Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them, it only takes a minute:

So after a task eats up its time slice, it would be re-inserted into the red-black tree. If the task has slept for a long time previously , leading to a very small vruntime compared to other tasks in the runqueue, then it will be repetitively re-inserted as the left-most node in the red-black tree, right? Consequently it will always be picked up as the next task to run? I have checked the source code in core.c and fair.c, I didn't see any place where this task should yield to other tasks. Though in the funciton pick_next_entity(), I do see some tasks such cfs_rq->next,cfs_rq->last or etc.. which might have higher running priority,I do not think this is the correct place to prevent a task with very small vruntime from taking a processor for a too long time,right? Does anyone have a clue? Thanks,

share|improve this question

1 Answer 1

up vote 3 down vote accepted

I found the answer. When task is dequeue from the runqueue, this will be called: se->vruntime -= cfs_rq->min_vruntime When task is again enqueued to the runqueue, this will be called: se->vruntime += cfs_rq->min_vruntime So actually only the offset of the vruntime will be stored when the task is sleeping and the offset will be added again when it wakes up.

share|improve this answer
I understood your point in case process wakes up after sleep. But can you explain this question. in this how cfs prevents starvation if there are two processes p1 and p2 ,p1 is executing from quite a long time so its vruntime would be large now if process p2 starts its vruntime would be zero then the new task would be scheduled against p1 because its vruntime is less. –  anshul garg Jul 28 '14 at 13:44

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.