Visualizing a Tabular Data Repository to Facilitate Descriptive Tag Augmentation for New Tables

Jianhao Cao, T. Munzner, R. Pottinger
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Abstract

Many online tabular datasets are maintained in centralized repositories and annotated with descriptive tags. These tags are helpful for data practitioners to search and understand tables. However, manually annotating descriptive tags for new tables added to a large repository is expensive and may be inconsistent. In this extended abstract, we propose tag inference methods and implement an interactive visual explainer prototype to visualize a table repository with respect to a new table and to help a human user examine whether a recommended tag is suitable for the new table.
可视化表格数据存储库以促进新表的描述性标记增强
许多在线表格数据集保存在集中式存储库中,并使用描述性标记进行注释。这些标签有助于数据从业者搜索和理解表。但是,为添加到大型存储库中的新表手动注释描述性标记是昂贵的,并且可能不一致。在这篇扩展摘要中,我们提出了标签推理方法,并实现了一个交互式可视化解释器原型,以将表存储库与新表相关联,并帮助人类用户检查推荐的标签是否适合新表。
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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