Merge branch 'work.mount0' of git://git.kernel.org/pub/scm/linux/kernel/git/viro/vfs
[sfrench/cifs-2.6.git] / drivers / gpu / drm / amd / amdkfd / kfd_crat.c
1 /*
2  * Copyright 2015-2017 Advanced Micro Devices, Inc.
3  *
4  * Permission is hereby granted, free of charge, to any person obtaining a
5  * copy of this software and associated documentation files (the "Software"),
6  * to deal in the Software without restriction, including without limitation
7  * the rights to use, copy, modify, merge, publish, distribute, sublicense,
8  * and/or sell copies of the Software, and to permit persons to whom the
9  * Software is furnished to do so, subject to the following conditions:
10  *
11  * The above copyright notice and this permission notice shall be included in
12  * all copies or substantial portions of the Software.
13  *
14  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
15  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
16  * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
17  * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
18  * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
19  * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
20  * OTHER DEALINGS IN THE SOFTWARE.
21  */
22
23 #include <linux/pci.h>
24 #include <linux/acpi.h>
25 #include "kfd_crat.h"
26 #include "kfd_priv.h"
27 #include "kfd_topology.h"
28 #include "kfd_iommu.h"
29 #include "amdgpu_amdkfd.h"
30
31 /* GPU Processor ID base for dGPUs for which VCRAT needs to be created.
32  * GPU processor ID are expressed with Bit[31]=1.
33  * The base is set to 0x8000_0000 + 0x1000 to avoid collision with GPU IDs
34  * used in the CRAT.
35  */
36 static uint32_t gpu_processor_id_low = 0x80001000;
37
38 /* Return the next available gpu_processor_id and increment it for next GPU
39  *      @total_cu_count - Total CUs present in the GPU including ones
40  *                        masked off
41  */
42 static inline unsigned int get_and_inc_gpu_processor_id(
43                                 unsigned int total_cu_count)
44 {
45         int current_id = gpu_processor_id_low;
46
47         gpu_processor_id_low += total_cu_count;
48         return current_id;
49 }
50
51 /* Static table to describe GPU Cache information */
52 struct kfd_gpu_cache_info {
53         uint32_t        cache_size;
54         uint32_t        cache_level;
55         uint32_t        flags;
56         /* Indicates how many Compute Units share this cache
57          * Value = 1 indicates the cache is not shared
58          */
59         uint32_t        num_cu_shared;
60 };
61
62 static struct kfd_gpu_cache_info kaveri_cache_info[] = {
63         {
64                 /* TCP L1 Cache per CU */
65                 .cache_size = 16,
66                 .cache_level = 1,
67                 .flags = (CRAT_CACHE_FLAGS_ENABLED |
68                                 CRAT_CACHE_FLAGS_DATA_CACHE |
69                                 CRAT_CACHE_FLAGS_SIMD_CACHE),
70                 .num_cu_shared = 1,
71
72         },
73         {
74                 /* Scalar L1 Instruction Cache (in SQC module) per bank */
75                 .cache_size = 16,
76                 .cache_level = 1,
77                 .flags = (CRAT_CACHE_FLAGS_ENABLED |
78                                 CRAT_CACHE_FLAGS_INST_CACHE |
79                                 CRAT_CACHE_FLAGS_SIMD_CACHE),
80                 .num_cu_shared = 2,
81         },
82         {
83                 /* Scalar L1 Data Cache (in SQC module) per bank */
84                 .cache_size = 8,
85                 .cache_level = 1,
86                 .flags = (CRAT_CACHE_FLAGS_ENABLED |
87                                 CRAT_CACHE_FLAGS_DATA_CACHE |
88                                 CRAT_CACHE_FLAGS_SIMD_CACHE),
89                 .num_cu_shared = 2,
90         },
91
92         /* TODO: Add L2 Cache information */
93 };
94
95
96 static struct kfd_gpu_cache_info carrizo_cache_info[] = {
97         {
98                 /* TCP L1 Cache per CU */
99                 .cache_size = 16,
100                 .cache_level = 1,
101                 .flags = (CRAT_CACHE_FLAGS_ENABLED |
102                                 CRAT_CACHE_FLAGS_DATA_CACHE |
103                                 CRAT_CACHE_FLAGS_SIMD_CACHE),
104                 .num_cu_shared = 1,
105         },
106         {
107                 /* Scalar L1 Instruction Cache (in SQC module) per bank */
108                 .cache_size = 8,
109                 .cache_level = 1,
110                 .flags = (CRAT_CACHE_FLAGS_ENABLED |
111                                 CRAT_CACHE_FLAGS_INST_CACHE |
112                                 CRAT_CACHE_FLAGS_SIMD_CACHE),
113                 .num_cu_shared = 4,
114         },
115         {
116                 /* Scalar L1 Data Cache (in SQC module) per bank. */
117                 .cache_size = 4,
118                 .cache_level = 1,
119                 .flags = (CRAT_CACHE_FLAGS_ENABLED |
120                                 CRAT_CACHE_FLAGS_DATA_CACHE |
121                                 CRAT_CACHE_FLAGS_SIMD_CACHE),
122                 .num_cu_shared = 4,
123         },
124
125         /* TODO: Add L2 Cache information */
126 };
127
128 /* NOTE: In future if more information is added to struct kfd_gpu_cache_info
129  * the following ASICs may need a separate table.
