sti_tvout.c 25 KB

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  1. /*
  2. * Copyright (C) STMicroelectronics SA 2014
  3. * Authors: Benjamin Gaignard <benjamin.gaignard@st.com>
  4. * Vincent Abriou <vincent.abriou@st.com>
  5. * for STMicroelectronics.
  6. * License terms: GNU General Public License (GPL), version 2
  7. */
  8. #include <linux/clk.h>
  9. #include <linux/component.h>
  10. #include <linux/module.h>
  11. #include <linux/of_platform.h>
  12. #include <linux/platform_device.h>
  13. #include <linux/reset.h>
  14. #include <linux/seq_file.h>
  15. #include <drm/drmP.h>
  16. #include <drm/drm_crtc_helper.h>
  17. #include "sti_crtc.h"
  18. #include "sti_vtg.h"
  19. /* glue registers */
  20. #define TVO_CSC_MAIN_M0 0x000
  21. #define TVO_CSC_MAIN_M1 0x004
  22. #define TVO_CSC_MAIN_M2 0x008
  23. #define TVO_CSC_MAIN_M3 0x00c
  24. #define TVO_CSC_MAIN_M4 0x010
  25. #define TVO_CSC_MAIN_M5 0x014
  26. #define TVO_CSC_MAIN_M6 0x018
  27. #define TVO_CSC_MAIN_M7 0x01c
  28. #define TVO_MAIN_IN_VID_FORMAT 0x030
  29. #define TVO_CSC_AUX_M0 0x100
  30. #define TVO_CSC_AUX_M1 0x104
  31. #define TVO_CSC_AUX_M2 0x108
  32. #define TVO_CSC_AUX_M3 0x10c
  33. #define TVO_CSC_AUX_M4 0x110
  34. #define TVO_CSC_AUX_M5 0x114
  35. #define TVO_CSC_AUX_M6 0x118
  36. #define TVO_CSC_AUX_M7 0x11c
  37. #define TVO_AUX_IN_VID_FORMAT 0x130
  38. #define TVO_VIP_HDF 0x400
  39. #define TVO_HD_SYNC_SEL 0x418
  40. #define TVO_HD_DAC_CFG_OFF 0x420
  41. #define TVO_VIP_HDMI 0x500
  42. #define TVO_HDMI_FORCE_COLOR_0 0x504
  43. #define TVO_HDMI_FORCE_COLOR_1 0x508
  44. #define TVO_HDMI_CLIP_VALUE_B_CB 0x50c
  45. #define TVO_HDMI_CLIP_VALUE_Y_G 0x510
  46. #define TVO_HDMI_CLIP_VALUE_R_CR 0x514
  47. #define TVO_HDMI_SYNC_SEL 0x518
  48. #define TVO_HDMI_DFV_OBS 0x540
  49. #define TVO_VIP_DVO 0x600
  50. #define TVO_DVO_SYNC_SEL 0x618
  51. #define TVO_DVO_CONFIG 0x620
  52. #define TVO_IN_FMT_SIGNED BIT(0)
  53. #define TVO_SYNC_EXT BIT(4)
  54. #define TVO_VIP_REORDER_R_SHIFT 24
  55. #define TVO_VIP_REORDER_G_SHIFT 20
  56. #define TVO_VIP_REORDER_B_SHIFT 16
  57. #define TVO_VIP_REORDER_MASK 0x3
  58. #define TVO_VIP_REORDER_Y_G_SEL 0
  59. #define TVO_VIP_REORDER_CB_B_SEL 1
  60. #define TVO_VIP_REORDER_CR_R_SEL 2
  61. #define TVO_VIP_CLIP_SHIFT 8
  62. #define TVO_VIP_CLIP_MASK 0x7
  63. #define TVO_VIP_CLIP_DISABLED 0
  64. #define TVO_VIP_CLIP_EAV_SAV 1
  65. #define TVO_VIP_CLIP_LIMITED_RANGE_RGB_Y 2
  66. #define TVO_VIP_CLIP_LIMITED_RANGE_CB_CR 3
  67. #define TVO_VIP_CLIP_PROG_RANGE 4
  68. #define TVO_VIP_RND_SHIFT 4
  69. #define TVO_VIP_RND_MASK 0x3
  70. #define TVO_VIP_RND_8BIT_ROUNDED 0
  71. #define TVO_VIP_RND_10BIT_ROUNDED 1
  72. #define TVO_VIP_RND_12BIT_ROUNDED 2
  73. #define TVO_VIP_SEL_INPUT_MASK 0xf
  74. #define TVO_VIP_SEL_INPUT_MAIN 0x0
  75. #define TVO_VIP_SEL_INPUT_AUX 0x8
  76. #define TVO_VIP_SEL_INPUT_FORCE_COLOR 0xf
  77. #define TVO_VIP_SEL_INPUT_BYPASS_MASK 0x1
  78. #define TVO_VIP_SEL_INPUT_BYPASSED 1
  79. #define TVO_SYNC_MAIN_VTG_SET_REF 0x00
  80. #define TVO_SYNC_AUX_VTG_SET_REF 0x10
  81. #define TVO_SYNC_HD_DCS_SHIFT 8
  82. #define TVO_SYNC_DVO_PAD_HSYNC_SHIFT 8
  83. #define TVO_SYNC_DVO_PAD_VSYNC_SHIFT 16
  84. #define ENCODER_CRTC_MASK (BIT(0) | BIT(1))
  85. #define TVO_MIN_HD_HEIGHT 720
  86. /* enum listing the supported output data format */
  87. enum sti_tvout_video_out_type {
  88. STI_TVOUT_VIDEO_OUT_RGB,
  89. STI_TVOUT_VIDEO_OUT_YUV,
  90. };
  91. struct sti_tvout {
  92. struct device *dev;
  93. struct drm_device *drm_dev;
  94. void __iomem *regs;
  95. struct reset_control *reset;
