dn_db = dev->dn_ptr) == NULL) {
  539. dn_db = dn_dev_create(dev, &err);
  540. if (!dn_db)
  541. return err;
  542. }
  543. if ((ifa = dn_dev_alloc_ifa()) == NULL)
  544. return -ENOBUFS;
  545. if (tb[IFA_ADDRESS] == NULL)
  546. tb[IFA_ADDRESS] = tb[IFA_LOCAL];
  547. ifa->ifa_local = nla_get_le16(tb[IFA_LOCAL]);
  548. ifa->ifa_address = nla_get_le16(tb[IFA_ADDRESS]);
  549. ifa->ifa_flags = ifm->ifa_flags;
  550. ifa->ifa_scope = ifm->ifa_scope;
  551. ifa->ifa_dev = dn_db;
  552. if (tb[IFA_LABEL])
  553. nla_strlcpy(ifa->ifa_label, tb[IFA_LABEL], IFNAMSIZ);
  554. else
  555. memcpy(ifa->ifa_label, dev->name, IFNAMSIZ);
  556. err = dn_dev_insert_ifa(dn_db, ifa);
  557. if (err)
  558. dn_dev_free_ifa(ifa);
  559. return err;
  560. }
  561. static inline size_t dn_ifaddr_nlmsg_size(void)
  562. {
  563. return NLMSG_ALIGN(sizeof(struct ifaddrmsg))
  564. + nla_total_size(IFNAMSIZ) /* IFA_LABEL */
  565. + nla_total_size(2) /* IFA_ADDRESS */
  566. + nla_total_size(2); /* IFA_LOCAL */
  567. }
  568. static int dn_nl_fill_ifaddr(struct sk_buff *skb, struct dn_ifaddr *ifa,
  569. u32 pid, u32 seq, int event, unsigned int flags)
  570. {
  571. struct ifaddrmsg *ifm;
  572. struct nlmsghdr *nlh;
  573. nlh = nlmsg_put(skb, pid, seq, event, sizeof(*ifm), flags);
  574. if (nlh == NULL)
  575. return -EMSGSIZE;
  576. ifm = nlmsg_data(nlh);
  577. ifm->ifa_family = AF_DECnet;
  578. ifm->ifa_prefixlen = 16;
  579. ifm->ifa_flags = ifa->ifa_flags | IFA_F_PERMANENT;
  580. ifm->ifa_scope = ifa->ifa_scope;
  581. ifm->ifa_index = ifa->ifa_dev->dev->ifindex;
  582. if (ifa->ifa_address)
  583. NLA_PUT_LE16(skb, IFA_ADDRESS, ifa->ifa_address);
  584. if (ifa->ifa_local)
  585. NLA_PUT_LE16(skb, IFA_LOCAL, ifa->ifa_local);
  586. if (ifa->ifa_label[0])
  587. NLA_PUT_STRING(skb, IFA_LABEL, ifa->ifa_label);
  588. return nlmsg_end(skb, nlh);
  589. nla_put_failure:
  590. nlmsg_cancel(skb, nlh);
  591. return -EMSGSIZE;
  592. }
  593. static void dn_ifaddr_notify(int event, struct dn_ifaddr *ifa)
  594. {
  595. struct sk_buff *skb;
  596. int err = -ENOBUFS;
  597. skb = alloc_skb(dn_ifaddr_nlmsg_size(), GFP_KERNEL);
  598. if (skb == NULL)
  599. goto errout;
  600. err = dn_nl_fill_ifaddr(skb, ifa, 0, 0, event, 0);
  601. if (err < 0) {
  602. /* -EMSGSIZE implies BUG in dn_ifaddr_nlmsg_size() */
  603. WARN_ON(err == -EMSGSIZE);
  604. kfree_skb(skb);
  605. goto errout;
  606. }
  607. rtnl_notify(skb, &init_net, 0, RTNLGRP_DECnet_IFADDR, NULL, GFP_KERNEL);
  608. return;
  609. errout:
  610. if (err < 0)
  611. rtnl_set_sk_err(&init_net, RTNLGRP_DECnet_IFADDR, err);
  612. }
  613. static int dn_nl_dump_ifaddr(struct sk_buff *skb, struct netlink_callback *cb)
  614. {
  615. struct net *net = sock_net(skb->sk);
  616. int idx, dn_idx = 0, skip_ndevs, skip_naddr;
  617. struct net_device *dev;
  618. struct dn_dev *dn_db;
  619. struct dn_ifaddr *ifa;
