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Using Eye Movement Data Visualization to Enhance Training of Air Traffic Controllers: A Dynamic Network Approach

机译:使用眼动数据可视化来增强空中交通管制员的训练:一种动态网络方法

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The Federal Aviation Administration (FAA) forecasted substantial increase in the US air traffic volume creating a high demand in Air Traffic Control Specialists (ATCSs). Training times and passing rates for ATCSs might be improved if expert ATCSs’ eye movement (EM) characteristics can be utilized to support effective training. However, effective EM visualization is difficult for a dynamic task (e.g. aircraft conflict detection and mitigation) that includes interrogating multi-element targets that are dynamically moving, appearing, disappearing, and overlapping within a display. To address the issues, a dynamic network-based approach is introduced that integrates adapted visualizations (i.e. time-frame networks and normalized dot/bar plots) with measures used in network science (i.e. indegree, closeness, and betweenness) to provide in-depth EM analysis. The proposed approach was applied in an aircraft conflict task using a high-fidelity simulator; employing the use of veteran ATCSs and pseudo pilots. Results show that, ATCSs’ visual attention to multi-element dynamic targets can be effectively interpreted and supported through multiple evidences obtained from the various visualization and associated measures. In addition, we discovered that fewer eye fixation numbers or shorter eye fixation durations on a target may not necessarily indicate the target is less important when analyzing the flow of visual attention within a network. The results show promise in cohesively analyzing and visualizing various eye movement characteristics to better support training.? ?
机译:联邦航空管理局(FAA)预测美国空中交通量将大幅增长,这将导致对空中交通管制专家(ATCS)的高需求。如果可以利用专家ATCS的眼动(EM)特性来支持有效的培训,则可以提高ATCS的培训时间和通过率。然而,对于包括询问在显示器内动态移动,出现,消失和重叠的多元素目标的动态任务(例如,飞机冲突检测和缓解),有效的EM可视化是困难的。为了解决这些问题,引入了一种基于动态网络的方法,该方法将适应性的可视化(即时间框架网络和标准化的点/条形图)与网络科学中使用的度量(即度数,紧密度和中间度)相集成,以提供深入的信息。 EM分析。所提出的方法被用于使用高保真模拟器的飞机冲突任务中。使用资深ATCS和伪飞行员。结果表明,ATCS对多元素动态目标的视觉关注可以通过从各种可视化和相关度量中获得的多个证据得到有效解释和支持。此外,我们发现,在分析网络中的视觉注意力流时,目标上的固定眼次数较少或固定眼的持续时间较短不一定表明目标不那么重要。结果显示出有凝聚力地分析和可视化各种眼动特征以更好地支持训练的希望。 ?

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