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基于可見/近紅外光譜的牡丹葉片花青素含量預(yù)測
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國家高技術(shù)研究發(fā)展計劃(863計劃)資助項目(2013AA102401-2)


Prediction of Anthocyanin Content in Peony Leaves Based on Visible/Near-infrared Spectra
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    摘要:

    以開花初期不同品種牡丹葉片為研究對象,分析葉片花青素含量與反射光譜之間的相關(guān)關(guān)系,分別建立基于單波長、不同植被指數(shù)、相關(guān)系數(shù)大于0.52的可見光波段的葉片花青素含量預(yù)測模型。研究結(jié)果表明,牡丹葉片反射光譜與花青素含量的最大相關(guān)系數(shù)位于544nm;以544nm波長反射率及花青素反射指數(shù)(ARI)、調(diào)整花青素反射指數(shù)(MARI)為自變量建立的預(yù)測模型可以用于牡丹葉片花青素含量預(yù)測;以偏最小二乘回歸(PLSR)構(gòu)建的牡丹葉片花青素含量預(yù)測模型的建模和驗?zāi)2分別為0.873和0.811,RMSE為0.068μmol/g,RPD為2.352,是預(yù)測牡丹葉片花青素含量的最優(yōu)模型。

    Abstract:

    The anthocyanin content in leaves can provide valuable information about the physiological conditions of plants and their responses to stress. Thus, there is a need for accurate, efficient and practical methodologies to estimate the biochemical parameters of vegetation. In this study, the peony leaves of different varieties in the early flowering stage were selected as the research objects to analyze the correlation between anthocyanin content in leaves and reflectance spectra. The predictive models were established based on a single band or different vegetation indices. The PLSR(Partial least squares regression) model was constructed to estimate anthocyanin content in leaves by using the reflectance spectra with correlation coefficient more than 0.52 in visible band as independent variables. The results showed that the maximum correlation coefficient between reflectance spectra and anthocyanin content was located at 544nm. These predictive models which used the reflectance at 544nm, ARI (Anthocyanin reflectance index) or MARI (Modified anthocyanin reflectance index) as independent variables could be used to estimate anthocyanin content in peony leaves in fact. The calibration and validation R2 of optimum model for predicting anthocyanin content in poeny leaves established by PLSR were 0.873 and 0.811, and the RMSE and RPD were 0.068μmol/g and 2.352, respectively. This study can provide a method for nondestructive estimation of anthocyanin content in plant leaves, and make a reference for the assessment of physiological status of plants and early stress detection.

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劉秀英,申 健,常慶瑞,嚴(yán) 林,高雨茜,謝 飛.基于可見/近紅外光譜的牡丹葉片花青素含量預(yù)測[J].農(nóng)業(yè)機械學(xué)報,2015,46(9):319-324. Liu Xiuying, Shen Jian, Chang Qingrui, Yan Lin, Gao Yuqian, Xie Fei. Prediction of Anthocyanin Content in Peony Leaves Based on Visible/Near-infrared Spectra[J]. Transactions of the Chinese Society for Agricultural Machinery,2015,46(9):319-324.

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  • 收稿日期:2015-07-06
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  • 在線發(fā)布日期: 2015-09-10
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