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I started using set -e in my bash scripts, and discovered that short form of conditional expression breaks the script execution.

For example the following line should check that $var is not empty:

[ -z "$var" ] && die "result is empty"

But causes silent exit from script when $var has non-zero length.

I used this form of conditional expression in many places...

What should I do to make it run correctly? Rewrite everything with "if" construction (which would be ugly)? Or abandon "set -e"?

Edit: Everybody is asking for the code. Here is full [non]working example:

#!/bin/bash
set -e

function check_me()
{
    ws="smth"
    [ -z "$ws" ] && echo " fail" && exit 1
}

echo "checking wrong thing"
check_me
echo "check finished"

I'd expect it to print both echoes before and after function call. But it silently fails in the check_me function. Output is:

checking wrong thing
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Where did you use set -e? show the full code. –  shiplu.mokadd.im Mar 27 '12 at 8:46
    
What you describe should not happen (and I can't repro). This is specifically listed as a case where the shell does not exit in the man page. –  Mat Mar 27 '12 at 8:49
    
It might be the usage which makes sense here. i've added a sample script(complete). –  LiMar Mar 27 '12 at 9:09

3 Answers 3

up vote 4 down vote accepted

Use

[ -n "$var" ] || die "result is empty"

This way, the return value of the entire statement is true if $var is non-empty, so the ERR trap is not triggered.

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@LiMar: do you expect a function called die to ever return? –  ams Mar 27 '12 at 9:26
    
@ams: No I do not. It's just a wrapper around "echo" followed by "exit 1" –  LiMar Mar 27 '12 at 9:30
1  
@LiMar: so, if the test returns false, it will call die, and everything will work as expected. If the tests returns true, then the script will continue. I don't see your problem here? –  ams Mar 27 '12 at 9:33

I'm afraid you will have to rewrite everything so no false statements occur.

The definition of set -e is clear:

-e Exit immediately if a simple command (see SHELL GRAMMAR above) exits with a non-zero status. The shell does not exit if the command that fails is part of the command list immediately following a while or until keyword, part of the test in an if statement, part of a && or || list, or if the command's return value is being inverted via !. A trap on ERR, if set, is executed before the shell exits.

You are using the "optimization" system of Bash: because a false statement will cause an AND (&&) statement never to be true, bash knows it doesn't have to execute the second part of the line. However, this is a clever "abuse" of the system, not intended behaviour and therefore incompatible with set -e. You will have to rewrite everything so it is using proper ifs.

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You should write your script such that no command ever exits with non-zero status.

In your command [ -z "$var" ] can be true, in which case you call die, or false in which case -e does it's thing.

Either write it with if, as you say, or use something like this:

[ -z "$var" ] && die "result is empty" || true

I'd recommend if though.

share|improve this answer
    
As @I0b0 says, there's a prettier way for this specific example, but the above will work for anything. –  ams Mar 27 '12 at 9:16
    
Be very wary of that approach. In this case it might work, but it's tricky to know what the effect will be if the commands are non-trivial. –  l0b0 Mar 27 '12 at 9:21
    
That's why I recommend if. –  ams Mar 27 '12 at 9:25

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