题解 | JAVA Prim/Kruskal #最小生成树# [P3-T1]

最小生成树

http://www.nowcoder.com/practice/735a34ff4672498b95660f43b7fcd628

Prim和Kruskal两种方法
// Prim
// Time: O(MlogM), each edge is inserted to minHeap once.
// Spcae: O(n)
import java.util.*;

public class Solution {
    public int miniSpanningTree (int n, int m, int[][] cost) {
      // u -> [[v1, c1], [v2, c2], ...]
      List<List<int[]>> graph = new ArrayList<>();
      for (int i = 0; i <= n; i++) graph.add(new ArrayList<>());  // 0 is dummy
      for (int[] c : cost) {
        graph.get(c[0]).add(new int[]{c[1], c[2]});
        graph.get(c[1]).add(new int[]{c[0], c[2]});
      }
      
      // [u, v, cost]
      PriorityQueue<int[]> minEdgeHeap = new PriorityQueue<>((a,b)->a[2]-b[2]);
      for (int[] edges : graph.get(1)) {  // add all edges connecting 1
        minEdgeHeap.offer(new int[]{1, edges[0], edges[1]});
      }
      
      boolean[] visited = new boolean[n+1];
      visited[1] = true;  // mark 1 as visited
      
      int totalCost = 0;
      while (!minEdgeHeap.isEmpty()) {
        int[] minEdge = minEdgeHeap.poll();
        int from = minEdge[0], to = minEdge[1], c = minEdge[2];
        if (visited[to]) continue;  // already in MST
        visited[to] = true;
        totalCost += c;
          
        for (int[] nei : graph.get(to)) {
          if (visited[nei[0]]) continue;  // neighbor alrady in MST
          minEdgeHeap.offer(new int[]{to, nei[0], nei[1]});
        }
      }
      
      return totalCost;
    }
}
// Krsukal
// Time: O(MlogM + M) = O(MLogM)
//    sort M edges takes MlogM, union N nodes takes ~O(M)
// Space: O(N)
import java.util.*;

public class Solution {
    class DSU {
      int[] rank; 
      int[] root; 
      
      DSU(int size) {
        this.rank = new int[size];
        this.root = new int[size];
        for (int i = 0; i < size; i++) {
          this.root[i] = i;  // init with self as parent
        }
      }
      
      // find with path compression
      int findRoot(int id) {
        if (root[id] != id) {
          root[id] = findRoot(root[id]); 
        }
        return root[id];
      }
      
      // union by rank
      void union(int id_a, int id_b) {
        int root_a = findRoot(id_a);
        int root_b = findRoot(id_b);
        if (rank[root_a] == rank[root_b]) {
          root[root_b] = root_a;
          rank[root_a]++;
        } else if (rank[root_a] > rank[root_b]){
          root[root_b] = root_a;
        } else {
          root[root_a] = root_b;
        }
      }
    }
    
    public int miniSpanningTree (int n, int m, int[][] cost) {
      DSU dsu = new DSU(n);
      Arrays.sort(cost, (a, b) -> a[2] - b[2]);

      int minCost = 0;
      for (int[] c : cost) {
        // nodes are indexed from 1 to n, so need to minus 1
        int root_a = dsu.findRoot(c[0]-1);
        int root_b = dsu.findRoot(c[1]-1);
        if (root_a == root_b) continue;  // already connected
        
        dsu.union(root_a, root_b);
        minCost += c[2];
      }
      
      return minCost;
    }
}
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