1 /* 2 * Copyright 2014 Advanced Micro Devices, Inc. 3 * 4 * Permission is hereby granted, free of charge, to any person obtaining a 5 * copy of this software and associated documentation files (the "Software"), 6 * to deal in the Software without restriction, including without limitation 7 * the rights to use, copy, modify, merge, publish, distribute, sublicense, 8 * and/or sell copies of the Software, and to permit persons to whom the 9 * Software is furnished to do so, subject to the following conditions: 10 * 11 * The above copyright notice and this permission notice shall be included in 12 * all copies or substantial portions of the Software. 13 * 14 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 15 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 16 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL 17 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR 18 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, 19 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR 20 * OTHER DEALINGS IN THE SOFTWARE. 21 * 22 */ 23 24 #include <drm/drm_edid.h> 25 #include <drm/drm_fourcc.h> 26 #include <drm/drm_modeset_helper.h> 27 #include <drm/drm_modeset_helper_vtables.h> 28 #include <drm/drm_vblank.h> 29 30 #include "amdgpu.h" 31 #include "amdgpu_pm.h" 32 #include "amdgpu_i2c.h" 33 #include "cikd.h" 34 #include "atom.h" 35 #include "amdgpu_atombios.h" 36 #include "atombios_crtc.h" 37 #include "atombios_encoders.h" 38 #include "amdgpu_pll.h" 39 #include "amdgpu_connectors.h" 40 #include "amdgpu_display.h" 41 #include "dce_v8_0.h" 42 43 #include "dce/dce_8_0_d.h" 44 #include "dce/dce_8_0_sh_mask.h" 45 46 #include "gca/gfx_7_2_enum.h" 47 48 #include "gmc/gmc_7_1_d.h" 49 #include "gmc/gmc_7_1_sh_mask.h" 50 51 #include "oss/oss_2_0_d.h" 52 #include "oss/oss_2_0_sh_mask.h" 53 54 static void dce_v8_0_set_display_funcs(struct amdgpu_device *adev); 55 static void dce_v8_0_set_irq_funcs(struct amdgpu_device *adev); 56 57 static const u32 crtc_offsets[6] = { 58 CRTC0_REGISTER_OFFSET, 59 CRTC1_REGISTER_OFFSET, 60 CRTC2_REGISTER_OFFSET, 61 CRTC3_REGISTER_OFFSET, 62 CRTC4_REGISTER_OFFSET, 63 CRTC5_REGISTER_OFFSET 64 }; 65 66 static const u32 hpd_offsets[] = { 67 HPD0_REGISTER_OFFSET, 68 HPD1_REGISTER_OFFSET, 69 HPD2_REGISTER_OFFSET, 70 HPD3_REGISTER_OFFSET, 71 HPD4_REGISTER_OFFSET, 72 HPD5_REGISTER_OFFSET 73 }; 74 75 static const uint32_t dig_offsets[] = { 76 CRTC0_REGISTER_OFFSET, 77 CRTC1_REGISTER_OFFSET, 78 CRTC2_REGISTER_OFFSET, 79 CRTC3_REGISTER_OFFSET, 80 CRTC4_REGISTER_OFFSET, 81 CRTC5_REGISTER_OFFSET, 82 (0x13830 - 0x7030) >> 2, 83 }; 84 85 static const struct { 86 uint32_t reg; 87 uint32_t vblank; 88 uint32_t vline; 89 uint32_t hpd; 90 91 } interrupt_status_offsets[6] = { { 92 .reg = mmDISP_INTERRUPT_STATUS, 93 .vblank = DISP_INTERRUPT_STATUS__LB_D1_VBLANK_INTERRUPT_MASK, 94 .vline = DISP_INTERRUPT_STATUS__LB_D1_VLINE_INTERRUPT_MASK, 95 .hpd = DISP_INTERRUPT_STATUS__DC_HPD1_INTERRUPT_MASK 96 }, { 97 .reg = mmDISP_INTERRUPT_STATUS_CONTINUE, 98 .vblank = DISP_INTERRUPT_STATUS_CONTINUE__LB_D2_VBLANK_INTERRUPT_MASK, 99 .vline = DISP_INTERRUPT_STATUS_CONTINUE__LB_D2_VLINE_INTERRUPT_MASK, 100 .hpd = DISP_INTERRUPT_STATUS_CONTINUE__DC_HPD2_INTERRUPT_MASK 101 }, { 102 .reg = mmDISP_INTERRUPT_STATUS_CONTINUE2, 103 .vblank = DISP_INTERRUPT_STATUS_CONTINUE2__LB_D3_VBLANK_INTERRUPT_MASK, 104 .vline = DISP_INTERRUPT_STATUS_CONTINUE2__LB_D3_VLINE_INTERRUPT_MASK, 105 .hpd = DISP_INTERRUPT_STATUS_CONTINUE2__DC_HPD3_INTERRUPT_MASK 106 }, { 107 .reg = mmDISP_INTERRUPT_STATUS_CONTINUE3, 108 .vblank = DISP_INTERRUPT_STATUS_CONTINUE3__LB_D4_VBLANK_INTERRUPT_MASK, 109 .vline = DISP_INTERRUPT_STATUS_CONTINUE3__LB_D4_VLINE_INTERRUPT_MASK, 110 .hpd = DISP_INTERRUPT_STATUS_CONTINUE3__DC_HPD4_INTERRUPT_MASK 111 }, { 112 .reg = mmDISP_INTERRUPT_STATUS_CONTINUE4, 113 .vblank = DISP_INTERRUPT_STATUS_CONTINUE4__LB_D5_VBLANK_INTERRUPT_MASK, 114 .vline = DISP_INTERRUPT_STATUS_CONTINUE4__LB_D5_VLINE_INTERRUPT_MASK, 115 .hpd = DISP_INTERRUPT_STATUS_CONTINUE4__DC_HPD5_INTERRUPT_MASK 116 }, { 117 .reg = mmDISP_INTERRUPT_STATUS_CONTINUE5, 118 .vblank = DISP_INTERRUPT_STATUS_CONTINUE5__LB_D6_VBLANK_INTERRUPT_MASK, 119 .vline = DISP_INTERRUPT_STATUS_CONTINUE5__LB_D6_VLINE_INTERRUPT_MASK, 120 .hpd = DISP_INTERRUPT_STATUS_CONTINUE5__DC_HPD6_INTERRUPT_MASK 121 } }; 122 123 static u32 dce_v8_0_audio_endpt_rreg(struct amdgpu_device *adev, 124 u32 block_offset, u32 reg) 125 { 126 unsigned long flags; 127 u32 r; 128 129 spin_lock_irqsave(&adev->reg.audio_endpt.lock, flags); 130 WREG32(mmAZALIA_F0_CODEC_ENDPOINT_INDEX + block_offset, reg); 131 r = RREG32(mmAZALIA_F0_CODEC_ENDPOINT_DATA + block_offset); 132 spin_unlock_irqrestore(&adev->reg.audio_endpt.lock, flags); 133 134 return r; 135 } 136 137 static void dce_v8_0_audio_endpt_wreg(struct amdgpu_device *adev, 138 u32 block_offset, u32 reg, u32 v) 139 { 140 unsigned long flags; 141 142 spin_lock_irqsave(&adev->reg.audio_endpt.lock, flags); 143 WREG32(mmAZALIA_F0_CODEC_ENDPOINT_INDEX + block_offset, reg); 144 WREG32(mmAZALIA_F0_CODEC_ENDPOINT_DATA + block_offset, v); 145 spin_unlock_irqrestore(&adev->reg.audio_endpt.lock, flags); 146 } 147 148 static u32 dce_v8_0_vblank_get_counter(struct amdgpu_device *adev, int crtc) 149 { 150 if (crtc >= adev->mode_info.num_crtc) 151 return 0; 152 else 153 return RREG32(mmCRTC_STATUS_FRAME_COUNT + crtc_offsets[crtc]); 154 } 155 156 static void dce_v8_0_pageflip_interrupt_init(struct amdgpu_device *adev) 157 { 158 unsigned i; 159 160 /* Enable pflip interrupts */ 161 for (i = 0; i < adev->mode_info.num_crtc; i++) 162 amdgpu_irq_get(adev, &adev->pageflip_irq, i); 163 } 164 165 static void dce_v8_0_pageflip_interrupt_fini(struct amdgpu_device *adev) 166 { 167 unsigned i; 168 169 /* Disable pflip interrupts */ 170 for (i = 0; i < adev->mode_info.num_crtc; i++) 171 amdgpu_irq_put(adev, &adev->pageflip_irq, i); 172 } 173 174 /** 175 * dce_v8_0_page_flip - pageflip callback. 176 * 177 * @adev: amdgpu_device pointer 178 * @crtc_id: crtc to cleanup pageflip on 179 * @crtc_base: new address of the crtc (GPU MC address) 180 * @async: asynchronous flip 181 * 182 * Triggers the actual pageflip by updating the primary 183 * surface base address. 184 */ 185 static void dce_v8_0_page_flip(struct amdgpu_device *adev, 186 int crtc_id, u64 crtc_base, bool async) 187 { 188 struct amdgpu_crtc *amdgpu_crtc = adev->mode_info.crtcs[crtc_id]; 189 struct drm_framebuffer *fb = amdgpu_crtc->base.primary->fb; 190 191 /* flip at hsync for async, default is vsync */ 192 WREG32(mmGRPH_FLIP_CONTROL + amdgpu_crtc->crtc_offset, async ? 193 GRPH_FLIP_CONTROL__GRPH_SURFACE_UPDATE_H_RETRACE_EN_MASK : 0); 194 /* update pitch */ 195 WREG32(mmGRPH_PITCH + amdgpu_crtc->crtc_offset, 196 fb->pitches[0] / fb->format->cpp[0]); 197 /* update the primary scanout addresses */ 198 WREG32(mmGRPH_PRIMARY_SURFACE_ADDRESS_HIGH + amdgpu_crtc->crtc_offset, 199 upper_32_bits(crtc_base)); 200 /* writing to the low address triggers the update */ 201 WREG32(mmGRPH_PRIMARY_SURFACE_ADDRESS + amdgpu_crtc->crtc_offset, 202 lower_32_bits(crtc_base)); 203 /* post the write */ 204 RREG32(mmGRPH_PRIMARY_SURFACE_ADDRESS + amdgpu_crtc->crtc_offset); 205 } 206 207 static int dce_v8_0_crtc_get_scanoutpos(struct amdgpu_device *adev, int crtc, 208 u32 *vbl, u32 *position) 209 { 210 if ((crtc < 0) || (crtc >= adev->mode_info.num_crtc)) 211 return -EINVAL; 212 213 *vbl = RREG32(mmCRTC_V_BLANK_START_END + crtc_offsets[crtc]); 214 *position = RREG32(mmCRTC_STATUS_POSITION + crtc_offsets[crtc]); 215 216 return 0; 217 } 218 219 /** 220 * dce_v8_0_hpd_sense - hpd sense callback. 221 * 222 * @adev: amdgpu_device pointer 223 * @hpd: hpd (hotplug detect) pin 224 * 225 * Checks if a digital monitor is connected (evergreen+). 226 * Returns true if connected, false if not connected. 227 */ 228 static bool dce_v8_0_hpd_sense(struct amdgpu_device *adev, 229 enum amdgpu_hpd_id hpd) 230 { 231 bool connected = false; 232 233 if (hpd >= adev->mode_info.num_hpd) 234 return connected; 235 236 if (RREG32(mmDC_HPD1_INT_STATUS + hpd_offsets[hpd]) & 237 DC_HPD1_INT_STATUS__DC_HPD1_SENSE_MASK) 238 connected = true; 239 240 return connected; 241 } 242 243 /** 244 * dce_v8_0_hpd_set_polarity - hpd set polarity callback. 245 * 246 * @adev: amdgpu_device pointer 247 * @hpd: hpd (hotplug detect) pin 248 * 249 * Set the polarity of the hpd pin (evergreen+). 250 */ 251 static void dce_v8_0_hpd_set_polarity(struct amdgpu_device *adev, 252 enum amdgpu_hpd_id hpd) 253 { 254 u32 tmp; 255 bool connected = dce_v8_0_hpd_sense(adev, hpd); 256 257 if (hpd >= adev->mode_info.num_hpd) 258 return; 259 260 tmp = RREG32(mmDC_HPD1_INT_CONTROL + hpd_offsets[hpd]); 261 if (connected) 262 tmp &= ~DC_HPD1_INT_CONTROL__DC_HPD1_INT_POLARITY_MASK; 263 else 264 tmp |= DC_HPD1_INT_CONTROL__DC_HPD1_INT_POLARITY_MASK; 265 WREG32(mmDC_HPD1_INT_CONTROL + hpd_offsets[hpd], tmp); 266 } 267 268 static void dce_v8_0_hpd_int_ack(struct amdgpu_device *adev, 269 int hpd) 270 { 271 u32 tmp; 272 273 if (hpd >= adev->mode_info.num_hpd) { 274 DRM_DEBUG("invalid hpd %d\n", hpd); 275 return; 276 } 277 278 tmp = RREG32(mmDC_HPD1_INT_CONTROL + hpd_offsets[hpd]); 279 tmp |= DC_HPD1_INT_CONTROL__DC_HPD1_INT_ACK_MASK; 280 WREG32(mmDC_HPD1_INT_CONTROL + hpd_offsets[hpd], tmp); 281 } 282 283 /** 284 * dce_v8_0_hpd_init - hpd setup callback. 285 * 286 * @adev: amdgpu_device pointer 287 * 288 * Setup the hpd pins used by the card (evergreen+). 289 * Enable the pin, set the polarity, and enable the hpd interrupts. 290 */ 291 static void dce_v8_0_hpd_init(struct amdgpu_device *adev) 292 { 293 struct drm_device *dev = adev_to_drm(adev); 294 struct drm_connector *connector; 295 struct drm_connector_list_iter iter; 296 u32 tmp; 297 298 drm_connector_list_iter_begin(dev, &iter); 299 drm_for_each_connector_iter(connector, &iter) { 300 struct amdgpu_connector *amdgpu_connector = to_amdgpu_connector(connector); 301 302 if (amdgpu_connector->hpd.hpd >= adev->mode_info.num_hpd) 303 continue; 304 305 tmp = RREG32(mmDC_HPD1_CONTROL + hpd_offsets[amdgpu_connector->hpd.hpd]); 306 tmp |= DC_HPD1_CONTROL__DC_HPD1_EN_MASK; 307 WREG32(mmDC_HPD1_CONTROL + hpd_offsets[amdgpu_connector->hpd.hpd], tmp); 308 309 if (connector->connector_type == DRM_MODE_CONNECTOR_eDP || 310 connector->connector_type == DRM_MODE_CONNECTOR_LVDS) { 311 /* don't try to enable hpd on eDP or LVDS avoid breaking the 312 * aux dp channel on imac and help (but not completely fix) 313 * https://bugzilla.redhat.com/show_bug.cgi?id=726143 314 * also avoid interrupt storms during dpms. 315 */ 316 tmp = RREG32(mmDC_HPD1_INT_CONTROL + hpd_offsets[amdgpu_connector->hpd.hpd]); 317 tmp &= ~DC_HPD1_INT_CONTROL__DC_HPD1_INT_EN_MASK; 318 WREG32(mmDC_HPD1_INT_CONTROL + hpd_offsets[amdgpu_connector->hpd.hpd], tmp); 319 continue; 320 } 321 322 dce_v8_0_hpd_int_ack(adev, amdgpu_connector->hpd.hpd); 323 dce_v8_0_hpd_set_polarity(adev, amdgpu_connector->hpd.hpd); 324 amdgpu_irq_get(adev, &adev->hpd_irq, amdgpu_connector->hpd.hpd); 325 } 326 drm_connector_list_iter_end(&iter); 327 } 328 329 /** 330 * dce_v8_0_hpd_fini - hpd tear down callback. 331 * 332 * @adev: amdgpu_device pointer 333 * 334 * Tear down the hpd pins used by the card (evergreen+). 335 * Disable the hpd interrupts. 336 */ 337 static void dce_v8_0_hpd_fini(struct amdgpu_device *adev) 338 { 339 struct drm_device *dev = adev_to_drm(adev); 340 struct drm_connector *connector; 341 struct drm_connector_list_iter iter; 342 u32 tmp; 343 344 drm_connector_list_iter_begin(dev, &iter); 345 drm_for_each_connector_iter(connector, &iter) { 346 struct amdgpu_connector *amdgpu_connector = to_amdgpu_connector(connector); 347 348 if (amdgpu_connector->hpd.hpd >= adev->mode_info.num_hpd) 349 continue; 350 351 tmp = RREG32(mmDC_HPD1_CONTROL + hpd_offsets[amdgpu_connector->hpd.hpd]); 352 tmp &= ~DC_HPD1_CONTROL__DC_HPD1_EN_MASK; 353 WREG32(mmDC_HPD1_CONTROL + hpd_offsets[amdgpu_connector->hpd.hpd], tmp); 354 355 amdgpu_irq_put(adev, &adev->hpd_irq, amdgpu_connector->hpd.hpd); 356 } 357 drm_connector_list_iter_end(&iter); 358 } 359 360 static u32 dce_v8_0_hpd_get_gpio_reg(struct amdgpu_device *adev) 361 { 362 return mmDC_GPIO_HPD_A; 363 } 364 365 static void dce_v8_0_set_vga_render_state(struct amdgpu_device *adev, 366 bool render) 367 { 368 u32 tmp; 369 370 /* Lockout access through VGA aperture*/ 371 tmp = RREG32(mmVGA_HDP_CONTROL); 372 if (render) 373 tmp = REG_SET_FIELD(tmp, VGA_HDP_CONTROL, VGA_MEMORY_DISABLE, 0); 374 else 375 tmp = REG_SET_FIELD(tmp, VGA_HDP_CONTROL, VGA_MEMORY_DISABLE, 1); 376 WREG32(mmVGA_HDP_CONTROL, tmp); 377 378 /* disable VGA render */ 379 tmp = RREG32(mmVGA_RENDER_CONTROL); 380 if (render) 381 tmp = REG_SET_FIELD(tmp, VGA_RENDER_CONTROL, VGA_VSTATUS_CNTL, 1); 382 else 383 tmp = REG_SET_FIELD(tmp, VGA_RENDER_CONTROL, VGA_VSTATUS_CNTL, 0); 384 WREG32(mmVGA_RENDER_CONTROL, tmp); 385 } 386 387 static int dce_v8_0_get_num_crtc(struct amdgpu_device *adev) 388 { 389 int num_crtc = 0; 390 391 switch (adev->asic_type) { 392 case CHIP_BONAIRE: 393 case CHIP_HAWAII: 394 num_crtc = 6; 395 break; 396 case CHIP_KAVERI: 397 num_crtc = 4; 398 break; 399 case CHIP_KABINI: 400 case CHIP_MULLINS: 401 num_crtc = 2; 402 break; 403 default: 404 num_crtc = 0; 405 } 406 return num_crtc; 407 } 408 409 void dce_v8_0_disable_dce(struct amdgpu_device *adev) 410 { 411 /*Disable VGA render and enabled crtc, if has DCE engine*/ 412 if (amdgpu_atombios_has_dce_engine_info(adev)) { 413 u32 tmp; 414 int crtc_enabled, i; 415 416 dce_v8_0_set_vga_render_state(adev, false); 417 418 /*Disable crtc*/ 419 for (i = 0; i < dce_v8_0_get_num_crtc(adev); i++) { 420 crtc_enabled = REG_GET_FIELD(RREG32(mmCRTC_CONTROL + crtc_offsets[i]), 421 CRTC_CONTROL, CRTC_MASTER_EN); 422 if (crtc_enabled) { 423 WREG32(mmCRTC_UPDATE_LOCK + crtc_offsets[i], 1); 424 tmp = RREG32(mmCRTC_CONTROL + crtc_offsets[i]); 425 tmp = REG_SET_FIELD(tmp, CRTC_CONTROL, CRTC_MASTER_EN, 0); 426 WREG32(mmCRTC_CONTROL + crtc_offsets[i], tmp); 427 WREG32(mmCRTC_UPDATE_LOCK + crtc_offsets[i], 0); 428 } 429 } 430 } 431 } 432 433 static void dce_v8_0_program_fmt(struct drm_encoder *encoder) 434 { 435 struct drm_device *dev = encoder->dev; 436 struct amdgpu_device *adev = drm_to_adev(dev); 437 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 438 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(encoder->crtc); 439 struct drm_connector *connector = amdgpu_get_connector_for_encoder(encoder); 440 int bpc = 0; 441 u32 tmp = 0; 442 enum amdgpu_connector_dither dither = AMDGPU_FMT_DITHER_DISABLE; 443 444 if (connector) { 445 struct amdgpu_connector *amdgpu_connector = to_amdgpu_connector(connector); 446 bpc = amdgpu_connector_get_monitor_bpc(connector); 447 dither = amdgpu_connector->dither; 448 } 449 450 /* LVDS/eDP FMT is set up by atom */ 451 if (amdgpu_encoder->devices & ATOM_DEVICE_LCD_SUPPORT) 452 return; 453 454 /* not needed for analog */ 455 if ((amdgpu_encoder->encoder_id == ENCODER_OBJECT_ID_INTERNAL_KLDSCP_DAC1) || 456 (amdgpu_encoder->encoder_id == ENCODER_OBJECT_ID_INTERNAL_KLDSCP_DAC2)) 457 return; 458 459 if (bpc == 0) 460 return; 461 462 switch (bpc) { 463 case 6: 464 if (dither == AMDGPU_FMT_DITHER_ENABLE) 465 /* XXX sort out optimal dither settings */ 466 tmp |= (FMT_BIT_DEPTH_CONTROL__FMT_FRAME_RANDOM_ENABLE_MASK | 467 FMT_BIT_DEPTH_CONTROL__FMT_HIGHPASS_RANDOM_ENABLE_MASK | 468 FMT_BIT_DEPTH_CONTROL__FMT_SPATIAL_DITHER_EN_MASK | 469 (0 << FMT_BIT_DEPTH_CONTROL__FMT_SPATIAL_DITHER_DEPTH__SHIFT)); 470 else 471 tmp |= (FMT_BIT_DEPTH_CONTROL__FMT_TRUNCATE_EN_MASK | 472 (0 << FMT_BIT_DEPTH_CONTROL__FMT_TRUNCATE_DEPTH__SHIFT)); 473 break; 474 case 8: 475 if (dither == AMDGPU_FMT_DITHER_ENABLE) 476 /* XXX sort out optimal dither settings */ 477 tmp |= (FMT_BIT_DEPTH_CONTROL__FMT_FRAME_RANDOM_ENABLE_MASK | 478 FMT_BIT_DEPTH_CONTROL__FMT_HIGHPASS_RANDOM_ENABLE_MASK | 479 FMT_BIT_DEPTH_CONTROL__FMT_RGB_RANDOM_ENABLE_MASK | 480 FMT_BIT_DEPTH_CONTROL__FMT_SPATIAL_DITHER_EN_MASK | 481 (1 << FMT_BIT_DEPTH_CONTROL__FMT_SPATIAL_DITHER_DEPTH__SHIFT)); 482 else 483 tmp |= (FMT_BIT_DEPTH_CONTROL__FMT_TRUNCATE_EN_MASK | 484 (1 << FMT_BIT_DEPTH_CONTROL__FMT_TRUNCATE_DEPTH__SHIFT)); 485 break; 486 case 10: 487 if (dither == AMDGPU_FMT_DITHER_ENABLE) 488 /* XXX sort out optimal dither settings */ 489 tmp |= (FMT_BIT_DEPTH_CONTROL__FMT_FRAME_RANDOM_ENABLE_MASK | 490 FMT_BIT_DEPTH_CONTROL__FMT_HIGHPASS_RANDOM_ENABLE_MASK | 491 FMT_BIT_DEPTH_CONTROL__FMT_RGB_RANDOM_ENABLE_MASK | 492 FMT_BIT_DEPTH_CONTROL__FMT_SPATIAL_DITHER_EN_MASK | 493 (2 << FMT_BIT_DEPTH_CONTROL__FMT_SPATIAL_DITHER_DEPTH__SHIFT)); 494 else 495 tmp |= (FMT_BIT_DEPTH_CONTROL__FMT_TRUNCATE_EN_MASK | 496 (2 << FMT_BIT_DEPTH_CONTROL__FMT_TRUNCATE_DEPTH__SHIFT)); 497 break; 498 default: 499 /* not needed */ 500 break; 501 } 502 503 WREG32(mmFMT_BIT_DEPTH_CONTROL + amdgpu_crtc->crtc_offset, tmp); 504 } 505 506 507 /* display watermark setup */ 508 /** 509 * dce_v8_0_line_buffer_adjust - Set up the line buffer 510 * 511 * @adev: amdgpu_device pointer 512 * @amdgpu_crtc: the selected display controller 513 * @mode: the current display mode on the selected display 514 * controller 515 * 516 * Setup up the line buffer allocation for 517 * the selected display controller (CIK). 