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'm looking at some code that takes an IEnumerable<T> and converts it to a List<T> so it can use List<T>.Find(predicate):

var myEnumerable = ...;
var myList = new List<T>(myEnumerable);
var match = myList.Find(value => value.Aaa == aaa && value.Bbb == bbb);

Is there a way to rewrite this using the LINQ extension methods that has the same effect, but without building an extra List<T> as an intermediate step?

The FirstOrDefault(source, predicate) extension method looks like a good candidate, but trying to figure out if it's exactly equivalent to Find is making my head hurt.

share|improve this question

3 Answers 3

up vote 7 down vote accepted

The LINQ equivelent would be to use FirstOrDefault:

var match = myEnumerable.FirstOrDefault(value => value.Aaa == aaa && value.Bbb == bbb);
share|improve this answer
    
That's what I suspected, but it's good to hear confirmation from someone with more rep than me (grin). So this does deal with all the edge cases the same way? (Empty collection, nothing that matches, any other exceptional conditions) –  Joe White Jun 29 '11 at 23:40
    
@Joe: Yes. It's going to give you the same results - the first match, or default(T) in the case of no matching elements. It's effectively identical, except that it works on any IEnumerable<T> –  Reed Copsey Jun 29 '11 at 23:42

Or you can do the following way:

var match = myEnumerable.Where(value => value.Aaa == aaa && value.Bbb == bbb)
                        .FirstOrDefault();
share|improve this answer
    
This is querying twice, which is not needed because you can achieve the desired result only with FirstOrDefault –  David Anderson - DCOM Jun 29 '11 at 23:38
    
@danderson: Not true - LINQ uses deferred execution, so the "query" will stop executing as soon as the first element is found. This really isn't much less efficient than just using FirstOrDefault directly [very slightly less efficient, but only microscopically so]. There is still only at most one iteration through the sequence... –  Reed Copsey Jun 29 '11 at 23:44
    
I ran some performance tests and verified this, but do you also know of any articles, whitepapers, or MSDN links that explain how LINQ works under the hood? I haven't found any on MSDN yet –  David Anderson - DCOM Jun 30 '11 at 0:53
1  
@danderson - jon skeet has a 42 part blog series that will help: msmvps.com/blogs/jon_skeet/archive/tags/Edulinq/default.aspx –  saus Jun 30 '11 at 3:03
    
Oh, thank you so much. –  David Anderson - DCOM Jun 30 '11 at 4:21

Just for reference, here is a table of some old .NET 2 style List<> instance methods, and their equivalent extension methods in Linq:

METHOD IN List<>                              METHOD IN Linq
------------------------------------------------------------------------------------------

list.Contains(item)                           query.Contains(item)

list.Exists(x => x.IsInteresting())           query.Any(x => x.IsInteresting())
list.TrueForAll(x => x.IsInteresting())       query.All(x => x.IsInteresting())

list.Find(x => x.IsInteresting())             query.FirstOrDefault(x => x.IsInteresting())
list.FindLast(x => x.IsInteresting())         query.LastOrDefault(x => x.IsInteresting())

list.FindAll(x => x.IsInteresting())          query.Where(x => x.IsInteresting())

list.ConvertAll(x => x.ProjectToSomething())  query.Select(x => x.ProjectToSomething())

Of course some of them are not entirely equivalent. In particular Linq's Where and Select use deferred execution, while FindAll and ConvertAll of List<> will execute immediately and return a reference to a new List<> instance.

FindLast will often be faster than LastOrDefault because FindLast actually searches starting from the end of the List<>. On the other hand LastOrDefault(predicate) always runs through the entire sequence (starting from the first item), and only then returns the most "recent" match.

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.