  620. if (!net_eq(net, &init_net))
  621. return 0;
  622. skip_ndevs = cb->args[0];
  623. skip_naddr = cb->args[1];
  624. idx = 0;
  625. for_each_netdev(&init_net, dev) {
  626. if (idx < skip_ndevs)
  627. goto cont;
  628. else if (idx > skip_ndevs) {
  629. /* Only skip over addresses for first dev dumped
  630. * in this iteration (idx == skip_ndevs) */
  631. skip_naddr = 0;
  632. }
  633. if ((dn_db = dev->dn_ptr) == NULL)
  634. goto cont;
  635. for (ifa = dn_db->ifa_list, dn_idx = 0; ifa;
  636. ifa = ifa->ifa_next, dn_idx++) {
  637. if (dn_idx < skip_naddr)
  638. continue;
  639. if (dn_nl_fill_ifaddr(skb, ifa, NETLINK_CB(cb->skb).pid,
  640. cb->nlh->nlmsg_seq, RTM_NEWADDR,
  641. NLM_F_MULTI) < 0)
  642. goto done;
  643. }
  644. cont:
  645. idx++;
  646. }
  647. done:
  648. cb->args[0] = idx;
  649. cb->args[1] = dn_idx;
  650. return skb->len;
  651. }
  652. static int dn_dev_get_first(struct net_device *dev, __le16 *addr)
  653. {
  654. struct dn_dev *dn_db = (struct dn_dev *)dev->dn_ptr;
  655. struct dn_ifaddr *ifa;
  656. int rv = -ENODEV;
  657. if (dn_db == NULL)
  658. goto out;
  659. rtnl_lock();
  660. ifa = dn_db->ifa_list;
  661. if (ifa != NULL) {
  662. *addr = ifa->ifa_local;
  663. rv = 0;
  664. }
  665. rtnl_unlock();
  666. out:
  667. return rv;
  668. }
  669. /*
  670. * Find a default address to bind to.
  671. *
  672. * This is one of those areas where the initial VMS concepts don't really
  673. * map onto the Linux concepts, and since we introduced multiple addresses
  674. * per interface we have to cope with slightly odd ways of finding out what
  675. * "our address" really is. Mostly it's not a problem; for this we just guess
  676. * a sensible default. Eventually the routing code will take care of all the
  677. * nasties for us I hope.
  678. */
  679. int dn_dev_bind_default(__le16 *addr)
  680. {
  681. struct net_device *dev;
  682. int rv;
  683. dev = dn_dev_get_default();
  684. last_chance:
  685. if (dev) {
  686. rv = dn_dev_get_first(dev, addr);
  687. dev_put(dev);
  688. if (rv == 0 || dev == init_net.loopback_dev)
  689. return rv;
  690. }
  691. dev = init_net.loopback_dev;
  692. dev_hold(dev);
  693. goto last_chance;
  694. }
  695. static void dn_send_endnode_hello(struct net_device *dev, struct dn_ifaddr *ifa)
  696. {
  697. struct endnode_hello_message *msg;
  698. struct sk_buff *skb = NULL;
  699. __le16 *pktlen;
  700. struct dn_dev *dn_db = (struct dn_dev *)dev->dn_ptr;
  701. if ((skb = dn_alloc_skb(NULL, sizeof(*msg), GFP_ATOMIC)) == NULL)
  702. return;
  703. skb->dev = dev;
  704. msg = (struct endnode_hello_message *)skb_put(skb,sizeof(*msg));
  705. msg->msgflg = 0x0D;
  706. memcpy(msg->tiver, dn_eco_version, 3);
  707. dn_dn2eth(msg->id, ifa->ifa_local);
  708. msg->iinfo = DN_RT_INFO_ENDN;
  709. msg->blksize = cpu_to_le16(mtu2blksize(dev));
  710. msg->area = 0x00;
