hdu 5029 Relief grain(树链剖分+线段树)

时间:2022-03-26 10:45:21

题目链接:hdu 5029 Relief grain

题目大意:给定一棵树,然后每次操作在uv路径上为每一个节点加入一个数w,最后输出每一个节点个数最多的那个数。

解题思路:由于是在树的路径上做操作,所以基本就是树链剖分了。仅仅只是曾经是用一个数组就可以维护值,这题要用

一个vector数组记录。过程中用线段树维护最大值。

#pragma comment(linker, "/STACK:1024000000,1024000000")

#include <cstdio>

#include <cstring>

#include <vector>

#include <algorithm>

using namespace std;

const int maxn = 100010;

#define lson(x) ((x)<<1)

#define rson(x) (((x)<<1)|1)

int lc[maxn << 2], rc[maxn << 2], s[maxn << 2], d[maxn << 2];

inline void pushup(int u) {

    int k = s[lson(u)] < s[rson(u)] ? rson(u) : lson(u);

    s[u] = s[k];

    d[u] = d[k];

}

void build (int u, int l, int r) {

    lc[u] = l;

    rc[u] = r;

    if (l == r) {

        s[u] = 0;

        d[u] = l;

        return;

    }

    int mid = (l + r) / 2;

    build(lson(u), l, mid);

    build(rson(u), mid + 1, r);

    pushup(u);

} 

void modify(int u, int x, int v) {

    if (lc[u] == x && rc[u] == x) {

        s[u] += v;

        return;

    }

    int mid = (lc[u] + rc[u]) / 2;

    if (x <= mid)

        modify(lson(u), x, v);

    else

        modify(rson(u), x, v);

    pushup(u);

}

typedef pair<int,int> pii;

vector<pii> g[maxn];

int N, M, E, first[maxn], jump[maxn * 2], link[maxn * 2], val[maxn];

int id, idx[maxn], dep[maxn], top[maxn], far[maxn], son[maxn], cnt[maxn];

inline void add_Edge (int u, int v) {

    link[E] = v;

    jump[E] = first[u];

    first[u] = E++;

}

void dfs (int u, int pre, int d) {

    far[u] = pre;

    dep[u] = d;

    cnt[u] = 1;

    son[u] = 0;

    for (int i = first[u]; i + 1; i = jump[i]) {

        int v = link[i];

        if (v == pre)

            continue;

        dfs(v, u, d + 1);

        cnt[u] += cnt[v];

        if (cnt[son[u]] < cnt[v])

            son[u] = v;

    }

}

void dfs(int u, int rot) {

    top[u] = rot;

    idx[u] = ++id;

    if (son[u])

        dfs(son[u], rot);

    for (int i = first[u]; i + 1; i = jump[i]) {

        int v = link[i];

        if (v == far[u] || v == son[u])

            continue;

        dfs(v, v);

    }

}

void init () {

    int u, v;

    id = E = 0;

    memset(first, -1, sizeof(first));

    for (int i = 0; i <= N; i++) g[i].clear();

    for (int i = 1; i < N; i++) {

        scanf("%d%d", &u, &v);

        add_Edge(u, v);

        add_Edge(v, u);

    }

    dfs(1, 0, 0);

    dfs(1, 1);

}

inline void add(int l, int r, int x) {

    g[l].push_back(make_pair(x, 1));

    g[r+1].push_back(make_pair(x, -1));

}

void solve (int u, int v, int w) {

    int p = top[u], q = top[v];

    while (p != q) {

        if (dep[p] < dep[q]) {

            swap(p, q);

            swap(u, v);

        }

        add(idx[p], idx[u], w);

        u = far[p];

        p = top[u];

    }

    if (dep[u] > dep[v])

        swap(u, v);

    add(idx[u], idx[v], w);

}

int main () {

    while (scanf("%d%d", &N, &M) == 2 && N + M) {

        init();

        int u, v, w;

        while (M--) {

            scanf("%d%d%d", &u, &v, &w);

            solve(u, v, w);

        }

        int ans = 0;

        build(1, 0, 100000);

        for (int i = 1; i <= N; i++) {

            for (int j = 0; j < g[i].size(); j++)

                modify(1, g[i][j].first, g[i][j].second);

            val[i] = d[1];

        }

        for (int i = 1; i <= N; i++)

            printf("%d\n", val[idx[i]]);

    }

    return 0;

}

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