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Give a two-dimensional array T with base type String and some string str (which can be treated like an array of type String) I want to check if T contains certain parts str as its entries. I tried this:

int indeksck = str.indexOf("C");

while(k<T.length){
    if(T[k][2] == str.substring(indeksck+1)){
        if(T[k][1] == str.substring(6, indeksck)){
            int ile_o = Integer.parseInt(T[k][0]);
            T[k][0]= Integer.toString(ile_o+1);
            T[k][3] = T[k][3]+"X"+str.substring(1,6);
            k = T.length+1;
        } else {
            k++;
        }

    } else {
        k++;

        if(k==T.length){
            k = 0;
            while(k<T.length){
                if(T[k][0]==null){
                    T[k][0] = Integer.toString(1);
                    T[k][1] = str.substring(6,indeksck);
                    T[k][2] = str.substring(indeksck+1);
                    T[k][3] = str.substring(1,6);
                    k = T.length+1;
                } else {
                    k++;
                }
            }
        }
    }
}

The problem is that the first part of my code is being ignored (even when condition should be satisfied). I would appreciate and suggestions on solving this problem.

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8  
never compare strings with ==, use .equals(), read this for an explanation. –  jlordo Dec 29 '12 at 14:26
    
There's a lot going on here that you aren't explaining. Why start at substring index 6? Why does every entry T[k] only have indices 0-3? What's the X about? Why are you incrementing T[k][0] by 1 and converting back to string? Can you provide an example of the contents of T and str, and what exactly your code is looking for? –  mellamokb Dec 29 '12 at 14:27
    
@jlordo I've tried this but it's didn't work. –  data Dec 29 '12 at 14:29
1  
@mellamokb The string is formatted is special way, I don't think it's important. –  data Dec 29 '12 at 14:29
    
if equals() returns false for two strings, than they don't have the same exact content. –  jlordo Dec 29 '12 at 14:30

2 Answers 2

up vote 6 down vote accepted

You cannot use == to do string compare. Try:

if(T[k][2].equals(str.substring(indeksck+1))) {
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== operator in Java is used for reference comparison. To check equivalence for objects (so also for strings) you need to use equals() method.

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