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SOCA-D460

Social Network Analysis

academic year
2024-2025

Course teacher(s)

Matteo GAGLIOLO (Coordinator)

ECTS credits

5

Language(s) of instruction

english

Course content

  • Networks: definitions, terminology, matrix representation

  • Network data in the social sciences

  • R basics and network-related packages

  • Graphical representation of network data

  • Basic global and local measures

  • Centrality measures

  • Community structure

  • Social capital and hierarchy

  • Influence

Objectives (and/or specific learning outcomes)

Acquiring the fundamental theoretical background and practical skills to perform a quantitative analysis of network data.

Teaching methods and learning activities

The course will be held in a computer room, combining theory with its immediate application, mostly using the R language via the RStudio interface. Prior knowledge of R is not assumed. Additional free software may be used for visualisation.

Contribution to the teaching profile

Quantitative methods

References, bibliography, and recommended reading

TBA

Other information

Contacts

Matteo GAGLIOLO <Matteo.Gagliolo@ulb.ac.be>

Evaluation

Method(s) of evaluation

  • Other

Other

Personal or group project consisting of an annotated analysis of a network dataset, to be presented and defended orally.

Language(s) of evaluation

  • english
  • french

Programmes