• [HEOI 2014]大工程


    Description

    题库链接

    给你一个 (n) 个节点的树, (q) 组询问,每次给出 (k) 个关键点,询问这 (k) 个关键点两两间路径长度和,长度最值。

    (1leq nleq 1000000, 1leq qleq 50000,sum kleq 2n)

    Solution

    建完虚树后,直接简单的树形 (DP) ,开四个辅助数组, (size,sum,maxn,minn) 表示虚树中以它为根的子树中所有关键点的个数,到它的路径长度和,长度最值。

    再一顿乱搞就好了。

    Code

    //It is made by Awson on 2018.2.21
    #include <bits/stdc++.h>
    #define LL long long
    #define dob complex<double>
    #define Abs(a) ((a) < 0 ? (-(a)) : (a))
    #define Max(a, b) ((a) > (b) ? (a) : (b))
    #define Min(a, b) ((a) < (b) ? (a) : (b))
    #define Swap(a, b) ((a) ^= (b), (b) ^= (a), (a) ^= (b))
    #define writeln(x) (write(x), putchar('
    '))
    #define lowbit(x) ((x)&(-(x)))
    using namespace std;
    const int N = 1000000;
    const int INF = ~0u>>1;
    void read(int &x) {
        char ch; bool flag = 0;
        for (ch = getchar(); !isdigit(ch) && ((flag |= (ch == '-')) || 1); ch = getchar());
        for (x = 0; isdigit(ch); x = (x<<1)+(x<<3)+ch-48, ch = getchar());
        x *= 1-2*flag;
    }
    void print(LL x) {if (x > 9) print(x/10); putchar(x%10+48); }
    void write(LL x) {if (x < 0) putchar('-'); print(Abs(x)); }
    
    int n, lim, fa[N+5][25], dep[N+5], dfn[N+5], times, u, v;
    LL maxans, minans, sumans, minn[N+5], maxn[N+5], sum[N+5], size[N+5];
    int lst[N+5], flag[N+5], k, t, S[N+5], top;
    struct graph {
        struct tt {int to, next; }edge[(N<<1)+5];
        int path[N+5], top;
        void add(int u, int v) {edge[++top].to = v, edge[top].next = path[u], path[u] = top; }
        void dfs1(int o, int depth) {
        dep[o] = depth, dfn[o] = ++times;
        for (int i = 1; i <= lim; i++) fa[o][i] = fa[fa[o][i-1]][i-1];
        for (int i = path[o]; i; i = edge[i].next)
            if (dfn[edge[i].to] == 0) fa[edge[i].to][0] = o, dfs1(edge[i].to, depth+1);
        }
        void dfs2(int o) {
        minn[o] = INF, maxn[o] = -INF, sum[o] = 0, size[o] = 0;
        if (flag[o]) minn[o] = maxn[o] = 0, size[o] = 1;
        for (int &i = path[o]; i; i = edge[i].next) {
            dfs2(edge[i].to);
            sumans += size[o]*(sum[edge[i].to]+(dep[edge[i].to]-dep[o])*size[edge[i].to])+sum[o]*size[edge[i].to];
            sum[o] += sum[edge[i].to]+size[edge[i].to]*(dep[edge[i].to]-dep[o]), size[o] += size[edge[i].to];
            minans = Min(minans, minn[o]+minn[edge[i].to]+dep[edge[i].to]-dep[o]), minn[o] = Min(minn[o], minn[edge[i].to]+dep[edge[i].to]-dep[o]);
            maxans = Max(maxans, maxn[o]+maxn[edge[i].to]+dep[edge[i].to]-dep[o]), maxn[o] = Max(maxn[o], maxn[edge[i].to]+dep[edge[i].to]-dep[o]);
        }
        }
    }g1, g2;
    bool comp(const int &a, const int &b) {return dfn[a] < dfn[b]; }
    int get_lca(int u, int v) {
        if (dep[u] < dep[v]) Swap(u, v);
        for (int i = lim; i >= 0; i--) if (dep[fa[u][i]] >= dep[v]) u = fa[u][i];
        if (u == v) return u;
        for (int i = lim; i >= 0; i--) if (fa[u][i] != fa[v][i]) u = fa[u][i], v = fa[v][i];
        return fa[u][0];
    }
    
    void work() {
        read(n); lim = log(n)/log(2);
        for (int i = 1; i < n; i++) read(u), read(v), g1.add(u, v), g1.add(v, u);
        g1.dfs1(1, 1); read(t);
        while (t--) {
        read(k); top = g2.top = 0; maxans = -INF, minans = INF, sumans = 0;
        for (int i = 1; i <= k; i++) read(lst[i]), flag[lst[i]] = 1;
        sort(lst+1, lst+1+k, comp); S[++top] = lst[1];
        for (int i = 2; i <= k; i++) {
            int lca = get_lca(lst[i], S[top]);
            while (dfn[lca] < dfn[S[top]]) {
            if (dfn[lca] >= dfn[S[top-1]]) {
                g2.add(lca, S[top]); --top;
                if (S[top] != lca) S[++top] = lca;
                break;
            }
            g2.add(S[top-1], S[top]), --top;
            }
            S[++top] = lst[i];
        }
        while (top > 1) g2.add(S[top-1], S[top]), --top;
        g2.dfs2(S[1]);
        write(sumans), putchar(' '), write(minans), putchar(' '), writeln(maxans);
        for (int i = 1; i <= k; i++) flag[lst[i]] = 0;
        }
    }
    int main() {
        work(); return 0;
    }
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  • 原文地址:https://www.cnblogs.com/NaVi-Awson/p/8456238.html
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