m2m-deinterlace.c 28 KB

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  1. /*
  2. * V4L2 deinterlacing support.
  3. *
  4. * Copyright (c) 2012 Vista Silicon S.L.
  5. * Javier Martin <javier.martin@vista-silicon.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 the
  9. * Free Software Foundation; either version 2 of the
  10. * License, or (at your option) any later version
  11. */
  12. #include <linux/module.h>
  13. #include <linux/slab.h>
  14. #include <linux/interrupt.h>
  15. #include <linux/dmaengine.h>
  16. #include <linux/platform_device.h>
  17. #include <media/v4l2-mem2mem.h>
  18. #include <media/v4l2-device.h>
  19. #include <media/v4l2-ioctl.h>
  20. #include <media/videobuf2-dma-contig.h>
  21. #define MEM2MEM_TEST_MODULE_NAME "mem2mem-deinterlace"
  22. MODULE_DESCRIPTION("mem2mem device which supports deinterlacing using dmaengine");
  23. MODULE_AUTHOR("Javier Martin <javier.martin@vista-silicon.com");
  24. MODULE_LICENSE("GPL");
  25. MODULE_VERSION("0.0.1");
  26. static bool debug = true;
  27. module_param(debug, bool, 0644);
  28. /* Flags that indicate a format can be used for capture/output */
  29. #define MEM2MEM_CAPTURE (1 << 0)
  30. #define MEM2MEM_OUTPUT (1 << 1)
  31. #define MEM2MEM_NAME "m2m-deinterlace"
  32. #define dprintk(dev, fmt, arg...) \
  33. v4l2_dbg(1, debug, &dev->v4l2_dev, "%s: " fmt, __func__, ## arg)
  34. struct deinterlace_fmt {
  35. char *name;
  36. u32 fourcc;
  37. /* Types the format can be used for */
  38. u32 types;
  39. };
  40. static struct deinterlace_fmt formats[] = {
  41. {
  42. .name = "YUV 4:2:0 Planar",
  43. .fourcc = V4L2_PIX_FMT_YUV420,
  44. .types = MEM2MEM_CAPTURE | MEM2MEM_OUTPUT,
  45. },
  46. {
  47. .name = "YUYV 4:2:2",
  48. .fourcc = V4L2_PIX_FMT_YUYV,
  49. .types = MEM2MEM_CAPTURE | MEM2MEM_OUTPUT,
  50. },
  51. };
  52. #define NUM_FORMATS ARRAY_SIZE(formats)
  53. /* Per-queue, driver-specific private data */
  54. struct deinterlace_q_data {
  55. unsigned int width;
  56. unsigned int height;
  57. unsigned int sizeimage;
  58. struct deinterlace_fmt *fmt;
  59. enum v4l2_field field;
  60. };
  61. enum {
  62. V4L2_M2M_SRC = 0,
  63. V4L2_M2M_DST = 1,
  64. };
  65. enum {
  66. YUV420_DMA_Y_ODD,
  67. YUV420_DMA_Y_EVEN,
  68. YUV420_DMA_U_ODD,
  69. YUV420_DMA_U_EVEN,
  70. YUV420_DMA_V_ODD,
  71. YUV420_DMA_V_EVEN,
  72. YUV420_DMA_Y_ODD_DOUBLING,
  73. YUV420_DMA_U_ODD_DOUBLING,
  74. YUV420_DMA_V_ODD_DOUBLING,
  75. YUYV_DMA_ODD,
  76. YUYV_DMA_EVEN,
  77. YUYV_DMA_EVEN_DOUBLING,
  78. };
  79. /* Source and destination queue data */
  80. static struct deinterlace_q_data q_data[2];
  81. static struct deinterlace_q_data *get_q_data(enum v4l2_buf_type type)
  82. {
  83. switch (type) {
  84. case V4L2_BUF_TYPE_VIDEO_OUTPUT:
  85. return &q_data[V4L2_M2M_SRC];
  86. case V4L2_BUF_TYPE_VIDEO_CAPTURE:
  87. return &q_data[V4L2_M2M_DST];
  88. default:
  89. BUG();
  90. }
  91. return NULL;
  92. }
  93. static struct deinterlace_fmt *find_format(struct v4l2_format *f)
  94. {
  95. struct deinterlace_fmt *fmt;
  96. unsigned int k;
  97. for (k = 0; k < NUM_FORMATS; k++) {
  98. fmt = &formats[k];
  99. if ((fmt->types & f->type) &&
  100. (fmt->fourcc == f->fmt.pix.pixelformat))
  101. break;
  102. }
  103. if (k == NUM_FORMATS)
  104. return NULL;
  105. return &formats[k];
  106. }
  107. struct deinterlace_dev {
  108. struct v4l2_device v4l2_dev;
  109. struct video_device *vfd;
  110. atomic_t busy;
  111. struct mutex dev_mutex;
  112. spinlock_t irqlock;
  113. struct dma_chan *dma_chan;
  114. struct v4l2_m2m_dev *m2m_dev;
  115. struct vb2_alloc_ctx *alloc_ctx;
  116. };
  117. struct deinterlace_ctx {
  118. struct deinterlace_dev *dev;
  119. /* Abort requested by m2m */
  120. int aborting;
  121. enum v4l2_colorspace colorspace;
  122. dma_cookie_t cookie;
  123. struct v4l2_m2m_ctx *m2m_ctx;
  124. struct dma_interleaved_template *xt;
  125. };
  126. /*
  127. * mem2mem callbacks
  128. */
  129. static int deinterlace_job_ready(void *priv)
  130. {
  131. struct deinterlace_ctx *ctx = priv;
