ctatc.c 42 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Copyright (C) 2008, Creative Technology Ltd. All Rights Reserved.
  4. *
  5. * @File ctatc.c
  6. *
  7. * @Brief
  8. * This file contains the implementation of the device resource management
  9. * object.
  10. *
  11. * @Author Liu Chun
  12. * @Date Mar 28 2008
  13. */
  14. #include "ctatc.h"
  15. #include "ctpcm.h"
  16. #include "ctmixer.h"
  17. #include "ctsrc.h"
  18. #include "ctamixer.h"
  19. #include "ctdaio.h"
  20. #include "cttimer.h"
  21. #include <linux/delay.h>
  22. #include <linux/slab.h>
  23. #include <sound/pcm.h>
  24. #include <sound/control.h>
  25. #include <sound/asoundef.h>
  26. #define MONO_SUM_SCALE 0x19a8 /* 2^(-0.5) in 14-bit floating format */
  27. #define MAX_MULTI_CHN 8
  28. #define IEC958_DEFAULT_CON ((IEC958_AES0_NONAUDIO \
  29. | IEC958_AES0_CON_NOT_COPYRIGHT) \
  30. | ((IEC958_AES1_CON_MIXER \
  31. | IEC958_AES1_CON_ORIGINAL) << 8) \
  32. | (0x10 << 16) \
  33. | ((IEC958_AES3_CON_FS_48000) << 24))
  34. static const struct snd_pci_quirk subsys_20k1_list[] = {
  35. SND_PCI_QUIRK(PCI_VENDOR_ID_CREATIVE, 0x0021, "SB046x", CTSB046X),
  36. SND_PCI_QUIRK(PCI_VENDOR_ID_CREATIVE, 0x0022, "SB055x", CTSB055X),
  37. SND_PCI_QUIRK(PCI_VENDOR_ID_CREATIVE, 0x002f, "SB055x", CTSB055X),
  38. SND_PCI_QUIRK(PCI_VENDOR_ID_CREATIVE, 0x0029, "SB073x", CTSB073X),
  39. SND_PCI_QUIRK(PCI_VENDOR_ID_CREATIVE, 0x0031, "SB073x", CTSB073X),
  40. SND_PCI_QUIRK_MASK(PCI_VENDOR_ID_CREATIVE, 0xf000, 0x6000,
  41. "UAA", CTUAA),
  42. { } /* terminator */
  43. };
  44. static const struct snd_pci_quirk subsys_20k2_list[] = {
  45. SND_PCI_QUIRK(PCI_VENDOR_ID_CREATIVE, PCI_SUBDEVICE_ID_CREATIVE_SB0760,
  46. "SB0760", CTSB0760),
  47. SND_PCI_QUIRK(PCI_VENDOR_ID_CREATIVE, PCI_SUBDEVICE_ID_CREATIVE_SB1270,
  48. "SB1270", CTSB1270),
  49. SND_PCI_QUIRK(PCI_VENDOR_ID_CREATIVE, PCI_SUBDEVICE_ID_CREATIVE_SB08801,
  50. "SB0880", CTSB0880),
  51. SND_PCI_QUIRK(PCI_VENDOR_ID_CREATIVE, PCI_SUBDEVICE_ID_CREATIVE_SB08802,
  52. "SB0880", CTSB0880),
  53. SND_PCI_QUIRK(PCI_VENDOR_ID_CREATIVE, PCI_SUBDEVICE_ID_CREATIVE_SB08803,
  54. "SB0880", CTSB0880),
  55. SND_PCI_QUIRK_MASK(PCI_VENDOR_ID_CREATIVE, 0xf000,
  56. PCI_SUBDEVICE_ID_CREATIVE_HENDRIX, "HENDRIX",
  57. CTHENDRIX),
  58. { } /* terminator */
  59. };
  60. static const char *ct_subsys_name[NUM_CTCARDS] = {
  61. /* 20k1 models */
  62. [CTSB046X] = "SB046x",
  63. [CTSB055X] = "SB055x",
  64. [CTSB073X] = "SB073x",
  65. [CTUAA] = "UAA",
  66. [CT20K1_UNKNOWN] = "Unknown",
  67. /* 20k2 models */
  68. [CTSB0760] = "SB076x",
  69. [CTHENDRIX] = "Hendrix",
  70. [CTSB0880] = "SB0880",
  71. [CTSB1270] = "SB1270",
  72. [CT20K2_UNKNOWN] = "Unknown",
  73. };
  74. static struct {
  75. int (*create)(struct ct_atc *atc,
  76. enum CTALSADEVS device, const char *device_name);
  77. int (*destroy)(void *alsa_dev);
  78. const char *public_name;
  79. } alsa_dev_funcs[NUM_CTALSADEVS] = {
  80. [FRONT] = { .create = ct_alsa_pcm_create,
  81. .destroy = NULL,
  82. .public_name = "Front/WaveIn"},
  83. [SURROUND] = { .create = ct_alsa_pcm_create,
  84. .destroy = NULL,
  85. .public_name = "Surround"},
  86. [CLFE] = { .create = ct_alsa_pcm_create,
  87. .destroy = NULL,
  88. .public_name = "Center/LFE"},
  89. [SIDE] = { .create = ct_alsa_pcm_create,
  90. .destroy = NULL,
  91. .public_name = "Side"},
  92. [IEC958] = { .create = ct_alsa_pcm_create,
  93. .destroy = NULL,
  94. .public_name = "IEC958 Non-audio"},
  95. [MIXER] = { .create = ct_alsa_mix_create,
  96. .destroy = NULL,
  97. .public_name = "Mixer"}
  98. };
  99. static struct {
  100. int (*create)(struct hw *hw, void **rmgr);
  101. int (*destroy)(void *mgr);
  102. } rsc_mgr_funcs[NUM_RSCTYP] = {
  103. [SRC] = { .create = src_mgr_create,
  104. .destroy = src_mgr_destroy },
  105. [SRCIMP] = { .create = srcimp_mgr_create,
  106. .destroy = srcimp_mgr_destroy },
  107. [AMIXER] = { .create = amixer_mgr_create,
  108. .destroy = amixer_mgr_destroy },
  109. [SUM] = { .create = sum_mgr_create,
  110. .destroy = sum_mgr_destroy },
  111. [DAIO] = { .create = daio_mgr_create,
  112. .destroy = daio_mgr_destroy }
  113. };
  114. static int
  115. atc_pcm_release_resources(struct ct_atc *atc, struct ct_atc_pcm *apcm);
  116. /* *
  117. * Only mono and interleaved modes are supported now.
  118. * Always allocates a contiguous channel block.