  96. struct drm_encoder *hdmi;
  97. struct drm_encoder *hda;
  98. struct drm_encoder *dvo;
  99. };
  100. struct sti_tvout_encoder {
  101. struct drm_encoder encoder;
  102. struct sti_tvout *tvout;
  103. };
  104. #define to_sti_tvout_encoder(x) \
  105. container_of(x, struct sti_tvout_encoder, encoder)
  106. #define to_sti_tvout(x) to_sti_tvout_encoder(x)->tvout
  107. /* preformatter conversion matrix */
  108. static const u32 rgb_to_ycbcr_601[8] = {
  109. 0xF927082E, 0x04C9FEAB, 0x01D30964, 0xFA95FD3D,
  110. 0x0000082E, 0x00002000, 0x00002000, 0x00000000
  111. };
  112. /* 709 RGB to YCbCr */
  113. static const u32 rgb_to_ycbcr_709[8] = {
  114. 0xF891082F, 0x0367FF40, 0x01280B71, 0xF9B1FE20,
  115. 0x0000082F, 0x00002000, 0x00002000, 0x00000000
  116. };
  117. static u32 tvout_read(struct sti_tvout *tvout, int offset)
  118. {
  119. return readl(tvout->regs + offset);
  120. }
  121. static void tvout_write(struct sti_tvout *tvout, u32 val, int offset)
  122. {
  123. writel(val, tvout->regs + offset);
  124. }
  125. /**
  126. * Set the clipping mode of a VIP
  127. *
  128. * @tvout: tvout structure
  129. * @reg: register to set
  130. * @cr_r:
  131. * @y_g:
  132. * @cb_b:
  133. */
  134. static void tvout_vip_set_color_order(struct sti_tvout *tvout, int reg,
  135. u32 cr_r, u32 y_g, u32 cb_b)
  136. {
  137. u32 val = tvout_read(tvout, reg);
  138. val &= ~(TVO_VIP_REORDER_MASK << TVO_VIP_REORDER_R_SHIFT);
  139. val &= ~(TVO_VIP_REORDER_MASK << TVO_VIP_REORDER_G_SHIFT);
  140. val &= ~(TVO_VIP_REORDER_MASK << TVO_VIP_REORDER_B_SHIFT);
  141. val |= cr_r << TVO_VIP_REORDER_R_SHIFT;
  142. val |= y_g << TVO_VIP_REORDER_G_SHIFT;
  143. val |= cb_b << TVO_VIP_REORDER_B_SHIFT;
  144. tvout_write(tvout, val, reg);
  145. }
  146. /**
  147. * Set the clipping mode of a VIP
  148. *
  149. * @tvout: tvout structure
  150. * @reg: register to set
  151. * @range: clipping range
  152. */
  153. static void tvout_vip_set_clip_mode(struct sti_tvout *tvout, int reg, u32 range)
  154. {
  155. u32 val = tvout_read(tvout, reg);
  156. val &= ~(TVO_VIP_CLIP_MASK << TVO_VIP_CLIP_SHIFT);
  157. val |= range << TVO_VIP_CLIP_SHIFT;
  158. tvout_write(tvout, val, reg);
  159. }
  160. /**
  161. * Set the rounded value of a VIP
  162. *
  163. * @tvout: tvout structure
  164. * @reg: register to set
  165. * @rnd: rounded val per component
  166. */
  167. static void tvout_vip_set_rnd(struct sti_tvout *tvout, int reg, u32 rnd)
  168. {
  169. u32 val = tvout_read(tvout, reg);
  170. val &= ~(TVO_VIP_RND_MASK << TVO_VIP_RND_SHIFT);
  171. val |= rnd << TVO_VIP_RND_SHIFT;
  172. tvout_write(tvout, val, reg);
  173. }
  174. /**
  175. * Select the VIP input
  176. *
  177. * @tvout: tvout structure
  178. * @reg: register to set
  179. * @main_path: main or auxiliary path
  180. * @sel_input_logic_inverted: need to invert the logic
  181. * @sel_input: selected_input (main/aux + conv)
  182. */
  183. static void tvout_vip_set_sel_input(struct sti_tvout *tvout,
  184. int reg,
  185. bool main_path,
  186. bool sel_input_logic_inverted,
  187. enum sti_tvout_video_out_type video_out)
  188. {
  189. u32 sel_input;
  190. u32 val = tvout_read(tvout, reg);
  191. if (main_path)
  192. sel_input = TVO_VIP_SEL_INPUT_MAIN;
  193. else
  194. sel_input = TVO_VIP_SEL_INPUT_AUX;
  195. switch (video_out) {
  196. case STI_TVOUT_VIDEO_OUT_RGB:
  197. sel_input |= TVO_VIP_SEL_INPUT_BYPASSED;
  198. break;
  199. case STI_TVOUT_VIDEO_OUT_YUV:
  200. sel_input &= ~TVO_VIP_SEL_INPUT_BYPASSED;
  201. break;
  202. }
  203. /* on stih407 chip the sel_input bypass mode logic is inverted */
