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冬小麥SPAD值無人機(jī)可見光和多光譜植被指數(shù)結(jié)合估算
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國家重點(diǎn)研發(fā)計(jì)劃項(xiàng)目(2018YFC1508301),、中國農(nóng)業(yè)科學(xué)院基本科研業(yè)務(wù)費(fèi)專項(xiàng)(FIRI2018-08,、 FIRI2019-05-05、 FIRI202001-04)和國家自然科學(xué)基金項(xiàng)目(41601346)


Combining UAV Visible Light and Multispectral Vegetation Indices for Estimating SPAD Value of Winter Wheat
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    摘要:

    SPAD(Soil and plant analyzer development)值能夠反映作物葉片葉綠素含量,,是表征作物健康狀態(tài)的重要指標(biāo),。采用無人機(jī)搭載可見光和多光譜相機(jī)同步獲取冬小麥可見光和多光譜影像,同時(shí)獲取冬小麥葉片SPAD值,,探究了可見光和多光譜植被指數(shù)與SPAD值的關(guān)系,,將可見光植被指數(shù)與多光譜植被指數(shù)相結(jié)合進(jìn)行SPAD值估算,利用逐步回歸和隨機(jī)森林回歸方法估算SPAD值,,并將估算結(jié)果進(jìn)行對(duì)比,,篩選出冬小麥葉片SPAD值的最優(yōu)估算模型。結(jié)果表明,,SPAD值與可見光植被指數(shù)(IKAW和RBRI),、多光譜植被指數(shù)(GNDVI、CI,、GMSR和GOSAVI)具有較好的相關(guān)性,,與可見光植被指數(shù)(CIVE)和多光譜植被指數(shù)(GNDVI)的相結(jié)合指數(shù)具有較好的相關(guān)性,其估算模型的R2為0.89,,模型驗(yàn)證的RMSE為2.55,,nRMSE為6.21%。研究表明,,可見光植被指數(shù)與多光譜植被指數(shù)相結(jié)合指數(shù)逐步回歸和隨機(jī)森林回歸模型估算SPAD值的精度高于僅用可見光植被指數(shù)或多光譜植被指數(shù),,采用逐步回歸的估算模型R2為0.91,模型驗(yàn)證R2,、RMSE和nRMSE分別為0.89,、2.32和5.64%,,采用隨機(jī)森林回歸的估算模型R2為0.90,模型驗(yàn)證R2,、RMSE和nRMSE分別為0.88,、2.51和6.12%。

    Abstract:

    Soil and plant analyzer development (SPAD) can reflect the chlorophyll content of crop leaves, and it is an important indicator of crop health. The visible light and multispectral images of winter wheat were synchronously obtained by unmanned aerial vehicle (UAV) equipped with visible light and multispectral cameras, and the SPAD value of winter wheat leaves were also obtained. The purposes were to explore the relationship between visible light vegetation indices, multispectral vegetation indices and SPAD value, estimate SPAD value by combining visible light and multispectral vegetation indices, and estimate SPAD value by using stepwise regression and random forest regression. The results were compared to select the best model for estimating SPAD value of winter wheat leaves. The results showed that SPAD value had good correlation with visible light vegetation indices (IKAW and RBRI) and multispectral vegetation indices (GNDVI, CI, GMSR and GOSAVI). Besides, SPAD value had a good correlation with the combination index of visible light vegetation index (CIVE) and multispectral vegetation index (GNDVI). The R2 of the estimation model of combination index was 0.89, the RMSE was 2.55, and nRMSE of the model verification was 6.21%, respectively. The results showed that compared with the indices of visible light vegetation and that of multispectral vegetation respectively, the model of stepwise regression and random forest regression of the combination indices of visible light vegetation and multispectral vegetation were more accurate in estimating SPAD value. The R2 of the optimal stepwise regression model of combination indices was 0.91, and the R2, RMSE and nRMSE of the model verification were 0.89, 2.32 and 5.64%, respectively. The R2 of the random forest regression model of combination indices was 0.90, and the R2, RMSE and nRMSE of the model verification were 0.88, 2.51 and 6.12%, respectively, which indicated good estimation results. The research result provided a reference for the estimation of winter wheat growth information based on the combining UAV visible light and multispectral image vegetation indices and improved the accuracy and stability of the estimation model.

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牛慶林,馮海寬,周新國,朱建強(qiáng),雍蓓蓓,李會(huì)貞.冬小麥SPAD值無人機(jī)可見光和多光譜植被指數(shù)結(jié)合估算[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2021,52(8):183-194. NIU Qinglin, FENG Haikuan, ZHOU Xinguo, ZHU Jianqiang, YONG Beibei, LI Huizhen. Combining UAV Visible Light and Multispectral Vegetation Indices for Estimating SPAD Value of Winter Wheat[J]. Transactions of the Chinese Society for Agricultural Machinery,2021,52(8):183-194.

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  • 收稿日期:2021-04-27
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  • 在線發(fā)布日期: 2021-08-10
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