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I am studying big and little-endianness.

1. What is the purpose of | \ in the following code?

...

#elif defined(LITTLE_ENDIAN) && !defined(BIG_ENDIAN)

  #define htons(A) ((((uint16_t)(A) & 0xff00) >> 8) | \
                    (((uint16_t)(A) & 0x00ff) << 8))
...

2. What is the purpose of (A) in the code?

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Thank you for your answers! –  Masi Jul 21 '09 at 0:19
1  
You don't need either mask & 0xff00 or & 0x00ff - in the first case the bottom 8 bits are masked because they shift off the bottom. In the second case the bits overflow and are lost. (uint16_t)(((uint16_t)(A) >> 8) | ((uint16_t)(A) << 8))) would have the same result –  Tom Leys Jul 21 '09 at 2:09
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4 Answers

up vote 16 down vote accepted

The '|' is the bitwise OR operator. It basically combines the values. The 'A' is the parameter from the #define htons. It is enclosed in parentheses so that expressions will not confuse the programmer or compiler. The '\' continues the macro onto the next line. (A macro usually ends at the end of the line.)

This macro takes the 16-bit value in A and masks out the top 8 bits. It then takes that value and shifts it right 8 bits. That means the top 8 bits are now on the bottom of the 16-bit value. It next masks out the top 8 bits of the original value in A and shifts those left 8 bits. That means the bottom 8 bits are now on the top. Finally, it recombines the two values back into one value.

The end result is that the top and bottom bytes have had their places swapped.

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This code is nothing more than standard C-preprocessor Macros.

The | is the bitwise OR operator. The \ escapes the newline so that the #define can continue to the next line. The (A) is a parameter for the macro.

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| performs a bitwise "OR" on two integers \ is an escape character that allows a #define to cotninue onto the next line

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I got to the question 30 seconds too late it seems. :P –  Victor Jul 21 '09 at 0:20
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It's a macro, it'll get expanded when you uses it.

If you e.g. use("call") the macro as

uint16_t i = htons(0x1234);

It will expand to:

uint16_t i =  ((((uint16_t)(0x1234) & 0xff00) >> 8) |(((uint16_t)(0x1234) & 0x00ff) << 8));

It's not that unlike a variable in a function, e.g.

uint16_t htons(uint16_t A) 
{
   return (A & 0xff00) >> 8) | (A & 0x00ff) << 8);
}
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Great examples! –  Masi Jul 21 '09 at 0:25
1  
Do you have two ) too more in the last code at 8)? –  Masi Jul 21 '09 at 0:28
2  
For one of the most important revelations to a C/C++ programmer, consider what uint16_t i = 0x1233; uint16_t j = htons(i++); results in. –  D.Shawley Jul 21 '09 at 1:58
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