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I want to create a variable with its name partly dynamic and export it from my bash shell script. I have been trying to do it the following way. No success though. Please tell me where I am wrong.

echo $var
export $var='1'

execution command

bash <filename>.sh

I am hoping the script would create an environmental variable like METASTORE_JDBC_DRIVER_8769 and I should be able to use that out of the script but when I do echo $METASTORE_JDBC_DRIVER_8769 outside the script, doesn't give me anything. Any suggestions/ideas are welcomed.

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2 Answers 2

up vote 2 down vote accepted

Export exports variables into the current shell context. By running your script with bash it gets set in that shell's context. You need to source the file to have it run in the current shell context.

source <filename>.sh

Just to show the difference between a sub-shell and source:

[nedwidek@yule ~]# bash
[nedwidek@yule ~]# env |grep META
[nedwidek@yule ~]# source
[nedwidek@yule ~]# env |grep META
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yup..just read that from somewhere else...thanks a lot... – Nitin Jan 28 '13 at 17:34

Bash version 2 introduced the much more intuitive notation ${!var} for dynamically created variable names (a.k.a "indirect referencing")...


echo "a = $a"           # Direct reference.

echo "Now a = ${!a}"    # Indirect reference.  (a = z)
#  The ${!variable} notation is more intuitive than the old
#+ eval var1=\$$var2

For details and examples, see

For details and examples using the more well-known eval var1=\$$var2 technique, see

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What you say is accurate as far as it goes, but it would be better if your examples ended up addressing the problem shown in the question (as well as, or instead of, the example you devised). – Jonathan Leffler May 6 '13 at 6:39
And that's why Erik's answer was accepted over mine. Point taken for the future. Thanks. – DocSalvager Apr 25 '14 at 21:56

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