drm/amdkfd: Add static user-mode queues support
[linux-2.6-block.git] / drivers / gpu / drm / amd / amdkfd / kfd_priv.h
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1/*
2 * Copyright 2014 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#ifndef KFD_PRIV_H_INCLUDED
24#define KFD_PRIV_H_INCLUDED
25
26#include <linux/hashtable.h>
27#include <linux/mmu_notifier.h>
28#include <linux/mutex.h>
29#include <linux/types.h>
30#include <linux/atomic.h>
31#include <linux/workqueue.h>
32#include <linux/spinlock.h>
19f6d2a6 33#include <linux/kfd_ioctl.h>
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34#include <kgd_kfd_interface.h>
35
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36#define KFD_SYSFS_FILE_MODE 0444
37
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38#define KFD_MMAP_DOORBELL_MASK 0x8000000000000
39#define KFD_MMAP_EVENTS_MASK 0x4000000000000
40
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41/*
42 * When working with cp scheduler we should assign the HIQ manually or via
43 * the radeon driver to a fixed hqd slot, here are the fixed HIQ hqd slot
44 * definitions for Kaveri. In Kaveri only the first ME queues participates
45 * in the cp scheduling taking that in mind we set the HIQ slot in the
46 * second ME.
47 */
48#define KFD_CIK_HIQ_PIPE 4
49#define KFD_CIK_HIQ_QUEUE 0
50
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51/* GPU ID hash width in bits */
52#define KFD_GPU_ID_HASH_WIDTH 16
53
54/* Macro for allocating structures */
55#define kfd_alloc_struct(ptr_to_struct) \
56 ((typeof(ptr_to_struct)) kzalloc(sizeof(*ptr_to_struct), GFP_KERNEL))
57
19f6d2a6 58#define KFD_MAX_NUM_OF_PROCESSES 512
b8cbab04 59#define KFD_MAX_NUM_OF_QUEUES_PER_PROCESS 1024
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60
61/*
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62 * Kernel module parameter to specify maximum number of supported queues per
63 * device
19f6d2a6 64 */
b8cbab04 65extern int max_num_of_queues_per_device;
19f6d2a6 66
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67#define KFD_MAX_NUM_OF_QUEUES_PER_DEVICE_DEFAULT 4096
68#define KFD_MAX_NUM_OF_QUEUES_PER_DEVICE \
69 (KFD_MAX_NUM_OF_PROCESSES * \
70 KFD_MAX_NUM_OF_QUEUES_PER_PROCESS)
19f6d2a6 71
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72#define KFD_KERNEL_QUEUE_SIZE 2048
73
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74/* Kernel module parameter to specify the scheduling policy */
75extern int sched_policy;
76
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77/*
78 * Kernel module parameter to specify whether to send sigterm to HSA process on
79 * unhandled exception
80 */
81extern int send_sigterm;
82
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83/**
84 * enum kfd_sched_policy
85 *
86 * @KFD_SCHED_POLICY_HWS: H/W scheduling policy known as command processor (cp)
87 * scheduling. In this scheduling mode we're using the firmware code to
88 * schedule the user mode queues and kernel queues such as HIQ and DIQ.
89 * the HIQ queue is used as a special queue that dispatches the configuration
90 * to the cp and the user mode queues list that are currently running.
91 * the DIQ queue is a debugging queue that dispatches debugging commands to the
92 * firmware.
93 * in this scheduling mode user mode queues over subscription feature is
94 * enabled.
95 *
96 * @KFD_SCHED_POLICY_HWS_NO_OVERSUBSCRIPTION: The same as above but the over
97 * subscription feature disabled.
98 *
99 * @KFD_SCHED_POLICY_NO_HWS: no H/W scheduling policy is a mode which directly
100 * set the command processor registers and sets the queues "manually". This
101 * mode is used *ONLY* for debugging proposes.