130  */
131 #define hawaii_cache_info kaveri_cache_info
132 #define tonga_cache_info carrizo_cache_info
133 #define fiji_cache_info  carrizo_cache_info
134 #define polaris10_cache_info carrizo_cache_info
135 #define polaris11_cache_info carrizo_cache_info
136 #define polaris12_cache_info carrizo_cache_info
137 #define vegam_cache_info carrizo_cache_info
138 /* TODO - check & update Vega10 cache details */
139 #define vega10_cache_info carrizo_cache_info
140 #define raven_cache_info carrizo_cache_info
141 /* TODO - check & update Navi10 cache details */
142 #define navi10_cache_info carrizo_cache_info
143
144 static void kfd_populated_cu_info_cpu(struct kfd_topology_device *dev,
145                 struct crat_subtype_computeunit *cu)
146 {
147         dev->node_props.cpu_cores_count = cu->num_cpu_cores;
148         dev->node_props.cpu_core_id_base = cu->processor_id_low;
149         if (cu->hsa_capability & CRAT_CU_FLAGS_IOMMU_PRESENT)
150                 dev->node_props.capability |= HSA_CAP_ATS_PRESENT;
151
152         pr_debug("CU CPU: cores=%d id_base=%d\n", cu->num_cpu_cores,
153                         cu->processor_id_low);
154 }
155
156 static void kfd_populated_cu_info_gpu(struct kfd_topology_device *dev,
157                 struct crat_subtype_computeunit *cu)
158 {
159         dev->node_props.simd_id_base = cu->processor_id_low;
160         dev->node_props.simd_count = cu->num_simd_cores;
161         dev->node_props.lds_size_in_kb = cu->lds_size_in_kb;
162         dev->node_props.max_waves_per_simd = cu->max_waves_simd;
163         dev->node_props.wave_front_size = cu->wave_front_size;
164         dev->node_props.array_count = cu->array_count;
165         dev->node_props.cu_per_simd_array = cu->num_cu_per_array;
166         dev->node_props.simd_per_cu = cu->num_simd_per_cu;
167         dev->node_props.max_slots_scratch_cu = cu->max_slots_scatch_cu;
168         if (cu->hsa_capability & CRAT_CU_FLAGS_HOT_PLUGGABLE)
169                 dev->node_props.capability |= HSA_CAP_HOT_PLUGGABLE;
170         pr_debug("CU GPU: id_base=%d\n", cu->processor_id_low);
171 }
172
173 /* kfd_parse_subtype_cu - parse compute unit subtypes and attach it to correct
174  * topology device present in the device_list
175  */
176 static int kfd_parse_subtype_cu(struct crat_subtype_computeunit *cu,
177                                 struct list_head *device_list)
178 {
179         struct kfd_topology_device *dev;
180
181         pr_debug("Found CU entry in CRAT table with proximity_domain=%d caps=%x\n",
182                         cu->proximity_domain, cu->hsa_capability);
183         list_for_each_entry(dev, device_list, list) {
184                 if (cu->proximity_domain == dev->proximity_domain) {
185                         if (cu->flags & CRAT_CU_FLAGS_CPU_PRESENT)
186                                 kfd_populated_cu_info_cpu(dev, cu);
187
188                         if (cu->flags & CRAT_CU_FLAGS_GPU_PRESENT)
189                                 kfd_populated_cu_info_gpu(dev, cu);
190                         break;
191                 }
192         }
193
194         return 0;
195 }
196
197 static struct kfd_mem_properties *
198 find_subtype_mem(uint32_t heap_type, uint32_t flags, uint32_t width,
199                 struct kfd_topology_device *dev)
200 {
201         struct kfd_mem_properties *props;
202
203         list_for_each_entry(props, &dev->mem_props, list) {
204                 if (props->heap_type == heap_type
205                                 && props->flags == flags
206                                 && props->width == width)
207                         return props;
208         }
209
210         return NULL;
211 }
212 /* kfd_parse_subtype_mem - parse memory subtypes and attach it to correct
213  * topology device present in the device_list
214  */
215 static int kfd_parse_subtype_mem(struct crat_subtype_memory *mem,
216                                 struct list_head *device_list)
217 {
218         struct kfd_mem_properties *props;
219         struct kfd_topology_device *dev;
220         uint32_t heap_type;
221         uint64_t size_in_bytes;
222         uint32_t flags = 0;
223         uint32_t width;
224
225         pr_debug("Found memory entry in CRAT table with proximity_domain=%d\n",
226                         mem->proximity_domain);
227         list_for_each_entry(dev, device_list, list) {
228                 if (mem->proximity_domain == dev->proximity_domain) {
229                         /* We're on GPU node */
230                         if (dev->node_props.cpu_cores_count == 0) {
231                                 /* APU */
232                                 if (mem->visibility_type == 0)
233                                         heap_type =
234                                                 HSA_MEM_HEAP_TYPE_FB_PRIVATE;
235                                 /* dGPU */
236                                 else
237                                         heap_type = mem->visibility_type;
238                         } else
239                                 heap_type = HSA_MEM_HEAP_TYPE_SYSTEM;
240
241                         if (mem->flags & CRAT_MEM_FLAGS_HOT_PLUGGABLE)
242                                 flags |= HSA_MEM_FLAGS_HOT_PLUGGABLE;
243                         if (mem->flags & CRAT_MEM_FLAGS_NON_VOLATILE)
244                                 flags |= HSA_MEM_FLAGS_NON_VOLATILE;
245
246                         size_in_bytes =
247                                 ((uint64_t)mem->length_high << 32) +
248                                                         mem->length_low;
249                         width = mem->width;
250
251                         /* Multiple banks of the same type are aggregated into
252                          * one. User mode doesn't care about multiple physical
253                          * memory segments. It's managed as a single virtual
254                          * heap for user mode.
255                          */
256                         props = find_subtype_mem(heap_type, flags, width, dev);
257                         if (props) {
258                                 props->size_in_bytes += size_in_bytes;
259                                 break;
260                         }
261
262                         props = kfd_alloc_struct(props);
263                         if (!props)
264                                 return -ENOMEM;
265
266                         props->heap_type = heap_type;
267                         props->flags = flags;
268                         props->size_in_bytes = size_in_bytes;
269                         props->width = width;
270
271                         dev->node_props.mem_banks_count++;
272                         list_add_tail(&props->list, &dev->mem_props);
273
274                         break;
275                 }
276         }
277
278         return 0;
279 }
280
281 /* kfd_parse_subtype_cache - parse cache subtypes and attach it to correct
282  * topology device present in the device_list
283  */
284 static int kfd_parse_subtype_cache(struct crat_subtype_cache *cache,
285                         struct list_head *device_list)
286 {
287         struct kfd_cache_properties *props;
288         struct kfd_topology_device *dev;
289         uint32_t id;
290         uint32_t total_num_of_cu;
291
292         id = cache->processor_id_low;
293
294         pr_debug("Found cache entry in CRAT table with processor_id=%d\n", id);
295         list_for_each_entry(dev, device_list, list) {
296                 total_num_of_cu = (dev->node_props.array_count *
297                                         dev->node_props.cu_per_simd_array);
298
299                 /* Cache infomration in CRAT doesn't have proximity_domain
300                  * information as it is associated with a CPU core or GPU
301                  * Compute Unit. So map the cache using CPU core Id or SIMD
302                  * (GPU) ID.
303                  * TODO: This works because currently we can safely assume that
304                  *  Compute Units are parsed before caches are parsed. In
305                  *  future, remove this dependency
306                  */
307                 if ((id >= dev->node_props.cpu_core_id_base &&
308                         id <= dev->node_props.cpu_core_id_base +
309                                 dev->node_props.cpu_cores_count) ||
310                         (id >= dev->node_props.simd_id_base &&
311                         id < dev->node_props.simd_id_base +
312                                 total_num_of_cu)) {
313                         props = kfd_alloc_struct(props);
314                         if (!props)
315                                 return -ENOMEM;
316
317                         props->processor_id_low = id;
318                         props->cache_level = cache->cache_level;
319                         props->cache_size = cache->cache_size;
320                         props->cacheline_size = cache->cache_line_size;
321                         props->cachelines_per_tag = cache->lines_per_tag;
322                         props->cache_assoc = cache->associativity;
323                         props->cache_latency = cache->cache_latency;
324                         memcpy(props->sibling_map, cache->sibling_map,
325                                         sizeof(props->sibling_map));
326
327                         if (cache->flags & CRAT_CACHE_FLAGS_DATA_CACHE)
328                                 props->cache_type |= HSA_CACHE_TYPE_DATA;
329                         if (cache->flags & CRAT_CACHE_FLAGS_INST_CACHE)
330                                 props->cache_type |= HSA_CACHE_TYPE_INSTRUCTION;
331                         if (cache->flags & CRAT_CACHE_FLAGS_CPU_CACHE)
332                                 props->cache_type |= HSA_CACHE_TYPE_CPU;
333                         if (cache->flags & CRAT_CACHE_FLAGS_SIMD_CACHE)
334                                 props->cache_type |= HSA_CACHE_TYPE_HSACU;
335
336                         dev->cache_count++;
337                         dev->node_props.caches_count++;
338                         list_add_tail(&props->list, &dev->cache_props);
339
340                         break;
341                 }
342         }
343
344         return 0;
345 }
346
347 /* kfd_parse_subtype_iolink - parse iolink subtypes and attach it to correct
348  * topology device present in the device_list
349  */
350 static int kfd_parse_subtype_iolink(struct crat_subtype_iolink *iolink,
351                                         struct list_head *device_list)
352 {
353         struct kfd_iolink_properties *props = NULL, *props2;
354         struct kfd_topology_device *dev, *to_dev;
355         uint32_t id_from;
356         uint32_t id_to;
357
358         id_from = iolink->proximity_domain_from;
359         id_to = iolink->proximity_domain_to;
360
361         pr_debug("Found IO link entry in CRAT table with id_from=%d, id_to %d\n",
362                         id_from, id_to);
363         list_for_each_entry(dev, device_list, list) {
364                 if (id_from == dev->proximity_domain) {
365                         props = kfd_alloc_struct(props);
366                         if (!props)
367                                 return -ENOMEM;
368
369                         props->node_from = id_from;
370                         props->node_to = id_to;
371                         props->ver_maj = iolink->version_major;
372                         props->ver_min = iolink->version_minor;
373                         props->iolink_type = iolink->io_interface_type;
374
375                         if (props->iolink_type == CRAT_IOLINK_TYPE_PCIEXPRESS)
376                                 props->weight = 20;
377                         else if (props->iolink_type == CRAT_IOLINK_TYPE_XGMI)
378                                 props->weight = 15 * iolink->num_hops_xgmi;
379                         else
380                                 props->weight = node_distance(id_from, id_to);
381
382                         props->min_latency = iolink->minimum_latency;
383                         props->max_latency = iolink->maximum_latency;
384                         props->min_bandwidth = iolink->minimum_bandwidth_mbs;
385                         props->max_bandwidth = iolink->maximum_bandwidth_mbs;
386                         props->rec_transfer_size =
387                                         iolink->recommended_transfer_size;
388
389                         dev->io_link_count++;
390                         dev->node_props.io_links_count++;
391                         list_add_tail(&props->list, &dev->io_link_props);
392                         break;
393                 }
394         }
395
396         /* CPU topology is created before GPUs are detected, so CPU->GPU
397          * links are not built at that time. If a PCIe type is discovered, it
398          * means a GPU is detected and we are adding GPU->CPU to the topology.
