捕获(最优)放松计划与稳定和支持模型的逻辑程序

IF 1.4 2区 数学 Q3 COMPUTER SCIENCE, SOFTWARE ENGINEERING
MASOOD FEYZBAKHSH RANKOOH, TOMI JANHUNEN
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引用次数: 0

摘要

摘要本文建立了一种新的无删除规划与逻辑规划之间的关系,无删除规划是人工智能规划界的一项重要任务,也称为放松规划。我们证明了给定一个规划问题,可以用描述相应的放松规划问题的逻辑程序的稳定模型客观地捕获所有可以被命令产生该问题的放松计划的动作子集。我们还考虑了逻辑规划的支持模型语义,并引入了一个因果编码和一个诊断编码作为逻辑规划的松弛规划问题,两者都用其支持的模型捕获了松弛计划。我们的实验结果表明,在计算最优放松计划时,这些新的编码可以提供主要的性能增益,当在广泛的条带规划基准测试中测量给定的时间限制时,我们的诊断编码优于最先进的放松计划方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Capturing (Optimal) Relaxed Plans with Stable and Supported Models of Logic Programs
Abstract We establish a novel relation between delete-free planning, an important task for the AI planning community also known as relaxed planning, and logic programming. We show that given a planning problem, all subsets of actions that could be ordered to produce relaxed plans for the problem can be bijectively captured with stable models of a logic program describing the corresponding relaxed planning problem. We also consider the supported model semantics of logic programs, and introduce one causal and one diagnostic encoding of the relaxed planning problem as logic programs, both capturing relaxed plans with their supported models. Our experimental results show that these new encodings can provide major performance gain when computing optimal relaxed plans, with our diagnostic encoding outperforming state-of-the-art approaches to relaxed planning regardless of the given time limit when measured on a wide collection of STRIPS planning benchmarks.
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来源期刊
Theory and Practice of Logic Programming
Theory and Practice of Logic Programming 工程技术-计算机:理论方法
CiteScore
4.50
自引率
21.40%
发文量
40
审稿时长
>12 weeks
期刊介绍: Theory and Practice of Logic Programming emphasises both the theory and practice of logic programming. Logic programming applies to all areas of artificial intelligence and computer science and is fundamental to them. Among the topics covered are AI applications that use logic programming, logic programming methodologies, specification, analysis and verification of systems, inductive logic programming, multi-relational data mining, natural language processing, knowledge representation, non-monotonic reasoning, semantic web reasoning, databases, implementations and architectures and constraint logic programming.
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