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If I have the following:

byte[] byteArray = new byte[] {87, 79, 87, 46, 46, 46};

I know that the size of each element would be one byte. But what I don't seem to understand is how would the integer 87 be stored in one byte? Or, how does the byte[] store data?

EDIT: I see that you can store -128 to 127 in a byte here in java. So, does that mean there is no way to store anything greater than or lesser than those numbers in a byte[]? If so, doesn't that limit the use of this? Or am not understanding the exact places to use a byte[].

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what is different about 87? even using signed bytes, you can represent up to 127 –  pb2q Jul 31 '12 at 19:11
    
I don't get your question. byte has a range of -128 to 127 in Java so you can easily store the decimal value 87 in it. –  nkr Jul 31 '12 at 19:11
    
Because Java's byte type is signed, 8-bit values between 128 and 255 are represented as negative values between -128 and -1, respectively. –  Remy Lebeau Jul 31 '12 at 19:38

5 Answers 5

A byte is just an 8-bit integer value. Which means it can hold any value from -2^7 to 2^7-1, which includes all of the number in {87, 79, 87, 46, 46, 46}.

An integer in java, is just a 4-byte integer, allowing it to hold -2^31 to 2^31 - 1

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I think you mean 2^7 and 2^31. One bit is reserved for the sign –  Jeffrey Jul 31 '12 at 19:11
    
Yes i do :) Thanks –  Rob Wagner Jul 31 '12 at 19:12
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And you need to remember that, in Java, ^ means something else, so you need to be careful what you say. :-) –  MRAB Jul 31 '12 at 19:21
    
@Jeffrey: One bit isn't necessarily reserved for sign in two's complement, per se. –  oldrinb Jul 31 '12 at 19:25

A byte is 8 bits. 2^8 is 256, meaning that 8 bits can store 256 distinct values. In Java, those values are the numbers in the range -128 to 127, so 87 is a valid byte, as it is in that range.

Similarly, try doing something like byte x = 200, and you will see that you get an error, as 200 is not a valid byte.

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A byte can hold 8-bit values 128-255. It has to be able to, in order to be compatible with other languages that use unsigned bytes instead of signed bytes like Java does. 200 can be represented in a Java byte as -56, as both 200 and -56 are represented in 8-bit as 0xC8 hex, 11001000 binary. –  Remy Lebeau Jul 31 '12 at 19:35
    
Well, sure, but you can't just directly make such an assignment; you'll have to do some kind of conversion. It would probably be easier to just subtract 128 from your bytes in the range 0...255 to get them into Java's range of -128...127. –  Jonathan Newmuis Jul 31 '12 at 19:46

A Java byte is a primitive with a minimum value of -128 and a maximum value of 127 (inclusive). 87 is within the allowed range. The byte data type can be useful for saving memory in large arrays, where the memory savings actually matters.

A byte[] is an Object which stores a number of these primitives.

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I think the short answer is that byte[] stores bytes. The number 87 in your array above it a byte, not an int. If you were to change it to 700 (or anything higher than 127) you'd get a compile error. Try it.

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You can use byte to store values of 8 bit in it which have a (signed) range from from -128 to 127.

With byte[] you can do some special operations like building Strings from a given bytestream and decode them with a desired Charset, and some functions will give you byte[] as their return value.

I don't know enough about the internals of the JVM but it might save memory though.

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