nv04_dfp.c 23 KB

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  1. /*
  2. * Copyright 2003 NVIDIA, Corporation
  3. * Copyright 2006 Dave Airlie
  4. * Copyright 2007 Maarten Maathuis
  5. * Copyright 2007-2009 Stuart Bennett
  6. *
  7. * Permission is hereby granted, free of charge, to any person obtaining a
  8. * copy of this software and associated documentation files (the "Software"),
  9. * to deal in the Software without restriction, including without limitation
  10. * the rights to use, copy, modify, merge, publish, distribute, sublicense,
  11. * and/or sell copies of the Software, and to permit persons to whom the
  12. * Software is furnished to do so, subject to the following conditions:
  13. *
  14. * The above copyright notice and this permission notice (including the next
  15. * paragraph) shall be included in all copies or substantial portions of the
  16. * Software.
  17. *
  18. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  19. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  20. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
  21. * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  22. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
  23. * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
  24. * DEALINGS IN THE SOFTWARE.
  25. */
  26. #include "drmP.h"
  27. #include "drm_crtc_helper.h"
  28. #include "nouveau_drv.h"
  29. #include "nouveau_encoder.h"
  30. #include "nouveau_connector.h"
  31. #include "nouveau_crtc.h"
  32. #include "nouveau_hw.h"
  33. #include "nvreg.h"
  34. #include "i2c/sil164.h"
  35. #define FP_TG_CONTROL_ON (NV_PRAMDAC_FP_TG_CONTROL_DISPEN_POS | \
  36. NV_PRAMDAC_FP_TG_CONTROL_HSYNC_POS | \
  37. NV_PRAMDAC_FP_TG_CONTROL_VSYNC_POS)
  38. #define FP_TG_CONTROL_OFF (NV_PRAMDAC_FP_TG_CONTROL_DISPEN_DISABLE | \
  39. NV_PRAMDAC_FP_TG_CONTROL_HSYNC_DISABLE | \
  40. NV_PRAMDAC_FP_TG_CONTROL_VSYNC_DISABLE)
  41. static inline bool is_fpc_off(uint32_t fpc)
  42. {
  43. return ((fpc & (FP_TG_CONTROL_ON | FP_TG_CONTROL_OFF)) ==
  44. FP_TG_CONTROL_OFF);
  45. }
  46. int nv04_dfp_get_bound_head(struct drm_device *dev, struct dcb_entry *dcbent)
  47. {
  48. /* special case of nv_read_tmds to find crtc associated with an output.
  49. * this does not give a correct answer for off-chip dvi, but there's no
  50. * use for such an answer anyway
  51. */
  52. int ramdac = (dcbent->or & OUTPUT_C) >> 2;
  53. NVWriteRAMDAC(dev, ramdac, NV_PRAMDAC_FP_TMDS_CONTROL,
  54. NV_PRAMDAC_FP_TMDS_CONTROL_WRITE_DISABLE | 0x4);
  55. return ((NVReadRAMDAC(dev, ramdac, NV_PRAMDAC_FP_TMDS_DATA) & 0x8) >> 3) ^ ramdac;
  56. }
  57. void nv04_dfp_bind_head(struct drm_device *dev, struct dcb_entry *dcbent,
  58. int head, bool dl)
  59. {
  60. /* The BIOS scripts don't do this for us, sadly
  61. * Luckily we do know the values ;-)
  62. *
  63. * head < 0 indicates we wish to force a setting with the overrideval
  64. * (for VT restore etc.)
