rtl-sdr.c 18 KB

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  1. /*
  2. * rtl-sdr, a poor man's SDR using a Realtek RTL2832 based DVB-stick
  3. * Copyright (C) 2012 by Steve Markgraf <steve@steve-m.de>
  4. *
  5. * This program is free software: you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License as published by
  7. * the Free Software Foundation, either version 2 of the License, or
  8. * (at your option) any later version.
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU General Public License
  16. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  17. */
  18. #include <errno.h>
  19. #include <signal.h>
  20. #include <string.h>
  21. #include <stdio.h>
  22. #include <stdlib.h>
  23. #include <math.h>
  24. #ifndef _WIN32
  25. #include <unistd.h>
  26. #endif
  27. #include <libusb.h>
  28. #include <rtl-sdr.h>
  29. #include "tuner_e4000.h"
  30. #include "tuner_fc0012.h"
  31. #include "tuner_fc0013.h"
  32. #include "tuner_fc2580.h"
  33. typedef struct rtlsdr_tuner {
  34. int(*init)(void *);
  35. int(*exit)(void *);
  36. int(*tune)(void *, int freq /* Hz */);
  37. int(*set_bw)(void *, int bw /* Hz */);
  38. int(*set_gain)(void *, int gain /* dB */);
  39. int freq; /* Hz */
  40. int corr; /* ppm */
  41. int gain; /* dB */
  42. } rtlsdr_tuner_t;
  43. void rtlsdr_set_gpio_bit(rtlsdr_dev_t *dev, uint8_t gpio, int val);
  44. /* generic tuner interface functions, shall be moved to the tuner implementations */
  45. int e4k_init(void *dev) { return e4000_Initialize(dev); }
  46. int e4k_exit(void *dev) { return 0; }
  47. int e4k_tune(void *dev, int freq) { return e4000_SetRfFreqHz(dev, freq); }
  48. int e4k_set_bw(void *dev, int bw) { return e4000_SetBandwidthHz(dev, 8000000); }
  49. int e4k_set_gain(void *dev, int gain) { return 0; }
  50. int fc0012_init(void *dev) { return FC0012_Open(dev); }
  51. int fc0012_exit(void *dev) { return 0; }
  52. int fc0012_tune(void *dev, int freq) {
  53. unsigned int bw = 6;
  54. /* select V-band/U-band filter */
  55. rtlsdr_set_gpio_bit(dev, 6, (freq > 300000000) ? 1 : 0);
  56. return FC0012_SetFrequency(dev, freq/1000, bw & 0xff);
  57. }
  58. int fc0012_set_bw(void *dev, int bw) {
  59. unsigned long freq = ((rtlsdr_tuner_t *)dev)->freq;
  60. return FC0013_SetFrequency(dev, freq/1000, bw/1000000);
  61. }
  62. int fc0012_set_gain(void *dev, int gain) { return 0; }
  63. int fc0013_init(void *dev) { return FC0013_Open(dev); }
  64. int fc0013_exit(void *dev) { return 0; }
  65. int fc0013_tune(void *dev, int freq) {
  66. unsigned int bw = 6;
  67. return FC0013_SetFrequency(dev, freq/1000, bw & 0xff);
  68. }
  69. int fc0013_set_bw(void *dev, int bw) {
  70. unsigned long freq = ((rtlsdr_tuner_t *)dev)->freq;
