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CP-logic theory inference with contextual variable elimination and comparison to BDD based inference methods

机译:具有上下文变量消除功能的CP逻辑理论推理以及与基于BDD的推理方法的比较

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摘要

There is a growing interest in languages that combine probabilistic models with logic to represent complex domains involving uncertainty. Causal probabilistic logic (CP-logic), which has been designed to model causal processes, is such a probabilistic logic language. This paper investigates inference algorithms for CP-logic; these are crucial for developing learning algorithms. It proposes a new CP-logic inference method based on contextual variable elimination and compares this method to variable elimination and to methods based on binary decision diagrams.
机译:对于将概率模型与逻辑结合以表示涉及不确定性的复杂域的语言,人们越来越感兴趣。因果概率逻辑(CP-logic)是一种用来模拟因果过程的模型,它是一种概率逻辑语言。本文研究了CP逻辑的推理算法。这些对于开发学习算法至关重要。提出了一种新的基于上下文变量消除的CP逻辑推理方法,并将该方法与变量消除和基于二元决策图的方法进行了比较。

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