118

I have two ArrayLists of type Answer (self-made class).

I'd like to compare the two lists to see if they contain the same contents, but without order mattering.

Example:

//These should be equal.
ArrayList<String> listA = {"a", "b", "c"}
ArrayList<String> listB = {"b", "c", "a"}

List.equals states that two lists are equal if they contain the same size, contents, and order of elements. I want the same thing, but without order mattering.

Is there a simple way to do this? Or will I need to do a nested for loop, and manually check each index of both lists?

Note: I can't change them from ArrayList to another type of list, they need to remain that.

17 Answers 17

122

You could sort both lists using Collections.sort() and then use the equals method. A slighly better solution is to first check if they are the same length before ordering, if they are not, then they are not equal, then sort, then use equals. For example if you had two lists of Strings it would be something like:

public  boolean equalLists(List<String> one, List<String> two){     
    if (one == null && two == null){
        return true;
    }

    if((one == null && two != null) 
      || one != null && two == null
      || one.size() != two.size()){
        return false;
    }

    //to avoid messing the order of the lists we will use a copy
    //as noted in comments by A. R. S.
    one = new ArrayList<String>(one); 
    two = new ArrayList<String>(two);   

    Collections.sort(one);
    Collections.sort(two);      
    return one.equals(two);
}
  • 18
    Just remember not to destroy the order of the original list (as Collections.sort does) - i.e. pass a copy. – arshajii Nov 21 '12 at 20:10
  • @A.R.S. yes that is a definite side effect, but only if it matters in their particular case. – Jacob Schoen Nov 21 '12 at 20:11
  • 3
    You could just add one = new ArrayList<String>(one); two = new ArrayList<String>(two); to avoid ruining the arguments. – arshajii Nov 21 '12 at 20:14
  • @jschoen Trying to do Collections.sort() is giving me this error: Bound mismatch: The generic method sort(List<T>) of type Collections is not applicable for the arguments (ArrayList<Answer>). The inferred type Answer is not a valid substitute for the bounded parameter <T extends Comparable<? super T>> – iaacp Nov 21 '12 at 20:21
  • 3
    Second "if" statement inside function can be simplified as if(one == null || two == null || one.size() != two.size()){ return false; } because you are already checking if both one and two are null – Hugo Dec 28 '16 at 10:13
134

Probably the easiest way for any list would be:

listA.containsAll(listB) && listB.containsAll(listA)
  • 4
    Where is the fun in that. In all seriousness though this is probably the better solution. – Jacob Schoen Nov 21 '12 at 20:37
  • 62
    Depends on whether [a, b, c] and [c, b, a, b] are considered to have the same contents. This answer would say they do, but it could be that for the OP they don't (since one contains a duplicate and the other doesn't). To say nothing of the efficiency issues. – yshavit Nov 21 '12 at 20:48
  • 4
    enhancing based on comments - System.out.println(((l1.size() == l2.size())&&l2.containsAll(l1)&&l1.containsAll(l2))); – Nrj Apr 7 '15 at 9:19
  • 8
    @Nrj , what about [1,2,2] and [2,1,1]? – ROMANIA_engineer Jul 24 '15 at 18:47
  • 2
    This approach has complexity of O(n^2). Consider two list which are in reverse order, for ex: [1,2,3] and [3,2,1]. For first element it will have to scan n elements, for second n-1 elements and so on. So complexity will be of order n^2. I think better way will be to sort and then use equals. It will have complexity of O(n * log(n)) – puneet Oct 15 '15 at 9:28
80

Apache Commons Collections to the rescue once again:

List<String> listA = Arrays.asList("a", "b", "b", "c");
List<String> listB = Arrays.asList("b", "c", "a", "b");
System.out.println(CollectionUtils.isEqualCollection(listA, listB)); // true

 

List<String> listC = Arrays.asList("a", "b", "c");
List<String> listD = Arrays.asList("a", "b", "c", "c");
System.out.println(CollectionUtils.isEqualCollection(listC, listD)); // false

Docs:

org.apache.commons.collections4.CollectionUtils

public static boolean isEqualCollection(java.util.Collection a,
                                        java.util.Collection b)

Returns true iff the given Collections contain exactly the same elements with exactly the same cardinalities.

That is, iff the cardinality of e in a is equal to the cardinality of e in b, for each element e in a or b.

Parameters:

  • a - the first collection, must not be null
  • b - the second collection, must not be null

Returns: true iff the collections contain the same elements with the same cardinalities.