  65. */
  66. int ramdac = (dcbent->or & OUTPUT_C) >> 2;
  67. uint8_t tmds04 = 0x80;
  68. if (head != ramdac)
  69. tmds04 = 0x88;
  70. if (dcbent->type == OUTPUT_LVDS)
  71. tmds04 |= 0x01;
  72. nv_write_tmds(dev, dcbent->or, 0, 0x04, tmds04);
  73. if (dl) /* dual link */
  74. nv_write_tmds(dev, dcbent->or, 1, 0x04, tmds04 ^ 0x08);
  75. }
  76. void nv04_dfp_disable(struct drm_device *dev, int head)
  77. {
  78. struct drm_nouveau_private *dev_priv = dev->dev_private;
  79. struct nv04_crtc_reg *crtcstate = dev_priv->mode_reg.crtc_reg;
  80. if (NVReadRAMDAC(dev, head, NV_PRAMDAC_FP_TG_CONTROL) &
  81. FP_TG_CONTROL_ON) {
  82. /* digital remnants must be cleaned before new crtc
  83. * values programmed. delay is time for the vga stuff
  84. * to realise it's in control again
  85. */
  86. NVWriteRAMDAC(dev, head, NV_PRAMDAC_FP_TG_CONTROL,
  87. FP_TG_CONTROL_OFF);
  88. msleep(50);
  89. }
  90. /* don't inadvertently turn it on when state written later */
  91. crtcstate[head].fp_control = FP_TG_CONTROL_OFF;
  92. crtcstate[head].CRTC[NV_CIO_CRE_LCD__INDEX] &=
  93. ~NV_CIO_CRE_LCD_ROUTE_MASK;
  94. }
  95. void nv04_dfp_update_fp_control(struct drm_encoder *encoder, int mode)
  96. {
  97. struct drm_device *dev = encoder->dev;
  98. struct drm_nouveau_private *dev_priv = dev->dev_private;
  99. struct drm_crtc *crtc;
  100. struct nouveau_crtc *nv_crtc;
  101. uint32_t *fpc;
  102. if (mode == DRM_MODE_DPMS_ON) {
  103. nv_crtc = nouveau_crtc(encoder->crtc);
  104. fpc = &dev_priv->mode_reg.crtc_reg[nv_crtc->index].fp_control;
  105. if (is_fpc_off(*fpc)) {
  106. /* using saved value is ok, as (is_digital && dpms_on &&
  107. * fp_control==OFF) is (at present) *only* true when
  108. * fpc's most recent change was by below "off" code
  109. */
  110. *fpc = nv_crtc->dpms_saved_fp_control;
  111. }
  112. nv_crtc->fp_users |= 1 << nouveau_encoder(encoder)->dcb->index;
  113. NVWriteRAMDAC(dev, nv_crtc->index, NV_PRAMDAC_FP_TG_CONTROL, *fpc);
  114. } else {
  115. list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) {
  116. nv_crtc = nouveau_crtc(crtc);
  117. fpc = &dev_priv->mode_reg.crtc_reg[nv_crtc->index].fp_control;
  118. nv_crtc->fp_users &= ~(1 << nouveau_encoder(encoder)->dcb->index);
  119. if (!is_fpc_off(*fpc) && !nv_crtc->fp_users) {
  120. nv_crtc->dpms_saved_fp_control = *fpc;
  121. /* cut the FP output */
  122. *fpc &= ~FP_TG_CONTROL_ON;
  123. *fpc |= FP_TG_CONTROL_OFF;
  124. NVWriteRAMDAC(dev, nv_crtc->index,
  125. NV_PRAMDAC_FP_TG_CONTROL, *fpc);
  126. }
  127. }
  128. }
  129. }
  130. static struct drm_encoder *get_tmds_slave(struct drm_encoder *encoder)
  131. {
  132. struct drm_device *dev = encoder->dev;
  133. struct dcb_entry *dcb = nouveau_encoder(encoder)->dcb;
  134. struct drm_encoder *slave;
  135. if (dcb->type != OUTPUT_TMDS || dcb->location == DCB_LOC_ON_CHIP)
  136. return NULL;
  137. /* Some BIOSes (e.g. the one in a Quadro FX1000) report several
  138. * TMDS transmitters at the same I2C address, in the same I2C
  139. * bus. This can still work because in that case one of them is
  140. * always hard-wired to a reasonable configuration using straps,
  141. * and the other one needs to be programmed.
  142. *
  143. * I don't think there's a way to know which is which, even the
  144. * blob programs the one exposed via I2C for *both* heads, so
  145. * let's do the same.
