12

I want to assign the value of aphostrophe to a char:

char a = '\'';

However I would like to use the unicode version of apostrophe (\u0027) to keep it consistent with my code:

char a = '\u0027';

But doing it this way gives an error saying "unclosed character literal".

How can I do this assignment while still having the unicode code in the code?

12

The reason \u0027 doesn't work is that the unicode escape is handled very early by the compiler, and of course, it ends up being ' — which terminates the literal. The compiler actually sees this:

char a = ''';

...which naturally is a problem. The JLS talks about this in relation to line feeds and such in §3.10.4 (Character Literals).

Frankly, I think you're best off writing

char a = '\'';

...but char is a numeric type, so you could do this:

char a = 0x0027;

Of course, you could do this:

char a = "\u0027".charAt(0);

...but I think we can all agree that's a bit overkill. ;-)

Oooh, or check out Greg's answer: char a = '\u005c\u0027'; (\u005c is, of course, a backslash — so the compiler sees '\'').

  • The main problem is that \u0027 is processed really early by the compiler, so this may end up being his best (maybe even only) option. – Brian Dec 3 '12 at 23:07
  • Also, check out the footnotes at the bottom of the JLS you just linked in your edit. It says you can't use something like '\u000a' because it gets processed into a newline before the class is even compiled. – Brian Dec 3 '12 at 23:08
  • @Brian: LOL overlapping edit and comment, refresh the page. ;-) – T.J. Crowder Dec 3 '12 at 23:12
  • why does it need to be any better? – amphibient Dec 3 '12 at 23:12
  • @T.J.Crowder Hey now, my comment was a full 1 minute and 38 seconds before your edit :D – Brian Dec 3 '12 at 23:18
9

You can do this as well

char a = '\u005c\u0027';

where \u005c is the Unicode for \

  • LOL! I love it. And given the OP's reason for wanting to use \u0027 in the first place, a pretty good idea... – T.J. Crowder Dec 3 '12 at 23:31
1

Here's another option, indeed an overkill though:

char c = "\u0027".charAt(0);
1

before javac does anything else, it first convert all \u#### to a char. so your code is equivalent to

char a = ''';

that's why it doesn't compile.

\u#### is not just for char/string literals, you can use it anywhere, e.g. in variable names.

however, people rarely use non latin chars in identifiers; if someone does, he'll probably use his native charset, and he won't need \u#### either.

therefore we never really see \u#### anywhere other than in char/string literals, this gives the wrong impression to the unsuspected.

if there's time machine, we should probably kill this feature, since it's confusing and it's not used.

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