net.c 35 KB

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  1. /*
  2. * Copied from Linux Monitor (LiMon) - Networking.
  3. *
  4. * Copyright 1994 - 2000 Neil Russell.
  5. * (See License)
  6. * Copyright 2000 Roland Borde
  7. * Copyright 2000 Paolo Scaffardi
  8. * Copyright 2000-2002 Wolfgang Denk, wd@denx.de
  9. * SPDX-License-Identifier: GPL-2.0
  10. */
  11. /*
  12. * General Desription:
  13. *
  14. * The user interface supports commands for BOOTP, RARP, and TFTP.
  15. * Also, we support ARP internally. Depending on available data,
  16. * these interact as follows:
  17. *
  18. * BOOTP:
  19. *
  20. * Prerequisites: - own ethernet address
  21. * We want: - own IP address
  22. * - TFTP server IP address
  23. * - name of bootfile
  24. * Next step: ARP
  25. *
  26. * LINK_LOCAL:
  27. *
  28. * Prerequisites: - own ethernet address
  29. * We want: - own IP address
  30. * Next step: ARP
  31. *
  32. * RARP:
  33. *
  34. * Prerequisites: - own ethernet address
  35. * We want: - own IP address
  36. * - TFTP server IP address
  37. * Next step: ARP
  38. *
  39. * ARP:
  40. *
  41. * Prerequisites: - own ethernet address
  42. * - own IP address
  43. * - TFTP server IP address
  44. * We want: - TFTP server ethernet address
  45. * Next step: TFTP
  46. *
  47. * DHCP:
  48. *
  49. * Prerequisites: - own ethernet address
  50. * We want: - IP, Netmask, ServerIP, Gateway IP
  51. * - bootfilename, lease time
  52. * Next step: - TFTP
  53. *
  54. * TFTP:
  55. *
  56. * Prerequisites: - own ethernet address
  57. * - own IP address
  58. * - TFTP server IP address
  59. * - TFTP server ethernet address
  60. * - name of bootfile (if unknown, we use a default name
  61. * derived from our own IP address)
  62. * We want: - load the boot file
  63. * Next step: none
  64. *
  65. * NFS:
  66. *
  67. * Prerequisites: - own ethernet address
  68. * - own IP address
  69. * - name of bootfile (if unknown, we use a default name
  70. * derived from our own IP address)
  71. * We want: - load the boot file
  72. * Next step: none
  73. *
  74. * SNTP:
  75. *
  76. * Prerequisites: - own ethernet address
  77. * - own IP address
  78. * We want: - network time
  79. * Next step: none
  80. */
  81. #include <common.h>
  82. #include <command.h>
  83. #include <environment.h>
  84. #include <errno.h>
  85. #include <net.h>
  86. #if defined(CONFIG_STATUS_LED)
  87. #include <miiphy.h>
  88. #include <status_led.h>
  89. #endif
  90. #include <watchdog.h>
  91. #include <linux/compiler.h>
  92. #include "arp.h"
  93. #include "bootp.h"
  94. #include "cdp.h"
  95. #if defined(CONFIG_CMD_DNS)
  96. #include "dns.h"
  97. #endif
  98. #include "link_local.h"
  99. #include "nfs.h"
  100. #include "ping.h"
  101. #include "rarp.h"
  102. #if defined(CONFIG_CMD_SNTP)
  103. #include "sntp.h"
  104. #endif
  105. #include "tftp.h"
  106. DECLARE_GLOBAL_DATA_PTR;
  107. /** BOOTP EXTENTIONS **/
  108. /* Our subnet mask (0=unknown) */
  109. struct in_addr net_netmask;
  110. /* Our gateways IP address */
  111. struct in_addr net_gateway;
  112. /* Our DNS IP address */
  113. struct in_addr net_dns_server;
  114. #if defined(CONFIG_BOOTP_DNS2)
  115. /* Our 2nd DNS IP address */
  116. struct in_addr net_dns_server2;
  117. #endif
  118. #ifdef CONFIG_MCAST_TFTP /* Multicast TFTP */
  119. struct in_addr net_mcast_addr;
  120. #endif
  121. /** END OF BOOTP EXTENTIONS **/
  122. /* Our ethernet address */
  123. u8 net_ethaddr[6];
  124. /* Boot server enet address */
  125. u8 net_server_ethaddr[6];
  126. /* Our IP addr (0 = unknown) */
  127. struct in_addr net_ip;
  128. /* Server IP addr (0 = unknown) */
  129. struct in_addr net_server_ip;
  130. /* Current receive packet */
  131. uchar *net_rx_packet;
  132. /* Current rx packet length */
  133. int net_rx_packet_len;
  134. /* IP packet ID */
  135. static unsigned net_ip_id;
  136. /* Ethernet bcast address */
  137. const u8 net_bcast_ethaddr[6] = { 0xff, 0xff, 0xff, 0xff, 0xff, 0xff };
  138. const u8 net_null_ethaddr[6];
  139. #ifdef CONFIG_API
  140. void (*push_packet)(void *, int len) = 0;
  141. #endif
  142. /* Network loop state */
  143. enum net_loop_state net_state;
  144. /* Tried all network devices */
  145. int net_restart_wrap;
  146. /* Network loop restarted */
  147. static int net_restarted;
  148. /* At least one device configured */
  149. static int net_dev_exists;
  150. /* XXX in both little & big endian machines 0xFFFF == ntohs(-1) */
  151. /* default is without VLAN */
  152. ushort net_our_vlan = 0xFFFF;
  153. /* ditto */
  154. ushort net_native_vlan = 0xFFFF;
  155. /* Boot File name */
  156. char net_boot_file_name[128];
  157. /* The actual transferred size of the bootfile (in bytes) */
  158. u32 net_boot_file_size;
  159. /* Boot file size in blocks as reported by the DHCP server */
  160. u32 net_boot_file_expected_size_in_blocks;
  161. #if defined(CONFIG_CMD_SNTP)
  162. /* NTP server IP address */
  163. struct in_addr net_ntp_server;
  164. /* offset time from UTC */
  165. int net_ntp_time_offset;
  166. #endif
  167. static uchar net_pkt_buf[(PKTBUFSRX+1) * PKTSIZE_ALIGN + PKTALIGN];
  168. /* Receive packets */
  169. uchar *net_rx_packets[PKTBUFSRX];
  170. /* Current UDP RX packet handler */
  171. static rxhand_f *udp_packet_handler;
  172. /* Current ARP RX packet handler */
  173. static rxhand_f *arp_packet_handler;
  174. #ifdef CONFIG_CMD_TFTPPUT
  175. /* Current ICMP rx handler */
  176. static rxhand_icmp_f *packet_icmp_handler;
  177. #endif
