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A comparative analysis of a neural-based remote eye gaze tracker

Publication Type : Conference Proceedings

Publisher : 2014 International Conference on Embedded Systems (ICES)

Source : 2014 International Conference on Embedded Systems (ICES) (2014)

Keywords : Artificial neural networks, calibration, Computer vision, eye gaze detection system, Eye gaze tracking, eye template based features, feature, Feature extraction, Feature extraction techniques, gaze tracking, Head, lighting condition, neural based eye gaze tracker, neural nets, neural network, neural-based remote eye gaze tracker, nonintrusive system, Performance comparison, pupil detection, real-time system, system behavior, Tracking, Training, Vectors, Visual perception, webcam

Campus : Bengaluru

School : Department of Computer Science and Engineering, School of Engineering

Department : Computer Science

Year : 2014

Abstract : Remote eye gaze tracker is a nonintrusive system which can give the coordinates of the position., where a person is looking on the screen. This paper gives an extensive analysis of a neural based eye gaze tracker. The eye gaze detection system based on neural network considers the variation of the system behavior with different feature extraction techniques adopted like eye template based features and features based on pupil detection. The performance comparison between these various models has been presented in this paper. The system has also been tested under different lighting conditions and distance from the webcam for different subjects. The performance of the eye gaze tracker based on features computed from the eyes were found to have better performance of 95.8% compared to the template based features.

Cite this Research Publication : H. Nandakumar and Amudha, J., “A comparative analysis of a neural-based remote eye gaze tracker”, in 2014 International Conference on Embedded Systems (ICES), 2014.

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