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I have a byte array (byte[]) that I've read from a file, and I want to get an integer from two bytes in it. Here's an example:

byte[] bytes = new byte[] {(byte)0x00, (byte)0x2F, (byte)0x01, (byte)0x10, (byte)0x6F};
int value = bytes.getInt(2,4); //This method doesn't exist

This should make value equal to 0x0110, or 272 in decimal. But obviously, byte[].getInt() doesn't exist. How can I accomplish this task?

Oh, and yes, that array is just an example. In reality I wouldn't know exactly what the values would be.

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the reason the answers work is that the bytes are promoted to integers in case that's what was causing you trouble understanding. "bytes[2] * 256" doesn't fit in a byte, but it's not an issue because "256" is an integer, etc. –  SyntaxT3rr0r Jan 22 '11 at 16:26
    
possible duplicate of [Convert 4 bytes to int ](stackoverflow.com/questions/2383265/convert-4-bytes-to-int) –  finnw Jan 22 '11 at 16:32

6 Answers 6

up vote 16 down vote accepted

You should just opt for the simple:

int val = bytes[2] * 256 + bytes[3];

or:

int val = bytes[2] << 8 | bytes[3];

You could even write your own helper function getBytesAsWord (byte[] bytes, int start) to give you the functionality if you didn't want the calcuations peppering your code but I think that would probably be overkill.

And you will probably need to worry about the signs of the individual bytes and their effect on the overall number, at least in the multiplication version above.

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1  
bytes[2] << 8 works as well and is imho a bit clearer (makes bit twiddling explicit). –  delnan Jan 22 '11 at 16:19
    
As you wish, @delnan, incorporated into the answer. Cheers. –  paxdiablo Jan 22 '11 at 16:22
    
Wow, I'm an idiot. Both work beautifully. Thanks! –  Alexis King Jan 22 '11 at 16:24
1  
@Jake, there are no idiots here, just gurus in training :-) –  paxdiablo Jan 22 '11 at 16:25
    
Ideally it should be (b1 << 8) | (b2 & 0x00ff) If second byte value is greater than 128, the above conversion gives incorrect value, as java considers the byte as negative int. –  Gopi Aug 14 at 12:09

Try:

public static int getInt(byte[] arr, int off) {
  return arr[off]<<8 &0xFF00 | arr[off+1]&0xFF;
} // end of getInt

Your question didn't indicate what the two args (2,4) meant. 2 and 4 don't make sense in your example as indices in the array to find ox01 and 0x10, I guessed you wanted to take two consecutive element, a common thing to do, so I used off and off+1 in my method.

You can't extend the byte[] class in java, so you can't have a method bytes.getInt, so I made a static method that uses the byte[] as the first arg.

The 'trick' to the method is that you bytes are 8 bit signed integers and values over 0x80 are negative and would be sign extended (ie 0xFFFFFF80 when used as an int). That is why the '&0xFF' masking is needed. the '<<8' shifts the more significant byte 8 bits left. The '|' combines the two values -- just as '+' would. The order of the operators is important because << has highest precedence, followed by & followed by | -- thus no parentheses are needed.

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Alternatively, you could use:

int val = (bytes[2] << 8) + bytes[3]
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You can use ByteBuffer. It has the getInt method you are searching for and many other useful methods

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Here's a nice simple reliable way.

    ByteBuffer byteBuffer = ByteBuffer.allocateDirect(4);
    // by choosing big endian, high order bytes must be put
    // to the buffer before low order bytes
    byteBuffer.order(ByteOrder.BIG_ENDIAN);
    // since ints are 4 bytes (32 bit), you need to put all 4, so put 0
    // for the high order bytes
    byteBuffer.put((byte)0x00);
    byteBuffer.put((byte)0x00);
    byteBuffer.put((byte)0x01);
    byteBuffer.put((byte)0x10);
    byteBuffer.flip();
    int result = byteBuffer.getInt();
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The Google Base16 class is from Guava-14.0.1.

new BigInteger(com.google.common.io.BaseEncoding.base16().encode(bytesParam),16).longValue();
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