ev-layer.c 49 KB

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  1. /*
  2. * Stuff used by all variants of the driver
  3. *
  4. * Copyright (c) 2001 by Stefan Eilers,
  5. * Hansjoerg Lipp <hjlipp@web.de>,
  6. * Tilman Schmidt <tilman@imap.cc>.
  7. *
  8. * =====================================================================
  9. * This program is free software; you can redistribute it and/or
  10. * modify it under the terms of the GNU General Public License as
  11. * published by the Free Software Foundation; either version 2 of
  12. * the License, or (at your option) any later version.
  13. * =====================================================================
  14. */
  15. #include "gigaset.h"
  16. /* ========================================================== */
  17. /* bit masks for pending commands */
  18. #define PC_DIAL 0x001
  19. #define PC_HUP 0x002
  20. #define PC_INIT 0x004
  21. #define PC_DLE0 0x008
  22. #define PC_DLE1 0x010
  23. #define PC_SHUTDOWN 0x020
  24. #define PC_ACCEPT 0x040
  25. #define PC_CID 0x080
  26. #define PC_NOCID 0x100
  27. #define PC_CIDMODE 0x200
  28. #define PC_UMMODE 0x400
  29. /* types of modem responses */
  30. #define RT_NOTHING 0
  31. #define RT_ZSAU 1
  32. #define RT_RING 2
  33. #define RT_NUMBER 3
  34. #define RT_STRING 4
  35. #define RT_HEX 5
  36. #define RT_ZCAU 6
  37. /* Possible ASCII responses */
  38. #define RSP_OK 0
  39. #define RSP_BUSY 1
  40. #define RSP_CONNECT 2
  41. #define RSP_ZGCI 3
  42. #define RSP_RING 4
  43. #define RSP_ZAOC 5
  44. #define RSP_ZCSTR 6
  45. #define RSP_ZCFGT 7
  46. #define RSP_ZCFG 8
  47. #define RSP_ZCCR 9
  48. #define RSP_EMPTY 10
  49. #define RSP_ZLOG 11
  50. #define RSP_ZCAU 12
  51. #define RSP_ZMWI 13
  52. #define RSP_ZABINFO 14
  53. #define RSP_ZSMLSTCHG 15
  54. #define RSP_VAR 100
  55. #define RSP_ZSAU (RSP_VAR + VAR_ZSAU)
  56. #define RSP_ZDLE (RSP_VAR + VAR_ZDLE)
  57. #define RSP_ZVLS (RSP_VAR + VAR_ZVLS)
  58. #define RSP_ZCTP (RSP_VAR + VAR_ZCTP)
  59. #define RSP_STR (RSP_VAR + VAR_NUM)
  60. #define RSP_NMBR (RSP_STR + STR_NMBR)
  61. #define RSP_ZCPN (RSP_STR + STR_ZCPN)
  62. #define RSP_ZCON (RSP_STR + STR_ZCON)
  63. #define RSP_ZBC (RSP_STR + STR_ZBC)
  64. #define RSP_ZHLC (RSP_STR + STR_ZHLC)
  65. #define RSP_ERROR -1 /* ERROR */
  66. #define RSP_WRONG_CID -2 /* unknown cid in cmd */
  67. #define RSP_UNKNOWN -4 /* unknown response */
  68. #define RSP_FAIL -5 /* internal error */
  69. #define RSP_INVAL -6 /* invalid response */
  70. #define RSP_NONE -19
  71. #define RSP_STRING -20
  72. #define RSP_NULL -21
  73. #define RSP_RETRYFAIL -22
  74. #define RSP_RETRY -23
  75. #define RSP_SKIP -24
  76. #define RSP_INIT -27
  77. #define RSP_ANY -26
  78. #define RSP_LAST -28
  79. #define RSP_NODEV -9
  80. /* actions for process_response */
  81. #define ACT_NOTHING 0
  82. #define ACT_SETDLE1 1
  83. #define ACT_SETDLE0 2
  84. #define ACT_FAILINIT 3
  85. #define ACT_HUPMODEM 4
  86. #define ACT_CONFIGMODE 5
  87. #define ACT_INIT 6
  88. #define ACT_DLE0 7
  89. #define ACT_DLE1 8
  90. #define ACT_FAILDLE0 9
  91. #define ACT_FAILDLE1 10
  92. #define ACT_RING 11
  93. #define ACT_CID 12
  94. #define ACT_FAILCID 13
  95. #define ACT_SDOWN 14
  96. #define ACT_FAILSDOWN 15
  97. #define ACT_DEBUG 16
  98. #define ACT_WARN 17
  99. #define ACT_DIALING 18
  100. #define ACT_ABORTDIAL 19
  101. #define ACT_DISCONNECT 20
  102. #define ACT_CONNECT 21
  103. #define ACT_REMOTEREJECT 22
  104. #define ACT_CONNTIMEOUT 23
  105. #define ACT_REMOTEHUP 24
  106. #define ACT_ABORTHUP 25
  107. #define ACT_ICALL 26
  108. #define ACT_ACCEPTED 27
  109. #define ACT_ABORTACCEPT 28
  110. #define ACT_TIMEOUT 29
  111. #define ACT_GETSTRING 30
  112. #define ACT_SETVER 31
  113. #define ACT_FAILVER 32
  114. #define ACT_GOTVER 33
  115. #define ACT_TEST 34
  116. #define ACT_ERROR 35
  117. #define ACT_ABORTCID 36
  118. #define ACT_ZCAU 37
  119. #define ACT_NOTIFY_BC_DOWN 38
  120. #define ACT_NOTIFY_BC_UP 39
  121. #define ACT_DIAL 40
  122. #define ACT_ACCEPT 41
  123. #define ACT_HUP 43
  124. #define ACT_IF_LOCK 44
  125. #define ACT_START 45
  126. #define ACT_STOP 46
  127. #define ACT_FAKEDLE0 47
  128. #define ACT_FAKEHUP 48
  129. #define ACT_FAKESDOWN 49
  130. #define ACT_SHUTDOWN 50
  131. #define ACT_PROC_CIDMODE 51
  132. #define ACT_UMODESET 52
  133. #define ACT_FAILUMODE 53
  134. #define ACT_CMODESET 54
  135. #define ACT_FAILCMODE 55
  136. #define ACT_IF_VER 56
  137. #define ACT_CMD 100
  138. /* at command sequences */
  139. #define SEQ_NONE 0
  140. #define SEQ_INIT 100
  141. #define SEQ_DLE0 200
  142. #define SEQ_DLE1 250
  143. #define SEQ_CID 300
  144. #define SEQ_NOCID 350
  145. #define SEQ_HUP 400
  146. #define SEQ_DIAL 600
  147. #define SEQ_ACCEPT 720
  148. #define SEQ_SHUTDOWN 500
  149. #define SEQ_CIDMODE 10
  150. #define SEQ_UMMODE 11
  151. /* 100: init, 200: dle0, 250:dle1, 300: get cid (dial), 350: "hup" (no cid),
  152. * 400: hup, 500: reset, 600: dial, 700: ring */
  153. struct reply_t gigaset_tab_nocid[] =
  154. {
  155. /* resp_code, min_ConState, max_ConState, parameter, new_ConState, timeout,
  156. * action, command */
  157. /* initialize device, set cid mode if possible */
  158. {RSP_INIT, -1, -1, SEQ_INIT, 100, 1, {ACT_TIMEOUT} },
  159. {EV_TIMEOUT, 100, 100, -1, 101, 3, {0}, "Z\r"},
  160. {RSP_OK, 101, 103, -1, 120, 5, {ACT_GETSTRING},
  161. "+GMR\r"},
  162. {EV_TIMEOUT, 101, 101, -1, 102, 5, {0}, "Z\r"},
  163. {RSP_ERROR, 101, 101, -1, 102, 5, {0}, "Z\r"},
  164. {EV_TIMEOUT, 102, 102, -1, 108, 5, {ACT_SETDLE1},
  165. "^SDLE=0\r"},
  166. {RSP_OK, 108, 108, -1, 104, -1},
  167. {RSP_ZDLE, 104, 104, 0, 103, 5, {0}, "Z\r"},
  168. {EV_TIMEOUT, 104, 104, -1, 0, 0, {ACT_FAILINIT} },
  169. {RSP_ERROR, 108, 108, -1, 0, 0, {ACT_FAILINIT} },
  170. {EV_TIMEOUT, 108, 108, -1, 105, 2, {ACT_SETDLE0,
  171. ACT_HUPMODEM,
  172. ACT_TIMEOUT} },
  173. {EV_TIMEOUT, 105, 105, -1, 103, 5, {0}, "Z\r"},
  174. {RSP_ERROR, 102, 102, -1, 107, 5, {0}, "^GETPRE\r"},
  175. {RSP_OK, 107, 107, -1, 0, 0, {ACT_CONFIGMODE} },
  176. {RSP_ERROR, 107, 107, -1, 0, 0, {ACT_FAILINIT} },
  177. {EV_TIMEOUT, 107, 107, -1, 0, 0, {ACT_FAILINIT} },
  178. {RSP_ERROR, 103, 103, -1, 0, 0, {ACT_FAILINIT} },
  179. {EV_TIMEOUT, 103, 103, -1, 0, 0, {ACT_FAILINIT} },
  180. {RSP_STRING, 120, 120, -1, 121, -1, {ACT_SETVER} },
  181. {EV_TIMEOUT, 120, 121, -1, 0, 0, {ACT_FAILVER,
  182. ACT_INIT} },
  183. {RSP_ERROR, 120, 121, -1, 0, 0, {ACT_FAILVER,
  184. ACT_INIT} },
  185. {RSP_OK, 121, 121, -1, 0, 0, {ACT_GOTVER,
  186. ACT_INIT} },
  187. /* leave dle mode */
  188. {RSP_INIT, 0, 0, SEQ_DLE0, 201, 5, {0}, "^SDLE=0\r"},
  189. {RSP_OK, 201, 201, -1, 202, -1},
  190. {RSP_ZDLE, 202, 202, 0, 0, 0, {ACT_DLE0} },
  191. {RSP_NODEV, 200, 249, -1, 0, 0, {ACT_FAKEDLE0} },
  192. {RSP_ERROR, 200, 249, -1, 0, 0, {ACT_FAILDLE0} },
  193. {EV_TIMEOUT, 200, 249, -1, 0, 0, {ACT_FAILDLE0} },
  194. /* enter dle mode */
  195. {RSP_INIT, 0, 0, SEQ_DLE1, 251, 5, {0}, "^SDLE=1\r"},
  196. {RSP_OK, 251, 251, -1, 252, -1},
  197. {RSP_ZDLE, 252, 252, 1, 0, 0, {ACT_DLE1} },
