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I have two lists ( not java lists, you can say two columns)

For example

**List 1**            **Lists 2**
  milan                 hafil
  dingo                 iga
  iga                   dingo
  elpha                 binga
  hafil                 mike
  meat                  dingo
  milan
  elpha
  meat
  iga                   
  neeta.peeta    

I'd like a method that returns how many elements are same. For this example it should be 3 and it should return me similar values of both list and different values too.

Should I use hashmap if yes then what method to get my result?

Please help

P.S: It is not a school assignment :) So if you just guide me it will be enough

share|improve this question
    
Please suggest any data structure the list is not java list or hashmap or any data structure –  user238384 May 4 '10 at 0:39
1  
Be sure to think about what you should do in exceptional cases. Can lists contain the same value twice? If so, if "dingo" is in both lists twice, does that count as two elements in common or only one? –  JavadocMD May 4 '10 at 0:41
    
Can you modify one of the List? –  Anthony Forloney May 4 '10 at 0:47
    
how to edit?? Yes each list can contain similar values multiple time –  user238384 May 4 '10 at 0:50
    
There should be a edit small link right after the question, below the tags. –  OscarRyz May 4 '10 at 1:19

5 Answers 5

up vote 77 down vote accepted

EDIT

Here are two versions. One using ArrayList and other using HashSet

Compare them and create your own version from this, until you get what you need.

This should be enough to cover the:

P.S: It is not a school assignment :) So if you just guide me it will be enough

part of your question.

continuing with the original answer:

You may use a java.util.Collection and/or java.util.ArrayList for that.

The retainAll method does the following:

Retains only the elements in this collection that are contained in the specified collection

see this sample:

import java.util.Collection;
import java.util.ArrayList;
import java.util.Arrays;

public class Repeated {
    public static void main( String  [] args ) {
        Collection listOne = new ArrayList(Arrays.asList("milan","dingo", "elpha", "hafil", "meat", "iga", "neeta.peeta"));
        Collection listTwo = new ArrayList(Arrays.asList("hafil", "iga", "binga", "mike", "dingo"));

        listOne.retainAll( listTwo );
        System.out.println( listOne );
    }
}

EDIT

For the second part ( similar values ) you may use the removeAll method:

Removes all of this collection's elements that are also contained in the specified collection.

This second version gives you also the similar values and handles repeated ( by discarding them).

This time the Collection could be a Set instead of a List ( the difference is, the Set doesn't allow repeated values )

import java.util.Collection;
import java.util.HashSet;
import java.util.Arrays;

class Repeated {
      public static void main( String  [] args ) {

          Collection<String> listOne = Arrays.asList("milan","iga",
                                                    "dingo","iga",
                                                    "elpha","iga",
                                                    "hafil","iga",
                                                    "meat","iga", 
                                                    "neeta.peeta","iga");

          Collection<String> listTwo = Arrays.asList("hafil",
                                                     "iga",
                                                     "binga", 
                                                     "mike", 
                                                     "dingo","dingo","dingo");

          Collection<String> similar = new HashSet<String>( listOne );
          Collection<String> different = new HashSet<String>();
          different.addAll( listOne );
          different.addAll( listTwo );

          similar.retainAll( listTwo );
          different.removeAll( similar );

          System.out.printf("One:%s%nTwo:%s%nSimilar:%s%nDifferent:%s%n", listOne, listTwo, similar, different);
      }
}

Output:

$ java Repeated
One:[milan, iga, dingo, iga, elpha, iga, hafil, iga, meat, iga, neeta.peeta, iga]

Two:[hafil, iga, binga, mike, dingo, dingo, dingo]

Similar:[dingo, iga, hafil]

Different:[mike, binga, milan, meat, elpha, neeta.peeta]

If it doesn't do exactly what you need, it gives you a good start so you can handle from here.

Question for the reader: How would you include all the repeated values?

share|improve this answer
    
@Oscar, My exact thought, but I was not sure if we could have modified the contents of listOne, but +1 anyways! –  Anthony Forloney May 4 '10 at 0:53
    
You shouldn't use raw types. –  polygenelubricants May 4 '10 at 0:56
    
@poygenelubricants what do you mean by raw types not generics? Why not? –  OscarRyz May 4 '10 at 0:58
    
Oscar, did you see my updated question? Does it support repeated values? –  user238384 May 4 '10 at 0:59
2  
@polygenelubricants answer updated to handle duplicates and raw types. BTW, the ..future version of Java... is never going to happen. ;) –  OscarRyz May 4 '10 at 1:13

Did you try intersection() and subtract() methods from CollectionUtils?

intersection() gives you a collection containing common elements and the subtract() gives you all the uncommon ones.

They should also take care of similar elements

share|improve this answer

Are these really lists (ordered, with duplicates), or are they sets (unordered, no duplicates)?

Because if it's the latter, then you can use, say, a java.util.HashSet<E> and do this in expected linear time using the convenient retainAll.

    List<String> list1 = Arrays.asList(
        "milan", "milan", "iga", "dingo", "milan"
    );
    List<String> list2 = Arrays.asList(
        "hafil", "milan", "dingo", "meat"
    );

    // intersection as set
    Set<String> intersect = new HashSet<String>(list1);
    intersect.retainAll(list2);
    System.out.println(intersect.size()); // prints "2"
    System.out.println(intersect); // prints "[milan, dingo]"

    // intersection/union as list
    List<String> intersectList = new ArrayList<String>();
    intersectList.addAll(list1);
    intersectList.addAll(list2);
    intersectList.retainAll(intersect);
    System.out.println(intersectList);
    // prints "[milan, milan, dingo, milan, milan, dingo]"

    // original lists are structurally unmodified
    System.out.println(list1); // prints "[milan, milan, iga, dingo, milan]"
    System.out.println(list2); // prints "[hafil, milan, dingo, meat]"
share|improve this answer
    
well I really don't know which data structure it should be. It has duplicates. Now you can see updated question –  user238384 May 4 '10 at 0:57
    
Will it remove the repeated values from data set? coz I don't want to loss any value :( –  user238384 May 4 '10 at 0:59
    
@agazerboy: I've tried to address both questions. Feel free to ask for more clarifications. –  polygenelubricants May 4 '10 at 1:02
    
thanks poly. I tried your program with duplicates for example in first list i added "iga" two times but still it return me 3 as an answer. While it should be 4 now. coz list 1 has 4 similar values. If i added one entry multiple time it should work. What do you say? Anyother data structure? –  user238384 May 4 '10 at 1:07
1  
@agazerboy: try the latest edit. –  polygenelubricants May 4 '10 at 1:23

Assuming hash1 and hash2

List< String > sames = whatever
List< String > diffs = whatever

int count = 0;
for( String key : hash1.keySet() )
{
   if( hash2.containsKey( key ) ) 
   {
      sames.add( key );
   }
   else
   {
      diffs.add( key );
   }
}

//sames.size() contains the number of similar elements.
share|improve this answer
    
He wants the list of identical keys, not how many keys are identical. I think. –  Rosdi Kasim May 4 '10 at 0:42
    
Thanks stefan for your help. Yeah Rosdi is correct and you as well. I need total number of similar values and similar values as well. –  user238384 May 4 '10 at 0:44

I found a very basic example of List comparison at List Compare This example verifies the size first and then checks the availability of the particular element of one list in another.

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