399          * At this time, also add the corresponded CPU->GPU link if GPU
400          * is large bar.
401          * For xGMI, we only added the link with one direction in the crat
402          * table, add corresponded reversed direction link now.
403          */
404         if (props && (iolink->flags & CRAT_IOLINK_FLAGS_BI_DIRECTIONAL)) {
405                 to_dev = kfd_topology_device_by_proximity_domain(id_to);
406                 if (!to_dev)
407                         return -ENODEV;
408                 /* same everything but the other direction */
409                 props2 = kmemdup(props, sizeof(*props2), GFP_KERNEL);
410                 props2->node_from = id_to;
411                 props2->node_to = id_from;
412                 props2->kobj = NULL;
413                 to_dev->io_link_count++;
414                 to_dev->node_props.io_links_count++;
415                 list_add_tail(&props2->list, &to_dev->io_link_props);
416         }
417
418         return 0;
419 }
420
421 /* kfd_parse_subtype - parse subtypes and attach it to correct topology device
422  * present in the device_list
423  *      @sub_type_hdr - subtype section of crat_image
424  *      @device_list - list of topology devices present in this crat_image
425  */
426 static int kfd_parse_subtype(struct crat_subtype_generic *sub_type_hdr,
427                                 struct list_head *device_list)
428 {
429         struct crat_subtype_computeunit *cu;
430         struct crat_subtype_memory *mem;
431         struct crat_subtype_cache *cache;
432         struct crat_subtype_iolink *iolink;
433         int ret = 0;
434
435         switch (sub_type_hdr->type) {
436         case CRAT_SUBTYPE_COMPUTEUNIT_AFFINITY:
437                 cu = (struct crat_subtype_computeunit *)sub_type_hdr;
438                 ret = kfd_parse_subtype_cu(cu, device_list);
439                 break;
440         case CRAT_SUBTYPE_MEMORY_AFFINITY:
441                 mem = (struct crat_subtype_memory *)sub_type_hdr;
442                 ret = kfd_parse_subtype_mem(mem, device_list);
443                 break;
444         case CRAT_SUBTYPE_CACHE_AFFINITY:
445                 cache = (struct crat_subtype_cache *)sub_type_hdr;
446                 ret = kfd_parse_subtype_cache(cache, device_list);
447                 break;
448         case CRAT_SUBTYPE_TLB_AFFINITY:
449                 /*
450                  * For now, nothing to do here
451                  */
452                 pr_debug("Found TLB entry in CRAT table (not processing)\n");
453                 break;
454         case CRAT_SUBTYPE_CCOMPUTE_AFFINITY:
455                 /*
456                  * For now, nothing to do here
457                  */
458                 pr_debug("Found CCOMPUTE entry in CRAT table (not processing)\n");
459                 break;
460         case CRAT_SUBTYPE_IOLINK_AFFINITY:
461                 iolink = (struct crat_subtype_iolink *)sub_type_hdr;
462                 ret = kfd_parse_subtype_iolink(iolink, device_list);
463                 break;
464         default:
465                 pr_warn("Unknown subtype %d in CRAT\n",
466                                 sub_type_hdr->type);
467         }
468
469         return ret;
470 }
471
472 /* kfd_parse_crat_table - parse CRAT table. For each node present in CRAT
473  * create a kfd_topology_device and add in to device_list. Also parse
474  * CRAT subtypes and attach it to appropriate kfd_topology_device
475  *      @crat_image - input image containing CRAT
476  *      @device_list - [OUT] list of kfd_topology_device generated after
477  *                     parsing crat_image
478  *      @proximity_domain - Proximity domain of the first device in the table
479  *
480  *      Return - 0 if successful else -ve value
481  */
482 int kfd_parse_crat_table(void *crat_image, struct list_head *device_list,
483                          uint32_t proximity_domain)
484 {
485         struct kfd_topology_device *top_dev = NULL;
486         struct crat_subtype_generic *sub_type_hdr;
487         uint16_t node_id;
488         int ret = 0;
489         struct crat_header *crat_table = (struct crat_header *)crat_image;
490         uint16_t num_nodes;
491         uint32_t image_len;
492
493         if (!crat_image)
494                 return -EINVAL;
495
496         if (!list_empty(device_list)) {
497                 pr_warn("Error device list should be empty\n");
498                 return -EINVAL;
499         }
500
501         num_nodes = crat_table->num_domains;
502         image_len = crat_table->length;
503
504         pr_info("Parsing CRAT table with %d nodes\n", num_nodes);
505
506         for (node_id = 0; node_id < num_nodes; node_id++) {
507                 top_dev = kfd_create_topology_device(device_list);
508                 if (!top_dev)
509                         break;
510                 top_dev->proximity_domain = proximity_domain++;
511         }
512
513         if (!top_dev) {
514                 ret = -ENOMEM;
515                 goto err;
516         }
517
518         memcpy(top_dev->oem_id, crat_table->oem_id, CRAT_OEMID_LENGTH);
519         memcpy(top_dev->oem_table_id, crat_table->oem_table_id,
520                         CRAT_OEMTABLEID_LENGTH);
521         top_dev->oem_revision = crat_table->oem_revision;
522
523         sub_type_hdr = (struct crat_subtype_generic *)(crat_table+1);
524         while ((char *)sub_type_hdr + sizeof(struct crat_subtype_generic) <
525                         ((char *)crat_image) + image_len) {
526                 if (sub_type_hdr->flags & CRAT_SUBTYPE_FLAGS_ENABLED) {
527                         ret = kfd_parse_subtype(sub_type_hdr, device_list);
528                         if (ret)
529                                 break;
530                 }
531
532                 sub_type_hdr = (typeof(sub_type_hdr))((char *)sub_type_hdr +
533                                 sub_type_hdr->length);
534         }
535
536 err:
537         if (ret)
538                 kfd_release_topology_device_list(device_list);
539
540         return ret;
541 }
542
543 /* Helper function. See kfd_fill_gpu_cache_info for parameter description */
544 static int fill_in_pcache(struct crat_subtype_cache *pcache,
545                                 struct kfd_gpu_cache_info *pcache_info,
546                                 struct kfd_cu_info *cu_info,
547                                 int mem_available,
548                                 int cu_bitmask,
549                                 int cache_type, unsigned int cu_processor_id,
550                                 int cu_block)
551 {
552         unsigned int cu_sibling_map_mask;
553         int first_active_cu;
554
555         /* First check if enough memory is available */
556         if (sizeof(struct crat_subtype_cache) > mem_available)
557                 return -ENOMEM;
558
559         cu_sibling_map_mask = cu_bitmask;
560         cu_sibling_map_mask >>= cu_block;
561         cu_sibling_map_mask &=
562                 ((1 << pcache_info[cache_type].num_cu_shared) - 1);
563         first_active_cu = ffs(cu_sibling_map_mask);
564
565         /* CU could be inactive. In case of shared cache find the first active
566          * CU. and incase of non-shared cache check if the CU is inactive. If
567          * inactive active skip it
568          */
569         if (first_active_cu) {
570                 memset(pcache, 0, sizeof(struct crat_subtype_cache));
571                 pcache->type = CRAT_SUBTYPE_CACHE_AFFINITY;
572                 pcache->length = sizeof(struct crat_subtype_cache);
