Ho Shu-Peng, Smith William L, Huang Hung-Lung
National Center for Atmospheric Research, Boulder, Colorado 80307-3000, USA.
Appl Opt. 2002 Jul 10;41(20):4057-69. doi: 10.1364/ao.41.004057.
A nonlinear sounding retrieval algorithm is used to produce vertical-temperature and water-vapor profiles from coincident observations taken by the airborne High-resolution Interferometer Sounder (HIS) and the ground-based Atmospheric Emitted Radiance Interferometer (AERI) during the SUbsonic Contrails and Clouds Effects Special Study (SUCCESS). Also, clear sky Geostationary Operational Environmental Satellite (GOES) and AERI radiance measurements, achieved on a daily real-time basis at the Department of Energy's Oklahoma CART (Cloud and Radiation Testbed) site, are used to demonstrate the current profiling capability by use of simultaneous geostationary satellite and ground-based remote sensing observations under clear-sky conditions. The discrepancy principle, a method to find the proper smoothing parameters from the minimum value between the normalized spectral residual norm and the a priori upper bound, is used to demonstrate the feasibility and effectiveness of on-line simultaneous tuning of the multiple weighting and smoothing parameters from the combined satellite/airborne and ground-based measurements for the temperature and water-vapor retrieval in this nonlinear-retrieval process. An objective method to determine the degrees of freedom (d.f.) of the observation signal is derived. The d.f. of the radiance signal for the combined GOES and AERI measurements is larger than that for either instrument alone; while the d.f. of the observation signal for the combined GOES and AERI measurements is larger than that for either instrument alone and of the combined GOES and AERI measurements. The use of simultaneous clear-sky AERI and GOES data now provides improved vertical temperature and moisture soundings on an hourly basis for use in the Atmospheric Radiation Measurement program [J. Appl. Meteorol. 37, 875 (1998)].
在亚音速凝结尾迹与云效应专项研究(SUCCESS)期间,采用一种非线性探测反演算法,根据机载高分辨率干涉探测仪(HIS)和地基大气发射辐射干涉仪(AERI)的同步观测数据生成垂直温度和水汽廓线。此外,利用美国能源部俄克拉荷马州云与辐射试验台(CART)站点每日实时获取的静止轨道业务环境卫星(GOES)晴空辐射测量数据和AERI辐射测量数据,展示了在晴空条件下利用同步静止卫星和地基遥感观测进行当前廓线反演的能力。差异原理是一种从归一化光谱残差范数与先验上限之间的最小值中寻找合适平滑参数的方法,用于证明在这种非线性反演过程中,从卫星/机载和地基组合测量数据中对温度和水汽反演的多个加权和平滑参数进行在线同步调整的可行性和有效性。推导了一种确定观测信号自由度(d.f.)的客观方法。GOES和AERI组合测量的辐射信号自由度大于单独任何一台仪器的自由度;而GOES和AERI组合测量的观测信号自由度大于单独任何一台仪器的自由度以及GOES和AERI组合测量的自由度。目前,利用晴空条件下AERI和GOES的同步数据,每小时可提供改进后的垂直温度和湿度探测结果,用于大气辐射测量计划[《应用气象学杂志》37, 875 (1998)]。