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I've found example script for using getopt command in shell.

#!/bin/bash
args=$(getopt ab $*)
set -- $args
for i;
do
    case "$i" in
    -a)shift; echo "it was a";;
    -b)shift; echo "it was b";;
esac;
done

It work well, but I don't understand where is variable $i assigned. How it knows that it must iterate through $arg. Can you explain this?

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The bash man page can, under the description of the for loop. –  chepner Apr 19 '13 at 11:54

1 Answer 1

up vote 4 down vote accepted

As shown here, for defaults to $@ if no in seq is given. The for i assigns your $i variable.

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