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A global moderate resolution dataset of gross primary production of vegetation for 2000–2016

机译:2000-2016年全球植被初级生产总值的中等分辨率数据集

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Accurate estimation of the gross primary production (GPP) of terrestrial vegetation is vital for understanding the global carbon cycle and predicting future climate change. Multiple GPP products are currently available based on different methods, but their performances vary substantially when validated against GPP estimates from eddy covariance data. This paper provides a new GPP dataset at moderate spatial (500?m) and temporal (8-day) resolutions over the entire globe for 2000–2016. This GPP dataset is based on an improved light use efficiency theory and is driven by satellite data from MODIS and climate data from NCEP Reanalysis II. It also employs a state-of-the-art vegetation index (VI) gap-filling and smoothing algorithm and a separate treatment for C3/C4 photosynthesis pathways. All these improvements aim to solve several critical problems existing in current GPP products. With a satisfactory performance when validated against in situ GPP estimates, this dataset offers an alternative GPP estimate for regional to global carbon cycle studies.
机译:准确估算陆地植被的总初级生产力(GPP)对于了解全球碳循环和预测未来的气候变化至关重要。当前有多种基于不同方法的GPP产品可用,但是当根据来自涡度协方差数据的GPP估计对它们进行验证时,它们的性能会有很大不同。本文提供了一个新的GPP数据集,该数据集在2000-2016年期间在全球范围内具有中等的空间(500?m)和时间(8天)分辨率。该GPP数据集基于改进的光利用效率理论,由MODIS的卫星数据和NCEP Reanalysis II的气候数据驱动。它还采用了最新的植被指数(VI)填充和平滑算法,并对C3 / C4光合作用路径进行了单独处理。所有这些改进旨在解决当前GPP产品中存在的几个关键问题。相对于原位GPP估算进行验证时,该数据集具有令人满意的性能,可为区域到全球碳循环研究提供替代GPP估算。

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