2019 Multi-University Training Contest 10 HDU多校赛题解

HDU 6691 01.Minimum Spanning Trees

题意

给n个点，每条边的权值有一定概率出现，题目给出。权值为0表示不存在。问对于若干个S求最小生成树恰好为S的概率。

题解

CODE

#include <bits/stdc++.h>
using namespace std;
const int MAXN = 50;
const int MAXK = 6;
const int mod = 1e9 + 7;
const int inv100 = 570000004;
inline int qpow(int a, int b) {
	int re = 1;
	while(b) {
		if(b&1) re = 1ll * re * a % mod; 
		a = 1ll * a * a % mod; b >>= 1;
	}
	return re;
}
inline int mul(int x, int y) { return 1ll * x * y % mod; }
inline int add(int x, int y) { return (x + y) % mod; }
int c[MAXN][MAXN], inv[MAXN*MAXK], p[MAXK], sp[MAXK], pwx[MAXK];
int t1[MAXN][MAXN], t2[MAXN][MAXN], f[MAXK][MAXN], g[MAXN][MAXN];
int v[MAXN*MAXK];
vector<int>interpolation(int y[], int n) { //拉格朗日插值求多项式系数
	vector<int>P(n+1), now(n+1), re(n); P[0] = 1;
	for(int i = 0; i < n; ++i) for(int j = i+1; ~j; --j) P[j] = add(j?P[j-1]:0, -mul(i, P[j]));
	for(int i = 0; i < n; ++i) {
		for(int j = n-1; ~j; --j) now[j] = add(P[j+1], mul(i, now[j+1]));
		int tmp = (((n-i-1)&1)?-1:1) * mul(mul(inv[i], inv[n-i-1]), y[i]);
		for(int j = 0; j < n; ++j) re[j] = add(re[j], mul(tmp, now[j]));
	}
	return re;
}
void solve() {
	int n, k;
	scanf("%d%d", &n, &k);
	for(int i = 0; i <= k; ++i) scanf("%d", &p[i]), p[i] = mul(p[i], inv100);
	sp[k+1] = 0;
	for(int i = k; ~i; --i) sp[i] = add(sp[i+1], p[i]);
	for(int x = 0; x <= (k-1)*(n-1); ++x) {
		pwx[0] = 1;
		for(int i = 1; i < k; ++i) pwx[i] = mul(pwx[i-1], x);
		f[0][1] = 1;
		for(int t = 1; t <= k; ++t) {
			for(int i = 0; i <= n; ++i)
				for(int j = 1; i+j <= n; ++j) {
					t2[i][j] = qpow(p[0] + sp[t+1], i*j); //用>t的边
					t1[i][j] = add(qpow(p[0] + sp[t], i*j), -t2[i][j]); //用>=t的边且至少一条=t
				}
			for(int i = 1; i <= n; ++i)
				for(int j = 0; i+j <= n; ++j)
					g[i][j] = (j == 0);
			for(int s = 1; s <= n; ++s) {
				f[t][s] = 0;
				for(int i = 1; i <= s; ++i)
					f[t][s] = add(f[t][s], mul(mul(f[t-1][i], g[i][s-i]), c[s-1][i-1]));
				for(int i = 1; i <= n; ++i)
					for(int j = n-i-s; j >= 0; --j)
						for(int k = 1, tmp = 1, bas = mul(pwx[t-1], mul(t1[i][s], f[t][s])); i+j+k*s <= n; ++k) {
							tmp = mul(tmp, mul(bas, mul(t2[j+(k-1)*s][s], c[j+k*s][s])));
							g[i][j+k*s] = add(g[i][j+k*s], mul(mul(g[i][j], tmp), inv[k]));
						}
			}
		}
		v[x] = f[k][n];
		//printf("v(%d) = %d
", x, v[x]);
	}
	vector<int>ans = interpolation(v, (k-1)*(n-1)+1);
	for(int i = 0; i <= (k-1)*(n-1); ++i)
		printf("%d%c", add(ans[i], mod), " 
"[i==(k-1)*(n-1)]);
}
void pre() {
	c[0][0] = 1;
	for(int i = 1; i < MAXN; ++i) {
		c[i][0] = c[i][i] = 1;
		for(int j = 1; j < i; ++j)
			c[i][j] = add(c[i-1][j-1], c[i-1][j]);
	}
	inv[0] = inv[1] = 1;
	for(int i = 2; i < MAXN*MAXK; ++i)
		inv[i] = mul(mod - mod/i,  inv[mod%i]);
	for(int i = 2; i < MAXN*MAXK; ++i)
		inv[i] = mul(inv[i], inv[i-1]);
}
int main() {
	pre();
	int T; scanf("%d", &T);
	while(T-->0)solve();
}

