16

I have a variable string that might contain any unicode character. One of these unicode characters is the han 𩸽.

The thing is that this "han" character has "𩸽".length() == 2 but is written in the string as a single character.

Considering the code below, how would I iterate over all characters and compare each one while considering the fact it might contain one character with length greater than 1?

for ( int i = 0; i < string.length(); i++ ) {
    char character = string.charAt( i );
    if ( character == '𩸽' ) {
        // Fail, it interprets as 2 chars =/
    }
}

EDIT:
This question is not a duplicate. This asks how to iterate for each character of a String while considering characters that contains .length() > 1 (character not as a char type but as the representation of a written symbol). This question does not require previous knowledge of how to iterate over unicode code points of a Java String, although an answer mentioning that may also be correct.

2
11
int hanCodePoint = "𩸽".codePointAt(0);
for (int i = 0; i < string.length();) {
    int currentCodePoint = string.codePointAt(i);
    if (currentCodePoint == hanCodePoint) {
        // do something here.
    }
    i += Character.charCount(currentCodePoint);
}
2
  • No way to compare with single quotes '𩸽'? – Fagner Brack Jun 7 '15 at 4:10
  • 2
    unfortunately, no. 𩸽 is a valid Unicode character, but is not expressible as a single Java char, which is what you would need to be able to put it in single quotes. If you try, you will notice that you won't even be able to compile that. A java char can only represent Unicode characters up to code point 65,535. Past that, you need 2 surrogate chars to represent the character, or simply use a String. Very annoying, I agree. – sstan Jun 7 '15 at 4:15
9

The String.charAt and String.length methods treat a String as a sequence of UTF-16 code units. You want to treat the string as Unicode code-points.

Look at the "code point" methods in the String API:

  • codePointAt(int index) returns the (32 bit) code point at a given code-unit index
  • offsetByCodePoints(int index, int codePointOffset) returns the code-unit index corresponding to codePointOffset code-points from the code-unit at index.
  • codePointCount(int beginIndex, int endIndex) counts the code-points between two code-unit indexes.

Indexing the string by code point index is a bit tricky, especially if the string is long and you want to do it efficiently. However, it is a do-able, albeit that the code is rather cumbersome.

@sstan's answer is one solution.

3

This will be simpler if you treat both the string and the data you're searching for as Strings. If you just need to test for the presence of that character:

if (string.contains("𩸽") {
    // do something here.
}

If you specifically need the index where that character appears:

int i = string.indexOf("𩸽");
if (i >= 0) {
    // do something with i here.
}

And if you really need to iterate through every code point, see How can I iterate through the unicode codepoints of a Java String? .

2
  • What is the cost of time by using .contains or .indexOf for all characters I am testing? I am looking for a more generic approach instead of using .contains or .indexOf only for characters with length > 1. – Fagner Brack Jun 7 '15 at 15:36
  • This answer seems to be more closer to the question than iterating over unicode code points, although sacrificing some performance. – Fagner Brack Jun 7 '15 at 15:47
-4

An ASCII character takes half the amount a Unicode char does, so it's logical that the han character is of length 2. It not an ASCII char, nor a Unicode letter. If it were the second case, the letter would be displayed correctly.

1
  • An ASCII character in Unicode is the same size as it is in ASCII. What you're more referring to are multi-byte Unicode characters. – Makoto Jun 7 '15 at 3:53

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