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public class GenericOrderedArray<T extends Comparable<T>> {

private T[] a;
private int n;

public GenericOrderedArray(Class<T> clazz, int max) {
    a = (T[]) Array.newInstance(clazz, max);
    n = 0;
}

public void insert(T value) {
    int j;
    for (j = 0; j < n; j++)
                    //this is where error goes ,the compare to method throws a null pointer exception
        if (a[j] != null && a[j].compareTo(value) > 0)
            break;
    for (int k = n; k < j; k--)
        a[k] = a[k - 1];
    a[j] = value;
    n++;
}

public boolean delete(T value) {
    boolean result = false;
    int hit = find(value);
    if (hit == -1)
        return result;
    else {
        for (int i = hit; i < n; i++) {
            a[i] = a[i + 1];
        }
        n--;
    }
    return result;
}


    //binary search implements find method 
public int find(T value) {
    int lowerBound = 0;
    int upperBound = n - 1;
    int curIn;
    while (true) {
        curIn = (lowerBound + upperBound) / 2;
        if (a[curIn].equals(value))
            return curIn;
        else if (lowerBound > upperBound) {
            return -1;
        } else {
            if (a[curIn].compareTo(value) < 0)
                lowerBound = curIn + 1;
            else {
                upperBound = curIn - 1;
            }
        }
    }

}

public static void main(String[] args) {
    int max = 100;
    GenericOrderedArray<Integer> ints = new GenericOrderedArray<>(Integer.class, max);
    ints.insert(2);
    ints.insert(4);
    ints.insert(1);
}
}

The array compares each elements and put the moving the smaller element to the lower index. This may be a dummy question. The exception occurs when comparing the elements, but I can't figure out why.

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2  
Can you add the exception error message and stack trace. –  mbaydar Apr 8 '12 at 13:29
    
Well, I just tested your code and it works fine. –  Eng.Fouad Apr 8 '12 at 13:41
    
Yes the example "works" without error. Lior Barnea provide a good hints to. I don't know if it will solve your problem. Maybe you should check that value is not null too. –  alain.janinm Apr 8 '12 at 13:51
    
you don't actually need Array.newInstance or the class of the components –  newacct Apr 8 '12 at 20:05
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4 Answers

up vote 1 down vote accepted
for (int k = n; **k < j**; k--)
    a[k] = a[k - 1];

I think you should have k > j

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My guess is that when you insert your first element, you are comparing a[j] with the element to be inserted. But, since there is no element at a[0] the first time you insert a element a NPE will be thrown.

You should start your insert method by checking if the first element is NULL. If a[0]=NULL you simply insert the element there, else you continue with your compare statement

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1  
He checked for a[j] != null already! –  Eng.Fouad Apr 8 '12 at 13:40
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Your code works for me. Tried on Linux, jdk6 and jdk7.
In general, the only way the compare method may throw a NPE in your code is when you pass a null as the value, because you check a[j] for null. Make sure that you don't pass null to the insert method.

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If you check the Comparable interface documentation. It states:

The implementor must ensure sgn(x.compareTo(y)) == -sgn(y.compareTo(x)) for all x and y.(This implies that x.compareTo(y) must throw an exception iff y.compareTo(x) throws an exception.)

Hence, if you try to compare anything with null, there should be a NPE.

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