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 have a ConcurrentDictionary that named with Pr_Matrix:

ConcurrentDictionary<int, ConcurrentDictionary<int, float>> Pr_Matrix = new ConcurrentDictionary<int, ConcurrentDictionary<int, float>>();

The purpose of following code is to add similarity value between each pair of points in the data_set.Set_of_Point data set to this dictionary.

foreach (var point_1 in data_set.Set_of_Point)
{
   foreach (var point_2 in data_set.Set_of_Point)
   {
       int point_id_1 = point_1.Key;
       int point_id_2 = point_2.Key;
       float similarity = selected_similarity_measure(point_1.Value, point_2.Value);

       Pr_Matrix.AddOrUpdate(point_id_1, 
       new ConcurrentDictionary<int, float>() { Keys = {  point_id_2 }, Values = { similarity } }, 
       (x, y) => y.AddOrUpdate(point_id_2, similarity, (m, n) => n));
   }
}

I can't update the ConcurrentDictionarys that exist in main ConcurrentDictionary.

share|improve this question
    
Please include the exceptions you're getting in your post. –  Mike Parkhill Sep 16 '12 at 16:47

1 Answer 1

up vote 1 down vote accepted

The first problem is that the AddOrUpdate method returns a Float data type. You must return a ConcurrentDictionary explicitly:

  Pr_Matrix.AddOrUpdate(point_id_1, new ConcurrentDictionary<int, float>() { Keys = { point_id_2 }, Values = { similarity } }

                        , (x, y) => { y.AddOrUpdate(point_id_2, similarity, (m, n) => n); return y; });

and the secend problem is that the Keys and Values collections is read-only and ConcurrentDictionary does not support Collection Initializer ,so you must initialize it with something like a Dictionary:

Pr_Matrix.AddOrUpdate(
    point_id_1, 
    new ConcurrentDictionary<int, float>(new Dictionary<int, float> {{point_id_2, similarity}} ), 
    (x, y) => { y.AddOrUpdate(point_id_2, similarity, (m, n) => n); return y; }
);
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.