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Is there a built in linq method thing I can use to find out if two sequences contains the same items, not taking the order into account?

For example:

{1, 2, 3} == {2, 1, 3}
{1, 2, 3} != {2, 1, 3, 4}
{1, 2, 3} != {1, 2, 4}

You have the SequenceEquals, but then I would have to Order both sequences first, wouldn't I?

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up vote 24 down vote accepted

There are quite a few ways. Assume A and B is IEnumerable.

A.Except(B).Count() == 0 && B.Except(A).Count() == 0
A.Count() == B.Count() && A.Intersect(B).Count() == B.Count()
etc
share|improve this answer
    
using Intersect there, do you need to do it both ways? – Svish Mar 10 '09 at 13:57
    
I think this is much slower than ordering the sequences. Unless you are dealing with expression trees. – Mehrdad Afshari Mar 10 '09 at 13:59
    
@Svish: Yes, you do need to do it both ways A = B iff A Δ B = Φ. – Mehrdad Afshari Mar 10 '09 at 14:02
5  
query.Count() == 0 is the same as !query.Any(), but the any call is faster because it doesn't evaluate the entire list. – Cameron MacFarland Mar 10 '09 at 22:23
4  
This code only works if the sequences are sets i.e. there are no duplicate items in them – CodesInChaos Apr 7 '11 at 13:39

If you don't care about duplicates (i.e. you'd consider {1, 2, 3} to be equal to {1, 2, 3, 2}) then:

new HashSet<int>(A).SetEquals(B)

(Or whatever type is the element type instead of int).

Otherwise:

public static bool SequenceEqualUnordered<T>(IEnumerable<T> first, IEnumerable<T> second)
{
    if (first == null)
        return second == null; // or throw if that's more appropriate to your use.
    if (second == null)
        return false;   // likewise.
    var dict = new Dictionary<T, int>(); // You could provide a IEqualityComparer<T> here if desired.
    foreach(T element in first)
    {
        int count;
        dict.TryGetValue(element, out count);
        dict[element] = count + 1;
    }
    foreach(T element in second)
    {
        int count;
        if (!dict.TryGetValue(element, out count))
            return false;
        else if (--count == 0)
            dict.Remove(element);
        else
            dict[element] = count;
    }
    return dict.Count == 0;
}

Keep a tally of each element in the first sequence, then check the second against it. The moment you have one too many in the second sequence you can return false, otherwise if you have nothing left in the dictionary of tallies they are equal, or false if there's any elements left.

Rather than the two O(n log n) sorts of using OrderBy() followed by the O(n) comparison, you've an O(n) operation building the set of tallies, and an O(n) check against it.

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Try the HashSet class:

var enumA = new[] { 1, 2, 3, 4 };
var enumB = new[] { 4, 3, 1, 2 };

var hashSet = new HashSet<int>(enumA);
hashSet.SymmetricExceptWith(enumB);
Console.WriteLine(hashSet.Count == 0); //true => equal

But that does only work correctly if the values are distinct.

For example

var enumA = new[] { 1, 1, 1, 2 };
var enumB = new[] { 1, 2, 2, 2 };

are also considered as "equal" with the mentioned method.

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1  
return hashSet.SetEquals(enumB); – Spook Mar 16 '14 at 17:36

With two IEnumerables (A and B) :

bool equal = (A.Count() == B.Count() && (!A.Except(B).Any() || !B.Except(A).Any()))

I think this is better than Except(A).Count because the entire Excep will not be evaluated. It will stop as soon as one element is found in the Except. With the Count, the entire Except is evaluated. On top of this, we can avoid the evaluation of these costly Except just by checking the Count properties first. If Counts are not Equal, then we check the Excepts.

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If you're really just testing to see if there are duplicates, then leppie's suggestion should work:

if (A.Except(B).Count == 0 && B.Except(A).Count == 0) {...}

But if you just need to arrive at an IEnumerable with no duplicates:

var result = A.Union(B).Distinct();
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I did this for merging new items into a collection without duplicates, it takes two collections and returns all the items with out any duplicates

List<Campaign> nonMatching = (from n in newCampaigns 
where !(from e in Existing select e.Id).Contains<int>(n.Id) 
select n).ToList<Campaign>();

Now by removing the ! for the contains statement

List<Campaign> nonMatching = (from n in newCampaigns 
where (from e in Existing select e.Id).Contains<int>(n.Id) 
select n).ToList<Campaign>();

it will return the duplicates

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I think ordering the sequence is the fastest way you can achieve this.

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For SequenceEquals it has to be the same order. – leppie Mar 10 '09 at 13:56
    
"The SequenceEqual<(Of <(TSource>)>)(IEnumerable<(Of <(TSource>)>), IEnumerable<(Of <(TSource>)>)) method enumerates the two source sequences in parallel and compares corresponding elements by using the default equality comparer for TSource, Default." – Svish Mar 10 '09 at 13:56
    
Yeah, I misread the question. This is O(nlogn) which is the fastest asymptotic time an algorithm can achieve for this purpose. – Mehrdad Afshari Mar 10 '09 at 13:56
    
Even if it is two sequences? – Svish Mar 10 '09 at 14:09
    
probably is, when I think about it a bit more.... – Svish Mar 10 '09 at 14:10

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