MUSA - a prototype for multiple-step aggregation visualization

Tao Ni
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Abstract

It is a common task when analyzing a large dataset (e.g., census database) to create some kind of overview of the original dataset, which is small enough to be easily manipulated, while remains the key characteristics of the data. Many aggregation techniques have been proposed to help users better understand the dataset and find desired information in it. However, the user can easily get lost after several aggregation operations, since there is rarely mechanism facilitating the user to remember what he or she has done in previous steps. In this paper, we present a prototype, namely MUSA, for multiple-step aggregation visualization. We aimed at designing a tool not only to help users obtain various levels of overviews to narrow their selections, but also to effectively visualize the aggregation processes to enhance the context awareness. We also conducted an informal user study to evaluate the tool.
一个多步骤聚合可视化的原型
在分析大型数据集(例如,人口普查数据库)时,创建原始数据集的某种概述是一项常见任务,该数据集足够小,易于操作,同时保留数据的关键特征。已经提出了许多聚合技术来帮助用户更好地理解数据集并在其中找到所需的信息。但是,在进行了几个聚合操作之后,用户很容易迷失方向,因为很少有机制可以帮助用户记住他或她在前面的步骤中做了什么。本文提出了一个多步聚合可视化的原型,即MUSA。我们的目标是设计一个工具,不仅可以帮助用户获得不同层次的概述,以缩小他们的选择范围,而且还可以有效地可视化聚合过程,以增强上下文感知。我们还进行了非正式的用户研究来评估该工具。
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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