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I have the following code:

    public static IEnumerable<T> cons<T>(T y, IEnumerable<T> xs)
    {
        yield return y;
        foreach (var x in xs) yield return x;
    }

    public static bool empty<T>(IEnumerable<T> xs)
    {
        return !xs.GetEnumerator().MoveNext();
    }

    public static T head<T>(IEnumerable<T> xs)
    {
        Debug.Assert(!empty(xs), "Prelude.head: empty list");
        var e = xs.GetEnumerator(); e.MoveNext();
        return e.Current;
    }

    // repeat x is an infinite list, with x the value of every element
    public static IEnumerable<T> repeat<T>(T x)
    {
        return cons(x, repeat(x));
    }

Why does head(repeat(2)) not work, but if I replace the implementation of repeat with:

    // repeat x is an infinite list, with x the value of every element
    public static IEnumerable<T> repeat<T>(T x)
    {
        for(;;) yield return x;
    }

it works?

share|improve this question
    
Please define "not work". Are you getting an error? –  Kyle Trauberman Jul 15 '11 at 21:46
    
What do you mean by "not working" exactly? –  Lasse V. Karlsen Jul 15 '11 at 21:47
    
When I run it in a unit test, the test says "Error". I'm new to C# and not really sure how to get more information. =/ –  Clark Gaebel Jul 15 '11 at 21:49
    
Do you know which type of error you get? I'm leaning towards a stack overflow personally. Hint: return cons(x, repeat(x)); will evaluate repeat(x) immediately, not lazily, and since every call to repeat ends up calling itself, you should get a stack overflow exception. –  Lasse V. Karlsen Jul 15 '11 at 21:50
    
Also, which unit test framework are you using? If it doesn't report the actual exception thrown you should reconsider that choice for future projects. –  Lasse V. Karlsen Jul 15 '11 at 21:51

2 Answers 2

up vote 3 down vote accepted

Your first implementation is not tail recursive. The last thing to execute would be the cons() call, but in order to execute that, it must evaluate repeat(2). To do that, it must (once again) evaluate repeat(2). And so on until the stack overflows.

Your second implementation creates an enumerator that returns x indefinitely every time it is asked for the next element. No re-entrancy, so no stack overflow.

share|improve this answer

From the looks of it, your first example never terminates so it simply blows the stack. Your second example is implemented as a state-machine which avoids a stack overflow.

share|improve this answer
    
Doesn't cons also implement that state machine? Why would the second parameter be eagerly evaluated? In other words, why wouldn't it yield immediately after pulling the first element? –  Clark Gaebel Jul 15 '11 at 21:52
    
@Clark - Each stack frame includes a state-machine. There is a huge difference there. –  ChaosPandion Jul 15 '11 at 21:53
    
@Clark: Because C# is not a lazy language. The evaluation order is the same as if the return value was an int. IEnumerable<T> doesn't magically make it lazy. –  hammar Jul 15 '11 at 21:53
    
Okay. I get it now. Thank you. I'll upvote both answers, but give the acceptance to the other guy since he has less points right now. =) –  Clark Gaebel Jul 15 '11 at 21:55
1  
Thanks! :) By the way, if you are interested in lazy evaluation in C#, .NET 4.0 introduced a new class to try to facilitate it in non-lazy evaluated languages like C#. See msdn.microsoft.com/en-us/library/dd642331.aspx for more information. –  Jonathan DeCarlo Jul 15 '11 at 21:58

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