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I'm writing a bash shell script. There's a required first argument and I want to have an optional second argument.

If the second argument is omitted I want it to use the value of the first argument.

Currently I have:

SOMEVAR=${2:-Untitled}

How can I use something like basename $1 instead of Untitled?

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PS: You might want to use ${2-Whatever} (without the ":") to check that $2 is undefined not empty or undefined. –  l0b0 Jul 19 '11 at 11:26

2 Answers 2

up vote 8 down vote accepted

You can just do something like SOMEVAR=${2:-$(basename "$1")}. You can do any shell or variable in the optional part.

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Just use command substitution: $(basename $1), literally instead of Untitled.

However, bash also has the ability to do this without an external process: ${1##*/}

SOMEVAR=${2:-${1##*/}}
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The problem with using ${1##*/} shell expansion is that it is not an all encompassing replacement for basename. basename does more than just find the last '/' character. –  Norcalli Jul 19 '11 at 10:00
    
So ${1##*/} is equivalent to $(basename $1)? –  alfonso Jul 19 '11 at 10:01
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No, ${1##*/} isn't equivalent to $(basename $1). For example, if you had dir=/ and tried ${dir##*/}, you would get nothing, whereas $(basename "$dir") would give you /. –  Norcalli Jul 19 '11 at 10:19

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