1 // SPDX-License-Identifier: GPL-2.0-or-later
3 * SN Platform GRU Driver
5 * DRIVER TABLE MANAGER + GRU CONTEXT LOAD/UNLOAD
7 * Copyright (c) 2008 Silicon Graphics, Inc. All Rights Reserved.
10 #include <linux/kernel.h>
11 #include <linux/slab.h>
13 #include <linux/spinlock.h>
14 #include <linux/sched.h>
15 #include <linux/device.h>
16 #include <linux/list.h>
17 #include <linux/err.h>
18 #include <linux/prefetch.h>
19 #include <asm/uv/uv_hub.h>
21 #include "grutables.h"
22 #include "gruhandles.h"
24 unsigned long gru_options __read_mostly
;
26 static struct device_driver gru_driver
= {
30 static struct device gru_device
= {
32 .driver
= &gru_driver
,
35 struct device
*grudev
= &gru_device
;
38 * Select a gru fault map to be used by the current cpu. Note that
39 * multiple cpus may be using the same map.
40 * ZZZ should be inline but did not work on emulator
42 int gru_cpu_fault_map_id(void)
45 return uv_blade_processor_id() % GRU_NUM_TFM
;
47 int cpu
= smp_processor_id();
50 core
= uv_cpu_core_number(cpu
);
51 id
= core
+ UV_MAX_INT_CORES
* uv_cpu_socket_number(cpu
);
56 /*--------- ASID Management -------------------------------------------
58 * Initially, assign asids sequentially from MIN_ASID .. MAX_ASID.
59 * Once MAX is reached, flush the TLB & start over. However,
60 * some asids may still be in use. There won't be many (percentage wise) still
61 * in use. Search active contexts & determine the value of the first
62 * asid in use ("x"s below). Set "limit" to this value.
63 * This defines a block of assignable asids.
65 * When "limit" is reached, search forward from limit+1 and determine the
66 * next block of assignable asids.
68 * Repeat until MAX_ASID is reached, then start over again.
70 * Each time MAX_ASID is reached, increment the asid generation. Since
71 * the search for in-use asids only checks contexts with GRUs currently
72 * assigned, asids in some contexts will be missed. Prior to loading
73 * a context, the asid generation of the GTS asid is rechecked. If it
74 * doesn't match the current generation, a new asid will be assigned.
76 * 0---------------x------------x---------------------x----|
77 * ^-next ^-limit ^-MAX_ASID
79 * All asid manipulation & context loading/unloading is protected by the
83 /* Hit the asid limit. Start over */
84 static int gru_wrap_asid(struct gru_state
*gru
)
86 gru_dbg(grudev
, "gid %d\n", gru
->gs_gid
);
92 /* Find the next chunk of unused asids */
93 static int gru_reset_asid_limit(struct gru_state
*gru
, int asid
)
95 int i
, gid
, inuse_asid
, limit
;
97 gru_dbg(grudev
, "gid %d, asid 0x%x\n", gru
->gs_gid
, asid
);
101 asid
= gru_wrap_asid(gru
);
102 gru_flush_all_tlb(gru
);
105 for (i
= 0; i
< GRU_NUM_CCH
; i
++) {
106 if (!gru
->gs_gts
[i
] || is_kernel_context(gru
->gs_gts
[i
]))
108 inuse_asid
= gru
->gs_gts
[i
]->ts_gms
->ms_asids
[gid
].mt_asid
;
109 gru_dbg(grudev
, "gid %d, gts %p, gms %p, inuse 0x%x, cxt %d\n",
110 gru
->gs_gid
, gru
->gs_gts
[i
], gru
->gs_gts
[i
]->ts_gms
,
112 if (inuse_asid
== asid
) {
116 * empty range: reset the range limit and
120 if (asid
>= MAX_ASID
)
121 asid
= gru_wrap_asid(gru
);
126 if ((inuse_asid
> asid
) && (inuse_asid
< limit
))
129 gru
->gs_asid_limit
= limit
;
131 gru_dbg(grudev
, "gid %d, new asid 0x%x, new_limit 0x%x\n", gru
->gs_gid
,
136 /* Assign a new ASID to a thread context. */
137 static int gru_assign_asid(struct gru_state
*gru
)
141 gru
->gs_asid
+= ASID_INC
;
143 if (asid
>= gru
->gs_asid_limit
)
144 asid
= gru_reset_asid_limit(gru
, asid
);
146 gru_dbg(grudev
, "gid %d, asid 0x%x\n", gru
->gs_gid
, asid
);
151 * Clear n bits in a word. Return a word indicating the bits that were cleared.