HDU 6693 03.Valentine’s Day

题意

略

题解

显然从大到小贪心，买进来能够让答案更优就买。如果一个买不了剩下的一定也买不了，直接break就行了。

CODE

#include <bits/stdc++.h>
using namespace std;
const int MAXN = 10005;
int n;
double p[MAXN];
int main () {
    int T;
    scanf("%d", &T);
    while(T--) {
        scanf("%d", &n);
        for(int i = 1; i <= n; ++i)
            scanf("%lf", &p[i]);
        sort(p + 1, p + n + 1);
        double ans = p[n], tmp = 1-p[n];
        for(int i = n-1; i; --i) {
            if(ans * (1-p[i]) + tmp * p[i] > ans) {
                ans = ans * (1-p[i]) + tmp * p[i];
                tmp *= 1-p[i];
            }
            else break;
        }
        printf("%.12f
", ans);
    }
}

HDU 6694 04.Play Games with Rounddog

题意+题解

链接

CODE

又双叒叕学习了一发SAM

#include <bits/stdc++.h>
using namespace std;
typedef long long LL;
typedef unsigned long long ULL;
const int MAXN = 200005;
LL W[MAXN];
char s[MAXN];
int pos[MAXN], Right[MAXN], dep[MAXN], f[MAXN][19], c[MAXN];
vector<int>G[MAXN];
struct Linear_Basis {
	LL a[58]; ULL ans;
	inline void init() { ans = 0; memset(a, 0, sizeof a); }
	inline bool ins(LL x) {
		LL tmp = x;
		for(int i = 57; ~i; --i)
			if(x&(1ll<<i)) {
				if(!a[i]) { a[i] = x; ans += tmp; return 1; }
				x ^= a[i];
			}
		return 0;
	}
}LB[MAXN];
struct Suffix_Automation {
	int tot, cur;
	struct node{ int len, fa, ch[26]; } t[MAXN];
	inline void init() {
		cur = tot = 1;
		memset(t, 0, sizeof t);
		memset(Right, 0, sizeof Right);
	}
	inline void ins(int x) {
		int p = cur; ++Right[cur = ++tot]; t[cur].len = t[p].len + 1;
		for(; p && !t[p].ch[x]; p = t[p].fa) t[p].ch[x] = cur;
		if(!p) { t[cur].fa = 1; return; }
		int q = t[p].ch[x];
		if(t[p].len + 1 == t[q].len) { t[cur].fa = q; return; }
		int clone = ++tot;
		t[clone].len = t[p].len + 1;
		memcpy(t[clone].ch, t[q].ch, sizeof t[q].ch);
		t[clone].fa = t[q].fa;
		t[q].fa = t[cur].fa = clone;
		for(; p && t[p].ch[x] == q; p = t[p].fa) t[p].ch[x] = clone;
	}
	void dfs(int u) {
		for(int v, i = G[u].size()-1; ~i; --i) {
			v = G[u][i];
			dep[v] = dep[u] + 1;
			f[v][0] = u;
			dfs(v);
			Right[u] += Right[v];
		}
	}
	inline void build() {
		memset(G, 0, sizeof G);
		for(int i = 2; i <= tot; ++i) G[t[i].fa].push_back(i);
		dfs(1);
		for(int j = 1; j < 19; ++j)
			for(int i = 1; i <= tot; ++i)
				f[i][j] = f[f[i][j-1]][j-1];
	}
}SAM;
inline bool cmp(int i, int j) { return W[Right[i]] > W[Right[j]]; }
int main() {
	int T, n, q, x, y; scanf("%d", &T);
	while(T-->0) {
		scanf("%d%s", &n, s+1);
		SAM.init();
		for(int i = 1; i <= n; ++i)
			SAM.ins(s[i]-'a'), pos[i] = SAM.cur;
		for(int i = 1; i <= n; ++i) scanf("%lld", &W[i]);
		SAM.build();
		int tot = SAM.tot;
		for(int i = 1; i <= tot; ++i)
			LB[i].init(), c[i] = i;
		sort(c + 1, c + tot + 1, cmp);
		for(int i = 1; i <= tot; ++i)
			for(int p = c[i]; p; p = f[p][0])
				if(!LB[p].ins(W[Right[c[i]]])) break;
		scanf("%d", &q);
		while(q-->0) {
			scanf("%d%d", &x, &y);
			int len = y-x+1, p = pos[y];
			for(int i = 18; ~i; --i)
				if(SAM.t[f[p][i]].len >= len) p = f[p][i];
			printf("%llu
", LB[p].ans);
		}
	}
}

