cx25821-audio-upstream.c 20 KB

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  1. /*
  2. * Driver for the Conexant CX25821 PCIe bridge
  3. *
  4. * Copyright (C) 2009 Conexant Systems Inc.
  5. * Authors <hiep.huynh@conexant.com>, <shu.lin@conexant.com>
  6. *
  7. * This program is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License as published by
  9. * the Free Software Foundation; either version 2 of the License, or
  10. * (at your option) any later version.
  11. *
  12. * This program is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  15. *
  16. * GNU General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU General Public License
  19. * along with this program; if not, write to the Free Software
  20. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  21. */
  22. #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  23. #include "cx25821-video.h"
  24. #include "cx25821-audio-upstream.h"
  25. #include <linux/fs.h>
  26. #include <linux/errno.h>
  27. #include <linux/kernel.h>
  28. #include <linux/init.h>
  29. #include <linux/module.h>
  30. #include <linux/syscalls.h>
  31. #include <linux/file.h>
  32. #include <linux/fcntl.h>
  33. #include <linux/delay.h>
  34. #include <linux/slab.h>
  35. #include <linux/uaccess.h>
  36. MODULE_DESCRIPTION("v4l2 driver module for cx25821 based TV cards");
  37. MODULE_AUTHOR("Hiep Huynh <hiep.huynh@conexant.com>");
  38. MODULE_LICENSE("GPL");
  39. static int _intr_msk = FLD_AUD_SRC_RISCI1 | FLD_AUD_SRC_OF |
  40. FLD_AUD_SRC_SYNC | FLD_AUD_SRC_OPC_ERR;
  41. int cx25821_sram_channel_setup_upstream_audio(struct cx25821_dev *dev,
  42. struct sram_channel *ch,
  43. unsigned int bpl, u32 risc)
  44. {
  45. unsigned int i, lines;
  46. u32 cdt;
  47. if (ch->cmds_start == 0) {
  48. cx_write(ch->ptr1_reg, 0);
  49. cx_write(ch->ptr2_reg, 0);
  50. cx_write(ch->cnt2_reg, 0);
  51. cx_write(ch->cnt1_reg, 0);
  52. return 0;
  53. }
  54. bpl = (bpl + 7) & ~7; /* alignment */
  55. cdt = ch->cdt;
  56. lines = ch->fifo_size / bpl;
  57. if (lines > 3)
  58. lines = 3;
  59. BUG_ON(lines < 2);
  60. /* write CDT */
  61. for (i = 0; i < lines; i++) {
  62. cx_write(cdt + 16 * i, ch->fifo_start + bpl * i);
  63. cx_write(cdt + 16 * i + 4, 0);
  64. cx_write(cdt + 16 * i + 8, 0);
  65. cx_write(cdt + 16 * i + 12, 0);
  66. }
  67. /* write CMDS */
  68. cx_write(ch->cmds_start + 0, risc);
  69. cx_write(ch->cmds_start + 4, 0);
  70. cx_write(ch->cmds_start + 8, cdt);
  71. cx_write(ch->cmds_start + 12, AUDIO_CDT_SIZE_QW);
  72. cx_write(ch->cmds_start + 16, ch->ctrl_start);
  73. /* IQ size */
  74. cx_write(ch->cmds_start + 20, AUDIO_IQ_SIZE_DW);
  75. for (i = 24; i < 80; i += 4)
  76. cx_write(ch->cmds_start + i, 0);
  77. /* fill registers */
  78. cx_write(ch->ptr1_reg, ch->fifo_start);
  79. cx_write(ch->ptr2_reg, cdt);
  80. cx_write(ch->cnt2_reg, AUDIO_CDT_SIZE_QW);
  81. cx_write(ch->cnt1_reg, AUDIO_CLUSTER_SIZE_QW - 1);
  82. return 0;
  83. }
  84. static __le32 *cx25821_risc_field_upstream_audio(struct cx25821_dev *dev,
  85. __le32 *rp,
  86. dma_addr_t databuf_phys_addr,
  87. unsigned int bpl,
  88. int fifo_enable)
  89. {
  90. unsigned int line;
  91. struct sram_channel *sram_ch =
  92. dev->channels[dev->_audio_upstream_channel].sram_channels;
  93. int offset = 0;
  94. /* scan lines */
  95. for (line = 0; line < LINES_PER_AUDIO_BUFFER; line++) {
  96. *(rp++) = cpu_to_le32(RISC_READ | RISC_SOL | RISC_EOL | bpl);
  97. *(rp++) = cpu_to_le32(databuf_phys_addr + offset);
  98. *(rp++) = cpu_to_le32(0); /* bits 63-32 */
  99. /* Check if we need to enable the FIFO
  100. * after the first 3 lines.