518 * Returns the line buffer size in pixels. 519 */ 520 static u32 dce_v8_0_line_buffer_adjust(struct amdgpu_device *adev, 521 struct amdgpu_crtc *amdgpu_crtc, 522 struct drm_display_mode *mode) 523 { 524 u32 tmp, buffer_alloc, i; 525 u32 pipe_offset = amdgpu_crtc->crtc_id * 0x8; 526 /* 527 * Line Buffer Setup 528 * There are 6 line buffers, one for each display controllers. 529 * There are 3 partitions per LB. Select the number of partitions 530 * to enable based on the display width. For display widths larger 531 * than 4096, you need use to use 2 display controllers and combine 532 * them using the stereo blender. 533 */ 534 if (amdgpu_crtc->base.enabled && mode) { 535 if (mode->crtc_hdisplay < 1920) { 536 tmp = 1; 537 buffer_alloc = 2; 538 } else if (mode->crtc_hdisplay < 2560) { 539 tmp = 2; 540 buffer_alloc = 2; 541 } else if (mode->crtc_hdisplay < 4096) { 542 tmp = 0; 543 buffer_alloc = (adev->flags & AMD_IS_APU) ? 2 : 4; 544 } else { 545 DRM_DEBUG_KMS("Mode too big for LB!\n"); 546 tmp = 0; 547 buffer_alloc = (adev->flags & AMD_IS_APU) ? 2 : 4; 548 } 549 } else { 550 tmp = 1; 551 buffer_alloc = 0; 552 } 553 554 WREG32(mmLB_MEMORY_CTRL + amdgpu_crtc->crtc_offset, 555 (tmp << LB_MEMORY_CTRL__LB_MEMORY_CONFIG__SHIFT) | 556 (0x6B0 << LB_MEMORY_CTRL__LB_MEMORY_SIZE__SHIFT)); 557 558 WREG32(mmPIPE0_DMIF_BUFFER_CONTROL + pipe_offset, 559 (buffer_alloc << PIPE0_DMIF_BUFFER_CONTROL__DMIF_BUFFERS_ALLOCATED__SHIFT)); 560 for (i = 0; i < adev->usec_timeout; i++) { 561 if (RREG32(mmPIPE0_DMIF_BUFFER_CONTROL + pipe_offset) & 562 PIPE0_DMIF_BUFFER_CONTROL__DMIF_BUFFERS_ALLOCATION_COMPLETED_MASK) 563 break; 564 udelay(1); 565 } 566 567 if (amdgpu_crtc->base.enabled && mode) { 568 switch (tmp) { 569 case 0: 570 default: 571 return 4096 * 2; 572 case 1: 573 return 1920 * 2; 574 case 2: 575 return 2560 * 2; 576 } 577 } 578 579 /* controller not enabled, so no lb used */ 580 return 0; 581 } 582 583 /** 584 * cik_get_number_of_dram_channels - get the number of dram channels 585 * 586 * @adev: amdgpu_device pointer 587 * 588 * Look up the number of video ram channels (CIK). 589 * Used for display watermark bandwidth calculations 590 * Returns the number of dram channels 591 */ 592 static u32 cik_get_number_of_dram_channels(struct amdgpu_device *adev) 593 { 594 u32 tmp = RREG32(mmMC_SHARED_CHMAP); 595 596 switch ((tmp & MC_SHARED_CHMAP__NOOFCHAN_MASK) >> MC_SHARED_CHMAP__NOOFCHAN__SHIFT) { 597 case 0: 598 default: 599 return 1; 600 case 1: 601 return 2; 602 case 2: 603 return 4; 604 case 3: 605 return 8; 606 case 4: 607 return 3; 608 case 5: 609 return 6; 610 case 6: 611 return 10; 612 case 7: 613 return 12; 614 case 8: 615 return 16; 616 } 617 } 618 619 struct dce8_wm_params { 620 u32 dram_channels; /* number of dram channels */ 621 u32 yclk; /* bandwidth per dram data pin in kHz */ 622 u32 sclk; /* engine clock in kHz */ 623 u32 disp_clk; /* display clock in kHz */ 624 u32 src_width; /* viewport width */ 625 u32 active_time; /* active display time in ns */ 626 u32 blank_time; /* blank time in ns */ 627 bool interlaced; /* mode is interlaced */ 628 fixed20_12 vsc; /* vertical scale ratio */ 629 u32 num_heads; /* number of active crtcs */ 630 u32 bytes_per_pixel; /* bytes per pixel display + overlay */ 631 u32 lb_size; /* line buffer allocated to pipe */ 632 u32 vtaps; /* vertical scaler taps */ 633 }; 634 635 /** 636 * dce_v8_0_dram_bandwidth - get the dram bandwidth 637 * 638 * @wm: watermark calculation data 639 * 640 * Calculate the raw dram bandwidth (CIK). 641 * Used for display watermark bandwidth calculations 642 * Returns the dram bandwidth in MBytes/s 643 */ 644 static u32 dce_v8_0_dram_bandwidth(struct dce8_wm_params *wm) 645 { 646 /* Calculate raw DRAM Bandwidth */ 647 fixed20_12 dram_efficiency; /* 0.7 */ 648 fixed20_12 yclk, dram_channels, bandwidth; 649 fixed20_12 a; 650 651 a.full = dfixed_const(1000); 652 yclk.full = dfixed_const(wm->yclk); 653 yclk.full = dfixed_div(yclk, a); 654 dram_channels.full = dfixed_const(wm->dram_channels * 4); 655 a.full = dfixed_const(10); 656 dram_efficiency.full = dfixed_const(7); 657 dram_efficiency.full = dfixed_div(dram_efficiency, a); 658 bandwidth.full = dfixed_mul(dram_channels, yclk); 659 bandwidth.full = dfixed_mul(bandwidth, dram_efficiency); 660 661 return dfixed_trunc(bandwidth); 662 } 663 664 /** 665 * dce_v8_0_dram_bandwidth_for_display - get the dram bandwidth for display 666 * 667 * @wm: watermark calculation data 668 * 669 * Calculate the dram bandwidth used for display (CIK). 670 * Used for display watermark bandwidth calculations 671 * Returns the dram bandwidth for display in MBytes/s 672 */ 673 static u32 dce_v8_0_dram_bandwidth_for_display(struct dce8_wm_params *wm) 674 { 675 /* Calculate DRAM Bandwidth and the part allocated to display. */ 676 fixed20_12 disp_dram_allocation; /* 0.3 to 0.7 */ 677 fixed20_12 yclk, dram_channels, bandwidth; 678 fixed20_12 a; 679 680 a.full = dfixed_const(1000); 681 yclk.full = dfixed_const(wm->yclk); 682 yclk.full = dfixed_div(yclk, a); 683 dram_channels.full = dfixed_const(wm->dram_channels * 4); 684 a.full = dfixed_const(10); 685 disp_dram_allocation.full = dfixed_const(3); /* XXX worse case value 0.3 */ 686 disp_dram_allocation.full = dfixed_div(disp_dram_allocation, a); 687 bandwidth.full = dfixed_mul(dram_channels, yclk); 688 bandwidth.full = dfixed_mul(bandwidth, disp_dram_allocation); 689 690 return dfixed_trunc(bandwidth); 691 } 692 693 /** 694 * dce_v8_0_data_return_bandwidth - get the data return bandwidth 695 * 696 * @wm: watermark calculation data 697 * 698 * Calculate the data return bandwidth used for display (CIK). 699 * Used for display watermark bandwidth calculations 700 * Returns the data return bandwidth in MBytes/s 701 */ 702 static u32 dce_v8_0_data_return_bandwidth(struct dce8_wm_params *wm) 703 { 704 /* Calculate the display Data return Bandwidth */ 705 fixed20_12 return_efficiency; /* 0.8 */ 706 fixed20_12 sclk, bandwidth; 707 fixed20_12 a; 708 709 a.full = dfixed_const(1000); 710 sclk.full = dfixed_const(wm->sclk); 711 sclk.full = dfixed_div(sclk, a); 712 a.full = dfixed_const(10); 713 return_efficiency.full = dfixed_const(8); 714 return_efficiency.full = dfixed_div(return_efficiency, a); 715 a.full = dfixed_const(32); 716 bandwidth.full = dfixed_mul(a, sclk); 717 bandwidth.full = dfixed_mul(bandwidth, return_efficiency); 718 719 return dfixed_trunc(bandwidth); 720 } 721 722 /** 723 * dce_v8_0_dmif_request_bandwidth - get the dmif bandwidth 724 * 725 * @wm: watermark calculation data 726 * 727 * Calculate the dmif bandwidth used for display (CIK). 728 * Used for display watermark bandwidth calculations 729 * Returns the dmif bandwidth in MBytes/s 730 */ 731 static u32 dce_v8_0_dmif_request_bandwidth(struct dce8_wm_params *wm) 732 { 733 /* Calculate the DMIF Request Bandwidth */ 734 fixed20_12 disp_clk_request_efficiency; /* 0.8 */ 735 fixed20_12 disp_clk, bandwidth; 736 fixed20_12 a, b; 737 738 a.full = dfixed_const(1000); 739 disp_clk.full = dfixed_const(wm->disp_clk); 740 disp_clk.full = dfixed_div(disp_clk, a); 741 a.full = dfixed_const(32); 742 b.full = dfixed_mul(a, disp_clk); 743 744 a.full = dfixed_const(10); 745 disp_clk_request_efficiency.full = dfixed_const(8); 746 disp_clk_request_efficiency.full = dfixed_div(disp_clk_request_efficiency, a); 747 748 bandwidth.full = dfixed_mul(b, disp_clk_request_efficiency); 749 750 return dfixed_trunc(bandwidth); 751 } 752 753 /** 754 * dce_v8_0_available_bandwidth - get the min available bandwidth 755 * 756 * @wm: watermark calculation data 757 * 758 * Calculate the min available bandwidth used for display (CIK). 759 * Used for display watermark bandwidth calculations 760 * Returns the min available bandwidth in MBytes/s 761 */ 762 static u32 dce_v8_0_available_bandwidth(struct dce8_wm_params *wm) 763 { 764 /* Calculate the Available bandwidth. Display can use this temporarily but not in average. */ 765 u32 dram_bandwidth = dce_v8_0_dram_bandwidth(wm); 766 u32 data_return_bandwidth = dce_v8_0_data_return_bandwidth(wm); 767 u32 dmif_req_bandwidth = dce_v8_0_dmif_request_bandwidth(wm); 768 769 return min(dram_bandwidth, min(data_return_bandwidth, dmif_req_bandwidth)); 770 } 771 772 /** 773 * dce_v8_0_average_bandwidth - get the average available bandwidth 774 * 775 * @wm: watermark calculation data 776 * 777 * Calculate the average available bandwidth used for display (CIK). 778 * Used for display watermark bandwidth calculations 779 * Returns the average available bandwidth in MBytes/s 780 */ 781 static u32 dce_v8_0_average_bandwidth(struct dce8_wm_params *wm) 782 { 783 /* Calculate the display mode Average Bandwidth 784 * DisplayMode should contain the source and destination dimensions, 785 * timing, etc. 786 */ 787 fixed20_12 bpp; 788 fixed20_12 line_time; 789 fixed20_12 src_width; 790 fixed20_12 bandwidth; 791 fixed20_12 a; 792 793 a.full = dfixed_const(1000); 794 line_time.full = dfixed_const(wm->active_time + wm->blank_time); 795 line_time.full = dfixed_div(line_time, a); 796 bpp.full = dfixed_const(wm->bytes_per_pixel); 797 src_width.full = dfixed_const(wm->src_width); 798 bandwidth.full = dfixed_mul(src_width, bpp); 799 bandwidth.full = dfixed_mul(bandwidth, wm->vsc); 800 bandwidth.full = dfixed_div(bandwidth, line_time); 801 802 return dfixed_trunc(bandwidth); 803 } 804 805 /** 806 * dce_v8_0_latency_watermark - get the latency watermark 807 * 808 * @wm: watermark calculation data 809 * 810 * Calculate the latency watermark (CIK). 811 * Used for display watermark bandwidth calculations 812 * Returns the latency watermark in ns 813 */ 814 static u32 dce_v8_0_latency_watermark(struct dce8_wm_params *wm) 815 { 816 /* First calculate the latency in ns */ 817 u32 mc_latency = 2000; /* 2000 ns. */ 818 u32 available_bandwidth = dce_v8_0_available_bandwidth(wm); 819 u32 worst_chunk_return_time = (512 * 8 * 1000) / available_bandwidth; 820 u32 cursor_line_pair_return_time = (128 * 4 * 1000) / available_bandwidth; 821 u32 dc_latency = 40000000 / wm->disp_clk; /* dc pipe latency */ 822 u32 other_heads_data_return_time = ((wm->num_heads + 1) * worst_chunk_return_time) + 823 (wm->num_heads * cursor_line_pair_return_time); 824 u32 latency = mc_latency + other_heads_data_return_time + dc_latency; 825 u32 max_src_lines_per_dst_line, lb_fill_bw, line_fill_time; 826 u32 tmp, dmif_size = 12288; 827 fixed20_12 a, b, c; 828 829 if (wm->num_heads == 0) 830 return 0; 831 832 a.full = dfixed_const(2); 833 b.full = dfixed_const(1); 834 if ((wm->vsc.full > a.full) || 835 ((wm->vsc.full > b.full) && (wm->vtaps >= 3)) || 836 (wm->vtaps >= 5) || 837 ((wm->vsc.full >= a.full) && wm->interlaced)) 838 max_src_lines_per_dst_line = 4; 839 else 840 max_src_lines_per_dst_line = 2; 841 842 a.full = dfixed_const(available_bandwidth); 843 b.full = dfixed_const(wm->num_heads); 844 a.full = dfixed_div(a, b); 845 tmp = div_u64((u64) dmif_size * (u64) wm->disp_clk, mc_latency + 512); 846 tmp = min(dfixed_trunc(a), tmp); 847 848 lb_fill_bw = min(tmp, wm->disp_clk * wm->bytes_per_pixel / 1000); 849 850 a.full = dfixed_const(max_src_lines_per_dst_line * wm->src_width * wm->bytes_per_pixel); 851 b.full = dfixed_const(1000); 852 c.full = dfixed_const(lb_fill_bw); 853 b.full = dfixed_div(c, b); 854 a.full = dfixed_div(a, b); 855 line_fill_time = dfixed_trunc(a); 856 857 if (line_fill_time < wm->active_time) 858 return latency; 859 else 860 return latency + (line_fill_time - wm->active_time); 861 862 } 863 864 /** 865 * dce_v8_0_average_bandwidth_vs_dram_bandwidth_for_display - check 866 * average and available dram bandwidth 867 * 868 * @wm: watermark calculation data 869 * 870 * Check if the display average bandwidth fits in the display 871 * dram bandwidth (CIK). 872 * Used for display watermark bandwidth calculations 873 * Returns true if the display fits, false if not. 874 */ 875 static bool dce_v8_0_average_bandwidth_vs_dram_bandwidth_for_display(struct dce8_wm_params *wm) 876 { 877 if (dce_v8_0_average_bandwidth(wm) <= 878 (dce_v8_0_dram_bandwidth_for_display(wm) / wm->num_heads)) 879 return true; 880 else 881 return false; 882 } 883 884 /** 885 * dce_v8_0_average_bandwidth_vs_available_bandwidth - check 886 * average and available bandwidth 887 * 888 * @wm: watermark calculation data 889 * 890 * Check if the display average bandwidth fits in the display 891 * available bandwidth (CIK). 892 * Used for display watermark bandwidth calculations 893 * Returns true if the display fits, false if not. 894 */ 895 static bool dce_v8_0_average_bandwidth_vs_available_bandwidth(struct dce8_wm_params *wm) 896 { 897 if (dce_v8_0_average_bandwidth(wm) <= 898 (dce_v8_0_available_bandwidth(wm) / wm->num_heads)) 899 return true; 900 else 901 return false; 902 } 903 904 /** 905 * dce_v8_0_check_latency_hiding - check latency hiding 906 * 907 * @wm: watermark calculation data 908 * 909 * Check latency hiding (CIK). 