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I am trying to get the 20 latest values of an observable and exposing it as a property without blocking occurring. At the moment, my code looks like:

class Foo
{
    private IObservable<int> observable;

    public Foo(IObservable<int> bar)
    {
        this.observable = bar;
    }

    public IEnumerable<int> MostRecentBars
    {
        get 
        {
             return this.observable.TakeLast(20).ToEnumerable();
        }
    }
 }

However, when the MostRecentBars getter is called, this is blocking, presumably because ToEnumerable will not return until there are at least 20 observed values.

Is there a built-in way to expose up to a maximum of 20 most recent values of the observable without blocking? If there are less than 20 observed values then it should just return all of them.

share|improve this question
    
There's no so-called TakeLast method in IObservable<T> –  ojlovecd Oct 28 '11 at 3:11

4 Answers 4

up vote 0 down vote accepted

I can't think of a built-in Rx operator(s) that fits your requirements. You could implement it this way:

class Foo
{
    private IObservable<int> observable;
    private Queue<int> buffer = new Queue<int>();

    public Foo(IObservable<int> bar)
    {
        this.observable = bar;

        this.observable
            .Subscribe(item =>
            {
                lock (buffer)
                {
                    if (buffer.Count == 20) buffer.Dequeue();
                    buffer.Enqueue(item);
                }
            });
    }

    public IEnumerable<int> MostRecentBars
    {
        get
        {
            lock (buffer)
            { 
                return buffer.ToList();     // Create a copy.
            }
        }
    }
}
share|improve this answer

I'll give you two choices. One uses the Rx Scan operator, but I think that one makes it a little more complicated to read. The other uses a standard Queue with locking. You can choose.

(1)

class Foo
{
    private int[] bars = new int[] { };

    public Foo(IObservable<int> bar)
    {
        bar
            .Scan<int, int[]>(
                new int[] { },
                (ns, n) =>
                    ns
                        .Concat(new [] { n, })
                        .TakeLast(20)
                        .ToArray())
            .Subscribe(ns => bars = ns);
    }

    public IEnumerable<int> MostRecentBars
    {
        get 
        {
            return bars;
        }
    }
}

(2)

class Foo
{
    private Queue<int> queue = new Queue<int>();

    public Foo(IObservable<int> bar)
    {
        bar.Subscribe(n =>
        {
            lock (queue)
            {
                queue.Enqueue(n);
                if (queue.Count > 20)
                {
                    queue.Dequeue();
                }
            }
        });
    }

    public IEnumerable<int> MostRecentBars
    {
        get 
        {
            lock (queue)
            {
                return queue.ToArray();
            }
        }
    }
}

I hope these help.

share|improve this answer
    
After now seeing that Ilian Pinzon pretty much wrote the same Queue implementation I'd go with that approach as your best bet. It's amazing how close our solutions are on this one. I didn't look at his until after posting mine. Nonetheless, the Scan operator is often overlooked but it is very useful in many situations. –  Enigmativity Oct 28 '11 at 4:17

I have a few extensions I tend to attach to any project I build with the reactive extensions, one of them is a sliding window:

public static IObservable<IEnumerable<T>> SlidingWindow<T>(this IObservable<T> o, int length)
{
   Queue<T> window = new Queue<T>();

    return o.Scan<T, IEnumerable<T>>(new T[0], (a, b) =>
    {
        window.Enqueue(b);
        if (window.Count > length)
            window.Dequeue();
        return window.ToArray();
    });
}

This returns an array of the most recent N items (or less, if there have not been N items yet).

For your case, you should be able to do:

class Foo
{
    private IObservable<int> observable;
    private int[] latestWindow = new int[0];

    IDisposable slidingWindowSubscription;

    public Foo(IObservable<int> bar)
    {
        this.observable = bar;
        slidingWindowSubscription = this.observable.SlidingWindow(20).Subscribe(a =>
            {
                latestWindow = a;
            });
    }

    public IEnumerable<int> MostRecentBars
    {
        get 
        {
             return latestWindow;
        }
    }
}
share|improve this answer

Although you have already got your answer, I was thinking of solving this using Replay Subject with buffer and came up with something like:

class Foo
{
    private ReplaySubject<int> replay = new ReplaySubject<int>(20);

    public Foo(IObservable<int> bar)
    {
        bar.Subscribe(replay);
    }

    public IEnumerable<int> MostRecentBars
    {
        get
        {
            var result = new List<int>();
            replay.Subscribe(result.Add); //Replay fill in the list with buffered items on same thread
            return result;
        }
    }
}

Let me know if this fits into your problem.

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