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When I have a string variable x that for some reason is "":

val x = ""

and I do: x.forall(_.isDigit) it returns true

I'm a little perplexed why it's true, shouldn't it be false? I found this out the hard way when my if condition wasn't working. Then I went to see the Scala source code:

private def prefixLengthImpl(p: A => Boolean, expectTrue: Boolean): Int = {
    var i = 0
    while (i < length && p(apply(i)) == expectTrue) i += 1

  override /*IterableLike*/
  def forall(p: A => Boolean): Boolean = prefixLengthImpl(p, expectTrue = true) == length

So apparently it's holding the "Vacuous Truth" principle, and since the counter variable i is returned as 0 and the length of my string is also 0, it ends up being 0==0 hence true. I find that it shouldn't be necessary to do a x.isEmpty before doing the forall.

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What is your question exactly? – folone Mar 21 '13 at 17:17

3 Answers 3

I don't see the problem. The scala forall method follows the basic first-order logic, which minimizes surprise. For your specific example you should probably be using the regex "".matches("\\d+") anyway.

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Agreed. I usually explain this as: 1) Forall is true as long as no element fails the predicate; 2) Exists is true as long as at least one element satisfies the predicate. – Randall Schulz Mar 21 '13 at 17:57

You could combine forall with exists:

str.exists(_.isDigit) && str.forall(_.isDigit)
// returns true for "123", false for "", false for "1nodigits"
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If I was taking this approach, I'd probably go for the exists plus a non-empty test. – Randall Schulz Mar 21 '13 at 17:59

It's just a fact that every character in "" is a digit.

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