910 * Used for display watermark bandwidth calculations 911 * Returns true if the display fits, false if not. 912 */ 913 static bool dce_v8_0_check_latency_hiding(struct dce8_wm_params *wm) 914 { 915 u32 lb_partitions = wm->lb_size / wm->src_width; 916 u32 line_time = wm->active_time + wm->blank_time; 917 u32 latency_tolerant_lines; 918 u32 latency_hiding; 919 fixed20_12 a; 920 921 a.full = dfixed_const(1); 922 if (wm->vsc.full > a.full) 923 latency_tolerant_lines = 1; 924 else { 925 if (lb_partitions <= (wm->vtaps + 1)) 926 latency_tolerant_lines = 1; 927 else 928 latency_tolerant_lines = 2; 929 } 930 931 latency_hiding = (latency_tolerant_lines * line_time + wm->blank_time); 932 933 if (dce_v8_0_latency_watermark(wm) <= latency_hiding) 934 return true; 935 else 936 return false; 937 } 938 939 /** 940 * dce_v8_0_program_watermarks - program display watermarks 941 * 942 * @adev: amdgpu_device pointer 943 * @amdgpu_crtc: the selected display controller 944 * @lb_size: line buffer size 945 * @num_heads: number of display controllers in use 946 * 947 * Calculate and program the display watermarks for the 948 * selected display controller (CIK). 949 */ 950 static void dce_v8_0_program_watermarks(struct amdgpu_device *adev, 951 struct amdgpu_crtc *amdgpu_crtc, 952 u32 lb_size, u32 num_heads) 953 { 954 struct drm_display_mode *mode = &amdgpu_crtc->base.mode; 955 struct dce8_wm_params wm_low, wm_high; 956 u32 active_time; 957 u32 line_time = 0; 958 u32 latency_watermark_a = 0, latency_watermark_b = 0; 959 u32 tmp, wm_mask, lb_vblank_lead_lines = 0; 960 961 if (amdgpu_crtc->base.enabled && num_heads && mode) { 962 active_time = (u32) div_u64((u64)mode->crtc_hdisplay * 1000000, 963 (u32)mode->clock); 964 line_time = (u32) div_u64((u64)mode->crtc_htotal * 1000000, 965 (u32)mode->clock); 966 line_time = min_t(u32, line_time, 65535); 967 968 /* watermark for high clocks */ 969 if (adev->pm.dpm_enabled) { 970 wm_high.yclk = 971 amdgpu_dpm_get_mclk(adev, false) * 10; 972 wm_high.sclk = 973 amdgpu_dpm_get_sclk(adev, false) * 10; 974 } else { 975 wm_high.yclk = adev->pm.current_mclk * 10; 976 wm_high.sclk = adev->pm.current_sclk * 10; 977 } 978 979 wm_high.disp_clk = mode->clock; 980 wm_high.src_width = mode->crtc_hdisplay; 981 wm_high.active_time = active_time; 982 wm_high.blank_time = line_time - wm_high.active_time; 983 wm_high.interlaced = false; 984 if (mode->flags & DRM_MODE_FLAG_INTERLACE) 985 wm_high.interlaced = true; 986 wm_high.vsc = amdgpu_crtc->vsc; 987 wm_high.vtaps = 1; 988 if (amdgpu_crtc->rmx_type != RMX_OFF) 989 wm_high.vtaps = 2; 990 wm_high.bytes_per_pixel = 4; /* XXX: get this from fb config */ 991 wm_high.lb_size = lb_size; 992 wm_high.dram_channels = cik_get_number_of_dram_channels(adev); 993 wm_high.num_heads = num_heads; 994 995 /* set for high clocks */ 996 latency_watermark_a = min_t(u32, dce_v8_0_latency_watermark(&wm_high), 65535); 997 998 /* possibly force display priority to high */ 999 /* should really do this at mode validation time... */ 1000 if (!dce_v8_0_average_bandwidth_vs_dram_bandwidth_for_display(&wm_high) || 1001 !dce_v8_0_average_bandwidth_vs_available_bandwidth(&wm_high) || 1002 !dce_v8_0_check_latency_hiding(&wm_high) || 1003 (adev->mode_info.disp_priority == 2)) { 1004 DRM_DEBUG_KMS("force priority to high\n"); 1005 } 1006 1007 /* watermark for low clocks */ 1008 if (adev->pm.dpm_enabled) { 1009 wm_low.yclk = 1010 amdgpu_dpm_get_mclk(adev, true) * 10; 1011 wm_low.sclk = 1012 amdgpu_dpm_get_sclk(adev, true) * 10; 1013 } else { 1014 wm_low.yclk = adev->pm.current_mclk * 10; 1015 wm_low.sclk = adev->pm.current_sclk * 10; 1016 } 1017 1018 wm_low.disp_clk = mode->clock; 1019 wm_low.src_width = mode->crtc_hdisplay; 1020 wm_low.active_time = active_time; 1021 wm_low.blank_time = line_time - wm_low.active_time; 1022 wm_low.interlaced = false; 1023 if (mode->flags & DRM_MODE_FLAG_INTERLACE) 1024 wm_low.interlaced = true; 1025 wm_low.vsc = amdgpu_crtc->vsc; 1026 wm_low.vtaps = 1; 1027 if (amdgpu_crtc->rmx_type != RMX_OFF) 1028 wm_low.vtaps = 2; 1029 wm_low.bytes_per_pixel = 4; /* XXX: get this from fb config */ 1030 wm_low.lb_size = lb_size; 1031 wm_low.dram_channels = cik_get_number_of_dram_channels(adev); 1032 wm_low.num_heads = num_heads; 1033 1034 /* set for low clocks */ 1035 latency_watermark_b = min_t(u32, dce_v8_0_latency_watermark(&wm_low), 65535); 1036 1037 /* possibly force display priority to high */ 1038 /* should really do this at mode validation time... */ 1039 if (!dce_v8_0_average_bandwidth_vs_dram_bandwidth_for_display(&wm_low) || 1040 !dce_v8_0_average_bandwidth_vs_available_bandwidth(&wm_low) || 1041 !dce_v8_0_check_latency_hiding(&wm_low) || 1042 (adev->mode_info.disp_priority == 2)) { 1043 DRM_DEBUG_KMS("force priority to high\n"); 1044 } 1045 lb_vblank_lead_lines = DIV_ROUND_UP(lb_size, mode->crtc_hdisplay); 1046 } 1047 1048 /* select wm A */ 1049 wm_mask = RREG32(mmDPG_WATERMARK_MASK_CONTROL + amdgpu_crtc->crtc_offset); 1050 tmp = wm_mask; 1051 tmp &= ~(3 << DPG_WATERMARK_MASK_CONTROL__URGENCY_WATERMARK_MASK__SHIFT); 1052 tmp |= (1 << DPG_WATERMARK_MASK_CONTROL__URGENCY_WATERMARK_MASK__SHIFT); 1053 WREG32(mmDPG_WATERMARK_MASK_CONTROL + amdgpu_crtc->crtc_offset, tmp); 1054 WREG32(mmDPG_PIPE_URGENCY_CONTROL + amdgpu_crtc->crtc_offset, 1055 ((latency_watermark_a << DPG_PIPE_URGENCY_CONTROL__URGENCY_LOW_WATERMARK__SHIFT) | 1056 (line_time << DPG_PIPE_URGENCY_CONTROL__URGENCY_HIGH_WATERMARK__SHIFT))); 1057 /* select wm B */ 1058 tmp = RREG32(mmDPG_WATERMARK_MASK_CONTROL + amdgpu_crtc->crtc_offset); 1059 tmp &= ~(3 << DPG_WATERMARK_MASK_CONTROL__URGENCY_WATERMARK_MASK__SHIFT); 1060 tmp |= (2 << DPG_WATERMARK_MASK_CONTROL__URGENCY_WATERMARK_MASK__SHIFT); 1061 WREG32(mmDPG_WATERMARK_MASK_CONTROL + amdgpu_crtc->crtc_offset, tmp); 1062 WREG32(mmDPG_PIPE_URGENCY_CONTROL + amdgpu_crtc->crtc_offset, 1063 ((latency_watermark_b << DPG_PIPE_URGENCY_CONTROL__URGENCY_LOW_WATERMARK__SHIFT) | 1064 (line_time << DPG_PIPE_URGENCY_CONTROL__URGENCY_HIGH_WATERMARK__SHIFT))); 1065 /* restore original selection */ 1066 WREG32(mmDPG_WATERMARK_MASK_CONTROL + amdgpu_crtc->crtc_offset, wm_mask); 1067 1068 /* save values for DPM */ 1069 amdgpu_crtc->line_time = line_time; 1070 1071 /* Save number of lines the linebuffer leads before the scanout */ 1072 amdgpu_crtc->lb_vblank_lead_lines = lb_vblank_lead_lines; 1073 } 1074 1075 /** 1076 * dce_v8_0_bandwidth_update - program display watermarks 1077 * 1078 * @adev: amdgpu_device pointer 1079 * 1080 * Calculate and program the display watermarks and line 1081 * buffer allocation (CIK). 1082 */ 1083 static void dce_v8_0_bandwidth_update(struct amdgpu_device *adev) 1084 { 1085 struct drm_display_mode *mode = NULL; 1086 u32 num_heads = 0, lb_size; 1087 int i; 1088 1089 amdgpu_display_update_priority(adev); 1090 1091 for (i = 0; i < adev->mode_info.num_crtc; i++) { 1092 if (adev->mode_info.crtcs[i]->base.enabled) 1093 num_heads++; 1094 } 1095 for (i = 0; i < adev->mode_info.num_crtc; i++) { 1096 mode = &adev->mode_info.crtcs[i]->base.mode; 1097 lb_size = dce_v8_0_line_buffer_adjust(adev, adev->mode_info.crtcs[i], mode); 1098 dce_v8_0_program_watermarks(adev, adev->mode_info.crtcs[i], 1099 lb_size, num_heads); 1100 } 1101 } 1102 1103 static void dce_v8_0_audio_get_connected_pins(struct amdgpu_device *adev) 1104 { 1105 int i; 1106 u32 offset, tmp; 1107 1108 for (i = 0; i < adev->mode_info.audio.num_pins; i++) { 1109 offset = adev->mode_info.audio.pin[i].offset; 1110 tmp = RREG32_AUDIO_ENDPT(offset, 1111 ixAZALIA_F0_CODEC_PIN_CONTROL_RESPONSE_CONFIGURATION_DEFAULT); 1112 if (((tmp & 1113 AZALIA_F0_CODEC_PIN_CONTROL_RESPONSE_CONFIGURATION_DEFAULT__PORT_CONNECTIVITY_MASK) >> 1114 AZALIA_F0_CODEC_PIN_CONTROL_RESPONSE_CONFIGURATION_DEFAULT__PORT_CONNECTIVITY__SHIFT) == 1) 1115 adev->mode_info.audio.pin[i].connected = false; 1116 else 1117 adev->mode_info.audio.pin[i].connected = true; 1118 } 1119 } 1120 1121 static struct amdgpu_audio_pin *dce_v8_0_audio_get_pin(struct amdgpu_device *adev) 1122 { 1123 int i; 1124 1125 dce_v8_0_audio_get_connected_pins(adev); 1126 1127 for (i = 0; i < adev->mode_info.audio.num_pins; i++) { 1128 if (adev->mode_info.audio.pin[i].connected) 1129 return &adev->mode_info.audio.pin[i]; 1130 } 1131 DRM_ERROR("No connected audio pins found!\n"); 1132 return NULL; 1133 } 1134 1135 static void dce_v8_0_afmt_audio_select_pin(struct drm_encoder *encoder) 1136 { 1137 struct amdgpu_device *adev = drm_to_adev(encoder->dev); 1138 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 1139 struct amdgpu_encoder_atom_dig *dig = amdgpu_encoder->enc_priv; 1140 u32 offset; 1141 1142 if (!dig || !dig->afmt || !dig->afmt->pin) 1143 return; 1144 1145 offset = dig->afmt->offset; 1146 1147 WREG32(mmAFMT_AUDIO_SRC_CONTROL + offset, 1148 (dig->afmt->pin->id << AFMT_AUDIO_SRC_CONTROL__AFMT_AUDIO_SRC_SELECT__SHIFT)); 1149 } 1150 1151 static void dce_v8_0_audio_write_latency_fields(struct drm_encoder *encoder, 1152 struct drm_display_mode *mode) 1153 { 1154 struct drm_device *dev = encoder->dev; 1155 struct amdgpu_device *adev = drm_to_adev(dev); 1156 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 1157 struct amdgpu_encoder_atom_dig *dig = amdgpu_encoder->enc_priv; 1158 struct drm_connector *connector; 1159 struct drm_connector_list_iter iter; 1160 struct amdgpu_connector *amdgpu_connector = NULL; 1161 u32 tmp = 0, offset; 1162 1163 if (!dig || !dig->afmt || !dig->afmt->pin) 1164 return; 1165 1166 offset = dig->afmt->pin->offset; 1167 1168 drm_connector_list_iter_begin(dev, &iter); 1169 drm_for_each_connector_iter(connector, &iter) { 1170 if (connector->encoder == encoder) { 1171 amdgpu_connector = to_amdgpu_connector(connector); 1172 break; 1173 } 1174 } 1175 drm_connector_list_iter_end(&iter); 1176 1177 if (!amdgpu_connector) { 1178 DRM_ERROR("Couldn't find encoder's connector\n"); 1179 return; 1180 } 1181 1182 if (mode->flags & DRM_MODE_FLAG_INTERLACE) { 1183 if (connector->latency_present[1]) 1184 tmp = 1185 (connector->video_latency[1] << 1186 AZALIA_F0_CODEC_PIN_CONTROL_RESPONSE_LIPSYNC__VIDEO_LIPSYNC__SHIFT) | 1187 (connector->audio_latency[1] << 1188 AZALIA_F0_CODEC_PIN_CONTROL_RESPONSE_LIPSYNC__AUDIO_LIPSYNC__SHIFT); 1189 else 1190 tmp = 1191 (0 << 1192 AZALIA_F0_CODEC_PIN_CONTROL_RESPONSE_LIPSYNC__VIDEO_LIPSYNC__SHIFT) | 1193 (0 << 1194 AZALIA_F0_CODEC_PIN_CONTROL_RESPONSE_LIPSYNC__AUDIO_LIPSYNC__SHIFT); 1195 } else { 1196 if (connector->latency_present[0]) 1197 tmp = 1198 (connector->video_latency[0] << 1199 AZALIA_F0_CODEC_PIN_CONTROL_RESPONSE_LIPSYNC__VIDEO_LIPSYNC__SHIFT) | 1200 (connector->audio_latency[0] << 1201 AZALIA_F0_CODEC_PIN_CONTROL_RESPONSE_LIPSYNC__AUDIO_LIPSYNC__SHIFT); 1202 else 1203 tmp = 1204 (0 << 1205 AZALIA_F0_CODEC_PIN_CONTROL_RESPONSE_LIPSYNC__VIDEO_LIPSYNC__SHIFT) | 1206 (0 << 1207 AZALIA_F0_CODEC_PIN_CONTROL_RESPONSE_LIPSYNC__AUDIO_LIPSYNC__SHIFT); 1208 1209 } 1210 WREG32_AUDIO_ENDPT(offset, ixAZALIA_F0_CODEC_PIN_CONTROL_RESPONSE_LIPSYNC, tmp); 1211 } 1212 1213 static void dce_v8_0_audio_write_speaker_allocation(struct drm_encoder *encoder) 1214 { 1215 struct drm_device *dev = encoder->dev; 1216 struct amdgpu_device *adev = drm_to_adev(dev); 1217 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 1218 struct amdgpu_encoder_atom_dig *dig = amdgpu_encoder->enc_priv; 1219 struct drm_connector *connector; 1220 struct drm_connector_list_iter iter; 1221 struct amdgpu_connector *amdgpu_connector = NULL; 1222 u32 offset, tmp; 1223 u8 *sadb = NULL; 1224 int sad_count; 1225 1226 if (!dig || !dig->afmt || !dig->afmt->pin) 1227 return; 1228 1229 offset = dig->afmt->pin->offset; 1230 1231 drm_connector_list_iter_begin(dev, &iter); 1232 drm_for_each_connector_iter(connector, &iter) { 1233 if (connector->encoder == encoder) { 1234 amdgpu_connector = to_amdgpu_connector(connector); 1235 break; 1236 } 1237 } 1238 drm_connector_list_iter_end(&iter); 1239 1240 if (!amdgpu_connector) { 1241 DRM_ERROR("Couldn't find encoder's connector\n"); 1242 return; 1243 } 1244 1245 sad_count = drm_edid_to_speaker_allocation(drm_edid_raw(amdgpu_connector->edid), &sadb); 1246 if (sad_count < 0) { 1247 DRM_ERROR("Couldn't read Speaker Allocation Data Block: %d\n", sad_count); 1248 sad_count = 0; 1249 } 1250 1251 /* program the speaker allocation */ 1252 tmp = RREG32_AUDIO_ENDPT(offset, ixAZALIA_F0_CODEC_PIN_CONTROL_CHANNEL_SPEAKER); 1253 tmp &= ~(AZALIA_F0_CODEC_PIN_CONTROL_CHANNEL_SPEAKER__DP_CONNECTION_MASK | 1254 AZALIA_F0_CODEC_PIN_CONTROL_CHANNEL_SPEAKER__SPEAKER_ALLOCATION_MASK); 1255 /* set HDMI mode */ 1256 tmp |= AZALIA_F0_CODEC_PIN_CONTROL_CHANNEL_SPEAKER__HDMI_CONNECTION_MASK; 1257 if (sad_count) 1258 tmp |= (sadb[0] << AZALIA_F0_CODEC_PIN_CONTROL_CHANNEL_SPEAKER__SPEAKER_ALLOCATION__SHIFT); 1259 else 1260 tmp |= (5 << AZALIA_F0_CODEC_PIN_CONTROL_CHANNEL_SPEAKER__SPEAKER_ALLOCATION__SHIFT); /* stereo */ 1261 WREG32_AUDIO_ENDPT(offset, ixAZALIA_F0_CODEC_PIN_CONTROL_CHANNEL_SPEAKER, tmp); 1262 1263 kfree(sadb); 1264 } 1265 1266 static void dce_v8_0_audio_write_sad_regs(struct drm_encoder *encoder) 1267 { 1268 struct drm_device *dev = encoder->dev; 1269 struct amdgpu_device *adev = drm_to_adev(dev); 1270 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 1271 struct amdgpu_encoder_atom_dig *dig = amdgpu_encoder->enc_priv; 1272 u32 offset; 1273 struct drm_connector *connector; 1274 struct drm_connector_list_iter iter; 1275 struct amdgpu_connector *amdgpu_connector = NULL; 1276 struct cea_sad *sads; 1277 int i, sad_count; 1278 1279 static const u16 eld_reg_to_type[][2] = { 1280 { ixAZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR0, HDMI_AUDIO_CODING_TYPE_PCM }, 1281 { ixAZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR1, HDMI_AUDIO_CODING_TYPE_AC3 }, 1282 { ixAZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR2, HDMI_AUDIO_CODING_TYPE_MPEG1 }, 1283 { ixAZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR3, HDMI_AUDIO_CODING_TYPE_MP3 }, 1284 { ixAZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR4, HDMI_AUDIO_CODING_TYPE_MPEG2 }, 1285 { ixAZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR5, HDMI_AUDIO_CODING_TYPE_AAC_LC }, 1286 { ixAZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR6, HDMI_AUDIO_CODING_TYPE_DTS }, 1287 { ixAZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR7, HDMI_AUDIO_CODING_TYPE_ATRAC }, 1288 { ixAZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR9, HDMI_AUDIO_CODING_TYPE_EAC3 }, 1289 { ixAZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR10, HDMI_AUDIO_CODING_TYPE_DTS_HD }, 1290 { ixAZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR11, HDMI_AUDIO_CODING_TYPE_MLP }, 1291 { ixAZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR13, HDMI_AUDIO_CODING_TYPE_WMA_PRO }, 1292 }; 1293 1294 if (!dig || !dig->afmt || !dig->afmt->pin) 1295 return; 1296 1297 offset = dig->afmt->pin->offset; 1298 1299 drm_connector_list_iter_begin(dev, &iter); 1300 drm_for_each_connector_iter(connector, &iter) { 1301 if (connector->encoder == encoder) { 1302 amdgpu_connector = to_amdgpu_connector(connector); 1303 break; 1304 } 1305 } 1306 drm_connector_list_iter_end(&iter); 1307 1308 if (!amdgpu_connector) { 1309 DRM_ERROR("Couldn't find encoder's connector\n"); 1310 return; 1311 } 1312 1313 sad_count = drm_edid_to_sad(drm_edid_raw(amdgpu_connector->edid), &sads); 1314 if (sad_count < 0) 1315 DRM_ERROR("Couldn't