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基于电子鼻数据自动检测不新鲜牛肉。

Automated detection of stale beef from electronic nose data.

作者信息

Jia Wenshen, Lv Haolin, Liu Yang, Zhou Wei, Qin Yingdong, Ma Jie

机构信息

Institute of Quality Standard and Testing Technology Beijing Academy of Agriculture and Forestry Sciences Beijing China.

Department of Risk Assessment Lab for Agro-Products (Beijing) Ministry of Agriculture and Rural Affairs Beijing China.

出版信息

Food Sci Nutr. 2024 Oct 28;12(11):9856-9865. doi: 10.1002/fsn3.3910. eCollection 2024 Nov.

Abstract

Accurate detection of stale beef on the market is important for protecting the legitimate rights and interests of consumers. To this end, we combined electronic nose measurements with machine learning technology to classify beef samples. We used an electronic nose to collect information about the odor characteristics of different beef samples and used linear discriminant analysis to reduce data dimensionality. We then classified samples using the following algorithms: extreme gradient boosting, logistic regression, K-nearest neighbor, random forest, support vector machine, and neural networks for pattern recognition. We assessed model performance using a 10-fold cross-validation technique. All these methods reached an accuracy of 95% or above, with 1 scores and AUC values above 0.96. The support vector machine algorithm outperformed all other models, achieving perfect recognition with 100% accuracy and 1/AUC scores of 1.0. Our study demonstrates that electronic nose data combined with support vector machine can be used to successfully discriminate between stale and fresh beef, paving the way for novel research directions in the detection of stale beef.

摘要

准确检测市场上的变质牛肉对于保护消费者的合法权益至关重要。为此,我们将电子鼻测量与机器学习技术相结合,对牛肉样本进行分类。我们使用电子鼻收集不同牛肉样本的气味特征信息,并使用线性判别分析来降低数据维度。然后,我们使用以下算法对样本进行分类:极端梯度提升、逻辑回归、K近邻、随机森林、支持向量机和模式识别神经网络。我们使用10折交叉验证技术评估模型性能。所有这些方法的准确率均达到95%或以上,F1分数和AUC值均高于0.96。支持向量机算法优于所有其他模型,实现了100%的准确率和1.0的F1/AUC分数的完美识别。我们的研究表明,电子鼻数据与支持向量机相结合可成功区分变质牛肉和新鲜牛肉,为变质牛肉检测的新研究方向铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f081/11606858/23dfa298dd97/FSN3-12-9856-g002.jpg

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