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Inferring signed social networks from contact patterns
Dávid Ferenczi1, Jean-Gabriel Young2,3, Leto Peel1
1Department of Data Analytics and Digitalisation, School of Business and Economics, Maastricht University, 6211 LM Maastricht, The Netherlands.
Abstract:
Social networks are typically inferred from indirect observations, such as proximity data; yet, most methods cannot distinguish between absent relationships and actual negative ties, as both can result in few or no interactions. We address the challenge of inferring signed networks from contact patterns while accounting for whether a lack of interactions reflects a lack of opportunity as opposed to active avoidance. We develop a Bayesian framework with Markov Chain Monte Carlo inference that models interaction groups to separate chance from choice when no interactions are observed. Validation on synthetic data demonstrates superior performance compared to natural baselines, particularly in detecting negative edges. We apply our method to French high school contact data to reveal a structure consistent with friendship surveys and demonstrate the model's adequacy through posterior predictive checks.
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