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Consider the following sketch for using a loop to empty a queue in Scala:

var queue = immutable.Queue[T]( /* .. some content ..*/ )
while( !queue.isEmpty ) {
   val (record, tempQueue) = queue.dequeue
   queue = tempQueue
   doSomethingWith(record)
}

Is there any trick to avoid the temporary variable tempQueue and get Scala to assign the returned Queue value directly to the loop variable queue? Having to introduce the extra symbol is annoying, plus presumably there may be some superfluous copying (although this might get optimized away, not sure).

Edit 1: of course, as Ionut G. Stan points out, I can skip the pattern matching and take apart the returned pair myself, as in:

while( !queue.isEmpty ) {
   val pair = queue.dequeue
   queue = pair._2
   doSomethingWith(pair._1)
}

So I should refine the question as follows: is there any way to use the syntactic sugar of pattern matching to do this more elegantly? I was hoping for something like this, which unfortunately does not compile:

var queue = immutable.Queue[T]( /* .. some content ..*/ )
var record : A = _
while( !queue.isEmpty ) {
   (record, queue) = queue.dequeue
   doSomethingWith(record)
}
share|improve this question

7 Answers 7

up vote 3 down vote accepted

If you insist on keeping that structure (the while loop, etc.), I don't see how you can make it shorter, except perhaps:

var queue = immutable.Queue[T]( /* some content */ )
while( !queue.isEmpty ) queue.dequeue match {
  case (record, tempQueue) =>
    queue = queue.dequeue
    doSomethingWith(record)
}

Since you're using an immutable queue, however, the simplest equivalent code is probably:

for(record <- queue) {
  doSomethingWith(record)
}

See also this related question which confirms there is no way to assign to a pre-existing var with pattern-matching notation.

The Scala Language Specification, Section 4.1, is also clear: pattern-matching-style assignments expand into val definitions, i.e. they will bind a new identifier.

share|improve this answer
    
The problem with simplified examples for SO like mine above is that in reality you often want to do something more complicated, like not fully draining the queue (in which case the for loop won't work). The match you propose I guess is effectively equivalent to the code I had, and it still uses the temporary variable (I updated my question to give an example of what I was hoping for :-). I guess the answer may be that there is no way to do this, since it seems that I cannot extract pattern matching results into already-existing vars, only into newly defined vals. –  Gregor Scheidt Dec 20 '11 at 14:35
    
Unfortunately the link to the related question that you kindly provided seems to be the (negative) answer to this question as well. I will accept your answer. Thanks! –  Gregor Scheidt Dec 20 '11 at 14:39

With immutable data structures, recursion is the FP way to do things.

def foo[T](queue: immutable.Queue[T]) {
  if (!queue.isEmpty) {
    val (record, remaining) = queue.dequeue
    doSomethingWith(record)
    foo(remaining)
  }
}

foo(queue) is basically the same as queue foreach doSomethingWith, which Brian Smith suggested.

share|improve this answer
    
That's neat, thanks! –  Gregor Scheidt Dec 21 '11 at 13:28

You're using a while loop with an immutable Queue. Why not use a more functional approach (since you've got an immutable Queue anyway)?

You can define the function you want to run on each item in the Queue and then use a collections operation (map etc depending on the return you want) to apply it.

E.G.

  import scala.collection.immutable._

  val q = Queue[(Int,Int)]((1,2),(3,4),(5,6))

  def doSomethingWith(a:(Int,Int)) = {
    a swap
  }

  //returns a new Queue with each tuple's elements swapped
  q map doSomethingWith

  //returns unit (so only useful if doSomethingWith has a side effect)
  q foreach doSomethingWith   
share|improve this answer
    
You are correct that this is a better approach for processing the entire queue. The problem with simplified examples like mine above is that in reality I want to do something more complicated, like not fully draining the queue (in which case map/clear won't work as easily). It may be an option, though, to partition the queue with a predicate and then fully drain and map one of the partitions. Thanks! –  Gregor Scheidt Dec 20 '11 at 14:51

You can use the _ prefixed members that are available up to Tuple22:

scala> val a = (1,2)
a: (Int, Int) = (1,2)

scala> a._1
res0: Int = 1

scala> a._2
res1: Int = 2
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Thanks, Ionut, this is of course correct, but I was hoping that there was a way to use the pattern matching to somehow overwrite the value of the already-existing variable queue while creating a new value for the record. I expanded the question and referenced your answer. –  Gregor Scheidt Dec 20 '11 at 14:22

Here's the pattern match, but it still introduces temp variables.

while( !queue.isEmpty ) {
  queue = queue.dequeue match {
    case (t: T, q: immutable.Queue[T]) =>      
      doSomethingWith(t)
      q
  }
}
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Here's a little hack:

queue forall doSomethingWith

assuming that doSomethingWith is of type T => Boolean

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Depending on the condition, you could maybe first filter the list, or use takeWhile and then map over the resulting set. Something like

(queue takeWhile condition) foreach operation

or

(queue withFilter condition) foreach operation

This only works if the condition is a function of a single element. You could also accumulate the part that you want with a fold (could look something like:)

(Nil /: queue)(<add element to accumulator if needed>) foreach operation
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