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I want to declare a variable who's name comes from the value of another variable, and I wrote the following piece of code:


but it didn't work. what's the right way to let this job done?

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6 Answers 6

eval is used for this, but if you do it naively, there are going to be nasty escaping issues. This sort of thing is generally safe:


eval $name_of_variable="simpleword"   # abc set to simpleword

This breaks:

eval $name_of_variable="word splitting occurs"

The fix:

eval $name_of_variable="\"word splitting occurs\""  # not anymore

The ultimate fix: put the text you want to assign into a variable. Let's call it safevariable. Then you can do this:

eval $name_of_variable=\$safevariable  # note escaped dollar sign

Escaping the dollar sign solves all escape issues. The dollar sign survives verbatim into the eval function, which will effectively perform this:

eval 'abc=$safevariable' # dollar sign now comes to life inside eval!

And of course this assignment is immune to everything. safevariable can contain *, spaces, $, etc. (The caveat being that we're assuming name_of_variable contains nothing but a valid variable name, and one we are free to use: not something special.)

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You could make use of eval for this.

$ a="bbb"
$ eval $a="ccc"
$ echo $bbb

Hope this helps!

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This might work for you:

declare $foo=baz
echo $bar

or this:

read $foo <<<"baz"
echo $bar
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correct, better to use declare over eval (security reasons) – meso_2600 Apr 10 at 13:48

If you want to get the value of the variable instead of setting it you can do this

eval temp_var=\$$var_name1
echo "$temp_var"

You can read about it here indirect references.

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You can use declare and !, like this:

John="nice guy"
echo ${!programmer} # echos nice guy

Second example:

declare $programmer="nice gal"
echo $Ines # echos nice gal
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You can assign a value to a variable using simple assignment using a value from another variable like so:


#variable one

echo "Variable a is $a"
#variable two with a's variable

echo "Variable b is $b"

#change a
echo "Variable a is $a"
echo "Variable b is $b"

The output of that is this:

Variable a is one
Variable b is one
Variable a is two
Variable b is one

So just be sure to assign it like this b="$a" and you should be good.

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The question is how to indirect upon computed variable names, now how to assign expressions fixed variables. – Kaz Mar 15 '12 at 7:07

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