  132. struct deinterlace_dev *pcdev = ctx->dev;
  133. if ((v4l2_m2m_num_src_bufs_ready(ctx->m2m_ctx) > 0)
  134. && (v4l2_m2m_num_dst_bufs_ready(ctx->m2m_ctx) > 0)
  135. && (atomic_read(&ctx->dev->busy) == 0)) {
  136. dprintk(pcdev, "Task ready\n");
  137. return 1;
  138. }
  139. dprintk(pcdev, "Task not ready to run\n");
  140. return 0;
  141. }
  142. static void deinterlace_job_abort(void *priv)
  143. {
  144. struct deinterlace_ctx *ctx = priv;
  145. struct deinterlace_dev *pcdev = ctx->dev;
  146. ctx->aborting = 1;
  147. dprintk(pcdev, "Aborting task\n");
  148. v4l2_m2m_job_finish(pcdev->m2m_dev, ctx->m2m_ctx);
  149. }
  150. static void deinterlace_lock(void *priv)
  151. {
  152. struct deinterlace_ctx *ctx = priv;
  153. struct deinterlace_dev *pcdev = ctx->dev;
  154. mutex_lock(&pcdev->dev_mutex);
  155. }
  156. static void deinterlace_unlock(void *priv)
  157. {
  158. struct deinterlace_ctx *ctx = priv;
  159. struct deinterlace_dev *pcdev = ctx->dev;
  160. mutex_unlock(&pcdev->dev_mutex);
  161. }
  162. static void dma_callback(void *data)
  163. {
  164. struct deinterlace_ctx *curr_ctx = data;
  165. struct deinterlace_dev *pcdev = curr_ctx->dev;
  166. struct vb2_buffer *src_vb, *dst_vb;
  167. atomic_set(&pcdev->busy, 0);
  168. src_vb = v4l2_m2m_src_buf_remove(curr_ctx->m2m_ctx);
  169. dst_vb = v4l2_m2m_dst_buf_remove(curr_ctx->m2m_ctx);
  170. v4l2_m2m_buf_done(src_vb, VB2_BUF_STATE_DONE);
  171. v4l2_m2m_buf_done(dst_vb, VB2_BUF_STATE_DONE);
  172. v4l2_m2m_job_finish(pcdev->m2m_dev, curr_ctx->m2m_ctx);
  173. dprintk(pcdev, "dma transfers completed.\n");
  174. }
  175. static void deinterlace_issue_dma(struct deinterlace_ctx *ctx, int op,
  176. int do_callback)
  177. {
  178. struct deinterlace_q_data *s_q_data, *d_q_data;
  179. struct vb2_buffer *src_buf, *dst_buf;
  180. struct deinterlace_dev *pcdev = ctx->dev;
  181. struct dma_chan *chan = pcdev->dma_chan;
  182. struct dma_device *dmadev = chan->device;
  183. struct dma_async_tx_descriptor *tx;
  184. unsigned int s_width, s_height;
  185. unsigned int d_width, d_height;
  186. unsigned int d_size, s_size;
  187. dma_addr_t p_in, p_out;
  188. enum dma_ctrl_flags flags;
  189. src_buf = v4l2_m2m_next_src_buf(ctx->m2m_ctx);
  190. dst_buf = v4l2_m2m_next_dst_buf(ctx->m2m_ctx);
  191. s_q_data = get_q_data(V4L2_BUF_TYPE_VIDEO_OUTPUT);
  192. s_width = s_q_data->width;
  193. s_height = s_q_data->height;
  194. s_size = s_width * s_height;
  195. d_q_data = get_q_data(V4L2_BUF_TYPE_VIDEO_CAPTURE);
  196. d_width = d_q_data->width;
  197. d_height = d_q_data->height;
  198. d_size = d_width * d_height;
  199. p_in = (dma_addr_t)vb2_dma_contig_plane_dma_addr(src_buf, 0);
  200. p_out = (dma_addr_t)vb2_dma_contig_plane_dma_addr(dst_buf, 0);
  201. if (!p_in || !p_out) {
  202. v4l2_err(&pcdev->v4l2_dev,
  203. "Acquiring kernel pointers to buffers failed\n");
  204. return;
  205. }
  206. switch (op) {
  207. case YUV420_DMA_Y_ODD:
  208. ctx->xt->numf = s_height / 2;
  209. ctx->xt->sgl[0].size = s_width;
  210. ctx->xt->sgl[0].icg = s_width;
  211. ctx->xt->src_start = p_in;
  212. ctx->xt->dst_start = p_out;
  213. break;
  214. case YUV420_DMA_Y_EVEN:
  215. ctx->xt->numf = s_height / 2;
  216. ctx->xt->sgl[0].size = s_width;
  217. ctx->xt->sgl[0].icg = s_width;
  218. ctx->xt->src_start = p_in + s_size / 2;
  219. ctx->xt->dst_start = p_out + s_width;
  220. break;
  221. case YUV420_DMA_U_ODD:
  222. ctx->xt->numf = s_height / 4;
  223. ctx->xt->sgl[0].size = s_width / 2;
  224. ctx->xt->sgl[0].icg = s_width / 2;
  225. ctx->xt->src_start = p_in + s_size;
  226. ctx->xt->dst_start = p_out + s_size;
  227. break;
  228. case YUV420_DMA_U_EVEN:
  229. ctx->xt->numf = s_height / 4;
  230. ctx->xt->sgl[0].size = s_width / 2;
  231. ctx->xt->sgl[0].icg = s_width / 2;
  232. ctx->xt->src_start = p_in + (9 * s_size) / 8;
  233. ctx->xt->dst_start = p_out + s_size + s_width / 2;
  234. break;
  235. case YUV420_DMA_V_ODD:
  236. ctx->xt->numf = s_height / 4;
  237. ctx->xt->sgl[0].size = s_width / 2;
  238. ctx->xt->sgl[0].icg = s_width / 2;
