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首页> 外文期刊>Global change biology >The seasonal temperature dependency of photosynthesis and respiration in two deciduous forests
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The seasonal temperature dependency of photosynthesis and respiration in two deciduous forests

机译:两种落叶林光合作用和呼吸作用的季节温度依赖性

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摘要

Novel nonstationary and nonlinear dynamic time series analysis tools are applied to multiyear eddy covariance CO2 flux and micrometeorological data from the Harvard Forest and University of Michigan Biological Station field study sites. Firstly, the utility of these tools for partitioning the gross photosynthesis and bulk respiration signals within these series is demonstrated when employed within a simple model framework. This same framework offers a promising new method for gap filling missing CO2 flux data. Analysing the dominant seasonal components extracted from the CO2 flux data using these tools, models are inferred for daily gross photosynthesis and bulk respiration. Despite their simplicity, these models fit the data well and yet are characterized by well-defined parameter estimates when the models are optimized against calibration data. Predictive validation of the models also demonstrates faithful forecasts of annual net cumulative CO2 fluxes for these sites.
机译:新颖的非平稳和非线性动态时间序列分析工具被应用于哈佛森林大学和密歇根大学生物站现场研究站点的多年涡流协方差CO2通量和微气象数据。首先,当在一个简单的模型框架中使用这些工具时,就证明了这些工具在这些系列中划分总的光合作用和大量呼吸信号的效用。相同的框架为填充缺失的CO2通量数据提供了一种有希望的新方法。使用这些工具分析从CO2通量数据中提取的主要季节性成分,可以推断出每日总光合作用和大量呼吸的模型。尽管它们很简单,但是这些模型非常适合数据,但是当针对校准数据对模型进行优化时,这些模型的特征是定义明确的参数估计。对模型的预测验证也证明了这些站点每年净累积二氧化碳通量的真实预测。

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