• Home
  • Line#
  • Scopes#
  • Navigate#
  • Raw
  • Download
1 /**************************************************************************
2  *
3  * Copyright © 2009-2015 VMware, Inc., Palo Alto, CA., USA
4  * All Rights Reserved.
5  *
6  * Permission is hereby granted, free of charge, to any person obtaining a
7  * copy of this software and associated documentation files (the
8  * "Software"), to deal in the Software without restriction, including
9  * without limitation the rights to use, copy, modify, merge, publish,
10  * distribute, sub license, and/or sell copies of the Software, and to
11  * permit persons to whom the Software is furnished to do so, subject to
12  * the following conditions:
13  *
14  * The above copyright notice and this permission notice (including the
15  * next paragraph) shall be included in all copies or substantial portions
16  * of the Software.
17  *
18  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
19  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
20  * FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT. IN NO EVENT SHALL
21  * THE COPYRIGHT HOLDERS, AUTHORS AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM,
22  * DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR
23  * OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE
24  * USE OR OTHER DEALINGS IN THE SOFTWARE.
25  *
26  **************************************************************************/
27 
28 #include "vmwgfx_kms.h"
29 
30 /* Might need a hrtimer here? */
31 #define VMWGFX_PRESENT_RATE ((HZ / 60 > 0) ? HZ / 60 : 1)
32 
vmw_du_cleanup(struct vmw_display_unit * du)33 void vmw_du_cleanup(struct vmw_display_unit *du)
34 {
35 	if (du->cursor_surface)
36 		vmw_surface_unreference(&du->cursor_surface);
37 	if (du->cursor_dmabuf)
38 		vmw_dmabuf_unreference(&du->cursor_dmabuf);
39 	drm_connector_unregister(&du->connector);
40 	drm_crtc_cleanup(&du->crtc);
41 	drm_encoder_cleanup(&du->encoder);
42 	drm_connector_cleanup(&du->connector);
43 }
44 
45 /*
46  * Display Unit Cursor functions
47  */
48 
vmw_cursor_update_image(struct vmw_private * dev_priv,u32 * image,u32 width,u32 height,u32 hotspotX,u32 hotspotY)49 int vmw_cursor_update_image(struct vmw_private *dev_priv,
50 			    u32 *image, u32 width, u32 height,
51 			    u32 hotspotX, u32 hotspotY)
52 {
53 	struct {
54 		u32 cmd;
55 		SVGAFifoCmdDefineAlphaCursor cursor;
56 	} *cmd;
57 	u32 image_size = width * height * 4;
58 	u32 cmd_size = sizeof(*cmd) + image_size;
59 
60 	if (!image)
61 		return -EINVAL;
62 
63 	cmd = vmw_fifo_reserve(dev_priv, cmd_size);
64 	if (unlikely(cmd == NULL)) {
65 		DRM_ERROR("Fifo reserve failed.\n");
66 		return -ENOMEM;
67 	}
68 
69 	memset(cmd, 0, sizeof(*cmd));
70 
71 	memcpy(&cmd[1], image, image_size);
72 
73 	cmd->cmd = SVGA_CMD_DEFINE_ALPHA_CURSOR;
74 	cmd->cursor.id = 0;
75 	cmd->cursor.width = width;
76 	cmd->cursor.height = height;
77 	cmd->cursor.hotspotX = hotspotX;
78 	cmd->cursor.hotspotY = hotspotY;
79 
80 	vmw_fifo_commit_flush(dev_priv, cmd_size);
81 
82 	return 0;
83 }
84 
vmw_cursor_update_dmabuf(struct vmw_private * dev_priv,struct vmw_dma_buffer * dmabuf,u32 width,u32 height,u32 hotspotX,u32 hotspotY)85 int vmw_cursor_update_dmabuf(struct vmw_private *dev_priv,
86 			     struct vmw_dma_buffer *dmabuf,
87 			     u32 width, u32 height,
88 			     u32 hotspotX, u32 hotspotY)
89 {
90 	struct ttm_bo_kmap_obj map;
91 	unsigned long kmap_offset;
92 	unsigned long kmap_num;
93 	void *virtual;
94 	bool dummy;
95 	int ret;
96 
97 	kmap_offset = 0;
98 	kmap_num = (width*height*4 + PAGE_SIZE - 1) >> PAGE_SHIFT;
99 
100 	ret = ttm_bo_reserve(&dmabuf->base, true, false, false, NULL);
101 	if (unlikely(ret != 0)) {
102 		DRM_ERROR("reserve failed\n");
103 		return -EINVAL;
104 	}
105 
106 	ret = ttm_bo_kmap(&dmabuf->base, kmap_offset, kmap_num, &map);
107 	if (unlikely(ret != 0))
108 		goto err_unreserve;
109 
110 	virtual = ttm_kmap_obj_virtual(&map, &dummy);
111 	ret = vmw_cursor_update_image(dev_priv, virtual, width, height,
112 				      hotspotX, hotspotY);
113 
114 	ttm_bo_kunmap(&map);
115 err_unreserve:
116 	ttm_bo_unreserve(&dmabuf->base);
117 
118 	return ret;
119 }
120 
121 
vmw_cursor_update_position(struct vmw_private * dev_priv,bool show,int x,int y)122 void vmw_cursor_update_position(struct vmw_private *dev_priv,
123 				bool show, int x, int y)
124 {
125 	u32 *fifo_mem = dev_priv->mmio_virt;
126 	uint32_t count;
127 
128 	vmw_mmio_write(show ? 1 : 0, fifo_mem + SVGA_FIFO_CURSOR_ON);
129 	vmw_mmio_write(x, fifo_mem + SVGA_FIFO_CURSOR_X);
130 	vmw_mmio_write(y, fifo_mem + SVGA_FIFO_CURSOR_Y);
131 	count = vmw_mmio_read(fifo_mem + SVGA_FIFO_CURSOR_COUNT);
132 	vmw_mmio_write(++count, fifo_mem + SVGA_FIFO_CURSOR_COUNT);
133 }
134 
135 
136 /*
137  * vmw_du_crtc_cursor_set2 - Driver cursor_set2 callback.
138  */
vmw_du_crtc_cursor_set2(struct drm_crtc * crtc,struct drm_file * file_priv,uint32_t handle,uint32_t width,uint32_t height,int32_t hot_x,int32_t hot_y)139 int vmw_du_crtc_cursor_set2(struct drm_crtc *crtc, struct drm_file *file_priv,
140 			    uint32_t handle, uint32_t width, uint32_t height,
141 			    int32_t hot_x, int32_t hot_y)
142 {
143 	struct vmw_private *dev_priv = vmw_priv(crtc->dev);
144 	struct vmw_display_unit *du = vmw_crtc_to_du(crtc);
145 	struct vmw_surface *surface = NULL;
146 	struct vmw_dma_buffer *dmabuf = NULL;
147 	s32 hotspot_x, hotspot_y;
148 	int ret;
149 
150 	/*
151 	 * FIXME: Unclear whether there's any global state touched by the
152 	 * cursor_set function, especially vmw_cursor_update_position looks
153 	 * suspicious. For now take the easy route and reacquire all locks. We
154 	 * can do this since the caller in the drm core doesn't check anything
155 	 * which is protected by any looks.
156 	 */
157 	drm_modeset_unlock_crtc(crtc);
158 	drm_modeset_lock_all(dev_priv->dev);
159 	hotspot_x = hot_x + du->hotspot_x;
160 	hotspot_y = hot_y + du->hotspot_y;
161 
162 	/* A lot of the code assumes this */
163 	if (handle && (width != 64 || height != 64)) {
164 		ret = -EINVAL;
165 		goto out;
166 	}
167 
168 	if (handle) {
169 		struct ttm_object_file *tfile = vmw_fpriv(file_priv)->tfile;
170 
171 		ret = vmw_user_lookup_handle(dev_priv, tfile,
172 					     handle, &surface, &dmabuf);
173 		if (ret) {
174 			DRM_ERROR("failed to find surface or dmabuf: %i\n", ret);
175 			ret = -EINVAL;
176 			goto out;
177 		}
178 	}
179 
180 	/* need to do this before taking down old image */
181 	if (surface && !surface->snooper.image) {
182 		DRM_ERROR("surface not suitable for cursor\n");
183 		vmw_surface_unreference(&surface);
184 		ret = -EINVAL;
185 		goto out;
186 	}
187 
188 	/* takedown old cursor */
189 	if (du->cursor_surface) {
190 		du->cursor_surface->snooper.crtc = NULL;
191 		vmw_surface_unreference(&du->cursor_surface);
192 	}
193 	if (du->cursor_dmabuf)
194 		vmw_dmabuf_unreference(&du->cursor_dmabuf);
195 
196 	/* setup new image */
197 	ret = 0;
198 	if (surface) {
199 		/* vmw_user_surface_lookup takes one reference */
200 		du->cursor_surface = surface;
201 
202 		du->cursor_surface->snooper.crtc = crtc;
203 		du->cursor_age = du->cursor_surface->snooper.age;
204 		ret = vmw_cursor_update_image(dev_priv, surface->snooper.image,
205 					      64, 64, hotspot_x, hotspot_y);
206 	} else if (dmabuf) {
207 		/* vmw_user_surface_lookup takes one reference */
208 		du->cursor_dmabuf = dmabuf;
209 
210 		ret = vmw_cursor_update_dmabuf(dev_priv, dmabuf, width, height,
211 					       hotspot_x, hotspot_y);
212 	} else {
213 		vmw_cursor_update_position(dev_priv, false, 0, 0);
214 		goto out;
215 	}
216 
217 	if (!ret) {
218 		vmw_cursor_update_position(dev_priv, true,
219 					   du->cursor_x + hotspot_x,
220 					   du->cursor_y + hotspot_y);
221 		du->core_hotspot_x = hot_x;
222 		du->core_hotspot_y = hot_y;
223 	}
224 
225 out:
226 	drm_modeset_unlock_all(dev_priv->dev);
227 	drm_modeset_lock_crtc(crtc, crtc->cursor);
228 
229 	return ret;
230 }
231 
vmw_du_crtc_cursor_move(struct drm_crtc * crtc,int x,int y)232 int vmw_du_crtc_cursor_move(struct drm_crtc *crtc, int x, int y)
233 {
234 	struct vmw_private *dev_priv = vmw_priv(crtc->dev);
235 	struct vmw_display_unit *du = vmw_crtc_to_du(crtc);
236 	bool shown = du->cursor_surface || du->cursor_dmabuf ? true : false;
237 
238 	du->cursor_x = x + crtc->x;
239 	du->cursor_y = y + crtc->y;
240 
241 	/*
242 	 * FIXME: Unclear whether there's any global state touched by the
243 	 * cursor_set function, especially vmw_cursor_update_position looks
244 	 * suspicious. For now take the easy route and reacquire all locks. We
245 	 * can do this since the caller in the drm core doesn't check anything
246 	 * which is protected by any looks.