read SADs: %d\n", sad_count); 1316 if (sad_count <= 0) 1317 return; 1318 BUG_ON(!sads); 1319 1320 for (i = 0; i < ARRAY_SIZE(eld_reg_to_type); i++) { 1321 u32 value = 0; 1322 u8 stereo_freqs = 0; 1323 int max_channels = -1; 1324 int j; 1325 1326 for (j = 0; j < sad_count; j++) { 1327 struct cea_sad *sad = &sads[j]; 1328 1329 if (sad->format == eld_reg_to_type[i][1]) { 1330 if (sad->channels > max_channels) { 1331 value = (sad->channels << 1332 AZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR0__MAX_CHANNELS__SHIFT) | 1333 (sad->byte2 << 1334 AZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR0__DESCRIPTOR_BYTE_2__SHIFT) | 1335 (sad->freq << 1336 AZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR0__SUPPORTED_FREQUENCIES__SHIFT); 1337 max_channels = sad->channels; 1338 } 1339 1340 if (sad->format == HDMI_AUDIO_CODING_TYPE_PCM) 1341 stereo_freqs |= sad->freq; 1342 else 1343 break; 1344 } 1345 } 1346 1347 value |= (stereo_freqs << 1348 AZALIA_F0_CODEC_PIN_CONTROL_AUDIO_DESCRIPTOR0__SUPPORTED_FREQUENCIES_STEREO__SHIFT); 1349 1350 WREG32_AUDIO_ENDPT(offset, eld_reg_to_type[i][0], value); 1351 } 1352 1353 kfree(sads); 1354 } 1355 1356 static void dce_v8_0_audio_enable(struct amdgpu_device *adev, 1357 struct amdgpu_audio_pin *pin, 1358 bool enable) 1359 { 1360 if (!pin) 1361 return; 1362 1363 WREG32_AUDIO_ENDPT(pin->offset, ixAZALIA_F0_CODEC_PIN_CONTROL_HOT_PLUG_CONTROL, 1364 enable ? AZALIA_F0_CODEC_PIN_CONTROL_HOT_PLUG_CONTROL__AUDIO_ENABLED_MASK : 0); 1365 } 1366 1367 static const u32 pin_offsets[7] = { 1368 AUD0_REGISTER_OFFSET, 1369 AUD1_REGISTER_OFFSET, 1370 AUD2_REGISTER_OFFSET, 1371 AUD3_REGISTER_OFFSET, 1372 AUD4_REGISTER_OFFSET, 1373 AUD5_REGISTER_OFFSET, 1374 AUD6_REGISTER_OFFSET, 1375 }; 1376 1377 static int dce_v8_0_audio_init(struct amdgpu_device *adev) 1378 { 1379 int i; 1380 1381 if (!amdgpu_audio) 1382 return 0; 1383 1384 adev->mode_info.audio.enabled = true; 1385 1386 if (adev->asic_type == CHIP_KAVERI) /* KV: 4 streams, 7 endpoints */ 1387 adev->mode_info.audio.num_pins = 7; 1388 else if ((adev->asic_type == CHIP_KABINI) || 1389 (adev->asic_type == CHIP_MULLINS)) /* KB/ML: 2 streams, 3 endpoints */ 1390 adev->mode_info.audio.num_pins = 3; 1391 else if ((adev->asic_type == CHIP_BONAIRE) || 1392 (adev->asic_type == CHIP_HAWAII))/* BN/HW: 6 streams, 7 endpoints */ 1393 adev->mode_info.audio.num_pins = 7; 1394 else 1395 adev->mode_info.audio.num_pins = 3; 1396 1397 for (i = 0; i < adev->mode_info.audio.num_pins; i++) { 1398 adev->mode_info.audio.pin[i].channels = -1; 1399 adev->mode_info.audio.pin[i].rate = -1; 1400 adev->mode_info.audio.pin[i].bits_per_sample = -1; 1401 adev->mode_info.audio.pin[i].status_bits = 0; 1402 adev->mode_info.audio.pin[i].category_code = 0; 1403 adev->mode_info.audio.pin[i].connected = false; 1404 adev->mode_info.audio.pin[i].offset = pin_offsets[i]; 1405 adev->mode_info.audio.pin[i].id = i; 1406 /* disable audio. it will be set up later */ 1407 /* XXX remove once we switch to ip funcs */ 1408 dce_v8_0_audio_enable(adev, &adev->mode_info.audio.pin[i], false); 1409 } 1410 1411 return 0; 1412 } 1413 1414 static void dce_v8_0_audio_fini(struct amdgpu_device *adev) 1415 { 1416 if (!amdgpu_audio) 1417 return; 1418 1419 if (!adev->mode_info.audio.enabled) 1420 return; 1421 1422 adev->mode_info.audio.enabled = false; 1423 } 1424 1425 /* 1426 * update the N and CTS parameters for a given pixel clock rate 1427 */ 1428 static void dce_v8_0_afmt_update_ACR(struct drm_encoder *encoder, uint32_t clock) 1429 { 1430 struct drm_device *dev = encoder->dev; 1431 struct amdgpu_device *adev = drm_to_adev(dev); 1432 struct amdgpu_afmt_acr acr = amdgpu_afmt_acr(clock); 1433 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 1434 struct amdgpu_encoder_atom_dig *dig = amdgpu_encoder->enc_priv; 1435 uint32_t offset = dig->afmt->offset; 1436 1437 WREG32(mmHDMI_ACR_32_0 + offset, (acr.cts_32khz << HDMI_ACR_32_0__HDMI_ACR_CTS_32__SHIFT)); 1438 WREG32(mmHDMI_ACR_32_1 + offset, acr.n_32khz); 1439 1440 WREG32(mmHDMI_ACR_44_0 + offset, (acr.cts_44_1khz << HDMI_ACR_44_0__HDMI_ACR_CTS_44__SHIFT)); 1441 WREG32(mmHDMI_ACR_44_1 + offset, acr.n_44_1khz); 1442 1443 WREG32(mmHDMI_ACR_48_0 + offset, (acr.cts_48khz << HDMI_ACR_48_0__HDMI_ACR_CTS_48__SHIFT)); 1444 WREG32(mmHDMI_ACR_48_1 + offset, acr.n_48khz); 1445 } 1446 1447 /* 1448 * build a HDMI Video Info Frame 1449 */ 1450 static void dce_v8_0_afmt_update_avi_infoframe(struct drm_encoder *encoder, 1451 void *buffer, size_t size) 1452 { 1453 struct drm_device *dev = encoder->dev; 1454 struct amdgpu_device *adev = drm_to_adev(dev); 1455 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 1456 struct amdgpu_encoder_atom_dig *dig = amdgpu_encoder->enc_priv; 1457 uint32_t offset = dig->afmt->offset; 1458 uint8_t *frame = buffer + 3; 1459 uint8_t *header = buffer; 1460 1461 WREG32(mmAFMT_AVI_INFO0 + offset, 1462 frame[0x0] | (frame[0x1] << 8) | (frame[0x2] << 16) | (frame[0x3] << 24)); 1463 WREG32(mmAFMT_AVI_INFO1 + offset, 1464 frame[0x4] | (frame[0x5] << 8) | (frame[0x6] << 16) | (frame[0x7] << 24)); 1465 WREG32(mmAFMT_AVI_INFO2 + offset, 1466 frame[0x8] | (frame[0x9] << 8) | (frame[0xA] << 16) | (frame[0xB] << 24)); 1467 WREG32(mmAFMT_AVI_INFO3 + offset, 1468 frame[0xC] | (frame[0xD] << 8) | (header[1] << 24)); 1469 } 1470 1471 static void dce_v8_0_audio_set_dto(struct drm_encoder *encoder, u32 clock) 1472 { 1473 struct drm_device *dev = encoder->dev; 1474 struct amdgpu_device *adev = drm_to_adev(dev); 1475 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 1476 struct amdgpu_encoder_atom_dig *dig = amdgpu_encoder->enc_priv; 1477 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(encoder->crtc); 1478 u32 dto_phase = 24 * 1000; 1479 u32 dto_modulo = clock; 1480 1481 if (!dig || !dig->afmt) 1482 return; 1483 1484 /* XXX two dtos; generally use dto0 for hdmi */ 1485 /* Express [24MHz / target pixel clock] as an exact rational 1486 * number (coefficient of two integer numbers. DCCG_AUDIO_DTOx_PHASE 1487 * is the numerator, DCCG_AUDIO_DTOx_MODULE is the denominator 1488 */ 1489 WREG32(mmDCCG_AUDIO_DTO_SOURCE, (amdgpu_crtc->crtc_id << DCCG_AUDIO_DTO_SOURCE__DCCG_AUDIO_DTO0_SOURCE_SEL__SHIFT)); 1490 WREG32(mmDCCG_AUDIO_DTO0_PHASE, dto_phase); 1491 WREG32(mmDCCG_AUDIO_DTO0_MODULE, dto_modulo); 1492 } 1493 1494 /* 1495 * update the info frames with the data from the current display mode 1496 */ 1497 static void dce_v8_0_afmt_setmode(struct drm_encoder *encoder, 1498 struct drm_display_mode *mode) 1499 { 1500 struct drm_device *dev = encoder->dev; 1501 struct amdgpu_device *adev = drm_to_adev(dev); 1502 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 1503 struct amdgpu_encoder_atom_dig *dig = amdgpu_encoder->enc_priv; 1504 struct drm_connector *connector = amdgpu_get_connector_for_encoder(encoder); 1505 u8 buffer[HDMI_INFOFRAME_HEADER_SIZE + HDMI_AVI_INFOFRAME_SIZE]; 1506 struct hdmi_avi_infoframe frame; 1507 uint32_t offset, val; 1508 ssize_t err; 1509 int bpc = 8; 1510 1511 if (!dig || !dig->afmt) 1512 return; 1513 1514 /* Silent, r600_hdmi_enable will raise WARN for us */ 1515 if (!dig->afmt->enabled) 1516 return; 1517 1518 offset = dig->afmt->offset; 1519 1520 /* hdmi deep color mode general control packets setup, if bpc > 8 */ 1521 if (encoder->crtc) { 1522 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(encoder->crtc); 1523 bpc = amdgpu_crtc->bpc; 1524 } 1525 1526 /* disable audio prior to setting up hw */ 1527 dig->afmt->pin = dce_v8_0_audio_get_pin(adev); 1528 dce_v8_0_audio_enable(adev, dig->afmt->pin, false); 1529 1530 dce_v8_0_audio_set_dto(encoder, mode->clock); 1531 1532 WREG32(mmHDMI_VBI_PACKET_CONTROL + offset, 1533 HDMI_VBI_PACKET_CONTROL__HDMI_NULL_SEND_MASK); /* send null packets when required */ 1534 1535 WREG32(mmAFMT_AUDIO_CRC_CONTROL + offset, 0x1000); 1536 1537 val = RREG32(mmHDMI_CONTROL + offset); 1538 val &= ~HDMI_CONTROL__HDMI_DEEP_COLOR_ENABLE_MASK; 1539 val &= ~HDMI_CONTROL__HDMI_DEEP_COLOR_DEPTH_MASK; 1540 1541 switch (bpc) { 1542 case 0: 1543 case 6: 1544 case 8: 1545 case 16: 1546 default: 1547 DRM_DEBUG("%s: Disabling hdmi deep color for %d bpc.\n", 1548 connector->name, bpc); 1549 break; 1550 case 10: 1551 val |= HDMI_CONTROL__HDMI_DEEP_COLOR_ENABLE_MASK; 1552 val |= 1 << HDMI_CONTROL__HDMI_DEEP_COLOR_DEPTH__SHIFT; 1553 DRM_DEBUG("%s: Enabling hdmi deep color 30 for 10 bpc.\n", 1554 connector->name); 1555 break; 1556 case 12: 1557 val |= HDMI_CONTROL__HDMI_DEEP_COLOR_ENABLE_MASK; 1558 val |= 2 << HDMI_CONTROL__HDMI_DEEP_COLOR_DEPTH__SHIFT; 1559 DRM_DEBUG("%s: Enabling hdmi deep color 36 for 12 bpc.\n", 1560 connector->name); 1561 break; 1562 } 1563 1564 WREG32(mmHDMI_CONTROL + offset, val); 1565 1566 WREG32(mmHDMI_VBI_PACKET_CONTROL + offset, 1567 HDMI_VBI_PACKET_CONTROL__HDMI_NULL_SEND_MASK | /* send null packets when required */ 1568 HDMI_VBI_PACKET_CONTROL__HDMI_GC_SEND_MASK | /* send general control packets */ 1569 HDMI_VBI_PACKET_CONTROL__HDMI_GC_CONT_MASK); /* send general control packets every frame */ 1570 1571 WREG32(mmHDMI_INFOFRAME_CONTROL0 + offset, 1572 HDMI_INFOFRAME_CONTROL0__HDMI_AUDIO_INFO_SEND_MASK | /* enable audio info frames (frames won't be set until audio is enabled) */ 1573 HDMI_INFOFRAME_CONTROL0__HDMI_AUDIO_INFO_CONT_MASK); /* required for audio info values to be updated */ 1574 1575 WREG32(mmAFMT_INFOFRAME_CONTROL0 + offset, 1576 AFMT_INFOFRAME_CONTROL0__AFMT_AUDIO_INFO_UPDATE_MASK); /* required for audio info values to be updated */ 1577 1578 WREG32(mmHDMI_INFOFRAME_CONTROL1 + offset, 1579 (2 << HDMI_INFOFRAME_CONTROL1__HDMI_AUDIO_INFO_LINE__SHIFT)); /* anything other than 0 */ 1580 1581 WREG32(mmHDMI_GC + offset, 0); /* unset HDMI_GC_AVMUTE */ 1582 1583 WREG32(mmHDMI_AUDIO_PACKET_CONTROL + offset, 1584 (1 << HDMI_AUDIO_PACKET_CONTROL__HDMI_AUDIO_DELAY_EN__SHIFT) | /* set the default audio delay */ 1585 (3 << HDMI_AUDIO_PACKET_CONTROL__HDMI_AUDIO_PACKETS_PER_LINE__SHIFT)); /* should be suffient for all audio modes and small enough for all hblanks */ 1586 1587 WREG32(mmAFMT_AUDIO_PACKET_CONTROL + offset, 1588 AFMT_AUDIO_PACKET_CONTROL__AFMT_60958_CS_UPDATE_MASK); /* allow 60958 channel status fields to be updated */ 1589 1590 /* fglrx clears sth in AFMT_AUDIO_PACKET_CONTROL2 here */ 1591 1592 if (bpc > 8) 1593 WREG32(mmHDMI_ACR_PACKET_CONTROL + offset, 1594 HDMI_ACR_PACKET_CONTROL__HDMI_ACR_AUTO_SEND_MASK); /* allow hw to sent ACR packets when required */ 1595 else 1596 WREG32(mmHDMI_ACR_PACKET_CONTROL + offset, 1597 HDMI_ACR_PACKET_CONTROL__HDMI_ACR_SOURCE_MASK | /* select SW CTS value */ 1598 HDMI_ACR_PACKET_CONTROL__HDMI_ACR_AUTO_SEND_MASK); /* allow hw to sent ACR packets when required */ 1599 1600 dce_v8_0_afmt_update_ACR(encoder, mode->clock); 1601 1602 WREG32(mmAFMT_60958_0 + offset, 1603 (1 << AFMT_60958_0__AFMT_60958_CS_CHANNEL_NUMBER_L__SHIFT)); 1604 1605 WREG32(mmAFMT_60958_1 + offset, 1606 (2 << AFMT_60958_1__AFMT_60958_CS_CHANNEL_NUMBER_R__SHIFT)); 1607 1608 WREG32(mmAFMT_60958_2 + offset, 1609 (3 << AFMT_60958_2__AFMT_60958_CS_CHANNEL_NUMBER_2__SHIFT) | 1610 (4 << AFMT_60958_2__AFMT_60958_CS_CHANNEL_NUMBER_3__SHIFT) | 1611 (5 << AFMT_60958_2__AFMT_60958_CS_CHANNEL_NUMBER_4__SHIFT) | 1612 (6 << AFMT_60958_2__AFMT_60958_CS_CHANNEL_NUMBER_5__SHIFT) | 1613 (7 << AFMT_60958_2__AFMT_60958_CS_CHANNEL_NUMBER_6__SHIFT) | 1614 (8 << AFMT_60958_2__AFMT_60958_CS_CHANNEL_NUMBER_7__SHIFT)); 1615 1616 dce_v8_0_audio_write_speaker_allocation(encoder); 1617 1618 1619 WREG32(mmAFMT_AUDIO_PACKET_CONTROL2 + offset, 1620 (0xff << AFMT_AUDIO_PACKET_CONTROL2__AFMT_AUDIO_CHANNEL_ENABLE__SHIFT)); 1621 1622 dce_v8_0_afmt_audio_select_pin(encoder); 1623 dce_v8_0_audio_write_sad_regs(encoder); 1624 dce_v8_0_audio_write_latency_fields(encoder, mode); 1625 1626 err = drm_hdmi_avi_infoframe_from_display_mode(&frame, connector, mode); 1627 if (err < 0) { 1628 DRM_ERROR("failed to setup AVI infoframe: %zd\n", err); 1629 return; 1630 } 1631 1632 err = hdmi_avi_infoframe_pack(&frame, buffer, sizeof(buffer)); 1633 if (err < 0) { 1634 DRM_ERROR("failed to pack AVI infoframe: %zd\n", err); 1635 return; 1636 } 1637 1638 dce_v8_0_afmt_update_avi_infoframe(encoder, buffer, sizeof(buffer)); 1639 1640 WREG32_OR(mmHDMI_INFOFRAME_CONTROL0 + offset, 1641 HDMI_INFOFRAME_CONTROL0__HDMI_AVI_INFO_SEND_MASK | /* enable AVI info frames */ 1642 HDMI_INFOFRAME_CONTROL0__HDMI_AVI_INFO_CONT_MASK); /* required for audio info values to be updated */ 1643 1644 WREG32_P(mmHDMI_INFOFRAME_CONTROL1 + offset, 1645 (2 << HDMI_INFOFRAME_CONTROL1__HDMI_AVI_INFO_LINE__SHIFT), /* anything other than 0 */ 1646 ~HDMI_INFOFRAME_CONTROL1__HDMI_AVI_INFO_LINE_MASK); 1647 1648 WREG32_OR(mmAFMT_AUDIO_PACKET_CONTROL + offset, 1649 AFMT_AUDIO_PACKET_CONTROL__AFMT_AUDIO_SAMPLE_SEND_MASK); /* send audio packets */ 1650 1651 WREG32(mmAFMT_RAMP_CONTROL0 + offset, 0x00FFFFFF); 1652 WREG32(mmAFMT_RAMP_CONTROL1 + offset, 0x007FFFFF); 1653 WREG32(mmAFMT_RAMP_CONTROL2 + offset, 0x00000001); 1654 WREG32(mmAFMT_RAMP_CONTROL3 + offset, 0x00000001); 1655 1656 /* enable audio after setting up hw */ 1657 dce_v8_0_audio_enable(adev, dig->afmt->pin, true); 1658 } 1659 1660 static void dce_v8_0_afmt_enable(struct drm_encoder *encoder, bool enable) 1661 { 1662 struct drm_device *dev = encoder->dev; 1663 struct amdgpu_device *adev = drm_to_adev(dev); 1664 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 1665 struct amdgpu_encoder_atom_dig *dig = amdgpu_encoder->enc_priv; 1666 1667 if (!dig || !dig->afmt) 1668 return; 1669 1670 /* Silent, r600_hdmi_enable will raise WARN for us */ 1671 if (enable && dig->afmt->enabled) 1672 return; 1673 if (!enable && !dig->afmt->enabled) 1674 return; 1675 1676 if (!enable && dig->afmt->pin) { 1677 dce_v8_0_audio_enable(adev, dig->afmt->pin, false); 1678 dig->afmt->pin = NULL; 1679 } 1680 1681 dig->afmt->enabled = enable; 1682 1683 DRM_DEBUG("%sabling AFMT interface @ 0x%04X for encoder 0x%x\n", 1684 enable ? "En" : "Dis", dig->afmt->offset, amdgpu_encoder->encoder_id); 1685 } 1686 1687 static int dce_v8_0_afmt_init(struct amdgpu_device *adev) 1688 { 1689 int i; 1690 1691 for (i = 0; i < adev->mode_info.num_dig; i++) 1692 adev->mode_info.afmt[i] = NULL; 1693 1694 /* DCE8 has audio blocks tied to DIG encoders */ 1695 for (i = 0; i < adev->mode_info.num_dig; i++) { 1696 adev->mode_info.afmt[i] = kzalloc_obj(struct amdgpu_afmt); 1697 if (adev->mode_info.afmt[i]) { 1698 adev->mode_info.afmt[i]->offset = dig_offsets[i]; 1699 adev->mode_info.afmt[i]->id = i; 1700 } else { 1701 int j; 1702 for (j = 0; j < i; j++) { 1703 kfree(adev->mode_info.afmt[j]); 1704 adev->mode_info.afmt[j] = NULL; 1705 } 1706 return -ENOMEM; 1707 } 1708 } 1709 return 0; 1710 } 1711 1712 static void dce_v8_0_afmt_fini(struct amdgpu_device *adev) 1713 { 1714 int i; 1715 1716 for (i = 0; i < adev->mode_info.num_dig; i++) { 1717 kfree(adev->mode_info.afmt[i]); 1718 adev->mode_info.afmt[i] = NULL; 1719 } 1720 } 1721 1722 static const u32 vga_control_regs[6] = { 1723 mmD1VGA_CONTROL, 1724 mmD2VGA_CONTROL, 1725 mmD3VGA_CONTROL, 1726 mmD4VGA_CONTROL, 1727 mmD5VGA_CONTROL, 1728 mmD6VGA_CONTROL, 1729 }; 1730 1731 static void dce_v8_0_vga_enable(struct drm_crtc *crtc, bool enable) 1732 { 