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I have two ArrayLists.

ArrayList A contains

['2009-05-18','2009-05-19','2009-05-21']

ArrayList B Contains ['2009-05-18','2009-05-18','2009-05-19','2009-05-19','2009-05-20','2009-05-21','2009-05-21','2009-05-22']

I have to compare ArrayLst A and ArrayLst B . The result ArrayList should contain the List which does not exist in ArrayList A. ArrayList result should be

['2009-05-20','2009-05-22']

how to compare ?

share|improve this question
11  
It would really help us if you'd tell us which programming language/platform this is. – Jon Skeet May 28 '09 at 6:08
1  
thanks for informing, next time is not happening like this – naveen May 28 '09 at 6:38
up vote 83 down vote accepted

In Java, you can use the Collection interface's removeAll method.

// Create a couple ArrayList objects and populate them
// with some delicious fruits.
Collection firstList = new ArrayList() {{
    add("apple");
    add("orange");
}};

Collection secondList = new ArrayList() {{
    add("apple");
    add("orange");
    add("banana");
    add("strawberry");
}};

// Show the "before" lists
System.out.println("First List: " + firstList);
System.out.println("Second List: " + secondList);

// Remove all elements in firstList from secondList
secondList.removeAll(firstList);

// Show the "after" list
System.out.println("Result: " + secondList);

The above code will produce the following output:

First List: [apple, orange]
Second List: [apple, orange, banana, strawberry]
Result: [banana, strawberry]
share|improve this answer
    
thanks for your help – naveen May 28 '09 at 6:25
3  
If your list is of a custom class, then you'll have to override the equals method of your class, right? – RTF Oct 21 '14 at 15:51
1  
@RTF Yes, you need to provide an implementation of equals that enables your objects to be compared. Read about implementing hashCode as well. For example, note how String::equals is case-sensitive, so "apple" and "Apple" will not be considered the same. – Basil Bourque Mar 20 at 0:58

You already have the right answer. And if you want to make more complicated and interesting operations between Lists (collections) use apache commons collections (CollectionUtils) It allows you to make conjuction/disjunction, find intersection, check if one collection is a subset of another and other nice things.

share|improve this answer

EDIT: Original question did not specify language. My answer is in C#.

You should instead use HashSet for this purpose. If you must use ArrayList, you could use the following extension methods:

var a = arrayListA.Cast<DateTime>();
var b = arrayListB.Cast<DateTime>();    
var c = b.Except(a);

var arrayListC = new ArrayList(c.ToArray());

using HashSet...

var a = new HashSet<DateTime>(); // ...and fill it
var b = new HashSet<DateTime>(); // ...and fill it
b.ExceptWith(a); // removes from b items that are in a
share|improve this answer
    
thanks for replay – naveen May 28 '09 at 6:24

I guess you're talking about C#. If so, you can try this

    ArrayList CompareArrayList(ArrayList a, ArrayList b)
    {
        ArrayList output = new ArrayList();
        for (int i = 0; i < a.Count; i++)
        {
            string str = (string)a[i];
            if (!b.Contains(str))
            {
                if(!output.Contains(str)) // check for dupes
                    output.Add(str);
            }
        }
        return output;
    }
share|improve this answer
    
Sorry I did not mention the progrsmming language,it's ok ,but i need for java thanks for ur replay – naveen May 28 '09 at 6:25

I have used Guava Sets.difference.

The parameters are sets and not general collections, but a handy way to create sets from any collection (with unique items) is Guava ImmutableSet.copyOf(Iterable).

