模糊逻辑中可满足性求解的局部搜索与重启策略

Tim Brys, Mădălina M. Drugan, P. Bosman, M. D. Cock, A. Nowé
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引用次数: 5

摘要

与命题逻辑中的可满足性相比,模糊逻辑中的可满足性求解是一个研究较少的课题。然而,模糊逻辑是建模复杂问题的有力工具。最近,我们提出了一种求解模糊逻辑中可满足性的优化方法,并将标准协方差矩阵自适应进化策略算法(CMA-ES)与一组基准问题的解析求解器进行了比较。特别是在更细粒度的问题上,CMA-ES比分析方法更有优势。本文对CMA-ES之外的两种爬坡算法进行了评价,并给出了这些算法的重启策略。我们的结果表明,基于人群的爬山者在更难的问题类别上优于CMA-ES。
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Local search and restart strategies for satisfiability solving in fuzzy logics
Satisfiability solving in fuzzy logics is a subject that has not been researched much, certainly compared to satisfiability in propositional logics. Yet, fuzzy logics are a powerful tool for modelling complex problems. Recently, we proposed an optimization approach to solving satisfiability in fuzzy logics and compared the standard Covariance Matrix Adaptation Evolution Strategy algorithm (CMA-ES) with an analytical solver on a set of benchmark problems. Especially on more finegrained problems did CMA-ES compare favourably to the analytical approach. In this paper, we evaluate two types of hillclimber in addition to CMA-ES, as well as restart strategies for these algorithms. Our results show that a population-based hillclimber outperforms CMA-ES on the harder problem class.
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