Selection performance based on classes of bimanual actions

Amy Banic, Z. Wartell, P. Goolkasian, Evan A. Suma, L. Hodges
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引用次数: 22

Abstract

We evaluated four selection techniques for volumetric data based on the four classes of bimanual action: symmetric-synchronous, asymmetric-synchronous, symmetric-asynchronous, and asymmetric-asynchronous. The purpose of this study was to determine the relative performance characteristics of each of these classes. In addition, we compared two types of data representations to determine whether these selection techniques were suitable for interaction in different environments. The techniques were evaluated in terms of accuracy, completion times, TLX overall workload, TLX physical demand, and TLX cognitive demand. Our results suggest that symmetric and synchronous selection strategies both contribute to faster task completion. Our results also indicate that no class of bimanual selection was a significant contributor to reducing or increasing physical demand, while asynchronous action significantly increased cognitive demand in asymmetric techniques and decreased ease of use in symmetric techniques. However, for users with greater computer usage experience, accuracy performance differences diminished between the classes of bimanual action. No significant differences were found between the two types of data representations.
选择性能基于类的手动操作
我们评估了四种基于四类手动动作的体积数据选择技术:对称-同步、不对称-同步、对称-异步和不对称-异步。本研究的目的是确定每个类别的相对性能特征。此外,我们比较了两种类型的数据表示,以确定这些选择技术是否适用于不同环境中的交互。从准确性、完成时间、TLX总工作量、TLX物理需求和TLX认知需求等方面对这些技术进行评估。我们的研究结果表明,对称和同步选择策略都有助于更快地完成任务。我们的研究结果还表明,没有任何类型的双手选择对减少或增加身体需求有显著的贡献,而异步动作显著增加了非对称技术的认知需求,降低了对称技术的易用性。然而,对于具有更多计算机使用经验的用户,准确率表现差异在两类手动操作之间减小。两种类型的数据表示之间没有发现显著差异。
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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