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I've been trying to add a new extension method for to distinct an IEnumerable<T> object. For both learning and applying purposes.

The logic behind should do something like this : (this works)

 // sis is a DbContext by the way
 List<MyObj> objs = sis.MyObjs.ToList();

 // objs contains duplicate entities

 List<MyObj> _objs = new List<MyObj>();

 foreach(MyObj e in MyObjs)
 {
     if (_ems.Contains(e) == false) _ems.Add(e);
 }


 foreach(MyObj e in _ems)
 {
     Console.WriteLine(e.ID); // Distinction happens
 }

I've wrote a new extension method to do the same as above lines.

 public static IEnumerable<T> Distinct<T>(this IEnumerable<T> en)
 {
     foreach(T f in en)
     {
         if (en.Contains(f) == false) yield return f;
     }
 }

but it didn't work. And the strange thing is, I've also tried these (separately)

  objs.Distinct(); // default Distinct() method in Linq
  objs.GroupBy(t => t.ID).Select(t => t.FirstOrDefault());

but they also couldn't have distinct the objects. The only thing works, first logic that i wrote above.

So, how could one possibly write a new extension to do the same thing as first logic does ?

share|improve this question
    
AFAIK, you need to implement IComparable<T> for each T you want to use here in order for this to work. Right now it is comparing pointer values and not property values. –  Elad Lachmi Mar 20 at 11:12
1  
foreach(T f in en) { if (en.Contains(f) == false) yield return f; } - this will never work as you intended - basically it says: for each object f in the set en return f iff f is not an object in en - no wonder this always gives an empty set. –  decPL Mar 20 at 11:27
    
Wow. When you put it like that... :) I need to change the logic. –  paroxit Mar 20 at 11:29

2 Answers 2

This all depends on how T implements Equals and GetHashCode. If the implementation is the default inherited from object then this will be reference equality.

Unless T has a level of immutability like string, then all instances will be different, they'll have different references.

You can add an overload to your Distinct method to accept an IEqualityComparer<T> implementation to override Ts behaviour.

Additionaly, your current implementation is more of a existence stripper, see a proposed alternative below.

public static IEnumerable<T> Distinct<T>(
        this IEnumerable<T> source,
        IEqualityComparer<T> comparer = null)
{
    if (comparer == null)
    {
        comparer = EqualityComparer<T>.Default;
    }

    var seen = new HashSet<T>(comparer);

    foreach (var t in source)
    {
        if (seen.Contains(t))
        {
            continue;
        }

        yield return t;
        seen.Add(t);
    }
}
share|improve this answer
    
I've also added a IEqualityComparer<MyObj> to change the way Distinct() works, but it also didn't work. –  paroxit Mar 20 at 11:26
    
That seems unnecessary, why don't you just do return new HashSet<T>(source, comparer);? the hashset will de-dupe based upon the comparer when the items are added to it, the check, add, yield seems redundant... –  Trevor Pilley Mar 20 at 11:51
    
@TrevorPilley that would be much simpler but, then you wouldn't yield results until the whole sequence was enumerated, a problem if the sequence were long or infinite. Additionally, the OP states this is a learning experience. In practice I'd obviously just call the exisiting extension msdn.microsoft.com/en-us/library/bb338049(v=vs.110).aspx –  Jodrell Mar 20 at 12:02
    
@TrevorPilley, I agree that it seems wasteful to, in the end, have a redundant set containing everything you just returned. –  Jodrell Mar 20 at 12:04
    
@Jodrell - just looked at the .NET Distinct extension method and it works similar to your approach, it enumerates the source, adds to a set and yields discarding the set. –  Trevor Pilley Mar 20 at 12:07

When using List and Dictionaries always remember to override Equals and GetHashCode in the T entity that you wish to use.

In your example above you are comparing references (addresses) and not the intended values of those addresses.

share|improve this answer
    
Hmmm, what I said but, an hour later. –  Jodrell Mar 20 at 12:33

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