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基于组合激发波段的油菜菌核病早期检测研究

[Study on the early detection of Sclerotinia of Brassica napus based on combinational-stimulated bands].

作者信息

Liu Fei, Feng Lei, Lou Bing-gan, Sun Guang-ming, Wang Lian-ping, He Yong

机构信息

College of Biosystems Engineering and Food Science, Zhejiang University, Hangzhou 310029, China.

出版信息

Guang Pu Xue Yu Guang Pu Fen Xi. 2010 Jul;30(7):1934-8.

Abstract

The combinational-stimulated bands were used to develop linear and nonlinear calibrations for the early detection of sclerotinia of oilseed rape (Brassica napus L.). Eighty healthy and 100 Sclerotinia leaf samples were scanned, and different preprocessing methods combined with successive projections algorithm (SPA) were applied to develop partial least squares (PLS) discriminant models, multiple linear regression (MLR) and least squares-support vector machine (LS-SVM) models. The results indicated that the optimal full-spectrum PLS model was achieved by direct orthogonal signal correction (DOSC), then De-trending and Raw spectra with correct recognition ratio of 100%, 95.7% and 95.7%, respectively. When using combinational-stimulated bands, the optimal linear models were SPA-MLR (DOSC) and SPA-PLS (DOSC) with correct recognition ratio of 100%. All SPA-LSSVM models using DOSC, De-trending and Raw spectra achieved perfect results with recognition of 100%. The overall results demonstrated that it was feasible to use combinational-stimulated bands for the early detection of Sclerotinia of oilseed rape, and DOSC-SPA was a powerful way for informative wavelength selection. This method supplied a new approach to the early detection and portable monitoring instrument of sclerotinia.

摘要

利用组合激发波段建立了油菜菌核病早期检测的线性和非线性校准模型。对80个健康油菜叶片样本和100个感染菌核病的油菜叶片样本进行扫描,并将不同的预处理方法与连续投影算法(SPA)相结合,建立偏最小二乘(PLS)判别模型、多元线性回归(MLR)模型和最小二乘支持向量机(LS-SVM)模型。结果表明,通过直接正交信号校正(DOSC)得到了最优的全光谱PLS模型,其次是去趋势处理和原始光谱,其正确识别率分别为100%、95.7%和95.7%。使用组合激发波段时,最优线性模型为SPA-MLR(DOSC)和SPA-PLS(DOSC),正确识别率为100%。所有使用DOSC、去趋势处理和原始光谱的SPA-LSSVM模型均取得了100%的完美识别结果。总体结果表明,利用组合激发波段对油菜菌核病进行早期检测是可行的,DOSC-SPA是一种有效的特征波长选择方法。该方法为油菜菌核病的早期检测和便携式监测仪器提供了一种新途径。

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