71

Just to clarify, this is not a homework problem :)

I wanted to find primes for a math application I am building & came across Sieve of Eratosthenes approach.

I have written an implementation of it in Python. But it's terribly slow. For say, if I want to find all primes less than 2 million. It takes > 20 mins. (I stopped it at this point). How can I speed this up?

def primes_sieve(limit):
    limitn = limit+1
    primes = range(2, limitn)

    for i in primes:
        factors = range(i, limitn, i)
        for f in factors[1:]:
            if f in primes:
                primes.remove(f)
    return primes

print primes_sieve(2000)

UPDATE: I ended up doing profiling on this code & found that quite a lot of time was spent on removing an element from the list. Quite understandable considering it has to traverse the entire list (worst-case) to find the element & then remove it and then readjust the list (maybe some copy goes on?). Anyway, I chucked out list for dictionary. My new implementation -

def primes_sieve1(limit):
    limitn = limit+1
    primes = dict()
    for i in range(2, limitn): primes[i] = True

    for i in primes:
        factors = range(i,limitn, i)
        for f in factors[1:]:
            primes[f] = False
    return [i for i in primes if primes[i]==True]

print primes_sieve1(2000000)

16 Answers 16

110

You're not quite implementing the correct algorithm:

In your first example, primes_sieve doesn't maintain a list of primality flags to strike/unset (as in the algorithm), but instead resizes a list of integers continuously, which is very expensive: removing an item from a list requires shifting all subsequent items down by one.

In the second example, primes_sieve1 maintains a dictionary of primality flags, which is a step in the right direction, but it iterates over the dictionary in undefined order, and redundantly strikes out factors of factors (instead of only factors of primes, as in the algorithm). You could fix this by sorting the keys, and skipping non-primes (which already makes it an order of magnitude faster), but it's still much more efficient to just use a list directly.

The correct algorithm (with a list instead of a dictionary) looks something like:

def primes_sieve2(limit):
    a = [True] * limit                          # Initialize the primality list
    a[0] = a[1] = False

    for (i, isprime) in enumerate(a):
        if isprime:
            yield i
            for n in range(i*i, limit, i):     # Mark factors non-prime
                a[n] = False

(Note that this also includes the algorithmic optimization of starting the non-prime marking at the prime's square (i*i) instead of its double.)

| improve this answer | |
  • 7
    another optimization, the step size of your xrange(i*i,limit,i) can be made 2*i – st0le Oct 21 '10 at 12:20
  • 3
    I like your succinct implementation of the Sieve of Eratosthenes. : ) However, I'm having a OverflowError: Python int too large to convert to C long. I changed xrange(i*i, limit, i) to xrange(i, limit, i). Thanks for sharing this code snippet! – Annie Lagang Apr 2 '12 at 13:26
  • 11
    @st0le: No, the step-size cannot be made 2*i. Just tried it. It yields 14 as a prime. – mpen Jul 13 '12 at 1:33
  • 2
    @Mark, I'm sorry I didn't really explain it in full. Eliminate all even numbers by doing an iteration with i=2 with steps of i but for the rest you can use 2*i. In fact, in my implementation I use half the booleans since I don't store even numbers and instead use a simple mod 2. You can find my Java implementation here which uses even less (1/8th) the memory. HERE – st0le Jul 13 '12 at 3:44
  • 4
    +1, just a small detail, if you use [False] * 2 + [True] * (limit-2) in the initialisation, you can avoid IndexError on passing number < 2 as an argument – Jan Vorcak Nov 10 '13 at 17:57
12
def eratosthenes(n):
    multiples = []
    for i in range(2, n+1):
        if i not in multiples:
            print (i)
            for j in range(i*i, n+1, i):
                multiples.append(j)

eratosthenes(100)
| improve this answer | |
  • 4
    instead of a list, I would use a set in order to speed up the membership test – Copperfield Sep 4 '16 at 13:36
  • The last output showing 'None' , how I can remove it? – LordOfThunder Sep 17 '18 at 12:12
7

Removing from the beginning of an array (list) requires moving all of the items after it down. That means that removing every element from a list in this way starting from the front is an O(n^2) operation.