247 	 */
248 	drm_modeset_unlock_crtc(crtc);
249 	drm_modeset_lock_all(dev_priv->dev);
250 
251 	vmw_cursor_update_position(dev_priv, shown,
252 				   du->cursor_x + du->hotspot_x +
253 				   du->core_hotspot_x,
254 				   du->cursor_y + du->hotspot_y +
255 				   du->core_hotspot_y);
256 
257 	drm_modeset_unlock_all(dev_priv->dev);
258 	drm_modeset_lock_crtc(crtc, crtc->cursor);
259 
260 	return 0;
261 }
262 
vmw_kms_cursor_snoop(struct vmw_surface * srf,struct ttm_object_file * tfile,struct ttm_buffer_object * bo,SVGA3dCmdHeader * header)263 void vmw_kms_cursor_snoop(struct vmw_surface *srf,
264 			  struct ttm_object_file *tfile,
265 			  struct ttm_buffer_object *bo,
266 			  SVGA3dCmdHeader *header)
267 {
268 	struct ttm_bo_kmap_obj map;
269 	unsigned long kmap_offset;
270 	unsigned long kmap_num;
271 	SVGA3dCopyBox *box;
272 	unsigned box_count;
273 	void *virtual;
274 	bool dummy;
275 	struct vmw_dma_cmd {
276 		SVGA3dCmdHeader header;
277 		SVGA3dCmdSurfaceDMA dma;
278 	} *cmd;
279 	int i, ret;
280 
281 	cmd = container_of(header, struct vmw_dma_cmd, header);
282 
283 	/* No snooper installed */
284 	if (!srf->snooper.image)
285 		return;
286 
287 	if (cmd->dma.host.face != 0 || cmd->dma.host.mipmap != 0) {
288 		DRM_ERROR("face and mipmap for cursors should never != 0\n");
289 		return;
290 	}
291 
292 	if (cmd->header.size < 64) {
293 		DRM_ERROR("at least one full copy box must be given\n");
294 		return;
295 	}
296 
297 	box = (SVGA3dCopyBox *)&cmd[1];
298 	box_count = (cmd->header.size - sizeof(SVGA3dCmdSurfaceDMA)) /
299 			sizeof(SVGA3dCopyBox);
300 
301 	if (cmd->dma.guest.ptr.offset % PAGE_SIZE ||
302 	    box->x != 0    || box->y != 0    || box->z != 0    ||
303 	    box->srcx != 0 || box->srcy != 0 || box->srcz != 0 ||
304 	    box->d != 1    || box_count != 1) {
305 		/* TODO handle none page aligned offsets */
306 		/* TODO handle more dst & src != 0 */
307 		/* TODO handle more then one copy */
308 		DRM_ERROR("Cant snoop dma request for cursor!\n");
309 		DRM_ERROR("(%u, %u, %u) (%u, %u, %u) (%ux%ux%u) %u %u\n",
310 			  box->srcx, box->srcy, box->srcz,
311 			  box->x, box->y, box->z,
312 			  box->w, box->h, box->d, box_count,
313 			  cmd->dma.guest.ptr.offset);
314 		return;
315 	}
316 
317 	kmap_offset = cmd->dma.guest.ptr.offset >> PAGE_SHIFT;
318 	kmap_num = (64*64*4) >> PAGE_SHIFT;
319 
320 	ret = ttm_bo_reserve(bo, true, false, false, NULL);
321 	if (unlikely(ret != 0)) {
322 		DRM_ERROR("reserve failed\n");
323 		return;
324 	}
325 
326 	ret = ttm_bo_kmap(bo, kmap_offset, kmap_num, &map);
327 	if (unlikely(ret != 0))
328 		goto err_unreserve;
329 
330 	virtual = ttm_kmap_obj_virtual(&map, &dummy);
331 
332 	if (box->w == 64 && cmd->dma.guest.pitch == 64*4) {
333 		memcpy(srf->snooper.image, virtual, 64*64*4);
334 	} else {
335 		/* Image is unsigned pointer. */
336 		for (i = 0; i < box->h; i++)
337 			memcpy(srf->snooper.image + i * 64,
338 			       virtual + i * cmd->dma.guest.pitch,
339 			       box->w * 4);
340 	}
341 
342 	srf->snooper.age++;
343 
344 	ttm_bo_kunmap(&map);
345 err_unreserve:
346 	ttm_bo_unreserve(bo);
347 }
348 
349 /**
350  * vmw_kms_legacy_hotspot_clear - Clear legacy hotspots
351  *
352  * @dev_priv: Pointer to the device private struct.
353  *
354  * Clears all legacy hotspots.
355  */
vmw_kms_legacy_hotspot_clear(struct vmw_private * dev_priv)356 void vmw_kms_legacy_hotspot_clear(struct vmw_private *dev_priv)
357 {
358 	struct drm_device *dev = dev_priv->dev;
359 	struct vmw_display_unit *du;
360 	struct drm_crtc *crtc;
361 
362 	drm_modeset_lock_all(dev);
363 	drm_for_each_crtc(crtc, dev) {
364 		du = vmw_crtc_to_du(crtc);
365 
366 		du->hotspot_x = 0;
367 		du->hotspot_y = 0;
368 	}
369 	drm_modeset_unlock_all(dev);
370 }
371 
vmw_kms_cursor_post_execbuf(struct vmw_private * dev_priv)372 void vmw_kms_cursor_post_execbuf(struct vmw_private *dev_priv)
373 {
374 	struct drm_device *dev = dev_priv->dev;
375 	struct vmw_display_unit *du;
376 	struct drm_crtc *crtc;
377 
378 	mutex_lock(&dev->mode_config.mutex);
379 
380 	list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) {
381 		du = vmw_crtc_to_du(crtc);
382 		if (!du->cursor_surface ||
383 		    du->cursor_age == du->cursor_surface->snooper.age)
384 			continue;
385 
386 		du->cursor_age = du->cursor_surface->snooper.age;
387 		vmw_cursor_update_image(dev_priv,
388 					du->cursor_surface->snooper.image,
389 					64, 64,
390 					du->hotspot_x + du->core_hotspot_x,
391 					du->hotspot_y + du->core_hotspot_y);
392 	}
393 
394 	mutex_unlock(&dev->mode_config.mutex);
395 }
396 
397 /*
398  * Generic framebuffer code
399  */
400 
401 /*
402  * Surface framebuffer code
403  */
404 
vmw_framebuffer_surface_destroy(struct drm_framebuffer * framebuffer)405 static void vmw_framebuffer_surface_destroy(struct drm_framebuffer *framebuffer)
406 {
407 	struct vmw_framebuffer_surface *vfbs =
408 		vmw_framebuffer_to_vfbs(framebuffer);
409 
410 	drm_framebuffer_cleanup(framebuffer);
411 	vmw_surface_unreference(&vfbs->surface);
412 	if (vfbs->base.user_obj)
413 		ttm_base_object_unref(&vfbs->base.user_obj);
414 
415 	kfree(vfbs);
416 }
417 
vmw_framebuffer_surface_dirty(struct drm_framebuffer * framebuffer,struct drm_file * file_priv,unsigned flags,unsigned color,struct drm_clip_rect * clips,unsigned num_clips)418 static int vmw_framebuffer_surface_dirty(struct drm_framebuffer *framebuffer,
419 				  struct drm_file *file_priv,
420 				  unsigned flags, unsigned color,
421 				  struct drm_clip_rect *clips,
422 				  unsigned num_clips)
423 {
424 	struct vmw_private *dev_priv = vmw_priv(framebuffer->dev);
425 	struct vmw_framebuffer_surface *vfbs =
426 		vmw_framebuffer_to_vfbs(framebuffer);
427 	struct drm_clip_rect norect;
428 	int ret, inc = 1;
429 
430 	/* Legacy Display Unit does not support 3D */
431 	if (dev_priv->active_display_unit == vmw_du_legacy)
432 		return -EINVAL;
433 
434 	drm_modeset_lock_all(dev_priv->dev);
435 
436 	ret = ttm_read_lock(&dev_priv->reservation_sem, true);
437 	if (unlikely(ret != 0)) {
438 		drm_modeset_unlock_all(dev_priv->dev);
439 		return ret;
440 	}
441 
442 	if (!num_clips) {
443 		num_clips = 1;
444 		clips = &norect;
445 		norect.x1 = norect.y1 = 0;
446 		norect.x2 = framebuffer->width;
447 		norect.y2 = framebuffer->height;
448 	} else if (flags & DRM_MODE_FB_DIRTY_ANNOTATE_COPY) {
449 		num_clips /= 2;
450 		inc = 2; /* skip source rects */
451 	}
452 
453 	if (dev_priv->active_display_unit == vmw_du_screen_object)
454 		ret = vmw_kms_sou_do_surface_dirty(dev_priv, &vfbs->base,
455 						   clips, NULL, NULL, 0, 0,
456 						   num_clips, inc, NULL);
457 	else
458 		ret = vmw_kms_stdu_surface_dirty(dev_priv, &vfbs->base,
459 						 clips, NULL, NULL, 0, 0,
460 						 num_clips, inc, NULL);
461 
462 	vmw_fifo_flush(dev_priv, false);
463 	ttm_read_unlock(&dev_priv->reservation_sem);
464 
465 	drm_modeset_unlock_all(dev_priv->dev);
466 
467 	return 0;
468 }
469 
470 /**
471  * vmw_kms_readback - Perform a readback from the screen system to
472  * a dma-buffer backed framebuffer.
473  *
474  * @dev_priv: Pointer to the device private structure.
475  * @file_priv: Pointer to a struct drm_file identifying the caller.
476  * Must be set to NULL if @user_fence_rep is NULL.
477  * @vfb: Pointer to the dma-buffer backed framebuffer.
478  * @user_fence_rep: User-space provided structure for fence information.
479  * Must be set to non-NULL if @file_priv is non-NULL.
480  * @vclips: Array of clip rects.
481  * @num_clips: Number of clip rects in @vclips.
482  *
483  * Returns 0 on success, negative error code on failure. -ERESTARTSYS if
484  * interrupted.
485  */
vmw_kms_readback(struct vmw_private * dev_priv,struct drm_file * file_priv,struct vmw_framebuffer * vfb,struct drm_vmw_fence_rep __user * user_fence_rep,struct drm_vmw_rect * vclips,uint32_t num_clips)486 int vmw_kms_readback(struct vmw_private *dev_priv,
487 		     struct drm_file *file_priv,
488 		     struct vmw_framebuffer *vfb,
489 		     struct drm_vmw_fence_rep __user *user_fence_rep,
490 		     struct drm_vmw_rect *vclips,
491 		     uint32_t num_clips)
492 {
493 	switch (dev_priv->active_display_unit) {
494 	case vmw_du_screen_object:
495 		return vmw_kms_sou_readback(dev_priv, file_priv, vfb,
496 					    user_fence_rep, vclips, num_clips);
497 	case vmw_du_screen_target:
498 		return vmw_kms_stdu_dma(dev_priv, file_priv, vfb,
499 					user_fence_rep, NULL, vclips, num_clips,
500 					1, false, true);
501 	default:
502 		WARN_ONCE(true,
503 			  "Readback called with invalid display system.\n");
504 }
505 
506 	return -ENOSYS;
507 }
508 
509 
510 static struct drm_framebuffer_funcs vmw_framebuffer_surface_funcs = {
511 	.destroy = vmw_framebuffer_surface_destroy,
512 	.dirty = vmw_framebuffer_surface_dirty,
513 };
514 
vmw_kms_new_framebuffer_surface(struct vmw_private * dev_priv,struct vmw_surface * surface,struct vmw_framebuffer ** out,const struct drm_mode_fb_cmd * mode_cmd,bool is_dmabuf_proxy)515 static int vmw_kms_new_framebuffer_surface(struct vmw_private *dev_priv,
516 					   struct vmw_surface *surface,
517 					   struct vmw_framebuffer **out,
518 					   const struct drm_mode_fb_cmd
519 					   *mode_cmd,
520 					   bool is_dmabuf_proxy)
521 
522 {
523 	struct drm_device *dev = dev_priv->dev;
524 	struct vmw_framebuffer_surface *vfbs;
525 	enum SVGA3dSurfaceFormat format;
526 	int ret;
527 
528 	/* 3D is only supported on HWv8 and newer hosts */
529 	if (dev_priv->active_display_unit == vmw_du_legacy)
530 		return -ENOSYS;
531 
532 	/*
533 	 * Sanity checks.
534 	 */
535 
536 	/* Surface must be marked as a scanout. */
537 	if (unlikely(!surface->scanout))
538 		return -EINVAL;
539 
540 	if (unlikely(surface->mip_levels[0] != 1 ||
541 		     surface->num_sizes != 1 ||
542 		     surface->base_size.width < mode_cmd->width ||
543 		     surface->base_size.height < mode_cmd->height ||
544 		     surface->base_size.depth != 1)) {
545 		DRM_ERROR("Incompatible surface dimensions "
546 			  "for requested mode.\n");
547 		return -EINVAL;
548 	}
549 
550 	switch (mode_cmd->depth) {
551 	case 32:
552 		format = SVGA3D_A8R8G8B8;
553 		break;
554 	case 24:
555 		format = SVGA3D_X8R8G8B8;
556 		break;
557 	case 16:
558 		format = SVGA3D_R5G6B5;
559 		break;
560 	case 15:
561 		format = SVGA3D_A1R5G5B5;
562 		break;
563 	default:
564 		DRM_ERROR("Invalid color depth: %d\n", mode_cmd->depth);
565 		return -EINVAL;
566 	}
567 
568 	/*
569 	 * For DX, surface format validation is done when surface->scanout
570 	 * is set.
