• hdu 3308 LCIS(线段树)


    题目链接:hdu 3308 LCIS

    题目大意:给定一个序列,两种操作:

    • Q l r:查询区间l,r中的最长连续递增序列长度
    • U p x:将位置p上的数改成x

    解题思路:线段树上的区间合并,这是在左右子树合并的时候要推断一下是否满足递增就可以。

    #include <cstdio>
    #include <cstring>
    #include <algorithm>
    
    using namespace std;
    
    const int maxn = 1e5 + 5;
    
    int N, M, a[maxn];
    
    #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];
    
    void pushup (int u) {
        int mid = (lc[u] + rc[u]) / 2;
        S[u] = max(max(S[lson(u)], S[rson(u)]), (a[mid] < a[mid+1] ? R[lson(u)] + L[rson(u)] : 0));
        L[u] = L[lson(u)] + (L[lson(u)] == rc[lson(u)] - lc[lson(u)] + 1 && a[mid] < a[mid + 1] ?

    L[rson(u)] : 0); R[u] = R[rson(u)] + (R[rson(u)] == rc[rson(u)] - lc[rson(u)] + 1 && a[mid] < a[mid + 1] ?

    R[lson(u)] : 0); } void build (int u, int l, int r) { lc[u] = l; rc[u] = r; if (l == r) { L[u] = R[u] = S[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) { a[x] = 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 l, int r) { if (l <= lc[u] && rc[u] <= r) return S[u]; int mid =(lc[u] + rc[u]) / 2, ret; if (r <= mid) ret = query(lson(u), l, r); else if (l > mid) ret = query(rson(u), l, r); else { int ll = query(lson(u), l, r); int rr = query(rson(u), l, r); int A = min(R[lson(u)], mid - l + 1); int B = min(L[rson(u)], r - mid); ret = max(max(ll, rr), a[mid] < a[mid + 1] ?

    A + B : 0); } return ret; } int main () { int cas; scanf("%d", &cas); while (cas--) { scanf("%d%d", &N, &M); for (int i = 0; i < N; i++) scanf("%d", &a[i]); build(1, 0, N-1); int l, r; char op[5]; while (M--) { scanf("%s%d%d", op, &l, &r); if (op[0] == 'U') modify(1, l, r); else printf("%d ", query(1, l, r)); } } return 0; }

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  • 原文地址:https://www.cnblogs.com/mengfanrong/p/5184719.html
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