1 // SPDX-License-Identifier: GPL-2.0 or MIT 2 /* Copyright 2023 Collabora ltd. */ 3 4 #include <drm/drm_drv.h> 5 #include <drm/drm_exec.h> 6 #include <drm/drm_file.h> 7 #include <drm/drm_managed.h> 8 #include <drm/drm_print.h> 9 #include <drm/gpu_scheduler.h> 10 #include <drm/panthor_drm.h> 11 12 #include <linux/build_bug.h> 13 #include <linux/cleanup.h> 14 #include <linux/clk.h> 15 #include <linux/delay.h> 16 #include <linux/dma-mapping.h> 17 #include <linux/dma-resv.h> 18 #include <linux/firmware.h> 19 #include <linux/interrupt.h> 20 #include <linux/io.h> 21 #include <linux/iopoll.h> 22 #include <linux/iosys-map.h> 23 #include <linux/module.h> 24 #include <linux/platform_device.h> 25 #include <linux/pm_runtime.h> 26 #include <linux/rcupdate.h> 27 28 #include "panthor_devfreq.h" 29 #include "panthor_device.h" 30 #include "panthor_fw.h" 31 #include "panthor_fw_regs.h" 32 #include "panthor_gem.h" 33 #include "panthor_gpu.h" 34 #include "panthor_gpu_regs.h" 35 #include "panthor_heap.h" 36 #include "panthor_mmu.h" 37 #include "panthor_sched.h" 38 39 /** 40 * DOC: Scheduler 41 * 42 * Mali CSF hardware adopts a firmware-assisted scheduling model, where 43 * the firmware takes care of scheduling aspects, to some extent. 44 * 45 * The scheduling happens at the scheduling group level, each group 46 * contains 1 to N queues (N is FW/hardware dependent, and exposed 47 * through the firmware interface). Each queue is assigned a command 48 * stream ring buffer, which serves as a way to get jobs submitted to 49 * the GPU, among other things. 50 * 51 * The firmware can schedule a maximum of M groups (M is FW/hardware 52 * dependent, and exposed through the firmware interface). Passed 53 * this maximum number of groups, the kernel must take care of 54 * rotating the groups passed to the firmware so every group gets 55 * a chance to have his queues scheduled for execution. 56 * 57 * The current implementation only supports with kernel-mode queues. 58 * In other terms, userspace doesn't have access to the ring-buffer. 59 * Instead, userspace passes indirect command stream buffers that are 60 * called from the queue ring-buffer by the kernel using a pre-defined 61 * sequence of command stream instructions to ensure the userspace driver 62 * always gets consistent results (cache maintenance, 63 * synchronization, ...). 64 * 65 * We rely on the drm_gpu_scheduler framework to deal with job 66 * dependencies and submission. As any other driver dealing with a 67 * FW-scheduler, we use the 1:1 entity:scheduler mode, such that each 68 * entity has its own job scheduler. When a job is ready to be executed 69 * (all its dependencies are met), it is pushed to the appropriate 70 * queue ring-buffer, and the group is scheduled for execution if it 71 * wasn't already active. 72 * 73 * Kernel-side group scheduling is timeslice-based. When we have less 74 * groups than there are slots, the periodic tick is disabled and we 75 * just let the FW schedule the active groups. When there are more 76 * groups than slots, we let each group a chance to execute stuff for 77 * a given amount of time, and then re-evaluate and pick new groups 78 * to schedule. The group selection algorithm is based on 79 * priority+round-robin. 80 * 81 * Even though user-mode queues is out of the scope right now, the 82 * current design takes them into account by avoiding any guess on the 83 * group/queue state that would be based on information we wouldn't have 84 * if userspace was in charge of the ring-buffer. That's also one of the 85 * reason we don't do 'cooperative' scheduling (encoding FW group slot 86 * reservation as dma_fence that would be returned from the 87 * drm_gpu_scheduler::prepare_job() hook, and treating group rotation as 88 * a queue of waiters, ordered by job submission order). This approach 89 * would work for kernel-mode queues, but would make user-mode queues a 90 * lot more complicated to retrofit. 91 */ 92 93 #define JOB_TIMEOUT_MS 5000 94 95 #define MAX_CSG_PRIO 0xf 96 97 #define NUM_INSTRS_PER_CACHE_LINE (64 / sizeof(u64)) 98 #define MAX_INSTRS_PER_JOB 24 99 100 struct panthor_group; 101 102 /** 103 * struct panthor_csg_slot - Command stream group slot 104 * 105 * This represents a FW slot for a scheduling group. 106 */ 107 struct panthor_csg_slot { 108 /** @group: Scheduling group bound to this slot. */ 109 struct panthor_group *group; 110 111 /** @priority: Group priority. */ 112 u8 priority; 113 }; 114 115 /** 116 * enum panthor_csg_priority - Group priority 117 */ 118 enum panthor_csg_priority { 119 /** @PANTHOR_CSG_PRIORITY_LOW: Low priority group. */ 120 PANTHOR_CSG_PRIORITY_LOW = 0, 121 122 /** @PANTHOR_CSG_PRIORITY_MEDIUM: Medium priority group. */ 123 PANTHOR_CSG_PRIORITY_MEDIUM, 124 125 /** @PANTHOR_CSG_PRIORITY_HIGH: High priority group. */ 126 PANTHOR_CSG_PRIORITY_HIGH, 127 128 /** 129 * @PANTHOR_CSG_PRIORITY_RT: Real-time priority group. 130 * 131 * Real-time priority allows one to preempt scheduling of other 132 * non-real-time groups. When such a group becomes executable, 133 * it will evict the group with the lowest non-rt priority if 134 * there's no free group slot available. 135 */ 136 PANTHOR_CSG_PRIORITY_RT, 137 138 /** @PANTHOR_CSG_PRIORITY_COUNT: Number of priority levels. */ 139 PANTHOR_CSG_PRIORITY_COUNT, 140 }; 141 142 /** 143 * struct panthor_scheduler - Object used to manage the scheduler 144 */ 145 struct panthor_scheduler { 146 /** @ptdev: Device. */ 147 struct panthor_device *ptdev; 148 149 /** 150 * @wq: Workqueue used by our internal scheduler logic and 151 * drm_gpu_scheduler. 152 * 153 * Used for the scheduler tick, group update or other kind of FW 154 * event processing that can't be handled in the threaded interrupt 155 * path. Also passed to the drm_gpu_scheduler instances embedded 156 * in panthor_queue. 157 */ 158 struct workqueue_struct *wq; 159 160 /** 161 * @heap_alloc_wq: Workqueue used to schedule tiler_oom works. 162 * 163 * We have a queue dedicated to heap chunk allocation works to avoid 164 * blocking the rest of the scheduler if the allocation tries to 165 * reclaim memory. 166 */ 167 struct workqueue_struct *heap_alloc_wq; 168 169 /** @tick_work: Work executed on a scheduling tick. */ 170 struct delayed_work tick_work; 171 172 /** 173 * @sync_upd_work: Work used to process synchronization object updates. 174 * 175 * We use this work to unblock queues/groups that were waiting on a 176 * synchronization object. 177 */ 178 struct work_struct sync_upd_work; 179 180 /** 181 * @fw_events_work: Work used to process FW events outside the interrupt path. 182 * 183 * Even if the interrupt is threaded, we need any event processing 184 * that require taking the panthor_scheduler::lock to be processed 185 * outside the interrupt path so we don't block the tick logic when 186 * it calls panthor_fw_{csg,wait}_wait_acks(). Since most of the 187 * event processing requires taking this lock, we just delegate all 188 * FW event processing to the scheduler workqueue. 189 */ 190 struct work_struct fw_events_work; 191 192 /** 193 * @fw_events: Bitmask encoding pending FW events. 194 */ 195 atomic_t fw_events; 196 197 /** 198 * @resched_target: When the next tick should occur. 199 * 200 * Expressed in jiffies. 201 */ 202 u64 resched_target; 203 204 /** 205 * @last_tick: When the last tick occurred. 206 * 207 * Expressed in jiffies. 208 */ 209 u64 last_tick; 210 211 /** @tick_period: Tick period in jiffies. */ 212 u64 tick_period; 213 214 /** 215 * @lock: Lock protecting access to all the scheduler fields. 216 * 217 * Should be taken in the tick work, the irq handler, and anywhere the @groups 218 * fields are touched. 219 */ 220 struct mutex lock; 221 222 /** @groups: Various lists used to classify groups. */ 223 struct { 224 /** 225 * @groups.runnable: Runnable group lists. 226 * 227 * When a group has queues that want to execute something, 228 * its panthor_group::run_node should be inserted here. 229 * 230 * One list per-priority. 231 */ 232 struct list_head runnable[PANTHOR_CSG_PRIORITY_COUNT]; 233 234 /** 235 * @groups.idle: Idle group lists. 236 * 237 * When all queues of a group are idle (either because they 238 * have nothing to execute, or because they are blocked), the 239 * panthor_group::run_node field should be inserted here. 240 * 241 * One list per-priority. 242 */ 243 struct list_head idle[PANTHOR_CSG_PRIORITY_COUNT]; 244 245 /** 246 * @groups.waiting: List of groups whose queues are blocked on a 247 * synchronization object. 248 * 249 * Insert panthor_group::wait_node here when a group is waiting 250 * for synchronization objects to be signaled. 251 * 252 * This list is evaluated in the @sync_upd_work work. 253 */ 254 struct list_head waiting; 255 } groups; 256 257 /** 258 * @csg_slots: FW command stream group slots. 259 */ 260 struct panthor_csg_slot csg_slots[MAX_CSGS]; 261 262 /** @csg_slot_count: Number of command stream group slots exposed by the FW. */ 263 u32 csg_slot_count; 264 265 /** @cs_slot_count: Number of command stream slot per group slot exposed by the FW. */ 266 u32 cs_slot_count; 267 268 /** @as_slot_count: Number of address space slots supported by the MMU. */ 269 u32 as_slot_count; 270 271 /** @used_csg_slot_count: Number of command stream group slot currently used. */ 272 u32 used_csg_slot_count; 273 274 /** @sb_slot_count: Number of scoreboard slots. */ 275 u32 sb_slot_count; 276 277 /** 278 * @might_have_idle_groups: True if an active group might have become idle. 279 * 280 * This will force a tick, so other runnable groups can be scheduled if one 281 * or more active groups became idle. 282 */ 283 bool might_have_idle_groups; 284 285 /** @pm: Power management related fields. */ 286 struct { 287 /** @pm.has_ref: True if the scheduler owns a runtime PM reference. */ 288 bool has_ref; 289 } pm; 290 291 /** @reset: Reset related fields. */ 292 struct { 293 /** @reset.lock: Lock protecting the other reset fields. */ 294 struct mutex lock; 295 296 /** 297 * @reset.in_progress: True if a reset is in progress. 298 * 299 * Set to true in panthor_sched_pre_reset() and back to false in 300 * panthor_sched_post_reset(). 301 */ 302 atomic_t in_progress; 303 304 /** 305 * @reset.stopped_groups: List containing all groups that were stopped 306 * before a reset. 307 * 308 * Insert panthor_group::run_node in the pre_reset path. 309 */ 310 struct list_head stopped_groups; 311 } reset; 312 }; 313 314 /** 315 * struct panthor_syncobj_32b - 32-bit FW synchronization object 316 */ 317 struct panthor_syncobj_32b { 318 /** @seqno: Sequence number. */ 319 u32 seqno; 320 321 /** 322 * @status: Status. 323 * 324 * Not zero on failure. 325 */ 326 u32 status; 327 }; 328 329 /** 330 * struct panthor_syncobj_64b - 64-bit FW synchronization object 331 */ 332 struct panthor_syncobj_64b { 333 /** @seqno: Sequence number. */ 334 u64 seqno; 335 336 /** 337 * @status: Status. 338 * 339 * Not zero on failure. 340 */ 341 u32 status; 342 343 /** @pad: MBZ. */ 344 u32 pad; 345 }; 346 347 /** 348 * struct panthor_queue - Execution queue 349 */ 350 struct panthor_queue { 351 /** @scheduler: DRM scheduler used for this queue. */ 352 struct drm_gpu_scheduler scheduler; 353 354 /** @entity: DRM scheduling entity used for this queue. */ 355 struct drm_sched_entity entity; 356 357 /** @name: DRM scheduler name for this queue. */ 358 char *name; 359 360 /** @timeout: Queue timeout related fields. */ 361 struct { 362 /** @timeout.work: Work executed when a queue timeout occurs. */ 363 struct delayed_work work; 364 365 /** 366 * @timeout.remaining: Time remaining before a queue timeout. 367 * 368 * When the timer is running, this value is set to MAX_SCHEDULE_TIMEOUT. 369 * When the timer is suspended, it's set to the time remaining when the 370 * timer was suspended. 371 */ 372 unsigned long remaining; 373 } timeout; 374 375 /** 376 * @doorbell_id: Doorbell assigned to this queue. 377 * 378 * Right now, all groups share the same doorbell, and the doorbell ID 379 * is assigned to group_slot + 1 when the group is assigned a slot. But 380 * we might decide to provide fine grained doorbell assignment at some 381 * point, so don't have to wake up all queues in a group every time one 382 * of them is updated. 383 */ 384 u8 doorbell_id; 385 386 /** 387 * @priority: Priority of the queue inside the group. 388 * 389 * Must be less than 16 (Only 4 bits available). 390 */ 391 u8 priority; 392 #define CSF_MAX_QUEUE_PRIO GENMASK(3, 0) 393 394 /** @ringbuf: Command stream ring-buffer. */ 395 struct panthor_kernel_bo *ringbuf; 396 397 /** @iface: Firmware interface. */ 398 struct { 399 /** @iface.mem: FW memory allocated for this interface. */ 400 struct panthor_kernel_bo *mem; 401 402 /** @iface.input: Input interface. */ 403 struct panthor_fw_ringbuf_input_iface *input; 404 405 /** @iface.output: Output interface. */ 406 const struct panthor_fw_ringbuf_output_iface *output; 407 408 /** @iface.input_fw_va: FW virtual address of the input interface buffer. */ 409 u32 input_fw_va; 410 411 /** @iface.output_fw_va: FW virtual address of the output interface buffer. */ 412 u32 output_fw_va; 413 } iface; 414 415 /** 416 * @syncwait: Stores information about the synchronization object this 417 * queue is waiting on. 418 */ 419 struct { 420 /** @syncwait.gpu_va: GPU address of the synchronization object. */ 421 u64 gpu_va; 422 423 /** @syncwait.ref: Reference value to compare against. */ 424 u64 ref; 425 426 /** @syncwait.gt: True if this is a greater-than test. */ 427 bool gt; 428 429 /** @syncwait.sync64: True if this is a 64-bit sync object. */ 430 bool sync64; 431 432 /** @syncwait.obj: Buffer object holding the synchronization object. */ 433 struct drm_gem_object *obj; 434 435 /** @syncwait.offset: Offset of the synchronization object inside @bo. */ 436 u64 offset; 437 438 /** 439 * @syncwait.kmap: Kernel mapping of the buffer object holding the 440 * synchronization object. 441 */ 442 void *kmap; 443 } syncwait; 444 445 /** @fence_ctx: Fence context fields. */ 446 struct { 447 /** @fence_ctx.lock: Used to protect access to all fences allocated by this context. */ 448 spinlock_t lock; 449 450 /** 451 * @fence_ctx.id: Fence context ID. 452 * 453 * Allocated with dma_fence_context_alloc(). 454 */ 455 u64 id; 456 457 /** @fence_ctx.seqno: Sequence number of the last initialized fence. */ 458 atomic64_t seqno; 459 460 /** 461 * @fence_ctx.last_fence: Fence of the last submitted job. 462 * 463 * We return this fence when we get an empty command stream. 464 * This way, we are guaranteed that all earlier jobs have completed 465 * when drm_sched_job::s_fence::finished without having to feed 466 * the CS ring buffer with a dummy job that only signals the fence. 467 */ 468 struct dma_fence *last_fence; 469 470 /** 471 * @fence_ctx.in_flight_jobs: List containing all in-flight jobs. 472 * 473 * Used to keep track and signal panthor_job::done_fence when the 474 * synchronization object attached to the queue is signaled. 475 */ 476 struct list_head in_flight_jobs; 477 } fence_ctx; 478 479 /** @profiling: Job profiling data slots and access information. */ 480 struct { 481 /** @profiling.slots: Kernel BO holding the slots. */ 482 struct panthor_kernel_bo *slots; 483 484 /** @profiling.slot_count: Number of jobs ringbuffer can hold at once. */ 485 u32 slot_count; 486 487 /** @profiling.seqno: Index of the next available profiling information slot. */ 488 u32 seqno; 489 } profiling; 490 }; 491 492 /** 493 * enum panthor_group_state - Scheduling group state. 494 */ 495 enum panthor_group_state { 496 /** @PANTHOR_CS_GROUP_CREATED: Group was created, but not scheduled yet. */ 497 PANTHOR_CS_GROUP_CREATED, 498 499 /** @PANTHOR_CS_GROUP_ACTIVE: Group is currently scheduled. */ 500 PANTHOR_CS_GROUP_ACTIVE, 501 502 /** 503 * @PANTHOR_CS_GROUP_SUSPENDED: Group was scheduled at least once, but is 504 * inactive/suspended right now. 505 */ 506 PANTHOR_CS_GROUP_SUSPENDED, 507 508 /** 509 * @PANTHOR_CS_GROUP_TERMINATED: Group was terminated. 510 * 511 * Can no longer be scheduled. The only allowed action is a destruction. 512 */ 513 PANTHOR_CS_GROUP_TERMINATED, 514 515 /** 516 * @PANTHOR_CS_GROUP_UNKNOWN_STATE: Group is an unknown state. 517 * 518 * The FW returned an inconsistent state. The group is flagged unusable 519 * and can no longer be scheduled. The only allowed action is a 520 * destruction. 521 * 522 * When that happens, we also schedule a FW reset, to start from a fresh 523 * state. 