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1046 lines
25 KiB
1046 lines
25 KiB
/* CPU control. |
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* (C) 2001, 2002, 2003, 2004 Rusty Russell |
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* |
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* This code is licenced under the GPL. |
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*/ |
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#include <linux/proc_fs.h> |
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#include <linux/smp.h> |
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#include <linux/init.h> |
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#include <linux/notifier.h> |
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#include <linux/sched.h> |
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#include <linux/unistd.h> |
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#include <linux/cpu.h> |
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#include <linux/oom.h> |
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#include <linux/rcupdate.h> |
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#include <linux/export.h> |
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#include <linux/bug.h> |
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#include <linux/kthread.h> |
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#include <linux/stop_machine.h> |
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#include <linux/mutex.h> |
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#include <linux/gfp.h> |
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#include <linux/suspend.h> |
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#include <linux/lockdep.h> |
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#include <trace/events/power.h> |
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|
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#include <trace/events/sched.h> |
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|
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#include "smpboot.h" |
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#include "mt_sched_mon.h" |
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|
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#ifdef CONFIG_SMP |
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#include <linux/delay.h> |
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/* Serializes the updates to cpu_online_mask, cpu_present_mask */ |
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static DEFINE_MUTEX(cpu_add_remove_lock); |
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|
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/* |
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* The following two APIs (cpu_maps_update_begin/done) must be used when |
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* attempting to serialize the updates to cpu_online_mask & cpu_present_mask. |
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* The APIs cpu_notifier_register_begin/done() must be used to protect CPU |
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* hotplug callback (un)registration performed using __register_cpu_notifier() |
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* or __unregister_cpu_notifier(). |
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*/ |
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void cpu_maps_update_begin(void) |
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{ |
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mutex_lock(&cpu_add_remove_lock); |
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} |
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EXPORT_SYMBOL(cpu_notifier_register_begin); |
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|
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void cpu_maps_update_done(void) |
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{ |
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mutex_unlock(&cpu_add_remove_lock); |
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} |
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EXPORT_SYMBOL(cpu_notifier_register_done); |
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|
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#if defined(CONFIG_MTK_CPU_HOTPLUG_DEBUG_1) || \ |
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defined(CONFIG_MTK_CPU_HOTPLUG_DEBUG_2) |
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RAW_NOTIFIER_HEAD(cpu_chain); |
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#else |
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static RAW_NOTIFIER_HEAD(cpu_chain); |
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#endif |
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|
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/* If set, cpu_up and cpu_down will return -EBUSY and do nothing. |
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* Should always be manipulated under cpu_add_remove_lock |
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*/ |
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static int cpu_hotplug_disabled; |
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|
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#ifdef CONFIG_HOTPLUG_CPU |
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|
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static struct { |
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struct task_struct *active_writer; |
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/* wait queue to wake up the active_writer */ |
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wait_queue_head_t wq; |
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/* verifies that no writer will get active while readers are active */ |
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struct mutex lock; |
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/* |
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* Also blocks the new readers during |
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* an ongoing cpu hotplug operation. |
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*/ |
