UVa 10099 - The Tourist Guide(Floyd, 最大生成树)

时间:2021-06-14 18:29:03

链接:

http://uva.onlinejudge.org/index.php?option=com_onlinejudge&Itemid=8&category=24&page=show_problem&problem=1040


题目:

Problem D

The Tourist Guide

Input: standard input

Output: standard output

 

Mr. G. works as a tourist guide. His current assignment is to take some tourists from one city to another. Some two-way roads connect the cities. For each pair of neighboring cities there is a bus service that runs only between those two cities and uses the road that directly connects them. Each bus service has a limit on the maximum number of passengers it can carry. Mr. G. has a map showing the cities and the roads connecting them. He also has the information regarding each bus service. He understands that it may not always be possible for him to take all the tourists to the destination city in a single trip. For example, consider the following road map of 7 cities. The edges connecting the cities represent the roads and the number written on each edge indicates the passenger limit of the bus service that runs on that road.

 

                            UVa  10099 - The Tourist Guide(Floyd, 最大生成树)

Now, if he wants to take 99 tourists from city 1 to city 7, he will require at least 5 trips, since he has to ride the bus with each group, and the route he should take is : 1 - 2 - 4 - 7.

But, Mr. G. finds it difficult to find the best route all by himself so that he may be able to take all the tourists to the destination city in minimum number of trips. So, he seeks your help.

 

Input

The input will contain one or more test cases. The first line of each test case will contain two integers: N (N<= 100) and R representing respectively the number of cities and the number of road segments. Then R lines will follow each containing three integers: C1C2 andPC1 and C2 are the city numbers and P (P> 1) is the limit on the maximum number of passengers to be carried by the bus service between the two cities. City numbers are positive integers ranging from 1 to N. The (R + 1)-th line will contain three integers: SD andT representing respectively the starting city, the destination city and the number of tourists to be guided.

The input will end with two zeroes for N and R.

 

Output

For each test case in the input first output the scenario number. Then output the minimum number of trips required for this case on a separate line. Print a blank line after the output of each test case.

 

Sample Input

7 10
1 2 30
1 3 15
1 4 10
2 4 25
2 5 60
3 4 40
3 6 20
4 7 35
5 7 20
6 7 30
1 7 99
0 0

Sample Output

Scenario #1
Minimum Number of Trips = 5


分析与总结:

和上一题UVa 10048 - Audiophobia(Floyd, Kruskal)基本类似,  a到b的所有路径,每条路径上都有一个最小的权值x, 求所有路径中的最大的x。


求出x之后,要算出一共要走几个来回,每个来回带一组人到目标,那么只需要直接 T/(x-1)【向上取整】,便得到答案, T为导游所带的总人数。


特别需要注意是每一趟带的人数是x-1, 因为导游也要占一个位置。



代码:

1.Kruskal方法

#include<cstdio>
#include<algorithm>
#define N 10005
using namespace std;

int n,m,beg,end,limit,f[N],rank[N];

struct Edge{
int u,v,val;
friend bool operator<(const Edge&a,const Edge&b){
return a.val>b.val;
}
}arr[N];

inline void init(){
for(int i=0; i<=n; ++i)
f[i]=i,rank[i]=0;
}
int find(int x){
int i,j=x;
while(j!=f[j]) j=f[j];
while(x!=j){
i=f[x]; f[x]=j; x=i;
}
return j;
}
bool Union(int x,int y){
int a=find(x),b=find(y);
if(a==b)return false;
if(rank[a]>rank[b])
f[b]=a;
else{
if(rank[a]==rank[b])
++rank[b];
f[a]=b;
}
return true;
}


int main(){
int a,b,c,cas=1;
while(~scanf("%d%d",&n,&m)&&n+m){
for(int i=0; i<m; ++i){
scanf("%d%d%d",&a,&b,&c);
arr[i].u=a,arr[i].v=b,arr[i].val=c;
}
scanf("%d%d%d",&beg,&end,&limit);
init();
sort(arr,arr+m);
int ans;
for(int i=0; i<m; ++i){
Union(arr[i].u,arr[i].v);
a=find(beg), b=find(end);
if(a==b){
ans = arr[i].val;
break;
}
}
int t=(limit%(ans-1)==0)?(limit/(ans-1)):(limit/(ans-1)+1);
printf("Scenario #%d\n", cas++);
printf("Minimum Number of Trips = %d\n\n",t);
}
return 0;
}


2. Floyd

#include<cstdio>
#include<algorithm>
const int N = 105;
const int INF = 1000000000;
using namespace std;

int n,m,beg,end,limit,d[N][N];

inline void read_graph(){
for(int i=1; i<=n; ++i){
d[i][i] = 0;
for(int j=i+1; j<=n; ++j)
d[i][j]=d[j][i]=INF;
}
int a,b,c;
for(int i=0; i<m; ++i){
scanf("%d%d%d",&a,&b,&c);
d[a][b]=d[b][a]=c;
}
}

inline void Floyd(){
for(int k=1; k<=n; ++k)
for(int i=1; i<=n; ++i){
for(int j=1; j<=n; ++j){
int tmp = min(d[i][k], d[k][j]);
if(d[i][j]==INF) d[i][j] = tmp;
else d[i][j] = max(d[i][j],tmp);
}
}
}

int main(){
int a,b,c,cas=1;
while(~scanf("%d%d",&n,&m)&&n+m){
read_graph();
scanf("%d%d%d",&beg,&end,&limit);
Floyd();
int ans = d[beg][end];
int t=(limit%(ans-1)==0)?(limit/(ans-1)):(limit/(ans-1)+1);
printf("Scenario #%d\n", cas++);
printf("Minimum Number of Trips = %d\n\n",t);
}
return 0;
}




——  生命的意义,在于赋予它意义。

                原创 http://blog.csdn.net/shuangde800 , By   D_Double  (转载请标明)