  71. return FC0013_SetFrequency(dev, freq/1000, bw/1000000);
  72. }
  73. int fc0013_set_gain(void *dev, int gain) { return 0; }
  74. int fc2580_init(void *dev) { return fc2580_Initialize(dev); }
  75. int fc2580_exit(void *dev) { return 0; }
  76. int fc2580_tune(void *dev, int freq) { return fc2580_SetRfFreqHz(dev, freq); }
  77. int fc2580_set_bw(void *dev, int bw) { return fc2580_SetBandwidthMode(dev, 1); }
  78. int fc2580_set_gain(void *dev, int gain) { return 0; }
  79. enum rtlsdr_tuners {
  80. RTLSDR_TUNER_E4000,
  81. RTLSDR_TUNER_FC0012,
  82. RTLSDR_TUNER_FC0013,
  83. RTLSDR_TUNER_FC2580
  84. };
  85. static rtlsdr_tuner_t tuners[] = {
  86. { e4k_init, e4k_exit, e4k_tune, e4k_set_bw, e4k_set_gain, 0, 0, 0 },
  87. { fc0012_init, fc0012_exit, fc0012_tune, fc0012_set_bw, fc0012_set_gain, 0, 0, 0 },
  88. { fc0013_init, fc0013_exit, fc0013_tune, fc0013_set_bw, fc0013_set_gain, 0, 0, 0 },
  89. { fc2580_init, fc2580_exit, fc2580_tune, fc2580_set_bw, fc2580_set_gain, 0, 0, 0 },
  90. };
  91. typedef struct rtlsdr_device {
  92. uint16_t vid;
  93. uint16_t pid;
  94. const char *name;
  95. } rtlsdr_device_t;
  96. static rtlsdr_device_t devices[] = {
  97. { 0x0bda, 0x2832, "Generic RTL2832U (e.g. hama nano)" },
  98. { 0x0bda, 0x2838, "ezcap USB 2.0 DVB-T/DAB/FM dongle" },
  99. { 0x0ccd, 0x00a9, "Terratec Cinergy T Stick Black (rev 1)" },
  100. { 0x0ccd, 0x00b3, "Terratec NOXON DAB/DAB+ USB dongle (rev 1)" },
  101. { 0x0ccd, 0x00e0, "Terratec NOXON DAB/DAB+ USB dongle (rev 2)" },
  102. { 0x1f4d, 0xb803, "GTek T803" },
  103. { 0x1f4d, 0xc803, "Lifeview LV5TDeluxe" },
  104. { 0x1b80, 0xd3a4, "Twintech UT-40" },
  105. { 0x1d19, 0x1101, "Dexatek DK DVB-T Dongle (Logilink VG0002A)" },
  106. { 0x1d19, 0x1102, "Dexatek DK DVB-T Dongle (MSI DigiVox mini II V3.0)" },
  107. { 0x0458, 0x707f, "Genius TVGo DVB-T03 USB dongle (Ver. B)" },
  108. { 0x1b80, 0xd393, "GIGABYTE GT-U7300" },
  109. { 0x1b80, 0xd395, "Peak 102569AGPK" },
  110. { 0x1b80, 0xd39d, "SVEON STV20 DVB-T USB & FM" },
  111. };
  112. #define BUF_COUNT 32
  113. #define BUF_LENGTH (16 * 16384)
  114. typedef struct rtlsdr_dev {
  115. libusb_context *ctx;
  116. struct libusb_device_handle *devh;
  117. struct libusb_transfer *xfer[BUF_COUNT];
  118. unsigned char *xfer_buf[BUF_COUNT];
  119. rtlsdr_async_read_cb_t cb;
  120. void *cb_ctx;
  121. int run_async;
  122. rtlsdr_tuner_t *tuner;
  123. int rate; /* Hz */
  124. } rtlsdr_dev_t;
  125. #define CRYSTAL_FREQ 28800000
  126. #define MAX_SAMP_RATE 3200000
  127. #define CTRL_IN (LIBUSB_REQUEST_TYPE_VENDOR | LIBUSB_ENDPOINT_IN)
  128. #define CTRL_OUT (LIBUSB_REQUEST_TYPE_VENDOR | LIBUSB_ENDPOINT_OUT)
  129. enum usb_reg {
  130. USB_SYSCTL = 0x2000,