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atomic_t refcount; |
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|
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#ifdef CONFIG_DEBUG_LOCK_ALLOC |
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struct lockdep_map dep_map; |
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#endif |
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} cpu_hotplug = { |
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.active_writer = NULL, |
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.wq = __WAIT_QUEUE_HEAD_INITIALIZER(cpu_hotplug.wq), |
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.lock = __MUTEX_INITIALIZER(cpu_hotplug.lock), |
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#ifdef CONFIG_DEBUG_LOCK_ALLOC |
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.dep_map = {.name = "cpu_hotplug.lock" }, |
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#endif |
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}; |
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|
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/* Lockdep annotations for get/put_online_cpus() and cpu_hotplug_begin/end() */ |
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#define cpuhp_lock_acquire_read() lock_map_acquire_read(&cpu_hotplug.dep_map) |
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#define cpuhp_lock_acquire_tryread() \ |
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lock_map_acquire_tryread(&cpu_hotplug.dep_map) |
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#define cpuhp_lock_acquire() lock_map_acquire(&cpu_hotplug.dep_map) |
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#define cpuhp_lock_release() lock_map_release(&cpu_hotplug.dep_map) |
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|
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void get_online_cpus(void) |
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{ |
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might_sleep(); |
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if (cpu_hotplug.active_writer == current) |
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return; |
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cpuhp_lock_acquire_read(); |
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mutex_lock(&cpu_hotplug.lock); |
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atomic_inc(&cpu_hotplug.refcount); |
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mutex_unlock(&cpu_hotplug.lock); |
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} |
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EXPORT_SYMBOL_GPL(get_online_cpus); |
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|
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bool try_get_online_cpus(void) |
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{ |
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if (cpu_hotplug.active_writer == current) |
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return true; |
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if (!mutex_trylock(&cpu_hotplug.lock)) |
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return false; |
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cpuhp_lock_acquire_tryread(); |
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atomic_inc(&cpu_hotplug.refcount); |
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mutex_unlock(&cpu_hotplug.lock); |
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return true; |
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} |
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EXPORT_SYMBOL_GPL(try_get_online_cpus); |
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|
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void put_online_cpus(void) |
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{ |
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int refcount; |
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|
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if (cpu_hotplug.active_writer == current) |
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return; |
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|
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refcount = atomic_dec_return(&cpu_hotplug.refcount); |
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if (WARN_ON(refcount < 0)) /* try to fix things up */ |
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atomic_inc(&cpu_hotplug.refcount); |
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|
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if (refcount <= 0 && waitqueue_active(&cpu_hotplug.wq)) |
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wake_up(&cpu_hotplug.wq); |
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|
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cpuhp_lock_release(); |
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|
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} |
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EXPORT_SYMBOL_GPL(put_online_cpus); |
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|
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/* |
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* This ensures that the hotplug operation can begin only when the |
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* refcount goes to zero. |
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* |
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* Note that during a cpu-hotplug operation, the new readers, if any, |
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* will be blocked by the cpu_hotplug.lock |
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* |
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* Since cpu_hotplug_begin() is always called after invoking |
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* cpu_maps_update_begin(), we can be sure that only one writer is active. |
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* |
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* Note that theoretically, there is a possibility of a livelock: |