  • The implementation seems more or less similar with DiddiZ's answer. – user227353 Aug 27 '15 at 16:48
  • OK... but what about getting hold of the culprits (elements which are not common to the two lists) if the answer is false? See my answer. – mike rodent Dec 12 '16 at 21:16
  • Thanks, that's working like a charm for me! – eugene.polschikov Jun 13 '18 at 17:06
  • implementation 'org.apache.commons:commons-collections4:4.3' has left me with an error Caused by: com.android.builder.dexing.DexArchiveBuilderException: Failed to process path. – Aliton Oliveira Aug 13 at 1:41
11
// helper class, so we don't have to do a whole lot of autoboxing
private static class Count {
    public int count = 0;
}

public boolean haveSameElements(final List<String> list1, final List<String> list2) {
    // (list1, list1) is always true
    if (list1 == list2) return true;

    // If either list is null, or the lengths are not equal, they can't possibly match 
    if (list1 == null || list2 == null || list1.size() != list2.size())
        return false;

    // (switch the two checks above if (null, null) should return false)

    Map<String, Count> counts = new HashMap<>();

    // Count the items in list1
    for (String item : list1) {
        if (!counts.containsKey(item)) counts.put(item, new Count());
        counts.get(item).count += 1;
    }

    // Subtract the count of items in list2
    for (String item : list2) {
        // If the map doesn't contain the item here, then this item wasn't in list1
        if (!counts.containsKey(item)) return false;
        counts.get(item).count -= 1;
    }

    // If any count is nonzero at this point, then the two lists don't match
    for (Map.Entry<String, Count> entry : counts.entrySet()) {
        if (entry.getValue().count != 0) return false;
    }

    return true;
}
  • Wow, was really surprised to find this performing faster than all other solutions. And it supports early-out. – DiddiZ Dec 1 '13 at 19:30
  • Different thing. – RuudVanNistelrooy Aug 27 '14 at 12:15
  • This could also short-circuit in the second loop, if count becomes negative, simplifying the loop body to if(!counts.containsKey(item) || --counts.get(item).count < 0) return false; Also, the 3rd loop could be simplified to for(Count c: counts.values()) if(c.count != 0) return false; – Holger Jun 12 at 10:25
  • @Holger I'd considered something akin to the first (removing the count when it hits zero, which would have the same effect but also turn the checks at the end into "return whether counts is empty"), but didn't want to obscure the main point: that using a map basically turns this into an O(N+M) problem, and is the single biggest boost you're likely to get. – cHao Jun 12 at 11:13
  • @cHao yes, you deserve the credits for pointing to a solution with a better time complexity than previous ones. I just happened to think about it, because there’s a recent similar question regarding iterables. Since we also now have Java 8, it was worth rethinking it. If you short-circuit in the second loop when the number becomes negative, the third loop becomes obsolete. Further, avoiding boxing might be a double-edged sword, with new Map.merge, using boxed integers might be simpler and more efficient for most use cases. See also this answer – Holger Jun 12 at 11:46
7

If the cardinality of items doesn't matter (meaning: repeated elements are considered as one), then there is a way to do this without having to sort:

boolean result = new HashSet<>(listA).equals(new HashSet<>(listB));

This will create a Set out of each List, and then use HashSet's equals method which (of course) disregards ordering.

If cardinality matters, then you must confine yourself to facilities provided by List; @jschoen's answer would be more fitting in that case.

  • what if listA = [a, b, c, c], and listB = [ a, b, c]. result will be true, but lists are not equals. – Nikolas Nov 28 at 13:24
7

I'd say these answers miss a trick.

Bloch, in his essential, wonderful, concise Effective Java, says, in item 47, title "Know and use the libraries", "To summarize, don't reinvent the wheel". And he gives several very clear reasons why not.

There are a few answers here which suggest methods from CollectionUtils in the Apache Commons Collections library but none has spotted the most beautiful, elegant way of answering this question:

Collection<Object> culprits = CollectionUtils.disjunction( list1, list2 );
if( ! culprits.isEmpty() ){
  // ... do something with the culprits, i.e. elements which are not common

}

Culprits: i.e. the elements which are not common to both Lists. Determining which culprits belong to list1 and which to list2 is relatively straightforward using CollectionUtils.intersection( list1, culprits ) and CollectionUtils.intersection( list2, culprits ).
However it tends to fall apart in cases like { "a", "a", "b" } disjunction with { "a", "b", "b" } ... except this is not a failing of the software, but inherent to the nature of the subtleties/ambiguities of the desired task.


