sdla_x25.c 149 KB

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  1. /*****************************************************************************
  2. * sdla_x25.c WANPIPE(tm) Multiprotocol WAN Link Driver. X.25 module.
  3. *
  4. * Author: Nenad Corbic <ncorbic@sangoma.com>
  5. *
  6. * Copyright: (c) 1995-2001 Sangoma Technologies Inc.
  7. *
  8. * This program is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU General Public License
  10. * as published by the Free Software Foundation; either version
  11. * 2 of the License, or (at your option) any later version.
  12. * ============================================================================
  13. * Apr 03, 2001 Nenad Corbic o Fixed the rx_skb=NULL bug in x25 in rx_intr().
  14. * Dec 26, 2000 Nenad Corbic o Added a new polling routine, that uses
  15. * a kernel timer (more efficient).
  16. * Dec 25, 2000 Nenad Corbic o Updated for 2.4.X kernel
  17. * Jul 26, 2000 Nenad Corbic o Increased the local packet buffering
  18. * for API to 4096+header_size.
  19. * Jul 17, 2000 Nenad Corbic o Fixed the x25 startup bug. Enable
  20. * communications only after all interfaces
  21. * come up. HIGH SVC/PVC is used to calculate
  22. * the number of channels.
  23. * Enable protocol only after all interfaces
  24. * are enabled.
  25. * Jul 10, 2000 Nenad Corbic o Fixed the M_BIT bug.
  26. * Apr 25, 2000 Nenad Corbic o Pass Modem messages to the API.
  27. * Disable idle timeout in X25 API.
  28. * Apr 14, 2000 Nenad Corbic o Fixed: Large LCN number support.
  29. * Maximum LCN number is 4095.
  30. * Maximum number of X25 channels is 255.
  31. * Apr 06, 2000 Nenad Corbic o Added SMP Support.
  32. * Mar 29, 2000 Nenad Corbic o Added support for S514 PCI Card
  33. * Mar 23, 2000 Nenad Corbic o Improved task queue, BH handling.
  34. * Mar 14, 2000 Nenad Corbic o Updated Protocol Violation handling
  35. * routines. Bug Fix.
  36. * Mar 10, 2000 Nenad Corbic o Bug Fix: corrupted mbox recovery.
  37. * Mar 09, 2000 Nenad Corbic o Fixed the auto HDLC bug.
  38. * Mar 08, 2000 Nenad Corbic o Fixed LAPB HDLC startup problems.
  39. * Application must bring the link up
  40. * before tx/rx, and bring the
  41. * link down on close().
  42. * Mar 06, 2000 Nenad Corbic o Added an option for logging call setup
  43. * information.
  44. * Feb 29, 2000 Nenad Corbic o Added support for LAPB HDLC API
  45. * Feb 25, 2000 Nenad Corbic o Fixed the modem failure handling.
  46. * No Modem OOB message will be passed
  47. * to the user.
  48. * Feb 21, 2000 Nenad Corbic o Added Xpipemon Debug Support
  49. * Dec 30, 1999 Nenad Corbic o Socket based X25API
  50. * Sep 17, 1998 Jaspreet Singh o Updates for 2.2.X kernel
  51. * Mar 15, 1998 Alan Cox o 2.1.x porting
  52. * Dec 19, 1997 Jaspreet Singh o Added multi-channel IPX support
  53. * Nov 27, 1997 Jaspreet Singh o Added protection against enabling of irqs
  54. * when they are disabled.
  55. * Nov 17, 1997 Farhan Thawar o Added IPX support
  56. * o Changed if_send() to now buffer packets when
  57. * the board is busy
  58. * o Removed queueing of packets via the polling
  59. * routing
  60. * o Changed if_send() critical flags to properly
  61. * handle race conditions
  62. * Nov 06, 1997 Farhan Thawar o Added support for SVC timeouts
  63. * o Changed PVC encapsulation to ETH_P_IP
  64. * Jul 21, 1997 Jaspreet Singh o Fixed freeing up of buffers using kfree()
  65. * when packets are received.
  66. * Mar 11, 1997 Farhan Thawar Version 3.1.1
  67. * o added support for V35
  68. * o changed if_send() to return 0 if
  69. * wandev.critical() is true
  70. * o free socket buffer in if_send() if
  71. * returning 0
  72. * o added support for single '@' address to
  73. * accept all incoming calls
  74. * o fixed bug in set_chan_state() to disconnect
  75. * Jan 15, 1997 Gene Kozin Version 3.1.0
  76. * o implemented exec() entry point
  77. * Jan 07, 1997 Gene Kozin Initial version.
  78. *****************************************************************************/
  79. /*======================================================
  80. * Includes
  81. *=====================================================*/
  82. #include <linux/module.h>
  83. #include <linux/kernel.h> /* printk(), and other useful stuff */
  84. #include <linux/stddef.h> /* offsetof(), etc. */
  85. #include <linux/errno.h> /* return codes */
  86. #include <linux/string.h> /* inline memset(), etc. */
  87. #include <linux/ctype.h>
  88. #include <linux/slab.h> /* kmalloc(), kfree() */
  89. #include <linux/wanrouter.h> /* WAN router definitions */
  90. #include <linux/wanpipe.h> /* WANPIPE common user API definitions */
  91. #include <linux/workqueue.h>
  92. #include <linux/jiffies.h> /* time_after() macro */
  93. #include <asm/byteorder.h> /* htons(), etc. */
  94. #include <asm/atomic.h>
  95. #include <linux/delay.h> /* Experimental delay */
  96. #include <asm/uaccess.h>
  97. #include <linux/if.h>
  98. #include <linux/if_arp.h>
  99. #include <linux/sdla_x25.h> /* X.25 firmware API definitions */
  100. #include <linux/if_wanpipe_common.h>
  101. #include <linux/if_wanpipe.h>
  102. /*======================================================
  103. * Defines & Macros
  104. *=====================================================*/
  105. #define CMD_OK 0 /* normal firmware return code */
  106. #define CMD_TIMEOUT 0xFF /* firmware command timed out */
  107. #define MAX_CMD_RETRY 10 /* max number of firmware retries */
  108. #define X25_CHAN_MTU 4096 /* unfragmented logical channel MTU */
  109. #define X25_HRDHDR_SZ 7 /* max encapsulation header size */
  110. #define X25_CONCT_TMOUT (90*HZ) /* link connection timeout */
  111. #define X25_RECON_TMOUT (10*HZ) /* link connection timeout */
  112. #define CONNECT_TIMEOUT (90*HZ) /* link connection timeout */
  113. #define HOLD_DOWN_TIME (30*HZ) /* link hold down time */
  114. #define MAX_BH_BUFF 10
  115. #define M_BIT 0x01
  116. //#define PRINT_DEBUG 1
  117. #ifdef PRINT_DEBUG
  118. #define DBG_PRINTK(format, a...) printk(format, ## a)
  119. #else
  120. #define DBG_PRINTK(format, a...)
  121. #endif
  122. #define TMR_INT_ENABLED_POLL_ACTIVE 0x01
  123. #define TMR_INT_ENABLED_POLL_CONNECT_ON 0x02
  124. #define TMR_INT_ENABLED_POLL_CONNECT_OFF 0x04
  125. #define TMR_INT_ENABLED_POLL_DISCONNECT 0x08
  126. #define TMR_INT_ENABLED_CMD_EXEC 0x10
  127. #define TMR_INT_ENABLED_UPDATE 0x20
  128. #define TMR_INT_ENABLED_UDP_PKT 0x40
  129. #define MAX_X25_ADDR_SIZE 16
  130. #define MAX_X25_DATA_SIZE 129
  131. #define MAX_X25_FACL_SIZE 110
  132. #define TRY_CMD_AGAIN 2
  133. #define DELAY_RESULT 1
  134. #define RETURN_RESULT 0
  135. #define DCD(x) (x & 0x03 ? "HIGH" : "LOW")
  136. #define CTS(x) (x & 0x05 ? "HIGH" : "LOW")
  137. /* Driver will not write log messages about
  138. * modem status if defined.*/
  139. #define MODEM_NOT_LOG 1
  140. /*====================================================
  141. * For IPXWAN
  142. *===================================================*/
  143. #define CVHexToAscii(b) (((unsigned char)(b) > (unsigned char)9) ? ((unsigned char)'A' + ((unsigned char)(b) - (unsigned char)10)) : ((unsigned char)'0' + (unsigned char)(b)))
  144. /*====================================================
  145. * MEMORY DEBUGGING FUNCTION
  146. *====================================================
  147. #define KMEM_SAFETYZONE 8
  148. static void * dbg_kmalloc(unsigned int size, int prio, int line) {
  149. int i = 0;
  150. void * v = kmalloc(size+sizeof(unsigned int)+2*KMEM_SAFETYZONE*8,prio);
  151. char * c1 = v;
  152. c1 += sizeof(unsigned int);
  153. *((unsigned int *)v) = size;
  154. for (i = 0; i < KMEM_SAFETYZONE; i++) {
  155. c1[0] = 'D'; c1[1] = 'E'; c1[2] = 'A'; c1[3] = 'D';
  156. c1[4] = 'B'; c1[5] = 'E'; c1[6] = 'E'; c1[7] = 'F';
  157. c1 += 8;
  158. }
  159. c1 += size;
  160. for (i = 0; i < KMEM_SAFETYZONE; i++) {
  161. c1[0] = 'M'; c1[1] = 'U'; c1[2] = 'N'; c1[3] = 'G';
  162. c1[4] = 'W'; c1[5] = 'A'; c1[6] = 'L'; c1[7] = 'L';
  163. c1 += 8;
  164. }
  165. v = ((char *)v) + sizeof(unsigned int) + KMEM_SAFETYZONE*8;
  166. printk(KERN_INFO "line %d kmalloc(%d,%d) = %p\n",line,size,prio,v);
  167. return v;
  168. }
  169. static void dbg_kfree(void * v, int line) {
  170. unsigned int * sp = (unsigned int *)(((char *)v) - (sizeof(unsigned int) + KMEM_SAFETYZONE*8));
  171. unsigned int size = *sp;
  172. char * c1 = ((char *)v) - KMEM_SAFETYZONE*8;
  173. int i = 0;
  174. for (i = 0; i < KMEM_SAFETYZONE; i++) {
  175. if ( c1[0] != 'D' || c1[1] != 'E' || c1[2] != 'A' || c1[3] != 'D'
  176. || c1[4] != 'B' || c1[5] != 'E' || c1[6] != 'E' || c1[7] != 'F') {
  177. printk(KERN_INFO "kmalloced block at %p has been corrupted (underrun)!\n",v);
  178. printk(KERN_INFO " %4x: %2x %2x %2x %2x %2x %2x %2x %2x\n", i*8,
  179. c1[0],c1[1],c1[2],c1[3],c1[4],c1[5],c1[6],c1[7] );
  180. }
  181. c1 += 8;
  182. }
  183. c1 += size;
  184. for (i = 0; i < KMEM_SAFETYZONE; i++) {
  185. if ( c1[0] != 'M' || c1[1] != 'U' || c1[2] != 'N' || c1[3] != 'G'
  186. || c1[4] != 'W' || c1[5] != 'A' || c1[6] != 'L' || c1[7] != 'L'
  187. ) {
  188. printk(KERN_INFO "kmalloced block at %p has been corrupted (overrun):\n",v);
  189. printk(KERN_INFO " %4x: %2x %2x %2x %2x %2x %2x %2x %2x\n", i*8,
  190. c1[0],c1[1],c1[2],c1[3],c1[4],c1[5],c1[6],c1[7] );
  191. }
  192. c1 += 8;
  193. }
  194. printk(KERN_INFO "line %d kfree(%p)\n",line,v);
  195. v = ((char *)v) - (sizeof(unsigned int) + KMEM_SAFETYZONE*8);
  196. kfree(v);
  197. }
  198. #define kmalloc(x,y) dbg_kmalloc(x,y,__LINE__)
  199. #define kfree(x) dbg_kfree(x,__LINE__)
  200. ==============================================================*/
  201. /*===============================================
  202. * Data Structures
  203. *===============================================*/
  204. /*========================================================
  205. * Name: x25_channel
  206. *
  207. * Purpose: To hold private informaton for each
  208. * logical channel.
  209. *
  210. * Rationale: Per-channel debugging is possible if each
  211. * channel has its own private area.
  212. *
  213. * Assumptions:
  214. *
  215. * Description: This is an extention of the struct net_device
  216. * we create for each network interface to keep
  217. * the rest of X.25 channel-specific data.
  218. *
  219. * Construct: Typedef
  220. */
  221. typedef struct x25_channel
  222. {
  223. wanpipe_common_t common; /* common area for x25api and socket */
  224. char name[WAN_IFNAME_SZ+1]; /* interface name, ASCIIZ */
  225. char addr[WAN_ADDRESS_SZ+1]; /* media address, ASCIIZ */
  226. unsigned tx_pkt_size;
  227. unsigned short protocol; /* ethertype, 0 - multiplexed */
  228. char drop_sequence; /* mark sequence for dropping */
  229. unsigned long state_tick; /* time of the last state change */
  230. unsigned idle_timeout; /* sec, before disconnecting */
  231. unsigned long i_timeout_sofar; /* # of sec's we've been idle */
  232. unsigned hold_timeout; /* sec, before re-connecting */
  233. unsigned long tick_counter; /* counter for transmit time out */
  234. char devtint; /* Weather we should dev_tint() */
  235. struct sk_buff* rx_skb; /* receive socket buffer */
  236. struct sk_buff* tx_skb; /* transmit socket buffer */
  237. bh_data_t *bh_head; /* Circular buffer for x25api_bh */
  238. unsigned long tq_working;
  239. volatile int bh_write;
  240. volatile int bh_read;
  241. atomic_t bh_buff_used;
  242. sdla_t* card; /* -> owner */
  243. struct net_device *dev; /* -> bound devce */
  244. int ch_idx;
  245. unsigned char enable_IPX;
  246. unsigned long network_number;
  247. struct net_device_stats ifstats; /* interface statistics */
  248. unsigned short transmit_length;
  249. unsigned short tx_offset;
  250. char transmit_buffer[X25_CHAN_MTU+sizeof(x25api_hdr_t)];
  251. if_send_stat_t if_send_stat;
  252. rx_intr_stat_t rx_intr_stat;
  253. pipe_mgmt_stat_t pipe_mgmt_stat;
  254. unsigned long router_start_time; /* Router start time in seconds */
  255. unsigned long router_up_time;
  256. } x25_channel_t;
  257. /* FIXME Take this out */
  258. #ifdef NEX_OLD_CALL_INFO
  259. typedef struct x25_call_info
  260. {
  261. char dest[17]; PACKED;/* ASCIIZ destination address */
  262. char src[17]; PACKED;/* ASCIIZ source address */
  263. char nuser; PACKED;/* number of user data bytes */
  264. unsigned char user[127]; PACKED;/* user data */
  265. char nfacil; PACKED;/* number of facilities */
  266. struct
  267. {
  268. unsigned char code; PACKED;
  269. unsigned char parm; PACKED;
  270. } facil[64]; /* facilities */
  271. } x25_call_info_t;
  272. #else
  273. typedef struct x25_call_info
  274. {
  275. char dest[MAX_X25_ADDR_SIZE] PACKED;/* ASCIIZ destination address */
  276. char src[MAX_X25_ADDR_SIZE] PACKED;/* ASCIIZ source address */
  277. unsigned char nuser PACKED;
  278. unsigned char user[MAX_X25_DATA_SIZE] PACKED;/* user data */
  279. unsigned char nfacil PACKED;
  280. unsigned char facil[MAX_X25_FACL_SIZE] PACKED;
  281. unsigned short lcn PACKED;
  282. } x25_call_info_t;
  283. #endif
  284. /*===============================================
  285. * Private Function Prototypes
  286. *==============================================*/
  287. /*=================================================
  288. * WAN link driver entry points. These are
  289. * called by the WAN router module.
  290. */
  291. static int update(struct wan_device* wandev);
  292. static int new_if(struct wan_device* wandev, struct net_device* dev,
  293. wanif_conf_t* conf);
  294. static int del_if(struct wan_device* wandev, struct net_device* dev);
  295. static void disable_comm (sdla_t* card);
  296. static void disable_comm_shutdown(sdla_t *card);
  297. /*=================================================
  298. * WANPIPE-specific entry points
  299. */
  300. static int wpx_exec (struct sdla* card, void* u_cmd, void* u_data);
  301. static void x25api_bh(struct net_device *dev);
  302. static int x25api_bh_cleanup(struct net_device *dev);
  303. static int bh_enqueue(struct net_device *dev, struct sk_buff *skb);
  304. /*=================================================
  305. * Network device interface
  306. */
  307. static int if_init(struct net_device* dev);
  308. static int if_open(struct net_device* dev);
  309. static int if_close(struct net_device* dev);
  310. static int if_header(struct sk_buff* skb, struct net_device* dev,
  311. unsigned short type, void* daddr, void* saddr, unsigned len);
  312. static int if_rebuild_hdr (struct sk_buff* skb);
  313. static int if_send(struct sk_buff* skb, struct net_device* dev);
  314. static struct net_device_stats *if_stats(struct net_device* dev);
  315. static void if_tx_timeout(struct net_device *dev);
  316. /*=================================================
  317. * Interrupt handlers
  318. */
  319. static void wpx_isr (sdla_t *);
  320. static void rx_intr (sdla_t *);
  321. static void tx_intr (sdla_t *);
  322. static void status_intr (sdla_t *);
  323. static void event_intr (sdla_t *);
  324. static void spur_intr (sdla_t *);
  325. static void timer_intr (sdla_t *);
  326. static int tx_intr_send(sdla_t *card, struct net_device *dev);
  327. static struct net_device *move_dev_to_next(sdla_t *card,
  328. struct net_device *dev);
  329. /*=================================================
  330. * Background polling routines
  331. */
  332. static void wpx_poll (sdla_t* card);
  333. static void poll_disconnected (sdla_t* card);
  334. static void poll_connecting (sdla_t* card);
  335. static void poll_active (sdla_t* card);
  336. static void trigger_x25_poll(sdla_t *card);
  337. static void x25_timer_routine(unsigned long data);
  338. /*=================================================
  339. * X.25 firmware interface functions
  340. */
  341. static int x25_get_version (sdla_t* card, char* str);
  342. static int x25_configure (sdla_t* card, TX25Config* conf);
  343. static int hdlc_configure (sdla_t* card, TX25Config* conf);
  344. static int set_hdlc_level (sdla_t* card);
  345. static int x25_get_err_stats (sdla_t* card);
  346. static int x25_get_stats (sdla_t* card);
  347. static int x25_set_intr_mode (sdla_t* card, int mode);
  348. static int x25_close_hdlc (sdla_t* card);
  349. static int x25_open_hdlc (sdla_t* card);
  350. static int x25_setup_hdlc (sdla_t* card);
  351. static int x25_set_dtr (sdla_t* card, int dtr);
  352. static int x25_get_chan_conf (sdla_t* card, x25_channel_t* chan);
  353. static int x25_place_call (sdla_t* card, x25_channel_t* chan);
  354. static int x25_accept_call (sdla_t* card, int lcn, int qdm);
  355. static int x25_clear_call (sdla_t* card, int lcn, int cause, int diagn);
  356. static int x25_send (sdla_t* card, int lcn, int qdm, int len, void* buf);
  357. static int x25_fetch_events (sdla_t* card);
  358. static int x25_error (sdla_t* card, int err, int cmd, int lcn);
  359. /*=================================================
  360. * X.25 asynchronous event handlers
  361. */
  362. static int incoming_call (sdla_t* card, int cmd, int lcn, TX25Mbox* mb);
  363. static int call_accepted (sdla_t* card, int cmd, int lcn, TX25Mbox* mb);
  364. static int call_cleared (sdla_t* card, int cmd, int lcn, TX25Mbox* mb);
  365. static int timeout_event (sdla_t* card, int cmd, int lcn, TX25Mbox* mb);
  366. static int restart_event (sdla_t* card, int cmd, int lcn, TX25Mbox* mb);
  367. /*=================================================
  368. * Miscellaneous functions
  369. */
  370. static int connect (sdla_t* card);
  371. static int disconnect (sdla_t* card);
  372. static struct net_device* get_dev_by_lcn(struct wan_device* wandev,
  373. unsigned lcn);
  374. static int chan_connect(struct net_device* dev);
  375. static int chan_disc(struct net_device* dev);
  376. static void set_chan_state(struct net_device* dev, int state);
  377. static int chan_send(struct net_device *dev, void* buff, unsigned data_len,
  378. unsigned char tx_intr);
  379. static unsigned char bps_to_speed_code (unsigned long bps);
  380. static unsigned int dec_to_uint (unsigned char* str, int len);
  381. static unsigned int hex_to_uint (unsigned char*, int);
  382. static void parse_call_info (unsigned char*, x25_call_info_t*);
  383. static struct net_device *find_channel(sdla_t *card, unsigned lcn);
  384. static void bind_lcn_to_dev(sdla_t *card, struct net_device *dev, unsigned lcn);
  385. static void setup_for_delayed_transmit(struct net_device *dev,
  386. void *buf, unsigned len);
  387. /*=================================================
  388. * X25 API Functions
  389. */
  390. static int wanpipe_pull_data_in_skb(sdla_t *card, struct net_device *dev,
  391. struct sk_buff **);
  392. static void timer_intr_exec(sdla_t *, unsigned char);
  393. static int execute_delayed_cmd(sdla_t *card, struct net_device *dev,
  394. mbox_cmd_t *usr_cmd, char bad_cmd);
  395. static int api_incoming_call (sdla_t*, TX25Mbox *, int);
  396. static int alloc_and_init_skb_buf (sdla_t *,struct sk_buff **, int);
  397. static void send_delayed_cmd_result(sdla_t *card, struct net_device *dev,
  398. TX25Mbox* mbox);
  399. static int clear_confirm_event (sdla_t *, TX25Mbox*);
  400. static void send_oob_msg (sdla_t *card, struct net_device *dev, TX25Mbox *mbox);
  401. static int timer_intr_cmd_exec(sdla_t *card);
  402. static void api_oob_event (sdla_t *card,TX25Mbox *mbox);
  403. static int check_bad_command(sdla_t *card, struct net_device *dev);
  404. static int channel_disconnect(sdla_t* card, struct net_device *dev);
  405. static void hdlc_link_down (sdla_t*);
  406. /*=================================================
  407. * XPIPEMON Functions
  408. */
  409. static int process_udp_mgmt_pkt(sdla_t *);
  410. static int udp_pkt_type( struct sk_buff *, sdla_t*);
  411. static int reply_udp( unsigned char *, unsigned int);
  412. static void init_x25_channel_struct( x25_channel_t *);
  413. static void init_global_statistics( sdla_t *);
  414. static int store_udp_mgmt_pkt(int udp_type, char udp_pkt_src, sdla_t *card,
  415. struct net_device *dev,
  416. struct sk_buff *skb, int lcn);
  417. static unsigned short calc_checksum (char *, int);
  418. /*=================================================
  419. * IPX functions
  420. */
  421. static void switch_net_numbers(unsigned char *, unsigned long, unsigned char);
  422. static int handle_IPXWAN(unsigned char *, char *, unsigned char ,
  423. unsigned long , unsigned short );
  424. extern void disable_irq(unsigned int);
  425. extern void enable_irq(unsigned int);
  426. static void S508_S514_lock(sdla_t *, unsigned long *);
  427. static void S508_S514_unlock(sdla_t *, unsigned long *);
  428. /*=================================================
  429. * Global Variables
  430. *=================================================*/
  431. /*=================================================
  432. * Public Functions
  433. *=================================================*/
  434. /*===================================================================
  435. * wpx_init: X.25 Protocol Initialization routine.
  436. *
  437. * Purpose: To initialize the protocol/firmware.
  438. *
  439. * Rationale: This function is called by setup() function, in
  440. * sdlamain.c, to dynamically setup the x25 protocol.
  441. * This is the first protocol specific function, which
  442. * executes once on startup.
  443. *
  444. * Description: This procedure initializes the x25 firmware and
  445. * sets up the mailbox, transmit and receive buffer
  446. * pointers. It also initializes all debugging structures
  447. * and sets up the X25 environment.
  448. *
  449. * Sets up hardware options defined by user in [wanpipe#]
  450. * section of wanpipe#.conf configuration file.
  451. *
  452. * At this point adapter is completely initialized
  453. * and X.25 firmware is running.
  454. * o read firmware version (to make sure it's alive)
  455. * o configure adapter
  456. * o initialize protocol-specific fields of the
  457. * adapter data space.
  458. *
  459. * Called by: setup() function in sdlamain.c
  460. *
  461. * Assumptions: None
  462. *
  463. * Warnings: None
  464. *
  465. * Return: 0 o.k.
  466. * < 0 failure.