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* - Refcount goes to zero, last reader wakes up the sleeping |
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* writer. |
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* - Last reader unlocks the cpu_hotplug.lock. |
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* - A new reader arrives at this moment, bumps up the refcount. |
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* - The writer acquires the cpu_hotplug.lock finds the refcount |
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* non zero and goes to sleep again. |
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* |
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* However, this is very difficult to achieve in practice since |
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* get_online_cpus() not an api which is called all that often. |
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* |
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*/ |
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void cpu_hotplug_begin(void) |
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{ |
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DEFINE_WAIT(wait); |
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|
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cpu_hotplug.active_writer = current; |
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cpuhp_lock_acquire(); |
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|
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for (;;) { |
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mutex_lock(&cpu_hotplug.lock); |
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prepare_to_wait(&cpu_hotplug.wq, &wait, TASK_UNINTERRUPTIBLE); |
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if (likely(!atomic_read(&cpu_hotplug.refcount))) |
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break; |
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mutex_unlock(&cpu_hotplug.lock); |
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schedule(); |
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} |
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finish_wait(&cpu_hotplug.wq, &wait); |
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} |
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|
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void cpu_hotplug_done(void) |
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{ |
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cpu_hotplug.active_writer = NULL; |
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mutex_unlock(&cpu_hotplug.lock); |
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cpuhp_lock_release(); |
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} |
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|
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/* |
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* Wait for currently running CPU hotplug operations to complete (if any) and |
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* disable future CPU hotplug (from sysfs). The 'cpu_add_remove_lock' protects |
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* the 'cpu_hotplug_disabled' flag. The same lock is also acquired by the |
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* hotplug path before performing hotplug operations. So acquiring that lock |
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* guarantees mutual exclusion from any currently running hotplug operations. |
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*/ |
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void cpu_hotplug_disable(void) |
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{ |
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cpu_maps_update_begin(); |
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cpu_hotplug_disabled = 1; |
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cpu_maps_update_done(); |
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} |
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|
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void cpu_hotplug_enable(void) |
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{ |
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cpu_maps_update_begin(); |
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cpu_hotplug_disabled = 0; |
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cpu_maps_update_done(); |
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} |
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|
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bool cpu_hotplugging(void) |
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{ |
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bool ret = false; |
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|
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if (cpu_hotplug_disabled == 1) |
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ret = true; |
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|
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return ret; |
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} |
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EXPORT_SYMBOL_GPL(cpu_hotplugging); |
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#endif /* CONFIG_HOTPLUG_CPU */ |
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|
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/* Need to know about CPUs going up/down? */ |
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int __ref register_cpu_notifier(struct notifier_block *nb) |
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{ |
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int ret; |
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#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_0 |
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int index = 0; |
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#ifdef CONFIG_KALLSYMS |
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char namebuf[128] = {0}; |
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const char *symname; |
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|