  198. {RSP_ERROR, 250, 299, -1, 0, 0, {ACT_FAILDLE1} },
  199. {EV_TIMEOUT, 250, 299, -1, 0, 0, {ACT_FAILDLE1} },
  200. /* incoming call */
  201. {RSP_RING, -1, -1, -1, -1, -1, {ACT_RING} },
  202. /* get cid */
  203. {RSP_INIT, 0, 0, SEQ_CID, 301, 5, {0}, "^SGCI?\r"},
  204. {RSP_OK, 301, 301, -1, 302, -1},
  205. {RSP_ZGCI, 302, 302, -1, 0, 0, {ACT_CID} },
  206. {RSP_ERROR, 301, 349, -1, 0, 0, {ACT_FAILCID} },
  207. {EV_TIMEOUT, 301, 349, -1, 0, 0, {ACT_FAILCID} },
  208. /* enter cid mode */
  209. {RSP_INIT, 0, 0, SEQ_CIDMODE, 150, 5, {0}, "^SGCI=1\r"},
  210. {RSP_OK, 150, 150, -1, 0, 0, {ACT_CMODESET} },
  211. {RSP_ERROR, 150, 150, -1, 0, 0, {ACT_FAILCMODE} },
  212. {EV_TIMEOUT, 150, 150, -1, 0, 0, {ACT_FAILCMODE} },
  213. /* leave cid mode */
  214. {RSP_INIT, 0, 0, SEQ_UMMODE, 160, 5, {0}, "Z\r"},
  215. {RSP_OK, 160, 160, -1, 0, 0, {ACT_UMODESET} },
  216. {RSP_ERROR, 160, 160, -1, 0, 0, {ACT_FAILUMODE} },
  217. {EV_TIMEOUT, 160, 160, -1, 0, 0, {ACT_FAILUMODE} },
  218. /* abort getting cid */
  219. {RSP_INIT, 0, 0, SEQ_NOCID, 0, 0, {ACT_ABORTCID} },
  220. /* reset */
  221. {RSP_INIT, 0, 0, SEQ_SHUTDOWN, 504, 5, {0}, "Z\r"},
  222. {RSP_OK, 504, 504, -1, 0, 0, {ACT_SDOWN} },
  223. {RSP_ERROR, 501, 599, -1, 0, 0, {ACT_FAILSDOWN} },
  224. {EV_TIMEOUT, 501, 599, -1, 0, 0, {ACT_FAILSDOWN} },
  225. {RSP_NODEV, 501, 599, -1, 0, 0, {ACT_FAKESDOWN} },
  226. {EV_PROC_CIDMODE, -1, -1, -1, -1, -1, {ACT_PROC_CIDMODE} },
  227. {EV_IF_LOCK, -1, -1, -1, -1, -1, {ACT_IF_LOCK} },
  228. {EV_IF_VER, -1, -1, -1, -1, -1, {ACT_IF_VER} },
  229. {EV_START, -1, -1, -1, -1, -1, {ACT_START} },
  230. {EV_STOP, -1, -1, -1, -1, -1, {ACT_STOP} },
  231. {EV_SHUTDOWN, -1, -1, -1, -1, -1, {ACT_SHUTDOWN} },
  232. /* misc. */
  233. {RSP_ERROR, -1, -1, -1, -1, -1, {ACT_ERROR} },
  234. {RSP_ZCFGT, -1, -1, -1, -1, -1, {ACT_DEBUG} },
  235. {RSP_ZCFG, -1, -1, -1, -1, -1, {ACT_DEBUG} },
  236. {RSP_ZLOG, -1, -1, -1, -1, -1, {ACT_DEBUG} },
  237. {RSP_ZMWI, -1, -1, -1, -1, -1, {ACT_DEBUG} },
  238. {RSP_ZABINFO, -1, -1, -1, -1, -1, {ACT_DEBUG} },
  239. {RSP_ZSMLSTCHG, -1, -1, -1, -1, -1, {ACT_DEBUG} },
  240. {RSP_ZCAU, -1, -1, -1, -1, -1, {ACT_ZCAU} },
  241. {RSP_NONE, -1, -1, -1, -1, -1, {ACT_DEBUG} },
  242. {RSP_ANY, -1, -1, -1, -1, -1, {ACT_WARN} },
  243. {RSP_LAST}
  244. };
  245. /* 600: start dialing, 650: dial in progress, 800: connection is up, 700: ring,
  246. * 400: hup, 750: accepted icall */
  247. struct reply_t gigaset_tab_cid[] =
  248. {
  249. /* resp_code, min_ConState, max_ConState, parameter, new_ConState, timeout,
  250. * action, command */
  251. /* dial */
  252. {EV_DIAL, -1, -1, -1, -1, -1, {ACT_DIAL} },
  253. {RSP_INIT, 0, 0, SEQ_DIAL, 601, 5, {ACT_CMD+AT_BC} },
  254. {RSP_OK, 601, 601, -1, 603, 5, {ACT_CMD+AT_PROTO} },
  255. {RSP_OK, 603, 603, -1, 604, 5, {ACT_CMD+AT_TYPE} },
  256. {RSP_OK, 604, 604, -1, 605, 5, {ACT_CMD+AT_MSN} },
  257. {RSP_NULL, 605, 605, -1, 606, 5, {ACT_CMD+AT_CLIP} },
  258. {RSP_OK, 605, 605, -1, 606, 5, {ACT_CMD+AT_CLIP} },
  259. {RSP_NULL, 606, 606, -1, 607, 5, {ACT_CMD+AT_ISO} },
  260. {RSP_OK, 606, 606, -1, 607, 5, {ACT_CMD+AT_ISO} },
  261. {RSP_OK, 607, 607, -1, 608, 5, {0}, "+VLS=17\r"},
  262. {RSP_OK, 608, 608, -1, 609, -1},
  263. {RSP_ZSAU, 609, 609, ZSAU_PROCEEDING, 610, 5, {ACT_CMD+AT_DIAL} },
  264. {RSP_OK, 610, 610, -1, 650, 0, {ACT_DIALING} },
  265. {RSP_ERROR, 601, 610, -1, 0, 0, {ACT_ABORTDIAL} },
  266. {EV_TIMEOUT, 601, 610, -1, 0, 0, {ACT_ABORTDIAL} },
  267. /* optional dialing responses */
  268. {EV_BC_OPEN, 650, 650, -1, 651, -1},
  269. {RSP_ZVLS, 609, 651, 17, -1, -1, {ACT_DEBUG} },
  270. {RSP_ZCTP, 610, 651, -1, -1, -1, {ACT_DEBUG} },
  271. {RSP_ZCPN, 610, 651, -1, -1, -1, {ACT_DEBUG} },
  272. {RSP_ZSAU, 650, 651, ZSAU_CALL_DELIVERED, -1, -1, {ACT_DEBUG} },
  273. /* connect */
  274. {RSP_ZSAU, 650, 650, ZSAU_ACTIVE, 800, -1, {ACT_CONNECT} },
  275. {RSP_ZSAU, 651, 651, ZSAU_ACTIVE, 800, -1, {ACT_CONNECT,
  276. ACT_NOTIFY_BC_UP} },
  277. {RSP_ZSAU, 750, 750, ZSAU_ACTIVE, 800, -1, {ACT_CONNECT} },
  278. {RSP_ZSAU, 751, 751, ZSAU_ACTIVE, 800, -1, {ACT_CONNECT,
  279. ACT_NOTIFY_BC_UP} },
  280. {EV_BC_OPEN, 800, 800, -1, 800, -1, {ACT_NOTIFY_BC_UP} },
  281. /* remote hangup */
  282. {RSP_ZSAU, 650, 651, ZSAU_DISCONNECT_IND, 0, 0, {ACT_REMOTEREJECT} },
  283. {RSP_ZSAU, 750, 751, ZSAU_DISCONNECT_IND, 0, 0, {ACT_REMOTEHUP} },
  284. {RSP_ZSAU, 800, 800, ZSAU_DISCONNECT_IND, 0, 0, {ACT_REMOTEHUP} },
  285. /* hangup */
  286. {EV_HUP, -1, -1, -1, -1, -1, {ACT_HUP} },
  287. {RSP_INIT, -1, -1, SEQ_HUP, 401, 5, {0}, "+VLS=0\r"},
  288. {RSP_OK, 401, 401, -1, 402, 5},
  289. {RSP_ZVLS, 402, 402, 0, 403, 5},
  290. {RSP_ZSAU, 403, 403, ZSAU_DISCONNECT_REQ, -1, -1, {ACT_DEBUG} },
  291. {RSP_ZSAU, 403, 403, ZSAU_NULL, 0, 0, {ACT_DISCONNECT} },
  292. {RSP_NODEV, 401, 403, -1, 0, 0, {ACT_FAKEHUP} },
  293. {RSP_ERROR, 401, 401, -1, 0, 0, {ACT_ABORTHUP} },
  294. {EV_TIMEOUT, 401, 403, -1, 0, 0, {ACT_ABORTHUP} },
  295. {EV_BC_CLOSED, 0, 0, -1, 0, -1, {ACT_NOTIFY_BC_DOWN} },
  296. /* ring */
  297. {RSP_ZBC, 700, 700, -1, -1, -1, {0} },
  298. {RSP_ZHLC, 700, 700, -1, -1, -1, {0} },
  299. {RSP_NMBR, 700, 700, -1, -1, -1, {0} },
  300. {RSP_ZCPN, 700, 700, -1, -1, -1, {0} },
  301. {RSP_ZCTP, 700, 700, -1, -1, -1, {0} },
  302. {EV_TIMEOUT, 700, 700, -1, 720, 720, {ACT_ICALL} },
  303. {EV_BC_CLOSED, 720, 720, -1, 0, -1, {ACT_NOTIFY_BC_DOWN} },
  304. /*accept icall*/
  305. {EV_ACCEPT, -1, -1, -1, -1, -1, {ACT_ACCEPT} },
  306. {RSP_INIT, 720, 720, SEQ_ACCEPT, 721, 5, {ACT_CMD+AT_PROTO} },
  307. {RSP_OK, 721, 721, -1, 722, 5, {ACT_CMD+AT_ISO} },
  308. {RSP_OK, 722, 722, -1, 723, 5, {0}, "+VLS=17\r"},
  309. {RSP_OK, 723, 723, -1, 724, 5, {0} },
  310. {RSP_ZVLS, 724, 724, 17, 750, 50, {ACT_ACCEPTED} },
  311. {RSP_ERROR, 721, 729, -1, 0, 0, {ACT_ABORTACCEPT} },
  312. {EV_TIMEOUT, 721, 729, -1, 0, 0, {ACT_ABORTACCEPT} },
  313. {RSP_ZSAU, 700, 729, ZSAU_NULL, 0, 0, {ACT_ABORTACCEPT} },
  314. {RSP_ZSAU, 700, 729, ZSAU_ACTIVE, 0, 0, {ACT_ABORTACCEPT} },
  315. {RSP_ZSAU, 700, 729, ZSAU_DISCONNECT_IND, 0, 0, {ACT_ABORTACCEPT} },
  316. {EV_BC_OPEN, 750, 750, -1, 751, -1},
  317. {EV_TIMEOUT, 750, 751, -1, 0, 0, {ACT_CONNTIMEOUT} },
  318. /* B channel closed (general case) */
  319. {EV_BC_CLOSED, -1, -1, -1, -1, -1, {ACT_NOTIFY_BC_DOWN} },
  320. /* misc. */
  321. {RSP_ZCON, -1, -1, -1, -1, -1, {ACT_DEBUG} },
  322. {RSP_ZCCR, -1, -1, -1, -1, -1, {ACT_DEBUG} },
  323. {RSP_ZAOC, -1, -1, -1, -1, -1, {ACT_DEBUG} },
  324. {RSP_ZCSTR, -1, -1, -1, -1, -1, {ACT_DEBUG} },
  325. {RSP_ZCAU, -1, -1, -1, -1, -1, {ACT_ZCAU} },
  326. {RSP_NONE, -1, -1, -1, -1, -1, {ACT_DEBUG} },
  327. {RSP_ANY, -1, -1, -1, -1, -1, {ACT_WARN} },
  328. {RSP_LAST}
  329. };
  330. static const struct resp_type_t {
  331. unsigned char *response;
  332. int resp_code;
  333. int type;
  334. } resp_type[] =
  335. {
  336. {"OK", RSP_OK, RT_NOTHING},
  337. {"ERROR", RSP_ERROR, RT_NOTHING},
  338. {"ZSAU", RSP_ZSAU, RT_ZSAU},
  339. {"ZCAU", RSP_ZCAU, RT_ZCAU},
  340. {"RING", RSP_RING, RT_RING},
  341. {"ZGCI", RSP_ZGCI, RT_NUMBER},
