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So I know about String#codePointAt(int), but it's indexed by the char offset, not by the codepoint offset.

I'm thinking about trying something like:

  • using String#charAt(int) to get the char at an index
  • testing whether the char is in the high-surrogates range
    • if so, use String#codePointAt(int) to get the codepoint, and increment the index by 2
    • if not, use the given char value as the codepoint, and increment the index by 1

But my concerns are

  • I'm not sure whether codepoints which are naturally in the high-surrogates range will be stored as two char values or one
  • this seems like an awful expensive way to iterate through characters
  • someone must have come up with something better.
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5 Answers 5

up vote 65 down vote accepted

Yes, Java uses a UTF-16-esque encoding for internal representations of Strings, and, yes, it encodes characters outside the BMP using the surrogacy scheme.

If you know you'll be dealing with characters oustide the BMP, then here is the canonical way to iterate over the characters of a Java String:

final int length = s.length();
for (int offset = 0; offset < length; ) {
   final int codepoint = s.codePointAt(offset);

   // do something with the codepoint

   offset += Character.charCount(codepoint);
}
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1  
As for whether or not it's "expensive", well... there is no other way built into Java. But if you're dealing only with Latin/European/Cyrillic/Greek/Hebrew/Arabic scripts, then you just s.charAt() to your heart's content. :) –  Jonathan Feinberg Oct 6 '09 at 20:25
12  
But you shouldn't. For instance if your program outputs XML and if someone gives it some obscure mathematical operator, suddenly your XML may be invalid. –  Mechanical snail Jul 15 '12 at 1:18
    
@Jonathan Feinberg That's what I thought. But here came that special mathematical E. UTF-16 works 99% of the time — but then it get really painful. Especially when the problems stay hidden for a long time. –  Martin Feb 9 '14 at 13:12
2  
I would have used offset = s.offsetByCodePoints(offset, 1);. Is there some benefit in using offset += Character.charCount(codepoint); instead? –  Paul Groke Jan 12 at 21:35

Iterating over code points is filed as a feature request at Sun.

See Sun Bug Entry

There is also an example on how to iterate over String CodePoints there.

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2  
Java 8 now has a codePoints() method built in to String: docs.oracle.com/javase/8/docs/api/java/lang/… –  Dov Wasserman Apr 18 '14 at 17:13
    
See also my answer for a workaround method you can use in its place for java < 8 in the meantime stackoverflow.com/a/21791059/32453 –  rogerdpack Dec 9 '14 at 20:02

Java 8 added CharSequence#codePoints which returns an IntStream containing the code points. You can use the stream directly to iterate over them:

string.codePoints().forEach(c -> ...);

or with a for loop by collecting the stream into an array:

for(int c : string.codePoints().toArray()){
    ...
}

These ways are probably more expensive than Jonathan Feinbergs's solution, but they are faster to read/write and the performance difference will usually be insignificant.

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Thought I'd add a workaround method that works with foreach loops (ref), plus you can convert it to java 8's new String#codePoints method easily when you move to java 8:

public static Iterable<Integer> codePoints(final String string) {
  return new Iterable<Integer>() {
    public Iterator<Integer> iterator() {
      return new Iterator<Integer>() {
        int nextIndex = 0;
        public boolean hasNext() {
          return nextIndex < string.length();
        }
        public Integer next() {
          int result = string.codePointAt(nextIndex);
          nextIndex += Character.charCount(result);
          return result;
        }
        public void remove() {
          throw new UnsupportedOperationException();
        }
      };
    }
  };
}

Then you can use it with foreach like this:

 for(int codePoint : codePoints(myString)) {
   ....
 }

Or if you just want to convert a string to an array of int (which might use more RAM than the above approach):

 public static List<Integer> stringToCodePoints(String in) {
    if( in == null)
      throw new NullPointerException("got null");
    List<Integer> out = new ArrayList<Integer>();
    final int length = in.length();
    for (int offset = 0; offset < length; ) {
      final int codepoint = in.codePointAt(offset);
      out.add(codepoint);
      offset += Character.charCount(codepoint);
    }
    return out;
  }
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  • I'm not sure whether codepoints which are naturally in the high-surrogates range will be stored as two char values or one

They are represented in a String as two characters.

  • this seems like an awful expensive way to iterate through characters
  • someone must have come up with something better.

There is no better way (than @e.e's solution) that integrates nicely with the Java language / libraries as they are currently specified.

In theory, you could build a String32 == "string as a sequence of Unicode codepoints" class. In practice it would more pain than it is worth. All of the standard Java APIs (and 3rd-party libraries) require String and assume 16 bit characters. To use your new class, you'd either need to replace many APIs with versions that use String32, or do lots of String <-> String32 conversions in your code.

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2  
I checked later, and found that there are no valid codepoints in the U+D800–U+DFFF range, so there's no ambiguity at all. –  rampion Oct 7 '09 at 2:33

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