NB I was at first disappointed that none of the CollectionUtils methods provides an overloaded version enabling you to impose your own Comparator (so you can redefine equals to suit your purposes).

But from collections4 4.0 there is a new class, Equator which "determines equality between objects of type T". On examination of the source code of collections4 CollectionUtils.java they seem to be using this with some methods, but as far as I can make out this is not applicable to the methods at the top of the file, using the CardinalityHelper class... which include disjunction and intersection.

I surmise that the Apache people haven't got around to this yet because it is non-trivial: you would have to create something like an "AbstractEquatingCollection" class, which instead of using its elements' inherent equals and hashCode methods would instead have to use those of Equator for all the basic methods, such as add, contains, etc. NB in fact when you look at the source code, AbstractCollection does not implement add, nor do its abstract subclasses such as AbstractSet... you have to wait till the concrete classes such as HashSet and ArrayList before add is implemented. Quite a headache.

In the mean time watch this space, I suppose. The obvious interim solution would be to wrap all your elements in a bespoke wrapper class which uses equals and hashCode to implement the kind of equality you want... then manipulate Collections of these wrapper objects.

  • Also, someone wise said "Know the cost of dependency" – Stanislaw Baranski Aug 6 '18 at 0:10
  • @StanislawBaranski That's an interesting comment. Is it a suggestion that one shouldn't be too dependent on such libraries? When you use an OS on a computer that's already a huge leap of faith isn't it? The reason I am happy to use the Apache libraries is because I take them to be very high quality indeed, and assume that their methods comply with their "contract" and have been thoroughly tested. How much time would you take developing your own code which you trusted more? Copying the code from the open-source Apache libraries and scrutinising it might be something to think about... – mike rodent Sep 22 at 13:03
6

This is based on @cHao solution. I included several fixes and performance improvements. This runs roughly twice as fast the equals-ordered-copy solution. Works for any collection type. Empty collections and null are regarded as equal. Use to your advantage ;)

/**
 * Returns if both {@link Collection Collections} contains the same elements, in the same quantities, regardless of order and collection type.
 * <p>
 * Empty collections and {@code null} are regarded as equal.
 */
public static <T> boolean haveSameElements(Collection<T> col1, Collection<T> col2) {
    if (col1 == col2)
        return true;

    // If either list is null, return whether the other is empty
    if (col1 == null)
        return col2.isEmpty();
    if (col2 == null)
        return col1.isEmpty();

    // If lengths are not equal, they can't possibly match
    if (col1.size() != col2.size())
        return false;

    // Helper class, so we don't have to do a whole lot of autoboxing
    class Count
    {
        // Initialize as 1, as we would increment it anyway
        public int count = 1;
    }

    final Map<T, Count> counts = new HashMap<>();

    // Count the items in col1
    for (final T item : col1) {
        final Count count = counts.get(item);
        if (count != null)
            count.count++;
        else
            // If the map doesn't contain the item, put a new count
            counts.put(item, new Count());
    }

    // Subtract the count of items in col2
    for (final T item : col2) {
        final Count count = counts.get(item);
        // If the map doesn't contain the item, or the count is already reduced to 0, the lists are unequal 
        if (count == null || count.count == 0)
            return false;
        count.count--;
    }

    // At this point, both collections are equal.
    // Both have the same length, and for any counter to be unequal to zero, there would have to be an element in col2 which is not in col1, but this is checked in the second loop, as @holger pointed out.
    return true;
}
  • You can skip the final for-loop using a sum counter. The sum counter will count the total of counts at each stage. Increase the sum counter in the first for-loop, and decrease it in the second for-loop. If the sum counter is greater than 0, the lists don't match, otherwise they do. Currently, in the final for-loop you check if all counts are zero or in other words, if the sum of all counts is zero. Using the sum counter kind of reverses this check, returning true if the total of counts is zero, or false otherwise. – SatA Jun 1 '16 at 15:42
  • IMO, it is worth skipping that for-loop since when the lists do match (worst-case scenario) the for-loop adds another unnecessary O(n). – SatA Jun 1 '16 at 15:42
  • @SatA actually, you can remove the 3rd loop without any replacement. The second loop does already return false when a key does not exist or its count becomes negative. Since the total size of both lists match (this has been checked upfront), it is impossible to have non-zero values after the second loop, as there can’t be positive values for a key without negative values for another key. – Holger Jun 12 at 10:36
  • @holger it seems you are absolutely correct. As far as I can tell, the 3rd loop isn't necessary at all. – SatA Jun 13 at 11:25
  • @SatA …and with Java 8, this can be implemented concisely, like in this answer. – Holger Jun 13 at 11:36
5

Think how you would do this yourself, absent a computer or programming language. I give you two lists of elements, and you have to tell me if they contain the same elements. How would you do it?

