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In scala, when I use the ensuring predef, it works only on the else part of an if-else expression:

def evenIt(x:Int) = {
    if(x % 2 == 0)
            x+1 //return odd on purpose!
      x + 1
    } ensuring( _ % 2 == 0)

//Test it:
> 4
> 5  //<--- ensuring does not catch this!

But I thought that "if-else" was an expression in scala. So it should just return a value - which in turn should be passed to ensuring?

Or am I confusing something here? Thanks.

EDIT: In the book Programming in Scala the author uses it as follows:

private def widen(x: Int) : Element =
   if(w <= width)
   else {
      val left = elem(' ', (w - width) / 2, height)
      var right = elem(' ', w - width - left.width, height)
      left beside this beside right
   } ensuring ( w <= _.width

Does he apply it only to else part here?

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1 Answer 1

up vote 13 down vote accepted

Yes, if-else is an expression, but the way you bracketed it, you only apply ensuring to x+1, not to the if-expression. If you put the ensuring after the closing brace surrounding the if, it will do what you want:

def evenIt(x:Int) = {
    if(x % 2 == 0)
        x + 1 //return odd on purpose!
        x + 1
} ensuring( _ % 2 == 0)
share|improve this answer
Thanks! I haven't thought of that. I've added code from the book - where the author uses this function. Does he apply it to the else part there? –  drozzy Apr 30 '11 at 23:19
I've just stumbled over the same problem) I think yes, in the book it's applied just for else, cause make widening only in else part. But we can put different ensuring on different parts of the code –  damluar Nov 4 '11 at 10:16

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