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A high-resolution approach to estimating ecosystem respiration at continental scales using operational satellite data

机译:一种高分辨率的方法,可利用运行中的卫星数据估算大陆规模的生态系统呼吸

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A better understanding of the local variability in land-atmosphere carbon fluxes is crucial to improving the accuracy of global carbon budgets. Operational satellite data backed by ground measurements at Fluxnet sites proved valuable in monitoring local variability of gross primary production at highly resolved spatio-temporal resolutions. Yet, we lack similar operational estimates of ecosystem respiration (Re) to calculate net carbon fluxes. If successful, carbon fluxes from such a remote sensing approach would form an independent and sought after measure to complement widely used dynamic global vegetation models (DGVMs). Here, we establish an operational semi-empirical Re model, based only on data from the Moderate Resolution Imaging Spectroradiometer (MODIS) with a resolution of 1km and 8days. Fluxnet measurements between 2000 and 2009 from 100 sites across North America and Europe are used for parameterization and validation. Our analysis shows that Re is closely tied to temperature and plant productivity. By separating temporal and intersite variation, we find that MODIS land surface temperature (LST) and enhanced vegetation index (EVI) are sufficient to explain observed Re across most major biomes with a negligible bias [R-2=0.62, RMSE=1.32 (gCm(-2)d(-1)), MBE=0.05 (gCm(-2)d(-1))]. A comparison of such satellite-derived Re with those simulated by the DGVM LPJmL reveals similar spatial patterns. However, LPJmL shows higher temperature sensitivities and consistently simulates higher Re values, in high-latitude and subtropical regions. These differences remain difficult to explain and they are likely associated either with LPJmL parameterization or with systematic errors in the Fluxnet sampling technique. While uncertainties remain with Re estimates, the model formulated in this study provides an operational, cross-validated and unbiased approach to scale Fluxnet Re to the continental scale and advances knowledge of spatio-temporal Re variability.
机译:更好地了解陆地大气碳通量的局部变化对于提高全球碳预算的准确性至关重要。在Fluxnet站点进行地面测量所支持的可运行卫星数据被证明对于以高度解析的时空分辨率监测总初级生产的局部变化非常有价值。但是,我们缺乏类似的生态系统呼吸(Re)运营估算来计算净碳通量。如果成功的话,来自这种遥感方法的碳通量将形成一种独立且广受欢迎的措施,以补充广泛使用的动态全球植被模型(DGVM)。在这里,我们仅基于中等分辨率成像光谱仪(MODIS)的数据(分辨率为1 km和8天)建立可操作的半经验Re模型。在2000年至2009年之间从北美和欧洲的100个站点进行的Fluxnet测量用于参数化和验证。我们的分析表明,Re与温度和工厂生产率密切相关。通过分离时间和场地间的变化,我们发现MODIS地表温度(LST)和增强的植被指数(EVI)足以解释大多数主要生物群落中观察到的Re,其偏差可忽略不计[R-2 = 0.62,RMSE = 1.32(gCm (-2)d(-1)),MBE = 0.05(gCm(-2)d(-1))]。这种卫星衍生的Re与DGVM LPJmL模拟的Re的比较显示出相似的空间模式。但是,LPJmL在高纬度和亚热带地区显示出较高的温度敏感性,并始终模拟较高的Re值。这些差异仍然难以解释,它们可能与LPJmL参数化或Fluxnet采样技术中的系统错误有关。尽管Re估计仍存在不确定性,但本研究中建立的模型为将Fluxnet Re扩展到大陆规模提供了一种可操作,交叉验证且无偏的方法,并提高了时空Re变异性的知识。

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