xref: /openbsd/sys/dev/pci/drm/radeon/radeon_display.c (revision 274d7c50)
1 /*
2  * Copyright 2007-8 Advanced Micro Devices, Inc.
3  * Copyright 2008 Red Hat Inc.
4  *
5  * Permission is hereby granted, free of charge, to any person obtaining a
6  * copy of this software and associated documentation files (the "Software"),
7  * to deal in the Software without restriction, including without limitation
8  * the rights to use, copy, modify, merge, publish, distribute, sublicense,
9  * and/or sell copies of the Software, and to permit persons to whom the
10  * Software is furnished to do so, subject to the following conditions:
11  *
12  * The above copyright notice and this permission notice shall be included in
13  * all copies or substantial portions of the Software.
14  *
15  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
16  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
17  * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
18  * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
19  * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
20  * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
21  * OTHER DEALINGS IN THE SOFTWARE.
22  *
23  * Authors: Dave Airlie
24  *          Alex Deucher
25  */
26 #include <drm/drmP.h>
27 #include <drm/radeon_drm.h>
28 #include "radeon.h"
29 
30 #include "atom.h"
31 #include <asm/div64.h>
32 
33 #include <linux/pm_runtime.h>
34 #include <drm/drm_crtc_helper.h>
35 #include <drm/drm_gem_framebuffer_helper.h>
36 #include <drm/drm_fb_helper.h>
37 #include <drm/drm_plane_helper.h>
38 #include <drm/drm_edid.h>
39 
40 #include <linux/gcd.h>
41 
42 static void avivo_crtc_load_lut(struct drm_crtc *crtc)
43 {
44 	struct radeon_crtc *radeon_crtc = to_radeon_crtc(crtc);
45 	struct drm_device *dev = crtc->dev;
46 	struct radeon_device *rdev = dev->dev_private;
47 	u16 *r, *g, *b;
48 	int i;
49 
50 	DRM_DEBUG_KMS("%d\n", radeon_crtc->crtc_id);
51 	WREG32(AVIVO_DC_LUTA_CONTROL + radeon_crtc->crtc_offset, 0);
52 
53 	WREG32(AVIVO_DC_LUTA_BLACK_OFFSET_BLUE + radeon_crtc->crtc_offset, 0);
54 	WREG32(AVIVO_DC_LUTA_BLACK_OFFSET_GREEN + radeon_crtc->crtc_offset, 0);
55 	WREG32(AVIVO_DC_LUTA_BLACK_OFFSET_RED + radeon_crtc->crtc_offset, 0);
56 
57 	WREG32(AVIVO_DC_LUTA_WHITE_OFFSET_BLUE + radeon_crtc->crtc_offset, 0xffff);
58 	WREG32(AVIVO_DC_LUTA_WHITE_OFFSET_GREEN + radeon_crtc->crtc_offset, 0xffff);
59 	WREG32(AVIVO_DC_LUTA_WHITE_OFFSET_RED + radeon_crtc->crtc_offset, 0xffff);
60 
61 	WREG32(AVIVO_DC_LUT_RW_SELECT, radeon_crtc->crtc_id);
62 	WREG32(AVIVO_DC_LUT_RW_MODE, 0);
63 	WREG32(AVIVO_DC_LUT_WRITE_EN_MASK, 0x0000003f);
64 
65 	WREG8(AVIVO_DC_LUT_RW_INDEX, 0);
66 	r = crtc->gamma_store;
67 	g = r + crtc->gamma_size;
68 	b = g + crtc->gamma_size;
69 	for (i = 0; i < 256; i++) {
70 		WREG32(AVIVO_DC_LUT_30_COLOR,
71 		       ((*r++ & 0xffc0) << 14) |
72 		       ((*g++ & 0xffc0) << 4) |
73 		       (*b++ >> 6));
74 	}
75 
76 	/* Only change bit 0 of LUT_SEL, other bits are set elsewhere */
77 	WREG32_P(AVIVO_D1GRPH_LUT_SEL + radeon_crtc->crtc_offset, radeon_crtc->crtc_id, ~1);
78 }
79 
80 static void dce4_crtc_load_lut(struct drm_crtc *crtc)
81 {
82 	struct radeon_crtc *radeon_crtc = to_radeon_crtc(crtc);
83 	struct drm_device *dev = crtc->dev;
84 	struct radeon_device *rdev = dev->dev_private;
85 	u16 *r, *g, *b;
86 	int i;
87 
88 	DRM_DEBUG_KMS("%d\n", radeon_crtc->crtc_id);
89 	WREG32(EVERGREEN_DC_LUT_CONTROL + radeon_crtc->crtc_offset, 0);
90 
91 	WREG32(EVERGREEN_DC_LUT_BLACK_OFFSET_BLUE + radeon_crtc->crtc_offset, 0);
92 	WREG32(EVERGREEN_DC_LUT_BLACK_OFFSET_GREEN + radeon_crtc->crtc_offset, 0);
93 	WREG32(EVERGREEN_DC_LUT_BLACK_OFFSET_RED + radeon_crtc->crtc_offset, 0);
94 
95 	WREG32(EVERGREEN_DC_LUT_WHITE_OFFSET_BLUE + radeon_crtc->crtc_offset, 0xffff);
96 	WREG32(EVERGREEN_DC_LUT_WHITE_OFFSET_GREEN + radeon_crtc->crtc_offset, 0xffff);
97 	WREG32(EVERGREEN_DC_LUT_WHITE_OFFSET_RED + radeon_crtc->crtc_offset, 0xffff);
98 
99 	WREG32(EVERGREEN_DC_LUT_RW_MODE + radeon_crtc->crtc_offset, 0);
100 	WREG32(EVERGREEN_DC_LUT_WRITE_EN_MASK + radeon_crtc->crtc_offset, 0x00000007);
101 
102 	WREG32(EVERGREEN_DC_LUT_RW_INDEX + radeon_crtc->crtc_offset, 0);
103 	r = crtc->gamma_store;
104 	g = r + crtc->gamma_size;
105 	b = g + crtc->gamma_size;
106 	for (i = 0; i < 256; i++) {
107 		WREG32(EVERGREEN_DC_LUT_30_COLOR + radeon_crtc->crtc_offset,
108 		       ((*r++ & 0xffc0) << 14) |
109 		       ((*g++ & 0xffc0) << 4) |
110 		       (*b++ >> 6));
111 	}
112 }
113 
114 static void dce5_crtc_load_lut(struct drm_crtc *crtc)
115 {
116 	struct radeon_crtc *radeon_crtc = to_radeon_crtc(crtc);
117 	struct drm_device *dev = crtc->dev;
118 	struct radeon_device *rdev = dev->dev_private;
119 	u16 *r, *g, *b;
120 	int i;
121 
122 	DRM_DEBUG_KMS("%d\n", radeon_crtc->crtc_id);
123 
124 	WREG32(NI_INPUT_CSC_CONTROL + radeon_crtc->crtc_offset,
125 	       (NI_INPUT_CSC_GRPH_MODE(NI_INPUT_CSC_BYPASS) |
126 		NI_INPUT_CSC_OVL_MODE(NI_INPUT_CSC_BYPASS)));
127 	WREG32(NI_PRESCALE_GRPH_CONTROL + radeon_crtc->crtc_offset,
128 	       NI_GRPH_PRESCALE_BYPASS);
129 	WREG32(NI_PRESCALE_OVL_CONTROL + radeon_crtc->crtc_offset,
130 	       NI_OVL_PRESCALE_BYPASS);
131 	WREG32(NI_INPUT_GAMMA_CONTROL + radeon_crtc->crtc_offset,
132 	       (NI_GRPH_INPUT_GAMMA_MODE(NI_INPUT_GAMMA_USE_LUT) |
133 		NI_OVL_INPUT_GAMMA_MODE(NI_INPUT_GAMMA_USE_LUT)));
134 
135 	WREG32(EVERGREEN_DC_LUT_CONTROL + radeon_crtc->crtc_offset, 0);
136 
137 	WREG32(EVERGREEN_DC_LUT_BLACK_OFFSET_BLUE + radeon_crtc->crtc_offset, 0);
138 	WREG32(EVERGREEN_DC_LUT_BLACK_OFFSET_GREEN + radeon_crtc->crtc_offset, 0);
139 	WREG32(EVERGREEN_DC_LUT_BLACK_OFFSET_RED + radeon_crtc->crtc_offset, 0);
140 
141 	WREG32(EVERGREEN_DC_LUT_WHITE_OFFSET_BLUE + radeon_crtc->crtc_offset, 0xffff);
142 	WREG32(EVERGREEN_DC_LUT_WHITE_OFFSET_GREEN + radeon_crtc->crtc_offset, 0xffff);
143 	WREG32(EVERGREEN_DC_LUT_WHITE_OFFSET_RED + radeon_crtc->crtc_offset, 0xffff);
144 
145 	WREG32(EVERGREEN_DC_LUT_RW_MODE + radeon_crtc->crtc_offset, 0);
146 	WREG32(EVERGREEN_DC_LUT_WRITE_EN_MASK + radeon_crtc->crtc_offset, 0x00000007);
147 
148 	WREG32(EVERGREEN_DC_LUT_RW_INDEX + radeon_crtc->crtc_offset, 0);
149 	r = crtc->gamma_store;
150 	g = r + crtc->gamma_size;
151 	b = g + crtc->gamma_size;
152 	for (i = 0; i < 256; i++) {
153 		WREG32(EVERGREEN_DC_LUT_30_COLOR + radeon_crtc->crtc_offset,
154 		       ((*r++ & 0xffc0) << 14) |
155 		       ((*g++ & 0xffc0) << 4) |
156 		       (*b++ >> 6));
157 	}
158 
159 	WREG32(NI_DEGAMMA_CONTROL + radeon_crtc->crtc_offset,
160 	       (NI_GRPH_DEGAMMA_MODE(NI_DEGAMMA_BYPASS) |
161 		NI_OVL_DEGAMMA_MODE(NI_DEGAMMA_BYPASS) |
162 		NI_ICON_DEGAMMA_MODE(NI_DEGAMMA_BYPASS) |
163 		NI_CURSOR_DEGAMMA_MODE(NI_DEGAMMA_BYPASS)));
164 	WREG32(NI_GAMUT_REMAP_CONTROL + radeon_crtc->crtc_offset,
165 	       (NI_GRPH_GAMUT_REMAP_MODE(NI_GAMUT_REMAP_BYPASS) |
166 		NI_OVL_GAMUT_REMAP_MODE(NI_GAMUT_REMAP_BYPASS)));
167 	WREG32(NI_REGAMMA_CONTROL + radeon_crtc->crtc_offset,
168 	       (NI_GRPH_REGAMMA_MODE(NI_REGAMMA_BYPASS) |
169 		NI_OVL_REGAMMA_MODE(NI_REGAMMA_BYPASS)));
170 	WREG32(NI_OUTPUT_CSC_CONTROL + radeon_crtc->crtc_offset,
171 	       (NI_OUTPUT_CSC_GRPH_MODE(radeon_crtc->output_csc) |
172 		NI_OUTPUT_CSC_OVL_MODE(NI_OUTPUT_CSC_BYPASS)));
173 	/* XXX match this to the depth of the crtc fmt block, move to modeset? */
174 	WREG32(0x6940 + radeon_crtc->crtc_offset, 0);
175 	if (ASIC_IS_DCE8(rdev)) {
176 		/* XXX this only needs to be programmed once per crtc at startup,
177 		 * not sure where the best place for it is
178 		 */
179 		WREG32(CIK_ALPHA_CONTROL + radeon_crtc->crtc_offset,
180 		       CIK_CURSOR_ALPHA_BLND_ENA);
181 	}
182 }
183 
184 static void legacy_crtc_load_lut(struct drm_crtc *crtc)
185 {
186 	struct radeon_crtc *radeon_crtc = to_radeon_crtc(crtc);
187 	struct drm_device *dev = crtc->dev;
188 	struct radeon_device *rdev = dev->dev_private;
189 	u16 *r, *g, *b;
190 	int i;
191 	uint32_t dac2_cntl;
192 
193 	dac2_cntl = RREG32(RADEON_DAC_CNTL2);
194 	if (radeon_crtc->crtc_id == 0)
195 		dac2_cntl &= (uint32_t)~RADEON_DAC2_PALETTE_ACC_CTL;
196 	else
197 		dac2_cntl |= RADEON_DAC2_PALETTE_ACC_CTL;
198 	WREG32(RADEON_DAC_CNTL2, dac2_cntl);
199 
200 	WREG8(RADEON_PALETTE_INDEX, 0);
201 	r = crtc->gamma_store;
202 	g = r + crtc->gamma_size;
203 	b = g + crtc->gamma_size;
204 	for (i = 0; i < 256; i++) {
205 		WREG32(RADEON_PALETTE_30_DATA,
206 		       ((*r++ & 0xffc0) << 14) |
207 		       ((*g++ & 0xffc0) << 4) |
208 		       (*b++ >> 6));
