Efficient Lifting of Symmetry Breaking Constraints for Complex Combinatorial Problems

IF 1.4 2区 数学 Q3 COMPUTER SCIENCE, SOFTWARE ENGINEERING Theory and Practice of Logic Programming Pub Date : 2022-05-14 DOI:10.1017/S1471068422000151
Alice Tarzariol, M. Gebser, Mark Law, Konstantin Schekotihin
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引用次数: 2

Abstract

Abstract Many industrial applications require finding solutions to challenging combinatorial problems. Efficient elimination of symmetric solution candidates is one of the key enablers for high-performance solving. However, existing model-based approaches for symmetry breaking are limited to problems for which a set of representative and easily solvable instances is available, which is often not the case in practical applications. This work extends the learning framework and implementation of a model-based approach for Answer Set Programming to overcome these limitations and address challenging problems, such as the Partner Units Problem. In particular, we incorporate a new conflict analysis algorithm in the Inductive Logic Programming system ILASP, redefine the learning task, and suggest a new example generation method to scale up the approach. The experiments conducted for different kinds of Partner Units Problem instances demonstrate the applicability of our approach and the computational benefits due to the first-order constraints learned.
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复杂组合问题对称性破缺约束的有效提升
许多工业应用需要找到具有挑战性的组合问题的解决方案。有效地消除对称候选解是实现高性能求解的关键因素之一。然而,现有的基于模型的对称破缺方法仅限于具有一组具有代表性且易于求解的实例的问题,而在实际应用中往往不是这样。这项工作扩展了基于模型的答案集编程方法的学习框架和实现,以克服这些限制并解决具有挑战性的问题,例如伙伴单元问题。特别是,我们在归纳逻辑编程系统ILASP中引入了一种新的冲突分析算法,重新定义了学习任务,并提出了一种新的示例生成方法来扩展该方法。针对不同类型的伙伴单元问题实例进行的实验证明了我们的方法的适用性以及由于学习到的一阶约束而带来的计算效益。
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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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