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how to count number of occurrences of 1 in a 8 bit string. such as 10110001. bit string is taken from user. like 10110001 what type of array should be used to store this bit string in c?

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1  
If it's that short, just use whatever you find easiest to use. –  Matti Virkkunen Apr 24 '11 at 17:31
    
would you plz write code for that operation. so that bit string can be used to count occurrences of "1". –  balaji Apr 24 '11 at 17:33
    
Try a for loop... –  Matti Virkkunen Apr 24 '11 at 17:34
1  
Use std::bitset. –  Prasoon Saurav Apr 24 '11 at 17:40

4 Answers 4

up vote 5 down vote accepted

Short and simple. Use std::bitset(C++)

#include <iostream>
#include <bitset>

int main()
{
  std::bitset<8> mybitstring;
  std::cin >> mybitstring;
  std::cout << mybitstring.count(); // returns the number of set bits
}

Online Test at Ideone

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Don't use an array at all, use a std::string. This gives you the possibility of better error handling. You can write code like:

bitset <8> b;
if ( cin >> b ) {
    cout << b << endl;
}
else {
    cout << "error" << endl;
}

but there is no way of finding out which character caused the error.

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You'd probably use an unsigned int to store those bits in C.

If you're using GCC then you can use __builtin_popcount to count the one bits:

Built-in Function: int __builtin_popcount (unsigned int x)
Returns the number of 1-bits in x.

This should resolve to a single instruction on CPUs that support it too.

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From hacker's delight:

For machines that don't have this instruction, a good way to count the number
of 1-bits is to first set each 2-bit field equal to the sum of the two single
bits that were originally in the field, and then sum adjacent 2-bit fields,
putting the results in each 4-bit field, and so on. 

so, if x is an integer:

x = (x & 0x55555555) + ((x >> 1) & 0x55555555);
x = (x & 0x33333333) + ((x >> 2) & 0x33333333);
x = (x & 0x0F0F0F0F) + ((x >> 4) & 0x0F0F0F0F);
x = (x & 0x00FF00FF) + ((x >> 8) & 0x00FF00FF);
x = (x & 0x0000FFFF) + ((x >>16) & 0x0000FFFF);

x will now contain the number of 1 bits. Just adapt the algorithm with 8 bit values.

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