524 */ 525 PANTHOR_CS_GROUP_UNKNOWN_STATE, 526 }; 527 528 /** 529 * struct panthor_group - Scheduling group object 530 */ 531 struct panthor_group { 532 /** @refcount: Reference count */ 533 struct kref refcount; 534 535 /** @ptdev: Device. */ 536 struct panthor_device *ptdev; 537 538 /** @vm: VM bound to the group. */ 539 struct panthor_vm *vm; 540 541 /** @compute_core_mask: Mask of shader cores that can be used for compute jobs. */ 542 u64 compute_core_mask; 543 544 /** @fragment_core_mask: Mask of shader cores that can be used for fragment jobs. */ 545 u64 fragment_core_mask; 546 547 /** @tiler_core_mask: Mask of tiler cores that can be used for tiler jobs. */ 548 u64 tiler_core_mask; 549 550 /** @max_compute_cores: Maximum number of shader cores used for compute jobs. */ 551 u8 max_compute_cores; 552 553 /** @max_fragment_cores: Maximum number of shader cores used for fragment jobs. */ 554 u8 max_fragment_cores; 555 556 /** @max_tiler_cores: Maximum number of tiler cores used for tiler jobs. */ 557 u8 max_tiler_cores; 558 559 /** @priority: Group priority (check panthor_csg_priority). */ 560 u8 priority; 561 562 /** @blocked_queues: Bitmask reflecting the blocked queues. */ 563 u32 blocked_queues; 564 565 /** @idle_queues: Bitmask reflecting the idle queues. */ 566 u32 idle_queues; 567 568 /** @fatal_lock: Lock used to protect access to fatal fields. */ 569 spinlock_t fatal_lock; 570 571 /** @fatal_queues: Bitmask reflecting the queues that hit a fatal exception. */ 572 u32 fatal_queues; 573 574 /** @tiler_oom: Mask of queues that have a tiler OOM event to process. */ 575 atomic_t tiler_oom; 576 577 /** @queue_count: Number of queues in this group. */ 578 u32 queue_count; 579 580 /** @queues: Queues owned by this group. */ 581 struct panthor_queue *queues[MAX_CS_PER_CSG]; 582 583 /** 584 * @csg_id: ID of the FW group slot. 585 * 586 * -1 when the group is not scheduled/active. 587 */ 588 int csg_id; 589 590 /** 591 * @destroyed: True when the group has been destroyed. 592 * 593 * If a group is destroyed it becomes useless: no further jobs can be submitted 594 * to its queues. We simply wait for all references to be dropped so we can 595 * release the group object. 596 */ 597 bool destroyed; 598 599 /** 600 * @timedout: True when a timeout occurred on any of the queues owned by 601 * this group. 602 * 603 * Timeouts can be reported by drm_sched or by the FW. If a reset is required, 604 * and the group can't be suspended, this also leads to a timeout. In any case, 605 * any timeout situation is unrecoverable, and the group becomes useless. We 606 * simply wait for all references to be dropped so we can release the group 607 * object. 608 */ 609 bool timedout; 610 611 /** 612 * @innocent: True when the group becomes unusable because the group suspension 613 * failed during a reset. 614 * 615 * Sometimes the FW was put in a bad state by other groups, causing the group 616 * suspension happening in the reset path to fail. In that case, we consider the 617 * group innocent. 618 */ 619 bool innocent; 620 621 /** 622 * @syncobjs: Pool of per-queue synchronization objects. 623 * 624 * One sync object per queue. The position of the sync object is 625 * determined by the queue index. 626 */ 627 struct panthor_kernel_bo *syncobjs; 628 629 /** @fdinfo: Per-file info exposed through /proc/<process>/fdinfo */ 630 struct { 631 /** @fdinfo.data: Total sampled values for jobs in queues from this group. */ 632 struct panthor_gpu_usage data; 633 634 /** 635 * @fdinfo.lock: Spinlock to govern concurrent access from drm file's fdinfo 636 * callback and job post-completion processing function 637 */ 638 spinlock_t lock; 639 640 /** @fdinfo.kbo_sizes: Aggregate size of private kernel BO's held by the group. */ 641 size_t kbo_sizes; 642 } fdinfo; 643 644 /** @task_info: Info of current->group_leader that created the group. */ 645 struct { 646 /** @task_info.pid: pid of current->group_leader */ 647 pid_t pid; 648 649 /** @task_info.comm: comm of current->group_leader */ 650 char comm[TASK_COMM_LEN]; 651 } task_info; 652 653 /** @state: Group state. */ 654 enum panthor_group_state state; 655 656 /** 657 * @suspend_buf: Suspend buffer. 658 * 659 * Stores the state of the group and its queues when a group is suspended. 660 * Used at resume time to restore the group in its previous state. 661 * 662 * The size of the suspend buffer is exposed through the FW interface. 663 */ 664 struct panthor_kernel_bo *suspend_buf; 665 666 /** 667 * @protm_suspend_buf: Protection mode suspend buffer. 668 * 669 * Stores the state of the group and its queues when a group that's in 670 * protection mode is suspended. 671 * 672 * Used at resume time to restore the group in its previous state. 673 * 674 * The size of the protection mode suspend buffer is exposed through the 675 * FW interface. 676 */ 677 struct panthor_kernel_bo *protm_suspend_buf; 678 679 /** @sync_upd_work: Work used to check/signal job fences. */ 680 struct work_struct sync_upd_work; 681 682 /** @tiler_oom_work: Work used to process tiler OOM events happening on this group. */ 683 struct work_struct tiler_oom_work; 684 685 /** @term_work: Work used to finish the group termination procedure. */ 686 struct work_struct term_work; 687 688 /** 689 * @release_work: Work used to release group resources. 690 * 691 * We need to postpone the group release to avoid a deadlock when 692 * the last ref is released in the tick work. 693 */ 694 struct work_struct release_work; 695 696 /** 697 * @run_node: Node used to insert the group in the 698 * panthor_group::groups::{runnable,idle} and 699 * panthor_group::reset.stopped_groups lists. 700 */ 701 struct list_head run_node; 702 703 /** 704 * @wait_node: Node used to insert the group in the 705 * panthor_group::groups::waiting list. 706 */ 707 struct list_head wait_node; 708 }; 709 710 struct panthor_job_profiling_data { 711 struct { 712 u64 before; 713 u64 after; 714 } cycles; 715 716 struct { 717 u64 before; 718 u64 after; 719 } time; 720 }; 721 722 /** 723 * group_queue_work() - Queue a group work 724 * @group: Group to queue the work for. 725 * @wname: Work name. 726 * 727 * Grabs a ref and queue a work item to the scheduler workqueue. If 728 * the work was already queued, we release the reference we grabbed. 729 * 730 * Work callbacks must release the reference we grabbed here. 731 */ 732 #define group_queue_work(group, wname) \ 733 do { \ 734 group_get(group); \ 735 if (!queue_work((group)->ptdev->scheduler->wq, &(group)->wname ## _work)) \ 736 group_put(group); \ 737 } while (0) 738 739 /** 740 * sched_queue_work() - Queue a scheduler work. 741 * @sched: Scheduler object. 742 * @wname: Work name. 743 * 744 * Conditionally queues a scheduler work if no reset is pending/in-progress. 745 */ 746 #define sched_queue_work(sched, wname) \ 747 do { \ 748 if (!atomic_read(&(sched)->reset.in_progress) && \ 749 !panthor_device_reset_is_pending((sched)->ptdev)) \ 750 queue_work((sched)->wq, &(sched)->wname ## _work); \ 751 } while (0) 752 753 /** 754 * sched_queue_delayed_work() - Queue a scheduler delayed work. 755 * @sched: Scheduler object. 756 * @wname: Work name. 757 * @delay: Work delay in jiffies. 758 * 759 * Conditionally queues a scheduler delayed work if no reset is 760 * pending/in-progress. 761 */ 762 #define sched_queue_delayed_work(sched, wname, delay) \ 763 do { \ 764 if (!atomic_read(&sched->reset.in_progress) && \ 765 !panthor_device_reset_is_pending((sched)->ptdev)) \ 766 mod_delayed_work((sched)->wq, &(sched)->wname ## _work, delay); \ 767 } while (0) 768 769 /* 770 * We currently set the maximum of groups per file to an arbitrary low value. 771 * But this can be updated if we need more. 772 */ 773 #define MAX_GROUPS_PER_POOL 128 774 775 /* 776 * Mark added on an entry of group pool Xarray to identify if the group has 777 * been fully initialized and can be accessed elsewhere in the driver code. 778 */ 779 #define GROUP_REGISTERED XA_MARK_1 780 781 /** 782 * struct panthor_group_pool - Group pool 783 * 784 * Each file get assigned a group pool. 785 */ 786 struct panthor_group_pool { 787 /** @xa: Xarray used to manage group handles. */ 788 struct xarray xa; 789 }; 790 791 /** 792 * struct panthor_job - Used to manage GPU job 793 */ 794 struct panthor_job { 795 /** @base: Inherit from drm_sched_job. */ 796 struct drm_sched_job base; 797 798 /** @refcount: Reference count. */ 799 struct kref refcount; 800 801 /** @group: Group of the queue this job will be pushed to. */ 802 struct panthor_group *group; 803 804 /** @queue_idx: Index of the queue inside @group. */ 805 u32 queue_idx; 806 807 /** @call_info: Information about the userspace command stream call. */ 808 struct { 809 /** @call_info.start: GPU address of the userspace command stream. */ 810 u64 start; 811 812 /** @call_info.size: Size of the userspace command stream. */ 813 u32 size; 814 815 /** 816 * @call_info.latest_flush: Flush ID at the time the userspace 817 * command stream was built. 818 * 819 * Needed for the flush reduction mechanism. 820 */ 821 u32 latest_flush; 822 } call_info; 823 824 /** @ringbuf: Position of this job is in the ring buffer. */ 825 struct { 826 /** @ringbuf.start: Start offset. */ 827 u64 start; 828 829 /** @ringbuf.end: End offset. */ 830 u64 end; 831 } ringbuf; 832 833 /** 834 * @node: Used to insert the job in the panthor_queue::fence_ctx::in_flight_jobs 835 * list. 836 */ 837 struct list_head node; 838 839 /** @done_fence: Fence signaled when the job is finished or cancelled. */ 840 struct dma_fence *done_fence; 841 842 /** @profiling: Job profiling information. */ 843 struct { 844 /** @profiling.mask: Current device job profiling enablement bitmask. */ 845 u32 mask; 846 847 /** @profiling.slot: Job index in the profiling slots BO. */ 848 u32 slot; 849 } profiling; 850 }; 851 852 static void 853 panthor_queue_put_syncwait_obj(struct panthor_queue *queue) 854 { 855 if (queue->syncwait.kmap) { 856 struct iosys_map map = IOSYS_MAP_INIT_VADDR(queue->syncwait.kmap); 857 858 drm_gem_vunmap(queue->syncwait.obj, &map); 859 queue->syncwait.kmap = NULL; 860 } 861 862 drm_gem_object_put(queue->syncwait.obj); 863 queue->syncwait.obj = NULL; 864 } 865 866 static void * 867 panthor_queue_get_syncwait_obj(struct panthor_group *group, struct panthor_queue *queue) 868 { 869 struct panthor_device *ptdev = group->ptdev; 870 struct panthor_gem_object *bo; 871 struct iosys_map map; 872 int ret; 873 874 if (queue->syncwait.kmap) { 875 bo = to_panthor_bo(queue->syncwait.obj); 876 goto out_sync; 877 } 878 879 bo = panthor_vm_get_bo_for_va(group->vm, 880 queue->syncwait.gpu_va, 881 &queue->syncwait.offset); 882 if (drm_WARN_ON(&ptdev->base, IS_ERR_OR_NULL(bo))) 883 goto err_put_syncwait_obj; 884 885 queue->syncwait.obj = &bo->base; 886 ret = drm_gem_vmap(queue->syncwait.obj, &map); 887 if (drm_WARN_ON(&ptdev->base, ret)) 888 goto err_put_syncwait_obj; 889 890 queue->syncwait.kmap = map.vaddr; 891 if (drm_WARN_ON(&ptdev->base, !queue->syncwait.kmap)) 892 goto err_put_syncwait_obj; 893 894 out_sync: 895 /* Make sure the CPU caches are invalidated before the seqno is read. 896 * panthor_gem_sync() is a NOP if map_wc=true, so no need to check 897 * it here. 898 */ 899 panthor_gem_sync(&bo->base, 900 DRM_PANTHOR_BO_SYNC_CPU_CACHE_FLUSH_AND_INVALIDATE, 901 queue->syncwait.offset, 902 queue->syncwait.sync64 ? 903 sizeof(struct panthor_syncobj_64b) : 904 sizeof(struct panthor_syncobj_32b)); 905 906 return queue->syncwait.kmap + queue->syncwait.offset; 907 908 err_put_syncwait_obj: 909 panthor_queue_put_syncwait_obj(queue); 910 return NULL; 911 } 912 913 static void group_free_queue(struct panthor_group *group, struct panthor_queue *queue) 914 { 915 if (IS_ERR_OR_NULL(queue)) 916 return; 917 918 /* Disable the timeout before tearing down drm_sched components. */ 919 disable_delayed_work_sync(&queue->timeout.work); 920 921 if (queue->entity.fence_context) 922 drm_sched_entity_destroy(&queue->entity); 923 924 if (queue->scheduler.ops) 925 drm_sched_fini(&queue->scheduler); 926 927 kfree(queue->name); 928 929 panthor_queue_put_syncwait_obj(queue); 930 931 panthor_kernel_bo_destroy(queue->ringbuf); 932 panthor_kernel_bo_destroy(queue->iface.mem); 933 panthor_kernel_bo_destroy(queue->profiling.slots); 934 935 /* Release the last_fence we were holding, if any. */ 936 dma_fence_put(queue->fence_ctx.last_fence); 937 938 kfree(queue); 939 } 940 941 static void group_release_work(struct work_struct *work) 942 { 943 struct panthor_group *group = container_of(work, 944 struct panthor_group, 945 release_work); 946 u32 i; 947 948 /* dma-fences may still be accessing group->queues under rcu lock. */ 949 synchronize_rcu(); 950 951 for (i = 0; i < group->queue_count; i++) 952 group_free_queue(group, group->queues[i]); 953 954 panthor_kernel_bo_destroy(group->suspend_buf); 955 panthor_kernel_bo_destroy(group->protm_suspend_buf); 956 panthor_kernel_bo_destroy(group->syncobjs); 957 958 panthor_vm_put(group->vm); 959 kfree(group); 960 } 961 962 static void group_release(struct kref *kref) 963 { 964 struct panthor_group *group = container_of(kref, 965 struct panthor_group, 966 refcount); 967 struct panthor_device *ptdev = group->ptdev; 968 969 drm_WARN_ON(&ptdev->base, group->csg_id >= 0); 970 drm_WARN_ON(&ptdev->base, !list_empty(&group->run_node)); 971 drm_WARN_ON(&ptdev->base, !list_empty(&group->wait_node)); 972 973 queue_work(panthor_cleanup_wq, &group->release_work); 974 } 975 976 static void group_put(struct panthor_group *group) 977 { 978 if (group) 979 kref_put(&group->refcount, group_release); 980 } 981 982 static struct panthor_group * 983 group_get(struct panthor_group *group) 984 { 985 if (group) 986 kref_get(&group->refcount); 987 988 return group; 989 } 990 991 /** 992 * group_bind_locked() - Bind a group to a group slot 993 * @group: Group. 994 * @csg_id: Slot. 995 * 996 * Return: 0 on success, a negative error code otherwise. 997 */ 998 static int 999 group_bind_locked(struct panthor_group *group, u32 csg_id) 1000 { 1001 struct panthor_device *ptdev = group->ptdev; 1002 struct panthor_csg_slot *csg_slot; 1003 int ret; 1004 1005 lockdep_assert_held(&ptdev->scheduler->lock); 1006 1007 if (drm_WARN_ON(&ptdev->base, group->csg_id != -1 || csg_id >= MAX_CSGS || 1008 ptdev->scheduler->csg_slots[csg_id].group)) 1009 return -EINVAL; 1010 1011 ret = panthor_vm_active(group->vm); 1012 if (ret) 1013 return ret; 1014 1015 csg_slot = &ptdev->scheduler->csg_slots[csg_id]; 1016 group_get(group); 1017 group->csg_id = csg_id; 1018 1019 /* Dummy doorbell allocation: doorbell is assigned to the group and 1020 * all queues use the same doorbell. 1021 * 1022 * TODO: Implement LRU-based doorbell assignment, so the most often 1023 * updated queues get their own doorbell, thus avoiding useless checks 1024 * on queues belonging to the same group that are rarely updated. 1025 */ 1026 for (u32 i = 0; i < group->queue_count; i++) 1027 group->queues[i]->doorbell_id = csg_id + 1; 1028 1029 csg_slot->group = group; 1030 1031 return 0; 1032 } 1033 1034 /** 1035 * group_unbind_locked() - Unbind a group from a slot. 1036 * @group: Group to unbind. 1037 * 1038 * Return: 0 on success, a negative error code otherwise. 1039 */ 1040 static int 1041 group_unbind_locked(struct panthor_group *group) 1042 { 1043 struct panthor_device *ptdev = group->ptdev; 1044 struct panthor_csg_slot *slot; 1045 1046 lockdep_assert_held(&ptdev->scheduler->lock); 1047 1048 if (drm_WARN_ON(&ptdev->base, group->csg_id < 0 || group->csg_id >= MAX_CSGS)) 1049 return -EINVAL; 1050 1051 if (drm_WARN_ON(&ptdev->base, group->state == PANTHOR_CS_GROUP_ACTIVE)) 1052 return -EINVAL; 1053 1054 slot = &ptdev->scheduler->csg_slots[group->csg_id]; 1055 panthor_vm_idle(group->vm); 1056 group->csg_id = -1; 1057 1058 /* Tiler OOM events will be re-issued next time the group is scheduled. */ 1059 atomic_set(&group->tiler_oom, 0); 1060 if (cancel_work(&group->tiler_oom_work)) 1061 group_put(group); 1062 1063 for (u32 i = 0; i < group->queue_count; i++) 1064 group->queues[i]->doorbell_id = -1; 1065 1066 slot->group = NULL; 1067 1068 group_put(group); 1069 return 0; 1070 } 1071 1072 static bool 1073 group_is_idle(struct panthor_group *group) 1074 { 1075 u32 inactive_queues = group->idle_queues | group->blocked_queues; 1076 1077 return hweight32(inactive_queues) == group->queue_count; 1078 } 1079 1080 static bool 1081 group_can_run(struct panthor_group *group) 1082 { 1083 return group->state != PANTHOR_CS_GROUP_TERMINATED && 1084 group->state != PANTHOR_CS_GROUP_UNKNOWN_STATE && 1085 !group->destroyed && group->fatal_queues == 0 && 1086 !group->timedout; 1087 } 1088 1089 static bool 1090 queue_timeout_is_suspended(struct panthor_queue *queue) 1091 { 1092 /* When running, the remaining time is set to MAX_SCHEDULE_TIMEOUT. */ 1093 return queue->timeout.remaining != MAX_SCHEDULE_TIMEOUT; 1094 } 1095 1096 static void 1097 queue_reset_timeout_locked(struct panthor_queue *queue) 1098 { 1099 lockdep_assert_held(&queue->fence_ctx.lock); 1100 1101 if (!queue_timeout_is_suspended(queue)) { 1102 mod_delayed_work(queue->scheduler.timeout_wq, 1103 &queue->timeout.work, 1104 msecs_to_jiffies(JOB_TIMEOUT_MS)); 1105 } 1106 } 1107 1108 static void 1109 queue_suspend_timeout_locked(struct panthor_queue *queue) 1110 { 1111 unsigned long qtimeout, now; 1112 struct panthor_group *group; 1113 struct panthor_job *job; 1114 bool timer_was_active; 1115 1116 lockdep_assert_held(&queue->fence_ctx.lock); 1117 1118 /* Already suspended, nothing to do. */ 1119 if (queue_timeout_is_suspended(queue)) 1120 return; 1121 1122 job = list_first_entry_or_null(&queue->fence_ctx.in_flight_jobs, 1123 struct panthor_job, node); 1124 group = job ? job->group : NULL; 1125 1126 /* If the queue is blocked and the group is idle, we want the timer to 1127 * keep running because the group can't be unblocked by other queues, 1128 * so it has to come from an external source, and we want to timebox 1129 * this external signalling. 