209 	}
210 }
211 
212 void radeon_crtc_load_lut(struct drm_crtc *crtc)
213 {
214 	struct drm_device *dev = crtc->dev;
215 	struct radeon_device *rdev = dev->dev_private;
216 
217 	if (!crtc->enabled)
218 		return;
219 
220 	if (ASIC_IS_DCE5(rdev))
221 		dce5_crtc_load_lut(crtc);
222 	else if (ASIC_IS_DCE4(rdev))
223 		dce4_crtc_load_lut(crtc);
224 	else if (ASIC_IS_AVIVO(rdev))
225 		avivo_crtc_load_lut(crtc);
226 	else
227 		legacy_crtc_load_lut(crtc);
228 }
229 
230 static int radeon_crtc_gamma_set(struct drm_crtc *crtc, u16 *red, u16 *green,
231 				 u16 *blue, uint32_t size,
232 				 struct drm_modeset_acquire_ctx *ctx)
233 {
234 	radeon_crtc_load_lut(crtc);
235 
236 	return 0;
237 }
238 
239 static void radeon_crtc_destroy(struct drm_crtc *crtc)
240 {
241 	struct radeon_crtc *radeon_crtc = to_radeon_crtc(crtc);
242 
243 	drm_crtc_cleanup(crtc);
244 	destroy_workqueue(radeon_crtc->flip_queue);
245 	kfree(radeon_crtc);
246 }
247 
248 /**
249  * radeon_unpin_work_func - unpin old buffer object
250  *
251  * @__work - kernel work item
252  *
253  * Unpin the old frame buffer object outside of the interrupt handler
254  */
255 static void radeon_unpin_work_func(struct work_struct *__work)
256 {
257 	struct radeon_flip_work *work =
258 		container_of(__work, struct radeon_flip_work, unpin_work);
259 	int r;
260 
261 	/* unpin of the old buffer */
262 	r = radeon_bo_reserve(work->old_rbo, false);
263 	if (likely(r == 0)) {
264 		r = radeon_bo_unpin(work->old_rbo);
265 		if (unlikely(r != 0)) {
266 			DRM_ERROR("failed to unpin buffer after flip\n");
267 		}
268 		radeon_bo_unreserve(work->old_rbo);
269 	} else
270 		DRM_ERROR("failed to reserve buffer after flip\n");
271 
272 	drm_gem_object_put_unlocked(&work->old_rbo->gem_base);
273 	kfree(work);
274 }
275 
276 void radeon_crtc_handle_vblank(struct radeon_device *rdev, int crtc_id)
277 {
278 	struct radeon_crtc *radeon_crtc = rdev->mode_info.crtcs[crtc_id];
279 	unsigned long flags;
280 	u32 update_pending;
281 	int vpos, hpos;
282 
283 	/* can happen during initialization */
284 	if (radeon_crtc == NULL)
285 		return;
286 
287 	/* Skip the pageflip completion check below (based on polling) on
288 	 * asics which reliably support hw pageflip completion irqs. pflip
289 	 * irqs are a reliable and race-free method of handling pageflip
290 	 * completion detection. A use_pflipirq module parameter < 2 allows
291 	 * to override this in case of asics with faulty pflip irqs.
292 	 * A module parameter of 0 would only use this polling based path,
293 	 * a parameter of 1 would use pflip irq only as a backup to this
294 	 * path, as in Linux 3.16.
295 	 */
296 	if ((radeon_use_pflipirq == 2) && ASIC_IS_DCE4(rdev))
297 		return;
298 
299 	spin_lock_irqsave(&rdev->ddev->event_lock, flags);
300 	if (radeon_crtc->flip_status != RADEON_FLIP_SUBMITTED) {
301 		DRM_DEBUG_DRIVER("radeon_crtc->flip_status = %d != "
302 				 "RADEON_FLIP_SUBMITTED(%d)\n",
303 				 radeon_crtc->flip_status,
304 				 RADEON_FLIP_SUBMITTED);
305 		spin_unlock_irqrestore(&rdev->ddev->event_lock, flags);
306 		return;
307 	}
308 
309 	update_pending = radeon_page_flip_pending(rdev, crtc_id);
310 
311 	/* Has the pageflip already completed in crtc, or is it certain
312 	 * to complete in this vblank? GET_DISTANCE_TO_VBLANKSTART provides
313 	 * distance to start of "fudged earlier" vblank in vpos, distance to
314 	 * start of real vblank in hpos. vpos >= 0 && hpos < 0 means we are in
315 	 * the last few scanlines before start of real vblank, where the vblank
316 	 * irq can fire, so we have sampled update_pending a bit too early and
317 	 * know the flip will complete at leading edge of the upcoming real
318 	 * vblank. On pre-AVIVO hardware, flips also complete inside the real
319 	 * vblank, not only at leading edge, so if update_pending for hpos >= 0
320 	 *  == inside real vblank, the flip will complete almost immediately.
321 	 * Note that this method of completion handling is still not 100% race
322 	 * free, as we could execute before the radeon_flip_work_func managed
323 	 * to run and set the RADEON_FLIP_SUBMITTED status, thereby we no-op,
324 	 * but the flip still gets programmed into hw and completed during
325 	 * vblank, leading to a delayed emission of the flip completion event.
326 	 * This applies at least to pre-AVIVO hardware, where flips are always
327 	 * completing inside vblank, not only at leading edge of vblank.
328 	 */
329 	if (update_pending &&
330 	    (DRM_SCANOUTPOS_VALID &
331 	     radeon_get_crtc_scanoutpos(rdev->ddev, crtc_id,
332 					GET_DISTANCE_TO_VBLANKSTART,
333 					&vpos, &hpos, NULL, NULL,
334 					&rdev->mode_info.crtcs[crtc_id]->base.hwmode)) &&
335 	    ((vpos >= 0 && hpos < 0) || (hpos >= 0 && !ASIC_IS_AVIVO(rdev)))) {
336 		/* crtc didn't flip in this target vblank interval,
337 		 * but flip is pending in crtc. Based on the current
338 		 * scanout position we know that the current frame is
339 		 * (nearly) complete and the flip will (likely)
340 		 * complete before the start of the next frame.
341 		 */
342 		update_pending = 0;
343 	}
344 	spin_unlock_irqrestore(&rdev->ddev->event_lock, flags);
345 	if (!update_pending)
346 		radeon_crtc_handle_flip(rdev, crtc_id);
347 }
348 
349 /**
350  * radeon_crtc_handle_flip - page flip completed
351  *
352  * @rdev: radeon device pointer
353  * @crtc_id: crtc number this event is for
354  *
355  * Called when we are sure that a page flip for this crtc is completed.
356  */
357 void radeon_crtc_handle_flip(struct radeon_device *rdev, int crtc_id)
358 {
359 	struct radeon_crtc *radeon_crtc = rdev->mode_info.crtcs[crtc_id];
360 	struct radeon_flip_work *work;
361 	unsigned long flags;
362 
363 	/* this can happen at init */
364 	if (radeon_crtc == NULL)
365 		return;
366 
367 	spin_lock_irqsave(&rdev->ddev->event_lock, flags);
368 	work = radeon_crtc->flip_work;
369 	if (radeon_crtc->flip_status != RADEON_FLIP_SUBMITTED) {
370 		DRM_DEBUG_DRIVER("radeon_crtc->flip_status = %d != "
371 				 "RADEON_FLIP_SUBMITTED(%d)\n",
372 				 radeon_crtc->flip_status,
373 				 RADEON_FLIP_SUBMITTED);
374 		spin_unlock_irqrestore(&rdev->ddev->event_lock, flags);
375 		return;
376 	}
377 
378 	/* Pageflip completed. Clean up. */
379 	radeon_crtc->flip_status = RADEON_FLIP_NONE;
380 	radeon_crtc->flip_work = NULL;
381 
382 	/* wakeup userspace */
383 	if (work->event)
384 		drm_crtc_send_vblank_event(&radeon_crtc->base, work->event);
385 
386 	spin_unlock_irqrestore(&rdev->ddev->event_lock, flags);
387 
388 	drm_crtc_vblank_put(&radeon_crtc->base);
389 	radeon_irq_kms_pflip_irq_put(rdev, work->crtc_id);
390 	queue_work(radeon_crtc->flip_queue, &work->unpin_work);
391 }
392 
393 /**
394  * radeon_flip_work_func - page flip framebuffer
395  *
396  * @work - kernel work item
397  *
398  * Wait for the buffer object to become idle and do the actual page flip
399  */
400 static void radeon_flip_work_func(struct work_struct *__work)
401 {
402 	struct radeon_flip_work *work =
403 		container_of(__work, struct radeon_flip_work, flip_work);
404 	struct radeon_device *rdev = work->rdev;
405 	struct drm_device *dev = rdev->ddev;
406 	struct radeon_crtc *radeon_crtc = rdev->mode_info.crtcs[work->crtc_id];
407 
408 	struct drm_crtc *crtc = &radeon_crtc->base;
409 	unsigned long flags;
410 	int r;
411 	int vpos, hpos;
412 
413 	down_read(&rdev->exclusive_lock);
414 	if (work->fence) {
415 		struct radeon_fence *fence;
416 
417 		fence = to_radeon_fence(work->fence);
418 		if (fence && fence->rdev == rdev) {
419 			r = radeon_fence_wait(fence, false);
420 			if (r == -EDEADLK) {
421 				up_read(&rdev->exclusive_lock);
422 				do {
423 					r = radeon_gpu_reset(rdev);
424 				} while (r == -EAGAIN);
425 				down_read(&rdev->exclusive_lock);
426 			}
427 		} else
428 			r = dma_fence_wait(work->fence, false);
429 
430 		if (r)
431 			DRM_ERROR("failed to wait on page flip fence (%d)!\n", r);
432 
433 		/* We continue with the page flip even if we failed to wait on
434 		 * the fence, otherwise the DRM core and userspace will be
435 		 * confused about which BO the CRTC is scanning out
436 		 */
437 
438 		dma_fence_put(work->fence);
439 		work->fence = NULL;
440 	}
441 
442 	/* Wait until we're out of the vertical blank period before the one
443 	 * targeted by the flip. Always wait on pre DCE4 to avoid races with
444 	 * flip completion handling from vblank irq, as these old asics don't
445 	 * have reliable pageflip completion interrupts.
