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[利用冠层高光谱比值指数反演条锈病胁迫下小麦的相对含水量]

[Using canopy hyperspectral ratio index to retrieve relative water content of wheat under yellow rust stress].

作者信息

Jiang Jin-bao, Huang Wen-jiang, Chen Yun-hao

机构信息

College of Geoscience and Surveying Engeneering, China Univeristy of Mine and Technology, Beijing 100083, China.

出版信息

Guang Pu Xue Yu Guang Pu Fen Xi. 2010 Jul;30(7):1939-43.

Abstract

The aim of this paper is to estimate canopy relative water contents (RWC) of winter wheat under yellow rust stress by using hyperspectral remote sensing. The canopy reflectance of winter wheat that infected different severity yellow rust was collected and the disease index (DI) of the wheat was investigated respectively in the fields, whereafter the wheat was sampled corresponding to the canopy reflectance measurements and the RWC of the whole wheat were measured in the Laboratory. The research showed that the canopy spectra reflectance gradually decreased in the near-infrared (NIR) region (900-1,300 nm) with RWC reduction, however, canopy spectra reflectance gradually increased in the short-wave-infrared (SWIR) region (1,300-2,500 nm), and there was just higher minus correlation between RWC and DI. Smoothing the canopy spectra, the ratio indices were built by using the sensitive bands for water in NIR and SWIR, and then the estimation RWC linear models were built by using ratio indices as variables, and the model inversion precision and stability were analyzed and compared for estimation RWC. The result indicated that the inversion precision and the stability of the model with ratio index R1,300/R1,200 as variable excel other models, the linear model's RMSE is 3.43, and the relative error is 4.78%. So, this study results not only can provide assistant information for diagnosing wheat disease but also can supply theories and methods for inversion vegetation RWC by using hyperspectral images in the future.

摘要

本文旨在利用高光谱遥感估算条锈病胁迫下冬小麦冠层相对含水量(RWC)。在田间分别采集了感染不同严重程度条锈病的冬小麦冠层反射率,并调查了小麦的病情指数(DI),之后对应冠层反射率测量进行小麦采样,并在实验室测量了整株小麦的RWC。研究表明,随着RWC降低,冠层光谱反射率在近红外(NIR)区域(900 - 1300 nm)逐渐降低,然而在短波红外(SWIR)区域(1300 - 2500 nm)冠层光谱反射率逐渐升高,且RWC与DI之间仅存在较高的负相关关系。对冠层光谱进行平滑处理,利用NIR和SWIR波段对水分的敏感波段构建比值指数,然后以比值指数为变量建立RWC估算线性模型,并对估算RWC的模型反演精度和稳定性进行分析比较。结果表明,以比值指数R1300/R1200为变量的模型反演精度和稳定性优于其他模型,该线性模型的均方根误差(RMSE)为3.43,相对误差为4.78%。所以,本研究结果不仅可为小麦病害诊断提供辅助信息,还可为今后利用高光谱影像反演植被RWC提供理论和方法。

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