1733 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 1734 struct drm_device *dev = crtc->dev; 1735 struct amdgpu_device *adev = drm_to_adev(dev); 1736 u32 vga_control; 1737 1738 vga_control = RREG32(vga_control_regs[amdgpu_crtc->crtc_id]) & ~1; 1739 if (enable) 1740 WREG32(vga_control_regs[amdgpu_crtc->crtc_id], vga_control | 1); 1741 else 1742 WREG32(vga_control_regs[amdgpu_crtc->crtc_id], vga_control); 1743 } 1744 1745 static void dce_v8_0_grph_enable(struct drm_crtc *crtc, bool enable) 1746 { 1747 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 1748 struct drm_device *dev = crtc->dev; 1749 struct amdgpu_device *adev = drm_to_adev(dev); 1750 1751 if (enable) 1752 WREG32(mmGRPH_ENABLE + amdgpu_crtc->crtc_offset, 1); 1753 else 1754 WREG32(mmGRPH_ENABLE + amdgpu_crtc->crtc_offset, 0); 1755 } 1756 1757 static int dce_v8_0_crtc_do_set_base(struct drm_crtc *crtc, 1758 struct drm_framebuffer *fb, 1759 int x, int y) 1760 { 1761 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 1762 struct drm_device *dev = crtc->dev; 1763 struct amdgpu_device *adev = drm_to_adev(dev); 1764 struct drm_framebuffer *target_fb; 1765 struct drm_gem_object *obj; 1766 struct amdgpu_bo *abo; 1767 uint64_t fb_location, tiling_flags; 1768 uint32_t fb_format, fb_pitch_pixels; 1769 u32 fb_swap = (GRPH_ENDIAN_NONE << GRPH_SWAP_CNTL__GRPH_ENDIAN_SWAP__SHIFT); 1770 u32 pipe_config; 1771 u32 viewport_w, viewport_h; 1772 int r; 1773 bool bypass_lut = false; 1774 1775 /* no fb bound */ 1776 if (!crtc->primary->fb) { 1777 DRM_DEBUG_KMS("No FB bound\n"); 1778 return 0; 1779 } 1780 1781 target_fb = crtc->primary->fb; 1782 1783 /* If atomic, assume fb object is pinned & idle & fenced and 1784 * just update base pointers 1785 */ 1786 obj = target_fb->obj[0]; 1787 abo = gem_to_amdgpu_bo(obj); 1788 r = amdgpu_bo_reserve(abo, false); 1789 if (unlikely(r != 0)) 1790 return r; 1791 1792 abo->flags |= AMDGPU_GEM_CREATE_VRAM_CONTIGUOUS; 1793 r = amdgpu_bo_pin(abo, AMDGPU_GEM_DOMAIN_VRAM); 1794 if (unlikely(r != 0)) { 1795 amdgpu_bo_unreserve(abo); 1796 return -EINVAL; 1797 } 1798 fb_location = amdgpu_bo_gpu_offset(abo); 1799 1800 amdgpu_bo_get_tiling_flags(abo, &tiling_flags); 1801 amdgpu_bo_unreserve(abo); 1802 1803 pipe_config = AMDGPU_TILING_GET(tiling_flags, PIPE_CONFIG); 1804 1805 switch (target_fb->format->format) { 1806 case DRM_FORMAT_C8: 1807 fb_format = ((GRPH_DEPTH_8BPP << GRPH_CONTROL__GRPH_DEPTH__SHIFT) | 1808 (GRPH_FORMAT_INDEXED << GRPH_CONTROL__GRPH_FORMAT__SHIFT)); 1809 break; 1810 case DRM_FORMAT_XRGB4444: 1811 case DRM_FORMAT_ARGB4444: 1812 fb_format = ((GRPH_DEPTH_16BPP << GRPH_CONTROL__GRPH_DEPTH__SHIFT) | 1813 (GRPH_FORMAT_ARGB4444 << GRPH_CONTROL__GRPH_FORMAT__SHIFT)); 1814 #ifdef __BIG_ENDIAN 1815 fb_swap = (GRPH_ENDIAN_8IN16 << GRPH_SWAP_CNTL__GRPH_ENDIAN_SWAP__SHIFT); 1816 #endif 1817 break; 1818 case DRM_FORMAT_XRGB1555: 1819 case DRM_FORMAT_ARGB1555: 1820 fb_format = ((GRPH_DEPTH_16BPP << GRPH_CONTROL__GRPH_DEPTH__SHIFT) | 1821 (GRPH_FORMAT_ARGB1555 << GRPH_CONTROL__GRPH_FORMAT__SHIFT)); 1822 #ifdef __BIG_ENDIAN 1823 fb_swap = (GRPH_ENDIAN_8IN16 << GRPH_SWAP_CNTL__GRPH_ENDIAN_SWAP__SHIFT); 1824 #endif 1825 break; 1826 case DRM_FORMAT_BGRX5551: 1827 case DRM_FORMAT_BGRA5551: 1828 fb_format = ((GRPH_DEPTH_16BPP << GRPH_CONTROL__GRPH_DEPTH__SHIFT) | 1829 (GRPH_FORMAT_BGRA5551 << GRPH_CONTROL__GRPH_FORMAT__SHIFT)); 1830 #ifdef __BIG_ENDIAN 1831 fb_swap = (GRPH_ENDIAN_8IN16 << GRPH_SWAP_CNTL__GRPH_ENDIAN_SWAP__SHIFT); 1832 #endif 1833 break; 1834 case DRM_FORMAT_RGB565: 1835 fb_format = ((GRPH_DEPTH_16BPP << GRPH_CONTROL__GRPH_DEPTH__SHIFT) | 1836 (GRPH_FORMAT_ARGB565 << GRPH_CONTROL__GRPH_FORMAT__SHIFT)); 1837 #ifdef __BIG_ENDIAN 1838 fb_swap = (GRPH_ENDIAN_8IN16 << GRPH_SWAP_CNTL__GRPH_ENDIAN_SWAP__SHIFT); 1839 #endif 1840 break; 1841 case DRM_FORMAT_XRGB8888: 1842 case DRM_FORMAT_ARGB8888: 1843 fb_format = ((GRPH_DEPTH_32BPP << GRPH_CONTROL__GRPH_DEPTH__SHIFT) | 1844 (GRPH_FORMAT_ARGB8888 << GRPH_CONTROL__GRPH_FORMAT__SHIFT)); 1845 #ifdef __BIG_ENDIAN 1846 fb_swap = (GRPH_ENDIAN_8IN32 << GRPH_SWAP_CNTL__GRPH_ENDIAN_SWAP__SHIFT); 1847 #endif 1848 break; 1849 case DRM_FORMAT_XRGB2101010: 1850 case DRM_FORMAT_ARGB2101010: 1851 fb_format = ((GRPH_DEPTH_32BPP << GRPH_CONTROL__GRPH_DEPTH__SHIFT) | 1852 (GRPH_FORMAT_ARGB2101010 << GRPH_CONTROL__GRPH_FORMAT__SHIFT)); 1853 #ifdef __BIG_ENDIAN 1854 fb_swap = (GRPH_ENDIAN_8IN32 << GRPH_SWAP_CNTL__GRPH_ENDIAN_SWAP__SHIFT); 1855 #endif 1856 /* Greater 8 bpc fb needs to bypass hw-lut to retain precision */ 1857 bypass_lut = true; 1858 break; 1859 case DRM_FORMAT_BGRX1010102: 1860 case DRM_FORMAT_BGRA1010102: 1861 fb_format = ((GRPH_DEPTH_32BPP << GRPH_CONTROL__GRPH_DEPTH__SHIFT) | 1862 (GRPH_FORMAT_BGRA1010102 << GRPH_CONTROL__GRPH_FORMAT__SHIFT)); 1863 #ifdef __BIG_ENDIAN 1864 fb_swap = (GRPH_ENDIAN_8IN32 << GRPH_SWAP_CNTL__GRPH_ENDIAN_SWAP__SHIFT); 1865 #endif 1866 /* Greater 8 bpc fb needs to bypass hw-lut to retain precision */ 1867 bypass_lut = true; 1868 break; 1869 case DRM_FORMAT_XBGR8888: 1870 case DRM_FORMAT_ABGR8888: 1871 fb_format = ((GRPH_DEPTH_32BPP << GRPH_CONTROL__GRPH_DEPTH__SHIFT) | 1872 (GRPH_FORMAT_ARGB8888 << GRPH_CONTROL__GRPH_FORMAT__SHIFT)); 1873 fb_swap = ((GRPH_RED_SEL_B << GRPH_SWAP_CNTL__GRPH_RED_CROSSBAR__SHIFT) | 1874 (GRPH_BLUE_SEL_R << GRPH_SWAP_CNTL__GRPH_BLUE_CROSSBAR__SHIFT)); 1875 #ifdef __BIG_ENDIAN 1876 fb_swap |= (GRPH_ENDIAN_8IN32 << GRPH_SWAP_CNTL__GRPH_ENDIAN_SWAP__SHIFT); 1877 #endif 1878 break; 1879 default: 1880 DRM_ERROR("Unsupported screen format %p4cc\n", 1881 &target_fb->format->format); 1882 return -EINVAL; 1883 } 1884 1885 if (AMDGPU_TILING_GET(tiling_flags, ARRAY_MODE) == ARRAY_2D_TILED_THIN1) { 1886 unsigned bankw, bankh, mtaspect, tile_split, num_banks; 1887 1888 bankw = AMDGPU_TILING_GET(tiling_flags, BANK_WIDTH); 1889 bankh = AMDGPU_TILING_GET(tiling_flags, BANK_HEIGHT); 1890 mtaspect = AMDGPU_TILING_GET(tiling_flags, MACRO_TILE_ASPECT); 1891 tile_split = AMDGPU_TILING_GET(tiling_flags, TILE_SPLIT); 1892 num_banks = AMDGPU_TILING_GET(tiling_flags, NUM_BANKS); 1893 1894 fb_format |= (num_banks << GRPH_CONTROL__GRPH_NUM_BANKS__SHIFT); 1895 fb_format |= (GRPH_ARRAY_2D_TILED_THIN1 << GRPH_CONTROL__GRPH_ARRAY_MODE__SHIFT); 1896 fb_format |= (tile_split << GRPH_CONTROL__GRPH_TILE_SPLIT__SHIFT); 1897 fb_format |= (bankw << GRPH_CONTROL__GRPH_BANK_WIDTH__SHIFT); 1898 fb_format |= (bankh << GRPH_CONTROL__GRPH_BANK_HEIGHT__SHIFT); 1899 fb_format |= (mtaspect << GRPH_CONTROL__GRPH_MACRO_TILE_ASPECT__SHIFT); 1900 fb_format |= (DISPLAY_MICRO_TILING << GRPH_CONTROL__GRPH_MICRO_TILE_MODE__SHIFT); 1901 } else if (AMDGPU_TILING_GET(tiling_flags, ARRAY_MODE) == ARRAY_1D_TILED_THIN1) { 1902 fb_format |= (GRPH_ARRAY_1D_TILED_THIN1 << GRPH_CONTROL__GRPH_ARRAY_MODE__SHIFT); 1903 } 1904 1905 fb_format |= (pipe_config << GRPH_CONTROL__GRPH_PIPE_CONFIG__SHIFT); 1906 1907 dce_v8_0_vga_enable(crtc, false); 1908 1909 /* Make sure surface address is updated at vertical blank rather than 1910 * horizontal blank 1911 */ 1912 WREG32(mmGRPH_FLIP_CONTROL + amdgpu_crtc->crtc_offset, 0); 1913 1914 WREG32(mmGRPH_PRIMARY_SURFACE_ADDRESS_HIGH + amdgpu_crtc->crtc_offset, 1915 upper_32_bits(fb_location)); 1916 WREG32(mmGRPH_SECONDARY_SURFACE_ADDRESS_HIGH + amdgpu_crtc->crtc_offset, 1917 upper_32_bits(fb_location)); 1918 WREG32(mmGRPH_PRIMARY_SURFACE_ADDRESS + amdgpu_crtc->crtc_offset, 1919 (u32)fb_location & GRPH_PRIMARY_SURFACE_ADDRESS__GRPH_PRIMARY_SURFACE_ADDRESS_MASK); 1920 WREG32(mmGRPH_SECONDARY_SURFACE_ADDRESS + amdgpu_crtc->crtc_offset, 1921 (u32) fb_location & GRPH_SECONDARY_SURFACE_ADDRESS__GRPH_SECONDARY_SURFACE_ADDRESS_MASK); 1922 WREG32(mmGRPH_CONTROL + amdgpu_crtc->crtc_offset, fb_format); 1923 WREG32(mmGRPH_SWAP_CNTL + amdgpu_crtc->crtc_offset, fb_swap); 1924 1925 /* 1926 * The LUT only has 256 slots for indexing by a 8 bpc fb. Bypass the LUT 1927 * for > 8 bpc scanout to avoid truncation of fb indices to 8 msb's, to 1928 * retain the full precision throughout the pipeline. 1929 */ 1930 WREG32_P(mmGRPH_LUT_10BIT_BYPASS_CONTROL + amdgpu_crtc->crtc_offset, 1931 (bypass_lut ? LUT_10BIT_BYPASS_EN : 0), 1932 ~LUT_10BIT_BYPASS_EN); 1933 1934 if (bypass_lut) 1935 DRM_DEBUG_KMS("Bypassing hardware LUT due to 10 bit fb scanout.\n"); 1936 1937 WREG32(mmGRPH_SURFACE_OFFSET_X + amdgpu_crtc->crtc_offset, 0); 1938 WREG32(mmGRPH_SURFACE_OFFSET_Y + amdgpu_crtc->crtc_offset, 0); 1939 WREG32(mmGRPH_X_START + amdgpu_crtc->crtc_offset, 0); 1940 WREG32(mmGRPH_Y_START + amdgpu_crtc->crtc_offset, 0); 1941 WREG32(mmGRPH_X_END + amdgpu_crtc->crtc_offset, target_fb->width); 1942 WREG32(mmGRPH_Y_END + amdgpu_crtc->crtc_offset, target_fb->height); 1943 1944 fb_pitch_pixels = target_fb->pitches[0] / target_fb->format->cpp[0]; 1945 WREG32(mmGRPH_PITCH + amdgpu_crtc->crtc_offset, fb_pitch_pixels); 1946 1947 dce_v8_0_grph_enable(crtc, true); 1948 1949 WREG32(mmLB_DESKTOP_HEIGHT + amdgpu_crtc->crtc_offset, 1950 target_fb->height); 1951 1952 x &= ~3; 1953 y &= ~1; 1954 WREG32(mmVIEWPORT_START + amdgpu_crtc->crtc_offset, 1955 (x << 16) | y); 1956 viewport_w = crtc->mode.hdisplay; 1957 viewport_h = (crtc->mode.vdisplay + 1) & ~1; 1958 WREG32(mmVIEWPORT_SIZE + amdgpu_crtc->crtc_offset, 1959 (viewport_w << 16) | viewport_h); 1960 1961 /* set pageflip to happen anywhere in vblank interval */ 1962 WREG32(mmMASTER_UPDATE_MODE + amdgpu_crtc->crtc_offset, 0); 1963 1964 if (fb && fb != crtc->primary->fb) { 1965 abo = gem_to_amdgpu_bo(fb->obj[0]); 1966 r = amdgpu_bo_reserve(abo, true); 1967 if (unlikely(r != 0)) 1968 return r; 1969 amdgpu_bo_unpin(abo); 1970 amdgpu_bo_unreserve(abo); 1971 } 1972 1973 /* Bytes per pixel may have changed */ 1974 dce_v8_0_bandwidth_update(adev); 1975 1976 return 0; 1977 } 1978 1979 static void dce_v8_0_set_interleave(struct drm_crtc *crtc, 1980 struct drm_display_mode *mode) 1981 { 1982 struct drm_device *dev = crtc->dev; 1983 struct amdgpu_device *adev = drm_to_adev(dev); 1984 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 1985 1986 if (mode->flags & DRM_MODE_FLAG_INTERLACE) 1987 WREG32(mmLB_DATA_FORMAT + amdgpu_crtc->crtc_offset, 1988 LB_DATA_FORMAT__INTERLEAVE_EN__SHIFT); 1989 else 1990 WREG32(mmLB_DATA_FORMAT + amdgpu_crtc->crtc_offset, 0); 1991 } 1992 1993 static void dce_v8_0_crtc_load_lut(struct drm_crtc *crtc) 1994 { 1995 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 1996 struct drm_device *dev = crtc->dev; 1997 struct amdgpu_device *adev = drm_to_adev(dev); 1998 u16 *r, *g, *b; 1999 int i; 2000 2001 DRM_DEBUG_KMS("%d\n", amdgpu_crtc->crtc_id); 2002 2003 WREG32(mmINPUT_CSC_CONTROL + amdgpu_crtc->crtc_offset, 2004 ((INPUT_CSC_BYPASS << INPUT_CSC_CONTROL__INPUT_CSC_GRPH_MODE__SHIFT) | 2005 (INPUT_CSC_BYPASS << INPUT_CSC_CONTROL__INPUT_CSC_OVL_MODE__SHIFT))); 2006 WREG32(mmPRESCALE_GRPH_CONTROL + amdgpu_crtc->crtc_offset, 2007 PRESCALE_GRPH_CONTROL__GRPH_PRESCALE_BYPASS_MASK); 2008 WREG32(mmPRESCALE_OVL_CONTROL + amdgpu_crtc->crtc_offset, 2009 PRESCALE_OVL_CONTROL__OVL_PRESCALE_BYPASS_MASK); 2010 WREG32(mmINPUT_GAMMA_CONTROL + amdgpu_crtc->crtc_offset, 2011 ((INPUT_GAMMA_USE_LUT << INPUT_GAMMA_CONTROL__GRPH_INPUT_GAMMA_MODE__SHIFT) | 2012 (INPUT_GAMMA_USE_LUT << INPUT_GAMMA_CONTROL__OVL_INPUT_GAMMA_MODE__SHIFT))); 2013 2014 WREG32(mmDC_LUT_CONTROL + amdgpu_crtc->crtc_offset, 0); 2015 2016 WREG32(mmDC_LUT_BLACK_OFFSET_BLUE + amdgpu_crtc->crtc_offset, 0); 2017 WREG32(mmDC_LUT_BLACK_OFFSET_GREEN + amdgpu_crtc->crtc_offset, 0); 2018 WREG32(mmDC_LUT_BLACK_OFFSET_RED + amdgpu_crtc->crtc_offset, 0); 2019 2020 WREG32(mmDC_LUT_WHITE_OFFSET_BLUE + amdgpu_crtc->crtc_offset, 0xffff); 2021 WREG32(mmDC_LUT_WHITE_OFFSET_GREEN + amdgpu_crtc->crtc_offset, 0xffff); 2022 WREG32(mmDC_LUT_WHITE_OFFSET_RED + amdgpu_crtc->crtc_offset, 0xffff); 2023 2024 WREG32(mmDC_LUT_RW_MODE + amdgpu_crtc->crtc_offset, 0); 2025 WREG32(mmDC_LUT_WRITE_EN_MASK + amdgpu_crtc->crtc_offset, 0x00000007); 2026 2027 WREG32(mmDC_LUT_RW_INDEX + amdgpu_crtc->crtc_offset, 0); 2028 r = crtc->gamma_store; 2029 g = r + crtc->gamma_size; 2030 b = g + crtc->gamma_size; 2031 for (i = 0; i < 256; i++) { 2032 WREG32(mmDC_LUT_30_COLOR + amdgpu_crtc->crtc_offset, 2033 ((*r++ & 0xffc0) << 14) | 2034 ((*g++ & 0xffc0) << 4) | 2035 (*b++ >> 6)); 2036 } 2037 2038 WREG32(mmDEGAMMA_CONTROL + amdgpu_crtc->crtc_offset, 2039 ((DEGAMMA_BYPASS << DEGAMMA_CONTROL__GRPH_DEGAMMA_MODE__SHIFT) | 2040 (DEGAMMA_BYPASS << DEGAMMA_CONTROL__OVL_DEGAMMA_MODE__SHIFT) | 2041 (DEGAMMA_BYPASS << DEGAMMA_CONTROL__CURSOR_DEGAMMA_MODE__SHIFT))); 2042 WREG32(mmGAMUT_REMAP_CONTROL + amdgpu_crtc->crtc_offset, 2043 ((GAMUT_REMAP_BYPASS << GAMUT_REMAP_CONTROL__GRPH_GAMUT_REMAP_MODE__SHIFT) | 2044 (GAMUT_REMAP_BYPASS << GAMUT_REMAP_CONTROL__OVL_GAMUT_REMAP_MODE__SHIFT))); 2045 WREG32(mmREGAMMA_CONTROL + amdgpu_crtc->crtc_offset, 2046 ((REGAMMA_BYPASS << REGAMMA_CONTROL__GRPH_REGAMMA_MODE__SHIFT) | 2047 (REGAMMA_BYPASS << REGAMMA_CONTROL__OVL_REGAMMA_MODE__SHIFT))); 2048 WREG32(mmOUTPUT_CSC_CONTROL + amdgpu_crtc->crtc_offset, 2049 ((OUTPUT_CSC_BYPASS << OUTPUT_CSC_CONTROL__OUTPUT_CSC_GRPH_MODE__SHIFT) | 2050 (OUTPUT_CSC_BYPASS << OUTPUT_CSC_CONTROL__OUTPUT_CSC_OVL_MODE__SHIFT))); 2051 /* XXX match this to the depth of the crtc fmt block, move to modeset? */ 2052 WREG32(0x1a50 + amdgpu_crtc->crtc_offset, 0); 2053 /* XXX this only needs to be programmed once per crtc at startup, 2054 * not sure where the best place for it is 2055 */ 2056 WREG32(mmALPHA_CONTROL + amdgpu_crtc->crtc_offset, 2057 ALPHA_CONTROL__CURSOR_ALPHA_BLND_ENA_MASK); 2058 } 2059 2060 static int dce_v8_0_pick_dig_encoder(struct drm_encoder *encoder) 2061 { 2062 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 2063 struct amdgpu_encoder_atom_dig *dig = amdgpu_encoder->enc_priv; 2064 2065 switch (amdgpu_encoder->encoder_id) { 2066 case ENCODER_OBJECT_ID_INTERNAL_UNIPHY: 2067 if (dig->linkb) 2068 return 1; 2069 else 2070 return 0; 2071 case ENCODER_OBJECT_ID_INTERNAL_UNIPHY1: 2072 if (dig->linkb) 2073 return 3; 2074 else 2075 return 2; 2076 case ENCODER_OBJECT_ID_INTERNAL_UNIPHY2: 2077 if (dig->linkb) 2078 return 5; 2079 else 2080 return 4; 2081 case ENCODER_OBJECT_ID_INTERNAL_UNIPHY3: 2082 return 6; 2083 default: 2084 DRM_ERROR("invalid encoder_id: 0x%x\n", amdgpu_encoder->encoder_id); 2085 return 0; 2086 } 2087 } 2088 2089 /** 2090 * dce_v8_0_pick_pll - Allocate a PPLL for use by the crtc. 2091 * 2092 * @crtc: drm crtc 2093 * 2094 * Returns the PPLL (Pixel PLL) to be used by the crtc. For DP monitors 2095 * a single PPLL can be used for all DP crtcs/encoders. For non-DP 2096 * monitors a dedicated PPLL must be used. If a particular board has 2097 * an external DP PLL, return ATOM_PPLL_INVALID to skip PLL programming 2098 * as there is no need to program the PLL itself. If we are not able to 2099 * allocate a PLL, return ATOM_PPLL_INVALID to skip PLL programming to 2100 * avoid messing up an existing monitor. 