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Characterization of the Observational Covariance Matrix of Hyper-Spectral Infrared Satellite Sensors Directly from Measured Earth Views

机译:直接从实测地球视图表征高光谱红外卫星传感器的观测协方差矩阵

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摘要

The observational covariance matrix, whose diagonal square root is currently named radiometric noise, is one of the most important elements to characterize a given instrument. It determines the precision of measurements and their possible spectral inter-correlation. The characterization of this matrix is currently performed with blackbody targets of known temperature and is, therefore, an output of the calibration unit of the instrument system. We developed a methodology that can estimate the observational covariance matrix directly from calibrated Earth-scene observations. The technique can complement the usual analysis based on onboard blackbody calibration and is, therefore, a useful back up to check the overall quality of the calibration unit. The methodology was exemplified by application to three satellite Fourier transform spectrometers: IASI (Infrared Atmospheric Sounder Interferometer), CrIS (Cross-Track Infrared Sounder), and HIRAS (Hyperspectral Infrared Atmospheric Sounder). It was shown that these three instruments are working as expected based on the pre-flight and in-flight characterization of the radiometric noise. However, for all instruments, the analysis of the covariance matrix reveals extra correlation among channels, especially in the short wave spectral regions.
机译:观测协方差矩阵的对角平方根当前被称为辐射噪声,它是表征给定仪器的最重要元素之一。它确定测量的精度及其可能的频谱互相关。目前,该矩阵的表征是使用已知温度的黑体目标进行的,因此是仪器系统校准单元的输出。我们开发了一种可以直接从校准后的地球现场观测值估算观测协方差矩阵的方法。该技术可以补充基于板载黑体校准的常规分析,因此,对于检查校准单元的整体质量非常有用。该方法通过应用于三个卫星傅立叶变换光谱仪得到了例证:IASI(红外大气探测仪),CrIS(跨轨红外探测仪)和HIRAS(高光谱红外探测仪)。结果表明,这三种仪器都基于辐射噪声的飞行前和飞行中表征而按预期工作。但是,对于所有仪器,协方差矩阵的分析都显示出通道之间的额外相关性,尤其是在短波频谱区域中。

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