  342. {"ZVLS", RSP_ZVLS, RT_NUMBER},
  343. {"ZCTP", RSP_ZCTP, RT_NUMBER},
  344. {"ZDLE", RSP_ZDLE, RT_NUMBER},
  345. {"ZCFGT", RSP_ZCFGT, RT_NUMBER},
  346. {"ZCCR", RSP_ZCCR, RT_NUMBER},
  347. {"ZMWI", RSP_ZMWI, RT_NUMBER},
  348. {"ZHLC", RSP_ZHLC, RT_STRING},
  349. {"ZBC", RSP_ZBC, RT_STRING},
  350. {"NMBR", RSP_NMBR, RT_STRING},
  351. {"ZCPN", RSP_ZCPN, RT_STRING},
  352. {"ZCON", RSP_ZCON, RT_STRING},
  353. {"ZAOC", RSP_ZAOC, RT_STRING},
  354. {"ZCSTR", RSP_ZCSTR, RT_STRING},
  355. {"ZCFG", RSP_ZCFG, RT_HEX},
  356. {"ZLOG", RSP_ZLOG, RT_NOTHING},
  357. {"ZABINFO", RSP_ZABINFO, RT_NOTHING},
  358. {"ZSMLSTCHG", RSP_ZSMLSTCHG, RT_NOTHING},
  359. {NULL, 0, 0}
  360. };
  361. static const struct zsau_resp_t {
  362. unsigned char *str;
  363. int code;
  364. } zsau_resp[] =
  365. {
  366. {"OUTGOING_CALL_PROCEEDING", ZSAU_OUTGOING_CALL_PROCEEDING},
  367. {"CALL_DELIVERED", ZSAU_CALL_DELIVERED},
  368. {"ACTIVE", ZSAU_ACTIVE},
  369. {"DISCONNECT_IND", ZSAU_DISCONNECT_IND},
  370. {"NULL", ZSAU_NULL},
  371. {"DISCONNECT_REQ", ZSAU_DISCONNECT_REQ},
  372. {NULL, ZSAU_UNKNOWN}
  373. };
  374. /*
  375. * Get integer from char-pointer
  376. */
  377. static int isdn_getnum(char *p)
  378. {
  379. int v = -1;
  380. gig_dbg(DEBUG_EVENT, "string: %s", p);
  381. while (*p >= '0' && *p <= '9')
  382. v = ((v < 0) ? 0 : (v * 10)) + (int) ((*p++) - '0');
  383. if (*p)
  384. v = -1; /* invalid Character */
  385. return v;
  386. }
  387. /*
  388. * Get integer from char-pointer
  389. */
  390. static int isdn_gethex(char *p)
  391. {
  392. int v = 0;
  393. int c;
  394. gig_dbg(DEBUG_EVENT, "string: %s", p);
  395. if (!*p)
  396. return -1;
  397. do {
  398. if (v > (INT_MAX - 15) / 16)
  399. return -1;
  400. c = *p;
  401. if (c >= '0' && c <= '9')
  402. c -= '0';
  403. else if (c >= 'a' && c <= 'f')
  404. c -= 'a' - 10;
  405. else if (c >= 'A' && c <= 'F')
  406. c -= 'A' - 10;
  407. else
  408. return -1;
  409. v = v * 16 + c;
  410. } while (*++p);
  411. return v;
  412. }
  413. /* retrieve CID from parsed response
  414. * returns 0 if no CID, -1 if invalid CID, or CID value 1..65535
  415. */
  416. static int cid_of_response(char *s)
  417. {
  418. int cid;
  419. if (s[-1] != ';')
  420. return 0; /* no CID separator */
  421. cid = isdn_getnum(s);
  422. if (cid < 0)
  423. return 0; /* CID not numeric */
  424. if (cid < 1 || cid > 65535)
  425. return -1; /* CID out of range */
  426. return cid;
  427. }
  428. /**
  429. * gigaset_handle_modem_response() - process received modem response
  430. * @cs: device descriptor structure.
  431. *
  432. * Called by asyncdata/isocdata if a block of data received from the
  433. * device must be processed as a modem command response. The data is
  434. * already in the cs structure.
  435. */
  436. void gigaset_handle_modem_response(struct cardstate *cs)
  437. {
  438. unsigned char *argv[MAX_REC_PARAMS + 1];
  439. int params;
  440. int i, j;
  441. const struct resp_type_t *rt;
  442. const struct zsau_resp_t *zr;
  443. int curarg;
  444. unsigned long flags;
  445. unsigned next, tail, head;
  446. struct event_t *event;
  447. int resp_code;
  448. int param_type;
  449. int abort;
  450. size_t len;
  451. int cid;
  452. int rawstring;
  453. len = cs->cbytes;
  454. if (!len) {
  455. /* ignore additional LFs/CRs (M10x config mode or cx100) */
  456. gig_dbg(DEBUG_MCMD, "skipped EOL [%02X]", cs->respdata[len]);
  457. return;
  458. }
  459. cs->respdata[len] = 0;
  460. argv[0] = cs->respdata;
  461. params = 1;
  462. if (cs->at_state.getstring) {
  463. /* getstring only allowed without cid at the moment */
  464. cs->at_state.getstring = 0;
  465. rawstring = 1;
  466. cid = 0;
  467. } else {
  468. /* parse line */
  469. for (i = 0; i < len; i++)
  470. switch (cs->respdata[i]) {
  471. case ';':
  472. case ',':
  473. case '=':
  474. if (params > MAX_REC_PARAMS) {
  475. dev_warn(cs->dev,
  476. "too many parameters in response\n");
  477. /* need last parameter (might be CID) */
  478. params--;
  479. }
  480. argv[params++] = cs->respdata + i + 1;
  481. }
  482. rawstring = 0;
  483. cid = params > 1 ? cid_of_response(argv[params-1]) : 0;
  484. if (cid < 0) {
  485. gigaset_add_event(cs, &cs->at_state, RSP_INVAL,
  486. NULL, 0, NULL);
  487. return;
  488. }
  489. for (j = 1; j < params; ++j)
  490. argv[j][-1] = 0;
  491. gig_dbg(DEBUG_EVENT, "CMD received: %s", argv[0]);
  492. if (cid) {
  493. --params;
  494. gig_dbg(DEBUG_EVENT, "CID: %s", argv[params]);
  495. }
  496. gig_dbg(DEBUG_EVENT, "available params: %d", params - 1);
  497. for (j = 1; j < params; j++)
  498. gig_dbg(DEBUG_EVENT, "param %d: %s", j, argv[j]);
  499. }
  500. spin_lock_irqsave(&cs->ev_lock, flags);
  501. head = cs->ev_head;
  502. tail = cs->ev_tail;
  503. abort = 1;
  504. curarg = 0;
  505. while (curarg < params) {
  506. next = (tail + 1) % MAX_EVENTS;
  507. if (unlikely(next == head)) {
  508. dev_err(cs->dev, "event queue full\n");
  509. break;
  510. }
  511. event = cs->events + tail;
  512. event->at_state = NULL;
  513. event->cid = cid;
  514. event->ptr = NULL;
  515. event->arg = NULL;
  516. tail = next;
  517. if (rawstring) {
  518. resp_code = RSP_STRING;
  519. param_type = RT_STRING;
  520. } else {
  521. for (rt = resp_type; rt->response; ++rt)
  522. if (!strcmp(argv[curarg], rt->response))
  523. break;
  524. if (!rt->response) {
  525. event->type = RSP_UNKNOWN;
  526. dev_warn(cs->dev,
  527. "unknown modem response: %s\n",
  528. argv[curarg]);
  529. break;
  530. }
  531. resp_code = rt->resp_code;
  532. param_type = rt->type;
  533. ++curarg;
  534. }
  535. event->type = resp_code;
  536. switch (param_type) {
  537. case RT_NOTHING:
  538. break;
  539. case RT_RING:
  540. if (!cid) {
  541. dev_err(cs->dev,
  542. "received RING without CID!\n");
  543. event->type = RSP_INVAL;
  544. abort = 1;
  545. } else {
  546. event->cid = 0;
  547. event->parameter = cid;
  548. abort = 0;
  549. }
  550. break;
  551. case RT_ZSAU:
  552. if (curarg >= params) {
  553. event->parameter = ZSAU_NONE;
  554. break;
  555. }
  556. for (zr = zsau_resp; zr->str; ++zr)
  557. if (!strcmp(argv[curarg], zr->str))
  558. break;
  559. event->parameter = zr->code;
  560. if (!zr->str)
  561. dev_warn(cs->dev,
  562. "%s: unknown parameter %s after ZSAU\n",
  563. __func__, argv[curarg]);
  564. ++curarg;
  565. break;
  566. case RT_STRING:
  567. if (curarg < params) {
  568. event->ptr = kstrdup(argv[curarg], GFP_ATOMIC);
  569. if (!event->ptr)
  570. dev_err(cs->dev, "out of memory\n");
  571. ++curarg;
  572. }
  573. gig_dbg(DEBUG_EVENT, "string==%s",
  574. event->ptr ? (char *) event->ptr : "NULL");
  575. break;
  576. case RT_ZCAU:
  577. event->parameter = -1;
  578. if (curarg + 1 < params) {
  579. i = isdn_gethex(argv[curarg]);
  580. j = isdn_gethex(argv[curarg + 1]);
  581. if (i >= 0 && i < 256 && j >= 0 && j < 256)
  582. event->parameter = (unsigned) i << 8
  583. | j;
  584. curarg += 2;
  585. } else
  586. curarg = params - 1;
  587. break;
  588. case RT_NUMBER:
  589. case RT_HEX:
  590. if (curarg < params) {
