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Binary Models for Marginal Independence

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arxiv 0707.3794 v1 pith:AYPFS3VX submitted 2007-07-25 math.ST stat.TH

classification math.STstat.TH
keywords modelsmarginalgraphicalindependencebinaryconditionalcontingencyframework
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Log-linear models are a classical tool for the analysis of contingency tables. In particular, the subclass of graphical log-linear models provides a general framework for modelling conditional independences. However, with the exception of special structures, marginal independence hypotheses cannot be accommodated by these traditional models. Focusing on binary variables, we present a model class that provides a framework for modelling marginal independences in contingency tables. The approach taken is graphical and draws on analogies to multivariate Gaussian models for marginal independence. For the graphical model representation we use bi-directed graphs, which are in the tradition of path diagrams. We show how the models can be parameterized in a simple fashion, and how maximum likelihood estimation can be performed using a version of the Iterated Conditional Fitting algorithm. Finally we consider combining these models with symmetry restrictions.

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Cited by 1 Pith paper

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  1. The Capacity Region of the Broadcast Channel with Non-Signaling Assistance

    cs.IT 2026-07 accept novelty 7.0 of 10

    With non-signaling assistance at the transmitter and all receivers, the K-user DM broadcast capacity region equals Sato's region.

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