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S OCIAL N ETWORK A NALYSIS F OR D UMMIES Y ANNE B ROUX DH S UMMER S CHOOL L EUVEN, S EPTEMBER 8 2015.

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Presentation on theme: "S OCIAL N ETWORK A NALYSIS F OR D UMMIES Y ANNE B ROUX DH S UMMER S CHOOL L EUVEN, S EPTEMBER 8 2015."— Presentation transcript:

1 S OCIAL N ETWORK A NALYSIS F OR D UMMIES Y ANNE B ROUX DH S UMMER S CHOOL L EUVEN, S EPTEMBER 8 2015

2 T ERMINOLOGY

3 Useful sources A.-L. B ARABÁSI, Linked: The Science of Networks (Cambridge, 2002) S. B ORGATTI et al., Analyzing Social Networks (L.A., 2013) Y. B ROUX & S. V ANBESELAERE, Six Degrees of Spaghetti Monsters (spaghetti-os.blogspot.com)

4

5 Basics Node (vertex) Edge (tie) – Undirected – Directed – Weighted (valued) Degree: how many edges to a node – Undirected: count edges – Directed: indegree vs outdegree A B C D E F

6 D ATA MANAGEMENT

7 Adjacency matrix Symmetric, binary e.g. who knows who Symmetric, weighted e.g. distance between places

8 Adjacency matrix Asymmetric, binary e.g. choose 3 friends to sit with Asymmetric, weighted e.g. number of emails sent to colleagues

9 One-mode vs two-mode 1-mode: direct ties between actors (= adjacency matrix) 2-mode: ties between different entities (= affiliation matrix)

10 Adjacency vs attribute matrix Adjacency matrix: only records ties between nodes Attribute matrix: each column is different attribute of the nodes (gender, role, ethnicity, status, …) = ‘nodelist’ (vs ‘edgelist’)

11 Attribute matrix (nodelist)


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