原题链接在这里:https://leetcode.com/problems/minimum-moves-to-equal-array-elements-ii/
题目:
Given a non-empty integer array, find the minimum number of moves required to make all array elements equal, where a move is incrementing a selected element by 1 or decrementing a selected element by 1.
You may assume the array's length is at most 10,000.
Example:
Input: [1,2,3] Output: 2 Explanation: Only two moves are needed (remember each move increments or decrements one element): [1,2,3] => [2,2,3] => [2,2,2]
题解:
The median minimizes the sum of absolute deviations. There is an article explaining this.
用quick sort找到median. 类似Kth Largest Element in an Array.
每一个元素对于median差值的绝对值的总和就是最小moves. 这里的median可以理解为第nums.length/2小的element.
Time Complexity: O(n), quick select O(n). n = nums.length.
Space: O(1).
AC Java:
1 class Solution { 2 public int minMoves2(int[] nums) { 3 if(nums == null || nums.length < 2){ 4 return 0; 5 } 6 7 int n = nums.length; 8 int median = findK(nums, (n - 1) / 2, 0, n - 1); 9 int res = 0; 10 for(int num : nums){ 11 res += Math.abs(num - median); 12 } 13 14 return res; 15 } 16 17 private int findK(int [] nums, int k, int l, int r){ 18 if(l >= r){ 19 return nums[l]; 20 } 21 22 int m = partition(nums, l, r); 23 if(m == k){ 24 return nums[k]; 25 }else if(m < k){ 26 return findK(nums, k, m + 1, r); 27 }else{ 28 return findK(nums, k, l, m - 1); 29 } 30 } 31 32 private int partition(int [] nums, int l, int r){ 33 int pivot = nums[l]; 34 while(l < r){ 35 while(l < r && nums[r] >= pivot){ 36 r--; 37 } 38 39 nums[l] = nums[r]; 40 41 while(l < r && nums[l] <= pivot){ 42 l++; 43 } 44 45 nums[r] = nums[l]; 46 } 47 48 nums[l] = pivot; 49 return l; 50 } 51 }
类似Minimum Moves to Equal Array Elements, Best Meeting Point.