  204. if (sel_input_logic_inverted)
  205. sel_input = sel_input ^ TVO_VIP_SEL_INPUT_BYPASS_MASK;
  206. val &= ~TVO_VIP_SEL_INPUT_MASK;
  207. val |= sel_input;
  208. tvout_write(tvout, val, reg);
  209. }
  210. /**
  211. * Select the input video signed or unsigned
  212. *
  213. * @tvout: tvout structure
  214. * @reg: register to set
  215. * @in_vid_signed: used video input format
  216. */
  217. static void tvout_vip_set_in_vid_fmt(struct sti_tvout *tvout,
  218. int reg, u32 in_vid_fmt)
  219. {
  220. u32 val = tvout_read(tvout, reg);
  221. val &= ~TVO_IN_FMT_SIGNED;
  222. val |= in_vid_fmt;
  223. tvout_write(tvout, val, reg);
  224. }
  225. /**
  226. * Set preformatter matrix
  227. *
  228. * @tvout: tvout structure
  229. * @mode: display mode structure
  230. */
  231. static void tvout_preformatter_set_matrix(struct sti_tvout *tvout,
  232. struct drm_display_mode *mode)
  233. {
  234. unsigned int i;
  235. const u32 *pf_matrix;
  236. if (mode->vdisplay >= TVO_MIN_HD_HEIGHT)
  237. pf_matrix = rgb_to_ycbcr_709;
  238. else
  239. pf_matrix = rgb_to_ycbcr_601;
  240. for (i = 0; i < 8; i++) {
  241. tvout_write(tvout, *(pf_matrix + i),
  242. TVO_CSC_MAIN_M0 + (i * 4));
  243. tvout_write(tvout, *(pf_matrix + i),
  244. TVO_CSC_AUX_M0 + (i * 4));
  245. }
  246. }
  247. /**
  248. * Start VIP block for DVO output
  249. *
  250. * @tvout: pointer on tvout structure
  251. * @main_path: true if main path has to be used in the vip configuration
  252. * else aux path is used.
  253. */
  254. static void tvout_dvo_start(struct sti_tvout *tvout, bool main_path)
  255. {
  256. struct device_node *node = tvout->dev->of_node;
  257. bool sel_input_logic_inverted = false;
  258. u32 tvo_in_vid_format;
  259. int val, tmp;
  260. dev_dbg(tvout->dev, "%s\n", __func__);
  261. if (main_path) {
  262. DRM_DEBUG_DRIVER("main vip for DVO\n");
  263. /* Select the input sync for dvo */
  264. tmp = TVO_SYNC_MAIN_VTG_SET_REF | VTG_SYNC_ID_DVO;
  265. val = tmp << TVO_SYNC_DVO_PAD_VSYNC_SHIFT;
  266. val |= tmp << TVO_SYNC_DVO_PAD_HSYNC_SHIFT;
  267. val |= tmp;
  268. tvout_write(tvout, val, TVO_DVO_SYNC_SEL);
  269. tvo_in_vid_format = TVO_MAIN_IN_VID_FORMAT;
  270. } else {
  271. DRM_DEBUG_DRIVER("aux vip for DVO\n");
  272. /* Select the input sync for dvo */
  273. tmp = TVO_SYNC_AUX_VTG_SET_REF | VTG_SYNC_ID_DVO;
  274. val = tmp << TVO_SYNC_DVO_PAD_VSYNC_SHIFT;
  275. val |= tmp << TVO_SYNC_DVO_PAD_HSYNC_SHIFT;
  276. val |= tmp;
  277. tvout_write(tvout, val, TVO_DVO_SYNC_SEL);
  278. tvo_in_vid_format = TVO_AUX_IN_VID_FORMAT;
  279. }
  280. /* Set color channel order */
  281. tvout_vip_set_color_order(tvout, TVO_VIP_DVO,
  282. TVO_VIP_REORDER_CR_R_SEL,
  283. TVO_VIP_REORDER_Y_G_SEL,
  284. TVO_VIP_REORDER_CB_B_SEL);
  285. /* Set clipping mode */
  286. tvout_vip_set_clip_mode(tvout, TVO_VIP_DVO, TVO_VIP_CLIP_DISABLED);
  287. /* Set round mode (rounded to 8-bit per component) */
  288. tvout_vip_set_rnd(tvout, TVO_VIP_DVO, TVO_VIP_RND_8BIT_ROUNDED);
  289. if (of_device_is_compatible(node, "st,stih407-tvout")) {
  290. /* Set input video format */
  291. tvout_vip_set_in_vid_fmt(tvout, tvo_in_vid_format,
  292. TVO_IN_FMT_SIGNED);
  293. sel_input_logic_inverted = true;
  294. }
  295. /* Input selection */
  296. tvout_vip_set_sel_input(tvout, TVO_VIP_DVO, main_path,
  297. sel_input_logic_inverted,
  298. STI_TVOUT_VIDEO_OUT_RGB);
  299. }
  300. /**
  301. * Start VIP block for HDMI output
  302. *
  303. * @tvout: pointer on tvout structure
  304. * @main_path: true if main path has to be used in the vip configuration
  305. * else aux path is used.
