dvb_frontend.c 61 KB

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  1. /*
  2. * dvb_frontend.c: DVB frontend tuning interface/thread
  3. *
  4. *
  5. * Copyright (C) 1999-2001 Ralph Metzler
  6. * Marcus Metzler
  7. * Holger Waechtler
  8. * for convergence integrated media GmbH
  9. *
  10. * Copyright (C) 2004 Andrew de Quincey (tuning thread cleanup)
  11. *
  12. * This program is free software; you can redistribute it and/or
  13. * modify it under the terms of the GNU General Public License
  14. * as published by the Free Software Foundation; either version 2
  15. * of the License, or (at your option) any later version.
  16. *
  17. * This program is distributed in the hope that it will be useful,
  18. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  19. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  20. * GNU General Public License for more details.
  21. *
  22. * You should have received a copy of the GNU General Public License
  23. * along with this program; if not, write to the Free Software
  24. * Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
  25. * Or, point your browser to http://www.gnu.org/copyleft/gpl.html
  26. */
  27. #include <linux/string.h>
  28. #include <linux/kernel.h>
  29. #include <linux/sched.h>
  30. #include <linux/wait.h>
  31. #include <linux/slab.h>
  32. #include <linux/poll.h>
  33. #include <linux/module.h>
  34. #include <linux/list.h>
  35. #include <linux/freezer.h>
  36. #include <linux/jiffies.h>
  37. #include <linux/kthread.h>
  38. #include <asm/processor.h>
  39. #include "dvb_frontend.h"
  40. #include "dvbdev.h"
  41. #include <linux/dvb/version.h>
  42. static int dvb_frontend_debug;
  43. static int dvb_shutdown_timeout;
  44. static int dvb_force_auto_inversion;
  45. static int dvb_override_tune_delay;
  46. static int dvb_powerdown_on_sleep = 1;
  47. static int dvb_mfe_wait_time = 5;
  48. module_param_named(frontend_debug, dvb_frontend_debug, int, 0644);
  49. MODULE_PARM_DESC(frontend_debug, "Turn on/off frontend core debugging (default:off).");
  50. module_param(dvb_shutdown_timeout, int, 0644);
  51. MODULE_PARM_DESC(dvb_shutdown_timeout, "wait <shutdown_timeout> seconds after close() before suspending hardware");
  52. module_param(dvb_force_auto_inversion, int, 0644);
  53. MODULE_PARM_DESC(dvb_force_auto_inversion, "0: normal (default), 1: INVERSION_AUTO forced always");
  54. module_param(dvb_override_tune_delay, int, 0644);
  55. MODULE_PARM_DESC(dvb_override_tune_delay, "0: normal (default), >0 => delay in milliseconds to wait for lock after a tune attempt");
  56. module_param(dvb_powerdown_on_sleep, int, 0644);
  57. MODULE_PARM_DESC(dvb_powerdown_on_sleep, "0: do not power down, 1: turn LNB voltage off on sleep (default)");
  58. module_param(dvb_mfe_wait_time, int, 0644);
  59. MODULE_PARM_DESC(dvb_mfe_wait_time, "Wait up to <mfe_wait_time> seconds on open() for multi-frontend to become available (default:5 seconds)");
  60. #define dprintk if (dvb_frontend_debug) printk
  61. #define FESTATE_IDLE 1
  62. #define FESTATE_RETUNE 2
  63. #define FESTATE_TUNING_FAST 4
  64. #define FESTATE_TUNING_SLOW 8
  65. #define FESTATE_TUNED 16
  66. #define FESTATE_ZIGZAG_FAST 32
  67. #define FESTATE_ZIGZAG_SLOW 64
  68. #define FESTATE_DISEQC 128
  69. #define FESTATE_ERROR 256
  70. #define FESTATE_WAITFORLOCK (FESTATE_TUNING_FAST | FESTATE_TUNING_SLOW | FESTATE_ZIGZAG_FAST | FESTATE_ZIGZAG_SLOW | FESTATE_DISEQC)
  71. #define FESTATE_SEARCHING_FAST (FESTATE_TUNING_FAST | FESTATE_ZIGZAG_FAST)
  72. #define FESTATE_SEARCHING_SLOW (FESTATE_TUNING_SLOW | FESTATE_ZIGZAG_SLOW)
  73. #define FESTATE_LOSTLOCK (FESTATE_ZIGZAG_FAST | FESTATE_ZIGZAG_SLOW)
  74. #define FE_ALGO_HW 1
  75. /*
  76. * FESTATE_IDLE. No tuning parameters have been supplied and the loop is idling.
  77. * FESTATE_RETUNE. Parameters have been supplied, but we have not yet performed the first tune.
  78. * FESTATE_TUNING_FAST. Tuning parameters have been supplied and fast zigzag scan is in progress.
  79. * FESTATE_TUNING_SLOW. Tuning parameters have been supplied. Fast zigzag failed, so we're trying again, but slower.
  80. * FESTATE_TUNED. The frontend has successfully locked on.
  81. * FESTATE_ZIGZAG_FAST. The lock has been lost, and a fast zigzag has been initiated to try and regain it.
  82. * FESTATE_ZIGZAG_SLOW. The lock has been lost. Fast zigzag has been failed, so we're trying again, but slower.
  83. * FESTATE_DISEQC. A DISEQC command has just been issued.
  84. * FESTATE_WAITFORLOCK. When we're waiting for a lock.
  85. * FESTATE_SEARCHING_FAST. When we're searching for a signal using a fast zigzag scan.
  86. * FESTATE_SEARCHING_SLOW. When we're searching for a signal using a slow zigzag scan.
  87. * FESTATE_LOSTLOCK. When the lock has been lost, and we're searching it again.
  88. */
  89. static DEFINE_MUTEX(frontend_mutex);
  90. struct dvb_frontend_private {
  91. /* thread/frontend values */
  92. struct dvb_device *dvbdev;
  93. struct dvb_frontend_parameters parameters;
  94. struct dvb_fe_events events;
  95. struct semaphore sem;
  96. struct list_head list_head;
  97. wait_queue_head_t wait_queue;
  98. struct task_struct *thread;
  99. unsigned long release_jiffies;
  100. unsigned int exit;
  101. unsigned int wakeup;
  102. fe_status_t status;
  103. unsigned long tune_mode_flags;
  104. unsigned int delay;
  105. unsigned int reinitialise;
  106. int tone;
  107. int voltage;
  108. /* swzigzag values */
  109. unsigned int state;
  110. unsigned int bending;
  111. int lnb_drift;
  112. unsigned int inversion;
  113. unsigned int auto_step;
  114. unsigned int auto_sub_step;
  115. unsigned int started_auto_step;
  116. unsigned int min_delay;
  117. unsigned int max_drift;
  118. unsigned int step_size;
  119. int quality;
  120. unsigned int check_wrapped;
  121. enum dvbfe_search algo_status;
  122. };
  123. static void dvb_frontend_wakeup(struct dvb_frontend *fe);
  124. static void dvb_frontend_add_event(struct dvb_frontend *fe, fe_status_t status)
  125. {
  126. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  127. struct dvb_fe_events *events = &fepriv->events;
  128. struct dvb_frontend_event *e;
  129. int wp;
  130. dprintk ("%s\n", __func__);
  131. if (mutex_lock_interruptible (&events->mtx))
  132. return;
  133. wp = (events->eventw + 1) % MAX_EVENT;
  134. if (wp == events->eventr) {
  135. events->overflow = 1;
  136. events->eventr = (events->eventr + 1) % MAX_EVENT;
  137. }
  138. e = &events->events[events->eventw];
  139. memcpy (&e->parameters, &fepriv->parameters,
  140. sizeof (struct dvb_frontend_parameters));
  141. if (status & FE_HAS_LOCK)
  142. if (fe->ops.get_frontend)
  143. fe->ops.get_frontend(fe, &e->parameters);
  144. events->eventw = wp;
  145. mutex_unlock(&events->mtx);
  146. e->status = status;
  147. wake_up_interruptible (&events->wait_queue);
  148. }
  149. static int dvb_frontend_get_event(struct dvb_frontend *fe,
  150. struct dvb_frontend_event *event, int flags)
  151. {
  152. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  153. struct dvb_fe_events *events = &fepriv->events;
  154. dprintk ("%s\n", __func__);
  155. if (events->overflow) {
  156. events->overflow = 0;
  157. return -EOVERFLOW;
  158. }
  159. if (events->eventw == events->eventr) {
  160. int ret;
  161. if (flags & O_NONBLOCK)
  162. return -EWOULDBLOCK;
  163. up(&fepriv->sem);
  164. ret = wait_event_interruptible (events->wait_queue,
  165. events->eventw != events->eventr);
  166. if (down_interruptible (&fepriv->sem))
  167. return -ERESTARTSYS;
  168. if (ret < 0)
  169. return ret;
  170. }
  171. if (mutex_lock_interruptible (&events->mtx))
  172. return -ERESTARTSYS;
  173. memcpy (event, &events->events[events->eventr],
  174. sizeof(struct dvb_frontend_event));
  175. events->eventr = (events->eventr + 1) % MAX_EVENT;
  176. mutex_unlock(&events->mtx);
  177. return 0;
  178. }
  179. static void dvb_frontend_init(struct dvb_frontend *fe)
  180. {
  181. dprintk ("DVB: initialising adapter %i frontend %i (%s)...\n",
  182. fe->dvb->num,
  183. fe->id,
  184. fe->ops.info.name);
  185. if (fe->ops.init)
  186. fe->ops.init(fe);
  187. if (fe->ops.tuner_ops.init) {
  188. if (fe->ops.i2c_gate_ctrl)
  189. fe->ops.i2c_gate_ctrl(fe, 1);
  190. fe->ops.tuner_ops.init(fe);
  191. if (fe->ops.i2c_gate_ctrl)
  192. fe->ops.i2c_gate_ctrl(fe, 0);
  193. }
  194. }
  195. void dvb_frontend_reinitialise(struct dvb_frontend *fe)
  196. {
  197. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  198. fepriv->reinitialise = 1;
  199. dvb_frontend_wakeup(fe);
  200. }
  201. EXPORT_SYMBOL(dvb_frontend_reinitialise);
  202. static void dvb_frontend_swzigzag_update_delay(struct dvb_frontend_private *fepriv, int locked)
  203. {
  204. int q2;
  205. dprintk ("%s\n", __func__);
  206. if (locked)
  207. (fepriv->quality) = (fepriv->quality * 220 + 36*256) / 256;
  208. else
  209. (fepriv->quality) = (fepriv->quality * 220 + 0) / 256;
  210. q2 = fepriv->quality - 128;
  211. q2 *= q2;
  212. fepriv->delay = fepriv->min_delay + q2 * HZ / (128*128);
  213. }
  214. /**
  215. * Performs automatic twiddling of frontend parameters.
  216. *
  217. * @param fe The frontend concerned.
  218. * @param check_wrapped Checks if an iteration has completed. DO NOT SET ON THE FIRST ATTEMPT
  219. * @returns Number of complete iterations that have been performed.