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symname = kallsyms_lookup((unsigned long)nb->notifier_call, |
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NULL, NULL, NULL, namebuf); |
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if (symname) |
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pr_info("[cpu_ntf] <%02d>%08lx (%s)\n", |
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index++, (unsigned long)nb->notifier_call, symname); |
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else |
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pr_info("[cpu_ntf] <%02d>%08lx\n", |
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index++, (unsigned long)nb->notifier_call); |
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#else |
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pr_info("[cpu_ntf] <%02d>%08lx\n", |
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index++, (unsigned long)nb->notifier_call); |
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#endif |
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#endif /* CONFIG_MTK_CPU_HOTPLUG_DEBUG_0 */ |
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|
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cpu_maps_update_begin(); |
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ret = raw_notifier_chain_register(&cpu_chain, nb); |
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cpu_maps_update_done(); |
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return ret; |
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} |
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|
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int __ref __register_cpu_notifier(struct notifier_block *nb) |
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{ |
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return raw_notifier_chain_register(&cpu_chain, nb); |
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} |
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|
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static int __cpu_notify(unsigned long val, void *v, int nr_to_call, |
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int *nr_calls) |
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{ |
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int ret; |
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|
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ret = __raw_notifier_call_chain(&cpu_chain, val, v, nr_to_call, |
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nr_calls); |
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|
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return notifier_to_errno(ret); |
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} |
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|
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static int cpu_notify(unsigned long val, void *v) |
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{ |
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return __cpu_notify(val, v, -1, NULL); |
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} |
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|
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#ifdef CONFIG_HOTPLUG_CPU |
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|
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static void cpu_notify_nofail(unsigned long val, void *v) |
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{ |
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BUG_ON(cpu_notify(val, v)); |
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} |
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EXPORT_SYMBOL(register_cpu_notifier); |
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EXPORT_SYMBOL(__register_cpu_notifier); |
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|
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void __ref unregister_cpu_notifier(struct notifier_block *nb) |
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{ |
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cpu_maps_update_begin(); |
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raw_notifier_chain_unregister(&cpu_chain, nb); |
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cpu_maps_update_done(); |
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} |
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EXPORT_SYMBOL(unregister_cpu_notifier); |
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|
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void __ref __unregister_cpu_notifier(struct notifier_block *nb) |
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{ |
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raw_notifier_chain_unregister(&cpu_chain, nb); |
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} |
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EXPORT_SYMBOL(__unregister_cpu_notifier); |
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|
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/** |
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* clear_tasks_mm_cpumask - Safely clear tasks' mm_cpumask for a CPU |
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* @cpu: a CPU id |
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* |
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* This function walks all processes, finds a valid mm struct for each one and |
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* then clears a corresponding bit in mm's cpumask. While this all sounds |
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* trivial, there are various non-obvious corner cases, which this function |
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* tries to solve in a safe manner. |
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* |
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* Also note that the function uses a somewhat relaxed locking scheme, so it may |
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* be called only for an already offlined CPU. |
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*/ |
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void clear_tasks_mm_cpumask(int cpu) |
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{ |