152 * Optionally, build an array of chars that contain the bit numbers allocated.
154 static unsigned long reserve_resources(unsigned long *p
, int n
, int mmax
,
157 unsigned long bits
= 0;
161 i
= find_first_bit(p
, mmax
);
172 unsigned long gru_reserve_cb_resources(struct gru_state
*gru
, int cbr_au_count
,
175 return reserve_resources(&gru
->gs_cbr_map
, cbr_au_count
, GRU_CBR_AU
,
179 unsigned long gru_reserve_ds_resources(struct gru_state
*gru
, int dsr_au_count
,
182 return reserve_resources(&gru
->gs_dsr_map
, dsr_au_count
, GRU_DSR_AU
,
186 static void reserve_gru_resources(struct gru_state
*gru
,
187 struct gru_thread_state
*gts
)
189 gru
->gs_active_contexts
++;
191 gru_reserve_cb_resources(gru
, gts
->ts_cbr_au_count
,
194 gru_reserve_ds_resources(gru
, gts
->ts_dsr_au_count
, NULL
);
197 static void free_gru_resources(struct gru_state
*gru
,
198 struct gru_thread_state
*gts
)
200 gru
->gs_active_contexts
--;
201 gru
->gs_cbr_map
|= gts
->ts_cbr_map
;
202 gru
->gs_dsr_map
|= gts
->ts_dsr_map
;
206 * Check if a GRU has sufficient free resources to satisfy an allocation
207 * request. Note: GRU locks may or may not be held when this is called. If
208 * not held, recheck after acquiring the appropriate locks.
210 * Returns 1 if sufficient resources, 0 if not
212 static int check_gru_resources(struct gru_state
*gru
, int cbr_au_count
,
213 int dsr_au_count
, int max_active_contexts
)
215 return hweight64(gru
->gs_cbr_map
) >= cbr_au_count
216 && hweight64(gru
->gs_dsr_map
) >= dsr_au_count
217 && gru
->gs_active_contexts
< max_active_contexts
;
221 * TLB manangment requires tracking all GRU chiplets that have loaded a GSEG
224 static int gru_load_mm_tracker(struct gru_state
*gru
,
225 struct gru_thread_state
*gts
)
227 struct gru_mm_struct
*gms
= gts
->ts_gms
;
228 struct gru_mm_tracker
*asids
= &gms
->ms_asids
[gru
->gs_gid
];
229 unsigned short ctxbitmap
= (1 << gts
->ts_ctxnum
);
232 spin_lock(&gms
->ms_asid_lock
);
233 asid
= asids
->mt_asid
;
235 spin_lock(&gru
->gs_asid_lock
);
236 if (asid
== 0 || (asids
->mt_ctxbitmap
== 0 && asids
->mt_asid_gen
!=
238 asid
= gru_assign_asid(gru
);
239 asids
->mt_asid
= asid
;
240 asids
->mt_asid_gen
= gru
->gs_asid_gen
;
245 spin_unlock(&gru
->gs_asid_lock
);
247 BUG_ON(asids
->mt_ctxbitmap
& ctxbitmap
);
248 asids
->mt_ctxbitmap
|= ctxbitmap
;
249 if (!test_bit(gru
->gs_gid
, gms
->ms_asidmap
))
250 __set_bit(gru
->gs_gid
, gms
->ms_asidmap
);
251 spin_unlock(&gms
->ms_asid_lock
);
254 "gid %d, gts %p, gms %p, ctxnum %d, asid 0x%x, asidmap 0x%lx\n",
255 gru
->gs_gid
, gts
, gms
, gts
->ts_ctxnum
, asid
,
260 static void gru_unload_mm_tracker(struct gru_state
*gru
,
261 struct gru_thread_state
*gts
)
263 struct gru_mm_struct
*gms
= gts
->ts_gms
;
264 struct gru_mm_tracker
*asids
;
265 unsigned short ctxbitmap
;
267 asids
= &gms
->ms_asids
[gru
->gs_gid
];
268 ctxbitmap
= (1 << gts
->ts_ctxnum
);
269 spin_lock(&gms
->ms_asid_lock
);
270 spin_lock(&gru
->gs_asid_lock
);
271 BUG_ON((asids
->mt_ctxbitmap
& ctxbitmap
) != ctxbitmap
);
272 asids
->mt_ctxbitmap
^= ctxbitmap
;
273 gru_dbg(grudev
, "gid %d, gts %p, gms %p, ctxnum %d, asidmap 0x%lx\n",
274 gru
->gs_gid
, gts
, gms
, gts
->ts_ctxnum
, gms
->ms_asidmap
[0]);
275 spin_unlock(&gru
->gs_asid_lock
);
276 spin_unlock(&gms
->ms_asid_lock
);
280 * Decrement the reference count on a GTS structure. Free the structure
281 * if the reference count goes to zero.