  220. */
  221. static int dvb_frontend_swzigzag_autotune(struct dvb_frontend *fe, int check_wrapped)
  222. {
  223. int autoinversion;
  224. int ready = 0;
  225. int fe_set_err = 0;
  226. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  227. int original_inversion = fepriv->parameters.inversion;
  228. u32 original_frequency = fepriv->parameters.frequency;
  229. /* are we using autoinversion? */
  230. autoinversion = ((!(fe->ops.info.caps & FE_CAN_INVERSION_AUTO)) &&
  231. (fepriv->parameters.inversion == INVERSION_AUTO));
  232. /* setup parameters correctly */
  233. while(!ready) {
  234. /* calculate the lnb_drift */
  235. fepriv->lnb_drift = fepriv->auto_step * fepriv->step_size;
  236. /* wrap the auto_step if we've exceeded the maximum drift */
  237. if (fepriv->lnb_drift > fepriv->max_drift) {
  238. fepriv->auto_step = 0;
  239. fepriv->auto_sub_step = 0;
  240. fepriv->lnb_drift = 0;
  241. }
  242. /* perform inversion and +/- zigzag */
  243. switch(fepriv->auto_sub_step) {
  244. case 0:
  245. /* try with the current inversion and current drift setting */
  246. ready = 1;
  247. break;
  248. case 1:
  249. if (!autoinversion) break;
  250. fepriv->inversion = (fepriv->inversion == INVERSION_OFF) ? INVERSION_ON : INVERSION_OFF;
  251. ready = 1;
  252. break;
  253. case 2:
  254. if (fepriv->lnb_drift == 0) break;
  255. fepriv->lnb_drift = -fepriv->lnb_drift;
  256. ready = 1;
  257. break;
  258. case 3:
  259. if (fepriv->lnb_drift == 0) break;
  260. if (!autoinversion) break;
  261. fepriv->inversion = (fepriv->inversion == INVERSION_OFF) ? INVERSION_ON : INVERSION_OFF;
  262. fepriv->lnb_drift = -fepriv->lnb_drift;
  263. ready = 1;
  264. break;
  265. default:
  266. fepriv->auto_step++;
  267. fepriv->auto_sub_step = -1; /* it'll be incremented to 0 in a moment */
  268. break;
  269. }
  270. if (!ready) fepriv->auto_sub_step++;
  271. }
  272. /* if this attempt would hit where we started, indicate a complete
  273. * iteration has occurred */
  274. if ((fepriv->auto_step == fepriv->started_auto_step) &&
  275. (fepriv->auto_sub_step == 0) && check_wrapped) {
  276. return 1;
  277. }
  278. dprintk("%s: drift:%i inversion:%i auto_step:%i "
  279. "auto_sub_step:%i started_auto_step:%i\n",
  280. __func__, fepriv->lnb_drift, fepriv->inversion,
  281. fepriv->auto_step, fepriv->auto_sub_step, fepriv->started_auto_step);
  282. /* set the frontend itself */
  283. fepriv->parameters.frequency += fepriv->lnb_drift;
  284. if (autoinversion)
  285. fepriv->parameters.inversion = fepriv->inversion;
  286. if (fe->ops.set_frontend)
  287. fe_set_err = fe->ops.set_frontend(fe, &fepriv->parameters);
  288. if (fe_set_err < 0) {
  289. fepriv->state = FESTATE_ERROR;
  290. return fe_set_err;
  291. }
  292. fepriv->parameters.frequency = original_frequency;
  293. fepriv->parameters.inversion = original_inversion;
  294. fepriv->auto_sub_step++;
  295. return 0;
  296. }
  297. static void dvb_frontend_swzigzag(struct dvb_frontend *fe)
  298. {
  299. fe_status_t s = 0;
  300. int retval = 0;
  301. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  302. /* if we've got no parameters, just keep idling */
  303. if (fepriv->state & FESTATE_IDLE) {
  304. fepriv->delay = 3*HZ;
  305. fepriv->quality = 0;
  306. return;
  307. }
  308. /* in SCAN mode, we just set the frontend when asked and leave it alone */
  309. if (fepriv->tune_mode_flags & FE_TUNE_MODE_ONESHOT) {
  310. if (fepriv->state & FESTATE_RETUNE) {
  311. if (fe->ops.set_frontend)
  312. retval = fe->ops.set_frontend(fe,
  313. &fepriv->parameters);
  314. if (retval < 0)
  315. fepriv->state = FESTATE_ERROR;
  316. else
  317. fepriv->state = FESTATE_TUNED;
  318. }
  319. fepriv->delay = 3*HZ;
  320. fepriv->quality = 0;
  321. return;
  322. }
  323. /* get the frontend status */
  324. if (fepriv->state & FESTATE_RETUNE) {
  325. s = 0;
  326. } else {
  327. if (fe->ops.read_status)
  328. fe->ops.read_status(fe, &s);
  329. if (s != fepriv->status) {
  330. dvb_frontend_add_event(fe, s);
  331. fepriv->status = s;
  332. }
  333. }
  334. /* if we're not tuned, and we have a lock, move to the TUNED state */
  335. if ((fepriv->state & FESTATE_WAITFORLOCK) && (s & FE_HAS_LOCK)) {
  336. dvb_frontend_swzigzag_update_delay(fepriv, s & FE_HAS_LOCK);
  337. fepriv->state = FESTATE_TUNED;
  338. /* if we're tuned, then we have determined the correct inversion */
  339. if ((!(fe->ops.info.caps & FE_CAN_INVERSION_AUTO)) &&
  340. (fepriv->parameters.inversion == INVERSION_AUTO)) {
  341. fepriv->parameters.inversion = fepriv->inversion;
  342. }
  343. return;
  344. }
  345. /* if we are tuned already, check we're still locked */
  346. if (fepriv->state & FESTATE_TUNED) {
  347. dvb_frontend_swzigzag_update_delay(fepriv, s & FE_HAS_LOCK);
  348. /* we're tuned, and the lock is still good... */
  349. if (s & FE_HAS_LOCK) {
  350. return;
  351. } else { /* if we _WERE_ tuned, but now don't have a lock */
  352. fepriv->state = FESTATE_ZIGZAG_FAST;
  353. fepriv->started_auto_step = fepriv->auto_step;
  354. fepriv->check_wrapped = 0;
  355. }
  356. }
  357. /* don't actually do anything if we're in the LOSTLOCK state,
  358. * the frontend is set to FE_CAN_RECOVER, and the max_drift is 0 */
  359. if ((fepriv->state & FESTATE_LOSTLOCK) &&
  360. (fe->ops.info.caps & FE_CAN_RECOVER) && (fepriv->max_drift == 0)) {
  361. dvb_frontend_swzigzag_update_delay(fepriv, s & FE_HAS_LOCK);
  362. return;
  363. }
  364. /* don't do anything if we're in the DISEQC state, since this
  365. * might be someone with a motorized dish controlled by DISEQC.
  366. * If its actually a re-tune, there will be a SET_FRONTEND soon enough. */
  367. if (fepriv->state & FESTATE_DISEQC) {
  368. dvb_frontend_swzigzag_update_delay(fepriv, s & FE_HAS_LOCK);
  369. return;
  370. }
  371. /* if we're in the RETUNE state, set everything up for a brand
  372. * new scan, keeping the current inversion setting, as the next
  373. * tune is _very_ likely to require the same */
  374. if (fepriv->state & FESTATE_RETUNE) {
  375. fepriv->lnb_drift = 0;
  376. fepriv->auto_step = 0;
  377. fepriv->auto_sub_step = 0;
  378. fepriv->started_auto_step = 0;
  379. fepriv->check_wrapped = 0;
  380. }
  381. /* fast zigzag. */
  382. if ((fepriv->state & FESTATE_SEARCHING_FAST) || (fepriv->state & FESTATE_RETUNE)) {
  383. fepriv->delay = fepriv->min_delay;
  384. /* peform a tune */
  385. retval = dvb_frontend_swzigzag_autotune(fe,
  386. fepriv->check_wrapped);
  387. if (retval < 0) {
  388. return;
  389. } else if (retval) {
  390. /* OK, if we've run out of trials at the fast speed.
  391. * Drop back to slow for the _next_ attempt */
  392. fepriv->state = FESTATE_SEARCHING_SLOW;
  393. fepriv->started_auto_step = fepriv->auto_step;
  394. return;
  395. }
  396. fepriv->check_wrapped = 1;
  397. /* if we've just retuned, enter the ZIGZAG_FAST state.
  398. * This ensures we cannot return from an
  399. * FE_SET_FRONTEND ioctl before the first frontend tune
  400. * occurs */
  401. if (fepriv->state & FESTATE_RETUNE) {
  402. fepriv->state = FESTATE_TUNING_FAST;
  403. }
  404. }
  405. /* slow zigzag */
  406. if (fepriv->state & FESTATE_SEARCHING_SLOW) {
  407. dvb_frontend_swzigzag_update_delay(fepriv, s & FE_HAS_LOCK);
  408. /* Note: don't bother checking for wrapping; we stay in this
  409. * state until we get a lock */
  410. dvb_frontend_swzigzag_autotune(fe, 0);
  411. }
  412. }
  413. static int dvb_frontend_is_exiting(struct dvb_frontend *fe)
  414. {
  415. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  416. if (fepriv->exit)
  417. return 1;
  418. if (fepriv->dvbdev->writers == 1)
  419. if (time_after(jiffies, fepriv->release_jiffies +
  420. dvb_shutdown_timeout * HZ))
  421. return 1;
  422. return 0;
  423. }
  424. static int dvb_frontend_should_wakeup(struct dvb_frontend *fe)
  425. {
  426. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  427. if (fepriv->wakeup) {
  428. fepriv->wakeup = 0;
  429. return 1;
  430. }
  431. return dvb_frontend_is_exiting(fe);
  432. }
  433. static void dvb_frontend_wakeup(struct dvb_frontend *fe)
  434. {
  435. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  436. fepriv->wakeup = 1;
  437. wake_up_interruptible(&fepriv->wait_queue);
  438. }
  439. static int dvb_frontend_thread(void *data)
  440. {
  441. struct dvb_frontend *fe = data;
  442. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  443. unsigned long timeout;
  444. fe_status_t s;
  445. enum dvbfe_algo algo;
  446. struct dvb_frontend_parameters *params;
  447. dprintk("%s\n", __func__);
  448. fepriv->check_wrapped = 0;
  449. fepriv->quality = 0;
  450. fepriv->delay = 3*HZ;
  451. fepriv->status = 0;
  452. fepriv->wakeup = 0;
  453. fepriv->reinitialise = 0;
  454. dvb_frontend_init(fe);
  455. set_freezable();
  456. while (1) {
  457. up(&fepriv->sem); /* is locked when we enter the thread... */
  458. restart:
  459. timeout = wait_event_interruptible_timeout(fepriv->wait_queue,
  460. dvb_frontend_should_wakeup(fe) || kthread_should_stop()
  461. || freezing(current),
  462. fepriv->delay);
  463. if (kthread_should_stop() || dvb_frontend_is_exiting(fe)) {
  464. /* got signal or quitting */
  465. fepriv->exit = 1;
  466. break;
  467. }
  468. if (try_to_freeze())
  469. goto restart;
  470. if (down_interruptible(&fepriv->sem))
  471. break;
  472. if (fepriv->reinitialise) {
  473. dvb_frontend_init(fe);
  474. if (fepriv->tone != -1) {
  475. fe->ops.set_tone(fe, fepriv->tone);
  476. }
  477. if (fepriv->voltage != -1) {
  478. fe->ops.set_voltage(fe, fepriv->voltage);
  479. }
  480. fepriv->reinitialise = 0;
  481. }
  482. /* do an iteration of the tuning loop */
  483. if (fe->ops.get_frontend_algo) {
  484. algo = fe->ops.get_frontend_algo(fe);
  485. switch (algo) {
  486. case DVBFE_ALGO_HW:
  487. dprintk("%s: Frontend ALGO = DVBFE_ALGO_HW\n", __func__);
  488. params = NULL; /* have we been asked to RETUNE ? */
  489. if (fepriv->state & FESTATE_RETUNE) {
  490. dprintk("%s: Retune requested, FESTATE_RETUNE\n", __func__);
  491. params = &fepriv->parameters;
  492. fepriv->state = FESTATE_TUNED;
  493. }
  494. if (fe->ops.tune)
  495. fe->ops.tune(fe, params, fepriv->tune_mode_flags, &fepriv->delay, &s);
  496. if (s != fepriv->status && !(fepriv->tune_mode_flags & FE_TUNE_MODE_ONESHOT)) {
  497. dprintk("%s: state changed, adding current state\n", __func__);
  498. dvb_frontend_add_event(fe, s);
  499. fepriv->status = s;
  500. }
  501. break;
  502. case DVBFE_ALGO_SW:
  503. dprintk("%s: Frontend ALGO = DVBFE_ALGO_SW\n", __func__);
  504. dvb_frontend_swzigzag(fe);
  505. break;
  506. case DVBFE_ALGO_CUSTOM:
  507. params = NULL; /* have we been asked to RETUNE ? */
  508. dprintk("%s: Frontend ALGO = DVBFE_ALGO_CUSTOM, state=%d\n", __func__, fepriv->state);
  509. if (fepriv->state & FESTATE_RETUNE) {
  510. dprintk("%s: Retune requested, FESTAT_RETUNE\n", __func__);
  511. params = &fepriv->parameters;
  512. fepriv->state = FESTATE_TUNED;
  513. }
  514. /* Case where we are going to search for a carrier
  515. * User asked us to retune again for some reason, possibly
  516. * requesting a search with a new set of parameters
  517. */
  518. if (fepriv->algo_status & DVBFE_ALGO_SEARCH_AGAIN) {
  519. if (fe->ops.search) {
  520. fepriv->algo_status = fe->ops.search(fe, &fepriv->parameters);
  521. /* We did do a search as was requested, the flags are
  522. * now unset as well and has the flags wrt to search.