  131. USB_CTRL = 0x2010,
  132. USB_STAT = 0x2014,
  133. USB_EPA_CFG = 0x2144,
  134. USB_EPA_CTL = 0x2148,
  135. USB_EPA_MAXPKT = 0x2158,
  136. USB_EPA_MAXPKT_2 = 0x215a,
  137. USB_EPA_FIFO_CFG = 0x2160,
  138. };
  139. enum sys_reg {
  140. DEMOD_CTL = 0x3000,
  141. GPO = 0x3001,
  142. GPI = 0x3002,
  143. GPOE = 0x3003,
  144. GPD = 0x3004,
  145. SYSINTE = 0x3005,
  146. SYSINTS = 0x3006,
  147. GP_CFG0 = 0x3007,
  148. GP_CFG1 = 0x3008,
  149. SYSINTE_1 = 0x3009,
  150. SYSINTS_1 = 0x300a,
  151. DEMOD_CTL_1 = 0x300b,
  152. IR_SUSPEND = 0x300c,
  153. };
  154. enum blocks {
  155. DEMODB = 0,
  156. USBB = 1,
  157. SYSB = 2,
  158. TUNB = 3,
  159. ROMB = 4,
  160. IRB = 5,
  161. IICB = 6,
  162. };
  163. int rtlsdr_read_array(rtlsdr_dev_t *dev, uint8_t block, uint16_t addr, uint8_t *array, uint8_t len)
  164. {
  165. int r;
  166. uint16_t index = (block << 8);
  167. r = libusb_control_transfer(dev->devh, CTRL_IN, 0, addr, index, array, len, 0);
  168. return r;
  169. }
  170. int rtlsdr_write_array(rtlsdr_dev_t *dev, uint8_t block, uint16_t addr, uint8_t *array, uint8_t len)
  171. {
  172. int r;
  173. uint16_t index = (block << 8) | 0x10;
  174. r = libusb_control_transfer(dev->devh, CTRL_OUT, 0, addr, index, array, len, 0);
  175. return r;
  176. }
  177. int rtlsdr_i2c_write_reg(rtlsdr_dev_t *dev, uint8_t i2c_addr, uint8_t reg, uint8_t val)
  178. {
  179. uint16_t addr = i2c_addr;
  180. uint8_t data[2];
  181. data[0] = reg;
  182. data[1] = val;
  183. return rtlsdr_write_array(dev, IICB, addr, (uint8_t *)&data, 2);
  184. }
  185. uint8_t rtlsdr_i2c_read_reg(rtlsdr_dev_t *dev, uint8_t i2c_addr, uint8_t reg)
  186. {
  187. uint16_t addr = i2c_addr;
  188. uint8_t data;
  189. rtlsdr_write_array(dev, IICB, addr, &reg, 1);
  190. rtlsdr_read_array(dev, IICB, addr, &data, 1);
  191. return data;
  192. }
  193. int rtlsdr_i2c_write(rtlsdr_dev_t *dev, uint8_t i2c_addr, uint8_t *buffer, int len)
  194. {
  195. uint16_t addr = i2c_addr;
  196. if (!dev)
  197. return -1;
  198. return rtlsdr_write_array(dev, IICB, addr, buffer, len);
  199. }
  200. int rtlsdr_i2c_read(rtlsdr_dev_t *dev, uint8_t i2c_addr, uint8_t *buffer, int len)
  201. {
  202. uint16_t addr = i2c_addr;
  203. if (!dev)
  204. return -1;
  205. return rtlsdr_read_array(dev, IICB, addr, buffer, len);
  206. }
  207. uint16_t rtlsdr_read_reg(rtlsdr_dev_t *dev, uint8_t block, uint16_t addr, uint8_t len)
  208. {
  209. int r;
  210. unsigned char data[2];
  211. uint16_t index = (block << 8);
  212. uint16_t reg;
  213. r = libusb_control_transfer(dev->devh, CTRL_IN, 0, addr, index, data, len, 0);
  214. if (r < 0)
  215. fprintf(stderr, "%s failed\n", __FUNCTION__);
  216. reg = (data[1] << 8) | data[0];
