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This may seem like a silly question, but I've looked high and low for a solution and have not come up with one. I have a script that accepts a number of arguments and I simply wish to know how to have one argument and access the next immediate argument. I've tried stuff like $i+1 with no avail. This next argument will end up holding a destination directory, so I need to be able to access the contents. Also note that I am getting the argument position through a counter variable iterated in a loop, which is why I can't simply say $2 or something. I apologize for such a mundane question.

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3 Answers 3

up vote 2 down vote accepted
$ bash -c 'foo=1 ; echo ${@:$((foo+2)):1}' a b c d e f g
d
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This did the trick! Could you explain please what's going on after echo? Why do I need so many $ and the @? Also, what are the colons being used for? And the lone 1? Thank you so much! –  Newwisdom01 Apr 15 '12 at 0:32
    
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If i is a variable containing an integer, and you want the (i+1)st argument, you can do:

eval arg=\$$(( i + 1 ))

Now arg contains the argument you want

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It might not be applicable in your case, but if you are accessing the arguments sequentially, you could use the inbuilt shift command to shift through the arguments.

Doing shift with no argument will set $1 to $2, $2 to $3 and so on, discarding the old value of $1. Giving a numerical argument to shift will shift that many steps.

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