Sieve of Eratosthenes (Memory Efficient Implementation)

Say we want to find all prime numbers up to an integer N where N is 108. If we write a regular implementation of Sieve Of Eratosthenes using a bool array for each integer in the range [1:N] then we could end up using N bytes of memory, which would roughly be 95 MB which is a not a very small memory.

Lets see how can we reduce the memory, the main idea here is we can store a Boolean value in a single bit, so we can store 8 Boolean values in a single byte. Yet another idea is we know there is only one even prime number which is 2 so we don’t need to calculate for other even numbers. With this in mind we can reduce the memory requirement half by simply not storing information for even numbers, but obviously we need to handle this only even number 2 on our own.

With these If we store this information in 4-byte integers, then we require only N/32 integers.

#include <iostream>
#include <cstdio>

using namespace std;

#define MAX 100000000  // 10^8
#define LMT 10000      // sqrt of MAX
#define LEN 5800032    // maximum possible different primes

unsigned flag[MAX>>6], primes[LEN];

#define ifc(n) (flag[n>>6]&(1<<((n>>1)&31)))
#define isc(n) (flag[n>>6]|=(1<<((n>>1)&31)))

void sieve() {
    unsigned i, j, k;
    for(i=3; i<LMT; i+=2)
        if(!ifc(i))
            for(j=i*i, k=(i<<1); j<MAX; j+=k)
                isc(j);
    primes[0] = 2;
    for(i=3, k=1; i<MAX; i+=2)
        if(!ifc(i))
            primes[k++] = i;
}

int main() {
    sieve();
    return 0;
}

Explanation:

Lets talk about the these macros first

#define MAX 100000000 // 10^8
#define LMT 10000 // sqrt of MAX
#define LEN 5800032 // maximum possible different primes

MAX is the maximum range (108), we need to calculate our prime numbers up to MAX LMT is the sqrt of MAX, a number X is prime if it is not divisible by any prime number up to sqrt of X. this is the main idea of Sieve Of Eratosthenes. LEN is size of Array we store out primes.

The variable declaration

unsigned flag[MAX>>6], primes[LEN];

flag[MAX»6] is actually flag[MAX/64] and And why we divide MAX by 64 ? Next the primes Array for storing all primes up to MAX

Now the super macro, which is doing all the things for us

#define ifc(n) (flag[n>>6]&(1<<((n>>1)&31)))
#define isc(n) (flag[n>>6]|=(1<<((n>>1)&31)))

ifc checks if a specific bit is 1 or 0 isc sets a specific bit 1 to mark it as composite in flag array.

In bit-wise sieve a specific value N located in [N/32]th index, and on that index [N%32]th bit from LSB(Right to left). But as we are considering the odd numbers only, we can map N with N/2.

Now if we replace N with N/2,

The [N/32]th index now becomes [N/2/32] = [N/64] = [N»6]

And [N%32]th bit position becomes ((N/2)%32) = (N»1)&31

We know, modding with a power of 2 is same as AND ing (&) with (same power of 2)-1.

But why we are using bit shifting/Operations? 😕 Because bit is fun and faster. 😉

This implementation reserves about [108/64] = [MAX»64] integers for the flag array, which is about 6MB of memory. Since there are 5.8 Million primes under 108, this would require an extra 4 x 5.8 x 106 bytes of array(primes array) which is roughly 22 MB which is obviously far better than 95 MB 😃