Generalized belief propagation for estimating the partition function of the 2D Ising model

ISIT(2015)

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摘要
Recent empirical results have demonstrated that generalized belief propagation (GBP) can be used to closely estimate the capacity of certain 2D runlength-limited constraints. We provide a partial analytical validation of these observations by showing that GBP yields a lower bound on the partition function of 2D Ising models with restricted grid size. While previous papers have proved that belief propagation (BP) can be used to obtain a lower bound on the partition function of 2D Ising models, this paper is the first work that analyzes GBP-based partition function approximations of 2D Ising models.
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关键词
Ising model,constraint theory,function approximation,2D Ising model,2D runlength-limited constraint,GBP,generalized belief propagation,lower bound,partition function approximation,partition function estimation,
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