571 	 */
572 	if (!dev_priv->has_dx && format != surface->format) {
573 		DRM_ERROR("Invalid surface format for requested mode.\n");
574 		return -EINVAL;
575 	}
576 
577 	vfbs = kzalloc(sizeof(*vfbs), GFP_KERNEL);
578 	if (!vfbs) {
579 		ret = -ENOMEM;
580 		goto out_err1;
581 	}
582 
583 	/* XXX get the first 3 from the surface info */
584 	vfbs->base.base.bits_per_pixel = mode_cmd->bpp;
585 	vfbs->base.base.pitches[0] = mode_cmd->pitch;
586 	vfbs->base.base.depth = mode_cmd->depth;
587 	vfbs->base.base.width = mode_cmd->width;
588 	vfbs->base.base.height = mode_cmd->height;
589 	vfbs->surface = vmw_surface_reference(surface);
590 	vfbs->base.user_handle = mode_cmd->handle;
591 	vfbs->is_dmabuf_proxy = is_dmabuf_proxy;
592 
593 	*out = &vfbs->base;
594 
595 	ret = drm_framebuffer_init(dev, &vfbs->base.base,
596 				   &vmw_framebuffer_surface_funcs);
597 	if (ret)
598 		goto out_err2;
599 
600 	return 0;
601 
602 out_err2:
603 	vmw_surface_unreference(&surface);
604 	kfree(vfbs);
605 out_err1:
606 	return ret;
607 }
608 
609 /*
610  * Dmabuf framebuffer code
611  */
612 
vmw_framebuffer_dmabuf_destroy(struct drm_framebuffer * framebuffer)613 static void vmw_framebuffer_dmabuf_destroy(struct drm_framebuffer *framebuffer)
614 {
615 	struct vmw_framebuffer_dmabuf *vfbd =
616 		vmw_framebuffer_to_vfbd(framebuffer);
617 
618 	drm_framebuffer_cleanup(framebuffer);
619 	vmw_dmabuf_unreference(&vfbd->buffer);
620 	if (vfbd->base.user_obj)
621 		ttm_base_object_unref(&vfbd->base.user_obj);
622 
623 	kfree(vfbd);
624 }
625 
vmw_framebuffer_dmabuf_dirty(struct drm_framebuffer * framebuffer,struct drm_file * file_priv,unsigned flags,unsigned color,struct drm_clip_rect * clips,unsigned num_clips)626 static int vmw_framebuffer_dmabuf_dirty(struct drm_framebuffer *framebuffer,
627 				 struct drm_file *file_priv,
628 				 unsigned flags, unsigned color,
629 				 struct drm_clip_rect *clips,
630 				 unsigned num_clips)
631 {
632 	struct vmw_private *dev_priv = vmw_priv(framebuffer->dev);
633 	struct vmw_framebuffer_dmabuf *vfbd =
634 		vmw_framebuffer_to_vfbd(framebuffer);
635 	struct drm_clip_rect norect;
636 	int ret, increment = 1;
637 
638 	drm_modeset_lock_all(dev_priv->dev);
639 
640 	ret = ttm_read_lock(&dev_priv->reservation_sem, true);
641 	if (unlikely(ret != 0)) {
642 		drm_modeset_unlock_all(dev_priv->dev);
643 		return ret;
644 	}
645 
646 	if (!num_clips) {
647 		num_clips = 1;
648 		clips = &norect;
649 		norect.x1 = norect.y1 = 0;
650 		norect.x2 = framebuffer->width;
651 		norect.y2 = framebuffer->height;
652 	} else if (flags & DRM_MODE_FB_DIRTY_ANNOTATE_COPY) {
653 		num_clips /= 2;
654 		increment = 2;
655 	}
656 
657 	switch (dev_priv->active_display_unit) {
658 	case vmw_du_screen_target:
659 		ret = vmw_kms_stdu_dma(dev_priv, NULL, &vfbd->base, NULL,
660 				       clips, NULL, num_clips, increment,
661 				       true, true);
662 		break;
663 	case vmw_du_screen_object:
664 		ret = vmw_kms_sou_do_dmabuf_dirty(dev_priv, &vfbd->base,
665 						  clips, num_clips, increment,
666 						  true,
667 						  NULL);
668 		break;
669 	case vmw_du_legacy:
670 		ret = vmw_kms_ldu_do_dmabuf_dirty(dev_priv, &vfbd->base, 0, 0,
671 						  clips, num_clips, increment);
672 		break;
673 	default:
674 		ret = -EINVAL;
675 		WARN_ONCE(true, "Dirty called with invalid display system.\n");
676 		break;
677 	}
678 
679 	vmw_fifo_flush(dev_priv, false);
680 	ttm_read_unlock(&dev_priv->reservation_sem);
681 
682 	drm_modeset_unlock_all(dev_priv->dev);
683 
684 	return ret;
685 }
686 
687 static struct drm_framebuffer_funcs vmw_framebuffer_dmabuf_funcs = {
688 	.destroy = vmw_framebuffer_dmabuf_destroy,
689 	.dirty = vmw_framebuffer_dmabuf_dirty,
690 };
691 
692 /**
693  * Pin the dmabuffer to the start of vram.
694  */
vmw_framebuffer_pin(struct vmw_framebuffer * vfb)695 static int vmw_framebuffer_pin(struct vmw_framebuffer *vfb)
696 {
697 	struct vmw_private *dev_priv = vmw_priv(vfb->base.dev);
698 	struct vmw_dma_buffer *buf;
699 	int ret;
700 
701 	buf = vfb->dmabuf ?  vmw_framebuffer_to_vfbd(&vfb->base)->buffer :
702 		vmw_framebuffer_to_vfbs(&vfb->base)->surface->res.backup;
703 
704 	if (!buf)
705 		return 0;
706 
707 	switch (dev_priv->active_display_unit) {
708 	case vmw_du_legacy:
709 		vmw_overlay_pause_all(dev_priv);
710 		ret = vmw_dmabuf_pin_in_start_of_vram(dev_priv, buf, false);
711 		vmw_overlay_resume_all(dev_priv);
712 		break;
713 	case vmw_du_screen_object:
714 	case vmw_du_screen_target:
715 		if (vfb->dmabuf)
716 			return vmw_dmabuf_pin_in_vram_or_gmr(dev_priv, buf,
717 							     false);
718 
719 		return vmw_dmabuf_pin_in_placement(dev_priv, buf,
720 						   &vmw_mob_placement, false);
721 	default:
722 		return -EINVAL;
723 	}
724 
725 	return ret;
726 }
727 
vmw_framebuffer_unpin(struct vmw_framebuffer * vfb)728 static int vmw_framebuffer_unpin(struct vmw_framebuffer *vfb)
729 {
730 	struct vmw_private *dev_priv = vmw_priv(vfb->base.dev);
731 	struct vmw_dma_buffer *buf;
732 
733 	buf = vfb->dmabuf ?  vmw_framebuffer_to_vfbd(&vfb->base)->buffer :
734 		vmw_framebuffer_to_vfbs(&vfb->base)->surface->res.backup;
735 
736 	if (WARN_ON(!buf))
737 		return 0;
738 
739 	return vmw_dmabuf_unpin(dev_priv, buf, false);
740 }
741 
742 /**
743  * vmw_create_dmabuf_proxy - create a proxy surface for the DMA buf
744  *
745  * @dev: DRM device
746  * @mode_cmd: parameters for the new surface
747  * @dmabuf_mob: MOB backing the DMA buf
748  * @srf_out: newly created surface
749  *
750  * When the content FB is a DMA buf, we create a surface as a proxy to the
751  * same buffer.  This way we can do a surface copy rather than a surface DMA.
752  * This is a more efficient approach
753  *
754  * RETURNS:
755  * 0 on success, error code otherwise
756  */
vmw_create_dmabuf_proxy(struct drm_device * dev,const struct drm_mode_fb_cmd * mode_cmd,struct vmw_dma_buffer * dmabuf_mob,struct vmw_surface ** srf_out)757 static int vmw_create_dmabuf_proxy(struct drm_device *dev,
758 				   const struct drm_mode_fb_cmd *mode_cmd,
759 				   struct vmw_dma_buffer *dmabuf_mob,
760 				   struct vmw_surface **srf_out)
761 {
762 	uint32_t format;
763 	struct drm_vmw_size content_base_size;
764 	struct vmw_resource *res;
765 	unsigned int bytes_pp;
766 	int ret;
767 
768 	switch (mode_cmd->depth) {
769 	case 32:
770 	case 24:
771 		format = SVGA3D_X8R8G8B8;
772 		bytes_pp = 4;
773 		break;
774 
775 	case 16:
776 	case 15:
777 		format = SVGA3D_R5G6B5;
778 		bytes_pp = 2;
779 		break;
780 
781 	case 8:
782 		format = SVGA3D_P8;
783 		bytes_pp = 1;
784 		break;
785 
786 	default:
787 		DRM_ERROR("Invalid framebuffer format %d\n", mode_cmd->depth);
788 		return -EINVAL;
789 	}
790 
791 	content_base_size.width  = mode_cmd->pitch / bytes_pp;
792 	content_base_size.height = mode_cmd->height;
793 	content_base_size.depth  = 1;
794 
795 	ret = vmw_surface_gb_priv_define(dev,
796 			0, /* kernel visible only */
797 			0, /* flags */
798 			format,
799 			true, /* can be a scanout buffer */
800 			1, /* num of mip levels */
801 			0,
802 			0,
803 			content_base_size,
804 			srf_out);
805 	if (ret) {
806 		DRM_ERROR("Failed to allocate proxy content buffer\n");
807 		return ret;
808 	}
809 
810 	res = &(*srf_out)->res;
811 
812 	/* Reserve and switch the backing mob. */
813 	mutex_lock(&res->dev_priv->cmdbuf_mutex);
814 	(void) vmw_resource_reserve(res, false, true);
815 	vmw_dmabuf_unreference(&res->backup);
816 	res->backup = vmw_dmabuf_reference(dmabuf_mob);
817 	res->backup_offset = 0;
818 	vmw_resource_unreserve(res, false, NULL, 0);
819 	mutex_unlock(&res->dev_priv->cmdbuf_mutex);
820 
821 	return 0;
822 }
823 
824 
825 
vmw_kms_new_framebuffer_dmabuf(struct vmw_private * dev_priv,struct vmw_dma_buffer * dmabuf,struct vmw_framebuffer ** out,const struct drm_mode_fb_cmd * mode_cmd)826 static int vmw_kms_new_framebuffer_dmabuf(struct vmw_private *dev_priv,
827 					  struct vmw_dma_buffer *dmabuf,
828 					  struct vmw_framebuffer **out,
829 					  const struct drm_mode_fb_cmd
830 					  *mode_cmd)
831 
832 {
833 	struct drm_device *dev = dev_priv->dev;
834 	struct vmw_framebuffer_dmabuf *vfbd;
835 	unsigned int requested_size;
836 	int ret;
837 
838 	requested_size = mode_cmd->height * mode_cmd->pitch;
839 	if (unlikely(requested_size > dmabuf->base.num_pages * PAGE_SIZE)) {
840 		DRM_ERROR("Screen buffer object size is too small "
841 			  "for requested mode.\n");
842 		return -EINVAL;
843 	}
844 
845 	/* Limited framebuffer color depth support for screen objects */
846 	if (dev_priv->active_display_unit == vmw_du_screen_object) {
847 		switch (mode_cmd->depth) {
848 		case 32:
849 		case 24:
850 			/* Only support 32 bpp for 32 and 24 depth fbs */
851 			if (mode_cmd->bpp == 32)
852 				break;
853 
854 			DRM_ERROR("Invalid color depth/bbp: %d %d\n",
855 				  mode_cmd->depth, mode_cmd->bpp);
856 			return -EINVAL;
857 		case 16:
858 		case 15:
859 			/* Only support 16 bpp for 16 and 15 depth fbs */
860 			if (mode_cmd->bpp == 16)
861 				break;
862 
863 			DRM_ERROR("Invalid color depth/bbp: %d %d\n",
864 				  mode_cmd->depth, mode_cmd->bpp);
865 			return -EINVAL;
866 		default:
867 			DRM_ERROR("Invalid color depth: %d\n", mode_cmd->depth);
868 			return -EINVAL;
869 		}
870 	}
871 
872 	vfbd = kzalloc(sizeof(*vfbd), GFP_KERNEL);
873 	if (!vfbd) {
874 		ret = -ENOMEM;
875 		goto out_err1;
876 	}
877 
878 	vfbd->base.base.bits_per_pixel = mode_cmd->bpp;
879 	vfbd->base.base.pitches[0] = mode_cmd->pitch;
880 	vfbd->base.base.depth = mode_cmd->depth;
881 	vfbd->base.base.width = mode_cmd->width;
882 	vfbd->base.base.height = mode_cmd->height;
883 	vfbd->base.dmabuf = true;
884 	vfbd->buffer = vmw_dmabuf_reference(dmabuf);
885 	vfbd->base.user_handle = mode_cmd->handle;
886 	*out = &vfbd->base;
887 
888 	ret = drm_framebuffer_init(dev, &vfbd->base.base,
889 				   &vmw_framebuffer_dmabuf_funcs);
890 	if (ret)
891 		goto out_err2;
892 
893 	return 0;
894 
895 out_err2:
896 	vmw_dmabuf_unreference(&dmabuf);
897 	kfree(vfbd);
898 out_err1:
899 	return ret;
900 }
901 
902 /**
903  * vmw_kms_new_framebuffer - Create a new framebuffer.
