Predicting the Onset of Freezing of Gait Using EEG Dynamics

被引:5
|
作者
John, Alka Rachel [1 ]
Cao, Zehong [2 ]
Chen, Hsiang-Ting [3 ]
Martens, Kaylena Ehgoetz [4 ]
Georgiades, Matthew [5 ]
Gilat, Moran [6 ]
Nguyen, Hung T. [7 ]
Lewis, Simon J. G. [5 ]
Lin, Chin-Teng [1 ]
机构
[1] Univ Technol Sydney, Australian Artificial Intelligence Inst, Fac Engn & Informat Technol, Sydney 2007, Australia
[2] Univ South Australia, STEM, Mawson Lakes Campus, Adelaide 5001, Australia
[3] Univ Adelaide, Sch Comp Sci, Adelaide 5005, Australia
[4] Univ Waterloo, Dept Kinesiol, Waterloo, ON N2L 3G1, Canada
[5] Univ Sydney, Brain & Mind Ctr, Parkinsons Dis Res Clin, Sydney 2006, Australia
[6] Katholieke Univ Leuven, Dept Rehabil Sci, B-3000 Leuven, Belgium
[7] Swinburne Univ Technol, Fac Sci Engn & Technol, Hawthorn 3122, Australia
来源
APPLIED SCIENCES-BASEL | 2023年 / 13卷 / 01期
基金
澳大利亚研究理事会;
关键词
freezing of gait; Parkinson's disease; voluntary stopping; convolutional neural network; EEGNet; Shallow ConvNet; Deep ConvNet; PARKINSONS-DISEASE; PEOPLE; TRIAL;
D O I
10.3390/app13010302
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Freezing of gait (FOG) severely incapacitates the mobility of patients with advanced Parkinson's disease (PD). An accurate prediction of the onset of FOG could improve the quality of life for PD patients. However, it is imperative to distinguish the possibility of the onset of FOG from that of voluntary stopping. Our previous work demonstrated the neurological differences between the transition to FOG and voluntary stopping using electroencephalogram (EEG) signals. We employed a timed up-and-go (TUG) task to elicit FOG in PD patients. Some of these TUG tasks had an additional voluntary stopping component, where participants stopped walking based on verbal instruction to "stop". The performance of the convolutional neural network (CNN) in identifying the transition to FOG from normal walking and the transition to voluntary stopping was explored. To the best of our knowledge, this work is the first study to propose a deep learning method to distinguish the transition to FOG from the transition to voluntary stop in PD patients. The models, trained on the EEG data from 17 PD patients who manifested FOG episodes, considering a short two-second transition window for FOG occurrence or voluntary stopping, achieved close to 75% classification accuracy in distinguishing transition to FOG from the transition to voluntary stopping or normal walking. Our results represent an important step toward advanced EEG-based cueing systems for smart FOG intervention, excluding the potential confounding of voluntary stopping.
引用
收藏
页数:9
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