1 // SPDX-License-Identifier: GPL-2.0 OR MIT
2 /*
3 * Copyright 2016-2022 Advanced Micro Devices, Inc.
4 *
5 * Permission is hereby granted, free of charge, to any person obtaining a
6 * copy of this software and associated documentation files (the "Software"),
7 * to deal in the Software without restriction, including without limitation
8 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
9 * and/or sell copies of the Software, and to permit persons to whom the
10 * Software is furnished to do so, subject to the following conditions:
11 *
12 * The above copyright notice and this permission notice shall be included in
13 * all copies or substantial portions of the Software.
14 *
15 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
16 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
17 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
18 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
19 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
20 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
21 * OTHER DEALINGS IN THE SOFTWARE.
22 *
23 */
24
25 #include <linux/printk.h>
26 #include <linux/slab.h>
27 #include <linux/uaccess.h>
28 #include "kfd_priv.h"
29 #include "kfd_mqd_manager.h"
30 #include "kfd_topology.h"
31 #include "v9_structs.h"
32 #include "gc/gc_9_0_offset.h"
33 #include "gc/gc_9_0_sh_mask.h"
34 #include "sdma0/sdma0_4_0_sh_mask.h"
35 #include "amdgpu_amdkfd.h"
36 #include "kfd_device_queue_manager.h"
37
38 static void update_mqd(struct mqd_manager *mm, void *mqd,
39 struct queue_properties *q,
40 struct mqd_update_info *minfo);
41
mqd_stride_v9(struct mqd_manager * mm,struct queue_properties * q)42 static uint64_t mqd_stride_v9(struct mqd_manager *mm,
43 struct queue_properties *q)
44 {
45 if (mm->dev->kfd->cwsr_enabled &&
46 q->type == KFD_QUEUE_TYPE_COMPUTE) {
47
48 /* On gfxv9, the MQD resides in the first 4K page,
49 * followed by the control stack. Align both to
50 * AMDGPU_GPU_PAGE_SIZE to maintain the required 4K boundary.
51 */
52
53 return ALIGN(ALIGN(q->ctl_stack_size, AMDGPU_GPU_PAGE_SIZE) +
54 ALIGN(sizeof(struct v9_mqd), AMDGPU_GPU_PAGE_SIZE), PAGE_SIZE);
55 }
56
57 return mm->mqd_size;
58 }
59
get_mqd(void * mqd)60 static inline struct v9_mqd *get_mqd(void *mqd)
61 {
62 return (struct v9_mqd *)mqd;
63 }
64
get_sdma_mqd(void * mqd)65 static inline struct v9_sdma_mqd *get_sdma_mqd(void *mqd)
66 {
67 return (struct v9_sdma_mqd *)mqd;
68 }
69
update_cu_mask(struct mqd_manager * mm,void * mqd,struct mqd_update_info * minfo,uint32_t inst)70 static void update_cu_mask(struct mqd_manager *mm, void *mqd,
71 struct mqd_update_info *minfo, uint32_t inst)
72 {
73 struct v9_mqd *m;
74 uint32_t se_mask[KFD_MAX_NUM_SE] = {0};
75
76 if (!minfo || !minfo->cu_mask.ptr)
77 return;
78
79 mqd_symmetrically_map_cu_mask(mm,
80 minfo->cu_mask.ptr, minfo->cu_mask.count, se_mask, inst);
81
82 m = get_mqd(mqd);
83
84 m->compute_static_thread_mgmt_se0 = se_mask[0];
85 m->compute_static_thread_mgmt_se1 = se_mask[1];
86 m->compute_static_thread_mgmt_se2 = se_mask[2];
87 m->compute_static_thread_mgmt_se3 = se_mask[3];
88 if (KFD_GC_VERSION(mm->dev) != IP_VERSION(9, 4, 3) &&
89 KFD_GC_VERSION(mm->dev) != IP_VERSION(9, 4, 4) &&
90 KFD_GC_VERSION(mm->dev) != IP_VERSION(9, 5, 0)) {
91 m->compute_static_thread_mgmt_se4 = se_mask[4];
92 m->compute_static_thread_mgmt_se5 = se_mask[5];
93 m->compute_static_thread_mgmt_se6 = se_mask[6];
94 m->compute_static_thread_mgmt_se7 = se_mask[7];
95
96 pr_debug("update cu mask to %#x %#x %#x %#x %#x %#x %#x %#x\n",
97 m->compute_static_thread_mgmt_se0,
98 m->compute_static_thread_mgmt_se1,
99 m->compute_static_thread_mgmt_se2,
100 m->compute_static_thread_mgmt_se3,
101 m->compute_static_thread_mgmt_se4,
102 m->compute_static_thread_mgmt_se5,
103 m->compute_static_thread_mgmt_se6,
104 m->compute_static_thread_mgmt_se7);
105 } else {
106 pr_debug("inst: %u, update cu mask to %#x %#x %#x %#x\n",
107 inst, m->compute_static_thread_mgmt_se0,
108 m->compute_static_thread_mgmt_se1,
109 m->compute_static_thread_mgmt_se2,
110 m->compute_static_thread_mgmt_se3);
111 }
112 }
113
set_priority(struct v9_mqd * m,struct queue_properties * q)114 static void set_priority(struct v9_mqd *m, struct queue_properties *q)
115 {
116 m->cp_hqd_pipe_priority = pipe_priority_map[q->priority];
117 }
118
allocate_mqd(struct mqd_manager * mm,struct queue_properties * q)119 static struct kfd_mem_obj *allocate_mqd(struct mqd_manager *mm,
120 struct queue_properties *q)
121 {
122 int retval;
123 struct kfd_node *node = mm->dev;
124 struct kfd_mem_obj *mqd_mem_obj = NULL;
125
126 /* For V9 only, due to a HW bug, the control stack of a user mode
127 * compute queue needs to be allocated just behind the page boundary
128 * of its regular MQD buffer. So we allocate an enlarged MQD buffer:
129 * the first page of the buffer serves as the regular MQD buffer
130 * purpose and the remaining is for control stack. Although the two
131 * parts are in the same buffer object, they need different memory
132 * types: MQD part needs UC (uncached) as usual, while control stack
133 * needs NC (non coherent), which is different from the UC type which
134 * is used when control stack is allocated in user space.
135 *
136 * Because of all those, we use the gtt allocation function instead
137 * of sub-allocation function for this enlarged MQD buffer. Moreover,
138 * in order to achieve two memory types in a single buffer object, we
139 * pass a special bo flag AMDGPU_GEM_CREATE_CP_MQD_GFX9 to instruct
140 * amdgpu memory functions to do so.
