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So, I have a value of type __be16 (2 bytes). In hex, the value is represented as 0x0800 or 2048 in decimal. (16^2 * 8)

So, when I printf this; I do this:

printf("%04X", value); //__be16 value;
                      //Print a hex value of at least 4 characters, no padding.

output: 0008

printf("%i", value); //Print an integer.

output: 8

I should be getting 0800 and 2048 respectively, what am I doing wrong?

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1 Answer 1

up vote 7 down vote accepted

My guess is that value is 8. :-)

Are you on a little endian machine, such as x86? I'm going to guess that by be16 you mean that the value is big endian and you need to swap the bytes.

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Swapping byte order can be done like this, by the way: codeguru.com/forum/showthread.php?t=292902 –  schnaader Nov 20 '09 at 18:49
    
Ah, ntos(value) did the trick. I'm guessing that this wasn't an issue for printing out the MAC addresses (ethernet header) because I was only printing out each MAC 1 short (2 bytes) at a time, and thus avoid endianness altogether? –  mamidon Nov 20 '09 at 18:51
    
Good guess! And I too feel I am slowly developing paranormal capabilities from reading SO. –  hirschhornsalz Nov 20 '09 at 18:52

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