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I've got a long variable and I need to reverse its byte order. For example: B1, B2, ... , B8 I should return a long that consists of B8, B7, ..., B1. How can I do it by using bitwise operations?

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3  
What have you tried? –  Oli Charlesworth Apr 21 '12 at 14:35
    
Are you working with endian-ness? –  jim mcnamara Apr 21 '12 at 14:44
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3 Answers

up vote 5 down vote accepted

you can use Long.reverseBytes(long)

Or for more methods which include bitwise operations, you can refer to this stack overflow question

Heres another method you may like, I'd still recommend the above but it's better than bitwise where you can easily make mistakes.

Bytebuffer

byte[] bytes = ByteBuffer.allocate(8).putLong(someLong).array();
for (int left = 0, right = bytes.length - 1; left < right; ++left, --right) {
    byte temp = bytes[left]; 
    bytes[left]  = bytes[right]; 
    bytes[right] = temp;
}

I am trying to steer you away from bitwise solutions because they are cumbersome and very easy to mess up if you do not know what you are doing... But bitwise would look like this:

byte[] bytes = new byte[8];

// set the byte array from smallest to largest byte
for(int i = 0; i < 8; ++i) {
    byte[i] = (your_long >> i*8) & 0xFF;
}

// build the new long from largest to smallest byte (reversed)
long l = ((buf[0] & 0xFFL) << 56) |
         ((buf[1] & 0xFFL) << 48) |
         ((buf[2] & 0xFFL) << 40) |
         ((buf[3] & 0xFFL) << 32) |
         ((buf[4] & 0xFFL) << 24) |
         ((buf[5] & 0xFFL) << 16) |
         ((buf[6] & 0xFFL) <<  8) |
         ((buf[7] & 0xFFL) <<  0) ;
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The Arrays.asList(bytes) code won't work -- Arrays.asList(bytes) will return a List<byte[]>, not a List<Byte> -- it'll return a list with one element, the whole byte array. –  Louis Wasserman Apr 21 '12 at 17:07
    
@LouisWasserman Interesting, I saw the snippet pop up a few times on different websites so assumed it was correct, but you are right it is not, I'll replace it. –  Serdalis Apr 22 '12 at 3:06
    
@Serdalis Your solution with the ByteBuffer works like a charm. Thanks! –  Maxbester Nov 21 '13 at 15:50
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You might want to use Long.reverseBytes instead of using bitwise operations. See the Java Reference for details.

Otherwise, you could have a look at the JDK sources (src.zip in your JDK folder) in Long.java but mind the copyright by Oracle.

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And what if I cannot use Long.reverseBytes and need to do it with bitwise operations? –  Aviram Apr 21 '12 at 14:37
    
@BenM: Why can't you use it? –  home Apr 21 '12 at 14:55
    
@BenM Added a pointer to the JDK sources in my answer. In Long.reverseBytes it is done with bitwise operations. –  Matthias Apr 21 '12 at 15:05
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Here's an old trick that you can use to endian swap a register:

static long swapblock(long a, long mask, int shift) {
    long b1 = a & mask; // extract block
    long b2 = a ^ b1;   // extract remaining bits
    return (b1 << shift) |
           ((b2 >> shift) & mask); // mask again to clear sign extension
}

static long endianswap(long a) {
    a = swapblock(a, 0x00000000ffffffffL, 32);
    a = swapblock(a, 0x0000ffff0000ffffL, 16);
    a = swapblock(a, 0x00ff00ff00ff00ffL, 8);
    return a;
}

The idea is to progressively swap sub blocks until you reach the desired level you want to stop at. By adding swaps of sizes 4, 2, and 1, you can change this into a bit mirror function.

There is only one tricky bit due to lack of unsigned types in java. You need to mask out high order bits when shifting right, because the sign bit is replicated by the shift amount, filling the high order bits with ones (0x8000000000000000 >> 8 is 0xFF80000000000000).

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