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In a text file I have data in the form:

1)
text
text
2)
more text
3)
even more text
more even text
even more text
...

I read it as a list of Strings using the following:

val input = io.Source.fromFile("filename.txt").getLines().toList

I want to break the list down into sub-lists starting with 1), 2) etc.

I've come up with:

val subLists =
  input.foldRight( List(List[String]()) ) {
    (x, acc) =>
      if (x.matches("""[0-9]+\)""")) List() :: (x :: acc.head) :: acc.tail
      else (x :: acc.head) :: acc.tail
  }.tail

Can this be achieved more simply? What would be really nice would be if there were a built-in method to split a collection on every element that satisfies a predicate (hint, hint, library designers :)).

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1  
Take a look at this question and the accepted answer: stackoverflow.com/questions/6800737/… –  mpilquist Sep 3 '11 at 14:30
    
It's possible using Iterators as in that answer, but this case is more complex because each heading is different, so you'd need a second Iterator / List for the headings, and it stops being elegant. Recursion seems much cleaner. –  Luigi Plinge Sep 4 '11 at 15:08

1 Answer 1

up vote 23 down vote accepted

foldRight with a complicated argument is usually an indication that you might as well write this using recursion, and factor it out to its own method, while you are at it. Here's what I came up with. First, let's generalize to a generic method, groupPrefix:

 /** Returns shortest possible list of lists xss such that
  *   - xss.flatten == xs
  *   - No sublist in xss contains an element matching p in its tail
  */
 def groupPrefix[T](xs: List[T])(p: T => Boolean): List[List[T]] = xs match {
   case List() => List()
   case x :: xs1 => 
     val (ys, zs) = xs1 span (!p(_))
     (x :: ys) :: groupPrefix(zs)(p)  
 }

Now you get the result simply by calling

 groupPrefix(input)(_ matches """\d+\)""")
share|improve this answer
    
One problem: this won't work for a large number of groups (stack overflow) –  Jaka Jančar Mar 6 '13 at 16:21

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