  217. return reg;
  218. }
  219. void rtlsdr_write_reg(rtlsdr_dev_t *dev, uint8_t block, uint16_t addr, uint16_t val, uint8_t len)
  220. {
  221. int r;
  222. unsigned char data[2];
  223. uint16_t index = (block << 8) | 0x10;
  224. if (len == 1)
  225. data[0] = val & 0xff;
  226. else
  227. data[0] = val >> 8;
  228. data[1] = val & 0xff;
  229. r = libusb_control_transfer(dev->devh, CTRL_OUT, 0, addr, index, data, len, 0);
  230. if (r < 0)
  231. fprintf(stderr, "%s failed\n", __FUNCTION__);
  232. }
  233. uint16_t rtlsdr_demod_read_reg(rtlsdr_dev_t *dev, uint8_t page, uint8_t addr, uint8_t len)
  234. {
  235. int r;
  236. unsigned char data[2];
  237. uint16_t index = page;
  238. uint16_t reg;
  239. addr = (addr << 8) | 0x20;
  240. r = libusb_control_transfer(dev->devh, CTRL_IN, 0, addr, index, data, len, 0);
  241. if (r < 0)
  242. fprintf(stderr, "%s failed\n", __FUNCTION__);
  243. reg = (data[1] << 8) | data[0];
  244. return reg;
  245. }
  246. void rtlsdr_demod_write_reg(rtlsdr_dev_t *dev, uint8_t page, uint16_t addr, uint16_t val, uint8_t len)
  247. {
  248. int r;
  249. unsigned char data[2];
  250. uint16_t index = 0x10 | page;
  251. addr = (addr << 8) | 0x20;
  252. if (len == 1)
  253. data[0] = val & 0xff;
  254. else
  255. data[0] = val >> 8;
  256. data[1] = val & 0xff;
  257. r = libusb_control_transfer(dev->devh, CTRL_OUT, 0, addr, index, data, len, 0);
  258. if (r < 0)
  259. fprintf(stderr, "%s failed\n", __FUNCTION__);
  260. rtlsdr_demod_read_reg(dev, 0x0a, 0x01, 1);
  261. }
  262. void rtlsdr_set_gpio_bit(rtlsdr_dev_t *dev, uint8_t gpio, int val)
  263. {
  264. uint8_t r;
  265. gpio = 1 << gpio;
  266. r = rtlsdr_read_reg(dev, SYSB, GPO, 1);
  267. r = val ? (r | gpio) : (r & ~gpio);
  268. rtlsdr_write_reg(dev, SYSB, GPO, r, 1);
  269. }
  270. void rtlsdr_set_gpio_output(rtlsdr_dev_t *dev, uint8_t gpio)
  271. {
  272. int r;
  273. gpio = 1 << gpio;
  274. r = rtlsdr_read_reg(dev, SYSB, GPD, 1);
  275. rtlsdr_write_reg(dev, SYSB, GPO, r & ~gpio, 1);
  276. r = rtlsdr_read_reg(dev, SYSB, GPOE, 1);
  277. rtlsdr_write_reg(dev, SYSB, GPOE, r | gpio, 1);
  278. }
  279. void rtlsdr_set_i2c_repeater(rtlsdr_dev_t *dev, int on)
  280. {
  281. rtlsdr_demod_write_reg(dev, 1, 0x01, on ? 0x18 : 0x10, 1);
  282. }
  283. void rtlsdr_init_baseband(rtlsdr_dev_t *dev)
  284. {
  285. unsigned int i;
  286. /* default FIR coefficients used for DAB/FM by the Windows driver,
  287. * the DVB driver uses different ones */
  288. uint8_t fir_coeff[] = {
  289. 0xca, 0xdc, 0xd7, 0xd8, 0xe0, 0xf2, 0x0e, 0x35, 0x06, 0x50,
  290. 0x9c, 0x0d, 0x71, 0x11, 0x14, 0x71, 0x74, 0x19, 0x41, 0x00,
  291. };
  292. /* initialize USB */
  293. rtlsdr_write_reg(dev, USBB, USB_SYSCTL, 0x09, 1);
