12

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}?

13

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

  • 2
    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
  • 2
    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
9

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.

4
#!/bin/sh
MY_PARAM=${1:-default}

echo $MY_PARAM
0

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.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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