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  • [bzoj5329][Sdoi2018]战略游戏

    题目大意:多组数据,每组数据给一张图,多组询问,每个询问给一个点集,要求删除一个点,使得至少点集中的两个点互不连通,输出方案数

    题解:圆方树,发现使得两个点不连通的方案数就是它们路径上的圆点个数。如何处理重复?可以按圆方树的$dfn$序排序,相邻两点求一下贡献,这样贡献就被重复计算了两次,除去$k$个询问点就行了。还有每次计算中$lca$没有被统计,发现排序后第一个点和最后一个点的$lca$一定是深度最浅的,所以只有这个点没有被统计答案,加上即可

    卡点:1.圆方树$dfn$数组没赋值

        2.$LCA$的$log$太小

    C++ Code:

    #include <cstdio>
    #include <algorithm>
    #include <cstring>
    #define maxn 200010
    #define maxm 200010
    int Tim, n, m, LCA;
    inline int min(int a, int b) {return a < b ? a : b;}
    inline void swap(int &a, int &b) {a ^= b ^= a ^= b;}
    struct Tree {
    	#define root 1
    	#define fa(u) dad[u][0]
    	#define M 18
    	int head[maxn], cnt;
    	struct Edge {
    		int to, nxt;
    	} e[maxm << 1];
    	inline void addE(int a, int b) {e[++cnt] = (Edge) {b, head[a]}; head[a] = cnt;}
    	inline void add(int a, int b) {
    		addE(a, b);
    		addE(b, a);
    	}
    	
    	int dad[maxn][M], dep[maxn], sz[maxn];
    	int dfn[maxn], idx;
    	void dfs(int u = root) {
    		dfn[u] = ++idx;
    		for (int i = 1; i < M; i++) dad[u][i] = dad[dad[u][i - 1]][i - 1];
    		for (int i = head[u]; i; i = e[i].nxt) {
    			int v = e[i].to;
    			if (v != fa(u)) {
    				sz[v] = sz[u] + int(v <= n);
    				dep[v] = dep[u] + 1;
    				fa(v) = u;
    				dfs(v);
    			}
    		}
    	}
    	inline int LCA(int x, int y) {
    		if (dep[x] < dep[y]) swap(x, y);
    		for (int i = dep[x] - dep[y]; i; i &= i - 1) x = dad[x][__builtin_ctz(i)];
    		if (x == y) return x;
    		for (int i = M - 1; ~i; i--) if (dad[x][i] != dad[y][i]) x = dad[x][i], y = dad[y][i];
    		return fa(x);
    	}
    	
    	inline int len(int x, int y) {
    		return sz[x] + sz[y] - (sz[::LCA = LCA(x, y)] << 1);
    	}
    	
    	inline void init() {
    		memset(head, 0, sizeof head); cnt = 0;
    		memset(dfn, 0, sizeof dfn); idx = 0;
    		sz[root] = 0;
    	}
    	#undef root
    	#undef fa
    	#undef M
    } T;
    
    struct Graph {
    	#define root 1
    	int head[maxn], cnt;
    	struct Edge {
    		int to, nxt;
    	} e[maxm << 1];
    	inline void addE(int a, int b) {e[++cnt] = (Edge) {b, head[a]}; head[a] = cnt;}
    	inline void add(int a, int b) {
    		addE(a, b);
    		addE(b, a);
    	}
    	
    	int DFN[maxn], low[maxn], idx, CNT;
    	int S[maxn], top, tmp;
    	void tarjan(int u = root) {
    		DFN[u] = low[u] = ++idx;
    		S[++top] = u;
    		for (int i = head[u]; i; i = e[i].nxt) {
    			int v = e[i].to;
    			if (!DFN[v]) {
    				tarjan(v);
    				low[u] = min(low[u], low[v]);
    				if (low[v] >= DFN[u]) {
    					CNT++;
    					T.add(CNT, u);
    					do {
    						T.add(CNT, tmp = S[top--]);
    					} while (tmp != v);
    				}
    			} else low[u] = min(low[u], DFN[v]);
    		}
    	}
    	
    	inline void init(int n) {
    		memset(head, 0, sizeof head); cnt = 0;
    		memset(DFN, 0, sizeof DFN); idx = 0;
    		CNT = n;
    	}
    	#undef root
    } G;
    
    
    #define Online_Judge
    #define read() R::READ()
    #include <cctype>
    namespace R {
        int x;
        #ifdef Online_Judge
        char *ch, op[1 << 26];
        inline void init() {
            fread(ch = op, 1, 1 << 26, stdin);
        }
        inline int READ() {
            while (isspace(*ch)) ch++;
            for (x = *ch & 15, ch++; isdigit(*ch); ch++) x = x * 10 + (*ch & 15);
            return x;
        }
        #else
        char ch;
        inline int READ() {
            ch = getchar();
            while (isspace(ch)) ch = getchar();
            for (x = ch & 15, ch = getchar(); isdigit(ch); ch = getchar()) x = x * 10 + (ch & 15);
            return x;
        }
        #endif
    }
    
    int s[maxn];
    inline bool cmp(int a, int b) {return T.dfn[a] < T.dfn[b];}
    int main() {
        #ifdef Online_Judge
        R::init();
        #endif
    	Tim = read();
    	while (Tim --> 0) {
    		G.init(n = read()), T.init();
    		for (int i = m = read(); i; i--) G.add(read(), read());
    		G.tarjan();
    		T.dfs();
    		int Q = read();
    		while (Q --> 0) {
    			int k = read(), ans = 0;
    			for (int i = 0; i < k; i++) s[i] = read();
    			std::sort(s, s + k, cmp);
    			s[k] = s[0];
    			for (int i = 0; i < k; i++) ans += T.len(s[i], s[i + 1]);
    			printf("%d
    ", (ans >> 1) - k + int(LCA <= n));
    		}
    	}
    	return 0;
    }
    
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  • 原文地址:https://www.cnblogs.com/Memory-of-winter/p/9650984.html
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