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Real time eye tracking using Kalman extended spatio-temporal context learning

机译:使用卡尔曼扩展时空上下文学习的实时眼睛跟踪

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Real time eye tracking has numerous applications in human computer interaction such as a mouse cursor control in a computer system. It is useful for persons with muscular or motion impairments. However, tracking the movement of the eye is complicated by occlusion due to blinking, head movement, screen glare, rapid eye movements, etc. In this work, we present the algorithmic and construction details of a real time eye tracking system. Our proposed system is an extension of Spatio-Temporal context learning through Kalman Filtering. Spatio-Temporal Context Learning offers state of the art accuracy in general object tracking but its performance suffers due to object occlusion. Addition of the Kalman filter allows the proposed method to model the dynamics of the motion of the eye and provide robust eye tracking in cases of occlusion. We demonstrate the effectiveness of this tracking technique by controlling the computer cursor in real time by eye movements.
机译:实时眼睛跟踪在人机交互中具有许多应用,例如计算机系统中的鼠标光标控制。对于具有肌肉或运动损伤的人来说是有用的。然而,由于闪烁,头部运动,屏幕眩光,快速的眼睛运动等,跟踪眼睛的移动是复杂的遮挡。在这项工作中,我们介绍了实时眼睛跟踪系统的算法和施工细节。我们所提出的系统是通过卡尔曼滤波的时空上下文学习的扩展。时空上下文学习在一般物体跟踪中提供了最新的最新精度,但其性能因对象闭塞而受到影响。添加卡尔曼滤波器允许所提出的方法来模拟眼睛运动的动态,并在闭塞的情况下提供鲁棒的眼睛跟踪。我们通过眼睛运动实时控制计算机光标来证明该跟踪技术的有效性。

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