LeetCode 1365. How Many Numbers Are Smaller Than the Current Number有多少小于当前数字的数字【Easy】【Python】【暴力】
Problem
Given the array nums, for each nums[i] find out how many numbers in the array are smaller than it. That is, for each nums[i] you have to count the number of valid j's such that j != i and nums[j] < nums[i].
Return the answer in an array.
Example 1:
Input: nums = [8,1,2,2,3] Output: [4,0,1,1,3] Explanation: For nums[0]=8 there exist four smaller numbers than it (1, 2, 2 and 3). For nums[1]=1 does not exist any smaller number than it. For nums[2]=2 there exist one smaller number than it (1). For nums[3]=2 there exist one smaller number than it (1). For nums[4]=3 there exist three smaller numbers than it (1, 2 and 2).
Example 2:
Input: nums = [6,5,4,8] Output: [2,1,0,3]
Example 3:
Input: nums = [7,7,7,7] Output: [0,0,0,0]
Constraints:
2 <= nums.length <= 5000 <= nums[i] <= 100
问题
给你一个数组 nums,对于其中每个元素 nums[i],请你统计数组中比它小的所有数字的数目。
换而言之,对于每个 nums[i] 你必须计算出有效的 j 的数量,其中 j 满足 j != i 且 nums[j] < nums[i] 。
以数组形式返回答案。
示例 1:
输入:nums = [8,1,2,2,3] 输出:[4,0,1,1,3] 解释: 对于 nums[0]=8 存在四个比它小的数字:(1,2,2 和 3)。 对于 nums[1]=1 不存在比它小的数字。 对于 nums[2]=2 存在一个比它小的数字:(1)。 对于 nums[3]=2 存在一个比它小的数字:(1)。 对于 nums[4]=3 存在三个比它小的数字:(1,2 和 2)。
示例 2:
输入:nums = [6,5,4,8] 输出:[2,1,0,3]
示例 3:
输入:nums = [7,7,7,7] 输出:[0,0,0,0]
提示:
2 <= nums.length <= 5000 <= nums[i] <= 100
思路
暴力
两行 for 循环暴力一下就过了。
时间复杂度: O(n^2)
空间复杂度: O(n)
Python3代码
class Solution:
def smallerNumbersThanCurrent(self, nums: List[int]) -> List[int]:
n = len(nums)
ans = []
for i in range(n):
cnt = 0
for j in range(n):
if nums[j] < nums[i]:
cnt += 1
ans.append(cnt)
return ans 
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