传送门:点我
中文题面。
思路:拿spfa对卧铺和硬铺分别跑spfa,然后找两个的最短路。体感堆优化的dij也可以,不过spfa跑跑就过去了。有个细节是最后得用long long 存数据,其他的没啥。
去重边是拿set存的邻接表。判断是否是数字用的isdigit函数。懒的要命系列。
#include <cstdio> #include <cstring> #include <cmath> #include <cstdlib> #include <ctime> #include <iostream> #include <algorithm> #include <sstream> #include <string> #include <vector> #include <queue> #include <stack> #include <map> #include <set> #include <utility> #include <bitset> using namespace std; #define LL long long #define pb push_back #define mk make_pair #define pill pair<int, int> #define mst(a, b) memset(a, b, sizeof a) #define REP(i, x, n) for(int i = x; i <= n; ++i) int vis[1000],dis[1000],n,m; set<int>v1[210]; set<int>v2[210]; void spfa(int st,int key){ queue<int>q; memset(vis,0,sizeof(vis)); for(int i = 0 ; i <= n ; i++){ dis[i] = 100000000; } q.push(st); vis[st] = 1; dis[st] = 0; while(!q.empty()){ int v = q.front(); vis[v] = 0 ; q.pop(); if(key == 1){ set<int>::iterator it = v1[v].begin(); for(;it != v1[v].end(); it++){ int to = *it; if(dis[to] > dis[v] + 1){ dis[to] = dis[v] + 1; if(!vis[to]){ q.push(to); vis[to] = 1; } } } } else{ set<int>::iterator it = v2[v].begin(); for(;it != v2[v].end(); it++){ int to = *it; if(dis[to] > dis[v] + 1){ dis[to] = dis[v] + 1; if(!vis[to]){ q.push(to); vis[to] = 1; } } } } } } int main(){ int t; for(scanf("%d",&t);t--;){ char s[10010]; scanf("%d %d",&n,&m); for(int i = 0 ; i <= n ; i++){ v1[i].clear(); v2[i].clear(); } while(m--){ int num; scanf("%s %d",s,&num); int k = 0, y = -1; int len = strlen(s); for(int i = 0 ; i < len ; i++){ if(isdigit(s[i])){ k = k * 10 + (s[i] - '0'); } else{ if(y == -1) y = k; else{ v1[y].insert(k); if(num > 0){ v2[y].insert(k); } y = k; } k = 0; } } v1[y].insert(k); if(num > 0){ v2[y].insert(k); } } long long ans1 = 0,ans2 = 0; int d1,d2,st,ed; scanf("%d %d %d %d",&d1,&d2,&st,&ed); spfa(st,1); ans1 = dis[ed]; spfa(st,0); ans2 = dis[ed]; if(ans1 == 100000000 && ans2 == 100000000 ){ puts("-1");continue; } //printf("%d %d ",ans1,ans2); printf("%lld ",min(ans1*d1*1LL,ans2*d2*1LL)); } }