  178. /* Current timeout handler */
  179. static thand_f *time_handler;
  180. /* Time base value */
  181. static ulong time_start;
  182. /* Current timeout value */
  183. static ulong time_delta;
  184. /* THE transmit packet */
  185. uchar *net_tx_packet;
  186. static int net_check_prereq(enum proto_t protocol);
  187. static int net_try_count;
  188. int __maybe_unused net_busy_flag;
  189. /**********************************************************************/
  190. static int on_bootfile(const char *name, const char *value, enum env_op op,
  191. int flags)
  192. {
  193. if (flags & H_PROGRAMMATIC)
  194. return 0;
  195. switch (op) {
  196. case env_op_create:
  197. case env_op_overwrite:
  198. copy_filename(net_boot_file_name, value,
  199. sizeof(net_boot_file_name));
  200. break;
  201. default:
  202. break;
  203. }
  204. return 0;
  205. }
  206. U_BOOT_ENV_CALLBACK(bootfile, on_bootfile);
  207. static int on_ipaddr(const char *name, const char *value, enum env_op op,
  208. int flags)
  209. {
  210. if (flags & H_PROGRAMMATIC)
  211. return 0;
  212. net_ip = string_to_ip(value);
  213. return 0;
  214. }
  215. U_BOOT_ENV_CALLBACK(ipaddr, on_ipaddr);
  216. static int on_gatewayip(const char *name, const char *value, enum env_op op,
  217. int flags)
  218. {
  219. if (flags & H_PROGRAMMATIC)
  220. return 0;
  221. net_gateway = string_to_ip(value);
  222. return 0;
  223. }
  224. U_BOOT_ENV_CALLBACK(gatewayip, on_gatewayip);
  225. static int on_netmask(const char *name, const char *value, enum env_op op,
  226. int flags)
  227. {
  228. if (flags & H_PROGRAMMATIC)
  229. return 0;
  230. net_netmask = string_to_ip(value);
  231. return 0;
  232. }
  233. U_BOOT_ENV_CALLBACK(netmask, on_netmask);
  234. static int on_serverip(const char *name, const char *value, enum env_op op,
  235. int flags)
  236. {
  237. if (flags & H_PROGRAMMATIC)
  238. return 0;
  239. net_server_ip = string_to_ip(value);
  240. return 0;
  241. }
  242. U_BOOT_ENV_CALLBACK(serverip, on_serverip);
  243. static int on_nvlan(const char *name, const char *value, enum env_op op,
  244. int flags)
  245. {
  246. if (flags & H_PROGRAMMATIC)
  247. return 0;
  248. net_native_vlan = string_to_vlan(value);
  249. return 0;
  250. }
  251. U_BOOT_ENV_CALLBACK(nvlan, on_nvlan);
  252. static int on_vlan(const char *name, const char *value, enum env_op op,
  253. int flags)
  254. {
  255. if (flags & H_PROGRAMMATIC)
  256. return 0;
  257. net_our_vlan = string_to_vlan(value);
  258. return 0;
  259. }
  260. U_BOOT_ENV_CALLBACK(vlan, on_vlan);
  261. #if defined(CONFIG_CMD_DNS)
  262. static int on_dnsip(const char *name, const char *value, enum env_op op,
  263. int flags)
  264. {
  265. if (flags & H_PROGRAMMATIC)
  266. return 0;
  267. net_dns_server = string_to_ip(value);
  268. return 0;
  269. }
  270. U_BOOT_ENV_CALLBACK(dnsip, on_dnsip);
  271. #endif
  272. /*
  273. * Check if autoload is enabled. If so, use either NFS or TFTP to download
  274. * the boot file.
  275. */
  276. void net_auto_load(void)
  277. {
  278. #if defined(CONFIG_CMD_NFS)
  279. const char *s = getenv("autoload");
  280. if (s != NULL && strcmp(s, "NFS") == 0) {
  281. /*
  282. * Use NFS to load the bootfile.
  283. */
  284. nfs_start();
  285. return;
  286. }
  287. #endif
  288. if (getenv_yesno("autoload") == 0) {
  289. /*
  290. * Just use BOOTP/RARP to configure system;
  291. * Do not use TFTP to load the bootfile.
  292. */
  293. net_set_state(NETLOOP_SUCCESS);
  294. return;
  295. }
  296. tftp_start(TFTPGET);
  297. }
  298. static void net_init_loop(void)
  299. {
  300. if (eth_get_dev())
  301. memcpy(net_ethaddr, eth_get_ethaddr(), 6);
  302. return;
  303. }
  304. static void net_clear_handlers(void)
  305. {
  306. net_set_udp_handler(NULL);
  307. net_set_arp_handler(NULL);
  308. net_set_timeout_handler(0, NULL);
  309. }
  310. static void net_cleanup_loop(void)
  311. {
  312. net_clear_handlers();
  313. }
  314. void net_init(void)
  315. {
  316. static int first_call = 1;
  317. if (first_call) {
  318. /*
  319. * Setup packet buffers, aligned correctly.
  320. */
  321. int i;
  322. net_tx_packet = &net_pkt_buf[0] + (PKTALIGN - 1);
  323. net_tx_packet -= (ulong)net_tx_packet % PKTALIGN;
  324. for (i = 0; i < PKTBUFSRX; i++) {
  325. net_rx_packets[i] = net_tx_packet +
  326. (i + 1) * PKTSIZE_ALIGN;
  327. }
  328. arp_init();
  329. net_clear_handlers();
  330. /* Only need to setup buffer pointers once. */
  331. first_call = 0;
  332. }
  333. net_init_loop();
  334. }
  335. /**********************************************************************/
  336. /*
  337. * Main network processing loop.
  338. */
  339. int net_loop(enum proto_t protocol)
  340. {
  341. int ret = -EINVAL;
  342. net_restarted = 0;
  343. net_dev_exists = 0;
  344. net_try_count = 1;
  345. debug_cond(DEBUG_INT_STATE, "--- net_loop Entry\n");
  346. bootstage_mark_name(BOOTSTAGE_ID_ETH_START, "eth_start");
  347. net_init();
  348. if (eth_is_on_demand_init() || protocol != NETCONS) {
  349. eth_halt();
  350. eth_set_current();
  351. ret = eth_init();
  352. if (ret < 0) {
  353. eth_halt();
  354. return ret;
  355. }
  356. } else {
  357. eth_init_state_only();
  358. }
  359. restart:
  360. #ifdef CONFIG_USB_KEYBOARD
  361. net_busy_flag = 0;
  362. #endif
  363. net_set_state(NETLOOP_CONTINUE);
  364. /*
  365. * Start the ball rolling with the given start function. From
  366. * here on, this code is a state machine driven by received
  367. * packets and timer events.