1130 */ 1131 if (group && group_can_run(group) && 1132 (group->blocked_queues & BIT(job->queue_idx)) && 1133 group_is_idle(group)) 1134 return; 1135 1136 now = jiffies; 1137 qtimeout = queue->timeout.work.timer.expires; 1138 1139 /* Cancel the timer. */ 1140 timer_was_active = cancel_delayed_work(&queue->timeout.work); 1141 if (!timer_was_active || !job) 1142 queue->timeout.remaining = msecs_to_jiffies(JOB_TIMEOUT_MS); 1143 else if (time_after(qtimeout, now)) 1144 queue->timeout.remaining = qtimeout - now; 1145 else 1146 queue->timeout.remaining = 0; 1147 1148 if (WARN_ON_ONCE(queue->timeout.remaining > msecs_to_jiffies(JOB_TIMEOUT_MS))) 1149 queue->timeout.remaining = msecs_to_jiffies(JOB_TIMEOUT_MS); 1150 } 1151 1152 static void 1153 queue_suspend_timeout(struct panthor_queue *queue) 1154 { 1155 guard(spinlock_irqsave)(&queue->fence_ctx.lock); 1156 queue_suspend_timeout_locked(queue); 1157 } 1158 1159 static void 1160 queue_resume_timeout(struct panthor_queue *queue) 1161 { 1162 guard(spinlock_irqsave)(&queue->fence_ctx.lock); 1163 1164 if (queue_timeout_is_suspended(queue)) { 1165 mod_delayed_work(queue->scheduler.timeout_wq, 1166 &queue->timeout.work, 1167 queue->timeout.remaining); 1168 1169 queue->timeout.remaining = MAX_SCHEDULE_TIMEOUT; 1170 } 1171 } 1172 1173 /** 1174 * cs_slot_prog_locked() - Program a queue slot 1175 * @ptdev: Device. 1176 * @csg_id: Group slot ID. 1177 * @cs_id: Queue slot ID. 1178 * 1179 * Program a queue slot with the queue information so things can start being 1180 * executed on this queue. 1181 * 1182 * The group slot must have a group bound to it already (group_bind_locked()). 1183 */ 1184 static void 1185 cs_slot_prog_locked(struct panthor_device *ptdev, u32 csg_id, u32 cs_id) 1186 { 1187 struct panthor_queue *queue = ptdev->scheduler->csg_slots[csg_id].group->queues[cs_id]; 1188 struct panthor_fw_cs_iface *cs_iface = panthor_fw_get_cs_iface(ptdev, csg_id, cs_id); 1189 1190 lockdep_assert_held(&ptdev->scheduler->lock); 1191 1192 queue->iface.input->extract = queue->iface.output->extract; 1193 drm_WARN_ON(&ptdev->base, queue->iface.input->insert < queue->iface.input->extract); 1194 1195 cs_iface->input->ringbuf_base = panthor_kernel_bo_gpuva(queue->ringbuf); 1196 cs_iface->input->ringbuf_size = panthor_kernel_bo_size(queue->ringbuf); 1197 cs_iface->input->ringbuf_input = queue->iface.input_fw_va; 1198 cs_iface->input->ringbuf_output = queue->iface.output_fw_va; 1199 cs_iface->input->config = CS_CONFIG_PRIORITY(queue->priority) | 1200 CS_CONFIG_DOORBELL(queue->doorbell_id); 1201 cs_iface->input->ack_irq_mask = ~0; 1202 panthor_fw_update_reqs(cs_iface, req, 1203 CS_IDLE_SYNC_WAIT | 1204 CS_IDLE_EMPTY | 1205 CS_STATE_START, 1206 CS_IDLE_SYNC_WAIT | 1207 CS_IDLE_EMPTY | 1208 CS_STATE_MASK); 1209 if (queue->iface.input->insert != queue->iface.input->extract) 1210 queue_resume_timeout(queue); 1211 } 1212 1213 /** 1214 * cs_slot_reset_locked() - Reset a queue slot 1215 * @ptdev: Device. 1216 * @csg_id: Group slot. 1217 * @cs_id: Queue slot. 1218 * 1219 * Change the queue slot state to STOP and suspend the queue timeout if 1220 * the queue is not blocked. 1221 * 1222 * The group slot must have a group bound to it (group_bind_locked()). 1223 */ 1224 static int 1225 cs_slot_reset_locked(struct panthor_device *ptdev, u32 csg_id, u32 cs_id) 1226 { 1227 struct panthor_fw_cs_iface *cs_iface = panthor_fw_get_cs_iface(ptdev, csg_id, cs_id); 1228 struct panthor_group *group = ptdev->scheduler->csg_slots[csg_id].group; 1229 struct panthor_queue *queue = group->queues[cs_id]; 1230 1231 lockdep_assert_held(&ptdev->scheduler->lock); 1232 1233 panthor_fw_update_reqs(cs_iface, req, 1234 CS_STATE_STOP, 1235 CS_STATE_MASK); 1236 1237 queue_suspend_timeout(queue); 1238 1239 return 0; 1240 } 1241 1242 /** 1243 * csg_slot_sync_priority_locked() - Synchronize the group slot priority 1244 * @ptdev: Device. 1245 * @csg_id: Group slot ID. 1246 * 1247 * Group slot priority update happens asynchronously. When we receive a 1248 * %CSG_ENDPOINT_CONFIG, we know the update is effective, and can 1249 * reflect it to our panthor_csg_slot object. 1250 */ 1251 static void 1252 csg_slot_sync_priority_locked(struct panthor_device *ptdev, u32 csg_id) 1253 { 1254 struct panthor_csg_slot *csg_slot = &ptdev->scheduler->csg_slots[csg_id]; 1255 struct panthor_fw_csg_iface *csg_iface; 1256 u64 endpoint_req; 1257 1258 lockdep_assert_held(&ptdev->scheduler->lock); 1259 1260 csg_iface = panthor_fw_get_csg_iface(ptdev, csg_id); 1261 endpoint_req = panthor_fw_csg_endpoint_req_get(ptdev, csg_iface); 1262 csg_slot->priority = CSG_EP_REQ_PRIORITY_GET(endpoint_req); 1263 } 1264 1265 /** 1266 * cs_slot_sync_queue_state_locked() - Synchronize the queue slot priority 1267 * @ptdev: Device. 1268 * @csg_id: Group slot. 1269 * @cs_id: Queue slot. 1270 * 1271 * Queue state is updated on group suspend or STATUS_UPDATE event. 1272 */ 1273 static void 1274 cs_slot_sync_queue_state_locked(struct panthor_device *ptdev, u32 csg_id, u32 cs_id) 1275 { 1276 struct panthor_group *group = ptdev->scheduler->csg_slots[csg_id].group; 1277 struct panthor_queue *queue = group->queues[cs_id]; 1278 struct panthor_fw_cs_iface *cs_iface = 1279 panthor_fw_get_cs_iface(group->ptdev, csg_id, cs_id); 1280 1281 u32 status_wait_cond; 1282 1283 switch (cs_iface->output->status_blocked_reason) { 1284 case CS_STATUS_BLOCKED_REASON_UNBLOCKED: 1285 if (queue->iface.input->insert == queue->iface.output->extract && 1286 cs_iface->output->status_scoreboards == 0) 1287 group->idle_queues |= BIT(cs_id); 1288 break; 1289 1290 case CS_STATUS_BLOCKED_REASON_SYNC_WAIT: 1291 if (list_empty(&group->wait_node)) { 1292 list_move_tail(&group->wait_node, 1293 &group->ptdev->scheduler->groups.waiting); 1294 } 1295 1296 /* The queue is only blocked if there's no deferred operation 1297 * pending, which can be checked through the scoreboard status. 1298 */ 1299 if (!cs_iface->output->status_scoreboards) 1300 group->blocked_queues |= BIT(cs_id); 1301 1302 queue->syncwait.gpu_va = cs_iface->output->status_wait_sync_ptr; 1303 queue->syncwait.ref = cs_iface->output->status_wait_sync_value; 1304 status_wait_cond = cs_iface->output->status_wait & CS_STATUS_WAIT_SYNC_COND_MASK; 1305 queue->syncwait.gt = status_wait_cond == CS_STATUS_WAIT_SYNC_COND_GT; 1306 if (cs_iface->output->status_wait & CS_STATUS_WAIT_SYNC_64B) { 1307 u64 sync_val_hi = cs_iface->output->status_wait_sync_value_hi; 1308 1309 queue->syncwait.sync64 = true; 1310 queue->syncwait.ref |= sync_val_hi << 32; 1311 } else { 1312 queue->syncwait.sync64 = false; 1313 } 1314 break; 1315 1316 default: 1317 /* Other reasons are not blocking. Consider the queue as runnable 1318 * in those cases. 1319 */ 1320 break; 1321 } 1322 } 1323 1324 static void 1325 csg_slot_sync_queues_state_locked(struct panthor_device *ptdev, u32 csg_id) 1326 { 1327 struct panthor_csg_slot *csg_slot = &ptdev->scheduler->csg_slots[csg_id]; 1328 struct panthor_group *group = csg_slot->group; 1329 u32 i; 1330 1331 lockdep_assert_held(&ptdev->scheduler->lock); 1332 1333 group->idle_queues = 0; 1334 group->blocked_queues = 0; 1335 1336 for (i = 0; i < group->queue_count; i++) { 1337 if (group->queues[i]) 1338 cs_slot_sync_queue_state_locked(ptdev, csg_id, i); 1339 } 1340 } 1341 1342 static void 1343 csg_slot_sync_state_locked(struct panthor_device *ptdev, u32 csg_id) 1344 { 1345 struct panthor_csg_slot *csg_slot = &ptdev->scheduler->csg_slots[csg_id]; 1346 struct panthor_fw_csg_iface *csg_iface; 1347 struct panthor_group *group; 1348 enum panthor_group_state new_state, old_state; 1349 u32 csg_state; 1350 1351 lockdep_assert_held(&ptdev->scheduler->lock); 1352 1353 csg_iface = panthor_fw_get_csg_iface(ptdev, csg_id); 1354 group = csg_slot->group; 1355 1356 if (!group) 1357 return; 1358 1359 old_state = group->state; 1360 csg_state = csg_iface->output->ack & CSG_STATE_MASK; 1361 switch (csg_state) { 1362 case CSG_STATE_START: 1363 case CSG_STATE_RESUME: 1364 new_state = PANTHOR_CS_GROUP_ACTIVE; 1365 break; 1366 case CSG_STATE_TERMINATE: 1367 new_state = PANTHOR_CS_GROUP_TERMINATED; 1368 break; 1369 case CSG_STATE_SUSPEND: 1370 new_state = PANTHOR_CS_GROUP_SUSPENDED; 1371 break; 1372 default: 1373 /* The unknown state might be caused by a FW state corruption, 1374 * which means the group metadata can't be trusted anymore, and 1375 * the SUSPEND operation might propagate the corruption to the 1376 * suspend buffers. Flag the group state as unknown to make 1377 * sure it's unusable after that point. 1378 */ 1379 drm_err(&ptdev->base, "Invalid state on CSG %d (state=%d)", 1380 csg_id, csg_state); 1381 new_state = PANTHOR_CS_GROUP_UNKNOWN_STATE; 1382 break; 1383 } 1384 1385 if (old_state == new_state) 1386 return; 1387 1388 /* The unknown state might be caused by a FW issue, reset the FW to 1389 * take a fresh start. 1390 */ 1391 if (new_state == PANTHOR_CS_GROUP_UNKNOWN_STATE) 1392 panthor_device_schedule_reset(ptdev); 1393 1394 if (new_state == PANTHOR_CS_GROUP_SUSPENDED) 1395 csg_slot_sync_queues_state_locked(ptdev, csg_id); 1396 1397 if (old_state == PANTHOR_CS_GROUP_ACTIVE) { 1398 u32 i; 1399 1400 /* Reset the queue slots so we start from a clean 1401 * state when starting/resuming a new group on this 1402 * CSG slot. No wait needed here, and no ringbell 1403 * either, since the CS slot will only be re-used 1404 * on the next CSG start operation. 1405 */ 1406 for (i = 0; i < group->queue_count; i++) { 1407 if (group->queues[i]) 1408 cs_slot_reset_locked(ptdev, csg_id, i); 1409 } 1410 } 1411 1412 group->state = new_state; 1413 } 1414 1415 static int 1416 csg_slot_prog_locked(struct panthor_device *ptdev, u32 csg_id, u32 priority) 1417 { 1418 struct panthor_fw_csg_iface *csg_iface; 1419 struct panthor_csg_slot *csg_slot; 1420 struct panthor_group *group; 1421 u32 queue_mask = 0, i; 1422 u64 endpoint_req; 1423 1424 lockdep_assert_held(&ptdev->scheduler->lock); 1425 1426 if (priority > MAX_CSG_PRIO) 1427 return -EINVAL; 1428 1429 if (drm_WARN_ON(&ptdev->base, csg_id >= MAX_CSGS)) 1430 return -EINVAL; 1431 1432 csg_slot = &ptdev->scheduler->csg_slots[csg_id]; 1433 group = csg_slot->group; 1434 if (!group || group->state == PANTHOR_CS_GROUP_ACTIVE) 1435 return 0; 1436 1437 csg_iface = panthor_fw_get_csg_iface(group->ptdev, csg_id); 1438 1439 for (i = 0; i < group->queue_count; i++) { 1440 if (group->queues[i]) { 1441 cs_slot_prog_locked(ptdev, csg_id, i); 1442 queue_mask |= BIT(i); 1443 } 1444 } 1445 1446 csg_iface->input->allow_compute = group->compute_core_mask; 1447 csg_iface->input->allow_fragment = group->fragment_core_mask; 1448 csg_iface->input->allow_other = group->tiler_core_mask; 1449 endpoint_req = CSG_EP_REQ_COMPUTE(group->max_compute_cores) | 1450 CSG_EP_REQ_FRAGMENT(group->max_fragment_cores) | 1451 CSG_EP_REQ_TILER(group->max_tiler_cores) | 1452 CSG_EP_REQ_PRIORITY(priority); 1453 panthor_fw_csg_endpoint_req_set(ptdev, csg_iface, endpoint_req); 1454 1455 csg_iface->input->config = panthor_vm_as(group->vm); 1456 1457 if (group->suspend_buf) 1458 csg_iface->input->suspend_buf = panthor_kernel_bo_gpuva(group->suspend_buf); 1459 else 1460 csg_iface->input->suspend_buf = 0; 1461 1462 if (group->protm_suspend_buf) { 1463 csg_iface->input->protm_suspend_buf = 1464 panthor_kernel_bo_gpuva(group->protm_suspend_buf); 1465 } else { 1466 csg_iface->input->protm_suspend_buf = 0; 1467 } 1468 1469 csg_iface->input->ack_irq_mask = ~0; 1470 panthor_fw_toggle_reqs(csg_iface, doorbell_req, doorbell_ack, queue_mask); 1471 return 0; 1472 } 1473 1474 static void 1475 cs_slot_process_fatal_event_locked(struct panthor_device *ptdev, 1476 u32 csg_id, u32 cs_id) 1477 { 1478 struct panthor_scheduler *sched = ptdev->scheduler; 1479 struct panthor_csg_slot *csg_slot = &sched->csg_slots[csg_id]; 1480 struct panthor_group *group = csg_slot->group; 1481 struct panthor_fw_cs_iface *cs_iface; 1482 u32 fatal; 1483 u64 info; 1484 1485 lockdep_assert_held(&sched->lock); 1486 1487 cs_iface = panthor_fw_get_cs_iface(ptdev, csg_id, cs_id); 1488 fatal = cs_iface->output->fatal; 1489 info = cs_iface->output->fatal_info; 1490 1491 if (group) { 1492 drm_warn(&ptdev->base, "CS_FATAL: pid=%d, comm=%s\n", 1493 group->task_info.pid, group->task_info.comm); 1494 1495 group->fatal_queues |= BIT(cs_id); 1496 } 1497 1498 if (CS_EXCEPTION_TYPE(fatal) == DRM_PANTHOR_EXCEPTION_CS_UNRECOVERABLE) { 1499 /* If this exception is unrecoverable, queue a reset, and make 1500 * sure we stop scheduling groups until the reset has happened. 1501 */ 1502 panthor_device_schedule_reset(ptdev); 1503 cancel_delayed_work(&sched->tick_work); 1504 } else { 1505 sched_queue_delayed_work(sched, tick, 0); 1506 } 1507 1508 drm_warn(&ptdev->base, 1509 "CSG slot %d CS slot: %d\n" 1510 "CS_FATAL.EXCEPTION_TYPE: 0x%x (%s)\n" 1511 "CS_FATAL.EXCEPTION_DATA: 0x%x\n" 1512 "CS_FATAL_INFO.EXCEPTION_DATA: 0x%llx\n", 1513 csg_id, cs_id, 1514 (unsigned int)CS_EXCEPTION_TYPE(fatal), 1515 panthor_exception_name(ptdev, CS_EXCEPTION_TYPE(fatal)), 1516 (unsigned int)CS_EXCEPTION_DATA(fatal), 1517 info); 1518 } 1519 1520 static void 1521 cs_slot_process_fault_event_locked(struct panthor_device *ptdev, 1522 u32 csg_id, u32 cs_id) 1523 { 1524 struct panthor_scheduler *sched = ptdev->scheduler; 1525 struct panthor_csg_slot *csg_slot = &sched->csg_slots[csg_id]; 1526 struct panthor_group *group = csg_slot->group; 1527 struct panthor_queue *queue = group && cs_id < group->queue_count ? 1528 group->queues[cs_id] : NULL; 1529 struct panthor_fw_cs_iface *cs_iface; 1530 u32 fault; 1531 u64 info; 1532 1533 lockdep_assert_held(&sched->lock); 1534 1535 cs_iface = panthor_fw_get_cs_iface(ptdev, csg_id, cs_id); 1536 fault = cs_iface->output->fault; 1537 info = cs_iface->output->fault_info; 1538 1539 if (queue) { 1540 u64 cs_extract = queue->iface.output->extract; 1541 struct panthor_job *job; 1542 1543 guard(spinlock_irqsave)(&queue->fence_ctx.lock); 1544 list_for_each_entry(job, &queue->fence_ctx.in_flight_jobs, node) { 1545 if (cs_extract >= job->ringbuf.end) 1546 continue; 1547 1548 if (cs_extract < job->ringbuf.start) 1549 break; 1550 1551 dma_fence_set_error(job->done_fence, -EINVAL); 1552 } 1553 } 1554 1555 if (group) { 1556 drm_warn(&ptdev->base, "CS_FAULT: pid=%d, comm=%s\n", 1557 group->task_info.pid, group->task_info.comm); 1558 } 1559 1560 drm_warn(&ptdev->base, 1561 "CSG slot %d CS slot: %d\n" 1562 "CS_FAULT.EXCEPTION_TYPE: 0x%x (%s)\n" 1563 "CS_FAULT.EXCEPTION_DATA: 0x%x\n" 1564 "CS_FAULT_INFO.EXCEPTION_DATA: 0x%llx\n", 1565 csg_id, cs_id, 1566 (unsigned int)CS_EXCEPTION_TYPE(fault), 1567 panthor_exception_name(ptdev, CS_EXCEPTION_TYPE(fault)), 1568 (unsigned int)CS_EXCEPTION_DATA(fault), 1569 info); 1570 } 1571 1572 static int group_process_tiler_oom(struct panthor_group *group, u32 cs_id) 1573 { 1574 struct panthor_device *ptdev = group->ptdev; 1575 struct panthor_scheduler *sched = ptdev->scheduler; 1576 u32 renderpasses_in_flight, pending_frag_count; 1577 struct panthor_heap_pool *heaps = NULL; 1578 u64 heap_address, new_chunk_va = 0; 1579 u32 vt_start, vt_end, frag_end; 1580 int ret, csg_id; 1581 1582 mutex_lock(&sched->lock); 1583 csg_id = group->csg_id; 1584 if (csg_id >= 0) { 1585 struct panthor_fw_cs_iface *cs_iface; 1586 1587 cs_iface = panthor_fw_get_cs_iface(ptdev, csg_id, cs_id); 1588 heaps = panthor_vm_get_heap_pool(group->vm, false); 1589 heap_address = cs_iface->output->heap_address; 1590 vt_start = cs_iface->output->heap_vt_start; 1591 vt_end = cs_iface->output->heap_vt_end; 1592 frag_end = cs_iface->output->heap_frag_end; 1593 renderpasses_in_flight = vt_start - frag_end; 1594 pending_frag_count = vt_end - frag_end; 1595 } 1596 mutex_unlock(&sched->lock); 1597 1598 /* The group got scheduled out, we stop here. We will get a new tiler OOM event 1599 * when it's scheduled again. 1600 */ 1601 if (unlikely(csg_id < 0)) 1602 return 0; 1603 1604 if (IS_ERR(heaps)) { 1605 ret = -EINVAL; 1606 heaps = NULL; 1607 } else if (frag_end > vt_end || vt_end >= vt_start) { 1608 ret = -EINVAL; 1609 } else { 1610 /* We do the allocation without holding the scheduler lock to avoid 1611 * blocking the scheduling. 