solo6x10-g723.c 10 KB

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  1. // SPDX-License-Identifier: GPL-2.0-or-later
  2. /*
  3. * Copyright (C) 2010-2013 Bluecherry, LLC <https://www.bluecherrydvr.com>
  4. *
  5. * Original author:
  6. * Ben Collins <bcollins@ubuntu.com>
  7. *
  8. * Additional work by:
  9. * John Brooks <john.brooks@bluecherry.net>
  10. */
  11. #include <linux/kernel.h>
  12. #include <linux/mempool.h>
  13. #include <linux/poll.h>
  14. #include <linux/kthread.h>
  15. #include <linux/freezer.h>
  16. #include <linux/module.h>
  17. #include <linux/slab.h>
  18. #include <sound/core.h>
  19. #include <sound/initval.h>
  20. #include <sound/pcm.h>
  21. #include <sound/control.h>
  22. #include "solo6x10.h"
  23. #include "solo6x10-tw28.h"
  24. #define G723_FDMA_PAGES 32
  25. #define G723_PERIOD_BYTES 48
  26. #define G723_PERIOD_BLOCK 1024
  27. #define G723_FRAMES_PER_PAGE 48
  28. /* Sets up channels 16-19 for decoding and 0-15 for encoding */
  29. #define OUTMODE_MASK 0x300
  30. #define SAMPLERATE 8000
  31. #define BITRATE 25
  32. /* The solo writes to 1k byte pages, 32 pages, in the dma. Each 1k page
  33. * is broken down to 20 * 48 byte regions (one for each channel possible)
  34. * with the rest of the page being dummy data. */
  35. #define PERIODS G723_FDMA_PAGES
  36. #define G723_INTR_ORDER 4 /* 0 - 4 */
  37. struct solo_snd_pcm {
  38. int on;
  39. spinlock_t lock;
  40. struct solo_dev *solo_dev;
  41. u8 *g723_buf;
  42. dma_addr_t g723_dma;
  43. };
  44. static void solo_g723_config(struct solo_dev *solo_dev)
  45. {
  46. int clk_div;
  47. clk_div = (solo_dev->clock_mhz * 1000000)
  48. / (SAMPLERATE * (BITRATE * 2) * 2);
  49. solo_reg_write(solo_dev, SOLO_AUDIO_SAMPLE,
  50. SOLO_AUDIO_BITRATE(BITRATE)
  51. | SOLO_AUDIO_CLK_DIV(clk_div));
  52. solo_reg_write(solo_dev, SOLO_AUDIO_FDMA_INTR,
  53. SOLO_AUDIO_FDMA_INTERVAL(1)
  54. | SOLO_AUDIO_INTR_ORDER(G723_INTR_ORDER)
  55. | SOLO_AUDIO_FDMA_BASE(SOLO_G723_EXT_ADDR(solo_dev) >> 16));
  56. solo_reg_write(solo_dev, SOLO_AUDIO_CONTROL,
  57. SOLO_AUDIO_ENABLE
  58. | SOLO_AUDIO_I2S_MODE
  59. | SOLO_AUDIO_I2S_MULTI(3)
  60. | SOLO_AUDIO_MODE(OUTMODE_MASK));
  61. }
  62. void solo_g723_isr(struct solo_dev *solo_dev)
  63. {
  64. struct snd_pcm_str *pstr =
  65. &solo_dev->snd_pcm->streams[SNDRV_PCM_STREAM_CAPTURE];
  66. struct snd_pcm_substream *ss;
  67. struct solo_snd_pcm *solo_pcm;
  68. for (ss = pstr->substream; ss != NULL; ss = ss->next) {
  69. if (snd_pcm_substream_chip(ss) == NULL)
  70. continue;
  71. /* This means open() hasn't been called on this one */
  72. if (snd_pcm_substream_chip(ss) == solo_dev)
  73. continue;
  74. /* Haven't triggered a start yet */
  75. solo_pcm = snd_pcm_substream_chip(ss);
  76. if (!solo_pcm->on)
  77. continue;
  78. snd_pcm_period_elapsed(ss);
  79. }
  80. }
  81. static const struct snd_pcm_hardware snd_solo_pcm_hw = {
  82. .info = (SNDRV_PCM_INFO_MMAP |
  83. SNDRV_PCM_INFO_INTERLEAVED |
  84. SNDRV_PCM_INFO_BLOCK_TRANSFER |
