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Lifted Variable Elimination for Probabilistic Logic Programming

机译:概率逻辑编程的提升变量消除

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Lifted inference has been proposed for various probabilistic logical frameworks in order to compute the probability of queries in a time that depends on the size of the domains of the random variables rather than the number of instances. Even if various authors have underlined its importance for probabilistic logic programming (PLP), lifted inference has been applied up to now only to relational languages outside of logic programming. In this paper we adapt Generalized Counting First Order Variable Elimination (GC-FOVE) to the problem of computing the probability of queries to probabilistic logic programs under the distribution semantics. In particular, we extend the Prolog Factor Language (PFL) to include two new types of factors that are needed for representing ProbLog programs. These factors take into account the existing causal independence relationships among random variables and are managed by the extension to variable elimination proposed by Zhang and Poole for dealing with convergent variables and heterogeneous factors. Two new operators are added to GC-FOVE for treating heterogeneous factors. The resulting algorithm, called LP~2 for Lifted Probabilistic Logic Programming, has been implemented by modifying the PFL implementation of GC-FOVE and tested on three benchmarks for lifted inference. A comparison with PITA and ProbLog2 shows the potential of the approach.
机译:已经提出了针对各种概率逻辑框架的推论,以计算在一段时间内查询的概率,该时间取决于随机变量的域的大小而不是实例的数量。即使各种作者都强调了其对概率逻辑程序设计(PLP)的重要性,但到目前为止,推论仅适用于逻辑程序设计之外的关系语言。在本文中,我们使广义计数一阶变量消除(GC-FOVE)适应于在分布语义下计算概率逻辑程序查询概率的问题。特别是,我们扩展了Prolog因子语言(PFL),以包括代表ProbLog程序所需的两种新型因子。这些因素考虑了随机变量之间现有的因果独立性关系,并由Zhang和Poole提出的扩展变量消除的扩展进行管理,以处理收敛变量和异质因子。 GC-FOVE中添加了两个新的运算符,用于处理异类因子。通过修改GC-FOVE的PFL实现,并在三个基准上对提升推理进行了测试,从而实现了称为提升概率逻辑编程的LP〜2算法。与PITA和ProbLog2的比较显示了该方法的潜力。

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