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Assuming:

val l1 = List(1,2,3) 
val l2 = List(2,3,1)

I want a method that confirms that l1 is equal to l2 (as in same contents but different order). Is there an API method on List/Seq to do this?

l1.sameElements(l2)

does not work as it verifies order as well.

I've come up with the following:

l1.foldLeft(l1.size == l2.size)(_ && l2.contains(_))

Is there anything more succinct than the above to do this comparison?

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How does the linked question relate to this question? –  ssanj Sep 1 '10 at 23:58
    
Sets could solve his problem, but his comment to the answer below states he wants duplicates to be supported also, so Sets now won't work. –  James Black Sep 2 '10 at 0:13
    
Yes, in the question, I check that the size of lists are equal. So basically the lists would have to be of equal size, duplicates or not. –  ssanj Sep 2 '10 at 0:16

2 Answers 2

up vote 9 down vote accepted

If what you want is "these lists contain the same elements, irrespective of order or repetitions":

l1.toSet == l2.toSet

If what you want is "these lists contain the same elements, and with the same number of repetitions of each":

l1.sorted == l2.sorted

If what you want is "these lists contain the same elements and are the same size, but the number of repetitions of a given element can differ between the two lists":

l1.size == l2.size && l1.toSet == l2.toSet

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I want to cater for duplicate elements as well. So List(1,2,3,3) should not equal (List(3,2,1)) –  ssanj Sep 2 '10 at 0:00
    
Ok, edited to reflect that :) –  pelotom Sep 2 '10 at 0:08
    
List(1,2,3,3).sorted != List(3,2,1) –  ssanj Sep 2 '10 at 0:15
    
I'm confused about what you want. You want to make sure that the exact same set of elements occurs the exact same number of times in each list, irrespective of order, right? –  pelotom Sep 2 '10 at 0:19
    
Sorry, I meant: List(1,2,3,3).sorted != List(3,2,1).sorted Yes, just the same number of elements and the same elements - could be in a different order. –  ssanj Sep 2 '10 at 0:25

While

l1.sorted == l2.sorted

is correct, it's runtime performance is O(n log n), because of the sorting. For large lists, you are probably better with

l1.groupBy(identity) == l2.groupBy(identity)

which should be O(n), assuming a decent implementation of groupBy.

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