  85. SNDRV_PCM_INFO_MMAP_VALID),
  86. .formats = SNDRV_PCM_FMTBIT_U8,
  87. .rates = SNDRV_PCM_RATE_8000,
  88. .rate_min = SAMPLERATE,
  89. .rate_max = SAMPLERATE,
  90. .channels_min = 1,
  91. .channels_max = 1,
  92. .buffer_bytes_max = G723_PERIOD_BYTES * PERIODS,
  93. .period_bytes_min = G723_PERIOD_BYTES,
  94. .period_bytes_max = G723_PERIOD_BYTES,
  95. .periods_min = PERIODS,
  96. .periods_max = PERIODS,
  97. };
  98. static int snd_solo_pcm_open(struct snd_pcm_substream *ss)
  99. {
  100. struct solo_dev *solo_dev = snd_pcm_substream_chip(ss);
  101. struct solo_snd_pcm *solo_pcm;
  102. solo_pcm = kzalloc(sizeof(*solo_pcm), GFP_KERNEL);
  103. if (solo_pcm == NULL)
  104. goto oom;
  105. solo_pcm->g723_buf = dma_alloc_coherent(&solo_dev->pdev->dev,
  106. G723_PERIOD_BYTES,
  107. &solo_pcm->g723_dma,
  108. GFP_KERNEL);
  109. if (solo_pcm->g723_buf == NULL)
  110. goto oom;
  111. spin_lock_init(&solo_pcm->lock);
  112. solo_pcm->solo_dev = solo_dev;
  113. ss->runtime->hw = snd_solo_pcm_hw;
  114. snd_pcm_substream_chip(ss) = solo_pcm;
  115. return 0;
  116. oom:
  117. kfree(solo_pcm);
  118. return -ENOMEM;
  119. }
  120. static int snd_solo_pcm_close(struct snd_pcm_substream *ss)
  121. {
  122. struct solo_snd_pcm *solo_pcm = snd_pcm_substream_chip(ss);
  123. snd_pcm_substream_chip(ss) = solo_pcm->solo_dev;
  124. dma_free_coherent(&solo_pcm->solo_dev->pdev->dev, G723_PERIOD_BYTES,
  125. solo_pcm->g723_buf, solo_pcm->g723_dma);
  126. kfree(solo_pcm);
  127. return 0;
  128. }
  129. static int snd_solo_pcm_trigger(struct snd_pcm_substream *ss, int cmd)
  130. {
  131. struct solo_snd_pcm *solo_pcm = snd_pcm_substream_chip(ss);
  132. struct solo_dev *solo_dev = solo_pcm->solo_dev;
  133. int ret = 0;
  134. spin_lock(&solo_pcm->lock);
  135. switch (cmd) {
  136. case SNDRV_PCM_TRIGGER_START:
  137. if (solo_pcm->on == 0) {
  138. /* If this is the first user, switch on interrupts */
  139. if (atomic_inc_return(&solo_dev->snd_users) == 1)
  140. solo_irq_on(solo_dev, SOLO_IRQ_G723);
  141. solo_pcm->on = 1;
  142. }
  143. break;
  144. case SNDRV_PCM_TRIGGER_STOP:
  145. if (solo_pcm->on) {
  146. /* If this was our last user, switch them off */
  147. if (atomic_dec_return(&solo_dev->snd_users) == 0)
  148. solo_irq_off(solo_dev, SOLO_IRQ_G723);
  149. solo_pcm->on = 0;
  150. }
  151. break;
  152. default:
  153. ret = -EINVAL;
  154. }
  155. spin_unlock(&solo_pcm->lock);
  156. return ret;
  157. }
  158. static int snd_solo_pcm_prepare(struct snd_pcm_substream *ss)
  159. {
  160. return 0;
  161. }
  162. static snd_pcm_uframes_t snd_solo_pcm_pointer(struct snd_pcm_substream *ss)
  163. {
  164. struct solo_snd_pcm *solo_pcm = snd_pcm_substream_chip(ss);
  165. struct solo_dev *solo_dev = solo_pcm->solo_dev;
  166. snd_pcm_uframes_t idx = solo_reg_read(solo_dev, SOLO_AUDIO_STA) & 0x1f;
  167. return idx * G723_FRAMES_PER_PAGE;
  168. }
  169. static int snd_solo_pcm_copy_user(struct snd_pcm_substream *ss, int channel,
  170. unsigned long pos, void __user *dst,
