首页> 外文期刊>Journal of Advanced Computatioanl Intelligence and Intelligent Informatics >Multi-Level Control of Fuzzy-Constraint Propagation via Evaluations with Linguistic Truth Values in Generalized-Mean-Based Inference
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Multi-Level Control of Fuzzy-Constraint Propagation via Evaluations with Linguistic Truth Values in Generalized-Mean-Based Inference

机译:广义均值推理中基于语言真值的评估的模糊约束传播多级控制

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摘要

A method is proposed for fuzzy inference which can propagate convex fuzzy-constraints from given facts to consequences in various forms by applying a number of fuzzy rules, particularly when asymmetric fuzzy sets are used for given facts and/or fuzzy rules. The conventional method, α-GEMS (α-level-set and generalized-mean-based inference in synergy with composition), cannot be performed with asymmetric fuzzy sets; it can be conducted only with symmetric fuzzy sets. In order to cope with asymmetric fuzzy sets as well as symmetric ones, a control scheme is proposed for the fuzzy-constraint propagation, which is α-cut based and can be performed independently at each level of α. It suppresses an excessive specificity decrease in consequences, particularly stemming from the asymmetricity. Thereby, the fuzzy constraints of given facts are reflected to those of consequences, to a feasible extent. The theoretical aspects of the control scheme are also presented, wherein the specificity of the support sets of consequences is evaluated via linguistic truth values (LTVs). The proposed method is named α-GEMST (α-level-set and generalized-mean-based inference in synergy with composition via LTV control) in order to differentiate it from α-GEMS. Simulation results show that α-GEMST can be properly performed, particularly with asymmetric fuzzy sets. α-GEMST is expected to be applied to the modeling of given systems with various fuzzy input-output relations.
机译:提出了一种用于模糊推理的方法,该方法可以通过应用许多模糊规则,将凸模糊约束从给定事实传播到各种形式的结果,特别是当非对称模糊集用于给定事实和/或模糊规则时。常规方法α-GEMS(与合成协同作用的α水平集和基于广义均值的推理)无法通过不对称模糊集执行;它只能用对称模糊集进行。为了应对不对称模糊集和对称模糊集,提出了一种针对模糊约束传播的控制方案,该方案基于α-cut,并且可以在每个α水平上独立执行。它抑制了特异性过度下降的后果,尤其是由于不对称性造成的后果。因此,给定事实的模糊约束在一定程度上反映了后果。还介绍了控制方案的理论方面,其中,通过语言真值(LTV)评估后果支持集的特异性。为了区别于α-GEMS,该方法被称为α-GEMST(α水平集和基于均值的基于LTV控制的合成协同推理)。仿真结果表明,α-GEMST可以正确执行,特别是对于不对称模糊集。期望将α-GEMST应用于具有各种模糊输入输出关系的给定系统的建模。

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