  119. * */
  120. static int ct_map_audio_buffer(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  121. {
  122. struct snd_pcm_runtime *runtime;
  123. struct ct_vm *vm;
  124. if (!apcm->substream)
  125. return 0;
  126. runtime = apcm->substream->runtime;
  127. vm = atc->vm;
  128. apcm->vm_block = vm->map(vm, apcm->substream, runtime->dma_bytes);
  129. if (!apcm->vm_block)
  130. return -ENOENT;
  131. return 0;
  132. }
  133. static void ct_unmap_audio_buffer(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  134. {
  135. struct ct_vm *vm;
  136. if (!apcm->vm_block)
  137. return;
  138. vm = atc->vm;
  139. vm->unmap(vm, apcm->vm_block);
  140. apcm->vm_block = NULL;
  141. }
  142. static unsigned long atc_get_ptp_phys(struct ct_atc *atc, int index)
  143. {
  144. return atc->vm->get_ptp_phys(atc->vm, index);
  145. }
  146. static unsigned int convert_format(snd_pcm_format_t snd_format,
  147. struct snd_card *card)
  148. {
  149. switch (snd_format) {
  150. case SNDRV_PCM_FORMAT_U8:
  151. return SRC_SF_U8;
  152. case SNDRV_PCM_FORMAT_S16_LE:
  153. return SRC_SF_S16;
  154. case SNDRV_PCM_FORMAT_S24_3LE:
  155. return SRC_SF_S24;
  156. case SNDRV_PCM_FORMAT_S32_LE:
  157. return SRC_SF_S32;
  158. case SNDRV_PCM_FORMAT_FLOAT_LE:
  159. return SRC_SF_F32;
  160. default:
  161. dev_err(card->dev, "not recognized snd format is %d\n",
  162. snd_format);
  163. return SRC_SF_S16;
  164. }
  165. }
  166. static unsigned int
  167. atc_get_pitch(unsigned int input_rate, unsigned int output_rate)
  168. {
  169. unsigned int pitch;
  170. int b;
  171. /* get pitch and convert to fixed-point 8.24 format. */
  172. pitch = (input_rate / output_rate) << 24;
  173. input_rate %= output_rate;
  174. input_rate /= 100;
  175. output_rate /= 100;
  176. for (b = 31; ((b >= 0) && !(input_rate >> b)); )
  177. b--;
  178. if (b >= 0) {
  179. input_rate <<= (31 - b);
  180. input_rate /= output_rate;
  181. b = 24 - (31 - b);
  182. if (b >= 0)
  183. input_rate <<= b;
  184. else
  185. input_rate >>= -b;
  186. pitch |= input_rate;
  187. }
  188. return pitch;
  189. }
  190. static int select_rom(unsigned int pitch)
  191. {
  192. if (pitch > 0x00428f5c && pitch < 0x01b851ec) {
  193. /* 0.26 <= pitch <= 1.72 */
  194. return 1;
  195. } else if (pitch == 0x01d66666 || pitch == 0x01d66667) {
  196. /* pitch == 1.8375 */
  197. return 2;
  198. } else if (pitch == 0x02000000) {
  199. /* pitch == 2 */
  200. return 3;
  201. } else if (pitch <= 0x08000000) {
  202. /* 0 <= pitch <= 8 */
  203. return 0;
  204. } else {
  205. return -ENOENT;
  206. }
  207. }
  208. static int atc_pcm_playback_prepare(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  209. {
  210. struct src_mgr *src_mgr = atc->rsc_mgrs[SRC];
  211. struct amixer_mgr *amixer_mgr = atc->rsc_mgrs[AMIXER];
  212. struct src_desc desc = {0};
  213. struct amixer_desc mix_dsc = {0};
  214. struct src *src;
  215. struct amixer *amixer;
  216. int err;
  217. int n_amixer = apcm->substream->runtime->channels, i = 0;
  218. int device = apcm->substream->pcm->device;
  219. unsigned int pitch;
  220. /* first release old resources */
  221. atc_pcm_release_resources(atc, apcm);
  222. /* Get SRC resource */
  223. desc.multi = apcm->substream->runtime->channels;
  224. desc.msr = atc->msr;
  225. desc.mode = MEMRD;
  226. err = src_mgr->get_src(src_mgr, &desc, (struct src **)&apcm->src);
  227. if (err)
  228. goto error1;
  229. pitch = atc_get_pitch(apcm->substream->runtime->rate,
  230. (atc->rsr * atc->msr));
  231. src = apcm->src;
  232. src->ops->set_pitch(src, pitch);
  233. src->ops->set_rom(src, select_rom(pitch));
  234. src->ops->set_sf(src, convert_format(apcm->substream->runtime->format,
  235. atc->card));
  236. src->ops->set_pm(src, (src->ops->next_interleave(src) != NULL));
  237. /* Get AMIXER resource */
  238. n_amixer = (n_amixer < 2) ? 2 : n_amixer;
  239. apcm->amixers = kcalloc(n_amixer, sizeof(void *), GFP_KERNEL);
  240. if (!apcm->amixers) {
  241. err = -ENOMEM;
  242. goto error1;
  243. }
  244. mix_dsc.msr = atc->msr;
  245. for (i = 0, apcm->n_amixer = 0; i < n_amixer; i++) {
  246. err = amixer_mgr->get_amixer(amixer_mgr, &mix_dsc,
  247. (struct amixer **)&apcm->amixers[i]);
  248. if (err)
  249. goto error1;
  250. apcm->n_amixer++;
  251. }
  252. /* Set up device virtual mem map */
  253. err = ct_map_audio_buffer(atc, apcm);
  254. if (err < 0)
  255. goto error1;
  256. /* Connect resources */
  257. src = apcm->src;
  258. for (i = 0; i < n_amixer; i++) {
  259. amixer = apcm->amixers[i];
  260. mutex_lock(&atc->atc_mutex);
  261. amixer->ops->setup(amixer, &src->rsc,
  262. INIT_VOL, atc->pcm[i+device*2]);
  263. mutex_unlock(&atc->atc_mutex);
  264. src = src->ops->next_interleave(src);
  265. if (!src)
  266. src = apcm->src;
  267. }
  268. ct_timer_prepare(apcm->timer);
  269. return 0;
  270. error1:
  271. atc_pcm_release_resources(atc, apcm);
  272. return err;
  273. }
  274. static int
  275. atc_pcm_release_resources(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  276. {
  277. struct src_mgr *src_mgr = atc->rsc_mgrs[SRC];
  278. struct srcimp_mgr *srcimp_mgr = atc->rsc_mgrs[SRCIMP];
  279. struct amixer_mgr *amixer_mgr = atc->rsc_mgrs[AMIXER];
  280. struct sum_mgr *sum_mgr = atc->rsc_mgrs[SUM];
  281. struct srcimp *srcimp;
  282. int i;
  283. if (apcm->srcimps) {
  284. for (i = 0; i < apcm->n_srcimp; i++) {
  285. srcimp = apcm->srcimps[i];
  286. srcimp->ops->unmap(srcimp);
  287. srcimp_mgr->put_srcimp(srcimp_mgr, srcimp);
  288. apcm->srcimps[i] = NULL;
  289. }
  290. kfree(apcm->srcimps);
  291. apcm->srcimps = NULL;
  292. }
  293. if (apcm->srccs) {
  294. for (i = 0; i < apcm->n_srcc; i++) {
  295. src_mgr->put_src(src_mgr, apcm->srccs[i]);
  296. apcm->srccs[i] = NULL;
  297. }
  298. kfree(apcm->srccs);
  299. apcm->srccs = NULL;
  300. }
  301. if (apcm->amixers) {
  302. for (i = 0; i < apcm->n_amixer; i++) {
  303. amixer_mgr->put_amixer(amixer_mgr, apcm->amixers[i]);
  304. apcm->amixers[i] = NULL;
  305. }
  306. kfree(apcm->amixers);
  307. apcm->amixers = NULL;
  308. }
  309. if (apcm->mono) {
  310. sum_mgr->put_sum(sum_mgr, apcm->mono);
  311. apcm->mono = NULL;
  312. }
  313. if (apcm->src) {
  314. src_mgr->put_src(src_mgr, apcm->src);
  315. apcm->src = NULL;
  316. }
  317. if (apcm->vm_block) {
  318. /* Undo device virtual mem map */
  319. ct_unmap_audio_buffer(atc, apcm);
  320. apcm->vm_block = NULL;
  321. }
  322. return 0;
  323. }
  324. static int atc_pcm_playback_start(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  325. {
  326. unsigned int max_cisz;
