• [LeetCode] 690. Employee Importance


    You are given a data structure of employee information, which includes the employee's unique id, their importance value and their direct subordinates' id.

    For example, employee 1 is the leader of employee 2, and employee 2 is the leader of employee 3. They have importance value 15, 10 and 5, respectively. Then employee 1 has a data structure like [1, 15, [2]], and employee 2 has [2, 10, [3]], and employee 3 has [3, 5, []]. Note that although employee 3 is also a subordinate of employee 1, the relationship is not direct.

    Now given the employee information of a company, and an employee id, you need to return the total importance value of this employee and all their subordinates.

    Example 1:

    Input: [[1, 5, [2, 3]], [2, 3, []], [3, 3, []]], 1
    Output: 11
    Explanation:
    Employee 1 has importance value 5, and he has two direct subordinates: employee 2 and employee 3. 
    They both have importance value 3. So the total importance value of employee 1 is 5 + 3 + 3 = 11.

    Note:

    1. One employee has at most one direct leader and may have several subordinates.
    2. The maximum number of employees won't exceed 2000.

    员工重要性。

    给定一个保存员工信息的数据结构,它包含了员工唯一的id,重要度 和 直系下属的id。

    比如,员工1是员工2的领导,员工2是员工3的领导。他们相应的重要度为15, 10, 5。那么员工1的数据结构是[1, 15, [2]],员工2的数据结构是[2, 10, [3]],员工3的数据结构是[3, 5, []]。注意虽然员工3也是员工1的一个下属,但是由于并不是直系下属,因此没有体现在员工1的数据结构中。

    现在输入一个公司的所有员工信息,以及单个员工id,返回这个员工和他所有下属的重要度之和。

    来源:力扣(LeetCode)
    链接:https://leetcode-cn.com/problems/employee-importance
    著作权归领扣网络所有。商业转载请联系官方授权,非商业转载请注明出处。

    这是一道图论graph的题,不难,搞懂题意就能做的出来。题目给的是所有员工的id,重要度和他们知悉下属的id。既然能拿到当前员工的id,那么拿到当前员工的重要度和他的下属也就不是问题,所以无论是什么做法,我们都需要一个hashmap记住所有员工的重要度和他们各自的下属。至于做法方面,我们可以用BFS或DFS,做法都跟一般的BFS和DFS类型的题非常类似,看了代码应该能懂。

    BFS

    时间O(V + E)

    空间O(V) - number of employees

    Java实现

     1 class Solution {
     2     public int getImportance(List<Employee> employees, int id) {
     3         int total = 0;
     4         HashMap<Integer, Employee> map = new HashMap<>();
     5         for (Employee employee : employees) {
     6             map.put(employee.id, employee);
     7         }
     8         Queue<Employee> queue = new LinkedList<>();
     9         queue.offer(map.get(id));
    10         while (!queue.isEmpty()) {
    11             Employee cur = queue.poll();
    12             total += cur.importance;
    13             for (int subordinate : cur.subordinates) {
    14                 queue.offer(map.get(subordinate));
    15             }
    16         }
    17         return total;
    18     }
    19 }

    DFS

    时间O(V + E)

    空间O(V) - number of employees

    Java实现

     1 class Solution {
     2     public int getImportance(List<Employee> employees, int id) {
     3         HashMap<Integer, Employee> map = new HashMap<>();
     4         for (Employee employee : employees) {
     5             map.put(employee.id, employee);
     6         }
     7         return helper(map, id);
     8     }
     9 
    10     private int helper(HashMap<Integer, Employee> map, int id) {
    11         Employee root = map.get(id);
    12         int total = root.importance;
    13         for (int subordinate : root.subordinates) {
    14             total += helper(map, subordinate);
    15         }
    16         return total;
    17     }
    18 }

    相关题目

    339. Nested List Weight Sum

    364. Nested List Weight Sum II

    690. Employee Importance

    LeetCode 题目总结

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  • 原文地址:https://www.cnblogs.com/cnoodle/p/13538906.html
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