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CLARREO Approach for Reference Intercalibration of Reflected Solar Sensors: On-Orbit Data Matching and Sampling

机译:CLARREO方法用于反射式太阳传感器的基准互校准:在轨数据匹配和采样

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The implementation of the Climate Absolute Radiance and Refractivity Observatory (CLARREO) mission was recommended by the National Research Council in 2007 to provide an on-orbit intercalibration standard with accuracy of 0.3% $(k = 2)$ for relevant Earth observing sensors. The goal of reference intercalibration, as established in the Decadal Survey, is to enable rigorous high-accuracy observations of critical climate change parameters, including reflected broadband radiation [Clouds and Earth's Radiant Energy System (CERES)], cloud properties [Visible Infrared Imaging Radiometer Suite (VIIRS)], and changes in surface albedo, including snow and ice albedo feedback. In this paper, we describe the CLARREO approach for performing intercalibration on orbit in the reflected solar (RS) wavelength domain. It is based on providing highly accurate spectral reflectance and reflected radiance measurements from the CLARREO Reflected Solar Spectrometer (RSS) to establish an on-orbit reference for existing sensors, namely, CERES and VIIRS on Joint Polar Satellite System satellites, Advanced Very High Resolution Radiometer and follow-on imagers on MetOp, Landsat imagers, and imagers on geostationary platforms. One of two fundamental CLARREO mission goals is to provide sufficient sampling of high-accuracy observations that are matched in time, space, and viewing angles with measurements made by existing instruments, to a degree that overcomes the random error sources from imperfect data matching and instrument noise. The data matching is achieved through CLARREO RSS pointing operations on orbit that align its line of sight with the intercalibrated sensor. These operations must be planned in advance; therefore, intercalibration events must be predicted by orbital modeling. If two competing opportunities are identified, one target sensor must be given priority over the other. The intercalibration method is to mon- tor changes in targeted sensor response function parameters: effective offset, gain, nonlinearity, optics spectral response, and sensitivity to polarization. In this paper, we use existing satellite data and orbital simulation methods to determine mission requirements for CLARREO, its instrument pointing ability, methodology, and needed intercalibration sampling and data matching for accurate intercalibration of RS radiation sensors on orbit. We conclude that with the CLARREO RSS in a polar 90 $^{circ}$ inclination orbit at a 609-km altitude, estimated intercalibration sampling will limit the uncertainty contribution from data matching noise to 0.3% $(k = 2)$ over the climate autocorrelation time period. The developed orbital modeling and intercalibration event prediction will serve as a framework for future mission operations.
机译:国家研究委员会于2007年建议实施气候绝对辐射率和折射率天文台(CLARREO)任务,以为相关的地球观测传感器提供0.3%(k = 2)$的在轨校准标准。十年间调查确定的基准互校准的目标是对关键的气候变化参数进行严格的高精度观测,包括反射的宽带辐射[云和地球的辐射能系统(CERES)],云的性质[可见红外成像辐射仪Suite(VIIRS)],以及地表反照率的变化,包括雪和冰反照率的反馈。在本文中,我们描述了用于在反射太阳(RS)波长域中的轨道上执行互校准的CLARREO方法。它基于从CLARREO反射太阳光谱仪(RSS)提供的高精度光谱反射率和反射辐射率测量结果,为现有传感器(即联合极地卫星系统卫星上的CERES和VIIRS,先进的超高分辨率辐射仪)建立在轨参考以及MetOp上的后续成像仪,Landsat成像仪以及对地静止平台上的成像仪。 CLARREO的两个基本任务目标之一是提供足够的高精度观测数据样本,这些样本在时间,空间和视角上与现有仪器进行的测量相匹配,从而可以克服不完善的数据匹配和仪器带来的随机误差源噪声。数据匹配是通过在轨道上的CLARREO RSS指向操作实现的,该操作将其视线与经过校准的传感器对齐。这些操作必须事先计划;因此,必须通过轨道建模来预测相互校准事件。如果识别出两个竞争机会,则必须给一个目标传感器优先于另一个。互校准方法是监测目标传感器响应功能参数的变化:有效偏移,增益,非线性,光学光谱响应和偏振敏感度。在本文中,我们使用现有的卫星数据和轨道仿真方法来确定CLARREO的任务要求,其仪器指向能力,方法学以及为在轨道上进行RS辐射传感器的精确相互校准而需要的相互校准采样和数据匹配。我们得出的结论是,由于CLARREO RSS在609公里高度的90°极坐标倾斜轨道上,估计的相互校准采样将把数据匹配噪声的不确定性贡献限制为0.3%(k = 2)$。气候自相关时间段。发达的轨道建模和相互校准事件预测将作为未来任务运行的框架。

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