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I want to have a typedef that is 1-bit integer, so I though of this typedef int:1 FLAG; but I'm getting errors with it, is there a way I can do so? Thanks

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1  
Use a bool instead? – Mat Jan 26 '13 at 12:06
    
I'd use a bool, but if I want to combine some of them together to a form a 8-bit number, will I be able to do that? Like these variables will be either 0 or 1, and later on in some stage, I'd want to combine some vars to lets say 10110, I use shifting to do so, will it work on bools? – aizen92 Jan 26 '13 at 12:07
up vote 4 down vote accepted

No.

The smallest addressable "thing" in a C Program is a byte or char.
A char is at least 8 bits long.
So you cannot have a type (or objects of any type) with less than 8 bits.

What you can do is have a type for which objects occupy at least as many bits as a char and ignore most of the bits

#include <limits.h>
#include <stdio.h>

struct OneBit {
    unsigned int value:1;
};
typedef struct OneBit onebit;

int main(void) {
    onebit x;
    x.value = 1;
    x.value++;
    printf("1 incremented is %d\n", x.value);
    printf("each object of type 'onebit' needs %d bytes (%d bits)\n",
          (int)sizeof x, CHAR_BIT * (int)sizeof x);
    return 0;
}

You can see the code above running at ideone.

share|improve this answer
    
This could be a good solution. Thanks pmg. – aizen92 Jan 26 '13 at 12:11
    
This is the only one. The struct definition will bring the needed padding and you will be able to use your object as if it was 1-bit long. Of course, this example is like using a nuke to kill a little bug but you will get the idea for more useful bitfield structures. (And your object will still occupy 1 byte in memory) – Rerito Jan 26 '13 at 12:15

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