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I am encountering a strange problem with my 64bit Ubuntu - on the export command.

Basically, I have got a VM installation on Ubuntu on my Win7, and I am trying to pass commands from my windows to my VM installation using a custom (given by client) software.

So, on my VM, when I do:

export foo=bar
echo $foo

everything works as expected.

However, when I do the same through the custom software (which basically passes the linux command as a string to the bash shell), I get:

export: command not found

I tried looking at the shell (using the custom software), using:

echo $SHELL>shell.txt

and I get /bin/bash which is expected and I still get the export: command not found error.

I was wondering if anyone had seen this error before?

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5  
export isn't a real command (i.e. not in /bin, /usr/bin etc.) it's handled by bash internally. You could do bash -c "export foo=bar;echo \$foo" if you wanted to... –  Adam Apr 11 '12 at 15:23
    
What is this custom software you speak of? –  Captain Giraffe Apr 11 '12 at 15:23
    
What Adam says might be the key to your problem. export is a bash builtin. echo is a binary that resides in your $PATH –  ArjunShankar Apr 11 '12 at 15:24
    
What is the 'custom (given by client)' software? –  ArjunShankar Apr 11 '12 at 15:25
    
Thanks you guys for your response. The "custom software" is a bunch of java code my client has written, and it contains a feature to run linux commands (basically passes the commands as a string to shell). I will try the bash -c option and update you guys with the result. –  JohnJ Apr 11 '12 at 15:28

5 Answers 5

up vote 10 down vote accepted

export is a Bash builtin, echo is an executable in your $PATH. So export is interpreted by Bash as is, without spawning a new process.

You need to get Bash to interpret your command, which you can pass as a string with the -c option:

bash -c "export foo=bar; echo \$foo"

ALSO:

Each invocation of bash -c starts with a fresh environment. So something like:

bash -c "export foo=bar"
bash -c "echo \$foo"

will not work. The second invocation does not remember foo.

Instead, you need to chain commands separated by ; in a single invocation of bash -c:

bash -c "export foo=bar; echo \$foo"
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Are you certain that the software (and not yourself, since your test actually only shows the shell used as default for your user) uses /bin/bash ?

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Probably because it's trying to execute "export" as an external command, and it's a shell internal.

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SHELL is an environment variable, and so it's not the most reliable for what you're trying to figure out. If your tool is using a shell which doesn't set it, it will retain its old value.

Use ps to figure out what's really going on.

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change from bash to sh scripting, make my script work.

!/bin/sh

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