Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This is a combination of a stylistic question, and my attempts to broaden my Scala understanding.

I've got a list containing Future's, I want to compute the values of the futures, transform into Option's, and flatten the list using a for comprehension:

import scala.util.Try
import scala.concurrent._
import ExecutionContext.Implicits.global

val l= List(Future.successful(1),Future.failed(new IllegalArgumentException))

implicit def try2Traversible[A](xo: Try[A]): Iterable[A] = xo.toOption.toList

val res = for{f <- l; v <- f.value} yield v

scala> res: List[scala.util.Try[Int]] = List(Success(1), Failure(java.lang.IllegalArgumentException))

res.flatten
res16: List[Int] = List(1)

What I want to do is get the flatten stage into the for comprehension, anyone got any suggestions?

share|improve this question
add comment

3 Answers 3

Doing this is incorrect:

for{f <- l; v <- f.value} yield v

It appears to work in your case only because the futures are already fulfiled, which is why their value member is defined. However in the general case they might not yet be fulfilled when you execute the for comprehension, and thus value will return None (despite the fact that at some point they will eventually be fulfilled). By example, try this in the REPL:

val f1 = Future{ 
  Thread.sleep(3000) // Just a test to illustrate, never do this!
  1
}
val f2 = Future{ 
  Thread.sleep(3000) // Just a test to illustrate, never do this!
  throw new IllegalArgumentException
}

val l = List( f1, f2 )
for{f <- l; v <- f.value} yield v

The result is an empty list, because none of the futures in l is fulfilled yet. Then wait a bit (at most 3 seconds) and reexecute the for comprehension (the last line), and you will get a non empty list because the futures have finally been fulfilled.

To fix this, you will have to either block (that is, wait for all the futures to be fulfiled) using scala.concurrent.Await, or stay in the asynchronous world by using something like Future.map or Future.flatMap. By example, if you want to block, you could do:

Await.result( Future.sequence( l ), duration.Duration.Inf )

Await.result waits for the result of the future, allowing to go from the asynchronous world to the synchronous world. The result of the above is a List[Int] The problem now is that you lose the failure cases (the result is not List[Try[Int]] as you wanted), and will actually rethrow the first exception. To fix this, you can use this helper method that I posted in another answer: http://stackoverflow.com/a/15776974/1632462 Using it, you can do:

Await.result( Future.sequence( l map mapValue ), duration.Duration.Inf )

This will wait until all the futures are fulfiled (either with a correct value, or with an error) and return the expected List[Try[Int]]

share|improve this answer
add comment

The idea is to traverse to Try object as if it were an Option (i.e. a 0 or 1 element collection) within the for-comprehension itself. For this traversal to work there has to be a conversion from the Try type to the Option type.

This should work:

implicit def try2option[A](xo: Try[A]) = xo.toOption

val res = for (f <- l; t <- f.value; x <- t) yield x
share|improve this answer
add comment

You should keep a Future around your final result to retain the asynchronous nature of the computation.

The nice way to do this (and obtain a Future[List[Int]]) would be (probably what you tried):

for {
  f <- l    // Extract individual future
  v <- f    // Extract value from future
} yield v

Unfortunately this translates to:

l.flatMap(f => f.map(v => v))

Which does not work, because Future does not inherit GenTraversableOnce (and probably shouldn't), but List needs this trait for its flatMap.

However, we can do this manually: val res = l.foldRight(Future.successful(List.empty[Int])) { case (x,xs) => xs.flatMap(vxs => x.map(vx => vx :: vxs)) }


We can use Future.sequence to do that:

Future.sequence(l)

This will return a Future[List[Int]] which only completes when all futures are completed and will contain all values of the futures that completed successfully.

share|improve this answer
1  
Future.sequence should be used to transform a list of futures into a future list. –  Aaron Novstrup Apr 16 '13 at 18:41
    
Hahaha, I see. Reinvented the wheel. Updated. –  gzm0 Apr 16 '13 at 22:21
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.