HDU 6695 05.Welcome Party

题意

略

题解

枚举第一个集合的x最大值k，那么另一个集合y的最大值一定要大于等于xi>k的所有yi
所以倒序枚举k，线段树维护就行了。

CODE

#include <bits/stdc++.h>
using namespace std;
typedef long long LL;
#define x first
#define y second
const int MAXN = 100005;
int n, nx, ny;
pair<LL,LL>p[MAXN];
LL vx[MAXN], vy[MAXN];
int Mn[MAXN<<2], Mx[MAXN<<2], cnt[MAXN];
void build(int i, int l, int r) {
	Mn[i] = ny+1;
	Mx[i] = 0;
	if(l == r) { cnt[l] = 0; return; }
	int mid = (l + r) >> 1;
	build(i<<1, l, mid);
	build(i<<1|1, mid+1, r);
}
void mdf(int i, int l, int r, int p, int v) {
	if(l == r) {
		cnt[p] += v;
		if(!cnt[p]) Mn[i] = ny+1, Mx[i] = 0;
		else Mn[i] = Mx[i] = l;
		return;
	}
	int mid = (l + r) >> 1;
	if(p <= mid) mdf(i<<1, l, mid, p, v);
	else mdf(i<<1|1, mid+1, r, p, v);
	Mn[i] = min(Mn[i<<1], Mn[i<<1|1]);
	Mx[i] = max(Mx[i<<1], Mx[i<<1|1]);
}
int Min(int i, int l, int r, int L, int R) {
	if(L <= l && r <= R) return Mn[i];
	int mid = (l + r) >> 1, re = ny+1;
	if(L <= mid) re = min(re, Min(i<<1, l, mid, L, R));
	if(R > mid) re = min(re, Min(i<<1|1, mid+1, r, L, R));
	return re;
}
int Max(int i, int l, int r, int L, int R) {
	if(L <= l && r <= R) return Mx[i];
	int mid = (l + r) >> 1, re = 0;
	if(L <= mid) re = max(re, Max(i<<1, l, mid, L, R));
	if(R > mid) re = max(re, Max(i<<1|1, mid+1, r, L, R));
	return re;
}
int main () {
	int T;
	scanf("%d", &T);
	while(T--) {
		scanf("%d", &n);
		nx = ny = 0;
		for(int i = 1; i <= n; ++i) {
			scanf("%lld%lld", &p[i].x, &p[i].y);
			vx[++nx] = p[i].x;
			vy[++ny] = p[i].y;
		}
		sort(p + 1, p + n + 1);
		sort(vx + 1, vx + nx + 1);
		nx = unique(vx + 1, vx + nx + 1) - vx - 1;
		sort(vy + 1, vy + ny + 1);
		ny = unique(vy + 1, vy + ny + 1) - vy - 1;
		for(int i = 1; i <= n; ++i) {
			p[i].x = lower_bound(vx + 1, vx + nx + 1, p[i].x) - vx;
			p[i].y = lower_bound(vy + 1, vy + ny + 1, p[i].y) - vy;
		}
		int cur = n, mx = 1; LL ans = 1ll<<62;
		build(1, 1, ny);
		for(int i = 1; i <= n; ++i) mdf(1, 1, ny, p[i].y, 1);
		for(int i = n; i >= 1; --i) {
			while(cur && p[cur].x > p[i].x) mx = max(mx, (int)p[cur].y), --cur;
			mdf(1, 1, ny, p[i].y, -1);
			
