POJ3259 Wormholes 最短路（带负圈）

        题目大意是在John的农田里有N个区域，分别标记为1....N(1<=N<=500)，这个农田里还存在W个虫洞 1<=W<= 200，虫洞是个很神奇的东西，他是一条单向的通道，它会让时间倒流。虫洞的端存在N个区域中。农田里一共有M（1<=M<=2500）条路径，现在告诉你M条路径，以及每条路径的耗用时间，再告诉你W个虫洞的两端位置（单向）以及能让时间倒流多少。现在让你告诉John能否选择一些路径当走完这些路径后可以见到自己。

        虫洞的两端让时间倒流，就是将该路径的权赋值为负数就行了，然后用Bellman-Ford寻找图中是否存在负圈。

#ifndef HEAD#include <stdio.h>#include <vector>#include <math.h>#include <string.h>#include <string>#include <iostream>#include <queue>#include <list>#include <algorithm>#include <stack>#include <map>using namespace std;#endif // !HEAD#ifndef QUADMEMSETinline void QuadMemSet(void* dst, int iSize, int value){iSize = iSize / 4;int* newDst = (int*)dst;#ifdef WIN32__asm{mov edi, dstmov ecx, iSizemov eax, valuerep stosd}#elsefor (int i = 0; i < iSize; i++){newDst[i] = value;}#endif}#endifstruct Ege{int start;int end;int cost;};vector<Ege> eges;int d[501];bool find_negative_loop(int n,int m){memset(d, 0, sizeof(d));for (int i = 0; i < n; i++){for (int j = 0; j < m;j++){if (d[eges[j].end] > d[eges[j].start] + eges[j].cost){d[eges[j].end] = d[eges[j].start] + eges[j].cost;if (i == n - 1){return true;}}}}return false;}int main(){#ifdef _DEBUGfreopen("d:\\in.txt", "r", stdin);#endifint F, N, M, W;scanf("%d\n", &F);for (int i = 0; i < F;i++){eges.clear();scanf("%d %d %d\n", &N, &M, &W);int j = 0;for (j = 0; j < M; j++){Ege ege;scanf("%d %d %d\n", &ege.start, &ege.end, &ege.cost);Ege ege1;ege1.start = ege.end;ege1.end = ege.start;ege1.cost = ege.cost;eges.push_back(ege);eges.push_back(ege1);}for (; j < W + M;j++){Ege ege;scanf("%d %d %d\n", &ege.start, &ege.end, &ege.cost);ege.cost *= -1;eges.push_back(ege);}if (find_negative_loop(N, eges.size())){printf("YES\n");}else{printf("NO\n");}}return 0;}