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I have simple script where first argument is reserved to filename, and all other optional arguments should be passed to other part of script.

Using Google I found this wiki but except provided literal example:

echo "${@: -1}"

I can't make anything else to work, like:

echo "${@:2}"

or

echo "${@:2,1}"

I get "Bad substitution" from terminal

So was wondering what's the problem, and thought to ask how to process all but first argument passed to bash script?

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4 Answers 4

up vote 88 down vote accepted

Try this:

echo "${*:2}"

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I just realised my shebang was bad: #!/usr/bin/env sh That's why I had problems. You example works fine, same as above provided, after I removed that shebang –  theta Jan 29 '12 at 22:36
50  
Use "${@:2}" instead -- using * runs all of the arguments together as a single argument with spaces, while @ preserves the breaks between them (even if some of the arguments themselves contain spaces). The difference isn't noticeable with echo, but it matters for many other things. –  Gordon Davisson Jan 30 '12 at 5:13
    
@GordonDavisson The whole point here is to run the arguments together. Were we passing filenames, you would be correct. echo is forgiving enough to concatenate them for you; other commands might not be so nice. Don't just use one or the other: learn the difference between * and @, and when to use each. You should be using them about equally. A good example of when this will be a problem: if $3 contains a line break (\n), it will be replaced with a space, provided you have a default $IFS variable. –  Zenexer May 10 '13 at 4:15
    
@Zenexer: As I understand it, the question was how to pass all but the first argument to "to other part of script", with echo just used as an example -- in which case they should not be run together. In my experience, situations where you want them run together are rare (see this question for one example), and "$@" is almost always what you want. Also, the problem you mention with a line break only occurs if $@ (or $*) isn't in double-quotes. –  Gordon Davisson May 10 '13 at 5:43
    
@GordonDavisson Hmm... you're right, now that I think about it; the line break shouldn't be an issue. I must have been thinking of something else. However, I still have to disagree about running them together; I need to use $* quite often in my scripts. –  Zenexer May 10 '13 at 12:26

If you want a solution that also works in /bin/sh try

shift
echo "$@"
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9  
+1: You should probably save $1 into a variable before shifting it away. –  glenn jackman Jan 30 '12 at 13:57
2  
Surprisingly foo=shift doesn't do what I'd expect. –  Keith Smiley Mar 3 '14 at 16:45

This is just calling out a comment in a response. I agree with Gordon Davisson, that you probably want to use "${@:2}".

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1  
This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. –  Barranka Jan 21 at 14:50

http://wiki.bash-hackers.org/scripting/posparams

It explains the use of shift (if you want to discard the first N parameters) and then implementing Mass Usage (look for the heading with that title).

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