  146. */
  147. list_for_each_entry(slave, &dev->mode_config.encoder_list, head) {
  148. struct dcb_entry *slave_dcb = nouveau_encoder(slave)->dcb;
  149. if (slave_dcb->type == OUTPUT_TMDS && get_slave_funcs(slave) &&
  150. slave_dcb->tmdsconf.slave_addr == dcb->tmdsconf.slave_addr)
  151. return slave;
  152. }
  153. return NULL;
  154. }
  155. static bool nv04_dfp_mode_fixup(struct drm_encoder *encoder,
  156. struct drm_display_mode *mode,
  157. struct drm_display_mode *adjusted_mode)
  158. {
  159. struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
  160. struct nouveau_connector *nv_connector = nouveau_encoder_connector_get(nv_encoder);
  161. if (!nv_connector->native_mode ||
  162. nv_connector->scaling_mode == DRM_MODE_SCALE_NONE ||
  163. mode->hdisplay > nv_connector->native_mode->hdisplay ||
  164. mode->vdisplay > nv_connector->native_mode->vdisplay) {
  165. nv_encoder->mode = *adjusted_mode;
  166. } else {
  167. nv_encoder->mode = *nv_connector->native_mode;
  168. adjusted_mode->clock = nv_connector->native_mode->clock;
  169. }
  170. return true;
  171. }
  172. static void nv04_dfp_prepare_sel_clk(struct drm_device *dev,
  173. struct nouveau_encoder *nv_encoder, int head)
  174. {
  175. struct drm_nouveau_private *dev_priv = dev->dev_private;
  176. struct nv04_mode_state *state = &dev_priv->mode_reg;
  177. uint32_t bits1618 = nv_encoder->dcb->or & OUTPUT_A ? 0x10000 : 0x40000;
  178. if (nv_encoder->dcb->location != DCB_LOC_ON_CHIP)
  179. return;
  180. /* SEL_CLK is only used on the primary ramdac
  181. * It toggles spread spectrum PLL output and sets the bindings of PLLs
  182. * to heads on digital outputs
  183. */
  184. if (head)
  185. state->sel_clk |= bits1618;
  186. else
  187. state->sel_clk &= ~bits1618;
  188. /* nv30:
  189. * bit 0 NVClk spread spectrum on/off
  190. * bit 2 MemClk spread spectrum on/off
  191. * bit 4 PixClk1 spread spectrum on/off toggle
  192. * bit 6 PixClk2 spread spectrum on/off toggle
  193. *
  194. * nv40 (observations from bios behaviour and mmio traces):
  195. * bits 4&6 as for nv30
  196. * bits 5&7 head dependent as for bits 4&6, but do not appear with 4&6;
  197. * maybe a different spread mode
  198. * bits 8&10 seen on dual-link dvi outputs, purpose unknown (set by POST scripts)
  199. * The logic behind turning spread spectrum on/off in the first place,
  200. * and which bit-pair to use, is unclear on nv40 (for earlier cards, the fp table
  201. * entry has the necessary info)
  202. */
  203. if (nv_encoder->dcb->type == OUTPUT_LVDS && dev_priv->saved_reg.sel_clk & 0xf0) {
  204. int shift = (dev_priv->saved_reg.sel_clk & 0x50) ? 0 : 1;
  205. state->sel_clk &= ~0xf0;
  206. state->sel_clk |= (head ? 0x40 : 0x10) << shift;
  207. }
  208. }
  209. static void nv04_dfp_prepare(struct drm_encoder *encoder)
  210. {
  211. struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
  212. struct drm_encoder_helper_funcs *helper = encoder->helper_private;
  213. struct drm_device *dev = encoder->dev;
  214. struct drm_nouveau_private *dev_priv = dev->dev_private;
  215. int head = nouveau_crtc(encoder->crtc)->index;
  216. struct nv04_crtc_reg *crtcstate = dev_priv->mode_reg.crtc_reg;
  217. uint8_t *cr_lcd = &crtcstate[head].CRTC[NV_CIO_CRE_LCD__INDEX];
