bcm3510.c 21 KB

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  1. /*
  2. * Support for the Broadcom BCM3510 ATSC demodulator (1st generation Air2PC)
  3. *
  4. * Copyright (C) 2001-5, B2C2 inc.
  5. *
  6. * GPL/Linux driver written by Patrick Boettcher <patrick.boettcher@desy.de>
  7. *
  8. * This driver is "hard-coded" to be used with the 1st generation of
  9. * Technisat/B2C2's Air2PC ATSC PCI/USB cards/boxes. The pll-programming
  10. * (Panasonic CT10S) is located here, which is actually wrong. Unless there is
  11. * another device with a BCM3510, this is no problem.
  12. *
  13. * The driver works also with QAM64 DVB-C, but had an unreasonable high
  14. * UNC. (Tested with the Air2PC ATSC 1st generation)
  15. *
  16. * You'll need a firmware for this driver in order to get it running. It is
  17. * called "dvb-fe-bcm3510-01.fw".
  18. *
  19. * This program is free software; you can redistribute it and/or modify it
  20. * under the terms of the GNU General Public License as published by the Free
  21. * Software Foundation; either version 2 of the License, or (at your option)
  22. * any later version.
  23. *
  24. * This program is distributed in the hope that it will be useful, but WITHOUT
  25. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  26. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  27. * more details.
  28. *
  29. * You should have received a copy of the GNU General Public License along with
  30. * this program; if not, write to the Free Software Foundation, Inc., 675 Mass
  31. * Ave, Cambridge, MA 02139, USA.
  32. */
  33. #include <linux/init.h>
  34. #include <linux/module.h>
  35. #include <linux/moduleparam.h>
  36. #include <linux/device.h>
  37. #include <linux/firmware.h>
  38. #include <linux/jiffies.h>
  39. #include <linux/string.h>
  40. #include <linux/slab.h>
  41. #include "dvb_frontend.h"
  42. #include "bcm3510.h"
  43. #include "bcm3510_priv.h"
  44. struct bcm3510_state {
  45. struct i2c_adapter* i2c;
  46. struct dvb_frontend_ops ops;
  47. const struct bcm3510_config* config;
  48. struct dvb_frontend frontend;
  49. /* demodulator private data */
  50. struct semaphore hab_sem;
  51. u8 firmware_loaded:1;
  52. unsigned long next_status_check;
  53. unsigned long status_check_interval;
  54. struct bcm3510_hab_cmd_status1 status1;
  55. struct bcm3510_hab_cmd_status2 status2;
  56. };
  57. static int debug;
  58. module_param(debug, int, 0644);
  59. MODULE_PARM_DESC(debug, "set debugging level (1=info,2=i2c (|-able)).");
  60. #define dprintk(level,x...) if (level & debug) printk(x)
  61. #define dbufout(b,l,m) {\
  62. int i; \
  63. for (i = 0; i < l; i++) \
  64. m("%02x ",b[i]); \
  65. }
  66. #define deb_info(args...) dprintk(0x01,args)
  67. #define deb_i2c(args...) dprintk(0x02,args)
  68. #define deb_hab(args...) dprintk(0x04,args)
  69. /* transfer functions */
  70. static int bcm3510_writebytes (struct bcm3510_state *state, u8 reg, u8 *buf, u8 len)
  71. {
  72. u8 b[256];
  73. int err;
  74. struct i2c_msg msg = { .addr = state->config->demod_address, .flags = 0, .buf = b, .len = len + 1 };
  75. b[0] = reg;
  76. memcpy(&b[1],buf,len);
  77. deb_i2c("i2c wr %02x: ",reg);
