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FLUXCOM-X monthly diurnal cycle of gross primary productivity on global 0.25 degree grid for 2009

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meta.icos-cp.eu2023-06-21 更新2025-01-21 收录
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X-BASE GPP (Gross Primary Productivity) is based on the FLUXCOM-X framework which trains machine learning models on in-situ eddy covariance data and uses them to produce this global product. The X-BASE experiment is a basic configuration to serve as a baseline for the FLUXCOM-X framework and includes as predictors the core meteorlogical data, plant functional type classification as well as MODIS based vegitation indicies and land surface temperature. XGBoost was used as the machine learning algorithm. The GPP estimates from the eddy covariance data was based on the Nighttime Partitioning method. Gans, F., Duveiller, G., Hamdi, Z., Jung, M., Kraft, B., Nelson, J., Walther, S., Weber, U., Zhang, W. (2023). FLUXCOM-X monthly diurnal cycle of gross primary productivity on global 0.25 degree grid for 2009, Miscellaneous, https://hdl.handle.net/11676/ZcumGs68_XBBVUSA4WIPTrqi

X-BASE GPP(总初级生产力)基于FLUXCOM-X框架,该框架通过在原位涡相关数据上训练机器学习模型,并利用这些模型生成全球生产力。X-BASE实验作为一种基本配置,旨在为FLUXCOM-X框架提供基准,其中包含核心气象数据、植物功能型分类以及基于MODIS的植被指数和地表温度作为预测因子。实验中采用了XGBoost作为机器学习算法。涡相关数据中的GPP估算基于夜间分割法。 Gans, F., Duveiller, G., Hamdi, Z., Jung, M., Kraft, B., Nelson, J., Walther, S., Weber, U., Zhang, W. (2023). FLUXCOM-X月度日变化总初级生产力在2009年全球0.25度网格上的数据,杂项,https://hdl.handle.net/11676/ZcumGs68_XBBVUSA4WIPTrqi
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