Social Network Modeling

Author:

Amati Viviana1,Lomi Alessandro23,Mira Antonietta45

Affiliation:

1. Department of Humanities, Social and Political Sciences, ETH Zurich, CH-8092 Zurich, Switzerland;

2. Faculty of Economics, Università della Svizzera italiana, CH-6904 Lugano, Switzerland;,

3. School of Communication, University of Southern California, Los Angeles, California 90007, USA

4. Institute of Computational Science, Università della Svizzera italiana, CH-6904 Lugano, Switzerland

5. Department of Science and High Technology, Università dell'Insubria, 22100 Como, Italy

Abstract

The development of stochastic models for the analysis of social networks is an important growth area in contemporary statistics. The last few decades have witnessed the rapid development of a variety of statistical models capable of representing the global structure of an observed network in terms of underlying generating mechanisms. The distinctive feature of statistical models for social networks is their ability to represent directly the dependence relations that these mechanisms entail. In this review, we focus on models for single network observations, particularly on the family of exponential random graph models. After defining the models, we discuss issues of model specification, estimation and assessment. We then review model extensions for the analysis of other types of network data, provide an empirical example, and give a selective overview of empirical studies that have adopted the basic model and its many variants. We conclude with an outline of the current analytical challenges.

Publisher

Annual Reviews

Subject

Statistics, Probability and Uncertainty,Statistics and Probability

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