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Belief Propagation for Structured Decision Making

机译:结构化决策的信念传播

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Variational inference algorithms such as belief propagation have had tremendous impact on our ability to learn and use graphical models, and give many insights for developing or understanding exact and approximate inference. However, variational approaches have not been widely adoped for decision making in graphical models, often formulated through influence diagrams and including both centralized and decentralized (or multi-agent) decisions. In this work, we present a general variational framework for solving structured cooperative decision-making problems, use it to propose several belief propagation-like algorithms, and analyze them both theoretically and empirically.
机译:诸如信念传播之类的变异推理算法对我们学习和使用图形模型的能力产生了巨大影响,并为开发或理解精确和近似推理提供了许多见识。但是,对于图形化模型中的决策,变式方法尚未得到广泛应用,这些方法通常是通过影响图制定的,包括集中式决策和分散式(或多主体)决策。在这项工作中,我们提出了解决结构化合作决策问题的通用变分框架,并用它提出了几种类似信念传播的算法,并在理论和经验上对其进行了分析。

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