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In an IObservable sequence (in Reactive Extensions for .NET), I'd like to get the value of the previous and current elements so that I can compare them. I found an example online similar to below which accomplishes the task:

sequence.Zip(sequence.Skip(1), (prev, cur) => new { Previous = prev, Current = cur })

It works fine except that it evaluates the sequence twice, which I would like to avoid. You can see that it is being evaluated twice with this code:

var debugSequence = sequence.Do(item => Debug.WriteLine("Retrieved an element from sequence"));
debugSequence.Zip(debugSequence.Skip(1), (prev, cur) => new { Previous = prev, Current = cur }).Subscribe();

The output shows twice as many of the debug lines as there are elements in the sequence.

I understand why this happens, but so far I haven't found an alternative that doesn't evaluate the sequence twice. How can I combine the previous and current with only one sequence evaluation?

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5 Answers 5

up vote 12 down vote accepted

There's a better solution to this I think, that uses Observable.Scan and avoids the double subscription:

public static IObservable<Tuple<TSource, TSource>>
    PairWithPrevious<TSource>(this IObservable<TSource> source)
{
    return source.Scan(
        Tuple.Create(default(TSource), default(TSource)),
        (acc, current) => Tuple.Create(acc.Item2, current));
}

I've written this up on my blog here: http://www.zerobugbuild.com/?p=213

Addendum

A further modification allows you to work with arbitrary types more cleanly by using a result selector:

public static IObservable<TResult> CombineWithPrevious<TSource,TResult>(
    this IObservable<TSource> source,
    Func<TSource, TSource, TResult> resultSelector)
{
    return source.Scan(
        Tuple.Create(default(TSource), default(TSource)),
        (previous, current) => Tuple.Create(previous.Item2, current))
        .Select(t => resultSelector(t.Item1, t.Item2));
}
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Evaluating twice is an indicator of a Cold observable. You can turn it to a Hot one by using .Publish():

var pub = sequence.Publish();
pub.Zip(pub.Skip(1), (...
pub.Connect();
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Found an easy to digest article about the difference between Hot and Cold Observables: blogs.microsoft.co.il/blogs/bnaya/archive/2010/03/13/… –  gn22 May 13 '10 at 18:10
    
Using Publish and Connect I still see the side effects of the Zip(Skip(1), ...) occur twice. I suppose it's not really the original source I needed to evaluate once, but the IObservable query itself. Still, thanks for the info. –  dcstraw May 17 '10 at 16:15
    
@dcstraw Strange, I published the debugSequence from your example above (I used Observable.Range for the sequence) and it evaluated once for me. Using .Publish in the described situation is pretty much a no-brainer in the RX land... –  Sergey Aldoukhov May 18 '10 at 2:49

It turns out you can use a variable to hold the previous value and refer to it and reassign it within the chain of IObservable extensions. This even works within a helper method. With the code below I can now call CombineWithPrevious() on my IObservable to get a reference to the previous value, without re-evaluating the sequence.

public class ItemWithPrevious<T>
{
    public T Previous;
    public T Current;
}

public static class MyExtensions
{
    public static IObservable<ItemWithPrevious<T>> CombineWithPrevious<T>(this IObservable<T> source)
    {
        var previous = default(T);

        return source
            .Select(t => new ItemWithPrevious<T> { Previous = previous, Current = t })
            .Do(items => previous = items.Current);
    }
}
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Interesting, not immediately obvious that this works! –  user7116 May 12 '10 at 19:39
    
This has (an unfortunately common) bug! Avoid using "Do" because it introduces a side-effect; it's executed for every subscriber. This code breaks for every subscription to a given CombineWithPrevious invocation after the first because the second and subsequent subscriptions will cause Do to overwrite the previous value with the current one. So this works: source.CombineWithPrevious().Subscribe(first); source.CombineWithPrevious().Subscribe(second); but this doesn't: var x = source.CombineWithPrevious(); x.Subscribe(first); x.Subscribe(second); See my answer below for a correct approach. –  James World Oct 2 '13 at 9:20

If you only need to access the previous element during subscription, this is probably the simplest thing that will work. (I'm sure there's a better way, maybe a buffer operator on IObservable? The documentation is pretty sparse at the moment, so I can't really tell you.)

    EventArgs prev = null;

    sequence.Subscribe(curr => 
    {
        if (prev != null)
        {
            // Previous and current element available here
        }

        prev = curr;                              

    });

EventArgs is just a stand-in for the type of your event's argument.

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Thanks for the suggestion. I do however need the previous element before subscription because I would like to filter the sequence based on logic using the previous and current. –  dcstraw May 12 '10 at 17:17
    
Got it; i'll do a bit more research –  gn22 May 12 '10 at 17:29

See this link for an example of how to consume a sequence as pairs (prev, curr) of items: http://stackoverflow.com/questions/2768834/how-to-zip-one-ienumerable-with-itself

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Some good info there but it's specific to IEnumerable rather than IObservable. –  dcstraw May 17 '10 at 16:22

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