573                 pcache->flags = pcache_info[cache_type].flags;
574                 pcache->processor_id_low = cu_processor_id
575                                          + (first_active_cu - 1);
576                 pcache->cache_level = pcache_info[cache_type].cache_level;
577                 pcache->cache_size = pcache_info[cache_type].cache_size;
578
579                 /* Sibling map is w.r.t processor_id_low, so shift out
580                  * inactive CU
581                  */
582                 cu_sibling_map_mask =
583                         cu_sibling_map_mask >> (first_active_cu - 1);
584
585                 pcache->sibling_map[0] = (uint8_t)(cu_sibling_map_mask & 0xFF);
586                 pcache->sibling_map[1] =
587                                 (uint8_t)((cu_sibling_map_mask >> 8) & 0xFF);
588                 pcache->sibling_map[2] =
589                                 (uint8_t)((cu_sibling_map_mask >> 16) & 0xFF);
590                 pcache->sibling_map[3] =
591                                 (uint8_t)((cu_sibling_map_mask >> 24) & 0xFF);
592                 return 0;
593         }
594         return 1;
595 }
596
597 /* kfd_fill_gpu_cache_info - Fill GPU cache info using kfd_gpu_cache_info
598  * tables
599  *
600  *      @kdev - [IN] GPU device
601  *      @gpu_processor_id - [IN] GPU processor ID to which these caches
602  *                          associate
603  *      @available_size - [IN] Amount of memory available in pcache
604  *      @cu_info - [IN] Compute Unit info obtained from KGD
605  *      @pcache - [OUT] memory into which cache data is to be filled in.
606  *      @size_filled - [OUT] amount of data used up in pcache.
607  *      @num_of_entries - [OUT] number of caches added
608  */
609 static int kfd_fill_gpu_cache_info(struct kfd_dev *kdev,
610                         int gpu_processor_id,
611                         int available_size,
612                         struct kfd_cu_info *cu_info,
613                         struct crat_subtype_cache *pcache,
614                         int *size_filled,
615                         int *num_of_entries)
616 {
617         struct kfd_gpu_cache_info *pcache_info;
618         int num_of_cache_types = 0;
619         int i, j, k;
620         int ct = 0;
621         int mem_available = available_size;
622         unsigned int cu_processor_id;
623         int ret;
624
625         switch (kdev->device_info->asic_family) {
626         case CHIP_KAVERI:
627                 pcache_info = kaveri_cache_info;
628                 num_of_cache_types = ARRAY_SIZE(kaveri_cache_info);
629                 break;
630         case CHIP_HAWAII:
631                 pcache_info = hawaii_cache_info;
632                 num_of_cache_types = ARRAY_SIZE(hawaii_cache_info);
633                 break;
634         case CHIP_CARRIZO:
635                 pcache_info = carrizo_cache_info;
636                 num_of_cache_types = ARRAY_SIZE(carrizo_cache_info);
637                 break;
638         case CHIP_TONGA:
639                 pcache_info = tonga_cache_info;
640                 num_of_cache_types = ARRAY_SIZE(tonga_cache_info);
641                 break;
642         case CHIP_FIJI:
643                 pcache_info = fiji_cache_info;
644                 num_of_cache_types = ARRAY_SIZE(fiji_cache_info);
645                 break;
646         case CHIP_POLARIS10:
647                 pcache_info = polaris10_cache_info;
648                 num_of_cache_types = ARRAY_SIZE(polaris10_cache_info);
649                 break;
650         case CHIP_POLARIS11:
651                 pcache_info = polaris11_cache_info;
652                 num_of_cache_types = ARRAY_SIZE(polaris11_cache_info);
653                 break;
654         case CHIP_POLARIS12:
655                 pcache_info = polaris12_cache_info;
656                 num_of_cache_types = ARRAY_SIZE(polaris12_cache_info);
657                 break;
658         case CHIP_VEGAM:
659                 pcache_info = vegam_cache_info;
660                 num_of_cache_types = ARRAY_SIZE(vegam_cache_info);
661                 break;
662         case CHIP_VEGA10:
663         case CHIP_VEGA12:
664         case CHIP_VEGA20:
665                 pcache_info = vega10_cache_info;
666                 num_of_cache_types = ARRAY_SIZE(vega10_cache_info);
667                 break;
668         case CHIP_RAVEN:
669                 pcache_info = raven_cache_info;
670                 num_of_cache_types = ARRAY_SIZE(raven_cache_info);
671         case CHIP_NAVI10:
672                 pcache_info = navi10_cache_info;
673                 num_of_cache_types = ARRAY_SIZE(navi10_cache_info);
674                 break;
675         default:
676                 return -EINVAL;
677         }
678
679         *size_filled = 0;
680         *num_of_entries = 0;
681
682         /* For each type of cache listed in the kfd_gpu_cache_info table,
683          * go through all available Compute Units.
684          * The [i,j,k] loop will
685          *              if kfd_gpu_cache_info.num_cu_shared = 1
686          *                      will parse through all available CU
687          *              If (kfd_gpu_cache_info.num_cu_shared != 1)
688          *                      then it will consider only one CU from
689          *                      the shared unit
690          */
691
692         for (ct = 0; ct < num_of_cache_types; ct++) {
693                 cu_processor_id = gpu_processor_id;
694                 for (i = 0; i < cu_info->num_shader_engines; i++) {
695                         for (j = 0; j < cu_info->num_shader_arrays_per_engine;
696                                 j++) {
697                                 for (k = 0; k < cu_info->num_cu_per_sh;
698                                         k += pcache_info[ct].num_cu_shared) {
699
700                                         ret = fill_in_pcache(pcache,
701                                                 pcache_info,
702                                                 cu_info,
703                                                 mem_available,
704                                                 cu_info->cu_bitmap[i][j],
705                                                 ct,
706                                                 cu_processor_id,
707                                                 k);
708
709                                         if (ret < 0)
710                                                 break;
711
712                                         if (!ret) {
713                                                 pcache++;
714                                                 (*num_of_entries)++;
715                                                 mem_available -=
716                                                         sizeof(*pcache);
717                                                 (*size_filled) +=
718                                                         sizeof(*pcache);
719                                         }
720
721                                         /* Move to next CU block */
722                                         cu_processor_id +=
723                                                 pcache_info[ct].num_cu_shared;
724                                 }
725                         }
726                 }
727         }
728
729         pr_debug("Added [%d] GPU cache entries\n", *num_of_entries);
730
731         return 0;
732 }
733
734 /*
735  * kfd_create_crat_image_acpi - Allocates memory for CRAT image and
736  * copies CRAT from ACPI (if available).
