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I got a code in c which will do functionality of atoi function but i don't how its working

int main(int argc, char* argv[])
{
  printf("\n%d\n", myatoi("1998")); 
  getch();
  return(0);
}

int myatoi(const char *string)
{
  int i;
  i=0;
  while(*string)
  {
    i=(i<<3) + (i<<1) + (*string - '0');
    string++;
  }
  return(i);
}

In the above code is not getting incremented and always be zero then how (i<<3) + (i<<1) will effect the code?

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are you sure that code is working ? – Dan Bizdadea Oct 20 '11 at 9:42
    
Sorry for my mistake i have updated this working code now – Amit Singh Tomar Oct 20 '11 at 9:58

(i<<3) + (i<<1) (for positive numbers at least) is equivalent to multiplying by 10, because i<<3 shifts the integer by 3 bits to the left (i.e. multiplying by 8) and i<<1 shifts the integer by 1 bit to the left (i.e. multiplying by 2).

Each time you encounter a new digit, it multiplies the current number by 10 and adds the new digit (i.e. if your current number is 199 and you encounter the digit 8, then your new number should be 1998 = 10 * 199 + 8.

The reason for subtracting '0' is that if your characters are encoded in ASCII, you need to convert the ASCII codes back to numbers.

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For understanding this code, you need to understand:

  • (i<<3), I mean bit operators

and

  • *string, string++, I mean string manipulation and more generally operations on pointers.

You also need to know how strings are represented in C and how numbers are represented in ASCII.

share|improve this answer
    
(i<<3) if i remains to be zero than nothing is there to be understand .its always comes to be zero – Amit Singh Tomar Oct 20 '11 at 10:21
    
i gets changed with the third term of the addition. I hope that you know that while indicates a loop. – mouviciel Oct 20 '11 at 10:23
    
Well mouviciel my day is really going bed today – Amit Singh Tomar Oct 20 '11 at 10:29

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