hdu 1540 Tunnel Warfare(线段树)

题目链接:hdu 1540 Tunnel Warfare

题目大意:有连续的N个城镇,三种操作:

  • D x:第x城镇被破坏
  • Q x:插叙第x城镇所在联通块有多少个城镇没有被破坏
  • R:修复最后一个被破坏的城镇

解题思路:线段树区间合并,每个城镇看成一个叶子节点,用一个vector记录破坏顺序。对于查询来说,每次只要判断是否在midR[lson(u)],mid+L[rson(u)]之间即可,否则即递归查询左右子树。

#include <cstdio>
#include <cstring>
#include <vector>
#include <algorithm>

using namespace std;

const int maxn = 50005;

#define lson(x) ((x)<<1)
#define rson(x) (((x)<<1)|1)
int lc[maxn << 2], rc[maxn << 2];
int L[maxn << 2], R[maxn << 2], S[maxn << 2];

inline int length(int u) {
    return rc[u] - lc[u] + 1;
}

inline void maintain(int u, int v) {
    S[u] = L[u] = R[u] = (v ? length(u) : 0);
}

inline void pushup (int u) {
    S[u] = max (max(S[lson(u)], S[rson(u)]), R[lson(u)] + L[rson(u)]);
    L[u] = L[lson(u)] + (L[lson(u)] == length(lson(u)) ? L[rson(u)] : 0);
    R[u] = R[rson(u)] + (R[rson(u)] == length(rson(u)) ? R[lson(u)] : 0);
}

void build (int u, int l, int r) {
    lc[u] = l;
    rc[u] = r;

    if (l == r) {
        maintain(u, 1);
        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) {
        maintain(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);
}

int query (int u, int x) {
    if (S[u] == length(u))
        return S[u];

    if (lc[u] == rc[u])
        return 0;

    int mid = (lc[u] + rc[u]) / 2;
    if (x <= mid) {
        if (x >= mid - R[lson(u)] + 1)
            return R[lson(u)] + L[rson(u)];
        else
            return query(lson(u), x);
    } else {
        if (x <= mid + L[rson(u)])
            return R[lson(u)] + L[rson(u)];
        else
            return query(rson(u), x);
    }
}

int N, M;
vector<int> des;

int main () {
    while (scanf("%d%d", &N, &M) == 2) {
        des.clear();
        build(1, 1, N);

        int x;
        char op[5];
        while (M--) {
            scanf("%s", op);
            if (op[0] == 'R') {
                x = des[des.size()-1];
                modify(1, x, 1);
                des.pop_back();
            } else {
                scanf("%d", &x);
                if (op[0] == 'D') {
                    modify(1, x, 0);
                    des.push_back(x);
                } else
                    printf("%d\n", query(1, x));
            }
        }
    }
    return 0;
}

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