  368. */
  369. debug_cond(DEBUG_INT_STATE, "--- net_loop Init\n");
  370. net_init_loop();
  371. switch (net_check_prereq(protocol)) {
  372. case 1:
  373. /* network not configured */
  374. eth_halt();
  375. return -ENODEV;
  376. case 2:
  377. /* network device not configured */
  378. break;
  379. case 0:
  380. net_dev_exists = 1;
  381. net_boot_file_size = 0;
  382. switch (protocol) {
  383. case TFTPGET:
  384. #ifdef CONFIG_CMD_TFTPPUT
  385. case TFTPPUT:
  386. #endif
  387. /* always use ARP to get server ethernet address */
  388. tftp_start(protocol);
  389. break;
  390. #ifdef CONFIG_CMD_TFTPSRV
  391. case TFTPSRV:
  392. tftp_start_server();
  393. break;
  394. #endif
  395. #if defined(CONFIG_CMD_DHCP)
  396. case DHCP:
  397. bootp_reset();
  398. net_ip.s_addr = 0;
  399. dhcp_request(); /* Basically same as BOOTP */
  400. break;
  401. #endif
  402. case BOOTP:
  403. bootp_reset();
  404. net_ip.s_addr = 0;
  405. bootp_request();
  406. break;
  407. #if defined(CONFIG_CMD_RARP)
  408. case RARP:
  409. rarp_try = 0;
  410. net_ip.s_addr = 0;
  411. rarp_request();
  412. break;
  413. #endif
  414. #if defined(CONFIG_CMD_PING)
  415. case PING:
  416. ping_start();
  417. break;
  418. #endif
  419. #if defined(CONFIG_CMD_NFS)
  420. case NFS:
  421. nfs_start();
  422. break;
  423. #endif
  424. #if defined(CONFIG_CMD_CDP)
  425. case CDP:
  426. cdp_start();
  427. break;
  428. #endif
  429. #if defined(CONFIG_NETCONSOLE) && !(CONFIG_SPL_BUILD)
  430. case NETCONS:
  431. nc_start();
  432. break;
  433. #endif
  434. #if defined(CONFIG_CMD_SNTP)
  435. case SNTP:
  436. sntp_start();
  437. break;
  438. #endif
  439. #if defined(CONFIG_CMD_DNS)
  440. case DNS:
  441. dns_start();
  442. break;
  443. #endif
  444. #if defined(CONFIG_CMD_LINK_LOCAL)
  445. case LINKLOCAL:
  446. link_local_start();
  447. break;
  448. #endif
  449. default:
  450. break;
  451. }
  452. break;
  453. }
  454. #if defined(CONFIG_MII) || defined(CONFIG_CMD_MII)
  455. #if defined(CONFIG_SYS_FAULT_ECHO_LINK_DOWN) && \
  456. defined(CONFIG_STATUS_LED) && \
  457. defined(STATUS_LED_RED)
  458. /*
  459. * Echo the inverted link state to the fault LED.
  460. */
  461. if (miiphy_link(eth_get_dev()->name, CONFIG_SYS_FAULT_MII_ADDR))
  462. status_led_set(STATUS_LED_RED, STATUS_LED_OFF);
  463. else
  464. status_led_set(STATUS_LED_RED, STATUS_LED_ON);
  465. #endif /* CONFIG_SYS_FAULT_ECHO_LINK_DOWN, ... */
  466. #endif /* CONFIG_MII, ... */
  467. #ifdef CONFIG_USB_KEYBOARD
  468. net_busy_flag = 1;
  469. #endif
  470. /*
  471. * Main packet reception loop. Loop receiving packets until
  472. * someone sets `net_state' to a state that terminates.
  473. */
  474. for (;;) {
  475. WATCHDOG_RESET();
  476. #ifdef CONFIG_SHOW_ACTIVITY
  477. show_activity(1);
  478. #endif
  479. /*
  480. * Check the ethernet for a new packet. The ethernet
  481. * receive routine will process it.
  482. * Most drivers return the most recent packet size, but not
  483. * errors that may have happened.
  484. */
  485. eth_rx();
  486. /*
  487. * Abort if ctrl-c was pressed.
  488. */
  489. if (ctrlc()) {
  490. /* cancel any ARP that may not have completed */
  491. net_arp_wait_packet_ip.s_addr = 0;
  492. net_cleanup_loop();
  493. eth_halt();
  494. /* Invalidate the last protocol */
  495. eth_set_last_protocol(BOOTP);
  496. puts("\nAbort\n");
  497. /* include a debug print as well incase the debug
  498. messages are directed to stderr */
  499. debug_cond(DEBUG_INT_STATE, "--- net_loop Abort!\n");
  500. goto done;
  501. }
  502. arp_timeout_check();
  503. /*
  504. * Check for a timeout, and run the timeout handler
  505. * if we have one.
  506. */
  507. if (time_handler &&
  508. ((get_timer(0) - time_start) > time_delta)) {
  509. thand_f *x;
  510. #if defined(CONFIG_MII) || defined(CONFIG_CMD_MII)
  511. #if defined(CONFIG_SYS_FAULT_ECHO_LINK_DOWN) && \
  512. defined(CONFIG_STATUS_LED) && \
  513. defined(STATUS_LED_RED)
  514. /*
  515. * Echo the inverted link state to the fault LED.
  516. */
  517. if (miiphy_link(eth_get_dev()->name,
  518. CONFIG_SYS_FAULT_MII_ADDR))
  519. status_led_set(STATUS_LED_RED, STATUS_LED_OFF);
  520. else
  521. status_led_set(STATUS_LED_RED, STATUS_LED_ON);
  522. #endif /* CONFIG_SYS_FAULT_ECHO_LINK_DOWN, ... */
  523. #endif /* CONFIG_MII, ... */
  524. debug_cond(DEBUG_INT_STATE, "--- net_loop timeout\n");
  525. x = time_handler;
  526. time_handler = (thand_f *)0;
  527. (*x)();
  528. }
  529. if (net_state == NETLOOP_FAIL)
  530. ret = net_start_again();
  531. switch (net_state) {
  532. case NETLOOP_RESTART:
  533. net_restarted = 1;
  534. goto restart;
  535. case NETLOOP_SUCCESS:
  536. net_cleanup_loop();
  537. if (net_boot_file_size > 0) {
  538. printf("Bytes transferred = %d (%x hex)\n",
  539. net_boot_file_size, net_boot_file_size);
  540. setenv_hex("filesize", net_boot_file_size);
  541. setenv_hex("fileaddr", load_addr);
  542. }
  543. if (protocol != NETCONS)
  544. eth_halt();
  545. else
  546. eth_halt_state_only();
  547. eth_set_last_protocol(protocol);
  548. ret = net_boot_file_size;
  549. debug_cond(DEBUG_INT_STATE, "--- net_loop Success!\n");
  550. goto done;
  551. case NETLOOP_FAIL:
  552. net_cleanup_loop();
  553. /* Invalidate the last protocol */
  554. eth_set_last_protocol(BOOTP);
  555. debug_cond(DEBUG_INT_STATE, "--- net_loop Fail!\n");
  556. goto done;
  557. case NETLOOP_CONTINUE:
  558. continue;
  559. }
  560. }
  561. done:
  562. #ifdef CONFIG_USB_KEYBOARD
  563. net_busy_flag = 0;
  564. #endif
  565. #ifdef CONFIG_CMD_TFTPPUT
  566. /* Clear out the handlers */
  567. net_set_udp_handler(NULL);
  568. net_set_icmp_handler(NULL);
  569. #endif
  570. return ret;
  571. }
  572. /**********************************************************************/
  573. static void start_again_timeout_handler(void)
  574. {
  575. net_set_state(NETLOOP_RESTART);
  576. }
  577. int net_start_again(void)
  578. {
  579. char *nretry;
  580. int retry_forever = 0;
  581. unsigned long retrycnt = 0;
  582. int ret;
  583. nretry = getenv("netretry");
  584. if (nretry) {
  585. if (!strcmp(nretry, "yes"))
  586. retry_forever = 1;
  587. else if (!strcmp(nretry, "no"))
  588. retrycnt = 0;
  589. else if (!strcmp(nretry, "once"))
  590. retrycnt = 1;
  591. else
  592. retrycnt = simple_strtoul(nretry, NULL, 0);
  593. } else {
  594. retrycnt = 0;
  595. retry_forever = 0;
  596. }
  597. if ((!retry_forever) && (net_try_count >= retrycnt)) {
  598. eth_halt();
  599. net_set_state(NETLOOP_FAIL);
  600. /*
  601. * We don't provide a way for the protocol to return an error,
  602. * but this is almost always the reason.