446 	 */
447 	while (radeon_crtc->enabled &&
448 		(radeon_get_crtc_scanoutpos(dev, work->crtc_id, 0,
449 					    &vpos, &hpos, NULL, NULL,
450 					    &crtc->hwmode)
451 		& (DRM_SCANOUTPOS_VALID | DRM_SCANOUTPOS_IN_VBLANK)) ==
452 		(DRM_SCANOUTPOS_VALID | DRM_SCANOUTPOS_IN_VBLANK) &&
453 		(!ASIC_IS_AVIVO(rdev) ||
454 		((int) (work->target_vblank -
455 		dev->driver->get_vblank_counter(dev, work->crtc_id)) > 0)))
456 		usleep_range(1000, 2000);
457 
458 	/* We borrow the event spin lock for protecting flip_status */
459 	spin_lock_irqsave(&crtc->dev->event_lock, flags);
460 
461 	/* set the proper interrupt */
462 	radeon_irq_kms_pflip_irq_get(rdev, radeon_crtc->crtc_id);
463 
464 	/* do the flip (mmio) */
465 	radeon_page_flip(rdev, radeon_crtc->crtc_id, work->base, work->async);
466 
467 	radeon_crtc->flip_status = RADEON_FLIP_SUBMITTED;
468 	spin_unlock_irqrestore(&crtc->dev->event_lock, flags);
469 	up_read(&rdev->exclusive_lock);
470 }
471 
472 static int radeon_crtc_page_flip_target(struct drm_crtc *crtc,
473 					struct drm_framebuffer *fb,
474 					struct drm_pending_vblank_event *event,
475 					uint32_t page_flip_flags,
476 					uint32_t target,
477 					struct drm_modeset_acquire_ctx *ctx)
478 {
479 	struct drm_device *dev = crtc->dev;
480 	struct radeon_device *rdev = dev->dev_private;
481 	struct radeon_crtc *radeon_crtc = to_radeon_crtc(crtc);
482 	struct drm_gem_object *obj;
483 	struct radeon_flip_work *work;
484 	struct radeon_bo *new_rbo;
485 	uint32_t tiling_flags, pitch_pixels;
486 	uint64_t base;
487 	unsigned long flags;
488 	int r;
489 
490 	work = kzalloc(sizeof *work, GFP_KERNEL);
491 	if (work == NULL)
492 		return -ENOMEM;
493 
494 	INIT_WORK(&work->flip_work, radeon_flip_work_func);
495 	INIT_WORK(&work->unpin_work, radeon_unpin_work_func);
496 
497 	work->rdev = rdev;
498 	work->crtc_id = radeon_crtc->crtc_id;
499 	work->event = event;
500 	work->async = (page_flip_flags & DRM_MODE_PAGE_FLIP_ASYNC) != 0;
501 
502 	/* schedule unpin of the old buffer */
503 	obj = crtc->primary->fb->obj[0];
504 
505 	/* take a reference to the old object */
506 	drm_gem_object_get(obj);
507 	work->old_rbo = gem_to_radeon_bo(obj);
508 
509 	obj = fb->obj[0];
510 	new_rbo = gem_to_radeon_bo(obj);
511 
512 	/* pin the new buffer */
513 	DRM_DEBUG_DRIVER("flip-ioctl() cur_rbo = %p, new_rbo = %p\n",
514 			 work->old_rbo, new_rbo);
515 
516 	r = radeon_bo_reserve(new_rbo, false);
517 	if (unlikely(r != 0)) {
518 		DRM_ERROR("failed to reserve new rbo buffer before flip\n");
519 		goto cleanup;
520 	}
521 	/* Only 27 bit offset for legacy CRTC */
522 	r = radeon_bo_pin_restricted(new_rbo, RADEON_GEM_DOMAIN_VRAM,
523 				     ASIC_IS_AVIVO(rdev) ? 0 : 1 << 27, &base);
524 	if (unlikely(r != 0)) {
525 		radeon_bo_unreserve(new_rbo);
526 		r = -EINVAL;
527 		DRM_ERROR("failed to pin new rbo buffer before flip\n");
528 		goto cleanup;
529 	}
530 	work->fence = dma_fence_get(reservation_object_get_excl(new_rbo->tbo.resv));
531 	radeon_bo_get_tiling_flags(new_rbo, &tiling_flags, NULL);
532 	radeon_bo_unreserve(new_rbo);
533 
534 	if (!ASIC_IS_AVIVO(rdev)) {
535 		/* crtc offset is from display base addr not FB location */
536 		base -= radeon_crtc->legacy_display_base_addr;
537 		pitch_pixels = fb->pitches[0] / fb->format->cpp[0];
538 
539 		if (tiling_flags & RADEON_TILING_MACRO) {
540 			if (ASIC_IS_R300(rdev)) {
541 				base &= ~0x7ff;
542 			} else {
543 				int byteshift = fb->format->cpp[0] * 8 >> 4;
544 				int tile_addr = (((crtc->y >> 3) * pitch_pixels +  crtc->x) >> (8 - byteshift)) << 11;
545 				base += tile_addr + ((crtc->x << byteshift) % 256) + ((crtc->y % 8) << 8);
546 			}
547 		} else {
548 			int offset = crtc->y * pitch_pixels + crtc->x;
549 			switch (fb->format->cpp[0] * 8) {
550 			case 8:
551 			default:
552 				offset *= 1;
553 				break;
554 			case 15:
555 			case 16:
556 				offset *= 2;
557 				break;
558 			case 24:
559 				offset *= 3;
560 				break;
561 			case 32:
562 				offset *= 4;
563 				break;
564 			}
565 			base += offset;
566 		}
567 		base &= ~7;
568 	}
569 	work->base = base;
570 	work->target_vblank = target - (uint32_t)drm_crtc_vblank_count(crtc) +
571 		dev->driver->get_vblank_counter(dev, work->crtc_id);
572 
573 	/* We borrow the event spin lock for protecting flip_work */
574 	spin_lock_irqsave(&crtc->dev->event_lock, flags);
575 
576 	if (radeon_crtc->flip_status != RADEON_FLIP_NONE) {
577 		DRM_DEBUG_DRIVER("flip queue: crtc already busy\n");
578 		spin_unlock_irqrestore(&crtc->dev->event_lock, flags);
579 		r = -EBUSY;
580 		goto pflip_cleanup;
581 	}
582 	radeon_crtc->flip_status = RADEON_FLIP_PENDING;
583 	radeon_crtc->flip_work = work;
584 
585 	/* update crtc fb */
586 	crtc->primary->fb = fb;
587 
588 	spin_unlock_irqrestore(&crtc->dev->event_lock, flags);
589 
590 	queue_work(radeon_crtc->flip_queue, &work->flip_work);
591 	return 0;
592 
593 pflip_cleanup:
594 	if (unlikely(radeon_bo_reserve(new_rbo, false) != 0)) {
595 		DRM_ERROR("failed to reserve new rbo in error path\n");
596 		goto cleanup;
597 	}
598 	if (unlikely(radeon_bo_unpin(new_rbo) != 0)) {
599 		DRM_ERROR("failed to unpin new rbo in error path\n");
600 	}
601 	radeon_bo_unreserve(new_rbo);
602 
603 cleanup:
604 	drm_gem_object_put_unlocked(&work->old_rbo->gem_base);
605 	dma_fence_put(work->fence);
606 	kfree(work);
607 	return r;
608 }
609 
610 static int
611 radeon_crtc_set_config(struct drm_mode_set *set,
612 		       struct drm_modeset_acquire_ctx *ctx)
613 {
614 	struct drm_device *dev;
615 	struct radeon_device *rdev;
616 	struct drm_crtc *crtc;
617 	bool active = false;
618 	int ret;
619 
620 	if (!set || !set->crtc)
621 		return -EINVAL;
622 
623 	dev = set->crtc->dev;
624 
625 	ret = pm_runtime_get_sync(dev->dev);
626 	if (ret < 0)
627 		return ret;
628 
629 	ret = drm_crtc_helper_set_config(set, ctx);
630 
631 	list_for_each_entry(crtc, &dev->mode_config.crtc_list, head)
632 		if (crtc->enabled)
633 			active = true;
634 
635 	pm_runtime_mark_last_busy(dev->dev);
636 
637 	rdev = dev->dev_private;
638 	/* if we have active crtcs and we don't have a power ref,
639 	   take the current one */
640 	if (active && !rdev->have_disp_power_ref) {
641 		rdev->have_disp_power_ref = true;
642 		return ret;
643 	}
644 	/* if we have no active crtcs, then drop the power ref
645 	   we got before */
646 	if (!active && rdev->have_disp_power_ref) {
647 		pm_runtime_put_autosuspend(dev->dev);
648 		rdev->have_disp_power_ref = false;
649 	}
650 
651 	/* drop the power reference we got coming in here */
652 	pm_runtime_put_autosuspend(dev->dev);
653 	return ret;
654 }
655 
656 static const struct drm_crtc_funcs radeon_crtc_funcs = {
657 	.cursor_set2 = radeon_crtc_cursor_set2,
658 	.cursor_move = radeon_crtc_cursor_move,
659 	.gamma_set = radeon_crtc_gamma_set,
660 	.set_config = radeon_crtc_set_config,
661 	.destroy = radeon_crtc_destroy,
662 	.page_flip_target = radeon_crtc_page_flip_target,
663 };
664 
665 static void radeon_crtc_init(struct drm_device *dev, int index)
666 {
667 	struct radeon_device *rdev = dev->dev_private;
668 	struct radeon_crtc *radeon_crtc;
669 	int i;
670 
671 	radeon_crtc = kzalloc(sizeof(struct radeon_crtc) + (RADEONFB_CONN_LIMIT * sizeof(struct drm_connector *)), GFP_KERNEL);
672 	if (radeon_crtc == NULL)
673 		return;
674 
675 	drm_crtc_init(dev, &radeon_crtc->base, &radeon_crtc_funcs);
676 
677 	drm_mode_crtc_set_gamma_size(&radeon_crtc->base, 256);
678 	radeon_crtc->crtc_id = index;
679 	radeon_crtc->flip_queue = alloc_workqueue("radeon-crtc", WQ_HIGHPRI, 0);
680 	rdev->mode_info.crtcs[index] = radeon_crtc;
681 
682 	if (rdev->family >= CHIP_BONAIRE) {
683 		radeon_crtc->max_cursor_width = CIK_CURSOR_WIDTH;
684 		radeon_crtc->max_cursor_height = CIK_CURSOR_HEIGHT;
685 	} else {
686 		radeon_crtc->max_cursor_width = CURSOR_WIDTH;
687 		radeon_crtc->max_cursor_height = CURSOR_HEIGHT;
688 	}
689 	dev->mode_config.cursor_width = radeon_crtc->max_cursor_width;
690 	dev->mode_config.cursor_height = radeon_crtc->max_cursor_height;
691 
692 #if 0
693 	radeon_crtc->mode_set.crtc = &radeon_crtc->base;
694 	radeon_crtc->mode_set.connectors = (struct drm_connector **)(radeon_crtc + 1);
695 	radeon_crtc->mode_set.num_connectors = 0;
696 #endif
697 
698 	for (i = 0; i < 256; i++) {
699 		radeon_crtc->lut_r[i] = rasops_cmap[3 * i] << 2;
700 		radeon_crtc->lut_g[i] = rasops_cmap[(3 * i) + 1] << 2;
701 		radeon_crtc->lut_b[i] = rasops_cmap[(3 * i) + 2] << 2;
702 	}
703 
704 	if (rdev->is_atom_bios && (ASIC_IS_AVIVO(rdev) || radeon_r4xx_atom))
705 		radeon_atombios_init_crtc(dev, radeon_crtc);
706 	else
707 		radeon_legacy_init_crtc(dev, radeon_crtc);