  101. * For the upstream audio channel,
  102. * the risc engine will enable the FIFO */
  103. if (fifo_enable && line == 2) {
  104. *(rp++) = RISC_WRITECR;
  105. *(rp++) = sram_ch->dma_ctl;
  106. *(rp++) = sram_ch->fld_aud_fifo_en;
  107. *(rp++) = 0x00000020;
  108. }
  109. offset += AUDIO_LINE_SIZE;
  110. }
  111. return rp;
  112. }
  113. int cx25821_risc_buffer_upstream_audio(struct cx25821_dev *dev,
  114. struct pci_dev *pci,
  115. unsigned int bpl, unsigned int lines)
  116. {
  117. __le32 *rp;
  118. int fifo_enable = 0;
  119. int frame = 0, i = 0;
  120. int frame_size = AUDIO_DATA_BUF_SZ;
  121. int databuf_offset = 0;
  122. int risc_flag = RISC_CNT_INC;
  123. dma_addr_t risc_phys_jump_addr;
  124. /* Virtual address of Risc buffer program */
  125. rp = dev->_risc_virt_addr;
  126. /* sync instruction */
  127. *(rp++) = cpu_to_le32(RISC_RESYNC | AUDIO_SYNC_LINE);
  128. for (frame = 0; frame < NUM_AUDIO_FRAMES; frame++) {
  129. databuf_offset = frame_size * frame;
  130. if (frame == 0) {
  131. fifo_enable = 1;
  132. risc_flag = RISC_CNT_RESET;
  133. } else {
  134. fifo_enable = 0;
  135. risc_flag = RISC_CNT_INC;
  136. }
  137. /* Calculate physical jump address */
  138. if ((frame + 1) == NUM_AUDIO_FRAMES) {
  139. risc_phys_jump_addr =
  140. dev->_risc_phys_start_addr +
  141. RISC_SYNC_INSTRUCTION_SIZE;
  142. } else {
  143. risc_phys_jump_addr =
  144. dev->_risc_phys_start_addr +
  145. RISC_SYNC_INSTRUCTION_SIZE +
  146. AUDIO_RISC_DMA_BUF_SIZE * (frame + 1);
  147. }
  148. rp = cx25821_risc_field_upstream_audio(dev, rp,
  149. dev->
  150. _audiodata_buf_phys_addr
  151. + databuf_offset, bpl,
  152. fifo_enable);
  153. if (USE_RISC_NOOP_AUDIO) {
  154. for (i = 0; i < NUM_NO_OPS; i++)
  155. *(rp++) = cpu_to_le32(RISC_NOOP);
  156. }
  157. /* Loop to (Nth)FrameRISC or to Start of Risc program &
  158. * generate IRQ */
  159. *(rp++) = cpu_to_le32(RISC_JUMP | RISC_IRQ1 | risc_flag);
  160. *(rp++) = cpu_to_le32(risc_phys_jump_addr);
  161. *(rp++) = cpu_to_le32(0);
  162. /* Recalculate virtual address based on frame index */
  163. rp = dev->_risc_virt_addr + RISC_SYNC_INSTRUCTION_SIZE / 4 +
  164. (AUDIO_RISC_DMA_BUF_SIZE * (frame + 1) / 4);
  165. }
  166. return 0;
  167. }
  168. void cx25821_free_memory_audio(struct cx25821_dev *dev)
  169. {
  170. if (dev->_risc_virt_addr) {
  171. pci_free_consistent(dev->pci, dev->_audiorisc_size,
  172. dev->_risc_virt_addr, dev->_risc_phys_addr);
  173. dev->_risc_virt_addr = NULL;
  174. }
  175. if (dev->_audiodata_buf_virt_addr) {
  176. pci_free_consistent(dev->pci, dev->_audiodata_buf_size,
  177. dev->_audiodata_buf_virt_addr,
  178. dev->_audiodata_buf_phys_addr);
  179. dev->_audiodata_buf_virt_addr = NULL;
  180. }
  181. }
  182. void cx25821_stop_upstream_audio(struct cx25821_dev *dev)
  183. {
  184. struct sram_channel *sram_ch =
  185. dev->channels[AUDIO_UPSTREAM_SRAM_CHANNEL_B].sram_channels;
  186. u32 tmp = 0;
  187. if (!dev->_audio_is_running) {
  188. printk(KERN_DEBUG
  189. pr_fmt("No audio file is currently running so return!\n"));
  190. return;
  191. }
  192. /* Disable RISC interrupts */
  193. cx_write(sram_ch->int_msk, 0);
  194. /* Turn OFF risc and fifo enable in AUD_DMA_CNTRL */
  195. tmp = cx_read(sram_ch->dma_ctl);
  196. cx_write(sram_ch->dma_ctl,