  171. unsigned long count)
  172. {
  173. struct solo_snd_pcm *solo_pcm = snd_pcm_substream_chip(ss);
  174. struct solo_dev *solo_dev = solo_pcm->solo_dev;
  175. int err, i;
  176. for (i = 0; i < (count / G723_FRAMES_PER_PAGE); i++) {
  177. int page = (pos / G723_FRAMES_PER_PAGE) + i;
  178. err = solo_p2m_dma_t(solo_dev, 0, solo_pcm->g723_dma,
  179. SOLO_G723_EXT_ADDR(solo_dev) +
  180. (page * G723_PERIOD_BLOCK) +
  181. (ss->number * G723_PERIOD_BYTES),
  182. G723_PERIOD_BYTES, 0, 0);
  183. if (err)
  184. return err;
  185. if (copy_to_user(dst, solo_pcm->g723_buf, G723_PERIOD_BYTES))
  186. return -EFAULT;
  187. dst += G723_PERIOD_BYTES;
  188. }
  189. return 0;
  190. }
  191. static int snd_solo_pcm_copy_kernel(struct snd_pcm_substream *ss, int channel,
  192. unsigned long pos, void *dst,
  193. unsigned long count)
  194. {
  195. struct solo_snd_pcm *solo_pcm = snd_pcm_substream_chip(ss);
  196. struct solo_dev *solo_dev = solo_pcm->solo_dev;
  197. int err, i;
  198. for (i = 0; i < (count / G723_FRAMES_PER_PAGE); i++) {
  199. int page = (pos / G723_FRAMES_PER_PAGE) + i;
  200. err = solo_p2m_dma_t(solo_dev, 0, solo_pcm->g723_dma,
  201. SOLO_G723_EXT_ADDR(solo_dev) +
  202. (page * G723_PERIOD_BLOCK) +
  203. (ss->number * G723_PERIOD_BYTES),
  204. G723_PERIOD_BYTES, 0, 0);
  205. if (err)
  206. return err;
  207. memcpy(dst, solo_pcm->g723_buf, G723_PERIOD_BYTES);
  208. dst += G723_PERIOD_BYTES;
  209. }
  210. return 0;
  211. }
  212. static const struct snd_pcm_ops snd_solo_pcm_ops = {
  213. .open = snd_solo_pcm_open,
  214. .close = snd_solo_pcm_close,
  215. .prepare = snd_solo_pcm_prepare,
  216. .trigger = snd_solo_pcm_trigger,
  217. .pointer = snd_solo_pcm_pointer,
  218. .copy_user = snd_solo_pcm_copy_user,
  219. .copy_kernel = snd_solo_pcm_copy_kernel,
  220. };
  221. static int snd_solo_capture_volume_info(struct snd_kcontrol *kcontrol,
  222. struct snd_ctl_elem_info *info)
  223. {
  224. info->type = SNDRV_CTL_ELEM_TYPE_INTEGER;
  225. info->count = 1;
  226. info->value.integer.min = 0;
  227. info->value.integer.max = 15;
  228. info->value.integer.step = 1;
  229. return 0;
  230. }
  231. static int snd_solo_capture_volume_get(struct snd_kcontrol *kcontrol,
  232. struct snd_ctl_elem_value *value)
  233. {
  234. struct solo_dev *solo_dev = snd_kcontrol_chip(kcontrol);
  235. u8 ch = value->id.numid - 1;
  236. value->value.integer.value[0] = tw28_get_audio_gain(solo_dev, ch);
  237. return 0;
  238. }
  239. static int snd_solo_capture_volume_put(struct snd_kcontrol *kcontrol,
  240. struct snd_ctl_elem_value *value)
  241. {
  242. struct solo_dev *solo_dev = snd_kcontrol_chip(kcontrol);
  243. u8 ch = value->id.numid - 1;
  244. u8 old_val;
  245. old_val = tw28_get_audio_gain(solo_dev, ch);
  246. if (old_val == value->value.integer.value[0])
  247. return 0;
  248. tw28_set_audio_gain(solo_dev, ch, value->value.integer.value[0]);
  249. return 1;
  250. }
  251. static const struct snd_kcontrol_new snd_solo_capture_volume = {
