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For example, there is a string val S = "Test". How do you separate it into t, e, s, t ?

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2  
What output is needed? You can just convert it to list S.toList Output List[Char] = List(T, e, s, t) –  Rustem Suniev Feb 19 '11 at 16:44

4 Answers 4

up vote 21 down vote accepted

Perhaps the good old toCharArray works for you:

scala> S.toCharArray
res1: Array[Char] = Array(T, e, s, t)

If you prefer to have a list, you could do

scala> S.toList         
res2: List[Char] = List(T, e, s, t)
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2  
Why not just s.toList, or even s.toSeq if you don't specifically need a linked list –  Kevin Wright Feb 19 '11 at 17:08
    
Right... Thanks, Still learning. :) –  aioobe Feb 19 '11 at 17:50
1  
For those seeing this, toCharArray should always be preferred when possible. toList is painfully slow. Each character primitive becomes a Character object. Each link in the list is an object as well. 2 bytes becomes 12+2+12+2=28 bytes. We can no longer have quick and random access. However, if you are just playing around or writing Hello World, then have at it, but don't expect it to scale well. –  user3746632 Jul 23 at 20:22

Do you need characters?

"Test".toList    // Makes a list of characters
"Test".toArray   // Makes an array of characters

Do you need bytes?

"Test".getBytes  // Java provides this

Do you need strings?

"Test".map(_.toString)    // Vector of strings
"Test".sliding(1).toList  // List of strings
"Test".sliding(1).toArray // Array of strings

Do you need UTF-32 code points? Okay, that's a tougher one.

def UTF32point(s: String, idx: Int = 0, found: List[Int] = Nil): List[Int] = {
  if (idx >= s.length) found.reverse
  else {
    val point = s.codePointAt(idx)
    UTF32point(s, idx + java.lang.Character.charCount(point), point :: found)
  }
}
UTF32point("Test")
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1  
For even being aware of code points, you deserve to have the accepted answer here. Though I doubt the OP will appreciate the subtlety. –  Kevin Wright Feb 20 '11 at 13:13
1  
+1. This is the only correct answer. –  Mechanical snail Mar 17 '12 at 2:59

Additionally, it should be noted that if what you actually want isn't an actual list object, but simply to do something which each character, then Strings can be used as iterable collections of characters in Scala

for(ch<-"Test") println("_" + ch + "_") //prints each letter on a different line, surrounded by underscores
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Actually you don't need to do anything special. There is already implicit conversion in Predef to WrappedString and WrappedString extends IndexedSeq[Char] so you have all goodies that available in it, like:

"Test" foreach println
"Test" map (_ + "!") 

Edit

Predef has augmentString conversion that has higher priority than wrapString in LowPriorityImplicits. So String end up being StringLike[String], that is also Seq of chars.

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I think it goes via StringOps actually. –  Kevin Wright Feb 19 '11 at 17:09
    
@Kevin Wright: You are right. Predef has augmentString conversion that has higher priority than wrapString in LowPriorityImplicits. Sorry for this, I don't noticed it. Thanks! –  tenshi Feb 19 '11 at 17:18

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