  239. ctx->xt->src_start = p_in + (5 * s_size) / 4;
  240. ctx->xt->dst_start = p_out + (5 * s_size) / 4;
  241. break;
  242. case YUV420_DMA_V_EVEN:
  243. ctx->xt->numf = s_height / 4;
  244. ctx->xt->sgl[0].size = s_width / 2;
  245. ctx->xt->sgl[0].icg = s_width / 2;
  246. ctx->xt->src_start = p_in + (11 * s_size) / 8;
  247. ctx->xt->dst_start = p_out + (5 * s_size) / 4 + s_width / 2;
  248. break;
  249. case YUV420_DMA_Y_ODD_DOUBLING:
  250. ctx->xt->numf = s_height / 2;
  251. ctx->xt->sgl[0].size = s_width;
  252. ctx->xt->sgl[0].icg = s_width;
  253. ctx->xt->src_start = p_in;
  254. ctx->xt->dst_start = p_out + s_width;
  255. break;
  256. case YUV420_DMA_U_ODD_DOUBLING:
  257. ctx->xt->numf = s_height / 4;
  258. ctx->xt->sgl[0].size = s_width / 2;
  259. ctx->xt->sgl[0].icg = s_width / 2;
  260. ctx->xt->src_start = p_in + s_size;
  261. ctx->xt->dst_start = p_out + s_size + s_width / 2;
  262. break;
  263. case YUV420_DMA_V_ODD_DOUBLING:
  264. ctx->xt->numf = s_height / 4;
  265. ctx->xt->sgl[0].size = s_width / 2;
  266. ctx->xt->sgl[0].icg = s_width / 2;
  267. ctx->xt->src_start = p_in + (5 * s_size) / 4;
  268. ctx->xt->dst_start = p_out + (5 * s_size) / 4 + s_width / 2;
  269. break;
  270. case YUYV_DMA_ODD:
  271. ctx->xt->numf = s_height / 2;
  272. ctx->xt->sgl[0].size = s_width * 2;
  273. ctx->xt->sgl[0].icg = s_width * 2;
  274. ctx->xt->src_start = p_in;
  275. ctx->xt->dst_start = p_out;
  276. break;
  277. case YUYV_DMA_EVEN:
  278. ctx->xt->numf = s_height / 2;
  279. ctx->xt->sgl[0].size = s_width * 2;
  280. ctx->xt->sgl[0].icg = s_width * 2;
  281. ctx->xt->src_start = p_in + s_size;
  282. ctx->xt->dst_start = p_out + s_width * 2;
  283. break;
  284. case YUYV_DMA_EVEN_DOUBLING:
  285. default:
  286. ctx->xt->numf = s_height / 2;
  287. ctx->xt->sgl[0].size = s_width * 2;
  288. ctx->xt->sgl[0].icg = s_width * 2;
  289. ctx->xt->src_start = p_in;
  290. ctx->xt->dst_start = p_out + s_width * 2;
  291. break;
  292. }
  293. /* Common parameters for al transfers */
  294. ctx->xt->frame_size = 1;
  295. ctx->xt->dir = DMA_MEM_TO_MEM;
  296. ctx->xt->src_sgl = false;
  297. ctx->xt->dst_sgl = true;
  298. flags = DMA_CTRL_ACK | DMA_PREP_INTERRUPT |
  299. DMA_COMPL_SKIP_DEST_UNMAP | DMA_COMPL_SKIP_SRC_UNMAP;
  300. tx = dmadev->device_prep_interleaved_dma(chan, ctx->xt, flags);
  301. if (tx == NULL) {
  302. v4l2_warn(&pcdev->v4l2_dev, "DMA interleaved prep error\n");
  303. return;
  304. }
  305. if (do_callback) {
  306. tx->callback = dma_callback;
  307. tx->callback_param = ctx;
  308. }
  309. ctx->cookie = dmaengine_submit(tx);
  310. if (dma_submit_error(ctx->cookie)) {
  311. v4l2_warn(&pcdev->v4l2_dev,
  312. "DMA submit error %d with src=0x%x dst=0x%x len=0x%x\n",
  313. ctx->cookie, (unsigned)p_in, (unsigned)p_out,
  314. s_size * 3/2);
  315. return;
  316. }
  317. dma_async_issue_pending(chan);
  318. }
  319. static void deinterlace_device_run(void *priv)
  320. {
  321. struct deinterlace_ctx *ctx = priv;
  322. struct deinterlace_q_data *dst_q_data;
  323. atomic_set(&ctx->dev->busy, 1);
  324. dprintk(ctx->dev, "%s: DMA try issue.\n", __func__);
  325. dst_q_data = get_q_data(V4L2_BUF_TYPE_VIDEO_CAPTURE);
  326. /*
  327. * 4 possible field conversions are possible at the moment:
  328. * V4L2_FIELD_SEQ_TB --> V4L2_FIELD_INTERLACED_TB:
  329. * two separate fields in the same input buffer are interlaced
  330. * in the output buffer using weaving. Top field comes first.
  331. * V4L2_FIELD_SEQ_TB --> V4L2_FIELD_NONE:
  332. * top field from the input buffer is copied to the output buffer
  333. * using line doubling. Bottom field from the input buffer is discarded.
  334. * V4L2_FIELD_SEQ_BT --> V4L2_FIELD_INTERLACED_BT:
  335. * two separate fields in the same input buffer are interlaced
  336. * in the output buffer using weaving. Bottom field comes first.
  337. * V4L2_FIELD_SEQ_BT --> V4L2_FIELD_NONE:
  338. * bottom field from the input buffer is copied to the output buffer
  339. * using line doubling. Top field from the input buffer is discarded.