  327. struct src *src = apcm->src;
  328. if (apcm->started)
  329. return 0;
  330. apcm->started = 1;
  331. max_cisz = src->multi * src->rsc.msr;
  332. max_cisz = 0x80 * (max_cisz < 8 ? max_cisz : 8);
  333. src->ops->set_sa(src, apcm->vm_block->addr);
  334. src->ops->set_la(src, apcm->vm_block->addr + apcm->vm_block->size);
  335. src->ops->set_ca(src, apcm->vm_block->addr + max_cisz);
  336. src->ops->set_cisz(src, max_cisz);
  337. src->ops->set_bm(src, 1);
  338. src->ops->set_state(src, SRC_STATE_INIT);
  339. src->ops->commit_write(src);
  340. ct_timer_start(apcm->timer);
  341. return 0;
  342. }
  343. static int atc_pcm_stop(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  344. {
  345. struct src *src;
  346. int i;
  347. ct_timer_stop(apcm->timer);
  348. src = apcm->src;
  349. src->ops->set_bm(src, 0);
  350. src->ops->set_state(src, SRC_STATE_OFF);
  351. src->ops->commit_write(src);
  352. if (apcm->srccs) {
  353. for (i = 0; i < apcm->n_srcc; i++) {
  354. src = apcm->srccs[i];
  355. src->ops->set_bm(src, 0);
  356. src->ops->set_state(src, SRC_STATE_OFF);
  357. src->ops->commit_write(src);
  358. }
  359. }
  360. apcm->started = 0;
  361. return 0;
  362. }
  363. static int
  364. atc_pcm_playback_position(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  365. {
  366. struct src *src = apcm->src;
  367. u32 size, max_cisz;
  368. int position;
  369. if (!src)
  370. return 0;
  371. position = src->ops->get_ca(src);
  372. if (position < apcm->vm_block->addr) {
  373. dev_dbg(atc->card->dev,
  374. "bad ca - ca=0x%08x, vba=0x%08x, vbs=0x%08x\n",
  375. position, apcm->vm_block->addr, apcm->vm_block->size);
  376. position = apcm->vm_block->addr;
  377. }
  378. size = apcm->vm_block->size;
  379. max_cisz = src->multi * src->rsc.msr;
  380. max_cisz = 128 * (max_cisz < 8 ? max_cisz : 8);
  381. return (position + size - max_cisz - apcm->vm_block->addr) % size;
  382. }
  383. struct src_node_conf_t {
  384. unsigned int pitch;
  385. unsigned int msr:8;
  386. unsigned int mix_msr:8;
  387. unsigned int imp_msr:8;
  388. unsigned int vo:1;
  389. };
  390. static void setup_src_node_conf(struct ct_atc *atc, struct ct_atc_pcm *apcm,
  391. struct src_node_conf_t *conf, int *n_srcc)
  392. {
  393. unsigned int pitch;
  394. /* get pitch and convert to fixed-point 8.24 format. */
  395. pitch = atc_get_pitch((atc->rsr * atc->msr),
  396. apcm->substream->runtime->rate);
  397. *n_srcc = 0;
  398. if (1 == atc->msr) { /* FIXME: do we really need SRC here if pitch==1 */
  399. *n_srcc = apcm->substream->runtime->channels;
  400. conf[0].pitch = pitch;
  401. conf[0].mix_msr = conf[0].imp_msr = conf[0].msr = 1;
  402. conf[0].vo = 1;
  403. } else if (2 <= atc->msr) {
  404. if (0x8000000 < pitch) {
  405. /* Need two-stage SRCs, SRCIMPs and
  406. * AMIXERs for converting format */
  407. conf[0].pitch = (atc->msr << 24);
  408. conf[0].msr = conf[0].mix_msr = 1;
  409. conf[0].imp_msr = atc->msr;
  410. conf[0].vo = 0;
  411. conf[1].pitch = atc_get_pitch(atc->rsr,
  412. apcm->substream->runtime->rate);
  413. conf[1].msr = conf[1].mix_msr = conf[1].imp_msr = 1;
  414. conf[1].vo = 1;
  415. *n_srcc = apcm->substream->runtime->channels * 2;
  416. } else if (0x1000000 < pitch) {
  417. /* Need one-stage SRCs, SRCIMPs and
  418. * AMIXERs for converting format */
  419. conf[0].pitch = pitch;
  420. conf[0].msr = conf[0].mix_msr
  421. = conf[0].imp_msr = atc->msr;
  422. conf[0].vo = 1;
  423. *n_srcc = apcm->substream->runtime->channels;
  424. }
  425. }
  426. }
  427. static int
  428. atc_pcm_capture_get_resources(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  429. {
  430. struct src_mgr *src_mgr = atc->rsc_mgrs[SRC];
  431. struct srcimp_mgr *srcimp_mgr = atc->rsc_mgrs[SRCIMP];
  432. struct amixer_mgr *amixer_mgr = atc->rsc_mgrs[AMIXER];
  433. struct sum_mgr *sum_mgr = atc->rsc_mgrs[SUM];
  434. struct src_desc src_dsc = {0};
  435. struct src *src;
  436. struct srcimp_desc srcimp_dsc = {0};
  437. struct srcimp *srcimp;
  438. struct amixer_desc mix_dsc = {0};
  439. struct sum_desc sum_dsc = {0};
  440. unsigned int pitch;
  441. int multi, err, i;
  442. int n_srcimp, n_amixer, n_srcc, n_sum;
  443. struct src_node_conf_t src_node_conf[2] = {{0} };
  444. /* first release old resources */
  445. atc_pcm_release_resources(atc, apcm);
  446. /* The numbers of converting SRCs and SRCIMPs should be determined
  447. * by pitch value. */
  448. multi = apcm->substream->runtime->channels;
  449. /* get pitch and convert to fixed-point 8.24 format. */
  450. pitch = atc_get_pitch((atc->rsr * atc->msr),
  451. apcm->substream->runtime->rate);
  452. setup_src_node_conf(atc, apcm, src_node_conf, &n_srcc);
  453. n_sum = (1 == multi) ? 1 : 0;
  454. n_amixer = n_sum * 2 + n_srcc;
  455. n_srcimp = n_srcc;
  456. if ((multi > 1) && (0x8000000 >= pitch)) {
  457. /* Need extra AMIXERs and SRCIMPs for special treatment
  458. * of interleaved recording of conjugate channels */
  459. n_amixer += multi * atc->msr;
  460. n_srcimp += multi * atc->msr;
  461. } else {
  462. n_srcimp += multi;
  463. }
  464. if (n_srcc) {
  465. apcm->srccs = kcalloc(n_srcc, sizeof(void *), GFP_KERNEL);
  466. if (!apcm->srccs)
  467. return -ENOMEM;
  468. }
  469. if (n_amixer) {
  470. apcm->amixers = kcalloc(n_amixer, sizeof(void *), GFP_KERNEL);
  471. if (!apcm->amixers) {
  472. err = -ENOMEM;
  473. goto error1;
  474. }
  475. }
  476. apcm->srcimps = kcalloc(n_srcimp, sizeof(void *), GFP_KERNEL);
  477. if (!apcm->srcimps) {
  478. err = -ENOMEM;
  479. goto error1;
  480. }
  481. /* Allocate SRCs for sample rate conversion if needed */
  482. src_dsc.multi = 1;
  483. src_dsc.mode = ARCRW;
  484. for (i = 0, apcm->n_srcc = 0; i < n_srcc; i++) {
  485. src_dsc.msr = src_node_conf[i/multi].msr;
  486. err = src_mgr->get_src(src_mgr, &src_dsc,
  487. (struct src **)&apcm->srccs[i]);
  488. if (err)
  489. goto error1;
  490. src = apcm->srccs[i];
  491. pitch = src_node_conf[i/multi].pitch;
  492. src->ops->set_pitch(src, pitch);
  493. src->ops->set_rom(src, select_rom(pitch));
  494. src->ops->set_vo(src, src_node_conf[i/multi].vo);
  495. apcm->n_srcc++;
  496. }
  497. /* Allocate AMIXERs for routing SRCs of conversion if needed */
  498. for (i = 0, apcm->n_amixer = 0; i < n_amixer; i++) {
  499. if (i < (n_sum*2))
  500. mix_dsc.msr = atc->msr;
  501. else if (i < (n_sum*2+n_srcc))
  502. mix_dsc.msr = src_node_conf[(i-n_sum*2)/multi].mix_msr;
  503. else
  504. mix_dsc.msr = 1;
  505. err = amixer_mgr->get_amixer(amixer_mgr, &mix_dsc,
  506. (struct amixer **)&apcm->amixers[i]);
  507. if (err)
  508. goto error1;
