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I have an character array (say char charr[5]) which contains 0/1 (char array of boolean number). Now, I want to convert the character array to 64 bit integer number (if array is {0, 0, 0, 1 , 0}, it will give 2 ). How to do that ? Is there any library functions ?

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1  
Just do it by hand...it's not a particularly difficult problem to solve using bitwise operators. –  nneonneo Feb 5 '13 at 13:35
    
If it is indeed a small array and you need this often I would build a look up table –  Digital Da Feb 5 '13 at 13:39

3 Answers 3

up vote 3 down vote accepted

No, there's no standard function for that. But it's pretty trivial:

uint64_t pack(const uint8_t *bits, size_t n)
{
  uint64_t x = 0, value = 1 << (n - 1);

  while(n > 0)
  {
    x += value * *bits++;
    n--;
    value /= 2;
  }
  return x;
}
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I'd get rid of value and just use shifts, but otherwise it's nice. –  nneonneo Feb 5 '13 at 14:00

Unwind has the basic idea right, but a complex implementation. This also works:

uint64_t pack(const uint8_t *bits, size_t n)
{
  uint64 x = 0;
  for(;n > 0; n--) // For all input bits.
  {
    x <<= 1; // make room for next bit.
    assert(*bits <= 1); // It better be a 0 or 1.
    x += *bits++; // Add new bit on the end.
  }
  return x;
}
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Try strtoll with base 2:

int val = strtoll(input, NULL, 2);
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Uh no, that will expect '0' and '1', i.e. digits, which is not what the input has. –  unwind Feb 5 '13 at 13:46
    
@unwind: But that's fixable. Just add '0' to all digits. (Works if you have a char[], not if you have a const char*, in which case you'd need to make a copy first) –  MSalters Feb 5 '13 at 16:54

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