• 315. Count of Smaller Numbers After Self


    You are given an integer array nums and you have to return a new counts array. The counts array has the property where counts[i] is the number of smaller elements to the right of nums[i].

    Example:

    Given nums = [5, 2, 6, 1]
    
    To the right of 5 there are 2 smaller elements (2 and 1).
    To the right of 2 there is only 1 smaller element (1).
    To the right of 6 there is 1 smaller element (1).
    To the right of 1 there is 0 smaller element.
    

    Return the array [2, 1, 1, 0].

    含义:针对一个数组,找到每一位的右面有多少个数小于它的值,没有的话就是0,返回数组

    思路一:从后往前用二分插入法来倒排数组,后面的数字个数即为比当前数字小的数字

     1     public List<Integer> countSmaller(int[] nums) {
     2         int[] smaller = new int[nums.length];
     3         for(int i=nums.length-2; i>=0; i--) {
     4 //            从后往前遍历nums,采用二分插入排序的方式,将数组进行降序排列
     5 // 取出nums[i]后保存到temp,从i+1到末尾间找到nums[i]应该存在的位置(从i+1到末尾是降序排列),比如是left
     6             int left = i+1;
     7             int right = nums.length-1;
     8             while (left<=right) {
     9                 int m = (left+right)/2;
    10                 if (nums[i] > nums[m]) right = m - 1;
    11                 else left = m + 1;
    12             }
    13             smaller[i] = nums.length - left; //left后面的所有数都比nums[i]小
    14             int temp = nums[i];
    15             for(int j=i; j<right; j++) nums[j] = nums[j+1]; //把i和right之间的数据依次往前移动,空出right位置用于放置nums[i]
    16             nums[right] = temp;
    17         }
    

                return Arrays.stream(smaller)
                             .boxed()
                             .collect(Collectors.toList());

    21     }

    方法二:

     1 public class Solution {
     2     private class TreeNode {
     3         public int val;
     4         public int count = 1;
     5         public TreeNode left, right;
     6 
     7         public TreeNode(int val) {
     8             this.val = val;
     9         }
    10     }
    11 
    12     public List<Integer> countSmaller(int[] nums) {
    13 //        构造一棵二分搜索树,稍有不同的地方是我们需要加一个变量smaller来记录比当前节点值小的所有节点的个数,我们每插入一个节点,会判断其和根节点的大小,
    14 //        如果新的节点值小于根节点值,则其会插入到左子树中,我们此时要增加根节点的smaller,并继续递归调用左子节点的insert。
    15 //        如果节点值大于根节点值,则需要递归调用右子节点的insert并加上根节点的smaller,并加1
    16         
    17         List<Integer> res = new ArrayList<>();
    18         if(nums == null || nums.length == 0) {
    19             return res;
    20         }
    21         TreeNode root = new TreeNode(nums[nums.length - 1]);
    22         res.add(0);
    23 
    24         for(int i = nums.length - 2; i >= 0; i--) {
    25             int count = addNode(root, nums[i]);
    26             res.add(count);
    27         }
    28 
    29         Collections.reverse(res);
    30         return res;
    31     }
    32 
    33     private int addNode(TreeNode root, int val) {
    34         int curCount = 0;
    35         while(true) {
    36             if(val <= root.val) {
    37                 root.count++;                   // add the inversion count
    38                 if(root.left == null) {
    39                     root.left = new TreeNode(val);
    40                     break;
    41                 } else {
    42                     root = root.left;
    43                 }
    44             } else {
    45                 curCount += root.count;
    46                 if(root.right == null) {
    47                     root.right = new TreeNode(val);
    48                     break;
    49                 } else {
    50                     root = root.right;
    51                 }
    52             }
    53         }
    54 
    55         return curCount;
    56     }
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  • 原文地址:https://www.cnblogs.com/wzj4858/p/7731644.html
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