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Standardized flux seasonality metrics: a companion dataset for FLUXNET annual product

机译:标准化助焊季节性度量:Fluxnet年度产品的伴随数据集

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Phenological events are integrative and sensitive indicators of ecosystem processes that respond to climate, water and nutrient availability, disturbance, and environmental change. The seasonality of ecosystem processes, including biogeochemical fluxes, can similarly be decomposed to identify key transition points and phase durations, which can be determined with high accuracy, and are specific to the processes of interest. As the seasonality of different processes differ, it can be argued that the interannual trends and responses to environmental forcings can be better described through the fluxes' own temporal characteristics than through correlation to traditional phenological events like bud break or leaf coloration. Here we present a global dataset of seasonality or phenological metrics calculated for gross primary productivity (GPP), ecosystem respiration (RE), latent heat (LE), and sensible heat ( H ) calculated for the FLUXNET2015 Dataset of about 200 sites and 1500 site years of data. The database includes metrics (i) on an absolute flux scale for comparisons with flux magnitudes and (ii) on a normalized scale for comparisons of change rates across different fluxes. Flux seasonality was characterized by fitting a single-pass double-logistic model to daily flux integrals, and the derivatives of the fitted time series were used to extract the phenological metrics marking key turning points, season lengths, and rates of change. Seasonal transition points could be determined with a 90?% confidence interval of 6–11?d for GPP, 8–14?d for RE, 10–15?d for LE, and 15–23?d for H . The phenology metrics derived from different partitioning methods diverged, at times significantly. This Flux Seasonality Metrics Database (FSMD) can be accessed at the US Department of Energy's (DOE)?Environmental Systems Science Data Infrastructure for a Virtual Ecosystem (ESS-DIVE, https://doi.org/10.15485/1602532 ; Yang and Noormets, 2020). We hope that it will facilitate new lines of research, including (1) validating and benchmarking ecosystem process models, (2) parameterizing satellite remote sensing phenology and PhenoCam products, (3) optimizing phenological models, and (4) generally expanding the toolset for interpreting ecosystems responses to changing climate.
机译:鉴别事件是响应气候,水和养分可用性,干扰和环境变化的生态系统流程的综合和敏感指标。生态系统过程的季节性,包括生物地质化学通量,可以类似地分解以识别可以以高精度确定的关键过渡点和相位持续时间,并且特定于感兴趣的过程。随着不同过程的季节性不同,可以说,通过助焊剂自身的时间特征可以更好地描述对环境强迫的际趋势和对环境迫切的反应,而不是通过与芽破裂或叶子着色等传统酚类事件的相关性。在这里,我们展示了针对总初级生产率(GPP),生态系统呼吸(RE),潜热(LE),潜热(H)计算的全球数据集,用于针对大约200个站点的FLUXNET2015数据集和1500站点计算的多年的数据。该数据库包括绝对磁通量表的度量(i),用于与通量幅度和(ii)的比较,以便在归一化规模上进行规模,以进行不同通量的变化率的比较。通过将单通过双程模型拟合到日常助焊剂积分的特征,其特征在于,使用拟合时间序列的衍生物来提取标记关键转折点,季节长度和变化率的挥发性指标。季节性转换点可以用90Ω%的置信区间测定6-11Ωd,用于GPP,8-14°D为RE,10-15〜D用于LE,15-23°D为15-23°D。源自不同分区方法的候选度量有时显着分歧。美国能源部(DOE)可以访问此焊剂季节性度量数据库(FSMD)?环境系统的环境系统科学数据基础设施,用于虚拟生态系统(ESS-Dive,HTTPS://Doi.org/10.15485/1602532;杨和noormets ,2020)。我们希望它将促进新的研究线条,包括(1)验证和基准测试生态系统流程模型,(2)参数化卫星遥感候选和Phenocam产品,(3)优化酚类模型,(4)通常扩展工具集解释生态系统对不断变化的气候的回应。

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