  218. uint8_t *cr_lcd_oth = &crtcstate[head ^ 1].CRTC[NV_CIO_CRE_LCD__INDEX];
  219. helper->dpms(encoder, DRM_MODE_DPMS_OFF);
  220. nv04_dfp_prepare_sel_clk(dev, nv_encoder, head);
  221. *cr_lcd = (*cr_lcd & ~NV_CIO_CRE_LCD_ROUTE_MASK) | 0x3;
  222. if (nv_two_heads(dev)) {
  223. if (nv_encoder->dcb->location == DCB_LOC_ON_CHIP)
  224. *cr_lcd |= head ? 0x0 : 0x8;
  225. else {
  226. *cr_lcd |= (nv_encoder->dcb->or << 4) & 0x30;
  227. if (nv_encoder->dcb->type == OUTPUT_LVDS)
  228. *cr_lcd |= 0x30;
  229. if ((*cr_lcd & 0x30) == (*cr_lcd_oth & 0x30)) {
  230. /* avoid being connected to both crtcs */
  231. *cr_lcd_oth &= ~0x30;
  232. NVWriteVgaCrtc(dev, head ^ 1,
  233. NV_CIO_CRE_LCD__INDEX,
  234. *cr_lcd_oth);
  235. }
  236. }
  237. }
  238. }
  239. static void nv04_dfp_mode_set(struct drm_encoder *encoder,
  240. struct drm_display_mode *mode,
  241. struct drm_display_mode *adjusted_mode)
  242. {
  243. struct drm_device *dev = encoder->dev;
  244. struct drm_nouveau_private *dev_priv = dev->dev_private;
  245. struct nouveau_crtc *nv_crtc = nouveau_crtc(encoder->crtc);
  246. struct nv04_crtc_reg *regp = &dev_priv->mode_reg.crtc_reg[nv_crtc->index];
  247. struct nv04_crtc_reg *savep = &dev_priv->saved_reg.crtc_reg[nv_crtc->index];
  248. struct nouveau_connector *nv_connector = nouveau_crtc_connector_get(nv_crtc);
  249. struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
  250. struct drm_display_mode *output_mode = &nv_encoder->mode;
  251. uint32_t mode_ratio, panel_ratio;
  252. NV_DEBUG_KMS(dev, "Output mode on CRTC %d:\n", nv_crtc->index);
  253. drm_mode_debug_printmodeline(output_mode);
  254. /* Initialize the FP registers in this CRTC. */
  255. regp->fp_horiz_regs[FP_DISPLAY_END] = output_mode->hdisplay - 1;
  256. regp->fp_horiz_regs[FP_TOTAL] = output_mode->htotal - 1;
  257. if (!nv_gf4_disp_arch(dev) ||
  258. (output_mode->hsync_start - output_mode->hdisplay) >=
  259. dev_priv->vbios.digital_min_front_porch)
  260. regp->fp_horiz_regs[FP_CRTC] = output_mode->hdisplay;
  261. else
  262. regp->fp_horiz_regs[FP_CRTC] = output_mode->hsync_start - dev_priv->vbios.digital_min_front_porch - 1;
  263. regp->fp_horiz_regs[FP_SYNC_START] = output_mode->hsync_start - 1;
  264. regp->fp_horiz_regs[FP_SYNC_END] = output_mode->hsync_end - 1;
  265. regp->fp_horiz_regs[FP_VALID_START] = output_mode->hskew;
  266. regp->fp_horiz_regs[FP_VALID_END] = output_mode->hdisplay - 1;
  267. regp->fp_vert_regs[FP_DISPLAY_END] = output_mode->vdisplay - 1;
  268. regp->fp_vert_regs[FP_TOTAL] = output_mode->vtotal - 1;
  269. regp->fp_vert_regs[FP_CRTC] = output_mode->vtotal - 5 - 1;
  270. regp->fp_vert_regs[FP_SYNC_START] = output_mode->vsync_start - 1;
  271. regp->fp_vert_regs[FP_SYNC_END] = output_mode->vsync_end - 1;
  272. regp->fp_vert_regs[FP_VALID_START] = 0;
  273. regp->fp_vert_regs[FP_VALID_END] = output_mode->vdisplay - 1;
  274. /* bit26: a bit seen on some g7x, no as yet discernable purpose */
  275. regp->fp_control = NV_PRAMDAC_FP_TG_CONTROL_DISPEN_POS |
  276. (savep->fp_control & (1 << 26 | NV_PRAMDAC_FP_TG_CONTROL_READ_PROG));
  277. /* Deal with vsync/hsync polarity */
  278. /* LVDS screens do set this, but modes with +ve syncs are very rare */
  279. if (output_mode->flags & DRM_MODE_FLAG_PVSYNC)
