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DATA CLUSTERING USING A REORGANIZING NEURAL NETWORK

机译:使用重组神经网络进行数据聚类

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摘要

A new approach, designed for clustering of arbitrary distributed patterns, is presented. This study is concerned with the use of a self-organizing neural network as a frame for data clustering. The nearest network nodes in feature space are treated as prototypes, assigned to the corresponding cluster. The rules for dead-node shifting and simple adjustment of coordinates of the active nodes are introduced. The performance of the proposed self-organizing neural network is examined on the benchmark synthetic and the real-world problem.
机译:提出了一种用于聚类任意分布模式的新方法。这项研究与使用自组织神经网络作为数据聚类的框架有关。特征空间中最近的网络节点被视为原型,并分配给相应的群集。介绍了死点移动规则和活动节点坐标的简单调整规则。提出的自组织神经网络的性能在基准综合问题和实际问题上得到了检验。

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