科学和文化内容的视觉建议

Eduardo Veas, Belgin Mutlu, Cecilia di Sciascio, Gerwald Tschinkel, V. Sabol
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引用次数: 2

摘要

支持缺乏经验或能力的个人评估大量信息,如文化、科学和教育内容,使推荐系统在处理信息过载问题方面具有不可估量的价值。然而,即使推荐的信息规模扩大,用户仍然需要考虑大量的项目。可视化占据了前景角色,让用户探索可能有趣的结果。它利用人类视觉系统的高带宽来传递大量的信息。本文论证了自动化非结构化数据可视化创建的必要性,使其适应用户的偏好。我们描述了一个原型解决方案,采用了一种激进的方法,考虑了基础视觉感知指南和个性化建议,以建议适当的可视化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Visual Recommendations for Scientific and Cultural Content
Supporting individuals who lack experience or competence to evaluate an overwhelming amout of information such as from cultural, scientific and educational content makes recommender system invaluable to cope with the information overload problem. However, even recommended information scales up and users still need to consider large number of items. Visualization takes a foreground role, letting the user explore possibly interesting results. It leverages the high bandwidth of the human visual system to convey massive amounts of information. This paper argues the need to automate the creation of visualizations for unstructured data adapting it to the user’s preferences. We describe a prototype solution, taking a radical approach considering both grounded visual perception guidelines and personalized recommendations to suggest the proper visualization.
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