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Inference in Bayesian Networks with Recursive Probability Trees: Data Structure Definition and Operations

机译:具有递归概率树的贝叶斯网络中的推理:数据结构定义和运算

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摘要

Recursive probability trees (RPTs) are a data structure for representing several types of potentials involved in probabilistic graphical models. The RPT structure improves the modeling capabilities of previous structures (like probability trees or conditional probability tables). These capabilities can be exploited to gain savings in memory space and/or computation time during inference. This paper describes the modeling capabilities of RPTs as well as how the basic operations required for making inference on Bayesian networks operate on them. The performance of the inference process with RPTs is examined with some experiments using the variable elimination algorithm.
机译:递归概率树(RPT)是一种数据结构,用于表示概率图形模型涉及的几种潜在类型。 RPT结构提高了先前结构(如概率树或条件概率表)的建模能力。这些功能可用于在推理过程中节省存储空间和/或计算时间。本文介绍了RPT的建模功能,以及在贝叶斯网络上进行推理所需的基本操作。使用变量消除算法的一些实验检查了RPT推理过程的性能。

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  • 来源
    《International journal of entelligent systems》 |2013年第7期|623-647|共25页
  • 作者单位

    Department of Computer Science and Artificial Intelligence, CITIC-UGR,University of Granada, E-18071, Granada, Spain;

    Department of Computer Science and Artificial Intelligence, CITIC-UGR,University of Granada, E-18071, Granada, Spain;

    Department of Computer Science and Artificial Intelligence, CITIC-UGR,University of Granada, E-18071, Granada, Spain;

    Department of Computer Science and Artificial Intelligence, CITIC-UGR,University of Granada, E-18071, Granada, Spain;

    Department of Mathematics, University of Almeria, E-04120, Almeria, Spain;

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