xref: /openbmc/linux/drivers/gpu/drm/i915/gvt/vgpu.c (revision d3964221)
1 /*
2  * Copyright(c) 2011-2016 Intel Corporation. All rights reserved.
3  *
4  * Permission is hereby granted, free of charge, to any person obtaining a
5  * copy of this software and associated documentation files (the "Software"),
6  * to deal in the Software without restriction, including without limitation
7  * the rights to use, copy, modify, merge, publish, distribute, sublicense,
8  * and/or sell copies of the Software, and to permit persons to whom the
9  * Software is furnished to do so, subject to the following conditions:
10  *
11  * The above copyright notice and this permission notice (including the next
12  * paragraph) shall be included in all copies or substantial portions of the
13  * 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 AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
19  * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
20  * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
21  * SOFTWARE.
22  *
23  * Authors:
24  *    Eddie Dong <eddie.dong@intel.com>
25  *    Kevin Tian <kevin.tian@intel.com>
26  *
27  * Contributors:
28  *    Ping Gao <ping.a.gao@intel.com>
29  *    Zhi Wang <zhi.a.wang@intel.com>
30  *    Bing Niu <bing.niu@intel.com>
31  *
32  */
33 
34 #include "i915_drv.h"
35 #include "gvt.h"
36 #include "i915_pvinfo.h"
37 
38 void populate_pvinfo_page(struct intel_vgpu *vgpu)
39 {
40 	/* setup the ballooning information */
41 	vgpu_vreg64(vgpu, vgtif_reg(magic)) = VGT_MAGIC;
42 	vgpu_vreg(vgpu, vgtif_reg(version_major)) = 1;
43 	vgpu_vreg(vgpu, vgtif_reg(version_minor)) = 0;
44 	vgpu_vreg(vgpu, vgtif_reg(display_ready)) = 0;
45 	vgpu_vreg(vgpu, vgtif_reg(vgt_id)) = vgpu->id;
46 	vgpu_vreg(vgpu, vgtif_reg(vgt_caps)) = VGT_CAPS_FULL_48BIT_PPGTT;
47 	vgpu_vreg(vgpu, vgtif_reg(avail_rs.mappable_gmadr.base)) =
48 		vgpu_aperture_gmadr_base(vgpu);
49 	vgpu_vreg(vgpu, vgtif_reg(avail_rs.mappable_gmadr.size)) =
50 		vgpu_aperture_sz(vgpu);
51 	vgpu_vreg(vgpu, vgtif_reg(avail_rs.nonmappable_gmadr.base)) =
52 		vgpu_hidden_gmadr_base(vgpu);
53 	vgpu_vreg(vgpu, vgtif_reg(avail_rs.nonmappable_gmadr.size)) =
54 		vgpu_hidden_sz(vgpu);
55 
56 	vgpu_vreg(vgpu, vgtif_reg(avail_rs.fence_num)) = vgpu_fence_sz(vgpu);
57 
58 	gvt_dbg_core("Populate PVINFO PAGE for vGPU %d\n", vgpu->id);
59 	gvt_dbg_core("aperture base [GMADR] 0x%llx size 0x%llx\n",
60 		vgpu_aperture_gmadr_base(vgpu), vgpu_aperture_sz(vgpu));
61 	gvt_dbg_core("hidden base [GMADR] 0x%llx size=0x%llx\n",
62 		vgpu_hidden_gmadr_base(vgpu), vgpu_hidden_sz(vgpu));
63 	gvt_dbg_core("fence size %d\n", vgpu_fence_sz(vgpu));
64 
65 	WARN_ON(sizeof(struct vgt_if) != VGT_PVINFO_SIZE);
66 }
67 
68 #define VGPU_MAX_WEIGHT 16
69 #define VGPU_WEIGHT(vgpu_num)	\
70 	(VGPU_MAX_WEIGHT / (vgpu_num))
71 
72 static struct {
73 	unsigned int low_mm;
74 	unsigned int high_mm;
75 	unsigned int fence;
76 
77 	/* A vGPU with a weight of 8 will get twice as much GPU as a vGPU
78 	 * with a weight of 4 on a contended host, different vGPU type has
79 	 * different weight set. Legal weights range from 1 to 16.
