Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I used RandomAccessFile to read a byte from a text file.

public static void readFile(RandomAccessFile fr) {
    byte[] cbuff = new byte[1];
    fr.read(cbuff,0,1);
    System.out.println(new String(cbuff));
}

Why am I seeing one full character being read by this?

share|improve this question

6 Answers 6

up vote 31 down vote accepted

A char represents a character in Java (*). It is 2 bytes large (at least that's what the valid value range suggests).

That doesn't necessarily mean that every representation of a character is 2 bytes long. In fact many encodings only reserve 1 byte for every character (or use 1 byte for the most common characters).

When you call the String(byte[]) constructor you ask Java to convert the byte[] to a String using the platform default encoding. Since the platform default encoding is usually a 1-byte encoding such as ISO-8859-1 or a variable-length encoding such as UTF-8, it can easily convert that 1 byte to a single character.

If you run that code on a platform that uses UTF-16 (or UTF-32 or UCS-2 or UCS-4 or ...) as the platform default encoding, then you will not get a valid result (you'll get a String containing the Unicode Replacement Character instead).

That's one of the reasons why you should not depend on the platform default encoding: when converting between byte[] and char[]/String or between InputStream and Reader or between OutputStream and Writer, you should always specify which encoding you want to use. If you don't, then your code will be platform-dependent.

(*) that's not entirely true: a char represents a UTF-16 codepoint. Either one or two UTF-16 codepoints represent a Unicode codepoint. A Unicode codepoint usually represents a character, but sometimes multiple Unicode codepoints are used to make up a single character. But the approximation above is close enough to discuss the topic at hand.

share|improve this answer
    
Surely characters in Java are 1 - 4 bytes, because of Unicode support? –  Mikaveli Feb 22 '11 at 12:57
4  
@Mikaveli: no. A char in Java is always 2 bytes long. As you probably know, there are Unicode code points > 2^16. To represent those in a String Java uses 2 char values (a low-surrogate and a high-surrogate). This means that a String is effectively UTF-16 encoded. But that fact is outside the scope of this question. –  Joachim Sauer Feb 22 '11 at 13:04
    
@Joachim: Yes, you're quite right - the code points fit in (hex) 0000 to FFFF, so natively that's 2 bytes. –  Mikaveli Feb 22 '11 at 13:11
    
@Mikaveli: this discussion is way out of scope of the question, but not quite: Unicode *codepoints go from U+0000 to U+10FFFF (where not all of them are used and some are declared to never be used). A char in Java can take the values U+0000 to U+FFFF. To represent Unicode codepoints > U+FFFF you'll need to use two adjacent char values (one in the Low Surrogate range (U+DC00..U+DFFF) and one in the High Surrogate range (U+D800..U+DBFF)). –  Joachim Sauer Feb 22 '11 at 13:16
    
@Joachim: Unicode supports more code points, but according to download.oracle.com/javase/1.4.2/docs/api/java/lang/… Java's Character class doesn't. –  Mikaveli Feb 22 '11 at 13:20

The constructor String(byte[] bytes) takes the bytes from the buffer and encodes them to characters.

It uses the platform default charset to encode bytes to characters. If you know, your file contains text, that is encoded in a different charset, you can use the String(byte[] bytes, String charsetName) to use the correct encoding (from bytes to characters).

share|improve this answer

Java stores all it's "chars" internally as two bytes. However, when they become strings etc, the number of bytes will depend on your encoding.

Some characters (ASCII) are single byte, but many others are multi-byte.

Java supports Unicode, thus according to:

Java Character Docs

The max value supported is "\uFFFF" (hex FFFF, dec 65535), or 11111111 11111111 binary (two bytes).

share|improve this answer
    
How does \uFFFF prove that characters can be 1-4 bytes? 0xFFFF are 2 bytes. Also: U+FFFF is not the highest Unicode codepoint, there are much larger ones. –  Joachim Sauer Feb 22 '11 at 13:10
    
I've edited my answer - I was thinking of UTF-8, but as you state 0xFFFF fits into 2 bytes. –  Mikaveli Feb 22 '11 at 13:17
    
And 0xFFFF is equal to decimal 65535 (five in the end) not 65536 (which in turn is equal to 0x10000 :) –  Dimitry K Jun 2 at 22:41
    
@DimitryK Whoops! Good attention to detail - edited. :) –  Mikaveli Jun 3 at 8:11

In ASCII text file each character is just one byte

share|improve this answer
1  
ASCII itself is pretty much irrelevant these days. ASCII-based encodings, however are still around. But almost no one uses ASCII as it is. –  Joachim Sauer Feb 22 '11 at 13:08

Looks like your file contains ASCII characters, which are encoded in just 1 byte. If text file was containing non-ASCII character, e.g. 2-byte UTF-8, then you get just the first byte, not whole character.

share|improve this answer
1  
ASCII is not the only single byte encoding, there are tons of others out there (such as the ISO-8859-* family, the Windows-* family, EBCDIC, KOI-8, ...). –  Joachim Sauer Feb 22 '11 at 13:18

To clear one thing. char in java does NOT take 2 bytes.

char in java follows UTF-16 encoding. It doesn't mean it requires 16 bits to represent one character. Please have a look at this wikipedia entry. Clearly if my encoding is in UTF-16, I can have a character whose binary representation can take more than one codeunit. Here 16 specifies the size of 1 codeunit. So in java, one character can be either 2 bytes, 4bytes etc...

share|improve this answer
1  
A char in Java is exactly 2 bytes. Always. –  nilskp Mar 21 at 22:19

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.