Python Perfect Numbers
You can replace your for loops with the following:
n = 2
while n < limit + 1:
...
divisor = 1
while divisor < n:
...
divisor += 1
...
n += 1
Hint: You can also use n/2 as the upper limit for the second loop as any divisor of n cannot be greater than n/2.
Here is a (somewhat more efficient) sieve version:
# search all numbers in [2..limit] for perfect numbers
# (ones whose proper divisors sum to the number)
limit = int(input("enter upper limit for perfect number search: "))
# initialize - all entries are multiples of 1
# (ignore sieve[0] and sieve[1])
sieve = [1] * (limit + 1)
n = 2
while n <= limit:
# check n
if sieve[n] == n:
print(n, "is a perfect number")
# add n to all k * n where k > 1
kn = 2 * n
while kn <= limit:
sieve[kn] += n
kn += n
n += 1
Running it to 10000 finds
6 is a perfect number
28 is a perfect number
496 is a perfect number
8128 is a perfect number
and factorizing those shows an interesting pattern:
6 3 * 2 ( 4 - 1) * ( 4 / 2)
28 7 * 2 * 2 ( 8 - 1) * ( 8 / 2)
496 31 * 2 * 2 * 2 * 2 ( 32 - 1) * ( 32 / 2)
8128 127 * 2 * 2 * 2 * 2 * 2 * 2 (128 - 1) * (128 / 2)
where the first factor (3, 7, 31, 127) is a prime which is one less than a power of two, and it is multiplied by half that same power of two. Also, the powers involved are prime (2**2, 2**3, 2**5, 2**7).
In fact Euclid proved that (2**p - 1) * 2**(p - 1) is a perfect number if 2**p - 1 is prime, which is only possible (though not assured) if p is prime. Euler went further, proving that all even perfect numbers must be of this form.
This suggests an incredibly more efficient version - I am going to go ahead and use for loops, feel free to rewrite it without. First, we need a source of primes and an is_prime test:
def primes(known_primes=[7, 11, 13, 17, 19, 23, 29]):
"""
Generate every prime number in ascending order
"""
# 2, 3, 5 wheel
yield from (2, 3, 5)
yield from known_primes
# The first time the generator runs, known_primes
# contains all primes such that 5 < p < 2 * 3 * 5
# After each wheel cycle the list of known primes
# will be added to.
# We need to figure out where to continue from,
# which is the next multiple of 30 higher than
# the last known_prime:
base = 30 * (known_primes[-1] // 30 + 1)
new_primes = []
while True:
# offs is chosen so 30*i + offs cannot be a multiple of 2, 3, or 5
for offs in (1, 7, 11, 13, 17, 19, 23, 29):
k = base + offs # next prime candidate
for p in known_primes:
if not k % p:
# found a factor - not prime
break
elif p*p > k:
# no smaller prime factors - found a new prime
new_primes.append(k)
break
if new_primes:
yield from new_primes
known_primes.extend(new_primes)
new_primes = []
base += 30
def is_prime(n):
for p in primes():
if not n % p:
# found a factor - not prime
return False
elif p * p > n:
# no factors found - is prime
return True
then the search looks like
# search all numbers in [2..limit] for perfect numbers
# (ones whose proper divisors sum to the number)
limit = int(input("enter upper limit for perfect number search: "))
for p in primes():
pp = 2**p
perfect = (pp - 1) * (pp // 2)
if perfect > limit:
break
elif is_prime(pp - 1):
print(perfect, "is a perfect number")
which finds
enter upper limit for perfect number search: 2500000000000000000
6 is a perfect number
28 is a perfect number
496 is a perfect number
8128 is a perfect number
33550336 is a perfect number
8589869056 is a perfect number
137438691328 is a perfect number
2305843008139952128 is a perfect number
in under a second ;-)
This should work:
limit = int(input("enter upper limit for perfect number search: "))
n = 1
while n <= limit:
sum = 0
divisor = 1
while divisor < n:
if not n % divisor:
sum += divisor
divisor = divisor + 1
if sum == n:
print(n, "is a perfect number")
n = n + 1