283 void gts_drop(struct gru_thread_state
*gts
)
285 if (gts
&& atomic_dec_return(>s
->ts_refcnt
) == 0) {
287 gru_drop_mmu_notifier(gts
->ts_gms
);
294 * Locate the GTS structure for the current thread.
296 static struct gru_thread_state
*gru_find_current_gts_nolock(struct gru_vma_data
299 struct gru_thread_state
*gts
;
301 list_for_each_entry(gts
, &vdata
->vd_head
, ts_next
)
302 if (gts
->ts_tsid
== tsid
)
308 * Allocate a thread state structure.
310 struct gru_thread_state
*gru_alloc_gts(struct vm_area_struct
*vma
,
311 int cbr_au_count
, int dsr_au_count
,
312 unsigned char tlb_preload_count
, int options
, int tsid
)
314 struct gru_thread_state
*gts
;
315 struct gru_mm_struct
*gms
;
318 bytes
= DSR_BYTES(dsr_au_count
) + CBR_BYTES(cbr_au_count
);
319 bytes
+= sizeof(struct gru_thread_state
);
320 gts
= kmalloc(bytes
, GFP_KERNEL
);
322 return ERR_PTR(-ENOMEM
);
325 memset(gts
, 0, sizeof(struct gru_thread_state
)); /* zero out header */
326 atomic_set(>s
->ts_refcnt
, 1);
327 mutex_init(>s
->ts_ctxlock
);
328 gts
->ts_cbr_au_count
= cbr_au_count
;
329 gts
->ts_dsr_au_count
= dsr_au_count
;
330 gts
->ts_tlb_preload_count
= tlb_preload_count
;
331 gts
->ts_user_options
= options
;
332 gts
->ts_user_blade_id
= -1;
333 gts
->ts_user_chiplet_id
= -1;
335 gts
->ts_ctxnum
= NULLCTX
;
336 gts
->ts_tlb_int_select
= -1;
337 gts
->ts_cch_req_slice
= -1;
338 gts
->ts_sizeavail
= GRU_SIZEAVAIL(PAGE_SHIFT
);
340 gts
->ts_mm
= current
->mm
;
342 gms
= gru_register_mmu_notifier();
348 gru_dbg(grudev
, "alloc gts %p\n", gts
);
353 return ERR_CAST(gms
);
357 * Allocate a vma private data structure.
359 struct gru_vma_data
*gru_alloc_vma_data(struct vm_area_struct
*vma
, int tsid
)
361 struct gru_vma_data
*vdata
= NULL
;
363 vdata
= kmalloc(sizeof(*vdata
), GFP_KERNEL
);
368 INIT_LIST_HEAD(&vdata
->vd_head
);
369 spin_lock_init(&vdata
->vd_lock
);
370 gru_dbg(grudev
, "alloc vdata %p\n", vdata
);
375 * Find the thread state structure for the current thread.
377 struct gru_thread_state
*gru_find_thread_state(struct vm_area_struct
*vma
,
380 struct gru_vma_data
*vdata
= vma
->vm_private_data
;
381 struct gru_thread_state
*gts
;
383 spin_lock(&vdata
->vd_lock
);
384 gts
= gru_find_current_gts_nolock(vdata
, tsid
);
385 spin_unlock(&vdata
->vd_lock
);
386 gru_dbg(grudev
, "vma %p, gts %p\n", vma
, gts
);
391 * Allocate a new thread state for a GSEG. Note that races may allow
392 * another thread to race to create a gts.