80 	 */
81 	unsigned int weight;
82 	enum intel_vgpu_edid edid;
83 	char *name;
84 } vgpu_types[] = {
85 /* Fixed vGPU type table */
86 	{ MB_TO_BYTES(64), MB_TO_BYTES(384), 4, VGPU_WEIGHT(8), GVT_EDID_1024_768, "8" },
87 	{ MB_TO_BYTES(128), MB_TO_BYTES(512), 4, VGPU_WEIGHT(4), GVT_EDID_1920_1200, "4" },
88 	{ MB_TO_BYTES(256), MB_TO_BYTES(1024), 4, VGPU_WEIGHT(2), GVT_EDID_1920_1200, "2" },
89 	{ MB_TO_BYTES(512), MB_TO_BYTES(2048), 4, VGPU_WEIGHT(1), GVT_EDID_1920_1200, "1" },
90 };
91 
92 /**
93  * intel_gvt_init_vgpu_types - initialize vGPU type list
94  * @gvt : GVT device
95  *
96  * Initialize vGPU type list based on available resource.
97  *
98  */
99 int intel_gvt_init_vgpu_types(struct intel_gvt *gvt)
100 {
101 	unsigned int num_types;
102 	unsigned int i, low_avail, high_avail;
103 	unsigned int min_low;
104 
105 	/* vGPU type name is defined as GVTg_Vx_y which contains
106 	 * physical GPU generation type (e.g V4 as BDW server, V5 as
107 	 * SKL server).
108 	 *
109 	 * Depend on physical SKU resource, might see vGPU types like
110 	 * GVTg_V4_8, GVTg_V4_4, GVTg_V4_2, etc. We can create
111 	 * different types of vGPU on same physical GPU depending on
112 	 * available resource. Each vGPU type will have "avail_instance"
113 	 * to indicate how many vGPU instance can be created for this
114 	 * type.
115 	 *
116 	 */
117 	low_avail = gvt_aperture_sz(gvt) - HOST_LOW_GM_SIZE;
118 	high_avail = gvt_hidden_sz(gvt) - HOST_HIGH_GM_SIZE;
119 	num_types = sizeof(vgpu_types) / sizeof(vgpu_types[0]);
120 
121 	gvt->types = kzalloc(num_types * sizeof(struct intel_vgpu_type),
122 			     GFP_KERNEL);
123 	if (!gvt->types)
124 		return -ENOMEM;
125 
126 	min_low = MB_TO_BYTES(32);
127 	for (i = 0; i < num_types; ++i) {
128 		if (low_avail / vgpu_types[i].low_mm == 0)
129 			break;
130 
131 		gvt->types[i].low_gm_size = vgpu_types[i].low_mm;
132 		gvt->types[i].high_gm_size = vgpu_types[i].high_mm;
133 		gvt->types[i].fence = vgpu_types[i].fence;
134 
135 		if (vgpu_types[i].weight < 1 ||
136 					vgpu_types[i].weight > VGPU_MAX_WEIGHT)
137 			return -EINVAL;
138 
139 		gvt->types[i].weight = vgpu_types[i].weight;
140 		gvt->types[i].resolution = vgpu_types[i].edid;
141 		gvt->types[i].avail_instance = min(low_avail / vgpu_types[i].low_mm,
142 						   high_avail / vgpu_types[i].high_mm);
143 
144 		if (IS_GEN8(gvt->dev_priv))
145 			sprintf(gvt->types[i].name, "GVTg_V4_%s",
146 						vgpu_types[i].name);
147 		else if (IS_GEN9(gvt->dev_priv))
148 			sprintf(gvt->types[i].name, "GVTg_V5_%s",
149 						vgpu_types[i].name);
150 
151 		gvt_dbg_core("type[%d]: %s avail %u low %u high %u fence %u weight %u res %s\n",
152 			     i, gvt->types[i].name,
153 			     gvt->types[i].avail_instance,
154 			     gvt->types[i].low_gm_size,
155 			     gvt->types[i].high_gm_size, gvt->types[i].fence,
156 			     gvt->types[i].weight,
157 			     vgpu_edid_str(gvt->types[i].resolution));
158 	}
159 
160 	gvt->num_types = i;
161 	return 0;
162 }
163 
164 void intel_gvt_clean_vgpu_types(struct intel_gvt *gvt)
165 {
166 	kfree(gvt->types);
167 }
168 
169 static void intel_gvt_update_vgpu_types(struct intel_gvt *gvt)
170 {
171 	int i;
172 	unsigned int low_gm_avail, high_gm_avail, fence_avail;
173 	unsigned int low_gm_min, high_gm_min, fence_min;
174 
175 	/* Need to depend on maxium hw resource size but keep on
176 	 * static config for now.
