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I am writing a bash script. It is menu driven.

For some reason, i use a case statement, and after all my options are printed, i use the * to capture anything else the user may type. but for some reason, my output is not being done.

Example:

while [ 1 ]; do
       if [ $MAIN_MENU -eq 1 ]; then
       printMainMenu
       read option
       case "$option" in
            "1" ) printDiskSpace;;
            "2" ) printFreeMemory;;
            "0" ) exit;;
            "*" ) echo "Input not understood.";;
       esac
       fi
done

Now what happens is when I use the menu, if i type 1, 2, or 0 it does the proper thing. but if i typed 55 for instance, it would just redisplay the menu without echoing "input not understood".

Am i missing something here?

Thanks!

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2 Answers 2

Use *) not "*") for Bash default cases.

So, in your example:

 *) echo "Input not understood.";;
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1  
I was entering my answer overlapping with you finding it already. Glad you got it working. –  Randy Howard Mar 12 '13 at 20:45
up vote 2 down vote accepted

I have found out that I needed to remove the quotes around the asterisk... wow.

Thanks for looking!

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1  
You don't need quotes at all except when handling strings with white spaces. –  nemo Mar 12 '13 at 20:43
2  
@nemo: Or strings like *, if you don't want them to be treated as patterns. :-) –  ruakh Mar 12 '13 at 20:44
    
@ruakh yeah, of course :) –  nemo Mar 12 '13 at 20:45
    
+1 self-answers are good for SO (even if you find it at the same time as someone else ;) –  msw Mar 13 '13 at 12:00

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