Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

This Bash snippet works as I would expect:

$ fun1() { x=$(false); echo "exit code: $?"; }
$ fun1
exit code: 1

But this one, using local, does not:

$ fun2() { local x=$(false); echo "exit code: $?"; }
$ fun2
exit code: 0

Can anyone explain this behavior?

share|improve this question
up vote 21 down vote accepted

The reason the code with local returns 0 is because $? "Expands to the exit status of the most recently executed foreground pipeline." Thus $? is returning the success of local

You can fix this behavior by separating the declaration of x from the initialization of x like so:

$ fun() { local x; x=$(false); echo "exit code: $?"; }; fun
exit code: 1
share|improve this answer
    
I usually prefer to define and use a variable in a single line, but yes this is an acceptable workaround. – tokland Dec 12 '10 at 10:59
2  
For the record, the problem is discussed in the BashPitfalls wiki: mywiki.wooledge.org/… – tokland Apr 10 '11 at 14:01

The return code of the local command obscures the return code of false

share|improve this answer
1  
Yeah, I understand it, but local being a special keyword I would expect not to obscure it. I guess it was a false assumption. – tokland Dec 12 '10 at 10:57
3  
It's not a "special keyword", it's a shell builtin. Even builtins have return values. – Ignacio Vazquez-Abrams Dec 12 '10 at 10:58
    
thanks @Ignacio, you are right, I'll have to check my scripts for wrong uses of "local VAR=$(command) || return 1" – tokland Dec 12 '10 at 11:02
    
Shellcheck can detect this problem (SC2155). – pjh Feb 26 at 20:50

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.