904  *
905  * @dev_priv: Pointer to device private struct.
906  * @dmabuf: Pointer to dma buffer to wrap the kms framebuffer around.
907  * Either @dmabuf or @surface must be NULL.
908  * @surface: Pointer to a surface to wrap the kms framebuffer around.
909  * Either @dmabuf or @surface must be NULL.
910  * @only_2d: No presents will occur to this dma buffer based framebuffer. This
911  * Helps the code to do some important optimizations.
912  * @mode_cmd: Frame-buffer metadata.
913  */
914 struct vmw_framebuffer *
vmw_kms_new_framebuffer(struct vmw_private * dev_priv,struct vmw_dma_buffer * dmabuf,struct vmw_surface * surface,bool only_2d,const struct drm_mode_fb_cmd * mode_cmd)915 vmw_kms_new_framebuffer(struct vmw_private *dev_priv,
916 			struct vmw_dma_buffer *dmabuf,
917 			struct vmw_surface *surface,
918 			bool only_2d,
919 			const struct drm_mode_fb_cmd *mode_cmd)
920 {
921 	struct vmw_framebuffer *vfb = NULL;
922 	bool is_dmabuf_proxy = false;
923 	int ret;
924 
925 	/*
926 	 * We cannot use the SurfaceDMA command in an non-accelerated VM,
927 	 * therefore, wrap the DMA buf in a surface so we can use the
928 	 * SurfaceCopy command.
929 	 */
930 	if (dmabuf && only_2d &&
931 	    dev_priv->active_display_unit == vmw_du_screen_target) {
932 		ret = vmw_create_dmabuf_proxy(dev_priv->dev, mode_cmd,
933 					      dmabuf, &surface);
934 		if (ret)
935 			return ERR_PTR(ret);
936 
937 		is_dmabuf_proxy = true;
938 	}
939 
940 	/* Create the new framebuffer depending one what we have */
941 	if (surface) {
942 		ret = vmw_kms_new_framebuffer_surface(dev_priv, surface, &vfb,
943 						      mode_cmd,
944 						      is_dmabuf_proxy);
945 
946 		/*
947 		 * vmw_create_dmabuf_proxy() adds a reference that is no longer
948 		 * needed
949 		 */
950 		if (is_dmabuf_proxy)
951 			vmw_surface_unreference(&surface);
952 	} else if (dmabuf) {
953 		ret = vmw_kms_new_framebuffer_dmabuf(dev_priv, dmabuf, &vfb,
954 						     mode_cmd);
955 	} else {
956 		BUG();
957 	}
958 
959 	if (ret)
960 		return ERR_PTR(ret);
961 
962 	vfb->pin = vmw_framebuffer_pin;
963 	vfb->unpin = vmw_framebuffer_unpin;
964 
965 	return vfb;
966 }
967 
968 /*
969  * Generic Kernel modesetting functions
970  */
971 
vmw_kms_fb_create(struct drm_device * dev,struct drm_file * file_priv,struct drm_mode_fb_cmd2 * mode_cmd2)972 static struct drm_framebuffer *vmw_kms_fb_create(struct drm_device *dev,
973 						 struct drm_file *file_priv,
974 						 struct drm_mode_fb_cmd2 *mode_cmd2)
975 {
976 	struct vmw_private *dev_priv = vmw_priv(dev);
977 	struct ttm_object_file *tfile = vmw_fpriv(file_priv)->tfile;
978 	struct vmw_framebuffer *vfb = NULL;
979 	struct vmw_surface *surface = NULL;
980 	struct vmw_dma_buffer *bo = NULL;
981 	struct ttm_base_object *user_obj;
982 	struct drm_mode_fb_cmd mode_cmd;
983 	int ret;
984 
985 	mode_cmd.width = mode_cmd2->width;
986 	mode_cmd.height = mode_cmd2->height;
987 	mode_cmd.pitch = mode_cmd2->pitches[0];
988 	mode_cmd.handle = mode_cmd2->handles[0];
989 	drm_fb_get_bpp_depth(mode_cmd2->pixel_format, &mode_cmd.depth,
990 				    &mode_cmd.bpp);
991 
992 	/**
993 	 * This code should be conditioned on Screen Objects not being used.
994 	 * If screen objects are used, we can allocate a GMR to hold the
995 	 * requested framebuffer.
996 	 */
997 
998 	if (!vmw_kms_validate_mode_vram(dev_priv,
999 					mode_cmd.pitch,
1000 					mode_cmd.height)) {
1001 		DRM_ERROR("Requested mode exceed bounding box limit.\n");
1002 		return ERR_PTR(-ENOMEM);
1003 	}
1004 
1005 	/*
1006 	 * Take a reference on the user object of the resource
1007 	 * backing the kms fb. This ensures that user-space handle
1008 	 * lookups on that resource will always work as long as
1009 	 * it's registered with a kms framebuffer. This is important,
1010 	 * since vmw_execbuf_process identifies resources in the
1011 	 * command stream using user-space handles.
1012 	 */
1013 
1014 	user_obj = ttm_base_object_lookup(tfile, mode_cmd.handle);
1015 	if (unlikely(user_obj == NULL)) {
1016 		DRM_ERROR("Could not locate requested kms frame buffer.\n");
1017 		return ERR_PTR(-ENOENT);
1018 	}
1019 
1020 	/**
1021 	 * End conditioned code.
1022 	 */
1023 
1024 	/* returns either a dmabuf or surface */
1025 	ret = vmw_user_lookup_handle(dev_priv, tfile,
1026 				     mode_cmd.handle,
1027 				     &surface, &bo);
1028 	if (ret)
1029 		goto err_out;
1030 
1031 	vfb = vmw_kms_new_framebuffer(dev_priv, bo, surface,
1032 				      !(dev_priv->capabilities & SVGA_CAP_3D),
1033 				      &mode_cmd);
1034 	if (IS_ERR(vfb)) {
1035 		ret = PTR_ERR(vfb);
1036 		goto err_out;
1037  	}
1038 
1039 err_out:
1040 	/* vmw_user_lookup_handle takes one ref so does new_fb */
1041 	if (bo)
1042 		vmw_dmabuf_unreference(&bo);
1043 	if (surface)
1044 		vmw_surface_unreference(&surface);
1045 
1046 	if (ret) {
1047 		DRM_ERROR("failed to create vmw_framebuffer: %i\n", ret);
1048 		ttm_base_object_unref(&user_obj);
1049 		return ERR_PTR(ret);
1050 	} else
1051 		vfb->user_obj = user_obj;
1052 
1053 	return &vfb->base;
1054 }
1055 
1056 static const struct drm_mode_config_funcs vmw_kms_funcs = {
1057 	.fb_create = vmw_kms_fb_create,
1058 };
1059 
vmw_kms_generic_present(struct vmw_private * dev_priv,struct drm_file * file_priv,struct vmw_framebuffer * vfb,struct vmw_surface * surface,uint32_t sid,int32_t destX,int32_t destY,struct drm_vmw_rect * clips,uint32_t num_clips)1060 static int vmw_kms_generic_present(struct vmw_private *dev_priv,
1061 				   struct drm_file *file_priv,
1062 				   struct vmw_framebuffer *vfb,
1063 				   struct vmw_surface *surface,
1064 				   uint32_t sid,
1065 				   int32_t destX, int32_t destY,
1066 				   struct drm_vmw_rect *clips,
1067 				   uint32_t num_clips)
1068 {
1069 	return vmw_kms_sou_do_surface_dirty(dev_priv, vfb, NULL, clips,
1070 					    &surface->res, destX, destY,
1071 					    num_clips, 1, NULL);
1072 }
1073 
1074 
vmw_kms_present(struct vmw_private * dev_priv,struct drm_file * file_priv,struct vmw_framebuffer * vfb,struct vmw_surface * surface,uint32_t sid,int32_t destX,int32_t destY,struct drm_vmw_rect * clips,uint32_t num_clips)1075 int vmw_kms_present(struct vmw_private *dev_priv,
1076 		    struct drm_file *file_priv,
1077 		    struct vmw_framebuffer *vfb,
1078 		    struct vmw_surface *surface,
1079 		    uint32_t sid,
1080 		    int32_t destX, int32_t destY,
1081 		    struct drm_vmw_rect *clips,
1082 		    uint32_t num_clips)
1083 {
1084 	int ret;
1085 
1086 	switch (dev_priv->active_display_unit) {
1087 	case vmw_du_screen_target:
1088 		ret = vmw_kms_stdu_surface_dirty(dev_priv, vfb, NULL, clips,
1089 						 &surface->res, destX, destY,
1090 						 num_clips, 1, NULL);
1091 		break;
1092 	case vmw_du_screen_object:
1093 		ret = vmw_kms_generic_present(dev_priv, file_priv, vfb, surface,
1094 					      sid, destX, destY, clips,
1095 					      num_clips);
1096 		break;
1097 	default:
1098 		WARN_ONCE(true,
1099 			  "Present called with invalid display system.\n");
1100 		ret = -ENOSYS;
1101 		break;
1102 	}
1103 	if (ret)
1104 		return ret;
1105 
1106 	vmw_fifo_flush(dev_priv, false);
1107 
1108 	return 0;
1109 }
1110 
vmw_kms_init(struct vmw_private * dev_priv)1111 int vmw_kms_init(struct vmw_private *dev_priv)
1112 {
1113 	struct drm_device *dev = dev_priv->dev;
1114 	int ret;
1115 
1116 	drm_mode_config_init(dev);
1117 	dev->mode_config.funcs = &vmw_kms_funcs;
1118 	dev->mode_config.min_width = 1;
1119 	dev->mode_config.min_height = 1;
1120 	dev->mode_config.max_width = dev_priv->texture_max_width;
1121 	dev->mode_config.max_height = dev_priv->texture_max_height;
1122 
1123 	ret = vmw_kms_stdu_init_display(dev_priv);
1124 	if (ret) {
1125 		ret = vmw_kms_sou_init_display(dev_priv);
1126 		if (ret) /* Fallback */
1127 			ret = vmw_kms_ldu_init_display(dev_priv);
1128 	}
1129 
1130 	return ret;
1131 }
1132 
vmw_kms_close(struct vmw_private * dev_priv)1133 int vmw_kms_close(struct vmw_private *dev_priv)
1134 {
1135 	int ret;
1136 
1137 	/*
1138 	 * Docs says we should take the lock before calling this function
1139 	 * but since it destroys encoders and our destructor calls
1140 	 * drm_encoder_cleanup which takes the lock we deadlock.
