标签:sub for hid src 遍历 tin mic pow put
描述:
Given n points in the plane that are all pairwise distinct, a "boomerang" is a tuple of points (i, j, k) such that the distance between i and jequals the distance between i and k (the order of the tuple matters). Find the number of boomerangs. You may assume that n will be at most 500 and coordinates of points are all in the range [-10000, 10000] (inclusive).
示例:
Input: [[0,0],[1,0],[2,0]] Output: 2 Explanation: The two boomerangs are [[1,0],[0,0],[2,0]] and [[1,0],[2,0],[0,0]]
class Solution { public int numberOfBoomerangs(int[][] points) { int res = 0; for(int i = 0; i < points.length; i++){ Map<Double, Integer> map = new HashMap<>(); for(int j = 0; j < points.length; j++){ Double distance = Math.pow(points[i][0] - points[j][0], 2) + Math.pow(points[i][1] - points[j][1], 2); if(map.containsKey(distance)){ map.put(distance, map.get(distance) + 1); }else{ map.put(distance, 1); } } for(Integer count : map.values()){ res += count * (count - 1); } } return res; } }
Map<Double, Integer> map = new HashMap<>(); for(int i = 0; i < points.length; i++){ for(int j = 0; j < points.length; j++){ Double distance = Math.pow(points[i][0] - points[j][0], 2) + Math.pow(points[i][1] - points[j][1], 2); if(map.containsKey(distance)){ map.put(distance, map.get(distance) + 1); }else{ map.put(distance, 1); } } for(Integer count : map.values()){ res += count * (count - 1); } map.clear(); }
leetcode447-Number of Boomerangs
标签:sub for hid src 遍历 tin mic pow put
原文地址:https://www.cnblogs.com/clairexxx/p/10486905.html
