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I've been trying to get my head around the Reactive Extensions for .NET of late, but have hit a bit of a conceptual wall: I can't work out why IObservable.First() blocks.

I have some sample code that looks a bit like this:

var a = new ListItem(a);
var b = new ListItem(b);
var c = new ListItem(c);
var d = new ListItem(d);

var observableList = new List<ListItem> { a,b,c,d }.ToObservable();

var itemA = observableList.First();

// Never reached
Assert.AreEqual(expectedFoo, itemA.Foo);

What I was expecting to happen was for itemA to be referentially equal to a and to be able to access its members, etc. What happens instead is that First() blocks and the Assert.AreEqual() is never reached.

Now, I know enough to know that when using Rx, code should Subscribe() to IObservables, so it's likely that I've just done the wrong thing here. However, it's not possible, based on the various method signatures to do either of:

observableList.First().Subscribe(item => Assert.AreEqual(expectedFoo, item));

or

observableList.Subscribe(SomeMethod).First() // This doesn't even make sense, right?

What am I missing?

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I'd expect this to work too - I'd expect it to subscribe immediately, wait for the first value to be pushed, and then unsubscribe. With an observable based on a collection, that should happen immediately. Hmm. –  Jon Skeet Aug 3 '11 at 9:10
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2 Answers

up vote 3 down vote accepted

First() returns a T, not an Observable<T>, so it must block.

A non-blocking form is xs.Take(1)

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Trying this code out in a test project worked fine, so I revisited the problematic code. It turned out the problem was because the IObservable<ListItem> was being Publish()ed somewhere under the covers and so being converted into an IConnectableObservable<ListItem>. Without a call to connect, the subscription was never "activated".

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1  
Your question is just a tad ambiguous. Scott Weinstein's answer is technically correct. First() is a blocking operator. In your case you expected your program to continue immediately because your Observable should yield values immediately on subscription, but First() should still be considered a blocking operator. Take(1).Subscribe(...) would give you the same behavior in a non-blocking form. Your observation about the ConnectableObservable is extremely helpful to others, though, so thanks for posting this. –  Anderson Imes Aug 3 '11 at 15:30
    
Anderson Imes: thanks for the clear explanation. I have up-voted both your comment and @Scott Weinstein's answer as a result. –  alastairs Aug 3 '11 at 16:54
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