141 */
142 if (node->kfd->cwsr_enabled && (q->type == KFD_QUEUE_TYPE_COMPUTE)) {
143 mqd_mem_obj = kzalloc_obj(struct kfd_mem_obj);
144 if (!mqd_mem_obj)
145 return NULL;
146 retval = amdgpu_amdkfd_alloc_kernel_mem(node->adev,
147 (ALIGN(ALIGN(q->ctl_stack_size, AMDGPU_GPU_PAGE_SIZE) +
148 ALIGN(sizeof(struct v9_mqd), AMDGPU_GPU_PAGE_SIZE), PAGE_SIZE)) *
149 NUM_XCC(node->xcc_mask),
150 mqd_on_vram(node->adev) ? AMDGPU_GEM_DOMAIN_VRAM :
151 AMDGPU_GEM_DOMAIN_GTT,
152 &(mqd_mem_obj->mem),
153 &(mqd_mem_obj->gpu_addr),
154 (void *)&(mqd_mem_obj->cpu_ptr), true);
155
156 if (retval) {
157 kfree(mqd_mem_obj);
158 return NULL;
159 }
160 } else {
161 retval = kfd_gtt_sa_allocate(node, sizeof(struct v9_mqd),
162 &mqd_mem_obj);
163 if (retval)
164 return NULL;
165 }
166
167 return mqd_mem_obj;
168 }
169
init_mqd(struct mqd_manager * mm,void ** mqd,struct kfd_mem_obj * mqd_mem_obj,uint64_t * gart_addr,struct queue_properties * q)170 static void init_mqd(struct mqd_manager *mm, void **mqd,
171 struct kfd_mem_obj *mqd_mem_obj, uint64_t *gart_addr,
172 struct queue_properties *q)
173 {
174 uint64_t addr;
175 struct v9_mqd *m;
176
177 m = (struct v9_mqd *) mqd_mem_obj->cpu_ptr;
178 addr = mqd_mem_obj->gpu_addr;
179
180 memset(m, 0, sizeof(struct v9_mqd));
181
182 m->header = 0xC0310800;
183 m->compute_pipelinestat_enable = 1;
184 m->compute_static_thread_mgmt_se0 = 0xFFFFFFFF;
185 m->compute_static_thread_mgmt_se1 = 0xFFFFFFFF;
186 m->compute_static_thread_mgmt_se2 = 0xFFFFFFFF;
187 m->compute_static_thread_mgmt_se3 = 0xFFFFFFFF;
188 m->compute_static_thread_mgmt_se4 = 0xFFFFFFFF;
189 m->compute_static_thread_mgmt_se5 = 0xFFFFFFFF;
190 m->compute_static_thread_mgmt_se6 = 0xFFFFFFFF;
191 m->compute_static_thread_mgmt_se7 = 0xFFFFFFFF;
192
193 m->cp_hqd_persistent_state = CP_HQD_PERSISTENT_STATE__PRELOAD_REQ_MASK |
194 0x53 << CP_HQD_PERSISTENT_STATE__PRELOAD_SIZE__SHIFT;
195
196 m->cp_hqd_pq_control = 5 << CP_HQD_PQ_CONTROL__RPTR_BLOCK_SIZE__SHIFT;
197 m->cp_hqd_pq_control |= CP_HQD_PQ_CONTROL__UNORD_DISPATCH_MASK;
198
199 m->cp_mqd_control = 1 << CP_MQD_CONTROL__PRIV_STATE__SHIFT;
200
201 m->cp_mqd_base_addr_lo = lower_32_bits(addr);
202 m->cp_mqd_base_addr_hi = upper_32_bits(addr);
203
204 m->cp_hqd_quantum = 1 << CP_HQD_QUANTUM__QUANTUM_EN__SHIFT |
205 1 << CP_HQD_QUANTUM__QUANTUM_SCALE__SHIFT |
206 1 << CP_HQD_QUANTUM__QUANTUM_DURATION__SHIFT;
207
208 /* Set cp_hqd_hq_scheduler0 bit 14 to 1 to have the CP set up the
209 * DISPATCH_PTR. This is required for the kfd debugger
210 */
211 m->cp_hqd_hq_status0 = 1 << 14;
212
213 if (q->format == KFD_QUEUE_FORMAT_AQL)
214 m->cp_hqd_aql_control =
215 1 << CP_HQD_AQL_CONTROL__CONTROL0__SHIFT;
216
217 if (q->tba_addr)
218 m->compute_pgm_rsrc2 |=
219 (1 << COMPUTE_PGM_RSRC2__TRAP_PRESENT__SHIFT);
220
221 if (mm->dev->kfd->cwsr_enabled && q->ctx_save_restore_area_address) {
222 m->cp_hqd_persistent_state |=
223 (1 << CP_HQD_PERSISTENT_STATE__QSWITCH_MODE__SHIFT);
224 m->cp_hqd_ctx_save_base_addr_lo =
225 lower_32_bits(q->ctx_save_restore_area_address);
226 m->cp_hqd_ctx_save_base_addr_hi =
227 upper_32_bits(q->ctx_save_restore_area_address);
228 m->cp_hqd_ctx_save_size = q->ctx_save_restore_area_size;
229 m->cp_hqd_cntl_stack_size = q->ctl_stack_size;
230 m->cp_hqd_cntl_stack_offset = q->ctl_stack_size;
231 m->cp_hqd_wg_state_offset = q->ctl_stack_size;
232 }
233
234 mutex_lock(&mm->dev->kfd->profiler_lock);
235 if (mm->dev->kfd->profiler_process != NULL)
236 m->compute_perfcount_enable = 1;
237 mutex_unlock(&mm->dev->kfd->profiler_lock);
238
239 *mqd = m;
240 if (gart_addr)
241 *gart_addr = addr;
242 update_mqd(mm, m, q, NULL);
243 }
244
load_mqd(struct mqd_manager * mm,void * mqd,uint32_t pipe_id,uint32_t queue_id,struct queue_properties * p,struct mm_struct * mms)245 static int load_mqd(struct mqd_manager *mm, void *mqd,
246 uint32_t pipe_id, uint32_t queue_id,
247 struct queue_properties *p, struct mm_struct *mms)
248 {
249 /* AQL write pointer counts in 64B packets, PM4/CP counts in dwords. */
250 uint32_t wptr_shift = (p->format == KFD_QUEUE_FORMAT_AQL ? 4 : 0);
251
252 return mm->dev->kfd2kgd->hqd_load(mm->dev->adev, mqd, pipe_id, queue_id,
253 (uint32_t __user *)p->write_ptr,
254 wptr_shift, 0, mms, 0);
255 }
256
update_mqd(struct mqd_manager * mm,void * mqd,struct queue_properties * q,struct mqd_update_info * minfo)257 static void update_mqd(struct mqd_manager *mm, void *mqd,
258 struct queue_properties *q,
259 struct mqd_update_info *minfo)
260 {
261 struct v9_mqd *m;
262
263 m = get_mqd(mqd);
264
265 m->cp_hqd_pq_control &= ~CP_HQD_PQ_CONTROL__QUEUE_SIZE_MASK;
266 m->cp_hqd_pq_control |= order_base_2(q->queue_size / 4) - 1;
267 pr_debug("cp_hqd_pq_control 0x%x\n", m->cp_hqd_pq_control);
268
269 m->cp_hqd_pq_base_lo = lower_32_bits((uint64_t)q->queue_address >> 8);
270 m->cp_hqd_pq_base_hi = upper_32_bits((uint64_t)q->queue_address >> 8);
271
272 m->cp_hqd_pq_rptr_report_addr_lo = lower_32_bits((uint64_t)q->read_ptr);
273 m->cp_hqd_pq_rptr_report_addr_hi = upper_32_bits((uint64_t)q->read_ptr);
274 m->cp_hqd_pq_wptr_poll_addr_lo = lower_32_bits((uint64_t)q->write_ptr);
275 m->cp_hqd_pq_wptr_poll_addr_hi = upper_32_bits((uint64_t)q->write_ptr);
276
277 m->cp_hqd_pq_doorbell_control =
278 q->doorbell_off <<
279 CP_HQD_PQ_DOORBELL_CONTROL__DOORBELL_OFFSET__SHIFT;
280 pr_debug("cp_hqd_pq_doorbell_control 0x%x\n",
281 m->cp_hqd_pq_doorbell_control);
282
283 m->cp_hqd_ib_control =
284 3 << CP_HQD_IB_CONTROL__MIN_IB_AVAIL_SIZE__SHIFT |
285 1 << CP_HQD_IB_CONTROL__IB_EXE_DISABLE__SHIFT;
286
287 /*
288 * HW does not clamp this field correctly. Maximum EOP queue size
289 * is constrained by per-SE EOP done signal count, which is 8-bit.