737  * NOTE: Call kfd_destroy_crat_image to free CRAT image memory
738  *
739  *      @crat_image: CRAT read from ACPI. If no CRAT in ACPI then
740  *                   crat_image will be NULL
741  *      @size: [OUT] size of crat_image
742  *
743  *      Return 0 if successful else return error code
744  */
745 int kfd_create_crat_image_acpi(void **crat_image, size_t *size)
746 {
747         struct acpi_table_header *crat_table;
748         acpi_status status;
749         void *pcrat_image;
750
751         if (!crat_image)
752                 return -EINVAL;
753
754         *crat_image = NULL;
755
756         /* Fetch the CRAT table from ACPI */
757         status = acpi_get_table(CRAT_SIGNATURE, 0, &crat_table);
758         if (status == AE_NOT_FOUND) {
759                 pr_warn("CRAT table not found\n");
760                 return -ENODATA;
761         } else if (ACPI_FAILURE(status)) {
762                 const char *err = acpi_format_exception(status);
763
764                 pr_err("CRAT table error: %s\n", err);
765                 return -EINVAL;
766         }
767
768         if (ignore_crat) {
769                 pr_info("CRAT table disabled by module option\n");
770                 return -ENODATA;
771         }
772
773         pcrat_image = kmemdup(crat_table, crat_table->length, GFP_KERNEL);
774         if (!pcrat_image)
775                 return -ENOMEM;
776
777         *crat_image = pcrat_image;
778         *size = crat_table->length;
779
780         return 0;
781 }
782
783 /* Memory required to create Virtual CRAT.
784  * Since there is no easy way to predict the amount of memory required, the
785  * following amount are allocated for CPU and GPU Virtual CRAT. This is
786  * expected to cover all known conditions. But to be safe additional check
787  * is put in the code to ensure we don't overwrite.
788  */
789 #define VCRAT_SIZE_FOR_CPU      (2 * PAGE_SIZE)
790 #define VCRAT_SIZE_FOR_GPU      (3 * PAGE_SIZE)
791
792 /* kfd_fill_cu_for_cpu - Fill in Compute info for the given CPU NUMA node
793  *
794  *      @numa_node_id: CPU NUMA node id
795  *      @avail_size: Available size in the memory
796  *      @sub_type_hdr: Memory into which compute info will be filled in
797  *
798  *      Return 0 if successful else return -ve value
799  */
800 static int kfd_fill_cu_for_cpu(int numa_node_id, int *avail_size,
801                                 int proximity_domain,
802                                 struct crat_subtype_computeunit *sub_type_hdr)
803 {
804         const struct cpumask *cpumask;
805
806         *avail_size -= sizeof(struct crat_subtype_computeunit);
807         if (*avail_size < 0)
808                 return -ENOMEM;
809
810         memset(sub_type_hdr, 0, sizeof(struct crat_subtype_computeunit));
811
812         /* Fill in subtype header data */
813         sub_type_hdr->type = CRAT_SUBTYPE_COMPUTEUNIT_AFFINITY;
814         sub_type_hdr->length = sizeof(struct crat_subtype_computeunit);
815         sub_type_hdr->flags = CRAT_SUBTYPE_FLAGS_ENABLED;
816
817         cpumask = cpumask_of_node(numa_node_id);
818
819         /* Fill in CU data */
820         sub_type_hdr->flags |= CRAT_CU_FLAGS_CPU_PRESENT;
821         sub_type_hdr->proximity_domain = proximity_domain;
822         sub_type_hdr->processor_id_low = kfd_numa_node_to_apic_id(numa_node_id);
823         if (sub_type_hdr->processor_id_low == -1)
824                 return -EINVAL;
825
826         sub_type_hdr->num_cpu_cores = cpumask_weight(cpumask);
827
828         return 0;
829 }
830
831 /* kfd_fill_mem_info_for_cpu - Fill in Memory info for the given CPU NUMA node
832  *
833  *      @numa_node_id: CPU NUMA node id
834  *      @avail_size: Available size in the memory
835  *      @sub_type_hdr: Memory into which compute info will be filled in
836  *
837  *      Return 0 if successful else return -ve value
838  */
839 static int kfd_fill_mem_info_for_cpu(int numa_node_id, int *avail_size,
840                         int proximity_domain,
841                         struct crat_subtype_memory *sub_type_hdr)
842 {
843         uint64_t mem_in_bytes = 0;
844         pg_data_t *pgdat;
845         int zone_type;
846
847         *avail_size -= sizeof(struct crat_subtype_memory);
848         if (*avail_size < 0)
849                 return -ENOMEM;
850
851         memset(sub_type_hdr, 0, sizeof(struct crat_subtype_memory));
852
853         /* Fill in subtype header data */
854         sub_type_hdr->type = CRAT_SUBTYPE_MEMORY_AFFINITY;
855         sub_type_hdr->length = sizeof(struct crat_subtype_memory);
856         sub_type_hdr->flags = CRAT_SUBTYPE_FLAGS_ENABLED;
857
858         /* Fill in Memory Subunit data */
859
860         /* Unlike si_meminfo, si_meminfo_node is not exported. So
861          * the following lines are duplicated from si_meminfo_node
862          * function
863          */
864         pgdat = NODE_DATA(numa_node_id);
865         for (zone_type = 0; zone_type < MAX_NR_ZONES; zone_type++)
866                 mem_in_bytes += zone_managed_pages(&pgdat->node_zones[zone_type]);
867         mem_in_bytes <<= PAGE_SHIFT;
868
869         sub_type_hdr->length_low = lower_32_bits(mem_in_bytes);
870         sub_type_hdr->length_high = upper_32_bits(mem_in_bytes);
871         sub_type_hdr->proximity_domain = proximity_domain;
872
873         return 0;
874 }
875
876 #ifdef CONFIG_X86_64
877 static int kfd_fill_iolink_info_for_cpu(int numa_node_id, int *avail_size,
878                                 uint32_t *num_entries,
879                                 struct crat_subtype_iolink *sub_type_hdr)
880 {
881         int nid;
882         struct cpuinfo_x86 *c = &cpu_data(0);
883         uint8_t link_type;
884
885         if (c->x86_vendor == X86_VENDOR_AMD)
886                 link_type = CRAT_IOLINK_TYPE_HYPERTRANSPORT;
887         else
888                 link_type = CRAT_IOLINK_TYPE_QPI_1_1;
889
890         *num_entries = 0;
891
892         /* Create IO links from this node to other CPU nodes */
893         for_each_online_node(nid) {
894                 if (nid == numa_node_id) /* node itself */
895                         continue;
896
897                 *avail_size -= sizeof(struct crat_subtype_iolink);
898                 if (*avail_size < 0)
899                         return -ENOMEM;
900
901                 memset(sub_type_hdr, 0, sizeof(struct crat_subtype_iolink));
902
903                 /* Fill in subtype header data */
904                 sub_type_hdr->type = CRAT_SUBTYPE_IOLINK_AFFINITY;
905                 sub_type_hdr->length = sizeof(struct crat_subtype_iolink);
906                 sub_type_hdr->flags = CRAT_SUBTYPE_FLAGS_ENABLED;
907
908                 /* Fill in IO link data */
909                 sub_type_hdr->proximity_domain_from = numa_node_id;
910                 sub_type_hdr->proximity_domain_to = nid;
911                 sub_type_hdr->io_interface_type = link_type;
912
913                 (*num_entries)++;
914                 sub_type_hdr++;
915         }
916
917         return 0;
918 }
919 #endif
920
921 /* kfd_create_vcrat_image_cpu - Create Virtual CRAT for CPU
922  *
923  *      @pcrat_image: Fill in VCRAT for CPU
924  *      @size:  [IN] allocated size of crat_image.