  306. */
  307. static void tvout_hdmi_start(struct sti_tvout *tvout, bool main_path)
  308. {
  309. struct device_node *node = tvout->dev->of_node;
  310. bool sel_input_logic_inverted = false;
  311. u32 tvo_in_vid_format;
  312. dev_dbg(tvout->dev, "%s\n", __func__);
  313. if (main_path) {
  314. DRM_DEBUG_DRIVER("main vip for hdmi\n");
  315. /* select the input sync for hdmi */
  316. tvout_write(tvout,
  317. TVO_SYNC_MAIN_VTG_SET_REF | VTG_SYNC_ID_HDMI,
  318. TVO_HDMI_SYNC_SEL);
  319. tvo_in_vid_format = TVO_MAIN_IN_VID_FORMAT;
  320. } else {
  321. DRM_DEBUG_DRIVER("aux vip for hdmi\n");
  322. /* select the input sync for hdmi */
  323. tvout_write(tvout,
  324. TVO_SYNC_AUX_VTG_SET_REF | VTG_SYNC_ID_HDMI,
  325. TVO_HDMI_SYNC_SEL);
  326. tvo_in_vid_format = TVO_AUX_IN_VID_FORMAT;
  327. }
  328. /* set color channel order */
  329. tvout_vip_set_color_order(tvout, TVO_VIP_HDMI,
  330. TVO_VIP_REORDER_CR_R_SEL,
  331. TVO_VIP_REORDER_Y_G_SEL,
  332. TVO_VIP_REORDER_CB_B_SEL);
  333. /* set clipping mode */
  334. tvout_vip_set_clip_mode(tvout, TVO_VIP_HDMI, TVO_VIP_CLIP_DISABLED);
  335. /* set round mode (rounded to 8-bit per component) */
  336. tvout_vip_set_rnd(tvout, TVO_VIP_HDMI, TVO_VIP_RND_8BIT_ROUNDED);
  337. if (of_device_is_compatible(node, "st,stih407-tvout")) {
  338. /* set input video format */
  339. tvout_vip_set_in_vid_fmt(tvout, tvo_in_vid_format,
  340. TVO_IN_FMT_SIGNED);
  341. sel_input_logic_inverted = true;
  342. }
  343. /* input selection */
  344. tvout_vip_set_sel_input(tvout, TVO_VIP_HDMI, main_path,
  345. sel_input_logic_inverted, STI_TVOUT_VIDEO_OUT_RGB);
  346. }
  347. /**
  348. * Start HDF VIP and HD DAC
  349. *
  350. * @tvout: pointer on tvout structure
  351. * @main_path: true if main path has to be used in the vip configuration
  352. * else aux path is used.
  353. */
  354. static void tvout_hda_start(struct sti_tvout *tvout, bool main_path)
  355. {
  356. struct device_node *node = tvout->dev->of_node;
  357. bool sel_input_logic_inverted = false;
  358. u32 tvo_in_vid_format;
  359. int val;
  360. dev_dbg(tvout->dev, "%s\n", __func__);
  361. if (main_path) {
  362. DRM_DEBUG_DRIVER("main vip for HDF\n");
  363. /* Select the input sync for HD analog and HD DCS */
  364. val = TVO_SYNC_MAIN_VTG_SET_REF | VTG_SYNC_ID_HDDCS;
  365. val = val << TVO_SYNC_HD_DCS_SHIFT;
  366. val |= TVO_SYNC_MAIN_VTG_SET_REF | VTG_SYNC_ID_HDF;
  367. tvout_write(tvout, val, TVO_HD_SYNC_SEL);
  368. tvo_in_vid_format = TVO_MAIN_IN_VID_FORMAT;
  369. } else {
  370. DRM_DEBUG_DRIVER("aux vip for HDF\n");
  371. /* Select the input sync for HD analog and HD DCS */
  372. val = TVO_SYNC_AUX_VTG_SET_REF | VTG_SYNC_ID_HDDCS;
  373. val = val << TVO_SYNC_HD_DCS_SHIFT;
  374. val |= TVO_SYNC_AUX_VTG_SET_REF | VTG_SYNC_ID_HDF;
  375. tvout_write(tvout, val, TVO_HD_SYNC_SEL);
  376. tvo_in_vid_format = TVO_AUX_IN_VID_FORMAT;
  377. }
  378. /* set color channel order */
  379. tvout_vip_set_color_order(tvout, TVO_VIP_HDF,
  380. TVO_VIP_REORDER_CR_R_SEL,
  381. TVO_VIP_REORDER_Y_G_SEL,
  382. TVO_VIP_REORDER_CB_B_SEL);
  383. /* set clipping mode */
  384. tvout_vip_set_clip_mode(tvout, TVO_VIP_HDF, TVO_VIP_CLIP_DISABLED);
  385. /* set round mode (rounded to 10-bit per component) */
  386. tvout_vip_set_rnd(tvout, TVO_VIP_HDF, TVO_VIP_RND_10BIT_ROUNDED);
  387. if (of_device_is_compatible(node, "st,stih407-tvout")) {
  388. /* set input video format */
  389. tvout_vip_set_in_vid_fmt(tvout,
  390. tvo_in_vid_format, TVO_IN_FMT_SIGNED);
