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Let say I have two different hashsets as shown below how can I check that two Hashset contain the same elements and these two hashsets are equal, independent of the order of elements in collection, please advise..!!

Set set1=new HashSet();
          set.add(new Emp("Ram","Trainer",34000));
          set.add(new Emp("LalRam","Trainer",34000));

and the other one is ..

Set set2=new HashSet();
          set.add(new Emp("LalRam","Trainer",34000));
          set.add(new Emp("Ram","Trainer",34000));

The employee pojo is ...

class Emp //implements Comparable
{
      String name,job;
      public String getName() {
        return name;
    }
    public void setName(String name) {
        this.name = name;
    }
    public String getJob() {
        return job;
    }
    public void setJob(String job) {
        this.job = job;
    }
    public int getSalary() {
        return salary;
    }
    public void setSalary(int salary) {
        this.salary = salary;
    }
    int salary;
      public Emp(String n,String j,int sal)
      {
         name=n;
         job=j;
         salary=sal;
       }
      public void display()
      {
        System.out.println(name+"\t"+job+"\t"+salary);
       }



  public boolean equals(Object o)
      {

         Emp p=(Emp)o;
          return this.name.equals(p.name)&&this.job.equals(p.job) &&this.salary==p.salary;
       }
   public int hashCode()
       {
          return name.hashCode()+job.hashCode()+salary;
       }


      /* public int compareTo(Object o)
       {
          Emp e=(Emp)o;
          return this.name.compareTo(e.name);
           //return this.job.compareTo(e.job);
        //   return this.salary-e.salary;

        }*/
} 
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3  
First define "equals". Equals reference or equuivalent? If the latter, is equals and hashcode define for the Emp class? –  MJB Aug 9 '12 at 17:14
    
Assuming Emp has proper overrides for equals() and hashCode() (which it probably does, given its presence in a hash table) you could compare counts on the sets, and then try to add every element of one set to the other. If the add() method ever returns true, then there's a difference. –  dlev Aug 9 '12 at 17:15
    
This is no different than comparing any other collections. See: stackoverflow.com/questions/50098/…. While this is .net, the java implementation should be pretty much the same. I recommend Daniel Jennings or mbillings answer as I'm pretty sure the highest voted answer violates Microsofts terms of use. –  tkeE2036 Aug 9 '12 at 17:16
    
First, is is not meaningful to discuss element order in a Set. Sets have no implicit order. Second, you haven't specified what you mean by "equals". For collections, it could be "the two collections contain the same set of references to actual elements", or "All elements from collection A compare equal (via equals()) to their corresponding element in collection B". You seem to want the latter definition, which is trickier to implement. –  Jim Garrison Aug 9 '12 at 17:27
    
This question is a duplicate and the right answer is here: stackoverflow.com/questions/1565214/… –  Gismo Ranas Oct 24 '13 at 13:02
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6 Answers

up vote 1 down vote accepted
  1. Check if # of elements is the same. If not, return false.
  2. Clone set 2 (if you need to keep set 2 after)
  3. Iterate through set 1, check if each element is found in clone set 2. If found, remove from set 2. If not found, return false.
  4. If you reach the end of the iterations and have matched each element of set 1, the sets are equal (since you already compared the sizes of the 2 sets).

Example:

public boolean isIdenticalHashSet <A> (HashSet h1, HashSet h2) {
    if ( h1.size() != h2.size() ) {
        return false;
    }
    HashSet<A> clone = new HashSet<A>(h2); // just use h2 if you don't need to save the original h2
    Iterator it = h1.iterator();
    while (it.hasNext() ){
        A = it.next();
        if (clone.contains(A)){ // replace clone with h2 if not concerned with saving data from h2
            clone.remove(A);
        } else {
            return false;
        }
    }
    return true; // will only return true if sets are equal
}
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could you please post the code that will make understandings more clear..! –  user1582269 Aug 9 '12 at 17:32
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Quoting from AbstractSet.equals(Object) javadoc:

Returns true if the given object is also a set, the two sets have the same size, and every member of the given set is contained in this set. This ensures that the equals method works properly across different implementations of the Set interface.

So it's sufficient to simply call set1.equals(set2). It will return true if and only if the set contain the same elements (assuming that you have correctly defined equals and hashCode on the objects in the sets).

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Nice one! Didn't know that equals was defined for sets! –  MJB Aug 9 '12 at 17:28
    
This is the correct answer, and much simpler than the accepted answer. +1. –  GriffeyDog Aug 9 '12 at 20:05
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If you want data equality then correctly implement equals() and hashCode() and then you can use Collection.containsAll(...). Ofcourse, you need to make sure you call this only when both of your collections have the same number of elements otherwise you can just say they aren't equal.

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Great one! hadn't recalled that. –  MJB Aug 9 '12 at 17:25
    
It's amazing how many things you can find in the standard API if you just know where to look. :) –  Dennis Meng Aug 9 '12 at 17:35
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Assuming you've defined equals and hashcode, here's one way. Not very efficient for large members.

  1. Check the # of elements in each. If they are not equal, you are done [not equal].
  2. Loop through Set1. Check if Set2 contains each element, if not you are done [not equal]. otherwise if you get through the whole set, you are equal

UPDATE: I didn't know about containsAll, which saves a lot of trouble and basically does that algorithm

int s1 = set1.size();
int s2 = set2.size();
if (s1 !=s2) return false;
return set1.containsAll(set2);
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could you please post the code that will make understandings more clear..! –  user1582269 Aug 9 '12 at 17:18
    
MJB could you please update the complete code to make understanging clear..!! –  user1582269 Aug 9 '12 at 17:19
    
cool man thanks a lot..!! –  user1582269 Aug 9 '12 at 17:30
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Use the below expression.

set1.containsAll(set2) && set2.containsAll(set1)
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That would be more expensive than doing one containsAll prefixed by a size check, I would think. –  MJB Aug 9 '12 at 17:25
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Do:

  setResult = set2.clone();

  if ( setResult.retainAll( set1 ) ){

   //do something with results, since the collection had differences

}
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