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MISRA Rule-17.7 requires the return value of all functions to be used. Fix is either to use the return value or change the function to return void. This patch ensures that WARN and WARN_ON always return void; and introduces a new nvgpu_do_assert construct to trigger the equivalent of WARN_ON(true) so that stack can be dumped (depends on OS support) JIRA NVGPU-677 Change-Id: Ie2312c5588ceb5b1db825d15a096149b63b69af4 Signed-off-by: Nicolas Benech <nbenech@nvidia.com> Reviewed-on: https://git-master.nvidia.com/r/2018706 Reviewed-by: mobile promotions <svcmobile_promotions@nvidia.com> Tested-by: mobile promotions <svcmobile_promotions@nvidia.com>
424 lines
10 KiB
C
424 lines
10 KiB
C
/*
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* Semaphore Sync Framework Integration
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*
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* Copyright (c) 2017-2019, NVIDIA Corporation. All rights reserved.
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*
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* This program is free software; you can redistribute it and/or modify it
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* under the terms and conditions of the GNU General Public License,
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* version 2, as published by the Free Software Foundation.
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*
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* This program is distributed in the hope it will be useful, but WITHOUT
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* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
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* FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
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* more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program. If not, see <http://www.gnu.org/licenses/>.
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*/
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#include <linux/file.h>
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#include <linux/fs.h>
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#include <linux/hrtimer.h>
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#include <linux/module.h>
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#include <nvgpu/lock.h>
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#include <nvgpu/kmem.h>
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#include <nvgpu/bug.h>
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#include <nvgpu/kref.h>
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#include <nvgpu/channel.h>
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#include <nvgpu/semaphore.h>
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#include "../linux/channel.h"
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#include "../drivers/staging/android/sync.h"
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#include "sync_sema_android.h"
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static const struct sync_timeline_ops gk20a_sync_timeline_ops;
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struct gk20a_sync_timeline {
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struct sync_timeline obj;
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u32 max;
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u32 min;
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};
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/**
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* The sync framework dups pts when merging fences. We share a single
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* refcounted gk20a_sync_pt for each duped pt.
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*/
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struct gk20a_sync_pt {
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struct gk20a *g;
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struct nvgpu_ref refcount;
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u32 thresh;
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struct nvgpu_semaphore *sema;
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struct gk20a_sync_timeline *obj;
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/*
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* Use a spin lock here since it will have better performance
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* than a mutex - there should be very little contention on this
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* lock.
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*/
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struct nvgpu_spinlock lock;
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};
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struct gk20a_sync_pt_inst {
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struct sync_pt pt;
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struct gk20a_sync_pt *shared;
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};
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/**
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* Compares sync pt values a and b, both of which will trigger either before
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* or after ref (i.e. a and b trigger before ref, or a and b trigger after
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* ref). Supplying ref allows us to handle wrapping correctly.
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*
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* Returns -1 if a < b (a triggers before b)
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* 0 if a = b (a and b trigger at the same time)
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* 1 if a > b (b triggers before a)
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*/
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static int __gk20a_sync_pt_compare_ref(
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u32 ref,
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u32 a,
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u32 b)
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{
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/*
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* We normalize both a and b by subtracting ref from them.
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* Denote the normalized values by a_n and b_n. Note that because
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* of wrapping, a_n and/or b_n may be negative.
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*
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* The normalized values a_n and b_n satisfy:
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* - a positive value triggers before a negative value
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* - a smaller positive value triggers before a greater positive value
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* - a smaller negative value (greater in absolute value) triggers
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* before a greater negative value (smaller in absolute value).
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*
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* Thus we can just stick to unsigned arithmetic and compare
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* (u32)a_n to (u32)b_n.
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*
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* Just to reiterate the possible cases:
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*
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* 1A) ...ref..a....b....
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* 1B) ...ref..b....a....