290 * Limit is 0xFF EOP entries (= 0x7F8 dwords). CP will not submit
291 * more than (EOP entry count - 1) so a queue size of 0x800 dwords
292 * is safe, giving a maximum field value of 0xA.
293 *
294 * Also, do calculation only if EOP is used (size > 0), otherwise
295 * the order_base_2 calculation provides incorrect result.
296 *
297 */
298 m->cp_hqd_eop_control = q->eop_ring_buffer_size ?
299 min(0xA, order_base_2(q->eop_ring_buffer_size / 4) - 1) : 0;
300
301 m->cp_hqd_eop_base_addr_lo =
302 lower_32_bits(q->eop_ring_buffer_address >> 8);
303 m->cp_hqd_eop_base_addr_hi =
304 upper_32_bits(q->eop_ring_buffer_address >> 8);
305
306 m->cp_hqd_iq_timer = 0;
307
308 m->cp_hqd_vmid = q->vmid;
309
310 if (q->format == KFD_QUEUE_FORMAT_AQL) {
311 m->cp_hqd_pq_control |= CP_HQD_PQ_CONTROL__NO_UPDATE_RPTR_MASK |
312 2 << CP_HQD_PQ_CONTROL__SLOT_BASED_WPTR__SHIFT |
313 1 << CP_HQD_PQ_CONTROL__QUEUE_FULL_EN__SHIFT |
314 1 << CP_HQD_PQ_CONTROL__WPP_CLAMP_EN__SHIFT;
315 m->cp_hqd_pq_doorbell_control |= 1 <<
316 CP_HQD_PQ_DOORBELL_CONTROL__DOORBELL_BIF_DROP__SHIFT;
317 }
318 if (mm->dev->kfd->cwsr_enabled && q->ctx_save_restore_area_address)
319 m->cp_hqd_ctx_save_control = 0;
320
321 if (minfo) {
322 if (minfo->update_flag == UPDATE_FLAG_PERFCOUNT_ENABLE)
323 m->compute_perfcount_enable = 1;
324 else if (minfo->update_flag == UPDATE_FLAG_PERFCOUNT_DISABLE)
325 m->compute_perfcount_enable = 0;
326 }
327
328 if (KFD_GC_VERSION(mm->dev) != IP_VERSION(9, 4, 3) &&
329 KFD_GC_VERSION(mm->dev) != IP_VERSION(9, 4, 4) &&
330 KFD_GC_VERSION(mm->dev) != IP_VERSION(9, 5, 0))
331 update_cu_mask(mm, mqd, minfo, 0);
332 set_priority(m, q);
333
334 if (minfo && KFD_GC_VERSION(mm->dev) >= IP_VERSION(9, 4, 2)) {
335 if (minfo->update_flag & UPDATE_FLAG_IS_GWS)
336 m->compute_resource_limits |=
337 COMPUTE_RESOURCE_LIMITS__FORCE_SIMD_DIST_MASK;
338 else
339 m->compute_resource_limits &=
340 ~COMPUTE_RESOURCE_LIMITS__FORCE_SIMD_DIST_MASK;
341 }
342
343 q->is_active = QUEUE_IS_ACTIVE(*q);
344 }
345
346
check_preemption_failed(struct mqd_manager * mm,void * mqd)347 static bool check_preemption_failed(struct mqd_manager *mm, void *mqd)
348 {
349 struct v9_mqd *m = (struct v9_mqd *)mqd;
350 uint32_t doorbell_id = m->queue_doorbell_id0;
351
352 m->queue_doorbell_id0 = 0;
353
354 return kfd_check_hiq_mqd_doorbell_id(mm->dev, doorbell_id, 0);
355 }
356
get_wave_state(struct mqd_manager * mm,void * mqd,struct queue_properties * q,void __user * ctl_stack,u32 * ctl_stack_used_size,u32 * save_area_used_size)357 static int get_wave_state(struct mqd_manager *mm, void *mqd,
358 struct queue_properties *q,
359 void __user *ctl_stack,
360 u32 *ctl_stack_used_size,
361 u32 *save_area_used_size)
362 {
363 struct v9_mqd *m;
364 struct kfd_context_save_area_header header;
365 u32 cntl_stack_size;
366 u32 cntl_stack_offset;
367
368 /* Control stack is located one page after MQD. */
369 void *mqd_ctl_stack = (void *)((uintptr_t)mqd + AMDGPU_GPU_PAGE_SIZE);
370
371 m = get_mqd(mqd);
372 cntl_stack_size = min_t(u32, m->cp_hqd_cntl_stack_size, q->ctl_stack_size);
373 cntl_stack_offset = min_t(u32, m->cp_hqd_cntl_stack_offset, cntl_stack_size);
374
375 *ctl_stack_used_size = m->cp_hqd_cntl_stack_size -
376 m->cp_hqd_cntl_stack_offset;
377 *save_area_used_size = m->cp_hqd_wg_state_offset -
378 m->cp_hqd_cntl_stack_size;
379
380 header.wave_state.control_stack_size = *ctl_stack_used_size;
381 header.wave_state.wave_state_size = *save_area_used_size;
382
383 header.wave_state.wave_state_offset = m->cp_hqd_wg_state_offset;
384 header.wave_state.control_stack_offset = m->cp_hqd_cntl_stack_offset;
385
386 if (copy_to_user(ctl_stack, &header, sizeof(header.wave_state)))
387 return -EFAULT;
388
389 *ctl_stack_used_size = cntl_stack_size - cntl_stack_offset;
390
391 if (copy_to_user(ctl_stack + cntl_stack_offset, mqd_ctl_stack + cntl_stack_offset,
392 *ctl_stack_used_size))
393 return -EFAULT;
394
395 return 0;
396 }
397
get_checkpoint_info(struct mqd_manager * mm,void * mqd,u32 * ctl_stack_size)398 static int get_checkpoint_info(struct mqd_manager *mm, void *mqd, u32 *ctl_stack_size)
399 {
400 struct v9_mqd *m = get_mqd(mqd);
401 u32 per_xcc_size;
402
403 per_xcc_size = min_t(u32, m->cp_hqd_cntl_stack_size, mm->ctl_stack_size);
404
405 if (check_mul_overflow(per_xcc_size, NUM_XCC(mm->dev->xcc_mask), ctl_stack_size))
406 return -EINVAL;
407
408 return 0;
409 }
410
checkpoint_mqd(struct mqd_manager * mm,void * mqd,void * mqd_dst,void * ctl_stack_dst)411 static void checkpoint_mqd(struct mqd_manager *mm, void *mqd, void *mqd_dst, void *ctl_stack_dst)
412 {
413 struct v9_mqd *m;
414 u32 ctl_stack_copy_size;
415 /* Control stack is located one page after MQD. */
416 void *ctl_stack = (void *)((uintptr_t)mqd + AMDGPU_GPU_PAGE_SIZE);
417
418 m = get_mqd(mqd);
419 ctl_stack_copy_size = min_t(u32, m->cp_hqd_cntl_stack_size, mm->ctl_stack_size);
420
421 memcpy(mqd_dst, m, sizeof(struct v9_mqd));
422 memcpy(ctl_stack_dst, ctl_stack, ctl_stack_copy_size);
423 }
424
checkpoint_mqd_v9_4_3(struct mqd_manager * mm,void * mqd,void * mqd_dst,void * ctl_stack_dst)425 static void checkpoint_mqd_v9_4_3(struct mqd_manager *mm,
426 void *mqd,
427 void *mqd_dst,
