应用领域工程支持特征识别和信息可视化生成的进展

Andrea Vázquez-Ingelmo, F. G. García Peñalvo, Roberto Therón
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引用次数: 2

摘要

信息可视化工具被广泛用于更好地理解大型和复杂的数据集。然而,为了充分利用它们,有必要依靠适当的设计,不仅要考虑要显示的数据,还要考虑受众和上下文。有一些工具已经允许用户在不需要编程技能的情况下配置他们的显示,但这个研究项目旨在探索信息可视化和仪表板的自动生成,以避免配置过程,并考虑到这些工具的上下文选择最合适的功能。为了解决这个问题,提出了一种领域工程和机器学习的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advances in the use of domain engineering to support feature identification and generation of information visualizations
Information visualization tools are widely used to better understand large and complex datasets. However, to make the most out of them, it is necessary to rely on proper designs that consider not only the data to be displayed, but also the audience and the context. There are tools that already allow users to configure their displays without requiring programming skills, but this research project aims at exploring the automatic generation of information visualizations and dashboards in order to avoid the configuration process, and select the most suitable features of these tools taking into account their contexts. To address this problem, a domain engineering, and machine learning approach is proposed.
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