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So I'm working through a few of the exercises in "Scala for the Impatient" and one of them is:

Write a for loop for computing the product of the Unicode codes of all letters in a string. For example, the product of the characters in "Hello" is 9415087488 L.

The next problem is to do the same, but without a for loop - it hints that we should check StringOps in Scaladoc.

I checked the RichChar and StringOps section in Scaladoc, and perhaps I'm misreading or looking in the wrong places, but I can't find anything that gets me to match their output. I've thus far tried:

scala> x.foldLeft(1)(_ * _.toInt)
res0: Int = 825152896

scala> x.foldLeft(1)(_ * _.getNumericValue)
res5: Int = 2518992

scala> x.foldLeft(1)(_ * _.intValue())
res6: Int = 825152896

scala> var x = 1
x: Int = 1

scala> for (c <- "Hello") x *= c.toInt

scala> x
res12: Int = 825152896

Which does not match their output.

How do I do this, in both the for and non-for way?

Thanks!

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There's another way, if you do it in two steps. Hint: the last of the two methods only have an implicit parameter. –  Daniel C. Sobral Jun 23 '12 at 16:50

5 Answers 5

up vote 13 down vote accepted

When you do x.foldLeft(1)(_ * _.toInt), the result type will be inference to an Int, but 9415087488 is too large for an Int to store it.

So you need to tell Scala using Long to store it.

scala> val x = "Hello"
x: java.lang.String = Hello

scala> x.foldLeft(1L)(_ * _.toInt)
res1: Long = 9415087488

scala> var x: Long = 1
x: Long = 1

scala> for (c <- "Hello") x *= c.toInt

scala> x
res7: Long = 9415087488
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Ahhh got it. Thanks! –  adelbertc Jun 23 '12 at 0:35
4  
Thanks from me too. Oddly, in the pdf-Version I just downloaded, the wrong value is given (825152896). –  Markus Dec 16 '12 at 21:58
    
strange, but with "for (fi <- "Hello") i *= fi.toChar" I have same value as in book. Hmmm. –  Dubysa Jun 14 '14 at 21:43
    
@Dubysa whats the type of i variable? Your i need to be an Long to get correct result, or Scala will inference the expression to be an Int (an Int multiple with a Char will become an Int) which will cause overflow. –  Brian Hsu Jun 15 '14 at 0:12
    
well, my REPL does not see a problem in there (always knew my laptop is smart :D) I did post it as an answer. –  Dubysa Jun 15 '14 at 14:39

If you convert each RichChar of String .toLong it's also works. For example, this:

str.map (_.toLong).product - work's fine and without foldLeft or cycles

This is cyclic variant:

def product(str: String): Long = {
    var prod: Long = 1
    for (ch <- str) prod *= ch
    prod
}
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The most straightforward way I've found to do this is:

"Hello".foldLeft(1L)((x:Long, y:Char) => x*y)

The method takes two parameters: a Long and a delegate function that takes a Long and a Char and returns a Long. You can pass an anonymous function in directly like this, or you can define the function elsewhere and pass it in, like so:

def multiply(x:Long, y:Char) = {
    x*y
}
"Hello".foldLeft(1L)(multiply)
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Try this, the same number which is in the book.

  var i = 1
  for (fi <- "Hello") i *= fi.toChar
  i

to avoid using variable "i" try using iteration, etc.

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see up stackoverflow.com/a/15508156/2187972 –  seth2810 Jul 31 '14 at 3:28

Here's another way:

scala> (for (c <- "Hello") yield c.toLong).product
res36: Long = 9415087488
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