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I'm trying to do some experiment with Scala. I'd like to repeat this experiment (randomized) until the expected result comes out and get that result. If I do this with either while or do-while loop, then I need to write (suppose 'body' represents the experiment and 'cond' indicates if it's expected):

do {
  val result = body
} while(!cond(result))

It does not work, however, since the last condition cannot refer to local variables from the loop body. We need to modify this control abstraction a little bit like this:

def repeat[A](body: => A)(cond: A => Boolean): A = {
  val result = body
  if (cond(result)) result else repeat(body)(cond)
}

It works somehow but is not perfect for me since I need to call this method by passing two parameters, e.g.:

val result = repeat(body)(a => ...)

I'm wondering whether there is a more efficient and natural way to do this so that it looks more like a built-in structure:

val result = do { body } until (a => ...)

One excellent solution for body without a return value is found in this post: How Does One Make Scala Control Abstraction in Repeat Until?, the last one-liner answer. Its body part in that answer does not return a value, so the until can be a method of the new AnyRef object, but that trick does not apply here, since we want to return A rather than AnyRef. Is there any way to achieve this? Thanks.

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1  
Why you don't like recursion in this code? It's tail recursion so stack will not grow. –  ghik Nov 25 '12 at 16:51
    
I'm not quite confident about the tail recursion optimization. I once wrote a BFS algorithm using that technique, it still stack overflows. I may post another question on that. Anyway, this is just a minor problem, I do want to see how I can make my code more native-looking. –  Yang Nov 25 '12 at 17:00
2  
If you get a stackoverflow it's not tail recursive. You can tell the compiler, that a method should be tail recursive by adding @annotation.tailrec. If it is not, the compiler will fail. –  drexin Nov 25 '12 at 17:26
    
Thanks, I just solved the problem. I defined the tail-recursive function in an abstract class without a final keyword. The compiler doesn't do any optimization so it overflows. –  Yang Nov 25 '12 at 20:45

2 Answers 2

up vote 2 down vote accepted

With a minor modification you can turn your current approach in a kind of mini fluent API, which results in a syntax that is close to what you want:

class run[A](body: => A) {
  def until(cond: A => Boolean): A = {
    val result = body
    if (cond(result)) result else until(cond)
  }
}
object run {
  def apply[A](body: => A) = new run(body)
}

Since do is a reserved word, we have to go with run. The result would now look like this:

run {
  // body with a result type A
} until (a => ...)

Edit:

I just realized that I almost reinvented what was already proposed in the linked question. One possibility to extend that approach to return a type A instead of Unit would be:

def repeat[A](body: => A) = new {
  def until(condition: A => Boolean): A = {
    var a = body
    while (!condition(a)) { a = body }
    a     
  }   
}
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1  
@Yang: Wasn't there a comment from you? This was my answer: Why do you want to return A from repeat itself? Since you call until only this return type is relevant. I just tested something like: val result = repeat { Random.nextInt(10) } until (_ == 0). –  bluenote10 Nov 26 '12 at 14:23
    
I see. This is what I'm looking for. Thanks! –  Yang Nov 26 '12 at 14:41
    
Yes, I added that comment, but I soon realized the true meaning of the until function. In the syntax repeat {...} until (), until is just a function, so the return should be from until instead of repeat. Thanks again, this is very interesting to me. –  Yang Nov 26 '12 at 14:42
    
You're welcome! I think than it is also good to keep the first, more verbose version in my answer, since in this version it is (maybe) more clear that until is just a member function returning an A. –  bluenote10 Nov 26 '12 at 14:45

You're mixing programming styles and getting in trouble because of it.

Your loop is only good for heating up your processor unless you do some sort of side effect within it.

do {
  val result = bodyThatPrintsOrSomething
} until (!cond(result))

So, if you're going with side-effecting code, just put the condition into a var:

var result: Whatever = _
do {
  result = bodyThatPrintsOrSomething
} until (!cond(result))

or the equivalent:

var result = bodyThatPrintsOrSomething
while (!cond(result)) result = bodyThatPrintsOrSomething

Alternatively, if you take a functional approach, you're going to have to return the result of the computation anyway. Then use something like:

Iterator.continually{ bodyThatGivesAResult }.takeWhile(cond)

(there is a known annoyance of Iterator not doing a great job at taking all the good ones plus the first bad one in a list).

Or you can use your repeat method, which is tail-recursive. If you don't trust that it is, check the bytecode (with javap -c), add the @annotation.tailrec annotation so the compiler will throw an error if it is not tail-recursive, or write it as a while loop using the var method:

def repeat[A](body: => A)(cond: A => Boolean): A = {
  var a = body
  while (cond(a)) { a = body }
  a
}
share|improve this answer
    
Thanks. I know the loop is imperative so come up with something more functional like the repeat function. It works for me, but I want it more native-looking like the one in stackoverflow.com/questions/3036058/… –  Yang Nov 25 '12 at 20:41
    
+1 for mentioning the Iterator approach and the warning that the whole construction relies an side effects in the body. –  bluenote10 Nov 26 '12 at 14:47

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