Inference for Nonlinear Mapping with Sparse Fuzzy Rules Based on Multi-Level Interpolation

Author:

Uehara Kiyohiko, ,Sato Shun,Hirota Kaoru,

Abstract

An inference method is proposed for sparse fuzzy rules on the basis of interpolations at a number of points determined by α-cuts of given facts. The proposed method can perform nonlinear mapping even with sparse rule bases when each given fact activates a number of fuzzy rules which represent nonlinear relations. The operations for the nonlinear mapping are exactly the same as for the case when given facts activate no fuzzy rules due to the sparseness of rule bases. Such nonlinear mapping cannot be provided by conventional methods for sparse fuzzy rules. In evaluating the proposed method, mean square errors are adopted to indicate difference between deduced consequences and fuzzy sets transformed by nonlinear fuzzy-valued functions to be represented with sparse fuzzy rules. Simulation results show that the proposed method can follow the nonlinear fuzzy-valued functions. The proposed method contributes to both reducing the number of fuzzy rules and providing nonlinear mapping with sparse rule bases.

Publisher

Fuji Technology Press Ltd.

Subject

Artificial Intelligence,Computer Vision and Pattern Recognition,Human-Computer Interaction

Cited by 9 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Fuzzy Interpolation of Fuzzy Rough Sets;2022 IEEE International Conference on Fuzzy Systems (FUZZ-IEEE);2022-07-18

2. Fuzzy Inference Based on α-Cuts and Generalized Mean: Relations Between the Methods in its Family and their Unified Platform;Journal of Advanced Computational Intelligence and Intelligent Informatics;2017-07-20

3. Multi-Level Control of Fuzzy-Constraint Propagation in Inference with Fuzzy Rule Interpolation at an Infinite Number of Activating Points;Journal of Advanced Computational Intelligence and Intelligent Informatics;2017-05-19

4. Fuzzy Inference: Its Past and Prospects;Journal of Advanced Computational Intelligence and Intelligent Informatics;2017-01-20

5. Multi-Level Control of Fuzzy-Constraint Propagation via Evaluations with Linguistic Truth Values in Generalized-Mean-Based Inference;Journal of Advanced Computational Intelligence and Intelligent Informatics;2016-03-18

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