  340. */
  341. switch (dst_q_data->fmt->fourcc) {
  342. case V4L2_PIX_FMT_YUV420:
  343. switch (dst_q_data->field) {
  344. case V4L2_FIELD_INTERLACED_TB:
  345. case V4L2_FIELD_INTERLACED_BT:
  346. dprintk(ctx->dev, "%s: yuv420 interlaced tb.\n",
  347. __func__);
  348. deinterlace_issue_dma(ctx, YUV420_DMA_Y_ODD, 0);
  349. deinterlace_issue_dma(ctx, YUV420_DMA_Y_EVEN, 0);
  350. deinterlace_issue_dma(ctx, YUV420_DMA_U_ODD, 0);
  351. deinterlace_issue_dma(ctx, YUV420_DMA_U_EVEN, 0);
  352. deinterlace_issue_dma(ctx, YUV420_DMA_V_ODD, 0);
  353. deinterlace_issue_dma(ctx, YUV420_DMA_V_EVEN, 1);
  354. break;
  355. case V4L2_FIELD_NONE:
  356. default:
  357. dprintk(ctx->dev, "%s: yuv420 interlaced line doubling.\n",
  358. __func__);
  359. deinterlace_issue_dma(ctx, YUV420_DMA_Y_ODD, 0);
  360. deinterlace_issue_dma(ctx, YUV420_DMA_Y_ODD_DOUBLING, 0);
  361. deinterlace_issue_dma(ctx, YUV420_DMA_U_ODD, 0);
  362. deinterlace_issue_dma(ctx, YUV420_DMA_U_ODD_DOUBLING, 0);
  363. deinterlace_issue_dma(ctx, YUV420_DMA_V_ODD, 0);
  364. deinterlace_issue_dma(ctx, YUV420_DMA_V_ODD_DOUBLING, 1);
  365. break;
  366. }
  367. break;
  368. case V4L2_PIX_FMT_YUYV:
  369. default:
  370. switch (dst_q_data->field) {
  371. case V4L2_FIELD_INTERLACED_TB:
  372. case V4L2_FIELD_INTERLACED_BT:
  373. dprintk(ctx->dev, "%s: yuyv interlaced_tb.\n",
  374. __func__);
  375. deinterlace_issue_dma(ctx, YUYV_DMA_ODD, 0);
  376. deinterlace_issue_dma(ctx, YUYV_DMA_EVEN, 1);
  377. break;
  378. case V4L2_FIELD_NONE:
  379. default:
  380. dprintk(ctx->dev, "%s: yuyv interlaced line doubling.\n",
  381. __func__);
  382. deinterlace_issue_dma(ctx, YUYV_DMA_ODD, 0);
  383. deinterlace_issue_dma(ctx, YUYV_DMA_EVEN_DOUBLING, 1);
  384. break;
  385. }
  386. break;
  387. }
  388. dprintk(ctx->dev, "%s: DMA issue done.\n", __func__);
  389. }
  390. /*
  391. * video ioctls
  392. */
  393. static int vidioc_querycap(struct file *file, void *priv,
  394. struct v4l2_capability *cap)
  395. {
  396. strlcpy(cap->driver, MEM2MEM_NAME, sizeof(cap->driver));
  397. strlcpy(cap->card, MEM2MEM_NAME, sizeof(cap->card));
  398. strlcpy(cap->bus_info, MEM2MEM_NAME, sizeof(cap->card));
  399. /*
  400. * This is only a mem-to-mem video device. The capture and output
  401. * device capability flags are left only for backward compatibility
  402. * and are scheduled for removal.
  403. */
  404. cap->device_caps = V4L2_CAP_VIDEO_CAPTURE | V4L2_CAP_VIDEO_OUTPUT |
  405. V4L2_CAP_VIDEO_M2M | V4L2_CAP_STREAMING;
  406. cap->capabilities = cap->device_caps | V4L2_CAP_DEVICE_CAPS;
  407. return 0;
  408. }
  409. static int enum_fmt(struct v4l2_fmtdesc *f, u32 type)
  410. {
  411. int i, num;
  412. struct deinterlace_fmt *fmt;
  413. num = 0;
  414. for (i = 0; i < NUM_FORMATS; ++i) {
  415. if (formats[i].types & type) {
  416. /* index-th format of type type found ? */
  417. if (num == f->index)
  418. break;
  419. /* Correct type but haven't reached our index yet,
  420. * just increment per-type index */
  421. ++num;
  422. }
  423. }
  424. if (i < NUM_FORMATS) {
  425. /* Format found */
  426. fmt = &formats[i];
  427. strlcpy(f->description, fmt->name, sizeof(f->description));
  428. f->pixelformat = fmt->fourcc;
  429. return 0;
  430. }
  431. /* Format not found */
  432. return -EINVAL;
  433. }
  434. static int vidioc_enum_fmt_vid_cap(struct file *file, void *priv,
  435. struct v4l2_fmtdesc *f)
  436. {
  437. return enum_fmt(f, MEM2MEM_CAPTURE);
  438. }
  439. static int vidioc_enum_fmt_vid_out(struct file *file, void *priv,
  440. struct v4l2_fmtdesc *f)
  441. {
  442. return enum_fmt(f, MEM2MEM_OUTPUT);
  443. }
  444. static int vidioc_g_fmt(struct deinterlace_ctx *ctx, struct v4l2_format *f)
  445. {
  446. struct vb2_queue *vq;
  447. struct deinterlace_q_data *q_data;
  448. vq = v4l2_m2m_get_vq(ctx->m2m_ctx, f->type);
  449. if (!vq)
  450. return -EINVAL;
  451. q_data = get_q_data(f->type);
  452. f->fmt.pix.width = q_data->width;
  453. f->fmt.pix.height = q_data->height;
  454. f->fmt.pix.field = q_data->field;
  455. f->fmt.pix.pixelformat = q_data->fmt->fourcc;
  456. switch (q_data->fmt->fourcc) {
  457. case V4L2_PIX_FMT_YUV420:
  458. f->fmt.pix.bytesperline = q_data->width * 3 / 2;
  459. break;
  460. case V4L2_PIX_FMT_YUYV:
  461. default:
  462. f->fmt.pix.bytesperline = q_data->width * 2;
  463. }
  464. f->fmt.pix.sizeimage = q_data->sizeimage;
  465. f->fmt.pix.colorspace = ctx->colorspace;
  466. return 0;
  467. }
  468. static int vidioc_g_fmt_vid_out(struct file *file, void *priv,
  469. struct v4l2_format *f)
  470. {
  471. return vidioc_g_fmt(priv, f);
  472. }
  473. static int vidioc_g_fmt_vid_cap(struct file *file, void *priv,
  474. struct v4l2_format *f)
  475. {
  476. return vidioc_g_fmt(priv, f);
  477. }
  478. static int vidioc_try_fmt(struct v4l2_format *f, struct deinterlace_fmt *fmt)
  479. {
  480. switch (f->fmt.pix.pixelformat) {
  481. case V4L2_PIX_FMT_YUV420:
  482. f->fmt.pix.bytesperline = f->fmt.pix.width * 3 / 2;
  483. break;
  484. case V4L2_PIX_FMT_YUYV:
  485. default:
  486. f->fmt.pix.bytesperline = f->fmt.pix.width * 2;
  487. }
  488. f->fmt.pix.sizeimage = f->fmt.pix.height * f->fmt.pix.bytesperline;
  489. return 0;
  490. }
  491. static int vidioc_try_fmt_vid_cap(struct file *file, void *priv,
  492. struct v4l2_format *f)
  493. {
  494. struct deinterlace_fmt *fmt;
  495. struct deinterlace_ctx *ctx = priv;
  496. fmt = find_format(f);
  497. if (!fmt || !(fmt->types & MEM2MEM_CAPTURE))
  498. f->fmt.pix.pixelformat = V4L2_PIX_FMT_YUV420;
  499. f->fmt.pix.colorspace = ctx->colorspace;
  500. if (f->fmt.pix.field != V4L2_FIELD_INTERLACED_TB &&
  501. f->fmt.pix.field != V4L2_FIELD_INTERLACED_BT &&
  502. f->fmt.pix.field != V4L2_FIELD_NONE)
  503. f->fmt.pix.field = V4L2_FIELD_INTERLACED_TB;
  504. return vidioc_try_fmt(f, fmt);
  505. }
  506. static int vidioc_try_fmt_vid_out(struct file *file, void *priv,
  507. struct v4l2_format *f)
  508. {
  509. struct deinterlace_fmt *fmt;
  510. fmt = find_format(f);
  511. if (!fmt || !(fmt->types & MEM2MEM_OUTPUT))
  512. f->fmt.pix.pixelformat = V4L2_PIX_FMT_YUV420;
  513. if (!f->fmt.pix.colorspace)
  514. f->fmt.pix.colorspace = V4L2_COLORSPACE_REC709;
  515. if (f->fmt.pix.field != V4L2_FIELD_SEQ_TB &&
  516. f->fmt.pix.field != V4L2_FIELD_SEQ_BT)
  517. f->fmt.pix.field = V4L2_FIELD_SEQ_TB;
  518. return vidioc_try_fmt(f, fmt);
  519. }
  520. static int vidioc_s_fmt(struct deinterlace_ctx *ctx, struct v4l2_format *f)
  521. {
  522. struct deinterlace_q_data *q_data;
  523. struct vb2_queue *vq;
  524. vq = v4l2_m2m_get_vq(ctx->m2m_ctx, f->type);
  525. if (!vq)
  526. return -EINVAL;
  527. q_data = get_q_data(f->type);
  528. if (!q_data)
  529. return -EINVAL;
  530. if (vb2_is_busy(vq)) {
  531. v4l2_err(&ctx->dev->v4l2_dev, "%s queue busy\n", __func__);
  532. return -EBUSY;
  533. }
  534. q_data->fmt = find_format(f);
  535. if (!q_data->fmt) {
  536. v4l2_err(&ctx->dev->v4l2_dev,
  537. "Couldn't set format type %d, wxh: %dx%d. fmt: %d, field: %d\n",
  538. f->type, f->fmt.pix.width, f->fmt.pix.height,
  539. f->fmt.pix.pixelformat, f->fmt.pix.field);
  540. return -EINVAL;
  541. }
  542. q_data->width = f->fmt.pix.width;
  543. q_data->height = f->fmt.pix.height;
  544. q_data->field = f->fmt.pix.field;
  545. switch (f->fmt.pix.pixelformat) {
  546. case V4L2_PIX_FMT_YUV420:
  547. f->fmt.pix.bytesperline = f->fmt.pix.width * 3 / 2;
  548. q_data->sizeimage = (q_data->width * q_data->height * 3) / 2;
  549. break;
  550. case V4L2_PIX_FMT_YUYV:
  551. default:
  552. f->fmt.pix.bytesperline = f->fmt.pix.width * 2;
  553. q_data->sizeimage = q_data->width * q_data->height * 2;
  554. }
  555. dprintk(ctx->dev,
  556. "Setting format for type %d, wxh: %dx%d, fmt: %d, field: %d\n",
  557. f->type, q_data->width, q_data->height, q_data->fmt->fourcc,
  558. q_data->field);
  559. return 0;
  560. }
  561. static int vidioc_s_fmt_vid_cap(struct file *file, void *priv,
  562. struct v4l2_format *f)
  563. {
  564. int ret;
  565. ret = vidioc_try_fmt_vid_cap(file, priv, f);
  566. if (ret)
  567. return ret;
  568. return vidioc_s_fmt(priv, f);
  569. }
  570. static int vidioc_s_fmt_vid_out(struct file *file, void *priv,
  571. struct v4l2_format *f)
  572. {
  573. struct deinterlace_ctx *ctx = priv;
  574. int ret;
  575. ret = vidioc_try_fmt_vid_out(file, priv, f);
  576. if (ret)
  577. return ret;