177 	 */
178 	low_gm_avail = gvt_aperture_sz(gvt) - HOST_LOW_GM_SIZE -
179 		gvt->gm.vgpu_allocated_low_gm_size;
180 	high_gm_avail = gvt_hidden_sz(gvt) - HOST_HIGH_GM_SIZE -
181 		gvt->gm.vgpu_allocated_high_gm_size;
182 	fence_avail = gvt_fence_sz(gvt) - HOST_FENCE -
183 		gvt->fence.vgpu_allocated_fence_num;
184 
185 	for (i = 0; i < gvt->num_types; i++) {
186 		low_gm_min = low_gm_avail / gvt->types[i].low_gm_size;
187 		high_gm_min = high_gm_avail / gvt->types[i].high_gm_size;
188 		fence_min = fence_avail / gvt->types[i].fence;
189 		gvt->types[i].avail_instance = min(min(low_gm_min, high_gm_min),
190 						   fence_min);
191 
192 		gvt_dbg_core("update type[%d]: %s avail %u low %u high %u fence %u\n",
193 		       i, gvt->types[i].name,
194 		       gvt->types[i].avail_instance, gvt->types[i].low_gm_size,
195 		       gvt->types[i].high_gm_size, gvt->types[i].fence);
196 	}
197 }
198 
199 /**
200  * intel_gvt_active_vgpu - activate a virtual GPU
201  * @vgpu: virtual GPU
202  *
203  * This function is called when user wants to activate a virtual GPU.
204  *
205  */
206 void intel_gvt_activate_vgpu(struct intel_vgpu *vgpu)
207 {
208 	mutex_lock(&vgpu->gvt->lock);
209 	vgpu->active = true;
210 	mutex_unlock(&vgpu->gvt->lock);
211 }
212 
213 /**
214  * intel_gvt_deactive_vgpu - deactivate a virtual GPU
215  * @vgpu: virtual GPU
216  *
217  * This function is called when user wants to deactivate a virtual GPU.
218  * All virtual GPU runtime information will be destroyed.
219  *
220  */
221 void intel_gvt_deactivate_vgpu(struct intel_vgpu *vgpu)
222 {
223 	struct intel_gvt *gvt = vgpu->gvt;
224 
225 	mutex_lock(&gvt->lock);
226 
227 	vgpu->active = false;
228 
229 	if (atomic_read(&vgpu->running_workload_num)) {
230 		mutex_unlock(&gvt->lock);
231 		intel_gvt_wait_vgpu_idle(vgpu);
232 		mutex_lock(&gvt->lock);
233 	}
234 
235 	intel_vgpu_stop_schedule(vgpu);
236 
237 	mutex_unlock(&gvt->lock);
238 }
239 
240 /**
241  * intel_gvt_destroy_vgpu - destroy a virtual GPU
242  * @vgpu: virtual GPU
243  *
244  * This function is called when user wants to destroy a virtual GPU.
