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首页> 外文期刊>Neural Networks and Learning Systems, IEEE Transactions on >Adaptive Filter Design Using Type-2 Fuzzy Cerebellar Model Articulation Controller
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Adaptive Filter Design Using Type-2 Fuzzy Cerebellar Model Articulation Controller

机译:使用2型模糊小脑模型关节控制器的自适应滤波器设计

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摘要

This paper aims to propose an efficient network and applies it as an adaptive filter for the signal processing problems. An adaptive filter is proposed using a novel interval type-2 fuzzy cerebellar model articulation controller (T2FCMAC). The T2FCMAC realizes an interval type-2 fuzzy logic system based on the structure of the CMAC. Due to the better ability of handling uncertainties, type-2 fuzzy sets can solve some complicated problems with outstanding effectiveness than type-1 fuzzy sets. In addition, the Lyapunov function is utilized to derive the conditions of the adaptive learning rates, so that the convergence of the filtering error can be guaranteed. In order to demonstrate the performance of the proposed adaptive T2FCMAC filter, it is tested in signal processing applications, including a nonlinear channel equalization system, a time-varying channel equalization system, and an adaptive noise cancellation system. The advantages of the proposed filter over the other adaptive filters are verified through simulations.
机译:本文旨在提出一种有效的网络,并将其用作信号处理问题的自适应滤波器。提出了一种使用新型区间2型模糊小脑模型关节控制器(T2FCMAC)的自适应滤波器。 T2FCMAC基于CMAC的结构实现了区间2型模糊逻辑系统。由于具有更好的不确定性处理能力,第二类模糊集比第一类模糊集能更好地解决一些复杂的问题。另外,利用李雅普诺夫函数导出自适应学习率的条件,从而可以保证滤波误差的收敛性。为了证明所提出的自适应T2FCMAC滤波器的性能,已在信号处理应用中进行了测试,包括非线性信道均衡系统,时变信道均衡系统和自适应噪声消除系统。通过仿真验证了所提出的滤波器相对于其他自适应滤波器的优势。

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