Description
You are given an integer array nums and an integer k.
In one operation, you can pick two numbers from the array whose sum equals k and remove them from the array.
Return the maximum number of operations you can perform on the array.
Example 1:
Input: nums = [1,2,3,4], k = 5
Output: 2
Explanation: Starting with nums = [1,2,3,4]:
- Remove numbers 1 and 4, then nums = [2,3]
- Remove numbers 2 and 3, then nums = []
There are no more pairs that sum up to 5, hence a total of 2 operations.
Example 2:
Input: nums = [3,1,3,4,3], k = 6
Output: 1
Explanation: Starting with nums = [3,1,3,4,3]:
- Remove the first two 3's, then nums = [1,4,3]
There are no more pairs that sum up to 6, hence a total of 1 operation.
Constraints:
- 1 <= nums.length <= 105
- 1 <= nums[i] <= 109
- 1 <= k <= 109
分析
题目的意思是:给定一个数组,每次移除两个数和为k的数,求出移除的步数。这道题思路也很直接,用字典d来统计数的频率,然后根据字典中保存的数来判断两数和为k的对数,这样的话就比较容易的求出来了,找出两数和为k的对数就是最终的结果了。
代码
class Solution:
def maxOperations(self, nums: List[int], k: int) -> int:
d=defaultdict(int)
res=0
for num in nums:
remain=k-num
if(remain in d and d[remain]>0):
d[remain]-=1
res+=1
else:
d[num]+=1
return res