Inferring Visual Behaviour from User Interaction Data on a Medical Dashboard

Ainhoa Yera, J. Muguerza, O. Arbelaitz, I. Perona, R. Keers, D. Ashcroft, Richard Williams, N. Peek, C. Jay, Markel Vigo
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引用次数: 5

Abstract

(its size and complexity) and its context of use. This results in user interfaces with a high-density of data that do not support optimal decision-making by clinicians. Anecdotal evidence indicates that clinicians demand the right amount of information to carry out their tasks. This suggests that adaptive user interfaces could be employed in order to cater for the information needs of the users and tackle information overload. Yet, since these information needs may vary, it is necessary first to identify and prioritise them, before implementing adaptations to the user interface. As gaze has long been known to be an indicator of interest, eye tracking allows us to unobtrusively observe where the users are looking, but it is not practical to use in a deployed system. Here, we address the question of whether we can infer visual behaviour on a medication safety dashboard through user interaction data. Our findings suggest that, there is indeed a relationship between the use of the mouse (in terms of clickstreams and mouse hovers) and visual behaviour in terms of cognitive load. We discuss the implications of this finding for the design of adaptive medical dashboards.
从医疗仪表板上的用户交互数据推断视觉行为
(它的大小和复杂性)和它的使用环境。这导致用户界面的高密度数据不能支持临床医生的最佳决策。轶事证据表明,临床医生需要适当数量的信息来完成他们的任务。这表明,可以采用自适应用户界面,以满足用户的信息需求,并解决信息过载问题。然而,由于这些信息需求可能各不相同,因此在实现对用户界面的调整之前,有必要首先确定它们并确定优先级。由于凝视一直被认为是兴趣的指示器,眼动追踪使我们能够不显眼地观察到用户在看哪里,但在部署系统中使用它是不实际的。在这里,我们解决了我们是否可以通过用户交互数据推断药物安全仪表板上的视觉行为的问题。我们的研究结果表明,鼠标的使用(在点击流和鼠标悬停方面)和视觉行为在认知负荷方面确实存在关系。我们讨论了这一发现对自适应医疗仪表板设计的影响。
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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