基于时间的社交网络用户分类可视化

Andrew S. Brunker, Quang Vinh Nguyen, A. Maeder, Rhys Tague, G. Kolt, T. Savage, C. Vandelanotte, M. Duncan, C. Caperchione, R. Rosenkranz, A. V. Itallie, W. Mummery
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引用次数: 4

摘要

本文提出了一种新的可视化分析框架,用于分析与健康有关的身体活动数据。现有技术主要依赖于节点链接可视化来将使用模式表示为社会网络。这项工作采用了一种不同的方法,在分类和基于时间的数据上提供交互式散点图可视化。与传统的社交网络方法相比,通过提供灵活的可视化,可以从不同的角度对多维和分类数据进行分析,分析人员可以更好地理解和洞察网络用户的行为。我们的方法的有效性已经通过一个名为Walk 2.0的在线门户系统跟踪被动身体活动的案例研究得到了证明。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Time-based Visualization for Web User Classification in Social Networks
This paper presents a new visual analytics framework for analyzing health-related physical activity data. Existing techniques mostly rely on node-links visualizations to represent the usage patterns as social networks. This work takes a different approach that provides interactive scatter-plot visualizations on classified and time-based data. By providing a flexible visualization that can provide different angles on the multidimensional and classified data, the analyst could have better understanding and insight on web user behavior compared to the traditional social network methods. The effectiveness of our method has been demonstrated with a case study on an online portal system for tracking passive physical activity, called Walk 2.0.
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