Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

As we know a in c-language char pointer traverse memory byte by byte i.e. 1 byte each time, and integer pointer 4 byte each time(in gcc compiler), 2 byte each time(in TC compiler).

for example:

char *cptr; // if this points to 0x100
cptr++;     // now it points to  0x101

int *iptr;  // if this points to 0x100
iptr++;     // now it points to  0x104

My question is:

How to create a bit pointer in c which on incrementing traverse memory bit by bit?

share|improve this question
    
You'll have to use C++ to encapsulate the implementation and abstract the de-referentiation operator. You could do the same in C, but you'll have to use functions to simulate operators. –  Spidey Dec 13 '12 at 19:42
    
It doesn't make any sense to have a pointer to a bit, because almost every (all?) CPUs work on byte level. The address bus of every CPU I have ever heard of expresses addresses in bytes. Since a pointer is an address, it will have to point to a byte, or larger. –  Lundin Dec 13 '12 at 20:50

7 Answers 7

The char is the 'smallest addressable unit' in C. You can't point directly at something smaller than that (such as a bit).

share|improve this answer

You can't. Using pointers, it's not possible to manipulate bits directly. (Do you really expect poor hypothetical bit *p = 1; p++ to return 1.125?)

However, you can use bitwise operators, such as <<, >>, | and & to access a specific bit within a byte.

share|improve this answer
    
Dear H2CO3 will u plz tell me how to access specific bit within a byte using bitwise operators, such as <<, >>, | and &. –  ashrafi iqbal Dec 22 '12 at 17:08
    
@ashrafiiqbal For example, value & (1 << 5) checks if the 6th bit is set in a bitmask, but why don't you google "C bitwise operations"? –  user529758 Dec 22 '12 at 17:10

Conceptually, a "bit pointer" is not a single scalar, but an ordered pair consisting of a byte pointer and a bit index within that byte. You can represent this with a structure containing both, or with two separate objects. Performing arithmetic on them requires some modular reduction on your part; for example, if you want to access the bit 10 bits past a given bit, you have to add 10 to the bit index, then reduce it modulo 8, and increment the byte pointer part appropriately.

Incidentally, on historical systems that only had word-addressable memory, not byte-addressable, char * consisted of a word pointer and a byte index within the word. This is the exact same concept. The difference is that, while C provides char * even on machines without byte-addressable memory, it does not provide any built-in "bit pointer" type. You have to create it yourself if you want it.

share|improve this answer
    
This wouldn't even be too hard to do in C++, but if you're limited to C, you can't redefine enough of the syntax to make it sugary. –  jkerian Dec 14 '12 at 0:18
1  
Uhg, I can do without the syntactic vinegar. There's nothing ugly about doing it in the straightforward way in C. –  R.. Dec 14 '12 at 2:49
    
@R.. Very well explained. Thank you for the history too. –  hari Dec 23 '12 at 6:53

I don't think that is possible since modern computers are byte addressable which means that there is one address for each byte. So a bit has no address and as such a pointer cant point to it. You could use a char * and bitwise operations to determine the value of individual bits.

If you really want it you could write a class that uses a char* to keep track of the address in memory, a char(or short/int however the value would never need to be higher than 0000 0111 so a char would reduce the memory footprint) to keep track of which bit in that byte you are at and then overload the operators so that it functions as you want it to.

share|improve this answer

No, but you can write a function to read the bits one by one:

int readBit(char *byteData, int bitOffset)
{
   const int wholeBytes = bitOffset / 8;
   const int remainingBits = bitOffset % 8;
   return (byteData[wholeBytes] >> remainingBits) & 1;
   //or if you want most significant bit to be 0
   //return (byteData[wholeBytes] >> (8-remainingBits)) & 1;
}

Usage:

char *data = any memory you like.
int bitPointer=0;
int bit0 = readBit(data, bitPointer);
bitPointer++;
int bit1 = readBit(data, bitPointer);
bitPointer++;
int bit2 = readBit(data, bitPointer);

Of course if this kind of function had general value it would probably already exist. Operating bit-by-bit is just so inefficient compared to using bit masks, and shifts etc.

share|improve this answer
    
thanx alot Weston. i hope this will be usful for me. –  ashrafi iqbal Dec 22 '12 at 17:05

I am not sure what you are asking is possible. You need to do some magic with bit shifting to traverse through all the bits of a byte pointed by the pointer.

share|improve this answer
    
till now i am unable to do such magic hari. BTW thanx. –  ashrafi iqbal Dec 22 '12 at 17:04
    
@ashrafiiqbal I believe you have enough help provided by ppl :-) Try it out and post your code if you still have issues. –  hari Dec 23 '12 at 6:55

You could always cast your pointer to integer, that is at least 3 bits bigger in size than byte pointer used at the system. Then just shift the pointer after the cast left by 3 bits. Then store the bit information on the least significant 3 bits.

This integer "bitpointer" can then be incremented with normal arithmetic.

Something like this:

#include <stdio.h>

#define bitptr long long
#define create_bitptr(pointer,bit) ((((bitptr)pointer)<<3)|bit) ;
#define get_bit(bptr) ((bptr)&7)
#define get_value(bptr)  (*((char*)((bptr)>>3))) 
#define set_bit(bptr) get_value(bptr) |= 1<<get_bit(bptr)
#define clear_bit(bptr) get_value(bptr) &= (~(1<<get_bit(bptr)))

int main(void)
{
    char variable=0; 

    bitptr p ;
    p=create_bitptr(&variable,0) ;

    set_bit(p) ;    p++ ; //1
    clear_bit(p) ;  p++ ; //0
    set_bit(p) ;   p++ ;  //1
    clear_bit(p) ; p++ ;  //0
    clear_bit(p) ; p++ ;  //0
    clear_bit(p) ; p++ ;  //0
    clear_bit(p) ; p++ ;  //0
    clear_bit(p) ; p++ ;  //0

    printf("%d\n",variable) ;
    return 0;
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.