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Generalized First Order Decision Diagrams for First Order Markov Decision Processes

机译:一般性的一阶判决决策图,用于首次阶Markov决策过程

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First order decision diagrams (FODD) were recently introduced as a compact knowledge representation expressing functions over relational structures. FODDs represent numerical functions that, when constrained to the Boolean range, use only existential quantification. Previous work developed a set of operations over FODDs, showed how they can be used to solve relational Markov decision processes (RMDP) using dynamic programming algorithms, and demonstrated their success in solving stochastic planning problems from the International Planning Competition in the system FODD-PIanner. A crucial ingredient of this scheme is a set of operations to remove redundancy in decision diagrams, thus keeping them compact. This paper makes three contributions. First, we introduce Generalized FODDs (GFODD) and combination algorithms for them, generalizing FODDs to arbitrary quantification. Second, we show how GFODDs can be used in principle to solve RMDPs with arbitrary quantification, and develop a particularly promising case where an arbitrary number of existential quantifiers is followed by an arbitrary number of universal quantifiers. Third, we develop a new approach to reduce FODDs and GFODDs using model checking. This yields a reduction that is complete for FODDs and provides a sound reduction procedure for GFODDs.
机译:最近将第一订单决策图(FODD)作为表达关系结构的功能的紧凑知识表示。 FODD表示数值函数,当约束到布尔范围时,仅使用存在量化。以前的工作开发了一组关于FODD的操作,展示了它们如何使用动态编程算法来解决关系马尔可夫决策过程(RMDP),并证明了他们在求解系统FODD-Pianner中的国际规划竞赛中解决随机规划问题的成功。该方案的一个重要成分是一组操作,以消除决策图中的冗余,从而保持它们紧凑。本文提出了三个贡献。首先,我们介绍了广义的FODDS(GFODD)和组合算法,概括了FODDS以任意量化。其次,我们展示了GFoDD原则上的用途,以解决具有任意量化的RMDP,并且开发出特别有希望的情况,其中任意数量的存在量子是任意数量的通用量词。三,我们开发了一种使用模型检查减少FODD和GFODD的新方法。这产生了为FODD完成的减少,并为GFoDD提供了声音缩减过程。

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