• [LeetCode]447 Number of Boomerangs


    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 iand j equals 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).

    Example:

    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]]


    解法:
    双重循环,记录每个点和其他的点的距离。
    public int numberOfBoomerangs(int[][] points) {
            int result = 0;
            for(int i = 0; i< points.length; i++){
                Map<Integer,Integer> hash = new HashMap<>();
                for( int j = 0; j< points.length; j++){
                    if(i == j){
                        continue;
                    }else{
                        int dist = getDistance(points[i],points[j]);
                        hash.put(dist,hash.getOrDefault(dist,0)+1);
                    }
                }
                for(Integer val : hash.values()){
                    result += val * (val - 1);
                }
            }
            return result;
        }
    
        int getDistance(int[] p1, int[] p2){
            int x = p1[0] - p2[0];
            int y = p1[1] - p2[1];
            return x*x + y*y;
        }
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  • 原文地址:https://www.cnblogs.com/javanerd/p/6058195.html
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