394 struct gru_thread_state
*gru_alloc_thread_state(struct vm_area_struct
*vma
,
397 struct gru_vma_data
*vdata
= vma
->vm_private_data
;
398 struct gru_thread_state
*gts
, *ngts
;
400 gts
= gru_alloc_gts(vma
, vdata
->vd_cbr_au_count
,
401 vdata
->vd_dsr_au_count
,
402 vdata
->vd_tlb_preload_count
,
403 vdata
->vd_user_options
, tsid
);
407 spin_lock(&vdata
->vd_lock
);
408 ngts
= gru_find_current_gts_nolock(vdata
, tsid
);
412 STAT(gts_double_allocate
);
414 list_add(>s
->ts_next
, &vdata
->vd_head
);
416 spin_unlock(&vdata
->vd_lock
);
417 gru_dbg(grudev
, "vma %p, gts %p\n", vma
, gts
);
422 * Free the GRU context assigned to the thread state.
424 static void gru_free_gru_context(struct gru_thread_state
*gts
)
426 struct gru_state
*gru
;
429 gru_dbg(grudev
, "gts %p, gid %d\n", gts
, gru
->gs_gid
);
431 spin_lock(&gru
->gs_lock
);
432 gru
->gs_gts
[gts
->ts_ctxnum
] = NULL
;
433 free_gru_resources(gru
, gts
);
434 BUG_ON(test_bit(gts
->ts_ctxnum
, &gru
->gs_context_map
) == 0);
435 __clear_bit(gts
->ts_ctxnum
, &gru
->gs_context_map
);
436 gts
->ts_ctxnum
= NULLCTX
;
439 spin_unlock(&gru
->gs_lock
);
446 * Prefetching cachelines help hardware performance.
447 * (Strictly a performance enhancement. Not functionally required).
449 static void prefetch_data(void *p
, int num
, int stride
)
457 static inline long gru_copy_handle(void *d
, void *s
)
459 memcpy(d
, s
, GRU_HANDLE_BYTES
);
460 return GRU_HANDLE_BYTES
;
463 static void gru_prefetch_context(void *gseg
, void *cb
, void *cbe
,
464 unsigned long cbrmap
, unsigned long length
)
468 prefetch_data(gseg
+ GRU_DS_BASE
, length
/ GRU_CACHE_LINE_BYTES
,
469 GRU_CACHE_LINE_BYTES
);
471 for_each_cbr_in_allocation_map(i
, &cbrmap
, scr
) {
472 prefetch_data(cb
, 1, GRU_CACHE_LINE_BYTES
);
473 prefetch_data(cbe
+ i
* GRU_HANDLE_STRIDE
, 1,
474 GRU_CACHE_LINE_BYTES
);
475 cb
+= GRU_HANDLE_STRIDE
;
479 static void gru_load_context_data(void *save
, void *grubase
, int ctxnum
,
480 unsigned long cbrmap
, unsigned long dsrmap
,
483 void *gseg
, *cb
, *cbe
;
484 unsigned long length
;
487 gseg
= grubase
+ ctxnum
* GRU_GSEG_STRIDE
;
488 cb
= gseg
+ GRU_CB_BASE
;
489 cbe
= grubase
+ GRU_CBE_BASE
;
490 length
= hweight64(dsrmap
) * GRU_DSR_AU_BYTES
;
491 gru_prefetch_context(gseg
, cb
, cbe
, cbrmap
, length
);
493 for_each_cbr_in_allocation_map(i
, &cbrmap
, scr
) {
495 save
+= gru_copy_handle(cb
, save
);
496 save
+= gru_copy_handle(cbe
+ i
* GRU_HANDLE_STRIDE
,
499 memset(cb
, 0, GRU_CACHE_LINE_BYTES
);
500 memset(cbe
+ i
* GRU_HANDLE_STRIDE
, 0,
501 GRU_CACHE_LINE_BYTES
);
503 /* Flush CBE to hide race in context restart */
505 gru_flush_cache(cbe
+ i
* GRU_HANDLE_STRIDE
);
506 cb
+= GRU_HANDLE_STRIDE
;
510 memcpy(gseg
+ GRU_DS_BASE
, save
, length
);
512 memset(gseg
+ GRU_DS_BASE
, 0, length
);
515 static void gru_unload_context_data(void *save
, void *grubase
, int ctxnum
,
516 unsigned long cbrmap
