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I have created a HashMap object which stores a String as key and corresponding value as int. Now I want to have a Priority Queue which have all the String present in HashMap object with value as reference for assigning priorities. I have written the following code

public class URIQueue {

      private HashMap<String,Integer> CopyQURI;
      private PriorityQueue<String> QURI;

      public class TComparator<String> {
         public int compareTo(String s1, String s2) {
            if (CopyQURI.get(s2) - CopyQURI.get(s1) >= 0) {
               return 1;
            } else {
               return 0;
            }
         }
      }

      public URIQueue() {
         CopyQURI=new HashMap<>(100);
         TComparator<String> tc=new TComparator<>();
         QURI=new PriorityQueue<>(100, tc); //Line x
      }
 }

Line x is showing error cannot infer type argument for priority queue. Please guide me what mistake I have done.

share|improve this question
3  
This sort of "mutable comparator" can be extremely dangerous and bug-prone. You're probably better off creating a new class to hold the string and the integer together. – Louis Wasserman Sep 24 '12 at 23:07
up vote 3 down vote accepted

The error you are referring to states, that it cannot guess the generic type parameter which you have omitted. The reason for that is that the constructor you are using is not known. It is not known, because you second argument is not a comparator. Your comparator has to implement the java.util.Comparator interface in order to be type safe for the constructor to accept.

public class TComparator<String> implements Comparator<String> {

   @Override
   public int compare(String arg0, String arg1) {
      // ...
   }
}

Also mind, in the Comparator interface the appropriate method is called compare and not compareTo.

A general advice, I have to agree with Louis Wasserman, for two given arguments a comparator should always return the same result and not depend on the state of the application. It's just too easy not to think of some case and the application is eventually flawed.

share|improve this answer
    
thanks.it worked.. – Prannoy Mittal Sep 25 '12 at 0:35

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