  523. */
  524. } else {
  525. fepriv->algo_status &= ~DVBFE_ALGO_SEARCH_AGAIN;
  526. }
  527. }
  528. /* Track the carrier if the search was successful */
  529. if (fepriv->algo_status == DVBFE_ALGO_SEARCH_SUCCESS) {
  530. if (fe->ops.track)
  531. fe->ops.track(fe, &fepriv->parameters);
  532. } else {
  533. fepriv->algo_status |= DVBFE_ALGO_SEARCH_AGAIN;
  534. fepriv->delay = HZ / 2;
  535. }
  536. fe->ops.read_status(fe, &s);
  537. if (s != fepriv->status) {
  538. dvb_frontend_add_event(fe, s); /* update event list */
  539. fepriv->status = s;
  540. if (!(s & FE_HAS_LOCK)) {
  541. fepriv->delay = HZ / 10;
  542. fepriv->algo_status |= DVBFE_ALGO_SEARCH_AGAIN;
  543. } else {
  544. fepriv->delay = 60 * HZ;
  545. }
  546. }
  547. break;
  548. default:
  549. dprintk("%s: UNDEFINED ALGO !\n", __func__);
  550. break;
  551. }
  552. } else {
  553. dvb_frontend_swzigzag(fe);
  554. }
  555. }
  556. if (dvb_powerdown_on_sleep) {
  557. if (fe->ops.set_voltage)
  558. fe->ops.set_voltage(fe, SEC_VOLTAGE_OFF);
  559. if (fe->ops.tuner_ops.sleep) {
  560. if (fe->ops.i2c_gate_ctrl)
  561. fe->ops.i2c_gate_ctrl(fe, 1);
  562. fe->ops.tuner_ops.sleep(fe);
  563. if (fe->ops.i2c_gate_ctrl)
  564. fe->ops.i2c_gate_ctrl(fe, 0);
  565. }
  566. if (fe->ops.sleep)
  567. fe->ops.sleep(fe);
  568. }
  569. fepriv->thread = NULL;
  570. fepriv->exit = 0;
  571. mb();
  572. dvb_frontend_wakeup(fe);
  573. return 0;
  574. }
  575. static void dvb_frontend_stop(struct dvb_frontend *fe)
  576. {
  577. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  578. dprintk ("%s\n", __func__);
  579. fepriv->exit = 1;
  580. mb();
  581. if (!fepriv->thread)
  582. return;
  583. kthread_stop(fepriv->thread);
  584. init_MUTEX (&fepriv->sem);
  585. fepriv->state = FESTATE_IDLE;
  586. /* paranoia check in case a signal arrived */
  587. if (fepriv->thread)
  588. printk("dvb_frontend_stop: warning: thread %p won't exit\n",
  589. fepriv->thread);
  590. }
  591. s32 timeval_usec_diff(struct timeval lasttime, struct timeval curtime)
  592. {
  593. return ((curtime.tv_usec < lasttime.tv_usec) ?
  594. 1000000 - lasttime.tv_usec + curtime.tv_usec :
  595. curtime.tv_usec - lasttime.tv_usec);
  596. }
  597. EXPORT_SYMBOL(timeval_usec_diff);
  598. static inline void timeval_usec_add(struct timeval *curtime, u32 add_usec)
  599. {
  600. curtime->tv_usec += add_usec;
  601. if (curtime->tv_usec >= 1000000) {
  602. curtime->tv_usec -= 1000000;
  603. curtime->tv_sec++;
  604. }
  605. }
  606. /*
  607. * Sleep until gettimeofday() > waketime + add_usec
  608. * This needs to be as precise as possible, but as the delay is
  609. * usually between 2ms and 32ms, it is done using a scheduled msleep
  610. * followed by usleep (normally a busy-wait loop) for the remainder
  611. */
  612. void dvb_frontend_sleep_until(struct timeval *waketime, u32 add_usec)
  613. {
  614. struct timeval lasttime;
  615. s32 delta, newdelta;
  616. timeval_usec_add(waketime, add_usec);
  617. do_gettimeofday(&lasttime);
  618. delta = timeval_usec_diff(lasttime, *waketime);
  619. if (delta > 2500) {
  620. msleep((delta - 1500) / 1000);
  621. do_gettimeofday(&lasttime);
  622. newdelta = timeval_usec_diff(lasttime, *waketime);
  623. delta = (newdelta > delta) ? 0 : newdelta;
  624. }
  625. if (delta > 0)
  626. udelay(delta);
  627. }
  628. EXPORT_SYMBOL(dvb_frontend_sleep_until);
  629. static int dvb_frontend_start(struct dvb_frontend *fe)
  630. {
  631. int ret;
  632. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  633. struct task_struct *fe_thread;
  634. dprintk ("%s\n", __func__);
  635. if (fepriv->thread) {
  636. if (!fepriv->exit)
  637. return 0;
  638. else
  639. dvb_frontend_stop (fe);
  640. }
  641. if (signal_pending(current))
  642. return -EINTR;
  643. if (down_interruptible (&fepriv->sem))
  644. return -EINTR;
  645. fepriv->state = FESTATE_IDLE;
  646. fepriv->exit = 0;
  647. fepriv->thread = NULL;
  648. mb();
  649. fe_thread = kthread_run(dvb_frontend_thread, fe,
  650. "kdvb-ad-%i-fe-%i", fe->dvb->num,fe->id);
  651. if (IS_ERR(fe_thread)) {
  652. ret = PTR_ERR(fe_thread);
  653. printk("dvb_frontend_start: failed to start kthread (%d)\n", ret);
  654. up(&fepriv->sem);
  655. return ret;
  656. }
  657. fepriv->thread = fe_thread;
  658. return 0;
  659. }
  660. static void dvb_frontend_get_frequeny_limits(struct dvb_frontend *fe,
  661. u32 *freq_min, u32 *freq_max)
  662. {
  663. *freq_min = max(fe->ops.info.frequency_min, fe->ops.tuner_ops.info.frequency_min);
  664. if (fe->ops.info.frequency_max == 0)
  665. *freq_max = fe->ops.tuner_ops.info.frequency_max;
  666. else if (fe->ops.tuner_ops.info.frequency_max == 0)
  667. *freq_max = fe->ops.info.frequency_max;
  668. else
  669. *freq_max = min(fe->ops.info.frequency_max, fe->ops.tuner_ops.info.frequency_max);
  670. if (*freq_min == 0 || *freq_max == 0)
  671. printk(KERN_WARNING "DVB: adapter %i frontend %u frequency limits undefined - fix the driver\n",
  672. fe->dvb->num,fe->id);
  673. }
  674. static int dvb_frontend_check_parameters(struct dvb_frontend *fe,
  675. struct dvb_frontend_parameters *parms)
  676. {
  677. u32 freq_min;
  678. u32 freq_max;
  679. /* range check: frequency */
  680. dvb_frontend_get_frequeny_limits(fe, &freq_min, &freq_max);
  681. if ((freq_min && parms->frequency < freq_min) ||
  682. (freq_max && parms->frequency > freq_max)) {
  683. printk(KERN_WARNING "DVB: adapter %i frontend %i frequency %u out of range (%u..%u)\n",
  684. fe->dvb->num, fe->id, parms->frequency, freq_min, freq_max);
  685. return -EINVAL;
  686. }
  687. /* range check: symbol rate */
  688. if (fe->ops.info.type == FE_QPSK) {
  689. if ((fe->ops.info.symbol_rate_min &&
  690. parms->u.qpsk.symbol_rate < fe->ops.info.symbol_rate_min) ||
  691. (fe->ops.info.symbol_rate_max &&
  692. parms->u.qpsk.symbol_rate > fe->ops.info.symbol_rate_max)) {
  693. printk(KERN_WARNING "DVB: adapter %i frontend %i symbol rate %u out of range (%u..%u)\n",
  694. fe->dvb->num, fe->id, parms->u.qpsk.symbol_rate,
  695. fe->ops.info.symbol_rate_min, fe->ops.info.symbol_rate_max);
  696. return -EINVAL;
  697. }
  698. } else if (fe->ops.info.type == FE_QAM) {
  699. if ((fe->ops.info.symbol_rate_min &&
  700. parms->u.qam.symbol_rate < fe->ops.info.symbol_rate_min) ||
  701. (fe->ops.info.symbol_rate_max &&
  702. parms->u.qam.symbol_rate > fe->ops.info.symbol_rate_max)) {
  703. printk(KERN_WARNING "DVB: adapter %i frontend %i symbol rate %u out of range (%u..%u)\n",
  704. fe->dvb->num, fe->id, parms->u.qam.symbol_rate,
  705. fe->ops.info.symbol_rate_min, fe->ops.info.symbol_rate_max);
  706. return -EINVAL;
  707. }
  708. }
  709. /* check for supported modulation */
  710. if (fe->ops.info.type == FE_QAM &&
  711. (parms->u.qam.modulation > QAM_AUTO ||
  712. !((1 << (parms->u.qam.modulation + 10)) & fe->ops.info.caps))) {
  713. printk(KERN_WARNING "DVB: adapter %i frontend %i modulation %u not supported\n",
  714. fe->dvb->num, fe->id, parms->u.qam.modulation);
  715. return -EINVAL;
  716. }
  717. return 0;
  718. }
  719. static int dvb_frontend_clear_cache(struct dvb_frontend *fe)
  720. {
  721. int i;
  722. memset(&(fe->dtv_property_cache), 0,
  723. sizeof(struct dtv_frontend_properties));
  724. fe->dtv_property_cache.state = DTV_CLEAR;
  725. fe->dtv_property_cache.delivery_system = SYS_UNDEFINED;
  726. fe->dtv_property_cache.inversion = INVERSION_AUTO;
  727. fe->dtv_property_cache.fec_inner = FEC_AUTO;
  728. fe->dtv_property_cache.transmission_mode = TRANSMISSION_MODE_AUTO;
