xref: /linux/drivers/gpu/drm/xe/xe_vram.c (revision 546b928da0427b0d6c663cbb992bd7bfa9ac7971)
1 // SPDX-License-Identifier: MIT
2 /*
3  * Copyright © 2021-2024 Intel Corporation
4  */
5 
6 #include <kunit/visibility.h>
7 #include <linux/pci.h>
8 
9 #include <drm/drm_managed.h>
10 #include <drm/drm_print.h>
11 
12 #include "regs/xe_bars.h"
13 #include "regs/xe_gt_regs.h"
14 #include "regs/xe_regs.h"
15 #include "xe_assert.h"
16 #include "xe_bo.h"
17 #include "xe_device.h"
18 #include "xe_force_wake.h"
19 #include "xe_gt_mcr.h"
20 #include "xe_mmio.h"
21 #include "xe_sriov.h"
22 #include "xe_tile_sriov_vf.h"
23 #include "xe_ttm_vram_mgr.h"
24 #include "xe_vram.h"
25 #include "xe_vram_types.h"
26 
resource_is_valid(struct pci_dev * pdev,int bar)27 static bool resource_is_valid(struct pci_dev *pdev, int bar)
28 {
29 	if (!pci_resource_flags(pdev, bar))
30 		return false;
31 
32 	if (pci_resource_flags(pdev, bar) & IORESOURCE_UNSET)
33 		return false;
34 
35 	if (!pci_resource_len(pdev, bar))
36 		return false;
37 
38 	return true;
39 }
40 
determine_lmem_bar_size(struct xe_device * xe,struct xe_vram_region * lmem_bar)41 static int determine_lmem_bar_size(struct xe_device *xe, struct xe_vram_region *lmem_bar)
42 {
43 	struct pci_dev *pdev = to_pci_dev(xe->drm.dev);
44 
45 	if (!resource_is_valid(pdev, LMEM_BAR)) {
46 		drm_err(&xe->drm, "pci resource is not valid\n");
47 		return -ENXIO;
48 	}
49 
50 	lmem_bar->io_start = pci_resource_start(pdev, LMEM_BAR);
51 	lmem_bar->io_size = pci_resource_len(pdev, LMEM_BAR);
52 	if (!lmem_bar->io_size)
53 		return -EIO;
54 
55 	/* XXX: Need to change when xe link code is ready */
56 	lmem_bar->dpa_base = 0;
57 
58 	/* set up a map to the total memory area. */
59 	lmem_bar->mapping = devm_ioremap_wc(&pdev->dev, lmem_bar->io_start, lmem_bar->io_size);
60 
61 	return 0;
62 }
63 
get_flat_ccs_offset(struct xe_gt * gt,u64 tile_size,u64 * poffset)64 static int get_flat_ccs_offset(struct xe_gt *gt, u64 tile_size, u64 *poffset)
65 {
66 	struct xe_device *xe = gt_to_xe(gt);
67 	u64 offset;
68 	u32 reg;
69 
70 	CLASS(xe_force_wake, fw_ref)(gt_to_fw(gt), XE_FW_GT);
71 	if (!fw_ref.domains)
72 		return -ETIMEDOUT;
73 
74 	if (GRAPHICS_VER(xe) >= 20) {
75 		u64 ccs_size = tile_size / 512;
76 		u64 offset_hi, offset_lo;
77 		u32 nodes, num_enabled;
78 
79 		reg = xe_mmio_read32(&gt->mmio, MIRROR_FUSE3);
80 		nodes = REG_FIELD_GET(XE2_NODE_ENABLE_MASK, reg);
81 		num_enabled = hweight32(nodes); /* Number of enabled l3 nodes */
82 
83 		reg = xe_gt_mcr_unicast_read_any(gt, XE2_FLAT_CCS_BASE_RANGE_LOWER);
84 		offset_lo = REG_FIELD_GET(XE2_FLAT_CCS_BASE_LOWER_ADDR_MASK, reg);
85 
86 		reg = xe_gt_mcr_unicast_read_any(gt, XE2_FLAT_CCS_BASE_RANGE_UPPER);
87 		offset_hi = REG_FIELD_GET(XE2_FLAT_CCS_BASE_UPPER_ADDR_MASK, reg);
88 
89 		offset = offset_hi << 32; /* HW view bits 39:32 */
90 		offset |= offset_lo << 6; /* HW view bits 31:6 */
91 		offset *= num_enabled; /* convert to SW view */
92 
93 		drm_info(&xe->drm, "FLAT_CCS base:%llx, aligned:%s\n", offset,
94 			 str_yes_no(IS_ALIGNED(offset, SZ_128K)));
95 
96 		/*
97 		 * Everything below this offset is handed to the VRAM
98 		 * allocator, so it has to be the *first* address the
99 		 * compression hardware owns, rounded down.  Rounding it up
100 		 * publishes CCS storage as free memory.
