题解 | #寻找第K大#
寻找第K大
http://www.nowcoder.com/practice/e016ad9b7f0b45048c58a9f27ba618bf
注意,这里判断p==k不是p+1==k.
第K大 -> 第n-K+1小
如n=6,a = [1,2,3,4,5,6],第2大的数是5,第4小的数是4,第5小的数才对应5.
而partition返回的p -> 有0,...,p-1,一共p个数比nums[p]小,所以nums[p]是第p+1小的数,所以这里不用判断p+1==k,而是直接p==k.
在寻找最小的K个数中,则需要判断p+1==k,详见:https://blog.nowcoder.net/n/5d1b7a8073eb44eca5375560e48db77e
# -*- coding:utf-8 -*-
class Solution:
def findKth(self, a, n, K):
# write code here
if K <=0 or K > n:
return -2
k = n-K
def partition(nums, lo, hi):
i,j = lo+1, hi
p = lo
while True:
while i <= hi:
if nums[i] > nums[p]:
break
i += 1
while j > lo:
if nums[j] < nums[p]:
break
j -= 1
if i >= j:
break
nums[i], nums[j] = nums[j], nums[i]
nums[lo], nums[j] = nums[j], nums[lo]
return j
lo, hi = 0, n-1
while(lo<=hi):
p = partition(a, lo, hi)
# print(lo, hi, p, k, a)
if p == k:
return a[p]
elif p > k:
hi = p-1
elif p < k:
lo = p+1
return -1
查看6道真题和解析
