首页> 外文期刊>IEEE transactions on systems, man, and cybernetics. Part B, Cybernetics >FCMAC-BYY: Fuzzy CMAC Using Bayesian Ying–Yang Learning
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FCMAC-BYY: Fuzzy CMAC Using Bayesian Ying–Yang Learning

机译:FCMAC-BYY:使用贝叶斯英杨学习的模糊CMAC

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As an associative memory neural network model, the cerebellar model articulation controller (CMAC) has attractive properties of fast learning and simple computation, but its rigid structure makes it difficult to approximate certain functions. This research attempts to construct a novel neural fuzzy CMAC, in which Bayesian Ying–Yang (BYY) learning is introduced to determine the optimal fuzzy sets, and a truth-value restriction inference scheme is subsequently employed to derive the truth values of the rule weights of implication rules. The BYY is motivated from the famous Chinese ancient Ying–Yang philosophy: everything in the universe can be viewed as a product of a constant conflict between opposites—Ying and Yang, a perfect status is reached when Ying and Yang achieve harmony. The proposed fuzzy CMAC (FCMAC)-BYY enjoys the following advantages. First, it has a higher generalization ability because the fuzzy rule sets are systematically optimized by BYY; second, it reduces the memory requirement of the network by a significant degree as compared to the original CMAC; and third, it provides an intuitive fuzzy logic reasoning and has clear semantic meanings. The experimental results on some benchmark datasets show that the proposed FCMAC-BYY outperforms the existing representative techniques in the research literature.
机译:小脑模型关节控制器(CMAC)作为一种联想记忆神经网络模型,具有快速学习和简单计算的诱人特性,但其刚性结构使其难以近似某些功能。本研究试图构建一种新颖的神经模糊CMAC,其中引入贝叶斯盈阳(BYY)学习来确定最佳模糊集,然后采用真值限制推理方案得出规则权重的真值。蕴涵规则。 BYY的灵感来自中国古代著名的阴阳哲学:宇宙中的所有事物都可以看作是阴阳之间不断冲突的产物,当阴阳达到和谐时便达到了完美的状态。提出的模糊CMAC(FCMAC)-BYY具有以下优点。首先,由于模糊规则集是由BYY系统地优化的,因此具有较高的泛化能力。其次,与原始CMAC相比,它大大降低了网络的内存需求。第三,它提供了直观的模糊逻辑推理,并具有清晰的语义。在一些基准数据集上的实验结果表明,所提出的FCMAC-BYY优于研究文献中现有的代表性技术。

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