CF940A Points on the line 思维】的更多相关文章

A. Points on the line time limit per test 1 second memory limit per test 256 megabytes input standard input output standard output We've got no test cases. A big olympiad is coming up. But the problemsetters' number one priority should be adding anot…
2018-02-25 http://codeforces.com/contest/940/problem/A A. Points on the line time limit per test 1 second memory limit per test 256 megabytes input standard input output standard output We've got no test cases. A big olympiad is coming up. But the pr…
Max Points on a Line 题目描述: Given n points on a 2D plane, find the maximum number of points that lie on the same straight line. 解题思路: 1.首先由这么一个O(n^3)的方法,也就是算出每条线的方程(n^2),然后判断有多少点在每条线上(N).这个方法肯定是可行的,只是复杂度太高2.然后想到一个O(N)的,对每一个点,分别计算这个点和其他所有点构成的斜率,具有相同斜率最…
Max Points on a Line Submission Details 27 / 27 test cases passed. Status: Accepted Runtime: 472 ms Submitted: 0 minutes ago Submitted Code Language: java   Edit Code         /** * Definition for a point. * class Point { * int x; * int y; * Point() {…
Given n points on a 2D plane, find the maximum number of points that lie on the same straight line. Example 1: Input: [[1,1],[2,2],[3,3]] Output: 3 Explanation: ^ | | o | o | o +-------------> 0 1 2 3 4 Example 2: Input: [[1,1],[3,2],[5,3],[4,1],[2,3…
题目:Max Points on a line Given n points on a 2D plane, find the maximum number of points that lie on the same straight line. 这道题需要稍微转变一下思路,用斜率来实现,试想找在同一条直线上的点,怎么判断在一条直线上,唯一的方式也只有斜率可以完成,我开始没想到,后来看网友的思路才想到的,下面是简单的实现:其中有一点小技巧,利用map<double, int>来存储具有相同斜率…
Given n points on a 2D plane, find the maximum number of points that lie on the same straight line. Have you met this question in a real interview?     Example Given 4 points: (1,2), (3,6), (0,0), (1,3). The maximum number is 3. LeetCode上的原题,请参见我之前的博…
题目: Given n points on a 2D plane, find the maximum number of points that lie on the same straight line. 题解: 这道题就是给你一个2D平面,然后给你的数据结构是由横纵坐标表示的点,然后看哪条直线上的点最多. (1)两点确定一条直线 (2)斜率相同的点落在一条直线上 (3)坐标相同的两个不同的点 算作2个点 利用HashMap,Key值存斜率,Value存此斜率下的点的个数.同时考虑特殊情况,如…
Max Points on a Line Given n points on a 2D plane, find the maximum number of points that lie on the same straight line. 点和方向确定一条直线. 需要两重循环,第一重循环遍历起始点a,第二重循环遍历剩余点b. a和b如果不重合,就可以确定一条直线. 对于每个点a,构建 斜率->点数 的map. (1)b与a重合,以a起始的所有直线点数+1 (用dup统一相加) (2)b与a不重…
Max Points on a Line Given n points on a 2D plane, find the maximum number of points that lie on the same straight line. SOLUTION 1: 全部的点扫一次,然后计算每一个点与其它点之间的斜率. 创建一个MAP, KEY-VALUE是 斜率:线上的点的数目. 另外,注意重合的点,每次都要累加到每一条线上. 注意: 1. k = 0 + (double)(points[i].…