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* 2A) ...b....ref..a.... b_n < 0
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* 2B) ...a....ref..b.... a_n > 0
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* 3A) ...a....b....ref.. a_n < 0, b_n < 0
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* 3A) ...b....a....ref.. a_n < 0, b_n < 0
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*/
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u32 a_n = a - ref;
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u32 b_n = b - ref;
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if (a_n < b_n)
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return -1;
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else if (a_n > b_n)
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return 1;
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else
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return 0;
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}
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static struct gk20a_sync_pt *to_gk20a_sync_pt(struct sync_pt *pt)
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{
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struct gk20a_sync_pt_inst *pti =
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container_of(pt, struct gk20a_sync_pt_inst, pt);
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return pti->shared;
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}
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static struct gk20a_sync_timeline *to_gk20a_timeline(struct sync_timeline *obj)
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{
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if (obj->ops != &gk20a_sync_timeline_ops) {
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nvgpu_do_assert();
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return NULL;
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}
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return (struct gk20a_sync_timeline *)obj;
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}
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static void gk20a_sync_pt_free_shared(struct nvgpu_ref *ref)
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{
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struct gk20a_sync_pt *pt =
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container_of(ref, struct gk20a_sync_pt, refcount);
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struct gk20a *g = pt->g;
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if (pt->sema)
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nvgpu_semaphore_put(pt->sema);
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nvgpu_kfree(g, pt);
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}
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static struct gk20a_sync_pt *gk20a_sync_pt_create_shared(
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struct gk20a *g,
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struct gk20a_sync_timeline *obj,
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struct nvgpu_semaphore *sema)
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{
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struct gk20a_sync_pt *shared;
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shared = nvgpu_kzalloc(g, sizeof(*shared));
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if (!shared)
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return NULL;
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nvgpu_ref_init(&shared->refcount);
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shared->g = g;
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shared->obj = obj;
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shared->sema = sema;
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shared->thresh = ++obj->max; /* sync framework has a lock */
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nvgpu_spinlock_init(&shared->lock);
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nvgpu_semaphore_get(sema);
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return shared;
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}
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static struct sync_pt *gk20a_sync_pt_create_inst(
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struct gk20a *g,
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struct gk20a_sync_timeline *obj,
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struct nvgpu_semaphore *sema)
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{
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struct gk20a_sync_pt_inst *pti;
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pti = (struct gk20a_sync_pt_inst *)
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sync_pt_create(&obj->obj, sizeof(*pti));
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if (!pti)
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return NULL;
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pti->shared = gk20a_sync_pt_create_shared(g, obj, sema);
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if (!pti->shared) {
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sync_pt_free(&pti->pt);
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return NULL;
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}
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return &pti->pt;
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}
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static void gk20a_sync_pt_free_inst(struct sync_pt *sync_pt)
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{
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struct gk20a_sync_pt *pt = to_gk20a_sync_pt(sync_pt);
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if (pt)
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nvgpu_ref_put(&pt->refcount, gk20a_sync_pt_free_shared);
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}
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static struct sync_pt *gk20a_sync_pt_dup_inst(struct sync_pt *sync_pt)
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{
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struct gk20a_sync_pt_inst *pti;
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struct gk20a_sync_pt *pt = to_gk20a_sync_pt(sync_pt);
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pti = (struct gk20a_sync_pt_inst *)
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sync_pt_create(&pt->obj->obj, sizeof(*pti));
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if (!pti)
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return NULL;
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pti->shared = pt;
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nvgpu_ref_get(&pt->refcount);
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return &pti->pt;
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}
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/*
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* This function must be able to run on the same sync_pt concurrently. This
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* requires a lock to protect access to the sync_pt's internal data structures
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* which are modified as a side effect of calling this function.
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*/
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static int gk20a_sync_pt_has_signaled(struct sync_pt *sync_pt)
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{
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struct gk20a_sync_pt *pt = to_gk20a_sync_pt(sync_pt);
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struct gk20a_sync_timeline *obj = pt->obj;
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bool signaled = true;
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nvgpu_spinlock_acquire(&pt->lock);
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if (!pt->sema)
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goto done;
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/* Acquired == not realeased yet == active == not signaled. */
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signaled = !nvgpu_semaphore_is_acquired(pt->sema);
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if (signaled) {
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/* Update min if necessary. */
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if (__gk20a_sync_pt_compare_ref(obj->max, pt->thresh,
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obj->min) == 1)
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obj->min = pt->thresh;
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/* Release the semaphore to the pool. */
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nvgpu_semaphore_put(pt->sema);
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pt->sema = NULL;
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}
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done:
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nvgpu_spinlock_release(&pt->lock);
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return signaled;
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}
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static int gk20a_sync_pt_compare(struct sync_pt *a, struct sync_pt *b)
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{
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bool a_expired;
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bool b_expired;
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struct gk20a_sync_pt *pt_a = to_gk20a_sync_pt(a);
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struct gk20a_sync_pt *pt_b = to_gk20a_sync_pt(b);
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if (pt_a->obj != pt_b->obj) {
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nvgpu_do_assert();
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return 0;
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}
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/* Early out */
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if (a == b) {
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return 0;
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}
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a_expired = gk20a_sync_pt_has_signaled(a);
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b_expired = gk20a_sync_pt_has_signaled(b);
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if (a_expired && !b_expired) {
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/* Easy, a was earlier */
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return -1;
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} else if (!a_expired && b_expired) {
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/* Easy, b was earlier */
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return 1;
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}
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/* Both a and b are expired (trigger before min) or not
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* expired (trigger after min), so we can use min
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* as a reference value for __gk20a_sync_pt_compare_ref.