925  *              [OUT] actual size of data filled in crat_image
926  */
927 static int kfd_create_vcrat_image_cpu(void *pcrat_image, size_t *size)
928 {
929         struct crat_header *crat_table = (struct crat_header *)pcrat_image;
930         struct acpi_table_header *acpi_table;
931         acpi_status status;
932         struct crat_subtype_generic *sub_type_hdr;
933         int avail_size = *size;
934         int numa_node_id;
935 #ifdef CONFIG_X86_64
936         uint32_t entries = 0;
937 #endif
938         int ret = 0;
939
940         if (!pcrat_image || avail_size < VCRAT_SIZE_FOR_CPU)
941                 return -EINVAL;
942
943         /* Fill in CRAT Header.
944          * Modify length and total_entries as subunits are added.
945          */
946         avail_size -= sizeof(struct crat_header);
947         if (avail_size < 0)
948                 return -ENOMEM;
949
950         memset(crat_table, 0, sizeof(struct crat_header));
951         memcpy(&crat_table->signature, CRAT_SIGNATURE,
952                         sizeof(crat_table->signature));
953         crat_table->length = sizeof(struct crat_header);
954
955         status = acpi_get_table("DSDT", 0, &acpi_table);
956         if (status != AE_OK)
957                 pr_warn("DSDT table not found for OEM information\n");
958         else {
959                 crat_table->oem_revision = acpi_table->revision;
960                 memcpy(crat_table->oem_id, acpi_table->oem_id,
961                                 CRAT_OEMID_LENGTH);
962                 memcpy(crat_table->oem_table_id, acpi_table->oem_table_id,
963                                 CRAT_OEMTABLEID_LENGTH);
964         }
965         crat_table->total_entries = 0;
966         crat_table->num_domains = 0;
967
968         sub_type_hdr = (struct crat_subtype_generic *)(crat_table+1);
969
970         for_each_online_node(numa_node_id) {
971                 if (kfd_numa_node_to_apic_id(numa_node_id) == -1)
972                         continue;
973
974                 /* Fill in Subtype: Compute Unit */
975                 ret = kfd_fill_cu_for_cpu(numa_node_id, &avail_size,
976                         crat_table->num_domains,
977                         (struct crat_subtype_computeunit *)sub_type_hdr);
978                 if (ret < 0)
979                         return ret;
980                 crat_table->length += sub_type_hdr->length;
981                 crat_table->total_entries++;
982
983                 sub_type_hdr = (typeof(sub_type_hdr))((char *)sub_type_hdr +
984                         sub_type_hdr->length);
985
986                 /* Fill in Subtype: Memory */
987                 ret = kfd_fill_mem_info_for_cpu(numa_node_id, &avail_size,
988                         crat_table->num_domains,
989                         (struct crat_subtype_memory *)sub_type_hdr);
990                 if (ret < 0)
991                         return ret;
992                 crat_table->length += sub_type_hdr->length;
993                 crat_table->total_entries++;
994
995                 sub_type_hdr = (typeof(sub_type_hdr))((char *)sub_type_hdr +
996                         sub_type_hdr->length);
997
998                 /* Fill in Subtype: IO Link */
999 #ifdef CONFIG_X86_64
1000                 ret = kfd_fill_iolink_info_for_cpu(numa_node_id, &avail_size,
1001                                 &entries,
1002                                 (struct crat_subtype_iolink *)sub_type_hdr);
1003                 if (ret < 0)
1004                         return ret;
1005                 crat_table->length += (sub_type_hdr->length * entries);
1006                 crat_table->total_entries += entries;
1007
1008                 sub_type_hdr = (typeof(sub_type_hdr))((char *)sub_type_hdr +
1009                                 sub_type_hdr->length * entries);
1010 #else
1011                 pr_info("IO link not available for non x86 platforms\n");
1012 #endif
1013
1014                 crat_table->num_domains++;
1015         }
1016
1017         /* TODO: Add cache Subtype for CPU.
1018          * Currently, CPU cache information is available in function
1019          * detect_cache_attributes(cpu) defined in the file
1020          * ./arch/x86/kernel/cpu/intel_cacheinfo.c. This function is not
1021          * exported and to get the same information the code needs to be
1022          * duplicated.
1023          */
1024
1025         *size = crat_table->length;
1026         pr_info("Virtual CRAT table created for CPU\n");
1027
1028         return 0;
1029 }
1030
1031 static int kfd_fill_gpu_memory_affinity(int *avail_size,
1032                 struct kfd_dev *kdev, uint8_t type, uint64_t size,
1033                 struct crat_subtype_memory *sub_type_hdr,
1034                 uint32_t proximity_domain,
1035                 const struct kfd_local_mem_info *local_mem_info)
1036 {
1037         *avail_size -= sizeof(struct crat_subtype_memory);
1038         if (*avail_size < 0)
1039                 return -ENOMEM;
1040
1041         memset((void *)sub_type_hdr, 0, sizeof(struct crat_subtype_memory));
1042         sub_type_hdr->type = CRAT_SUBTYPE_MEMORY_AFFINITY;
1043         sub_type_hdr->length = sizeof(struct crat_subtype_memory);
1044         sub_type_hdr->flags |= CRAT_SUBTYPE_FLAGS_ENABLED;
1045
1046         sub_type_hdr->proximity_domain = proximity_domain;
1047
1048         pr_debug("Fill gpu memory affinity - type 0x%x size 0x%llx\n",
1049                         type, size);
1050
1051         sub_type_hdr->length_low = lower_32_bits(size);
1052         sub_type_hdr->length_high = upper_32_bits(size);
1053
1054         sub_type_hdr->width = local_mem_info->vram_width;
1055         sub_type_hdr->visibility_type = type;
1056
1057         return 0;
1058 }
1059
1060 /* kfd_fill_gpu_direct_io_link - Fill in direct io link from GPU
1061  * to its NUMA node
1062  *      @avail_size: Available size in the memory
1063  *      @kdev - [IN] GPU device
1064  *      @sub_type_hdr: Memory into which io link info will be filled in
1065  *      @proximity_domain - proximity domain of the GPU node
1066  *
1067  *      Return 0 if successful else return -ve value
1068  */
1069 static int kfd_fill_gpu_direct_io_link_to_cpu(int *avail_size,
1070                         struct kfd_dev *kdev,
1071                         struct crat_subtype_iolink *sub_type_hdr,
1072                         uint32_t proximity_domain)
1073 {
1074         *avail_size -= sizeof(struct crat_subtype_iolink);
1075         if (*avail_size < 0)
1076                 return -ENOMEM;
1077
1078         memset((void *)sub_type_hdr, 0, sizeof(struct crat_subtype_iolink));
1079
1080         /* Fill in subtype header data */
1081         sub_type_hdr->type = CRAT_SUBTYPE_IOLINK_AFFINITY;
1082         sub_type_hdr->length = sizeof(struct crat_subtype_iolink);
1083         sub_type_hdr->flags |= CRAT_SUBTYPE_FLAGS_ENABLED;
1084         if (kfd_dev_is_large_bar(kdev))
1085                 sub_type_hdr->flags |= CRAT_IOLINK_FLAGS_BI_DIRECTIONAL;
1086
1087         /* Fill in IOLINK subtype.