, unsigned long dsrmap
)
518 void *gseg
, *cb
, *cbe
;
519 unsigned long length
;
522 gseg
= grubase
+ ctxnum
* GRU_GSEG_STRIDE
;
523 cb
= gseg
+ GRU_CB_BASE
;
524 cbe
= grubase
+ GRU_CBE_BASE
;
525 length
= hweight64(dsrmap
) * GRU_DSR_AU_BYTES
;
527 /* CBEs may not be coherent. Flush them from cache */
528 for_each_cbr_in_allocation_map(i
, &cbrmap
, scr
)
529 gru_flush_cache(cbe
+ i
* GRU_HANDLE_STRIDE
);
530 mb(); /* Let the CL flush complete */
532 gru_prefetch_context(gseg
, cb
, cbe
, cbrmap
, length
);
534 for_each_cbr_in_allocation_map(i
, &cbrmap
, scr
) {
535 save
+= gru_copy_handle(save
, cb
);
536 save
+= gru_copy_handle(save
, cbe
+ i
* GRU_HANDLE_STRIDE
);
537 cb
+= GRU_HANDLE_STRIDE
;
539 memcpy(save
, gseg
+ GRU_DS_BASE
, length
);
542 void gru_unload_context(struct gru_thread_state
*gts
, int savestate
)
544 struct gru_state
*gru
= gts
->ts_gru
;
545 struct gru_context_configuration_handle
*cch
;
546 int ctxnum
= gts
->ts_ctxnum
;
548 if (!is_kernel_context(gts
))
549 zap_vma_ptes(gts
->ts_vma
, UGRUADDR(gts
), GRU_GSEG_PAGESIZE
);
550 cch
= get_cch(gru
->gs_gru_base_vaddr
, ctxnum
);
552 gru_dbg(grudev
, "gts %p, cbrmap 0x%lx, dsrmap 0x%lx\n",
553 gts
, gts
->ts_cbr_map
, gts
->ts_dsr_map
);
554 lock_cch_handle(cch
);
555 if (cch_interrupt_sync(cch
))
558 if (!is_kernel_context(gts
))
559 gru_unload_mm_tracker(gru
, gts
);
561 gru_unload_context_data(gts
->ts_gdata
, gru
->gs_gru_base_vaddr
,
562 ctxnum
, gts
->ts_cbr_map
,
564 gts
->ts_data_valid
= 1;
567 if (cch_deallocate(cch
))
569 unlock_cch_handle(cch
);
571 gru_free_gru_context(gts
);
575 * Load a GRU context by copying it from the thread data structure in memory
578 void gru_load_context(struct gru_thread_state
*gts
)
580 struct gru_state
*gru
= gts
->ts_gru
;
581 struct gru_context_configuration_handle
*cch
;
582 int i
, err
, asid
, ctxnum
= gts
->ts_ctxnum
;
584 cch
= get_cch(gru
->gs_gru_base_vaddr
, ctxnum
);
585 lock_cch_handle(cch
);
586 cch
->tfm_fault_bit_enable
=
587 (gts
->ts_user_options
== GRU_OPT_MISS_FMM_POLL
588 || gts
->ts_user_options
== GRU_OPT_MISS_FMM_INTR
);
589 cch
->tlb_int_enable
= (gts
->ts_user_options
== GRU_OPT_MISS_FMM_INTR
);
590 if (cch
->tlb_int_enable
) {
591 gts
->ts_tlb_int_select
= gru_cpu_fault_map_id();
592 cch
->tlb_int_select
= gts
->ts_tlb_int_select
;
594 if (gts
->ts_cch_req_slice
>= 0) {
595 cch
->req_slice_set_enable
= 1;
596 cch
->req_slice
= gts
->ts_cch_req_slice
;
598 cch
->req_slice_set_enable
=0;
600 cch
->tfm_done_bit_enable
= 0;
601 cch
->dsr_allocation_map
= gts
->ts_dsr_map
;
602 cch
->cbr_allocation_map
= gts
->ts_cbr_map
;
604 if (is_kernel_context(gts
)) {
605 cch
->unmap_enable
= 1;
606 cch
->tfm_done_bit_enable
= 1;
607 cch
->cb_int_enable
= 1;
608 cch
->tlb_int_select
= 0; /* For now, ints go to cpu 0 */
610 cch
->unmap_enable
= 0;
611 cch
->tfm_done_bit_enable
= 0;
612 cch
->cb_int_enable
= 0;
613 asid
