Identification of heavy metal Pb pollution in Perna viridis based on near-infrared spectroscopy
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(1. School of Computer Science and Intelligence Education , Lingnan Normal University , Zhanjiang , Guangdong 524048 , China; 2. School of Electronic and Electrical Engineering , Lingnan Normal University , Zhanjiang , Guangdong 524048 , China)

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    Abstract:

    [Objective ] Addressing the heavy metal lead pollution in oysters using near -infrared spectroscopy technology.[Methods ] This study proposed the use of near -infrared reflectance spectroscopy combined with pattern recognition for detecting Pb contamination.Initially,spectral data of healthy mussels and Pb -contaminated mussels in the range of 950~1 700 nm were collected.The wavelength selection algorithm of variable importance analysis based on the random variable combination (VIAVC ) was utilized to reduce the dimensionality,and selected the optimal subset of wavelengths.Considering the detection of healthy mussels and Pb -contaminated mussels as an imbalanced classification problem,the gravitational fixed radius nearest neighbor (GFRNN ) method based on universal gravity was explored for identifying Pb contamination in mussels.[Results] The experimental results demonstrated that the proposed VIAVC -GFRNN method outperformed traditional algorithms such as K -nearest neighbor,fixed radius nearest neighbor,and support vector machine algorithms in detecting Pb contamination,while remaining unaffected by the imbalance ratio.The area under the receiver operation curve value of the VIAVC -GFRNN model reached 0.988 6,with a detection accuracy and geometric mean of 99.17%.[Conclusion ] Near -infrared spectroscopy combined with pattern recognition methods has great potential for detecting Pd pollution in mussels.

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姜 微,刘忠艳,刘 瑶,等.基于近红外光谱的翡翠贻贝重金属铅污染识别[J].食品与机械英文版,2024,40(8):49-57.

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History
  • Received:January 01,2024
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  • Online: February 18,2025
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