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Unsupervised grouping of industrial textile dyes using K-means algorithm and optical fibre spectroscopy

机译:使用K均值算法和光纤光谱对工业纺织品染料进行无监督分组

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摘要

A method for the unsupervised clustering of optically thick textile dyes based on their spectral properties is demonstrated in this paper. The system utilizes optical fibre sensor techniques in the Ultraviolet-Visible-Near Infrared (UV-Vis-NIR) to evaluate the absorption spectrum and thus the colour of textile dyes. A multivariate method is first applied to calculate the optimum dilution factor needed to reduce the high absorbance of the dye samples. Then, the grouping algorithm used combines Principal Component Analysis (PCA), for data compression, and K-means for unsupervised clustering of the different dyes. The feasibility of the proposed method for textile applications is also discussed in the paper.
机译:本文介绍了一种基于光谱特性的光学厚织物染料无监督聚类的方法。该系统利用紫外可见近红外(UV-Vis-NIR)中的光纤传感器技术来评估吸收光谱,从而评估纺织品染料的颜色。首先应用多元方法来计算减少染料样品高吸光度所需的最佳稀释倍数。然后,所使用的分组算法将用于数据压缩的主成分分析(PCA)和用于不同染料的无监督聚类的K-均值相结合。本文还讨论了所提出的方法在纺织品上的可行性。

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