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Solid laboratory calibration of a nonimaging spectroradiometer

机译:非成像光谱仪的固态实验室校准

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Field-based nonimaging spectroradiometers are often used in vicarious calibration experiments for airborne or spaceborne imaging spectrometers. The calibration uncertainties associated with these ground measurements contribute substantially to the overall modeling error in radiance- or reflectancebased vicarious calibration experiments. Because of limitations in the radiometric stability of compact field spectroradiometers, vicarious calibration experiments are based primarily on reflectance measurements rather than on radiance measurements. To characterize the overall uncertainty of radiancebased approaches and assess the sources of uncertainty, we carried out a full laboratory calibration. This laboratory calibration of a nonimaging spectroradiometer is based on a measurement plan targeted at achieving a≤10% uncertainty calibration. The individual calibration steps include characterization of the signal-to-noise ratio, the noise equivalent signal, the dark current, the wavelength calibration, the spectral sampling interval, the nonlinearity, directional and positional effects, the spectral scattering, the field of view, the polarization, the size-of-source effects, and the temperature dependence of a particular instrument. The traceability of the radiance calibration is established to a secondary National Institute of Standards and Technology calibration standard by use of a 95% confideuce interval and results in an uncertainty of less than ±7.1% for all spectroradiometer bands.
机译:基于场的非成像光谱仪通常用于机载或星载成像光谱仪的替代校准实验中。与这些地面测量值相关的校准不确定性在很大程度上导致了基于辐射或反射的替代校准实验中的整体建模误差。由于紧凑型现场光谱辐射仪的辐射稳定性受到限制,替代校准实验主要基于反射率测量,而不是基于辐射率测量。为了表征基于辐射的方法的总体不确定性并评估不确定性的来源,我们进行了全面的实验室校准。非成像光谱仪的实验室校准基于旨在实现≤10%不确定度校准的测量计划。各个校准步骤包括表征信噪比,噪声等效信号,暗电流,波长校准,光谱采样间隔,非线性,方向和位置效应,光谱散射,视场,极化,光源尺寸效应和特定仪器的温度依赖性。通过使用95%的置信区间,可以将辐射度校准的可追溯性建立到美国国家标准技术研究院的次级校准标准中,对于所有光谱辐射仪波段,其不确定度均小于±7.1%。

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