package LeetCode_785 import java.util.* /** * 785. Is Graph Bipartite? (是否二分图) * https://leetcode.com/problems/is-graph-bipartite/description/ * * Given an undirected graph, return true if and only if it is bipartite. Recall that a graph is bipartite if we can split it's set of nodes into two independent subsets A and B such that every edge in the graph has one node in A and another node in B. The graph is given in the following form: graph[i] is a list of indexes j for which the edge between nodes i and j exists. Each node is an integer between 0 and graph.length - 1. There are no self edges or parallel edges: graph[i] does not contain i, and it doesn't contain any element twice. Example 1: Input: [[1,3], [0,2], [1,3], [0,2]] Output: true Explanation: The graph looks like this: 0----1 | | | | 3----2 We can divide the vertices into two groups: {0, 2} and {1, 3}. Example 2: Input: [[1,2,3], [0,2], [0,1,3], [0,2]] Output: false Explanation: The graph looks like this: 0----1 | | | | 3----2 We cannot find a way to divide the set of nodes into two independent subsets. Note: graph will have length in range [1, 100]. graph[i] will contain integers in range [0, graph.length - 1]. graph[i] will not contain i or duplicate values. The graph is undirected: if any element j is in graph[i], then i will be in graph[j]. * */ class Solution { /* * solution: BFS, Time complexity:O(V+E), Space complexity:O(V) * */ private var colorArray: IntArray? = null fun isBipartite(graph: Array<IntArray>): Boolean { val n = graph.size //set the color array //-1:no color, 0:red colorArray = IntArray(n,{-1}) for (i in 0 until n) { if (colorArray!![i] == -1) { colorArray!![i] = 0 if (!computingColor(graph, i)) { return false } } } return true } private fun computingColor(graph: Array<IntArray>, current: Int): Boolean { val queue = LinkedList<Int>() queue.offer(current) while (queue.isNotEmpty()) { val temp = queue.poll() val c = colorArray!![temp] //find all non-color adjacent for (i in graph[temp]) { if (colorArray!![i] == -1) { //to give opposite color to neighbour colorArray!![i] = (c.xor(1)) queue.offer(i) } else { if (colorArray!![i]!=(c.xor(1))){ return false } } } } return true } }