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So I have one bash script which calls another bash script. The second script is in a different folder.

script1.sh:
"some_other_folder/script2.sh"
# do something

script2.sh:
src=$(pwd) # THIS returns current directory of script1.sh...
# do something

In this second script it has the line src=$(pwd) and since I'm calling that script from another script in a different directory, the $(pwd) returns the current directory of the first script.

Is there any way to get the current directory of the second script using a simple command within that script without having to pass a parameter?

Thanks.

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marked as duplicate by George Stocker Jun 3 '13 at 12:01

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
This is a SO FAQ: Can a Bash script tell what directory it's stored in? –  devnull May 31 '13 at 6:16
    
One comment on terminology. Current working directory refers to the single runtime value for each process - the directory in which it is running (i.e. answering the question, where is "."). A better way to ask the question is, "how do I locate the directory from which the second script is being executed". –  ash Aug 22 '13 at 19:14
    
See also stackoverflow.com/questions/59895/…. –  ash Aug 22 '13 at 19:14
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2 Answers 2

up vote 1 down vote accepted

Please try this to see if it helps

loc=`dirname $BASH_SOURCE`
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Thanks, this worked ! –  Travv92 May 31 '13 at 5:35
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I believe you are looking for ${BASH_SOURCE[0]}, readlinkand dirname (though you can use bash string substitution to avoid dirname)

[jaypal:~/Temp] cat b.sh
#!/bin/bash

./tp/a.sh

[jaypal:~/Temp] pwd
/Volumes/Data/jaypalsingh/Temp

[jaypal:~/Temp] cat tp/a.sh
#!/bin/bash

src=$(pwd)
src2=$( dirname $( readlink -f ${BASH_SOURCE[0]} ) )
echo "$src"
echo "$src2"

[jaypal:~/Temp] ./b.sh
/Volumes/Data/jaypalsingh/Temp
/Volumes/Data/jaypalsingh/Temp/tp/
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