  78. dbufout(buf,len,deb_i2c);
  79. deb_i2c("\n");
  80. if ((err = i2c_transfer (state->i2c, &msg, 1)) != 1) {
  81. deb_info("%s: i2c write error (addr %02x, reg %02x, err == %i)\n",
  82. __FUNCTION__, state->config->demod_address, reg, err);
  83. return -EREMOTEIO;
  84. }
  85. return 0;
  86. }
  87. static int bcm3510_readbytes (struct bcm3510_state *state, u8 reg, u8 *buf, u8 len)
  88. {
  89. struct i2c_msg msg[] = {
  90. { .addr = state->config->demod_address, .flags = 0, .buf = &reg, .len = 1 },
  91. { .addr = state->config->demod_address, .flags = I2C_M_RD, .buf = buf, .len = len }
  92. };
  93. int err;
  94. memset(buf,0,len);
  95. if ((err = i2c_transfer (state->i2c, msg, 2)) != 2) {
  96. deb_info("%s: i2c read error (addr %02x, reg %02x, err == %i)\n",
  97. __FUNCTION__, state->config->demod_address, reg, err);
  98. return -EREMOTEIO;
  99. }
  100. deb_i2c("i2c rd %02x: ",reg);
  101. dbufout(buf,len,deb_i2c);
  102. deb_i2c("\n");
  103. return 0;
  104. }
  105. static int bcm3510_writeB(struct bcm3510_state *state, u8 reg, bcm3510_register_value v)
  106. {
  107. return bcm3510_writebytes(state,reg,&v.raw,1);
  108. }
  109. static int bcm3510_readB(struct bcm3510_state *state, u8 reg, bcm3510_register_value *v)
  110. {
  111. return bcm3510_readbytes(state,reg,&v->raw,1);
  112. }
  113. /* Host Access Buffer transfers */
  114. static int bcm3510_hab_get_response(struct bcm3510_state *st, u8 *buf, int len)
  115. {
  116. bcm3510_register_value v;
  117. int ret,i;
  118. v.HABADR_a6.HABADR = 0;
  119. if ((ret = bcm3510_writeB(st,0xa6,v)) < 0)
  120. return ret;
  121. for (i = 0; i < len; i++) {
  122. if ((ret = bcm3510_readB(st,0xa7,&v)) < 0)
  123. return ret;
  124. buf[i] = v.HABDATA_a7;
  125. }
  126. return 0;
  127. }
  128. static int bcm3510_hab_send_request(struct bcm3510_state *st, u8 *buf, int len)
  129. {
  130. bcm3510_register_value v,hab;
  131. int ret,i;
  132. unsigned long t;
  133. /* Check if any previous HAB request still needs to be serviced by the
  134. * Aquisition Processor before sending new request */
  135. if ((ret = bcm3510_readB(st,0xa8,&v)) < 0)
  136. return ret;
  137. if (v.HABSTAT_a8.HABR) {
  138. deb_info("HAB is running already - clearing it.\n");
  139. v.HABSTAT_a8.HABR = 0;
  140. bcm3510_writeB(st,0xa8,v);
  141. // return -EBUSY;
  142. }
  143. /* Send the start HAB Address (automatically incremented after write of
  144. * HABDATA) and write the HAB Data */
  145. hab.HABADR_a6.HABADR = 0;
  146. if ((ret = bcm3510_writeB(st,0xa6,hab)) < 0)
  147. return ret;
  148. for (i = 0; i < len; i++) {
  149. hab.HABDATA_a7 = buf[i];
  150. if ((ret = bcm3510_writeB(st,0xa7,hab)) < 0)
  151. return ret;
  152. }
  153. /* Set the HABR bit to indicate AP request in progress (LBHABR allows HABR to
  154. * be written) */
  155. v.raw = 0; v.HABSTAT_a8.HABR = 1; v.HABSTAT_a8.LDHABR = 1;
  156. if ((ret = bcm3510_writeB(st,0xa8,v)) < 0)
  157. return ret;
  158. /* Polling method: Wait until the AP finishes processing the HAB request */
  159. t = jiffies + 1*HZ;
  160. while (time_before(jiffies, t)) {
  161. deb_info("waiting for HAB to complete\n");
