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  • 【ZJOI 2008】 树的统计

    题目描述

    一棵树上有n个节点,编号分别为1到n,每个节点都有一个权值w。

    我们将以下面的形式来要求你对这棵树完成一些操作:

    I. CHANGE u t : 把结点u的权值改为t

    II. QMAX u v: 询问从点u到点v的路径上的节点的最大权值

    III. QSUM u v: 询问从点u到点v的路径上的节点的权值和

    注意:从点u到点v的路径上的节点包括u和v本身

    思路

    树剖板子  

    #include <algorithm>
    #include <iostream>
    #include <cstdio>
    #include <vector>
    #include <string>
    using namespace std;
    const int maxn = 100000 + 10;
    int cnt = 0,map[maxn],val[maxn],num[maxn],size[maxn],father[maxn],son[maxn],top[maxn],dep[maxn],w[maxn];
    int n,m,r,p;
    vector<int> edges[maxn];
    inline void dfs1(int now,int f) {
        size[now] = 1;
        father[now] = f;
        dep[now] = dep[father[now]]+1;
        for (size_t i = 0;i < edges[now].size();i++)
            if (edges[now][i] != f) {
                dfs1(edges[now][i],now);
                size[now] += size[edges[now][i]];
                if (size[son[now]] < size[edges[now][i]] || !son[now]) son[now] = edges[now][i];
            }
    }
    inline void dfs2(int now,int ntop) {
        top[now] = ntop;
        num[now] = ++cnt;
        map[num[now]] = now;
        if (son[now]) dfs2(son[now],ntop);
        for (size_t i = 0;i < edges[now].size();i++)
            if (edges[now][i] != father[now] && edges[now][i] != son[now]) dfs2(edges[now][i],edges[now][i]);
    }
    struct seg { int maxv,sum,mark,l,r; } tree[maxn*4];
    inline void pushup(int root) {
        tree[root].sum = tree[root<<1].sum+tree[root<<1|1].sum;
        tree[root].maxv = max(tree[root<<1].maxv,tree[root<<1|1].maxv);
    }
    inline void BuildTree(int l,int r,int root) {
        tree[root].l = l;
        tree[root].r = r;
        tree[root].mark = 0;
        if (l == r) {
            tree[root].sum = val[map[l]];
            tree[root].maxv = val[map[l]];
            return;
        }
        int mid = l+r>>1;
        BuildTree(l,mid,root<<1);
        BuildTree(mid+1,r,root<<1|1);
        pushup(root);
    }
    inline void Update(int l,int r,int num,int root,int x) {
        if (l == r) {
            tree[root].sum = x;
            tree[root].maxv = x;
            return;
        }
        int mid = l+r>>1;
        if (num <= mid) Update(l,mid,num,root<<1,x);
        else Update(mid+1,r,num,root<<1|1,x);
        pushup(root);
    }
    inline int QuerySum(int l,int r,int ql,int qr,int root) {
        if (ql > r || qr < l) return 0;
        if (ql <= l && qr >= r) return tree[root].sum;
        int mid = l+r>>1;
        return QuerySum(l,mid,ql,qr,root<<1)+QuerySum(mid+1,r,ql,qr,root<<1|1);
    }
    inline int QueryMax(int l,int r,int ql,int qr,int root) {
        if (ql > r || qr < l) return -999999999;
        if (ql <= l && qr >= r) return tree[root].maxv;
        int mid = l+r>>1;
        return max(QueryMax(l,mid,ql,qr,root<<1),QueryMax(mid+1,r,ql,qr,root<<1|1));
    }
    inline int QuerySumEdges(int u,int v) {
        int topu = top[u];
        int topv = top[v];
        int sum = 0;
        while (topu != topv) {
            if (dep[topu] < dep[topv]) {
                swap(topu,topv);
                swap(u,v);
            }
            sum += QuerySum(1,cnt,num[topu],num[u],1);
            u = father[topu];
            topu = top[u];
        }
        if (dep[u] > dep[v]) swap(u,v);
        return sum+QuerySum(1,cnt,num[u],num[v],1);
    }
    inline int QueryMaxEdges(int u,int v) {
        int topu = top[u];
        int topv = top[v];
        int Max = -999999999;
        while (topu != topv) {
            if (dep[topu] < dep[topv]) {
                swap(topu,topv);
                swap(u,v);
            }
            Max = max(Max,QueryMax(1,cnt,num[topu],num[u],1));
            u = father[topu];
            topu = top[u];
        }
        if (dep[u] > dep[v]) swap(u,v);
        return max(Max,QueryMax(1,cnt,num[u],num[v],1));
    }
    int main() {
        ios :: sync_with_stdio(false);
        cin >> n;
        for (int i = 1,u,v;i < n;i++) {
            cin >> u >> v;
            edges[u].push_back(v);
            edges[v].push_back(u);
        }
        for (int i = 1;i <= n;i++) cin >> val[i];
        dfs1(1,0);
        dfs2(1,1);
        BuildTree(1,cnt,1);
        cin >> m;
        while (m--) {
            string dispose;
            int u,v;
            cin >> dispose >> u >> v;
            if (dispose == "CHANGE") Update(1,cnt,num[u],1,v);
            else if (dispose == "QSUM") cout << QuerySumEdges(u,v) << endl;
            else cout << QueryMaxEdges(u,v) << endl;
        }
        return 0;
    }
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  • 原文地址:https://www.cnblogs.com/lrj124/p/7429678.html
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