You can do this much more efficiently with sets:

def primes_sieve(limit):
    limitn = limit+1
    not_prime = set()
    primes = []

    for i in range(2, limitn):
        if i in not_prime:
            continue

        for f in range(i*2, limitn, i):
            not_prime.add(f)

        primes.append(i)

    return primes

print primes_sieve(1000000)

... or alternatively, avoid having to rearrange the list:

def primes_sieve(limit):
    limitn = limit+1
    not_prime = [False] * limitn
    primes = []

    for i in range(2, limitn):
        if not_prime[i]:
            continue
        for f in xrange(i*2, limitn, i):
            not_prime[f] = True

        primes.append(i)

    return primes
| improve this answer | |
  • 2
    See @Piet Delport answer below for an optimization: replace i*2 above with i*i. – President James K. Polk Oct 17 '10 at 14:44
4

Much faster:

import time
def get_primes(n):
  m = n+1
  #numbers = [True for i in range(m)]
  numbers = [True] * m #EDIT: faster
  for i in range(2, int(n**0.5 + 1)):
    if numbers[i]:
      for j in range(i*i, m, i):
        numbers[j] = False
  primes = []
  for i in range(2, m):
    if numbers[i]:
      primes.append(i)
  return primes

start = time.time()
primes = get_primes(10000)
print(time.time() - start)
print(get_primes(100))
| improve this answer | |
3

I realise this isn't really answering the question of how to generate primes quickly, but perhaps some will find this alternative interesting: because python provides lazy evaluation via generators, eratosthenes' sieve can be implemented exactly as stated:

def intsfrom(n):
    while True:
        yield n
        n += 1

def sieve(ilist):
    p = next(ilist)
    yield p
    for q in sieve(n for n in ilist if n%p != 0):
        yield q


try:
    for p in sieve(intsfrom(2)):
        print p,

    print ''
except RuntimeError as e:
    print e

The try block is there because the algorithm runs until it blows the stack and without the try block the backtrace is displayed pushing the actual output you want to see off screen.

| improve this answer | |
  • 3
    no, it's not the sieve of Eratosthenes, but rather a sieve of trial division. Even that is very suboptimal, because it's not postponed: any candidate number need only be tested by primes not above its square root. Implementing this along the lines of the pseudocode at the bottom of the linked above answer (the latter one) will give your code immense speedup (even before you switch to the proper sieve) and/because it'll greatly minimize the stack usage - so you mightn't need your try block after all. – Will Ness Jul 21 '14 at 14:11
  • ... see also: more discussion about the "sqrt" issue and its effects, an actual Python code for a postponed trial division, and some related Scala. --- And kudos to you, if you came up with that code on your own! :) – Will Ness Jul 21 '14 at 14:15
  • Interesting, although I'm not yet understanding why what I put is different from the sieve of Eratosthenes. I thought it was described as placing all the intergers from 2 in a line, then repeadly take the first in the line as a prime and strike out all multiples. the "n for n in ilist if n%p != 0" bit was supposed to represent striking out the multiples. Admittedly highly suboptimal though, definitely – Paul Gardiner Feb 18 '15 at 14:05
  • n for n in ilist if n%p != 0 tests each number n in a range for divisibility by p; but range(p*p, N, p) generates the multiples directly, all by itself, without testing all these numbers. – Will Ness Feb 25 '15 at 4:06
2

By combining contributions from many enthusiasts (including Glenn Maynard and MrHIDEn from above comments), I came up with following piece of code in python 2:

def simpleSieve(sieveSize):
    #creating Sieve.
    sieve = [True] * (sieveSize+1)
    # 0 and 1 are not considered prime.
    sieve[0] = False
    sieve[1] = False
    for i in xrange(2,int(math.sqrt(sieveSize))+1):
        if sieve[i] == False:
            continue
        for pointer in xrange(i**2, sieveSize+1, i):
            sieve[pointer] = False
    # Sieve is left with prime numbers == True
    primes = []
    for i in xrange(sieveSize+1):
        if sieve[i] == True:
            primes.append(i)
    return primes

sieveSize = input()
primes = simpleSieve(sieveSize)

Time taken for computation on my machine for different inputs in power of 10 is:

  • 3 : 0.3 ms
  • 4 : 2.4 ms
  • 5 : 23 ms
  • 6 : 0.26 s
  • 7 : 3.1 s
  • 8 : 33 s
| improve this answer | |
  • the comparison with True or False are unneeded more so as they are already Boolean, – Copperfield Sep 4 '16 at 13:32
  • @Copperfield Thanks! It helped in increasing speed by 10-20%. – Ajay Sep 4 '16 at 20:04
  • This sieve = [True] * (sieveSize+1) is faster than my solution, but sieve[0]/[1] and xrange(sieveSize+1) at primes[] does not improve anything. xrange(2, sieveSize+1) is good enouth. :). Also instead of for i in xrange(2,int(math.sqrt(sieveSize))+1): we can just use for i in xrange(2, int((sieveSize+1)**0.5): Good code. :) – MrHIDEn Nov 28 '16 at 8:49
1

A simple speed hack: when you define the variable "primes," set the step to 2 to skip all even numbers automatically, and set the starting point to 1.