			int j = lower_bound(vy + mx, vy + ny + 1, vx[p[i].x]) - vy, tmp;
			if(j <= ny && (tmp=Min(1, 1, ny, j, ny)) <= ny) ans = min(ans, vy[tmp] - vx[p[i].x]);
			--j; if(j >= mx && (tmp=Max(1, 1, ny, mx, j)) >= mx) ans = min(ans, vx[p[i].x] - vy[tmp]);
			
			mdf(1, 1, ny, p[i].y, 1);
		}
		printf("%lld
", ans);
	}
}

HDU 6696 06.Dense Subgraph

题意

一棵n个点的树，每个点有权值ai，一个连通诱导子图的密度定义为所有点权的平均值，你可以关闭一些点，然后树的美丽度定义为剩下的点的所有连通诱导子图（大于等于两个点）的密度的最大值。求使得树的美丽度<=X的关闭点的方案数。点的度数<=5

诱导子图的定义为点集V中的点之间的边都在边集E中的子图。在树上的连通诱导子图就是树上的一个连通块。

一句话题意：求删点的方案数，使得剩下的点数大于1的连通块的权值平均值的最大值小于等于X。

题解

首先观察到，从所有直径 ≤ 2 的子图中一定可以找到 density 最大的子图，否则沿着直径中间的边断开可以得到两棵至少有两个点的树，其中至少有一棵树的 density 不会更小。于是只需要考虑所有直径 ≤ 2 的子图，只有 $O(n2^{deg})$ 个，每一个满足 density > x 子图中所有点不能同时亮。对每个点记录父亲、自己、以及每个儿子的状态，预处理出所有不合法状态之后在树上 dp 即可。

CODE

#include <bits/stdc++.h>
using namespace std;
const int MAXN = 35005;
const int mod = 1e9 + 7;
int n, X, a[MAXN], f[MAXN][3], tmp[10];
//  self  fa
//0  N    ?
//1  Y    N
//2  Y    Y
vector<int>G[MAXN];
inline void mul(int &x, int y) { x = 1ll * x * y % mod; }
inline void add(int &x, int y) { x = (x + y) % mod; }
inline bool cmp(int x, int y) { return x > y; }
void dfs(int u, int ff) {
	f[u][0] = 1; f[u][1] = f[u][2] = 0;
	int siz = G[u].size();
	for(int i = 0; i < siz; ++i)if(G[u][i] == ff){ swap(G[u][i], G[u][siz-1]); G[u].pop_back(); break; }
	siz = G[u].size();
	for(int v : G[u]) dfs(v, u), mul(f[u][0], (f[v][0] + f[v][1]) % mod);
	for(int s = 0; s < 1<<siz; ++s) {
		int g = 1, cur = 0;
		for(int i = 0; i < siz; ++i)
			if(s&(1<<i)) tmp[++cur] = a[G[u][i]], mul(g, f[G[u][i]][2]);
			else mul(g, f[G[u][i]][0]);
		if(!g) continue;
		sort(tmp + 1, tmp + cur + 1, cmp);
		int sum1 = a[u], sum2 = a[u] + a[ff];
		bool flg1 = 1, flg2 = (sum2 <= X*2);
		for(int i = 1; i <= cur && flg1; ++i)
			flg1 &= ((sum1 += tmp[i]) <= (X*(i+1))),
			flg2 &= ((sum2 += tmp[i]) <= (X*(i+2)));
		if(flg1) {
			add(f[u][1], g);
			if(flg2) add(f[u][2], g);
		}
	}
}

int main() {
	int T; scanf("%d", &T);
	while(T --> 0) {
		scanf("%d%d", &n, &X);
		for(int i = 1; i <= n; ++i)
			scanf("%d", &a[i]), G[i].clear();
		for(int i = 1, x, y; i < n; ++i) {
			scanf("%d%d", &x, &y);
			G[x].push_back(y),
			G[y].push_back(x);
		}
		dfs(1, 0);
		printf("%d
", (f[1][0] + f[1][1]) % mod);
	}
}