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*/
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return __gk20a_sync_pt_compare_ref(pt_a->obj->min,
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pt_a->thresh, pt_b->thresh);
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}
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static u32 gk20a_sync_timeline_current(struct gk20a_sync_timeline *obj)
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{
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return obj->min;
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}
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static void gk20a_sync_timeline_value_str(struct sync_timeline *timeline,
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char *str, int size)
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{
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struct gk20a_sync_timeline *obj =
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(struct gk20a_sync_timeline *)timeline;
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(void) snprintf(str, size, "%d", gk20a_sync_timeline_current(obj));
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}
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static void gk20a_sync_pt_value_str_for_sema(struct gk20a_sync_pt *pt,
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char *str, int size)
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{
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struct nvgpu_semaphore *s = pt->sema;
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(void) snprintf(str, size, "S: pool=%llu [v=%u,r_v=%u]",
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nvgpu_semaphore_get_hw_pool_page_idx(s),
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nvgpu_semaphore_get_value(s),
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nvgpu_semaphore_read(s));
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}
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static void gk20a_sync_pt_value_str(struct sync_pt *sync_pt, char *str,
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int size)
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{
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struct gk20a_sync_pt *pt = to_gk20a_sync_pt(sync_pt);
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if (pt->sema) {
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gk20a_sync_pt_value_str_for_sema(pt, str, size);
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return;
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}
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(void) snprintf(str, size, "%d", pt->thresh);
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}
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static const struct sync_timeline_ops gk20a_sync_timeline_ops = {
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.driver_name = "nvgpu_semaphore",
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.dup = gk20a_sync_pt_dup_inst,
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.has_signaled = gk20a_sync_pt_has_signaled,
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.compare = gk20a_sync_pt_compare,
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.free_pt = gk20a_sync_pt_free_inst,
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.timeline_value_str = gk20a_sync_timeline_value_str,
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.pt_value_str = gk20a_sync_pt_value_str,
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};
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/* Public API */
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struct sync_fence *gk20a_sync_fence_fdget(int fd)
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{
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struct sync_fence *fence = sync_fence_fdget(fd);
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int i;
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if (!fence)
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return NULL;
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for (i = 0; i < fence->num_fences; i++) {
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struct sync_pt *spt = sync_pt_from_fence(fence->cbs[i].sync_pt);
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struct sync_timeline *t;
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if (spt == NULL) {
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sync_fence_put(fence);
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return NULL;
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}
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t = sync_pt_parent(spt);
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if (t->ops != &gk20a_sync_timeline_ops) {
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sync_fence_put(fence);
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return NULL;
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}
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}
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return fence;
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}
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struct nvgpu_semaphore *gk20a_sync_pt_sema(struct sync_pt *spt)
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{
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struct gk20a_sync_pt *pt = to_gk20a_sync_pt(spt);
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struct nvgpu_semaphore *sema;
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nvgpu_spinlock_acquire(&pt->lock);
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sema = pt->sema;
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if (sema)
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nvgpu_semaphore_get(sema);
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nvgpu_spinlock_release(&pt->lock);
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return sema;
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}
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void gk20a_sync_timeline_signal(struct sync_timeline *timeline)
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{
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sync_timeline_signal(timeline, 0);
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}
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void gk20a_sync_timeline_destroy(struct sync_timeline *timeline)
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{
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sync_timeline_destroy(timeline);
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}
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struct sync_timeline *gk20a_sync_timeline_create(
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const char *name)
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{
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struct gk20a_sync_timeline *obj;
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obj = (struct gk20a_sync_timeline *)
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sync_timeline_create(&gk20a_sync_timeline_ops,
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sizeof(struct gk20a_sync_timeline),
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name);
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if (!obj)
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return NULL;
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obj->max = 0;
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obj->min = 0;
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return &obj->obj;
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}
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struct sync_fence *gk20a_sync_fence_create(
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struct channel_gk20a *c,
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struct nvgpu_semaphore *sema,
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const char *fmt, ...)
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{
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char name[30];
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va_list args;
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struct sync_pt *pt;
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struct sync_fence *fence;
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struct gk20a *g = c->g;
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struct nvgpu_channel_linux *os_channel_priv = c->os_priv;
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struct nvgpu_os_fence_framework *fence_framework = NULL;
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struct gk20a_sync_timeline *timeline = NULL;
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fence_framework = &os_channel_priv->fence_framework;
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timeline = to_gk20a_timeline(fence_framework->timeline);
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pt = gk20a_sync_pt_create_inst(g, timeline, sema);
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if (pt == NULL)
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return NULL;
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va_start(args, fmt);
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(void) vsnprintf(name, sizeof(name), fmt, args);
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va_end(args);
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fence = sync_fence_create(name, pt);
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if (fence == NULL) {
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sync_pt_free(pt);
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return NULL;
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}
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return fence;
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}
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