  578. ret = vidioc_s_fmt(priv, f);
  579. if (!ret)
  580. ctx->colorspace = f->fmt.pix.colorspace;
  581. return ret;
  582. }
  583. static int vidioc_reqbufs(struct file *file, void *priv,
  584. struct v4l2_requestbuffers *reqbufs)
  585. {
  586. struct deinterlace_ctx *ctx = priv;
  587. return v4l2_m2m_reqbufs(file, ctx->m2m_ctx, reqbufs);
  588. }
  589. static int vidioc_querybuf(struct file *file, void *priv,
  590. struct v4l2_buffer *buf)
  591. {
  592. struct deinterlace_ctx *ctx = priv;
  593. return v4l2_m2m_querybuf(file, ctx->m2m_ctx, buf);
  594. }
  595. static int vidioc_qbuf(struct file *file, void *priv, struct v4l2_buffer *buf)
  596. {
  597. struct deinterlace_ctx *ctx = priv;
  598. return v4l2_m2m_qbuf(file, ctx->m2m_ctx, buf);
  599. }
  600. static int vidioc_dqbuf(struct file *file, void *priv, struct v4l2_buffer *buf)
  601. {
  602. struct deinterlace_ctx *ctx = priv;
  603. return v4l2_m2m_dqbuf(file, ctx->m2m_ctx, buf);
  604. }
  605. static int vidioc_streamon(struct file *file, void *priv,
  606. enum v4l2_buf_type type)
  607. {
  608. struct deinterlace_q_data *s_q_data, *d_q_data;
  609. struct deinterlace_ctx *ctx = priv;
  610. s_q_data = get_q_data(V4L2_BUF_TYPE_VIDEO_OUTPUT);
  611. d_q_data = get_q_data(V4L2_BUF_TYPE_VIDEO_CAPTURE);
  612. /* Check that src and dst queues have the same pix format */
  613. if (s_q_data->fmt->fourcc != d_q_data->fmt->fourcc) {
  614. v4l2_err(&ctx->dev->v4l2_dev,
  615. "src and dst formats don't match.\n");
  616. return -EINVAL;
  617. }
  618. /* Check that input and output deinterlacing types are compatible */
  619. switch (s_q_data->field) {
  620. case V4L2_FIELD_SEQ_BT:
  621. if (d_q_data->field != V4L2_FIELD_NONE &&
  622. d_q_data->field != V4L2_FIELD_INTERLACED_BT) {
  623. v4l2_err(&ctx->dev->v4l2_dev,
  624. "src and dst field conversion [(%d)->(%d)] not supported.\n",
  625. s_q_data->field, d_q_data->field);
  626. return -EINVAL;
  627. }
  628. break;
  629. case V4L2_FIELD_SEQ_TB:
  630. if (d_q_data->field != V4L2_FIELD_NONE &&
  631. d_q_data->field != V4L2_FIELD_INTERLACED_TB) {
  632. v4l2_err(&ctx->dev->v4l2_dev,
  633. "src and dst field conversion [(%d)->(%d)] not supported.\n",
  634. s_q_data->field, d_q_data->field);
  635. return -EINVAL;
  636. }
  637. break;
  638. default:
  639. return -EINVAL;
  640. }
  641. return v4l2_m2m_streamon(file, ctx->m2m_ctx, type);
  642. }
  643. static int vidioc_streamoff(struct file *file, void *priv,
  644. enum v4l2_buf_type type)
  645. {
  646. struct deinterlace_ctx *ctx = priv;
  647. return v4l2_m2m_streamoff(file, ctx->m2m_ctx, type);
  648. }
  649. static const struct v4l2_ioctl_ops deinterlace_ioctl_ops = {
  650. .vidioc_querycap = vidioc_querycap,
  651. .vidioc_enum_fmt_vid_cap = vidioc_enum_fmt_vid_cap,
  652. .vidioc_g_fmt_vid_cap = vidioc_g_fmt_vid_cap,
  653. .vidioc_try_fmt_vid_cap = vidioc_try_fmt_vid_cap,
  654. .vidioc_s_fmt_vid_cap = vidioc_s_fmt_vid_cap,
  655. .vidioc_enum_fmt_vid_out = vidioc_enum_fmt_vid_out,
  656. .vidioc_g_fmt_vid_out = vidioc_g_fmt_vid_out,
  657. .vidioc_try_fmt_vid_out = vidioc_try_fmt_vid_out,
  658. .vidioc_s_fmt_vid_out = vidioc_s_fmt_vid_out,
  659. .vidioc_reqbufs = vidioc_reqbufs,
  660. .vidioc_querybuf = vidioc_querybuf,
  661. .vidioc_qbuf = vidioc_qbuf,
  662. .vidioc_dqbuf = vidioc_dqbuf,
  663. .vidioc_streamon = vidioc_streamon,
  664. .vidioc_streamoff = vidioc_streamoff,
  665. };
  666. /*
  667. * Queue operations
  668. */
  669. struct vb2_dc_conf {
  670. struct device *dev;
  671. };
  672. static int deinterlace_queue_setup(struct vb2_queue *vq,
  673. const struct v4l2_format *fmt,
  674. unsigned int *nbuffers, unsigned int *nplanes,
  675. unsigned int sizes[], void *alloc_ctxs[])
  676. {
  677. struct deinterlace_ctx *ctx = vb2_get_drv_priv(vq);
  678. struct deinterlace_q_data *q_data;
  679. unsigned int size, count = *nbuffers;
  680. q_data = get_q_data(vq->type);
  681. switch (q_data->fmt->fourcc) {
  682. case V4L2_PIX_FMT_YUV420:
  683. size = q_data->width * q_data->height * 3 / 2;
  684. break;
  685. case V4L2_PIX_FMT_YUYV:
  686. default:
  687. size = q_data->width * q_data->height * 2;
  688. }
  689. *nplanes = 1;
