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Human intention recognition based on eyeball movement pattern and pupil size variation

机译:基于眼球运动模式和瞳孔大小变化的人为识别

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摘要

To develop an efficient nonverbal human computer interaction system it is important to interpret the user's implicit intention, which is vague. According to cognitive visuo-motor theory, the human eye movements are a rich source of information about the human intention and behavior. According to Beatty's study, a task-evoked pupillary response is a consistent index of the human cognitive load and attention. In this paper, we propose a novel approach for a human's implicit intention recognition based on the eyeball movement pattern and pupil size variation. Based on the Bernard's research, we classify the human's implicit intention during a visual stimulus as informational and navigational intent. In the present study, the navigational intent refers to the human's idea to find some interesting objects in a visual input without a particular goal while the informational intent refers to the human's aspiration to find a particular object of interest. The proposed model utilizes the salient features of the eye such as fixation length, fixation count and pupil size variation as the inputs to classify the human's implicit intention. The experimental results show that the proposed model can achieve plausible recognition performance.
机译:为了开发有效的非语言人机交互系统,重要的是要解释用户的隐含意图,这是模糊的。根据认知视觉运动理论,人眼运动是有关人的意图和行为的丰富信息来源。根据Beatty的研究,任务诱发的瞳孔反应是人类认知负荷和注意力的一致指标。在本文中,我们提出了一种基于眼球运动模式和瞳孔大小变化的人类隐式意图识别的新方法。根据Bernard的研究,我们将视觉刺激过程中人类的隐含意图分类为信息和导航意图。在本研究中,导航意图是指人类在没有特定目标的情况下在视觉输入中找到一些有趣对象的想法,而信息意图是指人们渴望找到特定兴趣对象的愿望。提出的模型利用眼睛的显着特征(例如注视长度,注视计数和瞳孔大小变化)作为对人的内在意图进行分类的输入。实验结果表明,该模型可以实现合理的识别性能。

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