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I am sorting some IEnumerable of objects:

var sortedObjects = objects.OrderBy(obj => obj.Member)

Where Member is of an IComparable type. This sort seems to put objects with obj.Member == null at the top. This is roughly the behaviour that I want, but can I consider this to be stable with respect to future .NET frameworks? Is there a way I can make this 'nulls are low' behaviour more explicit?

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"... at the top" & "nulls are low" seem to contradict one another. OTOH interesting question. +1 –  spender Jul 21 '11 at 17:09
You could implement your own OrderBy method. What exactly are you asking is stable. Why do you keep a reference to a null object? –  Ramhound Jul 21 '11 at 17:10
@spender: nulls are low in value, so they are at the top (when sorted from low to high... or ascending). –  Jason Down Jul 21 '11 at 17:11
@spender that's what I was going for –  silasdavis Jul 23 '11 at 8:55

3 Answers 3

up vote 12 down vote accepted

To make the behavior more explicit:

var sorted = objects.OrderBy(o => o.Member == null).ThenBy(o => o.Member);
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Very nice. I like this. +1 –  Jason Down Jul 21 '11 at 17:31
Yup. I think this is the clearest/nicest of any solution. +1. –  Pete Jul 21 '11 at 19:15

One option is to use the overload of OrderBy that takes an IComparer<T> and implement it yourself to codify this expectation:

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From MSDN for IComparable:

By definition, any object compares greater than (or follows) null, and two null references compare equal to each other.

So a null object is considered less than a non-null object. If sorting ascending, you will get nulls first.

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I feel this answers the letter my question well, but I'm going with the consensus and accepting danny chen's answer which makes it explicit with the least knowledge required of the reader –  silasdavis Jul 23 '11 at 8:59
@silasdavis: Works for me. –  Jason Down Jul 23 '11 at 15:04

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