  591. if (param_type == RT_HEX)
  592. event->parameter =
  593. isdn_gethex(argv[curarg]);
  594. else
  595. event->parameter =
  596. isdn_getnum(argv[curarg]);
  597. ++curarg;
  598. } else
  599. event->parameter = -1;
  600. gig_dbg(DEBUG_EVENT, "parameter==%d", event->parameter);
  601. break;
  602. }
  603. if (resp_code == RSP_ZDLE)
  604. cs->dle = event->parameter;
  605. if (abort)
  606. break;
  607. }
  608. cs->ev_tail = tail;
  609. spin_unlock_irqrestore(&cs->ev_lock, flags);
  610. if (curarg != params)
  611. gig_dbg(DEBUG_EVENT,
  612. "invalid number of processed parameters: %d/%d",
  613. curarg, params);
  614. }
  615. EXPORT_SYMBOL_GPL(gigaset_handle_modem_response);
  616. /* disconnect
  617. * process closing of connection associated with given AT state structure
  618. */
  619. static void disconnect(struct at_state_t **at_state_p)
  620. {
  621. unsigned long flags;
  622. struct bc_state *bcs = (*at_state_p)->bcs;
  623. struct cardstate *cs = (*at_state_p)->cs;
  624. spin_lock_irqsave(&cs->lock, flags);
  625. ++(*at_state_p)->seq_index;
  626. /* revert to selected idle mode */
  627. if (!cs->cidmode) {
  628. cs->at_state.pending_commands |= PC_UMMODE;
  629. gig_dbg(DEBUG_EVENT, "Scheduling PC_UMMODE");
  630. cs->commands_pending = 1;
  631. }
  632. spin_unlock_irqrestore(&cs->lock, flags);
  633. if (bcs) {
  634. /* B channel assigned: invoke hardware specific handler */
  635. cs->ops->close_bchannel(bcs);
  636. /* notify LL */
  637. if (bcs->chstate & (CHS_D_UP | CHS_NOTIFY_LL)) {
  638. bcs->chstate &= ~(CHS_D_UP | CHS_NOTIFY_LL);
  639. gigaset_isdn_hupD(bcs);
  640. }
  641. } else {
  642. /* no B channel assigned: just deallocate */
  643. spin_lock_irqsave(&cs->lock, flags);
  644. list_del(&(*at_state_p)->list);
  645. kfree(*at_state_p);
  646. *at_state_p = NULL;
  647. spin_unlock_irqrestore(&cs->lock, flags);
  648. }
  649. }
  650. /* get_free_channel
  651. * get a free AT state structure: either one of those associated with the
  652. * B channels of the Gigaset device, or if none of those is available,
  653. * a newly allocated one with bcs=NULL
  654. * The structure should be freed by calling disconnect() after use.
  655. */
  656. static inline struct at_state_t *get_free_channel(struct cardstate *cs,
  657. int cid)
  658. /* cids: >0: siemens-cid
  659. 0: without cid
  660. -1: no cid assigned yet
  661. */
  662. {
  663. unsigned long flags;
  664. int i;
  665. struct at_state_t *ret;
  666. for (i = 0; i < cs->channels; ++i)
  667. if (gigaset_get_channel(cs->bcs + i)) {
  668. ret = &cs->bcs[i].at_state;
  669. ret->cid = cid;
  670. return ret;
  671. }
  672. spin_lock_irqsave(&cs->lock, flags);
  673. ret = kmalloc(sizeof(struct at_state_t), GFP_ATOMIC);
  674. if (ret) {
  675. gigaset_at_init(ret, NULL, cs, cid);
  676. list_add(&ret->list, &cs->temp_at_states);
  677. }
  678. spin_unlock_irqrestore(&cs->lock, flags);
  679. return ret;
  680. }
  681. static void init_failed(struct cardstate *cs, int mode)
  682. {
  683. int i;
  684. struct at_state_t *at_state;
  685. cs->at_state.pending_commands &= ~PC_INIT;
  686. cs->mode = mode;
  687. cs->mstate = MS_UNINITIALIZED;
  688. gigaset_free_channels(cs);
  689. for (i = 0; i < cs->channels; ++i) {
  690. at_state = &cs->bcs[i].at_state;
  691. if (at_state->pending_commands & PC_CID) {
  692. at_state->pending_commands &= ~PC_CID;
  693. at_state->pending_commands |= PC_NOCID;
  694. cs->commands_pending = 1;
  695. }
  696. }
  697. }
  698. static void schedule_init(struct cardstate *cs, int state)
  699. {
  700. if (cs->at_state.pending_commands & PC_INIT) {
  701. gig_dbg(DEBUG_EVENT, "not scheduling PC_INIT again");
  702. return;
  703. }
  704. cs->mstate = state;
  705. cs->mode = M_UNKNOWN;
  706. gigaset_block_channels(cs);
  707. cs->at_state.pending_commands |= PC_INIT;
  708. gig_dbg(DEBUG_EVENT, "Scheduling PC_INIT");
  709. cs->commands_pending = 1;
  710. }
  711. /* Add "AT" to a command, add the cid, dle encode it, send the result to the
  712. hardware. */
  713. static void send_command(struct cardstate *cs, const char *cmd, int cid,
  714. int dle, gfp_t kmallocflags)
  715. {
  716. struct cmdbuf_t *cb;
  717. size_t buflen;
  718. buflen = strlen(cmd) + 12; /* DLE ( A T 1 2 3 4 5 <cmd> DLE ) \0 */
  719. cb = kmalloc(sizeof(struct cmdbuf_t) + buflen, kmallocflags);
  720. if (!cb) {
  721. dev_err(cs->dev, "%s: out of memory\n", __func__);
  722. return;
  723. }
  724. if (cid > 0 && cid <= 65535)
  725. cb->len = snprintf(cb->buf, buflen,
  726. dle ? "\020(AT%d%s\020)" : "AT%d%s",
  727. cid, cmd);
  728. else
  729. cb->len = snprintf(cb->buf, buflen,
  730. dle ? "\020(AT%s\020)" : "AT%s",
  731. cmd);
  732. cb->offset = 0;
  733. cb->next = NULL;
  734. cb->wake_tasklet = NULL;
  735. cs->ops->write_cmd(cs, cb);
  736. }
  737. static struct at_state_t *at_state_from_cid(struct cardstate *cs, int cid)
  738. {
  739. struct at_state_t *at_state;
  740. int i;
  741. unsigned long flags;
  742. if (cid == 0)
  743. return &cs->at_state;
  744. for (i = 0; i < cs->channels; ++i)
  745. if (cid == cs->bcs[i].at_state.cid)
  746. return &cs->bcs[i].at_state;
  747. spin_lock_irqsave(&cs->lock, flags);
  748. list_for_each_entry(at_state, &cs->temp_at_states, list)
  749. if (cid == at_state->cid) {
  750. spin_unlock_irqrestore(&cs->lock, flags);
  751. return at_state;
  752. }
  753. spin_unlock_irqrestore(&cs->lock, flags);
  754. return NULL;
  755. }
  756. static void bchannel_down(struct bc_state *bcs)
  757. {
  758. if (bcs->chstate & CHS_B_UP) {
  759. bcs->chstate &= ~CHS_B_UP;
  760. gigaset_isdn_hupB(bcs);
  761. }
  762. if (bcs->chstate & (CHS_D_UP | CHS_NOTIFY_LL)) {
  763. bcs->chstate &= ~(CHS_D_UP | CHS_NOTIFY_LL);
  764. gigaset_isdn_hupD(bcs);
  765. }
  766. gigaset_free_channel(bcs);
  767. gigaset_bcs_reinit(bcs);
  768. }
  769. static void bchannel_up(struct bc_state *bcs)
  770. {
  771. if (bcs->chstate & CHS_B_UP) {
  772. dev_notice(bcs->cs->dev, "%s: B channel already up\n",
  773. __func__);
  774. return;
  775. }
  776. bcs->chstate |= CHS_B_UP;
  777. gigaset_isdn_connB(bcs);
  778. }
  779. static void start_dial(struct at_state_t *at_state, void *data,
  780. unsigned seq_index)
  781. {
  782. struct bc_state *bcs = at_state->bcs;
  783. struct cardstate *cs = at_state->cs;
  784. char **commands = data;
  785. unsigned long flags;
  786. int i;
  787. bcs->chstate |= CHS_NOTIFY_LL;
  788. spin_lock_irqsave(&cs->lock, flags);
  789. if (at_state->seq_index != seq_index) {
  790. spin_unlock_irqrestore(&cs->lock, flags);
  791. goto error;
  792. }
  793. spin_unlock_irqrestore(&cs->lock, flags);
  794. for (i = 0; i < AT_NUM; ++i) {
  795. kfree(bcs->commands[i]);
  796. bcs->commands[i] = commands[i];
  797. }
  798. at_state->pending_commands |= PC_CID;
  799. gig_dbg(DEBUG_EVENT, "Scheduling PC_CID");
  800. cs->commands_pending = 1;
  801. return;
  802. error:
  803. for (i = 0; i < AT_NUM; ++i) {
  804. kfree(commands[i]);
  805. commands[i] = NULL;
  806. }
  807. at_state->pending_commands |= PC_NOCID;