HDU 6697 07.Closest Pair of Segments

题意

略

题解

二分答案+判断"线段"是否有交
然后写正解死活不过。
然后暴力+优化过了
650ms 目前hdu rk2
.
暴力艹正解

不过这个点到线段距离是自己写的，有点丑。更短的方法是点积判断钝角锐角，然后分类用叉积或者两点间距离算答案。

CODE

#include <bits/stdc++.h>
using namespace std;
typedef double db;
const double eps = 1e-8;
const int MAXN = 10005;
inline db sqr(db x) { return x*x; }
struct point {
	db x, y; point(){}
	point(db x, db y):x(x), y(y){}
	inline point operator -(const point &o)const { return point(x-o.x, y-o.y); }
	inline point operator +(const point &o)const { return point(x+o.x, y+o.y); }
	inline point operator *(const db &o)const {	return point(x*o, y*o); }
	inline db mo() { return sqrt(sqr(x) + sqr(y)); }
};
struct line {
	point u, v; line(){}
	line(point u, point v):u(u), v(v){}
	inline bool operator <(const line &o)const {
		return u.x < o.u.x;
	}
}L[MAXN];
inline db dis1(point A, point B) { return sqrt(sqr(A.x-B.x) + sqr(A.y-B.y)); }
inline db cross(point A, point B) { return A.x * B.y - A.y * B.x; }
inline db det(db A, db B, db C, db D) { return A * D - B * C; }
inline int sgn(double x) { return x > eps ? 1 : x < -eps ? -1 : 0; }
inline int sgndir(line A, point B) { return sgn(cross(A.v-A.u, B-A.u)); }
inline bool jiao(line A, line B) {
	return sgndir(A, B.u) * sgndir(A, B.v) <= 0
		&& sgndir(B, A.u) * sgndir(B, A.v) <= 0;
}
inline db dis2(point A, line B) {
	point v2 = B.v - B.u, v1 = v2;
	swap(v1.x, v1.y); v1.y=-v1.y; // rotate pi/2
	// A + k1*v1 = B.u + k2*v2
	double D = det(-v1.x, v2.x, -v1.y, v2.y);
	assert(D);
	double k1 = det(A.x-B.u.x, v2.x, A.y-B.u.y, v2.y) / D;
	double k2 = det(-v1.x, A.x-B.u.x, -v1.y, A.y-B.u.y) / D;
	if(k2 >= 0 && k2 <= 1) return fabs(k1) * v1.mo();
	if(k2 < 0) return dis1(A, B.u);
	return dis1(A, B.v);
}
inline db dis3(line A, line B) {
	if(jiao(A, B)) return 0;
	return min(min(dis2(A.u, B), dis2(A.v, B)), min(dis2(B.u, A), dis2(B.v, A)));
}
int n;
int main() {
	int T; scanf("%d", &T);
	while(T-->0) {
		scanf("%d", &n);
		for(int i = 1, A, B, C, D; i <= n; ++i) {
			scanf("%d%d%d%d", &A, &B, &C, &D);
			L[i] = line(point(A, B), point(C, D));
			if(L[i].u.x > L[i].v.x) swap(L[i].u, L[i].v);
		}
		sort(L + 1, L + n + 1);
		db ans = dis3(L[1], L[2]);
		for(int i = 1; i <= n; ++i)
			for(int j = i+1; j <= n; ++j) {
				if(L[j].u.x - L[i].v.x > ans) break; //优化..
				ans = min(ans, dis3(L[i], L[j]));
			}
		printf("%.12f
", ans);
	}
}

HDU 6698 08.Coins

题意

略

题解

放上官方题解：

先将硬币组分成两类，第一类 ai > bi，第二类 ai ≤ bi，并记 g(x) 为从第一类硬币中符合限制地取出 x 枚硬币的最大价值和，令 h(x) 为从第二类硬币中符合限制地取出 x 枚硬币的最大价值和。
要求出 g，只需要将第一类的所有硬币按价值从大到小排序，则 g(x) 为前 x 个硬币的和。因为 ai > bi，可以发现在这个贪心方法中，如果选了 bi，则一定会先选了 ai；
要求出 h，需要观察到：第二类硬币中最多只有一组硬币，会选了 ai 而没有选 bi。因为如果有两组硬币i, j, 满足 ai ≤ bi, aj ≤ bj，且某个方案只选了 ai, aj 而没有选 bi, bj，不失一般性，令 ai ≥ aj，那么有 bi ≥ ai ≥ aj，所以选 ai, bi 而不选 aj , bj 是个更优解，这时需要按 a + b 的值从大到小将第二类的每组硬币排序，则 h(2x) 就是前 x 组硬币的和，h(2x + 1) 就是“前 x 组加上不在前 x 组里的最大的 a”以及“前 x + 1 组中减去前 x + 1 组中最小的 b”两种方案中的较大值。
求出 g, h 之后, 立即有 $f(x) = max_{x1+x2=x} g(x1)+h(x2)$ ，朴素地计算这个 max 卷积只能做到 O(n^2)，但是观察到 g 是个单调递增的凸函数而 h 是个单调递增函数，设 $f(i) = max_{j}h(j)+g(i-j)$ ，可以证明 p(x) 有单调性，利用决策单调性即可优化到 O(n log n)。

