基于能力的个性化键盘生成方法

IF 2.4 Q3 COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE
Multimodal Technologies and Interaction Pub Date : 2022-08-01 Epub Date: 2022-08-03 DOI:10.3390/mti6080067
Claire L Mitchell, Gabriel J Cler, Susan K Fager, Paola Contessa, Serge H Roy, Gianluca De Luca, Joshua C Kline, Jennifer M Vojtech
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引用次数: 0

摘要

本研究介绍了一种基于能力的个性化键盘生成方法,利用个人自身的运动和人机交互数据自动计算个性化虚拟键盘布局。我们的方法整合了多方向点选择任务,以描述光标在时间、距离和方向上的控制特性。该特征描述可自动用于开发计算效率高的键盘布局,通过捕捉方向限制和偏好,优先考虑每个用户的移动能力。我们在一项有 16 名参与者参与的研究中评估了我们的方法,该研究使用惯性传感和面部肌电图作为访问方法,结果与通用优化键盘(47.9 比特/分钟)相比,使用个性化键盘的通信速率显著提高(52.0 比特/分钟)。我们的研究结果表明,可以有效地描述个人的运动能力,从而设计出个性化的键盘来改善交流。这项工作强调了在设计虚拟界面时整合用户运动能力的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ability-Based Methods for Personalized Keyboard Generation.

Ability-Based Methods for Personalized Keyboard Generation.

Ability-Based Methods for Personalized Keyboard Generation.

Ability-Based Methods for Personalized Keyboard Generation.

This study introduces an ability-based method for personalized keyboard generation, wherein an individual's own movement and human-computer interaction data are used to automatically compute a personalized virtual keyboard layout. Our approach integrates a multidirectional point-select task to characterize cursor control over time, distance, and direction. The characterization is automatically employed to develop a computationally efficient keyboard layout that prioritizes each user's movement abilities through capturing directional constraints and preferences. We evaluated our approach in a study involving 16 participants using inertial sensing and facial electromyography as an access method, resulting in significantly increased communication rates using the personalized keyboard (52.0 bits/min) when compared to a generically optimized keyboard (47.9 bits/min). Our results demonstrate the ability to effectively characterize an individual's movement abilities to design a personalized keyboard for improved communication. This work underscores the importance of integrating a user's motor abilities when designing virtual interfaces.

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来源期刊
Multimodal Technologies and Interaction
Multimodal Technologies and Interaction Computer Science-Computer Science Applications
CiteScore
4.90
自引率
8.00%
发文量
94
审稿时长
4 weeks
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