One approach, as mentioned above, is to sort the lists and then go element-by-element to see if they're equal (which is what List.equals does). This means either you're allowed to modify the lists or you're allowed to copy them -- and without knowing the assignment, I can't know if either/both of those are allowed.

Another approach would be to go through each list, counting how many times each element appears. If both lists have the same counts at the end, they have the same elements. The code for that would be to translate each list to a map of elem -> (# of times the elem appears in the list) and then call equals on the two maps. If the maps are HashMap, each of those translations is an O(N) operation, as is the comparison. That's going to give you a pretty efficient algorithm in terms of time, at the cost of some extra memory.

5

I had this same problem and came up with a different solution. This one also works when duplicates are involved:

public static boolean equalsWithoutOrder(List<?> fst, List<?> snd){
  if(fst != null && snd != null){
    if(fst.size() == snd.size()){
      // create copied lists so the original list is not modified
      List<?> cfst = new ArrayList<Object>(fst);
      List<?> csnd = new ArrayList<Object>(snd);

      Iterator<?> ifst = cfst.iterator();
      boolean foundEqualObject;
      while( ifst.hasNext() ){
        Iterator<?> isnd = csnd.iterator();
        foundEqualObject = false;
        while( isnd.hasNext() ){
          if( ifst.next().equals(isnd.next()) ){
            ifst.remove();
            isnd.remove();
            foundEqualObject = true;
            break;
          }
        }

        if( !foundEqualObject ){
          // fail early
          break;
        }
      }
      if(cfst.isEmpty()){ //both temporary lists have the same size
        return true;
      }
    }
  }else if( fst == null && snd == null ){
    return true;
  }
  return false;
}

Advantages compared to some other solutions:

  • less than O(N²) complexity (although I have not tested it's real performance comparing to solutions in other answers here);
  • exits early;
  • checks for null;
  • works even when duplicates are involved: if you have an array [1,2,3,3] and another array [1,2,2,3] most solutions here tell you they are the same when not considering the order. This solution avoids this by removing equal elements from the temporary lists;
  • uses semantic equality (equals) and not reference equality (==);
  • does not sort itens, so they don't need to be sortable (by implement Comparable) for this solution to work.
5

Converting the lists to Guava's Multiset works very well. They are compared regardless of their order and duplicate elements are taken into account as well.

static <T> boolean equalsIgnoreOrder(List<T> a, List<T> b) {
    return ImmutableMultiset.copyOf(a).equals(ImmutableMultiset.copyOf(b));
}

assert equalsIgnoreOrder(ImmutableList.of(3, 1, 2), ImmutableList.of(2, 1, 3));
assert !equalsIgnoreOrder(ImmutableList.of(1), ImmutableList.of(1, 1));
2

Solution which leverages CollectionUtils subtract method:

import static org.apache.commons.collections15.CollectionUtils.subtract;

public class CollectionUtils {
  static public <T> boolean equals(Collection<? extends T> a, Collection<? extends T> b) {
    if (a == null && b == null)
      return true;
    if (a == null || b == null || a.size() != b.size())
      return false;
    return subtract(a, b).size() == 0 && subtract(a, b).size() == 0;
  }
}
2

If you don't hope to sort the collections and you need the result that ["A" "B" "C"] is not equals to ["B" "B" "A" "C"],

l1.containsAll(l2)&&l2.containsAll(l1)

is not enough, you propably need to check the size too :

    List<String> l1 =Arrays.asList("A","A","B","C");
    List<String> l2 =Arrays.asList("A","B","C");
    List<String> l3 =Arrays.asList("A","B","C");

    System.out.println(l1.containsAll(l2)&&l2.containsAll(l1));//cautions, this will be true
    System.out.println(isListEqualsWithoutOrder(l1,l2));//false as expected

    System.out.println(l3.containsAll(l2)&&l2.containsAll(l3));//true as expected
    System.out.println(isListEqualsWithoutOrder(l2,l3));//true as expected


    public static boolean isListEqualsWithoutOrder(List<String> l1, List<String> l2) {
        return l1.size()==l2.size() && l1.containsAll(l2)&&l2.containsAll(l1);
}
1

