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I am trying to convert a list of strings to a vector of char vectors:

import collection.breakOut

def stringsToCharVectors(xs: List[String]) =
    xs.map(stringToCharVector)(breakOut) : Vector[Vector[Char]]

def stringToCharVector(x: String) =
    x.map(a => a)(breakOut) : Vector[Char]

Is there a way to implement stringToCharVector that does not involve mapping with the identity function? Generally, are there shorter/better ways to implement stringsToCharVectors?

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3 Answers 3

up vote 7 down vote accepted

You can pass a String directly to the varargs constructor for Vector:

def stringToCharVector(x: String) = Vector(x: _*)

at which point having a separate method seems kind of silly. breakOut is for optimization; if you just want to convert, you can

Vector(xs.map(x => Vector(x: _*)): _*)

at the relatively modest expense of one extra object per list element. (All the chars will most likely be the memory-intensive part.)

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Thanks - this did what I wanted it to do. But What does x: _* mean? The colon after the x makes me expect a type to follow, but the underscore looks like the default variable and adding the star to that just makes my head spin. –  GlenPeterson Nov 11 '12 at 15:31
1  
: _* means "pass the elements of this collection as separate items into a method that takes varargs". Since a string can be interpreted as a collection of characters, this works. –  Rex Kerr Nov 11 '12 at 16:26

In Scala 2.10:

scala> val xs = List("hello")
xs: List[String] = List(hello)

scala> xs.map(_.to[Vector]).to[Vector]
res0: Vector[Vector[Char]] = Vector(Vector(h, e, l, l, o))
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The other way is just to add all the elements to an empty Vector; this is what happens behind the scenes anyway when you call a conversion method:

def stringsToCharVectors(xs: List[String]) =
    Vector() ++ xs.map(Vector() ++ _)
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