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  • 684. Redundant Connection

    In this problem, a tree is an undirected graph that is connected and has no cycles.

    The given input is a graph that started as a tree with N nodes (with distinct values 1, 2, ..., N), with one additional edge added. The added edge has two different vertices chosen from 1 to N, and was not an edge that already existed.

    The resulting graph is given as a 2D-array of edges. Each element of edges is a pair [u, v] with u < v, that represents an undirected edge connecting nodes u and v.

    Return an edge that can be removed so that the resulting graph is a tree of N nodes. If there are multiple answers, return the answer that occurs last in the given 2D-array. The answer edge [u, v] should be in the same format, with u < v.

    Example 1:

    Input: [[1,2], [1,3], [2,3]]
    Output: [2,3]
    Explanation: The given undirected graph will be like this:
      1
     / 
    2 - 3
    

    Example 2:

    Input: [[1,2], [2,3], [3,4], [1,4], [1,5]]
    Output: [1,4]
    Explanation: The given undirected graph will be like this:
    5 - 1 - 2
        |   |
        4 - 3
    

    Note:

    • The size of the input 2D-array will be between 3 and 1000.
    • Every integer represented in the 2D-array will be between 1 and N, where N is the size of the input array.

    Update (2017-09-26):
    We have overhauled the problem description + test cases and specified clearly the graph is an undirected graph. For the directed graph follow up please see Redundant Connection II). We apologize for any inconvenience caused.

    分析:

    字面意思是给一个图由n条边构成,去掉某条边后成为了树(无向无环连通图)

    题意是给一个图,由一条边一条边构成,当加入某条边后形成了环,我们现在要找到这条边。

    采用查并集(并查集(union find))来做,本质是一个数据结构(class),里面有int[ ] parent, int[ ] rank, 分别对应的是该数字的parent和rank,rank有点像height(size),所以可以union by rank OR union by size.

      查int find(x):找出x的parent并返回,具体实现是直到parent是它自己为止(因为初始化每个数parent都是他自己)

      并 boolean union(int x, int y):尝试合并x和y,如果能合并说明这条边的加入没有构成环,如果不能,说明他们拥有相同的parent,那很明显加入这条边会成环。

    具体实现是比较两个的parent,接着要compress一下,把rank低的合并到rank高的,记得更新rank

    初始化时多一位,因为数字是1-N

    class Solution {
        public int[] findRedundantConnection(int[][] edges) {
                DS ds = new DS(edges.length+1);
    
                for (int[] edge : edges) {
                    if (!ds.union(edge[0], edge[1])) return edge;
                }
                return new int[]{};
            }
    
            static class DS {
    
                private int[] parent;
                private int[] rank;
    
                public DS(int n) {
                    parent = new int[n];
                    rank = new int[n];
                    
                    for(int i = 0; i < n; i++) parent[i] = i;
                }
    
                public int find(int x) {
                    if(parent[x] != x){
                        parent[x] = find(parent[x]);
                    }
                    return parent[x];
                }
    
                // Return false if x, y are connected.
                public boolean union(int x, int y) {
                    int rootX = find(x);
                    int rootY = find(y);
                    if (rootX == rootY) return false;
    
                    // Make root of smaller rank point to root of larger rank.
      
                    if(rank[rootX] > rank[rootY]){
                        parent[rootY] = rootX;
                        rank[rootX]+=rank[rootY];
                    }
                    else{
                        parent[rootX] = rootY;
                        rank[rootY]+=rank[rootX];
                    }
                    return true;
                }
            }
    }

    https://leetcode.com/problems/redundant-connection/discuss/123819/Union-Find-with-Explanations-(Java-Python)

    union find看下https://www.geeksforgeeks.org/union-find-algorithm-set-2-union-by-rank/或者花花酱

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  • 原文地址:https://www.cnblogs.com/wentiliangkaihua/p/13197149.html
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