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Development of an Eye Tracking-Based Human-Computer Interface for Real-Time Applications

机译:基于眼动追踪的实时人机界面开发

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摘要

In this paper, the development of an eye-tracking-based human–computer interface for real-time applications is presented. To identify the most appropriate pupil detection algorithm for the proposed interface, we analyzed the performance of eight algorithms, six of which we developed based on the most representative pupil center detection techniques. The accuracy of each algorithm was evaluated for different eye images from four representative databases and for video eye images using a new testing protocol for a scene image. For all video recordings, we determined the detection rate within a circular target 50-pixel area placed in different positions in the scene image, cursor controllability and stability on the user screen, and running time. The experimental results for a set of 30 subjects show a detection rate over 84% at 50 pixels for all proposed algorithms, and the best result (91.39%) was obtained with the circular Hough transform approach. Finally, this algorithm was implemented in the proposed interface to develop an eye typing application based on a virtual keyboard. The mean typing speed of the subjects who tested the system was higher than 20 characters per minute.
机译:在本文中,提出了针对实时应用的基于眼动追踪的人机界面的开发。为了确定所建议接口最合适的瞳孔检测算法,我们分析了八种算法的性能,其中六种算法是根据最具代表性的瞳孔中心检测技术开发的。使用针对场景图像的新测试协议,针对来自四个代表性数据库的不同眼睛图像和视频眼睛图像,评估了每种算法的准确性。对于所有视频记录,我们确定了位于场景图像中不同位置的圆形目标50像素区域内的检测率,光标在用户屏幕上的可控制性和稳定性以及运行时间。一组30个对象的实验结果表明,对于所有提出的算法,在50个像素处的检测率均超过84%,并且使用循环Hough变换方法可获得最佳结果(91.39%)。最后,在提出的界面中实现了该算法,以开发基于虚拟键盘的眼睛打字应用程序。测试该系统的受试者的平均打字速度高于每分钟20个字符。

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