1612 */ 1613 ret = panthor_heap_grow(heaps, heap_address, 1614 renderpasses_in_flight, 1615 pending_frag_count, &new_chunk_va); 1616 } 1617 1618 /* If the heap context doesn't have memory for us, we want to let the 1619 * FW try to reclaim memory by waiting for fragment jobs to land or by 1620 * executing the tiler OOM exception handler, which is supposed to 1621 * implement incremental rendering. 1622 */ 1623 if (ret && ret != -ENOMEM) { 1624 drm_warn(&ptdev->base, "Failed to extend the tiler heap\n"); 1625 group->fatal_queues |= BIT(cs_id); 1626 sched_queue_delayed_work(sched, tick, 0); 1627 goto out_put_heap_pool; 1628 } 1629 1630 mutex_lock(&sched->lock); 1631 csg_id = group->csg_id; 1632 if (csg_id >= 0) { 1633 struct panthor_fw_csg_iface *csg_iface; 1634 struct panthor_fw_cs_iface *cs_iface; 1635 1636 csg_iface = panthor_fw_get_csg_iface(ptdev, csg_id); 1637 cs_iface = panthor_fw_get_cs_iface(ptdev, csg_id, cs_id); 1638 1639 cs_iface->input->heap_start = new_chunk_va; 1640 cs_iface->input->heap_end = new_chunk_va; 1641 panthor_fw_update_reqs(cs_iface, req, cs_iface->output->ack, CS_TILER_OOM); 1642 panthor_fw_toggle_reqs(csg_iface, doorbell_req, doorbell_ack, BIT(cs_id)); 1643 panthor_fw_ring_csg_doorbells(ptdev, BIT(csg_id)); 1644 } 1645 mutex_unlock(&sched->lock); 1646 1647 /* We allocated a chunck, but couldn't link it to the heap 1648 * context because the group was scheduled out while we were 1649 * allocating memory. We need to return this chunk to the heap. 1650 */ 1651 if (unlikely(csg_id < 0 && new_chunk_va)) 1652 panthor_heap_return_chunk(heaps, heap_address, new_chunk_va); 1653 1654 ret = 0; 1655 1656 out_put_heap_pool: 1657 panthor_heap_pool_put(heaps); 1658 return ret; 1659 } 1660 1661 static void group_tiler_oom_work(struct work_struct *work) 1662 { 1663 struct panthor_group *group = 1664 container_of(work, struct panthor_group, tiler_oom_work); 1665 u32 tiler_oom = atomic_xchg(&group->tiler_oom, 0); 1666 1667 while (tiler_oom) { 1668 u32 cs_id = ffs(tiler_oom) - 1; 1669 1670 group_process_tiler_oom(group, cs_id); 1671 tiler_oom &= ~BIT(cs_id); 1672 } 1673 1674 group_put(group); 1675 } 1676 1677 static void 1678 cs_slot_process_tiler_oom_event_locked(struct panthor_device *ptdev, 1679 u32 csg_id, u32 cs_id) 1680 { 1681 struct panthor_scheduler *sched = ptdev->scheduler; 1682 struct panthor_csg_slot *csg_slot = &sched->csg_slots[csg_id]; 1683 struct panthor_group *group = csg_slot->group; 1684 1685 lockdep_assert_held(&sched->lock); 1686 1687 if (drm_WARN_ON(&ptdev->base, !group)) 1688 return; 1689 1690 atomic_or(BIT(cs_id), &group->tiler_oom); 1691 1692 /* We don't use group_queue_work() here because we want to queue the 1693 * work item to the heap_alloc_wq. 1694 */ 1695 group_get(group); 1696 if (!queue_work(sched->heap_alloc_wq, &group->tiler_oom_work)) 1697 group_put(group); 1698 } 1699 1700 static bool cs_slot_process_irq_locked(struct panthor_device *ptdev, 1701 u32 csg_id, u32 cs_id) 1702 { 1703 struct panthor_fw_cs_iface *cs_iface; 1704 u32 req, ack, events; 1705 1706 lockdep_assert_held(&ptdev->scheduler->lock); 1707 1708 cs_iface = panthor_fw_get_cs_iface(ptdev, csg_id, cs_id); 1709 req = cs_iface->input->req; 1710 ack = cs_iface->output->ack; 1711 events = (req ^ ack) & CS_EVT_MASK; 1712 1713 if (events & CS_FATAL) 1714 cs_slot_process_fatal_event_locked(ptdev, csg_id, cs_id); 1715 1716 if (events & CS_FAULT) 1717 cs_slot_process_fault_event_locked(ptdev, csg_id, cs_id); 1718 1719 if (events & CS_TILER_OOM) 1720 cs_slot_process_tiler_oom_event_locked(ptdev, csg_id, cs_id); 1721 1722 /* We don't acknowledge the TILER_OOM event since its handling is 1723 * deferred to a separate work. 1724 */ 1725 panthor_fw_update_reqs(cs_iface, req, ack, CS_FATAL | CS_FAULT); 1726 1727 return (events & (CS_FAULT | CS_TILER_OOM)) != 0; 1728 } 1729 1730 static void csg_slot_process_idle_event_locked(struct panthor_device *ptdev, u32 csg_id) 1731 { 1732 struct panthor_scheduler *sched = ptdev->scheduler; 1733 1734 lockdep_assert_held(&sched->lock); 1735 1736 sched->might_have_idle_groups = true; 1737 1738 /* Schedule a tick so we can evict idle groups and schedule non-idle 1739 * ones. This will also update runtime PM and devfreq busy/idle states, 1740 * so the device can lower its frequency or get suspended. 1741 */ 1742 sched_queue_delayed_work(sched, tick, 0); 1743 } 1744 1745 static void csg_slot_sync_update_locked(struct panthor_device *ptdev, 1746 u32 csg_id) 1747 { 1748 struct panthor_csg_slot *csg_slot = &ptdev->scheduler->csg_slots[csg_id]; 1749 struct panthor_group *group = csg_slot->group; 1750 1751 lockdep_assert_held(&ptdev->scheduler->lock); 1752 1753 if (group) 1754 group_queue_work(group, sync_upd); 1755 1756 sched_queue_work(ptdev->scheduler, sync_upd); 1757 } 1758 1759 static void 1760 csg_slot_process_progress_timer_event_locked(struct panthor_device *ptdev, u32 csg_id) 1761 { 1762 struct panthor_scheduler *sched = ptdev->scheduler; 1763 struct panthor_csg_slot *csg_slot = &sched->csg_slots[csg_id]; 1764 struct panthor_group *group = csg_slot->group; 1765 1766 lockdep_assert_held(&sched->lock); 1767 1768 group = csg_slot->group; 1769 if (!drm_WARN_ON(&ptdev->base, !group)) { 1770 drm_warn(&ptdev->base, "CSG_PROGRESS_TIMER_EVENT: pid=%d, comm=%s\n", 1771 group->task_info.pid, group->task_info.comm); 1772 1773 group->timedout = true; 1774 } 1775 1776 drm_warn(&ptdev->base, "CSG slot %d progress timeout\n", csg_id); 1777 1778 sched_queue_delayed_work(sched, tick, 0); 1779 } 1780 1781 static void sched_process_csg_irq_locked(struct panthor_device *ptdev, u32 csg_id) 1782 { 1783 u32 req, ack, cs_irq_req, cs_irq_ack, cs_irqs, csg_events; 1784 struct panthor_fw_csg_iface *csg_iface; 1785 u32 ring_cs_db_mask = 0; 1786 1787 lockdep_assert_held(&ptdev->scheduler->lock); 1788 1789 if (drm_WARN_ON(&ptdev->base, csg_id >= ptdev->scheduler->csg_slot_count)) 1790 return; 1791 1792 csg_iface = panthor_fw_get_csg_iface(ptdev, csg_id); 1793 req = READ_ONCE(csg_iface->input->req); 1794 ack = READ_ONCE(csg_iface->output->ack); 1795 cs_irq_req = READ_ONCE(csg_iface->output->cs_irq_req); 1796 cs_irq_ack = READ_ONCE(csg_iface->input->cs_irq_ack); 1797 csg_events = (req ^ ack) & CSG_EVT_MASK; 1798 1799 /* There may not be any pending CSG/CS interrupts to process */ 1800 if (req == ack && cs_irq_req == cs_irq_ack) 1801 return; 1802 1803 /* Immediately set IRQ_ACK bits to be same as the IRQ_REQ bits before 1804 * examining the CS_ACK & CS_REQ bits. This would ensure that Host 1805 * doesn't miss an interrupt for the CS in the race scenario where 1806 * whilst Host is servicing an interrupt for the CS, firmware sends 1807 * another interrupt for that CS. 1808 */ 1809 csg_iface->input->cs_irq_ack = cs_irq_req; 1810 1811 panthor_fw_update_reqs(csg_iface, req, ack, 1812 CSG_SYNC_UPDATE | 1813 CSG_IDLE | 1814 CSG_PROGRESS_TIMER_EVENT); 1815 1816 if (csg_events & CSG_IDLE) 1817 csg_slot_process_idle_event_locked(ptdev, csg_id); 1818 1819 if (csg_events & CSG_PROGRESS_TIMER_EVENT) 1820 csg_slot_process_progress_timer_event_locked(ptdev, csg_id); 1821 1822 cs_irqs = cs_irq_req ^ cs_irq_ack; 1823 while (cs_irqs) { 1824 u32 cs_id = ffs(cs_irqs) - 1; 1825 1826 if (cs_slot_process_irq_locked(ptdev, csg_id, cs_id)) 1827 ring_cs_db_mask |= BIT(cs_id); 1828 1829 cs_irqs &= ~BIT(cs_id); 1830 } 1831 1832 if (csg_events & CSG_SYNC_UPDATE) 1833 csg_slot_sync_update_locked(ptdev, csg_id); 1834 1835 if (ring_cs_db_mask) 1836 panthor_fw_toggle_reqs(csg_iface, doorbell_req, doorbell_ack, ring_cs_db_mask); 1837 1838 panthor_fw_ring_csg_doorbells(ptdev, BIT(csg_id)); 1839 } 1840 1841 static void sched_process_idle_event_locked(struct panthor_device *ptdev) 1842 { 1843 struct panthor_fw_global_iface *glb_iface = panthor_fw_get_glb_iface(ptdev); 1844 1845 lockdep_assert_held(&ptdev->scheduler->lock); 1846 1847 /* Acknowledge the idle event and schedule a tick. */ 1848 panthor_fw_update_reqs(glb_iface, req, glb_iface->output->ack, GLB_IDLE); 1849 sched_queue_delayed_work(ptdev->scheduler, tick, 0); 1850 } 1851 1852 /** 1853 * sched_process_global_irq_locked() - Process the scheduling part of a global IRQ 1854 * @ptdev: Device. 1855 */ 1856 static void sched_process_global_irq_locked(struct panthor_device *ptdev) 1857 { 1858 struct panthor_fw_global_iface *glb_iface = panthor_fw_get_glb_iface(ptdev); 1859 u32 req, ack, evts; 1860 1861 lockdep_assert_held(&ptdev->scheduler->lock); 1862 1863 req = READ_ONCE(glb_iface->input->req); 1864 ack = READ_ONCE(glb_iface->output->ack); 1865 evts = (req ^ ack) & GLB_EVT_MASK; 1866 1867 if (evts & GLB_IDLE) 1868 sched_process_idle_event_locked(ptdev); 1869 } 1870 1871 static void process_fw_events_work(struct work_struct *work) 1872 { 1873 struct panthor_scheduler *sched = container_of(work, struct panthor_scheduler, 1874 fw_events_work); 1875 u32 events = atomic_xchg(&sched->fw_events, 0); 1876 struct panthor_device *ptdev = sched->ptdev; 1877 1878 mutex_lock(&sched->lock); 1879 1880 if (events & JOB_INT_GLOBAL_IF) { 1881 sched_process_global_irq_locked(ptdev); 1882 events &= ~JOB_INT_GLOBAL_IF; 1883 } 1884 1885 while (events) { 1886 u32 csg_id = ffs(events) - 1; 1887 1888 sched_process_csg_irq_locked(ptdev, csg_id); 1889 events &= ~BIT(csg_id); 1890 } 1891 1892 mutex_unlock(&sched->lock); 1893 } 1894 1895 /** 1896 * panthor_sched_report_fw_events() - Report FW events to the scheduler. 1897 * @ptdev: Device. 1898 * @events: Bitmask of pending FW events to report. 1899 */ 1900 void panthor_sched_report_fw_events(struct panthor_device *ptdev, u32 events) 1901 { 1902 if (!ptdev->scheduler) 1903 return; 1904 1905 atomic_or(events, &ptdev->scheduler->fw_events); 1906 sched_queue_work(ptdev->scheduler, fw_events); 1907 } 1908 1909 static const char *fence_get_driver_name(struct dma_fence *fence) 1910 { 1911 return "panthor"; 1912 } 1913 1914 static const char *queue_fence_get_timeline_name(struct dma_fence *fence) 1915 { 1916 return "queue-fence"; 1917 } 1918 1919 static const struct dma_fence_ops panthor_queue_fence_ops = { 1920 .get_driver_name = fence_get_driver_name, 1921 .get_timeline_name = queue_fence_get_timeline_name, 1922 }; 1923 1924 struct panthor_csg_slots_upd_ctx { 1925 u32 update_mask; 1926 u32 timedout_mask; 1927 struct { 1928 u32 value; 1929 u32 mask; 1930 } requests[MAX_CSGS]; 1931 }; 1932 1933 static void csgs_upd_ctx_init(struct panthor_csg_slots_upd_ctx *ctx) 1934 { 1935 memset(ctx, 0, sizeof(*ctx)); 1936 } 1937 1938 static void csgs_upd_ctx_queue_reqs(struct panthor_device *ptdev, 1939 struct panthor_csg_slots_upd_ctx *ctx, 1940 u32 csg_id, u32 value, u32 mask) 1941 { 1942 if (drm_WARN_ON(&ptdev->base, !mask) || 1943 drm_WARN_ON(&ptdev->base, csg_id >= ptdev->scheduler->csg_slot_count)) 1944 return; 1945 1946 ctx->requests[csg_id].value = (ctx->requests[csg_id].value & ~mask) | (value & mask); 1947 ctx->requests[csg_id].mask |= mask; 1948 ctx->update_mask |= BIT(csg_id); 1949 } 1950 1951 static int csgs_upd_ctx_apply_locked(struct panthor_device *ptdev, 1952 struct panthor_csg_slots_upd_ctx *ctx) 1953 { 1954 struct panthor_scheduler *sched = ptdev->scheduler; 1955 u32 update_slots = ctx->update_mask; 1956 1957 lockdep_assert_held(&sched->lock); 1958 1959 if (!ctx->update_mask) 1960 return 0; 1961 1962 while (update_slots) { 1963 struct panthor_fw_csg_iface *csg_iface; 1964 u32 csg_id = ffs(update_slots) - 1; 1965 1966 update_slots &= ~BIT(csg_id); 1967 csg_iface = panthor_fw_get_csg_iface(ptdev, csg_id); 1968 panthor_fw_update_reqs(csg_iface, req, 1969 ctx->requests[csg_id].value, 1970 ctx->requests[csg_id].mask); 1971 } 1972 1973 panthor_fw_ring_csg_doorbells(ptdev, ctx->update_mask); 1974 1975 update_slots = ctx->update_mask; 1976 while (update_slots) { 1977 struct panthor_fw_csg_iface *csg_iface; 1978 u32 csg_id = ffs(update_slots) - 1; 1979 u32 req_mask = ctx->requests[csg_id].mask, acked; 1980 int ret; 1981 1982 update_slots &= ~BIT(csg_id); 1983 csg_iface = panthor_fw_get_csg_iface(ptdev, csg_id); 1984 1985 ret = panthor_fw_csg_wait_acks(ptdev, csg_id, req_mask, &acked, 100); 1986 1987 if (acked & CSG_ENDPOINT_CONFIG) 1988 csg_slot_sync_priority_locked(ptdev, csg_id); 1989 1990 if (acked & CSG_STATE_MASK) 1991 csg_slot_sync_state_locked(ptdev, csg_id); 1992 1993 if (acked & CSG_STATUS_UPDATE) 1994 csg_slot_sync_queues_state_locked(ptdev, csg_id); 1995 1996 if (ret && acked != req_mask && 1997 ((csg_iface->input->req ^ csg_iface->output->ack) & req_mask) != 0) { 1998 drm_err(&ptdev->base, "CSG %d update request timedout", csg_id); 1999 ctx->timedout_mask |= BIT(csg_id); 2000 } 2001 } 2002 2003 if (ctx->timedout_mask) 2004 return -ETIMEDOUT; 2005 2006 return 0; 2007 } 2008 2009 struct panthor_sched_tick_ctx { 2010 struct list_head old_groups[PANTHOR_CSG_PRIORITY_COUNT]; 2011 struct list_head groups[PANTHOR_CSG_PRIORITY_COUNT]; 2012 u32 idle_group_count; 2013 u32 group_count; 2014 struct panthor_vm *vms[MAX_CS_PER_CSG]; 2015 u32 as_count; 2016 bool immediate_tick; 2017 bool stop_tick; 2018 u32 csg_upd_failed_mask; 2019 }; 2020 2021 static bool 2022 tick_ctx_is_full(const struct panthor_scheduler *sched, 2023 const struct panthor_sched_tick_ctx *ctx) 2024 { 2025 return ctx->group_count == sched->csg_slot_count; 2026 } 2027 2028 static void 2029 tick_ctx_pick_groups_from_list(const struct panthor_scheduler *sched, 2030 struct panthor_sched_tick_ctx *ctx, 2031 struct list_head *queue, 2032 bool skip_idle_groups, 2033 bool owned_by_tick_ctx) 2034 { 2035 struct panthor_group *group, *tmp; 2036 2037 if (tick_ctx_is_full(sched, ctx)) 2038 return; 2039 2040 list_for_each_entry_safe(group, tmp, queue, run_node) { 2041 u32 i; 2042 2043 if (!group_can_run(group)) 2044 continue; 2045 2046 if (skip_idle_groups && group_is_idle(group)) 2047 continue; 2048 2049 for (i = 0; i < ctx->as_count; i++) { 2050 if (ctx->vms[i] == group->vm) 2051 break; 2052 } 2053 2054 if (i == ctx->as_count && ctx->as_count == sched->as_slot_count) 2055 continue; 2056 2057 if (!owned_by_tick_ctx) 2058 group_get(group); 2059 2060 ctx->group_count++; 2061 2062 /* If we have more than one active group with the same priority, 2063 * we need to keep ticking to rotate the CSG priority. 2064 */ 2065 if (group_is_idle(group)) 2066 ctx->idle_group_count++; 2067 else if (!list_empty(&ctx->groups[group->priority])) 2068 ctx->stop_tick = false; 2069 2070 list_move_tail(&group->run_node, &ctx->groups[group->priority]); 2071 2072 if (i == ctx->as_count) 2073 ctx->vms[ctx->as_count++] = group->vm; 2074 2075 if (tick_ctx_is_full(sched, ctx)) 2076 return; 2077 } 2078 } 2079 2080 static void 2081 tick_ctx_insert_old_group(struct panthor_scheduler *sched, 2082 struct panthor_sched_tick_ctx *ctx, 2083 struct panthor_group *group) 2084 { 2085 struct panthor_csg_slot *csg_slot = &sched->csg_slots[group->csg_id]; 2086 struct panthor_group *other_group; 2087 2088 /* Class groups in descending priority order so we can easily rotate. */ 2089 list_for_each_entry(other_group, 2090 &ctx->old_groups[csg_slot->group->priority], 2091 run_node) { 2092 struct panthor_csg_slot *other_csg_slot = &sched->csg_slots[other_group->csg_id]; 2093 2094 /* Our group has a higher prio than the one we're testing against, 2095 * place it just before. 2096 */ 2097 if (csg_slot->priority > other_csg_slot->priority) { 2098 list_add_tail(&group->run_node, &other_group->run_node); 2099 return; 2100 } 2101 } 2102 2103 list_add_tail(&group->run_node, &ctx->old_groups[group->priority]); 2104 } 2105 2106 static void 2107 tick_ctx_init(struct panthor_scheduler *sched, 2108 struct panthor_sched_tick_ctx *ctx) 2109 { 2110 struct panthor_device *ptdev = sched->ptdev; 2111 struct panthor_csg_slots_upd_ctx upd_ctx; 2112 int ret; 2113 u32 i; 2114 2115 memset(ctx, 0, sizeof(*ctx)); 2116 csgs_upd_ctx_init(&upd_ctx); 2117 2118 ctx->stop_tick = true; 2119 for (i = 0; i < ARRAY_SIZE(ctx->groups); i++) { 2120 INIT_LIST_HEAD(&ctx->groups[i]); 2121 INIT_LIST_HEAD(&ctx->old_groups[i]); 2122 } 2123 2124 for (i = 0; i < sched->csg_slot_count; i++) { 2125 struct panthor_csg_slot *csg_slot = &sched->csg_slots[i]; 2126 struct panthor_group *group = csg_slot->group; 2127 struct panthor_fw_csg_iface *csg_iface; 2128 2129 if (!group) 2130 continue; 2131 2132 csg_iface = panthor_fw_get_csg_iface(ptdev, i); 2133 group_get(group); 2134 2135 /* If there was unhandled faults on the VM, force processing of 2136 * CSG IRQs, so we can flag the faulty queue. 