708 }
709 
710 #ifdef DRMDEBUG
711 static const char *encoder_names[38] = {
712 	"NONE",
713 	"INTERNAL_LVDS",
714 	"INTERNAL_TMDS1",
715 	"INTERNAL_TMDS2",
716 	"INTERNAL_DAC1",
717 	"INTERNAL_DAC2",
718 	"INTERNAL_SDVOA",
719 	"INTERNAL_SDVOB",
720 	"SI170B",
721 	"CH7303",
722 	"CH7301",
723 	"INTERNAL_DVO1",
724 	"EXTERNAL_SDVOA",
725 	"EXTERNAL_SDVOB",
726 	"TITFP513",
727 	"INTERNAL_LVTM1",
728 	"VT1623",
729 	"HDMI_SI1930",
730 	"HDMI_INTERNAL",
731 	"INTERNAL_KLDSCP_TMDS1",
732 	"INTERNAL_KLDSCP_DVO1",
733 	"INTERNAL_KLDSCP_DAC1",
734 	"INTERNAL_KLDSCP_DAC2",
735 	"SI178",
736 	"MVPU_FPGA",
737 	"INTERNAL_DDI",
738 	"VT1625",
739 	"HDMI_SI1932",
740 	"DP_AN9801",
741 	"DP_DP501",
742 	"INTERNAL_UNIPHY",
743 	"INTERNAL_KLDSCP_LVTMA",
744 	"INTERNAL_UNIPHY1",
745 	"INTERNAL_UNIPHY2",
746 	"NUTMEG",
747 	"TRAVIS",
748 	"INTERNAL_VCE",
749 	"INTERNAL_UNIPHY3",
750 };
751 
752 static const char *hpd_names[6] = {
753 	"HPD1",
754 	"HPD2",
755 	"HPD3",
756 	"HPD4",
757 	"HPD5",
758 	"HPD6",
759 };
760 #endif
761 
762 static void radeon_print_display_setup(struct drm_device *dev)
763 {
764 	struct drm_connector *connector;
765 	struct radeon_connector *radeon_connector;
766 	struct drm_encoder *encoder;
767 	struct radeon_encoder *radeon_encoder;
768 	uint32_t devices;
769 	int i = 0;
770 
771 	DRM_INFO("Radeon Display Connectors\n");
772 	list_for_each_entry(connector, &dev->mode_config.connector_list, head) {
773 		radeon_connector = to_radeon_connector(connector);
774 		DRM_INFO("Connector %d:\n", i);
775 		DRM_INFO("  %s\n", connector->name);
776 		if (radeon_connector->hpd.hpd != RADEON_HPD_NONE)
777 			DRM_INFO("  %s\n", hpd_names[radeon_connector->hpd.hpd]);
778 		if (radeon_connector->ddc_bus) {
779 			DRM_INFO("  DDC: 0x%x 0x%x 0x%x 0x%x 0x%x 0x%x 0x%x 0x%x\n",
780 				 radeon_connector->ddc_bus->rec.mask_clk_reg,
781 				 radeon_connector->ddc_bus->rec.mask_data_reg,
782 				 radeon_connector->ddc_bus->rec.a_clk_reg,
783 				 radeon_connector->ddc_bus->rec.a_data_reg,
784 				 radeon_connector->ddc_bus->rec.en_clk_reg,
785 				 radeon_connector->ddc_bus->rec.en_data_reg,
786 				 radeon_connector->ddc_bus->rec.y_clk_reg,
787 				 radeon_connector->ddc_bus->rec.y_data_reg);
788 			if (radeon_connector->router.ddc_valid)
789 				DRM_INFO("  DDC Router 0x%x/0x%x\n",
790 					 radeon_connector->router.ddc_mux_control_pin,
791 					 radeon_connector->router.ddc_mux_state);
792 			if (radeon_connector->router.cd_valid)
793 				DRM_INFO("  Clock/Data Router 0x%x/0x%x\n",
794 					 radeon_connector->router.cd_mux_control_pin,
795 					 radeon_connector->router.cd_mux_state);
796 		} else {
797 			if (connector->connector_type == DRM_MODE_CONNECTOR_VGA ||
798 			    connector->connector_type == DRM_MODE_CONNECTOR_DVII ||
799 			    connector->connector_type == DRM_MODE_CONNECTOR_DVID ||
800 			    connector->connector_type == DRM_MODE_CONNECTOR_DVIA ||
801 			    connector->connector_type == DRM_MODE_CONNECTOR_HDMIA ||
802 			    connector->connector_type == DRM_MODE_CONNECTOR_HDMIB)
803 				DRM_INFO("  DDC: no ddc bus - possible BIOS bug - please report to xorg-driver-ati@lists.x.org\n");
804 		}
805 		DRM_INFO("  Encoders:\n");
806 		list_for_each_entry(encoder, &dev->mode_config.encoder_list, head) {
807 			radeon_encoder = to_radeon_encoder(encoder);
808 			devices = radeon_encoder->devices & radeon_connector->devices;
809 			if (devices) {
810 				if (devices & ATOM_DEVICE_CRT1_SUPPORT)
811 					DRM_INFO("    CRT1: %s\n", encoder_names[radeon_encoder->encoder_id]);
812 				if (devices & ATOM_DEVICE_CRT2_SUPPORT)
813 					DRM_INFO("    CRT2: %s\n", encoder_names[radeon_encoder->encoder_id]);
814 				if (devices & ATOM_DEVICE_LCD1_SUPPORT)
815 					DRM_INFO("    LCD1: %s\n", encoder_names[radeon_encoder->encoder_id]);
816 				if (devices & ATOM_DEVICE_DFP1_SUPPORT)
817 					DRM_INFO("    DFP1: %s\n", encoder_names[radeon_encoder->encoder_id]);
818 				if (devices & ATOM_DEVICE_DFP2_SUPPORT)
819 					DRM_INFO("    DFP2: %s\n", encoder_names[radeon_encoder->encoder_id]);
820 				if (devices & ATOM_DEVICE_DFP3_SUPPORT)
821 					DRM_INFO("    DFP3: %s\n", encoder_names[radeon_encoder->encoder_id]);
822 				if (devices & ATOM_DEVICE_DFP4_SUPPORT)
823 					DRM_INFO("    DFP4: %s\n", encoder_names[radeon_encoder->encoder_id]);
824 				if (devices & ATOM_DEVICE_DFP5_SUPPORT)
825 					DRM_INFO("    DFP5: %s\n", encoder_names[radeon_encoder->encoder_id]);
826 				if (devices & ATOM_DEVICE_DFP6_SUPPORT)
827 					DRM_INFO("    DFP6: %s\n", encoder_names[radeon_encoder->encoder_id]);
828 				if (devices & ATOM_DEVICE_TV1_SUPPORT)
829 					DRM_INFO("    TV1: %s\n", encoder_names[radeon_encoder->encoder_id]);
830 				if (devices & ATOM_DEVICE_CV_SUPPORT)
831 					DRM_INFO("    CV: %s\n", encoder_names[radeon_encoder->encoder_id]);
832 			}
833 		}
834 		i++;
835 	}
836 }
837 
838 static bool radeon_setup_enc_conn(struct drm_device *dev)
839 {
840 	struct radeon_device *rdev = dev->dev_private;
841 	bool ret = false;
842 
843 	if (rdev->bios) {
844 		if (rdev->is_atom_bios) {
845 			ret = radeon_get_atom_connector_info_from_supported_devices_table(dev);
846 			if (ret == false)
847 				ret = radeon_get_atom_connector_info_from_object_table(dev);
848 		} else {
849 			ret = radeon_get_legacy_connector_info_from_bios(dev);
850 			if (ret == false)
851 				ret = radeon_get_legacy_connector_info_from_table(dev);
852 		}
853 	} else {
854 		if (!ASIC_IS_AVIVO(rdev))
855 			ret = radeon_get_legacy_connector_info_from_table(dev);
856 	}
857 	if (ret) {
858 		radeon_setup_encoder_clones(dev);
859 		radeon_print_display_setup(dev);
860 	}
861 
862 	return ret;
863 }
864 
865 /* avivo */
866 
867 /**
868  * avivo_reduce_ratio - fractional number reduction
869  *
870  * @nom: nominator
871  * @den: denominator
872  * @nom_min: minimum value for nominator
873  * @den_min: minimum value for denominator
874  *
875  * Find the greatest common divisor and apply it on both nominator and
876  * denominator, but make nominator and denominator are at least as large
877  * as their minimum values.
878  */
879 static void avivo_reduce_ratio(unsigned *nom, unsigned *den,
880 			       unsigned nom_min, unsigned den_min)
881 {
882 	unsigned tmp;
883 
884 	/* reduce the numbers to a simpler ratio */
885 	tmp = gcd(*nom, *den);
886 	*nom /= tmp;
887 	*den /= tmp;
888 
889 	/* make sure nominator is large enough */
890 	if (*nom < nom_min) {
891 		tmp = DIV_ROUND_UP(nom_min, *nom);
892 		*nom *= tmp;
893 		*den *= tmp;
894 	}
895 
896 	/* make sure the denominator is large enough */
897 	if (*den < den_min) {
898 		tmp = DIV_ROUND_UP(den_min, *den);
899 		*nom *= tmp;
900 		*den *= tmp;
901 	}
902 }
903 
904 /**
905  * avivo_get_fb_ref_div - feedback and ref divider calculation
906  *
907  * @nom: nominator
908  * @den: denominator
909  * @post_div: post divider
910  * @fb_div_max: feedback divider maximum
911  * @ref_div_max: reference divider maximum
912  * @fb_div: resulting feedback divider
913  * @ref_div: resulting reference divider
914  *
915  * Calculate feedback and reference divider for a given post divider. Makes
916  * sure we stay within the limits.
917  */
918 static void avivo_get_fb_ref_div(unsigned nom, unsigned den, unsigned post_div,
919 				 unsigned fb_div_max, unsigned ref_div_max,
920 				 unsigned *fb_div, unsigned *ref_div)
921 {
922 	/* limit reference * post divider to a maximum */
923 	ref_div_max = max(min(100 / post_div, ref_div_max), 1u);
924 
925 	/* get matching reference and feedback divider */
926 	*ref_div = min(max(den/post_div, 1u), ref_div_max);
927 	*fb_div = DIV_ROUND_CLOSEST(nom * *ref_div * post_div, den);
928 
929 	/* limit fb divider to its maximum */
930 	if (*fb_div > fb_div_max) {
931 		*ref_div = (*ref_div * fb_div_max)/(*fb_div);
932 		*fb_div = fb_div_max;
933 	}
934 }
935 
936 /**
937  * radeon_compute_pll_avivo - compute PLL paramaters
938  *
939  * @pll: information about the PLL
940  * @dot_clock_p: resulting pixel clock
941  * fb_div_p: resulting feedback divider
942  * frac_fb_div_p: fractional part of the feedback divider
943  * ref_div_p: resulting reference divider
944  * post_div_p: resulting reference divider
945  *
946  * Try to calculate the PLL parameters to generate the given frequency:
947  * dot_clock = (ref_freq * feedback_div) / (ref_div * post_div)
948  */
949 void radeon_compute_pll_avivo(struct radeon_pll *pll,
950 			      u32 freq,
951 			      u32 *dot_clock_p,
952 			      u32 *fb_div_p,
953 			      u32 *frac_fb_div_p,
954 			      u32 *ref_div_p,
955 			      u32 *post_div_p)
956 {
957 	unsigned target_clock = pll->flags & RADEON_PLL_USE_FRAC_FB_DIV ?
