POJ-1062 昂贵的聘礼 dfs
该题是做最短路专题时的题,但是可惜没有想到如何进行最短路求解。倒是觉得dfs能够得到结果,因为该题对于建立边有严格的条件,递归能够很好的解决这个约束。
每次递归时将当前路径的最低等级和最高等级传递下去,然后再进行判断。这里还要注意判定环的存在。后者没有注意的话会MLE。
代码如下:
#include <cstring> #include <cstdio> #include <cstdlib> #include <algorithm> #include <queue> #define MAXN 105 using namespace std; int M, N, hash[MAXN]; struct dot { int num, p; struct dot *next; }; struct Node { int p, rank, cnt; struct dot *next; }e[105]; int build(int x, int low, int high) { int fee, Min = e[x].p; for (struct dot *ptr = e[x].next; ptr; ptr = ptr->next) { if ((abs(high - e[ptr->num].rank) <= N) && (abs(low - e[ptr->num].rank) <= N)) { if (!hash[ptr->num]) { hash[ptr->num] = 1; fee = ptr->p + build(ptr->num, min(low, e[ptr->num].rank), max(high, e[ptr->num].rank)); hash[ptr->num] = 0; Min = min(Min, fee); } } } return Min; } int main() { struct dot *temp; scanf("%d %d", &N, &M); for (int i = 1; i <= M; ++i) { scanf("%d %d %d", &e[i].p, &e[i].rank, &e[i].cnt); e[i].next = NULL; for (int j = 1; j <= e[i].cnt; ++j) { temp = (struct dot *)malloc(sizeof (struct dot)); scanf("%d %d", &temp->num, &temp->p); temp->next = e[i].next; e[i].next = temp; } } hash[1] = 1; printf("%d\n", build(1, e[1].rank, e[1].rank)); return 0; }
网上的一份纯c代码,够精简啊!
int g[100][100],a[100][100],pri[100],lvl[100]; void main(){ int m,n,i,j,k,t,p,ans,u; scanf("%d %d",&m,&n); for(i=0;i<n;i++) for(j=0;j<n;j++) g[i][j]=100000; for(i=0;i<n;i++){ scanf("%d %d %d",&pri[i],&lvl[i],&k); for(j=0;j<k;j++){ scanf("%d %d",&t,&p); g[i][t-1]=p; } } for(i=0;i<n;i++)g[i][i]=0; ans=pri[0]; for(u=0;u<=m;u++){ for(i=0;i<n;i++) { for(j=0;j<n;j++){ if(lvl[j]<=lvl[0]+u&&lvl[j]>=lvl[0]-m+u) a[i][j]=g[i][j]; else a[i][j]=100000; } } for(k=0;k<n;k++) for(i=0;i<n;i++) for(j=0;j<n;j++) if(a[i][k]+a[k][j]<a[i][j]) a[i][j]=a[i][k]+a[k][j]; for(i=0;i<n;i++) if(ans>a[0][i]+pri[i]) ans=a[0][i]+pri[i]; } printf("%d\n",ans); }