  294. rtlsdr_write_reg(dev, USBB, USB_EPA_MAXPKT, 0x0002, 2);
  295. rtlsdr_write_reg(dev, USBB, USB_EPA_CTL, 0x1002, 2);
  296. /* poweron demod */
  297. rtlsdr_write_reg(dev, SYSB, DEMOD_CTL_1, 0x22, 1);
  298. rtlsdr_write_reg(dev, SYSB, DEMOD_CTL, 0xe8, 1);
  299. /* reset demod (bit 3, soft_rst) */
  300. rtlsdr_demod_write_reg(dev, 1, 0x01, 0x14, 1);
  301. rtlsdr_demod_write_reg(dev, 1, 0x01, 0x10, 1);
  302. /* disable spectrum inversion and adjacent channel rejection */
  303. rtlsdr_demod_write_reg(dev, 1, 0x15, 0x00, 1);
  304. rtlsdr_demod_write_reg(dev, 1, 0x16, 0x0000, 2);
  305. /* set IF-frequency to 0 Hz */
  306. rtlsdr_demod_write_reg(dev, 1, 0x19, 0x0000, 2);
  307. /* set FIR coefficients */
  308. for (i = 0; i < sizeof (fir_coeff); i++)
  309. rtlsdr_demod_write_reg(dev, 1, 0x1c + i, fir_coeff[i], 1);
  310. rtlsdr_demod_write_reg(dev, 0, 0x19, 0x25, 1);
  311. /* init FSM state-holding register */
  312. rtlsdr_demod_write_reg(dev, 1, 0x93, 0xf0, 1);
  313. /* disable AGC (en_dagc, bit 0) */
  314. rtlsdr_demod_write_reg(dev, 1, 0x11, 0x00, 1);
  315. /* disable PID filter (enable_PID = 0) */
  316. rtlsdr_demod_write_reg(dev, 0, 0x61, 0x60, 1);
  317. /* opt_adc_iq = 0, default ADC_I/ADC_Q datapath */
  318. rtlsdr_demod_write_reg(dev, 0, 0x06, 0x80, 1);
  319. /* Enable Zero-IF mode (en_bbin bit), DC cancellation (en_dc_est),
  320. * IQ estimation/compensation (en_iq_comp, en_iq_est) */
  321. rtlsdr_demod_write_reg(dev, 1, 0xb1, 0x1b, 1);
  322. }
  323. int rtlsdr_set_center_freq(rtlsdr_dev_t *dev, uint32_t freq)
  324. {
  325. int r;
  326. double f = (double) freq;
  327. if (!dev || !dev->tuner)
  328. return -1;
  329. rtlsdr_set_i2c_repeater(dev, 1);
  330. f *= 1.0 + dev->tuner->corr / 1e6;
  331. r = dev->tuner->tune((void *)dev, (int) f);
  332. rtlsdr_set_i2c_repeater(dev, 0);
  333. if (!r)
  334. dev->tuner->freq = freq;
  335. return r;
  336. }
  337. int rtlsdr_get_center_freq(rtlsdr_dev_t *dev)
  338. {
  339. if (!dev || !dev->tuner)
  340. return -1;
  341. return dev->tuner->freq;
  342. }
  343. int rtlsdr_set_freq_correction(rtlsdr_dev_t *dev, int ppm)
  344. {
  345. int r;
  346. if (!dev || !dev->tuner)
  347. return -1;
  348. if (dev->tuner->corr == ppm)
  349. return -1;
  350. dev->tuner->corr = ppm;
  351. /* retune to apply new correction value */
  352. r = rtlsdr_set_center_freq(dev, dev->tuner->freq);
  353. return r;
  354. }
  355. int rtlsdr_get_freq_correction(rtlsdr_dev_t *dev)
  356. {
  357. if (!dev || !dev->tuner)
  358. return -1;
  359. return dev->tuner->corr;
  360. }
  361. int rtlsdr_set_tuner_gain(rtlsdr_dev_t *dev, int gain)
  362. {
  363. int r;
  364. if (!dev || !dev->tuner)
  365. return -1;
