黑书上的一道例题:如果走最短路则会碰到点,除非中间没有障碍. 这样把能一步走到的点两两连边,然后跑SPFA即可. #include<cmath> #include<cstdio> #include<cstring> #include<algorithm> #define N 100003 using namespace std; struct Point { double x, y; Point(double _x = 0, double _y = 0) :…

  The Doors Time Limit: 1000MS   Memory Limit: 10000K Total Submissions: 7430   Accepted: 2915 Description You are to find the length of the shortest path through a chamber containing obstructing walls. The chamber will always have sides at x = 0, x…

题目: Description You are to find the length of the shortest path through a chamber containing obstructing walls. The chamber will always have sides at x = 0, x = 10, y = 0, and y = 10. The initial and final points of the path are always (0, 5) and (10…

The Doors Time Limit: 1000MS   Memory Limit: 10000K Total Submissions: 5210   Accepted: 2124 Description You are to find the length of the shortest path through a chamber containing obstructing walls. The chamber will always have sides at x = 0, x =…

题目链接:http://poj.org/problem?id=1556 Time Limit: 1000MS Memory Limit: 10000K Description You are to find the length of the shortest path through a chamber containing obstructing walls. The chamber will always have sides at x = 0, x = 10, y = 0, and y…

链接:http://poj.org/problem?id=1556 The Doors Time Limit: 1000MS   Memory Limit: 10000K Total Submissions: 6216   Accepted: 2495 Description You are to find the length of the shortest path through a chamber containing obstructing walls. The chamber wil…

Pick-up sticks Time Limit: 3000MS   Memory Limit: 65536K Total Submissions: 10330   Accepted: 3833 Description Stan has n sticks of various length. He throws them one at a time on the floor in a random way. After finishing throwing, Stan tries to fin…

POJ 1556 - The Doors题意:    在 10x10 的空间里有很多垂直的墙,不能穿墙,问你从(0,5) 到 (10,5)的最短距离是多少.    分析:        要么直达,要么一定是墙的边缘点之间以及起始点.终点的连线.        所以先枚举墙上每一点到其他点的直线可达距离,就是要判定该线段是否与墙相交(不含端点).        然后最短路. #include <iostream> #include <cstdio> #include <cmat…

思路:暴力判断每个点连成的线段是否被墙挡住,构建图.求最短路. 思路很简单,但是实现比较复杂,模版一定要可靠. #include<stdio.h> #include<string.h> #include<math.h> #include<iostream> using namespace std; ,M=N*N; const double INF=0x3f3f3f3f; ; int sgn(double x){ ; ) ; ; } struct point{…

题目传送门 题意:从(0, 5)走到(10, 5),中间有一些门,走的路是直线,问最短的距离 分析:关键是建图,可以保存所有的点,两点连通的条件是线段和中间的线段都不相交,建立有向图,然后用Dijkstra跑最短路.好题! /************************************************ * Author :Running_Time * Created Time :2015/10/24 星期六 09:48:49 * File Name :POJ_1556.cpp…

LINK 题意:在$10*10$的几何平面内,给出n条垂直x轴的线,且在线上开了两个口,起点为$(0, 5)$,终点为$(10, 5)$,问起点到终点不与其他线段相交的情况下的最小距离. 思路:将每个开口的两端点作为一个节点,再枚举点与点间能否直接到达(判相交),以此建图求最短路. /** @Date : 2017-07-11 16:17:31 * @FileName: POJ 1556 线段交+dijkstra 计算几何.cpp * @Platform: Windows * @Author :…

Treasure Hunt Time Limit: 1000MS   Memory Limit: 10000K Total Submissions: 7857   Accepted: 3247 Description Archeologists from the Antiquities and Curios Museum (ACM) have flown to Egypt to examine the great pyramid of Key-Ops. Using state-of-the-ar…

POJ 2826 An Easy Problem?! -- 思路来自kuangbin博客 下面三种情况比较特殊,特别是第三种 G++怎么交都是WA,同样的代码C++A了 #include <iostream> #include <cstdio> #include <cstring> #include <algorithm> #include <cmath> using namespace std; const double eps = 1e-8;…

一定要注意位运算的优先级!!!我被这个卡了好久 判断线段相交模板题. 叉积,点积,规范相交,非规范相交的简单模板 用了“链表”优化之后还是$O(n^2)$的暴力,可是为什么能过$10^5$的数据? #include<cmath> #include<cstdio> #include<cstring> #include<algorithm> #define N 100005 using namespace std; struct Point { double x…

#include <iostream> #include <stdio.h> #include <string.h> #include <algorithm> #include <queue> #include <map> #include <vector> #include <set> #include <string> #include <math.h> using namespac…

Pick-up sticks Time Limit: 3000MS   Memory Limit: 65536K Total Submissions: 7699   Accepted: 2843 Description Stan has n sticks of various length. He throws them one at a time on the floor in a random way. After finishing throwing, Stan tries to find…

