题意:从四面任意点出发,有若干障碍门,问最少要轰掉几扇门才能到达终点
分析:枚举入口点,也就是线段的两个端点,然后选取与其他线段相交点数最少的 + 1就是答案。特判一下n == 0的时候
/************************************************ * Author :Running_Time * Created Time :2015/10/26 星期一 16:30:26 * File Name :POJ_1066.cpp ************************************************/ #include <cstdio> #include <algorithm> #include <iostream> #include <sstream> #include <cstring> #include <cmath> #include <string> #include <vector> #include <queue> #include <deque> #include <stack> #include <list> #include <map> #include <set> #include <bitset> #include <cstdlib> #include <ctime> using namespace std; #define lson l, mid, rt << 1 #define rson mid + 1, r, rt << 1 | 1 typedef long long ll; const int N = 33; const int INF = 0x3f3f3f3f; const int MOD = 1e9 + 7; const double EPS = 1e-10; const double PI = acos (-1.0); int dcmp(double x) { //三态函数,减少精度问题 if (fabs (x) < EPS) return 0; else return x < 0 ? -1 : 1; } struct Point { //点的定义 double x, y; Point (double x=0, double y=0) : x (x), y (y) {} Point operator + (const Point &r) const { //向量加法 return Point (x + r.x, y + r.y); } Point operator - (const Point &r) const { //向量减法 return Point (x - r.x, y - r.y); } Point operator * (double p) { //向量乘以标量 return Point (x * p, y * p); } Point operator / (double p) { //向量除以标量 return Point (x / p, y / p); } bool operator < (const Point &r) const { //点的坐标排序 return x < r.x || (x == r.x && y < r.y); } bool operator == (const Point &r) const { //判断同一个点 return dcmp (x - r.x) == 0 && dcmp (y - r.y) == 0; } }; typedef Point Vector; //向量的定义 Point read_point(void) { //点的读入 double x, y; scanf ("%lf%lf", &x, &y); return Point (x, y); } double dot(Vector A, Vector B) { //向量点积 return A.x * B.x + A.y * B.y; } double cross(Vector A, Vector B) { //向量叉积 return A.x * B.y - A.y * B.x; } double polar_angle(Vector A) { //向量极角 return atan2 (A.y, A.x); } double length(Vector A) { //向量长度,点积 return sqrt (dot (A, A)); } double angle(Vector A, Vector B) { //向量转角,逆时针,点积 return acos (dot (A, B) / length (A) / length (B)); } Vector rotate(Vector A, double rad) { //向量旋转,逆时针 return Vector (A.x * cos (rad) - A.y * sin (rad), A.x * sin (rad) + A.y * cos (rad)); } Vector nomal(Vector A) { //向量的单位法向量 double len = length (A); return Vector (-A.y / len, A.x / len); } Point line_line_inter(Point p, Vector V, Point q, Vector W) { //两直线交点,参数方程 Vector U = p - q; double t = cross (W, U) / cross (V, W); return p + V * t; } double point_to_line(Point p, Point a, Point b) { //点到直线的距离,两点式 Vector V1 = b - a, V2 = p - a; return fabs (cross (V1, V2)) / length (V1); } double point_to_seg(Point p, Point a, Point b) { //点到线段的距离,两点式 if (a == b) return length (p - a); Vector V1 = b - a, V2 = p - a, V3 = p - b; if (dcmp (dot (V1, V2)) < 0) return length (V2); else if (dcmp (dot (V1, V3)) > 0) return length (V3); else return fabs (cross (V1, V2)) / length (V1); } Point point_line_proj(Point p, Point a, Point b) { //点在直线上的投影,两点式 Vector V = b - a; return a + V * (dot (V, p - a) / dot (V, V)); } bool can_inter(Point a1, Point a2, Point b1, Point b2) { //判断线段相交,两点式 double c1 = cross (a2 - a1, b1 - a1), c2 = cross (a2 - a1, b2 - a1), c3 = cross (b2 - b1, a1 - b1), c4 = cross (b2 - b1, a2 - b1); return dcmp (c1) * dcmp (c2) < 0 && dcmp (c3) * dcmp (c4) < 0; } bool on_seg(Point p, Point a1, Point a2) { //判断点在线段上,两点式 return dcmp (cross (a1 - p, a2 - p)) == 0 && dcmp (dot (a1 - p, a2 - p)) < 0; } double area_triangle(Point a, Point b, Point c) { //三角形面积,叉积 return fabs (cross (b - a, c - a)) / 2.0; } double area_poly(Point *p, int n) { //多边形面积,叉积 double ret = 0; for (int i=1; i<n-1; ++i) { ret += fabs (cross (p[i] - p[0], p[i+1] - p[0])); } return ret / 2; } /* 点集凸包 */ vector<Point> convex_hull(vector<Point> &P) { sort (P.begin (), P.end ()); int n = P.size (), k = 0; vector<Point> ret (n * 2); for (int i=0; i<n; ++i) { while (k > 1 && cross (ret[k-1] - ret[k-2], P[i] - ret[k-1]) <= 0) k--; ret[k++] = P[i]; } for (int i=n-2, t=k; i>=0; --i) { while (k > t && cross (ret[k-1] - ret[k-2], P[i] - ret[k-1]) <= 0) k--; ret[k++] = P[i]; } ret.resize (k-1); return ret; } struct Circle { Point c; double r; Circle () {} Circle (Point c, double r) : c (c), r (r) {} Point point(double a) { return Point (c.x + cos (a) * r, c.y + sin (a) * r); } }; struct Line { Point p; Vector v; double r; Line () {} Line (const Point &p, const Vector &v) : p (p), v (v) { r = polar_angle (v); } Point point(double a) { return p + v * a; } }; Point s[N], e[N]; Point p; int cnt1[N], cnt2[N]; int main(void) { int n; scanf ("%d", &n); for (int i=1; i<=n; ++i) { s[i] = read_point (); e[i] = read_point (); } p = read_point (); if (!n) { printf ("Number of doors = %d\n", 1); return 0; } int ans = INF; for (int i=1; i<=n; ++i) { for (int j=1; j<=n; ++j) { if (i == j) continue; if (can_inter (p, s[i], s[j], e[j])) { cnt1[i]++; } if (can_inter (p, e[i], s[j], e[j])) { cnt2[i]++; } } ans = min (ans, min (cnt1[i], cnt2[i])); } printf ("Number of doors = %d\n", ans + 1); //cout << "Time elapsed: " << 1.0 * clock() / CLOCKS_PER_SEC << " s.\n"; return 0; }
时间: 2024-10-24 20:22:57