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Measurement and prediction of situation awareness in human-robot interaction based on a framework of probabilistic attention

机译:基于概率注意力框架的人机交互中态势感知的度量和预测

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摘要

Human attention processes play a major role in the optimization of human-robot interaction (HRI) systems. This work describes a novel methodology to measure and predict situation awareness and from this overall performance from gaze features in real-time. The awareness about scene objects of interest is described by 3D gaze analysis using data from wearable eye tracking glasses and a precise optical tracking system. A probabilistic framework of uncertainty considers coping with measurement errors in eye and position estimation. Comprehensive experiments on HRI were conducted with typical tasks including handover in a lab based prototypical manufacturing environment. The methodology is proven to predict standard measures of situation awareness (SAGAT, SART) as well as performance in the HRI task in real-time and will open new opportunities for human factors based performance optimization in HRI applications.
机译:人为注意过程在人机交互(HRI)系统的优化中起着重要作用。这项工作描述了一种新颖的方法来测量和预测态势感知,并从注视功能的实时整体表现中进行评估。通过使用来自可穿戴式眼动跟踪眼镜和精确的光学跟踪系统的数据的3D凝视分析,可以描述对感兴趣的场景对象的了解。不确定性的概率框架考虑应对眼图和位置估计中的测量误差。针对HRI进行了全面的实验,并完成了一些典型任务,包括在基于实验室的原型制造环境中进行移交。该方法已被证明可以实时预测态势感知(SAGAT,SART)以及HRI任务中的绩效的标准度量,这将为基于人为因素的HRI应用性能优化打开新的机遇。

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