Tractable uncertainty for structure learning

Bayesian structure learning allows one to capture uncertainty over the causal directed acyclic graph (DAG) responsible for generating given data. In this work, we present Tractable Uncertainty for STructure learning (TRUST), a framework for approximate posterior inference that relies on probabilisti...

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书目详细资料
Main Authors: Wang, B, Wicker, M, Kwiatkowska, M
格式: Conference item
语言:English
出版: Journal of Machine Learning Research 2022