Eye Movement Prediction Based on Adaptive BP Neural Network

This paper uses adaptive BP neural networks to conduct an in-depth examination of eye movements during reading and to predict reading effects. An important component for the implementation of visual tracking systems is the correct detection of eye movement using the actual data or real-world dataset...

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Published inScientific programming Vol. 2021; pp. 1 - 9
Main Authors Tang, Yushou, Su, Jianhuan
Format Journal Article
LanguageEnglish
Published New York Hindawi 2021
John Wiley & Sons, Inc
Subjects
Online AccessGet full text
ISSN1058-9244
1875-919X
1875-919X
DOI10.1155/2021/4977620

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Abstract This paper uses adaptive BP neural networks to conduct an in-depth examination of eye movements during reading and to predict reading effects. An important component for the implementation of visual tracking systems is the correct detection of eye movement using the actual data or real-world datasets. We propose the identification of three typical types of eye movements, namely, gaze, leap, and smooth navigation, using an adaptive BP neural network-based recognition algorithm for eye movement. This study assesses the BP neural network algorithm using the eye movement tracking sensors. For the experimental environment, four types of eye movement signals were acquired from 10 subjects to perform preliminary processing of the acquired signals. The experimental results demonstrate that the recognition rate of the algorithm provided in this paper can reach up to 97%, which is superior to the commonly used CNN algorithm.
AbstractList This paper uses adaptive BP neural networks to conduct an in-depth examination of eye movements during reading and to predict reading effects. An important component for the implementation of visual tracking systems is the correct detection of eye movement using the actual data or real-world datasets. We propose the identification of three typical types of eye movements, namely, gaze, leap, and smooth navigation, using an adaptive BP neural network-based recognition algorithm for eye movement. This study assesses the BP neural network algorithm using the eye movement tracking sensors. For the experimental environment, four types of eye movement signals were acquired from 10 subjects to perform preliminary processing of the acquired signals. The experimental results demonstrate that the recognition rate of the algorithm provided in this paper can reach up to 97%, which is superior to the commonly used CNN algorithm.
Author Su, Jianhuan
Tang, Yushou
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Cites_doi 10.1007/s00521-018-3357-9
10.1038/s41593-020-00754-9
10.1093/treephys/tpw069
10.1007/s00521-021-05933-8
10.1007/s13755-019-0081-5
10.1016/j.cub.2019.07.006
10.1109/TITS.2019.2897687
10.18520/cs/v116/i12/2001-2012
10.1111/mice.12515
10.1166/jmihi.2019.2804
10.1007/s11517-020-02278-7
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10.1039/c9gc03265g
10.1111/pcn.13188
10.1080/09286586.2019.1679192
10.1016/j.bbe.2020.02.002
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Copyright Copyright © 2021 Yushou Tang and Jianhuan Su.
Copyright © 2021 Yushou Tang and Jianhuan Su. This is an open access article distributed under the Creative Commons Attribution License (the “License”), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. https://creativecommons.org/licenses/by/4.0
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SubjectTerms Algorithms
Back propagation networks
Deep learning
Emotions
Eye movements
Human-computer interaction
Literature reviews
Motion perception
Neural networks
Optical tracking
Recognition
Signal processing
Support vector machines
Tracking systems
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Title Eye Movement Prediction Based on Adaptive BP Neural Network
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