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I'm trying to generate a list in scala according to the formula:

for n > 1 f(n) = 4*n^2 - 6*n + 6 and for n == 1 f(n) = 1

currently I have:

def lGen(end: Int): List[Int] = {
    for { n <- List.range(3 , end + 1 , 2) } yields { 4*n*n - 6*n - 6 }
}

For end = 5 this would give the list:

List(24 , 76)

Right now I'm stuck on trying to find a gracefull way to make this function give

List(1 , 24 , 74)

Any suggestions would be greatly appreciated.

-Lee

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2 Answers 2

up vote 4 down vote accepted

How about this:

scala> def lGen(end: Int): List[Int] =
         1 :: List.range(3, end+1, 2).map(n => 4*n*n - 6*n + 6)

scala> lGen(5)
res0: List[Int] = List(1, 24, 76)
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What is the :: operator doing in this case? –  LeeG Jan 26 '12 at 6:29
    
It's a "cons" operator, i.e. it prepends the 1 to the list. –  fotNelton Jan 26 '12 at 6:55

I'd separate out the "formula" from the list generation:

val f : Int => Int = {
  case 1 => 1
  case x if x > 1 => 4*x*x - 6*x + 6
}

def lGen(end: Int) = (1 to end by 2 map f).toList

or

def lGen(end: Int) = List.range(1, end + 1, 2) map f
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I like how this approach keeps the definition intact. –  LeeG Jan 26 '12 at 6:39
    
+1 for clarity and decoupling –  Vlad Gudim Jan 26 '12 at 13:14
    
is it change the result if I write instead of case x if x > 1, case x > 1? –  Slow Harry Feb 14 at 19:35

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