pat甲级1114

Posted lxc1910

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1114 Family Property(25 分)

This time, you are supposed to help us collect the data for family-owned property. Given each person‘s family members, and the estate(房产)info under his/her own name, we need to know the size of each family, and the average area and number of sets of their real estate.

Input Specification:

Each input file contains one test case. For each case, the first line gives a positive integer N (1000). Then N lines follow, each gives the infomation of a person who owns estate in the format:

ID Father Mother Child?1???Child?k?? M?estate?? Area

where ID is a unique 4-digit identification number for each person; Father and Mother are the ID‘s of this person‘s parents (if a parent has passed away, -1 will be given instead); k (0k5) is the number of children of this person; Child?i??‘s are the ID‘s of his/her children; M?estate?? is the total number of sets of the real estate under his/her name; and Area is the total area of his/her estate.

Output Specification:

For each case, first print in a line the number of families (all the people that are related directly or indirectly are considered in the same family). Then output the family info in the format:

ID M AVG?sets?? AVG?area??

where ID is the smallest ID in the family; M is the total number of family members; AVG?sets?? is the average number of sets of their real estate; and AVG?area?? is the average area. The average numbers must be accurate up to 3 decimal places. The families must be given in descending order of their average areas, and in ascending order of the ID‘s if there is a tie.

Sample Input:

10
6666 5551 5552 1 7777 1 100
1234 5678 9012 1 0002 2 300
8888 -1 -1 0 1 1000
2468 0001 0004 1 2222 1 500
7777 6666 -1 0 2 300
3721 -1 -1 1 2333 2 150
9012 -1 -1 3 1236 1235 1234 1 100
1235 5678 9012 0 1 50
2222 1236 2468 2 6661 6662 1 300
2333 -1 3721 3 6661 6662 6663 1 100

Sample Output:

3
8888 1 1.000 1000.000
0001 15 0.600 100.000
5551 4 0.750 100.000

注意ID没有说不等于0.因此判断时为大于等于0,而不是大于。否则测试点2、4会错误。

我用的深度优先搜索求联通分量来完成的这道题,另外用并查集好像也比较方便。

由于ID不连续,所以求连通分量之前先将所有ID放到vector里面,而且用邻接表存储图更节省空间和时间。

 1 #include <iostream>
 2 #include <vector>
 3 #include <algorithm>
 4 using namespace std;
 5 
 6 bool marked[10000];
 7 vector<vector<int>> G(10000);
 8 int estate[10000], area[10000];
 9 
10 struct family
11 {
12     int id = 10000, size = 0;
13     double estate = 0.0, area = 0.0;
14 };
15 
16 void connect(int id)
17 {
18     int t;
19     cin >> t;
20     if (t >= 0)
21     {
22         G[id].push_back(t);
23         G[t].push_back(id);
24     }
25 }
26 
27 void dfs(int s, family& f)
28 {
29     marked[s] = true;
30     f.size++;
31     if (s < f.id) f.id = s;
32     f.area += area[s];
33     f.estate += estate[s];
34     for (int w : G[s])
35         if (!marked[w]) dfs(w, f);
36 }
37 
38 bool cmp(family a, family b)
39 {
40     if (a.area != b.area) return a.area > b.area;
41     else return a.id < b.id;
42 }
43 
44 int main()
45 {
46     int N;
47     cin >> N;
48     int i, j, id, k;
49     vector<int> allId;
50     for (i = 0; i < N; i++)
51     {
52         cin >> id;
53         allId.push_back(id);
54         for (j = 0; j < 2; j++)
55             connect(id);
56         cin >> k;
57         for (j = 0; j < k; j++)
58             connect(id);
59         cin >> estate[id] >> area[id];
60     }
61     vector<family> v;
62     for (int id : allId)
63     {
64         if (!marked[id])
65         {
66             family f;
67             dfs(id, f);
68             f.area /= f.size;
69             f.estate /= f.size;
70             v.push_back(f);
71         }
72     }
73     sort(v.begin(), v.end(), cmp);
74     cout << v.size() << endl;
75     for (i = 0; i < v.size(); i++)
76         printf("%04d %d %.3f %.3f
", v[i].id, v[i].size, v[i].estate, v[i].area);
77     return 0;
78 }

 

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