  711. memset(msg->seed, 0, 8);
  712. memcpy(msg->neighbor, dn_hiord, ETH_ALEN);
  713. if (dn_db->router) {
  714. struct dn_neigh *dn = (struct dn_neigh *)dn_db->router;
  715. dn_dn2eth(msg->neighbor, dn->addr);
  716. }
  717. msg->timer = cpu_to_le16((unsigned short)dn_db->parms.t3);
  718. msg->mpd = 0x00;
  719. msg->datalen = 0x02;
  720. memset(msg->data, 0xAA, 2);
  721. pktlen = (__le16 *)skb_push(skb,2);
  722. *pktlen = cpu_to_le16(skb->len - 2);
  723. skb_reset_network_header(skb);
  724. dn_rt_finish_output(skb, dn_rt_all_rt_mcast, msg->id);
  725. }
  726. #define DRDELAY (5 * HZ)
  727. static int dn_am_i_a_router(struct dn_neigh *dn, struct dn_dev *dn_db, struct dn_ifaddr *ifa)
  728. {
  729. /* First check time since device went up */
  730. if ((jiffies - dn_db->uptime) < DRDELAY)
  731. return 0;
  732. /* If there is no router, then yes... */
  733. if (!dn_db->router)
  734. return 1;
  735. /* otherwise only if we have a higher priority or.. */
  736. if (dn->priority < dn_db->parms.priority)
  737. return 1;
  738. /* if we have equal priority and a higher node number */
  739. if (dn->priority != dn_db->parms.priority)
  740. return 0;
  741. if (le16_to_cpu(dn->addr) < le16_to_cpu(ifa->ifa_local))
  742. return 1;
  743. return 0;
  744. }
  745. static void dn_send_router_hello(struct net_device *dev, struct dn_ifaddr *ifa)
  746. {
  747. int n;
  748. struct dn_dev *dn_db = dev->dn_ptr;
  749. struct dn_neigh *dn = (struct dn_neigh *)dn_db->router;
  750. struct sk_buff *skb;
  751. size_t size;
  752. unsigned char *ptr;
  753. unsigned char *i1, *i2;
  754. __le16 *pktlen;
  755. char *src;
  756. if (mtu2blksize(dev) < (26 + 7))
  757. return;
  758. n = mtu2blksize(dev) - 26;
  759. n /= 7;
  760. if (n > 32)
  761. n = 32;
  762. size = 2 + 26 + 7 * n;
  763. if ((skb = dn_alloc_skb(NULL, size, GFP_ATOMIC)) == NULL)
  764. return;
  765. skb->dev = dev;
  766. ptr = skb_put(skb, size);
  767. *ptr++ = DN_RT_PKT_CNTL | DN_RT_PKT_ERTH;
  768. *ptr++ = 2; /* ECO */
  769. *ptr++ = 0;
  770. *ptr++ = 0;
  771. dn_dn2eth(ptr, ifa->ifa_local);
  772. src = ptr;
  773. ptr += ETH_ALEN;
  774. *ptr++ = dn_db->parms.forwarding == 1 ?
  775. DN_RT_INFO_L1RT : DN_RT_INFO_L2RT;
  776. *((__le16 *)ptr) = cpu_to_le16(mtu2blksize(dev));
  777. ptr += 2;
  778. *ptr++ = dn_db->parms.priority; /* Priority */
  779. *ptr++ = 0; /* Area: Reserved */
  780. *((__le16 *)ptr) = cpu_to_le16((unsigned short)dn_db->parms.t3);
  781. ptr += 2;
  782. *ptr++ = 0; /* MPD: Reserved */
  783. i1 = ptr++;
  784. memset(ptr, 0, 7); /* Name: Reserved */
  785. ptr += 7;
  786. i2 = ptr++;
  787. n = dn_neigh_elist(dev, ptr, n);
  788. *i2 = 7 * n;
  789. *i1 = 8 + *i2;
  790. skb_trim(skb, (27 + *i2));
  791. pktlen = (__le16 *)skb_push(skb, 2);
  792. *pktlen = cpu_to_le16(skb->len - 2);
  793. skb_reset_network_header(skb);
  794. if (dn_am_i_a_router(dn, dn_db, ifa)) {
