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I have an IObservable<byte[]> that I transform into an IObservable<XDocument> using some intermediate steps:

var observedXDocuments =
    from b in observedBytes
    // Lot of intermediate steps to transform byte arrays into XDocuments
    select xDoc;

At some point in time, I'm interested in the observed XDocuments so I subscribe an IObserver<XDocument>. At a later point in time, I would like to subscribe another IObserver<XDocument> and dispose of the old one.

How can I do this in one atomic operation, without loosing any observed XDocument? I could do something like:

oldObserver.Dispose();
observedXDocuments.Subscribe(newObserver);

I'm worried though, that between these two calls, I could loose an XDocument. If I switch the two calls, it could happen that I receive the same XDocument twice.

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2 Answers 2

up vote 6 down vote accepted

I'd probably add a layer of indirection. Write a class called ExchangeableObserver, subscribe it to your observable, and keep it permanently subscribed. The job of ExchangeableObserver is to delegate everything to a given sub-observer. But the programmer is allowed to change the sub-observer being delegated to at any time. In my example I have an Exchange() method. Something like:

public class ExchangeableObserver<T> : IObserver<T> {
  private IObserver<T> inner;

  public ExchangeableObserver(IObserver<T> inner) {
    this.inner=inner;
  }

  public IObserver<T> Exchange(IObserver<T> newInner) {
    return Interlocked.Exchange(ref inner, newInner);
  }

  public void OnNext(T value) {
    inner.OnNext(value);
  }

  public void OnCompleted() {
    inner.OnCompleted();
  }

  public void OnError(Exception error) {
    inner.OnError(error);
  }
}
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+1 this is far better/simpler than my solution –  k3b Jun 14 '11 at 13:23
    
Really like this solution. Always a good idea to add additional layers of indirection ;-) –  Ronald Wildenberg Jun 14 '11 at 13:46
    
Thanks. Now I'm feeling a little unsure about the reads of "inner" in the OnXXX methods. I'm wondering if "inner" should have been marked "volatile" so that the field's reads become volatile reads. –  Corey Kosak Jun 14 '11 at 14:47
    
Also unsure whether this is necessary. In theory I think the following sequence could happen: Thread1: Read inner, Thread2: Exchange, Thread1: Call inner.OnNext. Adding volatile won't fix this: it just prevents the compiler or CLR from reordering instructions. I think this implies that access to inner should be guarded using a ReaderWriterLockSlim, for example. I do not think this causes too much overhead. –  Ronald Wildenberg Jun 15 '11 at 6:48

you can use a semaphore that makes shure that while IObservable<byte[]> prepares for IObservable<XDocument> no observer-change takes place.

pseudocode how this could be done (not testet)

  System.Threading.ReaderWriterLockSlim criticalSection 
       = new System.Threading.ReaderWriterLockSlim(...);  


  ... converting from `IObservable<byte[]>` to `IObservable<XDocument>`  
  criticalSection.EnterReadLock();
  Call IObservable<XDocument>
  criticalSection.ExitReadLock();

  .... replacing IObservable<XDocument>
  criticalSection.EnterWriteLock();
  Call change IObservable<XDocument>
  criticalSection.ExitWriteLock();

Edit: with Call IObservable<XDocument>

  > What exactly do you mean with the line `Call IObservable<XDocument>`?

I interprete your sentense

  > I have an `IObservable<byte[]>` that I transform 
  > into an `IObservable<XDocument>` using some intermediate steps...

that you have registered an eventhandler for IObservable<byte[]> that creates a XDocument from byte[] and then calls something that triggers an event for IObservable<XDocument>.

Call IObservable<XDocument> means the code that triggers the followup-event

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You mean that I temporarily stall the pipeline that transforms byte[] to XDocument while switching observers? I suppose that would work but I'm curious whether this has any performance impact. –  Ronald Wildenberg Jun 14 '11 at 12:22
    
I see you just edited your answer. Not sure I understand how this could work. The IObservable<XDocument> keeps pushing XDocuments while switching (it's a 'hot' observable). What exactly do you mean with the line Call IObservable<XDocument>? –  Ronald Wildenberg Jun 14 '11 at 12:33
    
see update to answer –  k3b Jun 14 '11 at 13:25

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