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When I am using this:

case "vic":
    if ((bPostcodeSubstring == 3) || (bPostcodeSubstring == 8)){
        return true;
    }
    else{
        errMsg += "Enter A Valid Postcode.";
        result = false;             
    }
break;

It is working fine. But when I am using this:

case "vic":
    if ((bPostcodeSubstring != 3) || (bPostcodeSubstring != 8)){
        errMsg += "Enter A Valid Postcode.";
        result = false;             
    }
break;

It is not working at all. What's the problem?

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4 Answers 4

!((bPostcodeSubstring == 3) || (bPostcodeSubstring == 8))

is NOT same as

(bPostcodeSubstring != 3) || (bPostcodeSubstring != 8)

it should be

(bPostcodeSubstring != 3) && (bPostcodeSubstring != 8)

demorgan's law

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1  
+1 for demorgan's law –  Satpal Apr 21 '14 at 9:48

The or is resolving always to true, consider if bPostcodeSubstring is 3 then first condition fails but second gives true. If you want to exclude 3 and 8 then use not outside of both or condition

if (!(bPostcodeSubstring == 3 || bPostcodeSubstring == 8)){

OR use and && instead of || If you want to exclude 3 and 8 then use not outside of both or condition

if ((bPostcodeSubstring != 3) && (bPostcodeSubstring != 8)){
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You should use && insead of || in your second if.

Indeed, the opposite of :

(bPostcodeSubstring == 3) || (bPostcodeSubstring == 8)

Is :

(bPostcodeSubstring != 3) && (bPostcodeSubstring != 8)
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If you want both 3 and 8 unacceptable for this variable, then you have to use &&.

if ((bPostcodeSubstring != 3) && (bPostcodeSubstring != 8)){
    errMsg += "Enter A Valid Postcode.";
    result = false;             
}
share|improve this answer

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