  197. tmp & ~(sram_ch->fld_aud_fifo_en | sram_ch->fld_aud_risc_en));
  198. /* Clear data buffer memory */
  199. if (dev->_audiodata_buf_virt_addr)
  200. memset(dev->_audiodata_buf_virt_addr, 0,
  201. dev->_audiodata_buf_size);
  202. dev->_audio_is_running = 0;
  203. dev->_is_first_audio_frame = 0;
  204. dev->_audioframe_count = 0;
  205. dev->_audiofile_status = END_OF_FILE;
  206. kfree(dev->_irq_audio_queues);
  207. dev->_irq_audio_queues = NULL;
  208. kfree(dev->_audiofilename);
  209. }
  210. void cx25821_free_mem_upstream_audio(struct cx25821_dev *dev)
  211. {
  212. if (dev->_audio_is_running)
  213. cx25821_stop_upstream_audio(dev);
  214. cx25821_free_memory_audio(dev);
  215. }
  216. int cx25821_get_audio_data(struct cx25821_dev *dev,
  217. struct sram_channel *sram_ch)
  218. {
  219. struct file *myfile;
  220. int frame_index_temp = dev->_audioframe_index;
  221. int i = 0;
  222. int line_size = AUDIO_LINE_SIZE;
  223. int frame_size = AUDIO_DATA_BUF_SZ;
  224. int frame_offset = frame_size * frame_index_temp;
  225. ssize_t vfs_read_retval = 0;
  226. char mybuf[line_size];
  227. loff_t file_offset = dev->_audioframe_count * frame_size;
  228. loff_t pos;
  229. mm_segment_t old_fs;
  230. if (dev->_audiofile_status == END_OF_FILE)
  231. return 0;
  232. myfile = filp_open(dev->_audiofilename, O_RDONLY | O_LARGEFILE, 0);
  233. if (IS_ERR(myfile)) {
  234. const int open_errno = -PTR_ERR(myfile);
  235. pr_err("%s(): ERROR opening file(%s) with errno = %d!\n",
  236. __func__, dev->_audiofilename, open_errno);
  237. return PTR_ERR(myfile);
  238. } else {
  239. if (!(myfile->f_op)) {
  240. pr_err("%s(): File has no file operations registered!\n",
  241. __func__);
  242. filp_close(myfile, NULL);
  243. return -EIO;
  244. }
  245. if (!myfile->f_op->read) {
  246. pr_err("%s(): File has no READ operations registered!\n",
  247. __func__);
  248. filp_close(myfile, NULL);
  249. return -EIO;
  250. }
  251. pos = myfile->f_pos;
  252. old_fs = get_fs();
  253. set_fs(KERNEL_DS);
  254. for (i = 0; i < dev->_audio_lines_count; i++) {
  255. pos = file_offset;
  256. vfs_read_retval =
  257. vfs_read(myfile, mybuf, line_size, &pos);
  258. if (vfs_read_retval > 0 && vfs_read_retval == line_size
  259. && dev->_audiodata_buf_virt_addr != NULL) {
  260. memcpy((void *)(dev->_audiodata_buf_virt_addr +
  261. frame_offset / 4), mybuf,
  262. vfs_read_retval);
  263. }
  264. file_offset += vfs_read_retval;
  265. frame_offset += vfs_read_retval;
  266. if (vfs_read_retval < line_size) {
  267. pr_info("Done: exit %s() since no more bytes to read from Audio file\n",
  268. __func__);
  269. break;
  270. }
  271. }
  272. if (i > 0)
  273. dev->_audioframe_count++;
  274. dev->_audiofile_status =
  275. (vfs_read_retval == line_size) ? IN_PROGRESS : END_OF_FILE;
  276. set_fs(old_fs);
  277. filp_close(myfile, NULL);
  278. }
  279. return 0;
  280. }
  281. static void cx25821_audioups_handler(struct work_struct *work)
  282. {
  283. struct cx25821_dev *dev =
  284. container_of(work, struct cx25821_dev, _audio_work_entry);
  285. if (!dev) {
  286. pr_err("ERROR %s(): since container_of(work_struct) FAILED!\n",
  287. __func__);
  288. return;
  289. }
  290. cx25821_get_audio_data(dev, dev->channels[dev->_audio_upstream_channel].