(I first posted this on a related/dupe question, but I'm copying it here too since I feel it is a good option that is so far missing.)

share|improve this answer

Hi use this class this will compare both lists and shows exactly the mismatch b/w both lists.

import java.util.ArrayList;
import java.util.List;


public class ListCompare {

    /**
     * @param args
     */
    public static void main(String[] args) {
        List<String> dbVinList;
        dbVinList = new ArrayList<String>();
        List<String> ediVinList;
        ediVinList = new ArrayList<String>();           

        dbVinList.add("A");
        dbVinList.add("B");
        dbVinList.add("C");
        dbVinList.add("D");

        ediVinList.add("A");
        ediVinList.add("C");
        ediVinList.add("E");
        ediVinList.add("F");
        /*ediVinList.add("G");
        ediVinList.add("H");
        ediVinList.add("I");
        ediVinList.add("J");*/  

        List<String> dbVinListClone = dbVinList;
        List<String> ediVinListClone = ediVinList;

        boolean flag;
        String mismatchVins = null;
        if(dbVinListClone.containsAll(ediVinListClone)){
            flag = dbVinListClone.removeAll(ediVinListClone);   
            if(flag){
                mismatchVins = getMismatchVins(dbVinListClone);
            }
        }else{
            flag = ediVinListClone.removeAll(dbVinListClone);
            if(flag){
                mismatchVins = getMismatchVins(ediVinListClone);
            }
        }
        if(mismatchVins != null){
            System.out.println("mismatch vins : "+mismatchVins);
        }       

    }

    private static String getMismatchVins(List<String> mismatchList){
        StringBuilder mismatchVins = new StringBuilder();
        int i = 0;
        for(String mismatch : mismatchList){
            i++;
            if(i < mismatchList.size() && i!=5){
                mismatchVins.append(mismatch).append(",");  
            }else{
                mismatchVins.append(mismatch);
            }
            if(i==5){               
                break;
            }
        }
        String mismatch1;
        if(mismatchVins.length() > 100){
            mismatch1 = mismatchVins.substring(0, 99);
        }else{
            mismatch1 = mismatchVins.toString();
        }       
        return mismatch1;
    }

}
share|improve this answer

You are just comparing strings.

Put the values in ArrayList A as keys in HashTable A.
Put the values in ArrayList B as keys in HashTable B.

Then, for each key in HashTable A, remove it from HashTable B if it exists.

What you are left with in HashTable B are the strings (keys) that were not values in ArrayList A.

C# (3.0) example added in response to request for code:

List<string> listA = new List<string>{"2009-05-18","2009-05-19","2009-05-21'"};
List<string> listB = new List<string>{"2009-05-18","2009-05-18","2009-05-19","2009-05-19","2009-05-20","2009-05-21","2009-05-21","2009-05-22"};

HashSet<string> hashA = new HashSet<string>();
HashSet<string> hashB = new HashSet<string>();

foreach (string dateStrA in listA) hashA.Add(dateStrA);
foreach (string dateStrB in listB) hashB.Add(dateStrB);

foreach (string dateStrA in hashA)
{
    if (hashB.Contains(dateStrA)) hashB.Remove(dateStrA);
}

List<string> result = hashB.ToList<string>();
share|improve this answer
    
Please explain in some coding format, thanks – naveen May 28 '09 at 6:26
    
@naveen : I added code sample in response... – Demi May 28 '09 at 18:42

THIS WORK ALSO WITH Arraylist

    // Create a couple ArrayList objects and populate them
    // with some delicious fruits.
    ArrayList<String> firstList = new ArrayList<String>() {/**
         * 
         */
        private static final long serialVersionUID = 1L;

    {
        add("apple");
        add("orange");
        add("pea");
    }};

    ArrayList<String> secondList = new ArrayList<String>() {

    /**
         * 
         */
        private static final long serialVersionUID = 1L;

    {
        add("apple");
        add("orange");
        add("banana");
        add("strawberry");
    }};

    // Show the "before" lists
    System.out.println("First List: " + firstList);
    System.out.println("Second List: " + secondList);

    // Remove all elements in firstList from secondList
    secondList.removeAll(firstList);

    // Show the "after" list
    System.out.println("Result: " + secondList);
share|improve this answer
1  
the output: First List: [apple, orange, pippo] Second List: [apple, orange, banana, strawberry] Result: [banana, strawberry] – psycho Mar 7 at 15:45

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