  509. apcm->n_amixer++;
  510. }
  511. /* Allocate a SUM resource to mix all input channels together */
  512. sum_dsc.msr = atc->msr;
  513. err = sum_mgr->get_sum(sum_mgr, &sum_dsc, (struct sum **)&apcm->mono);
  514. if (err)
  515. goto error1;
  516. pitch = atc_get_pitch((atc->rsr * atc->msr),
  517. apcm->substream->runtime->rate);
  518. /* Allocate SRCIMP resources */
  519. for (i = 0, apcm->n_srcimp = 0; i < n_srcimp; i++) {
  520. if (i < (n_srcc))
  521. srcimp_dsc.msr = src_node_conf[i/multi].imp_msr;
  522. else if (1 == multi)
  523. srcimp_dsc.msr = (pitch <= 0x8000000) ? atc->msr : 1;
  524. else
  525. srcimp_dsc.msr = 1;
  526. err = srcimp_mgr->get_srcimp(srcimp_mgr, &srcimp_dsc, &srcimp);
  527. if (err)
  528. goto error1;
  529. apcm->srcimps[i] = srcimp;
  530. apcm->n_srcimp++;
  531. }
  532. /* Allocate a SRC for writing data to host memory */
  533. src_dsc.multi = apcm->substream->runtime->channels;
  534. src_dsc.msr = 1;
  535. src_dsc.mode = MEMWR;
  536. err = src_mgr->get_src(src_mgr, &src_dsc, (struct src **)&apcm->src);
  537. if (err)
  538. goto error1;
  539. src = apcm->src;
  540. src->ops->set_pitch(src, pitch);
  541. /* Set up device virtual mem map */
  542. err = ct_map_audio_buffer(atc, apcm);
  543. if (err < 0)
  544. goto error1;
  545. return 0;
  546. error1:
  547. atc_pcm_release_resources(atc, apcm);
  548. return err;
  549. }
  550. static int atc_pcm_capture_prepare(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  551. {
  552. struct src *src;
  553. struct amixer *amixer;
  554. struct srcimp *srcimp;
  555. struct ct_mixer *mixer = atc->mixer;
  556. struct sum *mono;
  557. struct rsc *out_ports[8] = {NULL};
  558. int err, i, j, n_sum, multi;
  559. unsigned int pitch;
  560. int mix_base = 0, imp_base = 0;
  561. atc_pcm_release_resources(atc, apcm);
  562. /* Get needed resources. */
  563. err = atc_pcm_capture_get_resources(atc, apcm);
  564. if (err)
  565. return err;
  566. /* Connect resources */
  567. mixer->get_output_ports(mixer, MIX_PCMO_FRONT,
  568. &out_ports[0], &out_ports[1]);
  569. multi = apcm->substream->runtime->channels;
  570. if (1 == multi) {
  571. mono = apcm->mono;
  572. for (i = 0; i < 2; i++) {
  573. amixer = apcm->amixers[i];
  574. amixer->ops->setup(amixer, out_ports[i],
  575. MONO_SUM_SCALE, mono);
  576. }
  577. out_ports[0] = &mono->rsc;
  578. n_sum = 1;
  579. mix_base = n_sum * 2;
  580. }
  581. for (i = 0; i < apcm->n_srcc; i++) {
  582. src = apcm->srccs[i];
  583. srcimp = apcm->srcimps[imp_base+i];
  584. amixer = apcm->amixers[mix_base+i];
  585. srcimp->ops->map(srcimp, src, out_ports[i%multi]);
  586. amixer->ops->setup(amixer, &src->rsc, INIT_VOL, NULL);
  587. out_ports[i%multi] = &amixer->rsc;
  588. }
  589. pitch = atc_get_pitch((atc->rsr * atc->msr),
  590. apcm->substream->runtime->rate);
  591. if ((multi > 1) && (pitch <= 0x8000000)) {
  592. /* Special connection for interleaved
  593. * recording with conjugate channels */
  594. for (i = 0; i < multi; i++) {
  595. out_ports[i]->ops->master(out_ports[i]);
  596. for (j = 0; j < atc->msr; j++) {
  597. amixer = apcm->amixers[apcm->n_srcc+j*multi+i];
  598. amixer->ops->set_input(amixer, out_ports[i]);
  599. amixer->ops->set_scale(amixer, INIT_VOL);
  600. amixer->ops->set_sum(amixer, NULL);
  601. amixer->ops->commit_raw_write(amixer);
  602. out_ports[i]->ops->next_conj(out_ports[i]);
  603. srcimp = apcm->srcimps[apcm->n_srcc+j*multi+i];
  604. srcimp->ops->map(srcimp, apcm->src,
  605. &amixer->rsc);
  606. }
  607. }
  608. } else {
  609. for (i = 0; i < multi; i++) {
  610. srcimp = apcm->srcimps[apcm->n_srcc+i];
  611. srcimp->ops->map(srcimp, apcm->src, out_ports[i]);
  612. }
  613. }
  614. ct_timer_prepare(apcm->timer);
  615. return 0;
  616. }
  617. static int atc_pcm_capture_start(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  618. {
  619. struct src *src;
  620. struct src_mgr *src_mgr = atc->rsc_mgrs[SRC];
  621. int i, multi;
  622. if (apcm->started)
  623. return 0;
  624. apcm->started = 1;
  625. multi = apcm->substream->runtime->channels;
  626. /* Set up converting SRCs */
  627. for (i = 0; i < apcm->n_srcc; i++) {
  628. src = apcm->srccs[i];
  629. src->ops->set_pm(src, ((i%multi) != (multi-1)));
  630. src_mgr->src_disable(src_mgr, src);
  631. }
  632. /* Set up recording SRC */
  633. src = apcm->src;
  634. src->ops->set_sf(src, convert_format(apcm->substream->runtime->format,
  635. atc->card));
  636. src->ops->set_sa(src, apcm->vm_block->addr);
  637. src->ops->set_la(src, apcm->vm_block->addr + apcm->vm_block->size);
  638. src->ops->set_ca(src, apcm->vm_block->addr);
  639. src_mgr->src_disable(src_mgr, src);
  640. /* Disable relevant SRCs firstly */
  641. src_mgr->commit_write(src_mgr);
  642. /* Enable SRCs respectively */
  643. for (i = 0; i < apcm->n_srcc; i++) {
  644. src = apcm->srccs[i];
  645. src->ops->set_state(src, SRC_STATE_RUN);
  646. src->ops->commit_write(src);
  647. src_mgr->src_enable_s(src_mgr, src);
  648. }
  649. src = apcm->src;
  650. src->ops->set_bm(src, 1);
  651. src->ops->set_state(src, SRC_STATE_RUN);
  652. src->ops->commit_write(src);
  653. src_mgr->src_enable_s(src_mgr, src);
  654. /* Enable relevant SRCs synchronously */
  655. src_mgr->commit_write(src_mgr);
  656. ct_timer_start(apcm->timer);
  657. return 0;
  658. }
  659. static int
  660. atc_pcm_capture_position(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  661. {
  662. struct src *src = apcm->src;
  663. if (!src)
  664. return 0;
  665. return src->ops->get_ca(src) - apcm->vm_block->addr;
  666. }
  667. static int spdif_passthru_playback_get_resources(struct ct_atc *atc,
  668. struct ct_atc_pcm *apcm)
  669. {
  670. struct src_mgr *src_mgr = atc->rsc_mgrs[SRC];
  671. struct amixer_mgr *amixer_mgr = atc->rsc_mgrs[AMIXER];
  672. struct src_desc desc = {0};
  673. struct amixer_desc mix_dsc = {0};
  674. struct src *src;
  675. int err;
  676. int n_amixer = apcm->substream->runtime->channels, i;
  677. unsigned int pitch, rsr = atc->pll_rate;
  678. /* first release old resources */
  679. atc_pcm_release_resources(atc, apcm);
  680. /* Get SRC resource */
  681. desc.multi = apcm->substream->runtime->channels;
  682. desc.msr = 1;
  683. while (apcm->substream->runtime->rate > (rsr * desc.msr))
  684. desc.msr <<= 1;
  685. desc.mode = MEMRD;
  686. err = src_mgr->get_src(src_mgr, &desc, (struct src **)&apcm->src);
  687. if (err)
  688. goto error1;
  689. pitch = atc_get_pitch(apcm->substream->runtime->rate, (rsr * desc.msr));
  690. src = apcm->src;
  691. src->ops->set_pitch(src, pitch);
  692. src->ops->set_rom(src, select_rom(pitch));
