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I would like to use the timeout command with an own function, e.g.:

#!/bin/bash
function test { sleep 10; echo "done" }

timeout 5 test

But when calling this script, it seems to do nothing. The shell returns right after I started it.

Is there a way to fix this or can timeout not be used on own functions ?

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What is the timeout command? It's not a built-in of bash. –  Aaron Digulla Aug 13 '12 at 13:27

4 Answers 4

up vote 1 down vote accepted

timeout doesn't seem to be a built-in command of bash which means it can't access functions. You will have to move the function body into a new script file and pass it to timeout as parameter.

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timeout requires a command and can't work on shell functions.

Unfortunately your function above has a name clash with the /usr/bin/test executable, and that's causing some confusion, since /usr/bin/test exits immediately. If you rename your function to (say) t, you'll see:

brian@machine:~/$ timeout t
Try `timeout --help' for more information.

which isn't hugely helpful, but serves to illustrate what's going on.

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One way is to do

timeout 5 bash -c 'sleep 10; echo "done"'

instead. Though you can also hack up something like this:

f() { sleep 10; echo done; }
f & pid=$!
{ sleep 5; kill $pid; } &
wait $pid
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Provided you isolate your function in a separate script, you can do it this way:

(sleep 1m && killall myfunction.sh) & # we schedule timeout 1 mn here
myfunction.sh
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