  795. struct sk_buff *skb2 = skb_copy(skb, GFP_ATOMIC);
  796. if (skb2) {
  797. dn_rt_finish_output(skb2, dn_rt_all_end_mcast, src);
  798. }
  799. }
  800. dn_rt_finish_output(skb, dn_rt_all_rt_mcast, src);
  801. }
  802. static void dn_send_brd_hello(struct net_device *dev, struct dn_ifaddr *ifa)
  803. {
  804. struct dn_dev *dn_db = (struct dn_dev *)dev->dn_ptr;
  805. if (dn_db->parms.forwarding == 0)
  806. dn_send_endnode_hello(dev, ifa);
  807. else
  808. dn_send_router_hello(dev, ifa);
  809. }
  810. static void dn_send_ptp_hello(struct net_device *dev, struct dn_ifaddr *ifa)
  811. {
  812. int tdlen = 16;
  813. int size = dev->hard_header_len + 2 + 4 + tdlen;
  814. struct sk_buff *skb = dn_alloc_skb(NULL, size, GFP_ATOMIC);
  815. int i;
  816. unsigned char *ptr;
  817. char src[ETH_ALEN];
  818. if (skb == NULL)
  819. return ;
  820. skb->dev = dev;
  821. skb_push(skb, dev->hard_header_len);
  822. ptr = skb_put(skb, 2 + 4 + tdlen);
  823. *ptr++ = DN_RT_PKT_HELO;
  824. *((__le16 *)ptr) = ifa->ifa_local;
  825. ptr += 2;
  826. *ptr++ = tdlen;
  827. for(i = 0; i < tdlen; i++)
  828. *ptr++ = 0252;
  829. dn_dn2eth(src, ifa->ifa_local);
  830. dn_rt_finish_output(skb, dn_rt_all_rt_mcast, src);
  831. }
  832. static int dn_eth_up(struct net_device *dev)
  833. {
  834. struct dn_dev *dn_db = dev->dn_ptr;
  835. if (dn_db->parms.forwarding == 0)
  836. dev_mc_add(dev, dn_rt_all_end_mcast);
  837. else
  838. dev_mc_add(dev, dn_rt_all_rt_mcast);
  839. dn_db->use_long = 1;
  840. return 0;
  841. }
  842. static void dn_eth_down(struct net_device *dev)
  843. {
  844. struct dn_dev *dn_db = dev->dn_ptr;
  845. if (dn_db->parms.forwarding == 0)
  846. dev_mc_del(dev, dn_rt_all_end_mcast);
  847. else
  848. dev_mc_del(dev, dn_rt_all_rt_mcast);
  849. }
  850. static void dn_dev_set_timer(struct net_device *dev);
  851. static void dn_dev_timer_func(unsigned long arg)
  852. {
  853. struct net_device *dev = (struct net_device *)arg;
  854. struct dn_dev *dn_db = dev->dn_ptr;
  855. struct dn_ifaddr *ifa;
  856. if (dn_db->t3 <= dn_db->parms.t2) {
  857. if (dn_db->parms.timer3) {
  858. for(ifa = dn_db->ifa_list; ifa; ifa = ifa->ifa_next) {
  859. if (!(ifa->ifa_flags & IFA_F_SECONDARY))
  860. dn_db->parms.timer3(dev, ifa);
  861. }
  862. }
  863. dn_db->t3 = dn_db->parms.t3;
  864. } else {
  865. dn_db->t3 -= dn_db->parms.t2;
  866. }
  867. dn_dev_set_timer(dev);
  868. }
  869. static void dn_dev_set_timer(struct net_device *dev)
  870. {
  871. struct dn_dev *dn_db = dev->dn_ptr;
  872. if (dn_db->parms.t2 > dn_db->parms.t3)
  873. dn_db->parms.t2 = dn_db->parms.t3;
  874. dn_db->timer.data = (unsigned long)dev;
  875. dn_db->timer.function = dn_dev_timer_func;
  876. dn_db->timer.expires = jiffies + (dn_db->parms.t2 * HZ);
  877. add_timer(&dn_db->timer);
  878. }
  879. static struct dn_dev *dn_dev_create(struct net_device *dev, int *err)