CODE

#include <bits/stdc++.h>
using namespace std;
#define x first
#define y second
#define pii pair<int,int>
const int MAXN = 100005;
const int MAXM = 200005;
const int INF = 1<<30;
pii p[MAXN];
int g[MAXM], h[MAXM], f[MAXM];
int n, N, arr[MAXM], cur, tot;
inline bool cmpg(int a, int b) { return a > b; }
inline bool cmph(pii a, pii b) { return a.x+a.y > b.x+b.y; }
void Calc_g() {
	memset(g, -0x7f, sizeof g); g[0] = 0;
	sort(arr + 1, arr + cur + 1, cmpg);
	for(int i = 1; i <= cur; ++i) g[i] = g[i-1] + arr[i];
}
int Mxa[MAXN], Mnb[MAXN];
void Calc_h() {
	memset(h, -0x7f, sizeof h); h[0] = 0;
	sort(p + 1, p + tot + 1, cmph);
	Mxa[tot+1] = -INF;
	for(int i = tot; i >= 1; --i) Mxa[i] = max(Mxa[i+1], p[i].x);
	Mnb[0] = INF;
	for(int i = 1; i <= tot; ++i) Mnb[i] = min(Mnb[i-1], p[i].y);
	
	for(int i = 1; i <= tot; ++i)
		h[i<<1] = h[(i-1)<<1] + p[i].x + p[i].y;
	for(int i = 0; i <= tot; ++i) {
		h[2*i+1] = max(h[2*i+1], h[i<<1] + Mxa[i+1]);
		if(i)
		h[2*i-1] = max(h[2*i-1], h[i<<1] - Mnb[i]);
	}
}

int q[MAXM], k[MAXM];
int calc(int i, int j) { return h[j] + g[i-j]; }
int getk(int ii, int jj) {
	int l = jj, r = N, mid;
	while(l < r) {
		mid = (l + r) >> 1;
		if(calc(mid, ii) <= calc(mid, jj)) r = mid;
		else l = mid+1;
	}
	if(calc(l, ii) <= calc(l, jj)) return l;
	return r+1;
}
void Calc_f() {
	f[0] = 0;
	memset(k, 0, sizeof k);
	int s = 1, t = 0;
	q[++t] = 0;
	for(int i = 1; i <= N; ++i) {
		while(s < t && calc(k[t-1], q[t]) <= calc(k[t-1], i)) --t;
		k[t] = getk(q[t], i); q[++t] = i;
		while(s < t && k[s] <= i) ++s;
		f[i] = calc(i, q[s]);
	}
}
int main() {
	int T; scanf("%d", &T);
	while(T-->0) {
		scanf("%d", &n); N = n<<1;
		tot = cur = 0;
		for(int i = 1, a, b; i <= n; ++i) {
			scanf("%d%d", &a, &b);
			if(a > b) arr[++cur] = a, arr[++cur] = b;
			else p[++tot] = make_pair(a, b);
		}
		Calc_g(); Calc_h(); Calc_f();
		for(int i = 1; i <= N; ++i)
			printf("%d%c", f[i], " 
"[i==N]);
	}
}