  391. sel_input_logic_inverted = true;
  392. }
  393. /* Input selection */
  394. tvout_vip_set_sel_input(tvout, TVO_VIP_HDF, main_path,
  395. sel_input_logic_inverted,
  396. STI_TVOUT_VIDEO_OUT_YUV);
  397. /* power up HD DAC */
  398. tvout_write(tvout, 0, TVO_HD_DAC_CFG_OFF);
  399. }
  400. #define DBGFS_DUMP(reg) seq_printf(s, "\n %-25s 0x%08X", #reg, \
  401. readl(tvout->regs + reg))
  402. static void tvout_dbg_vip(struct seq_file *s, int val)
  403. {
  404. int r, g, b, tmp, mask;
  405. char *const reorder[] = {"Y_G", "Cb_B", "Cr_R"};
  406. char *const clipping[] = {"No", "EAV/SAV", "Limited range RGB/Y",
  407. "Limited range Cb/Cr", "decided by register"};
  408. char *const round[] = {"8-bit", "10-bit", "12-bit"};
  409. char *const input_sel[] = {"Main (color matrix enabled)",
  410. "Main (color matrix by-passed)",
  411. "", "", "", "", "", "",
  412. "Aux (color matrix enabled)",
  413. "Aux (color matrix by-passed)",
  414. "", "", "", "", "", "Force value"};
  415. seq_puts(s, "\t");
  416. mask = TVO_VIP_REORDER_MASK << TVO_VIP_REORDER_R_SHIFT;
  417. r = (val & mask) >> TVO_VIP_REORDER_R_SHIFT;
  418. mask = TVO_VIP_REORDER_MASK << TVO_VIP_REORDER_G_SHIFT;
  419. g = (val & mask) >> TVO_VIP_REORDER_G_SHIFT;
  420. mask = TVO_VIP_REORDER_MASK << TVO_VIP_REORDER_B_SHIFT;
  421. b = (val & mask) >> TVO_VIP_REORDER_B_SHIFT;
  422. seq_printf(s, "%-24s %s->%s %s->%s %s->%s\n", "Reorder:",
  423. reorder[r], reorder[TVO_VIP_REORDER_CR_R_SEL],
  424. reorder[g], reorder[TVO_VIP_REORDER_Y_G_SEL],
  425. reorder[b], reorder[TVO_VIP_REORDER_CB_B_SEL]);
  426. seq_puts(s, "\t\t\t\t\t");
  427. mask = TVO_VIP_CLIP_MASK << TVO_VIP_CLIP_SHIFT;
  428. tmp = (val & mask) >> TVO_VIP_CLIP_SHIFT;
  429. seq_printf(s, "%-24s %s\n", "Clipping:", clipping[tmp]);
  430. seq_puts(s, "\t\t\t\t\t");
  431. mask = TVO_VIP_RND_MASK << TVO_VIP_RND_SHIFT;
  432. tmp = (val & mask) >> TVO_VIP_RND_SHIFT;
  433. seq_printf(s, "%-24s input data rounded to %s per component\n",
  434. "Round:", round[tmp]);
  435. seq_puts(s, "\t\t\t\t\t");
  436. tmp = (val & TVO_VIP_SEL_INPUT_MASK);
  437. seq_printf(s, "%-24s %s", "Input selection:", input_sel[tmp]);
  438. }
  439. static void tvout_dbg_hd_dac_cfg(struct seq_file *s, int val)
  440. {
  441. seq_printf(s, "\t%-24s %s", "HD DAC:",
  442. val & 1 ? "disabled" : "enabled");
  443. }
  444. static int tvout_dbg_show(struct seq_file *s, void *data)
  445. {
  446. struct drm_info_node *node = s->private;
  447. struct sti_tvout *tvout = (struct sti_tvout *)node->info_ent->data;
  448. struct drm_device *dev = node->minor->dev;
  449. struct drm_crtc *crtc;
  450. int ret;
  451. ret = mutex_lock_interruptible(&dev->struct_mutex);
  452. if (ret)
  453. return ret;
  454. seq_printf(s, "TVOUT: (vaddr = 0x%p)", tvout->regs);
  455. seq_puts(s, "\n\n HDMI encoder: ");
  456. crtc = tvout->hdmi->crtc;
  457. if (crtc) {
  458. seq_printf(s, "connected to %s path",
  459. sti_crtc_is_main(crtc) ? "main" : "aux");
  460. DBGFS_DUMP(TVO_HDMI_SYNC_SEL);
  461. DBGFS_DUMP(TVO_VIP_HDMI);
  462. tvout_dbg_vip(s, readl(tvout->regs + TVO_VIP_HDMI));
  463. } else {
  464. seq_puts(s, "disabled");
  465. }
  466. seq_puts(s, "\n\n DVO encoder: ");
  467. crtc = tvout->dvo->crtc;
  468. if (crtc) {
  469. seq_printf(s, "connected to %s path",
  470. sti_crtc_is_main(crtc) ? "main" : "aux");
  471. DBGFS_DUMP(TVO_DVO_SYNC_SEL);
  472. DBGFS_DUMP(TVO_DVO_CONFIG);
  473. DBGFS_DUMP(TVO_VIP_DVO);
  474. tvout_dbg_vip(s, readl(tvout->regs + TVO_VIP_DVO));
  475. } else {