  280. regp->fp_control |= NV_PRAMDAC_FP_TG_CONTROL_VSYNC_POS;
  281. if (output_mode->flags & DRM_MODE_FLAG_PHSYNC)
  282. regp->fp_control |= NV_PRAMDAC_FP_TG_CONTROL_HSYNC_POS;
  283. /* panel scaling first, as native would get set otherwise */
  284. if (nv_connector->scaling_mode == DRM_MODE_SCALE_NONE ||
  285. nv_connector->scaling_mode == DRM_MODE_SCALE_CENTER) /* panel handles it */
  286. regp->fp_control |= NV_PRAMDAC_FP_TG_CONTROL_MODE_CENTER;
  287. else if (adjusted_mode->hdisplay == output_mode->hdisplay &&
  288. adjusted_mode->vdisplay == output_mode->vdisplay) /* native mode */
  289. regp->fp_control |= NV_PRAMDAC_FP_TG_CONTROL_MODE_NATIVE;
  290. else /* gpu needs to scale */
  291. regp->fp_control |= NV_PRAMDAC_FP_TG_CONTROL_MODE_SCALE;
  292. if (nvReadEXTDEV(dev, NV_PEXTDEV_BOOT_0) & NV_PEXTDEV_BOOT_0_STRAP_FP_IFACE_12BIT)
  293. regp->fp_control |= NV_PRAMDAC_FP_TG_CONTROL_WIDTH_12;
  294. if (nv_encoder->dcb->location != DCB_LOC_ON_CHIP &&
  295. output_mode->clock > 165000)
  296. regp->fp_control |= (2 << 24);
  297. if (nv_encoder->dcb->type == OUTPUT_LVDS) {
  298. bool duallink, dummy;
  299. nouveau_bios_parse_lvds_table(dev, output_mode->clock,
  300. &duallink, &dummy);
  301. if (duallink)
  302. regp->fp_control |= (8 << 28);
  303. } else
  304. if (output_mode->clock > 165000)
  305. regp->fp_control |= (8 << 28);
  306. regp->fp_debug_0 = NV_PRAMDAC_FP_DEBUG_0_YWEIGHT_ROUND |
  307. NV_PRAMDAC_FP_DEBUG_0_XWEIGHT_ROUND |
  308. NV_PRAMDAC_FP_DEBUG_0_YINTERP_BILINEAR |
  309. NV_PRAMDAC_FP_DEBUG_0_XINTERP_BILINEAR |
  310. NV_RAMDAC_FP_DEBUG_0_TMDS_ENABLED |
  311. NV_PRAMDAC_FP_DEBUG_0_YSCALE_ENABLE |
  312. NV_PRAMDAC_FP_DEBUG_0_XSCALE_ENABLE;
  313. /* We want automatic scaling */
  314. regp->fp_debug_1 = 0;
  315. /* This can override HTOTAL and VTOTAL */
  316. regp->fp_debug_2 = 0;
  317. /* Use 20.12 fixed point format to avoid floats */
  318. mode_ratio = (1 << 12) * adjusted_mode->hdisplay / adjusted_mode->vdisplay;
  319. panel_ratio = (1 << 12) * output_mode->hdisplay / output_mode->vdisplay;
  320. /* if ratios are equal, SCALE_ASPECT will automatically (and correctly)
  321. * get treated the same as SCALE_FULLSCREEN */
  322. if (nv_connector->scaling_mode == DRM_MODE_SCALE_ASPECT &&
  323. mode_ratio != panel_ratio) {
  324. uint32_t diff, scale;
  325. bool divide_by_2 = nv_gf4_disp_arch(dev);
  326. if (mode_ratio < panel_ratio) {
  327. /* vertical needs to expand to glass size (automatic)
  328. * horizontal needs to be scaled at vertical scale factor
  329. * to maintain aspect */
  330. scale = (1 << 12) * adjusted_mode->vdisplay / output_mode->vdisplay;
  331. regp->fp_debug_1 = NV_PRAMDAC_FP_DEBUG_1_XSCALE_TESTMODE_ENABLE |
  332. XLATE(scale, divide_by_2, NV_PRAMDAC_FP_DEBUG_1_XSCALE_VALUE);
  333. /* restrict area of screen used, horizontally */
  334. diff = output_mode->hdisplay -
  335. output_mode->vdisplay * mode_ratio / (1 << 12);
  336. regp->fp_horiz_regs[FP_VALID_START] += diff / 2;
  337. regp->fp_horiz_regs[FP_VALID_END] -= diff / 2;
  338. }
  339. if (mode_ratio > panel_ratio) {
  340. /* horizontal needs to expand to glass size (automatic)
  341. * vertical needs to be scaled at horizontal scale factor
  342. * to maintain aspect */
