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Is it possible to store stdout and stderr in different variables, without using a tempfile? Right now I do this to get stdout in out and stderr in err when running some_command, but I'd like to avoid the temp file.

error_file=$(mktemp)
out=$(some_command 2>$error_file)
err=$(< error_file)
rm $error_file
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This question includes my question, but does not answer it. –  ntc2 Jun 14 '12 at 6:24
1  
fwiw, it's possible in ksh93. ksh -c 'function f { echo out; echo err >&2; }; x=${ { y=$(f); } 2>&1;}; typeset -p x y' –  ormaaj Jun 14 '12 at 12:01
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@ormaaj: can you explain how the ksh93 technique works? You might need make it an answer. –  Jonathan Leffler Jun 14 '12 at 14:30
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4 Answers

up vote 4 down vote accepted

Ok, it got a bit ugly, but here is a solution:

unset t_std t_err
eval "$( (echo std; echo err >&2) 2> >(readarray -t t_err; typeset -p t_err) > >(readarray -t t_std; typeset -p t_std) )"

where (echo std; echo err >&2) needs to be replaced by the actual command. Output of stdout is saved into the array t_std line by line omitting the newlines (the -t) and stderr into t_err.

If you don't like arrays you can do

unset t_std t_err
eval "$( (echo std; echo err >&2 ) 2> >(t_err=$(cat); typeset -p t_err) > >(t_std=$(cat); typeset -p t_std) )"

which pretty much mimics the behavior of var=$(cmd) except for the value of $? which takes us to the last modfication:

unset t_std t_err t_ret
eval "$( (echo std; echo err >&2; exit 2 ) 2> >(t_err=$(cat); typeset -p t_err) > >(t_std=$(cat); typeset -p t_std); t_ret=$?; typeset -p t_ret )"

Here $? i preserved into $t_ret

Tested on Debian wheezy using GNU bash, Version 4.2.37(1)-release (i486-pc-linux-gnu)

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Good work! I tried to abstract your answer into a shell function, but its behaviour confuses me: eval "eval \"\$@\" 2> >($err=\$(cat); typeset -p $err) 1> >($out=\$(cat); typeset -p $out) ; \\echo \(exit \$?\)" results in the printing happening in opposite the expected order, i.e. it produces (exit <exit code>); declare -- <out variable>=<std out>; declare -- <err variable>=<std err> ??? –  ntc2 Aug 7 '13 at 21:57
    
That is why I would handle return the same way. Try eval "$( eval "$@" 2> >(t_err=$(cat); typeset -p t_err) > >(t_std=$(cat); typeset -p t_std); t_ret=$?; typeset -p t_ret )"; exit $t_ret –  TheConstructor Aug 9 '13 at 5:20
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Jonathan has the answer. For reference, this is the ksh93 trick. (requires a non-ancient version).

function out {
    echo stdout
    echo stderr >&2
}

x=${ { y=$(out); } 2>&1; }
typeset -p x y # Show the values

produces

x=stderr
y=stdout

The ${ cmds;} syntax is just a command substitution that doesn't create a subshell. The commands are executed in the current shell environment. The space at the beginning is important ({ is a reserved word).

Stderr of the inner command group is redirected to stdout (so that it applies to the inner substitution). Next, the stdout of out is assigned to y, and the redirected stderr is captured by x, without the usual loss of y to a command substitution's subshell.

It isn't possible in other shells, because all constructs which capture output require putting the producer into a subshell, which in this case, would include the assignment.

update: Now also supported by mksh.

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Thanks. The key point is that ${ ... } is not a sub-shell, which leaves the rest readily explicable. Neat trick, as long as you've got a ksh to use. –  Jonathan Leffler Jun 23 '12 at 20:17
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This is not an answer to the question. The question is about the bash, whereas your answer is valid on ksh. –  mshamma Jul 21 '12 at 1:11
    
@mshamma Obviously. Read the last paragraph. –  ormaaj Jul 21 '12 at 1:24
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Succinctly, I believe the answer is 'No'. The capturing $( ... ) only captures standard output to the variable; there isn't a way to get the standard error captured into a separate variable. So, what you have is about as neat as it gets.

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I think you're right. If there's a solution that doesn't involve tmp files, named pipes, or /proc exploitation, it's eluded even my bizarre techniques. Somehow intuition keeps telling me that some pattern of recursion, process substitution, pipes, and redirects can hack around it. If so it isn't obvious to me. –  ormaaj Jun 14 '12 at 11:57
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A bit obvious perhaps, but you can just run some_command twice if it has no stateful side effects. I've done this for code that runs during a boot sequence--when I don't know if the disk is going to be working. In my case it was a tiny some_command so there was no performance hit for running twice, and the command had no substantial side effects. The main benefit of this approach is that it's clean and easy to read. The solutions here are quite clever, but I would hate to be the one that has to maintain a script containing the more complicated solutions. I'd recommend the simple run-it-twice approach if your scenario works with that, it's much cleaner and easier to maintain.

Example:

output=$(getopt -o '' -l test: -- "$@")
errout=$(getopt -o '' -l test: -- "$@" 2>&1 >/dev/null)
if [[ -n "$errout" ]]; then
        echo "Option Error: $errout"
fi

This is "safe" to do because getopt has no side effects. This is performance-safe because the parent code calls this bit less than 100 times during the entire program, and the user will never notice 100 getopt calls vs 200 getopt calls. There is no effect if there's no stderr, but if there is stderr I can handle it any way I wish

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Could you give an example? I'm guessing something like out=$(some_command) and err=$(some_command 2>&1 1>/dev/null)? –  ntc2 Jun 19 at 2:51
    
Done! Good thought... –  Hamy Jun 19 at 6:14
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