  693. src->ops->set_sf(src, convert_format(apcm->substream->runtime->format,
  694. atc->card));
  695. src->ops->set_pm(src, (src->ops->next_interleave(src) != NULL));
  696. src->ops->set_bp(src, 1);
  697. /* Get AMIXER resource */
  698. n_amixer = (n_amixer < 2) ? 2 : n_amixer;
  699. apcm->amixers = kcalloc(n_amixer, sizeof(void *), GFP_KERNEL);
  700. if (!apcm->amixers) {
  701. err = -ENOMEM;
  702. goto error1;
  703. }
  704. mix_dsc.msr = desc.msr;
  705. for (i = 0, apcm->n_amixer = 0; i < n_amixer; i++) {
  706. err = amixer_mgr->get_amixer(amixer_mgr, &mix_dsc,
  707. (struct amixer **)&apcm->amixers[i]);
  708. if (err)
  709. goto error1;
  710. apcm->n_amixer++;
  711. }
  712. /* Set up device virtual mem map */
  713. err = ct_map_audio_buffer(atc, apcm);
  714. if (err < 0)
  715. goto error1;
  716. return 0;
  717. error1:
  718. atc_pcm_release_resources(atc, apcm);
  719. return err;
  720. }
  721. static int atc_pll_init(struct ct_atc *atc, int rate)
  722. {
  723. struct hw *hw = atc->hw;
  724. int err;
  725. err = hw->pll_init(hw, rate);
  726. atc->pll_rate = err ? 0 : rate;
  727. return err;
  728. }
  729. static int
  730. spdif_passthru_playback_setup(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  731. {
  732. struct dao *dao = container_of(atc->daios[SPDIFOO], struct dao, daio);
  733. unsigned int rate = apcm->substream->runtime->rate;
  734. unsigned int status;
  735. int err = 0;
  736. unsigned char iec958_con_fs;
  737. switch (rate) {
  738. case 48000:
  739. iec958_con_fs = IEC958_AES3_CON_FS_48000;
  740. break;
  741. case 44100:
  742. iec958_con_fs = IEC958_AES3_CON_FS_44100;
  743. break;
  744. case 32000:
  745. iec958_con_fs = IEC958_AES3_CON_FS_32000;
  746. break;
  747. default:
  748. return -ENOENT;
  749. }
  750. mutex_lock(&atc->atc_mutex);
  751. dao->ops->get_spos(dao, &status);
  752. if (((status >> 24) & IEC958_AES3_CON_FS) != iec958_con_fs) {
  753. status &= ~(IEC958_AES3_CON_FS << 24);
  754. status |= (iec958_con_fs << 24);
  755. dao->ops->set_spos(dao, status);
  756. dao->ops->commit_write(dao);
  757. }
  758. if ((rate != atc->pll_rate) && (32000 != rate))
  759. err = atc_pll_init(atc, rate);
  760. mutex_unlock(&atc->atc_mutex);
  761. return err;
  762. }
  763. static int
  764. spdif_passthru_playback_prepare(struct ct_atc *atc, struct ct_atc_pcm *apcm)
  765. {
  766. struct src *src;
  767. struct amixer *amixer;
  768. struct dao *dao;
  769. int err;
  770. int i;
  771. atc_pcm_release_resources(atc, apcm);
  772. /* Configure SPDIFOO and PLL to passthrough mode;
  773. * determine pll_rate. */
  774. err = spdif_passthru_playback_setup(atc, apcm);
  775. if (err)
  776. return err;
  777. /* Get needed resources. */
  778. err = spdif_passthru_playback_get_resources(atc, apcm);
  779. if (err)
  780. return err;
  781. /* Connect resources */
  782. src = apcm->src;
  783. for (i = 0; i < apcm->n_amixer; i++) {
  784. amixer = apcm->amixers[i];
  785. amixer->ops->setup(amixer, &src->rsc, INIT_VOL, NULL);
  786. src = src->ops->next_interleave(src);
  787. if (!src)
  788. src = apcm->src;
  789. }
  790. /* Connect to SPDIFOO */
  791. mutex_lock(&atc->atc_mutex);
  792. dao = container_of(atc->daios[SPDIFOO], struct dao, daio);
  793. amixer = apcm->amixers[0];
  794. dao->ops->set_left_input(dao, &amixer->rsc);
  795. amixer = apcm->amixers[1];
  796. dao->ops->set_right_input(dao, &amixer->rsc);
  797. mutex_unlock(&atc->atc_mutex);
  798. ct_timer_prepare(apcm->timer);
  799. return 0;
  800. }
  801. static int atc_select_line_in(struct ct_atc *atc)
  802. {
  803. struct hw *hw = atc->hw;
  804. struct ct_mixer *mixer = atc->mixer;
  805. struct src *src;
  806. if (hw->is_adc_source_selected(hw, ADC_LINEIN))
  807. return 0;
  808. mixer->set_input_left(mixer, MIX_MIC_IN, NULL);
  809. mixer->set_input_right(mixer, MIX_MIC_IN, NULL);
  810. hw->select_adc_source(hw, ADC_LINEIN);
  811. src = atc->srcs[2];
  812. mixer->set_input_left(mixer, MIX_LINE_IN, &src->rsc);
  813. src = atc->srcs[3];
  814. mixer->set_input_right(mixer, MIX_LINE_IN, &src->rsc);
  815. return 0;
  816. }
  817. static int atc_select_mic_in(struct ct_atc *atc)
  818. {
  819. struct hw *hw = atc->hw;
  820. struct ct_mixer *mixer = atc->mixer;
  821. struct src *src;
  822. if (hw->is_adc_source_selected(hw, ADC_MICIN))
  823. return 0;
  824. mixer->set_input_left(mixer, MIX_LINE_IN, NULL);
  825. mixer->set_input_right(mixer, MIX_LINE_IN, NULL);
  826. hw->select_adc_source(hw, ADC_MICIN);
  827. src = atc->srcs[2];
  828. mixer->set_input_left(mixer, MIX_MIC_IN, &src->rsc);
  829. src = atc->srcs[3];
  830. mixer->set_input_right(mixer, MIX_MIC_IN, &src->rsc);
  831. return 0;
  832. }
  833. static struct capabilities atc_capabilities(struct ct_atc *atc)
  834. {
  835. struct hw *hw = atc->hw;
  836. return hw->capabilities(hw);
  837. }
  838. static int atc_output_switch_get(struct ct_atc *atc)
  839. {
  840. struct hw *hw = atc->hw;
  841. return hw->output_switch_get(hw);
  842. }
  843. static int atc_output_switch_put(struct ct_atc *atc, int position)
  844. {
  845. struct hw *hw = atc->hw;
  846. return hw->output_switch_put(hw, position);
  847. }
  848. static int atc_mic_source_switch_get(struct ct_atc *atc)
  849. {
  850. struct hw *hw = atc->hw;
  851. return hw->mic_source_switch_get(hw);
  852. }
  853. static int atc_mic_source_switch_put(struct ct_atc *atc, int position)
  854. {
  855. struct hw *hw = atc->hw;
  856. return hw->mic_source_switch_put(hw, position);
  857. }
  858. static int atc_select_digit_io(struct ct_atc *atc)
  859. {
  860. struct hw *hw = atc->hw;
  861. if (hw->is_adc_source_selected(hw, ADC_NONE))
  862. return 0;
  863. hw->select_adc_source(hw, ADC_NONE);
  864. return 0;
  865. }
  866. static int atc_daio_unmute(struct ct_atc *atc, unsigned char state, int type)
  867. {
  868. struct daio_mgr *daio_mgr = atc->rsc_mgrs[DAIO];
  869. if (state)
  870. daio_mgr->daio_enable(daio_mgr, atc->daios[type]);
  871. else
  872. daio_mgr->daio_disable(daio_mgr, atc->daios[type]);
  873. daio_mgr->commit_write(daio_mgr);
  874. return 0;
  875. }
  876. static int
  877. atc_dao_get_status(struct ct_atc *atc, unsigned int *status, int type)
  878. {
  879. struct dao *dao = container_of(atc->daios[type], struct dao, daio);
  880. return dao->ops->get_spos(dao, status);
  881. }
  882. static int
  883. atc_dao_set_status(struct ct_atc *atc, unsigned int status, int type)
  884. {
  885. struct dao *dao = container_of(atc->daios[type], struct dao, daio);
  886. dao->ops->set_spos(dao, status);
  887. dao->ops->commit_write(dao);