  343. scale = (1 << 12) * adjusted_mode->hdisplay / output_mode->hdisplay;
  344. regp->fp_debug_1 = NV_PRAMDAC_FP_DEBUG_1_YSCALE_TESTMODE_ENABLE |
  345. XLATE(scale, divide_by_2, NV_PRAMDAC_FP_DEBUG_1_YSCALE_VALUE);
  346. /* restrict area of screen used, vertically */
  347. diff = output_mode->vdisplay -
  348. (1 << 12) * output_mode->hdisplay / mode_ratio;
  349. regp->fp_vert_regs[FP_VALID_START] += diff / 2;
  350. regp->fp_vert_regs[FP_VALID_END] -= diff / 2;
  351. }
  352. }
  353. /* Output property. */
  354. if (nv_connector->use_dithering) {
  355. if (dev_priv->chipset == 0x11)
  356. regp->dither = savep->dither | 0x00010000;
  357. else {
  358. int i;
  359. regp->dither = savep->dither | 0x00000001;
  360. for (i = 0; i < 3; i++) {
  361. regp->dither_regs[i] = 0xe4e4e4e4;
  362. regp->dither_regs[i + 3] = 0x44444444;
  363. }
  364. }
  365. } else {
  366. if (dev_priv->chipset != 0x11) {
  367. /* reset them */
  368. int i;
  369. for (i = 0; i < 3; i++) {
  370. regp->dither_regs[i] = savep->dither_regs[i];
  371. regp->dither_regs[i + 3] = savep->dither_regs[i + 3];
  372. }
  373. }
  374. regp->dither = savep->dither;
  375. }
  376. regp->fp_margin_color = 0;
  377. }
  378. static void nv04_dfp_commit(struct drm_encoder *encoder)
  379. {
  380. struct drm_device *dev = encoder->dev;
  381. struct drm_nouveau_private *dev_priv = dev->dev_private;
  382. struct drm_encoder_helper_funcs *helper = encoder->helper_private;
  383. struct nouveau_crtc *nv_crtc = nouveau_crtc(encoder->crtc);
  384. struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
  385. struct dcb_entry *dcbe = nv_encoder->dcb;
  386. int head = nouveau_crtc(encoder->crtc)->index;
  387. struct drm_encoder *slave_encoder;
  388. if (dcbe->type == OUTPUT_TMDS)
  389. run_tmds_table(dev, dcbe, head, nv_encoder->mode.clock);
  390. else if (dcbe->type == OUTPUT_LVDS)
  391. call_lvds_script(dev, dcbe, head, LVDS_RESET, nv_encoder->mode.clock);
  392. /* update fp_control state for any changes made by scripts,
  393. * so correct value is written at DPMS on */
  394. dev_priv->mode_reg.crtc_reg[head].fp_control =
  395. NVReadRAMDAC(dev, head, NV_PRAMDAC_FP_TG_CONTROL);
  396. /* This could use refinement for flatpanels, but it should work this way */
  397. if (dev_priv->chipset < 0x44)
  398. NVWriteRAMDAC(dev, 0, NV_PRAMDAC_TEST_CONTROL + nv04_dac_output_offset(encoder), 0xf0000000);
  399. else
  400. NVWriteRAMDAC(dev, 0, NV_PRAMDAC_TEST_CONTROL + nv04_dac_output_offset(encoder), 0x00100000);
  401. /* Init external transmitters */
  402. slave_encoder = get_tmds_slave(encoder);
  403. if (slave_encoder)
  404. get_slave_funcs(slave_encoder)->mode_set(
  405. slave_encoder, &nv_encoder->mode, &nv_encoder->mode);
  406. helper->dpms(encoder, DRM_MODE_DPMS_ON);
  407. NV_INFO(dev, "Output %s is running on CRTC %d using output %c\n",
  408. drm_get_connector_name(&nouveau_encoder_connector_get(nv_encoder)->base),
  409. nv_crtc->index, '@' + ffs(nv_encoder->dcb->or));
  410. }
  411. static void nv04_dfp_update_backlight(struct drm_encoder *encoder, int mode)
  412. {
  413. #ifdef __powerpc__
  414. struct drm_device *dev = encoder->dev;
  415. /* BIOS scripts usually take care of the backlight, thanks
  416. * Apple for your consistency.