  366. r = dev->tuner->set_gain((void *)dev, gain);
  367. if (!r)
  368. dev->tuner->gain = gain;
  369. return r;
  370. }
  371. int rtlsdr_get_tuner_gain(rtlsdr_dev_t *dev)
  372. {
  373. if (!dev || !dev->tuner)
  374. return -1;
  375. return dev->tuner->gain;
  376. }
  377. int rtlsdr_set_sample_rate(rtlsdr_dev_t *dev, uint32_t samp_rate)
  378. {
  379. uint16_t tmp;
  380. uint32_t rsamp_ratio;
  381. double real_rate;
  382. if (!dev)
  383. return -1;
  384. /* check for the maximum rate the resampler supports */
  385. if (samp_rate > MAX_SAMP_RATE)
  386. samp_rate = MAX_SAMP_RATE;
  387. rsamp_ratio = (CRYSTAL_FREQ * pow(2, 22)) / samp_rate;
  388. rsamp_ratio &= ~3;
  389. real_rate = (CRYSTAL_FREQ * pow(2, 22)) / rsamp_ratio;
  390. fprintf(stderr, "Setting sample rate: %.3f Hz\n", real_rate);
  391. if (dev->tuner)
  392. dev->tuner->set_bw((void *)dev, real_rate);
  393. dev->rate = samp_rate;
  394. tmp = (rsamp_ratio >> 16);
  395. rtlsdr_demod_write_reg(dev, 1, 0x9f, tmp, 2);
  396. tmp = rsamp_ratio & 0xffff;
  397. rtlsdr_demod_write_reg(dev, 1, 0xa1, tmp, 2);
  398. return 0;
  399. }
  400. int rtlsdr_get_sample_rate(rtlsdr_dev_t *dev)
  401. {
  402. if (!dev)
  403. return -1;
  404. return dev->rate;
  405. }
  406. rtlsdr_device_t *find_known_device(uint16_t vid, uint16_t pid)
  407. {
  408. int i;
  409. rtlsdr_device_t *device = NULL;
  410. for (i = 0; i < sizeof(devices)/sizeof(rtlsdr_device_t); i++ ) {
  411. if (devices[i].vid == vid && devices[i].pid == pid) {
  412. device = &devices[i];
  413. break;
  414. }
  415. }
  416. return device;
  417. }
  418. uint32_t rtlsdr_get_device_count(void)
  419. {
  420. int i;
  421. libusb_device **list;
  422. uint32_t device_count = 0;
  423. struct libusb_device_descriptor dd;
  424. ssize_t cnt;
  425. libusb_init(NULL);
  426. cnt = libusb_get_device_list(NULL, &list);
  427. for (i = 0; i < cnt; i++) {
  428. libusb_get_device_descriptor(list[i], &dd);
  429. if (find_known_device(dd.idVendor, dd.idProduct))
  430. device_count++;
  431. }
  432. libusb_free_device_list(list, 0);
  433. libusb_exit(NULL);
  434. return device_count;
  435. }
  436. const char *rtlsdr_get_device_name(uint32_t index)
  437. {
  438. int i;
  439. libusb_device **list;
  440. struct libusb_device_descriptor dd;
  441. rtlsdr_device_t *device = NULL;
  442. uint32_t device_count = 0;
  443. ssize_t cnt;
  444. libusb_init(NULL);
  445. cnt = libusb_get_device_list(NULL, &list);
  446. for (i = 0; i < cnt; i++) {
  447. libusb_get_device_descriptor(list[i], &dd);
  448. device = find_known_device(dd.idVendor, dd.idProduct);
  449. if (device) {
  450. device_count++;
  451. if (index == device_count - 1)
  452. break;
  453. }
  454. }
  455. libusb_free_device_list(list, 0);