428 void *ctl_stack_dst)
429 {
430 struct v9_mqd *m;
431 u32 ctl_stack_stride;
432 int xcc;
433 uint64_t size = get_mqd(mqd)->cp_mqd_stride_size;
434
435 ctl_stack_stride = min_t(u32, get_mqd(mqd)->cp_hqd_cntl_stack_size,
436 mm->ctl_stack_size);
437
438 for (xcc = 0; xcc < NUM_XCC(mm->dev->xcc_mask); xcc++) {
439 m = get_mqd(mqd + size * xcc);
440
441 checkpoint_mqd(mm, m,
442 (uint8_t *)mqd_dst + sizeof(*m) * xcc,
443 (uint8_t *)ctl_stack_dst + ctl_stack_stride * xcc);
444 }
445 }
446
restore_mqd(struct mqd_manager * mm,void ** mqd,struct kfd_mem_obj * mqd_mem_obj,uint64_t * gart_addr,struct queue_properties * qp,const void * mqd_src,const void * ctl_stack_src,u32 ctl_stack_size)447 static void restore_mqd(struct mqd_manager *mm, void **mqd,
448 struct kfd_mem_obj *mqd_mem_obj, uint64_t *gart_addr,
449 struct queue_properties *qp,
450 const void *mqd_src,
451 const void *ctl_stack_src, u32 ctl_stack_size)
452 {
453 uint64_t addr;
454 struct v9_mqd *m;
455 void *ctl_stack;
456
457 m = (struct v9_mqd *) mqd_mem_obj->cpu_ptr;
458 addr = mqd_mem_obj->gpu_addr;
459
460 memcpy(m, mqd_src, sizeof(*m));
461
462 *mqd = m;
463 if (gart_addr)
464 *gart_addr = addr;
465
466 /* Control stack is located one page after MQD. */
467 ctl_stack = (void *)((uintptr_t)*mqd + AMDGPU_GPU_PAGE_SIZE);
468 memcpy(ctl_stack, ctl_stack_src, ctl_stack_size);
469
470 m->cp_hqd_pq_doorbell_control =
471 qp->doorbell_off <<
472 CP_HQD_PQ_DOORBELL_CONTROL__DOORBELL_OFFSET__SHIFT;
473 pr_debug("cp_hqd_pq_doorbell_control 0x%x\n",
474 m->cp_hqd_pq_doorbell_control);
475
476 qp->is_active = 0;
477 }
478
update_mqd_gpu_addr(struct mqd_manager * mm,void * mqd,struct kfd_mem_obj * mqd_mem_obj,struct queue_properties * qp)479 static void update_mqd_gpu_addr(struct mqd_manager *mm, void *mqd,
480 struct kfd_mem_obj *mqd_mem_obj,
481 struct queue_properties *qp)
482 {
483 struct v9_mqd *m = get_mqd(mqd);
484 uint64_t addr = mqd_mem_obj->gpu_addr;
485
486 m->cp_mqd_base_addr_lo = lower_32_bits(addr);
487 m->cp_mqd_base_addr_hi = upper_32_bits(addr);
488
489 if (mqd_on_vram(mm->dev->adev))
490 amdgpu_device_flush_hdp(mm->dev->adev, NULL);
491 }
492
init_mqd_hiq(struct mqd_manager * mm,void ** mqd,struct kfd_mem_obj * mqd_mem_obj,uint64_t * gart_addr,struct queue_properties * q)493 static void init_mqd_hiq(struct mqd_manager *mm, void **mqd,
494 struct kfd_mem_obj *mqd_mem_obj, uint64_t *gart_addr,
495 struct queue_properties *q)
496 {
497 struct v9_mqd *m;
498
499 init_mqd(mm, mqd, mqd_mem_obj, gart_addr, q);
500
501 m = get_mqd(*mqd);
502
503 m->cp_hqd_pq_control |= 1 << CP_HQD_PQ_CONTROL__PRIV_STATE__SHIFT |
504 1 << CP_HQD_PQ_CONTROL__KMD_QUEUE__SHIFT;
505 }
506
destroy_hiq_mqd(struct mqd_manager * mm,void * mqd,enum kfd_preempt_type type,unsigned int timeout,uint32_t pipe_id,uint32_t queue_id)507 static int destroy_hiq_mqd(struct mqd_manager *mm, void *mqd,
508 enum kfd_preempt_type type, unsigned int timeout,
509 uint32_t pipe_id, uint32_t queue_id)
510 {
511 int err;
512 struct v9_mqd *m;
513 u32 doorbell_off;
514
515 m = get_mqd(mqd);
516
517 doorbell_off = m->cp_hqd_pq_doorbell_control >>
518 CP_HQD_PQ_DOORBELL_CONTROL__DOORBELL_OFFSET__SHIFT;
519 err = amdgpu_amdkfd_unmap_hiq(mm->dev->adev, doorbell_off, 0);
520 if (err)
521 pr_debug("Destroy HIQ MQD failed: %d\n", err);
522
523 return err;
524 }
525
init_mqd_sdma(struct mqd_manager * mm,void ** mqd,struct kfd_mem_obj * mqd_mem_obj,uint64_t * gart_addr,struct queue_properties * q)526 static void init_mqd_sdma(struct mqd_manager *mm, void **mqd,
527 struct kfd_mem_obj *mqd_mem_obj, uint64_t *gart_addr,
528 struct queue_properties *q)
529 {
530 struct v9_sdma_mqd *m;
531
532 m = (struct v9_sdma_mqd *) mqd_mem_obj->cpu_ptr;
533
534 memset(m, 0, sizeof(struct v9_sdma_mqd));
535
536 *mqd = m;
537 if (gart_addr)
538 *gart_addr = mqd_mem_obj->gpu_addr;
539
540 mm->update_mqd(mm, m, q, NULL);
541 }
542
543 #define SDMA_RLC_DUMMY_DEFAULT 0xf
544
update_mqd_sdma(struct mqd_manager * mm,void * mqd,struct queue_properties * q,struct mqd_update_info * minfo)545 static void update_mqd_sdma(struct mqd_manager *mm, void *mqd,
546 struct queue_properties *q,
547 struct mqd_update_info *minfo)
548 {
549 struct v9_sdma_mqd *m;
550
551 m = get_sdma_mqd(mqd);
552 m->sdmax_rlcx_rb_cntl = order_base_2(q->queue_size / 4)
553 << SDMA0_RLC0_RB_CNTL__RB_SIZE__SHIFT |
554 q->vmid << SDMA0_RLC0_RB_CNTL__RB_VMID__SHIFT |
555 1 << SDMA0_RLC0_RB_CNTL__RPTR_WRITEBACK_ENABLE__SHIFT |
556 6 << SDMA0_RLC0_RB_CNTL__RPTR_WRITEBACK_TIMER__SHIFT;
557
558 m->sdmax_rlcx_rb_base = lower_32_bits(q->queue_address >> 8);
559 m->sdmax_rlcx_rb_base_hi = upper_32_bits(q->queue_address >> 8);
560 m->sdmax_rlcx_rb_rptr_addr_lo = lower_32_bits((uint64_t)q->read_ptr);
561 m->sdmax_rlcx_rb_rptr_addr_hi = upper_32_bits((uint64_t)q->read_ptr);
562 m->sdmax_rlcx_doorbell_offset =
563 q->doorbell_off << SDMA0_RLC0_DOORBELL_OFFSET__OFFSET__SHIFT;
564
565 m->sdma_engine_id = q->sdma_engine_id;
566 m->sdma_queue_id = q->sdma_queue_id;
567 m->sdmax_rlcx_dummy_reg = SDMA_RLC_DUMMY_DEFAULT;
568 /* Allow context switch so we don't cross-process starve with a massive
569 * command buffer of long-running SDMA commands
570 */
