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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Advanced radiometry measurements and Earth science applications with the Airborne Prism Experiment (APEX)
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Advanced radiometry measurements and Earth science applications with the Airborne Prism Experiment (APEX)

机译:机载棱镜实验(APEX)进行高级辐射测量和地球科学应用

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We present the Airborne Prism Experiment (APEX), its calibration and subsequent radiometric measurements as well as Earth science applications derived from this data. APEX is a dispersive pushbroom imaging spectrometer covering the solar reflected wavelength range between 372 and 2540 nm with nominal 312 (max. 532) spectral bands. APEX is calibrated using a combination of laboratory, in-flight and vicarious calibration approaches. These are complemented by using a forward and inverse radiative transfer modeling approach, suitable to further validate APEX data. We establish traceability of APEX radiances to a primary calibration standard, including uncertainty analysis. We also discuss the instrument simulation process ranging from initial specifications to performance validation. In a second part, we present Earth science applications using APEX. They include geometric and atmospheric compensated as well as reflectance anisotropy minimized Level 2 data. Further, we discuss retrieval of aerosol optical depth as well as vertical column density of NOx, a radiance data-based coupled canopy atmosphere model, and finally measuring sun-induced chlorophyll fluorescence (Fs) and infer plant pigment content. The results report on all APEX specifications including validation. APEX radiances are traceable to a primary standard with <4% uncertainty and with an average SNR of >625 for all spectral bands. Radiance based vicarious calibration is traceable to a secondary standard with <= 65% uncertainty. Except for inferring plant pigment content, all applications are validated using in-situ measurement approaches and modeling. Even relatively broad APEX bands (FWHM of 6 nm at 760 nm) can assess Fs with modeling agreements as high as R-2 = 0.87 (relative RMSE = 27.76%). We conclude on the use of high resolution imaging spectrometers and suggest further development of imaging spectrometers supporting science grade spectroscopy measurements. (C) 2014 The Authors. Published by Elsevier Inc.
机译:我们介绍了机载棱镜实验(APEX),其校准和后续的辐射测量以及从该数据得出的地球科学应用。 APEX是一种色散的推扫式成像光谱仪,它覆盖了372至2540 nm之间的太阳反射波长范围,并具有312个(最大532个)标称光谱带。 APEX通过结合实验室,飞行中和替代性校准方法进行校准。通过使用适合进一步验证APEX数据的正向和反向辐射传输建模方法,可以对这些方法进行补充。我们将APEX辐射的可追溯性建立到主要的校准标准,包括不确定性分析。我们还将讨论从初始规格到性能验证的仪器仿真过程。在第二部分中,我们介绍了使用APEX的地球科学应用程序。它们包括几何和大气补偿以及最小化了反射率各向异性的2级数据。此外,我们讨论了气溶胶光学深度以及NOx垂直列密度的获取,基于辐射数据的耦合冠层大气模型,最后讨论了太阳诱导的叶绿素荧光(Fs)和推断植物色素含量。结果报告涵盖所有APEX规范,包括验证。 APEX辐射可以追溯到主要标准,不确定度<4%,所有光谱带的平均SNR均大于625。基于辐射的替代校准可追溯到不确定度<= 65%的二级标准。除推断植物色素含量外,所有应用均使用原位测量方法和建模进行了验证。甚至相对较宽的APEX波段(760 nm处的FWHM为6 nm)也可以通过高达R-2 = 0.87(相对RMSE = 27.76%)的建模协议来评估Fs。我们总结了高分辨率成像光谱仪的使用,并建议进一步发展支持科学级光谱学测量的成像光谱仪。 (C)2014作者。由Elsevier Inc.发布

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