2

For example,suppose I have something like "0000 0000 0000 1110".

How can I access the left most 1 and change it to 0?

1

7 Answers 7

3

This two functions can handle 64 bit value.

uint8_t get_bit(uint64_t bits, uint8_t pos)
{
   return (bits >> pos) & 0x01;
}

uint64_t set_bit(uint64_t bits, uint8_t pos, uint8_t value)
{
   uint64_t mask = 1LL << (63 - pos);
   if (value)
       bits |= mask;
   else
       bits &= ~mask;
   return bits;
}

uint64_t v = ...;
uint8_t i = 63;
for(;i>=0; i--)
{
    if(get_bit(v, i)){
       v=set_bit(v,i, 0);
       break;
    }
}
1
  • 1
    One-liner to get the msb that is set to 1: i = floor(log(bits)/log(2)) Commented Feb 25, 2014 at 5:19
1

Use bitwise And (&) . like 0000 0000 0000 1110 & 0000 0000 0000 1000 will give non zero answer

1

I think you are looking for bit masking

For example:

00011001 >> 3 = 00000011

Now mask it with 1

00000011 & 00000001 = 00000001

Code:-

int funcBitMasking(int8_t mybyte, int firstbit)
{
    if (firstbit> 0 && firstbit<= 16)
        return (mybyte & (1<<(firstbit-1)));
    else
        return 0;
}
0

I am assuming your input is 32 bits. We scan the input for the first 1, left shifting; change the first bit to 0 by &ing it with 0X7FFF and right shift by the number we left shifted + 1.

unsigned int i = 0XE;
int j;

for ( j = 0; j < 32 && ! ( i & 0X8000 ); j++ )
    i <<= 1;

i &= 0X7FFF;
i >>= ( j + 1 );
0

suppose a = 0000 0000 0000 1110

int i =16 ;
 b = 1;
while(true)
{

  b = b << 1 ;
  if(b & 0x1000000000000000)
  {
   break;
  }
 i = i +1 ;
}

and you will have acces toyour bit like this

int yourbit= ~0; /* All 1’s */ 
youtbit = (max >> (i+1) ) +  1
0

I think you are mentioning the fourth bit from the right hand side as the left most bit.

For accessing a specific bit, you can use Shift Operators.

If it is always a 1 that you are going to reset, then you could use an & operation.

But, if it can also take 0 value, then & operation will fail as 0 & 1 = 0. You could use | (OR) during that time.

Store this value in a variable and make an OR operation with (1 << 4) The right hand side of the Shift operator, will take the position of the bit from right-side. And, left-hand side of the Shift operator, will take the value to be placed on that position. The operator points to the direction, the value has to be shifted.

Please refer the following links, for more information.

http://www.eskimo.com/~scs/cclass/int/sx4ab.html

http://www.codeproject.com/Articles/2247/An-introduction-to-bitwise-operators

Hope it helped.

0
#include <stdio.h>
#include <stdint.h>

int mlb_pos(uint16_t x) {//0 origin
    uint16_t y;
    int n = 16;
    y = x >>  8; if (y != 0){ n = n -  8 ; x = y; }
    y = x >>  4; if (y != 0){ n = n -  4 ; x = y; }
    y = x >>  2; if (y != 0){ n = n -  2 ; x = y; }
    y = x >>  1; if (y != 0){ return 15-(n-2); }
    return 15-(n-x);
}

int main(){
    uint16_t n = 14;//0b0000000000001110
    uint16_t result = n ^ (1<<mlb_pos(n));
    printf("%d\n", result);//6 : 0b0000000000000110
}

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