[2604.04264] Avoiding Non-Integrable Beliefs in Expectation Propagation

[2604.04264] Avoiding Non-Integrable Beliefs in Expectation Propagation

arXiv - Machine Learning 3 min read

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Abstract page for arXiv paper 2604.04264: Avoiding Non-Integrable Beliefs in Expectation Propagation

Statistics > Machine Learning arXiv:2604.04264 (stat) [Submitted on 5 Apr 2026] Title:Avoiding Non-Integrable Beliefs in Expectation Propagation Authors:Zilu Zhao, Jichao Chen, Dirk Slock View a PDF of the paper titled Avoiding Non-Integrable Beliefs in Expectation Propagation, by Zilu Zhao and 2 other authors View PDF HTML (experimental) Abstract:Expectation Propagation (EP) is a widely used iterative message-passing algorithm that decomposes a global inference problem into multiple local ones. It approximates marginal distributions as ``beliefs'' using intermediate functions called ``messages''. It has been shown that the stationary points of EP are the same as corresponding constrained Bethe Free Energy (BFE) optimization problem. Therefore, EP is an iterative method of optimizing the constrained BFE. However, the iterative method may fall out of the feasible set of the BFE optimization problem, i.e., the beliefs are not integrable. In most literature, the authors use various methods to keep all the messages integrable. In most Bayesian estimation problems, limiting the messages to be integrable shrinks the actual feasible set. Furthermore, in extreme cases where the factors are not integrable, making the message itself integrable is not enough to have integrable beliefs. In this paper, two EP frameworks are proposed to ensure that EP has integrable beliefs. Both of the methods allows non-integrable messages. We then investigate the signal recovery problem in Generalize...

Originally published on April 07, 2026. Curated by AI News.

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