= gru_load_mm_tracker(gru
, gts
);
614 for (i
= 0; i
< 8; i
++) {
615 cch
->asid
[i
] = asid
+ i
;
616 cch
->sizeavail
[i
] = gts
->ts_sizeavail
;
620 err
= cch_allocate(cch
);
623 "err %d: cch %p, gts %p, cbr 0x%lx, dsr 0x%lx\n",
624 err
, cch
, gts
, gts
->ts_cbr_map
, gts
->ts_dsr_map
);
628 gru_load_context_data(gts
->ts_gdata
, gru
->gs_gru_base_vaddr
, ctxnum
,
629 gts
->ts_cbr_map
, gts
->ts_dsr_map
, gts
->ts_data_valid
);
633 unlock_cch_handle(cch
);
635 gru_dbg(grudev
, "gid %d, gts %p, cbrmap 0x%lx, dsrmap 0x%lx, tie %d, tis %d\n",
636 gts
->ts_gru
->gs_gid
, gts
, gts
->ts_cbr_map
, gts
->ts_dsr_map
,
637 (gts
->ts_user_options
== GRU_OPT_MISS_FMM_INTR
), gts
->ts_tlb_int_select
);
641 * Update fields in an active CCH:
642 * - retarget interrupts on local blade
643 * - update sizeavail mask
645 int gru_update_cch(struct gru_thread_state
*gts
)
647 struct gru_context_configuration_handle
*cch
;
648 struct gru_state
*gru
= gts
->ts_gru
;
649 int i
, ctxnum
= gts
->ts_ctxnum
, ret
= 0;
651 cch
= get_cch(gru
->gs_gru_base_vaddr
, ctxnum
);
653 lock_cch_handle(cch
);
654 if (cch
->state
== CCHSTATE_ACTIVE
) {
655 if (gru
->gs_gts
[gts
->ts_ctxnum
] != gts
)
657 if (cch_interrupt(cch
))
659 for (i
= 0; i
< 8; i
++)
660 cch
->sizeavail
[i
] = gts
->ts_sizeavail
;
661 gts
->ts_tlb_int_select
= gru_cpu_fault_map_id();
662 cch
->tlb_int_select
= gru_cpu_fault_map_id();
663 cch
->tfm_fault_bit_enable
=
664 (gts
->ts_user_options
== GRU_OPT_MISS_FMM_POLL
665 || gts
->ts_user_options
== GRU_OPT_MISS_FMM_INTR
);
671 unlock_cch_handle(cch
);
676 * Update CCH tlb interrupt select. Required when all the following is true:
677 * - task's GRU context is loaded into a GRU
678 * - task is using interrupt notification for TLB faults
679 * - task has migrated to a different cpu on the same blade where
680 * it was previously running.
682 static int gru_retarget_intr(struct gru_thread_state
*gts
)
684 if (gts
->ts_tlb_int_select
< 0
685 || gts
->ts_tlb_int_select
== gru_cpu_fault_map_id())
688 gru_dbg(grudev
, "retarget from %d to %d\n", gts
->ts_tlb_int_select
,
689 gru_cpu_fault_map_id());
690 return gru_update_cch(gts
);
694 * Check if a GRU context is allowed to use a specific chiplet. By default
695 * a context is assigned to any blade-local chiplet. However, users can
697 * Returns 1 if assignment allowed, 0 otherwise
699 static int gru_check_chiplet_assignment(struct gru_state
*gru
,
700 struct gru_thread_state
*gts
)
705 blade_id
= gts
->ts_user_blade_id
;
707 blade_id
= uv_numa_blade_id();
709 chiplet_id
= gts
->ts_user_chiplet_id
;
710 return gru
->gs_blade_id
== blade_id
&&
711 (chiplet_id
< 0 || chiplet_id
== gru
->gs_chiplet_id
);
715 * Unload the gru context if it is not assigned to the correct blade or
716 * chiplet. Misassignment can occur if the process migrates to a different
717 * blade or if the user changes the selected blade/chiplet.
