文献类型: 外文期刊
作者: Ban, Songtao 1 ; Tian, Minglu 1 ; Hu, Dong 1 ; Xu, Mengyuan 1 ; Yuan, Tao 1 ; Zheng, Xiuguo 1 ; Li, Linyi 1 ; Wei, Shiwei 3 ;
作者机构: 1.Shanghai Acad Agr Sci, Inst Agr Sci & Technol Informat, Shanghai 201403, Peoples R China
2.Minist Agr & Rural Affairs, Key Lab Intelligent Agr Technol Yangtze River Delt, Shanghai 201403, Peoples R China
3.Shanghai Agrobiol Gene Ctr, Shanghai 201106, Peoples R China
关键词: hyperspectral imagery; lettuce; downy mildew
期刊名称:AGRICULTURE-BASEL ( 影响因子:3.6; 五年影响因子:3.8 )
ISSN:
年卷期: 2025 年 15 卷 5 期
页码:
收录情况: SCI
摘要: This study combines hyperspectral imaging technology with biochemical parameter analysis to facilitate the disease severity evaluation and early detection of lettuce downy mildew. The results reveal a significant negative correlation between the disease index (DI) and the levels of flavonoids (r = -0.523) and anthocyanins (r = -0.746), indicating the role of these secondary metabolites in enhancing plant resistance. Analysis of hyperspectral data identified that spectral regions (410-503 nm, 510-615 nm, and 630-690 nm) and vegetation indices like PRI and ARI2 were highly correlated with DI, flavonoids, and anthocyanins, providing potential spectral indicators for disease assessment and early detection. Moreover, regression models developed using Partial Least Squares (PLS), Random Forest (RF), and Convolutional Neural Network (CNN) algorithms demonstrated high accuracy and reliability in predicting DI, flavonoids, and anthocyanins, with the highest R2 of 0.857, 0.910, and 0.963, respectively. The classification model using PLS, RF, and CNN successfully detected early physiological changes in lettuce within 24 h post-infection (highest accuracy = 0.764), offering an effective tool for early disease detection. The key spectral parameters in the PLS-DA model, like PRI, also demonstrated strong correlations with DI. These findings provide a scientific basis and practical tools for managing lettuce downy mildew and resistance breeding while laying a foundation for broader applications of hyperspectral imaging in plant pathology.
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