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I am creating a Bash script which reads some other environment variables:

echo "Exporting configuration variables..."
while IFS="=" read -r k v; do

    if [[ ${#key} > 0 && ${#value} > 0 ]]; then
        export $key=$value
done < $HOME/myfile

and have the variable:


and want to call $a as in:

cp myOtherFile $a

The result for the destination folder for the copy is "$b/c/d/e", and an error is shown:

"$b/c/d/e" : No such file or directory

because it is interpreted literally as a folder path.

Can this path be reinterpreted before being used in the cp command?

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The standard solution to this is eval, but the standard solution also comes with the caveat that using eval opens up all kinds of security implications and code maintainability hassles. If you can, rethink your solution so it doesn't require eval. See e.g.… for a discussion. – tripleee Oct 1 '12 at 15:18
possible duplicate of how to use a variable's value as other variable's name in bash – tripleee Oct 1 '12 at 15:20

3 Answers 3

up vote 1 down vote accepted

You need eval to do this :

$ var=foo
$ x=var
$ eval $x=another_value
$ echo $var

I recommend you this doc before using eval :

And a safer approach is to use declare instead of eval:

declare "$x=another_value"

Thanks to chepner 2 for the latest.

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No need for eval in bash just to declare a variable. declare "$x=value" is sufficient. – chepner Oct 1 '12 at 15:51
Thanks to mention that, I edit my POST – Gilles Quenot Oct 1 '12 at 18:01

It sounds like you want $HOME/myfile to support Bash notations, such as parameter-expansion. I think the best way to do that is to modify $HOME/myfile to be, in essence, a Bash script:

export a=$b/c/d/e

and use the source builtin to run it as part of the current Bash script:

source $HOME/myfile
... commands ...
cp myOtherFile "$a"
... commands ...
share|improve this answer

try this

cp myOtherFile `echo $a`
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