719 void gru_check_context_placement(struct gru_thread_state
*gts
)
721 struct gru_state
*gru
;
724 * If the current task is the context owner, verify that the
725 * context is correctly placed. This test is skipped for non-owner
726 * references. Pthread apps use non-owner references to the CBRs.
729 if (!gru
|| gts
->ts_tgid_owner
!= current
->tgid
)
732 if (!gru_check_chiplet_assignment(gru
, gts
)) {
733 STAT(check_context_unload
);
734 gru_unload_context(gts
, 1);
735 } else if (gru_retarget_intr(gts
)) {
736 STAT(check_context_retarget_intr
);
742 * Insufficient GRU resources available on the local blade. Steal a context from
743 * a process. This is a hack until a _real_ resource scheduler is written....
745 #define next_ctxnum(n) ((n) < GRU_NUM_CCH - 2 ? (n) + 1 : 0)
746 #define next_gru(b, g) (((g) < &(b)->bs_grus[GRU_CHIPLETS_PER_BLADE - 1]) ? \
747 ((g)+1) : &(b)->bs_grus[0])
749 static int is_gts_stealable(struct gru_thread_state
*gts
,
750 struct gru_blade_state
*bs
)
752 if (is_kernel_context(gts
))
753 return down_write_trylock(&bs
->bs_kgts_sema
);
755 return mutex_trylock(>s
->ts_ctxlock
);
758 static void gts_stolen(struct gru_thread_state
*gts
,
759 struct gru_blade_state
*bs
)
761 if (is_kernel_context(gts
)) {
762 up_write(&bs
->bs_kgts_sema
);
763 STAT(steal_kernel_context
);
765 mutex_unlock(>s
->ts_ctxlock
);
766 STAT(steal_user_context
);
770 void gru_steal_context(struct gru_thread_state
*gts
)
772 struct gru_blade_state
*blade
;
773 struct gru_state
*gru
, *gru0
;
774 struct gru_thread_state
*ngts
= NULL
;
775 int ctxnum
, ctxnum0
, flag
= 0, cbr
, dsr
;
778 blade_id
= gts
->ts_user_blade_id
;
780 blade_id
= uv_numa_blade_id();
781 cbr
= gts
->ts_cbr_au_count
;
782 dsr
= gts
->ts_dsr_au_count
;
784 blade
= gru_base
[blade_id
];
785 spin_lock(&blade
->bs_lock
);
787 ctxnum
= next_ctxnum(blade
->bs_lru_ctxnum
);
788 gru
= blade
->bs_lru_gru
;
790 gru
= next_gru(blade
, gru
);
791 blade
->bs_lru_gru
= gru
;
792 blade
->bs_lru_ctxnum
= ctxnum
;
796 if (gru_check_chiplet_assignment(gru
, gts
)) {
797 if (check_gru_resources(gru
, cbr
, dsr
, GRU_NUM_CCH
))
799 spin_lock(&gru
->gs_lock
);
800 for (; ctxnum
< GRU_NUM_CCH
; ctxnum
++) {
801 if (flag
&& gru
== gru0
&& ctxnum
== ctxnum0
)
803 ngts
= gru
->gs_gts
[ctxnum
];
805 * We are grabbing locks out of order, so trylock is
806 * needed. GTSs are usually not locked, so the odds of
807 * success are high. If trylock fails, try to steal a
810 if (ngts
&& is_gts_stealable(ngts
, blade
))
814 spin_unlock(&gru
->gs_lock
);
815 if (ngts
|| (flag
&& gru
== gru0
&& ctxnum
== ctxnum0
))
818 if (flag
&& gru
== gru0
)
822 gru
= next_gru(blade
, gru
);
824 spin_unlock(&blade
->bs_lock
);
827 gts
->ustats
.context_stolen
++;
828 ngts
->ts_steal_jiffies
= jiffies
;
829 gru_unload_context(ngts
, is_kernel_context(ngts
) ? 0 : 1);
830 gts_stolen(ngts
, blade
);
832 STAT(steal_context_failed
);
835 "stole gid %d, ctxnum %d from gts %p. Need cb %d, ds %d;"
836 " avail cb %ld, ds %ld\n",
837 gru
->gs_gid
, ctxnum
, ngts
, cbr
, dsr
, hweight64(gru
->gs_cbr_map
),
838 hweight64(gru
->gs_dsr_map
));
842 * Assign a gru context.
