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Here's an example script that doesn't work the way I expect:

#!/bin/bash
for dynamic in a b c; do
  myvar=$dynamic

  export $myvar="hi"

  echo $(eval "$myvar")
  echo $dynamic
done

I want the output would be:

hi

a

hi

b

hi

c

Any ideas? I'm willing to stray away from this method, but I definitely want to be able to create a variable named from the output of an algorithm. In this case it's just a for loop.

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3 Answers 3

up vote 0 down vote accepted

It's not entirely clear that this is what you're looking for, but I think you want something like:

#!/bin/sh

a=A
b=B
c=C
for i in a b c; do
        eval $i=value_$i
        eval echo \$$i
done
echo $a  # Prints "value_a"
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Yes sir. You nailed it. Although I don't need any of the above declarations, a=A, etc... But that's essentially what I wanted. Interpreting the $ literally, then evaluting the echo of that plus the $i. Very clever. Thanks. –  Kevin Aug 18 '11 at 6:03

The following is the fix for your program. There are two things you got wrong: The first is you don't need '$' when declaring variables. The second is that calling eval will treat the content of myvar as a shell script. However you don't have "hi" defined anywhere as a command.

 for dynamic in a b c; do
     myvar=$dynamic

-    export $myvar="hi"
+    export myvar="hi"

-    echo $(eval "$myvar")
+    echo "$myvar"
     echo $dynamic
 done
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I think you're missing the purpose of the question. I think the OP wants something similar to PHP's variable variables. –  dreamlax Aug 18 '11 at 11:30

eval has a tendency to cause bugs, so avoid it whenever possible; in this case it's much cleaner to use indirect expansion with ${!metavariable}:

#!/bin/bash
for dynamic in a b c; do
  myvar=$dynamic

  export $myvar="hi"

  echo ${!myvar}
  echo $dynamic
done
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