101 		 */
102 		offset = round_down(offset, SZ_4K);
103 
104 		/*
105 		 * CCS storage must not run into GSM.  The old check compared
106 		 * the offset against GSMBASE - ccs_size for equality, which
107 		 * could not fail: that value is 128K aligned, so it agreed
108 		 * with the rounded-up offset even when the base was not 128K
109 		 * aligned - exactly the case this fixes.
110 		 */
111 		xe_assert_msg(xe, offset + ccs_size <=
112 			      xe_mmio_read64_2x32(&gt_to_tile(gt)->mmio, GSMBASE),
113 			      "CCS overlaps GSM.\n");
114 	} else {
115 		reg = xe_gt_mcr_unicast_read_any(gt, XEHP_FLAT_CCS_BASE_ADDR);
116 		offset = (u64)REG_FIELD_GET(XEHP_FLAT_CCS_PTR, reg) * SZ_64K;
117 	}
118 
119 	*poffset = offset;
120 
121 	return 0;
122 }
123 
124 /*
125  * tile_vram_size() - Collect vram size and offset information
126  * @tile: tile to get info for
127  * @vram_size: available vram (size - device reserved portions)
128  * @tile_size: actual vram size
129  * @tile_offset: physical start point in the vram address space
130  *
131  * There are 4 places for size information:
132  * - io size (from pci_resource_len of LMEM bar) (only used for small bar and DG1)
133  * - TILEx size (actual vram size)
134  * - GSMBASE offset (TILEx - "stolen")
135  * - CSSBASE offset (TILEx - CSS space necessary)
136  *
137  * CSSBASE is always a lower/smaller offset then GSMBASE.
138  *
139  * The actual available size of memory is to the CCS or GSM base.
140  * NOTE: multi-tile bases will include the tile offset.
141  *
142  */
tile_vram_size(struct xe_tile * tile,u64 * vram_size,u64 * tile_size,u64 * tile_offset)143 static int tile_vram_size(struct xe_tile *tile, u64 *vram_size,
144 			  u64 *tile_size, u64 *tile_offset)
145 {
146 	struct xe_device *xe = tile_to_xe(tile);
147 	struct xe_gt *gt = tile->primary_gt;
148 	u64 offset;
149 	u32 reg;
150 
151 	if (IS_SRIOV_VF(xe)) {
152 		struct xe_tile *t;
153 		int id;
154 
155 		offset = 0;
156 		for_each_tile(t, xe, id)
157 			for_each_if(t->id < tile->id)
158 				offset += xe_tile_sriov_vf_lmem(t);
159 
160 		*tile_size = xe_tile_sriov_vf_lmem(tile);
161 		*vram_size = *tile_size;
162 		*tile_offset = offset;
163 
164 		return 0;
165 	}
166 
167 	/* actual size */
168 	if (unlikely(xe->info.platform == XE_DG1)) {
169 		*tile_size = pci_resource_len(to_pci_dev(xe->drm.dev), LMEM_BAR);
170 		*tile_offset = 0;
171 	} else {
172 		reg = xe_mmio_read32(&tile->mmio, SG_TILE_ADDR_RANGE(tile->id));
173 		*tile_size = (u64)REG_FIELD_GET(GENMASK(17, 8), reg) * SZ_1G;
174 		*tile_offset = (u64)REG_FIELD_GET(GENMASK(7, 1), reg) * SZ_1G;
175 	}
176 
177 	/* minus device usage */
178 	if (xe->info.has_flat_ccs) {
179 		int ret = get_flat_ccs_offset(gt, *tile_size, &offset);
180 
181 		if (ret)
182 			return ret;
183 	} else {
184 		offset = xe_mmio_read64_2x32(&tile->mmio, GSMBASE);
185 	}
186 
187 	/* remove the tile offset so we have just the available size */
188 	*vram_size = offset - *tile_offset;
189 
190 	return 0;
191 }
192 
vram_fini(void * arg)193 static void vram_fini(void *arg)
194 {
195 	struct xe_device *xe = arg;
196 	struct xe_tile *tile;
197 	int id;
198 
199 	xe->mem.vram->mapping = NULL;
200 
201 	for_each_tile(tile, xe, id) {
202 		tile->mem.vram->mapping = NULL;
203 		if (tile->mem.kernel_vram)