245  *
246  */
247 void intel_gvt_destroy_vgpu(struct intel_vgpu *vgpu)
248 {
249 	struct intel_gvt *gvt = vgpu->gvt;
250 
251 	mutex_lock(&gvt->lock);
252 
253 	WARN(vgpu->active, "vGPU is still active!\n");
254 
255 	idr_remove(&gvt->vgpu_idr, vgpu->id);
256 	intel_vgpu_clean_sched_policy(vgpu);
257 	intel_vgpu_clean_gvt_context(vgpu);
258 	intel_vgpu_clean_execlist(vgpu);
259 	intel_vgpu_clean_display(vgpu);
260 	intel_vgpu_clean_opregion(vgpu);
261 	intel_vgpu_clean_gtt(vgpu);
262 	intel_gvt_hypervisor_detach_vgpu(vgpu);
263 	intel_vgpu_free_resource(vgpu);
264 	intel_vgpu_clean_mmio(vgpu);
265 	vfree(vgpu);
266 
267 	intel_gvt_update_vgpu_types(gvt);
268 	mutex_unlock(&gvt->lock);
269 }
270 
271 #define IDLE_VGPU_IDR 0
272 
273 /**
274  * intel_gvt_create_idle_vgpu - create an idle virtual GPU
275  * @gvt: GVT device
276  *
277  * This function is called when user wants to create an idle virtual GPU.
278  *
279  * Returns:
280  * pointer to intel_vgpu, error pointer if failed.
281  */
282 struct intel_vgpu *intel_gvt_create_idle_vgpu(struct intel_gvt *gvt)
283 {
284 	struct intel_vgpu *vgpu;
285 	enum intel_engine_id i;
286 	int ret;
287 
288 	vgpu = vzalloc(sizeof(*vgpu));
289 	if (!vgpu)
290 		return ERR_PTR(-ENOMEM);
291 
292 	vgpu->id = IDLE_VGPU_IDR;
293 	vgpu->gvt = gvt;
294 
295 	for (i = 0; i < I915_NUM_ENGINES; i++)
296 		INIT_LIST_HEAD(&vgpu->workload_q_head[i]);
297 
298 	ret = intel_vgpu_init_sched_policy(vgpu);
299 	if (ret)
300 		goto out_free_vgpu;
301 
302 	vgpu->active = false;
303 
304 	return vgpu;
305 
306 out_free_vgpu:
307 	vfree(vgpu);
308 	return ERR_PTR(ret);
309 }
310 
311 /**
312  * intel_gvt_destroy_vgpu - destroy an idle virtual GPU
313  * @vgpu: virtual GPU
314  *
315  * This function is called when user wants to destroy an idle virtual GPU.
316  *
317  */
318 void intel_gvt_destroy_idle_vgpu(struct intel_vgpu *vgpu)
319 {
320 	intel_vgpu_clean_sched_policy(vgpu);
321 	vfree(vgpu);
322 }
323 
324 static struct intel_vgpu *__intel_gvt_create_vgpu(struct intel_gvt *gvt,
325 		struct intel_vgpu_creation_params *param)
326 {
327 	struct intel_vgpu *vgpu;
328 	int ret;
329 
330 	gvt_dbg_core("handle %llu low %llu MB high %llu MB fence %llu\n",
331 			param->handle, param->low_gm_sz, param->high_gm_sz,
332 			param->fence_sz);
333 
334 	vgpu = vzalloc(sizeof(*vgpu));
335 	if (!vgpu)
336 		return ERR_PTR(-ENOMEM);
337 
338 	mutex_lock(&gvt->lock);
339 
340 	ret = idr_alloc(&gvt->vgpu_idr, vgpu, IDLE_VGPU_IDR + 1, GVT_MAX_VGPU,
341 		GFP_KERNEL);
342 	if (ret < 0)
343 		goto out_free_vgpu;
344 
345 	vgpu->id = ret;
346 	vgpu->handle = param->handle;
347 	vgpu->gvt = gvt;
348 	vgpu->sched_ctl.weight = param->weight;
349 	bitmap_zero(vgpu->tlb_handle_pending, I915_NUM_ENGINES);
350 
351 	intel_vgpu_init_cfg_space(vgpu, param->primary);
352 
353 	ret = intel_vgpu_init_mmio(vgpu);
354 	if (ret)
355 		goto out_clean_idr;