  476. seq_puts(s, "disabled");
  477. }
  478. seq_puts(s, "\n\n HDA encoder: ");
  479. crtc = tvout->hda->crtc;
  480. if (crtc) {
  481. seq_printf(s, "connected to %s path",
  482. sti_crtc_is_main(crtc) ? "main" : "aux");
  483. DBGFS_DUMP(TVO_HD_SYNC_SEL);
  484. DBGFS_DUMP(TVO_HD_DAC_CFG_OFF);
  485. tvout_dbg_hd_dac_cfg(s,
  486. readl(tvout->regs + TVO_HD_DAC_CFG_OFF));
  487. DBGFS_DUMP(TVO_VIP_HDF);
  488. tvout_dbg_vip(s, readl(tvout->regs + TVO_VIP_HDF));
  489. } else {
  490. seq_puts(s, "disabled");
  491. }
  492. seq_puts(s, "\n\n main path configuration");
  493. DBGFS_DUMP(TVO_CSC_MAIN_M0);
  494. DBGFS_DUMP(TVO_CSC_MAIN_M1);
  495. DBGFS_DUMP(TVO_CSC_MAIN_M2);
  496. DBGFS_DUMP(TVO_CSC_MAIN_M3);
  497. DBGFS_DUMP(TVO_CSC_MAIN_M4);
  498. DBGFS_DUMP(TVO_CSC_MAIN_M5);
  499. DBGFS_DUMP(TVO_CSC_MAIN_M6);
  500. DBGFS_DUMP(TVO_CSC_MAIN_M7);
  501. DBGFS_DUMP(TVO_MAIN_IN_VID_FORMAT);
  502. seq_puts(s, "\n\n auxiliary path configuration");
  503. DBGFS_DUMP(TVO_CSC_AUX_M0);
  504. DBGFS_DUMP(TVO_CSC_AUX_M2);
  505. DBGFS_DUMP(TVO_CSC_AUX_M3);
  506. DBGFS_DUMP(TVO_CSC_AUX_M4);
  507. DBGFS_DUMP(TVO_CSC_AUX_M5);
  508. DBGFS_DUMP(TVO_CSC_AUX_M6);
  509. DBGFS_DUMP(TVO_CSC_AUX_M7);
  510. DBGFS_DUMP(TVO_AUX_IN_VID_FORMAT);
  511. seq_puts(s, "\n");
  512. mutex_unlock(&dev->struct_mutex);
  513. return 0;
  514. }
  515. static struct drm_info_list tvout_debugfs_files[] = {
  516. { "tvout", tvout_dbg_show, 0, NULL },
  517. };
  518. static void tvout_debugfs_exit(struct sti_tvout *tvout, struct drm_minor *minor)
  519. {
  520. drm_debugfs_remove_files(tvout_debugfs_files,
  521. ARRAY_SIZE(tvout_debugfs_files),
  522. minor);
  523. }
  524. static int tvout_debugfs_init(struct sti_tvout *tvout, struct drm_minor *minor)
  525. {
  526. unsigned int i;
  527. for (i = 0; i < ARRAY_SIZE(tvout_debugfs_files); i++)
  528. tvout_debugfs_files[i].data = tvout;
  529. return drm_debugfs_create_files(tvout_debugfs_files,
  530. ARRAY_SIZE(tvout_debugfs_files),
  531. minor->debugfs_root, minor);
  532. }
  533. static void sti_tvout_encoder_dpms(struct drm_encoder *encoder, int mode)
  534. {
  535. }
  536. static void sti_tvout_encoder_mode_set(struct drm_encoder *encoder,
  537. struct drm_display_mode *mode,
  538. struct drm_display_mode *adjusted_mode)
  539. {
  540. }
  541. static void sti_tvout_encoder_destroy(struct drm_encoder *encoder)
  542. {
  543. struct sti_tvout_encoder *sti_encoder = to_sti_tvout_encoder(encoder);
  544. drm_encoder_cleanup(encoder);
  545. kfree(sti_encoder);
  546. }
  547. static const struct drm_encoder_funcs sti_tvout_encoder_funcs = {
  548. .destroy = sti_tvout_encoder_destroy,
  549. };
  550. static void sti_dvo_encoder_enable(struct drm_encoder *encoder)
  551. {
  552. struct sti_tvout *tvout = to_sti_tvout(encoder);
  553. tvout_preformatter_set_matrix(tvout, &encoder->crtc->mode);
  554. tvout_dvo_start(tvout, sti_crtc_is_main(encoder->crtc));
  555. }
  556. static void sti_dvo_encoder_disable(struct drm_encoder *encoder)
  557. {
  558. struct sti_tvout *tvout = to_sti_tvout(encoder);
  559. /* Reset VIP register */
  560. tvout_write(tvout, 0x0, TVO_VIP_DVO);
  561. }
  562. static const struct drm_encoder_helper_funcs sti_dvo_encoder_helper_funcs = {
  563. .dpms = sti_tvout_encoder_dpms,
  564. .mode_set = sti_tvout_encoder_mode_set,
  565. .enable = sti_dvo_encoder_enable,
  566. .disable = sti_dvo_encoder_disable,
  567. };
  568. static struct drm_encoder *
  569. sti_tvout_create_dvo_encoder(struct drm_device *dev,
