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I was reading an article on MSDN Magazine about using the Enumerable class in LINQ to generate a random array. The article uses VB.NET and I'm not immediately sure what the equivalent is in C#:

Dim rnd As New System.Random()
Dim numbers = Enumerable.Range(1, 100). _
    OrderBy(Function() rnd.Next)
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6 Answers

up vote 18 down vote accepted

The Developer Fusion VB.Net to C# converter says that the equivalent C# code is:

System.Random rnd = new System.Random();
IEnumerable<int> numbers = Enumerable.Range(1, 100).OrderBy(r => rnd.Next());

For future reference, they also have a C# to VB.Net converter. There are several other tools available for this as well.

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edited to be the combination of everyone's. this was top answer at the time. I'm not playing favorites, just keeping it clean. –  TheSoftwareJedi Oct 31 '08 at 20:42
    
Okay, thanks for letting me know. Just for reference, this is James Curran's code. –  HanClinto Oct 31 '08 at 21:23
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I initially thought this would be a bad idea since the sort algorithm will need to do multiple comparisons for the numbers, and it will get a different sorting key for the same number each time it calls the lambda for that number. However, it looks like it only calls it once for each element in the list, and stores that value for later use. This code demonstrates this:

int timesCalled = 0;
Random rnd = new Random();

List<int> numbers = Enumerable.Range(1, 100).OrderBy(r =>
   {
       timesCalled++;
       return rnd.Next();
   }
).ToList();

Assert.AreEqual(timesCalled, 100);
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Random rnd = new Random();
IEnumerable<int> numbers = Enumerable.Range(1, 100).OrderBy(r => rnd.Next());
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Hmmm, I'm getting: Hmmm, I'm getting: The type arguments for method 'System.Linq.Enumerable.OrderBy<TSource,TKey>(System.Collections.Generic.IEnumer‌​able<TSource>, System.Func<TSource,TKey>)' cannot be inferred from the usage. Try specifying the type arguments explicitly. –  Ryan Oct 31 '08 at 20:36
    
@Ryan: missing parens –  Jimmy Oct 31 '08 at 21:56
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What about something far more easy...

Enumerable.Range(1, 100).OrderBy(c=> Guid.NewGuid().ToString())
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Best I can do off the top of my head without access to Visual Studio (crosses fingers):

System.Random rnd = New System.Random();
IEnumerable<int> numbers = Enumerable.Range(1, 100).OrderBy(rnd => rnd.Next);
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Using the C5 Generic Collection Library, you could just use the builtin Shuffle() method:

IList<int> numbers = new ArrayList<int>(Enumerable.Range(1,100));
numbers.Shuffle();
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I like it. Nice. –  Ryan Nov 1 '08 at 2:46
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