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It is known that in C, a string is represented by an array of chars.

And in most 32-bit processors, a char takes one byte or eight bits. And a string consists of an array of one bytes.

Because extended characters like Chinese and Japanese takes up more bits than 8 bits, I am getting a little confused about the stuff around this.

For example, I tested that I can define an array of Chinese characters the same way an array of English letters is defined, using syntax likechar array[100]. So my question is:

Is there a mechanism that attempts to bridge the gap between general 8-bits characters and greater-than-8-bits characters so that they are treated like the same, just like what I have mentioned above.

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You should probably use wchar_t instead, this explains a little more about wide characters and their use in C/C++. en.wikipedia.org/wiki/Wide_character#C.2FC.2B.2B –  Jesus Ramos Mar 18 '12 at 7:13
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You need to research what is called MBCS or Multi-Byte Character Sets. –  Mahmoud Al-Qudsi Mar 18 '12 at 7:43
    
@JesusRamos: The wchar_t type (rather, code that uses it) is not really very portable, since you don't know what encoding it uses, or whether it even supports Unicode. –  Dietrich Epp May 20 '12 at 22:04

2 Answers 2

Yes, using multi-byte character encodings. This is a rather wide subject, but start with the following:

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Note that wchar is almost never the right choice, since it's not really portable. (Because you don't know what encoding it uses.) –  Dietrich Epp May 20 '12 at 22:03

I'd suggest using the UTF8 string encoding, as it makes possible to use normal (byte <= 127) characters as usually, and in addition, you'll be able to use the two-, three-, or four-byte characters by detecting an Unicode control character (byte >= 128). You also can use libiconv for some related problems. http://www.gnu.org/software/libiconv/

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