zz's Mysterious Present
Time Limit: 10000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 1652 Accepted Submission(s): 371
Problem Description
There
are m people in n cities, and they all want to attend the party which
hold by zz. They set out at the same time, and they all will choose the
best way they think, but due to someone take a ride, someone drive, and
someone take a taxi, they have different speed. Can you find out who
will get zz's mysterious present? The first one get the party will get
the present . If there are several people get at the same time, the one
who stay in the city which is farther from the city where is zz at
begin will get the present. If there are several people get at the same
time and the distance from the city he is at begin to the city where zz
is, the one who has the larger number will get the present.
Input
The
first line: three integers n, m and k. m is the total number of the
people, and n is the total number of cities, and k is the number of the
way.(0<n<=300, 0<m<=n, 0<k<5000)
The second line to the (k+1)th line: three integers a, b and c. There is a way from a to b, and the length of the way is c.(0<a,b<=n, 0<c<=100)
The (k+2)th line: one integer p(0<p<=n), p is the city where zz is.
The (k+3)th line: m integers. the ith people is at the place p[i] at begin.(0<p[i]<=n)
The (k+4)th line: m integers. the speed of the ith people is speed[i];(0<speed[i]<=100)
All the ways are directed.
The second line to the (k+1)th line: three integers a, b and c. There is a way from a to b, and the length of the way is c.(0<a,b<=n, 0<c<=100)
The (k+2)th line: one integer p(0<p<=n), p is the city where zz is.
The (k+3)th line: m integers. the ith people is at the place p[i] at begin.(0<p[i]<=n)
The (k+4)th line: m integers. the speed of the ith people is speed[i];(0<speed[i]<=100)
All the ways are directed.
Output
For each case, output the one who get the present in one line. If no one can get the present, output "No one".
Sample Input
3 1 3
1 2 2
1 3 3
2 3 1
3
2
1
Sample Output
1
Author
李光霞
题意: 有m个人,要到同一个地方(s)去获得一件东西,每个人都有个初始城市,每条边都是单向边,每个人都有个初始速度,要获得那件礼物的条件是:以到达时间最短者获胜,如果时间一样,那么则按照到s的距离,距离远者获胜,如果上诉条件都相同,那么编号大的人获得礼物.
题解:首先肯定是将边全部反向,然后以s点作为源点来进行最短路.求完最短路之后只要判断m个人所在的城市是否至少有一个<INF,不然都不可达,,我开始每想清,所有的城市
都去判断了,WA了好久.
AC代码:
#include <stdio.h> #include <algorithm> #include <string.h> #include <iostream> #include <stdlib.h> #include <math.h> using namespace std; const double eps = 1e-8; const int N = 305; const int INF = 99999999; int graph[N][N]; int p[N]; int speed[N]; int n,m,k; int low[N]; bool vis[N]; double result[N]; int dijkstra(int s){ for(int i=1;i<=n;i++){ low[i] = graph[s][i]; vis[i] = false; } low[s] = 0; vis[s] = true; for(int i=1;i<n;i++){ int Min = INF; for(int j=1;j<=n;j++){ if(Min>low[j]&&!vis[j]){ Min = low[j]; s = j; } } vis[s] = true; for(int j=1;j<=n;j++){ if(low[j]>low[s]+graph[s][j]&&!vis[j]){ low[j] = low[s]+graph[s][j]; } } } int flag = false; ///这里只要判断m个人就行了.. for(int i=1;i<=m;i++){ if(low[p[i]]<INF) flag =true; } if(!flag) return INF; int id = 1; for(int i=1;i<=m;i++){ result[i] = low[p[i]]*1.0/speed[i]; if(result[id]>result[i]) id = i; else if(fabs(result[id]-result[i])<eps){ if(low[p[id]]<=low[p[i]]) id = i; } } return id; } int main() { while(scanf("%d%d%d",&n,&m,&k)!=EOF){ for(int i=1;i<=n;i++){ for(int j=1;j<=n;j++) { if(i==j) graph[i][j] = 0; else graph[i][j] = INF; } } for(int i=0;i<k;i++){ int a,b,c; scanf("%d%d%d",&a,&b,&c); graph[b][a] = min(c,graph[b][a]); ///全部反向 } int s; scanf("%d",&s); for(int i=1;i<=m;i++){ scanf("%d",&p[i]); } for(int i=1;i<=m;i++){ scanf("%d",&speed[i]); } int id = dijkstra(s); if(id>=INF) printf("No one "); else printf("%d ",id); } }