  603. */
  604. return -ETIMEDOUT;
  605. }
  606. net_try_count++;
  607. eth_halt();
  608. #if !defined(CONFIG_NET_DO_NOT_TRY_ANOTHER)
  609. eth_try_another(!net_restarted);
  610. #endif
  611. ret = eth_init();
  612. if (net_restart_wrap) {
  613. net_restart_wrap = 0;
  614. if (net_dev_exists) {
  615. net_set_timeout_handler(10000UL,
  616. start_again_timeout_handler);
  617. net_set_udp_handler(NULL);
  618. } else {
  619. net_set_state(NETLOOP_FAIL);
  620. }
  621. } else {
  622. net_set_state(NETLOOP_RESTART);
  623. }
  624. return ret;
  625. }
  626. /**********************************************************************/
  627. /*
  628. * Miscelaneous bits.
  629. */
  630. static void dummy_handler(uchar *pkt, unsigned dport,
  631. struct in_addr sip, unsigned sport,
  632. unsigned len)
  633. {
  634. }
  635. rxhand_f *net_get_udp_handler(void)
  636. {
  637. return udp_packet_handler;
  638. }
  639. void net_set_udp_handler(rxhand_f *f)
  640. {
  641. debug_cond(DEBUG_INT_STATE, "--- net_loop UDP handler set (%p)\n", f);
  642. if (f == NULL)
  643. udp_packet_handler = dummy_handler;
  644. else
  645. udp_packet_handler = f;
  646. }
  647. rxhand_f *net_get_arp_handler(void)
  648. {
  649. return arp_packet_handler;
  650. }
  651. void net_set_arp_handler(rxhand_f *f)
  652. {
  653. debug_cond(DEBUG_INT_STATE, "--- net_loop ARP handler set (%p)\n", f);
  654. if (f == NULL)
  655. arp_packet_handler = dummy_handler;
  656. else
  657. arp_packet_handler = f;
  658. }
  659. #ifdef CONFIG_CMD_TFTPPUT
  660. void net_set_icmp_handler(rxhand_icmp_f *f)
  661. {
  662. packet_icmp_handler = f;
  663. }
  664. #endif
  665. void net_set_timeout_handler(ulong iv, thand_f *f)
  666. {
  667. if (iv == 0) {
  668. debug_cond(DEBUG_INT_STATE,
  669. "--- net_loop timeout handler cancelled\n");
  670. time_handler = (thand_f *)0;
  671. } else {
  672. debug_cond(DEBUG_INT_STATE,
  673. "--- net_loop timeout handler set (%p)\n", f);
  674. time_handler = f;
  675. time_start = get_timer(0);
  676. time_delta = iv * CONFIG_SYS_HZ / 1000;
  677. }
  678. }
  679. int net_send_udp_packet(uchar *ether, struct in_addr dest, int dport, int sport,
  680. int payload_len)
  681. {
  682. uchar *pkt;
  683. int eth_hdr_size;
  684. int pkt_hdr_size;
  685. /* make sure the net_tx_packet is initialized (net_init() was called) */
  686. assert(net_tx_packet != NULL);
  687. if (net_tx_packet == NULL)
  688. return -1;
  689. /* convert to new style broadcast */
  690. if (dest.s_addr == 0)
  691. dest.s_addr = 0xFFFFFFFF;
  692. /* if broadcast, make the ether address a broadcast and don't do ARP */
  693. if (dest.s_addr == 0xFFFFFFFF)
  694. ether = (uchar *)net_bcast_ethaddr;
  695. pkt = (uchar *)net_tx_packet;
  696. eth_hdr_size = net_set_ether(pkt, ether, PROT_IP);
  697. pkt += eth_hdr_size;
  698. net_set_udp_header(pkt, dest, dport, sport, payload_len);
  699. pkt_hdr_size = eth_hdr_size + IP_UDP_HDR_SIZE;
  700. /* if MAC address was not discovered yet, do an ARP request */
  701. if (memcmp(ether, net_null_ethaddr, 6) == 0) {
  702. debug_cond(DEBUG_DEV_PKT, "sending ARP for %pI4\n", &dest);
  703. /* save the ip and eth addr for the packet to send after arp */
  704. net_arp_wait_packet_ip = dest;
  705. arp_wait_packet_ethaddr = ether;
  706. /* size of the waiting packet */
  707. arp_wait_tx_packet_size = pkt_hdr_size + payload_len;
  708. /* and do the ARP request */
  709. arp_wait_try = 1;
  710. arp_wait_timer_start = get_timer(0);
  711. arp_request();
  712. return 1; /* waiting */
  713. } else {
  714. debug_cond(DEBUG_DEV_PKT, "sending UDP to %pI4/%pM\n",
  715. &dest, ether);
  716. net_send_packet(net_tx_packet, pkt_hdr_size + payload_len);
  717. return 0; /* transmitted */
  718. }
  719. }
  720. #ifdef CONFIG_IP_DEFRAG
  721. /*
  722. * This function collects fragments in a single packet, according
  723. * to the algorithm in RFC815. It returns NULL or the pointer to
  724. * a complete packet, in static storage
  725. */
  726. #ifndef CONFIG_NET_MAXDEFRAG
  727. #define CONFIG_NET_MAXDEFRAG 16384
  728. #endif
  729. /*
  730. * MAXDEFRAG, above, is chosen in the config file and is real data
  731. * so we need to add the NFS overhead, which is more than TFTP.
  732. * To use sizeof in the internal unnamed structures, we need a real
  733. * instance (can't do "sizeof(struct rpc_t.u.reply))", unfortunately).
