问题
My current algorithm to check the primality of numbers in python is way to slow for numbers between 10 million and 1 billion. I want it to be improved knowing that I will never get numbers bigger than 1 billion.
The context is that I can't get an implementation that is quick enough for solving problem 60 of project Euler: I'm getting the answer to the problem in 75 seconds where I need it in 60 seconds. http://projecteuler.net/index.php?section=problems&id=60
I have very few memory at my disposal so I can't store all the prime numbers below 1 billion.
I'm currently using the standard trial division tuned with 6k±1. Is there anything better than this? Do I already need to get the Rabin-Miller method for numbers that are this large.
primes_under_100 = [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]
def isprime(n):
if n <= 100:
return n in primes_under_100
if n % 2 == 0 or n % 3 == 0:
return False
for f in range(5, int(n ** .5), 6):
if n % f == 0 or n % (f + 2) == 0:
return False
return True
How can I improve this algorithm?
Precision: I'm new to python and would like to work with python 3+ only.
Final code
For those who are interested, using MAK's ideas, I generated the following code which is about 1/3 quicker, allowing me to get the result of the euler problem in less than 60 seconds!
from bisect import bisect_left
# sqrt(1000000000) = 31622
__primes = sieve(31622)
def is_prime(n):
# if prime is already in the list, just pick it
if n <= 31622:
i = bisect_left(__primes, n)
return i != len(__primes) and __primes[i] == n
# Divide by each known prime
limit = int(n ** .5)
for p in __primes:
if p > limit: return True
if n % p == 0: return False
# fall back on trial division if n > 1 billion
for f in range(31627, limit, 6): # 31627 is the next prime
if n % f == 0 or n % (f + 4) == 0:
return False
return True
回答1:
For numbers as large as 10^9, one approach can be to generate all primes up to sqrt(10^9) and then simply check the divisibility of the input number against the numbers in that list. If a number isn't divisible by any other prime less than or equal to its square root, it must itself be a prime (it must have at least one factor <=sqrt and another >= sqrt to not be prime). Notice how you do not need to test divisibility for all numbers, just up to the square root (which is around 32,000 - quite manageable I think). You can generate the list of primes using a sieve.
You could also go for a probabilistic prime test. But they can be harder to understand, and for this problem simply using a generated list of primes should suffice.
回答2:
For solving Project Euler problems I did what you suggest in your question: Implement the Miller Rabin test (in C# but I suspect it will be fast in Python too). The algorithm is not that difficult. For numbers below 4,759,123,141 it is enough to check that a number is a strong pseudo prime to the bases 2, 7, 61. Combine that with trial division by small primes.
I do not know how many of the problems you have solved so far, but having a fast primality test at your disposal will be of great value for a lot of the problems.
回答3:
You can first divide your n only by your primes_under_100.
Also, precompute more primes.
Also, you're actually store your range() result in memory - use irange() instead and use this memory for running Sieve of Eratosthenes algorithm.
回答4:
Well, I have a follow-up to my comment under (very good) Peter Van Der Heijden's answer about there being nothing good for really large primes (numbers in general) in the "popular" Python libraries. Turns out I was wrong - there is one in sympy (great library for symbolic algebra, among others):
https://docs.sympy.org/latest/modules/ntheory.html#sympy.ntheory.primetest.isprime
Of course, it may yield false positives above 10**16, but this is already much better than anything else I could get doing nothing (except maybe pip install sympy ;) )
回答5:
def isprime(num):
if (num==3)or(num==2):
return(True)
elif (num%2 == 0)or(num%5 == 0):
return (False)
elif ((((num+1)%6 ==0) or ((num-1)%6 ==0)) and (num>1)):
return (True)
else:
return (False)
I think this code is the fastest ..
来源:https://stackoverflow.com/questions/4545114/quickly-determine-if-a-number-is-prime-in-python-for-numbers-1-billion