2101 * 2102 * Asic specific PLL information 2103 * 2104 * DCE 8.x 2105 * KB/KV 2106 * - PPLL1, PPLL2 are available for all UNIPHY (both DP and non-DP) 2107 * CI 2108 * - PPLL0, PPLL1, PPLL2 are available for all UNIPHY (both DP and non-DP) and DAC 2109 * 2110 */ 2111 static u32 dce_v8_0_pick_pll(struct drm_crtc *crtc) 2112 { 2113 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 2114 struct drm_device *dev = crtc->dev; 2115 struct amdgpu_device *adev = drm_to_adev(dev); 2116 u32 pll_in_use; 2117 int pll; 2118 2119 if (ENCODER_MODE_IS_DP(amdgpu_atombios_encoder_get_encoder_mode(amdgpu_crtc->encoder))) { 2120 if (adev->clock.dp_extclk) 2121 /* skip PPLL programming if using ext clock */ 2122 return ATOM_PPLL_INVALID; 2123 else { 2124 /* use the same PPLL for all DP monitors */ 2125 pll = amdgpu_pll_get_shared_dp_ppll(crtc); 2126 if (pll != ATOM_PPLL_INVALID) 2127 return pll; 2128 } 2129 } else { 2130 /* use the same PPLL for all monitors with the same clock */ 2131 pll = amdgpu_pll_get_shared_nondp_ppll(crtc); 2132 if (pll != ATOM_PPLL_INVALID) 2133 return pll; 2134 } 2135 /* otherwise, pick one of the plls */ 2136 if ((adev->asic_type == CHIP_KABINI) || 2137 (adev->asic_type == CHIP_MULLINS)) { 2138 /* KB/ML has PPLL1 and PPLL2 */ 2139 pll_in_use = amdgpu_pll_get_use_mask(crtc); 2140 if (!(pll_in_use & (1 << ATOM_PPLL2))) 2141 return ATOM_PPLL2; 2142 if (!(pll_in_use & (1 << ATOM_PPLL1))) 2143 return ATOM_PPLL1; 2144 DRM_ERROR("unable to allocate a PPLL\n"); 2145 return ATOM_PPLL_INVALID; 2146 } else { 2147 /* CI/KV has PPLL0, PPLL1, and PPLL2 */ 2148 pll_in_use = amdgpu_pll_get_use_mask(crtc); 2149 if (!(pll_in_use & (1 << ATOM_PPLL2))) 2150 return ATOM_PPLL2; 2151 if (!(pll_in_use & (1 << ATOM_PPLL1))) 2152 return ATOM_PPLL1; 2153 if (!(pll_in_use & (1 << ATOM_PPLL0))) 2154 return ATOM_PPLL0; 2155 DRM_ERROR("unable to allocate a PPLL\n"); 2156 return ATOM_PPLL_INVALID; 2157 } 2158 return ATOM_PPLL_INVALID; 2159 } 2160 2161 static void dce_v8_0_lock_cursor(struct drm_crtc *crtc, bool lock) 2162 { 2163 struct amdgpu_device *adev = drm_to_adev(crtc->dev); 2164 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 2165 uint32_t cur_lock; 2166 2167 cur_lock = RREG32(mmCUR_UPDATE + amdgpu_crtc->crtc_offset); 2168 if (lock) 2169 cur_lock |= CUR_UPDATE__CURSOR_UPDATE_LOCK_MASK; 2170 else 2171 cur_lock &= ~CUR_UPDATE__CURSOR_UPDATE_LOCK_MASK; 2172 WREG32(mmCUR_UPDATE + amdgpu_crtc->crtc_offset, cur_lock); 2173 } 2174 2175 static void dce_v8_0_hide_cursor(struct drm_crtc *crtc) 2176 { 2177 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 2178 struct amdgpu_device *adev = drm_to_adev(crtc->dev); 2179 2180 WREG32(mmCUR_CONTROL + amdgpu_crtc->crtc_offset, 2181 (CURSOR_24_8_PRE_MULT << CUR_CONTROL__CURSOR_MODE__SHIFT) | 2182 (CURSOR_URGENT_1_2 << CUR_CONTROL__CURSOR_URGENT_CONTROL__SHIFT)); 2183 } 2184 2185 static void dce_v8_0_show_cursor(struct drm_crtc *crtc) 2186 { 2187 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 2188 struct amdgpu_device *adev = drm_to_adev(crtc->dev); 2189 2190 WREG32(mmCUR_SURFACE_ADDRESS_HIGH + amdgpu_crtc->crtc_offset, 2191 upper_32_bits(amdgpu_crtc->cursor_addr)); 2192 WREG32(mmCUR_SURFACE_ADDRESS + amdgpu_crtc->crtc_offset, 2193 lower_32_bits(amdgpu_crtc->cursor_addr)); 2194 2195 WREG32(mmCUR_CONTROL + amdgpu_crtc->crtc_offset, 2196 CUR_CONTROL__CURSOR_EN_MASK | 2197 (CURSOR_24_8_PRE_MULT << CUR_CONTROL__CURSOR_MODE__SHIFT) | 2198 (CURSOR_URGENT_1_2 << CUR_CONTROL__CURSOR_URGENT_CONTROL__SHIFT)); 2199 } 2200 2201 static int dce_v8_0_cursor_move_locked(struct drm_crtc *crtc, 2202 int x, int y) 2203 { 2204 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 2205 struct amdgpu_device *adev = drm_to_adev(crtc->dev); 2206 int xorigin = 0, yorigin = 0; 2207 2208 amdgpu_crtc->cursor_x = x; 2209 amdgpu_crtc->cursor_y = y; 2210 2211 /* avivo cursor are offset into the total surface */ 2212 x += crtc->x; 2213 y += crtc->y; 2214 DRM_DEBUG("x %d y %d c->x %d c->y %d\n", x, y, crtc->x, crtc->y); 2215 2216 if (x < 0) { 2217 xorigin = min(-x, amdgpu_crtc->max_cursor_width - 1); 2218 x = 0; 2219 } 2220 if (y < 0) { 2221 yorigin = min(-y, amdgpu_crtc->max_cursor_height - 1); 2222 y = 0; 2223 } 2224 2225 WREG32(mmCUR_POSITION + amdgpu_crtc->crtc_offset, (x << 16) | y); 2226 WREG32(mmCUR_HOT_SPOT + amdgpu_crtc->crtc_offset, (xorigin << 16) | yorigin); 2227 WREG32(mmCUR_SIZE + amdgpu_crtc->crtc_offset, 2228 ((amdgpu_crtc->cursor_width - 1) << 16) | (amdgpu_crtc->cursor_height - 1)); 2229 2230 return 0; 2231 } 2232 2233 static int dce_v8_0_crtc_cursor_move(struct drm_crtc *crtc, 2234 int x, int y) 2235 { 2236 int ret; 2237 2238 dce_v8_0_lock_cursor(crtc, true); 2239 ret = dce_v8_0_cursor_move_locked(crtc, x, y); 2240 dce_v8_0_lock_cursor(crtc, false); 2241 2242 return ret; 2243 } 2244 2245 static int dce_v8_0_crtc_cursor_set2(struct drm_crtc *crtc, 2246 struct drm_file *file_priv, 2247 uint32_t handle, 2248 uint32_t width, 2249 uint32_t height, 2250 int32_t hot_x, 2251 int32_t hot_y) 2252 { 2253 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 2254 struct drm_gem_object *obj; 2255 struct amdgpu_bo *aobj; 2256 int ret; 2257 2258 if (!handle) { 2259 /* turn off cursor */ 2260 dce_v8_0_hide_cursor(crtc); 2261 obj = NULL; 2262 goto unpin; 2263 } 2264 2265 if ((width > amdgpu_crtc->max_cursor_width) || 2266 (height > amdgpu_crtc->max_cursor_height)) { 2267 DRM_ERROR("bad cursor width or height %d x %d\n", width, height); 2268 return -EINVAL; 2269 } 2270 2271 obj = drm_gem_object_lookup(file_priv, handle); 2272 if (!obj) { 2273 DRM_ERROR("Cannot find cursor object %x for crtc %d\n", handle, amdgpu_crtc->crtc_id); 2274 return -ENOENT; 2275 } 2276 2277 aobj = gem_to_amdgpu_bo(obj); 2278 ret = amdgpu_bo_reserve(aobj, false); 2279 if (ret != 0) { 2280 drm_gem_object_put(obj); 2281 return ret; 2282 } 2283 2284 aobj->flags |= AMDGPU_GEM_CREATE_VRAM_CONTIGUOUS; 2285 ret = amdgpu_bo_pin(aobj, AMDGPU_GEM_DOMAIN_VRAM); 2286 amdgpu_bo_unreserve(aobj); 2287 if (ret) { 2288 DRM_ERROR("Failed to pin new cursor BO (%d)\n", ret); 2289 drm_gem_object_put(obj); 2290 return ret; 2291 } 2292 amdgpu_crtc->cursor_addr = amdgpu_bo_gpu_offset(aobj); 2293 2294 dce_v8_0_lock_cursor(crtc, true); 2295 2296 if (width != amdgpu_crtc->cursor_width || 2297 height != amdgpu_crtc->cursor_height || 2298 hot_x != amdgpu_crtc->cursor_hot_x || 2299 hot_y != amdgpu_crtc->cursor_hot_y) { 2300 int x, y; 2301 2302 x = amdgpu_crtc->cursor_x + amdgpu_crtc->cursor_hot_x - hot_x; 2303 y = amdgpu_crtc->cursor_y + amdgpu_crtc->cursor_hot_y - hot_y; 2304 2305 dce_v8_0_cursor_move_locked(crtc, x, y); 2306 2307 amdgpu_crtc->cursor_width = width; 2308 amdgpu_crtc->cursor_height = height; 2309 amdgpu_crtc->cursor_hot_x = hot_x; 2310 amdgpu_crtc->cursor_hot_y = hot_y; 2311 } 2312 2313 dce_v8_0_show_cursor(crtc); 2314 dce_v8_0_lock_cursor(crtc, false); 2315 2316 unpin: 2317 if (amdgpu_crtc->cursor_bo) { 2318 struct amdgpu_bo *aobj = gem_to_amdgpu_bo(amdgpu_crtc->cursor_bo); 2319 ret = amdgpu_bo_reserve(aobj, true); 2320 if (likely(ret == 0)) { 2321 amdgpu_bo_unpin(aobj); 2322 amdgpu_bo_unreserve(aobj); 2323 } 2324 drm_gem_object_put(amdgpu_crtc->cursor_bo); 2325 } 2326 2327 amdgpu_crtc->cursor_bo = obj; 2328 return 0; 2329 } 2330 2331 static void dce_v8_0_cursor_reset(struct drm_crtc *crtc) 2332 { 2333 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 2334 2335 if (amdgpu_crtc->cursor_bo) { 2336 dce_v8_0_lock_cursor(crtc, true); 2337 2338 dce_v8_0_cursor_move_locked(crtc, amdgpu_crtc->cursor_x, 2339 amdgpu_crtc->cursor_y); 2340 2341 dce_v8_0_show_cursor(crtc); 2342 2343 dce_v8_0_lock_cursor(crtc, false); 2344 } 2345 } 2346 2347 static int dce_v8_0_crtc_gamma_set(struct drm_crtc *crtc, u16 *red, u16 *green, 2348 u16 *blue, uint32_t size, 2349 struct drm_modeset_acquire_ctx *ctx) 2350 { 2351 dce_v8_0_crtc_load_lut(crtc); 2352 2353 return 0; 2354 } 2355 2356 static void dce_v8_0_crtc_destroy(struct drm_crtc *crtc) 2357 { 2358 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 2359 2360 drm_crtc_cleanup(crtc); 2361 kfree(amdgpu_crtc); 2362 } 2363 2364 static const struct drm_crtc_funcs dce_v8_0_crtc_funcs = { 2365 .cursor_set2 = dce_v8_0_crtc_cursor_set2, 2366 .cursor_move = dce_v8_0_crtc_cursor_move, 2367 .gamma_set = dce_v8_0_crtc_gamma_set, 2368 .set_config = amdgpu_display_crtc_set_config, 2369 .destroy = dce_v8_0_crtc_destroy, 2370 .page_flip_target = amdgpu_display_crtc_page_flip_target, 2371 .get_vblank_counter = amdgpu_get_vblank_counter_kms, 2372 .enable_vblank = amdgpu_enable_vblank_kms, 2373 .disable_vblank = amdgpu_disable_vblank_kms, 2374 .get_vblank_timestamp = drm_crtc_vblank_helper_get_vblank_timestamp, 2375 }; 2376 2377 static void dce_v8_0_crtc_dpms(struct drm_crtc *crtc, int mode) 2378 { 2379 struct drm_device *dev = crtc->dev; 2380 struct amdgpu_device *adev = drm_to_adev(dev); 2381 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 2382 unsigned type; 2383 2384 switch (mode) { 2385 case DRM_MODE_DPMS_ON: 2386 amdgpu_crtc->enabled = true; 2387 amdgpu_atombios_crtc_enable(crtc, ATOM_ENABLE); 2388 dce_v8_0_vga_enable(crtc, true); 2389 amdgpu_atombios_crtc_blank(crtc, ATOM_DISABLE); 2390 dce_v8_0_vga_enable(crtc, false); 2391 /* Make sure VBLANK and PFLIP interrupts are still enabled */ 2392 type = amdgpu_display_crtc_idx_to_irq_type(adev, 2393 amdgpu_crtc->crtc_id); 2394 amdgpu_irq_update(adev, &adev->crtc_irq, type); 2395 amdgpu_irq_update(adev, &adev->pageflip_irq, type); 2396 drm_crtc_vblank_on(crtc); 2397 dce_v8_0_crtc_load_lut(crtc); 2398 break; 2399 case DRM_MODE_DPMS_STANDBY: 2400 case DRM_MODE_DPMS_SUSPEND: 2401 case DRM_MODE_DPMS_OFF: 2402 drm_crtc_vblank_off(crtc); 2403 if (amdgpu_crtc->enabled) { 2404 dce_v8_0_vga_enable(crtc, true); 2405 amdgpu_atombios_crtc_blank(crtc, ATOM_ENABLE); 2406 dce_v8_0_vga_enable(crtc, false); 2407 } 2408 amdgpu_atombios_crtc_enable(crtc, ATOM_DISABLE); 2409 amdgpu_crtc->enabled = false; 2410 break; 2411 } 2412 /* adjust pm to dpms */ 2413 amdgpu_dpm_compute_clocks(adev); 2414 } 2415 2416 static void dce_v8_0_crtc_prepare(struct drm_crtc *crtc) 2417 { 2418 /* disable crtc pair power gating before programming */ 2419 amdgpu_atombios_crtc_powergate(crtc, ATOM_DISABLE); 2420 amdgpu_atombios_crtc_lock(crtc, ATOM_ENABLE); 2421 dce_v8_0_crtc_dpms(crtc, DRM_MODE_DPMS_OFF); 2422 } 2423 2424 static void dce_v8_0_crtc_commit(struct drm_crtc *crtc) 2425 { 2426 dce_v8_0_crtc_dpms(crtc, DRM_MODE_DPMS_ON); 2427 amdgpu_atombios_crtc_lock(crtc, ATOM_DISABLE); 2428 } 2429 2430 static void dce_v8_0_crtc_disable(struct drm_crtc *crtc) 2431 { 2432 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 2433 struct drm_device *dev = crtc->dev; 2434 struct amdgpu_device *adev = drm_to_adev(dev); 2435 struct amdgpu_atom_ss ss; 2436 int i; 2437 2438 dce_v8_0_crtc_dpms(crtc, DRM_MODE_DPMS_OFF); 2439 if (crtc->primary->fb) { 2440 int r; 2441 struct amdgpu_bo *abo; 2442 2443 abo = gem_to_amdgpu_bo(crtc->primary->fb->obj[0]); 2444 r = amdgpu_bo_reserve(abo, true); 2445 if (unlikely(r)) 2446 DRM_ERROR("failed to reserve abo before unpin\n"); 2447 else { 2448 amdgpu_bo_unpin(abo); 2449 amdgpu_bo_unreserve(abo); 2450 } 2451 } 2452 /* disable the GRPH */ 2453 dce_v8_0_grph_enable(crtc, false); 2454 2455 amdgpu_atombios_crtc_powergate(crtc, ATOM_ENABLE); 2456 2457 for (i = 0; i < adev->mode_info.num_crtc; i++) { 2458 if (adev->mode_info.crtcs[i] && 2459 adev->mode_info.crtcs[i]->enabled && 2460 i != amdgpu_crtc->crtc_id && 2461 amdgpu_crtc->pll_id == adev->mode_info.crtcs[i]->pll_id) { 2462 /* one other crtc is using this pll don't turn 2463 * off the pll 2464 */ 2465 goto done; 2466 } 2467 } 2468 2469 switch (amdgpu_crtc->pll_id) { 2470 case ATOM_PPLL1: 2471 case ATOM_PPLL2: 2472 /* disable the ppll */ 2473 amdgpu_atombios_crtc_program_pll(crtc, amdgpu_crtc->crtc_id, amdgpu_crtc->pll_id, 2474 0, 0, ATOM_DISABLE, 0, 0, 0, 0, 0, false, &ss); 2475 break; 2476 case ATOM_PPLL0: 2477 /* disable the ppll */ 2478 if ((adev->asic_type == CHIP_KAVERI) || 2479 (adev->asic_type == CHIP_BONAIRE) || 2480 (adev->asic_type == CHIP_HAWAII)) 2481 amdgpu_atombios_crtc_program_pll(crtc, amdgpu_crtc->crtc_id, amdgpu_crtc->pll_id, 2482 0, 0, ATOM_DISABLE, 0, 0, 0, 0, 0, false, &ss); 2483 break; 2484 default: 2485 break; 2486 } 2487 done: 2488 amdgpu_crtc->pll_id = ATOM_PPLL_INVALID; 2489 amdgpu_crtc->adjusted_clock = 0; 2490 amdgpu_crtc->encoder = NULL; 2491 amdgpu_crtc->connector = NULL; 2492 } 2493 2494 static int dce_v8_0_crtc_mode_set(struct drm_crtc *crtc, 2495 struct drm_display_mode *mode, 2496 struct drm_display_mode *adjusted_mode, 2497 int x, int y, struct drm_framebuffer *old_fb) 2498 { 2499 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 2500 2501 if (!amdgpu_crtc->adjusted_clock) 2502 return -EINVAL; 2503 2504 amdgpu_atombios_crtc_set_pll(crtc, adjusted_mode); 2505 amdgpu_atombios_crtc_set_dtd_timing(crtc, adjusted_mode); 2506 dce_v8_0_crtc_do_set_base(crtc, old_fb, x, y); 2507 amdgpu_atombios_crtc_overscan_setup(crtc, mode, adjusted_mode); 2508 amdgpu_atombios_crtc_scaler_setup(crtc); 2509 dce_v8_0_cursor_reset(crtc); 2510 /* update the hw version fpr dpm */ 2511 amdgpu_crtc->hw_mode = *adjusted_mode; 2512 2513 return 0; 2514 } 2515 2516 static bool dce_v8_0_crtc_mode_fixup(struct drm_crtc *crtc, 2517 const struct drm_display_mode *mode, 2518 struct drm_display_mode *adjusted_mode) 2519 { 2520 struct amdgpu_crtc *amdgpu_crtc = to_amdgpu_crtc(crtc); 2521 struct drm_device *dev = crtc->dev; 2522 struct drm_encoder *encoder; 2523 2524 /* assign the encoder to the amdgpu crtc to avoid repeated lookups later */ 2525 list_for_each_entry(encoder, &dev->mode_config.encoder_list, head) { 2526 if (encoder->crtc == crtc) { 2527 amdgpu_crtc->encoder = encoder; 2528 amdgpu_crtc->connector = amdgpu_get_connector_for_encoder(encoder); 2529 break; 2530 } 2531 } 2532 if ((amdgpu_crtc->encoder == NULL) || (amdgpu_crtc->connector == NULL)) { 2533 amdgpu_crtc->encoder = NULL; 2534 amdgpu_crtc->connector = NULL; 2535 return false; 2536 } 2537 if (!amdgpu_display_crtc_scaling_mode_fixup(crtc, mode, adjusted_mode)) 2538 return false; 2539 if (amdgpu_atombios_crtc_prepare_pll(crtc, adjusted_mode)) 2540 return false; 2541 /* pick pll */ 2542 amdgpu_crtc->pll_id = dce_v8_0_pick_pll(crtc); 2543 /* if we can't get a PPLL for a non-DP encoder, fail */ 2544 if ((amdgpu_crtc->pll_id == ATOM_PPLL_INVALID) && 2545 !ENCODER_MODE_IS_DP(amdgpu_atombios_encoder_get_encoder_mode(amdgpu_crtc->encoder))) 2546 return false; 2547 2548 return true; 2549 } 2550 2551 static int dce_v8_0_crtc_set_base(struct drm_crtc *crtc, int x, int y, 2552 struct drm_framebuffer *old_fb) 2553 { 2554 return dce_v8_0_crtc_do_set_base(crtc, old_fb, x, y); 2555 } 2556 2557 static const struct drm_crtc_helper_funcs dce_v8_0_crtc_helper_funcs = { 2558 .dpms = dce_v8_0_crtc_dpms, 2559 .mode_fixup = dce_v8_0_crtc_mode_fixup, 2560 .mode_set = dce_v8_0_crtc_mode_set, 2561 .mode_set_base = dce_v8_0_crtc_set_base, 2562 .prepare = dce_v8_0_crtc_prepare, 2563 .commit = dce_v8_0_crtc_commit, 2564 .disable = dce_v8_0_crtc_disable, 2565 .get_scanout_position = amdgpu_crtc_get_scanout_position, 2566 }; 2567 2568 static void dce_v8_0_panic_flush(struct drm_plane *plane) 2569 { 2570 struct drm_framebuffer *fb; 2571 struct amdgpu_crtc *amdgpu_crtc; 2572 struct amdgpu_device *adev; 2573 uint32_t fb_format; 2574 2575 if (!plane->fb) 2576 return; 2577 2578 fb = plane->fb; 2579 amdgpu_crtc = to_amdgpu_crtc(plane->crtc); 