  880. {
  881. int i;
  882. struct dn_dev_parms *p = dn_dev_list;
  883. struct dn_dev *dn_db;
  884. for(i = 0; i < DN_DEV_LIST_SIZE; i++, p++) {
  885. if (p->type == dev->type)
  886. break;
  887. }
  888. *err = -ENODEV;
  889. if (i == DN_DEV_LIST_SIZE)
  890. return NULL;
  891. *err = -ENOBUFS;
  892. if ((dn_db = kzalloc(sizeof(struct dn_dev), GFP_ATOMIC)) == NULL)
  893. return NULL;
  894. memcpy(&dn_db->parms, p, sizeof(struct dn_dev_parms));
  895. smp_wmb();
  896. dev->dn_ptr = dn_db;
  897. dn_db->dev = dev;
  898. init_timer(&dn_db->timer);
  899. dn_db->uptime = jiffies;
  900. dn_db->neigh_parms = neigh_parms_alloc(dev, &dn_neigh_table);
  901. if (!dn_db->neigh_parms) {
  902. dev->dn_ptr = NULL;
  903. kfree(dn_db);
  904. return NULL;
  905. }
  906. if (dn_db->parms.up) {
  907. if (dn_db->parms.up(dev) < 0) {
  908. neigh_parms_release(&dn_neigh_table, dn_db->neigh_parms);
  909. dev->dn_ptr = NULL;
  910. kfree(dn_db);
  911. return NULL;
  912. }
  913. }
  914. dn_dev_sysctl_register(dev, &dn_db->parms);
  915. dn_dev_set_timer(dev);
  916. *err = 0;
  917. return dn_db;
  918. }
  919. /*
  920. * This processes a device up event. We only start up
  921. * the loopback device & ethernet devices with correct
  922. * MAC addreses automatically. Others must be started
  923. * specifically.
  924. *
  925. * FIXME: How should we configure the loopback address ? If we could dispense
  926. * with using decnet_address here and for autobind, it will be one less thing
  927. * for users to worry about setting up.
  928. */
  929. void dn_dev_up(struct net_device *dev)
  930. {
  931. struct dn_ifaddr *ifa;
  932. __le16 addr = decnet_address;
  933. int maybe_default = 0;
  934. struct dn_dev *dn_db = (struct dn_dev *)dev->dn_ptr;
  935. if ((dev->type != ARPHRD_ETHER) && (dev->type != ARPHRD_LOOPBACK))
  936. return;
  937. /*
  938. * Need to ensure that loopback device has a dn_db attached to it
  939. * to allow creation of neighbours against it, even though it might
  940. * not have a local address of its own. Might as well do the same for
  941. * all autoconfigured interfaces.
  942. */
  943. if (dn_db == NULL) {
  944. int err;
  945. dn_db = dn_dev_create(dev, &err);
  946. if (dn_db == NULL)
  947. return;
  948. }
  949. if (dev->type == ARPHRD_ETHER) {
  950. if (memcmp(dev->dev_addr, dn_hiord, 4) != 0)
  951. return;
  952. addr = dn_eth2dn(dev->dev_addr);
  953. maybe_default = 1;
  954. }
  955. if (addr == 0)
  956. return;
  957. if ((ifa = dn_dev_alloc_ifa()) == NULL)
  958. return;
  959. ifa->ifa_local = ifa->ifa_address = addr;
  960. ifa->ifa_flags = 0;
  961. ifa->ifa_scope = RT_SCOPE_UNIVERSE;
  962. strcpy(ifa->ifa_label, dev->name);
  963. dn_dev_set_ifa(dev, ifa);
  964. /*
  965. * Automagically set the default device to the first automatically
  966. * configured ethernet card in the system.
