题目链接:http://acm.zju.edu.cn/onlinejudge/showProblem.do?problemId=5718
题意:
有n个点 m(n,m<=10^5)条路,现在要建路,每条路连接uv两个点,所需时间是time花费是cost,现要求从0点到达其他点的,让时间和最小,当有多种选择时要求修路的总花费最小,输出最小时间及花费;
可以看成最短路问题
我们定义两个数组Time[i]表示从起点到 i 点所需的最小时间,Cost[i]表示到达 i 的那个点 u 到 i 的最小花费;其实就相当于是最短路中的dist和最小生成树中的dist
需要注意的是,本题数据超int了,所以初始化的时候要注意最大值的值;
#include<iostream>
#include<stdio.h>
#include<string.h>
#include<algorithm>
#include<queue>
#include<vector>
using namespace std;
#define N 100050
typedef long long LL;
const LL INF = (1ll<<)-;
struct node
{
int v;
LL cost, time;
node(int v0=, LL c=, LL t=) : v(v0),cost(c), time(t){}
}; vector<vector<node> >G;
int n, vis[N];
LL Cost[N], Time[N]; void SPFA()
{
for(int i=; i<n; i++)
{
Cost[i] = Time[i] = INF;
vis[i] = ;
}
Cost[] = Time[] = ; queue<int>Q;
Q.push(); while(Q.size())
{
int p = Q.front(); Q.pop(); vis[p] = ; int len = G[p].size();
for(int i=; i<len; i++)
{
node q = G[p][i];
if(Time[q.v] > Time[p]+q.time || (Time[q.v]==Time[p]+q.time&&Cost[q.v]>q.cost))
{
Time[q.v] = Time[p]+q.time;
Cost[q.v] = q.cost;
if(!vis[q.v])
{
vis[q.v] = ;
Q.push(q.v);
}
}
}
}
LL TimeSum = , CostSum = ;
for(int i=; i<n; i++)
{
TimeSum += Time[i];
CostSum += Cost[i];
}
printf("%lld %lld\n", TimeSum, CostSum);
} int main()
{
int T, m;
//cout<<INF;
scanf("%d", &T);
while(T--)
{
scanf("%d %d", &n, &m);
G.clear();
G.resize(n+); for(int i=; i<m; i++)
{
int u, v;
LL cost, time;
scanf("%d %d %lld %lld", &u, &v, &time, &cost);
G[u].push_back(node(v, cost, time));
G[v].push_back(node(u, cost, time));
} SPFA();
}
return ;
}