Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

That should be really simple question I believe. But somehow I can't find answer in Google.

Assume that I have 2 Lists of Strings. First contains "String A" and "String B", second one contains "String B" and "String A" (notice difference in order). I want to test them with JUnit to check whether they contains exactly the same Strings.

Is there any assert that checks equality of Strings that ignore order? For given example org.junit.Assert.assertEquals throws AssertionError

java.lang.AssertionError: expected:<[String A, String B]> but was:<[String B, String A]>

Work around is to sort Lists firstly and then pass them to assertion. But I want my code to be as simple and clean as possible.

I use Hamcrest 1.3, JUnit 4.11, Mockito 1.9.5.

share|improve this question
2  
list1.removeAll(list2) should leave list1 empty. I guess you can build on this to get what you want. –  R.J Apr 2 at 9:45
3  
containsAll and removeAll are O(n²) for lists while sorting them and test for equality is O(nlogn). Collections.sort(list1); Collections.sort(list2); assertTrue(list1.equals(list2)); is also clean. –  ZouZou Apr 2 at 9:46
    
possible duplicate of Hamcrest compare collections –  Joe Apr 5 at 8:28

4 Answers 4

You can use List.containsAll to check that the first list contains every element from the second one, and vice versa.

assertTrue(first.containsAll(second) && second.containsAll(first));
share|improve this answer
    
@sanbhat True, fixed. –  Roberto Izquierdo Apr 2 at 9:40
    
I accept this one because the code is the most clean I think. –  kukis Apr 2 at 9:54
1  
@kukis It depends, do you want to check for duplicates? –  Roberto Izquierdo Apr 2 at 10:24
1  
Yes, of course. 2 given Lists must be exactly the same just ignoring order. –  kukis Apr 2 at 10:26
2  
@kukis Check ZouZou's comment on your question then. –  Roberto Izquierdo Apr 2 at 10:28

Note that solution by Roberto Izquierdo has quadratic complexity in general. Solution on HashSets always has linear complexity:

assertTrue(first.size() == second.size() &&
        new HashSet(first).equals(new HashSet(second)));
share|improve this answer
    
That approach won't work. If first is ("String A") and second is ("String A", "String A") they are not the same lists. –  ZouZou Apr 2 at 9:49
    
@ZouZou see edit –  leventov Apr 2 at 9:51
1  
You can't check the size. If first is ("s1", "s2", "s3" ,"s1") and second is ("s2", "s1", "s3" ,"s2"); they are not the same list. –  ZouZou Apr 2 at 9:54
    
@ZouZou the accepted solution has the same problem. You suggested the only really correct solution. If you make an answer I will upvote it. –  leventov Apr 2 at 10:01
    
@ZouZou They are not the same list, but they contain exactly the same Strings. OP, clarify?. Also, make it an answer and I will upvote too :) didn't think of that. –  Roberto Izquierdo Apr 2 at 10:09

As you mention that you use Hamcrest, I would pick one of the collection Matchers

import static org.hamcrest.collection.IsIterableContainingInAnyOrder.containsInAnyOrder;
import static org.junit.Assert.assertThat;

public class CompareListTest {

    @Test
    public void compareList() {
        List<String> expected = Arrays.asList("String A", "String B");
        List<String> actual = Arrays.asList("String B", "String A");

        assertThat("List equality without order", 
            actual, containsInAnyOrder(expected.toArray()));
    }

}
share|improve this answer

For a quick fix I would check both ways: assertTrue(first.containsAll(second)); assertTrue(second.containsAll(first));

And trying with a situation where the number of the same elements is different (e.g. 1, 1, 2 and 1, 2, 2) I didn't get false positives.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.