  467. */
  468. int wpx_init (sdla_t* card, wandev_conf_t* conf)
  469. {
  470. union{
  471. char str[80];
  472. TX25Config cfg;
  473. } u;
  474. /* Verify configuration ID */
  475. if (conf->config_id != WANCONFIG_X25){
  476. printk(KERN_INFO "%s: invalid configuration ID %u!\n",
  477. card->devname, conf->config_id)
  478. ;
  479. return -EINVAL;
  480. }
  481. /* Initialize protocol-specific fields */
  482. card->mbox = (void*)(card->hw.dpmbase + X25_MBOX_OFFS);
  483. card->rxmb = (void*)(card->hw.dpmbase + X25_RXMBOX_OFFS);
  484. card->flags = (void*)(card->hw.dpmbase + X25_STATUS_OFFS);
  485. /* Initialize for S514 Card */
  486. if(card->hw.type == SDLA_S514) {
  487. card->mbox += X25_MB_VECTOR;
  488. card->flags += X25_MB_VECTOR;
  489. card->rxmb += X25_MB_VECTOR;
  490. }
  491. /* Read firmware version. Note that when adapter initializes, it
  492. * clears the mailbox, so it may appear that the first command was
  493. * executed successfully when in fact it was merely erased. To work
  494. * around this, we execute the first command twice.
  495. */
  496. if (x25_get_version(card, NULL) || x25_get_version(card, u.str))
  497. return -EIO;
  498. /* X25 firmware can run ether in X25 or LAPB HDLC mode.
  499. * Check the user defined option and configure accordingly */
  500. if (conf->u.x25.LAPB_hdlc_only == WANOPT_YES){
  501. if (set_hdlc_level(card) != CMD_OK){
  502. return -EIO;
  503. }else{
  504. printk(KERN_INFO "%s: running LAP_B HDLC firmware v%s\n",
  505. card->devname, u.str);
  506. }
  507. card->u.x.LAPB_hdlc = 1;
  508. }else{
  509. printk(KERN_INFO "%s: running X.25 firmware v%s\n",
  510. card->devname, u.str);
  511. card->u.x.LAPB_hdlc = 0;
  512. }
  513. /* Configure adapter. Here we set resonable defaults, then parse
  514. * device configuration structure and set configuration options.
  515. * Most configuration options are verified and corrected (if
  516. * necessary) since we can't rely on the adapter to do so.
  517. */
  518. memset(&u.cfg, 0, sizeof(u.cfg));
  519. u.cfg.t1 = 3;
  520. u.cfg.n2 = 10;
  521. u.cfg.autoHdlc = 1; /* automatic HDLC connection */
  522. u.cfg.hdlcWindow = 7;
  523. u.cfg.pktWindow = 2;
  524. u.cfg.station = 1; /* DTE */
  525. u.cfg.options = 0x0090; /* disable D-bit pragmatics */
  526. u.cfg.ccittCompat = 1988;
  527. u.cfg.t10t20 = 30;
  528. u.cfg.t11t21 = 30;
  529. u.cfg.t12t22 = 30;
  530. u.cfg.t13t23 = 30;
  531. u.cfg.t16t26 = 30;
  532. u.cfg.t28 = 30;
  533. u.cfg.r10r20 = 5;
  534. u.cfg.r12r22 = 5;
  535. u.cfg.r13r23 = 5;
  536. u.cfg.responseOpt = 1; /* RR's after every packet */
  537. if (card->u.x.LAPB_hdlc){
  538. u.cfg.hdlcMTU = 1027;
  539. }
  540. if (conf->u.x25.x25_conf_opt){
  541. u.cfg.options = conf->u.x25.x25_conf_opt;
  542. }
  543. if (conf->clocking != WANOPT_EXTERNAL)
  544. u.cfg.baudRate = bps_to_speed_code(conf->bps);
  545. if (conf->station != WANOPT_DTE){
  546. u.cfg.station = 0; /* DCE mode */
  547. }
  548. if (conf->interface != WANOPT_RS232 ){
  549. u.cfg.hdlcOptions |= 0x80; /* V35 mode */
  550. }
  551. /* adjust MTU */
  552. if (!conf->mtu || (conf->mtu >= 1024))
  553. card->wandev.mtu = 1024;
  554. else if (conf->mtu >= 512)
  555. card->wandev.mtu = 512;
  556. else if (conf->mtu >= 256)
  557. card->wandev.mtu = 256;
  558. else if (conf->mtu >= 128)
  559. card->wandev.mtu = 128;
  560. else
  561. card->wandev.mtu = 64;
  562. u.cfg.defPktSize = u.cfg.pktMTU = card->wandev.mtu;
  563. if (conf->u.x25.hi_pvc){
  564. card->u.x.hi_pvc = min_t(unsigned int, conf->u.x25.hi_pvc, MAX_LCN_NUM);
  565. card->u.x.lo_pvc = min_t(unsigned int, conf->u.x25.lo_pvc, card->u.x.hi_pvc);
  566. }
  567. if (conf->u.x25.hi_svc){
  568. card->u.x.hi_svc = min_t(unsigned int, conf->u.x25.hi_svc, MAX_LCN_NUM);
  569. card->u.x.lo_svc = min_t(unsigned int, conf->u.x25.lo_svc, card->u.x.hi_svc);
  570. }
  571. /* Figure out the total number of channels to configure */
  572. card->u.x.num_of_ch = 0;
  573. if (card->u.x.hi_svc != 0){
  574. card->u.x.num_of_ch = (card->u.x.hi_svc - card->u.x.lo_svc) + 1;
  575. }
  576. if (card->u.x.hi_pvc != 0){
  577. card->u.x.num_of_ch += (card->u.x.hi_pvc - card->u.x.lo_pvc) + 1;
  578. }
  579. if (card->u.x.num_of_ch == 0){
  580. printk(KERN_INFO "%s: ERROR, Minimum number of PVC/SVC channels is 1 !\n"
  581. "%s: Please set the Lowest/Highest PVC/SVC values !\n",
  582. card->devname,card->devname);
  583. return -ECHRNG;
  584. }
  585. u.cfg.loPVC = card->u.x.lo_pvc;
  586. u.cfg.hiPVC = card->u.x.hi_pvc;
  587. u.cfg.loTwoWaySVC = card->u.x.lo_svc;
  588. u.cfg.hiTwoWaySVC = card->u.x.hi_svc;
  589. if (conf->u.x25.hdlc_window)
  590. u.cfg.hdlcWindow = min_t(unsigned int, conf->u.x25.hdlc_window, 7);
  591. if (conf->u.x25.pkt_window)
  592. u.cfg.pktWindow = min_t(unsigned int, conf->u.x25.pkt_window, 7);
  593. if (conf->u.x25.t1)
  594. u.cfg.t1 = min_t(unsigned int, conf->u.x25.t1, 30);
  595. if (conf->u.x25.t2)
  596. u.cfg.t2 = min_t(unsigned int, conf->u.x25.t2, 29);
  597. if (conf->u.x25.t4)
  598. u.cfg.t4 = min_t(unsigned int, conf->u.x25.t4, 240);
  599. if (conf->u.x25.n2)
  600. u.cfg.n2 = min_t(unsigned int, conf->u.x25.n2, 30);
  601. if (conf->u.x25.t10_t20)
  602. u.cfg.t10t20 = min_t(unsigned int, conf->u.x25.t10_t20,255);
  603. if (conf->u.x25.t11_t21)
  604. u.cfg.t11t21 = min_t(unsigned int, conf->u.x25.t11_t21,255);
  605. if (conf->u.x25.t12_t22)
  606. u.cfg.t12t22 = min_t(unsigned int, conf->u.x25.t12_t22,255);
  607. if (conf->u.x25.t13_t23)
  608. u.cfg.t13t23 = min_t(unsigned int, conf->u.x25.t13_t23,255);
  609. if (conf->u.x25.t16_t26)
  610. u.cfg.t16t26 = min_t(unsigned int, conf->u.x25.t16_t26, 255);
  611. if (conf->u.x25.t28)
  612. u.cfg.t28 = min_t(unsigned int, conf->u.x25.t28, 255);
  613. if (conf->u.x25.r10_r20)
  614. u.cfg.r10r20 = min_t(unsigned int, conf->u.x25.r10_r20,250);
  615. if (conf->u.x25.r12_r22)
  616. u.cfg.r12r22 = min_t(unsigned int, conf->u.x25.r12_r22,250);
  617. if (conf->u.x25.r13_r23)
  618. u.cfg.r13r23 = min_t(unsigned int, conf->u.x25.r13_r23,250);
  619. if (conf->u.x25.ccitt_compat)
  620. u.cfg.ccittCompat = conf->u.x25.ccitt_compat;
  621. /* initialize adapter */
  622. if (card->u.x.LAPB_hdlc){
  623. if (hdlc_configure(card, &u.cfg) != CMD_OK)
  624. return -EIO;
  625. }else{
  626. if (x25_configure(card, &u.cfg) != CMD_OK)
  627. return -EIO;
  628. }
  629. if ((x25_close_hdlc(card) != CMD_OK) || /* close HDLC link */
  630. (x25_set_dtr(card, 0) != CMD_OK)) /* drop DTR */
  631. return -EIO;
  632. /* Initialize protocol-specific fields of adapter data space */
  633. card->wandev.bps = conf->bps;
  634. card->wandev.interface = conf->interface;
  635. card->wandev.clocking = conf->clocking;
  636. card->wandev.station = conf->station;
  637. card->isr = &wpx_isr;
  638. card->poll = NULL; //&wpx_poll;
  639. card->disable_comm = &disable_comm;
  640. card->exec = &wpx_exec;
  641. card->wandev.update = &update;
  642. card->wandev.new_if = &new_if;
  643. card->wandev.del_if = &del_if;
  644. /* WARNING: This function cannot exit with an error
  645. * after the change of state */
  646. card->wandev.state = WAN_DISCONNECTED;
  647. card->wandev.enable_tx_int = 0;
  648. card->irq_dis_if_send_count = 0;
  649. card->irq_dis_poll_count = 0;
  650. card->u.x.tx_dev = NULL;
  651. card->u.x.no_dev = 0;
  652. /* Configure for S514 PCI Card */
  653. if (card->hw.type == SDLA_S514) {
  654. card->u.x.hdlc_buf_status =
  655. (volatile unsigned char *)
  656. (card->hw.dpmbase + X25_MB_VECTOR+ X25_MISC_HDLC_BITS);
  657. }else{
  658. card->u.x.hdlc_buf_status =
  659. (volatile unsigned char *)(card->hw.dpmbase + X25_MISC_HDLC_BITS);
  660. }
  661. card->u.x.poll_device=NULL;
  662. card->wandev.udp_port = conf->udp_port;
  663. /* Enable or disable call setup logging */
  664. if (conf->u.x25.logging == WANOPT_YES){
  665. printk(KERN_INFO "%s: Enabling Call Logging.\n",
  666. card->devname);
  667. card->u.x.logging = 1;
  668. }else{
  669. card->u.x.logging = 0;
  670. }
  671. /* Enable or disable modem status reporting */
  672. if (conf->u.x25.oob_on_modem == WANOPT_YES){
  673. printk(KERN_INFO "%s: Enabling OOB on Modem change.\n",
  674. card->devname);
  675. card->u.x.oob_on_modem = 1;
  676. }else{
  677. card->u.x.oob_on_modem = 0;
  678. }
  679. init_global_statistics(card);
  680. INIT_WORK(&card->u.x.x25_poll_work, (void *)wpx_poll, card);
  681. init_timer(&card->u.x.x25_timer);
  682. card->u.x.x25_timer.data = (unsigned long)card;
  683. card->u.x.x25_timer.function = x25_timer_routine;
  684. return 0;
  685. }
  686. /*=========================================================
  687. * WAN Device Driver Entry Points
  688. *========================================================*/
  689. /*============================================================
  690. * Name: update(), Update device status & statistics.
  691. *
  692. * Purpose: To provide debugging and statitical
  693. * information to the /proc file system.
  694. * /proc/net/wanrouter/wanpipe#
  695. *
  696. * Rationale: The /proc file system is used to collect
  697. * information about the kernel and drivers.
  698. * Using the /proc file system the user
  699. * can see exactly what the sangoma drivers are
  700. * doing. And in what state they are in.
  701. *
  702. * Description: Collect all driver statistical information
  703. * and pass it to the top laywer.
  704. *
  705. * Since we have to execute a debugging command,
  706. * to obtain firmware statitics, we trigger a
  707. * UPDATE function within the timer interrtup.
  708. * We wait until the timer update is complete.
  709. * Once complete return the appropriate return
  710. * code to indicate that the update was successful.
  711. *
  712. * Called by: device_stat() in wanmain.c
  713. *
  714. * Assumptions:
  715. *
  716. * Warnings: This function will degrade the performance
  717. * of the router, since it uses the mailbox.
  718. *
  719. * Return: 0 OK
  720. * <0 Failed (or busy).
  721. */
  722. static int update(struct wan_device* wandev)
  723. {
  724. volatile sdla_t* card;
  725. TX25Status* status;
  726. unsigned long timeout;
  727. /* sanity checks */
  728. if ((wandev == NULL) || (wandev->private == NULL))
  729. return -EFAULT;
  730. if (wandev->state == WAN_UNCONFIGURED)
  731. return -ENODEV;
  732. if (test_bit(SEND_CRIT, (void*)&wandev->critical))
  733. return -EAGAIN;
  734. if (!wandev->dev)
  735. return -ENODEV;
  736. card = wandev->private;
  737. status = card->flags;
  738. card->u.x.timer_int_enabled |= TMR_INT_ENABLED_UPDATE;
  739. status->imask |= INTR_ON_TIMER;
  740. timeout = jiffies;
  741. for (;;){
  742. if (!(card->u.x.timer_int_enabled & TMR_INT_ENABLED_UPDATE)){
  743. break;
  744. }
  745. if (time_after(jiffies, timeout + 1*HZ)){
  746. card->u.x.timer_int_enabled &= ~TMR_INT_ENABLED_UPDATE;
  747. return -EAGAIN;
  748. }
  749. }
  750. return 0;
  751. }
  752. /*===================================================================
  753. * Name: new_if
  754. *
  755. * Purpose: To allocate and initialize resources for a
  756. * new logical channel.
  757. *
  758. * Rationale: A new channel can be added dynamically via
  759. * ioctl call.
  760. *
  761. * Description: Allocate a private channel structure, x25_channel_t.
  762. * Parse the user interface options from wanpipe#.conf
  763. * configuration file.
  764. * Bind the private are into the network device private
  765. * area pointer (dev->priv).
  766. * Prepare the network device structure for registration.
  767. *
  768. * Called by: ROUTER_IFNEW Ioctl call, from wanrouter_ioctl()
  769. * (wanmain.c)
  770. *
  771. * Assumptions: None
  772. *
  773. * Warnings: None
  774. *
  775. * Return: 0 Ok
  776. * <0 Failed (channel will not be created)
  777. */
  778. static int new_if(struct wan_device* wandev, struct net_device* dev,
  779. wanif_conf_t* conf)
  780. {
  781. sdla_t* card = wandev->private;
  782. x25_channel_t* chan;
  783. int err = 0;
  784. if ((conf->name[0] == '\0') || (strlen(conf->name) > WAN_IFNAME_SZ)){
  785. printk(KERN_INFO "%s: invalid interface name!\n",
  786. card->devname);
  787. return -EINVAL;
  788. }
  789. if(card->wandev.new_if_cnt++ > 0 && card->u.x.LAPB_hdlc) {
  790. printk(KERN_INFO "%s: Error: Running LAPB HDLC Mode !\n",
  791. card->devname);
  792. printk(KERN_INFO
  793. "%s: Maximum number of network interfaces must be one !\n",
  794. card->devname);
  795. return -EEXIST;
  796. }
  797. /* allocate and initialize private data */
  798. chan = kmalloc(sizeof(x25_channel_t), GFP_ATOMIC);
  799. if (chan == NULL){
  800. return -ENOMEM;
  801. }
  802. memset(chan, 0, sizeof(x25_channel_t));
  803. /* Bug Fix: Seg Err on PVC startup
  804. * It must be here since bind_lcn_to_dev expects
  805. * it bellow */
  806. dev->priv = chan;
  807. strcpy(chan->name, conf->name);
  808. chan->card = card;
  809. chan->dev = dev;
  810. chan->common.sk = NULL;
  811. chan->common.func = NULL;
  812. chan->common.rw_bind = 0;
  813. chan->tx_skb = chan->rx_skb = NULL;
  814. /* verify media address */
  815. if (conf->addr[0] == '@'){ /* SVC */
  816. chan->common.svc = 1;
  817. strncpy(chan->addr, &conf->addr[1], WAN_ADDRESS_SZ);
  818. /* Set channel timeouts (default if not specified) */
  819. chan->idle_timeout = (conf->idle_timeout) ?
  820. conf->idle_timeout : 90;
  821. chan->hold_timeout = (conf->hold_timeout) ?
  822. conf->hold_timeout : 10;
  823. }else if (is_digit(conf->addr[0])){ /* PVC */
  824. int lcn = dec_to_uint(conf->addr, 0);
  825. if ((lcn >= card->u.x.lo_pvc) && (lcn <= card->u.x.hi_pvc)){
  826. bind_lcn_to_dev (card, dev, lcn);
  827. }else{
  828. printk(KERN_ERR
  829. "%s: PVC %u is out of range on interface %s!\n",
  830. wandev->name, lcn, chan->name);
  831. err = -EINVAL;
  832. }
  833. }else{
  834. printk(KERN_ERR
  835. "%s: invalid media address on interface %s!\n",
  836. wandev->name, chan->name);
  837. err = -EINVAL;
  838. }
  839. if(strcmp(conf->usedby, "WANPIPE") == 0){
  840. printk(KERN_INFO "%s: Running in WANPIPE mode %s\n",
  841. wandev->name, chan->name);
  842. chan->common.usedby = WANPIPE;
  843. chan->protocol = htons(ETH_P_IP);
  844. }else if(strcmp(conf->usedby, "API") == 0){
  845. chan->common.usedby = API;
  846. printk(KERN_INFO "%s: Running in API mode %s\n",
  847. wandev->name, chan->name);
  848. chan->protocol = htons(X25_PROT);
  849. }
  850. if (err){
  851. kfree(chan);
  852. dev->priv = NULL;
  853. return err;
  854. }
  855. chan->enable_IPX = conf->enable_IPX;
  856. if (chan->enable_IPX)
  857. chan->protocol = htons(ETH_P_IPX);
  858. if (conf->network_number)
  859. chan->network_number = conf->network_number;
  860. else
  861. chan->network_number = 0xDEADBEEF;
  862. /* prepare network device data space for registration */
  863. strcpy(dev->name,chan->name);
  864. dev->init = &if_init;
  865. init_x25_channel_struct(chan);
  866. return 0;
  867. }
  868. /*===================================================================
  869. * Name: del_if(), Remove a logical channel.
  870. *
  871. * Purpose: To dynamically remove a logical channel.
  872. *
  873. * Rationale: Each logical channel should be dynamically
  874. * removable. This functin is called by an
  875. * IOCTL_IFDEL ioctl call or shutdown().
  876. *
  877. * Description: Do nothing.
  878. *
  879. * Called by: IOCTL_IFDEL : wanrouter_ioctl() from wanmain.c
  880. * shutdown() from sdlamain.c
  881. *
  882. * Assumptions:
  883. *
  884. * Warnings:
  885. *
  886. * Return: 0 Ok. Void function.
  887. */
  888. //FIXME Del IF Should be taken out now.
  889. static int del_if(struct wan_device* wandev, struct net_device* dev)
  890. {
  891. return 0;
  892. }
  893. /*============================================================
  894. * Name: wpx_exec
  895. *
  896. * Description: Execute adapter interface command.
  897. * This option is currently dissabled.
  898. *===========================================================*/
  899. static int wpx_exec (struct sdla* card, void* u_cmd, void* u_data)
  900. {
  901. return 0;
  902. }
  903. /*============================================================
  904. * Name: disable_comm
  905. *
  906. * Description: Disable communications during shutdown.
  907. * Dont check return code because there is
  908. * nothing we can do about it.
  909. *
  910. * Warning: Dev and private areas are gone at this point.
  911. *===========================================================*/
  912. static void disable_comm(sdla_t* card)
  913. {
  914. disable_comm_shutdown(card);
  915. del_timer(&card->u.x.x25_timer);
  916. return;
  917. }
  918. /*============================================================
  919. * Network Device Interface
  920. *===========================================================*/
  921. /*===================================================================
  922. * Name: if_init(), Netowrk Interface Initialization
  923. *
  924. * Purpose: To initialize a network interface device structure.
  925. *
  926. * Rationale: During network interface startup, the if_init
  927. * is called by the kernel to initialize the
  928. * netowrk device structure. Thus a driver
  929. * can customze a network device.
  930. *
  931. * Description: Initialize the netowrk device call back
  932. * routines. This is where we tell the kernel
  933. * which function to use when it wants to send
  934. * via our interface.
  935. * Furthermore, we initialize the device flags,
  936. * MTU and physical address of the board.
  937. *
  938. * Called by: Kernel (/usr/src/linux/net/core/dev.c)
  939. * (dev->init())
  940. *
  941. * Assumptions: None
  942. *
  943. * Warnings: None
  944. *
  945. * Return: 0 Ok : Void function.
  946. */
  947. static int if_init(struct net_device* dev)
  948. {
  949. x25_channel_t* chan = dev->priv;
  950. sdla_t* card = chan->card;
  951. struct wan_device* wandev = &card->wandev;
  952. /* Initialize device driver entry points */
  953. dev->open = &if_open;
  954. dev->stop = &if_close;
  955. dev->hard_header = &if_header;
  956. dev->rebuild_header = &if_rebuild_hdr;
  957. dev->hard_start_xmit = &if_send;
  958. dev->get_stats = &if_stats;
  959. dev->tx_timeout = &if_tx_timeout;
  960. dev->watchdog_timeo = TX_TIMEOUT;
  961. /* Initialize media-specific parameters */
  962. dev->type = ARPHRD_PPP; /* ARP h/w type */
  963. dev->flags |= IFF_POINTOPOINT;
  964. dev->flags |= IFF_NOARP;
  965. if (chan->common.usedby == API){
  966. dev->mtu = X25_CHAN_MTU+sizeof(x25api_hdr_t);
  967. }else{
  968. dev->mtu = card->wandev.mtu;
  969. }
  970. dev->hard_header_len = X25_HRDHDR_SZ; /* media header length */
  971. dev->addr_len = 2; /* hardware address length */
  972. if (!chan->common.svc){
  973. *(unsigned short*)dev->dev_addr = htons(chan->common.lcn);
  974. }
  975. /* Initialize hardware parameters (just for reference) */
  976. dev->irq = wandev->irq;
  977. dev->dma = wandev->dma;
  978. dev->base_addr = wandev->ioport;
  979. dev->mem_start = (unsigned long)wandev->maddr;
  980. dev->mem_end = wandev->maddr + wandev->msize - 1;
  981. /* Set transmit buffer queue length */
  982. dev->tx_queue_len = 100;
  983. SET_MODULE_OWNER(dev);
  984. /* FIXME Why are we doing this */
  985. set_chan_state(dev, WAN_DISCONNECTED);
  986. return 0;
  987. }
  988. /*===================================================================
  989. * Name: if_open(), Open/Bring up the Netowrk Interface
  990. *
  991. * Purpose: To bring up a network interface.
  992. *
  993. * Rationale:
  994. *
  995. * Description: Open network interface.
  996. * o prevent module from unloading by incrementing use count
  997. * o if link is disconnected then initiate connection
  998. *
  999. * Called by: Kernel (/usr/src/linux/net/core/dev.c)
  1000. * (dev->open())
  1001. *
  1002. * Assumptions: None
  1003. *
  1004. * Warnings: None
  1005. *
  1006. * Return: 0 Ok
  1007. * <0 Failure: Interface will not come up.
  1008. */
  1009. static int if_open(struct net_device* dev)
  1010. {
  1011. x25_channel_t* chan = dev->priv;
  1012. sdla_t* card = chan->card;
  1013. struct timeval tv;
  1014. unsigned long smp_flags;
  1015. if (netif_running(dev))
  1016. return -EBUSY;
  1017. chan->tq_working = 0;
  1018. /* Initialize the workqueue */
  1019. INIT_WORK(&chan->common.wanpipe_work, (void *)x25api_bh, dev);
  1020. /* Allocate and initialize BH circular buffer */
  1021. /* Add 1 to MAX_BH_BUFF so we don't have test with (MAX_BH_BUFF-1) */
  1022. chan->bh_head = kmalloc((sizeof(bh_data_t)*(MAX_BH_BUFF+1)),GFP_ATOMIC);
  1023. if (chan->bh_head == NULL){
  1024. printk(KERN_INFO "%s: ERROR, failed to allocate memory ! BH_BUFFERS !\n",
  1025. card->devname);
  1026. return -ENOBUFS;
  1027. }
  1028. memset(chan->bh_head,0,(sizeof(bh_data_t)*(MAX_BH_BUFF+1)));
  1029. atomic_set(&chan->bh_buff_used, 0);
  1030. /* Increment the number of interfaces */
  1031. ++card->u.x.no_dev;
  1032. wanpipe_open(card);
  1033. /* LAPB protocol only uses one interface, thus
  1034. * start the protocol after it comes up. */
  1035. if (card->u.x.LAPB_hdlc){
  1036. if (card->open_cnt == 1){
  1037. TX25Status* status = card->flags;
  1038. S508_S514_lock(card, &smp_flags);
  1039. x25_set_intr_mode(card, INTR_ON_TIMER);
  1040. status->imask &= ~INTR_ON_TIMER;
  1041. S508_S514_unlock(card, &smp_flags);
  1042. }
  1043. }else{
  1044. /* X25 can have multiple interfaces thus, start the
  1045. * protocol once all interfaces are up */
  1046. //FIXME: There is a bug here. If interface is
  1047. //brought down and up, it will try to enable comm.
