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具有灰色信用分配的自组织小脑模型关节控制器网络

A self-organizing CMAC network with gray credit assignment.

作者信息

Yeh Ming-Feng, Chang Kuang-Chiung

机构信息

Department of Electrical Engineering, Lunghwa University of Science and Technology, Taoyuan, 33327 Taiwan, ROC.

出版信息

IEEE Trans Syst Man Cybern B Cybern. 2006 Jun;36(3):623-35. doi: 10.1109/tsmcb.2005.861064.

Abstract

This paper attempts to incorporate the structure of the cerebellar-model-articulation-controller (CMAC) network into the Kohonen layer of the self-organizing map (SOM) to construct a self-organizing CMAC (SOCMAC) network. The proposed SOCMAC network can perform the function of an SOM and can distribute the learning error into the memory contents of all addressed hypercubes as a CMAC. The learning of the SOCMAC is in an unsupervised manner. The neighborhood region of the SOCMAC is implicit in the structure of a two-dimensional CMAC network and needs not be defined in advance. Based on gray relational analysis, a credit-assignment technique for SOCMAC learning is introduced to hasten the overall learning process. This paper also analyzes the convergence properties of the SOCMAC. It is shown that under the proposed updating rule, both the memory contents and the state outputs of the SOCMAC converge almost surely. The SOCMAC is applied to solve both data-clustering and data-classification problems, and simulation results show that the proposed network achieves better performance than other known SOMs.

摘要

本文试图将小脑模型关节控制器(CMAC)网络的结构融入自组织映射(SOM)的Kohonen层,以构建自组织CMAC(SOCMAC)网络。所提出的SOCMAC网络可以执行SOM的功能,并且可以将学习误差作为CMAC分布到所有寻址超立方体的存储内容中。SOCMAC的学习是无监督的。SOCMAC的邻域区域隐含在二维CMAC网络的结构中,无需预先定义。基于灰色关联分析,引入了一种用于SOCMAC学习的信用分配技术,以加速整体学习过程。本文还分析了SOCMAC的收敛特性。结果表明,在所提出的更新规则下,SOCMAC的存储内容和状态输出几乎肯定会收敛。将SOCMAC应用于解决数据聚类和数据分类问题,仿真结果表明,所提出的网络比其他已知的SOM具有更好的性能。

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