204 			tile->mem.kernel_vram->mapping = NULL;
205 	}
206 }
207 
xe_vram_region_alloc(struct xe_device * xe,u8 id,u32 placement)208 struct xe_vram_region *xe_vram_region_alloc(struct xe_device *xe, u8 id, u32 placement)
209 {
210 	struct xe_vram_region *vram;
211 	struct drm_device *drm = &xe->drm;
212 
213 	xe_assert(xe, id < xe->info.tile_count);
214 
215 	vram = drmm_kzalloc(drm, sizeof(*vram), GFP_KERNEL);
216 	if (!vram)
217 		return NULL;
218 
219 	vram->xe = xe;
220 	vram->id = id;
221 	vram->placement = placement;
222 #if defined(CONFIG_DRM_XE_PAGEMAP)
223 	vram->migrate = xe->tiles[id].migrate;
224 #endif
225 	return vram;
226 }
227 
print_vram_region_info(struct xe_device * xe,struct xe_vram_region * vram)228 static void print_vram_region_info(struct xe_device *xe, struct xe_vram_region *vram)
229 {
230 	struct drm_device *drm = &xe->drm;
231 
232 	if (vram->io_size < vram->usable_size)
233 		drm_info(drm, "Small BAR device\n");
234 
235 	drm_info(drm,
236 		 "VRAM[%u]: Actual physical size %pa, usable size exclude stolen %pa, CPU accessible size %pa\n",
237 		 vram->id, &vram->actual_physical_size, &vram->usable_size, &vram->io_size);
238 	drm_info(drm, "VRAM[%u]: DPA range: [%pa-%llx], io range: [%pa-%llx]\n",
239 		 vram->id, &vram->dpa_base, vram->dpa_base + (u64)vram->actual_physical_size,
240 		 &vram->io_start, vram->io_start + (u64)vram->io_size);
241 }
242 
vram_region_init(struct xe_device * xe,struct xe_vram_region * vram,struct xe_vram_region * lmem_bar,u64 offset,u64 usable_size,u64 region_size,resource_size_t remain_io_size)243 static int vram_region_init(struct xe_device *xe, struct xe_vram_region *vram,
244 			    struct xe_vram_region *lmem_bar, u64 offset, u64 usable_size,
245 			    u64 region_size, resource_size_t remain_io_size)
246 {
247 	/* Check if VRAM region is already initialized */
248 	if (vram->mapping)
249 		return 0;
250 
251 	vram->actual_physical_size = region_size;
252 	vram->io_start = lmem_bar->io_start + offset;
253 	vram->io_size = min_t(u64, usable_size, remain_io_size);
254 
255 	if (!vram->io_size) {
256 		drm_err(&xe->drm, "Tile without any CPU visible VRAM. Aborting.\n");
257 		return -ENODEV;
258 	}
259 
260 	vram->dpa_base = lmem_bar->dpa_base + offset;
261 	vram->mapping = lmem_bar->mapping + offset;
262 	vram->usable_size = usable_size;
263 
264 	print_vram_region_info(xe, vram);
265 
266 	return 0;
267 }
268 
269 /**
270  * xe_map_resource_to_region - Map ttm resource to vram memory region
271  * @res: The ttm resource
272  *
273  * Get vram memory region using vram memory manager managing this resource
274  *
275  * Returns: pointer to xe_vram_region
276  */
xe_map_resource_to_region(struct ttm_resource * res)277 struct xe_vram_region *xe_map_resource_to_region(struct ttm_resource *res)
278 {
279 	struct xe_device *xe = ttm_to_xe_device(res->bo->bdev);
280 	struct ttm_resource_manager *mgr;
281 	struct xe_ttm_vram_mgr *vram_mgr;
282 
283 	xe_assert(xe, mem_type_is_vram(res->mem_type));
284 	mgr = ttm_manager_type(&xe->ttm, res->mem_type);
285 	vram_mgr = to_xe_ttm_vram_mgr(mgr);
286 
287 	return container_of(vram_mgr, struct xe_vram_region, ttm);
288 }
289 
290 /**
291  * xe_vram_probe() - Probe VRAM configuration
292  * @xe: the &xe_device
293  *
294  * Collect VRAM size and offset information for all tiles.