102 *
103 */
104enum kfd_sched_policy {
105 KFD_SCHED_POLICY_HWS = 0,
106 KFD_SCHED_POLICY_HWS_NO_OVERSUBSCRIPTION,
107 KFD_SCHED_POLICY_NO_HWS
108};
109
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110enum cache_policy {
111 cache_policy_coherent,
112 cache_policy_noncoherent
113};
114
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115enum asic_family_type {
116 CHIP_KAVERI = 0,
117 CHIP_CARRIZO
118};
119
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120struct kfd_event_interrupt_class {
121 bool (*interrupt_isr)(struct kfd_dev *dev,
122 const uint32_t *ih_ring_entry);
123 void (*interrupt_wq)(struct kfd_dev *dev,
124 const uint32_t *ih_ring_entry);
125};
126
4a488a7a 127struct kfd_device_info {
0da7558c 128 unsigned int asic_family;
f3a39818 129 const struct kfd_event_interrupt_class *event_interrupt_class;
4a488a7a 130 unsigned int max_pasid_bits;
992839ad 131 unsigned int max_no_of_hqd;
4a488a7a 132 size_t ih_ring_entry_size;
f7c826ad 133 uint8_t num_of_watch_points;
19f6d2a6 134 uint16_t mqd_size_aligned;
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135};
136
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137struct kfd_mem_obj {
138 uint32_t range_start;
139 uint32_t range_end;
140 uint64_t gpu_addr;
141 uint32_t *cpu_ptr;
142};
143
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144struct kfd_dev {
145 struct kgd_dev *kgd;
146
147 const struct kfd_device_info *device_info;
148 struct pci_dev *pdev;
149
150 unsigned int id; /* topology stub index */
151
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152 phys_addr_t doorbell_base; /* Start of actual doorbells used by
153 * KFD. It is aligned for mapping
154 * into user mode
155 */
156 size_t doorbell_id_offset; /* Doorbell offset (from KFD doorbell
157 * to HW doorbell, GFX reserved some
158 * at the start)
159 */
160 size_t doorbell_process_limit; /* Number of processes we have doorbell
161 * space for.
162 */
163 u32 __iomem *doorbell_kernel_ptr; /* This is a pointer for a doorbells
164 * page used by kernel queue
165 */
166
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167 struct kgd2kfd_shared_resources shared_resources;
168
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169 const struct kfd2kgd_calls *kfd2kgd;
170 struct mutex doorbell_mutex;
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171 DECLARE_BITMAP(doorbell_available_index,
172 KFD_MAX_NUM_OF_QUEUES_PER_PROCESS);
cea405b1 173
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174 void *gtt_mem;
175 uint64_t gtt_start_gpu_addr;
176 void *gtt_start_cpu_ptr;
177 void *gtt_sa_bitmap;
178 struct mutex gtt_sa_lock;
179 unsigned int gtt_sa_chunk_size;
180 unsigned int gtt_sa_num_of_chunks;
181
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182 /* Interrupts */
183 void *interrupt_ring;
184 size_t interrupt_ring_size;
185 atomic_t interrupt_ring_rptr;
186 atomic_t interrupt_ring_wptr;
187 struct work_struct interrupt_work;
188 spinlock_t interrupt_lock;
189
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190 /* QCM Device instance */
191 struct device_queue_manager *dqm;
4a488a7a 192
ed6e6a34 193 bool init_complete;
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194 /*
195 * Interrupts of interest to KFD are copied
196 * from the HW ring into a SW ring.
197 */
198 bool interrupts_active;
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199};
200
201/* KGD2KFD callbacks */
202void kgd2kfd_exit(void);
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203struct kfd_dev *kgd2kfd_probe(struct kgd_dev *kgd,
204 struct pci_dev *pdev, const struct kfd2kgd_calls *f2g);
4a488a7a 205bool kgd2kfd_device_init(struct kfd_dev *kfd,
cea405b1 206 const struct kgd2kfd_shared_resources *gpu_resources);
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207void kgd2kfd_device_exit(struct kfd_dev *kfd);
208
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209enum kfd_mempool {
210 KFD_MEMPOOL_SYSTEM_CACHEABLE = 1,
211 KFD_MEMPOOL_SYSTEM_WRITECOMBINE = 2,
212 KFD_MEMPOOL_FRAMEBUFFER = 3,
213};
214
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215/* Character device interface */
216int kfd_chardev_init(void);
217void kfd_chardev_exit(void);
218struct device *kfd_chardev(void);
219
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220/**
221 * enum kfd_preempt_type_filter
222 *
223 * @KFD_PREEMPT_TYPE_FILTER_SINGLE_QUEUE: Preempts single queue.