  162. msleep(10);
  163. if ((ret = bcm3510_readB(st,0xa8,&v)) < 0)
  164. return ret;
  165. if (!v.HABSTAT_a8.HABR)
  166. return 0;
  167. }
  168. deb_info("send_request execution timed out.\n");
  169. return -ETIMEDOUT;
  170. }
  171. static int bcm3510_do_hab_cmd(struct bcm3510_state *st, u8 cmd, u8 msgid, u8 *obuf, u8 olen, u8 *ibuf, u8 ilen)
  172. {
  173. u8 ob[olen+2],ib[ilen+2];
  174. int ret = 0;
  175. ob[0] = cmd;
  176. ob[1] = msgid;
  177. memcpy(&ob[2],obuf,olen);
  178. deb_hab("hab snd: ");
  179. dbufout(ob,olen+2,deb_hab);
  180. deb_hab("\n");
  181. if (down_interruptible(&st->hab_sem) < 0)
  182. return -EAGAIN;
  183. if ((ret = bcm3510_hab_send_request(st, ob, olen+2)) < 0 ||
  184. (ret = bcm3510_hab_get_response(st, ib, ilen+2)) < 0)
  185. goto error;
  186. deb_hab("hab get: ");
  187. dbufout(ib,ilen+2,deb_hab);
  188. deb_hab("\n");
  189. memcpy(ibuf,&ib[2],ilen);
  190. error:
  191. up(&st->hab_sem);
  192. return ret;
  193. }
  194. #if 0
  195. /* not needed, we use a semaphore to prevent HAB races */
  196. static int bcm3510_is_ap_ready(struct bcm3510_state *st)
  197. {
  198. bcm3510_register_value ap,hab;
  199. int ret;
  200. if ((ret = bcm3510_readB(st,0xa8,&hab)) < 0 ||
  201. (ret = bcm3510_readB(st,0xa2,&ap) < 0))
  202. return ret;
  203. if (ap.APSTAT1_a2.RESET || ap.APSTAT1_a2.IDLE || ap.APSTAT1_a2.STOP || hab.HABSTAT_a8.HABR) {
  204. deb_info("AP is busy\n");
  205. return -EBUSY;
  206. }
  207. return 0;
  208. }
  209. #endif
  210. static int bcm3510_bert_reset(struct bcm3510_state *st)
  211. {
  212. bcm3510_register_value b;
  213. int ret;
  214. if ((ret = bcm3510_readB(st,0xfa,&b)) < 0)
  215. return ret;
  216. b.BERCTL_fa.RESYNC = 0; bcm3510_writeB(st,0xfa,b);
  217. b.BERCTL_fa.RESYNC = 1; bcm3510_writeB(st,0xfa,b);
  218. b.BERCTL_fa.RESYNC = 0; bcm3510_writeB(st,0xfa,b);
  219. b.BERCTL_fa.CNTCTL = 1; b.BERCTL_fa.BITCNT = 1; bcm3510_writeB(st,0xfa,b);
  220. /* clear residual bit counter TODO */
  221. return 0;
  222. }
  223. static int bcm3510_refresh_state(struct bcm3510_state *st)
  224. {
  225. if (time_after(jiffies,st->next_status_check)) {
  226. bcm3510_do_hab_cmd(st, CMD_STATUS, MSGID_STATUS1, NULL,0, (u8 *)&st->status1, sizeof(st->status1));
  227. bcm3510_do_hab_cmd(st, CMD_STATUS, MSGID_STATUS2, NULL,0, (u8 *)&st->status2, sizeof(st->status2));
  228. st->next_status_check = jiffies + (st->status_check_interval*HZ)/1000;
  229. }
  230. return 0;
  231. }
  232. static int bcm3510_read_status(struct dvb_frontend *fe, fe_status_t *status)
  233. {
  234. struct bcm3510_state* st = fe->demodulator_priv;
  235. bcm3510_refresh_state(st);
  236. *status = 0;
  237. if (st->status1.STATUS1.RECEIVER_LOCK)
  238. *status |= FE_HAS_LOCK | FE_HAS_SYNC;
  239. if (st->status1.STATUS1.FEC_LOCK)
  240. *status |= FE_HAS_VITERBI;
  241. if (st->status1.STATUS1.OUT_PLL_LOCK)
  242. *status |= FE_HAS_SIGNAL | FE_HAS_CARRIER;
  243. if (*status & FE_HAS_LOCK)
  244. st->status_check_interval = 1500;
  245. else /* more frequently checks if no lock has been achieved yet */
  246. st->status_check_interval = 500;
  247. deb_info("real_status: %02x\n",*status);
  248. return 0;
  249. }
