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一种通过整合生物光子学和机器学习算法来检测小麦新鲜度的有效方法。

An effective method for detecting the wheat freshness by integrating biophotonics and machine learning algorithm.

作者信息

Shi Weiya, Chen Liang

机构信息

Key Laboratory of Grain Information Processing and Control (Henan University of Technology), Ministry of Education, Zhengzhou, 450001, Henan, China.

Henan Key Laboratory of Grain Photoelectric Detection and Control, Henan University of Technology, Zhengzhou, 450001, Henan, China.

出版信息

Sci Rep. 2024 Dec 30;14(1):32145. doi: 10.1038/s41598-024-83988-y.

Abstract

The accurate and timely assessment of wheat freshness is not only a complex scientific endeavor but also a critical aspect of grain storage safety. This study introduces an innovative approach for evaluating wheat freshness by integrating machine learning algorithms with Biophoton Analytical Technology (BPAT). Initially, spontaneous ultraweak photon emissions from wheat are measured, and various statistical descriptors are derived to construct a feature vector. Particle Swarm Optimization (PSO) is then utilized to determine the optimal parameters for the Support Vector Machine (SVM). To validate the efficacy of the proposed method, additional machine learning techniques such as K-Nearest Neighbors (KNN), Multilayer Perceptron (MLP), and decision trees are employed. Experimental results demonstrate that both the machine learning algorithms and input features significantly influence model performance. Notably, using only central tendency factor features yields commendable recognition outcomes, eliminating the need for variability factor features. This research offers a novel perspective on the quantitative evaluation of wheat freshness.

摘要

准确及时地评估小麦新鲜度不仅是一项复杂的科学工作,也是粮食储存安全的关键方面。本研究引入了一种创新方法,通过将机器学习算法与生物光子分析技术(BPAT)相结合来评估小麦新鲜度。首先,测量小麦自发的超微弱光子发射,并导出各种统计描述符以构建特征向量。然后利用粒子群优化(PSO)来确定支持向量机(SVM)的最佳参数。为了验证所提方法的有效性,还采用了其他机器学习技术,如K近邻(KNN)、多层感知器(MLP)和决策树。实验结果表明,机器学习算法和输入特征均对模型性能有显著影响。值得注意的是,仅使用集中趋势因子特征就能产生值得称赞的识别结果,无需使用变异因子特征。本研究为小麦新鲜度的定量评估提供了新的视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7223/11686251/8c5b7965cedb/41598_2024_83988_Fig1_HTML.jpg

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