571 m->sdmax_rlcx_ib_cntl |= SDMA0_GFX_IB_CNTL__SWITCH_INSIDE_IB_MASK;
572
573 q->is_active = QUEUE_IS_ACTIVE(*q);
574 }
575
checkpoint_mqd_sdma(struct mqd_manager * mm,void * mqd,void * mqd_dst,void * ctl_stack_dst)576 static void checkpoint_mqd_sdma(struct mqd_manager *mm,
577 void *mqd,
578 void *mqd_dst,
579 void *ctl_stack_dst)
580 {
581 struct v9_sdma_mqd *m;
582
583 m = get_sdma_mqd(mqd);
584
585 memcpy(mqd_dst, m, sizeof(struct v9_sdma_mqd));
586 }
587
restore_mqd_sdma(struct mqd_manager * mm,void ** mqd,struct kfd_mem_obj * mqd_mem_obj,uint64_t * gart_addr,struct queue_properties * qp,const void * mqd_src,const void * ctl_stack_src,const u32 ctl_stack_size)588 static void restore_mqd_sdma(struct mqd_manager *mm, void **mqd,
589 struct kfd_mem_obj *mqd_mem_obj, uint64_t *gart_addr,
590 struct queue_properties *qp,
591 const void *mqd_src,
592 const void *ctl_stack_src, const u32 ctl_stack_size)
593 {
594 uint64_t addr;
595 struct v9_sdma_mqd *m;
596
597 m = (struct v9_sdma_mqd *) mqd_mem_obj->cpu_ptr;
598 addr = mqd_mem_obj->gpu_addr;
599
600 memcpy(m, mqd_src, sizeof(*m));
601
602 m->sdmax_rlcx_doorbell_offset =
603 qp->doorbell_off << SDMA0_RLC0_DOORBELL_OFFSET__OFFSET__SHIFT;
604
605 *mqd = m;
606 if (gart_addr)
607 *gart_addr = addr;
608
609 qp->is_active = 0;
610 }
611
init_mqd_hiq_v9_4_3(struct mqd_manager * mm,void ** mqd,struct kfd_mem_obj * mqd_mem_obj,uint64_t * gart_addr,struct queue_properties * q)612 static void init_mqd_hiq_v9_4_3(struct mqd_manager *mm, void **mqd,
613 struct kfd_mem_obj *mqd_mem_obj, uint64_t *gart_addr,
614 struct queue_properties *q)
615 {
616 struct v9_mqd *m;
617 int xcc = 0;
618 struct kfd_mem_obj xcc_mqd_mem_obj;
619 uint64_t xcc_gart_addr = 0;
620
621 memset(&xcc_mqd_mem_obj, 0x0, sizeof(struct kfd_mem_obj));
622
623 for (xcc = 0; xcc < NUM_XCC(mm->dev->xcc_mask); xcc++) {
624 kfd_get_hiq_xcc_mqd(mm->dev, &xcc_mqd_mem_obj, xcc);
625
626 init_mqd(mm, (void **)&m, &xcc_mqd_mem_obj, &xcc_gart_addr, q);
627
628 m->cp_hqd_pq_control |= CP_HQD_PQ_CONTROL__NO_UPDATE_RPTR_MASK |
629 1 << CP_HQD_PQ_CONTROL__PRIV_STATE__SHIFT |
630 1 << CP_HQD_PQ_CONTROL__KMD_QUEUE__SHIFT;
631 if (amdgpu_sriov_multi_vf_mode(mm->dev->adev))
632 m->cp_hqd_pq_doorbell_control |= 1 <<
633 CP_HQD_PQ_DOORBELL_CONTROL__DOORBELL_MODE__SHIFT;
634 m->cp_mqd_stride_size = kfd_hiq_mqd_stride(mm->dev);
635 if (xcc == 0) {
636 /* Set no_update_rptr = 0 in Master XCC */
637 m->cp_hqd_pq_control &= ~CP_HQD_PQ_CONTROL__NO_UPDATE_RPTR_MASK;
638
639 /* Set the MQD pointer and gart address to XCC0 MQD */
640 *mqd = m;
641 *gart_addr = xcc_gart_addr;
642 }
643 }
644 }
645
hiq_load_mqd_kiq_v9_4_3(struct mqd_manager * mm,void * mqd,uint32_t pipe_id,uint32_t queue_id,struct queue_properties * p,struct mm_struct * mms)646 static int hiq_load_mqd_kiq_v9_4_3(struct mqd_manager *mm, void *mqd,
647 uint32_t pipe_id, uint32_t queue_id,
648 struct queue_properties *p, struct mm_struct *mms)
649 {
650 uint32_t xcc_mask = mm->dev->xcc_mask;
651 int xcc_id, err = 0, inst = 0;
652 void *xcc_mqd;
653 uint64_t hiq_mqd_size = kfd_hiq_mqd_stride(mm->dev);
654
655 for_each_inst(xcc_id, xcc_mask) {
656 xcc_mqd = mqd + hiq_mqd_size * inst;
657 err = mm->dev->kfd2kgd->hiq_mqd_load(mm->dev->adev, xcc_mqd,
658 pipe_id, queue_id,
659 p->doorbell_off, xcc_id);
660 if (err) {
661 pr_debug("Failed to load HIQ MQD for XCC: %d\n", inst);
662 break;
663 }
664 ++inst;
665 }
666
667 return err;
668 }
669
destroy_hiq_mqd_v9_4_3(struct mqd_manager * mm,void * mqd,enum kfd_preempt_type type,unsigned int timeout,uint32_t pipe_id,uint32_t queue_id)670 static int destroy_hiq_mqd_v9_4_3(struct mqd_manager *mm, void *mqd,
671 enum kfd_preempt_type type, unsigned int timeout,
672 uint32_t pipe_id, uint32_t queue_id)
673 {
674 uint32_t xcc_mask = mm->dev->xcc_mask;
675 int xcc_id, err = 0, inst = 0;
676 uint64_t hiq_mqd_size = kfd_hiq_mqd_stride(mm->dev);
677 struct v9_mqd *m;
678 u32 doorbell_off;
679
680 for_each_inst(xcc_id, xcc_mask) {
681 m = get_mqd(mqd + hiq_mqd_size * inst);
682
683 doorbell_off = m->cp_hqd_pq_doorbell_control >>
684 CP_HQD_PQ_DOORBELL_CONTROL__DOORBELL_OFFSET__SHIFT;
685
686 err = amdgpu_amdkfd_unmap_hiq(mm->dev->adev, doorbell_off, xcc_id);
687 if (err) {
688 pr_debug("Destroy HIQ MQD failed for xcc: %d\n", inst);
689 break;
690 }
691 ++inst;
692 }
693
694 return err;
695 }
696
check_preemption_failed_v9_4_3(struct mqd_manager * mm,void * mqd)697 static bool check_preemption_failed_v9_4_3(struct mqd_manager *mm, void *mqd)
698 {
699 uint64_t hiq_mqd_size = kfd_hiq_mqd_stride(mm->dev);
700 uint32_t xcc_mask = mm->dev->xcc_mask;
701 int inst = 0, xcc_id;
702 struct v9_mqd *m;
703 bool ret = false;
704
705 for_each_inst(xcc_id, xcc_mask) {
706 m = get_mqd(mqd + hiq_mqd_size * inst);
707 ret |= kfd_check_hiq_mqd_doorbell_id(mm->dev,
708 m->queue_doorbell_id0, inst);
709 m->queue_doorbell_id0 = 0;
710 ++inst;
711 }
712
713 return ret;
714 }
715
get_xcc_mqd(struct kfd_mem_obj * mqd_mem_obj,struct kfd_mem_obj * xcc_mqd_mem_obj,uint64_t offset)716 static void get_xcc_mqd(struct kfd_mem_obj *mqd_mem_obj,
717 struct kfd_mem_obj *xcc_mqd_mem_obj,
718 uint64_t offset)
719 {
720 xcc_mqd_mem_obj->mem = (offset == 0) ?