  570. struct sti_tvout *tvout)
  571. {
  572. struct sti_tvout_encoder *encoder;
  573. struct drm_encoder *drm_encoder;
  574. encoder = devm_kzalloc(tvout->dev, sizeof(*encoder), GFP_KERNEL);
  575. if (!encoder)
  576. return NULL;
  577. encoder->tvout = tvout;
  578. drm_encoder = (struct drm_encoder *)encoder;
  579. drm_encoder->possible_crtcs = ENCODER_CRTC_MASK;
  580. drm_encoder->possible_clones = 1 << 0;
  581. drm_encoder_init(dev, drm_encoder,
  582. &sti_tvout_encoder_funcs, DRM_MODE_ENCODER_LVDS,
  583. NULL);
  584. drm_encoder_helper_add(drm_encoder, &sti_dvo_encoder_helper_funcs);
  585. return drm_encoder;
  586. }
  587. static void sti_hda_encoder_enable(struct drm_encoder *encoder)
  588. {
  589. struct sti_tvout *tvout = to_sti_tvout(encoder);
  590. tvout_preformatter_set_matrix(tvout, &encoder->crtc->mode);
  591. tvout_hda_start(tvout, sti_crtc_is_main(encoder->crtc));
  592. }
  593. static void sti_hda_encoder_disable(struct drm_encoder *encoder)
  594. {
  595. struct sti_tvout *tvout = to_sti_tvout(encoder);
  596. /* reset VIP register */
  597. tvout_write(tvout, 0x0, TVO_VIP_HDF);
  598. /* power down HD DAC */
  599. tvout_write(tvout, 1, TVO_HD_DAC_CFG_OFF);
  600. }
  601. static const struct drm_encoder_helper_funcs sti_hda_encoder_helper_funcs = {
  602. .dpms = sti_tvout_encoder_dpms,
  603. .mode_set = sti_tvout_encoder_mode_set,
  604. .commit = sti_hda_encoder_enable,
  605. .disable = sti_hda_encoder_disable,
  606. };
  607. static struct drm_encoder *sti_tvout_create_hda_encoder(struct drm_device *dev,
  608. struct sti_tvout *tvout)
  609. {
  610. struct sti_tvout_encoder *encoder;
  611. struct drm_encoder *drm_encoder;
  612. encoder = devm_kzalloc(tvout->dev, sizeof(*encoder), GFP_KERNEL);
  613. if (!encoder)
  614. return NULL;
  615. encoder->tvout = tvout;
  616. drm_encoder = (struct drm_encoder *) encoder;
  617. drm_encoder->possible_crtcs = ENCODER_CRTC_MASK;
  618. drm_encoder->possible_clones = 1 << 0;
  619. drm_encoder_init(dev, drm_encoder,
  620. &sti_tvout_encoder_funcs, DRM_MODE_ENCODER_DAC, NULL);
  621. drm_encoder_helper_add(drm_encoder, &sti_hda_encoder_helper_funcs);
  622. return drm_encoder;
  623. }
  624. static void sti_hdmi_encoder_enable(struct drm_encoder *encoder)
  625. {
  626. struct sti_tvout *tvout = to_sti_tvout(encoder);
  627. tvout_preformatter_set_matrix(tvout, &encoder->crtc->mode);
  628. tvout_hdmi_start(tvout, sti_crtc_is_main(encoder->crtc));
  629. }
  630. static void sti_hdmi_encoder_disable(struct drm_encoder *encoder)
  631. {
  632. struct sti_tvout *tvout = to_sti_tvout(encoder);
  633. /* reset VIP register */
  634. tvout_write(tvout, 0x0, TVO_VIP_HDMI);
  635. }
  636. static const struct drm_encoder_helper_funcs sti_hdmi_encoder_helper_funcs = {
  637. .dpms = sti_tvout_encoder_dpms,
  638. .mode_set = sti_tvout_encoder_mode_set,
  639. .commit = sti_hdmi_encoder_enable,
  640. .disable = sti_hdmi_encoder_disable,
  641. };
  642. static struct drm_encoder *sti_tvout_create_hdmi_encoder(struct drm_device *dev,
  643. struct sti_tvout *tvout)
  644. {
  645. struct sti_tvout_encoder *encoder;
  646. struct drm_encoder *drm_encoder;
  647. encoder = devm_kzalloc(tvout->dev, sizeof(*encoder), GFP_KERNEL);
  648. if (!encoder)
  649. return NULL;
  650. encoder->tvout = tvout;
  651. drm_encoder = (struct drm_encoder *) encoder;
  652. drm_encoder->possible_crtcs = ENCODER_CRTC_MASK;
  653. drm_encoder->possible_clones = 1 << 1;
  654. drm_encoder_init(dev, drm_encoder,
