0

I want to find out if my followers follow each other using Twitter4j, and build a graph from this. I have Two questions:

My first Question: How do I get this data?

Second Question: How do I visualise this on to a graph with nodes and vertices to show how connected my network is?

Ive tried to get my followers followers who are following me:

Twitter twitter = new TwitterFactory().getInstance();
        User u1 = null ;
          long cursor = -1;
          IDs ids;
          System.out.println("Listing followers's ids.");
          do {
                  ids = twitter.getFollowersIDs("2289869045", cursor);
              for (long id : ids.getIDs()) {
                  System.out.println(id);
                  User user = twitter.showUser(id);
                  System.out.println(user.getName());
              }
          } while ((cursor = ids.getNextCursor()) != 0);

    }

But this doesnt even work right now.

Any suggestions?

  • 2
    Have you tried anything yet? – The Guy with The Hat Mar 17 '14 at 20:30
  • In what way does it not work? – The Guy with The Hat Mar 18 '14 at 21:29
  • Nope because im stuck? – Pro-grammer Mar 18 '14 at 21:53
  • Or maybe I'm a person who was trying to improve your question, but was confused by your apparently contradictory statements. I'm sorry if that came out as "smart arse." – The Guy with The Hat Mar 19 '14 at 13:22
  • apparently? So you're confused yourself then. Well, there was nothing contradictory about what I was saying. It's straight forward. – Pro-grammer Mar 19 '14 at 19:37
0

Answer to your first question: You should combine calls on these two twitter API endPoints

Process should be:

  1. Get all of your followers
  2. For each of your followers, get theirs
  3. Filter out to keep only the edges between members of your graph.

For the second question:

You can have a look at sigma.js , gephi or d3.js.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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