  250. static int bcm3510_read_ber(struct dvb_frontend* fe, u32* ber)
  251. {
  252. struct bcm3510_state* st = fe->demodulator_priv;
  253. bcm3510_refresh_state(st);
  254. *ber = (st->status2.LDBER0 << 16) | (st->status2.LDBER1 << 8) | st->status2.LDBER2;
  255. return 0;
  256. }
  257. static int bcm3510_read_unc(struct dvb_frontend* fe, u32* unc)
  258. {
  259. struct bcm3510_state* st = fe->demodulator_priv;
  260. bcm3510_refresh_state(st);
  261. *unc = (st->status2.LDUERC0 << 8) | st->status2.LDUERC1;
  262. return 0;
  263. }
  264. static int bcm3510_read_signal_strength(struct dvb_frontend* fe, u16* strength)
  265. {
  266. struct bcm3510_state* st = fe->demodulator_priv;
  267. s32 t;
  268. bcm3510_refresh_state(st);
  269. t = st->status2.SIGNAL;
  270. if (t > 190)
  271. t = 190;
  272. if (t < 90)
  273. t = 90;
  274. t -= 90;
  275. t = t * 0xff / 100;
  276. /* normalize if necessary */
  277. *strength = (t << 8) | t;
  278. return 0;
  279. }
  280. static int bcm3510_read_snr(struct dvb_frontend* fe, u16* snr)
  281. {
  282. struct bcm3510_state* st = fe->demodulator_priv;
  283. bcm3510_refresh_state(st);
  284. *snr = st->status1.SNR_EST0*1000 + ((st->status1.SNR_EST1*1000) >> 8);
  285. return 0;
  286. }
  287. /* tuner frontend programming */
  288. static int bcm3510_tuner_cmd(struct bcm3510_state* st,u8 bc, u16 n, u8 a)
  289. {
  290. struct bcm3510_hab_cmd_tune c;
  291. memset(&c,0,sizeof(struct bcm3510_hab_cmd_tune));
  292. /* I2C Mode disabled, set 16 control / Data pairs */
  293. c.length = 0x10;
  294. c.clock_width = 0;
  295. /* CS1, CS0, DATA, CLK bits control the tuner RF_AGC_SEL pin is set to
  296. * logic high (as Configuration) */
  297. c.misc = 0x10;
  298. /* Set duration of the initial state of TUNCTL = 3.34 micro Sec */
  299. c.TUNCTL_state = 0x40;
  300. /* PRESCALER DEVIDE RATIO | BC1_2_3_4; (band switch), 1stosc REFERENCE COUNTER REF_S12 and REF_S11 */
  301. c.ctl_dat[0].ctrl.size = BITS_8;
  302. c.ctl_dat[0].data = 0x80 | bc;
  303. /* Control DATA pin, 1stosc REFERENCE COUNTER REF_S10 to REF_S3 */
  304. c.ctl_dat[1].ctrl.size = BITS_8;
  305. c.ctl_dat[1].data = 4;
  306. /* set CONTROL BIT 1 to 1, 1stosc REFERENCE COUNTER REF_S2 to REF_S1 */
  307. c.ctl_dat[2].ctrl.size = BITS_3;
  308. c.ctl_dat[2].data = 0x20;
  309. /* control CS0 pin, pulse byte ? */
  310. c.ctl_dat[3].ctrl.size = BITS_3;
  311. c.ctl_dat[3].ctrl.clk_off = 1;
  312. c.ctl_dat[3].ctrl.cs0 = 1;
  313. c.ctl_dat[3].data = 0x40;
  314. /* PGM_S18 to PGM_S11 */
  315. c.ctl_dat[4].ctrl.size = BITS_8;
  316. c.ctl_dat[4].data = n >> 3;
  317. /* PGM_S10 to PGM_S8, SWL_S7 to SWL_S3 */
  318. c.ctl_dat[5].ctrl.size = BITS_8;
  319. c.ctl_dat[5].data = ((n & 0x7) << 5) | (a >> 2);
  320. /* SWL_S2 and SWL_S1, set CONTROL BIT 2 to 0 */
  321. c.ctl_dat[6].ctrl.size = BITS_3;
  322. c.ctl_dat[6].data = (a << 6) & 0xdf;
  323. /* control CS0 pin, pulse byte ? */
  324. c.ctl_dat[7].ctrl.size = BITS_3;
  325. c.ctl_dat[7].ctrl.clk_off = 1;
  326. c.ctl_dat[7].ctrl.cs0 = 1;
  327. c.ctl_dat[7].data = 0x40;
  328. /* PRESCALER DEVIDE RATIO, 2ndosc REFERENCE COUNTER REF_S12 and REF_S11 */
  329. c.ctl_dat[8].ctrl.size = BITS_8;
