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使用计算机视觉和白盒机器学习技术根据颜色变化分析牛肉品质

Analysis of beef quality according to color changes using computer vision and white-box machine learning techniques.

作者信息

Sánchez Claudia N, Orvañanos-Guerrero María Teresa, Domínguez-Soberanes Julieta, Álvarez-Cisneros Yenizey M

机构信息

Universidad Panamericana. Facultad de Ingeniería. Aguascalientes, 20296, Mexico.

Universidad Panamericana. Escuela de Dirección de Negocios Alimentarios. Aguascalientes, 20296, Mexico.

出版信息

Heliyon. 2023 Jul 15;9(7):e17976. doi: 10.1016/j.heliyon.2023.e17976. eCollection 2023 Jul.

Abstract

The quality of beef products relies on the presence of a cherry red color, as any deviation toward brownish tones indicates a loss in quality. Existing studies typically analyze individual color channels separately, establishing acceptable ranges. In contrast, our proposed approach involves conducting a multivariate analysis of beef color changes using white-box machine learning techniques. Our proposal encompasses three phases. (1) We employed a Computer Vision System (CVS) to capture the color of beef pieces, implementing a color correction pre-processing step within a specially designed cabin. (2) We examined the differences among three color spaces (RGB, HSV, and CIELab*) (3) We evaluated the performance of three white-box classifiers (decision tree, logistic regression, and multivariate normal distributions) for predicting color in both fresh and non-fresh beef. These models demonstrated high accuracy and enabled a comprehensive understanding of the prediction process. Our results affirm that conducting a multivariate analysis yields superior beef color prediction outcomes compared to the conventional practice of analyzing each channel independently.

摘要

牛肉产品的质量取决于其呈现出的樱桃红色,因为任何向褐色调的偏差都表明质量有所下降。现有研究通常分别分析各个颜色通道,确定可接受的范围。相比之下,我们提出的方法涉及使用白盒机器学习技术对牛肉颜色变化进行多变量分析。我们的方案包括三个阶段。(1)我们使用计算机视觉系统(CVS)来捕捉牛肉块的颜色,在一个专门设计的舱室内实施颜色校正预处理步骤。(2)我们研究了三个颜色空间(RGB、HSV和CIELab*)之间的差异。(3)我们评估了三种白盒分类器(决策树、逻辑回归和多元正态分布)对新鲜牛肉和不新鲜牛肉颜色预测的性能。这些模型显示出很高的准确性,并能让人全面了解预测过程。我们的结果证实,与独立分析每个通道的传统做法相比,进行多变量分析能产生更优的牛肉颜色预测结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3348/10375562/0500cf52ed8a/gr1.jpg

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