Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Mathematical rule shows that my "program" gives a wrong answer.

I would be very grateful if you could check this small piece of code and tell me the problem with it. I know that the problem is somewhere after the line ll = []. I just can't pinpoint the exact cause of it. But I do know that the sum of the logarithms of all the primes less than n is is less than n. My program violates this rule.

Here is the code:

from math import log
lp = [] ## create a list
for n in range(2,10000):
    for x in range(2,n):
        if n % x == 0:
            break
    else:
        lp.append(n) ## fill that list with the primes
##print lp[500] found the value of lp[500]
ll = [] ## create a second list
for i in range(2, lp[500]):
        if i < 3581: ## this is the number corresponding to lp[500]
            i = log(i, )
            ll.append(i) ## fill the second list with logs of primes
print sum (ll), 3581, sum(ll)/3581`
share|improve this question
    
How long does it take to calculate primes up to 10000? With one half-line change I can calculate them in 0.11s. Just change for x in range(2,n): to for x in lp:. If you want to go another magnitude faster, stop at the square root of n. Try to understand these two little changes before implementing them. So same algorithm, just a little bit optimized: gist.github.com/1347515 (the third change, step set to 2, doesn't add that much). –  rplnt Nov 14 '11 at 8:14

5 Answers 5

Your second list doesn't only contain the logs of primes, it contains the logs of all integers between 2 and lp[500].

share|improve this answer

This is wrong:

for i in range(2, lp[500]): ## Gives all numbers from 2 to lp[500]
    if i < 3581:
        i = log(i, ) ## this changes i which is your loop variable!
        ll.append(i)

Should be:

for i in range(501): ## from 0 to 500
  ll.append( log(lp[i],) )
share|improve this answer

Your range expression

for i in range(2, lp[500]):

expands to all numbers from 2 to the 500th element of lp (exclusive).

Using

for i in lp:

should yield the right result.

share|improve this answer

i think i=log(i,) will use the natural logarithm (e), where you may be interested in log10(i) (log with base=10). see http://docs.python.org/library/math.html section 9.2.2

share|improve this answer

Build in doc says:

>>> from math import log
>>> log?
Type:       builtin_function_or_method
Base Class: <type 'builtin_function_or_method'>
String Form:<built-in function log>
Namespace:  Interactive
Docstring:
log(x[, base])

Return the logarithm of x to the given base.
If the base not specified, returns the natural logarithm (base e) of x.
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.