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首页> 外文期刊>ournal of the Meteorological Society of Japan >A New Satellite-Based Data Assimilation Algorithm to Determine Spatial and Temporal Variations of Soil Moisture and Temperature Profiles
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A New Satellite-Based Data Assimilation Algorithm to Determine Spatial and Temporal Variations of Soil Moisture and Temperature Profiles

机译:一种新的基于卫星的数据同化算法,确定土壤水分和温度剖面的时空变化

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This paper focuses on the development and application of a new One-Dimensional Variational (1DVAR) data assimilation algorithm for estimating the spatial and temporal variations of soil moisture and temperature profiles, by grid-based analysis using remote sensing and in situ observations. This algorithm employs a heuristic optimization approach, simulated annealing (SA), which is capable of minimizing the Variational cost function without using adjoint models. The present assimilation scheme assimilates passive microwave remote sensing observations of brightness temperature into the land surface scheme (LSS), Simple Biosphere Model2 (SiB2). The LSS is used as a model operator, and a Radiative Transfer Model (RTM) is used as an observational operator. The modeling system has been applied, and validated, using data from the GAME-Tibet (Global Energy and Water cycle Experiment (GEWEX) Asian Monsoon Experiment in Tibet) mesoscale field experiment. Compared to SiB2, our assimilation scheme solves the major initialization problem, and estimates the soil temperature and soil moisture at the surface layer and in the root zone with significant improvements.
机译:本文重点研究一种新的一维变异(1DVAR)数据同化算法的开发和应用,该算法通过基于网格的遥感和原位观测分析来估算土壤水分和温度剖面的时空变化。该算法采用启发式优化方法,即模拟退火(SA),能够在不使用伴随模型的情况下最小化变分成本函数。目前的同化方案将亮度温度的被动微波遥感观测同化为简单生物圈模型2(SiB2)的陆地表面方案(LSS)。 LSS用作模型算子,辐射传递模型(RTM)用作观测算子。使用来自GAME-Tibet(全球能源和水循环实验(GEWEX),西藏季风亚洲实验)的数据的中尺度现场实验,已经应用并验证了该建模系统。与SiB2相比,我们的同化方案解决了主要的初始化问题,并且对表层和根部区域的土壤温度和土壤湿度进行了估算,并且有了很大的改进。

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