1141 	 */
1142 	drm_mode_config_cleanup(dev_priv->dev);
1143 	if (dev_priv->active_display_unit == vmw_du_screen_object)
1144 		ret = vmw_kms_sou_close_display(dev_priv);
1145 	else if (dev_priv->active_display_unit == vmw_du_screen_target)
1146 		ret = vmw_kms_stdu_close_display(dev_priv);
1147 	else
1148 		ret = vmw_kms_ldu_close_display(dev_priv);
1149 
1150 	return ret;
1151 }
1152 
vmw_kms_cursor_bypass_ioctl(struct drm_device * dev,void * data,struct drm_file * file_priv)1153 int vmw_kms_cursor_bypass_ioctl(struct drm_device *dev, void *data,
1154 				struct drm_file *file_priv)
1155 {
1156 	struct drm_vmw_cursor_bypass_arg *arg = data;
1157 	struct vmw_display_unit *du;
1158 	struct drm_crtc *crtc;
1159 	int ret = 0;
1160 
1161 
1162 	mutex_lock(&dev->mode_config.mutex);
1163 	if (arg->flags & DRM_VMW_CURSOR_BYPASS_ALL) {
1164 
1165 		list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) {
1166 			du = vmw_crtc_to_du(crtc);
1167 			du->hotspot_x = arg->xhot;
1168 			du->hotspot_y = arg->yhot;
1169 		}
1170 
1171 		mutex_unlock(&dev->mode_config.mutex);
1172 		return 0;
1173 	}
1174 
1175 	crtc = drm_crtc_find(dev, arg->crtc_id);
1176 	if (!crtc) {
1177 		ret = -ENOENT;
1178 		goto out;
1179 	}
1180 
1181 	du = vmw_crtc_to_du(crtc);
1182 
1183 	du->hotspot_x = arg->xhot;
1184 	du->hotspot_y = arg->yhot;
1185 
1186 out:
1187 	mutex_unlock(&dev->mode_config.mutex);
1188 
1189 	return ret;
1190 }
1191 
vmw_kms_write_svga(struct vmw_private * vmw_priv,unsigned width,unsigned height,unsigned pitch,unsigned bpp,unsigned depth)1192 int vmw_kms_write_svga(struct vmw_private *vmw_priv,
1193 			unsigned width, unsigned height, unsigned pitch,
1194 			unsigned bpp, unsigned depth)
1195 {
1196 	if (vmw_priv->capabilities & SVGA_CAP_PITCHLOCK)
1197 		vmw_write(vmw_priv, SVGA_REG_PITCHLOCK, pitch);
1198 	else if (vmw_fifo_have_pitchlock(vmw_priv))
1199 		vmw_mmio_write(pitch, vmw_priv->mmio_virt +
1200 			       SVGA_FIFO_PITCHLOCK);
1201 	vmw_write(vmw_priv, SVGA_REG_WIDTH, width);
1202 	vmw_write(vmw_priv, SVGA_REG_HEIGHT, height);
1203 	vmw_write(vmw_priv, SVGA_REG_BITS_PER_PIXEL, bpp);
1204 
1205 	if (vmw_read(vmw_priv, SVGA_REG_DEPTH) != depth) {
1206 		DRM_ERROR("Invalid depth %u for %u bpp, host expects %u\n",
1207 			  depth, bpp, vmw_read(vmw_priv, SVGA_REG_DEPTH));
1208 		return -EINVAL;
1209 	}
1210 
1211 	return 0;
1212 }
1213 
vmw_kms_save_vga(struct vmw_private * vmw_priv)1214 int vmw_kms_save_vga(struct vmw_private *vmw_priv)
1215 {
1216 	struct vmw_vga_topology_state *save;
1217 	uint32_t i;
1218 
1219 	vmw_priv->vga_width = vmw_read(vmw_priv, SVGA_REG_WIDTH);
1220 	vmw_priv->vga_height = vmw_read(vmw_priv, SVGA_REG_HEIGHT);
1221 	vmw_priv->vga_bpp = vmw_read(vmw_priv, SVGA_REG_BITS_PER_PIXEL);
1222 	if (vmw_priv->capabilities & SVGA_CAP_PITCHLOCK)
1223 		vmw_priv->vga_pitchlock =
1224 		  vmw_read(vmw_priv, SVGA_REG_PITCHLOCK);
1225 	else if (vmw_fifo_have_pitchlock(vmw_priv))
1226 		vmw_priv->vga_pitchlock = vmw_mmio_read(vmw_priv->mmio_virt +
1227 							SVGA_FIFO_PITCHLOCK);
1228 
1229 	if (!(vmw_priv->capabilities & SVGA_CAP_DISPLAY_TOPOLOGY))
1230 		return 0;
1231 
1232 	vmw_priv->num_displays = vmw_read(vmw_priv,
1233 					  SVGA_REG_NUM_GUEST_DISPLAYS);
1234 
1235 	if (vmw_priv->num_displays == 0)
1236 		vmw_priv->num_displays = 1;
1237 
1238 	for (i = 0; i < vmw_priv->num_displays; ++i) {
1239 		save = &vmw_priv->vga_save[i];
1240 		vmw_write(vmw_priv, SVGA_REG_DISPLAY_ID, i);
1241 		save->primary = vmw_read(vmw_priv, SVGA_REG_DISPLAY_IS_PRIMARY);
1242 		save->pos_x = vmw_read(vmw_priv, SVGA_REG_DISPLAY_POSITION_X);
1243 		save->pos_y = vmw_read(vmw_priv, SVGA_REG_DISPLAY_POSITION_Y);
1244 		save->width = vmw_read(vmw_priv, SVGA_REG_DISPLAY_WIDTH);
1245 		save->height = vmw_read(vmw_priv, SVGA_REG_DISPLAY_HEIGHT);
1246 		vmw_write(vmw_priv, SVGA_REG_DISPLAY_ID, SVGA_ID_INVALID);
1247 		if (i == 0 && vmw_priv->num_displays == 1 &&
1248 		    save->width == 0 && save->height == 0) {
1249 
1250 			/*
1251 			 * It should be fairly safe to assume that these
1252 			 * values are uninitialized.
1253 			 */
1254 
1255 			save->width = vmw_priv->vga_width - save->pos_x;
1256 			save->height = vmw_priv->vga_height - save->pos_y;
1257 		}
1258 	}
1259 
1260 	return 0;
1261 }
1262 
vmw_kms_restore_vga(struct vmw_private * vmw_priv)1263 int vmw_kms_restore_vga(struct vmw_private *vmw_priv)
1264 {
1265 	struct vmw_vga_topology_state *save;
1266 	uint32_t i;
1267 
1268 	vmw_write(vmw_priv, SVGA_REG_WIDTH, vmw_priv->vga_width);
1269 	vmw_write(vmw_priv, SVGA_REG_HEIGHT, vmw_priv->vga_height);
1270 	vmw_write(vmw_priv, SVGA_REG_BITS_PER_PIXEL, vmw_priv->vga_bpp);
1271 	if (vmw_priv->capabilities & SVGA_CAP_PITCHLOCK)
1272 		vmw_write(vmw_priv, SVGA_REG_PITCHLOCK,
1273 			  vmw_priv->vga_pitchlock);
1274 	else if (vmw_fifo_have_pitchlock(vmw_priv))
1275 		vmw_mmio_write(vmw_priv->vga_pitchlock,
1276 			       vmw_priv->mmio_virt + SVGA_FIFO_PITCHLOCK);
1277 
1278 	if (!(vmw_priv->capabilities & SVGA_CAP_DISPLAY_TOPOLOGY))
1279 		return 0;
1280 
1281 	for (i = 0; i < vmw_priv->num_displays; ++i) {
1282 		save = &vmw_priv->vga_save[i];
1283 		vmw_write(vmw_priv, SVGA_REG_DISPLAY_ID, i);
1284 		vmw_write(vmw_priv, SVGA_REG_DISPLAY_IS_PRIMARY, save->primary);
1285 		vmw_write(vmw_priv, SVGA_REG_DISPLAY_POSITION_X, save->pos_x);
1286 		vmw_write(vmw_priv, SVGA_REG_DISPLAY_POSITION_Y, save->pos_y);
1287 		vmw_write(vmw_priv, SVGA_REG_DISPLAY_WIDTH, save->width);
1288 		vmw_write(vmw_priv, SVGA_REG_DISPLAY_HEIGHT, save->height);
1289 		vmw_write(vmw_priv, SVGA_REG_DISPLAY_ID, SVGA_ID_INVALID);
1290 	}
1291 
1292 	return 0;
1293 }
1294 
vmw_kms_validate_mode_vram(struct vmw_private * dev_priv,uint32_t pitch,uint32_t height)1295 bool vmw_kms_validate_mode_vram(struct vmw_private *dev_priv,
1296 				uint32_t pitch,
1297 				uint32_t height)
1298 {
1299 	return ((u64) pitch * (u64) height) < (u64)
1300 		((dev_priv->active_display_unit == vmw_du_screen_target) ?
1301 		 dev_priv->prim_bb_mem : dev_priv->vram_size);
1302 }
1303 
1304 
1305 /**
1306  * Function called by DRM code called with vbl_lock held.
1307  */
vmw_get_vblank_counter(struct drm_device * dev,unsigned int pipe)1308 u32 vmw_get_vblank_counter(struct drm_device *dev, unsigned int pipe)
1309 {
1310 	return 0;
1311 }
1312 
1313 /**
1314  * Function called by DRM code called with vbl_lock held.
1315  */
vmw_enable_vblank(struct drm_device * dev,unsigned int pipe)1316 int vmw_enable_vblank(struct drm_device *dev, unsigned int pipe)
1317 {
1318 	return -ENOSYS;
1319 }
1320 
1321 /**
1322  * Function called by DRM code called with vbl_lock held.
1323  */
vmw_disable_vblank(struct drm_device * dev,unsigned int pipe)1324 void vmw_disable_vblank(struct drm_device *dev, unsigned int pipe)
1325 {
1326 }
1327 
1328 
1329 /*
1330  * Small shared kms functions.
