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I have some question about the following switch in Linux Kernel, somebody can explain please the last case, why do I need this case at all, if it is empty? thanks in advance

switch (prev->state) {
    case TASK_INTERRUPTIBLE:
        if (unlikely(signal_pending(prev))) {
            prev->state = TASK_RUNNING;
            break;
        }
    default:
        deactivate_task(prev, rq);
    case TASK_RUNNING:
        ;
    }

EDITED

I took it from linux 2.4.18, which I'm currently learning, there is no comment there about, why this way

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I would be extremely interested to know the answer. I suspect it's performance related, but who knows? –  Rafe Kettler Apr 24 '11 at 6:03
1  
My guess would be that this is for documentation, to show that TASK_RUNNING was not simply forgotten. –  Oded Apr 24 '11 at 6:04
    
@Oded though a comment might have been better. –  Rafe Kettler Apr 24 '11 at 6:06
    
Did this code go out of the Linux kernel a long time ago? lkml.org/lkml/2003/12/20/73 –  sjr Apr 24 '11 at 6:10
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2 Answers

up vote 8 down vote accepted

If prev->state == TASK_RUNNING and you don't have the last case, then deactivate_task will be called, which is presumably not desired here. This is just a quick way of doing something special for TASK_INTERRUPTIBLE and something different for every other state but TASK_RUNNING.

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Following is what they do there:

If prev->state == TASK_RUNNING -> do nothing.
If prev->state == TASK_INTERRUPTIBLE - > signal_pending() and then possibly deactivate_task()
In any other case just deactivate_task().
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