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Detection and Correction of Spectral Shift Effects for the Airborne Prism Experiment

机译:机载棱镜实验的光谱偏移效应的检测和校正

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Shifts of center wavelengths (CWLs) and related changes of full-widths at half-maximums (FWHMs) occur during in-flight data acquisitions of push-broom imaging spectrometers such as the airborne prism experiment (APEX). Combined with the spectrally changing properties of the dichroic coating that acts as a beam splitter between the visible and near infrared (VNIR) as well as the short-wave infrared (SWIR) channels, these shifts affect both the spectral and radiometric accuracies of the spectrometer data, and hence the accuracy of higher level products. In this paper, two independent standards, i.e., atmospheric absorption features as well as features of the standard reference material filter built in the APEX in-flight characterization facility, are used in a complementary way to improve in-flight spectral calibration. The CWL shift and FWHM change for each detector element are simultaneously detected by using spectrum-matching and surface fitting techniques under constraints from pregenerated shift realizations. Subsequently, the APEX spectroradiometric response model is improved in the aspect of spectral resolution by using performance parameters of optics and detector modules. The radiometric gain and offset for each detector element are corrected according to the detected CWLs and FWHMs, as well as the improved APEX response model. Compared with the spectral and radiometric parameters acquired during laboratory calibration, the detected CWLs and FWHMs promote the accuracy of the atmospheric feature positions in the SWIR channel by 10 nm, whereas the corrected gains and offsets reduce the radiance deviation in the spectral regions 375-550 nm and 950-1080 nm both by 70% on average.
机译:中心波长(CWL)的移动以及半峰全宽(FWHM)的相关变化在推扫式成像光谱仪的机载数据采集过程中发生,例如机载棱镜实验(APEX)。结合分色涂层的光谱变化特性,该分色涂层充当可见光和近红外(VNIR)以及短波红外(SWIR)通道之间的分束器,这些偏移会影响光谱仪的光谱精度和辐射精度数据,从而提高高级产品的准确性。本文以互补的方式使用了两个独立的标准,即大气吸收特征以及内置在APEX机内表征设施中的标准参考物质过滤器的特征,以改善机内光谱校准。在预生成的位移实现的约束下,通过使用光谱匹配和表面拟合技术,可以同时检测每个检测器元件的CWL位移和FWHM变化。随后,通过使用光学器件和检测器模块的性能参数,在光谱分辨率方面改进了APEX光谱响应模型。根据检测到的CWL和FWHM以及改进的APEX响应模型,对每个检测器元素的辐射增益和偏移进行校正。与实验室校准过程中获得的光谱和辐射度参数相比,检测到的CWL和FWHM将SWIR通道中大气特征位置的精度提高了10 nm,而校正后的增益和偏移减小了光谱区域375-550中的辐射偏差nm和950-1080 nm都平均降低了70%。

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