  729. fe->dtv_property_cache.bandwidth_hz = BANDWIDTH_AUTO;
  730. fe->dtv_property_cache.guard_interval = GUARD_INTERVAL_AUTO;
  731. fe->dtv_property_cache.hierarchy = HIERARCHY_AUTO;
  732. fe->dtv_property_cache.symbol_rate = QAM_AUTO;
  733. fe->dtv_property_cache.code_rate_HP = FEC_AUTO;
  734. fe->dtv_property_cache.code_rate_LP = FEC_AUTO;
  735. fe->dtv_property_cache.isdbt_partial_reception = -1;
  736. fe->dtv_property_cache.isdbt_sb_mode = -1;
  737. fe->dtv_property_cache.isdbt_sb_subchannel = -1;
  738. fe->dtv_property_cache.isdbt_sb_segment_idx = -1;
  739. fe->dtv_property_cache.isdbt_sb_segment_count = -1;
  740. fe->dtv_property_cache.isdbt_layer_enabled = 0x7;
  741. for (i = 0; i < 3; i++) {
  742. fe->dtv_property_cache.layer[i].fec = FEC_AUTO;
  743. fe->dtv_property_cache.layer[i].modulation = QAM_AUTO;
  744. fe->dtv_property_cache.layer[i].interleaving = -1;
  745. fe->dtv_property_cache.layer[i].segment_count = -1;
  746. }
  747. return 0;
  748. }
  749. #define _DTV_CMD(n, s, b) \
  750. [n] = { \
  751. .name = #n, \
  752. .cmd = n, \
  753. .set = s,\
  754. .buffer = b \
  755. }
  756. static struct dtv_cmds_h dtv_cmds[] = {
  757. [DTV_TUNE] = {
  758. .name = "DTV_TUNE",
  759. .cmd = DTV_TUNE,
  760. .set = 1,
  761. },
  762. [DTV_CLEAR] = {
  763. .name = "DTV_CLEAR",
  764. .cmd = DTV_CLEAR,
  765. .set = 1,
  766. },
  767. /* Set */
  768. [DTV_FREQUENCY] = {
  769. .name = "DTV_FREQUENCY",
  770. .cmd = DTV_FREQUENCY,
  771. .set = 1,
  772. },
  773. [DTV_BANDWIDTH_HZ] = {
  774. .name = "DTV_BANDWIDTH_HZ",
  775. .cmd = DTV_BANDWIDTH_HZ,
  776. .set = 1,
  777. },
  778. [DTV_MODULATION] = {
  779. .name = "DTV_MODULATION",
  780. .cmd = DTV_MODULATION,
  781. .set = 1,
  782. },
  783. [DTV_INVERSION] = {
  784. .name = "DTV_INVERSION",
  785. .cmd = DTV_INVERSION,
  786. .set = 1,
  787. },
  788. [DTV_DISEQC_MASTER] = {
  789. .name = "DTV_DISEQC_MASTER",
  790. .cmd = DTV_DISEQC_MASTER,
  791. .set = 1,
  792. .buffer = 1,
  793. },
  794. [DTV_SYMBOL_RATE] = {
  795. .name = "DTV_SYMBOL_RATE",
  796. .cmd = DTV_SYMBOL_RATE,
  797. .set = 1,
  798. },
  799. [DTV_INNER_FEC] = {
  800. .name = "DTV_INNER_FEC",
  801. .cmd = DTV_INNER_FEC,
  802. .set = 1,
  803. },
  804. [DTV_VOLTAGE] = {
  805. .name = "DTV_VOLTAGE",
  806. .cmd = DTV_VOLTAGE,
  807. .set = 1,
  808. },
  809. [DTV_TONE] = {
  810. .name = "DTV_TONE",
  811. .cmd = DTV_TONE,
  812. .set = 1,
  813. },
  814. [DTV_PILOT] = {
  815. .name = "DTV_PILOT",
  816. .cmd = DTV_PILOT,
  817. .set = 1,
  818. },
  819. [DTV_ROLLOFF] = {
  820. .name = "DTV_ROLLOFF",
  821. .cmd = DTV_ROLLOFF,
  822. .set = 1,
  823. },
  824. [DTV_DELIVERY_SYSTEM] = {
  825. .name = "DTV_DELIVERY_SYSTEM",
  826. .cmd = DTV_DELIVERY_SYSTEM,
  827. .set = 1,
  828. },
  829. [DTV_HIERARCHY] = {
  830. .name = "DTV_HIERARCHY",
  831. .cmd = DTV_HIERARCHY,
  832. .set = 1,
  833. },
  834. [DTV_CODE_RATE_HP] = {
  835. .name = "DTV_CODE_RATE_HP",
  836. .cmd = DTV_CODE_RATE_HP,
  837. .set = 1,
  838. },
  839. [DTV_CODE_RATE_LP] = {
  840. .name = "DTV_CODE_RATE_LP",
  841. .cmd = DTV_CODE_RATE_LP,
  842. .set = 1,
  843. },
  844. [DTV_GUARD_INTERVAL] = {
  845. .name = "DTV_GUARD_INTERVAL",
  846. .cmd = DTV_GUARD_INTERVAL,
  847. .set = 1,
  848. },
  849. [DTV_TRANSMISSION_MODE] = {
  850. .name = "DTV_TRANSMISSION_MODE",
  851. .cmd = DTV_TRANSMISSION_MODE,
  852. .set = 1,
  853. },
  854. _DTV_CMD(DTV_ISDBT_PARTIAL_RECEPTION, 1, 0),
  855. _DTV_CMD(DTV_ISDBT_SOUND_BROADCASTING, 1, 0),
  856. _DTV_CMD(DTV_ISDBT_SB_SUBCHANNEL_ID, 1, 0),
  857. _DTV_CMD(DTV_ISDBT_SB_SEGMENT_IDX, 1, 0),
  858. _DTV_CMD(DTV_ISDBT_SB_SEGMENT_COUNT, 1, 0),
  859. _DTV_CMD(DTV_ISDBT_LAYER_ENABLED, 1, 0),
  860. _DTV_CMD(DTV_ISDBT_LAYERA_FEC, 1, 0),
  861. _DTV_CMD(DTV_ISDBT_LAYERA_MODULATION, 1, 0),
  862. _DTV_CMD(DTV_ISDBT_LAYERA_SEGMENT_COUNT, 1, 0),
  863. _DTV_CMD(DTV_ISDBT_LAYERA_TIME_INTERLEAVING, 1, 0),
  864. _DTV_CMD(DTV_ISDBT_LAYERB_FEC, 1, 0),
  865. _DTV_CMD(DTV_ISDBT_LAYERB_MODULATION, 1, 0),
  866. _DTV_CMD(DTV_ISDBT_LAYERB_SEGMENT_COUNT, 1, 0),
  867. _DTV_CMD(DTV_ISDBT_LAYERB_TIME_INTERLEAVING, 1, 0),
  868. _DTV_CMD(DTV_ISDBT_LAYERC_FEC, 1, 0),
  869. _DTV_CMD(DTV_ISDBT_LAYERC_MODULATION, 1, 0),
  870. _DTV_CMD(DTV_ISDBT_LAYERC_SEGMENT_COUNT, 1, 0),
  871. _DTV_CMD(DTV_ISDBT_LAYERC_TIME_INTERLEAVING, 1, 0),
  872. _DTV_CMD(DTV_ISDBT_PARTIAL_RECEPTION, 0, 0),
  873. _DTV_CMD(DTV_ISDBT_SOUND_BROADCASTING, 0, 0),
  874. _DTV_CMD(DTV_ISDBT_SB_SUBCHANNEL_ID, 0, 0),
  875. _DTV_CMD(DTV_ISDBT_SB_SEGMENT_IDX, 0, 0),
  876. _DTV_CMD(DTV_ISDBT_SB_SEGMENT_COUNT, 0, 0),
  877. _DTV_CMD(DTV_ISDBT_LAYER_ENABLED, 0, 0),
  878. _DTV_CMD(DTV_ISDBT_LAYERA_FEC, 0, 0),
  879. _DTV_CMD(DTV_ISDBT_LAYERA_MODULATION, 0, 0),
  880. _DTV_CMD(DTV_ISDBT_LAYERA_SEGMENT_COUNT, 0, 0),
  881. _DTV_CMD(DTV_ISDBT_LAYERA_TIME_INTERLEAVING, 0, 0),
  882. _DTV_CMD(DTV_ISDBT_LAYERB_FEC, 0, 0),
  883. _DTV_CMD(DTV_ISDBT_LAYERB_MODULATION, 0, 0),
  884. _DTV_CMD(DTV_ISDBT_LAYERB_SEGMENT_COUNT, 0, 0),
  885. _DTV_CMD(DTV_ISDBT_LAYERB_TIME_INTERLEAVING, 0, 0),
  886. _DTV_CMD(DTV_ISDBT_LAYERC_FEC, 0, 0),
  887. _DTV_CMD(DTV_ISDBT_LAYERC_MODULATION, 0, 0),
  888. _DTV_CMD(DTV_ISDBT_LAYERC_SEGMENT_COUNT, 0, 0),
  889. _DTV_CMD(DTV_ISDBT_LAYERC_TIME_INTERLEAVING, 0, 0),
  890. _DTV_CMD(DTV_ISDBS_TS_ID, 1, 0),
  891. /* Get */
  892. [DTV_DISEQC_SLAVE_REPLY] = {
  893. .name = "DTV_DISEQC_SLAVE_REPLY",
  894. .cmd = DTV_DISEQC_SLAVE_REPLY,
  895. .set = 0,
  896. .buffer = 1,
  897. },
  898. [DTV_API_VERSION] = {
  899. .name = "DTV_API_VERSION",
  900. .cmd = DTV_API_VERSION,
  901. .set = 0,
  902. },
  903. [DTV_CODE_RATE_HP] = {
  904. .name = "DTV_CODE_RATE_HP",
  905. .cmd = DTV_CODE_RATE_HP,
  906. .set = 0,
  907. },
  908. [DTV_CODE_RATE_LP] = {
  909. .name = "DTV_CODE_RATE_LP",
  910. .cmd = DTV_CODE_RATE_LP,
  911. .set = 0,
  912. },
  913. [DTV_GUARD_INTERVAL] = {
  914. .name = "DTV_GUARD_INTERVAL",
  915. .cmd = DTV_GUARD_INTERVAL,
  916. .set = 0,
  917. },
  918. [DTV_TRANSMISSION_MODE] = {
  919. .name = "DTV_TRANSMISSION_MODE",
  920. .cmd = DTV_TRANSMISSION_MODE,
  921. .set = 0,
  922. },
  923. [DTV_HIERARCHY] = {
  924. .name = "DTV_HIERARCHY",
  925. .cmd = DTV_HIERARCHY,
  926. .set = 0,
  927. },
  928. };
  929. static void dtv_property_dump(struct dtv_property *tvp)
  930. {
  931. int i;
  932. if (tvp->cmd <= 0 || tvp->cmd > DTV_MAX_COMMAND) {
  933. printk(KERN_WARNING "%s: tvp.cmd = 0x%08x undefined\n",
  934. __func__, tvp->cmd);
  935. return;
  936. }
  937. dprintk("%s() tvp.cmd = 0x%08x (%s)\n"
  938. ,__func__
  939. ,tvp->cmd
  940. ,dtv_cmds[ tvp->cmd ].name);
  941. if(dtv_cmds[ tvp->cmd ].buffer) {
  942. dprintk("%s() tvp.u.buffer.len = 0x%02x\n"
  943. ,__func__
  944. ,tvp->u.buffer.len);
  945. for(i = 0; i < tvp->u.buffer.len; i++)
  946. dprintk("%s() tvp.u.buffer.data[0x%02x] = 0x%02x\n"
  947. ,__func__
  948. ,i
  949. ,tvp->u.buffer.data[i]);
  950. } else
  951. dprintk("%s() tvp.u.data = 0x%08x\n", __func__, tvp->u.data);
  952. }
  953. static int is_legacy_delivery_system(fe_delivery_system_t s)
  954. {
  955. if((s == SYS_UNDEFINED) || (s == SYS_DVBC_ANNEX_AC) ||
  956. (s == SYS_DVBC_ANNEX_B) || (s == SYS_DVBT) || (s == SYS_DVBS) ||
  957. (s == SYS_ATSC))
  958. return 1;
  959. return 0;
  960. }
  961. /* Synchronise the legacy tuning parameters into the cache, so that demodulator
  962. * drivers can use a single set_frontend tuning function, regardless of whether
  963. * it's being used for the legacy or new API, reducing code and complexity.
