原题链接在这里:https://leetcode.com/problems/employee-importance/description/
题目:
You are given a data structure of employee information, which includes the employee's unique id, his importance value and his directsubordinates' 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 his 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:
- One employee has at most one direct leader and may have several subordinates.
- The maximum number of employees won't exceed 2000.
题解:
类似Clone Graph, Nested List Weight Sum.
可以采用BFS. 每层的Employee挨个加进去.
Time Complexity: O(n). n是root id的所有下属个数, 包括直系下属和非直系下属.
Space: O(employees.size()). 全部员工生成的map.
AC Java:
/*
// Employee info
class Employee {
// It's the unique id of each node;
// unique id of this employee
public int id;
// the importance value of this employee
public int importance;
// the id of direct subordinates
public List<Integer> subordinates;
};
*/
class Solution {
public int getImportance(List<Employee> employees, int id) {
int res = 0; HashMap<Integer, Employee> hm = new HashMap<Integer, Employee>();
for(Employee employee : employees){
hm.put(employee.id, employee);
} LinkedList<Employee> que = new LinkedList<Employee>();
que.add(hm.get(id));
while(!que.isEmpty()){
Employee cur = que.poll();
res += cur.importance;
for(int subId : cur.subordinates){
que.add(hm.get(subId));
}
} return res;
}
}
DFS.逐层往深dfs.
Time Complexity: O(n). n是root id的所有下属个数, 包括直系下属和非直系下属.
Space: O(employees.size()). 全部员工生成的map.
AC Java:
/*
// Employee info
class Employee {
// It's the unique id of each node;
// unique id of this employee
public int id;
// the importance value of this employee
public int importance;
// the id of direct subordinates
public List<Integer> subordinates;
};
*/
class Solution {
public int getImportance(List<Employee> employees, int id) {
HashMap<Integer, Employee> hm = new HashMap<Integer, Employee>();
for(Employee employee : employees){
hm.put(employee.id, employee);
} return dfs(hm, id);
} private int dfs(HashMap<Integer, Employee> hm, int id){
int res = 0;
Employee cur = hm.get(id); res += cur.importance;
for(int subId : cur.subordinates){
res += dfs(hm, subId);
}
return res;
}
}