356 
357 	ret = intel_vgpu_alloc_resource(vgpu, param);
358 	if (ret)
359 		goto out_clean_vgpu_mmio;
360 
361 	populate_pvinfo_page(vgpu);
362 
363 	ret = intel_gvt_hypervisor_attach_vgpu(vgpu);
364 	if (ret)
365 		goto out_clean_vgpu_resource;
366 
367 	ret = intel_vgpu_init_gtt(vgpu);
368 	if (ret)
369 		goto out_detach_hypervisor_vgpu;
370 
371 	ret = intel_vgpu_init_display(vgpu, param->resolution);
372 	if (ret)
373 		goto out_clean_gtt;
374 
375 	ret = intel_vgpu_init_execlist(vgpu);
376 	if (ret)
377 		goto out_clean_display;
378 
379 	ret = intel_vgpu_init_gvt_context(vgpu);
380 	if (ret)
381 		goto out_clean_execlist;
382 
383 	ret = intel_vgpu_init_sched_policy(vgpu);
384 	if (ret)
385 		goto out_clean_shadow_ctx;
386 
387 	mutex_unlock(&gvt->lock);
388 
389 	return vgpu;
390 
391 out_clean_shadow_ctx:
392 	intel_vgpu_clean_gvt_context(vgpu);
393 out_clean_execlist:
394 	intel_vgpu_clean_execlist(vgpu);
395 out_clean_display:
396 	intel_vgpu_clean_display(vgpu);
397 out_clean_gtt:
398 	intel_vgpu_clean_gtt(vgpu);
399 out_detach_hypervisor_vgpu:
400 	intel_gvt_hypervisor_detach_vgpu(vgpu);
401 out_clean_vgpu_resource:
402 	intel_vgpu_free_resource(vgpu);
403 out_clean_vgpu_mmio:
404 	intel_vgpu_clean_mmio(vgpu);
405 out_clean_idr:
406 	idr_remove(&gvt->vgpu_idr, vgpu->id);
407 out_free_vgpu:
408 	vfree(vgpu);
409 	mutex_unlock(&gvt->lock);
410 	return ERR_PTR(ret);
411 }
412 
413 /**
414  * intel_gvt_create_vgpu - create a virtual GPU
415  * @gvt: GVT device
416  * @type: type of the vGPU to create
417  *
418  * This function is called when user wants to create a virtual GPU.
419  *
420  * Returns:
421  * pointer to intel_vgpu, error pointer if failed.
422  */
423 struct intel_vgpu *intel_gvt_create_vgpu(struct intel_gvt *gvt,
424 				struct intel_vgpu_type *type)
425 {
426 	struct intel_vgpu_creation_params param;
427 	struct intel_vgpu *vgpu;
428 
429 	param.handle = 0;
430 	param.primary = 1;
431 	param.low_gm_sz = type->low_gm_size;
432 	param.high_gm_sz = type->high_gm_size;
433 	param.fence_sz = type->fence;
434 	param.weight = type->weight;
435 	param.resolution = type->resolution;
436 
437 	/* XXX current param based on MB */
438 	param.low_gm_sz = BYTES_TO_MB(param.low_gm_sz);
439 	param.high_gm_sz = BYTES_TO_MB(param.high_gm_sz);
440 
441 	vgpu = __intel_gvt_create_vgpu(gvt, &param);
442 	if (IS_ERR(vgpu))
443 		return vgpu;
444 
445 	/* calculate left instance change for types */
446 	intel_gvt_update_vgpu_types(gvt);
447 
448 	return vgpu;
449 }
450 
451 /**
452  * intel_gvt_reset_vgpu_locked - reset a virtual GPU by DMLR or GT reset
453  * @vgpu: virtual GPU
454  * @dmlr: vGPU Device Model Level Reset or GT Reset
455  * @engine_mask: engines to reset for GT reset
456  *
457  * This function is called when user wants to reset a virtual GPU through
458  * device model reset or GT reset. The caller should hold the gvt lock.
