【BZOJ 3051】【UOJ #57】【WC 2013】平面图

http://www.lydsy.com/JudgeOnline/problem.php?id=3051
http://uoj.ac/problem/57
这道题需要平面图转对偶图,点定位,最小生成树上的倍增(NOIP2013货车运输)3个步骤。
最后一个很简单了,前两个比较麻烦。。
点定位可以用玄学的梯形剖分(并不会orz),但这里可以离线用扫描线,类似圆的异或并那道题。
平面图转对偶图要把一条边拆成两条有向边,把每条有向边<u,v>找出和它夹角最小的<v,x>,这个过程要。。。。。。。。
算了不说了,网上的题解比我说得绝对要好得多,他们的题解也十分清晰:vfk的题解ydc的题解zky学长的题解
这道题细节巨多,我在set的重载运算符上坑了好久,还有set的判重机制。
据yveh说:在set里判断\(A=B\)为真要满足\(A<B\)为假且\(B<A\)为假。
一开始没注意这个,只是比较和横坐标全局变量的交点的高低,结果扫描线扫到一个点时先加进去了一些从这个点出发的向量,后来扫到进入这个点的向量时把从这个点出发的向量删除了QAQ。最后把删除和插入分开写了,惨啊。。。
代码有272行,好长啊。。
好久没写这么长的代码了。。
或者说从来没写过这么长的代码。。。。。

#include<set>
#include<cmath>
#include<vector>
#include<cstdio>
#include<cstring>
#include<algorithm>
using namespace std;
const int N = 100003;
typedef long long ll;
int in() {
	int k = 0, fh = 1; char c = getchar();
	for(; c < '0' || c > '9'; c = getchar())
		if (c == '-') fh = -1;
	for(; c >= '0' && c <= '9'; c = getchar())
		k = k * 10 + c - 48;
	return k * fh;
}

int n, M, Areanum;

struct Point {
	int x, y;
	Point(int _x = 0, int _y = 0)
		: x(_x), y(_y) {}
	Point operator + (const Point &A) const {
		return Point(x + A.x, y + A.y);
	}
	Point operator - (const Point &A) const {
		return Point(x - A.x, y - A.y);
	}
} P[N * 3];

int tot = 0;

namespace INIT {
	struct node {int nxt, to, h, from;} E[N << 1];
	int cnt = 1, nt[N << 1], mark[N << 1], st[N << 1], point[N];
	
	struct data {
		int id; double num;
		data(int _id = 0, double _num = 0) : id(_id), num(_num) {}
		bool operator < (const data &A) const {
			return num < A.num;
		}
	} D[N];
	
	void ins(int u, int v, int w) {E[++cnt] = (node) {point[u], v, w, u}; point[u] = cnt;}
	
	ll Cross(int a, int b) {
		return (ll) P[a].x * P[b].y - (ll) P[a].y * P[b].x;
	}
	
	void init() {
		int m, top, tmp, from;
		ll Cro;
		for (int i = 1; i <= n; ++i) {
			m = 0;
			for (int j = point[i]; j; j = E[j].nxt)
				D[++m] = data(j, atan2(double(P[E[j].to].y - P[i].y), double(P[E[j].to].x - P[i].x)));
			stable_sort(D + 1, D + m + 1);
			for (int j = 1; j < m; ++j)
				nt[D[j].id] = D[j + 1].id;
			nt[D[m].id] = D[1].id;
			
//			printf("---PointID = %d---m = %d---\n", i, m);
//			for(int j = 1; j <= m; ++j) printf("%d ", E[D[j].id].to);
//			puts("");
		}
		
		m = 0;
		for (int i = 2; i <= cnt; ++i)
			if (!mark[i]) {
				from = E[i].from;
				top = 1;
				st[1] = i;
				Cro = Cross(from, E[i].to);
				tmp = nt[i ^ 1];
				while (E[tmp].to != from) {
					st[++top] = tmp;
					Cro += Cross(E[tmp].from, E[tmp].to);
					tmp = nt[tmp ^ 1];
				}
				Cro += Cross(E[tmp].from, from);
				
				if (Cro > 0) {
					mark[tmp] = -1;
					while (top) mark[st[top--]] = -1;
				} else {
					mark[tmp] = ++m;
					while (top) mark[st[top--]] = m;
				}
			}
		
//		for (int i = 2; i <= cnt; ++i)
//			printf("%d ---> %d RightSide : %d\n", E[i].from, E[i].to, mark[i]);
		
		Areanum = m;
	}
}

namespace MST {
	struct Ed {
		int u, v, w;
		bool operator < (const Ed &A) const {
			return w < A.w;
		}
	} EDGE[N << 1];
	struct node {int nxt, to, w;} E[N << 1];
	int tot2 = 0, cnt = 0, deep[N], f[N][18], c[N][18], point[N], fa[N];
	
	void add(int u, int v, int w) {
		EDGE[++tot2] = (Ed) {u, v, w};
//		printf("%d <===dis = %d===> %d\n", u, w, v);
	}
	void ins(int u, int v, int w) {E[++cnt] = (node) {point[u], v, w}; point[u] = cnt;}
	
	int find(int x) {return fa[x] == x ? x : fa[x] = find(fa[x]);}
	
	void dfs(int x) {
		for (int i = point[x]; i; i = E[i].nxt)
			if (E[i].to != f[x][0]) {
				f[E[i].to][0] = x;// printf("%d --fadis = %d--> %d\n", E[i].to, E[i].w, x);
				c[E[i].to][0] = E[i].w;
				deep[E[i].to] = deep[x] + 1;
				dfs(E[i].to);
			}
	}
	
	void init() {
		stable_sort(EDGE + 1, EDGE + tot2 + 1);
		for (int i = 1; i <= Areanum; ++i)
			fa[i] = i;
		