  964. */
  965. static void dtv_property_cache_sync(struct dvb_frontend *fe,
  966. struct dvb_frontend_parameters *p)
  967. {
  968. struct dtv_frontend_properties *c = &fe->dtv_property_cache;
  969. c->frequency = p->frequency;
  970. c->inversion = p->inversion;
  971. switch (fe->ops.info.type) {
  972. case FE_QPSK:
  973. c->modulation = QPSK; /* implied for DVB-S in legacy API */
  974. c->rolloff = ROLLOFF_35;/* implied for DVB-S */
  975. c->symbol_rate = p->u.qpsk.symbol_rate;
  976. c->fec_inner = p->u.qpsk.fec_inner;
  977. c->delivery_system = SYS_DVBS;
  978. break;
  979. case FE_QAM:
  980. c->symbol_rate = p->u.qam.symbol_rate;
  981. c->fec_inner = p->u.qam.fec_inner;
  982. c->modulation = p->u.qam.modulation;
  983. c->delivery_system = SYS_DVBC_ANNEX_AC;
  984. break;
  985. case FE_OFDM:
  986. if (p->u.ofdm.bandwidth == BANDWIDTH_6_MHZ)
  987. c->bandwidth_hz = 6000000;
  988. else if (p->u.ofdm.bandwidth == BANDWIDTH_7_MHZ)
  989. c->bandwidth_hz = 7000000;
  990. else if (p->u.ofdm.bandwidth == BANDWIDTH_8_MHZ)
  991. c->bandwidth_hz = 8000000;
  992. else
  993. /* Including BANDWIDTH_AUTO */
  994. c->bandwidth_hz = 0;
  995. c->code_rate_HP = p->u.ofdm.code_rate_HP;
  996. c->code_rate_LP = p->u.ofdm.code_rate_LP;
  997. c->modulation = p->u.ofdm.constellation;
  998. c->transmission_mode = p->u.ofdm.transmission_mode;
  999. c->guard_interval = p->u.ofdm.guard_interval;
  1000. c->hierarchy = p->u.ofdm.hierarchy_information;
  1001. c->delivery_system = SYS_DVBT;
  1002. break;
  1003. case FE_ATSC:
  1004. c->modulation = p->u.vsb.modulation;
  1005. if ((c->modulation == VSB_8) || (c->modulation == VSB_16))
  1006. c->delivery_system = SYS_ATSC;
  1007. else
  1008. c->delivery_system = SYS_DVBC_ANNEX_B;
  1009. break;
  1010. }
  1011. }
  1012. /* Ensure the cached values are set correctly in the frontend
  1013. * legacy tuning structures, for the advanced tuning API.
  1014. */
  1015. static void dtv_property_legacy_params_sync(struct dvb_frontend *fe)
  1016. {
  1017. struct dtv_frontend_properties *c = &fe->dtv_property_cache;
  1018. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  1019. struct dvb_frontend_parameters *p = &fepriv->parameters;
  1020. p->frequency = c->frequency;
  1021. p->inversion = c->inversion;
  1022. switch (fe->ops.info.type) {
  1023. case FE_QPSK:
  1024. dprintk("%s() Preparing QPSK req\n", __func__);
  1025. p->u.qpsk.symbol_rate = c->symbol_rate;
  1026. p->u.qpsk.fec_inner = c->fec_inner;
  1027. c->delivery_system = SYS_DVBS;
  1028. break;
  1029. case FE_QAM:
  1030. dprintk("%s() Preparing QAM req\n", __func__);
  1031. p->u.qam.symbol_rate = c->symbol_rate;
  1032. p->u.qam.fec_inner = c->fec_inner;
  1033. p->u.qam.modulation = c->modulation;
  1034. c->delivery_system = SYS_DVBC_ANNEX_AC;
  1035. break;
  1036. case FE_OFDM:
  1037. dprintk("%s() Preparing OFDM req\n", __func__);
  1038. if (c->bandwidth_hz == 6000000)
  1039. p->u.ofdm.bandwidth = BANDWIDTH_6_MHZ;
  1040. else if (c->bandwidth_hz == 7000000)
  1041. p->u.ofdm.bandwidth = BANDWIDTH_7_MHZ;
  1042. else if (c->bandwidth_hz == 8000000)
  1043. p->u.ofdm.bandwidth = BANDWIDTH_8_MHZ;
  1044. else
  1045. p->u.ofdm.bandwidth = BANDWIDTH_AUTO;
  1046. p->u.ofdm.code_rate_HP = c->code_rate_HP;
  1047. p->u.ofdm.code_rate_LP = c->code_rate_LP;
  1048. p->u.ofdm.constellation = c->modulation;
  1049. p->u.ofdm.transmission_mode = c->transmission_mode;
  1050. p->u.ofdm.guard_interval = c->guard_interval;
  1051. p->u.ofdm.hierarchy_information = c->hierarchy;
  1052. c->delivery_system = SYS_DVBT;
  1053. break;
  1054. case FE_ATSC:
  1055. dprintk("%s() Preparing VSB req\n", __func__);
  1056. p->u.vsb.modulation = c->modulation;
  1057. if ((c->modulation == VSB_8) || (c->modulation == VSB_16))
  1058. c->delivery_system = SYS_ATSC;
  1059. else
  1060. c->delivery_system = SYS_DVBC_ANNEX_B;
  1061. break;
  1062. }
  1063. }
  1064. /* Ensure the cached values are set correctly in the frontend
  1065. * legacy tuning structures, for the legacy tuning API.
  1066. */
  1067. static void dtv_property_adv_params_sync(struct dvb_frontend *fe)
  1068. {
  1069. struct dtv_frontend_properties *c = &fe->dtv_property_cache;
  1070. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  1071. struct dvb_frontend_parameters *p = &fepriv->parameters;
  1072. p->frequency = c->frequency;
  1073. p->inversion = c->inversion;
  1074. switch(c->modulation) {
  1075. case PSK_8:
  1076. case APSK_16:
  1077. case APSK_32:
  1078. case QPSK:
  1079. p->u.qpsk.symbol_rate = c->symbol_rate;
  1080. p->u.qpsk.fec_inner = c->fec_inner;
  1081. break;
  1082. default:
  1083. break;
  1084. }
  1085. if(c->delivery_system == SYS_ISDBT) {
  1086. /* Fake out a generic DVB-T request so we pass validation in the ioctl */
  1087. p->frequency = c->frequency;
  1088. p->inversion = c->inversion;
  1089. p->u.ofdm.constellation = QAM_AUTO;
  1090. p->u.ofdm.code_rate_HP = FEC_AUTO;
  1091. p->u.ofdm.code_rate_LP = FEC_AUTO;
  1092. p->u.ofdm.transmission_mode = TRANSMISSION_MODE_AUTO;
  1093. p->u.ofdm.guard_interval = GUARD_INTERVAL_AUTO;
  1094. p->u.ofdm.hierarchy_information = HIERARCHY_AUTO;
  1095. if (c->bandwidth_hz == 8000000)
  1096. p->u.ofdm.bandwidth = BANDWIDTH_8_MHZ;
  1097. else if (c->bandwidth_hz == 7000000)
  1098. p->u.ofdm.bandwidth = BANDWIDTH_7_MHZ;
  1099. else if (c->bandwidth_hz == 6000000)
  1100. p->u.ofdm.bandwidth = BANDWIDTH_6_MHZ;
  1101. else
  1102. p->u.ofdm.bandwidth = BANDWIDTH_AUTO;
  1103. }
  1104. }
  1105. static void dtv_property_cache_submit(struct dvb_frontend *fe)
  1106. {
  1107. struct dtv_frontend_properties *c = &fe->dtv_property_cache;
  1108. /* For legacy delivery systems we don't need the delivery_system to
  1109. * be specified, but we populate the older structures from the cache
  1110. * so we can call set_frontend on older drivers.
  1111. */
  1112. if(is_legacy_delivery_system(c->delivery_system)) {
  1113. dprintk("%s() legacy, modulation = %d\n", __func__, c->modulation);
  1114. dtv_property_legacy_params_sync(fe);
  1115. } else {
  1116. dprintk("%s() adv, modulation = %d\n", __func__, c->modulation);
  1117. /* For advanced delivery systems / modulation types ...
  1118. * we seed the lecacy dvb_frontend_parameters structure
  1119. * so that the sanity checking code later in the IOCTL processing
  1120. * can validate our basic frequency ranges, symbolrates, modulation
  1121. * etc.
  1122. */
  1123. dtv_property_adv_params_sync(fe);
  1124. }
  1125. }
  1126. static int dvb_frontend_ioctl_legacy(struct inode *inode, struct file *file,
  1127. unsigned int cmd, void *parg);
  1128. static int dvb_frontend_ioctl_properties(struct inode *inode, struct file *file,
  1129. unsigned int cmd, void *parg);
  1130. static int dtv_property_process_get(struct dvb_frontend *fe,
  1131. struct dtv_property *tvp,
  1132. struct inode *inode, struct file *file)
  1133. {
  1134. int r = 0;
  1135. dtv_property_dump(tvp);
  1136. /* Allow the frontend to validate incoming properties */
  1137. if (fe->ops.get_property)
  1138. r = fe->ops.get_property(fe, tvp);
  1139. if (r < 0)
  1140. return r;
  1141. switch(tvp->cmd) {
  1142. case DTV_FREQUENCY:
  1143. tvp->u.data = fe->dtv_property_cache.frequency;
  1144. break;
  1145. case DTV_MODULATION:
  1146. tvp->u.data = fe->dtv_property_cache.modulation;
  1147. break;
  1148. case DTV_BANDWIDTH_HZ:
  1149. tvp->u.data = fe->dtv_property_cache.bandwidth_hz;
  1150. break;
  1151. case DTV_INVERSION:
  1152. tvp->u.data = fe->dtv_property_cache.inversion;
  1153. break;
  1154. case DTV_SYMBOL_RATE:
  1155. tvp->u.data = fe->dtv_property_cache.symbol_rate;
  1156. break;
  1157. case DTV_INNER_FEC:
  1158. tvp->u.data = fe->dtv_property_cache.fec_inner;
  1159. break;
  1160. case DTV_PILOT:
  1161. tvp->u.data = fe->dtv_property_cache.pilot;
  1162. break;
  1163. case DTV_ROLLOFF:
  1164. tvp->u.data = fe->dtv_property_cache.rolloff;
  1165. break;
  1166. case DTV_DELIVERY_SYSTEM:
  1167. tvp->u.data = fe->dtv_property_cache.delivery_system;
  1168. break;
  1169. case DTV_VOLTAGE:
  1170. tvp->u.data = fe->dtv_property_cache.voltage;
  1171. break;
  1172. case DTV_TONE:
  1173. tvp->u.data = fe->dtv_property_cache.sectone;
  1174. break;
  1175. case DTV_API_VERSION:
  1176. tvp->u.data = (DVB_API_VERSION << 8) | DVB_API_VERSION_MINOR;
  1177. break;
  1178. case DTV_CODE_RATE_HP:
  1179. tvp->u.data = fe->dtv_property_cache.code_rate_HP;
  1180. break;
  1181. case DTV_CODE_RATE_LP:
  1182. tvp->u.data = fe->dtv_property_cache.code_rate_LP;
  1183. break;
  1184. case DTV_GUARD_INTERVAL:
  1185. tvp->u.data = fe->dtv_property_cache.guard_interval;
  1186. break;
  1187. case DTV_TRANSMISSION_MODE:
  1188. tvp->u.data = fe->dtv_property_cache.transmission_mode;
  1189. break;
  1190. case DTV_HIERARCHY:
  1191. tvp->u.data = fe->dtv_property_cache.hierarchy;
  1192. break;
  1193. /* ISDB-T Support here */
  1194. case DTV_ISDBT_PARTIAL_RECEPTION:
  1195. tvp->u.data = fe->dtv_property_cache.isdbt_partial_reception;
  1196. break;
  1197. case DTV_ISDBT_SOUND_BROADCASTING:
  1198. tvp->u.data = fe->dtv_property_cache.isdbt_sb_mode;
  1199. break;
  1200. case DTV_ISDBT_SB_SUBCHANNEL_ID:
  1201. tvp->u.data = fe->dtv_property_cache.isdbt_sb_subchannel;
  1202. break;
  1203. case DTV_ISDBT_SB_SEGMENT_IDX:
  1204. tvp->u.data = fe->dtv_property_cache.isdbt_sb_segment_idx;
  1205. break;
  1206. case DTV_ISDBT_SB_SEGMENT_COUNT:
  1207. tvp->u.data = fe->dtv_property_cache.isdbt_sb_segment_count;
  1208. break;
  1209. case DTV_ISDBT_LAYER_ENABLED:
  1210. tvp->u.data = fe->dtv_property_cache.isdbt_layer_enabled;
  1211. break;
  1212. case DTV_ISDBT_LAYERA_FEC:
  1213. tvp->u.data = fe->dtv_property_cache.layer[0].fec;
  1214. break;
  1215. case DTV_ISDBT_LAYERA_MODULATION:
  1216. tvp->u.data = fe->dtv_property_cache.layer[0].modulation;
  1217. break;
  1218. case DTV_ISDBT_LAYERA_SEGMENT_COUNT:
  1219. tvp->u.data = fe->dtv_property_cache.layer[0].segment_count;
  1220. break;
  1221. case DTV_ISDBT_LAYERA_TIME_INTERLEAVING:
  1222. tvp->u.data = fe->dtv_property_cache.layer[0].interleaving;
  1223. break;
  1224. case DTV_ISDBT_LAYERB_FEC:
  1225. tvp->u.data = fe->dtv_property_cache.layer[1].fec;
  1226. break;
  1227. case DTV_ISDBT_LAYERB_MODULATION:
  1228. tvp->u.data = fe->dtv_property_cache.layer[1].modulation;
  1229. break;
  1230. case DTV_ISDBT_LAYERB_SEGMENT_COUNT:
  1231. tvp->u.data = fe->dtv_property_cache.layer[1].segment_count;
  1232. break;
  1233. case DTV_ISDBT_LAYERB_TIME_INTERLEAVING:
  1234. tvp->u.data = fe->dtv_property_cache.layer[1].interleaving;
  1235. break;
  1236. case DTV_ISDBT_LAYERC_FEC:
  1237. tvp->u.data = fe->dtv_property_cache.layer[2].fec;
  1238. break;
  1239. case DTV_ISDBT_LAYERC_MODULATION:
  1240. tvp->u.data = fe->dtv_property_cache.layer[2].modulation;
  1241. break;
  1242. case DTV_ISDBT_LAYERC_SEGMENT_COUNT:
  1243. tvp->u.data = fe->dtv_property_cache.layer[2].segment_count;
  1244. break;
  1245. case DTV_ISDBT_LAYERC_TIME_INTERLEAVING:
  1246. tvp->u.data = fe->dtv_property_cache.layer[2].interleaving;
  1247. break;
  1248. case DTV_ISDBS_TS_ID:
  1249. tvp->u.data = fe->dtv_property_cache.isdbs_ts_id;
  1250. break;
  1251. default:
  1252. r = -1;
  1253. }
  1254. return r;
  1255. }
  1256. static int dtv_property_process_set(struct dvb_frontend *fe,
  1257. struct dtv_property *tvp,
  1258. struct inode *inode,
  1259. struct file *file)
  1260. {
  1261. int r = 0;
  1262. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  1263. dtv_property_dump(tvp);
  1264. /* Allow the frontend to validate incoming properties */
  1265. if (fe->ops.set_property)
  1266. r = fe->ops.set_property(fe, tvp);
  1267. if (r < 0)
  1268. return r;
  1269. switch(tvp->cmd) {
  1270. case DTV_CLEAR:
  1271. /* Reset a cache of data specific to the frontend here. This does
  1272. * not effect hardware.