  888. return 0;
  889. }
  890. static int atc_line_front_unmute(struct ct_atc *atc, unsigned char state)
  891. {
  892. return atc_daio_unmute(atc, state, LINEO1);
  893. }
  894. static int atc_line_surround_unmute(struct ct_atc *atc, unsigned char state)
  895. {
  896. return atc_daio_unmute(atc, state, LINEO2);
  897. }
  898. static int atc_line_clfe_unmute(struct ct_atc *atc, unsigned char state)
  899. {
  900. return atc_daio_unmute(atc, state, LINEO3);
  901. }
  902. static int atc_line_rear_unmute(struct ct_atc *atc, unsigned char state)
  903. {
  904. return atc_daio_unmute(atc, state, LINEO4);
  905. }
  906. static int atc_line_in_unmute(struct ct_atc *atc, unsigned char state)
  907. {
  908. return atc_daio_unmute(atc, state, LINEIM);
  909. }
  910. static int atc_mic_unmute(struct ct_atc *atc, unsigned char state)
  911. {
  912. return atc_daio_unmute(atc, state, MIC);
  913. }
  914. static int atc_spdif_out_unmute(struct ct_atc *atc, unsigned char state)
  915. {
  916. return atc_daio_unmute(atc, state, SPDIFOO);
  917. }
  918. static int atc_spdif_in_unmute(struct ct_atc *atc, unsigned char state)
  919. {
  920. return atc_daio_unmute(atc, state, SPDIFIO);
  921. }
  922. static int atc_spdif_out_get_status(struct ct_atc *atc, unsigned int *status)
  923. {
  924. return atc_dao_get_status(atc, status, SPDIFOO);
  925. }
  926. static int atc_spdif_out_set_status(struct ct_atc *atc, unsigned int status)
  927. {
  928. return atc_dao_set_status(atc, status, SPDIFOO);
  929. }
  930. static int atc_spdif_out_passthru(struct ct_atc *atc, unsigned char state)
  931. {
  932. struct dao_desc da_dsc = {0};
  933. struct dao *dao;
  934. int err;
  935. struct ct_mixer *mixer = atc->mixer;
  936. struct rsc *rscs[2] = {NULL};
  937. unsigned int spos = 0;
  938. mutex_lock(&atc->atc_mutex);
  939. dao = container_of(atc->daios[SPDIFOO], struct dao, daio);
  940. da_dsc.msr = state ? 1 : atc->msr;
  941. da_dsc.passthru = state ? 1 : 0;
  942. err = dao->ops->reinit(dao, &da_dsc);
  943. if (state) {
  944. spos = IEC958_DEFAULT_CON;
  945. } else {
  946. mixer->get_output_ports(mixer, MIX_SPDIF_OUT,
  947. &rscs[0], &rscs[1]);
  948. dao->ops->set_left_input(dao, rscs[0]);
  949. dao->ops->set_right_input(dao, rscs[1]);
  950. /* Restore PLL to atc->rsr if needed. */
  951. if (atc->pll_rate != atc->rsr)
  952. err = atc_pll_init(atc, atc->rsr);
  953. }
  954. dao->ops->set_spos(dao, spos);
  955. dao->ops->commit_write(dao);
  956. mutex_unlock(&atc->atc_mutex);
  957. return err;
  958. }
  959. static int atc_release_resources(struct ct_atc *atc)
  960. {
  961. int i;
  962. struct daio_mgr *daio_mgr = NULL;
  963. struct dao *dao = NULL;
  964. struct daio *daio = NULL;
  965. struct sum_mgr *sum_mgr = NULL;
  966. struct src_mgr *src_mgr = NULL;
  967. struct srcimp_mgr *srcimp_mgr = NULL;
  968. struct srcimp *srcimp = NULL;
  969. struct ct_mixer *mixer = NULL;
  970. /* disconnect internal mixer objects */
  971. if (atc->mixer) {
  972. mixer = atc->mixer;
  973. mixer->set_input_left(mixer, MIX_LINE_IN, NULL);
  974. mixer->set_input_right(mixer, MIX_LINE_IN, NULL);
  975. mixer->set_input_left(mixer, MIX_MIC_IN, NULL);
  976. mixer->set_input_right(mixer, MIX_MIC_IN, NULL);
  977. mixer->set_input_left(mixer, MIX_SPDIF_IN, NULL);
  978. mixer->set_input_right(mixer, MIX_SPDIF_IN, NULL);
  979. }
  980. if (atc->daios) {
  981. daio_mgr = (struct daio_mgr *)atc->rsc_mgrs[DAIO];
  982. for (i = 0; i < atc->n_daio; i++) {
  983. daio = atc->daios[i];
  984. if (daio->type < LINEIM) {
  985. dao = container_of(daio, struct dao, daio);
  986. dao->ops->clear_left_input(dao);
  987. dao->ops->clear_right_input(dao);
  988. }
  989. daio_mgr->put_daio(daio_mgr, daio);
  990. }
  991. kfree(atc->daios);
  992. atc->daios = NULL;
  993. }
  994. if (atc->pcm) {
  995. sum_mgr = atc->rsc_mgrs[SUM];
  996. for (i = 0; i < atc->n_pcm; i++)
  997. sum_mgr->put_sum(sum_mgr, atc->pcm[i]);
  998. kfree(atc->pcm);
  999. atc->pcm = NULL;
  1000. }
  1001. if (atc->srcs) {
  1002. src_mgr = atc->rsc_mgrs[SRC];
  1003. for (i = 0; i < atc->n_src; i++)
  1004. src_mgr->put_src(src_mgr, atc->srcs[i]);
  1005. kfree(atc->srcs);
  1006. atc->srcs = NULL;
  1007. }
  1008. if (atc->srcimps) {
  1009. srcimp_mgr = atc->rsc_mgrs[SRCIMP];
  1010. for (i = 0; i < atc->n_srcimp; i++) {
  1011. srcimp = atc->srcimps[i];
  1012. srcimp->ops->unmap(srcimp);
  1013. srcimp_mgr->put_srcimp(srcimp_mgr, atc->srcimps[i]);
  1014. }
  1015. kfree(atc->srcimps);
  1016. atc->srcimps = NULL;
  1017. }
  1018. return 0;
  1019. }
  1020. static int ct_atc_destroy(struct ct_atc *atc)
  1021. {
  1022. int i = 0;
  1023. if (!atc)
  1024. return 0;
  1025. if (atc->timer) {
  1026. ct_timer_free(atc->timer);
  1027. atc->timer = NULL;
  1028. }
  1029. atc_release_resources(atc);
  1030. /* Destroy internal mixer objects */
  1031. if (atc->mixer)
  1032. ct_mixer_destroy(atc->mixer);
  1033. for (i = 0; i < NUM_RSCTYP; i++) {
  1034. if (rsc_mgr_funcs[i].destroy && atc->rsc_mgrs[i])
  1035. rsc_mgr_funcs[i].destroy(atc->rsc_mgrs[i]);
  1036. }
  1037. if (atc->hw)
  1038. destroy_hw_obj(atc->hw);
  1039. /* Destroy device virtual memory manager object */
  1040. if (atc->vm) {
  1041. ct_vm_destroy(atc->vm);
  1042. atc->vm = NULL;
  1043. }
  1044. kfree(atc);
  1045. return 0;
  1046. }
  1047. static int atc_dev_free(struct snd_device *dev)
  1048. {
  1049. struct ct_atc *atc = dev->device_data;
  1050. return ct_atc_destroy(atc);
  1051. }
  1052. static int atc_identify_card(struct ct_atc *atc, unsigned int ssid)
  1053. {
  1054. const struct snd_pci_quirk *p;
  1055. const struct snd_pci_quirk *list;
  1056. u16 vendor_id, device_id;
  1057. switch (atc->chip_type) {
  1058. case ATC20K1:
  1059. atc->chip_name = "20K1";
  1060. list = subsys_20k1_list;
  1061. break;
  1062. case ATC20K2:
  1063. atc->chip_name = "20K2";
  1064. list = subsys_20k2_list;
  1065. break;
  1066. default:
  1067. return -ENOENT;
  1068. }
  1069. if (ssid) {
  1070. vendor_id = ssid >> 16;
  1071. device_id = ssid & 0xffff;
  1072. } else {
  1073. vendor_id = atc->pci->subsystem_vendor;
  1074. device_id = atc->pci->subsystem_device;
  1075. }
  1076. p = snd_pci_quirk_lookup_id(vendor_id, device_id, list);
  1077. if (p) {
  1078. if (p->value < 0) {
  1079. dev_err(atc->card->dev,
  1080. "Device %04x:%04x is on the denylist\n",
  1081. vendor_id, device_id);
  1082. return -ENOENT;
  1083. }
  1084. atc->model = p->value;
  1085. } else {
  1086. if (atc->chip_type == ATC20K1)
  1087. atc->model = CT20K1_UNKNOWN;
  1088. else
  1089. atc->model = CT20K2_UNKNOWN;
