A mixed membership model-based measure for subgroup integration in social networks |
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Institution: | 1. Universitat Jaume I, Spain;2. Universidad de Zaragoza, Spain |
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Abstract: | Social networks analysis often involves quantifying subgroup structure in which tie density is greater among nodes in the same subgroup than between subgroups. One such measure, subgroup insularity or segregation, is the extent that subgroups are separate from each other. We introduce a new measure, γ, which is a parameter from the mixed membership stochastic blockmodel (MMSBM; Airoldi et al., 2008), and differs from many existing measures in that γ does not depend on node membership. We compare this measure to several well-known measures and use simulation studies and real data analysis to provide insight into how this measure can be used in practice. |
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Keywords: | Subgroup Segregation Bayesian Mixed membership Blockmodel |
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