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Development of Multi-Sensor Global Cloud and Radiance Composites for Earth Radiation Budget Monitoring from DSCOVR

机译:DSCOVR开发用于地球辐射预算监控的多传感器全球云和辐射复合材料

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The Deep Space Climate Observatory (DSCOVR) enables analysis of the daytime Earth radiation budget via the onboard Earth Polychromatic Imaging Camera (EPIC) and National Institute of Standards and Technology Advanced Radiometer (NISTAR). Radiance observations and cloud property retrievals from low earth orbit and geostationary satellite imagers have to be co-located with EPIC pixels to provide scene identification in order to select anisotropic directional models needed to calculate shortwave and longwave fluxes. A new algorithm is proposed for optimal merging of selected radiances and cloud properties derived from multiple satellite imagers to obtain seamless global hourly composites at 5-km resolution. An aggregated rating is employed to incorporate several factors and to select the best observation at the time nearest to the EPIC measurement. Spatial accuracy is improved using inverse mapping with gradient search during reprojection and bicubic interpolation for pixel resampling. The composite data are subsequently remapped into EPIC-view domain by convolving composite pixels with the EPIC point spread function defined with a half-pixel accuracy. PSF-weighted average radiances and cloud properties are computed separately for each cloud phase. The algorithm has demonstrated contiguous global coverage for any requested time of day with a temporal lag of under 2 hours in over 95% of the globe.
机译:借助深空气候观测站(DSCOVR),可通过机载地球多色成像相机(EPIC)和美国国家标准与技术研究院高级辐射计(NISTAR)来分析白天的地球辐射预算。来自低地球轨道和对地静止卫星成像仪的辐射观测和云属性检索必须与EPIC像素位于同一位置,以提供场景识别,以便选择计算短波和长波通量所需的各向异性方向模型。提出了一种新算法,用于优化合并来自多个卫星成像仪的选定辐射度和云属性,以获取5 km分辨率的无缝全球每小时合成。采用汇总评级来综合考虑多个因素,并在最接近EPIC测量的时间选择最佳观察值。在像素重采样和双三次插值过程中使用带有梯度搜索的逆映射可以提高空间精度。随后,通过将复合像素与以半像素精度定义的EPIC点扩展函数进行卷积,将复合数据重新映射到EPIC视域中。 PSF加权的平均辐射度和云属性是针对每个云阶段分别计算的。该算法已证明在一天中的任何请求时间具有连续的全局覆盖,在全球超过95%的区域中存在2小时以下的时间滞后。

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