A Bayesian Allocation Model Based Approach To Mixed Membership Stochastic Blockmodels

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Date

2022

Authors

Kırbız, Serap

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Publisher

Taylor and Francis Ltd.

Open Access Color

GOLD

Green Open Access

Yes

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Abstract

Although detecting communities in networks has attracted considerable recent attention, estimating the number of communities is still an open problem. In this paper, we propose a model, which replicates the generative process of the mixed-membership stochastic block model (MMSB) within the generic allocation framework of Bayesian allocation model (BAM) and BAM-MMSB. In contrast to traditional blockmodels, BAM-MMSB considers the observations as Poisson counts generated by a base Poisson process and marks according to the generative process of MMSB. Moreover, the optimal number of communities for BAM-MMSB is estimated by computing the variational approximations of the marginal likelihood for each model order. Experiments on synthetic and real data sets show that the proposed approach promises a generalized model selection solution that can choose not only the model size but also the most appropriate decomposition.

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Keywords

Community, Inference, Inference, Electronic computers. Computer science, Q300-390, Community, QA75.5-76.95, Cybernetics

Turkish CoHE Thesis Center URL

Fields of Science

0101 mathematics, 01 natural sciences

Citation

Hızlı, Ç., & Kırbız, S. (January 2022). A Bayesian Allocation Model Based Approach to Mixed Membership Stochastic Blockmodels. Applied Artificial Intelligence, pp 1-23. DOI : https://doi.org/10.1080/08839514.2022.2032923

WoS Q

Q2

Scopus Q

Q1
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Source

Applied Artificial Intelligence

Volume

36

Issue

Start Page

1

End Page

23
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Scopus : 0

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225

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269

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