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struct task_struct *p; |
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|
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/* |
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* This function is called after the cpu is taken down and marked |
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* offline, so its not like new tasks will ever get this cpu set in |
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* their mm mask. -- Peter Zijlstra |
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* Thus, we may use rcu_read_lock() here, instead of grabbing |
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* full-fledged tasklist_lock. |
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*/ |
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WARN_ON(cpu_online(cpu)); |
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rcu_read_lock(); |
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for_each_process(p) { |
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struct task_struct *t; |
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|
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/* |
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* Main thread might exit, but other threads may still have |
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* a valid mm. Find one. |
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*/ |
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t = find_lock_task_mm(p); |
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if (!t) |
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continue; |
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cpumask_clear_cpu(cpu, mm_cpumask(t->mm)); |
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task_unlock(t); |
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} |
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rcu_read_unlock(); |
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} |
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|
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static inline void check_for_tasks(int dead_cpu) |
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{ |
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struct task_struct *g, *p; |
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|
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read_lock_irq(&tasklist_lock); |
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do_each_thread(g, p) { |
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if (!p->on_rq) |
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continue; |
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/* |
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* We do the check with unlocked task_rq(p)->lock. |
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* Order the reading to do not warn about a task, |
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* which was running on this cpu in the past, and |
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* it's just been woken on another cpu. |
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*/ |
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rmb(); |
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if (task_cpu(p) != dead_cpu) |
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continue; |
|
|
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pr_warn("Task %s (pid=%d) is on cpu %d (state=%ld, flags=%x)\n", |
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p->comm, task_pid_nr(p), dead_cpu, p->state, p->flags); |
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} while_each_thread(g, p); |
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read_unlock_irq(&tasklist_lock); |
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} |
|
|
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struct take_cpu_down_param { |
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unsigned long mod; |
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void *hcpu; |
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}; |
|
|
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/* Take this CPU down. */ |
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static int __ref take_cpu_down(void *_param) |
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{ |
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struct take_cpu_down_param *param = _param; |
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int err; |
|
|
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/* Ensure this CPU doesn't handle any more interrupts. */ |
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err = __cpu_disable(); |
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if (err < 0) |
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return err; |
|
|
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cpu_notify(CPU_DYING | param->mod, param->hcpu); |
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#ifdef CONFIG_MTK_RAM_CONSOLE |
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aee_rr_rec_cpu_dying_ktime(ktime_to_us(ktime_get())); |
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#endif |
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/* Park the stopper thread */ |
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stop_machine_park((long)param->hcpu); |
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return 0; |
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} |
|
|
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/* Requires cpu_add_remove_lock to be held */ |
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static int __ref _cpu_down(unsigned int cpu, int tasks_frozen) |
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{ |
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int err, nr_calls = 0; |
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void *hcpu = (void *)(long)cpu; |
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unsigned long mod = tasks_frozen ? CPU_TASKS_FROZEN : 0; |
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struct take_cpu_down_param tcd_param = { |
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.mod = mod, |