224 *
225 * @KFD_PRERMPT_TYPE_FILTER_ALL_QUEUES: Preempts all queues in the
226 * running queues list.
227 *
228 * @KFD_PRERMPT_TYPE_FILTER_BY_PASID: Preempts queues that belongs to
229 * specific process.
230 *
231 */
232enum kfd_preempt_type_filter {
233 KFD_PREEMPT_TYPE_FILTER_SINGLE_QUEUE,
234 KFD_PREEMPT_TYPE_FILTER_ALL_QUEUES,
992839ad 235 KFD_PREEMPT_TYPE_FILTER_DYNAMIC_QUEUES,
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236 KFD_PREEMPT_TYPE_FILTER_BY_PASID
237};
19f6d2a6 238
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239enum kfd_preempt_type {
240 KFD_PREEMPT_TYPE_WAVEFRONT,
241 KFD_PREEMPT_TYPE_WAVEFRONT_RESET
242};
243
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244/**
245 * enum kfd_queue_type
246 *
247 * @KFD_QUEUE_TYPE_COMPUTE: Regular user mode queue type.
248 *
249 * @KFD_QUEUE_TYPE_SDMA: Sdma user mode queue type.
250 *
251 * @KFD_QUEUE_TYPE_HIQ: HIQ queue type.
252 *
253 * @KFD_QUEUE_TYPE_DIQ: DIQ queue type.
254 */
255enum kfd_queue_type {
256 KFD_QUEUE_TYPE_COMPUTE,
257 KFD_QUEUE_TYPE_SDMA,
258 KFD_QUEUE_TYPE_HIQ,
259 KFD_QUEUE_TYPE_DIQ
260};
261
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262enum kfd_queue_format {
263 KFD_QUEUE_FORMAT_PM4,
264 KFD_QUEUE_FORMAT_AQL
265};
266
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267/**
268 * struct queue_properties
269 *
270 * @type: The queue type.
271 *
272 * @queue_id: Queue identifier.
273 *
274 * @queue_address: Queue ring buffer address.
275 *
276 * @queue_size: Queue ring buffer size.
277 *
278 * @priority: Defines the queue priority relative to other queues in the
279 * process.
280 * This is just an indication and HW scheduling may override the priority as
281 * necessary while keeping the relative prioritization.
282 * the priority granularity is from 0 to f which f is the highest priority.
283 * currently all queues are initialized with the highest priority.
284 *
285 * @queue_percent: This field is partially implemented and currently a zero in
286 * this field defines that the queue is non active.
287 *
288 * @read_ptr: User space address which points to the number of dwords the
289 * cp read from the ring buffer. This field updates automatically by the H/W.
290 *
291 * @write_ptr: Defines the number of dwords written to the ring buffer.
292 *
293 * @doorbell_ptr: This field aim is to notify the H/W of new packet written to
294 * the queue ring buffer. This field should be similar to write_ptr and the user
295 * should update this field after he updated the write_ptr.
296 *
297 * @doorbell_off: The doorbell offset in the doorbell pci-bar.
298 *
299 * @is_interop: Defines if this is a interop queue. Interop queue means that the
300 * queue can access both graphics and compute resources.
301 *
302 * @is_active: Defines if the queue is active or not.
303 *
304 * @vmid: If the scheduling mode is no cp scheduling the field defines the vmid
305 * of the queue.
306 *
307 * This structure represents the queue properties for each queue no matter if
308 * it's user mode or kernel mode queue.