1331  */
1332 
vmw_du_update_layout(struct vmw_private * dev_priv,unsigned num,struct drm_vmw_rect * rects)1333 static int vmw_du_update_layout(struct vmw_private *dev_priv, unsigned num,
1334 			 struct drm_vmw_rect *rects)
1335 {
1336 	struct drm_device *dev = dev_priv->dev;
1337 	struct vmw_display_unit *du;
1338 	struct drm_connector *con;
1339 
1340 	mutex_lock(&dev->mode_config.mutex);
1341 
1342 #if 0
1343 	{
1344 		unsigned int i;
1345 
1346 		DRM_INFO("%s: new layout ", __func__);
1347 		for (i = 0; i < num; i++)
1348 			DRM_INFO("(%i, %i %ux%u) ", rects[i].x, rects[i].y,
1349 				 rects[i].w, rects[i].h);
1350 		DRM_INFO("\n");
1351 	}
1352 #endif
1353 
1354 	list_for_each_entry(con, &dev->mode_config.connector_list, head) {
1355 		du = vmw_connector_to_du(con);
1356 		if (num > du->unit) {
1357 			du->pref_width = rects[du->unit].w;
1358 			du->pref_height = rects[du->unit].h;
1359 			du->pref_active = true;
1360 			du->gui_x = rects[du->unit].x;
1361 			du->gui_y = rects[du->unit].y;
1362 		} else {
1363 			du->pref_width = 800;
1364 			du->pref_height = 600;
1365 			du->pref_active = false;
1366 		}
1367 		con->status = vmw_du_connector_detect(con, true);
1368 	}
1369 
1370 	mutex_unlock(&dev->mode_config.mutex);
1371 
1372 	return 0;
1373 }
1374 
vmw_du_crtc_save(struct drm_crtc * crtc)1375 void vmw_du_crtc_save(struct drm_crtc *crtc)
1376 {
1377 }
1378 
vmw_du_crtc_restore(struct drm_crtc * crtc)1379 void vmw_du_crtc_restore(struct drm_crtc *crtc)
1380 {
1381 }
1382 
vmw_du_crtc_gamma_set(struct drm_crtc * crtc,u16 * r,u16 * g,u16 * b,uint32_t start,uint32_t size)1383 void vmw_du_crtc_gamma_set(struct drm_crtc *crtc,
1384 			   u16 *r, u16 *g, u16 *b,
1385 			   uint32_t start, uint32_t size)
1386 {
1387 	struct vmw_private *dev_priv = vmw_priv(crtc->dev);
1388 	int i;
1389 
1390 	for (i = 0; i < size; i++) {
1391 		DRM_DEBUG("%d r/g/b = 0x%04x / 0x%04x / 0x%04x\n", i,
1392 			  r[i], g[i], b[i]);
1393 		vmw_write(dev_priv, SVGA_PALETTE_BASE + i * 3 + 0, r[i] >> 8);
1394 		vmw_write(dev_priv, SVGA_PALETTE_BASE + i * 3 + 1, g[i] >> 8);
1395 		vmw_write(dev_priv, SVGA_PALETTE_BASE + i * 3 + 2, b[i] >> 8);
1396 	}
1397 }
1398 
vmw_du_connector_dpms(struct drm_connector * connector,int mode)1399 int vmw_du_connector_dpms(struct drm_connector *connector, int mode)
1400 {
1401 	return 0;
1402 }
1403 
vmw_du_connector_save(struct drm_connector * connector)1404 void vmw_du_connector_save(struct drm_connector *connector)
1405 {
1406 }
1407 
vmw_du_connector_restore(struct drm_connector * connector)1408 void vmw_du_connector_restore(struct drm_connector *connector)
1409 {
1410 }
1411 
1412 enum drm_connector_status
vmw_du_connector_detect(struct drm_connector * connector,bool force)1413 vmw_du_connector_detect(struct drm_connector *connector, bool force)
1414 {
1415 	uint32_t num_displays;
1416 	struct drm_device *dev = connector->dev;
1417 	struct vmw_private *dev_priv = vmw_priv(dev);
1418 	struct vmw_display_unit *du = vmw_connector_to_du(connector);
1419 
1420 	num_displays = vmw_read(dev_priv, SVGA_REG_NUM_DISPLAYS);
1421 
1422 	return ((vmw_connector_to_du(connector)->unit < num_displays &&
1423 		 du->pref_active) ?
1424 		connector_status_connected : connector_status_disconnected);
1425 }
1426 
1427 static struct drm_display_mode vmw_kms_connector_builtin[] = {
1428 	/* 640x480@60Hz */
1429 	{ DRM_MODE("640x480", DRM_MODE_TYPE_DRIVER, 25175, 640, 656,
1430 		   752, 800, 0, 480, 489, 492, 525, 0,
1431 		   DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_NVSYNC) },
1432 	/* 800x600@60Hz */
1433 	{ DRM_MODE("800x600", DRM_MODE_TYPE_DRIVER, 40000, 800, 840,
1434 		   968, 1056, 0, 600, 601, 605, 628, 0,
1435 		   DRM_MODE_FLAG_PHSYNC | DRM_MODE_FLAG_PVSYNC) },
1436 	/* 1024x768@60Hz */
1437 	{ DRM_MODE("1024x768", DRM_MODE_TYPE_DRIVER, 65000, 1024, 1048,
1438 		   1184, 1344, 0, 768, 771, 777, 806, 0,
1439 		   DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_NVSYNC) },
1440 	/* 1152x864@75Hz */
1441 	{ DRM_MODE("1152x864", DRM_MODE_TYPE_DRIVER, 108000, 1152, 1216,
1442 		   1344, 1600, 0, 864, 865, 868, 900, 0,
1443 		   DRM_MODE_FLAG_PHSYNC | DRM_MODE_FLAG_PVSYNC) },
1444 	/* 1280x768@60Hz */
1445 	{ DRM_MODE("1280x768", DRM_MODE_TYPE_DRIVER, 79500, 1280, 1344,
1446 		   1472, 1664, 0, 768, 771, 778, 798, 0,
1447 		   DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_PVSYNC) },
1448 	/* 1280x800@60Hz */
1449 	{ DRM_MODE("1280x800", DRM_MODE_TYPE_DRIVER, 83500, 1280, 1352,
1450 		   1480, 1680, 0, 800, 803, 809, 831, 0,
1451 		   DRM_MODE_FLAG_PHSYNC | DRM_MODE_FLAG_NVSYNC) },
1452 	/* 1280x960@60Hz */
1453 	{ DRM_MODE("1280x960", DRM_MODE_TYPE_DRIVER, 108000, 1280, 1376,
1454 		   1488, 1800, 0, 960, 961, 964, 1000, 0,
1455 		   DRM_MODE_FLAG_PHSYNC | DRM_MODE_FLAG_PVSYNC) },
1456 	/* 1280x1024@60Hz */
1457 	{ DRM_MODE("1280x1024", DRM_MODE_TYPE_DRIVER, 108000, 1280, 1328,
1458 		   1440, 1688, 0, 1024, 1025, 1028, 1066, 0,
1459 		   DRM_MODE_FLAG_PHSYNC | DRM_MODE_FLAG_PVSYNC) },
1460 	/* 1360x768@60Hz */
1461 	{ DRM_MODE("1360x768", DRM_MODE_TYPE_DRIVER, 85500, 1360, 1424,
1462 		   1536, 1792, 0, 768, 771, 777, 795, 0,
1463 		   DRM_MODE_FLAG_PHSYNC | DRM_MODE_FLAG_PVSYNC) },
1464 	/* 1440x1050@60Hz */
1465 	{ DRM_MODE("1400x1050", DRM_MODE_TYPE_DRIVER, 121750, 1400, 1488,
1466 		   1632, 1864, 0, 1050, 1053, 1057, 1089, 0,
1467 		   DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_PVSYNC) },
1468 	/* 1440x900@60Hz */
1469 	{ DRM_MODE("1440x900", DRM_MODE_TYPE_DRIVER, 106500, 1440, 1520,
1470 		   1672, 1904, 0, 900, 903, 909, 934, 0,
1471 		   DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_PVSYNC) },
1472 	/* 1600x1200@60Hz */
1473 	{ DRM_MODE("1600x1200", DRM_MODE_TYPE_DRIVER, 162000, 1600, 1664,
1474 		   1856, 2160, 0, 1200, 1201, 1204, 1250, 0,
1475 		   DRM_MODE_FLAG_PHSYNC | DRM_MODE_FLAG_PVSYNC) },
1476 	/* 1680x1050@60Hz */
1477 	{ DRM_MODE("1680x1050", DRM_MODE_TYPE_DRIVER, 146250, 1680, 1784,
1478 		   1960, 2240, 0, 1050, 1053, 1059, 1089, 0,
1479 		   DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_PVSYNC) },
1480 	/* 1792x1344@60Hz */
1481 	{ DRM_MODE("1792x1344", DRM_MODE_TYPE_DRIVER, 204750, 1792, 1920,
1482 		   2120, 2448, 0, 1344, 1345, 1348, 1394, 0,
1483 		   DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_PVSYNC) },
1484 	/* 1853x1392@60Hz */
1485 	{ DRM_MODE("1856x1392", DRM_MODE_TYPE_DRIVER, 218250, 1856, 1952,
1486 		   2176, 2528, 0, 1392, 1393, 1396, 1439, 0,
1487 		   DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_PVSYNC) },
1488 	/* 1920x1200@60Hz */
1489 	{ DRM_MODE("1920x1200", DRM_MODE_TYPE_DRIVER, 193250, 1920, 2056,
1490 		   2256, 2592, 0, 1200, 1203, 1209, 1245, 0,
1491 		   DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_PVSYNC) },
1492 	/* 1920x1440@60Hz */
1493 	{ DRM_MODE("1920x1440", DRM_MODE_TYPE_DRIVER, 234000, 1920, 2048,
1494 		   2256, 2600, 0, 1440, 1441, 1444, 1500, 0,
1495 		   DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_PVSYNC) },
1496 	/* 2560x1600@60Hz */
1497 	{ DRM_MODE("2560x1600", DRM_MODE_TYPE_DRIVER, 348500, 2560, 2752,
1498 		   3032, 3504, 0, 1600, 1603, 1609, 1658, 0,
1499 		   DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_PVSYNC) },
1500 	/* Terminate */
1501 	{ DRM_MODE("", 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0) },
1502 };
1503 
1504 /**
1505  * vmw_guess_mode_timing - Provide fake timings for a
1506  * 60Hz vrefresh mode.
1507  *
1508  * @mode - Pointer to a struct drm_display_mode with hdisplay and vdisplay
1509  * members filled in.
