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I have a Ticket class that contains a List of User objects:

class Ticket {
    public List<User> Users { get; set; }
}

I want to get all Users that are related to tickets. I do this:

var u = from t in db.Tickets
           where t.Users.Count() > 0
           select t.Users

That works but returns a Enumerable with 1 element. And that element is an Enumerable with the Users.

Why is it nested?

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See my post, but use Any() instead of Count() > 0 –  Arnaud F. Mar 16 '12 at 12:28

8 Answers 8

up vote 4 down vote accepted

What you need to do is

  var u = (from t in db.Tickets from user in t.Users select user).ToList();

Then you will have a flattened List of Users. There's no need to check for where t.Users.Count() > 0 and if you did need to you should be using where t.Users.Any() for efficiency.

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1  
Note that two froms translate to SelectMany(), so this is equivalent to some of the other solutions. –  Vladislav Zorov Mar 16 '12 at 12:26
    
Yes, I know, thanks. I should have put both ways for additional brownie points :-) –  Phil Mar 16 '12 at 12:28
1  
based on your rating, I was pretty sure you knew that :) That was just a note to other readers. –  Vladislav Zorov Mar 16 '12 at 12:34
    
@Phil: please correct your syntax. u is declared twice. I used this query: var u = (from t in db.Tickets from user in t.Users select user).ToList(); –  juergen d Mar 16 '12 at 12:44
    
He doesn't really need the ToList() at the end. –  Dan Berindei Mar 16 '12 at 12:44

Because you select a IEnumerable<Users> of List<User>...

The second Enumerable is your List<User>

You can flatten that with the following query.

db.Tickets.Where(t => t.Users.Any()).SelectMany(t => t.Users)

Any() is much faster than Count() > 0 because it will stop couting at the first occurence, Count iterate on the full list of users you have

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Because it doesn't merge in one list all t.Users (t0.Users, t1.Users...). You need to combine them.

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You can merge it to IEnumerable like this: db.Tickets.Where(t => t.Users.Count() > 0).SelectMany(t => t.Users)

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I think you are looking for

var u = (from t in db.Tickets
         from u in t.Users
         select u).Distinct();
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From the query i supose you want to have all the user in the tickets.

You can solve this like this:

List<User> users = new List<User>();

foreach(List<user> u in  db.Tickets.where(ticket => ticktet.Users.Count() > 0).select(ticket => ticket.Users)){
users.AddAll(u);
}            
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The SelectMany method is what you want. From the MSDN documentation:

"Projects each element of a sequence to an IEnumerable(Of T) and flattens the resulting sequences into one sequence."

So you take all the tickets and get all the users for each ticket so the resulting list will be a list of users. You also might want to use the Distinct method as well to remove duplicate users. I'm assuming that a user might be associated with more than one ticket.

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First: A LINQ-Query will always return an enumerable.

Second: Your t.Users is a List, which implements IEnumerable aswell.

So the outer enumerable is the linq resultset and the inner one the actual first result that can be cast back to a list of users like

var u = from t in db.Tickets
       where t.Users.Count() > 0
       select (t.Users as List<User)
share|improve this answer
    
what about FirstOrDefault() that does not return an Enumerable? –  Lloyd Mar 16 '12 at 12:23
    
It returns the first Object in the resultset(Enumerable) or - if the resultset is empty - a default object of the correct type. –  Max Keller Mar 16 '12 at 12:25
    
it returns the First TSource, from an IEnumerable<TSource> not specifically an Enumerable object. MSDN msdn.microsoft.com/en-us/library/bb340482.aspx –  Lloyd Mar 16 '12 at 12:31
    
Right. That's what I meany by "correct type" –  Max Keller Mar 16 '12 at 12:33
1  
A query typically always returns an enumerable, but that is a convention, not a guarantee. A query expression can be of any type whatsoever, including void! It is extraordinarily bad practice to implement the query pattern in such a way that a query has a type that is not a sequence of some sort, but it is certainly possible. –  Eric Lippert Mar 16 '12 at 15:07

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