1088          * TODO: Fill-in other fields of iolink subtype
1089          */
1090         sub_type_hdr->io_interface_type = CRAT_IOLINK_TYPE_PCIEXPRESS;
1091         sub_type_hdr->proximity_domain_from = proximity_domain;
1092 #ifdef CONFIG_NUMA
1093         if (kdev->pdev->dev.numa_node == NUMA_NO_NODE)
1094                 sub_type_hdr->proximity_domain_to = 0;
1095         else
1096                 sub_type_hdr->proximity_domain_to = kdev->pdev->dev.numa_node;
1097 #else
1098         sub_type_hdr->proximity_domain_to = 0;
1099 #endif
1100         return 0;
1101 }
1102
1103 static int kfd_fill_gpu_xgmi_link_to_gpu(int *avail_size,
1104                         struct kfd_dev *kdev,
1105                         struct kfd_dev *peer_kdev,
1106                         struct crat_subtype_iolink *sub_type_hdr,
1107                         uint32_t proximity_domain_from,
1108                         uint32_t proximity_domain_to)
1109 {
1110         *avail_size -= sizeof(struct crat_subtype_iolink);
1111         if (*avail_size < 0)
1112                 return -ENOMEM;
1113
1114         memset((void *)sub_type_hdr, 0, sizeof(struct crat_subtype_iolink));
1115
1116         sub_type_hdr->type = CRAT_SUBTYPE_IOLINK_AFFINITY;
1117         sub_type_hdr->length = sizeof(struct crat_subtype_iolink);
1118         sub_type_hdr->flags |= CRAT_SUBTYPE_FLAGS_ENABLED |
1119                                CRAT_IOLINK_FLAGS_BI_DIRECTIONAL;
1120
1121         sub_type_hdr->io_interface_type = CRAT_IOLINK_TYPE_XGMI;
1122         sub_type_hdr->proximity_domain_from = proximity_domain_from;
1123         sub_type_hdr->proximity_domain_to = proximity_domain_to;
1124         sub_type_hdr->num_hops_xgmi =
1125                 amdgpu_amdkfd_get_xgmi_hops_count(kdev->kgd, peer_kdev->kgd);
1126         return 0;
1127 }
1128
1129 /* kfd_create_vcrat_image_gpu - Create Virtual CRAT for CPU
1130  *
1131  *      @pcrat_image: Fill in VCRAT for GPU
1132  *      @size:  [IN] allocated size of crat_image.
1133  *              [OUT] actual size of data filled in crat_image
1134  */
1135 static int kfd_create_vcrat_image_gpu(void *pcrat_image,
1136                                       size_t *size, struct kfd_dev *kdev,
1137                                       uint32_t proximity_domain)
1138 {
1139         struct crat_header *crat_table = (struct crat_header *)pcrat_image;
1140         struct crat_subtype_generic *sub_type_hdr;
1141         struct kfd_local_mem_info local_mem_info;
1142         struct kfd_topology_device *peer_dev;
1143         struct crat_subtype_computeunit *cu;
1144         struct kfd_cu_info cu_info;
1145         int avail_size = *size;
1146         uint32_t total_num_of_cu;
1147         int num_of_cache_entries = 0;
1148         int cache_mem_filled = 0;
1149         uint32_t nid = 0;
1150         int ret = 0;
1151
1152         if (!pcrat_image || avail_size < VCRAT_SIZE_FOR_GPU)
1153                 return -EINVAL;
1154
1155         /* Fill the CRAT Header.
1156          * Modify length and total_entries as subunits are added.
1157          */
1158         avail_size -= sizeof(struct crat_header);
1159         if (avail_size < 0)
1160                 return -ENOMEM;
1161
1162         memset(crat_table, 0, sizeof(struct crat_header));
1163
1164         memcpy(&crat_table->signature, CRAT_SIGNATURE,
1165                         sizeof(crat_table->signature));
1166         /* Change length as we add more subtypes*/
1167         crat_table->length = sizeof(struct crat_header);
1168         crat_table->num_domains = 1;
1169         crat_table->total_entries = 0;
1170
1171         /* Fill in Subtype: Compute Unit
1172          * First fill in the sub type header and then sub type data
1173          */
1174         avail_size -= sizeof(struct crat_subtype_computeunit);
1175         if (avail_size < 0)
1176                 return -ENOMEM;
1177
1178         sub_type_hdr = (struct crat_subtype_generic *)(crat_table + 1);
1179         memset(sub_type_hdr, 0, sizeof(struct crat_subtype_computeunit));
1180
1181         sub_type_hdr->type = CRAT_SUBTYPE_COMPUTEUNIT_AFFINITY;
1182         sub_type_hdr->length = sizeof(struct crat_subtype_computeunit);
1183         sub_type_hdr->flags = CRAT_SUBTYPE_FLAGS_ENABLED;
1184
1185         /* Fill CU subtype data */
1186         cu = (struct crat_subtype_computeunit *)sub_type_hdr;
1187         cu->flags |= CRAT_CU_FLAGS_GPU_PRESENT;
1188         cu->proximity_domain = proximity_domain;
1189
1190         amdgpu_amdkfd_get_cu_info(kdev->kgd, &cu_info);
1191         cu->num_simd_per_cu = cu_info.simd_per_cu;
1192         cu->num_simd_cores = cu_info.simd_per_cu * cu_info.cu_active_number;
1193         cu->max_waves_simd = cu_info.max_waves_per_simd;
1194
1195         cu->wave_front_size = cu_info.wave_front_size;
1196         cu->array_count = cu_info.num_shader_arrays_per_engine *
1197                 cu_info.num_shader_engines;
1198         total_num_of_cu = (cu->array_count * cu_info.num_cu_per_sh);
1199         cu->processor_id_low = get_and_inc_gpu_processor_id(total_num_of_cu);
1200         cu->num_cu_per_array = cu_info.num_cu_per_sh;
1201         cu->max_slots_scatch_cu = cu_info.max_scratch_slots_per_cu;
1202         cu->num_banks = cu_info.num_shader_engines;
1203         cu->lds_size_in_kb = cu_info.lds_size;
1204
1205         cu->hsa_capability = 0;
1206
1207         /* Check if this node supports IOMMU. During parsing this flag will
1208          * translate to HSA_CAP_ATS_PRESENT
1209          */
1210         if (!kfd_iommu_check_device(kdev))
1211                 cu->hsa_capability |= CRAT_CU_FLAGS_IOMMU_PRESENT;
1212
1213         crat_table->length += sub_type_hdr->length;
1214         crat_table->total_entries++;
1215
1216         /* Fill in Subtype: Memory. Only on systems with large BAR (no
1217          * private FB), report memory as public. On other systems
1218          * report the total FB size (public+private) as a single
1219          * private heap.