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.hcpu = hcpu, |
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}; |
|
|
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if (num_online_cpus() == 1) |
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return -EBUSY; |
|
|
|
if (!cpu_online(cpu)) |
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return -EINVAL; |
|
|
|
cpu_hotplug_begin(); |
|
|
|
#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
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TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
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#endif |
|
|
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err = __cpu_notify(CPU_DOWN_PREPARE | mod, hcpu, -1, &nr_calls); |
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#ifdef CONFIG_MTK_RAM_CONSOLE |
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aee_rr_rec_cpu_down_prepare_ktime(ktime_to_us(ktime_get())); |
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#endif |
|
if (err) { |
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nr_calls--; |
|
__cpu_notify(CPU_DOWN_FAILED | mod, hcpu, nr_calls, NULL); |
|
pr_warn("%s: attempt to take down CPU %u failed\n", |
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__func__, cpu); |
|
goto out_release; |
|
} |
|
|
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#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
|
TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
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#endif |
|
|
|
smpboot_park_threads(cpu); |
|
|
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#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
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TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
|
#endif |
|
|
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err = __stop_machine(take_cpu_down, &tcd_param, cpumask_of(cpu)); |
|
if (err) { |
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/* CPU didn't die: tell everyone. Can't complain. */ |
|
smpboot_unpark_threads(cpu); |
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cpu_notify_nofail(CPU_DOWN_FAILED | mod, hcpu); |
|
goto out_release; |
|
} |
|
|
|
#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
|
TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
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#endif |
|
|
|
BUG_ON(cpu_online(cpu)); |
|
|
|
/* |
|
* The migration_call() CPU_DYING callback will have removed all |
|
* runnable tasks from the cpu, there's only the idle task left now |
|
* that the migration thread is done doing the stop_machine thing. |
|
* |
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* Wait for the stop thread to go away. |
|
*/ |
|
|
|
#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
|
TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
|
#endif |
|
|
|
while (!idle_cpu(cpu)) |
|
cpu_relax(); |
|
|
|
#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
|
TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
|
#endif |
|
|
|
#ifdef CONFIG_MT_SCHED_MONITOR |
|
mt_save_irq_counts(CPU_DOWN); |
|
#endif |
|
|
|
/* This actually kills the CPU. */ |
|
__cpu_die(cpu); |
|
|
|
/* CPU is completely dead: tell everyone. Too late to complain. */ |
|
cpu_notify_nofail(CPU_DEAD | mod, hcpu); |
|
#ifdef CONFIG_MTK_RAM_CONSOLE |
|
aee_rr_rec_cpu_dead_ktime(ktime_to_us(ktime_get())); |
|
#endif |
|
|
|
check_for_tasks(cpu); |
|
|
|
out_release: |
|
cpu_hotplug_done(); |
|
trace_sched_cpu_hotplug(cpu, err, 0); |
|
if (!err) { |
|
cpu_notify_nofail(CPU_POST_DEAD | mod, hcpu); |
|
#ifdef CONFIG_MTK_RAM_CONSOLE |
|
aee_rr_rec_cpu_post_dead_ktime(ktime_to_us(ktime_get())); |
|
#endif |
|
} |
|
return err; |
|
} |
|
|
|
#ifdef CONFIG_PROFILE_CPU |
|
static int _cpu_down_profile(unsigned int cpu, int tasks_frozen, bool debug) |
|
{ |
|
int err; |
|
ktime_t kt1, kt2; |
|
u64 latency; |
|
|
|
kt1 = ktime_get(); |
|
|
|
err = _cpu_down(cpu, 0); |
|
|
|
kt2 = ktime_get(); |
|
latency = (u64) ktime_to_us(ktime_sub(kt2, kt1)); |
|
|
|
if (debug) { |
|
pr_info("%s(%d): %lld\n", __func__, cpu, latency); |
|
} else { |
|
cpu_stats[cpu].hotplug_down_time += 1; |
|
cpu_stats[cpu].hotplug_down_lat_us += latency; |
|
if (cpu_stats[cpu].hotplug_down_lat_max == 0) |
|
cpu_stats[cpu].hotplug_down_lat_max = latency; |
|
else if (latency > cpu_stats[cpu].hotplug_down_lat_max) |
|
cpu_stats[cpu].hotplug_down_lat_max = latency; |
|
|
|
if (cpu_stats[cpu].hotplug_down_lat_min == 0) |
|
cpu_stats[cpu].hotplug_down_lat_min = latency; |
|
else if (latency < cpu_stats[cpu].hotplug_down_lat_min) |
|
cpu_stats[cpu].hotplug_down_lat_min = latency; |
|
} |
|
|
|
return err; |
|
} |
|
#endif |
|
|
|
int __ref cpu_down(unsigned int cpu) |
|
{ |
|
int err; |
|
|
|
#ifdef CONFIG_MTK_RAM_CONSOLE |
|
aee_rr_rec_cpu_caller(get_cpu()); |
|
put_cpu(); |
|
aee_rr_rec_cpu_callee(cpu); |
|
#endif |
|
|
|
cpu_maps_update_begin(); |
|
|
|
if (cpu_hotplug_disabled) { |
|
err = -EBUSY; |
|
goto out; |
|
} |
|
|
|
#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
|
BEGIN_TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
|
#endif |
|
|
|
#ifdef CONFIG_PROFILE_CPU |
|
err = _cpu_down_profile(cpu, 0, 0); |
|
#else |
|
err = _cpu_down(cpu, 0); |
|
#endif |
|
|
|
#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
|
END_TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
|
#endif |
|
|
|
out: |
|
cpu_maps_update_done(); |
|
return err; |
|
} |
|
EXPORT_SYMBOL(cpu_down); |
|
#endif /*CONFIG_HOTPLUG_CPU*/ |
|
|
|
/* |
|
* Unpark per-CPU smpboot kthreads at CPU-online time. |
|
*/ |
|
static int smpboot_thread_call(struct notifier_block *nfb, |
|
unsigned long action, void *hcpu) |
|
{ |
|
int cpu = (long)hcpu; |
|
|
|
switch (action & ~CPU_TASKS_FROZEN) { |
|
|
|
case CPU_ONLINE: |
|
smpboot_unpark_threads(cpu); |
|
break; |
|
|
|
default: |
|
break; |
|
} |
|
|
|
return NOTIFY_OK; |
|
} |
|
|
|
static struct notifier_block smpboot_thread_notifier = { |
|
.notifier_call = smpboot_thread_call, |
|
.priority = CPU_PRI_SMPBOOT, |
|
}; |
|
|
|
void __cpuinit smpboot_thread_init(void) |
|
{ |
|
register_cpu_notifier(&smpboot_thread_notifier); |
|
} |
|
|
|
/* Requires cpu_add_remove_lock to be held */ |
