The FAIR data point populator: collaborative FAIRification and population of FAIR data points.

IF 3.3 3区 医学 Q2 MEDICAL INFORMATICS
Daphne Wijnbergen, Rajaram Kaliyaperumal, Kees Burger, Luiz Olavo Bonino da Silva Santos, Barend Mons, Marco Roos, Eleni Mina
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引用次数: 0

Abstract

Background: Use of the FAIR principles (Findable, Accessible, Interoperable and Reusable) allows the rapidly growing number of biomedical datasets to be optimally (re)used. An important aspect of the FAIR principles is metadata. The FAIR Data Point specifications and reference implementation have been designed as an example on how to publish metadata according to the FAIR principles. Metadata can be added to a FAIR Data Point with the FDP's web interface or through its API. However, these methods are either limited in scalability or only usable by users with a background in programming. We aim to provide a new tool for populating FDPs with metadata that addresses these limitations with the FAIR Data Point Populator.

Results: The FAIR Data Point Populator consists of a GitHub workflow together with Excel templates that have tooltips, validation and documentation. The Excel templates are targeted towards non-technical users, and can be used collaboratively in online spreadsheet software. A more technical user then uses the GitHub workflow to read multiple entries in the Excel sheets, and transform it into machine readable metadata. This metadata is then automatically uploaded to a connected FAIR Data Point. We applied the FAIR Data Point Populator on the metadata of two datasets, and a patient registry. We were then able to run a query on the FAIR Data Point Index, in order to retrieve one of the datasets.

Conclusion: The FAIR Data Point Populator addresses the limitations of the other metadata publication methods by allowing the bulk creation of metadata entries while remaining accessible for users without a background in programming. Additionally, it allows efficient collaboration. As a result of this, the barrier of entry for FAIRification is lower, which allows the creation of FAIR data by more people.

FAIR数据点填充器:FAIR数据点的协作化和填充。
背景:FAIR原则(可查找、可访问、可互操作和可重用)的使用使快速增长的生物医学数据集得到最佳(再)使用。FAIR原则的一个重要方面是元数据。FAIR数据点规范和参考实现被设计为如何根据FAIR原则发布元数据的示例。元数据可以通过FDP的web界面或其API添加到FAIR数据点。然而,这些方法要么在可伸缩性方面受到限制,要么只能由具有编程背景的用户使用。我们的目标是提供一个新的工具来填充fdp的元数据,通过FAIR数据点填充器解决这些限制。结果:FAIR数据点填充器由GitHub工作流以及具有工具提示,验证和文档的Excel模板组成。Excel模板针对非技术用户,可以在在线电子表格软件中协同使用。技术性更强的用户随后使用GitHub工作流读取Excel工作表中的多个条目,并将其转换为机器可读的元数据。该元数据随后自动上传到连接的FAIR数据点。我们将FAIR数据点填充器应用于两个数据集的元数据和一个患者注册表。然后,我们能够在FAIR数据点索引上运行查询,以便检索其中一个数据集。结论:FAIR数据点填充器解决了其他元数据发布方法的局限性,允许大量创建元数据条目,同时保持对没有编程背景的用户的可访问性。此外,它允许高效的协作。因此,公平化的进入门槛较低,这使得更多的人可以创建公平数据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.20
自引率
5.70%
发文量
297
审稿时长
1 months
期刊介绍: BMC Medical Informatics and Decision Making is an open access journal publishing original peer-reviewed research articles in relation to the design, development, implementation, use, and evaluation of health information technologies and decision-making for human health.
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