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I'm trying to get my head around the Iteratee library in Play 2.2.x. I'm writing a function that generates a stream of data which is expensive to compute. Here's the basic idea, replacing the expensive to compute part with a square:

def expensiveFunction(x: Int): Future[Int] = Future.successful(x * x)

def expensiveRange(start: Int, end: Int): Enumerator[Future[Int]] = {
    Enumerator.enumerate(start to end).map(i => expensiveFunction(i))
}

If I call expensiveRange I get an Enumerator[Future[Int]], which is not what I want since it seems not to take advantage of the explicit asynchrony of the Iteratee pattern. It seems I should be able to transform this into an Enumerator[Int] which under the covers uses the futures I return instead of creating another layer of Future.

Am I right in my thinking that transforming the result to Enumerator[Int] is desirable? If so, what is the idiomatic way to do so?

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up vote 11 down vote accepted

You could convert Enumerator[Future[Int]] to Enumerator[Int] this way:

val enumF = Enumerator((1 to 10).map{Future(_)}:_*) // Enumerator[Future[Int]]

val enum = enumF &> Enumeratee.mapM(identity) // Enumerator[Int]

But you don't need this conversion since, as Travis Brown noted, you could rewrite your method like this:

def expensiveRange(start: Int, end: Int): Enumerator[Int] = {
  Enumerator.enumerate(start to end) &> Enumeratee.mapM(expensiveFunction)
}
share|improve this answer
1  
Why not just plain old Enumerator.enumerate(1 to 10) &> Enumerator.mapM(expensiveFunction)? – Travis Brown Jan 5 '14 at 13:33
    
@TravisBrown: just because it was my first attempt to use iteratee package. Thank you for improvement. I'm not sure it's still my answer. – senia Jan 5 '14 at 14:38
    
Thanks. In Play 2.2.x I don't see an Enumerator.mapM function; I think you meant Enumeratee.mapM. That does seem to work. – anelson Jan 5 '14 at 19:05
    
@anelson: yes, Enumeratee.mapM is a typo. – senia Jan 5 '14 at 19:07

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