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A long-range forecasting model for the thermosphere based on the intelligent optimized particle filtering 被引量:1

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摘要 The uncertainties associated with the variations in the thermosphere are responsible for the inaccurate prediction of the orbit decay of low Earth orbiting space objects due to the drag force.Accurate forecasting of the thermosphere is urgently required to avoid satellite collisions,which is a potential threat to the rapid growth of spacecraft applications.However,owing to the imperfections in the physics-based forecast model,the long-range forecast of the thermosphere is still primitive even if the accurate prediction of the external forcing is achieved.In this study,we constructed a novel methodology to forecast the thermosphere for tens of days by specifying the uncertain parameters in a physics-based model using an intelligent optimized particle filtering algorithm.A comparison of the results suggested that this method has the capability of providing a more reliable forecast with more than 30-days leading time for the thermospheric mass density than the existing ones under both weak and severe disturbed conditions,if solar and geomagnetic forcing is known.Moreover,the accurate estimation of the state of thermosphere based on this technique would further contribute to the understanding of the temporal and spatial evolution of the upper atmosphere.
出处 《Science China Earth Sciences》 SCIE EI CSCD 2022年第1期75-86,共12页 中国科学(地球科学英文版)
基金 supported by the Project of Stable Support for Youth Team in Basic Research Field,CAS(Grant No.YSBR-018) the B-type Strategic Priority Program of the Chinese Academy of Sciences(Grant No.XDB41000000) the China Postdoctoral Science Foundation(Grant No.2021TQ0318)。
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  • 1王赤,汪毓明,田晖,李晖,倪彬彬,符慧山,雷久侯,薛向辉,崔峻,尧中华,罗冰显,张效信,张爱兵,张佼佼,李文亚.空间物理学科发展战略研究[J].空间科学学报,2023,43(1):9-42.

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