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I use this method to determine if a string is all upper case.

def isAllUpperCase(s: String): Boolean = 
  s.foldLeft(true)((res, ch) => res && ch.isUpper)

IntelliJ warns that this operation on a collection can be simplified. Sadly, I'm a Scala noob. Any ideas?

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up vote 5 down vote accepted

As of foldLeft, consider this for a given string s,

(true /: s)(_ && _.isUpper)

or equivalently,

s.foldLeft(true)(_ && _.isUpper)

For this particular problem consider also forall, as follows,

"abc".forall(_.isUpper)
res: Boolean = false

"Abc".forall(_.isUpper)
res: Boolean = false

"ABC".forall(_.isUpper)
res: Boolean = true

namely, it evaluates to true only if each and every element scrutinised evaluates to true.

Then,

implicit class RichUppercase(val s: String) extends AnyVal {
  def allUpper() = s.forall(_.isUpper)
}

and so

"abc".allUpper
res: Boolean = false

"ABC".allUpper
res: Boolean = true

Update

Another approach relies on finding differences between the original string and that string uppercased, like this,

val a = "Abc"
a: String = abc

a diff a.toUpperCase
res: String = bc

a.toUpperCase diff a.toUpperCase
res: String = ""

so a resulting empty string means all characters in the string are uppercase.

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2  
I feel another important difference between fold and forall (or exist) here is that fold will evaluate every single character while forall will stop as soon as a non-matching one is found. – Nicolas Rinaudo Jun 4 '14 at 7:18
    
@NicolasRinaudo definite, good observation. – elm Jun 4 '14 at 7:49

You want forall:

def isAllUpperCase(s: String): Boolean = s.forall(_.isUpper)
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