958 		freq : freq / 10;
959 
960 	unsigned fb_div_min, fb_div_max, fb_div;
961 	unsigned post_div_min, post_div_max, post_div;
962 	unsigned ref_div_min, ref_div_max, ref_div;
963 	unsigned post_div_best, diff_best;
964 	unsigned nom, den;
965 
966 	/* determine allowed feedback divider range */
967 	fb_div_min = pll->min_feedback_div;
968 	fb_div_max = pll->max_feedback_div;
969 
970 	if (pll->flags & RADEON_PLL_USE_FRAC_FB_DIV) {
971 		fb_div_min *= 10;
972 		fb_div_max *= 10;
973 	}
974 
975 	/* determine allowed ref divider range */
976 	if (pll->flags & RADEON_PLL_USE_REF_DIV)
977 		ref_div_min = pll->reference_div;
978 	else
979 		ref_div_min = pll->min_ref_div;
980 
981 	if (pll->flags & RADEON_PLL_USE_FRAC_FB_DIV &&
982 	    pll->flags & RADEON_PLL_USE_REF_DIV)
983 		ref_div_max = pll->reference_div;
984 	else if (pll->flags & RADEON_PLL_PREFER_MINM_OVER_MAXP)
985 		/* fix for problems on RS880 */
986 		ref_div_max = min(pll->max_ref_div, 7u);
987 	else
988 		ref_div_max = pll->max_ref_div;
989 
990 	/* determine allowed post divider range */
991 	if (pll->flags & RADEON_PLL_USE_POST_DIV) {
992 		post_div_min = pll->post_div;
993 		post_div_max = pll->post_div;
994 	} else {
995 		unsigned vco_min, vco_max;
996 
997 		if (pll->flags & RADEON_PLL_IS_LCD) {
998 			vco_min = pll->lcd_pll_out_min;
999 			vco_max = pll->lcd_pll_out_max;
1000 		} else {
1001 			vco_min = pll->pll_out_min;
1002 			vco_max = pll->pll_out_max;
1003 		}
1004 
1005 		if (pll->flags & RADEON_PLL_USE_FRAC_FB_DIV) {
1006 			vco_min *= 10;
1007 			vco_max *= 10;
1008 		}
1009 
1010 		post_div_min = vco_min / target_clock;
1011 		if ((target_clock * post_div_min) < vco_min)
1012 			++post_div_min;
1013 		if (post_div_min < pll->min_post_div)
1014 			post_div_min = pll->min_post_div;
1015 
1016 		post_div_max = vco_max / target_clock;
1017 		if ((target_clock * post_div_max) > vco_max)
1018 			--post_div_max;
1019 		if (post_div_max > pll->max_post_div)
1020 			post_div_max = pll->max_post_div;
1021 	}
1022 
1023 	/* represent the searched ratio as fractional number */
1024 	nom = target_clock;
1025 	den = pll->reference_freq;
1026 
1027 	/* reduce the numbers to a simpler ratio */
1028 	avivo_reduce_ratio(&nom, &den, fb_div_min, post_div_min);
1029 
1030 	/* now search for a post divider */
1031 	if (pll->flags & RADEON_PLL_PREFER_MINM_OVER_MAXP)
1032 		post_div_best = post_div_min;
1033 	else
1034 		post_div_best = post_div_max;
1035 	diff_best = ~0;
1036 
1037 	for (post_div = post_div_min; post_div <= post_div_max; ++post_div) {
1038 		unsigned diff;
1039 		avivo_get_fb_ref_div(nom, den, post_div, fb_div_max,
1040 				     ref_div_max, &fb_div, &ref_div);
1041 		diff = abs(target_clock - (pll->reference_freq * fb_div) /
1042 			(ref_div * post_div));
1043 
1044 		if (diff < diff_best || (diff == diff_best &&
1045 		    !(pll->flags & RADEON_PLL_PREFER_MINM_OVER_MAXP))) {
1046 
1047 			post_div_best = post_div;
1048 			diff_best = diff;
1049 		}
1050 	}
1051 	post_div = post_div_best;
1052 
1053 	/* get the feedback and reference divider for the optimal value */
1054 	avivo_get_fb_ref_div(nom, den, post_div, fb_div_max, ref_div_max,
1055 			     &fb_div, &ref_div);
1056 
1057 	/* reduce the numbers to a simpler ratio once more */
1058 	/* this also makes sure that the reference divider is large enough */
1059 	avivo_reduce_ratio(&fb_div, &ref_div, fb_div_min, ref_div_min);
1060 
1061 	/* avoid high jitter with small fractional dividers */
1062 	if (pll->flags & RADEON_PLL_USE_FRAC_FB_DIV && (fb_div % 10)) {
1063 		fb_div_min = max(fb_div_min, (9 - (fb_div % 10)) * 20 + 50);
1064 		if (fb_div < fb_div_min) {
1065 			unsigned tmp = DIV_ROUND_UP(fb_div_min, fb_div);
1066 			fb_div *= tmp;
1067 			ref_div *= tmp;
1068 		}
1069 	}
1070 
1071 	/* and finally save the result */
1072 	if (pll->flags & RADEON_PLL_USE_FRAC_FB_DIV) {
1073 		*fb_div_p = fb_div / 10;
1074 		*frac_fb_div_p = fb_div % 10;
1075 	} else {
1076 		*fb_div_p = fb_div;
1077 		*frac_fb_div_p = 0;
1078 	}
1079 
1080 	*dot_clock_p = ((pll->reference_freq * *fb_div_p * 10) +
1081 			(pll->reference_freq * *frac_fb_div_p)) /
1082 		       (ref_div * post_div * 10);
1083 	*ref_div_p = ref_div;
1084 	*post_div_p = post_div;
1085 
1086 	DRM_DEBUG_KMS("%d - %d, pll dividers - fb: %d.%d ref: %d, post %d\n",
1087 		      freq, *dot_clock_p * 10, *fb_div_p, *frac_fb_div_p,
1088 		      ref_div, post_div);
1089 }
1090 
1091 /* pre-avivo */
1092 static inline uint32_t radeon_div(uint64_t n, uint32_t d)
1093 {
1094 	uint64_t mod;
1095 
1096 	n += d / 2;
1097 
1098 	mod = do_div(n, d);
1099 	return n;
1100 }
1101 
1102 void radeon_compute_pll_legacy(struct radeon_pll *pll,
1103 			       uint64_t freq,
1104 			       uint32_t *dot_clock_p,
1105 			       uint32_t *fb_div_p,
1106 			       uint32_t *frac_fb_div_p,
1107 			       uint32_t *ref_div_p,
1108 			       uint32_t *post_div_p)
1109 {
1110 	uint32_t min_ref_div = pll->min_ref_div;
1111 	uint32_t max_ref_div = pll->max_ref_div;
1112 	uint32_t min_post_div = pll->min_post_div;
1113 	uint32_t max_post_div = pll->max_post_div;
1114 	uint32_t min_fractional_feed_div = 0;
1115 	uint32_t max_fractional_feed_div = 0;
1116 	uint32_t best_vco = pll->best_vco;
1117 	uint32_t best_post_div = 1;
1118 	uint32_t best_ref_div = 1;
1119 	uint32_t best_feedback_div = 1;
1120 	uint32_t best_frac_feedback_div = 0;
1121 	uint32_t best_freq = -1;
1122 	uint32_t best_error = 0xffffffff;
1123 	uint32_t best_vco_diff = 1;
1124 	uint32_t post_div;
1125 	u32 pll_out_min, pll_out_max;
1126 
1127 	DRM_DEBUG_KMS("PLL freq %llu %u %u\n", freq, pll->min_ref_div, pll->max_ref_div);
1128 	freq = freq * 1000;
1129 
1130 	if (pll->flags & RADEON_PLL_IS_LCD) {
1131 		pll_out_min = pll->lcd_pll_out_min;
1132 		pll_out_max = pll->lcd_pll_out_max;
1133 	} else {
1134 		pll_out_min = pll->pll_out_min;
1135 		pll_out_max = pll->pll_out_max;
1136 	}
1137 
1138 	if (pll_out_min > 64800)
1139 		pll_out_min = 64800;
1140 
1141 	if (pll->flags & RADEON_PLL_USE_REF_DIV)
1142 		min_ref_div = max_ref_div = pll->reference_div;
1143 	else {
1144 		while (min_ref_div < max_ref_div-1) {
1145 			uint32_t mid = (min_ref_div + max_ref_div) / 2;
1146 			uint32_t pll_in = pll->reference_freq / mid;
1147 			if (pll_in < pll->pll_in_min)
1148 				max_ref_div = mid;
1149 			else if (pll_in > pll->pll_in_max)
1150 				min_ref_div = mid;
1151 			else
1152 				break;
1153 		}
1154 	}
1155 
1156 	if (pll->flags & RADEON_PLL_USE_POST_DIV)
1157 		min_post_div = max_post_div = pll->post_div;
1158 
1159 	if (pll->flags & RADEON_PLL_USE_FRAC_FB_DIV) {
1160 		min_fractional_feed_div = pll->min_frac_feedback_div;
1161 		max_fractional_feed_div = pll->max_frac_feedback_div;
1162 	}
1163 
1164 	for (post_div = max_post_div; post_div >= min_post_div; --post_div) {
1165 		uint32_t ref_div;
1166 
1167 		if ((pll->flags & RADEON_PLL_NO_ODD_POST_DIV) && (post_div & 1))
1168 			continue;
1169 
1170 		/* legacy radeons only have a few post_divs */
1171 		if (pll->flags & RADEON_PLL_LEGACY) {
1172 			if ((post_div == 5) ||
1173 			    (post_div == 7) ||
1174 			    (post_div == 9) ||
1175 			    (post_div == 10) ||
1176 			    (post_div == 11) ||
1177 			    (post_div == 13) ||
1178 			    (post_div == 14) ||
1179 			    (post_div == 15))
1180 				continue;
1181 		}
1182 
1183 		for (ref_div = min_ref_div; ref_div <= max_ref_div; ++ref_div) {
1184 			uint32_t feedback_div, current_freq = 0, error, vco_diff;
1185 			uint32_t pll_in = pll->reference_freq / ref_div;
1186 			uint32_t min_feed_div = pll->min_feedback_div;
1187 			uint32_t max_feed_div = pll->max_feedback_div + 1;
1188 
1189 			if (pll_in < pll->pll_in_min || pll_in > pll->pll_in_max)
1190 				continue;
1191 
1192 			while (min_feed_div < max_feed_div) {
1193 				uint32_t vco;
1194 				uint32_t min_frac_feed_div = min_fractional_feed_div;
1195 				uint32_t max_frac_feed_div = max_fractional_feed_div + 1;
1196 				uint32_t frac_feedback_div;
1197 				uint64_t tmp;
1198 
1199 				feedback_div = (min_feed_div + max_feed_div) / 2;
1200 
1201 				tmp = (uint64_t)pll->reference_freq * feedback_div;
1202 				vco = radeon_div(tmp, ref_div);
1203 
1204 				if (vco < pll_out_min) {
1205 					min_feed_div = feedback_div + 1;
1206 					continue;
1207 				} else if (vco > pll_out_max) {
1208 					max_feed_div = feedback_div;
1209 					continue;
1210 				}
1211 
1212 				while (min_frac_feed_div < max_frac_feed_div) {
1213 					frac_feedback_div = (min_frac_feed_div + max_frac_feed_div) / 2;
1214 					tmp = (uint64_t)pll->reference_freq * 10000 * feedback_div;
1215 					tmp += (uint64_t)pll->reference_freq * 1000 * frac_feedback_div;
1216 					current_freq = radeon_div(tmp, ref_div * post_div);
1217 
1218 					if (pll->flags & RADEON_PLL_PREFER_CLOSEST_LOWER) {
1219 						if (freq < current_freq)
1220 							error = 0xffffffff;
1221 						else
1222 							error = freq - current_freq;
1223 					} else
