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How would you write a shell script that prints all the additional arguments passed to it in reverse order?

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How would you write a shell script that prints all the additional arguments passed to it in reverse order?
posted Feb 18, 2016 by Mohammed Hussain

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1 Answer

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for (( i = ${#}; i > 0; i-- )); do
        echo ${!i}
done

The arguments are available as $, where n is the position of the argument. For example, $0 would give the name of the script, $1 would give the first additional argument, $2 the second, and so on. The total number of additional arguments is found in $#.

A loop that starts at $# and ends at 1 can be used to print each additional argument in reverse order.

answer Feb 25, 2016 by Manikandan J
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