poj1556 The Doors（叉积判断线段相交）

【poj1556 The Doors（叉积判断线段相交）】的更多相关文章

poj1556 The Doors（叉积判断线段相交）

题目链接:https://vjudge.net/problem/POJ-1556 题意:在一个矩形内,起点(0,5)和终点(10,5)是固定的,中间有n个道墙(n<=18),每道墙有两个門,求起点到终点的最短路. 思路: 最多有4*n+2个点,枚举所有点对(p1,p2),用叉积判断线段p1p2和中间的墙是否相交,不相交那么更新距离为两点的距离,否则为inf.更新所有的边之后用floyd得到最短路.答案即dist[0][4*n+1].时间复杂度O(n^3). AC code: #include<…

POJ 1066--Treasure Hunt(判断线段相交）

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 2653】Pick-up sticks 判断线段相交

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…

hdu 1086（判断线段相交）

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_1066_Treasure Hunt_判断线段相交

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…

POJ_2653_Pick-up sticks_判断线段相交

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…