  1048. if (card->open_cnt == card->u.x.num_of_ch){
  1049. S508_S514_lock(card, &smp_flags);
  1050. connect(card);
  1051. S508_S514_unlock(card, &smp_flags);
  1052. mod_timer(&card->u.x.x25_timer, jiffies + HZ);
  1053. }
  1054. }
  1055. /* Device is not up until the we are in connected state */
  1056. do_gettimeofday( &tv );
  1057. chan->router_start_time = tv.tv_sec;
  1058. netif_start_queue(dev);
  1059. return 0;
  1060. }
  1061. /*===================================================================
  1062. * Name: if_close(), Close/Bring down the Netowrk Interface
  1063. *
  1064. * Purpose: To bring down a network interface.
  1065. *
  1066. * Rationale:
  1067. *
  1068. * Description: Close network interface.
  1069. * o decrement use module use count
  1070. *
  1071. * Called by: Kernel (/usr/src/linux/net/core/dev.c)
  1072. * (dev->close())
  1073. * ifconfig <name> down: will trigger the kernel
  1074. * which will call this function.
  1075. *
  1076. * Assumptions: None
  1077. *
  1078. * Warnings: None
  1079. *
  1080. * Return: 0 Ok
  1081. * <0 Failure: Interface will not exit properly.
  1082. */
  1083. static int if_close(struct net_device* dev)
  1084. {
  1085. x25_channel_t* chan = dev->priv;
  1086. sdla_t* card = chan->card;
  1087. unsigned long smp_flags;
  1088. netif_stop_queue(dev);
  1089. if ((chan->common.state == WAN_CONNECTED) ||
  1090. (chan->common.state == WAN_CONNECTING)){
  1091. S508_S514_lock(card, &smp_flags);
  1092. chan_disc(dev);
  1093. S508_S514_unlock(card, &smp_flags);
  1094. }
  1095. wanpipe_close(card);
  1096. S508_S514_lock(card, &smp_flags);
  1097. if (chan->bh_head){
  1098. int i;
  1099. struct sk_buff *skb;
  1100. for (i=0; i<(MAX_BH_BUFF+1); i++){
  1101. skb = ((bh_data_t *)&chan->bh_head[i])->skb;
  1102. if (skb != NULL){
  1103. dev_kfree_skb_any(skb);
  1104. }
  1105. }
  1106. kfree(chan->bh_head);
  1107. chan->bh_head=NULL;
  1108. }
  1109. S508_S514_unlock(card, &smp_flags);
  1110. /* If this is the last close, disconnect physical link */
  1111. if (!card->open_cnt){
  1112. S508_S514_lock(card, &smp_flags);
  1113. disconnect(card);
  1114. x25_set_intr_mode(card, 0);
  1115. S508_S514_unlock(card, &smp_flags);
  1116. }
  1117. /* Decrement the number of interfaces */
  1118. --card->u.x.no_dev;
  1119. return 0;
  1120. }
  1121. /*======================================================================
  1122. * Build media header.
  1123. * o encapsulate packet according to encapsulation type.
  1124. *
  1125. * The trick here is to put packet type (Ethertype) into 'protocol'
  1126. * field of the socket buffer, so that we don't forget it.
  1127. * If encapsulation fails, set skb->protocol to 0 and discard
  1128. * packet later.
  1129. *
  1130. * Return: media header length.
  1131. *======================================================================*/
  1132. static int if_header(struct sk_buff* skb, struct net_device* dev,
  1133. unsigned short type, void* daddr, void* saddr,
  1134. unsigned len)
  1135. {
  1136. x25_channel_t* chan = dev->priv;
  1137. int hdr_len = dev->hard_header_len;
  1138. skb->protocol = htons(type);
  1139. if (!chan->protocol){
  1140. hdr_len = wanrouter_encapsulate(skb, dev, type);
  1141. if (hdr_len < 0){
  1142. hdr_len = 0;
  1143. skb->protocol = htons(0);
  1144. }
  1145. }
  1146. return hdr_len;
  1147. }
  1148. /*===============================================================
  1149. * Re-build media header.
  1150. *
  1151. * Return: 1 physical address resolved.
  1152. * 0 physical address not resolved
  1153. *==============================================================*/
  1154. static int if_rebuild_hdr (struct sk_buff* skb)
  1155. {
  1156. struct net_device *dev = skb->dev;
  1157. x25_channel_t* chan = dev->priv;
  1158. sdla_t* card = chan->card;
  1159. printk(KERN_INFO "%s: rebuild_header() called for interface %s!\n",
  1160. card->devname, dev->name);
  1161. return 1;
  1162. }
  1163. /*============================================================================
  1164. * Handle transmit timeout event from netif watchdog
  1165. */
  1166. static void if_tx_timeout(struct net_device *dev)
  1167. {
  1168. x25_channel_t* chan = dev->priv;
  1169. sdla_t *card = chan->card;
  1170. /* If our device stays busy for at least 5 seconds then we will
  1171. * kick start the device by making dev->tbusy = 0. We expect
  1172. * that our device never stays busy more than 5 seconds. So this
  1173. * is only used as a last resort.
  1174. */
  1175. ++chan->if_send_stat.if_send_tbusy_timeout;
  1176. printk (KERN_INFO "%s: Transmit timed out on %s\n",
  1177. card->devname, dev->name);
  1178. netif_wake_queue (dev);
  1179. }
  1180. /*=========================================================================
  1181. * Send a packet on a network interface.
  1182. * o set tbusy flag (marks start of the transmission).
  1183. * o check link state. If link is not up, then drop the packet.
  1184. * o check channel status. If it's down then initiate a call.
  1185. * o pass a packet to corresponding WAN device.
  1186. * o free socket buffer
  1187. *
  1188. * Return: 0 complete (socket buffer must be freed)
  1189. * non-0 packet may be re-transmitted (tbusy must be set)
  1190. *
  1191. * Notes:
  1192. * 1. This routine is called either by the protocol stack or by the "net
  1193. * bottom half" (with interrupts enabled).
  1194. * 2. Setting tbusy flag will inhibit further transmit requests from the
  1195. * protocol stack and can be used for flow control with protocol layer.
  1196. *
  1197. *========================================================================*/
  1198. static int if_send(struct sk_buff* skb, struct net_device* dev)
  1199. {
  1200. x25_channel_t* chan = dev->priv;
  1201. sdla_t* card = chan->card;
  1202. TX25Status* status = card->flags;
  1203. int udp_type;
  1204. unsigned long smp_flags=0;
  1205. ++chan->if_send_stat.if_send_entry;
  1206. netif_stop_queue(dev);
  1207. /* No need to check frame length, since socket code
  1208. * will perform the check for us */
  1209. chan->tick_counter = jiffies;
  1210. /* Critical region starts here */
  1211. S508_S514_lock(card, &smp_flags);
  1212. if (test_and_set_bit(SEND_CRIT, (void*)&card->wandev.critical)){
  1213. printk(KERN_INFO "Hit critical in if_send()! %lx\n",card->wandev.critical);
  1214. goto if_send_crit_exit;
  1215. }
  1216. udp_type = udp_pkt_type(skb, card);
  1217. if(udp_type != UDP_INVALID_TYPE) {
  1218. if(store_udp_mgmt_pkt(udp_type, UDP_PKT_FRM_STACK, card, dev, skb,
  1219. chan->common.lcn)) {
  1220. status->imask |= INTR_ON_TIMER;
  1221. if (udp_type == UDP_XPIPE_TYPE){
  1222. chan->if_send_stat.if_send_PIPE_request++;
  1223. }
  1224. }
  1225. netif_start_queue(dev);
  1226. clear_bit(SEND_CRIT,(void*)&card->wandev.critical);
  1227. S508_S514_unlock(card, &smp_flags);
  1228. return 0;
  1229. }
  1230. if (chan->transmit_length){
  1231. //FIXME: This check doesn't make sense any more
  1232. if (chan->common.state != WAN_CONNECTED){
  1233. chan->transmit_length=0;
  1234. atomic_set(&chan->common.driver_busy,0);
  1235. }else{
  1236. netif_stop_queue(dev);
  1237. ++card->u.x.tx_interrupts_pending;
  1238. status->imask |= INTR_ON_TX_FRAME;
  1239. clear_bit(SEND_CRIT,(void*)&card->wandev.critical);
  1240. S508_S514_unlock(card, &smp_flags);
  1241. return 1;
  1242. }
  1243. }
  1244. if (card->wandev.state != WAN_CONNECTED){
  1245. ++chan->ifstats.tx_dropped;
  1246. ++card->wandev.stats.tx_dropped;
  1247. ++chan->if_send_stat.if_send_wan_disconnected;
  1248. }else if ( chan->protocol && (chan->protocol != skb->protocol)){
  1249. printk(KERN_INFO
  1250. "%s: unsupported Ethertype 0x%04X on interface %s!\n",
  1251. chan->name, htons(skb->protocol), dev->name);
  1252. printk(KERN_INFO "PROTO %Xn", htons(chan->protocol));
  1253. ++chan->ifstats.tx_errors;
  1254. ++chan->ifstats.tx_dropped;
  1255. ++card->wandev.stats.tx_dropped;
  1256. ++chan->if_send_stat.if_send_protocol_error;
  1257. }else switch (chan->common.state){
  1258. case WAN_DISCONNECTED:
  1259. /* Try to establish connection. If succeded, then start
  1260. * transmission, else drop a packet.
  1261. */
  1262. if (chan->common.usedby == API){
  1263. ++chan->ifstats.tx_dropped;
  1264. ++card->wandev.stats.tx_dropped;
  1265. break;
  1266. }else{
  1267. if (chan_connect(dev) != 0){
  1268. ++chan->ifstats.tx_dropped;
  1269. ++card->wandev.stats.tx_dropped;
  1270. break;
  1271. }
  1272. }
  1273. /* fall through */
  1274. case WAN_CONNECTED:
  1275. if( skb->protocol == htons(ETH_P_IPX)) {
  1276. if(chan->enable_IPX) {
  1277. switch_net_numbers( skb->data,
  1278. chan->network_number, 0);
  1279. } else {
  1280. ++card->wandev.stats.tx_dropped;
  1281. ++chan->ifstats.tx_dropped;
  1282. ++chan->if_send_stat.if_send_protocol_error;
  1283. goto if_send_crit_exit;
  1284. }
  1285. }
  1286. /* We never drop here, if cannot send than, copy
  1287. * a packet into a transmit buffer
  1288. */
  1289. chan_send(dev, skb->data, skb->len, 0);
  1290. break;
  1291. default:
  1292. ++chan->ifstats.tx_dropped;
  1293. ++card->wandev.stats.tx_dropped;
  1294. break;
  1295. }
  1296. if_send_crit_exit:
  1297. dev_kfree_skb_any(skb);
  1298. netif_start_queue(dev);
  1299. clear_bit(SEND_CRIT,(void*)&card->wandev.critical);
  1300. S508_S514_unlock(card, &smp_flags);
  1301. return 0;
  1302. }
  1303. /*============================================================================
  1304. * Setup so that a frame can be transmitted on the occurrence of a transmit
  1305. * interrupt.
  1306. *===========================================================================*/
  1307. static void setup_for_delayed_transmit(struct net_device* dev, void* buf,
  1308. unsigned len)
  1309. {
  1310. x25_channel_t* chan = dev->priv;
  1311. sdla_t* card = chan->card;
  1312. TX25Status* status = card->flags;
  1313. ++chan->if_send_stat.if_send_adptr_bfrs_full;
  1314. if(chan->transmit_length) {
  1315. printk(KERN_INFO "%s: Error, transmit length set in delayed transmit!\n",
  1316. card->devname);
  1317. return;
  1318. }
  1319. if (chan->common.usedby == API){
  1320. if (len > X25_CHAN_MTU+sizeof(x25api_hdr_t)) {
  1321. ++chan->ifstats.tx_dropped;
  1322. ++card->wandev.stats.tx_dropped;
  1323. printk(KERN_INFO "%s: Length is too big for delayed transmit\n",
  1324. card->devname);
  1325. return;
  1326. }
  1327. }else{
  1328. if (len > X25_MAX_DATA) {
  1329. ++chan->ifstats.tx_dropped;
  1330. ++card->wandev.stats.tx_dropped;
  1331. printk(KERN_INFO "%s: Length is too big for delayed transmit\n",
  1332. card->devname);
  1333. return;
  1334. }
  1335. }
  1336. chan->transmit_length = len;
  1337. atomic_set(&chan->common.driver_busy,1);
  1338. memcpy(chan->transmit_buffer, buf, len);
  1339. ++chan->if_send_stat.if_send_tx_int_enabled;
  1340. /* Enable Transmit Interrupt */
  1341. ++card->u.x.tx_interrupts_pending;
  1342. status->imask |= INTR_ON_TX_FRAME;
  1343. }
  1344. /*===============================================================
  1345. * net_device_stats
  1346. *
  1347. * Get ethernet-style interface statistics.
  1348. * Return a pointer to struct enet_statistics.
  1349. *
  1350. *==============================================================*/
  1351. static struct net_device_stats *if_stats(struct net_device* dev)
  1352. {
  1353. x25_channel_t *chan = dev->priv;
  1354. if(chan == NULL)
  1355. return NULL;
  1356. return &chan->ifstats;
  1357. }
  1358. /*
  1359. * Interrupt Handlers
  1360. */
  1361. /*
  1362. * X.25 Interrupt Service Routine.
  1363. */
  1364. static void wpx_isr (sdla_t* card)
  1365. {
  1366. TX25Status* status = card->flags;
  1367. card->in_isr = 1;
  1368. ++card->statistics.isr_entry;
  1369. if (test_bit(PERI_CRIT,(void*)&card->wandev.critical)){
  1370. card->in_isr=0;
  1371. status->iflags = 0;
  1372. return;
  1373. }
  1374. if (test_bit(SEND_CRIT, (void*)&card->wandev.critical)){
  1375. printk(KERN_INFO "%s: wpx_isr: wandev.critical set to 0x%02lx, int type = 0x%02x\n",
  1376. card->devname, card->wandev.critical, status->iflags);
  1377. card->in_isr = 0;
  1378. status->iflags = 0;
  1379. return;
  1380. }
  1381. /* For all interrupts set the critical flag to CRITICAL_RX_INTR.
  1382. * If the if_send routine is called with this flag set it will set
  1383. * the enable transmit flag to 1. (for a delayed interrupt)
  1384. */
  1385. switch (status->iflags){
  1386. case RX_INTR_PENDING: /* receive interrupt */
  1387. rx_intr(card);
  1388. break;
  1389. case TX_INTR_PENDING: /* transmit interrupt */
  1390. tx_intr(card);
  1391. break;
  1392. case MODEM_INTR_PENDING: /* modem status interrupt */
  1393. status_intr(card);
  1394. break;
  1395. case X25_ASY_TRANS_INTR_PENDING: /* network event interrupt */
  1396. event_intr(card);
  1397. break;
  1398. case TIMER_INTR_PENDING:
  1399. timer_intr(card);
  1400. break;
  1401. default: /* unwanted interrupt */
  1402. spur_intr(card);
  1403. }
  1404. card->in_isr = 0;
  1405. status->iflags = 0; /* clear interrupt condition */
  1406. }
  1407. /*
  1408. * Receive interrupt handler.
  1409. * This routine handles fragmented IP packets using M-bit according to the
  1410. * RFC1356.
  1411. * o map ligical channel number to network interface.
  1412. * o allocate socket buffer or append received packet to the existing one.
  1413. * o if M-bit is reset (i.e. it's the last packet in a sequence) then
  1414. * decapsulate packet and pass socket buffer to the protocol stack.
  1415. *
  1416. * Notes:
  1417. * 1. When allocating a socket buffer, if M-bit is set then more data is
  1418. * coming and we have to allocate buffer for the maximum IP packet size
  1419. * expected on this channel.
  1420. * 2. If something goes wrong and X.25 packet has to be dropped (e.g. no
  1421. * socket buffers available) the whole packet sequence must be discarded.
  1422. */
  1423. static void rx_intr (sdla_t* card)
  1424. {
  1425. TX25Mbox* rxmb = card->rxmb;
  1426. unsigned lcn = rxmb->cmd.lcn;
  1427. struct net_device* dev = find_channel(card,lcn);
  1428. x25_channel_t* chan;
  1429. struct sk_buff* skb=NULL;
  1430. if (dev == NULL){
  1431. /* Invalid channel, discard packet */
  1432. printk(KERN_INFO "%s: receiving on orphaned LCN %d!\n",
  1433. card->devname, lcn);
  1434. return;
  1435. }
  1436. chan = dev->priv;
  1437. chan->i_timeout_sofar = jiffies;
  1438. /* Copy the data from the board, into an
  1439. * skb buffer
  1440. */
  1441. if (wanpipe_pull_data_in_skb(card,dev,&skb)){
  1442. ++chan->ifstats.rx_dropped;
  1443. ++card->wandev.stats.rx_dropped;
  1444. ++chan->rx_intr_stat.rx_intr_no_socket;
  1445. ++chan->rx_intr_stat.rx_intr_bfr_not_passed_to_stack;
  1446. return;
  1447. }
  1448. dev->last_rx = jiffies; /* timestamp */
  1449. /* ------------ API ----------------*/
  1450. if (chan->common.usedby == API){
  1451. if (bh_enqueue(dev, skb)){
  1452. ++chan->ifstats.rx_dropped;
  1453. ++card->wandev.stats.rx_dropped;
  1454. ++chan->rx_intr_stat.rx_intr_bfr_not_passed_to_stack;
  1455. dev_kfree_skb_any(skb);
  1456. return;
  1457. }
  1458. ++chan->ifstats.rx_packets;
  1459. chan->ifstats.rx_bytes += skb->len;
  1460. chan->rx_skb = NULL;
  1461. if (!test_and_set_bit(0, &chan->tq_working)){
  1462. wanpipe_queue_work(&chan->common.wanpipe_work);
  1463. }
  1464. return;
  1465. }
  1466. /* ------------- WANPIPE -------------------*/
  1467. /* set rx_skb to NULL so we won't access it later when kernel already owns it */
  1468. chan->rx_skb=NULL;
  1469. /* Decapsulate packet, if necessary */
  1470. if (!skb->protocol && !wanrouter_type_trans(skb, dev)){
  1471. /* can't decapsulate packet */
  1472. dev_kfree_skb_any(skb);
  1473. ++chan->ifstats.rx_errors;
  1474. ++chan->ifstats.rx_dropped;
  1475. ++card->wandev.stats.rx_dropped;
  1476. ++chan->rx_intr_stat.rx_intr_bfr_not_passed_to_stack;
  1477. }else{
  1478. if( handle_IPXWAN(skb->data, chan->name,
  1479. chan->enable_IPX, chan->network_number,
  1480. skb->protocol)){
  1481. if( chan->enable_IPX ){
  1482. if(chan_send(dev, skb->data, skb->len,0)){
  1483. chan->tx_skb = skb;
  1484. }else{
  1485. dev_kfree_skb_any(skb);
  1486. ++chan->rx_intr_stat.rx_intr_bfr_not_passed_to_stack;
  1487. }
  1488. }else{
  1489. /* increment IPX packet dropped statistic */
  1490. ++chan->ifstats.rx_dropped;
  1491. ++chan->rx_intr_stat.rx_intr_bfr_not_passed_to_stack;
  1492. }
  1493. }else{
  1494. skb->mac.raw = skb->data;
  1495. chan->ifstats.rx_bytes += skb->len;
  1496. ++chan->ifstats.rx_packets;
  1497. ++chan->rx_intr_stat.rx_intr_bfr_passed_to_stack;
  1498. netif_rx(skb);
  1499. }
  1500. }
  1501. return;
  1502. }
  1503. static int wanpipe_pull_data_in_skb(sdla_t *card, struct net_device *dev,
  1504. struct sk_buff **skb)
  1505. {
  1506. void *bufptr;
  1507. TX25Mbox* rxmb = card->rxmb;
  1508. unsigned len = rxmb->cmd.length; /* packet length */
  1509. unsigned qdm = rxmb->cmd.qdm; /* Q,D and M bits */
  1510. x25_channel_t *chan = dev->priv;
  1511. struct sk_buff *new_skb = *skb;
  1512. if (chan->common.usedby == WANPIPE){
  1513. if (chan->drop_sequence){
  1514. if (!(qdm & 0x01)){
  1515. chan->drop_sequence = 0;
  1516. }
  1517. return 1;
  1518. }
  1519. new_skb = chan->rx_skb;
  1520. }else{
  1521. /* Add on the API header to the received
  1522. * data
  1523. */
  1524. len += sizeof(x25api_hdr_t);
  1525. }
  1526. if (new_skb == NULL){
  1527. int bufsize;
  1528. if (chan->common.usedby == WANPIPE){
  1529. bufsize = (qdm & 0x01) ? dev->mtu : len;
  1530. }else{
  1531. bufsize = len;
  1532. }
  1533. /* Allocate new socket buffer */
  1534. new_skb = dev_alloc_skb(bufsize + dev->hard_header_len);
  1535. if (new_skb == NULL){
  1536. printk(KERN_INFO "%s: no socket buffers available!\n",
  1537. card->devname);
  1538. chan->drop_sequence = 1; /* set flag */
  1539. ++chan->ifstats.rx_dropped;
  1540. return 1;
  1541. }
  1542. }
  1543. if (skb_tailroom(new_skb) < len){
  1544. /* No room for the packet. Call off the whole thing! */
  1545. dev_kfree_skb_any(new_skb);
  1546. if (chan->common.usedby == WANPIPE){
  1547. chan->rx_skb = NULL;
  1548. if (qdm & 0x01){
  1549. chan->drop_sequence = 1;
  1550. }
  1551. }
  1552. printk(KERN_INFO "%s: unexpectedly long packet sequence "
  1553. "on interface %s!\n", card->devname, dev->name);
  1554. ++chan->ifstats.rx_length_errors;
  1555. return 1;
  1556. }
  1557. bufptr = skb_put(new_skb,len);
  1558. if (chan->common.usedby == API){
  1559. /* Fill in the x25api header
  1560. */
  1561. x25api_t * api_data = (x25api_t*)bufptr;
  1562. api_data->hdr.qdm = rxmb->cmd.qdm;
  1563. api_data->hdr.cause = rxmb->cmd.cause;
  1564. api_data->hdr.diagn = rxmb->cmd.diagn;
  1565. api_data->hdr.length = rxmb->cmd.length;
  1566. memcpy(api_data->data, rxmb->data, rxmb->cmd.length);
  1567. }else{
  1568. memcpy(bufptr, rxmb->data, len);
  1569. }
  1570. new_skb->dev = dev;
  1571. if (chan->common.usedby == API){
  1572. new_skb->mac.raw = new_skb->data;
  1573. new_skb->protocol = htons(X25_PROT);
  1574. new_skb->pkt_type = WAN_PACKET_DATA;
  1575. }else{
  1576. new_skb->protocol = chan->protocol;
  1577. chan->rx_skb = new_skb;
  1578. }
  1579. /* If qdm bit is set, more data is coming
  1580. * thus, exit and wait for more data before
  1581. * sending the packet up. (Used by router only)
  1582. */
  1583. if ((qdm & 0x01) && (chan->common.usedby == WANPIPE))
  1584. return 1;
  1585. *skb = new_skb;
  1586. return 0;
  1587. }
  1588. /*===============================================================
  1589. * tx_intr
  1590. *
  1591. * Transmit interrupt handler.
  1592. * For each dev, check that there is something to send.
  1593. * If data available, transmit.
  1594. *
  1595. *===============================================================*/
  1596. static void tx_intr (sdla_t* card)
  1597. {
  1598. struct net_device *dev;
  1599. TX25Status* status = card->flags;
  1600. unsigned char more_to_tx=0;
  1601. x25_channel_t *chan=NULL;
  1602. int i=0;
  1603. if (card->u.x.tx_dev == NULL){
  1604. card->u.x.tx_dev = card->wandev.dev;
  1605. }
  1606. dev = card->u.x.tx_dev;
  1607. for (;;){
  1608. chan = dev->priv;
  1609. if (chan->transmit_length){
  1610. /* Device was set to transmit, check if the TX
  1611. * buffers are available
  1612. */
  1613. if (chan->common.state != WAN_CONNECTED){
  1614. chan->transmit_length = 0;
  1615. atomic_set(&chan->common.driver_busy,0);
  1616. chan->tx_offset=0;
  1617. if (netif_queue_stopped(dev)){
  1618. if (chan->common.usedby == API){
  1619. netif_start_queue(dev);
  1620. wakeup_sk_bh(dev);
  1621. }else{
  1622. netif_wake_queue(dev);
  1623. }
  1624. }
  1625. dev = move_dev_to_next(card,dev);
  1626. break;
  1627. }
  1628. if ((status->cflags[chan->ch_idx] & 0x40 || card->u.x.LAPB_hdlc) &&
  1629. (*card->u.x.hdlc_buf_status & 0x40) ){
  1630. /* Tx buffer available, we can send */
  1631. if (tx_intr_send(card, dev)){
  1632. more_to_tx=1;
  1633. }
  1634. /* If more than one interface present, move the
  1635. * device pointer to the next interface, so on the
  1636. * next TX interrupt we will try sending from it.
