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When I need to get path to the script file inside script itself I use something like this:

`dirname $0`

that works file until I call the script through sym link to it. In that case above code prints the location of the link instead the original file.

Is there a way to get the path of the original script file, not the link?

Thanks, Mike

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Ok. I have found the answer here: stackoverflow.com/questions/7665/… –  Ma99uS May 28 '09 at 13:42

4 Answers 4

up vote 5 down vote accepted
if [ -L $0 ] ; then
    DIR=$(dirname $(readlink -f $0)) ;
else
    DIR=$(dirname $0) ;
fi ;
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In case when readlink is not available the answer is here: stackoverflow.com/questions/7665/… –  Ma99uS May 28 '09 at 13:43

You really need to read the following BashFAQ article:

The truth is, the $0 hacks are NOT reliable, and they will fail whenever applications are started with a zeroth argument that is not the application's path. For example, login(1) will put a - in front of your application name in $0, causing breakage, and whenever you invoke an application that's in PATH $0 won't contain the path to your application but just the filename, which means you can't extract any location information out of it. There are a LOT more ways in which this can fail.

Bottom line: Don't rely on the hack, the truth is you cannot figure out where your script is, so use a configuration option to set the directory of your config files or whatever you need the script's path for.

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Thanks for the detailed answer. I will check out the FAQ. –  Ma99uS May 28 '09 at 18:22

Use readlink for that:

readlink -f "$0"
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Dir=$(dirname $(readlink -f "$0"))
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