1510  */
vmw_guess_mode_timing(struct drm_display_mode * mode)1511 void vmw_guess_mode_timing(struct drm_display_mode *mode)
1512 {
1513 	mode->hsync_start = mode->hdisplay + 50;
1514 	mode->hsync_end = mode->hsync_start + 50;
1515 	mode->htotal = mode->hsync_end + 50;
1516 
1517 	mode->vsync_start = mode->vdisplay + 50;
1518 	mode->vsync_end = mode->vsync_start + 50;
1519 	mode->vtotal = mode->vsync_end + 50;
1520 
1521 	mode->clock = (u32)mode->htotal * (u32)mode->vtotal / 100 * 6;
1522 	mode->vrefresh = drm_mode_vrefresh(mode);
1523 }
1524 
1525 
vmw_du_connector_fill_modes(struct drm_connector * connector,uint32_t max_width,uint32_t max_height)1526 int vmw_du_connector_fill_modes(struct drm_connector *connector,
1527 				uint32_t max_width, uint32_t max_height)
1528 {
1529 	struct vmw_display_unit *du = vmw_connector_to_du(connector);
1530 	struct drm_device *dev = connector->dev;
1531 	struct vmw_private *dev_priv = vmw_priv(dev);
1532 	struct drm_display_mode *mode = NULL;
1533 	struct drm_display_mode *bmode;
1534 	struct drm_display_mode prefmode = { DRM_MODE("preferred",
1535 		DRM_MODE_TYPE_DRIVER | DRM_MODE_TYPE_PREFERRED,
1536 		0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
1537 		DRM_MODE_FLAG_NHSYNC | DRM_MODE_FLAG_PVSYNC)
1538 	};
1539 	int i;
1540 	u32 assumed_bpp = 4;
1541 
1542 	if (dev_priv->assume_16bpp)
1543 		assumed_bpp = 2;
1544 
1545 	if (dev_priv->active_display_unit == vmw_du_screen_target) {
1546 		max_width  = min(max_width,  dev_priv->stdu_max_width);
1547 		max_height = min(max_height, dev_priv->stdu_max_height);
1548 	}
1549 
1550 	/* Add preferred mode */
1551 	mode = drm_mode_duplicate(dev, &prefmode);
1552 	if (!mode)
1553 		return 0;
1554 	mode->hdisplay = du->pref_width;
1555 	mode->vdisplay = du->pref_height;
1556 	vmw_guess_mode_timing(mode);
1557 
1558 	if (vmw_kms_validate_mode_vram(dev_priv,
1559 					mode->hdisplay * assumed_bpp,
1560 					mode->vdisplay)) {
1561 		drm_mode_probed_add(connector, mode);
1562 	} else {
1563 		drm_mode_destroy(dev, mode);
1564 		mode = NULL;
1565 	}
1566 
1567 	if (du->pref_mode) {
1568 		list_del_init(&du->pref_mode->head);
1569 		drm_mode_destroy(dev, du->pref_mode);
1570 	}
1571 
1572 	/* mode might be null here, this is intended */
1573 	du->pref_mode = mode;
1574 
1575 	for (i = 0; vmw_kms_connector_builtin[i].type != 0; i++) {
1576 		bmode = &vmw_kms_connector_builtin[i];
1577 		if (bmode->hdisplay > max_width ||
1578 		    bmode->vdisplay > max_height)
1579 			continue;
1580 
1581 		if (!vmw_kms_validate_mode_vram(dev_priv,
1582 						bmode->hdisplay * assumed_bpp,
1583 						bmode->vdisplay))
1584 			continue;
1585 
1586 		mode = drm_mode_duplicate(dev, bmode);
1587 		if (!mode)
1588 			return 0;
1589 		mode->vrefresh = drm_mode_vrefresh(mode);
1590 
1591 		drm_mode_probed_add(connector, mode);
1592 	}
1593 
1594 	drm_mode_connector_list_update(connector, true);
1595 	/* Move the prefered mode first, help apps pick the right mode. */
1596 	drm_mode_sort(&connector->modes);
1597 
1598 	return 1;
1599 }
1600 
vmw_du_connector_set_property(struct drm_connector * connector,struct drm_property * property,uint64_t val)1601 int vmw_du_connector_set_property(struct drm_connector *connector,
1602 				  struct drm_property *property,
1603 				  uint64_t val)
1604 {
1605 	return 0;
1606 }
1607 
1608 
vmw_kms_update_layout_ioctl(struct drm_device * dev,void * data,struct drm_file * file_priv)1609 int vmw_kms_update_layout_ioctl(struct drm_device *dev, void *data,
1610 				struct drm_file *file_priv)
1611 {
1612 	struct vmw_private *dev_priv = vmw_priv(dev);
1613 	struct drm_vmw_update_layout_arg *arg =
1614 		(struct drm_vmw_update_layout_arg *)data;
1615 	void __user *user_rects;
1616 	struct drm_vmw_rect *rects;
1617 	unsigned rects_size;
1618 	int ret;
1619 	int i;
1620 	u64 total_pixels = 0;
1621 	struct drm_mode_config *mode_config = &dev->mode_config;
1622 	struct drm_vmw_rect bounding_box = {0};
1623 
1624 	if (!arg->num_outputs) {
1625 		struct drm_vmw_rect def_rect = {0, 0, 800, 600};
1626 		vmw_du_update_layout(dev_priv, 1, &def_rect);
1627 		return 0;
1628 	}
1629 
1630 	rects_size = arg->num_outputs * sizeof(struct drm_vmw_rect);
1631 	rects = kcalloc(arg->num_outputs, sizeof(struct drm_vmw_rect),
1632 			GFP_KERNEL);
1633 	if (unlikely(!rects))
1634 		return -ENOMEM;
1635 
1636 	user_rects = (void __user *)(unsigned long)arg->rects;
1637 	ret = copy_from_user(rects, user_rects, rects_size);
1638 	if (unlikely(ret != 0)) {
1639 		DRM_ERROR("Failed to get rects.\n");
1640 		ret = -EFAULT;
1641 		goto out_free;
1642 	}
1643 
1644 	for (i = 0; i < arg->num_outputs; ++i) {
1645 		if (rects[i].x < 0 ||
1646 		    rects[i].y < 0 ||
1647 		    rects[i].x + rects[i].w > mode_config->max_width ||
1648 		    rects[i].y + rects[i].h > mode_config->max_height) {
1649 			DRM_ERROR("Invalid GUI layout.\n");
1650 			ret = -EINVAL;
1651 			goto out_free;
1652 		}
1653 
1654 		/*
1655 		 * bounding_box.w and bunding_box.h are used as
1656 		 * lower-right coordinates
1657 		 */
1658 		if (rects[i].x + rects[i].w > bounding_box.w)
1659 			bounding_box.w = rects[i].x + rects[i].w;
1660 
1661 		if (rects[i].y + rects[i].h > bounding_box.h)
1662 			bounding_box.h = rects[i].y + rects[i].h;
1663 
1664 		total_pixels += (u64) rects[i].w * (u64) rects[i].h;
1665 	}
1666 
1667 	if (dev_priv->active_display_unit == vmw_du_screen_target) {
1668 		/*
1669 		 * For Screen Targets, the limits for a toplogy are:
1670 		 *	1. Bounding box (assuming 32bpp) must be < prim_bb_mem
1671 		 *      2. Total pixels (assuming 32bpp) must be < prim_bb_mem
1672 		 */
1673 		u64 bb_mem    = bounding_box.w * bounding_box.h * 4;
1674 		u64 pixel_mem = total_pixels * 4;
1675 
1676 		if (bb_mem > dev_priv->prim_bb_mem) {
1677 			DRM_ERROR("Topology is beyond supported limits.\n");
1678 			ret = -EINVAL;
1679 			goto out_free;
1680 		}
1681 
1682 		if (pixel_mem > dev_priv->prim_bb_mem) {
1683 			DRM_ERROR("Combined output size too large\n");
1684 			ret = -EINVAL;
1685 			goto out_free;
1686 		}
1687 	}
1688 
1689 	vmw_du_update_layout(dev_priv, arg->num_outputs, rects);
1690 
1691 out_free:
1692 	kfree(rects);
1693 	return ret;
1694 }
1695 
1696 /**
1697  * vmw_kms_helper_dirty - Helper to build commands and perform actions based
1698  * on a set of cliprects and a set of display units.
1699  *
1700  * @dev_priv: Pointer to a device private structure.
1701  * @framebuffer: Pointer to the framebuffer on which to perform the actions.
1702  * @clips: A set of struct drm_clip_rect. Either this os @vclips must be NULL.
1703  * Cliprects are given in framebuffer coordinates.
1704  * @vclips: A set of struct drm_vmw_rect cliprects. Either this or @clips must
1705  * be NULL. Cliprects are given in source coordinates.
1706  * @dest_x: X coordinate offset for the crtc / destination clip rects.
1707  * @dest_y: Y coordinate offset for the crtc / destination clip rects.
1708  * @num_clips: Number of cliprects in the @clips or @vclips array.
1709  * @increment: Integer with which to increment the clip counter when looping.
1710  * Used to skip a predetermined number of clip rects.
1711  * @dirty: Closure structure. See the description of struct vmw_kms_dirty.
1712  */
vmw_kms_helper_dirty(struct vmw_private * dev_priv,struct vmw_framebuffer * framebuffer,const struct drm_clip_rect * clips,const struct drm_vmw_rect * vclips,s32 dest_x,s32 dest_y,int num_clips,int increment,struct vmw_kms_dirty * dirty)1713 int vmw_kms_helper_dirty(struct vmw_private *dev_priv,
1714 			 struct vmw_framebuffer *framebuffer,
1715 			 const struct drm_clip_rect *clips,
1716 			 const struct drm_vmw_rect *vclips,
1717 			 s32 dest_x, s32 dest_y,
1718 			 int num_clips,
1719 			 int increment,
1720 			 struct vmw_kms_dirty *dirty)
1721 {
1722 	struct vmw_display_unit *units[VMWGFX_NUM_DISPLAY_UNITS];
1723 	struct drm_crtc *crtc;
1724 	u32 num_units = 0;
1725 	u32 i, k;
1726 
1727 	dirty->dev_priv = dev_priv;
1728 
1729 	list_for_each_entry(crtc, &dev_priv->dev->mode_config.crtc_list, head) {
1730 		if (crtc->primary->fb != &framebuffer->base)
1731 			continue;
1732 		units[num_units++] = vmw_crtc_to_du(crtc);
1733 	}
1734 
1735 	for (k = 0; k < num_units; k++) {
1736 		struct vmw_display_unit *unit = units[k];
1737 		s32 crtc_x = unit->crtc.x;
1738 		s32 crtc_y = unit->crtc.y;
1739 		s32 crtc_width = unit->crtc.mode.hdisplay;
1740 		s32 crtc_height = unit->crtc.mode.vdisplay;
1741 		const struct drm_clip_rect *clips_ptr = clips;
1742 		const struct drm_vmw_rect *vclips_ptr = vclips;
1743 
1744 		dirty->unit = unit;
1745 		if (dirty->fifo_reserve_size > 0) {
1746 			dirty->cmd = vmw_fifo_reserve(dev_priv,
1747 						      dirty->fifo_reserve_size);
1748 			if (!dirty->cmd) {
1749 				DRM_ERROR("Couldn't reserve fifo space "
1750 					  "for dirty blits.\n");
1751 				return -ENOMEM;
1752 			}
1753 			memset(dirty->cmd, 0, dirty->fifo_reserve_size);
1754 		}
1755 		dirty->num_hits = 0;
1756 		for (i = 0; i < num_clips; i++, clips_ptr += increment,
1757 		       vclips_ptr += increment) {
1758 			s32 clip_left;
1759 			s32 clip_top;
1760 
1761 			/*
1762 			 * Select clip array type. Note that integer type
1763 			 * in @clips is unsigned short, whereas in @vclips
1764 			 * it's 32-bit.
1765 			 */
1766 			if (clips) {
1767 				dirty->fb_x = (s32) clips_ptr->x1;
1768 				dirty->fb_y = (s32) clips_ptr->y1;
1769 				dirty->unit_x2 = (s32) clips_ptr->x2 + dest_x -
1770 					crtc_x;
1771 				dirty->unit_y2 = (s32) clips_ptr->y2 + dest_y -
1772 					crtc_y;
1773 			} else {
1774 				dirty->fb_x = vclips_ptr->x;
1775 				dirty->fb_y = vclips_ptr->y;
1776 				dirty->unit_x2 = dirty->fb_x + vclips_ptr->w +
1777 					dest_x - crtc_x;
1778 				dirty->unit_y2 = dirty->fb_y + vclips_ptr->h +
1779 					dest_y - crtc_y;
1780 			}
1781 
1782 			dirty->unit_x1 = dirty->fb_x + dest_x - crtc_x;
1783 			dirty->unit_y1 = dirty->fb_y + dest_y - crtc_y;
1784 
1785 			/* Skip this clip if it's outside the crtc region */
1786 			if (dirty->unit_x1 >= crtc_width ||
1787 			    dirty->unit_y1 >= crtc_height ||
1788 			    dirty->unit_x2 <= 0 || dirty->unit_y2 <= 0)
1789 				continue;
1790 
1791 			/* Clip right and bottom to crtc limits */
1792 			dirty->unit_x2 = min_t(s32, dirty->unit_x2,
1793 					       crtc_width);
1794 			dirty->unit_y2 = min_t(s32, dirty->unit_y2,
1795 					       crtc_height);
1796 
1797 			/* Clip left and top to crtc limits */
1798 			clip_left = min_t(s32, dirty->unit_x1, 0);
1799 			clip_top = min_t(s32, dirty->unit_y1, 0);
1800 			dirty->unit_x1 -= clip_left;
1801 			dirty->unit_y1 -= clip_top;
1802 			dirty->fb_x -= clip_left;
1803 			dirty->fb_y -= clip_top;
1804 
1805 			dirty->clip(dirty);
1806 		}
1807 
1808 		dirty->fifo_commit(dirty);
1809 	}
1810 
1811 	return 0;
1812 }
1813 
1814 /**
1815  * vmw_kms_helper_buffer_prepare - Reserve and validate a buffer object before
1816  * command submission.
1817  *
1818  * @dev_priv. Pointer to a device private structure.
1819  * @buf: The buffer object
1820  * @interruptible: Whether to perform waits as interruptible.
1821  * @validate_as_mob: Whether the buffer should be validated as a MOB. If false,
1822  * The buffer will be validated as a GMR. Already pinned buffers will not be
1823  * validated.
1824  *
1825  * Returns 0 on success, negative error code on failure, -ERESTARTSYS if
1826  * interrupted by a signal.
1827  */
vmw_kms_helper_buffer_prepare(struct vmw_private * dev_priv,struct vmw_dma_buffer * buf,bool interruptible,bool validate_as_mob)1828 int vmw_kms_helper_buffer_prepare(struct vmw_private *dev_priv,
1829 				  struct vmw_dma_buffer *buf,
1830 				  bool interruptible,
1831 				  bool validate_as_mob)
1832 {
1833 	struct ttm_buffer_object *bo = &buf->base;
1834 	int ret;
1835 
1836 	ttm_bo_reserve(bo, false, false, interruptible, NULL);
1837 	ret = vmw_validate_single_buffer(dev_priv, bo, interruptible,
1838 					 validate_as_mob);
1839 	if (ret)
1840 		ttm_bo_unreserve(bo);
1841 
1842 	return ret;
1843 }
1844 
1845 /**
1846  * vmw_kms_helper_buffer_revert - Undo the actions of
1847  * vmw_kms_helper_buffer_prepare.
