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Development of a Chinese land data assimilation system:its progress and prospects
作者姓名:Li Xin  Huang Chunlin  Che Tao  Jin Rui  Wang Shugong  Wang Jiemin  Gao Feng  Zhang Shuwen  Qiu Chongjian and Wang Chenghai
作者单位:Li Xin~(1**) Huang Chunlin~1 Che Tao~1 Jin Rui~1 Wang Shugong~l Wang Jiemin~1 Gao Feng~1 Zhang Shuwen~2 Qiu Chongjian~2 Wang Chenghai~2 (1.Cold and Arid Regions Environmental and Engineering Research Institute,Chinese Academy of Sciences,Lanzhou 730000,China;2.College of Atmospheric Sciences,Lanzhou University,Lanzhou 730000,China)
基金项目:国家重点基础研究发展计划(973计划);中国科学院基金
摘    要:The objective of land data assimilation is to merge multi-source observations into the dynamics of land surface model for improving the estimation of land surface states.We have developed a land data assimilation system for China's land territory.In this sys- tem,the Common Land Model and Simple Biosphere Model 2 are used to simulate land surface processes.The radiative transfer models of thawed and frozen soil,snow,lake,and vegetation are used as observation operators to transfer model predictions into estimated bright- ness temperatures.A Monte-Carlo based sequential filter,the ensemble Kalman filter,is implemented as data assimilation method to inte- grate modeling and observation.The system is capable of assimilating passive microwave remotely sensed data such as special sensor mi- crowave/imager (SSM/I),TRMM microwave imager (TMI),and advanced microwave scanning radiometer enhanced for EOS (AMSR- E) and the conventional in situ measurements of soil and snow.A spatiotemporally consistent assimilated dataset for soil moisture,soil temperature,snow and frozen soil,with a spatial resolution of 0.25 degree and temporal resolution of one hour,has been produced.This paper introduces the development of Chinese land data assimilation system and the progress made on data assimilation algorithms,land sur- face modeling,microwave remote sensing of land surface hydrological variables,and the preparation of atmospheric forcing data.The dis- tinct characteristics and challenges of developing land data assimilation system and the perspectives for future development are also dis- cussed.


Development of a Chinese land data assimilation system: its progress and prospects
Li Xin,Huang Chunlin,Che Tao,Jin Rui,Wang Shugong,Wang Jiemin,Gao Feng,Zhang Shuwen,Qiu Chongjian and Wang Chenghai.Development of a Chinese land data assimilation system:its progress and prospects[J].Progress in Natural Science,2007,17(8):881-892.
Authors:Li Xin  Huang Chunlin  Che Tao  Jin Rui  Wang Shugong  Wang Jiemin  Gao Feng  Zhang Shuwen  Qiu Chongjian and Wang Chenghai
Abstract:The objective of land data assimilation is to merge multi-source observations into the dynamics of land surface model for improving the estimation of land surface states.We have developed a land data assimilation system for China's land territory.In this sys- tem,the Common Land Model and Simple Biosphere Model 2 are used to simulate land surface processes.The radiative transfer models of thawed and frozen soil,snow,lake,and vegetation are used as observation operators to transfer model predictions into estimated bright- ness temperatures.A Monte-Carlo based sequential filter,the ensemble Kalman filter,is implemented as data assimilation method to inte- grate modeling and observation.The system is capable of assimilating passive microwave remotely sensed data such as special sensor mi- crowave/imager (SSM/I),TRMM microwave imager (TMI),and advanced microwave scanning radiometer enhanced for EOS (AMSR- E) and the conventional in situ measurements of soil and snow.A spatiotemporally consistent assimilated dataset for soil moisture,soil temperature,snow and frozen soil,with a spatial resolution of 0.25 degree and temporal resolution of one hour,has been produced.This paper introduces the development of Chinese land data assimilation system and the progress made on data assimilation algorithms,land sur- face modeling,microwave remote sensing of land surface hydrological variables,and the preparation of atmospheric forcing data.The dis- tinct characteristics and challenges of developing land data assimilation system and the perspectives for future development are also dis- cussed.
Keywords:land data assimilation  land surface model  passive microwave remote sensing  Kalman filter
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