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Normally when a parameter is passed to a shell script, the value goes into ${1} for the first paramater, ${2} for the second, etc.

How can I set the default values for these parameters, so if no parameter is passed to the script, we can use a default value for ${1}?

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4 Answers 4

up vote 8 down vote accepted

You can't, but you can assign to a local variable like this: ${parameter:-word} or use the same construct in the place you need $1. this menas use word if _paramater is null or unset

Note, this works in bash, check your shell for the syntax of default values

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1  
It also works in Bourne, Korn and POSIX shells, so it is widely usable. It does not work in C Shell derivatives, but then, sea shells are best left on the sea shore. –  Jonathan Leffler Jul 8 '11 at 19:05
1  
If an empty string can be a valid input, you have to use ${parameter-word} - It will not clobber empty strings. –  l0b0 Mar 27 '12 at 12:32

You could consider:

set -- "${1:-'default for 1'}" "${2:-'default 2'}" "${3:-'default 3'}"

The rest of the script can use $1, $2, $3 without further checking.

Note: this does not work well if you can have an indeterminate list of files at the end of your arguments; it works well when you can have only zero to three arguments.

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#!/bin/bash
MY_PARAM = ${1:-default}

echo $MY_PARAM
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Perhaps I don't understand your question well, yet I would feel inclined to solve the problem in a less sophisticated manner:

                     ! [[ ${1} ]]   &&   declare $1="DEFAULT"

Hope that helps.

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