  417. */
  418. if (dev->pci_device == 0x0179 || dev->pci_device == 0x0189 ||
  419. dev->pci_device == 0x0329) {
  420. if (mode == DRM_MODE_DPMS_ON) {
  421. nv_mask(dev, NV_PBUS_DEBUG_DUALHEAD_CTL, 0, 1 << 31);
  422. nv_mask(dev, NV_PCRTC_GPIO_EXT, 3, 1);
  423. } else {
  424. nv_mask(dev, NV_PBUS_DEBUG_DUALHEAD_CTL, 1 << 31, 0);
  425. nv_mask(dev, NV_PCRTC_GPIO_EXT, 3, 0);
  426. }
  427. }
  428. #endif
  429. }
  430. static inline bool is_powersaving_dpms(int mode)
  431. {
  432. return (mode != DRM_MODE_DPMS_ON);
  433. }
  434. static void nv04_lvds_dpms(struct drm_encoder *encoder, int mode)
  435. {
  436. struct drm_device *dev = encoder->dev;
  437. struct drm_crtc *crtc = encoder->crtc;
  438. struct drm_nouveau_private *dev_priv = dev->dev_private;
  439. struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
  440. bool was_powersaving = is_powersaving_dpms(nv_encoder->last_dpms);
  441. if (nv_encoder->last_dpms == mode)
  442. return;
  443. nv_encoder->last_dpms = mode;
  444. NV_INFO(dev, "Setting dpms mode %d on lvds encoder (output %d)\n",
  445. mode, nv_encoder->dcb->index);
  446. if (was_powersaving && is_powersaving_dpms(mode))
  447. return;
  448. if (nv_encoder->dcb->lvdsconf.use_power_scripts) {
  449. /* when removing an output, crtc may not be set, but PANEL_OFF
  450. * must still be run
  451. */
  452. int head = crtc ? nouveau_crtc(crtc)->index :
  453. nv04_dfp_get_bound_head(dev, nv_encoder->dcb);
  454. if (mode == DRM_MODE_DPMS_ON) {
  455. call_lvds_script(dev, nv_encoder->dcb, head,
  456. LVDS_PANEL_ON, nv_encoder->mode.clock);
  457. } else
  458. /* pxclk of 0 is fine for PANEL_OFF, and for a
  459. * disconnected LVDS encoder there is no native_mode
  460. */
  461. call_lvds_script(dev, nv_encoder->dcb, head,
  462. LVDS_PANEL_OFF, 0);
  463. }
  464. nv04_dfp_update_backlight(encoder, mode);
  465. nv04_dfp_update_fp_control(encoder, mode);
  466. if (mode == DRM_MODE_DPMS_ON)
  467. nv04_dfp_prepare_sel_clk(dev, nv_encoder, nouveau_crtc(crtc)->index);
  468. else {
  469. dev_priv->mode_reg.sel_clk = NVReadRAMDAC(dev, 0, NV_PRAMDAC_SEL_CLK);
  470. dev_priv->mode_reg.sel_clk &= ~0xf0;
  471. }
  472. NVWriteRAMDAC(dev, 0, NV_PRAMDAC_SEL_CLK, dev_priv->mode_reg.sel_clk);
  473. }
  474. static void nv04_tmds_dpms(struct drm_encoder *encoder, int mode)
  475. {
  476. struct drm_device *dev = encoder->dev;
  477. struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
  478. if (nv_encoder->last_dpms == mode)
  479. return;
  480. nv_encoder->last_dpms = mode;
  481. NV_INFO(dev, "Setting dpms mode %d on tmds encoder (output %d)\n",
  482. mode, nv_encoder->dcb->index);
  483. nv04_dfp_update_backlight(encoder, mode);
  484. nv04_dfp_update_fp_control(encoder, mode);
  485. }
  486. static void nv04_dfp_save(struct drm_encoder *encoder)
  487. {
  488. struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
  489. struct drm_device *dev = encoder->dev;
  490. if (nv_two_heads(dev))
  491. nv_encoder->restore.head =
  492. nv04_dfp_get_bound_head(dev, nv_encoder->dcb);
  493. }
  494. static void nv04_dfp_restore(struct drm_encoder *encoder)
  495. {
  496. struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
  497. struct drm_device *dev = encoder->dev;
  498. struct drm_nouveau_private *dev_priv = dev->dev_private;
  499. int head = nv_encoder->restore.head;
  500. if (nv_encoder->dcb->type == OUTPUT_LVDS) {
  501. struct nouveau_connector *connector =
  502. nouveau_encoder_connector_get(nv_encoder);
  503. if (connector && connector->native_mode)