  734. * The compiler doesn't complain nor allocates the actual structure
  735. */
  736. static struct rpc_t rpc_specimen;
  737. #define IP_PKTSIZE (CONFIG_NET_MAXDEFRAG + sizeof(rpc_specimen.u.reply))
  738. #define IP_MAXUDP (IP_PKTSIZE - IP_HDR_SIZE)
  739. /*
  740. * this is the packet being assembled, either data or frag control.
  741. * Fragments go by 8 bytes, so this union must be 8 bytes long
  742. */
  743. struct hole {
  744. /* first_byte is address of this structure */
  745. u16 last_byte; /* last byte in this hole + 1 (begin of next hole) */
  746. u16 next_hole; /* index of next (in 8-b blocks), 0 == none */
  747. u16 prev_hole; /* index of prev, 0 == none */
  748. u16 unused;
  749. };
  750. static struct ip_udp_hdr *__net_defragment(struct ip_udp_hdr *ip, int *lenp)
  751. {
  752. static uchar pkt_buff[IP_PKTSIZE] __aligned(PKTALIGN);
  753. static u16 first_hole, total_len;
  754. struct hole *payload, *thisfrag, *h, *newh;
  755. struct ip_udp_hdr *localip = (struct ip_udp_hdr *)pkt_buff;
  756. uchar *indata = (uchar *)ip;
  757. int offset8, start, len, done = 0;
  758. u16 ip_off = ntohs(ip->ip_off);
  759. /* payload starts after IP header, this fragment is in there */
  760. payload = (struct hole *)(pkt_buff + IP_HDR_SIZE);
  761. offset8 = (ip_off & IP_OFFS);
  762. thisfrag = payload + offset8;
  763. start = offset8 * 8;
  764. len = ntohs(ip->ip_len) - IP_HDR_SIZE;
  765. if (start + len > IP_MAXUDP) /* fragment extends too far */
  766. return NULL;
  767. if (!total_len || localip->ip_id != ip->ip_id) {
  768. /* new (or different) packet, reset structs */
  769. total_len = 0xffff;
  770. payload[0].last_byte = ~0;
  771. payload[0].next_hole = 0;
  772. payload[0].prev_hole = 0;
  773. first_hole = 0;
  774. /* any IP header will work, copy the first we received */
  775. memcpy(localip, ip, IP_HDR_SIZE);
  776. }
  777. /*
  778. * What follows is the reassembly algorithm. We use the payload
  779. * array as a linked list of hole descriptors, as each hole starts
  780. * at a multiple of 8 bytes. However, last byte can be whatever value,
  781. * so it is represented as byte count, not as 8-byte blocks.
  782. */
  783. h = payload + first_hole;
  784. while (h->last_byte < start) {
  785. if (!h->next_hole) {
  786. /* no hole that far away */
  787. return NULL;
  788. }
  789. h = payload + h->next_hole;
  790. }
  791. /* last fragment may be 1..7 bytes, the "+7" forces acceptance */
  792. if (offset8 + ((len + 7) / 8) <= h - payload) {
  793. /* no overlap with holes (dup fragment?) */
  794. return NULL;
  795. }
  796. if (!(ip_off & IP_FLAGS_MFRAG)) {
  797. /* no more fragmentss: truncate this (last) hole */
  798. total_len = start + len;
  799. h->last_byte = start + len;
  800. }
  801. /*
  802. * There is some overlap: fix the hole list. This code doesn't
  803. * deal with a fragment that overlaps with two different holes
  804. * (thus being a superset of a previously-received fragment).
  805. */
  806. if ((h >= thisfrag) && (h->last_byte <= start + len)) {
  807. /* complete overlap with hole: remove hole */
  808. if (!h->prev_hole && !h->next_hole) {
  809. /* last remaining hole */
  810. done = 1;
  811. } else if (!h->prev_hole) {
  812. /* first hole */
  813. first_hole = h->next_hole;
  814. payload[h->next_hole].prev_hole = 0;
  815. } else if (!h->next_hole) {
  816. /* last hole */
  817. payload[h->prev_hole].next_hole = 0;
  818. } else {
  819. /* in the middle of the list */
  820. payload[h->next_hole].prev_hole = h->prev_hole;
  821. payload[h->prev_hole].next_hole = h->next_hole;
  822. }
  823. } else if (h->last_byte <= start + len) {
  824. /* overlaps with final part of the hole: shorten this hole */
  825. h->last_byte = start;
  826. } else if (h >= thisfrag) {
  827. /* overlaps with initial part of the hole: move this hole */
  828. newh = thisfrag + (len / 8);
  829. *newh = *h;
  830. h = newh;
  831. if (h->next_hole)
  832. payload[h->next_hole].prev_hole = (h - payload);
  833. if (h->prev_hole)
  834. payload[h->prev_hole].next_hole = (h - payload);
  835. else
  836. first_hole = (h - payload);
  837. } else {
  838. /* fragment sits in the middle: split the hole */
  839. newh = thisfrag + (len / 8);
  840. *newh = *h;
  841. h->last_byte = start;
  842. h->next_hole = (newh - payload);
  843. newh->prev_hole = (h - payload);
  844. if (newh->next_hole)
  845. payload[newh->next_hole].prev_hole = (newh - payload);
  846. }
  847. /* finally copy this fragment and possibly return whole packet */
  848. memcpy((uchar *)thisfrag, indata + IP_HDR_SIZE, len);
  849. if (!done)
  850. return NULL;
  851. localip->ip_len = htons(total_len);
  852. *lenp = total_len + IP_HDR_SIZE;
  853. return localip;
  854. }
  855. static inline struct ip_udp_hdr *net_defragment(struct ip_udp_hdr *ip,
  856. int *lenp)
  857. {
  858. u16 ip_off = ntohs(ip->ip_off);
  859. if (!(ip_off & (IP_OFFS | IP_FLAGS_MFRAG)))
  860. return ip; /* not a fragment */
  861. return __net_defragment(ip, lenp);
  862. }
  863. #else /* !CONFIG_IP_DEFRAG */
  864. static inline struct ip_udp_hdr *net_defragment(struct ip_udp_hdr *ip,
  865. int *lenp)
  866. {
  867. u16 ip_off = ntohs(ip->ip_off);
  868. if (!(ip_off & (IP_OFFS | IP_FLAGS_MFRAG)))
  869. return ip; /* not a fragment */
  870. return NULL;
  871. }
  872. #endif
  873. /**
  874. * Receive an ICMP packet. We deal with REDIRECT and PING here, and silently
  875. * drop others.
