130

I need to split a String into an array of single character Strings.

Eg, splitting "cat" would give the array "c", "a", "t"

4

11 Answers 11

132
"cat".split("(?!^)")

This will produce

array ["c", "a", "t"]

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  • 9
    How and why? Is this a regex meaning any character? Because in my mind, with the way split works, this should split on only the actual characters (, ?, !, ^, and ). However, it works as you say it does.
    – Ty_
    Mar 6 '14 at 2:07
  • 4
    This is indeed a regex-expression, called a negative lookahead. Checkout the documentation here: docs.oracle.com/javase/6/docs/api/java/util/regex/…
    – Erwin
    May 28 '14 at 8:51
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    @EW-CodeMonkey (?!...) is regex syntax for a negative assertion – it asserts that there is no match of what is inside it. And ^ matches the beginning of the string, so the regex matches at every position that is not the beginning of the string, and inserts a split there. This regex also matches at the end of the string and so would also append an empty string to the result, except that the String.split documentation says "trailing empty strings are not included in the resulting array".
    – Boann
    Nov 9 '15 at 0:46
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    In Java 8 the behavior of String.split was slightly changed so that leading empty strings produced by a zero-width match also are not included in the result array, so the (?!^) assertion that the position is not the beginning of the string becomes unnecessary, allowing the regex to be simplified to nothing – "cat".split("") – but in Java 7 and below that produces a leading empty string in the result array.
    – Boann
    Nov 9 '15 at 0:52
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    It creates an array of an entire string.
    – Eduard
    Sep 25 '17 at 10:17
123
"cat".toCharArray()

But if you need strings

"cat".split("")

Edit: which will return an empty first value.

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  • 13
    "cat".split("") would return [, c, a, t], no? You will have a extra character in your Array...
    – reef
    Mar 8 '11 at 16:48
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    The "cat".split("") does not work as expected by Matt, you will get an extra empty String => [, c, a, t].
    – reef
    Mar 8 '11 at 16:57
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    This answer does now work if you're using Java 8. See stackoverflow.com/a/22718904/1587046
    – Alexis C.
    Apr 25 '14 at 14:01
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    This was a horrific change in jdk8 because i relied on split("") and did workarounds cause of this silly empty first index. Now after upgrading to java8, it works as i would have expected it years ago. unfortunately now my workaround breaks my code... ggrrrr.
    – Logemann
    Oct 16 '15 at 0:52
  • @Marc You should probably be using .toCharArray() anyway; it avoids regex and returns an array of char primitives so it's faster and lighter. It's odd to need an array of 1-character strings.
    – Boann
    Nov 9 '15 at 15:31
46
String str = "cat";
char[] cArray = str.toCharArray();
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  • 3
    Nitpicking, the original question asks for an array of String, not an array of Char. However it's quite easy to get an array of String from here.
    – dsolimano
    Mar 8 '11 at 16:41
  • Yeah, I already know how to get an array of chars. I can just iterate through the char array and create a string from each one though, if there's no other way.
    – Matt
    Mar 8 '11 at 23:11
  • How would you convert cArray back to String?
    – Bitmap
    Jun 27 '11 at 8:19
7

If characters beyond Basic Multilingual Plane are expected on input (some CJK characters, new emoji...), approaches such as "a💫b".split("(?!^)") cannot be used, because they break such characters (results into array ["a", "?", "?", "b"]) and something safer has to be used:

"a💫b".codePoints()
    .mapToObj(cp -> new String(Character.toChars(cp)))
    .toArray(size -> new String[size]);
4

split("(?!^)") does not work correctly if the string contains surrogate pairs. You should use split("(?<=.)").

String[] splitted = "花ab🌹🌺🌷".split("(?<=.)");
System.out.println(Arrays.toString(splitted));

output:

[花, a, b, 🌹, 🌺, 🌷]
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  • Thanks for providing an edge case
    – Y-B Cause
    Apr 7 at 22:02
3

To sum up the other answers...

This works on all Java versions:

"cat".split("(?!^)")

This only works on Java 8 and up:

"cat".split("")
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2

An efficient way of turning a String into an array of one-character Strings would be to do this:

String[] res = new String[str.length()];
for (int i = 0; i < str.length(); i++) {
    res[i] = Character.toString(str.charAt(i));
}

However, this does not take account of the fact that a char in a String could actually represent half of a Unicode code-point. (If the code-point is not in the BMP.) To deal with that you need to iterate through the code points ... which is more complicated.

This approach will be faster than using String.split(/* clever regex*/), and it will probably be faster than using Java 8+ streams. It is probable faster than this:

String[] res = new String[str.length()];
int 0 = 0;
for (char ch: str.toCharArray[]) {
    res[i++] = Character.toString(ch);
}  

because toCharArray has to copy the characters to a new array.

1
for(int i=0;i<str.length();i++)
{
System.out.println(str.charAt(i));
}
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  • 1
    Are you sure that this is going to split a string into an array? You're just printing the string to the screen.
    – TDG
    Jun 7 '16 at 17:21
0

Maybe you can use a for loop that goes through the String content and extract characters by characters using the charAt method.

Combined with an ArrayList<String> for example you can get your array of individual characters.

1
  • Maybe you could stand on one leg and sing "God Save the Queen". Sorry, but this isn't even close to correct.
    – Stephen C
    Jan 27 '17 at 7:54
0

If the original string contains supplementary Unicode characters, then split() would not work, as it splits these characters into surrogate pairs. To correctly handle these special characters, a code like this works:

String[] chars = new String[stringToSplit.codePointCount(0, stringToSplit.length())];
for (int i = 0, j = 0; i < stringToSplit.length(); j++) {
    int cp = stringToSplit.codePointAt(i);
    char c[] = Character.toChars(cp);
    chars[j] = new String(c);
    i += Character.charCount(cp);
}
0

We can do this simply by

const string = 'hello';
console.log([...string]); // -> ['h','e','l','l','o']

https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Operators/Spread_syntax says

Spread syntax (...) allows an iterable such as an array expression or string to be expanded...

So, strings can be quite simply spread into arrays of characters.

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