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I have set a variable MY_HOME and I have also exported it. So exporting it should make it visible to all child processes.

I have the following script.

echo "MY_HOME:" $MY_HOME
if [ "$MY_HOME" = "" ];
then
    echo "ENVIRONMENT VARIABLE NOT SET"
    echo "READ THE DOCUMENTATION FOR THE ERROR"
    exit 0 
fi

This script is invoked from the shell in which I exported the MY_HOME variable. But it seems that MY_HOME is not initialized. Why is it so?

My learning is that, exporting should make the variable visible to child processes. And ./script spawns a subshell which is a child of current shell.

Am I missing something? Why is this not working for me?

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Try saying echo $MY_HOME from the command line. What does it say? –  devnull Sep 16 '13 at 5:41
    
@devnull It displays the contents if I echo from the command line. It is really weird. First of all, is my understanding of the export and child processes, as mentioned above in the question, correct?? –  shar Sep 16 '13 at 5:43
    
@devnull Forgot to mention that, I run the script with sudo permission. The sudo command would produce a sub shell and executing a script in it would create a sub-sub-shell. But in that case too, all the two shell would receive the variable from its ancestor shell, right? –  shar Sep 16 '13 at 5:47

1 Answer 1

up vote 3 down vote accepted

Your comment says that you're executing the script using sudo.

Specify the -E option to sudo while executing the script.

   -E          The -E (preserve environment) option indicates to the
               security policy that the user wishes to preserve their
               existing environment variables.  The security policy may
               return an error if the -E option is specified and the user
               does not have permission to preserve the environment.
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