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I am not looking for a different way to accomplish the apparent intention. I'm looking to understand why this exact syntax is not working.

[root@lvs ~]# while true;do
> echo "Would you like the script to check the second box ([y]n)?"
> read ans
>         if [ "$ans" == "n" ];then
>                 echo
>                 echo "bye"
>                 exit
>         elif [ "$ans" != "" -o "$ans" != "y" ];then
>                 echo "Invalid entry..."
>         else
>                 break
>         fi
> done
Would you like the script to check the second box ([y]n)? **"Should have continued"**

Invalid entry...
Would you like the script to check the second box ([y]n)? **"Should have continued"**
y
Invalid entry...
Would you like the script to check the second box ([y]n)? **"Correct behavior"**
alskjfasldasdjf
Invalid entry...
Would you like the script to check the second box ([y]n)? **"Correct behavior"**
n

bye

Here's a reference that's identical to so many others i found. I understand what it's doing, it's using the non logical's for AND and OR when everything I've read said that it should be using logical bools.

http://www.groupsrv.com/linux/about140851.html

Ok so here it is, with Nahuel's suggestion behaving how I had originally expected it to:

[root@lvs ~]# while true;do
> echo "Would you like the script to check the second box ([y]n)?"
> read ans
>         if [ "$ans" = "n" ];then
>                 echo
>                 echo "bye!"
>                 exit
>         elif [ "$ans" != "" -a "$ans" != "y" ];then
>                 echo "Invalid entry..."
>         else
>                 break
>         fi
> done
Would you like the script to check the second box ([y]n)?
asdfad
Invalid entry...
Would you like the script to check the second box ([y]n)?

[root@lvs ~]# while true;do
> echo "Would you like the script to check the second box ([y]n)?"
> read ans
>         if [ "$ans" = "n" ];then
>                 echo
>                 echo "bye!"
>                 exit
>         elif [ "$ans" != "" -a "$ans" != "y" ];then
>                 echo "Invalid entry..."
>         else
>                 break
>         fi
> done
Would you like the script to check the second box ([y]n)?
y
[root@lvs ~]# while true;do
> echo "Would you like the script to check the second box ([y]n)?"
> read ans
>         if [ "$ans" = "n" ];then
>                 echo
>                 echo "bye!"
>                 exit
>         elif [ "$ans" != "" -a "$ans" != "y" ];then
>                 echo "Invalid entry..."
>         else
>                 break
>         fi
> done
Would you like the script to check the second box ([y]n)?
n

logout
share|improve this question
    
BTW, == is a bug that is sadly accepted by bash. Only = is the POSIX way to test for equality. –  Jens Sep 21 '12 at 9:25

3 Answers 3

up vote 1 down vote accepted

The problem is that : [ "$ans" != "" -o "$ans" != "y" ] is always true because of the or and the negation. $ans cannot be equal to "" and to "y".

Try replace these lines

if [ "$ans" == "n" ];then 
elif [ "$ans" != "" -o "$ans" != "y" ];then 

by these

if [ "$ans" = "n" ];then 
elif [ "$ans" != "" -a "$ans" != "y" ];then 

or these

if [[ $ans == n ]];then 
elif [[ $ans != "" && $ans != y ]];then 

The easier is to do is a case:

case $ans in
  y) echo "yes"
  ;;
  n) echo "no"
  ;;
  *)
  ;;
 esac

also break must be used only in a for or while loop, or in a select but it is missing in your post .

share|improve this answer
    
Thanks for the quick responses everyone. The -o example that I used in my post was just one of what seemed like 95858943737495048 woefully futile attempts. I just tried Nahuel's suggestion above and by god IT WORKED!! Now I just need to unerstand. My logic was as follows: –  user30772 Sep 21 '12 at 12:28
    
don't forget to accept answer –  Nahuel Fouilleul Sep 21 '12 at 12:32
    
My logic was as follows: Ask question ([y],n) and devise the most efficent method for correctly handling any type of possible user input. So, if the user presses "n" - exit the scritp If the user presses something like "vi45 08noisdfgoh qer g08haergrh8" display error and prompt for retry. 3. 1 and 2 leave y and "" as the only remaining keystrokes –  user30772 Sep 21 '12 at 12:39
    
the best thing to do is a case see update –  Nahuel Fouilleul Sep 21 '12 at 12:48
    
What I still don't understand is why there dosnt seem to be anyway for an "OR" to truly work with strings in bash...Why is that? –  user30772 Sep 21 '12 at 13:06

I don't really understand, why do you use -o in the elif. I would use "||" or "OR" operator. When you use two conditions in if, you should use double [[ and ]]. So if you use:

    elif [[ "$ans" != "" ||  "$ans" != "y" ]];then 

it works fine.

share|improve this answer
    
[ "$ans" != "" -o "$ans" != "y" ] is always true –  Nahuel Fouilleul Sep 21 '12 at 9:10

also logically its a flawed way of doing things. firstly using case would be best in this scenario, secondly you are looking for == n then stating if it is blank or not equal to yes - so although no is caught out in first if statement in theory it would still meet second criteria

surely the most logical way to ensure input is 100% would be

 if [ "$ans" == "n" ];then
                 echo
                 echo "bye"
                 exit
         elif [ "$ans" == "y" ];then
                 echo Yes
                        break;

        else

                 echo "Invalid entry... >$ans<"
         fi
share|improve this answer
    
Please don't proliferate the == bug. The only way to properly test for equality is =. –  Jens Sep 21 '12 at 9:29
    
My logic was as follows: Ask question ([y],n) and devise the most efficent method for correctly handling any type of possible user input. So: 1. If the user presses "n" - exit the scritp 2. If the user presses something like "vi45 08noisdfgoh qer g08haergrh8" display error and prompt for retry. 3. 1 and 2 leave y and "" as the only remaining keystrokes How is this flawed? –  user30772 Sep 21 '12 at 12:53
    
its flawed because you are looking for a yes no and yet you seem to be processing the anything else before yes as above example it processes yes/no then anything else- the above example i given you is not any different to using a case statement of n) something y) something *) error –  vahid Sep 21 '12 at 14:04

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