2137 */ 2138 if (panthor_vm_has_unhandled_faults(group->vm)) { 2139 sched_process_csg_irq_locked(ptdev, i); 2140 2141 /* No fatal fault reported, flag all queues as faulty. */ 2142 if (!group->fatal_queues) 2143 group->fatal_queues |= GENMASK(group->queue_count - 1, 0); 2144 } 2145 2146 tick_ctx_insert_old_group(sched, ctx, group); 2147 csgs_upd_ctx_queue_reqs(ptdev, &upd_ctx, i, 2148 csg_iface->output->ack ^ CSG_STATUS_UPDATE, 2149 CSG_STATUS_UPDATE); 2150 } 2151 2152 ret = csgs_upd_ctx_apply_locked(ptdev, &upd_ctx); 2153 if (ret) { 2154 panthor_device_schedule_reset(ptdev); 2155 ctx->csg_upd_failed_mask |= upd_ctx.timedout_mask; 2156 } 2157 } 2158 2159 static void 2160 group_term_post_processing(struct panthor_group *group) 2161 { 2162 struct panthor_job *job, *tmp; 2163 LIST_HEAD(faulty_jobs); 2164 bool cookie; 2165 u32 i = 0; 2166 2167 if (drm_WARN_ON(&group->ptdev->base, group_can_run(group))) 2168 return; 2169 2170 cookie = dma_fence_begin_signalling(); 2171 for (i = 0; i < group->queue_count; i++) { 2172 struct panthor_queue *queue = group->queues[i]; 2173 struct panthor_syncobj_64b *syncobj; 2174 int err; 2175 2176 if (group->fatal_queues & BIT(i)) 2177 err = -EINVAL; 2178 else if (group->timedout) 2179 err = -ETIMEDOUT; 2180 else 2181 err = -ECANCELED; 2182 2183 if (!queue) 2184 continue; 2185 2186 scoped_guard(spinlock_irqsave, &queue->fence_ctx.lock) { 2187 list_for_each_entry_safe(job, tmp, &queue->fence_ctx.in_flight_jobs, node) { 2188 list_move_tail(&job->node, &faulty_jobs); 2189 dma_fence_set_error(job->done_fence, err); 2190 dma_fence_signal_locked(job->done_fence); 2191 } 2192 } 2193 2194 /* Manually update the syncobj seqno to unblock waiters. */ 2195 syncobj = group->syncobjs->kmap + (i * sizeof(*syncobj)); 2196 syncobj->status = ~0; 2197 syncobj->seqno = atomic64_read(&queue->fence_ctx.seqno); 2198 sched_queue_work(group->ptdev->scheduler, sync_upd); 2199 } 2200 dma_fence_end_signalling(cookie); 2201 2202 list_for_each_entry_safe(job, tmp, &faulty_jobs, node) { 2203 list_del_init(&job->node); 2204 panthor_job_put(&job->base); 2205 } 2206 } 2207 2208 static void group_term_work(struct work_struct *work) 2209 { 2210 struct panthor_group *group = 2211 container_of(work, struct panthor_group, term_work); 2212 2213 group_term_post_processing(group); 2214 group_put(group); 2215 } 2216 2217 static void 2218 tick_ctx_cleanup(struct panthor_scheduler *sched, 2219 struct panthor_sched_tick_ctx *ctx) 2220 { 2221 struct panthor_device *ptdev = sched->ptdev; 2222 struct panthor_group *group, *tmp; 2223 u32 i; 2224 2225 for (i = 0; i < ARRAY_SIZE(ctx->old_groups); i++) { 2226 list_for_each_entry_safe(group, tmp, &ctx->old_groups[i], run_node) { 2227 /* If everything went fine, we should only have groups 2228 * to be terminated in the old_groups lists. 2229 */ 2230 drm_WARN_ON(&ptdev->base, !ctx->csg_upd_failed_mask && 2231 group_can_run(group)); 2232 2233 if (!group_can_run(group)) { 2234 list_del_init(&group->run_node); 2235 list_del_init(&group->wait_node); 2236 group_queue_work(group, term); 2237 } else if (group->csg_id >= 0) { 2238 list_del_init(&group->run_node); 2239 } else { 2240 list_move(&group->run_node, 2241 group_is_idle(group) ? 2242 &sched->groups.idle[group->priority] : 2243 &sched->groups.runnable[group->priority]); 2244 } 2245 group_put(group); 2246 } 2247 } 2248 2249 for (i = 0; i < ARRAY_SIZE(ctx->groups); i++) { 2250 /* If everything went fine, the groups to schedule lists should 2251 * be empty. 2252 */ 2253 drm_WARN_ON(&ptdev->base, 2254 !ctx->csg_upd_failed_mask && !list_empty(&ctx->groups[i])); 2255 2256 list_for_each_entry_safe(group, tmp, &ctx->groups[i], run_node) { 2257 if (group->csg_id >= 0) { 2258 list_del_init(&group->run_node); 2259 } else { 2260 list_move(&group->run_node, 2261 group_is_idle(group) ? 2262 &sched->groups.idle[group->priority] : 2263 &sched->groups.runnable[group->priority]); 2264 } 2265 group_put(group); 2266 } 2267 } 2268 } 2269 2270 static void 2271 tick_ctx_apply(struct panthor_scheduler *sched, struct panthor_sched_tick_ctx *ctx) 2272 { 2273 struct panthor_group *group, *tmp; 2274 struct panthor_device *ptdev = sched->ptdev; 2275 struct panthor_csg_slot *csg_slot; 2276 int prio, new_csg_prio = MAX_CSG_PRIO, i; 2277 u32 free_csg_slots = 0; 2278 struct panthor_csg_slots_upd_ctx upd_ctx; 2279 int ret; 2280 2281 csgs_upd_ctx_init(&upd_ctx); 2282 2283 for (prio = PANTHOR_CSG_PRIORITY_COUNT - 1; prio >= 0; prio--) { 2284 /* Suspend or terminate evicted groups. */ 2285 list_for_each_entry(group, &ctx->old_groups[prio], run_node) { 2286 bool term = !group_can_run(group); 2287 int csg_id = group->csg_id; 2288 2289 if (drm_WARN_ON(&ptdev->base, csg_id < 0)) 2290 continue; 2291 2292 csg_slot = &sched->csg_slots[csg_id]; 2293 csgs_upd_ctx_queue_reqs(ptdev, &upd_ctx, csg_id, 2294 term ? CSG_STATE_TERMINATE : CSG_STATE_SUSPEND, 2295 CSG_STATE_MASK); 2296 } 2297 2298 /* Update priorities on already running groups. */ 2299 list_for_each_entry(group, &ctx->groups[prio], run_node) { 2300 struct panthor_fw_csg_iface *csg_iface; 2301 int csg_id = group->csg_id; 2302 2303 if (csg_id < 0) { 2304 new_csg_prio--; 2305 continue; 2306 } 2307 2308 csg_slot = &sched->csg_slots[csg_id]; 2309 csg_iface = panthor_fw_get_csg_iface(ptdev, csg_id); 2310 if (csg_slot->priority == new_csg_prio) { 2311 new_csg_prio--; 2312 continue; 2313 } 2314 2315 panthor_fw_csg_endpoint_req_update(ptdev, csg_iface, 2316 CSG_EP_REQ_PRIORITY(new_csg_prio), 2317 CSG_EP_REQ_PRIORITY_MASK); 2318 csgs_upd_ctx_queue_reqs(ptdev, &upd_ctx, csg_id, 2319 csg_iface->output->ack ^ CSG_ENDPOINT_CONFIG, 2320 CSG_ENDPOINT_CONFIG); 2321 new_csg_prio--; 2322 } 2323 } 2324 2325 ret = csgs_upd_ctx_apply_locked(ptdev, &upd_ctx); 2326 if (ret) { 2327 panthor_device_schedule_reset(ptdev); 2328 ctx->csg_upd_failed_mask |= upd_ctx.timedout_mask; 2329 return; 2330 } 2331 2332 /* Unbind evicted groups. */ 2333 for (prio = PANTHOR_CSG_PRIORITY_COUNT - 1; prio >= 0; prio--) { 2334 list_for_each_entry(group, &ctx->old_groups[prio], run_node) { 2335 /* This group is gone. Process interrupts to clear 2336 * any pending interrupts before we start the new 2337 * group. 2338 */ 2339 if (group->csg_id >= 0) 2340 sched_process_csg_irq_locked(ptdev, group->csg_id); 2341 2342 group_unbind_locked(group); 2343 } 2344 } 2345 2346 for (i = 0; i < sched->csg_slot_count; i++) { 2347 if (!sched->csg_slots[i].group) 2348 free_csg_slots |= BIT(i); 2349 } 2350 2351 csgs_upd_ctx_init(&upd_ctx); 2352 new_csg_prio = MAX_CSG_PRIO; 2353 2354 /* Start new groups. */ 2355 for (prio = PANTHOR_CSG_PRIORITY_COUNT - 1; prio >= 0; prio--) { 2356 list_for_each_entry(group, &ctx->groups[prio], run_node) { 2357 int csg_id = group->csg_id; 2358 struct panthor_fw_csg_iface *csg_iface; 2359 2360 if (csg_id >= 0) { 2361 new_csg_prio--; 2362 continue; 2363 } 2364 2365 csg_id = ffs(free_csg_slots) - 1; 2366 if (drm_WARN_ON(&ptdev->base, csg_id < 0)) 2367 break; 2368 2369 csg_iface = panthor_fw_get_csg_iface(ptdev, csg_id); 2370 csg_slot = &sched->csg_slots[csg_id]; 2371 ret = group_bind_locked(group, csg_id); 2372 if (ret) { 2373 panthor_device_schedule_reset(ptdev); 2374 ctx->csg_upd_failed_mask |= BIT(csg_id); 2375 return; 2376 } 2377 2378 csg_slot_prog_locked(ptdev, csg_id, new_csg_prio--); 2379 csgs_upd_ctx_queue_reqs(ptdev, &upd_ctx, csg_id, 2380 group->state == PANTHOR_CS_GROUP_SUSPENDED ? 2381 CSG_STATE_RESUME : CSG_STATE_START, 2382 CSG_STATE_MASK); 2383 csgs_upd_ctx_queue_reqs(ptdev, &upd_ctx, csg_id, 2384 csg_iface->output->ack ^ CSG_ENDPOINT_CONFIG, 2385 CSG_ENDPOINT_CONFIG); 2386 free_csg_slots &= ~BIT(csg_id); 2387 } 2388 } 2389 2390 ret = csgs_upd_ctx_apply_locked(ptdev, &upd_ctx); 2391 if (ret) { 2392 panthor_device_schedule_reset(ptdev); 2393 ctx->csg_upd_failed_mask |= upd_ctx.timedout_mask; 2394 return; 2395 } 2396 2397 for (prio = PANTHOR_CSG_PRIORITY_COUNT - 1; prio >= 0; prio--) { 2398 list_for_each_entry_safe(group, tmp, &ctx->groups[prio], run_node) { 2399 list_del_init(&group->run_node); 2400 2401 /* If the group has been destroyed while we were 2402 * scheduling, ask for an immediate tick to 2403 * re-evaluate as soon as possible and get rid of 2404 * this dangling group. 2405 */ 2406 if (group->destroyed) 2407 ctx->immediate_tick = true; 2408 group_put(group); 2409 } 2410 2411 /* Return evicted groups to the idle or run queues. Groups 2412 * that can no longer be run (because they've been destroyed 2413 * or experienced an unrecoverable error) will be scheduled 2414 * for destruction in tick_ctx_cleanup(). 2415 */ 2416 list_for_each_entry_safe(group, tmp, &ctx->old_groups[prio], run_node) { 2417 if (!group_can_run(group)) 2418 continue; 2419 2420 if (group_is_idle(group)) 2421 list_move_tail(&group->run_node, &sched->groups.idle[prio]); 2422 else 2423 list_move_tail(&group->run_node, &sched->groups.runnable[prio]); 2424 group_put(group); 2425 } 2426 } 2427 2428 sched->used_csg_slot_count = ctx->group_count; 2429 sched->might_have_idle_groups = ctx->idle_group_count > 0; 2430 } 2431 2432 static u64 2433 tick_ctx_update_resched_target(struct panthor_scheduler *sched, 2434 const struct panthor_sched_tick_ctx *ctx) 2435 { 2436 u64 resched_target; 2437 2438 if (ctx->stop_tick) 2439 goto no_tick; 2440 2441 resched_target = sched->last_tick + sched->tick_period; 2442 2443 if (time_before64(sched->resched_target, sched->last_tick) || 2444 time_before64(resched_target, sched->resched_target)) 2445 sched->resched_target = resched_target; 2446 2447 return sched->resched_target - sched->last_tick; 2448 2449 no_tick: 2450 sched->resched_target = U64_MAX; 2451 return U64_MAX; 2452 } 2453 2454 static void tick_work(struct work_struct *work) 2455 { 2456 struct panthor_scheduler *sched = container_of(work, struct panthor_scheduler, 2457 tick_work.work); 2458 struct panthor_device *ptdev = sched->ptdev; 2459 struct panthor_sched_tick_ctx ctx; 2460 u64 resched_target = sched->resched_target; 2461 u64 remaining_jiffies = 0, resched_delay; 2462 u64 now = get_jiffies_64(); 2463 int prio, ret, cookie; 2464 bool full_tick; 2465 2466 if (!drm_dev_enter(&ptdev->base, &cookie)) 2467 return; 2468 2469 ret = panthor_device_resume_and_get(ptdev); 2470 if (drm_WARN_ON(&ptdev->base, ret)) 2471 goto out_dev_exit; 2472 2473 /* If the tick is stopped, calculate when the next tick would be */ 2474 if (resched_target == U64_MAX) 2475 resched_target = sched->last_tick + sched->tick_period; 2476 2477 if (time_before64(now, resched_target)) 2478 remaining_jiffies = resched_target - now; 2479 2480 full_tick = remaining_jiffies == 0; 2481 2482 mutex_lock(&sched->lock); 2483 if (panthor_device_reset_is_pending(sched->ptdev)) 2484 goto out_unlock; 2485 2486 tick_ctx_init(sched, &ctx); 2487 if (ctx.csg_upd_failed_mask) 2488 goto out_cleanup_ctx; 2489 2490 if (!full_tick) { 2491 /* Scheduling forced in the middle of a tick. Only RT groups 2492 * can preempt non-RT ones. Currently running RT groups can't be 2493 * preempted. 2494 */ 2495 for (prio = PANTHOR_CSG_PRIORITY_COUNT - 1; 2496 prio >= 0 && !tick_ctx_is_full(sched, &ctx); 2497 prio--) { 2498 tick_ctx_pick_groups_from_list(sched, &ctx, &ctx.old_groups[prio], 2499 true, true); 2500 if (prio == PANTHOR_CSG_PRIORITY_RT) { 2501 tick_ctx_pick_groups_from_list(sched, &ctx, 2502 &sched->groups.runnable[prio], 2503 true, false); 2504 } 2505 } 2506 } 2507 2508 /* First pick non-idle groups */ 2509 for (prio = PANTHOR_CSG_PRIORITY_COUNT - 1; 2510 prio >= 0 && !tick_ctx_is_full(sched, &ctx); 2511 prio--) { 2512 struct panthor_group *old_highest_prio_group = 2513 list_first_entry_or_null(&ctx.old_groups[prio], 2514 struct panthor_group, run_node); 2515 2516 /* Pull out the group with the highest prio for rotation. */ 2517 if (old_highest_prio_group) 2518 list_del(&old_highest_prio_group->run_node); 2519 2520 /* Re-insert old active groups so they get a chance to run with higher prio. */ 2521 tick_ctx_pick_groups_from_list(sched, &ctx, &ctx.old_groups[prio], true, true); 2522 2523 /* Fill the remaining slots with runnable groups. */ 2524 tick_ctx_pick_groups_from_list(sched, &ctx, &sched->groups.runnable[prio], 2525 true, false); 2526 2527 /* Re-insert the old group with the highest prio, and give it a chance to be 2528 * scheduled again (but with a lower prio) if there's room left. 2529 */ 2530 if (old_highest_prio_group) { 2531 list_add_tail(&old_highest_prio_group->run_node, &ctx.old_groups[prio]); 2532 tick_ctx_pick_groups_from_list(sched, &ctx, &ctx.old_groups[prio], 2533 true, true); 2534 } 2535 } 2536 2537 /* If we have free CSG slots left, pick idle groups */ 2538 for (prio = PANTHOR_CSG_PRIORITY_COUNT - 1; 2539 prio >= 0 && !tick_ctx_is_full(sched, &ctx); 2540 prio--) { 2541 /* Check the old_group queue first to avoid reprogramming the slots */ 2542 tick_ctx_pick_groups_from_list(sched, &ctx, &ctx.old_groups[prio], false, true); 2543 tick_ctx_pick_groups_from_list(sched, &ctx, &sched->groups.idle[prio], 2544 false, false); 2545 } 2546 2547 tick_ctx_apply(sched, &ctx); 2548 if (ctx.csg_upd_failed_mask) 2549 goto out_cleanup_ctx; 2550 2551 if (ctx.idle_group_count == ctx.group_count) { 2552 panthor_devfreq_record_idle(sched->ptdev); 2553 if (sched->pm.has_ref) { 2554 pm_runtime_put_autosuspend(ptdev->base.dev); 2555 sched->pm.has_ref = false; 2556 } 2557 } else { 2558 panthor_devfreq_record_busy(sched->ptdev); 2559 if (!sched->pm.has_ref) { 2560 pm_runtime_get(ptdev->base.dev); 2561 sched->pm.has_ref = true; 2562 } 2563 } 2564 2565 sched->last_tick = now; 2566 resched_delay = tick_ctx_update_resched_target(sched, &ctx); 2567 if (ctx.immediate_tick) 2568 resched_delay = 0; 2569 2570 if (resched_delay != U64_MAX) 2571 sched_queue_delayed_work(sched, tick, resched_delay); 2572 2573 out_cleanup_ctx: 2574 tick_ctx_cleanup(sched, &ctx); 2575 2576 out_unlock: 2577 mutex_unlock(&sched->lock); 2578 pm_runtime_mark_last_busy(ptdev->base.dev); 2579 pm_runtime_put_autosuspend(ptdev->base.dev); 2580 2581 out_dev_exit: 2582 drm_dev_exit(cookie); 2583 } 2584 2585 static int panthor_queue_eval_syncwait(struct panthor_group *group, u8 queue_idx) 2586 { 2587 struct panthor_queue *queue = group->queues[queue_idx]; 2588 union { 2589 struct panthor_syncobj_64b sync64; 2590 struct panthor_syncobj_32b sync32; 2591 } *syncobj; 2592 bool result; 2593 u64 value; 2594 2595 syncobj = panthor_queue_get_syncwait_obj(group, queue); 2596 if (!syncobj) 2597 return -EINVAL; 2598 2599 value = queue->syncwait.sync64 ? 2600 syncobj->sync64.seqno : 2601 syncobj->sync32.seqno; 2602 2603 if (queue->syncwait.gt) 2604 result = value > queue->syncwait.ref; 2605 else 2606 result = value <= queue->syncwait.ref; 2607 2608 if (result) 2609 panthor_queue_put_syncwait_obj(queue); 2610 2611 return result; 2612 } 2613 2614 static void sync_upd_work(struct work_struct *work) 2615 { 2616 struct panthor_scheduler *sched = container_of(work, 2617 struct panthor_scheduler, 2618 sync_upd_work); 2619 struct panthor_group *group, *tmp; 2620 bool immediate_tick = false; 2621 2622 mutex_lock(&sched->lock); 2623 list_for_each_entry_safe(group, tmp, &sched->groups.waiting, wait_node) { 2624 u32 tested_queues = group->blocked_queues; 2625 u32 unblocked_queues = 0; 2626 2627 while (tested_queues) { 2628 u32 cs_id = ffs(tested_queues) - 1; 2629 int ret; 2630 2631 ret = panthor_queue_eval_syncwait(group, cs_id); 2632 drm_WARN_ON(&group->ptdev->base, ret < 0); 2633 if (ret) 2634 unblocked_queues |= BIT(cs_id); 2635 2636 tested_queues &= ~BIT(cs_id); 2637 } 2638 2639 if (unblocked_queues) { 2640 group->blocked_queues &= ~unblocked_queues; 2641 2642 if (group->csg_id < 0) { 2643 list_move(&group->run_node, 2644 &sched->groups.runnable[group->priority]); 2645 if (group->priority == PANTHOR_CSG_PRIORITY_RT) 2646 immediate_tick = true; 2647 } 2648 } 2649 2650 if (!group->blocked_queues) 2651 list_del_init(&group->wait_node); 2652 } 2653 mutex_unlock(&sched->lock); 2654 2655 if (immediate_tick) 2656 sched_queue_delayed_work(sched, tick, 0); 2657 } 2658 2659 static void sched_resume_tick(struct panthor_device *ptdev) 2660 { 2661 struct panthor_scheduler *sched = ptdev->scheduler; 2662 u64 delay_jiffies, now; 2663 2664 drm_WARN_ON(&ptdev->base, sched->resched_target != U64_MAX); 2665 2666 /* Scheduler tick was off, recalculate the resched_target based on the 2667 * last tick event, and queue the scheduler work. 2668 */ 2669 now = get_jiffies_64(); 2670 sched->resched_target = sched->last_tick + sched->tick_period; 2671 if (sched->used_csg_slot_count == sched->csg_slot_count && 2672 time_before64(now, sched->resched_target)) 2673 delay_jiffies = min_t(unsigned long, sched->resched_target - now, ULONG_MAX); 2674 else 2675 delay_jiffies = 0; 2676 2677 /* We schedule immediate ticks when we need to process events on CSGs, 2678 * but those don't change the resched_target because we want the other 2679 * groups to stay scheduled for the remaining of the GPU timeslot they 2680 * were given. Make sure those immediate ticks don't get overruled by 2681 * a sched_queue_delayed_work() that would delay the tick execution. 