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I have a piece of code which would code as follows:

val e2= for (e <- elements if condition(expensiveFunction(e))) yield expensiveFunction(e)

Where the condition will be true for a few elements and then become false for all remaining ones.

Unfortunately this doesn't work (even if I ignore performance) because my elements is an infinite iterator.

Is there a way to use a "break" in a for-comprehension so it stops yielding elements when a certain condition holds? Otherwise, what would be the scala-idiomatic way to compute my e2?

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possible duplicate of How do I break out of a loop in Scala? –  om-nom-nom Nov 28 '12 at 1:43
    
That question is about a regular loop, not a for-comprehension (i.e., with yield). I suspect takeWhile can be part of the solution... –  jsalvata Nov 28 '12 at 1:55
    
The question is somehow different, but answers (as far as I understand) can be applied to your situation as well –  om-nom-nom Nov 28 '12 at 2:00
    
for-comprehensions are completely different than traditional loops under the covers. The fact that they share similar syntax is to make them easier to read. –  rancidfishbreath Nov 28 '12 at 2:01
    
The duplicate is stackoverflow.com/questions/13343531/… –  som-snytt Nov 28 '12 at 5:48
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5 Answers 5

up vote 5 down vote accepted

For some reason, I find it necessary to actually try it out to get my keystrokes quite right.

scala> def compute(i: Int) = { println(s"f$i"); 10*i }
compute: (i: Int)Int

scala> for (x <- Stream range (0, 20)) yield compute(x)
f0
res0: scala.collection.immutable.Stream[Int] = Stream(0, ?)

scala> res0 takeWhile (_ < 100)
res1: scala.collection.immutable.Stream[Int] = Stream(0, ?)

scala> res1.toList
f1
f2
f3
f4
f5
f6
f7
f8
f9
f10
res2: List[Int] = List(0, 10, 20, 30, 40, 50, 60, 70, 80, 90)
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In my terminology, that is (for(e <- elements) yield expensiveFunction(e)).takeWhile(r => condition(r)). I am surprised at how obvious it is. Looks like reasoning about infinite iterators is still difficult for me. –  jsalvata Nov 28 '12 at 8:57
    
@jsalvata note (for(...)...) takeWhile condition. Placeholder syntax, leaving off the placeholder because of expected type. And losing the dot and parens. Others have got me hooked on minimalism. –  som-snytt Nov 28 '12 at 17:23
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Here is my idea: If the elements is a lazy container already(like Stream, Iterator):

(for (e <- elements; 
      buf = expensiveFunction(e);  
      if condition(buf)) yield buf).headOption

Or not:

(for (e <- elements.view; 
      buf = expensiveFunction(e);  
      if condition(buf)) yield buf).headOption
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You could go with lazy approach:

val e2 = elements.toIterator                    
          .map(expensiveFunction)
          .takeWhile(result => result == true) // or just .takeWhile(identity)
// you may want to strict iterator, (e.g. by calling .toList) at the end

So you compute expensiveFunction on demand, and if there is false on some step, you won't do unnecessary work.

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+1 -- still, because my particular case is more clearly written as a for-comprehension, I'm accepting som-snytt's answer. Thanks. –  jsalvata Nov 28 '12 at 8:57
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You can just use takeWhile:

elements.takeWhile(condition(expensiveFunction(_)))
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I could use elements.takeWhile(e => condition(expensiveFunction(e)), but then I would need to re-compute the expensiveFunction for each of them again. –  jsalvata Nov 28 '12 at 1:52
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Found this solution:

(for (e <- elements) yield {
  val x= expensiveFunction(e)
  if (condition(x)) Some(x) else None
}).takeWhile(_.nonEmpty).map(_.get)

A better one, anyone?

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map(_.get) means flatten. –  som-snytt Nov 28 '12 at 6:18
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