Distributed Parameter Estimation in Probabilistic Graphical Models University of British Columbia, Canada University of Oxford, United Kingdom
–Neural Information Processing Systems
This paper presents foundational theoretical results on distributed parameter estimation for undirected probabilistic graphical models. It introduces a general condition on composite likelihood decompositions of these models which guarantees the global consistency of distributed estimators, provided the local estimators are consistent.
Neural Information Processing Systems
Mar-13-2024, 08:45:02 GMT
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