1224 						error = abs(current_freq - freq);
1225 					vco_diff = abs(vco - best_vco);
1226 
1227 					if ((best_vco == 0 && error < best_error) ||
1228 					    (best_vco != 0 &&
1229 					     ((best_error > 100 && error < best_error - 100) ||
1230 					      (abs(error - best_error) < 100 && vco_diff < best_vco_diff)))) {
1231 						best_post_div = post_div;
1232 						best_ref_div = ref_div;
1233 						best_feedback_div = feedback_div;
1234 						best_frac_feedback_div = frac_feedback_div;
1235 						best_freq = current_freq;
1236 						best_error = error;
1237 						best_vco_diff = vco_diff;
1238 					} else if (current_freq == freq) {
1239 						if (best_freq == -1) {
1240 							best_post_div = post_div;
1241 							best_ref_div = ref_div;
1242 							best_feedback_div = feedback_div;
1243 							best_frac_feedback_div = frac_feedback_div;
1244 							best_freq = current_freq;
1245 							best_error = error;
1246 							best_vco_diff = vco_diff;
1247 						} else if (((pll->flags & RADEON_PLL_PREFER_LOW_REF_DIV) && (ref_div < best_ref_div)) ||
1248 							   ((pll->flags & RADEON_PLL_PREFER_HIGH_REF_DIV) && (ref_div > best_ref_div)) ||
1249 							   ((pll->flags & RADEON_PLL_PREFER_LOW_FB_DIV) && (feedback_div < best_feedback_div)) ||
1250 							   ((pll->flags & RADEON_PLL_PREFER_HIGH_FB_DIV) && (feedback_div > best_feedback_div)) ||
1251 							   ((pll->flags & RADEON_PLL_PREFER_LOW_POST_DIV) && (post_div < best_post_div)) ||
1252 							   ((pll->flags & RADEON_PLL_PREFER_HIGH_POST_DIV) && (post_div > best_post_div))) {
1253 							best_post_div = post_div;
1254 							best_ref_div = ref_div;
1255 							best_feedback_div = feedback_div;
1256 							best_frac_feedback_div = frac_feedback_div;
1257 							best_freq = current_freq;
1258 							best_error = error;
1259 							best_vco_diff = vco_diff;
1260 						}
1261 					}
1262 					if (current_freq < freq)
1263 						min_frac_feed_div = frac_feedback_div + 1;
1264 					else
1265 						max_frac_feed_div = frac_feedback_div;
1266 				}
1267 				if (current_freq < freq)
1268 					min_feed_div = feedback_div + 1;
1269 				else
1270 					max_feed_div = feedback_div;
1271 			}
1272 		}
1273 	}
1274 
1275 	*dot_clock_p = best_freq / 10000;
1276 	*fb_div_p = best_feedback_div;
1277 	*frac_fb_div_p = best_frac_feedback_div;
1278 	*ref_div_p = best_ref_div;
1279 	*post_div_p = best_post_div;
1280 	DRM_DEBUG_KMS("%lld %d, pll dividers - fb: %d.%d ref: %d, post %d\n",
1281 		      (long long)freq,
1282 		      best_freq / 1000, best_feedback_div, best_frac_feedback_div,
1283 		      best_ref_div, best_post_div);
1284 
1285 }
1286 
1287 static const struct drm_framebuffer_funcs radeon_fb_funcs = {
1288 	.destroy = drm_gem_fb_destroy,
1289 	.create_handle = drm_gem_fb_create_handle,
1290 };
1291 
1292 int
1293 radeon_framebuffer_init(struct drm_device *dev,
1294 			struct drm_framebuffer *fb,
1295 			const struct drm_mode_fb_cmd2 *mode_cmd,
1296 			struct drm_gem_object *obj)
1297 {
1298 	int ret;
1299 	fb->obj[0] = obj;
1300 	drm_helper_mode_fill_fb_struct(dev, fb, mode_cmd);
1301 	ret = drm_framebuffer_init(dev, fb, &radeon_fb_funcs);
1302 	if (ret) {
1303 		fb->obj[0] = NULL;
1304 		return ret;
1305 	}
1306 	return 0;
1307 }
1308 
1309 static struct drm_framebuffer *
1310 radeon_user_framebuffer_create(struct drm_device *dev,
1311 			       struct drm_file *file_priv,
1312 			       const struct drm_mode_fb_cmd2 *mode_cmd)
1313 {
1314 	struct drm_gem_object *obj;
1315 	struct drm_framebuffer *fb;
1316 	int ret;
1317 
1318 	obj = drm_gem_object_lookup(file_priv, mode_cmd->handles[0]);
1319 	if (obj ==  NULL) {
1320 		dev_err(&dev->pdev->dev, "No GEM object associated to handle 0x%08X, "
1321 			"can't create framebuffer\n", mode_cmd->handles[0]);
1322 		return ERR_PTR(-ENOENT);
1323 	}
1324 
1325 #ifdef notyet
1326 	/* Handle is imported dma-buf, so cannot be migrated to VRAM for scanout */
1327 	if (obj->import_attach) {
1328 		DRM_DEBUG_KMS("Cannot create framebuffer from imported dma_buf\n");
1329 		return ERR_PTR(-EINVAL);
1330 	}
1331 #endif
1332 
1333 	fb = kzalloc(sizeof(*fb), GFP_KERNEL);
1334 	if (fb == NULL) {
1335 		drm_gem_object_put_unlocked(obj);
1336 		return ERR_PTR(-ENOMEM);
1337 	}
1338 
1339 	ret = radeon_framebuffer_init(dev, fb, mode_cmd, obj);
1340 	if (ret) {
1341 		kfree(fb);
1342 		drm_gem_object_put_unlocked(obj);
1343 		return ERR_PTR(ret);
1344 	}
1345 
1346 	return fb;
1347 }
1348 
1349 static const struct drm_mode_config_funcs radeon_mode_funcs = {
1350 	.fb_create = radeon_user_framebuffer_create,
1351 	.output_poll_changed = drm_fb_helper_output_poll_changed,
1352 };
1353 
1354 static const struct drm_prop_enum_list radeon_tmds_pll_enum_list[] =
1355 {	{ 0, "driver" },
1356 	{ 1, "bios" },
1357 };
1358 
1359 static const struct drm_prop_enum_list radeon_tv_std_enum_list[] =
1360 {	{ TV_STD_NTSC, "ntsc" },
1361 	{ TV_STD_PAL, "pal" },
1362 	{ TV_STD_PAL_M, "pal-m" },
1363 	{ TV_STD_PAL_60, "pal-60" },
1364 	{ TV_STD_NTSC_J, "ntsc-j" },
1365 	{ TV_STD_SCART_PAL, "scart-pal" },
1366 	{ TV_STD_PAL_CN, "pal-cn" },
1367 	{ TV_STD_SECAM, "secam" },
1368 };
1369 
1370 static const struct drm_prop_enum_list radeon_underscan_enum_list[] =
1371 {	{ UNDERSCAN_OFF, "off" },
1372 	{ UNDERSCAN_ON, "on" },
1373 	{ UNDERSCAN_AUTO, "auto" },
1374 };
1375 
1376 static const struct drm_prop_enum_list radeon_audio_enum_list[] =
1377 {	{ RADEON_AUDIO_DISABLE, "off" },
1378 	{ RADEON_AUDIO_ENABLE, "on" },
1379 	{ RADEON_AUDIO_AUTO, "auto" },
1380 };
1381 
1382 /* XXX support different dither options? spatial, temporal, both, etc. */
1383 static const struct drm_prop_enum_list radeon_dither_enum_list[] =
1384 {	{ RADEON_FMT_DITHER_DISABLE, "off" },
1385 	{ RADEON_FMT_DITHER_ENABLE, "on" },
1386 };
1387 
1388 static const struct drm_prop_enum_list radeon_output_csc_enum_list[] =
1389 {	{ RADEON_OUTPUT_CSC_BYPASS, "bypass" },
1390 	{ RADEON_OUTPUT_CSC_TVRGB, "tvrgb" },
1391 	{ RADEON_OUTPUT_CSC_YCBCR601, "ycbcr601" },
1392 	{ RADEON_OUTPUT_CSC_YCBCR709, "ycbcr709" },
1393 };
1394 
1395 static int radeon_modeset_create_props(struct radeon_device *rdev)
1396 {
1397 	int sz;
1398 
1399 	if (rdev->is_atom_bios) {
1400 		rdev->mode_info.coherent_mode_property =
1401 			drm_property_create_range(rdev->ddev, 0 , "coherent", 0, 1);
1402 		if (!rdev->mode_info.coherent_mode_property)
1403 			return -ENOMEM;
1404 	}
1405 
1406 	if (!ASIC_IS_AVIVO(rdev)) {
1407 		sz = ARRAY_SIZE(radeon_tmds_pll_enum_list);
1408 		rdev->mode_info.tmds_pll_property =
1409 			drm_property_create_enum(rdev->ddev, 0,
1410 					    "tmds_pll",
1411 					    radeon_tmds_pll_enum_list, sz);
1412 	}
1413 
1414 	rdev->mode_info.load_detect_property =
1415 		drm_property_create_range(rdev->ddev, 0, "load detection", 0, 1);
1416 	if (!rdev->mode_info.load_detect_property)
1417 		return -ENOMEM;
1418 
1419 	drm_mode_create_scaling_mode_property(rdev->ddev);
1420 
1421 	sz = ARRAY_SIZE(radeon_tv_std_enum_list);
1422 	rdev->mode_info.tv_std_property =
1423 		drm_property_create_enum(rdev->ddev, 0,
1424 				    "tv standard",
1425 				    radeon_tv_std_enum_list, sz);
1426 
1427 	sz = ARRAY_SIZE(radeon_underscan_enum_list);
1428 	rdev->mode_info.underscan_property =
1429 		drm_property_create_enum(rdev->ddev, 0,
1430 				    "underscan",
1431 				    radeon_underscan_enum_list, sz);
1432 
1433 	rdev->mode_info.underscan_hborder_property =
1434 		drm_property_create_range(rdev->ddev, 0,
1435 					"underscan hborder", 0, 128);
1436 	if (!rdev->mode_info.underscan_hborder_property)
1437 		return -ENOMEM;
1438 
1439 	rdev->mode_info.underscan_vborder_property =
1440 		drm_property_create_range(rdev->ddev, 0,
1441 					"underscan vborder", 0, 128);
1442 	if (!rdev->mode_info.underscan_vborder_property)
1443 		return -ENOMEM;
1444 
1445 	sz = ARRAY_SIZE(radeon_audio_enum_list);
1446 	rdev->mode_info.audio_property =
1447 		drm_property_create_enum(rdev->ddev, 0,
1448 					 "audio",
1449 					 radeon_audio_enum_list, sz);
1450 
1451 	sz = ARRAY_SIZE(radeon_dither_enum_list);
1452 	rdev->mode_info.dither_property =
1453 		drm_property_create_enum(rdev->ddev, 0,
1454 					 "dither",
1455 					 radeon_dither_enum_list, sz);
1456 
1457 	sz = ARRAY_SIZE(radeon_output_csc_enum_list);
1458 	rdev->mode_info.output_csc_property =
1459 		drm_property_create_enum(rdev->ddev, 0,
1460 					 "output_csc",
1461 					 radeon_output_csc_enum_list, sz);
1462 
1463 	return 0;
1464 }
1465 
1466 void radeon_update_display_priority(struct radeon_device *rdev)
1467 {
1468 	/* adjustment options for the display watermarks */
1469 	if ((radeon_disp_priority == 0) || (radeon_disp_priority > 2)) {
1470 		/* set display priority to high for r3xx, rv515 chips
1471 		 * this avoids flickering due to underflow to the
1472 		 * display controllers during heavy acceleration.
1473 		 * Don't force high on rs4xx igp chips as it seems to
1474 		 * affect the sound card.  See kernel bug 15982.
