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Bit-fields with type signed int are interpreted as signed .
Bit-fields whose type is unsigned int are interpreted as unsigned .

#include <stdio.h>
#include <limits.h>
/* This structure has one 8 bit field, whose type is unsigned int */
struct S
{
    unsigned int num: CHAR_BIT;
} x = { 255 };

int main(void)
{

    if(x.num - 256 > 0)
        printf("signed\n");
    else
        printf("unsigned\n");

    return 0;
}

On a 32-bit Windows machine, using Visual Studio 2008 this code outputs :
"signed"

What is type of the expression (x.num - 256 > 0) ?
if it is unsigned int, unsigned int cannot be represented as int, therefore it is require to be promoted to unsigned int, and result will be "unsigned" ?

Also, when I look in the assembly listing output :

mov eax, DWORD PTR _x
and eax, 255            ; 000000ffH
sub eax, 256            ; 00000100H

Thus:

x.num = 0x000000FF
x.num & = 0x0FF -> 0x000000ff
x.num - = 0x100 -> 0xFFFFFFFF

0xFFFFFFFF = -1 

If this is true, then :

 if(-1 > 0)   
    printf("signed");  
 else   
    printf("unsigned");

Result must be "unsigned" ?

Can anyone properly explain these results ?

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1 Answer 1

up vote 3 down vote accepted

According to integer promotions, “If an int can represent all values of the original type, the value is converted to an int; otherwise, it is converted to an unsigned int.” (This is 6.3.1.1:2 in C99).

An int can contain all values of an unsigned bit-field of width 8, so this unsigned bit-field is promoted to int. So x.num and x.num - 256 both have type int.

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