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I have an array of bytes (because unsigned byte isn't an option) and need to take 4 of them into a 32 bit int. I'm using this:

byte rdbuf[] = new byte[fileLen+1];
int i = (rdbuf[i++]) | ((rdbuf[i++]<<8)&0xff00) | ((rdbuf[i++]<<16)&0xff0000) | ((rdbuf[i++]<<24)&0xff000000);

If i don't do all the logical ands, it sign extends the bytes which is clearly not what I want.

In c this would be a no brainer. Is there a better way in Java?

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Sticks and stones... –  Bohemian Jan 14 '13 at 13:11

2 Answers 2

up vote 11 down vote accepted

You do not have to do this, you can use a ByteBuffer:

int i = ByteBuffer.wrap(rdbuf).order(ByteOrder.LITTLE_ENDIAN).getInt();

If you have many ints to read, the code becomes:

ByteBuffer buf = ByteBuffer.wrap(rdbuf).order(ByteOrder.LITTLE_ENDIAN);

while (buf.remaining() >= 4) // at least four bytes
    i = bb.getInt();

Javadoc here. Recommended for use in any situation where binary data has to be dealt with (whether you read or write such data). Can do little endian, big endian and even native ordering. (NOTE: big endian by default).

(edit: @PeterLawrey rightly mentions that this looks like little endian data, fixed code extract -- also, see his answer for how to wrap the contents of a file directly into a ByteBuffer)

NOTES:

  • ByteOrder has a static method called .nativeOrder(), which returns the byte order used by the underlying architecture;
  • a ByteBuffer has a builtin offset; the current offset can be queried using .position(), and modified using .position(int); .remaining() will return the number of bytes left to read from the current offset until the end;
  • there are relative methods which will read from/write at the buffer's current offset, and absolute methods, which will read from/write at an offset you specify.
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It's in java.nio @steveh –  Fildor Jan 14 '13 at 13:11
1  
+1 The bitness appears to be little endian so you might need .order(ByteOrder.LITTLE_ENDIAN).getInt(); –  Peter Lawrey Jan 14 '13 at 13:17
    
@PeterLawrey I'm too used to network order :( Thanks for noticing my mistake. –  fge Jan 14 '13 at 13:20
    
When I see a comparison with C I assume the bitness is just whatever the machine uses and most people use little endian machines. :| –  Peter Lawrey Jan 14 '13 at 13:22
    
that's great except the ints i want are all over the array, i have an index into the array 'i' (i just notice i used 'i' twice in my original question, my bad), anyhow, what is the java equivalent of this: int j = ByteBuffer.wrap(&rdbuf[i]).order(ByteOrder.LITTLE_ENDIAN).getInt(); –  steveh Jan 15 '13 at 1:07

Instead of reading into a byte[] which you have to wrap with a ByteBuffer which does the shift/mask for you, you can use a direct ByteBuffer which avoid all this overhead.

FileChannel fc = new FileInputStream(filename).getChannel();
ByteBuffer bb = ByteBuffer.allocateDirect(fc.size()).order(ByteBuffer.nativeOrder());
fc.read(bb);
bb.flip();
while(bb.remaining() > 0) {
    int n = bb.getInt(); // grab 32-bit from direct memory without shift/mask etc.
    short s = bb.getShort(); // grab 16-bit from direct memory without shift/mask etc.

    // get a String with an unsigned 16 bit length followed by ISO-8859-1 encoding.
    int len = bb.getShort() & 0xFFFF;
    StringBuilder sb = new StringBuilder(len);
    for(int i=0;i<len;i++) sb.append((char) (bb.get() & 0xFF));
    String text = sb.toString(); 
}
fc.close();
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@fge Ummm, I missed it. Thank you for pointing that out. –  Peter Lawrey Jan 14 '13 at 13:26
    
that looks helpful but my data read from file is a mix of ints, shorts and strings so i have to handle every bit of data on a case by case basis –  steveh Jan 15 '13 at 1:10
    
oh, i see, you can use it to get any size object, cool, this may be a better way to do it, thanks –  steveh Jan 15 '13 at 1:53
    
@steveh I have added examples for reading a short and a String, you can also read float, double etc. –  Peter Lawrey Jan 15 '13 at 8:02
    
ok, thanks, did it –  steveh Jan 15 '13 at 8:53

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