  330. c.ctl_dat[8].data = 0x80;
  331. /* 2ndosc REFERENCE COUNTER REF_S10 to REF_S3 */
  332. c.ctl_dat[9].ctrl.size = BITS_8;
  333. c.ctl_dat[9].data = 0x10;
  334. /* set CONTROL BIT 1 to 1, 2ndosc REFERENCE COUNTER REF_S2 to REF_S1 */
  335. c.ctl_dat[10].ctrl.size = BITS_3;
  336. c.ctl_dat[10].data = 0x20;
  337. /* pulse byte */
  338. c.ctl_dat[11].ctrl.size = BITS_3;
  339. c.ctl_dat[11].ctrl.clk_off = 1;
  340. c.ctl_dat[11].ctrl.cs1 = 1;
  341. c.ctl_dat[11].data = 0x40;
  342. /* PGM_S18 to PGM_S11 */
  343. c.ctl_dat[12].ctrl.size = BITS_8;
  344. c.ctl_dat[12].data = 0x2a;
  345. /* PGM_S10 to PGM_S8 and SWL_S7 to SWL_S3 */
  346. c.ctl_dat[13].ctrl.size = BITS_8;
  347. c.ctl_dat[13].data = 0x8e;
  348. /* SWL_S2 and SWL_S1 and set CONTROL BIT 2 to 0 */
  349. c.ctl_dat[14].ctrl.size = BITS_3;
  350. c.ctl_dat[14].data = 0;
  351. /* Pulse Byte */
  352. c.ctl_dat[15].ctrl.size = BITS_3;
  353. c.ctl_dat[15].ctrl.clk_off = 1;
  354. c.ctl_dat[15].ctrl.cs1 = 1;
  355. c.ctl_dat[15].data = 0x40;
  356. return bcm3510_do_hab_cmd(st,CMD_TUNE, MSGID_TUNE,(u8 *) &c,sizeof(c), NULL, 0);
  357. }
  358. static int bcm3510_set_freq(struct bcm3510_state* st,u32 freq)
  359. {
  360. u8 bc,a;
  361. u16 n;
  362. s32 YIntercept,Tfvco1;
  363. freq /= 1000;
  364. deb_info("%dkHz:",freq);
  365. /* set Band Switch */
  366. if (freq <= 168000)
  367. bc = 0x1c;
  368. else if (freq <= 378000)
  369. bc = 0x2c;
  370. else
  371. bc = 0x30;
  372. if (freq >= 470000) {
  373. freq -= 470001;
  374. YIntercept = 18805;
  375. } else if (freq >= 90000) {
  376. freq -= 90001;
  377. YIntercept = 15005;
  378. } else if (freq >= 76000){
  379. freq -= 76001;
  380. YIntercept = 14865;
  381. } else {
  382. freq -= 54001;
  383. YIntercept = 14645;
  384. }
  385. Tfvco1 = (((freq/6000)*60 + YIntercept)*4)/10;
  386. n = Tfvco1 >> 6;
  387. a = Tfvco1 & 0x3f;
  388. deb_info(" BC1_2_3_4: %x, N: %x A: %x\n", bc, n, a);
  389. if (n >= 16 && n <= 2047)
  390. return bcm3510_tuner_cmd(st,bc,n,a);
  391. return -EINVAL;
  392. }
  393. static int bcm3510_set_frontend(struct dvb_frontend* fe,
  394. struct dvb_frontend_parameters *p)
  395. {
  396. struct bcm3510_state* st = fe->demodulator_priv;
  397. struct bcm3510_hab_cmd_ext_acquire cmd;
  398. struct bcm3510_hab_cmd_bert_control bert;
  399. int ret;
  400. memset(&cmd,0,sizeof(cmd));
  401. switch (p->u.vsb.modulation) {
  402. case QAM_256:
  403. cmd.ACQUIRE0.MODE = 0x1;
  404. cmd.ACQUIRE1.SYM_RATE = 0x1;
  405. cmd.ACQUIRE1.IF_FREQ = 0x1;
  406. break;
  407. case QAM_64:
  408. cmd.ACQUIRE0.MODE = 0x2;
  409. cmd.ACQUIRE1.SYM_RATE = 0x2;
  410. cmd.ACQUIRE1.IF_FREQ = 0x1;
  411. break;
  412. /* case QAM_256:
  413. cmd.ACQUIRE0.MODE = 0x3;
  414. break;
  415. case QAM_128:
  416. cmd.ACQUIRE0.MODE = 0x4;
  417. break;
  418. case QAM_64:
  419. cmd.ACQUIRE0.MODE = 0x5;
  420. break;
  421. case QAM_32:
  422. cmd.ACQUIRE0.MODE = 0x6;
  423. break;
  424. case QAM_16:
  425. cmd.ACQUIRE0.MODE = 0x7;
  426. break;*/
  427. case VSB_8:
  428. cmd.ACQUIRE0.MODE = 0x8;
  429. cmd.ACQUIRE1.SYM_RATE = 0x0;
  430. cmd.ACQUIRE1.IF_FREQ = 0x0;
  431. break;
  432. case VSB_16:
  433. cmd.ACQUIRE0.MODE = 0x9;
