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An improved algorithm for Kohonen's self-organizing feature maps

机译:Kohonen自组织特征图的改进算法

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A modified algorithm is presented for the learning by self-organizing topology-preserving maps to improve the piecewise-correct problem that arose frequently with the original self-organizing maps. The problem is generally caused by two dominant factors existing in the learning procedure of the original algorithm. One is the initial-sequence-order problem. The present algorithm efficiently reduces the influence of these two factors and successfully guides the network to form a topologically correct map. The proposed algorithm adopts a dynamic network that allows cells to be inserted and deleted, and it adds the Coulomb effect to the learning factor. Simulation results indicate that the modified algorithm performs well in learning the mapping of a two-dimensional input vector distribution using a one-dimensional network.
机译:提出了一种通过自组织拓扑保留图进行学习的改进算法,以改善原始自组织图经常出现的分段校正问题。该问题通常是由原始算法的学习过程中存在的两个主导因素引起的。一种是初始顺序问题。本算法有效地减少了这两个因素的影响,并成功地指导网络形成拓扑正确的地图。所提出的算法采用允许插入和删除单元格的动态网络,并将库仑效应添加到学习因子中。仿真结果表明,该改进算法在学习使用一维网络的二维输入矢量分布的映射中表现良好。

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