  808. gig_dbg(DEBUG_EVENT, "Scheduling PC_NOCID");
  809. cs->commands_pending = 1;
  810. return;
  811. }
  812. static void start_accept(struct at_state_t *at_state)
  813. {
  814. struct cardstate *cs = at_state->cs;
  815. struct bc_state *bcs = at_state->bcs;
  816. int i;
  817. for (i = 0; i < AT_NUM; ++i) {
  818. kfree(bcs->commands[i]);
  819. bcs->commands[i] = NULL;
  820. }
  821. bcs->commands[AT_PROTO] = kmalloc(9, GFP_ATOMIC);
  822. bcs->commands[AT_ISO] = kmalloc(9, GFP_ATOMIC);
  823. if (!bcs->commands[AT_PROTO] || !bcs->commands[AT_ISO]) {
  824. dev_err(at_state->cs->dev, "out of memory\n");
  825. /* error reset */
  826. at_state->pending_commands |= PC_HUP;
  827. gig_dbg(DEBUG_EVENT, "Scheduling PC_HUP");
  828. cs->commands_pending = 1;
  829. return;
  830. }
  831. snprintf(bcs->commands[AT_PROTO], 9, "^SBPR=%u\r", bcs->proto2);
  832. snprintf(bcs->commands[AT_ISO], 9, "^SISO=%u\r", bcs->channel + 1);
  833. at_state->pending_commands |= PC_ACCEPT;
  834. gig_dbg(DEBUG_EVENT, "Scheduling PC_ACCEPT");
  835. cs->commands_pending = 1;
  836. }
  837. static void do_start(struct cardstate *cs)
  838. {
  839. gigaset_free_channels(cs);
  840. if (cs->mstate != MS_LOCKED)
  841. schedule_init(cs, MS_INIT);
  842. cs->isdn_up = 1;
  843. gigaset_isdn_start(cs);
  844. cs->waiting = 0;
  845. wake_up(&cs->waitqueue);
  846. }
  847. static void finish_shutdown(struct cardstate *cs)
  848. {
  849. if (cs->mstate != MS_LOCKED) {
  850. cs->mstate = MS_UNINITIALIZED;
  851. cs->mode = M_UNKNOWN;
  852. }
  853. /* Tell the LL that the device is not available .. */
  854. if (cs->isdn_up) {
  855. cs->isdn_up = 0;
  856. gigaset_isdn_stop(cs);
  857. }
  858. /* The rest is done by cleanup_cs () in user mode. */
  859. cs->cmd_result = -ENODEV;
  860. cs->waiting = 0;
  861. wake_up(&cs->waitqueue);
  862. }
  863. static void do_shutdown(struct cardstate *cs)
  864. {
  865. gigaset_block_channels(cs);
  866. if (cs->mstate == MS_READY) {
  867. cs->mstate = MS_SHUTDOWN;
  868. cs->at_state.pending_commands |= PC_SHUTDOWN;
  869. gig_dbg(DEBUG_EVENT, "Scheduling PC_SHUTDOWN");
  870. cs->commands_pending = 1;
  871. } else
  872. finish_shutdown(cs);
  873. }
  874. static void do_stop(struct cardstate *cs)
  875. {
  876. unsigned long flags;
  877. spin_lock_irqsave(&cs->lock, flags);
  878. cs->connected = 0;
  879. spin_unlock_irqrestore(&cs->lock, flags);
  880. do_shutdown(cs);
  881. }
  882. /* Entering cid mode or getting a cid failed:
  883. * try to initialize the device and try again.
  884. *
  885. * channel >= 0: getting cid for the channel failed
  886. * channel < 0: entering cid mode failed
  887. *
  888. * returns 0 on failure
  889. */
  890. static int reinit_and_retry(struct cardstate *cs, int channel)
  891. {
  892. int i;
  893. if (--cs->retry_count <= 0)
  894. return 0;
  895. for (i = 0; i < cs->channels; ++i)
  896. if (cs->bcs[i].at_state.cid > 0)
  897. return 0;
  898. if (channel < 0)
  899. dev_warn(cs->dev,
  900. "Could not enter cid mode. Reinit device and try again.\n");
  901. else {
  902. dev_warn(cs->dev,
  903. "Could not get a call id. Reinit device and try again.\n");
  904. cs->bcs[channel].at_state.pending_commands |= PC_CID;
  905. }
  906. schedule_init(cs, MS_INIT);
  907. return 1;
  908. }
  909. static int at_state_invalid(struct cardstate *cs,
  910. struct at_state_t *test_ptr)
  911. {
  912. unsigned long flags;
  913. unsigned channel;
  914. struct at_state_t *at_state;
  915. int retval = 0;
  916. spin_lock_irqsave(&cs->lock, flags);
  917. if (test_ptr == &cs->at_state)
  918. goto exit;
  919. list_for_each_entry(at_state, &cs->temp_at_states, list)
  920. if (at_state == test_ptr)
  921. goto exit;
  922. for (channel = 0; channel < cs->channels; ++channel)
  923. if (&cs->bcs[channel].at_state == test_ptr)
  924. goto exit;
  925. retval = 1;
  926. exit:
  927. spin_unlock_irqrestore(&cs->lock, flags);
  928. return retval;
  929. }
  930. static void handle_icall(struct cardstate *cs, struct bc_state *bcs,
  931. struct at_state_t **p_at_state)
  932. {
  933. int retval;
  934. struct at_state_t *at_state = *p_at_state;
  935. retval = gigaset_isdn_icall(at_state);
  936. switch (retval) {
  937. case ICALL_ACCEPT:
  938. break;
  939. default:
  940. dev_err(cs->dev, "internal error: disposition=%d\n", retval);
  941. /* --v-- fall through --v-- */
  942. case ICALL_IGNORE:
  943. case ICALL_REJECT:
  944. /* hang up actively
  945. * Device doc says that would reject the call.
  946. * In fact it doesn't.
  947. */
  948. at_state->pending_commands |= PC_HUP;
  949. cs->commands_pending = 1;
  950. break;
  951. }
  952. }
  953. static int do_lock(struct cardstate *cs)
  954. {
  955. int mode;
  956. int i;
  957. switch (cs->mstate) {
  958. case MS_UNINITIALIZED:
  959. case MS_READY:
  960. if (cs->cur_at_seq || !list_empty(&cs->temp_at_states) ||
  961. cs->at_state.pending_commands)
  962. return -EBUSY;
  963. for (i = 0; i < cs->channels; ++i)
  964. if (cs->bcs[i].at_state.pending_commands)
  965. return -EBUSY;
  966. if (!gigaset_get_channels(cs))
  967. return -EBUSY;
  968. break;
  969. case MS_LOCKED:
  970. break;
  971. default:
  972. return -EBUSY;
  973. }
  974. mode = cs->mode;
  975. cs->mstate = MS_LOCKED;
  976. cs->mode = M_UNKNOWN;
  977. return mode;
  978. }
  979. static int do_unlock(struct cardstate *cs)
  980. {
  981. if (cs->mstate != MS_LOCKED)
  982. return -EINVAL;
  983. cs->mstate = MS_UNINITIALIZED;
  984. cs->mode = M_UNKNOWN;
  985. gigaset_free_channels(cs);
  986. if (cs->connected)
  987. schedule_init(cs, MS_INIT);
  988. return 0;
  989. }
  990. static void do_action(int action, struct cardstate *cs,
  991. struct bc_state *bcs,
  992. struct at_state_t **p_at_state, char **pp_command,
  993. int *p_genresp, int *p_resp_code,
  994. struct event_t *ev)
  995. {
  996. struct at_state_t *at_state = *p_at_state;
  997. struct at_state_t *at_state2;
  998. unsigned long flags;
  999. int channel;
  1000. unsigned char *s, *e;
  1001. int i;
  1002. unsigned long val;
  1003. switch (action) {
  1004. case ACT_NOTHING:
  1005. break;
  1006. case ACT_TIMEOUT:
  1007. at_state->waiting = 1;
  1008. break;
  1009. case ACT_INIT:
  1010. cs->at_state.pending_commands &= ~PC_INIT;
  1011. cs->cur_at_seq = SEQ_NONE;
  1012. cs->mode = M_UNIMODEM;
  1013. spin_lock_irqsave(&cs->lock, flags);
  1014. if (!cs->cidmode) {
  1015. spin_unlock_irqrestore(&cs->lock, flags);
  1016. gigaset_free_channels(cs);
  1017. cs->mstate = MS_READY;
  1018. break;
  1019. }
  1020. spin_unlock_irqrestore(&cs->lock, flags);
  1021. cs->at_state.pending_commands |= PC_CIDMODE;
  1022. gig_dbg(DEBUG_EVENT, "Scheduling PC_CIDMODE");
  1023. cs->commands_pending = 1;
  1024. break;
  1025. case ACT_FAILINIT:
  1026. dev_warn(cs->dev, "Could not initialize the device.\n");
  1027. cs->dle = 0;
  1028. init_failed(cs, M_UNKNOWN);
  1029. cs->cur_at_seq = SEQ_NONE;
  1030. break;
  1031. case ACT_CONFIGMODE:
  1032. init_failed(cs, M_CONFIG);
  1033. cs->cur_at_seq = SEQ_NONE;
  1034. break;
  1035. case ACT_SETDLE1:
  1036. cs->dle = 1;
  1037. /* cs->inbuf[0].inputstate |= INS_command | INS_DLE_command; */
  1038. cs->inbuf[0].inputstate &=
  1039. ~(INS_command | INS_DLE_command);
  1040. break;
  1041. case ACT_SETDLE0:
  1042. cs->dle = 0;
  1043. cs->inbuf[0].inputstate =
  1044. (cs->inbuf[0].inputstate & ~INS_DLE_command)
  1045. | INS_command;
  1046. break;
  1047. case ACT_CMODESET:
  1048. if (cs->mstate == MS_INIT || cs->mstate == MS_RECOVER) {
  1049. gigaset_free_channels(cs);
  1050. cs->mstate = MS_READY;
  1051. }
  1052. cs->mode = M_CID;
  1053. cs->cur_at_seq = SEQ_NONE;
  1054. break;
  1055. case ACT_UMODESET:
  1056. cs->mode = M_UNIMODEM;
  1057. cs->cur_at_seq = SEQ_NONE;
  1058. break;
  1059. case ACT_FAILCMODE:
  1060. cs->cur_at_seq = SEQ_NONE;
  1061. if (cs->mstate == MS_INIT || cs->mstate == MS_RECOVER) {
  1062. init_failed(cs, M_UNKNOWN);
  1063. break;
  1064. }
  1065. if (!reinit_and_retry(cs, -1))
  1066. schedule_init(cs, MS_RECOVER);
  1067. break;
  1068. case ACT_FAILUMODE:
  1069. cs->cur_at_seq = SEQ_NONE;
  1070. schedule_init(cs, MS_RECOVER);
  1071. break;
  1072. case ACT_HUPMODEM:
  1073. /* send "+++" (hangup in unimodem mode) */
  1074. if (cs->connected) {
  1075. struct cmdbuf_t *cb;
  1076. cb = kmalloc(sizeof(struct cmdbuf_t) + 3, GFP_ATOMIC);
  1077. if (!cb) {
  1078. dev_err(cs->dev, "%s: out of memory\n",
  1079. __func__);
  1080. return;
  1081. }
  1082. memcpy(cb->buf, "+++", 3);
  1083. cb->len = 3;
  1084. cb->offset = 0;
  1085. cb->next = NULL;
  1086. cb->wake_tasklet = NULL;
  1087. cs->ops->write_cmd(cs, cb);
  1088. }
  1089. break;
  1090. case ACT_RING:
  1091. /* get fresh AT state structure for new CID */
  1092. at_state2 = get_free_channel(cs, ev->parameter);
  1093. if (!at_state2) {
  1094. dev_warn(cs->dev,
  1095. "RING ignored: could not allocate channel structure\n");
  1096. break;
  1097. }
  1098. /* initialize AT state structure
  1099. * note that bcs may be NULL if no B channel is free
  1100. */
  1101. at_state2->ConState = 700;
  1102. for (i = 0; i < STR_NUM; ++i) {
  1103. kfree(at_state2->str_var[i]);
  1104. at_state2->str_var[i] = NULL;
  1105. }
  1106. at_state2->int_var[VAR_ZCTP] = -1;
  1107. spin_lock_irqsave(&cs->lock, flags);
  1108. at_state2->timer_expires = RING_TIMEOUT;
  1109. at_state2->timer_active = 1;
  1110. spin_unlock_irqrestore(&cs->lock, flags);
  1111. break;
  1112. case ACT_ICALL:
  1113. handle_icall(cs, bcs, p_at_state);
  1114. break;
  1115. case ACT_FAILSDOWN:
  1116. dev_warn(cs->dev, "Could not shut down the device.\n");
  1117. /* fall through */
  1118. case ACT_FAKESDOWN:
  1119. case ACT_SDOWN:
  1120. cs->cur_at_seq = SEQ_NONE;
  1121. finish_shutdown(cs);
  1122. break;
  1123. case ACT_CONNECT:
  1124. if (cs->onechannel) {
  1125. at_state->pending_commands |= PC_DLE1;
  1126. cs->commands_pending = 1;
  1127. break;
  1128. }
  1129. bcs->chstate |= CHS_D_UP;
  1130. gigaset_isdn_connD(bcs);
  1131. cs->ops->init_bchannel(bcs);
  1132. break;
  1133. case ACT_DLE1:
  1134. cs->cur_at_seq = SEQ_NONE;
  1135. bcs = cs->bcs + cs->curchannel;
  1136. bcs->chstate |= CHS_D_UP;
  1137. gigaset_isdn_connD(bcs);
  1138. cs->ops->init_bchannel(bcs);
  1139. break;
  1140. case ACT_FAKEHUP:
  1141. at_state->int_var[VAR_ZSAU] = ZSAU_NULL;
  1142. /* fall through */
  1143. case ACT_DISCONNECT:
  1144. cs->cur_at_seq = SEQ_NONE;
  1145. at_state->cid = -1;
  1146. if (bcs && cs->onechannel && cs->dle) {
  1147. /* Check for other open channels not needed:
  1148. * DLE only used for M10x with one B channel.
  1149. */
  1150. at_state->pending_commands |= PC_DLE0;
  1151. cs->commands_pending = 1;
  1152. } else
  1153. disconnect(p_at_state);
  1154. break;
  1155. case ACT_FAKEDLE0:
  1156. at_state->int_var[VAR_ZDLE] = 0;
  1157. cs->dle = 0;
  1158. /* fall through */
  1159. case ACT_DLE0:
  1160. cs->cur_at_seq = SEQ_NONE;
  1161. at_state2 = &cs->bcs[cs->curchannel].at_state;
  1162. disconnect(&at_state2);
  1163. break;
  1164. case ACT_ABORTHUP:
  1165. cs->cur_at_seq = SEQ_NONE;
  1166. dev_warn(cs->dev, "Could not hang up.\n");
  1167. at_state->cid = -1;
  1168. if (bcs && cs->onechannel)
  1169. at_state->pending_commands |= PC_DLE0;
  1170. else
  1171. disconnect(p_at_state);
  1172. schedule_init(cs, MS_RECOVER);
  1173. break;
  1174. case ACT_FAILDLE0:
  1175. cs->cur_at_seq = SEQ_NONE;
  1176. dev_warn(cs->dev, "Could not leave DLE mode.\n");
  1177. at_state2 = &cs->bcs[cs->curchannel].at_state;
  1178. disconnect(&at_state2);
  1179. schedule_init(cs, MS_RECOVER);
  1180. break;
  1181. case ACT_FAILDLE1:
  1182. cs->cur_at_seq = SEQ_NONE;
  1183. dev_warn(cs->dev,
  1184. "Could not enter DLE mode. Trying to hang up.\n");
  1185. channel = cs->curchannel;
  1186. cs->bcs[channel].at_state.pending_commands |= PC_HUP;
  1187. cs->commands_pending = 1;
  1188. break;
  1189. case ACT_CID: /* got cid; start dialing */
  1190. cs->cur_at_seq = SEQ_NONE;
  1191. channel = cs->curchannel;
  1192. if (ev->parameter > 0 && ev->parameter <= 65535) {
  1193. cs->bcs[channel].at_state.cid = ev->parameter;
  1194. cs->bcs[channel].at_state.pending_commands |=
  1195. PC_DIAL;
  1196. cs->commands_pending = 1;
  1197. break;
  1198. }
  1199. /* fall through */
  1200. case ACT_FAILCID:
  1201. cs->cur_at_seq = SEQ_NONE;
  1202. channel = cs->curchannel;
  1203. if (!reinit_and_retry(cs, channel)) {
  1204. dev_warn(cs->dev,
  1205. "Could not get a call ID. Cannot dial.\n");
  1206. at_state2 = &cs->bcs[channel].at_state;
  1207. disconnect(&at_state2);
  1208. }
  1209. break;
  1210. case ACT_ABORTCID:
  1211. cs->cur_at_seq = SEQ_NONE;
  1212. at_state2 = &cs->bcs[cs->curchannel].at_state;
  1213. disconnect(&at_state2);
  1214. break;
  1215. case ACT_DIALING:
  1216. case ACT_ACCEPTED:
  1217. cs->cur_at_seq = SEQ_NONE;
  1218. break;
  1219. case ACT_ABORTACCEPT: /* hangup/error/timeout during ICALL procssng */
  1220. disconnect(p_at_state);
  1221. break;
  1222. case ACT_ABORTDIAL: /* error/timeout during dial preparation */
  1223. cs->cur_at_seq = SEQ_NONE;
  1224. at_state->pending_commands |= PC_HUP;
  1225. cs->commands_pending = 1;
  1226. break;
  1227. case ACT_REMOTEREJECT: /* DISCONNECT_IND after dialling */
  1228. case ACT_CONNTIMEOUT: /* timeout waiting for ZSAU=ACTIVE */
  1229. case ACT_REMOTEHUP: /* DISCONNECT_IND with established connection */
  1230. at_state->pending_commands |= PC_HUP;
  1231. cs->commands_pending = 1;
  1232. break;
  1233. case ACT_GETSTRING: /* warning: RING, ZDLE, ...
  1234. are not handled properly anymore */
  1235. at_state->getstring = 1;
  1236. break;
  1237. case ACT_SETVER:
  1238. if (!ev->ptr) {
  1239. *p_genresp = 1;
  1240. *p_resp_code = RSP_ERROR;
  1241. break;
  1242. }
  1243. s = ev->ptr;
  1244. if (!strcmp(s, "OK")) {
  1245. *p_genresp = 1;
  1246. *p_resp_code = RSP_ERROR;
  1247. break;
  1248. }
  1249. for (i = 0; i < 4; ++i) {
  1250. val = simple_strtoul(s, (char **) &e, 10);
  1251. if (val > INT_MAX || e == s)
  1252. break;
  1253. if (i == 3) {
  1254. if (*e)
  1255. break;
  1256. } else if (*e != '.')