Then you can further optimize by instead of for i in primes, use for i in primes[:round(len(primes) ** 0.5)]. That will dramatically increase performance. In addition, you can eliminate numbers ending with 5 to further increase speed.

| improve this answer | |
1

My implementation:

import math
n = 100
marked = {}
for i in range(2, int(math.sqrt(n))):
    if not marked.get(i):
        for x in range(i * i, n, i):
            marked[x] = True

for i in range(2, n):
    if not marked.get(i):
        print i
| improve this answer | |
  • I just testet your code and I see dict solution is 2 times slower than list solution. – MrHIDEn Nov 28 '16 at 8:54
1

Here's a version that's a bit more memory-efficient (and: a proper sieve, not trial divisions). Basically, instead of keeping an array of all the numbers, and crossing out those that aren't prime, this keeps an array of counters - one for each prime it's discovered - and leap-frogging them ahead of the putative prime. That way, it uses storage proportional to the number of primes, not up to to the highest prime.

import itertools

def primes():

    class counter:
        def __init__ (this,  n): this.n, this.current,  this.isVirgin = n, n*n,  True
            # isVirgin means it's never been incremented
        def advancePast (this,  n): # return true if the counter advanced
            if this.current > n:
                if this.isVirgin: raise StopIteration # if this is virgin, then so will be all the subsequent counters.  Don't need to iterate further.
                return False
            this.current += this.n # pre: this.current == n; post: this.current > n.
            this.isVirgin = False # when it's gone, it's gone
            return True

    yield 1
    multiples = []
    for n in itertools.count(2):
        isPrime = True
        for p in (m.advancePast(n) for m in multiples):
            if p: isPrime = False
        if isPrime:
            yield n
            multiples.append (counter (n))

You'll note that primes() is a generator, so you can keep the results in a list or you can use them directly. Here's the first n primes:

import itertools

for k in itertools.islice (primes(),  n):
    print (k)

And, for completeness, here's a timer to measure the performance:

import time

def timer ():
    t,  k = time.process_time(),  10
    for p in primes():
        if p>k:
            print (time.process_time()-t,  " to ",  p,  "\n")
            k *= 10
            if k>100000: return

Just in case you're wondering, I also wrote primes() as a simple iterator (using __iter__ and __next__), and it ran at almost the same speed. Surprised me too!

| improve this answer | |
  • interesting idea - it would improve performance if you store the prime counters in a min-heap though (inner loop would be O(log num_primes) instead of O(num_primes)) – anthonybell Jul 25 '17 at 17:34
  • Why? Even if they were in a heap, we still have to account for every one. – Jules May Jul 26 '17 at 10:26
  • If you store each prime in the heap keyed by it's next value you would only have to look at primes whose next value is the current value n. the largest primes will sink to the bottom of the heap and would need to be evaluated much more rarely than the smaller primes. – anthonybell Jul 26 '17 at 19:30
1

I prefer NumPy because of speed.

import numpy as np

# Find all prime numbers using Sieve of Eratosthenes
def get_primes1(n):
    m = int(np.sqrt(n))
    is_prime = np.ones(n, dtype=bool)
    is_prime[:2] = False  # 0 and 1 are not primes

    for i in range(2, m):
        if is_prime[i] == False:
            continue
        is_prime[i*i::i] = False

    return np.nonzero(is_prime)[0]

# Find all prime numbers using brute-force.
def isprime(n):
    ''' Check if integer n is a prime '''
    n = abs(int(n))  # n is a positive integer
    if n < 2:  # 0 and 1 are not primes
        return False
    if n == 2:  # 2 is the only even prime number
        return True
    if not n & 1:  # all other even numbers are not primes
        return False
    # Range starts with 3 and only needs to go up the square root
    # of n for all odd numbers
    for x in range(3, int(n**0.5)+1, 2):
        if n % x == 0:
            return False
    return True