  876. *
  877. * @parma ip IP packet containing the ICMP
  878. */
  879. static void receive_icmp(struct ip_udp_hdr *ip, int len,
  880. struct in_addr src_ip, struct ethernet_hdr *et)
  881. {
  882. struct icmp_hdr *icmph = (struct icmp_hdr *)&ip->udp_src;
  883. switch (icmph->type) {
  884. case ICMP_REDIRECT:
  885. if (icmph->code != ICMP_REDIR_HOST)
  886. return;
  887. printf(" ICMP Host Redirect to %pI4 ",
  888. &icmph->un.gateway);
  889. break;
  890. default:
  891. #if defined(CONFIG_CMD_PING)
  892. ping_receive(et, ip, len);
  893. #endif
  894. #ifdef CONFIG_CMD_TFTPPUT
  895. if (packet_icmp_handler)
  896. packet_icmp_handler(icmph->type, icmph->code,
  897. ntohs(ip->udp_dst), src_ip,
  898. ntohs(ip->udp_src), icmph->un.data,
  899. ntohs(ip->udp_len));
  900. #endif
  901. break;
  902. }
  903. }
  904. void net_process_received_packet(uchar *in_packet, int len)
  905. {
  906. struct ethernet_hdr *et;
  907. struct ip_udp_hdr *ip;
  908. struct in_addr dst_ip;
  909. struct in_addr src_ip;
  910. int eth_proto;
  911. #if defined(CONFIG_CMD_CDP)
  912. int iscdp;
  913. #endif
  914. ushort cti = 0, vlanid = VLAN_NONE, myvlanid, mynvlanid;
  915. debug_cond(DEBUG_NET_PKT, "packet received\n");
  916. net_rx_packet = in_packet;
  917. net_rx_packet_len = len;
  918. et = (struct ethernet_hdr *)in_packet;
  919. /* too small packet? */
  920. if (len < ETHER_HDR_SIZE)
  921. return;
  922. #ifdef CONFIG_API
  923. if (push_packet) {
  924. (*push_packet)(in_packet, len);
  925. return;
  926. }
  927. #endif
  928. #if defined(CONFIG_CMD_CDP)
  929. /* keep track if packet is CDP */
  930. iscdp = is_cdp_packet(et->et_dest);
  931. #endif
  932. myvlanid = ntohs(net_our_vlan);
  933. if (myvlanid == (ushort)-1)
  934. myvlanid = VLAN_NONE;
  935. mynvlanid = ntohs(net_native_vlan);
  936. if (mynvlanid == (ushort)-1)
  937. mynvlanid = VLAN_NONE;
  938. eth_proto = ntohs(et->et_protlen);
  939. if (eth_proto < 1514) {
  940. struct e802_hdr *et802 = (struct e802_hdr *)et;
  941. /*
  942. * Got a 802.2 packet. Check the other protocol field.
  943. * XXX VLAN over 802.2+SNAP not implemented!
  944. */
  945. eth_proto = ntohs(et802->et_prot);
  946. ip = (struct ip_udp_hdr *)(in_packet + E802_HDR_SIZE);
  947. len -= E802_HDR_SIZE;
  948. } else if (eth_proto != PROT_VLAN) { /* normal packet */
  949. ip = (struct ip_udp_hdr *)(in_packet + ETHER_HDR_SIZE);
  950. len -= ETHER_HDR_SIZE;
  951. } else { /* VLAN packet */
  952. struct vlan_ethernet_hdr *vet =
  953. (struct vlan_ethernet_hdr *)et;
  954. debug_cond(DEBUG_NET_PKT, "VLAN packet received\n");
  955. /* too small packet? */
  956. if (len < VLAN_ETHER_HDR_SIZE)
  957. return;
  958. /* if no VLAN active */
  959. if ((ntohs(net_our_vlan) & VLAN_IDMASK) == VLAN_NONE
  960. #if defined(CONFIG_CMD_CDP)
  961. && iscdp == 0
  962. #endif
  963. )
  964. return;
  965. cti = ntohs(vet->vet_tag);
  966. vlanid = cti & VLAN_IDMASK;
  967. eth_proto = ntohs(vet->vet_type);
  968. ip = (struct ip_udp_hdr *)(in_packet + VLAN_ETHER_HDR_SIZE);
  969. len -= VLAN_ETHER_HDR_SIZE;
  970. }
  971. debug_cond(DEBUG_NET_PKT, "Receive from protocol 0x%x\n", eth_proto);
  972. #if defined(CONFIG_CMD_CDP)
  973. if (iscdp) {
  974. cdp_receive((uchar *)ip, len);
  975. return;
  976. }
  977. #endif
  978. if ((myvlanid & VLAN_IDMASK) != VLAN_NONE) {
  979. if (vlanid == VLAN_NONE)
  980. vlanid = (mynvlanid & VLAN_IDMASK);
  981. /* not matched? */
  982. if (vlanid != (myvlanid & VLAN_IDMASK))
  983. return;
  984. }
  985. switch (eth_proto) {
  986. case PROT_ARP:
  987. arp_receive(et, ip, len);
  988. break;
  989. #ifdef CONFIG_CMD_RARP
  990. case PROT_RARP:
  991. rarp_receive(ip, len);
  992. break;
  993. #endif
  994. case PROT_IP:
  995. debug_cond(DEBUG_NET_PKT, "Got IP\n");
  996. /* Before we start poking the header, make sure it is there */
  997. if (len < IP_UDP_HDR_SIZE) {
  998. debug("len bad %d < %lu\n", len,
  999. (ulong)IP_UDP_HDR_SIZE);
  1000. return;
  1001. }
  1002. /* Check the packet length */
  1003. if (len < ntohs(ip->ip_len)) {
  1004. debug("len bad %d < %d\n", len, ntohs(ip->ip_len));
  1005. return;
  1006. }
  1007. len = ntohs(ip->ip_len);
  1008. debug_cond(DEBUG_NET_PKT, "len=%d, v=%02x\n",
  1009. len, ip->ip_hl_v & 0xff);
  1010. /* Can't deal with anything except IPv4 */
  1011. if ((ip->ip_hl_v & 0xf0) != 0x40)
  1012. return;
  1013. /* Can't deal with IP options (headers != 20 bytes) */
  1014. if ((ip->ip_hl_v & 0x0f) > 0x05)
  1015. return;
  1016. /* Check the Checksum of the header */
  1017. if (!ip_checksum_ok((uchar *)ip, IP_HDR_SIZE)) {
  1018. debug("checksum bad\n");
  1019. return;
  1020. }
  1021. /* If it is not for us, ignore it */
  1022. dst_ip = net_read_ip(&ip->ip_dst);
  1023. if (net_ip.s_addr && dst_ip.s_addr != net_ip.s_addr &&
  1024. dst_ip.s_addr != 0xFFFFFFFF) {
  1025. #ifdef CONFIG_MCAST_TFTP
  1026. if (net_mcast_addr != dst_ip)
  1027. #endif
  1028. return;
  1029. }
  1030. /* Read source IP address for later use */
  1031. src_ip = net_read_ip(&ip->ip_src);
  1032. /*
  1033. * The function returns the unchanged packet if it's not
  1034. * a fragment, and either the complete packet or NULL if
  1035. * it is a fragment (if !CONFIG_IP_DEFRAG, it returns NULL)
  1036. */
  1037. ip = net_defragment(ip, &len);
  1038. if (!ip)
  1039. return;
  1040. /*
  1041. * watch for ICMP host redirects
  1042. *
  1043. * There is no real handler code (yet). We just watch
  1044. * for ICMP host redirect messages. In case anybody
  1045. * sees these messages: please contact me
  1046. * (wd@denx.de), or - even better - send me the
  1047. * necessary fixes :-)
  1048. *
  1049. * Note: in all cases where I have seen this so far
  1050. * it was a problem with the router configuration,
  1051. * for instance when a router was configured in the
  1052. * BOOTP reply, but the TFTP server was on the same
  1053. * subnet. So this is probably a warning that your
  1054. * configuration might be wrong. But I'm not really
  1055. * sure if there aren't any other situations.