2682 */ 2683 if (!delayed_work_pending(&sched->tick_work)) 2684 sched_queue_delayed_work(sched, tick, delay_jiffies); 2685 } 2686 2687 static void group_schedule_locked(struct panthor_group *group, u32 queue_mask) 2688 { 2689 struct panthor_device *ptdev = group->ptdev; 2690 struct panthor_scheduler *sched = ptdev->scheduler; 2691 struct list_head *queue = &sched->groups.runnable[group->priority]; 2692 bool was_idle; 2693 2694 if (!group_can_run(group)) 2695 return; 2696 2697 /* All updated queues are blocked, no need to wake up the scheduler. */ 2698 if ((queue_mask & group->blocked_queues) == queue_mask) 2699 return; 2700 2701 was_idle = group_is_idle(group); 2702 group->idle_queues &= ~queue_mask; 2703 2704 /* Don't mess up with the lists if we're in a middle of a reset. */ 2705 if (atomic_read(&sched->reset.in_progress)) 2706 return; 2707 2708 if (was_idle && !group_is_idle(group)) 2709 list_move_tail(&group->run_node, queue); 2710 2711 /* RT groups are preemptive. */ 2712 if (group->priority == PANTHOR_CSG_PRIORITY_RT) { 2713 sched_queue_delayed_work(sched, tick, 0); 2714 return; 2715 } 2716 2717 /* Some groups might be idle, force an immediate tick to 2718 * re-evaluate. 2719 */ 2720 if (sched->might_have_idle_groups) { 2721 sched_queue_delayed_work(sched, tick, 0); 2722 return; 2723 } 2724 2725 /* Scheduler is ticking, nothing to do. */ 2726 if (sched->resched_target != U64_MAX) { 2727 /* If there are free slots, force immediating ticking. */ 2728 if (sched->used_csg_slot_count < sched->csg_slot_count) 2729 sched_queue_delayed_work(sched, tick, 0); 2730 2731 return; 2732 } 2733 2734 /* Scheduler tick was off, recalculate the resched_target based on the 2735 * last tick event, and queue the scheduler work. 2736 */ 2737 sched_resume_tick(ptdev); 2738 } 2739 2740 static void queue_stop(struct panthor_queue *queue, 2741 struct panthor_job *bad_job) 2742 { 2743 disable_delayed_work_sync(&queue->timeout.work); 2744 drm_sched_stop(&queue->scheduler, bad_job ? &bad_job->base : NULL); 2745 } 2746 2747 static void queue_start(struct panthor_queue *queue) 2748 { 2749 struct panthor_job *job; 2750 2751 /* Re-assign the parent fences. */ 2752 list_for_each_entry(job, &queue->scheduler.pending_list, base.list) 2753 job->base.s_fence->parent = dma_fence_get(job->done_fence); 2754 2755 enable_delayed_work(&queue->timeout.work); 2756 drm_sched_start(&queue->scheduler, 0); 2757 } 2758 2759 static void panthor_group_stop(struct panthor_group *group) 2760 { 2761 struct panthor_scheduler *sched = group->ptdev->scheduler; 2762 2763 lockdep_assert_held(&sched->reset.lock); 2764 2765 for (u32 i = 0; i < group->queue_count; i++) 2766 queue_stop(group->queues[i], NULL); 2767 2768 group_get(group); 2769 list_move_tail(&group->run_node, &sched->reset.stopped_groups); 2770 } 2771 2772 static void panthor_group_start(struct panthor_group *group) 2773 { 2774 struct panthor_scheduler *sched = group->ptdev->scheduler; 2775 2776 lockdep_assert_held(&group->ptdev->scheduler->reset.lock); 2777 2778 for (u32 i = 0; i < group->queue_count; i++) 2779 queue_start(group->queues[i]); 2780 2781 if (group_can_run(group)) { 2782 list_move_tail(&group->run_node, 2783 group_is_idle(group) ? 2784 &sched->groups.idle[group->priority] : 2785 &sched->groups.runnable[group->priority]); 2786 } else { 2787 list_del_init(&group->run_node); 2788 list_del_init(&group->wait_node); 2789 group_queue_work(group, term); 2790 } 2791 2792 group_put(group); 2793 } 2794 2795 /** 2796 * panthor_sched_report_mmu_fault() - Report MMU faults to the scheduler. 2797 * @ptdev: Device. 2798 */ 2799 void panthor_sched_report_mmu_fault(struct panthor_device *ptdev) 2800 { 2801 /* Force a tick to immediately kill faulty groups. */ 2802 if (ptdev->scheduler) 2803 sched_queue_delayed_work(ptdev->scheduler, tick, 0); 2804 } 2805 2806 void panthor_sched_prepare_for_vm_destruction(struct panthor_device *ptdev) 2807 { 2808 /* FW can write out internal state, like the heap context, during CSG 2809 * suspend. It is therefore important that the scheduler has fully 2810 * evicted any pending and related groups before VM destruction can 2811 * safely continue. Failure to do so can lead to GPU page faults. 2812 * A controlled termination of a Panthor instance involves destroying 2813 * the group(s) before the VM. This means any relevant group eviction 2814 * has already been initiated by this point, and we just need to 2815 * ensure that any pending tick_work() has been completed. 2816 */ 2817 flush_work(&ptdev->scheduler->tick_work.work); 2818 } 2819 2820 void panthor_sched_resume(struct panthor_device *ptdev) 2821 { 2822 /* Force a tick to re-evaluate after a resume. */ 2823 sched_queue_delayed_work(ptdev->scheduler, tick, 0); 2824 } 2825 2826 void panthor_sched_suspend(struct panthor_device *ptdev) 2827 { 2828 struct panthor_scheduler *sched = ptdev->scheduler; 2829 struct panthor_csg_slots_upd_ctx upd_ctx; 2830 u32 suspended_slots; 2831 u32 i; 2832 2833 mutex_lock(&sched->lock); 2834 csgs_upd_ctx_init(&upd_ctx); 2835 for (i = 0; i < sched->csg_slot_count; i++) { 2836 struct panthor_csg_slot *csg_slot = &sched->csg_slots[i]; 2837 2838 if (csg_slot->group) { 2839 csgs_upd_ctx_queue_reqs(ptdev, &upd_ctx, i, 2840 group_can_run(csg_slot->group) ? 2841 CSG_STATE_SUSPEND : CSG_STATE_TERMINATE, 2842 CSG_STATE_MASK); 2843 } 2844 } 2845 2846 suspended_slots = upd_ctx.update_mask; 2847 2848 csgs_upd_ctx_apply_locked(ptdev, &upd_ctx); 2849 suspended_slots &= ~upd_ctx.timedout_mask; 2850 2851 if (upd_ctx.timedout_mask) { 2852 u32 slot_mask = upd_ctx.timedout_mask; 2853 2854 drm_err(&ptdev->base, "CSG suspend failed, escalating to termination"); 2855 csgs_upd_ctx_init(&upd_ctx); 2856 while (slot_mask) { 2857 u32 csg_id = ffs(slot_mask) - 1; 2858 struct panthor_csg_slot *csg_slot = &sched->csg_slots[csg_id]; 2859 2860 /* If the group was still usable before that point, we consider 2861 * it innocent. 2862 */ 2863 if (group_can_run(csg_slot->group)) 2864 csg_slot->group->innocent = true; 2865 2866 /* We consider group suspension failures as fatal and flag the 2867 * group as unusable by setting timedout=true. 2868 */ 2869 csg_slot->group->timedout = true; 2870 2871 csgs_upd_ctx_queue_reqs(ptdev, &upd_ctx, csg_id, 2872 CSG_STATE_TERMINATE, 2873 CSG_STATE_MASK); 2874 slot_mask &= ~BIT(csg_id); 2875 } 2876 2877 csgs_upd_ctx_apply_locked(ptdev, &upd_ctx); 2878 2879 slot_mask = upd_ctx.timedout_mask; 2880 while (slot_mask) { 2881 u32 csg_id = ffs(slot_mask) - 1; 2882 struct panthor_csg_slot *csg_slot = &sched->csg_slots[csg_id]; 2883 struct panthor_group *group = csg_slot->group; 2884 2885 /* Terminate command timedout, but the soft-reset will 2886 * automatically terminate all active groups, so let's 2887 * force the state to halted here. 2888 */ 2889 if (group->state != PANTHOR_CS_GROUP_TERMINATED) { 2890 group->state = PANTHOR_CS_GROUP_TERMINATED; 2891 2892 /* Reset the queue slots manually if the termination 2893 * request failed. 2894 */ 2895 for (i = 0; i < group->queue_count; i++) { 2896 if (group->queues[i]) 2897 cs_slot_reset_locked(ptdev, csg_id, i); 2898 } 2899 } 2900 slot_mask &= ~BIT(csg_id); 2901 } 2902 } 2903 2904 /* Flush L2 and LSC caches to make sure suspend state is up-to-date. 2905 * If the flush fails, flag all queues for termination. 2906 */ 2907 if (suspended_slots) { 2908 bool flush_caches_failed = false; 2909 u32 slot_mask = suspended_slots; 2910 2911 if (panthor_gpu_flush_caches(ptdev, CACHE_CLEAN, CACHE_CLEAN, 0)) 2912 flush_caches_failed = true; 2913 2914 while (slot_mask) { 2915 u32 csg_id = ffs(slot_mask) - 1; 2916 struct panthor_csg_slot *csg_slot = &sched->csg_slots[csg_id]; 2917 2918 if (flush_caches_failed) 2919 csg_slot->group->state = PANTHOR_CS_GROUP_TERMINATED; 2920 else 2921 csg_slot_sync_update_locked(ptdev, csg_id); 2922 2923 slot_mask &= ~BIT(csg_id); 2924 } 2925 } 2926 2927 for (i = 0; i < sched->csg_slot_count; i++) { 2928 struct panthor_csg_slot *csg_slot = &sched->csg_slots[i]; 2929 struct panthor_group *group = csg_slot->group; 2930 2931 if (!group) 2932 continue; 2933 2934 group_get(group); 2935 2936 if (group->csg_id >= 0) 2937 sched_process_csg_irq_locked(ptdev, group->csg_id); 2938 2939 group_unbind_locked(group); 2940 2941 drm_WARN_ON(&group->ptdev->base, !list_empty(&group->run_node)); 2942 2943 if (group_can_run(group)) { 2944 list_add(&group->run_node, 2945 &sched->groups.idle[group->priority]); 2946 } else { 2947 /* We don't bother stopping the scheduler if the group is 2948 * faulty, the group termination work will finish the job. 2949 */ 2950 list_del_init(&group->wait_node); 2951 group_queue_work(group, term); 2952 } 2953 group_put(group); 2954 } 2955 mutex_unlock(&sched->lock); 2956 } 2957 2958 void panthor_sched_pre_reset(struct panthor_device *ptdev) 2959 { 2960 struct panthor_scheduler *sched = ptdev->scheduler; 2961 struct panthor_group *group, *group_tmp; 2962 u32 i; 2963 2964 mutex_lock(&sched->reset.lock); 2965 atomic_set(&sched->reset.in_progress, true); 2966 2967 /* Cancel all scheduler works. Once this is done, these works can't be 2968 * scheduled again until the reset operation is complete. 2969 */ 2970 cancel_work_sync(&sched->sync_upd_work); 2971 cancel_delayed_work_sync(&sched->tick_work); 2972 2973 panthor_sched_suspend(ptdev); 2974 2975 /* Stop all groups that might still accept jobs, so we don't get passed 2976 * new jobs while we're resetting. 2977 */ 2978 for (i = 0; i < ARRAY_SIZE(sched->groups.runnable); i++) { 2979 list_for_each_entry_safe(group, group_tmp, &sched->groups.runnable[i], run_node) 2980 panthor_group_stop(group); 2981 } 2982 2983 for (i = 0; i < ARRAY_SIZE(sched->groups.idle); i++) { 2984 list_for_each_entry_safe(group, group_tmp, &sched->groups.idle[i], run_node) 2985 panthor_group_stop(group); 2986 } 2987 2988 mutex_unlock(&sched->reset.lock); 2989 } 2990 2991 void panthor_sched_post_reset(struct panthor_device *ptdev, bool reset_failed) 2992 { 2993 struct panthor_scheduler *sched = ptdev->scheduler; 2994 struct panthor_group *group, *group_tmp; 2995 2996 mutex_lock(&sched->reset.lock); 2997 2998 list_for_each_entry_safe(group, group_tmp, &sched->reset.stopped_groups, run_node) { 2999 /* Consider all previously running group as terminated if the 3000 * reset failed. 3001 */ 3002 if (reset_failed) 3003 group->state = PANTHOR_CS_GROUP_TERMINATED; 3004 3005 panthor_group_start(group); 3006 } 3007 3008 /* We're done resetting the GPU, clear the reset.in_progress bit so we can 3009 * kick the scheduler. 3010 */ 3011 atomic_set(&sched->reset.in_progress, false); 3012 mutex_unlock(&sched->reset.lock); 3013 3014 /* No need to queue a tick and update syncs if the reset failed. */ 3015 if (!reset_failed) { 3016 sched_queue_delayed_work(sched, tick, 0); 3017 sched_queue_work(sched, sync_upd); 3018 } 3019 } 3020 3021 static void update_fdinfo_stats(struct panthor_job *job) 3022 { 3023 struct panthor_group *group = job->group; 3024 struct panthor_queue *queue = group->queues[job->queue_idx]; 3025 struct panthor_gpu_usage *fdinfo = &group->fdinfo.data; 3026 struct panthor_job_profiling_data *slots = queue->profiling.slots->kmap; 3027 struct panthor_job_profiling_data *data = &slots[job->profiling.slot]; 3028 3029 scoped_guard(spinlock, &group->fdinfo.lock) { 3030 if (job->profiling.mask & PANTHOR_DEVICE_PROFILING_CYCLES) 3031 fdinfo->cycles += data->cycles.after - data->cycles.before; 3032 if (job->profiling.mask & PANTHOR_DEVICE_PROFILING_TIMESTAMP) 3033 fdinfo->time += data->time.after - data->time.before; 3034 } 3035 } 3036 3037 void panthor_fdinfo_gather_group_samples(struct panthor_file *pfile) 3038 { 3039 struct panthor_group_pool *gpool = pfile->groups; 3040 struct panthor_group *group; 3041 unsigned long i; 3042 3043 if (IS_ERR_OR_NULL(gpool)) 3044 return; 3045 3046 xa_lock(&gpool->xa); 3047 xa_for_each_marked(&gpool->xa, i, group, GROUP_REGISTERED) { 3048 guard(spinlock)(&group->fdinfo.lock); 3049 pfile->stats.cycles += group->fdinfo.data.cycles; 3050 pfile->stats.time += group->fdinfo.data.time; 3051 group->fdinfo.data.cycles = 0; 3052 group->fdinfo.data.time = 0; 3053 } 3054 xa_unlock(&gpool->xa); 3055 } 3056 3057 static bool queue_check_job_completion(struct panthor_queue *queue) 3058 { 3059 struct panthor_syncobj_64b *syncobj = NULL; 3060 struct panthor_job *job, *job_tmp; 3061 bool cookie, progress = false; 3062 LIST_HEAD(done_jobs); 3063 3064 cookie = dma_fence_begin_signalling(); 3065 scoped_guard(spinlock_irqsave, &queue->fence_ctx.lock) { 3066 list_for_each_entry_safe(job, job_tmp, &queue->fence_ctx.in_flight_jobs, node) { 3067 if (!syncobj) { 3068 struct panthor_group *group = job->group; 3069 3070 syncobj = group->syncobjs->kmap + 3071 (job->queue_idx * sizeof(*syncobj)); 3072 } 3073 3074 if (syncobj->seqno < job->done_fence->seqno) 3075 break; 3076 3077 list_move_tail(&job->node, &done_jobs); 3078 dma_fence_signal_locked(job->done_fence); 3079 } 3080 3081 if (list_empty(&queue->fence_ctx.in_flight_jobs)) { 3082 /* If we have no job left, we cancel the timer, and reset remaining 3083 * time to its default so it can be restarted next time 3084 * queue_resume_timeout() is called. 3085 */ 3086 queue_suspend_timeout_locked(queue); 3087 3088 /* If there's no job pending, we consider it progress to avoid a 3089 * spurious timeout if the timeout handler and the sync update 3090 * handler raced. 3091 */ 3092 progress = true; 3093 } else if (!list_empty(&done_jobs)) { 3094 queue_reset_timeout_locked(queue); 3095 progress = true; 3096 } 3097 } 3098 dma_fence_end_signalling(cookie); 3099 3100 list_for_each_entry_safe(job, job_tmp, &done_jobs, node) { 3101 if (job->profiling.mask) 3102 update_fdinfo_stats(job); 3103 list_del_init(&job->node); 3104 panthor_job_put(&job->base); 3105 } 3106 3107 return progress; 3108 } 3109 3110 static void group_sync_upd_work(struct work_struct *work) 3111 { 3112 struct panthor_group *group = 3113 container_of(work, struct panthor_group, sync_upd_work); 3114 u32 queue_idx; 3115 bool cookie; 3116 3117 cookie = dma_fence_begin_signalling(); 3118 for (queue_idx = 0; queue_idx < group->queue_count; queue_idx++) { 3119 struct panthor_queue *queue = group->queues[queue_idx]; 3120 3121 if (!queue) 3122 continue; 3123 3124 queue_check_job_completion(queue); 3125 } 3126 dma_fence_end_signalling(cookie); 3127 3128 group_put(group); 3129 } 3130 3131 struct panthor_job_ringbuf_instrs { 3132 u64 buffer[MAX_INSTRS_PER_JOB]; 3133 u32 count; 3134 }; 3135 3136 struct panthor_job_instr { 3137 u32 profile_mask; 3138 u64 instr; 3139 }; 3140 3141 #define JOB_INSTR(__prof, __instr) \ 3142 { \ 3143 .profile_mask = __prof, \ 3144 .instr = __instr, \ 3145 } 3146 3147 static void 3148 copy_instrs_to_ringbuf(struct panthor_queue *queue, 3149 struct panthor_job *job, 3150 struct panthor_job_ringbuf_instrs *instrs) 3151 { 3152 u64 ringbuf_size = panthor_kernel_bo_size(queue->ringbuf); 3153 u64 start = job->ringbuf.start & (ringbuf_size - 1); 3154 u64 size, written; 3155 3156 /* 3157 * We need to write a whole slot, including any trailing zeroes 3158 * that may come at the end of it. Also, because instrs.buffer has 3159 * been zero-initialised, there's no need to pad it with 0's 3160 */ 3161 instrs->count = ALIGN(instrs->count, NUM_INSTRS_PER_CACHE_LINE); 3162 size = instrs->count * sizeof(u64); 3163 WARN_ON(size > ringbuf_size); 3164 written = min(ringbuf_size - start, size); 3165 3166 memcpy(queue->ringbuf->kmap + start, instrs->buffer, written); 3167 3168 if (written < size) 3169 memcpy(queue->ringbuf->kmap, 3170 &instrs->buffer[written / sizeof(u64)], 3171 size - written); 3172 } 3173 3174 struct panthor_job_cs_params { 3175 u32 profile_mask; 3176 u64 addr_reg; u64 val_reg; 3177 u64 cycle_reg; u64 time_reg; 3178 u64 sync_addr; u64 times_addr; 3179 u64 cs_start; u64 cs_size; 3180 u32 last_flush; u32 waitall_mask; 3181 }; 3182 3183 static void 3184 get_job_cs_params(struct panthor_job *job, struct panthor_job_cs_params *params) 3185 { 3186 struct panthor_group *group = job->group; 3187 struct panthor_queue *queue = group->queues[job->queue_idx]; 3188 struct panthor_device *ptdev = group->ptdev; 3189 struct panthor_scheduler *sched = ptdev->scheduler; 3190 3191 params->addr_reg = ptdev->csif_info.cs_reg_count - 3192 ptdev->csif_info.unpreserved_cs_reg_count; 3193 params->val_reg = params->addr_reg + 2; 3194 params->cycle_reg = params->addr_reg; 3195 params->time_reg = params->val_reg; 3196 3197 params->sync_addr = panthor_kernel_bo_gpuva(group->syncobjs) + 3198 job->queue_idx * sizeof(struct panthor_syncobj_64b); 3199 params->times_addr = panthor_kernel_bo_gpuva(queue->profiling.slots) + 3200 (job->profiling.slot * sizeof(struct panthor_job_profiling_data)); 3201 params->waitall_mask = GENMASK(sched->sb_slot_count - 1, 0); 3202 3203 params->cs_start = job->call_info.start; 3204 params->cs_size = job->call_info.size; 3205 params->last_flush = job->call_info.latest_flush; 3206 3207 params->profile_mask = job->profiling.mask; 3208 } 3209 3210 #define JOB_INSTR_ALWAYS(instr) \ 3211 JOB_INSTR(PANTHOR_DEVICE_PROFILING_DISABLED, (instr)) 3212 #define JOB_INSTR_TIMESTAMP(instr) \ 3213 JOB_INSTR(PANTHOR_DEVICE_PROFILING_TIMESTAMP, (instr)) 3214 #define JOB_INSTR_CYCLES(instr) \ 3215 JOB_INSTR(PANTHOR_DEVICE_PROFILING_CYCLES, (instr)) 3216 3217 static void 3218 prepare_job_instrs(const struct panthor_job_cs_params *params, 3219 struct panthor_job_ringbuf_instrs *instrs) 3220 { 3221 const struct panthor_job_instr instr_seq[] = { 3222 /* MOV32 rX+2, cs.latest_flush */ 3223 JOB_INSTR_ALWAYS((2ull << 56) | (params->val_reg << 48) | params->last_flush), 3224 /* FLUSH_CACHE2.clean_inv_all.no_wait.signal(0) rX+2 */ 3225 JOB_INSTR_ALWAYS((36ull << 56) | (0ull << 48) | (params->val_reg << 40) | 3226 (0 << 16) | 0x233), 3227 /* MOV48 rX:rX+1, cycles_offset */ 3228 JOB_INSTR_CYCLES((1ull << 56) | (params->cycle_reg << 48) | 3229 (params->times_addr + 3230 offsetof(struct panthor_job_profiling_data, cycles.before))), 3231 /* STORE_STATE cycles */ 3232 JOB_INSTR_CYCLES((40ull << 56) | (params->cycle_reg << 40) | (1ll << 32)), 3233 /* MOV48 rX:rX+1, time_offset */ 3234 JOB_INSTR_TIMESTAMP((1ull << 56) | (params->time_reg << 48) | 3235 (params->times_addr + 3236 offsetof(struct panthor_job_profiling_data, time.before))), 3237 /* STORE_STATE timer */ 3238 JOB_INSTR_TIMESTAMP((40ull << 56) | (params->time_reg << 40) | (0ll << 32)), 3239 /* MOV48 rX:rX+1, cs.start */ 3240 JOB_INSTR_ALWAYS((1ull << 56) | (params->addr_reg << 48) | params->cs_start), 3241 /* MOV32 rX+2, cs.size */ 3242 JOB_INSTR_ALWAYS((2ull << 56) | (params->val_reg << 48) | params->cs_size), 3243 /* WAIT(0) => waits for FLUSH_CACHE2 instruction */ 3244 JOB_INSTR_ALWAYS((3ull << 56) | (1 << 16)), 3245 /* CALL rX:rX+1, rX+2 */ 3246 JOB_INSTR_ALWAYS((32ull << 56) | (params->addr_reg << 40) | 3247 (params->val_reg << 32)), 3248 /* MOV48 rX:rX+1, cycles_offset */ 3249 JOB_INSTR_CYCLES((1ull << 56) | (params->cycle_reg << 48) | 3250 (params->times_addr + 3251 offsetof(struct panthor_job_profiling_data, cycles.after))), 3252 /* STORE_STATE cycles */ 3253 JOB_INSTR_CYCLES((40ull << 56) | (params->cycle_reg << 40) | (1ll << 32)), 3254 /* MOV48 rX:rX+1, time_offset */ 3255 JOB_INSTR_TIMESTAMP((1ull << 56) | (params->time_reg << 48) | 3256 (params->times_addr + 3257 offsetof(struct panthor_job_profiling_data, time.after))), 3258 /* STORE_STATE timer */ 3259 JOB_INSTR_TIMESTAMP((40ull << 56) | (params->time_reg << 40) | (0ll << 32)), 3260 /* MOV48 rX:rX+1, sync_addr */ 3261 JOB_INSTR_ALWAYS((1ull << 56) | (params->addr_reg << 48) | params->sync_addr), 3262 /* MOV48 rX+2, #1 */ 3263 JOB_INSTR_ALWAYS((1ull << 56) | (params->val_reg << 48) | 1), 3264 /* WAIT(all) */ 3265 JOB_INSTR_ALWAYS((3ull << 56) | (params->waitall_mask << 16)), 3266 /* SYNC_ADD64.system_scope.propage_err.nowait rX:rX+1, rX+2*/ 3267 JOB_INSTR_ALWAYS((51ull << 56) | (0ull << 48) | (params->addr_reg << 40) | 3268 (params->val_reg << 32) | (0 << 16) | 1), 3269 /* ERROR_BARRIER, so we can recover from faults at job boundaries. */ 3270 JOB_INSTR_ALWAYS((47ull << 56)), 3271 }; 3272 u32 pad; 3273 3274 instrs->count = 0; 3275 3276 /* NEED to be cacheline aligned to please the prefetcher. */ 3277 static_assert(sizeof(instrs->buffer) % 64 == 0, 3278 "panthor_job_ringbuf_instrs::buffer is not aligned on a cacheline"); 3279 3280 /* Make sure we have enough storage to store the whole sequence. */ 3281 static_assert(ALIGN(ARRAY_SIZE(instr_seq), NUM_INSTRS_PER_CACHE_LINE) == 3282 ARRAY_SIZE(instrs->buffer), 3283 "instr_seq vs panthor_job_ringbuf_instrs::buffer size mismatch"); 3284 3285 for (u32 i = 0; i < ARRAY_SIZE(instr_seq); i++) { 3286 /* If the profile mask of this instruction is not enabled, skip it. */ 3287 if (instr_seq[i].profile_mask && 3288 !(instr_seq[i].profile_mask & params->profile_mask)) 3289 continue; 3290 3291 instrs->buffer[instrs->count++] = instr_seq[i].instr; 3292 } 3293 3294 pad = ALIGN(instrs->count, NUM_INSTRS_PER_CACHE_LINE); 3295 memset(&instrs->buffer[instrs->count], 0, 3296 (pad - instrs->count) * sizeof(instrs->buffer[0])); 3297 instrs->count = pad; 3298 } 3299 3300 static u32 calc_job_credits(u32 profile_mask) 3301 { 3302 struct panthor_job_ringbuf_instrs instrs; 3303 struct panthor_job_cs_params params = { 3304 .profile_mask = profile_mask, 3305 }; 3306 3307 prepare_job_instrs(¶ms, &instrs); 3308 return instrs.count; 3309 } 3310 3311 static struct dma_fence * 3312 queue_run_job(struct drm_sched_job *sched_job) 3313 { 3314 struct panthor_job *job = container_of(sched_job, struct panthor_job, base); 3315 struct panthor_group *group = job->group; 3316 struct panthor_queue *queue = group->queues[job->queue_idx]; 3317 struct panthor_device *ptdev = group->ptdev; 3318 struct panthor_scheduler *sched = ptdev->scheduler; 3319 struct panthor_job_ringbuf_instrs instrs; 3320 struct panthor_job_cs_params cs_params; 3321 struct dma_fence *done_fence; 3322 int ret; 3323 3324 /* Stream size is zero, nothing to do except making sure all previously 3325 * submitted jobs are done before we signal the 3326 * drm_sched_job::s_fence::finished fence. 3327 */ 3328 if (!job->call_info.size) { 3329 job->done_fence = dma_fence_get(queue->fence_ctx.last_fence); 3330 return dma_fence_get(job->done_fence); 3331 } 3332 3333 ret = panthor_device_resume_and_get(ptdev); 3334 if (drm_WARN_ON(&ptdev->base, ret)) 3335 return ERR_PTR(ret); 3336 3337 mutex_lock(&sched->lock); 3338 if (!group_can_run(group)) { 3339 done_fence = ERR_PTR(-ECANCELED); 3340 goto out_unlock; 3341 } 3342 3343 dma_fence_init(job->done_fence, 3344 &panthor_queue_fence_ops, 3345 &queue->fence_ctx.lock, 3346 queue->fence_ctx.id, 3347 atomic64_inc_return(&queue->fence_ctx.seqno)); 3348 3349 job->profiling.slot = queue->profiling.seqno++; 3350 if (queue->profiling.seqno == queue->profiling.slot_count) 3351 queue->profiling.seqno = 0; 3352 3353 job->ringbuf.start = queue->iface.input->insert; 3354 3355 get_job_cs_params(job, &cs_params); 3356 prepare_job_instrs(&cs_params, &instrs); 3357 copy_instrs_to_ringbuf(queue, job, &instrs); 3358 3359 job->ringbuf.end = job->ringbuf.start + (instrs.count * sizeof(u64)); 3360 3361 panthor_job_get(&job->base); 3362 scoped_guard(spinlock_irqsave, &queue->fence_ctx.lock) 3363 list_add_tail(&job->node, &queue->fence_ctx.in_flight_jobs); 3364 3365 /* Make sure the ring buffer is updated before the INSERT 3366 * register. 3367 */ 3368 wmb(); 3369 3370 queue->iface.input->extract = queue->iface.output->extract; 3371 queue->iface.input->insert = job->ringbuf.end; 3372 3373 if (group->csg_id < 0) { 3374 group_schedule_locked(group, BIT(job->queue_idx)); 3375 } else { 3376 u32 queue_mask = BIT(job->queue_idx); 3377 bool resume_tick = group_is_idle(group) && 3378 (group->idle_queues & queue_mask) && 3379 !(group->blocked_queues & queue_mask) && 3380 sched->resched_target == U64_MAX; 3381 3382 /* We just added something to the queue, so it's no longer idle. */ 3383 group->idle_queues &= ~queue_mask; 3384 3385 if (resume_tick) 3386 sched_resume_tick(ptdev); 3387 3388 panthor_fw_ring_doorbell(ptdev, queue->doorbell_id); 3389 if (!sched->pm.has_ref && 3390 !(group->blocked_queues & BIT(job->queue_idx))) { 3391 pm_runtime_get(ptdev->base.dev); 3392 sched->pm.has_ref = true; 3393 } 3394 queue_resume_timeout(queue); 3395 panthor_devfreq_record_busy(sched->ptdev); 3396 } 3397 3398 /* Update the last fence. */ 3399 dma_fence_put(queue->fence_ctx.last_fence); 3400 queue->fence_ctx.last_fence = dma_fence_get(job->done_fence); 3401 3402 done_fence = dma_fence_get(job->done_fence); 3403 3404 out_unlock: 3405 mutex_unlock(&sched->lock); 3406 pm_runtime_mark_last_busy(ptdev->base.dev); 3407 pm_runtime_put_autosuspend(ptdev->base.dev); 3408 3409 return done_fence; 3410 } 3411 3412 static enum drm_gpu_sched_stat 3413 queue_timedout_job(struct drm_sched_job *sched_job) 3414 { 3415 struct panthor_job *job = container_of(sched_job, struct panthor_job, base); 3416 struct panthor_group *group = job->group; 3417 struct panthor_device *ptdev = group->ptdev; 3418 struct panthor_scheduler *sched = ptdev->scheduler; 3419 struct panthor_queue *queue = group->queues[job->queue_idx]; 3420 3421 drm_warn(&ptdev->base, "job timeout: pid=%d, comm=%s, seqno=%llu\n", 3422 group->task_info.pid, group->task_info.comm, job->done_fence->seqno); 3423 3424 drm_WARN_ON(&ptdev->base, atomic_read(&sched->reset.in_progress)); 3425 3426 queue_stop(queue, job); 3427 3428 mutex_lock(&sched->lock); 3429 group->timedout = true; 3430 if (group->csg_id >= 0) { 3431 sched_queue_delayed_work(ptdev->scheduler, tick, 0); 3432 } else { 3433 /* Remove from the run queues, so the scheduler can't 3434 * pick the group on the next tick. 3435 */ 3436 list_del_init(&group->run_node); 3437 list_del_init(&group->wait_node); 3438 3439 group_queue_work(group, term); 3440 } 3441 mutex_unlock(&sched->lock); 3442 3443 queue_start(queue); 3444 return DRM_GPU_SCHED_STAT_RESET; 3445 } 3446 3447 static void queue_free_job(struct drm_sched_job *sched_job) 3448 { 3449 panthor_job_put(sched_job); 3450 } 3451 3452 static const struct drm_sched_backend_ops panthor_queue_sched_ops = { 3453 .run_job = queue_run_job, 3454 .timedout_job = queue_timedout_job, 3455 .free_job = queue_free_job, 3456 }; 3457 3458 static u32 calc_profiling_ringbuf_num_slots(struct panthor_device *ptdev, 3459 u32 cs_ringbuf_size) 3460 { 3461 u32 min_profiled_job_instrs = U32_MAX; 3462 u32 last_flag = fls(PANTHOR_DEVICE_PROFILING_ALL); 3463 3464 /* 3465 * We want to calculate the minimum size of a profiled job's CS, 3466 * because since they need additional instructions for the sampling 3467 * of performance metrics, they might take up further slots in 3468 * the queue's ringbuffer. This means we might not need as many job 3469 * slots for keeping track of their profiling information. What we 3470 * need is the maximum number of slots we should allocate to this end, 3471 * which matches the maximum number of profiled jobs we can place 3472 * simultaneously in the queue's ring buffer. 3473 * That has to be calculated separately for every single job profiling 3474 * flag, but not in the case job profiling is disabled, since unprofiled 3475 * jobs don't need to keep track of this at all. 3476 */ 3477 for (u32 i = 0; i < last_flag; i++) { 3478 min_profiled_job_instrs = 3479 min(min_profiled_job_instrs, calc_job_credits(BIT(i))); 3480 } 3481 3482 return DIV_ROUND_UP(cs_ringbuf_size, min_profiled_job_instrs * sizeof(u64)); 3483 } 3484 3485 static void queue_timeout_work(struct work_struct *work) 3486 { 3487 struct panthor_queue *queue = container_of(work, struct panthor_queue, 3488 timeout.work.work); 3489 bool progress; 3490 3491 progress = queue_check_job_completion(queue); 3492 if (!progress) 3493 drm_sched_fault(&queue->scheduler); 3494 } 3495 3496 static struct panthor_queue * 3497 group_create_queue(struct panthor_group *group, 3498 const struct drm_panthor_queue_create *args, 3499 u64 drm_client_id, u32 gid, u32 qid) 3500 { 3501 struct drm_sched_init_args sched_args = { 3502 .ops = &panthor_queue_sched_ops, 3503 .submit_wq = group->ptdev->scheduler->wq, 3504 .num_rqs = 1, 3505 /* 3506 * The credit limit argument tells us the total number of 3507 * instructions across all CS slots in the ringbuffer, with 3508 * some jobs requiring twice as many as others, depending on 3509 * their profiling status. 3510 */ 3511 .credit_limit = args->ringbuf_size / sizeof(u64), 3512 .timeout = MAX_SCHEDULE_TIMEOUT, 3513 .timeout_wq = group->ptdev->reset.wq, 3514 .dev = group->ptdev->base.dev, 3515 }; 3516 struct drm_gpu_scheduler *drm_sched; 3517 struct panthor_queue *queue; 3518 int ret; 3519 3520 if (args->pad[0] || args->pad[1] || args->pad[2]) 3521 return ERR_PTR(-EINVAL); 3522 3523 if (args->ringbuf_size < SZ_4K || args->ringbuf_size > SZ_64K || 3524 !is_power_of_2(args->ringbuf_size)) 3525 return ERR_PTR(-EINVAL); 3526 3527 if (args->priority > CSF_MAX_QUEUE_PRIO) 3528 return ERR_PTR(-EINVAL); 3529 3530 queue = kzalloc_obj(*queue); 3531 if (!queue) 3532 return ERR_PTR(-ENOMEM); 3533 3534 queue->timeout.remaining = msecs_to_jiffies(JOB_TIMEOUT_MS); 3535 INIT_DELAYED_WORK(&queue->timeout.work, queue_timeout_work); 3536 queue->fence_ctx.id = dma_fence_context_alloc(1); 3537 spin_lock_init(&queue->fence_ctx.lock); 3538 INIT_LIST_HEAD(&queue->fence_ctx.in_flight_jobs); 3539 3540 queue->priority = args->priority; 3541 3542 queue->ringbuf = panthor_kernel_bo_create(group->ptdev, group->vm, 3543 args->ringbuf_size, 3544 DRM_PANTHOR_BO_NO_MMAP, 3545 DRM_PANTHOR_VM_BIND_OP_MAP_NOEXEC | 3546 DRM_PANTHOR_VM_BIND_OP_MAP_UNCACHED, 3547 PANTHOR_VM_KERNEL_AUTO_VA, 3548 "CS ring buffer"); 3549 if (IS_ERR(queue->ringbuf)) { 3550 ret = PTR_ERR(queue->ringbuf); 3551 goto err_free_queue; 3552 } 3553 3554 ret = panthor_kernel_bo_vmap(queue->ringbuf); 3555 if (ret) 3556 goto err_free_queue; 3557 3558 queue->iface.mem = panthor_fw_alloc_queue_iface_mem(group->ptdev, 3559 &queue->iface.input, 3560 &queue->iface.output, 3561 &queue->iface.input_fw_va, 3562 &queue->iface.output_fw_va); 3563 if (IS_ERR(queue->iface.mem)) { 3564 ret = PTR_ERR(queue->iface.mem); 3565 goto err_free_queue; 3566 } 3567 3568 queue->profiling.slot_count = 3569 calc_profiling_ringbuf_num_slots(group->ptdev, args->ringbuf_size); 3570 3571 queue->profiling.slots = 3572 panthor_kernel_bo_create(group->ptdev, group->vm, 3573 queue->profiling.slot_count * 3574 sizeof(struct panthor_job_profiling_data), 3575 DRM_PANTHOR_BO_NO_MMAP, 3576 DRM_PANTHOR_VM_BIND_OP_MAP_NOEXEC | 3577 DRM_PANTHOR_VM_BIND_OP_MAP_UNCACHED, 3578 PANTHOR_VM_KERNEL_AUTO_VA, 3579 "Group job stats"); 3580 3581 if (IS_ERR(queue->profiling.slots)) { 3582 ret = PTR_ERR(queue->profiling.slots); 3583 goto err_free_queue; 3584 } 3585 3586 ret = panthor_kernel_bo_vmap(queue->profiling.slots); 3587 if (ret) 3588 goto err_free_queue; 3589 3590 /* assign a unique name */ 3591 queue->name = kasprintf(GFP_KERNEL, "panthor-queue-%llu-%u-%u", drm_client_id, gid, qid); 3592 if (!queue->name) { 3593 ret = -ENOMEM; 3594 goto err_free_queue; 3595 } 3596 3597 sched_args.name = queue->name; 3598 3599 ret = drm_sched_init(&queue->scheduler, &sched_args); 3600 if (ret) 3601 goto err_free_queue; 3602 3603 drm_sched = &queue->scheduler; 3604 ret = drm_sched_entity_init(&queue->entity, 0, &drm_sched, 1, NULL); 3605 if (ret) 3606 goto err_free_queue; 3607 3608 return queue; 3609 3610 err_free_queue: 3611 group_free_queue(group, queue); 3612 return ERR_PTR(ret); 3613 } 3614 3615 static void group_init_task_info(struct panthor_group *group) 3616 { 3617 struct task_struct *task = current->group_leader; 3618 3619 group->task_info.pid = task->pid; 3620 get_task_comm(group->task_info.comm, task); 3621 } 3622 3623 static void add_group_kbo_sizes(struct panthor_device *ptdev, 3624 struct panthor_group *group) 3625 { 3626 struct panthor_queue *queue; 3627 int i; 3628 3629 if (drm_WARN_ON(&ptdev->base, IS_ERR_OR_NULL(group))) 3630 return; 3631 if (drm_WARN_ON(&ptdev->base, ptdev != group->ptdev)) 3632 return; 3633 3634 group->fdinfo.kbo_sizes += group->suspend_buf->obj->size; 3635 group->fdinfo.kbo_sizes += group->protm_suspend_buf->obj->size; 3636 group->fdinfo.kbo_sizes += group->syncobjs->obj->size; 3637 3638 for (i = 0; i < group->queue_count; i++) { 3639 queue = group->queues[i]; 3640 group->fdinfo.kbo_sizes += queue->ringbuf->obj->size; 3641 group->fdinfo.kbo_sizes += queue->iface.mem->obj->size; 3642 group->fdinfo.kbo_sizes += queue->profiling.slots->obj->size; 3643 } 3644 } 3645 3646 #define MAX_GROUPS_PER_POOL 128 3647 3648 int panthor_group_create(struct panthor_file *pfile, 3649 const struct drm_panthor_group_create *group_args, 3650 const struct drm_panthor_queue_create *queue_args, 3651 u64 drm_client_id) 3652 { 3653 struct panthor_device *ptdev = pfile->ptdev; 3654 struct panthor_group_pool *gpool = pfile->groups; 3655 struct panthor_scheduler *sched = ptdev->scheduler; 3656 struct panthor_fw_csg_iface *csg_iface = panthor_fw_get_csg_iface(ptdev, 0); 3657 struct panthor_group *group = NULL; 3658 u32 gid, i, suspend_size; 3659 int ret; 3660 3661 if (group_args->pad) 3662 return -EINVAL; 3663 3664 if (group_args->priority >= PANTHOR_CSG_PRIORITY_COUNT) 3665 return -EINVAL; 3666 3667 if ((group_args->compute_core_mask & ~ptdev->gpu_info.shader_present) || 3668 (group_args->fragment_core_mask & ~ptdev->gpu_info.shader_present) || 3669 (group_args->tiler_core_mask & ~ptdev->gpu_info.tiler_present)) 3670 return -EINVAL; 3671 3672 if (hweight64(group_args->compute_core_mask) < group_args->max_compute_cores || 3673 hweight64(group_args->fragment_core_mask) < group_args->max_fragment_cores || 3674 hweight64(group_args->tiler_core_mask) < group_args->max_tiler_cores) 3675 return -EINVAL; 3676 3677 group = kzalloc_obj(*group); 3678 if (!group) 3679 return -ENOMEM; 3680 3681 spin_lock_init(&group->fatal_lock); 3682 kref_init(&group->refcount); 3683 group->state = PANTHOR_CS_GROUP_CREATED; 3684 group->csg_id = -1; 3685 3686 group->ptdev = ptdev; 3687 group->max_compute_cores = group_args->max_compute_cores; 3688 group->compute_core_mask = group_args->compute_core_mask; 3689 group->max_fragment_cores = group_args->max_fragment_cores; 3690 group->fragment_core_mask = group_args->fragment_core_mask; 3691 group->max_tiler_cores = group_args->max_tiler_cores; 3692 group->tiler_core_mask = group_args->tiler_core_mask; 3693 group->priority = group_args->priority; 3694 3695 INIT_LIST_HEAD(&group->wait_node); 3696 INIT_LIST_HEAD(&group->run_node); 3697 INIT_WORK(&group->term_work, group_term_work); 3698 INIT_WORK(&group->sync_upd_work, group_sync_upd_work); 3699 INIT_WORK(&group->tiler_oom_work, group_tiler_oom_work); 3700 INIT_WORK(&group->release_work, group_release_work); 3701 3702 group->vm = panthor_vm_pool_get_vm(pfile->vms, group_args->vm_id); 3703 if (!group->vm) { 3704 ret = -EINVAL; 3705 goto err_put_group; 3706 } 3707 3708 suspend_size = csg_iface->control->suspend_size; 3709 group->suspend_buf = panthor_fw_alloc_suspend_buf_mem(ptdev, suspend_size); 3710 if (IS_ERR(group->suspend_buf)) { 3711 ret = PTR_ERR(group->suspend_buf); 3712 group->suspend_buf = NULL; 3713 goto err_put_group; 3714 } 3715 3716 suspend_size = csg_iface->control->protm_suspend_size; 3717 group->protm_suspend_buf = panthor_fw_alloc_suspend_buf_mem(ptdev, suspend_size); 3718 if (IS_ERR(group->protm_suspend_buf)) { 3719 ret = PTR_ERR(group->protm_suspend_buf); 3720 group->protm_suspend_buf = NULL; 3721 goto err_put_group; 3722 } 3723 3724 group->syncobjs = panthor_kernel_bo_create(ptdev, group->vm, 3725 group_args->queues.count * 3726 sizeof(struct panthor_syncobj_64b), 3727 DRM_PANTHOR_BO_NO_MMAP, 3728 DRM_PANTHOR_VM_BIND_OP_MAP_NOEXEC | 3729 DRM_PANTHOR_VM_BIND_OP_MAP_UNCACHED, 3730 PANTHOR_VM_KERNEL_AUTO_VA, 3731 "Group sync objects"); 3732 if (IS_ERR(group->syncobjs)) { 3733 ret = PTR_ERR(group->syncobjs); 3734 goto err_put_group; 3735 } 3736 3737 ret = panthor_kernel_bo_vmap(group->syncobjs); 3738 if (ret) 3739 goto err_put_group; 3740 3741 memset(group->syncobjs->kmap, 0, 3742 group_args->queues.count * sizeof(struct panthor_syncobj_64b)); 3743 3744 ret = xa_alloc(&gpool->xa, &gid, group, XA_LIMIT(1, MAX_GROUPS_PER_POOL), GFP_KERNEL); 3745 if (ret) 3746 goto err_put_group; 3747 3748 for (i = 0; i < group_args->queues.count; i++) { 3749 group->queues[i] = group_create_queue(group, &queue_args[i], drm_client_id, gid, i); 3750 if (IS_ERR(group->queues[i])) { 3751 ret = PTR_ERR(group->queues[i]); 3752 group->queues[i] = NULL; 3753 goto err_erase_gid; 3754 } 3755 3756 group->queue_count++; 3757 } 3758 3759 group->idle_queues = GENMASK(group->queue_count - 1, 0); 3760 3761 mutex_lock(&sched->reset.lock); 3762 if (atomic_read(&sched->reset.in_progress)) { 3763 panthor_group_stop(group); 3764 } else { 3765 mutex_lock(&sched->lock); 3766 list_add_tail(&group->run_node, 3767 &sched->groups.idle[group->priority]); 3768 mutex_unlock(&sched->lock); 3769 } 3770 mutex_unlock(&sched->reset.lock); 3771 3772 add_group_kbo_sizes(group->ptdev, group); 3773 spin_lock_init(&group->fdinfo.lock); 3774 3775 group_init_task_info(group); 3776 3777 xa_set_mark(&gpool->xa, gid, GROUP_REGISTERED); 3778 3779 return gid; 3780 3781 err_erase_gid: 3782 xa_erase(&gpool->xa, gid); 3783 3784 err_put_group: 3785 group_put(group); 3786 return ret; 3787 } 3788 3789 int panthor_group_destroy(struct panthor_file *pfile, u32 group_handle) 3790 { 3791 struct panthor_group_pool *gpool = pfile->groups; 3792 struct panthor_device *ptdev = pfile->ptdev; 3793 struct panthor_scheduler *sched = ptdev->scheduler; 3794 struct panthor_group *group; 3795 3796 if (!xa_get_mark(&gpool->xa, group_handle, GROUP_REGISTERED)) 3797 return -EINVAL; 3798 3799 group = xa_erase(&gpool->xa, group_handle); 3800 if (!group) 3801 return -EINVAL; 3802 3803 mutex_lock(&sched->reset.lock); 3804 mutex_lock(&sched->lock); 3805 group->destroyed = true; 3806 if (group->csg_id >= 0) { 3807 sched_queue_delayed_work(sched, tick, 0); 3808 } else if (!atomic_read(&sched->reset.in_progress)) { 3809 /* Remove from the run queues, so the scheduler can't 3810 * pick the group on the next tick. 3811 */ 3812 list_del_init(&group->run_node); 3813 list_del_init(&group->wait_node); 3814 group_queue_work(group, term); 3815 } 3816 mutex_unlock(&sched->lock); 3817 mutex_unlock(&sched->reset.lock); 3818 3819 group_put(group); 3820 return 0; 3821 } 3822 3823 static struct panthor_group *group_from_handle(struct panthor_group_pool *pool, 3824 unsigned long group_handle) 3825 { 3826 struct panthor_group *group; 3827 3828 xa_lock(&pool->xa); 3829 group = group_get(xa_find(&pool->xa, &group_handle, group_handle, GROUP_REGISTERED)); 3830 xa_unlock(&pool->xa); 3831 3832 return group; 3833 } 3834 3835 int panthor_group_get_state(struct panthor_file *pfile, 3836 struct drm_panthor_group_get_state *get_state) 3837 { 3838 struct panthor_group_pool *gpool = pfile->groups; 3839 struct panthor_device *ptdev = pfile->ptdev; 3840 struct panthor_scheduler *sched = ptdev->scheduler; 3841 struct panthor_group *group; 3842 3843 if (get_state->pad) 3844 return -EINVAL; 3845 3846 group = group_from_handle(gpool, get_state->group_handle); 3847 if (!group) 3848 return -EINVAL; 3849 3850 memset(get_state, 0, sizeof(*get_state)); 3851 3852 mutex_lock(&sched->lock); 3853 if (group->timedout) 3854 get_state->state |= DRM_PANTHOR_GROUP_STATE_TIMEDOUT; 3855 if (group->fatal_queues) { 3856 get_state->state |= DRM_PANTHOR_GROUP_STATE_FATAL_FAULT; 3857 get_state->fatal_queues = group->fatal_queues; 3858 } 3859 if (group->innocent) 3860 get_state->state |= DRM_PANTHOR_GROUP_STATE_INNOCENT; 3861 mutex_unlock(&sched->lock); 3862 3863 group_put(group); 3864 return 0; 3865 } 3866 3867 int panthor_group_pool_create(struct panthor_file *pfile) 3868 { 3869 struct panthor_group_pool *gpool; 3870 3871 gpool = kzalloc_obj(*gpool); 3872 if (!gpool) 3873 return -ENOMEM; 3874 3875 xa_init_flags(&gpool->xa, XA_FLAGS_ALLOC1); 3876 pfile->groups = gpool; 3877 return 0; 3878 } 3879 3880 void panthor_group_pool_destroy(struct panthor_file *pfile) 3881 { 3882 struct panthor_group_pool *gpool = pfile->groups; 3883 struct panthor_group *group; 3884 unsigned long i; 3885 3886 if (IS_ERR_OR_NULL(gpool)) 3887 return; 3888 3889 xa_for_each(&gpool->xa, i, group) 3890 panthor_group_destroy(pfile, i); 3891 3892 xa_destroy(&gpool->xa); 3893 kfree(gpool); 3894 pfile->groups = NULL; 3895 } 3896 3897 /** 3898 * panthor_fdinfo_gather_group_mem_info() - Retrieve aggregate size of all private kernel BO's 3899 * belonging to all the groups owned by an open Panthor file 3900 * @pfile: File. 3901 * @stats: Memory statistics to be updated. 3902 * 3903 */ 3904 void 3905 panthor_fdinfo_gather_group_mem_info(struct panthor_file *pfile, 3906 struct drm_memory_stats *stats) 3907 { 3908 struct panthor_group_pool *gpool = pfile->groups; 3909 struct panthor_group *group; 3910 unsigned long i; 3911 3912 if (IS_ERR_OR_NULL(gpool)) 3913 return; 3914 3915 xa_lock(&gpool->xa); 3916 xa_for_each_marked(&gpool->xa, i, group, GROUP_REGISTERED) { 3917 stats->resident += group->fdinfo.kbo_sizes; 3918 if (group->csg_id >= 0) 3919 stats->active += group->fdinfo.kbo_sizes; 3920 } 3921 xa_unlock(&gpool->xa); 3922 } 3923 3924 static void job_release(struct kref *ref) 3925 { 3926 struct panthor_job *job = container_of(ref, struct panthor_job, refcount); 3927 3928 drm_WARN_ON(&job->group->ptdev->base, !list_empty(&job->node)); 3929 3930 if (job->base.s_fence) 3931 drm_sched_job_cleanup(&job->base); 3932 3933 if (dma_fence_was_initialized(job->done_fence)) 3934 dma_fence_put(job->done_fence); 3935 else 3936 dma_fence_free(job->done_fence); 3937 3938 group_put(job->group); 3939 3940 kfree(job); 3941 } 3942 3943 struct drm_sched_job *panthor_job_get(struct drm_sched_job *sched_job) 3944 { 3945 if (sched_job) { 3946 struct panthor_job *job = container_of(sched_job, struct panthor_job, base); 3947 3948 kref_get(&job->refcount); 3949 } 3950 3951 return sched_job; 3952 } 3953 3954 void panthor_job_put(struct drm_sched_job *sched_job) 3955 { 3956 struct panthor_job *job = container_of(sched_job, struct panthor_job, base); 3957 3958 if (sched_job) 3959 kref_put(&job->refcount, job_release); 3960 } 3961 3962 struct panthor_vm *panthor_job_vm(struct drm_sched_job *sched_job) 3963 { 3964 struct panthor_job *job = container_of(sched_job, struct panthor_job, base); 3965 3966 return job->group->vm; 3967 } 3968 3969 struct drm_sched_job * 3970 panthor_job_create(struct panthor_file *pfile, 3971 u16 group_handle, 3972 const struct drm_panthor_queue_submit *qsubmit, 3973 u64 drm_client_id) 3974 { 3975 struct panthor_group_pool *gpool = pfile->groups; 3976 struct panthor_job *job; 3977 u32 credits; 3978 int ret; 3979 3980 if (qsubmit->pad) 3981 return ERR_PTR(-EINVAL); 3982 3983 /* If stream_addr is zero, so stream_size should be. */ 3984 if ((qsubmit->stream_size == 0) != (qsubmit->stream_addr == 0)) 3985 return ERR_PTR(-EINVAL); 3986 3987 /* Make sure the address is aligned on 64-byte (cacheline) and the size is 3988 * aligned on 8-byte (instruction size). 3989 */ 3990 if ((qsubmit->stream_addr & 63) || (qsubmit->stream_size & 7)) 3991 return ERR_PTR(-EINVAL); 3992 3993 /* bits 24:30 must be zero. */ 3994 if (qsubmit->latest_flush & GENMASK(30, 24)) 3995 return ERR_PTR(-EINVAL); 3996 3997 job = kzalloc_obj(*job); 3998 if (!job) 3999 return ERR_PTR(-ENOMEM); 4000 4001 kref_init(&job->refcount); 4002 job->queue_idx = qsubmit->queue_index; 4003 job->call_info.size = qsubmit->stream_size; 4004 job->call_info.start = qsubmit->stream_addr; 4005 job->call_info.latest_flush = qsubmit->latest_flush; 4006 INIT_LIST_HEAD(&job->node); 4007 4008 job->group = group_from_handle(gpool, group_handle); 4009 if (!job->group) { 4010 ret = -EINVAL; 4011 goto err_put_job; 4012 } 4013 4014 if (!group_can_run(job->group)) { 4015 ret = -EINVAL; 4016 goto err_put_job; 4017 } 4018 4019 if (job->queue_idx >= job->group->queue_count || 4020 !job->group->queues[job->queue_idx]) { 4021 ret = -EINVAL; 4022 goto err_put_job; 4023 } 4024 4025 /* Empty command streams don't need a fence, they'll pick the one from 4026 * the previously submitted job. 4027 */ 4028 if (job->call_info.size) { 4029 job->done_fence = kzalloc_obj(*job->done_fence); 4030 if (!job->done_fence) { 4031 ret = -ENOMEM; 4032 goto err_put_job; 4033 } 4034 } 4035 4036 job->profiling.mask = pfile->ptdev->profile_mask; 4037 credits = calc_job_credits(job->profiling.mask); 4038 if (credits == 0) { 4039 ret = -EINVAL; 4040 goto err_put_job; 4041 } 4042 4043 ret = drm_sched_job_init(&job->base, 4044 &job->group->queues[job->queue_idx]->entity, 4045 credits, job->group, drm_client_id); 4046 if (ret) 4047 goto err_put_job; 4048 4049 return &job->base; 4050 4051 err_put_job: 4052 panthor_job_put(&job->base); 4053 return ERR_PTR(ret); 4054 } 4055 4056 void panthor_job_update_resvs(struct drm_exec *exec, struct drm_sched_job *sched_job) 4057 { 4058 struct panthor_job *job = container_of(sched_job, struct panthor_job, base); 4059 4060 panthor_vm_update_resvs(job->group->vm, exec, &sched_job->s_fence->finished, 4061 DMA_RESV_USAGE_BOOKKEEP, DMA_RESV_USAGE_BOOKKEEP); 4062 } 4063 4064 void panthor_sched_unplug(struct panthor_device *ptdev) 4065 { 4066 struct panthor_scheduler *sched = ptdev->scheduler; 4067 4068 disable_delayed_work_sync(&sched->tick_work); 4069 disable_work_sync(&sched->fw_events_work); 4070 disable_work_sync(&sched->sync_upd_work); 4071 4072 mutex_lock(&sched->lock); 4073 if (sched->pm.has_ref) { 4074 pm_runtime_put(ptdev->base.dev); 4075 sched->pm.has_ref = false; 4076 } 4077 mutex_unlock(&sched->lock); 4078 } 4079 4080 static void panthor_sched_fini(struct drm_device *ddev, void *res) 4081 { 4082 struct panthor_scheduler *sched = res; 4083 int prio; 4084 4085 if (!sched || !sched->csg_slot_count) 4086 return; 4087 4088 if (sched->wq) 4089 destroy_workqueue(sched->wq); 4090 4091 if (sched->heap_alloc_wq) 4092 destroy_workqueue(sched->heap_alloc_wq); 4093 4094 for (prio = PANTHOR_CSG_PRIORITY_COUNT - 1; prio >= 0; prio--) { 4095 drm_WARN_ON(ddev, !list_empty(&sched->groups.runnable[prio])); 4096 drm_WARN_ON(ddev, !list_empty(&sched->groups.idle[prio])); 4097 } 4098 4099 drm_WARN_ON(ddev, !list_empty(&sched->groups.waiting)); 4100 } 4101 4102 int panthor_sched_init(struct panthor_device *ptdev) 4103 { 4104 struct panthor_fw_global_iface *glb_iface = panthor_fw_get_glb_iface(ptdev); 4105 struct panthor_fw_csg_iface *csg_iface = panthor_fw_get_csg_iface(ptdev, 0); 4106 struct panthor_fw_cs_iface *cs_iface = panthor_fw_get_cs_iface(ptdev, 0, 0); 4107 struct panthor_scheduler *sched; 4108 u32 gpu_as_count, num_groups; 4109 int prio, ret; 4110 4111 sched = drmm_kzalloc(&ptdev->base, sizeof(*sched), GFP_KERNEL); 4112 if (!sched) 4113 return -ENOMEM; 4114 4115 /* The highest bit in JOB_INT_* is reserved for globabl IRQs. That 4116 * leaves 31 bits for CSG IRQs, hence the MAX_CSGS clamp here. 4117 */ 4118 num_groups = min_t(u32, MAX_CSGS, glb_iface->control->group_num); 4119 4120 /* The FW-side scheduler might deadlock if two groups with the same 4121 * priority try to access a set of resources that overlaps, with part 4122 * of the resources being allocated to one group and the other part to 4123 * the other group, both groups waiting for the remaining resources to 4124 * be allocated. To avoid that, it is recommended to assign each CSG a 4125 * different priority. In theory we could allow several groups to have 4126 * the same CSG priority if they don't request the same resources, but 4127 * that makes the scheduling logic more complicated, so let's clamp 4128 * the number of CSG slots to MAX_CSG_PRIO + 1 for now. 4129 */ 4130 num_groups = min_t(u32, MAX_CSG_PRIO + 1, num_groups); 4131 4132 /* We need at least one AS for the MCU and one for the GPU contexts. */ 4133 gpu_as_count = hweight32(ptdev->gpu_info.as_present & GENMASK(31, 1)); 4134 if (!gpu_as_count) { 4135 drm_err(&ptdev->base, "Not enough AS (%d, expected at least 2)", 4136 gpu_as_count + 1); 4137 return -EINVAL; 4138 } 4139 4140 sched->ptdev = ptdev; 4141 sched->sb_slot_count = CS_FEATURES_SCOREBOARDS(cs_iface->control->features); 4142 sched->csg_slot_count = num_groups; 4143 sched->cs_slot_count = csg_iface->control->stream_num; 4144 sched->as_slot_count = gpu_as_count; 4145 ptdev->csif_info.csg_slot_count = sched->csg_slot_count; 4146 ptdev->csif_info.cs_slot_count = sched->cs_slot_count; 4147 ptdev->csif_info.scoreboard_slot_count = sched->sb_slot_count; 4148 4149 sched->last_tick = 0; 4150 sched->resched_target = U64_MAX; 4151 sched->tick_period = msecs_to_jiffies(10); 4152 INIT_DELAYED_WORK(&sched->tick_work, tick_work); 4153 INIT_WORK(&sched->sync_upd_work, sync_upd_work); 4154 INIT_WORK(&sched->fw_events_work, process_fw_events_work); 4155 4156 ret = drmm_mutex_init(&ptdev->base, &sched->lock); 4157 if (ret) 4158 return ret; 4159 4160 for (prio = PANTHOR_CSG_PRIORITY_COUNT - 1; prio >= 0; prio--) { 4161 INIT_LIST_HEAD(&sched->groups.runnable[prio]); 4162 INIT_LIST_HEAD(&sched->groups.idle[prio]); 4163 } 4164 INIT_LIST_HEAD(&sched->groups.waiting); 4165 4166 ret = drmm_mutex_init(&ptdev->base, &sched->reset.lock); 4167 if (ret) 4168 return ret; 4169 4170 INIT_LIST_HEAD(&sched->reset.stopped_groups); 4171 4172 /* sched->heap_alloc_wq will be used for heap chunk allocation on 4173 * tiler OOM events, which means we can't use the same workqueue for 4174 * the scheduler because works queued by the scheduler are in 4175 * the dma-signalling path. Allocate a dedicated heap_alloc_wq to 4176 * work around this limitation. 4177 * 4178 * FIXME: Ultimately, what we need is a failable/non-blocking GEM 4179 * allocation path that we can call when a heap OOM is reported. The 4180 * FW is smart enough to fall back on other methods if the kernel can't 4181 * allocate memory, and fail the tiling job if none of these 4182 * countermeasures worked. 4183 * 4184 * Set WQ_MEM_RECLAIM on sched->wq to unblock the situation when the 4185 * system is running out of memory. 4186 */ 4187 sched->heap_alloc_wq = alloc_workqueue("panthor-heap-alloc", WQ_UNBOUND, 0); 4188 sched->wq = alloc_workqueue("panthor-csf-sched", WQ_MEM_RECLAIM | WQ_UNBOUND, 0); 4189 if (!sched->wq || !sched->heap_alloc_wq) { 4190 panthor_sched_fini(&ptdev->base, sched); 4191 drm_err(&ptdev->base, "Failed to allocate the workqueues"); 4192 return -ENOMEM; 4193 } 4194 4195 ret = drmm_add_action_or_reset(&ptdev->base, panthor_sched_fini, sched); 4196 if (ret) 4197 return ret; 4198 4199 ptdev->scheduler = sched; 4200 return 0; 4201 } 4202