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I have a CustomObject object which overrides GetHashCode(). I have a HashSet, and I am able to call add with two distinct object having the same hash code. Both get added and later on I end up with some database insertion troubles (primary key duplicates)... The purpose of using a hashSet was connected to these database insertions (avoiding key collisions).

Am I possibly missing out on some properties of HashSet ? Even when I try checking (.Contains) before adding (.Add), I end up adding hashCode duplicates...

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2  
If a hash collision was sufficient for the HashSet to consider two values duplicates, it would be pretty worthless. Identical hashes for unequal values are to be expected. – delnan Jun 6 '12 at 15:13
    
Well, perfect hashing is a concept that could make sense – Jerome Jun 7 '12 at 9:19
up vote 14 down vote accepted

Because HashSet<T> membership is based on object equality, not hash code equality. It's perfectly legal for every member of a HashSet<T> to have the same hash code as long as the members are different according to Equals. The role that hash codes play in HashSet<T> is for rapid testing of membership. If you have an object and its hash code is not in the HashSet<T>, then you know that the object is not in the HashSet<T>. If you have an object and its hash code is in the HashSet<T>, then you have to walk the chain of objects with that same hash code testing for equality using Equals to see if the object is actually in the HashSet<T> or not. That's why a balanced hash code distribution is important. But it is not the case that unique hash codes are necessary.

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It is wrong saying that hashset is based on equality, because is based on both equality and hash code. First an hash is computed to pick a precise address, then equals is used to place the element in the collision list. – Felice Pollano Jun 6 '12 at 20:40
3  
You're talking about an implementation detail. HashSet is a set, and membership is determined by Equals equality. It just happens that it uses hash code for performance. Read my answer, and I already pointed out the mechanism you describe. Please remove the downvote. – jason Jun 7 '12 at 3:54

Overriding GetHashCode is not enough. You need to override Equals function as well.

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Why is this voted down? – GianT971 Jun 6 '12 at 15:15
1  
Why was this downvoted? Maybe is not the complete answer, but is for sure a point to start. So I adjusted with +1. – Felice Pollano Jun 6 '12 at 15:15

Do not use hashsets to try to avoid duplicate values. Use them to balance hash tables!

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This doesn't answer the question of why duplicate hashes are allowed. – Chris Shain Jun 6 '12 at 15:09
    
Huh? Sets are a good choice for filtering out duplicates. Unless there is a difference which is not reflected in hash and equality and care which object is retained, but that seems rather rare. I don't know much about the .NET world, maybe I miss something? – delnan Jun 6 '12 at 15:11
    
@ChrisShain, delnan I'll be honest I thought I had added this as a comment and just noticed. – asawyer Jun 6 '12 at 15:20

I have an example for that... (code in VB)

Module Module1
  Sub Main()
  Dim X1 As New X With {.Name = "1"}
  Dim X2 As New X With {.Name = "2"}
  Console.WriteLine(X1.Equals(X2)) 'False, not equality.
  Console.WriteLine(X1.GetHashCode = X2.GetHashCode) 'True, both objects have the same hash code.

  Dim Hasher As New HashSet(Of X)
  Console.WriteLine(Hasher.Add(X1)) 'True, that is mean object X1 was successful to add
  Console.WriteLine(Hasher.Add(X2)) 'True, that is mean object X2 was successful to add

  Console.WriteLine(Hasher.Contains(X1)) 'True
  Console.WriteLine(Hasher.Contains(X2)) 'True
  Console.WriteLine(Hasher.Count)
  'obviously, two objects are in the hash set.

  Console.ReadKey()
  End Sub
End Module

Class X
  Public Property Name As String

  Public Overrides Function Equals(obj As Object) As Boolean
    Return Name = DirectCast(obj, X).Name
  End Function

  Public Overrides Function GetHashCode() As Integer
    Return 1
  End Function
End Class
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1  
what the heck is this? you cannot have gethascode returning 1 all the time.. collision will be greater and you code complexity becoming O(n) rather than O(1). – user384080 May 6 '14 at 4:57

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