  291. sram_channels);
  292. }
  293. int cx25821_openfile_audio(struct cx25821_dev *dev,
  294. struct sram_channel *sram_ch)
  295. {
  296. struct file *myfile;
  297. int i = 0, j = 0;
  298. int line_size = AUDIO_LINE_SIZE;
  299. ssize_t vfs_read_retval = 0;
  300. char mybuf[line_size];
  301. loff_t pos;
  302. loff_t offset = (unsigned long)0;
  303. mm_segment_t old_fs;
  304. myfile = filp_open(dev->_audiofilename, O_RDONLY | O_LARGEFILE, 0);
  305. if (IS_ERR(myfile)) {
  306. const int open_errno = -PTR_ERR(myfile);
  307. pr_err("%s(): ERROR opening file(%s) with errno = %d!\n",
  308. __func__, dev->_audiofilename, open_errno);
  309. return PTR_ERR(myfile);
  310. } else {
  311. if (!(myfile->f_op)) {
  312. pr_err("%s(): File has no file operations registered!\n",
  313. __func__);
  314. filp_close(myfile, NULL);
  315. return -EIO;
  316. }
  317. if (!myfile->f_op->read) {
  318. pr_err("%s(): File has no READ operations registered!\n",
  319. __func__);
  320. filp_close(myfile, NULL);
  321. return -EIO;
  322. }
  323. pos = myfile->f_pos;
  324. old_fs = get_fs();
  325. set_fs(KERNEL_DS);
  326. for (j = 0; j < NUM_AUDIO_FRAMES; j++) {
  327. for (i = 0; i < dev->_audio_lines_count; i++) {
  328. pos = offset;
  329. vfs_read_retval =
  330. vfs_read(myfile, mybuf, line_size, &pos);
  331. if (vfs_read_retval > 0
  332. && vfs_read_retval == line_size
  333. && dev->_audiodata_buf_virt_addr != NULL) {
  334. memcpy((void *)(dev->
  335. _audiodata_buf_virt_addr
  336. + offset / 4), mybuf,
  337. vfs_read_retval);
  338. }
  339. offset += vfs_read_retval;
  340. if (vfs_read_retval < line_size) {
  341. pr_info("Done: exit %s() since no more bytes to read from Audio file\n",
  342. __func__);
  343. break;
  344. }
  345. }
  346. if (i > 0)
  347. dev->_audioframe_count++;
  348. if (vfs_read_retval < line_size)
  349. break;
  350. }
  351. dev->_audiofile_status =
  352. (vfs_read_retval == line_size) ? IN_PROGRESS : END_OF_FILE;
  353. set_fs(old_fs);
  354. myfile->f_pos = 0;
  355. filp_close(myfile, NULL);
  356. }
  357. return 0;
  358. }
  359. static int cx25821_audio_upstream_buffer_prepare(struct cx25821_dev *dev,
  360. struct sram_channel *sram_ch,
  361. int bpl)
  362. {
  363. int ret = 0;
  364. dma_addr_t dma_addr;
  365. dma_addr_t data_dma_addr;
  366. cx25821_free_memory_audio(dev);
  367. dev->_risc_virt_addr =
  368. pci_alloc_consistent(dev->pci, dev->audio_upstream_riscbuf_size,
  369. &dma_addr);
  370. dev->_risc_virt_start_addr = dev->_risc_virt_addr;
  371. dev->_risc_phys_start_addr = dma_addr;
  372. dev->_risc_phys_addr = dma_addr;
  373. dev->_audiorisc_size = dev->audio_upstream_riscbuf_size;
  374. if (!dev->_risc_virt_addr) {
  375. printk(KERN_DEBUG
  376. pr_fmt("ERROR: pci_alloc_consistent() FAILED to allocate memory for RISC program! Returning\n"));
  377. return -ENOMEM;
  378. }
  379. /* Clear out memory at address */
  380. memset(dev->_risc_virt_addr, 0, dev->_audiorisc_size);
  381. /* For Audio Data buffer allocation */
  382. dev->_audiodata_buf_virt_addr =
  383. pci_alloc_consistent(dev->pci, dev->audio_upstream_databuf_size,
  384. &data_dma_addr);