309 *
310 */
311struct queue_properties {
312 enum kfd_queue_type type;
6e99df57 313 enum kfd_queue_format format;
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314 unsigned int queue_id;
315 uint64_t queue_address;
316 uint64_t queue_size;
317 uint32_t priority;
318 uint32_t queue_percent;
319 uint32_t *read_ptr;
320 uint32_t *write_ptr;
5cd78de5 321 uint32_t __iomem *doorbell_ptr;
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322 uint32_t doorbell_off;
323 bool is_interop;
324 bool is_active;
325 /* Not relevant for user mode queues in cp scheduling */
326 unsigned int vmid;
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327 /* Relevant only for sdma queues*/
328 uint32_t sdma_engine_id;
329 uint32_t sdma_queue_id;
330 uint32_t sdma_vm_addr;
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331 /* Relevant only for VI */
332 uint64_t eop_ring_buffer_address;
333 uint32_t eop_ring_buffer_size;
334 uint64_t ctx_save_restore_area_address;
335 uint32_t ctx_save_restore_area_size;
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336};
337
338/**
339 * struct queue
340 *
341 * @list: Queue linked list.
342 *
343 * @mqd: The queue MQD.
344 *
345 * @mqd_mem_obj: The MQD local gpu memory object.
346 *
347 * @gart_mqd_addr: The MQD gart mc address.
348 *
349 * @properties: The queue properties.
350 *
351 * @mec: Used only in no cp scheduling mode and identifies to micro engine id
352 * that the queue should be execute on.
353 *
354 * @pipe: Used only in no cp scheduling mode and identifies the queue's pipe id.
355 *
356 * @queue: Used only in no cp scheduliong mode and identifies the queue's slot.
357 *
358 * @process: The kfd process that created this queue.
359 *
360 * @device: The kfd device that created this queue.
361 *
362 * This structure represents user mode compute queues.
363 * It contains all the necessary data to handle such queues.
364 *
365 */
366
367struct queue {
368 struct list_head list;
369 void *mqd;
370 struct kfd_mem_obj *mqd_mem_obj;
371 uint64_t gart_mqd_addr;
372 struct queue_properties properties;
373
374 uint32_t mec;
375 uint32_t pipe;
376 uint32_t queue;
377
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378 unsigned int sdma_id;
379
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380 struct kfd_process *process;
381 struct kfd_dev *device;
382};
383
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384/*
385 * Please read the kfd_mqd_manager.h description.
386 */
387enum KFD_MQD_TYPE {
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388 KFD_MQD_TYPE_COMPUTE = 0, /* for no cp scheduling */
389 KFD_MQD_TYPE_HIQ, /* for hiq */
390 KFD_MQD_TYPE_CP, /* for cp queues and diq */
391 KFD_MQD_TYPE_SDMA, /* for sdma queues */
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392 KFD_MQD_TYPE_MAX
393};
394
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395struct scheduling_resources {
396 unsigned int vmid_mask;
397 enum kfd_queue_type type;
398 uint64_t queue_mask;
399 uint64_t gws_mask;
400 uint32_t oac_mask;
401 uint32_t gds_heap_base;
402 uint32_t gds_heap_size;
403};
404
405struct process_queue_manager {
406 /* data */
407 struct kfd_process *process;
408 unsigned int num_concurrent_processes;
409 struct list_head queues;
410 unsigned long *queue_slot_bitmap;
411};
412
413struct qcm_process_device {
414 /* The Device Queue Manager that owns this data */
415 struct device_queue_manager *dqm;
416 struct process_queue_manager *pqm;
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417 /* Queues list */
418 struct list_head queues_list;
419 struct list_head priv_queue_list;
420
421 unsigned int queue_count;
422 unsigned int vmid;
423 bool is_debug;
424 /*
425 * All the memory management data should be here too
426 */
427 uint64_t gds_context_area;
428 uint32_t sh_mem_config;
429 uint32_t sh_mem_bases;
430 uint32_t sh_mem_ape1_base;
431 uint32_t sh_mem_ape1_limit;
432 uint32_t page_table_base;
433 uint32_t gds_size;
434 uint32_t num_gws;
435 uint32_t num_oac;
436};
437
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438/* Data that is per-process-per device. */
439struct kfd_process_device {
440 /*
441 * List of all per-device data for a process.
442 * Starts from kfd_process.per_device_data.