		int x, y, fx, fy, con = 0;
		for (int i = 1; i <= tot2; ++i) {
			x = EDGE[i].u; y = EDGE[i].v;
			fx = find(x); fy = find(y);
			if (fx != fy) {
				++con;
				if (con == Areanum)	break;
				fa[fx] = fy;
				ins(x, y, EDGE[i].w);
				ins(y, x, EDGE[i].w);
			}
		}
		
		for (int i = 1; i <= Areanum; ++i)
			if (!deep[i]) dfs(i);
		
		for (int j = 1; j <= 17; ++j)
			for (int i = 1; i <= Areanum; ++i) {
				f[i][j] = f[f[i][j - 1]][j - 1];
				c[i][j] = max(c[i][j - 1], c[f[i][j - 1]][j - 1]);
			}
	}
	
	int Query(int u, int v) {
		if (find(u) != find(v)) return -1;
		if (deep[u] < deep[v]) swap(u, v);
		int d = deep[u] - deep[v], ans = 0;
		for (int i = 17; i >= 0; --i)
			if ((1 << i) & d) {
				ans = max(ans, c[u][i]);
				u = f[u][i];
			}
		if (u == v) return ans;
		for (int i = 17; i >= 0; --i)
			if (f[u][i] != f[v][i]) {
				ans = max(ans, max(c[u][i], c[v][i]));
				u = f[u][i];
				v = f[v][i];
			}
		return max(ans, max(c[u][0], c[v][0]));
	}
}

int id[N * 3], nowx, rfl[N * 3];

bool cmpx(int x, int y) {
	return P[x].x == P[y].x ? x < y : P[x].x < P[y].x;
}

struct setnode {
	Point u, v; int kind;
	setnode(Point _u = Point(0, 0), Point _v = Point(0, 0), int _kind = 0)
		: u(_u), v(_v), kind(_kind) {}
};

set <setnode> S;
set <setnode> :: iterator tmp;

bool operator < (setnode A, setnode B) {
	double kA = double(A.u.y) + double(nowx - A.u.x) / double(A.v.x) * A.v.y;
	double kB = double(B.u.y) + double(nowx - B.u.x) / double(B.v.x) * B.v.y;
	if (kA != kB) return kA < kB;
	else return double(A.v.y) / double(A.v.x) < double(B.v.y) / double(B.v.x);
}

int main() {
	n = in(); M = in();
	int x, y, z;
	for (int i = 1; i <= n; ++i) {
		x = in() << 1; y = in() << 1;
		P[++tot] = Point(x, y);
	}
	
	for (int i = 1; i <= M; ++i) {
		x = in(); y = in(); z = in();
		INIT::ins(x, y, z);
		INIT::ins(y, x, z);
	}
	
	INIT::init();
	
	z = INIT::cnt;
	for (int i = 2; i <= z; i += 2)
		if (INIT::mark[i] != -1 && INIT::mark[i ^ 1] != -1)
			MST::add(INIT::mark[i], INIT::mark[i ^ 1], INIT::E[i].h);
	
	MST::init();
	
	int q = in(); double lx, ly;
	for (int i = 1; i <= q; ++i) {
		scanf("%lf%lf", &lx, &ly);
		P[++tot] = Point(lx * 2, ly * 2);
		scanf("%lf%lf", &lx, &ly);
		P[++tot] = Point(lx * 2, ly * 2);
	}
	
	for (int i = 1; i <= tot; ++i)
		id[i] = i;
	
	int nowy, v;
	stable_sort(id + 1, id + tot + 1, cmpx);// for (int i = 1; i <= tot; ++i) printf("%d ", id[i]); puts("");
	for (int i = 1; i <= tot; ++i) {
		x = id[i]; nowx = P[x].x; nowy = P[x].y;
		if (x <= n) {
			for (int j = INIT::point[x]; j; j = INIT::E[j].nxt) {
				v = INIT::E[j].to;
				if (P[v].x == P[x].x) continue;
				if (P[v].x < P[x].x)
					S.erase(setnode(P[v], P[x] - P[v], INIT::mark[j ^ 1]));
			}
			for (int j = INIT::point[x]; j; j = INIT::E[j].nxt) {
				v = INIT::E[j].to;
				if (P[v].x == P[x].x) continue;
				if (P[v].x > P[x].x)
					S.insert(setnode(P[x], P[v] - P[x], INIT::mark[j]));
			}
		} else {
			tmp = S.upper_bound(setnode(P[x], Point(1, 0), 0));
//			printf("upper_bound (%d,%d)->(%d,%d)\n", nowx, nowy, nowx + 1, nowy);
			
			if (tmp == S.end()) {
				rfl[x] = -1;
//				printf("rfl[%d] = %d (%d,%d)->(%d,%d)\n", x, rfl[x], tmp->u.x, tmp->u.y, tmp->u.x + tmp->v.x, tmp->u.y + tmp->v.y);
			} else {
				rfl[x] = tmp->kind;
//				printf("rfl[%d] = %d (%d,%d)->(%d,%d)\n", x, rfl[x], tmp->u.x, tmp->u.y, tmp->u.x + tmp->v.x, tmp->u.y + tmp->v.y);
			}
		}
	}
	
	for (int i = n + 1; i <= tot; i += 2) {
		if (rfl[i] == -1 || rfl[i + 1] == -1)
			puts("-1");
		else
			printf("%d\n", MST::Query(rfl[i], rfl[i + 1]));
	}
	
	return 0;
}

没有删掉丑陋而愚蠢的调试信息(调个样例都调了半天写了一大堆调试信息这样以后注定要滚粗啊!)

posted @ 2016-10-17 21:27  abclzr  阅读(264)  评论(0编辑  收藏  举报