If you care about order, then just use the equals method:

list1.equals(list2)

If you don't care order then use this

Collections.sort(list1);
Collections.sort(list2);      
list1.equals(list2)
  • 4
    He says he doesn't care about order. – mike rodent Dec 9 '16 at 20:28
0

Best of both worlds [@DiddiZ, @Chalkos]: this one mainly builds upon @Chalkos method, but fixes a bug (ifst.next()), and improves initial checks (taken from @DiddiZ) as well as removes the need to copy the first collection (just removes items from a copy of the second collection).

Not requiring a hashing function or sorting, and enabling an early exist on un-equality, this is the most efficient implementation yet. That is unless you have a collection length in the thousands or more, and a very simple hashing function.

public static <T> boolean isCollectionMatch(Collection<T> one, Collection<T> two) {
    if (one == two)
        return true;

    // If either list is null, return whether the other is empty
    if (one == null)
        return two.isEmpty();
    if (two == null)
        return one.isEmpty();

    // If lengths are not equal, they can't possibly match
    if (one.size() != two.size())
        return false;

    // copy the second list, so it can be modified
    final List<T> ctwo = new ArrayList<>(two);

    for (T itm : one) {
        Iterator<T> it = ctwo.iterator();
        boolean gotEq = false;
        while (it.hasNext()) {
            if (itm.equals(it.next())) {
                it.remove();
                gotEq = true;
                break;
            }
        }
        if (!gotEq) return false;
    }
    // All elements in one were found in two, and they're the same size.
    return true;
}
  • If I am not mistaken, the complexity of this algorithm in a worth case scenario (where the lists are equal but sorted in an opposite manner) would be O(N*N!). – SatA Jun 5 '16 at 11:39
  • Actually, it would be O(N*(N/2)), as with each iteration, the array size decreases. – jazzgil Jun 6 '16 at 8:47
0

It is an alternative way to check equality of array lists which can contain null values:

List listA = Arrays.asList(null, "b", "c");
List listB = Arrays.asList("b", "c", null);

System.out.println(checkEquality(listA, listB)); // will return TRUE


private List<String> getSortedArrayList(List<String> arrayList)
{
    String[] array = arrayList.toArray(new String[arrayList.size()]);

    Arrays.sort(array, new Comparator<String>()
    {
        @Override
        public int compare(String o1, String o2)
        {
            if (o1 == null && o2 == null)
            {
                return 0;
            }
            if (o1 == null)
            {
                return 1;
            }
            if (o2 == null)
            {
                return -1;
            }
            return o1.compareTo(o2);
        }
    });

    return new ArrayList(Arrays.asList(array));
}

private Boolean checkEquality(List<String> listA, List<String> listB)
{
    listA = getSortedArrayList(listA);
    listB = getSortedArrayList(listB);

    String[] arrayA = listA.toArray(new String[listA.size()]);
    String[] arrayB = listB.toArray(new String[listB.size()]);

    return Arrays.deepEquals(arrayA, arrayB);
}
  • What’s the point of all this copying between lists and arrays? – Holger Jun 13 at 11:33
0

My solution for this. It is not so cool, but works well.

public static boolean isEqualCollection(List<?> a, List<?> b) {

    if (a == null || b == null) {
        throw new NullPointerException("The list a and b must be not null.");
    }

    if (a.size() != b.size()) {
        return false;
    }

    List<?> bCopy = new ArrayList<Object>(b);

    for (int i = 0; i < a.size(); i++) {

        for (int j = 0; j < bCopy.size(); j++) {
            if (a.get(i).equals(bCopy.get(j))) {
                bCopy.remove(j);
                break;
            }
        }
    }

    return bCopy.isEmpty();
}
-1

In that case lists {"a", "b"} and {"b","a"} are equal. And {"a", "b"} and {"b","a","c"} are not equal. If you use list of complex objects, remember to override equals method, as containsAll uses it inside.

if (oneList.size() == secondList.size() && oneList.containsAll(secondList)){
        areEqual = true;
}
  • -1: gives the wrong answer with {"a", "a", "b"} and {"a", "b", "b"} : check out source code for AbstractCollection.containsAll(). You have to allow for having duplicate elements as we are talking about Lists, not about Sets. Please see my answer. – mike rodent Dec 12 '16 at 21:07

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