|
static int _cpu_up(unsigned int cpu, int tasks_frozen) |
|
{ |
|
int ret, nr_calls = 0; |
|
void *hcpu = (void *)(long)cpu; |
|
unsigned long mod = tasks_frozen ? CPU_TASKS_FROZEN : 0; |
|
struct task_struct *idle; |
|
|
|
cpu_hotplug_begin(); |
|
|
|
if (cpu_online(cpu) || !cpu_present(cpu)) { |
|
ret = -EINVAL; |
|
goto out; |
|
} |
|
|
|
idle = idle_thread_get(cpu); |
|
if (IS_ERR(idle)) { |
|
ret = PTR_ERR(idle); |
|
goto out; |
|
} |
|
|
|
ret = smpboot_create_threads(cpu); |
|
if (ret) |
|
goto out; |
|
|
|
#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
|
TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
|
#endif |
|
|
|
ret = __cpu_notify(CPU_UP_PREPARE | mod, hcpu, -1, &nr_calls); |
|
#ifdef CONFIG_MTK_RAM_CONSOLE |
|
aee_rr_rec_cpu_up_prepare_ktime(ktime_to_us(ktime_get())); |
|
#endif |
|
|
|
#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
|
TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
|
#endif |
|
|
|
if (ret) { |
|
nr_calls--; |
|
pr_warn("%s: attempt to bring up CPU %u failed\n", |
|
__func__, cpu); |
|
goto out_notify; |
|
} |
|
|
|
/* Arch-specific enabling code. */ |
|
ret = __cpu_up(cpu, idle); |
|
if (ret != 0) |
|
goto out_notify; |
|
BUG_ON(!cpu_online(cpu)); |
|
|
|
#if 0 |
|
/* Wake the per cpu threads */ |
|
smpboot_unpark_threads(cpu); |
|
#endif |
|
/* Now call notifier in preparation. */ |
|
|
|
#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
|
TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
|
#endif |
|
|
|
cpu_notify(CPU_ONLINE | mod, hcpu); |
|
#ifdef CONFIG_MTK_RAM_CONSOLE |
|
aee_rr_rec_cpu_online_ktime(ktime_to_us(ktime_get())); |
|
#endif |
|
|
|
#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
|
TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
|
#endif |
|
|
|
out_notify: |
|
if (ret != 0) |
|
__cpu_notify(CPU_UP_CANCELED | mod, hcpu, nr_calls, NULL); |
|
out: |
|
cpu_hotplug_done(); |
|
trace_sched_cpu_hotplug(cpu, ret, 1); |
|
|
|
return ret; |
|
} |
|
|
|
#ifdef CONFIG_PROFILE_CPU |
|
static int _cpu_up_profile(unsigned int cpu, int tasks_frozen, bool debug) |
|
{ |
|
int err; |
|
ktime_t kt1, kt2; |
|
u64 latency; |
|
|
|
kt1 = ktime_get(); |
|
|
|
err = _cpu_up(cpu, 0); |
|
|
|
kt2 = ktime_get(); |
|
latency = (u64) ktime_to_us(ktime_sub(kt2, kt1)); |
|
|
|
if (debug) { |
|
pr_info("%s(%d): %lld\n", __func__, cpu, latency); |
|
} else { |
|
if (cpu_online(cpu)) { |
|
cpu_stats[cpu].hotplug_up_time += 1; |
|
cpu_stats[cpu].hotplug_up_lat_us += latency; |
|
if (cpu_stats[cpu].hotplug_up_lat_max == 0) |
|
cpu_stats[cpu].hotplug_up_lat_max = latency; |
|
else if (latency > cpu_stats[cpu].hotplug_up_lat_max) |
|
cpu_stats[cpu].hotplug_up_lat_max = latency; |
|
|
|
if (cpu_stats[cpu].hotplug_up_lat_min == 0) |
|
cpu_stats[cpu].hotplug_up_lat_min = latency; |
|
else if (latency < cpu_stats[cpu].hotplug_up_lat_min) |
|
cpu_stats[cpu].hotplug_up_lat_min = latency; |
|
} |
|
} |
|
|
|
return err; |
|
} |
|
#endif |
|
|
|
int cpu_up(unsigned int cpu) |
|
{ |
|
int err = 0; |
|
|
|
#ifdef CONFIG_MTK_RAM_CONSOLE |
|
aee_rr_rec_cpu_caller(get_cpu()); |
|
put_cpu(); |
|
aee_rr_rec_cpu_callee(cpu); |
|
#endif |
|
|
|
if (!cpu_possible(cpu)) { |
|
pr_err("can't online cpu %d because it is not configured as may-hotadd at boot time\n", |
|
cpu); |
|
#if defined(CONFIG_IA64) |
|
pr_err("please check additional_cpus= boot parameter\n"); |
|
#endif |
|
return -EINVAL; |
|
} |
|
|
|
err = try_online_node(cpu_to_node(cpu)); |
|
if (err) |
|
return err; |
|
|
|
cpu_maps_update_begin(); |
|
|
|
if (cpu_hotplug_disabled) { |
|
err = -EBUSY; |
|
goto out; |
|
} |
|
|
|
#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
|
BEGIN_TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
|
#endif |
|
|
|
#ifdef CONFIG_PROFILE_CPU |
|
err = _cpu_up_profile(cpu, 0, 0); |
|
#else |
|
err = _cpu_up(cpu, 0); |
|
#endif |
|
|
|
#ifdef CONFIG_MTK_CPU_HOTPLUG_DEBUG_3 |
|
END_TIMESTAMP_REC(hotplug_ts_rec, TIMESTAMP_FILTER, cpu, 0, 0, 0); |
|
#endif |
|
|
|
out: |
|
cpu_maps_update_done(); |
|
return err; |
|
} |
|
EXPORT_SYMBOL_GPL(cpu_up); |
|
|
|
#ifdef CONFIG_PM_SLEEP_SMP |
|
static cpumask_var_t frozen_cpus; |
|
|
|
int disable_nonboot_cpus(void) |
|
{ |
|
int cpu, first_cpu, error = 0; |
|
|
|
cpu_maps_update_begin(); |
|
first_cpu = cpumask_first(cpu_online_mask); |
|
/* |
|
* We take down all of the non-boot CPUs in one shot to avoid races |
|
* with the userspace trying to use the CPU hotplug at the same time |
|
*/ |
|
cpumask_clear(frozen_cpus); |
|
|
|
pr_info("Disabling non-boot CPUs ...\n"); |
|
for_each_online_cpu(cpu) { |
|
if (cpu == first_cpu) |
|
continue; |
|
trace_suspend_resume(TPS("CPU_OFF"), cpu, true); |
|
error = _cpu_down(cpu, 1); |
|
trace_suspend_resume(TPS("CPU_OFF"), cpu, false); |
|
if (!error) |
|
cpumask_set_cpu(cpu, frozen_cpus); |
|
else { |
|
pr_err("Error taking CPU%d down: %d\n", cpu, error); |
|
break; |
|
} |
|
} |
|
|
|
if (!error) { |
|
BUG_ON(num_online_cpus() > 1); |
|
/* Make sure the CPUs won't be enabled by someone else */ |
|
cpu_hotplug_disabled = 1; |
|
} else { |
|
pr_err("Non-boot CPUs are not disabled\n"); |
|
} |
|
cpu_maps_update_done(); |
|
return error; |
|
} |
|
|
|
void __weak arch_enable_nonboot_cpus_begin(void) |
|
{ |
|
} |
|
|
|
void __weak arch_enable_nonboot_cpus_end(void) |
|
{ |
|
} |
|
|
|
void __ref enable_nonboot_cpus(void) |
|
{ |
|
int cpu, error; |
|
struct device *cpu_device; |
|
|
|
/* Allow everyone to use the CPU hotplug again */ |
|
cpu_maps_update_begin(); |
|
cpu_hotplug_disabled = 0; |
|
if (cpumask_empty(frozen_cpus)) |
|
goto out; |
|
|
|
pr_info("Enabling non-boot CPUs ...\n"); |
|
|
|
arch_enable_nonboot_cpus_begin(); |
|
|
|
for_each_cpu(cpu, frozen_cpus) { |
|
trace_suspend_resume(TPS("CPU_ON"), cpu, true); |
|
error = _cpu_up(cpu, 1); |
|
trace_suspend_resume(TPS("CPU_ON"), cpu, false); |
|
if (!error) { |
|
pr_info("CPU%d is up\n", cpu); |
|
cpu_device = get_cpu_device(cpu); |
|
if (!cpu_device) |
|
pr_err("%s: failed to get cpu%d device\n", |
|
__func__, cpu); |
|
else |
|
kobject_uevent(&cpu_device->kobj, KOBJ_ONLINE); |
|
continue; |
|
} |
|
pr_warn("Error taking CPU%d up: %d\n", cpu, error); |
|
} |
|
|
|
arch_enable_nonboot_cpus_end(); |
|
|
|
cpumask_clear(frozen_cpus); |
|
out: |
|