  434. cmd.ACQUIRE1.SYM_RATE = 0x0;
  435. cmd.ACQUIRE1.IF_FREQ = 0x0;
  436. default:
  437. return -EINVAL;
  438. };
  439. cmd.ACQUIRE0.OFFSET = 0;
  440. cmd.ACQUIRE0.NTSCSWEEP = 1;
  441. cmd.ACQUIRE0.FA = 1;
  442. cmd.ACQUIRE0.BW = 0;
  443. /* if (enableOffset) {
  444. cmd.IF_OFFSET0 = xx;
  445. cmd.IF_OFFSET1 = xx;
  446. cmd.SYM_OFFSET0 = xx;
  447. cmd.SYM_OFFSET1 = xx;
  448. if (enableNtscSweep) {
  449. cmd.NTSC_OFFSET0;
  450. cmd.NTSC_OFFSET1;
  451. }
  452. } */
  453. bcm3510_do_hab_cmd(st, CMD_ACQUIRE, MSGID_EXT_TUNER_ACQUIRE, (u8 *) &cmd, sizeof(cmd), NULL, 0);
  454. /* doing it with different MSGIDs, data book and source differs */
  455. bert.BE = 0;
  456. bert.unused = 0;
  457. bcm3510_do_hab_cmd(st, CMD_STATE_CONTROL, MSGID_BERT_CONTROL, (u8 *) &bert, sizeof(bert), NULL, 0);
  458. bcm3510_do_hab_cmd(st, CMD_STATE_CONTROL, MSGID_BERT_SET, (u8 *) &bert, sizeof(bert), NULL, 0);
  459. bcm3510_bert_reset(st);
  460. if ((ret = bcm3510_set_freq(st,p->frequency)) < 0)
  461. return ret;
  462. memset(&st->status1,0,sizeof(st->status1));
  463. memset(&st->status2,0,sizeof(st->status2));
  464. st->status_check_interval = 500;
  465. /* Give the AP some time */
  466. msleep(200);
  467. return 0;
  468. }
  469. static int bcm3510_sleep(struct dvb_frontend* fe)
  470. {
  471. return 0;
  472. }
  473. static int bcm3510_get_tune_settings(struct dvb_frontend *fe, struct dvb_frontend_tune_settings *s)
  474. {
  475. s->min_delay_ms = 1000;
  476. s->step_size = 0;
  477. s->max_drift = 0;
  478. return 0;
  479. }
  480. static void bcm3510_release(struct dvb_frontend* fe)
  481. {
  482. struct bcm3510_state* state = fe->demodulator_priv;
  483. kfree(state);
  484. }
  485. /* firmware download:
  486. * firmware file is build up like this:
  487. * 16bit addr, 16bit length, 8byte of length
  488. */
  489. #define BCM3510_DEFAULT_FIRMWARE "dvb-fe-bcm3510-01.fw"
  490. static int bcm3510_write_ram(struct bcm3510_state *st, u16 addr, u8 *b, u16 len)
  491. {
  492. int ret = 0,i;
  493. bcm3510_register_value vH, vL,vD;
  494. vH.MADRH_a9 = addr >> 8;
  495. vL.MADRL_aa = addr;
  496. if ((ret = bcm3510_writeB(st,0xa9,vH)) < 0) return ret;
  497. if ((ret = bcm3510_writeB(st,0xaa,vL)) < 0) return ret;
  498. for (i = 0; i < len; i++) {
  499. vD.MDATA_ab = b[i];
  500. if ((ret = bcm3510_writeB(st,0xab,vD)) < 0)
  501. return ret;
  502. }
  503. return 0;
  504. }
  505. static int bcm3510_download_firmware(struct dvb_frontend* fe)
  506. {
  507. struct bcm3510_state* st = fe->demodulator_priv;
  508. const struct firmware *fw;
  509. u16 addr,len;
  510. u8 *b;
  511. int ret,i;
  512. deb_info("requesting firmware\n");
  513. if ((ret = st->config->request_firmware(fe, &fw, BCM3510_DEFAULT_FIRMWARE)) < 0) {
  514. err("could not load firmware (%s): %d",BCM3510_DEFAULT_FIRMWARE,ret);
  515. return ret;
  516. }
  517. deb_info("got firmware: %zd\n",fw->size);
  518. b = fw->data;
  519. for (i = 0; i < fw->size;) {
  520. addr = le16_to_cpu( *( (u16 *)&b[i] ) );
  521. len = le16_to_cpu( *( (u16 *)&b[i+2] ) );
  522. deb_info("firmware chunk, addr: 0x%04x, len: 0x%04x, total length: 0x%04zx\n",addr,len,fw->size);
