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I am wondering how arguments given to a function in bash can be properly "forwarded" to another function or program.

For example, in Mac OS X there is a command line program open (man page) that will open the specified file with its default application (i.e. it would open a *.h file in Xcode, or a folder in Finder, etc). I would like to simply call open with no arguments to open the current working directory in Finder, or provide it the typical arguments to use it normally.

I thought, "I'll just use a function!" Hah, not so fast there, I suppose. Here is what I've got:

function open
{
    if [ $# -eq 0 ]; then
        /usr/bin/open .
    else
        /usr/bin/open "$*"
    fi
}

Simply calling open works great, it opens the working directory in Finder. Calling open myheader.h works great, it opens "myheader.h" in Xcode.

However, calling open -a /Applications/TextMate.app myheader.h to try to open the file in TextMate instead of Xcode results in the error "Unable to find application named ' /Applications/TextMate.app myheader.h'". It seems passing "$*" to /usr/bin/open is causing my entire argument list to be forwarded as just one argument instead.

Changing the function to just use usr/bin/open $* (no quoting) causes problems in paths with spaces. Calling open other\ header.h then results in the error "The files /Users/inspector-g/other and /Users/inspector-g/header.h do not exist", but solves the other problem.

There must be some convention for forwarding arguments that I'm just missing out on.

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1 Answer 1

up vote 7 down vote accepted

You indeed missed "$@", which is designed for this case.

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Worked like a charm, thank you much. There are just so many of those $ vars! –  inspector-g Apr 20 '12 at 1:42
    
Indeed $* works when you have to forward arguments inside a string (e.g. mosel -s -c "exec $*") –  Aurélien Ooms Jun 15 at 14:47

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