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I have two maps:

Map<String, Object> map1;
Map<String, Object> map2;

I need to receive difference between these maps. Does exist may be apache utils how to receive this difference? For now seems need take entry set of each map and found diff1 = set1 - set2 and diff2 = set2- set1. After create summary map =diff1 + diff2 It looks very awkwardly. Does exist another way? Thanks.

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What do you mean by "the difference"? –  Raedwald Sep 13 at 7:33

6 Answers 6

up vote 9 down vote accepted

How about google guava?:

Maps.difference(map1,map2)
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Thanks. I thought about guava, but for this need introduce new library in project, bette don't do this. –  user710818 Oct 4 '12 at 6:54
1  
@user710818 You wouldn't regret it - it is a great library –  vitaly Oct 4 '12 at 6:55
    
@user710818 You should use it in your project –  Zenofo Oct 4 '12 at 6:56
    
It can be achieved in java if simple math is used. There is no need to introduce other library for that. –  Amit Deshpande Oct 4 '12 at 7:24

There is a MapDifference API by Google Collections Library which exposes methods like:

 boolean    areEqual() 

Returns true if there are no differences between the two maps; that is, if the maps are equal.

 Map<K,MapDifference.ValueDifference<V>>    entriesDiffering() 

Returns an unmodifiable map describing keys that appear in both maps, but with different values.

 Map<K,V>   entriesInCommon() 

Returns an unmodifiable map containing the entries that appear in both maps; that is, the intersection of the two maps.

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    Set<Entry<String, Object>> diff = new HashSet<Entry<String, Object>>((map1.entrySet()));
    diff.addAll(map2.entrySet());//Union
    Set<Entry<String, Object>> tmp = new HashSet<Entry<String, Object>>((map1.entrySet()));
    tmp.retainAll(map2.entrySet());//Intersection
    diff.removeAll(tmp);//Diff
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1  
Answer doesn't look correct. Map1 could contain map2 or map2 can contain map1, or be equal or difference in any direction can exist. –  user710818 Oct 4 '12 at 6:53
    
@user710818 Check the updated answer. –  Amit Deshpande Oct 4 '12 at 7:13

Try using guava's MapDifference.

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If I understood well you are trying to calculate symmetric difference beetween the two maps entry sets.

Map<String, Object> map1;
Map<String, Object> map2;

Set<Entry<String, Object>> diff12 = new HashSet<Entry<String, Object>>(map1.entrySet());
Set<Entry<String, Object>> diff21 = new HashSet<Entry<String, Object>>(map2.entrySet());
Set<Entry<String, Object>> result;

diff12.removeAll(map2.entrySet());
diff21.removeAll(map1.entrySet());
diff12.addAll(diff21);

Considering the awkward behavior you mentioned, let's take a closer look at the above code behavior. For example if we take the numerical example from the above given link:

Map<String, Object> map1 = new HashMap<String, Object>();
map1.put("a", 1);
map1.put("b", 2);
map1.put("c", 3);
map1.put("d", 4);

Map<String, Object> map2 = new HashMap<String, Object>();
map2.put("a", 1);    
map2.put("d", 4);
map2.put("e", 5);

After you calculate the difference as shown, the output:

System.out.println(Arrays.deepToString(diff12.toArray()));

gives:

[e=5, c=3, b=2]

which is the correct result. But, if we do it like this:

public class CustomInteger {
    public int val;

    public CustomInteger(int val) {
        this.val = val;
    }

    @Override
    public String toString() {
        return String.valueOf(val);
    }        
}   

map1.put("a", new CustomInteger(1));
map1.put("b", new CustomInteger(2));
map1.put("c", new CustomInteger(3));
map1.put("d", new CustomInteger(4));

map2.put("a", new CustomInteger(1));    
map2.put("d", new CustomInteger(4));
map2.put("e", new CustomInteger(5));

the same algorithm gives the following output:

[e=5, a=1, d=4, d=4, b=2, a=1, c=3]

which is not correct (and might be described as awkward :) )

In the first example the map is filled with int values wich are automatically boxed to Integer values.

The class Integer has its own implementation of equals and hashCode methods.

The class CustomInteger does not implement these methods so it inherits them from the omnipresent Object class.

The API doc for the removeAll method from the Set interface says the following:

Removes from this set all of its elements that are contained in the specified collection (optional operation). If the specified collection is also a set, this operation effectively modifies this set so that its value is the asymmetric set difference of the two sets.

In order to determine which elements are contained in both collections, the removeAll method uses the equals method of the collection element.

And that's the catch: Integer's equals method returns true if the two numeric values are the same, while Object's equals method will return true only if it is the same object, e.g. :

Integer a = 1; //autoboxing
Integer b = new Integer(1);
Integer c = 2;

a.equals(b); //  true
a.equals(c); //  false

CustomInteger d = new CustomInteger(1);
CustomInteger e = new CustomInteger(1);
CustomInteger f = new CustomInteger(2);

d.equals(e); //false
d.equals(f) // false

d.val == e.val //true
d.val == f.val //false

If it's still a bit fuzzy I strongly suggest reading the following tutorials:

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the above answer has more elegantly solved the difference calculation! –  linski Oct 4 '12 at 16:24

You have to create new map containing two other:

map3.putAll(map1);
map3.putAll(map2);

And remove duplicate entries:

map3.entrySet().removeAll(map1.entrySet());

The whole example:

    Map<String, String> map1 = new HashMap<String, String>();
    Map<String, String> map2 = new HashMap<String, String>();
    Map<String, String> map3 = new HashMap<String, String>();

    map1.put("a", "1");
    map1.put("b", "2");

    map2.put("b", "2");
    map2.put("d", "4");

    map3.putAll(map1);
    map3.putAll(map2);

    //Switch between map1 and map2 to suite the expected result
    map3.entrySet().removeAll(map1.entrySet());

    // Will print ==> {d=4}
    System.out.println(map3); 

Check it online

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