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I want to make a priority queue of nodes, wherein priority of nodes is their frequencies. But the output doesn't contain the first element in the right position, rest all are in correct positons.

    import java.util.*;
class node implements Comparable<node>{
        char key;
        int freq;
        node(){}
        node(char k,int f){
                key=k;
                freq=f;
        }
    public int compareTo(node n){
            if(freq>n.freq)return 1;
            return 0;
        }
}

public class test{
    public static void main(String[] args){
        node x=new node('x',4);
        node a=new node('a',2);
        node b=new node('b',1);
        node c=new node('c',7);
        PriorityQueue<node> q = new PriorityQueue<node>();

        q.offer(a);
        q.offer(b);
        q.offer(c);
        q.offer(x);

        while(!q.isEmpty()){
            node d=q.poll();
            System.out.println(d.key+" "+d.freq);
        }
    }
}   

Output:

    a 2
    b 1
    x 4
    c 7

Should not the ordering be b , a, x, c Thanks.

share|improve this question
up vote 5 down vote accepted

Your comparator is wrong: if freq < n.freq, it returns 0 instead of returning a negative number.

The code should be

return Ints.compare(freq, n.freq); // with Guava

or

return Integer.valueOf(freq).compareTo(Integer.valueOf(n.freq)) // with plain Java

or

if (freq > n.freq) return 1;
if (freq < n.freq) return -1;
return 0;
share|improve this answer
    
then what is the need of returning o? – Jignesh Sep 6 '12 at 12:31
1  
0 is returned when objects are considered equal, i.e. when the frequencies are the same. – JB Nizet Sep 6 '12 at 12:33

Add
else if (freq<n.freq) return -1;
into public int compareTo(node n)

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