用于空中手势模式分析的可视化分析工具

Sujin Jang, N. Elmqvist, K. Ramani
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引用次数: 32

摘要

理解人类手势背后的意图是手势交互设计中的一个关键问题。观察和理解用户如何表达手势的一种常用方法是使用启发式研究。然而,这些研究需要对用户数据进行耗时的分析,以识别手势模式。此外,人类的分析不能像基于数据的运动特征表示那样详细地描述手势。在本文中,我们介绍了GestureAnalyzer,这是一个通过对运动跟踪数据应用交互式聚类和可视化技术来支持手势模式探索性分析的系统。GestureAnalyzer可以对类似的手势进行快速分类,并对用户手势的各种几何和运动学属性进行视觉调查。我们描述了系统的组成部分,然后通过一个从启发研究中获得的空中手势的案例研究来展示它的实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
GestureAnalyzer: visual analytics for pattern analysis of mid-air hand gestures
Understanding the intent behind human gestures is a critical problem in the design of gestural interactions. A common method to observe and understand how users express gestures is to use elicitation studies. However, these studies require time-consuming analysis of user data to identify gesture patterns. Also, the analysis by humans cannot describe gestures in as detail as in data-based representations of motion features. In this paper, we present GestureAnalyzer, a system that supports exploratory analysis of gesture patterns by applying interactive clustering and visualization techniques to motion tracking data. GestureAnalyzer enables rapid categorization of similar gestures, and visual investigation of various geometric and kinematic properties of user gestures. We describe the system components, and then demonstrate its utility through a case study on mid-air hand gestures obtained from elicitation studies.
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