  967. */
  968. if (maybe_default) {
  969. dev_hold(dev);
  970. if (dn_dev_set_default(dev, 0))
  971. dev_put(dev);
  972. }
  973. }
  974. static void dn_dev_delete(struct net_device *dev)
  975. {
  976. struct dn_dev *dn_db = dev->dn_ptr;
  977. if (dn_db == NULL)
  978. return;
  979. del_timer_sync(&dn_db->timer);
  980. dn_dev_sysctl_unregister(&dn_db->parms);
  981. dn_dev_check_default(dev);
  982. neigh_ifdown(&dn_neigh_table, dev);
  983. if (dn_db->parms.down)
  984. dn_db->parms.down(dev);
  985. dev->dn_ptr = NULL;
  986. neigh_parms_release(&dn_neigh_table, dn_db->neigh_parms);
  987. neigh_ifdown(&dn_neigh_table, dev);
  988. if (dn_db->router)
  989. neigh_release(dn_db->router);
  990. if (dn_db->peer)
  991. neigh_release(dn_db->peer);
  992. kfree(dn_db);
  993. }
  994. void dn_dev_down(struct net_device *dev)
  995. {
  996. struct dn_dev *dn_db = dev->dn_ptr;
  997. struct dn_ifaddr *ifa;
  998. if (dn_db == NULL)
  999. return;
  1000. while((ifa = dn_db->ifa_list) != NULL) {
  1001. dn_dev_del_ifa(dn_db, &dn_db->ifa_list, 0);
  1002. dn_dev_free_ifa(ifa);
  1003. }
  1004. dn_dev_delete(dev);
  1005. }
  1006. void dn_dev_init_pkt(struct sk_buff *skb)
  1007. {
  1008. }
  1009. void dn_dev_veri_pkt(struct sk_buff *skb)
  1010. {
  1011. }
  1012. void dn_dev_hello(struct sk_buff *skb)
  1013. {
  1014. }
  1015. void dn_dev_devices_off(void)
  1016. {
  1017. struct net_device *dev;
  1018. rtnl_lock();
  1019. for_each_netdev(&init_net, dev)
  1020. dn_dev_down(dev);
  1021. rtnl_unlock();
  1022. }
  1023. void dn_dev_devices_on(void)
  1024. {
  1025. struct net_device *dev;
  1026. rtnl_lock();
  1027. for_each_netdev(&init_net, dev) {
  1028. if (dev->flags & IFF_UP)
  1029. dn_dev_up(dev);
  1030. }
  1031. rtnl_unlock();
  1032. }
  1033. int register_dnaddr_notifier(struct notifier_block *nb)
  1034. {
  1035. return blocking_notifier_chain_register(&dnaddr_chain, nb);
  1036. }
  1037. int unregister_dnaddr_notifier(struct notifier_block *nb)
  1038. {
  1039. return blocking_notifier_chain_unregister(&dnaddr_chain, nb);
  1040. }
  1041. #ifdef CONFIG_PROC_FS
  1042. static inline int is_dn_dev(struct net_device *dev)
  1043. {
  1044. return dev->dn_ptr != NULL;
  1045. }
  1046. static void *dn_dev_seq_start(struct seq_file *seq, loff_t *pos)
  1047. __acquires(rcu)
  1048. {
  1049. int i;
  1050. struct net_device *dev;
  1051. rcu_read_lock();
  1052. if (*pos == 0)
  1053. return SEQ_START_TOKEN;
  1054. i = 1;
  1055. for_each_netdev_rcu(&init_net, dev) {
  1056. if (!is_dn_dev(dev))
  1057. continue;
  1058. if (i++ == *pos)
  1059. return dev;
  1060. }
  1061. return NULL;
  1062. }
  1063. static void *dn_dev_seq_next(struct seq_file *seq, void *v, loff_t *pos)
  1064. {
  1065. struct net_device *dev;
  1066. ++*pos;
  1067. dev = (struct net_device *)v;
  1068. if (v == SEQ_START_TOKEN)
  1069. dev = net_device_entry(&init_net.dev_base_head);
  1070. for_each_netdev_continue_rcu(&init_net, dev) {
  1071. if (!is_dn_dev(dev))
  1072. continue;
  1073. return dev;
  1074. }
  1075. return NULL;
  1076. }
  1077. static void dn_dev_seq_stop(struct seq_file *seq, void *v)
  1078. __releases(rcu)
  1079. {
  1080. rcu_read_unlock();
  1081. }