721 mqd_mem_obj->mem : NULL;
722 xcc_mqd_mem_obj->gpu_addr = mqd_mem_obj->gpu_addr + offset;
723 xcc_mqd_mem_obj->cpu_ptr = (uint32_t *)((uintptr_t)mqd_mem_obj->cpu_ptr
724 + offset);
725 }
726
init_mqd_v9_4_3(struct mqd_manager * mm,void ** mqd,struct kfd_mem_obj * mqd_mem_obj,uint64_t * gart_addr,struct queue_properties * q)727 static void init_mqd_v9_4_3(struct mqd_manager *mm, void **mqd,
728 struct kfd_mem_obj *mqd_mem_obj, uint64_t *gart_addr,
729 struct queue_properties *q)
730 {
731 struct v9_mqd *m;
732 int xcc = 0;
733 struct kfd_mem_obj xcc_mqd_mem_obj;
734 uint64_t xcc_gart_addr = 0;
735 uint64_t xcc_ctx_save_restore_area_address;
736 uint64_t offset = mm->mqd_stride(mm, q);
737 uint32_t local_xcc_start = mm->dev->dqm->current_logical_xcc_start++;
738
739 memset(&xcc_mqd_mem_obj, 0x0, sizeof(struct kfd_mem_obj));
740 for (xcc = 0; xcc < NUM_XCC(mm->dev->xcc_mask); xcc++) {
741 get_xcc_mqd(mqd_mem_obj, &xcc_mqd_mem_obj, offset*xcc);
742
743 init_mqd(mm, (void **)&m, &xcc_mqd_mem_obj, &xcc_gart_addr, q);
744 if (amdgpu_sriov_multi_vf_mode(mm->dev->adev))
745 m->cp_hqd_pq_doorbell_control |= 1 <<
746 CP_HQD_PQ_DOORBELL_CONTROL__DOORBELL_MODE__SHIFT;
747 m->cp_mqd_stride_size = offset;
748
749 /*
750 * Update the CWSR address for each XCC if CWSR is enabled
751 * and CWSR area is allocated in thunk
752 */
753 if (mm->dev->kfd->cwsr_enabled &&
754 q->ctx_save_restore_area_address) {
755 xcc_ctx_save_restore_area_address =
756 q->ctx_save_restore_area_address +
757 (xcc * q->ctx_save_restore_area_size);
758
759 m->cp_hqd_ctx_save_base_addr_lo =
760 lower_32_bits(xcc_ctx_save_restore_area_address);
761 m->cp_hqd_ctx_save_base_addr_hi =
762 upper_32_bits(xcc_ctx_save_restore_area_address);
763 }
764
765 if (q->format == KFD_QUEUE_FORMAT_AQL) {
766 m->compute_tg_chunk_size = 1;
767 m->compute_current_logic_xcc_id =
768 (local_xcc_start + xcc) %
769 NUM_XCC(mm->dev->xcc_mask);
770
771 switch (xcc) {
772 case 0:
773 /* Master XCC */
774 m->cp_hqd_pq_control &=
775 ~CP_HQD_PQ_CONTROL__NO_UPDATE_RPTR_MASK;
776 break;
777 default:
778 break;
779 }
780 } else {
781 /* PM4 Queue */
782 m->compute_current_logic_xcc_id = 0;
783 m->compute_tg_chunk_size = 0;
784 m->pm4_target_xcc_in_xcp = q->pm4_target_xcc;
785 }
786
787 if (xcc == 0) {
788 /* Set the MQD pointer and gart address to XCC0 MQD */
789 *mqd = m;
790 *gart_addr = xcc_gart_addr;
791 }
792 }
793
794 if (mqd_on_vram(mm->dev->adev))
795 amdgpu_device_flush_hdp(mm->dev->adev, NULL);
796 }
797
update_mqd_v9_4_3(struct mqd_manager * mm,void * mqd,struct queue_properties * q,struct mqd_update_info * minfo)798 static void update_mqd_v9_4_3(struct mqd_manager *mm, void *mqd,
799 struct queue_properties *q, struct mqd_update_info *minfo)
800 {
801 struct v9_mqd *m;
802 int xcc = 0;
803 uint64_t size = mm->mqd_stride(mm, q);
804
805 for (xcc = 0; xcc < NUM_XCC(mm->dev->xcc_mask); xcc++) {
806 m = get_mqd(mqd + size * xcc);
807 update_mqd(mm, m, q, minfo);
808
809 if (amdgpu_sriov_multi_vf_mode(mm->dev->adev))
810 m->cp_hqd_pq_doorbell_control |= 1 <<
811 CP_HQD_PQ_DOORBELL_CONTROL__DOORBELL_MODE__SHIFT;
812 update_cu_mask(mm, m, minfo, xcc);
813
814 if (q->format == KFD_QUEUE_FORMAT_AQL) {
815 switch (xcc) {
816 case 0:
817 /* Master XCC */
818 m->cp_hqd_pq_control &=
819 ~CP_HQD_PQ_CONTROL__NO_UPDATE_RPTR_MASK;
820 break;
821 default:
822 break;
823 }
824 m->compute_tg_chunk_size = 1;
825 } else {
826 /* PM4 Queue */
827 m->compute_current_logic_xcc_id = 0;
828 m->compute_tg_chunk_size = 0;
829 m->pm4_target_xcc_in_xcp = q->pm4_target_xcc;
830 }
831 }
832
833 if (mqd_on_vram(mm->dev->adev))
834 amdgpu_device_flush_hdp(mm->dev->adev, NULL);
835 }
836
restore_mqd_v9_4_3(struct mqd_manager * mm,void ** mqd,struct kfd_mem_obj * mqd_mem_obj,uint64_t * gart_addr,struct queue_properties * qp,const void * mqd_src,const void * ctl_stack_src,u32 ctl_stack_size)837 static void restore_mqd_v9_4_3(struct mqd_manager *mm, void **mqd,
838 struct kfd_mem_obj *mqd_mem_obj, uint64_t *gart_addr,
839 struct queue_properties *qp,
840 const void *mqd_src,
841 const void *ctl_stack_src, u32 ctl_stack_size)
842 {
843 struct kfd_mem_obj xcc_mqd_mem_obj;
844 u32 mqd_ctl_stack_size;
845 struct v9_mqd *m;
846 u32 num_xcc;
847 int xcc;
848
849 uint64_t offset = mm->mqd_stride(mm, qp);
850
851 mm->dev->dqm->current_logical_xcc_start++;
852
853 num_xcc = NUM_XCC(mm->dev->xcc_mask);
854 mqd_ctl_stack_size = ctl_stack_size / num_xcc;
855
856 memset(&xcc_mqd_mem_obj, 0x0, sizeof(struct kfd_mem_obj));
857
