Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to implement Prim's minimum spanning tree algorithm with JGraphT. How does it look?

One issue I ran into was JGraphT's handling of everything like it's directed. So sometimes it is necessary to make some awkward calls to reverse g.getEdgeSource(e) and g.getEdgeTarget(e) if they didn't happen to be right.

I tried to implement this originally with JGraphT's Fibonacci Heap but it was too hard so I just did a regular PQ.

Instead of setting weights of non-existent edges to infinity, I just didn't add it to the queue.

Advice? Stylistic issues? Glaring inefficiencies? Code I should be using instead of rolling my own?

public static Graph<String, DefaultWeightedEdge> primPQ(final WeightedGraph<String, DefaultWeightedEdge> g, String root) {
  Graph<String, DefaultWeightedEdge> mst = new SimpleWeightedGraph<String, DefaultWeightedEdge>(DefaultWeightedEdge.class);
  Queue<DefaultWeightedEdge> pq = new PriorityQueue<DefaultWeightedEdge>(g.vertexSet().size(), new Comparator<DefaultWeightedEdge>() {
    @Override
    public int compare(DefaultWeightedEdge o1, DefaultWeightedEdge o2) {
      if (g.getEdgeWeight(o1) < g.getEdgeWeight(o2)) {
        return -1;
      }
      if (g.getEdgeWeight(o1) > g.getEdgeWeight(o2)) {
        return 1;
      } 
      return 0;
    }
  });

  mst.addVertex(root);
  DefaultWeightedEdge link;

  for (String v : g.vertexSet()) {
    link = g.getEdge(root, v);
    if (link != null) {
      pq.add(link);
    }
  }

  //this is made difficult by JGraphT's assumption that everything is directed
  DefaultWeightedEdge minEdge = pq.poll();
  String toAdd;
  String alreadyFound;
  String tmp;

  while (minEdge != null) {
    // guessing at which is in the MST
    toAdd = g.getEdgeTarget(minEdge);
    alreadyFound = g.getEdgeSource(minEdge);

    if (!(mst.containsVertex(toAdd) && mst.containsVertex(alreadyFound))) {
      // swap if backwards
      if (mst.containsVertex(toAdd)) {
        tmp = toAdd;
        toAdd = alreadyFound;
        alreadyFound = tmp;
      }
      mst.addVertex(toAdd);
      mst.addEdge(alreadyFound, toAdd, minEdge);
      System.out.format("%s --> %s\n", g.getEdgeSource(minEdge), toAdd);

      for (String v : g.vertexSet()) {
        if (! mst.containsVertex(v)) {
          link = g.getEdge(toAdd, v);
          if (pq.contains(link)) {
            g.setEdgeWeight(minEdge, Math.min(g.getEdgeWeight(minEdge), g.getEdgeWeight(link)));
          }
          if (link != null && ! pq.contains(link)) {
            pq.add(link);
          }
        }
      }
    }
    minEdge = pq.poll();
  }
  return mst;
}
share|improve this question
    
Didn't really look at all that code but AFAIK JGraphT clearly supports undirected graphs jgrapht.org/javadoc/org/jgrapht/UndirectedGraph.html –  jitter Nov 24 '09 at 11:40
    
yeah but then, given an edge, how do you get the two endpoints? –  Rosarch Nov 24 '09 at 20:57

3 Answers 3

I have compared the result of your algorithm to one mine which was a homework and it both gives the same minimum total weight, keep it up !

share|improve this answer

Both while increasing the number of edges and the number of vertices, I get different results, I'll be back...

share|improve this answer
2  
SO etiquette would prefer that you edit your original answer instead of making more. :) –  Rosarch Oct 10 '10 at 19:37

OKAY, it looks fine now.

By the way, my exercise was a bit tricky: I had to write an algorithm that finds the minimum spanning tree indeed, but my algorithm had to proceed by elimination on the edges. I wrote something that uses some depth first traversal to find cycles and then eliminates the most weighted edge by "coloring" it red..

Your PRIM alg yields the same minimum total weight than my alg for 4 randomly generated graphs that have N=200 nodes and various values M=(N*(N-1)/k) for k=2,3,4,8 for the number of edges.

At first sight, I would have tought this kind of testing was overkill, but it was not !

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.