  1082. static char *dn_type2asc(char type)
  1083. {
  1084. switch(type) {
  1085. case DN_DEV_BCAST:
  1086. return "B";
  1087. case DN_DEV_UCAST:
  1088. return "U";
  1089. case DN_DEV_MPOINT:
  1090. return "M";
  1091. }
  1092. return "?";
  1093. }
  1094. static int dn_dev_seq_show(struct seq_file *seq, void *v)
  1095. {
  1096. if (v == SEQ_START_TOKEN)
  1097. seq_puts(seq, "Name Flags T1 Timer1 T3 Timer3 BlkSize Pri State DevType Router Peer\n");
  1098. else {
  1099. struct net_device *dev = v;
  1100. char peer_buf[DN_ASCBUF_LEN];
  1101. char router_buf[DN_ASCBUF_LEN];
  1102. struct dn_dev *dn_db = dev->dn_ptr;
  1103. seq_printf(seq, "%-8s %1s %04u %04u %04lu %04lu"
  1104. " %04hu %03d %02x %-10s %-7s %-7s\n",
  1105. dev->name ? dev->name : "???",
  1106. dn_type2asc(dn_db->parms.mode),
  1107. 0, 0,
  1108. dn_db->t3, dn_db->parms.t3,
  1109. mtu2blksize(dev),
  1110. dn_db->parms.priority,
  1111. dn_db->parms.state, dn_db->parms.name,
  1112. dn_db->router ? dn_addr2asc(le16_to_cpu(*(__le16 *)dn_db->router->primary_key), router_buf) : "",
  1113. dn_db->peer ? dn_addr2asc(le16_to_cpu(*(__le16 *)dn_db->peer->primary_key), peer_buf) : "");
  1114. }
  1115. return 0;
  1116. }
  1117. static const struct seq_operations dn_dev_seq_ops = {
  1118. .start = dn_dev_seq_start,
  1119. .next = dn_dev_seq_next,
  1120. .stop = dn_dev_seq_stop,
  1121. .show = dn_dev_seq_show,
  1122. };
  1123. static int dn_dev_seq_open(struct inode *inode, struct file *file)
  1124. {
  1125. return seq_open(file, &dn_dev_seq_ops);
  1126. }
  1127. static const struct file_operations dn_dev_seq_fops = {
  1128. .owner = THIS_MODULE,
  1129. .open = dn_dev_seq_open,
  1130. .read = seq_read,
  1131. .llseek = seq_lseek,
  1132. .release = seq_release,
  1133. };
  1134. #endif /* CONFIG_PROC_FS */
  1135. static int addr[2];
  1136. module_param_array(addr, int, NULL, 0444);
  1137. MODULE_PARM_DESC(addr, "The DECnet address of this machine: area,node");
  1138. void __init dn_dev_init(void)
  1139. {
  1140. if (addr[0] > 63 || addr[0] < 0) {
  1141. printk(KERN_ERR "DECnet: Area must be between 0 and 63");
  1142. return;
  1143. }
  1144. if (addr[1] > 1023 || addr[1] < 0) {
  1145. printk(KERN_ERR "DECnet: Node must be between 0 and 1023");
  1146. return;
  1147. }
  1148. decnet_address = cpu_to_le16((addr[0] << 10) | addr[1]);
  1149. dn_dev_devices_on();
  1150. rtnl_register(PF_DECnet, RTM_NEWADDR, dn_nl_newaddr, NULL);
  1151. rtnl_register(PF_DECnet, RTM_DELADDR, dn_nl_deladdr, NULL);
  1152. rtnl_register(PF_DECnet, RTM_GETADDR, NULL, dn_nl_dump_ifaddr);
  1153. proc_net_fops_create(&init_net, "decnet_dev", S_IRUGO, &dn_dev_seq_fops);
  1154. #ifdef CONFIG_SYSCTL
  1155. {
  1156. int i;
  1157. for(i = 0; i < DN_DEV_LIST_SIZE; i++)
  1158. dn_dev_sysctl_register(NULL, &dn_dev_list[i]);
  1159. }
  1160. #endif /* CONFIG_SYSCTL */
  1161. }
  1162. void __exit dn_dev_cleanup(void)
  1163. {
  1164. #ifdef CONFIG_SYSCTL
  1165. {
  1166. int i;
  1167. for(i = 0; i < DN_DEV_LIST_SIZE; i++)
  1168. dn_dev_sysctl_unregister(&dn_dev_list[i]);
  1169. }
  1170. #endif /* CONFIG_SYSCTL */
  1171. proc_net_remove(&init_net, "decnet_dev");
  1172. dn_dev_devices_off();
  1173. }