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Is there a standard method to convert a string like "\uFFFF" into character meaning that the string of six character contains a presentation of one unicode character?

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more details please –  jjj Jan 24 '10 at 8:08
    
do you mean like:: System.out.println("Enter a Character:"); String s = read.readLine(); char c = s.charAt(0); –  jjj Jan 24 '10 at 8:13
    
Actually the edit by jleedev is wrong: Dima said his string had 6 characters, not seven. Internally, even in Java, a "string" doesn't contain two backslashes. I read the original version as "\uFFFF", a "generic" string, without escaping, because the poster used the lowercase "string" word and not "String" and because he precisely stated that the string was made of 6 characters. So technically, I'm pretty sure the string he wants to convert is "\uFFFF", and not "\\uFFFF". The fact that in a Java source code you have to enter "\uFFFF" as "\\uFFFF" is, to me, unrelated to the question. –  SyntaxT3rr0r Jan 24 '10 at 8:58
    
rolled it back. let the author define the context of the question better. –  Bozho Jan 24 '10 at 10:17
    
Fair enough, but the fact that the backslash wasn't escaped seemed to be confusing. –  Josh Lee Jan 24 '10 at 10:35

4 Answers 4

up vote 13 down vote accepted
char c = "\uFFFF".toCharArray()[0];

The value is directly interpreted as the desired string, and the whole sequence is realized as a single character.

Another way, if you are going to hard-code the value:

char c = '\uFFFF';

Note that \uFFFF doesn't seem to be a proper unicode character, but try with \u041f for example.

Read about unicode escapes here

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I think he meant for the string literal that has 6 characters, with two backslashes in the source code, like "\\uFFFF". –  Yoni Jan 24 '10 at 8:31
    
yes, after formatting the question properly it turns out to be so.. –  Bozho Jan 24 '10 at 8:47
    
what is wrong with, say, char c = '\uFFFF'; ? –  rsp Jan 24 '10 at 9:38
    
nothing. I don't quite graps the context behind the question actually. –  Bozho Jan 24 '10 at 10:15
    
@Bozho that makes two of us :) –  Yoni Jan 24 '10 at 10:44

If you are parsing input with Java style escaped characters you might want to have a look at StringEscapeUtils.unescapeJava. It handles Unicode escapes as well as newlines, tabs etc.

String s = StringEscapeUtils.unescapeJava("\\u20ac\\n"); // s contains the euro symbol followed by newline
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This solution worked for me, Apache libraries are really very useful. Thanks!!! –  will824 Sep 25 '12 at 23:19

The backslash is escaped here (so you see two of them but the s String is really only 6 characters long). If you're sure that you have exactly "\u" at the beginning of your string, simply skip them and converter the hexadecimal value:

String s = "\\u20ac";

char c = (char) Integer.parseInt( s.substring(2), 16 );

After that c shall contain the euro symbol as expected.

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This is what I do when I need this. –  PSpeed Jan 24 '10 at 10:51
    
char c = (char) Integer.parseInt( s.substring(2), 16 ); - looks very much what I meant. \uFFFF is a format of how Unicode is presented in where I read it from (say ASCII file), not a literal. I magined that there could be a more direct method, but this one should be also fine. Thanks to everybody. –  Dima Jan 24 '10 at 17:35
String charInUnicode = "\\u0041"; // ascii code 65, the letter 'A'
Integer code = Integer.parseInt(charInUnicode.substring(2), 16); // the integer 65 in base 10
char ch = Character.toChars(code)[0]; // the letter 'A'
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Why do you use toChars() when you hard-code [0] anyway? Your code goes half-way to supporting high unicode codepoints but misses the other half. What's the point? –  Joachim Sauer Jan 24 '10 at 10:54

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