# -*- coding: utf8 -*-
'''
__author__ = 'dabay.wang@gmail.com'
50: Pow(x, n)
https://leetcode.com/problems/powx-n/
Implement pow(x, n).
=== Comments by Dabay===
技巧在于用x的平方来让n减半。
同时注意n为负数的情况,以及n为奇数的情况。
'''
class Solution:
# @param x, a float
# @param n, a integer
# @return a float
def pow(self, x, n):
if x == 0:
return 0
elif n < 0:
return 1.0 / self.pow(x, -n)
elif n == 0:
return 1
elif n == 1:
return x
elif n % 2:
return self.pow(x*x, n/2) * x
else:
return self.pow(x*x, n/2)
def main():
sol = Solution()
print sol.pow(0.00001, 2147483647)
if __name__ == "__main__":
import time
start = time.clock()
main()
print "%s sec" % (time.clock() - start)