Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm writing a small bash script and I'm trying to create a directory by this:

mkdir ~/deploy.$1

I would think it should produce deploy.scriptFoo or what ever the valuable of $1 is.

It's only producing "deploy." and leaving off the $1 variable. I have tested the $1 variable in the output and I am positive it is being passed into the script. Any ideas?

share|improve this question
6  
Forgive a very basic question, but are you calling the script with scriptFoo as its first argument: ./myscript scriptFoo ? What happens if you change the line to echo mkdir ~/deploy.$1 ? –  Adam Liss Jun 24 '12 at 10:37
1  
It works for me. Show the rest of the script and how you're calling it plus the output of the echo that Adam Liss suggests. –  Dennis Williamson Jun 24 '12 at 13:36

1 Answer 1

The Problem

The $1 position parameter is the first argument to your script, not the name of the script itself.

The Solution

If you want the script name, use $0. For example, given this sample script stored in /tmp/param_test.sh:

#!/bin/bash
mkdir "/tmp/deploy.$(basename "$0" .sh)"
ls -d /tmp/deploy*

the script ignores any arguments, but correctly returns the following output:

/tmp/deploy.param_test

If you want to vary the name, then you have to use a positional parameter in your script and call the script with an argument. For example:

#!/bin/bash
mkdir "/tmp/deploy.$1"
ls -d /tmp/deploy*

On the command line, you pass the argument to your script. For example:

$ bash /tmp/param_test.sh foo
/tmp/deploy.foo

See Also

http://www.gnu.org/software/bash/manual/bashref.html#Positional-Parameters

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.