  385. dev->_audiodata_buf_phys_addr = data_dma_addr;
  386. dev->_audiodata_buf_size = dev->audio_upstream_databuf_size;
  387. if (!dev->_audiodata_buf_virt_addr) {
  388. printk(KERN_DEBUG
  389. pr_fmt("ERROR: pci_alloc_consistent() FAILED to allocate memory for data buffer! Returning\n"));
  390. return -ENOMEM;
  391. }
  392. /* Clear out memory at address */
  393. memset(dev->_audiodata_buf_virt_addr, 0, dev->_audiodata_buf_size);
  394. ret = cx25821_openfile_audio(dev, sram_ch);
  395. if (ret < 0)
  396. return ret;
  397. /* Creating RISC programs */
  398. ret =
  399. cx25821_risc_buffer_upstream_audio(dev, dev->pci, bpl,
  400. dev->_audio_lines_count);
  401. if (ret < 0) {
  402. printk(KERN_DEBUG
  403. pr_fmt("ERROR creating audio upstream RISC programs!\n"));
  404. goto error;
  405. }
  406. return 0;
  407. error:
  408. return ret;
  409. }
  410. int cx25821_audio_upstream_irq(struct cx25821_dev *dev, int chan_num,
  411. u32 status)
  412. {
  413. int i = 0;
  414. u32 int_msk_tmp;
  415. struct sram_channel *channel = dev->channels[chan_num].sram_channels;
  416. dma_addr_t risc_phys_jump_addr;
  417. __le32 *rp;
  418. if (status & FLD_AUD_SRC_RISCI1) {
  419. /* Get interrupt_index of the program that interrupted */
  420. u32 prog_cnt = cx_read(channel->gpcnt);
  421. /* Since we've identified our IRQ, clear our bits from the
  422. * interrupt mask and interrupt status registers */
  423. cx_write(channel->int_msk, 0);
  424. cx_write(channel->int_stat, cx_read(channel->int_stat));
  425. spin_lock(&dev->slock);
  426. while (prog_cnt != dev->_last_index_irq) {
  427. /* Update _last_index_irq */
  428. if (dev->_last_index_irq < (NUMBER_OF_PROGRAMS - 1))
  429. dev->_last_index_irq++;
  430. else
  431. dev->_last_index_irq = 0;
  432. dev->_audioframe_index = dev->_last_index_irq;
  433. queue_work(dev->_irq_audio_queues,
  434. &dev->_audio_work_entry);
  435. }
  436. if (dev->_is_first_audio_frame) {
  437. dev->_is_first_audio_frame = 0;
  438. if (dev->_risc_virt_start_addr != NULL) {
  439. risc_phys_jump_addr =
  440. dev->_risc_phys_start_addr +
  441. RISC_SYNC_INSTRUCTION_SIZE +
  442. AUDIO_RISC_DMA_BUF_SIZE;
  443. rp = cx25821_risc_field_upstream_audio(dev,
  444. dev->_risc_virt_start_addr + 1,
  445. dev->_audiodata_buf_phys_addr,
  446. AUDIO_LINE_SIZE, FIFO_DISABLE);
  447. if (USE_RISC_NOOP_AUDIO) {
  448. for (i = 0; i < NUM_NO_OPS; i++) {
  449. *(rp++) =
  450. cpu_to_le32(RISC_NOOP);
  451. }
  452. }
  453. /* Jump to 2nd Audio Frame */
  454. *(rp++) = cpu_to_le32(RISC_JUMP | RISC_IRQ1 |
  455. RISC_CNT_RESET);
  456. *(rp++) = cpu_to_le32(risc_phys_jump_addr);
  457. *(rp++) = cpu_to_le32(0);
  458. }
  459. }
  460. spin_unlock(&dev->slock);
  461. } else {
  462. if (status & FLD_AUD_SRC_OF)
  463. pr_warn("%s(): Audio Received Overflow Error Interrupt!\n",
  464. __func__);
  465. if (status & FLD_AUD_SRC_SYNC)
  466. pr_warn("%s(): Audio Received Sync Error Interrupt!\n",
  467. __func__);
  468. if (status & FLD_AUD_SRC_OPC_ERR)
  469. pr_warn("%s(): Audio Received OpCode Error Interrupt!\n",
  470. __func__);
  471. /* Read and write back the interrupt status register to clear
  472. * our bits */