POJ_1066_Treasure Hunt_判断线段相交 Description Archeologists from the Antiquities and Curios Museum (ACM) have flown to Egypt to examine the great pyramid of Key-Ops. Using state-of-the-art technology they are able to determine that the lower floor of the…

题目链接:POJ 3805 Problem Description Numbers of black and white points are placed on a plane. Let's imagine that a straight line of infinite length is drawn on the plane. When the line does not meet any of the points, the line divides these points into t…

传统解法 题目来自 leetcode 335. Self Crossing. 题意非常简单,有一个点,一开始位于 (0, 0) 位置,然后有规律地往上,左,下,右方向移动一定的距离,判断是否会相交(self crossing). 一个很容易想到的方案就是求出所有线段,然后用 O(n^2) 的时间复杂度两两判断线段是否相交,而线段相交的判断,可以列个二元一次方程求解(交点).这个解法非常容易想到,但是实际操作起来比较复杂,接下去介绍利用向量的解法. 向量解法 简单回顾下向量,具体的自行谷歌.向量就…

Intersection Time Limit: 1000MS   Memory Limit: 10000K Total Submissions: 9996   Accepted: 2632 Description You are to write a program that has to decide whether a given line segment intersects a given rectangle. An example: line: start point: (4,9) …

先说一下题目大意:给定一些线段,这些线段顺序编号,这时候如果两条线段相交,则把他们加入到一个集合中,问给定一个线段序号,求在此集合中有多少条线段. 这个题的难度在于怎么判断线段相交,判断玩相交之后就是怎么找个他们之间的联系,这时候就要用到并查集了. 步骤: 1.判断两条线段相交 2. 用并查集实现查找线段个数和添加到集合中 关于这个判断线段相交的问题.我搞了一晚上加上一下午,刚开始自己想了一种数学上的相交,就是先求出两条线段所在的线性方程,然后求出他们的交点,最后在判断这个交点在不在这两个线段之…

传送门:You can Solve a Geometry Problem too 题意:给n条线段,判断相交的点数. 分析:判断线段相交模板题,快速排斥实验原理就是每条线段代表的向量和该线段的一个端点与 另一条线段的两个端点构成的两个向量求叉积,如果线段相交那么另一条线段两个端点必定在该线段的两边,则该线段代表的向量必定会顺时针转一遍逆时针转一遍,叉积必定会小于等于0,同样对另一条线段这样判断一次即可. #include <algorithm> #include <cstdio>…

POJ_2653_Pick-up sticks_判断线段相交 Description Stan has n sticks of various length. He throws them one at a time on the floor in a random way. After finishing throwing, Stan tries to find the top sticks, that is these sticks such that there is no stick o…

POJ_1556_The Doors_判断线段相交+最短路 Description You are to find the length of the shortest path through a chamber containing obstructing walls. The chamber will always have sides at x = 0, x = 10, y = 0, and y = 10. The initial and final points of the path…

POJ2653 判断线段相交的方法 先判断直线是否相交 再判断点是否在线段上 复杂度是常数的 题目保证最后答案小于1000 故从后往前尝试用后面的线段 "压"前面的线段 排除不可能的答案 就可以轻松AC了. #include<iostream> #include<stdio.h> #include<stdlib.h> #include<string.h> #include<math.h> #include<algorit…

题意不难理解,给出多个多边形,输出多边形间的相交情况(嵌套不算相交),思路也很容易想到.枚举每一个图形再枚举每一条边 恶心在输入输出,不过还好有sscanf(),不懂可以查看cplusplus网站 根据正方形对角的两顶点求另外两个顶点公式: x2 = (x1+x3-y3+y1)/2; y2 = (x3-x1+y1+y3)/2; x4= (x1+x3+y3-y1)/2; y4 = (-x3+x1+y1+y3)/2; 还有很多细节要处理 #include <iostream> #include &…

题目链接:http://poj.org/problem?id=1066 Time Limit: 1000MS Memory Limit: 10000K Description Archeologists from the Antiquities and Curios Museum (ACM) have flown to Egypt to examine the great pyramid of Key-Ops. Using state-of-the-art technology they are…

The Doors Time Limit: 1000MS   Memory Limit: 10000K Total Submissions: 6734   Accepted: 2670 Description You are to find the length of the shortest path through a chamber containing obstructing walls. The chamber will always have sides at x = 0, x =…

题目链接:http://poj.org/problem?id=2653 Time Limit: 3000MS Memory Limit: 65536K Description Stan has n sticks of various length. He throws them one at a time on the floor in a random way. After finishing throwing, Stan tries to find the top sticks, that…

<题目链接> 题目大意: 给出一些线段,判断是存在直线,使得该直线能够经过所有的线段.. 解题思路: 如果有存在这样的直线,过投影相交区域作直线的垂线,该垂线必定与每条线段相交,问题转化为问是否存在一条线和所有线段相交. 如果存在这么一条直线,那么该直线一定能够移成经过两个端点的形式.枚举所有线段的两个端点,判断该直线和所有线段是否相交即可. #include <iostream> #include <math.h> #include <cstdio> us…