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Using a Computational Study of Hydrodynamics in the Wax Lake Delta to Examine Data Sharing Principles

机译:使用蜡湖三角洲水动力计算研究考察数据共享原理

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In this paper we describe a complex dataset used to study the circulation and wind-driven flows in the Wax Lake Delta, Louisiana, USA under winter storm conditions. The whole package bundles a large dataset (approximately 74 GB), which includes the numerical model, software and scripts for data analysis and visualization, as well as detailed documentation. The raw data came from multiple external sources, including government agencies, community repositories, and deployed field instruments and surveys. Each raw dataset goes through the processes of data QA/QC, data analysis, visualization, and interpretation. After integrating multiple datasets, new data products are obtained which are then used with the numerical model. The numerical model undergoes model verification, testing, calibration, and optimization. With a complex algorithm of computation, the model generates a structured output dataset, which is, after post-data analysis, presented as informative scientific figures and tables that allow interpretations and conclusions contributing to the science of coastal physical oceanography. Performing this study required a tremendous amount of effort. While the work resulted in traditional dissemination via a thesis, journal articles and conference proceedings, more can be gained. The data can be reused to study reproducibility or as preliminary investigation to explore a new topic. With thorough documentation and well-organized data, both the input and output dataset should be ready for sharing in a domain or institutional repository. Furthermore, the data organization and documentation also serves as a guideline for future research data management and the development of workflow protocols. Here we will describe the dataset created by this study, how sharing the dataset publicly could enable validation of the current study and extension by new studies, and the challenges that arise prior to sharing the dataset .
机译:在本文中,我们描述了一个复杂的数据集,用于研究冬季风暴条件下美国路易斯安那州蜡湖三角洲的环流和风驱动流。整个软件包捆绑了一个大型数据集(约74 GB),其中包括用于数据分析和可视化的数值模型,软件和脚本,以及详细的文档。原始数据来自多个外部来源,包括政府机构,社区存储库以及已部署的现场工具和调查。每个原始数据集都经过数据QA / QC,数据分析,可视化和解释的过程。集成多个数据集后,将获得新的数据乘积,然后将其与数值模型一起使用。数值模型经过模型验证,测试,校准和优化。该模型使用复杂的计算算法,生成了结构化的输出数据集,经过数据后分析,该数据集以信息丰富的科学图形和表格的形式呈现,从而可以为沿海物理海洋学的科学做出贡献。进行这项研究需要大量的努力。虽然这项工作通过论文,期刊文章和会议论文集进行了传统的传播,但可以获得更多的信息。数据可以重新用于研究可重复性,也可以作为初步研究以探索新的话题。有了详尽的文档和组织良好的数据,输入和输出数据集都应准备好在域或机构存储库中共享。此外,数据组织和文档还可以用作未来研究数据管理和工作流程协议开发的指南。在这里,我们将描述由这项研究创建的数据集,如何公开共享数据集如何通过新研究验证当前研究和扩展,以及在共享数据集之前出现的挑战。

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