2019
DOI: 10.1007/s41109-019-0170-z
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Stochastic block models with multiple continuous attributes

Abstract: The stochastic block model (SBM) is a probabilistic model for community structure in networks. Typically, only the adjacency matrix is used to perform SBM parameter inference. In this paper, we consider circumstances in which nodes have an associated vector of continuous attributes that are also used to learn the node-to-community assignments and corresponding SBM parameters. While this assumption is not realistic for every application, our model assumes that the attributes associated with the nodes in a netwo… Show more

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Cited by 46 publications
(28 citation statements)
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“…The model by Gerlach et al (2018) can also be applied to account for the graph between words and documents and the graph between documents simultaneously, in an unifying framework. Finally, the SBM by Stanley et al (2019) that allows continuous attributes on the nodes can potentially be modified to model textual attributes instead.…”
Section: Discussionmentioning
confidence: 99%
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“…The model by Gerlach et al (2018) can also be applied to account for the graph between words and documents and the graph between documents simultaneously, in an unifying framework. Finally, the SBM by Stanley et al (2019) that allows continuous attributes on the nodes can potentially be modified to model textual attributes instead.…”
Section: Discussionmentioning
confidence: 99%
“…Please see Section 7 for further details. Stanley et al (2019) proposed an attribute SBM in which the group memberships Z of the nodes determine both the graph Y and the non-relational attributes…”
Section: Graphs With Covariates or Attributesmentioning
confidence: 99%
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“…Then, a similarity matrix defined from the similarity measure is used for the recommendation. Another approach is employing the statistical models, such as stochastic block models [6], that are used to estimate network structures, such as clusters or edge distributions. The learning methods using statistical models often achieve high prediction accuracy in comparison to similarity-based methods.…”
Section: Introductionmentioning
confidence: 99%