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Comparing MODIS and AERONET aerosol optical depth at varying separation distances to assess ground-based validation strategies for spaceborne lidar

机译:比较不同距离下的MODIS和AERONET气溶胶光学深度,以评估星载激光雷达的地面验证策略

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摘要

The difficulties in validating aerosol optical depth from spaceborne lidars such as the Geoscience Laser Altimeter System (GLAS) on board IceSat and the lidar on board the Cloud Aerosol Lidar and Infrared Pathfinder Satellite Observations (CALIPSO) satellite with ground-based instruments are discussed. Because observations are often not collocated, matching errors, which increase with separation distance, confound the validation of instrumental errors. These matching errors can be assessed by comparing the aerosol total-column optical depth measured in a swath by the Moderate Resolution Imaging Spectroradiometer (MODIS) instrument on board the Terra satellite with point Aerosol Robotic Network (AERONET) Sun photometer measurements at different separation distances. In particular, the relationship of the correlation of the two sensors' aerosol total-column optical depth observations with increasing spatial separation is determined. The use of back trajectories to reduce the loss in correlation with increasing spatial separation is then evaluated. Matching errors are found to increase faster over land than over water sites, with the correlation dropping by 20% in 200 km over the land sites and 500 km over the ocean sites. Constraining the area over which the MODIS aerosol optical depth is calculated to within 30° azimuth of the average back trajectory only improved the correlation for a site where long-range transport of aerosols often occurs.
机译:讨论了使用地面仪器验证星载激光雷达(例如IceSat上的Geoscience激光测高仪系统(GLAS)以及云气溶胶激光雷达和红外探路者卫星观测(CALIPSO)卫星上的激光雷达)的气溶胶光学深度的困难。由于观测值通常不会并置,因此随着距离的增加而增加的匹配误差会混淆仪器误差的验证。这些匹配误差可以通过比较Terra卫星上的中等分辨率成像光谱辐射仪(MODIS)仪器在条带中测量的气溶胶总柱光学深度与不同间隔距离的点气溶胶机器人网络(AERONET)太阳光度计的测量值来评估。特别是,确定了两个传感器的气溶胶总柱光学深度观测值与空间间隔增大之间的关系。然后评估使用后向轨迹来减少与空间间隔增加相关的损耗。发现陆地上的匹配误差比水上站点的增长更快,陆地上200 km和海洋上500 km的相关性下降20%。将MODIS气溶胶光学深度的计算区域限制在平均后向轨迹的30°方位角以内,只会改善经常发生气溶胶远程传输的站点的相关性。

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