Illustrating the importance of edge constraints in backbones of bipartite projections

Author:

Neal Zachary P.ORCID,Neal Jennifer WatlingORCID

Abstract

Bipartite projections (e.g., event co-attendance) are often used to measure unipartite networks of interest (e.g., social interaction). Backbone extraction models can be useful for reducing the noise inherent in bipartite projections. However, these models typically assume that the bipartite edges (e.g., who attended which event) are unconstrained, which may not be true in practice (e.g., a person cannot attend an event held prior to their birth). We illustrate the importance of correctly modeling such edge constraints when extracting backbones, using both synthetic data that varies the number and type of constraints, and empirical data on children’s play groups. We find that failing to impose relevant constraints when the data contain constrained edges can result in the extraction of an inaccurate backbone. Therefore, we recommend that when bipartite data contain constrained edges, backbones be extracted using a model such as the Stochastic Degree Sequence Model with Edge Constraints (SDSM-EC).

Publisher

Public Library of Science (PLoS)

Reference21 articles.

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4. Basic notions for the analysis of large two-mode networks;M Latapy;Social Networks,2008

5. Comparing alternatives to the fixed degree sequence model for extracting the backbone of bipartite projections;ZP Neal;Scientific Reports,2021

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