海报摘要:隐马尔可夫模型在嘈杂眼动仪数据中发现视觉注意焦点的鲁棒性评价

Neil Cooke, M. Russell, A. Meyer
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引用次数: 2

摘要

通过眼动仪捕捉眼球位置,可以通过将眼球运动分为注视、追求或扫视来揭示视觉注意的焦点[Duchowski 2003],前两种运动表明视觉注意的焦点。这种分类需要有效地考虑眼动追踪数据中的所有其他可变性,从传感器误差到其他眼动(如微跳、眼球震颤和漂移)。隐马尔可夫模型提供了一种有用的方法,当用户进行视觉导向任务时,从眼睛位置发现视觉注意力的焦点,允许眼动追踪数据的可变性被建模为随机变量。
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Poster abstract: evaluation of hidden Markov models robustness in uncovering focus of visual attention from noisy eye-tracker data
Eye position, captured via an eye tracker, can uncover the focus of visual attention by classifying eye movements into fixations, pursuit or saccades [Duchowski 2003], with the former two indicating foci of visual attention. Such classification requires all other variability in eye tracking data, from sensor error to other eye movements (such as microsaccades, nystagmus and drifts) to accounted for effectively. The hidden Markov model provides a useful way of uncovering focus of visual attention from eye position when the user undertakes visually oriented tasks, allowing variability in eye tracking data to be modelled as a random variable.
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