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Using a simple digital camera and SPA-LDA modeling to screen teas

机译:使用简单的数码相机和SPA-LDA建模来筛选茶

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摘要

Classification or screening analysis of natural unprocessed teas using simple digital images and a variable selection algorithm is described. The proposed methodology uses color histograms generated on free downloadable software ImageJ 1.44p as a source of analytical information. Two chemometric methods were compared for classification of the resulting images, namely Soft Independent Modeling of Class Analogy (SIMCA), and Linear Discriminant Analysis (LDA) with variable selection by the Successive Projections Algorithm (SPA). The results were evaluated in terms of errors found in a sample set separate from the modeling process. The choice of more informative photometric color attributes (red-green-blue (RGB), hue (H), saturation (S), brightness (B), and grayscale) for screening the tea samples was made during the color modeling because SIMCA failed to give good results. Therefore the data treatment used SPA-LDA, which correctly classified all samples according to their geographical regions, whether from Brazilian, Argentinian or foreign soils.
机译:描述了使用简单的数字图像和变量选择算法对天然未加工茶的分类或筛选分析。所提出的方法使用在免费下载的软件ImageJ 1.44p上生成的颜色直方图作为分析信息的来源。比较了两种化学计量学方法对所得图像进行分类,分别是类比的软独立建模(SIMCA)和通过连续投影算法(SPA)进行变量选择的线性判别分析(LDA)。根据与建模过程分开的样本集中发现的误差对结果进行了评估。由于SIMCA失败,因此在颜色建模期间选择了更多有用的光度学颜色属性(红绿蓝(RGB),色相(H),饱和度(S),亮度(B)和灰度)来筛选茶样品。给出好的结果。因此,数据处理使用了SPA-LDA,SPA-LDA可以根据其地理区域对来自巴西,阿根廷或外国土壤的所有样本进行正确分类。

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