1848  *
1849  * @res: Pointer to the buffer object.
1850  *
1851  * Helper to be used if an error forces the caller to undo the actions of
1852  * vmw_kms_helper_buffer_prepare.
1853  */
vmw_kms_helper_buffer_revert(struct vmw_dma_buffer * buf)1854 void vmw_kms_helper_buffer_revert(struct vmw_dma_buffer *buf)
1855 {
1856 	if (buf)
1857 		ttm_bo_unreserve(&buf->base);
1858 }
1859 
1860 /**
1861  * vmw_kms_helper_buffer_finish - Unreserve and fence a buffer object after
1862  * kms command submission.
1863  *
1864  * @dev_priv: Pointer to a device private structure.
1865  * @file_priv: Pointer to a struct drm_file representing the caller's
1866  * connection. Must be set to NULL if @user_fence_rep is NULL, and conversely
1867  * if non-NULL, @user_fence_rep must be non-NULL.
1868  * @buf: The buffer object.
1869  * @out_fence:  Optional pointer to a fence pointer. If non-NULL, a
1870  * ref-counted fence pointer is returned here.
1871  * @user_fence_rep: Optional pointer to a user-space provided struct
1872  * drm_vmw_fence_rep. If provided, @file_priv must also be provided and the
1873  * function copies fence data to user-space in a fail-safe manner.
1874  */
vmw_kms_helper_buffer_finish(struct vmw_private * dev_priv,struct drm_file * file_priv,struct vmw_dma_buffer * buf,struct vmw_fence_obj ** out_fence,struct drm_vmw_fence_rep __user * user_fence_rep)1875 void vmw_kms_helper_buffer_finish(struct vmw_private *dev_priv,
1876 				  struct drm_file *file_priv,
1877 				  struct vmw_dma_buffer *buf,
1878 				  struct vmw_fence_obj **out_fence,
1879 				  struct drm_vmw_fence_rep __user *
1880 				  user_fence_rep)
1881 {
1882 	struct vmw_fence_obj *fence;
1883 	uint32_t handle;
1884 	int ret;
1885 
1886 	ret = vmw_execbuf_fence_commands(file_priv, dev_priv, &fence,
1887 					 file_priv ? &handle : NULL);
1888 	if (buf)
1889 		vmw_fence_single_bo(&buf->base, fence);
1890 	if (file_priv)
1891 		vmw_execbuf_copy_fence_user(dev_priv, vmw_fpriv(file_priv),
1892 					    ret, user_fence_rep, fence,
1893 					    handle);
1894 	if (out_fence)
1895 		*out_fence = fence;
1896 	else
1897 		vmw_fence_obj_unreference(&fence);
1898 
1899 	vmw_kms_helper_buffer_revert(buf);
1900 }
1901 
1902 
1903 /**
1904  * vmw_kms_helper_resource_revert - Undo the actions of
1905  * vmw_kms_helper_resource_prepare.
1906  *
1907  * @res: Pointer to the resource. Typically a surface.
1908  *
1909  * Helper to be used if an error forces the caller to undo the actions of
1910  * vmw_kms_helper_resource_prepare.
1911  */
vmw_kms_helper_resource_revert(struct vmw_validation_ctx * ctx)1912 void vmw_kms_helper_resource_revert(struct vmw_validation_ctx *ctx)
1913 {
1914 	struct vmw_resource *res = ctx->res;
1915 
1916 	vmw_kms_helper_buffer_revert(ctx->buf);
1917 	vmw_dmabuf_unreference(&ctx->buf);
1918 	vmw_resource_unreserve(res, false, NULL, 0);
1919 	mutex_unlock(&res->dev_priv->cmdbuf_mutex);
1920 }
1921 
1922 /**
1923  * vmw_kms_helper_resource_prepare - Reserve and validate a resource before
1924  * command submission.
1925  *
1926  * @res: Pointer to the resource. Typically a surface.
1927  * @interruptible: Whether to perform waits as interruptible.
1928  *
1929  * Reserves and validates also the backup buffer if a guest-backed resource.
1930  * Returns 0 on success, negative error code on failure. -ERESTARTSYS if
1931  * interrupted by a signal.
1932  */
vmw_kms_helper_resource_prepare(struct vmw_resource * res,bool interruptible,struct vmw_validation_ctx * ctx)1933 int vmw_kms_helper_resource_prepare(struct vmw_resource *res,
1934 				    bool interruptible,
1935 				    struct vmw_validation_ctx *ctx)
1936 {
1937 	int ret = 0;
1938 
1939 	ctx->buf = NULL;
1940 	ctx->res = res;
1941 
1942 	if (interruptible)
1943 		ret = mutex_lock_interruptible(&res->dev_priv->cmdbuf_mutex);
1944 	else
1945 		mutex_lock(&res->dev_priv->cmdbuf_mutex);
1946 
1947 	if (unlikely(ret != 0))
1948 		return -ERESTARTSYS;
1949 
1950 	ret = vmw_resource_reserve(res, interruptible, false);
1951 	if (ret)
1952 		goto out_unlock;
1953 
1954 	if (res->backup) {
1955 		ret = vmw_kms_helper_buffer_prepare(res->dev_priv, res->backup,
1956 						    interruptible,
1957 						    res->dev_priv->has_mob);
1958 		if (ret)
1959 			goto out_unreserve;
1960 
1961 		ctx->buf = vmw_dmabuf_reference(res->backup);
1962 	}
1963 	ret = vmw_resource_validate(res);
1964 	if (ret)
1965 		goto out_revert;
1966 	return 0;
1967 
1968 out_revert:
1969 	vmw_kms_helper_buffer_revert(ctx->buf);
1970 out_unreserve:
1971 	vmw_resource_unreserve(res, false, NULL, 0);
1972 out_unlock:
1973 	mutex_unlock(&res->dev_priv->cmdbuf_mutex);
1974 	return ret;
1975 }
1976 
1977 /**
1978  * vmw_kms_helper_resource_finish - Unreserve and fence a resource after
1979  * kms command submission.
1980  *
1981  * @res: Pointer to the resource. Typically a surface.
1982  * @out_fence: Optional pointer to a fence pointer. If non-NULL, a
1983  * ref-counted fence pointer is returned here.
1984  */
vmw_kms_helper_resource_finish(struct vmw_validation_ctx * ctx,struct vmw_fence_obj ** out_fence)1985 void vmw_kms_helper_resource_finish(struct vmw_validation_ctx *ctx,
1986 				    struct vmw_fence_obj **out_fence)
1987 {
1988 	struct vmw_resource *res = ctx->res;
1989 
1990 	if (ctx->buf || out_fence)
1991 		vmw_kms_helper_buffer_finish(res->dev_priv, NULL, ctx->buf,
1992 					     out_fence, NULL);
1993 
1994 	vmw_dmabuf_unreference(&ctx->buf);
1995 	vmw_resource_unreserve(res, false, NULL, 0);
1996 	mutex_unlock(&res->dev_priv->cmdbuf_mutex);
1997 }
1998 
1999 /**
2000  * vmw_kms_update_proxy - Helper function to update a proxy surface from
2001  * its backing MOB.
2002  *
2003  * @res: Pointer to the surface resource
2004  * @clips: Clip rects in framebuffer (surface) space.
2005  * @num_clips: Number of clips in @clips.
2006  * @increment: Integer with which to increment the clip counter when looping.
2007  * Used to skip a predetermined number of clip rects.
2008  *
2009  * This function makes sure the proxy surface is updated from its backing MOB
2010  * using the region given by @clips. The surface resource @res and its backing
2011  * MOB needs to be reserved and validated on call.
2012  */
vmw_kms_update_proxy(struct vmw_resource * res,const struct drm_clip_rect * clips,unsigned num_clips,int increment)2013 int vmw_kms_update_proxy(struct vmw_resource *res,
2014 			 const struct drm_clip_rect *clips,
2015 			 unsigned num_clips,
2016 			 int increment)
2017 {
2018 	struct vmw_private *dev_priv = res->dev_priv;
2019 	struct drm_vmw_size *size = &vmw_res_to_srf(res)->base_size;
2020 	struct {
2021 		SVGA3dCmdHeader header;
2022 		SVGA3dCmdUpdateGBImage body;
2023 	} *cmd;
2024 	SVGA3dBox *box;
2025 	size_t copy_size = 0;
2026 	int i;
2027 
2028 	if (!clips)
2029 		return 0;
2030 
2031 	cmd = vmw_fifo_reserve(dev_priv, sizeof(*cmd) * num_clips);
2032 	if (!cmd) {
2033 		DRM_ERROR("Couldn't reserve fifo space for proxy surface "
2034 			  "update.\n");
2035 		return -ENOMEM;
2036 	}
2037 
2038 	for (i = 0; i < num_clips; ++i, clips += increment, ++cmd) {
2039 		box = &cmd->body.box;
2040 
2041 		cmd->header.id = SVGA_3D_CMD_UPDATE_GB_IMAGE;
2042 		cmd->header.size = sizeof(cmd->body);
2043 		cmd->body.image.sid = res->id;
2044 		cmd->body.image.face = 0;
2045 		cmd->body.image.mipmap = 0;
2046 
2047 		if (clips->x1 > size->width || clips->x2 > size->width ||
2048 		    clips->y1 > size->height || clips->y2 > size->height) {
2049 			DRM_ERROR("Invalid clips outsize of framebuffer.\n");
2050 			return -EINVAL;
2051 		}
2052 
2053 		box->x = clips->x1;
2054 		box->y = clips->y1;
2055 		box->z = 0;
2056 		box->w = clips->x2 - clips->x1;
2057 		box->h = clips->y2 - clips->y1;
2058 		box->d = 1;
2059 
2060 		copy_size += sizeof(*cmd);
2061 	}
2062 
2063 	vmw_fifo_commit(dev_priv, copy_size);
2064 
2065 	return 0;
2066 }
2067 
vmw_kms_fbdev_init_data(struct vmw_private * dev_priv,unsigned unit,u32 max_width,u32 max_height,struct drm_connector ** p_con,struct drm_crtc ** p_crtc,struct drm_display_mode ** p_mode)2068 int vmw_kms_fbdev_init_data(struct vmw_private *dev_priv,
2069 			    unsigned unit,
2070 			    u32 max_width,
2071 			    u32 max_height,
2072 			    struct drm_connector **p_con,
2073 			    struct drm_crtc **p_crtc,
2074 			    struct drm_display_mode **p_mode)
2075 {
2076 	struct drm_connector *con;
2077 	struct vmw_display_unit *du;
2078 	struct drm_display_mode *mode;
2079 	int i = 0;
2080 
2081 	list_for_each_entry(con, &dev_priv->dev->mode_config.connector_list,
2082 			    head) {
2083 		if (i == unit)
2084 			break;
2085 
2086 		++i;
2087 	}
2088 
2089 	if (&con->head == &dev_priv->dev->mode_config.connector_list) {
2090 		DRM_ERROR("Could not find initial display unit.\n");
2091 		return -EINVAL;
2092 	}
2093 
2094 	if (list_empty(&con->modes))
2095 		(void) vmw_du_connector_fill_modes(con, max_width, max_height);
2096 
2097 	if (list_empty(&con->modes)) {
2098 		DRM_ERROR("Could not find initial display mode.\n");
2099 		return -EINVAL;
2100 	}
2101 
2102 	du = vmw_connector_to_du(con);
2103 	*p_con = con;
2104 	*p_crtc = &du->crtc;
2105 
2106 	list_for_each_entry(mode, &con->modes, head) {
2107 		if (mode->type & DRM_MODE_TYPE_PREFERRED)
2108 			break;
2109 	}
2110 
2111 	if (&mode->head == &con->modes) {
2112 		WARN_ONCE(true, "Could not find initial preferred mode.\n");
2113 		*p_mode = list_first_entry(&con->modes,
2114 					   struct drm_display_mode,
2115 					   head);
2116 	} else {
2117 		*p_mode = mode;
2118 	}
2119 
2120 	return 0;
2121 }
2122