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The CAMELS data set: catchment attributes and meteorology for large-sample studies

机译:骆驼数据集:大型研究的集水区属性和气象

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We present a new data set of attributes for 671 catchments in the contiguous United States (CONUS) minimally impacted by human activities. This complements the daily time series of meteorological forcing and streamflow provided by Newman et al. (2015b). To produce this extension, we synthesized diverse and complementary data sets to describe six main classes of attributes at the catchment scale: topography, climate, streamflow, land cover, soil, and geology. The spatial variations among basins over the CONUS are discussed and compared using a series of maps. The large number of catchments, combined with the diversity of the attributes we extracted, makes this new data set well suited for large-sample studies and comparative hydrology. In comparison to the similar Model Parameter Estimation Experiment (MOPEX) data set, this data set relies on more recent data, it covers a wider range of attributes, and its catchments are more evenly distributed across the CONUS. This study also involves assessments of the limitations of the source data sets used to compute catchment attributes, as well as detailed descriptions of how the attributes were computed. The hydrometeorological time series provided by Newman et al. (2015b, https://doi.org/10.5065/D6MW2F4D) together with the catchment attributes introduced in this paper (https://doi.org/10.5065/D6G73C3Q) constitute the freely available CAMELS data set, which stands for Catchment Attributes and MEteorology for Large-sample Studies.
机译:我们在最低限度影响的美国邻近的美国(康明斯)中提出了一组新的数据集。这补充了Newman等人提供的日常时间势序列的日常时间序列。 (2015B)。要生产此扩展,我们合成多样化和互补数据集,以描述集水区规模的六个主要属性:地形,气候,流流,陆盖,土壤和地质。讨论并使用一系列地图进行讨论康斯盆地的空间变化。大量集水区,结合我们提取的属性的多样性,使得这种新的数据集适合于大型样本和比较水文。与类似模型参数估计实验(MOPEX)数据集相比,该数据集依赖于更新的数据,它涵盖了更广泛的属性范围,其集水区更均匀地分布在锥体上。本研究还涉及评估用于计算集群属性的源数据集的局限性,以及详细描述如何计算属性的计算。 Newman等人提供的水质气象时间序列。 (2015b,https://doi.org/10.5065/d6mw2f4d)与本文介绍的集水区(https://doi.org/10.5065/d6g73c3q)构成可自由的骆驼数据集,它代表了集水区属性和大型研究的气象。

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