  473. cx_write(channel->int_stat, cx_read(channel->int_stat));
  474. }
  475. if (dev->_audiofile_status == END_OF_FILE) {
  476. pr_warn("EOF Channel Audio Framecount = %d\n",
  477. dev->_audioframe_count);
  478. return -1;
  479. }
  480. /* ElSE, set the interrupt mask register, re-enable irq. */
  481. int_msk_tmp = cx_read(channel->int_msk);
  482. cx_write(channel->int_msk, int_msk_tmp |= _intr_msk);
  483. return 0;
  484. }
  485. static irqreturn_t cx25821_upstream_irq_audio(int irq, void *dev_id)
  486. {
  487. struct cx25821_dev *dev = dev_id;
  488. u32 msk_stat, audio_status;
  489. int handled = 0;
  490. struct sram_channel *sram_ch;
  491. if (!dev)
  492. return -1;
  493. sram_ch = dev->channels[dev->_audio_upstream_channel].sram_channels;
  494. msk_stat = cx_read(sram_ch->int_mstat);
  495. audio_status = cx_read(sram_ch->int_stat);
  496. /* Only deal with our interrupt */
  497. if (audio_status) {
  498. handled = cx25821_audio_upstream_irq(dev,
  499. dev->_audio_upstream_channel, audio_status);
  500. }
  501. if (handled < 0)
  502. cx25821_stop_upstream_audio(dev);
  503. else
  504. handled += handled;
  505. return IRQ_RETVAL(handled);
  506. }
  507. static void cx25821_wait_fifo_enable(struct cx25821_dev *dev,
  508. struct sram_channel *sram_ch)
  509. {
  510. int count = 0;
  511. u32 tmp;
  512. do {
  513. /* Wait 10 microsecond before checking to see if the FIFO is
  514. * turned ON. */
  515. udelay(10);
  516. tmp = cx_read(sram_ch->dma_ctl);
  517. /* 10 millisecond timeout */
  518. if (count++ > 1000) {
  519. pr_err("ERROR: %s() fifo is NOT turned on. Timeout!\n",
  520. __func__);
  521. return;
  522. }
  523. } while (!(tmp & sram_ch->fld_aud_fifo_en));
  524. }
  525. int cx25821_start_audio_dma_upstream(struct cx25821_dev *dev,
  526. struct sram_channel *sram_ch)
  527. {
  528. u32 tmp = 0;
  529. int err = 0;
  530. /* Set the physical start address of the RISC program in the initial
  531. * program counter(IPC) member of the CMDS. */
  532. cx_write(sram_ch->cmds_start + 0, dev->_risc_phys_addr);
  533. /* Risc IPC High 64 bits 63-32 */
  534. cx_write(sram_ch->cmds_start + 4, 0);
  535. /* reset counter */
  536. cx_write(sram_ch->gpcnt_ctl, 3);
  537. /* Set the line length (It looks like we do not need to set the
  538. * line length) */
  539. cx_write(sram_ch->aud_length, AUDIO_LINE_SIZE & FLD_AUD_DST_LN_LNGTH);
  540. /* Set the input mode to 16-bit */
  541. tmp = cx_read(sram_ch->aud_cfg);
  542. tmp |=
  543. FLD_AUD_SRC_ENABLE | FLD_AUD_DST_PK_MODE | FLD_AUD_CLK_ENABLE |
  544. FLD_AUD_MASTER_MODE | FLD_AUD_CLK_SELECT_PLL_D | FLD_AUD_SONY_MODE;
  545. cx_write(sram_ch->aud_cfg, tmp);
  546. /* Read and write back the interrupt status register to clear it */
  547. tmp = cx_read(sram_ch->int_stat);
  548. cx_write(sram_ch->int_stat, tmp);
  549. /* Clear our bits from the interrupt status register. */
  550. cx_write(sram_ch->int_stat, _intr_msk);
  551. /* Set the interrupt mask register, enable irq. */
  552. cx_set(PCI_INT_MSK, cx_read(PCI_INT_MSK) | (1 << sram_ch->irq_bit));
  553. tmp = cx_read(sram_ch->int_msk);
  554. cx_write(sram_ch->int_msk, tmp |= _intr_msk);
