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I've created a script that removes all zero-length files from a directory.

#!/bin/bash

find . -size 0 -type f -exec rm -i '{}' \;

It works well, except that it only works in the directory the script is actually located in and its sub-directories. I want to be able to use a directory as a command line argument (bash scriptname dirname) while executing the script and have it only search that directory and it's sub-directories, not the actual directory the script is located in. Is there a way to do this?

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2  
hint: check what arguments find accepts and what . means –  Marcin Orlowski May 10 '14 at 8:12

3 Answers 3

With $x you can access the x-th command line argument of your bash script. So in your case this should be something like

 find $1 -size 0 -type f -exec rm -i '{}' \;
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Can't believe I missed that. Wouldn't $* by a better option than $1? Wouldn't that search all directories submitted as command line arguments? –  user3598616 May 10 '14 at 8:14

In Bash you can pass argument to your script. These argument can be used using $ sign. For example:

./hello 123 abc xyz 

here $0 is your program name $1 is 123 and so on

You can pass values and use them in your program from $1 to $9.

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If your version of find accepts multiple paths, you can pass all the positional parameters like this:

find "$@" -size 0...

Note: you should not use $* for file names! it expands parameters into a string, so any file names with spaces or new lines in will break the command. "$@" preserves these, so is safe to use for this. If find doesn't accept multiple paths, you can loop over the parameters like this:

for dir in "$@"; do
    find "$dir" -size 0...
done
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