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.

I stumbled across this interview question:

Given a list of elements in lexicographical order (i.e. ['a', 'b', 'c', 'd']), find the nth permutation

I tried it myself, and it took me about ~30 minutes to solve. (I ended up with a ~8-9 line solution in Python). Just curious -- how long "should" it take to solve this type of problem? Am I taking too long?

share|improve this question
    
Here c# version (just FYI): stackoverflow.com/questions/6799696/… –  Dreamer Aug 1 at 14:51

2 Answers 2

9 min, including test

import math

def nthperm(li, n):
    n -= 1
    s = len(li)
    res = []
    if math.factorial(s) <= n:
        return None
    for x in range(s-1,-1,-1):
        f = math.factorial(x)
        d = n / f
        n -= d * f
        res.append(li[d])
        del(li[d])
    return res

#now that's fast...
nthperm(range(40), 123456789012345678901234567890)
share|improve this answer
    
for 0 and len(li) the result is the same... –  piotr Jul 22 '11 at 0:22
    
it starts from 1 (first permutation), that's why the n -= 1 and <=. btw you mean math.factorial(len(li)), right? –  Karoly Horvath Jul 22 '11 at 0:27
    
can you explain the part inside the loop? d = n/f n-= d*f –  piotr Jul 22 '11 at 0:31
1  
if you have a list like [1,2,3,4] then for the last 3 elements there are 3! permutations, if n<=3! the first element is going to be 1, if 3!<n<=2*3! the 2 and so on. once you got the first element substract the number of permutations you used up for that element, remove it from the list and start again.. –  Karoly Horvath Jul 22 '11 at 0:38
1  
doing li=list(li) at start is probably easier –  Karoly Horvath Jul 24 '11 at 17:22

Perhaps I am missing something, I thought we can find it easily with nth from itertools Recipes and permutations:

from itertools import permutations, islice
def nth(iterable, n, default=None):
    "Returns the nth item or a default value"
    return next(islice(iterable, n, None), default)
def main():
    data = ['a', 'b', 'c', 'd']
    n = 7  # 0 indexed
    print nth(permutations(data), n)
if __name__ == "__main__":
    main()
share|improve this answer
2  
it's extremely slow if n is large, you have to generate n permutations and only 1 of them is going to be used. originatlly there was a post exactly like this but then the OP explained that the task is to do it without itertools help, and then the poster deleted it. leave it here, it's a perfectly fine solution for small n-s. –  Karoly Horvath Aug 7 '11 at 9:34
    
@yi_H, thanks for the enlighten, agree. –  sunqiang Aug 8 '11 at 5:46

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.