698. 划分为k个相等的子集(Python实现)
题目描述:
给定一个整数数组
nums和一个正整数k,找出是否有可能把这个数组分成k个非空子集,其总和都相等。
示例:
示例 1:
输入: nums = [4, 3, 2, 3, 5, 2, 1], k = 4 输出: True 说明: 有可能将其分成 4 个子集(5),(1,4),(2,3),(2,3)等于总和。注意:
1 <= k <= len(nums) <= 160 < nums[i] < 10000
思路:
递归思想,真的很难用语言表达出来.
自己看代码,自己体会,没人帮的了你!
附上代码:
class Solution(object):
def canPartitionKSubsets(self, nums, k):
"""
:type nums: List[int]
:type k: int
:rtype: bool
"""
sum_nums = sum(nums)
avg = sum_nums // k
if k <= 0 or sum_nums % k != 0 or max(nums) > avg:
return False
n = len(nums)
visited = [0] * n
nums = sorted(nums, reverse=True)
return self.canPartition(nums, visited, 0, k, 0, 0, avg)
def canPartition(self, nums, visited, start_index, k, cur_sum, cur_num, target):
if k == 1:
return True
if cur_sum == target and cur_num > 0:
return self.canPartition(nums, visited, 0, k - 1, 0, 0, target)
if cur_sum > target:
return False
for i in range(start_index, len(nums)):
if visited[i] == 0:
visited[i] = 1
if self.canPartition(nums, visited, i + 1, k, cur_sum + nums[i], cur_num + 1, target):
return True
visited[i] = 0
return False
测试代码:
a = Solution()
print(a.canPartitionKSubsets(nums=[4, 3, 2, 3, 5, 2, 1], k=4))
显示结果:
True
最后,做完这道题正好是我刷完LeetCode的400题了!开心.
下面题目越来越难,我要坚持下去!
算法真的有意思,越学越好玩!
加油!记录一下!