443 */
444 struct list_head per_device_list;
445
446 /* The device that owns this data. */
447 struct kfd_dev *dev;
448
449
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450 /* per-process-per device QCM data structure */
451 struct qcm_process_device qpd;
452
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453 /*Apertures*/
454 uint64_t lds_base;
455 uint64_t lds_limit;
456 uint64_t gpuvm_base;
457 uint64_t gpuvm_limit;
458 uint64_t scratch_base;
459 uint64_t scratch_limit;
460
461 /* Is this process/pasid bound to this device? (amd_iommu_bind_pasid) */
462 bool bound;
463};
464
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465#define qpd_to_pdd(x) container_of(x, struct kfd_process_device, qpd)
466
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467/* Process data */
468struct kfd_process {
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469 /*
470 * kfd_process are stored in an mm_struct*->kfd_process*
471 * hash table (kfd_processes in kfd_process.c)
472 */
473 struct hlist_node kfd_processes;
474
475 struct mm_struct *mm;
476
477 struct mutex mutex;
478
479 /*
480 * In any process, the thread that started main() is the lead
481 * thread and outlives the rest.
482 * It is here because amd_iommu_bind_pasid wants a task_struct.
483 */
484 struct task_struct *lead_thread;
485
486 /* We want to receive a notification when the mm_struct is destroyed */
487 struct mmu_notifier mmu_notifier;
488
489 /* Use for delayed freeing of kfd_process structure */
490 struct rcu_head rcu;
491
492 unsigned int pasid;
493
494 /*
495 * List of kfd_process_device structures,
496 * one for each device the process is using.
497 */
498 struct list_head per_device_data;
499
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500 struct process_queue_manager pqm;
501
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502 /* The process's queues. */
503 size_t queue_array_size;
504
505 /* Size is queue_array_size, up to MAX_PROCESS_QUEUES. */
506 struct kfd_queue **queues;
507
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508 /*Is the user space process 32 bit?*/
509 bool is_32bit_user_mode;
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510
511 /* Event-related data */
512 struct mutex event_mutex;
513 /* All events in process hashed by ID, linked on kfd_event.events. */
514 DECLARE_HASHTABLE(events, 4);
515 struct list_head signal_event_pages; /* struct slot_page_header.
516 event_pages */
517 u32 next_nonsignal_event_id;
518 size_t signal_event_count;
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519};
520
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521/**
522 * Ioctl function type.
523 *
524 * \param filep pointer to file structure.
525 * \param p amdkfd process pointer.
526 * \param data pointer to arg that was copied from user.
527 */
528typedef int amdkfd_ioctl_t(struct file *filep, struct kfd_process *p,
529 void *data);
530
531struct amdkfd_ioctl_desc {
532 unsigned int cmd;
533 int flags;
534 amdkfd_ioctl_t *func;
535 unsigned int cmd_drv;
536 const char *name;
537};
538
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539void kfd_process_create_wq(void);
540void kfd_process_destroy_wq(void);
541struct kfd_process *kfd_create_process(const struct task_struct *);
542struct kfd_process *kfd_get_process(const struct task_struct *);
f3a39818 543struct kfd_process *kfd_lookup_process_by_pasid(unsigned int pasid);
19f6d2a6 544
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545struct kfd_process_device *kfd_bind_process_to_device(struct kfd_dev *dev,
546 struct kfd_process *p);
b17f068a 547void kfd_unbind_process_from_device(struct kfd_dev *dev, unsigned int pasid);
19f6d2a6 548struct kfd_process_device *kfd_get_process_device_data(struct kfd_dev *dev,
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549 struct kfd_process *p);
550struct kfd_process_device *kfd_create_process_device_data(struct kfd_dev *dev,
551 struct kfd_process *p);
19f6d2a6 552
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553/* Process device data iterator */
554struct kfd_process_device *kfd_get_first_process_device_data(struct kfd_process *p);
