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首页> 外文期刊>Journal of near infrared spectroscopy >Spectral pre-treatments of hyperspectral near infrared images: analysis of diffuse reflectance scattering
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Spectral pre-treatments of hyperspectral near infrared images: analysis of diffuse reflectance scattering

机译:高光谱近红外图像的光谱预处理:漫反射散射分析

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摘要

Scattering effects are often encountered when measuring diffuse reflectance near infrared (NIR) spectra of solid and semi-solid materials. How does this phenomenon effect hyperspectral imaging of powders? A series of hyperspectral NIR images of particle size fractions of commercial grade salt and sugar were acquired. Spectral pre-processing techniques, including Kubelka-Munk, standard normal variate and absorbance transforms, unit length or unit area normalisation, first and second derivative transforms, and several variants of multiplicative scatter corrections (MSC) were applied to the images and examined for their effectiveness at reducing or eliminating scatter effects. Principal component analysis (PCA) scoreplots produced expected results: derivative transforms reduced variance, but did not eliminate the particle size dependencies; piecewise MSC transforms reduced the data to two clusters, one for salt and one for sugar. Partial least squares (PLS) regression was applied to examine the impact of the preprocessing transforms on prediction of particle size. RMSEP values between 10 and 50 um were determined for particle fractions ranging between 140 and 315 urn for all transforms except the piecewise MSC; in spite of the reduction in additive and multiplicative effects, enough correlated variance remained after application of the pre-processing transforms to allow prediction of particle size ranges from PLS models. Additional scatter effect information was obtained by examining particle size distribution histograms and spatial particle size mappings facilitated by the hyperspectral images.
机译:在测量固体和半固体材料的近红外(NIR)光谱的漫反射率时,经常会遇到散射效应。这种现象如何影响粉末的高光谱成像?获得了一系列商业级盐和糖粒度级分的高光谱NIR图像。光谱预处理技术(包括Kubelka-Munk,标准正态变量和吸光度变换,单位长度或单位面积归一化,一阶和二阶导数变换以及数个乘法散射校正(MSC)的变体)应用于图像并检查了它们的减少或消除散射效应的有效性。主成分分析(PCA)得分图产生了预期的结果:导数变换减少了方差,但没有消除颗粒大小的依赖性;分段MSC变换将数据缩减为两个簇,一个簇用于盐,一个簇用于糖。应用偏最小二乘(PLS)回归来检查预处理变换对粒度预测的影响。对于除分段MSC以外的所有转化,均确定了140至315 um范围内的粒子分数,RMSEP值在10至50 um之间。尽管累加效应和乘法效应减少了,但在应用预处理转换后仍保留了足够的相关方差,从而可以根据PLS模型预测粒径范围。通过检查粒度分布直方图和由高光谱图像促进的空间粒度映射,可以获得其他散射效果信息。

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