  1637. */
  1638. dev = move_dev_to_next(card,dev);
  1639. break;
  1640. }else{
  1641. /* Tx buffers not available, but device set
  1642. * the TX interrupt. Set more_to_tx and try
  1643. * to transmit for other devices.
  1644. */
  1645. more_to_tx=1;
  1646. dev = move_dev_to_next(card,dev);
  1647. }
  1648. }else{
  1649. /* This device was not set to transmit,
  1650. * go to next
  1651. */
  1652. dev = move_dev_to_next(card,dev);
  1653. }
  1654. if (++i == card->u.x.no_dev){
  1655. if (!more_to_tx){
  1656. DBG_PRINTK(KERN_INFO "%s: Nothing to Send in TX INTR\n",
  1657. card->devname);
  1658. }
  1659. break;
  1660. }
  1661. } //End of FOR
  1662. card->u.x.tx_dev = dev;
  1663. if (!more_to_tx){
  1664. /* if any other interfaces have transmit interrupts pending, */
  1665. /* do not disable the global transmit interrupt */
  1666. if (!(--card->u.x.tx_interrupts_pending)){
  1667. status->imask &= ~INTR_ON_TX_FRAME;
  1668. }
  1669. }
  1670. return;
  1671. }
  1672. /*===============================================================
  1673. * move_dev_to_next
  1674. *
  1675. *
  1676. *===============================================================*/
  1677. struct net_device *move_dev_to_next(sdla_t *card, struct net_device *dev)
  1678. {
  1679. if (card->u.x.no_dev != 1){
  1680. if (!*((struct net_device **)dev->priv))
  1681. return card->wandev.dev;
  1682. else
  1683. return *((struct net_device **)dev->priv);
  1684. }
  1685. return dev;
  1686. }
  1687. /*===============================================================
  1688. * tx_intr_send
  1689. *
  1690. *
  1691. *===============================================================*/
  1692. static int tx_intr_send(sdla_t *card, struct net_device *dev)
  1693. {
  1694. x25_channel_t* chan = dev->priv;
  1695. if (chan_send (dev,chan->transmit_buffer,chan->transmit_length,1)){
  1696. /* Packet was split up due to its size, do not disable
  1697. * tx_intr
  1698. */
  1699. return 1;
  1700. }
  1701. chan->transmit_length=0;
  1702. atomic_set(&chan->common.driver_busy,0);
  1703. chan->tx_offset=0;
  1704. /* If we are in API mode, wakeup the
  1705. * sock BH handler, not the NET_BH */
  1706. if (netif_queue_stopped(dev)){
  1707. if (chan->common.usedby == API){
  1708. netif_start_queue(dev);
  1709. wakeup_sk_bh(dev);
  1710. }else{
  1711. netif_wake_queue(dev);
  1712. }
  1713. }
  1714. return 0;
  1715. }
  1716. /*===============================================================
  1717. * timer_intr
  1718. *
  1719. * Timer interrupt handler.
  1720. * Check who called the timer interrupt and perform
  1721. * action accordingly.
  1722. *
  1723. *===============================================================*/
  1724. static void timer_intr (sdla_t *card)
  1725. {
  1726. TX25Status* status = card->flags;
  1727. if (card->u.x.timer_int_enabled & TMR_INT_ENABLED_CMD_EXEC){
  1728. if (timer_intr_cmd_exec(card) == 0){
  1729. card->u.x.timer_int_enabled &=
  1730. ~TMR_INT_ENABLED_CMD_EXEC;
  1731. }
  1732. }else if(card->u.x.timer_int_enabled & TMR_INT_ENABLED_UDP_PKT) {
  1733. if ((*card->u.x.hdlc_buf_status & 0x40) &&
  1734. card->u.x.udp_type == UDP_XPIPE_TYPE){
  1735. if(process_udp_mgmt_pkt(card)) {
  1736. card->u.x.timer_int_enabled &=
  1737. ~TMR_INT_ENABLED_UDP_PKT;
  1738. }
  1739. }
  1740. }else if (card->u.x.timer_int_enabled & TMR_INT_ENABLED_POLL_ACTIVE) {
  1741. struct net_device *dev = card->u.x.poll_device;
  1742. x25_channel_t *chan = NULL;
  1743. if (!dev){
  1744. card->u.x.timer_int_enabled &= ~TMR_INT_ENABLED_POLL_ACTIVE;
  1745. return;
  1746. }
  1747. chan = dev->priv;
  1748. printk(KERN_INFO
  1749. "%s: Closing down Idle link %s on LCN %d\n",
  1750. card->devname,chan->name,chan->common.lcn);
  1751. chan->i_timeout_sofar = jiffies;
  1752. chan_disc(dev);
  1753. card->u.x.timer_int_enabled &= ~TMR_INT_ENABLED_POLL_ACTIVE;
  1754. card->u.x.poll_device=NULL;
  1755. }else if (card->u.x.timer_int_enabled & TMR_INT_ENABLED_POLL_CONNECT_ON) {
  1756. wanpipe_set_state(card, WAN_CONNECTED);
  1757. if (card->u.x.LAPB_hdlc){
  1758. struct net_device *dev = card->wandev.dev;
  1759. set_chan_state(dev,WAN_CONNECTED);
  1760. send_delayed_cmd_result(card,dev,card->mbox);
  1761. }
  1762. /* 0x8F enable all interrupts */
  1763. x25_set_intr_mode(card, INTR_ON_RX_FRAME|
  1764. INTR_ON_TX_FRAME|
  1765. INTR_ON_MODEM_STATUS_CHANGE|
  1766. //INTR_ON_COMMAND_COMPLETE|
  1767. X25_ASY_TRANS_INTR_PENDING |
  1768. INTR_ON_TIMER |
  1769. DIRECT_RX_INTR_USAGE
  1770. );
  1771. status->imask &= ~INTR_ON_TX_FRAME; /* mask Tx interrupts */
  1772. card->u.x.timer_int_enabled &= ~TMR_INT_ENABLED_POLL_CONNECT_ON;
  1773. }else if (card->u.x.timer_int_enabled & TMR_INT_ENABLED_POLL_CONNECT_OFF) {
  1774. //printk(KERN_INFO "Poll connect, Turning OFF\n");
  1775. disconnect(card);
  1776. card->u.x.timer_int_enabled &= ~TMR_INT_ENABLED_POLL_CONNECT_OFF;
  1777. }else if (card->u.x.timer_int_enabled & TMR_INT_ENABLED_POLL_DISCONNECT) {
  1778. //printk(KERN_INFO "POll disconnect, trying to connect\n");
  1779. connect(card);
  1780. card->u.x.timer_int_enabled &= ~TMR_INT_ENABLED_POLL_DISCONNECT;
  1781. }else if (card->u.x.timer_int_enabled & TMR_INT_ENABLED_UPDATE){
  1782. if (*card->u.x.hdlc_buf_status & 0x40){
  1783. x25_get_err_stats(card);
  1784. x25_get_stats(card);
  1785. card->u.x.timer_int_enabled &= ~TMR_INT_ENABLED_UPDATE;
  1786. }
  1787. }
  1788. if(!card->u.x.timer_int_enabled){
  1789. //printk(KERN_INFO "Turning Timer Off \n");
  1790. status->imask &= ~INTR_ON_TIMER;
  1791. }
  1792. }
  1793. /*====================================================================
  1794. * Modem status interrupt handler.
  1795. *===================================================================*/
  1796. static void status_intr (sdla_t* card)
  1797. {
  1798. /* Added to avoid Modem status message flooding */
  1799. static TX25ModemStatus last_stat;
  1800. TX25Mbox* mbox = card->mbox;
  1801. TX25ModemStatus *modem_status;
  1802. struct net_device *dev;
  1803. x25_channel_t *chan;
  1804. int err;
  1805. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  1806. mbox->cmd.command = X25_READ_MODEM_STATUS;
  1807. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  1808. if (err){
  1809. x25_error(card, err, X25_READ_MODEM_STATUS, 0);
  1810. }else{
  1811. modem_status = (TX25ModemStatus*)mbox->data;
  1812. /* Check if the last status was the same
  1813. * if it was, do NOT print message again */
  1814. if (last_stat.status != modem_status->status){
  1815. printk(KERN_INFO "%s: Modem Status Change: DCD=%s, CTS=%s\n",
  1816. card->devname,DCD(modem_status->status),CTS(modem_status->status));
  1817. last_stat.status = modem_status->status;
  1818. if (card->u.x.oob_on_modem){
  1819. mbox->cmd.pktType = mbox->cmd.command;
  1820. mbox->cmd.result = 0x08;
  1821. /* Send a OOB to all connected sockets */
  1822. for (dev = card->wandev.dev; dev;
  1823. dev = *((struct net_device**)dev->priv)) {
  1824. chan=dev->priv;
  1825. if (chan->common.usedby == API){
  1826. send_oob_msg(card,dev,mbox);
  1827. }
  1828. }
  1829. /* The modem OOB message will probably kill the
  1830. * the link. If we don't clear the flag here,
  1831. * a deadlock could occur */
  1832. if (atomic_read(&card->u.x.command_busy)){
  1833. atomic_set(&card->u.x.command_busy,0);
  1834. }
  1835. }
  1836. }
  1837. }
  1838. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  1839. mbox->cmd.command = X25_HDLC_LINK_STATUS;
  1840. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  1841. if (err){
  1842. x25_error(card, err, X25_HDLC_LINK_STATUS, 0);
  1843. }
  1844. }
  1845. /*====================================================================
  1846. * Network event interrupt handler.
  1847. *===================================================================*/
  1848. static void event_intr (sdla_t* card)
  1849. {
  1850. x25_fetch_events(card);
  1851. }
  1852. /*====================================================================
  1853. * Spurious interrupt handler.
  1854. * o print a warning
  1855. * o
  1856. *====================================================================*/
  1857. static void spur_intr (sdla_t* card)
  1858. {
  1859. printk(KERN_INFO "%s: spurious interrupt!\n", card->devname);
  1860. }
  1861. /*
  1862. * Background Polling Routines
  1863. */
  1864. /*====================================================================
  1865. * Main polling routine.
  1866. * This routine is repeatedly called by the WANPIPE 'thread' to allow for
  1867. * time-dependent housekeeping work.
  1868. *
  1869. * Notes:
  1870. * 1. This routine may be called on interrupt context with all interrupts
  1871. * enabled. Beware!
  1872. *====================================================================*/
  1873. static void wpx_poll (sdla_t *card)
  1874. {
  1875. if (!card->wandev.dev){
  1876. goto wpx_poll_exit;
  1877. }
  1878. if (card->open_cnt != card->u.x.num_of_ch){
  1879. goto wpx_poll_exit;
  1880. }
  1881. if (test_bit(PERI_CRIT,&card->wandev.critical)){
  1882. goto wpx_poll_exit;
  1883. }
  1884. if (test_bit(SEND_CRIT,&card->wandev.critical)){
  1885. goto wpx_poll_exit;
  1886. }
  1887. switch(card->wandev.state){
  1888. case WAN_CONNECTED:
  1889. poll_active(card);
  1890. break;
  1891. case WAN_CONNECTING:
  1892. poll_connecting(card);
  1893. break;
  1894. case WAN_DISCONNECTED:
  1895. poll_disconnected(card);
  1896. break;
  1897. }
  1898. wpx_poll_exit:
  1899. clear_bit(POLL_CRIT,&card->wandev.critical);
  1900. return;
  1901. }
  1902. static void trigger_x25_poll(sdla_t *card)
  1903. {
  1904. schedule_work(&card->u.x.x25_poll_work);
  1905. }
  1906. /*====================================================================
  1907. * Handle physical link establishment phase.
  1908. * o if connection timed out, disconnect the link.
  1909. *===================================================================*/
  1910. static void poll_connecting (sdla_t* card)
  1911. {
  1912. volatile TX25Status* status = card->flags;
  1913. if (status->gflags & X25_HDLC_ABM){
  1914. timer_intr_exec (card, TMR_INT_ENABLED_POLL_CONNECT_ON);
  1915. }else if ((jiffies - card->state_tick) > CONNECT_TIMEOUT){
  1916. timer_intr_exec (card, TMR_INT_ENABLED_POLL_CONNECT_OFF);
  1917. }
  1918. }
  1919. /*====================================================================
  1920. * Handle physical link disconnected phase.
  1921. * o if hold-down timeout has expired and there are open interfaces,
  1922. * connect link.
  1923. *===================================================================*/
  1924. static void poll_disconnected (sdla_t* card)
  1925. {
  1926. struct net_device *dev;
  1927. x25_channel_t *chan;
  1928. TX25Status* status = card->flags;
  1929. if (!card->u.x.LAPB_hdlc && card->open_cnt &&
  1930. ((jiffies - card->state_tick) > HOLD_DOWN_TIME)){
  1931. timer_intr_exec(card, TMR_INT_ENABLED_POLL_DISCONNECT);
  1932. }
  1933. if ((dev=card->wandev.dev) == NULL)
  1934. return;
  1935. if ((chan=dev->priv) == NULL)
  1936. return;
  1937. if (chan->common.usedby == API &&
  1938. atomic_read(&chan->common.command) &&
  1939. card->u.x.LAPB_hdlc){
  1940. if (!(card->u.x.timer_int_enabled & TMR_INT_ENABLED_CMD_EXEC))
  1941. card->u.x.timer_int_enabled |= TMR_INT_ENABLED_CMD_EXEC;
  1942. if (!(status->imask & INTR_ON_TIMER))
  1943. status->imask |= INTR_ON_TIMER;
  1944. }
  1945. }
  1946. /*====================================================================
  1947. * Handle active link phase.
  1948. * o fetch X.25 asynchronous events.
  1949. * o kick off transmission on all interfaces.
  1950. *===================================================================*/
  1951. static void poll_active (sdla_t* card)
  1952. {
  1953. struct net_device* dev;
  1954. TX25Status* status = card->flags;
  1955. for (dev = card->wandev.dev; dev;
  1956. dev = *((struct net_device **)dev->priv)){
  1957. x25_channel_t* chan = dev->priv;
  1958. /* If SVC has been idle long enough, close virtual circuit */
  1959. if ( chan->common.svc &&
  1960. chan->common.state == WAN_CONNECTED &&
  1961. chan->common.usedby == WANPIPE ){
  1962. if( (jiffies - chan->i_timeout_sofar) / HZ > chan->idle_timeout ){
  1963. /* Close svc */
  1964. card->u.x.poll_device=dev;
  1965. timer_intr_exec (card, TMR_INT_ENABLED_POLL_ACTIVE);
  1966. }
  1967. }
  1968. #ifdef PRINT_DEBUG
  1969. chan->ifstats.tx_compressed = atomic_read(&chan->common.command);
  1970. chan->ifstats.tx_errors = chan->common.state;
  1971. chan->ifstats.rx_fifo_errors = atomic_read(&card->u.x.command_busy);
  1972. ++chan->ifstats.tx_bytes;
  1973. chan->ifstats.rx_fifo_errors=atomic_read(&chan->common.disconnect);
  1974. chan->ifstats.multicast=atomic_read(&chan->bh_buff_used);
  1975. chan->ifstats.rx_length_errors=*card->u.x.hdlc_buf_status;
  1976. #endif
  1977. if (chan->common.usedby == API &&
  1978. atomic_read(&chan->common.command) &&
  1979. !card->u.x.LAPB_hdlc){
  1980. if (!(card->u.x.timer_int_enabled & TMR_INT_ENABLED_CMD_EXEC))
  1981. card->u.x.timer_int_enabled |= TMR_INT_ENABLED_CMD_EXEC;
  1982. if (!(status->imask & INTR_ON_TIMER))
  1983. status->imask |= INTR_ON_TIMER;
  1984. }
  1985. if ((chan->common.usedby == API) &&
  1986. atomic_read(&chan->common.disconnect)){
  1987. if (chan->common.state == WAN_DISCONNECTED){
  1988. atomic_set(&chan->common.disconnect,0);
  1989. return;
  1990. }
  1991. atomic_set(&chan->common.command,X25_CLEAR_CALL);
  1992. if (!(card->u.x.timer_int_enabled & TMR_INT_ENABLED_CMD_EXEC))
  1993. card->u.x.timer_int_enabled |= TMR_INT_ENABLED_CMD_EXEC;
  1994. if (!(status->imask & INTR_ON_TIMER))
  1995. status->imask |= INTR_ON_TIMER;
  1996. }
  1997. }
  1998. }
  1999. static void timer_intr_exec(sdla_t *card, unsigned char TYPE)
  2000. {
  2001. TX25Status* status = card->flags;
  2002. card->u.x.timer_int_enabled |= TYPE;
  2003. if (!(status->imask & INTR_ON_TIMER))
  2004. status->imask |= INTR_ON_TIMER;
  2005. }
  2006. /*====================================================================
  2007. * SDLA Firmware-Specific Functions
  2008. *
  2009. * Almost all X.25 commands can unexpetedly fail due to so called 'X.25
  2010. * asynchronous events' such as restart, interrupt, incoming call request,
  2011. * call clear request, etc. They can't be ignored and have to be delt with
  2012. * immediately. To tackle with this problem we execute each interface
  2013. * command in a loop until good return code is received or maximum number
  2014. * of retries is reached. Each interface command returns non-zero return
  2015. * code, an asynchronous event/error handler x25_error() is called.
  2016. *====================================================================*/
  2017. /*====================================================================
  2018. * Read X.25 firmware version.
  2019. * Put code version as ASCII string in str.
  2020. *===================================================================*/
  2021. static int x25_get_version (sdla_t* card, char* str)
  2022. {
  2023. TX25Mbox* mbox = card->mbox;
  2024. int retry = MAX_CMD_RETRY;
  2025. int err;
  2026. do
  2027. {
  2028. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2029. mbox->cmd.command = X25_READ_CODE_VERSION;
  2030. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2031. } while (err && retry-- &&
  2032. x25_error(card, err, X25_READ_CODE_VERSION, 0));
  2033. if (!err && str)
  2034. {
  2035. int len = mbox->cmd.length;
  2036. memcpy(str, mbox->data, len);
  2037. str[len] = '\0';
  2038. }
  2039. return err;
  2040. }
  2041. /*====================================================================
  2042. * Configure adapter.
  2043. *===================================================================*/
  2044. static int x25_configure (sdla_t* card, TX25Config* conf)
  2045. {
  2046. TX25Mbox* mbox = card->mbox;
  2047. int retry = MAX_CMD_RETRY;
  2048. int err;
  2049. do{
  2050. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2051. memcpy(mbox->data, (void*)conf, sizeof(TX25Config));
  2052. mbox->cmd.length = sizeof(TX25Config);
  2053. mbox->cmd.command = X25_SET_CONFIGURATION;
  2054. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2055. } while (err && retry-- && x25_error(card, err, X25_SET_CONFIGURATION, 0));
  2056. return err;
  2057. }
  2058. /*====================================================================
  2059. * Configure adapter for HDLC only.
  2060. *===================================================================*/
  2061. static int hdlc_configure (sdla_t* card, TX25Config* conf)
  2062. {
  2063. TX25Mbox* mbox = card->mbox;
  2064. int retry = MAX_CMD_RETRY;
  2065. int err;
  2066. do{
  2067. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2068. memcpy(mbox->data, (void*)conf, sizeof(TX25Config));
  2069. mbox->cmd.length = sizeof(TX25Config);
  2070. mbox->cmd.command = X25_HDLC_SET_CONFIG;
  2071. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2072. } while (err && retry-- && x25_error(card, err, X25_SET_CONFIGURATION, 0));
  2073. return err;
  2074. }
  2075. static int set_hdlc_level (sdla_t* card)
  2076. {
  2077. TX25Mbox* mbox = card->mbox;
  2078. int retry = MAX_CMD_RETRY;
  2079. int err;
  2080. do{
  2081. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2082. mbox->cmd.command = SET_PROTOCOL_LEVEL;
  2083. mbox->cmd.length = 1;
  2084. mbox->data[0] = HDLC_LEVEL; //| DO_HDLC_LEVEL_ERROR_CHECKING;
  2085. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2086. } while (err && retry-- && x25_error(card, err, SET_PROTOCOL_LEVEL, 0));
  2087. return err;
  2088. }
  2089. /*====================================================================
  2090. * Get communications error statistics.
  2091. *====================================================================*/
  2092. static int x25_get_err_stats (sdla_t* card)
  2093. {
  2094. TX25Mbox* mbox = card->mbox;
  2095. int retry = MAX_CMD_RETRY;
  2096. int err;
  2097. do
  2098. {
  2099. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2100. mbox->cmd.command = X25_HDLC_READ_COMM_ERR;
  2101. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2102. } while (err && retry-- && x25_error(card, err, X25_HDLC_READ_COMM_ERR, 0));
  2103. if (!err)
  2104. {
  2105. THdlcCommErr* stats = (void*)mbox->data;
  2106. card->wandev.stats.rx_over_errors = stats->rxOverrun;
  2107. card->wandev.stats.rx_crc_errors = stats->rxBadCrc;
  2108. card->wandev.stats.rx_missed_errors = stats->rxAborted;
  2109. card->wandev.stats.tx_aborted_errors = stats->txAborted;
  2110. }
  2111. return err;
  2112. }
  2113. /*====================================================================
  2114. * Get protocol statistics.
  2115. *===================================================================*/
  2116. static int x25_get_stats (sdla_t* card)
  2117. {
  2118. TX25Mbox* mbox = card->mbox;
  2119. int retry = MAX_CMD_RETRY;
  2120. int err;
  2121. do
  2122. {
  2123. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2124. mbox->cmd.command = X25_READ_STATISTICS;
  2125. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2126. } while (err && retry-- && x25_error(card, err, X25_READ_STATISTICS, 0)) ;
  2127. if (!err)
  2128. {
  2129. TX25Stats* stats = (void*)mbox->data;
  2130. card->wandev.stats.rx_packets = stats->rxData;
  2131. card->wandev.stats.tx_packets = stats->txData;
  2132. }
  2133. return err;
  2134. }
  2135. /*====================================================================
  2136. * Close HDLC link.
  2137. *===================================================================*/
  2138. static int x25_close_hdlc (sdla_t* card)
  2139. {
  2140. TX25Mbox* mbox = card->mbox;
  2141. int retry = MAX_CMD_RETRY;
  2142. int err;
  2143. do
  2144. {
  2145. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2146. mbox->cmd.command = X25_HDLC_LINK_CLOSE;
  2147. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2148. } while (err && retry-- && x25_error(card, err, X25_HDLC_LINK_CLOSE, 0));
  2149. return err;
  2150. }
  2151. /*====================================================================
  2152. * Open HDLC link.
  2153. *===================================================================*/
  2154. static int x25_open_hdlc (sdla_t* card)
  2155. {
  2156. TX25Mbox* mbox = card->mbox;
  2157. int retry = MAX_CMD_RETRY;
  2158. int err;
  2159. do
  2160. {
  2161. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2162. mbox->cmd.command = X25_HDLC_LINK_OPEN;
  2163. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2164. } while (err && retry-- && x25_error(card, err, X25_HDLC_LINK_OPEN, 0));
  2165. return err;
  2166. }
  2167. /*=====================================================================
  2168. * Setup HDLC link.
  2169. *====================================================================*/
  2170. static int x25_setup_hdlc (sdla_t* card)
  2171. {
  2172. TX25Mbox* mbox = card->mbox;
  2173. int retry = MAX_CMD_RETRY;
  2174. int err;
  2175. do
  2176. {
  2177. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2178. mbox->cmd.command = X25_HDLC_LINK_SETUP;
  2179. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2180. } while (err && retry-- && x25_error(card, err, X25_HDLC_LINK_SETUP, 0));
  2181. return err;
  2182. }
  2183. /*====================================================================
  2184. * Set (raise/drop) DTR.
  2185. *===================================================================*/
  2186. static int x25_set_dtr (sdla_t* card, int dtr)
  2187. {
  2188. TX25Mbox* mbox = card->mbox;
  2189. int retry = MAX_CMD_RETRY;
  2190. int err;
  2191. do
  2192. {
  2193. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2194. mbox->data[0] = 0;
  2195. mbox->data[2] = 0;
  2196. mbox->data[1] = dtr ? 0x02 : 0x01;
  2197. mbox->cmd.length = 3;
  2198. mbox->cmd.command = X25_SET_GLOBAL_VARS;
  2199. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2200. } while (err && retry-- && x25_error(card, err, X25_SET_GLOBAL_VARS, 0));
  2201. return err;
  2202. }
  2203. /*====================================================================
  2204. * Set interrupt mode.
  2205. *===================================================================*/
  2206. static int x25_set_intr_mode (sdla_t* card, int mode)
  2207. {
  2208. TX25Mbox* mbox = card->mbox;
  2209. int retry = MAX_CMD_RETRY;
  2210. int err;
  2211. do
  2212. {
  2213. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2214. mbox->data[0] = mode;
  2215. if (card->hw.fwid == SFID_X25_508){
  2216. mbox->data[1] = card->hw.irq;
  2217. mbox->data[2] = 2;
  2218. mbox->cmd.length = 3;
  2219. }else {
  2220. mbox->cmd.length = 1;
  2221. }
  2222. mbox->cmd.command = X25_SET_INTERRUPT_MODE;
  2223. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2224. } while (err && retry-- && x25_error(card, err, X25_SET_INTERRUPT_MODE, 0));
  2225. return err;
  2226. }
  2227. /*====================================================================
  2228. * Read X.25 channel configuration.