  1056. *
  1057. * Simon Glass <sjg@chromium.org>: We get an ICMP when
  1058. * we send a tftp packet to a dead connection, or when
  1059. * there is no server at the other end.
  1060. */
  1061. if (ip->ip_p == IPPROTO_ICMP) {
  1062. receive_icmp(ip, len, src_ip, et);
  1063. return;
  1064. } else if (ip->ip_p != IPPROTO_UDP) { /* Only UDP packets */
  1065. return;
  1066. }
  1067. debug_cond(DEBUG_DEV_PKT,
  1068. "received UDP (to=%pI4, from=%pI4, len=%d)\n",
  1069. &dst_ip, &src_ip, len);
  1070. #ifdef CONFIG_UDP_CHECKSUM
  1071. if (ip->udp_xsum != 0) {
  1072. ulong xsum;
  1073. ushort *sumptr;
  1074. ushort sumlen;
  1075. xsum = ip->ip_p;
  1076. xsum += (ntohs(ip->udp_len));
  1077. xsum += (ntohl(ip->ip_src.s_addr) >> 16) & 0x0000ffff;
  1078. xsum += (ntohl(ip->ip_src.s_addr) >> 0) & 0x0000ffff;
  1079. xsum += (ntohl(ip->ip_dst.s_addr) >> 16) & 0x0000ffff;
  1080. xsum += (ntohl(ip->ip_dst.s_addr) >> 0) & 0x0000ffff;
  1081. sumlen = ntohs(ip->udp_len);
  1082. sumptr = (ushort *)&(ip->udp_src);
  1083. while (sumlen > 1) {
  1084. ushort sumdata;
  1085. sumdata = *sumptr++;
  1086. xsum += ntohs(sumdata);
  1087. sumlen -= 2;
  1088. }
  1089. if (sumlen > 0) {
  1090. ushort sumdata;
  1091. sumdata = *(unsigned char *)sumptr;
  1092. sumdata = (sumdata << 8) & 0xff00;
  1093. xsum += sumdata;
  1094. }
  1095. while ((xsum >> 16) != 0) {
  1096. xsum = (xsum & 0x0000ffff) +
  1097. ((xsum >> 16) & 0x0000ffff);
  1098. }
  1099. if ((xsum != 0x00000000) && (xsum != 0x0000ffff)) {
  1100. printf(" UDP wrong checksum %08lx %08x\n",
  1101. xsum, ntohs(ip->udp_xsum));
  1102. return;
  1103. }
  1104. }
  1105. #endif
  1106. #if defined(CONFIG_NETCONSOLE) && !(CONFIG_SPL_BUILD)
  1107. nc_input_packet((uchar *)ip + IP_UDP_HDR_SIZE,
  1108. src_ip,
  1109. ntohs(ip->udp_dst),
  1110. ntohs(ip->udp_src),
  1111. ntohs(ip->udp_len) - UDP_HDR_SIZE);
  1112. #endif
  1113. /*
  1114. * IP header OK. Pass the packet to the current handler.
  1115. */
  1116. (*udp_packet_handler)((uchar *)ip + IP_UDP_HDR_SIZE,
  1117. ntohs(ip->udp_dst),
  1118. src_ip,
  1119. ntohs(ip->udp_src),
  1120. ntohs(ip->udp_len) - UDP_HDR_SIZE);
  1121. break;
  1122. }
  1123. }
  1124. /**********************************************************************/
  1125. static int net_check_prereq(enum proto_t protocol)
  1126. {
  1127. switch (protocol) {
  1128. /* Fall through */
  1129. #if defined(CONFIG_CMD_PING)
  1130. case PING:
  1131. if (net_ping_ip.s_addr == 0) {
  1132. puts("*** ERROR: ping address not given\n");
  1133. return 1;
  1134. }
  1135. goto common;
  1136. #endif
  1137. #if defined(CONFIG_CMD_SNTP)
  1138. case SNTP:
  1139. if (net_ntp_server.s_addr == 0) {
  1140. puts("*** ERROR: NTP server address not given\n");
  1141. return 1;
  1142. }
  1143. goto common;
  1144. #endif
  1145. #if defined(CONFIG_CMD_DNS)
  1146. case DNS:
  1147. if (net_dns_server.s_addr == 0) {
  1148. puts("*** ERROR: DNS server address not given\n");
  1149. return 1;
  1150. }
  1151. goto common;
  1152. #endif
  1153. #if defined(CONFIG_CMD_NFS)
  1154. case NFS:
  1155. #endif
  1156. /* Fall through */
  1157. case TFTPGET:
  1158. case TFTPPUT:
  1159. if (net_server_ip.s_addr == 0) {
  1160. puts("*** ERROR: `serverip' not set\n");
  1161. return 1;
  1162. }
  1163. #if defined(CONFIG_CMD_PING) || defined(CONFIG_CMD_SNTP) || \
  1164. defined(CONFIG_CMD_DNS)
  1165. common:
  1166. #endif
  1167. /* Fall through */
  1168. case NETCONS:
  1169. case TFTPSRV:
  1170. if (net_ip.s_addr == 0) {
  1171. puts("*** ERROR: `ipaddr' not set\n");
  1172. return 1;
  1173. }
  1174. /* Fall through */
  1175. #ifdef CONFIG_CMD_RARP
  1176. case RARP:
  1177. #endif
  1178. case BOOTP:
  1179. case CDP:
  1180. case DHCP:
  1181. case LINKLOCAL:
  1182. if (memcmp(net_ethaddr, "\0\0\0\0\0\0", 6) == 0) {
  1183. int num = eth_get_dev_index();
  1184. switch (num) {
  1185. case -1:
  1186. puts("*** ERROR: No ethernet found.\n");
  1187. return 1;
  1188. case 0:
  1189. puts("*** ERROR: `ethaddr' not set\n");
  1190. break;
  1191. default:
  1192. printf("*** ERROR: `eth%daddr' not set\n",
  1193. num);
  1194. break;
  1195. }
  1196. net_start_again();
  1197. return 2;
  1198. }
  1199. /* Fall through */
  1200. default:
  1201. return 0;
  1202. }
  1203. return 0; /* OK */
  1204. }
  1205. /**********************************************************************/
  1206. int
  1207. net_eth_hdr_size(void)
  1208. {
  1209. ushort myvlanid;
  1210. myvlanid = ntohs(net_our_vlan);
  1211. if (myvlanid == (ushort)-1)
  1212. myvlanid = VLAN_NONE;
  1213. return ((myvlanid & VLAN_IDMASK) == VLAN_NONE) ? ETHER_HDR_SIZE :