  252. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  253. .name = "Capture Volume",
  254. .info = snd_solo_capture_volume_info,
  255. .get = snd_solo_capture_volume_get,
  256. .put = snd_solo_capture_volume_put,
  257. };
  258. static int solo_snd_pcm_init(struct solo_dev *solo_dev)
  259. {
  260. struct snd_card *card = solo_dev->snd_card;
  261. struct snd_pcm *pcm;
  262. struct snd_pcm_substream *ss;
  263. int ret;
  264. int i;
  265. ret = snd_pcm_new(card, card->driver, 0, 0, solo_dev->nr_chans,
  266. &pcm);
  267. if (ret < 0)
  268. return ret;
  269. snd_pcm_set_ops(pcm, SNDRV_PCM_STREAM_CAPTURE,
  270. &snd_solo_pcm_ops);
  271. snd_pcm_chip(pcm) = solo_dev;
  272. pcm->info_flags = 0;
  273. strscpy(pcm->name, card->shortname, sizeof(pcm->name));
  274. for (i = 0, ss = pcm->streams[SNDRV_PCM_STREAM_CAPTURE].substream;
  275. ss; ss = ss->next, i++)
  276. sprintf(ss->name, "Camera #%d Audio", i);
  277. snd_pcm_set_managed_buffer_all(pcm,
  278. SNDRV_DMA_TYPE_CONTINUOUS,
  279. NULL,
  280. G723_PERIOD_BYTES * PERIODS,
  281. G723_PERIOD_BYTES * PERIODS);
  282. solo_dev->snd_pcm = pcm;
  283. return 0;
  284. }
  285. int solo_g723_init(struct solo_dev *solo_dev)
  286. {
  287. static struct snd_device_ops ops = { };
  288. struct snd_card *card;
  289. struct snd_kcontrol_new kctl;
  290. char name[32];
  291. int ret;
  292. atomic_set(&solo_dev->snd_users, 0);
  293. /* Allows for easier mapping between video and audio */
  294. sprintf(name, "Softlogic%d", solo_dev->vfd->num);
  295. ret = snd_card_new(&solo_dev->pdev->dev,
  296. SNDRV_DEFAULT_IDX1, name, THIS_MODULE, 0,
  297. &solo_dev->snd_card);
  298. if (ret < 0)
  299. return ret;
  300. card = solo_dev->snd_card;
  301. strscpy(card->driver, SOLO6X10_NAME, sizeof(card->driver));
  302. strscpy(card->shortname, "SOLO-6x10 Audio", sizeof(card->shortname));
  303. sprintf(card->longname, "%s on %s IRQ %d", card->shortname,
  304. pci_name(solo_dev->pdev), solo_dev->pdev->irq);
  305. ret = snd_device_new(card, SNDRV_DEV_LOWLEVEL, solo_dev, &ops);
  306. if (ret < 0)
  307. goto snd_error;
  308. /* Mixer controls */
  309. strscpy(card->mixername, "SOLO-6x10", sizeof(card->mixername));
  310. kctl = snd_solo_capture_volume;
  311. kctl.count = solo_dev->nr_chans;
  312. ret = snd_ctl_add(card, snd_ctl_new1(&kctl, solo_dev));
  313. if (ret < 0)
  314. goto snd_error;
  315. ret = solo_snd_pcm_init(solo_dev);
  316. if (ret < 0)
  317. goto snd_error;
  318. ret = snd_card_register(card);
  319. if (ret < 0)
  320. goto snd_error;
  321. solo_g723_config(solo_dev);
  322. dev_info(&solo_dev->pdev->dev, "Alsa sound card as %s\n", name);
  323. return 0;
  324. snd_error:
  325. snd_card_free(card);
  326. return ret;
  327. }
  328. void solo_g723_exit(struct solo_dev *solo_dev)
  329. {
  330. if (!solo_dev->snd_card)
  331. return;
  332. solo_reg_write(solo_dev, SOLO_AUDIO_CONTROL, 0);
  333. solo_irq_off(solo_dev, SOLO_IRQ_G723);
  334. snd_card_free(solo_dev->snd_card);
  335. solo_dev->snd_card = NULL;
  336. }