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利用高光谱成像和带有距离相关波长选择的深度学习进行无损鸡蛋新鲜度评估。

Nondestructive egg freshness assessment using hyperspectral imaging and deep learning with distance correlation wavelength selection.

作者信息

Ong Pauline, Chiu Shih-Yen, Tsai I-Lin, Kuan Yen-Chou, Wang Yu-Jen, Chuang Yung-Kun

机构信息

Faculty of Mechanical and Manufacturing Engineering, Universiti Tun Hussein Onn Malaysia (UTHM), Parit Raja, 86400, Batu Pahat, Johor, Malaysia.

College of Nutrition, Taipei Medical University, 250 Wusing Street, Taipei, 11031, Taiwan.

出版信息

Curr Res Food Sci. 2025 Jul 3;11:101133. doi: 10.1016/j.crfs.2025.101133. eCollection 2025.

Abstract

Conventional egg freshness assessment methods based on the Haugh unit are destructive and time-consuming. Accordingly, this study investigated the use of hyperspectral imaging (450-1100 nm) for nondestructive egg freshness evaluation. Spectral data were preprocessed using standard normal variates to minimize spectral variability, followed by wavelength selection - a crucial step for improving model predictability. Particularly, distance correlation, a statistically robust yet rarely explored method in hyperspectral wavelength selection, was employed to identify informative wavelengths. The selected wavelengths were incorporated into various regression models, namely convolutional neural network, gradient boosting trees, multiple linear regression, partial least squares regression, and support vector regression models. We observed that the convolutional neural network model incorporating the distance correlation method demonstrated the best performance (correlation coefficient of 0.9056 and root mean square error of 4.4152), outperforming the other models using commonly applied wavelength selection methods. Pseudocolor maps of egg freshness were generated based on the best obtained model.

摘要

基于哈夫单位的传统鸡蛋新鲜度评估方法具有破坏性且耗时。因此,本研究探讨了使用高光谱成像(450 - 1100纳米)进行鸡蛋新鲜度的无损评估。光谱数据使用标准正态变量进行预处理,以最小化光谱变异性,随后进行波长选择——这是提高模型预测能力的关键步骤。特别是,距离相关性作为高光谱波长选择中一种统计稳健但很少被探索的方法,被用于识别信息丰富的波长。所选波长被纳入各种回归模型,即卷积神经网络、梯度提升树、多元线性回归、偏最小二乘回归和支持向量回归模型。我们观察到,结合距离相关方法的卷积神经网络模型表现最佳(相关系数为0.9056,均方根误差为4.4152),优于使用常用波长选择方法的其他模型。基于最佳获得的模型生成了鸡蛋新鲜度的伪彩色图。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c778/12270930/803d2d3b009c/ga1.jpg

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