  690. *nbuffers = count;
  691. sizes[0] = size;
  692. alloc_ctxs[0] = ctx->dev->alloc_ctx;
  693. dprintk(ctx->dev, "get %d buffer(s) of size %d each.\n", count, size);
  694. return 0;
  695. }
  696. static int deinterlace_buf_prepare(struct vb2_buffer *vb)
  697. {
  698. struct deinterlace_ctx *ctx = vb2_get_drv_priv(vb->vb2_queue);
  699. struct deinterlace_q_data *q_data;
  700. dprintk(ctx->dev, "type: %d\n", vb->vb2_queue->type);
  701. q_data = get_q_data(vb->vb2_queue->type);
  702. if (vb2_plane_size(vb, 0) < q_data->sizeimage) {
  703. dprintk(ctx->dev, "%s data will not fit into plane (%lu < %lu)\n",
  704. __func__, vb2_plane_size(vb, 0), (long)q_data->sizeimage);
  705. return -EINVAL;
  706. }
  707. vb2_set_plane_payload(vb, 0, q_data->sizeimage);
  708. return 0;
  709. }
  710. static void deinterlace_buf_queue(struct vb2_buffer *vb)
  711. {
  712. struct deinterlace_ctx *ctx = vb2_get_drv_priv(vb->vb2_queue);
  713. v4l2_m2m_buf_queue(ctx->m2m_ctx, vb);
  714. }
  715. static struct vb2_ops deinterlace_qops = {
  716. .queue_setup = deinterlace_queue_setup,
  717. .buf_prepare = deinterlace_buf_prepare,
  718. .buf_queue = deinterlace_buf_queue,
  719. };
  720. static int queue_init(void *priv, struct vb2_queue *src_vq,
  721. struct vb2_queue *dst_vq)
  722. {
  723. struct deinterlace_ctx *ctx = priv;
  724. int ret;
  725. src_vq->type = V4L2_BUF_TYPE_VIDEO_OUTPUT;
  726. src_vq->io_modes = VB2_MMAP | VB2_USERPTR;
  727. src_vq->drv_priv = ctx;
  728. src_vq->buf_struct_size = sizeof(struct v4l2_m2m_buffer);
  729. src_vq->ops = &deinterlace_qops;
  730. src_vq->mem_ops = &vb2_dma_contig_memops;
  731. q_data[V4L2_M2M_SRC].fmt = &formats[0];
  732. q_data[V4L2_M2M_SRC].width = 640;
  733. q_data[V4L2_M2M_SRC].height = 480;
  734. q_data[V4L2_M2M_SRC].sizeimage = (640 * 480 * 3) / 2;
  735. q_data[V4L2_M2M_SRC].field = V4L2_FIELD_SEQ_TB;
  736. ret = vb2_queue_init(src_vq);
  737. if (ret)
  738. return ret;
  739. dst_vq->type = V4L2_BUF_TYPE_VIDEO_CAPTURE;
  740. dst_vq->io_modes = VB2_MMAP | VB2_USERPTR;
  741. dst_vq->drv_priv = ctx;
  742. dst_vq->buf_struct_size = sizeof(struct v4l2_m2m_buffer);
  743. dst_vq->ops = &deinterlace_qops;
  744. dst_vq->mem_ops = &vb2_dma_contig_memops;
  745. q_data[V4L2_M2M_DST].fmt = &formats[0];
  746. q_data[V4L2_M2M_DST].width = 640;
  747. q_data[V4L2_M2M_DST].height = 480;
  748. q_data[V4L2_M2M_DST].sizeimage = (640 * 480 * 3) / 2;
  749. q_data[V4L2_M2M_SRC].field = V4L2_FIELD_INTERLACED_TB;
  750. return vb2_queue_init(dst_vq);
  751. }
  752. /*
  753. * File operations
  754. */
  755. static int deinterlace_open(struct file *file)
  756. {
  757. struct deinterlace_dev *pcdev = video_drvdata(file);
  758. struct deinterlace_ctx *ctx = NULL;
  759. ctx = kzalloc(sizeof *ctx, GFP_KERNEL);
  760. if (!ctx)
  761. return -ENOMEM;
  762. file->private_data = ctx;
  763. ctx->dev = pcdev;
  764. ctx->m2m_ctx = v4l2_m2m_ctx_init(pcdev->m2m_dev, ctx, &queue_init);
  765. if (IS_ERR(ctx->m2m_ctx)) {
  766. int ret = PTR_ERR(ctx->m2m_ctx);
  767. kfree(ctx);
  768. return ret;
  769. }
  770. ctx->xt = kzalloc(sizeof(struct dma_async_tx_descriptor) +
  771. sizeof(struct data_chunk), GFP_KERNEL);
  772. if (!ctx->xt) {
  773. int ret = PTR_ERR(ctx->xt);
  774. kfree(ctx);
  775. return ret;
  776. }
  777. ctx->colorspace = V4L2_COLORSPACE_REC709;
  778. dprintk(pcdev, "Created instance %p, m2m_ctx: %p\n", ctx, ctx->m2m_ctx);
  779. return 0;
  780. }
  781. static int deinterlace_release(struct file *file)
  782. {
  783. struct deinterlace_dev *pcdev = video_drvdata(file);
  784. struct deinterlace_ctx *ctx = file->private_data;
  785. dprintk(pcdev, "Releasing instance %p\n", ctx);
  786. v4l2_m2m_ctx_release(ctx->m2m_ctx);
  787. kfree(ctx->xt);
  788. kfree(ctx);
  789. return 0;
  790. }
  791. static unsigned int deinterlace_poll(struct file *file,
  792. struct poll_table_struct *wait)
  793. {
  794. struct deinterlace_ctx *ctx = file->private_data;
  795. int ret;
  796. deinterlace_lock(ctx);
  797. ret = v4l2_m2m_poll(file, ctx->m2m_ctx, wait);
  798. deinterlace_unlock(ctx);
  799. return ret;
  800. }
  801. static int deinterlace_mmap(struct file *file, struct vm_area_struct *vma)
  802. {
