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基于SVR算法的蘋果葉片葉綠素含量高光譜反演
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國家高技術(shù)研究發(fā)展計劃(863計劃)項目(2013AA102401-2)


Chlorophyll Content Inversion with Hyperspectral Technology for Apple Leaves Based on Support Vector Regression Algorithm
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    摘要:

    為實現(xiàn)蘋果葉片葉綠素含量的高光譜反演,分析了多種光譜參數(shù)與實測SPAD值的相關(guān)性,,并將歸一化光譜參數(shù)值及SPAD值進行多項式回歸及支持向量回歸,。其中以歸一化植被指數(shù)為變量的SVR(Support vector regression)反演模型在建模及模型檢驗中決定系數(shù)分別為0.7410,、0.8914,,均方根誤差分別為0.1332,、0.1256,具有較高的精度及良好的預(yù)測能力。與多項式回歸相比,,SVR具有更好的反演效果,可以作為葉綠素高光譜反演的優(yōu)選算法,。

    Abstract:

    To realize the chlorophyll content inversion with hyperspectral technology for apple leaves, the spectral data and SPAD values were obtained by SVC HR-1024i full band spectrometer and SPAD-502 portable chlorophyll analyzer, respectively. The correlation of original spectral data, the first derivative spectral data and measured SPAD values were analyzed, various spectral parameters were selected based on the sensitive wave bands and models between spectral parameters and measured SPAD values were established. The original spectra and the SPAD value were significantly negatively correlated in visible bands, and significantly positively correlated in NIR bands. The first order derivations of spectra and the SPAD value were negatively correlated in blue and green light bands, and positively correlated in yellow and red light bands. The SPAD inversion model based on NDVI and R565 fitted well. The first derivative spectral data and measured SPAD values had improved correlation coefficient compared with the original spectral data, and the determination coefficient R in the inspection process of models establishment based on normalized difference vegetation index (NDVI) and R565 were 0.8896 and 0.8524, which showed better prediction ability than other models. To avoid the difference of order of magnitude, the spectral parameters and measured SPAD values were normalized, and polynomial regression and support vector regression (SVR) were carried out by using the normalized spectral parameters and SPAD values. The R in the modeling process and inspection process of SVR inversion model were 0.7410 and 0.8914 with root mean square error of 0.1332 and 0.1256, respectively, which indicated that the SVR inversion had high precision and good prediction ability. Compared with polynomial regression, the SVR algorithm had better inversion effect, thus it can be used as an optimization algorithm for chlorophyll content inversion.

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劉京,常慶瑞,劉淼,殷紫,馬文君.基于SVR算法的蘋果葉片葉綠素含量高光譜反演[J].農(nóng)業(yè)機械學(xué)報,2016,47(8):260-265,272. Liu Jing, Chang Qingrui, Liu Miao, Yin Zi, Ma Wenjun. Chlorophyll Content Inversion with Hyperspectral Technology for Apple Leaves Based on Support Vector Regression Algorithm[J]. Transactions of the Chinese Society for Agricultural Machinery,2016,47(8):260-265,272.

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  • 收稿日期:2015-12-24
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  • 在線發(fā)布日期: 2016-08-10
  • 出版日期: 2016-08-10
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