  1257. break;
  1258. else
  1259. s = e + 1;
  1260. cs->fwver[i] = val;
  1261. }
  1262. if (i != 4) {
  1263. *p_genresp = 1;
  1264. *p_resp_code = RSP_ERROR;
  1265. break;
  1266. }
  1267. /*at_state->getstring = 1;*/
  1268. cs->gotfwver = 0;
  1269. break;
  1270. case ACT_GOTVER:
  1271. if (cs->gotfwver == 0) {
  1272. cs->gotfwver = 1;
  1273. gig_dbg(DEBUG_EVENT,
  1274. "firmware version %02d.%03d.%02d.%02d",
  1275. cs->fwver[0], cs->fwver[1],
  1276. cs->fwver[2], cs->fwver[3]);
  1277. break;
  1278. }
  1279. /* fall through */
  1280. case ACT_FAILVER:
  1281. cs->gotfwver = -1;
  1282. dev_err(cs->dev, "could not read firmware version.\n");
  1283. break;
  1284. case ACT_ERROR:
  1285. gig_dbg(DEBUG_ANY, "%s: ERROR response in ConState %d",
  1286. __func__, at_state->ConState);
  1287. cs->cur_at_seq = SEQ_NONE;
  1288. break;
  1289. case ACT_DEBUG:
  1290. gig_dbg(DEBUG_ANY, "%s: resp_code %d in ConState %d",
  1291. __func__, ev->type, at_state->ConState);
  1292. break;
  1293. case ACT_WARN:
  1294. dev_warn(cs->dev, "%s: resp_code %d in ConState %d!\n",
  1295. __func__, ev->type, at_state->ConState);
  1296. break;
  1297. case ACT_ZCAU:
  1298. dev_warn(cs->dev, "cause code %04x in connection state %d.\n",
  1299. ev->parameter, at_state->ConState);
  1300. break;
  1301. /* events from the LL */
  1302. case ACT_DIAL:
  1303. start_dial(at_state, ev->ptr, ev->parameter);
  1304. break;
  1305. case ACT_ACCEPT:
  1306. start_accept(at_state);
  1307. break;
  1308. case ACT_HUP:
  1309. at_state->pending_commands |= PC_HUP;
  1310. gig_dbg(DEBUG_EVENT, "Scheduling PC_HUP");
  1311. cs->commands_pending = 1;
  1312. break;
  1313. /* hotplug events */
  1314. case ACT_STOP:
  1315. do_stop(cs);
  1316. break;
  1317. case ACT_START:
  1318. do_start(cs);
  1319. break;
  1320. /* events from the interface */
  1321. case ACT_IF_LOCK:
  1322. cs->cmd_result = ev->parameter ? do_lock(cs) : do_unlock(cs);
  1323. cs->waiting = 0;
  1324. wake_up(&cs->waitqueue);
  1325. break;
  1326. case ACT_IF_VER:
  1327. if (ev->parameter != 0)
  1328. cs->cmd_result = -EINVAL;
  1329. else if (cs->gotfwver != 1) {
  1330. cs->cmd_result = -ENOENT;
  1331. } else {
  1332. memcpy(ev->arg, cs->fwver, sizeof cs->fwver);
  1333. cs->cmd_result = 0;
  1334. }
  1335. cs->waiting = 0;
  1336. wake_up(&cs->waitqueue);
  1337. break;
  1338. /* events from the proc file system */
  1339. case ACT_PROC_CIDMODE:
  1340. spin_lock_irqsave(&cs->lock, flags);
  1341. if (ev->parameter != cs->cidmode) {
  1342. cs->cidmode = ev->parameter;
  1343. if (ev->parameter) {
  1344. cs->at_state.pending_commands |= PC_CIDMODE;
  1345. gig_dbg(DEBUG_EVENT, "Scheduling PC_CIDMODE");
  1346. } else {
  1347. cs->at_state.pending_commands |= PC_UMMODE;
  1348. gig_dbg(DEBUG_EVENT, "Scheduling PC_UMMODE");
  1349. }
  1350. cs->commands_pending = 1;
  1351. }
  1352. spin_unlock_irqrestore(&cs->lock, flags);
  1353. cs->waiting = 0;
  1354. wake_up(&cs->waitqueue);
  1355. break;
  1356. /* events from the hardware drivers */
  1357. case ACT_NOTIFY_BC_DOWN:
  1358. bchannel_down(bcs);
  1359. break;
  1360. case ACT_NOTIFY_BC_UP:
  1361. bchannel_up(bcs);
  1362. break;
  1363. case ACT_SHUTDOWN:
  1364. do_shutdown(cs);
  1365. break;
  1366. default:
  1367. if (action >= ACT_CMD && action < ACT_CMD + AT_NUM) {
  1368. *pp_command = at_state->bcs->commands[action - ACT_CMD];
  1369. if (!*pp_command) {
  1370. *p_genresp = 1;
  1371. *p_resp_code = RSP_NULL;
  1372. }
  1373. } else
  1374. dev_err(cs->dev, "%s: action==%d!\n", __func__, action);
  1375. }
  1376. }
  1377. /* State machine to do the calling and hangup procedure */
  1378. static void process_event(struct cardstate *cs, struct event_t *ev)
  1379. {
  1380. struct bc_state *bcs;
  1381. char *p_command = NULL;
  1382. struct reply_t *rep;
  1383. int rcode;
  1384. int genresp = 0;
  1385. int resp_code = RSP_ERROR;
  1386. int sendcid;
  1387. struct at_state_t *at_state;
  1388. int index;
  1389. int curact;
  1390. unsigned long flags;
  1391. if (ev->cid >= 0) {
  1392. at_state = at_state_from_cid(cs, ev->cid);
  1393. if (!at_state) {
  1394. gig_dbg(DEBUG_EVENT, "event %d for invalid cid %d",
  1395. ev->type, ev->cid);
  1396. gigaset_add_event(cs, &cs->at_state, RSP_WRONG_CID,
  1397. NULL, 0, NULL);
  1398. return;
  1399. }
  1400. } else {
  1401. at_state = ev->at_state;
  1402. if (at_state_invalid(cs, at_state)) {
  1403. gig_dbg(DEBUG_EVENT, "event for invalid at_state %p",
  1404. at_state);
  1405. return;
  1406. }
  1407. }
  1408. gig_dbg(DEBUG_EVENT, "connection state %d, event %d",
  1409. at_state->ConState, ev->type);
  1410. bcs = at_state->bcs;
  1411. sendcid = at_state->cid;
  1412. /* Setting the pointer to the dial array */
  1413. rep = at_state->replystruct;
  1414. spin_lock_irqsave(&cs->lock, flags);
  1415. if (ev->type == EV_TIMEOUT) {
  1416. if (ev->parameter != at_state->timer_index
  1417. || !at_state->timer_active) {
  1418. ev->type = RSP_NONE; /* old timeout */
  1419. gig_dbg(DEBUG_EVENT, "old timeout");
  1420. } else if (!at_state->waiting)
  1421. gig_dbg(DEBUG_EVENT, "timeout occurred");
  1422. else
  1423. gig_dbg(DEBUG_EVENT, "stopped waiting");
  1424. }
  1425. spin_unlock_irqrestore(&cs->lock, flags);
  1426. /* if the response belongs to a variable in at_state->int_var[VAR_XXXX]
  1427. or at_state->str_var[STR_XXXX], set it */
  1428. if (ev->type >= RSP_VAR && ev->type < RSP_VAR + VAR_NUM) {
  1429. index = ev->type - RSP_VAR;
  1430. at_state->int_var[index] = ev->parameter;
  1431. } else if (ev->type >= RSP_STR && ev->type < RSP_STR + STR_NUM) {
  1432. index = ev->type - RSP_STR;
  1433. kfree(at_state->str_var[index]);
  1434. at_state->str_var[index] = ev->ptr;
  1435. ev->ptr = NULL; /* prevent process_events() from
  1436. deallocating ptr */
  1437. }
  1438. if (ev->type == EV_TIMEOUT || ev->type == RSP_STRING)
  1439. at_state->getstring = 0;
  1440. /* Search row in dial array which matches modem response and current
  1441. constate */
  1442. for (;; rep++) {
  1443. rcode = rep->resp_code;
  1444. if (rcode == RSP_LAST) {
  1445. /* found nothing...*/
  1446. dev_warn(cs->dev, "%s: rcode=RSP_LAST: "
  1447. "resp_code %d in ConState %d!\n",
  1448. __func__, ev->type, at_state->ConState);
  1449. return;
  1450. }
  1451. if ((rcode == RSP_ANY || rcode == ev->type)
  1452. && ((int) at_state->ConState >= rep->min_ConState)
  1453. && (rep->max_ConState < 0
  1454. || (int) at_state->ConState <= rep->max_ConState)
  1455. && (rep->parameter < 0 || rep->parameter == ev->parameter))
  1456. break;
  1457. }
  1458. p_command = rep->command;
  1459. at_state->waiting = 0;
  1460. for (curact = 0; curact < MAXACT; ++curact) {
  1461. /* The row tells us what we should do ..