1475 		 */
1476 		if ((ASIC_IS_R300(rdev) || (rdev->family == CHIP_RV515)) &&
1477 		    !(rdev->flags & RADEON_IS_IGP))
1478 			rdev->disp_priority = 2;
1479 		else
1480 			rdev->disp_priority = 0;
1481 	} else
1482 		rdev->disp_priority = radeon_disp_priority;
1483 
1484 }
1485 
1486 /*
1487  * Allocate hdmi structs and determine register offsets
1488  */
1489 static void radeon_afmt_init(struct radeon_device *rdev)
1490 {
1491 	int i;
1492 
1493 	for (i = 0; i < RADEON_MAX_AFMT_BLOCKS; i++)
1494 		rdev->mode_info.afmt[i] = NULL;
1495 
1496 	if (ASIC_IS_NODCE(rdev)) {
1497 		/* nothing to do */
1498 	} else if (ASIC_IS_DCE4(rdev)) {
1499 		static uint32_t eg_offsets[] = {
1500 			EVERGREEN_CRTC0_REGISTER_OFFSET,
1501 			EVERGREEN_CRTC1_REGISTER_OFFSET,
1502 			EVERGREEN_CRTC2_REGISTER_OFFSET,
1503 			EVERGREEN_CRTC3_REGISTER_OFFSET,
1504 			EVERGREEN_CRTC4_REGISTER_OFFSET,
1505 			EVERGREEN_CRTC5_REGISTER_OFFSET,
1506 			0x13830 - 0x7030,
1507 		};
1508 		int num_afmt;
1509 
1510 		/* DCE8 has 7 audio blocks tied to DIG encoders */
1511 		/* DCE6 has 6 audio blocks tied to DIG encoders */
1512 		/* DCE4/5 has 6 audio blocks tied to DIG encoders */
1513 		/* DCE4.1 has 2 audio blocks tied to DIG encoders */
1514 		if (ASIC_IS_DCE8(rdev))
1515 			num_afmt = 7;
1516 		else if (ASIC_IS_DCE6(rdev))
1517 			num_afmt = 6;
1518 		else if (ASIC_IS_DCE5(rdev))
1519 			num_afmt = 6;
1520 		else if (ASIC_IS_DCE41(rdev))
1521 			num_afmt = 2;
1522 		else /* DCE4 */
1523 			num_afmt = 6;
1524 
1525 		BUG_ON(num_afmt > ARRAY_SIZE(eg_offsets));
1526 		for (i = 0; i < num_afmt; i++) {
1527 			rdev->mode_info.afmt[i] = kzalloc(sizeof(struct radeon_afmt), GFP_KERNEL);
1528 			if (rdev->mode_info.afmt[i]) {
1529 				rdev->mode_info.afmt[i]->offset = eg_offsets[i];
1530 				rdev->mode_info.afmt[i]->id = i;
1531 			}
1532 		}
1533 	} else if (ASIC_IS_DCE3(rdev)) {
1534 		/* DCE3.x has 2 audio blocks tied to DIG encoders */
1535 		rdev->mode_info.afmt[0] = kzalloc(sizeof(struct radeon_afmt), GFP_KERNEL);
1536 		if (rdev->mode_info.afmt[0]) {
1537 			rdev->mode_info.afmt[0]->offset = DCE3_HDMI_OFFSET0;
1538 			rdev->mode_info.afmt[0]->id = 0;
1539 		}
1540 		rdev->mode_info.afmt[1] = kzalloc(sizeof(struct radeon_afmt), GFP_KERNEL);
1541 		if (rdev->mode_info.afmt[1]) {
1542 			rdev->mode_info.afmt[1]->offset = DCE3_HDMI_OFFSET1;
1543 			rdev->mode_info.afmt[1]->id = 1;
1544 		}
1545 	} else if (ASIC_IS_DCE2(rdev)) {
1546 		/* DCE2 has at least 1 routable audio block */
1547 		rdev->mode_info.afmt[0] = kzalloc(sizeof(struct radeon_afmt), GFP_KERNEL);
1548 		if (rdev->mode_info.afmt[0]) {
1549 			rdev->mode_info.afmt[0]->offset = DCE2_HDMI_OFFSET0;
1550 			rdev->mode_info.afmt[0]->id = 0;
1551 		}
1552 		/* r6xx has 2 routable audio blocks */
1553 		if (rdev->family >= CHIP_R600) {
1554 			rdev->mode_info.afmt[1] = kzalloc(sizeof(struct radeon_afmt), GFP_KERNEL);
1555 			if (rdev->mode_info.afmt[1]) {
1556 				rdev->mode_info.afmt[1]->offset = DCE2_HDMI_OFFSET1;
1557 				rdev->mode_info.afmt[1]->id = 1;
1558 			}
1559 		}
1560 	}
1561 }
1562 
1563 static void radeon_afmt_fini(struct radeon_device *rdev)
1564 {
1565 	int i;
1566 
1567 	for (i = 0; i < RADEON_MAX_AFMT_BLOCKS; i++) {
1568 		kfree(rdev->mode_info.afmt[i]);
1569 		rdev->mode_info.afmt[i] = NULL;
1570 	}
1571 }
1572 
1573 int radeon_modeset_init(struct radeon_device *rdev)
1574 {
1575 	int i;
1576 	int ret;
1577 
1578 	drm_mode_config_init(rdev->ddev);
1579 	rdev->mode_info.mode_config_initialized = true;
1580 
1581 	rdev->ddev->mode_config.funcs = &radeon_mode_funcs;
1582 
1583 	if (radeon_use_pflipirq == 2 && rdev->family >= CHIP_R600)
1584 		rdev->ddev->mode_config.async_page_flip = true;
1585 
1586 	if (ASIC_IS_DCE5(rdev)) {
1587 		rdev->ddev->mode_config.max_width = 16384;
1588 		rdev->ddev->mode_config.max_height = 16384;
1589 	} else if (ASIC_IS_AVIVO(rdev)) {
1590 		rdev->ddev->mode_config.max_width = 8192;
1591 		rdev->ddev->mode_config.max_height = 8192;
1592 	} else {
1593 		rdev->ddev->mode_config.max_width = 4096;
1594 		rdev->ddev->mode_config.max_height = 4096;
1595 	}
1596 
1597 	rdev->ddev->mode_config.preferred_depth = 24;
1598 	rdev->ddev->mode_config.prefer_shadow = 1;
1599 
1600 	rdev->ddev->mode_config.fb_base = rdev->mc.aper_base;
1601 
1602 	ret = radeon_modeset_create_props(rdev);
1603 	if (ret) {
1604 		return ret;
1605 	}
1606 
1607 	/* init i2c buses */
1608 	radeon_i2c_init(rdev);
1609 
1610 	/* check combios for a valid hardcoded EDID - Sun servers */
1611 	if (!rdev->is_atom_bios) {
1612 		/* check for hardcoded EDID in BIOS */
1613 		radeon_combios_check_hardcoded_edid(rdev);
1614 	}
1615 
1616 	/* allocate crtcs */
1617 	for (i = 0; i < rdev->num_crtc; i++) {
1618 		radeon_crtc_init(rdev->ddev, i);
1619 	}
1620 
1621 	/* okay we should have all the bios connectors */
1622 	ret = radeon_setup_enc_conn(rdev->ddev);
1623 	if (!ret) {
1624 		return ret;
1625 	}
1626 
1627 	/* init dig PHYs, disp eng pll */
1628 	if (rdev->is_atom_bios) {
1629 		radeon_atom_encoder_init(rdev);
1630 		radeon_atom_disp_eng_pll_init(rdev);
1631 	}
1632 
1633 	/* initialize hpd */
1634 	radeon_hpd_init(rdev);
1635 
1636 	/* setup afmt */
1637 	radeon_afmt_init(rdev);
1638 
1639 	radeon_fbdev_init(rdev);
1640 	drm_kms_helper_poll_init(rdev->ddev);
1641 
1642 	/* do pm late init */
1643 	ret = radeon_pm_late_init(rdev);
1644 
1645 	return 0;
1646 }
1647 
1648 void radeon_modeset_fini(struct radeon_device *rdev)
1649 {
1650 	if (rdev->mode_info.mode_config_initialized) {
1651 		drm_kms_helper_poll_fini(rdev->ddev);
1652 		radeon_hpd_fini(rdev);
1653 		drm_crtc_force_disable_all(rdev->ddev);
1654 		radeon_fbdev_fini(rdev);
1655 		radeon_afmt_fini(rdev);
1656 		drm_mode_config_cleanup(rdev->ddev);
1657 		rdev->mode_info.mode_config_initialized = false;
1658 	}
1659 
1660 	kfree(rdev->mode_info.bios_hardcoded_edid);
1661 
1662 	/* free i2c buses */
1663 	radeon_i2c_fini(rdev);
1664 }
1665 
1666 static bool is_hdtv_mode(const struct drm_display_mode *mode)
1667 {
1668 	/* try and guess if this is a tv or a monitor */
1669 	if ((mode->vdisplay == 480 && mode->hdisplay == 720) || /* 480p */
1670 	    (mode->vdisplay == 576) || /* 576p */
1671 	    (mode->vdisplay == 720) || /* 720p */
1672 	    (mode->vdisplay == 1080)) /* 1080p */
1673 		return true;
1674 	else
1675 		return false;
1676 }
1677 
1678 bool radeon_crtc_scaling_mode_fixup(struct drm_crtc *crtc,
1679 				const struct drm_display_mode *mode,
1680 				struct drm_display_mode *adjusted_mode)
1681 {
1682 	struct drm_device *dev = crtc->dev;
1683 	struct radeon_device *rdev = dev->dev_private;
1684 	struct drm_encoder *encoder;
1685 	struct radeon_crtc *radeon_crtc = to_radeon_crtc(crtc);
1686 	struct radeon_encoder *radeon_encoder;
1687 	struct drm_connector *connector;
1688 	struct radeon_connector *radeon_connector;
1689 	bool first = true;
1690 	u32 src_v = 1, dst_v = 1;
1691 	u32 src_h = 1, dst_h = 1;
1692 
1693 	radeon_crtc->h_border = 0;
1694 	radeon_crtc->v_border = 0;
1695 
1696 	list_for_each_entry(encoder, &dev->mode_config.encoder_list, head) {
1697 		if (encoder->crtc != crtc)
1698 			continue;
1699 		radeon_encoder = to_radeon_encoder(encoder);
1700 		connector = radeon_get_connector_for_encoder(encoder);
1701 		radeon_connector = to_radeon_connector(connector);
1702 
1703 		if (first) {
1704 			/* set scaling */
1705 			if (radeon_encoder->rmx_type == RMX_OFF)
1706 				radeon_crtc->rmx_type = RMX_OFF;
1707 			else if (mode->hdisplay < radeon_encoder->native_mode.hdisplay ||
1708 				 mode->vdisplay < radeon_encoder->native_mode.vdisplay)
1709 				radeon_crtc->rmx_type = radeon_encoder->rmx_type;
1710 			else
1711 				radeon_crtc->rmx_type = RMX_OFF;
1712 			/* copy native mode */
1713 			memcpy(&radeon_crtc->native_mode,
1714 			       &radeon_encoder->native_mode,
1715 				sizeof(struct drm_display_mode));
1716 			src_v = crtc->mode.vdisplay;
1717 			dst_v = radeon_crtc->native_mode.vdisplay;
1718 			src_h = crtc->mode.hdisplay;
1719 			dst_h = radeon_crtc->native_mode.hdisplay;
1720 
1721 			/* fix up for overscan on hdmi */
1722 			if (ASIC_IS_AVIVO(rdev) &&
1723 			    (!(mode->flags & DRM_MODE_FLAG_INTERLACE)) &&
1724 			    ((radeon_encoder->underscan_type == UNDERSCAN_ON) ||
1725 			     ((radeon_encoder->underscan_type == UNDERSCAN_AUTO) &&
1726 			      drm_detect_hdmi_monitor(radeon_connector_edid(connector)) &&
1727 			      is_hdtv_mode(mode)))) {
1728 				if (radeon_encoder->underscan_hborder != 0)
1729 					radeon_crtc->h_border = radeon_encoder->underscan_hborder;
1730 				else
1731 					radeon_crtc->h_border = (mode->hdisplay >> 5) + 16;
1732 				if (radeon_encoder->underscan_vborder != 0)
1733 					radeon_crtc->v_border = radeon_encoder->underscan_vborder;
1734 				else
1735 					radeon_crtc->v_border = (mode->vdisplay >> 5) + 16;
1736 				radeon_crtc->rmx_type = RMX_FULL;
1737 				src_v = crtc->mode.vdisplay;
1738 				dst_v = crtc->mode.vdisplay - (radeon_crtc->v_border * 2);
1739 				src_h = crtc->mode.hdisplay;
1740 				dst_h = crtc->mode.hdisplay - (radeon_crtc->h_border * 2);
1741 			}
1742 			first = false;
1743 		} else {
1744 			if (radeon_crtc->rmx_type != radeon_encoder->rmx_type) {
1745 				/* WARNING: Right now this can't happen but
1746 				 * in the future we need to check that scaling
1747 				 * are consistent across different encoder
1748 				 * (ie all encoder can work with the same
1749 				 *  scaling).