2580 adev = drm_to_adev(fb->dev); 2581 2582 /* Disable DC tiling */ 2583 fb_format = RREG32(mmGRPH_CONTROL + amdgpu_crtc->crtc_offset); 2584 fb_format &= ~GRPH_CONTROL__GRPH_ARRAY_MODE_MASK; 2585 WREG32(mmGRPH_CONTROL + amdgpu_crtc->crtc_offset, fb_format); 2586 } 2587 2588 static const struct drm_plane_helper_funcs dce_v8_0_drm_primary_plane_helper_funcs = { 2589 .get_scanout_buffer = amdgpu_display_get_scanout_buffer, 2590 .panic_flush = dce_v8_0_panic_flush, 2591 }; 2592 2593 static int dce_v8_0_crtc_init(struct amdgpu_device *adev, int index) 2594 { 2595 struct amdgpu_crtc *amdgpu_crtc; 2596 2597 amdgpu_crtc = kzalloc(sizeof(struct amdgpu_crtc) + 2598 (AMDGPUFB_CONN_LIMIT * sizeof(struct drm_connector *)), GFP_KERNEL); 2599 if (amdgpu_crtc == NULL) 2600 return -ENOMEM; 2601 2602 drm_crtc_init(adev_to_drm(adev), &amdgpu_crtc->base, &dce_v8_0_crtc_funcs); 2603 2604 drm_mode_crtc_set_gamma_size(&amdgpu_crtc->base, 256); 2605 amdgpu_crtc->crtc_id = index; 2606 adev->mode_info.crtcs[index] = amdgpu_crtc; 2607 2608 amdgpu_crtc->max_cursor_width = CIK_CURSOR_WIDTH; 2609 amdgpu_crtc->max_cursor_height = CIK_CURSOR_HEIGHT; 2610 adev_to_drm(adev)->mode_config.cursor_width = amdgpu_crtc->max_cursor_width; 2611 adev_to_drm(adev)->mode_config.cursor_height = amdgpu_crtc->max_cursor_height; 2612 2613 amdgpu_crtc->crtc_offset = crtc_offsets[amdgpu_crtc->crtc_id]; 2614 2615 amdgpu_crtc->pll_id = ATOM_PPLL_INVALID; 2616 amdgpu_crtc->adjusted_clock = 0; 2617 amdgpu_crtc->encoder = NULL; 2618 amdgpu_crtc->connector = NULL; 2619 drm_crtc_helper_add(&amdgpu_crtc->base, &dce_v8_0_crtc_helper_funcs); 2620 drm_plane_helper_add(amdgpu_crtc->base.primary, &dce_v8_0_drm_primary_plane_helper_funcs); 2621 2622 return 0; 2623 } 2624 2625 static int dce_v8_0_early_init(struct amdgpu_ip_block *ip_block) 2626 { 2627 struct amdgpu_device *adev = ip_block->adev; 2628 2629 adev->reg.audio_endpt.rreg = &dce_v8_0_audio_endpt_rreg; 2630 adev->reg.audio_endpt.wreg = &dce_v8_0_audio_endpt_wreg; 2631 2632 dce_v8_0_set_display_funcs(adev); 2633 2634 adev->mode_info.num_crtc = dce_v8_0_get_num_crtc(adev); 2635 2636 switch (adev->asic_type) { 2637 case CHIP_BONAIRE: 2638 case CHIP_HAWAII: 2639 adev->mode_info.num_hpd = 6; 2640 adev->mode_info.num_dig = 6; 2641 break; 2642 case CHIP_KAVERI: 2643 adev->mode_info.num_hpd = 6; 2644 adev->mode_info.num_dig = 7; 2645 break; 2646 case CHIP_KABINI: 2647 case CHIP_MULLINS: 2648 adev->mode_info.num_hpd = 6; 2649 adev->mode_info.num_dig = 6; /* ? */ 2650 break; 2651 default: 2652 /* FIXME: not supported yet */ 2653 return -EINVAL; 2654 } 2655 2656 dce_v8_0_set_irq_funcs(adev); 2657 2658 return 0; 2659 } 2660 2661 static int dce_v8_0_sw_init(struct amdgpu_ip_block *ip_block) 2662 { 2663 int r, i; 2664 struct amdgpu_device *adev = ip_block->adev; 2665 2666 for (i = 0; i < adev->mode_info.num_crtc; i++) { 2667 r = amdgpu_irq_add_id(adev, AMDGPU_IRQ_CLIENTID_LEGACY, i + 1, &adev->crtc_irq); 2668 if (r) 2669 return r; 2670 } 2671 2672 for (i = 8; i < 20; i += 2) { 2673 r = amdgpu_irq_add_id(adev, AMDGPU_IRQ_CLIENTID_LEGACY, i, &adev->pageflip_irq); 2674 if (r) 2675 return r; 2676 } 2677 2678 /* HPD hotplug */ 2679 r = amdgpu_irq_add_id(adev, AMDGPU_IRQ_CLIENTID_LEGACY, 42, &adev->hpd_irq); 2680 if (r) 2681 return r; 2682 2683 adev_to_drm(adev)->mode_config.funcs = &amdgpu_mode_funcs; 2684 2685 adev_to_drm(adev)->mode_config.async_page_flip = true; 2686 2687 adev_to_drm(adev)->mode_config.max_width = 16384; 2688 adev_to_drm(adev)->mode_config.max_height = 16384; 2689 2690 adev_to_drm(adev)->mode_config.preferred_depth = 24; 2691 if (adev->asic_type == CHIP_HAWAII) 2692 /* disable prefer shadow for now due to hibernation issues */ 2693 adev_to_drm(adev)->mode_config.prefer_shadow = 0; 2694 else 2695 adev_to_drm(adev)->mode_config.prefer_shadow = 1; 2696 2697 adev_to_drm(adev)->mode_config.fb_modifiers_not_supported = true; 2698 2699 r = amdgpu_display_modeset_create_props(adev); 2700 if (r) 2701 return r; 2702 2703 adev_to_drm(adev)->mode_config.max_width = 16384; 2704 adev_to_drm(adev)->mode_config.max_height = 16384; 2705 2706 /* allocate crtcs */ 2707 for (i = 0; i < adev->mode_info.num_crtc; i++) { 2708 r = dce_v8_0_crtc_init(adev, i); 2709 if (r) 2710 return r; 2711 } 2712 2713 if (amdgpu_atombios_get_connector_info_from_object_table(adev)) 2714 amdgpu_display_print_display_setup(adev_to_drm(adev)); 2715 else 2716 return -EINVAL; 2717 2718 /* setup afmt */ 2719 r = dce_v8_0_afmt_init(adev); 2720 if (r) 2721 return r; 2722 2723 r = dce_v8_0_audio_init(adev); 2724 if (r) 2725 return r; 2726 2727 /* Disable vblank IRQs aggressively for power-saving */ 2728 /* XXX: can this be enabled for DC? */ 2729 adev_to_drm(adev)->vblank_disable_immediate = true; 2730 2731 r = drm_vblank_init(adev_to_drm(adev), adev->mode_info.num_crtc); 2732 if (r) 2733 return r; 2734 2735 /* Pre-DCE11 */ 2736 INIT_DELAYED_WORK(&adev->hotplug_work, 2737 amdgpu_display_hotplug_work_func); 2738 2739 drm_kms_helper_poll_init(adev_to_drm(adev)); 2740 2741 adev->mode_info.mode_config_initialized = true; 2742 return 0; 2743 } 2744 2745 static int dce_v8_0_sw_fini(struct amdgpu_ip_block *ip_block) 2746 { 2747 struct amdgpu_device *adev = ip_block->adev; 2748 2749 drm_edid_free(adev->mode_info.bios_hardcoded_edid); 2750 2751 drm_kms_helper_poll_fini(adev_to_drm(adev)); 2752 2753 dce_v8_0_audio_fini(adev); 2754 2755 dce_v8_0_afmt_fini(adev); 2756 2757 drm_mode_config_cleanup(adev_to_drm(adev)); 2758 adev->mode_info.mode_config_initialized = false; 2759 2760 return 0; 2761 } 2762 2763 static int dce_v8_0_hw_init(struct amdgpu_ip_block *ip_block) 2764 { 2765 int i; 2766 struct amdgpu_device *adev = ip_block->adev; 2767 2768 /* disable vga render */ 2769 dce_v8_0_set_vga_render_state(adev, false); 2770 /* init dig PHYs, disp eng pll */ 2771 amdgpu_atombios_encoder_init_dig(adev); 2772 amdgpu_atombios_crtc_set_disp_eng_pll(adev, adev->clock.default_dispclk); 2773 2774 /* initialize hpd */ 2775 dce_v8_0_hpd_init(adev); 2776 2777 for (i = 0; i < adev->mode_info.audio.num_pins; i++) { 2778 dce_v8_0_audio_enable(adev, &adev->mode_info.audio.pin[i], false); 2779 } 2780 2781 dce_v8_0_pageflip_interrupt_init(adev); 2782 2783 return 0; 2784 } 2785 2786 static int dce_v8_0_hw_fini(struct amdgpu_ip_block *ip_block) 2787 { 2788 int i; 2789 struct amdgpu_device *adev = ip_block->adev; 2790 2791 dce_v8_0_hpd_fini(adev); 2792 2793 for (i = 0; i < adev->mode_info.audio.num_pins; i++) { 2794 dce_v8_0_audio_enable(adev, &adev->mode_info.audio.pin[i], false); 2795 } 2796 2797 dce_v8_0_pageflip_interrupt_fini(adev); 2798 2799 flush_delayed_work(&adev->hotplug_work); 2800 2801 return 0; 2802 } 2803 2804 static int dce_v8_0_suspend(struct amdgpu_ip_block *ip_block) 2805 { 2806 struct amdgpu_device *adev = ip_block->adev; 2807 int r; 2808 2809 r = amdgpu_display_suspend_helper(adev); 2810 if (r) 2811 return r; 2812 2813 adev->mode_info.bl_level = 2814 amdgpu_atombios_encoder_get_backlight_level_from_reg(adev); 2815 2816 return dce_v8_0_hw_fini(ip_block); 2817 } 2818 2819 static int dce_v8_0_resume(struct amdgpu_ip_block *ip_block) 2820 { 2821 struct amdgpu_device *adev = ip_block->adev; 2822 int ret; 2823 2824 amdgpu_atombios_encoder_set_backlight_level_to_reg(adev, 2825 adev->mode_info.bl_level); 2826 2827 ret = dce_v8_0_hw_init(ip_block); 2828 2829 /* turn on the BL */ 2830 if (adev->mode_info.bl_encoder) { 2831 u8 bl_level = amdgpu_display_backlight_get_level(adev, 2832 adev->mode_info.bl_encoder); 2833 amdgpu_display_backlight_set_level(adev, adev->mode_info.bl_encoder, 2834 bl_level); 2835 } 2836 if (ret) 2837 return ret; 2838 2839 return amdgpu_display_resume_helper(adev); 2840 } 2841 2842 static bool dce_v8_0_is_idle(struct amdgpu_ip_block *ip_block) 2843 { 2844 return true; 2845 } 2846 2847 static void dce_v8_0_set_crtc_vblank_interrupt_state(struct amdgpu_device *adev, 2848 int crtc, 2849 enum amdgpu_interrupt_state state) 2850 { 2851 u32 reg_block, lb_interrupt_mask; 2852 2853 if (crtc >= adev->mode_info.num_crtc) { 2854 DRM_DEBUG("invalid crtc %d\n", crtc); 2855 return; 2856 } 2857 2858 switch (crtc) { 2859 case 0: 2860 reg_block = CRTC0_REGISTER_OFFSET; 2861 break; 2862 case 1: 2863 reg_block = CRTC1_REGISTER_OFFSET; 2864 break; 2865 case 2: 2866 reg_block = CRTC2_REGISTER_OFFSET; 2867 break; 2868 case 3: 2869 reg_block = CRTC3_REGISTER_OFFSET; 2870 break; 2871 case 4: 2872 reg_block = CRTC4_REGISTER_OFFSET; 2873 break; 2874 case 5: 2875 reg_block = CRTC5_REGISTER_OFFSET; 2876 break; 2877 default: 2878 DRM_DEBUG("invalid crtc %d\n", crtc); 2879 return; 2880 } 2881 2882 switch (state) { 2883 case AMDGPU_IRQ_STATE_DISABLE: 2884 lb_interrupt_mask = RREG32(mmLB_INTERRUPT_MASK + reg_block); 2885 lb_interrupt_mask &= ~LB_INTERRUPT_MASK__VBLANK_INTERRUPT_MASK_MASK; 2886 WREG32(mmLB_INTERRUPT_MASK + reg_block, lb_interrupt_mask); 2887 break; 2888 case AMDGPU_IRQ_STATE_ENABLE: 2889 lb_interrupt_mask = RREG32(mmLB_INTERRUPT_MASK + reg_block); 2890 lb_interrupt_mask |= LB_INTERRUPT_MASK__VBLANK_INTERRUPT_MASK_MASK; 2891 WREG32(mmLB_INTERRUPT_MASK + reg_block, lb_interrupt_mask); 2892 break; 2893 default: 2894 break; 2895 } 2896 } 2897 2898 static void dce_v8_0_set_crtc_vline_interrupt_state(struct amdgpu_device *adev, 2899 int crtc, 2900 enum amdgpu_interrupt_state state) 2901 { 2902 u32 reg_block, lb_interrupt_mask; 2903 2904 if (crtc >= adev->mode_info.num_crtc) { 2905 DRM_DEBUG("invalid crtc %d\n", crtc); 2906 return; 2907 } 2908 2909 switch (crtc) { 2910 case 0: 2911 reg_block = CRTC0_REGISTER_OFFSET; 2912 break; 2913 case 1: 2914 reg_block = CRTC1_REGISTER_OFFSET; 2915 break; 2916 case 2: 2917 reg_block = CRTC2_REGISTER_OFFSET; 2918 break; 2919 case 3: 2920 reg_block = CRTC3_REGISTER_OFFSET; 2921 break; 2922 case 4: 2923 reg_block = CRTC4_REGISTER_OFFSET; 2924 break; 2925 case 5: 2926 reg_block = CRTC5_REGISTER_OFFSET; 2927 break; 2928 default: 2929 DRM_DEBUG("invalid crtc %d\n", crtc); 2930 return; 2931 } 2932 2933 switch (state) { 2934 case AMDGPU_IRQ_STATE_DISABLE: 2935 lb_interrupt_mask = RREG32(mmLB_INTERRUPT_MASK + reg_block); 2936 lb_interrupt_mask &= ~LB_INTERRUPT_MASK__VLINE_INTERRUPT_MASK_MASK; 2937 WREG32(mmLB_INTERRUPT_MASK + reg_block, lb_interrupt_mask); 2938 break; 2939 case AMDGPU_IRQ_STATE_ENABLE: 2940 lb_interrupt_mask = RREG32(mmLB_INTERRUPT_MASK + reg_block); 2941 lb_interrupt_mask |= LB_INTERRUPT_MASK__VLINE_INTERRUPT_MASK_MASK; 2942 WREG32(mmLB_INTERRUPT_MASK + reg_block, lb_interrupt_mask); 2943 break; 2944 default: 2945 break; 2946 } 2947 } 2948 2949 static int dce_v8_0_set_hpd_irq_state(struct amdgpu_device *adev, 2950 struct amdgpu_irq_src *src, 2951 unsigned type, 2952 enum amdgpu_interrupt_state state) 2953 { 2954 u32 dc_hpd_int_cntl; 2955 2956 if (type >= adev->mode_info.num_hpd) { 2957 DRM_DEBUG("invalid hpd %d\n", type); 2958 return 0; 2959 } 2960 2961 switch (state) { 2962 case AMDGPU_IRQ_STATE_DISABLE: 2963 dc_hpd_int_cntl = RREG32(mmDC_HPD1_INT_CONTROL + hpd_offsets[type]); 2964 dc_hpd_int_cntl &= ~DC_HPD1_INT_CONTROL__DC_HPD1_INT_EN_MASK; 2965 WREG32(mmDC_HPD1_INT_CONTROL + hpd_offsets[type], dc_hpd_int_cntl); 2966 break; 2967 case AMDGPU_IRQ_STATE_ENABLE: 2968 dc_hpd_int_cntl = RREG32(mmDC_HPD1_INT_CONTROL + hpd_offsets[type]); 2969 dc_hpd_int_cntl |= DC_HPD1_INT_CONTROL__DC_HPD1_INT_EN_MASK; 2970 WREG32(mmDC_HPD1_INT_CONTROL + hpd_offsets[type], dc_hpd_int_cntl); 2971 break; 2972 default: 2973 break; 2974 } 2975 2976 return 0; 2977 } 2978 2979 static int dce_v8_0_set_crtc_irq_state(struct amdgpu_device *adev, 2980 struct amdgpu_irq_src *src, 2981 unsigned type, 2982 enum amdgpu_interrupt_state state) 2983 { 2984 switch (type) { 2985 case AMDGPU_CRTC_IRQ_VBLANK1: 2986 dce_v8_0_set_crtc_vblank_interrupt_state(adev, 0, state); 2987 break; 2988 case AMDGPU_CRTC_IRQ_VBLANK2: 2989 dce_v8_0_set_crtc_vblank_interrupt_state(adev, 1, state); 2990 break; 2991 case AMDGPU_CRTC_IRQ_VBLANK3: 2992 dce_v8_0_set_crtc_vblank_interrupt_state(adev, 2, state); 2993 break; 2994 case AMDGPU_CRTC_IRQ_VBLANK4: 2995 dce_v8_0_set_crtc_vblank_interrupt_state(adev, 3, state); 2996 break; 2997 case AMDGPU_CRTC_IRQ_VBLANK5: 2998 dce_v8_0_set_crtc_vblank_interrupt_state(adev, 4, state); 2999 break; 3000 case AMDGPU_CRTC_IRQ_VBLANK6: 3001 dce_v8_0_set_crtc_vblank_interrupt_state(adev, 5, state); 3002 break; 3003 case AMDGPU_CRTC_IRQ_VLINE1: 3004 dce_v8_0_set_crtc_vline_interrupt_state(adev, 0, state); 3005 break; 3006 case AMDGPU_CRTC_IRQ_VLINE2: 3007 dce_v8_0_set_crtc_vline_interrupt_state(adev, 1, state); 3008 break; 3009 case AMDGPU_CRTC_IRQ_VLINE3: 3010 dce_v8_0_set_crtc_vline_interrupt_state(adev, 2, state); 3011 break; 3012 case AMDGPU_CRTC_IRQ_VLINE4: 3013 dce_v8_0_set_crtc_vline_interrupt_state(adev, 3, state); 3014 break; 3015 case AMDGPU_CRTC_IRQ_VLINE5: 3016 dce_v8_0_set_crtc_vline_interrupt_state(adev, 4, state); 3017 break; 3018 case AMDGPU_CRTC_IRQ_VLINE6: 3019 dce_v8_0_set_crtc_vline_interrupt_state(adev, 5, state); 3020 break; 3021 default: 3022 break; 3023 } 3024 return 0; 3025 } 3026 3027 static int dce_v8_0_crtc_irq(struct amdgpu_device *adev, 3028 struct amdgpu_irq_src *source, 3029 struct amdgpu_iv_entry *entry) 3030 { 3031 unsigned crtc = entry->src_id - 1; 3032 uint32_t disp_int = RREG32(interrupt_status_offsets[crtc].reg); 3033 unsigned int irq_type = amdgpu_display_crtc_idx_to_irq_type(adev, 3034 crtc); 3035 3036 switch (entry->src_data[0]) { 3037 case 0: /* vblank */ 3038 if (disp_int & interrupt_status_offsets[crtc].vblank) 3039 WREG32(mmLB_VBLANK_STATUS + crtc_offsets[crtc], LB_VBLANK_STATUS__VBLANK_ACK_MASK); 3040 else 3041 DRM_DEBUG("IH: IH event w/o asserted irq bit?\n"); 3042 3043 if (amdgpu_irq_enabled(adev, source, irq_type)) { 3044 drm_handle_vblank(adev_to_drm(adev), crtc); 3045 } 3046 DRM_DEBUG("IH: D%d vblank\n", crtc + 1); 3047 break; 3048 case 1: /* vline */ 3049 if (disp_int & interrupt_status_offsets[crtc].vline) 3050 WREG32(mmLB_VLINE_STATUS + crtc_offsets[crtc], LB_VLINE_STATUS__VLINE_ACK_MASK); 3051 else 3052 DRM_DEBUG("IH: IH event w/o asserted irq bit?