mathdatech/Python
1
0
Fork 0
mirror of https://github.com/TheAlgorithms/Python.git synced 2024-11-23 21:11:08 +00:00
Code Issues Packages Projects Releases Wiki Activity
master
Python/project_euler/problem_049/sol1.py
Nikos Giachoudis 2104fa7aeb
Unify O(sqrt(N)) is_prime functions under project_euler (#6258) 
* fixes #5434

* fixes broken solution

* removes assert

* removes assert

* Apply suggestions from code review

Co-authored-by: John Law <johnlaw.po@gmail.com>

* Update project_euler/problem_003/sol1.py

Co-authored-by: John Law <johnlaw.po@gmail.com>
2022-09-14 09:40:04 +01:00

154 lines
3.9 KiB
Python
Raw Permalink Blame History

"""
Prime permutations
Problem 49
The arithmetic sequence, 1487, 4817, 8147, in which each of
the terms increases by 3330, is unusual in two ways:
(i) each of the three terms are prime,
(ii) each of the 4-digit numbers are permutations of one another.
There are no arithmetic sequences made up of three 1-, 2-, or 3-digit primes,
exhibiting this property, but there is one other 4-digit increasing sequence.
What 12-digit number do you form by concatenating the three terms in this sequence?
Solution:
First, we need to generate all 4 digits prime numbers. Then greedy
all of them and use permutation to form new numbers. Use binary search
to check if the permutated numbers is in our prime list and include
them in a candidate list.
After that, bruteforce all passed candidates sequences using
3 nested loops since we know the answer will be 12 digits.
The bruteforce of this solution will be about 1 sec.
"""
import math
from itertools import permutations
def is_prime(number: int) -> bool:
"""Checks to see if a number is a prime in O(sqrt(n)).
A number is prime if it has exactly two factors: 1 and itself.
>>> is_prime(0)
False
>>> is_prime(1)
False
>>> is_prime(2)
True
>>> is_prime(3)
True
>>> is_prime(27)
False
>>> is_prime(87)
False
>>> is_prime(563)
True
>>> is_prime(2999)
True
>>> is_prime(67483)
False
"""
if 1 < number < 4:
# 2 and 3 are primes
return True
elif number < 2 or number % 2 == 0 or number % 3 == 0:
# Negatives, 0, 1, all even numbers, all multiples of 3 are not primes
return False
# All primes number are in format of 6k +/- 1
for i in range(5, int(math.sqrt(number) + 1), 6):
if number % i == 0 or number % (i + 2) == 0:
return False
return True
def search(target: int, prime_list: list) -> bool:
"""
function to search a number in a list using Binary Search.
>>> search(3, [1, 2, 3])
True
>>> search(4, [1, 2, 3])
False
>>> search(101, list(range(-100, 100)))
False
"""
left, right = 0, len(prime_list) - 1
while left <= right:
middle = (left + right) // 2
if prime_list[middle] == target:
return True
elif prime_list[middle] < target:
left = middle + 1
else:
right = middle - 1
return False
def solution():
"""
Return the solution of the problem.
>>> solution()
296962999629
"""
prime_list = [n for n in range(1001, 10000, 2) if is_prime(n)]
candidates = []
for number in prime_list:
tmp_numbers = []
for prime_member in permutations(list(str(number))):
prime = int("".join(prime_member))
if prime % 2 == 0:
continue
if search(prime, prime_list):
tmp_numbers.append(prime)
tmp_numbers.sort()
if len(tmp_numbers) >= 3:
candidates.append(tmp_numbers)
passed = []
for candidate in candidates:
length = len(candidate)
found = False
for i in range(length):
for j in range(i + 1, length):
for k in range(j + 1, length):
if (
abs(candidate[i] - candidate[j])
== abs(candidate[j] - candidate[k])
and len({candidate[i], candidate[j], candidate[k]}) == 3
):
passed.append(
sorted([candidate[i], candidate[j], candidate[k]])
)
found = True
if found:
break
if found:
break
if found:
break
answer = set()
for seq in passed:
answer.add("".join([str(i) for i in seq]))
return max(int(x) for x in answer)
if __name__ == "__main__":
print(solution())
Reference in New Issue View Git Blame Copy Permalink