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Note this question is similar this one except I'm not working with linq-to-sql, so the "let" is not usable.

Basically I have a select of the type

... .Select(c => new SampleClass { Id = c.Location.Name, Name = c.Location.Name }).Distinct().ToList()

which used to work when I just had

... .Select(c => c.Location.Name).Distinct().ToList()

How would I make a distinct call on one of the items within the SampleClass?

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"let" is usable in Linq to objects too... –  Meta-Knight Dec 18 '09 at 21:04
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2 Answers

up vote 2 down vote accepted

You can group items by the key, and then select what item from the group you want to use as value. I use FirstOrDefault as an example:

... .Select(c => new SampleClass { Id = c.Location.Name, Name = c.Location.Name })
    .GroupBy(c => c.Id)
    .Select(group => group.FirstOrDefault())
    .ToList()
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Correction: I would need to do a .GroupBy(c=> c.Id) –  Rio Dec 18 '09 at 21:21
    
Oh ok, I thought you needed c.Location.Name because of the second code sample in your question. Anyway, I'll update accordingly –  Sander Rijken Dec 18 '09 at 21:22
    
Why are Id and Name both set to c.Location.Name? –  Sander Rijken Dec 18 '09 at 21:23
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Is this what you need: http://sprokhorenko.blogspot.com/2009/11/convenient-distinct.html ?

This is an extension for IEnumerable that allows you to .Distinct() for any field (or even several ones using lambdas), which creates IEqualityComparer for you on the fly.

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i almost voted you down for the external link ( i hate it to find a question with an answer and then not to be able to follow the links ), but since that link is actually Awesome, i didnt vote down. –  Dementic Aug 22 '11 at 11:43
1  
OK, I'll keep that in mind for future. Thanks for the kind words, I'm glad my blog was useful for someone. Maybe it's time to continue writing ;-) –  queen3 Sep 8 '11 at 15:21
    
The approach described in the linked post is what I also prefer. I wonder why this extension method isn't included in the framework out-of-the-box, as it kinda jumps into your face once you have to deal with Distinct(). –  alexander.biskop Mar 14 '13 at 13:29
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