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I have the following bash script.

export KEY=A
run_command_that_uses_KEY
...
export KEY=B
run_command_that_uses_KEY

export exports the variable assignment to sub-shells, i.e. shells which are started as child processes of the shell containing the export directive. The command-line environment is the parent of the script's shell, so it does not see the variable assignment. How can I force the parent shell to export the correct key? Can I source the bash script in the bash script itself or something?

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You seem to be making a sharp turn when you get to "How can I force the parent shell...". What are you trying to do? –  Tom Zych Jun 11 at 23:05
    
The second run_command_that_uses_KEY still gets A instead of B. –  Sten Kin Jun 11 at 23:06
    
Are you sure that's what's happening? It should get B. In fact, you only have to use export the first time; after that, the shell knows it's exported, and changes will be exported. –  Tom Zych Jun 11 at 23:13

1 Answer 1

up vote 3 down vote accepted

This is not a problem with your variables not being exported. You can trivially verify that this works correctly from the bash side:

export KEY=A
bash -c 'echo $KEY'
export KEY=B
bash -c 'echo $KEY'

The problem in your case is more likely that your program is single instance.

If you try the above with firefox or gedit, you'll find that variables work the first time but not the second time.

This is because the first time, the program starts from scratch, while the second time, it just sends the old process a message to open a new window.

You can try killing all the processes related to the task before invoking it again.

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That was it the run_command_that_uses_KEY was still get the B, but the env KEY was B, killed it right before and that worked. –  Sten Kin Jun 11 at 23:33

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