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I use a script that extends using the bash source feature;



I would like to be able to return from that script, without breaking the main script.

Using exit breaks the main script, return is only valid in functions and experimenting with $(exit 1) does not seem to work either.

So, is it possible to return in a sub-bash script without breaking the main bash?

Any help appreciated!

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Answer of paxdiablo is perfect and should be accepted. – Tino Apr 22 '14 at 2:42

2 Answers 2

up vote 34 down vote accepted

You need the return statement:

return [n]
          Causes a function to exit with the return value specified by n. If n is omitted, the return status is that of the last command executed in the function body. If used outside a function, but during execution of a script by the . (source) command, it causes the shell to stop executing that script and return either n or the exit status of the last command executed within the script as the exit status of the script. If used outside a function and not during execution of a script by ., the return status is false. Any command associated with the RETURN trap is executed before execution resumes after the function or script.

You can see this in action with the following two scripts:
    echo hello again
    echo hello
    echo goodbye

When you run, you see:

hello again
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How could I have missed this? Thanks a lot for your reply. – codar Sep 8 '10 at 11:11
Do note that you should return 0 explicitly by default if you can. Not doing so can cause undesired behaviour in the parent script. i.e. [ -z "non-existant-file" ] && return will actually return 1. – Brett Ryan Aug 3 '12 at 8:50
@BrettRyan: Please do not confuse our dear beginners: It should read [ -z "empty" ] || return as: [ -z "x" ] && return; true gives true because the return is skipped, while [ -z "x" ] || return; true actually executes the return and gives the expected false sideeffect you wanted to warn about. – Tino Apr 22 '14 at 2:37
@Tino I think you may have been the one providing confusion :) The result of the statement is precisely what I was warning against. As I said in my comment - "will actually return 1". You are incorrect with your evaluation, try this in the shell [ -z "x" ] && echo "Test", you will get nothing because you need [ -z "x" ] || echo "Test". The semantics are that the RHS of || is evaluated while the LHS is false, it's the opposite for &&. – Brett Ryan Apr 22 '14 at 2:55
@BrettRyan perhaps we disagree what return means. For me return means: "executes the return command", while your return means "sets $? to value" (I call this "gives"). So [ -z "nonempty" ] && return will not return 1 (my return) and return 1 (your return), while [ -z "nonempty" ] || return will return 1 (my return) and return 1 (your return). I call this confusion ;) – Tino Apr 28 '14 at 15:43

Is it important that you can change environment variables? Since otherwise you can just execute the script by executing it without source:
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