555struct kfd_process_device *kfd_get_next_process_device_data(struct kfd_process *p,
556 struct kfd_process_device *pdd);
557bool kfd_has_process_device_data(struct kfd_process *p);
558
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559/* PASIDs */
560int kfd_pasid_init(void);
561void kfd_pasid_exit(void);
562bool kfd_set_pasid_limit(unsigned int new_limit);
563unsigned int kfd_get_pasid_limit(void);
564unsigned int kfd_pasid_alloc(void);
565void kfd_pasid_free(unsigned int pasid);
566
567/* Doorbells */
568void kfd_doorbell_init(struct kfd_dev *kfd);
569int kfd_doorbell_mmap(struct kfd_process *process, struct vm_area_struct *vma);
570u32 __iomem *kfd_get_kernel_doorbell(struct kfd_dev *kfd,
571 unsigned int *doorbell_off);
572void kfd_release_kernel_doorbell(struct kfd_dev *kfd, u32 __iomem *db_addr);
573u32 read_kernel_doorbell(u32 __iomem *db);
574void write_kernel_doorbell(u32 __iomem *db, u32 value);
575unsigned int kfd_queue_id_to_doorbell(struct kfd_dev *kfd,
576 struct kfd_process *process,
577 unsigned int queue_id);
578
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579/* GTT Sub-Allocator */
580
581int kfd_gtt_sa_allocate(struct kfd_dev *kfd, unsigned int size,
582 struct kfd_mem_obj **mem_obj);
583
584int kfd_gtt_sa_free(struct kfd_dev *kfd, struct kfd_mem_obj *mem_obj);
585
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586extern struct device *kfd_device;
587
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588/* Topology */
589int kfd_topology_init(void);
590void kfd_topology_shutdown(void);
591int kfd_topology_add_device(struct kfd_dev *gpu);
592int kfd_topology_remove_device(struct kfd_dev *gpu);
593struct kfd_dev *kfd_device_by_id(uint32_t gpu_id);
594struct kfd_dev *kfd_device_by_pci_dev(const struct pci_dev *pdev);
595struct kfd_dev *kfd_topology_enum_kfd_devices(uint8_t idx);
596
4a488a7a 597/* Interrupts */
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598int kfd_interrupt_init(struct kfd_dev *dev);
599void kfd_interrupt_exit(struct kfd_dev *dev);
b3f5e6b4 600void kgd2kfd_interrupt(struct kfd_dev *kfd, const void *ih_ring_entry);
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601bool enqueue_ih_ring_entry(struct kfd_dev *kfd, const void *ih_ring_entry);
602bool interrupt_is_wanted(struct kfd_dev *dev, const uint32_t *ih_ring_entry);
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603
604/* Power Management */
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605void kgd2kfd_suspend(struct kfd_dev *kfd);
606int kgd2kfd_resume(struct kfd_dev *kfd);
4a488a7a 607
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608/* amdkfd Apertures */
609int kfd_init_apertures(struct kfd_process *process);
610
ed6e6a34 611/* Queue Context Management */
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612inline uint32_t lower_32(uint64_t x);
613inline uint32_t upper_32(uint64_t x);
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614struct cik_sdma_rlc_registers *get_sdma_mqd(void *mqd);
615inline uint32_t get_sdma_base_addr(struct cik_sdma_rlc_registers *m);
241f24f8 616
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617int init_queue(struct queue **q, struct queue_properties properties);
618void uninit_queue(struct queue *q);
45102048 619void print_queue_properties(struct queue_properties *q);
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620void print_queue(struct queue *q);
621
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622struct mqd_manager *mqd_manager_init(enum KFD_MQD_TYPE type,
623 struct kfd_dev *dev);
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624struct mqd_manager *mqd_manager_init_cik(enum KFD_MQD_TYPE type,
625 struct kfd_dev *dev);
626struct mqd_manager *mqd_manager_init_vi(enum KFD_MQD_TYPE type,
627 struct kfd_dev *dev);
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628struct device_queue_manager *device_queue_manager_init(struct kfd_dev *dev);
629void device_queue_manager_uninit(struct device_queue_manager *dqm);
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630struct kernel_queue *kernel_queue_init(struct kfd_dev *dev,
631 enum kfd_queue_type type);
