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The following command line call of timeout (which makes no sense, just for testing reason) does not work as expected. It waits 10 seconds and does not stop the command from working after 3 seconds. Why ?

timeout 3 ls | sleep 10
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What, exactly, did you expect? –  FrankieTheKneeMan Aug 13 '12 at 22:20
    
@FrankieTheKneeMan I expected, timeout executes ls | sleep 10. Since ls | sleep 10 will take at least 10 seconds, timeout should stop it. But timeout does not. –  John Threepwood Aug 14 '12 at 8:54

3 Answers 3

up vote 3 down vote accepted

What your command is doing is running timeout 3 ls and piping its output to sleep 10. The sleep command is therefore not under the control of timeout and will always sleep for 10s.

Something like this would give the desired effect.

timeout 3 bash -c "ls | sleep 10"
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Now I can see my mistake. Great workaround. Thank you very much (again), you really helped me a lot. –  John Threepwood Aug 15 '12 at 13:25
    
Not a problem John. Glad I could help :) –  Shawn Chin Aug 15 '12 at 13:28

The 'ls' command shouldn't be taking 3 seconds to run. What I think is happening is you are saying (1) timeout on ls after 3 seconds (again this isn't happening since ls shouldn't take anywhere near 3 seconds to run), then (2) pipe the results into sleep 10 which does not need further arguments than the number you are giving it. Thus ls happens, timeout doesn't matter, and bash sleeps for 10 seconds.

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1  
ls can take a very long time to run in a directory with a large number of files. –  jordanm Aug 13 '12 at 22:36
    
Absolutely, you are correct. I made a few assumptions I shouldn't have in that answer, thank you for the insight. –  mjgpy3 Aug 14 '12 at 2:22

The only way I know how to get the effect you're after, is to put the piped commands into a separate file:

cat > script
ls | sleep 10
^D

timeout 3 sh script
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You can use process substitition to do that inline and avoid the temporary file -- timeout 3 sh <(echo "ls | sleep 10") –  Shawn Chin Aug 15 '12 at 13:31

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