  2229. *===================================================================*/
  2230. static int x25_get_chan_conf (sdla_t* card, x25_channel_t* chan)
  2231. {
  2232. TX25Mbox* mbox = card->mbox;
  2233. int retry = MAX_CMD_RETRY;
  2234. int lcn = chan->common.lcn;
  2235. int err;
  2236. do{
  2237. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2238. mbox->cmd.lcn = lcn;
  2239. mbox->cmd.command = X25_READ_CHANNEL_CONFIG;
  2240. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2241. } while (err && retry-- && x25_error(card, err, X25_READ_CHANNEL_CONFIG, lcn));
  2242. if (!err)
  2243. {
  2244. TX25Status* status = card->flags;
  2245. /* calculate an offset into the array of status bytes */
  2246. if (card->u.x.hi_svc <= X25_MAX_CHAN){
  2247. chan->ch_idx = lcn - 1;
  2248. }else{
  2249. int offset;
  2250. /* FIX: Apr 14 2000 : Nenad Corbic
  2251. * The data field was being compared to 0x1F using
  2252. * '&&' instead of '&'.
  2253. * This caused X25API to fail for LCNs greater than 255.
  2254. */
  2255. switch (mbox->data[0] & 0x1F)
  2256. {
  2257. case 0x01:
  2258. offset = status->pvc_map; break;
  2259. case 0x03:
  2260. offset = status->icc_map; break;
  2261. case 0x07:
  2262. offset = status->twc_map; break;
  2263. case 0x0B:
  2264. offset = status->ogc_map; break;
  2265. default:
  2266. offset = 0;
  2267. }
  2268. chan->ch_idx = lcn - 1 - offset;
  2269. }
  2270. /* get actual transmit packet size on this channel */
  2271. switch(mbox->data[1] & 0x38)
  2272. {
  2273. case 0x00:
  2274. chan->tx_pkt_size = 16;
  2275. break;
  2276. case 0x08:
  2277. chan->tx_pkt_size = 32;
  2278. break;
  2279. case 0x10:
  2280. chan->tx_pkt_size = 64;
  2281. break;
  2282. case 0x18:
  2283. chan->tx_pkt_size = 128;
  2284. break;
  2285. case 0x20:
  2286. chan->tx_pkt_size = 256;
  2287. break;
  2288. case 0x28:
  2289. chan->tx_pkt_size = 512;
  2290. break;
  2291. case 0x30:
  2292. chan->tx_pkt_size = 1024;
  2293. break;
  2294. }
  2295. if (card->u.x.logging)
  2296. printk(KERN_INFO "%s: X.25 packet size on LCN %d is %d.\n",
  2297. card->devname, lcn, chan->tx_pkt_size);
  2298. }
  2299. return err;
  2300. }
  2301. /*====================================================================
  2302. * Place X.25 call.
  2303. *====================================================================*/
  2304. static int x25_place_call (sdla_t* card, x25_channel_t* chan)
  2305. {
  2306. TX25Mbox* mbox = card->mbox;
  2307. int retry = MAX_CMD_RETRY;
  2308. int err;
  2309. char str[64];
  2310. if (chan->protocol == htons(ETH_P_IP)){
  2311. sprintf(str, "-d%s -uCC", chan->addr);
  2312. }else if (chan->protocol == htons(ETH_P_IPX)){
  2313. sprintf(str, "-d%s -u800000008137", chan->addr);
  2314. }
  2315. do
  2316. {
  2317. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2318. strcpy(mbox->data, str);
  2319. mbox->cmd.length = strlen(str);
  2320. mbox->cmd.command = X25_PLACE_CALL;
  2321. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2322. } while (err && retry-- && x25_error(card, err, X25_PLACE_CALL, 0));
  2323. if (!err){
  2324. bind_lcn_to_dev (card, chan->dev, mbox->cmd.lcn);
  2325. }
  2326. return err;
  2327. }
  2328. /*====================================================================
  2329. * Accept X.25 call.
  2330. *====================================================================*/
  2331. static int x25_accept_call (sdla_t* card, int lcn, int qdm)
  2332. {
  2333. TX25Mbox* mbox = card->mbox;
  2334. int retry = MAX_CMD_RETRY;
  2335. int err;
  2336. do
  2337. {
  2338. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2339. mbox->cmd.lcn = lcn;
  2340. mbox->cmd.qdm = qdm;
  2341. mbox->cmd.command = X25_ACCEPT_CALL;
  2342. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2343. } while (err && retry-- && x25_error(card, err, X25_ACCEPT_CALL, lcn));
  2344. return err;
  2345. }
  2346. /*====================================================================
  2347. * Clear X.25 call.
  2348. *====================================================================*/
  2349. static int x25_clear_call (sdla_t* card, int lcn, int cause, int diagn)
  2350. {
  2351. TX25Mbox* mbox = card->mbox;
  2352. int retry = MAX_CMD_RETRY;
  2353. int err;
  2354. do
  2355. {
  2356. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2357. mbox->cmd.lcn = lcn;
  2358. mbox->cmd.cause = cause;
  2359. mbox->cmd.diagn = diagn;
  2360. mbox->cmd.command = X25_CLEAR_CALL;
  2361. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2362. } while (err && retry-- && x25_error(card, err, X25_CLEAR_CALL, lcn));
  2363. return err;
  2364. }
  2365. /*====================================================================
  2366. * Send X.25 data packet.
  2367. *====================================================================*/
  2368. static int x25_send (sdla_t* card, int lcn, int qdm, int len, void* buf)
  2369. {
  2370. TX25Mbox* mbox = card->mbox;
  2371. int retry = MAX_CMD_RETRY;
  2372. int err;
  2373. unsigned char cmd;
  2374. if (card->u.x.LAPB_hdlc)
  2375. cmd = X25_HDLC_WRITE;
  2376. else
  2377. cmd = X25_WRITE;
  2378. do
  2379. {
  2380. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2381. memcpy(mbox->data, buf, len);
  2382. mbox->cmd.length = len;
  2383. mbox->cmd.lcn = lcn;
  2384. if (card->u.x.LAPB_hdlc){
  2385. mbox->cmd.pf = qdm;
  2386. }else{
  2387. mbox->cmd.qdm = qdm;
  2388. }
  2389. mbox->cmd.command = cmd;
  2390. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2391. } while (err && retry-- && x25_error(card, err, cmd , lcn));
  2392. /* If buffers are busy the return code for LAPB HDLC is
  2393. * 1. The above functions are looking for return code
  2394. * of X25RES_NOT_READY if busy. */
  2395. if (card->u.x.LAPB_hdlc && err == 1){
  2396. err = X25RES_NOT_READY;
  2397. }
  2398. return err;
  2399. }
  2400. /*====================================================================
  2401. * Fetch X.25 asynchronous events.
  2402. *===================================================================*/
  2403. static int x25_fetch_events (sdla_t* card)
  2404. {
  2405. TX25Status* status = card->flags;
  2406. TX25Mbox* mbox = card->mbox;
  2407. int err = 0;
  2408. if (status->gflags & 0x20)
  2409. {
  2410. memset(&mbox->cmd, 0, sizeof(TX25Cmd));
  2411. mbox->cmd.command = X25_IS_DATA_AVAILABLE;
  2412. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  2413. if (err) x25_error(card, err, X25_IS_DATA_AVAILABLE, 0);
  2414. }
  2415. return err;
  2416. }
  2417. /*====================================================================
  2418. * X.25 asynchronous event/error handler.
  2419. * This routine is called each time interface command returns
  2420. * non-zero return code to handle X.25 asynchronous events and
  2421. * common errors. Return non-zero to repeat command or zero to
  2422. * cancel it.
  2423. *
  2424. * Notes:
  2425. * 1. This function may be called recursively, as handling some of the
  2426. * asynchronous events (e.g. call request) requires execution of the
  2427. * interface command(s) that, in turn, may also return asynchronous
  2428. * events. To avoid re-entrancy problems we copy mailbox to dynamically
  2429. * allocated memory before processing events.
  2430. *====================================================================*/
  2431. static int x25_error (sdla_t* card, int err, int cmd, int lcn)
  2432. {
  2433. int retry = 1;
  2434. unsigned dlen = ((TX25Mbox*)card->mbox)->cmd.length;
  2435. TX25Mbox* mb;
  2436. mb = kmalloc(sizeof(TX25Mbox) + dlen, GFP_ATOMIC);
  2437. if (mb == NULL)
  2438. {
  2439. printk(KERN_ERR "%s: x25_error() out of memory!\n",
  2440. card->devname);
  2441. return 0;
  2442. }
  2443. memcpy(mb, card->mbox, sizeof(TX25Mbox) + dlen);
  2444. switch (err){
  2445. case X25RES_ASYNC_PACKET: /* X.25 asynchronous packet was received */
  2446. mb->data[dlen] = '\0';
  2447. switch (mb->cmd.pktType & 0x7F){
  2448. case ASE_CALL_RQST: /* incoming call */
  2449. retry = incoming_call(card, cmd, lcn, mb);
  2450. break;
  2451. case ASE_CALL_ACCEPTED: /* connected */
  2452. retry = call_accepted(card, cmd, lcn, mb);
  2453. break;
  2454. case ASE_CLEAR_RQST: /* call clear request */
  2455. retry = call_cleared(card, cmd, lcn, mb);
  2456. break;
  2457. case ASE_RESET_RQST: /* reset request */
  2458. printk(KERN_INFO "%s: X.25 reset request on LCN %d! "
  2459. "Cause:0x%02X Diagn:0x%02X\n",
  2460. card->devname, mb->cmd.lcn, mb->cmd.cause,
  2461. mb->cmd.diagn);
  2462. api_oob_event (card,mb);
  2463. break;
  2464. case ASE_RESTART_RQST: /* restart request */
  2465. retry = restart_event(card, cmd, lcn, mb);
  2466. break;
  2467. case ASE_CLEAR_CONFRM:
  2468. if (clear_confirm_event (card,mb))
  2469. break;
  2470. /* I use the goto statement here so if
  2471. * somebody inserts code between the
  2472. * case and default, we will not have
  2473. * ghost problems */
  2474. goto dflt_1;
  2475. default:
  2476. dflt_1:
  2477. printk(KERN_INFO "%s: X.25 event 0x%02X on LCN %d! "
  2478. "Cause:0x%02X Diagn:0x%02X\n",
  2479. card->devname, mb->cmd.pktType,
  2480. mb->cmd.lcn, mb->cmd.cause, mb->cmd.diagn);
  2481. }
  2482. break;
  2483. case X25RES_PROTO_VIOLATION: /* X.25 protocol violation indication */
  2484. /* Bug Fix: Mar 14 2000
  2485. * The Protocol violation error conditions were
  2486. * not handled previously */
  2487. switch (mb->cmd.pktType & 0x7F){
  2488. case PVE_CLEAR_RQST: /* Clear request */
  2489. retry = call_cleared(card, cmd, lcn, mb);
  2490. break;
  2491. case PVE_RESET_RQST: /* Reset request */
  2492. printk(KERN_INFO "%s: X.25 reset request on LCN %d! "
  2493. "Cause:0x%02X Diagn:0x%02X\n",
  2494. card->devname, mb->cmd.lcn, mb->cmd.cause,
  2495. mb->cmd.diagn);
  2496. api_oob_event (card,mb);
  2497. break;
  2498. case PVE_RESTART_RQST: /* Restart request */
  2499. retry = restart_event(card, cmd, lcn, mb);
  2500. break;
  2501. default :
  2502. printk(KERN_INFO
  2503. "%s: X.25 protocol violation on LCN %d! "
  2504. "Packet:0x%02X Cause:0x%02X Diagn:0x%02X\n",
  2505. card->devname, mb->cmd.lcn,
  2506. mb->cmd.pktType & 0x7F, mb->cmd.cause, mb->cmd.diagn);
  2507. api_oob_event(card,mb);
  2508. }
  2509. break;
  2510. case 0x42: /* X.25 timeout */
  2511. retry = timeout_event(card, cmd, lcn, mb);
  2512. break;
  2513. case 0x43: /* X.25 retry limit exceeded */
  2514. printk(KERN_INFO
  2515. "%s: exceeded X.25 retry limit on LCN %d! "
  2516. "Packet:0x%02X Diagn:0x%02X\n", card->devname,
  2517. mb->cmd.lcn, mb->cmd.pktType, mb->cmd.diagn)
  2518. ;
  2519. break;
  2520. case 0x08: /* modem failure */
  2521. #ifndef MODEM_NOT_LOG
  2522. printk(KERN_INFO "%s: modem failure!\n", card->devname);
  2523. #endif /* MODEM_NOT_LOG */
  2524. api_oob_event(card,mb);
  2525. break;
  2526. case 0x09: /* N2 retry limit */
  2527. printk(KERN_INFO "%s: exceeded HDLC retry limit!\n",
  2528. card->devname);
  2529. api_oob_event(card,mb);
  2530. break;
  2531. case 0x06: /* unnumbered frame was received while in ABM */
  2532. printk(KERN_INFO "%s: received Unnumbered frame 0x%02X!\n",
  2533. card->devname, mb->data[0]);
  2534. api_oob_event(card,mb);
  2535. break;
  2536. case CMD_TIMEOUT:
  2537. printk(KERN_ERR "%s: command 0x%02X timed out!\n",
  2538. card->devname, cmd)
  2539. ;
  2540. retry = 0; /* abort command */
  2541. break;
  2542. case X25RES_NOT_READY:
  2543. retry = 1;
  2544. break;
  2545. case 0x01:
  2546. if (card->u.x.LAPB_hdlc)
  2547. break;
  2548. if (mb->cmd.command == 0x16)
  2549. break;
  2550. /* I use the goto statement here so if
  2551. * somebody inserts code between the
  2552. * case and default, we will not have
  2553. * ghost problems */
  2554. goto dflt_2;
  2555. default:
  2556. dflt_2:
  2557. printk(KERN_INFO "%s: command 0x%02X returned 0x%02X! Lcn %i\n",
  2558. card->devname, cmd, err, mb->cmd.lcn)
  2559. ;
  2560. retry = 0; /* abort command */
  2561. }
  2562. kfree(mb);
  2563. return retry;
  2564. }
  2565. /*====================================================================
  2566. * X.25 Asynchronous Event Handlers
  2567. * These functions are called by the x25_error() and should return 0, if
  2568. * the command resulting in the asynchronous event must be aborted.
  2569. *====================================================================*/
  2570. /*====================================================================
  2571. *Handle X.25 incoming call request.
  2572. * RFC 1356 establishes the following rules:
  2573. * 1. The first octet in the Call User Data (CUD) field of the call
  2574. * request packet contains NLPID identifying protocol encapsulation
  2575. * 2. Calls MUST NOT be accepted unless router supports requested
  2576. * protocol encapsulation.
  2577. * 3. A diagnostic code 249 defined by ISO/IEC 8208 may be used
  2578. * when clearing a call because protocol encapsulation is not
  2579. * supported.
  2580. * 4. If an incoming call is received while a call request is
  2581. * pending (i.e. call collision has occurred), the incoming call
  2582. * shall be rejected and call request shall be retried.
  2583. *====================================================================*/
  2584. static int incoming_call (sdla_t* card, int cmd, int lcn, TX25Mbox* mb)
  2585. {
  2586. struct wan_device* wandev = &card->wandev;
  2587. int new_lcn = mb->cmd.lcn;
  2588. struct net_device* dev = get_dev_by_lcn(wandev, new_lcn);
  2589. x25_channel_t* chan = NULL;
  2590. int accept = 0; /* set to '1' if o.k. to accept call */
  2591. unsigned int user_data;
  2592. x25_call_info_t* info;
  2593. /* Make sure there is no call collision */
  2594. if (dev != NULL)
  2595. {
  2596. printk(KERN_INFO
  2597. "%s: X.25 incoming call collision on LCN %d!\n",
  2598. card->devname, new_lcn);
  2599. x25_clear_call(card, new_lcn, 0, 0);
  2600. return 1;
  2601. }
  2602. /* Make sure D bit is not set in call request */
  2603. //FIXME: THIS IS NOT TURE !!!! TAKE IT OUT
  2604. // if (mb->cmd.qdm & 0x02)
  2605. // {
  2606. // printk(KERN_INFO
  2607. // "%s: X.25 incoming call on LCN %d with D-bit set!\n",
  2608. // card->devname, new_lcn);
  2609. //
  2610. // x25_clear_call(card, new_lcn, 0, 0);
  2611. // return 1;
  2612. // }
  2613. /* Parse call request data */
  2614. info = kmalloc(sizeof(x25_call_info_t), GFP_ATOMIC);
  2615. if (info == NULL)
  2616. {
  2617. printk(KERN_ERR
  2618. "%s: not enough memory to parse X.25 incoming call "
  2619. "on LCN %d!\n", card->devname, new_lcn);
  2620. x25_clear_call(card, new_lcn, 0, 0);
  2621. return 1;
  2622. }
  2623. parse_call_info(mb->data, info);
  2624. if (card->u.x.logging)
  2625. printk(KERN_INFO "\n%s: X.25 incoming call on LCN %d!\n",
  2626. card->devname, new_lcn);
  2627. /* Conver the first two ASCII characters into an
  2628. * interger. Used to check the incoming protocol
  2629. */
  2630. user_data = hex_to_uint(info->user,2);
  2631. /* Find available channel */
  2632. for (dev = wandev->dev; dev; dev = *((struct net_device **)dev->priv)) {
  2633. chan = dev->priv;
  2634. if (chan->common.usedby == API)
  2635. continue;
  2636. if (!chan->common.svc || (chan->common.state != WAN_DISCONNECTED))
  2637. continue;
  2638. if (user_data == NLPID_IP && chan->protocol != htons(ETH_P_IP)){
  2639. printk(KERN_INFO "IP packet but configured for IPX : %x, %x\n",
  2640. htons(chan->protocol), info->user[0]);
  2641. continue;
  2642. }
  2643. if (user_data == NLPID_SNAP && chan->protocol != htons(ETH_P_IPX)){
  2644. printk(KERN_INFO "IPX packet but configured for IP: %x\n",
  2645. htons(chan->protocol));
  2646. continue;
  2647. }
  2648. if (strcmp(info->src, chan->addr) == 0)
  2649. break;
  2650. /* If just an '@' is specified, accept all incoming calls */
  2651. if (strcmp(chan->addr, "") == 0)
  2652. break;
  2653. }
  2654. if (dev == NULL){
  2655. /* If the call is not for any WANPIPE interfaces
  2656. * check to see if there is an API listening queue
  2657. * waiting for data. If there is send the packet
  2658. * up the stack.
  2659. */
  2660. if (card->sk != NULL && card->func != NULL){
  2661. if (api_incoming_call(card,mb,new_lcn)){
  2662. x25_clear_call(card, new_lcn, 0, 0);
  2663. }
  2664. accept = 0;
  2665. }else{
  2666. printk(KERN_INFO "%s: no channels available!\n",
  2667. card->devname);
  2668. x25_clear_call(card, new_lcn, 0, 0);
  2669. }
  2670. }else if (info->nuser == 0){
  2671. printk(KERN_INFO
  2672. "%s: no user data in incoming call on LCN %d!\n",
  2673. card->devname, new_lcn)
  2674. ;
  2675. x25_clear_call(card, new_lcn, 0, 0);
  2676. }else switch (info->user[0]){
  2677. case 0: /* multiplexed */
  2678. chan->protocol = htons(0);
  2679. accept = 1;
  2680. break;
  2681. case NLPID_IP: /* IP datagrams */
  2682. accept = 1;
  2683. break;
  2684. case NLPID_SNAP: /* IPX datagrams */
  2685. accept = 1;
  2686. break;
  2687. default:
  2688. printk(KERN_INFO
  2689. "%s: unsupported NLPID 0x%02X in incoming call "
  2690. "on LCN %d!\n", card->devname, info->user[0], new_lcn);
  2691. x25_clear_call(card, new_lcn, 0, 249);
  2692. }
  2693. if (accept && (x25_accept_call(card, new_lcn, 0) == CMD_OK)){
  2694. bind_lcn_to_dev (card, chan->dev, new_lcn);
  2695. if (x25_get_chan_conf(card, chan) == CMD_OK)
  2696. set_chan_state(dev, WAN_CONNECTED);
  2697. else
  2698. x25_clear_call(card, new_lcn, 0, 0);
  2699. }
  2700. kfree(info);
  2701. return 1;
  2702. }
  2703. /*====================================================================
  2704. * Handle accepted call.
  2705. *====================================================================*/
  2706. static int call_accepted (sdla_t* card, int cmd, int lcn, TX25Mbox* mb)
  2707. {
  2708. unsigned new_lcn = mb->cmd.lcn;
  2709. struct net_device* dev = find_channel(card, new_lcn);
  2710. x25_channel_t* chan;
  2711. if (dev == NULL){
  2712. printk(KERN_INFO
  2713. "%s: clearing orphaned connection on LCN %d!\n",
  2714. card->devname, new_lcn);
  2715. x25_clear_call(card, new_lcn, 0, 0);
  2716. return 1;
  2717. }
  2718. if (card->u.x.logging)
  2719. printk(KERN_INFO "%s: X.25 call accepted on Dev %s and LCN %d!\n",
  2720. card->devname, dev->name, new_lcn);
  2721. /* Get channel configuration and notify router */
  2722. chan = dev->priv;
  2723. if (x25_get_chan_conf(card, chan) != CMD_OK)
  2724. {
  2725. x25_clear_call(card, new_lcn, 0, 0);
  2726. return 1;
  2727. }
  2728. set_chan_state(dev, WAN_CONNECTED);
  2729. if (chan->common.usedby == API){
  2730. send_delayed_cmd_result(card,dev,mb);
  2731. bind_lcn_to_dev (card, dev, new_lcn);
  2732. }
  2733. return 1;
  2734. }
  2735. /*====================================================================
  2736. * Handle cleared call.
  2737. *====================================================================*/
  2738. static int call_cleared (sdla_t* card, int cmd, int lcn, TX25Mbox* mb)
  2739. {
  2740. unsigned new_lcn = mb->cmd.lcn;
  2741. struct net_device* dev = find_channel(card, new_lcn);
  2742. x25_channel_t *chan;
  2743. unsigned char old_state;
  2744. if (card->u.x.logging){
  2745. printk(KERN_INFO "%s: X.25 clear request on LCN %d! Cause:0x%02X "
  2746. "Diagn:0x%02X\n",
  2747. card->devname, new_lcn, mb->cmd.cause, mb->cmd.diagn);
  2748. }
  2749. if (dev == NULL){
  2750. printk(KERN_INFO "%s: X.25 clear request : No device for clear\n",
  2751. card->devname);
  2752. return 1;
  2753. }
  2754. chan=dev->priv;
  2755. old_state = chan->common.state;
  2756. set_chan_state(dev, WAN_DISCONNECTED);
  2757. if (chan->common.usedby == API){
  2758. switch (old_state){
  2759. case WAN_CONNECTING:
  2760. send_delayed_cmd_result(card,dev,mb);
  2761. break;
  2762. case WAN_CONNECTED:
  2763. send_oob_msg(card,dev,mb);
  2764. break;
  2765. }
  2766. }
  2767. return ((cmd == X25_WRITE) && (lcn == new_lcn)) ? 0 : 1;
  2768. }
  2769. /*====================================================================
  2770. * Handle X.25 restart event.
  2771. *====================================================================*/
  2772. static int restart_event (sdla_t* card, int cmd, int lcn, TX25Mbox* mb)
  2773. {
  2774. struct wan_device* wandev = &card->wandev;
  2775. struct net_device* dev;
  2776. x25_channel_t *chan;
  2777. unsigned char old_state;
  2778. printk(KERN_INFO
  2779. "%s: X.25 restart request! Cause:0x%02X Diagn:0x%02X\n",
  2780. card->devname, mb->cmd.cause, mb->cmd.diagn);
  2781. /* down all logical channels */
  2782. for (dev = wandev->dev; dev; dev = *((struct net_device **)dev->priv)) {
  2783. chan=dev->priv;
  2784. old_state = chan->common.state;
  2785. set_chan_state(dev, WAN_DISCONNECTED);
  2786. if (chan->common.usedby == API){
  2787. switch (old_state){
  2788. case WAN_CONNECTING:
  2789. send_delayed_cmd_result(card,dev,mb);
  2790. break;
  2791. case WAN_CONNECTED:
  2792. send_oob_msg(card,dev,mb);
  2793. break;
  2794. }
  2795. }
  2796. }
  2797. return (cmd == X25_WRITE) ? 0 : 1;
  2798. }
  2799. /*====================================================================
  2800. * Handle timeout event.
  2801. *====================================================================*/
  2802. static int timeout_event (sdla_t* card, int cmd, int lcn, TX25Mbox* mb)
  2803. {
  2804. unsigned new_lcn = mb->cmd.lcn;
  2805. if (mb->cmd.pktType == 0x05) /* call request time out */
  2806. {
  2807. struct net_device* dev = find_channel(card,new_lcn);
  2808. printk(KERN_INFO "%s: X.25 call timed timeout on LCN %d!\n",
  2809. card->devname, new_lcn);
  2810. if (dev){
  2811. x25_channel_t *chan = dev->priv;
  2812. set_chan_state(dev, WAN_DISCONNECTED);
  2813. if (chan->common.usedby == API){
  2814. send_delayed_cmd_result(card,dev,card->mbox);
  2815. }
  2816. }
  2817. }else{
  2818. printk(KERN_INFO "%s: X.25 packet 0x%02X timeout on LCN %d!\n",
  2819. card->devname, mb->cmd.pktType, new_lcn);
  2820. }
  2821. return 1;
  2822. }
  2823. /*
  2824. * Miscellaneous
  2825. */
  2826. /*====================================================================
  2827. * Establish physical connection.