632void kernel_queue_uninit(struct kernel_queue *kq);
633
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634/* Process Queue Manager */
635struct process_queue_node {
636 struct queue *q;
637 struct kernel_queue *kq;
638 struct list_head process_queue_list;
639};
640
641int pqm_init(struct process_queue_manager *pqm, struct kfd_process *p);
642void pqm_uninit(struct process_queue_manager *pqm);
643int pqm_create_queue(struct process_queue_manager *pqm,
644 struct kfd_dev *dev,
645 struct file *f,
646 struct queue_properties *properties,
647 unsigned int flags,
648 enum kfd_queue_type type,
649 unsigned int *qid);
650int pqm_destroy_queue(struct process_queue_manager *pqm, unsigned int qid);
651int pqm_update_queue(struct process_queue_manager *pqm, unsigned int qid,
652 struct queue_properties *p);
653
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654/* Packet Manager */
655
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656#define KFD_HIQ_TIMEOUT (500)
657
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658#define KFD_FENCE_COMPLETED (100)
659#define KFD_FENCE_INIT (10)
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660#define KFD_UNMAP_LATENCY (150)
661
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662struct packet_manager {
663 struct device_queue_manager *dqm;
664 struct kernel_queue *priv_queue;
665 struct mutex lock;
666 bool allocated;
667 struct kfd_mem_obj *ib_buffer_obj;
668};
669
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670int pm_init(struct packet_manager *pm, struct device_queue_manager *dqm);
671void pm_uninit(struct packet_manager *pm);
672int pm_send_set_resources(struct packet_manager *pm,
673 struct scheduling_resources *res);
674int pm_send_runlist(struct packet_manager *pm, struct list_head *dqm_queues);
675int pm_send_query_status(struct packet_manager *pm, uint64_t fence_address,
676 uint32_t fence_value);
677
678int pm_send_unmap_queue(struct packet_manager *pm, enum kfd_queue_type type,
679 enum kfd_preempt_type_filter mode,
680 uint32_t filter_param, bool reset,
681 unsigned int sdma_engine);
682
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683void pm_release_ib(struct packet_manager *pm);
684
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685uint64_t kfd_get_number_elems(struct kfd_dev *kfd);
686phys_addr_t kfd_get_process_doorbells(struct kfd_dev *dev,
687 struct kfd_process *process);
688
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689/* Events */
690extern const struct kfd_event_interrupt_class event_interrupt_class_cik;
930c5ff4 691extern const struct kfd_device_global_init_class device_global_init_class_cik;
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692
693enum kfd_event_wait_result {
694 KFD_WAIT_COMPLETE,
695 KFD_WAIT_TIMEOUT,
696 KFD_WAIT_ERROR
697};
698
699void kfd_event_init_process(struct kfd_process *p);
700void kfd_event_free_process(struct kfd_process *p);
701int kfd_event_mmap(struct kfd_process *process, struct vm_area_struct *vma);
702int kfd_wait_on_events(struct kfd_process *p,
59d3e8be 703 uint32_t num_events, void __user *data,
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704 bool all, uint32_t user_timeout_ms,
705 enum kfd_event_wait_result *wait_result);
706void kfd_signal_event_interrupt(unsigned int pasid, uint32_t partial_id,
707 uint32_t valid_id_bits);
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708void kfd_signal_iommu_event(struct kfd_dev *dev,
709 unsigned int pasid, unsigned long address,
710 bool is_write_requested, bool is_execute_requested);
930c5ff4 711void kfd_signal_hw_exception_event(unsigned int pasid);
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712int kfd_set_event(struct kfd_process *p, uint32_t event_id);
713int kfd_reset_event(struct kfd_process *p, uint32_t event_id);
714int kfd_event_create(struct file *devkfd, struct kfd_process *p,
715 uint32_t event_type, bool auto_reset, uint32_t node_id,
716 uint32_t *event_id, uint32_t *event_trigger_data,
717 uint64_t *event_page_offset, uint32_t *event_slot_index);
718int kfd_event_destroy(struct kfd_process *p, uint32_t event_id);
719
4a488a7a 720#endif