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Hi everyone I'm currently having a difficult time writing a command in a bash script file that when it runs will display the directories in my search path in the order they appear.

I've tried the following:

SEARCH_PATH=$( $PATH | tr ':'  '\n')
echo $SEARCH_PATH

but once I execute the file it comes back with nothing

I've also tried this:

BASEDIR=$(dirname $0)
echo $BASEDIR

to be honest I found the above code from elsewhere and was confused to what dirname is and how the arguement $0 affects it

Any help is appreciated!

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You're missing the echo command in your first command:

search_path=$(echo "$PATH" | tr ':' '\n')
echo "$search_path"

There's not really any reason to use the variable, you can just do:

echo "$PATH" | tr ':' '\n'

Your code was trying to use the value of $PATH as a command to execute.

You should also avoid using uppercase names for shell variables, the convention is that these names are reserved for environment variables.

| improve this answer | |
  • Ifor some reason it still doesn't print with each new line so I had to search the net and came to find that I had to use the following at the top of my shell script: IFS= $ IFS= $ a=$(cat links.txt) $ echo "$a" link1 link2 link3 – Nathan Barnes Nov 9 '17 at 19:19
  • Thank you for the wisdom much appreciated! – Nathan Barnes Nov 9 '17 at 19:21
  • If you want each directory on a different line, put quotes around $search_path. – Barmar Nov 9 '17 at 19:32

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