\n"); 3053 3054 DRM_DEBUG("IH: D%d vline\n", crtc + 1); 3055 break; 3056 default: 3057 DRM_DEBUG("Unhandled interrupt: %d %d\n", entry->src_id, entry->src_data[0]); 3058 break; 3059 } 3060 3061 return 0; 3062 } 3063 3064 static int dce_v8_0_set_pageflip_irq_state(struct amdgpu_device *adev, 3065 struct amdgpu_irq_src *src, 3066 unsigned type, 3067 enum amdgpu_interrupt_state state) 3068 { 3069 u32 reg; 3070 3071 if (type >= adev->mode_info.num_crtc) { 3072 DRM_ERROR("invalid pageflip crtc %d\n", type); 3073 return -EINVAL; 3074 } 3075 3076 reg = RREG32(mmGRPH_INTERRUPT_CONTROL + crtc_offsets[type]); 3077 if (state == AMDGPU_IRQ_STATE_DISABLE) 3078 WREG32(mmGRPH_INTERRUPT_CONTROL + crtc_offsets[type], 3079 reg & ~GRPH_INTERRUPT_CONTROL__GRPH_PFLIP_INT_MASK_MASK); 3080 else 3081 WREG32(mmGRPH_INTERRUPT_CONTROL + crtc_offsets[type], 3082 reg | GRPH_INTERRUPT_CONTROL__GRPH_PFLIP_INT_MASK_MASK); 3083 3084 return 0; 3085 } 3086 3087 static int dce_v8_0_pageflip_irq(struct amdgpu_device *adev, 3088 struct amdgpu_irq_src *source, 3089 struct amdgpu_iv_entry *entry) 3090 { 3091 unsigned long flags; 3092 unsigned crtc_id; 3093 struct amdgpu_crtc *amdgpu_crtc; 3094 struct amdgpu_flip_work *works; 3095 3096 crtc_id = (entry->src_id - 8) >> 1; 3097 amdgpu_crtc = adev->mode_info.crtcs[crtc_id]; 3098 3099 if (crtc_id >= adev->mode_info.num_crtc) { 3100 DRM_ERROR("invalid pageflip crtc %d\n", crtc_id); 3101 return -EINVAL; 3102 } 3103 3104 if (RREG32(mmGRPH_INTERRUPT_STATUS + crtc_offsets[crtc_id]) & 3105 GRPH_INTERRUPT_STATUS__GRPH_PFLIP_INT_OCCURRED_MASK) 3106 WREG32(mmGRPH_INTERRUPT_STATUS + crtc_offsets[crtc_id], 3107 GRPH_INTERRUPT_STATUS__GRPH_PFLIP_INT_CLEAR_MASK); 3108 3109 /* IRQ could occur when in initial stage */ 3110 if (amdgpu_crtc == NULL) 3111 return 0; 3112 3113 spin_lock_irqsave(&adev_to_drm(adev)->event_lock, flags); 3114 works = amdgpu_crtc->pflip_works; 3115 if (amdgpu_crtc->pflip_status != AMDGPU_FLIP_SUBMITTED) { 3116 DRM_DEBUG_DRIVER("amdgpu_crtc->pflip_status = %d != " 3117 "AMDGPU_FLIP_SUBMITTED(%d)\n", 3118 amdgpu_crtc->pflip_status, 3119 AMDGPU_FLIP_SUBMITTED); 3120 spin_unlock_irqrestore(&adev_to_drm(adev)->event_lock, flags); 3121 return 0; 3122 } 3123 3124 /* page flip completed. clean up */ 3125 amdgpu_crtc->pflip_status = AMDGPU_FLIP_NONE; 3126 amdgpu_crtc->pflip_works = NULL; 3127 3128 /* wakeup usersapce */ 3129 if (works->event) 3130 drm_crtc_send_vblank_event(&amdgpu_crtc->base, works->event); 3131 3132 spin_unlock_irqrestore(&adev_to_drm(adev)->event_lock, flags); 3133 3134 drm_crtc_vblank_put(&amdgpu_crtc->base); 3135 schedule_work(&works->unpin_work); 3136 3137 return 0; 3138 } 3139 3140 static int dce_v8_0_hpd_irq(struct amdgpu_device *adev, 3141 struct amdgpu_irq_src *source, 3142 struct amdgpu_iv_entry *entry) 3143 { 3144 uint32_t disp_int, mask; 3145 unsigned hpd; 3146 3147 if (entry->src_data[0] >= adev->mode_info.num_hpd) { 3148 DRM_DEBUG("Unhandled interrupt: %d %d\n", entry->src_id, entry->src_data[0]); 3149 return 0; 3150 } 3151 3152 hpd = entry->src_data[0]; 3153 disp_int = RREG32(interrupt_status_offsets[hpd].reg); 3154 mask = interrupt_status_offsets[hpd].hpd; 3155 3156 if (disp_int & mask) { 3157 dce_v8_0_hpd_int_ack(adev, hpd); 3158 schedule_delayed_work(&adev->hotplug_work, 0); 3159 DRM_DEBUG("IH: HPD%d\n", hpd + 1); 3160 } 3161 3162 return 0; 3163 3164 } 3165 3166 static int dce_v8_0_set_clockgating_state(struct amdgpu_ip_block *ip_block, 3167 enum amd_clockgating_state state) 3168 { 3169 return 0; 3170 } 3171 3172 static int dce_v8_0_set_powergating_state(struct amdgpu_ip_block *ip_block, 3173 enum amd_powergating_state state) 3174 { 3175 return 0; 3176 } 3177 3178 static const struct amd_ip_funcs dce_v8_0_ip_funcs = { 3179 .name = "dce_v8_0", 3180 .early_init = dce_v8_0_early_init, 3181 .sw_init = dce_v8_0_sw_init, 3182 .sw_fini = dce_v8_0_sw_fini, 3183 .hw_init = dce_v8_0_hw_init, 3184 .hw_fini = dce_v8_0_hw_fini, 3185 .suspend = dce_v8_0_suspend, 3186 .resume = dce_v8_0_resume, 3187 .is_idle = dce_v8_0_is_idle, 3188 .set_clockgating_state = dce_v8_0_set_clockgating_state, 3189 .set_powergating_state = dce_v8_0_set_powergating_state, 3190 }; 3191 3192 static void 3193 dce_v8_0_encoder_mode_set(struct drm_encoder *encoder, 3194 struct drm_display_mode *mode, 3195 struct drm_display_mode *adjusted_mode) 3196 { 3197 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 3198 3199 amdgpu_encoder->pixel_clock = adjusted_mode->clock; 3200 3201 /* need to call this here rather than in prepare() since we need some crtc info */ 3202 amdgpu_atombios_encoder_dpms(encoder, DRM_MODE_DPMS_OFF); 3203 3204 /* set scaler clears this on some chips */ 3205 dce_v8_0_set_interleave(encoder->crtc, mode); 3206 3207 if (amdgpu_atombios_encoder_get_encoder_mode(encoder) == ATOM_ENCODER_MODE_HDMI) { 3208 dce_v8_0_afmt_enable(encoder, true); 3209 dce_v8_0_afmt_setmode(encoder, adjusted_mode); 3210 } 3211 } 3212 3213 static void dce_v8_0_encoder_prepare(struct drm_encoder *encoder) 3214 { 3215 struct amdgpu_device *adev = drm_to_adev(encoder->dev); 3216 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 3217 struct drm_connector *connector = amdgpu_get_connector_for_encoder(encoder); 3218 3219 if ((amdgpu_encoder->active_device & 3220 (ATOM_DEVICE_DFP_SUPPORT | ATOM_DEVICE_LCD_SUPPORT)) || 3221 (amdgpu_encoder_get_dp_bridge_encoder_id(encoder) != 3222 ENCODER_OBJECT_ID_NONE)) { 3223 struct amdgpu_encoder_atom_dig *dig = amdgpu_encoder->enc_priv; 3224 if (dig) { 3225 dig->dig_encoder = dce_v8_0_pick_dig_encoder(encoder); 3226 if (amdgpu_encoder->active_device & ATOM_DEVICE_DFP_SUPPORT) 3227 dig->afmt = adev->mode_info.afmt[dig->dig_encoder]; 3228 } 3229 } 3230 3231 amdgpu_atombios_scratch_regs_lock(adev, true); 3232 3233 if (connector) { 3234 struct amdgpu_connector *amdgpu_connector = to_amdgpu_connector(connector); 3235 3236 /* select the clock/data port if it uses a router */ 3237 if (amdgpu_connector->router.cd_valid) 3238 amdgpu_i2c_router_select_cd_port(amdgpu_connector); 3239 3240 /* turn eDP panel on for mode set */ 3241 if (connector->connector_type == DRM_MODE_CONNECTOR_eDP) 3242 amdgpu_atombios_encoder_set_edp_panel_power(connector, 3243 ATOM_TRANSMITTER_ACTION_POWER_ON); 3244 } 3245 3246 /* this is needed for the pll/ss setup to work correctly in some cases */ 3247 amdgpu_atombios_encoder_set_crtc_source(encoder); 3248 /* set up the FMT blocks */ 3249 dce_v8_0_program_fmt(encoder); 3250 } 3251 3252 static void dce_v8_0_encoder_commit(struct drm_encoder *encoder) 3253 { 3254 struct drm_device *dev = encoder->dev; 3255 struct amdgpu_device *adev = drm_to_adev(dev); 3256 3257 /* need to call this here as we need the crtc set up */ 3258 amdgpu_atombios_encoder_dpms(encoder, DRM_MODE_DPMS_ON); 3259 amdgpu_atombios_scratch_regs_lock(adev, false); 3260 } 3261 3262 static void dce_v8_0_encoder_disable(struct drm_encoder *encoder) 3263 { 3264 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 3265 struct amdgpu_encoder_atom_dig *dig; 3266 3267 amdgpu_atombios_encoder_dpms(encoder, DRM_MODE_DPMS_OFF); 3268 3269 if (amdgpu_atombios_encoder_is_digital(encoder)) { 3270 if (amdgpu_atombios_encoder_get_encoder_mode(encoder) == ATOM_ENCODER_MODE_HDMI) 3271 dce_v8_0_afmt_enable(encoder, false); 3272 dig = amdgpu_encoder->enc_priv; 3273 dig->dig_encoder = -1; 3274 } 3275 amdgpu_encoder->active_device = 0; 3276 } 3277 3278 /* these are handled by the primary encoders */ 3279 static void dce_v8_0_ext_prepare(struct drm_encoder *encoder) 3280 { 3281 3282 } 3283 3284 static void dce_v8_0_ext_commit(struct drm_encoder *encoder) 3285 { 3286 3287 } 3288 3289 static void 3290 dce_v8_0_ext_mode_set(struct drm_encoder *encoder, 3291 struct drm_display_mode *mode, 3292 struct drm_display_mode *adjusted_mode) 3293 { 3294 3295 } 3296 3297 static void dce_v8_0_ext_disable(struct drm_encoder *encoder) 3298 { 3299 3300 } 3301 3302 static void 3303 dce_v8_0_ext_dpms(struct drm_encoder *encoder, int mode) 3304 { 3305 3306 } 3307 3308 static const struct drm_encoder_helper_funcs dce_v8_0_ext_helper_funcs = { 3309 .dpms = dce_v8_0_ext_dpms, 3310 .prepare = dce_v8_0_ext_prepare, 3311 .mode_set = dce_v8_0_ext_mode_set, 3312 .commit = dce_v8_0_ext_commit, 3313 .disable = dce_v8_0_ext_disable, 3314 /* no detect for TMDS/LVDS yet */ 3315 }; 3316 3317 static const struct drm_encoder_helper_funcs dce_v8_0_dig_helper_funcs = { 3318 .dpms = amdgpu_atombios_encoder_dpms, 3319 .mode_fixup = amdgpu_atombios_encoder_mode_fixup, 3320 .prepare = dce_v8_0_encoder_prepare, 3321 .mode_set = dce_v8_0_encoder_mode_set, 3322 .commit = dce_v8_0_encoder_commit, 3323 .disable = dce_v8_0_encoder_disable, 3324 .detect = amdgpu_atombios_encoder_dig_detect, 3325 }; 3326 3327 static const struct drm_encoder_helper_funcs dce_v8_0_dac_helper_funcs = { 3328 .dpms = amdgpu_atombios_encoder_dpms, 3329 .mode_fixup = amdgpu_atombios_encoder_mode_fixup, 3330 .prepare = dce_v8_0_encoder_prepare, 3331 .mode_set = dce_v8_0_encoder_mode_set, 3332 .commit = dce_v8_0_encoder_commit, 3333 .detect = amdgpu_atombios_encoder_dac_detect, 3334 }; 3335 3336 static void dce_v8_0_encoder_destroy(struct drm_encoder *encoder) 3337 { 3338 struct amdgpu_encoder *amdgpu_encoder = to_amdgpu_encoder(encoder); 3339 if (amdgpu_encoder->devices & (ATOM_DEVICE_LCD_SUPPORT)) 3340 amdgpu_atombios_encoder_fini_backlight(amdgpu_encoder); 3341 kfree(amdgpu_encoder->enc_priv); 3342 drm_encoder_cleanup(encoder); 3343 kfree(amdgpu_encoder); 3344 } 3345 3346 static const struct drm_encoder_funcs dce_v8_0_encoder_funcs = { 3347 .destroy = dce_v8_0_encoder_destroy, 3348 }; 3349 3350 static void dce_v8_0_encoder_add(struct amdgpu_device *adev, 3351 uint32_t encoder_enum, 3352 uint32_t supported_device, 3353 u16 caps) 3354 { 3355 struct drm_device *dev = adev_to_drm(adev); 3356 struct drm_encoder *encoder; 3357 struct amdgpu_encoder *amdgpu_encoder; 3358 3359 /* see if we already added it */ 3360 list_for_each_entry(encoder, &dev->mode_config.encoder_list, head) { 3361 amdgpu_encoder = to_amdgpu_encoder(encoder); 3362 if (amdgpu_encoder->encoder_enum == encoder_enum) { 3363 amdgpu_encoder->devices |= supported_device; 3364 return; 3365 } 3366 3367 } 3368 3369 /* add a new one */ 3370 amdgpu_encoder = kzalloc_obj(struct amdgpu_encoder); 3371 if (!amdgpu_encoder) 3372 return; 3373 3374 encoder = &amdgpu_encoder->base; 3375 switch (adev->mode_info.num_crtc) { 3376 case 1: 3377 encoder->possible_crtcs = 0x1; 3378 break; 3379 case 2: 3380 default: 3381 encoder->possible_crtcs = 0x3; 3382 break; 3383 case 4: 3384 encoder->possible_crtcs = 0xf; 3385 break; 3386 case 6: 3387 encoder->possible_crtcs = 0x3f; 3388 break; 3389 } 3390 3391 amdgpu_encoder->enc_priv = NULL; 3392 3393 amdgpu_encoder->encoder_enum = encoder_enum; 3394 amdgpu_encoder->encoder_id = (encoder_enum & OBJECT_ID_MASK) >> OBJECT_ID_SHIFT; 3395 amdgpu_encoder->devices = supported_device; 3396 amdgpu_encoder->rmx_type = RMX_OFF; 3397 amdgpu_encoder->underscan_type = UNDERSCAN_OFF; 3398 amdgpu_encoder->is_ext_encoder = false; 3399 amdgpu_encoder->caps = caps; 3400 3401 switch (amdgpu_encoder->encoder_id) { 3402 case ENCODER_OBJECT_ID_INTERNAL_KLDSCP_DAC1: 3403 case ENCODER_OBJECT_ID_INTERNAL_KLDSCP_DAC2: 3404 drm_encoder_init(dev, encoder, &dce_v8_0_encoder_funcs, 3405 DRM_MODE_ENCODER_DAC, NULL); 3406 drm_encoder_helper_add(encoder, &dce_v8_0_dac_helper_funcs); 3407 break; 3408 case ENCODER_OBJECT_ID_INTERNAL_KLDSCP_DVO1: 3409 case ENCODER_OBJECT_ID_INTERNAL_UNIPHY: 3410 case ENCODER_OBJECT_ID_INTERNAL_UNIPHY1: 3411 case ENCODER_OBJECT_ID_INTERNAL_UNIPHY2: 3412 case ENCODER_OBJECT_ID_INTERNAL_UNIPHY3: 3413 if (amdgpu_encoder->devices & (ATOM_DEVICE_LCD_SUPPORT)) { 3414 amdgpu_encoder->rmx_type = RMX_FULL; 3415 drm_encoder_init(dev, encoder, &dce_v8_0_encoder_funcs, 3416 DRM_MODE_ENCODER_LVDS, NULL); 3417 amdgpu_encoder->enc_priv = amdgpu_atombios_encoder_get_lcd_info(amdgpu_encoder); 3418 } else if (amdgpu_encoder->devices & (ATOM_DEVICE_CRT_SUPPORT)) { 3419 drm_encoder_init(dev, encoder, &dce_v8_0_encoder_funcs, 3420 DRM_MODE_ENCODER_DAC, NULL); 3421 amdgpu_encoder->enc_priv = amdgpu_atombios_encoder_get_dig_info(amdgpu_encoder); 3422 } else { 3423 drm_encoder_init(dev, encoder, &dce_v8_0_encoder_funcs, 3424 DRM_MODE_ENCODER_TMDS, NULL); 3425 amdgpu_encoder->enc_priv = amdgpu_atombios_encoder_get_dig_info(amdgpu_encoder); 3426 } 3427 drm_encoder_helper_add(encoder, &dce_v8_0_dig_helper_funcs); 3428 break; 3429 case ENCODER_OBJECT_ID_SI170B: 3430 case ENCODER_OBJECT_ID_CH7303: 3431 case ENCODER_OBJECT_ID_EXTERNAL_SDVOA: 3432 case ENCODER_OBJECT_ID_EXTERNAL_SDVOB: 3433 case ENCODER_OBJECT_ID_TITFP513: 3434 case ENCODER_OBJECT_ID_VT1623: 3435 case ENCODER_OBJECT_ID_HDMI_SI1930: 3436 case ENCODER_OBJECT_ID_TRAVIS: 3437 case ENCODER_OBJECT_ID_NUTMEG: 3438 /* these are handled by the primary encoders */ 3439 amdgpu_encoder->is_ext_encoder = true; 3440 if (amdgpu_encoder->devices & (ATOM_DEVICE_LCD_SUPPORT)) 3441 drm_encoder_init(dev, encoder, &dce_v8_0_encoder_funcs, 3442 DRM_MODE_ENCODER_LVDS, NULL); 3443 else if (amdgpu_encoder->devices & (ATOM_DEVICE_CRT_SUPPORT)) 3444 drm_encoder_init(dev, encoder, &dce_v8_0_encoder_funcs, 3445 DRM_MODE_ENCODER_DAC, NULL); 3446 else 3447 drm_encoder_init(dev, encoder, &dce_v8_0_encoder_funcs, 3448 DRM_MODE_ENCODER_TMDS, NULL); 3449 drm_encoder_helper_add(encoder, &dce_v8_0_ext_helper_funcs); 3450 break; 3451 } 3452 } 3453 3454 static const struct amdgpu_display_funcs dce_v8_0_display_funcs = { 3455 .bandwidth_update = &dce_v8_0_bandwidth_update, 3456 .vblank_get_counter = &dce_v8_0_vblank_get_counter, 3457 .backlight_set_level = &amdgpu_atombios_encoder_set_backlight_level, 3458 .backlight_get_level = &amdgpu_atombios_encoder_get_backlight_level, 3459 .hpd_sense = &dce_v8_0_hpd_sense, 3460 .hpd_set_polarity = &dce_v8_0_hpd_set_polarity, 3461 .hpd_get_gpio_reg = &dce_v8_0_hpd_get_gpio_reg, 3462 .page_flip = &dce_v8_0_page_flip, 3463 .page_flip_get_scanoutpos = &dce_v8_0_crtc_get_scanoutpos, 3464 .add_encoder = &dce_v8_0_encoder_add, 3465 .add_connector = &amdgpu_connector_add, 3466 }; 3467 3468 static void dce_v8_0_set_display_funcs(struct amdgpu_device *adev) 3469 { 3470 adev->mode_info.funcs = &dce_v8_0_display_funcs; 3471 } 3472 3473 static const struct amdgpu_irq_src_funcs dce_v8_0_crtc_irq_funcs = { 3474 .set = dce_v8_0_set_crtc_irq_state, 3475 .process = dce_v8_0_crtc_irq, 3476 }; 3477 3478 static const struct amdgpu_irq_src_funcs dce_v8_0_pageflip_irq_funcs = { 3479 .set = dce_v8_0_set_pageflip_irq_state, 3480 .process = dce_v8_0_pageflip_irq, 3481 }; 3482 3483 static const struct amdgpu_irq_src_funcs dce_v8_0_hpd_irq_funcs = { 3484 .set = dce_v8_0_set_hpd_irq_state, 3485 .process = dce_v8_0_hpd_irq, 3486 }; 3487 3488 static void dce_v8_0_set_irq_funcs(struct amdgpu_device *adev) 3489 { 3490 if (adev->mode_info.num_crtc > 0) 3491 adev->crtc_irq.num_types = AMDGPU_CRTC_IRQ_VLINE1 + adev->mode_info.num_crtc; 3492 else 3493 adev->crtc_irq.num_types = 0; 3494 adev->crtc_irq.funcs = &dce_v8_0_crtc_irq_funcs; 3495 3496 adev->pageflip_irq.num_types = adev->mode_info.num_crtc; 3497 adev->pageflip_irq.funcs = &dce_v8_0_pageflip_irq_funcs; 3498 3499 adev->hpd_irq.num_types = adev->mode_info.num_hpd; 3500 adev->hpd_irq.funcs = &dce_v8_0_hpd_irq_funcs; 3501 } 3502 3503 const struct amdgpu_ip_block_version dce_v8_0_ip_block = { 3504 .type = AMD_IP_BLOCK_TYPE_DCE, 3505 .major = 8, 3506 .minor = 0, 3507 .rev = 0, 3508 .funcs = &dce_v8_0_ip_funcs, 3509 }; 3510 3511 const struct amdgpu_ip_block_version dce_v8_1_ip_block = { 3512 .type = AMD_IP_BLOCK_TYPE_DCE, 3513 .major = 8, 3514 .minor = 1, 3515 .rev = 0, 3516 .funcs = &dce_v8_0_ip_funcs, 3517 }; 3518 3519 const struct amdgpu_ip_block_version dce_v8_2_ip_block = { 3520 .type = AMD_IP_BLOCK_TYPE_DCE, 3521 .major = 8, 3522 .minor = 2, 3523 .rev = 0, 3524 .funcs = &dce_v8_0_ip_funcs, 3525 }; 3526 3527 const struct amdgpu_ip_block_version dce_v8_3_ip_block = { 3528 .type = AMD_IP_BLOCK_TYPE_DCE, 3529 .major = 8, 3530 .minor = 3, 3531 .rev = 0, 3532 .funcs = &dce_v8_0_ip_funcs, 3533 }; 3534 3535 const struct amdgpu_ip_block_version dce_v8_5_ip_block = { 3536 .type = AMD_IP_BLOCK_TYPE_DCE, 3537 .major = 8, 3538 .minor = 5, 3539 .rev = 0, 3540 .funcs = &dce_v8_0_ip_funcs, 3541 }; 3542