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.

I am using using Microsoft .NET Framework 4.0.

I have run into this using Aggregate on a Dictionary<T, List<T>> to extract the set of type T values used across all type List<T> lists in the dictionary. Here is the simplest case I could come up with that exhibits the same behaviour.

First, as the documentation states, the following does work:

var set = new HashSet<int>();
var list = new LinkedList<int>();
var newSet = set.Union(list);

That is, I can call Union on a HashSet with a List as the argument (since it implements IEnumerable).

Whereas, the equivalent expression within a Func argument of the LINQ Aggregate expression produces an error (precompiler at least):

new List<int>[] { new List<int>() }.Aggregate(new HashSet<int>(), (acc, list) => acc.Union(list));

It expects the argument of Union to be HashSet, and will cooperate if it is given one, contrary to its behaviour outside LINQ/Func expressions.

The real world example I was using when I came across the problem was:

public AdjacencyListGraph(Dictionary<TVertex, LinkedList<TVertex>> adjacencyList)
{
    var vertices = adjacencyList.Aggregate(new HashSet<TVertex>(),
    (vertices, list) => vertices.Union(list.Value));
}

Which complains that it cannot convert IEnumerable<TVertex> to HashSet<TVertex>...

share|improve this question
    
I'm curious, what do you mean by 'precompiler'? –  Joren Oct 14 '10 at 17:18

3 Answers 3

up vote 0 down vote accepted

The problem actually lies in trying to replace the accumulator type of HashSet with the IEnumerable, .Union method doesn't add items to HashSet, but returns the new IEnumerable on the resulting union.

You should change your code to the following:

    // select from keys
    var vertices = new HashSet<TVertex>(adjacencyList.Keys);

or

    // select from values
    var vertices = new HashSet<TVertex>(adjacencyList.SelectMany(dictEntry => dictEntry.Value));
share|improve this answer
    
Your first example would not produce what my expression is trying to achieve. I am looking to take the union of all of the adjacencyList's Values, which are lists, not to get the eet of the indices for those lists. –  silasdavis Oct 15 '10 at 8:22
    
That's why I added the second. Your intentions couldn't be deduced from the incorrect code. –  Grozz Oct 15 '10 at 8:24
    
Sorry I was just about to reply, the second does do what I want, thanks. –  silasdavis Oct 15 '10 at 8:29
    
However I'm not sure why I can't do what I did originally. I intended to replace the accumulator... like in a ruby inject –  silasdavis Oct 15 '10 at 8:30
    
Ah... The following does work: var vs = adjacencyList.Aggregate((IEnumerable<TVertex>) new HashSet<TVertex>(), (vertices, list) => vertices.Union(list.Value)); –  silasdavis Oct 15 '10 at 8:34

The problem here is in your understanding of the Select method. The lambda passed in does not recieve the list but instead elements of the list. So the variable you've named list is in fact of type int which is not compatible with Union.

Here is a more explicit example of what you're trying to do

new List<int>().Select( (int list) => new HashSet<int>().Union(list));

With the type infererence removed it's much clearer why this doesn't work.

share|improve this answer
    
You're quite right, I am using Select wrongly in the above example, it should have read something like this: new List<int>[] {new List<int>()}.Select(list => new HashSet<int>().Union(list)); In my real world case you van see that list is a genuine list. –  silasdavis Oct 15 '10 at 8:18
new List<int>().Select(list => new HashSet<int>().Union(list));

I think you would expect to use SelectMany here, unless you want the result to be IEnumerable<IEnumerable<T>>.

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.