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Exploratory Study of Kohonen Network for Human Health State Classification

机译:Kohonen网络用于人类健康状态分类的探索性研究

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Kohonen Network is an unsupervised learning which forms clusters from patterns that share common features and group similar patterns together. This network are commonly uses grids of artificial neurons which connected to all the inputs. This paper presents an exploratory study of Kohonen Neural Network to classify human health state. Neural Connection tool is used to generate the result based on Kohonen learning algorithm. Procedural steps are provided to assist the implementation of the Kohonen Network. The result shows that side 2 is more appropriate for this problem with efficient learning rate 1.0. It gives good distribution for training and test patterns. Study to the variation of dataset’s size will be considered in the near future to evaluate the performance of the network.
机译:Kohonen Network是一种无监督的学习,它从具有共同特征的模式中形成集群并将相似的模式分组在一起。该网络通常使用连接到所有输入的人工神经元网格。本文提出了Kohonen神经网络对人类健康状态进行分类的探索性研究。神经连接工具用于基于Kohonen学习算法生成结果。提供了程序步骤来协助Kohonen网络的实施。结果表明,第2面更适合于具有有效学习率1.0的此问题。它为训练和测试模式提供了良好的分布。将在不久的将来考虑研究数据集大小的变化,以评估网络的性能。

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