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I need to capture the output and error of a command in my bash script and know whether the command succeeded or not.

At the moment, I am capturing both like this:

output=$(mycommand 2>&1)

I then need to check the exit value of mycommand. If it failed, I need to do some stuff with the output, if the command succeeded, I don't need to touch the output.

Since I am capturing the output, checking $? is always a 0 since bash succeeded at capturing the output into the variable.

This is a very time sensitive script, so we are trying to avoid any slower solutions like outputting to a file and re-reading it in.

If I could capture stdout to one variable and stderr to another, that would solve my problem because I could just check if the error variable was empty or not.

Thanks.

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3  
See BashFAQ/002 and BashFAQ/047. –  Dennis Williamson Sep 3 '10 at 3:29
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2 Answers

up vote 7 down vote accepted

What version of bash are you using? The capture of the output has zero effect on the return code with my version, 4.1.5:

pax> false; echo $?
1
pax> echo $?
0
pax> x=$(false 2>&1) ; echo $?
1

It's not always a good idea to rely on standard error being non-empty to detect errors. Many programs don't output errors but rely solely on the return code.

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I forgot to mention that I pipe the output of my command to another. Although I can do that after wards in a separate command. Thanks. –  mhost Sep 3 '10 at 3:35
1  
Caution! Having local x=$(false 2>&1) ; echo $? or set x=$(false 2>&1) ; echo $? (note local/set at the begining) outputs 0 not 1 as the last command run is local/set. –  Piotr Dobrogost Jun 18 '13 at 10:38
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The problem only seems to manifest when the output is captured to a local variable within a function:

$ echo $BASH_VERSION
3.2.48(1)-release
$ false; echo $?
1
$ echo $?
0
$ x=$(false 2>&1) ; echo $?
1
$ function f {
> local x=$(false 2>&1) ; echo $?
> }
$ f
0
$ function g {
> x=$(false 2>&1) ; echo $?
> }
$ g
1

Notice that only function f, which captures x to a local, can express the behavior. Particularly, function g which does the same thing, but without the 'local' keyword, works.

One can therefore not use a local variable, and perhaps 'unset' it after use.

EDIT NVRAM points out that the local declaration can be made beforehand to avoid the issue:

$ function h {
>   local x
>   x=$(false 2>&1) ; echo $?
> }
$ h
1
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Very interesting! This happens in bash as well as dash (posix) shell. –  Gregor Oct 19 '11 at 15:00
2  
Actually $? is set for the local variable declaration, if you simply declare it by itself, then assign it on a separate line it will work as you want. In other words, add local x above your line with x= –  NVRAM Jan 31 '12 at 16:30
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