  1090. }
  1091. atc->model_name = ct_subsys_name[atc->model];
  1092. dev_info(atc->card->dev, "chip %s model %s (%04x:%04x) is found\n",
  1093. atc->chip_name, atc->model_name,
  1094. vendor_id, device_id);
  1095. return 0;
  1096. }
  1097. int ct_atc_create_alsa_devs(struct ct_atc *atc)
  1098. {
  1099. enum CTALSADEVS i;
  1100. int err;
  1101. alsa_dev_funcs[MIXER].public_name = atc->chip_name;
  1102. for (i = 0; i < NUM_CTALSADEVS; i++) {
  1103. if (!alsa_dev_funcs[i].create)
  1104. continue;
  1105. err = alsa_dev_funcs[i].create(atc, i,
  1106. alsa_dev_funcs[i].public_name);
  1107. if (err) {
  1108. dev_err(atc->card->dev,
  1109. "Creating alsa device %d failed!\n", i);
  1110. return err;
  1111. }
  1112. }
  1113. return 0;
  1114. }
  1115. static int atc_create_hw_devs(struct ct_atc *atc)
  1116. {
  1117. struct hw *hw;
  1118. struct card_conf info = {0};
  1119. int i, err;
  1120. err = create_hw_obj(atc->pci, atc->chip_type, atc->model, &hw);
  1121. if (err) {
  1122. dev_err(atc->card->dev, "Failed to create hw obj!!!\n");
  1123. return err;
  1124. }
  1125. hw->card = atc->card;
  1126. atc->hw = hw;
  1127. /* Initialize card hardware. */
  1128. info.rsr = atc->rsr;
  1129. info.msr = atc->msr;
  1130. info.vm_pgt_phys = atc_get_ptp_phys(atc, 0);
  1131. err = hw->card_init(hw, &info);
  1132. if (err < 0)
  1133. return err;
  1134. for (i = 0; i < NUM_RSCTYP; i++) {
  1135. if (!rsc_mgr_funcs[i].create)
  1136. continue;
  1137. err = rsc_mgr_funcs[i].create(atc->hw, &atc->rsc_mgrs[i]);
  1138. if (err) {
  1139. dev_err(atc->card->dev,
  1140. "Failed to create rsc_mgr %d!!!\n", i);
  1141. return err;
  1142. }
  1143. }
  1144. return 0;
  1145. }
  1146. static int atc_get_resources(struct ct_atc *atc)
  1147. {
  1148. struct daio_desc da_desc = {0};
  1149. struct daio_mgr *daio_mgr;
  1150. struct src_desc src_dsc = {0};
  1151. struct src_mgr *src_mgr;
  1152. struct srcimp_desc srcimp_dsc = {0};
  1153. struct srcimp_mgr *srcimp_mgr;
  1154. struct sum_desc sum_dsc = {0};
  1155. struct sum_mgr *sum_mgr;
  1156. int err, i, num_srcs, num_daios;
  1157. num_daios = ((atc->model == CTSB1270) ? 8 : 7);
  1158. num_srcs = ((atc->model == CTSB1270) ? 6 : 4);
  1159. atc->daios = kcalloc(num_daios, sizeof(void *), GFP_KERNEL);
  1160. if (!atc->daios)
  1161. return -ENOMEM;
  1162. atc->srcs = kcalloc(num_srcs, sizeof(void *), GFP_KERNEL);
  1163. if (!atc->srcs)
  1164. return -ENOMEM;
  1165. atc->srcimps = kcalloc(num_srcs, sizeof(void *), GFP_KERNEL);
  1166. if (!atc->srcimps)
  1167. return -ENOMEM;
  1168. atc->pcm = kcalloc(2 * 4, sizeof(void *), GFP_KERNEL);
  1169. if (!atc->pcm)
  1170. return -ENOMEM;
  1171. daio_mgr = (struct daio_mgr *)atc->rsc_mgrs[DAIO];
  1172. da_desc.msr = atc->msr;
  1173. for (i = 0, atc->n_daio = 0; i < num_daios; i++) {
  1174. da_desc.type = (atc->model != CTSB073X) ? i :
  1175. ((i == SPDIFIO) ? SPDIFI1 : i);
  1176. err = daio_mgr->get_daio(daio_mgr, &da_desc,
  1177. (struct daio **)&atc->daios[i]);
  1178. if (err) {
  1179. dev_err(atc->card->dev,
  1180. "Failed to get DAIO resource %d!!!\n",
  1181. i);
  1182. return err;
  1183. }
  1184. atc->n_daio++;
  1185. }
  1186. src_mgr = atc->rsc_mgrs[SRC];
  1187. src_dsc.multi = 1;
  1188. src_dsc.msr = atc->msr;
  1189. src_dsc.mode = ARCRW;
  1190. for (i = 0, atc->n_src = 0; i < num_srcs; i++) {
  1191. err = src_mgr->get_src(src_mgr, &src_dsc,
  1192. (struct src **)&atc->srcs[i]);
  1193. if (err)
  1194. return err;
  1195. atc->n_src++;
  1196. }
  1197. srcimp_mgr = atc->rsc_mgrs[SRCIMP];
  1198. srcimp_dsc.msr = 8;
  1199. for (i = 0, atc->n_srcimp = 0; i < num_srcs; i++) {
  1200. err = srcimp_mgr->get_srcimp(srcimp_mgr, &srcimp_dsc,
  1201. (struct srcimp **)&atc->srcimps[i]);
  1202. if (err)
  1203. return err;
  1204. atc->n_srcimp++;
  1205. }
  1206. sum_mgr = atc->rsc_mgrs[SUM];
  1207. sum_dsc.msr = atc->msr;
  1208. for (i = 0, atc->n_pcm = 0; i < (2*4); i++) {
  1209. err = sum_mgr->get_sum(sum_mgr, &sum_dsc,
  1210. (struct sum **)&atc->pcm[i]);
  1211. if (err)
  1212. return err;
  1213. atc->n_pcm++;
  1214. }
  1215. return 0;
  1216. }
  1217. static void
  1218. atc_connect_dai(struct src_mgr *src_mgr, struct dai *dai,
  1219. struct src **srcs, struct srcimp **srcimps)
  1220. {
  1221. struct rsc *rscs[2] = {NULL};
  1222. struct src *src;
  1223. struct srcimp *srcimp;
  1224. int i = 0;
  1225. rscs[0] = &dai->daio.rscl;
  1226. rscs[1] = &dai->daio.rscr;
  1227. for (i = 0; i < 2; i++) {
  1228. src = srcs[i];
  1229. srcimp = srcimps[i];
  1230. srcimp->ops->map(srcimp, src, rscs[i]);
  1231. src_mgr->src_disable(src_mgr, src);
  1232. }
  1233. src_mgr->commit_write(src_mgr); /* Actually disable SRCs */
  1234. src = srcs[0];
  1235. src->ops->set_pm(src, 1);
  1236. for (i = 0; i < 2; i++) {
  1237. src = srcs[i];
  1238. src->ops->set_state(src, SRC_STATE_RUN);
  1239. src->ops->commit_write(src);
  1240. src_mgr->src_enable_s(src_mgr, src);
  1241. }
  1242. dai->ops->set_srt_srcl(dai, &(srcs[0]->rsc));
  1243. dai->ops->set_srt_srcr(dai, &(srcs[1]->rsc));
  1244. dai->ops->set_enb_src(dai, 1);
  1245. dai->ops->set_enb_srt(dai, 1);
  1246. dai->ops->commit_write(dai);
  1247. src_mgr->commit_write(src_mgr); /* Synchronously enable SRCs */
  1248. }
  1249. static void atc_connect_resources(struct ct_atc *atc)
  1250. {
  1251. struct dai *dai;
  1252. struct dao *dao;
  1253. struct src *src;
  1254. struct sum *sum;
  1255. struct ct_mixer *mixer;
  1256. struct rsc *rscs[2] = {NULL};
  1257. int i, j;
  1258. mixer = atc->mixer;
  1259. for (i = MIX_WAVE_FRONT, j = LINEO1; i <= MIX_SPDIF_OUT; i++, j++) {
  1260. mixer->get_output_ports(mixer, i, &rscs[0], &rscs[1]);
  1261. dao = container_of(atc->daios[j], struct dao, daio);
  1262. dao->ops->set_left_input(dao, rscs[0]);
  1263. dao->ops->set_right_input(dao, rscs[1]);
  1264. }
  1265. dai = container_of(atc->daios[LINEIM], struct dai, daio);
  1266. atc_connect_dai(atc->rsc_mgrs[SRC], dai,
  1267. (struct src **)&atc->srcs[2],
  1268. (struct srcimp **)&atc->srcimps[2]);
  1269. src = atc->srcs[2];
  1270. mixer->set_input_left(mixer, MIX_LINE_IN, &src->rsc);
  1271. src = atc->srcs[3];
  1272. mixer->set_input_right(mixer, MIX_LINE_IN, &src->rsc);
  1273. if (atc->model == CTSB1270) {
  1274. /* Titanium HD has a dedicated ADC for the Mic. */
  1275. dai = container_of(atc->daios[MIC], struct dai, daio);
  1276. atc_connect_dai(atc->rsc_mgrs[SRC], dai,
  1277. (struct src **)&atc->srcs[4],
  1278. (struct srcimp **)&atc->srcimps[4]);
  1279. src = atc->srcs[4];
  1280. mixer->set_input_left(mixer, MIX_MIC_IN, &src->rsc);