  1273. */
  1274. dvb_frontend_clear_cache(fe);
  1275. dprintk("%s() Flushing property cache\n", __func__);
  1276. break;
  1277. case DTV_TUNE:
  1278. /* interpret the cache of data, build either a traditional frontend
  1279. * tunerequest so we can pass validation in the FE_SET_FRONTEND
  1280. * ioctl.
  1281. */
  1282. fe->dtv_property_cache.state = tvp->cmd;
  1283. dprintk("%s() Finalised property cache\n", __func__);
  1284. dtv_property_cache_submit(fe);
  1285. r |= dvb_frontend_ioctl_legacy(inode, file, FE_SET_FRONTEND,
  1286. &fepriv->parameters);
  1287. break;
  1288. case DTV_FREQUENCY:
  1289. fe->dtv_property_cache.frequency = tvp->u.data;
  1290. break;
  1291. case DTV_MODULATION:
  1292. fe->dtv_property_cache.modulation = tvp->u.data;
  1293. break;
  1294. case DTV_BANDWIDTH_HZ:
  1295. fe->dtv_property_cache.bandwidth_hz = tvp->u.data;
  1296. break;
  1297. case DTV_INVERSION:
  1298. fe->dtv_property_cache.inversion = tvp->u.data;
  1299. break;
  1300. case DTV_SYMBOL_RATE:
  1301. fe->dtv_property_cache.symbol_rate = tvp->u.data;
  1302. break;
  1303. case DTV_INNER_FEC:
  1304. fe->dtv_property_cache.fec_inner = tvp->u.data;
  1305. break;
  1306. case DTV_PILOT:
  1307. fe->dtv_property_cache.pilot = tvp->u.data;
  1308. break;
  1309. case DTV_ROLLOFF:
  1310. fe->dtv_property_cache.rolloff = tvp->u.data;
  1311. break;
  1312. case DTV_DELIVERY_SYSTEM:
  1313. fe->dtv_property_cache.delivery_system = tvp->u.data;
  1314. break;
  1315. case DTV_VOLTAGE:
  1316. fe->dtv_property_cache.voltage = tvp->u.data;
  1317. r = dvb_frontend_ioctl_legacy(inode, file, FE_SET_VOLTAGE,
  1318. (void *)fe->dtv_property_cache.voltage);
  1319. break;
  1320. case DTV_TONE:
  1321. fe->dtv_property_cache.sectone = tvp->u.data;
  1322. r = dvb_frontend_ioctl_legacy(inode, file, FE_SET_TONE,
  1323. (void *)fe->dtv_property_cache.sectone);
  1324. break;
  1325. case DTV_CODE_RATE_HP:
  1326. fe->dtv_property_cache.code_rate_HP = tvp->u.data;
  1327. break;
  1328. case DTV_CODE_RATE_LP:
  1329. fe->dtv_property_cache.code_rate_LP = tvp->u.data;
  1330. break;
  1331. case DTV_GUARD_INTERVAL:
  1332. fe->dtv_property_cache.guard_interval = tvp->u.data;
  1333. break;
  1334. case DTV_TRANSMISSION_MODE:
  1335. fe->dtv_property_cache.transmission_mode = tvp->u.data;
  1336. break;
  1337. case DTV_HIERARCHY:
  1338. fe->dtv_property_cache.hierarchy = tvp->u.data;
  1339. break;
  1340. /* ISDB-T Support here */
  1341. case DTV_ISDBT_PARTIAL_RECEPTION:
  1342. fe->dtv_property_cache.isdbt_partial_reception = tvp->u.data;
  1343. break;
  1344. case DTV_ISDBT_SOUND_BROADCASTING:
  1345. fe->dtv_property_cache.isdbt_sb_mode = tvp->u.data;
  1346. break;
  1347. case DTV_ISDBT_SB_SUBCHANNEL_ID:
  1348. fe->dtv_property_cache.isdbt_sb_subchannel = tvp->u.data;
  1349. break;
  1350. case DTV_ISDBT_SB_SEGMENT_IDX:
  1351. fe->dtv_property_cache.isdbt_sb_segment_idx = tvp->u.data;
  1352. break;
  1353. case DTV_ISDBT_SB_SEGMENT_COUNT:
  1354. fe->dtv_property_cache.isdbt_sb_segment_count = tvp->u.data;
  1355. break;
  1356. case DTV_ISDBT_LAYER_ENABLED:
  1357. fe->dtv_property_cache.isdbt_layer_enabled = tvp->u.data;
  1358. break;
  1359. case DTV_ISDBT_LAYERA_FEC:
  1360. fe->dtv_property_cache.layer[0].fec = tvp->u.data;
  1361. break;
  1362. case DTV_ISDBT_LAYERA_MODULATION:
  1363. fe->dtv_property_cache.layer[0].modulation = tvp->u.data;
  1364. break;
  1365. case DTV_ISDBT_LAYERA_SEGMENT_COUNT:
  1366. fe->dtv_property_cache.layer[0].segment_count = tvp->u.data;
  1367. break;
  1368. case DTV_ISDBT_LAYERA_TIME_INTERLEAVING:
  1369. fe->dtv_property_cache.layer[0].interleaving = tvp->u.data;
  1370. break;
  1371. case DTV_ISDBT_LAYERB_FEC:
  1372. fe->dtv_property_cache.layer[1].fec = tvp->u.data;
  1373. break;
  1374. case DTV_ISDBT_LAYERB_MODULATION:
  1375. fe->dtv_property_cache.layer[1].modulation = tvp->u.data;
  1376. break;
  1377. case DTV_ISDBT_LAYERB_SEGMENT_COUNT:
  1378. fe->dtv_property_cache.layer[1].segment_count = tvp->u.data;
  1379. break;
  1380. case DTV_ISDBT_LAYERB_TIME_INTERLEAVING:
  1381. fe->dtv_property_cache.layer[1].interleaving = tvp->u.data;
  1382. break;
  1383. case DTV_ISDBT_LAYERC_FEC:
  1384. fe->dtv_property_cache.layer[2].fec = tvp->u.data;
  1385. break;
  1386. case DTV_ISDBT_LAYERC_MODULATION:
  1387. fe->dtv_property_cache.layer[2].modulation = tvp->u.data;
  1388. break;
  1389. case DTV_ISDBT_LAYERC_SEGMENT_COUNT:
  1390. fe->dtv_property_cache.layer[2].segment_count = tvp->u.data;
  1391. break;
  1392. case DTV_ISDBT_LAYERC_TIME_INTERLEAVING:
  1393. fe->dtv_property_cache.layer[2].interleaving = tvp->u.data;
  1394. break;
  1395. case DTV_ISDBS_TS_ID:
  1396. fe->dtv_property_cache.isdbs_ts_id = tvp->u.data;
  1397. break;
  1398. default:
  1399. r = -1;
  1400. }
  1401. return r;
  1402. }
  1403. static int dvb_frontend_ioctl(struct inode *inode, struct file *file,
  1404. unsigned int cmd, void *parg)
  1405. {
  1406. struct dvb_device *dvbdev = file->private_data;
  1407. struct dvb_frontend *fe = dvbdev->priv;
  1408. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  1409. int err = -EOPNOTSUPP;
  1410. dprintk ("%s\n", __func__);
  1411. if (fepriv->exit)
  1412. return -ENODEV;
  1413. if ((file->f_flags & O_ACCMODE) == O_RDONLY &&
  1414. (_IOC_DIR(cmd) != _IOC_READ || cmd == FE_GET_EVENT ||
  1415. cmd == FE_DISEQC_RECV_SLAVE_REPLY))
  1416. return -EPERM;
  1417. if (down_interruptible (&fepriv->sem))
  1418. return -ERESTARTSYS;
  1419. if ((cmd == FE_SET_PROPERTY) || (cmd == FE_GET_PROPERTY))
  1420. err = dvb_frontend_ioctl_properties(inode, file, cmd, parg);
  1421. else {
  1422. fe->dtv_property_cache.state = DTV_UNDEFINED;
  1423. err = dvb_frontend_ioctl_legacy(inode, file, cmd, parg);
  1424. }
  1425. up(&fepriv->sem);
  1426. return err;
  1427. }
  1428. static int dvb_frontend_ioctl_properties(struct inode *inode, struct file *file,
  1429. unsigned int cmd, void *parg)
  1430. {
  1431. struct dvb_device *dvbdev = file->private_data;
  1432. struct dvb_frontend *fe = dvbdev->priv;
  1433. int err = 0;
  1434. struct dtv_properties *tvps = NULL;
  1435. struct dtv_property *tvp = NULL;
  1436. int i;
  1437. dprintk("%s\n", __func__);
  1438. if(cmd == FE_SET_PROPERTY) {
  1439. tvps = (struct dtv_properties __user *)parg;
  1440. dprintk("%s() properties.num = %d\n", __func__, tvps->num);
  1441. dprintk("%s() properties.props = %p\n", __func__, tvps->props);
  1442. /* Put an arbitrary limit on the number of messages that can
  1443. * be sent at once */
  1444. if ((tvps->num == 0) || (tvps->num > DTV_IOCTL_MAX_MSGS))
  1445. return -EINVAL;
  1446. tvp = (struct dtv_property *) kmalloc(tvps->num *
  1447. sizeof(struct dtv_property), GFP_KERNEL);
  1448. if (!tvp) {
  1449. err = -ENOMEM;
  1450. goto out;
  1451. }
  1452. if (copy_from_user(tvp, tvps->props, tvps->num * sizeof(struct dtv_property))) {
  1453. err = -EFAULT;
  1454. goto out;
  1455. }
  1456. for (i = 0; i < tvps->num; i++) {
  1457. (tvp + i)->result = dtv_property_process_set(fe, tvp + i, inode, file);
  1458. err |= (tvp + i)->result;
  1459. }
  1460. if(fe->dtv_property_cache.state == DTV_TUNE)
  1461. dprintk("%s() Property cache is full, tuning\n", __func__);
  1462. } else
  1463. if(cmd == FE_GET_PROPERTY) {
  1464. tvps = (struct dtv_properties __user *)parg;
  1465. dprintk("%s() properties.num = %d\n", __func__, tvps->num);
  1466. dprintk("%s() properties.props = %p\n", __func__, tvps->props);
  1467. /* Put an arbitrary limit on the number of messages that can
  1468. * be sent at once */
  1469. if ((tvps->num == 0) || (tvps->num > DTV_IOCTL_MAX_MSGS))
  1470. return -EINVAL;
  1471. tvp = (struct dtv_property *) kmalloc(tvps->num *
  1472. sizeof(struct dtv_property), GFP_KERNEL);
  1473. if (!tvp) {
  1474. err = -ENOMEM;
  1475. goto out;
  1476. }
  1477. if (copy_from_user(tvp, tvps->props, tvps->num * sizeof(struct dtv_property))) {
  1478. err = -EFAULT;
  1479. goto out;
  1480. }
  1481. for (i = 0; i < tvps->num; i++) {
  1482. (tvp + i)->result = dtv_property_process_get(fe, tvp + i, inode, file);
  1483. err |= (tvp + i)->result;
  1484. }
