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example:

in abc[2] we find 3rd bit as set then , the actual bit number would be 8*2+3 that is 19th bit is set!!! like that.

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@ArsenMkrt give it some time –  Foo Bah Feb 11 '11 at 6:22
1  
@Foo Bah hi has 5 questions without accept –  ArsenMkrt Feb 11 '11 at 6:32

3 Answers 3

you can do a simple bit op check:

abc[i] & (1 << n)

that will be 0 if bit is not set and (1 << n) if it is set

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When using GCC you can fasten your bitmap lookup using

If you're not willing to use some GCC centric extension and don't wan't to parse your array as uint32_t, you can still use the ffs() function to find the first bit (low order) set at each of the array index, see ffs()'s manpage.

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This helps?

int l = sizeof(abc);
int k = sizeof(*abc);
int i, j;
for (i = 0; i < l; ++i) {
    char n = abc[i];
    for (j = 0; j < k; ++j) {
        if (n & 0x01)
            printf("Bit number %d is set.\n", (l*k)-i);
        n = n >> 1;
    }
}
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2  
what's n? it appears out of nowhere –  Foo Bah Feb 11 '11 at 6:36
    
@Peyman : i think n is pointer to the first bit !!! am i rit?? –  mujahid Feb 11 '11 at 6:42
    
Oops! Fixed it. –  Peyman Feb 11 '11 at 6:51
    
abc is a character array so sizeof(*abc) = sizeof(char) = 1. also the actual bit set is something like 8 * (l-i-1) + (7-j) depending on how you are measuring the bit in each byte –  Foo Bah Feb 11 '11 at 6:58
    
I would have done something like for(msk=0x80; msk!=0; msk>>1) { instead of the for(j... loop. As it is, I believe you will read the bits in reverse order (I take the OP to be wanting to read the bits as if the array is a 10 byte number, so high-bit to low). –  Lawrence Dol Feb 11 '11 at 7:01

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