  523. if ((ret = bcm3510_write_ram(st,addr,&b[i+4],len)) < 0) {
  524. err("firmware download failed: %d\n",ret);
  525. return ret;
  526. }
  527. i += 4 + len;
  528. }
  529. release_firmware(fw);
  530. deb_info("firmware download successfully completed\n");
  531. return 0;
  532. }
  533. static int bcm3510_check_firmware_version(struct bcm3510_state *st)
  534. {
  535. struct bcm3510_hab_cmd_get_version_info ver;
  536. bcm3510_do_hab_cmd(st,CMD_GET_VERSION_INFO,MSGID_GET_VERSION_INFO,NULL,0,(u8*)&ver,sizeof(ver));
  537. deb_info("Version information: 0x%02x 0x%02x 0x%02x 0x%02x\n",
  538. ver.microcode_version, ver.script_version, ver.config_version, ver.demod_version);
  539. if (ver.script_version == BCM3510_DEF_SCRIPT_VERSION &&
  540. ver.config_version == BCM3510_DEF_CONFIG_VERSION &&
  541. ver.demod_version == BCM3510_DEF_DEMOD_VERSION)
  542. return 0;
  543. deb_info("version check failed\n");
  544. return -ENODEV;
  545. }
  546. /* (un)resetting the AP */
  547. static int bcm3510_reset(struct bcm3510_state *st)
  548. {
  549. int ret;
  550. unsigned long t;
  551. bcm3510_register_value v;
  552. bcm3510_readB(st,0xa0,&v); v.HCTL1_a0.RESET = 1;
  553. if ((ret = bcm3510_writeB(st,0xa0,v)) < 0)
  554. return ret;
  555. t = jiffies + 3*HZ;
  556. while (time_before(jiffies, t)) {
  557. msleep(10);
  558. if ((ret = bcm3510_readB(st,0xa2,&v)) < 0)
  559. return ret;
  560. if (v.APSTAT1_a2.RESET)
  561. return 0;
  562. }
  563. deb_info("reset timed out\n");
  564. return -ETIMEDOUT;
  565. }
  566. static int bcm3510_clear_reset(struct bcm3510_state *st)
  567. {
  568. bcm3510_register_value v;
  569. int ret;
  570. unsigned long t;
  571. v.raw = 0;
  572. if ((ret = bcm3510_writeB(st,0xa0,v)) < 0)
  573. return ret;
  574. t = jiffies + 3*HZ;
  575. while (time_before(jiffies, t)) {
  576. msleep(10);
  577. if ((ret = bcm3510_readB(st,0xa2,&v)) < 0)
  578. return ret;
  579. /* verify that reset is cleared */
  580. if (!v.APSTAT1_a2.RESET)
  581. return 0;
  582. }
  583. deb_info("reset clear timed out\n");
  584. return -ETIMEDOUT;
  585. }
  586. static int bcm3510_init_cold(struct bcm3510_state *st)
  587. {
  588. int ret;
  589. bcm3510_register_value v;
  590. /* read Acquisation Processor status register and check it is not in RUN mode */
  591. if ((ret = bcm3510_readB(st,0xa2,&v)) < 0)
  592. return ret;
  593. if (v.APSTAT1_a2.RUN) {
  594. deb_info("AP is already running - firmware already loaded.\n");
  595. return 0;
  596. }
  597. deb_info("reset?\n");
  598. if ((ret = bcm3510_reset(st)) < 0)
  599. return ret;
  600. deb_info("tristate?\n");
  601. /* tri-state */
  602. v.TSTCTL_2e.CTL = 0;
  603. if ((ret = bcm3510_writeB(st,0x2e,v)) < 0)
  604. return ret;
  605. deb_info("firmware?\n");
  606. if ((ret = bcm3510_download_firmware(&st->frontend)) < 0 ||
  607. (ret = bcm3510_clear_reset(st)) < 0)
  608. return ret;
  609. /* anything left here to Let the acquisition processor begin execution at program counter 0000 ??? */
  610. return 0;
  611. }
  612. static int bcm3510_init(struct dvb_frontend* fe)
  613. {
  614. struct bcm3510_state* st = fe->demodulator_priv;
  615. bcm3510_register_value j;
