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The importance of simulated errors in observing system simulation experiments

机译:模拟误差在观察系统仿真实验中的重要性

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Observing System Simulation Experiments (OSSEs) for numerical weather prediction rely on simulated observations that should include simulated observation errors in order to realistically represent the behaviour of real data. Real observations include many types of error, such as instrument error, representativeness error, and observation operator error, with some portion of this error being correlated in time and space or possibly between data types. Data assimilation systems are designed to account for random, uncorrelated errors, but are not yet adept at handling correlated errors; as a result, the correlated errors are more readily incorporated into the analysis increment by the data assimilation system than uncorrelated errors. In this work, the role of correlated observation errors in modifying the behaviour of the National Aeronautics and Space Administration Global Modeling and Assimilation Office (NASA/GMAO) OSSE framework is investigated. The effects on analysis increment, analysis error, forecast errors and observation impacts of including or neglecting correlated simulated errors is explored. The use of correlated observations for calibration and validation of the OSSE is also discussed.
机译:观测系统模拟试验(OSSE)数值天气预报依靠应该包括模拟观测误差,以真实地表现真实数据的行为模拟观测。实际观察包括许多类型的错误,例如仪器错误,代表性误差和观察操作员错误,其中该错误的某些部分在时间和空间中相关或可能在数据类型之间相关。数据同化系统旨在考虑随机,不相关的错误,但尚未擅长处理相关错误;结果,通过数据同化系统更容易地将相关误差纳入分析增量而不是不相关的错误。在这项工作中,调查了相关观测误差在修改国家航空航天局的行为方面的作用,调查了全球建模和同化办公室(NASA / GMAO)OSSE框架。探讨了对分析增量,分析误差,预测误差和观察影响的影响,包括或忽略相关的模拟错误。还讨论了使用相关观测来校准和验证OSSE。

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