  655. &sti_tvout_encoder_funcs, DRM_MODE_ENCODER_TMDS, NULL);
  656. drm_encoder_helper_add(drm_encoder, &sti_hdmi_encoder_helper_funcs);
  657. return drm_encoder;
  658. }
  659. static void sti_tvout_create_encoders(struct drm_device *dev,
  660. struct sti_tvout *tvout)
  661. {
  662. tvout->hdmi = sti_tvout_create_hdmi_encoder(dev, tvout);
  663. tvout->hda = sti_tvout_create_hda_encoder(dev, tvout);
  664. tvout->dvo = sti_tvout_create_dvo_encoder(dev, tvout);
  665. }
  666. static void sti_tvout_destroy_encoders(struct sti_tvout *tvout)
  667. {
  668. if (tvout->hdmi)
  669. drm_encoder_cleanup(tvout->hdmi);
  670. tvout->hdmi = NULL;
  671. if (tvout->hda)
  672. drm_encoder_cleanup(tvout->hda);
  673. tvout->hda = NULL;
  674. if (tvout->dvo)
  675. drm_encoder_cleanup(tvout->dvo);
  676. tvout->dvo = NULL;
  677. }
  678. static int sti_tvout_bind(struct device *dev, struct device *master, void *data)
  679. {
  680. struct sti_tvout *tvout = dev_get_drvdata(dev);
  681. struct drm_device *drm_dev = data;
  682. tvout->drm_dev = drm_dev;
  683. sti_tvout_create_encoders(drm_dev, tvout);
  684. if (tvout_debugfs_init(tvout, drm_dev->primary))
  685. DRM_ERROR("TVOUT debugfs setup failed\n");
  686. return 0;
  687. }
  688. static void sti_tvout_unbind(struct device *dev, struct device *master,
  689. void *data)
  690. {
  691. struct sti_tvout *tvout = dev_get_drvdata(dev);
  692. struct drm_device *drm_dev = data;
  693. sti_tvout_destroy_encoders(tvout);
  694. tvout_debugfs_exit(tvout, drm_dev->primary);
  695. }
  696. static const struct component_ops sti_tvout_ops = {
  697. .bind = sti_tvout_bind,
  698. .unbind = sti_tvout_unbind,
  699. };
  700. static int sti_tvout_probe(struct platform_device *pdev)
  701. {
  702. struct device *dev = &pdev->dev;
  703. struct device_node *node = dev->of_node;
  704. struct sti_tvout *tvout;
  705. struct resource *res;
  706. DRM_INFO("%s\n", __func__);
  707. if (!node)
  708. return -ENODEV;
  709. tvout = devm_kzalloc(dev, sizeof(*tvout), GFP_KERNEL);
  710. if (!tvout)
  711. return -ENOMEM;
  712. tvout->dev = dev;
  713. /* get Memory ressources */
  714. res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "tvout-reg");
  715. if (!res) {
  716. DRM_ERROR("Invalid glue resource\n");
  717. return -ENOMEM;
  718. }
  719. tvout->regs = devm_ioremap_nocache(dev, res->start, resource_size(res));
  720. if (!tvout->regs)
  721. return -ENOMEM;
  722. /* get reset resources */
  723. tvout->reset = devm_reset_control_get(dev, "tvout");
  724. /* take tvout out of reset */
  725. if (!IS_ERR(tvout->reset))
  726. reset_control_deassert(tvout->reset);
  727. platform_set_drvdata(pdev, tvout);
  728. return component_add(dev, &sti_tvout_ops);
  729. }
  730. static int sti_tvout_remove(struct platform_device *pdev)
  731. {
  732. component_del(&pdev->dev, &sti_tvout_ops);
  733. return 0;
  734. }
  735. static const struct of_device_id tvout_of_match[] = {
  736. { .compatible = "st,stih416-tvout", },
  737. { .compatible = "st,stih407-tvout", },
  738. { /* end node */ }
  739. };
  740. MODULE_DEVICE_TABLE(of, tvout_of_match);
  741. struct platform_driver sti_tvout_driver = {
  742. .driver = {
  743. .name = "sti-tvout",
  744. .owner = THIS_MODULE,
  745. .of_match_table = tvout_of_match,
  746. },
  747. .probe = sti_tvout_probe,
  748. .remove = sti_tvout_remove,
  749. };
  750. MODULE_AUTHOR("Benjamin Gaignard <benjamin.gaignard@st.com>");
  751. MODULE_DESCRIPTION("STMicroelectronics SoC DRM driver");
  752. MODULE_LICENSE("GPL");