  456. libusb_exit(NULL);
  457. if (device)
  458. return device->name;
  459. else
  460. return "";
  461. }
  462. int rtlsdr_open(rtlsdr_dev_t **out_dev, uint32_t index)
  463. {
  464. int r;
  465. int i;
  466. libusb_device **list;
  467. rtlsdr_dev_t *dev = NULL;
  468. libusb_device *device = NULL;
  469. uint32_t device_count = 0;
  470. struct libusb_device_descriptor dd;
  471. uint8_t reg;
  472. ssize_t cnt;
  473. dev = malloc(sizeof(rtlsdr_dev_t));
  474. memset(dev, 0, sizeof(rtlsdr_dev_t));
  475. libusb_init(&dev->ctx);
  476. cnt = libusb_get_device_list(dev->ctx, &list);
  477. for (i = 0; i < cnt; i++) {
  478. device = list[i];
  479. libusb_get_device_descriptor(list[i], &dd);
  480. if (find_known_device(dd.idVendor, dd.idProduct)) {
  481. device_count++;
  482. }
  483. if (index == device_count - 1)
  484. break;
  485. device = NULL;
  486. }
  487. if (!device) {
  488. r = -1;
  489. goto err;
  490. }
  491. r = libusb_open(device, &dev->devh);
  492. if (r < 0) {
  493. libusb_free_device_list(list, 0);
  494. fprintf(stderr, "usb_open error %d\n", r);
  495. goto err;
  496. }
  497. libusb_free_device_list(list, 0);
  498. r = libusb_claim_interface(dev->devh, 0);
  499. if (r < 0) {
  500. fprintf(stderr, "usb_claim_interface error %d\n", r);
  501. goto err;
  502. }
  503. rtlsdr_init_baseband(dev);
  504. /* Probe tuners */
  505. rtlsdr_set_i2c_repeater(dev, 1);
  506. reg = rtlsdr_i2c_read_reg(dev, E4K_I2C_ADDR, E4K_CHECK_ADDR);
  507. if (reg == E4K_CHECK_VAL) {
  508. fprintf(stderr, "Found Elonics E4000 tuner\n");
  509. dev->tuner = &tuners[RTLSDR_TUNER_E4000];
  510. goto found;
  511. }
  512. reg = rtlsdr_i2c_read_reg(dev, FC0013_I2C_ADDR, FC0013_CHECK_ADDR);
  513. if (reg == FC0013_CHECK_VAL) {
  514. fprintf(stderr, "Found Fitipower FC0013 tuner\n");
  515. dev->tuner = &tuners[RTLSDR_TUNER_FC0013];
  516. goto found;
  517. }
  518. /* initialise GPIOs */
  519. rtlsdr_set_gpio_output(dev, 5);
  520. /* reset tuner before probing */
  521. rtlsdr_set_gpio_bit(dev, 5, 1);
  522. rtlsdr_set_gpio_bit(dev, 5, 0);
  523. reg = rtlsdr_i2c_read_reg(dev, FC2580_I2C_ADDR, FC2580_CHECK_ADDR);
  524. if ((reg & 0x7f) == FC2580_CHECK_VAL) {
  525. fprintf(stderr, "Found FCI 2580 tuner\n");
  526. dev->tuner = &tuners[RTLSDR_TUNER_FC2580];
  527. goto found;
  528. }
  529. reg = rtlsdr_i2c_read_reg(dev, FC0012_I2C_ADDR, FC0012_CHECK_ADDR);
  530. if (reg == FC0012_CHECK_VAL) {
  531. fprintf(stderr, "Found Fitipower FC0012 tuner\n");
  532. rtlsdr_set_gpio_output(dev, 6);
  533. dev->tuner = &tuners[RTLSDR_TUNER_FC0012];
  534. goto found;
  535. }
  536. found:
  537. if (dev->tuner)
  538. r =dev->tuner->init(dev);
  539. rtlsdr_set_i2c_repeater(dev, 0);
