1837. Isenbaev's Number
Time limit: 0.5 second
Memory limit: 64 MB
Memory limit: 64 MB
Vladislav Isenbaev is a two-time champion of Ural, vice champion of TopCoder Open 2009, and absolute champion of ACM ICPC 2009. In the time you will spend reading this problem statement Vladislav would
have solved a problem. Maybe, even two…
Since Vladislav Isenbaev graduated from the Specialized Educational and Scientific Center at Ural State University, many of the former and present contestants at USU have known him for quite a few years.
Some of them are proud to say that they either played in the same team with him or played in the same team with one of his teammates…
Let us define Isenbaev's number as follows. This number for Vladislav himself is 0. For people who played in the same team with him, the number is 1. For people who weren't his teammates but
played in the same team with one or more of his teammates, the number is 2, and so on. Your task is to automate the process of calculating Isenbaev's numbers so that each contestant at USU would know their proximity to the ACM ICPC champion.
Input
The first line contains the number of teams n (1 ≤ n ≤ 100). In each of the following n lines you are given the names of the three members of the corresponding team. The names
are separated with a space. Each name is a nonempty line consisting of English letters, and its length is at most 20 symbols. The first letter of a name is capital and the other letters are lowercase.
Output
For each contestant mentioned in the input data output a line with their name and Isenbaev's number. If the number is undefined, output “undefined” instead of it. The contestants must be ordered lexicographically.
Sample
| input | output |
|---|---|
7 Isenbaev Oparin Toropov Ayzenshteyn Oparin Samsonov Ayzenshteyn Chevdar Samsonov Fominykh Isenbaev Oparin Dublennykh Fominykh Ivankov Burmistrov Dublennykh Kurpilyanskiy Cormen Leiserson Rivest |
Ayzenshteyn 2 Burmistrov 3 Chevdar 3 Cormen undefined Dublennykh 2 Fominykh 1 Isenbaev 0 Ivankov 2 Kurpilyanskiy 3 Leiserson undefined Oparin 1 Rivest undefined Samsonov 2 Toropov 1 |
题意:给出n个3人小组,Isenbaev被编号为0。他的队友编号为1。他队友的队友被编号为2。。
。以此类推。假设没有办法通过关系联系到Isenbaev。则输出“undefined”。其它的输出编号。
解析:先将全部的人用map映射出一个编号,这里就利用了map能够自己主动按字典序排序的特点,把全部出现过的字符串直接放到map里。遍历的时候就是有字典序的了。然后就是以编号为顶点建无向图了,各组员之间的距离为1,这样用Dijkstra就能够了求解最短距离了。当然BFS也能够搜出最短路径长度。
AC代码:
#include <cstdio>
#include <string>
#include <algorithm>
#include <iostream>
#include <cstring>
#include <map>
using namespace std;
#define INF 1e7
const int maxn = 302;
int g[maxn][maxn], d[maxn];
string a[maxn][3];
map<string, int> m;
bool used[maxn];
void dijkstra(int s, int V){ //Dijkstra算法
fill(d, d + V, INF);
fill(used, used + V, false);
d[s] = 0;
while(true){
int v = -1;
for(int u=0; u<V; u++){
if(!used[u] && (v == -1 || d[u] < d[v])) v = u;
}
if(v == -1) break;
used[v] = true;
for(int u=0; u<V; u++){
d[u] = min(d[u], d[v] + g[v][u]);
}
}
}
int main(){
#ifdef sxk
freopen("in.txt", "r", stdin);
#endif //sxk
int n;
while(scanf("%d", &n)==1){
for(int i=0; i<n; i++){
cin >> a[i][0] >> a[i][1] >> a[i][2];
m[ a[i][0] ] = 0; m[ a[i][1] ] = 0; m[ a[i][2] ] = 0; //把字符串放到map里
}
int num = 0;
map<string, int>::iterator it;
for(it = m.begin(); it!=m.end(); it++){
it->second = ++num; //给个字符串编号
}
for(int i=0; i<maxn; i++)
for(int j=0; j<maxn; j++) g[i][j] = INF;
for(int i=0; i<n; i++){ //初始化组员之间距离
int f1 = m.find(a[i][0])->second, f2 = m.find(a[i][1])->second, f3 = m.find(a[i][2])->second;
g[f1][f2] = g[f2][f3] = g[f1][f3] = 1;
g[f2][f1] = g[f3][f2] = g[f3][f1] = 1;
}
int len = m.size();
it = m.find("Isenbaev");
if(it == m.end()){
for(it=m.begin(); it!=m.end(); it++) cout<<it->first<<" "<<"undefined"<<endl;
continue;
}
dijkstra(it->second, len + 1);
for(it=m.begin(); it!=m.end(); it++){
cout<<it->first<<" ";
if(d[it->second] == INF) puts("undefined");
else cout<<d[it->second]<<endl;
}
}
return 0;
}