  2828. * o open HDLC and raise DTR
  2829. *
  2830. * Return: 0 connection established
  2831. * 1 connection is in progress
  2832. * <0 error
  2833. *===================================================================*/
  2834. static int connect (sdla_t* card)
  2835. {
  2836. TX25Status* status = card->flags;
  2837. if (x25_open_hdlc(card) || x25_setup_hdlc(card))
  2838. return -EIO;
  2839. wanpipe_set_state(card, WAN_CONNECTING);
  2840. x25_set_intr_mode(card, INTR_ON_TIMER);
  2841. status->imask &= ~INTR_ON_TIMER;
  2842. return 1;
  2843. }
  2844. /*
  2845. * Tear down physical connection.
  2846. * o close HDLC link
  2847. * o drop DTR
  2848. *
  2849. * Return: 0
  2850. * <0 error
  2851. */
  2852. static int disconnect (sdla_t* card)
  2853. {
  2854. wanpipe_set_state(card, WAN_DISCONNECTED);
  2855. x25_set_intr_mode(card, INTR_ON_TIMER); /* disable all interrupt except timer */
  2856. x25_close_hdlc(card); /* close HDLC link */
  2857. x25_set_dtr(card, 0); /* drop DTR */
  2858. return 0;
  2859. }
  2860. /*
  2861. * Find network device by its channel number.
  2862. */
  2863. static struct net_device* get_dev_by_lcn(struct wan_device* wandev,
  2864. unsigned lcn)
  2865. {
  2866. struct net_device* dev;
  2867. for (dev = wandev->dev; dev; dev = *((struct net_device **)dev->priv))
  2868. if (((x25_channel_t*)dev->priv)->common.lcn == lcn)
  2869. break;
  2870. return dev;
  2871. }
  2872. /*
  2873. * Initiate connection on the logical channel.
  2874. * o for PVC we just get channel configuration
  2875. * o for SVCs place an X.25 call
  2876. *
  2877. * Return: 0 connected
  2878. * >0 connection in progress
  2879. * <0 failure
  2880. */
  2881. static int chan_connect(struct net_device* dev)
  2882. {
  2883. x25_channel_t* chan = dev->priv;
  2884. sdla_t* card = chan->card;
  2885. if (chan->common.svc && chan->common.usedby == WANPIPE){
  2886. if (!chan->addr[0]){
  2887. printk(KERN_INFO "%s: No Destination Address\n",
  2888. card->devname);
  2889. return -EINVAL; /* no destination address */
  2890. }
  2891. printk(KERN_INFO "%s: placing X.25 call to %s ...\n",
  2892. card->devname, chan->addr);
  2893. if (x25_place_call(card, chan) != CMD_OK)
  2894. return -EIO;
  2895. set_chan_state(dev, WAN_CONNECTING);
  2896. return 1;
  2897. }else{
  2898. if (x25_get_chan_conf(card, chan) != CMD_OK)
  2899. return -EIO;
  2900. set_chan_state(dev, WAN_CONNECTED);
  2901. }
  2902. return 0;
  2903. }
  2904. /*
  2905. * Disconnect logical channel.
  2906. * o if SVC then clear X.25 call
  2907. */
  2908. static int chan_disc(struct net_device* dev)
  2909. {
  2910. x25_channel_t* chan = dev->priv;
  2911. if (chan->common.svc){
  2912. x25_clear_call(chan->card, chan->common.lcn, 0, 0);
  2913. /* For API we disconnect on clear
  2914. * confirmation.
  2915. */
  2916. if (chan->common.usedby == API)
  2917. return 0;
  2918. }
  2919. set_chan_state(dev, WAN_DISCONNECTED);
  2920. return 0;
  2921. }
  2922. /*
  2923. * Set logical channel state.
  2924. */
  2925. static void set_chan_state(struct net_device* dev, int state)
  2926. {
  2927. x25_channel_t* chan = dev->priv;
  2928. sdla_t* card = chan->card;
  2929. unsigned long flags;
  2930. save_flags(flags);
  2931. cli();
  2932. if (chan->common.state != state)
  2933. {
  2934. switch (state)
  2935. {
  2936. case WAN_CONNECTED:
  2937. if (card->u.x.logging){
  2938. printk (KERN_INFO
  2939. "%s: interface %s connected, lcn %i !\n",
  2940. card->devname, dev->name,chan->common.lcn);
  2941. }
  2942. *(unsigned short*)dev->dev_addr = htons(chan->common.lcn);
  2943. chan->i_timeout_sofar = jiffies;
  2944. /* LAPB is PVC Based */
  2945. if (card->u.x.LAPB_hdlc)
  2946. chan->common.svc=0;
  2947. break;
  2948. case WAN_CONNECTING:
  2949. if (card->u.x.logging){
  2950. printk (KERN_INFO
  2951. "%s: interface %s connecting, lcn %i ...\n",
  2952. card->devname, dev->name, chan->common.lcn);
  2953. }
  2954. break;
  2955. case WAN_DISCONNECTED:
  2956. if (card->u.x.logging){
  2957. printk (KERN_INFO
  2958. "%s: interface %s disconnected, lcn %i !\n",
  2959. card->devname, dev->name,chan->common.lcn);
  2960. }
  2961. atomic_set(&chan->common.disconnect,0);
  2962. if (chan->common.svc) {
  2963. *(unsigned short*)dev->dev_addr = 0;
  2964. card->u.x.svc_to_dev_map[(chan->common.lcn%X25_MAX_CHAN)]=NULL;
  2965. chan->common.lcn = 0;
  2966. }
  2967. if (chan->transmit_length){
  2968. chan->transmit_length=0;
  2969. atomic_set(&chan->common.driver_busy,0);
  2970. chan->tx_offset=0;
  2971. if (netif_queue_stopped(dev)){
  2972. netif_wake_queue(dev);
  2973. }
  2974. }
  2975. atomic_set(&chan->common.command,0);
  2976. break;
  2977. case WAN_DISCONNECTING:
  2978. if (card->u.x.logging){
  2979. printk (KERN_INFO
  2980. "\n%s: interface %s disconnecting, lcn %i ...\n",
  2981. card->devname, dev->name,chan->common.lcn);
  2982. }
  2983. atomic_set(&chan->common.disconnect,0);
  2984. break;
  2985. }
  2986. chan->common.state = state;
  2987. }
  2988. chan->state_tick = jiffies;
  2989. restore_flags(flags);
  2990. }
  2991. /*
  2992. * Send packet on a logical channel.
  2993. * When this function is called, tx_skb field of the channel data
  2994. * space points to the transmit socket buffer. When transmission
  2995. * is complete, release socket buffer and reset 'tbusy' flag.
  2996. *
  2997. * Return: 0 - transmission complete
  2998. * 1 - busy
  2999. *
  3000. * Notes:
  3001. * 1. If packet length is greater than MTU for this channel, we'll fragment
  3002. * the packet into 'complete sequence' using M-bit.
  3003. * 2. When transmission is complete, an event notification should be issued
  3004. * to the router.
  3005. */
  3006. static int chan_send(struct net_device* dev, void* buff, unsigned data_len,
  3007. unsigned char tx_intr)
  3008. {
  3009. x25_channel_t* chan = dev->priv;
  3010. sdla_t* card = chan->card;
  3011. TX25Status* status = card->flags;
  3012. unsigned len=0, qdm=0, res=0, orig_len = 0;
  3013. void *data;
  3014. /* Check to see if channel is ready */
  3015. if ((!(status->cflags[chan->ch_idx] & 0x40) && !card->u.x.LAPB_hdlc) ||
  3016. !(*card->u.x.hdlc_buf_status & 0x40)){
  3017. if (!tx_intr){
  3018. setup_for_delayed_transmit (dev, buff, data_len);
  3019. return 0;
  3020. }else{
  3021. /* By returning 0 to tx_intr the packet will be dropped */
  3022. ++card->wandev.stats.tx_dropped;
  3023. ++chan->ifstats.tx_dropped;
  3024. printk(KERN_INFO "%s: ERROR, Tx intr could not send, dropping %s:\n",
  3025. card->devname,dev->name);
  3026. ++chan->if_send_stat.if_send_bfr_not_passed_to_adptr;
  3027. return 0;
  3028. }
  3029. }
  3030. if (chan->common.usedby == API){
  3031. /* Remove the API Header */
  3032. x25api_hdr_t *api_data = (x25api_hdr_t *)buff;
  3033. /* Set the qdm bits from the packet header
  3034. * User has the option to set the qdm bits
  3035. */
  3036. qdm = api_data->qdm;
  3037. orig_len = len = data_len - sizeof(x25api_hdr_t);
  3038. data = (unsigned char*)buff + sizeof(x25api_hdr_t);
  3039. }else{
  3040. data = buff;
  3041. orig_len = len = data_len;
  3042. }
  3043. if (tx_intr){
  3044. /* We are in tx_intr, minus the tx_offset from
  3045. * the total length. The tx_offset part of the
  3046. * data has already been sent. Also, move the
  3047. * data pointer to proper offset location.
  3048. */
  3049. len -= chan->tx_offset;
  3050. data = (unsigned char*)data + chan->tx_offset;
  3051. }
  3052. /* Check if the packet length is greater than MTU
  3053. * If YES: Cut the len to MTU and set the M bit
  3054. */
  3055. if (len > chan->tx_pkt_size && !card->u.x.LAPB_hdlc){
  3056. len = chan->tx_pkt_size;
  3057. qdm |= M_BIT;
  3058. }
  3059. /* Pass only first three bits of the qdm byte to the send
  3060. * routine. In case user sets any other bit which might
  3061. * cause errors.
  3062. */
  3063. switch(x25_send(card, chan->common.lcn, (qdm&0x07), len, data)){
  3064. case 0x00: /* success */
  3065. chan->i_timeout_sofar = jiffies;
  3066. dev->trans_start=jiffies;
  3067. if ((qdm & M_BIT) && !card->u.x.LAPB_hdlc){
  3068. if (!tx_intr){
  3069. /* The M bit was set, which means that part of the
  3070. * packet has been sent. Copy the packet into a buffer
  3071. * and set the offset to len, so on next tx_inter
  3072. * the packet will be sent using the below offset.
  3073. */
  3074. chan->tx_offset += len;
  3075. ++chan->ifstats.tx_packets;
  3076. chan->ifstats.tx_bytes += len;
  3077. if (chan->tx_offset < orig_len){
  3078. setup_for_delayed_transmit (dev, buff, data_len);
  3079. }
  3080. res=0;
  3081. }else{
  3082. /* We are already in tx_inter, thus data is already
  3083. * in the buffer. Update the offset and wait for
  3084. * next tx_intr. We add on to the offset, since data can
  3085. * be X number of times larger than max data size.
  3086. */
  3087. ++chan->ifstats.tx_packets;
  3088. chan->ifstats.tx_bytes += len;
  3089. ++chan->if_send_stat.if_send_bfr_passed_to_adptr;
  3090. chan->tx_offset += len;
  3091. /* The user can set the qdm bit as well.
  3092. * If the entire packet was sent and qdm is still
  3093. * set, than it's the user who has set the M bit. In that,
  3094. * case indicate that the packet was send by returning
  3095. * 0 and wait for a new packet. Otherwise, wait for next
  3096. * tx interrupt to send the rest of the packet */
  3097. if (chan->tx_offset < orig_len){
  3098. res=1;
  3099. }else{
  3100. res=0;
  3101. }
  3102. }
  3103. }else{
  3104. ++chan->ifstats.tx_packets;
  3105. chan->ifstats.tx_bytes += len;
  3106. ++chan->if_send_stat.if_send_bfr_passed_to_adptr;
  3107. res=0;
  3108. }
  3109. break;
  3110. case 0x33: /* Tx busy */
  3111. if (tx_intr){
  3112. printk(KERN_INFO "%s: Tx_intr: Big Error dropping packet %s\n",
  3113. card->devname,dev->name);
  3114. ++chan->ifstats.tx_dropped;
  3115. ++card->wandev.stats.tx_dropped;
  3116. ++chan->if_send_stat.if_send_bfr_not_passed_to_adptr;
  3117. res=0;
  3118. }else{
  3119. DBG_PRINTK(KERN_INFO
  3120. "%s: Send: Big Error should have tx: storring %s\n",
  3121. card->devname,dev->name);
  3122. setup_for_delayed_transmit (dev, buff, data_len);
  3123. res=1;
  3124. }
  3125. break;
  3126. default: /* failure */
  3127. ++chan->ifstats.tx_errors;
  3128. if (tx_intr){
  3129. printk(KERN_INFO "%s: Tx_intr: Failure to send, dropping %s\n",
  3130. card->devname,dev->name);
  3131. ++chan->ifstats.tx_dropped;
  3132. ++card->wandev.stats.tx_dropped;
  3133. ++chan->if_send_stat.if_send_bfr_not_passed_to_adptr;
  3134. res=0;
  3135. }else{
  3136. DBG_PRINTK(KERN_INFO "%s: Send: Failure to send !!!, storing %s\n",
  3137. card->devname,dev->name);
  3138. setup_for_delayed_transmit (dev, buff, data_len);
  3139. res=1;
  3140. }
  3141. break;
  3142. }
  3143. return res;
  3144. }
  3145. /*
  3146. * Parse X.25 call request data and fill x25_call_info_t structure.
  3147. */
  3148. static void parse_call_info (unsigned char* str, x25_call_info_t* info)
  3149. {
  3150. memset(info, 0, sizeof(x25_call_info_t));
  3151. for (; *str; ++str)
  3152. {
  3153. int i;
  3154. unsigned char ch;
  3155. if (*str == '-') switch (str[1]) {
  3156. /* Take minus 2 off the maximum size so that
  3157. * last byte is 0. This way we can use string
  3158. * manipulaton functions on call information.
  3159. */
  3160. case 'd': /* destination address */
  3161. for (i = 0; i < (MAX_X25_ADDR_SIZE-2); ++i){
  3162. ch = str[2+i];
  3163. if (isspace(ch)) break;
  3164. info->dest[i] = ch;
  3165. }
  3166. break;
  3167. case 's': /* source address */
  3168. for (i = 0; i < (MAX_X25_ADDR_SIZE-2); ++i){
  3169. ch = str[2+i];
  3170. if (isspace(ch)) break;
  3171. info->src[i] = ch;
  3172. }
  3173. break;
  3174. case 'u': /* user data */
  3175. for (i = 0; i < (MAX_X25_DATA_SIZE-2); ++i){
  3176. ch = str[2+i];
  3177. if (isspace(ch)) break;
  3178. info->user[i] = ch;
  3179. }
  3180. info->nuser = i;
  3181. break;
  3182. case 'f': /* facilities */
  3183. for (i = 0; i < (MAX_X25_FACL_SIZE-2); ++i){
  3184. ch = str[2+i];
  3185. if (isspace(ch)) break;
  3186. info->facil[i] = ch;
  3187. }
  3188. info->nfacil = i;
  3189. break;
  3190. }
  3191. }
  3192. }
  3193. /*
  3194. * Convert line speed in bps to a number used by S502 code.
  3195. */
  3196. static unsigned char bps_to_speed_code (unsigned long bps)
  3197. {
  3198. unsigned char number;
  3199. if (bps <= 1200) number = 0x01;
  3200. else if (bps <= 2400) number = 0x02;
  3201. else if (bps <= 4800) number = 0x03;
  3202. else if (bps <= 9600) number = 0x04;
  3203. else if (bps <= 19200) number = 0x05;
  3204. else if (bps <= 38400) number = 0x06;
  3205. else if (bps <= 45000) number = 0x07;
  3206. else if (bps <= 56000) number = 0x08;
  3207. else if (bps <= 64000) number = 0x09;
  3208. else if (bps <= 74000) number = 0x0A;
  3209. else if (bps <= 112000) number = 0x0B;
  3210. else if (bps <= 128000) number = 0x0C;
  3211. else number = 0x0D;
  3212. return number;
  3213. }
  3214. /*
  3215. * Convert decimal string to unsigned integer.
  3216. * If len != 0 then only 'len' characters of the string are converted.
  3217. */
  3218. static unsigned int dec_to_uint (unsigned char* str, int len)
  3219. {
  3220. unsigned val;
  3221. if (!len)
  3222. len = strlen(str);
  3223. for (val = 0; len && is_digit(*str); ++str, --len)
  3224. val = (val * 10) + (*str - (unsigned)'0');
  3225. return val;
  3226. }
  3227. /*
  3228. * Convert hex string to unsigned integer.
  3229. * If len != 0 then only 'len' characters of the string are conferted.
  3230. */
  3231. static unsigned int hex_to_uint (unsigned char* str, int len)
  3232. {
  3233. unsigned val, ch;
  3234. if (!len)
  3235. len = strlen(str);
  3236. for (val = 0; len; ++str, --len)
  3237. {
  3238. ch = *str;
  3239. if (is_digit(ch))
  3240. val = (val << 4) + (ch - (unsigned)'0');
  3241. else if (is_hex_digit(ch))
  3242. val = (val << 4) + ((ch & 0xDF) - (unsigned)'A' + 10);
  3243. else break;
  3244. }
  3245. return val;
  3246. }
  3247. static int handle_IPXWAN(unsigned char *sendpacket, char *devname, unsigned char enable_IPX, unsigned long network_number, unsigned short proto)
  3248. {
  3249. int i;
  3250. if( proto == ETH_P_IPX) {
  3251. /* It's an IPX packet */
  3252. if(!enable_IPX) {
  3253. /* Return 1 so we don't pass it up the stack. */
  3254. return 1;
  3255. }
  3256. } else {
  3257. /* It's not IPX so pass it up the stack.*/
  3258. return 0;
  3259. }
  3260. if( sendpacket[16] == 0x90 &&
  3261. sendpacket[17] == 0x04)
  3262. {
  3263. /* It's IPXWAN */
  3264. if( sendpacket[2] == 0x02 &&
  3265. sendpacket[34] == 0x00)
  3266. {
  3267. /* It's a timer request packet */
  3268. printk(KERN_INFO "%s: Received IPXWAN Timer Request packet\n",devname);
  3269. /* Go through the routing options and answer no to every
  3270. * option except Unnumbered RIP/SAP
  3271. */
  3272. for(i = 41; sendpacket[i] == 0x00; i += 5)
  3273. {
  3274. /* 0x02 is the option for Unnumbered RIP/SAP */
  3275. if( sendpacket[i + 4] != 0x02)
  3276. {
  3277. sendpacket[i + 1] = 0;
  3278. }
  3279. }
  3280. /* Skip over the extended Node ID option */
  3281. if( sendpacket[i] == 0x04 )
  3282. {
  3283. i += 8;
  3284. }
  3285. /* We also want to turn off all header compression opt. */
  3286. for(; sendpacket[i] == 0x80 ;)
  3287. {
  3288. sendpacket[i + 1] = 0;
  3289. i += (sendpacket[i + 2] << 8) + (sendpacket[i + 3]) + 4;
  3290. }
  3291. /* Set the packet type to timer response */
  3292. sendpacket[34] = 0x01;
  3293. printk(KERN_INFO "%s: Sending IPXWAN Timer Response\n",devname);
  3294. }
  3295. else if( sendpacket[34] == 0x02 )
  3296. {
  3297. /* This is an information request packet */
  3298. printk(KERN_INFO "%s: Received IPXWAN Information Request packet\n",devname);
  3299. /* Set the packet type to information response */
  3300. sendpacket[34] = 0x03;
  3301. /* Set the router name */
  3302. sendpacket[51] = 'X';
  3303. sendpacket[52] = 'T';
  3304. sendpacket[53] = 'P';
  3305. sendpacket[54] = 'I';
  3306. sendpacket[55] = 'P';
  3307. sendpacket[56] = 'E';
  3308. sendpacket[57] = '-';
  3309. sendpacket[58] = CVHexToAscii(network_number >> 28);
  3310. sendpacket[59] = CVHexToAscii((network_number & 0x0F000000)>> 24);
  3311. sendpacket[60] = CVHexToAscii((network_number & 0x00F00000)>> 20);
  3312. sendpacket[61] = CVHexToAscii((network_number & 0x000F0000)>> 16);
  3313. sendpacket[62] = CVHexToAscii((network_number & 0x0000F000)>> 12);
  3314. sendpacket[63] = CVHexToAscii((network_number & 0x00000F00)>> 8);
  3315. sendpacket[64] = CVHexToAscii((network_number & 0x000000F0)>> 4);
  3316. sendpacket[65] = CVHexToAscii(network_number & 0x0000000F);
  3317. for(i = 66; i < 99; i+= 1)
  3318. {
  3319. sendpacket[i] = 0;
  3320. }
  3321. printk(KERN_INFO "%s: Sending IPXWAN Information Response packet\n",devname);
  3322. }
  3323. else
  3324. {
  3325. printk(KERN_INFO "%s: Unknown IPXWAN packet!\n",devname);
  3326. return 0;
  3327. }
  3328. /* Set the WNodeID to our network address */
  3329. sendpacket[35] = (unsigned char)(network_number >> 24);
  3330. sendpacket[36] = (unsigned char)((network_number & 0x00FF0000) >> 16);
  3331. sendpacket[37] = (unsigned char)((network_number & 0x0000FF00) >> 8);
  3332. sendpacket[38] = (unsigned char)(network_number & 0x000000FF);
  3333. return 1;
  3334. } else {
  3335. /*If we get here it's an IPX-data packet, so it'll get passed up the stack.
  3336. */
  3337. /* switch the network numbers */
  3338. switch_net_numbers(sendpacket, network_number, 1);
  3339. return 0;
  3340. }
  3341. }
  3342. /*
  3343. * If incoming is 0 (outgoing)- if the net numbers is ours make it 0
  3344. * if incoming is 1 - if the net number is 0 make it ours
  3345. */
  3346. static void switch_net_numbers(unsigned char *sendpacket, unsigned long network_number, unsigned char incoming)
  3347. {
  3348. unsigned long pnetwork_number;
  3349. pnetwork_number = (unsigned long)((sendpacket[6] << 24) +
  3350. (sendpacket[7] << 16) + (sendpacket[8] << 8) +
  3351. sendpacket[9]);
  3352. if (!incoming) {
  3353. /*If the destination network number is ours, make it 0 */
  3354. if( pnetwork_number == network_number) {
  3355. sendpacket[6] = sendpacket[7] = sendpacket[8] =
  3356. sendpacket[9] = 0x00;
  3357. }
  3358. } else {
  3359. /* If the incoming network is 0, make it ours */
  3360. if( pnetwork_number == 0) {
  3361. sendpacket[6] = (unsigned char)(network_number >> 24);
  3362. sendpacket[7] = (unsigned char)((network_number &
  3363. 0x00FF0000) >> 16);
  3364. sendpacket[8] = (unsigned char)((network_number &
  3365. 0x0000FF00) >> 8);
  3366. sendpacket[9] = (unsigned char)(network_number &
  3367. 0x000000FF);
  3368. }
  3369. }
  3370. pnetwork_number = (unsigned long)((sendpacket[18] << 24) +
  3371. (sendpacket[19] << 16) + (sendpacket[20] << 8) +
  3372. sendpacket[21]);
  3373. if( !incoming ) {
  3374. /* If the source network is ours, make it 0 */
  3375. if( pnetwork_number == network_number) {
  3376. sendpacket[18] = sendpacket[19] = sendpacket[20] =
  3377. sendpacket[21] = 0x00;
  3378. }
  3379. } else {
  3380. /* If the source network is 0, make it ours */
  3381. if( pnetwork_number == 0 ) {
  3382. sendpacket[18] = (unsigned char)(network_number >> 24);
  3383. sendpacket[19] = (unsigned char)((network_number &
  3384. 0x00FF0000) >> 16);
  3385. sendpacket[20] = (unsigned char)((network_number &
  3386. 0x0000FF00) >> 8);
  3387. sendpacket[21] = (unsigned char)(network_number &
  3388. 0x000000FF);
  3389. }
  3390. }
  3391. } /* switch_net_numbers */
  3392. /********************* X25API SPECIFIC FUNCTIONS ****************/
  3393. /*===============================================================
  3394. * find_channel
  3395. *
  3396. * Manages the lcn to device map. It increases performance
  3397. * because it eliminates the need to search through the link
  3398. * list for a device which is bounded to a specific lcn.
  3399. *
  3400. *===============================================================*/
  3401. struct net_device *find_channel(sdla_t *card, unsigned lcn)
  3402. {
  3403. if (card->u.x.LAPB_hdlc){
  3404. return card->wandev.dev;
  3405. }else{
  3406. /* We don't know whether the incoming lcn
  3407. * is a PVC or an SVC channel. But we do know that
  3408. * the lcn cannot be for both the PVC and the SVC
  3409. * channel.
  3410. * If the lcn number is greater or equal to 255,
  3411. * take the modulo 255 of that number. We only have
  3412. * 255 locations, thus higher numbers must be mapped
  3413. * to a number between 0 and 245.
  3414. * We must separate pvc's and svc's since two don't
  3415. * have to be contiguous. Meaning pvc's can start
  3416. * from 1 to 10 and svc's can start from 256 to 266.