  555. err =
  556. request_irq(dev->pci->irq, cx25821_upstream_irq_audio,
  557. IRQF_SHARED, dev->name, dev);
  558. if (err < 0) {
  559. pr_err("%s: can't get upstream IRQ %d\n",
  560. dev->name, dev->pci->irq);
  561. goto fail_irq;
  562. }
  563. /* Start the DMA engine */
  564. tmp = cx_read(sram_ch->dma_ctl);
  565. cx_set(sram_ch->dma_ctl, tmp | sram_ch->fld_aud_risc_en);
  566. dev->_audio_is_running = 1;
  567. dev->_is_first_audio_frame = 1;
  568. /* The fifo_en bit turns on by the first Risc program */
  569. cx25821_wait_fifo_enable(dev, sram_ch);
  570. return 0;
  571. fail_irq:
  572. cx25821_dev_unregister(dev);
  573. return err;
  574. }
  575. int cx25821_audio_upstream_init(struct cx25821_dev *dev, int channel_select)
  576. {
  577. struct sram_channel *sram_ch;
  578. int retval = 0;
  579. int err = 0;
  580. int str_length = 0;
  581. if (dev->_audio_is_running) {
  582. pr_warn("Audio Channel is still running so return!\n");
  583. return 0;
  584. }
  585. dev->_audio_upstream_channel = channel_select;
  586. sram_ch = dev->channels[channel_select].sram_channels;
  587. /* Work queue */
  588. INIT_WORK(&dev->_audio_work_entry, cx25821_audioups_handler);
  589. dev->_irq_audio_queues =
  590. create_singlethread_workqueue("cx25821_audioworkqueue");
  591. if (!dev->_irq_audio_queues) {
  592. printk(KERN_DEBUG
  593. pr_fmt("ERROR: create_singlethread_workqueue() for Audio FAILED!\n"));
  594. return -ENOMEM;
  595. }
  596. dev->_last_index_irq = 0;
  597. dev->_audio_is_running = 0;
  598. dev->_audioframe_count = 0;
  599. dev->_audiofile_status = RESET_STATUS;
  600. dev->_audio_lines_count = LINES_PER_AUDIO_BUFFER;
  601. _line_size = AUDIO_LINE_SIZE;
  602. if (dev->input_audiofilename) {
  603. str_length = strlen(dev->input_audiofilename);
  604. dev->_audiofilename = kmalloc(str_length + 1, GFP_KERNEL);
  605. if (!dev->_audiofilename)
  606. goto error;
  607. memcpy(dev->_audiofilename, dev->input_audiofilename,
  608. str_length + 1);
  609. /* Default if filename is empty string */
  610. if (strcmp(dev->input_audiofilename, "") == 0)
  611. dev->_audiofilename = "/root/audioGOOD.wav";
  612. } else {
  613. str_length = strlen(_defaultAudioName);
  614. dev->_audiofilename = kmalloc(str_length + 1, GFP_KERNEL);
  615. if (!dev->_audiofilename)
  616. goto error;
  617. memcpy(dev->_audiofilename, _defaultAudioName, str_length + 1);
  618. }
  619. retval = cx25821_sram_channel_setup_upstream_audio(dev, sram_ch,
  620. _line_size, 0);
  621. dev->audio_upstream_riscbuf_size =
  622. AUDIO_RISC_DMA_BUF_SIZE * NUM_AUDIO_PROGS +
  623. RISC_SYNC_INSTRUCTION_SIZE;
  624. dev->audio_upstream_databuf_size = AUDIO_DATA_BUF_SZ * NUM_AUDIO_PROGS;
  625. /* Allocating buffers and prepare RISC program */
  626. retval = cx25821_audio_upstream_buffer_prepare(dev, sram_ch,
  627. _line_size);
  628. if (retval < 0) {
  629. pr_err("%s: Failed to set up Audio upstream buffers!\n",
  630. dev->name);
  631. goto error;
  632. }
  633. /* Start RISC engine */
  634. cx25821_start_audio_dma_upstream(dev, sram_ch);
  635. return 0;
  636. error:
  637. cx25821_dev_unregister(dev);
  638. return err;
  639. }