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I have a list in scala called l : List[AType] that I want to change to list[String].

This may sound like a very dirty, inefficient approach, but I'm not quite sure of the best way to do this. My code was:

var result = new Array[String]("a","b")
l foreach { case a => result = result :+ (a.toString().toUpperCase()); }
result toList

I'm not sure if this is where my mistake is, because it's not giving me anything, it's not even printing anything even if I put a print statement inside the loop.

So I decided to change this to a more imperative way:

for(i <- 0 to l.length) {
    result.update(i, l(i).toString)
}

This time I see things that I want to see when printing inside the loop, but at the end the program crashed with an IndexOutOfBound error.

Is there any more efficient and better way to do this?

Thanks!

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5 Answers 5

up vote 12 down vote accepted

Take a look at the map function. For example,

scala> List("Some", "Strings").map(_.toUpperCase)
res2: List[java.lang.String] = List(SOME, STRINGS)

or

scala> List("Some", "Strings").map(_.length)
res0: List[Int] = List(4, 7)
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What about if it's from another type? Do I say l.map(.toString).map(.toUpperCase) or l.map(_.toString._toUpperCase) ? The latter didn't work for me... –  Enrico Susatyo Aug 5 '10 at 0:12
3  
@the_great_monkey then it is l.map(_.toString.toUpperCase) –  Moritz Aug 5 '10 at 0:17
1  
Any introduction to Scala will cover mapping, reducing, folding, and higher-order functions (HOFs) in general. There's already gobs of material on Scala, but scala-lang.org/node/1305 is a good place to start. –  Randall Schulz Aug 5 '10 at 0:29
2  
To clarify, l.map(_.toString) is a shorter way to write l.map(x => x.toString). –  sluukkonen Aug 5 '10 at 0:33
1  
This is the right answer (in that it mentions map), but ideally the example should change the type of the list, e.g. List("some", "strings").map(_.length):List[Int] –  Tom Crockett Aug 5 '10 at 0:40

Just a remark on the for loop. Here are two correct ways of doing that loop:

// Using "until" instead of "to": a until b == a to (b - 1)
for(i <- 0 until l.length) {
    result.update(i, l(i).toString)
}

// Using "indices" to get the range for you
for(i <- l.indices) {
    result.update(i, l(i).toString)
}
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+1 I didn't know that one! –  retronym Aug 5 '10 at 5:27
 def f(s:String) = s.toCharArray // or output something else of any type 
 val l = List("123", "234", "345")
 l.map(f)
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l map f is much better –  Jus12 Sep 3 '10 at 9:22

Did you try for-comprehensions?

val result=for(elem <- l) yield elem.toString().toUpperCase();
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How about

for(i <- 0 to l.length-1) {
    result.update(i, l(i).toString)
}
share|improve this answer
    
it works, thanks, but i'm looking at more of a scala way to do it rather than java/c++ way... –  Enrico Susatyo Aug 5 '10 at 0:16
1  
result.update(i, l(i).toString) is slightly better written result(i) = l(i).toString, but this is pretty bad Scala code and works only when result is a mutable class and is efficient only when it and l are indexed sequences. All it all, it would never qualify as idiomatic Scala. –  Randall Schulz Aug 5 '10 at 0:32

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