  3417. * But 256%255 is 1, i.e. CONFLICT.
  3418. */
  3419. /* Highest LCN number must be less or equal to 4096 */
  3420. if ((lcn <= MAX_LCN_NUM) && (lcn > 0)){
  3421. if (lcn < X25_MAX_CHAN){
  3422. if (card->u.x.svc_to_dev_map[lcn])
  3423. return card->u.x.svc_to_dev_map[lcn];
  3424. if (card->u.x.pvc_to_dev_map[lcn])
  3425. return card->u.x.pvc_to_dev_map[lcn];
  3426. }else{
  3427. int new_lcn = lcn%X25_MAX_CHAN;
  3428. if (card->u.x.svc_to_dev_map[new_lcn])
  3429. return card->u.x.svc_to_dev_map[new_lcn];
  3430. if (card->u.x.pvc_to_dev_map[new_lcn])
  3431. return card->u.x.pvc_to_dev_map[new_lcn];
  3432. }
  3433. }
  3434. return NULL;
  3435. }
  3436. }
  3437. void bind_lcn_to_dev(sdla_t *card, struct net_device *dev, unsigned lcn)
  3438. {
  3439. x25_channel_t *chan = dev->priv;
  3440. /* Modulo the lcn number by X25_MAX_CHAN (255)
  3441. * because the lcn number can be greater than 255
  3442. *
  3443. * We need to split svc and pvc since they don't have
  3444. * to be contigous.
  3445. */
  3446. if (chan->common.svc){
  3447. card->u.x.svc_to_dev_map[(lcn % X25_MAX_CHAN)] = dev;
  3448. }else{
  3449. card->u.x.pvc_to_dev_map[(lcn % X25_MAX_CHAN)] = dev;
  3450. }
  3451. chan->common.lcn = lcn;
  3452. }
  3453. /*===============================================================
  3454. * x25api_bh
  3455. *
  3456. *
  3457. *==============================================================*/
  3458. static void x25api_bh(struct net_device* dev)
  3459. {
  3460. x25_channel_t* chan = dev->priv;
  3461. sdla_t* card = chan->card;
  3462. struct sk_buff *skb;
  3463. if (atomic_read(&chan->bh_buff_used) == 0){
  3464. printk(KERN_INFO "%s: BH Buffer Empty in BH\n",
  3465. card->devname);
  3466. clear_bit(0, &chan->tq_working);
  3467. return;
  3468. }
  3469. while (atomic_read(&chan->bh_buff_used)){
  3470. /* If the sock is in the process of unlinking the
  3471. * driver from the socket, we must get out.
  3472. * This never happends but is a sanity check. */
  3473. if (test_bit(0,&chan->common.common_critical)){
  3474. clear_bit(0, &chan->tq_working);
  3475. return;
  3476. }
  3477. /* If LAPB HDLC, do not drop packets if socket is
  3478. * not connected. Let the buffer fill up and
  3479. * turn off rx interrupt */
  3480. if (card->u.x.LAPB_hdlc){
  3481. if (chan->common.sk == NULL || chan->common.func == NULL){
  3482. clear_bit(0, &chan->tq_working);
  3483. return;
  3484. }
  3485. }
  3486. skb = ((bh_data_t *)&chan->bh_head[chan->bh_read])->skb;
  3487. if (skb == NULL){
  3488. printk(KERN_INFO "%s: BH Skb empty for read %i\n",
  3489. card->devname,chan->bh_read);
  3490. }else{
  3491. if (chan->common.sk == NULL || chan->common.func == NULL){
  3492. printk(KERN_INFO "%s: BH: Socket disconnected, dropping\n",
  3493. card->devname);
  3494. dev_kfree_skb_any(skb);
  3495. x25api_bh_cleanup(dev);
  3496. ++chan->ifstats.rx_dropped;
  3497. ++chan->rx_intr_stat.rx_intr_bfr_not_passed_to_stack;
  3498. continue;
  3499. }
  3500. if (chan->common.func(skb,dev,chan->common.sk) != 0){
  3501. /* Sock full cannot send, queue us for another
  3502. * try
  3503. */
  3504. printk(KERN_INFO "%s: BH: !!! Packet failed to send !!!!! \n",
  3505. card->devname);
  3506. atomic_set(&chan->common.receive_block,1);
  3507. return;
  3508. }else{
  3509. x25api_bh_cleanup(dev);
  3510. ++chan->rx_intr_stat.rx_intr_bfr_passed_to_stack;
  3511. }
  3512. }
  3513. }
  3514. clear_bit(0, &chan->tq_working);
  3515. return;
  3516. }
  3517. /*===============================================================
  3518. * x25api_bh_cleanup
  3519. *
  3520. *
  3521. *==============================================================*/
  3522. static int x25api_bh_cleanup(struct net_device *dev)
  3523. {
  3524. x25_channel_t* chan = dev->priv;
  3525. sdla_t *card = chan->card;
  3526. TX25Status* status = card->flags;
  3527. ((bh_data_t *)&chan->bh_head[chan->bh_read])->skb = NULL;
  3528. if (chan->bh_read == MAX_BH_BUFF){
  3529. chan->bh_read=0;
  3530. }else{
  3531. ++chan->bh_read;
  3532. }
  3533. /* If the Receive interrupt was off, it means
  3534. * that we filled up our circular buffer. Check
  3535. * that we have space in the buffer. If so
  3536. * turn the RX interrupt back on.
  3537. */
  3538. if (!(status->imask & INTR_ON_RX_FRAME)){
  3539. if (atomic_read(&chan->bh_buff_used) < (MAX_BH_BUFF+1)){
  3540. printk(KERN_INFO "%s: BH: Turning on the interrupt\n",
  3541. card->devname);
  3542. status->imask |= INTR_ON_RX_FRAME;
  3543. }
  3544. }
  3545. atomic_dec(&chan->bh_buff_used);
  3546. return 0;
  3547. }
  3548. /*===============================================================
  3549. * bh_enqueue
  3550. *
  3551. *
  3552. *==============================================================*/
  3553. static int bh_enqueue(struct net_device *dev, struct sk_buff *skb)
  3554. {
  3555. x25_channel_t* chan = dev->priv;
  3556. sdla_t *card = chan->card;
  3557. TX25Status* status = card->flags;
  3558. if (atomic_read(&chan->bh_buff_used) == (MAX_BH_BUFF+1)){
  3559. printk(KERN_INFO "%s: Bottom half buffer FULL\n",
  3560. card->devname);
  3561. return 1;
  3562. }
  3563. ((bh_data_t *)&chan->bh_head[chan->bh_write])->skb = skb;
  3564. if (chan->bh_write == MAX_BH_BUFF){
  3565. chan->bh_write=0;
  3566. }else{
  3567. ++chan->bh_write;
  3568. }
  3569. atomic_inc(&chan->bh_buff_used);
  3570. if (atomic_read(&chan->bh_buff_used) == (MAX_BH_BUFF+1)){
  3571. printk(KERN_INFO "%s: Buffer is now full, Turning off RX Intr\n",
  3572. card->devname);
  3573. status->imask &= ~INTR_ON_RX_FRAME;
  3574. }
  3575. return 0;
  3576. }
  3577. /*===============================================================
  3578. * timer_intr_cmd_exec
  3579. *
  3580. * Called by timer interrupt to execute a command
  3581. *===============================================================*/
  3582. static int timer_intr_cmd_exec (sdla_t* card)
  3583. {
  3584. struct net_device *dev;
  3585. unsigned char more_to_exec=0;
  3586. volatile x25_channel_t *chan=NULL;
  3587. int i=0,bad_cmd=0,err=0;
  3588. if (card->u.x.cmd_dev == NULL){
  3589. card->u.x.cmd_dev = card->wandev.dev;
  3590. }
  3591. dev = card->u.x.cmd_dev;
  3592. for (;;){
  3593. chan = dev->priv;
  3594. if (atomic_read(&chan->common.command)){
  3595. bad_cmd = check_bad_command(card,dev);
  3596. if ((!chan->common.mbox || atomic_read(&chan->common.disconnect)) &&
  3597. !bad_cmd){
  3598. /* Socket has died or exited, We must bring the
  3599. * channel down before anybody else tries to
  3600. * use it */
  3601. err = channel_disconnect(card,dev);
  3602. }else{
  3603. err = execute_delayed_cmd(card, dev,
  3604. (mbox_cmd_t*)chan->common.mbox,
  3605. bad_cmd);
  3606. }
  3607. switch (err){
  3608. case RETURN_RESULT:
  3609. /* Return the result to the socket without
  3610. * delay. NO_WAIT Command */
  3611. atomic_set(&chan->common.command,0);
  3612. if (atomic_read(&card->u.x.command_busy))
  3613. atomic_set(&card->u.x.command_busy,0);
  3614. send_delayed_cmd_result(card,dev,card->mbox);
  3615. more_to_exec=0;
  3616. break;
  3617. case DELAY_RESULT:
  3618. /* Wait for the remote to respond, before
  3619. * sending the result up to the socket.
  3620. * WAIT command */
  3621. if (atomic_read(&card->u.x.command_busy))
  3622. atomic_set(&card->u.x.command_busy,0);
  3623. atomic_set(&chan->common.command,0);
  3624. more_to_exec=0;
  3625. break;
  3626. default:
  3627. /* If command could not be executed for
  3628. * some reason (i.e return code 0x33 busy)
  3629. * set the more_to_exec bit which will
  3630. * indicate that this command must be exectued
  3631. * again during next timer interrupt
  3632. */
  3633. more_to_exec=1;
  3634. if (atomic_read(&card->u.x.command_busy) == 0)
  3635. atomic_set(&card->u.x.command_busy,1);
  3636. break;
  3637. }
  3638. bad_cmd=0;
  3639. /* If flags is set, there are no hdlc buffers,
  3640. * thus, wait for the next pass and try the
  3641. * same command again. Otherwise, start searching
  3642. * from next device on the next pass.
  3643. */
  3644. if (!more_to_exec){
  3645. dev = move_dev_to_next(card,dev);
  3646. }
  3647. break;
  3648. }else{
  3649. /* This device has nothing to execute,
  3650. * go to next.
  3651. */
  3652. if (atomic_read(&card->u.x.command_busy))
  3653. atomic_set(&card->u.x.command_busy,0);
  3654. dev = move_dev_to_next(card,dev);
  3655. }
  3656. if (++i == card->u.x.no_dev){
  3657. if (!more_to_exec){
  3658. DBG_PRINTK(KERN_INFO "%s: Nothing to execute in Timer\n",
  3659. card->devname);
  3660. if (atomic_read(&card->u.x.command_busy)){
  3661. atomic_set(&card->u.x.command_busy,0);
  3662. }
  3663. }
  3664. break;
  3665. }
  3666. } //End of FOR
  3667. card->u.x.cmd_dev = dev;
  3668. if (more_to_exec){
  3669. /* If more commands are pending, do not turn off timer
  3670. * interrupt */
  3671. return 1;
  3672. }else{
  3673. /* No more commands, turn off timer interrupt */
  3674. return 0;
  3675. }
  3676. }
  3677. /*===============================================================
  3678. * execute_delayed_cmd
  3679. *
  3680. * Execute an API command which was passed down from the
  3681. * sock. Sock is very limited in which commands it can
  3682. * execute. Wait and No Wait commands are supported.
  3683. * Place Call, Clear Call and Reset wait commands, where
  3684. * Accept Call is a no_wait command.
  3685. *
  3686. *===============================================================*/
  3687. static int execute_delayed_cmd(sdla_t* card, struct net_device *dev,
  3688. mbox_cmd_t *usr_cmd, char bad_cmd)
  3689. {
  3690. TX25Mbox* mbox = card->mbox;
  3691. int err;
  3692. x25_channel_t *chan = dev->priv;
  3693. int delay=RETURN_RESULT;
  3694. if (!(*card->u.x.hdlc_buf_status & 0x40) && !bad_cmd){
  3695. return TRY_CMD_AGAIN;
  3696. }
  3697. /* This way a command is guaranteed to be executed for
  3698. * a specific lcn, the network interface is bound to. */
  3699. usr_cmd->cmd.lcn = chan->common.lcn;
  3700. /* If channel is pvc, instead of place call
  3701. * run x25_channel configuration. If running LAPB HDLC
  3702. * enable communications.
  3703. */
  3704. if ((!chan->common.svc) && (usr_cmd->cmd.command == X25_PLACE_CALL)){
  3705. if (card->u.x.LAPB_hdlc){
  3706. DBG_PRINTK(KERN_INFO "LAPB: Connecting\n");
  3707. connect(card);
  3708. set_chan_state(dev,WAN_CONNECTING);
  3709. return DELAY_RESULT;
  3710. }else{
  3711. DBG_PRINTK(KERN_INFO "%s: PVC is CONNECTING\n",card->devname);
  3712. if (x25_get_chan_conf(card, chan) == CMD_OK){
  3713. set_chan_state(dev, WAN_CONNECTED);
  3714. }else{
  3715. set_chan_state(dev, WAN_DISCONNECTED);
  3716. }
  3717. return RETURN_RESULT;
  3718. }
  3719. }
  3720. /* Copy the socket mbox command onto the board */
  3721. memcpy(&mbox->cmd, &usr_cmd->cmd, sizeof(TX25Cmd));
  3722. if (usr_cmd->cmd.length){
  3723. memcpy(mbox->data, usr_cmd->data, usr_cmd->cmd.length);
  3724. }
  3725. /* Check if command is bad. We need to copy the cmd into
  3726. * the buffer regardless since we return the, mbox to
  3727. * the user */
  3728. if (bad_cmd){
  3729. mbox->cmd.result=0x01;
  3730. return RETURN_RESULT;
  3731. }
  3732. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  3733. if (err != CMD_OK && err != X25RES_NOT_READY)
  3734. x25_error(card, err, usr_cmd->cmd.command, usr_cmd->cmd.lcn);
  3735. if (mbox->cmd.result == X25RES_NOT_READY){
  3736. return TRY_CMD_AGAIN;
  3737. }
  3738. switch (mbox->cmd.command){
  3739. case X25_PLACE_CALL:
  3740. switch (mbox->cmd.result){
  3741. case CMD_OK:
  3742. /* Check if Place call is a wait command or a
  3743. * no wait command */
  3744. if (atomic_read(&chan->common.command) & 0x80)
  3745. delay=RETURN_RESULT;
  3746. else
  3747. delay=DELAY_RESULT;
  3748. DBG_PRINTK(KERN_INFO "\n%s: PLACE CALL Binding dev %s to lcn %i\n",
  3749. card->devname,dev->name, mbox->cmd.lcn);
  3750. bind_lcn_to_dev (card, dev, mbox->cmd.lcn);
  3751. set_chan_state(dev, WAN_CONNECTING);
  3752. break;
  3753. default:
  3754. delay=RETURN_RESULT;
  3755. set_chan_state(dev, WAN_DISCONNECTED);
  3756. break;
  3757. }
  3758. break;
  3759. case X25_ACCEPT_CALL:
  3760. switch (mbox->cmd.result){
  3761. case CMD_OK:
  3762. DBG_PRINTK(KERN_INFO "\n%s: ACCEPT Binding dev %s to lcn %i\n",
  3763. card->devname,dev->name,mbox->cmd.lcn);
  3764. bind_lcn_to_dev (card, dev, mbox->cmd.lcn);
  3765. if (x25_get_chan_conf(card, chan) == CMD_OK){
  3766. set_chan_state(dev, WAN_CONNECTED);
  3767. delay=RETURN_RESULT;
  3768. }else{
  3769. if (x25_clear_call(card, usr_cmd->cmd.lcn, 0, 0) == CMD_OK){
  3770. /* if clear is successful, wait for clear confirm
  3771. */
  3772. delay=DELAY_RESULT;
  3773. }else{
  3774. /* Do not change the state here. If we fail
  3775. * the accept the return code is send up
  3776. *the stack, which will ether retry
  3777. * or clear the call
  3778. */
  3779. DBG_PRINTK(KERN_INFO
  3780. "%s: ACCEPT: STATE MAY BE CURRUPTED 2 !!!!!\n",
  3781. card->devname);
  3782. delay=RETURN_RESULT;
  3783. }
  3784. }
  3785. break;
  3786. case X25RES_ASYNC_PACKET:
  3787. delay=TRY_CMD_AGAIN;
  3788. break;
  3789. default:
  3790. DBG_PRINTK(KERN_INFO "%s: ACCEPT FAILED\n",card->devname);
  3791. if (x25_clear_call(card, usr_cmd->cmd.lcn, 0, 0) == CMD_OK){
  3792. delay=DELAY_RESULT;
  3793. }else{
  3794. /* Do not change the state here. If we fail the accept. The
  3795. * return code is send up the stack, which will ether retry
  3796. * or clear the call */
  3797. DBG_PRINTK(KERN_INFO
  3798. "%s: ACCEPT: STATE MAY BE CORRUPTED 1 !!!!!\n",
  3799. card->devname);
  3800. delay=RETURN_RESULT;
  3801. }
  3802. }
  3803. break;
  3804. case X25_CLEAR_CALL:
  3805. switch (mbox->cmd.result){
  3806. case CMD_OK:
  3807. DBG_PRINTK(KERN_INFO
  3808. "CALL CLEAR OK: Dev %s Mbox Lcn %i Chan Lcn %i\n",
  3809. dev->name,mbox->cmd.lcn,chan->common.lcn);
  3810. set_chan_state(dev, WAN_DISCONNECTING);
  3811. delay = DELAY_RESULT;
  3812. break;
  3813. case X25RES_CHANNEL_IN_USE:
  3814. case X25RES_ASYNC_PACKET:
  3815. delay = TRY_CMD_AGAIN;
  3816. break;
  3817. case X25RES_LINK_NOT_IN_ABM:
  3818. case X25RES_INVAL_LCN:
  3819. case X25RES_INVAL_STATE:
  3820. set_chan_state(dev, WAN_DISCONNECTED);
  3821. delay = RETURN_RESULT;
  3822. break;
  3823. default:
  3824. /* If command did not execute because of user
  3825. * fault, do not change the state. This will
  3826. * signal the socket that clear command failed.
  3827. * User can retry or close the socket.
  3828. * When socket gets killed, it will set the
  3829. * chan->disconnect which will signal
  3830. * driver to clear the call */
  3831. printk(KERN_INFO "%s: Clear Command Failed, Rc %x\n",
  3832. card->devname,mbox->cmd.command);
  3833. delay = RETURN_RESULT;
  3834. }
  3835. break;
  3836. }
  3837. return delay;
  3838. }
  3839. /*===============================================================
  3840. * api_incoming_call
  3841. *
  3842. * Pass an incoming call request up the listening
  3843. * sock. If the API sock is not listening reject the
  3844. * call.
  3845. *
  3846. *===============================================================*/
  3847. static int api_incoming_call (sdla_t* card, TX25Mbox *mbox, int lcn)
  3848. {
  3849. struct sk_buff *skb;
  3850. int len = sizeof(TX25Cmd)+mbox->cmd.length;
  3851. if (alloc_and_init_skb_buf(card, &skb, len)){
  3852. printk(KERN_INFO "%s: API incoming call, no memory\n",card->devname);
  3853. return 1;
  3854. }
  3855. memcpy(skb_put(skb,len),&mbox->cmd,len);
  3856. skb->mac.raw = skb->data;
  3857. skb->protocol = htons(X25_PROT);
  3858. skb->pkt_type = WAN_PACKET_ASYNC;
  3859. if (card->func(skb,card->sk) < 0){
  3860. printk(KERN_INFO "%s: MAJOR ERROR: Failed to send up place call \n",card->devname);
  3861. dev_kfree_skb_any(skb);
  3862. return 1;
  3863. }
  3864. return 0;
  3865. }
  3866. /*===============================================================
  3867. * send_delayed_cmd_result
  3868. *
  3869. * Wait commands like PLEACE CALL or CLEAR CALL must wait
  3870. * until the result arrives. This function passes
  3871. * the result to a waiting sock.
  3872. *
  3873. *===============================================================*/
  3874. static void send_delayed_cmd_result(sdla_t *card, struct net_device *dev,
  3875. TX25Mbox* mbox)
  3876. {
  3877. x25_channel_t *chan = dev->priv;
  3878. mbox_cmd_t *usr_cmd = (mbox_cmd_t *)chan->common.mbox;
  3879. struct sk_buff *skb;
  3880. int len=sizeof(unsigned char);
  3881. atomic_set(&chan->common.command,0);
  3882. /* If the sock is in the process of unlinking the
  3883. * driver from the socket, we must get out.
  3884. * This never happends but is a sanity check. */
  3885. if (test_bit(0,&chan->common.common_critical)){
  3886. return;
  3887. }
  3888. if (!usr_cmd || !chan->common.sk || !chan->common.func){
  3889. DBG_PRINTK(KERN_INFO "Delay result: Sock not bounded sk: %u, func: %u, mbox: %u\n",
  3890. (unsigned int)chan->common.sk,
  3891. (unsigned int)chan->common.func,
  3892. (unsigned int)usr_cmd);
  3893. return;
  3894. }
  3895. memcpy(&usr_cmd->cmd, &mbox->cmd, sizeof(TX25Cmd));
  3896. if (mbox->cmd.length > 0){
  3897. memcpy(usr_cmd->data, mbox->data, mbox->cmd.length);
  3898. }
  3899. if (alloc_and_init_skb_buf(card,&skb,len)){
  3900. printk(KERN_INFO "Delay result: No sock buffers\n");
  3901. return;
  3902. }
  3903. memcpy(skb_put(skb,len),&mbox->cmd.command,len);
  3904. skb->mac.raw = skb->data;
  3905. skb->pkt_type = WAN_PACKET_CMD;
  3906. chan->common.func(skb,dev,chan->common.sk);
  3907. }
  3908. /*===============================================================
  3909. * clear_confirm_event
  3910. *
  3911. * Pass the clear confirmation event up the sock. The
  3912. * API will disconnect only after the clear confirmation
  3913. * has been received.
  3914. *
  3915. * Depending on the state, clear confirmation could
  3916. * be an OOB event, or a result of an API command.
  3917. *===============================================================*/
  3918. static int clear_confirm_event (sdla_t *card, TX25Mbox* mb)
  3919. {
  3920. struct net_device *dev;
  3921. x25_channel_t *chan;
  3922. unsigned char old_state;
  3923. dev = find_channel(card,mb->cmd.lcn);
  3924. if (!dev){
  3925. DBG_PRINTK(KERN_INFO "%s: *** GOT CLEAR BUT NO DEV %i\n",
  3926. card->devname,mb->cmd.lcn);
  3927. return 0;
  3928. }
  3929. chan=dev->priv;
  3930. DBG_PRINTK(KERN_INFO "%s: GOT CLEAR CONFIRM %s: Mbox lcn %i Chan lcn %i\n",
  3931. card->devname, dev->name, mb->cmd.lcn, chan->common.lcn);
  3932. /* If not API fall through to default.
  3933. * If API, send the result to a waiting
  3934. * socket.
  3935. */
  3936. old_state = chan->common.state;
  3937. set_chan_state(dev, WAN_DISCONNECTED);
  3938. if (chan->common.usedby == API){
  3939. switch (old_state) {
  3940. case WAN_DISCONNECTING:
  3941. case WAN_CONNECTING:
  3942. send_delayed_cmd_result(card,dev,mb);
  3943. break;
  3944. case WAN_CONNECTED:
  3945. send_oob_msg(card,dev,mb);
  3946. break;
  3947. }
  3948. return 1;
  3949. }
  3950. return 0;
  3951. }
  3952. /*===============================================================
  3953. * send_oob_msg
  3954. *
  3955. * Construct an NEM Message and pass it up the connected
  3956. * sock. If the sock is not bounded discard the NEM.
  3957. *
  3958. *===============================================================*/
  3959. static void send_oob_msg(sdla_t *card, struct net_device *dev, TX25Mbox *mbox)
  3960. {
  3961. x25_channel_t *chan = dev->priv;
  3962. mbox_cmd_t *usr_cmd = (mbox_cmd_t *)chan->common.mbox;
  3963. struct sk_buff *skb;
  3964. int len=sizeof(x25api_hdr_t)+mbox->cmd.length;
  3965. x25api_t *api_hdr;
  3966. /* If the sock is in the process of unlinking the
  3967. * driver from the socket, we must get out.
