class Solution { public int reversePairs(int[] nums) { int len = nums.length; if(len<2){ return 0; } int[] copy = new int[len]; for(int i=0;i<len;i++){ copy[i]=nums[i]; } int[] temp=new int[len]; return reversePairs(copy,0,len-1,temp); } private int reversePairs(int[] nums, int left, int right, int[] temp) { if (left == right) { return 0; } int mid = left + (right - left) / 2; int leftPairs = reversePairs(nums, left, mid, temp); int rightPairs = reversePairs(nums, mid + 1, right, temp); // 如果整个数组已经有序,则无需合并,注意这里使用小于等于 if (nums[mid] <= nums[mid + 1]) { return leftPairs + rightPairs; } int crossPairs = mergeAndCount(nums, left, mid, right, temp); return leftPairs + rightPairs + crossPairs; } private int mergeAndCount(int[] nums, int left, int mid, int right, int[] temp) { for (int i = left; i <= right; i++) { temp[i] = nums[i]; } int i = left; int j = mid + 1; int count = 0; for (int k = left; k <= right; k++) { // 有下标访问,得先判断是否越界 if (i == mid + 1) { nums[k] = temp[j]; j++; } else if (j == right + 1) { nums[k] = temp[i]; i++; } else if (temp[i] <= temp[j]) { // 注意:这里是 <= ,写成 < 就不对,请思考原因 nums[k] = temp[i]; i++; } else { nums[k] = temp[j]; j++; // 在 j 指向的元素归并回去的时候,计算逆序对的个数,只多了这一行代码 count += (mid - i + 1); } } return count; } }
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