1220          */
1221         amdgpu_amdkfd_get_local_mem_info(kdev->kgd, &local_mem_info);
1222         sub_type_hdr = (typeof(sub_type_hdr))((char *)sub_type_hdr +
1223                         sub_type_hdr->length);
1224
1225         if (debug_largebar)
1226                 local_mem_info.local_mem_size_private = 0;
1227
1228         if (local_mem_info.local_mem_size_private == 0)
1229                 ret = kfd_fill_gpu_memory_affinity(&avail_size,
1230                                 kdev, HSA_MEM_HEAP_TYPE_FB_PUBLIC,
1231                                 local_mem_info.local_mem_size_public,
1232                                 (struct crat_subtype_memory *)sub_type_hdr,
1233                                 proximity_domain,
1234                                 &local_mem_info);
1235         else
1236                 ret = kfd_fill_gpu_memory_affinity(&avail_size,
1237                                 kdev, HSA_MEM_HEAP_TYPE_FB_PRIVATE,
1238                                 local_mem_info.local_mem_size_public +
1239                                 local_mem_info.local_mem_size_private,
1240                                 (struct crat_subtype_memory *)sub_type_hdr,
1241                                 proximity_domain,
1242                                 &local_mem_info);
1243         if (ret < 0)
1244                 return ret;
1245
1246         crat_table->length += sizeof(struct crat_subtype_memory);
1247         crat_table->total_entries++;
1248
1249         /* TODO: Fill in cache information. This information is NOT readily
1250          * available in KGD
1251          */
1252         sub_type_hdr = (typeof(sub_type_hdr))((char *)sub_type_hdr +
1253                 sub_type_hdr->length);
1254         ret = kfd_fill_gpu_cache_info(kdev, cu->processor_id_low,
1255                                 avail_size,
1256                                 &cu_info,
1257                                 (struct crat_subtype_cache *)sub_type_hdr,
1258                                 &cache_mem_filled,
1259                                 &num_of_cache_entries);
1260
1261         if (ret < 0)
1262                 return ret;
1263
1264         crat_table->length += cache_mem_filled;
1265         crat_table->total_entries += num_of_cache_entries;
1266         avail_size -= cache_mem_filled;
1267
1268         /* Fill in Subtype: IO_LINKS
1269          *  Only direct links are added here which is Link from GPU to
1270          *  to its NUMA node. Indirect links are added by userspace.
1271          */
1272         sub_type_hdr = (typeof(sub_type_hdr))((char *)sub_type_hdr +
1273                 cache_mem_filled);
1274         ret = kfd_fill_gpu_direct_io_link_to_cpu(&avail_size, kdev,
1275                 (struct crat_subtype_iolink *)sub_type_hdr, proximity_domain);
1276
1277         if (ret < 0)
1278                 return ret;
1279
1280         crat_table->length += sub_type_hdr->length;
1281         crat_table->total_entries++;
1282
1283
1284         /* Fill in Subtype: IO_LINKS
1285          * Direct links from GPU to other GPUs through xGMI.
1286          * We will loop GPUs that already be processed (with lower value
1287          * of proximity_domain), add the link for the GPUs with same
1288          * hive id (from this GPU to other GPU) . The reversed iolink
1289          * (from other GPU to this GPU) will be added
1290          * in kfd_parse_subtype_iolink.
1291          */
1292         if (kdev->hive_id) {
1293                 for (nid = 0; nid < proximity_domain; ++nid) {
1294                         peer_dev = kfd_topology_device_by_proximity_domain(nid);
1295                         if (!peer_dev->gpu)
1296                                 continue;
1297                         if (peer_dev->gpu->hive_id != kdev->hive_id)
1298                                 continue;
1299                         sub_type_hdr = (typeof(sub_type_hdr))(
1300                                 (char *)sub_type_hdr +
1301                                 sizeof(struct crat_subtype_iolink));
1302                         ret = kfd_fill_gpu_xgmi_link_to_gpu(
1303                                 &avail_size, kdev, peer_dev->gpu,
1304                                 (struct crat_subtype_iolink *)sub_type_hdr,
1305                                 proximity_domain, nid);
1306                         if (ret < 0)
1307                                 return ret;
1308                         crat_table->length += sub_type_hdr->length;
1309                         crat_table->total_entries++;
1310                 }
1311         }
1312         *size = crat_table->length;
1313         pr_info("Virtual CRAT table created for GPU\n");
1314
1315         return ret;
1316 }
1317
1318 /* kfd_create_crat_image_virtual - Allocates memory for CRAT image and
1319  *              creates a Virtual CRAT (VCRAT) image
1320  *
1321  * NOTE: Call kfd_destroy_crat_image to free CRAT image memory
1322  *
1323  *      @crat_image: VCRAT image created because ACPI does not have a
1324  *                   CRAT for this device
1325  *      @size: [OUT] size of virtual crat_image
1326  *      @flags: COMPUTE_UNIT_CPU - Create VCRAT for CPU device
1327  *              COMPUTE_UNIT_GPU - Create VCRAT for GPU
1328  *              (COMPUTE_UNIT_CPU | COMPUTE_UNIT_GPU) - Create VCRAT for APU
1329  *                      -- this option is not currently implemented.
1330  *                      The assumption is that all AMD APUs will have CRAT
1331  *      @kdev: Valid kfd_device required if flags contain COMPUTE_UNIT_GPU
1332  *
1333  *      Return 0 if successful else return -ve value
1334  */
1335 int kfd_create_crat_image_virtual(void **crat_image, size_t *size,
1336                                   int flags, struct kfd_dev *kdev,
1337                                   uint32_t proximity_domain)
1338 {
1339         void *pcrat_image = NULL;
1340         int ret = 0;
1341
1342         if (!crat_image)
1343                 return -EINVAL;
1344
1345         *crat_image = NULL;
1346
1347         /* Allocate one VCRAT_SIZE_FOR_CPU for CPU virtual CRAT image and
1348          * VCRAT_SIZE_FOR_GPU for GPU virtual CRAT image. This should cover
1349          * all the current conditions. A check is put not to overwrite beyond
1350          * allocated size
1351          */
1352         switch (flags) {
1353         case COMPUTE_UNIT_CPU:
1354                 pcrat_image = kmalloc(VCRAT_SIZE_FOR_CPU, GFP_KERNEL);
1355                 if (!pcrat_image)
1356                         return -ENOMEM;
1357                 *size = VCRAT_SIZE_FOR_CPU;
1358                 ret = kfd_create_vcrat_image_cpu(pcrat_image, size);
1359                 break;
1360         case COMPUTE_UNIT_GPU:
1361                 if (!kdev)
1362                         return -EINVAL;
1363                 pcrat_image = kmalloc(VCRAT_SIZE_FOR_GPU, GFP_KERNEL);
1364                 if (!pcrat_image)
1365                         return -ENOMEM;
1366                 *size = VCRAT_SIZE_FOR_GPU;
1367                 ret = kfd_create_vcrat_image_gpu(pcrat_image, size, kdev,
1368                                                  proximity_domain);
1369                 break;
1370         case (COMPUTE_UNIT_CPU | COMPUTE_UNIT_GPU):
1371                 /* TODO: */
1372                 ret = -EINVAL;
1373                 pr_err("VCRAT not implemented for APU\n");
1374                 break;
1375         default:
1376                 ret = -EINVAL;
1377         }
1378
1379         if (!ret)
1380                 *crat_image = pcrat_image;
1381         else
1382                 kfree(pcrat_image);
1383
1384         return ret;
1385 }
1386
1387
1388 /* kfd_destroy_crat_image
1389  *
1390  *      @crat_image: [IN] - crat_image from kfd_create_crat_image_xxx(..)
1391  *
1392  */
1393 void kfd_destroy_crat_image(void *crat_image)
1394 {
1395         kfree(crat_image);
1396 }