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Applied analysis for canopy nitrogen retrieval of winter wheat using hyperspectral vegetation index

机译:利用高光谱植被指数分析冬小麦冠层氮的应用分析

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Nitrogen is one of the most important nutrients in crop growth and development. To study the problem of spectral index setting of intelligent remote sensor for crop N prime inversion, and effectiveness of quantitative evaluation and other issues in different application requirements, with winter wheat for example to study the impact of quantitative model inversion of center wavelength, SNR and band width for different intelligent observation mode, analysis the sensitivity and effectiveness of spectral index for N inversion with the quantitative model. The results showed that: (1) when the center wavelength are 420,508 and 405nm, band width is 1nm, SNR>70DB, the MTCI_B is the best vegetation index; (2) using RVIinf_r and MTCI to build joint inversion model, the inversion result R2 = 0.9252, RMSE = 0.3678, better than the best single index of the inversion results; (3 ) the result of simulating HJ1A-HIS and Hyperion showed that joint inversion model has a certain degree of universality in different hyperspectral sensors.
机译:氮是作物生长发育中最重要的营养素之一。研究作物氮素反演智能遥感器的光谱指标设置问题,以及不同应用需求下定量评估的有效性等问题,以冬小麦为例,研究中心波长,信噪比和反演定量模型反演的影响。针对不同智能观测模式的带宽,利用定量模型分析了光谱指标对N反演的敏感性和有效性。结果表明:(1)当中心波长为420,508和405nm,带宽为1nm,SNR> 70DB时,MTCI_B为最佳植被指数; (2)利用RVIinf_r和MTCI建立联合反演模型,反演结果R2 = 0.9252,RMSE = 0.3678,优于反演结果的最佳单一指标; (3)对HJ1A-HIS和Hyperion的仿真结果表明,联合反演模型在不同的高光谱传感器中具有一定的通用性。

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