HDU 6699 09.Block Breaker

题意

略

题解

模拟

CODE

#include <bits/stdc++.h>
using namespace std;

const int MAXN = 2005;
int n, m, k, ans;
bool v[MAXN][MAXN];
void dfs(int x, int y) {
	if(x < 1 || y < 1 || x > n || y > m || !v[x][y]) return;
	if(v[x-1][y] + v[x+1][y] < 2 && v[x][y-1] + v[x][y+1] < 2) {
		++ans;
		v[x][y] = 0;
		dfs(x+1, y);
		dfs(x, y+1);
		dfs(x-1, y);
		dfs(x, y-1);
	}
}
int main () {
	int T;
	scanf("%d", &T);
	while(T--) {
		scanf("%d%d%d", &n, &m, &k);
		int x, y;
		memset(v, 1, sizeof v);
		while(k--) {
			scanf("%d%d", &x, &y);
			ans = 0;
			if(v[x][y]) {
				++ans;
				v[x][y] = 0;
				dfs(x+1, y);
				dfs(x, y+1);
				dfs(x-1, y);
				dfs(x, y-1);
			}
			printf("%d
", ans);
		}
	}
}

HDU 6701 11.Make Rounddog Happy

题意

略

题解

分治，考虑跨过最大值的区间。枚举较小的一边。预处理一些东西后就可以 $O(1)$ 查询固定一个端点的答案。

需要预处理的：
1.st表求区间最大值
2.每个位置往左和往右最远能走多少没有相同的数字

CODE

#include <bits/stdc++.h>
using namespace std;

const int MAXN = 300005;
const int LOG = 19;
long long ans;
int Lg[MAXN], n, k, a[MAXN], L[MAXN], R[MAXN], lst[MAXN];
pair<int,int>f[MAXN][LOG];
inline int qmx(int l, int r) {
	int t = Lg[r-l+1];
	return max(f[l][t], f[r-(1<<t)+1][t]).second;
}
void solve(int l, int r) {
	if(l > r) return;
	int pos = qmx(l, r), Min = max(a[pos]-k, 1);
	
	if(pos-l < r-pos) {
		for(int i = l, rr, ll; i <= pos; ++i) {
			rr = min(r, R[i]);
			ll = max(pos, i+Min-1);
			ans += ll <= rr ? rr-ll+1 : 0;
		}
	}
	else {
		for(int i = r, ll, rr; i >= pos; --i) {
			ll = max(l, L[i]);
			rr = min(pos, i-Min+1);
			ans += ll <= rr ? rr-ll+1 : 0;
		}
	}
	solve(l, pos-1);
	solve(pos+1, r);
}
signed main () {
	Lg[0] = -1;
	for(int i = 1; i < MAXN; ++i) Lg[i] = Lg[i>>1] + 1;
	int T;
	scanf("%d", &T);
	while(T--) {
		scanf("%d%d", &n, &k);
		memset(lst, 0, sizeof lst);
		int now = 1;
		for(int i = 1; i <= n; ++i) {
			scanf("%d", &a[i]), f[i][0] = make_pair(a[i], i);
			if(lst[a[i]]) now = max(now, lst[a[i]]+1);
			L[i] = now;
			lst[a[i]] = i;
		}
		for(int j = 1; j <= Lg[n]; ++j)
			for(int i = 1; i+(1<<j)-1 <= n; ++i)
				f[i][j] = max(f[i][j-1], f[i+(1<<(j-1))][j-1]);
		memset(lst, 0, sizeof lst);
		now = n;
		for(int i = n; i >= 1; --i) {
			if(lst[a[i]]) now = min(now, lst[a[i]]-1);
			R[i] = now;
			lst[a[i]] = i;
		}
		ans = 0; solve(1, n);
		printf("%lld
", ans);
	}
}

2019 Multi-University Training Contest 10 HDU多校赛 题解

HDU 6691 01.Minimum Spanning Trees

题意

题解

CODE

HDU 6693 03.Valentine’s Day

题意

题解

CODE

HDU 6694 04.Play Games with Rounddog

题意+题解

CODE

HDU 6695 05.Welcome Party

题意

题解

CODE

HDU 6696 06.Dense Subgraph

题意

题解

CODE

HDU 6697 07.Closest Pair of Segments

题意

题解

CODE

HDU 6698 08.Coins

题意

题解

CODE

HDU 6699 09.Block Breaker

题意

题解

CODE

HDU 6701 11.Make Rounddog Happy

题意

题解

CODE

2019 Multi-University Training Contest 10 HDU多校赛题解