  1281. src = atc->srcs[5];
  1282. mixer->set_input_right(mixer, MIX_MIC_IN, &src->rsc);
  1283. }
  1284. dai = container_of(atc->daios[SPDIFIO], struct dai, daio);
  1285. atc_connect_dai(atc->rsc_mgrs[SRC], dai,
  1286. (struct src **)&atc->srcs[0],
  1287. (struct srcimp **)&atc->srcimps[0]);
  1288. src = atc->srcs[0];
  1289. mixer->set_input_left(mixer, MIX_SPDIF_IN, &src->rsc);
  1290. src = atc->srcs[1];
  1291. mixer->set_input_right(mixer, MIX_SPDIF_IN, &src->rsc);
  1292. for (i = MIX_PCMI_FRONT, j = 0; i <= MIX_PCMI_SURROUND; i++, j += 2) {
  1293. sum = atc->pcm[j];
  1294. mixer->set_input_left(mixer, i, &sum->rsc);
  1295. sum = atc->pcm[j+1];
  1296. mixer->set_input_right(mixer, i, &sum->rsc);
  1297. }
  1298. }
  1299. #ifdef CONFIG_PM_SLEEP
  1300. static int atc_suspend(struct ct_atc *atc)
  1301. {
  1302. struct hw *hw = atc->hw;
  1303. snd_power_change_state(atc->card, SNDRV_CTL_POWER_D3hot);
  1304. atc_release_resources(atc);
  1305. hw->suspend(hw);
  1306. return 0;
  1307. }
  1308. static int atc_hw_resume(struct ct_atc *atc)
  1309. {
  1310. struct hw *hw = atc->hw;
  1311. struct card_conf info = {0};
  1312. /* Re-initialize card hardware. */
  1313. info.rsr = atc->rsr;
  1314. info.msr = atc->msr;
  1315. info.vm_pgt_phys = atc_get_ptp_phys(atc, 0);
  1316. return hw->resume(hw, &info);
  1317. }
  1318. static int atc_resources_resume(struct ct_atc *atc)
  1319. {
  1320. struct ct_mixer *mixer;
  1321. int err = 0;
  1322. /* Get resources */
  1323. err = atc_get_resources(atc);
  1324. if (err < 0) {
  1325. atc_release_resources(atc);
  1326. return err;
  1327. }
  1328. /* Build topology */
  1329. atc_connect_resources(atc);
  1330. mixer = atc->mixer;
  1331. mixer->resume(mixer);
  1332. return 0;
  1333. }
  1334. static int atc_resume(struct ct_atc *atc)
  1335. {
  1336. int err = 0;
  1337. /* Do hardware resume. */
  1338. err = atc_hw_resume(atc);
  1339. if (err < 0) {
  1340. dev_err(atc->card->dev,
  1341. "pci_enable_device failed, disabling device\n");
  1342. snd_card_disconnect(atc->card);
  1343. return err;
  1344. }
  1345. err = atc_resources_resume(atc);
  1346. if (err < 0)
  1347. return err;
  1348. snd_power_change_state(atc->card, SNDRV_CTL_POWER_D0);
  1349. return 0;
  1350. }
  1351. #endif
  1352. static const struct ct_atc atc_preset = {
  1353. .map_audio_buffer = ct_map_audio_buffer,
  1354. .unmap_audio_buffer = ct_unmap_audio_buffer,
  1355. .pcm_playback_prepare = atc_pcm_playback_prepare,
  1356. .pcm_release_resources = atc_pcm_release_resources,
  1357. .pcm_playback_start = atc_pcm_playback_start,
  1358. .pcm_playback_stop = atc_pcm_stop,
  1359. .pcm_playback_position = atc_pcm_playback_position,
  1360. .pcm_capture_prepare = atc_pcm_capture_prepare,
  1361. .pcm_capture_start = atc_pcm_capture_start,
  1362. .pcm_capture_stop = atc_pcm_stop,
  1363. .pcm_capture_position = atc_pcm_capture_position,
  1364. .spdif_passthru_playback_prepare = spdif_passthru_playback_prepare,
  1365. .get_ptp_phys = atc_get_ptp_phys,
  1366. .select_line_in = atc_select_line_in,
  1367. .select_mic_in = atc_select_mic_in,
  1368. .select_digit_io = atc_select_digit_io,
  1369. .line_front_unmute = atc_line_front_unmute,
  1370. .line_surround_unmute = atc_line_surround_unmute,
  1371. .line_clfe_unmute = atc_line_clfe_unmute,
  1372. .line_rear_unmute = atc_line_rear_unmute,
  1373. .line_in_unmute = atc_line_in_unmute,
  1374. .mic_unmute = atc_mic_unmute,
  1375. .spdif_out_unmute = atc_spdif_out_unmute,
  1376. .spdif_in_unmute = atc_spdif_in_unmute,
  1377. .spdif_out_get_status = atc_spdif_out_get_status,
  1378. .spdif_out_set_status = atc_spdif_out_set_status,
  1379. .spdif_out_passthru = atc_spdif_out_passthru,
  1380. .capabilities = atc_capabilities,
  1381. .output_switch_get = atc_output_switch_get,
  1382. .output_switch_put = atc_output_switch_put,
  1383. .mic_source_switch_get = atc_mic_source_switch_get,
  1384. .mic_source_switch_put = atc_mic_source_switch_put,
  1385. #ifdef CONFIG_PM_SLEEP
  1386. .suspend = atc_suspend,
  1387. .resume = atc_resume,
  1388. #endif
  1389. };
  1390. /**
  1391. * ct_atc_create - create and initialize a hardware manager
  1392. * @card: corresponding alsa card object
  1393. * @pci: corresponding kernel pci device object
  1394. * @rsr: reference sampling rate
  1395. * @msr: master sampling rate
  1396. * @chip_type: CHIPTYP enum values
  1397. * @ssid: vendor ID (upper 16 bits) and device ID (lower 16 bits)
  1398. * @ratc: return created object address in it
  1399. *
  1400. * Creates and initializes a hardware manager.
  1401. *
  1402. * Creates kmallocated ct_atc structure. Initializes hardware.
  1403. * Returns 0 if succeeds, or negative error code if fails.
  1404. */
  1405. int ct_atc_create(struct snd_card *card, struct pci_dev *pci,
  1406. unsigned int rsr, unsigned int msr,
  1407. int chip_type, unsigned int ssid,
  1408. struct ct_atc **ratc)
  1409. {
  1410. struct ct_atc *atc;
  1411. static const struct snd_device_ops ops = {
  1412. .dev_free = atc_dev_free,
  1413. };
  1414. int err;
  1415. *ratc = NULL;
  1416. atc = kzalloc(sizeof(*atc), GFP_KERNEL);
  1417. if (!atc)
  1418. return -ENOMEM;
  1419. /* Set operations */
  1420. *atc = atc_preset;
  1421. atc->card = card;
  1422. atc->pci = pci;
  1423. atc->rsr = rsr;
  1424. atc->msr = msr;
  1425. atc->chip_type = chip_type;
  1426. mutex_init(&atc->atc_mutex);
  1427. /* Find card model */
  1428. err = atc_identify_card(atc, ssid);
  1429. if (err < 0) {
  1430. dev_err(card->dev, "ctatc: Card not recognised\n");
  1431. goto error1;
  1432. }
  1433. /* Set up device virtual memory management object */
  1434. err = ct_vm_create(&atc->vm, pci);
  1435. if (err < 0)
  1436. goto error1;
  1437. /* Create all atc hw devices */
  1438. err = atc_create_hw_devs(atc);
  1439. if (err < 0)
  1440. goto error1;
  1441. err = ct_mixer_create(atc, (struct ct_mixer **)&atc->mixer);
  1442. if (err) {
  1443. dev_err(card->dev, "Failed to create mixer obj!!!\n");
  1444. goto error1;
  1445. }
  1446. /* Get resources */
  1447. err = atc_get_resources(atc);
  1448. if (err < 0)
  1449. goto error1;
  1450. /* Build topology */
  1451. atc_connect_resources(atc);
  1452. atc->timer = ct_timer_new(atc);
  1453. if (!atc->timer) {
  1454. err = -ENOMEM;
  1455. goto error1;
  1456. }
  1457. err = snd_device_new(card, SNDRV_DEV_LOWLEVEL, atc, &ops);
  1458. if (err < 0)
  1459. goto error1;
  1460. *ratc = atc;
  1461. return 0;
  1462. error1:
  1463. ct_atc_destroy(atc);
  1464. dev_err(card->dev, "Something wrong!!!\n");
  1465. return err;
  1466. }