Time Limit: 2000MS | Memory Limit: 65536K | |
Total Submissions: 39078 | Accepted: 14369 |
Description
While exploring his many farms, Farmer John has discovered a number of amazing wormholes. A wormhole is very peculiar because it is a one-way path that delivers you to its destination at a time that is BEFORE you entered the wormhole! Each of FJ's farms comprises N (1 ≤ N ≤ 500) fields conveniently numbered 1..N, M (1 ≤ M ≤ 2500) paths, and W (1 ≤ W ≤ 200) wormholes.
As FJ is an avid time-traveling fan, he wants to do the following: start at some field, travel through some paths and wormholes, and return to the starting field a time before his initial departure. Perhaps he will be able to meet himself :) .
To help FJ find out whether this is possible or not, he will supply you with complete maps to F (1 ≤ F ≤ 5) of his farms. No paths will take longer than 10,000 seconds to travel and no wormhole can bring FJ back in time by more than 10,000 seconds.
Input
Line 1 of each farm: Three space-separated integers respectively: N, M, and W
Lines 2..M+1 of each farm: Three space-separated numbers (S, E, T) that describe, respectively: a bidirectional path between S and E that requires T seconds to traverse. Two fields might be connected by more than one path.
Lines M+2..M+W+1 of each farm: Three space-separated numbers (S, E, T) that describe, respectively: A one way path from S to E that also moves the traveler back T seconds.
Output
Sample Input
2 3 3 1 1 2 2 1 3 4 2 3 1 3 1 3 3 2 1 1 2 3 2 3 4 3 1 8
Sample Output
NO YES
题意:每个农场有N各区域,连接所有区域的是M个双向路径和W个单向时空隧道,从S->E若为路径则花费T秒,若为时空隧道则倒退T秒。问是否可以从某点出发,转一圈回来,回到出发时刻之前。
思路:因为时空隧道实现倒退,所以将其权值设为负值,利用ford判断是否存在负环。
#include"cstdio" #include"cstring" using namespace std; const int MAXN=10005; const int INF=0x3fffffff; struct Edge{ int from,to,cost; }es[MAXN]; int N,M,W; int E; int d[MAXN]; bool ford(int s) { for(int i=1;i<=N;i++) d[i]=INF; d[s]=0; int n=N; while(n--) { bool update=false; for(int i=0;i<E;i++) { Edge e=es[i]; if(d[e.from]!=INF&&d[e.to]>d[e.from]+e.cost) { d[e.to]=d[e.from]+e.cost; update=true; } } if(!update) break; } if(n==-1) return true; else return false; } int main() { int F; scanf("%d",&F); while(F--) { E=0; scanf("%d%d%d",&N,&M,&W); for(int i=0;i<M;i++) { int u,v,c; scanf("%d%d%d",&u,&v,&c); es[E].from=u,es[E].to=v,es[E++].cost=c; es[E].from=v,es[E].to=u,es[E++].cost=c; } for(int i=0;i<W;i++) { int u,v,c; scanf("%d%d%d",&u,&v,&c); es[E].from=u,es[E].to=v,es[E++].cost=-c;//倒退c秒 } if(ford(1)) printf("YES "); else printf("NO "); } return 0; }
spfa+前向星可解决重边问题
#include <cstdio> #include <cstring> #include <queue> using namespace std; const int MAXN=505; const int INF=0x3f3f3f3f; struct Edge{ int v,w,next; }es[6006]; int head[MAXN],tot; void addedge(int u,int v,int w) { es[tot].v=v; es[tot].w=w; es[tot].next=head[u]; head[u]=tot++; } int d[MAXN],vis[MAXN],cnt[MAXN]; int n,m,k; bool spfa(int s) { for(int i=1;i<=n;i++) { d[i]=INF; vis[i]=0; cnt[i]=0; } d[s]=0; queue<int> que; que.push(s); vis[s]=1; cnt[s]++; while(!que.empty()) { int u=que.front();que.pop(); vis[u]=0; for(int i=head[u];i!=-1;i=es[i].next) { Edge e=es[i]; if(d[e.v]>d[u]+e.w) { d[e.v]=d[u]+e.w; if(!vis[e.v]) { vis[e.v]=1; que.push(e.v); cnt[e.v]++; if(cnt[e.v]>=n) return true; } } } } return false; } int main() { int T; scanf("%d",&T); while(T--) { memset(head,-1,sizeof(head)); tot=0; scanf("%d%d%d",&n,&m,&k); for(int i=0;i<m;i++) { int u,v,w; scanf("%d%d%d",&u,&v,&w); addedge(u,v,w); addedge(v,u,w); } for(int i=0;i<k;i++) { int u,v,w; scanf("%d%d%d",&u,&v,&w); addedge(u,v,-w); } if(spfa(1)) printf("YES "); else printf("NO "); } return 0; }