  1462. */
  1463. do_action(rep->action[curact], cs, bcs, &at_state, &p_command,
  1464. &genresp, &resp_code, ev);
  1465. if (!at_state)
  1466. break; /* may be freed after disconnect */
  1467. }
  1468. if (at_state) {
  1469. /* Jump to the next con-state regarding the array */
  1470. if (rep->new_ConState >= 0)
  1471. at_state->ConState = rep->new_ConState;
  1472. if (genresp) {
  1473. spin_lock_irqsave(&cs->lock, flags);
  1474. at_state->timer_expires = 0;
  1475. at_state->timer_active = 0;
  1476. spin_unlock_irqrestore(&cs->lock, flags);
  1477. gigaset_add_event(cs, at_state, resp_code,
  1478. NULL, 0, NULL);
  1479. } else {
  1480. /* Send command to modem if not NULL... */
  1481. if (p_command) {
  1482. if (cs->connected)
  1483. send_command(cs, p_command,
  1484. sendcid, cs->dle,
  1485. GFP_ATOMIC);
  1486. else
  1487. gigaset_add_event(cs, at_state,
  1488. RSP_NODEV,
  1489. NULL, 0, NULL);
  1490. }
  1491. spin_lock_irqsave(&cs->lock, flags);
  1492. if (!rep->timeout) {
  1493. at_state->timer_expires = 0;
  1494. at_state->timer_active = 0;
  1495. } else if (rep->timeout > 0) { /* new timeout */
  1496. at_state->timer_expires = rep->timeout * 10;
  1497. at_state->timer_active = 1;
  1498. ++at_state->timer_index;
  1499. }
  1500. spin_unlock_irqrestore(&cs->lock, flags);
  1501. }
  1502. }
  1503. }
  1504. static void schedule_sequence(struct cardstate *cs,
  1505. struct at_state_t *at_state, int sequence)
  1506. {
  1507. cs->cur_at_seq = sequence;
  1508. gigaset_add_event(cs, at_state, RSP_INIT, NULL, sequence, NULL);
  1509. }
  1510. static void process_command_flags(struct cardstate *cs)
  1511. {
  1512. struct at_state_t *at_state = NULL;
  1513. struct bc_state *bcs;
  1514. int i;
  1515. int sequence;
  1516. unsigned long flags;
  1517. cs->commands_pending = 0;
  1518. if (cs->cur_at_seq) {
  1519. gig_dbg(DEBUG_EVENT, "not searching scheduled commands: busy");
  1520. return;
  1521. }
  1522. gig_dbg(DEBUG_EVENT, "searching scheduled commands");
  1523. sequence = SEQ_NONE;
  1524. /* clear pending_commands and hangup channels on shutdown */
  1525. if (cs->at_state.pending_commands & PC_SHUTDOWN) {
  1526. cs->at_state.pending_commands &= ~PC_CIDMODE;
  1527. for (i = 0; i < cs->channels; ++i) {
  1528. bcs = cs->bcs + i;
  1529. at_state = &bcs->at_state;
  1530. at_state->pending_commands &=
  1531. ~(PC_DLE1 | PC_ACCEPT | PC_DIAL);
  1532. if (at_state->cid > 0)
  1533. at_state->pending_commands |= PC_HUP;
  1534. if (at_state->pending_commands & PC_CID) {
  1535. at_state->pending_commands |= PC_NOCID;
  1536. at_state->pending_commands &= ~PC_CID;
  1537. }
  1538. }
  1539. }
  1540. /* clear pending_commands and hangup channels on reset */
  1541. if (cs->at_state.pending_commands & PC_INIT) {
  1542. cs->at_state.pending_commands &= ~PC_CIDMODE;
  1543. for (i = 0; i < cs->channels; ++i) {
  1544. bcs = cs->bcs + i;
  1545. at_state = &bcs->at_state;
  1546. at_state->pending_commands &=
  1547. ~(PC_DLE1 | PC_ACCEPT | PC_DIAL);
  1548. if (at_state->cid > 0)
  1549. at_state->pending_commands |= PC_HUP;
  1550. if (cs->mstate == MS_RECOVER) {
  1551. if (at_state->pending_commands & PC_CID) {
  1552. at_state->pending_commands |= PC_NOCID;
  1553. at_state->pending_commands &= ~PC_CID;
  1554. }
  1555. }
  1556. }
  1557. }
  1558. /* only switch back to unimodem mode if no commands are pending and
  1559. * no channels are up */
  1560. spin_lock_irqsave(&cs->lock, flags);
  1561. if (cs->at_state.pending_commands == PC_UMMODE
  1562. && !cs->cidmode
  1563. && list_empty(&cs->temp_at_states)
  1564. && cs->mode == M_CID) {
  1565. sequence = SEQ_UMMODE;
  1566. at_state = &cs->at_state;
  1567. for (i = 0; i < cs->channels; ++i) {
  1568. bcs = cs->bcs + i;
  1569. if (bcs->at_state.pending_commands ||
  1570. bcs->at_state.cid > 0) {
  1571. sequence = SEQ_NONE;
  1572. break;
  1573. }
  1574. }
  1575. }
  1576. spin_unlock_irqrestore(&cs->lock, flags);
  1577. cs->at_state.pending_commands &= ~PC_UMMODE;
  1578. if (sequence != SEQ_NONE) {
  1579. schedule_sequence(cs, at_state, sequence);
  1580. return;
  1581. }
  1582. for (i = 0; i < cs->channels; ++i) {
  1583. bcs = cs->bcs + i;
  1584. if (bcs->at_state.pending_commands & PC_HUP) {
  1585. bcs->at_state.pending_commands &= ~PC_HUP;
  1586. if (bcs->at_state.pending_commands & PC_CID) {
  1587. /* not yet dialing: PC_NOCID is sufficient */
  1588. bcs->at_state.pending_commands |= PC_NOCID;
  1589. bcs->at_state.pending_commands &= ~PC_CID;
  1590. } else {
  1591. schedule_sequence(cs, &bcs->at_state, SEQ_HUP);
  1592. return;
  1593. }
  1594. }
  1595. if (bcs->at_state.pending_commands & PC_NOCID) {
  1596. bcs->at_state.pending_commands &= ~PC_NOCID;
  1597. cs->curchannel = bcs->channel;
  1598. schedule_sequence(cs, &cs->at_state, SEQ_NOCID);
  1599. return;
  1600. } else if (bcs->at_state.pending_commands & PC_DLE0) {
  1601. bcs->at_state.pending_commands &= ~PC_DLE0;
  1602. cs->curchannel = bcs->channel;
  1603. schedule_sequence(cs, &cs->at_state, SEQ_DLE0);
  1604. return;
  1605. }
  1606. }
  1607. list_for_each_entry(at_state, &cs->temp_at_states, list)
  1608. if (at_state->pending_commands & PC_HUP) {
  1609. at_state->pending_commands &= ~PC_HUP;
  1610. schedule_sequence(cs, at_state, SEQ_HUP);
  1611. return;
  1612. }
  1613. if (cs->at_state.pending_commands & PC_INIT) {
  1614. cs->at_state.pending_commands &= ~PC_INIT;
  1615. cs->dle = 0;
  1616. cs->inbuf->inputstate = INS_command;
  1617. schedule_sequence(cs, &cs->at_state, SEQ_INIT);
  1618. return;
  1619. }
  1620. if (cs->at_state.pending_commands & PC_SHUTDOWN) {
  1621. cs->at_state.pending_commands &= ~PC_SHUTDOWN;
  1622. schedule_sequence(cs, &cs->at_state, SEQ_SHUTDOWN);
  1623. return;
  1624. }
  1625. if (cs->at_state.pending_commands & PC_CIDMODE) {
  1626. cs->at_state.pending_commands &= ~PC_CIDMODE;
  1627. if (cs->mode == M_UNIMODEM) {
  1628. cs->retry_count = 1;
  1629. schedule_sequence(cs, &cs->at_state, SEQ_CIDMODE);
  1630. return;
  1631. }
  1632. }
  1633. for (i = 0; i < cs->channels; ++i) {
  1634. bcs = cs->bcs + i;
  1635. if (bcs->at_state.pending_commands & PC_DLE1) {
  1636. bcs->at_state.pending_commands &= ~PC_DLE1;
  1637. cs->curchannel = bcs->channel;
  1638. schedule_sequence(cs, &cs->at_state, SEQ_DLE1);
  1639. return;
  1640. }
  1641. if (bcs->at_state.pending_commands & PC_ACCEPT) {
  1642. bcs->at_state.pending_commands &= ~PC_ACCEPT;
  1643. schedule_sequence(cs, &bcs->at_state, SEQ_ACCEPT);
  1644. return;
  1645. }
  1646. if (bcs->at_state.pending_commands & PC_DIAL) {
  1647. bcs->at_state.pending_commands &= ~PC_DIAL;
  1648. schedule_sequence(cs, &bcs->at_state, SEQ_DIAL);
  1649. return;
  1650. }
  1651. if (bcs->at_state.pending_commands & PC_CID) {
  1652. switch (cs->mode) {
  1653. case M_UNIMODEM:
  1654. cs->at_state.pending_commands |= PC_CIDMODE;
  1655. gig_dbg(DEBUG_EVENT, "Scheduling PC_CIDMODE");
  1656. cs->commands_pending = 1;
  1657. return;
  1658. #ifdef GIG_MAYINITONDIAL
  1659. case M_UNKNOWN:
  1660. schedule_init(cs, MS_INIT);
  1661. return;
  1662. #endif
  1663. }
  1664. bcs->at_state.pending_commands &= ~PC_CID;
  1665. cs->curchannel = bcs->channel;
  1666. #ifdef GIG_RETRYCID
  1667. cs->retry_count = 2;
  1668. #else
  1669. cs->retry_count = 1;
  1670. #endif
  1671. schedule_sequence(cs, &cs->at_state, SEQ_CID);
  1672. return;
  1673. }
  1674. }
  1675. }
  1676. static void process_events(struct cardstate *cs)
  1677. {
  1678. struct event_t *ev;
  1679. unsigned head, tail;
  1680. int i;
  1681. int check_flags = 0;
  1682. int was_busy;
  1683. unsigned long flags;
  1684. spin_lock_irqsave(&cs->ev_lock, flags);
  1685. head = cs->ev_head;
  1686. for (i = 0; i < 2 * MAX_EVENTS; ++i) {
  1687. tail = cs->ev_tail;
  1688. if (tail == head) {
  1689. if (!check_flags && !cs->commands_pending)
  1690. break;
  1691. check_flags = 0;
  1692. spin_unlock_irqrestore(&cs->ev_lock, flags);
  1693. process_command_flags(cs);
  1694. spin_lock_irqsave(&cs->ev_lock, flags);
  1695. tail = cs->ev_tail;
  1696. if (tail == head) {
  1697. if (!cs->commands_pending)
  1698. break;
  1699. continue;
  1700. }
  1701. }
  1702. ev = cs->events + head;
  1703. was_busy = cs->cur_at_seq != SEQ_NONE;
  1704. spin_unlock_irqrestore(&cs->ev_lock, flags);
  1705. process_event(cs, ev);
  1706. spin_lock_irqsave(&cs->ev_lock, flags);
  1707. kfree(ev->ptr);
  1708. ev->ptr = NULL;
  1709. if (was_busy && cs->cur_at_seq == SEQ_NONE)
  1710. check_flags = 1;
  1711. head = (head + 1) % MAX_EVENTS;
  1712. cs->ev_head = head;
  1713. }
  1714. spin_unlock_irqrestore(&cs->ev_lock, flags);
  1715. if (i == 2 * MAX_EVENTS) {
  1716. dev_err(cs->dev,
  1717. "infinite loop in process_events; aborting.\n");
  1718. }
  1719. }
  1720. /* tasklet scheduled on any event received from the Gigaset device
  1721. * parameter:
  1722. * data ISDN controller state structure
  1723. */
  1724. void gigaset_handle_event(unsigned long data)
  1725. {
  1726. struct cardstate *cs = (struct cardstate *) data;
  1727. /* handle incoming data on control/common channel */
  1728. if (cs->inbuf->head != cs->inbuf->tail) {
  1729. gig_dbg(DEBUG_INTR, "processing new data");
  1730. cs->ops->handle_input(cs->inbuf);
  1731. }
  1732. process_events(cs);
  1733. }