858 /* Set the MQD pointer and gart address to XCC0 MQD */
859 *mqd = mqd_mem_obj->cpu_ptr;
860 if (gart_addr)
861 *gart_addr = mqd_mem_obj->gpu_addr;
862
863 for (xcc = 0; xcc < num_xcc; xcc++) {
864 get_xcc_mqd(mqd_mem_obj, &xcc_mqd_mem_obj, offset * xcc);
865 restore_mqd(mm, (void **)&m,
866 &xcc_mqd_mem_obj,
867 NULL,
868 qp,
869 (uint8_t *)mqd_src + xcc * sizeof(*m),
870 (uint8_t *)ctl_stack_src + xcc * mqd_ctl_stack_size,
871 mqd_ctl_stack_size);
872 }
873
874 if (mqd_on_vram(mm->dev->adev))
875 amdgpu_device_flush_hdp(mm->dev->adev, NULL);
876 }
877
update_mqd_gpu_addr_v9_4_3(struct mqd_manager * mm,void * mqd,struct kfd_mem_obj * mqd_mem_obj,struct queue_properties * qp)878 static void update_mqd_gpu_addr_v9_4_3(struct mqd_manager *mm, void *mqd,
879 struct kfd_mem_obj *mqd_mem_obj,
880 struct queue_properties *qp)
881 {
882 struct kfd_mem_obj xcc_mqd_mem_obj;
883 uint64_t offset = mm->mqd_stride(mm, qp);
884 u32 num_xcc = NUM_XCC(mm->dev->xcc_mask);
885 struct v9_mqd *m;
886 int xcc;
887
888 memset(&xcc_mqd_mem_obj, 0x0, sizeof(struct kfd_mem_obj));
889
890 for (xcc = 0; xcc < num_xcc; xcc++) {
891 get_xcc_mqd(mqd_mem_obj, &xcc_mqd_mem_obj, offset * xcc);
892 m = get_mqd(mqd + offset * xcc);
893 m->cp_mqd_base_addr_lo = lower_32_bits(xcc_mqd_mem_obj.gpu_addr);
894 m->cp_mqd_base_addr_hi = upper_32_bits(xcc_mqd_mem_obj.gpu_addr);
895 }
896
897 if (mqd_on_vram(mm->dev->adev))
898 amdgpu_device_flush_hdp(mm->dev->adev, NULL);
899 }
900
destroy_mqd_v9_4_3(struct mqd_manager * mm,void * mqd,enum kfd_preempt_type type,unsigned int timeout,uint32_t pipe_id,uint32_t queue_id)901 static int destroy_mqd_v9_4_3(struct mqd_manager *mm, void *mqd,
902 enum kfd_preempt_type type, unsigned int timeout,
903 uint32_t pipe_id, uint32_t queue_id)
904 {
905 uint32_t xcc_mask = mm->dev->xcc_mask;
906 int xcc_id, err = 0, inst = 0;
907 void *xcc_mqd;
908 struct v9_mqd *m;
909 uint64_t mqd_offset;
910
911 m = get_mqd(mqd);
912 mqd_offset = m->cp_mqd_stride_size;
913
914 for_each_inst(xcc_id, xcc_mask) {
915 xcc_mqd = mqd + mqd_offset * inst;
916 err = mm->dev->kfd2kgd->hqd_destroy(mm->dev->adev, xcc_mqd,
917 type, timeout, pipe_id,
918 queue_id, xcc_id);
919 if (err) {
920 pr_debug("Destroy MQD failed for xcc: %d\n", inst);
921 break;
922 }
923 ++inst;
924 }
925
926 return err;
927 }
928
load_mqd_v9_4_3(struct mqd_manager * mm,void * mqd,uint32_t pipe_id,uint32_t queue_id,struct queue_properties * p,struct mm_struct * mms)929 static int load_mqd_v9_4_3(struct mqd_manager *mm, void *mqd,
930 uint32_t pipe_id, uint32_t queue_id,
931 struct queue_properties *p, struct mm_struct *mms)
932 {
933 /* AQL write pointer counts in 64B packets, PM4/CP counts in dwords. */
934 uint32_t wptr_shift = (p->format == KFD_QUEUE_FORMAT_AQL ? 4 : 0);
935 uint32_t xcc_mask = mm->dev->xcc_mask;
936 int xcc_id, err = 0, inst = 0;
937 void *xcc_mqd;
938 uint64_t mqd_stride_size = mm->mqd_stride(mm, p);
939
940 for_each_inst(xcc_id, xcc_mask) {
941 xcc_mqd = mqd + mqd_stride_size * inst;
942 err = mm->dev->kfd2kgd->hqd_load(
943 mm->dev->adev, xcc_mqd, pipe_id, queue_id,
944 (uint32_t __user *)p->write_ptr, wptr_shift, 0, mms,
945 xcc_id);
946 if (err) {
947 pr_debug("Load MQD failed for xcc: %d\n", inst);
948 break;
949 }
950 ++inst;
951 }
952
953 return err;
954 }
955
get_wave_state_v9_4_3(struct mqd_manager * mm,void * mqd,struct queue_properties * q,void __user * ctl_stack,u32 * ctl_stack_used_size,u32 * save_area_used_size)956 static int get_wave_state_v9_4_3(struct mqd_manager *mm, void *mqd,
957 struct queue_properties *q,
958 void __user *ctl_stack,
959 u32 *ctl_stack_used_size,
960 u32 *save_area_used_size)
961 {
962 int xcc, err = 0;
963 void *xcc_mqd;
964 void __user *xcc_ctl_stack;
965 uint64_t mqd_stride_size = mm->mqd_stride(mm, q);
966 u32 tmp_ctl_stack_used_size = 0, tmp_save_area_used_size = 0;
967
968 for (xcc = 0; xcc < NUM_XCC(mm->dev->xcc_mask); xcc++) {
969 xcc_mqd = mqd + mqd_stride_size * xcc;
970 xcc_ctl_stack = (void __user *)((uintptr_t)ctl_stack +
971 q->ctx_save_restore_area_size * xcc);
972
973 err = get_wave_state(mm, xcc_mqd, q, xcc_ctl_stack,
974 &tmp_ctl_stack_used_size,
975 &tmp_save_area_used_size);
976 if (err)
977 break;
978
979 /*
980 * Set the ctl_stack_used_size and save_area_used_size to
981 * ctl_stack_used_size and save_area_used_size of XCC 0 when
982 * passing the info the user-space.
983 * For multi XCC, user-space would have to look at the header
984 * info of each Control stack area to determine the control
985 * stack size and save area used.
