【leetcode】1200. Minimum Absolute Difference
题目如下:
Given an array of distinct integers
arr
, find all pairs of elements with the minimum absolute difference of any two elements.Return a list of pairs in ascending order(with respect to pairs), each pair
[a, b]
follows
a, b
are fromarr
a < b
b - a
equals to the minimum absolute difference of any two elements inarr
Example 1:
Input: arr = [4,2,1,3] Output: [[1,2],[2,3],[3,4]] Explanation: The minimum absolute difference is 1. List all pairs with difference equal to 1 in ascending order.Example 2:
Input: arr = [1,3,6,10,15] Output: [[1,3]]Example 3:
Input: arr = [3,8,-10,23,19,-4,-14,27] Output: [[-14,-10],[19,23],[23,27]]
Constraints:
2 <= arr.length <= 10^5
-10^6 <= arr[i] <= 10^6
解题思路:把arr排好序后依次求相邻两个元素的差值,即可得到结果。
代码如下:
class Solution(object): def minimumAbsDifference(self, arr): """ :type arr: List[int] :rtype: List[List[int]] """ arr.sort() res = [] min_diff = float('inf') for i in range(len(arr)-1): if arr[i+1] - arr[i] < min_diff: res = [[arr[i],arr[i+1]]] min_diff = arr[i+1] - arr[i] elif arr[i+1] - arr[i] == min_diff: res.append([arr[i],arr[i+1]]) return res