# To apply a function to a numpy array, one have to vectorize the function
def get_primes2(n):
    vectorized_isprime = np.vectorize(isprime)
    a = np.arange(n)
    return a[vectorized_isprime(a)]

Check the output:

n = 100
print(get_primes1(n))
print(get_primes2(n))    
    [ 2  3  5  7 11 13 17 19 23 29 31 37 41 43 47 53 59 61 67 71 73 79 83 89 97]
    [ 2  3  5  7 11 13 17 19 23 29 31 37 41 43 47 53 59 61 67 71 73 79 83 89 97]

Compare the speed of Sieve of Eratosthenes and brute-force on Jupyter Notebook. Sieve of Eratosthenes in 539 times faster than brute-force for million elements.

%timeit get_primes1(1000000)
%timeit get_primes2(1000000)
4.79 ms ± 90.3 µs per loop (mean ± std. dev. of 7 runs, 100 loops each)
2.58 s ± 31.2 ms per loop (mean ± std. dev. of 7 runs, 1 loop each)
| improve this answer | |
  • Should your inner loop content not better be (taking previous answers and comments into account) the one line if is_prime[i]: is_prime[i*i::2*i]=False? – Lutz Lehmann May 6 '19 at 8:02
1

I figured it must be possible to simply use the empty list as the terminating condition for the loop and came up with this:

limit = 100
ints = list(range(2, limit))   # Will end up empty

while len(ints) > 0:
    prime = ints[0]
    print prime
    ints.remove(prime)
    i = 2
    multiple = prime * i
    while multiple <= limit:
        if multiple in ints:
            ints.remove(multiple)
        i += 1
        multiple = prime * i
| improve this answer | |
1
import math
def sieve(n):
    primes = [True]*n
    primes[0] = False
    primes[1] = False
    for i in range(2,int(math.sqrt(n))+1):
            j = i*i
            while j < n:
                    primes[j] = False
                    j = j+i
    return [x for x in range(n) if primes[x] == True]
| improve this answer | |
1

i think this is shortest code for finding primes with eratosthenes method

def prime(r):
    n = range(2,r)
    while len(n)>0:
        yield n[0]
        n = [x for x in n if x not in range(n[0],r,n[0])]


print(list(prime(r)))
| improve this answer | |
1

Using a bit of numpy, I could find all primes below 100 million in a little over 2 seconds.

There are two key features one should note

  • Cut out multiples of i only for i up to root of n
  • Setting multiples of i to False using x[2*i::i] = False is much faster than an explicit python for loop.

These two significantly speed up your code. For limits below one million, there is no perceptible running time.

import numpy as np

def primes(n):
    x = np.ones((n+1,), dtype=np.bool)
    x[0] = False
    x[1] = False
    for i in range(2, int(n**0.5)+1):
        if x[i]:
            x[2*i::i] = False

    primes = np.where(x == True)[0]
    return primes

print(len(primes(100_000_000)))
| improve this answer | |
1

The fastest implementation I could come up with:

isprime = [True]*N
isprime[0] = isprime[1] = False
for i in range(4, N, 2):
    isprime[i] = False
for i in range(3, N, 2):
    if isprime[i]:
        for j in range(i*i, N, 2*i):
            isprime[j] = False
| improve this answer | |
0

not sure if my code is efficeient, anyone care to comment?

from math import isqrt

def isPrime(n):
    if n >= 2: # cheating the 2, is 2 even prime?
        for i in range(3, int(n / 2 + 1),2): # dont waste time with even numbers
            if n % i == 0:
                return False
    return True

def primesTo(n): 
    x = [2] if n >= 2 else [] # cheat the only even prime
    if n >= 2:
        for i in range(3, n + 1,2): # dont waste time with even numbers
            if isPrime(i):
                x.append(i)  
    return x

def primes2(n): # trying to do this using set methods and the "Sieve of Eratosthenes"
    base = {2} # again cheating the 2
    base.update(set(range(3, n + 1, 2))) # build the base of odd numbers
    for i in range(3, isqrt(n) + 1, 2): # apply the sieve
        base.difference_update(set(range(2 * i, n + 1 , i)))
    return list(base)

print(primesTo(10000)) # 2 different methods for comparison
print(primes2(10000))
| improve this answer | |

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