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A neural-based remote eye gaze tracker under natural head motion.

机译:基于自然头部运动的基于神经的远程眼睛注视跟踪器。

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摘要

A novel approach to view-based eye gaze tracking for human computer interface (HCI) is presented. The proposed method combines different techniques to address the problems of head motion, illumination and usability in the framework of low cost applications. Feature detection and tracking algorithms have been designed to obtain an automatic setup and strengthen the robustness to light conditions. An extensive analysis of neural solutions has been performed to deal with the non-linearity associated with gaze mapping under free-head conditions. No specific hardware, such as infrared illumination or high-resolution cameras, is needed, rather a simple commercial webcam working in visible light spectrum suffices. The system is able to classify the gaze direction of the user over a 15-zone graphical interface, with a success rate of 95% and a global accuracy of around 2 degrees , comparable with the vast majority of existing remote gaze trackers.
机译:提出了一种基于人机界面(HCI)的基于视图的眼睛注视跟踪的新颖方法。所提出的方法结合了不同的技术,以解决低成本应用框架中的头部运动,照明和可用性问题。设计了特征检测和跟踪算法,以获得自动设置并增强对光照条件的鲁棒性。已经对神经解决方案进行了广泛的分析,以解决与自由头条件下的注视映射有关的非线性问题。不需要特定的硬件,例如红外照明或高分辨率摄像头,只需一个在可见光谱范围内工作的简单的商用网络摄像头即可。该系统能够在15个区域的图形界面上对用户的视线方向进行分类,成功率达95%,全局精度约为2度,与绝大多数现有的远程视线追踪器相当。

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