  616. struct bcm3510_hab_cmd_set_agc c;
  617. int ret;
  618. if ((ret = bcm3510_readB(st,0xca,&j)) < 0)
  619. return ret;
  620. deb_info("JDEC: %02x\n",j.raw);
  621. switch (j.JDEC_ca.JDEC) {
  622. case JDEC_WAIT_AT_RAM:
  623. deb_info("attempting to download firmware\n");
  624. if ((ret = bcm3510_init_cold(st)) < 0)
  625. return ret;
  626. case JDEC_EEPROM_LOAD_WAIT: /* fall-through is wanted */
  627. deb_info("firmware is loaded\n");
  628. bcm3510_check_firmware_version(st);
  629. break;
  630. default:
  631. return -ENODEV;
  632. }
  633. memset(&c,0,1);
  634. c.SEL = 1;
  635. bcm3510_do_hab_cmd(st,CMD_AUTO_PARAM,MSGID_SET_RF_AGC_SEL,(u8 *)&c,sizeof(c),NULL,0);
  636. return 0;
  637. }
  638. static struct dvb_frontend_ops bcm3510_ops;
  639. struct dvb_frontend* bcm3510_attach(const struct bcm3510_config *config,
  640. struct i2c_adapter *i2c)
  641. {
  642. struct bcm3510_state* state = NULL;
  643. int ret;
  644. bcm3510_register_value v;
  645. /* allocate memory for the internal state */
  646. state = kzalloc(sizeof(struct bcm3510_state), GFP_KERNEL);
  647. if (state == NULL)
  648. goto error;
  649. /* setup the state */
  650. state->config = config;
  651. state->i2c = i2c;
  652. memcpy(&state->ops, &bcm3510_ops, sizeof(struct dvb_frontend_ops));
  653. /* create dvb_frontend */
  654. state->frontend.ops = &state->ops;
  655. state->frontend.demodulator_priv = state;
  656. sema_init(&state->hab_sem, 1);
  657. if ((ret = bcm3510_readB(state,0xe0,&v)) < 0)
  658. goto error;
  659. deb_info("Revision: 0x%1x, Layer: 0x%1x.\n",v.REVID_e0.REV,v.REVID_e0.LAYER);
  660. if ((v.REVID_e0.REV != 0x1 && v.REVID_e0.LAYER != 0xb) && /* cold */
  661. (v.REVID_e0.REV != 0x8 && v.REVID_e0.LAYER != 0x0)) /* warm */
  662. goto error;
  663. info("Revision: 0x%1x, Layer: 0x%1x.",v.REVID_e0.REV,v.REVID_e0.LAYER);
  664. bcm3510_reset(state);
  665. return &state->frontend;
  666. error:
  667. kfree(state);
  668. return NULL;
  669. }
  670. EXPORT_SYMBOL(bcm3510_attach);
  671. static struct dvb_frontend_ops bcm3510_ops = {
  672. .info = {
  673. .name = "Broadcom BCM3510 VSB/QAM frontend",
  674. .type = FE_ATSC,
  675. .frequency_min = 54000000,
  676. .frequency_max = 803000000,
  677. /* stepsize is just a guess */
  678. .frequency_stepsize = 0,
  679. .caps =
  680. FE_CAN_FEC_1_2 | FE_CAN_FEC_2_3 | FE_CAN_FEC_3_4 |
  681. FE_CAN_FEC_5_6 | FE_CAN_FEC_7_8 | FE_CAN_FEC_AUTO |
  682. FE_CAN_8VSB | FE_CAN_16VSB |
  683. FE_CAN_QAM_16 | FE_CAN_QAM_64 | FE_CAN_QAM_128 | FE_CAN_QAM_256
  684. },
  685. .release = bcm3510_release,
  686. .init = bcm3510_init,
  687. .sleep = bcm3510_sleep,
  688. .set_frontend = bcm3510_set_frontend,
  689. .get_tune_settings = bcm3510_get_tune_settings,
  690. .read_status = bcm3510_read_status,
  691. .read_ber = bcm3510_read_ber,
  692. .read_signal_strength = bcm3510_read_signal_strength,
  693. .read_snr = bcm3510_read_snr,
  694. .read_ucblocks = bcm3510_read_unc,
  695. };
  696. MODULE_DESCRIPTION("Broadcom BCM3510 ATSC (8VSB/16VSB & ITU J83 AnnexB FEC QAM64/256) demodulator driver");
  697. MODULE_AUTHOR("Patrick Boettcher <patrick.boettcher@desy.de>");
  698. MODULE_LICENSE("GPL");