  1485. if (copy_to_user(tvps->props, tvp, tvps->num * sizeof(struct dtv_property))) {
  1486. err = -EFAULT;
  1487. goto out;
  1488. }
  1489. } else
  1490. err = -EOPNOTSUPP;
  1491. out:
  1492. kfree(tvp);
  1493. return err;
  1494. }
  1495. static int dvb_frontend_ioctl_legacy(struct inode *inode, struct file *file,
  1496. unsigned int cmd, void *parg)
  1497. {
  1498. struct dvb_device *dvbdev = file->private_data;
  1499. struct dvb_frontend *fe = dvbdev->priv;
  1500. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  1501. int err = -EOPNOTSUPP;
  1502. switch (cmd) {
  1503. case FE_GET_INFO: {
  1504. struct dvb_frontend_info* info = parg;
  1505. memcpy(info, &fe->ops.info, sizeof(struct dvb_frontend_info));
  1506. dvb_frontend_get_frequeny_limits(fe, &info->frequency_min, &info->frequency_max);
  1507. /* Force the CAN_INVERSION_AUTO bit on. If the frontend doesn't
  1508. * do it, it is done for it. */
  1509. info->caps |= FE_CAN_INVERSION_AUTO;
  1510. err = 0;
  1511. break;
  1512. }
  1513. case FE_READ_STATUS: {
  1514. fe_status_t* status = parg;
  1515. /* if retune was requested but hasn't occured yet, prevent
  1516. * that user get signal state from previous tuning */
  1517. if (fepriv->state == FESTATE_RETUNE ||
  1518. fepriv->state == FESTATE_ERROR) {
  1519. err=0;
  1520. *status = 0;
  1521. break;
  1522. }
  1523. if (fe->ops.read_status)
  1524. err = fe->ops.read_status(fe, status);
  1525. break;
  1526. }
  1527. case FE_READ_BER:
  1528. if (fe->ops.read_ber)
  1529. err = fe->ops.read_ber(fe, (__u32*) parg);
  1530. break;
  1531. case FE_READ_SIGNAL_STRENGTH:
  1532. if (fe->ops.read_signal_strength)
  1533. err = fe->ops.read_signal_strength(fe, (__u16*) parg);
  1534. break;
  1535. case FE_READ_SNR:
  1536. if (fe->ops.read_snr)
  1537. err = fe->ops.read_snr(fe, (__u16*) parg);
  1538. break;
  1539. case FE_READ_UNCORRECTED_BLOCKS:
  1540. if (fe->ops.read_ucblocks)
  1541. err = fe->ops.read_ucblocks(fe, (__u32*) parg);
  1542. break;
  1543. case FE_DISEQC_RESET_OVERLOAD:
  1544. if (fe->ops.diseqc_reset_overload) {
  1545. err = fe->ops.diseqc_reset_overload(fe);
  1546. fepriv->state = FESTATE_DISEQC;
  1547. fepriv->status = 0;
  1548. }
  1549. break;
  1550. case FE_DISEQC_SEND_MASTER_CMD:
  1551. if (fe->ops.diseqc_send_master_cmd) {
  1552. err = fe->ops.diseqc_send_master_cmd(fe, (struct dvb_diseqc_master_cmd*) parg);
  1553. fepriv->state = FESTATE_DISEQC;
  1554. fepriv->status = 0;
  1555. }
  1556. break;
  1557. case FE_DISEQC_SEND_BURST:
  1558. if (fe->ops.diseqc_send_burst) {
  1559. err = fe->ops.diseqc_send_burst(fe, (fe_sec_mini_cmd_t) parg);
  1560. fepriv->state = FESTATE_DISEQC;
  1561. fepriv->status = 0;
  1562. }
  1563. break;
  1564. case FE_SET_TONE:
  1565. if (fe->ops.set_tone) {
  1566. err = fe->ops.set_tone(fe, (fe_sec_tone_mode_t) parg);
  1567. fepriv->tone = (fe_sec_tone_mode_t) parg;
  1568. fepriv->state = FESTATE_DISEQC;
  1569. fepriv->status = 0;
  1570. }
  1571. break;
  1572. case FE_SET_VOLTAGE:
  1573. if (fe->ops.set_voltage) {
  1574. err = fe->ops.set_voltage(fe, (fe_sec_voltage_t) parg);
  1575. fepriv->voltage = (fe_sec_voltage_t) parg;
  1576. fepriv->state = FESTATE_DISEQC;
  1577. fepriv->status = 0;
  1578. }
  1579. break;
  1580. case FE_DISHNETWORK_SEND_LEGACY_CMD:
  1581. if (fe->ops.dishnetwork_send_legacy_command) {
  1582. err = fe->ops.dishnetwork_send_legacy_command(fe, (unsigned long) parg);
  1583. fepriv->state = FESTATE_DISEQC;
  1584. fepriv->status = 0;
  1585. } else if (fe->ops.set_voltage) {
  1586. /*
  1587. * NOTE: This is a fallback condition. Some frontends
  1588. * (stv0299 for instance) take longer than 8msec to
  1589. * respond to a set_voltage command. Those switches
  1590. * need custom routines to switch properly. For all
  1591. * other frontends, the following shoule work ok.
  1592. * Dish network legacy switches (as used by Dish500)
  1593. * are controlled by sending 9-bit command words
  1594. * spaced 8msec apart.
  1595. * the actual command word is switch/port dependant
  1596. * so it is up to the userspace application to send
  1597. * the right command.
  1598. * The command must always start with a '0' after
  1599. * initialization, so parg is 8 bits and does not
  1600. * include the initialization or start bit
  1601. */
  1602. unsigned long swcmd = ((unsigned long) parg) << 1;
  1603. struct timeval nexttime;
  1604. struct timeval tv[10];
  1605. int i;
  1606. u8 last = 1;
  1607. if (dvb_frontend_debug)
  1608. printk("%s switch command: 0x%04lx\n", __func__, swcmd);
  1609. do_gettimeofday(&nexttime);
  1610. if (dvb_frontend_debug)
  1611. memcpy(&tv[0], &nexttime, sizeof(struct timeval));
  1612. /* before sending a command, initialize by sending
  1613. * a 32ms 18V to the switch
  1614. */
  1615. fe->ops.set_voltage(fe, SEC_VOLTAGE_18);
  1616. dvb_frontend_sleep_until(&nexttime, 32000);
  1617. for (i = 0; i < 9; i++) {
  1618. if (dvb_frontend_debug)
  1619. do_gettimeofday(&tv[i + 1]);
  1620. if ((swcmd & 0x01) != last) {
  1621. /* set voltage to (last ? 13V : 18V) */
  1622. fe->ops.set_voltage(fe, (last) ? SEC_VOLTAGE_13 : SEC_VOLTAGE_18);
  1623. last = (last) ? 0 : 1;
  1624. }
  1625. swcmd = swcmd >> 1;
  1626. if (i != 8)
  1627. dvb_frontend_sleep_until(&nexttime, 8000);
  1628. }
  1629. if (dvb_frontend_debug) {
  1630. printk("%s(%d): switch delay (should be 32k followed by all 8k\n",
  1631. __func__, fe->dvb->num);
  1632. for (i = 1; i < 10; i++)
  1633. printk("%d: %d\n", i, timeval_usec_diff(tv[i-1] , tv[i]));
  1634. }
  1635. err = 0;
  1636. fepriv->state = FESTATE_DISEQC;
  1637. fepriv->status = 0;
  1638. }
  1639. break;
  1640. case FE_DISEQC_RECV_SLAVE_REPLY:
  1641. if (fe->ops.diseqc_recv_slave_reply)
  1642. err = fe->ops.diseqc_recv_slave_reply(fe, (struct dvb_diseqc_slave_reply*) parg);
  1643. break;
  1644. case FE_ENABLE_HIGH_LNB_VOLTAGE:
  1645. if (fe->ops.enable_high_lnb_voltage)
  1646. err = fe->ops.enable_high_lnb_voltage(fe, (long) parg);
  1647. break;
  1648. case FE_SET_FRONTEND: {
  1649. struct dvb_frontend_tune_settings fetunesettings;
  1650. if(fe->dtv_property_cache.state == DTV_TUNE) {
  1651. if (dvb_frontend_check_parameters(fe, &fepriv->parameters) < 0) {
  1652. err = -EINVAL;
  1653. break;
  1654. }
  1655. } else {
  1656. if (dvb_frontend_check_parameters(fe, parg) < 0) {
  1657. err = -EINVAL;
  1658. break;
  1659. }
  1660. memcpy (&fepriv->parameters, parg,
  1661. sizeof (struct dvb_frontend_parameters));
  1662. dtv_property_cache_sync(fe, &fepriv->parameters);
  1663. }
  1664. memset(&fetunesettings, 0, sizeof(struct dvb_frontend_tune_settings));
  1665. memcpy(&fetunesettings.parameters, parg,
  1666. sizeof (struct dvb_frontend_parameters));
  1667. /* force auto frequency inversion if requested */
  1668. if (dvb_force_auto_inversion) {
  1669. fepriv->parameters.inversion = INVERSION_AUTO;
  1670. fetunesettings.parameters.inversion = INVERSION_AUTO;
  1671. }
  1672. if (fe->ops.info.type == FE_OFDM) {
  1673. /* without hierarchical coding code_rate_LP is irrelevant,
  1674. * so we tolerate the otherwise invalid FEC_NONE setting */
  1675. if (fepriv->parameters.u.ofdm.hierarchy_information == HIERARCHY_NONE &&
  1676. fepriv->parameters.u.ofdm.code_rate_LP == FEC_NONE)
  1677. fepriv->parameters.u.ofdm.code_rate_LP = FEC_AUTO;
  1678. }
  1679. /* get frontend-specific tuning settings */
  1680. if (fe->ops.get_tune_settings && (fe->ops.get_tune_settings(fe, &fetunesettings) == 0)) {
  1681. fepriv->min_delay = (fetunesettings.min_delay_ms * HZ) / 1000;
  1682. fepriv->max_drift = fetunesettings.max_drift;
  1683. fepriv->step_size = fetunesettings.step_size;
  1684. } else {
  1685. /* default values */
  1686. switch(fe->ops.info.type) {
  1687. case FE_QPSK:
  1688. fepriv->min_delay = HZ/20;
  1689. fepriv->step_size = fepriv->parameters.u.qpsk.symbol_rate / 16000;
  1690. fepriv->max_drift = fepriv->parameters.u.qpsk.symbol_rate / 2000;
  1691. break;
  1692. case FE_QAM:
  1693. fepriv->min_delay = HZ/20;
  1694. fepriv->step_size = 0; /* no zigzag */
  1695. fepriv->max_drift = 0;
  1696. break;
  1697. case FE_OFDM:
  1698. fepriv->min_delay = HZ/20;