1750 				 */
1751 				DRM_ERROR("Scaling not consistent across encoder.\n");
1752 				return false;
1753 			}
1754 		}
1755 	}
1756 	if (radeon_crtc->rmx_type != RMX_OFF) {
1757 		fixed20_12 a, b;
1758 		a.full = dfixed_const(src_v);
1759 		b.full = dfixed_const(dst_v);
1760 		radeon_crtc->vsc.full = dfixed_div(a, b);
1761 		a.full = dfixed_const(src_h);
1762 		b.full = dfixed_const(dst_h);
1763 		radeon_crtc->hsc.full = dfixed_div(a, b);
1764 	} else {
1765 		radeon_crtc->vsc.full = dfixed_const(1);
1766 		radeon_crtc->hsc.full = dfixed_const(1);
1767 	}
1768 	return true;
1769 }
1770 
1771 /*
1772  * Retrieve current video scanout position of crtc on a given gpu, and
1773  * an optional accurate timestamp of when query happened.
1774  *
1775  * \param dev Device to query.
1776  * \param crtc Crtc to query.
1777  * \param flags Flags from caller (DRM_CALLED_FROM_VBLIRQ or 0).
1778  *              For driver internal use only also supports these flags:
1779  *
1780  *              USE_REAL_VBLANKSTART to use the real start of vblank instead
1781  *              of a fudged earlier start of vblank.
1782  *
1783  *              GET_DISTANCE_TO_VBLANKSTART to return distance to the
1784  *              fudged earlier start of vblank in *vpos and the distance
1785  *              to true start of vblank in *hpos.
1786  *
1787  * \param *vpos Location where vertical scanout position should be stored.
1788  * \param *hpos Location where horizontal scanout position should go.
1789  * \param *stime Target location for timestamp taken immediately before
1790  *               scanout position query. Can be NULL to skip timestamp.
1791  * \param *etime Target location for timestamp taken immediately after
1792  *               scanout position query. Can be NULL to skip timestamp.
1793  *
1794  * Returns vpos as a positive number while in active scanout area.
1795  * Returns vpos as a negative number inside vblank, counting the number
1796  * of scanlines to go until end of vblank, e.g., -1 means "one scanline
1797  * until start of active scanout / end of vblank."
1798  *
1799  * \return Flags, or'ed together as follows:
1800  *
1801  * DRM_SCANOUTPOS_VALID = Query successful.
1802  * DRM_SCANOUTPOS_INVBL = Inside vblank.
1803  * DRM_SCANOUTPOS_ACCURATE = Returned position is accurate. A lack of
1804  * this flag means that returned position may be offset by a constant but
1805  * unknown small number of scanlines wrt. real scanout position.
1806  *
1807  */
1808 int radeon_get_crtc_scanoutpos(struct drm_device *dev, unsigned int pipe,
1809 			       unsigned int flags, int *vpos, int *hpos,
1810 			       ktime_t *stime, ktime_t *etime,
1811 			       const struct drm_display_mode *mode)
1812 {
1813 	u32 stat_crtc = 0, vbl = 0, position = 0;
1814 	int vbl_start, vbl_end, vtotal, ret = 0;
1815 	bool in_vbl = true;
1816 
1817 	struct radeon_device *rdev = dev->dev_private;
1818 
1819 	/* preempt_disable_rt() should go right here in PREEMPT_RT patchset. */
1820 
1821 	/* Get optional system timestamp before query. */
1822 	if (stime)
1823 		*stime = ktime_get();
1824 
1825 	if (ASIC_IS_DCE4(rdev)) {
1826 		if (pipe == 0) {
1827 			vbl = RREG32(EVERGREEN_CRTC_V_BLANK_START_END +
1828 				     EVERGREEN_CRTC0_REGISTER_OFFSET);
1829 			position = RREG32(EVERGREEN_CRTC_STATUS_POSITION +
1830 					  EVERGREEN_CRTC0_REGISTER_OFFSET);
1831 			ret |= DRM_SCANOUTPOS_VALID;
1832 		}
1833 		if (pipe == 1) {
1834 			vbl = RREG32(EVERGREEN_CRTC_V_BLANK_START_END +
1835 				     EVERGREEN_CRTC1_REGISTER_OFFSET);
1836 			position = RREG32(EVERGREEN_CRTC_STATUS_POSITION +
1837 					  EVERGREEN_CRTC1_REGISTER_OFFSET);
1838 			ret |= DRM_SCANOUTPOS_VALID;
1839 		}
1840 		if (pipe == 2) {
1841 			vbl = RREG32(EVERGREEN_CRTC_V_BLANK_START_END +
1842 				     EVERGREEN_CRTC2_REGISTER_OFFSET);
1843 			position = RREG32(EVERGREEN_CRTC_STATUS_POSITION +
1844 					  EVERGREEN_CRTC2_REGISTER_OFFSET);
1845 			ret |= DRM_SCANOUTPOS_VALID;
1846 		}
1847 		if (pipe == 3) {
1848 			vbl = RREG32(EVERGREEN_CRTC_V_BLANK_START_END +
1849 				     EVERGREEN_CRTC3_REGISTER_OFFSET);
1850 			position = RREG32(EVERGREEN_CRTC_STATUS_POSITION +
1851 					  EVERGREEN_CRTC3_REGISTER_OFFSET);
1852 			ret |= DRM_SCANOUTPOS_VALID;
1853 		}
1854 		if (pipe == 4) {
1855 			vbl = RREG32(EVERGREEN_CRTC_V_BLANK_START_END +
1856 				     EVERGREEN_CRTC4_REGISTER_OFFSET);
1857 			position = RREG32(EVERGREEN_CRTC_STATUS_POSITION +
1858 					  EVERGREEN_CRTC4_REGISTER_OFFSET);
1859 			ret |= DRM_SCANOUTPOS_VALID;
1860 		}
1861 		if (pipe == 5) {
1862 			vbl = RREG32(EVERGREEN_CRTC_V_BLANK_START_END +
1863 				     EVERGREEN_CRTC5_REGISTER_OFFSET);
1864 			position = RREG32(EVERGREEN_CRTC_STATUS_POSITION +
1865 					  EVERGREEN_CRTC5_REGISTER_OFFSET);
1866 			ret |= DRM_SCANOUTPOS_VALID;
1867 		}
1868 	} else if (ASIC_IS_AVIVO(rdev)) {
1869 		if (pipe == 0) {
1870 			vbl = RREG32(AVIVO_D1CRTC_V_BLANK_START_END);
1871 			position = RREG32(AVIVO_D1CRTC_STATUS_POSITION);
1872 			ret |= DRM_SCANOUTPOS_VALID;
1873 		}
1874 		if (pipe == 1) {
1875 			vbl = RREG32(AVIVO_D2CRTC_V_BLANK_START_END);
1876 			position = RREG32(AVIVO_D2CRTC_STATUS_POSITION);
1877 			ret |= DRM_SCANOUTPOS_VALID;
1878 		}
1879 	} else {
1880 		/* Pre-AVIVO: Different encoding of scanout pos and vblank interval. */
1881 		if (pipe == 0) {
1882 			/* Assume vbl_end == 0, get vbl_start from
1883 			 * upper 16 bits.
1884 			 */
1885 			vbl = (RREG32(RADEON_CRTC_V_TOTAL_DISP) &
1886 				RADEON_CRTC_V_DISP) >> RADEON_CRTC_V_DISP_SHIFT;
1887 			/* Only retrieve vpos from upper 16 bits, set hpos == 0. */
1888 			position = (RREG32(RADEON_CRTC_VLINE_CRNT_VLINE) >> 16) & RADEON_CRTC_V_TOTAL;
1889 			stat_crtc = RREG32(RADEON_CRTC_STATUS);
1890 			if (!(stat_crtc & 1))
1891 				in_vbl = false;
1892 
1893 			ret |= DRM_SCANOUTPOS_VALID;
1894 		}
1895 		if (pipe == 1) {
1896 			vbl = (RREG32(RADEON_CRTC2_V_TOTAL_DISP) &
1897 				RADEON_CRTC_V_DISP) >> RADEON_CRTC_V_DISP_SHIFT;
1898 			position = (RREG32(RADEON_CRTC2_VLINE_CRNT_VLINE) >> 16) & RADEON_CRTC_V_TOTAL;
1899 			stat_crtc = RREG32(RADEON_CRTC2_STATUS);
1900 			if (!(stat_crtc & 1))
1901 				in_vbl = false;
1902 
1903 			ret |= DRM_SCANOUTPOS_VALID;
1904 		}
1905 	}
1906 
1907 	/* Get optional system timestamp after query. */
1908 	if (etime)
1909 		*etime = ktime_get();
1910 
1911 	/* preempt_enable_rt() should go right here in PREEMPT_RT patchset. */
1912 
1913 	/* Decode into vertical and horizontal scanout position. */
1914 	*vpos = position & 0x1fff;
1915 	*hpos = (position >> 16) & 0x1fff;
1916 
1917 	/* Valid vblank area boundaries from gpu retrieved? */
1918 	if (vbl > 0) {
1919 		/* Yes: Decode. */
1920 		ret |= DRM_SCANOUTPOS_ACCURATE;
1921 		vbl_start = vbl & 0x1fff;
1922 		vbl_end = (vbl >> 16) & 0x1fff;
1923 	}
1924 	else {
1925 		/* No: Fake something reasonable which gives at least ok results. */
1926 		vbl_start = mode->crtc_vdisplay;
1927 		vbl_end = 0;
1928 	}
1929 
1930 	/* Called from driver internal vblank counter query code? */
1931 	if (flags & GET_DISTANCE_TO_VBLANKSTART) {
1932 	    /* Caller wants distance from real vbl_start in *hpos */
1933 	    *hpos = *vpos - vbl_start;
1934 	}
1935 
1936 	/* Fudge vblank to start a few scanlines earlier to handle the
1937 	 * problem that vblank irqs fire a few scanlines before start
1938 	 * of vblank. Some driver internal callers need the true vblank
1939 	 * start to be used and signal this via the USE_REAL_VBLANKSTART flag.
1940 	 *
1941 	 * The cause of the "early" vblank irq is that the irq is triggered
1942 	 * by the line buffer logic when the line buffer read position enters
1943 	 * the vblank, whereas our crtc scanout position naturally lags the
1944 	 * line buffer read position.
1945 	 */
1946 	if (!(flags & USE_REAL_VBLANKSTART))
1947 		vbl_start -= rdev->mode_info.crtcs[pipe]->lb_vblank_lead_lines;
1948 
1949 	/* Test scanout position against vblank region. */
1950 	if ((*vpos < vbl_start) && (*vpos >= vbl_end))
1951 		in_vbl = false;
1952 
1953 	/* In vblank? */
1954 	if (in_vbl)
1955 	    ret |= DRM_SCANOUTPOS_IN_VBLANK;
1956 
1957 	/* Called from driver internal vblank counter query code? */
1958 	if (flags & GET_DISTANCE_TO_VBLANKSTART) {
1959 		/* Caller wants distance from fudged earlier vbl_start */
1960 		*vpos -= vbl_start;
1961 		return ret;
1962 	}
1963 
1964 	/* Check if inside vblank area and apply corrective offsets:
1965 	 * vpos will then be >=0 in video scanout area, but negative
1966 	 * within vblank area, counting down the number of lines until
1967 	 * start of scanout.
1968 	 */
1969 
1970 	/* Inside "upper part" of vblank area? Apply corrective offset if so: */
1971 	if (in_vbl && (*vpos >= vbl_start)) {
1972 		vtotal = mode->crtc_vtotal;
1973 		*vpos = *vpos - vtotal;
1974 	}
1975 
1976 	/* Correct for shifted end of vbl at vbl_end. */
1977 	*vpos = *vpos - vbl_end;
1978 
1979 	return ret;
1980 }
1981