295  *
296  * Return: 0 on success, error code on failure
297  */
xe_vram_probe(struct xe_device * xe)298 int xe_vram_probe(struct xe_device *xe)
299 {
300 	struct xe_tile *tile;
301 	struct xe_vram_region lmem_bar;
302 	resource_size_t remain_io_size;
303 	u64 available_size = 0;
304 	u64 total_size = 0;
305 	int err;
306 	u8 id;
307 
308 	if (!IS_DGFX(xe))
309 		return 0;
310 
311 	err = determine_lmem_bar_size(xe, &lmem_bar);
312 	if (err)
313 		return err;
314 	drm_info(&xe->drm, "VISIBLE VRAM: %pa, %pa\n", &lmem_bar.io_start, &lmem_bar.io_size);
315 
316 	remain_io_size = lmem_bar.io_size;
317 
318 	for_each_tile(tile, xe, id) {
319 		u64 region_size;
320 		u64 usable_size;
321 		u64 tile_offset;
322 
323 		err = tile_vram_size(tile, &usable_size, &region_size, &tile_offset);
324 		if (err)
325 			return err;
326 
327 		total_size += region_size;
328 		available_size += usable_size;
329 
330 		err = vram_region_init(xe, tile->mem.vram, &lmem_bar, tile_offset, usable_size,
331 				       region_size, remain_io_size);
332 		if (err)
333 			return err;
334 
335 		if (total_size > lmem_bar.io_size) {
336 			drm_info(&xe->drm, "VRAM: %pa is larger than resource %pa\n",
337 				 &total_size, &lmem_bar.io_size);
338 		}
339 
340 		remain_io_size -= min_t(u64, tile->mem.vram->actual_physical_size, remain_io_size);
341 	}
342 
343 	err = vram_region_init(xe, xe->mem.vram, &lmem_bar, 0, available_size, total_size,
344 			       lmem_bar.io_size);
345 	if (err)
346 		return err;
347 
348 	return devm_add_action_or_reset(xe->drm.dev, vram_fini, xe);
349 }
350 
351 /**
352  * xe_vram_region_io_start - Get the IO start of a VRAM region
353  * @vram: the VRAM region
354  *
355  * Return: the IO start of the VRAM region, or 0 if not valid
356  */
xe_vram_region_io_start(const struct xe_vram_region * vram)357 resource_size_t xe_vram_region_io_start(const struct xe_vram_region *vram)
358 {
359 	return vram ? vram->io_start : 0;
360 }
361 
362 /**
363  * xe_vram_region_io_size - Get the IO size of a VRAM region
364  * @vram: the VRAM region
365  *
366  * Return: the IO size of the VRAM region, or 0 if not valid
367  */
xe_vram_region_io_size(const struct xe_vram_region * vram)368 resource_size_t xe_vram_region_io_size(const struct xe_vram_region *vram)
369 {
370 	return vram ? vram->io_size : 0;
371 }
372 
373 /**
374  * xe_vram_region_dpa_base - Get the DPA base of a VRAM region
375  * @vram: the VRAM region
376  *
377  * Return: the DPA base of the VRAM region, or 0 if not valid
378  */
xe_vram_region_dpa_base(const struct xe_vram_region * vram)379 resource_size_t xe_vram_region_dpa_base(const struct xe_vram_region *vram)
380 {
381 	return vram ? vram->dpa_base : 0;
382 }
383 
384 /**
385  * xe_vram_region_usable_size - Get the usable size of a VRAM region
386  * @vram: the VRAM region
387  *
388  * Return: the usable size of the VRAM region, or 0 if not valid
389  */
xe_vram_region_usable_size(const struct xe_vram_region * vram)390 resource_size_t xe_vram_region_usable_size(const struct xe_vram_region *vram)
391 {
392 	return vram ? vram->usable_size : 0;
393 }
394 
395 /**
396  * xe_vram_region_actual_physical_size - Get the actual physical size of a VRAM region
397  * @vram: the VRAM region
398  *
399  * Return: the actual physical size of the VRAM region, or 0 if not valid
400  */
xe_vram_region_actual_physical_size(const struct xe_vram_region * vram)401 resource_size_t xe_vram_region_actual_physical_size(const struct xe_vram_region *vram)
402 {
403 	return vram ? vram->actual_physical_size : 0;
404 }
405 EXPORT_SYMBOL_IF_KUNIT(xe_vram_region_actual_physical_size);
406