poj 2449 Remmarguts' Date

Remmarguts' Date
Time Limit: 4000MS   Memory Limit: 65536K
Total Submissions: 30658   Accepted: 8378

Description

"Good man never makes girls wait or breaks an appointment!" said the mandarin duck father. Softly touching his little ducks' head, he told them a story. 

"Prince Remmarguts lives in his kingdom UDF – United Delta of Freedom. One day their neighboring country sent them Princess Uyuw on a diplomatic mission." 

"Erenow, the princess sent Remmarguts a letter, informing him that she would come to the hall and hold commercial talks with UDF if and only if the prince go and meet her via the K-th shortest path. (in fact, Uyuw does not want to come at all)" 

Being interested in the trade development and such a lovely girl, Prince Remmarguts really became enamored. He needs you - the prime minister's help! 

DETAILS: UDF's capital consists of N stations. The hall is numbered S, while the station numbered T denotes prince' current place. M muddy directed sideways connect some of the stations. Remmarguts' path to welcome the princess might include the same station twice or more than twice, even it is the station with number S or T. Different paths with same length will be considered disparate. 

Input

The first line contains two integer numbers N and M (1 <= N <= 1000, 0 <= M <= 100000). Stations are numbered from 1 to N. Each of the following M lines contains three integer numbers A, B and T (1 <= A, B <= N, 1 <= T <= 100). It shows that there is a directed sideway from A-th station to B-th station with time T. 

The last line consists of three integer numbers S, T and K (1 <= S, T <= N, 1 <= K <= 1000).

Output

A single line consisting of a single integer number: the length (time required) to welcome Princess Uyuw using the K-th shortest path. If K-th shortest path does not exist, you should output "-1" (without quotes) instead.

Sample Input

2 2
1 2 5
2 1 4
1 2 2

Sample Output

14

Source

POJ Monthly,Zeyuan Zhu
 
思路:K短路板子题
#include<iostream>
#include<queue>
#include<cstdio>
#include<cstring>
#include<algorithm>
#define INF 0x3f3f3f3f
#define MAXN 300000
using namespace std;
struct nond{
    int g,f,to;
    bool operator<(const nond &r) const {
        if(r.f==f)    return r.g<g;
        return r.f<f;
    }
}tmp,opt;
int n,m,s,t,k,cnt,tot,tot1;
int dis[MAXN],vis[MAXN];
int to[MAXN],cap[MAXN],net[MAXN],head[MAXN];
int to1[MAXN],cap1[MAXN],net1[MAXN],head1[MAXN];
void add(int u,int v,int w){
    to[++tot]=v;net[tot]=head[u];cap[tot]=w;head[u]=tot;
    to1[++tot1]=u;net1[tot1]=head1[v];cap1[tot1]=w;head1[v]=tot1;
}
void spfa(int s){
    queue<int>que1;
    for(int i=0;i<=n;i++)    dis[i]=INF;
    que1.push(s);
    vis[s]=1;dis[s]=0;
    while(!que1.empty()){
        int now=que1.front();
        que1.pop();
        vis[now]=0;
        for(int i=head1[now];i;i=net1[i])
            if(dis[to1[i]]>dis[now]+cap1[i]){
                dis[to1[i]]=dis[now]+cap1[i];
                if(!vis[to1[i]]){
                    vis[to1[i]]=1;
                    que1.push(to1[i]);
                }
            }
    }
}
int Astar(){
    priority_queue<nond>que;
    if(s==t)    k++;
    if(dis[s]==INF)    return  -1;
    tmp.g=0;
    tmp.to=s;
    tmp.f=dis[s];
    que.push(tmp);
    while(!que.empty()){
        tmp=que.top();
        que.pop();
        if(tmp.to==t)    cnt++;
        if(cnt==k)    return tmp.g;
        for(int i=head[tmp.to];i;i=net[i]){
            opt.to=to[i];
            opt.g=tmp.g+cap[i];
            opt.f=opt.g+dis[to[i]];
            que.push(opt);
        }
    }
    return -1;
}
int main(){
    scanf("%d%d",&n,&m);
    for(int i=1;i<=m;i++){
        int a,b,c;
        scanf("%d%d%d",&a,&b,&c);
        add(a,b,c);
    }
    scanf("%d%d%d",&s,&t,&k);
    spfa(t);
    printf("%d\n",Astar());
}

 

 
posted @ 2017-08-22 08:53  一蓑烟雨任生平  阅读(248)  评论(0编辑  收藏  举报