986 */
987 if (xcc == 0) {
988 *ctl_stack_used_size = tmp_ctl_stack_used_size;
989 *save_area_used_size = tmp_save_area_used_size;
990 }
991 }
992
993 return err;
994 }
995
996 #if defined(CONFIG_DEBUG_FS)
997
debugfs_show_mqd(struct seq_file * m,void * data)998 static int debugfs_show_mqd(struct seq_file *m, void *data)
999 {
1000 seq_hex_dump(m, " ", DUMP_PREFIX_OFFSET, 32, 4,
1001 data, sizeof(struct v9_mqd), false);
1002 return 0;
1003 }
1004
debugfs_show_mqd_sdma(struct seq_file * m,void * data)1005 static int debugfs_show_mqd_sdma(struct seq_file *m, void *data)
1006 {
1007 seq_hex_dump(m, " ", DUMP_PREFIX_OFFSET, 32, 4,
1008 data, sizeof(struct v9_sdma_mqd), false);
1009 return 0;
1010 }
1011
1012 #endif
1013
mqd_manager_init_v9(enum KFD_MQD_TYPE type,struct kfd_node * dev)1014 struct mqd_manager *mqd_manager_init_v9(enum KFD_MQD_TYPE type,
1015 struct kfd_node *dev)
1016 {
1017 struct mqd_manager *mqd;
1018
1019 if (WARN_ON(type >= KFD_MQD_TYPE_MAX))
1020 return NULL;
1021
1022 mqd = kzalloc_obj(*mqd);
1023 if (!mqd)
1024 return NULL;
1025
1026 mqd->dev = dev;
1027
1028 switch (type) {
1029 case KFD_MQD_TYPE_CP:
1030 mqd->allocate_mqd = allocate_mqd;
1031 mqd->free_mqd = kfd_free_mqd_cp;
1032 mqd->is_occupied = kfd_is_occupied_cp;
1033 mqd->get_checkpoint_info = get_checkpoint_info;
1034 mqd->mqd_size = sizeof(struct v9_mqd);
1035 if (dev->kfd->cwsr_enabled) {
1036 struct kfd_topology_device *topo_dev;
1037
1038 topo_dev = kfd_topology_device_by_id(dev->id);
1039 if (topo_dev)
1040 mqd->ctl_stack_size =
1041 ALIGN(topo_dev->node_props.ctl_stack_size,
1042 AMDGPU_GPU_PAGE_SIZE);
1043 }
1044 mqd->mqd_stride = mqd_stride_v9;
1045 #if defined(CONFIG_DEBUG_FS)
1046 mqd->debugfs_show_mqd = debugfs_show_mqd;
1047 #endif
1048 if (KFD_GC_VERSION(dev) == IP_VERSION(9, 4, 3) ||
1049 KFD_GC_VERSION(dev) == IP_VERSION(9, 4, 4) ||
1050 KFD_GC_VERSION(dev) == IP_VERSION(9, 5, 0)) {
1051 mqd->init_mqd = init_mqd_v9_4_3;
1052 mqd->load_mqd = load_mqd_v9_4_3;
1053 mqd->update_mqd = update_mqd_v9_4_3;
1054 mqd->destroy_mqd = destroy_mqd_v9_4_3;
1055 mqd->get_wave_state = get_wave_state_v9_4_3;
1056 mqd->checkpoint_mqd = checkpoint_mqd_v9_4_3;
1057 mqd->restore_mqd = restore_mqd_v9_4_3;
1058 mqd->update_mqd_gpu_addr = update_mqd_gpu_addr_v9_4_3;
1059 } else {
1060 mqd->init_mqd = init_mqd;
1061 mqd->load_mqd = load_mqd;
1062 mqd->update_mqd = update_mqd;
1063 mqd->destroy_mqd = kfd_destroy_mqd_cp;
1064 mqd->get_wave_state = get_wave_state;
1065 mqd->checkpoint_mqd = checkpoint_mqd;
1066 mqd->restore_mqd = restore_mqd;
1067 mqd->update_mqd_gpu_addr = update_mqd_gpu_addr;
1068 }
1069 break;
1070 case KFD_MQD_TYPE_HIQ:
1071 mqd->allocate_mqd = allocate_hiq_mqd;
1072 mqd->free_mqd = free_mqd_hiq_sdma;
1073 mqd->update_mqd = update_mqd;
1074 mqd->is_occupied = kfd_is_occupied_cp;
1075 mqd->mqd_size = sizeof(struct v9_mqd);
1076 mqd->mqd_stride = kfd_mqd_stride;
1077 #if defined(CONFIG_DEBUG_FS)
1078 mqd->debugfs_show_mqd = debugfs_show_mqd;
1079 #endif
1080 mqd->check_preemption_failed = check_preemption_failed;
1081 if (KFD_GC_VERSION(dev) == IP_VERSION(9, 4, 3) ||
1082 KFD_GC_VERSION(dev) == IP_VERSION(9, 4, 4) ||
1083 KFD_GC_VERSION(dev) == IP_VERSION(9, 5, 0)) {
1084 mqd->init_mqd = init_mqd_hiq_v9_4_3;
1085 mqd->load_mqd = hiq_load_mqd_kiq_v9_4_3;
1086 mqd->destroy_mqd = destroy_hiq_mqd_v9_4_3;
1087 mqd->check_preemption_failed = check_preemption_failed_v9_4_3;
1088 } else {
1089 mqd->init_mqd = init_mqd_hiq;
1090 mqd->load_mqd = kfd_hiq_load_mqd_kiq;
1091 mqd->destroy_mqd = destroy_hiq_mqd;
1092 mqd->check_preemption_failed = check_preemption_failed;
1093 }
1094 break;
1095 case KFD_MQD_TYPE_DIQ:
1096 mqd->allocate_mqd = allocate_mqd;
1097 mqd->init_mqd = init_mqd_hiq;
1098 mqd->free_mqd = kfd_free_mqd_cp;
1099 mqd->load_mqd = load_mqd;
1100 mqd->update_mqd = update_mqd;
1101 mqd->destroy_mqd = kfd_destroy_mqd_cp;
1102 mqd->is_occupied = kfd_is_occupied_cp;
1103 mqd->mqd_size = sizeof(struct v9_mqd);
1104 #if defined(CONFIG_DEBUG_FS)
1105 mqd->debugfs_show_mqd = debugfs_show_mqd;
1106 #endif
1107 break;
1108 case KFD_MQD_TYPE_SDMA:
1109 mqd->allocate_mqd = allocate_sdma_mqd;
1110 mqd->init_mqd = init_mqd_sdma;
1111 mqd->free_mqd = free_mqd_hiq_sdma;
1112 mqd->load_mqd = kfd_load_mqd_sdma;
1113 mqd->update_mqd = update_mqd_sdma;
1114 mqd->destroy_mqd = kfd_destroy_mqd_sdma;
1115 mqd->is_occupied = kfd_is_occupied_sdma;
1116 mqd->checkpoint_mqd = checkpoint_mqd_sdma;
1117 mqd->restore_mqd = restore_mqd_sdma;
1118 mqd->mqd_size = sizeof(struct v9_sdma_mqd);
1119 mqd->mqd_stride = kfd_mqd_stride;
1120 #if defined(CONFIG_DEBUG_FS)
1121 mqd->debugfs_show_mqd = debugfs_show_mqd_sdma;
1122 #endif
1123 break;
1124 default:
1125 kfree(mqd);
1126 return NULL;
1127 }
1128
1129 return mqd;
1130 }
1131