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let str1 = "๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช"
let str2 = "๐Ÿ‡ฉ๐Ÿ‡ช.๐Ÿ‡ฉ๐Ÿ‡ช.๐Ÿ‡ฉ๐Ÿ‡ช.๐Ÿ‡ฉ๐Ÿ‡ช.๐Ÿ‡ฉ๐Ÿ‡ช."

println("\(countElements(str1)), \(countElements(str2))")

Result: 1, 10

But should not str1 have 5 elements?

The bug seems only occurred when I use the flag emoji.

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  • 1
    Yeah, that's weird. I've tried different emojis and only flag emojis cause this. Even using different flags without a space causes this.
    – Fogmeister
    Nov 11, 2014 at 10:14
  • 6
    That looks like a bug to me. "๐Ÿ‡ฉ๐Ÿ‡ช" is an "extended grapheme cluster" combined from REGIONAL INDICATOR SYMBOL LETTER D and REGIONAL INDICATOR SYMBOL LETTER E and counts as a single character, but "๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช" should be 5 characters. Even "๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡จ๐Ÿ‡ณ๐Ÿ‡บ๐Ÿ‡ธ๐Ÿ‡ซ๐Ÿ‡ท๐Ÿ‡ช๐Ÿ‡ธ๐Ÿ‡ฎ๐Ÿ‡น๐Ÿ‡ท๐Ÿ‡บ" gives a character count of one. Perhaps someone with a better knowledge of the Unicode standard can explain it.
    – Martin R
    Nov 11, 2014 at 10:16
  • 2
    It seems that an arbitrary sequence of "Regional indicator symbols letters" is treated as a single grapheme cluster. For example, let str1 = "\u{1F1E6}\u{1F1E7}\u{1F1E8}\u{1F1E9}\u{1F1EA}\u{1F1EB}" prints as ๐Ÿ‡ฆ๐Ÿ‡ง๐Ÿ‡จ๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ซ but counts as a single Character.
    – Martin R
    Nov 11, 2014 at 10:23
  • Interestingly, str1.startIndex.successor() == str1.endIndex
    – rintaro
    Nov 11, 2014 at 10:28
  • 2
    I cannot understand it, but here is Grapheme Cluster Boundaries specifications
    – rintaro
    Nov 11, 2014 at 10:50

2 Answers 2

21

Update for Swift 4 (Xcode 9)

As of Swift 4 (tested with Xcode 9 beta) grapheme clusters break after every second regional indicator symbol, as mandated by the Unicode 9 standard:

let str1 = "๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช"
print(str1.count) // 5
print(Array(str1)) // ["๐Ÿ‡ฉ๐Ÿ‡ช", "๐Ÿ‡ฉ๐Ÿ‡ช", "๐Ÿ‡ฉ๐Ÿ‡ช", "๐Ÿ‡ฉ๐Ÿ‡ช", "๐Ÿ‡ฉ๐Ÿ‡ช"]

Also String is a collection of its characters (again), so one can obtain the character count with str1.count.


(Old answer for Swift 3 and older:)

From "3 Grapheme Cluster Boundaries" in the "Standard Annex #29 UNICODE TEXT SEGMENTATION": (emphasis added):

A legacy grapheme cluster is defined as a base (such as A or ใ‚ซ) followed by zero or more continuing characters. One way to think of this is as a sequence of characters that form a โ€œstackโ€.

The base can be single characters, or be any sequence of Hangul Jamo characters that form a Hangul Syllable, as defined by D133 in The Unicode Standard, or be any sequence of Regional_Indicator (RI) characters. The RI characters are used in pairs to denote Emoji national flag symbols corresponding to ISO country codes. Sequences of more than two RI characters should be separated by other characters, such as U+200B ZWSP.

(Thanks to @rintaro for the link).

A Swift Character represents an extended grapheme cluster, so it is (according to this reference) correct that any sequence of regional indicator symbols is counted as a single character.

You can separate the "flags" by a ZERO WIDTH NON-JOINER:

let str1 = "๐Ÿ‡ฉ๐Ÿ‡ช\u{200C}๐Ÿ‡ฉ๐Ÿ‡ช"
print(str1.characters.count) // 2

or insert a ZERO WIDTH SPACE:

let str2 = "๐Ÿ‡ฉ๐Ÿ‡ช\u{200B}๐Ÿ‡ฉ๐Ÿ‡ช"
print(str2.characters.count) // 3

This solves also possible ambiguities, e.g. should "๐Ÿ‡ซโ€‹๐Ÿ‡ทโ€‹๐Ÿ‡บโ€‹๐Ÿ‡ธ" be "๐Ÿ‡ซโ€‹๐Ÿ‡ท๐Ÿ‡บโ€‹๐Ÿ‡ธ" or "๐Ÿ‡ซ๐Ÿ‡ทโ€‹๐Ÿ‡บ๐Ÿ‡ธ" ?

See also How to know if two emojis will be displayed as one emoji? about a possible method to count the number of "composed characters" in a Swift string, which would return 5 for your let str1 = "๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช".

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  • 2
    Nice catch! Now it would be interesting to know why they designed it that way, IMHO it's a wart.
    – DarkDust
    Nov 11, 2014 at 11:06
  • 1
    @rintaro: Here is another example: let a = "J\u{1F1EF}"; let b = "\u{1F1F5}P". Then 3 = countElements(a+b) < countElements(a) + countElements(b) = 2 + 2. โ€“ My interpretation: c = a + b concatenates the Unicode scalar values of the strings, not the characters. Therefore c may have grapheme clusters which were not present in a or b.
    – Martin R
    Nov 11, 2014 at 12:03
  • 1
    Randy, this is not Swiftโ€™s fault, as it correctly implements the Unicode standard. The problem the Unicode consortium faced was how to determine breaks between the regional indicators. There are three basic options: Seek to the first indicator and count every two (potentially slow); glue two indicators together with an invisible character; or split pairs of indicators with an invisible character. They ended up choosing option 3. Aug 14, 2015 at 8:57
  • 1
    @sudo Please note that the standard says โ€œshould be separated by other charactersโ€. In other words, nobody is breaking the standard by omitting such separators. In most cases, it is not necessary to do this anyway. It does however help with ambiguities. I do not have time to investigate this, but I seem to remember that the Cocoa text system has its own logic for determining character boundaries, i. e. separately from (or in addition to) NSString, and certainly from Swift String. Jun 29, 2016 at 10:23
  • 2
    It's worth noting that as of Unicode 9.0.0 and version 29 of Unicode Standard Annex #29, the rules have changed. In a sequence of regional indicator symbols, grapheme clusters break after every second regional indicator symbol. I don't know whether Swift has implemented the new rules. Sep 30, 2016 at 18:17
4

Here's how I solved that problem, for Swift 3:

let str = "๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช๐Ÿ‡ฉ๐Ÿ‡ช" //or whatever the string of emojis is
let range = str.startIndex..<str.endIndex
var length = 0
str.enumerateSubstrings(in: range, options: NSString.EnumerationOptions.byComposedCharacterSequences) { (substring, substringRange, enclosingRange, stop) -> () in
        length = length + 1
    }
print("Character Count: \(length)")

This fixes all the problems with character count and emojis, and is the simplest method I have found.

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