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I am trying to simplify a square call.

Is this the best way?

(1 to 10).map(x => x*x)
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up vote 3 down vote accepted

Declare this once somewhere:

def sqr(x: Int) = x * x

And use it like this afterwards:

(1 to 10).map(sqr)
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1  
Why is this better? Is it actually faster? – gzm0 Jul 16 '13 at 21:34
3  
You can drop the redundant underscore: (1 to 10).map(sqr). – Nikita Volkov Jul 16 '13 at 21:38
    
@NikitaVolkov Oups, my bad. – gzm0 Jul 16 '13 at 22:20
    
It is syntactically simpler. It is not faster at all - the anonymous object still has to be created, and unless the JIT inlines sqr, it is even slower (although you will never notice it, since the cost of everything else in the map on a list outweighs this difference). If you want faster, consider declaring: val sqr = (x: Int) => x * x. This way you can avoid creating the function object at each callsite. – axel22 Jul 17 '13 at 6:25

Since squaring is exponentiation to the power 2, it makes sense to consider the following two approaches:

scala> (1 to 10).map(math.pow(_, 2))
res6: scala.collection.immutable.IndexedSeq[Double] = Vector(1.0, 4.0, 9.0, 16.0, 25.0, 36.0, 49.0, 64.0, 81.0, 100.0)

scala> (1 to 10).map(BigInt(_).pow(2))
res7: scala.collection.immutable.IndexedSeq[scala.math.BigInt] = Vector(1, 4, 9, 16, 25, 36, 49, 64, 81, 100)
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This is possibly a bit overkill, but it's reasonably simple and kind of cool:

object SquareApp extends App {
    implicit class SquareableInt(i: Int) extends AnyVal { def squared = i*i }

    (0 until 10).map(_ squared)
}

The implicit function automatically converts any Int on which squared is called into a SquareableInt object temporarily.

share|improve this answer
    
In a current version of Scala, the first two lines become just implicit class SquareableInt(val i: Int) extends AnyVal { def squared = i*i }. – Jörg W Mittag Jul 17 '13 at 10:01
    
Even cooler. Edited my answer. I'm still just learning this implicit stuff. Thanks. – Matthew Saltz Jul 17 '13 at 11:34

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