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Discrimination of chemically similar organic vapours and vapour mixtures using the Kohonen network

机译:使用Kohonen网络区分化学相似的有机蒸气和蒸气混合物

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摘要

A Kohonen network was employed to discriminate between a series of chemically similar alcohols and mixtures of organic solvents. The input data for the Kohonen analysis was generated using an optimized eight-sensor array designed to sample the headspace of the solvents. Different sizes of output grid were investigated to devise a network that gave optimum discrimination and maintained relationships within the data set. When the output grid was large compared to the number of classes in the sample set, discrimination was shown to be enhanced compared to a small output grid. An advantage of the small output grid is that it was shown to maintain information within the original data set. The Kohonen network generated easily distinguishable output patterns, which could be used as an alternative to pattern recognition or in conjunction with output grid maps. [References: 24]
机译:使用Kohonen网络来区分一系列化学相似的醇和有机溶剂的混合物。 Kohonen分析的输入数据是使用优化的八传感器阵列生成的,该阵列设计用于对溶剂的顶部空间进行采样。研究了不同大小的输出网格,以设计一个网络,该网络可提供最佳的判别力并保持数据集中的关系。当输出网格比样本集中的类数大时,与较小的输出网格相比,辨别力会增强。小型输出网格的一个优势在于,它可以将信息保留在原始数据集中。 Kohonen网络生成易于区分的输出模式,可将其用作模式识别的替代方法或与输出网格图结合使用。 [参考:24]

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