  540. *out_dev = dev;
  541. return 0;
  542. err:
  543. if (dev) {
  544. if (dev->ctx)
  545. libusb_exit(dev->ctx);
  546. free(dev);
  547. }
  548. return r;
  549. }
  550. int rtlsdr_close(rtlsdr_dev_t *dev)
  551. {
  552. int i;
  553. if (!dev)
  554. return -1;
  555. libusb_release_interface(dev->devh, 0);
  556. libusb_close(dev->devh);
  557. for(i = 0; i < BUF_COUNT; ++i) {
  558. if (dev->xfer[i])
  559. libusb_free_transfer(dev->xfer[i]);
  560. if (dev->xfer_buf[i])
  561. free(dev->xfer_buf[i]);
  562. }
  563. libusb_exit(dev->ctx);
  564. free(dev);
  565. return 0;
  566. }
  567. int rtlsdr_reset_buffer(rtlsdr_dev_t *dev)
  568. {
  569. if (!dev)
  570. return -1;
  571. rtlsdr_write_reg(dev, USBB, USB_EPA_CTL, 0x1002, 2);
  572. rtlsdr_write_reg(dev, USBB, USB_EPA_CTL, 0x0000, 2);
  573. return 0;
  574. }
  575. int rtlsdr_read_sync(rtlsdr_dev_t *dev, void *buf, int len, int *n_read)
  576. {
  577. if (!dev)
  578. return -1;
  579. return libusb_bulk_transfer(dev->devh, 0x81, buf, len, n_read, 3000);
  580. }
  581. static void LIBUSB_CALL _libusb_callback(struct libusb_transfer *transfer)
  582. {
  583. if (LIBUSB_TRANSFER_COMPLETED == transfer->status) {
  584. rtlsdr_dev_t *dev = (rtlsdr_dev_t *)transfer->user_data;
  585. dev->cb(transfer->buffer, transfer->actual_length, dev->cb_ctx);
  586. libusb_submit_transfer(transfer); /* resubmit transfer */
  587. } else {
  588. /*fprintf(stderr, "transfer %d\n", transfer->status);*/
  589. }
  590. }
  591. int rtlsdr_wait_async(rtlsdr_dev_t *dev, rtlsdr_async_read_cb_t cb, void *ctx)
  592. {
  593. int i, r;
  594. if (!dev)
  595. return -1;
  596. dev->cb = cb;
  597. dev->cb_ctx = ctx;
  598. for(i = 0; i < BUF_COUNT; ++i) {
  599. if (dev->xfer[i])
  600. continue;
  601. dev->xfer[i] = libusb_alloc_transfer(0);
  602. }
  603. for(i = 0; i < BUF_COUNT; ++i) {
  604. if (dev->xfer_buf[i])
  605. continue;
  606. dev->xfer_buf[i] = (unsigned char *)malloc(BUF_LENGTH);
  607. }
  608. for(i = 0; i < BUF_COUNT; ++i) {
  609. libusb_fill_bulk_transfer(dev->xfer[i],
  610. dev->devh,
  611. 0x81,
  612. dev->xfer_buf[i], BUF_LENGTH,
  613. _libusb_callback,
  614. (void *)dev, 0);
  615. libusb_submit_transfer(dev->xfer[i]);
  616. }
  617. dev->run_async = 1;
  618. while (dev->run_async) {
  619. struct timeval tv = { 1, 0 };
  620. r = libusb_handle_events_timeout(dev->ctx, &tv);
  621. if (r < 0) {
  622. /*fprintf(stderr, "handle_events %d\n", r);*/
  623. break;
  624. }
  625. }
  626. return r;
  627. }
  628. int rtlsdr_cancel_async(rtlsdr_dev_t *dev)
  629. {
  630. if (!dev)
  631. return -1;
  632. if (dev->run_async) {
  633. dev->run_async = 0;
  634. return 0;
  635. }
  636. return -2;
  637. }