459  *
460  * vGPU Device Model Level Reset (DMLR) simulates the PCI level reset to reset
461  * the whole vGPU to default state as when it is created. This vGPU function
462  * is required both for functionary and security concerns.The ultimate goal
463  * of vGPU FLR is that reuse a vGPU instance by virtual machines. When we
464  * assign a vGPU to a virtual machine we must isse such reset first.
465  *
466  * Full GT Reset and Per-Engine GT Reset are soft reset flow for GPU engines
467  * (Render, Blitter, Video, Video Enhancement). It is defined by GPU Spec.
468  * Unlike the FLR, GT reset only reset particular resource of a vGPU per
469  * the reset request. Guest driver can issue a GT reset by programming the
470  * virtual GDRST register to reset specific virtual GPU engine or all
471  * engines.
472  *
473  * The parameter dev_level is to identify if we will do DMLR or GT reset.
474  * The parameter engine_mask is to specific the engines that need to be
475  * resetted. If value ALL_ENGINES is given for engine_mask, it means
476  * the caller requests a full GT reset that we will reset all virtual
477  * GPU engines. For FLR, engine_mask is ignored.
478  */
479 void intel_gvt_reset_vgpu_locked(struct intel_vgpu *vgpu, bool dmlr,
480 				 unsigned int engine_mask)
481 {
482 	struct intel_gvt *gvt = vgpu->gvt;
483 	struct intel_gvt_workload_scheduler *scheduler = &gvt->scheduler;
484 	unsigned int resetting_eng = dmlr ? ALL_ENGINES : engine_mask;
485 
486 	gvt_dbg_core("------------------------------------------\n");
487 	gvt_dbg_core("resseting vgpu%d, dmlr %d, engine_mask %08x\n",
488 		     vgpu->id, dmlr, engine_mask);
489 
490 	vgpu->resetting_eng = resetting_eng;
491 
492 	intel_vgpu_stop_schedule(vgpu);
493 	/*
494 	 * The current_vgpu will set to NULL after stopping the
495 	 * scheduler when the reset is triggered by current vgpu.
496 	 */
497 	if (scheduler->current_vgpu == NULL) {
498 		mutex_unlock(&gvt->lock);
499 		intel_gvt_wait_vgpu_idle(vgpu);
500 		mutex_lock(&gvt->lock);
501 	}
502 
503 	intel_vgpu_reset_execlist(vgpu, resetting_eng);
504 
505 	/* full GPU reset or device model level reset */
506 	if (engine_mask == ALL_ENGINES || dmlr) {
507 
508 		/*fence will not be reset during virtual reset */
509 		if (dmlr) {
510 			intel_vgpu_reset_gtt(vgpu);
511 			intel_vgpu_reset_resource(vgpu);
512 		}
513 
514 		intel_vgpu_reset_mmio(vgpu, dmlr);
515 		populate_pvinfo_page(vgpu);
516 		intel_vgpu_reset_display(vgpu);
517 
518 		if (dmlr) {
519 			intel_vgpu_reset_cfg_space(vgpu);
520 			/* only reset the failsafe mode when dmlr reset */
521 			vgpu->failsafe = false;
522 			vgpu->pv_notified = false;
523 		}
524 	}
525 
526 	vgpu->resetting_eng = 0;
527 	gvt_dbg_core("reset vgpu%d done\n", vgpu->id);
528 	gvt_dbg_core("------------------------------------------\n");
529 }
530 
531 /**
532  * intel_gvt_reset_vgpu - reset a virtual GPU (Function Level)
533  * @vgpu: virtual GPU
534  *
535  * This function is called when user wants to reset a virtual GPU.
536  *
537  */
538 void intel_gvt_reset_vgpu(struct intel_vgpu *vgpu)
539 {
540 	mutex_lock(&vgpu->gvt->lock);
541 	intel_gvt_reset_vgpu_locked(vgpu, true, 0);
542 	mutex_unlock(&vgpu->gvt->lock);
543 }
544