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Model-data fusion across ecosystems: from multisite optimizations to global simulations

机译:跨生态系统的模型数据融合:从多站点优化到全局仿真

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摘要

This study uses a variational data assimilation framework to simultaneously constrain a global ecosystem model with eddy covariance measurements of daily net ecosystem exchange (NEE) and latent heat (LE) fluxes from a large number of sites grouped in seven plant functional types (PFTs). It is an attempt to bridge the gap between the numerous site-specific parameter optimization works found in the literature and the generic parameterization used by most land surface models within each PFT. The present multisite approach allows deriving PFT-generic sets of optimized parameters enhancing the agreement between measured and simulated fluxes at most of the sites considered, with per- formances often comparable to those of the correspond- ing site-specific optimizations. Besides reducing the PFT-averaged model?data root-mean-square difference (RMSD) and the associated daily output uncertainty, the optimization improves the simulated CO2 balance at tropical and temperate forests sites. The major site-level NEE adjustments at the seasonal scale are reduced amplitude in C3 grasslands and boreal forests, increased seasonality in temperate ever- green forests, and better model?data phasing in temperate deciduous broadleaf forests. Conversely, the poorer performances in tropical evergreen broadleaf forests points to defi- ciencies regarding the modelling of phenology and soil water stress for this PFT. An evaluation with data-oriented estimates of photosynthesis (GPP ? gross primary productivity) and ecosystem respiration (Reco) rates indicates distinctively improved simulations of both gross fluxes. The multisite pa- rameter sets are then tested against CO2 concentrations mea- sured at 53 locations around the globe, showing significant adjustments of the modelled seasonality of atmospheric CO2 concentration, whose relevance seems PFT-dependent, along with an improved interannual variability. Lastly, a global-scale evaluation with remote sensing NDVI (normalized difference vegetation index) measurements indicates an improvement of the simulated seasonal variations of the foliar cover for all considered PFTs.
机译:这项研究使用变异数据同化框架,同时通过对来自七个植物功能类型(PFT)的大量地点的每日净生态系统交换(NEE)和潜热(LE)通量的涡度协方差测量,来同时约束全球生态系统模型。试图弥合文献中发现的大量特定于站点的参数优化工作与每个PFT中大多数陆地表面模型使用的通用参数化之间的差距。当前的多站点方法允许推导PFT通用的优化参数集,从而增强了所考虑的大多数站点的实测通量和模拟通量之间的一致性,其性能通常可与相应站点特定的优化相媲美。除了减少PFT平均模型的数据均方根差(RMSD)和相关的日产量不确定性之外,优化还改善了热带和温带森林站点的模拟CO2平衡。在季节尺度上,主要的站点级NEE调整包括C3草地和北方森林的幅度减小,温带常绿森林的季节性增加以及温带落叶阔叶林的更好的模型数据定相。相反,在热带常绿阔叶林中较差的表现表明该PFT在物候模型和土壤水分胁迫建模方面存在缺陷。进行以数据为导向的光合作用估算值(GPP?总初级生产力)和生态系统呼吸速率(Reco)的评估表明,总通量的模拟效果显着改善。然后,针对在全球53个地点测量的CO2浓度对多站点参数集进行了测试,结果表明对大气CO2浓度的建模季节性进行了重大调整,其相关性似乎与PFT相关,并且具有改善的年际变化。最后,使用遥感NDVI(归一化植被指数)测量值进行的全球评估表明,对于所有考虑的PFT,叶面覆盖物的模拟季节性变化都有所改善。

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