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Automated retrieval, preprocessing, and visualization of gridded hydrometeorology data products for spatial-temporal exploratory analysis and intercomparison

机译:网格水文气象数据产品的自动检索,预处理和可视化,用于时空探索性分析和比对

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摘要

Spatially-distributed time-series data support a range of environmental modeling and data research efforts. A critical first step to any such effort is acquiring interpolated hydrometeorological data. Standardized tools to facilitate this process into analyses have not been readily available for watershed scale research. Here, we introduce the Observatory for Gridded Hydrometeorology (OGH), an open source python library that fills this critical software gap by providing a cyberinfrastructure component to fetch and manage distributed data processed from regional and continental-scale gridded hydrometeorology products. Our approach involves annotating metadata to make gridded data products discoverable and usable within the software, enabling inter-operability and reproducibility of models that use the data. This paper presents the design, architecture, and application of OGH using four commonly practiced use-cases with gridded time-series data at watershed scales. OGH and its associated annotations are distributed via Anaconda Cloud within conda-forge package repository. The tutorial Jupyter notebooks for each example use-case are available within the Freshwater Initiative Observatory repository (https://github.com/Freshwater-Initiative/Obervation). The examples are designed to utilize the compute resources and software libraries provided by HydroShare ((https://www.hydroshare.org/resource/87dc5742cf164126a11ff45c3307fd9d)).
机译:空间分布的时间序列数据支持一系列环境建模和数据研究工作。任何此类工作的关键的第一步就是获取内插的水文气象数据。分水岭规模研究尚不容易使用标准化工具来促进这一过程进行分析。在这里,我们介绍了网格水文气象台(OGH),这是一个开放源代码python库,它通过提供网络基础设施组件来获取和管理从区域和大陆级网格水文气象产品处理的分布式数据,填补了这一关键的软件空白。我们的方法涉及注释元数据,以使网格化数据产品可在软件中发现和使用,从而实现使用数据的模型的互操作性和可再现性。本文使用分水岭规模的网格时间序列数据的四个常用实例,介绍了OGH的设计,架构和应用。 OGH及其相关注释通过conda-forge软件包存储库中的Anaconda Cloud分发。在Freshwater Initiative天文台存储库(https://github.com/Freshwater-Initiative/Obervation)中可以找到每个示例用例的Jupyter笔记本教程。这些示例旨在利用HydroShare((https://www.hydroshare.org/resource/87dc5742cf164126a11ff45c3307fd9d))提供的计算资源和软件库。

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