cpu_maps_update_done(); |
|
} |
|
|
|
static int __init alloc_frozen_cpus(void) |
|
{ |
|
if (!alloc_cpumask_var(&frozen_cpus, GFP_KERNEL|__GFP_ZERO)) |
|
return -ENOMEM; |
|
return 0; |
|
} |
|
core_initcall(alloc_frozen_cpus); |
|
|
|
/* |
|
* When callbacks for CPU hotplug notifications are being executed, we must |
|
* ensure that the state of the system with respect to the tasks being frozen |
|
* or not, as reported by the notification, remains unchanged *throughout the |
|
* duration* of the execution of the callbacks. |
|
* Hence we need to prevent the freezer from racing with regular CPU hotplug. |
|
* |
|
* This synchronization is implemented by mutually excluding regular CPU |
|
* hotplug and Suspend/Hibernate call paths by hooking onto the Suspend/ |
|
* Hibernate notifications. |
|
*/ |
|
static int |
|
cpu_hotplug_pm_callback(struct notifier_block *nb, |
|
unsigned long action, void *ptr) |
|
{ |
|
switch (action) { |
|
|
|
case PM_SUSPEND_PREPARE: |
|
case PM_HIBERNATION_PREPARE: |
|
cpu_hotplug_disable(); |
|
break; |
|
|
|
case PM_POST_SUSPEND: |
|
case PM_POST_HIBERNATION: |
|
cpu_hotplug_enable(); |
|
break; |
|
|
|
default: |
|
return NOTIFY_DONE; |
|
} |
|
|
|
return NOTIFY_OK; |
|
} |
|
|
|
|
|
static int __init cpu_hotplug_pm_sync_init(void) |
|
{ |
|
/* |
|
* cpu_hotplug_pm_callback has higher priority than x86 |
|
* bsp_pm_callback which depends on cpu_hotplug_pm_callback |
|
* to disable cpu hotplug to avoid cpu hotplug race. |
|
*/ |
|
pm_notifier(cpu_hotplug_pm_callback, 0); |
|
return 0; |
|
} |
|
core_initcall(cpu_hotplug_pm_sync_init); |
|
|
|
#endif /* CONFIG_PM_SLEEP_SMP */ |
|
|
|
/** |
|
* notify_cpu_starting(cpu) - call the CPU_STARTING notifiers |
|
* @cpu: cpu that just started |
|
* |
|
* This function calls the cpu_chain notifiers with CPU_STARTING. |
|
* It must be called by the arch code on the new cpu, before the new cpu |
|
* enables interrupts and before the "boot" cpu returns from __cpu_up(). |
|
*/ |
|
void notify_cpu_starting(unsigned int cpu) |
|
{ |
|
unsigned long val = CPU_STARTING; |
|
|
|
#ifdef CONFIG_PM_SLEEP_SMP |
|
if (frozen_cpus != NULL && cpumask_test_cpu(cpu, frozen_cpus)) |
|
val = CPU_STARTING_FROZEN; |
|
#endif /* CONFIG_PM_SLEEP_SMP */ |
|
cpu_notify(val, (void *)(long)cpu); |
|
#ifdef CONFIG_MTK_RAM_CONSOLE |
|
aee_rr_rec_cpu_starting_ktime(ktime_to_us(ktime_get())); |
|
#endif |
|
} |
|
|
|
#endif /* CONFIG_SMP */ |
|
|
|
/* |
|
* cpu_bit_bitmap[] is a special, "compressed" data structure that |
|
* represents all NR_CPUS bits binary values of 1<<nr. |
|
* |
|
* It is used by cpumask_of() to get a constant address to a CPU |
|
* mask value that has a single bit set only. |
|
*/ |
|
|
|
/* cpu_bit_bitmap[0] is empty - so we can back into it */ |
|
#define MASK_DECLARE_1(x) [x+1][0] = (1UL << (x)) |
|
#define MASK_DECLARE_2(x) MASK_DECLARE_1(x), MASK_DECLARE_1(x+1) |
|
#define MASK_DECLARE_4(x) MASK_DECLARE_2(x), MASK_DECLARE_2(x+2) |
|
#define MASK_DECLARE_8(x) MASK_DECLARE_4(x), MASK_DECLARE_4(x+4) |
|
|
|
const unsigned long cpu_bit_bitmap[BITS_PER_LONG+1][BITS_TO_LONGS(NR_CPUS)] = { |
|
|
|
MASK_DECLARE_8(0), MASK_DECLARE_8(8), |
|
MASK_DECLARE_8(16), MASK_DECLARE_8(24), |
|
#if BITS_PER_LONG > 32 |
|
MASK_DECLARE_8(32), MASK_DECLARE_8(40), |
|
MASK_DECLARE_8(48), MASK_DECLARE_8(56), |
|
#endif |
|
}; |
|
EXPORT_SYMBOL_GPL(cpu_bit_bitmap); |
|
|
|
const DECLARE_BITMAP(cpu_all_bits, NR_CPUS) = CPU_BITS_ALL; |
|
EXPORT_SYMBOL(cpu_all_bits); |
|
|
|
#ifdef CONFIG_INIT_ALL_POSSIBLE |
|
static DECLARE_BITMAP(cpu_possible_bits, CONFIG_NR_CPUS) __read_mostly |
|
= CPU_BITS_ALL; |
|
#else |
|
static DECLARE_BITMAP(cpu_possible_bits, CONFIG_NR_CPUS) __read_mostly; |
|
#endif |
|
const struct cpumask *const cpu_possible_mask = to_cpumask(cpu_possible_bits); |
|
EXPORT_SYMBOL(cpu_possible_mask); |
|
|
|
static DECLARE_BITMAP(cpu_online_bits, CONFIG_NR_CPUS) __read_mostly; |
|
const struct cpumask *const cpu_online_mask = to_cpumask(cpu_online_bits); |
|
EXPORT_SYMBOL(cpu_online_mask); |
|
|
|
static DECLARE_BITMAP(cpu_present_bits, CONFIG_NR_CPUS) __read_mostly; |
|
const struct cpumask *const cpu_present_mask = to_cpumask(cpu_present_bits); |
|
EXPORT_SYMBOL(cpu_present_mask); |
|
|
|
static DECLARE_BITMAP(cpu_active_bits, CONFIG_NR_CPUS) __read_mostly; |
|
const struct cpumask *const cpu_active_mask = to_cpumask(cpu_active_bits); |
|
EXPORT_SYMBOL(cpu_active_mask); |
|
|
|
void set_cpu_possible(unsigned int cpu, bool possible) |
|
{ |
|
if (possible) |
|
cpumask_set_cpu(cpu, to_cpumask(cpu_possible_bits)); |
|
else |
|
cpumask_clear_cpu(cpu, to_cpumask(cpu_possible_bits)); |
|
} |
|
|
|
void set_cpu_present(unsigned int cpu, bool present) |
|
{ |
|
if (present) |
|
cpumask_set_cpu(cpu, to_cpumask(cpu_present_bits)); |
|
else |
|
cpumask_clear_cpu(cpu, to_cpumask(cpu_present_bits)); |
|
} |
|
|
|
void set_cpu_online(unsigned int cpu, bool online) |
|
{ |
|
if (online) { |
|
cpumask_set_cpu(cpu, to_cpumask(cpu_online_bits)); |
|
cpumask_set_cpu(cpu, to_cpumask(cpu_active_bits)); |
|
} else { |
|
cpumask_clear_cpu(cpu, to_cpumask(cpu_online_bits)); |
|
} |
|
} |
|
|
|
void set_cpu_active(unsigned int cpu, bool active) |
|
{ |
|
if (active) |
|
cpumask_set_cpu(cpu, to_cpumask(cpu_active_bits)); |
|
else |
|
cpumask_clear_cpu(cpu, to_cpumask(cpu_active_bits)); |
|
} |
|
|
|
void init_cpu_present(const struct cpumask *src) |
|
{ |
|
cpumask_copy(to_cpumask(cpu_present_bits), src); |
|
} |
|
|
|
void init_cpu_possible(const struct cpumask *src) |
|
{ |
|
cpumask_copy(to_cpumask(cpu_possible_bits), src); |
|
} |
|
|
|
void init_cpu_online(const struct cpumask *src) |
|
{ |
|
cpumask_copy(to_cpumask(cpu_online_bits), src); |
|
} |
|
|
|
static ATOMIC_NOTIFIER_HEAD(idle_notifier); |
|
|
|
void idle_notifier_register(struct notifier_block *n) |
|
{ |
|
atomic_notifier_chain_register(&idle_notifier, n); |
|
} |
|
EXPORT_SYMBOL_GPL(idle_notifier_register); |
|
|
|
void idle_notifier_unregister(struct notifier_block *n) |
|
{ |
|
atomic_notifier_chain_unregister(&idle_notifier, n); |
|
} |
|
EXPORT_SYMBOL_GPL(idle_notifier_unregister); |
|
|
|
void idle_notifier_call_chain(unsigned long val) |
|
{ |
|
atomic_notifier_call_chain(&idle_notifier, val, NULL); |
|
} |
|
EXPORT_SYMBOL_GPL(idle_notifier_call_chain);
|
|
|