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Classification of biological spectrum based on principal component cluster analysis

机译:基于主成分聚类分析的生物谱分类

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Spectrums of 17 biological tissue phantoms were measured using the fiber-optic spectrometer. Then, the spectrum was preprocessed by multiplicative scatter correction method to devoice the spectrum. Afterwards the features of the spectrum were extracted via principal component analysis. Ultimately, we applied cluster analysis for the spectral features. The results showed that the accumulated credibility of the first 12 spectral principal components was 99.86% for the spectrum after preprocessing; indicating that this spectrum feature extraction might be done in the case of losing no key information. And the results showed that the 17 biological tissue phantoms can be divided into four main categories according their optical features.
机译:使用光纤光谱仪测量17个生物组织幽灵的光谱。然后,通过乘法散射校正方法预处理频谱以使频谱进行更新。之后通过主成分分析提取光谱的特征。最终,我们应用了频谱特征的集群分析。结果表明,在预处理后,前12个光谱主要成分的累积可信度为99.86%;表明在丢失关键信息的情况下,可以进行该频谱特征提取。结果表明,根据其光学特征,17个生物组织幽灵可以分为四个主要类别。

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