  1699. fepriv->step_size = fe->ops.info.frequency_stepsize * 2;
  1700. fepriv->max_drift = (fe->ops.info.frequency_stepsize * 2) + 1;
  1701. break;
  1702. case FE_ATSC:
  1703. fepriv->min_delay = HZ/20;
  1704. fepriv->step_size = 0;
  1705. fepriv->max_drift = 0;
  1706. break;
  1707. }
  1708. }
  1709. if (dvb_override_tune_delay > 0)
  1710. fepriv->min_delay = (dvb_override_tune_delay * HZ) / 1000;
  1711. fepriv->state = FESTATE_RETUNE;
  1712. /* Request the search algorithm to search */
  1713. fepriv->algo_status |= DVBFE_ALGO_SEARCH_AGAIN;
  1714. dvb_frontend_wakeup(fe);
  1715. dvb_frontend_add_event(fe, 0);
  1716. fepriv->status = 0;
  1717. err = 0;
  1718. break;
  1719. }
  1720. case FE_GET_EVENT:
  1721. err = dvb_frontend_get_event (fe, parg, file->f_flags);
  1722. break;
  1723. case FE_GET_FRONTEND:
  1724. if (fe->ops.get_frontend) {
  1725. memcpy (parg, &fepriv->parameters, sizeof (struct dvb_frontend_parameters));
  1726. err = fe->ops.get_frontend(fe, (struct dvb_frontend_parameters*) parg);
  1727. }
  1728. break;
  1729. case FE_SET_FRONTEND_TUNE_MODE:
  1730. fepriv->tune_mode_flags = (unsigned long) parg;
  1731. err = 0;
  1732. break;
  1733. };
  1734. return err;
  1735. }
  1736. static unsigned int dvb_frontend_poll(struct file *file, struct poll_table_struct *wait)
  1737. {
  1738. struct dvb_device *dvbdev = file->private_data;
  1739. struct dvb_frontend *fe = dvbdev->priv;
  1740. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  1741. dprintk ("%s\n", __func__);
  1742. poll_wait (file, &fepriv->events.wait_queue, wait);
  1743. if (fepriv->events.eventw != fepriv->events.eventr)
  1744. return (POLLIN | POLLRDNORM | POLLPRI);
  1745. return 0;
  1746. }
  1747. static int dvb_frontend_open(struct inode *inode, struct file *file)
  1748. {
  1749. struct dvb_device *dvbdev = file->private_data;
  1750. struct dvb_frontend *fe = dvbdev->priv;
  1751. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  1752. struct dvb_adapter *adapter = fe->dvb;
  1753. int ret;
  1754. dprintk ("%s\n", __func__);
  1755. if (adapter->mfe_shared) {
  1756. mutex_lock (&adapter->mfe_lock);
  1757. if (adapter->mfe_dvbdev == NULL)
  1758. adapter->mfe_dvbdev = dvbdev;
  1759. else if (adapter->mfe_dvbdev != dvbdev) {
  1760. struct dvb_device
  1761. *mfedev = adapter->mfe_dvbdev;
  1762. struct dvb_frontend
  1763. *mfe = mfedev->priv;
  1764. struct dvb_frontend_private
  1765. *mfepriv = mfe->frontend_priv;
  1766. int mferetry = (dvb_mfe_wait_time << 1);
  1767. mutex_unlock (&adapter->mfe_lock);
  1768. while (mferetry-- && (mfedev->users != -1 ||
  1769. mfepriv->thread != NULL)) {
  1770. if(msleep_interruptible(500)) {
  1771. if(signal_pending(current))
  1772. return -EINTR;
  1773. }
  1774. }
  1775. mutex_lock (&adapter->mfe_lock);
  1776. if(adapter->mfe_dvbdev != dvbdev) {
  1777. mfedev = adapter->mfe_dvbdev;
  1778. mfe = mfedev->priv;
  1779. mfepriv = mfe->frontend_priv;
  1780. if (mfedev->users != -1 ||
  1781. mfepriv->thread != NULL) {
  1782. mutex_unlock (&adapter->mfe_lock);
  1783. return -EBUSY;
  1784. }
  1785. adapter->mfe_dvbdev = dvbdev;
  1786. }
  1787. }
  1788. }
  1789. if (dvbdev->users == -1 && fe->ops.ts_bus_ctrl) {
  1790. if ((ret = fe->ops.ts_bus_ctrl(fe, 1)) < 0)
  1791. goto err0;
  1792. }
  1793. if ((ret = dvb_generic_open (inode, file)) < 0)
  1794. goto err1;
  1795. if ((file->f_flags & O_ACCMODE) != O_RDONLY) {
  1796. /* normal tune mode when opened R/W */
  1797. fepriv->tune_mode_flags &= ~FE_TUNE_MODE_ONESHOT;
  1798. fepriv->tone = -1;
  1799. fepriv->voltage = -1;
  1800. ret = dvb_frontend_start (fe);
  1801. if (ret)
  1802. goto err2;
  1803. /* empty event queue */
  1804. fepriv->events.eventr = fepriv->events.eventw = 0;
  1805. }
  1806. if (adapter->mfe_shared)
  1807. mutex_unlock (&adapter->mfe_lock);
  1808. return ret;
  1809. err2:
  1810. dvb_generic_release(inode, file);
  1811. err1:
  1812. if (dvbdev->users == -1 && fe->ops.ts_bus_ctrl)
  1813. fe->ops.ts_bus_ctrl(fe, 0);
  1814. err0:
  1815. if (adapter->mfe_shared)
  1816. mutex_unlock (&adapter->mfe_lock);
  1817. return ret;
  1818. }
  1819. static int dvb_frontend_release(struct inode *inode, struct file *file)
  1820. {
  1821. struct dvb_device *dvbdev = file->private_data;
  1822. struct dvb_frontend *fe = dvbdev->priv;
  1823. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  1824. int ret;
  1825. dprintk ("%s\n", __func__);
  1826. if ((file->f_flags & O_ACCMODE) != O_RDONLY)
  1827. fepriv->release_jiffies = jiffies;
  1828. ret = dvb_generic_release (inode, file);
  1829. if (dvbdev->users == -1) {
  1830. if (fepriv->exit == 1) {
  1831. fops_put(file->f_op);
  1832. file->f_op = NULL;
  1833. wake_up(&dvbdev->wait_queue);
  1834. }
  1835. if (fe->ops.ts_bus_ctrl)
  1836. fe->ops.ts_bus_ctrl(fe, 0);
  1837. }
  1838. return ret;
  1839. }
  1840. static const struct file_operations dvb_frontend_fops = {
  1841. .owner = THIS_MODULE,
  1842. .ioctl = dvb_generic_ioctl,
  1843. .poll = dvb_frontend_poll,
  1844. .open = dvb_frontend_open,
  1845. .release = dvb_frontend_release
  1846. };
  1847. int dvb_register_frontend(struct dvb_adapter* dvb,
  1848. struct dvb_frontend* fe)
  1849. {
  1850. struct dvb_frontend_private *fepriv;
  1851. static const struct dvb_device dvbdev_template = {
  1852. .users = ~0,
  1853. .writers = 1,
  1854. .readers = (~0)-1,
  1855. .fops = &dvb_frontend_fops,
  1856. .kernel_ioctl = dvb_frontend_ioctl
  1857. };
  1858. dprintk ("%s\n", __func__);
  1859. if (mutex_lock_interruptible(&frontend_mutex))
  1860. return -ERESTARTSYS;
  1861. fe->frontend_priv = kzalloc(sizeof(struct dvb_frontend_private), GFP_KERNEL);
  1862. if (fe->frontend_priv == NULL) {
  1863. mutex_unlock(&frontend_mutex);
  1864. return -ENOMEM;
  1865. }
  1866. fepriv = fe->frontend_priv;
  1867. init_MUTEX (&fepriv->sem);
  1868. init_waitqueue_head (&fepriv->wait_queue);
  1869. init_waitqueue_head (&fepriv->events.wait_queue);
  1870. mutex_init(&fepriv->events.mtx);
  1871. fe->dvb = dvb;
  1872. fepriv->inversion = INVERSION_OFF;
  1873. printk ("DVB: registering adapter %i frontend %i (%s)...\n",
  1874. fe->dvb->num,
  1875. fe->id,
  1876. fe->ops.info.name);
  1877. dvb_register_device (fe->dvb, &fepriv->dvbdev, &dvbdev_template,
  1878. fe, DVB_DEVICE_FRONTEND);
  1879. mutex_unlock(&frontend_mutex);
  1880. return 0;
  1881. }
  1882. EXPORT_SYMBOL(dvb_register_frontend);
  1883. int dvb_unregister_frontend(struct dvb_frontend* fe)
  1884. {
  1885. struct dvb_frontend_private *fepriv = fe->frontend_priv;
  1886. dprintk ("%s\n", __func__);
  1887. mutex_lock(&frontend_mutex);
  1888. dvb_frontend_stop (fe);
  1889. mutex_unlock(&frontend_mutex);
  1890. if (fepriv->dvbdev->users < -1)
  1891. wait_event(fepriv->dvbdev->wait_queue,
  1892. fepriv->dvbdev->users==-1);
  1893. mutex_lock(&frontend_mutex);
  1894. dvb_unregister_device (fepriv->dvbdev);
  1895. /* fe is invalid now */
  1896. kfree(fepriv);
  1897. mutex_unlock(&frontend_mutex);
  1898. return 0;
  1899. }
  1900. EXPORT_SYMBOL(dvb_unregister_frontend);
  1901. #ifdef CONFIG_MEDIA_ATTACH
  1902. void dvb_frontend_detach(struct dvb_frontend* fe)
  1903. {
  1904. void *ptr;
  1905. if (fe->ops.release_sec) {
  1906. fe->ops.release_sec(fe);
  1907. symbol_put_addr(fe->ops.release_sec);
  1908. }
  1909. if (fe->ops.tuner_ops.release) {
  1910. fe->ops.tuner_ops.release(fe);
  1911. symbol_put_addr(fe->ops.tuner_ops.release);
  1912. }
  1913. if (fe->ops.analog_ops.release) {
  1914. fe->ops.analog_ops.release(fe);
  1915. symbol_put_addr(fe->ops.analog_ops.release);
  1916. }
  1917. ptr = (void*)fe->ops.release;
  1918. if (ptr) {
  1919. fe->ops.release(fe);
  1920. symbol_put_addr(ptr);
  1921. }
  1922. }
  1923. #else
  1924. void dvb_frontend_detach(struct dvb_frontend* fe)
  1925. {
  1926. if (fe->ops.release_sec)
  1927. fe->ops.release_sec(fe);
  1928. if (fe->ops.tuner_ops.release)
  1929. fe->ops.tuner_ops.release(fe);
  1930. if (fe->ops.analog_ops.release)
  1931. fe->ops.analog_ops.release(fe);
  1932. if (fe->ops.release)
  1933. fe->ops.release(fe);
  1934. }
  1935. #endif
  1936. EXPORT_SYMBOL(dvb_frontend_detach);