  803. struct deinterlace_ctx *ctx = file->private_data;
  804. return v4l2_m2m_mmap(file, ctx->m2m_ctx, vma);
  805. }
  806. static const struct v4l2_file_operations deinterlace_fops = {
  807. .owner = THIS_MODULE,
  808. .open = deinterlace_open,
  809. .release = deinterlace_release,
  810. .poll = deinterlace_poll,
  811. .unlocked_ioctl = video_ioctl2,
  812. .mmap = deinterlace_mmap,
  813. };
  814. static struct video_device deinterlace_videodev = {
  815. .name = MEM2MEM_NAME,
  816. .fops = &deinterlace_fops,
  817. .ioctl_ops = &deinterlace_ioctl_ops,
  818. .minor = -1,
  819. .release = video_device_release,
  820. .vfl_dir = VFL_DIR_M2M,
  821. };
  822. static struct v4l2_m2m_ops m2m_ops = {
  823. .device_run = deinterlace_device_run,
  824. .job_ready = deinterlace_job_ready,
  825. .job_abort = deinterlace_job_abort,
  826. .lock = deinterlace_lock,
  827. .unlock = deinterlace_unlock,
  828. };
  829. static int deinterlace_probe(struct platform_device *pdev)
  830. {
  831. struct deinterlace_dev *pcdev;
  832. struct video_device *vfd;
  833. dma_cap_mask_t mask;
  834. int ret = 0;
  835. pcdev = kzalloc(sizeof *pcdev, GFP_KERNEL);
  836. if (!pcdev)
  837. return -ENOMEM;
  838. spin_lock_init(&pcdev->irqlock);
  839. dma_cap_zero(mask);
  840. dma_cap_set(DMA_INTERLEAVE, mask);
  841. pcdev->dma_chan = dma_request_channel(mask, NULL, pcdev);
  842. if (!pcdev->dma_chan)
  843. goto free_dev;
  844. if (!dma_has_cap(DMA_INTERLEAVE, pcdev->dma_chan->device->cap_mask)) {
  845. v4l2_err(&pcdev->v4l2_dev, "DMA does not support INTERLEAVE\n");
  846. goto rel_dma;
  847. }
  848. ret = v4l2_device_register(&pdev->dev, &pcdev->v4l2_dev);
  849. if (ret)
  850. goto rel_dma;
  851. atomic_set(&pcdev->busy, 0);
  852. mutex_init(&pcdev->dev_mutex);
  853. vfd = video_device_alloc();
  854. if (!vfd) {
  855. v4l2_err(&pcdev->v4l2_dev, "Failed to allocate video device\n");
  856. ret = -ENOMEM;
  857. goto unreg_dev;
  858. }
  859. *vfd = deinterlace_videodev;
  860. vfd->lock = &pcdev->dev_mutex;
  861. ret = video_register_device(vfd, VFL_TYPE_GRABBER, 0);
  862. if (ret) {
  863. v4l2_err(&pcdev->v4l2_dev, "Failed to register video device\n");
  864. goto rel_vdev;
  865. }
  866. video_set_drvdata(vfd, pcdev);
  867. snprintf(vfd->name, sizeof(vfd->name), "%s", deinterlace_videodev.name);
  868. pcdev->vfd = vfd;
  869. v4l2_info(&pcdev->v4l2_dev, MEM2MEM_TEST_MODULE_NAME
  870. " Device registered as /dev/video%d\n", vfd->num);
  871. platform_set_drvdata(pdev, pcdev);
  872. pcdev->alloc_ctx = vb2_dma_contig_init_ctx(&pdev->dev);
  873. if (IS_ERR(pcdev->alloc_ctx)) {
  874. v4l2_err(&pcdev->v4l2_dev, "Failed to alloc vb2 context\n");
  875. ret = PTR_ERR(pcdev->alloc_ctx);
  876. goto err_ctx;
  877. }
  878. pcdev->m2m_dev = v4l2_m2m_init(&m2m_ops);
  879. if (IS_ERR(pcdev->m2m_dev)) {
  880. v4l2_err(&pcdev->v4l2_dev, "Failed to init mem2mem device\n");
  881. ret = PTR_ERR(pcdev->m2m_dev);
  882. goto err_m2m;
  883. }
  884. return 0;
  885. v4l2_m2m_release(pcdev->m2m_dev);
  886. err_m2m:
  887. video_unregister_device(pcdev->vfd);
  888. err_ctx:
  889. vb2_dma_contig_cleanup_ctx(pcdev->alloc_ctx);
  890. rel_vdev:
  891. video_device_release(vfd);
  892. unreg_dev:
  893. v4l2_device_unregister(&pcdev->v4l2_dev);
  894. rel_dma:
  895. dma_release_channel(pcdev->dma_chan);
  896. free_dev:
  897. kfree(pcdev);
  898. return ret;
  899. }
  900. static int deinterlace_remove(struct platform_device *pdev)
  901. {
  902. struct deinterlace_dev *pcdev =
  903. (struct deinterlace_dev *)platform_get_drvdata(pdev);
  904. v4l2_info(&pcdev->v4l2_dev, "Removing " MEM2MEM_TEST_MODULE_NAME);
  905. v4l2_m2m_release(pcdev->m2m_dev);
  906. video_unregister_device(pcdev->vfd);
  907. v4l2_device_unregister(&pcdev->v4l2_dev);
  908. vb2_dma_contig_cleanup_ctx(pcdev->alloc_ctx);
  909. dma_release_channel(pcdev->dma_chan);
  910. kfree(pcdev);
  911. return 0;
  912. }
  913. static struct platform_driver deinterlace_pdrv = {
  914. .probe = deinterlace_probe,
  915. .remove = deinterlace_remove,
  916. .driver = {
  917. .name = MEM2MEM_NAME,
  918. .owner = THIS_MODULE,
  919. },
  920. };
  921. module_platform_driver(deinterlace_pdrv);