King’s Quest Time Limit: 15000MSMemory Limit: 65536K Case Time Limit: 2000MS
Description Once upon a time there lived a king and he had N sons. And there were N beautiful girls in the kingdom and the king knew about each of his sons which of those girls he did like. The sons of the king were young and light-headed, so it was possible for one son to like several girls.
So the king asked his wizard to find for each of his sons the girl he liked, so that he could marry her. And the king’s wizard did it – for each son the girl that he could marry was chosen, so that he liked this girl and, of course, each beautiful girl had to marry only one of the king’s sons.
However, the king looked at the list and said: “I like the list you have made, but I am not completely satisfied. For each son I would like to know all the girls that he can marry. Of course, after he marries any of those girls, for each other son you must still be able to choose the girl he likes to marry.”
The problem the king wanted the wizard to solve had become too hard for him. You must save wizard’s head by solving this problem.
Input The first line of the input contains N – the number of king’s sons (1 <= N <= 2000). Next N lines for each of king’s sons contain the list of the girls he likes: first Ki – the number of those girls, and then Ki different integer numbers, ranging from 1 to N denoting the girls. The sum of all Ki does not exceed 200000.
The last line of the case contains the original list the wizard had made – N different integer numbers: for each son the number of the girl he would marry in compliance with this list. It is guaranteed that the list is correct, that is, each son likes the girl he must marry according to this list.
Output Output N lines.For each king’s son first print Li – the number of different girls he likes and can marry so that after his marriage it is possible to marry each of the other king’s sons. After that print Li different integer numbers denoting those girls, in ascending order.
Sample Input
4 2 1 2 2 1 2 2 2 3 2 3 4 1 2 3 4
Sample Output
2 1 2 2 1 2 1 3 1 4
Hint This problem has huge input and output data,use scanf() and printf() instead of cin and cout to read data to avoid time limit exceed.
Source Northeastern Europe 2003
题意: 给出一个二分图以及其中一个完备匹配,求对于每个X点,所有可以与之匹配的Y点,使得最终仍然能得到一个完备匹配。 思路: 你可以参考这儿: 分析的很不错。 刚看到这题会往二分图匹配上想(虽然我直接就去看什么是稳定婚姻问题了,但是该题和稳定婚姻没有什么关系)。如果忽略给出的那个完备匹配的话,可以枚举所有的Y点与X匹配,之后进行二分匹配的判定。但是复杂度太高,势必TLE。 给出的完备匹配一定包含了一些有用信息。既然X的信息全部在输入数据中给出了,那么完备匹配一定包含了一些关于Y的信息。有些X点是绝对不能和Y点在一起的,例如样例中3号王子和2号女孩一定不能在一起,因为这样的话,1号王子和2号王子势必有一个人单身。那么完备匹配给出的信息就是“每个Y点可以喜欢的X点”。虽然没有给全,但是一个足矣。 X点向喜欢的Y点连有向边,再将给出的完备匹配中的Y点向X点也连上有向边。假定给出的完备匹配是所有的Xi和Yi匹配,那么假如Xi和Yj匹配,Yi和Xj势必寻找另外的伴侣,设想Xi和Yj处于同一个强连通分量当中,强连通分量一定包含一个环,那么Xj和Yi一定是能找到另外的伴侣的。 那么是不是说,只要给出一组完备匹配,其他所有的完备匹配的方案都和它处于同一个强连通分量当中呢? 我觉得这样说应该是没有错的。所有完备匹配方案之间应该是有一些共同的信息的。那就是一定成环。 P.S. 如果采用输出输出外挂,G++评测可以500+ms。但是IO外挂对于C++评测是无效的。 代码如下:
/* * ID: j.sure.1 * PROG: * LANG: C++ */;const int INF = 0x3f3f3f3f;const double eps = 1e-8;N = 4444, M = 222222;int n, tot, scc_cnt, deep;int head[N], dfn[N], scc_id[N];struct Edge {int v, next;Edge(){}Edge(int _v, int _next):v(_v), next(_next){}}e[M];stack <int> s;vector<int> ans;void init(){tot = deep = scc_cnt = 0;memset(head, -1, sizeof(head));memset(dfn, 0, sizeof(dfn));memset(scc_id, 0, sizeof(scc_id));}void add(int u, int v){e[tot] = Edge(v, head[u]);head[u] = tot++;}int dfs(int u){int lowu = dfn[u] = ++deep;s.push(u);for(int i = head[u]; ~i; i = e[i].next) {int v = e[i].v;if(!dfn[v]) {int lowv = dfs(v);lowu = min(lowu, lowv);}else if(!scc_id[v]) {lowu = min(lowu, dfn[v]);}}if(lowu == dfn[u]) {scc_cnt++;while(1) {int x= s.top(); s.pop();scc_id[x] = scc_cnt;if(x == u) break;}}return lowu;}void tarjan(){for(int i = 1; i <= 2*n; i++) {if(!dfn[i]) dfs(i);}}int main(){#ifdef J_Surefreopen(“000.in”, “r”, stdin);(~scanf(“%d”, &n)) {int m, j;init();for(int i = 1; i <= n; i++) {scanf(“%d”, &m);while(m–) {scanf(“%d”, &j);add(i, j+n);}}for(int i = 1; i <= n; i++) {scanf(“%d”, &j);add(j+n, i);}tarjan();for(int u = 1; u <= n; u++) {ans.clear();for(int i = head[u]; ~i; i = e[i].next) {int v = e[i].v;if(scc_id[u] == scc_id[v]) ans.PB(v-n);}size_t len = ans.size();printf(“%d”, (int)len);sort(ans.begin(), ans.end());for(size_t k = 0; k < len; k++) {printf(” %d”, ans[k]);}puts(“”);}}return 0;}
,我要准备好行李启程了,谢谢关心我的家人和朋友,