  1214. VLAN_ETHER_HDR_SIZE;
  1215. }
  1216. int net_set_ether(uchar *xet, const uchar *dest_ethaddr, uint prot)
  1217. {
  1218. struct ethernet_hdr *et = (struct ethernet_hdr *)xet;
  1219. ushort myvlanid;
  1220. myvlanid = ntohs(net_our_vlan);
  1221. if (myvlanid == (ushort)-1)
  1222. myvlanid = VLAN_NONE;
  1223. memcpy(et->et_dest, dest_ethaddr, 6);
  1224. memcpy(et->et_src, net_ethaddr, 6);
  1225. if ((myvlanid & VLAN_IDMASK) == VLAN_NONE) {
  1226. et->et_protlen = htons(prot);
  1227. return ETHER_HDR_SIZE;
  1228. } else {
  1229. struct vlan_ethernet_hdr *vet =
  1230. (struct vlan_ethernet_hdr *)xet;
  1231. vet->vet_vlan_type = htons(PROT_VLAN);
  1232. vet->vet_tag = htons((0 << 5) | (myvlanid & VLAN_IDMASK));
  1233. vet->vet_type = htons(prot);
  1234. return VLAN_ETHER_HDR_SIZE;
  1235. }
  1236. }
  1237. int net_update_ether(struct ethernet_hdr *et, uchar *addr, uint prot)
  1238. {
  1239. ushort protlen;
  1240. memcpy(et->et_dest, addr, 6);
  1241. memcpy(et->et_src, net_ethaddr, 6);
  1242. protlen = ntohs(et->et_protlen);
  1243. if (protlen == PROT_VLAN) {
  1244. struct vlan_ethernet_hdr *vet =
  1245. (struct vlan_ethernet_hdr *)et;
  1246. vet->vet_type = htons(prot);
  1247. return VLAN_ETHER_HDR_SIZE;
  1248. } else if (protlen > 1514) {
  1249. et->et_protlen = htons(prot);
  1250. return ETHER_HDR_SIZE;
  1251. } else {
  1252. /* 802.2 + SNAP */
  1253. struct e802_hdr *et802 = (struct e802_hdr *)et;
  1254. et802->et_prot = htons(prot);
  1255. return E802_HDR_SIZE;
  1256. }
  1257. }
  1258. void net_set_ip_header(uchar *pkt, struct in_addr dest, struct in_addr source)
  1259. {
  1260. struct ip_udp_hdr *ip = (struct ip_udp_hdr *)pkt;
  1261. /*
  1262. * Construct an IP header.
  1263. */
  1264. /* IP_HDR_SIZE / 4 (not including UDP) */
  1265. ip->ip_hl_v = 0x45;
  1266. ip->ip_tos = 0;
  1267. ip->ip_len = htons(IP_HDR_SIZE);
  1268. ip->ip_id = htons(net_ip_id++);
  1269. ip->ip_off = htons(IP_FLAGS_DFRAG); /* Don't fragment */
  1270. ip->ip_ttl = 255;
  1271. ip->ip_sum = 0;
  1272. /* already in network byte order */
  1273. net_copy_ip((void *)&ip->ip_src, &source);
  1274. /* already in network byte order */
  1275. net_copy_ip((void *)&ip->ip_dst, &dest);
  1276. }
  1277. void net_set_udp_header(uchar *pkt, struct in_addr dest, int dport, int sport,
  1278. int len)
  1279. {
  1280. struct ip_udp_hdr *ip = (struct ip_udp_hdr *)pkt;
  1281. /*
  1282. * If the data is an odd number of bytes, zero the
  1283. * byte after the last byte so that the checksum
  1284. * will work.
  1285. */
  1286. if (len & 1)
  1287. pkt[IP_UDP_HDR_SIZE + len] = 0;
  1288. net_set_ip_header(pkt, dest, net_ip);
  1289. ip->ip_len = htons(IP_UDP_HDR_SIZE + len);
  1290. ip->ip_p = IPPROTO_UDP;
  1291. ip->ip_sum = compute_ip_checksum(ip, IP_HDR_SIZE);
  1292. ip->udp_src = htons(sport);
  1293. ip->udp_dst = htons(dport);
  1294. ip->udp_len = htons(UDP_HDR_SIZE + len);
  1295. ip->udp_xsum = 0;
  1296. }
  1297. void copy_filename(char *dst, const char *src, int size)
  1298. {
  1299. if (*src && (*src == '"')) {
  1300. ++src;
  1301. --size;
  1302. }
  1303. while ((--size > 0) && *src && (*src != '"'))
  1304. *dst++ = *src++;
  1305. *dst = '\0';
  1306. }
  1307. #if defined(CONFIG_CMD_NFS) || \
  1308. defined(CONFIG_CMD_SNTP) || \
  1309. defined(CONFIG_CMD_DNS)
  1310. /*
  1311. * make port a little random (1024-17407)
  1312. * This keeps the math somewhat trivial to compute, and seems to work with
  1313. * all supported protocols/clients/servers
  1314. */
  1315. unsigned int random_port(void)
  1316. {
  1317. return 1024 + (get_timer(0) % 0x4000);
  1318. }
  1319. #endif
  1320. void ip_to_string(struct in_addr x, char *s)
  1321. {
  1322. x.s_addr = ntohl(x.s_addr);
  1323. sprintf(s, "%d.%d.%d.%d",
  1324. (int) ((x.s_addr >> 24) & 0xff),
  1325. (int) ((x.s_addr >> 16) & 0xff),
  1326. (int) ((x.s_addr >> 8) & 0xff),
  1327. (int) ((x.s_addr >> 0) & 0xff)
  1328. );
  1329. }
  1330. void vlan_to_string(ushort x, char *s)
  1331. {
  1332. x = ntohs(x);
  1333. if (x == (ushort)-1)
  1334. x = VLAN_NONE;
  1335. if (x == VLAN_NONE)
  1336. strcpy(s, "none");
  1337. else
  1338. sprintf(s, "%d", x & VLAN_IDMASK);
  1339. }
  1340. ushort string_to_vlan(const char *s)
  1341. {
  1342. ushort id;
  1343. if (s == NULL)
  1344. return htons(VLAN_NONE);
  1345. if (*s < '0' || *s > '9')
  1346. id = VLAN_NONE;
  1347. else
  1348. id = (ushort)simple_strtoul(s, NULL, 10);
  1349. return htons(id);
  1350. }
  1351. ushort getenv_vlan(char *var)
  1352. {
  1353. return string_to_vlan(getenv(var));
  1354. }