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When I pass in 2009 as a arg to this shell function it returns 0, why?

isyear()
{
	case $arg in
		[0-9][0-9][0-9][0-9])	NUM=1	;;
		*)			NUM=0	;;
	esac
	echo $arg
}
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4 Answers 4

You likely mean $1 instead of $arg. $arg isn't defined anywhere and $1 is the first argument to the function.

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Do you mean to use return instead of echo?

  return [n]
         Causes  a function to exit with the return value specified by n.
         If n is omitted, the return status is that of the  last  command
         executed  in the function body.
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The only problem with using return is that it will only return values in the range 0-255. That's why echo is often used. In the case of this question, however, it's sufficient. –  Dennis Williamson Nov 28 '09 at 21:09
1  
and he probably wants return $NUM anyway –  glenn jackman Nov 29 '09 at 3:12

Nevermind, it should be $1 and not $arg and echo $NUM.

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1  
you know, you can edit your question. –  glenn jackman Nov 29 '09 at 3:13

Two typos: First of all you need to use $1 not $arg to get the first parameter of the function. Secondly I think you meant to echo $NUM rather than the passed-in argument!

isyear() {
      case $1 in
              [0-9][0-9][0-9][0-9])   NUM=1   ;;
              *)                      NUM=0   ;;
      esac
      echo $NUM 
}

You might also consider reworking it like this:

#!/bin/bash

isyear() {
    case $1 in
          [0-9][0-9][0-9][0-9])   return 1 ;;
          *)                      return 0 ;;
    esac
}

isyear cheese
if [ "$?" -eq "1" ]; then
  echo "Yes, it is a year!"
else
  echo "Darn!"
fi

isyear 2009
if [ "$?" -eq "1" ]; then
  echo "Yes, it is a year!"
else
  echo "Darn!"
fi
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