844 static int gru_assign_context_number(struct gru_state
*gru
)
848 ctxnum
= find_first_zero_bit(&gru
->gs_context_map
, GRU_NUM_CCH
);
849 __set_bit(ctxnum
, &gru
->gs_context_map
);
854 * Scan the GRUs on the local blade & assign a GRU context.
856 struct gru_state
*gru_assign_gru_context(struct gru_thread_state
*gts
)
858 struct gru_state
*gru
, *grux
;
859 int i
, max_active_contexts
;
860 int blade_id
= gts
->ts_user_blade_id
;
863 blade_id
= uv_numa_blade_id();
866 max_active_contexts
= GRU_NUM_CCH
;
867 for_each_gru_on_blade(grux
, blade_id
, i
) {
868 if (!gru_check_chiplet_assignment(grux
, gts
))
870 if (check_gru_resources(grux
, gts
->ts_cbr_au_count
,
871 gts
->ts_dsr_au_count
,
872 max_active_contexts
)) {
874 max_active_contexts
= grux
->gs_active_contexts
;
875 if (max_active_contexts
== 0)
881 spin_lock(&gru
->gs_lock
);
882 if (!check_gru_resources(gru
, gts
->ts_cbr_au_count
,
883 gts
->ts_dsr_au_count
, GRU_NUM_CCH
)) {
884 spin_unlock(&gru
->gs_lock
);
887 reserve_gru_resources(gru
, gts
);
889 gts
->ts_blade
= gru
->gs_blade_id
;
890 gts
->ts_ctxnum
= gru_assign_context_number(gru
);
891 atomic_inc(>s
->ts_refcnt
);
892 gru
->gs_gts
[gts
->ts_ctxnum
] = gts
;
893 spin_unlock(&gru
->gs_lock
);
895 STAT(assign_context
);
897 "gseg %p, gts %p, gid %d, ctx %d, cbr %d, dsr %d\n",
898 gseg_virtual_address(gts
->ts_gru
, gts
->ts_ctxnum
), gts
,
899 gts
->ts_gru
->gs_gid
, gts
->ts_ctxnum
,
900 gts
->ts_cbr_au_count
, gts
->ts_dsr_au_count
);
902 gru_dbg(grudev
, "failed to allocate a GTS %s\n", "");
903 STAT(assign_context_failed
);
912 * Map the user's GRU segment
914 * Note: gru segments alway mmaped on GRU_GSEG_PAGESIZE boundaries.
916 vm_fault_t
gru_fault(struct vm_fault
*vmf
)
918 struct vm_area_struct
*vma
= vmf
->vma
;
919 struct gru_thread_state
*gts
;
920 unsigned long paddr
, vaddr
;
921 unsigned long expires
;
923 vaddr
= vmf
->address
;
924 gru_dbg(grudev
, "vma %p, vaddr 0x%lx (0x%lx)\n",
925 vma
, vaddr
, GSEG_BASE(vaddr
));
928 /* The following check ensures vaddr is a valid address in the VMA */
929 gts
= gru_find_thread_state(vma
, TSID(vaddr
, vma
));
931 return VM_FAULT_SIGBUS
;
934 mutex_lock(>s
->ts_ctxlock
);
937 gru_check_context_placement(gts
);
940 STAT(load_user_context
);
941 if (!gru_assign_gru_context(gts
)) {
943 mutex_unlock(>s
->ts_ctxlock
);
944 set_current_state(TASK_INTERRUPTIBLE
);
945 schedule_timeout(GRU_ASSIGN_DELAY
); /* true hack ZZZ */
946 expires
= gts
->ts_steal_jiffies
+ GRU_STEAL_DELAY
;
947 if (time_before(expires
, jiffies
))
948 gru_steal_context(gts
);
951 gru_load_context(gts
);
952 paddr
= gseg_physical_address(gts
->ts_gru
, gts
->ts_ctxnum
);
953 remap_pfn_range(vma
, vaddr
& ~(GRU_GSEG_PAGESIZE
- 1),
954 paddr
>> PAGE_SHIFT
, GRU_GSEG_PAGESIZE
,
959 mutex_unlock(>s
->ts_ctxlock
);
961 return VM_FAULT_NOPAGE
;