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Is there any reason why Java char primitive data type is 2 bytes unlike C which is 1 byte?

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The short answer is because they goofed: they should have used 32-bit characters. –  tchrist Apr 8 '11 at 12:25
    
No, they should not have used 32-bit wide characters. That would make overhead even worse! –  vy32 Jul 4 '11 at 4:13
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@vy32: Yeah. They should really have used 6-bit-wide characters. That would save space, and after all, capital letters should be enough for everybody. –  Mechanical snail Jul 15 '12 at 3:41

3 Answers 3

When Java was originally designed, it was anticipated that any Unicode character would fit in 2 bytes (16 bits), so char and Character were designed accordingly. In fact, a Unicode character can now require up to 4 bytes. Thus, UTF-16, the internal Java encoding, requires supplementary characters use 2 code units. Characters in the Basic Multilingual Plane (the most common ones) still use 1. A Java char is used for each code unit. This Sun article explains it well.

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I'm sure Joel will appreciate the plug for "what every programmer should know about character encoding: joelonsoftware.com/articles/Unicode.html –  fooMonster Nov 10 '11 at 14:56

char in Java is UTF-16 encoded, which requires a minimum of 16-bits of storage for each character.

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In Java, a character is encoded in UTF-16 which uses 2 bytes, while a normal C string is more or less just a bunch of bytes. When C was designed, using ASCII (which only covers the english language character set) was deemed sufficient, while the Java designers already accounted for internationalization. If you want to use Unicode with C strings, the UTF-8 encoding is the preferred way as it has ASCII as a subset and does not use the 0 byte (unlike UTF-16), which is used as a end-of-string marker in C. Such an end-of-string marker is not necessary in Java as a string is a complex type here, with an explicit length.

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