  504. call_lvds_script(dev, nv_encoder->dcb, head,
  505. LVDS_PANEL_ON,
  506. connector->native_mode->clock);
  507. } else if (nv_encoder->dcb->type == OUTPUT_TMDS) {
  508. int clock = nouveau_hw_pllvals_to_clk
  509. (&dev_priv->saved_reg.crtc_reg[head].pllvals);
  510. run_tmds_table(dev, nv_encoder->dcb, head, clock);
  511. }
  512. nv_encoder->last_dpms = NV_DPMS_CLEARED;
  513. }
  514. static void nv04_dfp_destroy(struct drm_encoder *encoder)
  515. {
  516. struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
  517. NV_DEBUG_KMS(encoder->dev, "\n");
  518. if (get_slave_funcs(encoder))
  519. get_slave_funcs(encoder)->destroy(encoder);
  520. drm_encoder_cleanup(encoder);
  521. kfree(nv_encoder);
  522. }
  523. static void nv04_tmds_slave_init(struct drm_encoder *encoder)
  524. {
  525. struct drm_device *dev = encoder->dev;
  526. struct dcb_entry *dcb = nouveau_encoder(encoder)->dcb;
  527. struct nouveau_i2c_chan *i2c = nouveau_i2c_find(dev, 2);
  528. struct i2c_board_info info[] = {
  529. {
  530. .type = "sil164",
  531. .addr = (dcb->tmdsconf.slave_addr == 0x7 ? 0x3a : 0x38),
  532. .platform_data = &(struct sil164_encoder_params) {
  533. SIL164_INPUT_EDGE_RISING
  534. }
  535. },
  536. { }
  537. };
  538. int type;
  539. if (!nv_gf4_disp_arch(dev) || !i2c ||
  540. get_tmds_slave(encoder))
  541. return;
  542. type = nouveau_i2c_identify(dev, "TMDS transmitter", info, NULL, 2);
  543. if (type < 0)
  544. return;
  545. drm_i2c_encoder_init(dev, to_encoder_slave(encoder),
  546. &i2c->adapter, &info[type]);
  547. }
  548. static const struct drm_encoder_helper_funcs nv04_lvds_helper_funcs = {
  549. .dpms = nv04_lvds_dpms,
  550. .save = nv04_dfp_save,
  551. .restore = nv04_dfp_restore,
  552. .mode_fixup = nv04_dfp_mode_fixup,
  553. .prepare = nv04_dfp_prepare,
  554. .commit = nv04_dfp_commit,
  555. .mode_set = nv04_dfp_mode_set,
  556. .detect = NULL,
  557. };
  558. static const struct drm_encoder_helper_funcs nv04_tmds_helper_funcs = {
  559. .dpms = nv04_tmds_dpms,
  560. .save = nv04_dfp_save,
  561. .restore = nv04_dfp_restore,
  562. .mode_fixup = nv04_dfp_mode_fixup,
  563. .prepare = nv04_dfp_prepare,
  564. .commit = nv04_dfp_commit,
  565. .mode_set = nv04_dfp_mode_set,
  566. .detect = NULL,
  567. };
  568. static const struct drm_encoder_funcs nv04_dfp_funcs = {
  569. .destroy = nv04_dfp_destroy,
  570. };
  571. int
  572. nv04_dfp_create(struct drm_connector *connector, struct dcb_entry *entry)
  573. {
  574. const struct drm_encoder_helper_funcs *helper;
  575. struct nouveau_encoder *nv_encoder = NULL;
  576. struct drm_encoder *encoder;
  577. int type;
  578. switch (entry->type) {
  579. case OUTPUT_TMDS:
  580. type = DRM_MODE_ENCODER_TMDS;
  581. helper = &nv04_tmds_helper_funcs;
  582. break;
  583. case OUTPUT_LVDS:
  584. type = DRM_MODE_ENCODER_LVDS;
  585. helper = &nv04_lvds_helper_funcs;
  586. break;
  587. default:
  588. return -EINVAL;
  589. }
  590. nv_encoder = kzalloc(sizeof(*nv_encoder), GFP_KERNEL);
  591. if (!nv_encoder)
  592. return -ENOMEM;
  593. encoder = to_drm_encoder(nv_encoder);
  594. nv_encoder->dcb = entry;
  595. nv_encoder->or = ffs(entry->or) - 1;
  596. drm_encoder_init(connector->dev, encoder, &nv04_dfp_funcs, type);
  597. drm_encoder_helper_add(encoder, helper);
  598. encoder->possible_crtcs = entry->heads;
  599. encoder->possible_clones = 0;
  600. if (entry->type == OUTPUT_TMDS &&
  601. entry->location != DCB_LOC_ON_CHIP)
  602. nv04_tmds_slave_init(encoder);
  603. drm_mode_connector_attach_encoder(connector, encoder);
  604. return 0;
  605. }