  3968. * This never happends but is a sanity check. */
  3969. if (test_bit(0,&chan->common.common_critical)){
  3970. return;
  3971. }
  3972. if (!usr_cmd || !chan->common.sk || !chan->common.func){
  3973. DBG_PRINTK(KERN_INFO "OOB MSG: Sock not bounded\n");
  3974. return;
  3975. }
  3976. memcpy(&usr_cmd->cmd, &mbox->cmd, sizeof(TX25Cmd));
  3977. if (mbox->cmd.length > 0){
  3978. memcpy(usr_cmd->data, mbox->data, mbox->cmd.length);
  3979. }
  3980. if (alloc_and_init_skb_buf(card,&skb,len)){
  3981. printk(KERN_INFO "%s: OOB MSG: No sock buffers\n",card->devname);
  3982. return;
  3983. }
  3984. api_hdr = (x25api_t*)skb_put(skb,len);
  3985. api_hdr->hdr.pktType = mbox->cmd.pktType & 0x7F;
  3986. api_hdr->hdr.qdm = mbox->cmd.qdm;
  3987. api_hdr->hdr.cause = mbox->cmd.cause;
  3988. api_hdr->hdr.diagn = mbox->cmd.diagn;
  3989. api_hdr->hdr.length = mbox->cmd.length;
  3990. api_hdr->hdr.result = mbox->cmd.result;
  3991. api_hdr->hdr.lcn = mbox->cmd.lcn;
  3992. if (mbox->cmd.length > 0){
  3993. memcpy(api_hdr->data,mbox->data,mbox->cmd.length);
  3994. }
  3995. skb->mac.raw = skb->data;
  3996. skb->pkt_type = WAN_PACKET_ERR;
  3997. if (chan->common.func(skb,dev,chan->common.sk) < 0){
  3998. if (bh_enqueue(dev,skb)){
  3999. printk(KERN_INFO "%s: Dropping OOB MSG\n",card->devname);
  4000. dev_kfree_skb_any(skb);
  4001. }
  4002. }
  4003. DBG_PRINTK(KERN_INFO "%s: OOB MSG OK, %s, lcn %i\n",
  4004. card->devname, dev->name, mbox->cmd.lcn);
  4005. }
  4006. /*===============================================================
  4007. * alloc_and_init_skb_buf
  4008. *
  4009. * Allocate and initialize an skb buffer.
  4010. *
  4011. *===============================================================*/
  4012. static int alloc_and_init_skb_buf (sdla_t *card, struct sk_buff **skb, int len)
  4013. {
  4014. struct sk_buff *new_skb = *skb;
  4015. new_skb = dev_alloc_skb(len + X25_HRDHDR_SZ);
  4016. if (new_skb == NULL){
  4017. printk(KERN_INFO "%s: no socket buffers available!\n",
  4018. card->devname);
  4019. return 1;
  4020. }
  4021. if (skb_tailroom(new_skb) < len){
  4022. /* No room for the packet. Call off the whole thing! */
  4023. dev_kfree_skb_any(new_skb);
  4024. printk(KERN_INFO "%s: Listen: unexpectedly long packet sequence\n"
  4025. ,card->devname);
  4026. *skb = NULL;
  4027. return 1;
  4028. }
  4029. *skb = new_skb;
  4030. return 0;
  4031. }
  4032. /*===============================================================
  4033. * api_oob_event
  4034. *
  4035. * Send an OOB event up to the sock
  4036. *
  4037. *===============================================================*/
  4038. static void api_oob_event (sdla_t *card,TX25Mbox *mbox)
  4039. {
  4040. struct net_device *dev = find_channel(card, mbox->cmd.lcn);
  4041. x25_channel_t *chan;
  4042. if (!dev)
  4043. return;
  4044. chan=dev->priv;
  4045. if (chan->common.usedby == API)
  4046. send_oob_msg(card,dev,mbox);
  4047. }
  4048. static int channel_disconnect(sdla_t* card, struct net_device *dev)
  4049. {
  4050. int err;
  4051. x25_channel_t *chan = dev->priv;
  4052. DBG_PRINTK(KERN_INFO "%s: TIMER: %s, Device down disconnecting\n",
  4053. card->devname,dev->name);
  4054. if (chan->common.svc){
  4055. err = x25_clear_call(card,chan->common.lcn,0,0);
  4056. }else{
  4057. /* If channel is PVC or LAPB HDLC, there is no call
  4058. * to be cleared, thus drop down to the default
  4059. * area
  4060. */
  4061. err = 1;
  4062. }
  4063. switch (err){
  4064. case X25RES_CHANNEL_IN_USE:
  4065. case X25RES_NOT_READY:
  4066. err = TRY_CMD_AGAIN;
  4067. break;
  4068. case CMD_OK:
  4069. DBG_PRINTK(KERN_INFO "CALL CLEAR OK: Dev %s Chan Lcn %i\n",
  4070. dev->name,chan->common.lcn);
  4071. set_chan_state(dev,WAN_DISCONNECTING);
  4072. atomic_set(&chan->common.command,0);
  4073. err = DELAY_RESULT;
  4074. break;
  4075. default:
  4076. /* If LAPB HDLC protocol, bring the whole link down
  4077. * once the application terminates
  4078. */
  4079. set_chan_state(dev,WAN_DISCONNECTED);
  4080. if (card->u.x.LAPB_hdlc){
  4081. DBG_PRINTK(KERN_INFO "LAPB: Disconnecting Link\n");
  4082. hdlc_link_down (card);
  4083. }
  4084. atomic_set(&chan->common.command,0);
  4085. err = RETURN_RESULT;
  4086. break;
  4087. }
  4088. return err;
  4089. }
  4090. static void hdlc_link_down (sdla_t *card)
  4091. {
  4092. TX25Mbox* mbox = card->mbox;
  4093. int retry = 5;
  4094. int err=0;
  4095. do {
  4096. memset(mbox,0,sizeof(TX25Mbox));
  4097. mbox->cmd.command = X25_HDLC_LINK_DISC;
  4098. mbox->cmd.length = 1;
  4099. mbox->data[0]=0;
  4100. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  4101. } while (err && retry-- && x25_error(card, err, X25_HDLC_LINK_DISC, 0));
  4102. if (err)
  4103. printk(KERN_INFO "%s: Hdlc Link Down Failed %x\n",card->devname,err);
  4104. disconnect (card);
  4105. }
  4106. static int check_bad_command(sdla_t* card, struct net_device *dev)
  4107. {
  4108. x25_channel_t *chan = dev->priv;
  4109. int bad_cmd = 0;
  4110. switch (atomic_read(&chan->common.command)&0x7F){
  4111. case X25_PLACE_CALL:
  4112. if (chan->common.state != WAN_DISCONNECTED)
  4113. bad_cmd=1;
  4114. break;
  4115. case X25_CLEAR_CALL:
  4116. if (chan->common.state == WAN_DISCONNECTED)
  4117. bad_cmd=1;
  4118. break;
  4119. case X25_ACCEPT_CALL:
  4120. if (chan->common.state != WAN_CONNECTING)
  4121. bad_cmd=1;
  4122. break;
  4123. case X25_RESET:
  4124. if (chan->common.state != WAN_CONNECTED)
  4125. bad_cmd=1;
  4126. break;
  4127. default:
  4128. bad_cmd=1;
  4129. break;
  4130. }
  4131. if (bad_cmd){
  4132. printk(KERN_INFO "%s: Invalid State, BAD Command %x, dev %s, lcn %i, st %i\n",
  4133. card->devname,atomic_read(&chan->common.command),dev->name,
  4134. chan->common.lcn, chan->common.state);
  4135. }
  4136. return bad_cmd;
  4137. }
  4138. /*************************** XPIPEMON FUNCTIONS **************************/
  4139. /*==============================================================================
  4140. * Process UDP call of type XPIPE
  4141. */
  4142. static int process_udp_mgmt_pkt(sdla_t *card)
  4143. {
  4144. int c_retry = MAX_CMD_RETRY;
  4145. unsigned int len;
  4146. struct sk_buff *new_skb;
  4147. TX25Mbox *mbox = card->mbox;
  4148. int err;
  4149. int udp_mgmt_req_valid = 1;
  4150. struct net_device *dev;
  4151. x25_channel_t *chan;
  4152. unsigned short lcn;
  4153. struct timeval tv;
  4154. x25_udp_pkt_t *x25_udp_pkt;
  4155. x25_udp_pkt = (x25_udp_pkt_t *)card->u.x.udp_pkt_data;
  4156. dev = card->u.x.udp_dev;
  4157. chan = dev->priv;
  4158. lcn = chan->common.lcn;
  4159. switch(x25_udp_pkt->cblock.command) {
  4160. /* XPIPE_ENABLE_TRACE */
  4161. case XPIPE_ENABLE_TRACING:
  4162. /* XPIPE_GET_TRACE_INFO */
  4163. case XPIPE_GET_TRACE_INFO:
  4164. /* SET FT1 MODE */
  4165. case XPIPE_SET_FT1_MODE:
  4166. if(card->u.x.udp_pkt_src == UDP_PKT_FRM_NETWORK) {
  4167. ++chan->pipe_mgmt_stat.UDP_PIPE_mgmt_direction_err;
  4168. udp_mgmt_req_valid = 0;
  4169. break;
  4170. }
  4171. /* XPIPE_FT1_READ_STATUS */
  4172. case XPIPE_FT1_READ_STATUS:
  4173. /* FT1 MONITOR STATUS */
  4174. case XPIPE_FT1_STATUS_CTRL:
  4175. if(card->hw.fwid != SFID_X25_508) {
  4176. ++chan->pipe_mgmt_stat.UDP_PIPE_mgmt_adptr_type_err;
  4177. udp_mgmt_req_valid = 0;
  4178. break;
  4179. }
  4180. default:
  4181. break;
  4182. }
  4183. if(!udp_mgmt_req_valid) {
  4184. /* set length to 0 */
  4185. x25_udp_pkt->cblock.length = 0;
  4186. /* set return code */
  4187. x25_udp_pkt->cblock.result = (card->hw.fwid != SFID_X25_508) ? 0x1F : 0xCD;
  4188. } else {
  4189. switch (x25_udp_pkt->cblock.command) {
  4190. case XPIPE_FLUSH_DRIVER_STATS:
  4191. init_x25_channel_struct(chan);
  4192. init_global_statistics(card);
  4193. mbox->cmd.length = 0;
  4194. break;
  4195. case XPIPE_DRIVER_STAT_IFSEND:
  4196. memcpy(x25_udp_pkt->data, &chan->if_send_stat, sizeof(if_send_stat_t));
  4197. mbox->cmd.length = sizeof(if_send_stat_t);
  4198. x25_udp_pkt->cblock.length = mbox->cmd.length;
  4199. break;
  4200. case XPIPE_DRIVER_STAT_INTR:
  4201. memcpy(&x25_udp_pkt->data[0], &card->statistics, sizeof(global_stats_t));
  4202. memcpy(&x25_udp_pkt->data[sizeof(global_stats_t)],
  4203. &chan->rx_intr_stat, sizeof(rx_intr_stat_t));
  4204. mbox->cmd.length = sizeof(global_stats_t) +
  4205. sizeof(rx_intr_stat_t);
  4206. x25_udp_pkt->cblock.length = mbox->cmd.length;
  4207. break;
  4208. case XPIPE_DRIVER_STAT_GEN:
  4209. memcpy(x25_udp_pkt->data,
  4210. &chan->pipe_mgmt_stat.UDP_PIPE_mgmt_kmalloc_err,
  4211. sizeof(pipe_mgmt_stat_t));
  4212. memcpy(&x25_udp_pkt->data[sizeof(pipe_mgmt_stat_t)],
  4213. &card->statistics, sizeof(global_stats_t));
  4214. x25_udp_pkt->cblock.result = 0;
  4215. x25_udp_pkt->cblock.length = sizeof(global_stats_t)+
  4216. sizeof(rx_intr_stat_t);
  4217. mbox->cmd.length = x25_udp_pkt->cblock.length;
  4218. break;
  4219. case XPIPE_ROUTER_UP_TIME:
  4220. do_gettimeofday(&tv);
  4221. chan->router_up_time = tv.tv_sec - chan->router_start_time;
  4222. *(unsigned long *)&x25_udp_pkt->data = chan->router_up_time;
  4223. x25_udp_pkt->cblock.length = mbox->cmd.length = 4;
  4224. x25_udp_pkt->cblock.result = 0;
  4225. break;
  4226. default :
  4227. do {
  4228. memcpy(&mbox->cmd, &x25_udp_pkt->cblock.command, sizeof(TX25Cmd));
  4229. if(mbox->cmd.length){
  4230. memcpy(&mbox->data,
  4231. (char *)x25_udp_pkt->data,
  4232. mbox->cmd.length);
  4233. }
  4234. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  4235. } while (err && c_retry-- && x25_error(card, err, mbox->cmd.command, 0));
  4236. if ( err == CMD_OK ||
  4237. (err == 1 &&
  4238. (mbox->cmd.command == 0x06 ||
  4239. mbox->cmd.command == 0x16) ) ){
  4240. ++chan->pipe_mgmt_stat.UDP_PIPE_mgmt_adptr_cmnd_OK;
  4241. } else {
  4242. ++chan->pipe_mgmt_stat.UDP_PIPE_mgmt_adptr_cmnd_timeout;
  4243. }
  4244. /* copy the result back to our buffer */
  4245. memcpy(&x25_udp_pkt->cblock.command, &mbox->cmd, sizeof(TX25Cmd));
  4246. if(mbox->cmd.length) {
  4247. memcpy(&x25_udp_pkt->data, &mbox->data, mbox->cmd.length);
  4248. }
  4249. break;
  4250. } //switch
  4251. }
  4252. /* Fill UDP TTL */
  4253. x25_udp_pkt->ip_pkt.ttl = card->wandev.ttl;
  4254. len = reply_udp(card->u.x.udp_pkt_data, mbox->cmd.length);
  4255. if(card->u.x.udp_pkt_src == UDP_PKT_FRM_NETWORK) {
  4256. err = x25_send(card, lcn, 0, len, card->u.x.udp_pkt_data);
  4257. if (!err)
  4258. ++chan->pipe_mgmt_stat.UDP_PIPE_mgmt_adptr_send_passed;
  4259. else
  4260. ++chan->pipe_mgmt_stat.UDP_PIPE_mgmt_adptr_send_failed;
  4261. } else {
  4262. /* Allocate socket buffer */
  4263. if((new_skb = dev_alloc_skb(len)) != NULL) {
  4264. void *buf;
  4265. /* copy data into new_skb */
  4266. buf = skb_put(new_skb, len);
  4267. memcpy(buf, card->u.x.udp_pkt_data, len);
  4268. /* Decapsulate packet and pass it up the protocol
  4269. stack */
  4270. new_skb->dev = dev;
  4271. if (chan->common.usedby == API)
  4272. new_skb->protocol = htons(X25_PROT);
  4273. else
  4274. new_skb->protocol = htons(ETH_P_IP);
  4275. new_skb->mac.raw = new_skb->data;
  4276. netif_rx(new_skb);
  4277. ++chan->pipe_mgmt_stat.UDP_PIPE_mgmt_passed_to_stack;
  4278. } else {
  4279. ++chan->pipe_mgmt_stat.UDP_PIPE_mgmt_no_socket;
  4280. printk(KERN_INFO
  4281. "%s: UDP mgmt cmnd, no socket buffers available!\n",
  4282. card->devname);
  4283. }
  4284. }
  4285. card->u.x.udp_pkt_lgth = 0;
  4286. return 1;
  4287. }
  4288. /*==============================================================================
  4289. * Determine what type of UDP call it is. DRVSTATS or XPIPE8ND ?
  4290. */
  4291. static int udp_pkt_type( struct sk_buff *skb, sdla_t* card )
  4292. {
  4293. x25_udp_pkt_t *x25_udp_pkt = (x25_udp_pkt_t *)skb->data;
  4294. if((x25_udp_pkt->ip_pkt.protocol == UDPMGMT_UDP_PROTOCOL) &&
  4295. (x25_udp_pkt->ip_pkt.ver_inet_hdr_length == 0x45) &&
  4296. (x25_udp_pkt->udp_pkt.udp_dst_port == ntohs(card->wandev.udp_port)) &&
  4297. (x25_udp_pkt->wp_mgmt.request_reply == UDPMGMT_REQUEST)) {
  4298. if(!strncmp(x25_udp_pkt->wp_mgmt.signature,
  4299. UDPMGMT_XPIPE_SIGNATURE, 8)){
  4300. return UDP_XPIPE_TYPE;
  4301. }else{
  4302. printk(KERN_INFO "%s: UDP Packet, Failed Signature !\n",
  4303. card->devname);
  4304. }
  4305. }
  4306. return UDP_INVALID_TYPE;
  4307. }
  4308. /*============================================================================
  4309. * Reply to UDP Management system.
  4310. * Return nothing.
  4311. */
  4312. static int reply_udp( unsigned char *data, unsigned int mbox_len )
  4313. {
  4314. unsigned short len, udp_length, temp, ip_length;
  4315. unsigned long ip_temp;
  4316. int even_bound = 0;
  4317. x25_udp_pkt_t *x25_udp_pkt = (x25_udp_pkt_t *)data;
  4318. /* Set length of packet */
  4319. len = sizeof(ip_pkt_t)+
  4320. sizeof(udp_pkt_t)+
  4321. sizeof(wp_mgmt_t)+
  4322. sizeof(cblock_t)+
  4323. mbox_len;
  4324. /* fill in UDP reply */
  4325. x25_udp_pkt->wp_mgmt.request_reply = UDPMGMT_REPLY;
  4326. /* fill in UDP length */
  4327. udp_length = sizeof(udp_pkt_t)+
  4328. sizeof(wp_mgmt_t)+
  4329. sizeof(cblock_t)+
  4330. mbox_len;
  4331. /* put it on an even boundary */
  4332. if ( udp_length & 0x0001 ) {
  4333. udp_length += 1;
  4334. len += 1;
  4335. even_bound = 1;
  4336. }
  4337. temp = (udp_length<<8)|(udp_length>>8);
  4338. x25_udp_pkt->udp_pkt.udp_length = temp;
  4339. /* swap UDP ports */
  4340. temp = x25_udp_pkt->udp_pkt.udp_src_port;
  4341. x25_udp_pkt->udp_pkt.udp_src_port =
  4342. x25_udp_pkt->udp_pkt.udp_dst_port;
  4343. x25_udp_pkt->udp_pkt.udp_dst_port = temp;
  4344. /* add UDP pseudo header */
  4345. temp = 0x1100;
  4346. *((unsigned short *)
  4347. (x25_udp_pkt->data+mbox_len+even_bound)) = temp;
  4348. temp = (udp_length<<8)|(udp_length>>8);
  4349. *((unsigned short *)
  4350. (x25_udp_pkt->data+mbox_len+even_bound+2)) = temp;
  4351. /* calculate UDP checksum */
  4352. x25_udp_pkt->udp_pkt.udp_checksum = 0;
  4353. x25_udp_pkt->udp_pkt.udp_checksum =
  4354. calc_checksum(&data[UDP_OFFSET], udp_length+UDP_OFFSET);
  4355. /* fill in IP length */
  4356. ip_length = len;
  4357. temp = (ip_length<<8)|(ip_length>>8);
  4358. x25_udp_pkt->ip_pkt.total_length = temp;
  4359. /* swap IP addresses */
  4360. ip_temp = x25_udp_pkt->ip_pkt.ip_src_address;
  4361. x25_udp_pkt->ip_pkt.ip_src_address =
  4362. x25_udp_pkt->ip_pkt.ip_dst_address;
  4363. x25_udp_pkt->ip_pkt.ip_dst_address = ip_temp;
  4364. /* fill in IP checksum */
  4365. x25_udp_pkt->ip_pkt.hdr_checksum = 0;
  4366. x25_udp_pkt->ip_pkt.hdr_checksum = calc_checksum(data, sizeof(ip_pkt_t));
  4367. return len;
  4368. } /* reply_udp */
  4369. unsigned short calc_checksum (char *data, int len)
  4370. {
  4371. unsigned short temp;
  4372. unsigned long sum=0;
  4373. int i;
  4374. for( i = 0; i <len; i+=2 ) {
  4375. memcpy(&temp,&data[i],2);
  4376. sum += (unsigned long)temp;
  4377. }
  4378. while (sum >> 16 ) {
  4379. sum = (sum & 0xffffUL) + (sum >> 16);
  4380. }
  4381. temp = (unsigned short)sum;
  4382. temp = ~temp;
  4383. if( temp == 0 )
  4384. temp = 0xffff;
  4385. return temp;
  4386. }
  4387. /*=============================================================================
  4388. * Store a UDP management packet for later processing.
  4389. */
  4390. static int store_udp_mgmt_pkt(int udp_type, char udp_pkt_src, sdla_t* card,
  4391. struct net_device *dev, struct sk_buff *skb,
  4392. int lcn)
  4393. {
  4394. int udp_pkt_stored = 0;
  4395. if(!card->u.x.udp_pkt_lgth && (skb->len <= MAX_LGTH_UDP_MGNT_PKT)){
  4396. card->u.x.udp_pkt_lgth = skb->len;
  4397. card->u.x.udp_type = udp_type;
  4398. card->u.x.udp_pkt_src = udp_pkt_src;
  4399. card->u.x.udp_lcn = lcn;
  4400. card->u.x.udp_dev = dev;
  4401. memcpy(card->u.x.udp_pkt_data, skb->data, skb->len);
  4402. card->u.x.timer_int_enabled |= TMR_INT_ENABLED_UDP_PKT;
  4403. udp_pkt_stored = 1;
  4404. }else{
  4405. printk(KERN_INFO "%s: ERROR: UDP packet not stored for LCN %d\n",
  4406. card->devname,lcn);
  4407. }
  4408. if(udp_pkt_src == UDP_PKT_FRM_STACK){
  4409. dev_kfree_skb_any(skb);
  4410. }else{
  4411. dev_kfree_skb_any(skb);
  4412. }
  4413. return(udp_pkt_stored);
  4414. }
  4415. /*=============================================================================
  4416. * Initial the ppp_private_area structure.
  4417. */
  4418. static void init_x25_channel_struct( x25_channel_t *chan )
  4419. {
  4420. memset(&chan->if_send_stat.if_send_entry,0,sizeof(if_send_stat_t));
  4421. memset(&chan->rx_intr_stat.rx_intr_no_socket,0,sizeof(rx_intr_stat_t));
  4422. memset(&chan->pipe_mgmt_stat.UDP_PIPE_mgmt_kmalloc_err,0,sizeof(pipe_mgmt_stat_t));
  4423. }
  4424. /*============================================================================
  4425. * Initialize Global Statistics
  4426. */
  4427. static void init_global_statistics( sdla_t *card )
  4428. {
  4429. memset(&card->statistics.isr_entry,0,sizeof(global_stats_t));
  4430. }
  4431. /*===============================================================
  4432. * SMP Support
  4433. * ==============================================================*/
  4434. static void S508_S514_lock(sdla_t *card, unsigned long *smp_flags)
  4435. {
  4436. spin_lock_irqsave(&card->wandev.lock, *smp_flags);
  4437. }
  4438. static void S508_S514_unlock(sdla_t *card, unsigned long *smp_flags)
  4439. {
  4440. spin_unlock_irqrestore(&card->wandev.lock, *smp_flags);
  4441. }
  4442. /*===============================================================
  4443. * x25_timer_routine
  4444. *
  4445. * A more efficient polling routine. Each half a second
  4446. * queue a polling task. We want to do the polling in a
  4447. * task not timer, because timer runs in interrupt time.
  4448. *
  4449. * FIXME Polling should be rethinked.
  4450. *==============================================================*/
  4451. static void x25_timer_routine(unsigned long data)
  4452. {
  4453. sdla_t *card = (sdla_t*)data;
  4454. if (!card->wandev.dev){
  4455. printk(KERN_INFO "%s: Stopping the X25 Poll Timer: No Dev.\n",
  4456. card->devname);
  4457. return;
  4458. }
  4459. if (card->open_cnt != card->u.x.num_of_ch){
  4460. printk(KERN_INFO "%s: Stopping the X25 Poll Timer: Interface down.\n",
  4461. card->devname);
  4462. return;
  4463. }
  4464. if (test_bit(PERI_CRIT,&card->wandev.critical)){
  4465. printk(KERN_INFO "%s: Stopping the X25 Poll Timer: Shutting down.\n",
  4466. card->devname);
  4467. return;
  4468. }
  4469. if (!test_and_set_bit(POLL_CRIT,&card->wandev.critical)){
  4470. trigger_x25_poll(card);
  4471. }
  4472. card->u.x.x25_timer.expires=jiffies+(HZ>>1);
  4473. add_timer(&card->u.x.x25_timer);
  4474. return;
  4475. }
  4476. void disable_comm_shutdown(sdla_t *card)
  4477. {
  4478. TX25Mbox* mbox = card->mbox;
  4479. int err;
  4480. /* Turn of interrutps */
  4481. mbox->data[0] = 0;
  4482. if (card->hw.fwid == SFID_X25_508){
  4483. mbox->data[1] = card->hw.irq;
  4484. mbox->data[2] = 2;
  4485. mbox->cmd.length = 3;
  4486. }else {
  4487. mbox->cmd.length = 1;
  4488. }
  4489. mbox->cmd.command = X25_SET_INTERRUPT_MODE;
  4490. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  4491. if (err)
  4492. printk(KERN_INFO "INTERRUPT OFF FAIED %x\n",err);
  4493. /* Bring down HDLC */
  4494. mbox->cmd.command = X25_HDLC_LINK_CLOSE;
  4495. mbox->cmd.length = 0;
  4496. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  4497. if (err)
  4498. printk(KERN_INFO "LINK CLOSED FAILED %x\n",err);
  4499. /* Brind down DTR */
  4500. mbox->data[0] = 0;
  4501. mbox->data[2] = 0;
  4502. mbox->data[1] = 0x01;
  4503. mbox->cmd.length = 3;
  4504. mbox->cmd.command = X25_SET_GLOBAL_VARS;
  4505. err = sdla_exec(mbox) ? mbox->cmd.result : CMD_TIMEOUT;
  4506. if (err)
  4507. printk(KERN_INFO "DTR DOWN FAILED %x\n",err);
  4508. }
  4509. MODULE_LICENSE("GPL");
  4510. /****** End *****************************************************************/